libstdc++
hashtable_policy.h
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1 // Internal policy header for unordered_set and unordered_map -*- C++ -*-
2 
3 // Copyright (C) 2010-2022 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 /** @file bits/hashtable_policy.h
26  * This is an internal header file, included by other library headers.
27  * Do not attempt to use it directly.
28  * @headername{unordered_map,unordered_set}
29  */
30 
31 #ifndef _HASHTABLE_POLICY_H
32 #define _HASHTABLE_POLICY_H 1
33 
34 #include <tuple> // for std::tuple, std::forward_as_tuple
35 #include <bits/stl_algobase.h> // for std::min, std::is_permutation.
36 #include <ext/aligned_buffer.h> // for __gnu_cxx::__aligned_buffer
37 #include <ext/alloc_traits.h> // for std::__alloc_rebind
38 #include <ext/numeric_traits.h> // for __gnu_cxx::__int_traits
39 
40 namespace std _GLIBCXX_VISIBILITY(default)
41 {
42 _GLIBCXX_BEGIN_NAMESPACE_VERSION
43 /// @cond undocumented
44 
45  template<typename _Key, typename _Value, typename _Alloc,
46  typename _ExtractKey, typename _Equal,
47  typename _Hash, typename _RangeHash, typename _Unused,
48  typename _RehashPolicy, typename _Traits>
49  class _Hashtable;
50 
51 namespace __detail
52 {
53  /**
54  * @defgroup hashtable-detail Base and Implementation Classes
55  * @ingroup unordered_associative_containers
56  * @{
57  */
58  template<typename _Key, typename _Value, typename _ExtractKey,
59  typename _Equal, typename _Hash, typename _RangeHash,
60  typename _Unused, typename _Traits>
61  struct _Hashtable_base;
62 
63  // Helper function: return distance(first, last) for forward
64  // iterators, or 0/1 for input iterators.
65  template<typename _Iterator>
67  __distance_fw(_Iterator __first, _Iterator __last,
69  { return __first != __last ? 1 : 0; }
70 
71  template<typename _Iterator>
73  __distance_fw(_Iterator __first, _Iterator __last,
75  { return std::distance(__first, __last); }
76 
77  template<typename _Iterator>
79  __distance_fw(_Iterator __first, _Iterator __last)
80  { return __distance_fw(__first, __last,
81  std::__iterator_category(__first)); }
82 
83  struct _Identity
84  {
85  template<typename _Tp>
86  _Tp&&
87  operator()(_Tp&& __x) const noexcept
88  { return std::forward<_Tp>(__x); }
89  };
90 
91  struct _Select1st
92  {
93  template<typename _Pair>
94  struct __1st_type;
95 
96  template<typename _Tp, typename _Up>
97  struct __1st_type<pair<_Tp, _Up>>
98  { using type = _Tp; };
99 
100  template<typename _Tp, typename _Up>
101  struct __1st_type<const pair<_Tp, _Up>>
102  { using type = const _Tp; };
103 
104  template<typename _Pair>
105  struct __1st_type<_Pair&>
106  { using type = typename __1st_type<_Pair>::type&; };
107 
108  template<typename _Tp>
109  typename __1st_type<_Tp>::type&&
110  operator()(_Tp&& __x) const noexcept
111  { return std::forward<_Tp>(__x).first; }
112  };
113 
114  template<typename _ExKey>
115  struct _NodeBuilder;
116 
117  template<>
118  struct _NodeBuilder<_Select1st>
119  {
120  template<typename _Kt, typename _Arg, typename _NodeGenerator>
121  static auto
122  _S_build(_Kt&& __k, _Arg&& __arg, const _NodeGenerator& __node_gen)
123  -> typename _NodeGenerator::__node_type*
124  {
125  return __node_gen(std::forward<_Kt>(__k),
126  std::forward<_Arg>(__arg).second);
127  }
128  };
129 
130  template<>
131  struct _NodeBuilder<_Identity>
132  {
133  template<typename _Kt, typename _Arg, typename _NodeGenerator>
134  static auto
135  _S_build(_Kt&& __k, _Arg&&, const _NodeGenerator& __node_gen)
136  -> typename _NodeGenerator::__node_type*
137  { return __node_gen(std::forward<_Kt>(__k)); }
138  };
139 
140  template<typename _NodeAlloc>
141  struct _Hashtable_alloc;
142 
143  // Functor recycling a pool of nodes and using allocation once the pool is
144  // empty.
145  template<typename _NodeAlloc>
146  struct _ReuseOrAllocNode
147  {
148  private:
149  using __node_alloc_type = _NodeAlloc;
150  using __hashtable_alloc = _Hashtable_alloc<__node_alloc_type>;
151  using __node_alloc_traits =
152  typename __hashtable_alloc::__node_alloc_traits;
153 
154  public:
155  using __node_type = typename __hashtable_alloc::__node_type;
156 
157  _ReuseOrAllocNode(__node_type* __nodes, __hashtable_alloc& __h)
158  : _M_nodes(__nodes), _M_h(__h) { }
159  _ReuseOrAllocNode(const _ReuseOrAllocNode&) = delete;
160 
161  ~_ReuseOrAllocNode()
162  { _M_h._M_deallocate_nodes(_M_nodes); }
163 
164  template<typename... _Args>
165  __node_type*
166  operator()(_Args&&... __args) const
167  {
168  if (_M_nodes)
169  {
170  __node_type* __node = _M_nodes;
171  _M_nodes = _M_nodes->_M_next();
172  __node->_M_nxt = nullptr;
173  auto& __a = _M_h._M_node_allocator();
174  __node_alloc_traits::destroy(__a, __node->_M_valptr());
175  __try
176  {
177  __node_alloc_traits::construct(__a, __node->_M_valptr(),
178  std::forward<_Args>(__args)...);
179  }
180  __catch(...)
181  {
182  _M_h._M_deallocate_node_ptr(__node);
183  __throw_exception_again;
184  }
185  return __node;
186  }
187  return _M_h._M_allocate_node(std::forward<_Args>(__args)...);
188  }
189 
190  private:
191  mutable __node_type* _M_nodes;
192  __hashtable_alloc& _M_h;
193  };
194 
195  // Functor similar to the previous one but without any pool of nodes to
196  // recycle.
197  template<typename _NodeAlloc>
198  struct _AllocNode
199  {
200  private:
201  using __hashtable_alloc = _Hashtable_alloc<_NodeAlloc>;
202 
203  public:
204  using __node_type = typename __hashtable_alloc::__node_type;
205 
206  _AllocNode(__hashtable_alloc& __h)
207  : _M_h(__h) { }
208 
209  template<typename... _Args>
210  __node_type*
211  operator()(_Args&&... __args) const
212  { return _M_h._M_allocate_node(std::forward<_Args>(__args)...); }
213 
214  private:
215  __hashtable_alloc& _M_h;
216  };
217 
218  // Auxiliary types used for all instantiations of _Hashtable nodes
219  // and iterators.
220 
221  /**
222  * struct _Hashtable_traits
223  *
224  * Important traits for hash tables.
225  *
226  * @tparam _Cache_hash_code Boolean value. True if the value of
227  * the hash function is stored along with the value. This is a
228  * time-space tradeoff. Storing it may improve lookup speed by
229  * reducing the number of times we need to call the _Hash or _Equal
230  * functors.
231  *
232  * @tparam _Constant_iterators Boolean value. True if iterator and
233  * const_iterator are both constant iterator types. This is true
234  * for unordered_set and unordered_multiset, false for
235  * unordered_map and unordered_multimap.
236  *
237  * @tparam _Unique_keys Boolean value. True if the return value
238  * of _Hashtable::count(k) is always at most one, false if it may
239  * be an arbitrary number. This is true for unordered_set and
240  * unordered_map, false for unordered_multiset and
241  * unordered_multimap.
242  */
243  template<bool _Cache_hash_code, bool _Constant_iterators, bool _Unique_keys>
244  struct _Hashtable_traits
245  {
246  using __hash_cached = __bool_constant<_Cache_hash_code>;
247  using __constant_iterators = __bool_constant<_Constant_iterators>;
248  using __unique_keys = __bool_constant<_Unique_keys>;
249  };
250 
251  /**
252  * struct _Hashtable_hash_traits
253  *
254  * Important traits for hash tables depending on associated hasher.
255  *
256  */
257  template<typename _Hash>
258  struct _Hashtable_hash_traits
259  {
260  static constexpr std::size_t
261  __small_size_threshold() noexcept
262  { return std::__is_fast_hash<_Hash>::value ? 0 : 20; }
263  };
264 
265  /**
266  * struct _Hash_node_base
267  *
268  * Nodes, used to wrap elements stored in the hash table. A policy
269  * template parameter of class template _Hashtable controls whether
270  * nodes also store a hash code. In some cases (e.g. strings) this
271  * may be a performance win.
272  */
273  struct _Hash_node_base
274  {
275  _Hash_node_base* _M_nxt;
276 
277  _Hash_node_base() noexcept : _M_nxt() { }
278 
279  _Hash_node_base(_Hash_node_base* __next) noexcept : _M_nxt(__next) { }
280  };
281 
282  /**
283  * struct _Hash_node_value_base
284  *
285  * Node type with the value to store.
286  */
287  template<typename _Value>
288  struct _Hash_node_value_base
289  {
290  typedef _Value value_type;
291 
292  __gnu_cxx::__aligned_buffer<_Value> _M_storage;
293 
294  [[__gnu__::__always_inline__]]
295  _Value*
296  _M_valptr() noexcept
297  { return _M_storage._M_ptr(); }
298 
299  [[__gnu__::__always_inline__]]
300  const _Value*
301  _M_valptr() const noexcept
302  { return _M_storage._M_ptr(); }
303 
304  [[__gnu__::__always_inline__]]
305  _Value&
306  _M_v() noexcept
307  { return *_M_valptr(); }
308 
309  [[__gnu__::__always_inline__]]
310  const _Value&
311  _M_v() const noexcept
312  { return *_M_valptr(); }
313  };
314 
315  /**
316  * Primary template struct _Hash_node_code_cache.
317  */
318  template<bool _Cache_hash_code>
319  struct _Hash_node_code_cache
320  { };
321 
322  /**
323  * Specialization for node with cache, struct _Hash_node_code_cache.
324  */
325  template<>
326  struct _Hash_node_code_cache<true>
327  { std::size_t _M_hash_code; };
328 
329  template<typename _Value, bool _Cache_hash_code>
330  struct _Hash_node_value
331  : _Hash_node_value_base<_Value>
332  , _Hash_node_code_cache<_Cache_hash_code>
333  { };
334 
335  /**
336  * Primary template struct _Hash_node.
337  */
338  template<typename _Value, bool _Cache_hash_code>
339  struct _Hash_node
340  : _Hash_node_base
341  , _Hash_node_value<_Value, _Cache_hash_code>
342  {
343  _Hash_node*
344  _M_next() const noexcept
345  { return static_cast<_Hash_node*>(this->_M_nxt); }
346  };
347 
348  /// Base class for node iterators.
349  template<typename _Value, bool _Cache_hash_code>
350  struct _Node_iterator_base
351  {
352  using __node_type = _Hash_node<_Value, _Cache_hash_code>;
353 
354  __node_type* _M_cur;
355 
356  _Node_iterator_base() : _M_cur(nullptr) { }
357  _Node_iterator_base(__node_type* __p) noexcept
358  : _M_cur(__p) { }
359 
360  void
361  _M_incr() noexcept
362  { _M_cur = _M_cur->_M_next(); }
363 
364  friend bool
365  operator==(const _Node_iterator_base& __x, const _Node_iterator_base& __y)
366  noexcept
367  { return __x._M_cur == __y._M_cur; }
368 
369 #if __cpp_impl_three_way_comparison < 201907L
370  friend bool
371  operator!=(const _Node_iterator_base& __x, const _Node_iterator_base& __y)
372  noexcept
373  { return __x._M_cur != __y._M_cur; }
374 #endif
375  };
376 
377  /// Node iterators, used to iterate through all the hashtable.
378  template<typename _Value, bool __constant_iterators, bool __cache>
379  struct _Node_iterator
380  : public _Node_iterator_base<_Value, __cache>
381  {
382  private:
383  using __base_type = _Node_iterator_base<_Value, __cache>;
384  using __node_type = typename __base_type::__node_type;
385 
386  public:
387  using value_type = _Value;
388  using difference_type = std::ptrdiff_t;
389  using iterator_category = std::forward_iterator_tag;
390 
391  using pointer = __conditional_t<__constant_iterators,
392  const value_type*, value_type*>;
393 
394  using reference = __conditional_t<__constant_iterators,
395  const value_type&, value_type&>;
396 
397  _Node_iterator() = default;
398 
399  explicit
400  _Node_iterator(__node_type* __p) noexcept
401  : __base_type(__p) { }
402 
403  reference
404  operator*() const noexcept
405  { return this->_M_cur->_M_v(); }
406 
407  pointer
408  operator->() const noexcept
409  { return this->_M_cur->_M_valptr(); }
410 
411  _Node_iterator&
412  operator++() noexcept
413  {
414  this->_M_incr();
415  return *this;
416  }
417 
418  _Node_iterator
419  operator++(int) noexcept
420  {
421  _Node_iterator __tmp(*this);
422  this->_M_incr();
423  return __tmp;
424  }
425  };
426 
427  /// Node const_iterators, used to iterate through all the hashtable.
428  template<typename _Value, bool __constant_iterators, bool __cache>
429  struct _Node_const_iterator
430  : public _Node_iterator_base<_Value, __cache>
431  {
432  private:
433  using __base_type = _Node_iterator_base<_Value, __cache>;
434  using __node_type = typename __base_type::__node_type;
435 
436  public:
437  typedef _Value value_type;
438  typedef std::ptrdiff_t difference_type;
439  typedef std::forward_iterator_tag iterator_category;
440 
441  typedef const value_type* pointer;
442  typedef const value_type& reference;
443 
444  _Node_const_iterator() = default;
445 
446  explicit
447  _Node_const_iterator(__node_type* __p) noexcept
448  : __base_type(__p) { }
449 
450  _Node_const_iterator(const _Node_iterator<_Value, __constant_iterators,
451  __cache>& __x) noexcept
452  : __base_type(__x._M_cur) { }
453 
454  reference
455  operator*() const noexcept
456  { return this->_M_cur->_M_v(); }
457 
458  pointer
459  operator->() const noexcept
460  { return this->_M_cur->_M_valptr(); }
461 
462  _Node_const_iterator&
463  operator++() noexcept
464  {
465  this->_M_incr();
466  return *this;
467  }
468 
469  _Node_const_iterator
470  operator++(int) noexcept
471  {
472  _Node_const_iterator __tmp(*this);
473  this->_M_incr();
474  return __tmp;
475  }
476  };
477 
478  // Many of class template _Hashtable's template parameters are policy
479  // classes. These are defaults for the policies.
480 
481  /// Default range hashing function: use division to fold a large number
482  /// into the range [0, N).
483  struct _Mod_range_hashing
484  {
485  typedef std::size_t first_argument_type;
486  typedef std::size_t second_argument_type;
487  typedef std::size_t result_type;
488 
489  result_type
490  operator()(first_argument_type __num,
491  second_argument_type __den) const noexcept
492  { return __num % __den; }
493  };
494 
495  /// Default ranged hash function H. In principle it should be a
496  /// function object composed from objects of type H1 and H2 such that
497  /// h(k, N) = h2(h1(k), N), but that would mean making extra copies of
498  /// h1 and h2. So instead we'll just use a tag to tell class template
499  /// hashtable to do that composition.
500  struct _Default_ranged_hash { };
501 
502  /// Default value for rehash policy. Bucket size is (usually) the
503  /// smallest prime that keeps the load factor small enough.
504  struct _Prime_rehash_policy
505  {
506  using __has_load_factor = true_type;
507 
508  _Prime_rehash_policy(float __z = 1.0) noexcept
509  : _M_max_load_factor(__z), _M_next_resize(0) { }
510 
511  float
512  max_load_factor() const noexcept
513  { return _M_max_load_factor; }
514 
515  // Return a bucket size no smaller than n.
516  std::size_t
517  _M_next_bkt(std::size_t __n) const;
518 
519  // Return a bucket count appropriate for n elements
520  std::size_t
521  _M_bkt_for_elements(std::size_t __n) const
522  { return __builtin_ceil(__n / (double)_M_max_load_factor); }
523 
524  // __n_bkt is current bucket count, __n_elt is current element count,
525  // and __n_ins is number of elements to be inserted. Do we need to
526  // increase bucket count? If so, return make_pair(true, n), where n
527  // is the new bucket count. If not, return make_pair(false, 0).
529  _M_need_rehash(std::size_t __n_bkt, std::size_t __n_elt,
530  std::size_t __n_ins) const;
531 
532  typedef std::size_t _State;
533 
534  _State
535  _M_state() const
536  { return _M_next_resize; }
537 
538  void
539  _M_reset() noexcept
540  { _M_next_resize = 0; }
541 
542  void
543  _M_reset(_State __state)
544  { _M_next_resize = __state; }
545 
546  static const std::size_t _S_growth_factor = 2;
547 
548  float _M_max_load_factor;
549  mutable std::size_t _M_next_resize;
550  };
551 
552  /// Range hashing function assuming that second arg is a power of 2.
553  struct _Mask_range_hashing
554  {
555  typedef std::size_t first_argument_type;
556  typedef std::size_t second_argument_type;
557  typedef std::size_t result_type;
558 
559  result_type
560  operator()(first_argument_type __num,
561  second_argument_type __den) const noexcept
562  { return __num & (__den - 1); }
563  };
564 
565  /// Compute closest power of 2 not less than __n
566  inline std::size_t
567  __clp2(std::size_t __n) noexcept
568  {
570  // Equivalent to return __n ? std::bit_ceil(__n) : 0;
571  if (__n < 2)
572  return __n;
573  const unsigned __lz = sizeof(size_t) > sizeof(long)
574  ? __builtin_clzll(__n - 1ull)
575  : __builtin_clzl(__n - 1ul);
576  // Doing two shifts avoids undefined behaviour when __lz == 0.
577  return (size_t(1) << (__int_traits<size_t>::__digits - __lz - 1)) << 1;
578  }
579 
580  /// Rehash policy providing power of 2 bucket numbers. Avoids modulo
581  /// operations.
582  struct _Power2_rehash_policy
583  {
584  using __has_load_factor = true_type;
585 
586  _Power2_rehash_policy(float __z = 1.0) noexcept
587  : _M_max_load_factor(__z), _M_next_resize(0) { }
588 
589  float
590  max_load_factor() const noexcept
591  { return _M_max_load_factor; }
592 
593  // Return a bucket size no smaller than n (as long as n is not above the
594  // highest power of 2).
595  std::size_t
596  _M_next_bkt(std::size_t __n) noexcept
597  {
598  if (__n == 0)
599  // Special case on container 1st initialization with 0 bucket count
600  // hint. We keep _M_next_resize to 0 to make sure that next time we
601  // want to add an element allocation will take place.
602  return 1;
603 
604  const auto __max_width = std::min<size_t>(sizeof(size_t), 8);
605  const auto __max_bkt = size_t(1) << (__max_width * __CHAR_BIT__ - 1);
606  std::size_t __res = __clp2(__n);
607 
608  if (__res == 0)
609  __res = __max_bkt;
610  else if (__res == 1)
611  // If __res is 1 we force it to 2 to make sure there will be an
612  // allocation so that nothing need to be stored in the initial
613  // single bucket
614  __res = 2;
615 
616  if (__res == __max_bkt)
617  // Set next resize to the max value so that we never try to rehash again
618  // as we already reach the biggest possible bucket number.
619  // Note that it might result in max_load_factor not being respected.
620  _M_next_resize = size_t(-1);
621  else
622  _M_next_resize
623  = __builtin_floor(__res * (double)_M_max_load_factor);
624 
625  return __res;
626  }
627 
628  // Return a bucket count appropriate for n elements
629  std::size_t
630  _M_bkt_for_elements(std::size_t __n) const noexcept
631  { return __builtin_ceil(__n / (double)_M_max_load_factor); }
632 
633  // __n_bkt is current bucket count, __n_elt is current element count,
634  // and __n_ins is number of elements to be inserted. Do we need to
635  // increase bucket count? If so, return make_pair(true, n), where n
636  // is the new bucket count. If not, return make_pair(false, 0).
638  _M_need_rehash(std::size_t __n_bkt, std::size_t __n_elt,
639  std::size_t __n_ins) noexcept
640  {
641  if (__n_elt + __n_ins > _M_next_resize)
642  {
643  // If _M_next_resize is 0 it means that we have nothing allocated so
644  // far and that we start inserting elements. In this case we start
645  // with an initial bucket size of 11.
646  double __min_bkts
647  = std::max<std::size_t>(__n_elt + __n_ins, _M_next_resize ? 0 : 11)
648  / (double)_M_max_load_factor;
649  if (__min_bkts >= __n_bkt)
650  return { true,
651  _M_next_bkt(std::max<std::size_t>(__builtin_floor(__min_bkts) + 1,
652  __n_bkt * _S_growth_factor)) };
653 
654  _M_next_resize
655  = __builtin_floor(__n_bkt * (double)_M_max_load_factor);
656  return { false, 0 };
657  }
658  else
659  return { false, 0 };
660  }
661 
662  typedef std::size_t _State;
663 
664  _State
665  _M_state() const noexcept
666  { return _M_next_resize; }
667 
668  void
669  _M_reset() noexcept
670  { _M_next_resize = 0; }
671 
672  void
673  _M_reset(_State __state) noexcept
674  { _M_next_resize = __state; }
675 
676  static const std::size_t _S_growth_factor = 2;
677 
678  float _M_max_load_factor;
679  std::size_t _M_next_resize;
680  };
681 
682  // Base classes for std::_Hashtable. We define these base classes
683  // because in some cases we want to do different things depending on
684  // the value of a policy class. In some cases the policy class
685  // affects which member functions and nested typedefs are defined;
686  // we handle that by specializing base class templates. Several of
687  // the base class templates need to access other members of class
688  // template _Hashtable, so we use a variant of the "Curiously
689  // Recurring Template Pattern" (CRTP) technique.
690 
691  /**
692  * Primary class template _Map_base.
693  *
694  * If the hashtable has a value type of the form pair<const T1, T2> and
695  * a key extraction policy (_ExtractKey) that returns the first part
696  * of the pair, the hashtable gets a mapped_type typedef. If it
697  * satisfies those criteria and also has unique keys, then it also
698  * gets an operator[].
699  */
700  template<typename _Key, typename _Value, typename _Alloc,
701  typename _ExtractKey, typename _Equal,
702  typename _Hash, typename _RangeHash, typename _Unused,
703  typename _RehashPolicy, typename _Traits,
704  bool _Unique_keys = _Traits::__unique_keys::value>
705  struct _Map_base { };
706 
707  /// Partial specialization, __unique_keys set to false, std::pair value type.
708  template<typename _Key, typename _Val, typename _Alloc, typename _Equal,
709  typename _Hash, typename _RangeHash, typename _Unused,
710  typename _RehashPolicy, typename _Traits>
711  struct _Map_base<_Key, pair<const _Key, _Val>, _Alloc, _Select1st, _Equal,
712  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits, false>
713  {
714  using mapped_type = _Val;
715  };
716 
717  /// Partial specialization, __unique_keys set to true.
718  template<typename _Key, typename _Val, typename _Alloc, typename _Equal,
719  typename _Hash, typename _RangeHash, typename _Unused,
720  typename _RehashPolicy, typename _Traits>
721  struct _Map_base<_Key, pair<const _Key, _Val>, _Alloc, _Select1st, _Equal,
722  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits, true>
723  {
724  private:
725  using __hashtable_base = _Hashtable_base<_Key, pair<const _Key, _Val>,
726  _Select1st, _Equal, _Hash,
727  _RangeHash, _Unused,
728  _Traits>;
729 
730  using __hashtable = _Hashtable<_Key, pair<const _Key, _Val>, _Alloc,
731  _Select1st, _Equal, _Hash, _RangeHash,
732  _Unused, _RehashPolicy, _Traits>;
733 
734  using __hash_code = typename __hashtable_base::__hash_code;
735 
736  public:
737  using key_type = typename __hashtable_base::key_type;
738  using mapped_type = _Val;
739 
740  mapped_type&
741  operator[](const key_type& __k);
742 
743  mapped_type&
744  operator[](key_type&& __k);
745 
746  // _GLIBCXX_RESOLVE_LIB_DEFECTS
747  // DR 761. unordered_map needs an at() member function.
748  mapped_type&
749  at(const key_type& __k)
750  {
751  auto __ite = static_cast<__hashtable*>(this)->find(__k);
752  if (!__ite._M_cur)
753  __throw_out_of_range(__N("unordered_map::at"));
754  return __ite->second;
755  }
756 
757  const mapped_type&
758  at(const key_type& __k) const
759  {
760  auto __ite = static_cast<const __hashtable*>(this)->find(__k);
761  if (!__ite._M_cur)
762  __throw_out_of_range(__N("unordered_map::at"));
763  return __ite->second;
764  }
765  };
766 
767  template<typename _Key, typename _Val, typename _Alloc, typename _Equal,
768  typename _Hash, typename _RangeHash, typename _Unused,
769  typename _RehashPolicy, typename _Traits>
770  auto
771  _Map_base<_Key, pair<const _Key, _Val>, _Alloc, _Select1st, _Equal,
772  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits, true>::
773  operator[](const key_type& __k)
774  -> mapped_type&
775  {
776  __hashtable* __h = static_cast<__hashtable*>(this);
777  __hash_code __code = __h->_M_hash_code(__k);
778  std::size_t __bkt = __h->_M_bucket_index(__code);
779  if (auto __node = __h->_M_find_node(__bkt, __k, __code))
780  return __node->_M_v().second;
781 
782  typename __hashtable::_Scoped_node __node {
783  __h,
786  std::tuple<>()
787  };
788  auto __pos
789  = __h->_M_insert_unique_node(__bkt, __code, __node._M_node);
790  __node._M_node = nullptr;
791  return __pos->second;
792  }
793 
794  template<typename _Key, typename _Val, typename _Alloc, typename _Equal,
795  typename _Hash, typename _RangeHash, typename _Unused,
796  typename _RehashPolicy, typename _Traits>
797  auto
798  _Map_base<_Key, pair<const _Key, _Val>, _Alloc, _Select1st, _Equal,
799  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits, true>::
800  operator[](key_type&& __k)
801  -> mapped_type&
802  {
803  __hashtable* __h = static_cast<__hashtable*>(this);
804  __hash_code __code = __h->_M_hash_code(__k);
805  std::size_t __bkt = __h->_M_bucket_index(__code);
806  if (auto __node = __h->_M_find_node(__bkt, __k, __code))
807  return __node->_M_v().second;
808 
809  typename __hashtable::_Scoped_node __node {
810  __h,
813  std::tuple<>()
814  };
815  auto __pos
816  = __h->_M_insert_unique_node(__bkt, __code, __node._M_node);
817  __node._M_node = nullptr;
818  return __pos->second;
819  }
820 
821  // Partial specialization for unordered_map<const T, U>, see PR 104174.
822  template<typename _Key, typename _Val, typename _Alloc, typename _Equal,
823  typename _Hash, typename _RangeHash, typename _Unused,
824  typename _RehashPolicy, typename _Traits, bool __uniq>
825  struct _Map_base<const _Key, pair<const _Key, _Val>,
826  _Alloc, _Select1st, _Equal, _Hash,
827  _RangeHash, _Unused, _RehashPolicy, _Traits, __uniq>
828  : _Map_base<_Key, pair<const _Key, _Val>, _Alloc, _Select1st, _Equal, _Hash,
829  _RangeHash, _Unused, _RehashPolicy, _Traits, __uniq>
830  { };
831 
832  /**
833  * Primary class template _Insert_base.
834  *
835  * Defines @c insert member functions appropriate to all _Hashtables.
836  */
837  template<typename _Key, typename _Value, typename _Alloc,
838  typename _ExtractKey, typename _Equal,
839  typename _Hash, typename _RangeHash, typename _Unused,
840  typename _RehashPolicy, typename _Traits>
841  struct _Insert_base
842  {
843  protected:
844  using __hashtable_base = _Hashtable_base<_Key, _Value, _ExtractKey,
845  _Equal, _Hash, _RangeHash,
846  _Unused, _Traits>;
847 
848  using __hashtable = _Hashtable<_Key, _Value, _Alloc, _ExtractKey, _Equal,
849  _Hash, _RangeHash,
850  _Unused, _RehashPolicy, _Traits>;
851 
852  using __hash_cached = typename _Traits::__hash_cached;
853  using __constant_iterators = typename _Traits::__constant_iterators;
854 
855  using __hashtable_alloc = _Hashtable_alloc<
856  __alloc_rebind<_Alloc, _Hash_node<_Value,
857  __hash_cached::value>>>;
858 
859  using value_type = typename __hashtable_base::value_type;
860  using size_type = typename __hashtable_base::size_type;
861 
862  using __unique_keys = typename _Traits::__unique_keys;
863  using __node_alloc_type = typename __hashtable_alloc::__node_alloc_type;
864  using __node_gen_type = _AllocNode<__node_alloc_type>;
865 
866  __hashtable&
867  _M_conjure_hashtable()
868  { return *(static_cast<__hashtable*>(this)); }
869 
870  template<typename _InputIterator, typename _NodeGetter>
871  void
872  _M_insert_range(_InputIterator __first, _InputIterator __last,
873  const _NodeGetter&, true_type __uks);
874 
875  template<typename _InputIterator, typename _NodeGetter>
876  void
877  _M_insert_range(_InputIterator __first, _InputIterator __last,
878  const _NodeGetter&, false_type __uks);
879 
880  public:
881  using iterator = _Node_iterator<_Value, __constant_iterators::value,
882  __hash_cached::value>;
883 
884  using const_iterator = _Node_const_iterator<_Value,
885  __constant_iterators::value,
886  __hash_cached::value>;
887 
888  using __ireturn_type = __conditional_t<__unique_keys::value,
890  iterator>;
891 
892  __ireturn_type
893  insert(const value_type& __v)
894  {
895  __hashtable& __h = _M_conjure_hashtable();
896  __node_gen_type __node_gen(__h);
897  return __h._M_insert(__v, __node_gen, __unique_keys{});
898  }
899 
900  iterator
901  insert(const_iterator __hint, const value_type& __v)
902  {
903  __hashtable& __h = _M_conjure_hashtable();
904  __node_gen_type __node_gen(__h);
905  return __h._M_insert(__hint, __v, __node_gen, __unique_keys{});
906  }
907 
908  template<typename _KType, typename... _Args>
909  std::pair<iterator, bool>
910  try_emplace(const_iterator, _KType&& __k, _Args&&... __args)
911  {
912  __hashtable& __h = _M_conjure_hashtable();
913  auto __code = __h._M_hash_code(__k);
914  std::size_t __bkt = __h._M_bucket_index(__code);
915  if (auto __node = __h._M_find_node(__bkt, __k, __code))
916  return { iterator(__node), false };
917 
918  typename __hashtable::_Scoped_node __node {
919  &__h,
921  std::forward_as_tuple(std::forward<_KType>(__k)),
922  std::forward_as_tuple(std::forward<_Args>(__args)...)
923  };
924  auto __it
925  = __h._M_insert_unique_node(__bkt, __code, __node._M_node);
926  __node._M_node = nullptr;
927  return { __it, true };
928  }
929 
930  void
931  insert(initializer_list<value_type> __l)
932  { this->insert(__l.begin(), __l.end()); }
933 
934  template<typename _InputIterator>
935  void
936  insert(_InputIterator __first, _InputIterator __last)
937  {
938  __hashtable& __h = _M_conjure_hashtable();
939  __node_gen_type __node_gen(__h);
940  return _M_insert_range(__first, __last, __node_gen, __unique_keys{});
941  }
942  };
943 
944  template<typename _Key, typename _Value, typename _Alloc,
945  typename _ExtractKey, typename _Equal,
946  typename _Hash, typename _RangeHash, typename _Unused,
947  typename _RehashPolicy, typename _Traits>
948  template<typename _InputIterator, typename _NodeGetter>
949  void
950  _Insert_base<_Key, _Value, _Alloc, _ExtractKey, _Equal,
951  _Hash, _RangeHash, _Unused,
952  _RehashPolicy, _Traits>::
953  _M_insert_range(_InputIterator __first, _InputIterator __last,
954  const _NodeGetter& __node_gen, true_type __uks)
955  {
956  __hashtable& __h = _M_conjure_hashtable();
957  for (; __first != __last; ++__first)
958  __h._M_insert(*__first, __node_gen, __uks);
959  }
960 
961  template<typename _Key, typename _Value, typename _Alloc,
962  typename _ExtractKey, typename _Equal,
963  typename _Hash, typename _RangeHash, typename _Unused,
964  typename _RehashPolicy, typename _Traits>
965  template<typename _InputIterator, typename _NodeGetter>
966  void
967  _Insert_base<_Key, _Value, _Alloc, _ExtractKey, _Equal,
968  _Hash, _RangeHash, _Unused,
969  _RehashPolicy, _Traits>::
970  _M_insert_range(_InputIterator __first, _InputIterator __last,
971  const _NodeGetter& __node_gen, false_type __uks)
972  {
973  using __rehash_type = typename __hashtable::__rehash_type;
974  using __rehash_state = typename __hashtable::__rehash_state;
975  using pair_type = std::pair<bool, std::size_t>;
976 
977  size_type __n_elt = __detail::__distance_fw(__first, __last);
978  if (__n_elt == 0)
979  return;
980 
981  __hashtable& __h = _M_conjure_hashtable();
982  __rehash_type& __rehash = __h._M_rehash_policy;
983  const __rehash_state& __saved_state = __rehash._M_state();
984  pair_type __do_rehash = __rehash._M_need_rehash(__h._M_bucket_count,
985  __h._M_element_count,
986  __n_elt);
987 
988  if (__do_rehash.first)
989  __h._M_rehash(__do_rehash.second, __saved_state);
990 
991  for (; __first != __last; ++__first)
992  __h._M_insert(*__first, __node_gen, __uks);
993  }
994 
995  /**
996  * Primary class template _Insert.
997  *
998  * Defines @c insert member functions that depend on _Hashtable policies,
999  * via partial specializations.
1000  */
1001  template<typename _Key, typename _Value, typename _Alloc,
1002  typename _ExtractKey, typename _Equal,
1003  typename _Hash, typename _RangeHash, typename _Unused,
1004  typename _RehashPolicy, typename _Traits,
1005  bool _Constant_iterators = _Traits::__constant_iterators::value>
1006  struct _Insert;
1007 
1008  /// Specialization.
1009  template<typename _Key, typename _Value, typename _Alloc,
1010  typename _ExtractKey, typename _Equal,
1011  typename _Hash, typename _RangeHash, typename _Unused,
1012  typename _RehashPolicy, typename _Traits>
1013  struct _Insert<_Key, _Value, _Alloc, _ExtractKey, _Equal,
1014  _Hash, _RangeHash, _Unused,
1015  _RehashPolicy, _Traits, true>
1016  : public _Insert_base<_Key, _Value, _Alloc, _ExtractKey, _Equal,
1017  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits>
1018  {
1019  using __base_type = _Insert_base<_Key, _Value, _Alloc, _ExtractKey,
1020  _Equal, _Hash, _RangeHash, _Unused,
1021  _RehashPolicy, _Traits>;
1022 
1023  using value_type = typename __base_type::value_type;
1024  using iterator = typename __base_type::iterator;
1025  using const_iterator = typename __base_type::const_iterator;
1026  using __ireturn_type = typename __base_type::__ireturn_type;
1027 
1028  using __unique_keys = typename __base_type::__unique_keys;
1029  using __hashtable = typename __base_type::__hashtable;
1030  using __node_gen_type = typename __base_type::__node_gen_type;
1031 
1032  using __base_type::insert;
1033 
1034  __ireturn_type
1035  insert(value_type&& __v)
1036  {
1037  __hashtable& __h = this->_M_conjure_hashtable();
1038  __node_gen_type __node_gen(__h);
1039  return __h._M_insert(std::move(__v), __node_gen, __unique_keys{});
1040  }
1041 
1042  iterator
1043  insert(const_iterator __hint, value_type&& __v)
1044  {
1045  __hashtable& __h = this->_M_conjure_hashtable();
1046  __node_gen_type __node_gen(__h);
1047  return __h._M_insert(__hint, std::move(__v), __node_gen,
1048  __unique_keys{});
1049  }
1050  };
1051 
1052  /// Specialization.
1053  template<typename _Key, typename _Value, typename _Alloc,
1054  typename _ExtractKey, typename _Equal,
1055  typename _Hash, typename _RangeHash, typename _Unused,
1056  typename _RehashPolicy, typename _Traits>
1057  struct _Insert<_Key, _Value, _Alloc, _ExtractKey, _Equal,
1058  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits, false>
1059  : public _Insert_base<_Key, _Value, _Alloc, _ExtractKey, _Equal,
1060  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits>
1061  {
1062  using __base_type = _Insert_base<_Key, _Value, _Alloc, _ExtractKey,
1063  _Equal, _Hash, _RangeHash, _Unused,
1064  _RehashPolicy, _Traits>;
1065  using value_type = typename __base_type::value_type;
1066  using iterator = typename __base_type::iterator;
1067  using const_iterator = typename __base_type::const_iterator;
1068 
1069  using __unique_keys = typename __base_type::__unique_keys;
1070  using __hashtable = typename __base_type::__hashtable;
1071  using __ireturn_type = typename __base_type::__ireturn_type;
1072 
1073  using __base_type::insert;
1074 
1075  template<typename _Pair>
1077 
1078  template<typename _Pair>
1079  using _IFcons = std::enable_if<__is_cons<_Pair>::value>;
1080 
1081  template<typename _Pair>
1082  using _IFconsp = typename _IFcons<_Pair>::type;
1083 
1084  template<typename _Pair, typename = _IFconsp<_Pair>>
1085  __ireturn_type
1086  insert(_Pair&& __v)
1087  {
1088  __hashtable& __h = this->_M_conjure_hashtable();
1089  return __h._M_emplace(__unique_keys{}, std::forward<_Pair>(__v));
1090  }
1091 
1092  template<typename _Pair, typename = _IFconsp<_Pair>>
1093  iterator
1094  insert(const_iterator __hint, _Pair&& __v)
1095  {
1096  __hashtable& __h = this->_M_conjure_hashtable();
1097  return __h._M_emplace(__hint, __unique_keys{},
1098  std::forward<_Pair>(__v));
1099  }
1100  };
1101 
1102  template<typename _Policy>
1103  using __has_load_factor = typename _Policy::__has_load_factor;
1104 
1105  /**
1106  * Primary class template _Rehash_base.
1107  *
1108  * Give hashtable the max_load_factor functions and reserve iff the
1109  * rehash policy supports it.
1110  */
1111  template<typename _Key, typename _Value, typename _Alloc,
1112  typename _ExtractKey, typename _Equal,
1113  typename _Hash, typename _RangeHash, typename _Unused,
1114  typename _RehashPolicy, typename _Traits,
1115  typename =
1116  __detected_or_t<false_type, __has_load_factor, _RehashPolicy>>
1117  struct _Rehash_base;
1118 
1119  /// Specialization when rehash policy doesn't provide load factor management.
1120  template<typename _Key, typename _Value, typename _Alloc,
1121  typename _ExtractKey, typename _Equal,
1122  typename _Hash, typename _RangeHash, typename _Unused,
1123  typename _RehashPolicy, typename _Traits>
1124  struct _Rehash_base<_Key, _Value, _Alloc, _ExtractKey, _Equal,
1125  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits,
1126  false_type /* Has load factor */>
1127  {
1128  };
1129 
1130  /// Specialization when rehash policy provide load factor management.
1131  template<typename _Key, typename _Value, typename _Alloc,
1132  typename _ExtractKey, typename _Equal,
1133  typename _Hash, typename _RangeHash, typename _Unused,
1134  typename _RehashPolicy, typename _Traits>
1135  struct _Rehash_base<_Key, _Value, _Alloc, _ExtractKey, _Equal,
1136  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits,
1137  true_type /* Has load factor */>
1138  {
1139  private:
1140  using __hashtable = _Hashtable<_Key, _Value, _Alloc, _ExtractKey,
1141  _Equal, _Hash, _RangeHash, _Unused,
1142  _RehashPolicy, _Traits>;
1143 
1144  public:
1145  float
1146  max_load_factor() const noexcept
1147  {
1148  const __hashtable* __this = static_cast<const __hashtable*>(this);
1149  return __this->__rehash_policy().max_load_factor();
1150  }
1151 
1152  void
1153  max_load_factor(float __z)
1154  {
1155  __hashtable* __this = static_cast<__hashtable*>(this);
1156  __this->__rehash_policy(_RehashPolicy(__z));
1157  }
1158 
1159  void
1160  reserve(std::size_t __n)
1161  {
1162  __hashtable* __this = static_cast<__hashtable*>(this);
1163  __this->rehash(__this->__rehash_policy()._M_bkt_for_elements(__n));
1164  }
1165  };
1166 
1167  /**
1168  * Primary class template _Hashtable_ebo_helper.
1169  *
1170  * Helper class using EBO when it is not forbidden (the type is not
1171  * final) and when it is worth it (the type is empty.)
1172  */
1173  template<int _Nm, typename _Tp,
1174  bool __use_ebo = !__is_final(_Tp) && __is_empty(_Tp)>
1175  struct _Hashtable_ebo_helper;
1176 
1177  /// Specialization using EBO.
1178  template<int _Nm, typename _Tp>
1179  struct _Hashtable_ebo_helper<_Nm, _Tp, true>
1180  : private _Tp
1181  {
1182  _Hashtable_ebo_helper() noexcept(noexcept(_Tp())) : _Tp() { }
1183 
1184  template<typename _OtherTp>
1185  _Hashtable_ebo_helper(_OtherTp&& __tp)
1186  : _Tp(std::forward<_OtherTp>(__tp))
1187  { }
1188 
1189  const _Tp& _M_cget() const { return static_cast<const _Tp&>(*this); }
1190  _Tp& _M_get() { return static_cast<_Tp&>(*this); }
1191  };
1192 
1193  /// Specialization not using EBO.
1194  template<int _Nm, typename _Tp>
1195  struct _Hashtable_ebo_helper<_Nm, _Tp, false>
1196  {
1197  _Hashtable_ebo_helper() = default;
1198 
1199  template<typename _OtherTp>
1200  _Hashtable_ebo_helper(_OtherTp&& __tp)
1201  : _M_tp(std::forward<_OtherTp>(__tp))
1202  { }
1203 
1204  const _Tp& _M_cget() const { return _M_tp; }
1205  _Tp& _M_get() { return _M_tp; }
1206 
1207  private:
1208  _Tp _M_tp{};
1209  };
1210 
1211  /**
1212  * Primary class template _Local_iterator_base.
1213  *
1214  * Base class for local iterators, used to iterate within a bucket
1215  * but not between buckets.
1216  */
1217  template<typename _Key, typename _Value, typename _ExtractKey,
1218  typename _Hash, typename _RangeHash, typename _Unused,
1219  bool __cache_hash_code>
1220  struct _Local_iterator_base;
1221 
1222  /**
1223  * Primary class template _Hash_code_base.
1224  *
1225  * Encapsulates two policy issues that aren't quite orthogonal.
1226  * (1) the difference between using a ranged hash function and using
1227  * the combination of a hash function and a range-hashing function.
1228  * In the former case we don't have such things as hash codes, so
1229  * we have a dummy type as placeholder.
1230  * (2) Whether or not we cache hash codes. Caching hash codes is
1231  * meaningless if we have a ranged hash function.
1232  *
1233  * We also put the key extraction objects here, for convenience.
1234  * Each specialization derives from one or more of the template
1235  * parameters to benefit from Ebo. This is important as this type
1236  * is inherited in some cases by the _Local_iterator_base type used
1237  * to implement local_iterator and const_local_iterator. As with
1238  * any iterator type we prefer to make it as small as possible.
1239  */
1240  template<typename _Key, typename _Value, typename _ExtractKey,
1241  typename _Hash, typename _RangeHash, typename _Unused,
1242  bool __cache_hash_code>
1243  struct _Hash_code_base
1244  : private _Hashtable_ebo_helper<1, _Hash>
1245  {
1246  private:
1247  using __ebo_hash = _Hashtable_ebo_helper<1, _Hash>;
1248 
1249  // Gives the local iterator implementation access to _M_bucket_index().
1250  friend struct _Local_iterator_base<_Key, _Value, _ExtractKey,
1251  _Hash, _RangeHash, _Unused, false>;
1252 
1253  public:
1254  typedef _Hash hasher;
1255 
1256  hasher
1257  hash_function() const
1258  { return _M_hash(); }
1259 
1260  protected:
1261  typedef std::size_t __hash_code;
1262 
1263  // We need the default constructor for the local iterators and _Hashtable
1264  // default constructor.
1265  _Hash_code_base() = default;
1266 
1267  _Hash_code_base(const _Hash& __hash) : __ebo_hash(__hash) { }
1268 
1269  __hash_code
1270  _M_hash_code(const _Key& __k) const
1271  {
1272  static_assert(__is_invocable<const _Hash&, const _Key&>{},
1273  "hash function must be invocable with an argument of key type");
1274  return _M_hash()(__k);
1275  }
1276 
1277  template<typename _Kt>
1278  __hash_code
1279  _M_hash_code_tr(const _Kt& __k) const
1280  {
1281  static_assert(__is_invocable<const _Hash&, const _Kt&>{},
1282  "hash function must be invocable with an argument of key type");
1283  return _M_hash()(__k);
1284  }
1285 
1286  __hash_code
1287  _M_hash_code(const _Hash_node_value<_Value, false>& __n) const
1288  { return _M_hash_code(_ExtractKey{}(__n._M_v())); }
1289 
1290  __hash_code
1291  _M_hash_code(const _Hash_node_value<_Value, true>& __n) const
1292  { return __n._M_hash_code; }
1293 
1294  std::size_t
1295  _M_bucket_index(__hash_code __c, std::size_t __bkt_count) const
1296  { return _RangeHash{}(__c, __bkt_count); }
1297 
1298  std::size_t
1299  _M_bucket_index(const _Hash_node_value<_Value, false>& __n,
1300  std::size_t __bkt_count) const
1301  noexcept( noexcept(declval<const _Hash&>()(declval<const _Key&>()))
1302  && noexcept(declval<const _RangeHash&>()((__hash_code)0,
1303  (std::size_t)0)) )
1304  {
1305  return _RangeHash{}(_M_hash_code(_ExtractKey{}(__n._M_v())),
1306  __bkt_count);
1307  }
1308 
1309  std::size_t
1310  _M_bucket_index(const _Hash_node_value<_Value, true>& __n,
1311  std::size_t __bkt_count) const
1312  noexcept( noexcept(declval<const _RangeHash&>()((__hash_code)0,
1313  (std::size_t)0)) )
1314  { return _RangeHash{}(__n._M_hash_code, __bkt_count); }
1315 
1316  void
1317  _M_store_code(_Hash_node_code_cache<false>&, __hash_code) const
1318  { }
1319 
1320  void
1321  _M_copy_code(_Hash_node_code_cache<false>&,
1322  const _Hash_node_code_cache<false>&) const
1323  { }
1324 
1325  void
1326  _M_store_code(_Hash_node_code_cache<true>& __n, __hash_code __c) const
1327  { __n._M_hash_code = __c; }
1328 
1329  void
1330  _M_copy_code(_Hash_node_code_cache<true>& __to,
1331  const _Hash_node_code_cache<true>& __from) const
1332  { __to._M_hash_code = __from._M_hash_code; }
1333 
1334  void
1335  _M_swap(_Hash_code_base& __x)
1336  { std::swap(__ebo_hash::_M_get(), __x.__ebo_hash::_M_get()); }
1337 
1338  const _Hash&
1339  _M_hash() const { return __ebo_hash::_M_cget(); }
1340  };
1341 
1342  /// Partial specialization used when nodes contain a cached hash code.
1343  template<typename _Key, typename _Value, typename _ExtractKey,
1344  typename _Hash, typename _RangeHash, typename _Unused>
1345  struct _Local_iterator_base<_Key, _Value, _ExtractKey,
1346  _Hash, _RangeHash, _Unused, true>
1347  : public _Node_iterator_base<_Value, true>
1348  {
1349  protected:
1350  using __base_node_iter = _Node_iterator_base<_Value, true>;
1351  using __hash_code_base = _Hash_code_base<_Key, _Value, _ExtractKey,
1352  _Hash, _RangeHash, _Unused, true>;
1353 
1354  _Local_iterator_base() = default;
1355  _Local_iterator_base(const __hash_code_base&,
1356  _Hash_node<_Value, true>* __p,
1357  std::size_t __bkt, std::size_t __bkt_count)
1358  : __base_node_iter(__p), _M_bucket(__bkt), _M_bucket_count(__bkt_count)
1359  { }
1360 
1361  void
1362  _M_incr()
1363  {
1364  __base_node_iter::_M_incr();
1365  if (this->_M_cur)
1366  {
1367  std::size_t __bkt
1368  = _RangeHash{}(this->_M_cur->_M_hash_code, _M_bucket_count);
1369  if (__bkt != _M_bucket)
1370  this->_M_cur = nullptr;
1371  }
1372  }
1373 
1374  std::size_t _M_bucket;
1375  std::size_t _M_bucket_count;
1376 
1377  public:
1378  std::size_t
1379  _M_get_bucket() const { return _M_bucket; } // for debug mode
1380  };
1381 
1382  // Uninitialized storage for a _Hash_code_base.
1383  // This type is DefaultConstructible and Assignable even if the
1384  // _Hash_code_base type isn't, so that _Local_iterator_base<..., false>
1385  // can be DefaultConstructible and Assignable.
1386  template<typename _Tp, bool _IsEmpty = std::is_empty<_Tp>::value>
1387  struct _Hash_code_storage
1388  {
1389  __gnu_cxx::__aligned_buffer<_Tp> _M_storage;
1390 
1391  _Tp*
1392  _M_h() { return _M_storage._M_ptr(); }
1393 
1394  const _Tp*
1395  _M_h() const { return _M_storage._M_ptr(); }
1396  };
1397 
1398  // Empty partial specialization for empty _Hash_code_base types.
1399  template<typename _Tp>
1400  struct _Hash_code_storage<_Tp, true>
1401  {
1402  static_assert( std::is_empty<_Tp>::value, "Type must be empty" );
1403 
1404  // As _Tp is an empty type there will be no bytes written/read through
1405  // the cast pointer, so no strict-aliasing violation.
1406  _Tp*
1407  _M_h() { return reinterpret_cast<_Tp*>(this); }
1408 
1409  const _Tp*
1410  _M_h() const { return reinterpret_cast<const _Tp*>(this); }
1411  };
1412 
1413  template<typename _Key, typename _Value, typename _ExtractKey,
1414  typename _Hash, typename _RangeHash, typename _Unused>
1415  using __hash_code_for_local_iter
1416  = _Hash_code_storage<_Hash_code_base<_Key, _Value, _ExtractKey,
1417  _Hash, _RangeHash, _Unused, false>>;
1418 
1419  // Partial specialization used when hash codes are not cached
1420  template<typename _Key, typename _Value, typename _ExtractKey,
1421  typename _Hash, typename _RangeHash, typename _Unused>
1422  struct _Local_iterator_base<_Key, _Value, _ExtractKey,
1423  _Hash, _RangeHash, _Unused, false>
1424  : __hash_code_for_local_iter<_Key, _Value, _ExtractKey, _Hash, _RangeHash,
1425  _Unused>
1426  , _Node_iterator_base<_Value, false>
1427  {
1428  protected:
1429  using __hash_code_base = _Hash_code_base<_Key, _Value, _ExtractKey,
1430  _Hash, _RangeHash, _Unused, false>;
1431  using __node_iter_base = _Node_iterator_base<_Value, false>;
1432 
1433  _Local_iterator_base() : _M_bucket_count(-1) { }
1434 
1435  _Local_iterator_base(const __hash_code_base& __base,
1436  _Hash_node<_Value, false>* __p,
1437  std::size_t __bkt, std::size_t __bkt_count)
1438  : __node_iter_base(__p), _M_bucket(__bkt), _M_bucket_count(__bkt_count)
1439  { _M_init(__base); }
1440 
1441  ~_Local_iterator_base()
1442  {
1443  if (_M_bucket_count != size_t(-1))
1444  _M_destroy();
1445  }
1446 
1447  _Local_iterator_base(const _Local_iterator_base& __iter)
1448  : __node_iter_base(__iter._M_cur), _M_bucket(__iter._M_bucket)
1449  , _M_bucket_count(__iter._M_bucket_count)
1450  {
1451  if (_M_bucket_count != size_t(-1))
1452  _M_init(*__iter._M_h());
1453  }
1454 
1455  _Local_iterator_base&
1456  operator=(const _Local_iterator_base& __iter)
1457  {
1458  if (_M_bucket_count != -1)
1459  _M_destroy();
1460  this->_M_cur = __iter._M_cur;
1461  _M_bucket = __iter._M_bucket;
1462  _M_bucket_count = __iter._M_bucket_count;
1463  if (_M_bucket_count != -1)
1464  _M_init(*__iter._M_h());
1465  return *this;
1466  }
1467 
1468  void
1469  _M_incr()
1470  {
1471  __node_iter_base::_M_incr();
1472  if (this->_M_cur)
1473  {
1474  std::size_t __bkt = this->_M_h()->_M_bucket_index(*this->_M_cur,
1475  _M_bucket_count);
1476  if (__bkt != _M_bucket)
1477  this->_M_cur = nullptr;
1478  }
1479  }
1480 
1481  std::size_t _M_bucket;
1482  std::size_t _M_bucket_count;
1483 
1484  void
1485  _M_init(const __hash_code_base& __base)
1486  { ::new(this->_M_h()) __hash_code_base(__base); }
1487 
1488  void
1489  _M_destroy() { this->_M_h()->~__hash_code_base(); }
1490 
1491  public:
1492  std::size_t
1493  _M_get_bucket() const { return _M_bucket; } // for debug mode
1494  };
1495 
1496  /// local iterators
1497  template<typename _Key, typename _Value, typename _ExtractKey,
1498  typename _Hash, typename _RangeHash, typename _Unused,
1499  bool __constant_iterators, bool __cache>
1500  struct _Local_iterator
1501  : public _Local_iterator_base<_Key, _Value, _ExtractKey,
1502  _Hash, _RangeHash, _Unused, __cache>
1503  {
1504  private:
1505  using __base_type = _Local_iterator_base<_Key, _Value, _ExtractKey,
1506  _Hash, _RangeHash, _Unused, __cache>;
1507  using __hash_code_base = typename __base_type::__hash_code_base;
1508 
1509  public:
1510  using value_type = _Value;
1511  using pointer = __conditional_t<__constant_iterators,
1512  const value_type*, value_type*>;
1513  using reference = __conditional_t<__constant_iterators,
1514  const value_type&, value_type&>;
1515  using difference_type = ptrdiff_t;
1516  using iterator_category = forward_iterator_tag;
1517 
1518  _Local_iterator() = default;
1519 
1520  _Local_iterator(const __hash_code_base& __base,
1521  _Hash_node<_Value, __cache>* __n,
1522  std::size_t __bkt, std::size_t __bkt_count)
1523  : __base_type(__base, __n, __bkt, __bkt_count)
1524  { }
1525 
1526  reference
1527  operator*() const
1528  { return this->_M_cur->_M_v(); }
1529 
1530  pointer
1531  operator->() const
1532  { return this->_M_cur->_M_valptr(); }
1533 
1534  _Local_iterator&
1535  operator++()
1536  {
1537  this->_M_incr();
1538  return *this;
1539  }
1540 
1541  _Local_iterator
1542  operator++(int)
1543  {
1544  _Local_iterator __tmp(*this);
1545  this->_M_incr();
1546  return __tmp;
1547  }
1548  };
1549 
1550  /// local const_iterators
1551  template<typename _Key, typename _Value, typename _ExtractKey,
1552  typename _Hash, typename _RangeHash, typename _Unused,
1553  bool __constant_iterators, bool __cache>
1554  struct _Local_const_iterator
1555  : public _Local_iterator_base<_Key, _Value, _ExtractKey,
1556  _Hash, _RangeHash, _Unused, __cache>
1557  {
1558  private:
1559  using __base_type = _Local_iterator_base<_Key, _Value, _ExtractKey,
1560  _Hash, _RangeHash, _Unused, __cache>;
1561  using __hash_code_base = typename __base_type::__hash_code_base;
1562 
1563  public:
1564  typedef _Value value_type;
1565  typedef const value_type* pointer;
1566  typedef const value_type& reference;
1567  typedef std::ptrdiff_t difference_type;
1568  typedef std::forward_iterator_tag iterator_category;
1569 
1570  _Local_const_iterator() = default;
1571 
1572  _Local_const_iterator(const __hash_code_base& __base,
1573  _Hash_node<_Value, __cache>* __n,
1574  std::size_t __bkt, std::size_t __bkt_count)
1575  : __base_type(__base, __n, __bkt, __bkt_count)
1576  { }
1577 
1578  _Local_const_iterator(const _Local_iterator<_Key, _Value, _ExtractKey,
1579  _Hash, _RangeHash, _Unused,
1580  __constant_iterators,
1581  __cache>& __x)
1582  : __base_type(__x)
1583  { }
1584 
1585  reference
1586  operator*() const
1587  { return this->_M_cur->_M_v(); }
1588 
1589  pointer
1590  operator->() const
1591  { return this->_M_cur->_M_valptr(); }
1592 
1593  _Local_const_iterator&
1594  operator++()
1595  {
1596  this->_M_incr();
1597  return *this;
1598  }
1599 
1600  _Local_const_iterator
1601  operator++(int)
1602  {
1603  _Local_const_iterator __tmp(*this);
1604  this->_M_incr();
1605  return __tmp;
1606  }
1607  };
1608 
1609  /**
1610  * Primary class template _Hashtable_base.
1611  *
1612  * Helper class adding management of _Equal functor to
1613  * _Hash_code_base type.
1614  *
1615  * Base class templates are:
1616  * - __detail::_Hash_code_base
1617  * - __detail::_Hashtable_ebo_helper
1618  */
1619  template<typename _Key, typename _Value, typename _ExtractKey,
1620  typename _Equal, typename _Hash, typename _RangeHash,
1621  typename _Unused, typename _Traits>
1622  struct _Hashtable_base
1623  : public _Hash_code_base<_Key, _Value, _ExtractKey, _Hash, _RangeHash,
1624  _Unused, _Traits::__hash_cached::value>,
1625  private _Hashtable_ebo_helper<0, _Equal>
1626  {
1627  public:
1628  typedef _Key key_type;
1629  typedef _Value value_type;
1630  typedef _Equal key_equal;
1631  typedef std::size_t size_type;
1632  typedef std::ptrdiff_t difference_type;
1633 
1634  using __traits_type = _Traits;
1635  using __hash_cached = typename __traits_type::__hash_cached;
1636 
1637  using __hash_code_base = _Hash_code_base<_Key, _Value, _ExtractKey,
1638  _Hash, _RangeHash, _Unused,
1639  __hash_cached::value>;
1640 
1641  using __hash_code = typename __hash_code_base::__hash_code;
1642 
1643  private:
1644  using _EqualEBO = _Hashtable_ebo_helper<0, _Equal>;
1645 
1646  static bool
1647  _S_equals(__hash_code, const _Hash_node_code_cache<false>&)
1648  { return true; }
1649 
1650  static bool
1651  _S_node_equals(const _Hash_node_code_cache<false>&,
1652  const _Hash_node_code_cache<false>&)
1653  { return true; }
1654 
1655  static bool
1656  _S_equals(__hash_code __c, const _Hash_node_code_cache<true>& __n)
1657  { return __c == __n._M_hash_code; }
1658 
1659  static bool
1660  _S_node_equals(const _Hash_node_code_cache<true>& __lhn,
1661  const _Hash_node_code_cache<true>& __rhn)
1662  { return __lhn._M_hash_code == __rhn._M_hash_code; }
1663 
1664  protected:
1665  _Hashtable_base() = default;
1666 
1667  _Hashtable_base(const _Hash& __hash, const _Equal& __eq)
1668  : __hash_code_base(__hash), _EqualEBO(__eq)
1669  { }
1670 
1671  bool
1672  _M_key_equals(const _Key& __k,
1673  const _Hash_node_value<_Value,
1674  __hash_cached::value>& __n) const
1675  {
1676  static_assert(__is_invocable<const _Equal&, const _Key&, const _Key&>{},
1677  "key equality predicate must be invocable with two arguments of "
1678  "key type");
1679  return _M_eq()(__k, _ExtractKey{}(__n._M_v()));
1680  }
1681 
1682  template<typename _Kt>
1683  bool
1684  _M_key_equals_tr(const _Kt& __k,
1685  const _Hash_node_value<_Value,
1686  __hash_cached::value>& __n) const
1687  {
1688  static_assert(
1689  __is_invocable<const _Equal&, const _Kt&, const _Key&>{},
1690  "key equality predicate must be invocable with two arguments of "
1691  "key type");
1692  return _M_eq()(__k, _ExtractKey{}(__n._M_v()));
1693  }
1694 
1695  bool
1696  _M_equals(const _Key& __k, __hash_code __c,
1697  const _Hash_node_value<_Value, __hash_cached::value>& __n) const
1698  { return _S_equals(__c, __n) && _M_key_equals(__k, __n); }
1699 
1700  template<typename _Kt>
1701  bool
1702  _M_equals_tr(const _Kt& __k, __hash_code __c,
1703  const _Hash_node_value<_Value,
1704  __hash_cached::value>& __n) const
1705  { return _S_equals(__c, __n) && _M_key_equals_tr(__k, __n); }
1706 
1707  bool
1708  _M_node_equals(
1709  const _Hash_node_value<_Value, __hash_cached::value>& __lhn,
1710  const _Hash_node_value<_Value, __hash_cached::value>& __rhn) const
1711  {
1712  return _S_node_equals(__lhn, __rhn)
1713  && _M_key_equals(_ExtractKey{}(__lhn._M_v()), __rhn);
1714  }
1715 
1716  void
1717  _M_swap(_Hashtable_base& __x)
1718  {
1719  __hash_code_base::_M_swap(__x);
1720  std::swap(_EqualEBO::_M_get(), __x._EqualEBO::_M_get());
1721  }
1722 
1723  const _Equal&
1724  _M_eq() const { return _EqualEBO::_M_cget(); }
1725  };
1726 
1727  /**
1728  * Primary class template _Equality.
1729  *
1730  * This is for implementing equality comparison for unordered
1731  * containers, per N3068, by John Lakos and Pablo Halpern.
1732  * Algorithmically, we follow closely the reference implementations
1733  * therein.
1734  */
1735  template<typename _Key, typename _Value, typename _Alloc,
1736  typename _ExtractKey, typename _Equal,
1737  typename _Hash, typename _RangeHash, typename _Unused,
1738  typename _RehashPolicy, typename _Traits,
1739  bool _Unique_keys = _Traits::__unique_keys::value>
1740  struct _Equality;
1741 
1742  /// unordered_map and unordered_set specializations.
1743  template<typename _Key, typename _Value, typename _Alloc,
1744  typename _ExtractKey, typename _Equal,
1745  typename _Hash, typename _RangeHash, typename _Unused,
1746  typename _RehashPolicy, typename _Traits>
1747  struct _Equality<_Key, _Value, _Alloc, _ExtractKey, _Equal,
1748  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits, true>
1749  {
1750  using __hashtable = _Hashtable<_Key, _Value, _Alloc, _ExtractKey, _Equal,
1751  _Hash, _RangeHash, _Unused,
1752  _RehashPolicy, _Traits>;
1753 
1754  bool
1755  _M_equal(const __hashtable&) const;
1756  };
1757 
1758  template<typename _Key, typename _Value, typename _Alloc,
1759  typename _ExtractKey, typename _Equal,
1760  typename _Hash, typename _RangeHash, typename _Unused,
1761  typename _RehashPolicy, typename _Traits>
1762  bool
1763  _Equality<_Key, _Value, _Alloc, _ExtractKey, _Equal,
1764  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits, true>::
1765  _M_equal(const __hashtable& __other) const
1766  {
1767  using __node_type = typename __hashtable::__node_type;
1768  const __hashtable* __this = static_cast<const __hashtable*>(this);
1769  if (__this->size() != __other.size())
1770  return false;
1771 
1772  for (auto __itx = __this->begin(); __itx != __this->end(); ++__itx)
1773  {
1774  std::size_t __ybkt = __other._M_bucket_index(*__itx._M_cur);
1775  auto __prev_n = __other._M_buckets[__ybkt];
1776  if (!__prev_n)
1777  return false;
1778 
1779  for (__node_type* __n = static_cast<__node_type*>(__prev_n->_M_nxt);;
1780  __n = __n->_M_next())
1781  {
1782  if (__n->_M_v() == *__itx)
1783  break;
1784 
1785  if (!__n->_M_nxt
1786  || __other._M_bucket_index(*__n->_M_next()) != __ybkt)
1787  return false;
1788  }
1789  }
1790 
1791  return true;
1792  }
1793 
1794  /// unordered_multiset and unordered_multimap specializations.
1795  template<typename _Key, typename _Value, typename _Alloc,
1796  typename _ExtractKey, typename _Equal,
1797  typename _Hash, typename _RangeHash, typename _Unused,
1798  typename _RehashPolicy, typename _Traits>
1799  struct _Equality<_Key, _Value, _Alloc, _ExtractKey, _Equal,
1800  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits, false>
1801  {
1802  using __hashtable = _Hashtable<_Key, _Value, _Alloc, _ExtractKey, _Equal,
1803  _Hash, _RangeHash, _Unused,
1804  _RehashPolicy, _Traits>;
1805 
1806  bool
1807  _M_equal(const __hashtable&) const;
1808  };
1809 
1810  template<typename _Key, typename _Value, typename _Alloc,
1811  typename _ExtractKey, typename _Equal,
1812  typename _Hash, typename _RangeHash, typename _Unused,
1813  typename _RehashPolicy, typename _Traits>
1814  bool
1815  _Equality<_Key, _Value, _Alloc, _ExtractKey, _Equal,
1816  _Hash, _RangeHash, _Unused, _RehashPolicy, _Traits, false>::
1817  _M_equal(const __hashtable& __other) const
1818  {
1819  using __node_type = typename __hashtable::__node_type;
1820  const __hashtable* __this = static_cast<const __hashtable*>(this);
1821  if (__this->size() != __other.size())
1822  return false;
1823 
1824  for (auto __itx = __this->begin(); __itx != __this->end();)
1825  {
1826  std::size_t __x_count = 1;
1827  auto __itx_end = __itx;
1828  for (++__itx_end; __itx_end != __this->end()
1829  && __this->key_eq()(_ExtractKey{}(*__itx),
1830  _ExtractKey{}(*__itx_end));
1831  ++__itx_end)
1832  ++__x_count;
1833 
1834  std::size_t __ybkt = __other._M_bucket_index(*__itx._M_cur);
1835  auto __y_prev_n = __other._M_buckets[__ybkt];
1836  if (!__y_prev_n)
1837  return false;
1838 
1839  __node_type* __y_n = static_cast<__node_type*>(__y_prev_n->_M_nxt);
1840  for (;;)
1841  {
1842  if (__this->key_eq()(_ExtractKey{}(__y_n->_M_v()),
1843  _ExtractKey{}(*__itx)))
1844  break;
1845 
1846  auto __y_ref_n = __y_n;
1847  for (__y_n = __y_n->_M_next(); __y_n; __y_n = __y_n->_M_next())
1848  if (!__other._M_node_equals(*__y_ref_n, *__y_n))
1849  break;
1850 
1851  if (!__y_n || __other._M_bucket_index(*__y_n) != __ybkt)
1852  return false;
1853  }
1854 
1855  typename __hashtable::const_iterator __ity(__y_n);
1856  for (auto __ity_end = __ity; __ity_end != __other.end(); ++__ity_end)
1857  if (--__x_count == 0)
1858  break;
1859 
1860  if (__x_count != 0)
1861  return false;
1862 
1863  if (!std::is_permutation(__itx, __itx_end, __ity))
1864  return false;
1865 
1866  __itx = __itx_end;
1867  }
1868  return true;
1869  }
1870 
1871  /**
1872  * This type deals with all allocation and keeps an allocator instance
1873  * through inheritance to benefit from EBO when possible.
1874  */
1875  template<typename _NodeAlloc>
1876  struct _Hashtable_alloc : private _Hashtable_ebo_helper<0, _NodeAlloc>
1877  {
1878  private:
1879  using __ebo_node_alloc = _Hashtable_ebo_helper<0, _NodeAlloc>;
1880 
1881  template<typename>
1882  struct __get_value_type;
1883  template<typename _Val, bool _Cache_hash_code>
1884  struct __get_value_type<_Hash_node<_Val, _Cache_hash_code>>
1885  { using type = _Val; };
1886 
1887  public:
1888  using __node_type = typename _NodeAlloc::value_type;
1889  using __node_alloc_type = _NodeAlloc;
1890  // Use __gnu_cxx to benefit from _S_always_equal and al.
1891  using __node_alloc_traits = __gnu_cxx::__alloc_traits<__node_alloc_type>;
1892 
1893  using __value_alloc_traits = typename __node_alloc_traits::template
1894  rebind_traits<typename __get_value_type<__node_type>::type>;
1895 
1896  using __node_ptr = __node_type*;
1897  using __node_base = _Hash_node_base;
1898  using __node_base_ptr = __node_base*;
1899  using __buckets_alloc_type =
1900  __alloc_rebind<__node_alloc_type, __node_base_ptr>;
1901  using __buckets_alloc_traits = std::allocator_traits<__buckets_alloc_type>;
1902  using __buckets_ptr = __node_base_ptr*;
1903 
1904  _Hashtable_alloc() = default;
1905  _Hashtable_alloc(const _Hashtable_alloc&) = default;
1906  _Hashtable_alloc(_Hashtable_alloc&&) = default;
1907 
1908  template<typename _Alloc>
1909  _Hashtable_alloc(_Alloc&& __a)
1910  : __ebo_node_alloc(std::forward<_Alloc>(__a))
1911  { }
1912 
1913  __node_alloc_type&
1914  _M_node_allocator()
1915  { return __ebo_node_alloc::_M_get(); }
1916 
1917  const __node_alloc_type&
1918  _M_node_allocator() const
1919  { return __ebo_node_alloc::_M_cget(); }
1920 
1921  // Allocate a node and construct an element within it.
1922  template<typename... _Args>
1923  __node_ptr
1924  _M_allocate_node(_Args&&... __args);
1925 
1926  // Destroy the element within a node and deallocate the node.
1927  void
1928  _M_deallocate_node(__node_ptr __n);
1929 
1930  // Deallocate a node.
1931  void
1932  _M_deallocate_node_ptr(__node_ptr __n);
1933 
1934  // Deallocate the linked list of nodes pointed to by __n.
1935  // The elements within the nodes are destroyed.
1936  void
1937  _M_deallocate_nodes(__node_ptr __n);
1938 
1939  __buckets_ptr
1940  _M_allocate_buckets(std::size_t __bkt_count);
1941 
1942  void
1943  _M_deallocate_buckets(__buckets_ptr, std::size_t __bkt_count);
1944  };
1945 
1946  // Definitions of class template _Hashtable_alloc's out-of-line member
1947  // functions.
1948  template<typename _NodeAlloc>
1949  template<typename... _Args>
1950  auto
1951  _Hashtable_alloc<_NodeAlloc>::_M_allocate_node(_Args&&... __args)
1952  -> __node_ptr
1953  {
1954  auto __nptr = __node_alloc_traits::allocate(_M_node_allocator(), 1);
1955  __node_ptr __n = std::__to_address(__nptr);
1956  __try
1957  {
1958  ::new ((void*)__n) __node_type;
1959  __node_alloc_traits::construct(_M_node_allocator(),
1960  __n->_M_valptr(),
1961  std::forward<_Args>(__args)...);
1962  return __n;
1963  }
1964  __catch(...)
1965  {
1966  __node_alloc_traits::deallocate(_M_node_allocator(), __nptr, 1);
1967  __throw_exception_again;
1968  }
1969  }
1970 
1971  template<typename _NodeAlloc>
1972  void
1973  _Hashtable_alloc<_NodeAlloc>::_M_deallocate_node(__node_ptr __n)
1974  {
1975  __node_alloc_traits::destroy(_M_node_allocator(), __n->_M_valptr());
1976  _M_deallocate_node_ptr(__n);
1977  }
1978 
1979  template<typename _NodeAlloc>
1980  void
1981  _Hashtable_alloc<_NodeAlloc>::_M_deallocate_node_ptr(__node_ptr __n)
1982  {
1983  typedef typename __node_alloc_traits::pointer _Ptr;
1984  auto __ptr = std::pointer_traits<_Ptr>::pointer_to(*__n);
1985  __n->~__node_type();
1986  __node_alloc_traits::deallocate(_M_node_allocator(), __ptr, 1);
1987  }
1988 
1989  template<typename _NodeAlloc>
1990  void
1991  _Hashtable_alloc<_NodeAlloc>::_M_deallocate_nodes(__node_ptr __n)
1992  {
1993  while (__n)
1994  {
1995  __node_ptr __tmp = __n;
1996  __n = __n->_M_next();
1997  _M_deallocate_node(__tmp);
1998  }
1999  }
2000 
2001  template<typename _NodeAlloc>
2002  auto
2003  _Hashtable_alloc<_NodeAlloc>::_M_allocate_buckets(std::size_t __bkt_count)
2004  -> __buckets_ptr
2005  {
2006  __buckets_alloc_type __alloc(_M_node_allocator());
2007 
2008  auto __ptr = __buckets_alloc_traits::allocate(__alloc, __bkt_count);
2009  __buckets_ptr __p = std::__to_address(__ptr);
2010  __builtin_memset(__p, 0, __bkt_count * sizeof(__node_base_ptr));
2011  return __p;
2012  }
2013 
2014  template<typename _NodeAlloc>
2015  void
2016  _Hashtable_alloc<_NodeAlloc>::
2017  _M_deallocate_buckets(__buckets_ptr __bkts,
2018  std::size_t __bkt_count)
2019  {
2020  typedef typename __buckets_alloc_traits::pointer _Ptr;
2021  auto __ptr = std::pointer_traits<_Ptr>::pointer_to(*__bkts);
2022  __buckets_alloc_type __alloc(_M_node_allocator());
2023  __buckets_alloc_traits::deallocate(__alloc, __ptr, __bkt_count);
2024  }
2025 
2026  ///@} hashtable-detail
2027 } // namespace __detail
2028 /// @endcond
2029 _GLIBCXX_END_NAMESPACE_VERSION
2030 } // namespace std
2031 
2032 #endif // _HASHTABLE_POLICY_H
constexpr complex< _Tp > operator*(const complex< _Tp > &__x, const complex< _Tp > &__y)
Return new complex value x times y.
Definition: complex:392
constexpr piecewise_construct_t piecewise_construct
Tag for piecewise construction of std::pair objects.
Definition: stl_pair.h:83
constexpr _Tp && forward(typename std::remove_reference< _Tp >::type &__t) noexcept
Forward an lvalue.
Definition: move.h:77
constexpr _Iterator __base(_Iterator __it)
Uniform interface to all allocator types.
constexpr std::remove_reference< _Tp >::type && move(_Tp &&__t) noexcept
Convert a value to an rvalue.
Definition: move.h:104
Forward iterators support a superset of input iterator operations.
Uniform interface to C++98 and C++11 allocators.
ISO C++ entities toplevel namespace is std.
constexpr iterator_traits< _InputIterator >::difference_type distance(_InputIterator __first, _InputIterator __last)
A generalization of pointer arithmetic.
integral_constant< bool, true > true_type
The type used as a compile-time boolean with true value.
Definition: type_traits:82
constexpr tuple< _Elements &&... > forward_as_tuple(_Elements &&... __args) noexcept
Create a tuple of lvalue or rvalue references to the arguments.
Definition: tuple:1604
is_constructible
Definition: type_traits:977
Marking input iterators.
Struct holding two objects of arbitrary type.
__numeric_traits_integer< _Tp > __int_traits
Convenience alias for __numeric_traits<integer-type>.
constexpr iterator_traits< _Iter >::iterator_category __iterator_category(const _Iter &)
Traits class for iterators.
Definition: simd.h:286
Define a member typedef type only if a boolean constant is true.
Definition: type_traits:2222
integral_constant< bool, false > false_type
The type used as a compile-time boolean with false value.
Definition: type_traits:85
Uniform interface to all pointer-like types.
Definition: ptr_traits.h:181
is_empty
Definition: type_traits:780
Primary class template, tuple.
Definition: tuple:57