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sochdb_storage/
database.rs

1// SPDX-License-Identifier: AGPL-3.0-or-later
2// SochDB - LLM-Optimized Embedded Database
3// Copyright (C) 2026 Sushanth Reddy Vanagala (https://github.com/sushanthpy)
4//
5// This program is free software: you can redistribute it and/or modify
6// it under the terms of the GNU Affero General Public License as published by
7// the Free Software Foundation, either version 3 of the License, or
8// (at your option) any later version.
9//
10// This program is distributed in the hope that it will be useful,
11// but WITHOUT ANY WARRANTY; without even the implied warranty of
12// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
13// GNU Affero General Public License for more details.
14//
15// You should have received a copy of the GNU Affero General Public License
16// along with this program. If not, see <https://www.gnu.org/licenses/>.
17
18//! SochDB Database Kernel
19//!
20//! The shared core that powers both embedded mode (`SochConnection::open`) and
21//! server mode (`sochdb-server`). This is the "SQLite engine" equivalent.
22//!
23//! ## Architecture
24//!
25//! ```text
26//! ┌──────────────────────────────────────────────────────────────────┐
27//! │                        Database Kernel                            │
28//! │  Arc<Database> - shared by all connections                       │
29//! ├──────────────────────────────────────────────────────────────────┤
30//! │                                                                   │
31//! │  ┌─────────────────┐   ┌─────────────────┐   ┌────────────────┐ │
32//! │  │  DurableStorage │   │     Catalog     │   │  Vector Index  │ │
33//! │  │  (WAL + MVCC)   │   │  (Schema Mgmt)  │   │  (HNSW/Vamana) │ │
34//! │  └────────┬────────┘   └────────┬────────┘   └───────┬────────┘ │
35//! │           │                     │                     │          │
36//! │           └─────────────────────┴─────────────────────┘          │
37//! │                                 │                                 │
38//! │  ┌─────────────────────────────────────────────────────────────┐ │
39//! │  │              Query Executor (Path-Native)                    │ │
40//! │  │  - Path resolution: O(|path|)                                │ │
41//! │  │  - Column projection: 80% I/O reduction                     │ │
42//! │  │  - Context selection: Token-aware chunking                  │ │
43//! │  └─────────────────────────────────────────────────────────────┘ │
44//! │                                                                   │
45//! └──────────────────────────────────────────────────────────────────┘
46//!
47//! Deployment Modes:
48//! ┌─────────────┐   ┌─────────────┐   ┌─────────────┐
49//! │  Embedded   │   │  IPC Server │   │  TCP Server │
50//! │  (in-proc)  │   │  (Unix sock)│   │  (remote)   │
51//! └──────┬──────┘   └──────┬──────┘   └──────┬──────┘
52//!        │                 │                 │
53//!        └─────────────────┴─────────────────┘
54//!                          │
55//!                   Arc<Database>
56//! ```
57//!
58//! ## Latency Model
59//!
60//! Let K = kernel processing cost for a query
61//!
62//! - Embedded: L_emb ≈ K (function call overhead negligible)
63//! - IPC: L_ipc ≈ K + δ_ipc (δ_ipc = ~10-50µs for Unix socket)
64//! - TCP: L_tcp ≈ K + δ_net (δ_net = 100µs-10ms depending on network)
65//!
66//! For LLM context queries where K >> δ_ipc, IPC is "nearly embedded".
67
68use std::collections::HashMap;
69use std::path::{Path, PathBuf};
70use std::sync::Arc;
71use std::sync::atomic::{AtomicU64, Ordering};
72
73use dashmap::DashMap;
74use parking_lot::RwLock;
75
76use crate::durable_storage::{DurableStorage, TransactionMode};
77use crate::index_policy::{IndexPolicy, TableIndexConfig, TableIndexRegistry};
78use crate::key_buffer::KeyBuffer;
79use crate::packed_row::{PackedColumnDef, PackedColumnType, PackedRow, PackedTableSchema};
80use sochdb_core::catalog::Catalog;
81use sochdb_core::{Result, SochDBError, SochValue};
82
83// Re-export key types
84pub use crate::durable_storage::RecoveryStats;
85
86/// Database configuration
87#[derive(Debug, Clone)]
88pub struct DatabaseConfig {
89    /// Enable group commit for better write throughput
90    pub group_commit: bool,
91    /// Maximum memory for memtables before flush (bytes)
92    pub memtable_size_limit: usize,
93    /// Enable WAL for durability
94    pub wal_enabled: bool,
95    /// Sync mode: fsync after every commit vs periodic
96    pub sync_mode: SyncMode,
97    /// Read-only mode
98    pub read_only: bool,
99    
100    /// Enable ordered index for O(log N) prefix scans
101    ///
102    /// # Deprecation Notice
103    /// 
104    /// **DEPRECATED since 0.2.0**: Use `default_index_policy` instead for per-table control.
105    /// This field will be removed in v0.3.0.
106    ///
107    /// ## Migration Guide
108    ///
109    /// Replace:
110    /// ```ignore
111    /// DatabaseConfig { enable_ordered_index: true, .. }  // Old API
112    /// DatabaseConfig { enable_ordered_index: false, .. } // Old API
113    /// ```
114    ///
115    /// With:
116    /// ```ignore
117    /// DatabaseConfig { default_index_policy: IndexPolicy::ScanOptimized, .. }  // Ordered index enabled
118    /// DatabaseConfig { default_index_policy: IndexPolicy::WriteOptimized, .. } // Ordered index disabled
119    /// ```
120    ///
121    /// ## Behavior
122    ///
123    /// When false, saves ~134 ns/op on writes (20% speedup)
124    /// but scan_prefix becomes O(N) instead of O(log N + K).
125    /// 
126    /// Set to false for write-heavy workloads without range scans.
127    #[deprecated(
128        since = "0.2.0",
129        note = "Use `default_index_policy` field instead. This field will be removed in v0.3.0. \
130                Set IndexPolicy::ScanOptimized for ordered index, WriteOptimized to disable."
131    )]
132    ///
133    /// Set to false for write-heavy workloads without range scans.
134    pub enable_ordered_index: bool,
135    /// Group commit configuration
136    pub group_commit_config: GroupCommitSettings,
137    /// Default index policy for tables not explicitly configured
138    ///
139    /// This replaces the global `enable_ordered_index` toggle with
140    /// fine-grained per-table control. Use `index_registry` to configure
141    /// individual tables.
142    ///
143    /// | Policy         | Insert Cost | Scan Cost      | Use Case              |
144    /// |----------------|-------------|----------------|------------------------|
145    /// | WriteOptimized | O(1)        | O(N)           | High-write, rare scan  |
146    /// | Balanced       | O(1) amort  | O(output+logK) | Mixed OLTP            |
147    /// | ScanOptimized  | O(log N)    | O(logN + K)    | Analytics, range query |
148    /// | AppendOnly     | O(1)        | O(N)           | Time-series logs       |
149    pub default_index_policy: IndexPolicy,
150}
151
152/// Group commit settings - mirrors SQLite's WAL mode tuning
153///
154/// ## Performance Model
155///
156/// Without group commit: Throughput = 1 / L_fsync ≈ 200 commits/sec (L=5ms)
157/// With group commit (batch size K): Throughput = K / L_fsync = K × 200 commits/sec
158///
159/// For K=100: 20,000 commits/sec (100× speedup)
160///
161/// ## SQLite Comparison
162///
163/// | Setting                    | SQLite Equivalent           |
164/// |----------------------------|-----------------------------|
165/// | batch_size = 1             | PRAGMA synchronous = FULL   |
166/// | batch_size = 100           | WAL mode with batching      |
167/// | max_wait_us = 0            | No delay, immediate flush   |
168/// | max_wait_us = 10000        | Up to 10ms delay for batch  |
169#[derive(Debug, Clone)]
170pub struct GroupCommitSettings {
171    /// Minimum batch size before flush (default: 1)
172    pub min_batch_size: usize,
173    /// Maximum batch size (default: 1000)
174    pub max_batch_size: usize,
175    /// Maximum wait time before flush in microseconds (default: 10000 = 10ms)
176    pub max_wait_us: u64,
177    /// Expected fsync latency in microseconds (for adaptive sizing)
178    pub fsync_latency_us: u64,
179}
180
181impl Default for GroupCommitSettings {
182    fn default() -> Self {
183        Self {
184            min_batch_size: 1,
185            max_batch_size: 1000,
186            max_wait_us: 10_000,     // 10ms
187            fsync_latency_us: 5_000, // 5ms
188        }
189    }
190}
191
192impl GroupCommitSettings {
193    /// High throughput preset - maximizes batching
194    pub fn high_throughput() -> Self {
195        Self {
196            min_batch_size: 50,
197            max_batch_size: 5000,
198            max_wait_us: 50_000, // 50ms
199            fsync_latency_us: 5_000,
200        }
201    }
202
203    /// Low latency preset - minimal batching
204    pub fn low_latency() -> Self {
205        Self {
206            min_batch_size: 1,
207            max_batch_size: 10,
208            max_wait_us: 1_000, // 1ms
209            fsync_latency_us: 5_000,
210        }
211    }
212
213    /// Calculate optimal batch size using Little's Law
214    ///
215    /// N* = sqrt(2 × L_fsync × λ / C_wait)
216    ///
217    /// # Arguments
218    /// * `arrival_rate` - Operations per second
219    /// * `wait_cost` - Cost coefficient for waiting (0.0-1.0)
220    pub fn optimal_batch_size(&self, arrival_rate: f64, wait_cost: f64) -> usize {
221        let l_fsync = self.fsync_latency_us as f64 / 1_000_000.0;
222        let n_star = (2.0 * l_fsync * arrival_rate / wait_cost.max(0.001)).sqrt();
223        (n_star as usize).clamp(self.min_batch_size, self.max_batch_size)
224    }
225}
226
227impl Default for DatabaseConfig {
228    #[allow(deprecated)]
229    fn default() -> Self {
230        Self {
231            group_commit: true,
232            memtable_size_limit: 64 * 1024 * 1024, // 64MB
233            wal_enabled: true,
234            sync_mode: SyncMode::Normal,
235            read_only: false,
236            enable_ordered_index: true, // Default: enabled for compatibility
237            group_commit_config: GroupCommitSettings::default(),
238            default_index_policy: IndexPolicy::Balanced, // New default: balanced OLTP policy
239        }
240    }
241}
242
243impl DatabaseConfig {
244    /// Create config optimized for throughput (Fast Mode)
245    ///
246    /// - Disables ordered index (saves ~134 ns/op)
247    /// - Uses high-throughput group commit settings
248    /// - Suitable for append-only workloads
249    #[allow(deprecated)]
250    pub fn throughput_optimized() -> Self {
251        Self {
252            group_commit: true,
253            memtable_size_limit: 128 * 1024 * 1024, // 128MB
254            wal_enabled: true,
255            sync_mode: SyncMode::Normal,
256            read_only: false,
257            enable_ordered_index: false,
258            group_commit_config: GroupCommitSettings::high_throughput(),
259            default_index_policy: IndexPolicy::WriteOptimized, // No ordered index overhead
260        }
261    }
262
263    /// Create config optimized for latency
264    ///
265    /// - Keeps ordered index for fast range scans
266    /// - Uses low-latency group commit settings
267    /// - Suitable for OLTP workloads
268    #[allow(deprecated)]
269    pub fn latency_optimized() -> Self {
270        Self {
271            group_commit: true,
272            memtable_size_limit: 32 * 1024 * 1024, // 32MB
273            wal_enabled: true,
274            sync_mode: SyncMode::Full,
275            read_only: false,
276            enable_ordered_index: true,
277            group_commit_config: GroupCommitSettings::low_latency(),
278            default_index_policy: IndexPolicy::ScanOptimized, // Fast range scans
279        }
280    }
281
282    /// Create config matching SQLite defaults
283    #[allow(deprecated)]
284    pub fn sqlite_compatible() -> Self {
285        Self {
286            group_commit: false, // SQLite default is single-commit
287            memtable_size_limit: 64 * 1024 * 1024,
288            wal_enabled: true,
289            sync_mode: SyncMode::Normal, // PRAGMA synchronous = NORMAL
290            read_only: false,
291            enable_ordered_index: true,
292            group_commit_config: GroupCommitSettings::default(),
293            default_index_policy: IndexPolicy::Balanced, // Good default for mixed workloads
294        }
295    }
296
297    /// Get effective ordered index setting, derived from `default_index_policy`.
298    /// 
299    /// This is the shim method for the deprecated `enable_ordered_index` field.
300    /// It returns `true` if the policy requires an ordered index (ScanOptimized),
301    /// and `false` otherwise (WriteOptimized, Balanced, AppendOnly).
302    ///
303    /// # Policy Mapping
304    ///
305    /// | IndexPolicy      | Returns |
306    /// |------------------|---------|
307    /// | ScanOptimized    | true    |
308    /// | Balanced         | false   |
309    /// | WriteOptimized   | false   |
310    /// | AppendOnly       | false   |
311    ///
312    /// Note: `Balanced` uses lazy compaction rather than a live ordered index,
313    /// so it returns `false` for the low-level memtable config but still supports
314    /// efficient range scans via sorted runs.
315    pub fn effective_ordered_index(&self) -> bool {
316        matches!(self.default_index_policy, IndexPolicy::ScanOptimized)
317    }
318}
319
320/// WAL sync mode - matches SQLite's PRAGMA synchronous semantics
321///
322/// | SochDB     | SQLite       | Description                                    |
323/// |------------|--------------|------------------------------------------------|
324/// | Off        | OFF (0)      | No fsync, risk of data loss on crash           |
325/// | Normal     | NORMAL (1)   | Fsync at checkpoints, not every commit         |
326/// | Full       | FULL (2)     | Fsync every commit (safest, slowest)           |
327///
328/// # Performance vs Durability Trade-offs
329///
330/// - **Off**: ~10x faster than Full, but may lose last ~100ms of data on crash
331/// - **Normal**: ~5x faster than Full, durable at checkpoint boundaries
332/// - **Full**: Every commit is fsync'd, no data loss possible
333///
334/// # SQLite Compatibility
335///
336/// ```sql
337/// -- SQLite equivalent settings
338/// PRAGMA synchronous = OFF;    -- SyncMode::Off
339/// PRAGMA synchronous = NORMAL; -- SyncMode::Normal  
340/// PRAGMA synchronous = FULL;   -- SyncMode::Full
341/// ```
342#[derive(Debug, Clone, Copy, PartialEq, Eq)]
343pub enum SyncMode {
344    /// No fsync (equivalent to SQLite PRAGMA synchronous = OFF)
345    ///
346    /// Writes buffered in OS, may lose data on power failure.
347    /// Use for non-critical data or bulk loading.
348    Off = 0,
349
350    /// Fsync at checkpoints (equivalent to SQLite PRAGMA synchronous = NORMAL)
351    ///
352    /// Default mode. Syncs WAL at checkpoint boundaries.
353    /// Good balance of performance and durability.
354    Normal = 1,
355
356    /// Fsync every commit (equivalent to SQLite PRAGMA synchronous = FULL)
357    ///
358    /// Safest mode. Every commit is immediately durable.
359    /// Required for financial/critical data.
360    Full = 2,
361}
362
363impl SyncMode {
364    /// Convert from SQLite synchronous pragma value
365    pub fn from_sqlite_pragma(value: u32) -> Self {
366        match value {
367            0 => SyncMode::Off,
368            1 => SyncMode::Normal,
369            _ => SyncMode::Full, // 2+ treated as Full
370        }
371    }
372
373    /// Convert to SQLite synchronous pragma value
374    pub fn to_sqlite_pragma(self) -> u32 {
375        self as u32
376    }
377
378    /// Parse from string (case-insensitive)
379    pub fn parse(s: &str) -> Option<Self> {
380        match s.to_ascii_uppercase().as_str() {
381            "OFF" | "0" => Some(SyncMode::Off),
382            "NORMAL" | "1" => Some(SyncMode::Normal),
383            "FULL" | "2" => Some(SyncMode::Full),
384            _ => None,
385        }
386    }
387}
388
389/// Table schema for the kernel
390#[derive(Debug, Clone)]
391pub struct TableSchema {
392    pub name: String,
393    pub columns: Vec<ColumnDef>,
394}
395
396/// Column definition
397#[derive(Debug, Clone)]
398pub struct ColumnDef {
399    pub name: String,
400    pub col_type: ColumnType,
401    pub nullable: bool,
402}
403
404/// Column types
405#[derive(Debug, Clone, Copy, PartialEq, Eq)]
406pub enum ColumnType {
407    Int64,
408    UInt64,
409    Float64,
410    Text,
411    Binary,
412    Bool,
413}
414
415/// Transaction handle for kernel operations
416#[derive(Debug, Clone, Copy)]
417pub struct TxnHandle {
418    pub txn_id: u64,
419    pub snapshot_ts: u64,
420}
421
422/// Query result from the kernel
423#[derive(Debug, Clone)]
424pub struct QueryResult {
425    /// Column names
426    pub columns: Vec<String>,
427    /// Row data (each row is a map of column -> value)
428    pub rows: Vec<HashMap<String, SochValue>>,
429    /// Number of rows scanned (for stats)
430    pub rows_scanned: usize,
431    /// Bytes read from storage
432    pub bytes_read: usize,
433}
434
435impl QueryResult {
436    /// Empty result
437    pub fn empty() -> Self {
438        Self {
439            columns: vec![],
440            rows: vec![],
441            rows_scanned: 0,
442            bytes_read: 0,
443        }
444    }
445
446    /// Convert to TOON format for token efficiency
447    pub fn to_toon(&self) -> String {
448        if self.rows.is_empty() {
449            return "[]".to_string();
450        }
451
452        // TOON format: table[N]{cols}: row1; row2; ...
453        let n = self.rows.len();
454        let cols = self.columns.join(",");
455
456        let rows_str: Vec<String> = self
457            .rows
458            .iter()
459            .map(|row| {
460                self.columns
461                    .iter()
462                    .map(|c| {
463                        row.get(c)
464                            .map(format_soch_value)
465                            .unwrap_or_else(|| "∅".to_string())
466                    })
467                    .collect::<Vec<_>>()
468                    .join(",")
469            })
470            .collect();
471
472        format!("result[{}]{{{}}}:{}", n, cols, rows_str.join(";"))
473    }
474}
475
476fn format_soch_value(v: &SochValue) -> String {
477    match v {
478        SochValue::Null => "∅".to_string(),
479        SochValue::Int(i) => i.to_string(),
480        SochValue::UInt(u) => u.to_string(),
481        SochValue::Float(f) => format!("{:.6}", f),
482        SochValue::Text(s) => {
483            if s.contains(',') || s.contains(';') {
484                format!("\"{}\"", s.replace('"', "\\\""))
485            } else {
486                s.clone()
487            }
488        }
489        SochValue::Bool(b) => if *b { "T" } else { "F" }.to_string(),
490        SochValue::Binary(b) => format!("b64:{}", base64_encode(b)),
491        _ => format!("{:?}", v),
492    }
493}
494
495fn base64_encode(data: &[u8]) -> String {
496    // Simple base64 encoding
497    const ALPHABET: &[u8] = b"ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/";
498    let mut result = String::new();
499
500    for chunk in data.chunks(3) {
501        let b0 = chunk[0] as usize;
502        let b1 = chunk.get(1).copied().unwrap_or(0) as usize;
503        let b2 = chunk.get(2).copied().unwrap_or(0) as usize;
504
505        result.push(ALPHABET[b0 >> 2] as char);
506        result.push(ALPHABET[((b0 & 0x03) << 4) | (b1 >> 4)] as char);
507
508        if chunk.len() > 1 {
509            result.push(ALPHABET[((b1 & 0x0f) << 2) | (b2 >> 6)] as char);
510        } else {
511            result.push('=');
512        }
513
514        if chunk.len() > 2 {
515            result.push(ALPHABET[b2 & 0x3f] as char);
516        } else {
517            result.push('=');
518        }
519    }
520
521    result
522}
523
524// ============================================================================
525// Columnar Query Results - SIMD-friendly result format
526// ============================================================================
527
528use sochdb_core::TypedColumn as CoreTypedColumn;
529
530/// Columnar query result - SIMD-friendly format for analytics
531///
532/// Instead of row-oriented `Vec<HashMap<String, SochValue>>`, this returns
533/// column-oriented `Vec<TypedColumn>` for efficient vectorized operations.
534///
535/// ## Memory Layout
536///
537/// Row-oriented (standard):
538/// ```text
539/// Row 0: [id=1, name="Alice", score=85]
540/// Row 1: [id=2, name="Bob", score=92]
541/// Row 2: [id=3, name="Carol", score=78]
542/// ```
543///
544/// Column-oriented (this format):
545/// ```text
546/// id:    [1, 2, 3]           ← contiguous i64 array (SIMD-friendly)
547/// name:  ["Alice", "Bob", "Carol"] ← Arrow-style string encoding
548/// score: [85, 92, 78]        ← contiguous i64 array
549/// ```
550///
551/// ## Performance Benefits
552///
553/// - SIMD: Column sums use vectorized instructions (~8× faster)
554/// - Cache: Sequential access pattern maximizes L1/L2 cache hits
555/// - Compression: Same-type data compresses better (5-10× typical)
556/// - Filtering: Bitmap operations instead of row iteration
557///
558/// ## Usage
559///
560/// ```ignore
561/// let result = db.query(txn, "users")
562///     .columns(&["id", "score"])
563///     .as_columnar()?;
564///
565/// // SIMD sum
566/// let total_score = result.column("score")
567///     .map(|c| c.sum_i64())
568///     .unwrap_or(0);
569///
570/// // Stats
571/// println!("Rows: {}, Memory: {} bytes", result.row_count(), result.memory_size());
572/// ```
573#[derive(Debug, Clone)]
574pub struct ColumnarQueryResult {
575    /// Column names in order
576    pub columns: Vec<String>,
577    /// Column data - each TypedColumn contains all values for one column
578    pub data: Vec<CoreTypedColumn>,
579    /// Number of rows
580    pub row_count: usize,
581    /// Bytes read from storage
582    pub bytes_read: usize,
583}
584
585impl ColumnarQueryResult {
586    /// Create an empty result
587    pub fn empty() -> Self {
588        Self {
589            columns: vec![],
590            data: vec![],
591            row_count: 0,
592            bytes_read: 0,
593        }
594    }
595
596    /// Get column by name
597    pub fn column(&self, name: &str) -> Option<&CoreTypedColumn> {
598        self.columns
599            .iter()
600            .position(|c| c == name)
601            .and_then(|idx| self.data.get(idx))
602    }
603
604    /// Get column index by name
605    pub fn column_index(&self, name: &str) -> Option<usize> {
606        self.columns.iter().position(|c| c == name)
607    }
608
609    /// Number of rows
610    pub fn row_count(&self) -> usize {
611        self.row_count
612    }
613
614    /// Number of columns
615    pub fn column_count(&self) -> usize {
616        self.columns.len()
617    }
618
619    /// Total memory size in bytes
620    pub fn memory_size(&self) -> usize {
621        self.data.iter().map(|c| c.memory_size()).sum()
622    }
623
624    /// Sum of an i64 column (SIMD-optimized)
625    pub fn sum_i64(&self, column: &str) -> Option<i64> {
626        self.column(column).map(|c| c.sum_i64())
627    }
628
629    /// Sum of an f64 column (SIMD-optimized)
630    pub fn sum_f64(&self, column: &str) -> Option<f64> {
631        self.column(column).map(|c| c.sum_f64())
632    }
633
634    /// Zero-allocation row access by index.
635    ///
636    /// Returns a lightweight view that resolves column values on demand
637    /// from the underlying columnar arrays — no `HashMap` per row.
638    ///
639    /// ```ignore
640    /// let result = query.as_columnar()?;
641    /// for i in 0..result.row_count() {
642    ///     let row = result.row_view(i).unwrap();
643    ///     let name = row.get("name"); // SochValue::Text(...)
644    /// }
645    /// ```
646    #[inline]
647    pub fn row_view(&self, index: usize) -> Option<ColumnarRowView<'_>> {
648        if index < self.row_count {
649            Some(ColumnarRowView {
650                result: self,
651                index,
652            })
653        } else {
654            None
655        }
656    }
657
658    /// Convert to row-oriented `QueryResult` for backward compatibility.
659    ///
660    /// This materialises one `HashMap<String, SochValue>` per row, so prefer
661    /// using `row_view()` or direct columnar access when performance matters.
662    pub fn into_query_result(self) -> QueryResult {
663        let rows: Vec<HashMap<String, SochValue>> = (0..self.row_count)
664            .map(|i| {
665                self.columns
666                    .iter()
667                    .zip(self.data.iter())
668                    .map(|(name, col)| (name.clone(), col.value_at(i)))
669                    .collect()
670            })
671            .collect();
672
673        QueryResult {
674            columns: self.columns,
675            rows,
676            rows_scanned: self.row_count,
677            bytes_read: self.bytes_read,
678        }
679    }
680
681    /// Get column statistics (min, max, null count)
682    pub fn column_stats(&self, column: &str) -> Option<&sochdb_core::columnar::ColumnStats> {
683        self.column(column).map(|c| c.stats())
684    }
685
686    /// Convert to TOON format (token-efficient)
687    pub fn to_toon(&self) -> String {
688        if self.row_count == 0 {
689            return "[]".to_string();
690        }
691
692        let n = self.row_count;
693        let cols = self.columns.join(",");
694
695        // Build rows from columns
696        let mut rows_str = Vec::with_capacity(n);
697        for i in 0..n {
698            let row: Vec<String> = self
699                .data
700                .iter()
701                .map(|col| format_columnar_value(col, i))
702                .collect();
703            rows_str.push(row.join(","));
704        }
705
706        format!("result[{}]{{{}}}:{}", n, cols, rows_str.join(";"))
707    }
708}
709
710/// Format a single value from a TypedColumn at index
711fn format_columnar_value(col: &CoreTypedColumn, idx: usize) -> String {
712    match col {
713        CoreTypedColumn::Int64 {
714            values, validity, ..
715        } => {
716            if validity.is_valid(idx) && idx < values.len() {
717                values[idx].to_string()
718            } else {
719                "∅".to_string()
720            }
721        }
722        CoreTypedColumn::UInt64 {
723            values, validity, ..
724        } => {
725            if validity.is_valid(idx) && idx < values.len() {
726                values[idx].to_string()
727            } else {
728                "∅".to_string()
729            }
730        }
731        CoreTypedColumn::Float64 {
732            values, validity, ..
733        } => {
734            if validity.is_valid(idx) && idx < values.len() {
735                format!("{:.6}", values[idx])
736            } else {
737                "∅".to_string()
738            }
739        }
740        CoreTypedColumn::Text {
741            offsets,
742            data,
743            validity,
744            ..
745        } => {
746            if validity.is_valid(idx) && idx + 1 < offsets.len() {
747                let start = offsets[idx] as usize;
748                let end = offsets[idx + 1] as usize;
749                std::str::from_utf8(&data[start..end])
750                    .map(|s| {
751                        if s.contains(',') || s.contains(';') {
752                            format!("\"{}\"", s.replace('"', "\\\""))
753                        } else {
754                            s.to_string()
755                        }
756                    })
757                    .unwrap_or_else(|_| "∅".to_string())
758            } else {
759                "∅".to_string()
760            }
761        }
762        CoreTypedColumn::Binary {
763            offsets,
764            data,
765            validity,
766            ..
767        } => {
768            if validity.is_valid(idx) && idx + 1 < offsets.len() {
769                let start = offsets[idx] as usize;
770                let end = offsets[idx + 1] as usize;
771                format!("b64:{}", base64_encode(&data[start..end]))
772            } else {
773                "∅".to_string()
774            }
775        }
776        CoreTypedColumn::Bool {
777            values,
778            validity,
779            len,
780            ..
781        } => {
782            if validity.is_valid(idx) && idx < *len {
783                let word = idx / 64;
784                let bit = idx % 64;
785                if (values[word] >> bit) & 1 == 1 {
786                    "T"
787                } else {
788                    "F"
789                }
790                .to_string()
791            } else {
792                "∅".to_string()
793            }
794        }
795    }
796}
797
798/// Zero-allocation row view into a `ColumnarQueryResult`.
799///
800/// Provides named-column access (like `HashMap<String, SochValue>`)
801/// without allocating a HashMap per row. Values are read directly
802/// from the underlying typed column arrays.
803///
804/// **Cost per access:** O(1) column index lookup + O(1) array read.
805/// **Allocation:** zero (borrows from `ColumnarQueryResult`).
806#[derive(Debug)]
807pub struct ColumnarRowView<'a> {
808    result: &'a ColumnarQueryResult,
809    index: usize,
810}
811
812impl<'a> ColumnarRowView<'a> {
813    /// Get a value by column name without allocation.
814    ///
815    /// Returns `None` if the column does not exist.
816    /// Returns `Some(SochValue::Null)` if the column exists but the value is NULL.
817    #[inline]
818    pub fn get(&self, column: &str) -> Option<SochValue> {
819        self.result
820            .column_index(column)
821            .map(|ci| self.result.data[ci].value_at(self.index))
822    }
823
824    /// Get all column values as a `Vec<SochValue>` (positional, no HashMap).
825    pub fn values(&self) -> Vec<SochValue> {
826        self.result
827            .data
828            .iter()
829            .map(|col| col.value_at(self.index))
830            .collect()
831    }
832
833    /// Row index within the result set.
834    #[inline]
835    pub fn index(&self) -> usize {
836        self.index
837    }
838
839    /// Materialise this row into a `HashMap<String, SochValue>` for backward
840    /// compatibility.  Prefer `get()` for single column access.
841    pub fn to_map(&self) -> HashMap<String, SochValue> {
842        self.result
843            .columns
844            .iter()
845            .zip(self.result.data.iter())
846            .map(|(name, col)| (name.clone(), col.value_at(self.index)))
847            .collect()
848    }
849}
850
851/// Vector search result
852#[derive(Debug, Clone)]
853pub struct VectorSearchResult {
854    pub id: u64,
855    pub distance: f32,
856    pub metadata: Option<HashMap<String, SochValue>>,
857}
858
859/// The SochDB Database Kernel
860///
861/// This is the shared core used by both embedded (`SochConnection`) and
862/// server (`sochdb-server`) modes. It owns all storage, catalog, and
863/// indexing components.
864///
865/// # Thread Safety
866///
867/// The Database is fully thread-safe via internal synchronization:
868/// - Multiple readers can operate concurrently (MVCC snapshots)
869/// - Writers coordinate through WAL and group commit
870/// - All state is behind Arc/RwLock for shared access
871///
872/// # Concurrency Modes
873///
874/// ## Standard Mode (Single Process)
875/// - Uses exclusive file lock (`flock(LOCK_EX)`)
876/// - Best for: Scripts, notebooks, CLI tools
877/// - Open with: `Database::open(path)`
878///
879/// ## Concurrent Mode (Multi-Process/Web Apps)
880/// - Uses lock-free MVCC for reads, single-writer coordination for writes
881/// - Best for: Web servers, Flask/FastAPI apps, hot reloading
882/// - Open with: `Database::open_concurrent(path)`
883///
884/// # Example
885///
886/// ```ignore
887/// // Standard mode (single process)
888/// let db = Database::open("./my_data")?;
889///
890/// // Concurrent mode (multi-reader, single-writer)
891/// let db = Database::open_concurrent("./my_data")?;
892///
893/// // Begin a transaction
894/// let txn = db.begin_transaction()?;
895///
896/// // Write data
897/// db.put(txn, b"user:1:name", b"Alice")?;
898///
899/// // Commit
900/// db.commit(txn)?;
901/// ```
902#[allow(dead_code)]
903pub struct Database {
904    /// Path to database directory
905    path: PathBuf,
906    /// Durable storage layer (WAL + MVCC + memtable)
907    storage: Arc<DurableStorage>,
908    /// Concurrent MVCC manager (for concurrent mode)
909    concurrent_mvcc: Option<Arc<crate::mvcc_concurrent::ConcurrentMvcc>>,
910    /// Schema catalog
911    catalog: Arc<RwLock<Catalog>>,
912    /// Registered table schemas (name -> schema) - lock-free for reads
913    tables: DashMap<String, TableSchema>,
914    /// Cached packed schemas for fast insert (name -> packed schema)
915    packed_schemas: DashMap<String, PackedTableSchema>,
916    /// Per-table index policy registry
917    index_registry: Arc<TableIndexRegistry>,
918    /// Configuration
919    config: DatabaseConfig,
920    /// Statistics
921    stats: DatabaseStats,
922    /// Shutdown flag
923    shutdown: AtomicU64,
924    /// Whether this database is in concurrent mode
925    is_concurrent: bool,
926    /// CDC (Change Data Capture) log for streaming mutations
927    cdc_log: Option<Arc<crate::cdc::CdcLog>>,
928}
929
930/// Database statistics
931struct DatabaseStats {
932    transactions_started: AtomicU64,
933    transactions_committed: AtomicU64,
934    transactions_aborted: AtomicU64,
935    queries_executed: AtomicU64,
936    bytes_written: AtomicU64,
937    bytes_read: AtomicU64,
938}
939
940impl DatabaseStats {
941    fn new() -> Self {
942        Self {
943            transactions_started: AtomicU64::new(0),
944            transactions_committed: AtomicU64::new(0),
945            transactions_aborted: AtomicU64::new(0),
946            queries_executed: AtomicU64::new(0),
947            bytes_written: AtomicU64::new(0),
948            bytes_read: AtomicU64::new(0),
949        }
950    }
951}
952
953/// Public statistics snapshot
954#[derive(Debug, Clone)]
955pub struct Stats {
956    pub transactions_started: u64,
957    pub transactions_committed: u64,
958    pub transactions_aborted: u64,
959    pub queries_executed: u64,
960    pub bytes_written: u64,
961    pub bytes_read: u64,
962}
963
964impl Database {
965    /// Open or create a database at the given path.
966    ///
967    /// This is the primary entry point, similar to `sqlite3_open()`.
968    /// If the database exists, it will be opened and WAL recovery performed.
969    /// If it doesn't exist, a new database will be created.
970    ///
971    /// # Arguments
972    ///
973    /// * `path` - Directory path for the database files
974    ///
975    /// # Returns
976    ///
977    /// An `Arc<Database>` that can be shared across threads and connections.
978    pub fn open<P: AsRef<Path>>(path: P) -> Result<Arc<Self>> {
979        Self::open_with_config(path, DatabaseConfig::default())
980    }
981
982    /// Open without locking (for testing crash recovery scenarios)
983    ///
984    /// # Safety
985    /// This should ONLY be used in tests that simulate crashes by forgetting
986    /// the storage instance. In production, always use `open()`.
987    #[cfg(test)]
988    pub fn open_without_lock<P: AsRef<Path>>(path: P) -> Result<Arc<Self>> {
989        let path = path.as_ref().to_path_buf();
990        let config = DatabaseConfig::default();
991
992        let storage = Arc::new(DurableStorage::open_without_lock(&path)?);
993
994        let index_registry = Arc::new(TableIndexRegistry::with_default_policy(
995            config.default_index_policy,
996        ));
997
998        let db = Arc::new(Self {
999            path: path.clone(),
1000            storage,
1001            concurrent_mvcc: None,
1002            catalog: Arc::new(RwLock::new(Catalog::new("sochdb"))),
1003            tables: DashMap::new(),
1004            packed_schemas: DashMap::new(),
1005            index_registry,
1006            config,
1007            stats: DatabaseStats::new(),
1008            shutdown: AtomicU64::new(0),
1009            is_concurrent: false,
1010            cdc_log: None,
1011        });
1012
1013        db.recover()?;
1014        Ok(db)
1015    }
1016
1017    /// Open with custom configuration
1018    pub fn open_with_config<P: AsRef<Path>>(path: P, config: DatabaseConfig) -> Result<Arc<Self>> {
1019        let path = path.as_ref().to_path_buf();
1020
1021        // Use IndexPolicy-based storage configuration for automatic memtable selection
1022        // This derives ordered index and memtable type from the policy
1023        let storage = Arc::new(DurableStorage::open_with_policy(
1024            &path,
1025            config.default_index_policy,
1026            config.group_commit,
1027        )?);
1028
1029        // Propagate sync_mode from config to storage engine.
1030        // Without this, DurableStorage defaults to SyncMode::Normal (adaptive fsync).
1031        storage.set_sync_mode(config.sync_mode as u64);
1032
1033        // Create index registry with default policy from config
1034        let index_registry = Arc::new(TableIndexRegistry::with_default_policy(
1035            config.default_index_policy,
1036        ));
1037
1038        let db = Arc::new(Self {
1039            path: path.clone(),
1040            storage,
1041            concurrent_mvcc: None,
1042            catalog: Arc::new(RwLock::new(Catalog::new("sochdb"))),
1043            tables: DashMap::new(),
1044            packed_schemas: DashMap::new(),
1045            index_registry,
1046            config,
1047            stats: DatabaseStats::new(),
1048            shutdown: AtomicU64::new(0),
1049            is_concurrent: false,
1050            cdc_log: None,
1051        });
1052
1053        // Perform crash recovery if needed
1054        db.recover()?;
1055
1056        Ok(db)
1057    }
1058
1059    /// Open database in concurrent mode (multi-reader, single-writer)
1060    ///
1061    /// This mode allows multiple processes to access the database simultaneously:
1062    /// - **Readers**: Lock-free, concurrent access via MVCC snapshots
1063    /// - **Writers**: Single-writer coordination through atomic locks
1064    ///
1065    /// # Use Cases
1066    ///
1067    /// - Web applications (Flask, FastAPI, Django)
1068    /// - Hot reloading development servers
1069    /// - Multi-process worker pools
1070    /// - Any scenario with concurrent read access
1071    ///
1072    /// # Performance
1073    ///
1074    /// - Read latency: ~100ns (lock-free atomic operations)
1075    /// - Write latency: ~60μs amortized (with group commit)
1076    /// - Concurrent readers: Up to 1024 (configurable)
1077    ///
1078    /// # Example
1079    ///
1080    /// ```ignore
1081    /// // Multiple processes can open the same database
1082    /// let db = Database::open_concurrent("./my_data")?;
1083    ///
1084    /// // Reads are lock-free
1085    /// let value = db.get(b"key")?;
1086    ///
1087    /// // Writes coordinate automatically
1088    /// let txn = db.begin_transaction()?;
1089    /// db.put(txn, b"key", b"value")?;
1090    /// db.commit(txn)?;
1091    /// ```
1092    pub fn open_concurrent<P: AsRef<Path>>(path: P) -> Result<Arc<Self>> {
1093        Self::open_concurrent_with_config(path, DatabaseConfig::default())
1094    }
1095
1096    /// Open database in concurrent mode with custom configuration
1097    pub fn open_concurrent_with_config<P: AsRef<Path>>(
1098        path: P,
1099        config: DatabaseConfig,
1100    ) -> Result<Arc<Self>> {
1101        use crate::mvcc_concurrent::ConcurrentMvcc;
1102
1103        let path = path.as_ref().to_path_buf();
1104        std::fs::create_dir_all(&path)?;
1105
1106        // Open concurrent MVCC manager (this uses shared memory, not exclusive lock)
1107        let concurrent_mvcc = Arc::new(ConcurrentMvcc::open(&path)?);
1108
1109        // Open storage WITHOUT exclusive lock (concurrent MVCC handles coordination)
1110        // We use a special internal method that skips the file lock
1111        let storage = Arc::new(DurableStorage::open_for_concurrent(&path, config.default_index_policy)?);
1112
1113        // Propagate sync_mode from config to storage engine
1114        storage.set_sync_mode(config.sync_mode as u64);
1115
1116        // Create index registry with default policy from config
1117        let index_registry = Arc::new(TableIndexRegistry::with_default_policy(
1118            config.default_index_policy,
1119        ));
1120
1121        let db = Arc::new(Self {
1122            path: path.clone(),
1123            storage,
1124            concurrent_mvcc: Some(concurrent_mvcc),
1125            catalog: Arc::new(RwLock::new(Catalog::new("sochdb"))),
1126            tables: DashMap::new(),
1127            packed_schemas: DashMap::new(),
1128            index_registry,
1129            config,
1130            stats: DatabaseStats::new(),
1131            shutdown: AtomicU64::new(0),
1132            is_concurrent: true,
1133            cdc_log: None,        });
1134
1135        // Perform crash recovery if needed
1136        db.recover()?;
1137
1138        // Clean up any stale readers from crashed processes
1139        if let Some(ref mvcc) = db.concurrent_mvcc {
1140            mvcc.cleanup_stale_readers();
1141        }
1142
1143        Ok(db)
1144    }
1145
1146    /// Check if database is in concurrent mode
1147    #[inline]
1148    pub fn is_concurrent(&self) -> bool {
1149        self.is_concurrent
1150    }
1151
1152    /// Perform crash recovery
1153    fn recover(&self) -> Result<RecoveryStats> {
1154        self.storage.recover()
1155    }
1156
1157    /// Get database path
1158    pub fn path(&self) -> &Path {
1159        &self.path
1160    }
1161
1162    // =========================================================================
1163    // Transaction API
1164    // =========================================================================
1165
1166    /// Begin a new transaction
1167    pub fn begin_transaction(&self) -> Result<TxnHandle> {
1168        self.stats
1169            .transactions_started
1170            .fetch_add(1, Ordering::Relaxed);
1171        let txn_id = self.storage.begin_transaction()?;
1172
1173        // Get snapshot timestamp from MVCC
1174        // For now, use txn_id as a proxy (the real snapshot_ts is managed internally)
1175        Ok(TxnHandle {
1176            txn_id,
1177            snapshot_ts: txn_id,
1178        })
1179    }
1180
1181    /// Begin a read-only transaction (optimized: no SSI tracking)
1182    ///
1183    /// Read-only transactions skip SSI read tracking, reducing overhead
1184    /// from ~82ns to ~32ns per read (2.6x faster).
1185    ///
1186    /// Use this for:
1187    /// - SELECT queries that don't modify data
1188    /// - Analytics and reporting queries
1189    /// - Snapshot reads for backup
1190    pub fn begin_read_only(&self) -> Result<TxnHandle> {
1191        self.stats
1192            .transactions_started
1193            .fetch_add(1, Ordering::Relaxed);
1194        let txn_id = self.storage.begin_with_mode(TransactionMode::ReadOnly)?;
1195        Ok(TxnHandle {
1196            txn_id,
1197            snapshot_ts: txn_id,
1198        })
1199    }
1200
1201    /// Begin a lightweight read-only transaction (no WAL overhead).
1202    ///
1203    /// Eliminates WAL mutex acquisitions entirely for read operations.
1204    /// The txn_id is allocated atomically and MVCC snapshot state is created,
1205    /// but NO WAL records are written (no TxnBegin, no TxnAbort).
1206    ///
1207    /// ~5-10x faster per-operation than `begin_read_only()` because it avoids:
1208    /// - 2 WAL mutex lock/unlock cycles per transaction
1209    /// - 2 WAL BufWriter serializations per transaction
1210    ///
1211    /// Callers MUST use `abort_read_only_fast()` to clean up — NOT `commit()`
1212    /// or `abort()`.
1213    #[inline]
1214    pub fn begin_read_only_fast(&self) -> TxnHandle {
1215        let txn_id = self.storage.begin_read_only_fast();
1216        TxnHandle {
1217            txn_id,
1218            snapshot_ts: txn_id,
1219        }
1220    }
1221
1222    /// Abort a fast read-only transaction — O(1), no WAL, no memtable scan.
1223    #[inline]
1224    pub fn abort_read_only_fast(&self, txn: TxnHandle) {
1225        self.storage.abort_read_only_fast(txn.txn_id);
1226    }
1227
1228    /// Read a key WITHOUT any MVCC transaction tracking.
1229    ///
1230    /// Uses the current global timestamp to see all committed writes.
1231    /// Bypasses: begin/abort, active_txns DashMap, record_read, stats.
1232    /// Only safe for single-threaded access with no concurrent writers.
1233    #[inline]
1234    pub fn get_raw_read(&self, key: &[u8]) -> Option<Vec<u8>> {
1235        self.storage.read_latest(key)
1236    }
1237
1238    /// Scan by prefix WITHOUT any MVCC transaction tracking.
1239    ///
1240    /// Uses the current global timestamp. Only safe for single-threaded access.
1241    #[inline]
1242    pub fn scan_raw(&self, prefix: &[u8]) -> Vec<(Vec<u8>, Vec<u8>)> {
1243        self.storage.scan_latest(prefix)
1244    }
1245
1246    /// Begin a write-only transaction (optimized: no read tracking)
1247    ///
1248    /// Write-only transactions skip read tracking, improving insert
1249    /// throughput for bulk loading scenarios.
1250    ///
1251    /// Use this for:
1252    /// - Bulk data imports
1253    /// - Append-only logging tables
1254    /// - ETL pipelines
1255    pub fn begin_write_only(&self) -> Result<TxnHandle> {
1256        self.stats
1257            .transactions_started
1258            .fetch_add(1, Ordering::Relaxed);
1259        let txn_id = self.storage.begin_with_mode(TransactionMode::WriteOnly)?;
1260        Ok(TxnHandle {
1261            txn_id,
1262            snapshot_ts: txn_id,
1263        })
1264    }
1265
1266    /// Commit a transaction
1267    ///
1268    /// In concurrent mode, acquires the shared writer lock to ensure
1269    /// WAL writes are serialized across processes, and forces a flush+sync
1270    /// so that subsequent processes see the committed data.
1271    pub fn commit(&self, txn: TxnHandle) -> Result<u64> {
1272        self.stats
1273            .transactions_committed
1274            .fetch_add(1, Ordering::Relaxed);
1275
1276        // In concurrent mode, acquire the cross-process writer lock
1277        // to serialize WAL commits across processes
1278        let _writer_guard = if let Some(ref mvcc) = self.concurrent_mvcc {
1279            Some(mvcc.acquire_writer(std::time::Duration::from_secs(5))?)
1280        } else {
1281            None
1282        };
1283
1284        let commit_ts = self.storage.commit(txn.txn_id)?;
1285
1286        // In concurrent mode, force flush+sync so other processes can see
1287        // the committed data when they open the DB or run recovery.
1288        // Without this, the BufWriter may hold data that isn't visible
1289        // to other processes reading the WAL file.
1290        if self.is_concurrent {
1291            self.storage.flush_wal()?;
1292            self.storage.fsync()?;
1293        }
1294
1295        // Notify concurrent MVCC of commit for GC tracking
1296        if let Some(ref mvcc) = self.concurrent_mvcc {
1297            mvcc.on_commit();
1298        }
1299
1300        Ok(commit_ts)
1301    }
1302
1303    /// Abort a transaction
1304    pub fn abort(&self, txn: TxnHandle) -> Result<()> {
1305        self.stats
1306            .transactions_aborted
1307            .fetch_add(1, Ordering::Relaxed);
1308        self.storage.abort(txn.txn_id)
1309    }
1310
1311    // =========================================================================
1312    // Per-Table Index Policy API
1313    // =========================================================================
1314
1315    /// Configure index policy for a table
1316    ///
1317    /// This allows fine-grained control over write/scan trade-offs per table:
1318    ///
1319    /// | Policy         | Insert Cost | Scan Cost      | Use Case              |
1320    /// |----------------|-------------|----------------|------------------------|
1321    /// | WriteOptimized | O(1)        | O(N)           | High-write, rare scan  |
1322    /// | Balanced       | O(1) amort  | O(output+logK) | Mixed OLTP            |
1323    /// | ScanOptimized  | O(log N)    | O(logN + K)    | Analytics, range query |
1324    /// | AppendOnly     | O(1)        | O(N)           | Time-series logs       |
1325    ///
1326    /// # Example
1327    ///
1328    /// ```ignore
1329    /// // Fast inserts for logs table (no ordered index overhead)
1330    /// db.set_table_index_policy("logs", IndexPolicy::WriteOptimized);
1331    ///
1332    /// // Efficient range scans for analytics table
1333    /// db.set_table_index_policy("analytics", IndexPolicy::ScanOptimized);
1334    ///
1335    /// // Balanced for OLTP tables
1336    /// db.set_table_index_policy("users", IndexPolicy::Balanced);
1337    /// ```
1338    pub fn set_table_index_policy(&self, table: &str, policy: IndexPolicy) {
1339        self.index_registry.configure_table(
1340            TableIndexConfig::new(table, policy)
1341        );
1342    }
1343
1344    /// Get the index policy for a table
1345    pub fn get_table_index_policy(&self, table: &str) -> IndexPolicy {
1346        self.index_registry.get_policy(table)
1347    }
1348
1349    /// Get the index registry for advanced configuration
1350    pub fn index_registry(&self) -> &Arc<TableIndexRegistry> {
1351        &self.index_registry
1352    }
1353
1354    // =========================================================================
1355    // Key-Value API (Low-level)
1356    // =========================================================================
1357
1358    /// Put a key-value pair
1359    ///
1360    /// In concurrent mode, acquires the shared writer lock to ensure
1361    /// WAL writes are serialized across processes.
1362    pub fn put(&self, txn: TxnHandle, key: &[u8], value: &[u8]) -> Result<()> {
1363        self.stats
1364            .bytes_written
1365            .fetch_add((key.len() + value.len()) as u64, Ordering::Relaxed);
1366
1367        // In concurrent mode, acquire cross-process writer lock
1368        let _writer_guard = if let Some(ref mvcc) = self.concurrent_mvcc {
1369            Some(mvcc.acquire_writer(std::time::Duration::from_secs(5))?)
1370        } else {
1371            None
1372        };
1373
1374        // Use write_refs to avoid unnecessary allocations
1375        self.storage.write_refs(txn.txn_id, key, value)
1376    }
1377
1378    /// Batch put multiple key-value pairs with reduced overhead
1379    ///
1380    /// This amortizes per-operation costs over the entire batch:
1381    /// - Single DashMap lookup
1382    /// - Batch MVCC tracking
1383    /// - Batch memtable writes
1384    ///
1385    /// For 100+ entries, this is 2-3x faster than individual puts.
1386    ///
1387    /// # Example
1388    ///
1389    /// ```ignore
1390    /// let writes: Vec<(&[u8], &[u8])> = vec![
1391    ///     (b"key1", b"value1"),
1392    ///     (b"key2", b"value2"),
1393    ///     (b"key3", b"value3"),
1394    /// ];
1395    /// db.put_batch(txn, &writes)?;
1396    /// ```
1397    pub fn put_batch(&self, txn: TxnHandle, writes: &[(&[u8], &[u8])]) -> Result<()> {
1398        let bytes: u64 = writes
1399            .iter()
1400            .map(|(k, v)| (k.len() + v.len()) as u64)
1401            .sum();
1402        self.stats.bytes_written.fetch_add(bytes, Ordering::Relaxed);
1403
1404        // In concurrent mode, acquire cross-process writer lock
1405        let _writer_guard = if let Some(ref mvcc) = self.concurrent_mvcc {
1406            Some(mvcc.acquire_writer(std::time::Duration::from_secs(5))?)
1407        } else {
1408            None
1409        };
1410
1411        self.storage.write_batch_refs(txn.txn_id, writes)
1412    }
1413
1414    /// Get a value by key
1415    pub fn get(&self, txn: TxnHandle, key: &[u8]) -> Result<Option<Vec<u8>>> {
1416        let result = self.storage.read(txn.txn_id, key)?;
1417        if let Some(ref data) = result {
1418            self.stats
1419                .bytes_read
1420                .fetch_add(data.len() as u64, Ordering::Relaxed);
1421        }
1422        Ok(result)
1423    }
1424
1425    /// Delete a key
1426    pub fn delete(&self, txn: TxnHandle, key: &[u8]) -> Result<()> {
1427        self.storage.delete(txn.txn_id, key.to_vec())
1428    }
1429
1430    /// Minimum prefix length for scan operations.
1431    /// Prevents expensive full-table scans by requiring a meaningful prefix.
1432    pub const MIN_SCAN_PREFIX_LEN: usize = 2;
1433
1434    /// Scan keys with a prefix (enforces minimum prefix length for safety).
1435    ///
1436    /// # Prefix Safety
1437    /// 
1438    /// To prevent accidental full-table scans, this method requires a minimum
1439    /// prefix length of 2 bytes. Use `scan_unchecked` for internal operations
1440    /// that need empty/short prefixes.
1441    ///
1442    /// # Errors
1443    ///
1444    /// Returns `SochDBError::InvalidInput` if prefix is too short.
1445    pub fn scan(&self, txn: TxnHandle, prefix: &[u8]) -> Result<Vec<(Vec<u8>, Vec<u8>)>> {
1446        if prefix.len() < Self::MIN_SCAN_PREFIX_LEN {
1447            return Err(SochDBError::InvalidArgument(format!(
1448                "Prefix too short: {} bytes (minimum {} required). \
1449                 Use scan_unchecked() for unrestricted scans.",
1450                prefix.len(),
1451                Self::MIN_SCAN_PREFIX_LEN
1452            )));
1453        }
1454        self.scan_unchecked(txn, prefix)
1455    }
1456
1457    /// Scan keys with a prefix without length validation.
1458    ///
1459    /// # Warning
1460    ///
1461    /// This method allows empty/short prefixes which can cause expensive
1462    /// full-table scans. Use `scan()` unless you specifically need unrestricted
1463    /// prefix access for internal operations.
1464    pub fn scan_unchecked(&self, txn: TxnHandle, prefix: &[u8]) -> Result<Vec<(Vec<u8>, Vec<u8>)>> {
1465        let results = self.storage.scan(txn.txn_id, prefix)?;
1466        let bytes: u64 = results
1467            .iter()
1468            .map(|(k, v)| (k.len() + v.len()) as u64)
1469            .sum();
1470        self.stats.bytes_read.fetch_add(bytes, Ordering::Relaxed);
1471        Ok(results)
1472    }
1473
1474    /// Scan keys in range
1475    pub fn scan_range(
1476        &self,
1477        txn: TxnHandle,
1478        start: &[u8],
1479        end: &[u8],
1480    ) -> Result<Vec<(Vec<u8>, Vec<u8>)>> {
1481        let results = self.storage.scan_range(txn.txn_id, start, end)?;
1482        let bytes: u64 = results
1483            .iter()
1484            .map(|(k, v)| (k.len() + v.len()) as u64)
1485            .sum();
1486        self.stats.bytes_read.fetch_add(bytes, Ordering::Relaxed);
1487        Ok(results)
1488    }
1489
1490    /// Streaming scan for very large result sets
1491    /// 
1492    /// Returns an iterator that yields (key, value) pairs without
1493    /// materializing the entire result set. Use this for large scans
1494    /// where memory efficiency is important.
1495    /// 
1496    /// ## Performance
1497    /// 
1498    /// - Memory: O(1) per iteration vs O(N) for scan_range
1499    /// - Latency: First result available immediately vs waiting for all results
1500    /// - Throughput: Slightly lower due to per-item overhead
1501    /// 
1502    /// ## Usage
1503    /// 
1504    /// ```ignore
1505    /// for result in db.scan_range_iter(txn, b"start", b"end") {
1506    ///     let (key, value) = result?;
1507    ///     // Process immediately - no need to wait for all results
1508    /// }
1509    /// ```
1510    pub fn scan_range_iter<'a>(
1511        &'a self,
1512        txn: TxnHandle,
1513        start: &'a [u8],
1514        end: &'a [u8],
1515    ) -> impl Iterator<Item = Result<(Vec<u8>, Vec<u8>)>> + 'a {
1516        let stats = &self.stats;
1517        self.storage
1518            .scan_range_iter(txn.txn_id, start, end)
1519            .map(move |item| {
1520                stats.bytes_read.fetch_add(
1521                    (item.0.len() + item.1.len()) as u64,
1522                    Ordering::Relaxed,
1523                );
1524                Ok(item)
1525            })
1526    }
1527
1528    /// Flush memtable to WAL/Disk
1529    pub fn flush(&self) -> Result<()> {
1530        self.storage.fsync()
1531    }
1532
1533    // =========================================================================
1534    // Path-Native API (SochDB's differentiator)
1535    // =========================================================================
1536
1537    /// Get storage statistics
1538    pub fn storage_stats(&self) -> crate::durable_storage::StorageStats {
1539        self.storage.stats()
1540    }
1541
1542    /// Put a value at a path
1543    ///
1544    /// Path format: "collection/doc_id/field" or "table.row_id.column"
1545    /// Resolution is O(|path|), not O(log N) like B-tree.
1546    pub fn put_path(&self, txn: TxnHandle, path: &str, value: &[u8]) -> Result<()> {
1547        self.put(txn, path.as_bytes(), value)
1548    }
1549
1550    /// Get a value at a path
1551    pub fn get_path(&self, txn: TxnHandle, path: &str) -> Result<Option<Vec<u8>>> {
1552        self.get(txn, path.as_bytes())
1553    }
1554
1555    /// Delete at a path
1556    pub fn delete_path(&self, txn: TxnHandle, path: &str) -> Result<()> {
1557        self.delete(txn, path.as_bytes())
1558    }
1559
1560    /// Scan a path prefix
1561    ///
1562    /// Returns all key-value pairs where key starts with prefix.
1563    /// Useful for: "users/123/" -> all fields of user 123
1564    pub fn scan_path(&self, txn: TxnHandle, prefix: &str) -> Result<Vec<(String, Vec<u8>)>> {
1565        self.stats.queries_executed.fetch_add(1, Ordering::Relaxed);
1566
1567        let results = self.scan(txn, prefix.as_bytes())?;
1568
1569        Ok(results
1570            .into_iter()
1571            .filter_map(|(k, v)| String::from_utf8(k).ok().map(|path| (path, v)))
1572            .collect())
1573    }
1574
1575    // =========================================================================
1576    // Query API
1577    // =========================================================================
1578
1579    /// Execute a path query and return results
1580    ///
1581    /// This is the main query interface for LLM context retrieval.
1582    /// Supports:
1583    /// - Path prefix matching
1584    /// - Column projection (for I/O reduction)
1585    /// - Limit/offset
1586    pub fn query(&self, txn: TxnHandle, path_prefix: &str) -> QueryBuilder<'_> {
1587        QueryBuilder::new(self, txn, path_prefix.to_string())
1588    }
1589
1590    // =========================================================================
1591    // Table API (Higher-level abstraction)
1592    // =========================================================================
1593
1594    /// Register a table schema
1595    pub fn register_table(&self, schema: TableSchema) -> Result<()> {
1596        if self.tables.contains_key(&schema.name) {
1597            return Err(SochDBError::InvalidArgument(format!(
1598                "Table '{}' already exists",
1599                schema.name
1600            )));
1601        }
1602        // Cache the packed schema for fast inserts
1603        let packed_schema = Self::to_packed_schema(&schema);
1604        self.packed_schemas
1605            .insert(schema.name.clone(), packed_schema);
1606        self.tables.insert(schema.name.clone(), schema);
1607        Ok(())
1608    }
1609
1610    /// Get table schema
1611    pub fn get_table_schema(&self, name: &str) -> Option<TableSchema> {
1612        self.tables.get(name).map(|s| s.clone())
1613    }
1614
1615    /// Update the schema for an existing table (used by ALTER TABLE).
1616    ///
1617    /// Replaces the schema in both the `tables` DashMap and the packed schema
1618    /// cache atomically (per-key). The caller is responsible for validating
1619    /// the new schema.
1620    pub fn update_table_schema(&self, old_name: &str, schema: TableSchema) -> Result<()> {
1621        if !self.tables.contains_key(old_name) {
1622            return Err(SochDBError::InvalidArgument(format!(
1623                "Table '{}' not found",
1624                old_name
1625            )));
1626        }
1627        // Remove old entries
1628        self.tables.remove(old_name);
1629        self.packed_schemas.remove(old_name);
1630        // Insert new
1631        let packed = Self::to_packed_schema(&schema);
1632        self.packed_schemas.insert(schema.name.clone(), packed);
1633        self.tables.insert(schema.name.clone(), schema);
1634        Ok(())
1635    }
1636
1637    /// List all tables
1638    pub fn list_tables(&self) -> Vec<String> {
1639        self.tables.iter().map(|e| e.key().clone()).collect()
1640    }
1641
1642    // =========================================================================
1643    // CDC (Change Data Capture)
1644    // =========================================================================
1645
1646    /// Enable CDC on this database, returning the CDC log handle.
1647    ///
1648    /// Subsequent mutations emitted via the SQL execution layer will be
1649    /// recorded in the CDC log for subscriber consumption.
1650    pub fn enable_cdc(&mut self, config: crate::cdc::CdcConfig) -> Arc<crate::cdc::CdcLog> {
1651        let log = crate::cdc::CdcLog::new(config);
1652        self.cdc_log = Some(log.clone());
1653        log
1654    }
1655
1656    /// Get the CDC log handle, if CDC is enabled.
1657    pub fn cdc_log(&self) -> Option<&Arc<crate::cdc::CdcLog>> {
1658        self.cdc_log.as_ref()
1659    }
1660
1661    /// Convert TableSchema to PackedTableSchema for efficient storage
1662    fn to_packed_schema(schema: &TableSchema) -> PackedTableSchema {
1663        let columns = schema
1664            .columns
1665            .iter()
1666            .map(|col| PackedColumnDef {
1667                name: col.name.clone(),
1668                col_type: match col.col_type {
1669                    ColumnType::Int64 => PackedColumnType::Int64,
1670                    ColumnType::UInt64 => PackedColumnType::UInt64,
1671                    ColumnType::Float64 => PackedColumnType::Float64,
1672                    ColumnType::Text => PackedColumnType::Text,
1673                    ColumnType::Binary => PackedColumnType::Binary,
1674                    ColumnType::Bool => PackedColumnType::Bool,
1675                },
1676                nullable: col.nullable,
1677            })
1678            .collect();
1679
1680        PackedTableSchema::new(&schema.name, columns)
1681    }
1682
1683    /// Insert a row into a table
1684    ///
1685    /// Uses packed row format: stores entire row as single key-value pair.
1686    /// This reduces write amplification from 4× to 1× for a 4-column table.
1687    ///
1688    /// # Performance
1689    /// - Before: 4 columns × (WAL entry + MVCC version) = 4 writes
1690    /// - After: 1 packed row = 1 write
1691    /// - Improvement: ~4× fewer WAL entries, ~48% less I/O overhead
1692    pub fn insert_row(
1693        &self,
1694        txn: TxnHandle,
1695        table: &str,
1696        row_id: u64,
1697        values: &HashMap<String, SochValue>,
1698    ) -> Result<()> {
1699        // Use cached packed schema - single DashMap lookup, no clone
1700        let packed_schema = self
1701            .packed_schemas
1702            .get(table)
1703            .ok_or_else(|| SochDBError::InvalidArgument(format!("Table '{}' not found", table)))?;
1704
1705        // Pack the row using cached schema
1706        let packed_row = PackedRow::pack(&packed_schema, values);
1707
1708        // Build key using KeyBuffer - optimized stack allocation (~12-15ns vs ~30-35ns for write!())
1709        let key = KeyBuffer::format_row_key(table, row_id);
1710
1711        self.put(txn, key.as_bytes(), packed_row.as_bytes())?;
1712
1713        Ok(())
1714    }
1715
1716    /// Read a row from a table
1717    ///
1718    /// Reads packed row and extracts requested columns in O(k) time.
1719    /// Column projection happens in memory, not storage - all columns are fetched.
1720    pub fn read_row(
1721        &self,
1722        txn: TxnHandle,
1723        table: &str,
1724        row_id: u64,
1725        columns: Option<&[&str]>,
1726    ) -> Result<Option<HashMap<String, SochValue>>> {
1727        let schema = self
1728            .tables
1729            .get(table)
1730            .ok_or_else(|| SochDBError::InvalidArgument(format!("Table '{}' not found", table)))?;
1731
1732        // Read the packed row with a single key lookup using KeyBuffer
1733        let key = KeyBuffer::format_row_key(table, row_id);
1734        let bytes = match self.get(txn, key.as_bytes())? {
1735            Some(b) => b,
1736            None => return Ok(None),
1737        };
1738
1739        // Use cached packed schema
1740        let packed_schema = self
1741            .packed_schemas
1742            .get(table)
1743            .ok_or_else(|| SochDBError::Internal("Packed schema not found".into()))?;
1744        let packed_row = PackedRow::from_bytes(bytes, packed_schema.num_columns())?;
1745
1746        // Determine which columns to return
1747        let cols_to_read: Vec<&str> = match columns {
1748            Some(c) => c.to_vec(),
1749            None => schema.columns.iter().map(|c| c.name.as_str()).collect(),
1750        };
1751
1752        let mut row = HashMap::new();
1753        for col_name in cols_to_read {
1754            if let Some(idx) = packed_schema.column_index(col_name)
1755                && let Some(col_def) = packed_schema.column(idx)
1756                && let Some(value) = packed_row.get_column(idx, col_def.col_type)
1757            {
1758                row.insert(col_name.to_string(), value);
1759            }
1760        }
1761
1762        Ok(Some(row))
1763    }
1764
1765    /// Insert multiple rows efficiently in a batch
1766    ///
1767    /// This method accumulates all rows and writes them with fewer WAL syncs.
1768    /// Ideal for bulk loading scenarios.
1769    ///
1770    /// # Performance
1771    /// - Uses group commit to batch fsync operations
1772    /// - Expected throughput: 500K-1M rows/sec depending on row size
1773    pub fn insert_rows_batch(
1774        &self,
1775        txn: TxnHandle,
1776        table: &str,
1777        rows: &[(u64, HashMap<String, SochValue>)],
1778    ) -> Result<usize> {
1779        // Use cached packed schema
1780        let packed_schema = self
1781            .packed_schemas
1782            .get(table)
1783            .ok_or_else(|| SochDBError::InvalidArgument(format!("Table '{}' not found", table)))?;
1784
1785        let mut count = 0;
1786
1787        for (row_id, values) in rows {
1788            // Pack and write using KeyBuffer for efficient key construction
1789            let packed_row = PackedRow::pack(&packed_schema, values);
1790            let key = KeyBuffer::format_row_key(table, *row_id);
1791            self.put(txn, key.as_bytes(), packed_row.as_bytes())?;
1792            count += 1;
1793        }
1794
1795        Ok(count)
1796    }
1797
1798    /// Ultra-fast raw put - bypasses all validation
1799    ///
1800    /// Use when you've already validated the data and just need speed.
1801    /// This is ~10× faster than insert_row() for bulk inserts.
1802    #[inline]
1803    pub fn put_raw(&self, txn: TxnHandle, key: &[u8], value: &[u8]) -> Result<()> {
1804        self.storage.write_refs(txn.txn_id, key, value)
1805    }
1806
1807    /// Zero-allocation insert - fastest path for bulk inserts
1808    ///
1809    /// Takes values as a slice in schema column order, avoiding HashMap overhead.
1810    ///
1811    /// # Arguments
1812    /// * `txn` - Transaction handle
1813    /// * `table` - Table name
1814    /// * `row_id` - Row identifier
1815    /// * `values` - Values in schema column order (None = NULL)
1816    ///
1817    /// # Performance
1818    /// - Eliminates ~6 allocations per row vs insert_row()
1819    /// - Expected: 1.2M-1.5M inserts/sec
1820    ///
1821    /// # Example
1822    /// ```ignore
1823    /// let values: &[Option<&SochValue>] = &[
1824    ///     Some(&SochValue::Int(1)),
1825    ///     Some(&SochValue::Text("Alice".into())),
1826    ///     None, // NULL
1827    /// ];
1828    /// db.insert_row_slice(txn, "users", 1, values)?;
1829    /// ```
1830    #[inline]
1831    pub fn insert_row_slice(
1832        &self,
1833        txn: TxnHandle,
1834        table: &str,
1835        row_id: u64,
1836        values: &[Option<&SochValue>],
1837    ) -> Result<()> {
1838        // Use cached packed schema - single DashMap lookup
1839        let packed_schema = self
1840            .packed_schemas
1841            .get(table)
1842            .ok_or_else(|| SochDBError::InvalidArgument(format!("Table '{}' not found", table)))?;
1843
1844        // Validate column count matches
1845        if values.len() != packed_schema.num_columns() {
1846            return Err(SochDBError::InvalidArgument(format!(
1847                "Expected {} columns, got {}",
1848                packed_schema.num_columns(),
1849                values.len()
1850            )));
1851        }
1852
1853        // Pack using zero-allocation path
1854        let packed_row = PackedRow::pack_slice(&packed_schema, values);
1855
1856        // Build key using KeyBuffer - optimized stack allocation (~12-15ns vs ~30-35ns for write!())
1857        let key = KeyBuffer::format_row_key(table, row_id);
1858
1859        self.put(txn, key.as_bytes(), packed_row.as_bytes())?;
1860        Ok(())
1861    }
1862
1863    // =========================================================================
1864    // Maintenance
1865    // =========================================================================
1866
1867    /// Force fsync to disk
1868    pub fn fsync(&self) -> Result<()> {
1869        self.storage.fsync()
1870    }
1871
1872    /// Create a checkpoint
1873    pub fn checkpoint(&self) -> Result<u64> {
1874        self.storage.checkpoint()
1875    }
1876
1877    /// Truncate the WAL file after a checkpoint.
1878    ///
1879    /// See [`DurableStorage::truncate_wal`] for safety notes.
1880    pub fn truncate_wal(&self) -> Result<()> {
1881        self.storage.truncate_wal()
1882    }
1883
1884    /// Run garbage collection
1885    pub fn gc(&self) -> usize {
1886        self.storage.gc()
1887    }
1888
1889    /// Get database statistics
1890    pub fn stats(&self) -> Stats {
1891        Stats {
1892            transactions_started: self.stats.transactions_started.load(Ordering::Relaxed),
1893            transactions_committed: self.stats.transactions_committed.load(Ordering::Relaxed),
1894            transactions_aborted: self.stats.transactions_aborted.load(Ordering::Relaxed),
1895            queries_executed: self.stats.queries_executed.load(Ordering::Relaxed),
1896            bytes_written: self.stats.bytes_written.load(Ordering::Relaxed),
1897            bytes_read: self.stats.bytes_read.load(Ordering::Relaxed),
1898        }
1899    }
1900
1901    /// Shutdown the database gracefully
1902    pub fn shutdown(&self) -> Result<()> {
1903        if self.shutdown.swap(1, Ordering::SeqCst) == 1 {
1904            return Ok(()); // Already shutting down
1905        }
1906
1907        // Flush any pending writes
1908        self.fsync()?;
1909
1910        // Create clean shutdown marker
1911        let marker = self.path.join(".clean_shutdown");
1912        std::fs::write(&marker, b"ok")?;
1913
1914        Ok(())
1915    }
1916}
1917
1918impl Drop for Database {
1919    fn drop(&mut self) {
1920        // Try graceful shutdown if not already done
1921        if self.shutdown.load(Ordering::SeqCst) == 0 {
1922            let _ = self.fsync();
1923            let marker = self.path.join(".clean_shutdown");
1924            let _ = std::fs::write(&marker, b"ok");
1925        }
1926    }
1927}
1928
1929/// Query builder for fluent query construction
1930pub struct QueryBuilder<'a> {
1931    db: &'a Database,
1932    txn: TxnHandle,
1933    path_prefix: String,
1934    columns: Option<Vec<String>>,
1935    limit: Option<usize>,
1936    offset: Option<usize>,
1937}
1938
1939impl<'a> QueryBuilder<'a> {
1940    fn new(db: &'a Database, txn: TxnHandle, path_prefix: String) -> Self {
1941        Self {
1942            db,
1943            txn,
1944            path_prefix,
1945            columns: None,
1946            limit: None,
1947            offset: None,
1948        }
1949    }
1950
1951    /// Select specific columns (for I/O reduction)
1952    pub fn columns(mut self, cols: &[&str]) -> Self {
1953        self.columns = Some(cols.iter().map(|s| s.to_string()).collect());
1954        self
1955    }
1956
1957    /// Limit results
1958    pub fn limit(mut self, n: usize) -> Self {
1959        self.limit = Some(n);
1960        self
1961    }
1962
1963    /// Skip results
1964    pub fn offset(mut self, n: usize) -> Self {
1965        self.offset = Some(n);
1966        self
1967    }
1968
1969    /// Execute the query
1970    ///
1971    /// Scans packed rows and unpacks them. Each key is "table/row_id" pointing to a packed row.
1972    pub fn execute(self) -> Result<QueryResult> {
1973        self.db
1974            .stats
1975            .queries_executed
1976            .fetch_add(1, Ordering::Relaxed);
1977
1978        // Get schema for the table if we're querying a table
1979        let table_name = self
1980            .path_prefix
1981            .split('/')
1982            .next()
1983            .unwrap_or(&self.path_prefix);
1984        let schema = self.db.tables.get(table_name).map(|s| s.clone());
1985
1986        // Scan the path prefix
1987        let results = self.db.scan_path(self.txn, &self.path_prefix)?;
1988
1989        let mut rows: Vec<HashMap<String, SochValue>> = Vec::new();
1990        let mut bytes_read = 0usize;
1991
1992        if let Some(ref schema) = schema {
1993            // We have a table schema - use cached packed schema
1994            let packed_schema = self
1995                .db
1996                .packed_schemas
1997                .get(table_name)
1998                .map(|ps| ps.clone())
1999                .unwrap_or_else(|| Database::to_packed_schema(schema));
2000
2001            for (path, value_bytes) in results {
2002                // Parse path: table/row_id
2003                let parts: Vec<&str> = path.split('/').collect();
2004                if parts.len() == 2 {
2005                    // This is a packed row
2006                    bytes_read += value_bytes.len();
2007
2008                    if let Ok(packed_row) =
2009                        PackedRow::from_bytes(value_bytes, packed_schema.num_columns())
2010                    {
2011                        // Unpack all columns or just requested columns
2012                        let mut row = HashMap::new();
2013
2014                        if let Some(ref cols) = self.columns {
2015                            // Only extract requested columns
2016                            for col_name in cols {
2017                                if let Some(idx) = packed_schema.column_index(col_name)
2018                                    && let Some(col_def) = packed_schema.column(idx)
2019                                    && let Some(value) =
2020                                        packed_row.get_column(idx, col_def.col_type)
2021                                {
2022                                    row.insert(col_name.clone(), value);
2023                                }
2024                            }
2025                        } else {
2026                            // Extract all columns
2027                            row = packed_row.unpack(&packed_schema);
2028                        }
2029
2030                        if !row.is_empty() {
2031                            rows.push(row);
2032                        }
2033                    }
2034                }
2035            }
2036        } else {
2037            // Fallback: no schema, try legacy column-per-key format
2038            let mut rows_map: HashMap<String, HashMap<String, SochValue>> = HashMap::new();
2039
2040            for (path, value_bytes) in results {
2041                let parts: Vec<&str> = path.split('/').collect();
2042                if parts.len() >= 3 {
2043                    let row_key = format!("{}/{}", parts[0], parts[1]);
2044                    let col_name = parts[2..].join("/");
2045
2046                    if let Some(ref cols) = self.columns
2047                        && !cols.contains(&col_name)
2048                    {
2049                        continue;
2050                    }
2051
2052                    bytes_read += value_bytes.len();
2053                    let row = rows_map.entry(row_key).or_default();
2054                    row.insert(col_name, deserialize_value(&value_bytes));
2055                }
2056            }
2057
2058            rows = rows_map.into_values().collect();
2059        }
2060
2061        // Apply offset
2062        if let Some(offset) = self.offset {
2063            rows = rows.into_iter().skip(offset).collect();
2064        }
2065
2066        // Apply limit
2067        if let Some(limit) = self.limit {
2068            rows.truncate(limit);
2069        }
2070
2071        // Collect column names
2072        let columns: Vec<String> = self.columns.unwrap_or_else(|| {
2073            rows.iter()
2074                .flat_map(|r| r.keys().cloned())
2075                .collect::<std::collections::HashSet<_>>()
2076                .into_iter()
2077                .collect()
2078        });
2079
2080        Ok(QueryResult {
2081            columns,
2082            rows_scanned: rows.len(),
2083            bytes_read,
2084            rows,
2085        })
2086    }
2087
2088    /// Execute and return TOON format (for LLM efficiency)
2089    pub fn to_toon(self) -> Result<String> {
2090        let result = self.execute()?;
2091        Ok(result.to_toon())
2092    }
2093
2094    /// Execute with lazy iteration - avoids materializing all rows
2095    ///
2096    /// Returns an iterator over rows as `Vec<SochValue>` in schema column order.
2097    /// This is more memory-efficient than `execute()` for large result sets.
2098    ///
2099    /// # Performance
2100    /// - No upfront materialization of all rows
2101    /// - ~40% less memory for large result sets
2102    /// - Ideal for streaming to network or aggregations
2103    ///
2104    /// # Example
2105    /// ```ignore
2106    /// for row_result in db.query(txn, "users").execute_iter()? {
2107    ///     let row = row_result?;
2108    ///     // row is Vec<SochValue> in column order
2109    /// }
2110    /// ```
2111    pub fn execute_iter(self) -> Result<QueryRowIterator> {
2112        self.db
2113            .stats
2114            .queries_executed
2115            .fetch_add(1, Ordering::Relaxed);
2116
2117        let table_name = self
2118            .path_prefix
2119            .split('/')
2120            .next()
2121            .unwrap_or(&self.path_prefix)
2122            .to_string();
2123
2124        // Get packed schema (clone needed for iterator ownership)
2125        let packed_schema = self.db.packed_schemas.get(&table_name).map(|ps| ps.clone());
2126
2127        // Scan the path prefix
2128        let results = self.db.scan_path(self.txn, &self.path_prefix)?;
2129
2130        Ok(QueryRowIterator {
2131            results: results.into_iter(),
2132            packed_schema,
2133            columns: self.columns,
2134            offset: self.offset.unwrap_or(0),
2135            limit: self.limit,
2136            yielded: 0,
2137            skipped: 0,
2138        })
2139    }
2140
2141    /// Execute and return columnar (SIMD-friendly) result format
2142    ///
2143    /// Instead of row-oriented `Vec<HashMap<String, SochValue>>`, returns
2144    /// column-oriented `Vec<TypedColumn>` for vectorized operations.
2145    ///
2146    /// ## Performance Benefits
2147    ///
2148    /// - SIMD: Aggregate operations (sum, avg) use vectorized instructions
2149    /// - Cache: Sequential access maximizes L1/L2 hits
2150    /// - Memory: ~30% less overhead than row-based format
2151    /// - Analytics: Ideal for ML preprocessing and statistics
2152    ///
2153    /// ## Example
2154    ///
2155    /// ```ignore
2156    /// let result = db.query(txn, "users")
2157    ///     .columns(&["id", "score"])
2158    ///     .as_columnar()?;
2159    ///
2160    /// // SIMD-optimized sum
2161    /// let total = result.sum_i64("score").unwrap_or(0);
2162    ///
2163    /// // Direct column access
2164    /// if let Some(scores) = result.column("score") {
2165    ///     for i in 0..scores.len() {
2166    ///         if let Some(v) = scores.get_i64(i) {
2167    ///             println!("Score: {}", v);
2168    ///         }
2169    ///     }
2170    /// }
2171    /// ```
2172    pub fn as_columnar(self) -> Result<ColumnarQueryResult> {
2173        self.db
2174            .stats
2175            .queries_executed
2176            .fetch_add(1, Ordering::Relaxed);
2177
2178        let table_name = self
2179            .path_prefix
2180            .split('/')
2181            .next()
2182            .unwrap_or(&self.path_prefix);
2183        let schema = self.db.tables.get(table_name).map(|s| s.clone());
2184
2185        // Get packed schema
2186        let packed_schema = match self.db.packed_schemas.get(table_name) {
2187            Some(ps) => ps.clone(),
2188            None => return Ok(ColumnarQueryResult::empty()),
2189        };
2190
2191        // Determine columns to fetch
2192        let column_names: Vec<String> = self.columns.clone().unwrap_or_else(|| {
2193            schema
2194                .as_ref()
2195                .map(|s| s.columns.iter().map(|c| c.name.clone()).collect())
2196                .unwrap_or_default()
2197        });
2198
2199        if column_names.is_empty() {
2200            return Ok(ColumnarQueryResult::empty());
2201        }
2202
2203        // Initialize TypedColumns based on schema types
2204        let mut columns: Vec<CoreTypedColumn> = column_names
2205            .iter()
2206            .map(|col_name| {
2207                packed_schema
2208                    .column_index(col_name)
2209                    .and_then(|idx| packed_schema.column(idx))
2210                    .map(|col_def| match col_def.col_type {
2211                        PackedColumnType::Int64 => CoreTypedColumn::new_int64(),
2212                        PackedColumnType::UInt64 => CoreTypedColumn::new_uint64(),
2213                        PackedColumnType::Float64 => CoreTypedColumn::new_float64(),
2214                        PackedColumnType::Text => CoreTypedColumn::new_text(),
2215                        PackedColumnType::Binary => CoreTypedColumn::new_binary(),
2216                        PackedColumnType::Bool => CoreTypedColumn::new_bool(),
2217                        PackedColumnType::Null => CoreTypedColumn::new_text(), // Null column = fallback to text
2218                    })
2219                    .unwrap_or_else(CoreTypedColumn::new_text) // fallback
2220            })
2221            .collect();
2222
2223        // Scan the path prefix
2224        let results = self.db.scan_path(self.txn, &self.path_prefix)?;
2225
2226        let mut row_count = 0;
2227        let mut bytes_read = 0;
2228        let mut skipped = 0;
2229
2230        for (path, value_bytes) in results {
2231            // Parse path: table/row_id
2232            let parts: Vec<&str> = path.split('/').collect();
2233            if parts.len() != 2 {
2234                continue;
2235            }
2236
2237            // Apply offset
2238            if let Some(offset) = self.offset
2239                && skipped < offset
2240            {
2241                skipped += 1;
2242                continue;
2243            }
2244
2245            // Apply limit
2246            if let Some(limit) = self.limit
2247                && row_count >= limit
2248            {
2249                break;
2250            }
2251
2252            bytes_read += value_bytes.len();
2253
2254            if let Ok(packed_row) = PackedRow::from_bytes(value_bytes, packed_schema.num_columns())
2255            {
2256                // Extract each column and push to corresponding TypedColumn
2257                for (col_idx, col_name) in column_names.iter().enumerate() {
2258                    if let Some(schema_idx) = packed_schema.column_index(col_name) {
2259                        if let Some(col_def) = packed_schema.column(schema_idx) {
2260                            let value = packed_row.get_column(schema_idx, col_def.col_type);
2261                            push_value_to_typed_column(&mut columns[col_idx], value);
2262                        } else {
2263                            push_null_to_typed_column(&mut columns[col_idx]);
2264                        }
2265                    } else {
2266                        push_null_to_typed_column(&mut columns[col_idx]);
2267                    }
2268                }
2269                row_count += 1;
2270            }
2271        }
2272
2273        Ok(ColumnarQueryResult {
2274            columns: column_names,
2275            data: columns,
2276            row_count,
2277            bytes_read,
2278        })
2279    }
2280}
2281
2282/// Lazy iterator over query results
2283///
2284/// Unpacks rows on-demand, avoiding upfront materialization.
2285pub struct QueryRowIterator {
2286    results: std::vec::IntoIter<(String, Vec<u8>)>,
2287    packed_schema: Option<PackedTableSchema>,
2288    columns: Option<Vec<String>>,
2289    offset: usize,
2290    limit: Option<usize>,
2291    yielded: usize,
2292    skipped: usize,
2293}
2294
2295impl Iterator for QueryRowIterator {
2296    type Item = Result<Vec<SochValue>>;
2297
2298    fn next(&mut self) -> Option<Self::Item> {
2299        // Check limit
2300        if let Some(limit) = self.limit
2301            && self.yielded >= limit
2302        {
2303            return None;
2304        }
2305
2306        loop {
2307            let (path, value_bytes) = self.results.next()?;
2308
2309            // Parse path: table/row_id
2310            let parts: Vec<&str> = path.split('/').collect();
2311            if parts.len() != 2 {
2312                continue; // Skip non-row entries
2313            }
2314
2315            // Apply offset
2316            if self.skipped < self.offset {
2317                self.skipped += 1;
2318                continue;
2319            }
2320
2321            if let Some(ref schema) = self.packed_schema {
2322                match PackedRow::from_bytes(value_bytes, schema.num_columns()) {
2323                    Ok(packed_row) => {
2324                        let row = if let Some(ref cols) = self.columns {
2325                            // Project specific columns
2326                            cols.iter()
2327                                .map(|col_name| {
2328                                    schema
2329                                        .column_index(col_name)
2330                                        .and_then(|idx| schema.column(idx))
2331                                        .and_then(|col_def| {
2332                                            packed_row.get_column(
2333                                                schema.column_index(col_name).unwrap(),
2334                                                col_def.col_type,
2335                                            )
2336                                        })
2337                                        .unwrap_or(SochValue::Null)
2338                                })
2339                                .collect()
2340                        } else {
2341                            // All columns in order
2342                            packed_row.unpack_to_vec(schema)
2343                        };
2344
2345                        self.yielded += 1;
2346                        return Some(Ok(row));
2347                    }
2348                    Err(e) => return Some(Err(e)),
2349                }
2350            } else {
2351                // No schema - return raw bytes as binary
2352                self.yielded += 1;
2353                return Some(Ok(vec![SochValue::Binary(value_bytes)]));
2354            }
2355        }
2356    }
2357}
2358
2359// Helper functions for serialization (kept for backward compatibility with legacy data)
2360
2361#[allow(dead_code)]
2362fn serialize_value(value: &SochValue) -> Vec<u8> {
2363    // Simple serialization - in production use proper format
2364    match value {
2365        SochValue::Null => vec![0],
2366        SochValue::Int(i) => {
2367            let mut buf = vec![1];
2368            buf.extend_from_slice(&i.to_le_bytes());
2369            buf
2370        }
2371        SochValue::UInt(u) => {
2372            let mut buf = vec![2];
2373            buf.extend_from_slice(&u.to_le_bytes());
2374            buf
2375        }
2376        SochValue::Float(f) => {
2377            let mut buf = vec![3];
2378            buf.extend_from_slice(&f.to_le_bytes());
2379            buf
2380        }
2381        SochValue::Text(s) => {
2382            let mut buf = vec![4];
2383            buf.extend_from_slice(s.as_bytes());
2384            buf
2385        }
2386        SochValue::Bool(b) => vec![5, if *b { 1 } else { 0 }],
2387        SochValue::Binary(b) => {
2388            let mut buf = vec![6];
2389            buf.extend_from_slice(b);
2390            buf
2391        }
2392        _ => {
2393            // Fallback: serialize as text
2394            let s = format!("{:?}", value);
2395            let mut buf = vec![4];
2396            buf.extend_from_slice(s.as_bytes());
2397            buf
2398        }
2399    }
2400}
2401
2402fn deserialize_value(bytes: &[u8]) -> SochValue {
2403    if bytes.is_empty() {
2404        return SochValue::Null;
2405    }
2406
2407    match bytes[0] {
2408        0 => SochValue::Null,
2409        1 if bytes.len() >= 9 => {
2410            let i = i64::from_le_bytes(bytes[1..9].try_into().unwrap());
2411            SochValue::Int(i)
2412        }
2413        2 if bytes.len() >= 9 => {
2414            let u = u64::from_le_bytes(bytes[1..9].try_into().unwrap());
2415            SochValue::UInt(u)
2416        }
2417        3 if bytes.len() >= 9 => {
2418            let f = f64::from_le_bytes(bytes[1..9].try_into().unwrap());
2419            SochValue::Float(f)
2420        }
2421        4 => {
2422            let s = String::from_utf8_lossy(&bytes[1..]).to_string();
2423            SochValue::Text(s)
2424        }
2425        5 if bytes.len() >= 2 => SochValue::Bool(bytes[1] != 0),
2426        6 => SochValue::Binary(bytes[1..].to_vec()),
2427        _ => {
2428            // Treat as text
2429            let s = String::from_utf8_lossy(bytes).to_string();
2430            SochValue::Text(s)
2431        }
2432    }
2433}
2434
2435// ============================================================================
2436// Helper functions for columnar query result building
2437// ============================================================================
2438
2439/// Push a SochValue into a TypedColumn
2440fn push_value_to_typed_column(col: &mut CoreTypedColumn, value: Option<SochValue>) {
2441    match value {
2442        None => push_null_to_typed_column(col),
2443        Some(v) => match (col, v) {
2444            (
2445                CoreTypedColumn::Int64 {
2446                    values,
2447                    validity,
2448                    stats,
2449                },
2450                SochValue::Int(i),
2451            ) => {
2452                values.push(i);
2453                validity.push(true);
2454                stats.update_i64(i);
2455            }
2456            (
2457                CoreTypedColumn::Int64 {
2458                    values,
2459                    validity,
2460                    stats,
2461                },
2462                SochValue::UInt(u),
2463            ) => {
2464                values.push(u as i64);
2465                validity.push(true);
2466                stats.update_i64(u as i64);
2467            }
2468            (
2469                CoreTypedColumn::UInt64 {
2470                    values,
2471                    validity,
2472                    stats,
2473                },
2474                SochValue::UInt(u),
2475            ) => {
2476                values.push(u);
2477                validity.push(true);
2478                stats.update_i64(u as i64);
2479            }
2480            (
2481                CoreTypedColumn::UInt64 {
2482                    values,
2483                    validity,
2484                    stats,
2485                },
2486                SochValue::Int(i),
2487            ) => {
2488                values.push(i as u64);
2489                validity.push(true);
2490                stats.update_i64(i);
2491            }
2492            (
2493                CoreTypedColumn::Float64 {
2494                    values,
2495                    validity,
2496                    stats,
2497                },
2498                SochValue::Float(f),
2499            ) => {
2500                values.push(f);
2501                validity.push(true);
2502                stats.update_f64(f);
2503            }
2504            (
2505                CoreTypedColumn::Float64 {
2506                    values,
2507                    validity,
2508                    stats,
2509                },
2510                SochValue::Int(i),
2511            ) => {
2512                values.push(i as f64);
2513                validity.push(true);
2514                stats.update_f64(i as f64);
2515            }
2516            (
2517                CoreTypedColumn::Text {
2518                    offsets,
2519                    data,
2520                    validity,
2521                    stats,
2522                },
2523                SochValue::Text(s),
2524            ) => {
2525                data.extend_from_slice(s.as_bytes());
2526                offsets.push(data.len() as u32);
2527                validity.push(true);
2528                stats.row_count += 1;
2529            }
2530            (
2531                CoreTypedColumn::Binary {
2532                    offsets,
2533                    data,
2534                    validity,
2535                    stats,
2536                },
2537                SochValue::Binary(b),
2538            ) => {
2539                data.extend_from_slice(&b);
2540                offsets.push(data.len() as u32);
2541                validity.push(true);
2542                stats.row_count += 1;
2543            }
2544            (
2545                CoreTypedColumn::Bool {
2546                    values,
2547                    validity,
2548                    stats,
2549                    len,
2550                },
2551                SochValue::Bool(b),
2552            ) => {
2553                let idx = *len;
2554                *len += 1;
2555                let num_words = (*len).div_ceil(64);
2556                while values.len() < num_words {
2557                    values.push(0);
2558                }
2559                if b {
2560                    let word = idx / 64;
2561                    let bit = idx % 64;
2562                    values[word] |= 1 << bit;
2563                }
2564                validity.push(true);
2565                stats.row_count += 1;
2566            }
2567            // Type mismatch - push as null
2568            (col, _) => push_null_to_typed_column(col),
2569        },
2570    }
2571}
2572
2573/// Push a null value into a TypedColumn
2574fn push_null_to_typed_column(col: &mut CoreTypedColumn) {
2575    match col {
2576        CoreTypedColumn::Int64 {
2577            values,
2578            validity,
2579            stats,
2580        } => {
2581            values.push(0);
2582            validity.push(false);
2583            stats.update_null();
2584        }
2585        CoreTypedColumn::UInt64 {
2586            values,
2587            validity,
2588            stats,
2589        } => {
2590            values.push(0);
2591            validity.push(false);
2592            stats.update_null();
2593        }
2594        CoreTypedColumn::Float64 {
2595            values,
2596            validity,
2597            stats,
2598        } => {
2599            values.push(0.0);
2600            validity.push(false);
2601            stats.update_null();
2602        }
2603        CoreTypedColumn::Text {
2604            offsets,
2605            data: _,
2606            validity,
2607            stats,
2608        } => {
2609            offsets.push(offsets.last().copied().unwrap_or(0));
2610            validity.push(false);
2611            stats.update_null();
2612        }
2613        CoreTypedColumn::Binary {
2614            offsets,
2615            data: _,
2616            validity,
2617            stats,
2618        } => {
2619            offsets.push(offsets.last().copied().unwrap_or(0));
2620            validity.push(false);
2621            stats.update_null();
2622        }
2623        CoreTypedColumn::Bool {
2624            values,
2625            validity,
2626            stats,
2627            len,
2628        } => {
2629            *len += 1;
2630            let num_words = (*len).div_ceil(64);
2631            while values.len() < num_words {
2632                values.push(0);
2633            }
2634            validity.push(false);
2635            stats.update_null();
2636        }
2637    }
2638}
2639
2640#[cfg(test)]
2641mod tests {
2642    use super::*;
2643    use tempfile::tempdir;
2644
2645    #[test]
2646    fn test_database_open_close() {
2647        let dir = tempdir().unwrap();
2648        let db = Database::open(dir.path()).unwrap();
2649
2650        // Should be able to begin a transaction
2651        let txn = db.begin_transaction().unwrap();
2652        assert!(txn.txn_id > 0);
2653
2654        db.abort(txn).unwrap();
2655        db.shutdown().unwrap();
2656    }
2657
2658    #[test]
2659    fn test_database_put_get() {
2660        let dir = tempdir().unwrap();
2661        let db = Database::open(dir.path()).unwrap();
2662
2663        let txn = db.begin_transaction().unwrap();
2664        db.put(txn, b"key1", b"value1").unwrap();
2665
2666        let val = db.get(txn, b"key1").unwrap();
2667        assert_eq!(val, Some(b"value1".to_vec()));
2668
2669        db.commit(txn).unwrap();
2670
2671        // New transaction should see committed data
2672        let txn2 = db.begin_transaction().unwrap();
2673        let val = db.get(txn2, b"key1").unwrap();
2674        assert_eq!(val, Some(b"value1".to_vec()));
2675        db.abort(txn2).unwrap();
2676    }
2677
2678    #[test]
2679    fn test_database_path_api() {
2680        let dir = tempdir().unwrap();
2681        let db = Database::open(dir.path()).unwrap();
2682
2683        let txn = db.begin_transaction().unwrap();
2684
2685        // Write using path API
2686        db.put_path(txn, "users/1/name", b"Alice").unwrap();
2687        db.put_path(txn, "users/1/email", b"alice@example.com")
2688            .unwrap();
2689        db.put_path(txn, "users/2/name", b"Bob").unwrap();
2690
2691        db.commit(txn).unwrap();
2692
2693        // Scan path prefix
2694        let txn2 = db.begin_transaction().unwrap();
2695        let results = db.scan_path(txn2, "users/1/").unwrap();
2696        assert_eq!(results.len(), 2);
2697
2698        db.abort(txn2).unwrap();
2699    }
2700
2701    #[test]
2702    fn test_database_table_api() {
2703        let dir = tempdir().unwrap();
2704        let db = Database::open(dir.path()).unwrap();
2705
2706        // Register table
2707        db.register_table(TableSchema {
2708            name: "users".to_string(),
2709            columns: vec![
2710                ColumnDef {
2711                    name: "name".to_string(),
2712                    col_type: ColumnType::Text,
2713                    nullable: false,
2714                },
2715                ColumnDef {
2716                    name: "age".to_string(),
2717                    col_type: ColumnType::Int64,
2718                    nullable: true,
2719                },
2720            ],
2721        })
2722        .unwrap();
2723
2724        // Insert row
2725        let txn = db.begin_transaction().unwrap();
2726        let mut values = HashMap::new();
2727        values.insert("name".to_string(), SochValue::Text("Alice".to_string()));
2728        values.insert("age".to_string(), SochValue::Int(30));
2729
2730        db.insert_row(txn, "users", 1, &values).unwrap();
2731        db.commit(txn).unwrap();
2732
2733        // Read row
2734        let txn2 = db.begin_transaction().unwrap();
2735        let row = db.read_row(txn2, "users", 1, None).unwrap();
2736        assert!(row.is_some());
2737
2738        let row = row.unwrap();
2739        assert_eq!(row.get("name"), Some(&SochValue::Text("Alice".to_string())));
2740
2741        db.abort(txn2).unwrap();
2742    }
2743
2744    #[test]
2745    fn test_database_query_builder() {
2746        let dir = tempdir().unwrap();
2747        let db = Database::open(dir.path()).unwrap();
2748
2749        // Insert test data
2750        let txn = db.begin_transaction().unwrap();
2751        db.put_path(txn, "docs/1/title", b"Hello").unwrap();
2752        db.put_path(txn, "docs/1/content", b"World").unwrap();
2753        db.put_path(txn, "docs/2/title", b"Foo").unwrap();
2754        db.put_path(txn, "docs/2/content", b"Bar").unwrap();
2755        db.commit(txn).unwrap();
2756
2757        // Query with limit
2758        let txn2 = db.begin_transaction().unwrap();
2759        let result = db.query(txn2, "docs/").limit(1).execute().unwrap();
2760
2761        assert_eq!(result.rows.len(), 1);
2762        db.abort(txn2).unwrap();
2763    }
2764
2765    #[test]
2766    fn test_database_crash_recovery() {
2767        let dir = tempdir().unwrap();
2768
2769        // Write and commit
2770        {
2771            // Use open_without_lock for crash simulation tests
2772            let db = Database::open_without_lock(dir.path()).unwrap();
2773            // Set sync mode to FULL to ensure data is persisted before "crash"
2774            db.storage.set_sync_mode(2);
2775            let txn = db.begin_transaction().unwrap();
2776            db.put(txn, b"persist", b"this").unwrap();
2777            db.commit(txn).unwrap();
2778            // Don't call shutdown - simulate crash
2779            std::mem::forget(db);
2780        }
2781
2782        // Reopen - should recover
2783        {
2784            let db = Database::open_without_lock(dir.path()).unwrap();
2785            let txn = db.begin_transaction().unwrap();
2786            let val = db.get(txn, b"persist").unwrap();
2787            assert_eq!(val, Some(b"this".to_vec()));
2788            db.abort(txn).unwrap();
2789        }
2790    }
2791
2792    #[test]
2793    fn test_columnar_row_view_zero_alloc() {
2794        use sochdb_core::columnar::TypedColumn;
2795
2796        // Build a small columnar result: 3 rows × 2 columns (id: i64, name: text)
2797        let mut id_col = TypedColumn::new_int64();
2798        id_col.push_i64(Some(1));
2799        id_col.push_i64(Some(2));
2800        id_col.push_i64(Some(3));
2801
2802        let mut name_col = TypedColumn::new_text();
2803        name_col.push_text(Some("Alice"));
2804        name_col.push_text(Some("Bob"));
2805        name_col.push_text(None); // NULL
2806
2807        let cr = ColumnarQueryResult {
2808            columns: vec!["id".to_string(), "name".to_string()],
2809            data: vec![id_col, name_col],
2810            row_count: 3,
2811            bytes_read: 0,
2812        };
2813
2814        // row_view access — zero HashMap allocation
2815        let row0 = cr.row_view(0).unwrap();
2816        assert_eq!(row0.get("id"), Some(SochValue::Int(1)));
2817        assert_eq!(row0.get("name"), Some(SochValue::Text("Alice".to_string())));
2818        assert_eq!(row0.get("nonexistent"), None);
2819
2820        let row2 = cr.row_view(2).unwrap();
2821        assert_eq!(row2.get("id"), Some(SochValue::Int(3)));
2822        assert_eq!(row2.get("name"), Some(SochValue::Null));
2823
2824        // Out of bounds
2825        assert!(cr.row_view(3).is_none());
2826
2827        // values() — positional
2828        let vals = row0.values();
2829        assert_eq!(vals.len(), 2);
2830        assert_eq!(vals[0], SochValue::Int(1));
2831
2832        // to_map() — backward compat
2833        let map = row0.to_map();
2834        assert_eq!(map.get("id"), Some(&SochValue::Int(1)));
2835    }
2836
2837    #[test]
2838    fn test_columnar_into_query_result() {
2839        use sochdb_core::columnar::TypedColumn;
2840
2841        let mut score_col = TypedColumn::new_float64();
2842        score_col.push_f64(Some(9.5));
2843        score_col.push_f64(Some(8.2));
2844
2845        let cr = ColumnarQueryResult {
2846            columns: vec!["score".to_string()],
2847            data: vec![score_col],
2848            row_count: 2,
2849            bytes_read: 100,
2850        };
2851
2852        let qr = cr.into_query_result();
2853        assert_eq!(qr.rows.len(), 2);
2854        assert_eq!(qr.rows[0].get("score"), Some(&SochValue::Float(9.5)));
2855        assert_eq!(qr.rows[1].get("score"), Some(&SochValue::Float(8.2)));
2856        assert_eq!(qr.bytes_read, 100);
2857    }
2858}