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spg_engine/
eval.rs

1//! Expression evaluator. Given a parsed `Expr`, a `Row`, and the row's column
2//! schema, produce a `Value`. v0.4 implements:
3//!
4//! - literals
5//! - column lookups (bare and qualified `t.col`)
6//! - unary minus / NOT
7//! - binary arithmetic, comparison, AND, OR
8//! - numeric widening (`Int → BigInt → Float`) at evaluation time
9//! - SQL three-valued logic for NULL:
10//!     * any arithmetic / comparison op with a NULL operand → NULL
11//!     * `TRUE OR NULL` → TRUE, `FALSE OR NULL` → NULL,
12//!     * `FALSE AND NULL` → FALSE, `TRUE AND NULL` → NULL,
13//!     * `NOT NULL` → NULL
14//!
15//! v0.4 deliberately does *not* implement: function calls, string
16//! concatenation, IS NULL / IS NOT NULL, BETWEEN, IN, etc. Those come later.
17
18use alloc::borrow::Cow;
19use alloc::format;
20use alloc::string::{String, ToString};
21use alloc::vec::Vec;
22
23use spg_sql::ast::{BinOp, CastTarget, ColumnName, Expr, Literal};
24use spg_storage::{ColumnSchema, Row, Value};
25
26pub(crate) mod arity;
27pub(crate) mod binop;
28mod cast;
29pub mod compiled;
30mod datetime;
31mod encoding;
32mod encodings;
33mod format;
34pub(crate) mod functions;
35mod inet;
36pub(crate) mod math;
37mod regexp;
38mod resolve;
39mod strings;
40pub(crate) mod textsearch;
41pub(crate) mod values;
42
43pub use crate::conversions::format_money_array;
44pub(crate) use binop::{
45    add_interval_to_micros, and_3vl, apply_binary, apply_binary_by_ref, apply_binary_interval,
46};
47use binop::{apply_binary_in, apply_unary, compare, pow10_i128};
48pub use cast::{cast_to_vector, cast_value, parse_vector_text};
49pub(crate) use compiled::{
50    CompiledExpr, compile_column_pos, compile_expr, eval_compiled, eval_compiled_ref,
51    fully_compilable,
52};
53use datetime::{
54    age, date_format_mysql, date_part, date_trunc, extract_field, from_unixtime, unix_timestamp_of,
55};
56use encoding::{decode_text, encode_text};
57pub use format::{
58    days_from_civil, format_bigint_array, format_bool_array, format_bytea_array, format_bytea_hex,
59    format_date, format_date_array, format_float, format_float_array, format_int_array,
60    format_interval, format_interval_array, format_interval_kinded, format_money, format_numeric,
61    format_numeric_array, format_numeric_kind, format_real, format_smallint_array,
62    format_text_array, format_time, format_timestamp, format_timestamp_array, format_timestamptz,
63    format_timestamptz_at, format_timetz, format_uuid_array, parse_date_literal,
64    parse_timestamp_literal,
65};
66// v7.39 (GUC knife 3) — session render styles + styled formatters.
67pub use format::{
68    DateOrder, DateStyleKind, IntervalStyleKind, RenderStyle, format_date_array_styled,
69    format_date_styled, format_float_array_styled, format_float_mysql, format_float_styled,
70    format_interval_array_styled, format_interval_styled, format_real_mysql, format_real_styled,
71    format_timestamp_array_styled, format_timestamp_styled, format_timestamptz_styled,
72    format_timestamptz_tz, parse_date_literal_ordered, parse_timestamp_literal_ordered,
73    parse_timestamp_literal_tz_ordered,
74};
75use functions::apply_function;
76use inet::{inet_host, inet_masklen, inet_network, inet_op_bool_result};
77pub(crate) use math::{f64_ceil, f64_floor, f64_sqrt};
78use math::{
79    f64_exp, f64_ln, f64_powi, f64_round_half_away, f64_trunc, prng_next_f64, prng_next_u64,
80};
81pub(crate) use regexp::{
82    CompiledRe, compile_re, compiled_is_match, regex_is_match, regexp_matches_rows,
83};
84use regexp::{regexp_matches, regexp_replace, regexp_split_to_array};
85use resolve::{
86    collation_fold_for_compare, compare_is_case_insensitive, composite_eq, eval_expr_cow,
87    is_owned_compare_value, resolve_column, resolve_column_borrowed, text_prefix_chars,
88};
89pub(crate) use resolve::{
90    column_at, column_collation, find_column_pos, is_binary_coerced, locate_column,
91};
92use strings::{
93    TrimSide, format_string, pg_quote_ident, pg_quote_literal, pg_typeof_name, string_left_right,
94    string_pad, string_trim, to_char, value_to_format_text,
95};
96pub use textsearch::{
97    decode_tsquery_external, decode_tsvector_external, format_tsquery, format_tsvector,
98};
99use textsearch::{
100    fts_phraseto_tsquery, fts_plainto_tsquery, fts_setweight, fts_to_tsquery, fts_to_tsvector,
101    fts_ts_headline, fts_ts_rank, fts_ts_rank_cd, fts_ts_rewrite, fts_tsquery_bool,
102    fts_websearch_to_tsquery, ts_match, tsvector_concat,
103};
104pub use values::gen_random_uuid_bytes;
105/// v7.39 (tz epic) — fixed-offset / abbreviation resolution, exposed
106/// for `SET timezone` validation (named zones go through the host tzdb).
107pub(crate) fn datetime_resolve_zone_offset(z: &str) -> Option<i64> {
108    datetime::resolve_zone_offset(z)
109}
110
111pub use values::value_to_text;
112pub use values::value_to_text_styled;
113pub use values::value_to_text_typed;
114pub use values::value_to_text_typed_styled;
115pub use values::value_to_text_with_fsp;
116use values::{
117    array_2d_dims, array_element_at, array_len, array_rebuild, value_cmp_for_min_max, value_to_f64,
118    values_equal_for_nullif,
119};
120
121/// Resolution context for evaluating a single row. `table_alias` is the alias
122/// (or table name) callers should accept as the qualifier on a column ref —
123/// e.g. `FROM users AS u` makes `u.name` valid and rejects `other.name`.
124#[derive(Clone)]
125#[allow(missing_debug_implementations)] // sequence_resolver is a dyn Fn — no Debug
126pub struct EvalContext<'a> {
127    pub columns: &'a [ColumnSchema],
128    pub table_alias: Option<&'a str>,
129    /// v6.1.1 — bound parameters for `$N` placeholders inside the
130    /// expression tree. Empty for simple queries; populated by the
131    /// prepared-statement Execute path with Bind values converted
132    /// to `Value`. Index N (1-based per PG) hits `params[N-1]`.
133    pub params: &'a [Value<'static>],
134    /// v7.12.1 — session text-search config (from `SET
135    /// default_text_search_config = '<name>'`). Resolved when the
136    /// engine builds an `EvalContext` and consumed by the FTS
137    /// function dispatcher when `to_tsvector(text)` /
138    /// `plainto_tsquery(text)` etc are called without an explicit
139    /// config arg. `None` falls through to `simple`.
140    pub default_text_search_config: Option<&'a str>,
141    /// v7.17.0 Phase 1.1 — `nextval` / `currval` / `setval`
142    /// resolver. The engine builds this around a `&mut Catalog`
143    /// so apply_function can mutate sequence state without
144    /// eval owning a catalog reference. When `None`, sequence
145    /// functions return an error (read-only contexts).
146    pub sequence_resolver: Option<&'a SequenceResolver<'a>>,
147    /// v7.37.16 (16.12) — read-only catalog reference for
148    /// builtins that need catalog walks (e.g. `pg_partition_root`,
149    /// `pg_partition_ancestors`). `None` falls through to the
150    /// "no catalog available" branch which returns NULL — same
151    /// shape PG returns for a non-existent OID. Most evaluation
152    /// sites don't need catalog access (row scans, projections);
153    /// they construct contexts with `catalog: None` and the
154    /// engine populates `Some(&self.catalog)` only at the engine's
155    /// top-level entry points where the borrow is unambiguous.
156    pub catalog: Option<&'a spg_storage::Catalog>,
157    /// v7.39 (round 346, M1) — is this a MySQL-dialect session? The two
158    /// dialects disagree about what counts as a truth value: MariaDB
159    /// takes any non-zero number (and a string's leading number) as
160    /// true, PG refuses anything that is not boolean. Set from the
161    /// engine by [`EvalContext::with_engine`]; a context built without
162    /// one keeps PG's stricter reading.
163    pub mysql_dialect: bool,
164    /// Session GUCs set via `SET name = value` / `set_config`, keyed by
165    /// lowercased name. `current_setting('app.foo')` reads custom
166    /// (namespaced) settings from here — the mechanism apps use for
167    /// request context / RLS. `None` in read-only contexts that have no
168    /// session; unknown names then fall through to PG defaults.
169    pub session_gucs: Option<&'a alloc::collections::BTreeMap<String, String>>,
170    /// v7.39 (read01 round 58) — the engine's role store, so
171    /// `has_table_privilege('bob', …)` can expand bob's role MEMBERSHIPS (a
172    /// grant to a group role answers `true` for its inheriting members). `None`
173    /// in a context with no engine behind it — the role then stands alone.
174    pub users: Option<&'a crate::users::UserStore>,
175    /// v7.39 (read01 round 61) — how deep we are inside USER-DEFINED function
176    /// bodies. A function's body is evaluated with a child context, and a body
177    /// may call another function, so this bounds the recursion (a function that
178    /// calls itself would otherwise blow the stack, which an embed host cannot
179    /// catch).
180    pub fn_depth: u16,
181    /// v7.39 (read01 round 63) — the ENGINE, for a user-function body that has
182    /// its own FROM (`SELECT v FROM t WHERE id = k`). Such a body has to run
183    /// through the real executor: reading `catalog`'s rows straight from eval
184    /// would bypass the row-header visibility filter, so under in-place MVCC a
185    /// function would happily read DEAD rows. `None` in a context with no
186    /// engine behind it — a body with a FROM then errors, saying so.
187    pub engine: Option<&'a crate::Engine>,
188    /// v7.38 (read01 U15) — per-scan deterministic sampler state for
189    /// `TABLESAMPLE … REPEATABLE(seed)`. A fresh cell is created before a
190    /// scan whose predicate may draw `__tsm_fract(seed)`; the cell holds
191    /// `None` until the first draw seeds it from that literal, then a
192    /// scan-local xorshift sequence (isolated from the process-global
193    /// `random()` PRNG, so it's deterministic and rescan-stable). `None`
194    /// here means no sampler is attached.
195    pub sample_rng: Option<&'a core::cell::Cell<Option<u64>>>,
196    /// v7.38 (read01 P3.25) — native-stack-overflow guard. Lazily seeded
197    /// with the stack pointer of the outermost `eval_expr` call; deeper
198    /// calls compare their own pointer against it and bail with
199    /// [`EvalError::StackDepthExceeded`] once usage crosses a safe margin,
200    /// so a pathologically nested expression errors instead of aborting the
201    /// process. Owned (not a borrowed cell) so it stays stack-local and
202    /// never touches `Engine`'s `Sync` bound.
203    pub recursion_base: core::cell::Cell<usize>,
204    /// v7.39 (GUC knife 3) — session render style (DateStyle /
205    /// IntervalStyle / extra_float_digits) for text output produced
206    /// inside expression evaluation (`::text` casts). Contexts built
207    /// away from the session (per-shard scan filters, index probes)
208    /// keep the default — they don't render text output.
209    pub render_style: crate::eval::format::RenderStyle,
210    /// v7.39 (tz epic) — host IANA timezone lookups for named zones
211    /// (session rendering, AT TIME ZONE, literal zone suffixes).
212    pub tz_offset_fn: Option<crate::TzOffsetFn>,
213    pub tz_localize_fn: Option<crate::TzLocalizeFn>,
214    pub tz_abbrev_fn: Option<crate::TzAbbrevFn>,
215    /// v7.38 (read01 P5.24) — host-provided CSPRNG (the server injects
216    /// `/dev/urandom`). Cryptographic builtins (`gen_random_bytes`,
217    /// `gen_salt`) draw from this instead of the process-static xorshift
218    /// PRNG, so their output isn't predictable. `None` (no host CSPRNG)
219    /// falls back to the PRNG — fine for the non-cryptographic `random()`.
220    pub salt_fn: Option<crate::SaltFn>,
221    /// v7.39 (read01 pgstatfuncs.c) — calling-connection identity for
222    /// pg_backend_pid(); `None` (embedded / detached contexts) → 1.
223    pub backend_pid_fn: Option<crate::BackendPidFn>,
224    /// v7.39 (round 476) — the WAL byte position, for the LSN functions.
225    pub wal_lsn_fn: Option<crate::WalLsnFn>,
226    /// v7.39 (round 318, V51) — host connection-control hook for
227    /// `pg_cancel_backend` / `pg_terminate_backend`. `None` (embedded /
228    /// detached contexts) ⇒ there is nothing to signal, so they answer
229    /// false rather than pretending the signal landed.
230    pub backend_signal_fn: Option<crate::BackendSignalFn>,
231    /// v7.38 (read01 P6.08) — host wall clock (µs since Unix epoch). `uuidv7`
232    /// uses it for the real time-ordered 48-bit millisecond prefix; `None`
233    /// (no host clock) falls back to the deterministic anchor.
234    pub clock: Option<crate::ClockFn>,
235    /// v7.38 (T24) — read-only view of the engine's transaction-version state,
236    /// so the `txid_*` / `pg_*_xact_id` / `pg_xact_status` builtins report the
237    /// real transaction ids instead of a constant stub. `None` on the scan /
238    /// join / aggregate contexts that never evaluate them.
239    pub xact: Option<XactView<'a>>,
240    /// v7.38 (T24) — PG's `txid_current()` ASSIGNS an id to a transaction that
241    /// has none. In autocommit a read-only statement has no writer version, so
242    /// the first call allocates one here and later calls in the same statement
243    /// reuse it — `SELECT txid_current(), txid_current()` must agree, as in PG.
244    pub assigned_xid: core::cell::Cell<Option<u64>>,
245}
246
247/// v7.38 (T24) — the transaction-id surface PG's `txid_*` family exposes.
248/// SPG's writer versions ARE its transaction ids (`row_header::next_version`),
249/// so no separate xid counter is needed — this is the bridge U22 was waiting
250/// on.
251#[derive(Clone, Copy, Debug)]
252pub struct XactView<'a> {
253    /// The id assigned to the current transaction (allocated at BEGIN) or, in
254    /// autocommit, to the current statement once it has written. `None` when
255    /// nothing has been assigned — `*_if_assigned` returns NULL there, as PG does.
256    pub current: Option<u64>,
257    /// Ids allocated by transactions that have neither committed nor aborted.
258    pub active: &'a alloc::collections::BTreeSet<u64>,
259    /// Ids of rolled-back transactions.
260    pub aborted: &'a alloc::collections::BTreeSet<u64>,
261}
262
263/// v7.17.0 — sequence-mutating callback used by `apply_function`
264/// for `nextval` / `currval` / `setval`. Implemented by the
265/// engine to thread `&mut Catalog` access through an immutable
266/// `&EvalContext`.
267pub type SequenceResolver<'a> = dyn Fn(SequenceOp) -> Result<i64, EvalError> + 'a;
268
269/// v7.17.0 — sequence operation requested by an Expr eval.
270#[derive(Debug, Clone)]
271pub enum SequenceOp {
272    Next(String),
273    Curr(String),
274    Set {
275        name: String,
276        value: i64,
277        is_called: bool,
278    },
279}
280
281impl<'a> EvalContext<'a> {
282    /// v7.39.3 — do these two column names refer to the same column?
283    ///
284    /// MySQL's column names are case-INSENSITIVE (measured on 9.7.2:
285    /// `mycol`, `MYCOL` and `MyCol` all resolve a column declared
286    /// `MyCol`, and a backquoted spelling resolves too). SPG compared
287    /// them byte for byte, and its lexer folds an UNQUOTED identifier —
288    /// so a table restored from a `mysqldump`, where every identifier
289    /// is backquoted and keeps its case, had every mixed-case column
290    /// unreachable from ordinary unquoted SQL:
291    ///
292    /// ```text
293    /// CREATE TABLE `Orders` (`OrderID` INT)   -- from the dump
294    /// SELECT `OrderID` FROM `Orders`          -- works
295    /// SELECT OrderID FROM Orders              -- 1054, unknown column
296    /// ```
297    ///
298    /// That is the same "two spellings, two things" defect v7.39.1
299    /// closed for relation NAMES, still live for columns.
300    ///
301    /// PostgreSQL's rule is the opposite and stays: a quoted identifier
302    /// is case-sensitive there, and folding it would break every column
303    /// that relies on it.
304    #[must_use]
305    pub fn col_eq(&self, a: &str, b: &str) -> bool {
306        if self.mysql_dialect {
307            a.eq_ignore_ascii_case(b)
308        } else {
309            a == b
310        }
311    }
312
313    pub const fn new(columns: &'a [ColumnSchema], table_alias: Option<&'a str>) -> Self {
314        Self {
315            columns,
316            table_alias,
317            params: &[],
318            default_text_search_config: None,
319            sequence_resolver: None,
320            catalog: None,
321            mysql_dialect: false,
322            session_gucs: None,
323            users: None,
324            fn_depth: 0,
325            engine: None,
326            sample_rng: None,
327            recursion_base: core::cell::Cell::new(0),
328            render_style: crate::eval::format::RenderStyle {
329                date_style: crate::eval::format::DateStyleKind::Iso,
330                date_order: crate::eval::format::DateOrder::Mdy,
331                interval_style: crate::eval::format::IntervalStyleKind::Postgres,
332                extra_float_digits: 1,
333                bytea_escape: false,
334                mysql: false,
335            },
336            tz_offset_fn: None,
337            tz_localize_fn: None,
338            tz_abbrev_fn: None,
339            salt_fn: None,
340            backend_pid_fn: None,
341            wal_lsn_fn: None,
342            backend_signal_fn: None,
343            clock: None,
344            xact: None,
345            assigned_xid: core::cell::Cell::new(None),
346        }
347    }
348
349    /// v7.39 (GUC knife 3) — attach the session render style.
350    #[must_use]
351    pub const fn with_render_style(mut self, style: crate::eval::format::RenderStyle) -> Self {
352        self.render_style = style;
353        self
354    }
355
356    /// v7.39 (round 318, V51) — attach the host connection-control hook.
357    #[must_use]
358    pub const fn with_backend_signal_fn(mut self, f: Option<crate::BackendSignalFn>) -> Self {
359        self.backend_signal_fn = f;
360        self
361    }
362
363    /// v7.39 (round 476) — attach the WAL byte-position provider.
364    #[must_use]
365    pub const fn with_wal_lsn_fn(mut self, f: Option<crate::WalLsnFn>) -> Self {
366        self.wal_lsn_fn = f;
367        self
368    }
369
370    /// v7.39 (read01 pgstatfuncs.c) — attach the calling-connection id.
371    #[must_use]
372    pub const fn with_backend_pid_fn(mut self, f: Option<crate::BackendPidFn>) -> Self {
373        self.backend_pid_fn = f;
374        self
375    }
376
377    /// v7.39 (tz epic) — attach the host timezone lookups.
378    #[must_use]
379    pub const fn with_tz_fns(
380        mut self,
381        offset: Option<crate::TzOffsetFn>,
382        localize: Option<crate::TzLocalizeFn>,
383        abbrev: Option<crate::TzAbbrevFn>,
384    ) -> Self {
385        self.tz_offset_fn = offset;
386        self.tz_localize_fn = localize;
387        self.tz_abbrev_fn = abbrev;
388        self
389    }
390
391    /// v7.39 (tz epic) — offset (µs east) of an arbitrary zone spec at
392    /// a UTC instant: fixed forms resolve statically, named zones
393    /// through the host tzdb. None = unknown zone.
394    #[must_use]
395    pub fn zone_offset_at(&self, zone: &str, utc_micros: i64) -> Option<i64> {
396        if let Some(off) = datetime::resolve_zone_offset(zone) {
397            return Some(off);
398        }
399        self.tz_offset_fn.and_then(|f| f(zone, utc_micros))
400    }
401
402    /// v7.39 (tz epic) — the SESSION zone's offset at a UTC instant
403    /// (per-value: DST zones vary within one statement).
404    #[must_use]
405    pub fn session_tz_offset_at(&self, utc_micros: i64) -> i64 {
406        let Some(zone) = self.session_gucs.and_then(|g| g.get("timezone")) else {
407            return 0;
408        };
409        self.zone_offset_at(zone, utc_micros).unwrap_or(0)
410    }
411
412    /// v7.39 (tz epic) — the session zone's designation at an instant
413    /// (named zones only; None lets renderers spell UTC / +HH).
414    #[must_use]
415    pub fn session_tz_abbrev_at(&self, utc_micros: i64) -> Option<alloc::string::String> {
416        let zone = self.session_gucs.and_then(|g| g.get("timezone"))?;
417        if datetime::resolve_zone_offset(zone).is_some()
418            || zone.eq_ignore_ascii_case("utc")
419            || zone.eq_ignore_ascii_case("gmt")
420        {
421            return None;
422        }
423        self.tz_abbrev_fn.and_then(|f| f(zone, utc_micros))
424    }
425
426    /// v7.39 (tz epic) — local wall micros in `zone` -> UTC micros
427    /// (PG's DST disambiguation for named zones).
428    #[must_use]
429    pub fn zone_local_to_utc(&self, zone: &str, local_micros: i64) -> Option<i64> {
430        zone_local_to_utc_with(zone, local_micros, self.tz_localize_fn)
431    }
432
433    /// v7.38 (read01 P5.24) — attach the host CSPRNG so cryptographic
434    /// builtins don't fall back to the predictable PRNG.
435    #[must_use]
436    pub const fn with_salt_fn(mut self, f: Option<crate::SaltFn>) -> Self {
437        self.salt_fn = f;
438        self
439    }
440
441    /// v7.38 (read01 P6.08) — attach the host wall clock so `uuidv7` gets a
442    /// real time-ordered prefix instead of the deterministic anchor.
443    #[must_use]
444    pub const fn with_clock(mut self, f: Option<crate::ClockFn>) -> Self {
445        self.clock = f;
446        self
447    }
448
449    /// v7.38 (read01 U15) — attach a per-scan `TABLESAMPLE REPEATABLE`
450    /// sampler cell. The cell (seeded lazily on first `__tsm_fract` draw)
451    /// must outlive the context and be created fresh per scan so a rescan
452    /// re-seeds and reproduces the same sample.
453    #[must_use]
454    pub const fn with_sample_rng(mut self, cell: &'a core::cell::Cell<Option<u64>>) -> Self {
455        self.sample_rng = Some(cell);
456        self
457    }
458
459    /// Attach the session's GUC map so `current_setting` can resolve
460    /// custom (namespaced) settings written with `SET` / `set_config`.
461    #[must_use]
462    /// v7.39 (read01 round 63) — thread the engine (see `engine`).
463    pub const fn with_engine(mut self, engine: &'a crate::Engine) -> Self {
464        self.mysql_dialect = engine.speaks_mysql;
465        // v7.39 (round 368, M20 P3) — the dialect also decides how a binary
466        // string renders in a string context (latin-1 bytes vs PG `\x…`).
467        self.render_style.mysql = engine.speaks_mysql;
468        self.engine = Some(engine);
469        self
470    }
471
472    /// v7.39 (read01 round 58) — thread the role store (see `users`).
473    pub const fn with_users(mut self, users: &'a crate::users::UserStore) -> Self {
474        self.users = Some(users);
475        self
476    }
477
478    /// v7.39 (round 524) — attach a whole session bag at once. Every
479    /// write path needs the same four, and taking them one at a time is
480    /// how three of them ended up with none.
481    #[must_use]
482    pub(crate) fn with_session<'b: 'a>(mut self, s: &'b DmlSession) -> Self {
483        self.session_gucs = Some(&s.gucs);
484        self.users = Some(&s.users);
485        self.render_style = s.render_style;
486        self.tz_offset_fn = s.tz_offset_fn;
487        self.tz_localize_fn = s.tz_localize_fn;
488        self.tz_abbrev_fn = s.tz_abbrev_fn;
489        self
490    }
491
492    pub const fn with_session_gucs(
493        mut self,
494        gucs: &'a alloc::collections::BTreeMap<String, String>,
495    ) -> Self {
496        self.session_gucs = Some(gucs);
497        self
498    }
499
500    /// v7.37.16 (16.12) — attach a read-only catalog reference
501    /// so builtins like `pg_partition_root` can walk partition
502    /// roles. Defaults to None (NULL semantics).
503    #[must_use]
504    pub const fn with_catalog(mut self, catalog: &'a spg_storage::Catalog) -> Self {
505        self.catalog = Some(catalog);
506        self
507    }
508
509    /// v7.38 (T-tstz Phase 2) — the micro-offset of the session `TimeZone` GUC
510    /// (`SET TimeZone = '+09'` → +9h). A fixed offset / abbreviation resolves;
511    /// UTC and an unset GUC give 0; a named IANA zone (no tzdata) also gives 0
512    /// so a timestamptz still renders — as `+00` — rather than erroring on
513    /// every display. Timestamptz rendering / cast is the only consumer.
514    #[must_use]
515    pub fn session_tz_offset(&self) -> i64 {
516        self.session_gucs
517            .and_then(|g| g.get("timezone"))
518            .and_then(|z| datetime::resolve_zone_offset(z))
519            .unwrap_or(0)
520    }
521
522    /// v7.38 (T24) — attach the transaction-version view the `txid_*` builtins
523    /// read. Defaults to None, where they fall back to the process-wide cursor.
524    #[must_use]
525    pub const fn with_xact(mut self, xact: XactView<'a>) -> Self {
526        self.xact = Some(xact);
527        self
528    }
529
530    /// v7.17.0 — attach a sequence resolver. The engine wraps a
531    /// `&mut Catalog` in a closure that performs the requested
532    /// SequenceOp.
533    #[must_use]
534    pub const fn with_sequence_resolver(mut self, resolver: &'a SequenceResolver<'a>) -> Self {
535        self.sequence_resolver = Some(resolver);
536        self
537    }
538
539    /// v6.1.1 — attach a parameter buffer for `$N` placeholder
540    /// resolution. The slice must outlive the context; callers
541    /// construct it from the prepared statement's Bind values.
542    #[must_use]
543    pub const fn with_params(mut self, params: &'a [Value<'static>]) -> Self {
544        self.params = params;
545        self
546    }
547
548    /// v7.12.1 — attach the session's
549    /// `default_text_search_config`. Used by the FTS function
550    /// dispatcher when no explicit config arg is given.
551    #[must_use]
552    pub const fn with_default_text_search_config(mut self, cfg: Option<&'a str>) -> Self {
553        self.default_text_search_config = cfg;
554        self
555    }
556}
557
558/// v7.39 (round 523) — read a timestamp literal, reporting whether it
559/// carried an offset. Re-exported for the INSERT path, which decides
560/// there whether a value already names an instant.
561pub(crate) fn parse_timestamp_literal_tz_ordered_pub(
562    s: &str,
563    order: DateOrder,
564) -> Option<(i64, bool)> {
565    format::parse_timestamp_literal_tz_ordered(s, order)
566}
567
568/// v7.39 (round 523) — a FIXED zone's offset, when the name is one
569/// (`+09`, `UTC-5`). Named zones go through the host's tzdb instead.
570#[must_use]
571pub(crate) fn resolve_zone_offset_pub(zone: &str) -> Option<i64> {
572    datetime::resolve_zone_offset(zone)
573}
574
575/// v7.39 (round 523) — a wall-clock reading in `zone` as a UTC instant.
576///
577/// A free function because the INSERT path needs it too, and that path
578/// carries no `EvalContext`: it evaluates VALUES through a context-free
579/// literal walker. `EvalContext::zone_local_to_utc` delegates here so the
580/// two cannot drift.
581#[must_use]
582pub(crate) fn zone_local_to_utc_with(
583    zone: &str,
584    local_micros: i64,
585    localize: Option<crate::TzLocalizeFn>,
586) -> Option<i64> {
587    if let Some(off) = datetime::resolve_zone_offset(zone) {
588        return Some(local_micros - off);
589    }
590    localize.and_then(|f| f(zone, local_micros))
591}
592
593/// v7.39 (round 523) — the session zone an assignment to a timestamptz
594/// column is read in, or `None` when the session is on UTC and no shift
595/// applies.
596#[derive(Debug, Clone)]
597pub(crate) struct SessionCoercion {
598    /// The session zone, when it is not UTC. `None` leaves an instant
599    /// where it was.
600    pub zone: Option<alloc::string::String>,
601    pub localize: Option<crate::TzLocalizeFn>,
602    /// The session's date order. A written date is ambiguous
603    /// (`01/02/2020`), and this is what resolves it.
604    pub order: DateOrder,
605}
606
607impl SessionCoercion {
608    /// The UTC instant a naive wall-clock reading names in the session
609    /// zone, or `None` when the session is on UTC.
610    #[must_use]
611    pub(crate) fn wall_to_utc(&self, wall: i64) -> Option<i64> {
612        let zone = self.zone.as_ref()?;
613        zone_local_to_utc_with(zone, wall, self.localize)
614    }
615
616    /// v7.39 (round 524) — the session facts an ASSIGNMENT is read
617    /// under, from an evaluation context. `None` when both are the
618    /// defaults and nothing needs re-reading.
619    #[must_use]
620    pub(crate) fn from_ctx(ctx: &EvalContext<'_>) -> Option<Self> {
621        let zone = ctx
622            .session_gucs
623            .and_then(|g| g.get("timezone"))
624            .filter(|z| !z.eq_ignore_ascii_case("utc") && !z.eq_ignore_ascii_case("gmt"))
625            .cloned();
626        let order = ctx.render_style.date_order;
627        if zone.is_none() && order == DateOrder::Mdy {
628            return None;
629        }
630        Some(Self {
631            zone,
632            localize: ctx.tz_localize_fn,
633            order,
634        })
635    }
636}
637
638/// v7.39 (round 524) — the session facts a DML evaluation context needs,
639/// cloned so the row loop can still borrow the engine mutably.
640///
641/// Every write path built a BARE `EvalContext`, so an expression in an
642/// UPDATE's SET or a DELETE's WHERE was evaluated by an engine that knew
643/// nothing about the connection. One value, built once per statement,
644/// and a grep for `dml_session` finds every path that has it.
645pub(crate) struct DmlSession {
646    pub gucs: alloc::collections::BTreeMap<String, String>,
647    pub users: crate::users::UserStore,
648    pub render_style: RenderStyle,
649    pub tz_offset_fn: Option<crate::TzOffsetFn>,
650    pub tz_localize_fn: Option<crate::TzLocalizeFn>,
651    pub tz_abbrev_fn: Option<crate::TzAbbrevFn>,
652}
653
654/// v7.39 (round 524) — read a TEXT value bound for a temporal column
655/// under the session's date order.
656///
657/// `01/02/2020` is February 1st in a DMY session and January 2nd in an
658/// MDY one, and the write path was reading every one of them as MDY: a
659/// `SELECT '01/02/2020'::date` answered PG's value while the same
660/// literal INSERTed stored the day and month swapped. Nothing errors,
661/// and once stored the two readings are indistinguishable.
662#[must_use]
663pub(crate) fn session_read_temporal_text(
664    v: Value<'static>,
665    target: spg_storage::DataType,
666    coercion: Option<&SessionCoercion>,
667) -> Value<'static> {
668    use spg_storage::DataType as D;
669    let Some(c) = coercion else { return v };
670    if c.order == DateOrder::Mdy {
671        return v;
672    }
673    let Value::Text(s) = &v else { return v };
674    match target {
675        D::Date => format::parse_date_literal_ordered(s, c.order).map_or(v, Value::Date),
676        D::Timestamp | D::Timestamptz => format::parse_timestamp_literal_tz_ordered(s, c.order)
677            .map_or(v, |(t, _)| Value::Timestamp(t)),
678        _ => v,
679    }
680}
681
682#[derive(Debug, Clone, PartialEq)]
683pub enum EvalError {
684    /// v7.39.2 — a qualified reference whose QUALIFIER resolves but
685    /// whose column does not. PostgreSQL prints it unquoted and dotted;
686    /// see the Display impl.
687    QualifiedColumnNotFound {
688        qualifier: String,
689        column: String,
690    },
691    /// v7.39.2 — a built-in called with the wrong NUMBER of arguments.
692    ///
693    /// Its own variant rather than a formatted string, because the two
694    /// wires word it differently AND number it differently, and one of
695    /// them has to tell it apart from "no such function": MySQL 9.7.2
696    /// answers 1582 `Incorrect parameter count in the call to native
697    /// function 'LOWER'` here and 1305 for a name it does not know,
698    /// where PostgreSQL gives BOTH the same sentence.
699    WrongArity {
700        name: String,
701        /// The argument types, PostgreSQL's own names, comma-joined.
702        types: String,
703    },
704    ColumnNotFound {
705        name: String,
706    },
707    UnknownQualifier {
708        qualifier: String,
709        /// v7.39.2 — the column that was written after it.
710        ///
711        /// PostgreSQL names only the missing table; MySQL 9.7.2 names
712        /// the whole reference — `Unknown column 'zz.a' in 'where
713        /// clause'` — and numbers it 1054, a COLUMN error. SPG answered
714        /// 1146, which is what a driver reads as "that table is gone".
715        /// The name has to travel for the MySQL wire to say it.
716        column: String,
717    },
718    DivisionByZero,
719    TypeMismatch {
720        detail: String,
721    },
722    /// v6.1.1 — `$N` reference past the number of bound parameters.
723    /// Either the client sent too few in Bind, or the SQL has a
724    /// placeholder the prepared statement didn't account for.
725    PlaceholderOutOfRange {
726        n: u16,
727        bound: u16,
728    },
729    /// v7.38 (read01 P3.25) — the expression tree recursed deep enough to
730    /// threaten a native stack overflow; we bail out with an error the way
731    /// PG's `check_stack_depth()` does instead of aborting the process.
732    StackDepthExceeded,
733}
734
735impl core::fmt::Display for EvalError {
736    fn fmt(&self, f: &mut core::fmt::Formatter<'_>) -> core::fmt::Result {
737        match self {
738            // v7.39 (read01 round 81) — PG's wording (and SQLSTATE trigger):
739            // `column "x" does not exist`, 42703. The old "column not found: x"
740            // matched none of the wire layer's `does not exist` patterns, so a
741            // missing column reached the client as the generic error class.
742            // PostgreSQL 18.6 makes no distinction between a missing
743            // function and a missing overload — `nosuchfn(text, integer,
744            // date)` and `lower(text, integer)` get the identical
745            // sentence (measured) — so this is the engine's canonical
746            // rendering and the MySQL wire re-words it.
747            Self::WrongArity { name, types } => {
748                write!(f, "function {name}({types}) does not exist")
749            }
750            Self::ColumnNotFound { name } => write!(f, "column \"{name}\" does not exist"),
751            // v7.39.2 — a QUALIFIED reference prints unquoted and
752            // dotted on PostgreSQL 18.6: `column ea.no_such does not
753            // exist`, where the bare form is `column "no_such" does not
754            // exist` (both measured). The two shapes are not
755            // interchangeable — a caller matching on `ea.no_such` finds
756            // nothing in the quoted one.
757            Self::QualifiedColumnNotFound { qualifier, column } => {
758                write!(f, "column {qualifier}.{column} does not exist")
759            }
760            // v7.39 (round 241) — PG's wording (and 42P01 trigger): a
761            // qualifier that names no table in scope is "missing
762            // FROM-clause entry for table \"x\"". The old "unknown table
763            // qualifier" matched nothing a driver branches on.
764            Self::UnknownQualifier { qualifier, .. } => {
765                write!(f, "missing FROM-clause entry for table \"{qualifier}\"")
766            }
767            Self::DivisionByZero => f.write_str("division by zero"),
768            Self::TypeMismatch { detail } => write!(f, "type mismatch: {detail}"),
769            Self::PlaceholderOutOfRange { n, bound } => write!(
770                f,
771                "parameter ${n} referenced but only {bound} bound by client"
772            ),
773            Self::StackDepthExceeded => {
774                f.write_str("stack depth limit exceeded (expression nested too deeply)")
775            }
776        }
777    }
778}
779
780/// v7.38 (read01 P3.25) — native-stack budget below the outermost
781/// `eval_expr` frame. Native stacks are typically 2–8 MB; 768 KiB leaves
782/// generous headroom while still permitting PG-class nesting depth (in a
783/// release build ~hundreds-to-thousands of frames fit under this).
784const MAX_EVAL_STACK_BYTES: usize = 768 * 1024;
785
786/// Address of a local in the current frame — a portable stand-in for the
787/// stack pointer (stacks grow downward on all supported targets).
788#[inline(never)]
789fn eval_stack_ptr() -> usize {
790    let probe = 0u8;
791    core::ptr::addr_of!(probe) as usize
792}
793
794/// v7.38 (read01 P6.40) — enforce a user DOMAIN's NOT NULL + CHECK constraints
795/// on a value being cast to it (`x::domain`). NULL fails a NOT NULL domain;
796/// otherwise every CHECK (which references the pseudo-column `VALUE`) must not
797/// evaluate to false. Returns the value unchanged when all constraints pass.
798fn apply_domain_constraints<'a>(
799    v: Value<'a>,
800    dom: &spg_storage::DomainDef,
801    name: &str,
802    cat: &spg_storage::Catalog,
803) -> Result<Value<'a>, EvalError> {
804    if matches!(v, Value::Null) {
805        // A NOT NULL anywhere in the chain rejects a NULL.
806        let mut cur = Some(dom);
807        while let Some(d) = cur {
808            if !d.nullable {
809                return Err(EvalError::TypeMismatch {
810                    detail: alloc::format!("domain {name} does not allow null values"),
811                });
812            }
813            cur = d
814                .base_domain
815                .as_ref()
816                .and_then(|p| cat.domain_types().get(p.as_str()));
817        }
818        return Ok(v);
819    }
820    // v7.39 (round 259) — walk the domain chain BASE-FIRST (probed: a
821    // value violating both a parent's and the child's constraint reports
822    // the PARENT's). The message names the domain being cast TO, but the
823    // constraint that actually failed — `value for domain pchild violates
824    // check constraint "pbase_check"`.
825    let mut chain: alloc::vec::Vec<&spg_storage::DomainDef> = alloc::vec![dom];
826    let mut cur = dom;
827    while let Some(parent) = cur
828        .base_domain
829        .as_ref()
830        .and_then(|p| cat.domain_types().get(p.as_str()))
831    {
832        // A cycle cannot be created through CREATE DOMAIN (the parent must
833        // already exist), but stop defensively rather than loop forever.
834        if chain.iter().any(|d| core::ptr::eq(*d, parent)) {
835            break;
836        }
837        chain.push(parent);
838        cur = parent;
839    }
840    chain.reverse();
841    for owner in chain {
842        apply_domain_checks_of(&v, owner, name)?;
843    }
844    Ok(v)
845}
846
847/// v7.39 (round 259) — run ONE domain's own CHECK list against `v`. The
848/// error names `target` (the domain the value is being cast to) and
849/// `owner` (whose constraint failed); for a single-level domain they are
850/// the same, which is the pre-259 wording.
851fn apply_domain_checks_of(
852    v: &Value<'_>,
853    dom: &spg_storage::DomainDef,
854    target: &str,
855) -> Result<(), EvalError> {
856    let name = target;
857    for chk in &dom.checks {
858        let src = &chk.expr;
859        // v7.39 (round 260) — report the constraint that failed by NAME.
860        let owner = chk.name.as_str();
861        let expr = spg_sql::parser::parse_expression(src).map_err(|e| EvalError::TypeMismatch {
862            detail: alloc::format!("domain {name} CHECK ({src:?}) failed to re-parse: {e:?}"),
863        })?;
864        let synth_cols = alloc::vec![spg_storage::ColumnSchema::new(
865            "value",
866            dom.base_type,
867            dom.nullable,
868        )];
869        let synth_ctx = EvalContext::new(&synth_cols, None);
870        // Owned copy so the temporary row doesn't borrow `v`'s lifetime.
871        let synth_row = spg_storage::Row {
872            values: alloc::vec![v.clone().into_owned()],
873        };
874        let r = eval_expr(&expr, &synth_row, &synth_ctx)?;
875        if matches!(r, Value::Bool(false)) {
876            return Err(EvalError::TypeMismatch {
877                detail: alloc::format!(
878                    "value for domain {name} violates check constraint \"{owner}\""
879                ),
880            });
881        }
882    }
883    Ok(())
884}
885
886/// v7.38 (read01 P6.67) — validate a value cast to a user ENUM: a text label
887/// must be one of the enum's members (else error, as PG does); a NULL is a
888/// valid typed null. The stored representation stays the text label.
889/// v7.39 (read01 rowtypes.c) — cast into a user composite type: parse the
890/// `(v1,"v 2",)` record text (double-quote wrapping with doubled quotes,
891/// empty field = NULL) and coerce each field to the declared type; a ROW
892/// value re-labels positionally.
893/// v7.39 (round 350/351, M7 + M11) — how MySQL reads a TEXT operand of
894/// an arithmetic or comparison operator. The identity in the PG dialect,
895/// and out-of-line so it costs the recursive `eval_expr` frame nothing.
896///
897/// Measured on MariaDB 11: `'2024-01-15' + INTERVAL 1 DAY` shifts the
898/// date; `'1abc'+0` is 1, `'abc'+0` is 0, `'2024-01-15'+0` is 2024; two
899/// strings compare as STRINGS (`'10' > '9'` is 0) while a mixed pair
900/// compares numerically (`'10' > 9` is 1).
901#[inline(never)]
902pub(crate) fn mysql_operand_reading_pair(
903    op: BinOp,
904    l: Value<'static>,
905    r: Value<'static>,
906) -> (Value<'static>, Value<'static>) {
907    if !mysql_coerces(op) {
908        return (l, r);
909    }
910    match (&l, &r) {
911        (Value::Text(t), Value::Interval { .. }) => (text_as_temporal(t).unwrap_or(l.clone()), r),
912        (Value::Interval { .. }, Value::Text(t)) => {
913            let rr = text_as_temporal(t).unwrap_or(r.clone());
914            (l, rr)
915        }
916        // v7.39 (round 353, M10) — a boolean IS an integer in MySQL, so
917        // `!1 + 1` is 1 (measured). It was `operator does not exist:
918        // boolean + integer`.
919        (Value::Bool(b), other)
920            if mysql_arith(op) && other.data_type().is_some_and(is_numeric_type) =>
921        {
922            (Value::BigInt(i64::from(*b)), r)
923        }
924        (other, Value::Bool(b))
925            if mysql_arith(op) && other.data_type().is_some_and(is_numeric_type) =>
926        {
927            let rr = Value::BigInt(i64::from(*b));
928            (l, rr)
929        }
930        (Value::Text(t), other) if other.data_type().is_some_and(is_numeric_type) => {
931            (mysql_number_of(t), r)
932        }
933        (other, Value::Text(t)) if other.data_type().is_some_and(is_numeric_type) => {
934            let rr = mysql_number_of(t);
935            (l, rr)
936        }
937        // v7.39 (round 367, M20 P2) — a binary string beside a number
938        // reads as its big-endian integer value (`0x10 + 0` = 16,
939        // `0x10 = 16` is true). Beside a Text operand it stays bytes so
940        // the byte-wise string compare (`0x61 = 'a'`) still fires.
941        (Value::Bytes(b), other) if other.data_type().is_some_and(is_numeric_type) => {
942            (mysql_bytes_as_number(b), r)
943        }
944        (other, Value::Bytes(b)) if other.data_type().is_some_and(is_numeric_type) => {
945            let rr = mysql_bytes_as_number(b);
946            (l, rr)
947        }
948        // Arithmetic between two strings is numeric; comparison is not.
949        (Value::Text(a), Value::Text(b)) if mysql_arith(op) => {
950            (mysql_number_of(a), mysql_number_of(b))
951        }
952        _ => (l, r),
953    }
954}
955
956/// Is this a mixed string/number pair, which MySQL compares numerically?
957fn mysql_mixed_pair(l: &Value<'_>, r: &Value<'_>) -> bool {
958    // v7.39.2 — a BINARY string beside a number is a mixed pair too: the
959    // coercion above reads `0x10` as 16. Until now the pair reached the
960    // owned path only because a MySQL session folded EVERY comparison, so
961    // `compare_is_case_insensitive` said yes for an unrelated reason; the
962    // moment a binary operand stopped folding, `0x10 = 16` fell through to
963    // "operator does not exist: bytea = integer". The two questions are
964    // separate and are now asked separately.
965    matches!((l, r), (Value::Text(_) | Value::Bytes(_), o) | (o, Value::Text(_) | Value::Bytes(_))
966        if o.data_type().is_some_and(is_numeric_type))
967}
968
969const fn mysql_arith(op: BinOp) -> bool {
970    matches!(
971        op,
972        BinOp::Add | BinOp::Sub | BinOp::Mul | BinOp::Div | BinOp::Mod
973    )
974}
975
976/// Does this comparison need the owned path — because a value's type
977/// wants it, because a CI collation folds it, or (MySQL) because a mixed
978/// string/number pair compares NUMERICALLY there while two strings
979/// compare as strings.
980#[inline(never)]
981fn needs_owned_compare(
982    lc: &Value<'_>,
983    rc: &Value<'_>,
984    lhs: &Expr,
985    rhs: &Expr,
986    ctx: &EvalContext<'_>,
987) -> bool {
988    is_owned_compare_value(lc)
989        || is_owned_compare_value(rc)
990        || compare_is_case_insensitive(lhs, rhs, ctx)
991        || (ctx.mysql_dialect && mysql_mixed_pair(lc, rc))
992}
993
994/// Which operators take MySQL's string→number reading.
995const fn mysql_coerces(op: BinOp) -> bool {
996    matches!(
997        op,
998        BinOp::Add
999            | BinOp::Sub
1000            | BinOp::Mul
1001            | BinOp::Div
1002            | BinOp::Mod
1003            | BinOp::Eq
1004            | BinOp::NotEq
1005            | BinOp::Lt
1006            | BinOp::LtEq
1007            | BinOp::Gt
1008            | BinOp::GtEq
1009    )
1010}
1011
1012/// Does this type take part in MySQL's numeric coercion?
1013fn is_numeric_type(t: spg_storage::DataType) -> bool {
1014    use spg_storage::DataType as D;
1015    matches!(
1016        t,
1017        D::SmallInt | D::Int | D::BigInt | D::Float | D::Real | D::Numeric { .. }
1018    )
1019}
1020
1021/// v7.39 (round 364, M4 P2) — a value as it participates in a MySQL
1022/// session's default-collation comparison: text folds (accent- and
1023/// case-insensitive), everything else is itself. Used by IN and LIKE,
1024/// whose comparisons do not pass through `collation_fold_for_compare`.
1025fn mysql_collation_key(v: Value<'static>, mysql: bool, pads: bool) -> Value<'static> {
1026    match v {
1027        // v7.38.16 — BpChar too. `mysql_compare_fold` trims trailing
1028        // spaces before folding, which is the PAD SPACE half of the same
1029        // comparison, so a CHAR cell needs exactly this call and was not
1030        // getting it: `s IN ('ALPHA','BETA')` on CHAR(8) answered 1 where
1031        // MySQL 9.7.1 answers 1,2. `eval/values.rs` had the pair right
1032        // and these two sites did not.
1033        // v7.38.17 — CHAR's padding is not data, TEXT's trailing
1034        // spaces are. Two calls because they are two questions.
1035        // v7.38.18 — and the collation's padding rule. A CHAR's padding
1036        // is the type's and never counts; a TEXT's is the collation's.
1037        // `t IN ('ALPHA')` on a `utf8mb4_uca1400_ai_ci` column — what a
1038        // MariaDB dump declares — missed the row holding `'alpha  '`,
1039        // which MariaDB 12.3.2 matches.
1040        Value::BpChar(s) if mysql => Value::text(spg_storage::mysql_compare_fold_char(&s)),
1041        Value::Text(s) if mysql && pads => Value::text(spg_storage::mysql_compare_fold_char(&s)),
1042        Value::Text(s) if mysql => Value::text(spg_storage::mysql_compare_fold(&s)),
1043        other => other,
1044    }
1045}
1046
1047/// A string as MySQL reads it in numeric position: an exact integer when
1048/// the leading number is one, otherwise a double.
1049#[inline(never)]
1050fn mysql_number_of(s: &str) -> Value<'static> {
1051    let n = mysql_leading_number(s);
1052    if n.fract() == 0.0 && n.abs() < 9.007_199_254_740_992e15 {
1053        #[allow(clippy::cast_possible_truncation)]
1054        Value::BigInt(n as i64)
1055    } else {
1056        Value::Float(n)
1057    }
1058}
1059
1060/// v7.39 (round 367, M20 P2) — a MySQL binary string (a `0x…` / `X'…'` /
1061/// `b'…'` literal, backed by `Value::Bytes`) reads as its bytes'
1062/// BIG-ENDIAN unsigned integer in a numeric context: `0x4142 + 0` is
1063/// 16706, `0x10 = 16` is true (measured on MariaDB 11). Only the low 16
1064/// bytes participate — a hex literal used in arithmetic is at most an
1065/// 8-byte BIGINT in practice — and a value past `i64::MAX` becomes a
1066/// NUMERIC so nothing wraps negative.
1067fn mysql_bytes_as_number(b: &[u8]) -> Value<'static> {
1068    let start = b.len().saturating_sub(16);
1069    let acc = b[start..]
1070        .iter()
1071        .fold(0u128, |a, &x| (a << 8) | u128::from(x));
1072    if acc <= i64::MAX as u128 {
1073        #[allow(clippy::cast_possible_truncation)]
1074        Value::BigInt(acc as i64)
1075    } else {
1076        crate::conversions::big_literal_to_value(&alloc::format!("{acc}"))
1077    }
1078}
1079
1080/// MySQL's `/`: a real division, and NULL on a zero divisor. `None`
1081/// when this pairing is not the integer/integer case PG and MySQL
1082/// disagree about.
1083#[inline(never)]
1084pub(crate) fn mysql_true_division(
1085    op: BinOp,
1086    l: &Value<'_>,
1087    r: &Value<'_>,
1088    text_operand: bool,
1089) -> Option<Value<'static>> {
1090    // v7.39 (round 372) — MySQL's `x % 0` / `x MOD 0` is NULL, not the PG
1091    // "division by zero" error (measured on MariaDB 11: `10%0`, `10 MOD
1092    // 0`, `10.5%0` are all NULL, matching `1/0`). A non-zero divisor takes
1093    // the normal modulo path.
1094    if matches!(op, BinOp::Mod) {
1095        return if value_is_zero(r) {
1096            Some(Value::Null)
1097        } else {
1098            None
1099        };
1100    }
1101    if !matches!(op, BinOp::Div) {
1102        return None;
1103    }
1104    // v7.39 (round 393) — MariaDB `/` on exact (int / decimal) operands is a
1105    // DECIMAL whose scale is the LEFT operand's scale + 4 (`7/2` is 3.5000,
1106    // `10.0/3` is 3.33333, `7.00/2` is 3.500000), NOT a float. A float /
1107    // double operand — or a STRING one, `'10'/'4'` is 2.5 (double) — makes
1108    // the result a float; a zero divisor is NULL.
1109    if text_operand
1110        || matches!(l, Value::Float(_) | Value::Real(_))
1111        || matches!(r, Value::Float(_) | Value::Real(_))
1112    {
1113        let f = |v: &Value<'_>| -> Option<f64> {
1114            match v {
1115                Value::Float(x) => Some(*x),
1116                Value::Real(x) => Some(f64::from(*x)),
1117                Value::SmallInt(n) => Some(f64::from(*n)),
1118                Value::Int(n) => Some(f64::from(*n)),
1119                #[allow(clippy::cast_precision_loss)]
1120                Value::BigInt(n) => Some(*n as f64),
1121                _ => None,
1122            }
1123        };
1124        let (a, b) = (f(l)?, f(r)?);
1125        return Some(if b == 0.0 {
1126            Value::Null
1127        } else {
1128            Value::Float(a / b)
1129        });
1130    }
1131    let (ls, lsc) = exact_decimal_parts(l)?;
1132    let (rs, rsc) = exact_decimal_parts(r)?;
1133    if rs == 0 {
1134        return Some(Value::Null);
1135    }
1136    let result_scale = u32::from(lsc) + 4;
1137    // result_scaled = round( ls * 10^(rsc + 4) / rs ), half away from zero.
1138    let pow = 10i128.checked_pow(u32::from(rsc) + 4)?;
1139    let num = ls.checked_mul(pow)?;
1140    let q = num / rs;
1141    let rem = num % rs;
1142    let bump = if rem.unsigned_abs() * 2 >= rs.unsigned_abs() {
1143        if (num < 0) == (rs < 0) { 1 } else { -1 }
1144    } else {
1145        0
1146    };
1147    Some(Value::numeric(q + bump, u16::try_from(result_scale).ok()?))
1148}
1149
1150/// The `(scaled, scale)` of an exact integer / NUMERIC value: an integer
1151/// has scale 0. None for a float / non-numeric (they take the float path).
1152fn exact_decimal_parts(v: &Value<'_>) -> Option<(i128, u16)> {
1153    match v {
1154        Value::SmallInt(n) => Some((i128::from(*n), 0)),
1155        Value::Int(n) => Some((i128::from(*n), 0)),
1156        Value::BigInt(n) => Some((i128::from(*n), 0)),
1157        Value::Numeric {
1158            scaled,
1159            scale,
1160            kind: spg_storage::NumericKind::Finite,
1161        } => Some((*scaled, *scale)),
1162        _ => None,
1163    }
1164}
1165
1166/// v7.39 (round 383) — the UNSIGNED 64-bit value a MySQL bitwise operand
1167/// reads as. MySQL's `& | ^ ~ << >>` all work on `BIGINT UNSIGNED`, so an
1168/// operand is its 64-bit two's-complement pattern (a negative integer:
1169/// `-5` is `0xFFFF…FB`), rounded to the nearest integer (a float / numeric:
1170/// `2.9` is 3), its big-endian value (a `0x…` binary string), or its
1171/// leading number (a string). Anything else (an inet, a range, a
1172/// bit-string) returns None so the operator keeps its own meaning.
1173#[allow(clippy::cast_possible_truncation, clippy::cast_sign_loss)]
1174fn mysql_bit_u64(v: &Value<'_>) -> Option<u64> {
1175    match v {
1176        Value::SmallInt(n) => Some(i64::from(*n) as u64),
1177        Value::Int(n) => Some(i64::from(*n) as u64),
1178        Value::BigInt(n) => Some(*n as u64),
1179        Value::Bool(b) => Some(u64::from(*b)),
1180        Value::Float(x) => Some(x.round() as i64 as u64),
1181        Value::Real(x) => Some(f64::from(*x).round() as i64 as u64),
1182        Value::Numeric {
1183            scaled,
1184            scale,
1185            kind: spg_storage::NumericKind::Finite,
1186        } => {
1187            // Round half away from zero to an integer, then take the low
1188            // 64 bits (two's complement) — `~2.9` is `~3`.
1189            if *scale > 38 {
1190                return None;
1191            }
1192            let div = 10i128.pow(u32::from(*scale));
1193            let q = scaled / div;
1194            let rem = scaled % div;
1195            let rounded = if rem.unsigned_abs() * 2 >= div.unsigned_abs() {
1196                q + scaled.signum()
1197            } else {
1198                q
1199            };
1200            Some(rounded as u64)
1201        }
1202        Value::Bytes(b) => mysql_bit_u64(&mysql_bytes_as_number(b)),
1203        Value::Text(s) => mysql_bit_u64(&mysql_number_of(s)),
1204        _ => None,
1205    }
1206}
1207
1208/// A MySQL bitwise result — a `BIGINT UNSIGNED`. It stays a signed
1209/// `BigInt` while it fits (so an integer-context consumer — MAKE_SET
1210/// bits, ELT / SUBSTRING / REPEAT counts — still takes it); a value past
1211/// `i64::MAX` (a set bit 63, e.g. `~5`) has no signed integer type, so it
1212/// becomes a scale-0 NUMERIC, which holds the whole `0..=2^64-1` range and
1213/// renders as the plain integer MySQL prints.
1214fn u64_as_value(n: u64) -> Value<'static> {
1215    match i64::try_from(n) {
1216        Ok(v) => Value::BigInt(v),
1217        Err(_) => Value::numeric(i128::from(n), 0),
1218    }
1219}
1220
1221/// v7.39 (round 383) — the MySQL bitwise operators on UNSIGNED 64-bit
1222/// integers. Returns None when either operand is not number-like (so an
1223/// `inet << int` / `bit(n) & bit(n)` / geometric `#` keeps its own path)
1224/// or the operator is not bitwise. A shift of 64 or more is 0 (MySQL does
1225/// not mask the shift count).
1226pub(crate) fn mysql_bitwise(op: BinOp, l: &Value<'_>, r: &Value<'_>) -> Option<Value<'static>> {
1227    let out = match op {
1228        BinOp::BitAnd => mysql_bit_u64(l)? & mysql_bit_u64(r)?,
1229        BinOp::BitOr => mysql_bit_u64(l)? | mysql_bit_u64(r)?,
1230        BinOp::BitXor => mysql_bit_u64(l)? ^ mysql_bit_u64(r)?,
1231        // `<<` / `>>` share the inet-containment BinOps; a numeric pair is a
1232        // shift, anything else stays inet / range / bit-string.
1233        BinOp::InetContainedBy => {
1234            let (a, n) = (mysql_bit_u64(l)?, mysql_bit_u64(r)?);
1235            if n >= 64 { 0 } else { a << n }
1236        }
1237        BinOp::InetContains => {
1238            let (a, n) = (mysql_bit_u64(l)?, mysql_bit_u64(r)?);
1239            if n >= 64 { 0 } else { a >> n }
1240        }
1241        _ => return None,
1242    };
1243    Some(u64_as_value(out))
1244}
1245
1246/// v7.39 (round 383) — MySQL unary `~x`: the UNSIGNED 64-bit complement
1247/// (`~5` is 18446744073709551610). None for a non-number operand (a
1248/// bit-string / inet / macaddr keeps PG's typed complement).
1249pub(crate) fn mysql_bit_not(v: &Value<'_>) -> Option<Value<'static>> {
1250    Some(u64_as_value(!mysql_bit_u64(v)?))
1251}
1252
1253/// v7.39 (round 390, type-fidelity epic P5) — the inline `SET('a','b',…)`
1254/// variant list an expression's column is declared with, or None. Mirrors
1255/// `expr_enum_type_name` — a bare `Expr::Column` looked up by name.
1256pub(crate) fn expr_set_variants<'e>(
1257    e: &'e Expr,
1258    columns: &'e [ColumnSchema],
1259) -> Option<&'e [String]> {
1260    match e {
1261        Expr::Column(c) => columns
1262            .iter()
1263            .find(|col| col.name == c.name)
1264            .and_then(|col| col.inline_set_variants.as_deref()),
1265        _ => None,
1266    }
1267}
1268
1269/// v7.39 (round 402) — the inline `ENUM('a','b',…)` variant list an
1270/// expression's column is declared with, or None. Like `expr_set_variants`.
1271pub(crate) fn expr_inline_enum_variants<'e>(
1272    e: &'e Expr,
1273    columns: &'e [ColumnSchema],
1274) -> Option<&'e [String]> {
1275    match e {
1276        Expr::Column(c) => columns
1277            .iter()
1278            .find(|col| col.name == c.name)
1279            .and_then(|col| col.inline_enum_variants.as_deref()),
1280        _ => None,
1281    }
1282}
1283
1284/// The 1-based ordinal a stored inline-ENUM text carries in a numeric
1285/// context (`e + 0` is 1 for the first member); the empty string / an
1286/// unknown member is 0 (MySQL's implicit `''` enum error value).
1287pub(crate) fn enum_text_to_ordinal(text: &str, variants: &[String]) -> i64 {
1288    variants
1289        .iter()
1290        .position(|v| v == text)
1291        .map_or(0, |p| p as i64 + 1)
1292}
1293
1294/// The bitmask a stored SET text carries in a numeric context: each
1295/// comma-separated member contributes `1 << its position` in the declared
1296/// variant list (`'a,c'` over `('a','b','c','d')` is 1 | 4 = 5). An empty
1297/// string is 0; an unknown member (should not occur — the write path
1298/// validates) contributes nothing.
1299pub(crate) fn set_text_to_bitmask(text: &str, variants: &[String]) -> i64 {
1300    if text.is_empty() {
1301        return 0;
1302    }
1303    let mut bits = 0i64;
1304    for member in text.split(',') {
1305        if let Some(pos) = variants.iter().position(|v| v == member) {
1306            bits |= 1i64 << pos;
1307        }
1308    }
1309    bits
1310}
1311
1312/// Is this an arithmetic / bitwise operator MySQL evaluates a SET column
1313/// numerically under? (`s + 0`, `s & flag`, …). The comparison operators
1314/// are NOT here — `s = 'a,c'` stays a text compare.
1315pub(crate) const fn is_mysql_numeric_binop(op: BinOp) -> bool {
1316    matches!(
1317        op,
1318        BinOp::Add
1319            | BinOp::Sub
1320            | BinOp::Mul
1321            | BinOp::Div
1322            | BinOp::Mod
1323            | BinOp::BitAnd
1324            | BinOp::BitOr
1325            | BinOp::BitXor
1326            | BinOp::InetContainedBy
1327            | BinOp::InetContains
1328    )
1329}
1330
1331/// v7.39 (round 372) — is `v` a numeric zero (any width / kind)? Used to
1332/// route `x % 0` / `MOD(x, 0)` to NULL under the MySQL dialect.
1333pub(crate) fn value_is_zero(v: &Value<'_>) -> bool {
1334    match v {
1335        Value::SmallInt(n) => *n == 0,
1336        Value::Int(n) => *n == 0,
1337        Value::BigInt(n) => *n == 0,
1338        Value::Float(x) => *x == 0.0,
1339        Value::Real(x) => *x == 0.0,
1340        Value::Numeric { scaled, .. } => *scaled == 0,
1341        _ => false,
1342    }
1343}
1344
1345/// `-'5'` in the MySQL dialect. Out-of-line for the same frame reason.
1346#[inline(never)]
1347fn mysql_negate_text(
1348    op: spg_sql::ast::UnOp,
1349    v: &Value<'static>,
1350) -> Option<Result<Value<'static>, EvalError>> {
1351    match v {
1352        Value::Text(t) => Some(apply_unary(op, mysql_number_of(t))),
1353        _ => None,
1354    }
1355}
1356
1357/// The MySQL reading of a unary operator, or None to let `apply_unary` (the
1358/// PG path) run. Kept out of `eval_expr`'s recursive frame — see the
1359/// round-383 frame cliff. Covers `NOT` on any truth value (round 346),
1360/// `-'str'` numeric negation (round 351), and the unsigned `~` complement
1361/// (round 383).
1362#[inline(never)]
1363fn mysql_unary_arm(
1364    op: spg_sql::ast::UnOp,
1365    v: &Value<'static>,
1366) -> Option<Result<Value<'static>, EvalError>> {
1367    use spg_sql::ast::UnOp;
1368    match op {
1369        // `NOT 5` is 0 — read any non-bool as a truth value; a bool / NULL
1370        // keeps the PG path (still refused there for non-bool).
1371        UnOp::Not if !matches!(v, Value::Bool(_) | Value::Null) => Some(mysql_not(v)),
1372        // `-'5'` is -5, `-'abc'` is 0.
1373        UnOp::Neg => mysql_negate_text(op, v),
1374        // `+ anything` is that thing: measured on MariaDB 11, `+'x'` is
1375        // 'x', `+TRUE` is 1, `+NULL` is NULL. No type check at all, unlike
1376        // PG, which refuses every non-numeric operand.
1377        UnOp::Plus => Some(Ok(v.clone())),
1378        // `~5` is the unsigned 64-bit complement; NULL stays NULL (PG path).
1379        UnOp::BitNot if !matches!(v, Value::Null) => mysql_bit_not(v).map(Ok),
1380        _ => None,
1381    }
1382}
1383
1384/// A date / timestamp string as its temporal value, or `None` when it is
1385/// not one (in which case the operand is left exactly as it was).
1386#[inline(never)]
1387fn text_as_temporal(t: &str) -> Option<Value<'static>> {
1388    parse_timestamp_literal(t)
1389        .map(Value::Timestamp)
1390        .or_else(|| parse_date_literal(t).map(Value::Date))
1391}
1392
1393/// v7.39 (round 620) — an unadorned string literal, which is what PG calls
1394/// `unknown`: a value whose type the context gets to choose. `''::TEXT` is
1395/// not one, and neither is a text column.
1396fn is_unknown_string_literal(e: &Expr) -> bool {
1397    matches!(e, Expr::Literal(spg_sql::ast::Literal::String(_)))
1398}
1399
1400/// v7.39 (round 620) — resolve such a literal to boolean, which is what a
1401/// boolean connective asks of it. An unparseable one is PG's input-syntax
1402/// error (22P02), not a type complaint: `'a' AND true` says
1403/// `invalid input syntax for type boolean: "a"`, exactly as `'a'::BOOLEAN`
1404/// does — same failure, same words, because it is the same coercion.
1405#[inline(never)]
1406fn coerce_unknown_literal_to_bool(e: &Expr) -> Result<Value<'static>, EvalError> {
1407    let Expr::Literal(spg_sql::ast::Literal::String(s)) = e else {
1408        unreachable!("guarded by is_unknown_string_literal")
1409    };
1410    cast::cast_value_in(
1411        Value::Text(s.clone().into()),
1412        spg_sql::ast::CastTarget::Bool,
1413        false,
1414    )
1415}
1416
1417/// v7.39 (round 621) — a literal that is plainly not a boolean, and the PG
1418/// type name for it. `NULL` and a bare string literal are deliberately absent:
1419/// neither carries a type of its own, and a boolean connective is a context
1420/// that gives them one.
1421fn non_boolean_literal_type(e: &Expr) -> Option<&'static str> {
1422    use spg_sql::ast::Literal as L;
1423    match e {
1424        Expr::Literal(L::Integer(_)) => Some("integer"),
1425        Expr::Literal(L::Float(_)) => Some("double precision"),
1426        Expr::Literal(L::Numeric { .. } | L::NumericBig(_)) => Some("numeric"),
1427        _ => None,
1428    }
1429}
1430
1431/// v7.39 (round 621) — `AND` / `OR`, evaluated the way PG evaluates them.
1432///
1433/// Round 620 handled the unknown literal here; round 621 adds the part that
1434/// makes `WHERE x <> 0 AND 1/x > 0` work at all. SPG evaluated both sides
1435/// always, so the guard idiom — the whole reason that predicate is written
1436/// that way — raised on the very rows the guard exists to exclude. Measured
1437/// against PG: `false AND (1/0 = 0)` answers `f`, `true OR (1/0 = 0)` answers
1438/// `t`, and a filter guarded that way returns its rows.
1439///
1440/// PG affords that AND still refuses `false AND 1`, because the two happen at
1441/// different times: the operand types are checked during ANALYSIS, before any
1442/// evaluation, and the short circuit is a RUN-TIME decision. Both parts are
1443/// here — the right-hand operand's type is read statically (it is the side
1444/// that may go unevaluated), and only a type that is definitively known and
1445/// definitively not boolean is refused. An unknown type is left alone, so a
1446/// shape the describer cannot type keeps the old behaviour rather than
1447/// earning a spurious error.
1448///
1449/// Order is PG's too, and it is strictly left-first: `(1/0 = 0) AND false`
1450/// raises on both, because the left is evaluated before anything can decide
1451/// that it did not need to be.
1452///
1453/// Out-of-line so it costs `eval_expr` no frame (the round-305 frame cliff).
1454#[inline(never)]
1455fn eval_connective(
1456    lhs: &Expr,
1457    op: BinOp,
1458    rhs: &Expr,
1459    row: &Row<'static>,
1460    ctx: &EvalContext<'_>,
1461) -> Result<Value<'static>, EvalError> {
1462    let side = |e: &Expr| -> Result<Value<'static>, EvalError> {
1463        if is_unknown_string_literal(e) {
1464            coerce_unknown_literal_to_bool(e)
1465        } else {
1466            eval_expr(e, row, ctx)
1467        }
1468    };
1469    let l = side(lhs)?;
1470    // The analysis-time half: refuse a right-hand operand that is plainly not
1471    // boolean, whether or not the short circuit would reach it.
1472    //
1473    // Only a LITERAL is read this way. The first cut asked
1474    // `describe_expr_type` for any expression's type, and it answers
1475    // confidently and wrongly for shapes that matter here — `NULL` comes back
1476    // as text, so `true AND NULL` earned a type error; and a MATCH … AGAINST
1477    // folds internally into an OR over tsvector operands, so full-text search
1478    // stopped working. Three existing pins caught all of it. A literal cannot
1479    // be misread, and it is what PG's own refusals in this area are about.
1480    if let Some(ty) = non_boolean_literal_type(rhs) {
1481        return Err(EvalError::TypeMismatch {
1482            detail: alloc::format!(
1483                "argument of {} must be type boolean, not type {ty}",
1484                if matches!(op, BinOp::And) {
1485                    "AND"
1486                } else {
1487                    "OR"
1488                },
1489            ),
1490        });
1491    }
1492    // Resolving an unknown literal belongs to the same half — it is a
1493    // coercion PG performs while analysing, so `false AND 'a'` says
1494    // `invalid input syntax for type boolean: "a"` rather than answering `f`.
1495    let rhs_resolved = if is_unknown_string_literal(rhs) {
1496        Some(coerce_unknown_literal_to_bool(rhs)?)
1497    } else {
1498        None
1499    };
1500    // The run-time half.
1501    match (op, &l) {
1502        (BinOp::And, Value::Bool(false)) => return Ok(Value::Bool(false)),
1503        (BinOp::Or, Value::Bool(true)) => return Ok(Value::Bool(true)),
1504        _ => {}
1505    }
1506    let r = match rhs_resolved {
1507        Some(v) => v,
1508        None => side(rhs)?,
1509    };
1510    if matches!(op, BinOp::And) {
1511        and_3vl(l, r)
1512    } else {
1513        apply_binary(op, l, r)
1514    }
1515}
1516
1517/// v7.39 (round 346, M1) — the MySQL reading of `AND` / `OR`, out-of-line
1518/// so it costs `eval_expr` no frame (see the round-305 frame cliff).
1519#[inline(never)]
1520fn eval_mysql_connective(
1521    lhs: &Expr,
1522    op: BinOp,
1523    rhs: &Expr,
1524    row: &Row<'static>,
1525    ctx: &EvalContext<'_>,
1526) -> Result<Value<'static>, EvalError> {
1527    let l = as_mysql_truth(eval_expr(lhs, row, ctx)?)?;
1528    let r = as_mysql_truth(eval_expr(rhs, row, ctx)?)?;
1529    apply_mysql_connective(op, l, r)
1530}
1531
1532/// v7.39 (round 407) — apply a MySQL logical connective (`AND` / `OR` /
1533/// `XOR`) to two operands already reduced to truth values (`Bool` or
1534/// `Null`). AND / OR reuse the dialect-blind `apply_binary`; `XOR` is
1535/// MySQL-only (no `apply_binary` arm) and computed here: NULL on either
1536/// side yields NULL, otherwise the exclusive-or of the two truth values.
1537pub(crate) fn apply_mysql_connective(
1538    op: BinOp,
1539    l: Value<'static>,
1540    r: Value<'static>,
1541) -> Result<Value<'static>, EvalError> {
1542    if op == BinOp::LogicalXor {
1543        return Ok(match (&l, &r) {
1544            (Value::Bool(a), Value::Bool(b)) => Value::Bool(a != b),
1545            _ => Value::Null,
1546        });
1547    }
1548    apply_binary(op, l, r)
1549}
1550
1551#[inline(never)]
1552pub(crate) fn as_mysql_truth(v: Value<'static>) -> Result<Value<'static>, EvalError> {
1553    Ok(match v {
1554        Value::Null => Value::Null,
1555        other => Value::Bool(predicate_is_true(&other, "AND", true)?),
1556    })
1557}
1558
1559/// The MySQL reading of `NOT`, likewise out-of-line.
1560#[inline(never)]
1561fn mysql_not(v: &Value<'_>) -> Result<Value<'static>, EvalError> {
1562    Ok(Value::Bool(!predicate_is_true(v, "NOT", true)?))
1563}
1564
1565/// v7.39 (round 346, M1) — is this value TRUE, in a position that wants a
1566/// truth value (WHERE / CASE WHEN / NOT / AND / OR / HAVING / ON)?
1567///
1568/// The engine used to write `matches!(v, Value::Bool(true))` at every such
1569/// position, so anything that was not already a boolean silently read as
1570/// FALSE. `SELECT CASE WHEN 1 THEN 'a' END` answered NULL and — far worse —
1571/// `SELECT … WHERE 1` returned **no rows at all**. Neither dialect does
1572/// that: MariaDB 11 takes any non-zero number as true, and PG 18.4 raises
1573/// `argument of WHERE must be type boolean, not type integer`.
1574///
1575/// NULL is not true (three-valued logic) and is not an error in either.
1576pub(crate) fn predicate_is_true(v: &Value<'_>, kw: &str, mysql: bool) -> Result<bool, EvalError> {
1577    match v {
1578        Value::Bool(b) => Ok(*b),
1579        Value::Null => Ok(false),
1580        _ if mysql => Ok(mysql_truthy(v)),
1581        // PG resolves a bare literal in this position through boolean
1582        // INPUT, so `CASE WHEN 'true'` is legal and `'abc'` is not.
1583        Value::Text(t) => match crate::eval::cast::cast_value(
1584            Value::text(t.to_string()),
1585            spg_sql::ast::CastTarget::Bool,
1586        )? {
1587            Value::Bool(b) => Ok(b),
1588            _ => Ok(false),
1589        },
1590        other => Err(EvalError::TypeMismatch {
1591            detail: alloc::format!(
1592                "argument of {kw} must be type boolean, not type {}",
1593                crate::eval::strings::pg_typeof_name(other)
1594            ),
1595        }),
1596    }
1597}
1598
1599/// MariaDB 11's reading, measured: a number is true when it is not zero
1600/// (`-1` and `0.5` are both true); a string contributes its LEADING
1601/// number, so `'1abc'` is true while `'abc'` and `''` are false.
1602fn mysql_truthy(v: &Value<'_>) -> bool {
1603    match v {
1604        Value::Bool(b) => *b,
1605        Value::Null => false,
1606        Value::SmallInt(n) => *n != 0,
1607        Value::Int(n) => *n != 0,
1608        Value::BigInt(n) => *n != 0,
1609        Value::Float(f) => *f != 0.0,
1610        Value::Real(f) => *f != 0.0,
1611        Value::Numeric { scaled, .. } => *scaled != 0,
1612        Value::Text(t) => mysql_leading_number(t) != 0.0,
1613        Value::BpChar(t) => mysql_leading_number(t) != 0.0,
1614        // Everything else converts to a non-zero number in MariaDB (a
1615        // DATE reads as its YYYYMMDD digits, for one).
1616        _ => true,
1617    }
1618}
1619
1620/// The leading numeric prefix of a string, MySQL-style: `'1abc'` is 1,
1621/// `'abc'` and `''` are 0.
1622#[inline(never)]
1623pub(crate) fn mysql_leading_number(s: &str) -> f64 {
1624    let t = s.trim_start();
1625    let mut end = 0usize;
1626    let mut seen_dot = false;
1627    let mut seen_digit = false;
1628    // v7.39 (round 351, M11) — the exponent form counts: MariaDB reads
1629    // `'1e3'` as 1000 and `'1.5e2'` as 150 (measured). A trailing `e`
1630    // with no digits after it is not part of the number (`'1e'` is 1).
1631    let mut seen_exp = false;
1632    let mut exp_at = 0usize;
1633    for (i, c) in t.char_indices() {
1634        match c {
1635            '-' | '+' if i == 0 => {}
1636            '-' | '+' if seen_exp && i == exp_at + 1 => {}
1637            '0'..='9' => seen_digit = true,
1638            '.' if !seen_dot && !seen_exp => seen_dot = true,
1639            'e' | 'E' if seen_digit && !seen_exp => {
1640                seen_exp = true;
1641                exp_at = i;
1642            }
1643            _ => break,
1644        }
1645        end = i + c.len_utf8();
1646    }
1647    if !seen_digit {
1648        return 0.0;
1649    }
1650    // Trim an exponent that never got its digits.
1651    let mut text = &t[..end];
1652    while !text.is_empty() && text.parse::<f64>().is_err() {
1653        text = &text[..text.len() - 1];
1654    }
1655    text.parse::<f64>().unwrap_or(0.0)
1656}
1657
1658/// v7.39 (read01 ruleutils.c) — resolve a relation name to its synthetic
1659/// oid: user tables in the 16384+ band (table_names order), views at
1660/// 32768+, and the synthesised system catalogs at their REAL PG oids.
1661/// `None` when the name is unknown (the caller keeps the legacy text
1662/// behaviour so `'anything'::regclass::text` still round-trips).
1663pub(crate) fn regclass_name_to_oid(cat: &spg_storage::Catalog, bare: &str) -> Option<i64> {
1664    // v7.39 (round 337, V62) — an INDEX and a SEQUENCE are relations too:
1665    // both have a `pg_class` row, so both answer to `::regclass` in PG.
1666    // v7.39 (round 338, V64) — and the bands live in ONE allocator now,
1667    // shared with the catalog synths, so `pg_class.oid = 'x'::regclass`
1668    // holds for every kind rather than only for tables.
1669    if let Some(oid) = crate::system_catalog::relation_oid(cat, bare) {
1670        return Some(oid);
1671    }
1672    Some(match bare {
1673        "pg_type" => 1247,
1674        "pg_attribute" => 1249,
1675        "pg_proc" => 1255,
1676        "pg_class" => 1259,
1677        "pg_database" => 1262,
1678        "pg_constraint" => 2606,
1679        "pg_index" => 2610,
1680        "pg_namespace" => 2615,
1681        // v7.39 (round 650) — the text-search catalogs. This list is a
1682        // hand-kept subset of `CATALOG_RELATIONS`, which is why adding a
1683        // catalog there was not enough for `'pg_ts_config'::regclass`.
1684        "pg_ts_config" => 3602,
1685        "pg_ts_config_map" => 3603,
1686        "pg_ts_dict" => 3600,
1687        "pg_ts_parser" => 3601,
1688        "pg_ts_template" => 3764,
1689        // 7.38.1 S5.1 — stop hand-copying: anything CATALOG_RELATIONS
1690        // publishes resolves here too (pg_dump's dependency pass casts
1691        // 'pg_extension' / 'pg_amop' / 'pg_opfamily'::regclass).
1692        other => {
1693            return crate::system_catalog::CATALOG_RELATIONS
1694                .iter()
1695                .find(|(n, _)| other.eq_ignore_ascii_case(n))
1696                .map(|(_, oid)| *oid);
1697        }
1698    })
1699}
1700
1701/// v7.39 (round 263) — crate-visible wrapper so the write path can
1702/// relabel + coerce a value into a composite column's declared type.
1703pub(crate) fn apply_composite_cast_pub(
1704    v: Value<'static>,
1705    comp: &spg_storage::CompositeDef,
1706    cat: Option<&spg_storage::Catalog>,
1707) -> Result<Value<'static>, EvalError> {
1708    apply_composite_cast_in(v, comp, cat)
1709}
1710
1711/// v7.39 (round 264) — resolve one field's value, recursing when the
1712/// field is itself a COMPOSITE. Without this a nested field kept the
1713/// inner record's TEXT rendering, so `(x).inner.street` errored and
1714/// `row_to_json` nested a string rather than an object.
1715fn coerce_composite_field(
1716    val: Value<'static>,
1717    fname: &str,
1718    fty: spg_storage::DataType,
1719    user_ty: Option<&str>,
1720    cat: Option<&spg_storage::Catalog>,
1721) -> Result<Value<'static>, EvalError> {
1722    if matches!(val, Value::Null) {
1723        return Ok(val);
1724    }
1725    if let Some(tn) = user_ty
1726        && let Some(inner) = cat.and_then(|c| c.composite_types().get(tn))
1727    {
1728        return apply_composite_cast_in(val, inner, cat);
1729    }
1730    crate::conversions::coerce_value(val, fty, fname, 0).map_err(|e| EvalError::TypeMismatch {
1731        detail: alloc::format!("{e}"),
1732    })
1733}
1734
1735fn apply_composite_cast(
1736    v: Value<'static>,
1737    comp: &spg_storage::CompositeDef,
1738) -> Result<Value<'static>, EvalError> {
1739    apply_composite_cast_in(v, comp, None)
1740}
1741
1742fn apply_composite_cast_in(
1743    v: Value<'static>,
1744    comp: &spg_storage::CompositeDef,
1745    cat: Option<&spg_storage::Catalog>,
1746) -> Result<Value<'static>, EvalError> {
1747    match v {
1748        Value::Null => Ok(Value::Null),
1749        Value::Composite(fields) => {
1750            if fields.len() != comp.fields.len() {
1751                // PG reports the SHAPE mismatch as a plain cast refusal.
1752                return Err(EvalError::TypeMismatch {
1753                    detail: alloc::format!("cannot cast type record to {}", comp.name),
1754                });
1755            }
1756            // v7.39 (round 263) — relabel AND coerce: this branch only
1757            // renamed the fields, so `ROW('x','notanint')::addr` kept the
1758            // text in an int field and PG's input error never fired.
1759            let mut out: alloc::vec::Vec<(alloc::string::String, Value<'static>)> =
1760                alloc::vec::Vec::with_capacity(comp.fields.len());
1761            for (i, ((name, fty), (_, val))) in comp.fields.iter().zip(fields).enumerate() {
1762                let ut = comp.field_user_types.get(i).and_then(Option::as_deref);
1763                let coerced = coerce_composite_field(val, name, *fty, ut, cat)?;
1764                out.push((name.clone(), coerced));
1765            }
1766            Ok(Value::Composite(out))
1767        }
1768        Value::Text(s) => {
1769            let raw = parse_record_text(s.as_ref()).ok_or_else(|| EvalError::TypeMismatch {
1770                detail: alloc::format!("malformed record literal: \"{s}\""),
1771            })?;
1772            if raw.len() != comp.fields.len() {
1773                return Err(EvalError::TypeMismatch {
1774                    detail: alloc::format!("malformed record literal: \"{s}\""),
1775                });
1776            }
1777            let mut out: alloc::vec::Vec<(alloc::string::String, Value<'static>)> =
1778                alloc::vec::Vec::with_capacity(raw.len());
1779            for (i, ((fname, fty), field_text)) in comp.fields.iter().zip(raw).enumerate() {
1780                let ut = comp.field_user_types.get(i).and_then(Option::as_deref);
1781                let val = match field_text {
1782                    None => Value::Null,
1783                    Some(t) => coerce_composite_field(Value::text(t), fname, *fty, ut, cat)?,
1784                };
1785                out.push((fname.clone(), val));
1786            }
1787            Ok(Value::Composite(out))
1788        }
1789        other => Err(EvalError::TypeMismatch {
1790            detail: alloc::format!(
1791                "cannot cast {} to composite type \"{}\"",
1792                crate::conversions::pg_type_name_for_error_opt(other.data_type()),
1793                comp.name
1794            ),
1795        }),
1796    }
1797}
1798
1799/// Split PG's record text `(f1,f2,...)` into per-field raw strings
1800/// (None = empty field = NULL). Double quotes wrap fields containing
1801/// metacharacters; `""` inside is a literal quote; a backslash escapes
1802/// the next character.
1803fn parse_record_text(s: &str) -> Option<alloc::vec::Vec<Option<alloc::string::String>>> {
1804    let t = s.trim();
1805    let inner = t.strip_prefix('(')?.strip_suffix(')')?;
1806    let mut out: alloc::vec::Vec<Option<alloc::string::String>> = alloc::vec::Vec::new();
1807    let chars: alloc::vec::Vec<char> = inner.chars().collect();
1808    let mut field = alloc::string::String::new();
1809    let mut quoted_seen = false;
1810    let mut i = 0usize;
1811    let mut in_quotes = false;
1812    loop {
1813        if i >= chars.len() {
1814            if in_quotes {
1815                return None;
1816            }
1817            out.push(if field.is_empty() && !quoted_seen {
1818                None
1819            } else {
1820                Some(field.clone())
1821            });
1822            break;
1823        }
1824        let c = chars[i];
1825        if in_quotes {
1826            match c {
1827                '"' if chars.get(i + 1) == Some(&'"') => {
1828                    field.push('"');
1829                    i += 2;
1830                }
1831                '"' => {
1832                    in_quotes = false;
1833                    i += 1;
1834                }
1835                '\\' => {
1836                    field.push(*chars.get(i + 1)?);
1837                    i += 2;
1838                }
1839                _ => {
1840                    field.push(c);
1841                    i += 1;
1842                }
1843            }
1844        } else {
1845            match c {
1846                '"' => {
1847                    in_quotes = true;
1848                    quoted_seen = true;
1849                    i += 1;
1850                }
1851                ',' => {
1852                    out.push(if field.is_empty() && !quoted_seen {
1853                        None
1854                    } else {
1855                        Some(core::mem::take(&mut field))
1856                    });
1857                    quoted_seen = false;
1858                    i += 1;
1859                }
1860                '\\' => {
1861                    field.push(*chars.get(i + 1)?);
1862                    i += 2;
1863                }
1864                _ => {
1865                    field.push(c);
1866                    i += 1;
1867                }
1868            }
1869        }
1870    }
1871    Some(out)
1872}
1873
1874fn apply_enum_cast<'a>(
1875    v: Value<'a>,
1876    en: &spg_storage::EnumDef,
1877    name: &str,
1878) -> Result<Value<'a>, EvalError> {
1879    match &v {
1880        Value::Null => Ok(v),
1881        Value::Text(s) => {
1882            if en.labels.iter().any(|l| l.as_str() == s.as_ref()) {
1883                Ok(v)
1884            } else {
1885                Err(EvalError::TypeMismatch {
1886                    detail: alloc::format!("invalid input value for enum {name}: {s:?}"),
1887                })
1888            }
1889        }
1890        other => Err(EvalError::TypeMismatch {
1891            detail: alloc::format!(
1892                "cannot cast {} to enum {name}",
1893                crate::conversions::pg_type_name_for_error_opt(other.data_type())
1894            ),
1895        }),
1896    }
1897}
1898
1899/// v7.39 (read01 utils/adt, enum.c) — enum_first / enum_last /
1900/// enum_range resolved from the argument's STATIC enum type (an explicit
1901/// `::enumtype` cast or a column's `ColumnSchema.user_enum_type`) over the
1902/// catalog's member order. Returns None when no argument names a known
1903/// enum, letting the generic function path produce its usual error.
1904/// Out-of-line (`inline(never)`) so the sizable locals don't land in
1905/// `eval_expr`'s recursion frame.
1906/// Enum-ness lives outside the DataType lattice: the witness for "this
1907/// expression is enum-typed" is an explicit `::enumtype` cast or a column
1908/// whose `ColumnSchema.user_enum_type` is set.
1909/// v7.39 (round 258) — crate-visible wrapper so the projection builder
1910/// can keep an expression's enum identity (see `select.rs`).
1911pub(crate) fn expr_enum_type_name_pub<'e>(
1912    e: &'e Expr,
1913    columns: &'e [ColumnSchema],
1914) -> Option<&'e str> {
1915    expr_enum_type_name(e, columns)
1916}
1917
1918/// v7.39 (round 425) — the fractional-seconds precision a projected
1919/// expression should RENDER with: the widest declared precision among the
1920/// MySQL temporal columns it reads. `MAX(d3)` and `d3 + INTERVAL 1 SECOND`
1921/// both keep `d3`'s three digits, as MariaDB does. `None` when the
1922/// expression touches no such column, which leaves PG rendering untouched.
1923///
1924/// Residual (recorded, not modelled): MariaDB also WIDENS the precision from
1925/// some operands — `DATE_ADD(d3, INTERVAL 1 MICROSECOND)` prints six digits
1926/// there. Taking the max over referenced columns covers the common shapes
1927/// and never narrows below the source column.
1928pub(crate) fn expr_mysql_fsp(e: &Expr, columns: &[ColumnSchema]) -> Option<u8> {
1929    fn walk(e: &Expr, columns: &[ColumnSchema], best: &mut Option<u8>) {
1930        match e {
1931            Expr::Column(c) => {
1932                if let Some(f) = columns
1933                    .iter()
1934                    .find(|col| col.name == c.name)
1935                    .and_then(|col| col.mysql_fsp)
1936                {
1937                    *best = Some(best.map_or(f, |b: u8| b.max(f)));
1938                }
1939            }
1940            Expr::Binary { lhs, rhs, .. } => {
1941                walk(lhs, columns, best);
1942                walk(rhs, columns, best);
1943            }
1944            Expr::Unary { expr, .. } | Expr::Cast { expr, .. } => walk(expr, columns, best),
1945            Expr::FunctionCall { args, .. } => {
1946                for a in args {
1947                    walk(a, columns, best);
1948                }
1949            }
1950            Expr::Case {
1951                operand,
1952                branches,
1953                else_branch,
1954            } => {
1955                if let Some(o) = operand.as_deref() {
1956                    walk(o, columns, best);
1957                }
1958                for (w, t) in branches {
1959                    walk(w, columns, best);
1960                    walk(t, columns, best);
1961                }
1962                if let Some(el) = else_branch.as_deref() {
1963                    walk(el, columns, best);
1964                }
1965            }
1966            _ => {}
1967        }
1968    }
1969    let mut best = None;
1970    walk(e, columns, &mut best);
1971    best
1972}
1973
1974/// v7.39 (round 467) — is this expression MySQL-UNSIGNED?
1975///
1976/// MySQL decides unsignedness statically, from the expression's type, not
1977/// from the value it happens to produce. Measured on MariaDB 11: `SUM(a) -
1978/// 100` answers -99 even though `a` is `INT UNSIGNED`, because SUM's result
1979/// type is not unsigned; `a - 5` on the same column raises 1690. So this
1980/// walks the expression the way MySQL's type resolution does.
1981///
1982/// A cast names its target `unsigned` (the parser lowercases MySQL's
1983/// `CAST(x AS UNSIGNED)` into `CastTarget::Named`). Arithmetic is unsigned
1984/// when EITHER operand is — that is MySQL's rule, and it is why `1 - b`
1985/// raises while `5 - a` does not: both are unsigned expressions, but only
1986/// the first has a negative result.
1987///
1988/// Deliberately NOT unsigned: unary minus (MariaDB answers -1 for
1989/// `-CAST(1 AS UNSIGNED)`), and every function result including the
1990/// aggregates. Both measured.
1991pub(crate) fn expr_is_mysql_unsigned(e: &Expr, columns: &[ColumnSchema]) -> bool {
1992    match e {
1993        Expr::Column(c) => columns
1994            .iter()
1995            .find(|col| col.name == c.name)
1996            .is_some_and(|col| col.is_unsigned),
1997        Expr::Cast {
1998            target: CastTarget::Named(n),
1999            ..
2000        } => n.eq_ignore_ascii_case("unsigned"),
2001        Expr::Binary {
2002            lhs,
2003            op: BinOp::Add | BinOp::Sub | BinOp::Mul,
2004            rhs,
2005        } => expr_is_mysql_unsigned(lhs, columns) || expr_is_mysql_unsigned(rhs, columns),
2006        _ => false,
2007    }
2008}
2009
2010/// v7.39 (round 467) — MySQL arithmetic over an UNSIGNED operand, with
2011/// MySQL's range check.
2012///
2013/// `INT UNSIGNED` columns holding 1 and 5 made `a - b` answer **-4** in a
2014/// MySQL session. MariaDB raises `ERROR 1690 (22003): BIGINT UNSIGNED value
2015/// is out of range`. A negative answer where the server promises a
2016/// non-negative one is the kind of thing an application stores back into
2017/// the same column, so it was silent and wrong in the worst direction.
2018///
2019/// The check runs in i128 so the subtraction that underflows is observed
2020/// rather than wrapped, and it only fires when the expression is unsigned
2021/// AND both operands are integers — a NUMERIC or float operand takes the
2022/// ordinary path, as it does in MySQL.
2023///
2024/// `#[inline(never)]`: this is called from the recursive evaluator's
2025/// hottest frame, which already sits against the stack guard.
2026#[inline(never)]
2027fn apply_binary_mysql_unsigned(
2028    op: BinOp,
2029    lhs: &Expr,
2030    rhs: &Expr,
2031    l: Value<'static>,
2032    r: Value<'static>,
2033    ctx: &EvalContext,
2034) -> Result<Value<'static>, EvalError> {
2035    if ctx.mysql_dialect
2036        && matches!(op, BinOp::Add | BinOp::Sub | BinOp::Mul)
2037        && let Some(a) = mysql_int_operand(&l)
2038        && let Some(b) = mysql_int_operand(&r)
2039        && (expr_is_mysql_unsigned(lhs, ctx.columns) || expr_is_mysql_unsigned(rhs, ctx.columns))
2040    {
2041        let out = match op {
2042            BinOp::Add => a.checked_add(b),
2043            BinOp::Sub => a.checked_sub(b),
2044            _ => a.checked_mul(b),
2045        };
2046        let in_range = out.is_some_and(|v| (0..=i128::from(u64::MAX)).contains(&v));
2047        if !in_range {
2048            // MariaDB names the offending expression in the message, with
2049            // minimal parentheses — `a * 0 - 1`, not `((a * 0) - 1)`.
2050            // `pretty_expr` is the deparser that already produces that
2051            // shape. Residual, recorded rather than faked: MariaDB writes
2052            // its columns fully qualified in backticks
2053            // (`db`.`tbl`.`col`), and the database name is not something
2054            // the evaluation context carries.
2055            return Err(EvalError::TypeMismatch {
2056                detail: alloc::format!(
2057                    "BIGINT UNSIGNED value is out of range in '{}'",
2058                    spg_sql::ast::pretty_expr_mysql(&Expr::Binary {
2059                        lhs: alloc::boxed::Box::new(lhs.clone()),
2060                        op,
2061                        rhs: alloc::boxed::Box::new(rhs.clone()),
2062                    })
2063                ),
2064            });
2065        }
2066    }
2067    let out = apply_binary_in(op, l, r, ctx.mysql_dialect);
2068    // v7.39 (round 503) — MariaDB answers NULL for division / modulo by
2069    // zero; SPG raised.
2070    //
2071    // Measured against MariaDB 11: `SELECT 1/0`, `SELECT 5 DIV 0` and
2072    // `SELECT 5 % 0` are all NULL — and they are NULL under the DEFAULT
2073    // sql_mode too, which contains `ERROR_FOR_DIVISION_BY_ZERO`. That flag
2074    // governs WRITES, not the expression: the division evaluates to NULL,
2075    // and a strict-mode INSERT of that result is what raises 1365.
2076    //
2077    // The rule is therefore the DIALECT's, not the mode's: in a MySQL
2078    // session the expression is NULL. It is deliberately not gated on
2079    // `mysql_strict` — an earlier cut of this was, and the gate fired only
2080    // because the probe's context happens to carry no engine, which a
2081    // later round attaching one would have silently reversed.
2082    //
2083    // RESIDUAL, recorded rather than faked: MariaDB's strict-mode INSERT
2084    // of a division by zero raises 1365 and its non-strict INSERT stores
2085    // NULL. SPG's INSERT path evaluates elsewhere and still raises, so it
2086    // matches strict and diverges from non-strict. Closing that needs the
2087    // expression to know it is in a write, which nothing here carries.
2088    if ctx.mysql_dialect && matches!(out, Err(EvalError::DivisionByZero)) {
2089        return Ok(Value::Null);
2090    }
2091    out
2092}
2093
2094/// The integer an operand contributes to the unsigned range check, or
2095/// `None` when it is not an integer at all (NULL, text, NUMERIC, float).
2096fn mysql_int_operand(v: &Value<'_>) -> Option<i128> {
2097    match v {
2098        Value::SmallInt(n) => Some(i128::from(*n)),
2099        Value::Int(n) => Some(i128::from(*n)),
2100        Value::BigInt(n) => Some(i128::from(*n)),
2101        // v7.39 (round 471) — a BIGINT UNSIGNED cell is stored as Numeric
2102        // with scale 0, so the range check has to see it as the integer it
2103        // is. Without this arm the column's own type moved it out of reach
2104        // of round 467's guard and `c - 5` went back to answering -4.
2105        Value::Numeric { scaled, scale, .. } if *scale == 0 => Some(*scaled),
2106        _ => None,
2107    }
2108}
2109
2110fn expr_enum_type_name<'e>(e: &'e Expr, columns: &'e [ColumnSchema]) -> Option<&'e str> {
2111    match e {
2112        Expr::Cast {
2113            target: CastTarget::Named(n),
2114            ..
2115        } => Some(n.as_str()),
2116        Expr::Column(c) => columns
2117            .iter()
2118            .find(|col| col.name == c.name)
2119            // v7.39 (round 259) — a DOMAIN column carries its name in its
2120            // own field; both are "the user type this column is declared
2121            // as", which is what the callers (enum-order comparison,
2122            // pg_typeof) want. Callers gate on the catalog, so a name that
2123            // is one kind never resolves as the other.
2124            .and_then(|col| {
2125                col.user_enum_type
2126                    .as_deref()
2127                    .or(col.user_domain_type.as_deref())
2128            }),
2129        _ => None,
2130    }
2131}
2132
2133/// v7.39 (enum order knife) — the member-label list for an enum-typed
2134/// expression, or None when the expression carries no enum witness or the
2135/// name is not a known enum. The returned slice borrows the catalog.
2136pub(crate) fn expr_enum_labels<'c>(
2137    e: &Expr,
2138    columns: &[ColumnSchema],
2139    catalog: Option<&'c spg_storage::Catalog>,
2140) -> Option<&'c [String]> {
2141    let name = expr_enum_type_name(e, columns)?;
2142    catalog
2143        .and_then(|cat| cat.enum_types().get(name))
2144        .map(|en| en.labels.as_slice())
2145}
2146
2147/// v7.39 (enum order knife) — compare two enum labels by member order.
2148/// None when either side is not Text or not a member (caller falls back to
2149/// the generic comparison, so a stray value never panics or misorders
2150/// silently differently from before).
2151pub(crate) fn enum_ord_cmp(
2152    labels: &[String],
2153    a: &Value<'_>,
2154    b: &Value<'_>,
2155) -> Option<core::cmp::Ordering> {
2156    let pos = |v: &Value<'_>| -> Option<usize> {
2157        match v {
2158            Value::Text(s) => labels.iter().position(|l| l.as_str() == s.as_ref()),
2159            _ => None,
2160        }
2161    };
2162    Some(pos(a)?.cmp(&pos(b)?))
2163}
2164
2165/// v7.39 (enum order knife) — Binary-comparison hook: when either side's
2166/// static type witnesses an enum and both runtime values are member labels,
2167/// compare by member order (PG's enumsortorder semantics). Out-of-line to
2168/// keep `eval_expr`'s recursion frame small.
2169#[inline(never)]
2170fn enum_compare_hook(
2171    op: BinOp,
2172    lhs: &Expr,
2173    rhs: &Expr,
2174    l: &Value<'_>,
2175    r: &Value<'_>,
2176    ctx: &EvalContext<'_>,
2177) -> Option<Result<Value<'static>, EvalError>> {
2178    let cat = ctx.catalog?;
2179    if cat.enum_types().is_empty() {
2180        return None;
2181    }
2182    let labels = expr_enum_labels(lhs, ctx.columns, ctx.catalog)
2183        .or_else(|| expr_enum_labels(rhs, ctx.columns, ctx.catalog))?;
2184    let ord = enum_ord_cmp(labels, l, r)?;
2185    let b = match op {
2186        BinOp::Eq => ord == core::cmp::Ordering::Equal,
2187        BinOp::NotEq => ord != core::cmp::Ordering::Equal,
2188        BinOp::Lt => ord == core::cmp::Ordering::Less,
2189        BinOp::LtEq => ord != core::cmp::Ordering::Greater,
2190        BinOp::Gt => ord == core::cmp::Ordering::Greater,
2191        BinOp::GtEq => ord != core::cmp::Ordering::Less,
2192        _ => return None,
2193    };
2194    Some(Ok(Value::Bool(b)))
2195}
2196
2197/// v7.39 (round 693) — Binary-comparison hook for a declared collation, the
2198/// last shape F36 left open: `loc BETWEEN 'a' AND 'd'` returns a different
2199/// ROW SET under `en_US.utf8` than under byte order, not merely a different
2200/// order.
2201///
2202/// It sits beside [`enum_compare_hook`] because it is the same kind of fact
2203/// — something about the operand COLUMNS that `compare` cannot look up from
2204/// two values — and takes the same two protections: `#[inline(never)]`, so
2205/// `eval_expr`'s recursion frame does not grow (the comment at the call site
2206/// records a fourth `||` there tipping the 768 KiB guard on its own), and
2207/// the caller's Text/Text gate, so no integer comparison reaches it.
2208///
2209/// EQUALITY is deliberately not handled. PG18's `en_US.utf8` is
2210/// deterministic, so `=`, `<>`, `LIKE`, `IN` and `count(DISTINCT …)` give
2211/// byte-equality's answer — measured, all five. Only the ordering operators
2212/// change, and `least`/`greatest` follow them through their own comparator.
2213#[inline(never)]
2214fn collate_compare_hook(
2215    op: BinOp,
2216    lhs: &Expr,
2217    rhs: &Expr,
2218    l: &Value<'_>,
2219    r: &Value<'_>,
2220    ctx: &EvalContext<'_>,
2221) -> Option<Result<Value<'static>, EvalError>> {
2222    if !matches!(op, BinOp::Lt | BinOp::LtEq | BinOp::Gt | BinOp::GtEq) {
2223        return None;
2224    }
2225    let (Value::Text(a), Value::Text(b)) = (l, r) else {
2226        return None;
2227    };
2228    let resolve = |c: &spg_sql::ast::ColumnName| -> Option<alloc::string::String> {
2229        let pos = find_column_pos(c, ctx)?;
2230        ctx.columns.get(pos)?.collation_name.clone()
2231    };
2232    let derived = crate::collate_derive::derive(lhs, &resolve)
2233        .combine_pub(crate::collate_derive::derive(rhs, &resolve));
2234    if let Some((x, y)) = derived.conflict() {
2235        return Some(Err(EvalError::TypeMismatch {
2236            detail: alloc::format!(
2237                "collation mismatch between implicit collations \"{x}\" and \"{y}\""
2238            ),
2239        }));
2240    }
2241    // v7.38.18 (S2) — and the DATABASE's collation when neither side
2242    // declares one, which is what an undeclared text column is compared
2243    // under. `C` is byte order and resolves to `None`, so a database
2244    // that never asked for a locale takes the same path it always did.
2245    //
2246    // Ordering only. Whether a comparison PADS is decided in
2247    // `text_compare_of` from a MySQL collation NAME, and a PostgreSQL
2248    // database collating as `en_US.utf8` does not pad — inheritance
2249    // reaching that would make `'a' = 'a  '` true everywhere.
2250    // v7.39.2 — an operand WRITTEN as `BINARY x`, `CAST(x AS BINARY)` or
2251    // `x COLLATE utf8mb4_bin` asks for byte order, and the database's
2252    // collation must not answer over it.
2253    //
2254    // The `_bin` spelling lowers onto the BINARY cast, so it never
2255    // reaches `derive` as a collation at all — the fallback below then
2256    // ordered by the database's locale. Measured on MySQL 9.7.2 against
2257    // an image collating `en_US.utf8`: `'B' COLLATE utf8mb4_bin < 'a'`
2258    // is 1 there and was 0 here, and `>` was wrong to match. The fold
2259    // was already suppressed, so `=` was right and only the ORDERING
2260    // comparisons were wrong — the half that works is what hid it.
2261    //
2262    // A COLUMN whose stored collation is `Binary` is NOT this: that is
2263    // the struct's default and means "nothing was said", which is why
2264    // `operand_is_binary_column` is deliberately not consulted here.
2265    if crate::eval::is_binary_coerced(lhs) || crate::eval::is_binary_coerced(rhs) {
2266        return None;
2267    }
2268    // v7.39.4 — the SESSION sits between the two, and it was missing.
2269    //
2270    // The chain here was "what the operands declare, else the DATABASE",
2271    // and a session collation declares nothing on an operand. So under
2272    // `SET NAMES utf8mb4 COLLATE utf8mb4_bin` on a database collating
2273    // `en_US.UTF-8` — which is what the server ships — `'a' < 'B'`
2274    // answered 1 where MySQL 9.7.2 answers 0: the collator was handed
2275    // the database's locale and the session was never consulted.
2276    // Measured against the published 7.39.3 image, side by side with
2277    // MySQL, and reproduced here only after the test engine was given
2278    // the SHIPPED database collation — on a byte-ordering database the
2279    // defect cannot exist, which is why every pin passed.
2280    //
2281    // A byte-wise session ends the chain rather than choosing a name:
2282    // returning `None` hands the comparison back to byte order, which is
2283    // what `utf8mb4_bin` means. The comment above explains why `=` was
2284    // right all along — the fold reads the session already, and only the
2285    // ordering operators come through here.
2286    let session = ctx
2287        .mysql_dialect
2288        .then(|| crate::eval::resolve::session_collation_name(ctx))
2289        .flatten();
2290    if derived.name().is_none() && session.as_deref().is_some_and(crate::collate::is_byte_wise) {
2291        return None;
2292    }
2293    let db = ctx
2294        .catalog
2295        .map(spg_storage::Catalog::db_collation)
2296        .filter(|d| !crate::collate::is_byte_wise(d));
2297    let ord = crate::collate::compare(derived.name().or(session.as_deref()).or(db)?, a, b)?;
2298    let b = match op {
2299        BinOp::Lt => ord == core::cmp::Ordering::Less,
2300        BinOp::LtEq => ord != core::cmp::Ordering::Greater,
2301        BinOp::Gt => ord == core::cmp::Ordering::Greater,
2302        BinOp::GtEq => ord != core::cmp::Ordering::Less,
2303        _ => return None,
2304    };
2305    Some(Ok(Value::Bool(b)))
2306}
2307
2308/// v7.39 (round 693) — the collation `least`/`greatest` should compare by,
2309/// derived across every argument the same way a comparison's two operands
2310/// are. `None` keeps byte order, which is right for arguments that declare
2311/// nothing.
2312#[inline(never)]
2313fn greatest_least_collation(args: &[Expr], ctx: &EvalContext<'_>) -> Option<alloc::string::String> {
2314    let resolve = |c: &spg_sql::ast::ColumnName| -> Option<alloc::string::String> {
2315        let pos = find_column_pos(c, ctx)?;
2316        ctx.columns.get(pos)?.collation_name.clone()
2317    };
2318    let derived = args
2319        .iter()
2320        .fold(crate::collate_derive::Derived::None, |acc, a| {
2321            acc.combine_pub(crate::collate_derive::derive(a, &resolve))
2322        });
2323    derived
2324        .name()
2325        .filter(|n| crate::collate::is_supported(n))
2326        .map(alloc::string::ToString::to_string)
2327}
2328
2329/// v7.39 (round 704) — rewrite a comparison's operator-not-found error when
2330/// the operand at fault is an UNKNOWN string literal against a numeric-family
2331/// value. PG commits such a literal to the other side's type before comparing,
2332/// so its error is the input function's — `invalid input syntax for type
2333/// integer: "abc"` — not `operator does not exist: integer = text`. An
2334/// explicit `::text` operand keeps the operator error (`1 IS DISTINCT FROM
2335/// 'a'::text`, measured on PG18), which is precisely the distinction two
2336/// `Value`s cannot carry: the first cut of this round rewrote inside
2337/// `binop::compare` and the r238 pin plus corpus 19 caught it the same day.
2338///
2339/// Error-path only — a comparison that succeeds never calls this — so the
2340/// 35.6 %-of-self-time note on `compare` is untouched.
2341#[cold]
2342#[inline(never)]
2343fn unknown_literal_cmp_error(
2344    err: EvalError,
2345    lhs: &Expr,
2346    rhs: &Expr,
2347    lv: &Value<'_>,
2348    rv: &Value<'_>,
2349) -> EvalError {
2350    let EvalError::TypeMismatch { detail } = &err else {
2351        return err;
2352    };
2353    // Two spellings of the same fall-through: `compare`'s operator error,
2354    // and the owned numeric path's conversion error (`f = 'y'` reaches
2355    // "cannot convert text to FLOAT"). Both mean the literal failed to
2356    // lift; neither is what PG says about an unknown literal.
2357    if !detail.starts_with("operator does not exist")
2358        && !detail.starts_with("cannot convert text to")
2359    {
2360        return err;
2361    }
2362    let numeric = |v: &Value<'_>| {
2363        matches!(
2364            v.data_type(),
2365            Some(
2366                spg_storage::DataType::SmallInt
2367                    | spg_storage::DataType::Int
2368                    | spg_storage::DataType::BigInt
2369                    | spg_storage::DataType::Float
2370                    | spg_storage::DataType::Real
2371                    | spg_storage::DataType::Numeric { .. }
2372            )
2373        )
2374    };
2375    let rewrite = |s: &Value<'_>, other: &Value<'_>| -> Option<EvalError> {
2376        let Value::Text(text) = s else { return None };
2377        let dt = other.data_type()?;
2378        Some(EvalError::TypeMismatch {
2379            detail: alloc::format!(
2380                "invalid input syntax for type {}: \"{text}\"",
2381                crate::conversions::pg_type_name_for_error(dt)
2382            ),
2383        })
2384    };
2385    if is_unknown_string_literal(lhs)
2386        && numeric(rv)
2387        && let Some(e) = rewrite(lv, rv)
2388    {
2389        return e;
2390    }
2391    if is_unknown_string_literal(rhs)
2392        && numeric(lv)
2393        && let Some(e) = rewrite(rv, lv)
2394    {
2395        return e;
2396    }
2397    err
2398}
2399
2400fn enum_arg_type_name<'e>(args: &'e [Expr], ctx: &EvalContext<'e>) -> Option<&'e str> {
2401    args.iter()
2402        .find_map(|a| expr_enum_type_name(a, ctx.columns))
2403        .filter(|n| {
2404            ctx.catalog
2405                .is_some_and(|cat| cat.enum_types().contains_key(*n))
2406        })
2407}
2408
2409/// Cheap value-free precheck so `eval_expr`'s recursion frame carries no
2410/// binding for the enum path (stack-depth guard budget).
2411#[inline(never)]
2412fn enum_introspection_applies(args: &[Expr], ctx: &EvalContext<'_>) -> bool {
2413    enum_arg_type_name(args, ctx).is_some()
2414}
2415
2416#[inline(never)]
2417fn eval_enum_introspection(
2418    name: &str,
2419    args: &[Expr],
2420    row: &Row<'static>,
2421    ctx: &EvalContext<'_>,
2422) -> Result<Value<'static>, EvalError> {
2423    let Some(en) = enum_arg_type_name(args, ctx)
2424        .and_then(|n| ctx.catalog.and_then(|cat| cat.enum_types().get(n)))
2425    else {
2426        // The precheck guarantees this arm is unreachable; keep a typed
2427        // error rather than a panic if the two ever drift.
2428        return Err(EvalError::TypeMismatch {
2429            detail: "could not determine polymorphic type".into(),
2430        });
2431    };
2432    let labels = &en.labels;
2433    if labels.is_empty() {
2434        return Ok(Value::Null);
2435    }
2436    if name.eq_ignore_ascii_case("enum_first") {
2437        return Ok(Value::text(labels[0].clone()));
2438    }
2439    if name.eq_ignore_ascii_case("enum_last") {
2440        return Ok(Value::text(labels[labels.len() - 1].clone()));
2441    }
2442    // enum_range(NULL) = all; enum_range(lo, hi) slices inclusively,
2443    // NULL bound = open end (PG).
2444    let pos_of = |v: &Value<'_>| -> Option<usize> {
2445        match v {
2446            Value::Text(s) => labels.iter().position(|l| l == s.as_ref()),
2447            _ => None,
2448        }
2449    };
2450    let (lo, hi) = if args.len() == 2 {
2451        let a = eval_expr(&args[0], row, ctx)?;
2452        let b = eval_expr(&args[1], row, ctx)?;
2453        (
2454            pos_of(&a).unwrap_or(0),
2455            pos_of(&b).unwrap_or(labels.len() - 1),
2456        )
2457    } else {
2458        (0, labels.len() - 1)
2459    };
2460    let out: alloc::vec::Vec<Option<String>> = labels
2461        .get(lo..=hi)
2462        .unwrap_or(&[])
2463        .iter()
2464        .map(|l| Some(l.clone()))
2465        .collect();
2466    Ok(Value::TextArray(out))
2467}
2468
2469/// Apply one `[index]` subscript to a value — the single-step semantics shared
2470/// by 1-D array elements and JSON path access (`j['a']`, `j[0]`). NULL target
2471/// or index → NULL; a 1-based integer indexes a 1-D array (out of range → NULL,
2472/// non-array → error); JSON delegates to `path_get`.
2473fn apply_one_subscript(
2474    target_v: Value<'static>,
2475    index: &Expr,
2476    row: &Row<'static>,
2477    ctx: &EvalContext<'_>,
2478) -> Result<Value<'static>, EvalError> {
2479    let idx_v = eval_expr(index, row, ctx)?;
2480    if matches!(target_v, Value::Null) || matches!(idx_v, Value::Null) {
2481        return Ok(Value::Null);
2482    }
2483    // v7.38 (read01) — JSON/JSONB subscripting (`j['a']`, `j[0]`, chained
2484    // `j['a']['b']`) is object/array access, identical to the `->` operator
2485    // (text key → object field, integer → 0-based array element). PG 14+.
2486    if matches!(target_v, Value::Json(_)) {
2487        return crate::json::path_get(&target_v, &idx_v, false);
2488    }
2489    let i: i64 = match idx_v {
2490        Value::Int(n) => i64::from(n),
2491        Value::BigInt(n) => n,
2492        Value::SmallInt(n) => i64::from(n),
2493        other => {
2494            return Err(EvalError::TypeMismatch {
2495                detail: format!(
2496                    "array subscript must be integer, got {}",
2497                    crate::conversions::pg_type_name_for_error_opt(other.data_type())
2498                ),
2499            });
2500        }
2501    };
2502    if i < 1 {
2503        return Ok(Value::Null);
2504    }
2505    let pos = (i - 1) as usize;
2506    match array_element_at(&target_v, pos) {
2507        Some(v) => Ok(v),
2508        None if array_len(&target_v).is_some() => Ok(Value::Null),
2509        None => Err(EvalError::TypeMismatch {
2510            detail: format!(
2511                "subscript target must be an array, got {}",
2512                crate::conversions::pg_type_name_for_error_opt(target_v.data_type())
2513            ),
2514        }),
2515    }
2516}
2517
2518/// v7.38 (read01, 2D-subscript) — index a 2-D array (`arr[i][j]`). PG needs
2519/// exactly two subscripts to reach an element; a single subscript on a 2-D
2520/// array yields NULL (not the row), and any out-of-range index → NULL. Both
2521/// subscripts are 1-based.
2522fn eval_matrix_subscript(
2523    base: &Value<'static>,
2524    idx_exprs: &[&Expr],
2525    row: &Row<'static>,
2526    ctx: &EvalContext<'_>,
2527) -> Result<Value<'static>, EvalError> {
2528    if idx_exprs.len() != 2 {
2529        return Ok(Value::Null);
2530    }
2531    let mut idx = [0i64; 2];
2532    for (k, ix) in idx_exprs.iter().enumerate() {
2533        idx[k] = match eval_expr(ix, row, ctx)? {
2534            Value::Null => return Ok(Value::Null),
2535            Value::Int(n) => i64::from(n),
2536            Value::BigInt(n) => n,
2537            Value::SmallInt(n) => i64::from(n),
2538            other => {
2539                return Err(EvalError::TypeMismatch {
2540                    detail: format!(
2541                        "array subscript must be integer, got {}",
2542                        crate::conversions::pg_type_name_for_error_opt(other.data_type())
2543                    ),
2544                });
2545            }
2546        };
2547    }
2548    let (r, c) = (idx[0], idx[1]);
2549    if r < 1 || c < 1 {
2550        return Ok(Value::Null);
2551    }
2552    let (ri, ci) = ((r - 1) as usize, (c - 1) as usize);
2553    macro_rules! elem {
2554        ($rows:expr, $map:expr) => {
2555            Ok($rows
2556                .get(ri)
2557                .and_then(|inner| inner.get(ci))
2558                .map_or(Value::Null, |cell| cell.as_ref().map_or(Value::Null, $map)))
2559        };
2560    }
2561    match base {
2562        Value::IntArray2D(rows) => elem!(rows, |n| Value::Int(*n)),
2563        Value::BigIntArray2D(rows) => elem!(rows, |n| Value::BigInt(*n)),
2564        Value::BoolArray2D(rows) => elem!(rows, |b| Value::Bool(*b)),
2565        Value::TextArray2D(rows) => {
2566            elem!(rows, |s| Value::Text(alloc::borrow::Cow::Owned(s.clone())))
2567        }
2568        _ => Ok(Value::Null),
2569    }
2570}
2571
2572/// Out-of-lined `eval_expr` arm — keeps the recursive frame small
2573/// (stack-depth guard budget); body unchanged.
2574#[inline(never)]
2575fn eval_cast_arm(
2576    expr: &Expr,
2577    target: &CastTarget,
2578    row: &Row<'static>,
2579    ctx: &EvalContext<'_>,
2580) -> Result<Value<'static>, EvalError> {
2581    let v = eval_expr(expr, row, ctx)?;
2582    // v7.39 (round 473) — `<oid>::regclass` names the relation.
2583    //
2584    // The cast itself has no catalog, so it answered the bare number:
2585    // `indexrelid::regclass` printed `100001` where PG prints `ix1`, and
2586    // pg_class / pg_index rows are read by joining on oids and rendering
2587    // them — a tool cannot match the two up. `relation_name_for_oid`
2588    // mirrors `relation_oid`'s walks so the two directions agree; an oid
2589    // that names nothing keeps rendering as the number, which is what PG
2590    // does for a dropped relation's oid too.
2591    if matches!(target, CastTarget::RegClass)
2592        && let Some(cat) = ctx.catalog
2593    {
2594        let oid = match &v {
2595            Value::Int(n) => Some(i64::from(*n)),
2596            Value::BigInt(n) => Some(*n),
2597            _ => None,
2598        };
2599        if let Some(oid) = oid
2600            && let Some(name) = crate::system_catalog::relation_name_for_oid(cat, oid)
2601        {
2602            return Ok(Value::text(name));
2603        }
2604    }
2605    // v7.38 (read01 P6.40) — a cast to a user DOMAIN (`x::posint`)
2606    // enforces the domain's NOT NULL + CHECK constraints, matching PG.
2607    // The base-type coercion already happened when `v` was produced
2608    // (the domain is a constrained alias of its base type); here we
2609    // only run the constraints.
2610    if let CastTarget::Named(name) = target
2611        && let Some(cat) = ctx.catalog
2612    {
2613        if let Some(dom) = cat.domain_types().get(name.as_str()) {
2614            return apply_domain_constraints(v, dom, name, cat);
2615        }
2616        // v7.38 (read01 P6.67) — `'label'::<user enum>` validates the
2617        // label against the enum's members (a non-member errors like
2618        // PG). A typed NULL passes through carrying the enum type.
2619        if let Some(en) = cat.enum_types().get(name.as_str()) {
2620            return apply_enum_cast(v, en, name);
2621        }
2622        // v7.39 (read01 rowtypes.c) — `'(1,x)'::<composite>` parses PG's
2623        // record text form against the type's field list; a ROW value
2624        // re-labels its fields.
2625        if let Some(comp) = cat.composite_types().get(name.as_str()) {
2626            // v7.39 (round 264) — pass the catalog so a NESTED composite
2627            // field resolves into a record rather than staying text.
2628            return apply_composite_cast_in(v, comp, ctx.catalog);
2629        }
2630        // v7.39 (round 509) — every TABLE also names a row type, and
2631        // `jsonb_populate_record(NULL::mytable, …)` is PG's canonical
2632        // spelling for "shaped like this table". PG accepts `NULL::mytable`
2633        // and refuses `1::mytable` with "cannot cast type integer to
2634        // mytable" — the type exists, the conversion does not. This only
2635        // ever worked here because a NULL skipped cast resolution entirely;
2636        // now that it does not, the row type has to be named explicitly.
2637        if cat.get(name.as_str()).is_some() {
2638            return if matches!(v, Value::Null) {
2639                Ok(Value::Null)
2640            } else {
2641                Err(EvalError::TypeMismatch {
2642                    detail: alloc::format!(
2643                        "cannot cast type {} to {name}",
2644                        crate::eval::strings::pg_typeof_name(&v),
2645                    ),
2646                })
2647            };
2648        }
2649        // v7.39 (round 513) — `regnamespace` and `regrole` resolve against
2650        // things that live outside the type table: schemas on the catalog,
2651        // roles on the engine. They belong here for the same reason the
2652        // relation check above does — this is the arm that can see them.
2653        // v7.39 (round 526) — the NUMERIC direction, which is the one a
2654        // catalog join uses: `relnamespace::regnamespace` names the
2655        // schema a relation lives in, and it errored with "unsupported
2656        // cast target" while `'public'::regnamespace` worked. Round 513
2657        // added the name direction only, so the half that reads a
2658        // catalog was the half missing.
2659        if (name.eq_ignore_ascii_case("regnamespace") || name.eq_ignore_ascii_case("regrole"))
2660            && let Some(oid) = match &v {
2661                Value::Int(n) => Some(i64::from(*n)),
2662                Value::BigInt(n) => Some(*n),
2663                _ => None,
2664            }
2665        {
2666            let named = if name.eq_ignore_ascii_case("regnamespace") {
2667                crate::system_catalog::schema_name_for_oid(oid)
2668            } else {
2669                ctx.engine.and_then(|e| e.role_name_for_oid(oid))
2670            };
2671            // PG prints the bare number for an oid that names nothing,
2672            // exactly as `regclass` does.
2673            return Ok(Value::text(
2674                named.unwrap_or_else(|| alloc::format!("{oid}")),
2675            ));
2676        }
2677        if name.eq_ignore_ascii_case("regnamespace")
2678            && let Value::Text(t) = &v
2679        {
2680            let want = t.trim().trim_matches('"');
2681            // 7.38.1 S5.1 — the name direction answers the DUAL
2682            // (oid, name) value for the schemas with a published oid:
2683            // regnamespace IS an oid in PG, and pg_dump compares it
2684            // against numeric namespace columns (`opcnamespace =
2685            // 'pg_catalog'::regnamespace`) — while the wire render
2686            // stays the NAME, as PG's does (the round-513 contract).
2687            // The RegClass dual carries exactly that pair. A user
2688            // schema without a published oid keeps plain text.
2689            return if spg_storage::is_builtin_schema(want) || cat.schema_exists(want) {
2690                Ok(match want {
2691                    "pg_catalog" => Value::RegClass(11, "pg_catalog".into()),
2692                    "public" => Value::RegClass(2200, "public".into()),
2693                    "information_schema" => Value::RegClass(13000, "information_schema".into()),
2694                    _ => Value::text(want.to_string()),
2695                })
2696            } else {
2697                Err(EvalError::TypeMismatch {
2698                    detail: alloc::format!("schema \"{want}\" does not exist"),
2699                })
2700            };
2701        }
2702        if name.eq_ignore_ascii_case("regrole")
2703            && let Value::Text(t) = &v
2704        {
2705            let want = t.trim().trim_matches('"').to_string();
2706            // PG ships predefined roles that exist whether or not anybody
2707            // created them; SPG carries the rest on the engine.
2708            const PREDEFINED: &[&str] = &[
2709                "pg_read_all_data",
2710                "pg_write_all_data",
2711                "pg_monitor",
2712                "pg_read_all_settings",
2713                "pg_read_all_stats",
2714                "pg_stat_scan_tables",
2715                "pg_signal_backend",
2716                "pg_checkpoint",
2717                "pg_maintain",
2718                "pg_use_reserved_connections",
2719                "pg_create_subscription",
2720            ];
2721            let known = PREDEFINED.iter().any(|r| r.eq_ignore_ascii_case(&want))
2722                || ctx.engine.is_some_and(|e| e.role_exists(&want));
2723            return if known {
2724                Ok(Value::text(want))
2725            } else {
2726                Err(EvalError::TypeMismatch {
2727                    detail: alloc::format!("role \"{want}\" does not exist"),
2728                })
2729            };
2730        }
2731        // v7.39 (round 509) — the cast target is checked even when the
2732        // operand is NULL. `cast_value_in` short-circuits a NULL before it
2733        // looks at the target, so `NULL::nosuchtype` silently answered NULL
2734        // and `pg_typeof(NULL::nosuchtype)` answered `unknown`, while
2735        // `1::nosuchtype` errored — the gap was exactly the NULL case, in
2736        // both spellings. Everything a catalog can name has been tried by
2737        // now; what is left is the builtin table.
2738        if matches!(v, Value::Null)
2739            && !crate::eval::cast::builtin_target_resolves(name, ctx.mysql_dialect)
2740        {
2741            return Err(EvalError::TypeMismatch {
2742                detail: cast::unknown_type_error_text(name),
2743            });
2744        }
2745    }
2746    // v7.39 (round 285) — `::record`, the anonymous composite type. PG
2747    // treats it as an IDENTITY cast on anything already composite: the
2748    // value keeps its fields and their names, so `(ROW(1,2)::record).f1`
2749    // and `(r).x` still resolve. Only a non-composite is refused, with
2750    // PG's wording. `record` is not a catalog type, so this cannot live
2751    // in the lookups above.
2752    if let CastTarget::Named(name) = target
2753        && name.eq_ignore_ascii_case("record")
2754    {
2755        return match v {
2756            Value::Composite(_) | Value::Null => Ok(v),
2757            other => Err(EvalError::TypeMismatch {
2758                detail: alloc::format!(
2759                    "cannot cast type {} to record",
2760                    crate::eval::strings::pg_typeof_name(&other),
2761                ),
2762            }),
2763        };
2764    }
2765    // v7.38 (read01, T22) — a numeric OID cast to regclass reverse-looks
2766    // up the user relation name (PG's 16384+ band, assigned in
2767    // table_names() order). System OIDs / non-matches fall through to
2768    // the integer-rendering path in cast_value.
2769    if matches!(target, CastTarget::RegClass) {
2770        // v7.39 (read01 ruleutils.c) — regclass is DUAL-shape: oid for
2771        // catalog joins (conrelid = 't'::regclass), name for display.
2772        let oid_in = match &v {
2773            Value::SmallInt(n) => Some(i64::from(*n)),
2774            Value::Int(n) => Some(i64::from(*n)),
2775            Value::BigInt(n) => Some(*n),
2776            _ => None,
2777        };
2778        if let (Some(oid), Some(cat)) = (oid_in, ctx.catalog) {
2779            if oid >= 16384 {
2780                if let Some(name) = cat.table_names().into_iter().nth((oid - 16384) as usize) {
2781                    return Ok(Value::RegClass(oid, name.into()));
2782                }
2783            }
2784        }
2785        if let (Value::Text(s), Some(cat)) = (&v, ctx.catalog) {
2786            let bare = s
2787                .rsplit('.')
2788                .next()
2789                .unwrap_or(s)
2790                .trim_matches('"')
2791                .to_string();
2792            if let Some(oid) = regclass_name_to_oid(cat, &bare) {
2793                return Ok(Value::RegClass(oid, bare.into()));
2794            }
2795            // v7.39 (round 337, V62) — a name that is no relation at all is
2796            // PG's error, not a silent pass-through. `'nope'::regclass`
2797            // used to answer the TEXT `nope`, so a downstream
2798            // `pg_get_viewdef('nope'::regclass)` reported "no such view"
2799            // when the truth is there is no such relation — and a
2800            // catalog join on it quietly matched nothing. PG 18.4:
2801            // `ERROR: relation "nope" does not exist`. (`to_regclass` is
2802            // the spelling that answers NULL instead, and still does.)
2803            //
2804            // The system views SPG synthesises have no oid space, so they
2805            // keep the textual form rather than erroring.
2806            const SYSTEM_RELS: &[&str] = &[
2807                "pg_roles",
2808                "pg_user",
2809                "pg_tables",
2810                "pg_views",
2811                "pg_settings",
2812                "pg_stat_activity",
2813                "pg_stat_database",
2814                "pg_stat_user_tables",
2815                "pg_class",
2816                "pg_attribute",
2817                "pg_type",
2818                "pg_proc",
2819                "pg_namespace",
2820                "pg_constraint",
2821                "pg_index",
2822                "pg_rewrite",
2823            ];
2824            if !SYSTEM_RELS.contains(&bare.as_str()) {
2825                return Err(EvalError::TypeMismatch {
2826                    detail: alloc::format!("relation \"{bare}\" does not exist"),
2827                });
2828            }
2829        }
2830    }
2831    // v7.39 (round 339, V63) — `::regproc` / `::regprocedure` resolve
2832    // against the USER function catalog too. Name resolution ran against
2833    // the static pg_proc table alone, so `'my_fn'::regproc` — the form
2834    // every catalog query and pg_dump uses to name a function — raised
2835    // `function "my_fn" does not exist` for a function that plainly did.
2836    // The cast layer has no catalog handle; this is the same interception
2837    // point the `::regclass` block above uses.
2838    if let (CastTarget::Named(tname), Some(cat), Value::Text(s)) = (target, ctx.catalog, &v) {
2839        let lower = tname.to_ascii_lowercase();
2840        if matches!(lower.as_str(), "regproc" | "regprocedure") {
2841            let raw = s.trim();
2842            // regprocedure carries the argument list: `f(int,text)`.
2843            let (name_part, args_part) = match raw.split_once('(') {
2844                Some((n, rest)) => (n.trim(), Some(rest.trim_end_matches(')'))),
2845                None => (raw, None),
2846            };
2847            let bare = name_part
2848                .strip_prefix("public.")
2849                .unwrap_or(name_part)
2850                .trim_matches('"');
2851            let cands = cat.functions_named(bare);
2852            if let Some(args_txt) = args_part {
2853                // An overload IS distinguishable here — the argument list
2854                // is what regprocedure exists to carry.
2855                let want =
2856                    crate::system_catalog::canonical_arg_types(&alloc::format!("({args_txt})"));
2857                if let Some(f) = cands
2858                    .iter()
2859                    .find(|f| crate::system_catalog::canonical_arg_types(&f.args_repr) == want)
2860                {
2861                    let rendered = alloc::format!(
2862                        "{bare}({})",
2863                        crate::system_catalog::canonical_arg_types(&f.args_repr)
2864                    );
2865                    // v7.39 (round 342, V65) — dual shape: the oid for
2866                    // catalog joins, the rendering for display.
2867                    let oid = crate::system_catalog::function_oid_by_signature(cat, bare, &want)
2868                        .unwrap_or(0);
2869                    return Ok(Value::RegProc(oid, rendered.into()));
2870                }
2871            } else {
2872                match cands.len() {
2873                    0 => {}
2874                    1 => {
2875                        let oid = crate::system_catalog::function_oid(cat, bare).unwrap_or(0);
2876                        return Ok(Value::RegProc(oid, bare.into()));
2877                    }
2878                    _ => {
2879                        return Err(EvalError::TypeMismatch {
2880                            detail: alloc::format!("more than one function named \"{bare}\""),
2881                        });
2882                    }
2883                }
2884            }
2885        }
2886    }
2887    // v7.38 (T-tstz Phase 1) — `<timestamptz>::text` renders the offset
2888    // (`2024-01-15 10:30:00+00`); plain timestamp does not. The runtime
2889    // value is the same tz-less `Value::Timestamp`, so consult the
2890    // inner expression's static type. Falls through to the ordinary
2891    // cast on any shape the static typer can't resolve — worst case is
2892    // today's no-offset rendering, never a wrong instant.
2893    if matches!(target, CastTarget::Text)
2894        && let Value::Timestamp(t) = &v
2895        && crate::describe::describe_expr(expr, ctx.columns)
2896            .is_some_and(|s| matches!(s.ty, spg_storage::DataType::Timestamptz))
2897    {
2898        // v7.39 (tz epic) — per-VALUE session offset (DST zones
2899        // vary within a statement); non-ISO DateStyles carry the
2900        // zone designation instead of the numeric offset.
2901        let off = ctx.session_tz_offset_at(*t);
2902        let abbr = ctx.session_tz_abbrev_at(*t);
2903        return Ok(Value::text(format::format_timestamptz_tz(
2904            *t,
2905            &ctx.render_style,
2906            off,
2907            abbr.as_deref(),
2908        )));
2909    }
2910    // v7.39 (read01 utils/adt, datetime.c) — the relative
2911    // reserved words resolve against the transaction clock:
2912    // 'today'/'tomorrow'/'yesterday' are midnight dates, 'now'
2913    // is the current instant ('now'::date = today). Clockless
2914    // engines fall through to the parser (which rejects them).
2915    if matches!(
2916        target,
2917        CastTarget::Date | CastTarget::Timestamp | CastTarget::Timestamptz
2918    ) && let Value::Text(word) = &v
2919        && let Some(clock) = ctx.clock
2920    {
2921        let w = word.trim().to_ascii_lowercase();
2922        if matches!(w.as_str(), "today" | "tomorrow" | "yesterday" | "now") {
2923            let now_us = clock();
2924            let today = i32::try_from(now_us.div_euclid(86_400_000_000)).ok();
2925            if let Some(today) = today {
2926                let day = match w.as_str() {
2927                    "tomorrow" => today + 1,
2928                    "yesterday" => today - 1,
2929                    _ => today,
2930                };
2931                return Ok(match (&target, w.as_str()) {
2932                    (CastTarget::Date, _) => Value::Date(day),
2933                    (_, "now") => Value::Timestamp(now_us),
2934                    _ => Value::Timestamp(crate::conversions::date_days_to_micros(day)),
2935                });
2936            }
2937        }
2938    }
2939    // v7.39 (GUC knife 5) — text INPUT to date/timestamp under a
2940    // non-MDY DateOrder disambiguates by the session order
2941    // (`'01/02/2024'::date` is Feb 1 under DMY). The default MDY
2942    // order flows through cast_value's parse_date_literal.
2943    if ctx.render_style.date_order != format::DateOrder::Mdy {
2944        match (&target, &v) {
2945            (CastTarget::Date, Value::Text(s)) => {
2946                if let Some(d) = format::parse_date_literal_ordered(s, ctx.render_style.date_order)
2947                {
2948                    return Ok(Value::Date(d));
2949                }
2950            }
2951            (CastTarget::Timestamp, Value::Text(s)) => {
2952                if let Some(t) =
2953                    format::parse_timestamp_literal_ordered(s, ctx.render_style.date_order)
2954                {
2955                    return Ok(Value::Timestamp(t));
2956                }
2957            }
2958            _ => {}
2959        }
2960    }
2961    // v7.39 (round 309, V30) — the mirror of the timestamptz arm
2962    // below. A literal carrying a zone NAME is legal input to the
2963    // zone-less types, and PG throws the zone away rather than
2964    // converting: `'2020-01-01 10:00:00 America/New_York'::timestamp`
2965    // is 10:00, not 15:00. Round 289 did this for a numeric `+02`
2966    // offset; a named zone still failed to parse at all.
2967    //
2968    // The name is not simply stripped — PG validates it, and says so
2969    // (`time zone "bogus/zone" not recognized`, lowercased) rather than
2970    // reporting a malformed literal. That check is why this belongs
2971    // here and not in `cast_value`: resolving a zone needs the host
2972    // functions, which only the context carries.
2973    let zoneless_target = match &target {
2974        CastTarget::Timestamp => Some("timestamp"),
2975        CastTarget::Date => Some("date"),
2976        // `::time` has no CastTarget of its own; it arrives named.
2977        CastTarget::Named(n) if n.eq_ignore_ascii_case("time") => Some("time"),
2978        _ => None,
2979    };
2980    if let Some(kind) = zoneless_target
2981        && let Value::Text(txt) = &v
2982        && let Some((wall, zone)) = split_trailing_zone_name(txt, ctx.render_style.date_order)
2983    {
2984        if ctx.zone_local_to_utc(zone, wall).is_none() {
2985            // Measured boundary: PG calls the token a ZONE NAME — and
2986            // so reports a misspelling as such — only when it is
2987            // path-shaped. A bare word it does not know (`ABCD`, `QQQ`,
2988            // `UTC_X`) makes the whole literal invalid syntax instead,
2989            // because nothing marks it as having meant a zone at all.
2990            if zone.contains('/') {
2991                return Err(EvalError::TypeMismatch {
2992                    detail: alloc::format!(
2993                        "time zone \"{}\" not recognized",
2994                        zone.to_ascii_lowercase()
2995                    ),
2996                });
2997            }
2998        } else {
2999            return Ok(match kind {
3000                "date" => {
3001                    Value::Date(i32::try_from(wall.div_euclid(86_400_000_000)).map_err(|_| {
3002                        EvalError::TypeMismatch {
3003                            detail: "timestamp out of DATE range".into(),
3004                        }
3005                    })?)
3006                }
3007                "time" => Value::Time(wall.rem_euclid(86_400_000_000)),
3008                _ => Value::Timestamp(wall),
3009            });
3010        }
3011    }
3012    // v7.39 (tz epic) — timestamptz INPUT: an offset-less
3013    // literal is a wall-clock reading in the session zone
3014    // (PG); a trailing IANA zone name localises there. Both
3015    // fall through to cast_value when nothing matches (its
3016    // parse treats naive input as UTC — correct for a UTC
3017    // session).
3018    if matches!(target, CastTarget::Timestamptz)
3019        && let Value::Text(txt) = &v
3020    {
3021        let order = ctx.render_style.date_order;
3022        let sess_zone = ctx
3023            .session_gucs
3024            .and_then(|g| g.get("timezone"))
3025            .map(String::as_str);
3026        // Trailing zone name: the last space-separated token,
3027        // when it names a resolvable zone (contains a letter
3028        // and isn't consumed by the plain parse).
3029        if let Some(idx) = txt.trim_end().rfind(' ') {
3030            let (head, tail) = (txt[..idx].trim(), txt[idx + 1..].trim());
3031            let tail_is_zoneish = tail.len() > 1
3032                && tail.bytes().any(|b| b.is_ascii_alphabetic())
3033                && !tail.eq_ignore_ascii_case("bc")
3034                && !tail.eq_ignore_ascii_case("ad");
3035            if tail_is_zoneish
3036                && format::parse_timestamp_literal_tz_ordered(txt, order).is_none()
3037                && let Some((wall, false)) = format::parse_timestamp_literal_tz_ordered(head, order)
3038                && let Some(utc) = ctx.zone_local_to_utc(tail, wall)
3039            {
3040                return Ok(Value::Timestamp(utc));
3041            }
3042        }
3043        if let Some((wall, had_tz)) = format::parse_timestamp_literal_tz_ordered(txt, order) {
3044            if had_tz {
3045                return Ok(Value::Timestamp(wall));
3046            }
3047            if let Some(zone) = sess_zone
3048                && !zone.eq_ignore_ascii_case("utc")
3049                && !zone.eq_ignore_ascii_case("gmt")
3050                && let Some(utc) = ctx.zone_local_to_utc(zone, wall)
3051            {
3052                return Ok(Value::Timestamp(utc));
3053            }
3054            return Ok(Value::Timestamp(wall));
3055        }
3056    }
3057    // v7.39 (round 523) — a NAIVE timestamp cast to timestamptz is a
3058    // wall-clock reading in the session zone, exactly as the text form
3059    // above already is. This was a no-op, so under `SET TimeZone =
3060    // 'Asia/Tokyo'` a `TIMESTAMP '2020-01-01 00:00:00'::timestamptz`
3061    // named 09:00 JST — a different INSTANT, nine hours from the one PG
3062    // stores, not a different rendering of the same one.
3063    //
3064    // The source's static type is the witness: SPG keeps timestamptz in
3065    // the same `Value::Timestamp`, so only an expression that is not
3066    // ALREADY timestamptz may be shifted, or a tstz-to-tstz cast would
3067    // move the instant twice.
3068    if matches!(target, CastTarget::Timestamptz)
3069        && let Value::Timestamp(wall) = &v
3070        && !matches!(
3071            crate::describe::describe_expr(expr, ctx.columns).map(|s| s.ty),
3072            Some(spg_storage::DataType::Timestamptz)
3073        )
3074        && let Some(zone) = ctx.session_gucs.and_then(|g| g.get("timezone"))
3075        && !zone.eq_ignore_ascii_case("utc")
3076        && !zone.eq_ignore_ascii_case("gmt")
3077        && let Some(utc) = ctx.zone_local_to_utc(zone, *wall)
3078    {
3079        return Ok(Value::Timestamp(utc));
3080    }
3081    // v7.39 (round 523) — and the other direction: a timestamptz cast
3082    // DOWN to a zone-free type reads the local clock in the session
3083    // zone. `(TIMESTAMPTZ '2020-01-01 15:00:00Z')::date` answered
3084    // 2020-01-01 in Tokyo where PG answers 2020-01-02 — a whole day out
3085    // for every instant in the last nine hours of a UTC day, which is
3086    // exactly the shape a daily report groups on. `now()::timestamp`
3087    // likewise disagreed with `now() AT TIME ZONE <session zone>`, which
3088    // PG defines to be the same value.
3089    if matches!(target, CastTarget::Timestamp | CastTarget::Date)
3090        && let Value::Timestamp(t) = &v
3091        && crate::describe::describe_expr(expr, ctx.columns)
3092            .is_some_and(|s| matches!(s.ty, spg_storage::DataType::Timestamptz))
3093    {
3094        let local = t.saturating_add(ctx.session_tz_offset_at(*t));
3095        return Ok(match target {
3096            CastTarget::Date => i32::try_from(local.div_euclid(86_400_000_000))
3097                .map_or(Value::Timestamp(local), Value::Date),
3098            _ => Value::Timestamp(local),
3099        });
3100    }
3101    // v7.39 (GUC knife 3) — the out-function casts honour the
3102    // session render style, like PG's date_out/interval_out/
3103    // float8out under DateStyle/IntervalStyle/extra_float_digits.
3104    if matches!(target, CastTarget::Text) {
3105        match &v {
3106            // v7.39 (round 524) — `bytea_out` is a render GUC too.
3107            Value::Bytes(b) if ctx.render_style.bytea_escape => {
3108                return Ok(Value::text(format::format_bytea_escape(b)));
3109            }
3110            Value::Date(d) => {
3111                return Ok(Value::text(format::format_date_styled(
3112                    *d,
3113                    &ctx.render_style,
3114                )));
3115            }
3116            Value::Timestamp(t) => {
3117                return Ok(Value::text(format::format_timestamp_styled(
3118                    *t,
3119                    &ctx.render_style,
3120                )));
3121            }
3122            Value::Interval {
3123                months,
3124                days,
3125                micros,
3126                kind,
3127            } => {
3128                // v7.38.19 — an infinity is the word, in every style.
3129                if !kind.is_finite() {
3130                    return Ok(Value::text(format::format_interval_kinded(0, 0, 0, *kind)));
3131                }
3132                return Ok(Value::text(format::format_interval_styled(
3133                    *months,
3134                    *days,
3135                    *micros,
3136                    &ctx.render_style,
3137                )));
3138            }
3139            Value::Float(x) => {
3140                return Ok(Value::text(format::format_float_styled(
3141                    *x,
3142                    &ctx.render_style,
3143                )));
3144            }
3145            Value::Real(x) => {
3146                return Ok(Value::text(format::format_real_styled(
3147                    *x,
3148                    &ctx.render_style,
3149                )));
3150            }
3151            _ => {}
3152        }
3153    }
3154    crate::eval::cast::cast_value_ref_in(v, target, ctx.mysql_dialect)
3155}
3156
3157/// Out-of-lined `eval_expr` arm — keeps the recursive frame small
3158/// (stack-depth guard budget); body unchanged.
3159#[inline(never)]
3160fn eval_array_arm(
3161    items: &[Expr],
3162    row: &Row<'static>,
3163    ctx: &EvalContext<'_>,
3164) -> Result<Value<'static>, EvalError> {
3165    let mut materialised: Vec<Value<'static>> = Vec::with_capacity(items.len());
3166    for elem in items {
3167        materialised.push(eval_expr(elem, row, ctx)?);
3168    }
3169    // v7.38 (read01, T10) — a constructor whose elements are all 1-D
3170    // arrays builds a 2-D array (`ARRAY[[1,2],[3,4]]`). All rows must
3171    // share a length (PG: "multidimensional arrays must have array
3172    // expressions with matching dimensions"). Int rows promote to
3173    // bigint if any row is bigint; a text row makes the whole thing text.
3174    // v7.39 (read01 round 73) — a row of ANY array kind counts. Round 72 gave
3175    // `ARRAY[true,false]` its real `bool[]` type, and this detector only knew
3176    // Int / BigInt / Text rows — so `ARRAY[ARRAY[true,false]]` stopped being a
3177    // 2-D array at all and collapsed into a 1-D text[] of rendered rows, with
3178    // `[1][2]` failing outright. A regression THIS campaign introduced, caught by
3179    // the very sweep that was chasing its own residual. Rows that are not
3180    // int/bigint arrays render into the text 2-D form below (SPG has no bool 2-D
3181    // storage variant — a recorded residual), but they stay 2-D.
3182    let all_arrays = !materialised.is_empty()
3183        && materialised.iter().all(|v| {
3184            values::array_len(v).is_some()
3185                && !matches!(
3186                    v,
3187                    Value::TextArray2D(_)
3188                        | Value::IntArray2D(_)
3189                        | Value::BigIntArray2D(_)
3190                        | Value::BoolArray2D(_)
3191                )
3192        });
3193    if all_arrays {
3194        let row_len = values::array_len(&materialised[0]).unwrap_or(0);
3195        let same_len = materialised
3196            .iter()
3197            .all(|v| values::array_len(v) == Some(row_len));
3198        if !same_len {
3199            return Err(EvalError::TypeMismatch {
3200                detail: "multidimensional arrays must have array expressions \
3201                         with matching dimensions"
3202                    .into(),
3203            });
3204        }
3205        // v7.39 (read01 round 75) — all-BOOL rows build a real `bool[][]`. BOOL is
3206        // the one element type whose ARRAY rendering (`t`) differs from its
3207        // scalar one (`true`), so the text-backed 2-D could not be right for it:
3208        // `ARRAY[ARRAY[true,false]]::text` wants `{{t,f}}` while `[1][2]::text`
3209        // wants `false`. Every other type renders the same either way — which is
3210        // why this is the only typed 2-D SPG needs.
3211        if materialised
3212            .iter()
3213            .all(|v| matches!(v, Value::BoolArray(_)))
3214        {
3215            let rows: Vec<Vec<Option<bool>>> = materialised
3216                .into_iter()
3217                .map(|v| match v {
3218                    Value::BoolArray(r) => r,
3219                    _ => unreachable!("checked above"),
3220                })
3221                .collect();
3222            return Ok(Value::BoolArray2D(rows));
3223        }
3224        let any_text = materialised
3225            .iter()
3226            .any(|v| !matches!(v, Value::IntArray(_) | Value::BigIntArray(_)));
3227        let any_big = materialised
3228            .iter()
3229            .any(|v| matches!(v, Value::BigIntArray(_)));
3230        if any_text {
3231            let rows: Vec<Vec<Option<String>>> = materialised
3232                .into_iter()
3233                .map(|v| match v {
3234                    Value::TextArray(r) => r,
3235                    // Any other element type renders into the text 2-D form,
3236                    // element by element. SPG has no typed 2-D storage beyond
3237                    // int / bigint / text, so a bool 2-D array IS text — and the
3238                    // SCALAR rendering is the one to use: `(arr)[1][2]::text`
3239                    // must read `false`, as in PG. (`pg_typeof` reporting
3240                    // `text[]` rather than `boolean[]` is the recorded residual;
3241                    // a typed 2-D needs new storage variants.)
3242                    other => {
3243                        let n = values::array_len(&other).unwrap_or(0);
3244                        (0..n)
3245                            .map(|i| match values::array_element_at(&other, i) {
3246                                None | Some(Value::Null) => None,
3247                                Some(v) => Some(value_to_text(&v)),
3248                            })
3249                            .collect()
3250                    }
3251                })
3252                .collect();
3253            return Ok(Value::TextArray2D(rows));
3254        }
3255        if any_big {
3256            let rows: Vec<Vec<Option<i64>>> = materialised
3257                .into_iter()
3258                .map(|v| match v {
3259                    Value::BigIntArray(r) => r,
3260                    Value::IntArray(r) => r.into_iter().map(|c| c.map(i64::from)).collect(),
3261                    _ => unreachable!(),
3262                })
3263                .collect();
3264            return Ok(Value::BigIntArray2D(rows));
3265        }
3266        let rows: Vec<Vec<Option<i32>>> = materialised
3267            .into_iter()
3268            .map(|v| match v {
3269                Value::IntArray(r) => r,
3270                _ => unreachable!(),
3271            })
3272            .collect();
3273        return Ok(Value::IntArray2D(rows));
3274    }
3275    // v7.39 (read01 round 72) — a HOMOGENEOUS array of a non-numeric, non-text
3276    // type keeps that type, and is unambiguous, so it is decided BEFORE the
3277    // numeric/text unification below. Everything outside the numeric ladder and
3278    // text used to fall into that loop's `_ => has_text = true` — a silent
3279    // degradation, not a decision: `ARRAY[true, false]` came back as `text[]`.
3280    // It usually LOOKED right (array_to_string renders `t` either way), which is
3281    // exactly what let it sit; the array FUNCTIONS are what tripped over it.
3282    if let Some(v) = values::homogeneous_typed_array(&materialised) {
3283        return Ok(crate::describe::upgrade_timestamptz_array(
3284            v,
3285            items,
3286            ctx.columns,
3287        ));
3288    }
3289    // v7.39 (round 236) — PG resolves an ARRAY constructor's elements to ONE
3290    // element type and refuses the constructor when they have no common one:
3291    // `ARRAY[1, 'a'::text]` is "ARRAY types integer and text cannot be
3292    // matched". SPG degraded to `text[]` instead, so `ARRAY[1, true]` came
3293    // back as `{1,t}` — a column of rendered strings that then behaved like
3294    // text everywhere downstream. Same rule (and the same untyped-literal
3295    // subtlety) as the set-operation resolution in round 233: a bare string
3296    // literal is PG's `unknown` and takes the other elements' type, so it is
3297    // identified from the SYNTAX, not from the value's runtime type.
3298    unify_array_elements(items, &mut materialised)?;
3299    // Coercing the untyped elements can make the array homogeneous
3300    // (`ARRAY[true,'t']` becomes two booleans), so re-try the typed-array
3301    // path before falling into the numeric/text ladder below — otherwise
3302    // the now-uniform boolean array would still degrade to text[].
3303    if let Some(v) = values::homogeneous_typed_array(&materialised) {
3304        return Ok(crate::describe::upgrade_timestamptz_array(
3305            v,
3306            items,
3307            ctx.columns,
3308        ));
3309    }
3310    let mut has_text = false;
3311    let mut has_float = false;
3312    let mut has_numeric = false;
3313    let mut has_bigint = false;
3314    let mut has_int = false;
3315    // A NumericBig or non-finite (NaN/Inf) numeric can't be held in
3316    // NumericArray's `(i128, scale)` cells, so it forces the text[]
3317    // fallback rather than a lossy/panicking conversion.
3318    let mut numeric_representable = true;
3319    for v in &materialised {
3320        match v {
3321            Value::Null => {}
3322            Value::Int(_) | Value::SmallInt(_) => has_int = true,
3323            Value::BigInt(_) => has_bigint = true,
3324            Value::Numeric {
3325                kind: spg_storage::NumericKind::Finite,
3326                ..
3327            } => {
3328                has_numeric = true;
3329            }
3330            Value::Numeric { .. } => {
3331                has_numeric = true;
3332                numeric_representable = false;
3333            }
3334            Value::NumericBig(_) => {
3335                has_numeric = true;
3336                numeric_representable = false;
3337            }
3338            Value::Float(_) => has_float = true,
3339            Value::Text(_) | Value::Json(_) => has_text = true,
3340            // v7.39 (round 652) — a reg value belongs to the array by
3341            // its OID half. Falling into the catch-all made
3342            // `ARRAY['pg_class'::regclass]` a text array, so
3343            // `oid = ANY(…)` compared bigint against text and was
3344            // refused — while the identical `oid = 'pg_class'::regclass`
3345            // worked. Same defect the IN-list gate had, one layer down.
3346            Value::RegClass(..) | Value::RegProc(..) | Value::RegType(..) => has_bigint = true,
3347            _ => has_text = true,
3348        }
3349    }
3350    let any_numlike = has_int || has_bigint || has_numeric || has_float;
3351    if has_text || !any_numlike || (has_numeric && !numeric_representable) {
3352        let out: Vec<Option<String>> = materialised
3353            .into_iter()
3354            .map(|v| match v {
3355                Value::Null => None,
3356                Value::Text(s) | Value::Json(s) => Some(s.into_owned()),
3357                other => Some(value_to_text_for_array(&other, &ctx.render_style)),
3358            })
3359            .collect();
3360        return Ok(Value::TextArray(out));
3361    }
3362    // v7.38 (read01) — PG array-element unification across the numeric
3363    // ladder: any float → double precision[]; else any numeric →
3364    // numeric[] (each element keeps its own scale, PG's behaviour);
3365    // else the integer widths. Matches `pg_typeof(ARRAY[1, 2.5])` =
3366    // numeric[] and keeps downstream `[i]` arithmetic numeric.
3367    if has_float {
3368        let out: Vec<Option<f64>> = materialised
3369            .into_iter()
3370            .map(|v| match v {
3371                Value::Null => None,
3372                Value::Float(f) => Some(f),
3373                Value::Int(n) => Some(f64::from(n)),
3374                Value::SmallInt(n) => Some(f64::from(n)),
3375                #[allow(clippy::cast_precision_loss)]
3376                Value::BigInt(n) => Some(n as f64),
3377                #[allow(clippy::cast_precision_loss)]
3378                Value::Numeric { scaled, scale, .. } => {
3379                    Some(scaled as f64 / libm::pow(10.0, f64::from(scale)))
3380                }
3381                _ => None,
3382            })
3383            .collect();
3384        return Ok(Value::FloatArray(out));
3385    }
3386    if has_numeric {
3387        let out: Vec<Option<(i128, u16)>> = materialised
3388            .into_iter()
3389            .map(|v| match v {
3390                Value::Null => None,
3391                Value::SmallInt(n) => Some((i128::from(n), 0)),
3392                Value::Int(n) => Some((i128::from(n), 0)),
3393                Value::BigInt(n) => Some((i128::from(n), 0)),
3394                Value::Numeric { scaled, scale, .. } => Some((scaled, scale)),
3395                _ => None,
3396            })
3397            .collect();
3398        return Ok(Value::NumericArray(out));
3399    }
3400    if has_bigint {
3401        let out: Vec<Option<i64>> = materialised
3402            .into_iter()
3403            .map(|v| match v {
3404                Value::Null => None,
3405                Value::Int(n) => Some(i64::from(n)),
3406                Value::SmallInt(n) => Some(i64::from(n)),
3407                Value::BigInt(n) => Some(n),
3408                // Keep in step with the `has_bigint` classification above:
3409                // whatever is counted there has to be convertible here, and
3410                // the arm below panics rather than errors. Round 652 added
3411                // the reg family to the classifier and this materialiser
3412                // took a wire-visible panic until it learned them too.
3413                Value::RegClass(oid, _) | Value::RegProc(oid, _) | Value::RegType(oid, _) => {
3414                    Some(oid)
3415                }
3416                _ => unreachable!(),
3417            })
3418            .collect();
3419        return Ok(Value::BigIntArray(out));
3420    }
3421    let out: Vec<Option<i32>> = materialised
3422        .into_iter()
3423        .map(|v| match v {
3424            Value::Null => None,
3425            Value::Int(n) => Some(n),
3426            Value::SmallInt(n) => Some(i32::from(n)),
3427            _ => unreachable!(),
3428        })
3429        .collect();
3430    Ok(Value::IntArray(out))
3431}
3432
3433/// Out-of-lined `eval_expr` arm — keeps the recursive frame small
3434/// (stack-depth guard budget); body unchanged.
3435#[inline(never)]
3436fn eval_function_call_arm(
3437    name: &str,
3438    args: &[Expr],
3439    row: &Row<'static>,
3440    ctx: &EvalContext<'_>,
3441) -> Result<Value<'static>, EvalError> {
3442    // v7.39 (read01 round 77) — named arguments (`f(x := 1)` / `f(x => 1)`).
3443    // The parser leaves them in the tree because only the catalog knows a user
3444    // function's parameter names; here they become positional, once, for
3445    // builtins and user functions alike.
3446    // v7.39 (read01 round 100) — `VARIADIC <array>` splices the array's
3447    // elements in as individual trailing arguments before dispatch, so a
3448    // variadic builtin (concat / concat_ws / format / …) sees them exactly as
3449    // if they had been written out. Done before the named-arg pass and the
3450    // positional dispatch.
3451    if args.iter().any(|a| matches!(a, Expr::Variadic(_))) {
3452        let expanded = expand_variadic_args(args, row, ctx)?;
3453        return eval_function_call_arm(name, &expanded, row, ctx);
3454    }
3455    // v7.39 (round 276) — `date_part('timezone'|…, <timestamp>)` must be
3456    // REJECTED the way EXTRACT already rejects it, and the judgement
3457    // needs the argument's STATIC declared type: SPG stores timestamptz
3458    // in the same `Value::Timestamp`, so a timestamptz legitimately
3459    // answers 0 while a plain timestamp must error. The dispatch below
3460    // receives values, not expressions, so the check belongs here —
3461    // the same place, and the same r237 trust rule (only a cast or a
3462    // column is believed), that the EXTRACT arm uses.
3463    if name.eq_ignore_ascii_case("date_part")
3464        && args.len() == 2
3465        && let Expr::Literal(spg_sql::ast::Literal::String(unit)) = &args[0]
3466        && matches!(
3467            unit.to_ascii_lowercase().as_str(),
3468            "timezone" | "timezone_hour" | "timezone_minute"
3469        )
3470        && matches!(&args[1], Expr::Cast { .. } | Expr::Column(_))
3471        && let Some(sch) = crate::describe::describe_expr(&args[1], ctx.columns)
3472        && matches!(sch.ty, spg_storage::DataType::Timestamp)
3473    {
3474        return Err(EvalError::TypeMismatch {
3475            detail: alloc::format!(
3476                "unit \"{}\" not supported for type timestamp without time zone",
3477                unit.to_ascii_lowercase()
3478            ),
3479        });
3480    }
3481    // v7.39 (round 258) — `pg_typeof` over an ENUM. An enum value travels
3482    // as `Value::Text` (its label), so the value-driven namer answered
3483    // `text`; the type lives in the EXPRESSION, which this arm still has.
3484    // `expr_enum_type_name` resolves a column or a cast statically — the
3485    // same static-only discipline round 253 used for EXTRACT's type name.
3486    if name.eq_ignore_ascii_case("pg_typeof")
3487        && let [arg] = args
3488    {
3489        // The name must be a REAL enum in the catalog. `expr_enum_type_name`
3490        // returns any named cast's target verbatim — it is only a
3491        // pre-filter for `expr_enum_labels`, which does the catalog
3492        // lookup — so using it alone hijacked every `x::float8` /
3493        // `x::int2` and reported SPG's internal spelling instead of PG's.
3494        // v7.39 (round 259) — domains report their own name too; like an
3495        // enum, a domain value travels as its BASE type's value, so the
3496        // name has to come from the expression. Both lookups are gated on
3497        // the catalog: `expr_enum_type_name` returns ANY named cast's
3498        // target verbatim, so an ungated use hijacks `x::float8`.
3499        let is_user_type = |e: &Expr| {
3500            expr_enum_type_name(e, ctx.columns)
3501                .filter(|n| {
3502                    // v7.39 (round 330, V48) — the information_schema
3503                    // domains are built into the server rather than
3504                    // catalog objects (a catalog domain is user data and
3505                    // would be dumped), so they are recognised here too.
3506                    crate::system_catalog::is_information_schema_domain(n)
3507                        || ctx.catalog.is_some_and(|cat| {
3508                            cat.enum_types().contains_key(*n)
3509                                || cat.domain_types().contains_key(*n)
3510                                // v7.39 (round 263) — composites too: a cast
3511                                // to one reported the generic `record`.
3512                                || cat.composite_types().contains_key(*n)
3513                        })
3514                })
3515                .map(alloc::string::String::from)
3516        };
3517        // v7.38.19 — a cast to a PSEUDO-type reports what PostgreSQL
3518        // reports, which is not always the name written.
3519        //
3520        // Measured on 18.4 rather than reasoned about: `cstring` and
3521        // `void` report themselves, while `anyelement`, `anynonarray`
3522        // and `unknown` all report `unknown` -- a polymorphic
3523        // placeholder resolves against the argument, and a bare literal
3524        // gives it nothing to resolve to. The value travels as text
3525        // either way, which is why the name has to come from the
3526        // expression: `'x'::cstring` renders `x` on both engines and
3527        // answered `text` here.
3528        //
3529        // The list here is SHORTER than `pseudo_type`'s on purpose: it
3530        // is the names measured on 18.4 for this call, no more. `record`
3531        // is the reason it has to be. `pg_typeof(ROW(1,'x')::r285::record)`
3532        // answers `r285` -- the composite's own name, not `record` --
3533        // and a first draft that reported every pseudo-type here turned
3534        // that into `unknown`, which `e2e_record_type_round285` caught.
3535        if let Some(named) = expr_enum_type_name(arg, ctx.columns)
3536            && let Some(pseudo) = crate::conversions::pseudo_type(named)
3537            && matches!(
3538                pseudo,
3539                "cstring" | "void" | "anyelement" | "anynonarray" | "unknown"
3540            )
3541        {
3542            return Ok(Value::text(match pseudo {
3543                "cstring" | "void" => pseudo,
3544                _ => "unknown",
3545            }));
3546        }
3547        let is_enum = is_user_type;
3548        if let Some(en) = is_enum(arg) {
3549            return Ok(Value::text(en));
3550        }
3551        // `ARRAY[<enum>, …]` reports the array form.
3552        if let Expr::Array(items) = arg
3553            && let Some(first) = items.first()
3554            && let Some(en) = is_enum(first)
3555        {
3556            return Ok(Value::text(alloc::format!("{en}[]")));
3557        }
3558    }
3559    if args.iter().any(|a| matches!(a, Expr::NamedArg { .. })) {
3560        let positional = resolve_named_args(name, args, ctx)?;
3561        return eval_function_call_arm(name, &positional, row, ctx);
3562    }
3563    eval_function_call_positional(name, args, row, ctx)
3564}
3565
3566/// v7.39 (read01 round 100) — rewrite a call's argument list, replacing each
3567/// `VARIADIC <array>` with the array's elements as literal arguments. A NULL
3568/// array contributes no elements (PG treats `VARIADIC NULL` as empty). Regular
3569/// arguments are carried through untouched so they still evaluate against the
3570/// row in the recursive call.
3571fn expand_variadic_args(
3572    args: &[Expr],
3573    row: &Row<'static>,
3574    ctx: &EvalContext<'_>,
3575) -> Result<alloc::vec::Vec<Expr>, EvalError> {
3576    let mut out = alloc::vec::Vec::with_capacity(args.len());
3577    for a in args {
3578        if let Expr::Variadic(inner) = a {
3579            let v = eval_expr(inner, row, ctx)?;
3580            let elems = crate::select::array_value_to_elements(&v).map_err(|_| {
3581                EvalError::TypeMismatch {
3582                    detail: "VARIADIC argument must be an array".into(),
3583                }
3584            })?;
3585            for e in elems {
3586                out.push(Expr::Literal(crate::value_to_literal(e)));
3587            }
3588        } else {
3589            out.push(a.clone());
3590        }
3591    }
3592    Ok(out)
3593}
3594
3595/// The declared parameter names of `fname`, or `None` when it takes none.
3596/// Builtins whose parameters PG names live in the table; everything else asks
3597/// the catalog, where a user function's `args_repr` has carried its parameter
3598/// names since the day CREATE FUNCTION stored them.
3599fn declared_param_names(fname: &str, ctx: &EvalContext<'_>) -> Option<alloc::vec::Vec<String>> {
3600    let lower = fname.to_ascii_lowercase();
3601    let builtin: &[&str] = match lower.as_str() {
3602        "make_date" => &["year", "month", "day"],
3603        "make_time" => &["hour", "min", "sec"],
3604        "make_timestamp" | "make_timestamptz" => &["year", "month", "mday", "hour", "min", "sec"],
3605        "make_interval" => &["years", "months", "weeks", "days", "hours", "mins", "secs"],
3606        _ => &[],
3607    };
3608    if !builtin.is_empty() {
3609        return Some(builtin.iter().map(|s| (*s).to_string()).collect());
3610    }
3611    let cat = ctx.catalog?;
3612    let def = cat
3613        .functions()
3614        .values()
3615        .find(|f| f.name.eq_ignore_ascii_case(&lower))?;
3616    let names = spg_storage::function_arg_names(&def.args_repr);
3617    if names.iter().all(alloc::string::String::is_empty) {
3618        return None;
3619    }
3620    Some(names)
3621}
3622
3623/// Rewrite a call's arguments into positional order. Positional arguments fill
3624/// slots left to right; a named one goes to its declared slot. Slots nobody
3625/// filled stay absent for a user function (arity is checked at the call) and
3626/// become integer 0 for the `make_*` builtins, whose trailing fields PG
3627/// defaults that way.
3628fn resolve_named_args(
3629    fname: &str,
3630    args: &[Expr],
3631    ctx: &EvalContext<'_>,
3632) -> Result<alloc::vec::Vec<Expr>, EvalError> {
3633    let Some(params) = declared_param_names(fname, ctx) else {
3634        return Err(EvalError::TypeMismatch {
3635            detail: alloc::format!("function {fname}(...) does not support named arguments"),
3636        });
3637    };
3638    let mut slots: alloc::vec::Vec<Option<Expr>> = (0..params.len()).map(|_| None).collect();
3639    let mut next_positional = 0usize;
3640    for a in args {
3641        let (idx, val) = match a {
3642            Expr::NamedArg { name, expr } => {
3643                let i = params
3644                    .iter()
3645                    .position(|p| p.eq_ignore_ascii_case(name))
3646                    .ok_or_else(|| EvalError::TypeMismatch {
3647                        detail: alloc::format!("{fname}(...) has no argument named \"{name}\""),
3648                    })?;
3649                (i, (**expr).clone())
3650            }
3651            other => {
3652                let i = next_positional;
3653                next_positional += 1;
3654                (i, other.clone())
3655            }
3656        };
3657        if idx >= slots.len() {
3658            return Err(EvalError::TypeMismatch {
3659                detail: alloc::format!("{fname}(...) got too many arguments"),
3660            });
3661        }
3662        if slots[idx].is_some() {
3663            return Err(EvalError::TypeMismatch {
3664                detail: alloc::format!("{fname}(...) got multiple values for one argument"),
3665            });
3666        }
3667        slots[idx] = Some(val);
3668    }
3669    let make_family = fname.to_ascii_lowercase().starts_with("make_");
3670    let mut out = alloc::vec::Vec::with_capacity(slots.len());
3671    for slot in slots {
3672        match slot {
3673            Some(e) => out.push(e),
3674            None if make_family => {
3675                out.push(Expr::Literal(spg_sql::ast::Literal::Integer(0)));
3676            }
3677            // A user function's unfilled slot is simply not passed; the call's
3678            // own arity check phrases the error.
3679            None => {}
3680        }
3681    }
3682    Ok(out)
3683}
3684
3685fn eval_function_call_positional(
3686    name: &str,
3687    args: &[Expr],
3688    row: &Row<'static>,
3689    ctx: &EvalContext<'_>,
3690) -> Result<Value<'static>, EvalError> {
3691    // v7.39 (round 237) — COALESCE / GREATEST / LEAST resolve their
3692    // arguments to one type the way CASE and ARRAY do. Checked statically:
3693    // an argument may have side effects (`COALESCE(nextval('s'), 1)`), so
3694    // its declared type is read rather than its value.
3695    if matches!(args.len(), 2..) {
3696        let construct = if name.eq_ignore_ascii_case("coalesce") {
3697            Some("COALESCE")
3698        } else if name.eq_ignore_ascii_case("greatest") {
3699            Some("GREATEST")
3700        } else if name.eq_ignore_ascii_case("least") {
3701            Some("LEAST")
3702        } else {
3703            None
3704        };
3705        if let Some(construct) = construct {
3706            unify_branch_types_static(construct, args.iter(), ctx)?;
3707        }
3708    }
3709    // v7.39 (read01 utils/adt, enum.c) — the enum introspection
3710    // v7.39 (read01 utils/adt, enum.c) — the enum introspection
3711    // family needs the ARGUMENT'S STATIC TYPE (the value is
3712    // usually NULL::enumtype): first/last/range over the
3713    // catalog's member order. Out-of-line so eval_expr's
3714    // recursion frame stays small (stack-depth guard budget).
3715    if (name.eq_ignore_ascii_case("enum_first")
3716        || name.eq_ignore_ascii_case("enum_last")
3717        || name.eq_ignore_ascii_case("enum_range"))
3718        && enum_introspection_applies(args, ctx)
3719    {
3720        return eval_enum_introspection(name, args, row, ctx);
3721    }
3722    // v7.39 (tz epic) — AT TIME ZONE (fn form: timezone(zone, ts))
3723    // with a NAMED zone needs the host tzdb and the argument's
3724    // static type for its two directions:
3725    //   naive AT ZONE  -> that zone's wall clock -> UTC instant
3726    //   tstz  AT ZONE  -> UTC instant -> that zone's wall clock
3727    // Fixed offsets / abbreviations keep the legacy path below.
3728    // v7.39 (round 523) — `to_char(tstz, fmt)` renders the LOCAL clock
3729    // in the session zone, and its zone tokens name that zone. It was
3730    // rendering the UTC reading and spelling it `UTC`, so a formatted
3731    // stamp disagreed with the same value's own `::text`.
3732    if args.len() == 2
3733        && name.eq_ignore_ascii_case("to_char")
3734        && let Some(zone) = ctx.session_gucs.and_then(|g| g.get("timezone"))
3735        && !zone.eq_ignore_ascii_case("utc")
3736        && !zone.eq_ignore_ascii_case("gmt")
3737        && crate::describe::describe_expr(&args[0], ctx.columns)
3738            .is_some_and(|s| matches!(s.ty, spg_storage::DataType::Timestamptz))
3739        && let Value::Timestamp(t) = eval_expr(&args[0], row, ctx)?
3740    {
3741        let off = ctx.session_tz_offset_at(t);
3742        let abbrev = ctx
3743            .session_tz_abbrev_at(t)
3744            .unwrap_or_else(|| zone.to_uppercase());
3745        let vals = [
3746            Value::Timestamp(t.saturating_add(off)),
3747            eval_expr(&args[1], row, ctx)?,
3748        ];
3749        return crate::eval::strings::to_char_in_zone(&vals, Some((&abbrev, off)));
3750    }
3751    // v7.39 (round 523) — `date_trunc(unit, tstz)` truncates on the
3752    // LOCAL calendar in the session zone. It was truncating in UTC and
3753    // rendering the result in the session zone, so under `SET TimeZone =
3754    // 'Asia/Tokyo'` a day truncation answered `2020-01-01 09:00:00+09` —
3755    // not a day boundary at all, and the wrong day for anything before
3756    // 09:00. Every report grouped by day was cut nine hours late.
3757    //
3758    // The three-argument form already does exactly this, DST reverse
3759    // lookup and all, so the session zone is passed to THAT rather than
3760    // written a second time. Only a statically-known timestamptz shifts:
3761    // a naive timestamp has no zone to be read in.
3762    if args.len() == 2
3763        && (name.eq_ignore_ascii_case("date_trunc") || name.eq_ignore_ascii_case("date_bin"))
3764        && let Some(zone) = ctx.session_gucs.and_then(|g| g.get("timezone"))
3765        && !zone.eq_ignore_ascii_case("utc")
3766        && !zone.eq_ignore_ascii_case("gmt")
3767        && crate::describe::describe_expr(&args[1], ctx.columns)
3768            .is_some_and(|s| matches!(s.ty, spg_storage::DataType::Timestamptz))
3769    {
3770        let vals = [
3771            eval_expr(&args[0], row, ctx)?,
3772            eval_expr(&args[1], row, ctx)?,
3773            Value::text(zone.clone()),
3774        ];
3775        return datetime::date_trunc(&vals, ctx);
3776    }
3777    if args.len() == 2
3778        && name.eq_ignore_ascii_case("timezone")
3779        && let zone_v = eval_expr(&args[0], row, ctx)?
3780        && let Value::Text(zone) = &zone_v
3781        && datetime::resolve_zone_offset(zone.as_ref()).is_none()
3782        && !zone.trim().eq_ignore_ascii_case("utc")
3783        && !zone.trim().eq_ignore_ascii_case("gmt")
3784        && zone.parse::<i64>().is_err()
3785        && ctx.tz_offset_fn.is_some()
3786    {
3787        let zone = zone.trim();
3788        let src_is_tstz = crate::describe::describe_expr(&args[1], ctx.columns)
3789            .is_some_and(|s| matches!(s.ty, spg_storage::DataType::Timestamptz));
3790        let inner = eval_expr(&args[1], row, ctx)?;
3791        if let Value::Timestamp(t) = inner {
3792            if src_is_tstz {
3793                if let Some(off) = ctx.zone_offset_at(zone, t) {
3794                    return Ok(Value::Timestamp(t + off));
3795                }
3796            } else if let Some(utc) = ctx.zone_local_to_utc(zone, t) {
3797                return Ok(Value::Timestamp(utc));
3798            }
3799            return Err(EvalError::TypeMismatch {
3800                detail: alloc::format!("time zone \"{zone}\" not recognized"),
3801            });
3802        }
3803    }
3804    // v7.29 (round-22 phase 3) - prefix fast path: LEFT(col, n)
3805    // on a TEXT column borrows the cell and clones only the
3806    // prefix. The generic path clones the WHOLE cell first -
3807    // a LEFT(body, 120) over 24k x 30 KB rows spent 383 ms
3808    // copying bytes it then threw away (7 ms without LEFT).
3809    if args.len() == 2
3810        && name.eq_ignore_ascii_case("left")
3811        && let Expr::Column(c) = &args[0]
3812        && let Some(cell) = resolve_column_borrowed(c, row, ctx)?
3813    {
3814        {
3815            match cell {
3816                Value::Null => return Ok(Value::Null),
3817                Value::Text(t) => {
3818                    let n_v = eval_expr(&args[1], row, ctx)?;
3819                    if let Value::SmallInt(_) | Value::Int(_) | Value::BigInt(_) = n_v {
3820                        let n = match n_v {
3821                            Value::SmallInt(x) => i64::from(x),
3822                            Value::Int(x) => i64::from(x),
3823                            Value::BigInt(x) => x,
3824                            _ => 0,
3825                        };
3826                        return Ok(Value::text(text_prefix_chars(t, n)));
3827                    }
3828                }
3829                _ => {}
3830            }
3831        }
3832    }
3833    // v7.38 (T-tstz Phase 1) — the ONE case where pg_typeof needs the
3834    // static type: timestamptz. The runtime value is a tz-less
3835    // Value::Timestamp, so the value-driven answer below can only ever
3836    // say "without time zone". For every other type the value-driven
3837    // path is strictly better (it distinguishes json vs jsonb, keeps
3838    // NULL as "unknown", and is not fooled by describe_expr's lossy
3839    // heuristics), so we consult the static typer ONLY when it says
3840    // Timestamptz and otherwise fall through untouched.
3841    if args.len() == 1
3842        && name.eq_ignore_ascii_case("pg_typeof")
3843        && crate::describe::describe_expr(&args[0], ctx.columns)
3844            .is_some_and(|s| matches!(s.ty, spg_storage::DataType::Timestamptz))
3845    {
3846        return Ok(Value::text::<alloc::string::String>(
3847            "timestamp with time zone".into(),
3848        ));
3849    }
3850    // v7.39 (round 694) — `oid[]`. Its VALUE is a BigIntArray, so the
3851    // value-driven namer answers `bigint[]`; the declared type lives in the
3852    // expression, exactly as it does for the Timestamptz arm above and for
3853    // the enum / domain / composite arms further down. The scalar `oid`
3854    // needed the same treatment in round 667.
3855    if args.len() == 1
3856        && name.eq_ignore_ascii_case("pg_typeof")
3857        && crate::describe::describe_expr(&args[0], ctx.columns)
3858            .is_some_and(|s| matches!(s.ty, spg_storage::DataType::OidArray))
3859    {
3860        return Ok(Value::text::<alloc::string::String>("oid[]".into()));
3861    }
3862    // v7.39 (read01 round 56) — a COMPOSITE column reports its type NAME, not
3863    // the generic `record` the runtime value would give. Composite-ness lives
3864    // outside the DataType lattice (the stored form is JSON), so the witness is
3865    // the column's `user_composite_type` — the same shape as the enum witness.
3866    if args.len() == 1
3867        && name.eq_ignore_ascii_case("pg_typeof")
3868        && let Expr::Column(c) = &args[0]
3869        && let Some(cname) = ctx
3870            .columns
3871            .iter()
3872            .find(|sc| sc.name.eq_ignore_ascii_case(&c.name))
3873            .and_then(|sc| sc.user_composite_type.as_deref())
3874    {
3875        return Ok(Value::text::<alloc::string::String>(cname.into()));
3876    }
3877    // v7.39 (round 291) — `name` is a DECLARED type over a Value::Text,
3878    // so the value can never witness it; the schema is the only witness,
3879    // exactly as for a composite column above.
3880    if args.len() == 1
3881        && name.eq_ignore_ascii_case("pg_typeof")
3882        && let Expr::Column(c) = &args[0]
3883        && ctx
3884            .columns
3885            .iter()
3886            .any(|sc| sc.name.eq_ignore_ascii_case(&c.name) && sc.ty == spg_storage::DataType::Name)
3887    {
3888        return Ok(Value::text::<alloc::string::String>("name".into()));
3889    }
3890    // …and the same for a bare `'abc'::name`, where the cast TARGET is
3891    // the witness. PG computes pg_typeof statically; SPG reads the
3892    // value, which by then is an ordinary text.
3893    if args.len() == 1
3894        && name.eq_ignore_ascii_case("pg_typeof")
3895        && let Expr::Cast {
3896            target: spg_sql::ast::CastTarget::Named(n),
3897            ..
3898        } = &args[0]
3899        && n.eq_ignore_ascii_case("name")
3900    {
3901        return Ok(Value::text::<alloc::string::String>("name".into()));
3902    }
3903    // v7.39 (read01 round 116) — a bare, uncoerced string literal is PG's
3904    // `unknown` type, not text: `pg_typeof('x')` / `pg_typeof('123')` /
3905    // `pg_typeof('2024-01-01')` all report `unknown`. The literal only becomes
3906    // text once context coerces it — a cast (`'x'::text`), a concatenation, or
3907    // a function argument — each of which is a different Expr node that falls
3908    // through to the value-driven path below (which correctly says text).
3909    if args.len() == 1
3910        && name.eq_ignore_ascii_case("pg_typeof")
3911        && matches!(&args[0], Expr::Literal(spg_sql::ast::Literal::String(_)))
3912    {
3913        return Ok(Value::text::<alloc::string::String>("unknown".into()));
3914    }
3915    // v7.37.16 — pg_typeof of a NULL cell reports the COLUMN's
3916    // static type when it has one (PG: `VALUES (NULL),(1.5)`
3917    // types the column numeric and its NULL row's pg_typeof says
3918    // numeric, not unknown).
3919    //
3920    // A BARE `NULL` stays "unknown", as PG has it. That used to fall
3921    // out of TEXT being absent from the name table — a NULL literal
3922    // describes as TEXT, so the lookup returned None and the caller
3923    // reported unknown. Round 871 filled that table in, which silently
3924    // took the bare-NULL behaviour with it and broke
3925    // `pg_typeof_null_returns_unknown`. The rule is now stated rather
3926    // than emergent: an untyped NULL literal is unknown, a NULL that
3927    // was cast reports what it was cast to.
3928    if args.len() == 1 && name.eq_ignore_ascii_case("pg_typeof") {
3929        if matches!(&args[0], Expr::Literal(spg_sql::ast::Literal::Null)) {
3930            return Ok(Value::text::<alloc::string::String>("unknown".into()));
3931        }
3932        let v = eval_expr(&args[0], row, ctx)?;
3933        if matches!(v, Value::Null)
3934            && let Some(shape) = crate::describe::describe_expr(&args[0], ctx.columns)
3935            && let Some(n) = pg_typeof_name_for_datatype(shape.ty)
3936        {
3937            return Ok(Value::text(n));
3938        }
3939        // v7.39 (round 640) — a NON-null cell normally answers from the
3940        // value, which is right for every type whose identity the value
3941        // carries. `xid8` has no value of its own — a cell is a
3942        // `Value::BigInt` — so it can only ever say "bigint" unless the
3943        // schema is asked. `xid` is listed with it because a cell that
3944        // reached here as a plain integer (a synthesised catalog row
3945        // that has not been converted) should still name its column's
3946        // type rather than the storage it arrived in.
3947        //
3948        // v7.39 (round 667) — `oid` joins them for the same reason and no
3949        // other: its cell is a `Value::BigInt` too, so `pg_typeof(1::oid)`
3950        // answered `bigint`. Still not a general switch — where the value
3951        // knows its own identity it is the better witness, because an
3952        // expression's static shape is an approximation and its result is
3953        // the fact.
3954        if !matches!(v, Value::Null)
3955            && let Some(shape) = crate::describe::describe_expr(&args[0], ctx.columns)
3956            && matches!(
3957                shape.ty,
3958                spg_storage::DataType::Xid
3959                    | spg_storage::DataType::Xid8
3960                    | spg_storage::DataType::Oid
3961            )
3962            && let Some(n) = pg_typeof_name_for_datatype(shape.ty)
3963        {
3964            return Ok(Value::text(n));
3965        }
3966        return apply_function(name, &[v], ctx);
3967    }
3968    // v7.37 D.1 — COALESCE result-type coercion. PG gives COALESCE the
3969    // common type of its branches, so a typed sibling (`NULL::time`,
3970    // `col::time`) makes the whole expression that type and an untyped
3971    // string-literal branch is coerced to it. Without this,
3972    // `COALESCE(NULL::time, '12:00')::text` rendered the raw `12:00`
3973    // instead of `12:00:00`. Only kicks in when the picked value is a
3974    // bare Text and a non-text cast-target sibling exists.
3975    if name.eq_ignore_ascii_case("coalesce") && !args.is_empty() {
3976        // v7.39 (round 609) — PG's COALESCE does not evaluate a branch past
3977        // the first non-NULL one. This evaluated every branch into a `Vec`
3978        // and so RAISED errors PG never raises: `coalesce(1, 1/0)`,
3979        // `coalesce(NULL, 2, 1/0)` and `coalesce(1, NULL, 1/0)` all failed
3980        // with "division by zero" where PG answers 1, 2 and 1.
3981        //
3982        // A branch after the pick is still READ for its type — that is what
3983        // decides the result's, and `COALESCE(1, 2.5)` is numeric in both
3984        // engines — but its error is discarded, because PG never runs it and
3985        // so never reports it. A branch that fails contributes no type,
3986        // which is the same as SPG having no declared type to widen to.
3987        //
3988        // The two `Vec`s this replaces cost two allocations a row even for
3989        // `coalesce(id, 0)` over a plain INTEGER column, where the answer
3990        // needs none.
3991        let mut result: Option<Value<'static>> = None;
3992        let mut tbuf = [spg_storage::DataType::Int; 8];
3993        let mut ntypes = 0usize;
3994        let mut spill: Vec<spg_storage::DataType> = Vec::new();
3995        for a in args {
3996            let v = if result.is_none() {
3997                eval_expr(a, row, ctx)?
3998            } else {
3999                match eval_expr(a, row, ctx) {
4000                    Ok(v) => v,
4001                    Err(_) => continue,
4002                }
4003            };
4004            // v7.39 (round 649) — a NULL branch still has a TYPE, and PG
4005            // resolves COALESCE's result from the branches' declared
4006            // types, not from the values that survive. `Value::Null` has
4007            // no `data_type()`, so `coalesce(1::int, NULL::float8)`
4008            // collected only `integer` and answered integer where PG
4009            // answers double precision. Ask the expression when the
4010            // value cannot say — inside the arm that already runs, and
4011            // only on the NULL that would otherwise contribute nothing.
4012            let branch_ty = match v.data_type() {
4013                Some(t) => Some(t),
4014                None => crate::describe::describe_expr(a, ctx.columns).map(|sh| sh.ty),
4015            };
4016            if let Some(t) = branch_ty {
4017                if ntypes < tbuf.len() {
4018                    tbuf[ntypes] = t;
4019                    ntypes += 1;
4020                } else {
4021                    spill.push(t);
4022                }
4023            }
4024            if result.is_none() && !matches!(v, Value::Null) {
4025                result = Some(v);
4026            }
4027        }
4028        let result = result.unwrap_or(Value::Null);
4029        if matches!(result, Value::Text(_)) {
4030            if let Some(target) = args.iter().find_map(coalesce_type_hint) {
4031                return crate::eval::cast::cast_value(result, target);
4032            }
4033        }
4034        // v7.38 (read01) — otherwise widen the picked value to the PG
4035        // common type of all branches (COALESCE(1, 2.5) → numeric).
4036        if spill.is_empty() {
4037            return Ok(widen_to_common(result, &tbuf[..ntypes]));
4038        }
4039        let mut types: Vec<spg_storage::DataType> = tbuf[..ntypes].to_vec();
4040        types.append(&mut spill);
4041        return Ok(widen_to_common(result, &types));
4042    }
4043    let evaluated: Result<Vec<Value<'static>>, _> =
4044        args.iter().map(|a| eval_expr(a, row, ctx)).collect();
4045    let evaluated = evaluated?;
4046    // v7.39 (read01 json.c) — to_json(timestamptz) spells the instant in
4047    // ISO 8601 WITH the session-zone offset ("2024-03-09T14:05:06+00:00"),
4048    // unlike plain timestamp. The runtime value carries no tz tag, so the
4049    // argument's static type is the witness.
4050    if (name.eq_ignore_ascii_case("to_json") || name.eq_ignore_ascii_case("to_jsonb"))
4051        && evaluated.len() == 1
4052        && let Some(Value::Timestamp(t)) = evaluated.first()
4053        && args.first().is_some_and(|a| {
4054            crate::describe::describe_expr(a, ctx.columns)
4055                .is_some_and(|sh| matches!(sh.ty, spg_storage::DataType::Timestamptz))
4056        })
4057    {
4058        let off = ctx.session_tz_offset_at(*t);
4059        let local = t + off;
4060        let days = local.div_euclid(86_400_000_000);
4061        let day_us = local.rem_euclid(86_400_000_000);
4062        let (y, mo, d) = civil_from_days(i32::try_from(days).unwrap_or(0));
4063        let secs = day_us / 1_000_000;
4064        let frac = day_us % 1_000_000;
4065        let (hh, mi, ss) = (secs / 3600, (secs / 60) % 60, secs % 60);
4066        let mut txt = alloc::format!("{y:04}-{mo:02}-{d:02}T{hh:02}:{mi:02}:{ss:02}");
4067        if frac != 0 {
4068            let f = alloc::format!("{frac:06}");
4069            txt.push('.');
4070            txt.push_str(f.trim_end_matches('0'));
4071        }
4072        let (sign, omag) = if off < 0 { ('-', -off) } else { ('+', off) };
4073        let (oh, om) = (omag / 3_600_000_000, (omag / 60_000_000) % 60);
4074        let _ = core::fmt::Write::write_fmt(&mut txt, format_args!("{sign}{oh:02}:{om:02}"));
4075        return Ok(Value::json(alloc::format!("\"{txt}\"")));
4076    }
4077    // v7.39 (enum order knife) — greatest/least over enum-typed arguments
4078    // pick by member order, not label text (PG). The witness needs the arg
4079    // ASTs, so this can't live in the value-level function dispatch.
4080    if (name.eq_ignore_ascii_case("greatest") || name.eq_ignore_ascii_case("least"))
4081        && let Some(labels) = args
4082            .iter()
4083            .find_map(|a| expr_enum_labels(a, ctx.columns, ctx.catalog))
4084        && evaluated
4085            .iter()
4086            .all(|v| matches!(v, Value::Text(_) | Value::Null))
4087    {
4088        let is_greatest = name.eq_ignore_ascii_case("greatest");
4089        let mut best: Option<&Value<'static>> = None;
4090        for v in evaluated.iter().filter(|v| !matches!(v, Value::Null)) {
4091            best = Some(match best {
4092                None => v,
4093                Some(b) => match enum_ord_cmp(labels, v, b) {
4094                    Some(core::cmp::Ordering::Greater) if is_greatest => v,
4095                    Some(core::cmp::Ordering::Less) if !is_greatest => v,
4096                    Some(_) => b,
4097                    // A non-member snuck in — fall out to the generic path.
4098                    None => return apply_function(name, &evaluated, ctx),
4099                },
4100            });
4101        }
4102        return Ok(best.cloned().unwrap_or(Value::Null));
4103    }
4104    // v7.39 (round 693) — and the same for a declared COLLATION, which
4105    // `least`/`greatest` need for the same structural reason: the witness
4106    // is the argument's column, so it cannot live in the value-level
4107    // dispatch either. Measured on PG18 over a column declaring
4108    // en_US.utf8: `least(a,'d')` is `d` and `greatest(a,'d')` is `Zebra`,
4109    // where byte order gives the pair reversed.
4110    if (name.eq_ignore_ascii_case("greatest") || name.eq_ignore_ascii_case("least"))
4111        && evaluated
4112            .iter()
4113            .all(|v| matches!(v, Value::Text(_) | Value::Null))
4114        && let Some(coll) = greatest_least_collation(args, ctx)
4115    {
4116        let is_greatest = name.eq_ignore_ascii_case("greatest");
4117        let mut best: Option<&Value<'static>> = None;
4118        for v in evaluated.iter().filter(|v| !matches!(v, Value::Null)) {
4119            best = Some(match (best, v) {
4120                (None, _) => v,
4121                (Some(Value::Text(y)), Value::Text(x)) => {
4122                    match crate::collate::compare(&coll, x, y) {
4123                        Some(core::cmp::Ordering::Greater) if is_greatest => v,
4124                        Some(core::cmp::Ordering::Less) if !is_greatest => v,
4125                        Some(_) => best.unwrap_or(v),
4126                        // Not a collation this build performs after all —
4127                        // one answer, from the generic path.
4128                        None => return apply_function(name, &evaluated, ctx),
4129                    }
4130                }
4131                (Some(b), _) => b,
4132            });
4133        }
4134        return Ok(best.cloned().unwrap_or(Value::Null));
4135    }
4136    // v7.39 (round 621) — an unadorned string literal takes the type the
4137    // function's parameter asks for. `justify_interval('36 hours')` is answered
4138    // by PG and was refused here, and so were `justify_days('35 days')` and
4139    // `justify_hours('27 hours')` — the spelling everyone writes, since typing
4140    // `INTERVAL` in front of the literal is exactly what PG saves you from.
4141    //
4142    // Only a LITERAL is resolved, which is the same boundary round 620 drew for
4143    // the boolean connectives: `justify_interval(t)` over a TEXT column stays
4144    // refused, because PG refuses it too (no such overload). The arg ASTs are
4145    // needed to tell those apart, so this cannot live in the value-level
4146    // dispatch — the same reason the enum witness above sits here.
4147    if let Some(want) = unknown_literal_param_type(name) {
4148        let mut coerced = evaluated;
4149        for (i, a) in args.iter().enumerate() {
4150            if is_unknown_string_literal(a)
4151                && let Some(slot) = coerced.get_mut(i)
4152            {
4153                *slot = cast::cast_value_in(
4154                    core::mem::replace(slot, Value::Null),
4155                    want.clone(),
4156                    false,
4157                )?;
4158            }
4159        }
4160        return apply_function(name, &coerced, ctx);
4161    }
4162    apply_function(name, &evaluated, ctx)
4163}
4164
4165/// v7.39 (round 621) — the parameter type a bare string literal resolves to.
4166///
4167/// PG resolves an `unknown` literal to whatever the chosen overload declares.
4168/// SPG has no overload resolution to hang that on, so the functions whose only
4169/// parameter is unambiguous are listed. `None` leaves the argument alone.
4170fn unknown_literal_param_type(name: &str) -> Option<spg_sql::ast::CastTarget> {
4171    match name.to_ascii_lowercase().as_str() {
4172        "justify_days" | "justify_hours" | "justify_interval" => {
4173            Some(spg_sql::ast::CastTarget::Interval)
4174        }
4175        _ => None,
4176    }
4177}
4178
4179/// Out-of-lined `eval_expr` arm — keeps the recursive frame small
4180/// (stack-depth guard budget); body unchanged.
4181#[inline(never)]
4182fn eval_any_all_arm(
4183    expr: &Expr,
4184    op: &BinOp,
4185    array: &Expr,
4186    is_any: bool,
4187    row: &Row<'static>,
4188    ctx: &EvalContext<'_>,
4189) -> Result<Value<'static>, EvalError> {
4190    let lhs = eval_expr(expr, row, ctx)?;
4191    let arr = eval_expr(array, row, ctx)?;
4192    any_all_over(lhs, arr, op, is_any)
4193}
4194
4195/// v7.39 (round 597) — the ANY/ALL comparison with both sides already in
4196/// hand. Split out so a CONSTANT right-hand array can be built once at
4197/// compile time instead of once per row: `WHERE id = ANY (ARRAY[1..10])`
4198/// rebuilt the array for all 500k rows and cost 268 ms against PG18's 8.3,
4199/// rising to 494 ms at twenty elements, while the equivalent
4200/// `id IN (1..10)` took 2.3. The body below is unchanged; it never touched
4201/// `row`.
4202pub(crate) fn any_all_over(
4203    lhs: Value<'static>,
4204    arr: Value<'static>,
4205    op: &BinOp,
4206    is_any: bool,
4207) -> Result<Value<'static>, EvalError> {
4208    if matches!(arr, Value::Null) {
4209        return Ok(Value::Null);
4210    }
4211    // v7.38 (read01) — an unknown-string RHS (`x = ANY('{1,2,3}')`)
4212    // takes the LHS's type: coerce the external array text to the array
4213    // type matching the LHS's element type, like PG.
4214    let arr = match &arr {
4215        Value::Text(_) => {
4216            // The LHS's element type, or TEXT when the LHS is an
4217            // untyped NULL (PG's unknown → text default).
4218            let arr_ty = match lhs.data_type() {
4219                Some(spg_storage::DataType::SmallInt) => spg_storage::DataType::SmallIntArray,
4220                Some(spg_storage::DataType::Int) => spg_storage::DataType::IntArray,
4221                Some(spg_storage::DataType::BigInt) => spg_storage::DataType::BigIntArray,
4222                Some(spg_storage::DataType::Numeric { .. }) => spg_storage::DataType::NumericArray,
4223                Some(spg_storage::DataType::Float) => spg_storage::DataType::FloatArray,
4224                Some(spg_storage::DataType::Bool) => spg_storage::DataType::BoolArray,
4225                Some(spg_storage::DataType::Date) => spg_storage::DataType::DateArray,
4226                _ => spg_storage::DataType::TextArray,
4227            };
4228            crate::conversions::coerce_value(arr.clone(), arr_ty, "", 0).unwrap_or(arr)
4229        }
4230        _ => arr,
4231    };
4232    // Build the element list generically so every scalar array type
4233    // (numeric[], float8[], bool[], date[], …) is accepted, not just
4234    // int/bigint/text.
4235    let Some(len) = array_len(&arr) else {
4236        return Err(EvalError::TypeMismatch {
4237            detail: format!(
4238                "ANY/ALL right-hand side must be an array, got {}",
4239                crate::conversions::pg_type_name_for_error_opt(arr.data_type())
4240            ),
4241        });
4242    };
4243    let elems: Vec<Option<Value>> = (0..len)
4244        .map(|i| match array_element_at(&arr, i) {
4245            Some(Value::Null) | None => None,
4246            Some(v) => Some(v),
4247        })
4248        .collect();
4249    // PG: `x op ANY (empty)` → false and `x op ALL (empty)` →
4250    // true, decided purely by emptiness — the comparison is
4251    // never evaluated, so a NULL LHS is irrelevant. This must
4252    // short-circuit before `saw_null` is seeded from the LHS,
4253    // otherwise `NULL op ANY/ALL (empty)` wrongly yields NULL.
4254    if elems.is_empty() {
4255        return Ok(Value::Bool(!is_any));
4256    }
4257    let mut saw_null = matches!(lhs, Value::Null);
4258    let mut saw_match = false;
4259    let mut saw_mismatch = false;
4260    for elem in elems {
4261        let elem_v = match elem {
4262            Some(v) => v,
4263            None => {
4264                saw_null = true;
4265                continue;
4266            }
4267        };
4268        if matches!(lhs, Value::Null) {
4269            saw_null = true;
4270            continue;
4271        }
4272        match apply_binary(*op, lhs.clone(), elem_v) {
4273            Ok(Value::Bool(true)) => saw_match = true,
4274            Ok(Value::Bool(false)) => saw_mismatch = true,
4275            Ok(Value::Null) => saw_null = true,
4276            Ok(other) => {
4277                return Err(EvalError::TypeMismatch {
4278                    detail: format!(
4279                        "ANY/ALL comparison didn't return Bool: {}",
4280                        crate::conversions::pg_type_name_for_error_opt(other.data_type())
4281                    ),
4282                });
4283            }
4284            Err(e) => return Err(e),
4285        }
4286    }
4287    let result = if is_any {
4288        if saw_match {
4289            Value::Bool(true)
4290        } else if saw_null {
4291            Value::Null
4292        } else {
4293            Value::Bool(false)
4294        }
4295    } else if saw_mismatch {
4296        Value::Bool(false)
4297    } else if saw_null {
4298        Value::Null
4299    } else {
4300        Value::Bool(true)
4301    };
4302    Ok(result)
4303}
4304
4305/// Out-of-lined `eval_expr` arm — keeps the recursive frame small
4306/// (stack-depth guard budget); body unchanged.
4307#[inline(never)]
4308fn eval_case_arm(
4309    operand: &Option<alloc::boxed::Box<Expr>>,
4310    branches: &[(Expr, Expr)],
4311    else_branch: &Option<alloc::boxed::Box<Expr>>,
4312    row: &Row<'static>,
4313    ctx: &EvalContext<'_>,
4314) -> Result<Value<'static>, EvalError> {
4315    // v7.39 (round 237) — PG resolves the RESULT branches to one type and
4316    // refuses the CASE when they have no common one, before running
4317    // anything. SPG returned whichever branch fired, so
4318    // `CASE WHEN true THEN 1 ELSE 'a'::text END` answered `1` and the same
4319    // expression answered text on another row.
4320    {
4321        // PG resolves the ELSE branch FIRST and then the WHEN results, and
4322        // its message names the running type before the conflicting one —
4323        // which is why `THEN 1 ELSE 'a'::text` reports "text and integer"
4324        // while a two-WHEN `THEN 1 ... THEN true` reports "integer and
4325        // boolean". Probed against 18.4; the order is observable.
4326        let mut results: Vec<&Expr> = Vec::with_capacity(branches.len() + 1);
4327        if let Some(e) = else_branch {
4328            results.push(e);
4329        }
4330        results.extend(branches.iter().map(|(_, r)| r));
4331        unify_branch_types_static("CASE", results, ctx)?;
4332    }
4333    let operand_value = match operand {
4334        Some(o) => Some(eval_expr(o, row, ctx)?),
4335        None => None,
4336    };
4337    // v7.37 D.1 — CASE result-type coercion (same rule as COALESCE): a
4338    // typed result branch (`... THEN '10:00'::time`) makes the whole
4339    // CASE that type, so an untyped string-literal branch is coerced to
4340    // it. Compute the hint once from every THEN/ELSE branch.
4341    let case_hint = branches
4342        .iter()
4343        .map(|(_, t)| t)
4344        .chain(else_branch.iter().map(|b| b.as_ref()))
4345        .find_map(coalesce_type_hint);
4346    // v7.38 (read01) — the CASE result is PG's common type of every
4347    // THEN/ELSE branch, so a taken integer branch is widened to
4348    // numeric when a sibling branch is numeric (and `pg_typeof` /
4349    // downstream division match PG). Only one branch is evaluated, so
4350    // the type must come from the branch expressions statically.
4351    let branch_types: Vec<spg_storage::DataType> = branches
4352        .iter()
4353        .map(|(_, t)| t)
4354        .chain(else_branch.iter().map(|b| b.as_ref()))
4355        .filter_map(|e| crate::describe::describe_expr(e, ctx.columns).map(|s| s.ty))
4356        .collect();
4357    let coerce = |v: Value<'static>| -> Result<Value<'static>, EvalError> {
4358        let v = match (&v, &case_hint) {
4359            (Value::Text(_), Some(target)) => cast::cast_value(v, target.clone())?,
4360            _ => v,
4361        };
4362        Ok(widen_to_common(v, &branch_types))
4363    };
4364    for (when_expr, then_expr) in branches {
4365        let when_value = eval_expr(when_expr, row, ctx)?;
4366        let matched = match &operand_value {
4367            // v7.39 (round 346, M1) — the WHEN condition is a truth value,
4368            // not a boolean-shaped one: `CASE WHEN 1 THEN 'a' END` used to
4369            // answer NULL in BOTH dialects, where MariaDB answers `a` and
4370            // PG raises `argument of CASE/WHEN must be type boolean`.
4371            None => predicate_is_true(&when_value, "CASE/WHEN", ctx.mysql_dialect)?,
4372            // v7.39 (round 412) — under the MySQL default collation the
4373            // `CASE op WHEN v` equality folds Text/BpChar operands (CI +
4374            // accent + PAD SPACE), matching `op = v` outside CASE.
4375            Some(op_v) => {
4376                let (l, r) = if ctx.mysql_dialect {
4377                    match (op_v, &when_value) {
4378                        // v7.38.18 — fold each side on its OWN type. This
4379                        // pair match missed `CASE <char col> WHEN
4380                        // '<literal>'`: a BpChar against a Text is neither
4381                        // arm, so it compared bytes with the CHAR still
4382                        // padded and answered ELSE.
4383                        (x, y)
4384                            if spg_storage::mysql_fold_value(x).is_some()
4385                                && spg_storage::mysql_fold_value(y).is_some() =>
4386                        {
4387                            (
4388                                Value::text(spg_storage::mysql_fold_value(x).unwrap()),
4389                                Value::text(spg_storage::mysql_fold_value(y).unwrap()),
4390                            )
4391                        }
4392                        _ => (op_v.clone(), when_value),
4393                    }
4394                } else {
4395                    (op_v.clone(), when_value)
4396                };
4397                matches!(
4398                    apply_binary(spg_sql::ast::BinOp::Eq, l, r)?,
4399                    Value::Bool(true)
4400                )
4401            }
4402        };
4403        if matched {
4404            return coerce(eval_expr(then_expr, row, ctx)?);
4405        }
4406    }
4407    match else_branch {
4408        Some(e) => coerce(eval_expr(e, row, ctx)?),
4409        None => Ok(Value::Null),
4410    }
4411}
4412
4413/// Out-of-lined `eval_expr` arm — keeps the recursive frame small
4414/// (stack-depth guard budget); body unchanged.
4415#[inline(never)]
4416fn eval_array_slice_arm(
4417    target: &Expr,
4418    lo: &Option<alloc::boxed::Box<Expr>>,
4419    hi: &Option<alloc::boxed::Box<Expr>>,
4420    row: &Row<'static>,
4421    ctx: &EvalContext<'_>,
4422) -> Result<Value<'static>, EvalError> {
4423    let target_v = eval_expr(target, row, ctx)?;
4424    if matches!(target_v, Value::Null) {
4425        return Ok(Value::Null);
4426    }
4427    let bound = |e: Option<&Expr>| -> Result<Option<i64>, EvalError> {
4428        match e {
4429            None => Ok(None),
4430            Some(b) => match eval_expr(b, row, ctx)? {
4431                Value::Null => Ok(None),
4432                Value::Int(n) => Ok(Some(i64::from(n))),
4433                Value::BigInt(n) => Ok(Some(n)),
4434                Value::SmallInt(n) => Ok(Some(i64::from(n))),
4435                other => Err(EvalError::TypeMismatch {
4436                    detail: format!(
4437                        "array slice bound must be integer, got {}",
4438                        crate::conversions::pg_type_name_for_error_opt(other.data_type())
4439                    ),
4440                }),
4441            },
4442        }
4443    };
4444    let lo_b = bound(lo.as_deref())?;
4445    let hi_b = bound(hi.as_deref())?;
4446    fn window(len: usize, lo: Option<i64>, hi: Option<i64>) -> (usize, usize) {
4447        let start = lo.map_or(0, |l| (l.max(1) - 1) as usize).min(len);
4448        let end = hi.map_or(len, |h| h.max(0) as usize).min(len);
4449        (start, end.max(start))
4450    }
4451    match target_v {
4452        Value::TextArray(items) => {
4453            let (s, e) = window(items.len(), lo_b, hi_b);
4454            Ok(Value::TextArray(items[s..e].to_vec()))
4455        }
4456        Value::IntArray(items) => {
4457            let (s, e) = window(items.len(), lo_b, hi_b);
4458            Ok(Value::IntArray(items[s..e].to_vec()))
4459        }
4460        Value::BigIntArray(items) => {
4461            let (s, e) = window(items.len(), lo_b, hi_b);
4462            Ok(Value::BigIntArray(items[s..e].to_vec()))
4463        }
4464        other => Err(EvalError::TypeMismatch {
4465            detail: format!(
4466                "slice target must be an array, got {}",
4467                crate::conversions::pg_type_name_for_error_opt(other.data_type())
4468            ),
4469        }),
4470    }
4471}
4472
4473/// Out-of-lined `eval_expr` arm — keeps the recursive frame small
4474/// (stack-depth guard budget); body unchanged.
4475#[inline(never)]
4476fn eval_in_list_arm(
4477    expr: &Expr,
4478    list: &[Expr],
4479    negated: bool,
4480    row: &Row<'static>,
4481    ctx: &EvalContext<'_>,
4482) -> Result<Value<'static>, EvalError> {
4483    // v7.39 (round 238) — PG resolves the whole list's type BEFORE comparing
4484    // anything, so `1 IN (1, 'a'::text)` is refused. SPG compared item by
4485    // item and broke on the first match, so the offending element was never
4486    // reached and the predicate quietly answered true. Checked statically,
4487    // like round 237: evaluating the rest of the list to inspect it would
4488    // change when side effects fire.
4489    require_in_list_comparable(expr, list, ctx)?;
4490    // v7.39 (round 364, M4 P2) — a MySQL session folds text before the
4491    // membership test, so `t IN ('FOO')` matches 'Foo'. `BINARY` is not
4492    // reachable through a bare column needle here; the fold is text-only.
4493    // v7.39 (round 370, M4 P4a) — an explicit `COLLATE utf8mb4_bin` needle
4494    // column is byte-wise, so it does not fold. v7.39 (round 371, M4 P4b) —
4495    // a per-expression `… COLLATE utf8mb4_bin` / `BINARY …` on the needle
4496    // OR any list item forces the whole membership test byte-wise.
4497    let in_fold = ctx.mysql_dialect
4498        && !resolve::operand_is_binary_column(expr, ctx)
4499        && !resolve::is_binary_coerced(expr)
4500        && !list.iter().any(|i| resolve::is_binary_coerced(i));
4501    // v7.38.18 — the membership test has ONE collation, the needle's,
4502    // and its NAME decides whether trailing spaces count.
4503    // v7.39 — same as `text_compare`: a literal needle has no column, so
4504    // this used to fall to `None` = NO PAD. `'a ' IN ('a')` answered 1 on
4505    // MySQL 9.7.2 and 0 here under a matched `utf8mb4_general_ci`.
4506    let in_pads = crate::collate::pads_space(
4507        resolve::column_collation_name(expr, ctx)
4508            .or_else(|| resolve::session_collation_name(ctx))
4509            .as_deref(),
4510    );
4511    let needle = mysql_collation_key(eval_expr(expr, row, ctx)?, in_fold, in_pads);
4512    let needle_null = matches!(needle, Value::Null);
4513    let mut saw_null = needle_null && !list.is_empty();
4514    let mut matched = false;
4515    if !needle_null {
4516        for item in list {
4517            let v = mysql_collation_key(eval_expr(item, row, ctx)?, in_fold, in_pads);
4518            if matches!(v, Value::Null) {
4519                saw_null = true;
4520                continue;
4521            }
4522            match apply_binary(BinOp::Eq, needle.clone(), v)? {
4523                Value::Bool(true) => {
4524                    matched = true;
4525                    break;
4526                }
4527                Value::Bool(false) => {}
4528                Value::Null => saw_null = true,
4529                other => {
4530                    return Err(EvalError::TypeMismatch {
4531                        detail: format!(
4532                            "IN comparison didn't return Bool: {}",
4533                            crate::conversions::pg_type_name_for_error_opt(other.data_type())
4534                        ),
4535                    });
4536                }
4537            }
4538        }
4539    }
4540    let inner = if matched {
4541        Value::Bool(true)
4542    } else if saw_null {
4543        Value::Null
4544    } else {
4545        Value::Bool(false)
4546    };
4547    Ok(match (negated, inner) {
4548        (true, Value::Bool(b)) => Value::Bool(!b),
4549        (_, v) => v,
4550    })
4551}
4552
4553/// Out-of-lined `eval_expr` arm — keeps the recursive frame small
4554/// (stack-depth guard budget); body unchanged.
4555#[inline(never)]
4556fn eval_like_arm(
4557    expr: &Expr,
4558    pattern: &Expr,
4559    negated: bool,
4560    case_insensitive: bool,
4561    row: &Row<'static>,
4562    ctx: &EvalContext<'_>,
4563) -> Result<Value<'static>, EvalError> {
4564    let v = eval_expr(expr, row, ctx)?;
4565    let p = eval_expr(pattern, row, ctx)?;
4566    // NULL on either side propagates to NULL — same as PG.
4567    // v7.39 (bpchar epic) — LIKE matches bpchar on its PADDED
4568    // stored form, per PG's bpchar pattern operators.
4569    let (text, pat) = match (v, p) {
4570        (Value::Null, _) | (_, Value::Null) => return Ok(Value::Null),
4571        (Value::Text(a) | Value::BpChar(a), Value::Text(b) | Value::BpChar(b)) => (a, b),
4572        (Value::Text(_) | Value::BpChar(_), other) | (other, _) => {
4573            return Err(EvalError::TypeMismatch {
4574                detail: format!(
4575                    "LIKE requires text operands, got {}",
4576                    crate::conversions::pg_type_name_for_error_opt(other.data_type())
4577                ),
4578            });
4579        }
4580    };
4581    // v7.25 (round-17) — ILIKE folds both operands (PG
4582    // lowercases per the default collation).
4583    // v7.39 (round 364, M4 P2) — a MySQL session's default collation is
4584    // accent- and case-insensitive, so `LIKE` folds both sides the way
4585    // `ILIKE` does; the wildcards `%` / `_` are not Latin letters so the
4586    // fold leaves them alone.
4587    // v7.39 (round 370, M4 P4a) — an explicit `COLLATE utf8mb4_bin` column
4588    // matches byte-wise, so it does not fold. v7.39 (round 371, M4 P4b) —
4589    // a per-expression `… COLLATE utf8mb4_bin` / `BINARY …` on either the
4590    // value or the pattern forces byte-wise too.
4591    let mysql = ctx.mysql_dialect
4592        && !resolve::operand_is_binary_column(expr, ctx)
4593        && !resolve::operand_is_binary_column(pattern, ctx)
4594        && !resolve::is_binary_coerced(expr)
4595        && !resolve::is_binary_coerced(pattern);
4596    let m = if case_insensitive {
4597        like_match(&text.to_lowercase(), &pat.to_lowercase())?
4598    } else if mysql {
4599        like_match(
4600            &spg_storage::mysql_ci_fold(&text),
4601            &spg_storage::mysql_ci_fold(&pat),
4602        )?
4603    } else {
4604        like_match(&text, &pat)?
4605    };
4606    Ok(Value::Bool(if negated { !m } else { m }))
4607}
4608
4609/// Out-of-lined `eval_expr` arm — keeps the recursive frame small
4610/// (stack-depth guard budget); body unchanged.
4611#[inline(never)]
4612fn eval_extract_arm(
4613    field: &spg_sql::ast::ExtractField,
4614    source: &Expr,
4615    row: &Row<'static>,
4616    ctx: &EvalContext<'_>,
4617) -> Result<Value<'static>, EvalError> {
4618    let v = eval_expr(source, row, ctx)?;
4619    extract_from_value(field, v, source, ctx)
4620}
4621
4622/// v7.39 (round 595) — the field extraction, with the source value already
4623/// in hand. Split out so the compiled-predicate program can pop the source
4624/// off its stack instead of handing the whole node back to the interpreter:
4625/// one non-compilable node used to disqualify the entire WHERE, and
4626/// `WHERE extract(year FROM t) = 2020` was interpreting the column read and
4627/// the comparison too. The body below is unchanged; it never touched `row`.
4628pub(crate) fn extract_from_value(
4629    field: &spg_sql::ast::ExtractField,
4630    v: Value<'static>,
4631    source: &Expr,
4632    ctx: &EvalContext<'_>,
4633) -> Result<Value<'static>, EvalError> {
4634    // v7.39 (round 382) — MySQL coerces a date/time STRING to its temporal
4635    // value for EXTRACT (`EXTRACT(YEAR FROM '2020-05-15')` is 2020, and the
4636    // time fields read a `'... HH:MM:SS'` string); PG needs a typed source.
4637    let v = match &v {
4638        Value::Text(s) if ctx.mysql_dialect => text_as_temporal(s).unwrap_or(v),
4639        _ => v,
4640    };
4641    // v7.39 (tz epic) — timezone[_hour|_minute] of a timestamptz
4642    // reports the SESSION offset at that instant (PG: 32400 for
4643    // Tokyo; -14400 for New York in July).
4644    if matches!(
4645        field,
4646        spg_sql::ast::ExtractField::Timezone
4647            | spg_sql::ast::ExtractField::TimezoneHour
4648            | spg_sql::ast::ExtractField::TimezoneMinute
4649    ) && let Value::Timestamp(t) = &v
4650        && crate::describe::describe_expr(source, ctx.columns)
4651            .is_some_and(|s| matches!(s.ty, spg_storage::DataType::Timestamptz))
4652    {
4653        let off_secs = ctx.session_tz_offset_at(*t) / 1_000_000;
4654        let n = match field {
4655            spg_sql::ast::ExtractField::Timezone => off_secs,
4656            spg_sql::ast::ExtractField::TimezoneHour => off_secs / 3600,
4657            _ => (off_secs / 60) % 60,
4658        };
4659        // v7.39 (round 253) — numeric, like every other EXTRACT result.
4660        return Ok(Value::Numeric {
4661            scaled: i128::from(n),
4662            scale: 0,
4663            kind: spg_storage::NumericKind::Finite,
4664        });
4665    }
4666    // v7.39 (round 523) — and every OTHER field of a timestamptz reads
4667    // the local clock in the session zone, which is the whole reason PG
4668    // has the type. `extract(hour from …)` answered the UTC hour under
4669    // `SET TimeZone = 'Asia/Tokyo'` — 0 where PG says 9 — and
4670    // `extract(dow …)` therefore named the wrong DAY, so a report
4671    // grouped by weekday put nine hours of every Sunday under Saturday.
4672    // Only fields of the local clock shift; epoch and julian are
4673    // absolute, and the timezone fields answered above.
4674    let v = match &v {
4675        Value::Timestamp(t)
4676            if !matches!(
4677                field,
4678                spg_sql::ast::ExtractField::Epoch
4679                    | spg_sql::ast::ExtractField::Julian
4680                    | spg_sql::ast::ExtractField::Timezone
4681                    | spg_sql::ast::ExtractField::TimezoneHour
4682                    | spg_sql::ast::ExtractField::TimezoneMinute
4683            ) && crate::describe::describe_expr(source, ctx.columns)
4684                .is_some_and(|s| matches!(s.ty, spg_storage::DataType::Timestamptz)) =>
4685        {
4686            Value::Timestamp(t.saturating_add(ctx.session_tz_offset_at(*t)))
4687        }
4688        _ => v,
4689    };
4690    // v7.39 (round 253) — the source's PG type name for error wording,
4691    // upgraded from the declared type when statically known (a tstz
4692    // VALUE is indistinguishable from a timestamp). Only a cast /
4693    // column is trusted (the r237 lesson: describe_expr reports a
4694    // binary operator as its left operand's type).
4695    let static_declared = matches!(source, Expr::Cast { .. } | Expr::Column(_))
4696        .then(|| crate::describe::describe_expr(source, ctx.columns))
4697        .flatten()
4698        .map(|sch| sch.ty);
4699    let src_name = match static_declared {
4700        Some(spg_storage::DataType::Timestamptz) => "timestamp with time zone",
4701        _ => datetime::value_src_type_name(&v),
4702    };
4703    // PG rejects the timezone family on a plain timestamp (0A000);
4704    // only reject when the declared type is STATICALLY timestamp — a
4705    // dynamic value stays lenient (the pre-r253 zero answer).
4706    if matches!(
4707        field,
4708        spg_sql::ast::ExtractField::Timezone
4709            | spg_sql::ast::ExtractField::TimezoneHour
4710            | spg_sql::ast::ExtractField::TimezoneMinute
4711    ) && matches!(static_declared, Some(spg_storage::DataType::Timestamp))
4712    {
4713        return Err(EvalError::TypeMismatch {
4714            detail: alloc::format!(
4715                "unit \"{}\" not supported for type timestamp without time zone",
4716                alloc::format!("{field}").to_lowercase()
4717            ),
4718        });
4719    }
4720    // v7.39 (round 418) — MySQL's compound units (`DAY_SECOND`, `YEAR_MONTH`,
4721    // …) reach here as `ExtractField::Other`, which PG rejects. Under the
4722    // MySQL dialect they pack several components into one integer instead.
4723    if ctx.mysql_dialect
4724        && let spg_sql::ast::ExtractField::Other(name) = field
4725        && let Some(packed) = crate::eval::datetime::mysql_compound_extract(name, &v)
4726    {
4727        return Ok(packed);
4728    }
4729    extract_field(field, &v, src_name)
4730}
4731
4732/// Out-of-lined `eval_expr` arm — keeps the recursive frame small
4733/// (stack-depth guard budget); body unchanged.
4734#[inline(never)]
4735fn eval_array_subscript_arm(
4736    expr: &Expr,
4737    row: &Row<'static>,
4738    ctx: &EvalContext<'_>,
4739) -> Result<Value<'static>, EvalError> {
4740    // Collect the whole subscript chain so PG's multi-dimensional
4741    // access (`arr[i][j]` is ONE N-subscript op) is distinguishable
4742    // from chained 1-D indexing. `arr[1][2]` parses as
4743    // `(arr[1])[2]`; PG indexes the matrix directly and returns NULL
4744    // for a partial subscript (`arr[1]` on a 2-D array is NULL).
4745    let mut idx_exprs: Vec<&Expr> = Vec::new();
4746    let mut base = expr;
4747    while let Expr::ArraySubscript { target, index } = base {
4748        idx_exprs.push(index);
4749        base = target;
4750    }
4751    idx_exprs.reverse();
4752    let base_v = eval_expr(base, row, ctx)?;
4753    if matches!(
4754        base_v,
4755        Value::IntArray2D(_)
4756            | Value::BigIntArray2D(_)
4757            | Value::TextArray2D(_)
4758            | Value::BoolArray2D(_)
4759    ) {
4760        return eval_matrix_subscript(&base_v, &idx_exprs, row, ctx);
4761    }
4762    // 1-D array / JSON: apply each subscript left-to-right. This
4763    // reproduces the prior single-subscript semantics exactly, and
4764    // chained JSON (`j['a']['b']`) still resolves step by step.
4765    let mut cur = base_v;
4766    for ix in idx_exprs {
4767        cur = apply_one_subscript(cur, ix, row, ctx)?;
4768    }
4769    Ok(cur)
4770}
4771
4772/// Out-of-lined `eval_expr` arm — keeps the recursive frame small
4773/// (stack-depth guard budget); body unchanged.
4774#[inline(never)]
4775fn eval_field_access_arm(
4776    base: &Expr,
4777    field: &str,
4778    row: &Row<'static>,
4779    ctx: &EvalContext<'_>,
4780) -> Result<Value<'static>, EvalError> {
4781    // v7.38 (read01, T9) — composite field access `(expr).field`.
4782    // The base evaluates to a record; look the member up by name
4783    // (`f1`..`fN` for an anonymous ROW, base column names for a
4784    // whole-row). A NULL record yields NULL (PG semantics).
4785    let v = eval_expr(base, row, ctx)?;
4786    match v {
4787        Value::Null => Ok(Value::Null),
4788        Value::Composite(fields) => fields
4789            .into_iter()
4790            .find(|(name, _)| name == field)
4791            .map(|(_, val)| val)
4792            .ok_or_else(|| missing_field_error(base, field, ctx)),
4793        _ => Err(not_a_composite_error(base, field, ctx)),
4794    }
4795}
4796
4797/// v7.39 (round 285) — PG words a missing composite field three ways, and
4798/// which one you get depends on the base expression's STATIC type, not on
4799/// the value:
4800///
4801///   * a named composite — `column "nosuch" not found in data type rc9`
4802///   * a whole-row table reference — `column rt8.nosuch does not exist`
4803///     (unquoted, and qualified — the odd one out)
4804///   * an anonymous ROW or `::record` — `could not identify column
4805///     "nosuch" in record data type`
4806///
4807/// All three read off live PG 18.4. A `Value::Composite` carries its field
4808/// names but not its type name, so the base expression is what decides.
4809fn missing_field_error(base: &Expr, field: &str, ctx: &EvalContext<'_>) -> EvalError {
4810    // v7.39 (round 307, V25) — the named type may arrive by cast OR from
4811    // the schema of a column that a projection produced, so ask once and
4812    // let the catalog say whether it is a composite. Before this only
4813    // the cast spelling was recognised, which is why a composite that
4814    // came through a derived table or a CTE — where the base is a plain
4815    // column — fell through to the anonymous-record wording.
4816    if let Some(name) = base_named_type(base, ctx)
4817        && ctx
4818            .catalog
4819            .is_some_and(|c| c.composite_types().contains_key(name))
4820    {
4821        return EvalError::TypeMismatch {
4822            detail: alloc::format!("column \"{field}\" not found in data type {name}"),
4823        };
4824    }
4825    if let Expr::Column(c) = base
4826        && c.qualifier.is_none()
4827    {
4828        // A column DECLARED as a named composite reports that type — the
4829        // schema records it in `user_composite_type`, which is the only
4830        // place the name survives (a `Value::Composite` does not carry it).
4831        if let Some(name) = ctx
4832            .columns
4833            .iter()
4834            .find(|col| col.name.eq_ignore_ascii_case(&c.name))
4835            .and_then(|col| col.user_composite_type.as_ref())
4836        {
4837            return EvalError::TypeMismatch {
4838                detail: alloc::format!("column \"{field}\" not found in data type {name}"),
4839            };
4840        }
4841        // A whole-row reference to a real table is the odd wording out:
4842        // qualified, and unquoted.
4843        if ctx.catalog.is_some_and(|cat| cat.get(&c.name).is_some()) {
4844            return EvalError::TypeMismatch {
4845                detail: alloc::format!("column {}.{field} does not exist", c.name),
4846            };
4847        }
4848    }
4849    EvalError::TypeMismatch {
4850        detail: alloc::format!("could not identify column \"{field}\" in record data type"),
4851    }
4852}
4853
4854/// v7.39 (round 307, V25) — the user-declared type name behind a field
4855/// access, if any: either written as a cast (`ROW(…)::rc9`) or carried on
4856/// the column's schema.
4857///
4858/// All three schema slots are consulted rather than just the composite
4859/// one. A projection currently files the name of a `::rc9` cast under
4860/// `user_enum_type` — `expr_enum_type_name` answers for ANY named cast,
4861/// without asking whether the name is an enum — so keying off one slot
4862/// would answer for some shapes and not others. The caller decides what
4863/// the name MEANS by asking the catalog, which is the only thing that
4864/// actually knows; this function just finds it.
4865fn base_named_type<'c>(base: &'c Expr, ctx: &'c EvalContext<'_>) -> Option<&'c str> {
4866    match base {
4867        Expr::Cast {
4868            target: CastTarget::Named(name),
4869            ..
4870        } => Some(name.as_str()),
4871        Expr::Column(c) => ctx
4872            .columns
4873            .iter()
4874            .find(|sc| sc.name.eq_ignore_ascii_case(&c.name))
4875            .and_then(|sc| {
4876                sc.user_composite_type
4877                    .as_deref()
4878                    .or(sc.user_domain_type.as_deref())
4879                    .or(sc.user_enum_type.as_deref())
4880            }),
4881        _ => None,
4882    }
4883}
4884
4885/// v7.39 (round 307, V25) — PG's wording when field notation is applied
4886/// to something that is not a composite at all. It names the type:
4887/// `column notation .f applied to type pos9, which is not a composite
4888/// type` — for a domain and an enum alike. Only when the base has no
4889/// user-declared type at all does the generic message stand.
4890fn not_a_composite_error(base: &Expr, field: &str, ctx: &EvalContext<'_>) -> EvalError {
4891    if let Some(name) = base_named_type(base, ctx)
4892        && ctx.catalog.is_some_and(|c| {
4893            c.enum_types().contains_key(name) || c.domain_types().contains_key(name)
4894        })
4895    {
4896        return EvalError::TypeMismatch {
4897            detail: alloc::format!(
4898                "column notation .{field} applied to type {name}, which is not a composite type"
4899            ),
4900        };
4901    }
4902    EvalError::TypeMismatch {
4903        detail: alloc::format!("field access `.{field}` requires a composite (record) value"),
4904    }
4905}
4906
4907/// Out-of-lined `eval_expr` arm — keeps the recursive frame small
4908/// (stack-depth guard budget); body unchanged.
4909#[inline(never)]
4910/// v7.39 (round 328, V45) — the three-valued boolean tests. None of them
4911/// ever answers NULL: a NULL input is "not true" and "not false", and IS
4912/// UNKNOWN is precisely the NULL case. Verified against PG 18.4 —
4913/// `NULL::bool IS TRUE` is false, `IS NOT TRUE` true, `IS UNKNOWN` true,
4914/// and `false IS NOT FALSE` false.
4915fn eval_bool_test_arm(
4916    expr: &Expr,
4917    value: Option<bool>,
4918    negated: bool,
4919    row: &Row<'static>,
4920    ctx: &EvalContext<'_>,
4921) -> Result<Value<'static>, EvalError> {
4922    let v = eval_expr(expr, row, ctx)?;
4923    let hit = match (value, &v) {
4924        // IS UNKNOWN — the input is NULL.
4925        (None, Value::Null) => true,
4926        // v7.39 (round 625) — and PG rejects a non-boolean here too:
4927        // `argument of IS UNKNOWN must be type boolean`. MySQL has no
4928        // IS UNKNOWN, so there is no dialect branch.
4929        (None, Value::Bool(_)) => false,
4930        (None, other) => {
4931            return Err(EvalError::TypeMismatch {
4932                detail: alloc::format!(
4933                    "argument of IS {}UNKNOWN must be type boolean, not type {}",
4934                    if negated { "NOT " } else { "" },
4935                    crate::conversions::pg_type_name_for_error_opt(other.data_type())
4936                ),
4937            });
4938        }
4939        (Some(_), Value::Null) => false,
4940        (Some(want), Value::Bool(b)) => *b == want,
4941        // v7.39 (round 397) — MySQL reads a non-boolean as a truth value
4942        // for `IS TRUE` / `IS FALSE` (`5 IS TRUE` is 1, `0 IS FALSE` is 1,
4943        // `'abc' IS TRUE` is 0). PG rejects a non-boolean at parse time, so
4944        // this only fires under the dialect; a NULL is already handled.
4945        (Some(want), other) if ctx.mysql_dialect => mysql_truthy(other) == want,
4946        // v7.39 (round 625, S05b/F29) — on PG a non-boolean is REJECTED, and
4947        // the comment above said so while the arm below answered `false`
4948        // anyway. `1 IS TRUE` came back false, which reads as "the test was
4949        // run and did not hold" rather than "you cannot ask this of an
4950        // integer" — the wrong answer for every non-boolean type, eight of
4951        // them measured. PG's own sentence, which names the operator and the
4952        // type it got.
4953        (Some(_), other) => {
4954            return Err(EvalError::TypeMismatch {
4955                detail: alloc::format!(
4956                    "argument of IS {}{} must be type boolean, not type {}",
4957                    if negated { "NOT " } else { "" },
4958                    if value == Some(true) { "TRUE" } else { "FALSE" },
4959                    crate::conversions::pg_type_name_for_error_opt(other.data_type())
4960                ),
4961            });
4962        }
4963    };
4964    Ok(Value::Bool(hit != negated))
4965}
4966
4967fn eval_is_null_arm(
4968    expr: &Expr,
4969    negated: bool,
4970    row: &Row<'static>,
4971    ctx: &EvalContext<'_>,
4972) -> Result<Value<'static>, EvalError> {
4973    // v7.38 (read01 P4.11) — `ROW(...) IS [NOT] NULL` is evaluated
4974    // field-wise, not as a whole-value null test: a row IS NULL when
4975    // every field is null, and IS NOT NULL when every field is
4976    // non-null — so the two are NOT simple negations (ROW(1,NULL) is
4977    // neither). A field that is itself a row is a non-null value, so
4978    // the check does not recurse. The `(a, b) IS NULL` tuple spelling
4979    // is already desugared to `a IS NULL AND b IS NULL` in the parser;
4980    // this covers the explicit `ROW(...)` constructor.
4981    if let Expr::FunctionCall { name, args } = expr
4982        && name.eq_ignore_ascii_case("row")
4983    {
4984        let mut all_null = true;
4985        let mut all_non_null = true;
4986        for a in args {
4987            if matches!(eval_expr(a, row, ctx)?, Value::Null) {
4988                all_non_null = false;
4989            } else {
4990                all_null = false;
4991            }
4992        }
4993        return Ok(Value::Bool(if negated { all_non_null } else { all_null }));
4994    }
4995    // v7.39 (round 962) — the same field-wise rule for a row-valued
4996    // EXPRESSION, not just the `ROW(...)` spelling. P4.11 keyed on the
4997    // syntax, so every other way to hold a row got the whole-value test:
4998    // measured against PG18.4, `SELECT an IS NULL FROM an` on a row whose
4999    // every column is NULL answered `t` there and `f` here, and a column
5000    // declared with a composite type behaved the same way. Round 961 made
5001    // whole-row references reachable through a projection, which is what
5002    // surfaced it.
5003    //
5004    // Fields are tested exactly as the `ROW(...)` arm tests its
5005    // arguments, without recursing — a field that is itself a row is a
5006    // non-null value.
5007    let v = eval_expr(expr, row, ctx)?;
5008    if let Value::Composite(fields) = &v {
5009        let mut all_null = true;
5010        let mut all_non_null = true;
5011        for (_, f) in fields {
5012            if matches!(f, Value::Null) {
5013                all_non_null = false;
5014            } else {
5015                all_null = false;
5016            }
5017        }
5018        return Ok(Value::Bool(if negated { all_non_null } else { all_null }));
5019    }
5020    let is_null = matches!(v, Value::Null);
5021    Ok(Value::Bool(if negated { !is_null } else { is_null }))
5022}
5023
5024pub fn eval_expr(
5025    expr: &Expr,
5026    row: &Row<'static>,
5027    ctx: &EvalContext<'_>,
5028) -> Result<Value<'static>, EvalError> {
5029    // v7.38 (read01 P3.25) — guard against a native stack overflow on a
5030    // pathologically nested expression (`a AND a AND … ` × thousands): the
5031    // recursion base is seeded on the outermost call, and once a deeper
5032    // call has consumed more than the budget we return an error the way
5033    // PG's check_stack_depth() does, rather than aborting the process.
5034    let sp = eval_stack_ptr();
5035    let base = ctx.recursion_base.get();
5036    if base == 0 {
5037        ctx.recursion_base.set(sp);
5038    } else if base.saturating_sub(sp) > MAX_EVAL_STACK_BYTES {
5039        return Err(EvalError::StackDepthExceeded);
5040    }
5041    match expr {
5042        // v7.39.2 — a collation does not change the VALUE, only what
5043        // comparing it means. So evaluation is the inner expression's,
5044        // and the collation is read by the comparison sites rather than
5045        // here. An arm rather than a traversal join, because that is a
5046        // decision and not a walk.
5047        Expr::Collate { expr, collation } => {
5048            // The name is checked HERE rather than in a walk over every
5049            // statement: a `COLLATE` that is never evaluated is never
5050            // reached, and one that is reached is reached exactly once
5051            // per evaluation. PG rejects an unknown name whether or not
5052            // anything compares it — `SELECT 'a' COLLATE "nosuch"` is an
5053            // error there — and evaluating the projection is that.
5054            // The wire question is asked by the PARSER, which knows
5055            // the session's dialect; this context does not always (the
5056            // INSERT path builds one with `mysql_dialect: false`). Here
5057            // it is only "does SPG have a collation by this name".
5058            if !crate::collate::is_known(collation) {
5059                return Err(EvalError::TypeMismatch {
5060                    detail: crate::collate::unknown_collation_text(collation, ctx.mysql_dialect),
5061                });
5062            }
5063            eval_expr(expr, row, ctx)
5064        }
5065        Expr::AggregateOrdered { .. } => Err(EvalError::TypeMismatch {
5066            detail: "aggregate ORDER BY is only valid inside an aggregating SELECT".into(),
5067        }),
5068        // A named argument is only meaningful inside a call, where the callee's
5069        // parameter names give it a slot. Anywhere else it is a syntax error,
5070        // and saying so beats silently evaluating it as if the name were absent.
5071        Expr::NamedArg { name, .. } => Err(EvalError::TypeMismatch {
5072            detail: alloc::format!("named argument \"{name}\" is only valid in a function call"),
5073        }),
5074        Expr::Literal(l) => Ok(literal_to_value(l)),
5075        Expr::Column(c) => resolve_column(c, row, ctx),
5076        Expr::Placeholder(n) => {
5077            let idx = usize::from(*n).saturating_sub(1);
5078            ctx.params
5079                .get(idx)
5080                .cloned()
5081                .ok_or_else(|| EvalError::PlaceholderOutOfRange {
5082                    n: *n,
5083                    bound: u16::try_from(ctx.params.len()).unwrap_or(u16::MAX),
5084                })
5085        }
5086        // v7.39 (round 620) — an unadorned string literal carries PG's
5087        // `unknown` type, and a boolean connective is a context that resolves
5088        // it TO boolean. `'true' AND true`, `'f' OR false` and `NOT 'a'` are
5089        // answered by PG (`t`, `f`, and the input-syntax error respectively)
5090        // and were all refused here with `argument of … must be type boolean,
5091        // not type text` — the message PG reserves for an operand that really
5092        // IS text (`''::TEXT AND true`), which stays refused. Out-of-line and
5093        // behind a literal-shaped guard: this is the recursive frame the
5094        // 768 KiB stack budget is tuned against.
5095        Expr::Unary {
5096            op: spg_sql::ast::UnOp::Not,
5097            expr,
5098        } if !ctx.mysql_dialect && is_unknown_string_literal(expr) => apply_unary(
5099            spg_sql::ast::UnOp::Not,
5100            coerce_unknown_literal_to_bool(expr)?,
5101        ),
5102        Expr::Unary { op, expr } => {
5103            let v = eval_expr(expr, row, ctx)?;
5104            // The MySQL-specific unary readings (NOT any truth value, `-`/`~`
5105            // on a string, `~` unsigned) live out-of-line: `eval_expr` is the
5106            // recursive frame the 768 KiB stack-depth budget is tuned
5107            // against, and locals added here cost one nesting level each (the
5108            // round-305 / round-383 frame cliff).
5109            if ctx.mysql_dialect {
5110                if let Some(r) = mysql_unary_arm(*op, &v) {
5111                    return r;
5112                }
5113            }
5114            apply_unary(*op, v)
5115        }
5116        // v7.39 (round 346, M1) — MariaDB reads both sides of AND / OR as
5117        // truth values (`1 AND 2` is 1, measured). apply_binary has no
5118        // dialect, so the coercion happens here, where it does. The body
5119        // is out-of-line: `eval_expr` is the recursive frame the 768 KiB
5120        // stack-depth budget is tuned against, and locals added here cost
5121        // one nesting level each (the round-305 frame cliff).
5122        Expr::Binary { lhs, op, rhs }
5123            if ctx.mysql_dialect && matches!(op, BinOp::And | BinOp::Or | BinOp::LogicalXor) =>
5124        {
5125            eval_mysql_connective(lhs, *op, rhs, row, ctx)
5126        }
5127        // v7.39 (round 620/621) — the unknown-literal resolution and the
5128        // short circuit, both out of line. Placed AFTER the MySQL arm so the
5129        // dialect keeps its own reading of these connectives.
5130        Expr::Binary { lhs, op, rhs } if matches!(op, BinOp::And | BinOp::Or) => {
5131            eval_connective(lhs, *op, rhs, row, ctx)
5132        }
5133        Expr::Binary { lhs, op, rhs } => {
5134            // v7.32 (P4 borrow channel) — comparison fast path. A pure
5135            // comparison op only reads its operands and returns Bool,
5136            // and for non-NUMERIC / non-INTERVAL / non-CI-collation
5137            // operands `apply_binary` IS just the NULL-3VL check plus
5138            // the ref-based `compare` (NUMERIC routes through fixed-
5139            // point `apply_binary_numeric`; INTERVAL through
5140            // `apply_binary_interval`; CI columns fold). So read the
5141            // operands borrowed — a column cell is no longer cloned
5142            // just to compare it (`WHERE thread_id != ''` alone cloned
5143            // one Text cell per scanned row). Anything that needs the
5144            // owned path falls through unchanged.
5145            if matches!(
5146                op,
5147                BinOp::Eq | BinOp::NotEq | BinOp::Lt | BinOp::LtEq | BinOp::Gt | BinOp::GtEq
5148            ) {
5149                let lc = eval_expr_cow(lhs, row, ctx)?;
5150                let rc = eval_expr_cow(rhs, row, ctx)?;
5151                // v7.39 (enum order knife) — enum-typed operands compare by
5152                // member order, not label text. Cold unless both sides are
5153                // Text and the catalog has enum types at all.
5154                if matches!(lc.as_ref(), Value::Text(_)) && matches!(rc.as_ref(), Value::Text(_)) {
5155                    if let Some(r) = enum_compare_hook(*op, lhs, rhs, lc.as_ref(), rc.as_ref(), ctx)
5156                    {
5157                        return r;
5158                    }
5159                    // v7.39 (round 693) — and the collation hook, under the
5160                    // same Text/Text gate for the same reason.
5161                    if let Some(r) =
5162                        collate_compare_hook(*op, lhs, rhs, lc.as_ref(), rc.as_ref(), ctx)
5163                    {
5164                        return r;
5165                    }
5166                }
5167                // v7.39 (round 351, M11) — the three conditions fold into
5168                // ONE call. Adding a fourth as another `||` here tipped the
5169                // 768 KiB stack guard on its own (measured — this is the
5170                // hottest recursive frame there is); one call is cheaper
5171                // than the three it replaces.
5172                let owned_path = needs_owned_compare(lc.as_ref(), rc.as_ref(), lhs, rhs, ctx);
5173                if !owned_path {
5174                    if lc.as_ref().is_null() || rc.as_ref().is_null() {
5175                        return Ok(Value::Null);
5176                    }
5177                    return compare(*op, lc.as_ref(), rc.as_ref()).map_err(|e| {
5178                        unknown_literal_cmp_error(e, lhs, rhs, lc.as_ref(), rc.as_ref())
5179                    });
5180                }
5181                let (l, r) = collation_fold_for_compare(
5182                    *op,
5183                    lhs,
5184                    rhs,
5185                    lc.into_owned(),
5186                    rc.into_owned(),
5187                    ctx,
5188                );
5189                // The owned call consumes the values; the rewrite needs the
5190                // literal's text and the other side's type only on the ERROR
5191                // path, so capture those two up front — the capture itself is
5192                // gated on the cheap expr test, so a comparison with no
5193                // unknown literal pays one branch.
5194                let probe = (is_unknown_string_literal(lhs) || is_unknown_string_literal(rhs))
5195                    .then(|| (l.clone(), r.clone()));
5196                return apply_binary_in(*op, l, r, ctx.mysql_dialect).map_err(|e| match &probe {
5197                    Some((pl, pr)) => unknown_literal_cmp_error(e, lhs, rhs, pl, pr),
5198                    None => e,
5199                });
5200            }
5201            let l = eval_expr(lhs, row, ctx)?;
5202            let r = eval_expr(rhs, row, ctx)?;
5203            // v7.17.0 Phase 2.5 — collation-aware text comparison.
5204            // When either operand of a comparison op references a
5205            // column declared `COLLATE "case_insensitive"` (or any
5206            // MySQL `_ci` collation), case-fold both sides before
5207            // the byte-wise compare so `WHERE name = 'foo'` matches
5208            // stored `'Foo'`. Non-Text values fall straight through
5209            // — the helper is a no-op outside Text-Text equality
5210            // and inequality.
5211            let (l, r) = collation_fold_for_compare(*op, lhs, rhs, l, r, ctx);
5212            // v7.39 (GUC knife 4) — `date/interval/float || text` textifies
5213            // through the out-functions, which honour the session render
5214            // style. Pre-render the style-sensitive operand here (the
5215            // orthodox home is an implicit-cast node at type resolution;
5216            // until then this keeps apply_binary style-free). Default
5217            // style short-circuits — text_concat's own value_to_text
5218            // produces the identical bytes.
5219            if matches!(op, spg_sql::ast::BinOp::Concat)
5220                && ctx.render_style != format::RenderStyle::default()
5221            {
5222                let styled = |v: Value<'static>| -> Value<'static> {
5223                    match &v {
5224                        Value::Date(_)
5225                        | Value::Timestamp(_)
5226                        | Value::Interval { .. }
5227                        | Value::Float(_)
5228                        | Value::Real(_) => {
5229                            Value::text(values::value_to_text_styled(&v, &ctx.render_style))
5230                        }
5231                        _ => v,
5232                    }
5233                };
5234                let (sl, sr) = (styled(l), styled(r));
5235                return apply_binary(*op, sl, sr);
5236            }
5237            // v7.38.13 — in PG mode `apply_binary_mysql_unsigned` checks a
5238            // dialect flag and forwards, and `apply_binary_in` does the
5239            // same; both take two 48-byte `Value`s by value. Skip them.
5240            if ctx.mysql_dialect {
5241                apply_binary_mysql_unsigned(*op, lhs, rhs, l, r, ctx)
5242            } else {
5243                binop::apply_binary(*op, l, r)
5244            }
5245        }
5246        Expr::Cast { expr, target } => eval_cast_arm(expr, target, row, ctx),
5247        Expr::FieldAccess { base, field } => eval_field_access_arm(base, field, row, ctx),
5248        Expr::IsNull { expr, negated } => eval_is_null_arm(expr, *negated, row, ctx),
5249        // v7.39 (round 328, V45) — `x IS [NOT] TRUE | FALSE | UNKNOWN`.
5250        // Out-of-line like its IS NULL neighbour: an inline body here
5251        // grows every frame of the recursive evaluator, which is what
5252        // tipped the 512KB depth guard in round 305.
5253        Expr::BoolTest {
5254            expr,
5255            value,
5256            negated,
5257        } => eval_bool_test_arm(expr, *value, *negated, row, ctx),
5258        Expr::FunctionCall { name, args } => eval_function_call_arm(name, args, row, ctx),
5259        // v7.39 (read01 round 100) — VARIADIC is spliced into its enclosing
5260        // call before the args are evaluated (see eval_function_call_arm); a
5261        // bare one reaching here was written outside a function call.
5262        Expr::Variadic(_) => Err(EvalError::TypeMismatch {
5263            detail: "VARIADIC is only valid as a function-call argument".into(),
5264        }),
5265        Expr::Like {
5266            expr,
5267            pattern,
5268            negated,
5269            case_insensitive,
5270        } => eval_like_arm(expr, pattern, *negated, *case_insensitive, row, ctx),
5271        Expr::Extract { field, source } => eval_extract_arm(field, source, row, ctx),
5272        // v4.10: subquery nodes should have been resolved into
5273        // Literal / InList nodes by Engine::resolve_select_subqueries
5274        // before the row loop. Anything reaching here is a bug.
5275        Expr::ScalarSubquery(_)
5276        | Expr::Exists { .. }
5277        | Expr::InSubquery { .. }
5278        | Expr::RowInSubquery { .. }
5279        | Expr::RowCmpSubquery { .. } => Err(EvalError::TypeMismatch {
5280            detail: "subquery reached row eval — engine resolver bug".into(),
5281        }),
5282        // v7.30.2 (mailrs round-25) — flat `expr [NOT] IN (a, b, …)`.
5283        // Iterative scan with PG three-valued logic: TRUE on the first
5284        // Eq match; if nothing matched, NULL when the needle is NULL or
5285        // any comparison was NULL; FALSE otherwise. Empty list (only
5286        // reachable via an empty subquery result) is FALSE / TRUE even
5287        // for a NULL needle — no comparison ever happens.
5288        Expr::InList {
5289            expr,
5290            list,
5291            negated,
5292        } => eval_in_list_arm(expr, list, *negated, row, ctx),
5293        // v4.12: window functions should have been rewritten into
5294        // synthetic __win_N column references by
5295        // exec_select_with_window before row eval. Anything
5296        // reaching here is similarly a bug.
5297        Expr::WindowFunction { .. } => Err(EvalError::TypeMismatch {
5298            detail: "window function reached row eval — engine rewrite bug".into(),
5299        }),
5300        // v7.10.10 — `ARRAY[expr, expr, …]` constructor.
5301        // v7.11.13 — element-type detection: all integers →
5302        // IntArray (or BigIntArray when widening), any Text →
5303        // TextArray. Non-TEXT non-integer elements (Bool, Float)
5304        // stringify into TextArray as the safe default.
5305        Expr::Array(items) => eval_array_arm(items, row, ctx),
5306        // v7.10.12 — `arr[i]` PG-style 1-based indexing.
5307        // Out-of-range indices (including i ≤ 0) return NULL.
5308        Expr::ArraySubscript { .. } => eval_array_subscript_arm(expr, row, ctx),
5309        // Array slice `arr[lo:hi]` — PG 1-based, both ends
5310        // inclusive, out-of-range bounds clamp, missing bounds
5311        // extend to the array's ends. Result keeps the element
5312        // type; an empty window yields an empty array.
5313        Expr::ArraySlice { target, lo, hi } => eval_array_slice_arm(target, lo, hi, row, ctx),
5314        // v7.10.12 — `x op ANY(arr)` / `x op ALL(arr)`. PG
5315        // 3VL: ANY → true if any element compares-true; NULL if
5316        // no true but some NULL; false otherwise. ALL: false if
5317        // any compares-false; NULL if no false but some NULL;
5318        // true otherwise.
5319        Expr::AnyAll {
5320            expr,
5321            op,
5322            array,
5323            is_any,
5324        } => eval_any_all_arm(expr, op, array, *is_any, row, ctx),
5325        // v7.13.0 — CASE WHEN … END (mailrs round-5 G9).
5326        // Short-circuit on the first matching branch. Searched form
5327        // (operand=None) treats each branch's WHEN as a Bool
5328        // predicate. Simple form (operand=Some) compares with =.
5329        // ELSE on no match; NULL if no ELSE.
5330        Expr::Case {
5331            operand,
5332            branches,
5333            else_branch,
5334        } => eval_case_arm(operand, branches, else_branch, row, ctx),
5335    }
5336}
5337
5338/// v7.10.10 — best-effort text rendering for non-TEXT array
5339/// elements (numbers, bools, etc.). The PG rule is that
5340/// `ARRAY[1, 2]` is `int[]`, but SPG's v7.10 only models TEXT[],
5341/// so we widen by stringifying. NUMERIC formatting goes through
5342/// the existing canonical helpers to stay consistent with
5343/// `format_numeric` / `format_date` etc.
5344/// v7.37 D.1 — the COALESCE result-type hint: a sibling branch's explicit
5345/// cast target (`NULL::time`, `col::time`), unless it is Text (Text carries no
5346/// coercion). Returns the first non-Text `CastTarget` found, mirroring PG's
5347/// left-to-right common-type resolution for the common single-typed-branch case.
5348fn coalesce_type_hint(e: &Expr) -> Option<CastTarget> {
5349    match e {
5350        Expr::Cast { target, .. } if !matches!(target, CastTarget::Text) => Some(target.clone()),
5351        _ => None,
5352    }
5353}
5354
5355/// v7.38 (read01) — widen `v` to the already-resolved common type `common`
5356/// of a `CASE`/`COALESCE`/`GREATEST`/`LEAST`/`NULLIF` result, so the value's
5357/// type matches the one PG reports and downstream operators (e.g. `/`) see
5358/// the widened type (integer division vs numeric division). Only widens;
5359/// anything already at the common type, or that fails to coerce, is returned
5360/// untouched (this must never turn a working expression into an error).
5361/// NUMERIC is scale-preserving: an existing exact-numeric keeps its own scale
5362/// (PG renders `COALESCE(1.50, 2)` as `1.50`); only integers promote, to
5363/// scale 0.
5364pub(crate) fn widen_value_to(v: Value<'static>, common: spg_storage::DataType) -> Value<'static> {
5365    use spg_storage::DataType as DT;
5366    // Only widen numeric- and temporal-category results: these are the ones
5367    // whose type actually changes a downstream value (integer vs numeric
5368    // division, date vs timestamp). Widening a string result (varchar ∪ text)
5369    // would only relabel the type while risking a spurious length-limit error
5370    // when coercing into a modelled-length varchar/char, so leave it as-is.
5371    if !matches!(
5372        common,
5373        DT::SmallInt
5374            | DT::Int
5375            | DT::BigInt
5376            | DT::Numeric { .. }
5377            // v7.39 (round 649) — `real` was absent here too, so even once
5378            // `common_type` learned to rank it, the value was handed back
5379            // unwidened: `coalesce(1::int, 1::real)` stayed integer where
5380            // PG says real. Two lists, one ladder — the gap had to be
5381            // closed in both.
5382            | DT::Real
5383            | DT::Float
5384            | DT::Date
5385            | DT::Time
5386            | DT::Timestamp
5387            | DT::Timestamptz
5388    ) {
5389        return v;
5390    }
5391    if matches!(v, Value::Null) {
5392        return v;
5393    }
5394    if v.data_type() == Some(common) {
5395        return v;
5396    }
5397    if matches!(common, spg_storage::DataType::Numeric { .. })
5398        && matches!(v, Value::Numeric { .. } | Value::NumericBig(_))
5399    {
5400        return v;
5401    }
5402    let target = if matches!(common, spg_storage::DataType::Numeric { .. }) {
5403        spg_storage::DataType::Numeric {
5404            precision: 0,
5405            scale: 0,
5406        }
5407    } else {
5408        common
5409    };
5410    match crate::conversions::coerce_value(v.clone(), target, "", 0) {
5411        Ok(cv) => cv,
5412        Err(_) => v,
5413    }
5414}
5415
5416/// Widen `v` to the PG common type of the sibling `types`, or leave it as-is
5417/// when the types don't resolve to a single widening type. See
5418/// [`widen_value_to`] and [`crate::describe::common_type`].
5419pub(crate) fn widen_to_common(
5420    v: Value<'static>,
5421    types: &[spg_storage::DataType],
5422) -> Value<'static> {
5423    match crate::describe::common_type(types) {
5424        Some(common) => widen_value_to(v, common),
5425        None => v,
5426    }
5427}
5428
5429pub(crate) fn value_to_text_for_array(v: &Value, style: &format::RenderStyle) -> String {
5430    match v {
5431        Value::Text(s) | Value::Json(s) => s.to_string(),
5432        Value::Int(n) => n.to_string(),
5433        Value::BigInt(n) => n.to_string(),
5434        Value::SmallInt(n) => n.to_string(),
5435        // PG renders booleans in array external form as `t` / `f`
5436        // (the bool type's output function), not `true` / `false`.
5437        Value::Bool(b) => {
5438            if *b {
5439                "t".into()
5440            } else {
5441                "f".into()
5442            }
5443        }
5444        Value::Float(x) => format::format_float_styled(*x, style),
5445        Value::Real(x) => format::format_real_styled(*x, style),
5446        Value::Date(d) => format::format_date_styled(*d, style),
5447        Value::Timestamp(t) => format::format_timestamp_styled(*t, style),
5448        Value::Numeric {
5449            scaled,
5450            scale,
5451            kind,
5452        } => format_numeric_kind(*kind, *scaled, *scale),
5453        // v7.39 — everything else renders its canonical PG text (this
5454        // Debug fallback is how `ARRAY['\xff'::bytea]` printed
5455        // `{Bytes([255])}` on the wire).
5456        _ => values::value_to_text_styled(v, style),
5457    }
5458}
5459
5460/// SQL `LIKE` matcher. Wildcards are `%` (any run, possibly empty) and `_`
5461/// (exactly one char). `\` escapes the next pattern char so `\%` matches a
5462/// literal `%`. Matches the whole input — no implicit anchoring needed
5463/// since SQL `LIKE` is always full-string. Errs on a trailing unpaired
5464/// escape the matcher actually reaches with text left (PG's lazy 22025).
5465fn like_match(text: &str, pattern: &str) -> Result<bool, EvalError> {
5466    let pat: Vec<char> = pattern.chars().collect();
5467    like_match_str(text, &pat, 0)
5468}
5469
5470/// v7.37.16 — pg_typeof spelling for a STATIC column type (the
5471/// NULL-cell fallback; the value-level table is `pg_typeof_name`).
5472/// TEXT maps to None because a NULL literal describes as TEXT — the
5473/// unknown stand-in — and pg_typeof(NULL) must stay "unknown"; every
5474/// type not listed also returns None (caller keeps the value answer).
5475pub(crate) fn pg_typeof_name_for_datatype(t: spg_storage::DataType) -> Option<&'static str> {
5476    use spg_storage::DataType as D;
5477    Some(match t {
5478        D::SmallInt => "smallint",
5479        D::Int => "integer",
5480        D::BigInt => "bigint",
5481        D::Float => "double precision",
5482        D::Real => "real",
5483        D::Numeric { .. } => "numeric",
5484        D::Bool => "boolean",
5485        D::Date => "date",
5486        D::Time => "time without time zone",
5487        D::Timestamp => "timestamp without time zone",
5488        D::Timestamptz => "timestamp with time zone",
5489        D::Name => "name",
5490        D::Xid => "xid",
5491        D::Xid8 => "xid8",
5492        D::Oid => "oid",
5493        // v7.39 (round 694) — and its array, for the same reason.
5494        D::OidArray => "oid[]",
5495        D::Uuid => "uuid",
5496        D::Interval => "interval",
5497        // v7.39 (round 871) — the rest of what a NULL cast can be
5498        // annotated with. This table decided which types survived
5499        // `pg_typeof(NULL::t)`: the twenty above answered, everything
5500        // else fell to `_ => None` and reported `unknown`. That reads
5501        // as a NULL problem and is not one — `NULL::uuid` was right all
5502        // along while `NULL::text` was wrong, because one was listed
5503        // and the other was not.
5504        //
5505        // Names are PG18's own, taken from running `pg_typeof` there
5506        // rather than from memory: `bit varying` not `varbit`, `bit`
5507        // for any width, `character varying`, `"char"` quoted.
5508        D::Text => "text",
5509        D::Multirange(k) => match k {
5510            spg_storage::RangeKind::Int4 => "int4multirange",
5511            spg_storage::RangeKind::Int8 => "int8multirange",
5512            spg_storage::RangeKind::Num => "nummultirange",
5513            spg_storage::RangeKind::Ts => "tsmultirange",
5514            spg_storage::RangeKind::TsTz => "tstzmultirange",
5515            spg_storage::RangeKind::Date => "datemultirange",
5516        },
5517        D::Varchar(_) => "character varying",
5518        // PG names `char(n)` "character"; the one-byte internal type
5519        // spelled `"char"` is a DIFFERENT type there, and SPG maps both
5520        // onto `Char(u32)` — so this arm must answer for the declared
5521        // one. Round 871's first attempt said `"char"` here and would
5522        // have reported `char(5)` as the internal type.
5523        D::Char(_) => "character",
5524        D::Json => "json",
5525        D::Jsonb => "jsonb",
5526        D::Bytes => "bytea",
5527        D::Inet => "inet",
5528        D::Cidr => "cidr",
5529        D::Macaddr => "macaddr",
5530        D::Macaddr8 => "macaddr8",
5531        D::Bit(_) => "bit",
5532        D::BitVarying(_) => "bit varying",
5533        D::Xml => "xml",
5534        D::Money => "money",
5535        D::Point => "point",
5536        D::Lseg => "lseg",
5537        D::Path => "path",
5538        D::PgBox => "box",
5539        D::Polygon => "polygon",
5540        D::Line => "line",
5541        D::Circle => "circle",
5542        D::TextArray => "text[]",
5543        D::IntArray => "integer[]",
5544        D::BigIntArray => "bigint[]",
5545        D::SmallIntArray => "smallint[]",
5546        D::FloatArray => "double precision[]",
5547        D::NumericArray => "numeric[]",
5548        D::BoolArray => "boolean[]",
5549        D::DateArray => "date[]",
5550        D::TimestampArray => "timestamp without time zone[]",
5551        D::TimestamptzArray => "timestamp with time zone[]",
5552        D::UuidArray => "uuid[]",
5553        D::JsonArray => "json[]",
5554        D::JsonbArray => "jsonb[]",
5555        D::BytesArray => "bytea[]",
5556        D::VarcharArray => "character varying[]",
5557        D::CharArray => "\"char\"[]",
5558        D::IntervalArray => "interval[]",
5559        _ => return None,
5560    })
5561}
5562
5563/// v7.37.16 — zero-allocation LIKE core: the text side walks a `&str`
5564/// cursor (char-semantic — `_` consumes one CHARACTER, `%` backtracks
5565/// only at char boundaries) instead of collecting a `Vec<char>` per
5566/// call. The old per-row collect was ~50 ns/row of pure allocator
5567/// traffic on a 50 k-row `WHERE s LIKE '%…%'` scan (the heavy.rs
5568/// like_filter 2.8× loss); the pattern side stays a compile-once
5569/// `&[char]` (see `Step::Like`).
5570pub(crate) fn like_match_str(text: &str, pat: &[char], mut pi: usize) -> Result<bool, EvalError> {
5571    let mut t = text;
5572    while pi < pat.len() {
5573        match pat[pi] {
5574            '%' => {
5575                // Collapse consecutive `%` and try every possible split.
5576                while pi < pat.len() && pat[pi] == '%' {
5577                    pi += 1;
5578                }
5579                if pi == pat.len() {
5580                    return Ok(true);
5581                }
5582                let mut rest = t;
5583                loop {
5584                    if like_match_str(rest, pat, pi)? {
5585                        return Ok(true);
5586                    }
5587                    match rest.chars().next() {
5588                        Some(c) => rest = &rest[c.len_utf8()..],
5589                        None => return Ok(false),
5590                    }
5591                }
5592            }
5593            '_' => match t.chars().next() {
5594                Some(c) => {
5595                    t = &t[c.len_utf8()..];
5596                    pi += 1;
5597                }
5598                None => return Ok(false),
5599            },
5600            // v7.39 (round 144, like_match.c) — a trailing unpaired escape is
5601            // PG's 22025 error, but LAZILY: only when the matcher reaches it
5602            // with text left. A branch where the text is already exhausted
5603            // returns false without ever "seeing" the trailing escape
5604            // ('x' LIKE 'x\' is false; 'xy' LIKE 'x\' errors).
5605            '\\' if pi + 1 >= pat.len() => {
5606                if t.is_empty() {
5607                    return Ok(false);
5608                }
5609                return Err(EvalError::TypeMismatch {
5610                    detail: "LIKE pattern must not end with escape character".into(),
5611                });
5612            }
5613            '\\' => {
5614                let want = pat[pi + 1];
5615                match t.chars().next() {
5616                    Some(c) if c == want => {
5617                        t = &t[c.len_utf8()..];
5618                        pi += 2;
5619                    }
5620                    _ => return Ok(false),
5621                }
5622            }
5623            c => match t.chars().next() {
5624                Some(tc) if tc == c => {
5625                    t = &t[c.len_utf8()..];
5626                    pi += 1;
5627                }
5628                _ => return Ok(false),
5629            },
5630        }
5631    }
5632    Ok(t.is_empty())
5633}
5634
5635/// v7.24 (round-15) — `string_to_array(text, delimiter)`.
5636fn fn_string_to_array(args: &[Value<'_>]) -> Result<Value<'static>, EvalError> {
5637    if args.len() != 2 && args.len() != 3 {
5638        return Err(crate::eval::functions::wrong_arity("string_to_array", args));
5639    }
5640    // v7.37.17 (17.6 siblings) — the 3-arg PG form adds
5641    // `null_string`: elements equal to it become SQL NULL.
5642    let (text_arg, delim_arg, null_arg) = match args {
5643        [t, d] => (t, d, None),
5644        [t, d, n] => (t, d, Some(n)),
5645        _ => {
5646            return Err(EvalError::TypeMismatch {
5647                detail: alloc::format!(
5648                    "string_to_array expects 2 or 3 arguments, got {}",
5649                    args.len()
5650                ),
5651            });
5652        }
5653    };
5654    let null_string: Option<&str> = match null_arg {
5655        None | Some(Value::Null) => None,
5656        Some(Value::Text(s)) => Some(s.as_ref()),
5657        Some(other) => {
5658            return Err(EvalError::TypeMismatch {
5659                detail: alloc::format!(
5660                    "string_to_array null_string must be text, got {}",
5661                    crate::conversions::pg_type_name_for_error_opt(other.data_type())
5662                ),
5663            });
5664        }
5665    };
5666    let text = match text_arg {
5667        Value::Null => return Ok(Value::Null),
5668        Value::Text(t) => t,
5669        other => {
5670            return Err(EvalError::TypeMismatch {
5671                detail: alloc::format!(
5672                    "string_to_array expects text, got {}",
5673                    crate::conversions::pg_type_name_for_error_opt(other.data_type())
5674                ),
5675            });
5676        }
5677    };
5678    // PG (9.1+): empty input → empty array, regardless of delimiter.
5679    if text.is_empty() {
5680        return Ok(Value::TextArray(Vec::new()));
5681    }
5682    let nullify = |p: String| -> Option<String> {
5683        if null_string == Some(p.as_str()) {
5684            None
5685        } else {
5686            Some(p)
5687        }
5688    };
5689    let parts: Vec<Option<String>> = match delim_arg {
5690        // NULL delimiter → one element per character.
5691        Value::Null => text.chars().map(|c| nullify(c.to_string())).collect(),
5692        Value::Text(d) if d.is_empty() => alloc::vec![nullify(text.to_string())],
5693        Value::Text(d) => text
5694            .split(d.as_ref())
5695            .map(|p| nullify(p.to_string()))
5696            .collect(),
5697        other => {
5698            return Err(EvalError::TypeMismatch {
5699                detail: alloc::format!(
5700                    "string_to_array delimiter must be text, got {}",
5701                    crate::conversions::pg_type_name_for_error_opt(other.data_type())
5702                ),
5703            });
5704        }
5705    };
5706    Ok(Value::TextArray(parts))
5707}
5708
5709/// v6.4.3 — `error_on_null(v)`. Returns `v` unchanged if non-NULL;
5710/// errors otherwise. Convenience to assert NOT NULL inside an
5711/// expression without wrapping it in COALESCE + raise hacks.
5712fn error_on_null(args: &[Value<'_>]) -> Result<Value<'static>, EvalError> {
5713    if args.len() != 1 {
5714        return Err(EvalError::WrongArity {
5715            name: alloc::string::String::from("error_on_null"),
5716            types: crate::eval::functions::arg_type_list(args),
5717        });
5718    }
5719    if matches!(args[0], Value::Null) {
5720        return Err(EvalError::TypeMismatch {
5721            detail: "error_on_null(): argument is NULL".into(),
5722        });
5723    }
5724    Ok(args[0].clone().into_owned())
5725}
5726
5727/// Helper: coerce a Value to an Option<String> for regex args. NULL
5728/// propagates as None (caller short-circuits to Value::Null).
5729fn text_arg(v: &Value) -> Result<Option<String>, EvalError> {
5730    match v {
5731        Value::Text(s) => Ok(Some(s.to_string())),
5732        Value::Null => Ok(None),
5733        other => Err(EvalError::TypeMismatch {
5734            detail: alloc::format!(
5735                "regex function expects TEXT arg, got {}",
5736                crate::conversions::pg_type_name_for_error_opt(other.data_type())
5737            ),
5738        }),
5739    }
5740}
5741
5742// Month-name tables shared by the date formatters in `eval::strings`
5743// (`date_format_mysql`) and `eval::datetime` via `use super::`. Kept in
5744// `eval.rs` alongside `civil_from_days` so the calendar primitives live
5745// in one place.
5746const MONTH_FULL: [&str; 12] = [
5747    "January",
5748    "February",
5749    "March",
5750    "April",
5751    "May",
5752    "June",
5753    "July",
5754    "August",
5755    "September",
5756    "October",
5757    "November",
5758    "December",
5759];
5760const MONTH_ABBR: [&str; 12] = [
5761    "Jan", "Feb", "Mar", "Apr", "May", "Jun", "Jul", "Aug", "Sep", "Oct", "Nov", "Dec",
5762];
5763
5764/// Howard Hinnant's `civil_from_days` — converts days since the Unix
5765/// epoch back to a proleptic-Gregorian (year, month, day) triple. Stays
5766/// in `eval.rs` (shared with the date SQL functions here and with
5767/// `eval::strings`); the inverse `days_from_civil` lives in
5768/// `eval::format`. Both keep the engine off `std` time facilities.
5769#[allow(clippy::cast_possible_truncation, clippy::cast_sign_loss)]
5770fn civil_from_days(days: i32) -> (i32, u32, u32) {
5771    let z = i64::from(days) + 719_468;
5772    let era = z.div_euclid(146_097);
5773    // doe ∈ [0, 146_097); fits in u32 with room to spare. Same for
5774    // every other quantity below — `as u32` truncations are safe by
5775    // construction.
5776    let doe = (z - era * 146_097) as u32;
5777    let yoe = (doe.saturating_sub(doe / 1460) + doe / 36524 - doe / 146_096) / 365;
5778    let y_base = i64::from(yoe) + era * 400;
5779    let doy = doe.saturating_sub(365 * yoe + yoe / 4 - yoe / 100);
5780    let mp = (5 * doy + 2) / 153;
5781    let d = doy.saturating_sub((153 * mp + 2) / 5) + 1;
5782    let m = if mp < 10 { mp + 3 } else { mp - 9 };
5783    let y = if m <= 2 { y_base + 1 } else { y_base };
5784    (y as i32, m, d)
5785}
5786
5787/// Add `months` (signed) to a `(year, month, day)` triple using PG's
5788/// clamp-to-last-day rule (so `'2024-01-31' + 1 month` → `'2024-02-29'`).
5789fn add_months_to_civil(y: i32, m: u32, d: u32, months: i32) -> (i32, u32, u32) {
5790    let total_months = i64::from(y) * 12 + i64::from(m) - 1 + i64::from(months);
5791    let new_year = i32::try_from(total_months.div_euclid(12)).unwrap_or(i32::MAX);
5792    let new_month_zero = total_months.rem_euclid(12);
5793    #[allow(clippy::cast_possible_truncation, clippy::cast_sign_loss)]
5794    let new_month = (new_month_zero as u32) + 1;
5795    let max_day = days_in_month(new_year, new_month);
5796    (new_year, new_month, d.min(max_day))
5797}
5798
5799const fn days_in_month(y: i32, m: u32) -> u32 {
5800    match m {
5801        1 | 3 | 5 | 7 | 8 | 10 | 12 => 31,
5802        2 => {
5803            // Proleptic Gregorian leap rule.
5804            if y.rem_euclid(4) == 0 && (y.rem_euclid(100) != 0 || y.rem_euclid(400) == 0) {
5805                29
5806            } else {
5807                28
5808            }
5809        }
5810        // 4 / 6 / 9 / 11 plus any out-of-range month (callers normalise
5811        // first, but be defensive) get the 30-day fallback.
5812        _ => 30,
5813    }
5814}
5815
5816pub(crate) fn literal_to_value(l: &Literal) -> Value<'static> {
5817    match l {
5818        Literal::Integer(n) => {
5819            if let Ok(small) = i32::try_from(*n) {
5820                Value::Int(small)
5821            } else {
5822                Value::BigInt(*n)
5823            }
5824        }
5825        Literal::Float(x) => Value::Float(*x),
5826        Literal::Numeric { unscaled, scale } => Value::Numeric {
5827            scaled: *unscaled,
5828            scale: *scale,
5829            kind: spg_storage::NumericKind::Finite,
5830        },
5831        Literal::NumericBig(s) => crate::conversions::big_literal_to_value(s),
5832        // v7.38.8 — already decoded, so the row loop neither clones a
5833        // string nor coerces one back into a timestamp.
5834        Literal::Timestamp { micros, .. } => Value::Timestamp(*micros),
5835        Literal::Date { days, .. } => Value::Date(*days),
5836        Literal::String(s) => Value::text(s.clone()),
5837        Literal::Vector(v) => Value::vector(v.clone()),
5838        Literal::TextArray(items) => Value::TextArray(items.clone()),
5839        Literal::IntArray(items) => Value::IntArray(items.clone()),
5840        Literal::BigIntArray(items) => Value::BigIntArray(items.clone()),
5841        Literal::Bool(b) => Value::Bool(*b),
5842        Literal::Null => Value::Null,
5843        Literal::Interval {
5844            months,
5845            days,
5846            micros,
5847            ..
5848        } => Value::Interval {
5849            months: *months,
5850            days: *days,
5851            micros: *micros,
5852            kind: spg_storage::IntervalKind::Finite,
5853        },
5854    }
5855}
5856
5857impl crate::Engine {
5858    /// v7.39 (read01 round 63) — run a user function whose body has its own
5859    /// FROM. The arguments are substituted into the body as literals and the
5860    /// SELECT goes through the REAL executor, so it sees exactly the rows a
5861    /// hand-written query would: the row-header visibility filter applies, and
5862    /// under in-place MVCC a dead row stays dead.
5863    ///
5864    /// PG returns the FIRST row of a scalar SQL function's body (and NULL when
5865    /// it returns none).
5866    pub(crate) fn run_user_fn_query(
5867        &self,
5868        def: &spg_storage::FunctionDef,
5869        stmt: &spg_sql::ast::SelectStatement,
5870        arg_names: &[alloc::string::String],
5871        args: &spg_storage::Row<'static>,
5872        fn_depth: u16,
5873    ) -> Result<Value<'static>, EvalError> {
5874        const MAX_QUERY_FN_DEPTH: u16 = 8;
5875        if fn_depth >= MAX_QUERY_FN_DEPTH {
5876            return Err(EvalError::TypeMismatch {
5877                detail: alloc::format!(
5878                    "function {:?}: a body with its own FROM may nest at most {MAX_QUERY_FN_DEPTH} deep",
5879                    def.name
5880                ),
5881            });
5882        }
5883        // Bind the arguments — the same helper the set-returning path uses, so
5884        // both resolve an argument identically (a COLUMN of the body's own FROM
5885        // shadows a same-named argument, as in PG).
5886        let owned: alloc::vec::Vec<Value<'static>> =
5887            args.values.iter().map(|v| v.clone().into_owned()).collect();
5888        let bound =
5889            bind_user_fn_args(self.active_catalog(), stmt, arg_names, &owned).map_err(|e| {
5890                EvalError::TypeMismatch {
5891                    detail: alloc::format!("function {:?}: {e}", def.name),
5892                }
5893            })?;
5894
5895        // v7.39 (round 334, V55) — a SECURITY DEFINER body is authorised as
5896        // the function's OWNER. Measured on PG 18.4: a definer function
5897        // owned by `owner55` counts rows of a table `caller55` cannot read,
5898        // while the SECURITY INVOKER sibling is refused.
5899        let as_role = def.security_definer.then(|| def.owner.as_deref()).flatten();
5900        let out = self
5901            .exec_select_cancel_as(&bound, crate::CancelToken::none(), as_role)
5902            .map_err(|e| EvalError::TypeMismatch {
5903                detail: alloc::format!("function {:?}: {e}", def.name),
5904            })?;
5905        let crate::QueryResult::Rows { rows, .. } = out else {
5906            return Ok(Value::Null);
5907        };
5908        let Some(first) = rows.first() else {
5909            // No row: PG's scalar SQL function returns NULL.
5910            return Ok(Value::Null);
5911        };
5912        let v = first.values.first().cloned().unwrap_or(Value::Null);
5913        let declared = def.returns.trim();
5914        if declared.eq_ignore_ascii_case("VOID") {
5915            return Ok(Value::Null);
5916        }
5917        crate::eval::cast::cast_value(v.into_owned(), declared_return_cast_target(declared))
5918            .or_else(|_| Ok(Value::Null))
5919    }
5920}
5921
5922/// v7.39 (read01 round 65) — bind a call's arguments into a function body's
5923/// SELECT, as literals. Shared by the scalar path (round 63) and the
5924/// set-returning one, so both resolve an argument the same way — including the
5925/// rule that a COLUMN of the body's own FROM shadows a same-named argument.
5926pub(crate) fn bind_user_fn_args(
5927    cat: &spg_storage::Catalog,
5928    stmt: &spg_sql::ast::SelectStatement,
5929    arg_names: &[alloc::string::String],
5930    args: &[Value<'static>],
5931) -> Result<spg_sql::ast::SelectStatement, EvalError> {
5932    let mut bound = stmt.clone();
5933    let mut binds: alloc::collections::BTreeMap<alloc::string::String, spg_sql::ast::Expr> =
5934        alloc::collections::BTreeMap::new();
5935    for (i, name) in arg_names.iter().enumerate() {
5936        if name.is_empty() {
5937            continue;
5938        }
5939        let shadowed = body_from_tables(stmt).iter().any(|t| {
5940            cat.get(t).is_some_and(|tb| {
5941                tb.schema()
5942                    .columns
5943                    .iter()
5944                    .any(|c| c.name.eq_ignore_ascii_case(name))
5945            })
5946        });
5947        if shadowed {
5948            continue;
5949        }
5950        let v = args.get(i).cloned().unwrap_or(Value::Null);
5951        let lit =
5952            crate::substitute::value_to_literal_expr(v).map_err(|e| EvalError::TypeMismatch {
5953                detail: alloc::format!("argument {name} cannot be bound into the body: {e}"),
5954            })?;
5955        binds.insert(name.to_ascii_lowercase(), lit);
5956    }
5957    substitute_arg_refs_in_select(&mut bound, &binds);
5958    Ok(bound)
5959}
5960
5961/// The base tables a function body's FROM names — used to decide whether an
5962/// argument name is shadowed by a column of the same name.
5963fn body_from_tables(
5964    stmt: &spg_sql::ast::SelectStatement,
5965) -> alloc::vec::Vec<alloc::string::String> {
5966    let mut out = alloc::vec::Vec::new();
5967    if let Some(from) = &stmt.from {
5968        out.push(from.primary.name.clone());
5969        for j in &from.joins {
5970            out.push(j.table.name.clone());
5971        }
5972    }
5973    out
5974}
5975
5976/// Replace every bare reference to an argument name with its literal value.
5977fn substitute_arg_refs_in_select(
5978    stmt: &mut spg_sql::ast::SelectStatement,
5979    binds: &alloc::collections::BTreeMap<alloc::string::String, spg_sql::ast::Expr>,
5980) {
5981    use spg_sql::ast::{Expr, SelectItem};
5982    fn walk(e: &mut Expr, binds: &alloc::collections::BTreeMap<alloc::string::String, Expr>) {
5983        match e {
5984            Expr::Column(c) => {
5985                if c.qualifier.is_none()
5986                    && let Some(lit) = binds.get(&c.name.to_ascii_lowercase())
5987                {
5988                    *e = lit.clone();
5989                }
5990            }
5991            Expr::Binary { lhs, rhs, .. } => {
5992                walk(lhs, binds);
5993                walk(rhs, binds);
5994            }
5995            Expr::Unary { expr, .. } | Expr::Cast { expr, .. } => walk(expr, binds),
5996            Expr::FunctionCall { args, .. } => args.iter_mut().for_each(|a| walk(a, binds)),
5997            Expr::Case {
5998                operand,
5999                branches,
6000                else_branch,
6001            } => {
6002                if let Some(o) = operand {
6003                    walk(o, binds);
6004                }
6005                for (c, v) in branches.iter_mut() {
6006                    walk(c, binds);
6007                    walk(v, binds);
6008                }
6009                if let Some(x) = else_branch {
6010                    walk(x, binds);
6011                }
6012            }
6013            Expr::InList { expr, list, .. } => {
6014                walk(expr, binds);
6015                list.iter_mut().for_each(|it| walk(it, binds));
6016            }
6017            Expr::AnyAll { expr, array, .. } => {
6018                walk(expr, binds);
6019                walk(array, binds);
6020            }
6021            Expr::Array(items) => items.iter_mut().for_each(|it| walk(it, binds)),
6022            Expr::ArraySubscript { target, index } => {
6023                walk(target, binds);
6024                walk(index, binds);
6025            }
6026            _ => {}
6027        }
6028    }
6029    for item in &mut stmt.items {
6030        if let SelectItem::Expr { expr, .. } = item {
6031            walk(expr, binds);
6032        }
6033    }
6034    if let Some(w) = &mut stmt.where_ {
6035        walk(w, binds);
6036    }
6037    if let Some(h) = &mut stmt.having {
6038        walk(h, binds);
6039    }
6040    if let Some(gs) = &mut stmt.group_by {
6041        gs.iter_mut().for_each(|g| walk(g, binds));
6042    }
6043    for o in &mut stmt.order_by {
6044        walk(&mut o.expr, binds);
6045    }
6046    if let Some(from) = &mut stmt.from {
6047        for j in &mut from.joins {
6048            if let Some(on) = &mut j.on {
6049                walk(on, binds);
6050            }
6051        }
6052    }
6053    // v7.39 (read01 round 69) — the UNION peers. A body like
6054    // `SELECT k UNION ALL SELECT k * 10` has its second half in `unions`, and
6055    // leaving it unsubstituted made the argument look like a missing column.
6056    for (_, peer) in &mut stmt.unions {
6057        substitute_arg_refs_in_select(peer, binds);
6058    }
6059    for cte in &mut stmt.ctes {
6060        if let Some(s) = cte.body.as_select_mut() {
6061            substitute_arg_refs_in_select(s, binds);
6062        }
6063    }
6064}
6065
6066/// v7.38.4 (sentori step 54) — the cast target for a function's DECLARED
6067/// return type.
6068///
6069/// `def.returns` holds the type as the user wrote it, so an array is
6070/// `bigint[]`; a `CastTarget::Named` spells the same type `bigint_array`.
6071/// The coercion therefore could not resolve `RETURNS bigint[]`, and the
6072/// `or_else(NULL)` under every call site turned "I could not coerce this"
6073/// into a NULL answer: the body computed `{1,2}` and the caller got
6074/// nothing, with no error anywhere. Their version keys compare through one
6075/// of these, so every version-targeted push reached zero devices while
6076/// reporting success.
6077///
6078/// Shared by both coercion sites — the pure-expression body and the one
6079/// with its own FROM — because they had the same line written twice and
6080/// fixing one would have left the other.
6081pub(crate) fn declared_return_cast_target(declared: &str) -> spg_sql::ast::CastTarget {
6082    let name = declared.trim().strip_suffix("[]").map_or_else(
6083        || alloc::string::String::from(declared.trim()),
6084        |base| alloc::format!("{}_array", base.trim()),
6085    );
6086    spg_sql::ast::CastTarget::Named(name)
6087}
6088
6089impl crate::Engine {
6090    /// v7.39 (read01 round 64) — call a plpgsql function as a scalar. The body
6091    /// runs on the interpreter the DO block and triggers already use, with the
6092    /// arguments bound as locals; its `SELECT … INTO` and `FOR … IN SELECT`
6093    /// resolvers go through the READ path, so what the body sees is what a
6094    /// hand-written query would see (visibility filter and all).
6095    ///
6096    /// A body that writes is refused — the call arrives through expression
6097    /// evaluation, which holds the engine immutably. Refusing is the honest
6098    /// answer; silently dropping the write would be the worst one.
6099    pub(crate) fn call_plpgsql_scalar_fn(
6100        &self,
6101        def: &spg_storage::FunctionDef,
6102        arg_names: &[alloc::string::String],
6103        args: &spg_storage::Row<'static>,
6104    ) -> Result<Value<'static>, EvalError> {
6105        let block =
6106            spg_sql::parse_function_body(def.body.trim()).map_err(|e| EvalError::TypeMismatch {
6107                detail: alloc::format!("function {:?} body does not parse: {e}", def.name),
6108            })?;
6109        let mut locals: alloc::collections::BTreeMap<alloc::string::String, Value<'static>> =
6110            alloc::collections::BTreeMap::new();
6111        for (i, n) in arg_names.iter().enumerate() {
6112            if n.is_empty() {
6113                continue;
6114            }
6115            locals.insert(
6116                n.to_ascii_lowercase(),
6117                args.values.get(i).cloned().unwrap_or(Value::Null),
6118            );
6119        }
6120        let dts = self
6121            .session_param("default_text_search_config")
6122            .map(alloc::string::String::from);
6123
6124        let select_into = |stmt: &spg_sql::ast::Statement| -> Result<
6125            Value<'static>,
6126            crate::triggers::TriggerError,
6127        > {
6128            let spg_sql::ast::Statement::Select(s) = stmt else {
6129                return Err(crate::triggers::TriggerError::EvalFailed {
6130                    function: def.name.clone(),
6131                    cause: EvalError::TypeMismatch {
6132                        detail: "SELECT … INTO body must be a SELECT".into(),
6133                    },
6134                });
6135            };
6136            let r = self
6137                .exec_select_cancel(s, crate::CancelToken::none())
6138                .map_err(|e| crate::triggers::TriggerError::EvalFailed {
6139                    function: def.name.clone(),
6140                    cause: EvalError::TypeMismatch {
6141                        detail: alloc::format!("SELECT … INTO failed: {e}"),
6142                    },
6143                })?;
6144            match r {
6145                crate::QueryResult::Rows { rows, .. } => Ok(rows
6146                    .into_iter()
6147                    .next()
6148                    .and_then(|row| row.values.into_iter().next())
6149                    .unwrap_or(Value::Null)),
6150                _ => Ok(Value::Null),
6151            }
6152        };
6153        let for_query = |stmt: &spg_sql::ast::Statement| -> Result<
6154            (
6155                alloc::vec::Vec<alloc::string::String>,
6156                alloc::vec::Vec<alloc::vec::Vec<Value<'static>>>,
6157            ),
6158            crate::triggers::TriggerError,
6159        > {
6160            let spg_sql::ast::Statement::Select(s) = stmt else {
6161                return Err(crate::triggers::TriggerError::EvalFailed {
6162                    function: def.name.clone(),
6163                    cause: EvalError::TypeMismatch {
6164                        detail: "FOR … IN body must be a SELECT".into(),
6165                    },
6166                });
6167            };
6168            let r = self
6169                .exec_select_cancel(s, crate::CancelToken::none())
6170                .map_err(|e| crate::triggers::TriggerError::EvalFailed {
6171                    function: def.name.clone(),
6172                    cause: EvalError::TypeMismatch {
6173                        detail: alloc::format!("FOR … IN SELECT failed: {e}"),
6174                    },
6175                })?;
6176            match r {
6177                crate::QueryResult::Rows { columns, rows } => Ok((
6178                    columns.iter().map(|c| c.name.clone()).collect(),
6179                    rows.into_iter().map(|row| row.values).collect(),
6180                )),
6181                _ => Ok((alloc::vec::Vec::new(), alloc::vec::Vec::new())),
6182            }
6183        };
6184
6185        let out = crate::triggers::call_plpgsql_scalar(
6186            &def.name,
6187            &block,
6188            locals,
6189            dts.as_deref(),
6190            Some(&select_into),
6191            Some(&for_query),
6192            // A scalar call has no set to build; RETURN NEXT / RETURN QUERY are
6193            // errors here, as in PG.
6194            // (second None below: the read path holds the engine immutably, so
6195            // RAISE messages have nowhere session-bound to go — B3 residual.)
6196            None,
6197            None,
6198        )
6199        .map_err(|e| EvalError::TypeMismatch {
6200            detail: alloc::format!("{e}"),
6201        })?;
6202        let declared = def.returns.trim();
6203        let Some(v) = out else {
6204            if declared.eq_ignore_ascii_case("VOID") {
6205                return Ok(Value::Null);
6206            }
6207            // PG: a non-void function that falls out of the bottom.
6208            return Err(EvalError::TypeMismatch {
6209                detail: alloc::format!(
6210                    "control reached end of function {:?} without RETURN",
6211                    def.name
6212                ),
6213            });
6214        };
6215        if declared.eq_ignore_ascii_case("VOID") {
6216            return Ok(Value::Null);
6217        }
6218        crate::eval::cast::cast_value(
6219            v.into_owned(),
6220            spg_sql::ast::CastTarget::Named(alloc::string::String::from(declared)),
6221        )
6222        .or_else(|_| Ok(Value::Null))
6223    }
6224}
6225
6226impl crate::Engine {
6227    /// v7.39 (read01 round 66) — run a `RETURNS SETOF` plpgsql function and
6228    /// collect the rows `RETURN NEXT` / `RETURN QUERY` appended. Same
6229    /// interpreter, same read-path resolvers as the scalar call — the only
6230    /// difference is that a SINK is provided, which is what makes those two
6231    /// statements legal.
6232    pub(crate) fn call_plpgsql_setof_fn(
6233        &self,
6234        def: &spg_storage::FunctionDef,
6235        arg_names: &[alloc::string::String],
6236        args: &[Value<'static>],
6237    ) -> Result<alloc::vec::Vec<alloc::vec::Vec<Value<'static>>>, EvalError> {
6238        let block =
6239            spg_sql::parse_function_body(def.body.trim()).map_err(|e| EvalError::TypeMismatch {
6240                detail: alloc::format!("function {:?} body does not parse: {e}", def.name),
6241            })?;
6242        let mut locals: alloc::collections::BTreeMap<alloc::string::String, Value<'static>> =
6243            alloc::collections::BTreeMap::new();
6244        for (i, n) in arg_names.iter().enumerate() {
6245            if n.is_empty() {
6246                continue;
6247            }
6248            locals.insert(
6249                n.to_ascii_lowercase(),
6250                args.get(i).cloned().unwrap_or(Value::Null),
6251            );
6252        }
6253        let dts = self
6254            .session_param("default_text_search_config")
6255            .map(alloc::string::String::from);
6256        let run_select = |stmt: &spg_sql::ast::Statement,
6257                          what: &str|
6258         -> Result<crate::QueryResult, crate::triggers::TriggerError> {
6259            let spg_sql::ast::Statement::Select(s) = stmt else {
6260                return Err(crate::triggers::TriggerError::EvalFailed {
6261                    function: def.name.clone(),
6262                    cause: EvalError::TypeMismatch {
6263                        detail: alloc::format!("{what} body must be a SELECT"),
6264                    },
6265                });
6266            };
6267            self.exec_select_cancel(s, crate::CancelToken::none())
6268                .map_err(|e| crate::triggers::TriggerError::EvalFailed {
6269                    function: def.name.clone(),
6270                    cause: EvalError::TypeMismatch {
6271                        detail: alloc::format!("{what} failed: {e}"),
6272                    },
6273                })
6274        };
6275        let select_into = |stmt: &spg_sql::ast::Statement| -> Result<
6276            Value<'static>,
6277            crate::triggers::TriggerError,
6278        > {
6279            match run_select(stmt, "SELECT … INTO")? {
6280                crate::QueryResult::Rows { rows, .. } => Ok(rows
6281                    .into_iter()
6282                    .next()
6283                    .and_then(|r| r.values.into_iter().next())
6284                    .unwrap_or(Value::Null)),
6285                _ => Ok(Value::Null),
6286            }
6287        };
6288        let for_query = |stmt: &spg_sql::ast::Statement| -> Result<
6289            (
6290                alloc::vec::Vec<alloc::string::String>,
6291                alloc::vec::Vec<alloc::vec::Vec<Value<'static>>>,
6292            ),
6293            crate::triggers::TriggerError,
6294        > {
6295            match run_select(stmt, "FOR … IN / RETURN QUERY")? {
6296                crate::QueryResult::Rows { columns, rows } => Ok((
6297                    columns.iter().map(|c| c.name.clone()).collect(),
6298                    rows.into_iter().map(|r| r.values).collect(),
6299                )),
6300                _ => Ok((alloc::vec::Vec::new(), alloc::vec::Vec::new())),
6301            }
6302        };
6303        let sink: core::cell::RefCell<alloc::vec::Vec<alloc::vec::Vec<Value<'static>>>> =
6304            core::cell::RefCell::new(alloc::vec::Vec::new());
6305        crate::triggers::call_plpgsql_scalar(
6306            &def.name,
6307            &block,
6308            locals,
6309            dts.as_deref(),
6310            Some(&select_into),
6311            Some(&for_query),
6312            Some(&sink),
6313            // Read path — immutable engine borrow; B3 residual.
6314            None,
6315        )
6316        .map_err(|e| EvalError::TypeMismatch {
6317            detail: alloc::format!("{e}"),
6318        })?;
6319        Ok(sink.into_inner())
6320    }
6321}
6322
6323/// v7.39 (round 236) — resolve an ARRAY constructor's element types the way
6324/// PG does. Typed elements must share a type category; a bare string or NULL
6325/// literal is untyped and converts to whatever the typed elements resolved
6326/// to, reporting the value (not a type mismatch) when it will not convert.
6327fn unify_array_elements(
6328    items: &[Expr],
6329    materialised: &mut [Value<'static>],
6330) -> Result<(), EvalError> {
6331    unify_construct_values("ARRAY", items, materialised)
6332}
6333
6334/// v7.39 (round 238) — an `IN (...)` list must be comparable with its
6335/// needle. Reports the operator the way PG does
6336/// ("operator does not exist: integer = text"), and — like round 237 —
6337/// judges only the operands whose type is genuinely known.
6338fn require_in_list_comparable(
6339    needle: &Expr,
6340    list: &[Expr],
6341    ctx: &EvalContext<'_>,
6342) -> Result<(), EvalError> {
6343    let known_ty = |e: &Expr| {
6344        matches!(e, Expr::Cast { .. } | Expr::Literal(_) | Expr::Column(_))
6345            .then(|| crate::describe::describe_expr(e, ctx.columns).map(|s| s.ty))
6346            .flatten()
6347    };
6348    // An untyped literal adopts the needle's type, so it never conflicts.
6349    //
6350    // v7.39 (round 652) — and so does a cast to one of the reg types.
6351    // `'pg_class'::regclass` carries an oid AND a name, which is why
6352    // `compare` has arms for both, but it DESCRIBES as text — SPG has no
6353    // `DataType` for it. This check ran before any comparison and
6354    // refused `WHERE oid IN ('pg_class'::regclass, …)` as `bigint =
6355    // text`, while the identical `oid = 'pg_class'::regclass` worked.
6356    // That shape is how pg_dump, ORMs and monitoring queries name a
6357    // handful of relations at once, so it is not a corner.
6358    let reg_cast = |e: &Expr| {
6359        match e {
6360            Expr::Cast { target, .. } => match target {
6361                spg_sql::ast::CastTarget::RegClass | spg_sql::ast::CastTarget::RegType => true,
6362                // `regproc` and `regnamespace` have no variant of their
6363                // own; they arrive through the generic named path.
6364                spg_sql::ast::CastTarget::Named(n) => {
6365                    n.eq_ignore_ascii_case("regproc")
6366                        || n.eq_ignore_ascii_case("regnamespace")
6367                        || n.eq_ignore_ascii_case("regtype")
6368                        || n.eq_ignore_ascii_case("regclass")
6369                }
6370                _ => false,
6371            },
6372            _ => false,
6373        }
6374    };
6375    let untyped = |e: &Expr| {
6376        reg_cast(e)
6377            || matches!(
6378                e,
6379                Expr::Literal(spg_sql::ast::Literal::String(_))
6380                    | Expr::Literal(spg_sql::ast::Literal::Null)
6381            )
6382    };
6383    // The needle can be untyped too (`NULL IN (1,2)`): SPG has no `Unknown`
6384    // DataType, so a bare NULL describes as TEXT and would look like a text
6385    // needle conflicting with integer list items.
6386    if untyped(needle) {
6387        return Ok(());
6388    }
6389    let Some(nt) = known_ty(needle) else {
6390        return Ok(());
6391    };
6392    for item in list {
6393        if untyped(item) {
6394            continue;
6395        }
6396        let Some(it) = known_ty(item) else { continue };
6397        if !crate::conversions::types_unify(nt, it) {
6398            return Err(EvalError::TypeMismatch {
6399                detail: alloc::format!(
6400                    "operator does not exist: {} = {}",
6401                    crate::conversions::pg_type_name_for_error(nt),
6402                    crate::conversions::pg_type_name_for_error(it),
6403                ),
6404            });
6405        }
6406    }
6407    Ok(())
6408}
6409
6410/// v7.39 (round 237) — STATIC branch-type resolution for the constructs
6411/// whose branches must not all be evaluated: CASE runs only the branch it
6412/// takes, and a COALESCE / GREATEST argument may have side effects
6413/// (`COALESCE(nextval('s'), 1)`), so the check reads each branch's declared
6414/// type instead of its value. Same rule and wording as the value-driven
6415/// ARRAY path below; an untyped literal is converted here (a literal has no
6416/// side effects) so a value that will not convert is reported as PG does.
6417/// v7.39 (round 609) — takes anything that yields the branches, so the
6418/// COALESCE caller no longer builds a `Vec<&Expr>` of them for every row.
6419pub(crate) fn unify_branch_types_static<'e>(
6420    construct: &str,
6421    branches: impl IntoIterator<Item = &'e Expr> + Clone,
6422    ctx: &EvalContext<'_>,
6423) -> Result<(), EvalError> {
6424    use spg_storage::DataType;
6425    let untyped = |e: &Expr| {
6426        matches!(
6427            e,
6428            Expr::Literal(spg_sql::ast::Literal::String(_))
6429                | Expr::Literal(spg_sql::ast::Literal::Null)
6430        )
6431    };
6432    let mut resolved: Option<DataType> = None;
6433    for e in branches.clone() {
6434        if untyped(e) {
6435            continue;
6436        }
6437        // Only branches whose type is GENUINELY known take part. A general
6438        // `describe_expr` is a best-effort hint for wire type tags, not a
6439        // type checker: it reports a binary operator as its left operand's
6440        // type, so `payload->'a'` (jsonb in PG) came back as text and this
6441        // check refused a working `COALESCE(payload->'a', '{}'::jsonb)`.
6442        // Refusing a valid query is worse than missing an invalid one, so
6443        // the check confines itself to an explicit cast, a typed literal and
6444        // a plain column reference.
6445        let known = matches!(e, Expr::Cast { .. } | Expr::Literal(_) | Expr::Column(_));
6446        if !known {
6447            continue;
6448        }
6449        // 7.38.1 S5.1 — a reg* cast is an OID wearing a name: describe
6450        // says Text (the wire render), but it compares and unions with
6451        // numeric catalog columns (pg_dump: `SELECT classid … UNION
6452        // ALL SELECT 'pg_opfamily'::regclass …`). Its static claim is
6453        // not genuinely known here, so it sits the check out — the
6454        // dual RegClass value reconciles at runtime.
6455        if matches!(
6456            e,
6457            Expr::Cast {
6458                target: spg_sql::ast::CastTarget::RegType | spg_sql::ast::CastTarget::RegClass,
6459                ..
6460            }
6461        ) {
6462            continue;
6463        }
6464        let Some(ty) = crate::describe::describe_expr_type(e, ctx.columns) else {
6465            continue;
6466        };
6467        match resolved {
6468            None => resolved = Some(ty),
6469            Some(prev) if crate::conversions::types_unify(prev, ty) => {
6470                if matches!(prev, DataType::Int | DataType::SmallInt) {
6471                    resolved = Some(ty);
6472                }
6473            }
6474            Some(prev) => {
6475                return Err(EvalError::TypeMismatch {
6476                    detail: alloc::format!(
6477                        "{construct} types {} and {} cannot be matched",
6478                        crate::conversions::pg_type_name_for_error(prev),
6479                        crate::conversions::pg_type_name_for_error(ty),
6480                    ),
6481                });
6482            }
6483        }
6484    }
6485    let Some(target) = resolved else {
6486        return Ok(());
6487    };
6488    if matches!(target, DataType::Text) {
6489        return Ok(());
6490    }
6491    // v7.39 (round 398) — MySQL aggregates a mixed int/string CASE /
6492    // COALESCE to a string (`CASE WHEN 1 THEN 1 ELSE 'x' END` is '1', not an
6493    // error); PG requires the untyped string literals to coerce to the
6494    // resolved numeric type, so it refuses. Under the dialect, skip that
6495    // coercion check — the value is returned as-is / widened by the caller.
6496    if ctx.mysql_dialect {
6497        return Ok(());
6498    }
6499    for e in branches {
6500        if !untyped(e) {
6501            continue;
6502        }
6503        if let Expr::Literal(spg_sql::ast::Literal::String(lit)) = e {
6504            crate::conversions::coerce_value(Value::text(lit.clone()), target, "", 0).map_err(
6505                |err| match err {
6506                    crate::EngineError::Eval(ev) => ev,
6507                    other => EvalError::TypeMismatch {
6508                        detail: alloc::format!("{other}"),
6509                    },
6510                },
6511            )?;
6512        }
6513    }
6514    Ok(())
6515}
6516
6517/// v7.39 (round 237) — the same resolution for every construct that builds
6518/// one value out of several branches: ARRAY, CASE, COALESCE, GREATEST and
6519/// LEAST. PG names the construct in the message ("CASE types text and
6520/// integer cannot be matched"), which is why the caller passes it in.
6521pub(crate) fn unify_construct_values(
6522    construct: &str,
6523    items: &[Expr],
6524    materialised: &mut [Value<'static>],
6525) -> Result<(), EvalError> {
6526    use spg_storage::DataType;
6527    let untyped = |e: &Expr| {
6528        matches!(
6529            e,
6530            Expr::Literal(spg_sql::ast::Literal::String(_))
6531                | Expr::Literal(spg_sql::ast::Literal::Null)
6532        )
6533    };
6534    // The type the typed elements agree on, if any.
6535    let mut resolved: Option<DataType> = None;
6536    for (i, v) in materialised.iter().enumerate() {
6537        if items.get(i).is_some_and(untyped) {
6538            continue;
6539        }
6540        let Some(ty) = v.data_type() else { continue };
6541        match resolved {
6542            None => resolved = Some(ty),
6543            Some(prev) if crate::conversions::types_unify(prev, ty) => {
6544                // Keep the wider of the two so the coercion below targets it.
6545                if matches!(prev, DataType::Int | DataType::SmallInt) {
6546                    resolved = Some(ty);
6547                }
6548            }
6549            Some(prev) => {
6550                return Err(EvalError::TypeMismatch {
6551                    detail: alloc::format!(
6552                        "{construct} types {} and {} cannot be matched",
6553                        crate::conversions::pg_type_name_for_error(prev),
6554                        crate::conversions::pg_type_name_for_error(ty),
6555                    ),
6556                });
6557            }
6558        }
6559    }
6560    // Untyped literals adopt that type; a failure names the value, as PG does.
6561    let Some(target) = resolved else {
6562        return Ok(());
6563    };
6564    if matches!(target, DataType::Text) {
6565        return Ok(());
6566    }
6567    for (i, v) in materialised.iter_mut().enumerate() {
6568        if !items.get(i).is_some_and(untyped) || matches!(v, Value::Null) {
6569            continue;
6570        }
6571        *v = crate::conversions::coerce_value(v.clone(), target, "", i).map_err(|e| match e {
6572            crate::EngineError::Eval(ev) => ev,
6573            other => EvalError::TypeMismatch {
6574                detail: alloc::format!("{other}"),
6575            },
6576        })?;
6577    }
6578    Ok(())
6579}
6580
6581/// v7.39 (round 309, V30) — split `'<timestamp> <zone name>'` into the
6582/// wall-clock reading and the zone token, for the zone-less target types.
6583///
6584/// Returns `None` when the literal parses on its own (nothing to strip)
6585/// or when the trailing token is not zone-SHAPED — those keep the
6586/// ordinary "invalid input syntax" path, which is what PG answers for
6587/// `'2020-01-01 10:00:00 xyz'`. Whether a zone-shaped token is a REAL
6588/// zone is the caller's question; getting that wrong is a different
6589/// error in PG, and conflating the two would report a malformed literal
6590/// for a merely-misspelled zone.
6591///
6592/// Deliberately does not accept a bare time (`'10:00:00 America/New_York'`):
6593/// PG refuses a named zone there, and only reaches this spelling through
6594/// a full timestamp literal.
6595fn split_trailing_zone_name(txt: &str, order: format::DateOrder) -> Option<(i64, &str)> {
6596    // Already valid without help — leave it alone.
6597    if format::parse_timestamp_literal_wall_ordered(txt, order).is_some() {
6598        return None;
6599    }
6600    let trimmed = txt.trim_end();
6601    let idx = trimmed.rfind(' ')?;
6602    let (head, tail) = (trimmed[..idx].trim(), trimmed[idx + 1..].trim());
6603    // An era marker is part of the timestamp, not a zone.
6604    let zone_shaped = tail.len() > 1
6605        && tail.bytes().any(|b| b.is_ascii_alphabetic())
6606        && !tail.eq_ignore_ascii_case("bc")
6607        && !tail.eq_ignore_ascii_case("ad");
6608    if !zone_shaped {
6609        return None;
6610    }
6611    let wall = format::parse_timestamp_literal_wall_ordered(head, order)?;
6612    Some((wall, tail))
6613}
6614
6615#[cfg(test)]
6616mod tests {
6617    use super::*;
6618    use alloc::vec;
6619    use spg_sql::ast::UnOp;
6620    use spg_storage::{ColumnSchema, DataType, Row};
6621
6622    fn col(name: &str, ty: DataType) -> ColumnSchema {
6623        ColumnSchema::new(name, ty, true)
6624    }
6625
6626    fn ctx<'a>(cols: &'a [ColumnSchema], alias: Option<&'a str>) -> EvalContext<'a> {
6627        EvalContext::new(cols, alias)
6628    }
6629
6630    /// v7.32 (P4 borrow channel) differential: the borrowed comparison
6631    /// fast path in `eval_expr`'s Binary arm must be byte-for-byte the
6632    /// pre-P4 owned path (`apply_binary` on cloned operands) across a
6633    /// cross-type value matrix and every comparison operator — covering
6634    /// the fast-path types (Text/Int/Float/Date/Timestamp/Bool/Null) and
6635    /// the owned-fallback types (Numeric/Interval).
6636    #[test]
6637    fn borrowed_compare_equals_owned_apply_binary() {
6638        let vals = vec![
6639            Value::Null,
6640            Value::Bool(true),
6641            Value::Bool(false),
6642            Value::SmallInt(3),
6643            Value::Int(3),
6644            Value::Int(-1),
6645            Value::BigInt(3),
6646            Value::BigInt(100),
6647            Value::Float(3.0),
6648            Value::Float(2.5),
6649            Value::text(String::new()),
6650            Value::text("a"),
6651            Value::text("b"),
6652            Value::Date(10),
6653            Value::Timestamp(1000),
6654            Value::Numeric {
6655                scaled: 30,
6656                scale: 1,
6657                kind: spg_storage::NumericKind::Finite,
6658            },
6659            Value::Interval {
6660                months: 0,
6661                days: 0,
6662                micros: 5,
6663                kind: spg_storage::IntervalKind::Finite,
6664            },
6665        ];
6666        let ops = [
6667            BinOp::Eq,
6668            BinOp::NotEq,
6669            BinOp::Lt,
6670            BinOp::LtEq,
6671            BinOp::Gt,
6672            BinOp::GtEq,
6673        ];
6674        let cs = vec![col("x", DataType::Int), col("y", DataType::Int)];
6675        let c = ctx(&cs, None);
6676        let lhs = Expr::Column(ColumnName {
6677            qualifier: None,
6678            name: "x".into(),
6679        });
6680        let rhs = Expr::Column(ColumnName {
6681            qualifier: None,
6682            name: "y".into(),
6683        });
6684        for l in &vals {
6685            for r in &vals {
6686                let row = Row::new(vec![l.clone(), r.clone()]);
6687                for op in ops {
6688                    let got = eval_expr(
6689                        &Expr::Binary {
6690                            lhs: alloc::boxed::Box::new(lhs.clone()),
6691                            op,
6692                            rhs: alloc::boxed::Box::new(rhs.clone()),
6693                        },
6694                        &row,
6695                        &c,
6696                    );
6697                    // Pre-P4 reference: owned operands through apply_binary
6698                    // (collation fold is a no-op for non-CI columns).
6699                    let want = apply_binary(op, l.clone(), r.clone());
6700                    assert_eq!(
6701                        format!("{got:?}"),
6702                        format!("{want:?}"),
6703                        "op={op:?} l={l:?} r={r:?}"
6704                    );
6705                }
6706            }
6707        }
6708    }
6709
6710    fn lit(n: i64) -> Expr {
6711        Expr::Literal(Literal::Integer(n))
6712    }
6713
6714    fn null() -> Expr {
6715        Expr::Literal(Literal::Null)
6716    }
6717
6718    fn col_ref(name: &str) -> Expr {
6719        Expr::Column(ColumnName {
6720            qualifier: None,
6721            name: name.into(),
6722        })
6723    }
6724
6725    #[test]
6726    fn literal_evaluates_to_value() {
6727        let r = Row::new(vec![]);
6728        let cs: [ColumnSchema; 0] = [];
6729        let c = ctx(&cs, None);
6730        assert_eq!(eval_expr(&lit(42), &r, &c).unwrap(), Value::Int(42));
6731        assert_eq!(
6732            eval_expr(&Expr::Literal(Literal::Float(1.5)), &r, &c).unwrap(),
6733            Value::Float(1.5)
6734        );
6735        assert_eq!(eval_expr(&null(), &r, &c).unwrap(), Value::Null);
6736    }
6737
6738    #[test]
6739    fn column_lookup_unqualified() {
6740        let cs = vec![col("a", DataType::Int), col("b", DataType::Text)];
6741        let r = Row::new(vec![Value::Int(7), Value::text("hi")]);
6742        let c = ctx(&cs, None);
6743        assert_eq!(eval_expr(&col_ref("a"), &r, &c).unwrap(), Value::Int(7));
6744        assert_eq!(eval_expr(&col_ref("b"), &r, &c).unwrap(), Value::text("hi"));
6745    }
6746
6747    #[test]
6748    fn column_not_found_errors() {
6749        let cs = vec![col("a", DataType::Int)];
6750        let r = Row::new(vec![Value::Int(0)]);
6751        let c = ctx(&cs, None);
6752        let err = eval_expr(&col_ref("ghost"), &r, &c).unwrap_err();
6753        assert!(matches!(err, EvalError::ColumnNotFound { ref name } if name == "ghost"));
6754    }
6755
6756    #[test]
6757    fn qualified_column_matches_alias() {
6758        let cs = vec![col("a", DataType::Int)];
6759        let r = Row::new(vec![Value::Int(5)]);
6760        let c = ctx(&cs, Some("u"));
6761        let qualified = Expr::Column(ColumnName {
6762            qualifier: Some("u".into()),
6763            name: "a".into(),
6764        });
6765        assert_eq!(eval_expr(&qualified, &r, &c).unwrap(), Value::Int(5));
6766    }
6767
6768    #[test]
6769    fn qualified_column_unknown_alias_errors() {
6770        let cs = vec![col("a", DataType::Int)];
6771        let r = Row::new(vec![Value::Int(5)]);
6772        let c = ctx(&cs, Some("u"));
6773        let wrong = Expr::Column(ColumnName {
6774            qualifier: Some("x".into()),
6775            name: "a".into(),
6776        });
6777        assert!(matches!(
6778            eval_expr(&wrong, &r, &c).unwrap_err(),
6779            EvalError::UnknownQualifier { .. }
6780        ));
6781    }
6782
6783    #[test]
6784    fn arithmetic_with_widening() {
6785        let r = Row::new(vec![]);
6786        let cs: [ColumnSchema; 0] = [];
6787        let c = ctx(&cs, None);
6788        let e = Expr::Binary {
6789            lhs: alloc::boxed::Box::new(lit(2)),
6790            op: BinOp::Add,
6791            rhs: alloc::boxed::Box::new(Expr::Literal(Literal::Float(0.5))),
6792        };
6793        assert_eq!(eval_expr(&e, &r, &c).unwrap(), Value::Float(2.5));
6794    }
6795
6796    #[test]
6797    fn division_by_zero_errors() {
6798        let r = Row::new(vec![]);
6799        let cs: [ColumnSchema; 0] = [];
6800        let c = ctx(&cs, None);
6801        let e = Expr::Binary {
6802            lhs: alloc::boxed::Box::new(lit(1)),
6803            op: BinOp::Div,
6804            rhs: alloc::boxed::Box::new(lit(0)),
6805        };
6806        assert_eq!(
6807            eval_expr(&e, &r, &c).unwrap_err(),
6808            EvalError::DivisionByZero
6809        );
6810    }
6811
6812    #[test]
6813    fn comparison_returns_bool() {
6814        let r = Row::new(vec![]);
6815        let cs: [ColumnSchema; 0] = [];
6816        let c = ctx(&cs, None);
6817        let e = Expr::Binary {
6818            lhs: alloc::boxed::Box::new(lit(1)),
6819            op: BinOp::Lt,
6820            rhs: alloc::boxed::Box::new(lit(2)),
6821        };
6822        assert_eq!(eval_expr(&e, &r, &c).unwrap(), Value::Bool(true));
6823    }
6824
6825    #[test]
6826    fn null_propagates_through_arithmetic() {
6827        let r = Row::new(vec![]);
6828        let cs: [ColumnSchema; 0] = [];
6829        let c = ctx(&cs, None);
6830        let e = Expr::Binary {
6831            lhs: alloc::boxed::Box::new(lit(1)),
6832            op: BinOp::Add,
6833            rhs: alloc::boxed::Box::new(null()),
6834        };
6835        assert_eq!(eval_expr(&e, &r, &c).unwrap(), Value::Null);
6836    }
6837
6838    #[test]
6839    fn stack_depth_guard_trips_on_pathological_nesting() {
6840        // Built directly as an AST — the parser's own budgets (256
6841        // chained binary operators, 64 nesting levels) reject such SQL
6842        // long before eval sees it, so this exercises the eval-side
6843        // guard on its own. 30 000 frames overshoot the 768 KiB budget
6844        // at any conceivable frame size; the guard errors at the byte
6845        // budget, far below the worker stack, so deeper is safer.
6846        let mut e = Expr::Literal(Literal::Bool(true));
6847        for _ in 0..30_000 {
6848            e = Expr::Binary {
6849                lhs: alloc::boxed::Box::new(e),
6850                op: BinOp::And,
6851                rhs: alloc::boxed::Box::new(Expr::Literal(Literal::Bool(true))),
6852            };
6853        }
6854        let r = Row::new(vec![]);
6855        let cs: [ColumnSchema; 0] = [];
6856        let c = ctx(&cs, None);
6857        let err = eval_expr(&e, &r, &c).unwrap_err();
6858        assert!(matches!(err, EvalError::StackDepthExceeded), "{err:?}");
6859        // Dropping a 30 000-deep Box chain recurses in the drop glue —
6860        // deeper than the eval guard allows the EVAL side to go — so
6861        // leak it rather than gamble on the test thread's stack.
6862        core::mem::forget(e);
6863    }
6864
6865    #[test]
6866    fn and_three_valued_logic() {
6867        let r = Row::new(vec![]);
6868        let cs: [ColumnSchema; 0] = [];
6869        let c = ctx(&cs, None);
6870        let tt = |a: bool, b_null: bool| Expr::Binary {
6871            lhs: alloc::boxed::Box::new(Expr::Literal(Literal::Bool(a))),
6872            op: BinOp::And,
6873            rhs: alloc::boxed::Box::new(if b_null {
6874                null()
6875            } else {
6876                Expr::Literal(Literal::Bool(true))
6877            }),
6878        };
6879        // FALSE AND NULL → FALSE
6880        assert_eq!(
6881            eval_expr(&tt(false, true), &r, &c).unwrap(),
6882            Value::Bool(false)
6883        );
6884        // TRUE AND NULL → NULL
6885        assert_eq!(eval_expr(&tt(true, true), &r, &c).unwrap(), Value::Null);
6886        // TRUE AND TRUE → TRUE
6887        assert_eq!(
6888            eval_expr(&tt(true, false), &r, &c).unwrap(),
6889            Value::Bool(true)
6890        );
6891    }
6892
6893    #[test]
6894    fn or_three_valued_logic() {
6895        let r = Row::new(vec![]);
6896        let cs: [ColumnSchema; 0] = [];
6897        let c = ctx(&cs, None);
6898        let or_with_null = |a: bool| Expr::Binary {
6899            lhs: alloc::boxed::Box::new(Expr::Literal(Literal::Bool(a))),
6900            op: BinOp::Or,
6901            rhs: alloc::boxed::Box::new(null()),
6902        };
6903        // TRUE OR NULL → TRUE
6904        assert_eq!(
6905            eval_expr(&or_with_null(true), &r, &c).unwrap(),
6906            Value::Bool(true)
6907        );
6908        // FALSE OR NULL → NULL
6909        assert_eq!(
6910            eval_expr(&or_with_null(false), &r, &c).unwrap(),
6911            Value::Null
6912        );
6913    }
6914
6915    #[test]
6916    fn not_on_null_is_null() {
6917        let r = Row::new(vec![]);
6918        let cs: [ColumnSchema; 0] = [];
6919        let c = ctx(&cs, None);
6920        let e = Expr::Unary {
6921            op: UnOp::Not,
6922            expr: alloc::boxed::Box::new(null()),
6923        };
6924        assert_eq!(eval_expr(&e, &r, &c).unwrap(), Value::Null);
6925    }
6926
6927    #[test]
6928    fn text_comparison_lexicographic() {
6929        let r = Row::new(vec![]);
6930        let cs: [ColumnSchema; 0] = [];
6931        let c = ctx(&cs, None);
6932        let e = Expr::Binary {
6933            lhs: alloc::boxed::Box::new(Expr::Literal(Literal::String("apple".into()))),
6934            op: BinOp::Lt,
6935            rhs: alloc::boxed::Box::new(Expr::Literal(Literal::String("banana".into()))),
6936        };
6937        assert_eq!(eval_expr(&e, &r, &c).unwrap(), Value::Bool(true));
6938    }
6939
6940    #[test]
6941    fn interval_format_basics() {
6942        // v7.37.5 β — three-arg signature. PG byte-equal:
6943        // `'1 day'` ≠ `'24 hours'` now, the format reflects it.
6944        assert_eq!(format_interval(0, 0, 0), "00:00:00");
6945        assert_eq!(format_interval(0, 1, 0), "1 day");
6946        assert_eq!(format_interval(0, -1, 0), "-1 days");
6947        assert_eq!(format_interval(0, 0, 86_400_000_000), "24:00:00");
6948        assert_eq!(format_interval(0, 0, 3_600_000_000), "01:00:00");
6949        assert_eq!(format_interval(0, 1, 9_000_000), "1 day 00:00:09");
6950        assert_eq!(format_interval(14, 0, 0), "1 year 2 mons");
6951        assert_eq!(format_interval(-1, 0, 0), "-1 mons");
6952    }
6953
6954    #[test]
6955    fn interval_format_pg_byte_equal_day_vs_24h() {
6956        // v7.37.5 β — the PG-canonical distinction `'1 day'` ≠ `'24 hours'`
6957        // is preserved in the formatter, not just the parser.
6958        assert_eq!(format_interval(0, 1, 0), "1 day");
6959        assert_eq!(format_interval(0, 0, 86_400_000_000), "24:00:00");
6960        assert_ne!(
6961            format_interval(0, 1, 0),
6962            format_interval(0, 0, 86_400_000_000),
6963        );
6964    }
6965}