libstdc++
regex_executor.tcc
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1 // class template regex -*- C++ -*-
2 
3 // Copyright (C) 2013-2026 Free Software Foundation, Inc.
4 //
5 // This file is part of the GNU ISO C++ Library. This library is free
6 // software; you can redistribute it and/or modify it under the
7 // terms of the GNU General Public License as published by the
8 // Free Software Foundation; either version 3, or (at your option)
9 // any later version.
10 
11 // This library is distributed in the hope that it will be useful,
12 // but WITHOUT ANY WARRANTY; without even the implied warranty of
13 // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 // GNU General Public License for more details.
15 
16 // Under Section 7 of GPL version 3, you are granted additional
17 // permissions described in the GCC Runtime Library Exception, version
18 // 3.1, as published by the Free Software Foundation.
19 
20 // You should have received a copy of the GNU General Public License and
21 // a copy of the GCC Runtime Library Exception along with this program;
22 // see the files COPYING3 and COPYING.RUNTIME respectively. If not, see
23 // <http://www.gnu.org/licenses/>.
24 
25 /**
26  * @file bits/regex_executor.tcc
27  * This is an internal header file, included by other library headers.
28  * Do not attempt to use it directly. @headername{regex}
29  */
30 
31 namespace std _GLIBCXX_VISIBILITY(default)
32 {
33 _GLIBCXX_BEGIN_NAMESPACE_VERSION
34 
35 #pragma GCC diagnostic push
36 #pragma GCC diagnostic ignored "-Wc++17-extensions" // if constexpr
37 namespace __detail
38 {
39  template<typename _BiIter, typename _Alloc, typename _TraitsT>
40  bool _Executor<_BiIter, _Alloc, _TraitsT>::
41  _M_search()
42  {
43  if (_M_search_from_first())
44  return true;
45  if (_M_flags & regex_constants::match_continuous)
46  return false;
48  while (_M_begin != _M_end)
49  {
50  ++_M_begin;
51  if (_M_search_from_first())
52  return true;
53  }
54  return false;
55  }
56 
57  enum _ExecutorFrameOpcode : unsigned char
58  {
59  _S_fopcode_next,
60  _S_fopcode_fallback_next,
61  _S_fopcode_rep_once_more,
62  _S_fopcode_fallback_rep_once_more,
63  _S_fopcode_posix_alternative,
64  _S_fopcode_merge_sol,
65  _S_fopcode_restore_cur_results,
66  _S_fopcode_restore_rep_count,
67  _S_fopcode_decrement_rep_count,
68  };
69 
70 #pragma GCC diagnostic push
71 #pragma GCC diagnostic ignored "-Wpedantic" // anon struct
72  struct _ExecutorFrameBase
73  {
74  _ExecutorFrameBase(_ExecutorFrameOpcode __op, _StateIdT __i)
75  : _M_op(__op), _M_state_id(__i)
76  { }
77 
78  _ExecutorFrameOpcode _M_op;
79  union {
80  unsigned char _M_byte0 = 0;
81  struct { // Used by restore_rep_count frame
82  unsigned char _M_count : 2;
83  };
84  struct { // Used by restore_cur_results frame
85  unsigned char _M_subexpr_end : 1;
86  unsigned char _M_matched : 1;
87  };
88  };
89  unsigned char _M_bytes[6];
90  _StateIdT _M_state_id;
91  };
92 #pragma GCC diagnostic pop
93 
94  template<typename _BiIter, bool _Trivial /* = is_trivially_copyable<_BiIter>::value */>
95  struct _ExecutorFrame : _ExecutorFrameBase
96  {
97  _ExecutorFrame(_ExecutorFrameOpcode __op, _StateIdT __i)
98  : _ExecutorFrameBase(__op, __i)
99  { }
100 
101  _ExecutorFrame(_ExecutorFrameOpcode __op, _StateIdT __i, _BiIter __p)
102  : _ExecutorFrameBase(__op, __i), _M_pos(__p)
103  { }
104 
105  _ExecutorFrame(_ExecutorFrameOpcode __op, _StateIdT __i, long __v)
106  : _ExecutorFrameBase(__op, __i), _M_val(__v)
107  { }
108 
109  // _M_pos and _M_val are mutually exclusive, which the optimized
110  // partial specialization below depends on.
111  _BiIter _M_pos = _BiIter();
112  long _M_val = 0;
113  };
114 
115  // Space-optimized partial specialization for when the input iterator is
116  // trivially copyable.
117  template<typename _BiIter>
118  struct _ExecutorFrame<_BiIter, true> : _ExecutorFrameBase
119  {
120  _ExecutorFrame(_ExecutorFrameOpcode __op, _StateIdT __i)
121  : _ExecutorFrameBase(__op, __i)
122  { }
123 
124  _ExecutorFrame(_ExecutorFrameOpcode __op, _StateIdT __i, _BiIter __p)
125  : _ExecutorFrameBase(__op, __i), _M_pos(__p)
126  { }
127 
128  _ExecutorFrame(_ExecutorFrameOpcode __op, _StateIdT __i, long __v)
129  : _ExecutorFrameBase(__op, __i), _M_val(__v)
130  { }
131 
132  union {
133  _BiIter _M_pos;
134  long _M_val;
135  };
136  };
137 
138  // The _M_main function operates in different modes, DFS mode or BFS mode,
139  // indicated by _M_search_mode, and dispatches to either _M_main_dfs or
140  // _M_main_bfs.
141  //
142  // ------------------------------------------------------------
143  //
144  // DFS mode:
145  //
146  // It applies a Depth-First-Search (aka backtracking) on given NFA and input
147  // string.
148  // At the very beginning the executor stands in the start state, then it
149  // tries every possible state transition in current state recursively. Some
150  // state transitions consume input string, say, a single-char-matcher or a
151  // back-reference matcher; some don't, like assertion or other anchor nodes.
152  // When the input is exhausted and/or the current state is an accepting
153  // state, the whole executor returns true.
154  //
155  // TODO: This approach is exponentially slow for certain input.
156  // Try to compile the NFA to a DFA.
157  //
158  // Time complexity: \Omega(match_length), O(2^(_M_nfa.size()))
159  // Space complexity: \theta(match_results.size() + match_length)
160  //
161  template<typename _BiIter, typename _Alloc, typename _TraitsT>
162  bool _Executor<_BiIter, _Alloc, _TraitsT>::
163  _M_main_dfs(_Match_mode __match_mode)
164  {
165  _M_has_sol = false;
166  *_M_get_sol_pos() = _BiIter();
167  _M_cur_results = _M_results;
168  _M_dfs(__match_mode, _M_start);
169  return _M_has_sol;
170  }
171 
172  // ------------------------------------------------------------
173  //
174  // BFS mode:
175  //
176  // Russ Cox's article (http://swtch.com/~rsc/regexp/regexp1.html)
177  // explained this algorithm clearly.
178  //
179  // It first computes epsilon closure (states that can be achieved without
180  // consuming characters) for every state that's still matching,
181  // using the same DFS algorithm, but doesn't re-enter states (using
182  // _M_visited to check), nor follow _S_opcode_match.
183  //
184  // Then apply DFS using every _S_opcode_match (in _M_match_queue)
185  // as the start state.
186  //
187  // It significantly reduces potential duplicate states, so has a better
188  // upper bound; but it requires more overhead.
189  //
190  // Time complexity: \Omega(match_length * match_results.size())
191  // O(match_length * _M_nfa.size() * match_results.size())
192  // Space complexity: \Omega(_M_nfa.size() + match_results.size())
193  // O(_M_nfa.size() * match_results.size())
194  template<typename _BiIter, typename _Alloc, typename _TraitsT>
195  bool _Executor<_BiIter, _Alloc, _TraitsT>::
196  _M_main_bfs(_Match_mode __match_mode)
197  {
198  _M_match_queue.emplace_back(_M_start, _M_results);
199  bool __ret = false;
200  while (1)
201  {
202  _M_has_sol = false;
203  if (_M_match_queue.empty())
204  break;
205  std::fill_n(_M_visited_states, _M_nfa.size(), false);
206  auto __old_queue = std::move(_M_match_queue);
207  auto __alloc = _M_cur_results.get_allocator();
208  for (auto& __task : __old_queue)
209  {
210  _M_cur_results = _ResultsVec(std::move(__task.second), __alloc);
211  _M_dfs(__match_mode, __task.first);
212  }
213  if (__match_mode == _Match_mode::_Prefix)
214  __ret |= _M_has_sol;
215  if (_M_current == _M_end)
216  break;
217  ++_M_current;
218  }
219  if (__match_mode == _Match_mode::_Exact)
220  __ret = _M_has_sol;
221  _M_match_queue.clear();
222  return __ret;
223  }
224 
225  // Return whether now match the given sub-NFA.
226  template<typename _BiIter, typename _Alloc, typename _TraitsT>
227  bool _Executor<_BiIter, _Alloc, _TraitsT>::
228  _M_lookahead(_StateIdT __next)
229  {
230  // Backreferences may refer to captured content.
231  // We may want to make this faster by not copying,
232  // but let's not be clever prematurely.
233  _ResultsVec __what(_M_cur_results);
234  _Executor __sub(_M_current, _M_end, __what, _M_re, _M_flags,
235  bool(_M_search_mode));
236  __sub._M_start = __next;
237  if (__sub._M_search_from_first())
238  {
239  for (size_t __i = 0; __i < __what.size(); __i++)
240  if (__what[__i].matched)
241  _M_cur_results[__i] = __what[__i];
242  return true;
243  }
244  return false;
245  }
246 
247  // __rep_count records how many times (__rep_count.second)
248  // this node is visited under certain input iterator
249  // (__rep_count.first). This prevent the executor from entering
250  // infinite loop by refusing to continue when it's already been
251  // visited more than twice. It's `twice` instead of `once` because
252  // we need to spare one more time for potential group capture.
253  template<typename _BiIter, typename _Alloc, typename _TraitsT>
254  void _Executor<_BiIter, _Alloc, _TraitsT>::
255  _M_rep_once_more(_Match_mode, _StateIdT __i)
256  {
257  const auto& __state = _M_nfa[__i];
258  auto& __rep_count = _M_rep_count[__i];
259  if (__rep_count.second == 0 || __rep_count.first != _M_current)
260  {
261  _M_frames.emplace_back(_S_fopcode_restore_rep_count,
262  __i, __rep_count.first);
263  _M_frames.back()._M_count = __rep_count.second;
264  __rep_count.first = _M_current;
265  __rep_count.second = 1;
266  _M_frames.emplace_back(_S_fopcode_next, __state._M_alt);
267  }
268  else
269  {
270  if (__rep_count.second < 2)
271  {
272  __rep_count.second++;
273  _M_frames.emplace_back(_S_fopcode_decrement_rep_count, __i);
274  _M_frames.emplace_back(_S_fopcode_next, __state._M_alt);
275  }
276  }
277  }
278 
279  // _M_alt branch is "match once more", while _M_next is "get me out
280  // of this quantifier". Executing _M_next first or _M_alt first don't
281  // mean the same thing, and we need to choose the correct order under
282  // given greedy mode.
283  template<typename _BiIter, typename _Alloc, typename _TraitsT>
284  void _Executor<_BiIter, _Alloc, _TraitsT>::
285  _M_handle_repeat(_Match_mode, _StateIdT __i)
286  {
287  const auto& __state = _M_nfa[__i];
288  // Greedy.
289  if (!__state._M_neg)
290  {
291  if (_M_search_mode == _Search_mode::_DFS)
292  // If it's DFS executor and already accepted, we're done.
293  _M_frames.emplace_back(_S_fopcode_fallback_next, __state._M_next,
294  _M_current);
295  else
296  _M_frames.emplace_back(_S_fopcode_next, __state._M_next);
297  _M_frames.emplace_back(_S_fopcode_rep_once_more, __i);
298  }
299  else // Non-greedy mode
300  {
301  if (_M_search_mode == _Search_mode::_DFS)
302  {
303  // vice-versa.
304  _M_frames.emplace_back(_S_fopcode_fallback_rep_once_more, __i,
305  _M_current);
306  _M_frames.emplace_back(_S_fopcode_next, __state._M_next);
307  }
308  else
309  {
310  // DON'T attempt anything, because there's already another
311  // state with higher priority accepted. This state cannot
312  // be better by attempting its next node.
313  if (!_M_has_sol)
314  {
315  // DON'T attempt anything if it's already accepted. An
316  // accepted state *must* be better than a solution that
317  // matches a non-greedy quantifier one more time.
318  _M_frames.emplace_back(_S_fopcode_fallback_rep_once_more, __i);
319  _M_frames.emplace_back(_S_fopcode_next, __state._M_next);
320  }
321  }
322  }
323  }
324 
325  template<typename _BiIter, typename _Alloc, typename _TraitsT>
326  void _Executor<_BiIter, _Alloc, _TraitsT>::
327  _M_handle_subexpr_begin(_Match_mode, _StateIdT __i)
328  {
329  const auto& __state = _M_nfa[__i];
330  auto& __res = _M_cur_results[__state._M_subexpr];
331  _M_frames.emplace_back(_S_fopcode_restore_cur_results,
332  static_cast<_StateIdT>(__state._M_subexpr),
333  __res.first);
334  __res.first = _M_current;
335  _M_frames.emplace_back(_S_fopcode_next, __state._M_next);
336  }
337 
338  template<typename _BiIter, typename _Alloc, typename _TraitsT>
339  void _Executor<_BiIter, _Alloc, _TraitsT>::
340  _M_handle_subexpr_end(_Match_mode, _StateIdT __i)
341  {
342  const auto& __state = _M_nfa[__i];
343  auto& __res = _M_cur_results[__state._M_subexpr];
344  _M_frames.emplace_back(_S_fopcode_restore_cur_results,
345  static_cast<_StateIdT>(__state._M_subexpr),
346  __res.second);
347  _M_frames.back()._M_subexpr_end = true;
348  _M_frames.back()._M_matched = __res.matched;
349  __res.second = _M_current;
350  __res.matched = true;
351  _M_frames.emplace_back(_S_fopcode_next, __state._M_next);
352  }
353 
354  template<typename _BiIter, typename _Alloc, typename _TraitsT>
355  inline void _Executor<_BiIter, _Alloc, _TraitsT>::
356  _M_handle_line_begin_assertion(_Match_mode, _StateIdT __i)
357  {
358  const auto& __state = _M_nfa[__i];
359  if (_M_at_begin())
360  _M_frames.emplace_back(_S_fopcode_next, __state._M_next);
361  }
362 
363  template<typename _BiIter, typename _Alloc, typename _TraitsT>
364  inline void _Executor<_BiIter, _Alloc, _TraitsT>::
365  _M_handle_line_end_assertion(_Match_mode, _StateIdT __i)
366  {
367  const auto& __state = _M_nfa[__i];
368  if (_M_at_end())
369  _M_frames.emplace_back(_S_fopcode_next, __state._M_next);
370  }
371 
372  template<typename _BiIter, typename _Alloc, typename _TraitsT>
373  inline void _Executor<_BiIter, _Alloc, _TraitsT>::
374  _M_handle_word_boundary(_Match_mode, _StateIdT __i)
375  {
376  const auto& __state = _M_nfa[__i];
377  if (_M_word_boundary() == !__state._M_neg)
378  _M_frames.emplace_back(_S_fopcode_next, __state._M_next);
379  }
380 
381  // Here __state._M_alt offers a single start node for a sub-NFA.
382  // We recursively invoke our algorithm to match the sub-NFA.
383  template<typename _BiIter, typename _Alloc, typename _TraitsT>
384  void _Executor<_BiIter, _Alloc, _TraitsT>::
385  _M_handle_subexpr_lookahead(_Match_mode, _StateIdT __i)
386  {
387  const auto& __state = _M_nfa[__i];
388  if (_M_lookahead(__state._M_alt) == !__state._M_neg)
389  _M_frames.emplace_back(_S_fopcode_next, __state._M_next);
390  }
391 
392  template<typename _BiIter, typename _Alloc, typename _TraitsT>
393  void _Executor<_BiIter, _Alloc, _TraitsT>::
394  _M_handle_match(_Match_mode, _StateIdT __i)
395  {
396  const auto& __state = _M_nfa[__i];
397  if (_M_current == _M_end)
398  return;
399  if (_M_search_mode == _Search_mode::_DFS)
400  {
401  if (__state._M_matches(*_M_current))
402  {
403  ++_M_current;
404  _M_frames.emplace_back(_S_fopcode_next, __state._M_next);
405  }
406  }
407  else
408  if (__state._M_matches(*_M_current))
409  _M_match_queue.emplace_back(__state._M_next, _M_cur_results);
410  }
411 
412  template<typename _BiIter, typename _TraitsT>
413  struct _Backref_matcher
414  {
415  _Backref_matcher(bool /* __icase */, const _TraitsT& __traits)
416  : _M_traits(__traits) { }
417 
418  bool
419  _M_apply(_BiIter __expected_begin,
420  _BiIter __expected_end, _BiIter __actual_begin,
421  _BiIter __actual_end)
422  {
423  return _M_traits.transform(__expected_begin, __expected_end)
424  == _M_traits.transform(__actual_begin, __actual_end);
425  }
426 
427  const _TraitsT& _M_traits;
428  };
429 
430  template<typename _BiIter, typename _CharT>
431  struct _Backref_matcher<_BiIter, std::regex_traits<_CharT>>
432  {
433  using _TraitsT = std::regex_traits<_CharT>;
434  _Backref_matcher(bool __icase, const _TraitsT& __traits)
435  : _M_icase(__icase), _M_traits(__traits) { }
436 
437  bool
438  _M_apply(_BiIter __expected_begin,
439  _BiIter __expected_end, _BiIter __actual_begin,
440  _BiIter __actual_end)
441  {
442  if (!_M_icase)
443  return _GLIBCXX_STD_A::__equal4(__expected_begin, __expected_end,
444  __actual_begin, __actual_end);
445  typedef std::ctype<_CharT> __ctype_type;
446  const auto& __fctyp = use_facet<__ctype_type>(_M_traits.getloc());
447  return _GLIBCXX_STD_A::__equal4(__expected_begin, __expected_end,
448  __actual_begin, __actual_end,
449  [this, &__fctyp](_CharT __lhs, _CharT __rhs)
450  {
451  return __fctyp.tolower(__lhs)
452  == __fctyp.tolower(__rhs);
453  });
454  }
455 
456  bool _M_icase;
457  const _TraitsT& _M_traits;
458  };
459 
460  // First fetch the matched result from _M_cur_results as __submatch;
461  // then compare it with
462  // (_M_current, _M_current + (__submatch.second - __submatch.first)).
463  // If matched, keep going; else just return and try another state.
464  template<typename _BiIter, typename _Alloc, typename _TraitsT>
465  void _Executor<_BiIter, _Alloc, _TraitsT>::
466  _M_handle_backref(_Match_mode, _StateIdT __i)
467  {
468  __glibcxx_assert(_M_search_mode == _Search_mode::_DFS);
469 
470  const auto& __state = _M_nfa[__i];
471  auto& __submatch = _M_cur_results[__state._M_backref_index];
472  if (!__submatch.matched)
473  return;
474  auto __last = _M_current;
475  for (auto __tmp = __submatch.first;
476  __last != _M_end && __tmp != __submatch.second;
477  ++__tmp)
478  ++__last;
479  if (_Backref_matcher<_BiIter, _TraitsT>(
480  _M_re.flags() & regex_constants::icase,
481  _M_re._M_automaton->_M_traits)._M_apply(
482  __submatch.first, __submatch.second, _M_current, __last))
483  {
484  _M_current = __last;
485  _M_frames.emplace_back(_S_fopcode_next, __state._M_next);
486  }
487  }
488 
489  template<typename _BiIter, typename _Alloc, typename _TraitsT>
490  void _Executor<_BiIter, _Alloc, _TraitsT>::
491  _M_handle_accept(_Match_mode __match_mode, _StateIdT)
492  {
493  if (_M_search_mode == _Search_mode::_DFS)
494  {
495  __glibcxx_assert(!_M_has_sol);
496  if (__match_mode == _Match_mode::_Exact)
497  _M_has_sol = _M_current == _M_end;
498  else
499  _M_has_sol = true;
500  if (_M_current == _M_begin
501  && (_M_flags & regex_constants::match_not_null))
502  _M_has_sol = false;
503  if (_M_has_sol)
504  {
505  if (_M_nfa._M_flags & regex_constants::ECMAScript)
506  _M_results = _M_cur_results;
507  else // POSIX
508  {
509  __glibcxx_assert(_M_get_sol_pos());
510  // Here's POSIX's logic: match the longest one. However
511  // we never know which one (lhs or rhs of "|") is longer
512  // unless we try both of them and compare the results.
513  // The member variable _M_sol_pos records the end
514  // position of the last successful match. It's better
515  // to be larger, because POSIX regex is always greedy.
516  // TODO: This could be slow.
517  if (*_M_get_sol_pos() == _BiIter()
518  || std::distance(_M_begin, *_M_get_sol_pos())
519  < std::distance(_M_begin, _M_current))
520  {
521  *_M_get_sol_pos() = _M_current;
522  _M_results = _M_cur_results;
523  }
524  }
525  }
526  }
527  else
528  {
529  if (_M_current == _M_begin
530  && (_M_flags & regex_constants::match_not_null))
531  return;
532  if (__match_mode == _Match_mode::_Prefix || _M_current == _M_end)
533  if (!_M_has_sol)
534  {
535  _M_has_sol = true;
536  _M_results = _M_cur_results;
537  }
538  }
539  }
540 
541  template<typename _BiIter, typename _Alloc, typename _TraitsT>
542  void _Executor<_BiIter, _Alloc, _TraitsT>::
543  _M_handle_alternative(_Match_mode, _StateIdT __i)
544  {
545  const auto& __state = _M_nfa[__i];
546  if (_M_nfa._M_flags & regex_constants::ECMAScript)
547  {
548  // TODO: Fix BFS support. It is wrong.
549  // Pick lhs if it matches. Only try rhs if it doesn't.
550  _M_frames.emplace_back(_S_fopcode_fallback_next, __state._M_next,
551  _M_current);
552  _M_frames.emplace_back(_S_fopcode_next, __state._M_alt);
553  }
554  else
555  {
556  // Try both and compare the result.
557  // See "case _S_opcode_accept:" handling above.
558  _M_frames.emplace_back(_S_fopcode_posix_alternative, __state._M_next,
559  _M_current);
560  _M_frames.emplace_back(_S_fopcode_next, __state._M_alt);
561  }
562  }
563 
564  template<typename _BiIter, typename _Alloc, typename _TraitsT>
565 #ifdef __OPTIMIZE__
566  [[__gnu__::__always_inline__]]
567 #endif
568  inline void _Executor<_BiIter, _Alloc, _TraitsT>::
569  _M_node(_Match_mode __match_mode, _StateIdT __i)
570  {
571  if (_M_visited(__i))
572  return;
573 
574  switch (_M_nfa[__i]._M_opcode())
575  {
576  case _S_opcode_repeat:
577  _M_handle_repeat(__match_mode, __i); break;
578  case _S_opcode_subexpr_begin:
579  _M_handle_subexpr_begin(__match_mode, __i); break;
580  case _S_opcode_subexpr_end:
581  _M_handle_subexpr_end(__match_mode, __i); break;
582  case _S_opcode_line_begin_assertion:
583  _M_handle_line_begin_assertion(__match_mode, __i); break;
584  case _S_opcode_line_end_assertion:
585  _M_handle_line_end_assertion(__match_mode, __i); break;
586  case _S_opcode_word_boundary:
587  _M_handle_word_boundary(__match_mode, __i); break;
588  case _S_opcode_subexpr_lookahead:
589  _M_handle_subexpr_lookahead(__match_mode, __i); break;
590  case _S_opcode_match:
591  _M_handle_match(__match_mode, __i); break;
592  case _S_opcode_backref:
593  if (_M_search_mode == _Search_mode::_DFS)
594  _M_handle_backref(__match_mode, __i);
595  else
596  __builtin_unreachable();
597  break;
598  case _S_opcode_accept:
599  _M_handle_accept(__match_mode, __i); break;
600  case _S_opcode_alternative:
601  _M_handle_alternative(__match_mode, __i); break;
602  default:
603  __glibcxx_assert(false);
604  }
605  }
606 
607  template<typename _BiIter, typename _Alloc, typename _TraitsT>
608  void _Executor<_BiIter, _Alloc, _TraitsT>::
609  _M_dfs(_Match_mode __match_mode, _StateIdT __start)
610  {
611  const bool __dfs_mode = (_M_search_mode == _Search_mode::_DFS);
612  _M_frames.emplace_back(_S_fopcode_next, __start);
613 
614  while (!_M_frames.empty())
615  {
616  _ExecutorFrame<_BiIter> __frame = std::move(_M_frames.back());
617  _M_frames.pop_back();
618 
619  switch (__frame._M_op)
620  {
621  case _S_fopcode_fallback_next:
622  if (_M_has_sol)
623  break;
624  if (__dfs_mode)
625  _M_current = __frame._M_pos;
626  [[__fallthrough__]];
627  case _S_fopcode_next:
628  _M_node(__match_mode, __frame._M_state_id);
629  break;
630 
631  case _S_fopcode_fallback_rep_once_more:
632  if (_M_has_sol)
633  break;
634  if (__dfs_mode)
635  _M_current = __frame._M_pos;
636  [[__fallthrough__]];
637  case _S_fopcode_rep_once_more:
638  _M_rep_once_more(__match_mode, __frame._M_state_id);
639  break;
640 
641  case _S_fopcode_posix_alternative:
642  _M_frames.emplace_back(_S_fopcode_merge_sol, 0, _M_has_sol);
643  _M_frames.emplace_back(_S_fopcode_next, __frame._M_state_id);
644  if (__dfs_mode)
645  _M_current = __frame._M_pos;
646  _M_has_sol = false;
647  break;
648 
649  case _S_fopcode_merge_sol:
650  _M_has_sol |= __frame._M_val;
651  break;
652 
653  case _S_fopcode_restore_cur_results:
654  if (!__frame._M_subexpr_end)
655  _M_cur_results[__frame._M_state_id].first = __frame._M_pos;
656  else
657  {
658  _M_cur_results[__frame._M_state_id].second = __frame._M_pos;
659  _M_cur_results[__frame._M_state_id].matched = __frame._M_matched;
660  }
661  break;
662 
663  case _S_fopcode_restore_rep_count:
664  _M_rep_count[__frame._M_state_id].first = __frame._M_pos;
665  _M_rep_count[__frame._M_state_id].second = __frame._M_count;
666  break;
667 
668  case _S_fopcode_decrement_rep_count:
669  _M_rep_count[__frame._M_state_id].second--;
670  break;
671  }
672  }
673  }
674 
675  // Return whether now is at some word boundary.
676  template<typename _BiIter, typename _Alloc, typename _TraitsT>
677  bool _Executor<_BiIter, _Alloc, _TraitsT>::
678  _M_word_boundary() const
679  {
680  if (_M_current == _M_begin && (_M_flags & regex_constants::match_not_bow))
681  return false;
682  if (_M_current == _M_end && (_M_flags & regex_constants::match_not_eow))
683  return false;
684 
685  bool __left_is_word = false;
686  if (_M_current != _M_begin
687  || (_M_flags & regex_constants::match_prev_avail))
688  {
689  auto __prev = _M_current;
690  if (_M_is_word(*std::prev(__prev)))
691  __left_is_word = true;
692  }
693  bool __right_is_word =
694  _M_current != _M_end && _M_is_word(*_M_current);
695 
696  return __left_is_word != __right_is_word;
697  }
698 } // namespace __detail
699 #pragma GCC diagnostic pop
700 
701 _GLIBCXX_END_NAMESPACE_VERSION
702 } // namespace
std::regex_constants::match_not_bow
constexpr match_flag_type match_not_bow
Definition: regex_constants.h:293
std::move
constexpr std::remove_reference< _Tp >::type && move(_Tp &&__t) noexcept
Convert a value to an rvalue.
Definition: move.h:138
std::regex_constants::icase
constexpr syntax_option_type icase
Definition: regex_constants.h:89
std
ISO C++ entities toplevel namespace is std.
std::fill_n
constexpr _OI fill_n(_OI __first, _Size __n, const _Tp &__value)
Fills the range [first,first+n) with copies of value.
Definition: stl_algobase.h:1181
std::ctype
Primary class template ctype facet.
Definition: locale_facets.h:617
std::regex_constants::ECMAScript
constexpr syntax_option_type ECMAScript
Definition: regex_constants.h:120
std::distance
constexpr iterator_traits< _InputIterator >::difference_type distance(_InputIterator __first, _InputIterator __last)
A generalization of pointer arithmetic.
Definition: stl_iterator_base_funcs.h:172
std::regex_constants::match_not_null
constexpr match_flag_type match_not_null
Definition: regex_constants.h:310
std::regex_constants::match_continuous
constexpr match_flag_type match_continuous
Definition: regex_constants.h:315
std::regex_traits
Describes aspects of a regular expression.
Definition: regex.h:99
std::regex_constants::match_prev_avail
constexpr match_flag_type match_prev_avail
Definition: regex_constants.h:323
std::regex_constants::match_not_eow
constexpr match_flag_type match_not_eow
Definition: regex_constants.h:299