1#![warn(dead_code)]
6pub mod ast;
7use std::cell::{Cell, RefCell};
8
9use ast::{Ast, Concat, ErrorKind, GroupKind, LookaroundKind};
10use regex_syntax::{
11 ast::{
12 ClassAscii, ClassBracketed, ClassPerl, ClassSet, ClassSetBinaryOpKind, ClassSetItem,
13 ClassSetRange, ClassSetUnion, ClassUnicode, ClassUnicodeKind, ClassUnicodeOpKind,
14 HexLiteralKind, Literal, LiteralKind, Position, Span, SpecialLiteralKind,
15 },
16 hir::{
17 self,
18 translate::{Translator, TranslatorBuilder},
19 },
20 utf8::Utf8Sequences,
21};
22use resharp_algebra::NodeId;
23
24type TB<'s> = resharp_algebra::RegexBuilder;
25
26pub struct PatternFlags {
28 pub unicode: bool,
30 pub full_unicode: bool,
32 pub case_insensitive: bool,
34 pub dot_matches_new_line: bool,
36 pub ignore_whitespace: bool,
38}
39
40impl Default for PatternFlags {
41 fn default() -> Self {
42 Self {
43 unicode: true,
44 full_unicode: false,
45 case_insensitive: false,
46 dot_matches_new_line: false,
47 ignore_whitespace: false,
48 }
49 }
50}
51
52#[derive(Clone, Copy, PartialEq, Debug)]
53enum WordCharKind {
54 Word,
55 NonWord,
56 MaybeWord,
57 MaybeNonWord,
58 Unknown,
59 Edge,
60}
61
62fn is_word_byte(b: u8) -> bool {
63 b.is_ascii_alphanumeric() || b == b'_'
64}
65
66#[derive(Clone, Debug, Eq, PartialEq)]
67enum Primitive {
68 Literal(Literal),
69 Assertion(ast::Assertion),
70 Dot(Span),
71 Top(Span),
72 Perl(ClassPerl),
73 Unicode(ClassUnicode),
74}
75
76impl Primitive {
77 fn span(&self) -> &Span {
78 match *self {
79 Primitive::Literal(ref x) => &x.span,
80 Primitive::Assertion(ref x) => &x.span,
81 Primitive::Dot(ref span) => span,
82 Primitive::Top(ref span) => span,
83 Primitive::Perl(ref x) => &x.span,
84 Primitive::Unicode(ref x) => &x.span,
85 }
86 }
87
88 fn into_ast(self) -> Ast {
89 match self {
90 Primitive::Literal(lit) => Ast::literal(lit),
91 Primitive::Assertion(assert) => Ast::assertion(assert),
92 Primitive::Dot(span) => Ast::dot(span),
93 Primitive::Top(span) => Ast::top(span),
94 Primitive::Perl(cls) => Ast::class_perl(cls),
95 Primitive::Unicode(cls) => Ast::class_unicode(cls),
96 }
97 }
98
99 fn into_class_set_item(self, p: &ResharpParser) -> Result<regex_syntax::ast::ClassSetItem> {
100 use self::Primitive::*;
101 use regex_syntax::ast::ClassSetItem;
102
103 match self {
104 Literal(lit) => Ok(ClassSetItem::Literal(lit)),
105 Perl(cls) => Ok(ClassSetItem::Perl(cls)),
106 Unicode(cls) => Ok(ClassSetItem::Unicode(cls)),
107 x => Err(p.error(*x.span(), ast::ErrorKind::ClassEscapeInvalid)),
108 }
109 }
110
111 fn into_class_literal(self, p: &ResharpParser) -> Result<Literal> {
112 use self::Primitive::*;
113
114 match self {
115 Literal(lit) => Ok(lit),
116 x => Err(p.error(*x.span(), ast::ErrorKind::ClassRangeLiteral)),
117 }
118 }
119}
120
121#[derive(Clone, Debug, Eq, PartialEq)]
122pub enum Either<Left, Right> {
123 Left(Left),
124 Right(Right),
125}
126
127#[derive(Clone, Debug, Eq, PartialEq)]
128pub struct ResharpError {
129 pub kind: ErrorKind,
131 pattern: String,
134 pub span: Span,
136}
137
138impl std::fmt::Display for ResharpError {
139 fn fmt(&self, f: &mut std::fmt::Formatter) -> std::fmt::Result {
140 write!(f, "{:?}: {:?}", self.kind, self.span)
141 }
142}
143impl std::error::Error for ResharpError {}
144
145type Result<T> = core::result::Result<T, ResharpError>;
146
147#[derive(Clone, Debug)]
148enum GroupState {
149 Group {
151 concat: Concat,
153 group: ast::Group,
155 ignore_whitespace: bool,
157 },
158 Alternation(ast::Alternation),
163 Intersection(ast::Intersection),
164}
165
166#[derive(Clone, Debug)]
167enum ClassState {
168 Open {
170 union: regex_syntax::ast::ClassSetUnion,
172 set: regex_syntax::ast::ClassBracketed,
176 },
177 Op {
180 kind: regex_syntax::ast::ClassSetBinaryOpKind,
182 lhs: regex_syntax::ast::ClassSet,
184 },
185}
186
187pub struct ResharpParser<'s> {
189 perl_classes: Vec<(bool, regex_syntax::ast::ClassPerlKind, NodeId)>,
190 unicode_classes: resharp_algebra::UnicodeClassCache,
191 pub translator: regex_syntax::hir::translate::Translator,
192 pub pattern: &'s str,
193 pos: Cell<Position>,
194 capture_index: Cell<u32>,
195 octal: bool,
196 empty_min_range: bool,
197 ignore_whitespace: Cell<bool>,
198 dot_all: Cell<bool>,
199 global_unicode: bool,
200 global_full_unicode: bool,
201 global_case_insensitive: bool,
202 comments: RefCell<Vec<ast::Comment>>,
203 stack_group: RefCell<Vec<GroupState>>,
204 stack_class: RefCell<Vec<ClassState>>,
205 capture_names: RefCell<Vec<ast::CaptureName>>,
206 scratch: RefCell<String>,
207}
208
209fn specialize_err<T>(result: Result<T>, from: ast::ErrorKind, to: ast::ErrorKind) -> Result<T> {
210 result.map_err(|e| {
211 if e.kind == from {
212 ResharpError {
213 kind: to,
214 pattern: e.pattern,
215 span: e.span,
216 }
217 } else {
218 e
219 }
220 })
221}
222
223fn is_capture_char(c: char, first: bool) -> bool {
224 if first {
225 c == '_' || c.is_alphabetic()
226 } else {
227 c == '_' || c == '.' || c == '[' || c == ']' || c.is_alphanumeric()
228 }
229}
230
231pub fn is_meta_character(c: char) -> bool {
232 matches!(
233 c,
234 '\\' | '.'
235 | '+'
236 | '*'
237 | '?'
238 | '('
239 | ')'
240 | '|'
241 | '['
242 | ']'
243 | '{'
244 | '}'
245 | '^'
246 | '$'
247 | '#'
248 | '&'
249 | '-'
250 | '~'
251 | '_'
252 )
253}
254
255pub fn escape(text: &str) -> String {
257 let mut buf = String::new();
258 escape_into(text, &mut buf);
259 buf
260}
261
262pub fn escape_into(text: &str, buf: &mut String) {
264 buf.reserve(text.len());
265 for c in text.chars() {
266 if is_meta_character(c) {
267 buf.push('\\');
268 }
269 buf.push(c);
270 }
271}
272
273pub fn is_escapeable_character(c: char) -> bool {
274 if is_meta_character(c) {
276 return true;
277 }
278 if !c.is_ascii() {
281 return false;
282 }
283 match c {
288 '0'..='9' | 'A'..='Z' | 'a'..='z' => false,
289 '<' | '>' => false,
299 _ => true,
300 }
301}
302
303fn is_hex(c: char) -> bool {
304 c.is_ascii_digit() || ('a'..='f').contains(&c) || ('A'..='F').contains(&c)
305}
306
307impl<'s> ResharpParser<'s> {
308 fn default_translator_builder(&self) -> TranslatorBuilder {
309 let mut trb = TranslatorBuilder::new();
310 trb.unicode(self.global_unicode);
311 trb.utf8(false);
312 trb.case_insensitive(self.global_case_insensitive);
313 trb
314 }
315
316 pub fn new(pattern: &'s str) -> Self {
317 Self::with_flags(pattern, &PatternFlags::default())
318 }
319
320 pub fn with_flags(pattern: &'s str, flags: &PatternFlags) -> Self {
321 let mut trb = TranslatorBuilder::new();
322 trb.unicode(flags.unicode);
323 trb.utf8(false);
324 trb.case_insensitive(flags.case_insensitive);
325 Self {
326 translator: trb.build(),
327 pattern,
328 perl_classes: vec![],
329 unicode_classes: resharp_algebra::UnicodeClassCache::default(),
330 pos: Cell::new(Position::new(0, 0, 0)),
331 capture_index: Cell::new(0),
332 octal: false,
333 empty_min_range: false,
334 ignore_whitespace: Cell::new(flags.ignore_whitespace),
335 dot_all: Cell::new(flags.dot_matches_new_line),
336 global_unicode: flags.unicode || flags.full_unicode,
337 global_full_unicode: flags.full_unicode,
338 global_case_insensitive: flags.case_insensitive,
339 comments: RefCell::new(vec![]),
340 stack_group: RefCell::new(vec![]),
341 stack_class: RefCell::new(vec![]),
342 capture_names: RefCell::new(vec![]),
343 scratch: RefCell::new(String::new()),
344 }
345 }
346
347 fn parser(&'_ self) -> &'_ ResharpParser<'_> {
349 self
350 }
351
352 fn pattern(&self) -> &str {
354 self.pattern
355 }
356
357 fn error(&self, span: Span, kind: ast::ErrorKind) -> ResharpError {
359 ResharpError {
360 kind,
361 pattern: self.pattern().to_string(),
362 span,
363 }
364 }
365
366 fn unsupported_error(&self, _: regex_syntax::hir::Error) -> ResharpError {
367 self.error(
368 Span::splat(self.pos()),
369 ast::ErrorKind::UnsupportedResharpRegex,
370 )
371 }
372
373 fn offset(&self) -> usize {
378 self.parser().pos.get().offset
379 }
380
381 fn line(&self) -> usize {
385 self.parser().pos.get().line
386 }
387
388 fn column(&self) -> usize {
392 self.parser().pos.get().column
393 }
394
395 fn next_capture_index(&self, span: Span) -> Result<u32> {
403 let current = self.parser().capture_index.get();
404 let i = current
405 .checked_add(1)
406 .ok_or_else(|| self.error(span, ast::ErrorKind::CaptureLimitExceeded))?;
407 self.parser().capture_index.set(i);
408 Ok(i)
409 }
410
411 fn add_capture_name(&self, cap: &ast::CaptureName) -> Result<()> {
412 let mut names = self.parser().capture_names.borrow_mut();
413 match names.binary_search_by_key(&cap.name.as_str(), |c| c.name.as_str()) {
414 Err(i) => {
415 names.insert(i, cap.clone());
416 Ok(())
417 }
418 Ok(i) => Err(self.error(
419 cap.span,
420 ast::ErrorKind::GroupNameDuplicate {
421 original: names[i].span,
422 },
423 )),
424 }
425 }
426
427 fn ignore_whitespace(&self) -> bool {
428 self.parser().ignore_whitespace.get()
429 }
430
431 fn char(&self) -> char {
432 self.char_at(self.offset())
433 }
434
435 fn char_at(&self, i: usize) -> char {
436 self.pattern()[i..]
437 .chars()
438 .next()
439 .unwrap_or_else(|| panic!("expected char at offset {}", i))
440 }
441
442 fn bump(&self) -> bool {
443 if self.is_eof() {
444 return false;
445 }
446 let Position {
447 mut offset,
448 mut line,
449 mut column,
450 } = self.pos();
451 if self.char() == '\n' {
452 line = line.checked_add(1).unwrap();
453 column = 1;
454 } else {
455 column = column.checked_add(1).unwrap();
456 }
457 offset += self.char().len_utf8();
458 self.parser().pos.set(Position {
459 offset,
460 line,
461 column,
462 });
463 self.pattern()[self.offset()..].chars().next().is_some()
464 }
465
466 fn bump_if(&self, prefix: &str) -> bool {
467 if self.pattern()[self.offset()..].starts_with(prefix) {
468 for _ in 0..prefix.chars().count() {
469 self.bump();
470 }
471 true
472 } else {
473 false
474 }
475 }
476
477 fn is_lookaround_prefix(&self) -> Option<(bool, bool)> {
478 if self.bump_if("?=") {
479 return Some((true, true));
480 }
481 if self.bump_if("?!") {
482 return Some((true, false));
483 }
484 if self.bump_if("?<=") {
485 return Some((false, true));
486 }
487 if self.bump_if("?<!") {
488 return Some((false, false));
489 }
490 None
491 }
492
493 fn bump_and_bump_space(&self) -> bool {
494 if !self.bump() {
495 return false;
496 }
497 self.bump_space();
498 !self.is_eof()
499 }
500
501 fn bump_space(&self) {
502 if !self.ignore_whitespace() {
503 return;
504 }
505 while !self.is_eof() {
506 if self.char().is_whitespace() {
507 self.bump();
508 } else if self.char() == '#' {
509 let start = self.pos();
510 let mut comment_text = String::new();
511 self.bump();
512 while !self.is_eof() {
513 let c = self.char();
514 self.bump();
515 if c == '\n' {
516 break;
517 }
518 comment_text.push(c);
519 }
520 let comment = ast::Comment {
521 span: Span::new(start, self.pos()),
522 comment: comment_text,
523 };
524 self.parser().comments.borrow_mut().push(comment);
525 } else {
526 break;
527 }
528 }
529 }
530
531 fn peek(&self) -> Option<char> {
535 if self.is_eof() {
536 return None;
537 }
538 self.pattern()[self.offset() + self.char().len_utf8()..]
539 .chars()
540 .next()
541 }
542
543 fn peek_space(&self) -> Option<char> {
546 if !self.ignore_whitespace() {
547 return self.peek();
548 }
549 if self.is_eof() {
550 return None;
551 }
552 let mut start = self.offset() + self.char().len_utf8();
553 let mut in_comment = false;
554 for (i, c) in self.pattern()[start..].char_indices() {
555 if c.is_whitespace() {
556 continue;
557 } else if !in_comment && c == '#' {
558 in_comment = true;
559 } else if in_comment && c == '\n' {
560 in_comment = false;
561 } else {
562 start += i;
563 break;
564 }
565 }
566 self.pattern()[start..].chars().next()
567 }
568
569 fn is_eof(&self) -> bool {
571 self.offset() == self.pattern().len()
572 }
573
574 fn pos(&self) -> Position {
577 self.parser().pos.get()
578 }
579
580 fn span(&self) -> Span {
583 Span::splat(self.pos())
584 }
585
586 fn span_char(&self) -> Span {
588 let mut next = Position {
589 offset: self.offset().checked_add(self.char().len_utf8()).unwrap(),
590 line: self.line(),
591 column: self.column().checked_add(1).unwrap(),
592 };
593 if self.char() == '\n' {
594 next.line += 1;
595 next.column = 1;
596 }
597 Span::new(self.pos(), next)
598 }
599
600 #[inline(never)]
610 fn push_alternate(&self, mut concat: ast::Concat) -> Result<ast::Concat> {
611 assert_eq!(self.char(), '|');
612 concat.span.end = self.pos();
613 self.push_or_add_alternation(concat);
614 self.bump();
615 Ok(ast::Concat {
616 span: self.span(),
617 asts: vec![],
618 })
619 }
620
621 fn push_or_add_alternation(&self, concat: Concat) {
624 use self::GroupState::*;
625
626 let mut stack = self.parser().stack_group.borrow_mut();
627 if let Some(&mut Alternation(ref mut alts)) = stack.last_mut() {
628 alts.asts.push(concat.into_ast());
629 return;
630 }
631 stack.push(Alternation(ast::Alternation {
632 span: Span::new(concat.span.start, self.pos()),
633 asts: vec![concat.into_ast()],
634 }));
635 }
636
637 #[inline(never)]
638 fn push_intersect(&self, mut concat: Concat) -> Result<Concat> {
639 assert_eq!(self.char(), '&');
640 concat.span.end = self.pos();
641 self.push_or_add_intersect(concat);
642 self.bump();
643 Ok(Concat {
644 span: self.span(),
645 asts: vec![],
646 })
647 }
648
649 fn push_or_add_intersect(&self, concat: Concat) {
652 use self::GroupState::*;
653
654 let mut stack = self.parser().stack_group.borrow_mut();
655 if let Some(&mut Intersection(ref mut alts)) = stack.last_mut() {
656 alts.asts.push(concat.into_ast());
657 return;
658 }
659 stack.push(Intersection(ast::Intersection {
660 span: Span::new(concat.span.start, self.pos()),
661 asts: vec![concat.into_ast()],
662 }));
663 }
664
665 #[inline(never)]
679 fn push_group(&self, mut concat: Concat) -> Result<Concat> {
680 assert_eq!(self.char(), '(');
681 match self.parse_group()? {
682 Either::Left(set) => {
683 let ignore = set.flags.flag_state(ast::Flag::IgnoreWhitespace);
684 if let Some(v) = ignore {
685 self.parser().ignore_whitespace.set(v);
686 }
687
688 concat.asts.push(Ast::flags(set));
689 Ok(concat)
690 }
691 Either::Right(group) => {
692 let old_ignore_whitespace = self.ignore_whitespace();
693 let new_ignore_whitespace = group
694 .flags()
695 .and_then(|f| f.flag_state(ast::Flag::IgnoreWhitespace))
696 .unwrap_or(old_ignore_whitespace);
697 self.parser()
698 .stack_group
699 .borrow_mut()
700 .push(GroupState::Group {
701 concat,
702 group,
703 ignore_whitespace: old_ignore_whitespace,
704 });
705 self.parser().ignore_whitespace.set(new_ignore_whitespace);
706 Ok(Concat {
707 span: self.span(),
708 asts: vec![],
709 })
710 }
711 }
712 }
713
714 #[inline(never)]
715 fn push_compl_group(&self, concat: Concat) -> Result<Concat> {
716 assert_eq!(self.char(), '~');
717 self.bump();
718 if self.is_eof() || self.char() != '(' {
719 return Err(self.error(self.span(), ast::ErrorKind::ComplementGroupExpected));
720 }
721 let open_span = self.span_char();
722 self.bump();
723 let group = ast::Group {
724 span: open_span,
725 kind: ast::GroupKind::Complement,
726 ast: Box::new(Ast::empty(self.span())),
727 };
728
729 let old_ignore_whitespace = self.ignore_whitespace();
730 let new_ignore_whitespace = group
731 .flags()
732 .and_then(|f| f.flag_state(ast::Flag::IgnoreWhitespace))
733 .unwrap_or(old_ignore_whitespace);
734 self.parser()
735 .stack_group
736 .borrow_mut()
737 .push(GroupState::Group {
738 concat,
739 group,
740 ignore_whitespace: old_ignore_whitespace,
741 });
742 self.parser().ignore_whitespace.set(new_ignore_whitespace);
743 Ok(Concat {
744 span: self.span(),
745 asts: vec![],
746 })
747 }
748
749 #[inline(never)]
759 fn pop_group(&self, mut group_concat: Concat) -> Result<Concat> {
760 use self::GroupState::*;
761 assert_eq!(self.char(), ')');
762 let mut stack = self.parser().stack_group.borrow_mut();
763 let topstack = stack.pop();
764
765 let (mut prior_concat, mut group, ignore_whitespace, alt) = match topstack {
766 Some(Group {
767 concat,
768 group,
769 ignore_whitespace,
770 }) => (concat, group, ignore_whitespace, None),
771 Some(Alternation(alt)) => match stack.pop() {
772 Some(Group {
773 concat,
774 group,
775 ignore_whitespace,
776 }) => (
777 concat,
778 group,
779 ignore_whitespace,
780 Some(Either::Left::<ast::Alternation, ast::Intersection>(alt)),
781 ),
782 None | Some(Alternation(_)) | Some(Intersection(_)) => {
783 return Err(self.error(self.span_char(), ast::ErrorKind::GroupUnopened));
784 }
785 },
786 Some(Intersection(int)) => match stack.pop() {
787 Some(Group {
788 concat,
789 group,
790 ignore_whitespace,
791 }) => (
792 concat,
793 group,
794 ignore_whitespace,
795 Some(Either::Right::<ast::Alternation, ast::Intersection>(int)),
796 ),
797 None | Some(Alternation(_)) | Some(Intersection(_)) => {
798 return Err(self.error(self.span_char(), ast::ErrorKind::GroupUnopened));
799 }
800 },
801
802 None => {
803 return Err(self.error(self.span_char(), ast::ErrorKind::GroupUnopened));
804 }
805 };
806 self.parser().ignore_whitespace.set(ignore_whitespace);
807 group_concat.span.end = self.pos();
808 self.bump();
809 group.span.end = self.pos();
810 match alt {
811 Some(Either::Left(mut alt)) => {
812 alt.span.end = group_concat.span.end;
813 alt.asts.push(group_concat.into_ast());
814 group.ast = Box::new(alt.into_ast());
815 }
816 Some(Either::Right(mut int)) => {
817 int.span.end = group_concat.span.end;
818 int.asts.push(group_concat.into_ast());
819 group.ast = Box::new(int.into_ast());
820 }
821 None => {
822 group.ast = Box::new(group_concat.into_ast());
823 }
824 }
825
826 if group.kind == GroupKind::Complement {
827 let complement = ast::Complement {
828 span: self.span(),
829 ast: group.ast,
830 };
831 prior_concat.asts.push(Ast::complement(complement));
832 }
833 else {
835 prior_concat.asts.push(Ast::group(group));
836 }
837 Ok(prior_concat)
838 }
839
840 #[inline(never)]
847 fn pop_group_end(&self, mut concat: ast::Concat) -> Result<Ast> {
848 concat.span.end = self.pos();
849 let mut stack = self.parser().stack_group.borrow_mut();
850 let ast = match stack.pop() {
851 None => Ok(concat.into_ast()),
852 Some(GroupState::Alternation(mut alt)) => {
853 alt.span.end = self.pos();
854 alt.asts.push(concat.into_ast());
855 Ok(Ast::alternation(alt))
856 }
857 Some(GroupState::Intersection(mut int)) => {
858 int.span.end = self.pos();
859 int.asts.push(concat.into_ast());
860
861 Ok(Ast::intersection(int))
862 }
863 Some(GroupState::Group { group, .. }) => {
864 return Err(self.error(group.span, ast::ErrorKind::GroupUnclosed));
865 }
866 };
867 match stack.pop() {
869 None => ast,
870 Some(GroupState::Alternation(_)) => {
871 unreachable!()
878 }
879 Some(GroupState::Intersection(_)) => {
880 unreachable!()
881 }
882 Some(GroupState::Group { group, .. }) => {
883 Err(self.error(group.span, ast::ErrorKind::GroupUnclosed))
884 }
885 }
886 }
887
888 #[inline(never)]
897 fn push_class_open(
898 &self,
899 parent_union: regex_syntax::ast::ClassSetUnion,
900 ) -> Result<regex_syntax::ast::ClassSetUnion> {
901 assert_eq!(self.char(), '[');
902
903 let (nested_set, nested_union) = self.parse_set_class_open()?;
904 self.parser()
905 .stack_class
906 .borrow_mut()
907 .push(ClassState::Open {
908 union: parent_union,
909 set: nested_set,
910 });
911 Ok(nested_union)
912 }
913
914 #[inline(never)]
929 fn pop_class(
930 &self,
931 nested_union: regex_syntax::ast::ClassSetUnion,
932 ) -> Result<Either<regex_syntax::ast::ClassSetUnion, regex_syntax::ast::ClassBracketed>> {
933 assert_eq!(self.char(), ']');
934
935 let item = regex_syntax::ast::ClassSet::Item(nested_union.into_item());
936 let prevset = self.pop_class_op(item);
937 let mut stack = self.parser().stack_class.borrow_mut();
938 match stack.pop() {
939 None => {
940 panic!("unexpected empty character class stack")
949 }
950 Some(ClassState::Op { .. }) => {
951 panic!("unexpected ClassState::Op")
958 }
959 Some(ClassState::Open { mut union, mut set }) => {
960 self.bump();
961 set.span.end = self.pos();
962 set.kind = prevset;
963 if stack.is_empty() {
964 Ok(Either::Right(set))
965 } else {
966 union.push(regex_syntax::ast::ClassSetItem::Bracketed(Box::new(set)));
967 Ok(Either::Left(union))
968 }
969 }
970 }
971 }
972
973 #[inline(never)]
978 fn unclosed_class_error(&self) -> ResharpError {
979 for state in self.parser().stack_class.borrow().iter().rev() {
980 if let ClassState::Open { ref set, .. } = *state {
981 return self.error(set.span, ast::ErrorKind::ClassUnclosed);
982 }
983 }
984 panic!("no open character class found")
987 }
988
989 #[inline(never)]
995 fn push_class_op(
996 &self,
997 next_kind: regex_syntax::ast::ClassSetBinaryOpKind,
998 next_union: regex_syntax::ast::ClassSetUnion,
999 ) -> regex_syntax::ast::ClassSetUnion {
1000 let item = regex_syntax::ast::ClassSet::Item(next_union.into_item());
1001 let new_lhs = self.pop_class_op(item);
1002 self.parser().stack_class.borrow_mut().push(ClassState::Op {
1003 kind: next_kind,
1004 lhs: new_lhs,
1005 });
1006 regex_syntax::ast::ClassSetUnion {
1007 span: self.span(),
1008 items: vec![],
1009 }
1010 }
1011
1012 #[inline(never)]
1018 fn pop_class_op(&self, rhs: regex_syntax::ast::ClassSet) -> regex_syntax::ast::ClassSet {
1019 let mut stack = self.parser().stack_class.borrow_mut();
1020 let (kind, lhs) = match stack.pop() {
1021 Some(ClassState::Op { kind, lhs }) => (kind, lhs),
1022 Some(state @ ClassState::Open { .. }) => {
1023 stack.push(state);
1024 return rhs;
1025 }
1026 None => unreachable!(),
1027 };
1028 let span = Span::new(lhs.span().start, rhs.span().end);
1029 regex_syntax::ast::ClassSet::BinaryOp(regex_syntax::ast::ClassSetBinaryOp {
1030 span,
1031 kind,
1032 lhs: Box::new(lhs),
1033 rhs: Box::new(rhs),
1034 })
1035 }
1036
1037 fn hir_to_node_id(&self, hir: &hir::Hir, tb: &mut TB<'s>) -> Result<NodeId> {
1038 match hir.kind() {
1039 hir::HirKind::Empty => Ok(NodeId::EPS),
1040 hir::HirKind::Literal(l) => {
1041 if l.0.len() == 1 {
1042 let node = tb.mk_u8(l.0[0]);
1043 Ok(node)
1044 } else {
1045 let ws: Vec<_> = l.0.iter().map(|l| tb.mk_u8(*l)).collect();
1046 let conc = tb.mk_concats(ws.iter().copied());
1047 Ok(conc)
1048 }
1049 }
1050 hir::HirKind::Class(class) => match class {
1051 hir::Class::Unicode(class_unicode) => {
1052 let ranges = class_unicode.ranges();
1053 let mut nodes = Vec::new();
1054 for range in ranges {
1055 for seq in Utf8Sequences::new(range.start(), range.end()) {
1056 let sl = seq.as_slice();
1057 let bytes: Vec<_> = sl.iter().map(|s| (s.start, s.end)).collect();
1058 let node = match bytes.len() {
1059 1 => tb.mk_range_u8(bytes[0].0, bytes[0].1),
1060 n => {
1061 let last = tb.mk_range_u8(bytes[n - 1].0, bytes[n - 1].1);
1062 let mut conc = last;
1063 for i in (0..n - 1).rev() {
1064 let b = tb.mk_range_u8(bytes[i].0, bytes[i].1);
1065 conc = tb.mk_concat(b, conc);
1066 }
1067 conc
1068 }
1069 };
1070 nodes.push(node);
1071 }
1072 }
1073 let merged = tb.mk_unions(nodes.into_iter());
1074 Ok(merged)
1075 }
1076 hir::Class::Bytes(class_bytes) => {
1077 let ranges = class_bytes.ranges();
1078 let mut result = NodeId::BOT;
1079 for range in ranges {
1080 let start = range.start();
1081 let end = range.end();
1082 let node = tb.mk_range_u8(start, end);
1083 result = tb.mk_union(result, node);
1084 }
1085 Ok(result)
1086 }
1087 },
1088 hir::HirKind::Look(_) => Err(self.error(
1089 Span::splat(self.pos()),
1090 ast::ErrorKind::UnsupportedResharpRegex,
1091 )),
1092 hir::HirKind::Repetition(_) => Err(self.error(
1093 Span::splat(self.pos()),
1094 ast::ErrorKind::UnsupportedResharpRegex,
1095 )),
1096 hir::HirKind::Capture(_) => Err(self.error(
1097 Span::splat(self.pos()),
1098 ast::ErrorKind::UnsupportedResharpRegex,
1099 )),
1100 hir::HirKind::Concat(body) => {
1101 let mut result = NodeId::EPS;
1102 for child in body {
1103 let node = self.hir_to_node_id(child, tb)?;
1104 result = tb.mk_concat(result, node);
1105 }
1106 Ok(result)
1107 }
1108 hir::HirKind::Alternation(_) => Err(self.error(
1109 Span::splat(self.pos()),
1110 ast::ErrorKind::UnsupportedResharpRegex,
1111 )),
1112 }
1113 }
1114
1115 fn translate_ast_to_hir(
1116 &mut self,
1117 orig_ast: ®ex_syntax::ast::Ast,
1118 tb: &mut TB<'s>,
1119 ) -> Result<NodeId> {
1120 match self.translator.translate("", orig_ast) {
1121 Err(_) => Err(self.error(self.span(), ast::ErrorKind::UnicodeClassInvalid)),
1122 Ok(hir) => self.hir_to_node_id(&hir, tb),
1123 }
1124 }
1125
1126 fn translator_to_node_id(
1127 &mut self,
1128 orig_ast: ®ex_syntax::ast::Ast,
1129 translator: &mut Option<Translator>,
1130 tb: &mut TB<'s>,
1131 ) -> Result<NodeId> {
1132 match translator {
1133 Some(tr) => {
1134 let hir = tr
1135 .translate("", orig_ast)
1136 .map_err(|e| self.unsupported_error(e))?;
1137 self.hir_to_node_id(&hir, tb)
1138 }
1139 None => self.translate_ast_to_hir(orig_ast, tb),
1140 }
1141 }
1142
1143 fn get_class(
1144 &mut self,
1145 negated: bool,
1146 kind: regex_syntax::ast::ClassPerlKind,
1147 tb: &mut TB<'s>,
1148 ) -> Result<NodeId> {
1149 let w = self
1150 .perl_classes
1151 .iter()
1152 .find(|(c_neg, c_kind, _)| *c_kind == kind && *c_neg == negated);
1153 match w {
1154 Some((_, _, value)) => Ok(*value),
1155 None => {
1156 let translated = if self.global_unicode {
1157 match kind {
1158 regex_syntax::ast::ClassPerlKind::Word => {
1159 if self.global_full_unicode {
1160 self.unicode_classes.ensure_word_full(tb);
1161 } else {
1162 self.unicode_classes.ensure_word(tb);
1163 }
1164 if negated {
1165 self.unicode_classes.non_word
1166 } else {
1167 self.unicode_classes.word
1168 }
1169 }
1170 regex_syntax::ast::ClassPerlKind::Digit => {
1171 if self.global_full_unicode {
1172 self.unicode_classes.ensure_digit_full(tb);
1173 } else {
1174 self.unicode_classes.ensure_digit(tb);
1175 }
1176 if negated {
1177 self.unicode_classes.non_digit
1178 } else {
1179 self.unicode_classes.digit
1180 }
1181 }
1182 regex_syntax::ast::ClassPerlKind::Space => {
1183 self.unicode_classes.ensure_space(tb);
1184 if negated {
1185 self.unicode_classes.non_space
1186 } else {
1187 self.unicode_classes.space
1188 }
1189 }
1190 }
1191 } else {
1192 let pos = match kind {
1193 regex_syntax::ast::ClassPerlKind::Word => {
1194 let az = tb.mk_range_u8(b'a', b'z');
1195 let big = tb.mk_range_u8(b'A', b'Z');
1196 let dig = tb.mk_range_u8(b'0', b'9');
1197 let us = tb.mk_u8(b'_');
1198 tb.mk_unions([az, big, dig, us].into_iter())
1199 }
1200 regex_syntax::ast::ClassPerlKind::Digit => tb.mk_range_u8(b'0', b'9'),
1201 regex_syntax::ast::ClassPerlKind::Space => {
1202 let sp = tb.mk_u8(b' ');
1203 let tab = tb.mk_u8(b'\t');
1204 let nl = tb.mk_u8(b'\n');
1205 let cr = tb.mk_u8(b'\r');
1206 let ff = tb.mk_u8(0x0C);
1207 let vt = tb.mk_u8(0x0B);
1208 tb.mk_unions([sp, tab, nl, cr, ff, vt].into_iter())
1209 }
1210 };
1211 if negated {
1212 tb.mk_compl(pos)
1213 } else {
1214 pos
1215 }
1216 };
1217 self.perl_classes.push((negated, kind, translated));
1218 Ok(translated)
1219 }
1220 }
1221 }
1222
1223 fn word_char_kind(ast: &Ast, left: bool) -> WordCharKind {
1224 use WordCharKind::*;
1225 match ast {
1226 Ast::Literal(lit) => {
1227 if is_word_byte(lit.c as u8) {
1228 Word
1229 } else {
1230 NonWord
1231 }
1232 }
1233 Ast::ClassPerl(c) => match (&c.kind, c.negated) {
1234 (®ex_syntax::ast::ClassPerlKind::Word, false) => Word,
1235 (®ex_syntax::ast::ClassPerlKind::Word, true) => NonWord,
1236 (®ex_syntax::ast::ClassPerlKind::Space, false) => NonWord,
1237 (®ex_syntax::ast::ClassPerlKind::Space, true) => Unknown,
1238 (®ex_syntax::ast::ClassPerlKind::Digit, false) => Word,
1239 (®ex_syntax::ast::ClassPerlKind::Digit, true) => Unknown,
1240 },
1241 Ast::Dot(_) | Ast::Top(_) => Unknown,
1242 Ast::Group(g) => Self::word_char_kind(&g.ast, left),
1243 Ast::Concat(c) if !c.asts.is_empty() => {
1244 let edge = if left { c.asts.len() - 1 } else { 0 };
1245 let kind = Self::word_char_kind(&c.asts[edge], left);
1246 match kind {
1247 MaybeWord => {
1248 let dir: isize = if left { -1 } else { 1 };
1249 match Self::concat_neighbor_kind(&c.asts, edge, dir) {
1250 Word => Word,
1251 _ => MaybeWord,
1252 }
1253 }
1254 MaybeNonWord => {
1255 let dir: isize = if left { -1 } else { 1 };
1256 match Self::concat_neighbor_kind(&c.asts, edge, dir) {
1257 NonWord => NonWord,
1258 _ => MaybeNonWord,
1259 }
1260 }
1261 other => other,
1262 }
1263 }
1264 Ast::Alternation(alt) if !alt.asts.is_empty() => {
1265 let first = Self::word_char_kind(&alt.asts[0], left);
1266 if alt.asts[1..]
1267 .iter()
1268 .all(|a| Self::word_char_kind(a, left) == first)
1269 {
1270 first
1271 } else {
1272 Unknown
1273 }
1274 }
1275 Ast::Repetition(r) => {
1276 let inner = Self::word_char_kind(&r.ast, left);
1277 let nullable = matches!(
1278 &r.op.kind,
1279 ast::RepetitionKind::ZeroOrMore
1280 | ast::RepetitionKind::ZeroOrOne
1281 | ast::RepetitionKind::Range(ast::RepetitionRange::Bounded(0, _))
1282 );
1283 if nullable {
1284 match inner {
1285 Word => MaybeWord,
1286 NonWord => MaybeNonWord,
1287 _ => Unknown,
1288 }
1289 } else {
1290 inner
1291 }
1292 }
1293 Ast::Lookaround(la) => Self::word_char_kind(&la.ast, left),
1294 _ => Unknown,
1295 }
1296 }
1297
1298 fn edge_class_ast(ast: &Ast, left: bool) -> Option<&Ast> {
1300 match ast {
1301 Ast::Literal(_)
1302 | Ast::ClassPerl(_)
1303 | Ast::ClassBracketed(_)
1304 | Ast::ClassUnicode(_)
1305 | Ast::Dot(_)
1306 | Ast::Top(_) => Some(ast),
1307 Ast::Group(g) => Self::edge_class_ast(&g.ast, left),
1308 Ast::Concat(c) if !c.asts.is_empty() => {
1309 Self::edge_class_ast(&c.asts[if left { c.asts.len() - 1 } else { 0 }], left)
1310 }
1311 Ast::Repetition(r) => {
1312 let nullable = matches!(
1313 &r.op.kind,
1314 ast::RepetitionKind::ZeroOrMore
1315 | ast::RepetitionKind::ZeroOrOne
1316 | ast::RepetitionKind::Range(ast::RepetitionRange::Bounded(0, _))
1317 );
1318 if nullable {
1319 None
1320 } else {
1321 Self::edge_class_ast(&r.ast, left)
1322 }
1323 }
1324 _ => None,
1325 }
1326 }
1327
1328 fn resolve_word_kind(
1329 &mut self,
1330 asts: &[Ast],
1331 idx: usize,
1332 dir: isize,
1333 translator: &mut Option<Translator>,
1334 tb: &mut TB<'s>,
1335 word_id: NodeId,
1336 not_word_id: NodeId,
1337 ) -> Result<WordCharKind> {
1338 use WordCharKind::*;
1339 let fast = Self::concat_neighbor_kind(asts, idx, dir);
1340 if fast != Unknown {
1341 return Ok(fast);
1342 }
1343 let neighbor_idx = (idx as isize + dir) as usize;
1344 let node = if let Some(edge) = Self::edge_class_ast(&asts[neighbor_idx], dir < 0) {
1345 self.ast_to_node_id(edge, translator, tb)?
1346 } else {
1347 let neighbor_node = self.ast_to_node_id(&asts[neighbor_idx], translator, tb)?;
1349 let mut neighbor_node = tb
1350 .try_elim_lookarounds(neighbor_node)
1351 .ok_or_else(|| self.error(self.span(), ast::ErrorKind::UnsupportedResharpRegex))?;
1352 if dir < 0 {
1353 neighbor_node = tb.reverse(neighbor_node).or_else(|_| {
1354 Err(self.error(self.span(), ast::ErrorKind::UnsupportedResharpRegex))
1355 })?;
1356 }
1357 let word_prefix = tb.mk_concat(word_id, NodeId::TS);
1358 let non_word_prefix = tb.mk_concat(not_word_id, NodeId::TS);
1359 return if tb.subsumes(word_prefix, neighbor_node) == Some(true) {
1360 Ok(Word)
1361 } else if tb.subsumes(non_word_prefix, neighbor_node) == Some(true) {
1362 Ok(NonWord)
1363 } else {
1364 Ok(Unknown)
1365 };
1366 };
1367 if tb.subsumes(word_id, node) == Some(true) {
1368 Ok(Word)
1369 } else if tb.subsumes(not_word_id, node) == Some(true) {
1370 Ok(NonWord)
1371 } else {
1372 Ok(Unknown)
1373 }
1374 }
1375
1376 fn concat_neighbor_kind(asts: &[Ast], idx: usize, dir: isize) -> WordCharKind {
1377 use WordCharKind::*;
1378 let next = idx as isize + dir;
1379 if next < 0 || next >= asts.len() as isize {
1380 return Edge;
1381 }
1382 let kind = Self::word_char_kind(&asts[next as usize], dir < 0);
1383 match kind {
1384 MaybeWord => match Self::concat_neighbor_kind(asts, next as usize, dir) {
1385 Word => Word,
1386 _ => Unknown,
1387 },
1388 MaybeNonWord => match Self::concat_neighbor_kind(asts, next as usize, dir) {
1389 NonWord => NonWord,
1390 _ => Unknown,
1391 },
1392 other => other,
1393 }
1394 }
1395
1396 fn rewrite_word_boundary_in_concat(
1397 &mut self,
1398 asts: &[Ast],
1399 idx: usize,
1400 translator: &mut Option<Translator>,
1401 tb: &mut TB<'s>,
1402 ) -> Result<(NodeId, usize)> {
1403 use WordCharKind::*;
1404 let (word_id, not_word_id) = if self.global_full_unicode {
1405 self.unicode_classes.ensure_word_full(tb);
1406 (self.unicode_classes.word, self.unicode_classes.non_word)
1407 } else if self.global_unicode {
1408 self.unicode_classes.ensure_word(tb);
1409 (self.unicode_classes.word, self.unicode_classes.non_word)
1410 } else {
1411 let az = tb.mk_range_u8(b'a', b'z');
1412 let big = tb.mk_range_u8(b'A', b'Z');
1413 let dig = tb.mk_range_u8(b'0', b'9');
1414 let us = tb.mk_u8(b'_');
1415 let w = tb.mk_unions([az, big, dig, us].into_iter());
1416 (w, tb.mk_compl(w))
1417 };
1418 let left = self.resolve_word_kind(asts, idx, -1, translator, tb, word_id, not_word_id)?;
1419 let right = self.resolve_word_kind(asts, idx, 1, translator, tb, word_id, not_word_id)?;
1420 match (left, right) {
1421 (NonWord, Word) | (Word, NonWord) => Ok((NodeId::EPS, idx + 1)),
1422 (Word, _) => {
1423 let neg = tb.mk_neg_lookahead(word_id, 0);
1424 Ok((neg, idx + 1))
1425 }
1426 (NonWord, _) => {
1427 let tail = tb.mk_concat(word_id, NodeId::TS);
1428 self.merge_boundary_with_following_lookaheads(asts, idx, tail, translator, tb)
1429 }
1430 (_, Word) => Ok((tb.mk_neg_lookbehind(word_id), idx + 1)),
1431 (_, NonWord) => Ok((tb.mk_lookbehind(word_id, NodeId::MISSING), idx + 1)),
1432 _ => Err(self.error(self.span(), ast::ErrorKind::UnsupportedResharpRegex)),
1436 }
1437 }
1438
1439 fn merge_boundary_with_following_lookaheads(
1440 &mut self,
1441 asts: &[Ast],
1442 wb_idx: usize,
1443 boundary_tail: NodeId,
1444 translator: &mut Option<Translator>,
1445 tb: &mut TB<'s>,
1446 ) -> Result<(NodeId, usize)> {
1447 let mut next = wb_idx + 1;
1448 let mut la_bodies = vec![boundary_tail];
1449 while next < asts.len() {
1450 match &asts[next] {
1451 Ast::Lookaround(la) if la.kind == ast::LookaroundKind::PositiveLookahead => {
1452 let body = self.ast_to_node_id(&la.ast, translator, tb)?;
1453 la_bodies.push(tb.mk_concat(body, NodeId::TS));
1454 next += 1;
1455 }
1456 _ => break,
1457 }
1458 }
1459 let merged = tb.mk_inters(la_bodies.into_iter());
1460 Ok((tb.mk_lookahead(merged, NodeId::MISSING, 0), next))
1461 }
1462
1463 fn ast_to_node_id(
1464 &mut self,
1465 ast: &Ast,
1466 translator: &mut Option<Translator>,
1467 tb: &mut TB<'s>,
1468 ) -> Result<NodeId> {
1469 match ast {
1470 Ast::Empty(_) => Ok(NodeId::EPS),
1471 Ast::Flags(f) => {
1472 if f.flags.flag_state(ast::Flag::SwapGreed).is_some() {
1473 return Err(self.error(f.span, ast::ErrorKind::UnsupportedResharpRegex));
1474 }
1475 let mut translator_builder = self.default_translator_builder();
1476 if let Some(state) = f.flags.flag_state(ast::Flag::CaseInsensitive) {
1477 translator_builder.case_insensitive(state);
1478 }
1479 if let Some(state) = f.flags.flag_state(ast::Flag::Unicode) {
1480 translator_builder.unicode(state);
1481 }
1482 if let Some(state) = f.flags.flag_state(ast::Flag::DotMatchesNewLine) {
1483 self.dot_all.set(state);
1484 }
1485 let concat_translator = Some(translator_builder.build());
1486 *translator = concat_translator;
1487 Ok(NodeId::EPS)
1488 }
1489 Ast::Literal(l) => {
1490 let ast_lit = regex_syntax::ast::Ast::literal(*l.to_owned());
1491 self.translator_to_node_id(&ast_lit, translator, tb)
1492 }
1493 Ast::Top(_) => Ok(NodeId::TOP),
1494 Ast::Dot(_) => {
1495 if self.dot_all.get() {
1496 Ok(NodeId::TOP)
1497 } else {
1498 let hirv = hir::Hir::dot(hir::Dot::AnyByteExceptLF);
1499 self.hir_to_node_id(&hirv, tb)
1500 }
1501 }
1502 Ast::Assertion(a) => match &a.kind {
1503 ast::AssertionKind::StartText => Ok(NodeId::BEGIN),
1504 ast::AssertionKind::EndText => Ok(NodeId::END),
1505 ast::AssertionKind::WordBoundary => {
1506 Err(self.error(self.span(), ast::ErrorKind::UnsupportedResharpRegex))
1507 }
1508 ast::AssertionKind::NotWordBoundary => {
1509 Err(self.error(self.span(), ast::ErrorKind::UnsupportedResharpRegex))
1510 }
1511 ast::AssertionKind::StartLine => {
1512 let left = NodeId::BEGIN;
1513 let right = tb.mk_u8(b'\n');
1514 let union = tb.mk_union(left, right);
1515 Ok(tb.mk_lookbehind(union, NodeId::MISSING))
1516 }
1517 ast::AssertionKind::EndLine => {
1518 let left = NodeId::END;
1519 let right = tb.mk_u8(b'\n');
1520 let union = tb.mk_union(left, right);
1521 Ok(tb.mk_lookahead(union, NodeId::MISSING, 0))
1522 }
1523 ast::AssertionKind::WordBoundaryStart => {
1524 Err(self.error(a.span, ast::ErrorKind::UnsupportedResharpRegex))
1525 }
1526 ast::AssertionKind::WordBoundaryEnd => {
1527 Err(self.error(a.span, ast::ErrorKind::UnsupportedResharpRegex))
1528 }
1529 ast::AssertionKind::WordBoundaryStartAngle => {
1530 Err(self.error(a.span, ast::ErrorKind::UnsupportedResharpRegex))
1531 }
1532 ast::AssertionKind::WordBoundaryEndAngle => {
1533 Err(self.error(a.span, ast::ErrorKind::UnsupportedResharpRegex))
1534 }
1535 ast::AssertionKind::WordBoundaryStartHalf => {
1536 Err(self.error(a.span, ast::ErrorKind::UnsupportedResharpRegex))
1537 }
1538 ast::AssertionKind::WordBoundaryEndHalf => {
1539 Err(self.error(a.span, ast::ErrorKind::UnsupportedResharpRegex))
1540 }
1541 },
1542 Ast::ClassUnicode(c) => {
1543 let tmp = regex_syntax::ast::ClassUnicode {
1544 span: c.span,
1545 negated: c.negated,
1546 kind: c.kind.clone(),
1547 };
1548 if !c.negated {
1549 if let regex_syntax::ast::ClassUnicodeKind::Named(s) = &c.kind {
1550 match s.as_str() {
1551 "ascii" => return Ok(tb.mk_range_u8(0, 127)),
1553 "utf8" => {
1555 let ascii = tb.mk_range_u8(0, 127);
1556 let beta = tb.mk_range_u8(128, 0xBF);
1557 let c0 = tb.mk_range_u8(0xC0, 0xDF);
1558 let c0s = tb.mk_concats([c0, beta].into_iter());
1559 let e0 = tb.mk_range_u8(0xE0, 0xEF);
1560 let e0s = tb.mk_concats([e0, beta, beta].into_iter());
1561 let f0 = tb.mk_range_u8(0xF0, 0xF7);
1562 let f0s = tb.mk_concats([f0, beta, beta, beta].into_iter());
1563 let merged = tb.mk_unions([ascii, c0s, e0s, f0s].into_iter());
1564 return Ok(tb.mk_star(merged));
1565 }
1566 "hex" => {
1567 let nums = tb.mk_range_u8(b'0', b'9');
1568 let lets = tb.mk_range_u8(b'a', b'f');
1569 let lets2 = tb.mk_range_u8(b'A', b'F');
1570 let merged = tb.mk_unions([nums, lets, lets2].into_iter());
1571 return Ok(merged);
1572 }
1573 _ => {}
1574 }
1575 };
1576 }
1577
1578 let orig_ast = regex_syntax::ast::Ast::class_unicode(tmp);
1579 self.translator_to_node_id(&orig_ast, translator, tb)
1580 }
1581 Ast::ClassPerl(c) => self.get_class(c.negated, c.kind.clone(), tb),
1582 Ast::ClassBracketed(c) => match &c.kind {
1583 regex_syntax::ast::ClassSet::Item(_) => {
1584 let tmp = regex_syntax::ast::ClassBracketed {
1585 span: c.span,
1586 negated: c.negated,
1587 kind: c.kind.clone(),
1588 };
1589 let orig_ast = regex_syntax::ast::Ast::class_bracketed(tmp);
1590 self.translator_to_node_id(&orig_ast, translator, tb)
1591 }
1592 regex_syntax::ast::ClassSet::BinaryOp(_) => {
1593 Err(self.error(c.span, ast::ErrorKind::UnsupportedResharpRegex))
1594 }
1595 },
1596 Ast::Repetition(r) => {
1597 let body = self.ast_to_node_id(&r.ast, translator, tb);
1598 match body {
1599 Ok(body) => match &r.op.kind {
1600 ast::RepetitionKind::ZeroOrOne => Ok(tb.mk_opt(body)),
1601 ast::RepetitionKind::ZeroOrMore => Ok(tb.mk_star(body)),
1602 ast::RepetitionKind::OneOrMore => Ok(tb.mk_plus(body)),
1603 ast::RepetitionKind::Range(r) => match r {
1604 ast::RepetitionRange::Exactly(n) => Ok(tb.mk_repeat(body, *n, *n)),
1605 ast::RepetitionRange::AtLeast(n) => {
1606 let rep = tb.mk_repeat(body, *n, *n);
1607 let st = tb.mk_star(body);
1608 Ok(tb.mk_concat(rep, st))
1609 }
1610
1611 ast::RepetitionRange::Bounded(n, m) => Ok(tb.mk_repeat(body, *n, *m)),
1612 },
1613 },
1614 Err(_) => body,
1615 }
1616 }
1617 Ast::Lookaround(g) => {
1618 let body = self.ast_to_node_id(&g.ast, translator, tb)?;
1619 match g.kind {
1620 ast::LookaroundKind::PositiveLookahead => {
1621 Ok(tb.mk_lookahead(body, NodeId::MISSING, 0))
1622 }
1623 ast::LookaroundKind::PositiveLookbehind => {
1624 Ok(tb.mk_lookbehind(body, NodeId::MISSING))
1625 }
1626 ast::LookaroundKind::NegativeLookahead => Ok(tb.mk_neg_lookahead(body, 0)),
1627 ast::LookaroundKind::NegativeLookbehind => Ok(tb.mk_neg_lookbehind(body)),
1628 }
1629 }
1630 Ast::Group(g) => {
1631 if let ast::GroupKind::NonCapturing(ref flags) = g.kind {
1632 if !flags.items.is_empty() {
1633 let mut translator_builder = self.default_translator_builder();
1634 if let Some(state) = flags.flag_state(ast::Flag::CaseInsensitive) {
1635 translator_builder.case_insensitive(state);
1636 }
1637 if let Some(state) = flags.flag_state(ast::Flag::Unicode) {
1638 translator_builder.unicode(state);
1639 }
1640 let saved_dot_all = self.dot_all.get();
1641 if let Some(state) = flags.flag_state(ast::Flag::DotMatchesNewLine) {
1642 self.dot_all.set(state);
1643 }
1644 let mut scoped = Some(translator_builder.build());
1645 let result = self.ast_to_node_id(&g.ast, &mut scoped, tb);
1646 self.dot_all.set(saved_dot_all);
1647 return result;
1648 }
1649 }
1650 self.ast_to_node_id(&g.ast, translator, tb)
1651 }
1652 Ast::Alternation(a) => {
1653 let mut children = vec![];
1654 for ast in &a.asts {
1655 match self.ast_to_node_id(ast, translator, tb) {
1656 Ok(node_id) => children.push(node_id),
1657 Err(err) => return Err(err),
1658 }
1659 }
1660 Ok(tb.mk_unions(children.iter().copied()))
1661 }
1662 Ast::Concat(c) => {
1663 let mut concat_translator: Option<Translator> = None;
1664 let mut children = vec![];
1665 let mut i = 0;
1666 while i < c.asts.len() {
1667 let ast = &c.asts[i];
1668 match ast {
1669 Ast::Flags(f) => {
1670 if f.flags.flag_state(ast::Flag::SwapGreed).is_some() {
1671 return Err(
1672 self.error(f.span, ast::ErrorKind::UnsupportedResharpRegex)
1673 );
1674 }
1675 let mut translator_builder = self.default_translator_builder();
1676 if let Some(state) = f.flags.flag_state(ast::Flag::CaseInsensitive) {
1677 translator_builder.case_insensitive(state);
1678 }
1679 if let Some(state) = f.flags.flag_state(ast::Flag::Unicode) {
1680 translator_builder.unicode(state);
1681 }
1682 if let Some(state) = f.flags.flag_state(ast::Flag::DotMatchesNewLine) {
1683 self.dot_all.set(state);
1684 }
1685 concat_translator = Some(translator_builder.build());
1686 *translator = concat_translator.clone();
1687 i += 1;
1688 continue;
1689 }
1690 Ast::Assertion(a) if a.kind == ast::AssertionKind::WordBoundary => {
1691 let node =
1692 self.rewrite_word_boundary_in_concat(&c.asts, i, translator, tb)?;
1693 children.push(node.0);
1694 i = node.1; continue;
1696 }
1697 _ => {}
1698 }
1699 match concat_translator {
1700 Some(_) => match self.ast_to_node_id(ast, &mut concat_translator, tb) {
1701 Ok(node_id) => children.push(node_id),
1702 Err(err) => return Err(err),
1703 },
1704 None => match self.ast_to_node_id(ast, translator, tb) {
1705 Ok(node_id) => children.push(node_id),
1706 Err(err) => return Err(err),
1707 },
1708 }
1709 i += 1;
1710 }
1711 Ok(tb.mk_concats(children.iter().cloned()))
1712 }
1713 Ast::Intersection(intersection) => {
1714 let mut children = vec![];
1715 for ast in &intersection.asts {
1716 match self.ast_to_node_id(ast, translator, tb) {
1717 Ok(node_id) => children.push(node_id),
1718 Err(err) => return Err(err),
1719 }
1720 }
1721 Ok(tb.mk_inters(children.into_iter()))
1722 }
1723 Ast::Complement(complement) => {
1724 let body = self.ast_to_node_id(&complement.ast, translator, tb);
1725 body.map(|x| tb.mk_compl(x))
1726 }
1727 }
1728 }
1729
1730 fn parse_inner(&mut self) -> Result<Ast> {
1731 let mut concat = Concat {
1732 span: self.span(),
1733 asts: vec![],
1734 };
1735 loop {
1736 self.bump_space();
1737 if self.is_eof() {
1738 break;
1739 }
1740 match self.char() {
1741 '(' => concat = self.push_group(concat)?,
1742 ')' => concat = self.pop_group(concat)?,
1743 '|' => concat = self.push_alternate(concat)?,
1744 '&' => concat = self.push_intersect(concat)?,
1745 '~' => concat = self.push_compl_group(concat)?,
1746 '[' => {
1747 let class = self.parse_set_class()?;
1748 concat.asts.push(Ast::class_bracketed(class));
1749 }
1750 '?' => {
1751 concat =
1752 self.parse_uncounted_repetition(concat, ast::RepetitionKind::ZeroOrOne)?;
1753 }
1754 '*' => {
1755 concat =
1756 self.parse_uncounted_repetition(concat, ast::RepetitionKind::ZeroOrMore)?;
1757 }
1758 '+' => {
1759 concat =
1760 self.parse_uncounted_repetition(concat, ast::RepetitionKind::OneOrMore)?;
1761 }
1762 '{' => {
1763 concat = self.parse_counted_repetition(concat)?;
1764 }
1765 _ => concat.asts.push(self.parse_primitive()?.into_ast()),
1766 }
1767 }
1768 self.pop_group_end(concat)
1769 }
1770
1771 fn parse(&mut self, tb: &mut TB<'s>) -> Result<NodeId> {
1774 let ast = self.parse_inner()?;
1775 self.ast_to_node_id(&ast, &mut None, tb)
1776 }
1777
1778 #[inline(never)]
1779 fn parse_uncounted_repetition(
1780 &self,
1781 mut concat: ast::Concat,
1782 kind: ast::RepetitionKind,
1783 ) -> Result<ast::Concat> {
1784 let op_start = self.pos();
1786 let ast = match concat.asts.pop() {
1787 Some(ast) => ast,
1788 None => return Err(self.error(self.span(), ast::ErrorKind::RepetitionMissing)),
1789 };
1790 match ast {
1791 Ast::Empty(_) | Ast::Flags(_) => {
1792 return Err(self.error(self.span(), ast::ErrorKind::RepetitionMissing))
1793 }
1794 _ => {}
1795 }
1796 if self.bump() && self.char() == '?' {
1797 return Err(self.error(
1798 Span::new(op_start, self.pos()),
1799 ast::ErrorKind::UnsupportedLazyQuantifier,
1800 ));
1801 }
1802 concat.asts.push(Ast::repetition(ast::Repetition {
1803 span: ast.span().with_end(self.pos()),
1804 op: ast::RepetitionOp {
1805 span: Span::new(op_start, self.pos()),
1806 kind,
1807 },
1808 greedy: true,
1809 ast: Box::new(ast),
1810 }));
1811 Ok(concat)
1812 }
1813
1814 #[inline(never)]
1815 fn parse_counted_repetition(&self, mut concat: ast::Concat) -> Result<ast::Concat> {
1816 assert!(self.char() == '{');
1817 let start = self.pos();
1818 let ast = match concat.asts.pop() {
1819 Some(ast) => ast,
1820 None => return Err(self.error(self.span(), ast::ErrorKind::RepetitionMissing)),
1821 };
1822 match ast {
1823 Ast::Empty(_) | Ast::Flags(_) => {
1824 return Err(self.error(self.span(), ast::ErrorKind::RepetitionMissing))
1825 }
1826 _ => {}
1827 }
1828 if !self.bump_and_bump_space() {
1829 return Err(self.error(
1830 Span::new(start, self.pos()),
1831 ast::ErrorKind::RepetitionCountUnclosed,
1832 ));
1833 }
1834 let count_start = specialize_err(
1835 self.parse_decimal(),
1836 ast::ErrorKind::DecimalEmpty,
1837 ast::ErrorKind::RepetitionCountDecimalEmpty,
1838 );
1839 if self.is_eof() {
1840 return Err(self.error(
1841 Span::new(start, self.pos()),
1842 ast::ErrorKind::RepetitionCountUnclosed,
1843 ));
1844 }
1845 let range = if self.char() == ',' {
1846 if !self.bump_and_bump_space() {
1847 return Err(self.error(
1848 Span::new(start, self.pos()),
1849 ast::ErrorKind::RepetitionCountUnclosed,
1850 ));
1851 }
1852 if self.char() != '}' {
1853 let count_start = match count_start {
1854 Ok(c) => c,
1855 Err(err) if err.kind == ast::ErrorKind::RepetitionCountDecimalEmpty => {
1856 if self.parser().empty_min_range {
1857 0
1858 } else {
1859 return Err(err);
1860 }
1861 }
1862 err => err?,
1863 };
1864 let count_end = specialize_err(
1865 self.parse_decimal(),
1866 ast::ErrorKind::DecimalEmpty,
1867 ast::ErrorKind::RepetitionCountDecimalEmpty,
1868 )?;
1869 ast::RepetitionRange::Bounded(count_start, count_end)
1870 } else {
1871 ast::RepetitionRange::AtLeast(count_start?)
1872 }
1873 } else {
1874 ast::RepetitionRange::Exactly(count_start?)
1875 };
1876
1877 if self.is_eof() || self.char() != '}' {
1878 return Err(self.error(
1879 Span::new(start, self.pos()),
1880 ast::ErrorKind::RepetitionCountUnclosed,
1881 ));
1882 }
1883
1884 if self.bump_and_bump_space() && self.char() == '?' {
1885 return Err(self.error(
1886 Span::new(start, self.pos()),
1887 ast::ErrorKind::UnsupportedLazyQuantifier,
1888 ));
1889 }
1890
1891 let op_span = Span::new(start, self.pos());
1892 if !range.is_valid() {
1893 return Err(self.error(op_span, ast::ErrorKind::RepetitionCountInvalid));
1894 }
1895 concat.asts.push(Ast::repetition(ast::Repetition {
1896 span: ast.span().with_end(self.pos()),
1897 op: ast::RepetitionOp {
1898 span: op_span,
1899 kind: ast::RepetitionKind::Range(range),
1900 },
1901 greedy: true,
1902 ast: Box::new(ast),
1903 }));
1904 Ok(concat)
1905 }
1906
1907 #[inline(never)]
1908 fn parse_group(&self) -> Result<Either<ast::SetFlags, ast::Group>> {
1909 assert_eq!(self.char(), '(');
1910 let open_span = self.span_char();
1911 self.bump();
1912 self.bump_space();
1913 if let Some((ahead, pos)) = self.is_lookaround_prefix() {
1914 let kind = match (pos, ahead) {
1915 (true, true) => LookaroundKind::PositiveLookahead,
1916 (true, false) => LookaroundKind::PositiveLookbehind,
1917 (false, true) => LookaroundKind::NegativeLookahead,
1918 (false, false) => LookaroundKind::NegativeLookbehind,
1919 };
1920 return Ok(Either::Right(ast::Group {
1921 span: open_span,
1922 kind: ast::GroupKind::Lookaround(kind),
1923 ast: Box::new(Ast::empty(self.span())),
1924 }));
1925 }
1926 let inner_span = self.span();
1927 let mut starts_with_p = true;
1928 if self.bump_if("?P<") || {
1929 starts_with_p = false;
1930 self.bump_if("?<")
1931 } {
1932 let capture_index = self.next_capture_index(open_span)?;
1933 let name = self.parse_capture_name(capture_index)?;
1934 Ok(Either::Right(ast::Group {
1935 span: open_span,
1936 kind: ast::GroupKind::CaptureName {
1937 starts_with_p,
1938 name,
1939 },
1940 ast: Box::new(Ast::empty(self.span())),
1941 }))
1942 } else if self.bump_if("?") {
1943 if self.is_eof() {
1944 return Err(self.error(open_span, ast::ErrorKind::GroupUnclosed));
1945 }
1946 let flags = self.parse_flags()?;
1947 let char_end = self.char();
1948 self.bump();
1949 if char_end == ')' {
1950 if flags.items.is_empty() {
1953 return Err(self.error(inner_span, ast::ErrorKind::RepetitionMissing));
1954 }
1955 Ok(Either::Left(ast::SetFlags {
1956 span: Span {
1957 end: self.pos(),
1958 ..open_span
1959 },
1960 flags,
1961 }))
1962 } else {
1963 assert_eq!(char_end, ':');
1964 Ok(Either::Right(ast::Group {
1965 span: open_span,
1966 kind: ast::GroupKind::NonCapturing(flags),
1967 ast: Box::new(Ast::empty(self.span())),
1968 }))
1969 }
1970 } else {
1971 let capture_index = self.next_capture_index(open_span)?;
1972 Ok(Either::Right(ast::Group {
1973 span: open_span,
1974 kind: ast::GroupKind::CaptureIndex(capture_index),
1975 ast: Box::new(Ast::empty(self.span())),
1976 }))
1977 }
1978 }
1979
1980 #[inline(never)]
1981 fn parse_capture_name(&self, capture_index: u32) -> Result<ast::CaptureName> {
1982 if self.is_eof() {
1983 return Err(self.error(self.span(), ast::ErrorKind::GroupNameUnexpectedEof));
1984 }
1985 let start = self.pos();
1986 loop {
1987 if self.char() == '>' {
1988 break;
1989 }
1990 if !is_capture_char(self.char(), self.pos() == start) {
1991 return Err(self.error(self.span_char(), ast::ErrorKind::GroupNameInvalid));
1992 }
1993 if !self.bump() {
1994 break;
1995 }
1996 }
1997 let end = self.pos();
1998 if self.is_eof() {
1999 return Err(self.error(self.span(), ast::ErrorKind::GroupNameUnexpectedEof));
2000 }
2001 assert_eq!(self.char(), '>');
2002 self.bump();
2003 let name = &self.pattern()[start.offset..end.offset];
2004 if name.is_empty() {
2005 return Err(self.error(Span::new(start, start), ast::ErrorKind::GroupNameEmpty));
2006 }
2007 let capname = ast::CaptureName {
2008 span: Span::new(start, end),
2009 name: name.to_string(),
2010 index: capture_index,
2011 };
2012 self.add_capture_name(&capname)?;
2013 Ok(capname)
2014 }
2015
2016 #[inline(never)]
2017 fn parse_flags(&self) -> Result<ast::Flags> {
2018 let mut flags = ast::Flags {
2019 span: self.span(),
2020 items: vec![],
2021 };
2022 let mut last_was_negation = None;
2023 while self.char() != ':' && self.char() != ')' {
2024 if self.char() == '-' {
2025 last_was_negation = Some(self.span_char());
2026 let item = ast::FlagsItem {
2027 span: self.span_char(),
2028 kind: ast::FlagsItemKind::Negation,
2029 };
2030 if let Some(i) = flags.add_item(item) {
2031 return Err(self.error(
2032 self.span_char(),
2033 ast::ErrorKind::FlagRepeatedNegation {
2034 original: flags.items[i].span,
2035 },
2036 ));
2037 }
2038 } else {
2039 last_was_negation = None;
2040 let item = ast::FlagsItem {
2041 span: self.span_char(),
2042 kind: ast::FlagsItemKind::Flag(self.parse_flag()?),
2043 };
2044 if let Some(i) = flags.add_item(item) {
2045 return Err(self.error(
2046 self.span_char(),
2047 ast::ErrorKind::FlagDuplicate {
2048 original: flags.items[i].span,
2049 },
2050 ));
2051 }
2052 }
2053 if !self.bump() {
2054 return Err(self.error(self.span(), ast::ErrorKind::FlagUnexpectedEof));
2055 }
2056 }
2057 if let Some(span) = last_was_negation {
2058 return Err(self.error(span, ast::ErrorKind::FlagDanglingNegation));
2059 }
2060 flags.span.end = self.pos();
2061 Ok(flags)
2062 }
2063
2064 #[inline(never)]
2065 fn parse_flag(&self) -> Result<ast::Flag> {
2066 match self.char() {
2067 'i' => Ok(ast::Flag::CaseInsensitive),
2068 'm' => Ok(ast::Flag::MultiLine),
2069 's' => Ok(ast::Flag::DotMatchesNewLine),
2070 'U' => Ok(ast::Flag::SwapGreed),
2071 'u' => Ok(ast::Flag::Unicode),
2072 'R' => Ok(ast::Flag::CRLF),
2073 'x' => Ok(ast::Flag::IgnoreWhitespace),
2074 _ => Err(self.error(self.span_char(), ast::ErrorKind::FlagUnrecognized)),
2075 }
2076 }
2077
2078 fn parse_primitive(&self) -> Result<Primitive> {
2079 match self.char() {
2080 '\\' => self.parse_escape(),
2081 '_' => {
2082 let ast = Primitive::Top(self.span_char());
2083 self.bump();
2084 Ok(ast)
2085 }
2086 '.' => {
2087 let ast = Primitive::Dot(self.span_char());
2088 self.bump();
2089 Ok(ast)
2090 }
2091 '^' => {
2092 let ast = Primitive::Assertion(ast::Assertion {
2093 span: self.span_char(),
2094 kind: ast::AssertionKind::StartLine,
2095 });
2096 self.bump();
2097 Ok(ast)
2098 }
2099 '$' => {
2100 let ast = Primitive::Assertion(ast::Assertion {
2101 span: self.span_char(),
2102 kind: ast::AssertionKind::EndLine,
2103 });
2104 self.bump();
2105 Ok(ast)
2106 }
2107 c => {
2108 let ast = Primitive::Literal(Literal {
2109 span: self.span_char(),
2110 kind: LiteralKind::Verbatim,
2111 c,
2112 });
2113 self.bump();
2114 Ok(ast)
2115 }
2116 }
2117 }
2118
2119 #[inline(never)]
2120 fn parse_escape(&self) -> Result<Primitive> {
2121 assert_eq!(self.char(), '\\');
2122 let start = self.pos();
2123 if !self.bump() {
2124 return Err(self.error(
2125 Span::new(start, self.pos()),
2126 ast::ErrorKind::EscapeUnexpectedEof,
2127 ));
2128 }
2129 let c = self.char();
2130 match c {
2132 '0'..='9' => {
2133 if !self.parser().octal {
2134 return Err(self.error(
2135 Span::new(start, self.span_char().end),
2136 ast::ErrorKind::UnsupportedBackreference,
2137 ));
2138 }
2139 let mut lit = self.parse_octal();
2140 lit.span.start = start;
2141 return Ok(Primitive::Literal(lit));
2142 }
2143 'x' | 'u' | 'U' => {
2150 let mut lit = self.parse_hex()?;
2151 lit.span.start = start;
2152 return Ok(Primitive::Literal(lit));
2153 }
2154 'p' | 'P' => {
2155 let mut cls = self.parse_unicode_class()?;
2156 cls.span.start = start;
2157 return Ok(Primitive::Unicode(cls));
2158 }
2159 'd' | 's' | 'w' | 'D' | 'S' | 'W' => {
2160 let mut cls = self.parse_perl_class();
2161 cls.span.start = start;
2162 return Ok(Primitive::Perl(cls));
2163 }
2164 _ => {}
2165 }
2166
2167 self.bump();
2169 let span = Span::new(start, self.pos());
2170 if is_meta_character(c) {
2171 return Ok(Primitive::Literal(Literal {
2172 span,
2173 kind: LiteralKind::Meta,
2174 c,
2175 }));
2176 }
2177 if is_escapeable_character(c) {
2178 return Ok(Primitive::Literal(Literal {
2179 span,
2180 kind: LiteralKind::Superfluous,
2181 c,
2182 }));
2183 }
2184 let special = |kind, c| {
2185 Ok(Primitive::Literal(Literal {
2186 span,
2187 kind: LiteralKind::Special(kind),
2188 c,
2189 }))
2190 };
2191 match c {
2192 'a' => special(SpecialLiteralKind::Bell, '\x07'),
2193 'f' => special(SpecialLiteralKind::FormFeed, '\x0C'),
2194 't' => special(SpecialLiteralKind::Tab, '\t'),
2195 'n' => special(SpecialLiteralKind::LineFeed, '\n'),
2196 'r' => special(SpecialLiteralKind::CarriageReturn, '\r'),
2197 'v' => special(SpecialLiteralKind::VerticalTab, '\x0B'),
2198 'A' => Ok(Primitive::Assertion(ast::Assertion {
2199 span,
2200 kind: ast::AssertionKind::StartText,
2201 })),
2202 'z' => Ok(Primitive::Assertion(ast::Assertion {
2203 span,
2204 kind: ast::AssertionKind::EndText,
2205 })),
2206 'b' => {
2207 let mut wb = ast::Assertion {
2208 span,
2209 kind: ast::AssertionKind::WordBoundary,
2210 };
2211 if !self.is_eof() && self.char() == '{' {
2214 if let Some(kind) = self.maybe_parse_special_word_boundary(start)? {
2215 wb.kind = kind;
2216 wb.span.end = self.pos();
2217 }
2218 }
2219 Ok(Primitive::Assertion(wb))
2220 }
2221 'B' => Ok(Primitive::Assertion(ast::Assertion {
2222 span,
2223 kind: ast::AssertionKind::NotWordBoundary,
2224 })),
2225 '<' => Ok(Primitive::Assertion(ast::Assertion {
2226 span,
2227 kind: ast::AssertionKind::WordBoundaryStartAngle,
2228 })),
2229 '>' => Ok(Primitive::Assertion(ast::Assertion {
2230 span,
2231 kind: ast::AssertionKind::WordBoundaryEndAngle,
2232 })),
2233 _ => Err(self.error(span, ast::ErrorKind::EscapeUnrecognized)),
2234 }
2235 }
2236
2237 fn maybe_parse_special_word_boundary(
2238 &self,
2239 wb_start: Position,
2240 ) -> Result<Option<ast::AssertionKind>> {
2241 assert_eq!(self.char(), '{');
2242
2243 let is_valid_char = |c| matches!(c, 'A'..='Z' | 'a'..='z' | '-');
2244 let start = self.pos();
2245 if !self.bump_and_bump_space() {
2246 return Err(self.error(
2247 Span::new(wb_start, self.pos()),
2248 ast::ErrorKind::SpecialWordOrRepetitionUnexpectedEof,
2249 ));
2250 }
2251 let start_contents = self.pos();
2252 if !is_valid_char(self.char()) {
2257 self.parser().pos.set(start);
2258 return Ok(None);
2259 }
2260
2261 let mut scratch = self.parser().scratch.borrow_mut();
2263 scratch.clear();
2264 while !self.is_eof() && is_valid_char(self.char()) {
2265 scratch.push(self.char());
2266 self.bump_and_bump_space();
2267 }
2268 if self.is_eof() || self.char() != '}' {
2269 return Err(self.error(
2270 Span::new(start, self.pos()),
2271 ast::ErrorKind::SpecialWordBoundaryUnclosed,
2272 ));
2273 }
2274 let end = self.pos();
2275 self.bump();
2276 let kind = match scratch.as_str() {
2277 "start" => ast::AssertionKind::WordBoundaryStart,
2278 "end" => ast::AssertionKind::WordBoundaryEnd,
2279 "start-half" => ast::AssertionKind::WordBoundaryStartHalf,
2280 "end-half" => ast::AssertionKind::WordBoundaryEndHalf,
2281 _ => {
2282 return Err(self.error(
2283 Span::new(start_contents, end),
2284 ast::ErrorKind::SpecialWordBoundaryUnrecognized,
2285 ))
2286 }
2287 };
2288 Ok(Some(kind))
2289 }
2290
2291 #[inline(never)]
2292 fn parse_octal(&self) -> Literal {
2293 assert!(self.parser().octal);
2294 assert!('0' <= self.char() && self.char() <= '7');
2295 let start = self.pos();
2296 while self.bump()
2298 && '0' <= self.char()
2299 && self.char() <= '7'
2300 && self.pos().offset - start.offset <= 2
2301 {}
2302 let end = self.pos();
2303 let octal = &self.pattern()[start.offset..end.offset];
2304 let codepoint = u32::from_str_radix(octal, 8).expect("valid octal number");
2307 let c = char::from_u32(codepoint).expect("Unicode scalar value");
2310 Literal {
2311 span: Span::new(start, end),
2312 kind: LiteralKind::Octal,
2313 c,
2314 }
2315 }
2316
2317 #[inline(never)]
2318 fn parse_hex(&self) -> Result<Literal> {
2319 assert!(self.char() == 'x' || self.char() == 'u' || self.char() == 'U');
2320
2321 let hex_kind = match self.char() {
2322 'x' => HexLiteralKind::X,
2323 'u' => HexLiteralKind::UnicodeShort,
2324 _ => HexLiteralKind::UnicodeLong,
2325 };
2326 if !self.bump_and_bump_space() {
2327 return Err(self.error(self.span(), ast::ErrorKind::EscapeUnexpectedEof));
2328 }
2329 if self.char() == '{' {
2330 self.parse_hex_brace(hex_kind)
2331 } else {
2332 self.parse_hex_digits(hex_kind)
2333 }
2334 }
2335
2336 #[inline(never)]
2337 fn parse_hex_digits(&self, kind: HexLiteralKind) -> Result<Literal> {
2338 let mut scratch = self.parser().scratch.borrow_mut();
2339 scratch.clear();
2340
2341 let start = self.pos();
2342 for i in 0..kind.digits() {
2343 if i > 0 && !self.bump_and_bump_space() {
2344 return Err(self.error(self.span(), ast::ErrorKind::EscapeUnexpectedEof));
2345 }
2346 if !is_hex(self.char()) {
2347 return Err(self.error(self.span_char(), ast::ErrorKind::EscapeHexInvalidDigit));
2348 }
2349 scratch.push(self.char());
2350 }
2351 self.bump_and_bump_space();
2354 let end = self.pos();
2355 let hex = scratch.as_str();
2356 match u32::from_str_radix(hex, 16).ok().and_then(char::from_u32) {
2357 None => Err(self.error(Span::new(start, end), ast::ErrorKind::EscapeHexInvalid)),
2358 Some(c) => Ok(Literal {
2359 span: Span::new(start, end),
2360 kind: LiteralKind::HexFixed(kind),
2361 c,
2362 }),
2363 }
2364 }
2365
2366 #[inline(never)]
2367 fn parse_hex_brace(&self, kind: HexLiteralKind) -> Result<Literal> {
2368 let mut scratch = self.parser().scratch.borrow_mut();
2369 scratch.clear();
2370
2371 let brace_pos = self.pos();
2372 let start = self.span_char().end;
2373 while self.bump_and_bump_space() && self.char() != '}' {
2374 if !is_hex(self.char()) {
2375 return Err(self.error(self.span_char(), ast::ErrorKind::EscapeHexInvalidDigit));
2376 }
2377 scratch.push(self.char());
2378 }
2379 if self.is_eof() {
2380 return Err(self.error(
2381 Span::new(brace_pos, self.pos()),
2382 ast::ErrorKind::EscapeUnexpectedEof,
2383 ));
2384 }
2385 let end = self.pos();
2386 let hex = scratch.as_str();
2387 assert_eq!(self.char(), '}');
2388 self.bump_and_bump_space();
2389
2390 if hex.is_empty() {
2391 return Err(self.error(
2392 Span::new(brace_pos, self.pos()),
2393 ast::ErrorKind::EscapeHexEmpty,
2394 ));
2395 }
2396 match u32::from_str_radix(hex, 16).ok().and_then(char::from_u32) {
2397 None => Err(self.error(Span::new(start, end), ast::ErrorKind::EscapeHexInvalid)),
2398 Some(c) => Ok(Literal {
2399 span: Span::new(start, self.pos()),
2400 kind: LiteralKind::HexBrace(kind),
2401 c,
2402 }),
2403 }
2404 }
2405
2406 fn parse_decimal(&self) -> Result<u32> {
2407 let mut scratch = self.parser().scratch.borrow_mut();
2408 scratch.clear();
2409
2410 while !self.is_eof() && self.char().is_whitespace() {
2411 self.bump();
2412 }
2413 let start = self.pos();
2414 while !self.is_eof() && '0' <= self.char() && self.char() <= '9' {
2415 scratch.push(self.char());
2416 self.bump_and_bump_space();
2417 }
2418 let span = Span::new(start, self.pos());
2419 while !self.is_eof() && self.char().is_whitespace() {
2420 self.bump_and_bump_space();
2421 }
2422 let digits = scratch.as_str();
2423 if digits.is_empty() {
2424 return Err(self.error(span, ast::ErrorKind::DecimalEmpty));
2425 }
2426 match digits.parse::<u32>().ok() {
2427 Some(n) => Ok(n),
2428 None => Err(self.error(span, ast::ErrorKind::DecimalInvalid)),
2429 }
2430 }
2431
2432 #[inline(never)]
2433 fn parse_set_class(&self) -> Result<ClassBracketed> {
2434 assert_eq!(self.char(), '[');
2435
2436 let mut union = ClassSetUnion {
2437 span: self.span(),
2438 items: vec![],
2439 };
2440 loop {
2441 self.bump_space();
2442 if self.is_eof() {
2443 return Err(self.unclosed_class_error());
2444 }
2445 match self.char() {
2446 '[' => {
2447 if !self.parser().stack_class.borrow().is_empty() {
2452 if let Some(cls) = self.maybe_parse_ascii_class() {
2453 union.push(ClassSetItem::Ascii(cls));
2454 continue;
2455 }
2456 }
2457 union = self.push_class_open(union)?;
2458 }
2459 ']' => match self.pop_class(union)? {
2460 Either::Left(nested_union) => {
2461 union = nested_union;
2462 }
2463 Either::Right(class) => return Ok(class),
2464 },
2465 '&' if self.peek() == Some('&') => {
2466 assert!(self.bump_if("&&"));
2467 union = self.push_class_op(ClassSetBinaryOpKind::Intersection, union);
2468 }
2469 '-' if self.peek() == Some('-') => {
2470 assert!(self.bump_if("--"));
2471 union = self.push_class_op(ClassSetBinaryOpKind::Difference, union);
2472 }
2473 '~' if self.peek() == Some('~') => {
2474 assert!(self.bump_if("~~"));
2475 union = self.push_class_op(ClassSetBinaryOpKind::SymmetricDifference, union);
2476 }
2477 _ => {
2478 union.push(self.parse_set_class_range()?);
2479 }
2480 }
2481 }
2482 }
2483
2484 #[inline(never)]
2485 fn parse_set_class_range(&self) -> Result<ClassSetItem> {
2486 let prim1 = self.parse_set_class_item()?;
2487 self.bump_space();
2488 if self.is_eof() {
2489 return Err(self.unclosed_class_error());
2490 }
2491 if self.char() != '-' || self.peek_space() == Some(']') || self.peek_space() == Some('-') {
2492 return prim1.into_class_set_item(self);
2493 }
2494 if !self.bump_and_bump_space() {
2495 return Err(self.unclosed_class_error());
2496 }
2497 let prim2 = self.parse_set_class_item()?;
2498 let range = ClassSetRange {
2499 span: Span::new(prim1.span().start, prim2.span().end),
2500 start: prim1.into_class_literal(self)?,
2501 end: prim2.into_class_literal(self)?,
2502 };
2503 if !range.is_valid() {
2504 return Err(self.error(range.span, ast::ErrorKind::ClassRangeInvalid));
2505 }
2506 Ok(ClassSetItem::Range(range))
2507 }
2508
2509 #[inline(never)]
2510 fn parse_set_class_item(&self) -> Result<Primitive> {
2511 if self.char() == '\\' {
2512 self.parse_escape()
2513 } else {
2514 let x = Primitive::Literal(Literal {
2515 span: self.span_char(),
2516 kind: LiteralKind::Verbatim,
2517 c: self.char(),
2518 });
2519 self.bump();
2520 Ok(x)
2521 }
2522 }
2523
2524 #[inline(never)]
2525 fn parse_set_class_open(&self) -> Result<(ClassBracketed, ClassSetUnion)> {
2526 assert_eq!(self.char(), '[');
2527 let start = self.pos();
2528 if !self.bump_and_bump_space() {
2529 return Err(self.error(Span::new(start, self.pos()), ast::ErrorKind::ClassUnclosed));
2530 }
2531
2532 let negated = if self.char() != '^' {
2533 false
2534 } else {
2535 if !self.bump_and_bump_space() {
2536 return Err(self.error(Span::new(start, self.pos()), ast::ErrorKind::ClassUnclosed));
2537 }
2538 true
2539 };
2540 let mut union = ClassSetUnion {
2542 span: self.span(),
2543 items: vec![],
2544 };
2545 while self.char() == '-' {
2546 union.push(ClassSetItem::Literal(Literal {
2547 span: self.span_char(),
2548 kind: LiteralKind::Verbatim,
2549 c: '-',
2550 }));
2551 if !self.bump_and_bump_space() {
2552 return Err(self.error(Span::new(start, start), ast::ErrorKind::ClassUnclosed));
2553 }
2554 }
2555 if union.items.is_empty() && self.char() == ']' {
2558 union.push(ClassSetItem::Literal(Literal {
2559 span: self.span_char(),
2560 kind: LiteralKind::Verbatim,
2561 c: ']',
2562 }));
2563 if !self.bump_and_bump_space() {
2564 return Err(self.error(Span::new(start, self.pos()), ast::ErrorKind::ClassUnclosed));
2565 }
2566 }
2567 let set = ClassBracketed {
2568 span: Span::new(start, self.pos()),
2569 negated,
2570 kind: ClassSet::union(ClassSetUnion {
2571 span: Span::new(union.span.start, union.span.start),
2572 items: vec![],
2573 }),
2574 };
2575 Ok((set, union))
2576 }
2577
2578 #[inline(never)]
2579 fn maybe_parse_ascii_class(&self) -> Option<ClassAscii> {
2580 assert_eq!(self.char(), '[');
2581 let start = self.pos();
2583 let mut negated = false;
2584 if !self.bump() || self.char() != ':' {
2585 self.parser().pos.set(start);
2586 return None;
2587 }
2588 if !self.bump() {
2589 self.parser().pos.set(start);
2590 return None;
2591 }
2592 if self.char() == '^' {
2593 negated = true;
2594 if !self.bump() {
2595 self.parser().pos.set(start);
2596 return None;
2597 }
2598 }
2599 let name_start = self.offset();
2600 while self.char() != ':' && self.bump() {}
2601 if self.is_eof() {
2602 self.parser().pos.set(start);
2603 return None;
2604 }
2605 let name = &self.pattern()[name_start..self.offset()];
2606 if !self.bump_if(":]") {
2607 self.parser().pos.set(start);
2608 return None;
2609 }
2610 let kind = match regex_syntax::ast::ClassAsciiKind::from_name(name) {
2611 Some(kind) => kind,
2612 None => {
2613 self.parser().pos.set(start);
2614 return None;
2615 }
2616 };
2617 Some(ClassAscii {
2618 span: Span::new(start, self.pos()),
2619 kind,
2620 negated,
2621 })
2622 }
2623
2624 #[inline(never)]
2625 fn parse_unicode_class(&self) -> Result<ClassUnicode> {
2626 assert!(self.char() == 'p' || self.char() == 'P');
2627
2628 let mut scratch = self.parser().scratch.borrow_mut();
2629 scratch.clear();
2630
2631 let negated = self.char() == 'P';
2632 if !self.bump_and_bump_space() {
2633 return Err(self.error(self.span(), ast::ErrorKind::EscapeUnexpectedEof));
2634 }
2635 let (start, kind) = if self.char() == '{' {
2636 let start = self.span_char().end;
2637 while self.bump_and_bump_space() && self.char() != '}' {
2638 scratch.push(self.char());
2639 }
2640 if self.is_eof() {
2641 return Err(self.error(self.span(), ast::ErrorKind::EscapeUnexpectedEof));
2642 }
2643 assert_eq!(self.char(), '}');
2644 self.bump();
2645
2646 let name = scratch.as_str();
2647 if let Some(i) = name.find("!=") {
2648 (
2649 start,
2650 ClassUnicodeKind::NamedValue {
2651 op: ClassUnicodeOpKind::NotEqual,
2652 name: name[..i].to_string(),
2653 value: name[i + 2..].to_string(),
2654 },
2655 )
2656 } else if let Some(i) = name.find(':') {
2657 (
2658 start,
2659 ClassUnicodeKind::NamedValue {
2660 op: ClassUnicodeOpKind::Colon,
2661 name: name[..i].to_string(),
2662 value: name[i + 1..].to_string(),
2663 },
2664 )
2665 } else if let Some(i) = name.find('=') {
2666 (
2667 start,
2668 ClassUnicodeKind::NamedValue {
2669 op: ClassUnicodeOpKind::Equal,
2670 name: name[..i].to_string(),
2671 value: name[i + 1..].to_string(),
2672 },
2673 )
2674 } else {
2675 (start, ClassUnicodeKind::Named(name.to_string()))
2676 }
2677 } else {
2678 let start = self.pos();
2679 let c = self.char();
2680 if c == '\\' {
2681 return Err(self.error(self.span_char(), ast::ErrorKind::UnicodeClassInvalid));
2682 }
2683 self.bump_and_bump_space();
2684 let kind = ClassUnicodeKind::OneLetter(c);
2685 (start, kind)
2686 };
2687 Ok(ClassUnicode {
2688 span: Span::new(start, self.pos()),
2689 negated,
2690 kind,
2691 })
2692 }
2693
2694 #[inline(never)]
2695 fn parse_perl_class(&self) -> ClassPerl {
2696 let c = self.char();
2697 let span = self.span_char();
2698 self.bump();
2699 let (negated, kind) = match c {
2700 'd' => (false, regex_syntax::ast::ClassPerlKind::Digit),
2701 'D' => (true, regex_syntax::ast::ClassPerlKind::Digit),
2702 's' => (false, regex_syntax::ast::ClassPerlKind::Space),
2703 'S' => (true, regex_syntax::ast::ClassPerlKind::Space),
2704 'w' => (false, regex_syntax::ast::ClassPerlKind::Word),
2705 'W' => (true, regex_syntax::ast::ClassPerlKind::Word),
2706 c => panic!("expected valid Perl class but got '{}'", c),
2707 };
2708 ClassPerl {
2709 span,
2710 kind,
2711 negated,
2712 }
2713 }
2714}
2715
2716pub fn parse_ast<'s>(
2717 tb: &mut TB<'s>,
2718 pattern: &'s str,
2719) -> std::result::Result<NodeId, ResharpError> {
2720 let mut p: ResharpParser<'s> = ResharpParser::new(pattern);
2721 p.parse(tb)
2722}
2723
2724pub fn parse_ast_with<'s>(
2725 tb: &mut TB<'s>,
2726 pattern: &'s str,
2727 flags: &PatternFlags,
2728) -> std::result::Result<NodeId, ResharpError> {
2729 let mut p: ResharpParser<'s> = ResharpParser::with_flags(pattern, flags);
2730 p.parse(tb)
2731}
2732
2733pub fn parse_to_ast(pattern: &str) -> std::result::Result<ast::Ast, ResharpError> {
2735 let mut p: ResharpParser = ResharpParser::new(pattern);
2736 p.parse_inner()
2737}