1use std::ops::Range;
4
5use fixedbitset::FixedBitSet;
6use rustc_hash::FxHashSet;
7
8use fallow_types::discover::FileId;
9
10use super::ModuleGraph;
11use super::types::ModuleNode;
12
13impl ModuleGraph {
14 #[expect(clippy::excessive_nesting)]
23 pub fn find_cycles(&self) -> Vec<Vec<FileId>> {
24 let n = self.modules.len();
25 if n == 0 {
26 return Vec::new();
27 }
28
29 let mut index_counter: u32 = 0;
31 let mut indices: Vec<u32> = vec![u32::MAX; n]; let mut lowlinks: Vec<u32> = vec![0; n];
33 let mut on_stack = FixedBitSet::with_capacity(n);
34 let mut stack: Vec<usize> = Vec::new();
35 let mut sccs: Vec<Vec<FileId>> = Vec::new();
36
37 struct Frame {
39 node: usize,
40 succ_pos: usize,
41 succ_end: usize,
42 }
43
44 let mut all_succs: Vec<usize> = Vec::with_capacity(self.edges.len());
46 let mut succ_ranges: Vec<Range<usize>> = Vec::with_capacity(n);
47 let mut seen_set = FxHashSet::default();
48 for module in &self.modules {
49 let start = all_succs.len();
50 seen_set.clear();
51 for edge in &self.edges[module.edge_range.clone()] {
52 let target = edge.target.0 as usize;
53 if target < n && seen_set.insert(target) {
54 all_succs.push(target);
55 }
56 }
57 let end = all_succs.len();
58 succ_ranges.push(start..end);
59 }
60
61 let mut dfs_stack: Vec<Frame> = Vec::new();
62
63 for start_node in 0..n {
64 if indices[start_node] != u32::MAX {
65 continue;
66 }
67
68 indices[start_node] = index_counter;
70 lowlinks[start_node] = index_counter;
71 index_counter += 1;
72 on_stack.insert(start_node);
73 stack.push(start_node);
74
75 let range = &succ_ranges[start_node];
76 dfs_stack.push(Frame {
77 node: start_node,
78 succ_pos: range.start,
79 succ_end: range.end,
80 });
81
82 while let Some(frame) = dfs_stack.last_mut() {
83 if frame.succ_pos < frame.succ_end {
84 let w = all_succs[frame.succ_pos];
85 frame.succ_pos += 1;
86
87 if indices[w] == u32::MAX {
88 indices[w] = index_counter;
90 lowlinks[w] = index_counter;
91 index_counter += 1;
92 on_stack.insert(w);
93 stack.push(w);
94
95 let range = &succ_ranges[w];
96 dfs_stack.push(Frame {
97 node: w,
98 succ_pos: range.start,
99 succ_end: range.end,
100 });
101 } else if on_stack.contains(w) {
102 let v = frame.node;
104 lowlinks[v] = lowlinks[v].min(indices[w]);
105 }
106 } else {
107 let v = frame.node;
109 let v_lowlink = lowlinks[v];
110 let v_index = indices[v];
111 dfs_stack.pop();
112
113 if let Some(parent) = dfs_stack.last_mut() {
115 lowlinks[parent.node] = lowlinks[parent.node].min(v_lowlink);
116 }
117
118 if v_lowlink == v_index {
120 let mut scc = Vec::new();
121 loop {
122 let w = stack.pop().expect("SCC stack should not be empty");
123 on_stack.set(w, false);
124 scc.push(FileId(w as u32));
125 if w == v {
126 break;
127 }
128 }
129 if scc.len() >= 2 {
131 sccs.push(scc);
132 }
133 }
134 }
135 }
136 }
137
138 const MAX_CYCLES_PER_SCC: usize = 20;
142
143 let succs = SuccessorMap {
144 all_succs: &all_succs,
145 succ_ranges: &succ_ranges,
146 modules: &self.modules,
147 };
148
149 let mut result: Vec<Vec<FileId>> = Vec::new();
150 let mut seen_cycles: FxHashSet<Vec<u32>> = FxHashSet::default();
151
152 for scc in &sccs {
153 if scc.len() == 2 {
154 let mut cycle = vec![scc[0].0 as usize, scc[1].0 as usize];
155 if self.modules[cycle[1]].path < self.modules[cycle[0]].path {
157 cycle.swap(0, 1);
158 }
159 let key: Vec<u32> = cycle.iter().map(|&n| n as u32).collect();
160 if seen_cycles.insert(key) {
161 result.push(cycle.into_iter().map(|n| FileId(n as u32)).collect());
162 }
163 continue;
164 }
165
166 let scc_nodes: Vec<usize> = scc.iter().map(|id| id.0 as usize).collect();
167 let elementary = enumerate_elementary_cycles(&scc_nodes, &succs, MAX_CYCLES_PER_SCC);
168
169 for cycle in elementary {
170 let key: Vec<u32> = cycle.iter().map(|&n| n as u32).collect();
171 if seen_cycles.insert(key) {
172 result.push(cycle.into_iter().map(|n| FileId(n as u32)).collect());
173 }
174 }
175 }
176
177 result.sort_by(|a, b| {
179 a.len().cmp(&b.len()).then_with(|| {
180 self.modules[a[0].0 as usize]
181 .path
182 .cmp(&self.modules[b[0].0 as usize].path)
183 })
184 });
185
186 result
187 }
188}
189
190fn canonical_cycle(cycle: &[usize], modules: &[ModuleNode]) -> Vec<usize> {
192 if cycle.is_empty() {
193 return Vec::new();
194 }
195 let min_pos = cycle
196 .iter()
197 .enumerate()
198 .min_by(|(_, a), (_, b)| modules[**a].path.cmp(&modules[**b].path))
199 .map_or(0, |(i, _)| i);
200 let mut result = cycle[min_pos..].to_vec();
201 result.extend_from_slice(&cycle[..min_pos]);
202 result
203}
204
205struct CycleFrame {
207 succ_pos: usize,
208 succ_end: usize,
209}
210
211struct SuccessorMap<'a> {
213 all_succs: &'a [usize],
214 succ_ranges: &'a [Range<usize>],
215 modules: &'a [ModuleNode],
216}
217
218fn try_record_cycle(
220 path: &[usize],
221 modules: &[ModuleNode],
222 seen: &mut FxHashSet<Vec<u32>>,
223 cycles: &mut Vec<Vec<usize>>,
224) {
225 let canonical = canonical_cycle(path, modules);
226 let key: Vec<u32> = canonical.iter().map(|&n| n as u32).collect();
227 if seen.insert(key) {
228 cycles.push(canonical);
229 }
230}
231
232fn dfs_find_cycles_from(
237 start: usize,
238 depth_limit: usize,
239 scc_set: &FxHashSet<usize>,
240 succs: &SuccessorMap<'_>,
241 max_cycles: usize,
242 seen: &mut FxHashSet<Vec<u32>>,
243 cycles: &mut Vec<Vec<usize>>,
244) {
245 let mut path: Vec<usize> = vec![start];
246 let mut path_set = FixedBitSet::with_capacity(succs.modules.len());
247 path_set.insert(start);
248
249 let range = &succs.succ_ranges[start];
250 let mut dfs: Vec<CycleFrame> = vec![CycleFrame {
251 succ_pos: range.start,
252 succ_end: range.end,
253 }];
254
255 while let Some(frame) = dfs.last_mut() {
256 if cycles.len() >= max_cycles {
257 return;
258 }
259
260 if frame.succ_pos >= frame.succ_end {
261 dfs.pop();
263 if path.len() > 1 {
264 let removed = path.pop().unwrap();
265 path_set.set(removed, false);
266 }
267 continue;
268 }
269
270 let w = succs.all_succs[frame.succ_pos];
271 frame.succ_pos += 1;
272
273 if !scc_set.contains(&w) {
275 continue;
276 }
277
278 if w == start && path.len() >= 2 && path.len() == depth_limit {
280 try_record_cycle(&path, succs.modules, seen, cycles);
281 continue;
282 }
283
284 if path_set.contains(w) || path.len() >= depth_limit {
286 continue;
287 }
288
289 path.push(w);
291 path_set.insert(w);
292
293 let range = &succs.succ_ranges[w];
294 dfs.push(CycleFrame {
295 succ_pos: range.start,
296 succ_end: range.end,
297 });
298 }
299}
300
301fn enumerate_elementary_cycles(
307 scc_nodes: &[usize],
308 succs: &SuccessorMap<'_>,
309 max_cycles: usize,
310) -> Vec<Vec<usize>> {
311 let scc_set: FxHashSet<usize> = scc_nodes.iter().copied().collect();
312 let mut cycles: Vec<Vec<usize>> = Vec::new();
313 let mut seen: FxHashSet<Vec<u32>> = FxHashSet::default();
314
315 let mut sorted_nodes: Vec<usize> = scc_nodes.to_vec();
317 sorted_nodes.sort_by(|a, b| succs.modules[*a].path.cmp(&succs.modules[*b].path));
318
319 let max_depth = scc_nodes.len().min(12); for depth_limit in 2..=max_depth {
322 if cycles.len() >= max_cycles {
323 break;
324 }
325
326 for &start in &sorted_nodes {
327 if cycles.len() >= max_cycles {
328 break;
329 }
330
331 dfs_find_cycles_from(
332 start,
333 depth_limit,
334 &scc_set,
335 succs,
336 max_cycles,
337 &mut seen,
338 &mut cycles,
339 );
340 }
341 }
342
343 cycles
344}
345
346#[cfg(test)]
347mod tests {
348 use std::ops::Range;
349 use std::path::PathBuf;
350
351 use rustc_hash::FxHashSet;
352
353 use crate::graph::types::ModuleNode;
354 use crate::resolve::{ResolveResult, ResolvedImport, ResolvedModule};
355 use fallow_types::discover::{DiscoveredFile, EntryPoint, EntryPointSource, FileId};
356 use fallow_types::extract::{ExportName, ImportInfo, ImportedName};
357
358 use super::{
359 ModuleGraph, SuccessorMap, canonical_cycle, dfs_find_cycles_from,
360 enumerate_elementary_cycles, try_record_cycle,
361 };
362
363 fn build_cycle_graph(file_count: usize, edges_spec: &[(u32, u32)]) -> ModuleGraph {
365 let files: Vec<DiscoveredFile> = (0..file_count)
366 .map(|i| DiscoveredFile {
367 id: FileId(i as u32),
368 path: PathBuf::from(format!("/project/file{i}.ts")),
369 size_bytes: 100,
370 })
371 .collect();
372
373 let resolved_modules: Vec<ResolvedModule> = (0..file_count)
374 .map(|i| {
375 let imports: Vec<ResolvedImport> = edges_spec
376 .iter()
377 .filter(|(src, _)| *src == i as u32)
378 .map(|(_, tgt)| ResolvedImport {
379 info: ImportInfo {
380 source: format!("./file{tgt}"),
381 imported_name: ImportedName::Named("x".to_string()),
382 local_name: "x".to_string(),
383 is_type_only: false,
384 span: oxc_span::Span::new(0, 10),
385 source_span: oxc_span::Span::default(),
386 },
387 target: ResolveResult::InternalModule(FileId(*tgt)),
388 })
389 .collect();
390
391 ResolvedModule {
392 file_id: FileId(i as u32),
393 path: PathBuf::from(format!("/project/file{i}.ts")),
394 exports: vec![fallow_types::extract::ExportInfo {
395 name: ExportName::Named("x".to_string()),
396 local_name: Some("x".to_string()),
397 is_type_only: false,
398 is_public: false,
399 span: oxc_span::Span::new(0, 20),
400 members: vec![],
401 }],
402 re_exports: vec![],
403 resolved_imports: imports,
404 resolved_dynamic_imports: vec![],
405 resolved_dynamic_patterns: vec![],
406 member_accesses: vec![],
407 whole_object_uses: vec![],
408 has_cjs_exports: false,
409 unused_import_bindings: vec![],
410 }
411 })
412 .collect();
413
414 let entry_points = vec![EntryPoint {
415 path: PathBuf::from("/project/file0.ts"),
416 source: EntryPointSource::PackageJsonMain,
417 }];
418
419 ModuleGraph::build(&resolved_modules, &entry_points, &files)
420 }
421
422 #[test]
423 fn find_cycles_empty_graph() {
424 let graph = ModuleGraph::build(&[], &[], &[]);
425 assert!(graph.find_cycles().is_empty());
426 }
427
428 #[test]
429 fn find_cycles_no_cycles() {
430 let graph = build_cycle_graph(3, &[(0, 1), (1, 2)]);
432 assert!(graph.find_cycles().is_empty());
433 }
434
435 #[test]
436 fn find_cycles_simple_two_node_cycle() {
437 let graph = build_cycle_graph(2, &[(0, 1), (1, 0)]);
439 let cycles = graph.find_cycles();
440 assert_eq!(cycles.len(), 1);
441 assert_eq!(cycles[0].len(), 2);
442 }
443
444 #[test]
445 fn find_cycles_three_node_cycle() {
446 let graph = build_cycle_graph(3, &[(0, 1), (1, 2), (2, 0)]);
448 let cycles = graph.find_cycles();
449 assert_eq!(cycles.len(), 1);
450 assert_eq!(cycles[0].len(), 3);
451 }
452
453 #[test]
454 fn find_cycles_self_import_ignored() {
455 let graph = build_cycle_graph(1, &[(0, 0)]);
457 let cycles = graph.find_cycles();
458 assert!(
459 cycles.is_empty(),
460 "self-imports should not be reported as cycles"
461 );
462 }
463
464 #[test]
465 fn find_cycles_multiple_independent_cycles() {
466 let graph = build_cycle_graph(4, &[(0, 1), (1, 0), (2, 3), (3, 2)]);
470 let cycles = graph.find_cycles();
471 assert_eq!(cycles.len(), 2);
472 assert!(cycles.iter().all(|c| c.len() == 2));
474 }
475
476 #[test]
477 fn find_cycles_linear_chain_with_back_edge() {
478 let graph = build_cycle_graph(4, &[(0, 1), (1, 2), (2, 3), (3, 1)]);
480 let cycles = graph.find_cycles();
481 assert_eq!(cycles.len(), 1);
482 assert_eq!(cycles[0].len(), 3);
483 let ids: Vec<u32> = cycles[0].iter().map(|f| f.0).collect();
485 assert!(ids.contains(&1));
486 assert!(ids.contains(&2));
487 assert!(ids.contains(&3));
488 assert!(!ids.contains(&0));
489 }
490
491 #[test]
492 fn find_cycles_overlapping_cycles_enumerated() {
493 let graph = build_cycle_graph(3, &[(0, 1), (1, 0), (1, 2), (2, 1)]);
495 let cycles = graph.find_cycles();
496 assert_eq!(
497 cycles.len(),
498 2,
499 "should find 2 elementary cycles, not 1 SCC"
500 );
501 assert!(
502 cycles.iter().all(|c| c.len() == 2),
503 "both cycles should have length 2"
504 );
505 }
506
507 #[test]
508 fn find_cycles_deterministic_ordering() {
509 let graph1 = build_cycle_graph(3, &[(0, 1), (1, 2), (2, 0)]);
511 let graph2 = build_cycle_graph(3, &[(0, 1), (1, 2), (2, 0)]);
512 let cycles1 = graph1.find_cycles();
513 let cycles2 = graph2.find_cycles();
514 assert_eq!(cycles1.len(), cycles2.len());
515 for (c1, c2) in cycles1.iter().zip(cycles2.iter()) {
516 let paths1: Vec<&PathBuf> = c1
517 .iter()
518 .map(|f| &graph1.modules[f.0 as usize].path)
519 .collect();
520 let paths2: Vec<&PathBuf> = c2
521 .iter()
522 .map(|f| &graph2.modules[f.0 as usize].path)
523 .collect();
524 assert_eq!(paths1, paths2);
525 }
526 }
527
528 #[test]
529 fn find_cycles_sorted_by_length() {
530 let graph = build_cycle_graph(5, &[(0, 1), (1, 0), (2, 3), (3, 4), (4, 2)]);
532 let cycles = graph.find_cycles();
533 assert_eq!(cycles.len(), 2);
534 assert!(
535 cycles[0].len() <= cycles[1].len(),
536 "cycles should be sorted by length"
537 );
538 }
539
540 #[test]
541 fn find_cycles_large_cycle() {
542 let edges: Vec<(u32, u32)> = (0..10).map(|i| (i, (i + 1) % 10)).collect();
544 let graph = build_cycle_graph(10, &edges);
545 let cycles = graph.find_cycles();
546 assert_eq!(cycles.len(), 1);
547 assert_eq!(cycles[0].len(), 10);
548 }
549
550 #[test]
551 fn find_cycles_complex_scc_multiple_elementary() {
552 let graph = build_cycle_graph(4, &[(0, 1), (1, 2), (2, 3), (3, 0), (0, 2)]);
555 let cycles = graph.find_cycles();
556 assert!(
558 cycles.len() >= 2,
559 "should find at least 2 elementary cycles, got {}",
560 cycles.len()
561 );
562 assert!(cycles.iter().all(|c| c.len() <= 4));
564 }
565
566 #[test]
567 fn find_cycles_no_duplicate_cycles() {
568 let graph = build_cycle_graph(3, &[(0, 1), (1, 2), (2, 0)]);
571 let cycles = graph.find_cycles();
572 assert_eq!(cycles.len(), 1, "triangle should produce exactly 1 cycle");
573 assert_eq!(cycles[0].len(), 3);
574 }
575
576 fn build_test_succs(
585 file_count: usize,
586 edges_spec: &[(usize, usize)],
587 ) -> (Vec<ModuleNode>, Vec<usize>, Vec<Range<usize>>) {
588 let modules: Vec<ModuleNode> = (0..file_count)
589 .map(|i| ModuleNode {
590 file_id: FileId(i as u32),
591 path: PathBuf::from(format!("/project/file{i}.ts")),
592 edge_range: 0..0,
593 exports: vec![],
594 re_exports: vec![],
595 is_entry_point: i == 0,
596 is_reachable: true,
597 has_cjs_exports: false,
598 })
599 .collect();
600
601 let mut all_succs: Vec<usize> = Vec::new();
602 let mut succ_ranges: Vec<Range<usize>> = Vec::with_capacity(file_count);
603 for src in 0..file_count {
604 let start = all_succs.len();
605 let mut seen = FxHashSet::default();
606 for &(s, t) in edges_spec {
607 if s == src && t < file_count && seen.insert(t) {
608 all_succs.push(t);
609 }
610 }
611 let end = all_succs.len();
612 succ_ranges.push(start..end);
613 }
614
615 (modules, all_succs, succ_ranges)
616 }
617
618 #[test]
623 fn canonical_cycle_empty() {
624 let modules: Vec<ModuleNode> = vec![];
625 assert!(canonical_cycle(&[], &modules).is_empty());
626 }
627
628 #[test]
629 fn canonical_cycle_rotates_to_smallest_path() {
630 let (modules, _, _) = build_test_succs(3, &[]);
631 let result = canonical_cycle(&[2, 0, 1], &modules);
633 assert_eq!(result, vec![0, 1, 2]);
634 }
635
636 #[test]
637 fn canonical_cycle_already_canonical() {
638 let (modules, _, _) = build_test_succs(3, &[]);
639 let result = canonical_cycle(&[0, 1, 2], &modules);
640 assert_eq!(result, vec![0, 1, 2]);
641 }
642
643 #[test]
644 fn canonical_cycle_single_node() {
645 let (modules, _, _) = build_test_succs(1, &[]);
646 let result = canonical_cycle(&[0], &modules);
647 assert_eq!(result, vec![0]);
648 }
649
650 #[test]
655 fn try_record_cycle_inserts_new_cycle() {
656 let (modules, _, _) = build_test_succs(3, &[]);
657 let mut seen = FxHashSet::default();
658 let mut cycles = Vec::new();
659
660 try_record_cycle(&[0, 1, 2], &modules, &mut seen, &mut cycles);
661 assert_eq!(cycles.len(), 1);
662 assert_eq!(cycles[0], vec![0, 1, 2]);
663 }
664
665 #[test]
666 fn try_record_cycle_deduplicates_rotated_cycle() {
667 let (modules, _, _) = build_test_succs(3, &[]);
670 let mut seen = FxHashSet::default();
671 let mut cycles = Vec::new();
672
673 try_record_cycle(&[0, 1, 2], &modules, &mut seen, &mut cycles);
674 try_record_cycle(&[1, 2, 0], &modules, &mut seen, &mut cycles);
675 try_record_cycle(&[2, 0, 1], &modules, &mut seen, &mut cycles);
676
677 assert_eq!(
678 cycles.len(),
679 1,
680 "rotations of the same cycle should be deduped"
681 );
682 }
683
684 #[test]
685 fn try_record_cycle_single_node_self_loop() {
686 let (modules, _, _) = build_test_succs(1, &[]);
688 let mut seen = FxHashSet::default();
689 let mut cycles = Vec::new();
690
691 try_record_cycle(&[0], &modules, &mut seen, &mut cycles);
692 assert_eq!(cycles.len(), 1);
693 assert_eq!(cycles[0], vec![0]);
694 }
695
696 #[test]
697 fn try_record_cycle_distinct_cycles_both_recorded() {
698 let (modules, _, _) = build_test_succs(4, &[]);
700 let mut seen = FxHashSet::default();
701 let mut cycles = Vec::new();
702
703 try_record_cycle(&[0, 1], &modules, &mut seen, &mut cycles);
704 try_record_cycle(&[2, 3], &modules, &mut seen, &mut cycles);
705
706 assert_eq!(cycles.len(), 2);
707 }
708
709 #[test]
714 fn successor_map_empty_graph() {
715 let (modules, all_succs, succ_ranges) = build_test_succs(0, &[]);
716 let succs = SuccessorMap {
717 all_succs: &all_succs,
718 succ_ranges: &succ_ranges,
719 modules: &modules,
720 };
721 assert!(succs.all_succs.is_empty());
722 assert!(succs.succ_ranges.is_empty());
723 }
724
725 #[test]
726 fn successor_map_single_node_self_edge() {
727 let (modules, all_succs, succ_ranges) = build_test_succs(1, &[(0, 0)]);
728 let succs = SuccessorMap {
729 all_succs: &all_succs,
730 succ_ranges: &succ_ranges,
731 modules: &modules,
732 };
733 assert_eq!(succs.all_succs.len(), 1);
734 assert_eq!(succs.all_succs[0], 0);
735 assert_eq!(succs.succ_ranges[0], 0..1);
736 }
737
738 #[test]
739 fn successor_map_deduplicates_edges() {
740 let (modules, all_succs, succ_ranges) = build_test_succs(2, &[(0, 1), (0, 1)]);
742 let succs = SuccessorMap {
743 all_succs: &all_succs,
744 succ_ranges: &succ_ranges,
745 modules: &modules,
746 };
747 let range = &succs.succ_ranges[0];
748 assert_eq!(
749 range.end - range.start,
750 1,
751 "duplicate edges should be deduped"
752 );
753 }
754
755 #[test]
756 fn successor_map_multiple_successors() {
757 let (modules, all_succs, succ_ranges) = build_test_succs(4, &[(0, 1), (0, 2), (0, 3)]);
758 let succs = SuccessorMap {
759 all_succs: &all_succs,
760 succ_ranges: &succ_ranges,
761 modules: &modules,
762 };
763 let range = &succs.succ_ranges[0];
764 assert_eq!(range.end - range.start, 3);
765 for i in 1..4 {
767 let r = &succs.succ_ranges[i];
768 assert_eq!(r.end - r.start, 0);
769 }
770 }
771
772 #[test]
777 fn dfs_find_cycles_from_isolated_node() {
778 let (modules, all_succs, succ_ranges) = build_test_succs(1, &[]);
780 let succs = SuccessorMap {
781 all_succs: &all_succs,
782 succ_ranges: &succ_ranges,
783 modules: &modules,
784 };
785 let scc_set: FxHashSet<usize> = [0].into_iter().collect();
786 let mut seen = FxHashSet::default();
787 let mut cycles = Vec::new();
788
789 dfs_find_cycles_from(0, 2, &scc_set, &succs, 10, &mut seen, &mut cycles);
790 assert!(cycles.is_empty(), "isolated node should have no cycles");
791 }
792
793 #[test]
794 fn dfs_find_cycles_from_simple_two_cycle() {
795 let (modules, all_succs, succ_ranges) = build_test_succs(2, &[(0, 1), (1, 0)]);
797 let succs = SuccessorMap {
798 all_succs: &all_succs,
799 succ_ranges: &succ_ranges,
800 modules: &modules,
801 };
802 let scc_set: FxHashSet<usize> = [0, 1].into_iter().collect();
803 let mut seen = FxHashSet::default();
804 let mut cycles = Vec::new();
805
806 dfs_find_cycles_from(0, 2, &scc_set, &succs, 10, &mut seen, &mut cycles);
807 assert_eq!(cycles.len(), 1);
808 assert_eq!(cycles[0].len(), 2);
809 }
810
811 #[test]
812 fn dfs_find_cycles_from_diamond_graph() {
813 let (modules, all_succs, succ_ranges) =
817 build_test_succs(4, &[(0, 1), (0, 2), (1, 3), (2, 3), (3, 0)]);
818 let succs = SuccessorMap {
819 all_succs: &all_succs,
820 succ_ranges: &succ_ranges,
821 modules: &modules,
822 };
823 let scc_set: FxHashSet<usize> = [0, 1, 2, 3].into_iter().collect();
824 let mut seen = FxHashSet::default();
825 let mut cycles = Vec::new();
826
827 dfs_find_cycles_from(0, 3, &scc_set, &succs, 10, &mut seen, &mut cycles);
829 assert_eq!(cycles.len(), 2, "diamond should have two 3-node cycles");
830 assert!(cycles.iter().all(|c| c.len() == 3));
831 }
832
833 #[test]
834 fn dfs_find_cycles_from_depth_limit_prevents_longer_cycles() {
835 let (modules, all_succs, succ_ranges) =
838 build_test_succs(4, &[(0, 1), (1, 2), (2, 3), (3, 0)]);
839 let succs = SuccessorMap {
840 all_succs: &all_succs,
841 succ_ranges: &succ_ranges,
842 modules: &modules,
843 };
844 let scc_set: FxHashSet<usize> = [0, 1, 2, 3].into_iter().collect();
845 let mut seen = FxHashSet::default();
846 let mut cycles = Vec::new();
847
848 dfs_find_cycles_from(0, 3, &scc_set, &succs, 10, &mut seen, &mut cycles);
849 assert!(
850 cycles.is_empty(),
851 "depth_limit=3 should prevent finding a 4-node cycle"
852 );
853 }
854
855 #[test]
856 fn dfs_find_cycles_from_depth_limit_exact_match() {
857 let (modules, all_succs, succ_ranges) =
860 build_test_succs(4, &[(0, 1), (1, 2), (2, 3), (3, 0)]);
861 let succs = SuccessorMap {
862 all_succs: &all_succs,
863 succ_ranges: &succ_ranges,
864 modules: &modules,
865 };
866 let scc_set: FxHashSet<usize> = [0, 1, 2, 3].into_iter().collect();
867 let mut seen = FxHashSet::default();
868 let mut cycles = Vec::new();
869
870 dfs_find_cycles_from(0, 4, &scc_set, &succs, 10, &mut seen, &mut cycles);
871 assert_eq!(
872 cycles.len(),
873 1,
874 "depth_limit=4 should find the 4-node cycle"
875 );
876 assert_eq!(cycles[0].len(), 4);
877 }
878
879 #[test]
880 fn dfs_find_cycles_from_respects_max_cycles() {
881 let edges: Vec<(usize, usize)> = (0..4)
883 .flat_map(|i| (0..4).filter(move |&j| i != j).map(move |j| (i, j)))
884 .collect();
885 let (modules, all_succs, succ_ranges) = build_test_succs(4, &edges);
886 let succs = SuccessorMap {
887 all_succs: &all_succs,
888 succ_ranges: &succ_ranges,
889 modules: &modules,
890 };
891 let scc_set: FxHashSet<usize> = (0..4).collect();
892 let mut seen = FxHashSet::default();
893 let mut cycles = Vec::new();
894
895 dfs_find_cycles_from(0, 2, &scc_set, &succs, 2, &mut seen, &mut cycles);
897 assert!(
898 cycles.len() <= 2,
899 "should respect max_cycles limit, got {}",
900 cycles.len()
901 );
902 }
903
904 #[test]
905 fn dfs_find_cycles_from_ignores_nodes_outside_scc() {
906 let (modules, all_succs, succ_ranges) = build_test_succs(3, &[(0, 1), (1, 2), (2, 0)]);
908 let succs = SuccessorMap {
909 all_succs: &all_succs,
910 succ_ranges: &succ_ranges,
911 modules: &modules,
912 };
913 let scc_set: FxHashSet<usize> = [0, 1].into_iter().collect();
914 let mut seen = FxHashSet::default();
915 let mut cycles = Vec::new();
916
917 for depth in 2..=3 {
918 dfs_find_cycles_from(0, depth, &scc_set, &succs, 10, &mut seen, &mut cycles);
919 }
920 assert!(
921 cycles.is_empty(),
922 "should not find cycles through nodes outside the SCC set"
923 );
924 }
925
926 #[test]
931 fn enumerate_elementary_cycles_empty_scc() {
932 let (modules, all_succs, succ_ranges) = build_test_succs(0, &[]);
933 let succs = SuccessorMap {
934 all_succs: &all_succs,
935 succ_ranges: &succ_ranges,
936 modules: &modules,
937 };
938 let cycles = enumerate_elementary_cycles(&[], &succs, 10);
939 assert!(cycles.is_empty());
940 }
941
942 #[test]
943 fn enumerate_elementary_cycles_max_cycles_limit() {
944 let edges: Vec<(usize, usize)> = (0..4)
946 .flat_map(|i| (0..4).filter(move |&j| i != j).map(move |j| (i, j)))
947 .collect();
948 let (modules, all_succs, succ_ranges) = build_test_succs(4, &edges);
949 let succs = SuccessorMap {
950 all_succs: &all_succs,
951 succ_ranges: &succ_ranges,
952 modules: &modules,
953 };
954 let scc_nodes: Vec<usize> = (0..4).collect();
955
956 let cycles = enumerate_elementary_cycles(&scc_nodes, &succs, 3);
957 assert!(
958 cycles.len() <= 3,
959 "should respect max_cycles=3 limit, got {}",
960 cycles.len()
961 );
962 }
963
964 #[test]
965 fn enumerate_elementary_cycles_finds_all_in_triangle() {
966 let (modules, all_succs, succ_ranges) = build_test_succs(3, &[(0, 1), (1, 2), (2, 0)]);
968 let succs = SuccessorMap {
969 all_succs: &all_succs,
970 succ_ranges: &succ_ranges,
971 modules: &modules,
972 };
973 let scc_nodes: Vec<usize> = vec![0, 1, 2];
974
975 let cycles = enumerate_elementary_cycles(&scc_nodes, &succs, 20);
976 assert_eq!(cycles.len(), 1);
977 assert_eq!(cycles[0].len(), 3);
978 }
979
980 #[test]
981 fn enumerate_elementary_cycles_iterative_deepening_order() {
982 let (modules, all_succs, succ_ranges) =
985 build_test_succs(3, &[(0, 1), (1, 0), (1, 2), (2, 0)]);
986 let succs = SuccessorMap {
987 all_succs: &all_succs,
988 succ_ranges: &succ_ranges,
989 modules: &modules,
990 };
991 let scc_nodes: Vec<usize> = vec![0, 1, 2];
992
993 let cycles = enumerate_elementary_cycles(&scc_nodes, &succs, 20);
994 assert!(cycles.len() >= 2, "should find at least 2 cycles");
995 assert!(
997 cycles[0].len() <= cycles[cycles.len() - 1].len(),
998 "shorter cycles should be found before longer ones"
999 );
1000 }
1001
1002 #[test]
1007 fn find_cycles_max_cycles_per_scc_respected() {
1008 let edges: Vec<(u32, u32)> = (0..5)
1010 .flat_map(|i| (0..5).filter(move |&j| i != j).map(move |j| (i, j)))
1011 .collect();
1012 let graph = build_cycle_graph(5, &edges);
1013 let cycles = graph.find_cycles();
1014 assert!(
1016 cycles.len() <= 20,
1017 "should cap at MAX_CYCLES_PER_SCC, got {}",
1018 cycles.len()
1019 );
1020 assert!(
1021 !cycles.is_empty(),
1022 "dense graph should still find some cycles"
1023 );
1024 }
1025
1026 #[test]
1027 fn find_cycles_graph_with_no_cycles_returns_empty() {
1028 let graph = build_cycle_graph(5, &[(0, 1), (0, 2), (0, 3), (0, 4)]);
1030 assert!(graph.find_cycles().is_empty());
1031 }
1032
1033 #[test]
1034 fn find_cycles_diamond_no_cycle() {
1035 let graph = build_cycle_graph(4, &[(0, 1), (0, 2), (1, 3), (2, 3)]);
1037 assert!(graph.find_cycles().is_empty());
1038 }
1039
1040 #[test]
1041 fn find_cycles_diamond_with_back_edge() {
1042 let graph = build_cycle_graph(4, &[(0, 1), (0, 2), (1, 3), (2, 3), (3, 0)]);
1044 let cycles = graph.find_cycles();
1045 assert!(
1046 cycles.len() >= 2,
1047 "diamond with back-edge should have at least 2 elementary cycles, got {}",
1048 cycles.len()
1049 );
1050 assert_eq!(cycles[0].len(), 3);
1052 }
1053}