source: mainline/uspace/lib/cpp/include/internal/rbtree.hpp@ adb7dfe1

lfn serial ticket/834-toolchain-update topic/msim-upgrade topic/simplify-dev-export
Last change on this file since adb7dfe1 was adb7dfe1, checked in by Dzejrou <dzejrou@…>, 7 years ago

cpp: insert_node now does nothing if nothing is passed to it, also paints root black if needed

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File size: 13.6 KB
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[4d65515]1/*
2 * Copyright (c) 2018 Jaroslav Jindrak
3 * All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 *
9 * - Redistributions of source code must retain the above copyright
10 * notice, this list of conditions and the following disclaimer.
11 * - Redistributions in binary form must reproduce the above copyright
12 * notice, this list of conditions and the following disclaimer in the
13 * documentation and/or other materials provided with the distribution.
14 * - The name of the author may not be used to endorse or promote products
15 * derived from this software without specific prior written permission.
16 *
17 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
18 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
19 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
20 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
21 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
22 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
23 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
24 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
25 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
26 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27 */
28
29#ifndef LIBCPP_INTERNAL_RBTREE
30#define LIBCPP_INTERNAL_RBTREE
31
32#include <internal/key_extractors.hpp>
33#include <internal/rbtree_iterators.hpp>
34#include <internal/rbtree_node.hpp>
35#include <internal/rbtree_policies.hpp>
36
37namespace std::aux
38{
39 template<
40 class Value, class Key, class KeyExtractor,
41 class KeyComp, class Alloc, class Size,
42 class Iterator, class ConstIterator,
43 class Policy
44 >
45 class rbtree
46 {
47 public:
48 using value_type = Value;
49 using key_type = Key;
50 using size_type = Size;
51 using allocator_type = Alloc;
52 using key_compare = KeyComp;
53 using key_extract = KeyExtractor;
54
55 using iterator = Iterator;
56 using const_iterator = ConstIterator;
57
[be9eb15]58 using reverse_iterator = std::reverse_iterator<iterator>;
59 using const_reverse_iterator = std::reverse_iterator<const_iterator>;
60
[4d65515]61 using node_type = rbtree_node<value_type>;
62
63 rbtree(const key_compare& kcmp = key_compare{})
64 : root_{nullptr}, size_{}, key_compare_{},
65 key_extractor_{}
66 { /* DUMMY BODY */ }
67
[009d78b]68 rbtree(const rbtree& other)
69 : rbtree{other.key_compare_}
70 {
71 for (const auto& x: other)
72 insert(x);
73 }
[be9eb15]74
75 rbtree(rbtree&& other)
76 : root_{other.root_}, size_{other.size_},
77 key_compare_{move(other.key_compare_)},
78 key_extractor_{move(other.key_extractor_)}
79 {
80 other.root_ = nullptr;
81 other.size_ = size_type{};
82 }
83
84 rbtree& operator=(const rbtree& other)
85 {
86 auto tmp{other};
87 tmp.swap(*this);
[4d65515]88
[be9eb15]89 return *this;
90 }
[4d65515]91
[be9eb15]92 rbtree& operator=(rbtree&& other)
93 {
94 rbtree tmp{move(other)};
95 tmp.swap(*this);
[4d65515]96
[be9eb15]97 return *this;
98 }
[4d65515]99
100 bool empty() const noexcept
101 {
102 return size_;
103 }
104
105 size_type size() const noexcept
106 {
107 return size_;
108 }
109
110 size_type max_size(allocator_type& alloc)
111 {
112 return allocator_traits<allocator_type>::max_size(alloc);
113 }
114
115 iterator begin()
116 {
117 return iterator{find_smallest_(), false};
118 }
119
120 const_iterator begin() const
121 {
122 return cbegin();
123 }
124
125 iterator end()
126 {
127 return iterator{find_largest_(), true};
128 }
129
130 const_iterator end() const
131 {
132 return cend();
133 }
134
[be9eb15]135 reverse_iterator rbegin()
136 {
137 return make_reverse_iterator(end());
138 }
139
140 const_reverse_iterator rbegin() const
141 {
142 return make_reverse_iterator(cend());
143 }
144
145 reverse_iterator rend()
146 {
147 return make_reverse_iterator(begin());
148 }
149
150 const_reverse_iterator rend() const
151 {
152 return make_reverse_iterator(cbegin());
153 }
154
[4d65515]155 const_iterator cbegin() const
156 {
157 return const_iterator{find_smallest_(), false};
158 }
159
160 const_iterator cend() const
161 {
162 return const_iterator{find_largest_(), true};
163 }
164
[be9eb15]165 const_reverse_iterator crbegin() const
166 {
167 return make_reverse_iterator(cend());
168 }
169
170 const_reverse_iterator crend() const
171 {
172 return make_reverse_iterator(cbegin());
173 }
174
[4d65515]175 template<class... Args>
[369f5df]176 auto emplace(Args&&... args)
[4d65515]177 {
[369f5df]178 return Policy::emplace(*this, forward<Args>(args)...);
[4d65515]179 }
180
[369f5df]181 auto insert(const value_type& val)
[4d65515]182 {
[369f5df]183 return Policy::insert(*this, val);
[4d65515]184 }
185
[369f5df]186 auto insert(value_type&& val)
[4d65515]187 {
[369f5df]188 return Policy::insert(*this, forward<value_type>(val));
[4d65515]189 }
190
191 size_type erase(const key_type& key)
192 {
[009d78b]193 return Policy::erase(*this, key);
[4d65515]194 }
195
196 iterator erase(const_iterator it)
197 {
[009d78b]198 if (it == cend())
199 return end();
200
201 auto node = const_cast<node_type*>(it.node());
202
[369f5df]203 node = delete_node(node);
204 return iterator{const_cast<node_type*>(node), node == nullptr};
[4d65515]205 }
206
207 void clear() noexcept
208 {
209 if (root_)
210 {
211 delete root_;
212 root_ = nullptr;
213 size_ = size_type{};
214 }
215 }
216
217 void swap(rbtree& other)
218 noexcept(allocator_traits<allocator_type>::is_always_equal::value &&
219 noexcept(swap(declval<KeyComp&>(), declval<KeyComp&>())))
220 {
221 std::swap(root_, other.root_);
222 std::swap(size_, other.size_);
223 std::swap(key_compare_, other.key_compare_);
224 std::swap(key_extractor_, other.key_extractor_);
225 }
226
227 key_compare key_comp() const
228 {
229 return key_compare_;
230 }
231
232 iterator find(const key_type& key)
233 {
[be9eb15]234 auto node = find_(key);
235 if (node)
236 return iterator{node, false};
237 else
238 return end();
[4d65515]239 }
240
[be9eb15]241 const_iterator find(const key_type& key) const
[4d65515]242 {
[be9eb15]243 auto node = find_(key);
244 if (node)
245 return const_iterator{node, false};
246 else
247 return end();
[4d65515]248 }
249
250 size_type count(const key_type& key) const
251 {
252 return Policy::count(*this, key);
253 }
254
255 iterator upper_bound(const key_type& key)
256 {
257 return Policy::upper_bound(*this, key);
258 }
259
260 const_iterator upper_bound(const key_type& key) const
261 {
262 return Policy::upper_bound_const(*this, key);
263 }
264
265 iterator lower_bound(const key_type& key)
266 {
267 return Policy::lower_bound(*this, key);
268 }
269
270 const_iterator lower_bound(const key_type& key) const
271 {
272 return Policy::lower_bound_const(*this, key);
273 }
274
275 pair<iterator, iterator> equal_range(const key_type& key)
276 {
277 return Policy::equal_range(*this, key);
278 }
279
280 pair<const_iterator, const_iterator> equal_range(const key_type& key) const
281 {
282 return Policy::equal_range_const(*this, key);
283 }
284
285 bool is_eq_to(const rbtree& other) const
286 {
[009d78b]287 if (size_ != other.size())
288 return false;
289
290 auto it1 = begin();
291 auto it2 = other.begin();
292
[369f5df]293 // TODO: this doesn't compare values :/
[009d78b]294 while (keys_equal(*it1++, *it2++))
295 { /* DUMMY BODY */ }
296
297 return (it1 == end()) && (it2 == other.end());
[4d65515]298 }
299
300 const key_type& get_key(const value_type& val) const
301 {
302 return key_extractor_(val);
303 }
304
305 bool keys_comp(const key_type& key, const value_type& val) const
306 {
307 return key_compare_(key, key_extractor_(val));
308 }
309
[009d78b]310 bool keys_equal(const key_type& k1, const key_type& k2) const
311 {
312 return !key_compare_(k1, k2) && !key_compare_(k2, k1);
313 }
314
[4d65515]315 node_type* find_parent_for_insertion(const value_type& val) const
316 {
317 auto current = root_;
318 auto parent = current;
319
320 while (current)
321 {
322 parent = current;
323 if (key_compare_(key_extractor_(val), key_extractor_(current->value)))
324 current = current->left;
325 else
326 current = current->right;
327 }
328
329 return parent;
330 }
331
[369f5df]332 node_type* delete_node(const node_type* n)
[009d78b]333 {
[369f5df]334 auto node = const_cast<node_type*>(n);
[009d78b]335 if (!node)
[369f5df]336 return nullptr;
[009d78b]337
338 --size_;
339
[369f5df]340 auto succ = node->successor();
[009d78b]341 if (node->left && node->right)
342 {
[369f5df]343 node->swap(succ);
[009d78b]344
[369f5df]345 // Succ has at most one child.
346 delete_node(succ);
[009d78b]347
[369f5df]348 return node;
[009d78b]349 }
350
351 auto child = node->right ? node->right : node->left;
352 if (!child)
353 {
354 // Simply remove the node.
[369f5df]355 // TODO: repair here too?
[009d78b]356 node->unlink();
357 delete node;
358 }
359 else
360 {
361 // Replace with the child.
362 child->parent = node->parent;
363 if (node->is_left_child())
364 child->parent->left = child;
[369f5df]365 else if (node->is_right_child())
[009d78b]366 child->parent->right = child;
367
368 // Repair if needed.
369 repair_after_erase_(node, child);
370 update_root_(child);
[369f5df]371
372 delete node;
[009d78b]373 }
[369f5df]374
375 return succ;
[009d78b]376 }
377
[7644d6e]378 void insert_node(node_type* node, node_type* parent)
379 {
[adb7dfe1]380 if (!node)
381 return;
382
[7644d6e]383 ++size_;
384 if (!parent)
[adb7dfe1]385 {
386 node->color = rbcolor::black;
[7644d6e]387 root_ = node;
[adb7dfe1]388 }
[7644d6e]389 else
390 {
391 if (keys_comp(get_key(node->value), parent->value))
392 parent->add_left_child(node);
393 else
394 parent->add_right_child(node);
395
396 repair_after_insert_(node);
397 update_root_(node);
398 }
399 }
400
[4d65515]401 private:
402 node_type* root_;
403 size_type size_;
404 key_compare key_compare_;
405 key_extract key_extractor_;
406
[be9eb15]407 node_type* find_(const key_type& key) const
408 {
409 auto current = root_;
410 while (current != nullptr)
411 {
412 if (key_compare_(key, key_extractor_(current->value)))
413 current = current->left;
[009d78b]414 else if (key_compare_(key_extractor_(current->value), key))
[be9eb15]415 current = current->right;
[009d78b]416 else
417 return current;
[be9eb15]418 }
419
420 return nullptr;
421 }
422
[4d65515]423 node_type* find_smallest_() const
424 {
425 if (root_)
426 return root_->find_smallest();
427 else
428 return nullptr;
429 }
430
431 node_type* find_largest_() const
432 {
433 if (root_)
434 return root_->find_largest();
435 else
436 return nullptr;
437 }
438
[4f080f2a]439 void update_root_(const node_type* node)
[4d65515]440 {
441 if (!node)
442 return;
443
[4f080f2a]444 root_ = const_cast<node_type*>(node);
[4d65515]445 while (root_->parent)
446 root_ = root_->parent;
447 }
448
[4f080f2a]449 void repair_after_insert_(const node_type* node)
[4d65515]450 {
451 // TODO: implement
452 }
453
[4f080f2a]454 void repair_after_erase_(const node_type* node, const node_type* child)
[be9eb15]455 {
456 // TODO: implement
457 }
458
[4d65515]459 friend Policy;
460 };
461}
462
463#endif
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