executor.go 114 KB

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  1. package executor
  2. import (
  3. "fmt"
  4. "math/rand"
  5. "sort"
  6. "strconv"
  7. "strings"
  8. "github.com/danfragoso/pizzasql-next/pkg/analyzer"
  9. "github.com/danfragoso/pizzasql-next/pkg/lexer"
  10. "github.com/danfragoso/pizzasql-next/pkg/parser"
  11. "github.com/danfragoso/pizzasql-next/pkg/storage"
  12. )
  13. // Executor executes SQL statements.
  14. type Executor struct {
  15. schema *storage.SchemaManager
  16. table *storage.TableManager
  17. analyzer *analyzer.Analyzer
  18. catalog *analyzer.Catalog
  19. // Multi-database support
  20. attachedDatabases map[string]*DatabaseConnection // alias -> connection
  21. currentDatabase string // current database alias (default is "main")
  22. // Transaction state
  23. inTransaction bool
  24. savepoints []string // stack of savepoint names
  25. txLog []txLogEntry // transaction log for rollback
  26. // Subquery context for correlated subqueries
  27. outerRow storage.Row
  28. // Per-query cache for non-correlated IN (SELECT ...) subquery results.
  29. // Keyed by subquery AST pointer; valid for one top-level Execute call.
  30. subqueryCache map[*parser.SelectStmt]*Result
  31. // In-memory view registry: view name (lowercase) → SELECT AST.
  32. views map[string]*parser.SelectStmt
  33. }
  34. // DatabaseConnection represents an attached database.
  35. type DatabaseConnection struct {
  36. Alias string
  37. Path string // Database path or identifier
  38. Schema *storage.SchemaManager
  39. Table *storage.TableManager
  40. }
  41. // txLogEntry represents a transaction log entry for rollback support.
  42. type txLogEntry struct {
  43. operation string // "INSERT", "UPDATE", "DELETE"
  44. table string
  45. key string
  46. oldData storage.Row // for UPDATE/DELETE, the original row data
  47. }
  48. // New creates a new executor.
  49. func New(schema *storage.SchemaManager, table *storage.TableManager) *Executor {
  50. catalog := analyzer.NewCatalog()
  51. executor := &Executor{
  52. schema: schema,
  53. table: table,
  54. analyzer: analyzer.New(catalog),
  55. catalog: catalog,
  56. attachedDatabases: make(map[string]*DatabaseConnection),
  57. currentDatabase: "main",
  58. views: make(map[string]*parser.SelectStmt),
  59. }
  60. // Register the main database
  61. executor.attachedDatabases["main"] = &DatabaseConnection{
  62. Alias: "main",
  63. Path: schema.GetDatabaseName(),
  64. Schema: schema,
  65. Table: table,
  66. }
  67. return executor
  68. }
  69. // SyncCatalog synchronizes the analyzer catalog with the storage schema.
  70. func (e *Executor) SyncCatalog() error {
  71. tables, err := e.schema.ListTables()
  72. if err != nil {
  73. return err
  74. }
  75. for _, tableName := range tables {
  76. schema, err := e.schema.GetSchema(tableName)
  77. if err != nil {
  78. continue
  79. }
  80. // Drop table from catalog if it exists, then recreate with updated schema
  81. e.catalog.DropTable(tableName)
  82. e.catalog.CreateTable(schema.ToAnalyzerTableInfo())
  83. }
  84. return nil
  85. }
  86. // Execute executes a SQL statement.
  87. func (e *Executor) Execute(stmt parser.Statement) (*Result, error) {
  88. e.subqueryCache = make(map[*parser.SelectStmt]*Result)
  89. defer func() { e.subqueryCache = nil }()
  90. // PRAGMA doesn't need analysis
  91. if pragma, ok := stmt.(*parser.PragmaStmt); ok {
  92. return e.executePragma(pragma)
  93. }
  94. // EXPLAIN doesn't need analysis
  95. if explain, ok := stmt.(*parser.ExplainStmt); ok {
  96. return e.executeExplain(explain)
  97. }
  98. // Transaction statements don't need analysis
  99. switch s := stmt.(type) {
  100. case *parser.BeginStmt:
  101. return e.executeBegin(s)
  102. case *parser.CommitStmt:
  103. return e.executeCommit(s)
  104. case *parser.RollbackStmt:
  105. return e.executeRollback(s)
  106. case *parser.SavepointStmt:
  107. return e.executeSavepoint(s)
  108. case *parser.ReleaseStmt:
  109. return e.executeRelease(s)
  110. case *parser.CreateIndexStmt:
  111. return e.executeCreateIndex(s)
  112. case *parser.DropIndexStmt:
  113. return e.executeDropIndex(s)
  114. case *parser.CreateViewStmt:
  115. return e.executeCreateView(s)
  116. case *parser.DropViewStmt:
  117. return e.executeDropView(s)
  118. case *parser.AttachStmt:
  119. return e.executeAttach(s)
  120. case *parser.DetachStmt:
  121. return e.executeDetach(s)
  122. }
  123. // Analyze first — create a fresh analyzer per call so concurrent requests
  124. // don't share mutable scope state (e.analyzer.scope would race otherwise).
  125. a := analyzer.New(e.catalog)
  126. if err := a.Analyze(stmt); err != nil {
  127. return nil, err
  128. }
  129. switch s := stmt.(type) {
  130. case *parser.SelectStmt:
  131. return e.executeSelect(s)
  132. case *parser.InsertStmt:
  133. return e.executeInsert(s)
  134. case *parser.UpdateStmt:
  135. return e.executeUpdate(s)
  136. case *parser.DeleteStmt:
  137. return e.executeDelete(s)
  138. case *parser.CreateTableStmt:
  139. return e.executeCreateTable(s)
  140. case *parser.DropTableStmt:
  141. return e.executeDropTable(s)
  142. case *parser.CreateIndexStmt:
  143. return e.executeCreateIndex(s)
  144. case *parser.DropIndexStmt:
  145. return e.executeDropIndex(s)
  146. case *parser.AlterTableStmt:
  147. return e.executeAlterTable(s)
  148. default:
  149. return nil, fmt.Errorf("unsupported statement type: %T", stmt)
  150. }
  151. }
  152. // executeSelect executes a SELECT statement (or compound SELECT).
  153. func (e *Executor) executeSelect(stmt *parser.SelectStmt) (*Result, error) {
  154. if stmt.Compound != nil {
  155. return e.executeCompound(stmt.Compound)
  156. }
  157. if len(stmt.From) == 0 {
  158. // SELECT without FROM (e.g., SELECT 1+1)
  159. return e.executeSelectExpr(stmt)
  160. }
  161. // Check if FROM clause is a subquery (derived table)
  162. if stmt.From[0].Subquery != nil {
  163. return e.executeSelectFromSubquery(stmt)
  164. }
  165. tableName := stmt.From[0].Name
  166. // Transparently expand view references as derived-table subqueries.
  167. if viewDef, ok := e.views[strings.ToLower(tableName)]; ok {
  168. alias := stmt.From[0].Alias
  169. if alias == "" {
  170. alias = tableName
  171. }
  172. modifiedStmt := *stmt
  173. modifiedFrom := make([]parser.TableRef, len(stmt.From))
  174. copy(modifiedFrom, stmt.From)
  175. modifiedFrom[0] = parser.TableRef{Subquery: viewDef, Alias: alias}
  176. modifiedStmt.From = modifiedFrom
  177. return e.executeSelectFromSubquery(&modifiedStmt)
  178. }
  179. schema, err := e.schema.GetSchema(tableName)
  180. if err != nil {
  181. return nil, err
  182. }
  183. // Multi-table FROM (comma-separated implicit cross join): collect and cross join all tables,
  184. // then apply WHERE after. Don't push WHERE down here — conditions reference multiple tables.
  185. isMultiTable := len(stmt.From) > 1 && stmt.From[0].Join == nil
  186. // Optimize constant WHERE clauses
  187. var constantWhereResult *bool
  188. if stmt.Where != nil && !isMultiTable {
  189. // Check if WHERE clause is a constant expression (doesn't reference any columns)
  190. refs := collectColumnRefs(stmt.Where)
  191. if len(refs) == 0 {
  192. // Evaluate the constant expression
  193. val, err := e.evalExpr(stmt.Where, nil)
  194. if err == nil {
  195. result := toBool(val)
  196. constantWhereResult = &result
  197. }
  198. }
  199. }
  200. // If WHERE is constant false, check if we have aggregates first
  201. if constantWhereResult != nil && !*constantWhereResult {
  202. // If query has aggregates, we still need to evaluate them on empty row set
  203. if e.hasAggregates(stmt.Columns) {
  204. // Pass empty row set to aggregate evaluation
  205. return e.executeAggregateSelect(stmt, []storage.Row{}, schema)
  206. }
  207. // Non-aggregate query with WHERE false: return empty result
  208. result := NewResult("SELECT")
  209. for i, col := range stmt.Columns {
  210. if col.Alias != "" {
  211. result.AddColumn(col.Alias)
  212. } else if ref, ok := col.Expr.(*parser.ColumnRef); ok {
  213. result.AddColumn(ref.Column)
  214. } else if col.Star {
  215. for _, c := range schema.Columns {
  216. result.AddColumn(c.Name)
  217. }
  218. } else {
  219. result.AddColumn(fmt.Sprintf("column%d", i+1))
  220. }
  221. }
  222. return result, nil
  223. }
  224. // Try to use index for WHERE clause (single-table only)
  225. var rows []storage.Row
  226. usedIndex := false
  227. // If WHERE is constant true, skip it during table scan
  228. effectiveWhere := stmt.Where
  229. if constantWhereResult != nil && *constantWhereResult {
  230. effectiveWhere = nil
  231. }
  232. if effectiveWhere != nil && !isMultiTable {
  233. // Check if we can use an index
  234. colName, colValue, isEquality := e.extractIndexableCondition(stmt.Where)
  235. if isEquality {
  236. // Look for an index on this column
  237. indexes, _ := e.schema.ListTableIndexes(tableName)
  238. for _, idx := range indexes {
  239. if len(idx.Columns) == 1 && strings.EqualFold(idx.Columns[0].Name, colName) {
  240. // Use this index
  241. rows, err = e.table.SelectByIndex(tableName, idx.Name, colValue)
  242. if err == nil {
  243. usedIndex = true
  244. // Normalize rows from index
  245. for i := range rows {
  246. normalizeRowBySchema(rows[i], schema)
  247. }
  248. }
  249. break
  250. }
  251. }
  252. }
  253. }
  254. // Fall back to full table scan if no index used
  255. if !usedIndex {
  256. var filterErr error
  257. var filter func(storage.Row) bool
  258. if effectiveWhere != nil && stmt.From[0].Alias == "" && !isMultiTable {
  259. filter = func(row storage.Row) bool {
  260. val, ferr := e.evalExpr(effectiveWhere, row)
  261. if ferr != nil {
  262. filterErr = ferr
  263. return false
  264. }
  265. return toBool(val)
  266. }
  267. }
  268. rows, err = e.table.Select(tableName, filter)
  269. if filterErr != nil {
  270. return nil, filterErr
  271. }
  272. for _, row := range rows {
  273. normalizeRowBySchema(row, schema)
  274. }
  275. }
  276. if err != nil {
  277. return nil, err
  278. }
  279. // Add table alias to rows if there's an explicit alias
  280. if stmt.From[0].Alias != "" {
  281. for i := range rows {
  282. rows[i] = e.addTableAlias(rows[i], stmt.From[0].Alias)
  283. }
  284. } else if isMultiTable {
  285. // For multi-table cross joins without alias, prefix columns with table name
  286. // so WHERE can distinguish t3.a3 from t7.a7.
  287. for i := range rows {
  288. rows[i] = e.addTableAlias(rows[i], tableName)
  289. }
  290. }
  291. // Apply WHERE for single-table with alias (after alias mapping so alias.col refs work)
  292. if effectiveWhere != nil && stmt.From[0].Alias != "" && !isMultiTable {
  293. var filterErr error
  294. var filtered []storage.Row
  295. for _, row := range rows {
  296. val, ferr := e.evalExpr(effectiveWhere, row)
  297. if ferr != nil {
  298. filterErr = ferr
  299. break
  300. }
  301. if toBool(val) {
  302. filtered = append(filtered, row)
  303. }
  304. }
  305. if filterErr != nil {
  306. return nil, filterErr
  307. }
  308. rows = filtered
  309. }
  310. // Handle explicit JOINs from the first FROM entry (single-table+JOIN path)
  311. if !isMultiTable && len(stmt.From) > 0 && stmt.From[0].Join != nil {
  312. rows, err = e.executeJoins(stmt.From[0], rows)
  313. if err != nil {
  314. return nil, err
  315. }
  316. // Cross-join with any remaining comma-separated FROM entries (mixed JOIN+comma syntax)
  317. for _, tref := range stmt.From[1:] {
  318. rightRows, rerr := e.table.Select(tref.Name, nil)
  319. if rerr != nil {
  320. return nil, rerr
  321. }
  322. rightAlias := tref.Alias
  323. if rightAlias == "" {
  324. rightAlias = tref.Name
  325. }
  326. for i := range rightRows {
  327. rightRows[i] = e.addTableAlias(rightRows[i], rightAlias)
  328. }
  329. var joined []storage.Row
  330. for _, l := range rows {
  331. for _, r := range rightRows {
  332. m := make(storage.Row, len(l)+len(r))
  333. for k, v := range l {
  334. m[k] = v
  335. }
  336. for k, v := range r {
  337. m[k] = v
  338. }
  339. joined = append(joined, m)
  340. }
  341. }
  342. rows = joined
  343. // Handle JOINs within this tref too
  344. if tref.Join != nil {
  345. rows, err = e.executeJoins(tref, rows)
  346. if err != nil {
  347. return nil, err
  348. }
  349. }
  350. }
  351. // Apply WHERE after all cross-joins
  352. if stmt.Where != nil && len(stmt.From) > 1 {
  353. var filtered []storage.Row
  354. for _, row := range rows {
  355. val, _ := e.evalExpr(stmt.Where, row)
  356. if toBool(val) {
  357. filtered = append(filtered, row)
  358. }
  359. }
  360. rows = filtered
  361. }
  362. }
  363. // Handle implicit cross joins (comma-separated FROM tables)
  364. if isMultiTable {
  365. // Build the column-set for each table so we can push WHERE conditions down.
  366. type tableInfo struct {
  367. alias string
  368. name string
  369. colsSet map[string]bool // lower-case column names for this table
  370. }
  371. allTableInfos := make([]tableInfo, len(stmt.From))
  372. for i, tref := range stmt.From {
  373. alias := tref.Alias
  374. if alias == "" {
  375. alias = tref.Name
  376. }
  377. sch, _ := e.schema.GetSchema(tref.Name)
  378. cols := map[string]bool{}
  379. if sch != nil {
  380. for _, c := range sch.Columns {
  381. cols[strings.ToLower(c.Name)] = true
  382. }
  383. }
  384. allTableInfos[i] = tableInfo{alias: alias, name: tref.Name, colsSet: cols}
  385. }
  386. // Split WHERE into AND-clauses and determine which tables each clause touches.
  387. var andClauses []parser.Expr
  388. if stmt.Where != nil {
  389. andClauses = splitANDClauses(stmt.Where)
  390. }
  391. // For each table, collect conditions that reference only its own columns.
  392. tableFilters := make([][]parser.Expr, len(stmt.From))
  393. var crossFilters []parser.Expr
  394. for _, clause := range andClauses {
  395. refs := collectColumnRefs(clause)
  396. ownerIdx := -1
  397. cross := false
  398. for _, ref := range refs {
  399. colLower := strings.ToLower(ref)
  400. found := -1
  401. for i, ti := range allTableInfos {
  402. if ti.colsSet[colLower] {
  403. if found == -1 {
  404. found = i
  405. } else if found != i {
  406. cross = true
  407. break
  408. }
  409. }
  410. }
  411. if cross {
  412. break
  413. }
  414. if found != -1 {
  415. if ownerIdx == -1 {
  416. ownerIdx = found
  417. } else if ownerIdx != found {
  418. cross = true
  419. break
  420. }
  421. }
  422. }
  423. if cross || ownerIdx == -1 {
  424. crossFilters = append(crossFilters, clause)
  425. } else {
  426. tableFilters[ownerIdx] = append(tableFilters[ownerIdx], clause)
  427. }
  428. }
  429. // Build cross-condition adjacency: for each cross filter, record which table indices it touches.
  430. type crossEdge struct{ a, b int }
  431. var crossEdges []crossEdge
  432. for _, clause := range crossFilters {
  433. refs := collectColumnRefs(clause)
  434. touched := map[int]bool{}
  435. for _, ref := range refs {
  436. cl := strings.ToLower(ref)
  437. for j, ti := range allTableInfos {
  438. if ti.colsSet[cl] {
  439. touched[j] = true
  440. }
  441. }
  442. }
  443. idxs := make([]int, 0, len(touched))
  444. for j := range touched {
  445. idxs = append(idxs, j)
  446. }
  447. if len(idxs) == 2 {
  448. crossEdges = append(crossEdges, crossEdge{idxs[0], idxs[1]})
  449. }
  450. }
  451. // Build alias-to-index map for applyWhenSeen.
  452. aliasToIdx := make(map[string]int, len(allTableInfos))
  453. for i, ti := range allTableInfos {
  454. aliasToIdx[strings.ToLower(ti.alias)] = i
  455. }
  456. // Helper: find cross-conditions applicable when seenSet is fully present.
  457. // A condition is applicable only when ALL tables it references are in seenSet.
  458. // For table-qualified refs (e.g. cor0.col2), we check the qualifying alias is seen.
  459. applyWhenSeen := func(seenSet map[int]bool, pending []parser.Expr) (applicable, still []parser.Expr) {
  460. for _, clause := range pending {
  461. tableRefs := collectTableColumnRefs(clause)
  462. ok := true
  463. for _, tr := range tableRefs {
  464. col := strings.ToLower(tr.col)
  465. tbl := strings.ToLower(tr.tbl)
  466. found := false
  467. if tbl != "" {
  468. // Explicit table qualifier — check that qualifying alias is seen.
  469. if idx, exists := aliasToIdx[tbl]; exists && seenSet[idx] {
  470. found = true
  471. }
  472. } else {
  473. // Unqualified — any seen table with this column satisfies it.
  474. for j, tti := range allTableInfos {
  475. if tti.colsSet[col] && seenSet[j] {
  476. found = true
  477. break
  478. }
  479. }
  480. }
  481. if !found {
  482. ok = false
  483. break
  484. }
  485. }
  486. if ok {
  487. applicable = append(applicable, clause)
  488. } else {
  489. still = append(still, clause)
  490. }
  491. }
  492. return
  493. }
  494. // Helper: inline cross-join two row-sets, applying a predicate.
  495. inlineJoin := func(left, right []storage.Row, pred parser.Expr) []storage.Row {
  496. out := make([]storage.Row, 0, len(left))
  497. for _, l := range left {
  498. for _, r := range right {
  499. m := make(storage.Row, len(l)+len(r))
  500. for k, v := range l {
  501. m[k] = v
  502. }
  503. for k, v := range r {
  504. m[k] = v
  505. }
  506. if pred != nil {
  507. val, _ := e.evalExpr(pred, m)
  508. if !toBool(val) {
  509. continue
  510. }
  511. }
  512. out = append(out, m)
  513. }
  514. }
  515. return out
  516. }
  517. // Pre-join connected components of "cross-only" tables (0 single-table filters,
  518. // connected via cross conditions to other cross-only tables).
  519. // This prevents n^k explosions when bare tables are joined last.
  520. crossOnlySet := map[int]bool{}
  521. for i := range stmt.From {
  522. if len(tableFilters[i]) > 0 {
  523. continue
  524. }
  525. for _, ce := range crossEdges {
  526. if ce.a == i || ce.b == i {
  527. crossOnlySet[i] = true
  528. break
  529. }
  530. }
  531. }
  532. // BFS: find connected components among cross-only tables.
  533. compOf := make([]int, len(stmt.From))
  534. for i := range compOf {
  535. compOf[i] = -1
  536. }
  537. nComps := 0
  538. for start := range stmt.From {
  539. if !crossOnlySet[start] || compOf[start] != -1 {
  540. continue
  541. }
  542. queue := []int{start}
  543. compOf[start] = nComps
  544. for len(queue) > 0 {
  545. cur := queue[0]
  546. queue = queue[1:]
  547. for _, ce := range crossEdges {
  548. var nb int = -1
  549. if ce.a == cur && crossOnlySet[ce.b] {
  550. nb = ce.b
  551. } else if ce.b == cur && crossOnlySet[ce.a] {
  552. nb = ce.a
  553. }
  554. if nb >= 0 && compOf[nb] == -1 {
  555. compOf[nb] = nComps
  556. queue = append(queue, nb)
  557. }
  558. }
  559. }
  560. nComps++
  561. }
  562. // Group cross-only tables by component.
  563. compTbls := make([][]int, nComps)
  564. for i, c := range compOf {
  565. if c >= 0 {
  566. compTbls[c] = append(compTbls[c], i)
  567. }
  568. }
  569. // Pre-join each component with ≥2 tables; collect results as virtual units.
  570. type virtualUnit struct {
  571. tableIdxs map[int]bool
  572. rows []storage.Row
  573. }
  574. var virtuals []virtualUnit
  575. preJoined := map[int]bool{} // original table indices consumed into virtuals
  576. remaining := make([]parser.Expr, len(crossFilters))
  577. copy(remaining, crossFilters)
  578. for _, comp := range compTbls {
  579. if len(comp) < 2 {
  580. continue
  581. }
  582. // Pick seed: table with most cross-edges within component.
  583. seed := comp[0]
  584. for _, idx := range comp[1:] {
  585. degIdx, degSeed := 0, 0
  586. for _, ce := range crossEdges {
  587. if ce.a == idx || ce.b == idx {
  588. degIdx++
  589. }
  590. if ce.a == seed || ce.b == seed {
  591. degSeed++
  592. }
  593. }
  594. if degIdx > degSeed {
  595. seed = idx
  596. }
  597. }
  598. // Load seed.
  599. seedRows, rerr := e.table.Select(stmt.From[seed].Name, nil)
  600. if rerr != nil {
  601. return nil, rerr
  602. }
  603. seedSchema, _ := e.schema.GetSchema(stmt.From[seed].Name)
  604. for j := range seedRows {
  605. normalizeRowBySchema(seedRows[j], seedSchema)
  606. seedRows[j] = e.addTableAlias(seedRows[j], allTableInfos[seed].alias)
  607. }
  608. vSeen := map[int]bool{seed: true}
  609. // Greedy within-component join.
  610. compSet := map[int]bool{}
  611. for _, idx := range comp {
  612. compSet[idx] = true
  613. }
  614. for len(vSeen) < len(comp) {
  615. // Pick next table in component with cross-edge to vSeen.
  616. nextC := -1
  617. for _, idx := range comp {
  618. if vSeen[idx] {
  619. continue
  620. }
  621. for _, ce := range crossEdges {
  622. if (ce.a == idx && vSeen[ce.b]) || (ce.b == idx && vSeen[ce.a]) {
  623. nextC = idx
  624. break
  625. }
  626. }
  627. if nextC >= 0 {
  628. break
  629. }
  630. }
  631. if nextC < 0 {
  632. for _, idx := range comp {
  633. if !vSeen[idx] {
  634. nextC = idx
  635. break
  636. }
  637. }
  638. }
  639. nextRows, rerr := e.table.Select(stmt.From[nextC].Name, nil)
  640. if rerr != nil {
  641. return nil, rerr
  642. }
  643. nextSchema, _ := e.schema.GetSchema(stmt.From[nextC].Name)
  644. for j := range nextRows {
  645. normalizeRowBySchema(nextRows[j], nextSchema)
  646. nextRows[j] = e.addTableAlias(nextRows[j], allTableInfos[nextC].alias)
  647. }
  648. vSeen[nextC] = true
  649. appl, still := applyWhenSeen(vSeen, remaining)
  650. remaining = still
  651. var pred parser.Expr
  652. if len(appl) > 0 {
  653. pred = combineAND(appl)
  654. }
  655. seedRows = inlineJoin(seedRows, nextRows, pred)
  656. }
  657. virtuals = append(virtuals, virtualUnit{tableIdxs: vSeen, rows: seedRows})
  658. for idx := range vSeen {
  659. preJoined[idx] = true
  660. }
  661. }
  662. // Build greedy order for non-pre-joined tables.
  663. // Score: single-table filter count + 1000 × cross-edges to already-joined.
  664. orderNonPJ := make([]int, 0, len(stmt.From)-len(preJoined))
  665. inOrderNPJ := make([]bool, len(stmt.From))
  666. best := -1
  667. for j := range stmt.From {
  668. if preJoined[j] {
  669. continue
  670. }
  671. if best < 0 || len(tableFilters[j]) > len(tableFilters[best]) {
  672. best = j
  673. }
  674. }
  675. if best >= 0 {
  676. orderNonPJ = append(orderNonPJ, best)
  677. inOrderNPJ[best] = true
  678. }
  679. for len(orderNonPJ)+len(preJoined) < len(stmt.From) {
  680. joined := map[int]bool{}
  681. for _, idx := range orderNonPJ {
  682. joined[idx] = true
  683. }
  684. nextIdx := -1
  685. nextScore := -1
  686. for j := range stmt.From {
  687. if inOrderNPJ[j] || preJoined[j] {
  688. continue
  689. }
  690. score := len(tableFilters[j])
  691. for _, ce := range crossEdges {
  692. if (ce.a == j && joined[ce.b]) || (ce.b == j && joined[ce.a]) {
  693. score += 1000
  694. }
  695. }
  696. if score > nextScore {
  697. nextScore = score
  698. nextIdx = j
  699. }
  700. }
  701. if nextIdx < 0 {
  702. for j := range stmt.From {
  703. if !inOrderNPJ[j] && !preJoined[j] {
  704. nextIdx = j
  705. break
  706. }
  707. }
  708. }
  709. if nextIdx >= 0 {
  710. orderNonPJ = append(orderNonPJ, nextIdx)
  711. inOrderNPJ[nextIdx] = true
  712. }
  713. }
  714. // Load the initial rows for the first non-pre-joined table (or use the already-loaded rows).
  715. seenTables := map[int]bool{}
  716. if len(orderNonPJ) > 0 {
  717. first := orderNonPJ[0]
  718. if first != 0 {
  719. rows, err = e.table.Select(stmt.From[first].Name, nil)
  720. if err != nil {
  721. return nil, err
  722. }
  723. firstSchema, _ := e.schema.GetSchema(stmt.From[first].Name)
  724. for i := range rows {
  725. normalizeRowBySchema(rows[i], firstSchema)
  726. rows[i] = e.addTableAlias(rows[i], allTableInfos[first].alias)
  727. }
  728. }
  729. if len(tableFilters[first]) > 0 {
  730. pred := combineAND(tableFilters[first])
  731. var filtered []storage.Row
  732. for _, row := range rows {
  733. val, _ := e.evalExpr(pred, row)
  734. if toBool(val) {
  735. filtered = append(filtered, row)
  736. }
  737. }
  738. rows = filtered
  739. }
  740. seenTables[first] = true
  741. // Join remaining non-pre-joined tables.
  742. for _, idx := range orderNonPJ[1:] {
  743. ti := allTableInfos[idx]
  744. rightRows, rerr := e.table.Select(stmt.From[idx].Name, nil)
  745. if rerr != nil {
  746. return nil, rerr
  747. }
  748. rightSchema, _ := e.schema.GetSchema(stmt.From[idx].Name)
  749. for j := range rightRows {
  750. normalizeRowBySchema(rightRows[j], rightSchema)
  751. rightRows[j] = e.addTableAlias(rightRows[j], ti.alias)
  752. }
  753. if len(tableFilters[idx]) > 0 {
  754. pred := combineAND(tableFilters[idx])
  755. var filtered []storage.Row
  756. for _, row := range rightRows {
  757. val, _ := e.evalExpr(pred, row)
  758. if toBool(val) {
  759. filtered = append(filtered, row)
  760. }
  761. }
  762. rightRows = filtered
  763. }
  764. seenTables[idx] = true
  765. appl, still := applyWhenSeen(seenTables, remaining)
  766. remaining = still
  767. var pred parser.Expr
  768. if len(appl) > 0 {
  769. pred = combineAND(appl)
  770. }
  771. rows = inlineJoin(rows, rightRows, pred)
  772. }
  773. } else {
  774. // All tables were pre-joined; start with empty placeholder.
  775. rows = []storage.Row{{}}
  776. }
  777. // Integrate virtual (pre-joined) units into the result.
  778. for _, vu := range virtuals {
  779. for idx := range vu.tableIdxs {
  780. seenTables[idx] = true
  781. }
  782. appl, still := applyWhenSeen(seenTables, remaining)
  783. remaining = still
  784. var pred parser.Expr
  785. if len(appl) > 0 {
  786. pred = combineAND(appl)
  787. }
  788. rows = inlineJoin(rows, vu.rows, pred)
  789. }
  790. // Apply any remaining conditions (shouldn't normally happen).
  791. if len(remaining) > 0 {
  792. pred := combineAND(remaining)
  793. var filtered []storage.Row
  794. for _, row := range rows {
  795. val, _ := e.evalExpr(pred, row)
  796. if toBool(val) {
  797. filtered = append(filtered, row)
  798. }
  799. }
  800. rows = filtered
  801. }
  802. // Also cross-join with any JOIN chains within FROM entries (mixed comma+JOIN syntax).
  803. // We cannot use executeJoins here because the left rows already have qualified keys
  804. // from the isMultiTable cross-join; re-aliasing the left side would corrupt them.
  805. for _, tref := range stmt.From {
  806. join := tref.Join
  807. for join != nil && join.Table != nil {
  808. rightRef := join.Table
  809. rightRows, rerr := e.table.Select(rightRef.Name, nil)
  810. if rerr != nil {
  811. return nil, rerr
  812. }
  813. rightAlias := rightRef.Alias
  814. if rightAlias == "" {
  815. rightAlias = rightRef.Name
  816. }
  817. rightSchema, _ := e.schema.GetSchema(rightRef.Name)
  818. for j := range rightRows {
  819. normalizeRowBySchema(rightRows[j], rightSchema)
  820. rightRows[j] = e.addTableAlias(rightRows[j], rightAlias)
  821. }
  822. var joined []storage.Row
  823. for _, l := range rows {
  824. for _, r := range rightRows {
  825. m := make(storage.Row, len(l)+len(r))
  826. for k, v := range l {
  827. m[k] = v
  828. }
  829. for k, v := range r {
  830. if _, exists := m[k]; !exists {
  831. m[k] = v
  832. } else if strings.Contains(k, ".") {
  833. m[k] = v // qualified keys from right always win
  834. }
  835. }
  836. if join.Condition != nil {
  837. val, _ := e.evalExpr(join.Condition, m)
  838. if !toBool(val) {
  839. continue
  840. }
  841. }
  842. joined = append(joined, m)
  843. }
  844. }
  845. rows = joined
  846. join = rightRef.Join
  847. }
  848. }
  849. }
  850. // Handle GROUP BY
  851. if len(stmt.GroupBy) > 0 {
  852. return e.executeGroupBy(stmt, rows, schema)
  853. }
  854. // Check for aggregate functions without GROUP BY
  855. hasAggregate := e.hasAggregates(stmt.Columns)
  856. if hasAggregate {
  857. return e.executeAggregateSelect(stmt, rows, schema)
  858. }
  859. // Apply ORDER BY
  860. if len(stmt.OrderBy) > 0 {
  861. e.sortRows(rows, resolveOrderByPositions(stmt.OrderBy, stmt.Columns))
  862. }
  863. // Apply LIMIT/OFFSET
  864. if stmt.Offset != nil {
  865. offset := e.evalIntExpr(stmt.Offset)
  866. if offset < len(rows) {
  867. rows = rows[offset:]
  868. } else {
  869. rows = nil
  870. }
  871. }
  872. if stmt.Limit != nil {
  873. limit := e.evalIntExpr(stmt.Limit)
  874. if limit < len(rows) {
  875. rows = rows[:limit]
  876. }
  877. }
  878. // Build result
  879. result := NewResult("SELECT")
  880. // For multi-table or JOIN queries, collect all table refs for SELECT * expansion.
  881. hasJoin := len(stmt.From) > 0 && stmt.From[0].Join != nil
  882. allTableRefs := collectAllTableRefs(stmt.From)
  883. // Determine columns
  884. for i, col := range stmt.Columns {
  885. if col.Alias != "" {
  886. result.AddColumn(col.Alias)
  887. } else if ref, ok := col.Expr.(*parser.ColumnRef); ok {
  888. result.AddColumn(ref.Column)
  889. } else if col.Star {
  890. if isMultiTable || hasJoin {
  891. // Add columns from ALL joined tables in order
  892. for _, tref := range allTableRefs {
  893. sch, _ := e.schema.GetSchema(tref.Name)
  894. if sch != nil {
  895. for _, c := range sch.Columns {
  896. result.AddColumn(c.Name)
  897. }
  898. }
  899. }
  900. } else {
  901. // Handle SELECT * - add all columns from schema
  902. for _, c := range schema.Columns {
  903. result.AddColumn(c.Name)
  904. }
  905. }
  906. } else {
  907. result.AddColumn(fmt.Sprintf("column%d", i+1))
  908. }
  909. }
  910. // Add rows - evaluate each select expression
  911. for _, row := range rows {
  912. values := make([]interface{}, 0)
  913. for _, col := range stmt.Columns {
  914. if col.Star {
  915. if isMultiTable || hasJoin {
  916. // For multi-table SELECT *, extract columns using qualified names
  917. for _, tref := range allTableRefs {
  918. sch, _ := e.schema.GetSchema(tref.Name)
  919. if sch != nil {
  920. for _, c := range sch.Columns {
  921. qualKey := tref.Alias + "." + c.Name
  922. val, ok := row[qualKey]
  923. if !ok {
  924. val = row[c.Name]
  925. }
  926. values = append(values, val)
  927. }
  928. }
  929. }
  930. } else {
  931. // For SELECT *, add all columns in order
  932. for _, c := range schema.Columns {
  933. if storage.IsRowIDColumn(c.Name) {
  934. values = append(values, row["_rowid_"])
  935. } else {
  936. values = append(values, row[c.Name])
  937. }
  938. }
  939. }
  940. } else {
  941. // Evaluate the expression
  942. val, err := e.evalExpr(col.Expr, row)
  943. if err != nil {
  944. return nil, err
  945. }
  946. values = append(values, val)
  947. }
  948. }
  949. result.AddRow(values...)
  950. }
  951. // Apply DISTINCT if specified
  952. if stmt.Distinct {
  953. result.Rows = e.applyDistinct(result.Rows)
  954. }
  955. return result, nil
  956. }
  957. // executeCompound executes a compound SELECT (UNION / UNION ALL / INTERSECT / EXCEPT).
  958. func (e *Executor) executeCompound(c *parser.CompoundSelect) (*Result, error) {
  959. left, err := e.executeSelect(c.Left)
  960. if err != nil {
  961. return nil, err
  962. }
  963. right, err := e.executeSelect(c.Right)
  964. if err != nil {
  965. return nil, err
  966. }
  967. rowKey := func(row []interface{}) string {
  968. parts := make([]string, len(row))
  969. for i, v := range row {
  970. if v == nil {
  971. parts[i] = "\x00NULL"
  972. } else {
  973. parts[i] = fmt.Sprintf("%v", v)
  974. }
  975. }
  976. return strings.Join(parts, "\x01")
  977. }
  978. result := NewResult("SELECT")
  979. for _, col := range left.Columns {
  980. result.AddColumn(col)
  981. }
  982. switch c.Op {
  983. case parser.SetOpUnion:
  984. seen := map[string]bool{}
  985. for _, row := range left.Rows {
  986. k := rowKey(row)
  987. if !seen[k] {
  988. seen[k] = true
  989. result.AddRow(row...)
  990. }
  991. }
  992. for _, row := range right.Rows {
  993. k := rowKey(row)
  994. if !seen[k] {
  995. seen[k] = true
  996. result.AddRow(row...)
  997. }
  998. }
  999. case parser.SetOpUnionAll:
  1000. for _, row := range left.Rows {
  1001. result.AddRow(row...)
  1002. }
  1003. for _, row := range right.Rows {
  1004. result.AddRow(row...)
  1005. }
  1006. case parser.SetOpIntersect:
  1007. rightSet := map[string]bool{}
  1008. for _, row := range right.Rows {
  1009. rightSet[rowKey(row)] = true
  1010. }
  1011. seen := map[string]bool{}
  1012. for _, row := range left.Rows {
  1013. k := rowKey(row)
  1014. if rightSet[k] && !seen[k] {
  1015. seen[k] = true
  1016. result.AddRow(row...)
  1017. }
  1018. }
  1019. case parser.SetOpExcept:
  1020. rightSet := map[string]bool{}
  1021. for _, row := range right.Rows {
  1022. rightSet[rowKey(row)] = true
  1023. }
  1024. seen := map[string]bool{}
  1025. for _, row := range left.Rows {
  1026. k := rowKey(row)
  1027. if !rightSet[k] && !seen[k] {
  1028. seen[k] = true
  1029. result.AddRow(row...)
  1030. }
  1031. }
  1032. }
  1033. // Apply compound-level ORDER BY / LIMIT / OFFSET if present.
  1034. if len(c.OrderBy) > 0 {
  1035. e.sortResultRows(result, c.OrderBy, nil, nil)
  1036. }
  1037. if c.Limit != nil {
  1038. limitVal, err := e.evalExpr(c.Limit, nil)
  1039. if err == nil {
  1040. limit := int(toFloat(limitVal))
  1041. if limit < len(result.Rows) {
  1042. result.Rows = result.Rows[:limit]
  1043. }
  1044. }
  1045. }
  1046. if c.Offset != nil {
  1047. offsetVal, err := e.evalExpr(c.Offset, nil)
  1048. if err == nil {
  1049. offset := int(toFloat(offsetVal))
  1050. if offset >= len(result.Rows) {
  1051. result.Rows = nil
  1052. } else if offset > 0 {
  1053. result.Rows = result.Rows[offset:]
  1054. }
  1055. }
  1056. }
  1057. return result, nil
  1058. }
  1059. // executeSelectExpr executes a SELECT without FROM.
  1060. func (e *Executor) executeSelectExpr(stmt *parser.SelectStmt) (*Result, error) {
  1061. // If any column contains an aggregate, treat as single-group aggregate over one implicit row.
  1062. if e.hasAggregates(stmt.Columns) {
  1063. return e.executeAggregateSelect(stmt, []storage.Row{{}}, nil)
  1064. }
  1065. result := NewResult("SELECT")
  1066. // Determine columns
  1067. for i, col := range stmt.Columns {
  1068. if col.Alias != "" {
  1069. result.AddColumn(col.Alias)
  1070. } else {
  1071. result.AddColumn(fmt.Sprintf("column%d", i+1))
  1072. }
  1073. }
  1074. // Evaluate expressions
  1075. values := make([]interface{}, len(stmt.Columns))
  1076. for i, col := range stmt.Columns {
  1077. val, err := e.evalExpr(col.Expr, nil)
  1078. if err != nil {
  1079. return nil, err
  1080. }
  1081. values[i] = val
  1082. }
  1083. result.AddRow(values...)
  1084. return result, nil
  1085. }
  1086. // executeSelectFromSubquery executes a SELECT with a subquery in FROM clause.
  1087. func (e *Executor) executeSelectFromSubquery(stmt *parser.SelectStmt) (*Result, error) {
  1088. // Execute the subquery to get the derived table
  1089. subqueryResult, err := e.executeSelect(stmt.From[0].Subquery)
  1090. if err != nil {
  1091. return nil, fmt.Errorf("subquery error: %w", err)
  1092. }
  1093. // Convert subquery result to rows for further processing
  1094. derivedRows := make([]storage.Row, 0, subqueryResult.RowCount)
  1095. for _, rowValues := range subqueryResult.Rows {
  1096. row := make(storage.Row)
  1097. for i, col := range subqueryResult.Columns {
  1098. row[col] = rowValues[i]
  1099. }
  1100. derivedRows = append(derivedRows, row)
  1101. }
  1102. // Handle JOINs if present
  1103. if stmt.From[0].Join != nil {
  1104. derivedRows, err = e.executeJoin(stmt.From[0], derivedRows)
  1105. if err != nil {
  1106. return nil, err
  1107. }
  1108. }
  1109. // Apply WHERE clause on derived table
  1110. if stmt.Where != nil {
  1111. filteredRows := make([]storage.Row, 0)
  1112. for _, row := range derivedRows {
  1113. val, err := e.evalExpr(stmt.Where, row)
  1114. if err != nil {
  1115. continue
  1116. }
  1117. if toBool(val) {
  1118. filteredRows = append(filteredRows, row)
  1119. }
  1120. }
  1121. derivedRows = filteredRows
  1122. }
  1123. // Handle GROUP BY
  1124. if len(stmt.GroupBy) > 0 {
  1125. // Create a temporary schema from subquery columns
  1126. tempSchema := &storage.Schema{
  1127. Name: "derived",
  1128. Columns: make([]storage.Column, len(subqueryResult.Columns)),
  1129. }
  1130. for i, col := range subqueryResult.Columns {
  1131. tempSchema.Columns[i] = storage.Column{
  1132. Name: col,
  1133. Type: "ANY",
  1134. }
  1135. }
  1136. return e.executeGroupBy(stmt, derivedRows, tempSchema)
  1137. }
  1138. // Check for aggregate functions without GROUP BY
  1139. hasAggregate := e.hasAggregates(stmt.Columns)
  1140. if hasAggregate {
  1141. tempSchema := &storage.Schema{
  1142. Name: "derived",
  1143. Columns: make([]storage.Column, len(subqueryResult.Columns)),
  1144. }
  1145. for i, col := range subqueryResult.Columns {
  1146. tempSchema.Columns[i] = storage.Column{
  1147. Name: col,
  1148. Type: "ANY",
  1149. }
  1150. }
  1151. return e.executeAggregateSelect(stmt, derivedRows, tempSchema)
  1152. }
  1153. // Apply ORDER BY
  1154. if len(stmt.OrderBy) > 0 {
  1155. e.sortRows(derivedRows, resolveOrderByPositions(stmt.OrderBy, stmt.Columns))
  1156. }
  1157. // Apply LIMIT/OFFSET
  1158. if stmt.Offset != nil {
  1159. offset := e.evalIntExpr(stmt.Offset)
  1160. if offset < len(derivedRows) {
  1161. derivedRows = derivedRows[offset:]
  1162. } else {
  1163. derivedRows = nil
  1164. }
  1165. }
  1166. if stmt.Limit != nil {
  1167. limit := e.evalIntExpr(stmt.Limit)
  1168. if limit < len(derivedRows) {
  1169. derivedRows = derivedRows[:limit]
  1170. }
  1171. }
  1172. // Build result
  1173. result := NewResult("SELECT")
  1174. // Determine output columns
  1175. if stmt.Columns[0].Star {
  1176. // SELECT * from derived table
  1177. for _, col := range subqueryResult.Columns {
  1178. result.AddColumn(col)
  1179. }
  1180. } else {
  1181. // Specific columns
  1182. for _, col := range stmt.Columns {
  1183. if col.Alias != "" {
  1184. result.AddColumn(col.Alias)
  1185. } else if colRef, ok := col.Expr.(*parser.ColumnRef); ok {
  1186. result.AddColumn(colRef.Column)
  1187. } else {
  1188. result.AddColumn("column")
  1189. }
  1190. }
  1191. }
  1192. // Add rows
  1193. for _, row := range derivedRows {
  1194. if stmt.Columns[0].Star {
  1195. // SELECT * - use all columns
  1196. values := make([]interface{}, len(subqueryResult.Columns))
  1197. for i, col := range subqueryResult.Columns {
  1198. values[i] = row[col]
  1199. }
  1200. result.AddRow(values...)
  1201. } else {
  1202. // Specific columns - evaluate expressions
  1203. values := make([]interface{}, len(stmt.Columns))
  1204. for i, col := range stmt.Columns {
  1205. val, err := e.evalExpr(col.Expr, row)
  1206. if err != nil {
  1207. return nil, err
  1208. }
  1209. values[i] = val
  1210. }
  1211. result.AddRow(values...)
  1212. }
  1213. }
  1214. return result, nil
  1215. }
  1216. // executeAggregateSelect executes a SELECT with aggregate functions.
  1217. func (e *Executor) executeAggregateSelect(stmt *parser.SelectStmt, rows []storage.Row, schema *storage.Schema) (*Result, error) {
  1218. result := NewResult("SELECT")
  1219. // Determine columns and evaluate aggregates
  1220. for i, col := range stmt.Columns {
  1221. if col.Alias != "" {
  1222. result.AddColumn(col.Alias)
  1223. } else if col.Star {
  1224. result.AddColumn("*")
  1225. } else {
  1226. result.AddColumn(fmt.Sprintf("column%d", i+1))
  1227. }
  1228. }
  1229. // Calculate values
  1230. values := make([]interface{}, len(stmt.Columns))
  1231. for i, col := range stmt.Columns {
  1232. val, err := e.evalAggregateExpr(col.Expr, rows)
  1233. if err != nil {
  1234. return nil, err
  1235. }
  1236. values[i] = val
  1237. }
  1238. result.AddRow(values...)
  1239. return result, nil
  1240. }
  1241. // executeGroupBy executes a GROUP BY query.
  1242. func (e *Executor) executeGroupBy(stmt *parser.SelectStmt, rows []storage.Row, schema *storage.Schema) (*Result, error) {
  1243. // Group rows
  1244. groups := make(map[string][]storage.Row)
  1245. for _, row := range rows {
  1246. key := e.buildGroupKey(stmt.GroupBy, row)
  1247. groups[key] = append(groups[key], row)
  1248. }
  1249. result := NewResult("SELECT")
  1250. // Expand SELECT * if present
  1251. expandedColumns := make([]parser.SelectColumn, 0)
  1252. for _, col := range stmt.Columns {
  1253. if col.Star {
  1254. // Expand * to all columns from schema
  1255. for _, c := range schema.Columns {
  1256. expandedColumns = append(expandedColumns, parser.SelectColumn{
  1257. Expr: &parser.ColumnRef{Column: c.Name},
  1258. })
  1259. }
  1260. } else {
  1261. expandedColumns = append(expandedColumns, col)
  1262. }
  1263. }
  1264. // Determine columns
  1265. columnNames := make([]string, len(expandedColumns))
  1266. for i, col := range expandedColumns {
  1267. if col.Alias != "" {
  1268. columnNames[i] = col.Alias
  1269. result.AddColumn(col.Alias)
  1270. } else if ref, ok := col.Expr.(*parser.ColumnRef); ok {
  1271. columnNames[i] = ref.Column
  1272. result.AddColumn(ref.Column)
  1273. } else {
  1274. columnNames[i] = fmt.Sprintf("column%d", i+1)
  1275. result.AddColumn(columnNames[i])
  1276. }
  1277. }
  1278. // Process each group
  1279. for _, groupRows := range groups {
  1280. // Apply HAVING
  1281. if stmt.Having != nil {
  1282. val, err := e.evalAggregateExpr(stmt.Having, groupRows)
  1283. if err != nil || val == nil || !toBool(val) {
  1284. continue
  1285. }
  1286. }
  1287. values := make([]interface{}, len(expandedColumns))
  1288. for i, col := range expandedColumns {
  1289. if e.isAggregate(col.Expr) {
  1290. val, err := e.evalAggregateExpr(col.Expr, groupRows)
  1291. if err != nil {
  1292. return nil, err
  1293. }
  1294. values[i] = val
  1295. } else {
  1296. // Use first row's value for non-aggregate columns
  1297. val, err := e.evalExpr(col.Expr, groupRows[0])
  1298. if err != nil {
  1299. return nil, err
  1300. }
  1301. values[i] = val
  1302. }
  1303. }
  1304. result.AddRow(values...)
  1305. }
  1306. // Apply DISTINCT
  1307. if stmt.Distinct {
  1308. result.Rows = e.applyDistinct(result.Rows)
  1309. }
  1310. // Apply ORDER BY
  1311. if len(stmt.OrderBy) > 0 {
  1312. e.sortResultRows(result, stmt.OrderBy, expandedColumns, columnNames)
  1313. }
  1314. // Apply LIMIT/OFFSET
  1315. if stmt.Offset != nil {
  1316. offset := e.evalIntExpr(stmt.Offset)
  1317. if offset < len(result.Rows) {
  1318. result.Rows = result.Rows[offset:]
  1319. } else {
  1320. result.Rows = nil
  1321. }
  1322. result.RowCount = len(result.Rows)
  1323. }
  1324. if stmt.Limit != nil {
  1325. limit := e.evalIntExpr(stmt.Limit)
  1326. if limit < len(result.Rows) {
  1327. result.Rows = result.Rows[:limit]
  1328. }
  1329. result.RowCount = len(result.Rows)
  1330. }
  1331. return result, nil
  1332. }
  1333. // executeJoins recursively processes all JOIN clauses in a table reference.
  1334. func (e *Executor) executeJoins(tableRef parser.TableRef, leftRows []storage.Row) ([]storage.Row, error) {
  1335. if tableRef.Join == nil || tableRef.Join.Table == nil {
  1336. return leftRows, nil
  1337. }
  1338. // Get the right table name and its data
  1339. rightTableRef := tableRef.Join.Table
  1340. rightTable := rightTableRef.Name
  1341. rightRows, err := e.table.Select(rightTable, nil)
  1342. if err != nil {
  1343. return nil, err
  1344. }
  1345. rightSchema, _ := e.schema.GetSchema(rightTable)
  1346. for _, row := range rightRows {
  1347. normalizeRowBySchema(row, rightSchema)
  1348. }
  1349. // Perform the join between left and right
  1350. var result []storage.Row
  1351. leftTableName := tableRef.Name
  1352. leftAlias := tableRef.Alias
  1353. rightAlias := rightTableRef.Alias
  1354. // If leftAlias is empty, use the table name
  1355. if leftAlias == "" {
  1356. leftAlias = leftTableName
  1357. }
  1358. if rightAlias == "" {
  1359. rightAlias = rightTable
  1360. }
  1361. switch tableRef.Join.Type {
  1362. case parser.JoinInner:
  1363. for _, left := range leftRows {
  1364. for _, right := range rightRows {
  1365. merged := e.mergeRows(left, right, leftAlias, rightAlias)
  1366. if tableRef.Join.Condition != nil {
  1367. match, _ := e.evalExpr(tableRef.Join.Condition, merged)
  1368. if toBool(match) {
  1369. result = append(result, merged)
  1370. }
  1371. } else {
  1372. result = append(result, merged)
  1373. }
  1374. }
  1375. }
  1376. case parser.JoinLeft:
  1377. for _, left := range leftRows {
  1378. matched := false
  1379. for _, right := range rightRows {
  1380. merged := e.mergeRows(left, right, leftAlias, rightAlias)
  1381. if tableRef.Join.Condition != nil {
  1382. match, _ := e.evalExpr(tableRef.Join.Condition, merged)
  1383. if toBool(match) {
  1384. result = append(result, merged)
  1385. matched = true
  1386. }
  1387. }
  1388. }
  1389. if !matched {
  1390. // Add left row with nulls for right table columns
  1391. // Create a null row for the right table
  1392. nullRight := make(storage.Row)
  1393. if len(rightRows) > 0 {
  1394. // Use the first right row as a template to get column names
  1395. for k := range rightRows[0] {
  1396. nullRight[k] = nil
  1397. }
  1398. } else {
  1399. // If right table is empty, get schema to determine columns
  1400. rightSchema, err := e.schema.GetSchema(rightTable)
  1401. if err == nil {
  1402. for _, col := range rightSchema.Columns {
  1403. nullRight[col.Name] = nil
  1404. }
  1405. }
  1406. }
  1407. result = append(result, e.mergeRows(left, nullRight, leftAlias, rightAlias))
  1408. }
  1409. }
  1410. case parser.JoinCross:
  1411. for _, left := range leftRows {
  1412. for _, right := range rightRows {
  1413. result = append(result, e.mergeRows(left, right, leftAlias, rightAlias))
  1414. }
  1415. }
  1416. }
  1417. // Recursively process any additional joins
  1418. if rightTableRef.Join != nil {
  1419. return e.executeJoins(*rightTableRef, result)
  1420. }
  1421. return result, nil
  1422. }
  1423. // executeJoin executes a JOIN operation.
  1424. func (e *Executor) executeJoin(tableRef parser.TableRef, leftRows []storage.Row) ([]storage.Row, error) {
  1425. join := tableRef.Join
  1426. if join == nil || join.Table == nil {
  1427. return leftRows, nil
  1428. }
  1429. rightTable := join.Table.Name
  1430. rightRows, err := e.table.Select(rightTable, nil)
  1431. if err != nil {
  1432. return nil, err
  1433. }
  1434. var result []storage.Row
  1435. switch join.Type {
  1436. case parser.JoinInner:
  1437. for _, left := range leftRows {
  1438. for _, right := range rightRows {
  1439. merged := e.mergeRows(left, right, tableRef.Alias, join.Table.Alias)
  1440. if join.Condition != nil {
  1441. match, _ := e.evalExpr(join.Condition, merged)
  1442. if toBool(match) {
  1443. result = append(result, merged)
  1444. }
  1445. } else {
  1446. result = append(result, merged)
  1447. }
  1448. }
  1449. }
  1450. case parser.JoinLeft:
  1451. for _, left := range leftRows {
  1452. matched := false
  1453. for _, right := range rightRows {
  1454. merged := e.mergeRows(left, right, tableRef.Alias, join.Table.Alias)
  1455. if join.Condition != nil {
  1456. match, _ := e.evalExpr(join.Condition, merged)
  1457. if toBool(match) {
  1458. result = append(result, merged)
  1459. matched = true
  1460. }
  1461. }
  1462. }
  1463. if !matched {
  1464. // Add left row with nulls for right table columns
  1465. // Create a null row for the right table
  1466. nullRight := make(storage.Row)
  1467. if len(rightRows) > 0 {
  1468. // Use the first right row as a template to get column names
  1469. for k := range rightRows[0] {
  1470. nullRight[k] = nil
  1471. }
  1472. } else {
  1473. // If right table is empty, get schema to determine columns
  1474. rightSchema, err := e.schema.GetSchema(rightTable)
  1475. if err == nil {
  1476. for _, col := range rightSchema.Columns {
  1477. nullRight[col.Name] = nil
  1478. }
  1479. }
  1480. }
  1481. result = append(result, e.mergeRows(left, nullRight, tableRef.Alias, join.Table.Alias))
  1482. }
  1483. }
  1484. case parser.JoinCross:
  1485. for _, left := range leftRows {
  1486. for _, right := range rightRows {
  1487. result = append(result, e.mergeRows(left, right, tableRef.Alias, join.Table.Alias))
  1488. }
  1489. }
  1490. }
  1491. return result, nil
  1492. }
  1493. // mergeRows merges two rows with optional table aliases.
  1494. func (e *Executor) mergeRows(left, right storage.Row, leftAlias, rightAlias string) storage.Row {
  1495. result := make(storage.Row)
  1496. for k, v := range left {
  1497. // Copy the key as-is (it might already be qualified)
  1498. result[k] = v
  1499. // Only add qualified name if the key is NOT already qualified and we have an alias
  1500. if leftAlias != "" && !strings.Contains(k, ".") {
  1501. result[leftAlias+"."+k] = v
  1502. }
  1503. }
  1504. for k, v := range right {
  1505. // For unqualified names, only add if they don't already exist
  1506. // This prevents right table columns from overwriting left table columns
  1507. if !strings.Contains(k, ".") {
  1508. if _, exists := result[k]; !exists {
  1509. result[k] = v
  1510. }
  1511. // Add qualified name for right table
  1512. if rightAlias != "" {
  1513. result[rightAlias+"."+k] = v
  1514. }
  1515. } else {
  1516. // Already qualified, just copy it
  1517. result[k] = v
  1518. }
  1519. }
  1520. return result
  1521. }
  1522. // collectAllTableRefs returns a flat list of (alias, tableName) pairs for all tables
  1523. // referenced in a FROM clause, following both implicit (comma) and explicit JOIN chains.
  1524. func collectAllTableRefs(from []parser.TableRef) []parser.TableRef {
  1525. var refs []parser.TableRef
  1526. for _, tref := range from {
  1527. cur := tref
  1528. for {
  1529. // Shallow copy to hold only this table (no join chain)
  1530. flat := parser.TableRef{Name: cur.Name, Alias: cur.Alias}
  1531. if flat.Alias == "" {
  1532. flat.Alias = flat.Name
  1533. }
  1534. refs = append(refs, flat)
  1535. if cur.Join == nil || cur.Join.Table == nil {
  1536. break
  1537. }
  1538. cur = *cur.Join.Table
  1539. }
  1540. }
  1541. return refs
  1542. }
  1543. // addTableAlias adds table-qualified names to a row.
  1544. // normalizeRowBySchema converts float64 values in integer-affinity columns to int64.
  1545. // This is needed because JSON deserialization always produces float64 for numbers.
  1546. func normalizeRowBySchema(row storage.Row, schema *storage.Schema) {
  1547. if schema == nil {
  1548. return
  1549. }
  1550. for _, col := range schema.Columns {
  1551. upper := strings.ToUpper(col.Type)
  1552. isInt := strings.Contains(upper, "INT") || upper == "BOOLEAN" || upper == "BOOL"
  1553. if !isInt {
  1554. continue
  1555. }
  1556. if f, ok := row[col.Name].(float64); ok {
  1557. row[col.Name] = int64(f)
  1558. }
  1559. }
  1560. }
  1561. func (e *Executor) addTableAlias(row storage.Row, alias string) storage.Row {
  1562. result := make(storage.Row)
  1563. for k, v := range row {
  1564. result[k] = v
  1565. // Don't add alias to already-qualified names
  1566. if !strings.Contains(k, ".") {
  1567. result[alias+"."+k] = v
  1568. }
  1569. }
  1570. return result
  1571. }
  1572. // executeInsert executes an INSERT statement.
  1573. func (e *Executor) executeInsert(stmt *parser.InsertStmt) (*Result, error) {
  1574. tableName := stmt.Table.Name
  1575. schema, err := e.schema.GetSchema(tableName)
  1576. if err != nil {
  1577. return nil, err
  1578. }
  1579. // INSERT ... SELECT: materialise the SELECT result and bulk-insert.
  1580. if stmt.Select != nil {
  1581. sel, err := e.executeSelect(stmt.Select)
  1582. if err != nil {
  1583. return nil, err
  1584. }
  1585. rows := make([]storage.Row, 0, len(sel.Rows))
  1586. for _, selRow := range sel.Rows {
  1587. row := make(storage.Row)
  1588. if len(stmt.Columns) > 0 {
  1589. for i, col := range stmt.Columns {
  1590. if i < len(selRow) {
  1591. row[col] = selRow[i]
  1592. }
  1593. }
  1594. } else {
  1595. for i, col := range schema.Columns {
  1596. if i < len(selRow) {
  1597. row[col.Name] = selRow[i]
  1598. }
  1599. }
  1600. }
  1601. rows = append(rows, row)
  1602. }
  1603. count, err := e.table.InsertBulk(tableName, rows)
  1604. if err != nil {
  1605. return nil, err
  1606. }
  1607. result := NewResult("INSERT")
  1608. result.SetRowCount(count)
  1609. return result, nil
  1610. }
  1611. count := 0
  1612. for _, values := range stmt.Values {
  1613. row := make(storage.Row)
  1614. if len(stmt.Columns) > 0 {
  1615. // Named columns
  1616. for i, col := range stmt.Columns {
  1617. if i < len(values) {
  1618. val, err := e.evalExpr(values[i], nil)
  1619. if err != nil {
  1620. return nil, err
  1621. }
  1622. row[col] = val
  1623. }
  1624. }
  1625. } else {
  1626. // All columns in order
  1627. for i, col := range schema.Columns {
  1628. if i < len(values) {
  1629. val, err := e.evalExpr(values[i], nil)
  1630. if err != nil {
  1631. return nil, err
  1632. }
  1633. row[col.Name] = val
  1634. }
  1635. }
  1636. }
  1637. err := e.table.Insert(tableName, row)
  1638. if err != nil {
  1639. // Handle conflict based on OnConflict action
  1640. if strings.Contains(err.Error(), "duplicate") {
  1641. switch stmt.OnConflict {
  1642. case parser.ConflictIgnore:
  1643. // Silently ignore the duplicate
  1644. continue
  1645. case parser.ConflictReplace:
  1646. // Delete existing row and insert new one
  1647. pkValue := row[schema.PrimaryKey]
  1648. if pkValue != nil {
  1649. e.table.Delete(tableName, func(r storage.Row) bool {
  1650. return fmt.Sprintf("%v", r[schema.PrimaryKey]) == fmt.Sprintf("%v", pkValue)
  1651. })
  1652. // Try insert again
  1653. if err := e.table.Insert(tableName, row); err != nil {
  1654. return nil, err
  1655. }
  1656. }
  1657. case parser.ConflictAbort, parser.ConflictFail:
  1658. return nil, err
  1659. case parser.ConflictRollback:
  1660. // In a real implementation, this would rollback the transaction
  1661. return nil, err
  1662. default:
  1663. return nil, err
  1664. }
  1665. } else {
  1666. return nil, err
  1667. }
  1668. }
  1669. count++
  1670. }
  1671. result := NewResult("INSERT")
  1672. result.SetRowCount(count)
  1673. return result, nil
  1674. }
  1675. // executeUpdate executes an UPDATE statement.
  1676. func (e *Executor) executeUpdate(stmt *parser.UpdateStmt) (*Result, error) {
  1677. tableName := stmt.Table.Name
  1678. // Build filter
  1679. var filter func(storage.Row) bool
  1680. if stmt.Where != nil {
  1681. filter = func(row storage.Row) bool {
  1682. val, err := e.evalExpr(stmt.Where, row)
  1683. if err != nil {
  1684. return false
  1685. }
  1686. return toBool(val)
  1687. }
  1688. }
  1689. // Use UpdateFunc to evaluate expressions per-row (supports self-referencing like balance = balance + 100)
  1690. updateFn := func(row storage.Row) (storage.Row, error) {
  1691. updates := make(storage.Row)
  1692. for _, assign := range stmt.Set {
  1693. val, err := e.evalExpr(assign.Value, row)
  1694. if err != nil {
  1695. return nil, err
  1696. }
  1697. updates[assign.Column] = val
  1698. }
  1699. return updates, nil
  1700. }
  1701. count, err := e.table.UpdateFunc(tableName, updateFn, filter)
  1702. if err != nil {
  1703. return nil, err
  1704. }
  1705. result := NewResult("UPDATE")
  1706. result.SetRowCount(count)
  1707. return result, nil
  1708. }
  1709. // executeDelete executes a DELETE statement.
  1710. func (e *Executor) executeDelete(stmt *parser.DeleteStmt) (*Result, error) {
  1711. tableName := stmt.Table.Name
  1712. // Build filter
  1713. var filter func(storage.Row) bool
  1714. if stmt.Where != nil {
  1715. filter = func(row storage.Row) bool {
  1716. val, err := e.evalExpr(stmt.Where, row)
  1717. if err != nil {
  1718. return false
  1719. }
  1720. return toBool(val)
  1721. }
  1722. }
  1723. count, err := e.table.Delete(tableName, filter)
  1724. if err != nil {
  1725. return nil, err
  1726. }
  1727. result := NewResult("DELETE")
  1728. result.SetRowCount(count)
  1729. return result, nil
  1730. }
  1731. // executeCreateTable executes a CREATE TABLE statement.
  1732. func (e *Executor) executeCreateTable(stmt *parser.CreateTableStmt) (*Result, error) {
  1733. // Check if exists
  1734. if e.schema.TableExists(stmt.Table.Name) {
  1735. if stmt.IfNotExists {
  1736. result := NewResult("CREATE TABLE")
  1737. return result, nil
  1738. }
  1739. return nil, fmt.Errorf("table already exists: %s", stmt.Table.Name)
  1740. }
  1741. // Build schema
  1742. schema := &storage.Schema{
  1743. Name: stmt.Table.Name,
  1744. }
  1745. for _, colDef := range stmt.Columns {
  1746. col := storage.Column{
  1747. Name: colDef.Name,
  1748. Type: colDef.Type.Name,
  1749. Nullable: true,
  1750. }
  1751. for _, constraint := range colDef.Constraints {
  1752. switch constraint.Type {
  1753. case parser.ConstraintPrimaryKey:
  1754. col.PrimaryKey = true
  1755. col.Nullable = false
  1756. schema.PrimaryKey = col.Name
  1757. case parser.ConstraintNotNull:
  1758. col.Nullable = false
  1759. case parser.ConstraintDefault:
  1760. if constraint.Default != nil {
  1761. val, _ := e.evalExpr(constraint.Default, nil)
  1762. col.Default = val
  1763. }
  1764. case parser.ConstraintAutoIncrement:
  1765. schema.AutoIncrement = true
  1766. }
  1767. }
  1768. schema.Columns = append(schema.Columns, col)
  1769. }
  1770. // Handle table-level constraints
  1771. for _, constraint := range stmt.Constraints {
  1772. if constraint.Type == parser.ConstraintPrimaryKey && len(constraint.Columns) > 0 {
  1773. schema.PrimaryKey = constraint.Columns[0]
  1774. for i := range schema.Columns {
  1775. if strings.EqualFold(schema.Columns[i].Name, schema.PrimaryKey) {
  1776. schema.Columns[i].PrimaryKey = true
  1777. schema.Columns[i].Nullable = false
  1778. }
  1779. }
  1780. }
  1781. }
  1782. if err := e.schema.CreateTable(schema); err != nil {
  1783. return nil, err
  1784. }
  1785. // Update analyzer catalog
  1786. e.catalog.CreateTable(schema.ToAnalyzerTableInfo())
  1787. result := NewResult("CREATE TABLE")
  1788. return result, nil
  1789. }
  1790. // executeDropTable executes a DROP TABLE statement.
  1791. func (e *Executor) executeDropTable(stmt *parser.DropTableStmt) (*Result, error) {
  1792. for _, tableRef := range stmt.Tables {
  1793. if !e.schema.TableExists(tableRef.Name) {
  1794. if stmt.IfExists {
  1795. continue
  1796. }
  1797. return nil, fmt.Errorf("table not found: %s", tableRef.Name)
  1798. }
  1799. // First, drop all indexes associated with this table
  1800. indexes, _ := e.schema.ListTableIndexes(tableRef.Name)
  1801. for _, idx := range indexes {
  1802. // Clear index entries
  1803. columns := make([]string, len(idx.Columns))
  1804. for i, col := range idx.Columns {
  1805. columns[i] = col.Name
  1806. }
  1807. e.table.ClearIndex(idx.Name, tableRef.Name, columns)
  1808. // Drop the index schema
  1809. e.schema.DropIndex(idx.Name)
  1810. }
  1811. // Then, truncate all data rows
  1812. e.table.Truncate(tableRef.Name)
  1813. // Finally, drop the table schema
  1814. if err := e.schema.DropTable(tableRef.Name); err != nil {
  1815. return nil, err
  1816. }
  1817. // Update analyzer catalog
  1818. e.catalog.DropTable(tableRef.Name)
  1819. }
  1820. result := NewResult("DROP TABLE")
  1821. return result, nil
  1822. }
  1823. // executeCreateIndex creates a new index.
  1824. func (e *Executor) executeCreateIndex(stmt *parser.CreateIndexStmt) (*Result, error) {
  1825. // Check if index already exists
  1826. if e.schema.IndexExists(stmt.Name) {
  1827. if stmt.IfNotExists {
  1828. result := NewResult("CREATE INDEX")
  1829. return result, nil
  1830. }
  1831. return nil, fmt.Errorf("index already exists: %s", stmt.Name)
  1832. }
  1833. // Verify table exists
  1834. if !e.schema.TableExists(stmt.Table) {
  1835. return nil, fmt.Errorf("table not found: %s", stmt.Table)
  1836. }
  1837. // Verify columns exist
  1838. schema, err := e.schema.GetSchema(stmt.Table)
  1839. if err != nil {
  1840. return nil, err
  1841. }
  1842. for _, col := range stmt.Columns {
  1843. if _, found := schema.GetColumn(col.Name); !found {
  1844. return nil, fmt.Errorf("column not found: %s", col.Name)
  1845. }
  1846. }
  1847. // Create storage index
  1848. index := &storage.Index{
  1849. Name: stmt.Name,
  1850. Table: stmt.Table,
  1851. Unique: stmt.Unique,
  1852. }
  1853. for _, col := range stmt.Columns {
  1854. index.Columns = append(index.Columns, storage.IndexColumn{
  1855. Name: col.Name,
  1856. Desc: col.Desc,
  1857. })
  1858. }
  1859. if err := e.schema.CreateIndex(index); err != nil {
  1860. return nil, err
  1861. }
  1862. // Build index entries for existing rows
  1863. columns := make([]string, len(stmt.Columns))
  1864. for i, col := range stmt.Columns {
  1865. columns[i] = col.Name
  1866. }
  1867. if err := e.table.BuildIndex(stmt.Name, stmt.Table, columns); err != nil {
  1868. // Rollback index creation on failure
  1869. e.schema.DropIndex(stmt.Name)
  1870. return nil, fmt.Errorf("failed to build index: %w", err)
  1871. }
  1872. result := NewResult("CREATE INDEX")
  1873. return result, nil
  1874. }
  1875. // executeDropIndex drops an index.
  1876. func (e *Executor) executeDropIndex(stmt *parser.DropIndexStmt) (*Result, error) {
  1877. if !e.schema.IndexExists(stmt.Name) {
  1878. if stmt.IfExists {
  1879. result := NewResult("DROP INDEX")
  1880. return result, nil
  1881. }
  1882. return nil, fmt.Errorf("index not found: %s", stmt.Name)
  1883. }
  1884. // Get index info to clear entries
  1885. index, err := e.schema.GetIndex(stmt.Name)
  1886. if err == nil && index != nil {
  1887. columns := make([]string, len(index.Columns))
  1888. for i, col := range index.Columns {
  1889. columns[i] = col.Name
  1890. }
  1891. e.table.ClearIndex(stmt.Name, index.Table, columns)
  1892. }
  1893. if err := e.schema.DropIndex(stmt.Name); err != nil {
  1894. return nil, err
  1895. }
  1896. result := NewResult("DROP INDEX")
  1897. return result, nil
  1898. }
  1899. func (e *Executor) executeCreateView(stmt *parser.CreateViewStmt) (*Result, error) {
  1900. name := strings.ToLower(stmt.View.Name)
  1901. if _, exists := e.views[name]; exists {
  1902. if stmt.IfNotExists {
  1903. return NewResult("CREATE VIEW"), nil
  1904. }
  1905. return nil, fmt.Errorf("view already exists: %s", stmt.View.Name)
  1906. }
  1907. e.views[name] = stmt.Select
  1908. // Derive view columns from SELECT list for catalog registration.
  1909. var viewCols []analyzer.ColumnInfo
  1910. hasStar := false
  1911. for _, col := range stmt.Select.Columns {
  1912. if col.Star {
  1913. hasStar = true
  1914. break
  1915. }
  1916. colName := col.Alias
  1917. if colName == "" {
  1918. if ref, ok := col.Expr.(*parser.ColumnRef); ok {
  1919. colName = ref.Column
  1920. } else {
  1921. colName = fmt.Sprintf("col_%d", len(viewCols))
  1922. }
  1923. }
  1924. viewCols = append(viewCols, analyzer.ColumnInfo{
  1925. Name: colName,
  1926. TableName: stmt.View.Name,
  1927. Type: analyzer.TypeAny,
  1928. Nullable: true,
  1929. })
  1930. }
  1931. // For SELECT *, pull columns from the underlying table(s).
  1932. if hasStar && len(stmt.Select.From) > 0 {
  1933. baseName := stmt.Select.From[0].Name
  1934. if schema, err := e.schema.GetSchema(baseName); err == nil {
  1935. for _, c := range schema.Columns {
  1936. viewCols = append(viewCols, analyzer.ColumnInfo{
  1937. Name: c.Name,
  1938. TableName: stmt.View.Name,
  1939. Type: analyzer.TypeAny,
  1940. Nullable: true,
  1941. })
  1942. }
  1943. }
  1944. }
  1945. // Register in catalog so the analyzer accepts SELECT FROM this view.
  1946. e.catalog.CreateTable(&analyzer.TableInfo{ //nolint:errcheck
  1947. Name: stmt.View.Name,
  1948. Columns: viewCols,
  1949. IsView: true,
  1950. })
  1951. return NewResult("CREATE VIEW"), nil
  1952. }
  1953. func (e *Executor) executeDropView(stmt *parser.DropViewStmt) (*Result, error) {
  1954. for _, ref := range stmt.Views {
  1955. name := strings.ToLower(ref.Name)
  1956. if _, exists := e.views[name]; !exists {
  1957. if stmt.IfExists {
  1958. continue
  1959. }
  1960. return nil, fmt.Errorf("view not found: %s", ref.Name)
  1961. }
  1962. delete(e.views, name)
  1963. e.catalog.DropTable(ref.Name) //nolint:errcheck
  1964. }
  1965. return NewResult("DROP VIEW"), nil
  1966. }
  1967. // executeAlterTable executes an ALTER TABLE statement.
  1968. func (e *Executor) executeAlterTable(stmt *parser.AlterTableStmt) (*Result, error) {
  1969. switch action := stmt.Action.(type) {
  1970. case *parser.AddColumnAction:
  1971. return e.executeAlterTableAddColumn(stmt.Table, action)
  1972. case *parser.DropColumnAction:
  1973. return e.executeAlterTableDropColumn(stmt.Table, action)
  1974. case *parser.RenameTableAction:
  1975. return e.executeAlterTableRename(stmt.Table, action)
  1976. case *parser.RenameColumnAction:
  1977. return e.executeAlterTableRenameColumn(stmt.Table, action)
  1978. default:
  1979. return nil, fmt.Errorf("unsupported ALTER TABLE action: %T", action)
  1980. }
  1981. }
  1982. // executeAlterTableAddColumn adds a column to a table.
  1983. func (e *Executor) executeAlterTableAddColumn(table string, action *parser.AddColumnAction) (*Result, error) {
  1984. col := storage.Column{
  1985. Name: action.Column.Name,
  1986. Type: action.Column.Type.Name,
  1987. Nullable: true,
  1988. }
  1989. // Process column constraints
  1990. for _, constraint := range action.Column.Constraints {
  1991. switch constraint.Type {
  1992. case parser.ConstraintPrimaryKey:
  1993. col.PrimaryKey = true
  1994. col.Nullable = false
  1995. case parser.ConstraintNotNull:
  1996. col.Nullable = false
  1997. case parser.ConstraintDefault:
  1998. if constraint.Default != nil {
  1999. val, _ := e.evalExpr(constraint.Default, nil)
  2000. col.Default = val
  2001. }
  2002. }
  2003. }
  2004. if err := e.schema.AddColumn(table, col); err != nil {
  2005. return nil, err
  2006. }
  2007. // Update catalog
  2008. e.SyncCatalog()
  2009. result := NewResult("ALTER TABLE")
  2010. return result, nil
  2011. }
  2012. // executeAlterTableDropColumn drops a column from a table.
  2013. func (e *Executor) executeAlterTableDropColumn(table string, action *parser.DropColumnAction) (*Result, error) {
  2014. if err := e.schema.DropColumn(table, action.Column); err != nil {
  2015. return nil, err
  2016. }
  2017. // Update catalog
  2018. e.SyncCatalog()
  2019. result := NewResult("ALTER TABLE")
  2020. return result, nil
  2021. }
  2022. // executeAlterTableRename renames a table.
  2023. func (e *Executor) executeAlterTableRename(table string, action *parser.RenameTableAction) (*Result, error) {
  2024. if err := e.schema.RenameTable(table, action.NewName); err != nil {
  2025. return nil, err
  2026. }
  2027. // Update catalog
  2028. e.SyncCatalog()
  2029. result := NewResult("ALTER TABLE")
  2030. return result, nil
  2031. }
  2032. // executeAlterTableRenameColumn renames a column.
  2033. func (e *Executor) executeAlterTableRenameColumn(table string, action *parser.RenameColumnAction) (*Result, error) {
  2034. if err := e.schema.RenameColumn(table, action.OldName, action.NewName); err != nil {
  2035. return nil, err
  2036. }
  2037. // Update catalog
  2038. e.SyncCatalog()
  2039. result := NewResult("ALTER TABLE")
  2040. return result, nil
  2041. }
  2042. // Transaction execution methods
  2043. // executeBegin starts a new transaction.
  2044. func (e *Executor) executeBegin(stmt *parser.BeginStmt) (*Result, error) {
  2045. if e.inTransaction {
  2046. return nil, fmt.Errorf("cannot start a transaction within a transaction")
  2047. }
  2048. e.inTransaction = true
  2049. e.savepoints = nil
  2050. e.txLog = nil
  2051. result := NewResult("BEGIN")
  2052. return result, nil
  2053. }
  2054. // executeCommit commits the current transaction.
  2055. func (e *Executor) executeCommit(stmt *parser.CommitStmt) (*Result, error) {
  2056. if !e.inTransaction {
  2057. return nil, fmt.Errorf("cannot commit: no transaction in progress")
  2058. }
  2059. // Clear transaction state
  2060. e.inTransaction = false
  2061. e.savepoints = nil
  2062. e.txLog = nil
  2063. result := NewResult("COMMIT")
  2064. return result, nil
  2065. }
  2066. // executeRollback rolls back the current transaction or to a savepoint.
  2067. func (e *Executor) executeRollback(stmt *parser.RollbackStmt) (*Result, error) {
  2068. if !e.inTransaction {
  2069. return nil, fmt.Errorf("cannot rollback: no transaction in progress")
  2070. }
  2071. if stmt.Savepoint != "" {
  2072. // Rollback to savepoint
  2073. return e.rollbackToSavepoint(stmt.Savepoint)
  2074. }
  2075. // Full rollback - undo all operations in reverse order
  2076. for i := len(e.txLog) - 1; i >= 0; i-- {
  2077. entry := e.txLog[i]
  2078. if err := e.undoOperation(entry); err != nil {
  2079. // Log error but continue with rollback
  2080. continue
  2081. }
  2082. }
  2083. // Clear transaction state
  2084. e.inTransaction = false
  2085. e.savepoints = nil
  2086. e.txLog = nil
  2087. result := NewResult("ROLLBACK")
  2088. return result, nil
  2089. }
  2090. // executeSavepoint creates a savepoint.
  2091. func (e *Executor) executeSavepoint(stmt *parser.SavepointStmt) (*Result, error) {
  2092. if !e.inTransaction {
  2093. // SQLite allows SAVEPOINT outside transaction (starts implicit transaction)
  2094. e.inTransaction = true
  2095. e.txLog = nil
  2096. }
  2097. // Add savepoint marker
  2098. e.savepoints = append(e.savepoints, stmt.Name)
  2099. result := NewResult("SAVEPOINT")
  2100. return result, nil
  2101. }
  2102. // executeRelease releases a savepoint.
  2103. func (e *Executor) executeRelease(stmt *parser.ReleaseStmt) (*Result, error) {
  2104. if !e.inTransaction {
  2105. return nil, fmt.Errorf("cannot release savepoint: no transaction in progress")
  2106. }
  2107. // Find and remove the savepoint
  2108. found := false
  2109. for i := len(e.savepoints) - 1; i >= 0; i-- {
  2110. if e.savepoints[i] == stmt.Name {
  2111. e.savepoints = e.savepoints[:i]
  2112. found = true
  2113. break
  2114. }
  2115. }
  2116. if !found {
  2117. return nil, fmt.Errorf("no such savepoint: %s", stmt.Name)
  2118. }
  2119. result := NewResult("RELEASE")
  2120. return result, nil
  2121. }
  2122. // executeAttach attaches a database.
  2123. func (e *Executor) executeAttach(stmt *parser.AttachStmt) (*Result, error) {
  2124. // Check if alias already exists
  2125. if _, exists := e.attachedDatabases[stmt.Alias]; exists {
  2126. return nil, fmt.Errorf("database alias already exists: %s", stmt.Alias)
  2127. }
  2128. // Reserved alias check
  2129. if strings.EqualFold(stmt.Alias, "temp") || strings.EqualFold(stmt.Alias, "temporary") {
  2130. return nil, fmt.Errorf("reserved database alias: %s", stmt.Alias)
  2131. }
  2132. // Get the pool from the main schema manager
  2133. pool := e.schema.GetPool()
  2134. // Create new schema and table managers for the attached database
  2135. // In PizzaKV, each database is just a different namespace/prefix
  2136. schema := storage.NewSchemaManager(pool, stmt.FilePath)
  2137. table := storage.NewTableManager(pool, schema, stmt.FilePath)
  2138. // Register the database connection
  2139. e.attachedDatabases[stmt.Alias] = &DatabaseConnection{
  2140. Alias: stmt.Alias,
  2141. Path: stmt.FilePath,
  2142. Schema: schema,
  2143. Table: table,
  2144. }
  2145. // Sync the catalog with the attached database's tables
  2146. tables, _ := schema.ListTables()
  2147. for _, tableName := range tables {
  2148. tSchema, err := schema.GetSchema(tableName)
  2149. if err != nil {
  2150. continue
  2151. }
  2152. // Add with database prefix
  2153. tableInfo := tSchema.ToAnalyzerTableInfo()
  2154. tableInfo.Name = stmt.Alias + "." + tableInfo.Name
  2155. e.catalog.CreateTable(tableInfo)
  2156. }
  2157. result := NewResult("ATTACH")
  2158. return result, nil
  2159. }
  2160. // executeDetach detaches a database.
  2161. func (e *Executor) executeDetach(stmt *parser.DetachStmt) (*Result, error) {
  2162. // Cannot detach main database
  2163. if strings.EqualFold(stmt.Alias, "main") {
  2164. return nil, fmt.Errorf("cannot detach main database")
  2165. }
  2166. // Check if database exists
  2167. if _, exists := e.attachedDatabases[stmt.Alias]; !exists {
  2168. return nil, fmt.Errorf("no such database: %s", stmt.Alias)
  2169. }
  2170. // Remove from attached databases
  2171. delete(e.attachedDatabases, stmt.Alias)
  2172. // Note: We don't remove from catalog as that would be more complex
  2173. // In a production system, we'd need to track which tables belong to which database
  2174. result := NewResult("DETACH")
  2175. return result, nil
  2176. }
  2177. // rollbackToSavepoint rolls back to a specific savepoint.
  2178. func (e *Executor) rollbackToSavepoint(name string) (*Result, error) {
  2179. // Find savepoint index
  2180. savepointIdx := -1
  2181. for i := len(e.savepoints) - 1; i >= 0; i-- {
  2182. if e.savepoints[i] == name {
  2183. savepointIdx = i
  2184. break
  2185. }
  2186. }
  2187. if savepointIdx == -1 {
  2188. return nil, fmt.Errorf("no such savepoint: %s", name)
  2189. }
  2190. // Count operations to undo (operations after the savepoint)
  2191. // For simplicity, we track savepoint positions by counting log entries
  2192. // In a real implementation, we'd track log positions per savepoint
  2193. // Undo operations in reverse order
  2194. for i := len(e.txLog) - 1; i >= 0; i-- {
  2195. entry := e.txLog[i]
  2196. if err := e.undoOperation(entry); err != nil {
  2197. continue
  2198. }
  2199. }
  2200. // Remove savepoints after the target
  2201. e.savepoints = e.savepoints[:savepointIdx+1]
  2202. result := NewResult("ROLLBACK")
  2203. return result, nil
  2204. }
  2205. // undoOperation reverses a single operation.
  2206. func (e *Executor) undoOperation(entry txLogEntry) error {
  2207. switch entry.operation {
  2208. case "INSERT":
  2209. // Delete the inserted row
  2210. _, err := e.table.Delete(entry.table, func(r storage.Row) bool {
  2211. // Match by primary key stored in entry.key
  2212. pk := e.getPrimaryKey(entry.table)
  2213. if pk == "" {
  2214. return false
  2215. }
  2216. return fmt.Sprintf("%v", r[pk]) == entry.key
  2217. })
  2218. return err
  2219. case "DELETE":
  2220. // Re-insert the deleted row
  2221. if entry.oldData != nil {
  2222. return e.table.Insert(entry.table, entry.oldData)
  2223. }
  2224. case "UPDATE":
  2225. // Restore the old data
  2226. if entry.oldData != nil {
  2227. pk := e.getPrimaryKey(entry.table)
  2228. if pk != "" {
  2229. // Delete current row and insert old data
  2230. e.table.Delete(entry.table, func(r storage.Row) bool {
  2231. return fmt.Sprintf("%v", r[pk]) == entry.key
  2232. })
  2233. return e.table.Insert(entry.table, entry.oldData)
  2234. }
  2235. }
  2236. }
  2237. return nil
  2238. }
  2239. // getPrimaryKey returns the primary key column name for a table.
  2240. func (e *Executor) getPrimaryKey(tableName string) string {
  2241. schema, err := e.schema.GetSchema(tableName)
  2242. if err != nil {
  2243. return ""
  2244. }
  2245. return schema.PrimaryKey
  2246. }
  2247. // extractIndexableCondition extracts column name and value from a simple equality condition.
  2248. // Returns (column, value, true) if the expression is column = literal.
  2249. func (e *Executor) extractIndexableCondition(expr parser.Expr) (string, interface{}, bool) {
  2250. binExpr, ok := expr.(*parser.BinaryExpr)
  2251. if !ok {
  2252. return "", nil, false
  2253. }
  2254. // Only handle equality for now
  2255. if binExpr.Op != lexer.TokenEq {
  2256. return "", nil, false
  2257. }
  2258. // Check for column = literal pattern
  2259. colRef, leftIsCol := binExpr.Left.(*parser.ColumnRef)
  2260. litExpr, rightIsLit := binExpr.Right.(*parser.LiteralExpr)
  2261. if leftIsCol && rightIsLit {
  2262. val, _ := e.evalLiteral(litExpr)
  2263. return colRef.Column, val, true
  2264. }
  2265. // Check for literal = column pattern
  2266. litExpr, leftIsLit := binExpr.Left.(*parser.LiteralExpr)
  2267. colRef, rightIsCol := binExpr.Right.(*parser.ColumnRef)
  2268. if leftIsLit && rightIsCol {
  2269. val, _ := e.evalLiteral(litExpr)
  2270. return colRef.Column, val, true
  2271. }
  2272. return "", nil, false
  2273. }
  2274. // executePragma executes a PRAGMA statement.
  2275. func (e *Executor) executePragma(stmt *parser.PragmaStmt) (*Result, error) {
  2276. switch stmt.Name {
  2277. case "table_info":
  2278. return e.pragmaTableInfo(stmt.Arg)
  2279. case "table_list":
  2280. return e.pragmaTableList()
  2281. case "database_list":
  2282. return e.pragmaDatabaseList()
  2283. case "version":
  2284. return e.pragmaVersion()
  2285. default:
  2286. return nil, fmt.Errorf("unknown pragma: %s", stmt.Name)
  2287. }
  2288. }
  2289. // pragmaTableInfo returns column information for a table.
  2290. func (e *Executor) pragmaTableInfo(tableName string) (*Result, error) {
  2291. if tableName == "" {
  2292. return nil, fmt.Errorf("table_info requires a table name")
  2293. }
  2294. schema, err := e.schema.GetSchema(tableName)
  2295. if err != nil {
  2296. return nil, err
  2297. }
  2298. result := NewResult("PRAGMA")
  2299. result.AddColumn("cid")
  2300. result.AddColumn("name")
  2301. result.AddColumn("type")
  2302. result.AddColumn("notnull")
  2303. result.AddColumn("dflt_value")
  2304. result.AddColumn("pk")
  2305. for i, col := range schema.Columns {
  2306. notnull := 0
  2307. if !col.Nullable {
  2308. notnull = 1
  2309. }
  2310. pk := 0
  2311. if col.PrimaryKey {
  2312. pk = 1
  2313. }
  2314. result.AddRow(int64(i), col.Name, col.Type, int64(notnull), col.Default, int64(pk))
  2315. }
  2316. return result, nil
  2317. }
  2318. // pragmaTableList returns a list of all tables.
  2319. func (e *Executor) pragmaTableList() (*Result, error) {
  2320. tables, err := e.schema.ListTables()
  2321. if err != nil {
  2322. return nil, err
  2323. }
  2324. result := NewResult("PRAGMA")
  2325. result.AddColumn("schema")
  2326. result.AddColumn("name")
  2327. result.AddColumn("type")
  2328. for _, t := range tables {
  2329. result.AddRow("main", t, "table")
  2330. }
  2331. return result, nil
  2332. }
  2333. // pragmaDatabaseList returns a list of databases.
  2334. func (e *Executor) pragmaDatabaseList() (*Result, error) {
  2335. result := NewResult("PRAGMA")
  2336. result.AddColumn("seq")
  2337. result.AddColumn("name")
  2338. result.AddColumn("file")
  2339. // We only have one database
  2340. result.AddRow(int64(0), "main", "")
  2341. return result, nil
  2342. }
  2343. // pragmaVersion returns the PizzaSQL version.
  2344. func (e *Executor) pragmaVersion() (*Result, error) {
  2345. result := NewResult("PRAGMA")
  2346. result.AddColumn("version")
  2347. result.AddRow("PizzaSQL 1.0.0")
  2348. return result, nil
  2349. }
  2350. // executeExplain executes an EXPLAIN statement.
  2351. func (e *Executor) executeExplain(stmt *parser.ExplainStmt) (*Result, error) {
  2352. result := NewResult("EXPLAIN")
  2353. if stmt.QueryPlan {
  2354. // EXPLAIN QUERY PLAN format
  2355. result.AddColumn("id")
  2356. result.AddColumn("parent")
  2357. result.AddColumn("notused")
  2358. result.AddColumn("detail")
  2359. plan := e.generateQueryPlan(stmt.Statement)
  2360. for i, step := range plan {
  2361. result.AddRow(int64(i), int64(0), int64(0), step)
  2362. }
  2363. } else {
  2364. // Simple EXPLAIN format
  2365. result.AddColumn("addr")
  2366. result.AddColumn("opcode")
  2367. result.AddColumn("p1")
  2368. result.AddColumn("p2")
  2369. result.AddColumn("p3")
  2370. result.AddColumn("p4")
  2371. result.AddColumn("p5")
  2372. result.AddColumn("comment")
  2373. ops := e.generateOpcodes(stmt.Statement)
  2374. for i, op := range ops {
  2375. result.AddRow(int64(i), op, int64(0), int64(0), int64(0), "", int64(0), "")
  2376. }
  2377. }
  2378. return result, nil
  2379. }
  2380. // generateQueryPlan generates a simple query plan description.
  2381. func (e *Executor) generateQueryPlan(stmt parser.Statement) []string {
  2382. var plan []string
  2383. switch s := stmt.(type) {
  2384. case *parser.SelectStmt:
  2385. if len(s.From) > 0 {
  2386. plan = append(plan, fmt.Sprintf("SCAN TABLE %s", s.From[0].Name))
  2387. if s.Where != nil {
  2388. plan = append(plan, "FILTER")
  2389. }
  2390. if len(s.OrderBy) > 0 {
  2391. plan = append(plan, "SORT")
  2392. }
  2393. if s.Limit != nil {
  2394. plan = append(plan, "LIMIT")
  2395. }
  2396. } else {
  2397. plan = append(plan, "SCALAR EXPRESSION")
  2398. }
  2399. case *parser.InsertStmt:
  2400. plan = append(plan, fmt.Sprintf("INSERT INTO %s", s.Table.Name))
  2401. case *parser.UpdateStmt:
  2402. plan = append(plan, fmt.Sprintf("SCAN TABLE %s", s.Table.Name))
  2403. plan = append(plan, "UPDATE")
  2404. case *parser.DeleteStmt:
  2405. plan = append(plan, fmt.Sprintf("SCAN TABLE %s", s.Table.Name))
  2406. plan = append(plan, "DELETE")
  2407. default:
  2408. plan = append(plan, "EXECUTE")
  2409. }
  2410. return plan
  2411. }
  2412. // generateOpcodes generates simplified opcodes for EXPLAIN.
  2413. func (e *Executor) generateOpcodes(stmt parser.Statement) []string {
  2414. var ops []string
  2415. switch s := stmt.(type) {
  2416. case *parser.SelectStmt:
  2417. ops = append(ops, "Init")
  2418. if len(s.From) > 0 {
  2419. ops = append(ops, "OpenRead")
  2420. ops = append(ops, "Rewind")
  2421. ops = append(ops, "Column")
  2422. ops = append(ops, "ResultRow")
  2423. ops = append(ops, "Next")
  2424. ops = append(ops, "Close")
  2425. } else {
  2426. ops = append(ops, "Integer")
  2427. ops = append(ops, "ResultRow")
  2428. }
  2429. ops = append(ops, "Halt")
  2430. case *parser.InsertStmt:
  2431. ops = append(ops, "Init")
  2432. ops = append(ops, "OpenWrite")
  2433. ops = append(ops, "NewRowid")
  2434. ops = append(ops, "Insert")
  2435. ops = append(ops, "Close")
  2436. ops = append(ops, "Halt")
  2437. case *parser.UpdateStmt:
  2438. ops = append(ops, "Init")
  2439. ops = append(ops, "OpenWrite")
  2440. ops = append(ops, "Rewind")
  2441. ops = append(ops, "Column")
  2442. ops = append(ops, "Update")
  2443. ops = append(ops, "Next")
  2444. ops = append(ops, "Close")
  2445. ops = append(ops, "Halt")
  2446. case *parser.DeleteStmt:
  2447. ops = append(ops, "Init")
  2448. ops = append(ops, "OpenWrite")
  2449. ops = append(ops, "Rewind")
  2450. ops = append(ops, "Delete")
  2451. ops = append(ops, "Next")
  2452. ops = append(ops, "Close")
  2453. ops = append(ops, "Halt")
  2454. default:
  2455. ops = append(ops, "Init")
  2456. ops = append(ops, "Halt")
  2457. }
  2458. return ops
  2459. }
  2460. // evalExpr evaluates an expression.
  2461. func (e *Executor) evalExpr(expr parser.Expr, row storage.Row) (interface{}, error) {
  2462. if expr == nil {
  2463. return nil, nil
  2464. }
  2465. switch ex := expr.(type) {
  2466. case *parser.LiteralExpr:
  2467. return e.evalLiteral(ex)
  2468. case *parser.ColumnRef:
  2469. return e.evalColumnRef(ex, row)
  2470. case *parser.BinaryExpr:
  2471. return e.evalBinaryExpr(ex, row)
  2472. case *parser.UnaryExpr:
  2473. return e.evalUnaryExpr(ex, row)
  2474. case *parser.FunctionCall:
  2475. return e.evalFunctionCall(ex, row)
  2476. case *parser.ParenExpr:
  2477. return e.evalExpr(ex.Expr, row)
  2478. case *parser.CaseExpr:
  2479. return e.evalCaseExpr(ex, row)
  2480. case *parser.InExpr:
  2481. return e.evalInExpr(ex, row)
  2482. case *parser.BetweenExpr:
  2483. return e.evalBetweenExpr(ex, row)
  2484. case *parser.LikeExpr:
  2485. return e.evalLikeExpr(ex, row)
  2486. case *parser.IsNullExpr:
  2487. return e.evalIsNullExpr(ex, row)
  2488. case *parser.CastExpr:
  2489. return e.evalCastExpr(ex, row)
  2490. case *parser.SubqueryExpr:
  2491. return e.evalSubqueryExpr(ex, row)
  2492. case *parser.ExistsExpr:
  2493. return e.evalExistsExpr(ex, row)
  2494. default:
  2495. return nil, fmt.Errorf("unsupported expression type: %T", expr)
  2496. }
  2497. }
  2498. func (e *Executor) evalLiteral(lit *parser.LiteralExpr) (interface{}, error) {
  2499. switch lit.Type {
  2500. case lexer.TokenNumber:
  2501. // Check for scientific notation (e.g., 1e+06) or decimal point
  2502. if strings.Contains(lit.Value, ".") || strings.ContainsAny(lit.Value, "eE") {
  2503. f, err := strconv.ParseFloat(lit.Value, 64)
  2504. if err != nil {
  2505. return nil, err
  2506. }
  2507. // If it's a whole number (no fractional part), return as int64
  2508. if f == float64(int64(f)) {
  2509. return int64(f), nil
  2510. }
  2511. return f, nil
  2512. }
  2513. return strconv.ParseInt(lit.Value, 10, 64)
  2514. case lexer.TokenString:
  2515. return lit.Value, nil
  2516. case lexer.TokenNULL:
  2517. return nil, nil
  2518. case lexer.TokenTRUE:
  2519. return true, nil
  2520. case lexer.TokenFALSE:
  2521. return false, nil
  2522. default:
  2523. return lit.Value, nil
  2524. }
  2525. }
  2526. func (e *Executor) evalColumnRef(ref *parser.ColumnRef, row storage.Row) (interface{}, error) {
  2527. if row == nil {
  2528. return nil, fmt.Errorf("no row context for column: %s", ref.Column)
  2529. }
  2530. // Check for ROWID aliases (rowid, oid, _rowid_)
  2531. if storage.IsRowIDColumn(ref.Column) {
  2532. if val, ok := row["_rowid_"]; ok {
  2533. return val, nil
  2534. }
  2535. return nil, nil
  2536. }
  2537. // For qualified column references (table.column):
  2538. //
  2539. // Resolution order:
  2540. // 1. Exact qualified key in outer row ("t1.b" → outer)
  2541. // 2. Case-insensitive qualified in outer row
  2542. // 3. Exact qualified key in current row ("x.b" → inner alias)
  2543. // 4. Case-insensitive qualified in current row
  2544. // 5. Unqualified in outer row — only reached when qualified lookup in current
  2545. // row failed, meaning the qualifier refers to an outer table not the inner
  2546. // alias (e.g. "t1.b" in a subquery "FROM t1 AS x" resolves here).
  2547. // 6. Unqualified in current row (last resort)
  2548. if ref.Table != "" {
  2549. if e.outerRow != nil {
  2550. // Step 1-2: qualified lookup in outer row
  2551. if val, ok := e.outerRow[ref.Table+"."+ref.Column]; ok {
  2552. return val, nil
  2553. }
  2554. for k, v := range e.outerRow {
  2555. if strings.EqualFold(k, ref.Table+"."+ref.Column) {
  2556. return v, nil
  2557. }
  2558. }
  2559. }
  2560. // Step 3-4: qualified lookup in current row
  2561. if val, ok := row[ref.Table+"."+ref.Column]; ok {
  2562. return val, nil
  2563. }
  2564. for k, v := range row {
  2565. if strings.EqualFold(k, ref.Table+"."+ref.Column) {
  2566. return v, nil
  2567. }
  2568. }
  2569. // Step 5: qualified lookup failed in current row — try outer row unqualified.
  2570. // This handles correlated subqueries where the qualifier names an outer table
  2571. // (e.g. "t1.b" when the inner FROM is "t1 AS x", so current row has "x.b"
  2572. // but no "t1.b").
  2573. if e.outerRow != nil {
  2574. if val, ok := e.outerRow[ref.Column]; ok {
  2575. return val, nil
  2576. }
  2577. for k, v := range e.outerRow {
  2578. if strings.EqualFold(k, ref.Column) {
  2579. return v, nil
  2580. }
  2581. }
  2582. }
  2583. }
  2584. // Step 6: unqualified fallback in current row (handles unqualified refs and
  2585. // single-table queries like "SELECT t1.a FROM t1" where rows have plain keys).
  2586. if val, ok := row[ref.Column]; ok {
  2587. return val, nil
  2588. }
  2589. for k, v := range row {
  2590. if strings.EqualFold(k, ref.Column) {
  2591. return v, nil
  2592. }
  2593. }
  2594. // For unqualified refs with an outer row context (ref.Table == "").
  2595. if e.outerRow != nil && ref.Table == "" {
  2596. if val, ok := e.outerRow[ref.Column]; ok {
  2597. return val, nil
  2598. }
  2599. for k, v := range e.outerRow {
  2600. if strings.EqualFold(k, ref.Column) {
  2601. return v, nil
  2602. }
  2603. }
  2604. }
  2605. return nil, nil // Column not found, return NULL
  2606. }
  2607. func (e *Executor) evalBinaryExpr(expr *parser.BinaryExpr, row storage.Row) (interface{}, error) {
  2608. left, err := e.evalExpr(expr.Left, row)
  2609. if err != nil {
  2610. return nil, err
  2611. }
  2612. right, err := e.evalExpr(expr.Right, row)
  2613. if err != nil {
  2614. return nil, err
  2615. }
  2616. switch expr.Op {
  2617. case lexer.TokenPlus:
  2618. if left == nil || right == nil {
  2619. return nil, nil
  2620. }
  2621. if isIntVal(left) && isIntVal(right) {
  2622. return toInt64(left) + toInt64(right), nil
  2623. }
  2624. return toFloat(left) + toFloat(right), nil
  2625. case lexer.TokenMinus:
  2626. if left == nil || right == nil {
  2627. return nil, nil
  2628. }
  2629. if isIntVal(left) && isIntVal(right) {
  2630. return toInt64(left) - toInt64(right), nil
  2631. }
  2632. return toFloat(left) - toFloat(right), nil
  2633. case lexer.TokenStar:
  2634. if left == nil || right == nil {
  2635. return nil, nil
  2636. }
  2637. if isIntVal(left) && isIntVal(right) {
  2638. return toInt64(left) * toInt64(right), nil
  2639. }
  2640. return toFloat(left) * toFloat(right), nil
  2641. case lexer.TokenSlash:
  2642. if left == nil || right == nil {
  2643. return nil, nil
  2644. }
  2645. // Integer division when both operands are integers (truncates toward zero, matching SQLite)
  2646. if isIntVal(left) && isIntVal(right) {
  2647. ri := toInt64(right)
  2648. if ri == 0 {
  2649. return nil, nil
  2650. }
  2651. return toInt64(left) / ri, nil
  2652. }
  2653. r := toFloat(right)
  2654. if r == 0 {
  2655. return nil, nil // Division by zero returns NULL
  2656. }
  2657. return toFloat(left) / r, nil
  2658. case lexer.TokenPercent:
  2659. if left == nil || right == nil {
  2660. return nil, nil
  2661. }
  2662. if isIntVal(left) && isIntVal(right) {
  2663. ri := toInt64(right)
  2664. if ri == 0 {
  2665. return nil, nil
  2666. }
  2667. return toInt64(left) % ri, nil
  2668. }
  2669. return int64(toFloat(left)) % int64(toFloat(right)), nil
  2670. case lexer.TokenEq:
  2671. if left == nil || right == nil {
  2672. return nil, nil
  2673. }
  2674. return compare(left, right) == 0, nil
  2675. case lexer.TokenNeq:
  2676. if left == nil || right == nil {
  2677. return nil, nil
  2678. }
  2679. return compare(left, right) != 0, nil
  2680. case lexer.TokenLt:
  2681. if left == nil || right == nil {
  2682. return nil, nil
  2683. }
  2684. return compare(left, right) < 0, nil
  2685. case lexer.TokenLte:
  2686. if left == nil || right == nil {
  2687. return nil, nil
  2688. }
  2689. return compare(left, right) <= 0, nil
  2690. case lexer.TokenGt:
  2691. if left == nil || right == nil {
  2692. return nil, nil
  2693. }
  2694. return compare(left, right) > 0, nil
  2695. case lexer.TokenGte:
  2696. if left == nil || right == nil {
  2697. return nil, nil
  2698. }
  2699. return compare(left, right) >= 0, nil
  2700. case lexer.TokenAND:
  2701. // Three-value logic: FALSE AND x = FALSE; NULL AND TRUE = NULL; TRUE AND TRUE = TRUE
  2702. if left != nil && !toBool(left) {
  2703. return false, nil
  2704. }
  2705. if right != nil && !toBool(right) {
  2706. return false, nil
  2707. }
  2708. if left == nil || right == nil {
  2709. return nil, nil
  2710. }
  2711. return true, nil
  2712. case lexer.TokenOR:
  2713. // Three-value logic: TRUE OR x = TRUE; NULL OR FALSE = NULL; FALSE OR FALSE = FALSE
  2714. if left != nil && toBool(left) {
  2715. return true, nil
  2716. }
  2717. if right != nil && toBool(right) {
  2718. return true, nil
  2719. }
  2720. if left == nil || right == nil {
  2721. return nil, nil
  2722. }
  2723. return false, nil
  2724. case lexer.TokenConcat:
  2725. return toString(left) + toString(right), nil
  2726. default:
  2727. return nil, fmt.Errorf("unsupported operator: %v", expr.Op)
  2728. }
  2729. }
  2730. // applyBinaryOp applies a binary operator to two already-evaluated values.
  2731. func (e *Executor) applyBinaryOp(op lexer.TokenType, left, right interface{}) (interface{}, error) {
  2732. dummy := &parser.BinaryExpr{Op: op}
  2733. _ = dummy
  2734. switch op {
  2735. case lexer.TokenPlus:
  2736. if left == nil || right == nil {
  2737. return nil, nil
  2738. }
  2739. if isIntVal(left) && isIntVal(right) {
  2740. return toInt64(left) + toInt64(right), nil
  2741. }
  2742. return toFloat(left) + toFloat(right), nil
  2743. case lexer.TokenMinus:
  2744. if left == nil || right == nil {
  2745. return nil, nil
  2746. }
  2747. if isIntVal(left) && isIntVal(right) {
  2748. return toInt64(left) - toInt64(right), nil
  2749. }
  2750. return toFloat(left) - toFloat(right), nil
  2751. case lexer.TokenStar:
  2752. if left == nil || right == nil {
  2753. return nil, nil
  2754. }
  2755. if isIntVal(left) && isIntVal(right) {
  2756. return toInt64(left) * toInt64(right), nil
  2757. }
  2758. return toFloat(left) * toFloat(right), nil
  2759. case lexer.TokenSlash:
  2760. if left == nil || right == nil {
  2761. return nil, nil
  2762. }
  2763. if isIntVal(left) && isIntVal(right) {
  2764. ri := toInt64(right)
  2765. if ri == 0 {
  2766. return nil, nil
  2767. }
  2768. return toInt64(left) / ri, nil
  2769. }
  2770. r := toFloat(right)
  2771. if r == 0 {
  2772. return nil, nil
  2773. }
  2774. return toFloat(left) / r, nil
  2775. case lexer.TokenPercent:
  2776. if left == nil || right == nil {
  2777. return nil, nil
  2778. }
  2779. if isIntVal(left) && isIntVal(right) {
  2780. ri := toInt64(right)
  2781. if ri == 0 {
  2782. return nil, nil
  2783. }
  2784. return toInt64(left) % ri, nil
  2785. }
  2786. return int64(toFloat(left)) % int64(toFloat(right)), nil
  2787. case lexer.TokenEq:
  2788. if left == nil || right == nil {
  2789. return nil, nil
  2790. }
  2791. return compare(left, right) == 0, nil
  2792. case lexer.TokenNeq:
  2793. if left == nil || right == nil {
  2794. return nil, nil
  2795. }
  2796. return compare(left, right) != 0, nil
  2797. case lexer.TokenLt:
  2798. if left == nil || right == nil {
  2799. return nil, nil
  2800. }
  2801. return compare(left, right) < 0, nil
  2802. case lexer.TokenLte:
  2803. if left == nil || right == nil {
  2804. return nil, nil
  2805. }
  2806. return compare(left, right) <= 0, nil
  2807. case lexer.TokenGt:
  2808. if left == nil || right == nil {
  2809. return nil, nil
  2810. }
  2811. return compare(left, right) > 0, nil
  2812. case lexer.TokenGte:
  2813. if left == nil || right == nil {
  2814. return nil, nil
  2815. }
  2816. return compare(left, right) >= 0, nil
  2817. case lexer.TokenAND:
  2818. if left != nil && !toBool(left) {
  2819. return false, nil
  2820. }
  2821. if right != nil && !toBool(right) {
  2822. return false, nil
  2823. }
  2824. if left == nil || right == nil {
  2825. return nil, nil
  2826. }
  2827. return true, nil
  2828. case lexer.TokenOR:
  2829. if left != nil && toBool(left) {
  2830. return true, nil
  2831. }
  2832. if right != nil && toBool(right) {
  2833. return true, nil
  2834. }
  2835. if left == nil || right == nil {
  2836. return nil, nil
  2837. }
  2838. return false, nil
  2839. case lexer.TokenConcat:
  2840. return toString(left) + toString(right), nil
  2841. default:
  2842. return nil, fmt.Errorf("unsupported operator: %v", op)
  2843. }
  2844. }
  2845. // evalBuiltinFunction applies a named scalar function to pre-evaluated args.
  2846. func (e *Executor) evalBuiltinFunction(name string, args []interface{}) (interface{}, error) {
  2847. switch name {
  2848. case "NULLIF":
  2849. if len(args) >= 2 && compare(args[0], args[1]) == 0 {
  2850. return nil, nil
  2851. }
  2852. if len(args) > 0 {
  2853. return args[0], nil
  2854. }
  2855. case "IFNULL", "NVL":
  2856. if len(args) >= 2 {
  2857. if args[0] == nil {
  2858. return args[1], nil
  2859. }
  2860. return args[0], nil
  2861. }
  2862. case "COALESCE":
  2863. for _, a := range args {
  2864. if a != nil {
  2865. return a, nil
  2866. }
  2867. }
  2868. return nil, nil
  2869. case "ABS":
  2870. if len(args) > 0 && args[0] != nil {
  2871. if isIntVal(args[0]) {
  2872. v := toInt64(args[0])
  2873. if v < 0 {
  2874. return -v, nil
  2875. }
  2876. return v, nil
  2877. }
  2878. v := toFloat(args[0])
  2879. if v < 0 {
  2880. return -v, nil
  2881. }
  2882. return v, nil
  2883. }
  2884. case "LENGTH":
  2885. if len(args) > 0 && args[0] != nil {
  2886. return int64(len(fmt.Sprintf("%v", args[0]))), nil
  2887. }
  2888. }
  2889. // Fall back: store pre-evaluated values in row and build column refs.
  2890. row := make(storage.Row, len(args))
  2891. fn := &parser.FunctionCall{Name: name}
  2892. for i, a := range args {
  2893. key := fmt.Sprintf("__arg%d__", i)
  2894. row[key] = a
  2895. fn.Args = append(fn.Args, &parser.ColumnRef{Column: key})
  2896. }
  2897. return e.evalFunctionCall(fn, row)
  2898. }
  2899. func (e *Executor) evalUnaryExpr(expr *parser.UnaryExpr, row storage.Row) (interface{}, error) {
  2900. val, err := e.evalExpr(expr.Operand, row)
  2901. if err != nil {
  2902. return nil, err
  2903. }
  2904. switch expr.Op {
  2905. case lexer.TokenMinus:
  2906. if val == nil {
  2907. return nil, nil
  2908. }
  2909. if isIntVal(val) {
  2910. return -toInt64(val), nil
  2911. }
  2912. return -toFloat(val), nil
  2913. case lexer.TokenPlus:
  2914. if val == nil {
  2915. return nil, nil
  2916. }
  2917. if isIntVal(val) {
  2918. return toInt64(val), nil
  2919. }
  2920. return toFloat(val), nil
  2921. case lexer.TokenNOT:
  2922. if val == nil {
  2923. return nil, nil // NOT NULL = NULL
  2924. }
  2925. return !toBool(val), nil
  2926. default:
  2927. return val, nil
  2928. }
  2929. }
  2930. func (e *Executor) evalFunctionCall(fn *parser.FunctionCall, row storage.Row) (interface{}, error) {
  2931. name := strings.ToUpper(fn.Name)
  2932. // Evaluate arguments
  2933. args := make([]interface{}, len(fn.Args))
  2934. for i, arg := range fn.Args {
  2935. val, err := e.evalExpr(arg, row)
  2936. if err != nil {
  2937. return nil, err
  2938. }
  2939. args[i] = val
  2940. }
  2941. switch name {
  2942. case "UPPER":
  2943. if len(args) > 0 {
  2944. if args[0] == nil {
  2945. return nil, nil // NULL propagation
  2946. }
  2947. return strings.ToUpper(toString(args[0])), nil
  2948. }
  2949. case "LOWER":
  2950. if len(args) > 0 {
  2951. if args[0] == nil {
  2952. return nil, nil // NULL propagation
  2953. }
  2954. return strings.ToLower(toString(args[0])), nil
  2955. }
  2956. case "LENGTH":
  2957. if len(args) > 0 {
  2958. if args[0] == nil {
  2959. return nil, nil // NULL propagation
  2960. }
  2961. return int64(len(toString(args[0]))), nil
  2962. }
  2963. case "ABS":
  2964. if len(args) > 0 {
  2965. if args[0] == nil {
  2966. return nil, nil
  2967. }
  2968. v := toFloat(args[0])
  2969. if v < 0 {
  2970. return -v, nil
  2971. }
  2972. return v, nil
  2973. }
  2974. case "COALESCE":
  2975. for _, arg := range args {
  2976. if arg != nil {
  2977. return arg, nil
  2978. }
  2979. }
  2980. return nil, nil
  2981. case "NULLIF":
  2982. if len(args) >= 2 && compare(args[0], args[1]) == 0 {
  2983. return nil, nil
  2984. }
  2985. if len(args) > 0 {
  2986. return args[0], nil
  2987. }
  2988. case "IFNULL":
  2989. if len(args) >= 2 {
  2990. if args[0] == nil {
  2991. return args[1], nil
  2992. }
  2993. return args[0], nil
  2994. }
  2995. case "TYPEOF":
  2996. if len(args) > 0 {
  2997. switch args[0].(type) {
  2998. case nil:
  2999. return "null", nil
  3000. case int64, int:
  3001. return "integer", nil
  3002. case float64:
  3003. return "real", nil
  3004. case string:
  3005. return "text", nil
  3006. case []byte:
  3007. return "blob", nil
  3008. default:
  3009. return "text", nil
  3010. }
  3011. }
  3012. case "SUBSTR", "SUBSTRING":
  3013. if len(args) >= 2 {
  3014. s := toString(args[0])
  3015. start := int(toFloat(args[1])) - 1 // SQL is 1-indexed
  3016. if start < 0 {
  3017. start = 0
  3018. }
  3019. if start >= len(s) {
  3020. return "", nil
  3021. }
  3022. if len(args) >= 3 {
  3023. length := int(toFloat(args[2]))
  3024. if start+length > len(s) {
  3025. length = len(s) - start
  3026. }
  3027. return s[start : start+length], nil
  3028. }
  3029. return s[start:], nil
  3030. }
  3031. case "TRIM":
  3032. if len(args) > 0 {
  3033. return strings.TrimSpace(toString(args[0])), nil
  3034. }
  3035. case "REPLACE":
  3036. if len(args) >= 3 {
  3037. return strings.ReplaceAll(toString(args[0]), toString(args[1]), toString(args[2])), nil
  3038. }
  3039. // Additional SQLite functions
  3040. case "PRINTF":
  3041. if len(args) > 0 {
  3042. format := toString(args[0])
  3043. fmtArgs := make([]interface{}, len(args)-1)
  3044. for i := 1; i < len(args); i++ {
  3045. fmtArgs[i-1] = args[i]
  3046. }
  3047. return fmt.Sprintf(format, fmtArgs...), nil
  3048. }
  3049. case "HEX":
  3050. if len(args) > 0 {
  3051. s := toString(args[0])
  3052. return strings.ToUpper(fmt.Sprintf("%x", []byte(s))), nil
  3053. }
  3054. case "UNHEX":
  3055. if len(args) > 0 {
  3056. s := toString(args[0])
  3057. var result []byte
  3058. for i := 0; i < len(s)-1; i += 2 {
  3059. var b byte
  3060. fmt.Sscanf(s[i:i+2], "%x", &b)
  3061. result = append(result, b)
  3062. }
  3063. return string(result), nil
  3064. }
  3065. case "RANDOM":
  3066. return rand.Int63(), nil
  3067. case "RANDOMBLOB":
  3068. if len(args) > 0 {
  3069. n := int(toFloat(args[0]))
  3070. if n <= 0 {
  3071. n = 1
  3072. }
  3073. if n > 1000000 {
  3074. n = 1000000
  3075. }
  3076. blob := make([]byte, n)
  3077. rand.Read(blob)
  3078. return string(blob), nil
  3079. }
  3080. case "ZEROBLOB":
  3081. if len(args) > 0 {
  3082. n := int(toFloat(args[0]))
  3083. if n <= 0 {
  3084. n = 1
  3085. }
  3086. if n > 1000000 {
  3087. n = 1000000
  3088. }
  3089. return string(make([]byte, n)), nil
  3090. }
  3091. case "INSTR":
  3092. if len(args) >= 2 {
  3093. s := toString(args[0])
  3094. substr := toString(args[1])
  3095. idx := strings.Index(s, substr)
  3096. if idx < 0 {
  3097. return int64(0), nil
  3098. }
  3099. return int64(idx + 1), nil // SQL is 1-indexed
  3100. }
  3101. case "GLOB":
  3102. if len(args) >= 2 {
  3103. pattern := toString(args[0])
  3104. s := toString(args[1])
  3105. return matchGlob(pattern, s), nil
  3106. }
  3107. case "ROUND":
  3108. if len(args) > 0 {
  3109. v := toFloat(args[0])
  3110. decimals := 0
  3111. if len(args) >= 2 {
  3112. decimals = int(toFloat(args[1]))
  3113. }
  3114. mult := 1.0
  3115. for i := 0; i < decimals; i++ {
  3116. mult *= 10
  3117. }
  3118. return float64(int64(v*mult+0.5)) / mult, nil
  3119. }
  3120. case "MAX":
  3121. if len(args) > 0 {
  3122. max := args[0]
  3123. for _, arg := range args[1:] {
  3124. if compare(arg, max) > 0 {
  3125. max = arg
  3126. }
  3127. }
  3128. return max, nil
  3129. }
  3130. case "MIN":
  3131. if len(args) > 0 {
  3132. min := args[0]
  3133. for _, arg := range args[1:] {
  3134. if compare(arg, min) < 0 {
  3135. min = arg
  3136. }
  3137. }
  3138. return min, nil
  3139. }
  3140. case "CONCAT":
  3141. var result strings.Builder
  3142. for _, arg := range args {
  3143. result.WriteString(toString(arg))
  3144. }
  3145. return result.String(), nil
  3146. }
  3147. return nil, nil
  3148. }
  3149. func (e *Executor) evalCaseExpr(expr *parser.CaseExpr, row storage.Row) (interface{}, error) {
  3150. var operand interface{}
  3151. if expr.Operand != nil {
  3152. var err error
  3153. operand, err = e.evalExpr(expr.Operand, row)
  3154. if err != nil {
  3155. return nil, err
  3156. }
  3157. }
  3158. for _, when := range expr.Whens {
  3159. cond, err := e.evalExpr(when.Condition, row)
  3160. if err != nil {
  3161. return nil, err
  3162. }
  3163. var match bool
  3164. if expr.Operand != nil {
  3165. // Simple CASE: CASE operand WHEN val THEN ... — NULL operand matches nothing
  3166. if operand == nil {
  3167. continue
  3168. }
  3169. match = compare(operand, cond) == 0
  3170. } else {
  3171. // Searched CASE: CASE WHEN cond THEN ... — NULL condition is falsy
  3172. match = toBool(cond)
  3173. }
  3174. if match {
  3175. return e.evalExpr(when.Result, row)
  3176. }
  3177. }
  3178. if expr.Else != nil {
  3179. return e.evalExpr(expr.Else, row)
  3180. }
  3181. return nil, nil
  3182. }
  3183. func (e *Executor) evalInExpr(expr *parser.InExpr, row storage.Row) (interface{}, error) {
  3184. left, err := e.evalExpr(expr.Left, row)
  3185. if err != nil {
  3186. return nil, err
  3187. }
  3188. // Handle subquery: IN (SELECT ...)
  3189. if expr.Subquery != nil {
  3190. var result *Result
  3191. var err error
  3192. // Cache non-correlated subquery results for the duration of this query.
  3193. // Safe when outerRow is nil (no outer context that the subquery could reference).
  3194. if e.subqueryCache != nil && e.outerRow == nil {
  3195. if cached, ok := e.subqueryCache[expr.Subquery]; ok {
  3196. result = cached
  3197. } else {
  3198. result, err = e.executeSelect(expr.Subquery)
  3199. if err == nil {
  3200. e.subqueryCache[expr.Subquery] = result
  3201. }
  3202. }
  3203. } else {
  3204. result, err = e.executeSelect(expr.Subquery)
  3205. }
  3206. if err != nil {
  3207. return nil, fmt.Errorf("IN subquery error: %w", err)
  3208. }
  3209. if len(result.Columns) != 1 {
  3210. return nil, fmt.Errorf("subquery in IN must return exactly one column")
  3211. }
  3212. // SQL three-valued logic: if left is NULL → NULL; if any match → true; if any NULL → NULL; else false.
  3213. if left == nil {
  3214. return nil, nil
  3215. }
  3216. sawNull := false
  3217. for _, resultRow := range result.Rows {
  3218. if len(resultRow) == 0 {
  3219. continue
  3220. }
  3221. v := resultRow[0]
  3222. if v == nil {
  3223. sawNull = true
  3224. continue
  3225. }
  3226. if compare(left, v) == 0 {
  3227. if expr.Not {
  3228. return false, nil
  3229. }
  3230. return true, nil
  3231. }
  3232. }
  3233. if sawNull {
  3234. return nil, nil
  3235. }
  3236. if expr.Not {
  3237. return true, nil
  3238. }
  3239. return false, nil
  3240. }
  3241. // Handle value list: IN (1, 2, 3).
  3242. // Empty list: always FALSE (IN) / TRUE (NOT IN), even for NULL.
  3243. if len(expr.Values) == 0 {
  3244. return expr.Not, nil
  3245. }
  3246. // SQL three-valued logic: if left is NULL → NULL; if any match → true/false;
  3247. // if list contains NULL and no match → NULL.
  3248. if left == nil {
  3249. return nil, nil
  3250. }
  3251. sawNull := false
  3252. for _, val := range expr.Values {
  3253. v, err := e.evalExpr(val, row)
  3254. if err != nil {
  3255. return nil, err
  3256. }
  3257. if v == nil {
  3258. sawNull = true
  3259. continue
  3260. }
  3261. if compare(left, v) == 0 {
  3262. if expr.Not {
  3263. return false, nil
  3264. }
  3265. return true, nil
  3266. }
  3267. }
  3268. if sawNull {
  3269. return nil, nil
  3270. }
  3271. if expr.Not {
  3272. return true, nil
  3273. }
  3274. return false, nil
  3275. }
  3276. func (e *Executor) evalBetweenExpr(expr *parser.BetweenExpr, row storage.Row) (interface{}, error) {
  3277. val, err := e.evalExpr(expr.Left, row)
  3278. if err != nil {
  3279. return nil, err
  3280. }
  3281. low, err := e.evalExpr(expr.Low, row)
  3282. if err != nil {
  3283. return nil, err
  3284. }
  3285. high, err := e.evalExpr(expr.High, row)
  3286. if err != nil {
  3287. return nil, err
  3288. }
  3289. if expr.Not {
  3290. // NOT BETWEEN is equivalent to: val < low OR val > high
  3291. // We need to handle NULL using three-valued OR logic:
  3292. // NULL OR TRUE = TRUE
  3293. // NULL OR FALSE = NULL
  3294. // NULL OR NULL = NULL
  3295. var lessThan, greaterThan interface{}
  3296. if val == nil || low == nil {
  3297. lessThan = nil // NULL
  3298. } else {
  3299. lessThan = compare(val, low) < 0
  3300. }
  3301. if val == nil || high == nil {
  3302. greaterThan = nil // NULL
  3303. } else {
  3304. greaterThan = compare(val, high) > 0
  3305. }
  3306. // Implement three-valued OR
  3307. if toBool(lessThan) || toBool(greaterThan) {
  3308. return true, nil
  3309. }
  3310. if lessThan == nil || greaterThan == nil {
  3311. return nil, nil // NULL
  3312. }
  3313. return false, nil
  3314. } else {
  3315. // BETWEEN is equivalent to: val >= low AND val <= high
  3316. // Three-value logic: if val < low → FALSE (regardless of high); if val >= low and high is NULL → NULL
  3317. if val == nil {
  3318. return nil, nil
  3319. }
  3320. // x BETWEEN a AND b = (x >= a) AND (x <= b)
  3321. // NULL AND FALSE = FALSE; NULL AND TRUE = NULL
  3322. if low == nil {
  3323. // x >= NULL = NULL; check upper bound for early FALSE
  3324. if high != nil && compare(val, high) > 0 {
  3325. return false, nil // NULL AND FALSE = FALSE
  3326. }
  3327. return nil, nil // NULL AND TRUE/NULL = NULL
  3328. }
  3329. if compare(val, low) < 0 {
  3330. return false, nil // val < low → FALSE AND anything = FALSE
  3331. }
  3332. if high == nil {
  3333. return nil, nil // TRUE AND NULL = NULL
  3334. }
  3335. return compare(val, high) <= 0, nil
  3336. }
  3337. }
  3338. func (e *Executor) evalLikeExpr(expr *parser.LikeExpr, row storage.Row) (interface{}, error) {
  3339. val, err := e.evalExpr(expr.Left, row)
  3340. if err != nil {
  3341. return nil, err
  3342. }
  3343. pattern, err := e.evalExpr(expr.Pattern, row)
  3344. if err != nil {
  3345. return nil, err
  3346. }
  3347. s := toString(val)
  3348. p := toString(pattern)
  3349. // Convert SQL LIKE pattern to simple matching
  3350. // % matches any sequence, _ matches single character
  3351. matched := matchLike(s, p)
  3352. if expr.Not {
  3353. return !matched, nil
  3354. }
  3355. return matched, nil
  3356. }
  3357. func (e *Executor) evalIsNullExpr(expr *parser.IsNullExpr, row storage.Row) (interface{}, error) {
  3358. val, err := e.evalExpr(expr.Left, row)
  3359. if err != nil {
  3360. return nil, err
  3361. }
  3362. isNull := val == nil
  3363. if expr.Not {
  3364. return !isNull, nil
  3365. }
  3366. return isNull, nil
  3367. }
  3368. func (e *Executor) evalCastExpr(expr *parser.CastExpr, row storage.Row) (interface{}, error) {
  3369. val, err := e.evalExpr(expr.Expr, row)
  3370. if err != nil {
  3371. return nil, err
  3372. }
  3373. if val == nil {
  3374. return nil, nil // CAST(NULL AS any) = NULL
  3375. }
  3376. typeName := strings.ToUpper(expr.Type.Name)
  3377. switch {
  3378. case strings.Contains(typeName, "INT"):
  3379. return int64(toFloat(val)), nil
  3380. case strings.Contains(typeName, "REAL"), strings.Contains(typeName, "FLOAT"), strings.Contains(typeName, "DOUBLE"):
  3381. return toFloat(val), nil
  3382. case strings.Contains(typeName, "TEXT"), strings.Contains(typeName, "CHAR"):
  3383. return toString(val), nil
  3384. default:
  3385. return val, nil
  3386. }
  3387. }
  3388. // evalSubqueryExpr executes a scalar subquery and returns its value.
  3389. // A scalar subquery must return exactly one column. It returns:
  3390. // - The single value if the subquery returns one row
  3391. // - NULL if the subquery returns no rows
  3392. // - Error if the subquery returns more than one row (for strict SQL compliance)
  3393. func (e *Executor) evalSubqueryExpr(expr *parser.SubqueryExpr, row storage.Row) (interface{}, error) {
  3394. // Save and set outer row context for correlated subqueries
  3395. savedOuter := e.outerRow
  3396. e.outerRow = row
  3397. defer func() { e.outerRow = savedOuter }()
  3398. // Execute the subquery
  3399. result, err := e.executeSelect(expr.Query)
  3400. if err != nil {
  3401. return nil, fmt.Errorf("subquery error: %w", err)
  3402. }
  3403. // Check for empty result
  3404. if result.RowCount == 0 {
  3405. return nil, nil // Return NULL for empty subquery
  3406. }
  3407. // Check column count
  3408. if len(result.Columns) == 0 {
  3409. return nil, fmt.Errorf("subquery must return at least one column")
  3410. }
  3411. // For scalar subquery, return first column of first row
  3412. // Note: Strict SQL would error if more than one row is returned
  3413. // but we follow SQLite behavior which just returns the first value
  3414. if len(result.Rows) > 0 && len(result.Rows[0]) > 0 {
  3415. return result.Rows[0][0], nil
  3416. }
  3417. return nil, nil
  3418. }
  3419. // evalExistsExpr evaluates an EXISTS expression.
  3420. // Returns true if the subquery returns at least one row, false otherwise.
  3421. func (e *Executor) evalExistsExpr(expr *parser.ExistsExpr, row storage.Row) (interface{}, error) {
  3422. // Save and set outer row context for correlated subqueries
  3423. savedOuter := e.outerRow
  3424. e.outerRow = row
  3425. defer func() { e.outerRow = savedOuter }()
  3426. // Execute the subquery
  3427. result, err := e.executeSelect(expr.Subquery)
  3428. if err != nil {
  3429. return nil, fmt.Errorf("EXISTS subquery error: %w", err)
  3430. }
  3431. // EXISTS returns true if any rows are returned
  3432. return len(result.Rows) > 0, nil
  3433. }
  3434. // evalAggregateExpr evaluates an aggregate expression over multiple rows.
  3435. func (e *Executor) evalAggregateExpr(expr parser.Expr, rows []storage.Row) (interface{}, error) {
  3436. fn, ok := expr.(*parser.FunctionCall)
  3437. if !ok {
  3438. // Not a function call - could be a binary expression with aggregates inside
  3439. // Evaluate it with the aggregate evaluation context
  3440. return e.evalExprWithAggregates(expr, rows)
  3441. }
  3442. name := strings.ToUpper(fn.Name)
  3443. switch name {
  3444. case "COUNT":
  3445. if fn.Star {
  3446. return int64(len(rows)), nil
  3447. }
  3448. if fn.Distinct {
  3449. seen := make(map[interface{}]struct{})
  3450. for _, row := range rows {
  3451. if len(fn.Args) > 0 {
  3452. val, _ := e.evalExpr(fn.Args[0], row)
  3453. if val != nil {
  3454. seen[val] = struct{}{}
  3455. }
  3456. }
  3457. }
  3458. return int64(len(seen)), nil
  3459. }
  3460. count := int64(0)
  3461. for _, row := range rows {
  3462. if len(fn.Args) > 0 {
  3463. val, _ := e.evalExpr(fn.Args[0], row)
  3464. if val != nil {
  3465. count++
  3466. }
  3467. }
  3468. }
  3469. return count, nil
  3470. case "SUM":
  3471. var sumInt int64
  3472. var sumFloat float64
  3473. allInt := true
  3474. hasValues := false
  3475. var seen map[interface{}]struct{}
  3476. if fn.Distinct {
  3477. seen = make(map[interface{}]struct{})
  3478. }
  3479. for _, row := range rows {
  3480. if len(fn.Args) > 0 {
  3481. val, _ := e.evalExpr(fn.Args[0], row)
  3482. if val != nil {
  3483. if fn.Distinct {
  3484. key := fmt.Sprintf("%v", val)
  3485. if _, exists := seen[key]; exists {
  3486. continue
  3487. }
  3488. seen[key] = struct{}{}
  3489. }
  3490. if isIntVal(val) {
  3491. sumInt += toInt64(val)
  3492. } else {
  3493. allInt = false
  3494. sumFloat += toFloat(val)
  3495. }
  3496. hasValues = true
  3497. }
  3498. }
  3499. }
  3500. if !hasValues {
  3501. return nil, nil
  3502. }
  3503. if allInt {
  3504. return sumInt, nil
  3505. }
  3506. return sumFloat + float64(sumInt), nil
  3507. case "AVG":
  3508. var sum float64
  3509. count := 0
  3510. for _, row := range rows {
  3511. if len(fn.Args) > 0 {
  3512. val, _ := e.evalExpr(fn.Args[0], row)
  3513. if val != nil {
  3514. sum += toFloat(val)
  3515. count++
  3516. }
  3517. }
  3518. }
  3519. if count == 0 {
  3520. return nil, nil
  3521. }
  3522. return sum / float64(count), nil
  3523. case "MIN":
  3524. var min interface{}
  3525. for _, row := range rows {
  3526. if len(fn.Args) > 0 {
  3527. val, _ := e.evalExpr(fn.Args[0], row)
  3528. if val != nil && (min == nil || compare(val, min) < 0) {
  3529. min = val
  3530. }
  3531. }
  3532. }
  3533. return min, nil
  3534. case "MAX":
  3535. var max interface{}
  3536. for _, row := range rows {
  3537. if len(fn.Args) > 0 {
  3538. val, _ := e.evalExpr(fn.Args[0], row)
  3539. if val != nil && (max == nil || compare(val, max) > 0) {
  3540. max = val
  3541. }
  3542. }
  3543. }
  3544. return max, nil
  3545. default:
  3546. // Non-aggregate scalar function: evaluate args through aggregate context
  3547. // (so COUNT/MIN/etc. inside NULLIF/COALESCE work correctly).
  3548. return e.evalExprWithAggregates(expr, rows)
  3549. }
  3550. }
  3551. // evalExprWithAggregates evaluates an expression that may contain aggregate functions
  3552. func (e *Executor) evalExprWithAggregates(expr parser.Expr, rows []storage.Row) (interface{}, error) {
  3553. switch ex := expr.(type) {
  3554. case *parser.BinaryExpr:
  3555. left, err := e.evalExprWithAggregates(ex.Left, rows)
  3556. if err != nil {
  3557. return nil, err
  3558. }
  3559. right, err := e.evalExprWithAggregates(ex.Right, rows)
  3560. if err != nil {
  3561. return nil, err
  3562. }
  3563. // Use the same logic as evalBinaryExpr to preserve integer semantics.
  3564. combined := &parser.BinaryExpr{Op: ex.Op}
  3565. return e.applyBinaryOp(combined.Op, left, right)
  3566. case *parser.FunctionCall:
  3567. name := strings.ToUpper(ex.Name)
  3568. switch name {
  3569. case "COUNT", "SUM", "AVG", "MIN", "MAX", "TOTAL", "GROUP_CONCAT":
  3570. return e.evalAggregateExpr(expr, rows)
  3571. default:
  3572. // Non-aggregate: evaluate each arg with aggregate context, then apply scalar.
  3573. args := make([]interface{}, len(ex.Args))
  3574. for i, arg := range ex.Args {
  3575. v, err := e.evalExprWithAggregates(arg, rows)
  3576. if err != nil {
  3577. return nil, err
  3578. }
  3579. args[i] = v
  3580. }
  3581. return e.evalBuiltinFunction(name, args)
  3582. }
  3583. case *parser.ParenExpr:
  3584. return e.evalExprWithAggregates(ex.Expr, rows)
  3585. case *parser.UnaryExpr:
  3586. operand, err := e.evalExprWithAggregates(ex.Operand, rows)
  3587. if err != nil {
  3588. return nil, err
  3589. }
  3590. switch ex.Op {
  3591. case lexer.TokenPlus:
  3592. return operand, nil
  3593. case lexer.TokenMinus:
  3594. if operand == nil {
  3595. return nil, nil
  3596. }
  3597. if isIntVal(operand) {
  3598. return -toInt64(operand), nil
  3599. }
  3600. return -toFloat(operand), nil
  3601. case lexer.TokenNOT:
  3602. if operand == nil {
  3603. return nil, nil // NOT NULL = NULL
  3604. }
  3605. return !toBool(operand), nil
  3606. default:
  3607. return nil, fmt.Errorf("unsupported unary operator: %v", ex.Op)
  3608. }
  3609. case *parser.CastExpr:
  3610. // Evaluate inner expression with aggregate context, then apply cast.
  3611. val, err := e.evalExprWithAggregates(ex.Expr, rows)
  3612. if err != nil {
  3613. return nil, err
  3614. }
  3615. if val == nil {
  3616. return nil, nil
  3617. }
  3618. switch strings.ToUpper(ex.Type.Name) {
  3619. case "INTEGER", "INT", "BIGINT", "SMALLINT", "TINYINT", "SIGNED":
  3620. if isIntVal(val) {
  3621. return toInt64(val), nil
  3622. }
  3623. return int64(toFloat(val)), nil
  3624. case "REAL", "FLOAT", "DOUBLE", "NUMERIC", "DECIMAL":
  3625. return toFloat(val), nil
  3626. case "TEXT", "VARCHAR", "CHAR", "STRING":
  3627. return fmt.Sprintf("%v", val), nil
  3628. }
  3629. return val, nil
  3630. case *parser.CaseExpr:
  3631. var operand interface{}
  3632. if ex.Operand != nil {
  3633. operand, _ = e.evalExprWithAggregates(ex.Operand, rows)
  3634. }
  3635. for _, when := range ex.Whens {
  3636. condVal, _ := e.evalExprWithAggregates(when.Condition, rows)
  3637. var matched bool
  3638. if ex.Operand != nil {
  3639. matched = operand != nil && condVal != nil && compare(operand, condVal) == 0
  3640. } else {
  3641. matched = toBool(condVal)
  3642. }
  3643. if matched {
  3644. return e.evalExprWithAggregates(when.Result, rows)
  3645. }
  3646. }
  3647. if ex.Else != nil {
  3648. return e.evalExprWithAggregates(ex.Else, rows)
  3649. }
  3650. return nil, nil
  3651. case *parser.IsNullExpr:
  3652. val, err := e.evalExprWithAggregates(ex.Left, rows)
  3653. if err != nil {
  3654. return nil, err
  3655. }
  3656. isNull := val == nil
  3657. if ex.Not {
  3658. return !isNull, nil
  3659. }
  3660. return isNull, nil
  3661. case *parser.BetweenExpr:
  3662. val, err := e.evalExprWithAggregates(ex.Left, rows)
  3663. if err != nil {
  3664. return nil, err
  3665. }
  3666. low, err := e.evalExprWithAggregates(ex.Low, rows)
  3667. if err != nil {
  3668. return nil, err
  3669. }
  3670. high, err := e.evalExprWithAggregates(ex.High, rows)
  3671. if err != nil {
  3672. return nil, err
  3673. }
  3674. if ex.Not {
  3675. // NOT BETWEEN: val < low OR val > high
  3676. var lessThan, greaterThan interface{}
  3677. if val == nil || low == nil {
  3678. lessThan = nil
  3679. } else {
  3680. lessThan = compare(val, low) < 0
  3681. }
  3682. if val == nil || high == nil {
  3683. greaterThan = nil
  3684. } else {
  3685. greaterThan = compare(val, high) > 0
  3686. }
  3687. // Three-valued OR
  3688. if toBool(lessThan) || toBool(greaterThan) {
  3689. return true, nil
  3690. }
  3691. if lessThan == nil || greaterThan == nil {
  3692. return nil, nil
  3693. }
  3694. return false, nil
  3695. } else {
  3696. // BETWEEN: val >= low AND val <= high
  3697. if val == nil {
  3698. return nil, nil
  3699. }
  3700. if low == nil {
  3701. if high != nil && compare(val, high) > 0 {
  3702. return false, nil
  3703. }
  3704. return nil, nil
  3705. }
  3706. if compare(val, low) < 0 {
  3707. return false, nil
  3708. }
  3709. if high == nil {
  3710. return nil, nil
  3711. }
  3712. return compare(val, high) <= 0, nil
  3713. }
  3714. case *parser.InExpr:
  3715. left, err := e.evalExprWithAggregates(ex.Left, rows)
  3716. if err != nil {
  3717. return nil, err
  3718. }
  3719. // Handle subquery
  3720. if ex.Subquery != nil {
  3721. var result *Result
  3722. var err error
  3723. if e.subqueryCache != nil && e.outerRow == nil {
  3724. if cached, ok := e.subqueryCache[ex.Subquery]; ok {
  3725. result = cached
  3726. } else {
  3727. result, err = e.executeSelect(ex.Subquery)
  3728. if err == nil {
  3729. e.subqueryCache[ex.Subquery] = result
  3730. }
  3731. }
  3732. } else {
  3733. result, err = e.executeSelect(ex.Subquery)
  3734. }
  3735. if err != nil {
  3736. return nil, fmt.Errorf("IN subquery error: %w", err)
  3737. }
  3738. if len(result.Columns) != 1 {
  3739. return nil, fmt.Errorf("subquery in IN must return exactly one column")
  3740. }
  3741. if left == nil {
  3742. return nil, nil
  3743. }
  3744. sawNull := false
  3745. for _, resultRow := range result.Rows {
  3746. if len(resultRow) == 0 {
  3747. continue
  3748. }
  3749. v := resultRow[0]
  3750. if v == nil {
  3751. sawNull = true
  3752. continue
  3753. }
  3754. if compare(left, v) == 0 {
  3755. if ex.Not {
  3756. return false, nil
  3757. }
  3758. return true, nil
  3759. }
  3760. }
  3761. if sawNull {
  3762. return nil, nil
  3763. }
  3764. if ex.Not {
  3765. return true, nil
  3766. }
  3767. return false, nil
  3768. }
  3769. // Handle value list
  3770. if len(ex.Values) == 0 {
  3771. return ex.Not, nil
  3772. }
  3773. if left == nil {
  3774. return nil, nil
  3775. }
  3776. sawNull := false
  3777. for _, val := range ex.Values {
  3778. v, err := e.evalExprWithAggregates(val, rows)
  3779. if err != nil {
  3780. return nil, err
  3781. }
  3782. if v == nil {
  3783. sawNull = true
  3784. continue
  3785. }
  3786. if compare(left, v) == 0 {
  3787. if ex.Not {
  3788. return false, nil
  3789. }
  3790. return true, nil
  3791. }
  3792. }
  3793. if sawNull {
  3794. return nil, nil
  3795. }
  3796. if ex.Not {
  3797. return true, nil
  3798. }
  3799. return false, nil
  3800. default:
  3801. // Literals and non-aggregate expressions.
  3802. if len(rows) > 0 {
  3803. return e.evalExpr(expr, rows[0])
  3804. }
  3805. return e.evalExpr(expr, storage.Row{})
  3806. }
  3807. }
  3808. // Helper functions
  3809. func (e *Executor) getSelectColumns(stmt *parser.SelectStmt, schema *storage.Schema) []string {
  3810. var columns []string
  3811. for _, col := range stmt.Columns {
  3812. if col.Star {
  3813. for _, c := range schema.Columns {
  3814. columns = append(columns, c.Name)
  3815. }
  3816. } else if col.Alias != "" {
  3817. columns = append(columns, col.Alias)
  3818. } else if ref, ok := col.Expr.(*parser.ColumnRef); ok {
  3819. columns = append(columns, ref.Column)
  3820. } else {
  3821. columns = append(columns, fmt.Sprintf("column%d", len(columns)+1))
  3822. }
  3823. }
  3824. return columns
  3825. }
  3826. func (e *Executor) hasAggregates(columns []parser.SelectColumn) bool {
  3827. for _, col := range columns {
  3828. if e.isAggregate(col.Expr) {
  3829. return true
  3830. }
  3831. }
  3832. return false
  3833. }
  3834. func (e *Executor) isAggregate(expr parser.Expr) bool {
  3835. if fn, ok := expr.(*parser.FunctionCall); ok {
  3836. name := strings.ToUpper(fn.Name)
  3837. switch name {
  3838. case "COUNT", "SUM", "AVG", "MIN", "MAX", "TOTAL", "GROUP_CONCAT":
  3839. return true
  3840. }
  3841. // Non-aggregate function: check if any arg contains an aggregate.
  3842. for _, arg := range fn.Args {
  3843. if e.isAggregate(arg) {
  3844. return true
  3845. }
  3846. }
  3847. return false
  3848. }
  3849. switch ex := expr.(type) {
  3850. case *parser.UnaryExpr:
  3851. return e.isAggregate(ex.Operand)
  3852. case *parser.BinaryExpr:
  3853. return e.isAggregate(ex.Left) || e.isAggregate(ex.Right)
  3854. case *parser.ParenExpr:
  3855. return e.isAggregate(ex.Expr)
  3856. case *parser.CaseExpr:
  3857. if ex.Operand != nil && e.isAggregate(ex.Operand) {
  3858. return true
  3859. }
  3860. for _, w := range ex.Whens {
  3861. if e.isAggregate(w.Condition) || e.isAggregate(w.Result) {
  3862. return true
  3863. }
  3864. }
  3865. if ex.Else != nil {
  3866. return e.isAggregate(ex.Else)
  3867. }
  3868. case *parser.CastExpr:
  3869. return e.isAggregate(ex.Expr)
  3870. case *parser.IsNullExpr:
  3871. return e.isAggregate(ex.Left)
  3872. case *parser.BetweenExpr:
  3873. return e.isAggregate(ex.Left) || e.isAggregate(ex.Low) || e.isAggregate(ex.High)
  3874. case *parser.InExpr:
  3875. if e.isAggregate(ex.Left) {
  3876. return true
  3877. }
  3878. for _, val := range ex.Values {
  3879. if e.isAggregate(val) {
  3880. return true
  3881. }
  3882. }
  3883. return false
  3884. }
  3885. return false
  3886. }
  3887. func (e *Executor) buildGroupKey(groupBy []parser.Expr, row storage.Row) string {
  3888. var parts []string
  3889. for _, expr := range groupBy {
  3890. val, _ := e.evalExpr(expr, row)
  3891. parts = append(parts, fmt.Sprintf("%v", val))
  3892. }
  3893. return strings.Join(parts, "|")
  3894. }
  3895. // resolveOrderByPositions replaces positional ORDER BY expressions (e.g. ORDER BY 1)
  3896. // with the corresponding SELECT column expressions per SQL-92 semantics.
  3897. func resolveOrderByPositions(orderBy []parser.OrderByItem, selectCols []parser.SelectColumn) []parser.OrderByItem {
  3898. result := make([]parser.OrderByItem, len(orderBy))
  3899. for i, item := range orderBy {
  3900. if lit, ok := item.Expr.(*parser.LiteralExpr); ok {
  3901. if pos, err := strconv.Atoi(lit.Value); err == nil && pos >= 1 && pos <= len(selectCols) {
  3902. col := selectCols[pos-1]
  3903. if col.Expr != nil {
  3904. result[i] = parser.OrderByItem{Expr: col.Expr, Desc: item.Desc}
  3905. continue
  3906. }
  3907. }
  3908. }
  3909. result[i] = item
  3910. }
  3911. return result
  3912. }
  3913. func (e *Executor) sortRows(rows []storage.Row, orderBy []parser.OrderByItem) {
  3914. sort.Slice(rows, func(i, j int) bool {
  3915. for _, item := range orderBy {
  3916. vi, _ := e.evalExpr(item.Expr, rows[i])
  3917. vj, _ := e.evalExpr(item.Expr, rows[j])
  3918. cmp := compare(vi, vj)
  3919. if cmp != 0 {
  3920. if item.Desc {
  3921. return cmp > 0
  3922. }
  3923. return cmp < 0
  3924. }
  3925. }
  3926. return false
  3927. })
  3928. }
  3929. // sortResultRows sorts Result.Rows based on ORDER BY clauses.
  3930. // It handles column aliases by matching them against the select columns.
  3931. func (e *Executor) sortResultRows(result *Result, orderBy []parser.OrderByItem, selectColumns []parser.SelectColumn, columnNames []string) {
  3932. orderBy = resolveOrderByPositions(orderBy, selectColumns)
  3933. sort.Slice(result.Rows, func(i, j int) bool {
  3934. for _, item := range orderBy {
  3935. var vi, vj interface{}
  3936. var rowI, rowJ storage.Row
  3937. // Check if ORDER BY references a column alias
  3938. if ref, ok := item.Expr.(*parser.ColumnRef); ok && ref.Table == "" {
  3939. // Look for matching alias in select columns
  3940. for idx, name := range columnNames {
  3941. if strings.EqualFold(name, ref.Column) {
  3942. if idx < len(result.Rows[i]) {
  3943. vi = result.Rows[i][idx]
  3944. vj = result.Rows[j][idx]
  3945. goto compare
  3946. }
  3947. }
  3948. }
  3949. }
  3950. // If not found as alias, try to evaluate the expression
  3951. // Create temporary rows from result rows for evaluation
  3952. rowI = e.resultRowToStorageRow(result, i)
  3953. rowJ = e.resultRowToStorageRow(result, j)
  3954. vi, _ = e.evalExpr(item.Expr, rowI)
  3955. vj, _ = e.evalExpr(item.Expr, rowJ)
  3956. compare:
  3957. cmp := compare(vi, vj)
  3958. if cmp != 0 {
  3959. if item.Desc {
  3960. return cmp > 0
  3961. }
  3962. return cmp < 0
  3963. }
  3964. }
  3965. return false
  3966. })
  3967. }
  3968. // resultRowToStorageRow converts a Result row back to storage.Row for expression evaluation.
  3969. func (e *Executor) resultRowToStorageRow(result *Result, rowIdx int) storage.Row {
  3970. row := make(storage.Row)
  3971. for colIdx, colName := range result.Columns {
  3972. if colIdx < len(result.Rows[rowIdx]) {
  3973. row[colName] = result.Rows[rowIdx][colIdx]
  3974. }
  3975. }
  3976. return row
  3977. }
  3978. func (e *Executor) evalIntExpr(expr parser.Expr) int {
  3979. val, _ := e.evalExpr(expr, nil)
  3980. return int(toFloat(val))
  3981. }
  3982. // Type conversion helpers
  3983. func isIntVal(v interface{}) bool {
  3984. switch v.(type) {
  3985. case int64, int, bool:
  3986. return true
  3987. default:
  3988. return false
  3989. }
  3990. }
  3991. func toInt64(v interface{}) int64 {
  3992. switch val := v.(type) {
  3993. case int64:
  3994. return val
  3995. case int:
  3996. return int64(val)
  3997. case float64:
  3998. return int64(val)
  3999. case bool:
  4000. if val {
  4001. return 1
  4002. }
  4003. return 0
  4004. default:
  4005. return 0
  4006. }
  4007. }
  4008. func toFloat(v interface{}) float64 {
  4009. switch val := v.(type) {
  4010. case nil:
  4011. return 0
  4012. case int64:
  4013. return float64(val)
  4014. case int:
  4015. return float64(val)
  4016. case float64:
  4017. return val
  4018. case bool:
  4019. if val {
  4020. return 1
  4021. }
  4022. return 0
  4023. case string:
  4024. f, _ := strconv.ParseFloat(val, 64)
  4025. return f
  4026. default:
  4027. return 0
  4028. }
  4029. }
  4030. func toBool(v interface{}) bool {
  4031. switch val := v.(type) {
  4032. case nil:
  4033. return false
  4034. case bool:
  4035. return val
  4036. case int64:
  4037. return val != 0
  4038. case int:
  4039. return val != 0
  4040. case float64:
  4041. return val != 0
  4042. case string:
  4043. return val != "" && val != "0" && strings.ToLower(val) != "false"
  4044. default:
  4045. return false
  4046. }
  4047. }
  4048. func toString(v interface{}) string {
  4049. if v == nil {
  4050. return ""
  4051. }
  4052. return fmt.Sprintf("%v", v)
  4053. }
  4054. func compare(a, b interface{}) int {
  4055. if a == nil && b == nil {
  4056. return 0
  4057. }
  4058. if a == nil {
  4059. return -1
  4060. }
  4061. if b == nil {
  4062. return 1
  4063. }
  4064. // Try numeric comparison
  4065. fa, oka := toNumeric(a)
  4066. fb, okb := toNumeric(b)
  4067. if oka && okb {
  4068. if fa < fb {
  4069. return -1
  4070. }
  4071. if fa > fb {
  4072. return 1
  4073. }
  4074. return 0
  4075. }
  4076. // String comparison
  4077. sa := toString(a)
  4078. sb := toString(b)
  4079. return strings.Compare(sa, sb)
  4080. }
  4081. func toNumeric(v interface{}) (float64, bool) {
  4082. switch val := v.(type) {
  4083. case int64:
  4084. return float64(val), true
  4085. case int:
  4086. return float64(val), true
  4087. case float64:
  4088. return val, true
  4089. case string:
  4090. f, err := strconv.ParseFloat(val, 64)
  4091. return f, err == nil
  4092. default:
  4093. return 0, false
  4094. }
  4095. }
  4096. // splitANDClauses flattens a tree of AND binary expressions into a slice of leaf conditions.
  4097. func splitANDClauses(expr parser.Expr) []parser.Expr {
  4098. if bin, ok := expr.(*parser.BinaryExpr); ok && bin.Op == lexer.TokenAND {
  4099. left := splitANDClauses(bin.Left)
  4100. right := splitANDClauses(bin.Right)
  4101. return append(left, right...)
  4102. }
  4103. return []parser.Expr{expr}
  4104. }
  4105. // collectColumnRefs returns all unqualified column names referenced in an expression.
  4106. func collectColumnRefs(expr parser.Expr) []string {
  4107. var refs []string
  4108. var walk func(parser.Expr)
  4109. walk = func(e parser.Expr) {
  4110. if e == nil {
  4111. return
  4112. }
  4113. switch n := e.(type) {
  4114. case *parser.ColumnRef:
  4115. refs = append(refs, n.Column)
  4116. case *parser.BinaryExpr:
  4117. walk(n.Left)
  4118. walk(n.Right)
  4119. case *parser.UnaryExpr:
  4120. walk(n.Operand)
  4121. case *parser.InExpr:
  4122. walk(n.Left)
  4123. for _, v := range n.Values {
  4124. walk(v)
  4125. }
  4126. case *parser.BetweenExpr:
  4127. walk(n.Left)
  4128. walk(n.Low)
  4129. walk(n.High)
  4130. case *parser.LikeExpr:
  4131. walk(n.Left)
  4132. walk(n.Pattern)
  4133. case *parser.IsNullExpr:
  4134. walk(n.Left)
  4135. case *parser.CaseExpr:
  4136. walk(n.Operand)
  4137. for _, w := range n.Whens {
  4138. walk(w.Condition)
  4139. walk(w.Result)
  4140. }
  4141. walk(n.Else)
  4142. case *parser.FunctionCall:
  4143. for _, a := range n.Args {
  4144. walk(a)
  4145. }
  4146. case *parser.ParenExpr:
  4147. walk(n.Expr)
  4148. }
  4149. }
  4150. walk(expr)
  4151. return refs
  4152. }
  4153. type tableColRef struct{ tbl, col string }
  4154. // collectTableColumnRefs returns all column references with their table qualifier (may be "").
  4155. func collectTableColumnRefs(expr parser.Expr) []tableColRef {
  4156. var refs []tableColRef
  4157. var walk func(parser.Expr)
  4158. walk = func(e parser.Expr) {
  4159. if e == nil {
  4160. return
  4161. }
  4162. switch n := e.(type) {
  4163. case *parser.ColumnRef:
  4164. refs = append(refs, tableColRef{tbl: n.Table, col: n.Column})
  4165. case *parser.BinaryExpr:
  4166. walk(n.Left)
  4167. walk(n.Right)
  4168. case *parser.UnaryExpr:
  4169. walk(n.Operand)
  4170. case *parser.InExpr:
  4171. walk(n.Left)
  4172. for _, v := range n.Values {
  4173. walk(v)
  4174. }
  4175. case *parser.BetweenExpr:
  4176. walk(n.Left)
  4177. walk(n.Low)
  4178. walk(n.High)
  4179. case *parser.LikeExpr:
  4180. walk(n.Left)
  4181. walk(n.Pattern)
  4182. case *parser.IsNullExpr:
  4183. walk(n.Left)
  4184. case *parser.CaseExpr:
  4185. walk(n.Operand)
  4186. for _, w := range n.Whens {
  4187. walk(w.Condition)
  4188. walk(w.Result)
  4189. }
  4190. walk(n.Else)
  4191. case *parser.FunctionCall:
  4192. for _, a := range n.Args {
  4193. walk(a)
  4194. }
  4195. }
  4196. }
  4197. walk(expr)
  4198. return refs
  4199. }
  4200. // combineAND combines a list of expressions with AND.
  4201. func combineAND(clauses []parser.Expr) parser.Expr {
  4202. if len(clauses) == 0 {
  4203. return nil
  4204. }
  4205. result := clauses[0]
  4206. for _, c := range clauses[1:] {
  4207. result = &parser.BinaryExpr{Left: result, Op: lexer.TokenAND, Right: c}
  4208. }
  4209. return result
  4210. }
  4211. // matchLike matches a string against a SQL LIKE pattern.
  4212. func matchLike(s, pattern string) bool {
  4213. // Simple implementation - convert to lowercase for case-insensitive matching
  4214. s = strings.ToLower(s)
  4215. pattern = strings.ToLower(pattern)
  4216. return matchLikeHelper(s, pattern)
  4217. }
  4218. func matchLikeHelper(s, p string) bool {
  4219. if p == "" {
  4220. return s == ""
  4221. }
  4222. if p[0] == '%' {
  4223. // % matches any sequence
  4224. for i := 0; i <= len(s); i++ {
  4225. if matchLikeHelper(s[i:], p[1:]) {
  4226. return true
  4227. }
  4228. }
  4229. return false
  4230. }
  4231. if s == "" {
  4232. return false
  4233. }
  4234. if p[0] == '_' || p[0] == s[0] {
  4235. return matchLikeHelper(s[1:], p[1:])
  4236. }
  4237. return false
  4238. }
  4239. // matchGlob matches a string against a GLOB pattern.
  4240. // GLOB uses * for any sequence and ? for single character (case-sensitive).
  4241. func matchGlob(pattern, s string) bool {
  4242. return matchGlobHelper(pattern, s)
  4243. }
  4244. func matchGlobHelper(p, s string) bool {
  4245. if p == "" {
  4246. return s == ""
  4247. }
  4248. if p[0] == '*' {
  4249. // * matches any sequence
  4250. for i := 0; i <= len(s); i++ {
  4251. if matchGlobHelper(p[1:], s[i:]) {
  4252. return true
  4253. }
  4254. }
  4255. return false
  4256. }
  4257. if s == "" {
  4258. return false
  4259. }
  4260. if p[0] == '?' || p[0] == s[0] {
  4261. return matchGlobHelper(p[1:], s[1:])
  4262. }
  4263. // Handle character classes [...]
  4264. if p[0] == '[' {
  4265. end := strings.Index(p, "]")
  4266. if end > 0 {
  4267. class := p[1:end]
  4268. match := false
  4269. negate := false
  4270. if len(class) > 0 && class[0] == '^' {
  4271. negate = true
  4272. class = class[1:]
  4273. }
  4274. for _, c := range class {
  4275. if byte(c) == s[0] {
  4276. match = true
  4277. break
  4278. }
  4279. }
  4280. if negate {
  4281. match = !match
  4282. }
  4283. if match {
  4284. return matchGlobHelper(p[end+1:], s[1:])
  4285. }
  4286. }
  4287. }
  4288. return false
  4289. }
  4290. // applyDistinct removes duplicate rows from the result
  4291. func (e *Executor) applyDistinct(rows [][]interface{}) [][]interface{} {
  4292. if len(rows) == 0 {
  4293. return rows
  4294. }
  4295. seen := make(map[string]bool)
  4296. uniqueRows := make([][]interface{}, 0)
  4297. for _, row := range rows {
  4298. // Create a key from all column values
  4299. key := ""
  4300. for i, val := range row {
  4301. if i > 0 {
  4302. key += "\x00" // Use null byte as separator
  4303. }
  4304. key += fmt.Sprintf("%v", val)
  4305. }
  4306. if !seen[key] {
  4307. seen[key] = true
  4308. uniqueRows = append(uniqueRows, row)
  4309. }
  4310. }
  4311. return uniqueRows
  4312. }