libstdc++
shared_ptr_base.h
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1 // shared_ptr and weak_ptr implementation details -*- C++ -*-
2 
3 // Copyright (C) 2007-2026 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 // GCC Note: Based on files from version 1.32.0 of the Boost library.
26 
27 // shared_count.hpp
28 // Copyright (c) 2001, 2002, 2003 Peter Dimov and Multi Media Ltd.
29 
30 // shared_ptr.hpp
31 // Copyright (C) 1998, 1999 Greg Colvin and Beman Dawes.
32 // Copyright (C) 2001, 2002, 2003 Peter Dimov
33 
34 // weak_ptr.hpp
35 // Copyright (C) 2001, 2002, 2003 Peter Dimov
36 
37 // enable_shared_from_this.hpp
38 // Copyright (C) 2002 Peter Dimov
39 
40 // Distributed under the Boost Software License, Version 1.0. (See
41 // accompanying file LICENSE_1_0.txt or copy at
42 // http://www.boost.org/LICENSE_1_0.txt)
43 
44 /** @file bits/shared_ptr_base.h
45  * This is an internal header file, included by other library headers.
46  * Do not attempt to use it directly. @headername{memory}
47  */
48 
49 #ifndef _SHARED_PTR_BASE_H
50 #define _SHARED_PTR_BASE_H 1
51 
52 #include <typeinfo>
53 #include <bits/allocated_ptr.h>
54 #include <bits/allocator.h>
55 #include <bits/exception_defines.h>
56 #include <bits/functional_hash.h>
57 #include <bits/refwrap.h>
58 #include <bits/stl_function.h> // std::less
59 #include <bits/unique_ptr.h>
60 #include <ext/aligned_buffer.h>
61 #include <ext/atomicity.h>
62 #include <ext/concurrence.h>
63 #if __cplusplus >= 202002L
64 # include <compare>
65 # include <bits/align.h> // std::align
66 # include <bits/stl_uninitialized.h>
67 #endif
68 
69 namespace std _GLIBCXX_VISIBILITY(default)
70 {
71 _GLIBCXX_BEGIN_NAMESPACE_VERSION
72 
73 #if _GLIBCXX_USE_DEPRECATED
74 #pragma GCC diagnostic push
75 #pragma GCC diagnostic ignored "-Wdeprecated-declarations"
76  template<typename> class auto_ptr;
77 #pragma GCC diagnostic pop
78 #endif
79 
80  /**
81  * @brief Exception possibly thrown by @c shared_ptr.
82  * @ingroup exceptions
83  */
85  {
86  public:
87  virtual char const* what() const noexcept;
88 
89  virtual ~bad_weak_ptr() noexcept;
90  };
91 
92  // Substitute for bad_weak_ptr object in the case of -fno-exceptions.
93  inline void
94  __throw_bad_weak_ptr()
95  { _GLIBCXX_THROW_OR_ABORT(bad_weak_ptr()); }
96 
97  using __gnu_cxx::_Lock_policy;
98  using __gnu_cxx::__default_lock_policy;
99  using __gnu_cxx::_S_single;
100  using __gnu_cxx::_S_mutex;
101  using __gnu_cxx::_S_atomic;
102 
103  // Empty helper class except when the template argument is _S_mutex.
104  template<_Lock_policy _Lp>
105  class _Mutex_base
106  {
107  protected:
108  // The atomic policy uses fully-fenced builtins, single doesn't care.
109  enum { _S_need_barriers = 0 };
110  };
111 
112  template<>
113  class _Mutex_base<_S_mutex>
114  : public __gnu_cxx::__mutex
115  {
116  protected:
117  // This policy is used when atomic builtins are not available.
118  // The replacement atomic operations might not have the necessary
119  // memory barriers.
120  enum { _S_need_barriers = 1 };
121  };
122 
123  template<_Lock_policy _Lp = __default_lock_policy>
124  class _Sp_counted_base
125  : public _Mutex_base<_Lp>
126  {
127  public:
128  _Sp_counted_base() noexcept
129  : _M_use_count(1), _M_weak_count(1) { }
130 
131  virtual
132  ~_Sp_counted_base() noexcept
133  { }
134 
135  // Called when _M_use_count drops to zero, to release the resources
136  // managed by *this.
137  virtual void
138  _M_dispose() noexcept = 0;
139 
140  // Called when _M_weak_count drops to zero.
141  virtual void
142  _M_destroy() noexcept
143  { delete this; }
144 
145  virtual void*
146  _M_get_deleter(const std::type_info&) noexcept = 0;
147 
148  // Increment the use count (used when the count is greater than zero).
149  void
150  _M_add_ref_copy()
151  { _S_chk(__gnu_cxx::__exchange_and_add_dispatch(&_M_use_count, 1)); }
152 
153  // Increment the use count if it is non-zero, throw otherwise.
154  void
155  _M_add_ref_lock()
156  {
157  if (!_M_add_ref_lock_nothrow())
158  __throw_bad_weak_ptr();
159  }
160 
161  // Increment the use count if it is non-zero.
162  bool
163  _M_add_ref_lock_nothrow() noexcept;
164 
165  // Decrement the use count.
166  void
167  _M_release() noexcept;
168 
169  // Called by _M_release() when the use count reaches zero.
170  void
171  _M_release_last_use() noexcept
172  {
173  _GLIBCXX_SYNCHRONIZATION_HAPPENS_AFTER(&_M_use_count);
174  _M_dispose();
175  // There must be a memory barrier between dispose() and destroy()
176  // to ensure that the effects of dispose() are observed in the
177  // thread that runs destroy().
178  // See http://gcc.gnu.org/ml/libstdc++/2005-11/msg00136.html
179  if (_Mutex_base<_Lp>::_S_need_barriers)
180  {
181  __atomic_thread_fence (__ATOMIC_ACQ_REL);
182  }
183 
184  // Be race-detector-friendly. For more info see bits/c++config.
185  _GLIBCXX_SYNCHRONIZATION_HAPPENS_BEFORE(&_M_weak_count);
186  if (__gnu_cxx::__exchange_and_add_dispatch(&_M_weak_count,
187  -1) == 1)
188  {
189  _GLIBCXX_SYNCHRONIZATION_HAPPENS_AFTER(&_M_weak_count);
190  _M_destroy();
191  }
192  }
193 
194  // As above, but 'noinline' to reduce code size on the cold path.
195  __attribute__((__noinline__))
196  void
197  _M_release_last_use_cold() noexcept
198  { _M_release_last_use(); }
199 
200  // Increment the weak count.
201  void
202  _M_weak_add_ref() noexcept
203  {
204  // _M_weak_count can always use negative values because it cannot be
205  // observed by users (unlike _M_use_count). See _S_chk for details.
206  constexpr _Atomic_word __max = -1;
207  if (__gnu_cxx::__exchange_and_add_dispatch(&_M_weak_count, 1) == __max)
208  [[__unlikely__]] __builtin_trap();
209  }
210 
211  // Decrement the weak count.
212  void
213  _M_weak_release() noexcept
214  {
215  // Be race-detector-friendly. For more info see bits/c++config.
216  _GLIBCXX_SYNCHRONIZATION_HAPPENS_BEFORE(&_M_weak_count);
217  if (__gnu_cxx::__exchange_and_add_dispatch(&_M_weak_count, -1) == 1)
218  {
219  _GLIBCXX_SYNCHRONIZATION_HAPPENS_AFTER(&_M_weak_count);
220  if (_Mutex_base<_Lp>::_S_need_barriers)
221  {
222  // See _M_release(),
223  // destroy() must observe results of dispose()
224  __atomic_thread_fence (__ATOMIC_ACQ_REL);
225  }
226  _M_destroy();
227  }
228  }
229 
230  long
231  _M_get_use_count() const noexcept
232  {
233  // No memory barrier is used here so there is no synchronization
234  // with other threads.
235  auto __count = __atomic_load_n(&_M_use_count, __ATOMIC_RELAXED);
236 
237  // If long is wider than _Atomic_word then we can treat _Atomic_word
238  // as unsigned, and so double its usable range. If the widths are the
239  // same then casting to unsigned and then to long is a no-op.
240  return static_cast<_Unsigned_count_type>(__count);
241  }
242 
243  private:
244  _Sp_counted_base(_Sp_counted_base const&) = delete;
245  _Sp_counted_base& operator=(_Sp_counted_base const&) = delete;
246 
247 #pragma GCC diagnostic push
248 #pragma GCC diagnostic ignored "-Wignored-attributes"
249  // This is only to be used for arithmetic, not for atomic ops.
250  using _Unsigned_count_type = make_unsigned<_Atomic_word>::type;
251 #pragma GCC diagnostic pop
252 
253  // Called when incrementing _M_use_count to cause a trap on overflow.
254  // This should be passed the value of the counter before the increment.
255  static void
256  _S_chk(_Atomic_word __count)
257  {
258  constexpr _Atomic_word __max_atomic_word = _Unsigned_count_type(-1)/2;
259 
260  // __max is the maximum allowed value for the shared reference count.
261  // All valid reference count values need to fit into [0,LONG_MAX)
262  // because users can observe the count via shared_ptr::use_count().
263  //
264  // When long is wider than _Atomic_word, _M_use_count can go negative
265  // and the cast in _Sp_counted_base::use_count() will turn it into a
266  // positive value suitable for returning to users. The implementation
267  // only cares whether _M_use_count reaches zero after a decrement,
268  // so negative values are not a problem internally.
269  // So when possible, use -1 for __max (incrementing past that would
270  // overflow _M_use_count to 0, which means an empty shared_ptr).
271  //
272  // When long is not wider than _Atomic_word, __max is just the type's
273  // maximum positive value. We cannot use negative counts because they
274  // would not fit in [0,LONG_MAX) after casting to an unsigned type,
275  // which would cause use_count() to return bogus values.
276  constexpr _Atomic_word __max
277  = sizeof(long) > sizeof(_Atomic_word) ? -1 : __max_atomic_word;
278 
279  if (__count == __max) [[__unlikely__]]
280  __builtin_trap();
281  }
282 
283  _Atomic_word _M_use_count; // #shared
284  _Atomic_word _M_weak_count; // #weak + (#shared != 0)
285  };
286 
287  // We use __atomic_add_single and __exchange_and_add_single in the _S_single
288  // member specializations because they use unsigned arithmetic and so avoid
289  // undefined overflow.
290  template<>
291  inline void
292  _Sp_counted_base<_S_single>::_M_add_ref_copy()
293  {
294  _S_chk(_M_use_count);
295  __gnu_cxx::__atomic_add_single(&_M_use_count, 1);
296  }
297 
298  template<>
299  inline void
300  _Sp_counted_base<_S_single>::_M_weak_release() noexcept
301  {
302  if (__gnu_cxx::__exchange_and_add_single(&_M_weak_count, -1) == 1)
303  _M_destroy();
304  }
305 
306  template<>
307  inline long
308  _Sp_counted_base<_S_single>::_M_get_use_count() const noexcept
309  {
310  return static_cast<_Unsigned_count_type>(_M_use_count);
311  }
312 
313 
314  template<>
315  inline bool
316  _Sp_counted_base<_S_single>::
317  _M_add_ref_lock_nothrow() noexcept
318  {
319  if (_M_use_count == 0)
320  return false;
321  _M_add_ref_copy();
322  return true;
323  }
324 
325  template<>
326  inline bool
327  _Sp_counted_base<_S_mutex>::
328  _M_add_ref_lock_nothrow() noexcept
329  {
330  __gnu_cxx::__scoped_lock sentry(*this);
331  if (auto __c = __gnu_cxx::__exchange_and_add_dispatch(&_M_use_count, 1))
332  _S_chk(__c);
333  else
334  {
335  // Count was zero, so we cannot lock it to get a shared_ptr.
336  // Reset to zero. This isn't racy, because there are no shared_ptr
337  // objects using this count and any other weak_ptr objects using it
338  // must call this function to modify _M_use_count, so would be
339  // synchronized by the mutex.
340  _M_use_count = 0;
341  return false;
342  }
343  return true;
344  }
345 
346  template<>
347  inline bool
348  _Sp_counted_base<_S_atomic>::
349  _M_add_ref_lock_nothrow() noexcept
350  {
351  // Perform lock-free add-if-not-zero operation.
352  _Atomic_word __count = _M_get_use_count();
353  do
354  {
355  if (__count == 0)
356  return false;
357  // Replace the current counter value with the old value + 1, as
358  // long as it's not changed meanwhile.
359  }
360  while (!__atomic_compare_exchange_n(&_M_use_count, &__count, __count + 1,
361  true, __ATOMIC_ACQ_REL,
362  __ATOMIC_RELAXED));
363  _S_chk(__count);
364  return true;
365  }
366 
367  template<>
368  inline void
369  _Sp_counted_base<_S_single>::_M_release() noexcept
370  {
371  if (__gnu_cxx::__exchange_and_add_single(&_M_use_count, -1) == 1)
372  {
373  _M_dispose();
374  _M_weak_release();
375  }
376  }
377 
378  template<>
379  inline void
380  _Sp_counted_base<_S_mutex>::_M_release() noexcept
381  {
382  // Be race-detector-friendly. For more info see bits/c++config.
383  _GLIBCXX_SYNCHRONIZATION_HAPPENS_BEFORE(&_M_use_count);
384  if (__gnu_cxx::__exchange_and_add_dispatch(&_M_use_count, -1) == 1)
385  {
386  _M_release_last_use();
387  }
388  }
389 
390  template<>
391  inline void
392  _Sp_counted_base<_S_atomic>::_M_release() noexcept
393  {
394 #pragma GCC diagnostic push
395 #pragma GCC diagnostic ignored "-Wc++17-extensions" // if constexpr
396  _GLIBCXX_SYNCHRONIZATION_HAPPENS_BEFORE(&_M_use_count);
397 #if ! _GLIBCXX_TSAN
398  constexpr bool __lock_free
399  = __atomic_always_lock_free(sizeof(long long), 0)
400  && __atomic_always_lock_free(sizeof(_Atomic_word), 0);
401  constexpr bool __double_word
402  = sizeof(long long) == 2 * sizeof(_Atomic_word);
403  // The ref-count members follow the vptr, so are aligned to
404  // alignof(void*).
405  constexpr bool __aligned = __alignof(long long) <= alignof(void*);
406  if constexpr (__lock_free && __double_word && __aligned)
407  {
408  constexpr int __wordbits = __CHAR_BIT__ * sizeof(_Atomic_word);
409  constexpr int __shiftbits = __double_word ? __wordbits : 0;
410  constexpr long long __unique_ref = 1LL + (1LL << __shiftbits);
411  auto __both_counts = reinterpret_cast<long long*>(&_M_use_count);
412 
413  _GLIBCXX_SYNCHRONIZATION_HAPPENS_BEFORE(&_M_weak_count);
414  if (__atomic_load_n(__both_counts, __ATOMIC_ACQUIRE) == __unique_ref)
415  {
416  // Both counts are 1, so there are no weak references and
417  // we are releasing the last strong reference. No other
418  // threads can observe the effects of this _M_release()
419  // call (e.g. calling use_count()) without a data race.
420  _M_weak_count = _M_use_count = 0;
421  _GLIBCXX_SYNCHRONIZATION_HAPPENS_AFTER(&_M_use_count);
422  _GLIBCXX_SYNCHRONIZATION_HAPPENS_AFTER(&_M_weak_count);
423  _M_dispose();
424  _M_destroy();
425  return;
426  }
427  if (__gnu_cxx::__exchange_and_add_dispatch(&_M_use_count, -1) == 1)
428  [[__unlikely__]]
429  {
430  _M_release_last_use_cold();
431  return;
432  }
433  }
434  else
435 #endif
436  if (__gnu_cxx::__exchange_and_add_dispatch(&_M_use_count, -1) == 1)
437  {
438  _M_release_last_use();
439  }
440 #pragma GCC diagnostic pop
441  }
442 
443  // Forward declarations.
444  template<typename _Tp, _Lock_policy _Lp = __default_lock_policy>
445  class __shared_ptr;
446 
447  template<typename _Tp, _Lock_policy _Lp = __default_lock_policy>
448  class __weak_ptr;
449 
450  template<typename _Tp, _Lock_policy _Lp = __default_lock_policy>
451  class __enable_shared_from_this;
452 
453  template<typename _Tp>
454  class shared_ptr;
455 
456  template<typename _Tp>
457  class weak_ptr;
458 
459  template<typename _Tp>
460  struct owner_less;
461 
462  template<typename _Tp>
463  class enable_shared_from_this;
464 
465  template<_Lock_policy _Lp = __default_lock_policy>
466  class __weak_count;
467 
468  template<_Lock_policy _Lp = __default_lock_policy>
469  class __shared_count;
470 
471 #ifdef __glibcxx_atomic_shared_ptr
472  template<typename>
473  class _Sp_atomic;
474 #endif
475 
476  // Counted ptr with no deleter or allocator support
477  template<typename _Ptr, _Lock_policy _Lp>
478  class _Sp_counted_ptr final : public _Sp_counted_base<_Lp>
479  {
480  public:
481  explicit
482  _Sp_counted_ptr(_Ptr __p) noexcept
483  : _M_ptr(__p) { }
484 
485  virtual void
486  _M_dispose() noexcept
487  { delete _M_ptr; }
488 
489  virtual void
490  _M_destroy() noexcept
491  { delete this; }
492 
493  virtual void*
494  _M_get_deleter(const std::type_info&) noexcept
495  { return nullptr; }
496 
497  _Sp_counted_ptr(const _Sp_counted_ptr&) = delete;
498  _Sp_counted_ptr& operator=(const _Sp_counted_ptr&) = delete;
499 
500  private:
501  _Ptr _M_ptr;
502  };
503 
504  template<>
505  inline void
506  _Sp_counted_ptr<nullptr_t, _S_single>::_M_dispose() noexcept { }
507 
508  template<>
509  inline void
510  _Sp_counted_ptr<nullptr_t, _S_mutex>::_M_dispose() noexcept { }
511 
512  template<>
513  inline void
514  _Sp_counted_ptr<nullptr_t, _S_atomic>::_M_dispose() noexcept { }
515 
516  // FIXME: once __has_cpp_attribute(__no_unique_address__)) is true for
517  // all supported compilers we can greatly simplify _Sp_ebo_helper.
518  // N.B. unconditionally applying the attribute could change layout for
519  // final types, which currently cannot use EBO so have a unique address.
520 
521  template<int _Nm, typename _Tp,
522  bool __use_ebo = !__is_final(_Tp) && __is_empty(_Tp)>
523  struct _Sp_ebo_helper;
524 
525  /// Specialization using EBO.
526  template<int _Nm, typename _Tp>
527  struct _Sp_ebo_helper<_Nm, _Tp, true> : private _Tp
528  {
529  explicit _Sp_ebo_helper(const _Tp& __tp) : _Tp(__tp) { }
530  explicit _Sp_ebo_helper(_Tp&& __tp) : _Tp(std::move(__tp)) { }
531 
532  static _Tp&
533  _S_get(_Sp_ebo_helper& __eboh) { return static_cast<_Tp&>(__eboh); }
534  };
535 
536  /// Specialization not using EBO.
537  template<int _Nm, typename _Tp>
538  struct _Sp_ebo_helper<_Nm, _Tp, false>
539  {
540  explicit _Sp_ebo_helper(const _Tp& __tp) : _M_tp(__tp) { }
541  explicit _Sp_ebo_helper(_Tp&& __tp) : _M_tp(std::move(__tp)) { }
542 
543  static _Tp&
544  _S_get(_Sp_ebo_helper& __eboh)
545  { return __eboh._M_tp; }
546 
547  private:
548  _Tp _M_tp;
549  };
550 
551  // Support for custom deleter and/or allocator
552  template<typename _Ptr, typename _Deleter, typename _Alloc, _Lock_policy _Lp>
553  class _Sp_counted_deleter final : public _Sp_counted_base<_Lp>
554  {
555  class _Impl : _Sp_ebo_helper<0, _Deleter>, _Sp_ebo_helper<1, _Alloc>
556  {
557  typedef _Sp_ebo_helper<0, _Deleter> _Del_base;
558  typedef _Sp_ebo_helper<1, _Alloc> _Alloc_base;
559 
560  public:
561  _Impl(_Ptr __p, _Deleter __d, const _Alloc& __a) noexcept
562  : _Del_base(std::move(__d)), _Alloc_base(__a), _M_ptr(__p)
563  { }
564 
565  _Deleter& _M_del() noexcept { return _Del_base::_S_get(*this); }
566  _Alloc& _M_alloc() noexcept { return _Alloc_base::_S_get(*this); }
567 
568  _Ptr _M_ptr;
569  };
570 
571  public:
572  using __allocator_type = __alloc_rebind<_Alloc, _Sp_counted_deleter>;
573 
574  // __d(__p) must not throw.
575  _Sp_counted_deleter(_Ptr __p, _Deleter __d) noexcept
576  : _M_impl(__p, std::move(__d), _Alloc()) { }
577 
578  // __d(__p) must not throw.
579  _Sp_counted_deleter(_Ptr __p, _Deleter __d, const _Alloc& __a) noexcept
580  : _M_impl(__p, std::move(__d), __a) { }
581 
582 #pragma GCC diagnostic push // PR tree-optimization/122197
583 #pragma GCC diagnostic ignored "-Wfree-nonheap-object"
584  template<typename> class auto_ptr;
585  ~_Sp_counted_deleter() noexcept { }
586 #pragma GCC diagnostic pop
587 
588  virtual void
589  _M_dispose() noexcept
590  { _M_impl._M_del()(_M_impl._M_ptr); }
591 
592  virtual void
593  _M_destroy() noexcept
594  {
595  __allocator_type __a(_M_impl._M_alloc());
596  __allocated_ptr<__allocator_type> __guard_ptr{ __a, this };
597  this->~_Sp_counted_deleter();
598  }
599 
600  virtual void*
601  _M_get_deleter(const type_info& __ti [[__gnu__::__unused__]]) noexcept
602  {
603 #if __cpp_rtti
604  // _GLIBCXX_RESOLVE_LIB_DEFECTS
605  // 2400. shared_ptr's get_deleter() should use addressof()
606  return __ti == typeid(_Deleter)
607  ? std::__addressof(_M_impl._M_del())
608  : nullptr;
609 #else
610  return nullptr;
611 #endif
612  }
613 
614  private:
615 #ifdef __glibcxx_out_ptr
616  template<typename, typename, typename...> friend class out_ptr_t;
617 #endif
618  _Impl _M_impl;
619  };
620 
621  // helpers for make_shared / allocate_shared
622 
623  struct _Sp_make_shared_tag
624  {
625  private:
626  template<typename _Tp, typename _Alloc, _Lock_policy _Lp>
627  friend class _Sp_counted_ptr_inplace;
628 
629  static const type_info&
630  _S_ti() noexcept _GLIBCXX_VISIBILITY(default)
631  {
632  alignas(type_info) static constexpr char __tag[sizeof(type_info)] = { };
633  return reinterpret_cast<const type_info&>(__tag);
634  }
635 
636  static bool _S_eq(const type_info&) noexcept;
637  };
638 
639  template<typename _Alloc>
640  struct _Sp_alloc_shared_tag
641  {
642  const _Alloc& _M_a;
643  };
644 
645  template<typename _Tp, typename _Alloc, _Lock_policy _Lp>
646  class _Sp_counted_ptr_inplace final : public _Sp_counted_base<_Lp>
647  {
648  class _Impl : _Sp_ebo_helper<0, _Alloc>
649  {
650  typedef _Sp_ebo_helper<0, _Alloc> _A_base;
651 
652  public:
653  explicit _Impl(_Alloc __a) noexcept : _A_base(__a) { }
654 
655  _Alloc& _M_alloc() noexcept { return _A_base::_S_get(*this); }
656 
657  __gnu_cxx::__aligned_buffer<__remove_cv_t<_Tp>> _M_storage;
658  };
659 
660  public:
661  using __allocator_type = __alloc_rebind<_Alloc, _Sp_counted_ptr_inplace>;
662 
663  // Alloc parameter is not a reference so doesn't alias anything in __args
664  template<typename... _Args>
665  _Sp_counted_ptr_inplace(_Alloc __a, _Args&&... __args)
666  : _M_impl(__a)
667  {
668  // _GLIBCXX_RESOLVE_LIB_DEFECTS
669  // 2070. allocate_shared should use allocator_traits<A>::construct
671  std::forward<_Args>(__args)...); // might throw
672  }
673 
674 #pragma GCC diagnostic push // PR tree-optimization/122197
675 #pragma GCC diagnostic ignored "-Warray-bounds"
676  ~_Sp_counted_ptr_inplace() noexcept { }
677 #pragma GCC diagnostic pop
678 
679  virtual void
680  _M_dispose() noexcept
681  {
682  allocator_traits<_Alloc>::destroy(_M_impl._M_alloc(), _M_ptr());
683  }
684 
685  // Override because the allocator needs to know the dynamic type
686  virtual void
687  _M_destroy() noexcept
688  {
689  __allocator_type __a(_M_impl._M_alloc());
690  __allocated_ptr<__allocator_type> __guard_ptr{ __a, this };
691  this->~_Sp_counted_ptr_inplace();
692  }
693 
694  private:
695  friend class __shared_count<_Lp>; // To be able to call _M_ptr().
696 
697  // No longer used, but code compiled against old libstdc++ headers
698  // might still call it from __shared_ptr ctor to get the pointer out.
699  virtual void*
700  _M_get_deleter(const std::type_info& __ti) noexcept override
701  {
702  // Check for the fake type_info first, so we don't try to access it
703  // as a real type_info object. Otherwise, check if it's the real
704  // type_info for this class. With RTTI enabled we can check directly,
705  // or call a library function to do it.
706  if (&__ti == &_Sp_make_shared_tag::_S_ti()
707  ||
708 #if __cpp_rtti
709  __ti == typeid(_Sp_make_shared_tag)
710 #else
711  _Sp_make_shared_tag::_S_eq(__ti)
712 #endif
713  )
714  return _M_ptr();
715  return nullptr;
716  }
717 
718  __remove_cv_t<_Tp>*
719  _M_ptr() noexcept { return _M_impl._M_storage._M_ptr(); }
720 
721  _Impl _M_impl;
722  };
723 
724 #ifdef __glibcxx_smart_ptr_for_overwrite // C++ >= 20 && HOSTED
725  struct _Sp_overwrite_tag { };
726 
727  // Partial specialization used for make_shared_for_overwrite<non-array>().
728  // This partial specialization is used when the allocator's value type
729  // is the special _Sp_overwrite_tag type.
730 #if __cpp_concepts
731  template<typename _Tp, typename _Alloc, _Lock_policy _Lp>
732  requires is_same_v<typename _Alloc::value_type, _Sp_overwrite_tag>
733  class _Sp_counted_ptr_inplace<_Tp, _Alloc, _Lp> final
734 #else
735  template<typename _Tp, template<typename> class _Alloc, _Lock_policy _Lp>
736  class _Sp_counted_ptr_inplace<_Tp, _Alloc<_Sp_overwrite_tag>, _Lp> final
737 #endif
738  : public _Sp_counted_base<_Lp>
739  {
740  [[no_unique_address]] _Alloc _M_alloc;
741 
742  union {
743  remove_cv_t<_Tp> _M_obj;
744  char _M_unused;
745  };
746 
747  friend class __shared_count<_Lp>; // To be able to call _M_ptr().
748 
749  auto _M_ptr() noexcept { return std::__addressof(_M_obj); }
750 
751  public:
752  using __allocator_type = __alloc_rebind<_Alloc, _Sp_counted_ptr_inplace>;
753 
754  _Sp_counted_ptr_inplace(const _Alloc& __a)
755  : _M_alloc(__a)
756  {
757  ::new((void*)_M_ptr()) _Tp; // default-initialized, for overwrite.
758  }
759 
760  ~_Sp_counted_ptr_inplace() noexcept { }
761 
762  virtual void
763  _M_dispose() noexcept
764  {
765  _M_obj.~_Tp();
766  }
767 
768  // Override because the allocator needs to know the dynamic type
769  virtual void
770  _M_destroy() noexcept
771  {
772  using pointer = typename allocator_traits<__allocator_type>::pointer;
773  __allocator_type __a(_M_alloc);
774  auto __p = pointer_traits<pointer>::pointer_to(*this);
775  __allocated_ptr<__allocator_type> __guard_ptr{ __a, __p };
776  this->~_Sp_counted_ptr_inplace();
777  }
778 
779  void*
780  _M_get_deleter(const std::type_info&) noexcept override
781  { return nullptr; }
782  };
783 #endif // __glibcxx_smart_ptr_for_overwrite
784 
785 #if __glibcxx_shared_ptr_arrays >= 201707L // C++ >= 20 && HOSTED
786  struct _Sp_overwrite_tag;
787 
788  // For make_shared<T[]>, make_shared<T[N]>, allocate_shared<T[]> etc.
789  template<typename _Alloc>
790  struct _Sp_counted_array_base
791  {
792  [[no_unique_address]] _Alloc _M_alloc{};
793  size_t _M_n = 0;
794  bool _M_overwrite = false;
795 
797  _M_alloc_array(size_t __tail)
798  {
799  return allocator_traits<_Alloc>::allocate(_M_alloc, _M_n + __tail);
800  }
801 
802  void
803  _M_dealloc_array(typename allocator_traits<_Alloc>::pointer __p,
804  size_t __tail)
805  {
806  allocator_traits<_Alloc>::deallocate(_M_alloc, __p, _M_n + __tail);
807  }
808 
809  // Init the array elements
810  template<typename _Init>
811  void
812  _M_init(typename allocator_traits<_Alloc>::value_type* __p,
813  _Init __init)
814  {
815  using _Tp = remove_pointer_t<_Init>;
816  using _Up = typename allocator_traits<_Alloc>::value_type;
817 
818  if constexpr (is_same_v<_Init, _Sp_overwrite_tag>)
819  {
821  _M_overwrite = true;
822  }
823  else if (__init == nullptr)
824  std::__uninitialized_default_n_a(__p, _M_n, _M_alloc);
825  else if constexpr (!is_array_v<_Tp>)
826  std::__uninitialized_fill_n_a(__p, _M_n, *__init, _M_alloc);
827  else
828  {
829 #pragma GCC diagnostic push
830 #pragma GCC diagnostic ignored "-Wunused-local-typedefs"
831  struct _Iter
832  {
833  using value_type = _Up;
834  using difference_type = ptrdiff_t;
835  using pointer = const _Up*;
836  using reference = const _Up&;
837  using iterator_category = forward_iterator_tag;
838 
839  const _Up* _M_p;
840  size_t _M_len;
841  size_t _M_pos;
842 
843  _Iter& operator++() { ++_M_pos; return *this; }
844  _Iter operator++(int) { auto __i(*this); ++_M_pos; return __i; }
845 
846  reference operator*() const { return _M_p[_M_pos % _M_len]; }
847  pointer operator->() const { return _M_p + (_M_pos % _M_len); }
848 
849  bool operator==(const _Iter& __i) const
850  { return _M_pos == __i._M_pos; }
851  };
852 #pragma GCC diagnostic pop
853 
854  _Iter __first{_S_first_elem(__init), sizeof(_Tp) / sizeof(_Up)};
855  _Iter __last = __first;
856  __last._M_pos = _M_n;
857  std::__uninitialized_copy_a(__first, __last, __p, _M_alloc);
858  }
859  }
860 
861  protected:
862  // Destroy the array elements
863  void
864  _M_dispose_array(typename allocator_traits<_Alloc>::value_type* __p)
865  {
866  if (_M_overwrite)
867  std::destroy_n(__p, _M_n);
868  else
869  {
870  size_t __n = _M_n;
871  while (__n--)
872  allocator_traits<_Alloc>::destroy(_M_alloc, __p + __n);
873  }
874  }
875 
876  private:
877  template<typename _Tp>
878  static _Tp*
879  _S_first_elem(_Tp* __p) { return __p; }
880 
881  template<typename _Tp, size_t _Nm>
882  static auto
883  _S_first_elem(_Tp (*__p)[_Nm]) { return _S_first_elem(*__p); }
884  };
885 
886  // Control block for make_shared<T[]>, make_shared<T[N]> etc. that will be
887  // placed into unused memory at the end of the array.
888  template<typename _Alloc, _Lock_policy _Lp>
889  class _Sp_counted_array final
890  : public _Sp_counted_base<_Lp>, _Sp_counted_array_base<_Alloc>
891  {
892  using pointer = typename allocator_traits<_Alloc>::pointer;
893 
894  pointer _M_alloc_ptr;
895 
896  auto _M_ptr() const noexcept { return std::to_address(_M_alloc_ptr); }
897 
898  friend class __shared_count<_Lp>; // To be able to call _M_ptr().
899 
900  public:
901  _Sp_counted_array(const _Sp_counted_array_base<_Alloc>& __a,
902  pointer __p) noexcept
903  : _Sp_counted_array_base<_Alloc>(__a), _M_alloc_ptr(__p)
904  { }
905 
906  ~_Sp_counted_array() = default;
907 
908  virtual void
909  _M_dispose() noexcept
910  {
911  if (this->_M_n)
912  this->_M_dispose_array(_M_ptr());
913  }
914 
915  // Override because the allocator needs to know the dynamic type
916  virtual void
917  _M_destroy() noexcept
918  {
919  _Sp_counted_array_base<_Alloc> __a = *this;
920  pointer __p = _M_alloc_ptr;
921  this->~_Sp_counted_array();
922  __a._M_dealloc_array(__p, _S_tail());
923  }
924 
925  // Returns the number of additional array elements that must be
926  // allocated in order to store a _Sp_counted_array at the end.
927  static constexpr size_t
928  _S_tail()
929  {
930  // The array elemenent type.
931  using _Tp = typename allocator_traits<_Alloc>::value_type;
932 
933  // The space needed to store a _Sp_counted_array object.
934  size_t __bytes = sizeof(_Sp_counted_array);
935 
936  // Add any padding needed for manual alignment within the buffer.
937  if constexpr (alignof(_Tp) < alignof(_Sp_counted_array))
938  __bytes += alignof(_Sp_counted_array) - alignof(_Tp);
939 
940  return (__bytes + sizeof(_Tp) - 1) / sizeof(_Tp);
941  }
942 
943  void*
944  _M_get_deleter(const std::type_info&) noexcept override
945  { return nullptr; }
946  };
947 #endif // __glibcxx_shared_ptr_arrays >= 201707L
948 
949  // The default deleter for shared_ptr<T[]> and shared_ptr<T[N]>.
950  struct __sp_array_delete
951  {
952  template<typename _Yp>
953  void operator()(_Yp* __p) const { delete[] __p; }
954  };
955 
956  template<_Lock_policy _Lp>
957  class __shared_count
958  {
959  // Prevent _Sp_alloc_shared_tag from matching the shared_ptr(P, D) ctor.
960  template<typename _Tp>
961  struct __not_alloc_shared_tag { using type = void; };
962 
963  template<typename _Tp>
964  struct __not_alloc_shared_tag<_Sp_alloc_shared_tag<_Tp>> { };
965 
966 #if __glibcxx_shared_ptr_arrays >= 201707L // C++ >= 20 && HOSTED
967  template<typename _Alloc>
968  struct __not_alloc_shared_tag<_Sp_counted_array_base<_Alloc>> { };
969 #endif
970 
971  public:
972  constexpr __shared_count() noexcept : _M_pi(0)
973  { }
974 
975  template<typename _Ptr>
976  explicit
977  __shared_count(_Ptr __p) : _M_pi(0)
978  {
979  __try
980  {
981  _M_pi = new _Sp_counted_ptr<_Ptr, _Lp>(__p);
982  }
983  __catch(...)
984  {
985  delete __p;
986  __throw_exception_again;
987  }
988  }
989 
990  template<typename _Ptr>
991  __shared_count(_Ptr __p, /* is_array = */ false_type)
992  : __shared_count(__p)
993  { }
994 
995  template<typename _Ptr>
996  __shared_count(_Ptr __p, /* is_array = */ true_type)
997  : __shared_count(__p, __sp_array_delete{}, allocator<void>())
998  { }
999 
1000  template<typename _Ptr, typename _Deleter,
1001  typename = typename __not_alloc_shared_tag<_Deleter>::type>
1002  __shared_count(_Ptr __p, _Deleter __d)
1003  : __shared_count(__p, std::move(__d), allocator<void>())
1004  { }
1005 
1006  template<typename _Ptr, typename _Deleter, typename _Alloc,
1007  typename = typename __not_alloc_shared_tag<_Deleter>::type>
1008  __shared_count(_Ptr __p, _Deleter __d, _Alloc __a) : _M_pi(0)
1009  {
1010  typedef _Sp_counted_deleter<_Ptr, _Deleter, _Alloc, _Lp> _Sp_cd_type;
1011  __try
1012  {
1013  typename _Sp_cd_type::__allocator_type __a2(__a);
1014  auto __guard = std::__allocate_guarded(__a2);
1015  _Sp_cd_type* __mem = __guard.get();
1016  ::new (__mem) _Sp_cd_type(__p, std::move(__d), std::move(__a));
1017  _M_pi = __mem;
1018  __guard = nullptr;
1019  }
1020  __catch(...)
1021  {
1022  __d(__p); // Call _Deleter on __p.
1023  __throw_exception_again;
1024  }
1025  }
1026 
1027  template<typename _Tp, typename _Alloc, typename... _Args>
1028  __shared_count(_Tp*& __p, _Sp_alloc_shared_tag<_Alloc> __a,
1029  _Args&&... __args)
1030  {
1031  using _Tp2 = __remove_cv_t<_Tp>;
1032  using _Sp_cp_type = _Sp_counted_ptr_inplace<_Tp2, _Alloc, _Lp>;
1033  typename _Sp_cp_type::__allocator_type __a2(__a._M_a);
1034  auto __guard = std::__allocate_guarded(__a2);
1035  _Sp_cp_type* __mem = __guard.get();
1036  auto __pi = ::new (__mem)
1037  _Sp_cp_type(__a._M_a, std::forward<_Args>(__args)...);
1038  __guard = nullptr;
1039  _M_pi = __pi;
1040  __p = __pi->_M_ptr();
1041  }
1042 
1043 #if __glibcxx_shared_ptr_arrays >= 201707L // C++ >= 20 && HOSTED
1044  template<typename _Tp, typename _Alloc, typename _Init>
1045  __shared_count(_Tp*& __p, const _Sp_counted_array_base<_Alloc>& __a,
1046  _Init __init)
1047  {
1048  using _Up = remove_all_extents_t<_Tp>;
1049  static_assert(is_same_v<_Up, typename _Alloc::value_type>);
1050 
1051  using _Sp_ca_type = _Sp_counted_array<_Alloc, _Lp>;
1052  const size_t __tail = _Sp_ca_type::_S_tail();
1053 
1054  struct _Guarded_ptr : _Sp_counted_array_base<_Alloc>
1055  {
1056  typename allocator_traits<_Alloc>::pointer _M_ptr;
1057 
1058  _Guarded_ptr(_Sp_counted_array_base<_Alloc> __a)
1059  : _Sp_counted_array_base<_Alloc>(__a),
1060  _M_ptr(this->_M_alloc_array(_Sp_ca_type::_S_tail()))
1061  { }
1062 
1063  ~_Guarded_ptr()
1064  {
1065  if (_M_ptr)
1066  this->_M_dealloc_array(_M_ptr, _Sp_ca_type::_S_tail());
1067  }
1068  };
1069 
1070  _Guarded_ptr __guard{__a};
1071  _Up* const __raw = std::to_address(__guard._M_ptr);
1072  __guard._M_init(__raw, __init); // might throw
1073 
1074  void* __c = __raw + __a._M_n;
1075  if constexpr (alignof(_Up) < alignof(_Sp_ca_type))
1076  {
1077  size_t __space = sizeof(_Up) * __tail;
1078  __c = std::align(alignof(_Sp_ca_type), sizeof(_Sp_ca_type),
1079  __c, __space);
1080  }
1081  auto __pi = ::new(__c) _Sp_ca_type(__guard, __guard._M_ptr);
1082  __guard._M_ptr = nullptr;
1083  _M_pi = __pi;
1084  __p = reinterpret_cast<_Tp*>(__raw);
1085  }
1086 #endif
1087 
1088 #if _GLIBCXX_USE_DEPRECATED
1089 #pragma GCC diagnostic push
1090 #pragma GCC diagnostic ignored "-Wdeprecated-declarations"
1091  // Special case for auto_ptr<_Tp> to provide the strong guarantee.
1092  template<typename _Tp>
1093  explicit
1094  __shared_count(std::auto_ptr<_Tp>&& __r);
1095 #pragma GCC diagnostic pop
1096 #endif
1097 
1098  // Special case for unique_ptr<_Tp,_Del> to provide the strong guarantee.
1099  template<typename _Tp, typename _Del>
1100  explicit
1101  __shared_count(std::unique_ptr<_Tp, _Del>&& __r) : _M_pi(0)
1102  {
1103  // _GLIBCXX_RESOLVE_LIB_DEFECTS
1104  // 2415. Inconsistency between unique_ptr and shared_ptr
1105  if (__r.get() == nullptr)
1106  return;
1107 
1108  using _Ptr = typename unique_ptr<_Tp, _Del>::pointer;
1109  using _Del2 = __conditional_t<is_reference<_Del>::value,
1110  reference_wrapper<typename remove_reference<_Del>::type>,
1111  _Del>;
1112  using _Sp_cd_type
1113  = _Sp_counted_deleter<_Ptr, _Del2, allocator<void>, _Lp>;
1114  using _Alloc = allocator<_Sp_cd_type>;
1115  using _Alloc_traits = allocator_traits<_Alloc>;
1116  _Alloc __a;
1117  _Sp_cd_type* __mem = _Alloc_traits::allocate(__a, 1);
1118  // _GLIBCXX_RESOLVE_LIB_DEFECTS
1119  // 3548. shared_ptr construction from unique_ptr should move
1120  // (not copy) the deleter
1121  _Alloc_traits::construct(__a, __mem, __r.release(),
1122  std::forward<_Del>(__r.get_deleter()));
1123  _M_pi = __mem;
1124  }
1125 
1126  // Throw bad_weak_ptr when __r._M_get_use_count() == 0.
1127  explicit __shared_count(const __weak_count<_Lp>& __r);
1128 
1129  // Does not throw if __r._M_get_use_count() == 0, caller must check.
1130  explicit
1131  __shared_count(const __weak_count<_Lp>& __r, std::nothrow_t) noexcept;
1132 
1133  ~__shared_count() noexcept
1134  {
1135  if (_M_pi != nullptr)
1136  _M_pi->_M_release();
1137  }
1138 
1139  __shared_count(const __shared_count& __r) noexcept
1140  : _M_pi(__r._M_pi)
1141  {
1142  if (_M_pi != nullptr)
1143  _M_pi->_M_add_ref_copy();
1144  }
1145 
1146  __shared_count&
1147  operator=(const __shared_count& __r) noexcept
1148  {
1149  _Sp_counted_base<_Lp>* __tmp = __r._M_pi;
1150  if (__tmp != _M_pi)
1151  {
1152  if (__tmp != nullptr)
1153  __tmp->_M_add_ref_copy();
1154  if (_M_pi != nullptr)
1155  _M_pi->_M_release();
1156  _M_pi = __tmp;
1157  }
1158  return *this;
1159  }
1160 
1161  void
1162  _M_swap(__shared_count& __r) noexcept
1163  {
1164  _Sp_counted_base<_Lp>* __tmp = __r._M_pi;
1165  __r._M_pi = _M_pi;
1166  _M_pi = __tmp;
1167  }
1168 
1169  long
1170  _M_get_use_count() const noexcept
1171  { return _M_pi ? _M_pi->_M_get_use_count() : 0; }
1172 
1173  bool
1174  _M_unique() const noexcept
1175  { return this->_M_get_use_count() == 1; }
1176 
1177  void*
1178  _M_get_deleter(const std::type_info& __ti) const noexcept
1179  { return _M_pi ? _M_pi->_M_get_deleter(__ti) : nullptr; }
1180 
1181  bool
1182  _M_less(const __shared_count& __rhs) const noexcept
1183  { return std::less<_Sp_counted_base<_Lp>*>()(this->_M_pi, __rhs._M_pi); }
1184 
1185  bool
1186  _M_less(const __weak_count<_Lp>& __rhs) const noexcept
1187  { return std::less<_Sp_counted_base<_Lp>*>()(this->_M_pi, __rhs._M_pi); }
1188 
1189 #ifdef __glibcxx_smart_ptr_owner_equality // >= C++26
1190  size_t
1191  _M_owner_hash() const noexcept
1192  { return std::hash<_Sp_counted_base<_Lp>*>()(this->_M_pi); }
1193 #endif
1194 
1195  // Friend function injected into enclosing namespace and found by ADL
1196  friend inline bool
1197  operator==(const __shared_count& __a, const __shared_count& __b) noexcept
1198  { return __a._M_pi == __b._M_pi; }
1199 
1200  private:
1201  friend class __weak_count<_Lp>;
1202 #ifdef __glibcxx_atomic_shared_ptr
1203  template<typename> friend class _Sp_atomic;
1204 #endif
1205 #ifdef __glibcxx_out_ptr
1206  template<typename, typename, typename...> friend class out_ptr_t;
1207 #endif
1208 
1209  _Sp_counted_base<_Lp>* _M_pi;
1210  };
1211 
1212 
1213  template<_Lock_policy _Lp>
1214  class __weak_count
1215  {
1216  public:
1217  constexpr __weak_count() noexcept : _M_pi(nullptr)
1218  { }
1219 
1220  __weak_count(const __shared_count<_Lp>& __r) noexcept
1221  : _M_pi(__r._M_pi)
1222  {
1223  if (_M_pi != nullptr)
1224  _M_pi->_M_weak_add_ref();
1225  }
1226 
1227  __weak_count(const __weak_count& __r) noexcept
1228  : _M_pi(__r._M_pi)
1229  {
1230  if (_M_pi != nullptr)
1231  _M_pi->_M_weak_add_ref();
1232  }
1233 
1234  __weak_count(__weak_count&& __r) noexcept
1235  : _M_pi(__r._M_pi)
1236  { __r._M_pi = nullptr; }
1237 
1238  ~__weak_count() noexcept
1239  {
1240  if (_M_pi != nullptr)
1241  _M_pi->_M_weak_release();
1242  }
1243 
1244  __weak_count&
1245  operator=(const __shared_count<_Lp>& __r) noexcept
1246  {
1247  _Sp_counted_base<_Lp>* __tmp = __r._M_pi;
1248  if (__tmp != nullptr)
1249  __tmp->_M_weak_add_ref();
1250  if (_M_pi != nullptr)
1251  _M_pi->_M_weak_release();
1252  _M_pi = __tmp;
1253  return *this;
1254  }
1255 
1256  __weak_count&
1257  operator=(const __weak_count& __r) noexcept
1258  {
1259  _Sp_counted_base<_Lp>* __tmp = __r._M_pi;
1260  if (__tmp != nullptr)
1261  __tmp->_M_weak_add_ref();
1262  if (_M_pi != nullptr)
1263  _M_pi->_M_weak_release();
1264  _M_pi = __tmp;
1265  return *this;
1266  }
1267 
1268  __weak_count&
1269  operator=(__weak_count&& __r) noexcept
1270  {
1271  if (_M_pi != nullptr)
1272  _M_pi->_M_weak_release();
1273  _M_pi = __r._M_pi;
1274  __r._M_pi = nullptr;
1275  return *this;
1276  }
1277 
1278  void
1279  _M_swap(__weak_count& __r) noexcept
1280  {
1281  _Sp_counted_base<_Lp>* __tmp = __r._M_pi;
1282  __r._M_pi = _M_pi;
1283  _M_pi = __tmp;
1284  }
1285 
1286  long
1287  _M_get_use_count() const noexcept
1288  { return _M_pi != nullptr ? _M_pi->_M_get_use_count() : 0; }
1289 
1290  bool
1291  _M_less(const __weak_count& __rhs) const noexcept
1292  { return std::less<_Sp_counted_base<_Lp>*>()(this->_M_pi, __rhs._M_pi); }
1293 
1294  bool
1295  _M_less(const __shared_count<_Lp>& __rhs) const noexcept
1296  { return std::less<_Sp_counted_base<_Lp>*>()(this->_M_pi, __rhs._M_pi); }
1297 
1298 #ifdef __glibcxx_smart_ptr_owner_equality // >= C++26
1299  size_t
1300  _M_owner_hash() const noexcept
1301  { return std::hash<_Sp_counted_base<_Lp>*>()(this->_M_pi); }
1302 #endif
1303 
1304  // Friend function injected into enclosing namespace and found by ADL
1305  friend inline bool
1306  operator==(const __weak_count& __a, const __weak_count& __b) noexcept
1307  { return __a._M_pi == __b._M_pi; }
1308 
1309  private:
1310  friend class __shared_count<_Lp>;
1311 #ifdef __glibcxx_atomic_shared_ptr
1312  template<typename> friend class _Sp_atomic;
1313 #endif
1314 
1315  _Sp_counted_base<_Lp>* _M_pi;
1316  };
1317 
1318  // Now that __weak_count is defined we can define this constructor:
1319  template<_Lock_policy _Lp>
1320  inline
1321  __shared_count<_Lp>::__shared_count(const __weak_count<_Lp>& __r)
1322  : _M_pi(__r._M_pi)
1323  {
1324  if (_M_pi == nullptr || !_M_pi->_M_add_ref_lock_nothrow())
1325  __throw_bad_weak_ptr();
1326  }
1327 
1328  // Now that __weak_count is defined we can define this constructor:
1329  template<_Lock_policy _Lp>
1330  inline
1331  __shared_count<_Lp>::
1332  __shared_count(const __weak_count<_Lp>& __r, std::nothrow_t) noexcept
1333  : _M_pi(__r._M_pi)
1334  {
1335  if (_M_pi && !_M_pi->_M_add_ref_lock_nothrow())
1336  _M_pi = nullptr;
1337  }
1338 
1339  // Helper traits for shared_ptr of array:
1340 
1341  // A pointer type Y* is said to be compatible with a pointer type T* when
1342  // either Y* is convertible to T* or Y is U[N] and T is U cv [].
1343  template<typename _Yp_ptr, typename _Tp_ptr>
1344  struct __sp_compatible_with
1345  : false_type
1346  { };
1347 
1348  template<typename _Yp, typename _Tp>
1349  struct __sp_compatible_with<_Yp*, _Tp*>
1350  : is_convertible<_Yp*, _Tp*>::type
1351  { };
1352 
1353  template<typename _Up, size_t _Nm>
1354  struct __sp_compatible_with<_Up(*)[_Nm], _Up(*)[]>
1355  : true_type
1356  { };
1357 
1358  template<typename _Up, size_t _Nm>
1359  struct __sp_compatible_with<_Up(*)[_Nm], const _Up(*)[]>
1360  : true_type
1361  { };
1362 
1363  template<typename _Up, size_t _Nm>
1364  struct __sp_compatible_with<_Up(*)[_Nm], volatile _Up(*)[]>
1365  : true_type
1366  { };
1367 
1368  template<typename _Up, size_t _Nm>
1369  struct __sp_compatible_with<_Up(*)[_Nm], const volatile _Up(*)[]>
1370  : true_type
1371  { };
1372 
1373  // Test conversion from Y(*)[N] to U(*)[N] without forming invalid type Y[N].
1374  template<typename _Up, size_t _Nm, typename _Yp, typename = void>
1375  struct __sp_is_constructible_arrN
1376  : false_type
1377  { };
1378 
1379  template<typename _Up, size_t _Nm, typename _Yp>
1380  struct __sp_is_constructible_arrN<_Up, _Nm, _Yp, __void_t<_Yp[_Nm]>>
1381  : is_convertible<_Yp(*)[_Nm], _Up(*)[_Nm]>::type
1382  { };
1383 
1384  // Test conversion from Y(*)[] to U(*)[] without forming invalid type Y[].
1385  template<typename _Up, typename _Yp, typename = void>
1386  struct __sp_is_constructible_arr
1387  : false_type
1388  { };
1389 
1390  template<typename _Up, typename _Yp>
1391  struct __sp_is_constructible_arr<_Up, _Yp, __void_t<_Yp[]>>
1392  : is_convertible<_Yp(*)[], _Up(*)[]>::type
1393  { };
1394 
1395  // Trait to check if shared_ptr<T> can be constructed from Y*.
1396  template<typename _Tp, typename _Yp>
1397  struct __sp_is_constructible;
1398 
1399  // When T is U[N], Y(*)[N] shall be convertible to T*;
1400  template<typename _Up, size_t _Nm, typename _Yp>
1401  struct __sp_is_constructible<_Up[_Nm], _Yp>
1402  : __sp_is_constructible_arrN<_Up, _Nm, _Yp>::type
1403  { };
1404 
1405  // when T is U[], Y(*)[] shall be convertible to T*;
1406  template<typename _Up, typename _Yp>
1407  struct __sp_is_constructible<_Up[], _Yp>
1408  : __sp_is_constructible_arr<_Up, _Yp>::type
1409  { };
1410 
1411  // otherwise, Y* shall be convertible to T*.
1412  template<typename _Tp, typename _Yp>
1413  struct __sp_is_constructible
1414  : is_convertible<_Yp*, _Tp*>::type
1415  { };
1416 
1417 
1418  template<typename _Tp>
1419  [[__gnu__::__always_inline__]]
1420  inline _Tp*
1421  __shared_ptr_deref(_Tp* __p)
1422  {
1423  __glibcxx_assert(__p != nullptr);
1424  return __p;
1425  }
1426 
1427  // Define operator* and operator-> for shared_ptr<T>.
1428  template<typename _Tp, _Lock_policy _Lp,
1429  bool = is_array<_Tp>::value, bool = is_void<_Tp>::value>
1430  class __shared_ptr_access
1431  {
1432  public:
1433  using element_type = _Tp;
1434 
1435  element_type&
1436  operator*() const noexcept
1437  { return *std::__shared_ptr_deref(_M_get()); }
1438 
1439  element_type*
1440  operator->() const noexcept
1441  {
1442  _GLIBCXX_DEBUG_PEDASSERT(_M_get() != nullptr);
1443  return _M_get();
1444  }
1445 
1446  private:
1447  element_type*
1448  _M_get() const noexcept
1449  { return static_cast<const __shared_ptr<_Tp, _Lp>*>(this)->get(); }
1450  };
1451 
1452  // Define operator-> for shared_ptr<cv void>.
1453  template<typename _Tp, _Lock_policy _Lp>
1454  class __shared_ptr_access<_Tp, _Lp, false, true>
1455  {
1456  public:
1457  using element_type = _Tp;
1458 
1459  element_type*
1460  operator->() const noexcept
1461  {
1462  auto __ptr = static_cast<const __shared_ptr<_Tp, _Lp>*>(this)->get();
1463  _GLIBCXX_DEBUG_PEDASSERT(__ptr != nullptr);
1464  return __ptr;
1465  }
1466  };
1467 
1468  // Define operator[] for shared_ptr<T[]> and shared_ptr<T[N]>.
1469  template<typename _Tp, _Lock_policy _Lp>
1470  class __shared_ptr_access<_Tp, _Lp, true, false>
1471  {
1472  public:
1473  using element_type = typename remove_extent<_Tp>::type;
1474 
1475 #if __cplusplus <= 201402L
1476  [[__deprecated__("shared_ptr<T[]>::operator* is absent from C++17")]]
1477  element_type&
1478  operator*() const noexcept
1479  { return *std::__shared_ptr_deref(_M_get()); }
1480 
1481  [[__deprecated__("shared_ptr<T[]>::operator-> is absent from C++17")]]
1482  element_type*
1483  operator->() const noexcept
1484  {
1485  _GLIBCXX_DEBUG_PEDASSERT(_M_get() != nullptr);
1486  return _M_get();
1487  }
1488 #endif
1489 
1490 #pragma GCC diagnostic push
1491 #pragma GCC diagnostic ignored "-Wc++17-extensions"
1492  element_type&
1493  operator[](ptrdiff_t __i) const noexcept
1494  {
1495  if constexpr (extent<_Tp>::value)
1496  __glibcxx_assert(__i < extent<_Tp>::value);
1497  return std::__shared_ptr_deref(_M_get())[__i];
1498  }
1499 #pragma GCC diagnostic pop
1500 
1501  private:
1502  element_type*
1503  _M_get() const noexcept
1504  { return static_cast<const __shared_ptr<_Tp, _Lp>*>(this)->get(); }
1505  };
1506 
1507  template<typename _Tp, _Lock_policy _Lp>
1508  class __shared_ptr
1509  : public __shared_ptr_access<_Tp, _Lp>
1510  {
1511  public:
1512  using element_type = typename remove_extent<_Tp>::type;
1513 
1514  private:
1515  // Constraint for taking ownership of a pointer of type _Yp*:
1516  template<typename _Yp>
1517  using _SafeConv
1518  = typename enable_if<__sp_is_constructible<_Tp, _Yp>::value>::type;
1519 
1520  // Constraint for construction from shared_ptr and weak_ptr:
1521  template<typename _Yp, typename _Res = void>
1522  using _Compatible = typename
1523  enable_if<__sp_compatible_with<_Yp*, _Tp*>::value, _Res>::type;
1524 
1525  // Constraint for assignment from shared_ptr and weak_ptr:
1526  template<typename _Yp>
1527  using _Assignable = _Compatible<_Yp, __shared_ptr&>;
1528 
1529  // Constraint for construction from unique_ptr:
1530  template<typename _Yp, typename _Del, typename _Res = void,
1531  typename _Ptr = typename unique_ptr<_Yp, _Del>::pointer>
1532  using _UniqCompatible = __enable_if_t<__and_<
1533  __sp_compatible_with<_Yp*, _Tp*>,
1534  is_convertible<_Ptr, element_type*>,
1535  is_move_constructible<_Del>
1536  >::value, _Res>;
1537 
1538  // Constraint for assignment from unique_ptr:
1539  template<typename _Yp, typename _Del>
1540  using _UniqAssignable = _UniqCompatible<_Yp, _Del, __shared_ptr&>;
1541 
1542  public:
1543 
1544 #if __cplusplus > 201402L
1545  using weak_type = __weak_ptr<_Tp, _Lp>;
1546 #endif
1547 
1548  constexpr __shared_ptr() noexcept
1549  : _M_ptr(0), _M_refcount()
1550  { }
1551 
1552  template<typename _Yp, typename = _SafeConv<_Yp>>
1553  explicit
1554  __shared_ptr(_Yp* __p)
1555  : _M_ptr(__p), _M_refcount(__p, typename is_array<_Tp>::type())
1556  {
1557  static_assert( !is_void<_Yp>::value, "incomplete type" );
1558  static_assert( sizeof(_Yp) > 0, "incomplete type" );
1559  _M_enable_shared_from_this_with(__p);
1560  }
1561 
1562  template<typename _Yp, typename _Deleter, typename = _SafeConv<_Yp>>
1563  __shared_ptr(_Yp* __p, _Deleter __d)
1564  : _M_ptr(__p), _M_refcount(__p, std::move(__d))
1565  {
1566  static_assert(__is_invocable<_Deleter&, _Yp*&>::value,
1567  "deleter expression d(p) is well-formed");
1568  _M_enable_shared_from_this_with(__p);
1569  }
1570 
1571  template<typename _Yp, typename _Deleter, typename _Alloc,
1572  typename = _SafeConv<_Yp>>
1573  __shared_ptr(_Yp* __p, _Deleter __d, _Alloc __a)
1574  : _M_ptr(__p), _M_refcount(__p, std::move(__d), std::move(__a))
1575  {
1576  static_assert(__is_invocable<_Deleter&, _Yp*&>::value,
1577  "deleter expression d(p) is well-formed");
1578  _M_enable_shared_from_this_with(__p);
1579  }
1580 
1581  template<typename _Deleter>
1582  __shared_ptr(nullptr_t __p, _Deleter __d)
1583  : _M_ptr(0), _M_refcount(__p, std::move(__d))
1584  { }
1585 
1586  template<typename _Deleter, typename _Alloc>
1587  __shared_ptr(nullptr_t __p, _Deleter __d, _Alloc __a)
1588  : _M_ptr(0), _M_refcount(__p, std::move(__d), std::move(__a))
1589  { }
1590 
1591  // Aliasing constructor
1592  template<typename _Yp>
1593  __shared_ptr(const __shared_ptr<_Yp, _Lp>& __r,
1594  element_type* __p) noexcept
1595  : _M_ptr(__p), _M_refcount(__r._M_refcount) // never throws
1596  { }
1597 
1598  // Aliasing constructor
1599  template<typename _Yp>
1600  __shared_ptr(__shared_ptr<_Yp, _Lp>&& __r,
1601  element_type* __p) noexcept
1602  : _M_ptr(__p), _M_refcount()
1603  {
1604  _M_refcount._M_swap(__r._M_refcount);
1605  __r._M_ptr = nullptr;
1606  }
1607 
1608  __shared_ptr(const __shared_ptr&) noexcept = default;
1609  __shared_ptr& operator=(const __shared_ptr&) noexcept = default;
1610  ~__shared_ptr() = default;
1611 
1612  template<typename _Yp, typename = _Compatible<_Yp>>
1613  __shared_ptr(const __shared_ptr<_Yp, _Lp>& __r) noexcept
1614  : _M_ptr(__r._M_ptr), _M_refcount(__r._M_refcount)
1615  { }
1616 
1617  __shared_ptr(__shared_ptr&& __r) noexcept
1618  : _M_ptr(__r._M_ptr), _M_refcount()
1619  {
1620  _M_refcount._M_swap(__r._M_refcount);
1621  __r._M_ptr = nullptr;
1622  }
1623 
1624  template<typename _Yp, typename = _Compatible<_Yp>>
1625  __shared_ptr(__shared_ptr<_Yp, _Lp>&& __r) noexcept
1626  : _M_ptr(__r._M_ptr), _M_refcount()
1627  {
1628  _M_refcount._M_swap(__r._M_refcount);
1629  __r._M_ptr = nullptr;
1630  }
1631 
1632  template<typename _Yp, typename = _Compatible<_Yp>>
1633  explicit __shared_ptr(const __weak_ptr<_Yp, _Lp>& __r)
1634  : _M_refcount(__r._M_refcount) // may throw
1635  {
1636  // It is now safe to copy __r._M_ptr, as
1637  // _M_refcount(__r._M_refcount) did not throw.
1638  _M_ptr = __r._M_ptr;
1639  }
1640 
1641  // If an exception is thrown this constructor has no effect.
1642  template<typename _Yp, typename _Del,
1643  typename = _UniqCompatible<_Yp, _Del>>
1644  __shared_ptr(unique_ptr<_Yp, _Del>&& __r)
1645  : _M_ptr(__r.get()), _M_refcount()
1646  {
1647  auto __raw = std::__to_address(__r.get());
1648  _M_refcount = __shared_count<_Lp>(std::move(__r));
1649  _M_enable_shared_from_this_with(__raw);
1650  }
1651 
1652 #if __cplusplus <= 201402L && _GLIBCXX_USE_DEPRECATED
1653  protected:
1654  // If an exception is thrown this constructor has no effect.
1655  template<typename _Tp1, typename _Del,
1656  typename enable_if<__and_<
1657  __not_<is_array<_Tp>>, is_array<_Tp1>,
1658  is_convertible<typename unique_ptr<_Tp1, _Del>::pointer, _Tp*>
1659  >::value, bool>::type = true>
1660  __shared_ptr(unique_ptr<_Tp1, _Del>&& __r, __sp_array_delete)
1661  : _M_ptr(__r.get()), _M_refcount()
1662  {
1663  auto __raw = std::__to_address(__r.get());
1664  _M_refcount = __shared_count<_Lp>(std::move(__r));
1665  _M_enable_shared_from_this_with(__raw);
1666  }
1667  public:
1668 #endif
1669 
1670 #if _GLIBCXX_USE_DEPRECATED
1671 #pragma GCC diagnostic push
1672 #pragma GCC diagnostic ignored "-Wdeprecated-declarations"
1673  // Postcondition: use_count() == 1 and __r.get() == 0
1674  template<typename _Yp, typename = _Compatible<_Yp>>
1675  __shared_ptr(auto_ptr<_Yp>&& __r);
1676 #pragma GCC diagnostic pop
1677 #endif
1678 
1679  constexpr __shared_ptr(nullptr_t) noexcept : __shared_ptr() { }
1680 
1681  template<typename _Yp>
1682  _Assignable<_Yp>
1683  operator=(const __shared_ptr<_Yp, _Lp>& __r) noexcept
1684  {
1685  _M_ptr = __r._M_ptr;
1686  _M_refcount = __r._M_refcount; // __shared_count::op= doesn't throw
1687  return *this;
1688  }
1689 
1690 #if _GLIBCXX_USE_DEPRECATED
1691 #pragma GCC diagnostic push
1692 #pragma GCC diagnostic ignored "-Wdeprecated-declarations"
1693  template<typename _Yp>
1694  _Assignable<_Yp>
1695  operator=(auto_ptr<_Yp>&& __r)
1696  {
1697  __shared_ptr(std::move(__r)).swap(*this);
1698  return *this;
1699  }
1700 #pragma GCC diagnostic pop
1701 #endif
1702 
1703  __shared_ptr&
1704  operator=(__shared_ptr&& __r) noexcept
1705  {
1706  __shared_ptr(std::move(__r)).swap(*this);
1707  return *this;
1708  }
1709 
1710  template<class _Yp>
1711  _Assignable<_Yp>
1712  operator=(__shared_ptr<_Yp, _Lp>&& __r) noexcept
1713  {
1714  __shared_ptr(std::move(__r)).swap(*this);
1715  return *this;
1716  }
1717 
1718  template<typename _Yp, typename _Del>
1719  _UniqAssignable<_Yp, _Del>
1720  operator=(unique_ptr<_Yp, _Del>&& __r)
1721  {
1722  __shared_ptr(std::move(__r)).swap(*this);
1723  return *this;
1724  }
1725 
1726  void
1727  reset() noexcept
1728  { __shared_ptr().swap(*this); }
1729 
1730  template<typename _Yp>
1731  _SafeConv<_Yp>
1732  reset(_Yp* __p) // _Yp must be complete.
1733  {
1734  // Catch self-reset errors.
1735  __glibcxx_assert(__p == nullptr || __p != _M_ptr);
1736  __shared_ptr(__p).swap(*this);
1737  }
1738 
1739  template<typename _Yp, typename _Deleter>
1740  _SafeConv<_Yp>
1741  reset(_Yp* __p, _Deleter __d)
1742  { __shared_ptr(__p, std::move(__d)).swap(*this); }
1743 
1744  template<typename _Yp, typename _Deleter, typename _Alloc>
1745  _SafeConv<_Yp>
1746  reset(_Yp* __p, _Deleter __d, _Alloc __a)
1747  { __shared_ptr(__p, std::move(__d), std::move(__a)).swap(*this); }
1748 
1749  /// Return the stored pointer.
1750  element_type*
1751  get() const noexcept
1752  { return _M_ptr; }
1753 
1754  /// Return true if the stored pointer is not null.
1755  explicit operator bool() const noexcept
1756  { return _M_ptr != nullptr; }
1757 
1758  /// Return true if use_count() == 1.
1759  bool
1760  unique() const noexcept
1761  { return _M_refcount._M_unique(); }
1762 
1763  /// If *this owns a pointer, return the number of owners, otherwise zero.
1764  long
1765  use_count() const noexcept
1766  { return _M_refcount._M_get_use_count(); }
1767 
1768  /// Exchange both the owned pointer and the stored pointer.
1769  void
1770  swap(__shared_ptr<_Tp, _Lp>& __other) noexcept
1771  {
1772  std::swap(_M_ptr, __other._M_ptr);
1773  _M_refcount._M_swap(__other._M_refcount);
1774  }
1775 
1776  /** @brief Define an ordering based on ownership.
1777  *
1778  * This function defines a strict weak ordering between two shared_ptr
1779  * or weak_ptr objects, such that one object is less than the other
1780  * unless they share ownership of the same pointer, or are both empty.
1781  * @{
1782  */
1783  template<typename _Tp1>
1784  bool
1785  owner_before(__shared_ptr<_Tp1, _Lp> const& __rhs) const noexcept
1786  { return _M_refcount._M_less(__rhs._M_refcount); }
1787 
1788  template<typename _Tp1>
1789  bool
1790  owner_before(__weak_ptr<_Tp1, _Lp> const& __rhs) const noexcept
1791  { return _M_refcount._M_less(__rhs._M_refcount); }
1792  /// @}
1793 
1794 #ifdef __glibcxx_smart_ptr_owner_equality // >= C++26
1795  size_t owner_hash() const noexcept { return _M_refcount._M_owner_hash(); }
1796 
1797  template<typename _Tp1>
1798  bool
1799  owner_equal(__shared_ptr<_Tp1, _Lp> const& __rhs) const noexcept
1800  { return _M_refcount == __rhs._M_refcount; }
1801 
1802  template<typename _Tp1>
1803  bool
1804  owner_equal(__weak_ptr<_Tp1, _Lp> const& __rhs) const noexcept
1805  { return _M_refcount == __rhs._M_refcount; }
1806 #endif
1807 
1808  protected:
1809  // This constructor is non-standard, it is used by allocate_shared.
1810  template<typename _Alloc, typename... _Args>
1811  __shared_ptr(_Sp_alloc_shared_tag<_Alloc> __tag, _Args&&... __args)
1812  : _M_ptr(), _M_refcount(_M_ptr, __tag, std::forward<_Args>(__args)...)
1813  { _M_enable_shared_from_this_with(_M_ptr); }
1814 
1815  template<typename _Tp1, _Lock_policy _Lp1, typename _Alloc,
1816  typename... _Args>
1817  friend __shared_ptr<_Tp1, _Lp1>
1818  __allocate_shared(const _Alloc& __a, _Args&&... __args);
1819 
1820 #if __glibcxx_shared_ptr_arrays >= 201707L // C++ >= 20 && HOSTED
1821  // This constructor is non-standard, it is used by allocate_shared<T[]>.
1822  template<typename _Alloc, typename _Init = const remove_extent_t<_Tp>*>
1823  __shared_ptr(const _Sp_counted_array_base<_Alloc>& __a,
1824  _Init __init = nullptr)
1825  : _M_ptr(), _M_refcount(_M_ptr, __a, __init)
1826  { }
1827 #endif
1828 
1829  // This constructor is used by __weak_ptr::lock() and
1830  // shared_ptr::shared_ptr(const weak_ptr&, std::nothrow_t).
1831  __shared_ptr(const __weak_ptr<_Tp, _Lp>& __r, std::nothrow_t) noexcept
1832  : _M_refcount(__r._M_refcount, std::nothrow)
1833  {
1834  _M_ptr = _M_refcount._M_get_use_count() ? __r._M_ptr : nullptr;
1835  }
1836 
1837  friend class __weak_ptr<_Tp, _Lp>;
1838 
1839  private:
1840 
1841  template<typename _Yp>
1842  using __esft_base_t = decltype(__enable_shared_from_this_base(
1843  std::declval<const __shared_count<_Lp>&>(),
1844  std::declval<_Yp*>()));
1845 
1846  // Detect an accessible and unambiguous enable_shared_from_this base.
1847  template<typename _Yp, typename = void>
1848  struct __has_esft_base
1849  : false_type { };
1850 
1851  template<typename _Yp>
1852  struct __has_esft_base<_Yp, __void_t<__esft_base_t<_Yp>>>
1853  : __not_<is_array<_Tp>> { }; // No enable shared_from_this for arrays
1854 
1855  template<typename _Yp, typename _Yp2 = typename remove_cv<_Yp>::type>
1856  typename enable_if<__has_esft_base<_Yp2>::value>::type
1857  _M_enable_shared_from_this_with(_Yp* __p) noexcept
1858  {
1859  if (auto __base = __enable_shared_from_this_base(_M_refcount, __p))
1860  __base->_M_weak_assign(const_cast<_Yp2*>(__p), _M_refcount);
1861  }
1862 
1863  template<typename _Yp, typename _Yp2 = typename remove_cv<_Yp>::type>
1864  typename enable_if<!__has_esft_base<_Yp2>::value>::type
1865  _M_enable_shared_from_this_with(_Yp*) noexcept
1866  { }
1867 
1868  void*
1869  _M_get_deleter(const std::type_info& __ti) const noexcept
1870  { return _M_refcount._M_get_deleter(__ti); }
1871 
1872  template<typename _Tp1, _Lock_policy _Lp1> friend class __shared_ptr;
1873  template<typename _Tp1, _Lock_policy _Lp1> friend class __weak_ptr;
1874 
1875  template<typename _Del, typename _Tp1, _Lock_policy _Lp1>
1876  friend _Del* get_deleter(const __shared_ptr<_Tp1, _Lp1>&) noexcept;
1877 
1878  template<typename _Del, typename _Tp1>
1879  friend _Del* get_deleter(const shared_ptr<_Tp1>&) noexcept;
1880 
1881 #ifdef __glibcxx_atomic_shared_ptr
1882  friend _Sp_atomic<shared_ptr<_Tp>>;
1883 #endif
1884 #ifdef __glibcxx_out_ptr
1885  template<typename, typename, typename...> friend class out_ptr_t;
1886 #endif
1887 
1888  element_type* _M_ptr; // Contained pointer.
1889  __shared_count<_Lp> _M_refcount; // Reference counter.
1890  };
1891 
1892 
1893  // 20.7.2.2.7 shared_ptr comparisons
1894  template<typename _Tp1, typename _Tp2, _Lock_policy _Lp>
1895  inline bool
1896  operator==(const __shared_ptr<_Tp1, _Lp>& __a,
1897  const __shared_ptr<_Tp2, _Lp>& __b) noexcept
1898  { return __a.get() == __b.get(); }
1899 
1900  template<typename _Tp, _Lock_policy _Lp>
1901  inline bool
1902  operator==(const __shared_ptr<_Tp, _Lp>& __a, nullptr_t) noexcept
1903  { return !__a; }
1904 
1905 #ifdef __cpp_lib_three_way_comparison
1906  template<typename _Tp, typename _Up, _Lock_policy _Lp>
1907  inline strong_ordering
1908  operator<=>(const __shared_ptr<_Tp, _Lp>& __a,
1909  const __shared_ptr<_Up, _Lp>& __b) noexcept
1910  { return compare_three_way()(__a.get(), __b.get()); }
1911 
1912  template<typename _Tp, _Lock_policy _Lp>
1913  inline strong_ordering
1914  operator<=>(const __shared_ptr<_Tp, _Lp>& __a, nullptr_t) noexcept
1915  {
1916  using pointer = typename __shared_ptr<_Tp, _Lp>::element_type*;
1917  return compare_three_way()(__a.get(), static_cast<pointer>(nullptr));
1918  }
1919 #else
1920  template<typename _Tp, _Lock_policy _Lp>
1921  inline bool
1922  operator==(nullptr_t, const __shared_ptr<_Tp, _Lp>& __a) noexcept
1923  { return !__a; }
1924 
1925  template<typename _Tp1, typename _Tp2, _Lock_policy _Lp>
1926  inline bool
1927  operator!=(const __shared_ptr<_Tp1, _Lp>& __a,
1928  const __shared_ptr<_Tp2, _Lp>& __b) noexcept
1929  { return __a.get() != __b.get(); }
1930 
1931  template<typename _Tp, _Lock_policy _Lp>
1932  inline bool
1933  operator!=(const __shared_ptr<_Tp, _Lp>& __a, nullptr_t) noexcept
1934  { return (bool)__a; }
1935 
1936  template<typename _Tp, _Lock_policy _Lp>
1937  inline bool
1938  operator!=(nullptr_t, const __shared_ptr<_Tp, _Lp>& __a) noexcept
1939  { return (bool)__a; }
1940 
1941  template<typename _Tp, typename _Up, _Lock_policy _Lp>
1942  inline bool
1943  operator<(const __shared_ptr<_Tp, _Lp>& __a,
1944  const __shared_ptr<_Up, _Lp>& __b) noexcept
1945  {
1946  using _Tp_elt = typename __shared_ptr<_Tp, _Lp>::element_type;
1947  using _Up_elt = typename __shared_ptr<_Up, _Lp>::element_type;
1948  using _Vp = typename common_type<_Tp_elt*, _Up_elt*>::type;
1949  return less<_Vp>()(__a.get(), __b.get());
1950  }
1951 
1952  template<typename _Tp, _Lock_policy _Lp>
1953  inline bool
1954  operator<(const __shared_ptr<_Tp, _Lp>& __a, nullptr_t) noexcept
1955  {
1956  using _Tp_elt = typename __shared_ptr<_Tp, _Lp>::element_type;
1957  return less<_Tp_elt*>()(__a.get(), nullptr);
1958  }
1959 
1960  template<typename _Tp, _Lock_policy _Lp>
1961  inline bool
1962  operator<(nullptr_t, const __shared_ptr<_Tp, _Lp>& __a) noexcept
1963  {
1964  using _Tp_elt = typename __shared_ptr<_Tp, _Lp>::element_type;
1965  return less<_Tp_elt*>()(nullptr, __a.get());
1966  }
1967 
1968  template<typename _Tp1, typename _Tp2, _Lock_policy _Lp>
1969  inline bool
1970  operator<=(const __shared_ptr<_Tp1, _Lp>& __a,
1971  const __shared_ptr<_Tp2, _Lp>& __b) noexcept
1972  { return !(__b < __a); }
1973 
1974  template<typename _Tp, _Lock_policy _Lp>
1975  inline bool
1976  operator<=(const __shared_ptr<_Tp, _Lp>& __a, nullptr_t) noexcept
1977  { return !(nullptr < __a); }
1978 
1979  template<typename _Tp, _Lock_policy _Lp>
1980  inline bool
1981  operator<=(nullptr_t, const __shared_ptr<_Tp, _Lp>& __a) noexcept
1982  { return !(__a < nullptr); }
1983 
1984  template<typename _Tp1, typename _Tp2, _Lock_policy _Lp>
1985  inline bool
1986  operator>(const __shared_ptr<_Tp1, _Lp>& __a,
1987  const __shared_ptr<_Tp2, _Lp>& __b) noexcept
1988  { return (__b < __a); }
1989 
1990  template<typename _Tp, _Lock_policy _Lp>
1991  inline bool
1992  operator>(const __shared_ptr<_Tp, _Lp>& __a, nullptr_t) noexcept
1993  { return nullptr < __a; }
1994 
1995  template<typename _Tp, _Lock_policy _Lp>
1996  inline bool
1997  operator>(nullptr_t, const __shared_ptr<_Tp, _Lp>& __a) noexcept
1998  { return __a < nullptr; }
1999 
2000  template<typename _Tp1, typename _Tp2, _Lock_policy _Lp>
2001  inline bool
2002  operator>=(const __shared_ptr<_Tp1, _Lp>& __a,
2003  const __shared_ptr<_Tp2, _Lp>& __b) noexcept
2004  { return !(__a < __b); }
2005 
2006  template<typename _Tp, _Lock_policy _Lp>
2007  inline bool
2008  operator>=(const __shared_ptr<_Tp, _Lp>& __a, nullptr_t) noexcept
2009  { return !(__a < nullptr); }
2010 
2011  template<typename _Tp, _Lock_policy _Lp>
2012  inline bool
2013  operator>=(nullptr_t, const __shared_ptr<_Tp, _Lp>& __a) noexcept
2014  { return !(nullptr < __a); }
2015 #endif // three-way comparison
2016 
2017  // 20.7.2.2.8 shared_ptr specialized algorithms.
2018  template<typename _Tp, _Lock_policy _Lp>
2019  inline void
2020  swap(__shared_ptr<_Tp, _Lp>& __a, __shared_ptr<_Tp, _Lp>& __b) noexcept
2021  { __a.swap(__b); }
2022 
2023  // 20.7.2.2.9 shared_ptr casts
2024 
2025  // The seemingly equivalent code:
2026  // shared_ptr<_Tp, _Lp>(static_cast<_Tp*>(__r.get()))
2027  // will eventually result in undefined behaviour, attempting to
2028  // delete the same object twice.
2029  /// static_pointer_cast
2030  template<typename _Tp, typename _Tp1, _Lock_policy _Lp>
2031  inline __shared_ptr<_Tp, _Lp>
2032  static_pointer_cast(const __shared_ptr<_Tp1, _Lp>& __r) noexcept
2033  {
2034  using _Sp = __shared_ptr<_Tp, _Lp>;
2035  return _Sp(__r, static_cast<typename _Sp::element_type*>(__r.get()));
2036  }
2037 
2038  // The seemingly equivalent code:
2039  // shared_ptr<_Tp, _Lp>(const_cast<_Tp*>(__r.get()))
2040  // will eventually result in undefined behaviour, attempting to
2041  // delete the same object twice.
2042  /// const_pointer_cast
2043  template<typename _Tp, typename _Tp1, _Lock_policy _Lp>
2044  inline __shared_ptr<_Tp, _Lp>
2045  const_pointer_cast(const __shared_ptr<_Tp1, _Lp>& __r) noexcept
2046  {
2047  using _Sp = __shared_ptr<_Tp, _Lp>;
2048  return _Sp(__r, const_cast<typename _Sp::element_type*>(__r.get()));
2049  }
2050 
2051  // The seemingly equivalent code:
2052  // shared_ptr<_Tp, _Lp>(dynamic_cast<_Tp*>(__r.get()))
2053  // will eventually result in undefined behaviour, attempting to
2054  // delete the same object twice.
2055  /// dynamic_pointer_cast
2056  template<typename _Tp, typename _Tp1, _Lock_policy _Lp>
2057  inline __shared_ptr<_Tp, _Lp>
2058  dynamic_pointer_cast(const __shared_ptr<_Tp1, _Lp>& __r) noexcept
2059  {
2060  using _Sp = __shared_ptr<_Tp, _Lp>;
2061  if (auto* __p = dynamic_cast<typename _Sp::element_type*>(__r.get()))
2062  return _Sp(__r, __p);
2063  return _Sp();
2064  }
2065 
2066 #if __cplusplus > 201402L
2067  template<typename _Tp, typename _Tp1, _Lock_policy _Lp>
2068  inline __shared_ptr<_Tp, _Lp>
2069  reinterpret_pointer_cast(const __shared_ptr<_Tp1, _Lp>& __r) noexcept
2070  {
2071  using _Sp = __shared_ptr<_Tp, _Lp>;
2072  return _Sp(__r, reinterpret_cast<typename _Sp::element_type*>(__r.get()));
2073  }
2074 #endif
2075 
2076  template<typename _Tp, _Lock_policy _Lp>
2077  class __weak_ptr
2078  {
2079  public:
2080  using element_type = typename remove_extent<_Tp>::type;
2081 
2082  private:
2083  template<typename _Yp, typename _Res = void>
2084  using _Compatible = typename
2085  enable_if<__sp_compatible_with<_Yp*, _Tp*>::value, _Res>::type;
2086 
2087  // Constraint for assignment from shared_ptr and weak_ptr:
2088  template<typename _Yp>
2089  using _Assignable = _Compatible<_Yp, __weak_ptr&>;
2090 
2091 #pragma GCC diagnostic push
2092 #pragma GCC diagnostic ignored "-Wc++17-extensions" // if constexpr
2093  // Helper for construction/assignment:
2094  template<typename _Yp>
2095  static element_type*
2096  _S_safe_upcast(const __weak_ptr<_Yp, _Lp>& __r)
2097  {
2098  // We know that _Yp and _Tp are compatible, that is, either
2099  // _Yp* is convertible to _Tp* or _Yp is U[N] and _Tp is U cv [].
2100 
2101  // If _Yp is the same as _Tp after removing extents and cv
2102  // qualifications, there's no pointer adjustments to do. This
2103  // also allows us to support incomplete types.
2104  using _At = typename remove_cv<typename remove_extent<_Tp>::type>::type;
2105  using _Bt = typename remove_cv<typename remove_extent<_Yp>::type>::type;
2106  if constexpr (is_same<_At, _Bt>::value)
2107  return __r._M_ptr;
2108  // If they're not the same type, but they're both scalars,
2109  // we again don't need any adjustment. This allows us to support e.g.
2110  // pointers to a differently cv qualified type X.
2111  else if constexpr (__and_<is_scalar<_At>, is_scalar<_Bt>>::value)
2112  return __r._M_ptr;
2113 #if _GLIBCXX_USE_BUILTIN_TRAIT(__builtin_is_virtual_base_of)
2114  // If _Tp is not a virtual base class of _Yp, the pointer
2115  // conversion does not require dereferencing __r._M_ptr; just
2116  // rely on the implicit conversion.
2117  else if constexpr (!__builtin_is_virtual_base_of(_Tp, _Yp))
2118  return __r._M_ptr;
2119 #endif
2120  // Expensive path; must lock() and do the pointer conversion while
2121  // a shared_ptr keeps the pointee alive (because we may need
2122  // to dereference).
2123  else
2124  return __r.lock().get();
2125  }
2126 #pragma GCC diagnostic pop
2127 
2128  public:
2129  constexpr __weak_ptr() noexcept
2130  : _M_ptr(nullptr), _M_refcount()
2131  { }
2132 
2133  __weak_ptr(const __weak_ptr&) noexcept = default;
2134 
2135  ~__weak_ptr() = default;
2136 
2137  // The "obvious" converting constructor implementation:
2138  //
2139  // template<typename _Tp1>
2140  // __weak_ptr(const __weak_ptr<_Tp1, _Lp>& __r)
2141  // : _M_ptr(__r._M_ptr), _M_refcount(__r._M_refcount) // never throws
2142  // { }
2143  //
2144  // has a serious problem.
2145  //
2146  // __r._M_ptr may already have been invalidated. The _M_ptr(__r._M_ptr)
2147  // conversion may require access to *__r._M_ptr (virtual inheritance).
2148  //
2149  // It is not possible to avoid spurious access violations since
2150  // in multithreaded programs __r._M_ptr may be invalidated at any point.
2151  template<typename _Yp, typename = _Compatible<_Yp>>
2152  __weak_ptr(const __weak_ptr<_Yp, _Lp>& __r) noexcept
2153  : _M_ptr(_S_safe_upcast(__r)), _M_refcount(__r._M_refcount)
2154  { }
2155 
2156  template<typename _Yp, typename = _Compatible<_Yp>>
2157  __weak_ptr(const __shared_ptr<_Yp, _Lp>& __r) noexcept
2158  : _M_ptr(__r._M_ptr), _M_refcount(__r._M_refcount)
2159  { }
2160 
2161  __weak_ptr(__weak_ptr&& __r) noexcept
2162  : _M_ptr(__r._M_ptr), _M_refcount(std::move(__r._M_refcount))
2163  { __r._M_ptr = nullptr; }
2164 
2165  template<typename _Yp, typename = _Compatible<_Yp>>
2166  __weak_ptr(__weak_ptr<_Yp, _Lp>&& __r) noexcept
2167  : _M_ptr(_S_safe_upcast(__r)), _M_refcount(std::move(__r._M_refcount))
2168  { __r._M_ptr = nullptr; }
2169 
2170  __weak_ptr&
2171  operator=(const __weak_ptr& __r) noexcept = default;
2172 
2173  template<typename _Yp>
2174  _Assignable<_Yp>
2175  operator=(const __weak_ptr<_Yp, _Lp>& __r) noexcept
2176  {
2177  _M_ptr = _S_safe_upcast(__r);
2178  _M_refcount = __r._M_refcount;
2179  return *this;
2180  }
2181 
2182  template<typename _Yp>
2183  _Assignable<_Yp>
2184  operator=(const __shared_ptr<_Yp, _Lp>& __r) noexcept
2185  {
2186  _M_ptr = __r._M_ptr;
2187  _M_refcount = __r._M_refcount;
2188  return *this;
2189  }
2190 
2191  __weak_ptr&
2192  operator=(__weak_ptr&& __r) noexcept
2193  {
2194  __weak_ptr(std::move(__r)).swap(*this);
2195  return *this;
2196  }
2197 
2198  template<typename _Yp>
2199  _Assignable<_Yp>
2200  operator=(__weak_ptr<_Yp, _Lp>&& __r) noexcept
2201  {
2202  _M_ptr = _S_safe_upcast(__r);
2203  _M_refcount = std::move(__r._M_refcount);
2204  __r._M_ptr = nullptr;
2205  return *this;
2206  }
2207 
2208  __shared_ptr<_Tp, _Lp>
2209  lock() const noexcept
2210  { return __shared_ptr<_Tp, _Lp>(*this, std::nothrow); }
2211 
2212  long
2213  use_count() const noexcept
2214  { return _M_refcount._M_get_use_count(); }
2215 
2216  bool
2217  expired() const noexcept
2218  { return _M_refcount._M_get_use_count() == 0; }
2219 
2220  template<typename _Tp1>
2221  bool
2222  owner_before(const __shared_ptr<_Tp1, _Lp>& __rhs) const noexcept
2223  { return _M_refcount._M_less(__rhs._M_refcount); }
2224 
2225  template<typename _Tp1>
2226  bool
2227  owner_before(const __weak_ptr<_Tp1, _Lp>& __rhs) const noexcept
2228  { return _M_refcount._M_less(__rhs._M_refcount); }
2229 
2230 #ifdef __glibcxx_smart_ptr_owner_equality // >= C++26
2231  size_t owner_hash() const noexcept { return _M_refcount._M_owner_hash(); }
2232 
2233  template<typename _Tp1>
2234  bool
2235  owner_equal(const __shared_ptr<_Tp1, _Lp> & __rhs) const noexcept
2236  { return _M_refcount == __rhs._M_refcount; }
2237 
2238  template<typename _Tp1>
2239  bool
2240  owner_equal(const __weak_ptr<_Tp1, _Lp> & __rhs) const noexcept
2241  { return _M_refcount == __rhs._M_refcount; }
2242 #endif
2243 
2244  void
2245  reset() noexcept
2246  { __weak_ptr().swap(*this); }
2247 
2248  void
2249  swap(__weak_ptr& __s) noexcept
2250  {
2251  std::swap(_M_ptr, __s._M_ptr);
2252  _M_refcount._M_swap(__s._M_refcount);
2253  }
2254 
2255  private:
2256  // Used by __enable_shared_from_this.
2257  void
2258  _M_assign(_Tp* __ptr, const __shared_count<_Lp>& __refcount) noexcept
2259  {
2260  if (use_count() == 0)
2261  {
2262  _M_ptr = __ptr;
2263  _M_refcount = __refcount;
2264  }
2265  }
2266 
2267  template<typename _Tp1, _Lock_policy _Lp1> friend class __shared_ptr;
2268  template<typename _Tp1, _Lock_policy _Lp1> friend class __weak_ptr;
2269  friend class __enable_shared_from_this<_Tp, _Lp>;
2270  friend class enable_shared_from_this<_Tp>;
2271 #ifdef __glibcxx_atomic_shared_ptr
2272  friend _Sp_atomic<weak_ptr<_Tp>>;
2273 #endif
2274 
2275  element_type* _M_ptr; // Contained pointer.
2276  __weak_count<_Lp> _M_refcount; // Reference counter.
2277  };
2278 
2279  // 20.7.2.3.6 weak_ptr specialized algorithms.
2280  template<typename _Tp, _Lock_policy _Lp>
2281  inline void
2282  swap(__weak_ptr<_Tp, _Lp>& __a, __weak_ptr<_Tp, _Lp>& __b) noexcept
2283  { __a.swap(__b); }
2284 
2285 #pragma GCC diagnostic push
2286 #pragma GCC diagnostic ignored "-Wdeprecated-declarations"
2287  template<typename _Tp, typename _Tp1>
2288  struct _Sp_owner_less : public binary_function<_Tp, _Tp, bool>
2289  {
2290  bool
2291  operator()(const _Tp& __lhs, const _Tp& __rhs) const noexcept
2292  { return __lhs.owner_before(__rhs); }
2293 
2294  bool
2295  operator()(const _Tp& __lhs, const _Tp1& __rhs) const noexcept
2296  { return __lhs.owner_before(__rhs); }
2297 
2298  bool
2299  operator()(const _Tp1& __lhs, const _Tp& __rhs) const noexcept
2300  { return __lhs.owner_before(__rhs); }
2301  };
2302 #pragma GCC diagnostic pop
2303 
2304  template<>
2305  struct _Sp_owner_less<void, void>
2306  {
2307  template<typename _Tp, typename _Up>
2308  auto
2309  operator()(const _Tp& __lhs, const _Up& __rhs) const noexcept
2310  -> decltype(__lhs.owner_before(__rhs))
2311  { return __lhs.owner_before(__rhs); }
2312 
2313  using is_transparent = void;
2314  };
2315 
2316  template<typename _Tp, _Lock_policy _Lp>
2317  struct owner_less<__shared_ptr<_Tp, _Lp>>
2318  : public _Sp_owner_less<__shared_ptr<_Tp, _Lp>, __weak_ptr<_Tp, _Lp>>
2319  { };
2320 
2321  template<typename _Tp, _Lock_policy _Lp>
2322  struct owner_less<__weak_ptr<_Tp, _Lp>>
2323  : public _Sp_owner_less<__weak_ptr<_Tp, _Lp>, __shared_ptr<_Tp, _Lp>>
2324  { };
2325 
2326 
2327  template<typename _Tp, _Lock_policy _Lp>
2328  class __enable_shared_from_this
2329  {
2330  protected:
2331  constexpr __enable_shared_from_this() noexcept { }
2332 
2333  __enable_shared_from_this(const __enable_shared_from_this&) noexcept { }
2334 
2335  __enable_shared_from_this&
2336  operator=(const __enable_shared_from_this&) noexcept
2337  { return *this; }
2338 
2339  ~__enable_shared_from_this() { }
2340 
2341  public:
2342  __shared_ptr<_Tp, _Lp>
2343  shared_from_this()
2344  { return __shared_ptr<_Tp, _Lp>(this->_M_weak_this); }
2345 
2346  __shared_ptr<const _Tp, _Lp>
2347  shared_from_this() const
2348  { return __shared_ptr<const _Tp, _Lp>(this->_M_weak_this); }
2349 
2350 #if __cplusplus > 201402L || !defined(__STRICT_ANSI__) // c++1z or gnu++11
2351  __weak_ptr<_Tp, _Lp>
2352  weak_from_this() noexcept
2353  { return this->_M_weak_this; }
2354 
2355  __weak_ptr<const _Tp, _Lp>
2356  weak_from_this() const noexcept
2357  { return this->_M_weak_this; }
2358 #endif
2359 
2360  private:
2361  template<typename _Tp1>
2362  void
2363  _M_weak_assign(_Tp1* __p, const __shared_count<_Lp>& __n) const noexcept
2364  { _M_weak_this._M_assign(__p, __n); }
2365 
2366  friend const __enable_shared_from_this*
2367  __enable_shared_from_this_base(const __shared_count<_Lp>&,
2368  const __enable_shared_from_this* __p)
2369  { return __p; }
2370 
2371  template<typename, _Lock_policy>
2372  friend class __shared_ptr;
2373 
2374  mutable __weak_ptr<_Tp, _Lp> _M_weak_this;
2375  };
2376 
2377  template<typename _Tp, _Lock_policy _Lp = __default_lock_policy,
2378  typename _Alloc, typename... _Args>
2379  inline __shared_ptr<_Tp, _Lp>
2380  __allocate_shared(const _Alloc& __a, _Args&&... __args)
2381  {
2382  static_assert(!is_array<_Tp>::value, "make_shared<T[]> not supported");
2383 
2384  return __shared_ptr<_Tp, _Lp>(_Sp_alloc_shared_tag<_Alloc>{__a},
2385  std::forward<_Args>(__args)...);
2386  }
2387 
2388  template<typename _Tp, _Lock_policy _Lp = __default_lock_policy,
2389  typename... _Args>
2390  inline __shared_ptr<_Tp, _Lp>
2391  __make_shared(_Args&&... __args)
2392  {
2393  typedef typename std::remove_const<_Tp>::type _Tp_nc;
2394  return std::__allocate_shared<_Tp, _Lp>(std::allocator<_Tp_nc>(),
2395  std::forward<_Args>(__args)...);
2396  }
2397 
2398  /// std::hash specialization for __shared_ptr.
2399  template<typename _Tp, _Lock_policy _Lp>
2400  struct hash<__shared_ptr<_Tp, _Lp>>
2401  : public __hash_base<size_t, __shared_ptr<_Tp, _Lp>>
2402  {
2403  size_t
2404  operator()(const __shared_ptr<_Tp, _Lp>& __s) const noexcept
2405  {
2407  __s.get());
2408  }
2409  };
2410 
2411 _GLIBCXX_END_NAMESPACE_VERSION
2412 } // namespace
2413 
2414 #endif // _SHARED_PTR_BASE_H
constexpr bool operator<=(const duration< _Rep1, _Period1 > &__lhs, const duration< _Rep2, _Period2 > &__rhs)
Definition: chrono.h:859
constexpr bool operator>=(const duration< _Rep1, _Period1 > &__lhs, const duration< _Rep2, _Period2 > &__rhs)
Definition: chrono.h:873
constexpr bool operator<(const duration< _Rep1, _Period1 > &__lhs, const duration< _Rep2, _Period2 > &__rhs)
Definition: chrono.h:826
constexpr bool operator>(const duration< _Rep1, _Period1 > &__lhs, const duration< _Rep2, _Period2 > &__rhs)
Definition: chrono.h:866
constexpr complex< _Tp > operator*(const complex< _Tp > &__x, const complex< _Tp > &__y)
Return new complex value x times y.
Definition: complex:434
void * align(size_t __align, size_t __size, void *&__ptr, size_t &__space) noexcept
Fit aligned storage in buffer.
Definition: align.h:60
_GLIBCXX26_CONSTEXPR _ForwardIterator uninitialized_default_construct_n(_ForwardIterator __first, _Size __count)
Default-initializes objects in the range [first,first+count).
constexpr _Tp * to_address(_Tp *__ptr) noexcept
Obtain address referenced by a pointer to an object.
Definition: ptr_traits.h:232
__bool_constant< true > true_type
The type used as a compile-time boolean with true value.
Definition: type_traits:119
__bool_constant< false > false_type
The type used as a compile-time boolean with false value.
Definition: type_traits:122
constexpr _Tp * __addressof(_Tp &__r) noexcept
Same as C++11 std::addressof.
Definition: move.h:52
auto declval() noexcept -> decltype(__declval< _Tp >(0))
Definition: type_traits:2716
constexpr std::remove_reference< _Tp >::type && move(_Tp &&__t) noexcept
Convert a value to an rvalue.
Definition: move.h:138
constexpr _Tp && forward(typename std::remove_reference< _Tp >::type &__t) noexcept
Forward an lvalue.
Definition: move.h:72
void lock(_L1 &__l1, _L2 &__l2, _L3 &... __l3)
Generic lock.
Definition: mutex:686
ISO C++ entities toplevel namespace is std.
__shared_ptr< _Tp, _Lp > static_pointer_cast(const __shared_ptr< _Tp1, _Lp > &__r) noexcept
static_pointer_cast
__shared_ptr< _Tp, _Lp > const_pointer_cast(const __shared_ptr< _Tp1, _Lp > &__r) noexcept
const_pointer_cast
__shared_ptr< _Tp, _Lp > dynamic_pointer_cast(const __shared_ptr< _Tp1, _Lp > &__r) noexcept
dynamic_pointer_cast
constexpr _Iterator __base(_Iterator __it)
Part of RTTI.
Definition: typeinfo:94
Primary class template hash.
__detected_or_t< value_type *, __pointer, _Alloc > pointer
The allocator's pointer type.
static constexpr pointer allocate(_Alloc &__a, size_type __n)
Allocate memory.
static constexpr void destroy(_Alloc &__a, _Tp *__p) noexcept(_S_nothrow_destroy< _Tp >())
Destroy an object of type _Tp.
requires static constexpr __can_construct< _Alloc, _Tp, _Args... > void construct(_Alloc &__a, _Tp *__p, _Args &&... __args) noexcept(_S_nothrow_construct< _Tp, _Args... >())
Construct an object of type _Tp
_Alloc::value_type value_type
The allocated type.
static constexpr void deallocate(_Alloc &__a, pointer __p, size_type __n)
Deallocate memory.
The standard allocator, as per C++03 [20.4.1].
Definition: allocator.h:134
Base class for all library exceptions.
Definition: exception.h:62
A simple smart pointer providing strict ownership semantics.
Definition: auto_ptr.h:94
Exception possibly thrown by shared_ptr.
virtual char const * what() const noexcept
One of the comparison functors.
Definition: stl_function.h:404
A move-only smart pointer that manages unique ownership of a resource.
Definition: unique_ptr.h:271
Scoped lock idiom.
Definition: concurrence.h:234