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polyglot_sql/
traversal.rs

1//! Tree traversal utilities for SQL expression ASTs.
2//!
3//! This module provides read-only traversal, search, and transformation utilities
4//! for the [`Expression`] tree produced by the parser. Because Rust's ownership
5//! model does not allow parent pointers inside the AST, parent information is
6//! tracked externally via [`TreeContext`] (built on demand).
7//!
8//! # Traversal
9//!
10//! Two iterator types are provided:
11//! - [`DfsIter`] -- depth-first (pre-order) traversal using a stack. Visits a node
12//!   before its children. Good for top-down analysis and early termination.
13//! - [`BfsIter`] -- breadth-first (level-order) traversal using a queue. Visits all
14//!   nodes at depth N before any node at depth N+1. Good for level-aware analysis.
15//!
16//! Both are available through the [`ExpressionWalk`] trait methods [`dfs`](ExpressionWalk::dfs)
17//! and [`bfs`](ExpressionWalk::bfs).
18//!
19//! # Searching
20//!
21//! The [`ExpressionWalk`] trait also provides convenience methods for finding expressions:
22//! [`find`](ExpressionWalk::find), [`find_all`](ExpressionWalk::find_all),
23//! [`contains`](ExpressionWalk::contains), and [`count`](ExpressionWalk::count).
24//! Common predicates are available as free functions: [`is_column`], [`is_literal`],
25//! [`is_function`], [`is_aggregate`], [`is_window_function`], [`is_subquery`], and
26//! [`is_select`].
27//!
28//! # Transformation
29//!
30//! The [`transform`] and [`transform_map`] functions perform bottom-up (post-order)
31//! tree rewrites, delegating to [`transform_recursive`](crate::dialects::transform_recursive).
32//! The [`ExpressionWalk::transform_owned`] method provides the same capability as
33//! an owned method on `Expression`.
34//!
35//! Based on traversal patterns from `sqlglot/expressions.py`.
36
37use crate::expressions::{Expression, TableRef};
38use std::collections::{HashMap, VecDeque};
39
40/// Unique identifier for expression nodes during traversal
41pub type NodeId = usize;
42
43/// Information about a node's parent relationship
44#[derive(Debug, Clone)]
45pub struct ParentInfo {
46    /// The NodeId of the parent (None for root)
47    pub parent_id: Option<NodeId>,
48    /// Which argument/field in the parent this node occupies
49    pub arg_key: String,
50    /// Index if the node is part of a list (e.g., expressions in SELECT)
51    pub index: Option<usize>,
52}
53
54/// External parent-tracking context for an expression tree.
55///
56/// Since Rust's ownership model does not allow intrusive parent pointers in the AST,
57/// `TreeContext` provides an on-demand side-table that maps each node (identified by
58/// a [`NodeId`]) to its [`ParentInfo`] (parent node, field name, and list index).
59///
60/// Build a context from any expression root with [`TreeContext::build`], then query
61/// parent relationships with [`get`](TreeContext::get), ancestry chains with
62/// [`ancestors_of`](TreeContext::ancestors_of), or tree depth with
63/// [`depth_of`](TreeContext::depth_of).
64///
65/// This is useful when analysis requires upward navigation (e.g., determining whether
66/// a column reference appears inside a WHERE clause or a JOIN condition).
67#[derive(Debug, Default)]
68pub struct TreeContext {
69    /// Map from NodeId to parent information
70    nodes: HashMap<NodeId, ParentInfo>,
71    /// Counter for generating NodeIds
72    next_id: NodeId,
73    /// Stack for tracking current path during traversal
74    path: Vec<(NodeId, String, Option<usize>)>,
75}
76
77impl TreeContext {
78    /// Create a new empty tree context
79    pub fn new() -> Self {
80        Self::default()
81    }
82
83    /// Build context from an expression tree
84    pub fn build(root: &Expression) -> Self {
85        let mut ctx = Self::new();
86        ctx.visit_expr(root);
87        ctx
88    }
89
90    /// Visit an expression and record parent information
91    fn visit_expr(&mut self, expr: &Expression) -> NodeId {
92        let id = self.next_id;
93        self.next_id += 1;
94
95        // Record parent info based on current path
96        let parent_info = if let Some((parent_id, arg_key, index)) = self.path.last() {
97            ParentInfo {
98                parent_id: Some(*parent_id),
99                arg_key: arg_key.clone(),
100                index: *index,
101            }
102        } else {
103            ParentInfo {
104                parent_id: None,
105                arg_key: String::new(),
106                index: None,
107            }
108        };
109        self.nodes.insert(id, parent_info);
110
111        // Visit children
112        for (key, child) in iter_children(expr) {
113            self.path.push((id, key.to_string(), None));
114            self.visit_expr(child);
115            self.path.pop();
116        }
117
118        // Visit children in lists
119        for (key, children) in iter_children_lists(expr) {
120            for (idx, child) in children.iter().enumerate() {
121                self.path.push((id, key.to_string(), Some(idx)));
122                self.visit_expr(child);
123                self.path.pop();
124            }
125        }
126
127        id
128    }
129
130    /// Get parent info for a node
131    pub fn get(&self, id: NodeId) -> Option<&ParentInfo> {
132        self.nodes.get(&id)
133    }
134
135    /// Get the depth of a node (0 for root)
136    pub fn depth_of(&self, id: NodeId) -> usize {
137        let mut depth = 0;
138        let mut current = id;
139        while let Some(info) = self.nodes.get(&current) {
140            if let Some(parent_id) = info.parent_id {
141                depth += 1;
142                current = parent_id;
143            } else {
144                break;
145            }
146        }
147        depth
148    }
149
150    /// Get ancestors of a node (parent, grandparent, etc.)
151    pub fn ancestors_of(&self, id: NodeId) -> Vec<NodeId> {
152        let mut ancestors = Vec::new();
153        let mut current = id;
154        while let Some(info) = self.nodes.get(&current) {
155            if let Some(parent_id) = info.parent_id {
156                ancestors.push(parent_id);
157                current = parent_id;
158            } else {
159                break;
160            }
161        }
162        ancestors
163    }
164}
165
166/// Iterate over single-child fields of an expression
167///
168/// Returns an iterator of (field_name, &Expression) pairs.
169fn iter_children(expr: &Expression) -> Vec<(&'static str, &Expression)> {
170    let mut children = Vec::new();
171
172    match expr {
173        Expression::Select(s) => {
174            if let Some(from) = &s.from {
175                for source in &from.expressions {
176                    children.push(("from", source));
177                }
178            }
179            for join in &s.joins {
180                children.push(("join_this", &join.this));
181                if let Some(on) = &join.on {
182                    children.push(("join_on", on));
183                }
184                if let Some(match_condition) = &join.match_condition {
185                    children.push(("join_match_condition", match_condition));
186                }
187                for pivot in &join.pivots {
188                    children.push(("join_pivot", pivot));
189                }
190            }
191            for lateral_view in &s.lateral_views {
192                children.push(("lateral_view", &lateral_view.this));
193            }
194            if let Some(prewhere) = &s.prewhere {
195                children.push(("prewhere", prewhere));
196            }
197            if let Some(where_clause) = &s.where_clause {
198                children.push(("where", &where_clause.this));
199            }
200            if let Some(group_by) = &s.group_by {
201                for e in &group_by.expressions {
202                    children.push(("group_by", e));
203                }
204            }
205            if let Some(having) = &s.having {
206                children.push(("having", &having.this));
207            }
208            if let Some(qualify) = &s.qualify {
209                children.push(("qualify", &qualify.this));
210            }
211            if let Some(order_by) = &s.order_by {
212                for ordered in &order_by.expressions {
213                    children.push(("order_by", &ordered.this));
214                }
215            }
216            if let Some(distribute_by) = &s.distribute_by {
217                for e in &distribute_by.expressions {
218                    children.push(("distribute_by", e));
219                }
220            }
221            if let Some(cluster_by) = &s.cluster_by {
222                for ordered in &cluster_by.expressions {
223                    children.push(("cluster_by", &ordered.this));
224                }
225            }
226            if let Some(sort_by) = &s.sort_by {
227                for ordered in &sort_by.expressions {
228                    children.push(("sort_by", &ordered.this));
229                }
230            }
231            if let Some(limit) = &s.limit {
232                children.push(("limit", &limit.this));
233            }
234            if let Some(offset) = &s.offset {
235                children.push(("offset", &offset.this));
236            }
237            if let Some(limit_by) = &s.limit_by {
238                for e in limit_by {
239                    children.push(("limit_by", e));
240                }
241            }
242            if let Some(fetch) = &s.fetch {
243                if let Some(count) = &fetch.count {
244                    children.push(("fetch", count));
245                }
246            }
247            if let Some(top) = &s.top {
248                children.push(("top", &top.this));
249            }
250            if let Some(with) = &s.with {
251                for cte in &with.ctes {
252                    children.push(("with_cte", &cte.this));
253                }
254                if let Some(search) = &with.search {
255                    children.push(("with_search", search));
256                }
257            }
258            if let Some(sample) = &s.sample {
259                children.push(("sample_size", &sample.size));
260                if let Some(seed) = &sample.seed {
261                    children.push(("sample_seed", seed));
262                }
263                if let Some(offset) = &sample.offset {
264                    children.push(("sample_offset", offset));
265                }
266                if let Some(bucket_numerator) = &sample.bucket_numerator {
267                    children.push(("sample_bucket_numerator", bucket_numerator));
268                }
269                if let Some(bucket_denominator) = &sample.bucket_denominator {
270                    children.push(("sample_bucket_denominator", bucket_denominator));
271                }
272                if let Some(bucket_field) = &sample.bucket_field {
273                    children.push(("sample_bucket_field", bucket_field));
274                }
275            }
276            if let Some(connect) = &s.connect {
277                if let Some(start) = &connect.start {
278                    children.push(("connect_start", start));
279                }
280                children.push(("connect", &connect.connect));
281            }
282            if let Some(into) = &s.into {
283                children.push(("into", &into.this));
284            }
285            for lock in &s.locks {
286                for e in &lock.expressions {
287                    children.push(("lock_expression", e));
288                }
289                if let Some(wait) = &lock.wait {
290                    children.push(("lock_wait", wait));
291                }
292                if let Some(key) = &lock.key {
293                    children.push(("lock_key", key));
294                }
295                if let Some(update) = &lock.update {
296                    children.push(("lock_update", update));
297                }
298            }
299            for e in &s.for_xml {
300                children.push(("for_xml", e));
301            }
302        }
303        Expression::With(with) => {
304            for cte in &with.ctes {
305                children.push(("cte", &cte.this));
306            }
307            if let Some(search) = &with.search {
308                children.push(("search", search));
309            }
310        }
311        Expression::Cte(cte) => {
312            children.push(("this", &cte.this));
313        }
314        Expression::Insert(insert) => {
315            if let Some(query) = &insert.query {
316                children.push(("query", query));
317            }
318            if let Some(with) = &insert.with {
319                for cte in &with.ctes {
320                    children.push(("with_cte", &cte.this));
321                }
322                if let Some(search) = &with.search {
323                    children.push(("with_search", search));
324                }
325            }
326            if let Some(on_conflict) = &insert.on_conflict {
327                children.push(("on_conflict", on_conflict));
328            }
329            if let Some(replace_where) = &insert.replace_where {
330                children.push(("replace_where", replace_where));
331            }
332            if let Some(source) = &insert.source {
333                children.push(("source", source));
334            }
335            if let Some(function_target) = &insert.function_target {
336                children.push(("function_target", function_target));
337            }
338            if let Some(partition_by) = &insert.partition_by {
339                children.push(("partition_by", partition_by));
340            }
341            if let Some(output) = &insert.output {
342                for column in &output.columns {
343                    children.push(("output_column", column));
344                }
345                if let Some(into_table) = &output.into_table {
346                    children.push(("output_into_table", into_table));
347                }
348            }
349            for row in &insert.values {
350                for value in row {
351                    children.push(("value", value));
352                }
353            }
354            for (_, value) in &insert.partition {
355                if let Some(value) = value {
356                    children.push(("partition_value", value));
357                }
358            }
359            for returning in &insert.returning {
360                children.push(("returning", returning));
361            }
362            for setting in &insert.settings {
363                children.push(("setting", setting));
364            }
365        }
366        Expression::Update(update) => {
367            if let Some(from_clause) = &update.from_clause {
368                for source in &from_clause.expressions {
369                    children.push(("from", source));
370                }
371            }
372            for join in &update.table_joins {
373                children.push(("table_join_this", &join.this));
374                if let Some(on) = &join.on {
375                    children.push(("table_join_on", on));
376                }
377            }
378            for join in &update.from_joins {
379                children.push(("from_join_this", &join.this));
380                if let Some(on) = &join.on {
381                    children.push(("from_join_on", on));
382                }
383            }
384            for (_, value) in &update.set {
385                children.push(("set_value", value));
386            }
387            if let Some(where_clause) = &update.where_clause {
388                children.push(("where", &where_clause.this));
389            }
390            if let Some(output) = &update.output {
391                for column in &output.columns {
392                    children.push(("output_column", column));
393                }
394                if let Some(into_table) = &output.into_table {
395                    children.push(("output_into_table", into_table));
396                }
397            }
398            if let Some(with) = &update.with {
399                for cte in &with.ctes {
400                    children.push(("with_cte", &cte.this));
401                }
402                if let Some(search) = &with.search {
403                    children.push(("with_search", search));
404                }
405            }
406            if let Some(limit) = &update.limit {
407                children.push(("limit", limit));
408            }
409            if let Some(order_by) = &update.order_by {
410                for ordered in &order_by.expressions {
411                    children.push(("order_by", &ordered.this));
412                }
413            }
414            for returning in &update.returning {
415                children.push(("returning", returning));
416            }
417        }
418        Expression::Delete(delete) => {
419            if let Some(with) = &delete.with {
420                for cte in &with.ctes {
421                    children.push(("with_cte", &cte.this));
422                }
423                if let Some(search) = &with.search {
424                    children.push(("with_search", search));
425                }
426            }
427            if let Some(where_clause) = &delete.where_clause {
428                children.push(("where", &where_clause.this));
429            }
430            if let Some(output) = &delete.output {
431                for column in &output.columns {
432                    children.push(("output_column", column));
433                }
434                if let Some(into_table) = &output.into_table {
435                    children.push(("output_into_table", into_table));
436                }
437            }
438            if let Some(limit) = &delete.limit {
439                children.push(("limit", limit));
440            }
441            if let Some(order_by) = &delete.order_by {
442                for ordered in &order_by.expressions {
443                    children.push(("order_by", &ordered.this));
444                }
445            }
446            for returning in &delete.returning {
447                children.push(("returning", returning));
448            }
449            for join in &delete.joins {
450                children.push(("join_this", &join.this));
451                if let Some(on) = &join.on {
452                    children.push(("join_on", on));
453                }
454            }
455        }
456        Expression::Join(join) => {
457            children.push(("this", &join.this));
458            if let Some(on) = &join.on {
459                children.push(("on", on));
460            }
461            if let Some(match_condition) = &join.match_condition {
462                children.push(("match_condition", match_condition));
463            }
464            for pivot in &join.pivots {
465                children.push(("pivot", pivot));
466            }
467        }
468        Expression::Alias(a) => {
469            children.push(("this", &a.this));
470        }
471        Expression::Cast(c) => {
472            children.push(("this", &c.this));
473        }
474        Expression::Not(u) | Expression::Neg(u) | Expression::BitwiseNot(u) => {
475            children.push(("this", &u.this));
476        }
477        Expression::Paren(p) => {
478            children.push(("this", &p.this));
479        }
480        Expression::IsNull(i) => {
481            children.push(("this", &i.this));
482        }
483        Expression::Exists(e) => {
484            children.push(("this", &e.this));
485        }
486        Expression::Subquery(s) => {
487            children.push(("this", &s.this));
488        }
489        Expression::Where(w) => {
490            children.push(("this", &w.this));
491        }
492        Expression::Having(h) => {
493            children.push(("this", &h.this));
494        }
495        Expression::Qualify(q) => {
496            children.push(("this", &q.this));
497        }
498        Expression::And(op)
499        | Expression::Or(op)
500        | Expression::Add(op)
501        | Expression::Sub(op)
502        | Expression::Mul(op)
503        | Expression::Div(op)
504        | Expression::Mod(op)
505        | Expression::Eq(op)
506        | Expression::Neq(op)
507        | Expression::Lt(op)
508        | Expression::Lte(op)
509        | Expression::Gt(op)
510        | Expression::Gte(op)
511        | Expression::BitwiseAnd(op)
512        | Expression::BitwiseOr(op)
513        | Expression::BitwiseXor(op)
514        | Expression::Concat(op) => {
515            children.push(("left", &op.left));
516            children.push(("right", &op.right));
517        }
518        Expression::Like(op) | Expression::ILike(op) => {
519            children.push(("left", &op.left));
520            children.push(("right", &op.right));
521        }
522        Expression::Between(b) => {
523            children.push(("this", &b.this));
524            children.push(("low", &b.low));
525            children.push(("high", &b.high));
526        }
527        Expression::In(i) => {
528            children.push(("this", &i.this));
529            if let Some(ref query) = i.query {
530                children.push(("query", query));
531            }
532            if let Some(ref unnest) = i.unnest {
533                children.push(("unnest", unnest));
534            }
535        }
536        Expression::Case(c) => {
537            if let Some(ref operand) = &c.operand {
538                children.push(("operand", operand));
539            }
540        }
541        Expression::WindowFunction(wf) => {
542            children.push(("this", &wf.this));
543        }
544        Expression::Union(u) => {
545            children.push(("left", &u.left));
546            children.push(("right", &u.right));
547            if let Some(with) = &u.with {
548                for cte in &with.ctes {
549                    children.push(("with_cte", &cte.this));
550                }
551                if let Some(search) = &with.search {
552                    children.push(("with_search", search));
553                }
554            }
555            if let Some(order_by) = &u.order_by {
556                for ordered in &order_by.expressions {
557                    children.push(("order_by", &ordered.this));
558                }
559            }
560            if let Some(limit) = &u.limit {
561                children.push(("limit", limit));
562            }
563            if let Some(offset) = &u.offset {
564                children.push(("offset", offset));
565            }
566            if let Some(distribute_by) = &u.distribute_by {
567                for e in &distribute_by.expressions {
568                    children.push(("distribute_by", e));
569                }
570            }
571            if let Some(sort_by) = &u.sort_by {
572                for ordered in &sort_by.expressions {
573                    children.push(("sort_by", &ordered.this));
574                }
575            }
576            if let Some(cluster_by) = &u.cluster_by {
577                for ordered in &cluster_by.expressions {
578                    children.push(("cluster_by", &ordered.this));
579                }
580            }
581            for e in &u.on_columns {
582                children.push(("on_column", e));
583            }
584        }
585        Expression::Intersect(i) => {
586            children.push(("left", &i.left));
587            children.push(("right", &i.right));
588            if let Some(with) = &i.with {
589                for cte in &with.ctes {
590                    children.push(("with_cte", &cte.this));
591                }
592                if let Some(search) = &with.search {
593                    children.push(("with_search", search));
594                }
595            }
596            if let Some(order_by) = &i.order_by {
597                for ordered in &order_by.expressions {
598                    children.push(("order_by", &ordered.this));
599                }
600            }
601            if let Some(limit) = &i.limit {
602                children.push(("limit", limit));
603            }
604            if let Some(offset) = &i.offset {
605                children.push(("offset", offset));
606            }
607            if let Some(distribute_by) = &i.distribute_by {
608                for e in &distribute_by.expressions {
609                    children.push(("distribute_by", e));
610                }
611            }
612            if let Some(sort_by) = &i.sort_by {
613                for ordered in &sort_by.expressions {
614                    children.push(("sort_by", &ordered.this));
615                }
616            }
617            if let Some(cluster_by) = &i.cluster_by {
618                for ordered in &cluster_by.expressions {
619                    children.push(("cluster_by", &ordered.this));
620                }
621            }
622            for e in &i.on_columns {
623                children.push(("on_column", e));
624            }
625        }
626        Expression::Except(e) => {
627            children.push(("left", &e.left));
628            children.push(("right", &e.right));
629            if let Some(with) = &e.with {
630                for cte in &with.ctes {
631                    children.push(("with_cte", &cte.this));
632                }
633                if let Some(search) = &with.search {
634                    children.push(("with_search", search));
635                }
636            }
637            if let Some(order_by) = &e.order_by {
638                for ordered in &order_by.expressions {
639                    children.push(("order_by", &ordered.this));
640                }
641            }
642            if let Some(limit) = &e.limit {
643                children.push(("limit", limit));
644            }
645            if let Some(offset) = &e.offset {
646                children.push(("offset", offset));
647            }
648            if let Some(distribute_by) = &e.distribute_by {
649                for expr in &distribute_by.expressions {
650                    children.push(("distribute_by", expr));
651                }
652            }
653            if let Some(sort_by) = &e.sort_by {
654                for ordered in &sort_by.expressions {
655                    children.push(("sort_by", &ordered.this));
656                }
657            }
658            if let Some(cluster_by) = &e.cluster_by {
659                for ordered in &cluster_by.expressions {
660                    children.push(("cluster_by", &ordered.this));
661                }
662            }
663            for expr in &e.on_columns {
664                children.push(("on_column", expr));
665            }
666        }
667        Expression::Merge(merge) => {
668            children.push(("this", &merge.this));
669            children.push(("using", &merge.using));
670            if let Some(on) = &merge.on {
671                children.push(("on", on));
672            }
673            if let Some(using_cond) = &merge.using_cond {
674                children.push(("using_cond", using_cond));
675            }
676            if let Some(whens) = &merge.whens {
677                children.push(("whens", whens));
678            }
679            if let Some(with_) = &merge.with_ {
680                children.push(("with_", with_));
681            }
682            if let Some(returning) = &merge.returning {
683                children.push(("returning", returning));
684            }
685        }
686        Expression::Any(q) | Expression::All(q) => {
687            children.push(("this", &q.this));
688            children.push(("subquery", &q.subquery));
689        }
690        Expression::Ordered(o) => {
691            children.push(("this", &o.this));
692        }
693        Expression::Interval(i) => {
694            if let Some(ref this) = i.this {
695                children.push(("this", this));
696            }
697        }
698        Expression::Describe(d) => {
699            children.push(("target", &d.target));
700        }
701        Expression::CreateTask(ct) => {
702            children.push(("body", &ct.body));
703        }
704        _ => {}
705    }
706
707    children
708}
709
710/// Iterate over list-child fields of an expression
711///
712/// Returns an iterator of (field_name, &[Expression]) pairs.
713fn iter_children_lists(expr: &Expression) -> Vec<(&'static str, &[Expression])> {
714    let mut lists = Vec::new();
715
716    match expr {
717        Expression::Select(s) => lists.push(("expressions", s.expressions.as_slice())),
718        Expression::Function(f) => {
719            lists.push(("args", f.args.as_slice()));
720        }
721        Expression::AggregateFunction(f) => {
722            lists.push(("args", f.args.as_slice()));
723        }
724        Expression::From(f) => {
725            lists.push(("expressions", f.expressions.as_slice()));
726        }
727        Expression::GroupBy(g) => {
728            lists.push(("expressions", g.expressions.as_slice()));
729        }
730        // OrderBy.expressions is Vec<Ordered>, not Vec<Expression>
731        // We handle Ordered items via iter_children
732        Expression::In(i) => {
733            lists.push(("expressions", i.expressions.as_slice()));
734        }
735        Expression::Array(a) => {
736            lists.push(("expressions", a.expressions.as_slice()));
737        }
738        Expression::Tuple(t) => {
739            lists.push(("expressions", t.expressions.as_slice()));
740        }
741        // Values.expressions is Vec<Tuple>, handle specially
742        Expression::Coalesce(c) => {
743            lists.push(("expressions", c.expressions.as_slice()));
744        }
745        Expression::Greatest(g) | Expression::Least(g) => {
746            lists.push(("expressions", g.expressions.as_slice()));
747        }
748        _ => {}
749    }
750
751    lists
752}
753
754/// Pre-order depth-first iterator over an expression tree.
755///
756/// Visits each node before its children, using a stack-based approach. This means
757/// the root is yielded first, followed by the entire left subtree (recursively),
758/// then the right subtree. For a binary expression `a + b`, the iteration order
759/// is: `Add`, `a`, `b`.
760///
761/// Created via [`ExpressionWalk::dfs`] or [`DfsIter::new`].
762pub struct DfsIter<'a> {
763    stack: Vec<&'a Expression>,
764}
765
766impl<'a> DfsIter<'a> {
767    /// Create a new DFS iterator starting from the given expression
768    pub fn new(root: &'a Expression) -> Self {
769        Self { stack: vec![root] }
770    }
771}
772
773impl<'a> Iterator for DfsIter<'a> {
774    type Item = &'a Expression;
775
776    fn next(&mut self) -> Option<Self::Item> {
777        let expr = self.stack.pop()?;
778
779        // Add children in reverse order so they come out in forward order
780        let children: Vec<_> = iter_children(expr).into_iter().map(|(_, e)| e).collect();
781        for child in children.into_iter().rev() {
782            self.stack.push(child);
783        }
784
785        let lists: Vec<_> = iter_children_lists(expr)
786            .into_iter()
787            .flat_map(|(_, es)| es.iter())
788            .collect();
789        for child in lists.into_iter().rev() {
790            self.stack.push(child);
791        }
792
793        Some(expr)
794    }
795}
796
797/// Level-order breadth-first iterator over an expression tree.
798///
799/// Visits all nodes at depth N before any node at depth N+1, using a queue-based
800/// approach. For a tree `(a + b) = c`, the iteration order is: `Eq` (depth 0),
801/// `Add`, `c` (depth 1), `a`, `b` (depth 2).
802///
803/// Created via [`ExpressionWalk::bfs`] or [`BfsIter::new`].
804pub struct BfsIter<'a> {
805    queue: VecDeque<&'a Expression>,
806}
807
808impl<'a> BfsIter<'a> {
809    /// Create a new BFS iterator starting from the given expression
810    pub fn new(root: &'a Expression) -> Self {
811        let mut queue = VecDeque::new();
812        queue.push_back(root);
813        Self { queue }
814    }
815}
816
817impl<'a> Iterator for BfsIter<'a> {
818    type Item = &'a Expression;
819
820    fn next(&mut self) -> Option<Self::Item> {
821        let expr = self.queue.pop_front()?;
822
823        // Add children to queue
824        for (_, child) in iter_children(expr) {
825            self.queue.push_back(child);
826        }
827
828        for (_, children) in iter_children_lists(expr) {
829            for child in children {
830                self.queue.push_back(child);
831            }
832        }
833
834        Some(expr)
835    }
836}
837
838/// Extension trait that adds traversal and search methods to [`Expression`].
839///
840/// This trait is implemented for `Expression` and provides a fluent API for
841/// iterating, searching, measuring, and transforming expression trees without
842/// needing to import the iterator types directly.
843pub trait ExpressionWalk {
844    /// Returns a depth-first (pre-order) iterator over this expression and all descendants.
845    ///
846    /// The root node is yielded first, then its children are visited recursively
847    /// from left to right.
848    fn dfs(&self) -> DfsIter<'_>;
849
850    /// Returns a breadth-first (level-order) iterator over this expression and all descendants.
851    ///
852    /// All nodes at depth N are yielded before any node at depth N+1.
853    fn bfs(&self) -> BfsIter<'_>;
854
855    /// Finds the first expression matching `predicate` in depth-first order.
856    ///
857    /// Returns `None` if no descendant (including this node) matches.
858    fn find<F>(&self, predicate: F) -> Option<&Expression>
859    where
860        F: Fn(&Expression) -> bool;
861
862    /// Collects all expressions matching `predicate` in depth-first order.
863    ///
864    /// Returns an empty vector if no descendants match.
865    fn find_all<F>(&self, predicate: F) -> Vec<&Expression>
866    where
867        F: Fn(&Expression) -> bool;
868
869    /// Returns `true` if this node or any descendant matches `predicate`.
870    fn contains<F>(&self, predicate: F) -> bool
871    where
872        F: Fn(&Expression) -> bool;
873
874    /// Counts how many nodes (including this one) match `predicate`.
875    fn count<F>(&self, predicate: F) -> usize
876    where
877        F: Fn(&Expression) -> bool;
878
879    /// Returns direct child expressions of this node.
880    ///
881    /// Collects all single-child fields and list-child fields into a flat vector
882    /// of references. Leaf nodes return an empty vector.
883    fn children(&self) -> Vec<&Expression>;
884
885    /// Returns the maximum depth of the expression tree rooted at this node.
886    ///
887    /// A leaf node has depth 0, a node whose deepest child is a leaf has depth 1, etc.
888    fn tree_depth(&self) -> usize;
889
890    /// Transforms this expression tree bottom-up using the given function (owned variant).
891    ///
892    /// Children are transformed first, then `fun` is called on the resulting node.
893    /// Return `Ok(None)` from `fun` to replace a node with `NULL`.
894    /// Return `Ok(Some(expr))` to substitute the node with `expr`.
895    fn transform_owned<F>(self, fun: F) -> crate::Result<Expression>
896    where
897        F: Fn(Expression) -> crate::Result<Option<Expression>>,
898        Self: Sized;
899}
900
901impl ExpressionWalk for Expression {
902    fn dfs(&self) -> DfsIter<'_> {
903        DfsIter::new(self)
904    }
905
906    fn bfs(&self) -> BfsIter<'_> {
907        BfsIter::new(self)
908    }
909
910    fn find<F>(&self, predicate: F) -> Option<&Expression>
911    where
912        F: Fn(&Expression) -> bool,
913    {
914        self.dfs().find(|e| predicate(e))
915    }
916
917    fn find_all<F>(&self, predicate: F) -> Vec<&Expression>
918    where
919        F: Fn(&Expression) -> bool,
920    {
921        self.dfs().filter(|e| predicate(e)).collect()
922    }
923
924    fn contains<F>(&self, predicate: F) -> bool
925    where
926        F: Fn(&Expression) -> bool,
927    {
928        self.dfs().any(|e| predicate(e))
929    }
930
931    fn count<F>(&self, predicate: F) -> usize
932    where
933        F: Fn(&Expression) -> bool,
934    {
935        self.dfs().filter(|e| predicate(e)).count()
936    }
937
938    fn children(&self) -> Vec<&Expression> {
939        let mut result: Vec<&Expression> = Vec::new();
940        for (_, child) in iter_children(self) {
941            result.push(child);
942        }
943        for (_, children_list) in iter_children_lists(self) {
944            for child in children_list {
945                result.push(child);
946            }
947        }
948        result
949    }
950
951    fn tree_depth(&self) -> usize {
952        let mut max_depth = 0;
953
954        for (_, child) in iter_children(self) {
955            let child_depth = child.tree_depth();
956            if child_depth + 1 > max_depth {
957                max_depth = child_depth + 1;
958            }
959        }
960
961        for (_, children) in iter_children_lists(self) {
962            for child in children {
963                let child_depth = child.tree_depth();
964                if child_depth + 1 > max_depth {
965                    max_depth = child_depth + 1;
966                }
967            }
968        }
969
970        max_depth
971    }
972
973    fn transform_owned<F>(self, fun: F) -> crate::Result<Expression>
974    where
975        F: Fn(Expression) -> crate::Result<Option<Expression>>,
976    {
977        transform(self, &fun)
978    }
979}
980
981/// Transforms an expression tree bottom-up, with optional node removal.
982///
983/// Recursively transforms all children first, then applies `fun` to the resulting node.
984/// If `fun` returns `Ok(None)`, the node is replaced with an `Expression::Null`.
985/// If `fun` returns `Ok(Some(expr))`, the node is replaced with `expr`.
986///
987/// This is the primary transformation entry point when callers need the ability to
988/// "delete" nodes by returning `None`.
989///
990/// # Example
991///
992/// ```rust,ignore
993/// use polyglot_sql::traversal::transform;
994///
995/// // Remove all Paren wrapper nodes from a tree
996/// let result = transform(expr, &|e| match e {
997///     Expression::Paren(p) => Ok(Some(p.this)),
998///     other => Ok(Some(other)),
999/// })?;
1000/// ```
1001pub fn transform<F>(expr: Expression, fun: &F) -> crate::Result<Expression>
1002where
1003    F: Fn(Expression) -> crate::Result<Option<Expression>>,
1004{
1005    crate::dialects::transform_recursive(expr, &|e| match fun(e)? {
1006        Some(transformed) => Ok(transformed),
1007        None => Ok(Expression::Null(crate::expressions::Null)),
1008    })
1009}
1010
1011/// Transforms an expression tree bottom-up without node removal.
1012///
1013/// Like [`transform`], but `fun` returns an `Expression` directly rather than
1014/// `Option<Expression>`, so nodes cannot be deleted. This is a convenience wrapper
1015/// for the common case where every node is mapped to exactly one output node.
1016///
1017/// # Example
1018///
1019/// ```rust,ignore
1020/// use polyglot_sql::traversal::transform_map;
1021///
1022/// // Uppercase all column names in a tree
1023/// let result = transform_map(expr, &|e| match e {
1024///     Expression::Column(mut c) => {
1025///         c.name.name = c.name.name.to_uppercase();
1026///         Ok(Expression::Column(c))
1027///     }
1028///     other => Ok(other),
1029/// })?;
1030/// ```
1031pub fn transform_map<F>(expr: Expression, fun: &F) -> crate::Result<Expression>
1032where
1033    F: Fn(Expression) -> crate::Result<Expression>,
1034{
1035    crate::dialects::transform_recursive(expr, fun)
1036}
1037
1038// ---------------------------------------------------------------------------
1039// Common expression predicates
1040// ---------------------------------------------------------------------------
1041// These free functions are intended for use with the search methods on
1042// `ExpressionWalk` (e.g., `expr.find(is_column)`, `expr.contains(is_aggregate)`).
1043
1044/// Returns `true` if `expr` is a column reference ([`Expression::Column`]).
1045pub fn is_column(expr: &Expression) -> bool {
1046    matches!(expr, Expression::Column(_))
1047}
1048
1049/// Returns `true` if `expr` is a literal value (number, string, boolean, or NULL).
1050pub fn is_literal(expr: &Expression) -> bool {
1051    matches!(
1052        expr,
1053        Expression::Literal(_) | Expression::Boolean(_) | Expression::Null(_)
1054    )
1055}
1056
1057/// Returns `true` if `expr` is a function call (regular or aggregate).
1058pub fn is_function(expr: &Expression) -> bool {
1059    matches!(
1060        expr,
1061        Expression::Function(_) | Expression::AggregateFunction(_)
1062    )
1063}
1064
1065/// Returns `true` if `expr` is a subquery ([`Expression::Subquery`]).
1066pub fn is_subquery(expr: &Expression) -> bool {
1067    matches!(expr, Expression::Subquery(_))
1068}
1069
1070/// Returns `true` if `expr` is a SELECT statement ([`Expression::Select`]).
1071pub fn is_select(expr: &Expression) -> bool {
1072    matches!(expr, Expression::Select(_))
1073}
1074
1075/// Returns `true` if `expr` is an aggregate function ([`Expression::AggregateFunction`]).
1076pub fn is_aggregate(expr: &Expression) -> bool {
1077    matches!(expr, Expression::AggregateFunction(_))
1078}
1079
1080/// Returns `true` if `expr` is a window function ([`Expression::WindowFunction`]).
1081pub fn is_window_function(expr: &Expression) -> bool {
1082    matches!(expr, Expression::WindowFunction(_))
1083}
1084
1085/// Collects all column references ([`Expression::Column`]) from the expression tree.
1086///
1087/// Performs a depth-first search and returns references to every column node found.
1088pub fn get_columns(expr: &Expression) -> Vec<&Expression> {
1089    expr.find_all(is_column)
1090}
1091
1092/// Collects all table references ([`Expression::Table`]) from the expression tree.
1093///
1094/// Performs a depth-first search and returns references to every table node found.
1095///
1096/// Note: DML target tables (`Insert.table`, `Update.table`, `Delete.table`) are
1097/// stored as `TableRef` struct fields, not as `Expression::Table` nodes, so they
1098/// are not reachable via tree traversal. Use [`get_all_tables`] to include those.
1099pub fn get_tables(expr: &Expression) -> Vec<&Expression> {
1100    expr.find_all(|e| matches!(e, Expression::Table(_)))
1101}
1102
1103/// Collects **all** referenced tables from the expression tree, including DML
1104/// target tables that are stored as `TableRef` struct fields and are therefore
1105/// not reachable through normal tree traversal.
1106///
1107/// Returns owned `Expression::Table` values. This is the comprehensive version
1108/// of [`get_tables`] — use it when you need to discover every table referenced
1109/// in a statement, including inside CTE bodies containing INSERT/UPDATE/DELETE.
1110pub fn get_all_tables(expr: &Expression) -> Vec<Expression> {
1111    use std::collections::HashSet;
1112
1113    let mut seen = HashSet::new();
1114    let mut result = Vec::new();
1115
1116    // First: collect all Expression::Table nodes found via DFS.
1117    for node in expr.dfs() {
1118        if let Expression::Table(t) = node {
1119            let qname = table_ref_qualified_name(t);
1120            if seen.insert(qname) {
1121                result.push(node.clone());
1122            }
1123        }
1124
1125        // Also extract DML target TableRef fields not reachable via iter_children.
1126        let refs: Vec<&TableRef> = match node {
1127            Expression::Insert(ins) => vec![&ins.table],
1128            Expression::Update(upd) => {
1129                let mut v = vec![&upd.table];
1130                v.extend(upd.extra_tables.iter());
1131                v
1132            }
1133            Expression::Delete(del) => {
1134                let mut v = vec![&del.table];
1135                v.extend(del.using.iter());
1136                v
1137            }
1138            _ => continue,
1139        };
1140        for tref in refs {
1141            if tref.name.name.is_empty() {
1142                continue;
1143            }
1144            let qname = table_ref_qualified_name(tref);
1145            if seen.insert(qname) {
1146                result.push(Expression::Table(Box::new(tref.clone())));
1147            }
1148        }
1149    }
1150
1151    result
1152}
1153
1154/// Build a qualified name string from a TableRef for deduplication purposes.
1155fn table_ref_qualified_name(t: &TableRef) -> String {
1156    let mut name = String::new();
1157    if let Some(ref cat) = t.catalog {
1158        name.push_str(&cat.name);
1159        name.push('.');
1160    }
1161    if let Some(ref schema) = t.schema {
1162        name.push_str(&schema.name);
1163        name.push('.');
1164    }
1165    name.push_str(&t.name.name);
1166    name
1167}
1168
1169/// Extracts the underlying [`Expression::Table`] from a MERGE field that may
1170/// be a bare `Table`, an `Alias` wrapping a `Table`, or an `Identifier`.
1171/// Returns `None` if the expression doesn't contain a recognisable table.
1172fn unwrap_merge_table(expr: &Expression) -> Option<&Expression> {
1173    match expr {
1174        Expression::Table(_) => Some(expr),
1175        Expression::Alias(alias) => match &alias.this {
1176            Expression::Table(_) => Some(&alias.this),
1177            _ => None,
1178        },
1179        _ => None,
1180    }
1181}
1182
1183/// Returns the target table of a MERGE statement (the `Merge.this` field),
1184/// unwrapping any alias wrapper to yield the underlying [`Expression::Table`].
1185///
1186/// Returns `None` if `expr` is not a `Merge` or the target isn't a recognisable table.
1187pub fn get_merge_target(expr: &Expression) -> Option<&Expression> {
1188    match expr {
1189        Expression::Merge(m) => unwrap_merge_table(&m.this),
1190        _ => None,
1191    }
1192}
1193
1194/// Returns the source table of a MERGE statement (the `Merge.using` field),
1195/// unwrapping any alias wrapper to yield the underlying [`Expression::Table`].
1196///
1197/// Returns `None` if `expr` is not a `Merge`, the source isn't a recognisable
1198/// table (e.g. it's a subquery), or the source is otherwise unresolvable.
1199pub fn get_merge_source(expr: &Expression) -> Option<&Expression> {
1200    match expr {
1201        Expression::Merge(m) => unwrap_merge_table(&m.using),
1202        _ => None,
1203    }
1204}
1205
1206/// Returns `true` if the expression tree contains any aggregate function calls.
1207pub fn contains_aggregate(expr: &Expression) -> bool {
1208    expr.contains(is_aggregate)
1209}
1210
1211/// Returns `true` if the expression tree contains any window function calls.
1212pub fn contains_window_function(expr: &Expression) -> bool {
1213    expr.contains(is_window_function)
1214}
1215
1216/// Returns `true` if the expression tree contains any subquery nodes.
1217pub fn contains_subquery(expr: &Expression) -> bool {
1218    expr.contains(is_subquery)
1219}
1220
1221// ---------------------------------------------------------------------------
1222// Extended type predicates
1223// ---------------------------------------------------------------------------
1224
1225/// Macro for generating simple type-predicate functions.
1226macro_rules! is_type {
1227    ($name:ident, $($variant:pat),+ $(,)?) => {
1228        /// Returns `true` if `expr` matches the expected AST variant(s).
1229        pub fn $name(expr: &Expression) -> bool {
1230            matches!(expr, $($variant)|+)
1231        }
1232    };
1233}
1234
1235// Query
1236is_type!(is_insert, Expression::Insert(_));
1237is_type!(is_update, Expression::Update(_));
1238is_type!(is_delete, Expression::Delete(_));
1239is_type!(is_merge, Expression::Merge(_));
1240is_type!(is_union, Expression::Union(_));
1241is_type!(is_intersect, Expression::Intersect(_));
1242is_type!(is_except, Expression::Except(_));
1243
1244// Identifiers & literals
1245is_type!(is_boolean, Expression::Boolean(_));
1246is_type!(is_null_literal, Expression::Null(_));
1247is_type!(is_star, Expression::Star(_));
1248is_type!(is_identifier, Expression::Identifier(_));
1249is_type!(is_table, Expression::Table(_));
1250
1251// Comparison
1252is_type!(is_eq, Expression::Eq(_));
1253is_type!(is_neq, Expression::Neq(_));
1254is_type!(is_lt, Expression::Lt(_));
1255is_type!(is_lte, Expression::Lte(_));
1256is_type!(is_gt, Expression::Gt(_));
1257is_type!(is_gte, Expression::Gte(_));
1258is_type!(is_like, Expression::Like(_));
1259is_type!(is_ilike, Expression::ILike(_));
1260
1261// Arithmetic
1262is_type!(is_add, Expression::Add(_));
1263is_type!(is_sub, Expression::Sub(_));
1264is_type!(is_mul, Expression::Mul(_));
1265is_type!(is_div, Expression::Div(_));
1266is_type!(is_mod, Expression::Mod(_));
1267is_type!(is_concat, Expression::Concat(_));
1268
1269// Logical
1270is_type!(is_and, Expression::And(_));
1271is_type!(is_or, Expression::Or(_));
1272is_type!(is_not, Expression::Not(_));
1273
1274// Predicates
1275is_type!(is_in, Expression::In(_));
1276is_type!(is_between, Expression::Between(_));
1277is_type!(is_is_null, Expression::IsNull(_));
1278is_type!(is_exists, Expression::Exists(_));
1279
1280// Functions
1281is_type!(is_count, Expression::Count(_));
1282is_type!(is_sum, Expression::Sum(_));
1283is_type!(is_avg, Expression::Avg(_));
1284is_type!(is_min_func, Expression::Min(_));
1285is_type!(is_max_func, Expression::Max(_));
1286is_type!(is_coalesce, Expression::Coalesce(_));
1287is_type!(is_null_if, Expression::NullIf(_));
1288is_type!(is_cast, Expression::Cast(_));
1289is_type!(is_try_cast, Expression::TryCast(_));
1290is_type!(is_safe_cast, Expression::SafeCast(_));
1291is_type!(is_case, Expression::Case(_));
1292
1293// Clauses
1294is_type!(is_from, Expression::From(_));
1295is_type!(is_join, Expression::Join(_));
1296is_type!(is_where, Expression::Where(_));
1297is_type!(is_group_by, Expression::GroupBy(_));
1298is_type!(is_having, Expression::Having(_));
1299is_type!(is_order_by, Expression::OrderBy(_));
1300is_type!(is_limit, Expression::Limit(_));
1301is_type!(is_offset, Expression::Offset(_));
1302is_type!(is_with, Expression::With(_));
1303is_type!(is_cte, Expression::Cte(_));
1304is_type!(is_alias, Expression::Alias(_));
1305is_type!(is_paren, Expression::Paren(_));
1306is_type!(is_ordered, Expression::Ordered(_));
1307
1308// DDL
1309is_type!(is_create_table, Expression::CreateTable(_));
1310is_type!(is_drop_table, Expression::DropTable(_));
1311is_type!(is_alter_table, Expression::AlterTable(_));
1312is_type!(is_create_index, Expression::CreateIndex(_));
1313is_type!(is_drop_index, Expression::DropIndex(_));
1314is_type!(is_create_view, Expression::CreateView(_));
1315is_type!(is_drop_view, Expression::DropView(_));
1316
1317// ---------------------------------------------------------------------------
1318// Composite predicates
1319// ---------------------------------------------------------------------------
1320
1321/// Returns `true` if `expr` is a query statement (SELECT, INSERT, UPDATE, DELETE, or MERGE).
1322pub fn is_query(expr: &Expression) -> bool {
1323    matches!(
1324        expr,
1325        Expression::Select(_)
1326            | Expression::Insert(_)
1327            | Expression::Update(_)
1328            | Expression::Delete(_)
1329            | Expression::Merge(_)
1330    )
1331}
1332
1333/// Returns `true` if `expr` is a set operation (UNION, INTERSECT, or EXCEPT).
1334pub fn is_set_operation(expr: &Expression) -> bool {
1335    matches!(
1336        expr,
1337        Expression::Union(_) | Expression::Intersect(_) | Expression::Except(_)
1338    )
1339}
1340
1341/// Returns `true` if `expr` is a comparison operator.
1342pub fn is_comparison(expr: &Expression) -> bool {
1343    matches!(
1344        expr,
1345        Expression::Eq(_)
1346            | Expression::Neq(_)
1347            | Expression::Lt(_)
1348            | Expression::Lte(_)
1349            | Expression::Gt(_)
1350            | Expression::Gte(_)
1351            | Expression::Like(_)
1352            | Expression::ILike(_)
1353    )
1354}
1355
1356/// Returns `true` if `expr` is an arithmetic operator.
1357pub fn is_arithmetic(expr: &Expression) -> bool {
1358    matches!(
1359        expr,
1360        Expression::Add(_)
1361            | Expression::Sub(_)
1362            | Expression::Mul(_)
1363            | Expression::Div(_)
1364            | Expression::Mod(_)
1365    )
1366}
1367
1368/// Returns `true` if `expr` is a logical operator (AND, OR, NOT).
1369pub fn is_logical(expr: &Expression) -> bool {
1370    matches!(
1371        expr,
1372        Expression::And(_) | Expression::Or(_) | Expression::Not(_)
1373    )
1374}
1375
1376/// Returns `true` if `expr` is a DDL statement.
1377pub fn is_ddl(expr: &Expression) -> bool {
1378    matches!(
1379        expr,
1380        Expression::CreateTable(_)
1381            | Expression::DropTable(_)
1382            | Expression::Undrop(_)
1383            | Expression::AlterTable(_)
1384            | Expression::CreateIndex(_)
1385            | Expression::DropIndex(_)
1386            | Expression::CreateView(_)
1387            | Expression::DropView(_)
1388            | Expression::AlterView(_)
1389            | Expression::CreateSchema(_)
1390            | Expression::DropSchema(_)
1391            | Expression::CreateDatabase(_)
1392            | Expression::DropDatabase(_)
1393            | Expression::CreateFunction(_)
1394            | Expression::DropFunction(_)
1395            | Expression::CreateProcedure(_)
1396            | Expression::DropProcedure(_)
1397            | Expression::CreateSequence(_)
1398            | Expression::CreateSynonym(_)
1399            | Expression::DropSequence(_)
1400            | Expression::AlterSequence(_)
1401            | Expression::CreateTrigger(_)
1402            | Expression::DropTrigger(_)
1403            | Expression::CreateType(_)
1404            | Expression::DropType(_)
1405    )
1406}
1407
1408/// Find the parent of `target` within the tree rooted at `root`.
1409///
1410/// Uses pointer identity ([`std::ptr::eq`]) — `target` must be a reference
1411/// obtained from the same tree (e.g., via [`ExpressionWalk::find`] or DFS iteration).
1412///
1413/// Returns `None` if `target` is the root itself or is not found in the tree.
1414pub fn find_parent<'a>(root: &'a Expression, target: &Expression) -> Option<&'a Expression> {
1415    fn search<'a>(node: &'a Expression, target: *const Expression) -> Option<&'a Expression> {
1416        for (_, child) in iter_children(node) {
1417            if std::ptr::eq(child, target) {
1418                return Some(node);
1419            }
1420            if let Some(found) = search(child, target) {
1421                return Some(found);
1422            }
1423        }
1424        for (_, children_list) in iter_children_lists(node) {
1425            for child in children_list {
1426                if std::ptr::eq(child, target) {
1427                    return Some(node);
1428                }
1429                if let Some(found) = search(child, target) {
1430                    return Some(found);
1431                }
1432            }
1433        }
1434        None
1435    }
1436
1437    search(root, target as *const Expression)
1438}
1439
1440/// Find the first ancestor of `target` matching `predicate`, walking from
1441/// parent toward root.
1442///
1443/// Uses pointer identity for target lookup. Returns `None` if no ancestor
1444/// matches or `target` is not found in the tree.
1445pub fn find_ancestor<'a, F>(
1446    root: &'a Expression,
1447    target: &Expression,
1448    predicate: F,
1449) -> Option<&'a Expression>
1450where
1451    F: Fn(&Expression) -> bool,
1452{
1453    // Build path from root to target
1454    fn build_path<'a>(
1455        node: &'a Expression,
1456        target: *const Expression,
1457        path: &mut Vec<&'a Expression>,
1458    ) -> bool {
1459        if std::ptr::eq(node, target) {
1460            return true;
1461        }
1462        path.push(node);
1463        for (_, child) in iter_children(node) {
1464            if build_path(child, target, path) {
1465                return true;
1466            }
1467        }
1468        for (_, children_list) in iter_children_lists(node) {
1469            for child in children_list {
1470                if build_path(child, target, path) {
1471                    return true;
1472                }
1473            }
1474        }
1475        path.pop();
1476        false
1477    }
1478
1479    let mut path = Vec::new();
1480    if !build_path(root, target as *const Expression, &mut path) {
1481        return None;
1482    }
1483
1484    // Walk path in reverse (parent first, then grandparent, etc.)
1485    for ancestor in path.iter().rev() {
1486        if predicate(ancestor) {
1487            return Some(ancestor);
1488        }
1489    }
1490    None
1491}
1492
1493#[cfg(test)]
1494mod tests {
1495    use super::*;
1496    use crate::expressions::{BinaryOp, Column, Identifier, Literal};
1497
1498    fn make_column(name: &str) -> Expression {
1499        Expression::boxed_column(Column {
1500            name: Identifier {
1501                name: name.to_string(),
1502                quoted: false,
1503                trailing_comments: vec![],
1504                span: None,
1505            },
1506            table: None,
1507            join_mark: false,
1508            trailing_comments: vec![],
1509            span: None,
1510            inferred_type: None,
1511        })
1512    }
1513
1514    fn make_literal(value: i64) -> Expression {
1515        Expression::Literal(Box::new(Literal::Number(value.to_string())))
1516    }
1517
1518    #[test]
1519    fn test_dfs_simple() {
1520        let left = make_column("a");
1521        let right = make_literal(1);
1522        let expr = Expression::Eq(Box::new(BinaryOp {
1523            left,
1524            right,
1525            left_comments: vec![],
1526            operator_comments: vec![],
1527            trailing_comments: vec![],
1528            inferred_type: None,
1529        }));
1530
1531        let nodes: Vec<_> = expr.dfs().collect();
1532        assert_eq!(nodes.len(), 3); // Eq, Column, Literal
1533        assert!(matches!(nodes[0], Expression::Eq(_)));
1534        assert!(matches!(nodes[1], Expression::Column(_)));
1535        assert!(matches!(nodes[2], Expression::Literal(_)));
1536    }
1537
1538    #[test]
1539    fn test_find() {
1540        let left = make_column("a");
1541        let right = make_literal(1);
1542        let expr = Expression::Eq(Box::new(BinaryOp {
1543            left,
1544            right,
1545            left_comments: vec![],
1546            operator_comments: vec![],
1547            trailing_comments: vec![],
1548            inferred_type: None,
1549        }));
1550
1551        let column = expr.find(is_column);
1552        assert!(column.is_some());
1553        assert!(matches!(column.unwrap(), Expression::Column(_)));
1554
1555        let literal = expr.find(is_literal);
1556        assert!(literal.is_some());
1557        assert!(matches!(literal.unwrap(), Expression::Literal(_)));
1558    }
1559
1560    #[test]
1561    fn test_find_all() {
1562        let col1 = make_column("a");
1563        let col2 = make_column("b");
1564        let expr = Expression::And(Box::new(BinaryOp {
1565            left: col1,
1566            right: col2,
1567            left_comments: vec![],
1568            operator_comments: vec![],
1569            trailing_comments: vec![],
1570            inferred_type: None,
1571        }));
1572
1573        let columns = expr.find_all(is_column);
1574        assert_eq!(columns.len(), 2);
1575    }
1576
1577    #[test]
1578    fn test_contains() {
1579        let col = make_column("a");
1580        let lit = make_literal(1);
1581        let expr = Expression::Eq(Box::new(BinaryOp {
1582            left: col,
1583            right: lit,
1584            left_comments: vec![],
1585            operator_comments: vec![],
1586            trailing_comments: vec![],
1587            inferred_type: None,
1588        }));
1589
1590        assert!(expr.contains(is_column));
1591        assert!(expr.contains(is_literal));
1592        assert!(!expr.contains(is_subquery));
1593    }
1594
1595    #[test]
1596    fn test_count() {
1597        let col1 = make_column("a");
1598        let col2 = make_column("b");
1599        let lit = make_literal(1);
1600
1601        let inner = Expression::Add(Box::new(BinaryOp {
1602            left: col2,
1603            right: lit,
1604            left_comments: vec![],
1605            operator_comments: vec![],
1606            trailing_comments: vec![],
1607            inferred_type: None,
1608        }));
1609
1610        let expr = Expression::Eq(Box::new(BinaryOp {
1611            left: col1,
1612            right: inner,
1613            left_comments: vec![],
1614            operator_comments: vec![],
1615            trailing_comments: vec![],
1616            inferred_type: None,
1617        }));
1618
1619        assert_eq!(expr.count(is_column), 2);
1620        assert_eq!(expr.count(is_literal), 1);
1621    }
1622
1623    #[test]
1624    fn test_tree_depth() {
1625        // Single node
1626        let lit = make_literal(1);
1627        assert_eq!(lit.tree_depth(), 0);
1628
1629        // One level
1630        let col = make_column("a");
1631        let expr = Expression::Eq(Box::new(BinaryOp {
1632            left: col,
1633            right: lit.clone(),
1634            left_comments: vec![],
1635            operator_comments: vec![],
1636            trailing_comments: vec![],
1637            inferred_type: None,
1638        }));
1639        assert_eq!(expr.tree_depth(), 1);
1640
1641        // Two levels
1642        let inner = Expression::Add(Box::new(BinaryOp {
1643            left: make_column("b"),
1644            right: lit,
1645            left_comments: vec![],
1646            operator_comments: vec![],
1647            trailing_comments: vec![],
1648            inferred_type: None,
1649        }));
1650        let outer = Expression::Eq(Box::new(BinaryOp {
1651            left: make_column("a"),
1652            right: inner,
1653            left_comments: vec![],
1654            operator_comments: vec![],
1655            trailing_comments: vec![],
1656            inferred_type: None,
1657        }));
1658        assert_eq!(outer.tree_depth(), 2);
1659    }
1660
1661    #[test]
1662    fn test_tree_context() {
1663        let col = make_column("a");
1664        let lit = make_literal(1);
1665        let expr = Expression::Eq(Box::new(BinaryOp {
1666            left: col,
1667            right: lit,
1668            left_comments: vec![],
1669            operator_comments: vec![],
1670            trailing_comments: vec![],
1671            inferred_type: None,
1672        }));
1673
1674        let ctx = TreeContext::build(&expr);
1675
1676        // Root has no parent
1677        let root_info = ctx.get(0).unwrap();
1678        assert!(root_info.parent_id.is_none());
1679
1680        // Children have root as parent
1681        let left_info = ctx.get(1).unwrap();
1682        assert_eq!(left_info.parent_id, Some(0));
1683        assert_eq!(left_info.arg_key, "left");
1684
1685        let right_info = ctx.get(2).unwrap();
1686        assert_eq!(right_info.parent_id, Some(0));
1687        assert_eq!(right_info.arg_key, "right");
1688    }
1689
1690    // -- Step 8: transform / transform_map tests --
1691
1692    #[test]
1693    fn test_transform_rename_columns() {
1694        let ast = crate::parser::Parser::parse_sql("SELECT a, b FROM t").unwrap();
1695        let expr = ast[0].clone();
1696        let result = super::transform_map(expr, &|e| {
1697            if let Expression::Column(ref c) = e {
1698                if c.name.name == "a" {
1699                    return Ok(Expression::boxed_column(Column {
1700                        name: Identifier::new("alpha"),
1701                        table: c.table.clone(),
1702                        join_mark: false,
1703                        trailing_comments: vec![],
1704                        span: None,
1705                        inferred_type: None,
1706                    }));
1707                }
1708            }
1709            Ok(e)
1710        })
1711        .unwrap();
1712        let sql = crate::generator::Generator::sql(&result).unwrap();
1713        assert!(sql.contains("alpha"), "Expected 'alpha' in: {}", sql);
1714        assert!(sql.contains("b"), "Expected 'b' in: {}", sql);
1715    }
1716
1717    #[test]
1718    fn test_transform_noop() {
1719        let ast = crate::parser::Parser::parse_sql("SELECT 1 + 2").unwrap();
1720        let expr = ast[0].clone();
1721        let result = super::transform_map(expr.clone(), &|e| Ok(e)).unwrap();
1722        let sql1 = crate::generator::Generator::sql(&expr).unwrap();
1723        let sql2 = crate::generator::Generator::sql(&result).unwrap();
1724        assert_eq!(sql1, sql2);
1725    }
1726
1727    #[test]
1728    fn test_transform_nested() {
1729        let ast = crate::parser::Parser::parse_sql("SELECT a + b FROM t").unwrap();
1730        let expr = ast[0].clone();
1731        let result = super::transform_map(expr, &|e| {
1732            if let Expression::Column(ref c) = e {
1733                return Ok(Expression::Literal(Box::new(Literal::Number(
1734                    if c.name.name == "a" { "1" } else { "2" }.to_string(),
1735                ))));
1736            }
1737            Ok(e)
1738        })
1739        .unwrap();
1740        let sql = crate::generator::Generator::sql(&result).unwrap();
1741        assert_eq!(sql, "SELECT 1 + 2 FROM t");
1742    }
1743
1744    #[test]
1745    fn test_transform_error() {
1746        let ast = crate::parser::Parser::parse_sql("SELECT a FROM t").unwrap();
1747        let expr = ast[0].clone();
1748        let result = super::transform_map(expr, &|e| {
1749            if let Expression::Column(ref c) = e {
1750                if c.name.name == "a" {
1751                    return Err(crate::error::Error::parse("test error", 0, 0, 0, 0));
1752                }
1753            }
1754            Ok(e)
1755        });
1756        assert!(result.is_err());
1757    }
1758
1759    #[test]
1760    fn test_transform_owned_trait() {
1761        let ast = crate::parser::Parser::parse_sql("SELECT x FROM t").unwrap();
1762        let expr = ast[0].clone();
1763        let result = expr.transform_owned(|e| Ok(Some(e))).unwrap();
1764        let sql = crate::generator::Generator::sql(&result).unwrap();
1765        assert_eq!(sql, "SELECT x FROM t");
1766    }
1767
1768    // -- children() tests --
1769
1770    #[test]
1771    fn test_children_leaf() {
1772        let lit = make_literal(1);
1773        assert_eq!(lit.children().len(), 0);
1774    }
1775
1776    #[test]
1777    fn test_children_binary_op() {
1778        let left = make_column("a");
1779        let right = make_literal(1);
1780        let expr = Expression::Eq(Box::new(BinaryOp {
1781            left,
1782            right,
1783            left_comments: vec![],
1784            operator_comments: vec![],
1785            trailing_comments: vec![],
1786            inferred_type: None,
1787        }));
1788        let children = expr.children();
1789        assert_eq!(children.len(), 2);
1790        assert!(matches!(children[0], Expression::Column(_)));
1791        assert!(matches!(children[1], Expression::Literal(_)));
1792    }
1793
1794    #[test]
1795    fn test_children_select() {
1796        let ast = crate::parser::Parser::parse_sql("SELECT a, b FROM t").unwrap();
1797        let expr = &ast[0];
1798        let children = expr.children();
1799        // Should include select list items (a, b)
1800        assert!(children.len() >= 2);
1801    }
1802
1803    #[test]
1804    fn test_children_select_includes_from_and_join_sources() {
1805        let ast = crate::parser::Parser::parse_sql(
1806            "SELECT u.id FROM users u JOIN orders o ON u.id = o.user_id",
1807        )
1808        .unwrap();
1809        let expr = &ast[0];
1810        let children = expr.children();
1811
1812        let table_names: Vec<&str> = children
1813            .iter()
1814            .filter_map(|e| match e {
1815                Expression::Table(t) => Some(t.name.name.as_str()),
1816                _ => None,
1817            })
1818            .collect();
1819
1820        assert!(table_names.contains(&"users"));
1821        assert!(table_names.contains(&"orders"));
1822    }
1823
1824    #[test]
1825    fn test_get_tables_includes_insert_query_sources() {
1826        let ast = crate::parser::Parser::parse_sql(
1827            "INSERT INTO dst (id) SELECT s.id FROM src s JOIN dim d ON s.id = d.id",
1828        )
1829        .unwrap();
1830        let expr = &ast[0];
1831        let tables = get_tables(expr);
1832        let names: Vec<&str> = tables
1833            .iter()
1834            .filter_map(|e| match e {
1835                Expression::Table(t) => Some(t.name.name.as_str()),
1836                _ => None,
1837            })
1838            .collect();
1839
1840        assert!(names.contains(&"src"));
1841        assert!(names.contains(&"dim"));
1842    }
1843
1844    // -- find_parent() tests --
1845
1846    #[test]
1847    fn test_find_parent_binary() {
1848        let left = make_column("a");
1849        let right = make_literal(1);
1850        let expr = Expression::Eq(Box::new(BinaryOp {
1851            left,
1852            right,
1853            left_comments: vec![],
1854            operator_comments: vec![],
1855            trailing_comments: vec![],
1856            inferred_type: None,
1857        }));
1858
1859        // Find the column child and get its parent
1860        let col = expr.find(is_column).unwrap();
1861        let parent = super::find_parent(&expr, col);
1862        assert!(parent.is_some());
1863        assert!(matches!(parent.unwrap(), Expression::Eq(_)));
1864    }
1865
1866    #[test]
1867    fn test_find_parent_root_has_none() {
1868        let lit = make_literal(1);
1869        let parent = super::find_parent(&lit, &lit);
1870        assert!(parent.is_none());
1871    }
1872
1873    // -- find_ancestor() tests --
1874
1875    #[test]
1876    fn test_find_ancestor_select() {
1877        let ast = crate::parser::Parser::parse_sql("SELECT a FROM t WHERE a > 1").unwrap();
1878        let expr = &ast[0];
1879
1880        // Find a column inside the WHERE clause
1881        let where_col = expr.dfs().find(|e| {
1882            if let Expression::Column(c) = e {
1883                c.name.name == "a"
1884            } else {
1885                false
1886            }
1887        });
1888        assert!(where_col.is_some());
1889
1890        // Find Select ancestor of that column
1891        let ancestor = super::find_ancestor(expr, where_col.unwrap(), is_select);
1892        assert!(ancestor.is_some());
1893        assert!(matches!(ancestor.unwrap(), Expression::Select(_)));
1894    }
1895
1896    #[test]
1897    fn test_find_ancestor_no_match() {
1898        let left = make_column("a");
1899        let right = make_literal(1);
1900        let expr = Expression::Eq(Box::new(BinaryOp {
1901            left,
1902            right,
1903            left_comments: vec![],
1904            operator_comments: vec![],
1905            trailing_comments: vec![],
1906            inferred_type: None,
1907        }));
1908
1909        let col = expr.find(is_column).unwrap();
1910        let ancestor = super::find_ancestor(&expr, col, is_select);
1911        assert!(ancestor.is_none());
1912    }
1913
1914    #[test]
1915    fn test_ancestors() {
1916        let col = make_column("a");
1917        let lit = make_literal(1);
1918        let inner = Expression::Add(Box::new(BinaryOp {
1919            left: col,
1920            right: lit,
1921            left_comments: vec![],
1922            operator_comments: vec![],
1923            trailing_comments: vec![],
1924            inferred_type: None,
1925        }));
1926        let outer = Expression::Eq(Box::new(BinaryOp {
1927            left: make_column("b"),
1928            right: inner,
1929            left_comments: vec![],
1930            operator_comments: vec![],
1931            trailing_comments: vec![],
1932            inferred_type: None,
1933        }));
1934
1935        let ctx = TreeContext::build(&outer);
1936
1937        // The inner Add's left child (column "a") should have ancestors
1938        // Node 0: Eq
1939        // Node 1: Column "b" (left of Eq)
1940        // Node 2: Add (right of Eq)
1941        // Node 3: Column "a" (left of Add)
1942        // Node 4: Literal (right of Add)
1943
1944        let ancestors = ctx.ancestors_of(3);
1945        assert_eq!(ancestors, vec![2, 0]); // Add, then Eq
1946    }
1947
1948    #[test]
1949    fn test_get_merge_target_and_source() {
1950        let dialect = crate::Dialect::get(crate::dialects::DialectType::Generic);
1951
1952        // MERGE with aliased target and source tables
1953        let sql = "MERGE INTO orders o USING customers c ON o.customer_id = c.id WHEN MATCHED THEN UPDATE SET amount = amount + 100";
1954        let exprs = dialect.parse(sql).unwrap();
1955        let expr = &exprs[0];
1956
1957        assert!(is_merge(expr));
1958        assert!(is_query(expr));
1959
1960        let target = get_merge_target(expr).expect("should find target table");
1961        assert!(matches!(target, Expression::Table(_)));
1962        if let Expression::Table(t) = target {
1963            assert_eq!(t.name.name, "orders");
1964        }
1965
1966        let source = get_merge_source(expr).expect("should find source table");
1967        assert!(matches!(source, Expression::Table(_)));
1968        if let Expression::Table(t) = source {
1969            assert_eq!(t.name.name, "customers");
1970        }
1971    }
1972
1973    #[test]
1974    fn test_get_merge_source_subquery_returns_none() {
1975        let dialect = crate::Dialect::get(crate::dialects::DialectType::Generic);
1976
1977        // MERGE with subquery source — get_merge_source should return None
1978        let sql = "MERGE INTO orders o USING (SELECT * FROM customers) c ON o.customer_id = c.id WHEN MATCHED THEN DELETE";
1979        let exprs = dialect.parse(sql).unwrap();
1980        let expr = &exprs[0];
1981
1982        assert!(get_merge_target(expr).is_some());
1983        assert!(get_merge_source(expr).is_none());
1984    }
1985
1986    #[test]
1987    fn test_get_merge_on_non_merge_returns_none() {
1988        let dialect = crate::Dialect::get(crate::dialects::DialectType::Generic);
1989        let exprs = dialect.parse("SELECT 1").unwrap();
1990        assert!(get_merge_target(&exprs[0]).is_none());
1991        assert!(get_merge_source(&exprs[0]).is_none());
1992    }
1993
1994    #[test]
1995    fn test_get_tables_finds_tables_inside_in_subquery() {
1996        let dialect = crate::Dialect::get(crate::dialects::DialectType::Generic);
1997        let sql = "SELECT id, name FROM customers WHERE id IN (SELECT customer_id FROM orders WHERE amount > 1000)";
1998        let exprs = dialect.parse(sql).unwrap();
1999        let tables = get_tables(&exprs[0]);
2000        let names: Vec<&str> = tables
2001            .iter()
2002            .filter_map(|e| {
2003                if let Expression::Table(t) = e {
2004                    Some(t.name.name.as_str())
2005                } else {
2006                    None
2007                }
2008            })
2009            .collect();
2010        assert!(names.contains(&"customers"), "should find outer table");
2011        assert!(names.contains(&"orders"), "should find subquery table");
2012    }
2013
2014    #[test]
2015    fn test_get_tables_finds_tables_inside_exists_subquery() {
2016        let dialect = crate::Dialect::get(crate::dialects::DialectType::Generic);
2017        let sql = "SELECT * FROM customers c WHERE EXISTS (SELECT 1 FROM orders o WHERE o.customer_id = c.id)";
2018        let exprs = dialect.parse(sql).unwrap();
2019        let tables = get_tables(&exprs[0]);
2020        let names: Vec<&str> = tables
2021            .iter()
2022            .filter_map(|e| {
2023                if let Expression::Table(t) = e {
2024                    Some(t.name.name.as_str())
2025                } else {
2026                    None
2027                }
2028            })
2029            .collect();
2030        assert!(names.contains(&"customers"), "should find outer table");
2031        assert!(
2032            names.contains(&"orders"),
2033            "should find EXISTS subquery table"
2034        );
2035    }
2036
2037    #[test]
2038    fn test_get_tables_finds_tables_in_correlated_subquery() {
2039        let dialect = crate::Dialect::get(crate::dialects::DialectType::TSQL);
2040        let sql = "SELECT id, name FROM customers WHERE id IN (SELECT customer_id FROM orders WHERE amount > 1000)";
2041        let exprs = dialect.parse(sql).unwrap();
2042        let tables = get_tables(&exprs[0]);
2043        let names: Vec<&str> = tables
2044            .iter()
2045            .filter_map(|e| {
2046                if let Expression::Table(t) = e {
2047                    Some(t.name.name.as_str())
2048                } else {
2049                    None
2050                }
2051            })
2052            .collect();
2053        assert!(
2054            names.contains(&"customers"),
2055            "TSQL: should find outer table"
2056        );
2057        assert!(
2058            names.contains(&"orders"),
2059            "TSQL: should find subquery table"
2060        );
2061    }
2062}