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Dominik Laskowski6fdf1142020-10-07 12:09:09 -07001/*
2 * Copyright 2020 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17#pragma once
18
19#include <algorithm>
20#include <cassert>
21#include <iterator>
22#include <memory>
23#include <new>
24#include <type_traits>
25#include <utility>
26
27namespace android::ftl {
28
29// Fixed-capacity, statically allocated counterpart of std::vector. Akin to std::array, StaticVector
30// allocates contiguous storage for N elements of type T at compile time, but stores at most (rather
31// than exactly) N elements. Unlike std::array, its default constructor does not require T to have a
32// default constructor, since elements are constructed in-place as the vector grows. Operations that
33// insert an element, such as push_back and emplace, fail when the vector is full. The API otherwise
34// adheres to standard containers, except the unstable_erase operation that does not shift elements,
35// and the replace operation that destructively emplaces.
36//
37// StaticVector<T, 1> is analogous to an iterable std::optional, but StaticVector<T, 0> is an error.
38//
39// Example usage:
40//
41// ftl::StaticVector<char, 3> vector;
42// assert(vector.empty());
43//
44// vector = {'a', 'b'};
45// assert(vector.size() == 2u);
46//
47// vector.push_back('c');
48// assert(vector.full());
49//
50// assert(!vector.push_back('d'));
51// assert(vector.size() == 3u);
52//
53// vector.unstable_erase(vector.begin());
54// assert(vector == (ftl::StaticVector{'c', 'b'}));
55//
56// vector.pop_back();
57// assert(vector.back() == 'c');
58//
59// const char array[] = "hi";
60// vector = ftl::StaticVector(array);
61// assert(vector == (ftl::StaticVector{'h', 'i', '\0'}));
62//
63template <typename T, size_t N>
64class StaticVector {
65 static_assert(N > 0);
66
67 template <typename I>
68 using IsInputIterator = std::is_base_of<std::input_iterator_tag,
69 typename std::iterator_traits<I>::iterator_category>;
70
71public:
72 using value_type = T;
73 using size_type = size_t;
74 using difference_type = ptrdiff_t;
75
76 using pointer = value_type*;
77 using reference = value_type&;
78 using iterator = pointer;
79 using reverse_iterator = std::reverse_iterator<iterator>;
80
81 using const_pointer = const value_type*;
82 using const_reference = const value_type&;
83 using const_iterator = const_pointer;
84 using const_reverse_iterator = std::reverse_iterator<const_iterator>;
85
86 // Creates an empty vector.
87 StaticVector() = default;
88
89 // Copies and moves a vector, respectively.
90 StaticVector(const StaticVector& other) : StaticVector(other.begin(), other.end()) {}
91 StaticVector(StaticVector&& other) { swap<Empty>(other); }
92
93 // Copies at most N elements from a smaller convertible vector.
94 template <typename U, size_t M, typename = std::enable_if_t<M <= N>>
95 StaticVector(const StaticVector<U, M>& other) : StaticVector(other.begin(), other.end()) {}
96
97 // Copies at most N elements from an array.
98 template <typename U, size_t M>
99 explicit StaticVector(U (&array)[M]) : StaticVector(std::begin(array), std::end(array)) {}
100
101 // Copies at most N elements from the range [first, last).
102 template <typename Iterator, typename = std::enable_if_t<IsInputIterator<Iterator>{}>>
103 StaticVector(Iterator first, Iterator last)
104 : mSize(std::min(max_size(), static_cast<size_type>(std::distance(first, last)))) {
105 std::uninitialized_copy(first, first + mSize, begin());
106 }
107
108 // Constructs at most N elements. The template arguments T and N are inferred using the
109 // deduction guide defined below. Note that T is determined from the first element, and
110 // subsequent elements must have convertible types:
111 //
112 // ftl::StaticVector vector = {1, 2, 3};
113 // static_assert(std::is_same_v<decltype(vector), ftl::StaticVector<int, 3>>);
114 //
115 // const auto copy = "quince"s;
116 // auto move = "tart"s;
117 // ftl::StaticVector vector = {copy, std::move(move)};
118 //
119 // static_assert(std::is_same_v<decltype(vector), ftl::StaticVector<std::string, 2>>);
120 //
121 template <typename E, typename... Es,
122 typename = std::enable_if_t<std::is_constructible_v<value_type, E>>>
123 StaticVector(E&& element, Es&&... elements)
124 : StaticVector(std::index_sequence<0>{}, std::forward<E>(element),
125 std::forward<Es>(elements)...) {
126 static_assert(sizeof...(elements) < N, "Too many elements");
127 }
128
129 // Constructs at most N elements. The template arguments T and N are inferred using the
130 // deduction guide defined below. Element types must be convertible to the specified T:
131 //
132 // ftl::StaticVector vector(std::in_place_type<std::string>, "red", "velvet", "cake");
133 // static_assert(std::is_same_v<decltype(vector), ftl::StaticVector<std::string, 3>>);
134 //
135 template <typename... Es>
136 explicit StaticVector(std::in_place_type_t<T>, Es... elements)
137 : StaticVector(std::forward<Es>(elements)...) {}
138
139 ~StaticVector() { std::destroy(begin(), end()); }
140
141 StaticVector& operator=(const StaticVector& other) {
142 StaticVector copy(other);
143 swap(copy);
144 return *this;
145 }
146
147 StaticVector& operator=(StaticVector&& other) {
148 std::destroy(begin(), end());
149 mSize = 0;
150 swap<Empty>(other);
151 return *this;
152 }
153
154 template <typename = void>
155 void swap(StaticVector&);
156
157 size_type max_size() const { return N; }
158 size_type size() const { return mSize; }
159
160 bool empty() const { return size() == 0; }
161 bool full() const { return size() == max_size(); }
162
163 iterator begin() { return std::launder(reinterpret_cast<pointer>(mData)); }
164 const_iterator begin() const { return cbegin(); }
165 const_iterator cbegin() const { return mut().begin(); }
166
167 iterator end() { return begin() + size(); }
168 const_iterator end() const { return cend(); }
169 const_iterator cend() const { return mut().end(); }
170
171 reverse_iterator rbegin() { return std::make_reverse_iterator(end()); }
172 const_reverse_iterator rbegin() const { return crbegin(); }
173 const_reverse_iterator crbegin() const { return mut().rbegin(); }
174
175 reverse_iterator rend() { return std::make_reverse_iterator(begin()); }
176 const_reverse_iterator rend() const { return crend(); }
177 const_reverse_iterator crend() const { return mut().rend(); }
178
179 iterator last() { return end() - 1; }
180 const_iterator last() const { return mut().last(); }
181
182 reference front() { return *begin(); }
183 const_reference front() const { return mut().front(); }
184
185 reference back() { return *last(); }
186 const_reference back() const { return mut().back(); }
187
188 reference operator[](size_type i) { return *(begin() + i); }
189 const_reference operator[](size_type i) const { return mut()[i]; }
190
191 // Replaces an element, and returns an iterator to it. If the vector is full, the element is not
192 // replaced, and the end iterator is returned.
193 template <typename... Args>
194 iterator replace(const_iterator cit, Args&&... args) {
195 if (full()) return end();
196 // Append element, and move into place if not last.
197 emplace_back(std::forward<Args>(args)...);
198 if (cit != last()) unstable_erase(cit);
199 return const_cast<iterator>(cit);
200 }
201
202 // Appends an element, and returns an iterator to it. If the vector is full, the element is not
203 // inserted, and the end iterator is returned.
204 template <typename... Args>
205 iterator emplace_back(Args&&... args) {
206 if (full()) return end();
207 const iterator it = construct_at(end(), std::forward<Args>(args)...);
208 ++mSize;
209 return it;
210 }
211
212 // Erases an element, but does not preserve order. Rather than shifting subsequent elements,
213 // this moves the last element to the slot of the erased element.
214 void unstable_erase(const_iterator it) {
215 std::destroy_at(it);
216 if (it != last()) {
217 // Move last element and destroy its source for destructor side effects.
218 construct_at(it, std::move(back()));
219 std::destroy_at(last());
220 }
221 --mSize;
222 }
223
224 bool push_back(value_type v) {
225 // Two statements for sequence point.
226 const iterator it = emplace_back(std::move(v));
227 return it != end();
228 }
229
230 void pop_back() { unstable_erase(last()); }
231
232private:
233 struct Empty {};
234
235 StaticVector& mut() const { return *const_cast<StaticVector*>(this); }
236
237 // Recursion for variadic constructor.
238 template <size_t I, typename E, typename... Es>
239 StaticVector(std::index_sequence<I>, E&& element, Es&&... elements)
240 : StaticVector(std::index_sequence<I + 1>{}, std::forward<Es>(elements)...) {
241 construct_at(begin() + I, std::forward<E>(element));
242 }
243
244 // Base case for variadic constructor.
245 template <size_t I>
246 explicit StaticVector(std::index_sequence<I>) : mSize(I) {}
247
248 // TODO: Replace with std::construct_at in C++20.
249 template <typename... Args>
250 static pointer construct_at(const_iterator it, Args&&... args) {
251 void* const ptr = const_cast<void*>(static_cast<const void*>(it));
252 return new (ptr) value_type{std::forward<Args>(args)...};
253 }
254
255 size_type mSize = 0;
256 std::aligned_storage_t<sizeof(value_type), alignof(value_type)> mData[N];
257};
258
259// Deduction guide for array constructor.
260template <typename T, size_t N>
261StaticVector(T (&)[N]) -> StaticVector<std::remove_cv_t<T>, N>;
262
263// Deduction guide for variadic constructor.
264template <typename T, typename... Us, typename V = std::decay_t<T>,
265 typename = std::enable_if_t<(std::is_constructible_v<V, Us> && ...)>>
266StaticVector(T&&, Us&&...) -> StaticVector<V, 1 + sizeof...(Us)>;
267
268// Deduction guide for in-place constructor.
269template <typename T, typename... Us>
270StaticVector(std::in_place_type_t<T>, Us&&...) -> StaticVector<T, sizeof...(Us)>;
271
272template <typename T, size_t N>
273template <typename E>
274void StaticVector<T, N>::swap(StaticVector& other) {
275 auto [to, from] = std::make_pair(this, &other);
276 if (from == this) return;
277
278 // Assume this vector has fewer elements, so the excess of the other vector will be moved to it.
279 auto [min, max] = std::make_pair(size(), other.size());
280
281 // No elements to swap if moving into an empty vector.
282 if constexpr (std::is_same_v<E, Empty>) {
283 assert(min == 0);
284 } else {
285 if (min > max) {
286 std::swap(from, to);
287 std::swap(min, max);
288 }
289
290 // Swap elements [0, min).
291 std::swap_ranges(begin(), begin() + min, other.begin());
292
293 // No elements to move if sizes are equal.
294 if (min == max) return;
295 }
296
297 // Move elements [min, max) and destroy their source for destructor side effects.
298 const auto [first, last] = std::make_pair(from->begin() + min, from->begin() + max);
299 std::uninitialized_move(first, last, to->begin() + min);
300 std::destroy(first, last);
301
302 std::swap(mSize, other.mSize);
303}
304
305template <typename T, size_t N>
306inline void swap(StaticVector<T, N>& lhs, StaticVector<T, N>& rhs) {
307 lhs.swap(rhs);
308}
309
310// TODO: Replace with operator<=> in C++20.
311template <typename T, size_t N, size_t M>
312inline bool operator==(const StaticVector<T, N>& lhs, const StaticVector<T, M>& rhs) {
313 return lhs.size() == rhs.size() && std::equal(lhs.begin(), lhs.end(), rhs.begin());
314}
315
316template <typename T, size_t N, size_t M>
317inline bool operator<(const StaticVector<T, N>& lhs, const StaticVector<T, M>& rhs) {
318 return std::lexicographical_compare(lhs.begin(), lhs.end(), rhs.begin(), rhs.end());
319}
320
321template <typename T, size_t N, size_t M>
322inline bool operator>(const StaticVector<T, N>& lhs, const StaticVector<T, M>& rhs) {
323 return rhs < lhs;
324}
325
326template <typename T, size_t N, size_t M>
327inline bool operator!=(const StaticVector<T, N>& lhs, const StaticVector<T, M>& rhs) {
328 return !(lhs == rhs);
329}
330
331template <typename T, size_t N, size_t M>
332inline bool operator>=(const StaticVector<T, N>& lhs, const StaticVector<T, M>& rhs) {
333 return !(lhs < rhs);
334}
335
336template <typename T, size_t N, size_t M>
337inline bool operator<=(const StaticVector<T, N>& lhs, const StaticVector<T, M>& rhs) {
338 return !(rhs < lhs);
339}
340
341} // namespace android::ftl