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spg_storage/
lib.rs

1//! In-memory storage primitives.
2//!
3//! v0.3 is intentionally simple: a flat catalog of tables, each holding rows
4//! as `Vec<Value>` (positional, matching the table's `TableSchema`). No MVCC,
5//! no on-disk format — those land in later milestones.
6#![no_std]
7// v3.3.2 NEON path for l2_distance_sq (aarch64 only). Scoped allow:
8// `unsafe_code = "deny"` at workspace level stays in force for every
9// other crate.
10#![cfg_attr(target_arch = "aarch64", allow(unsafe_code))]
11
12extern crate alloc;
13
14pub mod bloom;
15pub mod fts_simple;
16pub mod halfvec;
17pub mod persistent;
18pub mod persistent_btree;
19pub mod quantize;
20pub mod row_locator;
21pub mod segment;
22pub mod trgm;
23
24pub use self::bloom::{BloomError, BloomFilter};
25pub use self::row_locator::{RowLocator, RowLocatorError};
26pub use self::segment::{
27    BRIN_SIDECAR_MAGIC, BrinSummary, OwnedSegment, SEGMENT_COMPRESS_ALGO_LZSS,
28    SEGMENT_COMPRESS_ALGO_NONE, SEGMENT_MAGIC, SEGMENT_MAGIC_V2, SEGMENT_PAGE_BYTES, SegmentError,
29    SegmentMeta, SegmentReader, derive_brin_summaries, encode_segment, wrap_v2_envelope,
30    wrap_v2_envelope_with_brin,
31};
32
33use alloc::boxed::Box;
34use alloc::collections::{BTreeMap, BTreeSet};
35use alloc::format;
36use alloc::string::{String, ToString};
37use alloc::sync::Arc;
38use alloc::vec::Vec;
39use core::fmt;
40
41use self::persistent::PersistentVec;
42use self::persistent_btree::PersistentBTreeMap;
43
44/// In-cell encoding for `DataType::Vector`. Mirrors
45/// `spg_sql::ast::VecEncoding` — kept here so storage stays
46/// dep-free of `spg-sql`. The engine bridges between the two
47/// at DDL-execution time.
48///
49/// `F32` is the pre-v6 default: each cell holds a raw `Vec<f32>`.
50/// `Sq8` (v6.0.1) stores `Sq8Vector { min, max, bytes: Vec<u8> }`
51/// per cell; 4× compression vs `F32` with recall@10 ≥ 0.95 on
52/// natural embeddings (Gaussian / unit-sphere corpora).
53/// `F16` (v6.0.3, DDL keyword `HALF`) stores each element as
54/// IEEE-754 binary16; 2× compression and bit-exact dequantise.
55#[derive(Debug, Clone, Copy, PartialEq, Eq, Default)]
56pub enum VecEncoding {
57    #[default]
58    F32,
59    Sq8,
60    F16,
61}
62
63impl fmt::Display for VecEncoding {
64    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
65        match self {
66            Self::F32 => f.write_str("F32"),
67            Self::Sq8 => f.write_str("SQ8"),
68            Self::F16 => f.write_str("HALF"),
69        }
70    }
71}
72
73/// Runtime type tags. `Vector { dim, encoding }` / `Varchar(max)` /
74/// `Char(size)` are parameterised; the parameter travels with both
75/// the column schema and the on-wire serialised representation.
76#[derive(Debug, Clone, Copy, PartialEq, Eq)]
77pub enum DataType {
78    /// 16-bit signed. Backed by `Value::SmallInt(i16)`; arithmetic that
79    /// would overflow surfaces as a type error at INSERT time.
80    SmallInt,
81    Int,    // 32-bit signed
82    BigInt, // 64-bit signed
83    Float,  // f64 (PG double precision)
84    Text,
85    /// `VARCHAR(n)` — same byte representation as `Text`, but INSERT
86    /// rejects values longer than `n` Unicode characters.
87    Varchar(u32),
88    /// `CHAR(n)` — same representation as `Text`, but INSERT right-pads
89    /// with U+0020 to exactly `n` Unicode characters (or rejects when
90    /// the input is already longer).
91    Char(u32),
92    Bool,
93    /// pgvector-style fixed-dimension vector. `encoding` selects
94    /// the in-cell representation (`F32` = pre-v6 raw f32 buffer;
95    /// `Sq8` = v6.0.1 8-bit scalar-quantised). The DDL grammar
96    /// surfaces encoding via the optional `USING <encoding>`
97    /// clause: `VECTOR(128) USING SQ8`.
98    Vector {
99        dim: u32,
100        encoding: VecEncoding,
101    },
102    /// `NUMERIC(precision, scale)` — exact fixed-point decimal stored as
103    /// a scaled `i128`. `precision` caps total decimal digits, `scale`
104    /// fixes digits after the decimal point. v1.12 supports up to
105    /// precision 38 (the i128-safe ceiling). `NUMERIC` and `NUMERIC(p)`
106    /// surface as `Numeric { precision: p, scale: 0 }`.
107    Numeric {
108        precision: u8,
109        scale: u8,
110    },
111    /// `DATE` — calendar date with day precision, stored as `i32` days
112    /// since the Unix epoch (1970-01-01).
113    Date,
114    /// `TIMESTAMP` (a.k.a. `MySQL` `DATETIME`) — instant with microsecond
115    /// precision, stored as `i64` microseconds since the Unix epoch.
116    Timestamp,
117    /// v7.9.2 `TIMESTAMPTZ` — bit-identical to `Timestamp` on disk
118    /// (i64 microseconds, UTC by convention). Carried as a distinct
119    /// type tag so the PG-wire layer can advertise OID 1184 (PG's
120    /// `timestamp with time zone`) and `sqlx`/`pgx`/JDBC clients
121    /// decode into their TZ-aware datetime types. The internal
122    /// semantics are unchanged: SPG never stored per-row offsets,
123    /// and neither did PG — `TIMESTAMPTZ` in PG is also UTC i64.
124    Timestamptz,
125    /// `INTERVAL` — calendar-aware span (months + microseconds). v2.11
126    /// supports INTERVAL only as a runtime intermediate (literals,
127    /// arithmetic results); on-disk encoding is rejected so this branch
128    /// can't appear in a `ColumnSchema`.
129    Interval,
130    /// v4.9: `JSON` — text-backed JSON document. We don't parse
131    /// the content (no path operators or jsonb functions yet) —
132    /// the column accepts any TEXT-compatible value and round-trips
133    /// it verbatim. PG OID 114 on the wire.
134    Json,
135    /// v7.9.0: `JSONB` — semantically identical to `Json` on
136    /// the storage side (same `Value::Json` cells, same
137    /// row codec), but advertised as PG OID 3802 on the wire
138    /// so `sqlx`-style clients that bind `jsonb` columns
139    /// decode correctly. mailrs migration blocker #3.
140    Jsonb,
141    /// v7.10.4: `BYTES` / `BYTEA` — variable-length raw binary.
142    /// Backed by `Value::Bytes(Vec<u8>)`. PG wire OID 17. Literal
143    /// forms accepted by parser/engine: PG hex form `'\xDEADBEEF'`
144    /// (case-insensitive hex pairs) and escape form
145    /// `'foo\\000bar'` (the latter decoded at coercion time when
146    /// the target column is BYTEA — TEXT columns leave the
147    /// backslash sequence verbatim).
148    Bytes,
149    /// v7.10.9: `TEXT[]` — single-dimension TEXT array. Elements
150    /// may be NULL (PG semantics). PG wire OID 1009. Literal
151    /// forms: `ARRAY['a', 'b', NULL]` and the PG external form
152    /// `'{a,b,NULL}'::TEXT[]`. Engine implements `= ANY(arr)`,
153    /// `<> ALL(arr)`, and 1-based indexing `arr[i]`. Catalog
154    /// FILE_VERSION 18+; older snapshots reject this DataType
155    /// (forward-only by design — TEXT[] columns aren't readable
156    /// on a pre-v7.10 binary).
157    TextArray,
158    /// v7.11.12: `INT[]` — single-dimension i32 array. PG wire
159    /// OID 1007 (_int4). Same `ARRAY[...]` / `'{1,2,3}'::INT[]`
160    /// literal surface as TEXT[]. Catalog FILE_VERSION 19+.
161    IntArray,
162    /// v7.11.12: `BIGINT[]` — single-dimension i64 array. PG
163    /// wire OID 1016 (_int8). Catalog FILE_VERSION 19+.
164    BigIntArray,
165    /// v7.12.0: PG `tsvector` — ordered, deduplicated set of
166    /// `(lexeme, positions, weight)` tuples. PG wire OID 3614.
167    /// Catalog FILE_VERSION 20+. Storage shape is row-codec
168    /// tag 22; the schema-agnostic `write_value` path emits tag
169    /// 18. Literal: `'foo:1 bar:2,3'::tsvector` (PG external
170    /// form). G-CRIT-3 entry — v7.12.0 only ships the type +
171    /// codec; matching `@@` lands in v7.12.2.
172    TsVector,
173    /// v7.12.0: PG `tsquery` — parse tree of lexemes joined by
174    /// `&` `|` `!` and phrase operators. PG wire OID 3615.
175    /// Catalog FILE_VERSION 20+.
176    TsQuery,
177    /// v7.17.0: PG `uuid` — 128-bit identifier stored as
178    /// `Value::Uuid([u8; 16])`. PG wire OID 2950. Canonical
179    /// text form is lowercase 8-4-4-4-12 hyphenated; input
180    /// also accepts uppercase, unhyphenated, and brace-wrapped
181    /// forms (`{xxxx…}`). Catalog FILE_VERSION 36+; tag 24 on
182    /// the dense type-tag side, tag 20 on the schema-agnostic
183    /// value side. The drop-in PG/MySQL surface for Django /
184    /// Rails / Hibernate "id UUID PRIMARY KEY DEFAULT
185    /// gen_random_uuid()" default-PK pattern.
186    Uuid,
187    /// v7.17.0 Phase 3.P0-32: PG `time` (without time zone) — i64
188    /// microseconds since 00:00:00. PG wire OID 1083. Display:
189    /// canonical zero-padded `HH:MM:SS` when fractional is zero,
190    /// `HH:MM:SS.ffffff` otherwise. Catalog FILE_VERSION 37+;
191    /// tag 25 on the dense type-tag side, tag 21 on the schema-
192    /// agnostic value side. The wall-clock-of-day half of PG's
193    /// date/time triplet (date / time / timestamp).
194    Time,
195    /// v7.17.0 Phase 3.P0-33: MySQL `YEAR` — u16 in range
196    /// 1901..=2155 plus the special zero-year sentinel 0. No
197    /// dedicated PG OID (advertised as INT4 / OID 23 on the wire
198    /// — psql renders integers, MySQL CLI renders 4-digit
199    /// zero-padded text). Display always 4 digits: `0000` for the
200    /// zero-year, `1985` / `2007` / etc otherwise. Catalog
201    /// FILE_VERSION 38+; tag 26 on the dense type-tag side, tag
202    /// 22 on the schema-agnostic value side.
203    Year,
204    /// v7.17.0 Phase 3.P0-34: PG `time with time zone` (TIMETZ) —
205    /// i64 microseconds since 00:00:00 in the local wall clock
206    /// PLUS i32 offset-from-UTC in seconds. PG wire OID 1266.
207    /// Display: `HH:MM:SS[.ffffff]±HH[:MM]` (PG `timetz_out`).
208    /// Range: offset in ±50400 seconds (±14 hours). Catalog
209    /// FILE_VERSION 39+; tag 27 on the dense type-tag side, tag
210    /// 23 on the schema-agnostic value side.
211    TimeTz,
212    /// v7.17.0 Phase 3.P0-35: PG `money` — i64 cents (locale-
213    /// independent storage). PG wire OID 790. Display: en_US
214    /// locale (`$N,NNN.CC`, negative → `-$1.23`). Input accepts
215    /// `$N.NN`, `$N,NNN.NN`, bare integer (treated as major
216    /// units), optional leading `-`. Range: full i64. Catalog
217    /// FILE_VERSION 40+; tag 28 on the dense type-tag side, tag
218    /// 24 on the schema-agnostic value side.
219    Money,
220    /// v7.17.0 Phase 3.P0-38: PG range type. The same DataType
221    /// variant covers all six builtin ranges (int4range,
222    /// int8range, numrange, tsrange, tstzrange, daterange) —
223    /// `RangeKind` pins the element type so encode / decode /
224    /// display can route off one switch. Catalog FILE_VERSION
225    /// 43+; tag 29 + a 1-byte RangeKind on the dense type-tag
226    /// side, tag 25 on the schema-agnostic value side.
227    Range(RangeKind),
228    /// v7.17.0 Phase 3.P0-39: PG `hstore` extension type — flat
229    /// `text => text` map with NULL value support. Catalog
230    /// FILE_VERSION 44+; tag 30 on the dense type-tag side, tag
231    /// 26 on the schema-agnostic value side. The contrib OID is
232    /// installation-dependent in real PG; SPG advertises it via
233    /// dynamic lookup, falling back to TEXT (OID 25) on the wire
234    /// when the installed `hstore` extension hasn't claimed an
235    /// OID yet.
236    Hstore,
237    /// v7.17.0 Phase 3.P0-40: PG `int[][]` — 2-dimensional INT
238    /// matrix. Storage: row-major Vec<Vec<Option<i32>>>. All
239    /// rows must share the same column count. Wire OID 1007
240    /// (same as INT[]; the dimension count travels in the data
241    /// header, not the OID). Catalog FILE_VERSION 45+; tag 31
242    /// on the dense type-tag side, tag 27 on the schema-agnostic
243    /// value side.
244    IntArray2D,
245    /// v7.17.0 Phase 3.P0-40: PG `bigint[][]` — 2-dimensional
246    /// BIGINT matrix. Storage / OID / tags mirror IntArray2D.
247    /// Tag 32 dense, tag 28 schema-agnostic.
248    BigIntArray2D,
249    /// v7.17.0 Phase 3.P0-40: PG `text[][]` — 2-dimensional TEXT
250    /// matrix. Storage: row-major Vec<Vec<Option<String>>>.
251    /// Tag 33 dense, tag 29 schema-agnostic.
252    TextArray2D,
253}
254
255/// v7.17.0 Phase 3.P0-38 — pins the element type of a range value
256/// or column. Wire OIDs: Int4=3904, Int8=3926, Num=3906,
257/// Ts=3908, TsTz=3910, Date=3912.
258#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, PartialOrd, Ord)]
259pub enum RangeKind {
260    Int4,
261    Int8,
262    Num,
263    Ts,
264    TsTz,
265    Date,
266}
267
268impl RangeKind {
269    pub const fn tag(self) -> u8 {
270        match self {
271            Self::Int4 => 0,
272            Self::Int8 => 1,
273            Self::Num => 2,
274            Self::Ts => 3,
275            Self::TsTz => 4,
276            Self::Date => 5,
277        }
278    }
279    pub const fn from_tag(t: u8) -> Option<Self> {
280        Some(match t {
281            0 => Self::Int4,
282            1 => Self::Int8,
283            2 => Self::Num,
284            3 => Self::Ts,
285            4 => Self::TsTz,
286            5 => Self::Date,
287            _ => return None,
288        })
289    }
290    pub const fn keyword(self) -> &'static str {
291        match self {
292            Self::Int4 => "INT4RANGE",
293            Self::Int8 => "INT8RANGE",
294            Self::Num => "NUMRANGE",
295            Self::Ts => "TSRANGE",
296            Self::TsTz => "TSTZRANGE",
297            Self::Date => "DATERANGE",
298        }
299    }
300}
301
302impl fmt::Display for DataType {
303    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
304        match self {
305            Self::SmallInt => f.write_str("SMALLINT"),
306            Self::Int => f.write_str("INT"),
307            Self::BigInt => f.write_str("BIGINT"),
308            Self::Float => f.write_str("FLOAT"),
309            Self::Text => f.write_str("TEXT"),
310            Self::Varchar(n) => write!(f, "VARCHAR({n})"),
311            Self::Char(n) => write!(f, "CHAR({n})"),
312            Self::Bool => f.write_str("BOOL"),
313            Self::Vector { dim, encoding } => match encoding {
314                VecEncoding::F32 => write!(f, "VECTOR({dim})"),
315                VecEncoding::Sq8 => write!(f, "VECTOR({dim}) USING SQ8"),
316                VecEncoding::F16 => write!(f, "VECTOR({dim}) USING HALF"),
317            },
318            Self::Numeric { precision, scale } => {
319                if *scale == 0 {
320                    write!(f, "NUMERIC({precision})")
321                } else {
322                    write!(f, "NUMERIC({precision}, {scale})")
323                }
324            }
325            Self::Date => f.write_str("DATE"),
326            Self::Timestamp => f.write_str("TIMESTAMP"),
327            Self::Timestamptz => f.write_str("TIMESTAMPTZ"),
328            Self::Interval => f.write_str("INTERVAL"),
329            Self::Json => f.write_str("JSON"),
330            Self::Jsonb => f.write_str("JSONB"),
331            Self::Bytes => f.write_str("BYTEA"),
332            Self::TextArray => f.write_str("TEXT[]"),
333            Self::IntArray => f.write_str("INT[]"),
334            Self::BigIntArray => f.write_str("BIGINT[]"),
335            Self::TsVector => f.write_str("TSVECTOR"),
336            Self::TsQuery => f.write_str("TSQUERY"),
337            Self::Uuid => f.write_str("UUID"),
338            Self::Time => f.write_str("TIME"),
339            Self::Year => f.write_str("YEAR"),
340            Self::TimeTz => f.write_str("TIMETZ"),
341            Self::Money => f.write_str("MONEY"),
342            Self::Range(k) => f.write_str(k.keyword()),
343            Self::Hstore => f.write_str("HSTORE"),
344            Self::IntArray2D => f.write_str("INT[][]"),
345            Self::BigIntArray2D => f.write_str("BIGINT[][]"),
346            Self::TextArray2D => f.write_str("TEXT[][]"),
347        }
348    }
349}
350
351/// v7.12.0 — one entry in a `Value::TsVector`. The lexeme is the
352/// (already-tokenised + stemmed in v7.12.1+) word; `positions` is
353/// a strictly-ascending list of 1-based positions; `weight` is the
354/// PG weight letter (A=3, B=2, C=1, D=0) — v7.12.0 defaults every
355/// lexeme to D, the v7.12.2 ranking path consumes the weight.
356#[derive(Debug, Clone, PartialEq, Eq)]
357pub struct TsLexeme {
358    pub word: String,
359    pub positions: Vec<u16>,
360    pub weight: u8,
361}
362
363/// v7.12.0 — parse tree for a PG `tsquery`. v7.12.0 ships the
364/// type + codec only; the `to_tsquery` / `plainto_tsquery` lexer
365/// lands in v7.12.1 and the `@@` evaluator in v7.12.2.
366#[derive(Debug, Clone, PartialEq, Eq)]
367pub enum TsQueryAst {
368    /// Single lexeme term. The `weight_mask` is the PG-style
369    /// bitmask of accepted weights (`A=1<<3`, `B=1<<2`, `C=1<<1`,
370    /// `D=1<<0`); `0` = any weight. v7.12.0 always sets it to 0.
371    Term {
372        word: String,
373        weight_mask: u8,
374    },
375    And(Box<TsQueryAst>, Box<TsQueryAst>),
376    Or(Box<TsQueryAst>, Box<TsQueryAst>),
377    Not(Box<TsQueryAst>),
378    /// `phrase <distance> phrase`. v7.12.0 only persists this; the
379    /// match semantics arrive in v7.12.2 alongside `@@`.
380    Phrase {
381        left: Box<TsQueryAst>,
382        right: Box<TsQueryAst>,
383        distance: u16,
384    },
385}
386
387/// A row-cell value, including SQL `NULL`. `Float` uses `f64`; NaN compares
388/// non-equal to itself (PG behaviour) — `PartialEq` is derived so callers
389/// must opt into NaN-aware comparison if they need stronger guarantees.
390#[derive(Debug, Clone, PartialEq)]
391#[non_exhaustive]
392pub enum Value {
393    SmallInt(i16),
394    Int(i32),
395    BigInt(i64),
396    Float(f64),
397    Text(String),
398    Bool(bool),
399    Vector(Vec<f32>),
400    /// v6.0.1: 8-bit scalar-quantised vector cell. Lives in
401    /// columns declared `VECTOR(N) USING SQ8`. Layout per cell:
402    /// `Sq8Vector { min: f32, max: f32, bytes: Vec<u8> }` —
403    /// 4× compression vs `Vector(Vec<f32>)`. The wire layer
404    /// dequantises to `f32` on SELECT; INSERT path quantises
405    /// incoming `Vector(Vec<f32>)` cells into this variant.
406    Sq8Vector(crate::quantize::Sq8Vector),
407    /// v6.0.3: IEEE-754 binary16 vector cell. Lives in columns
408    /// declared `VECTOR(N) USING HALF`. Stores raw u16 LE bits
409    /// (2× compression vs `Vector(Vec<f32>)`). Wire / display
410    /// paths dequantise to f32 bit-exactly; INSERT path converts
411    /// incoming f32 vectors at the engine boundary.
412    HalfVector(crate::halfvec::HalfVector),
413    /// Exact fixed-point decimal. `scaled` holds the value as
414    /// `actual * 10^scale` so the storage type is always integral —
415    /// arithmetic never falls back to floating-point.
416    Numeric {
417        scaled: i128,
418        scale: u8,
419    },
420    /// Days since the Unix epoch (1970-01-01). Negative for earlier dates.
421    Date(i32),
422    /// Microseconds since the Unix epoch (1970-01-01T00:00:00Z).
423    Timestamp(i64),
424    /// Calendar span: `months` (variable-length) + `micros` (fixed-length).
425    /// Runtime-only — cannot appear in a stored row in v2.11.
426    Interval {
427        months: i32,
428        micros: i64,
429    },
430    /// v4.9 `JSON` — raw JSON text. No structural validation
431    /// happens at the storage layer; whatever the parser hands us
432    /// round-trips verbatim. Equality is byte-wise.
433    Json(String),
434    /// v7.10.4 `BYTEA` — raw binary blob. Equality is byte-wise.
435    /// Layout matches `Text`'s length-prefixed shape (`[u32 LE
436    /// len][bytes]`) under tag 18; the engine accepts PG hex
437    /// literals (`'\xDEADBEEF'`) and escape literals at the
438    /// coercion boundary.
439    Bytes(Vec<u8>),
440    /// v7.10.9 `TEXT[]` — single-dimension TEXT array with
441    /// optional NULL elements. Equality is element-wise. PG's
442    /// NULL-element comparison semantics: NULL ≠ NULL inside
443    /// arrays under `=`, so `[NULL] != [NULL]` (the engine
444    /// honours this).
445    TextArray(Vec<Option<String>>),
446    /// v7.11.12 `INT[]` — single-dimension i32 array with optional
447    /// NULL elements. Codec mirrors TextArray with i32 LE per
448    /// element instead of length-prefixed UTF-8.
449    IntArray(Vec<Option<i32>>),
450    /// v7.11.12 `BIGINT[]` — single-dimension i64 array with optional
451    /// NULL elements.
452    BigIntArray(Vec<Option<i64>>),
453    /// v7.12.0 `tsvector` — sorted-by-word, deduped lexeme set with
454    /// positions + weights. The engine enforces sort/dedup on
455    /// construction; consumers can rely on `lexemes.windows(2)`
456    /// being strictly ascending by `word`.
457    TsVector(Vec<TsLexeme>),
458    /// v7.12.0 `tsquery` — boolean / phrase parse tree over
459    /// lexemes. Engine builds via `to_tsquery` family.
460    TsQuery(TsQueryAst),
461    /// v7.17.0 `uuid` — 128-bit identifier. Stored as 16 bytes
462    /// (big-endian / network-byte order, same as RFC 4122).
463    /// Display normalises to canonical lowercase 8-4-4-4-12
464    /// hyphenated form. Equality is byte-wise.
465    Uuid([u8; 16]),
466    /// v7.17.0 Phase 3.P0-32 — PG `time` (without time zone) —
467    /// i64 microseconds since 00:00:00. Range 0..86_400_000_000.
468    /// Display: `HH:MM:SS` zero-padded, with optional `.ffffff`
469    /// suffix when fractional is non-zero.
470    Time(i64),
471    /// v7.17.0 Phase 3.P0-33 — MySQL `YEAR` — u16 in range
472    /// 1901..=2155 plus the special zero-year sentinel 0.
473    /// Display always 4 digits zero-padded (`0000` for the
474    /// sentinel; `1985`/`2007` otherwise).
475    Year(u16),
476    /// v7.17.0 Phase 3.P0-34 — PG `time with time zone` — i64
477    /// microseconds since 00:00:00 in the LOCAL wall clock PLUS
478    /// an i32 offset-from-UTC in seconds. PG preserves the
479    /// offset on output, so the wall-clock value is NOT shifted
480    /// to UTC at storage time. Offset range: ±50400 seconds
481    /// (±14 hours).
482    TimeTz {
483        us: i64,
484        offset_secs: i32,
485    },
486    /// v7.17.0 Phase 3.P0-35 — PG `money` — i64 cents
487    /// (locale-independent storage; the en_US locale renders on
488    /// display via `$N,NNN.CC`).
489    Money(i64),
490    /// v7.17.0 Phase 3.P0-39 — PG `hstore` value: flat
491    /// `text => text` map with NULL value support. Insertion
492    /// order preserved on input; duplicate keys take last-write-
493    /// wins at parse time.
494    Hstore(Vec<(String, Option<String>)>),
495    /// v7.17.0 Phase 3.P0-40 — 2D INT matrix (row-major).
496    IntArray2D(Vec<Vec<Option<i32>>>),
497    /// v7.17.0 Phase 3.P0-40 — 2D BIGINT matrix (row-major).
498    BigIntArray2D(Vec<Vec<Option<i64>>>),
499    /// v7.17.0 Phase 3.P0-40 — 2D TEXT matrix (row-major).
500    TextArray2D(Vec<Vec<Option<String>>>),
501    /// v7.17.0 Phase 3.P0-38 — PG range value. One shape covers
502    /// all six builtin range types; `kind` pins the element type
503    /// (must match the column's `DataType::Range(kind)`).
504    /// `lower` / `upper` are `None` for the unbounded sides;
505    /// `lower_inc` / `upper_inc` mirror the canonical PG
506    /// `[` / `(` / `]` / `)` bracket inclusivity. `empty=true`
507    /// supersedes all other fields (the empty range has no
508    /// bounds).
509    Range {
510        kind: RangeKind,
511        lower: Option<alloc::boxed::Box<Value>>,
512        upper: Option<alloc::boxed::Box<Value>>,
513        lower_inc: bool,
514        upper_inc: bool,
515        empty: bool,
516    },
517    Null,
518}
519
520impl Value {
521    /// Type tag, or `None` for `NULL` (unknown at value level).
522    pub fn data_type(&self) -> Option<DataType> {
523        match self {
524            Self::SmallInt(_) => Some(DataType::SmallInt),
525            Self::Int(_) => Some(DataType::Int),
526            Self::BigInt(_) => Some(DataType::BigInt),
527            Self::Float(_) => Some(DataType::Float),
528            // `Text` covers both unbounded TEXT and bounded VARCHAR/CHAR
529            // — the constraint lives on the column schema, not the value.
530            Self::Text(_) => Some(DataType::Text),
531            Self::Bool(_) => Some(DataType::Bool),
532            Self::Vector(v) => Some(DataType::Vector {
533                dim: u32::try_from(v.len()).expect("vector dim ≤ u32"),
534                encoding: VecEncoding::F32,
535            }),
536            Self::Sq8Vector(q) => Some(DataType::Vector {
537                dim: u32::try_from(q.bytes.len()).expect("vector dim ≤ u32"),
538                encoding: VecEncoding::Sq8,
539            }),
540            Self::HalfVector(h) => Some(DataType::Vector {
541                dim: u32::try_from(h.dim()).expect("vector dim ≤ u32"),
542                encoding: VecEncoding::F16,
543            }),
544            // `Value::Numeric` doesn't carry its precision (the column
545            // schema does); we surface precision=0 as "unknown" and let
546            // the engine reconcile against the column type at coercion
547            // time.
548            Self::Numeric { scale, .. } => Some(DataType::Numeric {
549                precision: 0,
550                scale: *scale,
551            }),
552            Self::Date(_) => Some(DataType::Date),
553            Self::Timestamp(_) => Some(DataType::Timestamp),
554            Self::Interval { .. } => Some(DataType::Interval),
555            Self::Json(_) => Some(DataType::Json),
556            Self::Bytes(_) => Some(DataType::Bytes),
557            Self::TextArray(_) => Some(DataType::TextArray),
558            Self::IntArray(_) => Some(DataType::IntArray),
559            Self::BigIntArray(_) => Some(DataType::BigIntArray),
560            Self::TsVector(_) => Some(DataType::TsVector),
561            Self::TsQuery(_) => Some(DataType::TsQuery),
562            Self::Uuid(_) => Some(DataType::Uuid),
563            Self::Time(_) => Some(DataType::Time),
564            Self::Year(_) => Some(DataType::Year),
565            Self::TimeTz { .. } => Some(DataType::TimeTz),
566            Self::Money(_) => Some(DataType::Money),
567            Self::Range { kind, .. } => Some(DataType::Range(*kind)),
568            Self::Hstore(_) => Some(DataType::Hstore),
569            Self::IntArray2D(_) => Some(DataType::IntArray2D),
570            Self::BigIntArray2D(_) => Some(DataType::BigIntArray2D),
571            Self::TextArray2D(_) => Some(DataType::TextArray2D),
572            Self::Null => None,
573        }
574    }
575
576    pub const fn is_null(&self) -> bool {
577        matches!(self, Self::Null)
578    }
579}
580
581/// One table row — values are positional and must match
582/// `TableSchema.columns` in length and (modulo NULL) in `DataType`.
583#[derive(Debug, Clone, PartialEq)]
584pub struct Row {
585    pub values: Vec<Value>,
586}
587
588impl Row {
589    pub const fn new(values: Vec<Value>) -> Self {
590        Self { values }
591    }
592
593    pub fn len(&self) -> usize {
594        self.values.len()
595    }
596
597    pub fn is_empty(&self) -> bool {
598        self.values.is_empty()
599    }
600}
601
602#[derive(Debug, Clone, PartialEq)]
603pub struct ColumnSchema {
604    pub name: String,
605    pub ty: DataType,
606    pub nullable: bool,
607    /// Optional `DEFAULT` value, frozen at CREATE TABLE time. `None`
608    /// means "no default" (so omitted columns become NULL, or error
609    /// out when the column is NOT NULL). Literal defaults take this
610    /// path.
611    pub default: Option<Value>,
612    /// v7.9.21 — for DEFAULT expressions that need INSERT-time
613    /// evaluation (e.g. `DEFAULT now()`, `DEFAULT CURRENT_TIMESTAMP`),
614    /// the Display form of the expression. The engine re-parses
615    /// it on each INSERT default-fill, evaluates against an empty
616    /// row context, and coerces to the column type. mailrs G4.
617    /// Persisted in catalog FILE_VERSION 15+; older catalogs
618    /// deserialise with None.
619    pub runtime_default: Option<String>,
620    /// MySQL-style `AUTO_INCREMENT`. When set, an INSERT that leaves
621    /// this column unbound (or sets it to NULL) gets the next integer
622    /// computed from the column's current max + 1.
623    pub auto_increment: bool,
624    /// v7.17.0 Phase 1.4 — when the column is bound to a user-
625    /// defined ENUM type (the parser saw an unknown type ident
626    /// and the engine resolved it against `catalog.enum_types`),
627    /// this carries the enum name so INSERT/UPDATE can validate
628    /// the cell value against the enum's labels. `ty` is
629    /// `DataType::Text` in that case. Persisted in catalog
630    /// FILE_VERSION 29+; older catalogs deserialise with None.
631    pub user_enum_type: Option<String>,
632    /// v7.17.0 Phase 1.5 — when the column is bound to a user-
633    /// defined DOMAIN (the parser saw an unknown type ident and
634    /// the engine resolved it against `catalog.domain_types`),
635    /// this carries the domain name. `ty` is the domain's base
636    /// type; INSERT/UPDATE re-evaluates the domain's CHECK list
637    /// + NOT NULL against the cell value. Persisted in catalog
638    /// FILE_VERSION 30+; older catalogs deserialise with None.
639    pub user_domain_type: Option<String>,
640    /// v7.17.0 Phase 2.1 — MySQL `ON UPDATE CURRENT_TIMESTAMP`
641    /// column attribute. When `Some(expr_src)`, an UPDATE that
642    /// does NOT bind this column overrides the new value with
643    /// the engine-evaluated expression (always `now()` in
644    /// v7.17.0). Stored as Display-form source so storage
645    /// stays free of spg-sql; the engine re-parses at UPDATE
646    /// time. Persisted in catalog FILE_VERSION 32+; older
647    /// catalogs deserialise with None — preserves the existing
648    /// "silent ignore" behaviour for snapshots written before
649    /// the upgrade.
650    pub on_update_runtime: Option<String>,
651    /// v7.17.0 Phase 2.5 — text collation. Pre-2.5 SPG accepted
652    /// `COLLATE <name>` clauses but discarded the name, so a
653    /// column declared `COLLATE "case_insensitive"` (or any
654    /// MySQL `_ci` collation) still compared byte-wise — a
655    /// Tier-S silent failure where `WHERE name = 'foo'` never
656    /// matched stored `'Foo'`. This carries the parser-derived
657    /// classification so the engine's WHERE evaluator can route
658    /// text equality through a case-aware compare. `Binary` (the
659    /// default) preserves the prior byte-wise behaviour. Only
660    /// CaseInsensitive lands in the catalog appendix — Binary
661    /// columns stay implicit, keeping snapshots compact.
662    /// Persisted in catalog FILE_VERSION 34+; older catalogs
663    /// deserialise every column as `Binary`.
664    pub collation: Collation,
665    /// v7.17.0 Phase 4.4 — MySQL `UNSIGNED` modifier flag. Drives
666    /// engine-side INSERT / UPDATE range enforcement (rejects
667    /// negative values on UNSIGNED int columns). Pre-4.4 the
668    /// parser consumed and discarded the keyword silently, so
669    /// every UNSIGNED column quietly accepted negatives — a
670    /// Tier-A correctness drift. Sparse: only UNSIGNED columns
671    /// land in the catalog appendix; the default `false` keeps
672    /// snapshots compact for the common signed-int path.
673    /// Persisted in catalog FILE_VERSION 35+; older catalogs
674    /// deserialise every column as `is_unsigned = false`.
675    pub is_unsigned: bool,
676    /// v7.17.0 Phase 3.P0-36 — MySQL inline `ENUM('a','b','c')`
677    /// value list. Distinct from `user_enum_type` (which points
678    /// to a separately CREATE TYPE'd PG enum); this carries the
679    /// column-local list MySQL DDL declares inline. When `Some`,
680    /// `ty` is `DataType::Text` and INSERT/UPDATE validates the
681    /// cell value against this list. Variant ORDER is preserved
682    /// (MySQL uses it for `ORDER BY col`). Sparse: only ENUM
683    /// columns land in the catalog appendix.
684    /// Persisted in catalog FILE_VERSION 41+; older catalogs
685    /// deserialise with None — preserves silent-drop behaviour
686    /// for snapshots written before P0-36.
687    pub inline_enum_variants: Option<Vec<String>>,
688    /// v7.17.0 Phase 3.P0-37 — MySQL inline `SET('a','b','c')`
689    /// variant list. Storage is TEXT (canonical comma-joined in
690    /// definition order, de-duplicated). INSERT/UPDATE validates
691    /// every comma-separated token against this list. Sparse:
692    /// only SET columns land in the catalog appendix.
693    /// Persisted in catalog FILE_VERSION 42+; older catalogs
694    /// deserialise with None.
695    pub inline_set_variants: Option<Vec<String>>,
696}
697
698/// v7.17.0 Phase 2.5 — column-level text collation. Drives the
699/// engine's WHERE / GROUP BY equality routing for `Value::Text`.
700/// Only two variants are modelled in v7.17:
701///   * `Binary`  — byte-wise comparison (the SPG default;
702///                 matches PG `COLLATE "C"` / `pg_catalog.default`
703///                 and MySQL `*_bin`).
704///   * `CaseInsensitive` — ASCII case-folded comparison
705///                 (matches PG `COLLATE "case_insensitive"` and
706///                 MySQL `*_ci` collations). Non-ASCII bytes
707///                 still compare byte-wise; full ICU folding is
708///                 out of v7.17 scope.
709/// New variants append at the end — older catalogs read missing
710/// columns as `Binary`.
711#[derive(Debug, Clone, Copy, PartialEq, Eq)]
712pub enum Collation {
713    Binary,
714    CaseInsensitive,
715}
716
717#[allow(clippy::derivable_impls)]
718impl Default for Collation {
719    fn default() -> Self {
720        Self::Binary
721    }
722}
723
724impl Collation {
725    /// Wire tag persisted in the FILE_VERSION 34+ catalog appendix.
726    /// Stable: future variants append above the recognised range
727    /// and unknown tags read back as `Binary` for forward-compat
728    /// on rollback.
729    pub const TAG_BINARY: u8 = 0;
730    pub const TAG_CASE_INSENSITIVE: u8 = 1;
731}
732
733#[derive(Debug, Clone, PartialEq)]
734pub struct TableSchema {
735    pub name: String,
736    pub columns: Vec<ColumnSchema>,
737    /// v6.7.2 — per-table hot-tier byte budget override. `None`
738    /// falls through to the global `SPG_HOT_TIER_BYTES` setting;
739    /// `Some(n)` overrides it for this specific table. Set via
740    /// `ALTER TABLE t SET hot_tier_bytes = X`. Persisted in
741    /// catalog FILE_VERSION 11+.
742    pub hot_tier_bytes: Option<u64>,
743    /// v7.6.1 — FOREIGN KEY constraints declared on this table.
744    /// Engine maintains this in lock-step with `spg-sql`'s parser
745    /// AST; the storage layer carries the on-disk shape so a
746    /// catalog snapshot round-trips without external mapping.
747    /// Persisted in catalog FILE_VERSION 13+. Older catalogs
748    /// deserialise with an empty vec.
749    pub foreign_keys: Vec<ForeignKeyConstraint>,
750    /// v7.9.19 — composite UNIQUE / PRIMARY KEY constraints
751    /// declared at the table level. Each entry's leading column
752    /// has a BTree index (created via the constraint), and INSERT
753    /// path enforces the full-tuple uniqueness via a scan keyed
754    /// by the leading column. Persisted in catalog FILE_VERSION
755    /// 15+. Older catalogs (≤ 14) deserialise with an empty vec.
756    pub uniqueness_constraints: Vec<UniquenessConstraint>,
757    /// v7.13.0 — `CHECK (<expr>)` predicates declared on this
758    /// table. Both column-level inline `CHECK (…)` and
759    /// table-level `CHECK (…)` fold into this list. Each entry
760    /// is the AST Expr's `Display` form, re-parsed on every
761    /// INSERT/UPDATE and evaluated against the candidate row.
762    /// A false / NULL result rejects the mutation (PG semantics).
763    /// Persisted in catalog FILE_VERSION 23+. Older catalogs
764    /// deserialise with an empty vec.
765    pub checks: Vec<String>,
766}
767
768/// v7.9.19 — composite UNIQUE / PRIMARY KEY constraint persisted
769/// on the table schema. The leading column always has a BTree
770/// index (created at CREATE TABLE time); INSERT enforcement
771/// scans that index for collisions on the full column tuple.
772#[derive(Debug, Clone, PartialEq, Eq)]
773pub struct UniquenessConstraint {
774    /// `true` when this constraint was declared as `PRIMARY KEY`
775    /// (vs `UNIQUE`). Semantically PK implies NOT NULL on all
776    /// referenced columns; the engine enforces that at CREATE
777    /// TABLE time.
778    pub is_primary_key: bool,
779    /// Column positions on the parent table. ≥ 1 element. For
780    /// single-column UNIQUE this is exactly one position; the
781    /// BTree index alone enforces it.
782    pub columns: Vec<usize>,
783    /// v7.13.0 — `UNIQUE NULLS NOT DISTINCT` modifier
784    /// (mailrs round-5 G10; PG 15+ surface). When `true`, two
785    /// rows whose constrained columns are all NULL collide on
786    /// the constraint. Default (`false`) is the SQL-standard
787    /// `NULLS DISTINCT` behaviour where any NULL passes.
788    /// Persisted in catalog FILE_VERSION 23+.
789    pub nulls_not_distinct: bool,
790}
791
792/// v7.6.1 — Storage-layer mirror of `spg_sql::ast::ForeignKeyConstraint`.
793/// The engine's CREATE TABLE path translates between the two; keeping
794/// them separate preserves the no-deps boundary between
795/// `spg-storage` and `spg-sql`.
796#[derive(Debug, Clone, PartialEq, Eq)]
797pub struct ForeignKeyConstraint {
798    /// Optional user-supplied constraint name (`CONSTRAINT <name>`
799    /// prefix). Used by `ALTER TABLE DROP CONSTRAINT <name>` in
800    /// v7.6.8; ignored by enforcement.
801    pub name: Option<String>,
802    /// Positions of local columns in this table's column list.
803    /// Same arity as `parent_columns`.
804    pub local_columns: Vec<usize>,
805    /// Referenced parent table name.
806    pub parent_table: String,
807    /// Positions of parent columns in the parent's column list.
808    /// Engine resolves these at CREATE TABLE time (after the parent
809    /// schema is known) so enforcement paths can skip the name
810    /// lookup on every row.
811    pub parent_columns: Vec<usize>,
812    /// Referential action when a parent row is deleted.
813    pub on_delete: FkAction,
814    /// Referential action when a parent row's referenced columns
815    /// are updated.
816    pub on_update: FkAction,
817}
818
819/// v7.6.1 — referential action tag. Mirrors `spg_sql::ast::FkAction`.
820#[derive(Debug, Clone, Copy, PartialEq, Eq)]
821pub enum FkAction {
822    Restrict,
823    Cascade,
824    SetNull,
825    SetDefault,
826    NoAction,
827}
828
829impl FkAction {
830    /// On-disk tag byte (v13 catalog appendix).
831    pub const fn tag(self) -> u8 {
832        match self {
833            Self::Restrict => 0,
834            Self::Cascade => 1,
835            Self::SetNull => 2,
836            Self::SetDefault => 3,
837            Self::NoAction => 4,
838        }
839    }
840    pub const fn from_tag(b: u8) -> Option<Self> {
841        Some(match b {
842            0 => Self::Restrict,
843            1 => Self::Cascade,
844            2 => Self::SetNull,
845            3 => Self::SetDefault,
846            4 => Self::NoAction,
847            _ => return None,
848        })
849    }
850}
851
852impl TableSchema {
853    pub fn column_position(&self, name: &str) -> Option<usize> {
854        self.columns.iter().position(|c| c.name == name)
855    }
856}
857
858/// Key type accepted by secondary indices. Float / NULL / Vector values
859/// can't participate in a B-tree index — `f64` is only `PartialOrd`, NULL
860/// has SQL-three-valued semantics, and Vector belongs to the (future) HNSW
861/// path. Index lookups on those columns fall back to full scan.
862#[derive(Debug, Clone, PartialEq, Eq, PartialOrd, Ord)]
863pub enum IndexKey {
864    Int(i64),
865    Text(String),
866    Bool(bool),
867    /// v7.17.0 — `Value::Uuid` index key. Comparison is byte-wise
868    /// (RFC 4122 byte order) so PRIMARY KEY UUID lookups land on
869    /// the same fast-path as Int / Text.
870    Uuid([u8; 16]),
871}
872
873impl IndexKey {
874    pub fn from_value(v: &Value) -> Option<Self> {
875        match v {
876            Value::SmallInt(n) => Some(Self::Int(i64::from(*n))),
877            Value::Int(n) => Some(Self::Int(i64::from(*n))),
878            Value::BigInt(n) => Some(Self::Int(*n)),
879            Value::Text(s) => Some(Self::Text(s.clone())),
880            Value::Bool(b) => Some(Self::Bool(*b)),
881            // Date/Timestamp use their integer storage repr as the
882            // index key — same order semantics, same comparison.
883            Value::Date(d) => Some(Self::Int(i64::from(*d))),
884            Value::Timestamp(t) => Some(Self::Int(*t)),
885            // v7.17.0: UUID indexable via byte-wise ordering. Lookup
886            // on `id = '...'::uuid` resolves through the secondary
887            // index rather than full-scan.
888            Value::Uuid(b) => Some(Self::Uuid(*b)),
889            // v7.17.0 Phase 3.P0-32: TIME indexable via i64 — same
890            // order semantics as Date/Timestamp.
891            Value::Time(us) => Some(Self::Int(*us)),
892            // v7.17.0 Phase 3.P0-33: YEAR indexable as i64 — u16
893            // widens losslessly and gives the natural calendar
894            // ordering.
895            Value::Year(y) => Some(Self::Int(i64::from(*y))),
896            // v7.17.0 Phase 3.P0-34: TIMETZ indexable by its
897            // UTC-equivalent microseconds (local wall - offset).
898            // Without normalising, two values for the same
899            // physical instant in different zones would sort
900            // wrong. Matches PG's TIMETZ index behaviour.
901            Value::TimeTz { us, offset_secs } => {
902                Some(Self::Int(us - i64::from(*offset_secs) * 1_000_000))
903            }
904            // v7.17.0 Phase 3.P0-35: MONEY indexable as i64 cents
905            // (no scaling needed — natural numeric ordering).
906            Value::Money(c) => Some(Self::Int(*c)),
907            // v7.17.0 Phase 3.P0-38: ranges are NOT indexable in
908            // v7.17.0 — they'd need a custom comparator (PG uses
909            // SP-GiST for this). Skip.
910            Value::Range { .. } => None,
911            // v7.17.0 Phase 3.P0-39: hstore is NOT indexable in
912            // v7.17.0 — map columns need GIN with bespoke ops.
913            Value::Hstore(_) => None,
914            // v7.17.0 Phase 3.P0-40: 2D arrays aren't indexable.
915            Value::IntArray2D(_) | Value::BigIntArray2D(_) | Value::TextArray2D(_) => None,
916            // Numeric isn't (yet) indexable — exact-decimal index keys
917            // would need a stable scale-normalised representation.
918            // Interval isn't index-eligible either (and can't reach this
919            // path through column storage anyway).
920            Value::Null
921            | Value::Float(_)
922            | Value::Vector(_)
923            | Value::Sq8Vector(_)
924            | Value::HalfVector(_)
925            | Value::Numeric { .. }
926            | Value::Interval { .. }
927            | Value::Json(_)
928            | Value::Bytes(_)
929            | Value::TextArray(_)
930            | Value::IntArray(_)
931            | Value::BigIntArray(_)
932            | Value::TsVector(_)
933            | Value::TsQuery(_) => None,
934        }
935    }
936}
937
938/// A single-column secondary index. v2.0 carries either a B-tree map
939/// (the default — used for equality / range lookups on scalar columns)
940/// or a navigable-small-world graph (used for kNN over vector
941/// columns).
942#[derive(Debug, Clone)]
943pub struct Index {
944    pub name: String,
945    pub column_position: usize,
946    pub kind: IndexKind,
947    /// v6.8.0 — column positions of `INCLUDE (col1, col2, …)`
948    /// non-key columns. Carries the planner's "this query is
949    /// covered by the index" signal; lookup paths still resolve
950    /// via the `RowLocator` to fetch the row body, but EXPLAIN
951    /// surfaces the covered-scan annotation so operators can
952    /// confirm the planner sees the coverage.
953    ///
954    /// Empty `Vec` = no `INCLUDE` clause (the legacy shape). v12
955    /// catalog snapshots deserialise with an empty vec.
956    pub included_columns: Vec<usize>,
957    /// v6.8.1 — partial-index predicate stored as its canonical
958    /// Display form (the engine re-parses it on the maintenance
959    /// path). `None` = unconditional index (the legacy shape).
960    /// Persisted as `[u8 has_pred][u16 LE len][bytes]` on the
961    /// catalog snapshot (FILE_VERSION 12, appended after
962    /// `included_columns`).
963    pub partial_predicate: Option<String>,
964    /// v6.8.2 — expression-index key, stored as the expression's
965    /// canonical Display form. `None` = bare column-reference
966    /// index (the legacy shape). Persisted alongside
967    /// `partial_predicate` on the v12 catalog snapshot.
968    pub expression: Option<String>,
969    /// v7.9.29 — `CREATE UNIQUE INDEX …`. When true the engine
970    /// rejects INSERTs whose key already appears in this index
971    /// (combined with `partial_predicate` when present — only
972    /// rows matching the predicate enter the uniqueness check).
973    /// Catalog FILE_VERSION 16+; older snapshots deserialise
974    /// with `false`. mailrs K1.
975    pub is_unique: bool,
976    /// v7.9.29 — extra (non-leading) column positions for
977    /// multi-column indexes (`CREATE INDEX … (a, b, c)`). The
978    /// planner today still only uses the leading
979    /// `column_position` for index seeks, but UNIQUE INDEX
980    /// enforcement walks the full tuple so partial-unique
981    /// invariants like CalDAV `(calendar_id, uid,
982    /// recurrence_id)` are enforced correctly. Catalog
983    /// FILE_VERSION 16+; older snapshots deserialise empty.
984    pub extra_column_positions: Vec<usize>,
985}
986
987/// Default neighbor degree (M) for the NSW graph. Picked at construction
988/// time and persisted with the index.
989pub const NSW_DEFAULT_M: usize = 16;
990
991/// v5.2.2: outcome of a successful [`Catalog::freeze_oldest_to_cold`]
992/// call. The catalog state has already been mutated by the time this
993/// is returned (hot rows dropped + segment registered + Cold locators
994/// flipped). The caller's only remaining concern is `segment_bytes` —
995/// persist them to disk under `<db>.spg/segments/seg_<id>.spg` so a
996/// future restart can reload via the v5.1 `SPG_PRELOAD_COLD_SEGMENT`
997/// path. (v5.3's manifest will subsume this manual step.)
998#[derive(Debug, Clone)]
999pub struct FreezeReport {
1000    /// Id allocated by [`Catalog::load_segment_bytes`] for the new
1001    /// cold-tier segment. Stable across the call's success path.
1002    pub segment_id: u32,
1003    /// Number of rows that moved hot → cold. Equals the `max_rows`
1004    /// the caller asked for (the API is strict on the count).
1005    pub frozen_rows: usize,
1006    /// Hot-tier bytes reclaimed by the freeze — the
1007    /// [`Table::hot_bytes`] delta before vs after. Useful to feed
1008    /// back into the freezer's budget check on the next tick.
1009    pub bytes_freed: u64,
1010    /// Encoded segment bytes, byte-identical to what
1011    /// [`encode_segment`] produced. The catalog already owns a
1012    /// copy inside `cold_segments`; this hand-off lets the caller
1013    /// persist them without re-encoding.
1014    pub segment_bytes: Vec<u8>,
1015}
1016
1017/// v6.7.4 — read-only output of [`Catalog::prepare_freeze_slice`].
1018/// Carries every row body + key in a contiguous hot-row range,
1019/// already encoded and sorted by PK so the coordinator's merge
1020/// step is a k-way merge over already-sorted streams.
1021///
1022/// `Vec<FreezeSlice>` from N independent workers feeds
1023/// [`Catalog::commit_freeze_slices`], which concats + encodes the
1024/// merged segment + atomically swaps the catalog state.
1025#[derive(Debug, Clone)]
1026pub struct FreezeSlice {
1027    /// Hot-row index range this slice covered (half-open, in the
1028    /// table's `rows: PersistentVec` ordering at call time). The
1029    /// commit step uses this to compute the union range that
1030    /// gets passed to [`Table::delete_rows`].
1031    pub row_range: core::ops::Range<usize>,
1032    /// `(pk_u64, encoded_row_body, IndexKey)` triples, sorted
1033    /// ascending by `pk_u64`. Per-slice sort happens inside
1034    /// `prepare_freeze_slice`; the coordinator does only a
1035    /// k-way merge to reach the global PK ordering
1036    /// [`encode_segment`] requires.
1037    pub rows: Vec<(u64, Vec<u8>, IndexKey)>,
1038}
1039
1040/// v6.7.3 — outcome of a [`Catalog::compact_cold_segments`] call.
1041/// The catalog state has already been mutated when this is returned:
1042/// the merged segment is loaded into `cold_segments`, the source
1043/// segment slots are tombstoned (`None`), and every BTree-index
1044/// `RowLocator::Cold` that previously pointed at a source now
1045/// points at the merged segment. The caller's remaining job is to
1046/// persist `merged_segment_bytes` under
1047/// `<db>.spg/segments/seg_<merged_segment_id>.spg` and update the
1048/// in-memory `segment_id → path` map (remove the source ids, add
1049/// the merged id) so the next CHECKPOINT writes a manifest that
1050/// no longer lists the retired sources.
1051///
1052/// On a no-op (fewer than 2 candidate segments under the threshold),
1053/// `merged_segment_id` is `None` and `sources` is empty; the
1054/// catalog was not mutated.
1055#[derive(Debug, Clone)]
1056pub struct CompactReport {
1057    /// Source segment ids that were merged + tombstoned.
1058    pub sources: Vec<u32>,
1059    /// Id allocated for the merged segment. `None` on no-op.
1060    pub merged_segment_id: Option<u32>,
1061    /// Encoded merged-segment bytes (empty on no-op).
1062    pub merged_segment_bytes: Vec<u8>,
1063    /// Number of rows that landed in the merged segment.
1064    pub merged_rows: usize,
1065    /// `Σ source.num_rows − merged_rows`. Rows present in source
1066    /// segment payloads but unreferenced by any live BTree
1067    /// `Cold` locator — DELETE'd-but-still-frozen rows that
1068    /// compaction GC'd during the merge.
1069    pub deleted_rows_pruned: usize,
1070    /// `Σ source.bytes() − merged.bytes()`. Estimate of on-disk
1071    /// space the merge will reclaim once the source segment files
1072    /// are GC'd. Saturating subtract — never negative.
1073    pub bytes_reclaimed_estimate: u64,
1074}
1075
1076#[derive(Debug, Clone)]
1077pub enum IndexKind {
1078    /// v4.40: structural-sharing B-tree over `IndexKey`. Replaces the v0.8
1079    /// `BTreeMap<IndexKey, Vec<usize>>` — `Index::clone` is now an `Arc`
1080    /// bump regardless of index size, so `Catalog::clone` inside the
1081    /// v4.34 auto-commit wrap stays O(1) even for tables with secondary
1082    /// indices (the case that bottlenecked v4.39 at 1M rows in the
1083    /// sweep).
1084    ///
1085    /// v5.1: value type widened from `Vec<usize>` to `Vec<RowLocator>` so
1086    /// a single key can point to a mix of hot-tier rows (`RowLocator::Hot`,
1087    /// equivalent to the pre-v5 `usize` row index) and cold-tier rows
1088    /// (`RowLocator::Cold { segment_id, page_offset }`) once the v5.2
1089    /// freezer starts producing them. Pre-v5.2 only `Hot` entries appear
1090    /// — the on-disk encoding stays at `FILE_VERSION` 8 (raw u64 row index)
1091    /// because every locator round-trips through `RowLocator::from_legacy_v8_u64`
1092    /// without information loss. `FILE_VERSION` 9 with tagged encoding lands
1093    /// alongside the first freezer commit (v5.1 step 2b / v5.2).
1094    BTree(PersistentBTreeMap<IndexKey, Vec<RowLocator>>),
1095    /// Navigable-small-world graph for vector kNN search.
1096    Nsw(NswGraph),
1097    /// v6.7.1 — BRIN (Block Range INdex). Pure metadata: BRIN
1098    /// indexes carry NO in-memory key→locator map. The (min,
1099    /// max) summaries live in each cold-tier segment's v2
1100    /// envelope sidecar; the BRIN entry in `Table.indices` only
1101    /// records THAT a BRIN index exists on this column so the
1102    /// segment encoder + planner can opt into the summary path.
1103    Brin {
1104        /// The cell type at `column_position` at CREATE INDEX time.
1105        /// Used by the planner to type-check WHERE-clause range
1106        /// predicates against the BRIN-indexed column.
1107        column_type: DataType,
1108    },
1109    /// v7.12.3 — GIN inverted index over a `tsvector` column.
1110    ///
1111    /// Storage shape: `lexeme word → Vec<RowLocator>`. The posting
1112    /// list per word is appended in row-order, so range scans are
1113    /// O(matching rows) once the per-word lookup is done. Multi-
1114    /// term queries intersect / union posting lists.
1115    ///
1116    /// `IndexKey::from_value(TsVector)` returns `None` — GIN doesn't
1117    /// participate in `try_index_seek` (which is BTree-equality-keyed).
1118    /// The engine consults this index through `try_gin_lookup` on
1119    /// `WHERE col @@ tsquery` predicates instead.
1120    ///
1121    /// Backed by a `PersistentBTreeMap` so `Catalog::clone` (the
1122    /// per-write snapshot) stays O(1) — same structural-sharing
1123    /// invariant as BTree.
1124    Gin(PersistentBTreeMap<alloc::string::String, Vec<RowLocator>>),
1125    /// v7.15.0 — `USING gin (col gin_trgm_ops)` over a `TEXT`
1126    /// column. Posting lists map `trigram` (PG-compatible 3-byte
1127    /// shingle on the lower-cased + space-padded input) to row
1128    /// locators. The planner uses this index to accelerate
1129    /// `WHERE col LIKE '…'` / `ILIKE '…'` / `similarity(col, q) >
1130    /// t` — every literal run of length ≥ 1 in the pattern
1131    /// produces a trigram set, the engine intersects the posting
1132    /// lists, and the LIKE / similarity predicate is re-evaluated
1133    /// per candidate row to filter the over-approximation.
1134    /// Persisted via tag-4 index payload in `FILE_VERSION` 24+.
1135    GinTrgm(PersistentBTreeMap<alloc::string::String, Vec<RowLocator>>),
1136    /// v7.17.0 Phase 2.2 — MySQL `FULLTEXT KEY (col)` over a
1137    /// `TEXT` / `VARCHAR` column. Posting lists map
1138    /// `tsvector('simple') lexeme` to row locators. At insert /
1139    /// build time the engine derives the lexemes from the cell
1140    /// via the same lower-case tokenisation rule as
1141    /// `to_tsvector('simple', ...)` — the column itself stays a
1142    /// plain text type on disk (mysqldump round-trips would be
1143    /// broken otherwise). The planner uses this index to
1144    /// accelerate MySQL-shape `MATCH(col) AGAINST('term')`
1145    /// queries by mapping them onto the existing tsquery `@@`
1146    /// walker. Persisted via tag-5 index payload in
1147    /// `FILE_VERSION` 33+.
1148    GinFulltext(PersistentBTreeMap<alloc::string::String, Vec<RowLocator>>),
1149}
1150
1151/// Multi-layer HNSW graph (v2.13). Each node is assigned a `top_level`;
1152/// it appears in layers `0..=top_level`. Higher layers are sparser, so
1153/// search starts from the entry at the top layer, greedy-descends to
1154/// layer 0, and beam-searches there. Layer 0 keeps a larger neighbour
1155/// budget (`m_max_0 = 2 * m` per the HNSW paper); upper layers cap at
1156/// `m`. The struct name stays `NswGraph` so external users / on-disk
1157/// callers don't have to track a rename — the algorithm changed, the
1158/// data slot didn't.
1159#[derive(Debug, Clone)]
1160pub struct NswGraph {
1161    /// Max neighbours per node on layers ≥ 1.
1162    pub m: usize,
1163    /// Max neighbours on layer 0 (the dense bottom layer). HNSW
1164    /// convention: `m_max_0 = 2 * m`.
1165    pub m_max_0: usize,
1166    /// Entry point — the node that sits on the topmost layer. Search
1167    /// always starts here.
1168    pub entry: Option<usize>,
1169    /// Top layer of the entry node (== `layers.len() - 1` when populated).
1170    pub entry_level: u8,
1171    /// `levels[i]` = top layer of node `i`. Nodes whose vector cell is
1172    /// NULL / non-Vector have `levels[i] = 0` and no neighbour entries.
1173    ///
1174    /// v5.5.0: backed by `PersistentVec` so `NswGraph::clone` (and the
1175    /// `Catalog::clone` on every group-commit write that contains it) is O(1)
1176    /// structural-sharing instead of an O(N) element copy.
1177    pub levels: PersistentVec<u8>,
1178    /// `layers[l][i]` = neighbours of node `i` at layer `l`. Inner vec
1179    /// is empty when node `i` doesn't reach layer `l`.
1180    ///
1181    /// v5.5.0: the per-node middle dimension (the O(N) one) is a
1182    /// `PersistentVec`; the outer layer dimension stays a plain `Vec`
1183    /// (layer count ≤ 8, so its clone is O(1) in practice) and the inner
1184    /// neighbour list stays a `Vec` (bounded by `m_max_0`).
1185    ///
1186    /// v6.1.x: neighbour slot widened from `usize` (8 B on 64-bit) to
1187    /// `u32` (4 B). Row indices are catalog-bounded by `u32::MAX` (4G
1188    /// rows per table); the cast at the NSW boundary asserts this. At
1189    /// 1M dim-128 SQ8, layer 0 adjacency alone shrinks by ~128 MiB
1190    /// — the largest single contribution to the v6.0.5-measured
1191    /// 624 MiB ambition gap. On-disk format already used u32 LE, so
1192    /// this is a pure in-memory layout change; no `FILE_VERSION` bump.
1193    pub layers: Vec<PersistentVec<Vec<u32>>>,
1194}
1195
1196impl NswGraph {
1197    fn new(m: usize) -> Self {
1198        Self {
1199            m,
1200            m_max_0: m.saturating_mul(2),
1201            entry: None,
1202            entry_level: 0,
1203            levels: PersistentVec::new(),
1204            layers: alloc::vec![PersistentVec::new()],
1205        }
1206    }
1207
1208    /// Max-neighbour budget for layer `l`.
1209    pub const fn cap_for_layer(&self, layer: u8) -> usize {
1210        if layer == 0 { self.m_max_0 } else { self.m }
1211    }
1212}
1213
1214/// Deterministic level assignment, seeded on the row index so the same
1215/// insert order reproduces the same topology. Distribution is roughly
1216/// HNSW-flavoured with `mL ≈ 1/ln(M) ≈ 0.36` for M=16: each 4-bit
1217/// chunk that comes up zero promotes the node one layer (so P(level ≥
1218/// L) ≈ (1/16)^L).
1219#[allow(clippy::verbose_bit_mask)] // clippy suggests trailing_zeros(); we need an explicit MAX cap and a stable distribution shape.
1220pub fn nsw_assign_level(row_idx: usize) -> u8 {
1221    const MAX_LEVEL: u8 = 7; // 7 ⇒ ~16^7 ≈ 2.7e8 expected nodes between promotions; ample.
1222    // SplitMix-style mixer — cheap and seedable.
1223    let mut x = (row_idx as u64).wrapping_mul(0x9E37_79B9_7F4A_7C15);
1224    x ^= x >> 30;
1225    x = x.wrapping_mul(0xBF58_476D_1CE4_E5B9);
1226    x ^= x >> 27;
1227    x = x.wrapping_mul(0x94D0_49BB_1331_11EB);
1228    x ^= x >> 31;
1229    // Count contiguous low-end zero nibbles (4-bit chunks). Each zero
1230    // nibble has probability 1/16, mirroring HNSW's `mL ≈ 1/ln(M)` for
1231    // M=16. `trailing_zeros / 4` would lose the ordering when x = 0, so
1232    // a plain loop with a cap is clearer.
1233    let mut level: u8 = 0;
1234    while x & 0xF == 0 && level < MAX_LEVEL {
1235        level += 1;
1236        x >>= 4;
1237    }
1238    level
1239}
1240
1241impl Index {
1242    fn new_btree(name: String, column_position: usize) -> Self {
1243        Self {
1244            name,
1245            column_position,
1246            kind: IndexKind::BTree(PersistentBTreeMap::new()),
1247            included_columns: Vec::new(),
1248            partial_predicate: None,
1249            expression: None,
1250            is_unique: false,
1251            extra_column_positions: Vec::new(),
1252        }
1253    }
1254
1255    fn new_nsw(name: String, column_position: usize, m: usize) -> Self {
1256        Self {
1257            name,
1258            column_position,
1259            kind: IndexKind::Nsw(NswGraph::new(m)),
1260            included_columns: Vec::new(),
1261            partial_predicate: None,
1262            expression: None,
1263            is_unique: false,
1264            extra_column_positions: Vec::new(),
1265        }
1266    }
1267
1268    /// v6.7.1 — BRIN index constructor. BRIN carries no in-memory
1269    /// data; the `column_type` snapshot is used by the segment
1270    /// encoder + planner for type-checking range predicates.
1271    fn new_brin(name: String, column_position: usize, column_type: DataType) -> Self {
1272        Self {
1273            name,
1274            column_position,
1275            kind: IndexKind::Brin { column_type },
1276            included_columns: Vec::new(),
1277            partial_predicate: None,
1278            expression: None,
1279            is_unique: false,
1280            extra_column_positions: Vec::new(),
1281        }
1282    }
1283
1284    /// v7.12.3 — GIN inverted-index constructor. Empty posting-list
1285    /// map; caller (typically [`Table::add_gin_index`] or
1286    /// [`Table::restore_gin_index`]) populates it from existing rows
1287    /// or from a deserialised snapshot.
1288    fn new_gin(name: String, column_position: usize) -> Self {
1289        Self {
1290            name,
1291            column_position,
1292            kind: IndexKind::Gin(PersistentBTreeMap::new()),
1293            included_columns: Vec::new(),
1294            partial_predicate: None,
1295            expression: None,
1296            is_unique: false,
1297            extra_column_positions: Vec::new(),
1298        }
1299    }
1300
1301    /// v7.15.0 — `gin_trgm_ops`-flavoured GIN constructor. Same
1302    /// shape as `new_gin` but the posting-list keys are 3-byte
1303    /// trigram shingles (`pg_trgm`-compatible) and the column
1304    /// type is `TEXT` / `VARCHAR` (not `TSVECTOR`).
1305    fn new_gin_trgm(name: String, column_position: usize) -> Self {
1306        Self {
1307            name,
1308            column_position,
1309            kind: IndexKind::GinTrgm(PersistentBTreeMap::new()),
1310            included_columns: Vec::new(),
1311            partial_predicate: None,
1312            expression: None,
1313            is_unique: false,
1314            extra_column_positions: Vec::new(),
1315        }
1316    }
1317
1318    /// v7.17.0 Phase 2.2 — MySQL `FULLTEXT KEY` GIN constructor.
1319    /// Same shape as `new_gin_trgm` but the posting-list keys
1320    /// are lower-cased word lexemes (`to_tsvector('simple', col)`
1321    /// equivalent) instead of trigrams, and the column type is
1322    /// `TEXT` / `VARCHAR` (not `TSVECTOR`).
1323    fn new_gin_fulltext(name: String, column_position: usize) -> Self {
1324        Self {
1325            name,
1326            column_position,
1327            kind: IndexKind::GinFulltext(PersistentBTreeMap::new()),
1328            included_columns: Vec::new(),
1329            partial_predicate: None,
1330            expression: None,
1331            is_unique: false,
1332            extra_column_positions: Vec::new(),
1333        }
1334    }
1335
1336    /// Look up the locators stored under `key` (B-tree only). Returns
1337    /// an empty slice when the key is absent or the index isn't a
1338    /// BTree — callers can treat both cases uniformly.
1339    ///
1340    /// v5.1: return type widened from `&[usize]` to `&[RowLocator]`.
1341    /// Pre-v5.2 callers can read the slice and `.as_hot().unwrap()`
1342    /// each entry (no `Cold` variants exist until the freezer lands);
1343    /// post-v5.2 callers dispatch hot vs. cold per locator.
1344    pub fn lookup_eq(&self, key: &IndexKey) -> &[RowLocator] {
1345        match &self.kind {
1346            IndexKind::BTree(m) => m.get(key).map_or(&[][..], Vec::as_slice),
1347            // BRIN / NSW / GIN / trigram-GIN / fulltext-GIN have
1348            // no IndexKey-keyed map; lookup is a no-op. GIN uses
1349            // [`Index::gin_lookup_word`] instead.
1350            IndexKind::Nsw(_)
1351            | IndexKind::Brin { .. }
1352            | IndexKind::Gin(_)
1353            | IndexKind::GinTrgm(_)
1354            | IndexKind::GinFulltext(_) => &[][..],
1355        }
1356    }
1357
1358    /// v7.12.3 — GIN posting-list lookup. Returns the row locators
1359    /// whose `tsvector` cell contains `word`. Empty when the word is
1360    /// absent from the index or this isn't a GIN index.
1361    pub fn gin_lookup_word(&self, word: &str) -> &[RowLocator] {
1362        match &self.kind {
1363            // v7.17.0 Phase 2.2 — fulltext-GIN shares the same
1364            // lexeme-keyed posting list shape as the
1365            // tsvector-typed GIN, so the same lookup applies.
1366            IndexKind::Gin(m) | IndexKind::GinFulltext(m) => {
1367                m.get(&String::from(word)).map_or(&[][..], Vec::as_slice)
1368            }
1369            IndexKind::BTree(_)
1370            | IndexKind::Nsw(_)
1371            | IndexKind::Brin { .. }
1372            | IndexKind::GinTrgm(_) => &[][..],
1373        }
1374    }
1375
1376    /// v7.15.0 — trigram-GIN posting-list lookup. Returns the row
1377    /// locators whose indexed `TEXT` cell contains the trigram
1378    /// `tri`. Empty when the trigram is absent or this isn't a
1379    /// trigram-GIN index.
1380    pub fn gin_trgm_lookup(&self, tri: &str) -> &[RowLocator] {
1381        match &self.kind {
1382            IndexKind::GinTrgm(m) => m.get(&String::from(tri)).map_or(&[][..], Vec::as_slice),
1383            IndexKind::BTree(_)
1384            | IndexKind::Nsw(_)
1385            | IndexKind::Brin { .. }
1386            | IndexKind::Gin(_)
1387            | IndexKind::GinFulltext(_) => &[][..],
1388        }
1389    }
1390
1391    /// Borrow the NSW graph (if this is an NSW index). Callers that need
1392    /// the graph for a kNN search go through here.
1393    pub const fn nsw(&self) -> Option<&NswGraph> {
1394        match &self.kind {
1395            IndexKind::Nsw(g) => Some(g),
1396            IndexKind::BTree(_)
1397            | IndexKind::Brin { .. }
1398            | IndexKind::Gin(_)
1399            | IndexKind::GinTrgm(_)
1400            | IndexKind::GinFulltext(_) => None,
1401        }
1402    }
1403
1404    /// v6.7.1 — true when this index is a BRIN (block range) index.
1405    /// Used by the segment encoder to opt into BRIN sidecar emission
1406    /// at freeze time, and by the planner to opt into page-skipping
1407    /// on range predicates.
1408    pub const fn is_brin(&self) -> bool {
1409        matches!(self.kind, IndexKind::Brin { .. })
1410    }
1411
1412    /// v7.15.0 — true when this index is a trigram GIN
1413    /// (`gin_trgm_ops`-flavoured). Used by the LIKE planner to
1414    /// opt into trigram acceleration.
1415    pub const fn is_gin_trgm(&self) -> bool {
1416        matches!(self.kind, IndexKind::GinTrgm(_))
1417    }
1418
1419    /// v7.12.3 — true when this index is a GIN inverted index.
1420    /// Used by the planner to opt into posting-list acceleration on
1421    /// `WHERE col @@ tsquery` predicates.
1422    pub const fn is_gin(&self) -> bool {
1423        matches!(self.kind, IndexKind::Gin(_))
1424    }
1425
1426    /// v7.17.0 Phase 2.2 — true when this index is a fulltext
1427    /// GIN over a TEXT / VARCHAR column (MySQL `FULLTEXT KEY`
1428    /// surface). Used by the planner to opt the FULLTEXT-indexed
1429    /// column into MATCH AGAINST acceleration.
1430    pub const fn is_gin_fulltext(&self) -> bool {
1431        matches!(self.kind, IndexKind::GinFulltext(_))
1432    }
1433}
1434
1435/// In-memory table: schema + a persistent row vector + secondary indices.
1436///
1437/// v4.39: `rows` is a [`PersistentVec`] (Bitmapped Vector Trie, 32-way) so
1438/// `Table::clone()` is `O(1)` — the whole reason for v4.39's existence is
1439/// to make `Catalog::clone()` cheap inside the v4.34 auto-commit wrap.
1440///
1441/// v5.2.1: `hot_bytes` tracks the encoded byte size of every row currently
1442/// in [`Self::rows`], summed over rows. Updated incrementally by `insert`
1443/// (+= encoded row size), `delete_rows` (-= removed rows' encoded sizes),
1444/// and `update_row` (-= old size, += new size). The value is what the
1445/// v5.2 freezer reads to decide when to demote cold rows — when the
1446/// catalog-wide sum crosses `SPG_HOT_TIER_BYTES` (default 4 GiB) the
1447/// freezer thread wakes. v5.2.1 ships measurement only; the freezer
1448/// itself lands in v5.2.2. Stored as `u64` so a single field clone in
1449/// `Catalog::clone` stays at the O(1) invariant v4.39 built.
1450#[derive(Debug, Clone)]
1451pub struct Table {
1452    schema: TableSchema,
1453    rows: PersistentVec<Row>,
1454    indices: Vec<Index>,
1455    hot_bytes: u64,
1456    /// v6.7.0 — cached count of rows currently materialised in the
1457    /// cold tier via `RowLocator::Cold` entries across THIS table's
1458    /// indices. Populated by `ANALYZE` (walks every BTree index and
1459    /// counts Cold locators); the count survives until the next
1460    /// ANALYZE recomputes it. Surfaced via `spg_statistic.cold_row_count`
1461    /// and `spg_stat_segment.table_name`.
1462    ///
1463    /// Honest scope: this is a CACHED count, not a live one.
1464    /// Freezer / promote / DELETE don't currently update the cache
1465    /// incrementally — they invalidate it by setting the
1466    /// `cold_row_count_stale` flag, and the next ANALYZE re-walks.
1467    /// Incremental maintenance is a v6.7.x candidate if observation
1468    /// shows the ANALYZE walk cost dominates.
1469    cold_row_count: u64,
1470    /// v6.7.0 — set when the cached `cold_row_count` may be wrong
1471    /// because rows moved into / out of the cold tier since the last
1472    /// ANALYZE. The virtual-table surface reports the cached value
1473    /// regardless (operators run ANALYZE to refresh).
1474    cold_row_count_stale: bool,
1475}
1476
1477impl Table {
1478    pub fn new(schema: TableSchema) -> Self {
1479        Self {
1480            schema,
1481            rows: PersistentVec::new(),
1482            indices: Vec::new(),
1483            hot_bytes: 0,
1484            cold_row_count: 0,
1485            cold_row_count_stale: false,
1486        }
1487    }
1488
1489    /// Total encoded byte size of every row currently in the hot tier
1490    /// (`self.rows`). See struct docs for the maintenance contract.
1491    /// Returns 0 for an empty table.
1492    #[must_use]
1493    pub const fn hot_bytes(&self) -> u64 {
1494        self.hot_bytes
1495    }
1496
1497    /// v6.7.0 — cached count of cold-tier rows. See struct field
1498    /// docs for the staleness contract.
1499    #[must_use]
1500    pub const fn cold_row_count(&self) -> u64 {
1501        self.cold_row_count
1502    }
1503
1504    /// v6.7.0 — overwrite the cached count. Called by the engine's
1505    /// `analyze_one_table` after walking the indices.
1506    pub fn set_cold_row_count(&mut self, n: u64) {
1507        self.cold_row_count = n;
1508        self.cold_row_count_stale = false;
1509    }
1510
1511    /// v6.7.0 — mark the cached count as potentially out of date.
1512    /// Called by freezer / promote / DELETE paths so a subsequent
1513    /// `spg_statistic` read knows the number may not reflect the
1514    /// current state.
1515    pub fn mark_cold_row_count_stale(&mut self) {
1516        self.cold_row_count_stale = true;
1517    }
1518
1519    /// v6.7.0 — report whether the cached count is known to be out
1520    /// of date. Exposed for completeness; the virtual table surface
1521    /// returns the cached value regardless.
1522    #[must_use]
1523    pub const fn cold_row_count_stale(&self) -> bool {
1524        self.cold_row_count_stale
1525    }
1526
1527    /// v6.7.0 — walk every BTree index and count `RowLocator::Cold`
1528    /// entries; return the MAX across indices. The freeze path
1529    /// (`freeze_oldest_to_cold`) writes cold locators to ONE
1530    /// designated index — that index ends up with the full per-row
1531    /// count. MAX-across-indices yields the precise count when a
1532    /// PK-style index exists; for multi-index tables without a
1533    /// covering index it's a lower bound (rare in practice).
1534    /// Caller responsibility: only invoke under `engine.write()`
1535    /// or after taking ownership; the walk is O(N) over every
1536    /// (key, locator) pair.
1537    #[must_use]
1538    pub fn count_cold_locators(&self) -> u64 {
1539        let mut best: u64 = 0;
1540        for idx in &self.indices {
1541            if let IndexKind::BTree(map) = &idx.kind {
1542                let n: u64 = map
1543                    .iter()
1544                    .map(|(_, locs)| locs.iter().filter(|l| l.is_cold()).count() as u64)
1545                    .sum();
1546                if n > best {
1547                    best = n;
1548                }
1549            }
1550        }
1551        best
1552    }
1553
1554    pub const fn schema(&self) -> &TableSchema {
1555        &self.schema
1556    }
1557
1558    /// v6.7.2 — mutable schema accessor for ALTER TABLE paths.
1559    /// Used by `Engine::exec_alter_table` to flip per-table
1560    /// settings like `hot_tier_bytes`.
1561    pub const fn schema_mut(&mut self) -> &mut TableSchema {
1562        &mut self.schema
1563    }
1564
1565    /// v4.39: returns the persistent row vector by reference. Callers that
1566    /// used to take `&[Row]` should switch to `.iter()` (via
1567    /// `IntoIterator for &PersistentVec`) or `.get(i)` for indexing.
1568    pub const fn rows(&self) -> &PersistentVec<Row> {
1569        &self.rows
1570    }
1571
1572    pub const fn row_count(&self) -> usize {
1573        self.rows.len()
1574    }
1575
1576    /// v6.8.0 — exposed for the engine layer to patch
1577    /// `Index::included_columns` post-creation. Could fold into
1578    /// `add_index` once the engine's IF-NOT-EXISTS guard moves up,
1579    /// but the patch shape is the minimal change for v6.8.0.
1580    pub fn indices_mut(&mut self) -> &mut [Index] {
1581        &mut self.indices
1582    }
1583
1584    pub fn indices(&self) -> &[Index] {
1585        &self.indices
1586    }
1587
1588    /// Compute the next `AUTO_INCREMENT` value for the column at
1589    /// `col_pos`. Defined as `max(existing) + 1`, falling back to `1`
1590    /// when the column currently holds no integer values. NULL / non-
1591    /// integer cells are skipped. Returns `None` when the column isn't
1592    /// an integer type.
1593    pub fn next_auto_value(&self, col_pos: usize) -> Option<i64> {
1594        let ty = self.schema.columns.get(col_pos)?.ty;
1595        if !matches!(ty, DataType::SmallInt | DataType::Int | DataType::BigInt) {
1596            return None;
1597        }
1598        let mut max: Option<i64> = None;
1599        for row in &self.rows {
1600            match row.values.get(col_pos) {
1601                Some(Value::SmallInt(n)) => {
1602                    let v = i64::from(*n);
1603                    max = Some(max.map_or(v, |m| m.max(v)));
1604                }
1605                Some(Value::Int(n)) => {
1606                    let v = i64::from(*n);
1607                    max = Some(max.map_or(v, |m| m.max(v)));
1608                }
1609                Some(Value::BigInt(n)) => {
1610                    max = Some(max.map_or(*n, |m| m.max(*n)));
1611                }
1612                _ => {}
1613            }
1614        }
1615        Some(max.map_or(1, |m| m + 1))
1616    }
1617
1618    /// Return the first index defined over `column_position`, if any.
1619    /// (`v0.8` supports at most one index per column logically; the search
1620    /// just picks the first match.)
1621    pub fn index_on(&self, column_position: usize) -> Option<&Index> {
1622        // v6.7.1 — prefer BTree (has the key→locator map needed
1623        // for `lookup_eq`) over BRIN (metadata-only). When only a
1624        // BRIN exists on the column, return None so the executor
1625        // falls back to the hot-tier row scan instead of trying
1626        // to use BRIN for an equality lookup (which would always
1627        // return an empty slice and look like "no rows matched").
1628        self.indices
1629            .iter()
1630            .find(|i| i.column_position == column_position && matches!(i.kind, IndexKind::BTree(_)))
1631            .or_else(|| {
1632                self.indices.iter().find(|i| {
1633                    i.column_position == column_position && matches!(i.kind, IndexKind::Nsw(_))
1634                })
1635            })
1636    }
1637
1638    /// Insert one row after validating it matches the schema (length + type).
1639    /// Returns `StorageError` on mismatch — the table is left unchanged.
1640    /// Updates every defined index with the new row's key.
1641    pub fn insert(&mut self, row: Row) -> Result<(), StorageError> {
1642        if row.len() != self.schema.columns.len() {
1643            return Err(StorageError::ArityMismatch {
1644                expected: self.schema.columns.len(),
1645                actual: row.len(),
1646            });
1647        }
1648        for (i, (val, col)) in row.values.iter().zip(&self.schema.columns).enumerate() {
1649            if val.is_null() {
1650                if !col.nullable {
1651                    return Err(StorageError::NullInNotNull {
1652                        column: col.name.clone(),
1653                    });
1654                }
1655                continue;
1656            }
1657            let actual = val.data_type().expect("non-null");
1658            // Vector columns require both that the value's variant be Vector
1659            // *and* its dimension match. `actual == col.ty` already encodes
1660            // both because DataType::Vector carries the dim.
1661            //
1662            // VARCHAR(n) / CHAR(n) are storage-equivalent to TEXT — the
1663            // length / padding contract is enforced upstream by
1664            // `coerce_value`. Accept a `Text` value into either.
1665            //
1666            // NUMERIC's `Value::Numeric` carries its actual scale but the
1667            // column declares the *expected* scale (a scale-rescaled
1668            // Value::Numeric is produced upstream by `coerce_value`); the
1669            // structural check here only verifies "value is Numeric and
1670            // its scale equals the column scale".
1671            let compatible = actual == col.ty
1672                || matches!(
1673                    (actual, col.ty),
1674                    (
1675                        DataType::Text,
1676                        DataType::Varchar(_) | DataType::Char(_) | DataType::Json | DataType::Jsonb
1677                    ) | (DataType::Json | DataType::Jsonb, DataType::Text)
1678                        | (DataType::Json, DataType::Jsonb)
1679                        | (DataType::Jsonb, DataType::Json)
1680                        | (DataType::Timestamp, DataType::Timestamptz)
1681                        | (DataType::Timestamptz, DataType::Timestamp)
1682                )
1683                || matches!(
1684                    (actual, col.ty),
1685                    (
1686                        DataType::Numeric { scale: a, .. },
1687                        DataType::Numeric { scale: b, .. },
1688                    ) if a == b
1689                );
1690            if !compatible {
1691                return Err(StorageError::TypeMismatch {
1692                    column: col.name.clone(),
1693                    expected: col.ty,
1694                    actual,
1695                    position: i,
1696                });
1697            }
1698        }
1699        let new_row_idx = self.rows.len();
1700        // Pre-validate before mutating: ensure indices receive an IndexKey.
1701        // For NSW we defer the graph update to *after* the row is pushed
1702        // so the kNN search can see it in `self.rows`.
1703        for idx in &mut self.indices {
1704            match &mut idx.kind {
1705                IndexKind::BTree(map) => {
1706                    if let Some(key) = IndexKey::from_value(&row.values[idx.column_position]) {
1707                        // v4.40: PersistentBTreeMap has no in-place entry-or-default.
1708                        // Clone-then-insert keeps the same semantics — for typical
1709                        // unique-key schemas the Vec is 1-element so the clone is
1710                        // O(1). For dup-heavy columns it's O(M) per insert, traded
1711                        // for the structural-sharing win at clone time.
1712                        let mut entries = map.get(&key).cloned().unwrap_or_default();
1713                        entries.push(RowLocator::Hot(new_row_idx));
1714                        map.insert_mut(key, entries);
1715                    }
1716                }
1717                IndexKind::Gin(map) => {
1718                    // v7.12.3 — extend posting list per lexeme word.
1719                    // NULL or non-TsVector cell → no-op (cell carries
1720                    // no lexemes to index).
1721                    if let Value::TsVector(lexemes) = &row.values[idx.column_position] {
1722                        for lex in lexemes {
1723                            let mut entries = map.get(&lex.word).cloned().unwrap_or_default();
1724                            entries.push(RowLocator::Hot(new_row_idx));
1725                            map.insert_mut(lex.word.clone(), entries);
1726                        }
1727                    }
1728                }
1729                IndexKind::GinTrgm(map) => {
1730                    // v7.15.0 — trigram GIN. Shingle the TEXT cell
1731                    // into PG-compatible 3-byte trigrams and extend
1732                    // each trigram's posting list.
1733                    if let Value::Text(s) = &row.values[idx.column_position] {
1734                        for tri in trgm::extract_trigrams(s) {
1735                            let mut entries = map.get(&tri).cloned().unwrap_or_default();
1736                            entries.push(RowLocator::Hot(new_row_idx));
1737                            map.insert_mut(tri, entries);
1738                        }
1739                    }
1740                }
1741                IndexKind::GinFulltext(map) => {
1742                    // v7.17.0 Phase 2.2 — MySQL FULLTEXT-shape
1743                    // GIN over a TEXT / VARCHAR cell. Tokenise
1744                    // via the storage-local `simple_lex` (same
1745                    // rule as `to_tsvector('simple', text)`) and
1746                    // extend each lexeme's posting list.
1747                    let text_cell = match &row.values[idx.column_position] {
1748                        Value::Text(s) => Some(s.as_str()),
1749                        // mysqldump-style mediumtext / longtext
1750                        // land as Value::Text on insert; varchar
1751                        // cells likewise. Anything else (NULL,
1752                        // integer, …) contributes no lexemes.
1753                        _ => None,
1754                    };
1755                    if let Some(s) = text_cell {
1756                        for lex in fts_simple::simple_lex(s) {
1757                            let mut entries = map.get(&lex).cloned().unwrap_or_default();
1758                            entries.push(RowLocator::Hot(new_row_idx));
1759                            map.insert_mut(lex, entries);
1760                        }
1761                    }
1762                }
1763                // NSW handled below after the row push (so the new row
1764                // is visible to the kNN-graph connect step). BRIN
1765                // carries no per-row state.
1766                IndexKind::Nsw(_) | IndexKind::Brin { .. } => {}
1767            }
1768        }
1769        // v5.2.1: maintain incremental hot-tier byte counter. Computed
1770        // before the move so we don't need to borrow `row` after push.
1771        self.hot_bytes = self
1772            .hot_bytes
1773            .saturating_add(row_body_encoded_len(&row, &self.schema) as u64);
1774        // v4.39.1: push_mut keeps streaming inserts at Vec::push speed when
1775        // the table is uniquely owned (the spg-embedded path); inside a TX
1776        // wrap where a Catalog snapshot exists, push_mut path-copies the
1777        // tail just like push() and the snapshot stays valid.
1778        self.rows.push_mut(row);
1779        // NSW updates after the push so the new row is visible to the
1780        // greedy search used during connect.
1781        let new_row_idx = self.rows.len() - 1;
1782        let nsw_targets: Vec<usize> = self
1783            .indices
1784            .iter()
1785            .enumerate()
1786            .filter_map(|(i, idx)| {
1787                if matches!(idx.kind, IndexKind::Nsw(_)) {
1788                    Some(i)
1789                } else {
1790                    None
1791                }
1792            })
1793            .collect();
1794        for idx_pos in nsw_targets {
1795            nsw_insert_at(self, idx_pos, new_row_idx);
1796        }
1797        Ok(())
1798    }
1799
1800    /// Build a new B-tree index over the named column. Rebuilds from
1801    /// existing rows. Errors if `column_name` doesn't exist or the index
1802    /// name is taken.
1803    pub fn add_index(&mut self, name: String, column_name: &str) -> Result<(), StorageError> {
1804        if self.indices.iter().any(|i| i.name == name) {
1805            return Err(StorageError::DuplicateIndex { name });
1806        }
1807        let column_position = self.schema.column_position(column_name).ok_or_else(|| {
1808            StorageError::ColumnNotFound {
1809                column: column_name.into(),
1810            }
1811        })?;
1812        let mut idx = Index::new_btree(name, column_position);
1813        if let IndexKind::BTree(map) = &mut idx.kind {
1814            for (i, row) in self.rows.iter().enumerate() {
1815                if let Some(key) = IndexKey::from_value(&row.values[column_position]) {
1816                    let mut entries = map.get(&key).cloned().unwrap_or_default();
1817                    entries.push(RowLocator::Hot(i));
1818                    map.insert_mut(key, entries);
1819                }
1820            }
1821        }
1822        self.indices.push(idx);
1823        Ok(())
1824    }
1825
1826    /// Build a new NSW (HNSW-flavoured) index over the named column.
1827    /// Required for `ORDER BY col <-> literal LIMIT k` to plan as a
1828    /// graph traversal instead of a full scan. Column must be a Vector
1829    /// type. `m` is the maximum number of neighbours per node.
1830    pub fn add_nsw_index(
1831        &mut self,
1832        name: String,
1833        column_name: &str,
1834        m: usize,
1835    ) -> Result<(), StorageError> {
1836        self.add_nsw_index_inner(name, column_name, m, None)
1837    }
1838
1839    /// v6.0.4 — synchronous rebuild of the named NSW index. If
1840    /// `new_encoding` is `Some(target)` and differs from the column's
1841    /// current encoding, every stored cell at the indexed column is
1842    /// re-coded into the target encoding before the new graph
1843    /// builds. Returns `IndexNotFound` if no index by that name exists
1844    /// and `Unsupported` for non-NSW indexes (`BTree` REBUILD is a no-op
1845    /// the engine layer rejects, not a storage-level concept).
1846    ///
1847    /// Holds the caller's `&mut self` for the duration — no
1848    /// concurrency / staging / WAL-replay machinery in v6.0.4. The
1849    /// "live" optimisation lands as v6.0.4.1.
1850    pub fn rebuild_nsw_index(
1851        &mut self,
1852        name: &str,
1853        new_encoding: Option<VecEncoding>,
1854    ) -> Result<(), StorageError> {
1855        let idx_pos = self
1856            .indices
1857            .iter()
1858            .position(|i| i.name == name)
1859            .ok_or_else(|| StorageError::IndexNotFound {
1860                name: String::from(name),
1861            })?;
1862        let col_pos = self.indices[idx_pos].column_position;
1863        let m = match &self.indices[idx_pos].kind {
1864            IndexKind::Nsw(g) => g.m,
1865            IndexKind::BTree(_)
1866            | IndexKind::Brin { .. }
1867            | IndexKind::Gin(_)
1868            | IndexKind::GinTrgm(_)
1869            | IndexKind::GinFulltext(_) => {
1870                return Err(StorageError::Unsupported(format!(
1871                    "ALTER INDEX REBUILD on non-NSW index {name:?} — only NSW indexes can rebuild"
1872                )));
1873            }
1874        };
1875        let col_name = self.schema.columns[col_pos].name.clone();
1876        // 1. Optional re-encoding pass. Done first so the cells
1877        //    match the schema before the graph rebuild walks them.
1878        if let Some(target) = new_encoding {
1879            let current = match self.schema.columns[col_pos].ty {
1880                DataType::Vector { encoding, .. } => encoding,
1881                ref other => {
1882                    return Err(StorageError::Unsupported(format!(
1883                        "ALTER INDEX REBUILD WITH (encoding=…) on non-vector column type {other:?}"
1884                    )));
1885                }
1886            };
1887            if target != current {
1888                let DataType::Vector { dim, .. } = self.schema.columns[col_pos].ty else {
1889                    unreachable!("checked above")
1890                };
1891                let n = self.rows.len();
1892                for i in 0..n {
1893                    let row = self
1894                        .rows
1895                        .get_mut(i)
1896                        .expect("row index in bounds (we iterated up to len())");
1897                    let cell = core::mem::replace(&mut row.values[col_pos], Value::Null);
1898                    let recoded = recode_vector_cell(cell, target)?;
1899                    row.values[col_pos] = recoded;
1900                }
1901                self.schema.columns[col_pos].ty = DataType::Vector {
1902                    dim,
1903                    encoding: target,
1904                };
1905            }
1906        }
1907        // 2. Drop the existing index slot + rebuild from row payload.
1908        self.indices.remove(idx_pos);
1909        self.add_nsw_index_inner(String::from(name), &col_name, m, None)?;
1910        Ok(())
1911    }
1912
1913    /// Restore an NSW index from a pre-built graph (used on
1914    /// deserialize). Skips the bulk-build pass since the topology is
1915    /// already known. Returns `DuplicateIndex` or `ColumnNotFound` on
1916    /// schema mismatch as usual.
1917    pub fn restore_nsw_index(
1918        &mut self,
1919        name: String,
1920        column_name: &str,
1921        graph: NswGraph,
1922    ) -> Result<(), StorageError> {
1923        self.add_nsw_index_inner(name, column_name, graph.m, Some(graph))
1924    }
1925
1926    /// Restore a `BTree` index from a pre-built `(IndexKey, Vec<RowLocator>)`
1927    /// map. Used by [`Catalog::deserialize`] when reading a v9 (or later)
1928    /// catalog snapshot — the map travels on disk so cold-tier locators
1929    /// survive a round-trip, instead of being rebuilt from `self.rows`
1930    /// (which would lose every Cold entry). Same error contract as
1931    /// [`Table::add_index`].
1932    pub fn restore_btree_index(
1933        &mut self,
1934        name: String,
1935        column_name: &str,
1936        map: PersistentBTreeMap<IndexKey, Vec<RowLocator>>,
1937    ) -> Result<(), StorageError> {
1938        if self.indices.iter().any(|i| i.name == name) {
1939            return Err(StorageError::DuplicateIndex { name });
1940        }
1941        let column_position = self.schema.column_position(column_name).ok_or_else(|| {
1942            StorageError::ColumnNotFound {
1943                column: column_name.into(),
1944            }
1945        })?;
1946        self.indices.push(Index {
1947            name,
1948            column_position,
1949            kind: IndexKind::BTree(map),
1950            included_columns: Vec::new(),
1951            partial_predicate: None,
1952            expression: None,
1953            is_unique: false,
1954            extra_column_positions: Vec::new(),
1955        });
1956        Ok(())
1957    }
1958
1959    /// v6.7.1 — public restore counterpart for BRIN indices. Used
1960    /// by `Catalog::deserialize` when a v10 snapshot carries a
1961    /// BRIN index entry. BRIN carries no in-memory data — only the
1962    /// `column_type` snapshot is restored.
1963    pub fn restore_brin_index(
1964        &mut self,
1965        name: String,
1966        column_name: &str,
1967        column_type: DataType,
1968    ) -> Result<(), StorageError> {
1969        if self.indices.iter().any(|i| i.name == name) {
1970            return Err(StorageError::DuplicateIndex { name });
1971        }
1972        let column_position = self.schema.column_position(column_name).ok_or_else(|| {
1973            StorageError::ColumnNotFound {
1974                column: column_name.into(),
1975            }
1976        })?;
1977        self.indices
1978            .push(Index::new_brin(name, column_position, column_type));
1979        Ok(())
1980    }
1981
1982    /// v6.7.1 — public CREATE INDEX counterpart for BRIN. Creates
1983    /// the index entry with a snapshot of the indexed column's
1984    /// current `DataType`.
1985    pub fn add_brin_index(&mut self, name: String, column_name: &str) -> Result<(), StorageError> {
1986        if self.indices.iter().any(|i| i.name == name) {
1987            return Err(StorageError::DuplicateIndex { name });
1988        }
1989        let column_position = self.schema.column_position(column_name).ok_or_else(|| {
1990            StorageError::ColumnNotFound {
1991                column: column_name.into(),
1992            }
1993        })?;
1994        let column_type = self.schema.columns[column_position].ty;
1995        self.indices
1996            .push(Index::new_brin(name, column_position, column_type));
1997        Ok(())
1998    }
1999
2000    /// v7.12.3 — Build a new GIN inverted index over a `tsvector`
2001    /// column. Populates posting lists from existing rows. Errors
2002    /// if the column doesn't exist, isn't `TsVector`, or the index
2003    /// name is taken.
2004    pub fn add_gin_index(&mut self, name: String, column_name: &str) -> Result<(), StorageError> {
2005        if self.indices.iter().any(|i| i.name == name) {
2006            return Err(StorageError::DuplicateIndex { name });
2007        }
2008        let column_position = self.schema.column_position(column_name).ok_or_else(|| {
2009            StorageError::ColumnNotFound {
2010                column: column_name.into(),
2011            }
2012        })?;
2013        if self.schema.columns[column_position].ty != DataType::TsVector {
2014            return Err(StorageError::Corrupt(format!(
2015                "GIN index {name:?} requires a tsvector column; \
2016                 {column_name:?} is {:?}",
2017                self.schema.columns[column_position].ty
2018            )));
2019        }
2020        let mut idx = Index::new_gin(name, column_position);
2021        if let IndexKind::Gin(map) = &mut idx.kind {
2022            for (i, row) in self.rows.iter().enumerate() {
2023                if let Value::TsVector(lexemes) = &row.values[column_position] {
2024                    for lex in lexemes {
2025                        let mut entries = map.get(&lex.word).cloned().unwrap_or_default();
2026                        entries.push(RowLocator::Hot(i));
2027                        map.insert_mut(lex.word.clone(), entries);
2028                    }
2029                }
2030            }
2031        }
2032        self.indices.push(idx);
2033        Ok(())
2034    }
2035
2036    /// v7.12.3 — Restore a GIN index from a deserialised snapshot.
2037    /// Mirrors [`Self::restore_btree_index`] but takes the GIN's
2038    /// `word → Vec<RowLocator>` posting-list map (already populated
2039    /// from the catalog stream) instead of an `IndexKey` map.
2040    pub fn restore_gin_index(
2041        &mut self,
2042        name: String,
2043        column_name: &str,
2044        map: PersistentBTreeMap<String, Vec<RowLocator>>,
2045    ) -> Result<(), StorageError> {
2046        if self.indices.iter().any(|i| i.name == name) {
2047            return Err(StorageError::DuplicateIndex { name });
2048        }
2049        let column_position = self.schema.column_position(column_name).ok_or_else(|| {
2050            StorageError::ColumnNotFound {
2051                column: column_name.into(),
2052            }
2053        })?;
2054        let mut idx = Index::new_gin(name, column_position);
2055        idx.kind = IndexKind::Gin(map);
2056        self.indices.push(idx);
2057        Ok(())
2058    }
2059
2060    /// v7.15.0 — `gin_trgm_ops` GIN over a TEXT column. Walks
2061    /// every row, shingles the cell into PG-compatible trigrams,
2062    /// and builds the posting-list map. NULL / non-TEXT cells
2063    /// contribute nothing (no trigrams).
2064    pub fn add_gin_trgm_index(
2065        &mut self,
2066        name: String,
2067        column_name: &str,
2068    ) -> Result<(), StorageError> {
2069        if self.indices.iter().any(|i| i.name == name) {
2070            return Err(StorageError::DuplicateIndex { name });
2071        }
2072        let column_position = self.schema.column_position(column_name).ok_or_else(|| {
2073            StorageError::ColumnNotFound {
2074                column: column_name.into(),
2075            }
2076        })?;
2077        if !matches!(
2078            self.schema.columns[column_position].ty,
2079            DataType::Text | DataType::Varchar(_)
2080        ) {
2081            return Err(StorageError::Corrupt(format!(
2082                "trigram-GIN index {name:?} requires a TEXT/VARCHAR column; \
2083                 {column_name:?} is {:?}",
2084                self.schema.columns[column_position].ty
2085            )));
2086        }
2087        let mut idx = Index::new_gin_trgm(name, column_position);
2088        if let IndexKind::GinTrgm(map) = &mut idx.kind {
2089            for (i, row) in self.rows.iter().enumerate() {
2090                if let Value::Text(s) = &row.values[column_position] {
2091                    for tri in trgm::extract_trigrams(s) {
2092                        let mut entries = map.get(&tri).cloned().unwrap_or_default();
2093                        entries.push(RowLocator::Hot(i));
2094                        map.insert_mut(tri, entries);
2095                    }
2096                }
2097            }
2098        }
2099        self.indices.push(idx);
2100        Ok(())
2101    }
2102
2103    /// v7.15.0 — restore a trigram-GIN from its catalog snapshot
2104    /// payload. Mirrors [`Self::restore_gin_index`].
2105    pub fn restore_gin_trgm_index(
2106        &mut self,
2107        name: String,
2108        column_name: &str,
2109        map: PersistentBTreeMap<String, Vec<RowLocator>>,
2110    ) -> Result<(), StorageError> {
2111        if self.indices.iter().any(|i| i.name == name) {
2112            return Err(StorageError::DuplicateIndex { name });
2113        }
2114        let column_position = self.schema.column_position(column_name).ok_or_else(|| {
2115            StorageError::ColumnNotFound {
2116                column: column_name.into(),
2117            }
2118        })?;
2119        let mut idx = Index::new_gin_trgm(name, column_position);
2120        idx.kind = IndexKind::GinTrgm(map);
2121        self.indices.push(idx);
2122        Ok(())
2123    }
2124
2125    /// v7.17.0 Phase 2.2 — MySQL `FULLTEXT KEY` GIN over a TEXT
2126    /// column. Walks every row, tokenises the cell into lower-
2127    /// cased word lexemes (`fts_simple::simple_lex` — same rule
2128    /// as `to_tsvector('simple', text)`), and builds the
2129    /// posting-list map. NULL / non-TEXT cells contribute
2130    /// nothing (no lexemes).
2131    pub fn add_gin_fulltext_index(
2132        &mut self,
2133        name: String,
2134        column_name: &str,
2135    ) -> Result<(), StorageError> {
2136        if self.indices.iter().any(|i| i.name == name) {
2137            return Err(StorageError::DuplicateIndex { name });
2138        }
2139        let column_position = self.schema.column_position(column_name).ok_or_else(|| {
2140            StorageError::ColumnNotFound {
2141                column: column_name.into(),
2142            }
2143        })?;
2144        if !matches!(
2145            self.schema.columns[column_position].ty,
2146            DataType::Text | DataType::Varchar(_)
2147        ) {
2148            return Err(StorageError::Corrupt(format!(
2149                "fulltext-GIN index {name:?} requires a TEXT/VARCHAR column; \
2150                 {column_name:?} is {:?}",
2151                self.schema.columns[column_position].ty
2152            )));
2153        }
2154        let mut idx = Index::new_gin_fulltext(name, column_position);
2155        if let IndexKind::GinFulltext(map) = &mut idx.kind {
2156            for (i, row) in self.rows.iter().enumerate() {
2157                if let Value::Text(s) = &row.values[column_position] {
2158                    for lex in fts_simple::simple_lex(s) {
2159                        let mut entries = map.get(&lex).cloned().unwrap_or_default();
2160                        entries.push(RowLocator::Hot(i));
2161                        map.insert_mut(lex, entries);
2162                    }
2163                }
2164            }
2165        }
2166        self.indices.push(idx);
2167        Ok(())
2168    }
2169
2170    /// v7.17.0 Phase 2.2 — restore a fulltext-GIN from its
2171    /// catalog snapshot payload. Mirrors
2172    /// [`Self::restore_gin_trgm_index`].
2173    pub fn restore_gin_fulltext_index(
2174        &mut self,
2175        name: String,
2176        column_name: &str,
2177        map: PersistentBTreeMap<String, Vec<RowLocator>>,
2178    ) -> Result<(), StorageError> {
2179        if self.indices.iter().any(|i| i.name == name) {
2180            return Err(StorageError::DuplicateIndex { name });
2181        }
2182        let column_position = self.schema.column_position(column_name).ok_or_else(|| {
2183            StorageError::ColumnNotFound {
2184                column: column_name.into(),
2185            }
2186        })?;
2187        let mut idx = Index::new_gin_fulltext(name, column_position);
2188        idx.kind = IndexKind::GinFulltext(map);
2189        self.indices.push(idx);
2190        Ok(())
2191    }
2192
2193    /// v5.1: register cold-tier locators on a `BTree` index. Used
2194    /// after [`Catalog::load_segment_bytes`] to wire every cold-
2195    /// tier row's PK back to its segment so
2196    /// [`Catalog::lookup_by_pk`] can resolve it. Each call
2197    /// appends to the index — keys that already have hot or cold
2198    /// locators keep them. Returns the number of locators
2199    /// registered.
2200    ///
2201    /// Pre-v5.2 (freezer) this is the only path that adds Cold
2202    /// variants to a PB; post-freezer the background freezer
2203    /// thread produces these as a batch under the engine write
2204    /// lock and this API becomes its in-memory primitive.
2205    ///
2206    /// Errors if `index_name` doesn't exist or names an NSW graph
2207    /// (NSW indices don't carry per-key row locators — they're
2208    /// vector-search structures).
2209    pub fn register_cold_locators<I>(
2210        &mut self,
2211        index_name: &str,
2212        locators: I,
2213    ) -> Result<usize, StorageError>
2214    where
2215        I: IntoIterator<Item = (IndexKey, RowLocator)>,
2216    {
2217        let idx = self
2218            .indices
2219            .iter_mut()
2220            .find(|i| i.name == index_name)
2221            .ok_or_else(|| StorageError::Corrupt(format!("index {index_name:?} not found")))?;
2222        let map = match &mut idx.kind {
2223            IndexKind::BTree(map) => map,
2224            IndexKind::Nsw(_)
2225            | IndexKind::Brin { .. }
2226            | IndexKind::Gin(_)
2227            | IndexKind::GinTrgm(_)
2228            | IndexKind::GinFulltext(_) => {
2229                return Err(StorageError::Corrupt(format!(
2230                    "index {index_name:?} is not BTree; cold locators apply only to BTree indices"
2231                )));
2232            }
2233        };
2234        let mut count = 0usize;
2235        for (key, locator) in locators {
2236            let mut entries = map.get(&key).cloned().unwrap_or_default();
2237            entries.push(locator);
2238            map.insert_mut(key, entries);
2239            count += 1;
2240        }
2241        Ok(count)
2242    }
2243
2244    /// v7.12.3 — GIN-side parallel to [`Self::register_cold_locators`].
2245    /// Re-attaches `word → cold RowLocator` posting-list entries after
2246    /// the from-rows rebuild loop. Errors when the index doesn't
2247    /// exist or isn't a GIN. Both tsvector-GIN and trigram-GIN
2248    /// variants share posting-list shape (`String → Vec<RowLocator>`),
2249    /// so this helper accepts either.
2250    pub fn register_gin_cold_locators<I>(
2251        &mut self,
2252        index_name: &str,
2253        locators: I,
2254    ) -> Result<usize, StorageError>
2255    where
2256        I: IntoIterator<Item = (String, RowLocator)>,
2257    {
2258        let idx = self
2259            .indices
2260            .iter_mut()
2261            .find(|i| i.name == index_name)
2262            .ok_or_else(|| StorageError::Corrupt(format!("index {index_name:?} not found")))?;
2263        let map = match &mut idx.kind {
2264            // v7.17.0 Phase 2.2 — fulltext-GIN posting lists are
2265            // shape-compatible with tsvector / trigram GINs, so
2266            // cold-locator re-attach handles all three.
2267            IndexKind::Gin(map) | IndexKind::GinTrgm(map) | IndexKind::GinFulltext(map) => map,
2268            IndexKind::BTree(_) | IndexKind::Nsw(_) | IndexKind::Brin { .. } => {
2269                return Err(StorageError::Corrupt(format!(
2270                    "register_gin_cold_locators: index {index_name:?} is not GIN"
2271                )));
2272            }
2273        };
2274        let mut count = 0usize;
2275        for (word, locator) in locators {
2276            let mut entries = map.get(&word).cloned().unwrap_or_default();
2277            entries.push(locator);
2278            map.insert_mut(word, entries);
2279            count += 1;
2280        }
2281        Ok(count)
2282    }
2283
2284    /// v5.2.3: remove every `Cold` locator currently registered on
2285    /// `index_name` under the given `key`. `Hot` locators for the
2286    /// same key are left in place — useful when a row has just been
2287    /// promoted hot-side and the caller wants the old Cold pointer
2288    /// retired without losing the new hot entry.
2289    ///
2290    /// Returns the number of cold locators removed (0 when the key
2291    /// has only hot entries or the key isn't present at all).
2292    /// Errors when the index doesn't exist or isn't a `BTree`.
2293    pub fn remove_cold_locators_for_key(
2294        &mut self,
2295        index_name: &str,
2296        key: &IndexKey,
2297    ) -> Result<usize, StorageError> {
2298        let idx = self
2299            .indices
2300            .iter_mut()
2301            .find(|i| i.name == index_name)
2302            .ok_or_else(|| {
2303                StorageError::Corrupt(format!(
2304                    "remove_cold_locators_for_key: index {index_name:?} not found"
2305                ))
2306            })?;
2307        let map = match &mut idx.kind {
2308            IndexKind::BTree(map) => map,
2309            IndexKind::Nsw(_)
2310            | IndexKind::Brin { .. }
2311            | IndexKind::Gin(_)
2312            | IndexKind::GinTrgm(_)
2313            | IndexKind::GinFulltext(_) => {
2314                return Err(StorageError::Corrupt(format!(
2315                    "remove_cold_locators_for_key: index {index_name:?} is not BTree; \
2316                     cold locators apply only to BTree indices"
2317                )));
2318            }
2319        };
2320        let Some(entries) = map.get(key) else {
2321            return Ok(0);
2322        };
2323        let mut kept: Vec<RowLocator> =
2324            entries.iter().copied().filter(RowLocator::is_hot).collect();
2325        let removed = entries.len() - kept.len();
2326        if removed == 0 {
2327            return Ok(0);
2328        }
2329        kept.shrink_to_fit();
2330        // PersistentBTreeMap has no remove API in v5.2; when every
2331        // locator for `key` was Cold, the key keeps an empty Vec
2332        // entry. `Index::lookup_eq` already treats `Some(&[])` and
2333        // `None` as the same empty slice (via `Vec::as_slice`), so
2334        // callers can't distinguish the two. The space cost is one
2335        // empty Vec per shadowed-then-promoted key — bounded and
2336        // recoverable when the future compaction job lands.
2337        map.insert_mut(key.clone(), kept);
2338        Ok(removed)
2339    }
2340
2341    /// v7.13.0 — append a new column to the schema and back-fill
2342    /// every existing row with `fill_value`. Used by the engine's
2343    /// `ALTER TABLE t ADD COLUMN …` handler (mailrs round-5 G1).
2344    /// Indices on existing columns keep working — column positions
2345    /// don't shift since the new column lands at the end — so no
2346    /// index rebuild is needed.
2347    pub fn add_column(&mut self, col: ColumnSchema, fill_value: Value) {
2348        self.schema.columns.push(col);
2349        let mut new_rows: PersistentVec<Row> = PersistentVec::new();
2350        for row in self.rows.iter() {
2351            let mut values = row.values.clone();
2352            values.push(fill_value.clone());
2353            new_rows.push_mut(Row::new(values));
2354        }
2355        self.rows = new_rows;
2356    }
2357
2358    /// v7.15.0 — replace the partial-index predicate source on
2359    /// the index at slot `idx`. Used by `ALTER TABLE … RENAME
2360    /// COLUMN` after the engine rewrites column-identifier
2361    /// references in the predicate source text. Pure metadata
2362    /// edit; index rows are unaffected (they're keyed by
2363    /// column position, not predicate text).
2364    pub fn set_partial_predicate(&mut self, idx: usize, pred: Option<String>) {
2365        debug_assert!(idx < self.indices.len());
2366        self.indices[idx].partial_predicate = pred;
2367    }
2368
2369    /// v7.15.0 — rename the column at `col_pos` to `new_name`.
2370    /// The on-disk row encoding is positional, so no row rewrite
2371    /// is needed; only the schema's column name changes. Indices,
2372    /// UCs, FKs all key off column positions and are unaffected.
2373    /// Source-text references that hold the column name (CHECK
2374    /// predicates, partial-index predicates, runtime DEFAULT
2375    /// expressions, trigger `UPDATE OF` lists) are rewritten by
2376    /// the engine before this helper is called — the storage
2377    /// layer doesn't depend on `spg-sql` and so can't re-parse the
2378    /// predicate sources itself.
2379    pub fn rename_column(&mut self, col_pos: usize, new_name: &str) {
2380        debug_assert!(col_pos < self.schema.columns.len());
2381        self.schema.columns[col_pos].name = new_name.to_string();
2382    }
2383
2384    /// v7.13.3 — drop the column at `col_pos`. Removes the entry
2385    /// from the schema, the value from every row, any index that
2386    /// references the column (pure drop, not shift), and shifts
2387    /// every remaining index/UC/FK column position that pointed
2388    /// past `col_pos` down by one. Used by `ALTER TABLE t DROP
2389    /// COLUMN <c>` (mailrs round-7 S8). FK dependents on this
2390    /// column must already have been removed by the caller (CASCADE
2391    /// path); the helper assumes only same-column index removal is
2392    /// needed.
2393    pub fn drop_column(&mut self, col_pos: usize) {
2394        debug_assert!(col_pos < self.schema.columns.len());
2395        // Strip the column from the schema.
2396        self.schema.columns.remove(col_pos);
2397        // Rewrite every row to omit the cell at col_pos.
2398        let mut new_rows: PersistentVec<Row> = PersistentVec::new();
2399        for row in self.rows.iter() {
2400            let mut values = row.values.clone();
2401            if col_pos < values.len() {
2402                values.remove(col_pos);
2403            }
2404            new_rows.push_mut(Row::new(values));
2405        }
2406        self.rows = new_rows;
2407        // Drop indices on the column outright; shift the rest.
2408        self.indices.retain(|idx| idx.column_position != col_pos);
2409        for idx in &mut self.indices {
2410            if idx.column_position > col_pos {
2411                idx.column_position -= 1;
2412            }
2413            // Same shift for any included-columns reference.
2414            for inc in &mut idx.included_columns {
2415                if *inc > col_pos {
2416                    *inc -= 1;
2417                }
2418            }
2419        }
2420        // Shift uniqueness-constraint column positions (and drop
2421        // entries that lose all columns, though that shouldn't
2422        // happen in practice — caller has already CASCADE-removed
2423        // FKs and there's no general CASCADE for UCs).
2424        let mut surviving_ucs: Vec<UniquenessConstraint> = Vec::new();
2425        for mut uc in core::mem::take(&mut self.schema.uniqueness_constraints) {
2426            uc.columns.retain(|&c| c != col_pos);
2427            if uc.columns.is_empty() {
2428                continue;
2429            }
2430            for c in &mut uc.columns {
2431                if *c > col_pos {
2432                    *c -= 1;
2433                }
2434            }
2435            surviving_ucs.push(uc);
2436        }
2437        self.schema.uniqueness_constraints = surviving_ucs;
2438        // Shift FK local_columns (parent-pointing column positions
2439        // are off-table and untouched).
2440        for fk in &mut self.schema.foreign_keys {
2441            for c in &mut fk.local_columns {
2442                if *c > col_pos {
2443                    *c -= 1;
2444                }
2445            }
2446        }
2447        // Rebuild remaining indices' payload — the column-position
2448        // shift means existing IndexKey entries are still keyed by
2449        // the same column data but the position numbers changed;
2450        // existing key→locator maps stay valid because they're
2451        // keyed by Value not position. The rebuild is conservative
2452        // — same pattern delete_rows uses post-mutation.
2453        self.rebuild_indices();
2454    }
2455
2456    /// v4.4: delete the rows at the given positions in one pass.
2457    /// `positions` must be unique; ordering doesn't matter. Indices
2458    /// are rebuilt from scratch (cheaper than tracking incremental
2459    /// shifts across both B-tree and NSW). Returns the number of
2460    /// rows removed.
2461    /// v7.17.0 Phase 1.3 — wipe every row. Used by REFRESH
2462    /// MATERIALIZED VIEW; same effect as `delete_rows((0..N).into())`
2463    /// but skips the per-position bookkeeping for the all-removed
2464    /// fast path. Indices are rebuilt (empty).
2465    pub fn truncate(&mut self) {
2466        self.rows = PersistentVec::new();
2467        self.hot_bytes = 0;
2468        self.rebuild_indices();
2469    }
2470
2471    pub fn delete_rows(&mut self, positions: &[usize]) -> usize {
2472        if positions.is_empty() {
2473            return 0;
2474        }
2475        // Mark positions; v4.39: PV has no in-place retain, so we rebuild
2476        // a fresh PV by pushing the survivors. Still O(n log₃₂ n); the
2477        // structural-sharing win shows up at `Catalog::clone()`, not here.
2478        let mut to_remove = alloc::vec![false; self.rows.len()];
2479        let mut removed = 0;
2480        for &p in positions {
2481            if p < to_remove.len() && !to_remove[p] {
2482                to_remove[p] = true;
2483                removed += 1;
2484            }
2485        }
2486        let mut new_rows: PersistentVec<Row> = PersistentVec::new();
2487        let mut removed_bytes: u64 = 0;
2488        for (i, row) in self.rows.iter().enumerate() {
2489            if to_remove[i] {
2490                removed_bytes =
2491                    removed_bytes.saturating_add(row_body_encoded_len(row, &self.schema) as u64);
2492            } else {
2493                new_rows.push_mut(row.clone());
2494            }
2495        }
2496        self.rows = new_rows;
2497        self.hot_bytes = self.hot_bytes.saturating_sub(removed_bytes);
2498        self.rebuild_indices();
2499        removed
2500    }
2501
2502    /// v4.4: replace the row at `position` with `new_values` (must
2503    /// match the schema arity + types). Indices are rebuilt for
2504    /// correctness — the affected column might be indexed and its
2505    /// key may have shifted, and a NSW node's vector may have
2506    /// changed, both of which need fresh state.
2507    pub fn update_row(
2508        &mut self,
2509        position: usize,
2510        new_values: Vec<Value>,
2511    ) -> Result<(), StorageError> {
2512        if position >= self.rows.len() {
2513            return Err(StorageError::Corrupt(alloc::format!(
2514                "update_row: position {position} out of bounds (rows={})",
2515                self.rows.len()
2516            )));
2517        }
2518        if new_values.len() != self.schema.columns.len() {
2519            return Err(StorageError::ArityMismatch {
2520                expected: self.schema.columns.len(),
2521                actual: new_values.len(),
2522            });
2523        }
2524        // Reuse the per-cell type-compat validation that `insert`
2525        // applies. The body below mirrors that check intentionally —
2526        // factoring it would be more code than the duplication.
2527        for (i, (val, col)) in new_values.iter().zip(&self.schema.columns).enumerate() {
2528            if val.is_null() {
2529                if !col.nullable {
2530                    return Err(StorageError::NullInNotNull {
2531                        column: col.name.clone(),
2532                    });
2533                }
2534                continue;
2535            }
2536            let actual = val.data_type().expect("non-null");
2537            let compatible = actual == col.ty
2538                || matches!(
2539                    (actual, col.ty),
2540                    (
2541                        DataType::Text,
2542                        DataType::Varchar(_) | DataType::Char(_) | DataType::Json | DataType::Jsonb
2543                    ) | (DataType::Json | DataType::Jsonb, DataType::Text)
2544                        | (DataType::Json, DataType::Jsonb)
2545                        | (DataType::Jsonb, DataType::Json)
2546                        | (DataType::Timestamp, DataType::Timestamptz)
2547                        | (DataType::Timestamptz, DataType::Timestamp)
2548                )
2549                || matches!(
2550                    (actual, col.ty),
2551                    (
2552                        DataType::Numeric { scale: a, .. },
2553                        DataType::Numeric { scale: b, .. },
2554                    ) if a == b
2555                );
2556            if !compatible {
2557                return Err(StorageError::TypeMismatch {
2558                    column: col.name.clone(),
2559                    expected: col.ty,
2560                    actual,
2561                    position: i,
2562                });
2563            }
2564        }
2565        let old_row = self
2566            .rows
2567            .get(position)
2568            .expect("position bounds-checked above");
2569        let old_bytes = row_body_encoded_len(old_row, &self.schema) as u64;
2570        let new_row = Row::new(new_values);
2571        let new_bytes = row_body_encoded_len(&new_row, &self.schema) as u64;
2572        self.rows = self
2573            .rows
2574            .set(position, new_row)
2575            .expect("position bounds-checked above");
2576        self.hot_bytes = self
2577            .hot_bytes
2578            .saturating_sub(old_bytes)
2579            .saturating_add(new_bytes);
2580        self.rebuild_indices();
2581        Ok(())
2582    }
2583
2584    /// v4.4 helper used by `delete_rows` / `update_row`: discard all
2585    /// index payloads and rebuild from `self.rows`. Cheap enough
2586    /// for typical SPG scale (catalogs in the docker-compose
2587    /// deployment shape are small); the alternative — incremental
2588    /// shift bookkeeping across B-tree + NSW — would be far more
2589    /// invasive than the savings justify.
2590    fn rebuild_indices(&mut self) {
2591        // v5.2.3: capture every `Cold` locator on every BTree index
2592        // before the rebuild, so the from-rows re-emission below
2593        // (which only produces `Hot` locators) doesn't drop cold-
2594        // tier entries on keys unrelated to the row that changed.
2595        // Pre-v5.2.3 this was a `freeze_oldest_to_cold` worry only
2596        // and the freezer did its own capture-then-reregister; v5.2.3
2597        // promotes that pattern into the base helper because UPDATE
2598        // / DELETE now run rebuild_indices on tables with cold rows.
2599        let preserved_cold: Vec<(String, Vec<(IndexKey, RowLocator)>)> = self
2600            .indices
2601            .iter()
2602            .filter_map(|idx| match &idx.kind {
2603                IndexKind::BTree(map) => {
2604                    let cold: Vec<(IndexKey, RowLocator)> = map
2605                        .iter()
2606                        .flat_map(|(k, locs)| {
2607                            locs.iter()
2608                                .filter(|l| l.is_cold())
2609                                .copied()
2610                                .map(move |l| (k.clone(), l))
2611                        })
2612                        .collect();
2613                    if cold.is_empty() {
2614                        None
2615                    } else {
2616                        Some((idx.name.clone(), cold))
2617                    }
2618                }
2619                // BRIN / NSW carry no key→locator map. GIN handles
2620                // its own cold preservation below in `preserved_gin_cold`.
2621                IndexKind::Nsw(_)
2622                | IndexKind::Brin { .. }
2623                | IndexKind::Gin(_)
2624                | IndexKind::GinTrgm(_)
2625                | IndexKind::GinFulltext(_) => None,
2626            })
2627            .collect();
2628
2629        // v7.12.3 — same cold-preservation pattern for GIN's
2630        // `word → Vec<RowLocator>` posting lists. Parallel to the
2631        // BTree pass above (different key type so a separate vec is
2632        // cleaner than a generic merge). v7.15.0: trigram-GIN
2633        // (`gin_trgm_ops`) shares the same posting-list shape, so
2634        // one pass handles both — the `RebuildKind` carries the
2635        // kind tag to drive resurrection.
2636        let preserved_gin_cold: Vec<(String, Vec<(String, RowLocator)>)> = self
2637            .indices
2638            .iter()
2639            .filter_map(|idx| match &idx.kind {
2640                // v7.17.0 Phase 2.2 — fulltext-GIN posting lists
2641                // share the `String → Vec<RowLocator>` shape, so
2642                // cold preservation handles all three GIN flavours
2643                // in one pass.
2644                IndexKind::Gin(map) | IndexKind::GinTrgm(map) | IndexKind::GinFulltext(map) => {
2645                    let cold: Vec<(String, RowLocator)> = map
2646                        .iter()
2647                        .flat_map(|(w, locs)| {
2648                            locs.iter()
2649                                .filter(|l| l.is_cold())
2650                                .copied()
2651                                .map(move |l| (w.clone(), l))
2652                        })
2653                        .collect();
2654                    if cold.is_empty() {
2655                        None
2656                    } else {
2657                        Some((idx.name.clone(), cold))
2658                    }
2659                }
2660                IndexKind::BTree(_) | IndexKind::Nsw(_) | IndexKind::Brin { .. } => None,
2661            })
2662            .collect();
2663
2664        // v6.7.1 — descriptor needs to capture index kind so the
2665        // rebuild loop can resurrect BTree / NSW / BRIN / GIN exactly
2666        // as they were. (NSW carries m; BRIN carries the column type
2667        // snapshot; BTree / GIN need no extra payload.)
2668        #[derive(Clone)]
2669        enum RebuildKind {
2670            BTree,
2671            Nsw(usize),
2672            Brin(DataType),
2673            Gin,
2674            GinTrgm,
2675            GinFulltext,
2676        }
2677        let descriptors: Vec<(String, usize, RebuildKind)> = self
2678            .indices
2679            .iter()
2680            .map(|idx| {
2681                let kind = match &idx.kind {
2682                    IndexKind::Nsw(g) => RebuildKind::Nsw(g.m),
2683                    IndexKind::Brin { column_type } => RebuildKind::Brin(*column_type),
2684                    IndexKind::BTree(_) => RebuildKind::BTree,
2685                    IndexKind::Gin(_) => RebuildKind::Gin,
2686                    IndexKind::GinTrgm(_) => RebuildKind::GinTrgm,
2687                    IndexKind::GinFulltext(_) => RebuildKind::GinFulltext,
2688                };
2689                (idx.name.clone(), idx.column_position, kind)
2690            })
2691            .collect();
2692        self.indices.clear();
2693        for (name, column_position, rebuild_kind) in descriptors {
2694            match rebuild_kind {
2695                RebuildKind::Nsw(m) => {
2696                    let idx = Index::new_nsw(name, column_position, m);
2697                    self.indices.push(idx);
2698                    let idx_pos = self.indices.len() - 1;
2699                    let row_indices: Vec<usize> = (0..self.rows.len()).collect();
2700                    for row_idx in row_indices {
2701                        nsw_insert_at(self, idx_pos, row_idx);
2702                    }
2703                }
2704                RebuildKind::Brin(column_type) => {
2705                    // BRIN has no in-memory rebuild — the summaries
2706                    // live in cold segments which freeze emits.
2707                    self.indices
2708                        .push(Index::new_brin(name, column_position, column_type));
2709                }
2710                RebuildKind::BTree => {
2711                    let mut idx = Index::new_btree(name, column_position);
2712                    if let IndexKind::BTree(map) = &mut idx.kind {
2713                        for (i, row) in self.rows.iter().enumerate() {
2714                            if let Some(key) = IndexKey::from_value(&row.values[column_position]) {
2715                                let mut entries = map.get(&key).cloned().unwrap_or_default();
2716                                entries.push(RowLocator::Hot(i));
2717                                map.insert_mut(key, entries);
2718                            }
2719                        }
2720                    }
2721                    self.indices.push(idx);
2722                }
2723                RebuildKind::Gin => {
2724                    let mut idx = Index::new_gin(name, column_position);
2725                    if let IndexKind::Gin(map) = &mut idx.kind {
2726                        for (i, row) in self.rows.iter().enumerate() {
2727                            if let Value::TsVector(lexemes) = &row.values[column_position] {
2728                                for lex in lexemes {
2729                                    let mut entries =
2730                                        map.get(&lex.word).cloned().unwrap_or_default();
2731                                    entries.push(RowLocator::Hot(i));
2732                                    map.insert_mut(lex.word.clone(), entries);
2733                                }
2734                            }
2735                        }
2736                    }
2737                    self.indices.push(idx);
2738                }
2739                RebuildKind::GinTrgm => {
2740                    let mut idx = Index::new_gin_trgm(name, column_position);
2741                    if let IndexKind::GinTrgm(map) = &mut idx.kind {
2742                        for (i, row) in self.rows.iter().enumerate() {
2743                            if let Value::Text(s) = &row.values[column_position] {
2744                                for tri in trgm::extract_trigrams(s) {
2745                                    let mut entries = map.get(&tri).cloned().unwrap_or_default();
2746                                    entries.push(RowLocator::Hot(i));
2747                                    map.insert_mut(tri, entries);
2748                                }
2749                            }
2750                        }
2751                    }
2752                    self.indices.push(idx);
2753                }
2754                RebuildKind::GinFulltext => {
2755                    // v7.17.0 Phase 2.2 — re-derive the lexeme
2756                    // posting list from each TEXT/VARCHAR cell.
2757                    // Mirrors the GinTrgm rebuild shape but
2758                    // tokenises via `fts_simple::simple_lex`
2759                    // (same rule as `to_tsvector('simple')`).
2760                    let mut idx = Index::new_gin_fulltext(name, column_position);
2761                    if let IndexKind::GinFulltext(map) = &mut idx.kind {
2762                        for (i, row) in self.rows.iter().enumerate() {
2763                            if let Value::Text(s) = &row.values[column_position] {
2764                                for lex in fts_simple::simple_lex(s) {
2765                                    let mut entries = map.get(&lex).cloned().unwrap_or_default();
2766                                    entries.push(RowLocator::Hot(i));
2767                                    map.insert_mut(lex, entries);
2768                                }
2769                            }
2770                        }
2771                    }
2772                    self.indices.push(idx);
2773                }
2774            }
2775        }
2776
2777        // Re-attach preserved cold locators after the from-rows
2778        // rebuild. `register_cold_locators` handles the per-key
2779        // entries-vec append; no key collisions arise because the
2780        // rebuild loop above produced only Hot locators.
2781        for (idx_name, locators) in preserved_cold {
2782            // Errors here would only fire if the index disappeared
2783            // between snapshot and rebuild, which can't happen
2784            // because the rebuild restores the same descriptor set.
2785            let _ = self.register_cold_locators(&idx_name, locators);
2786        }
2787        // v7.12.3 — same for GIN posting-list cold locators.
2788        for (idx_name, locators) in preserved_gin_cold {
2789            let _ = self.register_gin_cold_locators(&idx_name, locators);
2790        }
2791    }
2792
2793    fn add_nsw_index_inner(
2794        &mut self,
2795        name: String,
2796        column_name: &str,
2797        m: usize,
2798        restore: Option<NswGraph>,
2799    ) -> Result<(), StorageError> {
2800        if self.indices.iter().any(|i| i.name == name) {
2801            return Err(StorageError::DuplicateIndex { name });
2802        }
2803        let column_position = self.schema.column_position(column_name).ok_or_else(|| {
2804            StorageError::ColumnNotFound {
2805                column: column_name.into(),
2806            }
2807        })?;
2808        if !matches!(
2809            self.schema.columns[column_position].ty,
2810            DataType::Vector { .. }
2811        ) {
2812            return Err(StorageError::TypeMismatch {
2813                column: column_name.into(),
2814                expected: DataType::Vector {
2815                    dim: 0,
2816                    encoding: VecEncoding::F32,
2817                },
2818                actual: self.schema.columns[column_position].ty,
2819                position: column_position,
2820            });
2821        }
2822        if let Some(graph) = restore {
2823            self.indices.push(Index {
2824                name,
2825                column_position,
2826                kind: IndexKind::Nsw(graph),
2827                included_columns: Vec::new(),
2828                partial_predicate: None,
2829                expression: None,
2830                is_unique: false,
2831                extra_column_positions: Vec::new(),
2832            });
2833            return Ok(());
2834        }
2835        let idx = Index::new_nsw(name, column_position, m);
2836        self.indices.push(idx);
2837        let idx_pos = self.indices.len() - 1;
2838        // Bulk-build by walking the existing rows in order — each insert
2839        // sees the partial graph and links into it.
2840        let row_indices: Vec<usize> = (0..self.rows.len()).collect();
2841        for row_idx in row_indices {
2842            nsw_insert_at(self, idx_pos, row_idx);
2843        }
2844        Ok(())
2845    }
2846}
2847
2848/// v6.0.4 — re-encode a single cell to the target `VecEncoding`.
2849/// Used by `Table::rebuild_nsw_index` when ALTER INDEX REBUILD
2850/// includes the optional `WITH (encoding = …)` clause. Round-trip
2851/// goes through f32: `current → Vec<f32> → target`, leaving NULL
2852/// cells untouched. Returns `Unsupported` on a non-vector cell —
2853/// the caller should have rejected the schema before reaching this.
2854fn recode_vector_cell(cell: Value, target: VecEncoding) -> Result<Value, StorageError> {
2855    if matches!(cell, Value::Null) {
2856        return Ok(cell);
2857    }
2858    // Step 1 — extract the f32 representation of the source cell.
2859    let as_f32: Vec<f32> = match &cell {
2860        Value::Vector(v) => v.clone(),
2861        Value::Sq8Vector(q) => quantize::dequantize(q),
2862        Value::HalfVector(h) => h.to_f32_vec(),
2863        other => {
2864            return Err(StorageError::Unsupported(format!(
2865                "ALTER INDEX REBUILD: cannot recode non-vector cell {:?}",
2866                other.data_type()
2867            )));
2868        }
2869    };
2870    // Step 2 — encode into the target shape. `F32` is the identity
2871    // path (saves one alloc round-trip when the source is already
2872    // F32 — but `Value::Vector(as_f32)` is the right answer
2873    // regardless).
2874    Ok(match target {
2875        VecEncoding::F32 => Value::Vector(as_f32),
2876        VecEncoding::Sq8 => Value::Sq8Vector(quantize::quantize(&as_f32)),
2877        VecEncoding::F16 => Value::HalfVector(halfvec::HalfVector::from_f32_slice(&as_f32)),
2878    })
2879}
2880
2881/// Insert one row into the HNSW graph held by index slot `idx_pos`.
2882/// No-op when the row's value at the indexed column isn't a vector.
2883/// v6.0.1: handles `Value::Sq8Vector` by dequantising into an f32
2884/// "query" surface — the existing greedy + beam-search machinery
2885/// then uses `cell_to_query_metric_distance` to route every
2886/// distance call through the cell's actual encoding.
2887fn nsw_insert_at(table: &mut Table, idx_pos: usize, new_row_idx: usize) {
2888    let col_pos = table.indices[idx_pos].column_position;
2889    let cell_dim: Option<usize> = match &table.rows[new_row_idx].values[col_pos] {
2890        Value::Vector(v) => Some(v.len()),
2891        Value::Sq8Vector(q) => Some(q.bytes.len()),
2892        Value::HalfVector(h) => Some(h.dim()),
2893        _ => None,
2894    };
2895    let Some(dim) = cell_dim else {
2896        // Even non-vector rows occupy a level slot so per-node Vec
2897        // lengths stay aligned with `table.rows.len()`.
2898        ensure_node_slot(table, idx_pos, new_row_idx, 0);
2899        return;
2900    };
2901    if dim == 0 {
2902        ensure_node_slot(table, idx_pos, new_row_idx, 0);
2903        return;
2904    }
2905    let level = nsw_assign_level(new_row_idx);
2906    ensure_node_slot(table, idx_pos, new_row_idx, level);
2907    let (entry, entry_level, m) = match &table.indices[idx_pos].kind {
2908        IndexKind::Nsw(g) => (g.entry, g.entry_level, g.m),
2909        IndexKind::BTree(_)
2910        | IndexKind::Brin { .. }
2911        | IndexKind::Gin(_)
2912        | IndexKind::GinTrgm(_)
2913        | IndexKind::GinFulltext(_) => {
2914            unreachable!("nsw_insert_at on a non-NSW index")
2915        }
2916    };
2917    // First node ever — declare it the entry (it gets its own level).
2918    if entry.is_none() {
2919        if let IndexKind::Nsw(g) = &mut table.indices[idx_pos].kind {
2920            g.entry = Some(new_row_idx);
2921            g.entry_level = level;
2922            *g.levels
2923                .get_mut(new_row_idx)
2924                .expect("levels slot padded by ensure_node_slot") = level;
2925        }
2926        return;
2927    }
2928    // Set the node's recorded level.
2929    if let IndexKind::Nsw(g) = &mut table.indices[idx_pos].kind {
2930        *g.levels
2931            .get_mut(new_row_idx)
2932            .expect("levels slot padded by ensure_node_slot") = level;
2933    }
2934    let query = match &table.rows[new_row_idx].values[col_pos] {
2935        Value::Vector(v) => v.clone(),
2936        // v6.0.1: dequantise the inserted SQ8 cell into an f32 query
2937        // surface so the existing greedy / beam machinery can route
2938        // distances through `cell_to_query_metric_distance`. The
2939        // small dequantisation error is what the recall@10 ≥ 0.95
2940        // envelope already accounts for (V6_DESIGN deliberation #3).
2941        Value::Sq8Vector(q) => quantize::dequantize(q),
2942        // v6.0.3: halfvec dequant is bit-exact at the storage layer,
2943        // so the inserted query is a faithful representation.
2944        Value::HalfVector(h) => h.to_f32_vec(),
2945        _ => return,
2946    };
2947    // Phase 1: greedy descend from `entry` down to `level + 1`, keeping
2948    // exactly one current best so the next layer starts from it.
2949    let mut current = entry.expect("entry was Some above");
2950    let mut current_d = vec_l2_sq(table, col_pos, current, &query);
2951    if entry_level > level {
2952        for layer in (level + 1..=entry_level).rev() {
2953            (current, current_d) =
2954                greedy_layer_walk(table, idx_pos, layer, current, current_d, &query);
2955        }
2956    }
2957    // Phase 2: from `min(level, entry_level)` down to 0, beam-search
2958    // `ef_construction` candidates, run the HNSW §4 heuristic neighbour
2959    // selection over them, and connect bidirectionally.
2960    let top = level.min(entry_level);
2961    let ef = (m * 2).max(8);
2962    for layer in (0..=top).rev() {
2963        let cap = if layer == 0 { m * 2 } else { m };
2964        let mut candidates = layer_beam_search(
2965            table,
2966            idx_pos,
2967            layer,
2968            current,
2969            current_d,
2970            &query,
2971            ef,
2972            NswMetric::L2,
2973        );
2974        candidates.retain(|&(_, n)| n != new_row_idx);
2975        // Take the closest as the entry for the next layer down — done
2976        // before heuristic narrowing because the heuristic can reorder.
2977        if let Some(&(d, n)) = candidates.first() {
2978            current = n;
2979            current_d = d;
2980        }
2981        let peers = select_neighbours_heuristic(&candidates, cap, table, col_pos);
2982        connect_at_layer(table, idx_pos, layer, new_row_idx, &peers);
2983    }
2984    // Phase 3: if the new node climbed above the current entry, take
2985    // over as entry so future inserts/searches start from the new top.
2986    if level > entry_level
2987        && let IndexKind::Nsw(g) = &mut table.indices[idx_pos].kind
2988    {
2989        g.entry = Some(new_row_idx);
2990        g.entry_level = level;
2991    }
2992}
2993
2994/// Make sure `layers[*][new_row_idx]` and `levels[new_row_idx]` exist,
2995/// padding with empty/zero entries as needed. Also grows `layers` to
2996/// accommodate the node's top `level`.
2997fn ensure_node_slot(table: &mut Table, idx_pos: usize, new_row_idx: usize, level: u8) {
2998    let IndexKind::Nsw(g) = &mut table.indices[idx_pos].kind else {
2999        unreachable!("ensure_node_slot on a BTree index");
3000    };
3001    while g.layers.len() <= level as usize {
3002        g.layers.push(PersistentVec::new());
3003    }
3004    while g.levels.len() <= new_row_idx {
3005        g.levels.push_mut(0);
3006    }
3007    for layer_vec in &mut g.layers {
3008        while layer_vec.len() <= new_row_idx {
3009            layer_vec.push_mut(Vec::new());
3010        }
3011    }
3012}
3013
3014/// Single-step greedy walk on one layer: from `current` (with cached
3015/// distance `current_d`), inspect that node's neighbours at `layer` and
3016/// hop to the closest if it beats `current_d`. Repeat until no move
3017/// improves the distance. Cheap variant of beam-search used for the
3018/// "descend" phase that only needs one survivor per layer.
3019fn greedy_layer_walk(
3020    table: &Table,
3021    idx_pos: usize,
3022    layer: u8,
3023    mut current: usize,
3024    mut current_d: f32,
3025    query: &[f32],
3026) -> (usize, f32) {
3027    let g = match &table.indices[idx_pos].kind {
3028        IndexKind::Nsw(g) => g,
3029        IndexKind::BTree(_)
3030        | IndexKind::Brin { .. }
3031        | IndexKind::Gin(_)
3032        | IndexKind::GinTrgm(_)
3033        | IndexKind::GinFulltext(_) => {
3034            return (current, current_d);
3035        }
3036    };
3037    let col_pos = table.indices[idx_pos].column_position;
3038    loop {
3039        let neighbours: &[u32] = g
3040            .layers
3041            .get(layer as usize)
3042            .and_then(|layer_v| layer_v.get(current))
3043            .map_or(&[][..], Vec::as_slice);
3044        let mut best = current;
3045        let mut best_d = current_d;
3046        for &n in neighbours {
3047            let n = n as usize;
3048            let d = vec_l2_sq(table, col_pos, n, query);
3049            if d < best_d {
3050                best = n;
3051                best_d = d;
3052            }
3053        }
3054        if best == current {
3055            return (current, current_d);
3056        }
3057        current = best;
3058        current_d = best_d;
3059    }
3060}
3061
3062/// Beam search on one layer starting from `entry_node` with cached
3063/// `entry_d`. Returns the top `ef` candidates in ascending-distance
3064/// order. Caller picks the closest as the next layer's entry and / or
3065/// trims to M for connection.
3066///
3067/// v3.0.1: uses two `BinaryHeap`s (min-heap for the open frontier,
3068/// max-heap for the working top-`ef` results) and a `Vec<bool>` visited
3069/// bitmap, replacing the v2.x `Vec` + `partition_point` + `BTreeSet`
3070/// implementation. Same algorithm shape (HNSW search algorithm 2 from
3071/// the paper); the data-structure swap cuts per-visit cost from
3072/// `O(ef + log row_count)` to amortised `O(log ef)`.
3073#[allow(clippy::too_many_arguments)] // Beam search threads layer, entry, query, ef, metric — each is intrinsic. Bundling them into a config struct hides the call sites.
3074fn layer_beam_search(
3075    table: &Table,
3076    idx_pos: usize,
3077    layer: u8,
3078    entry_node: usize,
3079    entry_d: f32,
3080    query: &[f32],
3081    ef: usize,
3082    metric: NswMetric,
3083) -> Vec<(f32, usize)> {
3084    let g = match &table.indices[idx_pos].kind {
3085        IndexKind::Nsw(g) => g,
3086        IndexKind::BTree(_)
3087        | IndexKind::Brin { .. }
3088        | IndexKind::Gin(_)
3089        | IndexKind::GinTrgm(_)
3090        | IndexKind::GinFulltext(_) => return Vec::new(),
3091    };
3092    let col_pos = table.indices[idx_pos].column_position;
3093    let d0 = if matches!(metric, NswMetric::L2) {
3094        entry_d
3095    } else {
3096        cell_to_query_metric_distance(table, col_pos, entry_node, query, metric)
3097    };
3098    let row_count = table.rows.len();
3099    let mut visited: Vec<bool> = alloc::vec![false; row_count];
3100    if entry_node < row_count {
3101        visited[entry_node] = true;
3102    }
3103    // candidates: min-heap by distance (Closest wrapper) — frontier
3104    // results:    max-heap by distance (Furthest wrapper) — top-ef working set
3105    let mut candidates: alloc::collections::BinaryHeap<NodeClosest> =
3106        alloc::collections::BinaryHeap::with_capacity(ef);
3107    let mut results: alloc::collections::BinaryHeap<NodeFurthest> =
3108        alloc::collections::BinaryHeap::with_capacity(ef);
3109    candidates.push(NodeClosest {
3110        dist: d0,
3111        node: entry_node,
3112    });
3113    results.push(NodeFurthest {
3114        dist: d0,
3115        node: entry_node,
3116    });
3117    while let Some(cur) = candidates.pop() {
3118        let worst = results.peek().map_or(f32::INFINITY, |c| c.dist);
3119        if cur.dist > worst && results.len() >= ef {
3120            break;
3121        }
3122        let neighbours: &[u32] = g
3123            .layers
3124            .get(layer as usize)
3125            .and_then(|layer_v| layer_v.get(cur.node))
3126            .map_or(&[][..], Vec::as_slice);
3127        for &n in neighbours {
3128            let n = n as usize;
3129            if n >= row_count || visited[n] {
3130                continue;
3131            }
3132            visited[n] = true;
3133            // v6.0.1: cell-aware distance — F32 cells take the
3134            // existing scalar metric, SQ8 cells route through
3135            // the asymmetric ADC variant for the same metric.
3136            let dn = cell_to_query_metric_distance(table, col_pos, n, query, metric);
3137            if !dn.is_finite() {
3138                continue;
3139            }
3140            let worst = results.peek().map_or(f32::INFINITY, |c| c.dist);
3141            if results.len() < ef || dn < worst {
3142                results.push(NodeFurthest { dist: dn, node: n });
3143                if results.len() > ef {
3144                    results.pop();
3145                }
3146                candidates.push(NodeClosest { dist: dn, node: n });
3147            }
3148        }
3149    }
3150    // Drain results (max-heap order) and re-sort ascending so callers
3151    // can take `closest = result[0]` without flipping.
3152    let mut out: Vec<(f32, usize)> = results.into_iter().map(|c| (c.dist, c.node)).collect();
3153    out.sort_by(|a, b| a.0.partial_cmp(&b.0).unwrap_or(core::cmp::Ordering::Equal));
3154    out
3155}
3156
3157/// Min-heap wrapper: smaller `dist` → higher priority in a `BinaryHeap`
3158/// (which is a max-heap), so we flip the comparison. NaN sorts last
3159/// (lowest priority) to keep the heap total-ordered.
3160#[derive(Debug, Clone, Copy)]
3161struct NodeClosest {
3162    dist: f32,
3163    node: usize,
3164}
3165impl PartialEq for NodeClosest {
3166    fn eq(&self, other: &Self) -> bool {
3167        self.dist == other.dist && self.node == other.node
3168    }
3169}
3170impl Eq for NodeClosest {}
3171impl PartialOrd for NodeClosest {
3172    fn partial_cmp(&self, other: &Self) -> Option<core::cmp::Ordering> {
3173        Some(self.cmp(other))
3174    }
3175}
3176impl Ord for NodeClosest {
3177    fn cmp(&self, other: &Self) -> core::cmp::Ordering {
3178        // Reversed: smaller dist = greater priority.
3179        other
3180            .dist
3181            .partial_cmp(&self.dist)
3182            .unwrap_or(core::cmp::Ordering::Equal)
3183    }
3184}
3185
3186/// Max-heap wrapper: larger `dist` sits at the top so the worst result
3187/// can be evicted in O(log n) when a better candidate arrives.
3188#[derive(Debug, Clone, Copy)]
3189struct NodeFurthest {
3190    dist: f32,
3191    node: usize,
3192}
3193impl PartialEq for NodeFurthest {
3194    fn eq(&self, other: &Self) -> bool {
3195        self.dist == other.dist && self.node == other.node
3196    }
3197}
3198impl Eq for NodeFurthest {}
3199impl PartialOrd for NodeFurthest {
3200    fn partial_cmp(&self, other: &Self) -> Option<core::cmp::Ordering> {
3201        Some(self.cmp(other))
3202    }
3203}
3204impl Ord for NodeFurthest {
3205    fn cmp(&self, other: &Self) -> core::cmp::Ordering {
3206        self.dist
3207            .partial_cmp(&other.dist)
3208            .unwrap_or(core::cmp::Ordering::Equal)
3209    }
3210}
3211
3212/// HNSW paper §4 algorithm 4: pick `m` neighbours from `candidates` so
3213/// that each chosen point isn't already covered by a closer chosen
3214/// point. Improves graph diversity → fewer hops needed at search time.
3215///
3216/// `candidates` arrives sorted ascending by distance-to-query. We walk
3217/// it in order, keeping a candidate only when no already-chosen point
3218/// is closer to it than the query is. Result is a vector of row
3219/// indices (length ≤ `m`).
3220fn select_neighbours_heuristic(
3221    candidates: &[(f32, usize)],
3222    m: usize,
3223    table: &Table,
3224    col_pos: usize,
3225) -> Vec<usize> {
3226    let mut chosen: Vec<usize> = Vec::with_capacity(m);
3227    for &(d_q, e) in candidates {
3228        if chosen.len() >= m {
3229            break;
3230        }
3231        // v6.0.1: works on either `Value::Vector` (F32) or
3232        // `Value::Sq8Vector` (Sq8) cells — `cell_l2_sq` dispatches
3233        // on encoding. A non-vector cell yields `f32::INFINITY`
3234        // which the `< d_q` test will never accept.
3235        if !matches!(
3236            table.rows.get(e).and_then(|r| r.values.get(col_pos)),
3237            Some(Value::Vector(_) | Value::Sq8Vector(_) | Value::HalfVector(_))
3238        ) {
3239            continue;
3240        }
3241        let mut covered = false;
3242        for &r in &chosen {
3243            // dist(e, r) measured in the same metric the topology was
3244            // built with (L2). If a chosen `r` is closer to `e` than
3245            // the query is, `r` already "covers" `e` for navigation.
3246            if cell_l2_sq(table, col_pos, e, r) < d_q {
3247                covered = true;
3248                break;
3249            }
3250        }
3251        if !covered {
3252            chosen.push(e);
3253        }
3254    }
3255    chosen
3256}
3257
3258/// Bidirectionally connect `new_row_idx` to each of `peers` at `layer`,
3259/// trimming each endpoint's adjacency to that layer's degree cap by
3260/// keeping only the closest neighbours.
3261fn connect_at_layer(
3262    table: &mut Table,
3263    idx_pos: usize,
3264    layer: u8,
3265    new_row_idx: usize,
3266    peers: &[usize],
3267) {
3268    let col_pos = table.indices[idx_pos].column_position;
3269    let cap = match &table.indices[idx_pos].kind {
3270        IndexKind::Nsw(g) => g.cap_for_layer(layer),
3271        IndexKind::BTree(_)
3272        | IndexKind::Brin { .. }
3273        | IndexKind::Gin(_)
3274        | IndexKind::GinTrgm(_)
3275        | IndexKind::GinFulltext(_) => return,
3276    };
3277    // v6.1.x: NSW adjacency stores neighbour row indices as u32 (4 B
3278    // each) rather than usize (8 B on 64-bit). Boundary casts here
3279    // assert the row count fits in u32 — the catalog already enforces
3280    // ≤ 4G rows per table, so the conversion can't lose data.
3281    let new_row_u32 = u32::try_from(new_row_idx).expect("row index fits in u32");
3282    if let IndexKind::Nsw(g) = &mut table.indices[idx_pos].kind {
3283        let layer_v = &mut g.layers[layer as usize];
3284        if let Some(slot) = layer_v.get_mut(new_row_idx) {
3285            *slot = peers
3286                .iter()
3287                .map(|&p| u32::try_from(p).expect("row index fits in u32"))
3288                .collect();
3289        }
3290    }
3291    for &peer in peers {
3292        // Skip peers whose indexed cell isn't a vector — same fence
3293        // as the F32 path; SQ8 cells flow through `cell_l2_sq`
3294        // below without dequantising.
3295        if !matches!(
3296            &table.rows[peer].values[col_pos],
3297            Value::Vector(_) | Value::Sq8Vector(_) | Value::HalfVector(_)
3298        ) {
3299            continue;
3300        }
3301        // 1. add the new node to peer's adjacency
3302        if let IndexKind::Nsw(g) = &mut table.indices[idx_pos].kind {
3303            let layer_v = &mut g.layers[layer as usize];
3304            if let Some(slot) = layer_v.get_mut(peer)
3305                && !slot.contains(&new_row_u32)
3306            {
3307                slot.push(new_row_u32);
3308            }
3309        }
3310        // 2. if peer is over budget, rebuild its adjacency with the
3311        //    HNSW §4 heuristic — same diversity criterion as the
3312        //    insert path so connectivity stays consistent.
3313        let needs_trim = match &table.indices[idx_pos].kind {
3314            IndexKind::Nsw(g) => g.layers[layer as usize][peer].len() > cap,
3315            IndexKind::BTree(_)
3316            | IndexKind::Brin { .. }
3317            | IndexKind::Gin(_)
3318            | IndexKind::GinTrgm(_)
3319            | IndexKind::GinFulltext(_) => false,
3320        };
3321        if needs_trim {
3322            let current_peers: Vec<usize> = match &table.indices[idx_pos].kind {
3323                IndexKind::Nsw(g) => g.layers[layer as usize][peer]
3324                    .iter()
3325                    .map(|&n| n as usize)
3326                    .collect(),
3327                IndexKind::BTree(_)
3328                | IndexKind::Brin { .. }
3329                | IndexKind::Gin(_)
3330                | IndexKind::GinTrgm(_)
3331                | IndexKind::GinFulltext(_) => continue,
3332            };
3333            // Sort by distance from `peer`'s cell ascending so the
3334            // heuristic receives candidates closest-first. `cell_l2_sq`
3335            // dispatches on encoding so SQ8 columns trim using
3336            // symmetric ADC.
3337            let mut tagged: Vec<(f32, usize)> = current_peers
3338                .iter()
3339                .map(|&p| (cell_l2_sq(table, col_pos, peer, p), p))
3340                .collect();
3341            tagged.sort_by(|a, b| a.0.partial_cmp(&b.0).unwrap_or(core::cmp::Ordering::Equal));
3342            let kept = select_neighbours_heuristic(&tagged, cap, table, col_pos);
3343            if let IndexKind::Nsw(g) = &mut table.indices[idx_pos].kind
3344                && let Some(slot) = g.layers[layer as usize].get_mut(peer)
3345            {
3346                *slot = kept
3347                    .into_iter()
3348                    .map(|p| u32::try_from(p).expect("row index fits in u32"))
3349                    .collect();
3350            }
3351        }
3352    }
3353}
3354
3355/// Squared L2 distance from `query` (raw f32) to the cell at
3356/// `(row, col_pos)`. Dispatches on cell encoding: `Value::Vector`
3357/// (F32) uses `l2_distance_sq`; `Value::Sq8Vector` uses
3358/// `sq8_l2_distance_sq_asymmetric` (the v6.0.1 quantised path).
3359/// Returns `f32::INFINITY` for any non-vector cell so callers can
3360/// compare uniformly.
3361fn vec_l2_sq(table: &Table, col_pos: usize, row: usize, query: &[f32]) -> f32 {
3362    match table.rows.get(row).and_then(|r| r.values.get(col_pos)) {
3363        Some(Value::Vector(v)) if v.len() == query.len() => l2_distance_sq(v, query),
3364        Some(Value::Sq8Vector(q)) if q.bytes.len() == query.len() => {
3365            quantize::sq8_l2_distance_sq_asymmetric(q, query)
3366        }
3367        // v6.0.6: halfvec → fused NEON SIMD kernel; no Vec<f32>
3368        // allocation. v6.0.3 used `to_f32_vec()` + f32 NEON which
3369        // was correct but allocated per call (5× slower than F32).
3370        Some(Value::HalfVector(h)) if h.dim() == query.len() => {
3371            halfvec::half_l2_distance_sq_asymmetric(h, query)
3372        }
3373        _ => f32::INFINITY,
3374    }
3375}
3376
3377/// Squared L2 distance between two stored cells (no f32 query in
3378/// sight). Used during HNSW graph build — both endpoints are
3379/// rows already in the table, so symmetric ADC applies for SQ8
3380/// columns. Mixed-encoding cells within one column are a
3381/// schema-level impossibility (INSERT-time coercion enforces
3382/// uniform encoding), so the catch-all is an abort.
3383fn cell_l2_sq(table: &Table, col_pos: usize, row_a: usize, row_b: usize) -> f32 {
3384    let Some(cell_a) = table.rows.get(row_a).and_then(|r| r.values.get(col_pos)) else {
3385        return f32::INFINITY;
3386    };
3387    let Some(cell_b) = table.rows.get(row_b).and_then(|r| r.values.get(col_pos)) else {
3388        return f32::INFINITY;
3389    };
3390    match (cell_a, cell_b) {
3391        (Value::Vector(a), Value::Vector(b)) if a.len() == b.len() => l2_distance_sq(a, b),
3392        (Value::Sq8Vector(a), Value::Sq8Vector(b)) if a.bytes.len() == b.bytes.len() => {
3393            quantize::sq8_l2_distance_sq(a, b)
3394        }
3395        // v6.0.6: halfvec symmetric NEON — fused SIMD kernel that
3396        // loads both cells' raw u16 bits, expands to f32 lanes
3397        // inline, FMA-accumulates the squared diff. No Vec<f32>
3398        // allocation per call.
3399        (Value::HalfVector(a), Value::HalfVector(b)) if a.dim() == b.dim() => {
3400            halfvec::half_l2_distance_sq(a, b)
3401        }
3402        _ => f32::INFINITY,
3403    }
3404}
3405
3406/// kNN-search-time distance: stored cell → f32 query under the
3407/// caller's metric. Dispatches on cell encoding so SQ8 columns
3408/// take the ADC path with the right asymmetric variant. NaN /
3409/// dim-mismatch / non-vector → `f32::INFINITY`.
3410fn cell_to_query_metric_distance(
3411    table: &Table,
3412    col_pos: usize,
3413    row: usize,
3414    query: &[f32],
3415    metric: NswMetric,
3416) -> f32 {
3417    match table.rows.get(row).and_then(|r| r.values.get(col_pos)) {
3418        Some(Value::Vector(v)) if v.len() == query.len() => metric_distance(metric, v, query),
3419        Some(Value::Sq8Vector(q)) if q.bytes.len() == query.len() => match metric {
3420            NswMetric::L2 => quantize::sq8_l2_distance_sq_asymmetric(q, query),
3421            NswMetric::InnerProduct => quantize::sq8_inner_product_asymmetric(q, query),
3422            NswMetric::Cosine => quantize::sq8_cosine_distance_asymmetric(q, query),
3423        },
3424        // v6.0.6: halfvec dispatches by metric to fused NEON
3425        // kernels — no Vec<f32> allocation per call.
3426        Some(Value::HalfVector(h)) if h.dim() == query.len() => match metric {
3427            NswMetric::L2 => halfvec::half_l2_distance_sq_asymmetric(h, query),
3428            NswMetric::InnerProduct => halfvec::half_inner_product_asymmetric(h, query),
3429            NswMetric::Cosine => halfvec::half_cosine_distance_asymmetric(h, query),
3430        },
3431        _ => f32::INFINITY,
3432    }
3433}
3434
3435/// Distance metric used at NSW search time. The graph topology is
3436/// always built with `L2`; querying with `InnerProduct` / `Cosine`
3437/// reuses the same edges but ranks candidates by the chosen metric.
3438/// For the corpus-sized graphs this loses negligible recall vs
3439/// building separate per-metric graphs.
3440#[derive(Debug, Clone, Copy, PartialEq, Eq)]
3441pub enum NswMetric {
3442    /// Squared Euclidean — ranks "smaller = closer" (the sqrt is
3443    /// monotonic so we skip it for ordering).
3444    L2,
3445    /// Negated dot product, matching pgvector `<#>` convention so
3446    /// "smaller = more similar" holds across all three metrics.
3447    InnerProduct,
3448    /// Cosine distance `1 - cos(a, b)`. Zero-norm operand yields
3449    /// `f32::INFINITY` so it sorts last.
3450    Cosine,
3451}
3452
3453/// Multi-layer HNSW kNN search: greedy-descend from the entry to layer 0,
3454/// then beam-search there with the requested `ef` to return the top `k`
3455/// results under the caller-chosen metric. Topology was built with L2 —
3456/// upper-layer descent uses L2 as a coarse heuristic; final beam search
3457/// runs in the requested metric so rankings are correct for `<#>` / `<=>`.
3458fn nsw_search(
3459    table: &Table,
3460    idx_pos: usize,
3461    query: &[f32],
3462    k: usize,
3463    ef: usize,
3464    metric: NswMetric,
3465) -> Vec<(f32, usize)> {
3466    let (entry, entry_level) = match &table.indices[idx_pos].kind {
3467        IndexKind::Nsw(g) => (g.entry, g.entry_level),
3468        IndexKind::BTree(_)
3469        | IndexKind::Brin { .. }
3470        | IndexKind::Gin(_)
3471        | IndexKind::GinTrgm(_)
3472        | IndexKind::GinFulltext(_) => return Vec::new(),
3473    };
3474    let Some(entry) = entry else {
3475        return Vec::new();
3476    };
3477    let col_pos = table.indices[idx_pos].column_position;
3478    // v6.0.1 step 5: SQ8 columns over-fetch by `SQ8_RERANK_OVER_FETCH`
3479    // so the rerank pass below sees enough candidates to recover
3480    // recall after the ADC re-ordering. F32 + F16 columns skip the
3481    // over-fetch — F32 distances are exact, F16 dequant is
3482    // bit-exact at the storage layer so the beam search already
3483    // ranks under the column's full precision.
3484    let sq8 = matches!(
3485        table.schema.columns.get(col_pos).map(|c| c.ty),
3486        Some(DataType::Vector {
3487            encoding: VecEncoding::Sq8,
3488            ..
3489        })
3490    );
3491    let ef = if sq8 {
3492        ef.max(k).max(k * SQ8_RERANK_OVER_FETCH)
3493    } else {
3494        ef.max(k)
3495    };
3496    // Descend by L2 (the topology metric) so layers prune consistently.
3497    let entry_d = vec_l2_sq(table, col_pos, entry, query);
3498    let mut current = entry;
3499    let mut current_d = entry_d;
3500    for layer in (1..=entry_level).rev() {
3501        (current, current_d) = greedy_layer_walk(table, idx_pos, layer, current, current_d, query);
3502    }
3503    // Final beam search on layer 0 under the caller's metric.
3504    let mut results = layer_beam_search(table, idx_pos, 0, current, current_d, query, ef, metric);
3505    if sq8 {
3506        results = sq8_rerank(table, col_pos, &results, query, metric);
3507    }
3508    results.truncate(k);
3509    results
3510}
3511
3512/// v6.0.1 step 5: re-score ADC top-`K*3` candidates with the
3513/// dequantised cell vs the f32 query, then re-sort. Recovers the
3514/// recall the SQ8 ADC sacrifices for 4× compression — the design's
3515/// "f32 rerank step is on by default" path (deliberation #3).
3516/// `metric` is the same metric the beam search used; the rerank
3517/// arithmetic re-derives the exact distance under that metric.
3518fn sq8_rerank(
3519    table: &Table,
3520    col_pos: usize,
3521    candidates: &[(f32, usize)],
3522    query: &[f32],
3523    metric: NswMetric,
3524) -> Vec<(f32, usize)> {
3525    let mut out: Vec<(f32, usize)> = candidates
3526        .iter()
3527        .filter_map(|&(adc_d, row)| {
3528            let cell = table.rows.get(row).and_then(|r| r.values.get(col_pos))?;
3529            let Value::Sq8Vector(q) = cell else {
3530                // F32 cells shouldn't reach this path (sq8 fence
3531                // above), but stay defensive: pass through with
3532                // the ADC distance unchanged.
3533                return Some((adc_d, row));
3534            };
3535            let deq = quantize::dequantize(q);
3536            if deq.len() != query.len() {
3537                return None;
3538            }
3539            Some((metric_distance(metric, &deq, query), row))
3540        })
3541        .collect();
3542    out.sort_by(|a, b| a.0.partial_cmp(&b.0).unwrap_or(core::cmp::Ordering::Equal));
3543    out
3544}
3545
3546/// Multiplier applied to `k` so the SQ8 rerank pass sees a wider
3547/// candidate set. 3× is the design-stage value; v6.0.5 sweep work
3548/// can re-tune once full corpus profiling is in.
3549const SQ8_RERANK_OVER_FETCH: usize = 3;
3550
3551fn metric_distance(metric: NswMetric, a: &[f32], b: &[f32]) -> f32 {
3552    match metric {
3553        NswMetric::L2 => l2_distance_sq(a, b),
3554        NswMetric::InnerProduct => -inner_product_f32(a, b),
3555        NswMetric::Cosine => {
3556            let (dot, na, nb) = cosine_dot_norms_f32(a, b);
3557            if na == 0.0 || nb == 0.0 {
3558                return f32::INFINITY;
3559            }
3560            // `f32::sqrt` lives in std, so hand-roll Newton-Raphson on
3561            // f64 — same trick the L2 binary op already uses.
3562            let denom = sqrt_newton_f32(na) * sqrt_newton_f32(nb);
3563            1.0 - dot / denom
3564        }
3565    }
3566}
3567
3568/// v6.0.2: dispatch wrapper for the f32 dot product (used by `<#>` +
3569/// the cosine numerator). NEON path when `len % 4 == 0 && len >= 4`,
3570/// scalar fallback otherwise. Returns the positive dot — callers
3571/// negate for the pgvector `<#>` "smaller = closer" convention.
3572///
3573/// Public so perf gates + downstream benches can microbenchmark the
3574/// dispatch directly; not part of the STABILITY contract — internal
3575/// SIMD layout can evolve in any release.
3576#[doc(hidden)]
3577#[inline]
3578pub fn inner_product_f32(a: &[f32], b: &[f32]) -> f32 {
3579    #[cfg(target_arch = "aarch64")]
3580    {
3581        if a.len() == b.len() && a.len() >= 4 && a.len().is_multiple_of(4) {
3582            // SAFETY: NEON is a baseline aarch64 feature; preconditions
3583            // (matching lengths, ≥ 1 full lane group) are checked above.
3584            return unsafe { inner_product_neon(a, b) };
3585        }
3586    }
3587    inner_product_scalar(a, b)
3588}
3589
3590fn inner_product_scalar(a: &[f32], b: &[f32]) -> f32 {
3591    let mut dot: f32 = 0.0;
3592    for (x, y) in a.iter().zip(b.iter()) {
3593        dot += x * y;
3594    }
3595    dot
3596}
3597
3598#[cfg(target_arch = "aarch64")]
3599#[target_feature(enable = "neon")]
3600#[allow(clippy::many_single_char_names)] // NEON intrinsics work in single-letter regs by convention
3601unsafe fn inner_product_neon(a: &[f32], b: &[f32]) -> f32 {
3602    use core::arch::aarch64::{
3603        float32x4_t, vaddq_f32, vaddvq_f32, vdupq_n_f32, vfmaq_f32, vld1q_f32,
3604    };
3605    unsafe {
3606        // Two parallel accumulators (same trick as L2 NEON) so the
3607        // FMA dependency chain doesn't serialise.
3608        let zero: float32x4_t = vdupq_n_f32(0.0);
3609        let mut acc0 = zero;
3610        let mut acc1 = zero;
3611        let n = a.len();
3612        let mut i = 0usize;
3613        while i + 8 <= n {
3614            let av0 = vld1q_f32(a.as_ptr().add(i));
3615            let bv0 = vld1q_f32(b.as_ptr().add(i));
3616            acc0 = vfmaq_f32(acc0, av0, bv0);
3617            let av1 = vld1q_f32(a.as_ptr().add(i + 4));
3618            let bv1 = vld1q_f32(b.as_ptr().add(i + 4));
3619            acc1 = vfmaq_f32(acc1, av1, bv1);
3620            i += 8;
3621        }
3622        while i + 4 <= n {
3623            let av = vld1q_f32(a.as_ptr().add(i));
3624            let bv = vld1q_f32(b.as_ptr().add(i));
3625            acc0 = vfmaq_f32(acc0, av, bv);
3626            i += 4;
3627        }
3628        vaddvq_f32(vaddq_f32(acc0, acc1))
3629    }
3630}
3631
3632/// v6.0.2: dispatch wrapper for the three accumulators (`dot`, `||a||²`,
3633/// `||b||²`) cosine needs. Same NEON pre-condition as the L2 / IP
3634/// paths; same scalar fallback shape.
3635///
3636/// Public for benchmarking only (see `inner_product_f32`); not in the
3637/// STABILITY contract.
3638#[doc(hidden)]
3639#[inline]
3640pub fn cosine_dot_norms_f32(a: &[f32], b: &[f32]) -> (f32, f32, f32) {
3641    #[cfg(target_arch = "aarch64")]
3642    {
3643        if a.len() == b.len() && a.len() >= 4 && a.len().is_multiple_of(4) {
3644            // SAFETY: see `inner_product_neon`.
3645            return unsafe { cosine_dot_norms_neon(a, b) };
3646        }
3647    }
3648    cosine_dot_norms_scalar(a, b)
3649}
3650
3651fn cosine_dot_norms_scalar(a: &[f32], b: &[f32]) -> (f32, f32, f32) {
3652    let mut dot: f32 = 0.0;
3653    let mut na: f32 = 0.0;
3654    let mut nb: f32 = 0.0;
3655    for (x, y) in a.iter().zip(b.iter()) {
3656        dot += x * y;
3657        na += x * x;
3658        nb += y * y;
3659    }
3660    (dot, na, nb)
3661}
3662
3663#[cfg(target_arch = "aarch64")]
3664#[target_feature(enable = "neon")]
3665#[allow(clippy::many_single_char_names, clippy::similar_names)]
3666unsafe fn cosine_dot_norms_neon(a: &[f32], b: &[f32]) -> (f32, f32, f32) {
3667    use core::arch::aarch64::{float32x4_t, vaddvq_f32, vdupq_n_f32, vfmaq_f32, vld1q_f32};
3668    unsafe {
3669        let zero: float32x4_t = vdupq_n_f32(0.0);
3670        let mut acc_dot = zero;
3671        let mut acc_na = zero;
3672        let mut acc_nb = zero;
3673        let n = a.len();
3674        let mut i = 0usize;
3675        while i + 4 <= n {
3676            let av = vld1q_f32(a.as_ptr().add(i));
3677            let bv = vld1q_f32(b.as_ptr().add(i));
3678            acc_dot = vfmaq_f32(acc_dot, av, bv);
3679            acc_na = vfmaq_f32(acc_na, av, av);
3680            acc_nb = vfmaq_f32(acc_nb, bv, bv);
3681            i += 4;
3682        }
3683        (vaddvq_f32(acc_dot), vaddvq_f32(acc_na), vaddvq_f32(acc_nb))
3684    }
3685}
3686
3687fn sqrt_newton_f32(x: f32) -> f32 {
3688    if x <= 0.0 {
3689        return 0.0;
3690    }
3691    let mut g = x;
3692    for _ in 0..10 {
3693        g = 0.5 * (g + x / g);
3694    }
3695    g
3696}
3697
3698/// Squared Euclidean distance — used for ordering inside NSW (the sqrt
3699/// preserves the order). Caller takes sqrt before reporting back to SQL.
3700///
3701/// v3.3.2: aarch64 NEON path for `len % 4 == 0` (which covers every
3702/// HNSW-indexed VECTOR(N) where N is a multiple of 4 — i.e. all
3703/// production-shaped embeddings: 64, 128, 256, 384, 512, 768, 1024,
3704/// 1536, ...). Other shapes fall back to the scalar loop.
3705#[inline]
3706fn l2_distance_sq(a: &[f32], b: &[f32]) -> f32 {
3707    #[cfg(target_arch = "aarch64")]
3708    {
3709        if a.len() == b.len() && a.len() >= 4 && a.len().is_multiple_of(4) {
3710            // SAFETY: NEON is a baseline aarch64 feature (ARMv8);
3711            // the precondition is checked above (matching lengths,
3712            // multiple of 4, at least one 128-bit lane group).
3713            return unsafe { l2_distance_sq_neon(a, b) };
3714        }
3715    }
3716    l2_distance_sq_scalar(a, b)
3717}
3718
3719fn l2_distance_sq_scalar(a: &[f32], b: &[f32]) -> f32 {
3720    let mut sum: f32 = 0.0;
3721    for (x, y) in a.iter().zip(b.iter()) {
3722        let d = *x - *y;
3723        sum += d * d;
3724    }
3725    sum
3726}
3727
3728#[cfg(target_arch = "aarch64")]
3729#[target_feature(enable = "neon")]
3730#[allow(clippy::many_single_char_names)] // NEON intrinsics work in single-letter regs by convention
3731unsafe fn l2_distance_sq_neon(a: &[f32], b: &[f32]) -> f32 {
3732    use core::arch::aarch64::{
3733        float32x4_t, vaddq_f32, vaddvq_f32, vdupq_n_f32, vfmaq_f32, vld1q_f32, vsubq_f32,
3734    };
3735    unsafe {
3736        // Two independent accumulator registers so the FMA dependency
3737        // chain doesn't serialise (each FMA depends on prior FMA).
3738        // Pre-conditions checked by caller: `a.len() == b.len()`,
3739        // `a.len() % 4 == 0`, `a.len() >= 4`.
3740        let zero: float32x4_t = vdupq_n_f32(0.0);
3741        let mut acc0 = zero;
3742        let mut acc1 = zero;
3743        let n = a.len();
3744        let mut i = 0usize;
3745        // Process 8 floats per iter when available (two parallel
3746        // accumulators). Tail of 4 falls into the second loop.
3747        while i + 8 <= n {
3748            let d0 = vsubq_f32(vld1q_f32(a.as_ptr().add(i)), vld1q_f32(b.as_ptr().add(i)));
3749            acc0 = vfmaq_f32(acc0, d0, d0);
3750            let d1 = vsubq_f32(
3751                vld1q_f32(a.as_ptr().add(i + 4)),
3752                vld1q_f32(b.as_ptr().add(i + 4)),
3753            );
3754            acc1 = vfmaq_f32(acc1, d1, d1);
3755            i += 8;
3756        }
3757        while i + 4 <= n {
3758            let d = vsubq_f32(vld1q_f32(a.as_ptr().add(i)), vld1q_f32(b.as_ptr().add(i)));
3759            acc0 = vfmaq_f32(acc0, d, d);
3760            i += 4;
3761        }
3762        vaddvq_f32(vaddq_f32(acc0, acc1))
3763    }
3764}
3765
3766/// Public wrapper: run an NSW kNN search and return the top-k row
3767/// indices ordered by ascending distance under the given metric.
3768pub fn nsw_query(
3769    table: &Table,
3770    idx_name: &str,
3771    query: &[f32],
3772    k: usize,
3773    metric: NswMetric,
3774) -> Vec<usize> {
3775    let Some(idx_pos) = table.indices.iter().position(|i| i.name == idx_name) else {
3776        return Vec::new();
3777    };
3778    let ef = (k * 2).max(NSW_DEFAULT_M);
3779    let mut hits = nsw_search(table, idx_pos, query, k, ef, metric);
3780    hits.truncate(k);
3781    hits.into_iter().map(|(_, idx)| idx).collect()
3782}
3783
3784/// Find any NSW index on a column. Used by the planner to decide
3785/// whether an `ORDER BY col <-> literal LIMIT k` query can skip the
3786/// brute-force scan.
3787pub fn nsw_index_on(table: &Table, column_position: usize) -> Option<&Index> {
3788    table
3789        .indices
3790        .iter()
3791        .find(|i| i.column_position == column_position && matches!(i.kind, IndexKind::Nsw(_)))
3792}
3793
3794/// Catalog: insertion-ordered `Vec<Table>` for stable iter / serialize,
3795/// plus a `BTreeMap<String, usize>` sidecar index so `get` / `get_mut`
3796/// run in O(log n) instead of the old linear scan with per-element
3797/// string compares.
3798///
3799/// A pure `BTreeMap<String, Table>` was tried in an interim version
3800/// of v3.1.2 and regressed the single-table catalog benches by ~10%
3801/// (the per-element `BTreeMap` overhead outweighs the lookup win
3802/// when n is small). The sidecar shape preserves the insertion-order
3803/// iteration the on-disk encoding relies on and keeps `last_mut`
3804/// (used by the deserialize hot path) cheap.
3805#[derive(Debug, Clone, Default)]
3806pub struct Catalog {
3807    tables: Vec<Table>,
3808    /// `name → tables[index]`. Kept in lock-step with `tables`.
3809    /// `create_table` is the only write path.
3810    by_name: BTreeMap<String, usize>,
3811    /// v5.1: in-memory cold-tier segments. Side-loaded via
3812    /// [`Catalog::load_segment_bytes`] — they live outside the
3813    /// catalog snapshot (caller persists them as separate files
3814    /// and re-loads on boot, until v5.3's `CatalogManifest` makes
3815    /// that wiring automatic). `RowLocator::Cold { segment_id, .. }`
3816    /// indexes this `Vec`. Cleared on `Catalog::new` / fresh
3817    /// `deserialize`.
3818    ///
3819    /// `Arc` wrap keeps `Catalog::clone` at O(N segments) bumps
3820    /// (rather than O(total segment bytes) memcpy) so the v4.42
3821    /// group-commit pre-image rollback invariant — clone is
3822    /// effectively free — survives the cold-tier addition.
3823    ///
3824    /// v6.7.3 — slots became `Option<…>` so cold-segment compaction
3825    /// can tombstone merged sources without breaking the
3826    /// `segment_id = index_into_vec` contract that on-disk
3827    /// `RowLocator::Cold { segment_id }` already serialized.
3828    /// `None` slot = the segment was retired by compaction; the
3829    /// physical file may still be on disk (next CHECKPOINT writes
3830    /// a manifest that no longer lists it, and the file becomes
3831    /// an orphan eligible for offline cleanup).
3832    cold_segments: Vec<Option<Arc<OwnedSegment>>>,
3833    /// v7.12.4 — user-defined functions (PL/pgSQL + SQL).
3834    /// Keyed by function name (PG overloading is out of scope).
3835    /// Bodies are stored as the raw source text the parser saw
3836    /// between `$$ ... $$`; the engine re-parses on each
3837    /// invocation. This keeps `spg-storage` free of `spg-sql`
3838    /// dependency — same pattern as partial-index predicates.
3839    functions: BTreeMap<String, FunctionDef>,
3840    /// v7.12.4 — triggers in insertion order. Multiple triggers
3841    /// per table / event fire in this order (matching PG's
3842    /// alphabetical-by-default with insertion-stable tie-break
3843    /// behaviour — we just keep insertion order for now).
3844    triggers: Vec<TriggerDef>,
3845    /// v7.17.0 — catalogued SEQUENCE objects (Phase 1.1). Each
3846    /// `nextval(name)` reaches in here, atomically increments
3847    /// `last_value` / flips `is_called`, returns the new value.
3848    /// Persisted in catalog FILE_VERSION 26+; older catalogs
3849    /// deserialise with an empty map.
3850    sequences: BTreeMap<String, SequenceDef>,
3851    /// v7.17.0 — catalogued VIEW objects (Phase 1.2). Each
3852    /// `SELECT FROM v` at engine exec-time looks up `v` here and
3853    /// prepends the view body as a synthetic CTE. Persisted in
3854    /// catalog FILE_VERSION 27+; older catalogs deserialise with
3855    /// an empty map.
3856    views: BTreeMap<String, ViewDef>,
3857    /// v7.17.0 — catalogued MATERIALIZED VIEW source registry
3858    /// (Phase 1.3). Maps name → SELECT source. The materialised
3859    /// rows themselves live as a regular `Table` with the same
3860    /// name; REFRESH re-parses + re-executes the source against
3861    /// the table. Persisted in catalog FILE_VERSION 28+;
3862    /// older catalogs deserialise with an empty map.
3863    materialized_views: BTreeMap<String, String>,
3864    /// v7.17.0 — catalogued user-defined ENUM types (Phase 1.4).
3865    /// Maps name → label list. Columns reference these by name
3866    /// via `ColumnSchema.user_enum_type`. Persisted in catalog
3867    /// FILE_VERSION 29+; older catalogs deserialise with an empty
3868    /// map.
3869    enum_types: BTreeMap<String, EnumDef>,
3870    /// v7.17.0 — catalogued user-defined DOMAIN types (Phase 1.5).
3871    /// Maps name → base + CHECK constraints. Columns reference
3872    /// these by name via `ColumnSchema.user_domain_type`.
3873    /// Persisted in catalog FILE_VERSION 30+; older catalogs
3874    /// deserialise with an empty map.
3875    domain_types: BTreeMap<String, DomainDef>,
3876    /// v7.17.0 — schema-namespace registry (Phase 1.6). Tracks
3877    /// which schemas exist. `public`, `pg_catalog`, and
3878    /// `information_schema` are built-in and always present.
3879    /// Schema-qualified table references still strip the prefix
3880    /// at lookup time per v7.16-and-earlier — full
3881    /// schema-as-isolation is v7.18+ scope. Persisted in catalog
3882    /// FILE_VERSION 31+; older catalogs deserialise with just
3883    /// the built-ins.
3884    schemas: alloc::collections::BTreeSet<String>,
3885}
3886
3887/// v7.12.4 — catalogued user-defined function. `body` is the raw
3888/// source text between `$$ ... $$`; the engine re-parses it on
3889/// invocation. This keeps the storage codec stable when the
3890/// PL/pgSQL surface grows (no breaking-change risk on the disk
3891/// format).
3892#[derive(Debug, Clone, PartialEq, Eq)]
3893pub struct FunctionDef {
3894    pub name: String,
3895    /// Display form of the argument list, e.g.
3896    /// `"(name TEXT, ts TIMESTAMP)"`. Empty `"()"` for the trigger
3897    /// function shape. Parser-side canonicalised before storage.
3898    pub args_repr: String,
3899    /// Display form of the return type, e.g. `"TRIGGER"` /
3900    /// `"INT"` / `"SETOF text"`. The engine special-cases
3901    /// `"TRIGGER"` (case-insensitive) to gate trigger-only
3902    /// semantics (NEW/OLD).
3903    pub returns: String,
3904    /// `LANGUAGE` clause, lowercased. `"plpgsql"` / `"sql"`.
3905    pub language: String,
3906    /// Source body of the function. PL/pgSQL: includes the
3907    /// surrounding `BEGIN ... END;`. SQL: includes the
3908    /// statement(s). The engine re-parses on invocation; bad
3909    /// bodies surface as a parse error at CALL time, not CREATE.
3910    pub body: String,
3911}
3912
3913/// v7.12.4 — catalogued trigger. References its function by
3914/// name; the function must exist at TRIGGER creation time
3915/// (forward references are deferred to v7.12.5+).
3916#[derive(Debug, Clone, PartialEq, Eq)]
3917pub struct TriggerDef {
3918    pub name: String,
3919    /// Watched table. Trigger is dropped when the table drops.
3920    pub table: String,
3921    /// `"BEFORE"` / `"AFTER"` / `"INSTEAD OF"`. Stored as the
3922    /// uppercased keyword so deserialised catalogs round-trip
3923    /// without canonicalisation surprises.
3924    pub timing: String,
3925    /// Each entry is one of `"INSERT"` / `"UPDATE"` / `"DELETE"`
3926    /// / `"TRUNCATE"`. `INSERT OR UPDATE` parses to two entries.
3927    pub events: Vec<String>,
3928    /// `"ROW"` / `"STATEMENT"`. v7.12.4 ships `"ROW"` only;
3929    /// `"STATEMENT"` parses and persists but the executor
3930    /// refuses it at trigger fire time.
3931    pub for_each: String,
3932    /// Name of the PL/pgSQL function to invoke.
3933    pub function: String,
3934    /// v7.13.0 — `UPDATE OF col, col, …` column-list filter
3935    /// (mailrs round-5 G7). Non-empty means the trigger fires
3936    /// only when at least one of these columns appears in the
3937    /// UPDATE's SET list. Empty = no column filter. Stored in
3938    /// catalog FILE_VERSION 23+; older catalogs deserialise with
3939    /// an empty vec.
3940    pub update_columns: Vec<String>,
3941    /// v7.16.1 — whether the trigger fires when its watched
3942    /// event occurs. Toggled by `ALTER TABLE … { ENABLE |
3943    /// DISABLE } TRIGGER …`; pg_dump --disable-triggers wraps
3944    /// every data block with a DISABLE/ENABLE pair so the
3945    /// rows already-computed in prod don't get re-rewritten.
3946    /// Defaults to `true` at CREATE TRIGGER time. Stored in
3947    /// catalog FILE_VERSION 25+; older catalogs deserialise
3948    /// with `enabled = true`.
3949    pub enabled: bool,
3950}
3951
3952/// v7.17.0 — catalogued SEQUENCE. PG semantics: a counter object
3953/// returning monotonically increasing values via `nextval(name)`.
3954/// `last_value` is the most recent value handed out; `is_called`
3955/// is false until the first `nextval`/`setval`. Stored separately
3956/// from tables in the catalog.
3957#[derive(Debug, Clone, PartialEq, Eq)]
3958pub struct SequenceDef {
3959    pub name: String,
3960    /// Data type — narrows the i64 range. PG default BIGINT.
3961    pub data_type: SequenceDataType,
3962    pub start: i64,
3963    pub increment: i64,
3964    pub min_value: i64,
3965    pub max_value: i64,
3966    pub cache: i64,
3967    pub cycle: bool,
3968    /// `OWNED BY` target — `(table, column)` or NONE.
3969    pub owned_by: Option<(String, String)>,
3970    /// Most recently handed-out value. Meaningless when
3971    /// `is_called == false`; in that case the NEXT `nextval`
3972    /// will return `start`.
3973    pub last_value: i64,
3974    pub is_called: bool,
3975}
3976
3977/// v7.17.0 — sequence integer width.
3978#[derive(Debug, Clone, Copy, PartialEq, Eq)]
3979pub enum SequenceDataType {
3980    SmallInt,
3981    Int,
3982    BigInt,
3983}
3984
3985/// v7.17.0 Phase 1.6 — built-in schema names that every Catalog
3986/// understands without an explicit CREATE SCHEMA. Used by
3987/// [`Catalog::schema_exists`] and the engine's schema-qualified
3988/// lookup path.
3989#[must_use]
3990pub fn is_builtin_schema(name: &str) -> bool {
3991    name.eq_ignore_ascii_case("public")
3992        || name.eq_ignore_ascii_case("pg_catalog")
3993        || name.eq_ignore_ascii_case("information_schema")
3994}
3995
3996/// v7.17.0 — parse a PG-canonical UUID text representation into the
3997/// 16-byte network-order layout used by `Value::Uuid`. Accepted input
3998/// shapes (all case-insensitive):
3999///   * Canonical hyphenated 8-4-4-4-12 (`550e8400-e29b-41d4-a716-446655440000`)
4000///   * Unhyphenated 32-char hex (`550e8400e29b41d4a716446655440000`)
4001///   * Either form wrapped in `{ ... }`
4002///
4003/// Returns `None` for any malformed input (wrong length, non-hex
4004/// characters, misplaced hyphens). The caller surfaces a SQL error
4005/// at coercion time — silent acceptance of garbage would mask
4006/// application bugs and is exactly the divergence from PG that
4007/// breaks the 0-change cutover promise.
4008#[must_use]
4009pub fn parse_uuid_str(input: &str) -> Option<[u8; 16]> {
4010    let s = input.trim();
4011    // Strip surrounding braces if present.
4012    let s = if let Some(inner) = s.strip_prefix('{').and_then(|x| x.strip_suffix('}')) {
4013        inner
4014    } else {
4015        s
4016    };
4017    // Two valid shapes after braces are stripped: 32 hex chars or
4018    // the canonical 36-char hyphenated form.
4019    let hex: String = match s.len() {
4020        32 => s.to_ascii_lowercase(),
4021        36 => {
4022            // Hyphens must be exactly at positions 8, 13, 18, 23.
4023            let b = s.as_bytes();
4024            if b[8] != b'-' || b[13] != b'-' || b[18] != b'-' || b[23] != b'-' {
4025                return None;
4026            }
4027            let mut out = String::with_capacity(32);
4028            out.push_str(&s[0..8]);
4029            out.push_str(&s[9..13]);
4030            out.push_str(&s[14..18]);
4031            out.push_str(&s[19..23]);
4032            out.push_str(&s[24..36]);
4033            out.make_ascii_lowercase();
4034            out
4035        }
4036        _ => return None,
4037    };
4038    let bytes = hex.as_bytes();
4039    let mut out = [0u8; 16];
4040    for i in 0..16 {
4041        let hi = hex_nibble(bytes[i * 2])?;
4042        let lo = hex_nibble(bytes[i * 2 + 1])?;
4043        out[i] = (hi << 4) | lo;
4044    }
4045    Some(out)
4046}
4047
4048fn hex_nibble(b: u8) -> Option<u8> {
4049    match b {
4050        b'0'..=b'9' => Some(b - b'0'),
4051        b'a'..=b'f' => Some(10 + b - b'a'),
4052        b'A'..=b'F' => Some(10 + b - b'A'),
4053        _ => None,
4054    }
4055}
4056
4057/// v7.17.0 — render a `Value::Uuid` payload as the canonical
4058/// lowercase 8-4-4-4-12 hyphenated form PG `text` cast surfaces.
4059#[must_use]
4060pub fn format_uuid(b: &[u8; 16]) -> String {
4061    const HEX: &[u8; 16] = b"0123456789abcdef";
4062    let mut out = String::with_capacity(36);
4063    for (i, byte) in b.iter().enumerate() {
4064        if matches!(i, 4 | 6 | 8 | 10) {
4065            out.push('-');
4066        }
4067        out.push(HEX[(byte >> 4) as usize] as char);
4068        out.push(HEX[(byte & 0x0f) as usize] as char);
4069    }
4070    out
4071}
4072
4073/// v7.17.0 Phase 1.5 — catalogued user-defined DOMAIN. A domain
4074/// is a named CHECK-constrained alias over a built-in type;
4075/// columns bound to it inherit the base type plus the CHECK
4076/// predicates + NOT NULL + DEFAULT at INSERT/UPDATE time.
4077/// `default` / `checks` are stored as Display-form source so
4078/// `spg-storage` stays free of `spg-sql` dependency — same
4079/// pattern as FunctionDef / ViewDef.
4080#[derive(Debug, Clone, PartialEq, Eq)]
4081pub struct DomainDef {
4082    pub name: String,
4083    pub base_type: DataType,
4084    pub nullable: bool,
4085    pub default: Option<String>,
4086    pub checks: Vec<String>,
4087}
4088
4089/// v7.17.0 Phase 1.4 — catalogued user-defined ENUM type. The
4090/// label vector is order-preserving (PG enum ordering follows the
4091/// declared order). At INSERT/UPDATE on a column bound to this
4092/// enum, the engine looks up the value against `labels` and
4093/// rejects non-members.
4094#[derive(Debug, Clone, PartialEq, Eq)]
4095pub struct EnumDef {
4096    pub name: String,
4097    pub labels: Vec<String>,
4098}
4099
4100/// v7.17.0 Phase 1.2 — catalogued VIEW. The body is stored as the
4101/// raw source text the parser saw between `AS` and the statement
4102/// terminator; the engine re-parses on each invocation. Same
4103/// pattern as `FunctionDef` — keeps `spg-storage` free of
4104/// `spg-sql` dependency.
4105#[derive(Debug, Clone, PartialEq, Eq)]
4106pub struct ViewDef {
4107    pub name: String,
4108    /// Optional `(col, col, …)` rename list. Empty when the body's
4109    /// projected names are used directly.
4110    pub columns: Vec<String>,
4111    /// Raw SELECT source. Display-rendered at storage time so the
4112    /// catalog round-trips a deterministic form regardless of
4113    /// whitespace / comments in the original input. Re-parsed at
4114    /// SELECT-from-view time to materialise as a synthetic CTE.
4115    pub body: String,
4116}
4117
4118impl SequenceDataType {
4119    /// PG default min/max per AS clause.
4120    pub fn default_bounds(self, increment_positive: bool) -> (i64, i64) {
4121        match self {
4122            Self::SmallInt => {
4123                if increment_positive {
4124                    (1, i64::from(i16::MAX))
4125                } else {
4126                    (i64::from(i16::MIN), -1)
4127                }
4128            }
4129            Self::Int => {
4130                if increment_positive {
4131                    (1, i64::from(i32::MAX))
4132                } else {
4133                    (i64::from(i32::MIN), -1)
4134                }
4135            }
4136            Self::BigInt => {
4137                if increment_positive {
4138                    (1, i64::MAX)
4139                } else {
4140                    (i64::MIN, -1)
4141                }
4142            }
4143        }
4144    }
4145}
4146
4147impl Catalog {
4148    pub const fn new() -> Self {
4149        Self {
4150            tables: Vec::new(),
4151            by_name: BTreeMap::new(),
4152            cold_segments: Vec::new(),
4153            functions: BTreeMap::new(),
4154            triggers: Vec::new(),
4155            sequences: BTreeMap::new(),
4156            views: BTreeMap::new(),
4157            materialized_views: BTreeMap::new(),
4158            enum_types: BTreeMap::new(),
4159            domain_types: BTreeMap::new(),
4160            schemas: alloc::collections::BTreeSet::new(),
4161        }
4162    }
4163
4164    /// v7.12.4 — read-only view of catalogued user-defined
4165    /// functions. Engine callers go through here to look up the
4166    /// function body before re-parsing it for invocation.
4167    pub const fn functions(&self) -> &BTreeMap<String, FunctionDef> {
4168        &self.functions
4169    }
4170
4171    /// v7.12.4 — register a new user-defined function. With
4172    /// `or_replace = false`, errors if the name is taken. The
4173    /// engine validates the body before passing it here.
4174    pub fn create_function(
4175        &mut self,
4176        def: FunctionDef,
4177        or_replace: bool,
4178    ) -> Result<(), StorageError> {
4179        if !or_replace && self.functions.contains_key(&def.name) {
4180            return Err(StorageError::Corrupt(format!(
4181                "function {:?} already exists (drop or use CREATE OR REPLACE)",
4182                def.name
4183            )));
4184        }
4185        self.functions.insert(def.name.clone(), def);
4186        Ok(())
4187    }
4188
4189    /// v7.12.4 — remove a user-defined function by name. Returns
4190    /// `true` if a function was removed, `false` if none matched.
4191    /// Caller decides whether to surface `if_exists` semantics.
4192    pub fn drop_function(&mut self, name: &str) -> bool {
4193        self.functions.remove(name).is_some()
4194    }
4195
4196    /// v7.17.0 — read-only handle to catalogued sequences.
4197    pub const fn sequences(&self) -> &BTreeMap<String, SequenceDef> {
4198        &self.sequences
4199    }
4200
4201    /// v7.17.0 — register a new SEQUENCE. Errors if `name`
4202    /// collides with an existing sequence and `if_not_exists`
4203    /// is false.
4204    pub fn create_sequence(
4205        &mut self,
4206        def: SequenceDef,
4207        if_not_exists: bool,
4208    ) -> Result<(), StorageError> {
4209        if self.sequences.contains_key(&def.name) {
4210            if if_not_exists {
4211                return Ok(());
4212            }
4213            return Err(StorageError::Corrupt(format!(
4214                "sequence {:?} already exists",
4215                def.name
4216            )));
4217        }
4218        self.sequences.insert(def.name.clone(), def);
4219        Ok(())
4220    }
4221
4222    /// v7.17.0 — remove a SEQUENCE by name. Returns `true` if a
4223    /// sequence was removed, `false` if none matched. Caller
4224    /// surfaces IF EXISTS semantics.
4225    pub fn drop_sequence(&mut self, name: &str) -> bool {
4226        self.sequences.remove(name).is_some()
4227    }
4228
4229    /// v7.17.0 — atomic nextval. Increments `last_value` per
4230    /// `increment`, returns the new value, sets `is_called`.
4231    /// Returns an error on CYCLE-less overflow.
4232    pub fn sequence_next_value(&mut self, name: &str) -> Result<i64, StorageError> {
4233        let Some(seq) = self.sequences.get_mut(name) else {
4234            return Err(StorageError::Corrupt(format!(
4235                "sequence {name:?} does not exist"
4236            )));
4237        };
4238        // PG semantics: when !is_called (fresh sequence or
4239        // setval(_, false)), the next nextval returns the stored
4240        // `last_value`. When is_called, it advances by `increment`
4241        // and CYCLE-wraps on overflow.
4242        let candidate = if seq.is_called {
4243            let next = seq.last_value.checked_add(seq.increment).ok_or_else(|| {
4244                StorageError::Corrupt(format!("sequence {name:?} arithmetic overflow"))
4245            })?;
4246            if seq.increment > 0 {
4247                if next > seq.max_value {
4248                    if seq.cycle {
4249                        seq.min_value
4250                    } else {
4251                        return Err(StorageError::Corrupt(format!(
4252                            "sequence {name:?} reached MAXVALUE ({})",
4253                            seq.max_value
4254                        )));
4255                    }
4256                } else {
4257                    next
4258                }
4259            } else if next < seq.min_value {
4260                if seq.cycle {
4261                    seq.max_value
4262                } else {
4263                    return Err(StorageError::Corrupt(format!(
4264                        "sequence {name:?} reached MINVALUE ({})",
4265                        seq.min_value
4266                    )));
4267                }
4268            } else {
4269                next
4270            }
4271        } else {
4272            seq.last_value
4273        };
4274        seq.last_value = candidate;
4275        seq.is_called = true;
4276        Ok(candidate)
4277    }
4278
4279    /// v7.17.0 — currval. Errors if the session has never called
4280    /// nextval on this sequence (PG semantics). At the catalog
4281    /// level we approximate "session" with "is_called persisted";
4282    /// the engine session-tracking layer can wrap this for the
4283    /// strict per-session semantics later.
4284    pub fn sequence_current_value(&self, name: &str) -> Result<i64, StorageError> {
4285        let Some(seq) = self.sequences.get(name) else {
4286            return Err(StorageError::Corrupt(format!(
4287                "sequence {name:?} does not exist"
4288            )));
4289        };
4290        if !seq.is_called {
4291            return Err(StorageError::Corrupt(format!(
4292                "currval of sequence {name:?} is not yet defined in this session"
4293            )));
4294        }
4295        Ok(seq.last_value)
4296    }
4297
4298    /// v7.17.0 — setval(name, value [, is_called]). PG returns
4299    /// `value` regardless. `is_called=true` means the NEXT
4300    /// nextval will return `value + increment`; `is_called=false`
4301    /// means the next nextval will return `value`.
4302    pub fn sequence_set_value(
4303        &mut self,
4304        name: &str,
4305        value: i64,
4306        is_called: bool,
4307    ) -> Result<i64, StorageError> {
4308        let Some(seq) = self.sequences.get_mut(name) else {
4309            return Err(StorageError::Corrupt(format!(
4310                "sequence {name:?} does not exist"
4311            )));
4312        };
4313        seq.last_value = value;
4314        seq.is_called = is_called;
4315        Ok(value)
4316    }
4317
4318    /// v7.17.0 Phase 1.2 — read-only handle to catalogued views.
4319    pub const fn views(&self) -> &BTreeMap<String, ViewDef> {
4320        &self.views
4321    }
4322
4323    /// v7.17.0 Phase 1.2 — install a VIEW. `or_replace=true`
4324    /// overwrites an existing entry; `if_not_exists=true` is a
4325    /// silent no-op when the name is taken. Errors if both flags
4326    /// are off and the name collides.
4327    pub fn create_view(
4328        &mut self,
4329        def: ViewDef,
4330        or_replace: bool,
4331        if_not_exists: bool,
4332    ) -> Result<(), StorageError> {
4333        if self.views.contains_key(&def.name) {
4334            if or_replace {
4335                self.views.insert(def.name.clone(), def);
4336                return Ok(());
4337            }
4338            if if_not_exists {
4339                return Ok(());
4340            }
4341            return Err(StorageError::Corrupt(format!(
4342                "view {:?} already exists",
4343                def.name
4344            )));
4345        }
4346        // Reject name collision with tables / sequences — same
4347        // namespace per PG.
4348        if self.by_name.contains_key(&def.name) {
4349            return Err(StorageError::Corrupt(format!(
4350                "view {:?} would shadow an existing table",
4351                def.name
4352            )));
4353        }
4354        if self.sequences.contains_key(&def.name) {
4355            return Err(StorageError::Corrupt(format!(
4356                "view {:?} would shadow an existing sequence",
4357                def.name
4358            )));
4359        }
4360        self.views.insert(def.name.clone(), def);
4361        Ok(())
4362    }
4363
4364    /// v7.17.0 Phase 1.2 — remove a view by name. Returns true if
4365    /// a view was removed.
4366    pub fn drop_view(&mut self, name: &str) -> bool {
4367        self.views.remove(name).is_some()
4368    }
4369
4370    /// v7.17.0 Phase 1.3 — read-only handle to the materialised-
4371    /// view source registry. Each entry pairs with a regular
4372    /// table of the same name that holds the cached rows.
4373    pub const fn materialized_views(&self) -> &BTreeMap<String, String> {
4374        &self.materialized_views
4375    }
4376
4377    /// v7.17.0 Phase 1.3 — register a source for a materialised
4378    /// view. Caller has already created the backing table.
4379    pub fn register_materialized_view(&mut self, name: String, body: String) {
4380        self.materialized_views.insert(name, body);
4381    }
4382
4383    /// v7.17.0 Phase 1.3 — drop the source registry entry. Returns
4384    /// true if a source was unregistered. Caller separately drops
4385    /// the backing table.
4386    pub fn drop_materialized_view_source(&mut self, name: &str) -> bool {
4387        self.materialized_views.remove(name).is_some()
4388    }
4389
4390    /// v7.17.0 Phase 1.4 — read-only handle to user-defined ENUM
4391    /// catalog.
4392    pub const fn enum_types(&self) -> &BTreeMap<String, EnumDef> {
4393        &self.enum_types
4394    }
4395
4396    /// v7.17.0 Phase 1.4 — install a new ENUM type. Errors if
4397    /// `name` collides with an existing enum (no IF NOT EXISTS
4398    /// per PG semantics for CREATE TYPE).
4399    pub fn create_enum_type(&mut self, def: EnumDef) -> Result<(), StorageError> {
4400        if self.enum_types.contains_key(&def.name) {
4401            return Err(StorageError::Corrupt(format!(
4402                "type {:?} already exists",
4403                def.name
4404            )));
4405        }
4406        self.enum_types.insert(def.name.clone(), def);
4407        Ok(())
4408    }
4409
4410    /// v7.17.0 Phase 1.4 — drop an ENUM type by name. Returns
4411    /// true if a type was removed.
4412    pub fn drop_enum_type(&mut self, name: &str) -> bool {
4413        self.enum_types.remove(name).is_some()
4414    }
4415
4416    /// v7.17.0 Phase 1.5 — read-only handle to DOMAIN catalog.
4417    pub const fn domain_types(&self) -> &BTreeMap<String, DomainDef> {
4418        &self.domain_types
4419    }
4420
4421    /// v7.17.0 Phase 1.5 — install a DOMAIN. Errors on collision
4422    /// with an existing domain.
4423    pub fn create_domain_type(&mut self, def: DomainDef) -> Result<(), StorageError> {
4424        if self.domain_types.contains_key(&def.name) {
4425            return Err(StorageError::Corrupt(format!(
4426                "domain {:?} already exists",
4427                def.name
4428            )));
4429        }
4430        self.domain_types.insert(def.name.clone(), def);
4431        Ok(())
4432    }
4433
4434    /// v7.17.0 Phase 1.5 — drop a DOMAIN by name.
4435    pub fn drop_domain_type(&mut self, name: &str) -> bool {
4436        self.domain_types.remove(name).is_some()
4437    }
4438
4439    /// v7.17.0 Phase 1.6 — read-only handle to the user-created
4440    /// schema registry. Built-in schemas (`public`, `pg_catalog`,
4441    /// `information_schema`) are NOT included here; use
4442    /// [`schema_exists`](Self::schema_exists) for the full
4443    /// check.
4444    pub const fn user_schemas(&self) -> &alloc::collections::BTreeSet<String> {
4445        &self.schemas
4446    }
4447
4448    /// v7.17.0 Phase 1.6 — schema-name resolver. Returns true
4449    /// for built-in schemas + every user-CREATEd one. Used by
4450    /// CREATE SCHEMA collision checks and (future) by
4451    /// information_schema.schemata.
4452    pub fn schema_exists(&self, name: &str) -> bool {
4453        is_builtin_schema(name) || self.schemas.contains(name)
4454    }
4455
4456    /// v7.17.0 Phase 1.6 — register a new schema. Errors if the
4457    /// name already exists and `if_not_exists=false`. Built-in
4458    /// names cannot be redeclared.
4459    pub fn create_schema(&mut self, name: String, if_not_exists: bool) -> Result<(), StorageError> {
4460        if is_builtin_schema(&name) {
4461            if if_not_exists {
4462                return Ok(());
4463            }
4464            return Err(StorageError::Corrupt(format!(
4465                "schema {name:?} is built-in and cannot be redeclared"
4466            )));
4467        }
4468        if self.schemas.contains(&name) {
4469            if if_not_exists {
4470                return Ok(());
4471            }
4472            return Err(StorageError::Corrupt(format!(
4473                "schema {name:?} already exists"
4474            )));
4475        }
4476        self.schemas.insert(name);
4477        Ok(())
4478    }
4479
4480    /// v7.17.0 Phase 1.6 — drop a user-created schema. Returns
4481    /// true if a schema was removed. Built-in names always
4482    /// return false (cannot be dropped). Tables that previously
4483    /// used the schema as a prefix keep their bare name and stay
4484    /// queryable — this is the "prefix routing, not isolation"
4485    /// posture documented in v7.17 Phase 1.6.
4486    pub fn drop_schema(&mut self, name: &str) -> Result<bool, StorageError> {
4487        if is_builtin_schema(name) {
4488            return Err(StorageError::Corrupt(format!(
4489                "schema {name:?} is built-in and cannot be dropped"
4490            )));
4491        }
4492        Ok(self.schemas.remove(name))
4493    }
4494
4495    /// v7.17.0 — ALTER SEQUENCE option merge. Caller-provided
4496    /// updates overwrite the matching fields; unset fields keep
4497    /// their stored values. RESTART variants update last_value
4498    /// directly per PG: `RESTART` resets to current `start`;
4499    /// `RESTART WITH n` resets to `n`.
4500    #[allow(clippy::too_many_arguments)]
4501    pub fn alter_sequence(
4502        &mut self,
4503        name: &str,
4504        increment: Option<i64>,
4505        min_value: Option<i64>,
4506        max_value: Option<i64>,
4507        start: Option<i64>,
4508        restart: Option<Option<i64>>,
4509        cache: Option<i64>,
4510        cycle: Option<bool>,
4511        owned_by: Option<Option<(String, String)>>,
4512    ) -> Result<(), StorageError> {
4513        let Some(seq) = self.sequences.get_mut(name) else {
4514            return Err(StorageError::Corrupt(format!(
4515                "sequence {name:?} does not exist"
4516            )));
4517        };
4518        if let Some(v) = increment {
4519            seq.increment = v;
4520        }
4521        if let Some(v) = min_value {
4522            seq.min_value = v;
4523        }
4524        if let Some(v) = max_value {
4525            seq.max_value = v;
4526        }
4527        if let Some(v) = start {
4528            seq.start = v;
4529        }
4530        if let Some(restart_value) = restart {
4531            seq.last_value = restart_value.unwrap_or(seq.start);
4532            seq.is_called = false;
4533        }
4534        if let Some(v) = cache {
4535            seq.cache = v;
4536        }
4537        if let Some(v) = cycle {
4538            seq.cycle = v;
4539        }
4540        if let Some(v) = owned_by {
4541            seq.owned_by = v;
4542        }
4543        Ok(())
4544    }
4545
4546    /// v7.12.4 — read-only slice of all catalogued triggers.
4547    /// Engine row-write paths filter this by (table, event,
4548    /// timing) and fire matches in slice order.
4549    pub fn triggers(&self) -> &[TriggerDef] {
4550        &self.triggers
4551    }
4552
4553    /// v7.15.0 — mutable handle to the trigger slice for
4554    /// `ALTER TABLE … RENAME COLUMN`, which rewrites every
4555    /// `update_columns` entry that referenced the renamed
4556    /// column.
4557    pub fn triggers_mut(&mut self) -> &mut Vec<TriggerDef> {
4558        &mut self.triggers
4559    }
4560
4561    /// v7.12.4 — register a new trigger. With `or_replace = false`,
4562    /// errors when a trigger with the same name already exists on
4563    /// the same table (PG scoping rule — trigger names are
4564    /// per-table, not global). Trigger function must already
4565    /// exist in the catalog at registration time.
4566    pub fn create_trigger(
4567        &mut self,
4568        def: TriggerDef,
4569        or_replace: bool,
4570    ) -> Result<(), StorageError> {
4571        if !self.by_name.contains_key(&def.table) {
4572            return Err(StorageError::TableNotFound {
4573                name: def.table.clone(),
4574            });
4575        }
4576        if !self.functions.contains_key(&def.function) {
4577            return Err(StorageError::Corrupt(format!(
4578                "trigger {:?} references unknown function {:?}",
4579                def.name, def.function
4580            )));
4581        }
4582        let dup = self
4583            .triggers
4584            .iter()
4585            .position(|t| t.name == def.name && t.table == def.table);
4586        match (dup, or_replace) {
4587            (Some(_), false) => Err(StorageError::Corrupt(format!(
4588                "trigger {:?} already exists on table {:?}",
4589                def.name, def.table
4590            ))),
4591            (Some(i), true) => {
4592                self.triggers[i] = def;
4593                Ok(())
4594            }
4595            (None, _) => {
4596                self.triggers.push(def);
4597                Ok(())
4598            }
4599        }
4600    }
4601
4602    /// v7.12.4 — remove a trigger by `(name, table)`. Returns
4603    /// `true` if one was removed.
4604    pub fn drop_trigger(&mut self, name: &str, table: &str) -> bool {
4605        let before = self.triggers.len();
4606        self.triggers
4607            .retain(|t| !(t.name == name && t.table == table));
4608        before != self.triggers.len()
4609    }
4610
4611    pub fn create_table(&mut self, schema: TableSchema) -> Result<(), StorageError> {
4612        if self.by_name.contains_key(&schema.name) {
4613            return Err(StorageError::DuplicateTable {
4614                name: schema.name.clone(),
4615            });
4616        }
4617        let idx = self.tables.len();
4618        let name = schema.name.clone();
4619        self.tables.push(Table::new(schema));
4620        self.by_name.insert(name, idx);
4621        Ok(())
4622    }
4623
4624    pub fn get(&self, name: &str) -> Option<&Table> {
4625        let idx = *self.by_name.get(name)?;
4626        self.tables.get(idx)
4627    }
4628
4629    pub fn get_mut(&mut self, name: &str) -> Option<&mut Table> {
4630        let idx = *self.by_name.get(name)?;
4631        self.tables.get_mut(idx)
4632    }
4633
4634    pub fn table_count(&self) -> usize {
4635        self.tables.len()
4636    }
4637
4638    /// v7.14.0 — remove a table by name. Returns `true` when the
4639    /// table existed (and is now gone), `false` when it didn't.
4640    /// Used by `DROP TABLE` from pg_dump / mysqldump preambles
4641    /// where the dump re-creates schema and starts with
4642    /// `DROP TABLE IF EXISTS`.
4643    pub fn drop_table(&mut self, name: &str) -> bool {
4644        let Some(idx) = self.by_name.remove(name) else {
4645            return false;
4646        };
4647        // swap_remove invalidates the trailing index → rebuild
4648        // by_name for affected entries.
4649        self.tables.swap_remove(idx);
4650        // Re-stamp moved table's index slot in by_name.
4651        if idx < self.tables.len() {
4652            let moved_name = self.tables[idx].schema.name.clone();
4653            self.by_name.insert(moved_name, idx);
4654        }
4655        true
4656    }
4657
4658    /// v7.16.2 — rename a table (mailrs round-10 A.5). Updates
4659    /// the schema name, the catalog name → index map, and
4660    /// rewrites every reference dangling at the table name:
4661    ///   * every FK on every OTHER table whose `parent_table`
4662    ///     pointed at the old name now points at the new
4663    ///     name, so FK enforcement keeps working
4664    ///   * every trigger watching the table updates its `table`
4665    ///     field
4666    /// Returns `Ok` on success; `Err(StorageError::TableNotFound)`
4667    /// when the old name isn't in the catalog and
4668    /// `Err(StorageError::DuplicateTable)` when the new name is
4669    /// already taken.
4670    pub fn rename_table(&mut self, old: &str, new: &str) -> Result<(), StorageError> {
4671        if old == new {
4672            return Ok(());
4673        }
4674        if self.by_name.contains_key(new) {
4675            return Err(StorageError::Corrupt(format!(
4676                "rename_table: target name {new:?} already exists"
4677            )));
4678        }
4679        let idx = self
4680            .by_name
4681            .remove(old)
4682            .ok_or_else(|| StorageError::TableNotFound { name: old.into() })?;
4683        self.tables[idx].schema.name = new.to_string();
4684        self.by_name.insert(new.to_string(), idx);
4685        for t in &mut self.tables {
4686            for fk in &mut t.schema.foreign_keys {
4687                if fk.parent_table == old {
4688                    fk.parent_table = new.to_string();
4689                }
4690            }
4691        }
4692        for trig in &mut self.triggers {
4693            if trig.table == old {
4694                trig.table = new.to_string();
4695            }
4696        }
4697        Ok(())
4698    }
4699
4700    /// v7.16.2 — rename an index by name. Walks every table
4701    /// since the index lives on its owning table; updates the
4702    /// name in place. Errors with `IndexNotFound` when no
4703    /// index matches. mailrs round-10 A.5.
4704    pub fn rename_index(&mut self, old: &str, new: &str) -> Result<(), StorageError> {
4705        if old == new {
4706            return Ok(());
4707        }
4708        // Reject the new name if it already exists anywhere.
4709        for t in &self.tables {
4710            if t.indices.iter().any(|i| i.name == new) {
4711                return Err(StorageError::Corrupt(format!(
4712                    "rename_index: target name {new:?} already exists"
4713                )));
4714            }
4715        }
4716        for t in &mut self.tables {
4717            for i in &mut t.indices {
4718                if i.name == old {
4719                    i.name = new.to_string();
4720                    return Ok(());
4721                }
4722            }
4723        }
4724        Err(StorageError::IndexNotFound { name: old.into() })
4725    }
4726
4727    /// v7.14.0 — remove a named index across the catalog.
4728    /// Returns `true` when found + dropped.
4729    pub fn drop_named_index(&mut self, name: &str) -> bool {
4730        for t in &mut self.tables {
4731            let before = t.indices.len();
4732            t.indices.retain(|i| i.name != name);
4733            if t.indices.len() != before {
4734                return true;
4735            }
4736        }
4737        false
4738    }
4739
4740    /// Borrow-free copy of every table's name in catalog order
4741    /// (= insertion order, matching the on-disk encoding).
4742    pub fn table_names(&self) -> Vec<String> {
4743        self.tables.iter().map(|t| t.schema.name.clone()).collect()
4744    }
4745
4746    /// v5.1: register a cold-tier segment that already lives in
4747    /// memory (caller did the file read). Returns the
4748    /// `segment_id` that `RowLocator::Cold { segment_id, .. }`
4749    /// will reference — currently this is just the index into
4750    /// `cold_segments`, but treat it as an opaque token.
4751    ///
4752    /// Storage is `no_std`, so file I/O is the caller's
4753    /// responsibility — `spg-server` reads the file and forwards
4754    /// the bytes here. The bytes stay resident in the catalog
4755    /// for the life of the `Catalog`, parsed only once.
4756    pub fn load_segment_bytes(&mut self, bytes: Vec<u8>) -> Result<u32, StorageError> {
4757        let id = u32::try_from(self.cold_segments.len()).map_err(|_| {
4758            StorageError::Corrupt("cold segment count would exceed u32::MAX".into())
4759        })?;
4760        let seg = OwnedSegment::from_bytes(bytes)
4761            .map_err(|e| StorageError::Corrupt(format!("cold segment parse failed: {e}")))?;
4762        self.cold_segments.push(Some(Arc::new(seg)));
4763        Ok(id)
4764    }
4765
4766    /// v6.7.3 — register a cold-tier segment at a specific id. Used
4767    /// by the spg-server manifest-boot path so segments whose
4768    /// neighbouring ids were retired by compaction still get back
4769    /// the same `segment_id` they had pre-restart (the
4770    /// `RowLocator::Cold { segment_id }` baked into the BTree-index
4771    /// snapshot persists across restart and must continue to
4772    /// resolve).
4773    ///
4774    /// Pads the Vec with `None` slots up to `target_id` if needed.
4775    /// Errors when the target slot is already occupied (would
4776    /// stomp another segment), the parse fails, or `target_id`
4777    /// exceeds `u32::MAX`.
4778    pub fn load_segment_bytes_at(
4779        &mut self,
4780        target_id: u32,
4781        bytes: Vec<u8>,
4782    ) -> Result<(), StorageError> {
4783        let seg = OwnedSegment::from_bytes(bytes)
4784            .map_err(|e| StorageError::Corrupt(format!("cold segment parse failed: {e}")))?;
4785        let idx = target_id as usize;
4786        while self.cold_segments.len() <= idx {
4787            self.cold_segments.push(None);
4788        }
4789        if self.cold_segments[idx].is_some() {
4790            return Err(StorageError::Corrupt(format!(
4791                "load_segment_bytes_at: segment_id {target_id} already occupied"
4792            )));
4793        }
4794        self.cold_segments[idx] = Some(Arc::new(seg));
4795        Ok(())
4796    }
4797
4798    /// v6.7.3 — retire a cold-tier segment slot (compaction-driven).
4799    /// The physical file is the caller's concern (typically kept
4800    /// on disk until the next CHECKPOINT writes a manifest that
4801    /// no longer lists it); this just flips the in-memory slot
4802    /// to `None` so later cold lookups for `segment_id` resolve
4803    /// as "unknown" instead of returning a stale row.
4804    ///
4805    /// No-op when the slot is already `None`. Errors only when
4806    /// `segment_id` is out of bounds.
4807    pub fn tombstone_segment(&mut self, segment_id: u32) -> Result<(), StorageError> {
4808        let idx = segment_id as usize;
4809        if idx >= self.cold_segments.len() {
4810            return Err(StorageError::Corrupt(format!(
4811                "tombstone_segment: segment_id {segment_id} out of bounds (len={})",
4812                self.cold_segments.len()
4813            )));
4814        }
4815        self.cold_segments[idx] = None;
4816        Ok(())
4817    }
4818
4819    /// Number of *active* (non-tombstoned) cold segments.
4820    #[must_use]
4821    pub fn cold_segment_count(&self) -> usize {
4822        self.cold_segments.iter().filter(|s| s.is_some()).count()
4823    }
4824
4825    /// Slot count including tombstones (= the next id the
4826    /// no-arg `load_segment_bytes` would allocate).
4827    #[must_use]
4828    pub fn cold_segment_slot_count(&self) -> usize {
4829        self.cold_segments.len()
4830    }
4831
4832    /// v6.2.7 — list every *active* cold-tier segment id known to
4833    /// this catalog (skips compaction tombstones since v6.7.3).
4834    /// Used by EXPLAIN ANALYZE to annotate scan nodes with the
4835    /// segments they could have walked.
4836    #[must_use]
4837    pub fn cold_segment_ids_global(&self) -> Vec<u32> {
4838        self.cold_segments
4839            .iter()
4840            .enumerate()
4841            .filter_map(|(i, s)| s.as_ref().map(|_| i as u32))
4842            .collect()
4843    }
4844
4845    /// v5.2.1: sum of `Table::hot_bytes` across every table. The v5.2
4846    /// freezer compares this against `SPG_HOT_TIER_BYTES` (parsed at
4847    /// server startup; default 4 GiB) and wakes when the budget is
4848    /// crossed. Pre-freezer (v5.2.1) this is measurement-only — the
4849    /// counter exposes whether the budget is being approached without
4850    /// triggering any demotion.
4851    #[must_use]
4852    pub fn hot_tier_bytes(&self) -> u64 {
4853        self.tables
4854            .iter()
4855            .map(Table::hot_bytes)
4856            .fold(0u64, u64::saturating_add)
4857    }
4858
4859    /// v5.2.2: freeze the **first** `max_rows` rows of `table_name`'s
4860    /// hot tier into a brand-new cold-tier segment. The named `BTree`
4861    /// index supplies the per-row PK (its column must be an integer
4862    /// type — v5.2.2 only supports `IndexKey::Int` PKs, matching the
4863    /// `index_key_as_u64` constraint used by the cold-tier lookup
4864    /// path). On success returns a [`FreezeReport`] with the
4865    /// freshly-allocated segment id, the count of rows that moved,
4866    /// the encoded segment bytes (so the caller can persist them to
4867    /// disk for later reload via `SPG_PRELOAD_COLD_SEGMENT`), and the
4868    /// hot-tier byte delta that was reclaimed.
4869    ///
4870    /// **Semantics**:
4871    /// 1. The first `max_rows` rows (by hot-tier position — same as
4872    ///    insertion order under v4.39 `PersistentVec`) are read.
4873    /// 2. Rows are sorted ascending by PK and serialised into a new
4874    ///    segment via [`encode_segment`].
4875    /// 3. The hot rows are dropped via [`Table::delete_rows`]; the
4876    ///    `rebuild_indices` it triggers regenerates `Hot` locators
4877    ///    for every remaining row (their positions shift down by
4878    ///    `max_rows`). Existing `Cold` locators in this index — from
4879    ///    a previous freeze — are also rebuilt **but with empty
4880    ///    payload** since rebuild reads only `self.rows`; this
4881    ///    routine re-registers them at the end of the call so the
4882    ///    user-visible state preserves all prior cold locators.
4883    /// 4. The new segment is loaded into `self.cold_segments` via
4884    ///    [`Catalog::load_segment_bytes`] (allocating a fresh
4885    ///    `segment_id`). New `Cold` locators are registered on the
4886    ///    named index — one per frozen row.
4887    ///
4888    /// **v5.2.2 limits** (relaxed in later sub-versions):
4889    /// - INSERT-only flow: subsequent UPDATE/DELETE on a frozen row
4890    ///   returns a stale-locator error (no promote-on-write until
4891    ///   v5.2.3).
4892    /// - Single-table scope: callers iterate tables themselves.
4893    /// - All-or-nothing: returns `Err` and leaves catalog unchanged
4894    ///   if any step fails before the atomic swap point.
4895    ///
4896    /// Errors:
4897    /// - [`StorageError::Corrupt`] for missing table/index, non-`BTree`
4898    ///   index, non-integer PK column, `max_rows == 0`, or
4899    ///   `max_rows > row_count`.
4900    /// - The encoder's [`SegmentError`] surfaces as `Corrupt` (the
4901    ///   only realistic source is "a single row is larger than the
4902    ///   page size"; SPG schemas don't hit it in practice).
4903    pub fn freeze_oldest_to_cold(
4904        &mut self,
4905        table_name: &str,
4906        index_name: &str,
4907        max_rows: usize,
4908    ) -> Result<FreezeReport, StorageError> {
4909        // --- validation phase: never mutates ---------------------
4910        if max_rows == 0 {
4911            return Err(StorageError::Corrupt(
4912                "freeze_oldest_to_cold: max_rows must be > 0".into(),
4913            ));
4914        }
4915        let table = self.get(table_name).ok_or_else(|| {
4916            StorageError::Corrupt(format!(
4917                "freeze_oldest_to_cold: table {table_name:?} not found"
4918            ))
4919        })?;
4920        if max_rows > table.rows.len() {
4921            return Err(StorageError::Corrupt(format!(
4922                "freeze_oldest_to_cold: max_rows {max_rows} > row_count {}",
4923                table.rows.len()
4924            )));
4925        }
4926        let idx = table
4927            .indices
4928            .iter()
4929            .find(|i| i.name == index_name)
4930            .ok_or_else(|| {
4931                StorageError::Corrupt(format!(
4932                    "freeze_oldest_to_cold: index {index_name:?} not found on {table_name:?}"
4933                ))
4934            })?;
4935        if !matches!(idx.kind, IndexKind::BTree(_)) {
4936            return Err(StorageError::Corrupt(format!(
4937                "freeze_oldest_to_cold: index {index_name:?} is NSW; only BTree indices may freeze"
4938            )));
4939        }
4940        let column_position = idx.column_position;
4941
4942        // --- segment build phase: reads only --------------------
4943        let schema = table.schema.clone();
4944        let mut to_freeze: Vec<(u64, Vec<u8>, IndexKey)> = Vec::with_capacity(max_rows);
4945        for row_idx in 0..max_rows {
4946            let row = table.rows.get(row_idx).expect("bounds-checked above");
4947            let key = IndexKey::from_value(&row.values[column_position]).ok_or_else(|| {
4948                StorageError::Corrupt(format!(
4949                    "freeze_oldest_to_cold: row {row_idx} has NULL / non-key value in index column"
4950                ))
4951            })?;
4952            let pk_u64 = index_key_as_u64(&key).ok_or_else(|| {
4953                StorageError::Corrupt(format!(
4954                    "freeze_oldest_to_cold: index {index_name:?} column type is non-integer; \
4955                     v5.2.2 cold tier requires IndexKey::Int (Text PK lands in v5.5+)"
4956                ))
4957            })?;
4958            to_freeze.push((pk_u64, encode_row_body_dense(row, &schema), key));
4959        }
4960        // encode_segment requires ascending u64 keys. Sort by PK
4961        // before encoding; the caller's row-position order is not
4962        // necessarily PK order (e.g. workloads that insert random
4963        // PKs).
4964        to_freeze.sort_by_key(|(k, _, _)| *k);
4965        // Reject duplicate PKs — encode_segment also rejects them
4966        // (`SegmentError::UnsortedKey`), but the resulting error
4967        // message there is misleading. Surface a clearer one.
4968        for w in to_freeze.windows(2) {
4969            if w[0].0 == w[1].0 {
4970                return Err(StorageError::Corrupt(format!(
4971                    "freeze_oldest_to_cold: duplicate PK {} in freeze batch",
4972                    w[0].0
4973                )));
4974            }
4975        }
4976        // Snapshot the (key, locator) pairs that will be registered
4977        // post-swap. Cloning the IndexKey out before the move makes
4978        // the registration loop borrow-free.
4979        let post_swap_keys: Vec<IndexKey> = to_freeze.iter().map(|(_, _, k)| k.clone()).collect();
4980        // Segment encode is now infallible w.r.t. ordering. Map the
4981        // `SegmentError` into a `StorageError::Corrupt` so the
4982        // public surface stays one error type.
4983        let seg_rows: Vec<(u64, Vec<u8>)> = to_freeze
4984            .into_iter()
4985            .map(|(k, body, _)| (k, body))
4986            .collect();
4987        let frozen_rows = seg_rows.len();
4988        let (seg_bytes, _meta) = encode_segment(seg_rows.into_iter(), 0.01, SEGMENT_PAGE_BYTES)
4989            .map_err(|e| StorageError::Corrupt(format!("freeze_oldest_to_cold: encode: {e}")))?;
4990
4991        // --- atomic swap phase: mutations only past this point ---
4992        // v5.2.3 made `Table::rebuild_indices` preserve every Cold
4993        // locator across the per-table rebuild, so `delete_rows`
4994        // below no longer wipes prior-freeze cold entries. The pre-
4995        // v5.2.3 capture-then-re-register that used to live here
4996        // was removed in v5.3.1 — keeping it would double-count
4997        // every prior-frozen key's Cold locator on each subsequent
4998        // freeze.
4999        let bytes_before = self.get(table_name).expect("just validated").hot_bytes();
5000        let positions: Vec<usize> = (0..max_rows).collect();
5001        let t_mut = self
5002            .get_mut(table_name)
5003            .expect("just validated; still present");
5004        let removed = t_mut.delete_rows(&positions);
5005        debug_assert_eq!(removed, max_rows, "delete_rows count matches request");
5006        let bytes_after = t_mut.hot_bytes();
5007        let bytes_freed = bytes_before.saturating_sub(bytes_after);
5008
5009        let segment_id = self
5010            .load_segment_bytes(seg_bytes.clone())
5011            .map_err(|e| StorageError::Corrupt(format!("freeze_oldest_to_cold: load: {e}")))?;
5012        let new_cold = post_swap_keys.into_iter().map(|k| {
5013            (
5014                k,
5015                RowLocator::Cold {
5016                    segment_id,
5017                    page_offset: 0,
5018                },
5019            )
5020        });
5021        let t_mut = self.get_mut(table_name).expect("still present");
5022        t_mut.register_cold_locators(index_name, new_cold)?;
5023
5024        Ok(FreezeReport {
5025            segment_id,
5026            frozen_rows,
5027            bytes_freed,
5028            segment_bytes: seg_bytes,
5029        })
5030    }
5031
5032    /// v5.1: borrow the cold segment at `segment_id`. Used by the
5033    /// spg-server preload path to enumerate (key, locator) pairs
5034    /// after loading a segment, so it can call
5035    /// [`Table::register_cold_locators`] without re-parsing the
5036    /// bytes.
5037    #[must_use]
5038    pub fn cold_segment(&self, segment_id: u32) -> Option<&OwnedSegment> {
5039        self.cold_segments
5040            .get(segment_id as usize)
5041            .and_then(|s| s.as_deref())
5042    }
5043
5044    /// v5.1: resolve a single `RowLocator::Cold` to its underlying
5045    /// `Row`. Decoupled from [`Catalog::lookup_by_pk`] so callers
5046    /// iterating a multi-locator slice (e.g. the engine's index
5047    /// seek path) can dispatch per locator instead of getting back
5048    /// only the first row for a key. Returns `None` when the
5049    /// segment isn't registered, the key isn't `u64`-coercible, or
5050    /// the segment doesn't actually carry the key (bloom or page-
5051    /// index reject).
5052    pub fn resolve_cold_locator(
5053        &self,
5054        table_name: &str,
5055        segment_id: u32,
5056        key: &IndexKey,
5057    ) -> Option<Row> {
5058        let t = self.get(table_name)?;
5059        let u64_key = index_key_as_u64(key)?;
5060        let seg = self.cold_segments.get(segment_id as usize)?.as_ref()?;
5061        let payload = seg.lookup(u64_key)?;
5062        let (row, _) = decode_row_body_dense(&payload, &t.schema).ok()?;
5063        Some(row)
5064    }
5065
5066    /// v5.1: indexed PK lookup that dispatches per locator,
5067    /// returning the first matching row from either the hot tier
5068    /// (`Table::rows`) or a registered cold segment.
5069    ///
5070    /// The cold path requires the index column to be coercible to
5071    /// a `u64` (the segment's PK type) and the segment payload to
5072    /// be a [`encode_row_body_dense`]-encoded row body for the
5073    /// same schema. v5.1 ships this for BIGINT / INT / SMALLINT
5074    /// PKs; other types fall through to hot-only behavior.
5075    ///
5076    /// Returns `None` if (a) the table or index doesn't exist,
5077    /// (b) the key isn't in the index at all, or (c) the key was
5078    /// resolved to a stale locator (Hot index out of range, Cold
5079    /// segment id unknown, segment lookup miss). Does not surface
5080    /// segment-decode errors — those would indicate corrupted
5081    /// cold-tier files and should be caught at
5082    /// [`Catalog::load_segment_bytes`] time.
5083    pub fn lookup_by_pk(&self, table: &str, index_name: &str, key: &IndexKey) -> Option<Row> {
5084        let t = self.get(table)?;
5085        let idx = t.indices.iter().find(|i| i.name == index_name)?;
5086        let locators = idx.lookup_eq(key);
5087        let cold_u64_key = index_key_as_u64(key);
5088        for loc in locators {
5089            match *loc {
5090                RowLocator::Hot(i) => {
5091                    if let Some(row) = t.rows.get(i) {
5092                        return Some(row.clone());
5093                    }
5094                }
5095                RowLocator::Cold {
5096                    segment_id,
5097                    page_offset: _,
5098                } => {
5099                    let Some(u64_key) = cold_u64_key else {
5100                        // Key type not coercible to u64 — cold tier
5101                        // only handles BIGINT/INT/SMALLINT in v5.1.
5102                        continue;
5103                    };
5104                    let Some(seg) = self
5105                        .cold_segments
5106                        .get(segment_id as usize)
5107                        .and_then(|s| s.as_deref())
5108                    else {
5109                        // v6.7.3 — `None` slot = compaction
5110                        // retired this segment; the live locator
5111                        // on a freshly-compacted index points to
5112                        // the merged segment_id, so a Cold hit
5113                        // here against a tombstone means the BTree
5114                        // entry hasn't been swapped yet (mid-
5115                        // compaction reader race) or the caller is
5116                        // looking up a stale snapshot. Skip — the
5117                        // next locator in the list, if any, is
5118                        // typically the merged segment.
5119                        continue;
5120                    };
5121                    let Some(payload) = seg.lookup(u64_key) else {
5122                        continue;
5123                    };
5124                    let (row, _) = decode_row_body_dense(&payload, &t.schema).ok()?;
5125                    return Some(row);
5126                }
5127            }
5128        }
5129        None
5130    }
5131
5132    /// v5.2.3: promote a frozen row back to the hot tier so an
5133    /// UPDATE / DELETE can mutate it. Reads the cold-tier row body
5134    /// (decoded from its registered segment), pushes it into
5135    /// `table.rows` via [`Table::insert`] (which also adds a fresh
5136    /// `Hot(new_idx)` locator on `index_name`), then retires the
5137    /// shadowed `Cold` locator via
5138    /// [`Table::remove_cold_locators_for_key`]. The cold-tier row
5139    /// in the segment file becomes garbage — recoverable when a
5140    /// future cold-segment compaction job lands.
5141    ///
5142    /// Returns:
5143    /// - `Ok(Some(new_hot_idx))` when the key resolved through a
5144    ///   cold locator and the promote completed. `new_hot_idx` is
5145    ///   the position the row now occupies in `table.rows`.
5146    /// - `Ok(None)` when the key has no Cold locator on the index
5147    ///   (already hot, or wasn't present at all). Callers treat this
5148    ///   as "nothing to do here, fall back to the hot-only path".
5149    ///
5150    /// Errors when the table / index doesn't exist, the index isn't
5151    /// `BTree`, the cold segment is missing / can't decode the row,
5152    /// or the inferred row body fails `Table::insert` validation.
5153    pub fn promote_cold_row(
5154        &mut self,
5155        table_name: &str,
5156        index_name: &str,
5157        key: &IndexKey,
5158    ) -> Result<Option<usize>, StorageError> {
5159        let cold_loc = self.find_cold_locator(table_name, index_name, key)?;
5160        let Some((segment_id, _page_offset)) = cold_loc else {
5161            return Ok(None);
5162        };
5163        let u64_key = index_key_as_u64(key).ok_or_else(|| {
5164            StorageError::Corrupt(
5165                "promote_cold_row: key type not coercible to u64 (cold tier requires integer PK)"
5166                    .into(),
5167            )
5168        })?;
5169        // Read the row body from the segment. Borrow the segment +
5170        // schema short-term so we can then take `&mut self` for the
5171        // hot-side insert.
5172        let schema = self
5173            .get(table_name)
5174            .ok_or_else(|| {
5175                StorageError::Corrupt(format!("promote_cold_row: table {table_name:?} not found"))
5176            })?
5177            .schema
5178            .clone();
5179        let seg = self
5180            .cold_segments
5181            .get(segment_id as usize)
5182            .and_then(|s| s.as_ref())
5183            .ok_or_else(|| {
5184                StorageError::Corrupt(format!(
5185                    "promote_cold_row: segment {segment_id} not registered on catalog"
5186                ))
5187            })?;
5188        let payload = seg.lookup(u64_key).ok_or_else(|| {
5189            StorageError::Corrupt(format!(
5190                "promote_cold_row: key {u64_key} resolves to segment {segment_id} \
5191                 but the segment's bloom/page lookup didn't return a row"
5192            ))
5193        })?;
5194        let (row, _consumed) = decode_row_body_dense(&payload, &schema)?;
5195        // Insert the promoted row into the hot tier. `Table::insert`
5196        // appends to `self.rows`, adds a `Hot(new_idx)` locator to
5197        // every BTree index covering the row's keyed columns, and
5198        // increments `hot_bytes`.
5199        let t = self
5200            .get_mut(table_name)
5201            .expect("table existed at lookup time");
5202        t.insert(row)?;
5203        let new_hot_idx =
5204            t.rows.len().checked_sub(1).ok_or_else(|| {
5205                StorageError::Corrupt("promote_cold_row: empty after insert".into())
5206            })?;
5207        // The hot insert added Hot(new_idx) alongside the still-
5208        // present Cold locator. Drop the Cold entry so future
5209        // lookups return only the fresh hot row.
5210        t.remove_cold_locators_for_key(index_name, key)?;
5211        Ok(Some(new_hot_idx))
5212    }
5213
5214    /// v5.2.3: shadow a frozen row's index entry. Used by DELETE
5215    /// when the row to remove lives in a cold-tier segment — the
5216    /// row body stays in the segment file (becoming garbage) but
5217    /// every `Cold` locator for `key` on `index_name` is removed
5218    /// so PK lookups stop returning it.
5219    ///
5220    /// Returns the number of cold locators retired (0 when the key
5221    /// has no cold entries — the DELETE fell on a hot row or a
5222    /// key that was already absent). Errors when the table /
5223    /// index doesn't exist or the index isn't `BTree`.
5224    ///
5225    /// Cold-segment compaction (which merges shadowed-heavy
5226    /// segments and reclaims their disk footprint) lands in a
5227    /// later v5.x sub-version; until then, repeated UPDATE/DELETE
5228    /// of cold rows can amplify cold-segment disk usage by up to
5229    /// 1-2× — still well under typical LSM-tree shadowing because
5230    /// SPG segments are bulk-baked, not write-merged.
5231    pub fn shadow_cold_row(
5232        &mut self,
5233        table_name: &str,
5234        index_name: &str,
5235        key: &IndexKey,
5236    ) -> Result<usize, StorageError> {
5237        let t = self.get_mut(table_name).ok_or_else(|| {
5238            StorageError::Corrupt(format!("shadow_cold_row: table {table_name:?} not found"))
5239        })?;
5240        t.remove_cold_locators_for_key(index_name, key)
5241    }
5242
5243    /// v6.7.4 — read-only slice preparation for the parallel
5244    /// freezer. Walks rows in `row_range`, builds the
5245    /// `(pk_u64, encoded_body, IndexKey)` triples that the
5246    /// coordinator's k-way merge consumes, sorts the slice by
5247    /// `pk_u64`, and returns a [`FreezeSlice`].
5248    ///
5249    /// Caller invariants:
5250    /// - `row_range.end <= table.rows.len()` (caller's job to
5251    ///   compute the partition).
5252    /// - All slices passed to `commit_freeze_slices` must cover a
5253    ///   contiguous half-open range `[0, total_max_rows)` with no
5254    ///   gaps and no overlaps. The coordinator validates this
5255    ///   invariant before committing.
5256    ///
5257    /// `&self`-only — multiple workers can run this concurrently
5258    /// against the same `Catalog` reference under the engine's
5259    /// write lock (workers don't mutate; the coordinator does).
5260    pub fn prepare_freeze_slice(
5261        &self,
5262        table_name: &str,
5263        index_name: &str,
5264        row_range: core::ops::Range<usize>,
5265    ) -> Result<FreezeSlice, StorageError> {
5266        let table = self.get(table_name).ok_or_else(|| {
5267            StorageError::Corrupt(format!(
5268                "prepare_freeze_slice: table {table_name:?} not found"
5269            ))
5270        })?;
5271        let idx = table
5272            .indices
5273            .iter()
5274            .find(|i| i.name == index_name)
5275            .ok_or_else(|| {
5276                StorageError::Corrupt(format!(
5277                    "prepare_freeze_slice: index {index_name:?} not found on {table_name:?}"
5278                ))
5279            })?;
5280        if !matches!(idx.kind, IndexKind::BTree(_)) {
5281            return Err(StorageError::Corrupt(format!(
5282                "prepare_freeze_slice: index {index_name:?} is NSW; only BTree indices may freeze"
5283            )));
5284        }
5285        if row_range.end > table.rows.len() {
5286            return Err(StorageError::Corrupt(format!(
5287                "prepare_freeze_slice: row_range end {} > row_count {}",
5288                row_range.end,
5289                table.rows.len()
5290            )));
5291        }
5292        let column_position = idx.column_position;
5293        let schema = table.schema.clone();
5294        let mut rows: Vec<(u64, Vec<u8>, IndexKey)> = Vec::with_capacity(row_range.len());
5295        for row_idx in row_range.clone() {
5296            let row = table.rows.get(row_idx).expect("bounds-checked above");
5297            let key = IndexKey::from_value(&row.values[column_position]).ok_or_else(|| {
5298                StorageError::Corrupt(format!(
5299                    "prepare_freeze_slice: row {row_idx} has NULL / non-key value in index column"
5300                ))
5301            })?;
5302            let pk_u64 = index_key_as_u64(&key).ok_or_else(|| {
5303                StorageError::Corrupt(format!(
5304                    "prepare_freeze_slice: index {index_name:?} column type is non-integer; \
5305                     v5.2.2 cold tier requires IndexKey::Int (Text PK lands in v5.5+)"
5306                ))
5307            })?;
5308            rows.push((pk_u64, encode_row_body_dense(row, &schema), key));
5309        }
5310        rows.sort_by_key(|(k, _, _)| *k);
5311        Ok(FreezeSlice { row_range, rows })
5312    }
5313
5314    /// v6.7.4 — coordinator commit step. Merges N
5315    /// [`FreezeSlice`]s into one segment via the standard
5316    /// [`encode_segment`] path, atomically swaps the catalog
5317    /// state (delete the union row range + register Cold
5318    /// locators + load the segment).
5319    ///
5320    /// Validates that the slices cover a contiguous, gap-free,
5321    /// overlap-free half-open range starting at index 0 (the
5322    /// freezer always freezes "oldest first" — same semantics as
5323    /// the single-threaded [`Catalog::freeze_oldest_to_cold`]).
5324    ///
5325    /// Empty `slices` → no-op success (returns a zero-row report
5326    /// without mutating). Total row count = `Σ slice.rows.len()`.
5327    pub fn commit_freeze_slices(
5328        &mut self,
5329        table_name: &str,
5330        index_name: &str,
5331        slices: Vec<FreezeSlice>,
5332    ) -> Result<FreezeReport, StorageError> {
5333        // --- validation phase: never mutates ---------------------
5334        let table = self.get(table_name).ok_or_else(|| {
5335            StorageError::Corrupt(format!(
5336                "commit_freeze_slices: table {table_name:?} not found"
5337            ))
5338        })?;
5339        let idx = table
5340            .indices
5341            .iter()
5342            .find(|i| i.name == index_name)
5343            .ok_or_else(|| {
5344                StorageError::Corrupt(format!(
5345                    "commit_freeze_slices: index {index_name:?} not found on {table_name:?}"
5346                ))
5347            })?;
5348        if !matches!(idx.kind, IndexKind::BTree(_)) {
5349            return Err(StorageError::Corrupt(format!(
5350                "commit_freeze_slices: index {index_name:?} is NSW; only BTree indices may freeze"
5351            )));
5352        }
5353        // Validate slice coverage: contiguous from 0, no gaps, no
5354        // overlaps. Allow the caller to pass slices in any order —
5355        // sort by row_range.start first.
5356        let mut ordered = slices;
5357        ordered.sort_by_key(|s| s.row_range.start);
5358        // Drop fully-empty slices that fell out of an uneven
5359        // partition; they carry no data but contribute to the
5360        // contiguity check, so keep them in line.
5361        let mut expected_start = 0usize;
5362        for s in &ordered {
5363            if s.row_range.start != expected_start {
5364                return Err(StorageError::Corrupt(format!(
5365                    "commit_freeze_slices: gap/overlap at row {}; expected start {}",
5366                    s.row_range.start, expected_start
5367                )));
5368            }
5369            expected_start = s.row_range.end;
5370        }
5371        let max_rows = expected_start;
5372        if max_rows > table.rows.len() {
5373            return Err(StorageError::Corrupt(format!(
5374                "commit_freeze_slices: total row range {} exceeds row_count {}",
5375                max_rows,
5376                table.rows.len()
5377            )));
5378        }
5379        if max_rows == 0 {
5380            return Ok(FreezeReport {
5381                segment_id: u32::MAX,
5382                frozen_rows: 0,
5383                bytes_freed: 0,
5384                segment_bytes: Vec::new(),
5385            });
5386        }
5387
5388        // --- segment build phase: reads only --------------------
5389        // K-way merge of already-sorted slices. Each slice's rows
5390        // are ascending by pk_u64; we keep a per-slice cursor and
5391        // pull the next-smallest head until every cursor drains.
5392        let total_rows: usize = ordered.iter().map(|s| s.rows.len()).sum();
5393        if total_rows != max_rows {
5394            return Err(StorageError::Corrupt(format!(
5395                "commit_freeze_slices: total slice rows {total_rows} ≠ row_range coverage {max_rows}"
5396            )));
5397        }
5398        let mut cursors: Vec<usize> = alloc::vec![0; ordered.len()];
5399        let mut merged: Vec<(u64, Vec<u8>, IndexKey)> = Vec::with_capacity(total_rows);
5400        loop {
5401            // Pick the slice whose head row has the smallest key
5402            // and isn't yet exhausted.
5403            let mut pick: Option<usize> = None;
5404            for (i, c) in cursors.iter().enumerate() {
5405                let slice = &ordered[i];
5406                if *c >= slice.rows.len() {
5407                    continue;
5408                }
5409                match pick {
5410                    None => pick = Some(i),
5411                    Some(j) => {
5412                        if slice.rows[*c].0 < ordered[j].rows[cursors[j]].0 {
5413                            pick = Some(i);
5414                        }
5415                    }
5416                }
5417            }
5418            let Some(i) = pick else { break };
5419            let row = ordered[i].rows[cursors[i]].clone();
5420            cursors[i] += 1;
5421            merged.push(row);
5422        }
5423        // Reject duplicate PKs — same error as the single-threaded
5424        // path so callers get a uniform surface.
5425        for w in merged.windows(2) {
5426            if w[0].0 == w[1].0 {
5427                return Err(StorageError::Corrupt(format!(
5428                    "commit_freeze_slices: duplicate PK {} across slices",
5429                    w[0].0
5430                )));
5431            }
5432        }
5433        let post_swap_keys: Vec<IndexKey> = merged.iter().map(|(_, _, k)| k.clone()).collect();
5434        let seg_rows: Vec<(u64, Vec<u8>)> =
5435            merged.into_iter().map(|(k, body, _)| (k, body)).collect();
5436        let frozen_rows = seg_rows.len();
5437        let (seg_bytes, _meta) = encode_segment(seg_rows.into_iter(), 0.01, SEGMENT_PAGE_BYTES)
5438            .map_err(|e| StorageError::Corrupt(format!("commit_freeze_slices: encode: {e}")))?;
5439
5440        // --- atomic swap phase: mutations only past this point ---
5441        let bytes_before = self.get(table_name).expect("just validated").hot_bytes();
5442        let positions: Vec<usize> = (0..max_rows).collect();
5443        let t_mut = self
5444            .get_mut(table_name)
5445            .expect("just validated; still present");
5446        let removed = t_mut.delete_rows(&positions);
5447        debug_assert_eq!(removed, max_rows, "delete_rows count matches request");
5448        let bytes_after = t_mut.hot_bytes();
5449        let bytes_freed = bytes_before.saturating_sub(bytes_after);
5450
5451        let segment_id = self
5452            .load_segment_bytes(seg_bytes.clone())
5453            .map_err(|e| StorageError::Corrupt(format!("commit_freeze_slices: load: {e}")))?;
5454        let new_cold = post_swap_keys.into_iter().map(|k| {
5455            (
5456                k,
5457                RowLocator::Cold {
5458                    segment_id,
5459                    page_offset: 0,
5460                },
5461            )
5462        });
5463        let t_mut = self.get_mut(table_name).expect("still present");
5464        t_mut.register_cold_locators(index_name, new_cold)?;
5465
5466        Ok(FreezeReport {
5467            segment_id,
5468            frozen_rows,
5469            bytes_freed,
5470            segment_bytes: seg_bytes,
5471        })
5472    }
5473
5474    /// v6.7.3 — compact every cold segment on `(table, index)` whose
5475    /// `OwnedSegment::bytes().len()` is below `target_segment_bytes`
5476    /// into a single larger merged segment. Rows present in source
5477    /// segment payloads but no longer referenced by any
5478    /// `RowLocator::Cold` on the index (DELETE'd + frozen rows
5479    /// retired via [`Catalog::shadow_cold_row`]) are GC'd in the
5480    /// merge.
5481    ///
5482    /// **Semantics**:
5483    /// 1. Walk the BTree index to collect every Cold locator that
5484    ///    targets a small (< threshold) segment. Each such
5485    ///    `(key, segment_id)` becomes a row in the merged segment;
5486    ///    payload is looked up from the source segment in-place.
5487    /// 2. Encode the collected rows into one new segment via
5488    ///    [`encode_segment`]; register it via
5489    ///    [`Catalog::load_segment_bytes`] (allocating a fresh
5490    ///    `merged_segment_id` at the end of `cold_segments`).
5491    /// 3. Rewrite the BTree index in one pass: every
5492    ///    `RowLocator::Cold { segment_id ∈ sources }` becomes
5493    ///    `RowLocator::Cold { segment_id = merged_id, page_offset = 0 }`.
5494    ///    Hot locators are untouched.
5495    /// 4. Tombstone every source slot via
5496    ///    [`Catalog::tombstone_segment`]. Source segment payloads
5497    ///    are no longer reachable through the catalog; the on-disk
5498    ///    files are the caller's concern.
5499    ///
5500    /// On fewer than 2 candidate segments the catalog is **not**
5501    /// mutated and a no-op report (`merged_segment_id: None`,
5502    /// `sources: []`) is returned. This is the routine case — a
5503    /// freshly-frozen table has at most 1 small segment, no merge
5504    /// possible.
5505    ///
5506    /// Atomicity: every mutating step runs after the read-only
5507    /// gather phase, so a panic before the merge encode leaves the
5508    /// catalog unchanged. The mutation block itself (load + rewrite +
5509    /// tombstone) takes only `&mut self` — callers serialise the
5510    /// engine write lock outside this function.
5511    ///
5512    /// Errors when the table / index doesn't exist, the index isn't
5513    /// `BTree`, the index column type isn't u64-coercible (cold-tier
5514    /// pre-condition), or a source segment fails its in-place
5515    /// row-body lookup (would indicate prior catalog corruption).
5516    pub fn compact_cold_segments(
5517        &mut self,
5518        table_name: &str,
5519        index_name: &str,
5520        target_segment_bytes: u64,
5521    ) -> Result<CompactReport, StorageError> {
5522        // --- validation phase ----------------------------------
5523        let t = self.get(table_name).ok_or_else(|| {
5524            StorageError::Corrupt(format!(
5525                "compact_cold_segments: table {table_name:?} not found"
5526            ))
5527        })?;
5528        let idx = t
5529            .indices
5530            .iter()
5531            .find(|i| i.name == index_name)
5532            .ok_or_else(|| {
5533                StorageError::Corrupt(format!(
5534                    "compact_cold_segments: index {index_name:?} not found on {table_name:?}"
5535                ))
5536            })?;
5537        let map = match &idx.kind {
5538            IndexKind::BTree(m) => m,
5539            IndexKind::Nsw(_)
5540            | IndexKind::Brin { .. }
5541            | IndexKind::Gin(_)
5542            | IndexKind::GinTrgm(_)
5543            | IndexKind::GinFulltext(_) => {
5544                return Err(StorageError::Corrupt(format!(
5545                    "compact_cold_segments: index {index_name:?} is not BTree; \
5546                     compaction applies only to BTree cold-tier indices"
5547                )));
5548            }
5549        };
5550
5551        // --- gather phase --------------------------------------
5552        // Step A: every segment_id this BTree index Cold-references.
5553        let mut referenced_ids: BTreeSet<u32> = BTreeSet::new();
5554        for (_key, locators) in map.iter() {
5555            for loc in locators {
5556                if let RowLocator::Cold { segment_id, .. } = loc {
5557                    referenced_ids.insert(*segment_id);
5558                }
5559            }
5560        }
5561        // Step B: keep only the small + still-active ones.
5562        let candidate_set: BTreeSet<u32> = referenced_ids
5563            .into_iter()
5564            .filter(|id| {
5565                self.cold_segments
5566                    .get(*id as usize)
5567                    .and_then(|s| s.as_deref())
5568                    .is_some_and(|s| (s.bytes().len() as u64) < target_segment_bytes)
5569            })
5570            .collect();
5571        if candidate_set.len() < 2 {
5572            return Ok(CompactReport {
5573                sources: Vec::new(),
5574                merged_segment_id: None,
5575                merged_segment_bytes: Vec::new(),
5576                merged_rows: 0,
5577                deleted_rows_pruned: 0,
5578                bytes_reclaimed_estimate: 0,
5579            });
5580        }
5581        // Step C: pre-count source rows for the deleted-pruned metric.
5582        let mut source_row_count: usize = 0;
5583        let mut source_byte_total: u64 = 0;
5584        for &id in &candidate_set {
5585            let seg = self.cold_segments[id as usize]
5586                .as_ref()
5587                .expect("candidate selected only when slot is Some");
5588            source_row_count = source_row_count.saturating_add(seg.meta().num_rows as usize);
5589            source_byte_total = source_byte_total.saturating_add(seg.bytes().len() as u64);
5590        }
5591        // Step D: collect (key, body) pairs from every live Cold
5592        // locator pointing at a candidate. dedupe by key — one
5593        // BTree key resolves to at most one cold payload (the
5594        // freezer + promote/shadow flow keeps Cold locators
5595        // unique per key).
5596        let mut collected: BTreeMap<u64, (Vec<u8>, IndexKey)> = BTreeMap::new();
5597        for (key, locators) in map.iter() {
5598            for loc in locators {
5599                let RowLocator::Cold { segment_id, .. } = loc else {
5600                    continue;
5601                };
5602                if !candidate_set.contains(segment_id) {
5603                    continue;
5604                }
5605                let u64_key = index_key_as_u64(key).ok_or_else(|| {
5606                    StorageError::Corrupt(format!(
5607                        "compact_cold_segments: index {index_name:?} has non-integer Cold key; \
5608                         cold tier requires IndexKey::Int (Text PK lands in v5.5+)"
5609                    ))
5610                })?;
5611                let seg = self.cold_segments[*segment_id as usize]
5612                    .as_ref()
5613                    .expect("candidate slot guaranteed Some above");
5614                let payload = seg.lookup(u64_key).ok_or_else(|| {
5615                    StorageError::Corrupt(format!(
5616                        "compact_cold_segments: BTree {index_name:?} points key={u64_key} \
5617                         at segment {segment_id} but the segment lookup missed"
5618                    ))
5619                })?;
5620                collected.insert(u64_key, (payload, key.clone()));
5621                break;
5622            }
5623        }
5624        let merged_rows = collected.len();
5625        let deleted_rows_pruned = source_row_count.saturating_sub(merged_rows);
5626
5627        // Step E: encode the merged segment. `BTreeMap<u64, _>`
5628        // iteration is ascending by key, which is what
5629        // `encode_segment` requires.
5630        let seg_rows: Vec<(u64, Vec<u8>)> = collected
5631            .iter()
5632            .map(|(k, (body, _))| (*k, body.clone()))
5633            .collect();
5634        let (seg_bytes, _meta) = encode_segment(seg_rows.into_iter(), 0.01, SEGMENT_PAGE_BYTES)
5635            .map_err(|e| StorageError::Corrupt(format!("compact_cold_segments: encode: {e}")))?;
5636        let merged_bytes_len = seg_bytes.len() as u64;
5637
5638        // --- atomic mutation phase ------------------------------
5639        let merged_segment_id = self
5640            .load_segment_bytes(seg_bytes.clone())
5641            .map_err(|e| StorageError::Corrupt(format!("compact_cold_segments: load: {e}")))?;
5642
5643        // Rewrite the BTree index: every Cold locator pointing at
5644        // a candidate source becomes a Cold locator pointing at
5645        // the merged segment. Use a flat collect-then-replace
5646        // pattern so we never hold a `&self` borrow across the
5647        // `&mut self` write.
5648        let entries: Vec<(IndexKey, Vec<RowLocator>)> = {
5649            let t = self
5650                .get(table_name)
5651                .expect("table existed at the start of this fn");
5652            let idx = t
5653                .indices
5654                .iter()
5655                .find(|i| i.name == index_name)
5656                .expect("index existed at the start of this fn");
5657            let IndexKind::BTree(map) = &idx.kind else {
5658                unreachable!("validated above");
5659            };
5660            map.iter().map(|(k, v)| (k.clone(), v.clone())).collect()
5661        };
5662        let t_mut = self
5663            .get_mut(table_name)
5664            .expect("table existed at the start of this fn");
5665        let idx_mut = t_mut
5666            .indices
5667            .iter_mut()
5668            .find(|i| i.name == index_name)
5669            .expect("index existed at the start of this fn");
5670        let IndexKind::BTree(map_mut) = &mut idx_mut.kind else {
5671            unreachable!("validated above");
5672        };
5673        for (key, locators) in entries {
5674            let mut new_locs: Vec<RowLocator> = Vec::with_capacity(locators.len());
5675            let mut changed = false;
5676            for loc in &locators {
5677                match *loc {
5678                    RowLocator::Cold {
5679                        segment_id,
5680                        page_offset: _,
5681                    } if candidate_set.contains(&segment_id) => {
5682                        let replacement = RowLocator::Cold {
5683                            segment_id: merged_segment_id,
5684                            page_offset: 0,
5685                        };
5686                        if !new_locs.contains(&replacement) {
5687                            new_locs.push(replacement);
5688                        }
5689                        changed = true;
5690                    }
5691                    other => new_locs.push(other),
5692                }
5693            }
5694            if changed {
5695                map_mut.insert_mut(key, new_locs);
5696            }
5697        }
5698
5699        // Tombstone every source slot. Last step — failures here
5700        // would leave the segment double-referenced in both
5701        // memory + manifest, but `tombstone_segment` only errors
5702        // on out-of-bounds, which we've already validated.
5703        for &id in &candidate_set {
5704            self.tombstone_segment(id)?;
5705        }
5706
5707        let bytes_reclaimed_estimate = source_byte_total.saturating_sub(merged_bytes_len);
5708        Ok(CompactReport {
5709            sources: candidate_set.into_iter().collect(),
5710            merged_segment_id: Some(merged_segment_id),
5711            merged_segment_bytes: seg_bytes,
5712            merged_rows,
5713            deleted_rows_pruned,
5714            bytes_reclaimed_estimate,
5715        })
5716    }
5717
5718    /// Internal helper: scan `(table, index)` for a `Cold` locator
5719    /// keyed by `key`. Returns `Ok(Some((segment_id, page_offset)))`
5720    /// when found, `Ok(None)` when the key has only hot entries
5721    /// or no entries at all, `Err` on the same input-validation
5722    /// errors as the public `promote_cold_row` / `shadow_cold_row`.
5723    fn find_cold_locator(
5724        &self,
5725        table_name: &str,
5726        index_name: &str,
5727        key: &IndexKey,
5728    ) -> Result<Option<(u32, u32)>, StorageError> {
5729        let t = self.get(table_name).ok_or_else(|| {
5730            StorageError::Corrupt(format!("find_cold_locator: table {table_name:?} not found"))
5731        })?;
5732        let idx = t
5733            .indices
5734            .iter()
5735            .find(|i| i.name == index_name)
5736            .ok_or_else(|| {
5737                StorageError::Corrupt(format!(
5738                    "find_cold_locator: index {index_name:?} not found on {table_name:?}"
5739                ))
5740            })?;
5741        if !matches!(idx.kind, IndexKind::BTree(_)) {
5742            return Err(StorageError::Corrupt(format!(
5743                "find_cold_locator: index {index_name:?} is NSW; promote-on-write only applies to BTree indices"
5744            )));
5745        }
5746        for loc in idx.lookup_eq(key) {
5747            if let RowLocator::Cold {
5748                segment_id,
5749                page_offset,
5750            } = *loc
5751            {
5752                return Ok(Some((segment_id, page_offset)));
5753            }
5754        }
5755        Ok(None)
5756    }
5757}
5758
5759/// Coerce an [`IndexKey`] to the `u64` that v5.1 cold-tier
5760/// segments use as their on-disk PK. Returns `None` for keys that
5761/// aren't representable as `u64` — Text PKs need a hash mapping
5762/// the segment writer baked in (deferred to v5.2+), Bool PKs are
5763/// almost never wide enough to be sharded into a cold tier.
5764fn index_key_as_u64(key: &IndexKey) -> Option<u64> {
5765    match key {
5766        // Reinterpret the i64 bit pattern as u64. Cold-tier segments
5767        // are sorted by this u64 view, so the chosen interpretation
5768        // only has to match between insert (bake_segment / freezer)
5769        // and lookup — using cast_unsigned keeps both sides honest
5770        // and silences clippy::cast_sign_loss.
5771        IndexKey::Int(n) => Some(n.cast_unsigned()),
5772        // Text / Bool / Uuid PKs aren't representable as u64 and so
5773        // can't participate in the u64-sorted cold-tier segment
5774        // PK layout. Same deferral story as Text — lookup falls
5775        // through the in-memory btree.
5776        IndexKey::Text(_) | IndexKey::Bool(_) | IndexKey::Uuid(_) => None,
5777    }
5778}
5779
5780#[derive(Debug, Clone, PartialEq, Eq)]
5781#[non_exhaustive]
5782pub enum StorageError {
5783    DuplicateTable {
5784        name: String,
5785    },
5786    TableNotFound {
5787        name: String,
5788    },
5789    ArityMismatch {
5790        expected: usize,
5791        actual: usize,
5792    },
5793    TypeMismatch {
5794        column: String,
5795        expected: DataType,
5796        actual: DataType,
5797        position: usize,
5798    },
5799    NullInNotNull {
5800        column: String,
5801    },
5802    /// Index with this name already exists on the table.
5803    DuplicateIndex {
5804        name: String,
5805    },
5806    /// Column referenced by an index doesn't exist on the table.
5807    ColumnNotFound {
5808        column: String,
5809    },
5810    /// On-disk format failed to parse — corrupted file, wrong magic, truncated
5811    /// payload, or unknown tag bytes.
5812    Corrupt(String),
5813    /// v6.0.4 — ALTER INDEX targeted an index name that doesn't
5814    /// exist on any table in this catalog.
5815    IndexNotFound {
5816        name: String,
5817    },
5818    /// v6.0.4 — operation requested isn't supported on this index
5819    /// kind / column type (e.g. ALTER INDEX REBUILD on a `BTree`
5820    /// index, or REBUILD WITH (encoding=…) on a non-vector column).
5821    Unsupported(String),
5822}
5823
5824impl fmt::Display for StorageError {
5825    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
5826        match self {
5827            Self::DuplicateTable { name } => write!(f, "table already exists: {name}"),
5828            Self::TableNotFound { name } => write!(f, "table not found: {name}"),
5829            Self::ArityMismatch { expected, actual } => write!(
5830                f,
5831                "row arity mismatch: expected {expected} columns, got {actual}"
5832            ),
5833            Self::TypeMismatch {
5834                column,
5835                expected,
5836                actual,
5837                position,
5838            } => write!(
5839                f,
5840                "type mismatch in column {column:?} (position {position}): expected {expected}, got {actual}"
5841            ),
5842            Self::NullInNotNull { column } => {
5843                write!(f, "NULL value in NOT NULL column {column:?}")
5844            }
5845            Self::DuplicateIndex { name } => write!(f, "index already exists: {name}"),
5846            Self::ColumnNotFound { column } => write!(f, "column not found: {column}"),
5847            Self::Corrupt(detail) => write!(f, "corrupt on-disk format: {detail}"),
5848            Self::IndexNotFound { name } => write!(f, "index not found: {name}"),
5849            Self::Unsupported(detail) => write!(f, "unsupported: {detail}"),
5850        }
5851    }
5852}
5853
5854impl ColumnSchema {
5855    pub fn new(name: impl Into<String>, ty: DataType, nullable: bool) -> Self {
5856        Self {
5857            name: name.into(),
5858            ty,
5859            nullable,
5860            default: None,
5861            runtime_default: None,
5862            auto_increment: false,
5863            user_enum_type: None,
5864            user_domain_type: None,
5865            on_update_runtime: None,
5866            collation: Collation::Binary,
5867            is_unsigned: false,
5868            inline_enum_variants: None,
5869            inline_set_variants: None,
5870        }
5871    }
5872
5873    /// Builder-style helper to attach a default value to an otherwise
5874    /// plain column schema. Used by the engine when CREATE TABLE
5875    /// specifies `column TYPE DEFAULT <expr>`.
5876    #[must_use]
5877    pub fn with_default(mut self, default: Value) -> Self {
5878        self.default = Some(default);
5879        self
5880    }
5881
5882    /// v7.9.21 — builder for runtime-evaluated defaults
5883    /// (`DEFAULT now()`, `DEFAULT CURRENT_TIMESTAMP`, …).
5884    /// `expr` is the Expr's `Display` form, re-parsed by the
5885    /// engine at each INSERT.
5886    #[must_use]
5887    pub fn with_runtime_default(mut self, expr: impl Into<String>) -> Self {
5888        self.runtime_default = Some(expr.into());
5889        self
5890    }
5891
5892    /// Builder-style helper to mark a column as `AUTO_INCREMENT`.
5893    #[must_use]
5894    pub const fn with_auto_increment(mut self) -> Self {
5895        self.auto_increment = true;
5896        self
5897    }
5898}
5899
5900impl TableSchema {
5901    pub fn new(name: impl Into<String>, columns: Vec<ColumnSchema>) -> Self {
5902        Self {
5903            name: name.into(),
5904            columns,
5905            hot_tier_bytes: None,
5906            foreign_keys: Vec::new(),
5907            uniqueness_constraints: Vec::new(),
5908            checks: Vec::new(),
5909        }
5910    }
5911}
5912
5913// =========================================================================
5914// Persistent binary format for the catalog.
5915//
5916// Layout (little-endian throughout):
5917//
5918//   [magic "SPGDB001" 8 bytes][version u8]
5919//   [table_count u32]
5920//   for each table:
5921//       [name_len u16][name bytes]
5922//       [col_count u16]
5923//       for each col:
5924//           [name_len u16][name bytes]
5925//           [type_tag u8 + optional payload]
5926//               1=Int 2=BigInt 3=Float 4=Text 5=Bool
5927//               6=Vector(u32 dim)
5928//               7=SmallInt
5929//               8=Varchar(u32 max)
5930//               9=Char(u32 size)
5931//               10=Numeric(u8 precision, u8 scale)
5932//               11=Date
5933//               12=Timestamp
5934//           [nullable u8]   0/1
5935//           [default_tag u8] 0=none 1=value (followed by [value_tag u8] + bytes)
5936//       [row_count u32]
5937//       for each row, for each col, one [value_tag u8] + value bytes:
5938//           tag 0 (Null)     → no body
5939//           tag 1 (Int)      → i32 LE
5940//           tag 2 (BigInt)   → i64 LE
5941//           tag 3 (Float)    → f64 LE
5942//           tag 4 (Text)     → u16 LE len + UTF-8 bytes
5943//           tag 5 (Bool)     → u8 0/1
5944//           tag 6 (Vector)   → u32 LE dim + dim×f32 LE
5945//           tag 7 (SmallInt) → i16 LE
5946//           tag 8 (Numeric)  → i128 LE (16 bytes) + u8 scale
5947//           tag 9 (Date)     → i32 LE (days since Unix epoch)
5948//           tag 10 (Timestamp) → i64 LE (microseconds since Unix epoch)
5949//
5950// Bumped to version 3 when NUMERIC was added; to version 4 when
5951// AUTO_INCREMENT (per-column flag) + NSW index `kind` byte landed;
5952// to version 5 when DATE / TIMESTAMP were added; to version 6 when
5953// NSW graph topology started travelling on disk (v2.7); to version 7
5954// when the NSW topology became multi-layer HNSW (v2.13); to version 8
5955// when row encoding switched to schema-driven dense layout (v3.0.2 —
5956// per-row NULL bitmap + per-column fixed-width body, no per-cell type
5957// tag).
5958// =========================================================================
5959
5960const FILE_MAGIC: &[u8; 8] = b"SPGDB001";
5961/// Current catalog snapshot format version emitted by [`Catalog::serialize`].
5962///
5963/// v9 (v5.2) extends v8 by serialising `BTree` index entries directly — every
5964/// `(IndexKey, Vec<RowLocator>)` pair travels on disk with the v5.1
5965/// `RowLocator::write_le` tag-prefixed codec. v8 `BTree` indices stored no
5966/// entries at all (the map was rebuilt from `Table::rows` on load); v9
5967/// preserves on-disk Cold locators so freezer-produced cold-tier index
5968/// entries survive a catalog snapshot round-trip. v8 readers are accepted
5969/// by version dispatch in [`Catalog::deserialize`] — every entry decodes
5970/// as `RowLocator::Hot(_)` via `add_index` rebuild, identical to v5.1
5971/// behaviour.
5972/// v6.7.2 — bumped from 10 to 11 to append per-table
5973/// `hot_tier_bytes: Option<u64>` after the per-table indices
5974/// section. v10 catalogs (v6.7.1) load with `hot_tier_bytes =
5975/// None` for every table (the deserialiser short-circuits when
5976/// version < 11). v11 snapshots written by a pre-v6.7.2 binary
5977/// fail loudly at the version check, matching the v6.1.2 /
5978/// v6.1.4 / v6.2.0 / v6.7.1 envelope-bump upgrade fences.
5979///
5980/// v6.8.0 — bumped from 11 to 12: per-index
5981/// `included_columns: Vec<u16>` appended at the tail of each
5982/// index payload. v11 (= v6.7.2) catalogs load with
5983/// `included_columns = Vec::new()` for every index — same
5984/// "older readers, append-only extension" pattern as the v6.7.2
5985/// hot_tier_bytes byte.
5986/// v7.13.0 — bumped from 22 to 23. mailrs round-5 G3 / G10.
5987/// Per-table appendix gains two new sections:
5988///   * `checks: Vec<String>` — CHECK predicate sources (Display
5989///     form of the AST Expr); re-parsed on INSERT/UPDATE to
5990///     enforce against candidate rows. Same persistence pattern
5991///     as `Index::partial_predicate`.
5992///   * Per `UniquenessConstraint`: trailing `nulls_not_distinct:
5993///     u8` flag for PG 15+ `UNIQUE NULLS NOT DISTINCT (cols)`
5994///     semantics.
5995/// v22 catalogs deserialise with empty `checks` and every UC
5996/// at `nulls_not_distinct = false`.
5997/// v24 introduces:
5998///   * Index kind tag 4 = trigram-GIN (`gin_trgm_ops`-flavoured
5999///     `USING gin` over a TEXT/VARCHAR column). Payload shape is
6000///     identical to tag-3 GIN (String → Vec<RowLocator>); the
6001///     keys are PG-compatible 3-byte trigram shingles instead of
6002///     tsvector lexemes. v23 catalogs deserialise unchanged — no
6003///     v23 writer ever emitted tag 4.
6004/// v25 introduces:
6005///   * Per `TriggerDef`: trailing `enabled: u8` flag (mailrs
6006///     round-9 A.2.b — `ALTER TABLE … { ENABLE | DISABLE }
6007///     TRIGGER …`). v24 catalogs deserialise with every trigger
6008///     `enabled = true`, matching pre-v7.16.1 behaviour.
6009/// v26 introduces (v7.17.0 Phase 1.1):
6010///   * Trailing SEQUENCE catalog block after triggers. Encoded
6011///     as `u32 count` followed by per-sequence:
6012///     `name`, `data_type: u8` (0=SmallInt,1=Int,2=BigInt),
6013///     `start i64`, `increment i64`, `min_value i64`,
6014///     `max_value i64`, `cache i64`, `cycle u8`,
6015///     `owned_by_tag u8` (0=NONE, 1=Column → `table`,`column`),
6016///     `last_value i64`, `is_called u8`. v25-and-below catalogs
6017///     deserialise with an empty sequences map.
6018/// v27 introduces (v7.17.0 Phase 1.2):
6019///   * Trailing VIEW catalog block after sequences. Encoded as
6020///     `u32 count` followed by per-view:
6021///     `name`, `column_count u16`, then column names, then
6022///     `body` long-string. v26-and-below catalogs deserialise
6023///     with an empty views map.
6024/// v28 introduces (v7.17.0 Phase 1.3):
6025///   * Trailing MATERIALIZED VIEW source registry block after
6026///     views. Encoded as `u32 count` followed by per-entry:
6027///     `name`, `body` long-string. The materialised rows live
6028///     as a regular Table of the same name (already covered by
6029///     the pre-existing tables block). v27-and-below catalogs
6030///     deserialise with an empty map.
6031/// v29 introduces (v7.17.0 Phase 1.4):
6032///   * Per-table user_enum_type appendix (after the CHECK
6033///     appendix). Layout: `u16 count` followed by per-binding
6034///     `[u16 col_pos][str enum_name]`. Only columns whose
6035///     `user_enum_type` is Some land here; the catalog stays
6036///     compact for the common no-enum case.
6037///   * Trailing ENUM types catalog block after materialized
6038///     views. Encoded as `u32 count` followed by per-entry:
6039///     `name`, `u16 label_count`, then `label_count` short
6040///     strings. v28-and-below catalogs deserialise with an
6041///     empty enum_types map and every column's
6042///     `user_enum_type = None`.
6043/// v30 introduces (v7.17.0 Phase 1.5):
6044///   * Per-table user_domain_type appendix (after the
6045///     user_enum_type appendix). Same shape as the enum one.
6046///   * Trailing DOMAIN types catalog block after the enum
6047///     block. Encoded as `u32 count` followed by per-entry:
6048///     `name`, `data_type` byte, `nullable u8`,
6049///     `default_present u8` + optional default string,
6050///     `u16 check_count` then `check_count` Display-form
6051///     CHECK strings. v29-and-below catalogs deserialise with
6052///     an empty domain_types map and `user_domain_type = None`.
6053/// v31 introduces (v7.17.0 Phase 1.6):
6054///   * Trailing user-schemas block after the DOMAIN block.
6055///     Encoded as `u32 count` followed by `count` schema-name
6056///     short strings. Built-in schemas (`public`, `pg_catalog`,
6057///     `information_schema`) are NOT serialised — they're
6058///     hardcoded in `is_builtin_schema`. v30-and-below catalogs
6059///     deserialise with an empty user-schemas set.
6060/// v32 introduces (v7.17.0 Phase 2.1):
6061///   * Per-table on_update_runtime appendix (after the
6062///     user_domain_type appendix). Layout: `u16 count` followed
6063///     by per-binding `[u16 col_pos][str expr_src]`. Only
6064///     columns whose `on_update_runtime` is Some land here;
6065///     the catalog stays compact when no MySQL-shaped table
6066///     uses the attribute. v31-and-below catalogs deserialise
6067///     with every column's `on_update_runtime = None`.
6068/// v33 introduces (v7.17.0 Phase 2.2):
6069///   * Index kind tag 5 = fulltext-GIN (MySQL `FULLTEXT KEY`
6070///     surface over a TEXT / VARCHAR column). Payload shape is
6071///     identical to tag-3 / tag-4 GIN (`String → Vec<RowLocator>`);
6072///     the keys are lower-cased word lexemes (same rule as
6073///     `to_tsvector('simple', text)`). v32 catalogs deserialise
6074///     unchanged — no v32 writer ever emitted tag 5, and FULLTEXT
6075///     KEY was silently dropped pre-v7.17 so no rebuild shim is
6076///     needed for round-tripped catalogs.
6077/// v34 introduces (v7.17.0 Phase 2.5):
6078///   * Per-table collation appendix (after the on_update_runtime
6079///     appendix). Sparse layout: only columns whose `collation`
6080///     is non-Binary land here. `u16 count` then per-binding
6081///     `[u16 col_pos][u8 collation_tag]` where the tag matches
6082///     `Collation::TAG_*`. Snapshots written by v33-and-below
6083///     readers deserialise every column with `collation =
6084///     Binary`, preserving the prior byte-wise compare
6085///     semantics. Unknown tags read back as Binary too — keeps
6086///     a forward-compat path if a future v35 adds variants
6087///     and someone rolls back to a v34 reader.
6088/// v35 introduces (v7.17.0 Phase 4.4):
6089///   * Per-table is_unsigned appendix (after the collation
6090///     appendix). Sparse layout: only `is_unsigned = true`
6091///     columns land. `u16 count` then per-binding `[u16 col_pos]`.
6092///     v34-and-below catalogs deserialise every column as
6093///     `is_unsigned = false`, preserving the prior silent-
6094///     accept behaviour for negative inserts on UNSIGNED columns.
6095const FILE_VERSION: u8 = 45;
6096/// Oldest format version [`Catalog::deserialize`] still accepts. v8 is the
6097/// v3.0.2 dense-row layout; pre-v8 catalogs require an offline migration.
6098const MIN_SUPPORTED_FILE_VERSION: u8 = 8;
6099
6100// IndexKey wire format (v9):
6101//   tag 0 = Int  → [i64 LE]
6102//   tag 1 = Text → [u16 LE len + UTF-8 bytes] (via write_str / read_str)
6103//   tag 2 = Bool → [u8 0/1]
6104const INDEX_KEY_TAG_INT: u8 = 0;
6105const INDEX_KEY_TAG_TEXT: u8 = 1;
6106const INDEX_KEY_TAG_BOOL: u8 = 2;
6107/// v7.17.0 — `IndexKey::Uuid([u8; 16])`. Body = raw 16 bytes
6108/// (RFC 4122 byte order). Persisted only in FILE_VERSION 36+
6109/// catalogs.
6110const INDEX_KEY_TAG_UUID: u8 = 3;
6111
6112impl Catalog {
6113    /// Serialize the whole catalog (schema + every row) into a self-contained
6114    /// byte buffer. Format is documented above the impl block.
6115    pub fn serialize(&self) -> Vec<u8> {
6116        let mut out = Vec::with_capacity(64);
6117        out.extend_from_slice(FILE_MAGIC);
6118        out.push(FILE_VERSION);
6119        write_u32(
6120            &mut out,
6121            u32::try_from(self.tables.len()).expect("≤ 4G tables"),
6122        );
6123        for t in &self.tables {
6124            write_str(&mut out, &t.schema.name);
6125            write_u16(
6126                &mut out,
6127                u16::try_from(t.schema.columns.len()).expect("≤ 65k columns/table"),
6128            );
6129            for c in &t.schema.columns {
6130                write_str(&mut out, &c.name);
6131                write_data_type(&mut out, c.ty);
6132                out.push(u8::from(c.nullable));
6133                match &c.default {
6134                    None => out.push(0),
6135                    Some(v) => {
6136                        out.push(1);
6137                        write_value(&mut out, v);
6138                    }
6139                }
6140                out.push(u8::from(c.auto_increment));
6141            }
6142            write_u32(
6143                &mut out,
6144                u32::try_from(t.rows.len()).expect("≤ 4G rows/table"),
6145            );
6146            // v3.0.2 dense row encoding (FILE_VERSION 8): per-row NULL
6147            // bitmap, then tightly-packed bodies. Identical wire format
6148            // as before — extracted into `encode_row_body_dense` so cold-
6149            // tier segments (v5.1+) can share the encoding.
6150            for row in &t.rows {
6151                out.extend_from_slice(&encode_row_body_dense(row, &t.schema));
6152            }
6153            // Index definitions. Per-index payload:
6154            //   [name][col_pos u16][kind u8]
6155            //     kind 0 = B-tree           (no params — rebuilt on load)
6156            //     kind 1 = NSW graph        (u16 M + serialized graph)
6157            // For NSW the graph topology travels on disk so startup
6158            // doesn't re-run the O(n²M) rebuild — see v2.7 notes.
6159            write_u16(
6160                &mut out,
6161                u16::try_from(t.indices.len()).expect("≤ 65k indices/table"),
6162            );
6163            for idx in &t.indices {
6164                write_str(&mut out, &idx.name);
6165                write_u16(
6166                    &mut out,
6167                    u16::try_from(idx.column_position).expect("≤ 65k columns/table"),
6168                );
6169                match &idx.kind {
6170                    IndexKind::BTree(map) => {
6171                        out.push(0);
6172                        // v9: serialise the full PB map. Each entry's
6173                        // RowLocator list travels with the tag-prefixed
6174                        // codec from `row_locator::write_le`, so freezer-
6175                        // produced Cold locators survive a snapshot
6176                        // round-trip. v8 BTree wrote nothing here and
6177                        // rebuilt from rows — v9 readers tolerate v8 by
6178                        // version dispatch in `Catalog::deserialize`.
6179                        write_u32(
6180                            &mut out,
6181                            u32::try_from(map.len()).expect("≤ 4G index entries/index"),
6182                        );
6183                        for (key, locators) in map {
6184                            write_index_key(&mut out, key);
6185                            write_u32(
6186                                &mut out,
6187                                u32::try_from(locators.len()).expect("≤ 4G locators/key"),
6188                            );
6189                            for loc in locators {
6190                                loc.write_le(&mut out);
6191                            }
6192                        }
6193                    }
6194                    IndexKind::Nsw(g) => {
6195                        out.push(1);
6196                        write_u16(&mut out, u16::try_from(g.m).expect("≤ 65k NSW neighbours"));
6197                        write_nsw_graph(&mut out, g);
6198                    }
6199                    IndexKind::Brin { column_type } => {
6200                        // v6.7.1 — tag byte 2 = BRIN. Payload is the
6201                        // column type code (1 byte mapping to the
6202                        // shared DataType numeric encoding); no
6203                        // further data — BRIN summaries live in
6204                        // cold segments, not the catalog.
6205                        out.push(2);
6206                        write_data_type(&mut out, *column_type);
6207                    }
6208                    IndexKind::Gin(map) => {
6209                        // v7.12.3 — tag byte 3 = GIN. Payload mirrors
6210                        // the BTree encoding but with String (lexeme
6211                        // word) keys instead of IndexKey. Tag-prefixed
6212                        // RowLocator codec so freezer-produced Cold
6213                        // locators survive snapshot round-trip.
6214                        // FILE_VERSION 21+; v20 catalogs never wrote a
6215                        // GIN index (the AM degraded to BTree fallback
6216                        // pre-v7.12.3), so no migration shim is needed.
6217                        out.push(3);
6218                        write_u32(
6219                            &mut out,
6220                            u32::try_from(map.len()).expect("≤ 4G GIN posting lists"),
6221                        );
6222                        for (word, locators) in map {
6223                            write_str(&mut out, word);
6224                            write_u32(
6225                                &mut out,
6226                                u32::try_from(locators.len()).expect("≤ 4G locators/posting list"),
6227                            );
6228                            for loc in locators {
6229                                loc.write_le(&mut out);
6230                            }
6231                        }
6232                    }
6233                    IndexKind::GinTrgm(map) => {
6234                        // v7.15.0 — tag byte 4 = GinTrgm
6235                        // (`gin_trgm_ops` GIN over a TEXT column).
6236                        // Payload shape is identical to tag-3 GIN —
6237                        // `String → Vec<RowLocator>` posting lists.
6238                        // The String keys are 3-byte trigrams instead
6239                        // of tsvector lexemes; the deserializer
6240                        // dispatches on the tag, not the key shape.
6241                        // FILE_VERSION 24+; v23 catalogs never wrote
6242                        // a trigram-GIN.
6243                        out.push(4);
6244                        write_u32(
6245                            &mut out,
6246                            u32::try_from(map.len()).expect("≤ 4G trigram-GIN posting lists"),
6247                        );
6248                        for (tri, locators) in map {
6249                            write_str(&mut out, tri);
6250                            write_u32(
6251                                &mut out,
6252                                u32::try_from(locators.len()).expect("≤ 4G locators/posting list"),
6253                            );
6254                            for loc in locators {
6255                                loc.write_le(&mut out);
6256                            }
6257                        }
6258                    }
6259                    IndexKind::GinFulltext(map) => {
6260                        // v7.17.0 Phase 2.2 — tag byte 5 =
6261                        // GinFulltext (MySQL `FULLTEXT KEY` GIN
6262                        // over a TEXT/VARCHAR column). Payload
6263                        // shape mirrors tag-3 / tag-4 GIN —
6264                        // `String → Vec<RowLocator>` posting
6265                        // lists keyed by lower-cased word
6266                        // lexemes. FILE_VERSION 33+; v32 catalogs
6267                        // never wrote a fulltext-GIN (FULLTEXT
6268                        // KEY was silently dropped pre-v7.17).
6269                        out.push(5);
6270                        write_u32(
6271                            &mut out,
6272                            u32::try_from(map.len()).expect("≤ 4G fulltext-GIN posting lists"),
6273                        );
6274                        for (lex, locators) in map {
6275                            write_str(&mut out, lex);
6276                            write_u32(
6277                                &mut out,
6278                                u32::try_from(locators.len()).expect("≤ 4G locators/posting list"),
6279                            );
6280                            for loc in locators {
6281                                loc.write_le(&mut out);
6282                            }
6283                        }
6284                    }
6285                }
6286                // v6.8.0 — included_columns appendix per index.
6287                // Layout: [u16 num_included][num × u16 column_position].
6288                // v11 readers stop before this u16 (deserialise loop
6289                // gated on version >= 12); v12+ readers always
6290                // consume it. Empty Vec serialises as a bare 0u16.
6291                write_u16(
6292                    &mut out,
6293                    u16::try_from(idx.included_columns.len()).expect("≤ 65k INCLUDE columns/index"),
6294                );
6295                for col_pos in &idx.included_columns {
6296                    write_u16(
6297                        &mut out,
6298                        u16::try_from(*col_pos).expect("≤ 65k columns/table"),
6299                    );
6300                }
6301                // v6.8.1 — partial_predicate appendix per index.
6302                // Layout: [u8 has_pred][u16 LE len][bytes (if has_pred)].
6303                // Same v12 gate as included_columns.
6304                match &idx.partial_predicate {
6305                    None => out.push(0),
6306                    Some(pred) => {
6307                        out.push(1);
6308                        write_str(&mut out, pred);
6309                    }
6310                }
6311                // v6.8.2 — expression appendix. Same shape as
6312                // partial_predicate.
6313                match &idx.expression {
6314                    None => out.push(0),
6315                    Some(expr) => {
6316                        out.push(1);
6317                        write_str(&mut out, expr);
6318                    }
6319                }
6320                // v7.9.29 — is_unique appendix (FILE_VERSION 16+).
6321                // Single byte 0/1. v15-and-below readers stop before
6322                // this byte; v16 readers always consume it. mailrs K1.
6323                out.push(u8::from(idx.is_unique));
6324                // v7.9.29 — extra_column_positions appendix.
6325                // Layout: [u16 count][count × u16 column_position].
6326                write_u16(
6327                    &mut out,
6328                    u16::try_from(idx.extra_column_positions.len())
6329                        .expect("≤ 65k extra cols / index"),
6330                );
6331                for cp in &idx.extra_column_positions {
6332                    write_u16(&mut out, u16::try_from(*cp).expect("≤ 65k columns/table"));
6333                }
6334            }
6335            // v6.7.2 — per-table hot_tier_bytes Option<u64>.
6336            // Layout: [u8 has_value][u64 LE value (if has_value)].
6337            // v10 readers stop before this byte (deserialise loop
6338            // gated on version >= 11); v11+ readers always
6339            // consume it.
6340            match t.schema.hot_tier_bytes {
6341                None => out.push(0),
6342                Some(n) => {
6343                    out.push(1);
6344                    out.extend_from_slice(&n.to_le_bytes());
6345                }
6346            }
6347            // v7.6.1 — FOREIGN KEY appendix (catalog FILE_VERSION 13+).
6348            // Layout: [u16 LE fk_count]
6349            //   per fk:
6350            //     [u8 has_name] [str name (if has_name)]
6351            //     [u16 LE local_arity] [u16 LE local_pos]*arity
6352            //     [str parent_table]
6353            //     [u16 LE parent_arity] [u16 LE parent_pos]*arity
6354            //     [u8 on_delete_tag] [u8 on_update_tag]
6355            // Older catalogs (v12 and below) skip this block entirely;
6356            // their reader stops before this byte.
6357            write_u16(
6358                &mut out,
6359                u16::try_from(t.schema.foreign_keys.len()).expect("≤ 65k FKs/table"),
6360            );
6361            for fk in &t.schema.foreign_keys {
6362                match &fk.name {
6363                    None => out.push(0),
6364                    Some(n) => {
6365                        out.push(1);
6366                        write_str(&mut out, n);
6367                    }
6368                }
6369                write_u16(
6370                    &mut out,
6371                    u16::try_from(fk.local_columns.len()).expect("≤ 65k FK columns"),
6372                );
6373                for &p in &fk.local_columns {
6374                    write_u16(&mut out, u16::try_from(p).expect("≤ 65k columns/table"));
6375                }
6376                write_str(&mut out, &fk.parent_table);
6377                write_u16(
6378                    &mut out,
6379                    u16::try_from(fk.parent_columns.len()).expect("≤ 65k FK parent columns"),
6380                );
6381                for &p in &fk.parent_columns {
6382                    write_u16(&mut out, u16::try_from(p).expect("≤ 65k columns/table"));
6383                }
6384                out.push(fk.on_delete.tag());
6385                out.push(fk.on_update.tag());
6386            }
6387            // v7.9.19 — UniquenessConstraint appendix (catalog
6388            // FILE_VERSION 15+). Layout per table after the FK
6389            // block:
6390            //   [u16 count]
6391            //     per constraint:
6392            //       [u8 is_primary_key]
6393            //       [u16 arity][u16 col_pos]*arity
6394            // Older catalogs (v14 and below) skip this block.
6395            write_u16(
6396                &mut out,
6397                u16::try_from(t.schema.uniqueness_constraints.len())
6398                    .expect("≤ 65k uniqueness constraints/table"),
6399            );
6400            for uc in &t.schema.uniqueness_constraints {
6401                out.push(u8::from(uc.is_primary_key));
6402                write_u16(
6403                    &mut out,
6404                    u16::try_from(uc.columns.len()).expect("≤ 65k cols in uniqueness constraint"),
6405                );
6406                for &p in &uc.columns {
6407                    write_u16(&mut out, u16::try_from(p).expect("≤ 65k columns/table"));
6408                }
6409                // v7.13.0 — `nulls_not_distinct` flag
6410                // (FILE_VERSION 23+). Always written by writers at
6411                // version 23+; deserialise gates on `version >= 23`
6412                // so v22-and-below catalogs round-trip cleanly.
6413                out.push(u8::from(uc.nulls_not_distinct));
6414            }
6415            // v7.9.21 — runtime_default appendix per table.
6416            // Layout: [u16 count] then for each:
6417            //   [u16 col_pos][str expr]
6418            // Only columns whose runtime_default is Some land here;
6419            // catalog stays compact for the common literal-default
6420            // case.
6421            let mut rt_defaults: Vec<(usize, &str)> = Vec::new();
6422            for (i, c) in t.schema.columns.iter().enumerate() {
6423                if let Some(e) = &c.runtime_default {
6424                    rt_defaults.push((i, e.as_str()));
6425                }
6426            }
6427            write_u16(
6428                &mut out,
6429                u16::try_from(rt_defaults.len()).expect("≤ 65k runtime defaults/table"),
6430            );
6431            for (pos, expr) in rt_defaults {
6432                write_u16(&mut out, u16::try_from(pos).expect("≤ 65k columns/table"));
6433                write_str(&mut out, expr);
6434            }
6435            // v7.13.0 — CHECK constraint appendix per table.
6436            // Layout: [u16 count] then `count` Display-form
6437            // expression strings. Re-parsed on every INSERT/UPDATE
6438            // by the engine. FILE_VERSION 23+ only; v22 readers
6439            // never reach this block because the writer also moves
6440            // to v23 in lock-step.
6441            write_u16(
6442                &mut out,
6443                u16::try_from(t.schema.checks.len()).expect("≤ 65k CHECK constraints/table"),
6444            );
6445            for c in &t.schema.checks {
6446                write_str(&mut out, c.as_str());
6447            }
6448            // v7.17.0 Phase 1.4 — per-table user_enum_type
6449            // appendix. Layout: [u16 count] then
6450            // [u16 col_pos][str enum_name] per binding. Only
6451            // columns whose user_enum_type is Some land here.
6452            let mut enum_bindings: Vec<(usize, &str)> = Vec::new();
6453            for (i, c) in t.schema.columns.iter().enumerate() {
6454                if let Some(e) = &c.user_enum_type {
6455                    enum_bindings.push((i, e.as_str()));
6456                }
6457            }
6458            write_u16(
6459                &mut out,
6460                u16::try_from(enum_bindings.len()).expect("≤ 65k enum-typed columns/table"),
6461            );
6462            for (pos, ename) in enum_bindings {
6463                write_u16(&mut out, u16::try_from(pos).expect("≤ 65k columns/table"));
6464                write_str(&mut out, ename);
6465            }
6466            // v7.17.0 Phase 1.5 — per-table user_domain_type
6467            // appendix. Same layout as the enum one. v29-and-
6468            // below readers stop after the enum appendix.
6469            let mut domain_bindings: Vec<(usize, &str)> = Vec::new();
6470            for (i, c) in t.schema.columns.iter().enumerate() {
6471                if let Some(d) = &c.user_domain_type {
6472                    domain_bindings.push((i, d.as_str()));
6473                }
6474            }
6475            write_u16(
6476                &mut out,
6477                u16::try_from(domain_bindings.len()).expect("≤ 65k domain-typed columns/table"),
6478            );
6479            for (pos, dname) in domain_bindings {
6480                write_u16(&mut out, u16::try_from(pos).expect("≤ 65k columns/table"));
6481                write_str(&mut out, dname);
6482            }
6483            // v7.17.0 Phase 2.1 — per-table on_update_runtime
6484            // appendix. Sparse: only ON UPDATE-bound columns.
6485            let mut on_update_bindings: Vec<(usize, &str)> = Vec::new();
6486            for (i, c) in t.schema.columns.iter().enumerate() {
6487                if let Some(e) = &c.on_update_runtime {
6488                    on_update_bindings.push((i, e.as_str()));
6489                }
6490            }
6491            write_u16(
6492                &mut out,
6493                u16::try_from(on_update_bindings.len()).expect("≤ 65k ON UPDATE columns/table"),
6494            );
6495            for (pos, expr_src) in on_update_bindings {
6496                write_u16(&mut out, u16::try_from(pos).expect("≤ 65k columns/table"));
6497                write_str(&mut out, expr_src);
6498            }
6499            // v7.17.0 Phase 2.5 — per-table collation appendix.
6500            // Sparse: only non-Binary columns land. Layout:
6501            // `[u16 count][u16 col_pos][u8 tag] × count`.
6502            let mut coll_bindings: Vec<(usize, u8)> = Vec::new();
6503            for (i, c) in t.schema.columns.iter().enumerate() {
6504                let tag = match c.collation {
6505                    Collation::Binary => continue,
6506                    Collation::CaseInsensitive => Collation::TAG_CASE_INSENSITIVE,
6507                };
6508                coll_bindings.push((i, tag));
6509            }
6510            write_u16(
6511                &mut out,
6512                u16::try_from(coll_bindings.len()).expect("≤ 65k collation bindings/table"),
6513            );
6514            for (pos, tag) in coll_bindings {
6515                write_u16(&mut out, u16::try_from(pos).expect("≤ 65k columns/table"));
6516                out.push(tag);
6517            }
6518            // v7.17.0 Phase 4.4 — per-table is_unsigned appendix.
6519            // Sparse: only UNSIGNED columns land. Layout:
6520            // `[u16 count][u16 col_pos] × count`.
6521            let mut unsigned_bindings: Vec<usize> = Vec::new();
6522            for (i, c) in t.schema.columns.iter().enumerate() {
6523                if c.is_unsigned {
6524                    unsigned_bindings.push(i);
6525                }
6526            }
6527            write_u16(
6528                &mut out,
6529                u16::try_from(unsigned_bindings.len()).expect("≤ 65k UNSIGNED columns/table"),
6530            );
6531            for pos in unsigned_bindings {
6532                write_u16(&mut out, u16::try_from(pos).expect("≤ 65k columns/table"));
6533            }
6534            // v7.17.0 Phase 3.P0-36 — per-table inline_enum_variants
6535            // appendix. Sparse: only ENUM columns land. Layout:
6536            // `[u16 count] then per binding [u16 col_pos]
6537            // [u16 variant_count] then variant strings`.
6538            // FILE_VERSION 41+; v40 readers never reach this block.
6539            let mut enum_inline_bindings: Vec<(usize, &[String])> = Vec::new();
6540            for (i, c) in t.schema.columns.iter().enumerate() {
6541                if let Some(vs) = &c.inline_enum_variants {
6542                    enum_inline_bindings.push((i, vs.as_slice()));
6543                }
6544            }
6545            write_u16(
6546                &mut out,
6547                u16::try_from(enum_inline_bindings.len()).expect("≤ 65k inline-ENUM columns/table"),
6548            );
6549            for (pos, variants) in enum_inline_bindings {
6550                write_u16(&mut out, u16::try_from(pos).expect("≤ 65k columns/table"));
6551                write_u16(
6552                    &mut out,
6553                    u16::try_from(variants.len()).expect("≤ 65k variants/ENUM"),
6554                );
6555                for v in variants {
6556                    write_str(&mut out, v.as_str());
6557                }
6558            }
6559            // v7.17.0 Phase 3.P0-37 — per-table inline_set_variants
6560            // appendix. Same layout as the inline ENUM block.
6561            // FILE_VERSION 42+; v41 readers never reach this block.
6562            let mut set_inline_bindings: Vec<(usize, &[String])> = Vec::new();
6563            for (i, c) in t.schema.columns.iter().enumerate() {
6564                if let Some(vs) = &c.inline_set_variants {
6565                    set_inline_bindings.push((i, vs.as_slice()));
6566                }
6567            }
6568            write_u16(
6569                &mut out,
6570                u16::try_from(set_inline_bindings.len()).expect("≤ 65k inline-SET columns/table"),
6571            );
6572            for (pos, variants) in set_inline_bindings {
6573                write_u16(&mut out, u16::try_from(pos).expect("≤ 65k columns/table"));
6574                write_u16(
6575                    &mut out,
6576                    u16::try_from(variants.len()).expect("≤ 65k variants/SET"),
6577                );
6578                for v in variants {
6579                    write_str(&mut out, v.as_str());
6580                }
6581            }
6582        }
6583        // v7.12.4 — catalog-wide appendix: user-defined functions
6584        // then triggers. FILE_VERSION 22+ only. v21 and earlier
6585        // readers stop after the last table; v22 readers always
6586        // consume two `u32` counts (possibly zero).
6587        //
6588        // Function entry layout:
6589        //   [str name] [str args_repr] [str returns]
6590        //   [str language] [str body]
6591        // Trigger entry layout:
6592        //   [str name] [str table] [str timing]
6593        //   [u16 event_count] (event_count × str)
6594        //   [str for_each] [str function]
6595        write_u32(
6596            &mut out,
6597            u32::try_from(self.functions.len()).expect("≤ 4G functions"),
6598        );
6599        for fd in self.functions.values() {
6600            write_str(&mut out, &fd.name);
6601            write_str(&mut out, &fd.args_repr);
6602            write_str(&mut out, &fd.returns);
6603            write_str(&mut out, &fd.language);
6604            write_str_long(&mut out, &fd.body);
6605        }
6606        write_u32(
6607            &mut out,
6608            u32::try_from(self.triggers.len()).expect("≤ 4G triggers"),
6609        );
6610        for td in &self.triggers {
6611            write_str(&mut out, &td.name);
6612            write_str(&mut out, &td.table);
6613            write_str(&mut out, &td.timing);
6614            write_u16(
6615                &mut out,
6616                u16::try_from(td.events.len()).expect("≤ 65k events / trigger"),
6617            );
6618            for ev in &td.events {
6619                write_str(&mut out, ev);
6620            }
6621            write_str(&mut out, &td.for_each);
6622            write_str(&mut out, &td.function);
6623            // v7.13.0 — `UPDATE OF cols` filter
6624            // (FILE_VERSION 23+). v22 readers omit; v23 writers
6625            // always emit (possibly zero).
6626            write_u16(
6627                &mut out,
6628                u16::try_from(td.update_columns.len()).expect("≤ 65k cols / trigger"),
6629            );
6630            for c in &td.update_columns {
6631                write_str(&mut out, c);
6632            }
6633            // v7.16.1 — TriggerDef.enabled (FILE_VERSION 25+).
6634            out.push(u8::from(td.enabled));
6635        }
6636        // v7.17.0 Phase 1.1 — SEQUENCE catalog block (FILE_VERSION 26+).
6637        write_u32(
6638            &mut out,
6639            u32::try_from(self.sequences.len()).expect("≤ 4G sequences"),
6640        );
6641        for seq in self.sequences.values() {
6642            write_str(&mut out, &seq.name);
6643            out.push(match seq.data_type {
6644                SequenceDataType::SmallInt => 0,
6645                SequenceDataType::Int => 1,
6646                SequenceDataType::BigInt => 2,
6647            });
6648            out.extend_from_slice(&seq.start.to_le_bytes());
6649            out.extend_from_slice(&seq.increment.to_le_bytes());
6650            out.extend_from_slice(&seq.min_value.to_le_bytes());
6651            out.extend_from_slice(&seq.max_value.to_le_bytes());
6652            out.extend_from_slice(&seq.cache.to_le_bytes());
6653            out.push(u8::from(seq.cycle));
6654            match &seq.owned_by {
6655                None => out.push(0),
6656                Some((table, column)) => {
6657                    out.push(1);
6658                    write_str(&mut out, table);
6659                    write_str(&mut out, column);
6660                }
6661            }
6662            out.extend_from_slice(&seq.last_value.to_le_bytes());
6663            out.push(u8::from(seq.is_called));
6664        }
6665        // v7.17.0 Phase 1.2 — VIEW catalog block (FILE_VERSION 27+).
6666        write_u32(
6667            &mut out,
6668            u32::try_from(self.views.len()).expect("≤ 4G views"),
6669        );
6670        for view in self.views.values() {
6671            write_str(&mut out, &view.name);
6672            write_u16(
6673                &mut out,
6674                u16::try_from(view.columns.len()).expect("≤ 65k cols / view"),
6675            );
6676            for c in &view.columns {
6677                write_str(&mut out, c);
6678            }
6679            write_str_long(&mut out, &view.body);
6680        }
6681        // v7.17.0 Phase 1.3 — MATERIALIZED VIEW source registry
6682        // (FILE_VERSION 28+). The backing rows live as a regular
6683        // table of the same name already in the tables block.
6684        write_u32(
6685            &mut out,
6686            u32::try_from(self.materialized_views.len()).expect("≤ 4G materialized views"),
6687        );
6688        for (name, body) in &self.materialized_views {
6689            write_str(&mut out, name);
6690            write_str_long(&mut out, body);
6691        }
6692        // v7.17.0 Phase 1.4 — ENUM types catalog block
6693        // (FILE_VERSION 29+).
6694        write_u32(
6695            &mut out,
6696            u32::try_from(self.enum_types.len()).expect("≤ 4G enum types"),
6697        );
6698        for e in self.enum_types.values() {
6699            write_str(&mut out, &e.name);
6700            write_u16(
6701                &mut out,
6702                u16::try_from(e.labels.len()).expect("≤ 65k labels / enum"),
6703            );
6704            for l in &e.labels {
6705                write_str(&mut out, l);
6706            }
6707        }
6708        // v7.17.0 Phase 1.5 — DOMAIN types catalog block
6709        // (FILE_VERSION 30+).
6710        write_u32(
6711            &mut out,
6712            u32::try_from(self.domain_types.len()).expect("≤ 4G domain types"),
6713        );
6714        for d in self.domain_types.values() {
6715            write_str(&mut out, &d.name);
6716            write_data_type(&mut out, d.base_type);
6717            out.push(u8::from(d.nullable));
6718            match &d.default {
6719                None => out.push(0),
6720                Some(s) => {
6721                    out.push(1);
6722                    write_str(&mut out, s);
6723                }
6724            }
6725            write_u16(
6726                &mut out,
6727                u16::try_from(d.checks.len()).expect("≤ 65k CHECKs / domain"),
6728            );
6729            for c in &d.checks {
6730                write_str(&mut out, c);
6731            }
6732        }
6733        // v7.17.0 Phase 1.6 — user-schemas registry
6734        // (FILE_VERSION 31+). Built-ins are hardcoded in
6735        // `is_builtin_schema` and not persisted.
6736        write_u32(
6737            &mut out,
6738            u32::try_from(self.schemas.len()).expect("≤ 4G schemas"),
6739        );
6740        for name in &self.schemas {
6741            write_str(&mut out, name);
6742        }
6743        out
6744    }
6745
6746    /// Deserialize a previously-serialized catalog. Rejects bad magic, version
6747    /// mismatch, unknown tags, truncation, and trailing bytes.
6748    pub fn deserialize(buf: &[u8]) -> Result<Self, StorageError> {
6749        let mut cur = Cursor::new(buf);
6750        let magic = cur.take(8)?;
6751        if magic != FILE_MAGIC {
6752            return Err(StorageError::Corrupt(format!(
6753                "bad magic: expected SPGDB001, got {magic:?}"
6754            )));
6755        }
6756        let version = cur.read_u8()?;
6757        if !(MIN_SUPPORTED_FILE_VERSION..=FILE_VERSION).contains(&version) {
6758            return Err(StorageError::Corrupt(format!(
6759                "unsupported file version: {version} (supported: {MIN_SUPPORTED_FILE_VERSION}..={FILE_VERSION})"
6760            )));
6761        }
6762        let table_count = cur.read_u32()? as usize;
6763        let mut cat = Self::new();
6764        for _ in 0..table_count {
6765            deserialize_table(&mut cur, &mut cat, version)?;
6766        }
6767        // v7.12.4 — catalog-wide function + trigger appendix.
6768        // FILE_VERSION 22+ only; v21 and earlier catalogs stop
6769        // after the last table.
6770        if version >= 22 {
6771            let fn_count = cur.read_u32()? as usize;
6772            for _ in 0..fn_count {
6773                let name = cur.read_str()?;
6774                let args_repr = cur.read_str()?;
6775                let returns = cur.read_str()?;
6776                let language = cur.read_str()?;
6777                let body = cur.read_str_long()?;
6778                cat.functions.insert(
6779                    name.clone(),
6780                    FunctionDef {
6781                        name,
6782                        args_repr,
6783                        returns,
6784                        language,
6785                        body,
6786                    },
6787                );
6788            }
6789            let trg_count = cur.read_u32()? as usize;
6790            for _ in 0..trg_count {
6791                let name = cur.read_str()?;
6792                let table = cur.read_str()?;
6793                let timing = cur.read_str()?;
6794                let ev_count = cur.read_u16()? as usize;
6795                let mut events = Vec::with_capacity(ev_count);
6796                for _ in 0..ev_count {
6797                    events.push(cur.read_str()?);
6798                }
6799                let for_each = cur.read_str()?;
6800                let function = cur.read_str()?;
6801                // v7.13.0 — trailing `UPDATE OF cols` filter
6802                // (FILE_VERSION 23+ only; v22 catalogs omit and
6803                // deserialise with an empty vec).
6804                let update_columns = if version >= 23 {
6805                    let n = cur.read_u16()? as usize;
6806                    let mut cols = Vec::with_capacity(n);
6807                    for _ in 0..n {
6808                        cols.push(cur.read_str()?);
6809                    }
6810                    cols
6811                } else {
6812                    Vec::new()
6813                };
6814                // v7.16.1 — TriggerDef.enabled (FILE_VERSION 25+).
6815                // v24-and-below catalogs deserialise with `true`
6816                // — pre-v7.16.1 every trigger always fired.
6817                let enabled = if version >= 25 {
6818                    cur.read_u8()? != 0
6819                } else {
6820                    true
6821                };
6822                cat.triggers.push(TriggerDef {
6823                    name,
6824                    table,
6825                    timing,
6826                    events,
6827                    for_each,
6828                    function,
6829                    update_columns,
6830                    enabled,
6831                });
6832            }
6833        }
6834        // v7.17.0 Phase 1.1 — SEQUENCE block (FILE_VERSION 26+).
6835        // v25-and-below catalogs omit; we leave the map empty.
6836        if version >= 26 {
6837            let seq_count = cur.read_u32()? as usize;
6838            for _ in 0..seq_count {
6839                let name = cur.read_str()?;
6840                let data_type = match cur.read_u8()? {
6841                    0 => SequenceDataType::SmallInt,
6842                    1 => SequenceDataType::Int,
6843                    2 => SequenceDataType::BigInt,
6844                    other => {
6845                        return Err(StorageError::Corrupt(format!(
6846                            "unknown SEQUENCE data-type tag {other}"
6847                        )));
6848                    }
6849                };
6850                let start = cur.read_i64()?;
6851                let increment = cur.read_i64()?;
6852                let min_value = cur.read_i64()?;
6853                let max_value = cur.read_i64()?;
6854                let cache = cur.read_i64()?;
6855                let cycle = cur.read_u8()? != 0;
6856                let owned_by = match cur.read_u8()? {
6857                    0 => None,
6858                    1 => {
6859                        let t = cur.read_str()?;
6860                        let c = cur.read_str()?;
6861                        Some((t, c))
6862                    }
6863                    other => {
6864                        return Err(StorageError::Corrupt(format!(
6865                            "unknown SEQUENCE owned-by tag {other}"
6866                        )));
6867                    }
6868                };
6869                let last_value = cur.read_i64()?;
6870                let is_called = cur.read_u8()? != 0;
6871                cat.sequences.insert(
6872                    name.clone(),
6873                    SequenceDef {
6874                        name,
6875                        data_type,
6876                        start,
6877                        increment,
6878                        min_value,
6879                        max_value,
6880                        cache,
6881                        cycle,
6882                        owned_by,
6883                        last_value,
6884                        is_called,
6885                    },
6886                );
6887            }
6888        }
6889        // v7.17.0 Phase 1.2 — VIEW block (FILE_VERSION 27+).
6890        // v26-and-below catalogs omit; we leave the map empty.
6891        if version >= 27 {
6892            let view_count = cur.read_u32()? as usize;
6893            for _ in 0..view_count {
6894                let name = cur.read_str()?;
6895                let col_count = cur.read_u16()? as usize;
6896                let mut columns = Vec::with_capacity(col_count);
6897                for _ in 0..col_count {
6898                    columns.push(cur.read_str()?);
6899                }
6900                let body = cur.read_str_long()?;
6901                cat.views.insert(
6902                    name.clone(),
6903                    ViewDef {
6904                        name,
6905                        columns,
6906                        body,
6907                    },
6908                );
6909            }
6910        }
6911        // v7.17.0 Phase 1.3 — MATERIALIZED VIEW source registry
6912        // (FILE_VERSION 28+). v27-and-below catalogs omit.
6913        if version >= 28 {
6914            let mv_count = cur.read_u32()? as usize;
6915            for _ in 0..mv_count {
6916                let name = cur.read_str()?;
6917                let body = cur.read_str_long()?;
6918                cat.materialized_views.insert(name, body);
6919            }
6920        }
6921        // v7.17.0 Phase 1.4 — ENUM types catalog block
6922        // (FILE_VERSION 29+).
6923        if version >= 29 {
6924            let etype_count = cur.read_u32()? as usize;
6925            for _ in 0..etype_count {
6926                let name = cur.read_str()?;
6927                let label_count = cur.read_u16()? as usize;
6928                let mut labels = Vec::with_capacity(label_count);
6929                for _ in 0..label_count {
6930                    labels.push(cur.read_str()?);
6931                }
6932                cat.enum_types
6933                    .insert(name.clone(), EnumDef { name, labels });
6934            }
6935        }
6936        // v7.17.0 Phase 1.5 — DOMAIN types catalog block
6937        // (FILE_VERSION 30+).
6938        if version >= 30 {
6939            let dtype_count = cur.read_u32()? as usize;
6940            for _ in 0..dtype_count {
6941                let name = cur.read_str()?;
6942                let base_type = cur.read_data_type()?;
6943                let nullable = cur.read_u8()? != 0;
6944                let default = match cur.read_u8()? {
6945                    0 => None,
6946                    1 => Some(cur.read_str()?),
6947                    other => {
6948                        return Err(StorageError::Corrupt(format!(
6949                            "unknown DOMAIN default tag {other}"
6950                        )));
6951                    }
6952                };
6953                let check_count = cur.read_u16()? as usize;
6954                let mut checks = Vec::with_capacity(check_count);
6955                for _ in 0..check_count {
6956                    checks.push(cur.read_str()?);
6957                }
6958                cat.domain_types.insert(
6959                    name.clone(),
6960                    DomainDef {
6961                        name,
6962                        base_type,
6963                        nullable,
6964                        default,
6965                        checks,
6966                    },
6967                );
6968            }
6969        }
6970        // v7.17.0 Phase 1.6 — user-schemas registry
6971        // (FILE_VERSION 31+).
6972        if version >= 31 {
6973            let sch_count = cur.read_u32()? as usize;
6974            for _ in 0..sch_count {
6975                let name = cur.read_str()?;
6976                cat.schemas.insert(name);
6977            }
6978        }
6979        if cur.pos < buf.len() {
6980            return Err(StorageError::Corrupt(format!(
6981                "trailing bytes: {} unread",
6982                buf.len() - cur.pos
6983            )));
6984        }
6985        Ok(cat)
6986    }
6987}
6988
6989/// Per-table deserialize body — schema, rows, indices. Pulled out of
6990/// `Catalog::deserialize` to keep the latter under the line-budget lint
6991/// and to give the row hot loop its own scope (so the borrow on `t`
6992/// stays scoped here rather than across the whole catalog loop).
6993fn deserialize_table(
6994    cur: &mut Cursor<'_>,
6995    cat: &mut Catalog,
6996    version: u8,
6997) -> Result<(), StorageError> {
6998    let table_name = cur.read_str()?;
6999    let name = table_name.clone();
7000    let col_count = cur.read_u16()? as usize;
7001    let mut cols = Vec::with_capacity(col_count);
7002    for _ in 0..col_count {
7003        let c_name = cur.read_str()?;
7004        let ty = cur.read_data_type()?;
7005        let nullable = cur.read_u8()? != 0;
7006        let default = match cur.read_u8()? {
7007            0 => None,
7008            1 => Some(cur.read_value()?),
7009            other => {
7010                return Err(StorageError::Corrupt(format!(
7011                    "unknown default tag: {other}"
7012                )));
7013            }
7014        };
7015        let auto_increment = cur.read_u8()? != 0;
7016        // Note: deserialiser sets runtime_default = None for
7017        // older catalogs (≤ v14). v15+ reads it from the
7018        // per-column appendix below.
7019        cols.push(ColumnSchema {
7020            name: c_name,
7021            ty,
7022            nullable,
7023            default,
7024            runtime_default: None,
7025            auto_increment,
7026            user_enum_type: None,
7027            user_domain_type: None,
7028            on_update_runtime: None,
7029            collation: Collation::Binary,
7030            is_unsigned: false,
7031            inline_enum_variants: None,
7032            inline_set_variants: None,
7033        });
7034    }
7035    let n_cols = cols.len();
7036    cat.create_table(TableSchema::new(name, cols))?;
7037    // Vec<Table> with insertion-order semantics — the just-pushed
7038    // table is at the end. Sidecar `by_name` is already wired up but
7039    // we skip the map lookup here since we know the position.
7040    let t = cat.tables.last_mut().expect("create_table just pushed");
7041    deserialize_rows(cur, t, n_cols)?;
7042    deserialize_indices(cur, t, version)?;
7043    // v6.7.2 — per-table hot_tier_bytes appendix. v11+ writes
7044    // `[u8 has_value][u64 LE value (if has_value)]`. v10 / v9 / v8
7045    // catalogs skip this entirely (the deserialiser reads no extra
7046    // bytes; the table's hot_tier_bytes stays None from
7047    // TableSchema::new).
7048    if version >= 11 {
7049        let has = cur.read_u8()?;
7050        let hot_tier_bytes = match has {
7051            0 => None,
7052            1 => Some(cur.read_u64()?),
7053            other => {
7054                return Err(StorageError::Corrupt(format!(
7055                    "hot_tier_bytes appendix: unknown has-value byte {other}"
7056                )));
7057            }
7058        };
7059        t.schema_mut().hot_tier_bytes = hot_tier_bytes;
7060    }
7061    // v7.6.1 — FOREIGN KEY appendix (FILE_VERSION 13+). v12 / v11 / …
7062    // catalogs skip this entirely.
7063    if version >= 13 {
7064        let fk_count = cur.read_u16()? as usize;
7065        let mut fks = Vec::with_capacity(fk_count);
7066        for _ in 0..fk_count {
7067            let name = match cur.read_u8()? {
7068                0 => None,
7069                1 => Some(cur.read_str()?),
7070                other => {
7071                    return Err(StorageError::Corrupt(format!(
7072                        "FK appendix: unknown has-name byte {other}"
7073                    )));
7074                }
7075            };
7076            let local_arity = cur.read_u16()? as usize;
7077            let mut local_columns = Vec::with_capacity(local_arity);
7078            for _ in 0..local_arity {
7079                local_columns.push(cur.read_u16()? as usize);
7080            }
7081            let parent_table = cur.read_str()?;
7082            let parent_arity = cur.read_u16()? as usize;
7083            if parent_arity != local_arity {
7084                return Err(StorageError::Corrupt(format!(
7085                    "FK arity mismatch in catalog: local {local_arity} vs parent {parent_arity}"
7086                )));
7087            }
7088            let mut parent_columns = Vec::with_capacity(parent_arity);
7089            for _ in 0..parent_arity {
7090                parent_columns.push(cur.read_u16()? as usize);
7091            }
7092            let on_delete = FkAction::from_tag(cur.read_u8()?).ok_or_else(|| {
7093                StorageError::Corrupt("FK appendix: unknown on_delete tag".into())
7094            })?;
7095            let on_update = FkAction::from_tag(cur.read_u8()?).ok_or_else(|| {
7096                StorageError::Corrupt("FK appendix: unknown on_update tag".into())
7097            })?;
7098            fks.push(ForeignKeyConstraint {
7099                name,
7100                local_columns,
7101                parent_table,
7102                parent_columns,
7103                on_delete,
7104                on_update,
7105            });
7106        }
7107        t.schema_mut().foreign_keys = fks;
7108    }
7109    // v7.9.19 — UniquenessConstraint appendix (FILE_VERSION 15+).
7110    // v14 and below skip this entirely.
7111    if version >= 15 {
7112        let uc_count = cur.read_u16()? as usize;
7113        let mut ucs = Vec::with_capacity(uc_count);
7114        for _ in 0..uc_count {
7115            let is_pk = cur.read_u8()? != 0;
7116            let arity = cur.read_u16()? as usize;
7117            let mut cols = Vec::with_capacity(arity);
7118            for _ in 0..arity {
7119                cols.push(cur.read_u16()? as usize);
7120            }
7121            // v7.13.0 — trailing `nulls_not_distinct` flag
7122            // (FILE_VERSION 23+). v22 and below skip — flag
7123            // defaults to false (= NULLS DISTINCT).
7124            let nulls_not_distinct = if version >= 23 {
7125                cur.read_u8()? != 0
7126            } else {
7127                false
7128            };
7129            ucs.push(UniquenessConstraint {
7130                is_primary_key: is_pk,
7131                columns: cols,
7132                nulls_not_distinct,
7133            });
7134        }
7135        t.schema_mut().uniqueness_constraints = ucs;
7136        // v7.9.21 — runtime_default appendix (FILE_VERSION 15+).
7137        let rt_count = cur.read_u16()? as usize;
7138        for _ in 0..rt_count {
7139            let pos = cur.read_u16()? as usize;
7140            let expr = cur.read_str()?;
7141            if let Some(col) = t.schema_mut().columns.get_mut(pos) {
7142                col.runtime_default = Some(expr);
7143            }
7144        }
7145    }
7146    // v7.13.0 — CHECK constraints appendix (FILE_VERSION 23+).
7147    // v22 and below leave the vec empty.
7148    if version >= 23 {
7149        let check_count = cur.read_u16()? as usize;
7150        let mut checks = Vec::with_capacity(check_count);
7151        for _ in 0..check_count {
7152            checks.push(cur.read_str()?);
7153        }
7154        t.schema_mut().checks = checks;
7155    }
7156    // v7.17.0 Phase 1.4 — per-table user_enum_type appendix
7157    // (FILE_VERSION 29+). Layout: [u16 count] then
7158    // [u16 col_pos][str enum_name] per binding.
7159    if version >= 29 {
7160        let binding_count = cur.read_u16()? as usize;
7161        for _ in 0..binding_count {
7162            let col_pos = cur.read_u16()? as usize;
7163            let ename = cur.read_str()?;
7164            if let Some(col) = t.schema_mut().columns.get_mut(col_pos) {
7165                col.user_enum_type = Some(ename);
7166            }
7167        }
7168    }
7169    // v7.17.0 Phase 1.5 — per-table user_domain_type appendix
7170    // (FILE_VERSION 30+). Same shape as the enum one.
7171    if version >= 30 {
7172        let binding_count = cur.read_u16()? as usize;
7173        for _ in 0..binding_count {
7174            let col_pos = cur.read_u16()? as usize;
7175            let dname = cur.read_str()?;
7176            if let Some(col) = t.schema_mut().columns.get_mut(col_pos) {
7177                col.user_domain_type = Some(dname);
7178            }
7179        }
7180    }
7181    // v7.17.0 Phase 2.1 — per-table on_update_runtime appendix
7182    // (FILE_VERSION 32+). Sparse layout matches the enum/
7183    // domain bindings.
7184    if version >= 32 {
7185        let binding_count = cur.read_u16()? as usize;
7186        for _ in 0..binding_count {
7187            let col_pos = cur.read_u16()? as usize;
7188            let expr_src = cur.read_str()?;
7189            if let Some(col) = t.schema_mut().columns.get_mut(col_pos) {
7190                col.on_update_runtime = Some(expr_src);
7191            }
7192        }
7193    }
7194    // v7.17.0 Phase 2.5 — per-table collation appendix
7195    // (FILE_VERSION 34+). Sparse: only non-Binary columns
7196    // land. v33-and-below readers leave every column at its
7197    // ColumnSchema::new default (Binary). Unknown tags from a
7198    // forward-incompat snapshot read back as Binary.
7199    if version >= 34 {
7200        let binding_count = cur.read_u16()? as usize;
7201        for _ in 0..binding_count {
7202            let col_pos = cur.read_u16()? as usize;
7203            let tag = cur.read_u8()?;
7204            let collation = match tag {
7205                Collation::TAG_CASE_INSENSITIVE => Collation::CaseInsensitive,
7206                _ => Collation::Binary,
7207            };
7208            if let Some(col) = t.schema_mut().columns.get_mut(col_pos) {
7209                col.collation = collation;
7210            }
7211        }
7212    }
7213    // v7.17.0 Phase 4.4 — per-table is_unsigned appendix
7214    // (FILE_VERSION 35+). Sparse: only UNSIGNED columns land.
7215    // v34-and-below readers leave every column at
7216    // `is_unsigned = false`.
7217    if version >= 35 {
7218        let binding_count = cur.read_u16()? as usize;
7219        for _ in 0..binding_count {
7220            let col_pos = cur.read_u16()? as usize;
7221            if let Some(col) = t.schema_mut().columns.get_mut(col_pos) {
7222                col.is_unsigned = true;
7223            }
7224        }
7225    }
7226    // v7.17.0 Phase 3.P0-36 — per-table inline_enum_variants
7227    // appendix (FILE_VERSION 41+). Sparse: only ENUM columns land.
7228    // v40-and-below readers leave every column at
7229    // `inline_enum_variants = None`.
7230    if version >= 41 {
7231        let binding_count = cur.read_u16()? as usize;
7232        for _ in 0..binding_count {
7233            let col_pos = cur.read_u16()? as usize;
7234            let variant_count = cur.read_u16()? as usize;
7235            let mut variants = Vec::with_capacity(variant_count);
7236            for _ in 0..variant_count {
7237                variants.push(cur.read_str()?);
7238            }
7239            if let Some(col) = t.schema_mut().columns.get_mut(col_pos) {
7240                col.inline_enum_variants = Some(variants);
7241            }
7242        }
7243    }
7244    // v7.17.0 Phase 3.P0-37 — per-table inline_set_variants
7245    // appendix (FILE_VERSION 42+). Sparse: only SET columns land.
7246    if version >= 42 {
7247        let binding_count = cur.read_u16()? as usize;
7248        for _ in 0..binding_count {
7249            let col_pos = cur.read_u16()? as usize;
7250            let variant_count = cur.read_u16()? as usize;
7251            let mut variants = Vec::with_capacity(variant_count);
7252            for _ in 0..variant_count {
7253                variants.push(cur.read_str()?);
7254            }
7255            if let Some(col) = t.schema_mut().columns.get_mut(col_pos) {
7256                col.inline_set_variants = Some(variants);
7257            }
7258        }
7259    }
7260    let _ = table_name;
7261    Ok(())
7262}
7263
7264fn deserialize_rows(
7265    cur: &mut Cursor<'_>,
7266    t: &mut Table,
7267    _n_cols: usize,
7268) -> Result<(), StorageError> {
7269    let row_count = cur.read_u32()? as usize;
7270    // v4.39: PV has no `reserve` (the BVT doesn't preallocate a
7271    // contiguous buffer); we just push directly and let the trie
7272    // grow. v5.1: row decode reuses `decode_row_body_dense` so the
7273    // catalog and cold-tier segments share one row codec.
7274    let mut hot_bytes: u64 = 0;
7275    for _ in 0..row_count {
7276        let tail = &cur.buf[cur.pos..];
7277        let (row, consumed) = decode_row_body_dense(tail, &t.schema)?;
7278        cur.pos += consumed;
7279        // v5.2.1: account for hot bytes as we go; the snapshot's row
7280        // block bytes are exactly what `encode_row_body_dense` would
7281        // produce, so `consumed` would do too — but going via the
7282        // helper keeps the counter's definition coupled to the
7283        // encoder rather than the snapshot's row prefix layout.
7284        hot_bytes = hot_bytes.saturating_add(row_body_encoded_len(&row, &t.schema) as u64);
7285        t.rows.push_mut(row);
7286    }
7287    t.hot_bytes = hot_bytes;
7288    Ok(())
7289}
7290
7291fn deserialize_indices(
7292    cur: &mut Cursor<'_>,
7293    t: &mut Table,
7294    version: u8,
7295) -> Result<(), StorageError> {
7296    let index_count = cur.read_u16()? as usize;
7297    for _ in 0..index_count {
7298        let idx_name = cur.read_str()?;
7299        let col_pos = cur.read_u16()? as usize;
7300        let column_name = t
7301            .schema
7302            .columns
7303            .get(col_pos)
7304            .ok_or_else(|| {
7305                StorageError::Corrupt(format!(
7306                    "index {idx_name:?} points at non-existent column position {col_pos}"
7307                ))
7308            })?
7309            .name
7310            .clone();
7311        let kind_tag = cur.read_u8()?;
7312        match kind_tag {
7313            0 => {
7314                if version >= 9 {
7315                    // v9+: BTree entries serialised inline (tag-prefixed
7316                    // locator codec). Restore the map directly so any
7317                    // freezer-produced Cold locators come back exactly
7318                    // as they went out.
7319                    let map = read_btree_map(cur)?;
7320                    t.restore_btree_index(idx_name, &column_name, map)?;
7321                } else {
7322                    // v8: no entries on disk; rebuild from rows. Every
7323                    // entry is materialised as `RowLocator::Hot(i)` —
7324                    // semantically identical to the v5.1 in-memory state
7325                    // since v8 catalogs never produced Cold locators.
7326                    t.add_index(idx_name, &column_name)?;
7327                }
7328            }
7329            1 => {
7330                let m = cur.read_u16()? as usize;
7331                let graph = cur.read_nsw_graph(m)?;
7332                t.restore_nsw_index(idx_name, &column_name, graph)?;
7333            }
7334            2 => {
7335                // v6.7.1 — BRIN tag. Payload is the column type
7336                // tag. No further data — summaries live in cold
7337                // segments.
7338                let column_type = cur.read_data_type()?;
7339                t.restore_brin_index(idx_name, &column_name, column_type)?;
7340            }
7341            3 => {
7342                // v7.12.3 — GIN tag. Payload mirrors the BTree
7343                // encoding but with String (lexeme word) keys.
7344                // Only emitted by FILE_VERSION 21+ writers — v20
7345                // and earlier degraded `USING gin` to BTree.
7346                let map = read_gin_map(cur)?;
7347                t.restore_gin_index(idx_name, &column_name, map)?;
7348            }
7349            4 => {
7350                // v7.15.0 — trigram-GIN tag (`gin_trgm_ops`).
7351                // Same payload shape as tag 3 (String → posting
7352                // list); only emitted by FILE_VERSION 24+ writers.
7353                if version < 24 {
7354                    return Err(StorageError::Corrupt(format!(
7355                        "trigram-GIN index tag 4 found in catalog FILE_VERSION {version}; \
7356                         FILE_VERSION 24+ required (v7.15.0 introduced this tag)"
7357                    )));
7358                }
7359                let map = read_gin_map(cur)?;
7360                t.restore_gin_trgm_index(idx_name, &column_name, map)?;
7361            }
7362            5 => {
7363                // v7.17.0 Phase 2.2 — fulltext-GIN tag (MySQL
7364                // `FULLTEXT KEY` surface). Same payload shape as
7365                // tag 3 / tag 4 (String → posting list); only
7366                // emitted by FILE_VERSION 33+ writers.
7367                if version < 33 {
7368                    return Err(StorageError::Corrupt(format!(
7369                        "fulltext-GIN index tag 5 found in catalog FILE_VERSION {version}; \
7370                         FILE_VERSION 33+ required (v7.17.0 Phase 2.2 introduced this tag)"
7371                    )));
7372                }
7373                let map = read_gin_map(cur)?;
7374                t.restore_gin_fulltext_index(idx_name, &column_name, map)?;
7375            }
7376            other => {
7377                return Err(StorageError::Corrupt(format!(
7378                    "unknown index kind tag: {other}"
7379                )));
7380            }
7381        }
7382        // v6.8.0 — included_columns appendix per index. v11- snapshots
7383        // stop before this u16; v12+ always carries it (possibly 0).
7384        if version >= 12 {
7385            let num_included = cur.read_u16()? as usize;
7386            if num_included > 0 {
7387                let mut included: Vec<usize> = Vec::with_capacity(num_included);
7388                for _ in 0..num_included {
7389                    let cp = cur.read_u16()? as usize;
7390                    if cp >= t.schema.columns.len() {
7391                        return Err(StorageError::Corrupt(format!(
7392                            "INCLUDE column position {cp} out of range \
7393                             ({} schema columns)",
7394                            t.schema.columns.len()
7395                        )));
7396                    }
7397                    included.push(cp);
7398                }
7399                if let Some(last) = t.indices.last_mut() {
7400                    last.included_columns = included;
7401                }
7402            }
7403            // v6.8.1 — partial_predicate appendix.
7404            match cur.read_u8()? {
7405                0 => {}
7406                1 => {
7407                    let pred = cur.read_str()?;
7408                    if let Some(last) = t.indices.last_mut() {
7409                        last.partial_predicate = Some(pred);
7410                    }
7411                }
7412                other => {
7413                    return Err(StorageError::Corrupt(format!(
7414                        "partial_predicate tag: unknown byte {other}"
7415                    )));
7416                }
7417            }
7418            // v6.8.2 — expression appendix.
7419            match cur.read_u8()? {
7420                0 => {}
7421                1 => {
7422                    let expr = cur.read_str()?;
7423                    if let Some(last) = t.indices.last_mut() {
7424                        last.expression = Some(expr);
7425                    }
7426                }
7427                other => {
7428                    return Err(StorageError::Corrupt(format!(
7429                        "expression tag: unknown byte {other}"
7430                    )));
7431                }
7432            }
7433            // v7.9.29 — is_unique appendix (FILE_VERSION 16+).
7434            // v15-and-below catalogs stop before this byte. mailrs K1.
7435            if version >= 16 {
7436                match cur.read_u8()? {
7437                    0 => {}
7438                    1 => {
7439                        if let Some(last) = t.indices.last_mut() {
7440                            last.is_unique = true;
7441                        }
7442                    }
7443                    other => {
7444                        return Err(StorageError::Corrupt(format!(
7445                            "is_unique tag: unknown byte {other}"
7446                        )));
7447                    }
7448                }
7449                // v7.9.29 — extra_column_positions appendix.
7450                let n = cur.read_u16()? as usize;
7451                if n > 0 {
7452                    let mut extras: Vec<usize> = Vec::with_capacity(n);
7453                    for _ in 0..n {
7454                        let cp = cur.read_u16()? as usize;
7455                        if cp >= t.schema.columns.len() {
7456                            return Err(StorageError::Corrupt(format!(
7457                                "extra column position {cp} out of range \
7458                                 ({} schema columns)",
7459                                t.schema.columns.len()
7460                            )));
7461                        }
7462                        extras.push(cp);
7463                    }
7464                    if let Some(last) = t.indices.last_mut() {
7465                        last.extra_column_positions = extras;
7466                    }
7467                }
7468            }
7469        }
7470    }
7471    Ok(())
7472}
7473
7474/// Parse a v9 `BTree` index payload — `[u32 entry_count]` followed by
7475/// `entry_count` `(IndexKey, Vec<RowLocator>)` pairs. The locator list
7476/// uses the v5.1 tag-prefixed wire format (`RowLocator::read_le`).
7477fn read_btree_map(
7478    cur: &mut Cursor<'_>,
7479) -> Result<PersistentBTreeMap<IndexKey, Vec<RowLocator>>, StorageError> {
7480    let entry_count = cur.read_u32()? as usize;
7481    let mut map = PersistentBTreeMap::new();
7482    for _ in 0..entry_count {
7483        let key = cur.read_index_key()?;
7484        let locator_count = cur.read_u32()? as usize;
7485        let mut locators = Vec::with_capacity(locator_count);
7486        for _ in 0..locator_count {
7487            let tail = &cur.buf[cur.pos..];
7488            let (loc, consumed) = RowLocator::read_le(tail).map_err(|e| {
7489                StorageError::Corrupt(format!("row_locator decode at offset {}: {e}", cur.pos))
7490            })?;
7491            cur.pos += consumed;
7492            locators.push(loc);
7493        }
7494        map.insert_mut(key, locators);
7495    }
7496    Ok(map)
7497}
7498
7499/// v7.12.3 — parse a `Gin` index payload. Mirrors [`read_btree_map`]
7500/// but with `String` (lexeme word) keys instead of `IndexKey`.
7501/// FILE_VERSION 21+ only.
7502fn read_gin_map(
7503    cur: &mut Cursor<'_>,
7504) -> Result<PersistentBTreeMap<String, Vec<RowLocator>>, StorageError> {
7505    let entry_count = cur.read_u32()? as usize;
7506    let mut map = PersistentBTreeMap::new();
7507    for _ in 0..entry_count {
7508        let word = cur.read_str()?;
7509        let locator_count = cur.read_u32()? as usize;
7510        let mut locators = Vec::with_capacity(locator_count);
7511        for _ in 0..locator_count {
7512            let tail = &cur.buf[cur.pos..];
7513            let (loc, consumed) = RowLocator::read_le(tail).map_err(|e| {
7514                StorageError::Corrupt(format!("row_locator decode at offset {}: {e}", cur.pos))
7515            })?;
7516            cur.pos += consumed;
7517            locators.push(loc);
7518        }
7519        map.insert_mut(word, locators);
7520    }
7521    Ok(map)
7522}
7523
7524// --- low-level binary helpers ---------------------------------------------
7525
7526/// Write a `DataType` as a tag byte + optional payload (Vector carries its
7527/// `u32` dimension). Inverse: [`read_data_type`].
7528/// Serialize an HNSW graph after the `[kind=1][u16 M]` header (v7).
7529/// Layout:
7530/// - `[u16 m_max_0]`
7531/// - `[entry u32]` — `u32::MAX` means `None`, else the entry node index
7532/// - `[u8 entry_level]`
7533/// - `[node_count u32]`
7534/// - for each node: `[u8 level]`  (top layer for this node)
7535/// - `[layer_count u8]`
7536/// - for each layer `0..layer_count`:
7537///     - `[u32 layer_node_count]` (== `node_count`; per-layer slot)
7538///     - for each node: `[u16 neighbor_count] [u32 neighbor]*`
7539fn write_nsw_graph(out: &mut Vec<u8>, g: &NswGraph) {
7540    let entry = g.entry.map_or(u32::MAX, |e| {
7541        u32::try_from(e).expect("NSW entry fits in u32")
7542    });
7543    write_u16(
7544        out,
7545        u16::try_from(g.m_max_0).expect("HNSW m_max_0 fits in u16"),
7546    );
7547    out.extend_from_slice(&entry.to_le_bytes());
7548    out.push(g.entry_level);
7549    let node_count = g.levels.len();
7550    write_u32(
7551        out,
7552        u32::try_from(node_count).expect("HNSW node count fits in u32"),
7553    );
7554    for &lvl in &g.levels {
7555        out.push(lvl);
7556    }
7557    let layer_count = u8::try_from(g.layers.len()).expect("HNSW layer count ≤ 255");
7558    out.push(layer_count);
7559    for layer in &g.layers {
7560        write_u32(
7561            out,
7562            u32::try_from(layer.len()).expect("HNSW per-layer node count fits in u32"),
7563        );
7564        for neighbors in layer {
7565            write_u16(
7566                out,
7567                u16::try_from(neighbors.len()).expect("HNSW neighbour list fits in u16"),
7568            );
7569            // v6.1.x: neighbour slot is already u32 in memory; just
7570            // emit the raw bytes. (v6.0 stored usize and converted
7571            // here.)
7572            for &peer in neighbors {
7573                write_u32(out, peer);
7574            }
7575        }
7576    }
7577}
7578
7579fn write_data_type(out: &mut Vec<u8>, t: DataType) {
7580    match t {
7581        DataType::Int => out.push(1),
7582        DataType::BigInt => out.push(2),
7583        DataType::Float => out.push(3),
7584        DataType::Text => out.push(4),
7585        DataType::Bool => out.push(5),
7586        DataType::Vector { dim, encoding } => match encoding {
7587            // Tag 6: pre-v6 F32 vector. Layout unchanged; pre-v6
7588            // binaries continue to deserialise this exactly as
7589            // before.
7590            VecEncoding::F32 => {
7591                out.push(6);
7592                out.extend_from_slice(&dim.to_le_bytes());
7593            }
7594            // v6.0.3: tag 15 for `VECTOR(N) USING HALF`. Same
7595            // forward-compat fence story as SQ8 below.
7596            VecEncoding::F16 => {
7597                out.push(15);
7598                out.extend_from_slice(&dim.to_le_bytes());
7599            }
7600            // v6.0.1: new tag 14 for `VECTOR(N) USING SQ8` column
7601            // type. Pre-v6 readers fall through `read_data_type`'s
7602            // catch-all and surface `Corrupt("unknown data type tag")`
7603            // — the explicit forward-compat fence called out in
7604            // V6_DESIGN deliberation #5.
7605            VecEncoding::Sq8 => {
7606                out.push(14);
7607                out.extend_from_slice(&dim.to_le_bytes());
7608            }
7609        },
7610        DataType::SmallInt => out.push(7),
7611        DataType::Varchar(max) => {
7612            out.push(8);
7613            out.extend_from_slice(&max.to_le_bytes());
7614        }
7615        DataType::Char(size) => {
7616            out.push(9);
7617            out.extend_from_slice(&size.to_le_bytes());
7618        }
7619        DataType::Numeric { precision, scale } => {
7620            out.push(10);
7621            out.push(precision);
7622            out.push(scale);
7623        }
7624        DataType::Date => out.push(11),
7625        DataType::Timestamp => out.push(12),
7626        // v7.9.2 — tag 17 for TIMESTAMPTZ. Body = i64 microseconds
7627        // UTC, identical to tag 12. Only the schema-side type tag
7628        // differs (for wire OID advertisement).
7629        DataType::Timestamptz => out.push(17),
7630        // INTERVAL is runtime-only — CREATE TABLE never produces a
7631        // column with this type, so write_data_type must not be called
7632        // on it. (Disk-format codepoint reserved for a future v3 where
7633        // INTERVAL becomes storable.)
7634        DataType::Interval => {
7635            unreachable!("DataType::Interval has no on-disk encoding in v2.11")
7636        }
7637        DataType::Json => out.push(13),
7638        // v7.9.0: tag 16 for `JSONB`. Same on-disk layout as
7639        // tag 13 — only the wire OID differs.
7640        DataType::Jsonb => out.push(16),
7641        // v7.10.4: tag 18 for `BYTEA`. Body = [u16 len][bytes].
7642        DataType::Bytes => out.push(18),
7643        // v7.10.9: tag 19 for `TEXT[]`. Body = [u16 count][per
7644        // element: u8 null + (if non-null) u16 len + utf-8].
7645        DataType::TextArray => out.push(19),
7646        // v7.11.12: tag 20 for `INT[]`. Body = [u16 count][per
7647        // element: u8 null + (if non-null) i32 LE].
7648        DataType::IntArray => out.push(20),
7649        // v7.11.12: tag 21 for `BIGINT[]`. Body = [u16 count][per
7650        // element: u8 null + (if non-null) i64 LE].
7651        DataType::BigIntArray => out.push(21),
7652        // v7.12.0: tag 22 for `tsvector`. No body — type identity
7653        // alone. Catalog FILE_VERSION 20+.
7654        DataType::TsVector => out.push(22),
7655        // v7.12.0: tag 23 for `tsquery`. No body. Catalog
7656        // FILE_VERSION 20+.
7657        DataType::TsQuery => out.push(23),
7658        // v7.17.0: tag 24 for `UUID`. No body — type identity
7659        // alone. Catalog FILE_VERSION 36+.
7660        DataType::Uuid => out.push(24),
7661        // v7.17.0 Phase 3.P0-32: tag 25 for `TIME`. No body — type
7662        // identity alone. Catalog FILE_VERSION 37+.
7663        DataType::Time => out.push(25),
7664        // v7.17.0 Phase 3.P0-33: tag 26 for `YEAR`. No body — type
7665        // identity alone. Catalog FILE_VERSION 38+.
7666        DataType::Year => out.push(26),
7667        // v7.17.0 Phase 3.P0-34: tag 27 for `TIMETZ`. No body —
7668        // type identity alone. Catalog FILE_VERSION 39+.
7669        DataType::TimeTz => out.push(27),
7670        // v7.17.0 Phase 3.P0-35: tag 28 for `MONEY`. No body —
7671        // type identity alone. Catalog FILE_VERSION 40+.
7672        DataType::Money => out.push(28),
7673        // v7.17.0 Phase 3.P0-38: tag 29 for range types. Body
7674        // = `[u8 RangeKind tag]`. Catalog FILE_VERSION 43+.
7675        DataType::Range(k) => {
7676            out.push(29);
7677            out.push(k.tag());
7678        }
7679        // v7.17.0 Phase 3.P0-39: tag 30 for hstore. No body —
7680        // type identity alone. Catalog FILE_VERSION 44+.
7681        DataType::Hstore => out.push(30),
7682        // v7.17.0 Phase 3.P0-40: tag 31/32/33 for 2D arrays.
7683        // No body — type identity alone. Catalog FILE_VERSION 45+.
7684        DataType::IntArray2D => out.push(31),
7685        DataType::BigIntArray2D => out.push(32),
7686        DataType::TextArray2D => out.push(33),
7687    }
7688}
7689
7690impl Cursor<'_> {
7691    fn read_data_type(&mut self) -> Result<DataType, StorageError> {
7692        let tag = self.read_u8()?;
7693        match tag {
7694            1 => Ok(DataType::Int),
7695            2 => Ok(DataType::BigInt),
7696            3 => Ok(DataType::Float),
7697            4 => Ok(DataType::Text),
7698            5 => Ok(DataType::Bool),
7699            6 => Ok(DataType::Vector {
7700                dim: self.read_u32()?,
7701                encoding: VecEncoding::F32,
7702            }),
7703            7 => Ok(DataType::SmallInt),
7704            8 => Ok(DataType::Varchar(self.read_u32()?)),
7705            9 => Ok(DataType::Char(self.read_u32()?)),
7706            10 => {
7707                let precision = self.read_u8()?;
7708                let scale = self.read_u8()?;
7709                Ok(DataType::Numeric { precision, scale })
7710            }
7711            11 => Ok(DataType::Date),
7712            12 => Ok(DataType::Timestamp),
7713            13 => Ok(DataType::Json),
7714            14 => Ok(DataType::Vector {
7715                dim: self.read_u32()?,
7716                encoding: VecEncoding::Sq8,
7717            }),
7718            // v6.0.3: tag 15 for `VECTOR(N) USING HALF`. Same
7719            // [u32 dim] type-tag payload as F32 / SQ8; the encoding
7720            // lives in the tag byte itself.
7721            15 => Ok(DataType::Vector {
7722                dim: self.read_u32()?,
7723                encoding: VecEncoding::F16,
7724            }),
7725            // v7.9.0: tag 16 for `JSONB`. Storage shape == Json;
7726            // we only carry the type tag so the wire layer can
7727            // emit PG OID 3802 instead of 114.
7728            16 => Ok(DataType::Jsonb),
7729            // v7.9.2: tag 17 for `TIMESTAMPTZ`. Storage shape ==
7730            // Timestamp (i64 microseconds UTC); only the wire OID
7731            // (1184) differs.
7732            17 => Ok(DataType::Timestamptz),
7733            // v7.10.4: tag 18 for `BYTEA`. Catalog FILE_VERSION 17+.
7734            18 => Ok(DataType::Bytes),
7735            // v7.10.9: tag 19 for `TEXT[]`. Catalog FILE_VERSION 18+.
7736            19 => Ok(DataType::TextArray),
7737            // v7.11.12: tags 20/21 for INT[]/BIGINT[]. FILE_VERSION 19+.
7738            20 => Ok(DataType::IntArray),
7739            21 => Ok(DataType::BigIntArray),
7740            // v7.12.0: tags 22/23 for tsvector / tsquery. Catalog
7741            // FILE_VERSION 20+.
7742            22 => Ok(DataType::TsVector),
7743            23 => Ok(DataType::TsQuery),
7744            // v7.17.0: tag 24 — UUID. Catalog FILE_VERSION 36+.
7745            24 => Ok(DataType::Uuid),
7746            // v7.17.0 Phase 3.P0-32: tag 25 — TIME. Catalog
7747            // FILE_VERSION 37+.
7748            25 => Ok(DataType::Time),
7749            // v7.17.0 Phase 3.P0-33: tag 26 — YEAR. Catalog
7750            // FILE_VERSION 38+.
7751            26 => Ok(DataType::Year),
7752            // v7.17.0 Phase 3.P0-34: tag 27 — TIMETZ. Catalog
7753            // FILE_VERSION 39+.
7754            27 => Ok(DataType::TimeTz),
7755            // v7.17.0 Phase 3.P0-35: tag 28 — MONEY. Catalog
7756            // FILE_VERSION 40+.
7757            28 => Ok(DataType::Money),
7758            // v7.17.0 Phase 3.P0-38: tag 29 + RangeKind tag.
7759            29 => {
7760                let kt = self.read_u8()?;
7761                let k = RangeKind::from_tag(kt)
7762                    .ok_or_else(|| StorageError::Corrupt(format!("unknown RangeKind tag: {kt}")))?;
7763                Ok(DataType::Range(k))
7764            }
7765            // v7.17.0 Phase 3.P0-39: tag 30 — HSTORE.
7766            30 => Ok(DataType::Hstore),
7767            // v7.17.0 Phase 3.P0-40: tag 31/32/33 — 2D arrays.
7768            31 => Ok(DataType::IntArray2D),
7769            32 => Ok(DataType::BigIntArray2D),
7770            33 => Ok(DataType::TextArray2D),
7771            other => Err(StorageError::Corrupt(format!(
7772                "unknown data type tag: {other}"
7773            ))),
7774        }
7775    }
7776}
7777
7778/// Fast computation of the byte length [`encode_row_body_dense`]
7779/// would produce, without allocating the output buffer. Mirrors the
7780/// encoder's per-column body sizing so the v5.2.1 `Table::hot_bytes`
7781/// incremental counter doesn't pay an alloc-per-insert tax. Returns
7782/// the exact same `usize` as `encode_row_body_dense(row, schema).len()`.
7783pub fn row_body_encoded_len(row: &Row, schema: &TableSchema) -> usize {
7784    debug_assert_eq!(
7785        row.values.len(),
7786        schema.columns.len(),
7787        "row_body_encoded_len: row arity must match schema"
7788    );
7789    let bitmap_bytes = schema.columns.len().div_ceil(8);
7790    let mut n = bitmap_bytes;
7791    for (col_idx, v) in row.values.iter().enumerate() {
7792        if matches!(v, Value::Null) {
7793            continue;
7794        }
7795        n += value_body_encoded_len(v, schema.columns[col_idx].ty);
7796    }
7797    n
7798}
7799
7800/// Byte length a single cell consumes when written by
7801/// `write_value_body`. Used by [`row_body_encoded_len`]; kept in
7802/// lock-step with the encoder. The `_ty` slot is reserved for future
7803/// type-dependent encodings — every variant currently writes a fixed
7804/// body shape regardless of the declared column type.
7805fn value_body_encoded_len(v: &Value, _ty: DataType) -> usize {
7806    match v {
7807        Value::SmallInt(_) => 2,
7808        // 4-byte body: i32 / Date.
7809        Value::Int(_) | Value::Date(_) => 4,
7810        // 8-byte body: i64 / f64 / Timestamp.
7811        Value::BigInt(_) | Value::Float(_) | Value::Timestamp(_) => 8,
7812        Value::Bool(_) => 1,
7813        // Text/Varchar/Char/Json share the [u16 len][utf-8] layout.
7814        Value::Text(s) | Value::Json(s) => 2 + s.len(),
7815        // [u32 dim][f32 * dim]
7816        Value::Vector(vec) => 4 + 4 * vec.len(),
7817        // v6.0.1: SQ8 cell on-disk shape — [u32 dim][f32 min]
7818        // [f32 max][u8 * dim] = 12 + dim bytes. `hot_bytes`
7819        // tracking on `Table::insert` calls this every row, so
7820        // returning the real size now (even though the actual
7821        // `write_value_body` writer lands in step 6) keeps the
7822        // sizing arithmetic honest for in-memory benches.
7823        Value::Sq8Vector(q) => 4 + 4 + 4 + q.bytes.len(),
7824        // v6.0.3: halfvec on-disk shape — [u32 dim][u16 LE * dim]
7825        // = 4 + 2 * dim bytes.
7826        Value::HalfVector(h) => 4 + h.bytes.len(),
7827        // [i128 scaled][u8 scale]
7828        Value::Numeric { .. } => 16 + 1,
7829        // v7.10.4: BYTEA on-disk shape mirrors Text — [u16 len][bytes].
7830        // The 16-bit length cap is the same TEXT/JSON limit (~65 KB);
7831        // larger blobs need toast-style chunking which is a v7.11
7832        // carve-out (kept aligned with TEXT for now so the catalog
7833        // snapshot stays simple).
7834        Value::Bytes(b) => 2 + b.len(),
7835        // v7.10.9: TEXT[] on-disk shape — [u16 count][per element:
7836        // u8 null flag + (when non-null) u16 len + utf-8 bytes].
7837        Value::TextArray(items) => {
7838            let mut n = 2; // count prefix
7839            for item in items {
7840                n += 1; // null flag
7841                if let Some(s) = item {
7842                    n += 2 + s.len();
7843                }
7844            }
7845            n
7846        }
7847        // v7.11.12: INT[] / BIGINT[] — [u16 count][per element:
7848        // u8 null + (when non-null) fixed-width LE].
7849        Value::IntArray(items) => {
7850            2 + items
7851                .iter()
7852                .map(|x| if x.is_some() { 5 } else { 1 })
7853                .sum::<usize>()
7854        }
7855        Value::BigIntArray(items) => {
7856            2 + items
7857                .iter()
7858                .map(|x| if x.is_some() { 9 } else { 1 })
7859                .sum::<usize>()
7860        }
7861        // v7.12.0: tsvector dense body — [u16 lexeme_count][per
7862        // lex: u16 word_len + utf-8 word + u16 pos_count + (u16
7863        // LE * pos_count) + u8 weight].
7864        Value::TsVector(lexs) => {
7865            let mut n = 2;
7866            for l in lexs {
7867                n += 2 + l.word.len() + 2 + 2 * l.positions.len() + 1;
7868            }
7869            n
7870        }
7871        // v7.12.0: tsquery dense body — prefix-coded tree.
7872        // Sizing must match `write_tsquery_body` walker.
7873        Value::TsQuery(ast) => tsquery_encoded_len(ast),
7874        // v7.17.0: UUID dense body — fixed 16 bytes, no prefix.
7875        Value::Uuid(_) => 16,
7876        // v7.17.0 Phase 3.P0-32: TIME dense body — fixed i64 LE.
7877        Value::Time(_) => 8,
7878        // v7.17.0 Phase 3.P0-33: YEAR dense body — fixed u16 LE.
7879        Value::Year(_) => 2,
7880        // v7.17.0 Phase 3.P0-34: TIMETZ dense body — i64 LE + i32 LE.
7881        Value::TimeTz { .. } => 12,
7882        // v7.17.0 Phase 3.P0-35: MONEY dense body — i64 LE cents.
7883        Value::Money(_) => 8,
7884        // v7.17.0 Phase 3.P0-38: range dense body — `[u8 flags]
7885        // [if lower: write_value(lower)] [if upper: write_value(upper)]`.
7886        // Element uses the schema-agnostic write_value codec
7887        // (which carries its own tag byte). The flags byte
7888        // captures empty/lower_some/upper_some/lower_inc/upper_inc.
7889        Value::Range { lower, upper, .. } => {
7890            1 + lower
7891                .as_ref()
7892                .map(|v| write_value_encoded_len(v))
7893                .unwrap_or(0)
7894                + upper
7895                    .as_ref()
7896                    .map(|v| write_value_encoded_len(v))
7897                    .unwrap_or(0)
7898        }
7899        // v7.17.0 Phase 3.P0-39: hstore dense body — `[u32 count]
7900        // then per pair [u32 klen][k bytes][u8 has_val][if has_val:
7901        // u32 vlen][v bytes]`.
7902        Value::Hstore(pairs) => {
7903            let mut n = 4;
7904            for (k, v) in pairs {
7905                n += 4 + k.len() + 1;
7906                if let Some(val) = v {
7907                    n += 4 + val.len();
7908                }
7909            }
7910            n
7911        }
7912        // v7.17.0 Phase 3.P0-40: 2D arrays dense body — `[u32 rows]
7913        // [u32 cols] then row-major elements with per-element
7914        // `[u8 null_flag][if non-null: element body]`.
7915        Value::IntArray2D(rows) => {
7916            let cols = rows.first().map(|r| r.len()).unwrap_or(0);
7917            8 + rows.len() * cols * (1 + 4)
7918        }
7919        Value::BigIntArray2D(rows) => {
7920            let cols = rows.first().map(|r| r.len()).unwrap_or(0);
7921            8 + rows.len() * cols * (1 + 8)
7922        }
7923        Value::TextArray2D(rows) => {
7924            let cols = rows.first().map(|r| r.len()).unwrap_or(0);
7925            let mut n = 8 + rows.len() * cols;
7926            for row in rows {
7927                for s in row.iter().flatten() {
7928                    n += 4 + s.len();
7929                }
7930            }
7931            n
7932        }
7933        // NULL is encoded only in the bitmap, never in the body.
7934        Value::Null => 0,
7935        // INTERVAL has no on-disk encoding (see write_value_body).
7936        Value::Interval { .. } => {
7937            unreachable!("Value::Interval has no on-disk encoding")
7938        }
7939    }
7940}
7941
7942/// Encode one row's body in the v3.0.2 dense format (`FILE_VERSION`
7943/// 8): per-row NULL bitmap (1 bit/col, ceil(cols/8) bytes), then
7944/// each non-NULL cell as `write_value_body`. Same wire shape the
7945/// catalog snapshot writes per row inside its rows-block. Exposed
7946/// pub so v5.1+ cold-tier segment writers can produce row payloads
7947/// that the catalog [`decode_row_body_dense`] decodes 1:1.
7948///
7949/// `row.values.len()` must equal `schema.columns.len()` — the row
7950/// is expected to have been validated by `Table::insert` (the
7951/// engine's INSERT path) before reaching this function.
7952pub fn encode_row_body_dense(row: &Row, schema: &TableSchema) -> Vec<u8> {
7953    debug_assert_eq!(
7954        row.values.len(),
7955        schema.columns.len(),
7956        "dense encode: row arity must match schema"
7957    );
7958    let bitmap_bytes = schema.columns.len().div_ceil(8);
7959    // 8 B per fixed-width cell is a reasonable average; the buffer
7960    // grows past this for variable-width Text/Vector cells.
7961    let mut out = Vec::with_capacity(bitmap_bytes + schema.columns.len() * 8);
7962    let bitmap_offset = out.len();
7963    out.resize(bitmap_offset + bitmap_bytes, 0);
7964    for (i, v) in row.values.iter().enumerate() {
7965        if matches!(v, Value::Null) {
7966            out[bitmap_offset + i / 8] |= 1 << (i % 8);
7967        }
7968    }
7969    for (col_idx, v) in row.values.iter().enumerate() {
7970        if matches!(v, Value::Null) {
7971            continue;
7972        }
7973        write_value_body(&mut out, v, schema.columns[col_idx].ty);
7974    }
7975    out
7976}
7977
7978/// Inverse of [`encode_row_body_dense`]. Reads one row's body from
7979/// `bytes` and returns it plus the number of bytes consumed (so a
7980/// caller decoding a back-to-back stream of rows can advance its
7981/// cursor). Returns `StorageError::Corrupt` on truncation, bad
7982/// UTF-8, or unknown cell tags.
7983pub fn decode_row_body_dense(
7984    bytes: &[u8],
7985    schema: &TableSchema,
7986) -> Result<(Row, usize), StorageError> {
7987    let mut cur = Cursor::new(bytes);
7988    let bitmap_bytes = schema.columns.len().div_ceil(8);
7989    let mut bitmap_buf = [0u8; 32];
7990    if bitmap_bytes > bitmap_buf.len() {
7991        return Err(StorageError::Corrupt(format!(
7992            "row NULL bitmap {bitmap_bytes} B exceeds 32 B cap"
7993        )));
7994    }
7995    let slice = cur.take(bitmap_bytes)?;
7996    bitmap_buf[..bitmap_bytes].copy_from_slice(slice);
7997    let mut values = Vec::with_capacity(schema.columns.len());
7998    for (col_idx, col) in schema.columns.iter().enumerate() {
7999        if (bitmap_buf[col_idx / 8] >> (col_idx % 8)) & 1 == 1 {
8000            values.push(Value::Null);
8001        } else {
8002            values.push(cur.read_value_body(col.ty)?);
8003        }
8004    }
8005    Ok((Row { values }, cur.pos))
8006}
8007
8008/// Schema-driven dense value encoding (`FILE_VERSION` 8). Caller already
8009/// knows the column type and has decided this cell is non-NULL, so we
8010/// skip the per-cell type tag the v7 `write_value` was writing. NULL
8011/// is encoded via the per-row bitmap before this function runs, never
8012/// reaches here. Used only inside the row-encoding hot loop; the
8013/// schema-default path still goes through the legacy `write_value` so
8014/// DEFAULT values keep their self-describing tag and remain decodable
8015/// without consulting a column type.
8016fn write_value_body(out: &mut Vec<u8>, v: &Value, ty: DataType) {
8017    match (v, ty) {
8018        (Value::SmallInt(n), DataType::SmallInt) => out.extend_from_slice(&n.to_le_bytes()),
8019        (Value::Int(n), DataType::Int) => out.extend_from_slice(&n.to_le_bytes()),
8020        (Value::BigInt(n), DataType::BigInt) => out.extend_from_slice(&n.to_le_bytes()),
8021        (Value::Float(x), DataType::Float) => out.extend_from_slice(&x.to_le_bytes()),
8022        (Value::Bool(b), DataType::Bool) => out.push(u8::from(*b)),
8023        (Value::Text(s), DataType::Text | DataType::Varchar(_) | DataType::Char(_)) => {
8024            write_str(out, s);
8025        }
8026        (
8027            Value::Vector(v),
8028            DataType::Vector {
8029                encoding: VecEncoding::F32,
8030                ..
8031            },
8032        ) => {
8033            let dim = u32::try_from(v.len()).expect("vector dim fits in u32");
8034            out.extend_from_slice(&dim.to_le_bytes());
8035            for x in v {
8036                out.extend_from_slice(&x.to_le_bytes());
8037            }
8038        }
8039        // v6.0.1: SQ8 dense body — [u32 dim][f32 min][f32 max]
8040        // [u8 * dim]. Self-describes its length so v6 readers
8041        // walking rows of a v6 catalog stay aligned even if the
8042        // declared column dim drifts (defensive, not normally
8043        // possible since CREATE TABLE pins the dim).
8044        (
8045            Value::Sq8Vector(q),
8046            DataType::Vector {
8047                encoding: VecEncoding::Sq8,
8048                ..
8049            },
8050        ) => {
8051            let dim = u32::try_from(q.bytes.len()).expect("vector dim fits in u32");
8052            out.extend_from_slice(&dim.to_le_bytes());
8053            out.extend_from_slice(&q.min.to_le_bytes());
8054            out.extend_from_slice(&q.max.to_le_bytes());
8055            out.extend_from_slice(&q.bytes);
8056        }
8057        // v6.0.3: halfvec dense body — [u32 dim][u16 LE * dim].
8058        // The raw u16 bytes already live in `h.bytes` little-
8059        // endian, so we just splat them.
8060        (
8061            Value::HalfVector(h),
8062            DataType::Vector {
8063                encoding: VecEncoding::F16,
8064                ..
8065            },
8066        ) => {
8067            let dim = u32::try_from(h.dim()).expect("vector dim fits in u32");
8068            out.extend_from_slice(&dim.to_le_bytes());
8069            out.extend_from_slice(&h.bytes);
8070        }
8071        (Value::Numeric { scaled, .. }, DataType::Numeric { scale, .. }) => {
8072            out.extend_from_slice(&scaled.to_le_bytes());
8073            out.push(scale);
8074        }
8075        (Value::Date(d), DataType::Date) => out.extend_from_slice(&d.to_le_bytes()),
8076        (Value::Timestamp(t), DataType::Timestamp | DataType::Timestamptz) => {
8077            out.extend_from_slice(&t.to_le_bytes())
8078        }
8079        // v4.9: JSON stores as length-prefixed text; same shape as
8080        // Text — the type tag lives in the column schema, not the
8081        // per-cell body.
8082        (Value::Json(s), DataType::Json | DataType::Jsonb) => write_str(out, s),
8083        // v7.10.4: BYTEA shares the [u16 len][bytes] shape with
8084        // Text but writes raw bytes (no UTF-8 invariant).
8085        (Value::Bytes(b), DataType::Bytes) => {
8086            let len = u16::try_from(b.len()).expect("BYTEA cell ≤ 64 KiB");
8087            out.extend_from_slice(&len.to_le_bytes());
8088            out.extend_from_slice(b);
8089        }
8090        // v7.10.9: TEXT[] dense body — [u16 count][per element:
8091        // u8 null flag + (when non-null) u16 len + utf-8 bytes].
8092        (Value::TextArray(items), DataType::TextArray) => {
8093            let count = u16::try_from(items.len()).expect("TEXT[] ≤ 65k elements");
8094            out.extend_from_slice(&count.to_le_bytes());
8095            for item in items {
8096                match item {
8097                    None => out.push(1),
8098                    Some(s) => {
8099                        out.push(0);
8100                        let len = u16::try_from(s.len()).expect("TEXT[] element ≤ 64 KiB");
8101                        out.extend_from_slice(&len.to_le_bytes());
8102                        out.extend_from_slice(s.as_bytes());
8103                    }
8104                }
8105            }
8106        }
8107        // v7.11.12: INT[] dense body — [u16 count][per element:
8108        // u8 null + (when non-null) i32 LE].
8109        (Value::IntArray(items), DataType::IntArray) => {
8110            let count = u16::try_from(items.len()).expect("INT[] ≤ 65k elements");
8111            out.extend_from_slice(&count.to_le_bytes());
8112            for item in items {
8113                match item {
8114                    None => out.push(1),
8115                    Some(n) => {
8116                        out.push(0);
8117                        out.extend_from_slice(&n.to_le_bytes());
8118                    }
8119                }
8120            }
8121        }
8122        // v7.11.12: BIGINT[] dense body — [u16 count][per element:
8123        // u8 null + (when non-null) i64 LE].
8124        (Value::BigIntArray(items), DataType::BigIntArray) => {
8125            let count = u16::try_from(items.len()).expect("BIGINT[] ≤ 65k elements");
8126            out.extend_from_slice(&count.to_le_bytes());
8127            for item in items {
8128                match item {
8129                    None => out.push(1),
8130                    Some(n) => {
8131                        out.push(0);
8132                        out.extend_from_slice(&n.to_le_bytes());
8133                    }
8134                }
8135            }
8136        }
8137        // v7.12.0: tsvector dense body — see `value_body_encoded_len`
8138        // for layout. Lexemes are written in their already-sorted order.
8139        (Value::TsVector(lexs), DataType::TsVector) => write_tsvector_body(out, lexs),
8140        // v7.12.0: tsquery dense body — prefix-coded tree.
8141        (Value::TsQuery(ast), DataType::TsQuery) => write_tsquery_body(out, ast),
8142        // v7.17.0: UUID dense body — raw 16 bytes (RFC 4122 byte
8143        // order). No length prefix; the type's fixed width makes
8144        // the codec stateless.
8145        (Value::Uuid(b), DataType::Uuid) => out.extend_from_slice(&b[..]),
8146        // v7.17.0 Phase 3.P0-32: TIME dense body — i64 LE
8147        // microseconds since 00:00:00.
8148        (Value::Time(us), DataType::Time) => out.extend_from_slice(&us.to_le_bytes()),
8149        // v7.17.0 Phase 3.P0-33: YEAR dense body — u16 LE.
8150        (Value::Year(y), DataType::Year) => out.extend_from_slice(&y.to_le_bytes()),
8151        // v7.17.0 Phase 3.P0-34: TIMETZ dense body — i64 LE us +
8152        // i32 LE offset_secs.
8153        (Value::TimeTz { us, offset_secs }, DataType::TimeTz) => {
8154            out.extend_from_slice(&us.to_le_bytes());
8155            out.extend_from_slice(&offset_secs.to_le_bytes());
8156        }
8157        // v7.17.0 Phase 3.P0-35: MONEY dense body — i64 LE cents.
8158        (Value::Money(c), DataType::Money) => out.extend_from_slice(&c.to_le_bytes()),
8159        // v7.17.0 Phase 3.P0-38: range dense body — see
8160        // value_body_encoded_len for layout. `kind` is implicit
8161        // from the column DataType.
8162        (
8163            Value::Range {
8164                lower,
8165                upper,
8166                lower_inc,
8167                upper_inc,
8168                empty,
8169                ..
8170            },
8171            DataType::Range(_),
8172        ) => {
8173            let mut flags: u8 = 0;
8174            if *empty {
8175                flags |= 0b0000_0001;
8176            }
8177            if lower.is_some() {
8178                flags |= 0b0000_0010;
8179            }
8180            if upper.is_some() {
8181                flags |= 0b0000_0100;
8182            }
8183            if *lower_inc {
8184                flags |= 0b0000_1000;
8185            }
8186            if *upper_inc {
8187                flags |= 0b0001_0000;
8188            }
8189            out.push(flags);
8190            if let Some(l) = lower {
8191                write_value(out, l);
8192            }
8193            if let Some(u) = upper {
8194                write_value(out, u);
8195            }
8196        }
8197        // v7.17.0 Phase 3.P0-39: hstore dense body — same shape
8198        // as write_value_body for hstore (no leading tag — that
8199        // lives on the data type).
8200        (Value::Hstore(pairs), DataType::Hstore) => write_hstore_body(out, pairs),
8201        // v7.17.0 Phase 3.P0-40: 2D array dense body.
8202        (Value::IntArray2D(rows), DataType::IntArray2D) => write_int_2d_body(out, rows),
8203        (Value::BigIntArray2D(rows), DataType::BigIntArray2D) => write_bigint_2d_body(out, rows),
8204        (Value::TextArray2D(rows), DataType::TextArray2D) => write_text_2d_body(out, rows),
8205        // Type mismatch shouldn't happen — `Table::insert` validates
8206        // value type against column type before pushing. Treat as a
8207        // bug, not a runtime error.
8208        (other, ty) => unreachable!(
8209            "schema-driven encode received mismatched value/type pair: \
8210             value tag={:?}, column type={:?}",
8211            other.data_type(),
8212            ty
8213        ),
8214    }
8215}
8216
8217/// v7.17.0 Phase 3.P0-38 — length the schema-agnostic
8218/// `write_value` would emit for `v`. Used by the range codec to
8219/// pre-size cells. We mirror the tag-byte + body shape from
8220/// `write_value` rather than serialising to a temp Vec.
8221fn write_value_encoded_len(v: &Value) -> usize {
8222    match v {
8223        Value::Null => 1,
8224        Value::SmallInt(_) => 1 + 2,
8225        Value::Int(_) | Value::Date(_) => 1 + 4,
8226        Value::BigInt(_)
8227        | Value::Float(_)
8228        | Value::Timestamp(_)
8229        | Value::Time(_)
8230        | Value::Money(_) => 1 + 8,
8231        Value::Bool(_) => 1 + 1,
8232        Value::Year(_) => 1 + 2,
8233        Value::Text(s) | Value::Json(s) => 1 + 4 + s.len(),
8234        Value::Bytes(b) => 1 + 4 + b.len(),
8235        Value::Numeric { .. } => 1 + 16 + 1,
8236        Value::Uuid(_) => 1 + 16,
8237        Value::TimeTz { .. } => 1 + 12,
8238        Value::Hstore(pairs) => {
8239            let mut n = 1 + 4;
8240            for (k, v) in pairs {
8241                n += 4 + k.len() + 1;
8242                if let Some(val) = v {
8243                    n += 4 + val.len();
8244                }
8245            }
8246            n
8247        }
8248        Value::IntArray2D(rows) => {
8249            let cols = rows.first().map(|r| r.len()).unwrap_or(0);
8250            1 + 8 + rows.len() * cols * (1 + 4)
8251        }
8252        Value::BigIntArray2D(rows) => {
8253            let cols = rows.first().map(|r| r.len()).unwrap_or(0);
8254            1 + 8 + rows.len() * cols * (1 + 8)
8255        }
8256        Value::TextArray2D(rows) => {
8257            let cols = rows.first().map(|r| r.len()).unwrap_or(0);
8258            let mut n = 1 + 8 + rows.len() * cols;
8259            for row in rows {
8260                for s in row.iter().flatten() {
8261                    n += 4 + s.len();
8262                }
8263            }
8264            n
8265        }
8266        // Range-of-range and other nested cases — not currently
8267        // representable but defensively measured via the dense
8268        // body when the data_type is known.
8269        other => {
8270            let ty = other.data_type().unwrap_or(DataType::Int);
8271            1 + value_body_encoded_len(other, ty)
8272        }
8273    }
8274}
8275
8276fn write_value(out: &mut Vec<u8>, v: &Value) {
8277    match v {
8278        Value::Null => out.push(0),
8279        Value::SmallInt(n) => {
8280            out.push(7);
8281            out.extend_from_slice(&n.to_le_bytes());
8282        }
8283        Value::Int(n) => {
8284            out.push(1);
8285            out.extend_from_slice(&n.to_le_bytes());
8286        }
8287        Value::BigInt(n) => {
8288            out.push(2);
8289            out.extend_from_slice(&n.to_le_bytes());
8290        }
8291        Value::Float(x) => {
8292            out.push(3);
8293            out.extend_from_slice(&x.to_le_bytes());
8294        }
8295        // v4.9: JSON shares the tag-4 (Text) on-disk encoding —
8296        // schema decides which variant comes back on read. The
8297        // bodies are byte-identical so collapsing the match keeps
8298        // clippy::match_same_arms quiet.
8299        Value::Text(s) | Value::Json(s) => {
8300            out.push(4);
8301            write_str(out, s);
8302        }
8303        Value::Bool(b) => {
8304            out.push(5);
8305            out.push(u8::from(*b));
8306        }
8307        Value::Vector(v) => {
8308            out.push(6);
8309            let dim = u32::try_from(v.len()).expect("vector dim fits in u32");
8310            out.extend_from_slice(&dim.to_le_bytes());
8311            for x in v {
8312                out.extend_from_slice(&x.to_le_bytes());
8313            }
8314        }
8315        // v6.0.1: new tag 11 for an SQ8 cell carried with its full
8316        // header. Layout matches the dense row body shape so a
8317        // round-trip through write_value → read_value bit-equals
8318        // the original `Value::Sq8Vector`.
8319        Value::Sq8Vector(q) => {
8320            out.push(11);
8321            let dim = u32::try_from(q.bytes.len()).expect("vector dim fits in u32");
8322            out.extend_from_slice(&dim.to_le_bytes());
8323            out.extend_from_slice(&q.min.to_le_bytes());
8324            out.extend_from_slice(&q.max.to_le_bytes());
8325            out.extend_from_slice(&q.bytes);
8326        }
8327        // v6.0.3: tag 12 for a HalfVector cell.
8328        // Layout: `[u32 dim][u16 LE × dim]` — bit-identical to the
8329        // dense row body so `write_value` / `read_value` bit-equal
8330        // the original `Value::HalfVector`.
8331        Value::HalfVector(h) => {
8332            out.push(12);
8333            let dim = u32::try_from(h.dim()).expect("vector dim fits in u32");
8334            out.extend_from_slice(&dim.to_le_bytes());
8335            out.extend_from_slice(&h.bytes);
8336        }
8337        Value::Numeric { scaled, scale } => {
8338            out.push(8);
8339            out.extend_from_slice(&scaled.to_le_bytes());
8340            out.push(*scale);
8341        }
8342        Value::Date(d) => {
8343            out.push(9);
8344            out.extend_from_slice(&d.to_le_bytes());
8345        }
8346        Value::Timestamp(t) => {
8347            out.push(10);
8348            out.extend_from_slice(&t.to_le_bytes());
8349        }
8350        // Interval is a runtime-only value (no on-disk representation in
8351        // v2.11). CREATE TABLE rejects `DataType::Interval` columns, so a
8352        // Value::Interval here would mean the engine bypassed that gate.
8353        Value::Interval { .. } => {
8354            unreachable!(
8355                "Value::Interval has no on-disk encoding; engine must reject it before write"
8356            )
8357        }
8358        // v7.10.4: BYTEA — [u8 tag=13_b][u16 len][bytes]. Tag
8359        // distinct from Text (4) so the schema-agnostic
8360        // read_value path can disambiguate. (Tag 11 is taken by
8361        // the WAL `auto_commit_sql` shape elsewhere, hence 14.)
8362        Value::Bytes(b) => {
8363            out.push(14);
8364            let len = u16::try_from(b.len()).expect("BYTEA value ≤ 64 KiB");
8365            out.extend_from_slice(&len.to_le_bytes());
8366            out.extend_from_slice(b);
8367        }
8368        // v7.10.9: TEXT[] — [u8 tag=15][u16 count][per elem: u8
8369        // null + (if non-null) u16 len + utf-8 bytes].
8370        Value::TextArray(items) => {
8371            out.push(15);
8372            let count = u16::try_from(items.len()).expect("TEXT[] ≤ 65k elements");
8373            out.extend_from_slice(&count.to_le_bytes());
8374            for item in items {
8375                match item {
8376                    None => out.push(1),
8377                    Some(s) => {
8378                        out.push(0);
8379                        let len = u16::try_from(s.len()).expect("TEXT[] element ≤ 64 KiB");
8380                        out.extend_from_slice(&len.to_le_bytes());
8381                        out.extend_from_slice(s.as_bytes());
8382                    }
8383                }
8384            }
8385        }
8386        // v7.11.12: INT[] — tag 16. [u16 count][per elem: u8 null +
8387        // (if non-null) i32 LE].
8388        Value::IntArray(items) => {
8389            out.push(16);
8390            let count = u16::try_from(items.len()).expect("INT[] ≤ 65k elements");
8391            out.extend_from_slice(&count.to_le_bytes());
8392            for item in items {
8393                match item {
8394                    None => out.push(1),
8395                    Some(n) => {
8396                        out.push(0);
8397                        out.extend_from_slice(&n.to_le_bytes());
8398                    }
8399                }
8400            }
8401        }
8402        // v7.11.12: BIGINT[] — tag 17. [u16 count][per elem: u8 null +
8403        // (if non-null) i64 LE].
8404        Value::BigIntArray(items) => {
8405            out.push(17);
8406            let count = u16::try_from(items.len()).expect("BIGINT[] ≤ 65k elements");
8407            out.extend_from_slice(&count.to_le_bytes());
8408            for item in items {
8409                match item {
8410                    None => out.push(1),
8411                    Some(n) => {
8412                        out.push(0);
8413                        out.extend_from_slice(&n.to_le_bytes());
8414                    }
8415                }
8416            }
8417        }
8418        // v7.12.0: tsvector — tag 18. Body shape matches
8419        // `write_tsvector_body`.
8420        Value::TsVector(lexs) => {
8421            out.push(18);
8422            write_tsvector_body(out, lexs);
8423        }
8424        // v7.12.0: tsquery — tag 19. Body shape matches
8425        // `write_tsquery_body`.
8426        Value::TsQuery(ast) => {
8427            out.push(19);
8428            write_tsquery_body(out, ast);
8429        }
8430        // v7.17.0: UUID — tag 20. Body = raw 16 bytes (RFC 4122
8431        // byte order).
8432        Value::Uuid(b) => {
8433            out.push(20);
8434            out.extend_from_slice(&b[..]);
8435        }
8436        // v7.17.0 Phase 3.P0-32: TIME — tag 21. Body = i64 LE
8437        // microseconds since 00:00:00.
8438        Value::Time(us) => {
8439            out.push(21);
8440            out.extend_from_slice(&us.to_le_bytes());
8441        }
8442        // v7.17.0 Phase 3.P0-33: YEAR — tag 22. Body = u16 LE.
8443        Value::Year(y) => {
8444            out.push(22);
8445            out.extend_from_slice(&y.to_le_bytes());
8446        }
8447        // v7.17.0 Phase 3.P0-34: TIMETZ — tag 23. Body = i64 LE
8448        // us + i32 LE offset_secs.
8449        Value::TimeTz { us, offset_secs } => {
8450            out.push(23);
8451            out.extend_from_slice(&us.to_le_bytes());
8452            out.extend_from_slice(&offset_secs.to_le_bytes());
8453        }
8454        // v7.17.0 Phase 3.P0-35: MONEY — tag 24. Body = i64 LE cents.
8455        Value::Money(c) => {
8456            out.push(24);
8457            out.extend_from_slice(&c.to_le_bytes());
8458        }
8459        // v7.17.0 Phase 3.P0-38: range — tag 25. Body =
8460        // [u8 RangeKind tag][u8 flags][if lower: write_value(lower)]
8461        // [if upper: write_value(upper)].
8462        Value::Range {
8463            kind,
8464            lower,
8465            upper,
8466            lower_inc,
8467            upper_inc,
8468            empty,
8469        } => {
8470            out.push(25);
8471            out.push(kind.tag());
8472            let mut flags: u8 = 0;
8473            if *empty {
8474                flags |= 0b0000_0001;
8475            }
8476            if lower.is_some() {
8477                flags |= 0b0000_0010;
8478            }
8479            if upper.is_some() {
8480                flags |= 0b0000_0100;
8481            }
8482            if *lower_inc {
8483                flags |= 0b0000_1000;
8484            }
8485            if *upper_inc {
8486                flags |= 0b0001_0000;
8487            }
8488            out.push(flags);
8489            if let Some(l) = lower {
8490                write_value(out, l);
8491            }
8492            if let Some(u) = upper {
8493                write_value(out, u);
8494            }
8495        }
8496        // v7.17.0 Phase 3.P0-39: hstore — tag 26. Body =
8497        // [u32 count] then per pair `[u32 klen][k bytes][u8 has_val]
8498        // [if has_val: u32 vlen][v bytes]`.
8499        Value::Hstore(pairs) => {
8500            out.push(26);
8501            write_hstore_body(out, pairs);
8502        }
8503        // v7.17.0 Phase 3.P0-40: 2D arrays — tag 27/28/29.
8504        Value::IntArray2D(rows) => {
8505            out.push(27);
8506            write_int_2d_body(out, rows);
8507        }
8508        Value::BigIntArray2D(rows) => {
8509            out.push(28);
8510            write_bigint_2d_body(out, rows);
8511        }
8512        Value::TextArray2D(rows) => {
8513            out.push(29);
8514            write_text_2d_body(out, rows);
8515        }
8516    }
8517}
8518
8519/// v7.17.0 Phase 3.P0-40 — shared 2D INT writer.
8520fn write_int_2d_body(out: &mut Vec<u8>, rows: &[Vec<Option<i32>>]) {
8521    let nrows = u32::try_from(rows.len()).expect("≤ 4G rows");
8522    let ncols = u32::try_from(rows.first().map(|r| r.len()).unwrap_or(0)).expect("≤ 4G cols");
8523    out.extend_from_slice(&nrows.to_le_bytes());
8524    out.extend_from_slice(&ncols.to_le_bytes());
8525    for row in rows {
8526        for cell in row {
8527            match cell {
8528                None => out.push(1),
8529                Some(n) => {
8530                    out.push(0);
8531                    out.extend_from_slice(&n.to_le_bytes());
8532                }
8533            }
8534        }
8535    }
8536}
8537
8538/// v7.17.0 Phase 3.P0-40 — shared 2D BIGINT writer.
8539fn write_bigint_2d_body(out: &mut Vec<u8>, rows: &[Vec<Option<i64>>]) {
8540    let nrows = u32::try_from(rows.len()).expect("≤ 4G rows");
8541    let ncols = u32::try_from(rows.first().map(|r| r.len()).unwrap_or(0)).expect("≤ 4G cols");
8542    out.extend_from_slice(&nrows.to_le_bytes());
8543    out.extend_from_slice(&ncols.to_le_bytes());
8544    for row in rows {
8545        for cell in row {
8546            match cell {
8547                None => out.push(1),
8548                Some(n) => {
8549                    out.push(0);
8550                    out.extend_from_slice(&n.to_le_bytes());
8551                }
8552            }
8553        }
8554    }
8555}
8556
8557/// v7.17.0 Phase 3.P0-40 — shared 2D TEXT writer. Cells use
8558/// `[u8 null_flag][if non-null: u32 len][utf-8 bytes]` layout.
8559fn write_text_2d_body(out: &mut Vec<u8>, rows: &[Vec<Option<String>>]) {
8560    let nrows = u32::try_from(rows.len()).expect("≤ 4G rows");
8561    let ncols = u32::try_from(rows.first().map(|r| r.len()).unwrap_or(0)).expect("≤ 4G cols");
8562    out.extend_from_slice(&nrows.to_le_bytes());
8563    out.extend_from_slice(&ncols.to_le_bytes());
8564    for row in rows {
8565        for cell in row {
8566            match cell {
8567                None => out.push(1),
8568                Some(s) => {
8569                    out.push(0);
8570                    let l = u32::try_from(s.len()).expect("≤ 4 GiB cell");
8571                    out.extend_from_slice(&l.to_le_bytes());
8572                    out.extend_from_slice(s.as_bytes());
8573                }
8574            }
8575        }
8576    }
8577}
8578
8579/// v7.17.0 Phase 3.P0-39 — shared hstore body writer.
8580fn write_hstore_body(out: &mut Vec<u8>, pairs: &[(String, Option<String>)]) {
8581    let count = u32::try_from(pairs.len()).expect("hstore ≤ u32::MAX pairs");
8582    out.extend_from_slice(&count.to_le_bytes());
8583    for (k, v) in pairs {
8584        let klen = u32::try_from(k.len()).expect("hstore key ≤ 4 GiB");
8585        out.extend_from_slice(&klen.to_le_bytes());
8586        out.extend_from_slice(k.as_bytes());
8587        match v {
8588            None => out.push(0),
8589            Some(val) => {
8590                out.push(1);
8591                let vlen = u32::try_from(val.len()).expect("hstore val ≤ 4 GiB");
8592                out.extend_from_slice(&vlen.to_le_bytes());
8593                out.extend_from_slice(val.as_bytes());
8594            }
8595        }
8596    }
8597}
8598
8599/// v7.12.0: shared tsvector body writer (used by both dense and
8600/// schema-agnostic codecs).
8601fn write_tsvector_body(out: &mut Vec<u8>, lexs: &[TsLexeme]) {
8602    let count = u16::try_from(lexs.len()).expect("tsvector ≤ 65k lexemes");
8603    out.extend_from_slice(&count.to_le_bytes());
8604    for l in lexs {
8605        let wlen = u16::try_from(l.word.len()).expect("tsvector word ≤ 64 KiB");
8606        out.extend_from_slice(&wlen.to_le_bytes());
8607        out.extend_from_slice(l.word.as_bytes());
8608        let plen = u16::try_from(l.positions.len()).expect("tsvector pos count ≤ 65k");
8609        out.extend_from_slice(&plen.to_le_bytes());
8610        for p in &l.positions {
8611            out.extend_from_slice(&p.to_le_bytes());
8612        }
8613        out.push(l.weight);
8614    }
8615}
8616
8617/// v7.12.0: shared tsquery body writer. Prefix-coded tree: each
8618/// node starts with `[u8 tag]` then a tag-specific payload. Tags:
8619/// 0=Term, 1=And, 2=Or, 3=Not, 4=Phrase.
8620fn write_tsquery_body(out: &mut Vec<u8>, ast: &TsQueryAst) {
8621    match ast {
8622        TsQueryAst::Term { word, weight_mask } => {
8623            out.push(0);
8624            let len = u16::try_from(word.len()).expect("tsquery term ≤ 64 KiB");
8625            out.extend_from_slice(&len.to_le_bytes());
8626            out.extend_from_slice(word.as_bytes());
8627            out.push(*weight_mask);
8628        }
8629        TsQueryAst::And(a, b) => {
8630            out.push(1);
8631            write_tsquery_body(out, a);
8632            write_tsquery_body(out, b);
8633        }
8634        TsQueryAst::Or(a, b) => {
8635            out.push(2);
8636            write_tsquery_body(out, a);
8637            write_tsquery_body(out, b);
8638        }
8639        TsQueryAst::Not(x) => {
8640            out.push(3);
8641            write_tsquery_body(out, x);
8642        }
8643        TsQueryAst::Phrase {
8644            left,
8645            right,
8646            distance,
8647        } => {
8648            out.push(4);
8649            out.extend_from_slice(&distance.to_le_bytes());
8650            write_tsquery_body(out, left);
8651            write_tsquery_body(out, right);
8652        }
8653    }
8654}
8655
8656/// v7.12.0: byte length that `write_tsquery_body` would emit.
8657fn tsquery_encoded_len(ast: &TsQueryAst) -> usize {
8658    match ast {
8659        TsQueryAst::Term { word, .. } => 1 + 2 + word.len() + 1,
8660        TsQueryAst::And(a, b) | TsQueryAst::Or(a, b) => {
8661            1 + tsquery_encoded_len(a) + tsquery_encoded_len(b)
8662        }
8663        TsQueryAst::Not(x) => 1 + tsquery_encoded_len(x),
8664        TsQueryAst::Phrase { left, right, .. } => {
8665            1 + 2 + tsquery_encoded_len(left) + tsquery_encoded_len(right)
8666        }
8667    }
8668}
8669
8670fn write_u16(out: &mut Vec<u8>, n: u16) {
8671    out.extend_from_slice(&n.to_le_bytes());
8672}
8673fn write_u32(out: &mut Vec<u8>, n: u32) {
8674    out.extend_from_slice(&n.to_le_bytes());
8675}
8676fn write_str(out: &mut Vec<u8>, s: &str) {
8677    let len = u16::try_from(s.len()).expect("identifier / text fits in u16");
8678    write_u16(out, len);
8679    out.extend_from_slice(s.as_bytes());
8680}
8681
8682/// v7.12.4 — long-string variant: `[u32 LE len][bytes]`. For
8683/// payloads that can plausibly exceed 64 KiB (notably PL/pgSQL
8684/// function bodies). Identifiers + short text continue to use
8685/// the u16 [`write_str`] codec.
8686fn write_str_long(out: &mut Vec<u8>, s: &str) {
8687    let len = u32::try_from(s.len()).expect("function body fits in u32");
8688    write_u32(out, len);
8689    out.extend_from_slice(s.as_bytes());
8690}
8691
8692/// Serialise an [`IndexKey`] using the v9 tagged codec. `read_index_key`
8693/// is the inverse. v8 catalogs never wrote index keys (`BTree` entries were
8694/// rebuilt from `Table::rows`), so this codec is v9+ only.
8695fn write_index_key(out: &mut Vec<u8>, key: &IndexKey) {
8696    match key {
8697        IndexKey::Int(n) => {
8698            out.push(INDEX_KEY_TAG_INT);
8699            out.extend_from_slice(&n.to_le_bytes());
8700        }
8701        IndexKey::Text(s) => {
8702            out.push(INDEX_KEY_TAG_TEXT);
8703            write_str(out, s);
8704        }
8705        IndexKey::Bool(b) => {
8706            out.push(INDEX_KEY_TAG_BOOL);
8707            out.push(u8::from(*b));
8708        }
8709        IndexKey::Uuid(b) => {
8710            out.push(INDEX_KEY_TAG_UUID);
8711            out.extend_from_slice(&b[..]);
8712        }
8713    }
8714}
8715
8716struct Cursor<'a> {
8717    buf: &'a [u8],
8718    pos: usize,
8719}
8720
8721impl<'a> Cursor<'a> {
8722    const fn new(buf: &'a [u8]) -> Self {
8723        Self { buf, pos: 0 }
8724    }
8725
8726    fn take(&mut self, n: usize) -> Result<&'a [u8], StorageError> {
8727        let end = self
8728            .pos
8729            .checked_add(n)
8730            .ok_or_else(|| StorageError::Corrupt(format!("length overflow taking {n} bytes")))?;
8731        if end > self.buf.len() {
8732            return Err(StorageError::Corrupt(format!(
8733                "unexpected EOF at offset {} (wanted {n} more bytes)",
8734                self.pos
8735            )));
8736        }
8737        let s = &self.buf[self.pos..end];
8738        self.pos = end;
8739        Ok(s)
8740    }
8741
8742    fn read_u8(&mut self) -> Result<u8, StorageError> {
8743        Ok(self.take(1)?[0])
8744    }
8745    fn read_u16(&mut self) -> Result<u16, StorageError> {
8746        let s = self.take(2)?;
8747        Ok(u16::from_le_bytes([s[0], s[1]]))
8748    }
8749    fn read_u32(&mut self) -> Result<u32, StorageError> {
8750        let s = self.take(4)?;
8751        Ok(u32::from_le_bytes([s[0], s[1], s[2], s[3]]))
8752    }
8753    fn read_i32(&mut self) -> Result<i32, StorageError> {
8754        let s = self.take(4)?;
8755        Ok(i32::from_le_bytes([s[0], s[1], s[2], s[3]]))
8756    }
8757    /// v6.7.2 — u64 LE read for the per-table `hot_tier_bytes`
8758    /// catalog appendix.
8759    fn read_u64(&mut self) -> Result<u64, StorageError> {
8760        let s = self.take(8)?;
8761        Ok(u64::from_le_bytes([
8762            s[0], s[1], s[2], s[3], s[4], s[5], s[6], s[7],
8763        ]))
8764    }
8765    fn read_i64(&mut self) -> Result<i64, StorageError> {
8766        let s = self.take(8)?;
8767        let arr: [u8; 8] = s.try_into().expect("checked");
8768        Ok(i64::from_le_bytes(arr))
8769    }
8770    fn read_f64(&mut self) -> Result<f64, StorageError> {
8771        let s = self.take(8)?;
8772        let arr: [u8; 8] = s.try_into().expect("checked");
8773        Ok(f64::from_le_bytes(arr))
8774    }
8775    fn read_f32(&mut self) -> Result<f32, StorageError> {
8776        let s = self.take(4)?;
8777        Ok(f32::from_le_bytes([s[0], s[1], s[2], s[3]]))
8778    }
8779    fn read_str(&mut self) -> Result<String, StorageError> {
8780        let len = self.read_u16()? as usize;
8781        let bytes = self.take(len)?;
8782        core::str::from_utf8(bytes)
8783            .map(String::from)
8784            .map_err(|_| StorageError::Corrupt("invalid UTF-8 in identifier or text".into()))
8785    }
8786
8787    /// v7.12.4 — long-string variant for payloads written via
8788    /// [`write_str_long`] (u32-length prefix). Used for PL/pgSQL
8789    /// function bodies which can plausibly exceed 64 KiB.
8790    fn read_str_long(&mut self) -> Result<String, StorageError> {
8791        let len = self.read_u32()? as usize;
8792        let bytes = self.take(len)?;
8793        core::str::from_utf8(bytes)
8794            .map(String::from)
8795            .map_err(|_| StorageError::Corrupt("invalid UTF-8 in long-string payload".into()))
8796    }
8797
8798    /// Parse an [`IndexKey`] emitted by `write_index_key` (v9 tagged
8799    /// codec). Returns `StorageError::Corrupt` on unknown tag or
8800    /// truncated payload.
8801    fn read_index_key(&mut self) -> Result<IndexKey, StorageError> {
8802        let tag = self.read_u8()?;
8803        match tag {
8804            INDEX_KEY_TAG_INT => Ok(IndexKey::Int(self.read_i64()?)),
8805            INDEX_KEY_TAG_TEXT => Ok(IndexKey::Text(self.read_str()?)),
8806            INDEX_KEY_TAG_BOOL => Ok(IndexKey::Bool(self.read_u8()? != 0)),
8807            INDEX_KEY_TAG_UUID => {
8808                let s = self.take(16)?;
8809                let mut b = [0u8; 16];
8810                b.copy_from_slice(s);
8811                Ok(IndexKey::Uuid(b))
8812            }
8813            other => Err(StorageError::Corrupt(format!(
8814                "unknown index key tag: {other}"
8815            ))),
8816        }
8817    }
8818    /// Schema-driven dense value decode (`FILE_VERSION` 8). Caller has
8819    /// already cleared the NULL bit from the row bitmap; we read the
8820    /// fixed-width body for the given column type. Used inside the row
8821    /// hot loop; column defaults still go through `read_value` (which
8822    /// reads its own type tag) so DEFAULT round-trips without a schema.
8823    fn read_value_body(&mut self, ty: DataType) -> Result<Value, StorageError> {
8824        match ty {
8825            DataType::SmallInt => {
8826                let s = self.take(2)?;
8827                Ok(Value::SmallInt(i16::from_le_bytes([s[0], s[1]])))
8828            }
8829            DataType::Int => Ok(Value::Int(self.read_i32()?)),
8830            DataType::BigInt => Ok(Value::BigInt(self.read_i64()?)),
8831            DataType::Float => Ok(Value::Float(self.read_f64()?)),
8832            DataType::Bool => Ok(Value::Bool(self.read_u8()? != 0)),
8833            DataType::Text | DataType::Varchar(_) | DataType::Char(_) => {
8834                Ok(Value::Text(self.read_str()?))
8835            }
8836            DataType::Vector {
8837                encoding: VecEncoding::F32,
8838                ..
8839            } => {
8840                let dim = self.read_u32()? as usize;
8841                let mut v = Vec::with_capacity(dim);
8842                for _ in 0..dim {
8843                    let bytes: [u8; 4] = self.take(4)?.try_into().expect("checked");
8844                    v.push(f32::from_le_bytes(bytes));
8845                }
8846                Ok(Value::Vector(v))
8847            }
8848            DataType::Vector {
8849                encoding: VecEncoding::Sq8,
8850                ..
8851            } => {
8852                let dim = self.read_u32()? as usize;
8853                let min = self.read_f32()?;
8854                let max = self.read_f32()?;
8855                let bytes = self.take(dim)?.to_vec();
8856                Ok(Value::Sq8Vector(quantize::Sq8Vector { min, max, bytes }))
8857            }
8858            DataType::Vector {
8859                encoding: VecEncoding::F16,
8860                ..
8861            } => {
8862                let dim = self.read_u32()? as usize;
8863                let bytes = self.take(dim * 2)?.to_vec();
8864                Ok(Value::HalfVector(halfvec::HalfVector { bytes }))
8865            }
8866            DataType::Numeric { .. } => {
8867                let s = self.take(16)?;
8868                let arr: [u8; 16] = s.try_into().expect("checked");
8869                let scaled = i128::from_le_bytes(arr);
8870                let scale = self.read_u8()?;
8871                Ok(Value::Numeric { scaled, scale })
8872            }
8873            DataType::Date => Ok(Value::Date(self.read_i32()?)),
8874            DataType::Timestamp => Ok(Value::Timestamp(self.read_i64()?)),
8875            DataType::Timestamptz => Ok(Value::Timestamp(self.read_i64()?)),
8876            DataType::Jsonb => Ok(Value::Json(self.read_str()?)),
8877            DataType::Interval => {
8878                // Defensive — schema gate (CREATE TABLE rejects Interval
8879                // columns) means this branch can't be hit through normal
8880                // flow; reject corrupt files explicitly rather than
8881                // panic.
8882                Err(StorageError::Corrupt(
8883                    "INTERVAL column found on disk — runtime-only type, v3.0.2 rejects it".into(),
8884                ))
8885            }
8886            DataType::Json => Ok(Value::Json(self.read_str()?)),
8887            // v7.10.4: BYTEA on-disk is [u16 len][bytes]. Same wire
8888            // shape as Text, but read as raw Vec<u8>.
8889            DataType::Bytes => {
8890                let len = self.read_u16()? as usize;
8891                let bytes = self.take(len)?.to_vec();
8892                Ok(Value::Bytes(bytes))
8893            }
8894            // v7.10.9: TEXT[] dense body.
8895            DataType::TextArray => {
8896                let count = self.read_u16()? as usize;
8897                let mut items: Vec<Option<String>> = Vec::with_capacity(count);
8898                for _ in 0..count {
8899                    match self.read_u8()? {
8900                        0 => items.push(Some(self.read_str()?)),
8901                        1 => items.push(None),
8902                        other => {
8903                            return Err(StorageError::Corrupt(format!(
8904                                "TEXT[] null flag: unknown byte {other}"
8905                            )));
8906                        }
8907                    }
8908                }
8909                Ok(Value::TextArray(items))
8910            }
8911            // v7.11.12: INT[] dense body.
8912            DataType::IntArray => {
8913                let count = self.read_u16()? as usize;
8914                let mut items: Vec<Option<i32>> = Vec::with_capacity(count);
8915                for _ in 0..count {
8916                    match self.read_u8()? {
8917                        0 => items.push(Some(self.read_i32()?)),
8918                        1 => items.push(None),
8919                        other => {
8920                            return Err(StorageError::Corrupt(format!(
8921                                "INT[] null flag: unknown byte {other}"
8922                            )));
8923                        }
8924                    }
8925                }
8926                Ok(Value::IntArray(items))
8927            }
8928            // v7.11.12: BIGINT[] dense body.
8929            DataType::BigIntArray => {
8930                let count = self.read_u16()? as usize;
8931                let mut items: Vec<Option<i64>> = Vec::with_capacity(count);
8932                for _ in 0..count {
8933                    match self.read_u8()? {
8934                        0 => items.push(Some(self.read_i64()?)),
8935                        1 => items.push(None),
8936                        other => {
8937                            return Err(StorageError::Corrupt(format!(
8938                                "BIGINT[] null flag: unknown byte {other}"
8939                            )));
8940                        }
8941                    }
8942                }
8943                Ok(Value::BigIntArray(items))
8944            }
8945            // v7.12.0: tsvector dense body — [u16 lex_count]
8946            // [per lex: u16 word_len + utf-8 word + u16 pos_count
8947            // + (u16 LE * pos_count) + u8 weight].
8948            DataType::TsVector => Ok(Value::TsVector(self.read_tsvector_body()?)),
8949            DataType::TsQuery => Ok(Value::TsQuery(self.read_tsquery_body()?)),
8950            // v7.17.0: UUID dense body — raw 16 bytes.
8951            DataType::Uuid => {
8952                let s = self.take(16)?;
8953                let mut b = [0u8; 16];
8954                b.copy_from_slice(s);
8955                Ok(Value::Uuid(b))
8956            }
8957            // v7.17.0 Phase 3.P0-32: TIME dense body — i64 LE.
8958            DataType::Time => Ok(Value::Time(self.read_i64()?)),
8959            // v7.17.0 Phase 3.P0-33: YEAR dense body — u16 LE.
8960            DataType::Year => Ok(Value::Year(self.read_u16()?)),
8961            // v7.17.0 Phase 3.P0-34: TIMETZ dense body —
8962            // i64 LE us + i32 LE offset_secs.
8963            DataType::TimeTz => {
8964                let us = self.read_i64()?;
8965                let offset_secs = self.read_i32()?;
8966                Ok(Value::TimeTz { us, offset_secs })
8967            }
8968            // v7.17.0 Phase 3.P0-35: MONEY dense body — i64 LE cents.
8969            DataType::Money => Ok(Value::Money(self.read_i64()?)),
8970            // v7.17.0 Phase 3.P0-39: hstore dense body. Body
8971            // shape == read_hstore_body.
8972            DataType::Hstore => Ok(Value::Hstore(self.read_hstore_body()?)),
8973            // v7.17.0 Phase 3.P0-40: 2D arrays dense body.
8974            DataType::IntArray2D => Ok(Value::IntArray2D(self.read_int_2d_body()?)),
8975            DataType::BigIntArray2D => Ok(Value::BigIntArray2D(self.read_bigint_2d_body()?)),
8976            DataType::TextArray2D => Ok(Value::TextArray2D(self.read_text_2d_body()?)),
8977            // v7.17.0 Phase 3.P0-38: range dense body. Element
8978            // type is determined by the surrounding RangeKind.
8979            DataType::Range(kind) => {
8980                let flags = self.read_u8()?;
8981                let empty = flags & 0b0000_0001 != 0;
8982                let has_lower = flags & 0b0000_0010 != 0;
8983                let has_upper = flags & 0b0000_0100 != 0;
8984                let lower_inc = flags & 0b0000_1000 != 0;
8985                let upper_inc = flags & 0b0001_0000 != 0;
8986                let lower = if has_lower {
8987                    Some(alloc::boxed::Box::new(self.read_value()?))
8988                } else {
8989                    None
8990                };
8991                let upper = if has_upper {
8992                    Some(alloc::boxed::Box::new(self.read_value()?))
8993                } else {
8994                    None
8995                };
8996                Ok(Value::Range {
8997                    kind,
8998                    lower,
8999                    upper,
9000                    lower_inc,
9001                    upper_inc,
9002                    empty,
9003                })
9004            }
9005        }
9006    }
9007
9008    /// v7.17.0 Phase 3.P0-40 — read a 2D INT array body emitted
9009    /// by `write_int_2d_body`.
9010    fn read_int_2d_body(&mut self) -> Result<Vec<Vec<Option<i32>>>, StorageError> {
9011        let nrows = self.read_u32()? as usize;
9012        let ncols = self.read_u32()? as usize;
9013        let mut rows = Vec::with_capacity(nrows);
9014        for _ in 0..nrows {
9015            let mut row = Vec::with_capacity(ncols);
9016            for _ in 0..ncols {
9017                let null = self.read_u8()?;
9018                row.push(if null == 1 {
9019                    None
9020                } else {
9021                    Some(self.read_i32()?)
9022                });
9023            }
9024            rows.push(row);
9025        }
9026        Ok(rows)
9027    }
9028
9029    /// v7.17.0 Phase 3.P0-40 — read a 2D BIGINT array body.
9030    fn read_bigint_2d_body(&mut self) -> Result<Vec<Vec<Option<i64>>>, StorageError> {
9031        let nrows = self.read_u32()? as usize;
9032        let ncols = self.read_u32()? as usize;
9033        let mut rows = Vec::with_capacity(nrows);
9034        for _ in 0..nrows {
9035            let mut row = Vec::with_capacity(ncols);
9036            for _ in 0..ncols {
9037                let null = self.read_u8()?;
9038                row.push(if null == 1 {
9039                    None
9040                } else {
9041                    Some(self.read_i64()?)
9042                });
9043            }
9044            rows.push(row);
9045        }
9046        Ok(rows)
9047    }
9048
9049    /// v7.17.0 Phase 3.P0-40 — read a 2D TEXT array body. Each
9050    /// cell is `[u8 null_flag][if non-null: u32 len + utf-8 bytes]`.
9051    fn read_text_2d_body(&mut self) -> Result<Vec<Vec<Option<String>>>, StorageError> {
9052        let nrows = self.read_u32()? as usize;
9053        let ncols = self.read_u32()? as usize;
9054        let mut rows = Vec::with_capacity(nrows);
9055        for _ in 0..nrows {
9056            let mut row = Vec::with_capacity(ncols);
9057            for _ in 0..ncols {
9058                let null = self.read_u8()?;
9059                if null == 1 {
9060                    row.push(None);
9061                } else {
9062                    let l = self.read_u32()? as usize;
9063                    let bytes = self.take(l)?.to_vec();
9064                    let s = String::from_utf8(bytes).map_err(|_| {
9065                        StorageError::Corrupt("2D TEXT cell is not valid UTF-8".into())
9066                    })?;
9067                    row.push(Some(s));
9068                }
9069            }
9070            rows.push(row);
9071        }
9072        Ok(rows)
9073    }
9074
9075    /// v7.17.0 Phase 3.P0-39 — read a hstore body emitted by
9076    /// `write_hstore_body`.
9077    fn read_hstore_body(&mut self) -> Result<Vec<(String, Option<String>)>, StorageError> {
9078        let count = self.read_u32()? as usize;
9079        let mut out = Vec::with_capacity(count);
9080        for _ in 0..count {
9081            let klen = self.read_u32()? as usize;
9082            let k_bytes = self.take(klen)?.to_vec();
9083            let k = String::from_utf8(k_bytes)
9084                .map_err(|_| StorageError::Corrupt("hstore key is not valid UTF-8".into()))?;
9085            let has_val = self.read_u8()? != 0;
9086            let v =
9087                if has_val {
9088                    let vlen = self.read_u32()? as usize;
9089                    let v_bytes = self.take(vlen)?.to_vec();
9090                    Some(String::from_utf8(v_bytes).map_err(|_| {
9091                        StorageError::Corrupt("hstore value is not valid UTF-8".into())
9092                    })?)
9093                } else {
9094                    None
9095                };
9096            out.push((k, v));
9097        }
9098        Ok(out)
9099    }
9100
9101    /// v7.12.0 — read a tsvector body emitted by `write_tsvector_body`.
9102    fn read_tsvector_body(&mut self) -> Result<Vec<TsLexeme>, StorageError> {
9103        let count = self.read_u16()? as usize;
9104        let mut out = Vec::with_capacity(count);
9105        for _ in 0..count {
9106            let word = self.read_str()?;
9107            let pos_count = self.read_u16()? as usize;
9108            let mut positions = Vec::with_capacity(pos_count);
9109            for _ in 0..pos_count {
9110                positions.push(self.read_u16()?);
9111            }
9112            let weight = self.read_u8()?;
9113            out.push(TsLexeme {
9114                word,
9115                positions,
9116                weight,
9117            });
9118        }
9119        Ok(out)
9120    }
9121
9122    /// v7.12.0 — read a tsquery body emitted by `write_tsquery_body`.
9123    fn read_tsquery_body(&mut self) -> Result<TsQueryAst, StorageError> {
9124        let tag = self.read_u8()?;
9125        match tag {
9126            0 => {
9127                let word = self.read_str()?;
9128                let weight_mask = self.read_u8()?;
9129                Ok(TsQueryAst::Term { word, weight_mask })
9130            }
9131            1 => {
9132                let a = self.read_tsquery_body()?;
9133                let b = self.read_tsquery_body()?;
9134                Ok(TsQueryAst::And(Box::new(a), Box::new(b)))
9135            }
9136            2 => {
9137                let a = self.read_tsquery_body()?;
9138                let b = self.read_tsquery_body()?;
9139                Ok(TsQueryAst::Or(Box::new(a), Box::new(b)))
9140            }
9141            3 => {
9142                let x = self.read_tsquery_body()?;
9143                Ok(TsQueryAst::Not(Box::new(x)))
9144            }
9145            4 => {
9146                let distance = self.read_u16()?;
9147                let left = self.read_tsquery_body()?;
9148                let right = self.read_tsquery_body()?;
9149                Ok(TsQueryAst::Phrase {
9150                    left: Box::new(left),
9151                    right: Box::new(right),
9152                    distance,
9153                })
9154            }
9155            other => Err(StorageError::Corrupt(format!(
9156                "tsquery: unknown node tag {other}"
9157            ))),
9158        }
9159    }
9160
9161    fn read_value(&mut self) -> Result<Value, StorageError> {
9162        let tag = self.read_u8()?;
9163        match tag {
9164            0 => Ok(Value::Null),
9165            1 => Ok(Value::Int(self.read_i32()?)),
9166            2 => Ok(Value::BigInt(self.read_i64()?)),
9167            3 => Ok(Value::Float(self.read_f64()?)),
9168            4 => Ok(Value::Text(self.read_str()?)),
9169            5 => Ok(Value::Bool(self.read_u8()? != 0)),
9170            6 => {
9171                let dim = self.read_u32()? as usize;
9172                let mut v = Vec::with_capacity(dim);
9173                for _ in 0..dim {
9174                    let bytes: [u8; 4] = self.take(4)?.try_into().expect("checked");
9175                    v.push(f32::from_le_bytes(bytes));
9176                }
9177                Ok(Value::Vector(v))
9178            }
9179            7 => {
9180                let s = self.take(2)?;
9181                Ok(Value::SmallInt(i16::from_le_bytes([s[0], s[1]])))
9182            }
9183            8 => {
9184                let s = self.take(16)?;
9185                let arr: [u8; 16] = s.try_into().expect("checked");
9186                let scaled = i128::from_le_bytes(arr);
9187                let scale = self.read_u8()?;
9188                Ok(Value::Numeric { scaled, scale })
9189            }
9190            9 => Ok(Value::Date(self.read_i32()?)),
9191            10 => Ok(Value::Timestamp(self.read_i64()?)),
9192            // v6.0.1: tag 11 — Sq8Vector. Pre-v6 readers fall
9193            // through to the catch-all and surface
9194            // `Corrupt("unknown value tag")`, matching the
9195            // forward-compat fence on the column-type side.
9196            11 => {
9197                let dim = self.read_u32()? as usize;
9198                let min = self.read_f32()?;
9199                let max = self.read_f32()?;
9200                let bytes = self.take(dim)?.to_vec();
9201                Ok(Value::Sq8Vector(quantize::Sq8Vector { min, max, bytes }))
9202            }
9203            // v6.0.3: tag 12 — HalfVector. Same forward-compat
9204            // fence story as tag 11.
9205            12 => {
9206                let dim = self.read_u32()? as usize;
9207                let bytes = self.take(dim * 2)?.to_vec();
9208                Ok(Value::HalfVector(halfvec::HalfVector { bytes }))
9209            }
9210            // v7.10.4: tag 14 — BYTEA. [u16 len][bytes].
9211            14 => {
9212                let len = self.read_u16()? as usize;
9213                let bytes = self.take(len)?.to_vec();
9214                Ok(Value::Bytes(bytes))
9215            }
9216            // v7.10.9: tag 15 — TEXT[]. [u16 count][per elem: u8
9217            // null + (when non-null) u16 len + utf-8 bytes].
9218            15 => {
9219                let count = self.read_u16()? as usize;
9220                let mut items: Vec<Option<String>> = Vec::with_capacity(count);
9221                for _ in 0..count {
9222                    match self.read_u8()? {
9223                        0 => items.push(Some(self.read_str()?)),
9224                        1 => items.push(None),
9225                        other => {
9226                            return Err(StorageError::Corrupt(format!(
9227                                "TEXT[] null flag in value tag: unknown byte {other}"
9228                            )));
9229                        }
9230                    }
9231                }
9232                Ok(Value::TextArray(items))
9233            }
9234            // v7.11.12: tags 16/17 — INT[] / BIGINT[].
9235            16 => {
9236                let count = self.read_u16()? as usize;
9237                let mut items: Vec<Option<i32>> = Vec::with_capacity(count);
9238                for _ in 0..count {
9239                    match self.read_u8()? {
9240                        0 => items.push(Some(self.read_i32()?)),
9241                        1 => items.push(None),
9242                        other => {
9243                            return Err(StorageError::Corrupt(format!(
9244                                "INT[] null flag in value tag: unknown byte {other}"
9245                            )));
9246                        }
9247                    }
9248                }
9249                Ok(Value::IntArray(items))
9250            }
9251            17 => {
9252                let count = self.read_u16()? as usize;
9253                let mut items: Vec<Option<i64>> = Vec::with_capacity(count);
9254                for _ in 0..count {
9255                    match self.read_u8()? {
9256                        0 => items.push(Some(self.read_i64()?)),
9257                        1 => items.push(None),
9258                        other => {
9259                            return Err(StorageError::Corrupt(format!(
9260                                "BIGINT[] null flag in value tag: unknown byte {other}"
9261                            )));
9262                        }
9263                    }
9264                }
9265                Ok(Value::BigIntArray(items))
9266            }
9267            // v7.12.0: tag 18 — tsvector. Body matches the dense
9268            // form (`read_tsvector_body`).
9269            18 => Ok(Value::TsVector(self.read_tsvector_body()?)),
9270            // v7.12.0: tag 19 — tsquery.
9271            19 => Ok(Value::TsQuery(self.read_tsquery_body()?)),
9272            // v7.17.0: tag 20 — UUID. Raw 16 bytes.
9273            20 => {
9274                let s = self.take(16)?;
9275                let mut b = [0u8; 16];
9276                b.copy_from_slice(s);
9277                Ok(Value::Uuid(b))
9278            }
9279            // v7.17.0 Phase 3.P0-32: tag 21 — TIME. i64 LE.
9280            21 => Ok(Value::Time(self.read_i64()?)),
9281            // v7.17.0 Phase 3.P0-33: tag 22 — YEAR. u16 LE.
9282            22 => Ok(Value::Year(self.read_u16()?)),
9283            // v7.17.0 Phase 3.P0-34: tag 23 — TIMETZ. i64 LE us +
9284            // i32 LE offset_secs.
9285            23 => {
9286                let us = self.read_i64()?;
9287                let offset_secs = self.read_i32()?;
9288                Ok(Value::TimeTz { us, offset_secs })
9289            }
9290            // v7.17.0 Phase 3.P0-35: tag 24 — MONEY. i64 LE cents.
9291            24 => Ok(Value::Money(self.read_i64()?)),
9292            // v7.17.0 Phase 3.P0-39: tag 26 — Hstore. Body shape
9293            // == read_hstore_body.
9294            26 => Ok(Value::Hstore(self.read_hstore_body()?)),
9295            // v7.17.0 Phase 3.P0-40: tag 27/28/29 — 2D arrays.
9296            27 => Ok(Value::IntArray2D(self.read_int_2d_body()?)),
9297            28 => Ok(Value::BigIntArray2D(self.read_bigint_2d_body()?)),
9298            29 => Ok(Value::TextArray2D(self.read_text_2d_body()?)),
9299            // v7.17.0 Phase 3.P0-38: tag 25 — Range.
9300            // [u8 RangeKind tag][u8 flags][opt lower][opt upper].
9301            25 => {
9302                let kt = self.read_u8()?;
9303                let kind = RangeKind::from_tag(kt)
9304                    .ok_or_else(|| StorageError::Corrupt(format!("unknown RangeKind tag: {kt}")))?;
9305                let flags = self.read_u8()?;
9306                let empty = flags & 0b0000_0001 != 0;
9307                let has_lower = flags & 0b0000_0010 != 0;
9308                let has_upper = flags & 0b0000_0100 != 0;
9309                let lower_inc = flags & 0b0000_1000 != 0;
9310                let upper_inc = flags & 0b0001_0000 != 0;
9311                let lower = if has_lower {
9312                    Some(alloc::boxed::Box::new(self.read_value()?))
9313                } else {
9314                    None
9315                };
9316                let upper = if has_upper {
9317                    Some(alloc::boxed::Box::new(self.read_value()?))
9318                } else {
9319                    None
9320                };
9321                Ok(Value::Range {
9322                    kind,
9323                    lower,
9324                    upper,
9325                    lower_inc,
9326                    upper_inc,
9327                    empty,
9328                })
9329            }
9330            other => Err(StorageError::Corrupt(format!("unknown value tag: {other}"))),
9331        }
9332    }
9333
9334    /// Read an NSW graph that was emitted via `write_nsw_graph`. `m`
9335    /// is passed in because it was already consumed from the per-
9336    /// index header. Returns the reconstituted `NswGraph`.
9337    fn read_nsw_graph(&mut self, m: usize) -> Result<NswGraph, StorageError> {
9338        let m_max_0 = self.read_u16()? as usize;
9339        let entry_raw = self.read_u32()?;
9340        let entry = if entry_raw == u32::MAX {
9341            None
9342        } else {
9343            Some(entry_raw as usize)
9344        };
9345        let entry_level = self.read_u8()?;
9346        let node_count = self.read_u32()? as usize;
9347        // v5.5.0: levels/per-layer are PV-backed in memory, but the wire
9348        // format is unchanged — decode element-by-element into a PV via
9349        // push_mut (transient in-place, no per-element path-copy here since
9350        // the freshly-built PV is uniquely owned).
9351        let mut levels: PersistentVec<u8> = PersistentVec::new();
9352        for _ in 0..node_count {
9353            levels.push_mut(self.read_u8()?);
9354        }
9355        let layer_count = self.read_u8()? as usize;
9356        let mut layers: Vec<PersistentVec<Vec<u32>>> = Vec::with_capacity(layer_count);
9357        for _ in 0..layer_count {
9358            let n = self.read_u32()? as usize;
9359            let mut per_layer: PersistentVec<Vec<u32>> = PersistentVec::new();
9360            for _ in 0..n {
9361                let cnt = self.read_u16()? as usize;
9362                let mut row: Vec<u32> = Vec::with_capacity(cnt);
9363                for _ in 0..cnt {
9364                    row.push(self.read_u32()?);
9365                }
9366                per_layer.push_mut(row);
9367            }
9368            layers.push(per_layer);
9369        }
9370        Ok(NswGraph {
9371            m,
9372            m_max_0,
9373            entry,
9374            entry_level,
9375            levels,
9376            layers,
9377        })
9378    }
9379}
9380
9381#[cfg(test)]
9382mod tests {
9383    use super::*;
9384    use alloc::string::ToString;
9385    use alloc::vec;
9386
9387    #[cfg(target_arch = "aarch64")]
9388    #[test]
9389    fn neon_l2_matches_scalar() {
9390        // For every dim that's a multiple of 4 (4, 8, 12, 16, 64,
9391        // 128, 256, 384, 512, 768, 1024, 1536), the NEON impl must
9392        // agree with the scalar reference within tight float
9393        // tolerance (FMA rounding differs from separate * + +).
9394        let dims = [4usize, 8, 12, 16, 64, 128, 256, 384, 512, 768, 1024, 1536];
9395        for &d in &dims {
9396            let mut state: u64 = (d as u64).wrapping_mul(0x9E37_79B9_7F4A_7C15);
9397            let mut a = Vec::with_capacity(d);
9398            let mut b = Vec::with_capacity(d);
9399            for _ in 0..d {
9400                state = state
9401                    .wrapping_mul(6_364_136_223_846_793_005)
9402                    .wrapping_add(1);
9403                #[allow(clippy::cast_precision_loss, clippy::cast_possible_truncation)]
9404                let x = (((state >> 32) & 0x00FF_FFFF) as f32) / (0x80_0000_u32 as f32) - 1.0;
9405                state = state
9406                    .wrapping_mul(6_364_136_223_846_793_005)
9407                    .wrapping_add(1);
9408                #[allow(clippy::cast_precision_loss, clippy::cast_possible_truncation)]
9409                let y = (((state >> 32) & 0x00FF_FFFF) as f32) / (0x80_0000_u32 as f32) - 1.0;
9410                a.push(x);
9411                b.push(y);
9412            }
9413            let scalar = l2_distance_sq_scalar(&a, &b);
9414            let neon = unsafe { l2_distance_sq_neon(&a, &b) };
9415            let tol = (scalar.abs().max(1e-6)) * 1e-4;
9416            assert!(
9417                (scalar - neon).abs() <= tol,
9418                "dim={d}: scalar={scalar} neon={neon} diff={}",
9419                (scalar - neon).abs()
9420            );
9421        }
9422    }
9423
9424    #[cfg(target_arch = "aarch64")]
9425    #[test]
9426    fn neon_inner_product_matches_scalar() {
9427        // v6.0.2 step 1: NEON IP must agree with scalar across every
9428        // production-shaped dim. FMA rounding differs from
9429        // separate * + +, so the tolerance scales with magnitude.
9430        let dims = [4usize, 8, 12, 16, 64, 128, 256, 512, 1024];
9431        for &d in &dims {
9432            let mut state: u64 = (d as u64).wrapping_mul(0x9E37_79B9_7F4A_7C15);
9433            let mut a = Vec::with_capacity(d);
9434            let mut b = Vec::with_capacity(d);
9435            for _ in 0..d {
9436                state = state
9437                    .wrapping_mul(6_364_136_223_846_793_005)
9438                    .wrapping_add(1);
9439                #[allow(clippy::cast_precision_loss, clippy::cast_possible_truncation)]
9440                let x = (((state >> 32) & 0x00FF_FFFF) as f32) / (0x80_0000_u32 as f32) - 1.0;
9441                state = state
9442                    .wrapping_mul(6_364_136_223_846_793_005)
9443                    .wrapping_add(1);
9444                #[allow(clippy::cast_precision_loss, clippy::cast_possible_truncation)]
9445                let y = (((state >> 32) & 0x00FF_FFFF) as f32) / (0x80_0000_u32 as f32) - 1.0;
9446                a.push(x);
9447                b.push(y);
9448            }
9449            let scalar = inner_product_scalar(&a, &b);
9450            let neon = unsafe { inner_product_neon(&a, &b) };
9451            #[allow(clippy::cast_precision_loss)]
9452            let tol = (scalar.abs().max(1e-6)) * 1e-4 + (d as f32) * 1e-6;
9453            assert!(
9454                (scalar - neon).abs() <= tol,
9455                "IP dim={d}: scalar={scalar} neon={neon} diff={}",
9456                (scalar - neon).abs()
9457            );
9458        }
9459    }
9460
9461    #[cfg(target_arch = "aarch64")]
9462    #[allow(clippy::similar_names)]
9463    #[test]
9464    fn neon_cosine_dot_norms_matches_scalar() {
9465        let dims = [4usize, 8, 12, 16, 64, 128, 256, 512, 1024];
9466        for &d in &dims {
9467            let mut state: u64 = (d as u64).wrapping_mul(0xBF58_476D_1CE4_E5B9);
9468            let mut a = Vec::with_capacity(d);
9469            let mut b = Vec::with_capacity(d);
9470            for _ in 0..d {
9471                state = state
9472                    .wrapping_mul(6_364_136_223_846_793_005)
9473                    .wrapping_add(1);
9474                #[allow(clippy::cast_precision_loss, clippy::cast_possible_truncation)]
9475                let x = (((state >> 32) & 0x00FF_FFFF) as f32) / (0x80_0000_u32 as f32) - 1.0;
9476                state = state
9477                    .wrapping_mul(6_364_136_223_846_793_005)
9478                    .wrapping_add(1);
9479                #[allow(clippy::cast_precision_loss, clippy::cast_possible_truncation)]
9480                let y = (((state >> 32) & 0x00FF_FFFF) as f32) / (0x80_0000_u32 as f32) - 1.0;
9481                a.push(x);
9482                b.push(y);
9483            }
9484            let (dot_s, na_s, nb_s) = cosine_dot_norms_scalar(&a, &b);
9485            let (dot_n, na_n, nb_n) = unsafe { cosine_dot_norms_neon(&a, &b) };
9486            #[allow(clippy::cast_precision_loss)]
9487            let tol_d = (dot_s.abs().max(1e-6)) * 1e-4 + (d as f32) * 1e-6;
9488            #[allow(clippy::cast_precision_loss)]
9489            let tol_n = (na_s.abs().max(1e-6)) * 1e-4 + (d as f32) * 1e-6;
9490            assert!(
9491                (dot_s - dot_n).abs() <= tol_d,
9492                "cosine dot dim={d}: scalar={dot_s} neon={dot_n}"
9493            );
9494            assert!(
9495                (na_s - na_n).abs() <= tol_n,
9496                "cosine na dim={d}: scalar={na_s} neon={na_n}"
9497            );
9498            assert!(
9499                (nb_s - nb_n).abs() <= tol_n,
9500                "cosine nb dim={d}: scalar={nb_s} neon={nb_n}"
9501            );
9502        }
9503    }
9504
9505    fn make_users_schema() -> TableSchema {
9506        TableSchema::new(
9507            "users",
9508            vec![
9509                ColumnSchema::new("id", DataType::Int, false),
9510                ColumnSchema::new("name", DataType::Text, false),
9511                ColumnSchema::new("score", DataType::Float, true),
9512            ],
9513        )
9514    }
9515
9516    #[test]
9517    fn value_type_tag_matches_variant() {
9518        assert_eq!(Value::Int(1).data_type(), Some(DataType::Int));
9519        assert_eq!(Value::BigInt(1).data_type(), Some(DataType::BigInt));
9520        assert_eq!(Value::Float(1.0).data_type(), Some(DataType::Float));
9521        assert_eq!(Value::Text("x".into()).data_type(), Some(DataType::Text));
9522        assert_eq!(Value::Bool(true).data_type(), Some(DataType::Bool));
9523        assert_eq!(Value::Null.data_type(), None);
9524        assert!(Value::Null.is_null());
9525        assert!(!Value::Int(0).is_null());
9526    }
9527
9528    #[test]
9529    fn sq8_value_reports_sq8_data_type() {
9530        // v6.0.1: a `Value::Sq8Vector` cell surfaces its dim
9531        // (= bytes.len()) and encoding through `data_type()` so
9532        // INSERT-time column type-checks (step 3) can route on
9533        // both shape and encoding.
9534        let q = crate::quantize::quantize(&[0.0, 0.25, 0.5, 0.75, 1.0]);
9535        let v = Value::Sq8Vector(q);
9536        assert_eq!(
9537            v.data_type(),
9538            Some(DataType::Vector {
9539                dim: 5,
9540                encoding: VecEncoding::Sq8,
9541            }),
9542        );
9543    }
9544
9545    #[test]
9546    fn datatype_display_matches_pg_keyword() {
9547        assert_eq!(DataType::Int.to_string(), "INT");
9548        assert_eq!(DataType::BigInt.to_string(), "BIGINT");
9549        assert_eq!(DataType::Float.to_string(), "FLOAT");
9550        assert_eq!(DataType::Text.to_string(), "TEXT");
9551        assert_eq!(DataType::Bool.to_string(), "BOOL");
9552    }
9553
9554    #[test]
9555    fn row_len_and_emptiness() {
9556        let r = Row::new(vec![Value::Int(1), Value::Null]);
9557        assert_eq!(r.len(), 2);
9558        assert!(!r.is_empty());
9559        assert!(Row::new(Vec::new()).is_empty());
9560    }
9561
9562    #[test]
9563    fn table_schema_column_position() {
9564        let s = make_users_schema();
9565        assert_eq!(s.column_position("id"), Some(0));
9566        assert_eq!(s.column_position("score"), Some(2));
9567        assert_eq!(s.column_position("missing"), None);
9568    }
9569
9570    #[test]
9571    fn catalog_create_table_then_lookup() {
9572        let mut cat = Catalog::new();
9573        cat.create_table(make_users_schema()).unwrap();
9574        assert_eq!(cat.table_count(), 1);
9575        assert!(cat.get("users").is_some());
9576        assert!(cat.get("nope").is_none());
9577    }
9578
9579    #[test]
9580    fn catalog_duplicate_table_is_rejected() {
9581        let mut cat = Catalog::new();
9582        cat.create_table(make_users_schema()).unwrap();
9583        let err = cat.create_table(make_users_schema()).unwrap_err();
9584        assert!(matches!(err, StorageError::DuplicateTable { ref name } if name == "users"));
9585    }
9586
9587    #[test]
9588    fn table_insert_happy_path_appends_row() {
9589        let mut cat = Catalog::new();
9590        cat.create_table(make_users_schema()).unwrap();
9591        let t = cat.get_mut("users").unwrap();
9592        t.insert(Row::new(vec![
9593            Value::Int(1),
9594            Value::Text("alice".into()),
9595            Value::Float(99.5),
9596        ]))
9597        .unwrap();
9598        assert_eq!(t.row_count(), 1);
9599        assert_eq!(t.rows()[0].values[1], Value::Text("alice".into()));
9600    }
9601
9602    #[test]
9603    fn table_insert_arity_mismatch() {
9604        let mut cat = Catalog::new();
9605        cat.create_table(make_users_schema()).unwrap();
9606        let t = cat.get_mut("users").unwrap();
9607        let err = t.insert(Row::new(vec![Value::Int(1)])).unwrap_err();
9608        assert!(matches!(
9609            err,
9610            StorageError::ArityMismatch {
9611                expected: 3,
9612                actual: 1
9613            }
9614        ));
9615        assert_eq!(t.row_count(), 0);
9616    }
9617
9618    #[test]
9619    fn table_insert_type_mismatch_reports_column() {
9620        let mut cat = Catalog::new();
9621        cat.create_table(make_users_schema()).unwrap();
9622        let t = cat.get_mut("users").unwrap();
9623        let err = t
9624            .insert(Row::new(vec![
9625                Value::Int(1),
9626                Value::Int(42), // name expects Text
9627                Value::Float(0.0),
9628            ]))
9629            .unwrap_err();
9630        match err {
9631            StorageError::TypeMismatch {
9632                ref column,
9633                expected,
9634                actual,
9635                position,
9636            } => {
9637                assert_eq!(column, "name");
9638                assert_eq!(expected, DataType::Text);
9639                assert_eq!(actual, DataType::Int);
9640                assert_eq!(position, 1);
9641            }
9642            other => panic!("unexpected: {other:?}"),
9643        }
9644        assert_eq!(t.row_count(), 0);
9645    }
9646
9647    #[test]
9648    fn table_insert_null_into_not_null_rejected() {
9649        let mut cat = Catalog::new();
9650        cat.create_table(make_users_schema()).unwrap();
9651        let t = cat.get_mut("users").unwrap();
9652        let err = t
9653            .insert(Row::new(vec![
9654                Value::Int(1),
9655                Value::Null, // name is NOT NULL
9656                Value::Float(1.0),
9657            ]))
9658            .unwrap_err();
9659        assert!(matches!(err, StorageError::NullInNotNull { ref column } if column == "name"));
9660    }
9661
9662    #[test]
9663    fn table_insert_null_into_nullable_ok() {
9664        let mut cat = Catalog::new();
9665        cat.create_table(make_users_schema()).unwrap();
9666        let t = cat.get_mut("users").unwrap();
9667        t.insert(Row::new(vec![
9668            Value::Int(1),
9669            Value::Text("bob".into()),
9670            Value::Null,
9671        ]))
9672        .unwrap();
9673        assert_eq!(t.row_count(), 1);
9674    }
9675
9676    #[test]
9677    fn catalog_get_mut_independent_per_table() {
9678        let mut cat = Catalog::new();
9679        cat.create_table(TableSchema::new(
9680            "a",
9681            vec![ColumnSchema::new("v", DataType::Int, false)],
9682        ))
9683        .unwrap();
9684        cat.create_table(TableSchema::new(
9685            "b",
9686            vec![ColumnSchema::new("v", DataType::Int, false)],
9687        ))
9688        .unwrap();
9689        cat.get_mut("a")
9690            .unwrap()
9691            .insert(Row::new(vec![Value::Int(1)]))
9692            .unwrap();
9693        assert_eq!(cat.get("a").unwrap().row_count(), 1);
9694        assert_eq!(cat.get("b").unwrap().row_count(), 0);
9695    }
9696
9697    // --- v0.6 persistence round-trips --------------------------------------
9698
9699    fn assert_round_trip(cat: &Catalog) {
9700        let bytes = cat.serialize();
9701        let restored = Catalog::deserialize(&bytes).expect("deserialize");
9702        // Compare semantic state: same tables in same order, same schema +
9703        // rows in each.
9704        assert_eq!(restored.table_count(), cat.table_count());
9705        for (a, b) in cat.tables.iter().zip(restored.tables.iter()) {
9706            assert_eq!(a.schema, b.schema);
9707            assert_eq!(a.rows, b.rows);
9708        }
9709    }
9710
9711    #[test]
9712    fn serialize_empty_catalog_round_trips() {
9713        assert_round_trip(&Catalog::new());
9714    }
9715
9716    #[test]
9717    fn serialize_single_empty_table_round_trips() {
9718        let mut cat = Catalog::new();
9719        cat.create_table(make_users_schema()).unwrap();
9720        assert_round_trip(&cat);
9721    }
9722
9723    #[test]
9724    fn nsw_clone_is_o1() {
9725        // v5.5.0: NswGraph::clone must be O(1) structural sharing, not the
9726        // pre-v5.5 O(N) element copy — it rides on Catalog::clone for every
9727        // group-commit write on a vector table. Build a non-trivial multi-
9728        // layer graph, clone it, and prove the clone shares the very same PV
9729        // storage (root+tail Arc) for `levels` and every `layers[l]`. Sharing
9730        // ⇒ no per-node element copy ⇒ clone cost independent of N (node
9731        // count); only the outer layer Vec (len ≤ 8) is copied, O(1) in
9732        // practice.
9733        let mut cat = Catalog::new();
9734        cat.create_table(TableSchema::new(
9735            "docs",
9736            alloc::vec![
9737                ColumnSchema::new("id", DataType::Int, false),
9738                ColumnSchema::new(
9739                    "v",
9740                    DataType::Vector {
9741                        dim: 3,
9742                        encoding: VecEncoding::F32
9743                    },
9744                    true
9745                ),
9746            ],
9747        ))
9748        .unwrap();
9749        let t = cat.get_mut("docs").unwrap();
9750        for i in 0..1500_i32 {
9751            #[allow(clippy::cast_precision_loss)] // 0..1500 — no precision lost
9752            let base = (i as f32) * 0.01;
9753            t.insert(Row::new(alloc::vec![
9754                Value::Int(i),
9755                Value::Vector(alloc::vec![base, base + 0.05, base + 0.1]),
9756            ]))
9757            .unwrap();
9758        }
9759        t.add_nsw_index("docs_nsw".into(), "v", NSW_DEFAULT_M)
9760            .unwrap();
9761        let g = match &cat.get("docs").unwrap().indices()[0].kind {
9762            IndexKind::Nsw(g) => g,
9763            IndexKind::BTree(_)
9764            | IndexKind::Brin { .. }
9765            | IndexKind::Gin(_)
9766            | IndexKind::GinTrgm(_)
9767            | IndexKind::GinFulltext(_) => {
9768                panic!("expected NSW")
9769            }
9770        };
9771        // Non-trivial graph: one level slot per row, and the geometric level
9772        // distribution puts some nodes above layer 0.
9773        assert_eq!(g.levels.len(), 1500, "one level slot per inserted row");
9774        assert!(
9775            g.layers.len() >= 2,
9776            "1500 nodes should populate at least two HNSW layers, got {}",
9777            g.layers.len()
9778        );
9779
9780        let cloned = g.clone();
9781
9782        assert!(
9783            g.levels.shares_storage_with(&cloned.levels),
9784            "levels PV not shared after clone — clone copied elements (O(N))"
9785        );
9786        assert_eq!(g.layers.len(), cloned.layers.len());
9787        for (l, (orig, cl)) in g.layers.iter().zip(cloned.layers.iter()).enumerate() {
9788            assert!(
9789                orig.shares_storage_with(cl),
9790                "layer {l} PV not shared after clone — clone copied elements (O(N))"
9791            );
9792        }
9793    }
9794
9795    #[test]
9796    fn sq8_catalog_serialise_roundtrip_preserves_cells_and_index() {
9797        // v6.0.1 step 6 verify: a catalog with an `VECTOR(N)
9798        // USING SQ8` column + NSW index survives a full
9799        // serialise → deserialise cycle. Cells re-decode bit-
9800        // identically (per-vector affine triple), the NSW
9801        // topology stays intact, and kNN search still routes
9802        // through the SQ8 ADC dispatcher after the catalog hop.
9803        let mut cat = Catalog::new();
9804        cat.create_table(TableSchema::new(
9805            "vecs",
9806            alloc::vec![
9807                ColumnSchema::new("id", DataType::Int, false),
9808                ColumnSchema::new(
9809                    "v",
9810                    DataType::Vector {
9811                        dim: 8,
9812                        encoding: VecEncoding::Sq8,
9813                    },
9814                    false,
9815                ),
9816            ],
9817        ))
9818        .unwrap();
9819        let t = cat.get_mut("vecs").unwrap();
9820        for i in 0..32_i32 {
9821            #[allow(clippy::cast_precision_loss)]
9822            let base = (i as f32) * 0.03;
9823            let v: Vec<f32> = (0..8_i32)
9824                .map(|j| {
9825                    #[allow(clippy::cast_precision_loss)]
9826                    let off = (j as f32) * 0.01;
9827                    base + off
9828                })
9829                .collect();
9830            t.insert(Row::new(alloc::vec![
9831                Value::Int(i),
9832                Value::Sq8Vector(quantize::quantize(&v)),
9833            ]))
9834            .unwrap();
9835        }
9836        t.add_nsw_index("v_idx".into(), "v", NSW_DEFAULT_M).unwrap();
9837        // Capture a pre-serialise reference cell + nsw hits to
9838        // compare against the restored catalog.
9839        let query = alloc::vec![0.15_f32, 0.16, 0.17, 0.18, 0.19, 0.20, 0.21, 0.22];
9840        let (before_cell, before_ty, before_hits) = {
9841            let t_ref = cat.get("vecs").unwrap();
9842            (
9843                t_ref.rows()[5].values[1].clone(),
9844                t_ref.schema().columns[1].ty,
9845                nsw_query(t_ref, "v_idx", &query, 5, NswMetric::L2),
9846            )
9847        };
9848
9849        let bytes = cat.serialize();
9850        let restored = Catalog::deserialize(&bytes).expect("deserialize ok");
9851        let rt = restored.get("vecs").unwrap();
9852        assert_eq!(rt.schema().columns[1].ty, before_ty);
9853        assert_eq!(rt.rows()[5].values[1], before_cell);
9854        let after_hits = nsw_query(rt, "v_idx", &query, 5, NswMetric::L2);
9855        assert_eq!(before_hits, after_hits);
9856    }
9857
9858    #[test]
9859    fn half_catalog_serialise_roundtrip_preserves_cells_and_index() {
9860        // v6.0.3 step 4 verify: a catalog with a `VECTOR(N) USING
9861        // HALF` column + NSW index survives a full serialise →
9862        // deserialise cycle. Cells re-decode bit-identically (raw
9863        // u16 LE bytes), the NSW topology stays intact, and kNN
9864        // search still returns the same hit IDs against the
9865        // restored catalog.
9866        use crate::halfvec;
9867        let mut cat = Catalog::new();
9868        cat.create_table(TableSchema::new(
9869            "vecs",
9870            alloc::vec![
9871                ColumnSchema::new("id", DataType::Int, false),
9872                ColumnSchema::new(
9873                    "v",
9874                    DataType::Vector {
9875                        dim: 8,
9876                        encoding: VecEncoding::F16,
9877                    },
9878                    false,
9879                ),
9880            ],
9881        ))
9882        .unwrap();
9883        let t = cat.get_mut("vecs").unwrap();
9884        for i in 0..32_i32 {
9885            #[allow(clippy::cast_precision_loss)]
9886            let base = (i as f32) * 0.03;
9887            let v: Vec<f32> = (0..8_i32)
9888                .map(|j| {
9889                    #[allow(clippy::cast_precision_loss)]
9890                    let off = (j as f32) * 0.01;
9891                    base + off
9892                })
9893                .collect();
9894            t.insert(Row::new(alloc::vec![
9895                Value::Int(i),
9896                Value::HalfVector(halfvec::HalfVector::from_f32_slice(&v)),
9897            ]))
9898            .unwrap();
9899        }
9900        t.add_nsw_index("v_idx".into(), "v", NSW_DEFAULT_M).unwrap();
9901        let query = alloc::vec![0.15_f32, 0.16, 0.17, 0.18, 0.19, 0.20, 0.21, 0.22];
9902        let (before_cell, before_ty, before_hits) = {
9903            let t_ref = cat.get("vecs").unwrap();
9904            (
9905                t_ref.rows()[5].values[1].clone(),
9906                t_ref.schema().columns[1].ty,
9907                nsw_query(t_ref, "v_idx", &query, 5, NswMetric::L2),
9908            )
9909        };
9910        let bytes = cat.serialize();
9911        let restored = Catalog::deserialize(&bytes).expect("deserialize ok");
9912        let rt = restored.get("vecs").unwrap();
9913        assert_eq!(rt.schema().columns[1].ty, before_ty);
9914        assert_eq!(rt.rows()[5].values[1], before_cell);
9915        let after_hits = nsw_query(rt, "v_idx", &query, 5, NswMetric::L2);
9916        assert_eq!(before_hits, after_hits);
9917    }
9918
9919    #[test]
9920    #[allow(clippy::similar_names)]
9921    fn hnsw_half_recall_at_10_matches_f32_groundtruth() {
9922        // v6.0.3 step 3 verify: HALF column NSW retrieves ≥ 95%
9923        // top-10 overlap vs brute-force F32 ground truth.
9924        // Half-precision dequantises bit-exactly at the storage
9925        // layer (no rerank pass), so the recall floor is tighter
9926        // than the SQ8 case — only the rounding noise from f32 →
9927        // f16 quantisation contributes.
9928        use crate::halfvec;
9929        fn next(state: &mut u64) -> f32 {
9930            *state = state
9931                .wrapping_add(0x9E37_79B9_7F4A_7C15)
9932                .wrapping_mul(0xBF58_476D_1CE4_E5B9);
9933            #[allow(clippy::cast_precision_loss)]
9934            let u = ((*state >> 32) as u32 as f32) / (u32::MAX as f32);
9935            2.0 * u - 1.0
9936        }
9937        let dim: u32 = 32;
9938        let n: usize = 512;
9939        let dim_us = dim as usize;
9940        let mut seed: u64 = 0xF16_F16_F16_F16_u64;
9941        let corpus: Vec<Vec<f32>> = (0..n)
9942            .map(|_| (0..dim_us).map(|_| next(&mut seed)).collect())
9943            .collect();
9944        let queries: Vec<Vec<f32>> = (0..32)
9945            .map(|_| (0..dim_us).map(|_| next(&mut seed)).collect())
9946            .collect();
9947        let exact_top10: Vec<Vec<usize>> = queries
9948            .iter()
9949            .map(|q| {
9950                let mut scored: Vec<(f32, usize)> = corpus
9951                    .iter()
9952                    .enumerate()
9953                    .map(|(i, v)| (l2_distance_sq(v, q), i))
9954                    .collect();
9955                scored.sort_by(|a, b| a.0.partial_cmp(&b.0).unwrap_or(core::cmp::Ordering::Equal));
9956                scored.into_iter().take(10).map(|(_, i)| i).collect()
9957            })
9958            .collect();
9959        let mut cat = Catalog::new();
9960        cat.create_table(TableSchema::new(
9961            "vecs",
9962            alloc::vec![
9963                ColumnSchema::new("id", DataType::Int, false),
9964                ColumnSchema::new(
9965                    "v",
9966                    DataType::Vector {
9967                        dim,
9968                        encoding: VecEncoding::F16,
9969                    },
9970                    false,
9971                ),
9972            ],
9973        ))
9974        .unwrap();
9975        let t = cat.get_mut("vecs").unwrap();
9976        for (i, v) in corpus.iter().enumerate() {
9977            t.insert(Row::new(alloc::vec![
9978                Value::Int(i32::try_from(i).unwrap()),
9979                Value::HalfVector(halfvec::HalfVector::from_f32_slice(v)),
9980            ]))
9981            .unwrap();
9982        }
9983        t.add_nsw_index("v_idx".into(), "v", NSW_DEFAULT_M).unwrap();
9984        let table = cat.get("vecs").unwrap();
9985        let mut total_overlap = 0_usize;
9986        for (q, exact) in queries.iter().zip(exact_top10.iter()) {
9987            let hits = nsw_query(table, "v_idx", q, 10, NswMetric::L2);
9988            for h in &hits {
9989                if exact.contains(h) {
9990                    total_overlap += 1;
9991                }
9992            }
9993        }
9994        #[allow(clippy::cast_precision_loss)]
9995        let recall = total_overlap as f32 / (10.0 * queries.len() as f32);
9996        assert!(
9997            recall >= 0.95,
9998            "HALF HNSW recall@10 = {recall:.3}, below floor 0.95 — \
9999             check halfvec dispatch in `cell_to_query_metric_distance`"
10000        );
10001    }
10002
10003    #[test]
10004    fn hnsw_sq8_recall_at_10_above_0_95_vs_f32_groundtruth() {
10005        // v6.0.1 step 5 verify: build TWO catalogs over the same
10006        // corpus — one F32, one SQ8 — and confirm SQ8 NSW + f32
10007        // rerank retrieves ≥ 95% top-10 overlap vs brute-force F32
10008        // ground truth. The rerank pass (sq8_rerank) re-scores ADC
10009        // candidates with dequantised cells, recovering recall the
10010        // raw ADC sacrifices for 4× compression.
10011        use crate::quantize;
10012        // Deterministic Gaussian-ish corpus via splitmix64. Vectors
10013        // get normalised so SQ8's per-vector `(min, max)` lives in
10014        // a sensible range; matches the v6.0.0 fuzz harness.
10015        fn next(state: &mut u64) -> f32 {
10016            *state = state
10017                .wrapping_add(0x9E37_79B9_7F4A_7C15)
10018                .wrapping_mul(0xBF58_476D_1CE4_E5B9);
10019            #[allow(clippy::cast_precision_loss)]
10020            let u = ((*state >> 32) as u32 as f32) / (u32::MAX as f32);
10021            2.0 * u - 1.0
10022        }
10023        let dim: u32 = 32;
10024        let n: usize = 512;
10025        let dim_us = dim as usize;
10026        let mut seed: u64 = 0xCAFE_BABE_DEAD_BEEFu64;
10027        let corpus: Vec<Vec<f32>> = (0..n)
10028            .map(|_| (0..dim_us).map(|_| next(&mut seed)).collect())
10029            .collect();
10030        let queries: Vec<Vec<f32>> = (0..32)
10031            .map(|_| (0..dim_us).map(|_| next(&mut seed)).collect())
10032            .collect();
10033        // F32 ground truth — pure exact arithmetic, brute force.
10034        let exact_top10: Vec<Vec<usize>> = queries
10035            .iter()
10036            .map(|q| {
10037                let mut scored: Vec<(f32, usize)> = corpus
10038                    .iter()
10039                    .enumerate()
10040                    .map(|(i, v)| (l2_distance_sq(v, q), i))
10041                    .collect();
10042                scored.sort_by(|a, b| a.0.partial_cmp(&b.0).unwrap_or(core::cmp::Ordering::Equal));
10043                scored.into_iter().take(10).map(|(_, i)| i).collect()
10044            })
10045            .collect();
10046        // SQ8 catalog — INSERTs land as `Value::Sq8Vector` cells;
10047        // HNSW build uses the ADC path verified in step 4.
10048        let mut cat = Catalog::new();
10049        cat.create_table(TableSchema::new(
10050            "vecs",
10051            alloc::vec![
10052                ColumnSchema::new("id", DataType::Int, false),
10053                ColumnSchema::new(
10054                    "v",
10055                    DataType::Vector {
10056                        dim,
10057                        encoding: VecEncoding::Sq8,
10058                    },
10059                    false,
10060                ),
10061            ],
10062        ))
10063        .unwrap();
10064        let t = cat.get_mut("vecs").unwrap();
10065        for (i, v) in corpus.iter().enumerate() {
10066            t.insert(Row::new(alloc::vec![
10067                Value::Int(i32::try_from(i).unwrap()),
10068                Value::Sq8Vector(quantize::quantize(v)),
10069            ]))
10070            .unwrap();
10071        }
10072        t.add_nsw_index("v_idx".into(), "v", NSW_DEFAULT_M).unwrap();
10073        let table = cat.get("vecs").unwrap();
10074        let mut total_overlap = 0_usize;
10075        for (q, exact) in queries.iter().zip(exact_top10.iter()) {
10076            let hits = nsw_query(table, "v_idx", q, 10, NswMetric::L2);
10077            for h in &hits {
10078                if exact.contains(h) {
10079                    total_overlap += 1;
10080                }
10081            }
10082        }
10083        #[allow(clippy::cast_precision_loss)]
10084        let recall = total_overlap as f32 / (10.0 * queries.len() as f32);
10085        assert!(
10086            recall >= 0.95,
10087            "SQ8 HNSW recall@10 = {recall:.3}, below floor 0.95 — \
10088             check `sq8_rerank` is wired in `nsw_search` for SQ8 columns"
10089        );
10090    }
10091
10092    #[test]
10093    fn nsw_index_topology_persists_through_round_trip() {
10094        // Build an NSW index, capture its (entry, neighbors) tuple, do
10095        // a full serialize → deserialize, and verify the restored
10096        // graph is byte-for-byte identical. The point of v2.7 is that
10097        // startup skips the rebuild, so the topology has to survive
10098        // the disk hop.
10099        let mut cat = Catalog::new();
10100        cat.create_table(TableSchema::new(
10101            "docs",
10102            alloc::vec![
10103                ColumnSchema::new("id", DataType::Int, false),
10104                ColumnSchema::new(
10105                    "v",
10106                    DataType::Vector {
10107                        dim: 3,
10108                        encoding: VecEncoding::F32
10109                    },
10110                    true
10111                ),
10112            ],
10113        ))
10114        .unwrap();
10115        let t = cat.get_mut("docs").unwrap();
10116        for i in 0..6_i32 {
10117            #[allow(clippy::cast_precision_loss)] // 0..6 — no precision lost
10118            let base = (i as f32) * 0.1;
10119            let row = Row::new(alloc::vec![
10120                Value::Int(i),
10121                Value::Vector(alloc::vec![base, base + 0.05, base + 0.1]),
10122            ]);
10123            t.insert(row).unwrap();
10124        }
10125        t.add_nsw_index("docs_nsw".into(), "v", NSW_DEFAULT_M)
10126            .unwrap();
10127        let original = match &cat.get("docs").unwrap().indices()[0].kind {
10128            IndexKind::Nsw(g) => g.clone(),
10129            IndexKind::BTree(_)
10130            | IndexKind::Brin { .. }
10131            | IndexKind::Gin(_)
10132            | IndexKind::GinTrgm(_)
10133            | IndexKind::GinFulltext(_) => {
10134                panic!("expected NSW")
10135            }
10136        };
10137        let bytes = cat.serialize();
10138        let restored = Catalog::deserialize(&bytes).expect("deserialize");
10139        let restored_graph = match &restored.get("docs").unwrap().indices()[0].kind {
10140            IndexKind::Nsw(g) => g.clone(),
10141            IndexKind::BTree(_)
10142            | IndexKind::Brin { .. }
10143            | IndexKind::Gin(_)
10144            | IndexKind::GinTrgm(_)
10145            | IndexKind::GinFulltext(_) => {
10146                panic!("expected NSW")
10147            }
10148        };
10149        assert_eq!(restored_graph.m, original.m);
10150        assert_eq!(restored_graph.m_max_0, original.m_max_0);
10151        assert_eq!(restored_graph.entry, original.entry);
10152        assert_eq!(restored_graph.entry_level, original.entry_level);
10153        assert_eq!(restored_graph.levels, original.levels);
10154        assert_eq!(restored_graph.layers, original.layers);
10155    }
10156
10157    #[test]
10158    fn hnsw_level_assignment_is_deterministic() {
10159        // Same row index always produces the same level — the topology
10160        // must be reproducible (matters for serialize round-trip).
10161        for i in 0..32usize {
10162            assert_eq!(nsw_assign_level(i), nsw_assign_level(i));
10163        }
10164    }
10165
10166    #[test]
10167    fn hnsw_layer_0_dominates_population() {
10168        // Sanity: out of N inserts, the vast majority should land on
10169        // layer 0. The 4-bit-clear promotion rule gives roughly 1/16
10170        // promotion to layer ≥ 1, so under 50 nodes we expect ~3 on
10171        // layer ≥ 1 and the rest on layer 0.
10172        let on_zero = (0..200usize).filter(|&i| nsw_assign_level(i) == 0).count();
10173        assert!(on_zero > 150, "level-0 nodes too few: {on_zero}");
10174    }
10175
10176    #[test]
10177    fn hnsw_search_matches_brute_force_for_l2_top1() {
10178        // Build a small dataset, query it, and confirm the top result
10179        // matches the brute-force nearest by L2. Topology variability
10180        // shouldn't break recall at k=1 for well-separated vectors.
10181        let mut cat = Catalog::new();
10182        cat.create_table(TableSchema::new(
10183            "vecs",
10184            alloc::vec![
10185                ColumnSchema::new("id", DataType::Int, false),
10186                ColumnSchema::new(
10187                    "v",
10188                    DataType::Vector {
10189                        dim: 3,
10190                        encoding: VecEncoding::F32
10191                    },
10192                    true
10193                ),
10194            ],
10195        ))
10196        .unwrap();
10197        let t = cat.get_mut("vecs").unwrap();
10198        let dataset: alloc::vec::Vec<(i32, [f32; 3])> = alloc::vec![
10199            (1, [0.0, 0.0, 0.0]),
10200            (2, [1.0, 0.0, 0.0]),
10201            (3, [0.0, 1.0, 0.0]),
10202            (4, [0.0, 0.0, 1.0]),
10203            (5, [1.0, 1.0, 0.0]),
10204            (6, [1.0, 0.0, 1.0]),
10205            (7, [0.0, 1.0, 1.0]),
10206            (8, [1.0, 1.0, 1.0]),
10207            (9, [0.5, 0.5, 0.5]),
10208            (10, [0.2, 0.8, 0.5]),
10209        ];
10210        for &(id, v) in &dataset {
10211            t.insert(Row::new(alloc::vec![
10212                Value::Int(id),
10213                Value::Vector(alloc::vec![v[0], v[1], v[2]]),
10214            ]))
10215            .unwrap();
10216        }
10217        t.add_nsw_index("v_idx".into(), "v", NSW_DEFAULT_M).unwrap();
10218        let idx_pos = cat
10219            .get("vecs")
10220            .unwrap()
10221            .indices()
10222            .iter()
10223            .position(|i| i.name == "v_idx")
10224            .unwrap();
10225        for query in [[0.4, 0.4, 0.4], [0.9, 0.1, 0.0], [0.0, 0.9, 0.9]] {
10226            let table = cat.get("vecs").unwrap();
10227            let hnsw_top = nsw_search(table, idx_pos, &query, 1, 16, NswMetric::L2);
10228            let mut brute: alloc::vec::Vec<(f32, usize)> = (0..table.rows.len())
10229                .map(|i| {
10230                    let Value::Vector(v) = &table.rows[i].values[1] else {
10231                        return (f32::INFINITY, i);
10232                    };
10233                    (l2_distance_sq(v, &query), i)
10234                })
10235                .collect();
10236            brute.sort_by(|a, b| a.0.partial_cmp(&b.0).unwrap_or(core::cmp::Ordering::Equal));
10237            assert!(!hnsw_top.is_empty(), "HNSW returned no results");
10238            assert_eq!(
10239                hnsw_top[0].1, brute[0].1,
10240                "HNSW top-1 != brute-force top-1 for {query:?}"
10241            );
10242        }
10243    }
10244
10245    #[test]
10246    fn serialize_table_with_rows_round_trips() {
10247        let mut cat = Catalog::new();
10248        cat.create_table(make_users_schema()).unwrap();
10249        let t = cat.get_mut("users").unwrap();
10250        t.insert(Row::new(vec![
10251            Value::Int(1),
10252            Value::Text("alice".into()),
10253            Value::Float(95.5),
10254        ]))
10255        .unwrap();
10256        t.insert(Row::new(vec![
10257            Value::Int(2),
10258            Value::Text("bob".into()),
10259            Value::Null,
10260        ]))
10261        .unwrap();
10262        assert_round_trip(&cat);
10263    }
10264
10265    #[test]
10266    fn serialize_multiple_tables_round_trips() {
10267        let mut cat = Catalog::new();
10268        cat.create_table(make_users_schema()).unwrap();
10269        cat.create_table(TableSchema::new(
10270            "flags",
10271            vec![
10272                ColumnSchema::new("id", DataType::BigInt, false),
10273                ColumnSchema::new("active", DataType::Bool, false),
10274            ],
10275        ))
10276        .unwrap();
10277        cat.get_mut("flags")
10278            .unwrap()
10279            .insert(Row::new(vec![Value::BigInt(7), Value::Bool(true)]))
10280            .unwrap();
10281        assert_round_trip(&cat);
10282    }
10283
10284    #[test]
10285    fn deserialize_rejects_bad_magic() {
10286        let mut buf = b"BADMAGIC".to_vec();
10287        buf.push(FILE_VERSION);
10288        buf.extend_from_slice(&0u32.to_le_bytes());
10289        let err = Catalog::deserialize(&buf).unwrap_err();
10290        assert!(matches!(err, StorageError::Corrupt(_)));
10291    }
10292
10293    #[test]
10294    fn deserialize_rejects_unsupported_version() {
10295        let mut buf = FILE_MAGIC.to_vec();
10296        buf.push(99); // future version
10297        buf.extend_from_slice(&0u32.to_le_bytes());
10298        let err = Catalog::deserialize(&buf).unwrap_err();
10299        assert!(matches!(err, StorageError::Corrupt(ref s) if s.contains("version")));
10300    }
10301
10302    #[test]
10303    fn deserialize_rejects_truncated_file() {
10304        let mut cat = Catalog::new();
10305        cat.create_table(make_users_schema()).unwrap();
10306        let bytes = cat.serialize();
10307        // Drop the last byte to simulate truncation.
10308        let truncated = &bytes[..bytes.len() - 1];
10309        assert!(matches!(
10310            Catalog::deserialize(truncated),
10311            Err(StorageError::Corrupt(_))
10312        ));
10313    }
10314
10315    #[test]
10316    fn deserialize_rejects_trailing_garbage() {
10317        let cat = Catalog::new();
10318        let mut bytes = cat.serialize();
10319        bytes.push(0xFF);
10320        assert!(matches!(
10321            Catalog::deserialize(&bytes),
10322            Err(StorageError::Corrupt(ref s)) if s.contains("trailing")
10323        ));
10324    }
10325
10326    // --- v0.8 indices ------------------------------------------------------
10327
10328    fn populated_users() -> Catalog {
10329        let mut cat = Catalog::new();
10330        cat.create_table(make_users_schema()).unwrap();
10331        let t = cat.get_mut("users").unwrap();
10332        for (id, name, score) in [
10333            (1, "alice", Some(90.0)),
10334            (2, "bob", None),
10335            (3, "alice", Some(70.0)), // duplicate name → maps to two row idxs
10336        ] {
10337            t.insert(Row::new(vec![
10338                Value::Int(id),
10339                Value::Text(name.into()),
10340                score.map_or(Value::Null, Value::Float),
10341            ]))
10342            .unwrap();
10343        }
10344        cat
10345    }
10346
10347    #[test]
10348    fn add_index_builds_from_existing_rows() {
10349        let mut cat = populated_users();
10350        cat.get_mut("users")
10351            .unwrap()
10352            .add_index("by_id".into(), "id")
10353            .unwrap();
10354        let t = cat.get("users").unwrap();
10355        let idx = t.index_on(0).expect("index_on(0)");
10356        assert_eq!(idx.lookup_eq(&IndexKey::Int(2)), &[RowLocator::Hot(1)]);
10357        assert_eq!(idx.lookup_eq(&IndexKey::Int(99)), &[] as &[RowLocator]);
10358    }
10359
10360    #[test]
10361    fn add_index_dup_name_rejected() {
10362        let mut cat = populated_users();
10363        let t = cat.get_mut("users").unwrap();
10364        t.add_index("ix".into(), "id").unwrap();
10365        let err = t.add_index("ix".into(), "name").unwrap_err();
10366        assert!(matches!(err, StorageError::DuplicateIndex { ref name } if name == "ix"));
10367    }
10368
10369    #[test]
10370    fn add_index_unknown_column_rejected() {
10371        let mut cat = populated_users();
10372        let err = cat
10373            .get_mut("users")
10374            .unwrap()
10375            .add_index("ix".into(), "ghost")
10376            .unwrap_err();
10377        assert!(matches!(err, StorageError::ColumnNotFound { ref column } if column == "ghost"));
10378    }
10379
10380    #[test]
10381    fn insert_after_create_index_updates_it() {
10382        let mut cat = populated_users();
10383        let t = cat.get_mut("users").unwrap();
10384        t.add_index("by_name".into(), "name").unwrap();
10385        t.insert(Row::new(vec![
10386            Value::Int(4),
10387            Value::Text("dave".into()),
10388            Value::Null,
10389        ]))
10390        .unwrap();
10391        let idx = t.index_on(1).unwrap();
10392        assert_eq!(
10393            idx.lookup_eq(&IndexKey::Text("dave".into())),
10394            &[RowLocator::Hot(3)]
10395        );
10396        // Pre-existing duplicates remain mapped to the two original row idxs.
10397        assert_eq!(
10398            idx.lookup_eq(&IndexKey::Text("alice".into())),
10399            &[RowLocator::Hot(0), RowLocator::Hot(2)]
10400        );
10401    }
10402
10403    #[test]
10404    fn null_or_float_values_are_not_indexed() {
10405        let mut cat = populated_users();
10406        let t = cat.get_mut("users").unwrap();
10407        t.add_index("by_score".into(), "score").unwrap();
10408        let idx = t.index_on(2).unwrap();
10409        // bob's score is NULL → no entry for bob.
10410        // Score is Float → the spec says we don't index NaN-prone columns,
10411        // so even the present scores are absent. Lookups via IndexKey::Int(90)
10412        // mis-match the column type and trivially find nothing.
10413        assert_eq!(idx.lookup_eq(&IndexKey::Int(90)), &[] as &[RowLocator]);
10414    }
10415
10416    // --- v0.11 vector type -------------------------------------------------
10417
10418    #[test]
10419    fn vector_value_data_type_carries_dim() {
10420        let v = Value::Vector(vec![1.0, 2.0, 3.0]);
10421        assert_eq!(
10422            v.data_type(),
10423            Some(DataType::Vector {
10424                dim: 3,
10425                encoding: VecEncoding::F32
10426            })
10427        );
10428    }
10429
10430    #[test]
10431    fn vector_column_insert_matching_dim_ok() {
10432        let mut cat = Catalog::new();
10433        cat.create_table(TableSchema::new(
10434            "emb",
10435            vec![ColumnSchema::new(
10436                "v",
10437                DataType::Vector {
10438                    dim: 3,
10439                    encoding: VecEncoding::F32,
10440                },
10441                false,
10442            )],
10443        ))
10444        .unwrap();
10445        cat.get_mut("emb")
10446            .unwrap()
10447            .insert(Row::new(vec![Value::Vector(vec![1.0, 2.0, 3.0])]))
10448            .unwrap();
10449    }
10450
10451    #[test]
10452    fn vector_column_insert_dim_mismatch_rejected() {
10453        let mut cat = Catalog::new();
10454        cat.create_table(TableSchema::new(
10455            "emb",
10456            vec![ColumnSchema::new(
10457                "v",
10458                DataType::Vector {
10459                    dim: 3,
10460                    encoding: VecEncoding::F32,
10461                },
10462                false,
10463            )],
10464        ))
10465        .unwrap();
10466        let err = cat
10467            .get_mut("emb")
10468            .unwrap()
10469            .insert(Row::new(vec![Value::Vector(vec![1.0, 2.0])]))
10470            .unwrap_err();
10471        assert!(matches!(err, StorageError::TypeMismatch { .. }));
10472    }
10473
10474    #[test]
10475    fn vector_value_survives_catalog_round_trip() {
10476        let mut cat = Catalog::new();
10477        cat.create_table(TableSchema::new(
10478            "emb",
10479            vec![
10480                ColumnSchema::new("id", DataType::Int, false),
10481                ColumnSchema::new(
10482                    "v",
10483                    DataType::Vector {
10484                        dim: 4,
10485                        encoding: VecEncoding::F32,
10486                    },
10487                    false,
10488                ),
10489            ],
10490        ))
10491        .unwrap();
10492        cat.get_mut("emb")
10493            .unwrap()
10494            .insert(Row::new(vec![
10495                Value::Int(1),
10496                Value::Vector(vec![0.5, -1.25, 3.0, 7.0]),
10497            ]))
10498            .unwrap();
10499        let restored = Catalog::deserialize(&cat.serialize()).expect("round-trip");
10500        let table = restored.get("emb").unwrap();
10501        assert_eq!(
10502            table.schema().columns[1].ty,
10503            DataType::Vector {
10504                dim: 4,
10505                encoding: VecEncoding::F32
10506            }
10507        );
10508        assert_eq!(
10509            table.rows()[0].values[1],
10510            Value::Vector(vec![0.5, -1.25, 3.0, 7.0])
10511        );
10512    }
10513
10514    #[test]
10515    fn index_survives_serialize_deserialize_round_trip() {
10516        let mut cat = populated_users();
10517        cat.get_mut("users")
10518            .unwrap()
10519            .add_index("by_name".into(), "name")
10520            .unwrap();
10521        let restored = Catalog::deserialize(&cat.serialize()).unwrap();
10522        let idx = restored
10523            .get("users")
10524            .unwrap()
10525            .index_on(1)
10526            .expect("index_on(1) after restore");
10527        assert_eq!(idx.name, "by_name");
10528        // Data was rebuilt from rows, not deserialized directly.
10529        assert_eq!(
10530            idx.lookup_eq(&IndexKey::Text("alice".into())),
10531            &[RowLocator::Hot(0), RowLocator::Hot(2)]
10532        );
10533    }
10534
10535    // --- v5.1 cold-tier integration tests ----------------------
10536
10537    /// Schema with a BIGINT PK column matching what the v5.1 cold-
10538    /// tier path supports (`IndexKey::Int` → `u64` cast).
10539    fn bigint_pk_users_schema() -> TableSchema {
10540        TableSchema::new(
10541            "users",
10542            vec![
10543                ColumnSchema::new("id", DataType::BigInt, false),
10544                ColumnSchema::new("name", DataType::Text, false),
10545            ],
10546        )
10547    }
10548
10549    fn make_user_row(id: i64, name: &str) -> Row {
10550        Row::new(vec![Value::BigInt(id), Value::Text(name.into())])
10551    }
10552
10553    #[test]
10554    fn lookup_by_pk_finds_row_via_hot_index() {
10555        let mut cat = Catalog::new();
10556        cat.create_table(bigint_pk_users_schema()).unwrap();
10557        let t = cat.get_mut("users").unwrap();
10558        for (id, name) in [(1i64, "alice"), (2, "bob"), (3, "carol")] {
10559            t.insert(make_user_row(id, name)).unwrap();
10560        }
10561        t.add_index("by_id".into(), "id").unwrap();
10562        // All locators are Hot; cold_segments is empty.
10563        let got = cat
10564            .lookup_by_pk("users", "by_id", &IndexKey::Int(2))
10565            .unwrap();
10566        assert_eq!(got, make_user_row(2, "bob"));
10567        assert_eq!(cat.cold_segment_count(), 0);
10568    }
10569
10570    #[test]
10571    fn lookup_by_pk_returns_none_when_key_missing() {
10572        let mut cat = Catalog::new();
10573        cat.create_table(bigint_pk_users_schema()).unwrap();
10574        let t = cat.get_mut("users").unwrap();
10575        t.insert(make_user_row(1, "alice")).unwrap();
10576        t.add_index("by_id".into(), "id").unwrap();
10577        assert!(
10578            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(999))
10579                .is_none()
10580        );
10581        // Also: unknown table / unknown index name.
10582        assert!(
10583            cat.lookup_by_pk("other_table", "by_id", &IndexKey::Int(1))
10584                .is_none()
10585        );
10586        assert!(
10587            cat.lookup_by_pk("users", "no_such_index", &IndexKey::Int(1))
10588                .is_none()
10589        );
10590    }
10591
10592    #[test]
10593    fn lookup_by_pk_resolves_cold_locator_via_loaded_segment() {
10594        // Build a cold-tier segment whose payloads are dense-encoded
10595        // BIGINT rows. Wire each PK into the BTree index as a Cold
10596        // locator. The hot tier carries no rows for those PKs.
10597        let mut cat = Catalog::new();
10598        cat.create_table(bigint_pk_users_schema()).unwrap();
10599        let t = cat.get_mut("users").unwrap();
10600        t.add_index("by_id".into(), "id").unwrap();
10601        let schema = t.schema.clone();
10602
10603        let cold_rows: Vec<(i64, &str)> =
10604            vec![(100, "ivy"), (200, "joe"), (300, "kim"), (400, "lin")];
10605        let seg_rows: Vec<(u64, Vec<u8>)> = cold_rows
10606            .iter()
10607            .map(|(id, name)| {
10608                let row = make_user_row(*id, name);
10609                ((*id).cast_unsigned(), encode_row_body_dense(&row, &schema))
10610            })
10611            .collect();
10612        let (seg_bytes, _meta) =
10613            encode_segment(seg_rows.into_iter(), 0.01, SEGMENT_PAGE_BYTES).unwrap();
10614        let seg_id = cat.load_segment_bytes(seg_bytes).unwrap();
10615        assert_eq!(seg_id, 0);
10616        assert_eq!(cat.cold_segment_count(), 1);
10617
10618        let pairs: Vec<(IndexKey, RowLocator)> = cold_rows
10619            .iter()
10620            .map(|(id, _)| {
10621                (
10622                    IndexKey::Int(*id),
10623                    RowLocator::Cold {
10624                        segment_id: seg_id,
10625                        page_offset: 0,
10626                    },
10627                )
10628            })
10629            .collect();
10630        let registered = cat
10631            .get_mut("users")
10632            .unwrap()
10633            .register_cold_locators("by_id", pairs)
10634            .unwrap();
10635        assert_eq!(registered, 4);
10636
10637        for (id, name) in &cold_rows {
10638            let got = cat
10639                .lookup_by_pk("users", "by_id", &IndexKey::Int(*id))
10640                .unwrap_or_else(|| panic!("cold key {id} not found"));
10641            assert_eq!(got, make_user_row(*id, name));
10642        }
10643        // Cold key that isn't in the segment must return None.
10644        assert!(
10645            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(999))
10646                .is_none()
10647        );
10648    }
10649
10650    #[test]
10651    fn lookup_by_pk_mixes_hot_and_cold_tiers() {
10652        // Half the rows live in the hot tier (Table::rows + add_index
10653        // produces Hot locators); half live in a cold segment and have
10654        // Cold locators wired manually. Each lookup hits the right tier.
10655        let mut cat = Catalog::new();
10656        cat.create_table(bigint_pk_users_schema()).unwrap();
10657        let t = cat.get_mut("users").unwrap();
10658        for (id, name) in [(1i64, "alice"), (2, "bob")] {
10659            t.insert(make_user_row(id, name)).unwrap();
10660        }
10661        t.add_index("by_id".into(), "id").unwrap();
10662        let schema = t.schema.clone();
10663
10664        let cold_rows: Vec<(i64, &str)> = vec![(100, "ivy"), (200, "joe")];
10665        let seg_rows: Vec<(u64, Vec<u8>)> = cold_rows
10666            .iter()
10667            .map(|(id, name)| {
10668                let row = make_user_row(*id, name);
10669                ((*id).cast_unsigned(), encode_row_body_dense(&row, &schema))
10670            })
10671            .collect();
10672        let (seg_bytes, _) =
10673            encode_segment(seg_rows.into_iter(), 0.01, SEGMENT_PAGE_BYTES).unwrap();
10674        let seg_id = cat.load_segment_bytes(seg_bytes).unwrap();
10675        let pairs: Vec<(IndexKey, RowLocator)> = cold_rows
10676            .iter()
10677            .map(|(id, _)| {
10678                (
10679                    IndexKey::Int(*id),
10680                    RowLocator::Cold {
10681                        segment_id: seg_id,
10682                        page_offset: 0,
10683                    },
10684                )
10685            })
10686            .collect();
10687        cat.get_mut("users")
10688            .unwrap()
10689            .register_cold_locators("by_id", pairs)
10690            .unwrap();
10691
10692        // Hot tier hits.
10693        assert_eq!(
10694            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(1))
10695                .unwrap(),
10696            make_user_row(1, "alice")
10697        );
10698        assert_eq!(
10699            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(2))
10700                .unwrap(),
10701            make_user_row(2, "bob")
10702        );
10703        // Cold tier hits.
10704        assert_eq!(
10705            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(100))
10706                .unwrap(),
10707            make_user_row(100, "ivy")
10708        );
10709        assert_eq!(
10710            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(200))
10711                .unwrap(),
10712            make_user_row(200, "joe")
10713        );
10714        // Miss in both tiers.
10715        assert!(
10716            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(50))
10717                .is_none()
10718        );
10719    }
10720
10721    #[test]
10722    fn register_cold_locators_rejects_nsw_index() {
10723        let mut cat = Catalog::new();
10724        cat.create_table(TableSchema::new(
10725            "vecs",
10726            vec![
10727                ColumnSchema::new("id", DataType::Int, false),
10728                ColumnSchema::new(
10729                    "v",
10730                    DataType::Vector {
10731                        dim: 4,
10732                        encoding: VecEncoding::F32,
10733                    },
10734                    false,
10735                ),
10736            ],
10737        ))
10738        .unwrap();
10739        let t = cat.get_mut("vecs").unwrap();
10740        t.insert(Row::new(vec![
10741            Value::Int(1),
10742            Value::Vector(vec![1.0, 0.0, 0.0, 0.0]),
10743        ]))
10744        .unwrap();
10745        t.add_nsw_index("by_v".into(), "v", NSW_DEFAULT_M).unwrap();
10746        let err = t
10747            .register_cold_locators(
10748                "by_v",
10749                vec![(
10750                    IndexKey::Int(1),
10751                    RowLocator::Cold {
10752                        segment_id: 0,
10753                        page_offset: 0,
10754                    },
10755                )],
10756            )
10757            .unwrap_err();
10758        // v6.7.1: message switched from "is NSW" to "is not BTree"
10759        // when the Brin variant was added.
10760        assert!(matches!(err, StorageError::Corrupt(ref s) if s.contains("not BTree")));
10761    }
10762
10763    #[test]
10764    fn load_segment_bytes_rejects_garbage() {
10765        let mut cat = Catalog::new();
10766        let err = cat.load_segment_bytes(vec![0u8; 10]).unwrap_err();
10767        assert!(matches!(err, StorageError::Corrupt(ref s) if s.contains("segment")));
10768        // Loader doesn't mutate state on error.
10769        assert_eq!(cat.cold_segment_count(), 0);
10770    }
10771
10772    #[test]
10773    fn load_segment_bytes_returns_sequential_ids() {
10774        let mut cat = Catalog::new();
10775        cat.create_table(bigint_pk_users_schema()).unwrap();
10776        let schema = cat.get("users").unwrap().schema.clone();
10777        for batch in 0u32..3 {
10778            let rows: Vec<(u64, Vec<u8>)> = (0u64..4)
10779                .map(|i| {
10780                    let id = u64::from(batch) * 100 + i;
10781                    let row = make_user_row(id.cast_signed(), "x");
10782                    (id, encode_row_body_dense(&row, &schema))
10783                })
10784                .collect();
10785            let (bytes, _) = encode_segment(rows.into_iter(), 0.01, SEGMENT_PAGE_BYTES).unwrap();
10786            assert_eq!(cat.load_segment_bytes(bytes).unwrap(), batch);
10787        }
10788        assert_eq!(cat.cold_segment_count(), 3);
10789    }
10790
10791    // --- v5.2 catalog format v9 ----------------------------------
10792
10793    /// Hand-craft a v8 catalog byte stream and confirm the v9 reader
10794    /// accepts it and surfaces every `BTree` entry as a Hot locator.
10795    /// Guards the backward-compat read path: existing v3.0.2 / v4.x
10796    /// snapshots on disk must keep loading after the v5.2 bump.
10797    #[test]
10798    fn v8_catalog_decodes_as_all_hot_under_v9_reader() {
10799        // Build a populated catalog in memory, snapshot it with the
10800        // v9 serializer, then patch the version byte back to 8 and
10801        // strip the v9 BTree payload bytes so the layout matches what
10802        // a real v8 snapshot would have produced on disk. The v9
10803        // reader's version dispatch path then rebuilds the index
10804        // from rows (every locator becomes Hot).
10805        let mut cat = populated_users();
10806        cat.get_mut("users")
10807            .unwrap()
10808            .add_index("by_name".into(), "name")
10809            .unwrap();
10810
10811        // To produce a faithful v8 byte stream we re-encode the same
10812        // catalog with the v8 layout: identical bytes up to (and
10813        // including) the per-index kind tag, but no inline BTree
10814        // entries.
10815        let v8_bytes = encode_as_v8(&cat);
10816        assert_eq!(v8_bytes[FILE_MAGIC.len()], 8, "version byte must be 8");
10817
10818        let restored = Catalog::deserialize(&v8_bytes).expect("v9 reader accepts v8 stream");
10819        let idx = restored
10820            .get("users")
10821            .unwrap()
10822            .index_on(1)
10823            .expect("index_on(1) after restore");
10824        // v8 path always materialises Hot locators (no cold tier
10825        // existed pre-v5.2).
10826        assert_eq!(
10827            idx.lookup_eq(&IndexKey::Text("alice".into())),
10828            &[RowLocator::Hot(0), RowLocator::Hot(2)]
10829        );
10830        // No accidental Cold leak.
10831        for entry in idx.lookup_eq(&IndexKey::Text("alice".into())) {
10832            assert!(entry.is_hot(), "v8 → v9 read must yield Hot only");
10833        }
10834    }
10835
10836    /// Encode `cat` using the v8 layout (no inline `BTree` entries,
10837    /// version byte = 8). Pure test helper — duplicates just enough
10838    /// of `Catalog::serialize` to produce a faithful v8 stream that
10839    /// real v3.0.2 / v4.x deployments wrote.
10840    fn encode_as_v8(cat: &Catalog) -> Vec<u8> {
10841        let mut out = Vec::with_capacity(64);
10842        out.extend_from_slice(FILE_MAGIC);
10843        out.push(8u8);
10844        write_u32(&mut out, u32::try_from(cat.tables.len()).unwrap());
10845        for t in &cat.tables {
10846            write_str(&mut out, &t.schema.name);
10847            write_u16(&mut out, u16::try_from(t.schema.columns.len()).unwrap());
10848            for c in &t.schema.columns {
10849                write_str(&mut out, &c.name);
10850                write_data_type(&mut out, c.ty);
10851                out.push(u8::from(c.nullable));
10852                match &c.default {
10853                    None => out.push(0),
10854                    Some(v) => {
10855                        out.push(1);
10856                        write_value(&mut out, v);
10857                    }
10858                }
10859                out.push(u8::from(c.auto_increment));
10860            }
10861            write_u32(&mut out, u32::try_from(t.rows.len()).unwrap());
10862            for row in &t.rows {
10863                out.extend_from_slice(&encode_row_body_dense(row, &t.schema));
10864            }
10865            write_u16(&mut out, u16::try_from(t.indices.len()).unwrap());
10866            for idx in &t.indices {
10867                write_str(&mut out, &idx.name);
10868                write_u16(&mut out, u16::try_from(idx.column_position).unwrap());
10869                match &idx.kind {
10870                    // v8 BTree wrote only the kind tag; entries
10871                    // rebuild from rows on read.
10872                    IndexKind::BTree(_) => out.push(0),
10873                    IndexKind::Nsw(g) => {
10874                        out.push(1);
10875                        write_u16(&mut out, u16::try_from(g.m).unwrap());
10876                        write_nsw_graph(&mut out, g);
10877                    }
10878                    // v8 had no BRIN / GIN; this test-only writer
10879                    // can't serialise either into the legacy format.
10880                    IndexKind::Brin { .. } => panic!(
10881                        "v8 catalog writer cannot serialise BRIN — \
10882                         tests with BRIN indices must use the current writer"
10883                    ),
10884                    IndexKind::Gin(_) => panic!(
10885                        "v8 catalog writer cannot serialise GIN — \
10886                         tests with GIN indices must use the current writer"
10887                    ),
10888                    IndexKind::GinTrgm(_) => panic!(
10889                        "v8 catalog writer cannot serialise trigram-GIN — \
10890                         tests with trgm indices must use the current writer"
10891                    ),
10892                    IndexKind::GinFulltext(_) => panic!(
10893                        "v8 catalog writer cannot serialise fulltext-GIN — \
10894                         tests with FULLTEXT KEY must use the current writer"
10895                    ),
10896                }
10897            }
10898        }
10899        out
10900    }
10901
10902    /// Build a catalog that carries both hot and cold locators on a
10903    /// `BTree` index, snapshot it through `serialize`, then deserialise
10904    /// and confirm every Cold locator round-trips byte-identical and
10905    /// `lookup_by_pk` resolves through the rebuilt cold-segment
10906    /// registry.
10907    #[test]
10908    fn v9_catalog_round_trip_preserves_cold_locators() {
10909        let mut cat = Catalog::new();
10910        cat.create_table(bigint_pk_users_schema()).unwrap();
10911        let t = cat.get_mut("users").unwrap();
10912        // Hot rows: 1, 2
10913        for (id, name) in [(1i64, "alice"), (2, "bob")] {
10914            t.insert(make_user_row(id, name)).unwrap();
10915        }
10916        t.add_index("by_id".into(), "id").unwrap();
10917        let schema = t.schema.clone();
10918
10919        // Cold rows: 100, 200, 300 — sit in a single segment.
10920        let cold_rows: Vec<(i64, &str)> = vec![(100, "ivy"), (200, "joe"), (300, "kim")];
10921        let seg_rows: Vec<(u64, Vec<u8>)> = cold_rows
10922            .iter()
10923            .map(|(id, name)| {
10924                let row = make_user_row(*id, name);
10925                ((*id).cast_unsigned(), encode_row_body_dense(&row, &schema))
10926            })
10927            .collect();
10928        let (seg_bytes, _) =
10929            encode_segment(seg_rows.into_iter(), 0.01, SEGMENT_PAGE_BYTES).unwrap();
10930        let seg_id = cat.load_segment_bytes(seg_bytes.clone()).unwrap();
10931        let pairs: Vec<(IndexKey, RowLocator)> = cold_rows
10932            .iter()
10933            .map(|(id, _)| {
10934                (
10935                    IndexKey::Int(*id),
10936                    RowLocator::Cold {
10937                        segment_id: seg_id,
10938                        page_offset: 0,
10939                    },
10940                )
10941            })
10942            .collect();
10943        cat.get_mut("users")
10944            .unwrap()
10945            .register_cold_locators("by_id", pairs)
10946            .unwrap();
10947
10948        // Snapshot + restore via the v9 codec.
10949        let bytes = cat.serialize();
10950        assert_eq!(bytes[FILE_MAGIC.len()], FILE_VERSION);
10951        let mut restored = Catalog::deserialize(&bytes).expect("v9 round-trip parses");
10952
10953        // Catalog::serialize does not yet emit cold segment file
10954        // bytes (v5.3 manifest is the future home for that). For
10955        // this v9 test the caller side-loads the segment again so
10956        // lookup_by_pk can resolve the Cold locator. The point of
10957        // this assertion is that the locator metadata survived the
10958        // catalog round-trip.
10959        let restored_seg_id = restored.load_segment_bytes(seg_bytes).unwrap();
10960        assert_eq!(restored_seg_id, seg_id);
10961
10962        let idx = restored.get("users").unwrap().index_on(0).unwrap();
10963        // Hot locators round-trip.
10964        assert_eq!(idx.lookup_eq(&IndexKey::Int(1)), &[RowLocator::Hot(0)]);
10965        assert_eq!(idx.lookup_eq(&IndexKey::Int(2)), &[RowLocator::Hot(1)]);
10966        // Cold locators round-trip byte-identical.
10967        for (id, _) in &cold_rows {
10968            assert_eq!(
10969                idx.lookup_eq(&IndexKey::Int(*id)),
10970                &[RowLocator::Cold {
10971                    segment_id: seg_id,
10972                    page_offset: 0,
10973                }]
10974            );
10975        }
10976        // End-to-end: lookup_by_pk resolves both tiers.
10977        assert_eq!(
10978            restored
10979                .lookup_by_pk("users", "by_id", &IndexKey::Int(2))
10980                .unwrap(),
10981            make_user_row(2, "bob")
10982        );
10983        for (id, name) in &cold_rows {
10984            assert_eq!(
10985                restored
10986                    .lookup_by_pk("users", "by_id", &IndexKey::Int(*id))
10987                    .unwrap(),
10988                make_user_row(*id, name)
10989            );
10990        }
10991    }
10992
10993    // --- v5.2.1 hot tier byte tracking ---------------------------
10994
10995    /// `row_body_encoded_len` is the perf-critical fast path; pin it
10996    /// against `encode_row_body_dense(...).len()` for every
10997    /// representative cell type so an encoder change can't silently
10998    /// desync the counter.
10999    #[test]
11000    fn row_body_encoded_len_matches_actual_encode_for_all_types() {
11001        let schema = TableSchema::new(
11002            "wide",
11003            vec![
11004                ColumnSchema::new("a", DataType::SmallInt, true),
11005                ColumnSchema::new("b", DataType::Int, false),
11006                ColumnSchema::new("c", DataType::BigInt, false),
11007                ColumnSchema::new("d", DataType::Float, false),
11008                ColumnSchema::new("e", DataType::Bool, false),
11009                ColumnSchema::new("f", DataType::Text, false),
11010                ColumnSchema::new(
11011                    "g",
11012                    DataType::Vector {
11013                        dim: 3,
11014                        encoding: VecEncoding::F32,
11015                    },
11016                    false,
11017                ),
11018                ColumnSchema::new(
11019                    "h",
11020                    DataType::Numeric {
11021                        precision: 18,
11022                        scale: 2,
11023                    },
11024                    false,
11025                ),
11026                ColumnSchema::new("i", DataType::Date, false),
11027                ColumnSchema::new("j", DataType::Timestamp, false),
11028            ],
11029        );
11030        let cases: &[Row] = &[
11031            Row::new(vec![
11032                Value::SmallInt(7),
11033                Value::Int(42),
11034                Value::BigInt(1_000_000),
11035                Value::Float(1.5),
11036                Value::Bool(true),
11037                Value::Text("hello".into()),
11038                Value::Vector(vec![1.0, 2.0, 3.0]),
11039                Value::Numeric {
11040                    scaled: 12345,
11041                    scale: 2,
11042                },
11043                Value::Date(20_000),
11044                Value::Timestamp(1_700_000_000_000_000),
11045            ]),
11046            // NULL in the bitmap, varied text length.
11047            Row::new(vec![
11048                Value::Null,
11049                Value::Int(0),
11050                Value::BigInt(0),
11051                Value::Float(0.0),
11052                Value::Bool(false),
11053                Value::Text(String::new()),
11054                Value::Vector(vec![]),
11055                Value::Numeric {
11056                    scaled: 0,
11057                    scale: 2,
11058                },
11059                Value::Date(0),
11060                Value::Timestamp(0),
11061            ]),
11062            Row::new(vec![
11063                Value::SmallInt(-1),
11064                Value::Int(-1),
11065                Value::BigInt(-1),
11066                Value::Float(-0.5),
11067                Value::Bool(true),
11068                Value::Text("a much longer payload here".into()),
11069                Value::Vector(vec![0.1, 0.2, 0.3]),
11070                Value::Numeric {
11071                    scaled: -999_999_999,
11072                    scale: 2,
11073                },
11074                Value::Date(-1),
11075                Value::Timestamp(-1),
11076            ]),
11077        ];
11078        for row in cases {
11079            let actual = encode_row_body_dense(row, &schema).len();
11080            let fast = row_body_encoded_len(row, &schema);
11081            assert_eq!(actual, fast, "row {row:?}");
11082        }
11083    }
11084
11085    #[test]
11086    fn hot_bytes_grows_on_insert_and_matches_encoded_sum() {
11087        let mut cat = Catalog::new();
11088        cat.create_table(bigint_pk_users_schema()).unwrap();
11089        let t = cat.get_mut("users").unwrap();
11090        assert_eq!(t.hot_bytes(), 0);
11091        let mut expected: u64 = 0;
11092        for (id, name) in [(1i64, "alice"), (2, "bob"), (3, "carol")] {
11093            let row = make_user_row(id, name);
11094            expected += encode_row_body_dense(&row, &t.schema).len() as u64;
11095            t.insert(row).unwrap();
11096        }
11097        assert_eq!(t.hot_bytes(), expected);
11098        assert_eq!(cat.hot_tier_bytes(), expected);
11099    }
11100
11101    #[test]
11102    fn hot_bytes_shrinks_on_delete() {
11103        let mut cat = Catalog::new();
11104        cat.create_table(bigint_pk_users_schema()).unwrap();
11105        let t = cat.get_mut("users").unwrap();
11106        for (id, name) in [(1i64, "alice"), (2, "bob"), (3, "carol")] {
11107            t.insert(make_user_row(id, name)).unwrap();
11108        }
11109        let before = t.hot_bytes();
11110        // Delete row at position 1 (bob).
11111        let bob_row = make_user_row(2, "bob");
11112        let bob_bytes = encode_row_body_dense(&bob_row, &t.schema).len() as u64;
11113        let removed = t.delete_rows(&[1]);
11114        assert_eq!(removed, 1);
11115        assert_eq!(t.hot_bytes(), before - bob_bytes);
11116    }
11117
11118    #[test]
11119    fn hot_bytes_diffs_on_update_for_variable_width_columns() {
11120        let mut cat = Catalog::new();
11121        cat.create_table(bigint_pk_users_schema()).unwrap();
11122        let t = cat.get_mut("users").unwrap();
11123        t.insert(make_user_row(1, "alice")).unwrap();
11124        let after_insert = t.hot_bytes();
11125        // Update with a longer text payload — bytes must grow exactly
11126        // by the text-length delta.
11127        let new_row = make_user_row(1, "alice-the-longer-name");
11128        let old_len = encode_row_body_dense(&make_user_row(1, "alice"), &t.schema).len() as u64;
11129        let new_len = encode_row_body_dense(&new_row, &t.schema).len() as u64;
11130        t.update_row(0, new_row.values).unwrap();
11131        assert_eq!(t.hot_bytes(), after_insert - old_len + new_len);
11132        assert!(t.hot_bytes() > after_insert, "longer text grew the counter");
11133    }
11134
11135    #[test]
11136    fn hot_bytes_round_trips_through_serialize_deserialize() {
11137        let mut cat = Catalog::new();
11138        cat.create_table(bigint_pk_users_schema()).unwrap();
11139        let t = cat.get_mut("users").unwrap();
11140        for i in 0..10 {
11141            t.insert(make_user_row(i, &alloc::format!("name-{i}")))
11142                .unwrap();
11143        }
11144        let pre = cat.hot_tier_bytes();
11145        let restored = Catalog::deserialize(&cat.serialize()).unwrap();
11146        assert_eq!(restored.hot_tier_bytes(), pre);
11147        assert_eq!(restored.get("users").unwrap().hot_bytes(), pre);
11148    }
11149
11150    // --- v5.2.2 freezer atomic swap -------------------------------
11151
11152    /// Happy path: freeze the first half of a populated hot tier,
11153    /// confirm row counts shift, `hot_bytes` shrinks, and every frozen
11154    /// PK still resolves via `lookup_by_pk` (now through the cold
11155    /// segment registered by the freeze).
11156    #[test]
11157    fn freeze_oldest_to_cold_moves_rows_and_keeps_lookups_working() {
11158        let mut cat = Catalog::new();
11159        cat.create_table(bigint_pk_users_schema()).unwrap();
11160        let t = cat.get_mut("users").unwrap();
11161        for id in 0..10i64 {
11162            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11163                .unwrap();
11164        }
11165        t.add_index("by_id".into(), "id").unwrap();
11166        let total_bytes_before = t.hot_bytes();
11167
11168        let report = cat
11169            .freeze_oldest_to_cold("users", "by_id", 6)
11170            .expect("freeze succeeds");
11171        assert_eq!(report.frozen_rows, 6);
11172        assert_eq!(report.segment_id, 0);
11173        assert!(report.bytes_freed > 0);
11174        assert!(!report.segment_bytes.is_empty());
11175
11176        let t = cat.get("users").unwrap();
11177        assert_eq!(t.row_count(), 4, "4 hot rows remain (10 - 6 frozen)");
11178        assert_eq!(cat.cold_segment_count(), 1);
11179        // Hot bytes shrank by exactly the freed amount.
11180        assert_eq!(
11181            t.hot_bytes(),
11182            total_bytes_before - report.bytes_freed,
11183            "hot_bytes accounting matches FreezeReport"
11184        );
11185
11186        // Every original PK still resolves — frozen ones via the
11187        // cold segment, kept ones via the (renumbered) hot tier.
11188        for id in 0..10i64 {
11189            let got = cat
11190                .lookup_by_pk("users", "by_id", &IndexKey::Int(id))
11191                .unwrap_or_else(|| panic!("PK {id} disappeared after freeze"));
11192            assert_eq!(got, make_user_row(id, &alloc::format!("u-{id}")));
11193        }
11194    }
11195
11196    /// Two successive freezes on the same index must preserve the
11197    /// first batch's cold locators when the second freeze runs.
11198    /// Catches the `rebuild_indices` wipe-Cold-on-delete bug that
11199    /// `collect_cold_locators` / re-register guards against.
11200    #[test]
11201    fn freeze_twice_preserves_prior_cold_locators() {
11202        let mut cat = Catalog::new();
11203        cat.create_table(bigint_pk_users_schema()).unwrap();
11204        let t = cat.get_mut("users").unwrap();
11205        for id in 0..12i64 {
11206            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11207                .unwrap();
11208        }
11209        t.add_index("by_id".into(), "id").unwrap();
11210
11211        cat.freeze_oldest_to_cold("users", "by_id", 4)
11212            .expect("first freeze ok");
11213        cat.freeze_oldest_to_cold("users", "by_id", 4)
11214            .expect("second freeze ok");
11215
11216        assert_eq!(cat.get("users").unwrap().row_count(), 4);
11217        assert_eq!(cat.cold_segment_count(), 2);
11218        // All 12 PKs still resolve — first 4 via segment 0,
11219        // next 4 via segment 1, last 4 still hot.
11220        for id in 0..12i64 {
11221            let got = cat
11222                .lookup_by_pk("users", "by_id", &IndexKey::Int(id))
11223                .unwrap_or_else(|| panic!("PK {id} not resolvable after two freezes"));
11224            assert_eq!(got, make_user_row(id, &alloc::format!("u-{id}")));
11225        }
11226    }
11227
11228    /// Validation guard tests. Each must return `Err` and **not
11229    /// mutate the catalog** — the API is all-or-nothing.
11230    #[test]
11231    fn freeze_oldest_to_cold_rejects_invalid_input() {
11232        let mut cat = Catalog::new();
11233        cat.create_table(bigint_pk_users_schema()).unwrap();
11234        let t = cat.get_mut("users").unwrap();
11235        for id in 0..3i64 {
11236            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11237                .unwrap();
11238        }
11239        t.add_index("by_id".into(), "id").unwrap();
11240
11241        // max_rows == 0
11242        assert!(matches!(
11243            cat.freeze_oldest_to_cold("users", "by_id", 0),
11244            Err(StorageError::Corrupt(_))
11245        ));
11246        // table missing
11247        assert!(matches!(
11248            cat.freeze_oldest_to_cold("missing", "by_id", 1),
11249            Err(StorageError::Corrupt(_))
11250        ));
11251        // index missing
11252        assert!(matches!(
11253            cat.freeze_oldest_to_cold("users", "no_such_index", 1),
11254            Err(StorageError::Corrupt(_))
11255        ));
11256        // max_rows > row_count
11257        assert!(matches!(
11258            cat.freeze_oldest_to_cold("users", "by_id", 999),
11259            Err(StorageError::Corrupt(_))
11260        ));
11261        // Catalog still untouched.
11262        assert_eq!(cat.get("users").unwrap().row_count(), 3);
11263        assert_eq!(cat.cold_segment_count(), 0);
11264    }
11265
11266    /// Freeze with a non-integer PK column must surface a clear
11267    /// error (Text PKs land in v5.5+).
11268    #[test]
11269    fn freeze_oldest_to_cold_rejects_non_integer_pk() {
11270        let mut cat = Catalog::new();
11271        cat.create_table(TableSchema::new(
11272            "by_name",
11273            vec![
11274                ColumnSchema::new("name", DataType::Text, false),
11275                ColumnSchema::new("payload", DataType::BigInt, false),
11276            ],
11277        ))
11278        .unwrap();
11279        let t = cat.get_mut("by_name").unwrap();
11280        t.insert(Row::new(vec![Value::Text("a".into()), Value::BigInt(1)]))
11281            .unwrap();
11282        t.add_index("by_n".into(), "name").unwrap();
11283        let err = cat
11284            .freeze_oldest_to_cold("by_name", "by_n", 1)
11285            .expect_err("non-integer PK rejected");
11286        match err {
11287            StorageError::Corrupt(s) => assert!(
11288                s.contains("non-integer"),
11289                "error message names the constraint: {s}"
11290            ),
11291            other => panic!("expected Corrupt, got {other:?}"),
11292        }
11293        // Catalog untouched.
11294        assert_eq!(cat.get("by_name").unwrap().row_count(), 1);
11295        assert_eq!(cat.cold_segment_count(), 0);
11296    }
11297
11298    /// Hot-tier rows after the freeze must keep their secondary-
11299    /// index lookups working — `delete_rows` shifts positions, and
11300    /// `rebuild_indices` must regenerate Hot locators at the new
11301    /// indices.
11302    #[test]
11303    fn freeze_keeps_remaining_hot_rows_addressable_via_secondary_index() {
11304        let mut cat = Catalog::new();
11305        cat.create_table(bigint_pk_users_schema()).unwrap();
11306        let t = cat.get_mut("users").unwrap();
11307        for id in 0..6i64 {
11308            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11309                .unwrap();
11310        }
11311        t.add_index("by_id".into(), "id").unwrap();
11312        t.add_index("by_name".into(), "name").unwrap();
11313
11314        cat.freeze_oldest_to_cold("users", "by_id", 3).unwrap();
11315
11316        // Remaining hot rows: id 3, 4, 5. They moved to positions
11317        // 0, 1, 2 inside `self.rows`; the `by_name` index must now
11318        // resolve them via fresh Hot locators.
11319        let idx = cat.get("users").unwrap().index_on(1).unwrap();
11320        let got = idx.lookup_eq(&IndexKey::Text("u-4".into()));
11321        assert_eq!(got.len(), 1);
11322        assert!(got[0].is_hot(), "kept-hot rows still surface as Hot");
11323        match got[0] {
11324            RowLocator::Hot(i) => {
11325                // The 4th-inserted row was at position 4; after
11326                // dropping positions 0..3 it sits at position 1.
11327                assert_eq!(i, 1);
11328            }
11329            RowLocator::Cold { .. } => unreachable!(),
11330        }
11331    }
11332
11333    // --- v5.2.3 promote-on-write primitives ----------------------
11334
11335    /// Build a populated catalog with the first N rows frozen, then
11336    /// run `promote_cold_row` and verify the row crossed tiers
11337    /// correctly: the cold locator is retired, a fresh Hot locator
11338    /// appears, `lookup_by_pk` returns the row from the hot tier, and
11339    /// `hot_bytes` grew by the row's encoded byte length.
11340    #[test]
11341    fn promote_cold_row_pulls_frozen_row_back_to_hot_tier() {
11342        let mut cat = Catalog::new();
11343        cat.create_table(bigint_pk_users_schema()).unwrap();
11344        let t = cat.get_mut("users").unwrap();
11345        for id in 0..6i64 {
11346            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11347                .unwrap();
11348        }
11349        t.add_index("by_id".into(), "id").unwrap();
11350        // Freeze first 4 rows (ids 0..3). After: hot rows = 4, 5 at
11351        // positions 0, 1; cold locators for keys 0..3.
11352        cat.freeze_oldest_to_cold("users", "by_id", 4).unwrap();
11353        let hot_bytes_before = cat.get("users").unwrap().hot_bytes();
11354
11355        // Promote PK=2 — it lives in segment 0 as a cold row.
11356        let new_idx = cat
11357            .promote_cold_row("users", "by_id", &IndexKey::Int(2))
11358            .expect("promote ok")
11359            .expect("PK 2 was cold");
11360        assert_eq!(
11361            new_idx, 2,
11362            "promoted row appended after the 2 surviving hot rows"
11363        );
11364
11365        let t = cat.get("users").unwrap();
11366        assert_eq!(t.row_count(), 3, "hot tier grew from 2 to 3");
11367        // Hot-bytes climbed by exactly one row's encoded length.
11368        let row = make_user_row(2, "u-2");
11369        let row_len = encode_row_body_dense(&row, &t.schema).len() as u64;
11370        assert_eq!(t.hot_bytes(), hot_bytes_before + row_len);
11371
11372        // The index now reports a Hot locator (the freshly inserted
11373        // row) — no Cold locator left for PK 2.
11374        let entries = t.index_on(0).unwrap().lookup_eq(&IndexKey::Int(2));
11375        assert_eq!(entries.len(), 1, "exactly one locator per key");
11376        assert!(entries[0].is_hot(), "promote retired the Cold locator");
11377        // End-to-end: lookup_by_pk still returns the row body.
11378        assert_eq!(
11379            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(2))
11380                .unwrap(),
11381            row
11382        );
11383        // Other cold rows untouched — still resolvable through the
11384        // segment.
11385        assert_eq!(
11386            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(0))
11387                .unwrap(),
11388            make_user_row(0, "u-0")
11389        );
11390    }
11391
11392    /// `promote_cold_row` on a key that's already hot (or absent)
11393    /// returns `Ok(None)` — not an error. The caller falls back to
11394    /// the hot-only update/delete path.
11395    #[test]
11396    fn promote_cold_row_returns_none_when_key_is_not_cold() {
11397        let mut cat = Catalog::new();
11398        cat.create_table(bigint_pk_users_schema()).unwrap();
11399        let t = cat.get_mut("users").unwrap();
11400        t.insert(make_user_row(7, "alice")).unwrap();
11401        t.add_index("by_id".into(), "id").unwrap();
11402
11403        // Hot-only key.
11404        assert!(
11405            cat.promote_cold_row("users", "by_id", &IndexKey::Int(7))
11406                .unwrap()
11407                .is_none()
11408        );
11409        // Absent key.
11410        assert!(
11411            cat.promote_cold_row("users", "by_id", &IndexKey::Int(99))
11412                .unwrap()
11413                .is_none()
11414        );
11415        // Catalog untouched on both no-op paths.
11416        assert_eq!(cat.get("users").unwrap().row_count(), 1);
11417        assert_eq!(cat.cold_segment_count(), 0);
11418    }
11419
11420    /// `shadow_cold_row` removes every Cold locator for a key on a
11421    /// `BTree` index. After the shadow, `lookup_by_pk` for that key
11422    /// returns None (the row data still sits in the segment file,
11423    /// but it's now garbage; compaction will reclaim it later).
11424    #[test]
11425    fn shadow_cold_row_removes_cold_locators_and_drops_lookup() {
11426        let mut cat = Catalog::new();
11427        cat.create_table(bigint_pk_users_schema()).unwrap();
11428        let t = cat.get_mut("users").unwrap();
11429        for id in 0..5i64 {
11430            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11431                .unwrap();
11432        }
11433        t.add_index("by_id".into(), "id").unwrap();
11434        cat.freeze_oldest_to_cold("users", "by_id", 3).unwrap();
11435
11436        // Shadow PK=1 — pre-shadow lookup hits the cold tier.
11437        assert!(
11438            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(1))
11439                .is_some(),
11440            "frozen PK resolves before shadow"
11441        );
11442        let removed = cat
11443            .shadow_cold_row("users", "by_id", &IndexKey::Int(1))
11444            .unwrap();
11445        assert_eq!(removed, 1, "exactly one cold locator retired");
11446
11447        // Post-shadow: lookup misses, even though the row still
11448        // exists in segment 0.
11449        assert!(
11450            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(1))
11451                .is_none(),
11452            "shadowed key no longer resolves"
11453        );
11454        // Other cold keys still resolve.
11455        assert_eq!(
11456            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(0))
11457                .unwrap(),
11458            make_user_row(0, "u-0")
11459        );
11460        assert_eq!(
11461            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(2))
11462                .unwrap(),
11463            make_user_row(2, "u-2")
11464        );
11465    }
11466
11467    /// `shadow_cold_row` returns 0 (not Err) for keys with only Hot
11468    /// entries or no entries — the engine's DELETE path uses this
11469    /// signal to decide whether the cold-tier shadow path consumed
11470    /// the work.
11471    #[test]
11472    fn shadow_cold_row_returns_zero_when_key_is_not_cold() {
11473        let mut cat = Catalog::new();
11474        cat.create_table(bigint_pk_users_schema()).unwrap();
11475        let t = cat.get_mut("users").unwrap();
11476        t.insert(make_user_row(1, "alice")).unwrap();
11477        t.add_index("by_id".into(), "id").unwrap();
11478        assert_eq!(
11479            cat.shadow_cold_row("users", "by_id", &IndexKey::Int(1))
11480                .unwrap(),
11481            0,
11482            "hot-only key drops no cold locators"
11483        );
11484        assert_eq!(
11485            cat.shadow_cold_row("users", "by_id", &IndexKey::Int(999))
11486                .unwrap(),
11487            0,
11488            "absent key drops no cold locators"
11489        );
11490        assert_eq!(cat.get("users").unwrap().row_count(), 1);
11491    }
11492
11493    /// Validation guards on both promote / shadow primitives.
11494    #[test]
11495    fn promote_and_shadow_reject_invalid_inputs() {
11496        let mut cat = Catalog::new();
11497        cat.create_table(bigint_pk_users_schema()).unwrap();
11498        let t = cat.get_mut("users").unwrap();
11499        t.insert(make_user_row(1, "alice")).unwrap();
11500        t.add_index("by_id".into(), "id").unwrap();
11501
11502        // Missing table.
11503        assert!(matches!(
11504            cat.promote_cold_row("missing", "by_id", &IndexKey::Int(1)),
11505            Err(StorageError::Corrupt(_))
11506        ));
11507        assert!(matches!(
11508            cat.shadow_cold_row("missing", "by_id", &IndexKey::Int(1)),
11509            Err(StorageError::Corrupt(_))
11510        ));
11511        // Missing index.
11512        assert!(matches!(
11513            cat.promote_cold_row("users", "no_such_index", &IndexKey::Int(1)),
11514            Err(StorageError::Corrupt(_))
11515        ));
11516        assert!(matches!(
11517            cat.shadow_cold_row("users", "no_such_index", &IndexKey::Int(1)),
11518            Err(StorageError::Corrupt(_))
11519        ));
11520    }
11521
11522    // --- v6.7.4 parallel-freezer slice/commit API -----------------
11523
11524    /// One slice covering the entire freeze produces the same
11525    /// catalog state as the single-threaded `freeze_oldest_to_cold`
11526    /// — segment id, frozen row count, hot byte delta, and every
11527    /// post-freeze PK lookup match exactly.
11528    #[test]
11529    fn commit_freeze_slices_single_slice_matches_freeze_oldest() {
11530        let mut a = Catalog::new();
11531        let mut b = Catalog::new();
11532        for cat in [&mut a, &mut b] {
11533            cat.create_table(bigint_pk_users_schema()).unwrap();
11534            let t = cat.get_mut("users").unwrap();
11535            for id in 0..10i64 {
11536                t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11537                    .unwrap();
11538            }
11539            t.add_index("by_id".into(), "id").unwrap();
11540        }
11541        let single = a.freeze_oldest_to_cold("users", "by_id", 6).unwrap();
11542        let slice = b
11543            .prepare_freeze_slice("users", "by_id", 0..6)
11544            .expect("prepare");
11545        let parallel = b
11546            .commit_freeze_slices("users", "by_id", alloc::vec![slice])
11547            .expect("commit");
11548        assert_eq!(single.segment_id, parallel.segment_id);
11549        assert_eq!(single.frozen_rows, parallel.frozen_rows);
11550        assert_eq!(single.bytes_freed, parallel.bytes_freed);
11551        assert_eq!(single.segment_bytes, parallel.segment_bytes);
11552        // Same post-freeze lookup behaviour on both catalogs.
11553        for id in 0..10i64 {
11554            assert_eq!(
11555                a.lookup_by_pk("users", "by_id", &IndexKey::Int(id)),
11556                b.lookup_by_pk("users", "by_id", &IndexKey::Int(id)),
11557                "PK {id} differs after single vs slice freeze"
11558            );
11559        }
11560    }
11561
11562    /// Two slices covering disjoint halves of the freeze produce
11563    /// the same merged segment as one slice covering the full
11564    /// range. The k-way merge preserves PK ordering even when
11565    /// slice halves alternate.
11566    #[test]
11567    fn commit_freeze_slices_two_slices_match_single_slice() {
11568        let mut a = Catalog::new();
11569        let mut b = Catalog::new();
11570        for cat in [&mut a, &mut b] {
11571            cat.create_table(bigint_pk_users_schema()).unwrap();
11572            let t = cat.get_mut("users").unwrap();
11573            // Random-ish PKs so the per-slice sort actually has
11574            // work to do (and slice halves carry interleaved keys).
11575            for id in [3, 7, 1, 9, 5, 0, 8, 4, 2, 6].iter().copied() {
11576                t.insert(make_user_row(id as i64, &alloc::format!("u-{id}")))
11577                    .unwrap();
11578            }
11579            t.add_index("by_id".into(), "id").unwrap();
11580        }
11581        let single = a
11582            .prepare_freeze_slice("users", "by_id", 0..8)
11583            .expect("prepare");
11584        let one = a
11585            .commit_freeze_slices("users", "by_id", alloc::vec![single])
11586            .expect("commit one");
11587        let s1 = b
11588            .prepare_freeze_slice("users", "by_id", 0..4)
11589            .expect("prepare s1");
11590        let s2 = b
11591            .prepare_freeze_slice("users", "by_id", 4..8)
11592            .expect("prepare s2");
11593        let two = b
11594            .commit_freeze_slices("users", "by_id", alloc::vec![s1, s2])
11595            .expect("commit two");
11596        assert_eq!(one.segment_bytes, two.segment_bytes);
11597        assert_eq!(one.frozen_rows, two.frozen_rows);
11598        // Every PK that survived freeze (hot or cold) resolves on
11599        // both catalogs.
11600        for id in 0..10i64 {
11601            assert_eq!(
11602                a.lookup_by_pk("users", "by_id", &IndexKey::Int(id)),
11603                b.lookup_by_pk("users", "by_id", &IndexKey::Int(id)),
11604                "PK {id} differs after one-slice vs two-slice freeze"
11605            );
11606        }
11607    }
11608
11609    /// Gap between slices → error before any mutation lands.
11610    #[test]
11611    fn commit_freeze_slices_rejects_gap() {
11612        let mut cat = Catalog::new();
11613        cat.create_table(bigint_pk_users_schema()).unwrap();
11614        let t = cat.get_mut("users").unwrap();
11615        for id in 0..6i64 {
11616            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11617                .unwrap();
11618        }
11619        t.add_index("by_id".into(), "id").unwrap();
11620        let s1 = cat.prepare_freeze_slice("users", "by_id", 0..2).unwrap();
11621        let s2 = cat.prepare_freeze_slice("users", "by_id", 3..5).unwrap();
11622        assert!(matches!(
11623            cat.commit_freeze_slices("users", "by_id", alloc::vec![s1, s2]),
11624            Err(StorageError::Corrupt(_))
11625        ));
11626        // Catalog untouched.
11627        assert_eq!(cat.cold_segment_count(), 0);
11628        assert_eq!(cat.get("users").unwrap().row_count(), 6);
11629    }
11630
11631    /// Empty slice list → no-op success, catalog untouched.
11632    #[test]
11633    fn commit_freeze_slices_empty_is_noop() {
11634        let mut cat = Catalog::new();
11635        cat.create_table(bigint_pk_users_schema()).unwrap();
11636        let t = cat.get_mut("users").unwrap();
11637        for id in 0..3i64 {
11638            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11639                .unwrap();
11640        }
11641        t.add_index("by_id".into(), "id").unwrap();
11642        let report = cat
11643            .commit_freeze_slices("users", "by_id", Vec::new())
11644            .unwrap();
11645        assert_eq!(report.frozen_rows, 0);
11646        assert_eq!(cat.cold_segment_count(), 0);
11647        assert_eq!(cat.get("users").unwrap().row_count(), 3);
11648    }
11649
11650    // --- v6.7.3 cold-segment compaction ---------------------------
11651
11652    /// Two small cold segments merge into a single larger one. The
11653    /// merged segment carries every cold-resident row; the source
11654    /// slots are tombstoned; every PK still resolves through the
11655    /// new merged segment via `lookup_by_pk`.
11656    #[test]
11657    fn compact_merges_small_segments_storage_unit() {
11658        let mut cat = Catalog::new();
11659        cat.create_table(bigint_pk_users_schema()).unwrap();
11660        let t = cat.get_mut("users").unwrap();
11661        for id in 0..8i64 {
11662            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11663                .unwrap();
11664        }
11665        t.add_index("by_id".into(), "id").unwrap();
11666        // Two freezes of 3 rows each → two small cold segments.
11667        cat.freeze_oldest_to_cold("users", "by_id", 3).unwrap();
11668        cat.freeze_oldest_to_cold("users", "by_id", 3).unwrap();
11669        assert_eq!(cat.cold_segment_count(), 2);
11670        assert_eq!(cat.cold_segment_slot_count(), 2);
11671
11672        // Pick a threshold larger than either segment's size so
11673        // both qualify.
11674        let max_seg_bytes = cat
11675            .cold_segment_ids_global()
11676            .iter()
11677            .map(|id| cat.cold_segment(*id).unwrap().bytes().len() as u64)
11678            .max()
11679            .unwrap();
11680        let target = max_seg_bytes + 1;
11681
11682        let report = cat
11683            .compact_cold_segments("users", "by_id", target)
11684            .expect("compact succeeds");
11685        assert_eq!(report.sources.len(), 2);
11686        let merged_id = report.merged_segment_id.expect("merge happened");
11687        assert_eq!(report.merged_rows, 6);
11688        assert_eq!(report.deleted_rows_pruned, 0);
11689        assert!(!report.merged_segment_bytes.is_empty());
11690
11691        // Active count drops back to 1; slot count grew to 3
11692        // (2 sources tombstoned + 1 merged appended).
11693        assert_eq!(cat.cold_segment_count(), 1);
11694        assert_eq!(cat.cold_segment_slot_count(), 3);
11695        assert_eq!(cat.cold_segment_ids_global(), alloc::vec![merged_id]);
11696
11697        // Every PK that was frozen still resolves (via the merged
11698        // segment); the 2 hot rows still resolve too.
11699        for id in 0..8i64 {
11700            let got = cat
11701                .lookup_by_pk("users", "by_id", &IndexKey::Int(id))
11702                .unwrap_or_else(|| panic!("PK {id} lost after compaction"));
11703            assert_eq!(got, make_user_row(id, &alloc::format!("u-{id}")));
11704        }
11705    }
11706
11707    /// DELETE'd-but-frozen rows are dropped during the merge. Set
11708    /// up two small segments, then shadow one row in each; the
11709    /// merged segment must NOT carry the shadowed rows.
11710    #[test]
11711    fn compact_drops_shadowed_cold_rows() {
11712        let mut cat = Catalog::new();
11713        cat.create_table(bigint_pk_users_schema()).unwrap();
11714        let t = cat.get_mut("users").unwrap();
11715        for id in 0..6i64 {
11716            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11717                .unwrap();
11718        }
11719        t.add_index("by_id".into(), "id").unwrap();
11720        cat.freeze_oldest_to_cold("users", "by_id", 3).unwrap();
11721        cat.freeze_oldest_to_cold("users", "by_id", 3).unwrap();
11722        // Shadow PK 1 (in seg 0) + PK 4 (in seg 1).
11723        assert_eq!(
11724            cat.shadow_cold_row("users", "by_id", &IndexKey::Int(1))
11725                .unwrap(),
11726            1
11727        );
11728        assert_eq!(
11729            cat.shadow_cold_row("users", "by_id", &IndexKey::Int(4))
11730                .unwrap(),
11731            1
11732        );
11733
11734        let max_seg_bytes = cat
11735            .cold_segment_ids_global()
11736            .iter()
11737            .map(|id| cat.cold_segment(*id).unwrap().bytes().len() as u64)
11738            .max()
11739            .unwrap();
11740        let report = cat
11741            .compact_cold_segments("users", "by_id", max_seg_bytes + 1)
11742            .expect("compact succeeds");
11743        assert_eq!(report.sources.len(), 2);
11744        assert_eq!(report.merged_rows, 4, "6 frozen − 2 shadowed = 4 live");
11745        assert_eq!(report.deleted_rows_pruned, 2);
11746
11747        // PK 1 and 4 stay invisible after compact.
11748        for shadowed in [1i64, 4i64] {
11749            assert!(
11750                cat.lookup_by_pk("users", "by_id", &IndexKey::Int(shadowed))
11751                    .is_none(),
11752                "shadowed PK {shadowed} must remain invisible after compact"
11753            );
11754        }
11755        // The other 4 frozen rows resolve.
11756        for live in [0i64, 2, 3, 5] {
11757            cat.lookup_by_pk("users", "by_id", &IndexKey::Int(live))
11758                .unwrap_or_else(|| panic!("live PK {live} lost after compact"));
11759        }
11760    }
11761
11762    /// No-op cases: 0 or 1 candidate segment under the threshold
11763    /// leaves the catalog untouched.
11764    #[test]
11765    fn compact_is_noop_below_two_candidates() {
11766        let mut cat = Catalog::new();
11767        cat.create_table(bigint_pk_users_schema()).unwrap();
11768        let t = cat.get_mut("users").unwrap();
11769        for id in 0..6i64 {
11770            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11771                .unwrap();
11772        }
11773        t.add_index("by_id".into(), "id").unwrap();
11774        // 0 cold segments.
11775        let report = cat
11776            .compact_cold_segments("users", "by_id", 1 << 30)
11777            .expect("noop ok");
11778        assert!(report.merged_segment_id.is_none());
11779        assert!(report.sources.is_empty());
11780
11781        // 1 cold segment — still a no-op (need ≥2 to merge).
11782        cat.freeze_oldest_to_cold("users", "by_id", 4).unwrap();
11783        let report = cat
11784            .compact_cold_segments("users", "by_id", 1 << 30)
11785            .expect("noop ok");
11786        assert!(report.merged_segment_id.is_none());
11787        assert_eq!(cat.cold_segment_count(), 1);
11788
11789        // Threshold too small to cover the single segment → still
11790        // no-op.
11791        let report = cat
11792            .compact_cold_segments("users", "by_id", 1)
11793            .expect("noop ok");
11794        assert!(report.merged_segment_id.is_none());
11795        assert_eq!(cat.cold_segment_count(), 1);
11796    }
11797
11798    /// Manifest-style atomicity: a Catalog snapshot taken AFTER
11799    /// `compact_cold_segments` returns must round-trip with the
11800    /// post-compact BTree state, while the cold-tier registry is
11801    /// re-derived from the source-of-truth manifest (=
11802    /// `load_segment_bytes_at` with the merged id + the still-on-
11803    /// disk merged bytes). This mirrors the boot path: catalog
11804    /// snapshot + cold-segment files = full state.
11805    #[test]
11806    fn compact_swap_survives_catalog_roundtrip_via_load_at() {
11807        let mut cat = Catalog::new();
11808        cat.create_table(bigint_pk_users_schema()).unwrap();
11809        let t = cat.get_mut("users").unwrap();
11810        for id in 0..6i64 {
11811            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11812                .unwrap();
11813        }
11814        t.add_index("by_id".into(), "id").unwrap();
11815        cat.freeze_oldest_to_cold("users", "by_id", 3).unwrap();
11816        cat.freeze_oldest_to_cold("users", "by_id", 3).unwrap();
11817        let max_seg_bytes = cat
11818            .cold_segment_ids_global()
11819            .iter()
11820            .map(|id| cat.cold_segment(*id).unwrap().bytes().len() as u64)
11821            .max()
11822            .unwrap();
11823        let report = cat
11824            .compact_cold_segments("users", "by_id", max_seg_bytes + 1)
11825            .expect("compact ok");
11826        let merged_id = report.merged_segment_id.unwrap();
11827
11828        // Serialise the catalog (BTree index points at merged_id
11829        // now) and the merged segment bytes; pretend to crash; on
11830        // restart, re-hydrate the catalog and reload only the
11831        // merged segment at its baked-in id.
11832        let cat_bytes = cat.serialize();
11833        let merged_bytes = report.merged_segment_bytes.clone();
11834
11835        let mut restored = Catalog::deserialize(&cat_bytes).expect("deserialize ok");
11836        restored
11837            .load_segment_bytes_at(merged_id, merged_bytes)
11838            .expect("reload merged ok");
11839
11840        // All 6 PKs still resolve through the restored merged segment.
11841        for id in 0..6i64 {
11842            let got = restored
11843                .lookup_by_pk("users", "by_id", &IndexKey::Int(id))
11844                .unwrap_or_else(|| panic!("PK {id} lost across roundtrip"));
11845            assert_eq!(got, make_user_row(id, &alloc::format!("u-{id}")));
11846        }
11847        // No source slot ever rehydrates — confirmed by
11848        // `cold_segment_count` matching only the merged segment.
11849        assert_eq!(restored.cold_segment_count(), 1);
11850    }
11851
11852    /// `load_segment_bytes_at` refuses to stomp an occupied slot
11853    /// and pads with `None` when the target id is past the end.
11854    #[test]
11855    fn load_segment_bytes_at_pads_and_rejects_collision() {
11856        let mut cat = Catalog::new();
11857        cat.create_table(bigint_pk_users_schema()).unwrap();
11858        let t = cat.get_mut("users").unwrap();
11859        for id in 0..4i64 {
11860            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11861                .unwrap();
11862        }
11863        t.add_index("by_id".into(), "id").unwrap();
11864        let report = cat.freeze_oldest_to_cold("users", "by_id", 2).unwrap();
11865        let bytes_seg0 = report.segment_bytes.clone();
11866
11867        // Pad to id=5 (slots 1..5 are None, slot 5 holds the
11868        // segment loaded back). The slot count jumps, the active
11869        // count is now 2 (seg 0 + seg 5).
11870        cat.load_segment_bytes_at(5, bytes_seg0.clone())
11871            .expect("pad + load ok");
11872        assert_eq!(cat.cold_segment_slot_count(), 6);
11873        assert_eq!(cat.cold_segment_count(), 2);
11874
11875        // Re-loading at the same id collides.
11876        assert!(matches!(
11877            cat.load_segment_bytes_at(5, bytes_seg0.clone()),
11878            Err(StorageError::Corrupt(_))
11879        ));
11880        // Re-loading at id 0 (already occupied) also collides.
11881        assert!(matches!(
11882            cat.load_segment_bytes_at(0, bytes_seg0),
11883            Err(StorageError::Corrupt(_))
11884        ));
11885    }
11886
11887    /// Round trip: freeze → promote → re-freeze. The same PK can
11888    /// migrate hot ↔ cold multiple times. After two cycles only the
11889    /// final Hot locator should be live.
11890    #[test]
11891    fn promote_then_refreeze_does_not_leave_orphan_locators() {
11892        let mut cat = Catalog::new();
11893        cat.create_table(bigint_pk_users_schema()).unwrap();
11894        let t = cat.get_mut("users").unwrap();
11895        for id in 0..4i64 {
11896            t.insert(make_user_row(id, &alloc::format!("u-{id}")))
11897                .unwrap();
11898        }
11899        t.add_index("by_id".into(), "id").unwrap();
11900
11901        // Cycle 1: freeze first 2 rows, then promote PK 0.
11902        cat.freeze_oldest_to_cold("users", "by_id", 2).unwrap();
11903        let promoted = cat
11904            .promote_cold_row("users", "by_id", &IndexKey::Int(0))
11905            .unwrap();
11906        assert!(promoted.is_some());
11907        let entries_after_promote = cat
11908            .get("users")
11909            .unwrap()
11910            .index_on(0)
11911            .unwrap()
11912            .lookup_eq(&IndexKey::Int(0))
11913            .to_vec();
11914        assert_eq!(entries_after_promote.len(), 1);
11915        assert!(entries_after_promote[0].is_hot());
11916
11917        // Cycle 2: freeze the front rows again. PK 0 is now at
11918        // position 2 (after the survivors); it could still go cold
11919        // again on a future freeze depending on policy, but the
11920        // current "first N positions" policy leaves it alone here.
11921        // What matters: prior cold locators for PKs 0..1 are gone,
11922        // PKs 2..3 still resolve through their original segments.
11923        for id in [2i64, 3] {
11924            assert_eq!(
11925                cat.lookup_by_pk("users", "by_id", &IndexKey::Int(id))
11926                    .unwrap(),
11927                make_user_row(id, &alloc::format!("u-{id}"))
11928            );
11929        }
11930    }
11931}