inillucent_sql/ast.rs
1//! The arena-backed abstract syntax tree.
2//!
3//! Invariant: a node is an index into an arena, never a box, so an adversarial
4//! nesting depth costs one vector push per node and a walker can be iterative.
5//! Every node carries the span it was parsed from, and no node has been
6//! normalised: `NOT IN`, `IS NOT DISTINCT FROM` and an implicit alias are all
7//! distinct nodes rather than reconstructions, because a diagnostic that has to
8//! guess what the user wrote points at the wrong place.
9//!
10//! Identifiers are interned once per parse. The interned form keeps the
11//! original spelling *and* an ASCII-folded lookup key, because SQL name
12//! resolution is case-insensitive while `sqlite_schema` records the spelling
13//! the user chose.
14
15use crate::lexer::{QuoteForm, Span};
16
17/// An identifier, interned per parse.
18#[derive(Clone, Copy, Debug, PartialEq, Eq, PartialOrd, Ord, Hash)]
19pub struct NameId(pub u32);
20
21/// An expression node.
22#[derive(Clone, Copy, Debug, PartialEq, Eq, PartialOrd, Ord, Hash)]
23pub struct ExprId(pub u32);
24
25/// A compound SELECT.
26#[derive(Clone, Copy, Debug, PartialEq, Eq, PartialOrd, Ord, Hash)]
27pub struct SelectId(pub u32);
28
29/// One arm of a compound SELECT.
30#[derive(Clone, Copy, Debug, PartialEq, Eq, PartialOrd, Ord, Hash)]
31pub struct SelectCoreId(pub u32);
32
33/// A FROM term.
34#[derive(Clone, Copy, Debug, PartialEq, Eq, PartialOrd, Ord, Hash)]
35pub struct FromTermId(pub u32);
36
37/// A window definition.
38#[derive(Clone, Copy, Debug, PartialEq, Eq, PartialOrd, Ord, Hash)]
39pub struct WindowId(pub u32);
40
41/// An interned identifier: what was written and what it matches.
42#[derive(Clone, Debug, PartialEq, Eq)]
43pub struct Name {
44 /// The identifier exactly as written, with quoting removed.
45 pub text: Vec<u8>,
46 /// The ASCII-folded key names are compared by.
47 pub folded: Vec<u8>,
48 /// How it was quoted, which decides whether it may become a string.
49 pub quote: QuoteForm,
50 /// Where it came from.
51 pub span: Span,
52}
53
54impl Name {
55 /// Returns the written spelling as text, for diagnostics and schema SQL.
56 pub fn as_str(&self) -> &str {
57 core::str::from_utf8(&self.text).unwrap_or("")
58 }
59}
60
61/// A literal value, kept as the bytes it was written as.
62#[derive(Clone, Debug, PartialEq, Eq)]
63pub enum Literal {
64 /// `NULL`.
65 Null,
66 /// `TRUE` or `FALSE`, which SQLite treats as 1 and 0.
67 Boolean(bool),
68 /// An integer literal, as written.
69 Integer(Vec<u8>),
70 /// A floating-point literal, as written.
71 Float(Vec<u8>),
72 /// A string literal, unescaped.
73 String(Vec<u8>),
74 /// A blob literal, decoded.
75 Blob(Vec<u8>),
76 /// `CURRENT_DATE`, `CURRENT_TIME` or `CURRENT_TIMESTAMP`.
77 CurrentDate,
78 /// `CURRENT_TIME`.
79 CurrentTime,
80 /// `CURRENT_TIMESTAMP`.
81 CurrentTimestamp,
82}
83
84/// A unary operator.
85#[derive(Clone, Copy, Debug, PartialEq, Eq)]
86pub enum UnaryOp {
87 /// `-x`
88 Negate,
89 /// `+x`, which SQLite keeps as a no-op that still forces evaluation.
90 Identity,
91 /// `~x`
92 BitNot,
93 /// `NOT x`
94 Not,
95}
96
97/// A binary operator.
98#[derive(Clone, Copy, Debug, PartialEq, Eq)]
99pub enum BinaryOp {
100 /// `OR`
101 Or,
102 /// `AND`
103 And,
104 /// `=`
105 Equal,
106 /// `<>`
107 NotEqual,
108 /// `<`
109 Less,
110 /// `<=`
111 LessEqual,
112 /// `>`
113 Greater,
114 /// `>=`
115 GreaterEqual,
116 /// `+`
117 Add,
118 /// `-`
119 Subtract,
120 /// `*`
121 Multiply,
122 /// `/`
123 Divide,
124 /// `%`
125 Modulo,
126 /// `||`
127 Concat,
128 /// `&`
129 BitAnd,
130 /// `|`
131 BitOr,
132 /// `<<`
133 ShiftLeft,
134 /// `>>`
135 ShiftRight,
136 /// `->`
137 Extract,
138 /// `->>`
139 ExtractText,
140 /// `MATCH`
141 Match,
142 /// `REGEXP`
143 Regexp,
144 /// `<->`
145 L2Distance,
146 /// `<=>`
147 CosineDistance,
148 /// `<#>`
149 NegativeInnerProduct,
150 /// `<+>`
151 L1Distance,
152 /// `<~>`
153 HammingDistance,
154 /// `<%>`
155 JaccardDistance,
156}
157
158/// Which pattern operator was written.
159#[derive(Clone, Copy, Debug, PartialEq, Eq)]
160pub enum PatternOp {
161 /// `LIKE`
162 Like,
163 /// `GLOB`
164 Glob,
165 /// `REGEXP`
166 Regexp,
167 /// `MATCH`
168 Match,
169}
170
171/// The right-hand side of `IN`.
172#[derive(Clone, Debug, PartialEq, Eq)]
173pub enum InRhs {
174 /// `IN (1, 2, 3)`, including the empty list.
175 List(Vec<ExprId>),
176 /// `IN (SELECT ...)`.
177 Select(SelectId),
178 /// `IN table` or `IN schema.table`.
179 Table {
180 /// The schema qualifier, when written.
181 database: Option<NameId>,
182 /// The table or table-valued function name.
183 table: NameId,
184 /// Arguments, when the name is a table-valued function.
185 arguments: Option<Vec<ExprId>>,
186 },
187}
188
189/// A `RAISE()` action inside a trigger body.
190#[derive(Clone, Copy, Debug, PartialEq, Eq)]
191pub enum RaiseAction {
192 /// `RAISE(IGNORE)`
193 Ignore,
194 /// `RAISE(ROLLBACK, msg)`
195 Rollback,
196 /// `RAISE(ABORT, msg)`
197 Abort,
198 /// `RAISE(FAIL, msg)`
199 Fail,
200}
201
202/// An expression, in the shape it was written.
203#[derive(Clone, Debug, PartialEq, Eq)]
204pub enum Expr {
205 /// A literal.
206 Literal(Literal),
207 /// A bound parameter.
208 Parameter {
209 /// The one-based parameter index assigned at parse time.
210 index: u32,
211 /// The written name, for `:name` style parameters.
212 name: Option<NameId>,
213 },
214 /// A column reference, with as much qualification as was written.
215 Column {
216 /// The schema qualifier.
217 database: Option<NameId>,
218 /// The table qualifier or alias.
219 table: Option<NameId>,
220 /// The column name.
221 column: NameId,
222 },
223 /// `*` or `table.*`, legal only where the grammar allows it.
224 Star {
225 /// The table qualifier, when written.
226 table: Option<NameId>,
227 },
228 /// A unary operator applied to one operand.
229 Unary {
230 /// Which operator.
231 op: UnaryOp,
232 /// The operand.
233 operand: ExprId,
234 },
235 /// A binary operator applied to two operands.
236 Binary {
237 /// Which operator.
238 op: BinaryOp,
239 /// The left operand.
240 left: ExprId,
241 /// The right operand.
242 right: ExprId,
243 },
244 /// `expr COLLATE name`.
245 Collate {
246 /// The operand.
247 operand: ExprId,
248 /// The collation name.
249 collation: NameId,
250 },
251 /// `CAST(expr AS type)`.
252 Cast {
253 /// The operand.
254 operand: ExprId,
255 /// The declared type, as written.
256 declared: NameId,
257 },
258 /// `expr [NOT] LIKE|GLOB|REGEXP|MATCH pattern [ESCAPE expr]`.
259 Pattern {
260 /// Whether `NOT` was written.
261 negated: bool,
262 /// Which operator.
263 op: PatternOp,
264 /// The value being matched.
265 operand: ExprId,
266 /// The pattern.
267 pattern: ExprId,
268 /// The `ESCAPE` argument, when written.
269 escape: Option<ExprId>,
270 },
271 /// `expr [NOT] BETWEEN low AND high`.
272 Between {
273 /// Whether `NOT` was written.
274 negated: bool,
275 /// The value being tested.
276 operand: ExprId,
277 /// The lower bound.
278 low: ExprId,
279 /// The upper bound.
280 high: ExprId,
281 },
282 /// `expr [NOT] IN rhs`.
283 In {
284 /// Whether `NOT` was written.
285 negated: bool,
286 /// The value being tested.
287 operand: ExprId,
288 /// What it is tested against.
289 rhs: InRhs,
290 },
291 /// `expr ISNULL` / `expr NOTNULL` / `expr IS [NOT] NULL`.
292 IsNull {
293 /// Whether the test is for not-null.
294 negated: bool,
295 /// The operand.
296 operand: ExprId,
297 },
298 /// `left IS [NOT] [DISTINCT FROM] right`.
299 Is {
300 /// Whether `NOT` was written.
301 negated: bool,
302 /// Whether the `DISTINCT FROM` spelling was used.
303 distinct_from: bool,
304 /// The left operand.
305 left: ExprId,
306 /// The right operand.
307 right: ExprId,
308 },
309 /// `CASE [operand] WHEN ... THEN ... [ELSE ...] END`.
310 Case {
311 /// The base operand, when the form has one.
312 operand: Option<ExprId>,
313 /// The `WHEN`/`THEN` pairs, in written order.
314 branches: Vec<(ExprId, ExprId)>,
315 /// The `ELSE` arm.
316 otherwise: Option<ExprId>,
317 },
318 /// A function call, aggregate or scalar or window.
319 Function {
320 /// The function name.
321 name: NameId,
322 /// Whether `DISTINCT` was written.
323 distinct: bool,
324 /// The arguments, or `None` for `count(*)`.
325 arguments: Option<Vec<ExprId>>,
326 /// An `ORDER BY` inside the argument list.
327 order_by: Vec<OrderTerm>,
328 /// A `FILTER (WHERE ...)` clause.
329 filter: Option<ExprId>,
330 /// An `OVER` clause.
331 over: Option<WindowId>,
332 },
333 /// `[NOT] EXISTS (SELECT ...)`.
334 Exists {
335 /// Whether `NOT` was written.
336 negated: bool,
337 /// The subquery.
338 select: SelectId,
339 },
340 /// A scalar subquery.
341 Subquery(SelectId),
342 /// A parenthesised list of two or more expressions.
343 RowValue(Vec<ExprId>),
344 /// `RAISE(...)`, legal only inside a trigger body.
345 Raise {
346 /// Which action.
347 action: RaiseAction,
348 /// The message, when the action takes one.
349 ///
350 /// An expression, as SQLite takes it: `RAISE(ABORT, 'too big: ' ||
351 /// NEW.n)` names the value that broke the rule, which is the reason to
352 /// write a guard trigger at all. It used to be a string literal only,
353 /// and anything else was a syntax error pointing at the `||`.
354 message: Option<ExprId>,
355 },
356}
357
358/// Ascending or descending.
359#[derive(Clone, Copy, Debug, PartialEq, Eq, Default)]
360pub enum SortOrder {
361 /// `ASC`, the default.
362 #[default]
363 Ascending,
364 /// `DESC`.
365 Descending,
366}
367
368/// Where NULLs sort, when written explicitly.
369#[derive(Clone, Copy, Debug, PartialEq, Eq)]
370pub enum NullOrder {
371 /// `NULLS FIRST`.
372 First,
373 /// `NULLS LAST`.
374 Last,
375}
376
377/// One term of an `ORDER BY`.
378#[derive(Clone, Copy, Debug, PartialEq, Eq)]
379pub struct OrderTerm {
380 /// The expression, which may be an ordinal or an alias.
381 pub expr: ExprId,
382 /// The written or defaulted direction.
383 pub order: SortOrder,
384 /// The written null ordering, when there was one.
385 pub nulls: Option<NullOrder>,
386}
387
388/// One result column of a SELECT.
389#[derive(Clone, Debug, PartialEq, Eq)]
390pub struct ResultColumn {
391 /// The expression, which may be `*` or `table.*`.
392 pub expr: ExprId,
393 /// The alias, when one was written.
394 pub alias: Option<NameId>,
395 /// Whether the alias was written with `AS`.
396 pub alias_was_explicit: bool,
397 /// The span of the whole result column.
398 pub span: Span,
399}
400
401/// Which join was written.
402#[derive(Clone, Copy, Debug, PartialEq, Eq)]
403pub enum JoinKind {
404 /// A comma, which is a cross join that may still be reordered.
405 Comma,
406 /// `[INNER] JOIN`.
407 Inner,
408 /// `CROSS JOIN`, which SQLite refuses to reorder.
409 Cross,
410 /// `LEFT [OUTER] JOIN`.
411 Left,
412 /// `RIGHT [OUTER] JOIN`.
413 Right,
414 /// `FULL [OUTER] JOIN`.
415 Full,
416}
417
418/// The `ON` or `USING` constraint of a join.
419#[derive(Clone, Debug, PartialEq, Eq)]
420pub enum JoinConstraint {
421 /// No constraint was written.
422 None,
423 /// `ON expr`.
424 On(ExprId),
425 /// `USING (a, b)`.
426 Using(Vec<NameId>),
427}
428
429/// How a FROM term names its rows.
430#[derive(Clone, Debug, PartialEq, Eq)]
431pub enum FromSource {
432 /// A table, view or table-valued function.
433 Table {
434 /// The schema qualifier.
435 database: Option<NameId>,
436 /// The object name.
437 name: NameId,
438 /// Arguments, when it is a table-valued function.
439 arguments: Option<Vec<ExprId>>,
440 /// `INDEXED BY name`, or `NOT INDEXED`.
441 indexed_by: IndexHint,
442 },
443 /// A subquery.
444 Subquery(SelectId),
445 /// A parenthesised join, which is one term to whatever contains it.
446 Join(Vec<FromTermId>),
447}
448
449/// An `INDEXED BY` hint.
450#[derive(Clone, Copy, Debug, PartialEq, Eq)]
451pub enum IndexHint {
452 /// Nothing was written.
453 None,
454 /// `NOT INDEXED`.
455 NotIndexed,
456 /// `INDEXED BY name`.
457 IndexedBy(NameId),
458}
459
460/// One term of a FROM clause, with the join that attached it.
461#[derive(Clone, Debug, PartialEq, Eq)]
462pub struct FromTerm {
463 /// Where the rows come from.
464 pub source: FromSource,
465 /// The alias, when one was written.
466 pub alias: Option<NameId>,
467 /// The join that attaches this term to the one before it.
468 pub join: JoinKind,
469 /// Whether `NATURAL` was written.
470 pub natural: bool,
471 /// The `ON` or `USING` constraint.
472 pub constraint: JoinConstraint,
473 /// The span of the whole term.
474 pub span: Span,
475}
476
477/// A window frame's unit.
478#[derive(Clone, Copy, Debug, PartialEq, Eq)]
479pub enum FrameUnit {
480 /// `ROWS`.
481 Rows,
482 /// `RANGE`.
483 Range,
484 /// `GROUPS`.
485 Groups,
486}
487
488/// One end of a window frame.
489#[derive(Clone, Copy, Debug, PartialEq, Eq)]
490pub enum FrameBound {
491 /// `UNBOUNDED PRECEDING`.
492 UnboundedPreceding,
493 /// `expr PRECEDING`.
494 Preceding(ExprId),
495 /// `CURRENT ROW`.
496 CurrentRow,
497 /// `expr FOLLOWING`.
498 Following(ExprId),
499 /// `UNBOUNDED FOLLOWING`.
500 UnboundedFollowing,
501}
502
503/// A frame's `EXCLUDE` clause.
504#[derive(Clone, Copy, Debug, PartialEq, Eq)]
505pub enum FrameExclude {
506 /// `EXCLUDE NO OTHERS`, the default.
507 NoOthers,
508 /// `EXCLUDE CURRENT ROW`.
509 CurrentRow,
510 /// `EXCLUDE GROUP`.
511 Group,
512 /// `EXCLUDE TIES`.
513 Ties,
514}
515
516/// A window definition, named or inline.
517#[derive(Clone, Debug, PartialEq, Eq)]
518pub struct Window {
519 /// The window this one inherits from, when written.
520 pub base: Option<NameId>,
521 /// `PARTITION BY`.
522 pub partition_by: Vec<ExprId>,
523 /// `ORDER BY`.
524 pub order_by: Vec<OrderTerm>,
525 /// The frame unit, when a frame was written.
526 pub unit: Option<FrameUnit>,
527 /// The frame start.
528 pub start: Option<FrameBound>,
529 /// The frame end.
530 pub end: Option<FrameBound>,
531 /// The `EXCLUDE` clause.
532 pub exclude: FrameExclude,
533 /// The span of the definition.
534 pub span: Span,
535}
536
537/// The rows of one arm of a compound SELECT.
538#[derive(Clone, Debug, PartialEq, Eq)]
539pub enum SelectBody {
540 /// `SELECT ...`.
541 Select {
542 /// Whether `DISTINCT` was written.
543 distinct: bool,
544 /// Whether `ALL` was written.
545 all: bool,
546 /// The result columns.
547 columns: Vec<ResultColumn>,
548 /// The FROM terms, in written order.
549 from: Vec<FromTermId>,
550 /// The WHERE clause.
551 filter: Option<ExprId>,
552 /// The GROUP BY terms.
553 group_by: Vec<ExprId>,
554 /// The HAVING clause.
555 having: Option<ExprId>,
556 /// Named windows.
557 windows: Vec<(NameId, WindowId)>,
558 },
559 /// `VALUES (...), (...)`.
560 Values(Vec<Vec<ExprId>>),
561}
562
563/// One arm of a compound SELECT.
564#[derive(Clone, Debug, PartialEq, Eq)]
565pub struct SelectCore {
566 /// What the arm produces.
567 pub body: SelectBody,
568 /// The span of the arm.
569 pub span: Span,
570}
571
572/// A compound operator.
573#[derive(Clone, Copy, Debug, PartialEq, Eq)]
574pub enum CompoundOp {
575 /// `UNION`.
576 Union,
577 /// `UNION ALL`.
578 UnionAll,
579 /// `INTERSECT`.
580 Intersect,
581 /// `EXCEPT`.
582 Except,
583}
584
585/// A common table expression.
586#[derive(Clone, Debug, PartialEq, Eq)]
587pub struct CommonTableExpr {
588 /// The name it is bound to.
589 pub name: NameId,
590 /// The explicit column list, when written.
591 pub columns: Vec<NameId>,
592 /// `MATERIALIZED` or `NOT MATERIALIZED`, when written.
593 pub materialized: Option<bool>,
594 /// The query.
595 pub select: SelectId,
596}
597
598/// A `WITH` prefix.
599#[derive(Clone, Debug, PartialEq, Eq, Default)]
600pub struct With {
601 /// Whether `RECURSIVE` was written.
602 pub recursive: bool,
603 /// The CTEs, in written order.
604 pub ctes: Vec<CommonTableExpr>,
605}
606
607/// A complete SELECT: a `WITH` prefix, compound arms, and the tail clauses.
608#[derive(Clone, Debug, PartialEq, Eq)]
609pub struct Select {
610 /// The `WITH` prefix.
611 pub with: With,
612 /// The first arm.
613 pub first: SelectCoreId,
614 /// Later arms, each with the operator that joined it.
615 pub compounds: Vec<(CompoundOp, SelectCoreId)>,
616 /// The `ORDER BY`, which belongs to the whole compound.
617 pub order_by: Vec<OrderTerm>,
618 /// The `LIMIT` expression.
619 pub limit: Option<ExprId>,
620 /// The `OFFSET` expression.
621 pub offset: Option<ExprId>,
622 /// The span of the whole statement.
623 pub span: Span,
624}
625
626/// A conflict-resolution algorithm.
627#[derive(Clone, Copy, Debug, PartialEq, Eq)]
628pub enum ConflictAction {
629 /// `ROLLBACK`.
630 Rollback,
631 /// `ABORT`, the default.
632 Abort,
633 /// `FAIL`.
634 Fail,
635 /// `IGNORE`.
636 Ignore,
637 /// `REPLACE`.
638 Replace,
639}
640
641/// A column constraint, in written order.
642#[derive(Clone, Debug, PartialEq, Eq)]
643pub enum ColumnConstraint {
644 /// `PRIMARY KEY [ASC|DESC] [conflict] [AUTOINCREMENT]`.
645 PrimaryKey {
646 /// The written direction.
647 order: SortOrder,
648 /// The conflict clause.
649 on_conflict: Option<ConflictAction>,
650 /// Whether `AUTOINCREMENT` was written.
651 autoincrement: bool,
652 },
653 /// `NOT NULL [conflict]`.
654 NotNull(Option<ConflictAction>),
655 /// `NULL`, which SQLite accepts and ignores.
656 Null,
657 /// `UNIQUE [conflict]`.
658 Unique(Option<ConflictAction>),
659 /// `CHECK (expr)`.
660 ///
661 /// **No conflict clause**, which is SQLite's grammar and not an omission:
662 /// `ccons ::= CHECK LP expr RP` has no `onconf`, so
663 /// `b INTEGER CHECK(b < 9) ON CONFLICT IGNORE` is a syntax error there and
664 /// has to be one here. Only a *table*-level `CHECK` takes the clause - see
665 /// [`TableConstraint::Check`].
666 Check(ExprId),
667 /// `DEFAULT expr`.
668 Default(ExprId),
669 /// `COLLATE name`.
670 Collate(NameId),
671 /// `REFERENCES ...`.
672 References(ForeignKeyClause),
673 /// `GENERATED ALWAYS AS (expr) [STORED|VIRTUAL]`.
674 Generated {
675 /// The generating expression.
676 expr: ExprId,
677 /// Whether `STORED` was written.
678 stored: bool,
679 },
680}
681
682/// A foreign-key clause, on a column or on a table.
683#[derive(Clone, Debug, PartialEq, Eq)]
684pub struct ForeignKeyClause {
685 /// The parent table.
686 pub table: NameId,
687 /// The parent columns, when written.
688 pub columns: Vec<NameId>,
689 /// The `ON DELETE`/`ON UPDATE`/`MATCH` clauses, as written.
690 pub actions: Vec<ForeignKeyAction>,
691 /// Whether the constraint is deferrable.
692 pub deferrable: Option<bool>,
693 /// Whether it is initially deferred.
694 pub initially_deferred: bool,
695}
696
697/// One `ON DELETE`, `ON UPDATE` or `MATCH` clause.
698#[derive(Clone, Copy, Debug, PartialEq, Eq)]
699pub enum ForeignKeyAction {
700 /// `ON DELETE <action>`.
701 OnDelete(ReferentialAction),
702 /// `ON UPDATE <action>`.
703 OnUpdate(ReferentialAction),
704 /// `MATCH name`.
705 Match(NameId),
706}
707
708/// What a referential action does.
709#[derive(Clone, Copy, Debug, PartialEq, Eq)]
710pub enum ReferentialAction {
711 /// `SET NULL`.
712 SetNull,
713 /// `SET DEFAULT`.
714 SetDefault,
715 /// `CASCADE`.
716 Cascade,
717 /// `RESTRICT`.
718 Restrict,
719 /// `NO ACTION`.
720 NoAction,
721}
722
723/// One column of a `CREATE TABLE`.
724#[derive(Clone, Debug, PartialEq, Eq)]
725pub struct ColumnDef {
726 /// The column name.
727 pub name: NameId,
728 /// The declared type, exactly as written, when there was one.
729 pub declared_type: Option<Vec<u8>>,
730 /// The constraints, in written order, each with its optional name.
731 pub constraints: Vec<(Option<NameId>, ColumnConstraint)>,
732 /// The span of the definition.
733 pub span: Span,
734}
735
736/// One indexed column of a table constraint or an index.
737#[derive(Clone, Copy, Debug, PartialEq, Eq)]
738pub struct IndexedColumn {
739 /// The key expression, which may be a bare column.
740 pub expr: ExprId,
741 /// An explicit collation.
742 pub collation: Option<NameId>,
743 /// The direction.
744 pub order: SortOrder,
745}
746
747/// A table-level constraint.
748#[derive(Clone, Debug, PartialEq, Eq)]
749pub enum TableConstraint {
750 /// `PRIMARY KEY (...)`.
751 PrimaryKey {
752 /// The key columns.
753 columns: Vec<IndexedColumn>,
754 /// The conflict clause.
755 on_conflict: Option<ConflictAction>,
756 /// Whether `AUTOINCREMENT` was written.
757 autoincrement: bool,
758 },
759 /// `UNIQUE (...)`.
760 Unique {
761 /// The key columns.
762 columns: Vec<IndexedColumn>,
763 /// The conflict clause.
764 on_conflict: Option<ConflictAction>,
765 },
766 /// `CHECK (expr) [conflict]`.
767 ///
768 /// **Parsed and then ignored, which is what SQLite does with it.**
769 /// `tcons ::= CHECK LP expr RP onconf` accepts the clause and
770 /// `sqlite3AddCheckConstraint` never reads it, so
771 /// `CONSTRAINT small CHECK(b < 9) ON CONFLICT FAIL` behaves exactly as
772 /// `ABORT`: measured against the pinned 3.53.4, an `INSERT` of three rows
773 /// whose second fails keeps none of them.
774 ///
775 /// It is in the tree rather than discarded at the token because the table's
776 /// `CREATE` text is stored and re-parsed on every open, so the grammar has
777 /// to accept everything the text can hold. Not accepting it did not cost
778 /// one statement a clause - it made the `CREATE TABLE` a parse error, and
779 /// every statement after it said `no such table`.
780 Check {
781 /// The predicate.
782 expr: ExprId,
783 /// The conflict clause, accepted and not acted on.
784 on_conflict: Option<ConflictAction>,
785 },
786 /// `FOREIGN KEY (...) REFERENCES ...`.
787 ForeignKey {
788 /// The child columns.
789 columns: Vec<NameId>,
790 /// The parent reference.
791 clause: ForeignKeyClause,
792 },
793}
794
795/// The body of a `CREATE TABLE`.
796#[derive(Clone, Debug, PartialEq, Eq)]
797pub enum CreateTableBody {
798 /// A column list.
799 Columns {
800 /// The columns, in written order.
801 columns: Vec<ColumnDef>,
802 /// The table constraints, in written order, each with its name.
803 constraints: Vec<(Option<NameId>, TableConstraint)>,
804 /// Whether `WITHOUT ROWID` was written.
805 without_rowid: bool,
806 /// Whether `STRICT` was written.
807 strict: bool,
808 },
809 /// `CREATE TABLE ... AS SELECT ...`.
810 AsSelect(SelectId),
811}
812
813/// An `UPSERT` clause.
814#[derive(Clone, Debug, PartialEq, Eq)]
815pub struct Upsert {
816 /// The conflict target columns, when written.
817 pub target: Vec<IndexedColumn>,
818 /// The conflict target's `WHERE`.
819 pub target_filter: Option<ExprId>,
820 /// The `DO UPDATE SET` assignments, empty for `DO NOTHING`.
821 pub assignments: Vec<(Vec<NameId>, ExprId)>,
822 /// Whether the action is `DO UPDATE`.
823 pub do_update: bool,
824 /// The `DO UPDATE`'s `WHERE`.
825 pub filter: Option<ExprId>,
826}
827
828/// What an INSERT inserts.
829#[derive(Clone, Debug, PartialEq, Eq)]
830pub enum InsertSource {
831 /// `VALUES`, or any SELECT.
832 Select(SelectId),
833 /// `DEFAULT VALUES`.
834 DefaultValues,
835}
836
837/// An `INSERT` statement.
838#[derive(Clone, Debug, PartialEq, Eq)]
839pub struct Insert {
840 /// The `WITH` prefix.
841 pub with: With,
842 /// The conflict algorithm from `INSERT OR ...` or `REPLACE`.
843 pub on_conflict: Option<ConflictAction>,
844 /// The schema qualifier.
845 pub database: Option<NameId>,
846 /// The target table.
847 pub table: NameId,
848 /// The table alias.
849 pub alias: Option<NameId>,
850 /// The column list, when written.
851 pub columns: Vec<NameId>,
852 /// The rows.
853 pub source: InsertSource,
854 /// The `ON CONFLICT` clauses, in written order.
855 pub upserts: Vec<Upsert>,
856 /// The `RETURNING` columns.
857 pub returning: Vec<ResultColumn>,
858}
859
860/// An `UPDATE` statement.
861#[derive(Clone, Debug, PartialEq, Eq)]
862pub struct Update {
863 /// The `WITH` prefix.
864 pub with: With,
865 /// The conflict algorithm from `UPDATE OR ...`.
866 pub on_conflict: Option<ConflictAction>,
867 /// The target term, which carries its own alias and index hint.
868 pub target: FromTermId,
869 /// The `SET` assignments; a group of names is the `(a, b) = ...` form.
870 pub assignments: Vec<(Vec<NameId>, ExprId)>,
871 /// An `UPDATE ... FROM` clause.
872 pub from: Vec<FromTermId>,
873 /// The `WHERE` clause.
874 pub filter: Option<ExprId>,
875 /// The `RETURNING` columns.
876 pub returning: Vec<ResultColumn>,
877 /// The `ORDER BY`, which SQLite allows with `LIMIT`.
878 pub order_by: Vec<OrderTerm>,
879 /// The `LIMIT`.
880 pub limit: Option<ExprId>,
881 /// The `OFFSET`.
882 pub offset: Option<ExprId>,
883 /// Where the clause the reference build has no grammar for was written.
884 ///
885 /// `ORDER BY` and `LIMIT` on a `DELETE` or an `UPDATE` are a compile-time
886 /// option in SQLite, and the pinned build is not compiled with it - so the
887 /// reference answers `near "ORDER": syntax error` and points at the word.
888 /// The syntax register requires these to *parse* here, so the refusal is
889 /// the binder's; it needs the position to be able to point at the same
890 /// word, and this is where the parser leaves it.
891 pub limited_at: Option<(Limited, crate::lexer::Span)>,
892}
893
894/// Which of the two words a limited `DELETE` or `UPDATE` was written with.
895///
896/// The reference names the first one it cannot parse, so a statement carrying
897/// both reports `ORDER` and one carrying only a `LIMIT` reports `LIMIT`.
898#[derive(Clone, Copy, Debug, PartialEq, Eq)]
899pub enum Limited {
900 /// `ORDER BY`.
901 OrderBy,
902 /// `LIMIT`.
903 Limit,
904}
905
906impl Limited {
907 /// Returns the word the refusal quotes.
908 pub fn word(self) -> &'static str {
909 match self {
910 Limited::OrderBy => "ORDER",
911 Limited::Limit => "LIMIT",
912 }
913 }
914}
915
916/// A `DELETE` statement.
917#[derive(Clone, Debug, PartialEq, Eq)]
918pub struct Delete {
919 /// The `WITH` prefix.
920 pub with: With,
921 /// The target term.
922 pub target: FromTermId,
923 /// The `WHERE` clause.
924 pub filter: Option<ExprId>,
925 /// The `RETURNING` columns.
926 pub returning: Vec<ResultColumn>,
927 /// The `ORDER BY`.
928 pub order_by: Vec<OrderTerm>,
929 /// The `LIMIT`.
930 pub limit: Option<ExprId>,
931 /// The `OFFSET`.
932 pub offset: Option<ExprId>,
933 /// Where the clause the reference build has no grammar for was written.
934 ///
935 /// `ORDER BY` and `LIMIT` on a `DELETE` or an `UPDATE` are a compile-time
936 /// option in SQLite, and the pinned build is not compiled with it - so the
937 /// reference answers `near "ORDER": syntax error` and points at the word.
938 /// The syntax register requires these to *parse* here, so the refusal is
939 /// the binder's; it needs the position to be able to point at the same
940 /// word, and this is where the parser leaves it.
941 pub limited_at: Option<(Limited, crate::lexer::Span)>,
942}
943
944/// Which kind of object a `DROP` names.
945#[derive(Clone, Copy, Debug, PartialEq, Eq)]
946pub enum ObjectKind {
947 /// A table.
948 Table,
949 /// An index.
950 Index,
951 /// A view.
952 View,
953 /// A trigger.
954 Trigger,
955}
956
957/// What an `ALTER TABLE` does.
958#[derive(Clone, Debug, PartialEq, Eq)]
959pub enum AlterAction {
960 /// `RENAME TO name`.
961 RenameTo(NameId),
962 /// `RENAME [COLUMN] a TO b`.
963 RenameColumn {
964 /// The current name.
965 from: NameId,
966 /// The new name.
967 to: NameId,
968 },
969 /// `ADD [COLUMN] def`.
970 AddColumn(ColumnDef),
971 /// `DROP [COLUMN] name`.
972 DropColumn(NameId),
973}
974
975/// When a trigger fires.
976#[derive(Clone, Copy, Debug, PartialEq, Eq)]
977pub enum TriggerTime {
978 /// `BEFORE`.
979 Before,
980 /// `AFTER`.
981 After,
982 /// `INSTEAD OF`.
983 InsteadOf,
984}
985
986/// What a trigger fires on.
987#[derive(Clone, Debug, PartialEq, Eq)]
988pub enum TriggerEvent {
989 /// `DELETE`.
990 Delete,
991 /// `INSERT`.
992 Insert,
993 /// `UPDATE [OF a, b]`.
994 Update(Vec<NameId>),
995}
996
997/// A `PRAGMA` argument.
998#[derive(Clone, Debug, PartialEq, Eq)]
999pub enum PragmaValue {
1000 /// Nothing was written.
1001 None,
1002 /// `= value` or `(value)`.
1003 Value(ExprId),
1004 /// `(name)`, which is a bare word rather than an expression.
1005 Name(NameId),
1006}
1007
1008/// A parsed statement.
1009#[derive(Clone, Debug, PartialEq, Eq)]
1010pub enum Statement {
1011 /// An empty statement, which SQLite compiles to nothing.
1012 Empty,
1013 /// `SELECT` or `VALUES`.
1014 Select(SelectId),
1015 /// `INSERT` or `REPLACE`.
1016 Insert(Box<Insert>),
1017 /// `UPDATE`.
1018 Update(Box<Update>),
1019 /// `DELETE`.
1020 Delete(Box<Delete>),
1021 /// `CREATE TABLE`.
1022 CreateTable {
1023 /// Whether `TEMP` was written.
1024 temporary: bool,
1025 /// Whether `IF NOT EXISTS` was written.
1026 if_not_exists: bool,
1027 /// The schema qualifier.
1028 database: Option<NameId>,
1029 /// The table name.
1030 name: NameId,
1031 /// The body.
1032 body: CreateTableBody,
1033 },
1034 /// `CREATE INDEX`.
1035 CreateIndex {
1036 /// Whether `UNIQUE` was written.
1037 unique: bool,
1038 /// Whether `IF NOT EXISTS` was written.
1039 if_not_exists: bool,
1040 /// The schema qualifier.
1041 database: Option<NameId>,
1042 /// The index name.
1043 name: NameId,
1044 /// The table it indexes.
1045 table: NameId,
1046 /// The module named by `USING`, when one was.
1047 ///
1048 /// SQLite has no `USING` on `CREATE INDEX`; PostgreSQL does, and it is
1049 /// how pgvector spells `USING hnsw`. This engine borrows the spelling
1050 /// for the same purpose: an index whose structure is not a b-tree.
1051 /// A plain `CREATE INDEX` leaves it `None` and nothing
1052 /// downstream changes.
1053 using: Option<NameId>,
1054 /// The key columns.
1055 columns: Vec<IndexedColumn>,
1056 /// The storage parameters `WITH ( ... )` named, as written.
1057 ///
1058 /// `m = 16`, `ef_construction = 64` and the rest: raw `name = value`
1059 /// slices, in the order they were written, for the structure named by
1060 /// `using` to read. Empty for a plain `CREATE INDEX`, which has no
1061 /// structure to read them.
1062 settings: Vec<Vec<u8>>,
1063 /// The partial-index predicate.
1064 filter: Option<ExprId>,
1065 },
1066 /// `CREATE VIEW`.
1067 CreateView {
1068 /// Whether `TEMP` was written.
1069 temporary: bool,
1070 /// Whether `IF NOT EXISTS` was written.
1071 if_not_exists: bool,
1072 /// The schema qualifier.
1073 database: Option<NameId>,
1074 /// The view name.
1075 name: NameId,
1076 /// The explicit column list.
1077 columns: Vec<NameId>,
1078 /// The query.
1079 select: SelectId,
1080 },
1081 /// `CREATE TRIGGER`.
1082 CreateTrigger {
1083 /// Whether `TEMP` was written.
1084 temporary: bool,
1085 /// Whether `IF NOT EXISTS` was written.
1086 if_not_exists: bool,
1087 /// The schema qualifier.
1088 database: Option<NameId>,
1089 /// The trigger name.
1090 name: NameId,
1091 /// When it fires.
1092 time: Option<TriggerTime>,
1093 /// What it fires on.
1094 event: TriggerEvent,
1095 /// The table it is attached to.
1096 table: NameId,
1097 /// The schema qualifier on the table, as in `ON main.t`.
1098 table_database: Option<NameId>,
1099 /// Whether `FOR EACH ROW` was written.
1100 for_each_row: bool,
1101 /// The `WHEN` guard.
1102 when: Option<ExprId>,
1103 /// The body statements, in written order.
1104 body: Vec<Statement>,
1105 },
1106 /// `CREATE VIRTUAL TABLE`.
1107 CreateVirtualTable {
1108 /// Whether `IF NOT EXISTS` was written.
1109 if_not_exists: bool,
1110 /// The schema qualifier.
1111 database: Option<NameId>,
1112 /// The table name.
1113 name: NameId,
1114 /// The module name.
1115 module: NameId,
1116 /// The module arguments, as written source slices.
1117 arguments: Vec<Vec<u8>>,
1118 },
1119 /// `DROP TABLE|INDEX|VIEW|TRIGGER`.
1120 Drop {
1121 /// Which kind of object.
1122 kind: ObjectKind,
1123 /// Whether `IF EXISTS` was written.
1124 if_exists: bool,
1125 /// The schema qualifier.
1126 database: Option<NameId>,
1127 /// The object name.
1128 name: NameId,
1129 },
1130 /// `ALTER TABLE`.
1131 AlterTable {
1132 /// The schema qualifier.
1133 database: Option<NameId>,
1134 /// The table name.
1135 table: NameId,
1136 /// What to do to it.
1137 action: AlterAction,
1138 },
1139 /// `BEGIN`.
1140 Begin {
1141 /// `DEFERRED`, `IMMEDIATE` or `EXCLUSIVE`, when written.
1142 behaviour: Option<TransactionBehaviour>,
1143 },
1144 /// `COMMIT` or `END`.
1145 Commit,
1146 /// `ROLLBACK [TO savepoint]`.
1147 Rollback {
1148 /// The savepoint to roll back to.
1149 savepoint: Option<NameId>,
1150 },
1151 /// `SAVEPOINT name`.
1152 Savepoint(NameId),
1153 /// `RELEASE [SAVEPOINT] name`.
1154 Release(NameId),
1155 /// `PRAGMA`.
1156 Pragma {
1157 /// The schema qualifier.
1158 database: Option<NameId>,
1159 /// The pragma name.
1160 name: NameId,
1161 /// The argument.
1162 value: PragmaValue,
1163 },
1164 /// `ATTACH`.
1165 Attach {
1166 /// The file expression.
1167 file: ExprId,
1168 /// The schema name expression.
1169 schema: ExprId,
1170 /// The `KEY` expression.
1171 key: Option<ExprId>,
1172 },
1173 /// `DETACH`.
1174 Detach {
1175 /// The schema name expression.
1176 schema: ExprId,
1177 },
1178 /// `VACUUM`.
1179 Vacuum {
1180 /// The schema to vacuum.
1181 database: Option<NameId>,
1182 /// The `INTO` target.
1183 into: Option<ExprId>,
1184 },
1185 /// `ANALYZE`.
1186 Analyze {
1187 /// The schema qualifier.
1188 database: Option<NameId>,
1189 /// The object to analyze.
1190 name: Option<NameId>,
1191 },
1192 /// `REINDEX`.
1193 Reindex {
1194 /// The schema qualifier.
1195 database: Option<NameId>,
1196 /// The collation, table or index to reindex.
1197 name: Option<NameId>,
1198 },
1199 /// `EXPLAIN` or `EXPLAIN QUERY PLAN`.
1200 Explain {
1201 /// Whether `QUERY PLAN` was written.
1202 query_plan: bool,
1203 /// The statement being explained.
1204 inner: Box<Statement>,
1205 },
1206}
1207
1208/// The behaviour of a `BEGIN`.
1209#[derive(Clone, Copy, Debug, PartialEq, Eq)]
1210pub enum TransactionBehaviour {
1211 /// `DEFERRED`.
1212 Deferred,
1213 /// `IMMEDIATE`.
1214 Immediate,
1215 /// `EXCLUSIVE`.
1216 Exclusive,
1217}
1218
1219/// How many name buffers [`Ast::clear`] keeps for the next parse to fill.
1220///
1221/// **Because `clear` empties `names`, which drops each `Name`'s two `Vec<u8>`
1222/// (task-2039).** The arena keeps its *vectors'* capacity across a clear and
1223/// not its *entries'*, so a connection re-compiling the same statement paid
1224/// two allocations per distinct name for ever. A statement names a handful of
1225/// things, so a short list of buffers covers the repeating case; a statement
1226/// that names hundreds gives the surplus back to the allocator rather than
1227/// holding it on a connection that will never name that many again.
1228const SPARE_NAME_BUFFERS: usize = 64;
1229
1230/// The largest name buffer [`Ast::clear`] keeps, in bytes of capacity.
1231///
1232/// A held buffer is memory the connection does not give back, so a long name -
1233/// a generated column alias, a quoted sentence - is dropped rather than kept.
1234/// With [`SPARE_NAME_BUFFERS`] this bounds what one arena holds between parses
1235/// at about 8 KiB.
1236const SPARE_NAME_CAPACITY: usize = 128;
1237
1238/// Which names share one hash of their spelling and quote form.
1239///
1240/// **A collision must not hand back the wrong `NameId`.** `NameId` equality is
1241/// read as "the same name" - the binder resolves a column reference by
1242/// comparing ids - so storing one index per hash and overwriting on collision
1243/// would silently make two different identifiers the same name. Every
1244/// candidate is compared against `Ast::names` before it is returned, and a
1245/// hash shared by two different spellings keeps both.
1246///
1247/// The single case is inline rather than a one-element `Vec` because that
1248/// `Vec` would be an allocation per distinct name, which is most of what
1249/// task-2039 removed. `Several` allocates, and needs a 64-bit collision to be
1250/// reached at all.
1251#[derive(Clone, Debug, PartialEq, Eq)]
1252enum Interned {
1253 /// The only name whose spelling and quote form hash to this value.
1254 One(u32),
1255 /// Two or more names that hashed the same, in the order they were interned.
1256 Several(Vec<u32>),
1257}
1258
1259/// The arena every node of one parse lives in.
1260#[derive(Clone, Debug, Default, Eq)]
1261pub struct Ast {
1262 names: Vec<Name>,
1263 /// Where a name already is, so `intern` is a lookup rather than a scan.
1264 ///
1265 /// **`intern` was a linear scan of every name interned so far, so N
1266 /// distinct identifiers cost N-squared comparisons (task-1932, H8).** The
1267 /// `SqlLength` default is 1 GiB, so a statement naming two hundred thousand
1268 /// distinct columns is well inside what the parser accepts and was
1269 /// quadratic to parse.
1270 ///
1271 /// **The key is a hash of the name and not the name itself (task-2039).**
1272 /// Owning `(folded, quote, text)` meant every lookup had to build an owned
1273 /// key to look up *with*, and finding the name already there still cost the
1274 /// folded copy plus two more from `key.clone()` on the way in - four
1275 /// allocations per distinct name, twelve of the ninety-three a compile of
1276 /// `SELECT a FROM t WHERE id = ?1` made. Hashing the bytes where they are
1277 /// and comparing the candidates against `names`, which already holds the
1278 /// spelling and the quote form, makes a hit free and leaves a miss paying
1279 /// only for what it stores.
1280 ///
1281 /// The hash comes from the map's own [`std::collections::hash_map::RandomState`],
1282 /// which is seeded per arena. That matters rather than being tidy: the
1283 /// parser accepts `Limit::Column * 64` distinct identifiers - 128,000 under
1284 /// the defaults - so a fixed hash an attacker could invert would let a
1285 /// statement drive every name into one `Several` and restore the quadratic
1286 /// parse this map exists to prevent.
1287 interned: std::collections::HashMap<u64, Interned>,
1288 /// Name byte buffers a previous parse used, waiting to be filled again.
1289 ///
1290 /// See [`SPARE_NAME_BUFFERS`]. Empty on a fresh arena, so the first parse
1291 /// pays what it always did and every parse after it does not.
1292 spare: Vec<Vec<u8>>,
1293 exprs: Vec<Expr>,
1294 expr_spans: Vec<Span>,
1295 /// How deep each expression's own subtree is, one entry per node.
1296 ///
1297 /// **`Limit::ExprDepth` was declared in `compat/limits.toml` and enforced
1298 /// nowhere (task-1932, H8).** The parser charges `Limit::ParserDepth` in
1299 /// `enter`/`leave`, which counts recursion, and the two are different
1300 /// measurements: a flat chain `a1 = 1 AND a2 = 2 AND ...` enters and leaves
1301 /// `parse_expr_bp` once per term, so the recursion counter never
1302 /// accumulates, while the tree grows one level per term with nothing
1303 /// counting it. SQLite refuses at depth 1000. A tree that deep is accepted
1304 /// here and then walked recursively by the binder, the planner and the
1305 /// executor, each of which overflows the stack at some depth nobody
1306 /// measured.
1307 ///
1308 /// A node's depth is one more than the deepest of its children, and a child
1309 /// is always already in the arena when its parent is added, so this is one
1310 /// pass over the child ids at `add_expr` rather than a walk.
1311 expr_depths: Vec<u32>,
1312 /// The deepest expression tree in the arena.
1313 max_expr_depth: u32,
1314 selects: Vec<Select>,
1315 cores: Vec<SelectCore>,
1316 from_terms: Vec<FromTerm>,
1317 windows: Vec<Window>,
1318 bytes: usize,
1319}
1320
1321/// Two arenas are equal when they hold the same nodes.
1322///
1323/// **Hand-written rather than derived, because `interned` and `spare` are not
1324/// content (task-2039).** `interned` is an index over `names` keyed by a hash
1325/// the arena seeds for itself, so two arenas parsed from the same text hold
1326/// the same names under different keys; `spare` is buffers the allocator has
1327/// not been given back yet, which the next parse may or may not use. Comparing
1328/// either would report two identical parses as different. The fields are
1329/// destructured by name and none is skipped with `..`, so a field added later
1330/// fails to compile here rather than being silently left out of equality.
1331impl PartialEq for Ast {
1332 /// @param other - the arena to compare against
1333 fn eq(&self, other: &Ast) -> bool {
1334 let Ast {
1335 names,
1336 interned: _,
1337 spare: _,
1338 exprs,
1339 expr_spans,
1340 expr_depths,
1341 max_expr_depth,
1342 selects,
1343 cores,
1344 from_terms,
1345 windows,
1346 bytes,
1347 } = self;
1348 *names == other.names
1349 && *exprs == other.exprs
1350 && *expr_spans == other.expr_spans
1351 && *expr_depths == other.expr_depths
1352 && *max_expr_depth == other.max_expr_depth
1353 && *selects == other.selects
1354 && *cores == other.cores
1355 && *from_terms == other.from_terms
1356 && *windows == other.windows
1357 && *bytes == other.bytes
1358 }
1359}
1360
1361impl Ast {
1362 /// Returns an empty arena.
1363 pub fn new() -> Ast {
1364 Ast::default()
1365 }
1366
1367 /// Empties the arena, keeping the memory it has already taken.
1368 ///
1369 /// **So that a second statement costs no allocations.** Every one of these
1370 /// vectors is empty at `Ast::new` and grows on its first push, so parsing
1371 /// `SELECT 1` takes half a dozen trips to the allocator - about 270 ns of a
1372 /// 1,337 ns prepare on this platform's CRT heap. A parser handed a cleared
1373 /// arena pushes into capacity that is already there.
1374 ///
1375 /// It is a `clear` rather than a `new` for exactly that reason, and the
1376 /// names are cleared with everything else: `intern` returns an existing id
1377 /// for equal text, so a name left behind from the previous statement would
1378 /// be a live id in the next one's arena.
1379 ///
1380 /// **The names keep their byte buffers even though the names go
1381 /// (task-2039).** Clearing `names` drops every `Name`, and a `Name` owns
1382 /// two `Vec<u8>` - so the vector's capacity survived a clear and the two
1383 /// allocations behind each entry in it did not, and a connection
1384 /// re-compiling one statement went back to the allocator twice per
1385 /// distinct name for ever. The buffers go on `spare` instead and `intern`
1386 /// fills them again. [`SPARE_NAME_BUFFERS`] is what bounds the list.
1387 pub fn clear(&mut self) {
1388 self.recycle_names();
1389 self.interned.clear();
1390 self.exprs.clear();
1391 self.expr_spans.clear();
1392 self.expr_depths.clear();
1393 self.max_expr_depth = 0;
1394 self.selects.clear();
1395 self.cores.clear();
1396 self.from_terms.clear();
1397 self.windows.clear();
1398 self.bytes = 0;
1399 }
1400
1401 /// Returns the number of arena bytes charged so far.
1402 ///
1403 /// This is what the `max_ast_bytes` limit is charged against. It counts the
1404 /// node structures rather than the source, because the source is borrowed.
1405 pub fn charged_bytes(&self) -> usize {
1406 self.bytes
1407 }
1408
1409 /// Interns an identifier, returning the id of an equal existing entry when
1410 /// there is one.
1411 ///
1412 /// **A map rather than a scan (task-1932, H8).** This walked every name
1413 /// interned so far and compared three fields against each, so a statement
1414 /// naming N distinct identifiers cost N-squared comparisons - and the
1415 /// `SqlLength` default is 1 GiB, which leaves room for hundreds of
1416 /// thousands of them. The key is exactly what the scan compared, so the
1417 /// answer is the same one and only the cost changed.
1418 ///
1419 /// The count is charged against `Limit::Column` for the same reason the
1420 /// depth is charged below: a bound that exists in `compat/limits.toml` and
1421 /// is enforced nowhere is not a bound. It is generous - a name is a column,
1422 /// a table, an alias, a function or a collation, so one statement
1423 /// legitimately interns more names than any one table has columns - and it
1424 /// is a ceiling on an arena that has to fit in memory rather than a
1425 /// statement about the schema.
1426 pub fn intern(&mut self, text: Vec<u8>, quote: QuoteForm, span: Span) -> NameId {
1427 let id = self.intern_bytes(&text, quote, span);
1428 Ast::keep_buffer(&mut self.spare, text);
1429 id
1430 }
1431
1432 /// Interns an identifier the caller does not own, returning the id of an
1433 /// equal existing entry when there is one.
1434 ///
1435 /// **The entry point that allocates nothing on a hit (task-2039).** The
1436 /// owned form above had to exist before the lookup could happen, so the
1437 /// parser called `identifier_text(..).into_owned()` on every identifier
1438 /// token whether or not the name was already interned - and `intern` then
1439 /// folded a copy and cloned the key, four allocations for a name the arena
1440 /// already held. This hashes the bytes where the source already has them.
1441 ///
1442 /// A miss allocates what it stores and nothing else: the spelling and the
1443 /// folded key, each taken from `spare` when a previous parse left one
1444 /// there.
1445 ///
1446 /// @param text - the identifier as written, with quoting already undone
1447 /// @param quote - how it was quoted, which decides whether it may become a
1448 /// string
1449 /// @param span - where this occurrence came from
1450 pub fn intern_bytes(&mut self, text: &[u8], quote: QuoteForm, span: Span) -> NameId {
1451 let hash = self.hash_of(text, quote);
1452 if let Some(index) = self.find_interned(hash, text, quote) {
1453 return NameId(index);
1454 }
1455 let mut folded = Ast::take_buffer(&mut self.spare);
1456 folded.extend(text.iter().map(|byte| byte.to_ascii_lowercase()));
1457 let mut spelling = Ast::take_buffer(&mut self.spare);
1458 spelling.extend_from_slice(text);
1459 self.bytes = self.bytes.saturating_add(
1460 spelling
1461 .len()
1462 .saturating_add(folded.len())
1463 .saturating_add(32),
1464 );
1465 let index = self.names.len() as u32;
1466 self.names.push(Name {
1467 text: spelling,
1468 folded,
1469 quote,
1470 span,
1471 });
1472 self.remember_interned(hash, index);
1473 NameId(index)
1474 }
1475
1476 /// Returns the hash an identifier is filed under.
1477 ///
1478 /// The map's own hasher, so the seed belongs to this arena and no caller
1479 /// can choose names that collide. The folded key is not part of the hash:
1480 /// folding is a function of the spelling, so two identifiers written the
1481 /// same way and quoted the same way always fold the same, and no name is
1482 /// ever filed apart from itself.
1483 ///
1484 /// @param text - the identifier as written
1485 /// @param quote - how it was quoted
1486 fn hash_of(&self, text: &[u8], quote: QuoteForm) -> u64 {
1487 use std::hash::BuildHasher;
1488 self.interned.hasher().hash_one((text, quote))
1489 }
1490
1491 /// Returns the index of an interned name equal to this one, when there is
1492 /// one.
1493 ///
1494 /// Every candidate filed under the hash is compared against what `names`
1495 /// already holds, so a hash two different identifiers share returns the
1496 /// right one rather than whichever was stored last.
1497 ///
1498 /// @param hash - what [`Ast::hash_of`] returned for the identifier
1499 /// @param text - the identifier as written
1500 /// @param quote - how it was quoted
1501 fn find_interned(&self, hash: u64, text: &[u8], quote: QuoteForm) -> Option<u32> {
1502 let candidates: &[u32] = match self.interned.get(&hash)? {
1503 Interned::One(index) => core::slice::from_ref(index),
1504 Interned::Several(indexes) => indexes.as_slice(),
1505 };
1506 candidates.iter().copied().find(|index| {
1507 self.names
1508 .get(*index as usize)
1509 .is_some_and(|name| name.quote == quote && name.text == text)
1510 })
1511 }
1512
1513 /// Files a newly interned name under its hash.
1514 ///
1515 /// @param hash - what [`Ast::hash_of`] returned for the identifier
1516 /// @param index - where the name was pushed in `names`
1517 fn remember_interned(&mut self, hash: u64, index: u32) {
1518 use std::collections::hash_map::Entry;
1519 match self.interned.entry(hash) {
1520 Entry::Vacant(slot) => {
1521 slot.insert(Interned::One(index));
1522 }
1523 Entry::Occupied(mut slot) => match slot.get_mut() {
1524 Interned::Several(indexes) => indexes.push(index),
1525 Interned::One(first) => {
1526 let first = *first;
1527 slot.insert(Interned::Several(vec![first, index]));
1528 }
1529 },
1530 }
1531 }
1532
1533 /// Moves every name's byte buffers onto the free list and empties `names`.
1534 ///
1535 /// [`Ast::clear`] is the only caller, and its comment carries the argument.
1536 ///
1537 /// **Drained rather than taken.** `core::mem::take` on `self.names` leaves
1538 /// a `Vec` with no capacity behind, which hands the allocator back the one
1539 /// thing `clear` exists to keep - and cost a 256-byte `RawVec<Name>` regrow
1540 /// on every warm compile while this function was written that way. The
1541 /// free list and the names are separate fields, so the drain and the pushes
1542 /// borrow disjointly and neither has to be given up.
1543 fn recycle_names(&mut self) {
1544 let spare = &mut self.spare;
1545 for name in self.names.drain(..) {
1546 Ast::keep_buffer(spare, name.text);
1547 Ast::keep_buffer(spare, name.folded);
1548 }
1549 }
1550
1551 /// Keeps one byte buffer for the next parse, or gives it back.
1552 ///
1553 /// A buffer with no capacity never allocated, so keeping it would fill the
1554 /// list with entries that save nothing.
1555 ///
1556 /// @param spare - the free list to put it on
1557 /// @param buffer - the buffer nothing holds any more
1558 fn keep_buffer(spare: &mut Vec<Vec<u8>>, mut buffer: Vec<u8>) {
1559 if spare.len() >= SPARE_NAME_BUFFERS
1560 || buffer.capacity() == 0
1561 || buffer.capacity() > SPARE_NAME_CAPACITY
1562 {
1563 return;
1564 }
1565 buffer.clear();
1566 spare.push(buffer);
1567 }
1568
1569 /// Returns an empty byte buffer, reusing one a previous parse left.
1570 ///
1571 /// The buffer may be shorter than what is about to go into it, in which
1572 /// case filling it reallocates - which is the one allocation a fresh `Vec`
1573 /// would have made anyway, so a spare that is too small costs nothing over
1574 /// having no spare at all.
1575 ///
1576 /// @param spare - the free list to take from
1577 fn take_buffer(spare: &mut Vec<Vec<u8>>) -> Vec<u8> {
1578 spare.pop().unwrap_or_default()
1579 }
1580
1581 /// Returns how many distinct identifiers have been interned.
1582 pub fn name_count(&self) -> usize {
1583 self.names.len()
1584 }
1585
1586 /// Returns the depth of the deepest expression tree in the arena.
1587 ///
1588 /// What `Limit::ExprDepth` is charged against. See `expr_depths`.
1589 pub fn max_expr_depth(&self) -> u32 {
1590 self.max_expr_depth
1591 }
1592
1593 /// Returns how deep one expression's own subtree is.
1594 ///
1595 /// @param id - the node
1596 pub fn expr_depth(&self, id: ExprId) -> u32 {
1597 self.expr_depths.get(id.0 as usize).copied().unwrap_or(0)
1598 }
1599
1600 /// Returns an interned name.
1601 pub fn name(&self, id: NameId) -> Option<&Name> {
1602 self.names.get(id.0 as usize)
1603 }
1604
1605 /// Returns the folded key of an interned name, or an empty slice.
1606 pub fn folded(&self, id: NameId) -> &[u8] {
1607 self.names.get(id.0 as usize).map_or(&[], |n| &n.folded)
1608 }
1609
1610 /// Returns the written spelling of an interned name, or an empty slice.
1611 pub fn text(&self, id: NameId) -> &[u8] {
1612 self.names.get(id.0 as usize).map_or(&[], |n| &n.text)
1613 }
1614
1615 /// Adds an expression node.
1616 pub fn add_expr(&mut self, expr: Expr, span: Span) -> ExprId {
1617 self.bytes = self
1618 .bytes
1619 .saturating_add(core::mem::size_of::<Expr>().saturating_add(8));
1620 let depth = self.depth_of(&expr);
1621 self.max_expr_depth = self.max_expr_depth.max(depth);
1622 self.exprs.push(expr);
1623 self.expr_spans.push(span);
1624 self.expr_depths.push(depth);
1625 ExprId(self.exprs.len().saturating_sub(1) as u32)
1626 }
1627
1628 /// Returns how deep a node about to be added is.
1629 ///
1630 /// One more than the deepest of its children. Every child is already in the
1631 /// arena - the parser builds bottom up - so this reads their recorded
1632 /// depths rather than walking them, which is what keeps `add_expr` the
1633 /// constant-time push it was.
1634 ///
1635 /// A subquery's depth is one: the `SELECT` it names has an expression arena
1636 /// of its own and its own `max_expr_depth`, and charging the outer tree for
1637 /// the inner one would refuse a shallow expression that happens to contain
1638 /// a deep query rather than the deep query itself.
1639 ///
1640 /// @param expr - the node
1641 fn depth_of(&self, expr: &Expr) -> u32 {
1642 let deepest = |ids: &[ExprId]| -> u32 {
1643 ids.iter().map(|id| self.expr_depth(*id)).max().unwrap_or(0)
1644 };
1645 let children = match expr {
1646 Expr::Literal(_)
1647 | Expr::Parameter { .. }
1648 | Expr::Column { .. }
1649 | Expr::Star { .. }
1650 | Expr::Exists { .. }
1651 | Expr::Subquery(_)
1652 | Expr::Raise { message: None, .. } => 0,
1653 Expr::Raise {
1654 message: Some(message),
1655 ..
1656 } => self.expr_depth(*message),
1657 Expr::Unary { operand, .. }
1658 | Expr::Collate { operand, .. }
1659 | Expr::Cast { operand, .. }
1660 | Expr::IsNull { operand, .. } => self.expr_depth(*operand),
1661 Expr::Binary { left, right, .. } | Expr::Is { left, right, .. } => {
1662 self.expr_depth(*left).max(self.expr_depth(*right))
1663 }
1664 Expr::Pattern {
1665 operand,
1666 pattern,
1667 escape,
1668 ..
1669 } => self
1670 .expr_depth(*operand)
1671 .max(self.expr_depth(*pattern))
1672 .max(escape.map(|id| self.expr_depth(id)).unwrap_or(0)),
1673 Expr::Between {
1674 operand, low, high, ..
1675 } => self
1676 .expr_depth(*operand)
1677 .max(self.expr_depth(*low))
1678 .max(self.expr_depth(*high)),
1679 Expr::In { operand, rhs, .. } => {
1680 let right = match rhs {
1681 InRhs::List(ids) => deepest(ids),
1682 InRhs::Select(_) => 0,
1683 InRhs::Table { arguments, .. } => {
1684 arguments.as_deref().map(deepest).unwrap_or(0)
1685 }
1686 };
1687 self.expr_depth(*operand).max(right)
1688 }
1689 Expr::Case {
1690 operand,
1691 branches,
1692 otherwise,
1693 } => {
1694 let mut deep = operand.map(|id| self.expr_depth(id)).unwrap_or(0);
1695 for (when, then) in branches {
1696 deep = deep.max(self.expr_depth(*when)).max(self.expr_depth(*then));
1697 }
1698 deep.max(otherwise.map(|id| self.expr_depth(id)).unwrap_or(0))
1699 }
1700 Expr::Function {
1701 arguments, filter, ..
1702 } => arguments
1703 .as_deref()
1704 .map(deepest)
1705 .unwrap_or(0)
1706 .max(filter.map(|id| self.expr_depth(id)).unwrap_or(0)),
1707 Expr::RowValue(ids) => deepest(ids),
1708 };
1709 children.saturating_add(1)
1710 }
1711
1712 /// Returns an expression node.
1713 pub fn expr(&self, id: ExprId) -> Option<&Expr> {
1714 self.exprs.get(id.0 as usize)
1715 }
1716
1717 /// Returns the span an expression was parsed from.
1718 pub fn expr_span(&self, id: ExprId) -> Span {
1719 self.expr_spans
1720 .get(id.0 as usize)
1721 .copied()
1722 .unwrap_or_default()
1723 }
1724
1725 /// Returns the number of expression nodes in the arena.
1726 pub fn expr_count(&self) -> usize {
1727 self.exprs.len()
1728 }
1729
1730 /// Adds a compound SELECT.
1731 pub fn add_select(&mut self, select: Select) -> SelectId {
1732 self.bytes = self
1733 .bytes
1734 .saturating_add(core::mem::size_of::<Select>().saturating_add(32));
1735 self.selects.push(select);
1736 SelectId(self.selects.len().saturating_sub(1) as u32)
1737 }
1738
1739 /// Returns a compound SELECT.
1740 pub fn select(&self, id: SelectId) -> Option<&Select> {
1741 self.selects.get(id.0 as usize)
1742 }
1743
1744 /// Adds one arm of a compound SELECT.
1745 pub fn add_core(&mut self, core: SelectCore) -> SelectCoreId {
1746 self.bytes = self
1747 .bytes
1748 .saturating_add(core::mem::size_of::<SelectCore>().saturating_add(64));
1749 self.cores.push(core);
1750 SelectCoreId(self.cores.len().saturating_sub(1) as u32)
1751 }
1752
1753 /// Returns one arm of a compound SELECT.
1754 pub fn core(&self, id: SelectCoreId) -> Option<&SelectCore> {
1755 self.cores.get(id.0 as usize)
1756 }
1757
1758 /// Adds a FROM term.
1759 pub fn add_from_term(&mut self, term: FromTerm) -> FromTermId {
1760 self.bytes = self
1761 .bytes
1762 .saturating_add(core::mem::size_of::<FromTerm>().saturating_add(32));
1763 self.from_terms.push(term);
1764 FromTermId(self.from_terms.len().saturating_sub(1) as u32)
1765 }
1766
1767 /// Returns a FROM term.
1768 pub fn from_term(&self, id: FromTermId) -> Option<&FromTerm> {
1769 self.from_terms.get(id.0 as usize)
1770 }
1771
1772 /// Returns a FROM term for modification.
1773 ///
1774 /// A join's `ON` or `USING` clause follows the table it constrains, so the
1775 /// term is stored first and its constraint attached once the parser has
1776 /// read it. Building the term out of order instead would mean holding a
1777 /// half-built node across a recursive parse.
1778 pub fn from_term_mut(&mut self, id: FromTermId) -> Option<&mut FromTerm> {
1779 self.from_terms.get_mut(id.0 as usize)
1780 }
1781
1782 /// Adds a window definition.
1783 pub fn add_window(&mut self, window: Window) -> WindowId {
1784 self.bytes = self
1785 .bytes
1786 .saturating_add(core::mem::size_of::<Window>().saturating_add(32));
1787 self.windows.push(window);
1788 WindowId(self.windows.len().saturating_sub(1) as u32)
1789 }
1790
1791 /// Returns a window definition.
1792 pub fn window(&self, id: WindowId) -> Option<&Window> {
1793 self.windows.get(id.0 as usize)
1794 }
1795}
1796
1797#[cfg(test)]
1798mod tests {
1799 use super::*;
1800
1801 /// Interning is by folded key *and* spelling, so `a` and `A` are two
1802 /// entries that compare equal by key rather than one entry that has
1803 /// forgotten which spelling reached it.
1804 #[test]
1805 fn interning_keeps_the_spelling_and_folds_the_key() {
1806 let mut ast = Ast::new();
1807 let lower = ast.intern(b"abc".to_vec(), QuoteForm::Bare, Span::default());
1808 let upper = ast.intern(b"ABC".to_vec(), QuoteForm::Bare, Span::default());
1809 let again = ast.intern(b"abc".to_vec(), QuoteForm::Bare, Span::default());
1810 assert_eq!(lower, again);
1811 assert_ne!(lower, upper);
1812 assert_eq!(ast.folded(lower), ast.folded(upper));
1813 assert_eq!(ast.text(upper), b"ABC");
1814 }
1815
1816 /// Every node id resolves, and an id from another arena does not panic.
1817 #[test]
1818 fn an_unknown_id_returns_none_rather_than_panicking() {
1819 let ast = Ast::new();
1820 assert!(ast.expr(ExprId(7)).is_none());
1821 assert!(ast.select(SelectId(7)).is_none());
1822 assert!(ast.name(NameId(7)).is_none());
1823 assert_eq!(ast.expr_span(ExprId(7)), Span::default());
1824 }
1825
1826 /// The charge grows with the arena, which is what the limit is checked
1827 /// against before a deep parse allocates.
1828 #[test]
1829 fn the_arena_charges_for_what_it_holds() {
1830 let mut ast = Ast::new();
1831 let before = ast.charged_bytes();
1832 ast.add_expr(Expr::Literal(Literal::Null), Span::default());
1833 assert!(ast.charged_bytes() > before);
1834 }
1835
1836 /// The same name written twice is one entry however it arrives, so the
1837 /// borrowed entry point and the owned one agree.
1838 #[test]
1839 fn the_borrowed_and_owned_entry_points_intern_the_same_name() {
1840 let mut ast = Ast::new();
1841 let owned = ast.intern(b"col".to_vec(), QuoteForm::Bare, Span::default());
1842 let borrowed = ast.intern_bytes(b"col", QuoteForm::Bare, Span::default());
1843 assert_eq!(owned, borrowed);
1844 assert_eq!(ast.name_count(), 1);
1845 assert_eq!(ast.text(owned), b"col");
1846 assert_eq!(ast.folded(owned), b"col");
1847 }
1848
1849 /// The quote form is part of what makes a name, so `x` and `"x"` are two
1850 /// entries even though they spell the same word.
1851 #[test]
1852 fn the_quote_form_separates_two_names_that_spell_the_same_word() {
1853 let mut ast = Ast::new();
1854 let bare = ast.intern_bytes(b"x", QuoteForm::Bare, Span::default());
1855 let quoted = ast.intern_bytes(b"x", QuoteForm::Double, Span::default());
1856 assert_ne!(bare, quoted);
1857 assert_eq!(ast.name_count(), 2);
1858 assert_eq!(
1859 ast.intern_bytes(b"x", QuoteForm::Bare, Span::default()),
1860 bare
1861 );
1862 assert_eq!(
1863 ast.intern_bytes(b"x", QuoteForm::Double, Span::default()),
1864 quoted
1865 );
1866 }
1867
1868 /// A name filed under another name's hash gets its own id.
1869 ///
1870 /// **The failure the map is keyed on a hash to avoid (task-2039).** A map
1871 /// that stored one index per hash and trusted it would answer `gamma` with
1872 /// `alpha`'s id here, and `NameId` equality is read as "the same name" -
1873 /// the binder resolves a column reference by comparing ids - so two
1874 /// different identifiers becoming one id is a wrong query rather than a
1875 /// slow one. A 64-bit collision cannot be produced by interning names, so
1876 /// the collision is filed by hand: `remember_interned` is exactly what
1877 /// `intern_bytes` calls, with the hash of a different name.
1878 #[test]
1879 fn a_name_filed_under_another_names_hash_gets_its_own_id() {
1880 let mut ast = Ast::new();
1881 let alpha = ast.intern_bytes(b"alpha", QuoteForm::Bare, Span::default());
1882 let stolen = ast.hash_of(b"gamma", QuoteForm::Bare);
1883 ast.remember_interned(stolen, alpha.0);
1884
1885 let gamma = ast.intern_bytes(b"gamma", QuoteForm::Bare, Span::default());
1886 assert_ne!(gamma, alpha);
1887 assert_eq!(ast.text(gamma), b"gamma");
1888 assert_eq!(ast.text(alpha), b"alpha");
1889
1890 // And both are still found, from the one slot that now holds both.
1891 assert_eq!(
1892 ast.intern_bytes(b"gamma", QuoteForm::Bare, Span::default()),
1893 gamma
1894 );
1895 assert_eq!(
1896 ast.intern_bytes(b"alpha", QuoteForm::Bare, Span::default()),
1897 alpha
1898 );
1899 assert_eq!(ast.name_count(), 2);
1900 }
1901
1902 /// Two hundred names all reach their own id and find it again.
1903 ///
1904 /// The map is keyed on a hash now, so "every name is distinct" is a claim
1905 /// about the candidate comparison rather than about the map, and a scan of
1906 /// a real number of names is what checks it.
1907 #[test]
1908 fn many_names_each_keep_their_own_id() {
1909 let mut ast = Ast::new();
1910 let spellings: Vec<Vec<u8>> = (0..200)
1911 .map(|nth| format!("column_{nth}").into_bytes())
1912 .collect();
1913 let ids: Vec<NameId> = spellings
1914 .iter()
1915 .map(|text| ast.intern_bytes(text, QuoteForm::Bare, Span::default()))
1916 .collect();
1917 assert_eq!(ast.name_count(), 200);
1918 for (text, id) in spellings.iter().zip(&ids) {
1919 assert_eq!(
1920 ast.intern_bytes(text, QuoteForm::Bare, Span::default()),
1921 *id
1922 );
1923 assert_eq!(ast.text(*id), text.as_slice());
1924 }
1925 let mut sorted = ids.clone();
1926 sorted.sort_unstable();
1927 sorted.dedup();
1928 assert_eq!(sorted.len(), 200);
1929 }
1930
1931 /// `clear` keeps the names' byte buffers and the names vector's capacity.
1932 ///
1933 /// **Both halves, because losing either one costs an allocation per warm
1934 /// compile (task-2039).** The buffers are what a second parse of the same
1935 /// statement fills instead of asking the allocator; the vector's capacity
1936 /// is what `clear` existed to keep in the first place, and a `clear` that
1937 /// moved the names out by `core::mem::take` silently gave it back.
1938 #[test]
1939 fn clearing_keeps_the_name_buffers_and_the_names_capacity() {
1940 let mut ast = Ast::new();
1941 for nth in 0..4u32 {
1942 ast.intern_bytes(
1943 format!("c{nth}").as_bytes(),
1944 QuoteForm::Bare,
1945 Span::default(),
1946 );
1947 }
1948 let capacity = ast.names.capacity();
1949 assert!(capacity >= 4);
1950
1951 ast.clear();
1952 assert_eq!(ast.name_count(), 0);
1953 assert_eq!(ast.names.capacity(), capacity);
1954 // Two buffers a name: the spelling and the folded key.
1955 assert_eq!(ast.spare.len(), 8);
1956 assert!(ast.spare.iter().all(|buffer| buffer.is_empty()));
1957
1958 // And the next parse takes them back rather than allocating.
1959 for nth in 0..4u32 {
1960 ast.intern_bytes(
1961 format!("c{nth}").as_bytes(),
1962 QuoteForm::Bare,
1963 Span::default(),
1964 );
1965 }
1966 assert_eq!(ast.spare.len(), 0);
1967 assert_eq!(ast.name_count(), 4);
1968 assert_eq!(ast.text(NameId(2)), b"c2");
1969 }
1970
1971 /// The free list is bounded, so a statement naming thousands of things
1972 /// does not leave the connection holding them.
1973 #[test]
1974 fn the_free_list_does_not_grow_without_bound() {
1975 let mut ast = Ast::new();
1976 for nth in 0..2_000u32 {
1977 ast.intern_bytes(
1978 format!("column_{nth}").as_bytes(),
1979 QuoteForm::Bare,
1980 Span::default(),
1981 );
1982 }
1983 ast.clear();
1984 assert_eq!(ast.spare.len(), SPARE_NAME_BUFFERS);
1985
1986 // A name longer than a buffer worth keeping is dropped rather than
1987 // held, so one enormous alias does not pin its bytes for ever.
1988 let mut ast = Ast::new();
1989 let long = vec![b'z'; SPARE_NAME_CAPACITY.saturating_add(1)];
1990 ast.intern_bytes(&long, QuoteForm::Bare, Span::default());
1991 ast.clear();
1992 assert_eq!(ast.spare.len(), 0);
1993 }
1994
1995 /// Two arenas holding the same nodes are equal, and the index behind them
1996 /// is not part of that.
1997 ///
1998 /// `Ast` compares by hand because `interned` is keyed on a hash each arena
1999 /// seeds for itself, so a derived comparison would report two identical
2000 /// parses as different (task-2039).
2001 #[test]
2002 fn two_arenas_holding_the_same_names_are_equal() {
2003 let mut one = Ast::new();
2004 let mut two = Ast::new();
2005 for text in [b"alpha".as_slice(), b"beta".as_slice()] {
2006 one.intern_bytes(text, QuoteForm::Bare, Span::default());
2007 two.intern_bytes(text, QuoteForm::Bare, Span::default());
2008 }
2009 assert_eq!(one, two);
2010
2011 two.intern_bytes(b"gamma", QuoteForm::Bare, Span::default());
2012 assert_ne!(one, two);
2013 }
2014}