1 //===----------------------------------------------------------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is dual licensed under the MIT and the University of Illinois Open 6 // Source Licenses. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 10 #ifndef TEST_ALLOCATOR_H 11 #define TEST_ALLOCATOR_H 12 13 #include <type_traits> 14 #include <new> 15 #include <memory> 16 #include <utility> 17 #include <cstddef> 18 #include <cstdlib> 19 #include <climits> 20 #include <cassert> 21 22 #include "test_macros.h" 23 24 template <class Alloc> 25 inline typename std::allocator_traits<Alloc>::size_type 26 alloc_max_size(Alloc const &a) { 27 typedef std::allocator_traits<Alloc> AT; 28 return AT::max_size(a); 29 } 30 31 class test_alloc_base 32 { 33 protected: 34 static int time_to_throw; 35 public: 36 static int throw_after; 37 static int count; 38 static int alloc_count; 39 }; 40 41 int test_alloc_base::count = 0; 42 int test_alloc_base::time_to_throw = 0; 43 int test_alloc_base::alloc_count = 0; 44 int test_alloc_base::throw_after = INT_MAX; 45 46 template <class T> 47 class test_allocator 48 : public test_alloc_base 49 { 50 int data_; // participates in equality 51 int id_; // unique identifier, doesn't participate in equality 52 template <class U> friend class test_allocator; 53 public: 54 55 typedef unsigned size_type; 56 typedef int difference_type; 57 typedef T value_type; 58 typedef value_type* pointer; 59 typedef const value_type* const_pointer; 60 typedef typename std::add_lvalue_reference<value_type>::type reference; 61 typedef typename std::add_lvalue_reference<const value_type>::type const_reference; 62 63 template <class U> struct rebind {typedef test_allocator<U> other;}; 64 65 test_allocator() TEST_NOEXCEPT : data_(0), id_(0) {++count;} 66 explicit test_allocator(int i, int id = 0) TEST_NOEXCEPT : data_(i), id_(id) 67 {++count;} 68 test_allocator(const test_allocator& a) TEST_NOEXCEPT 69 : data_(a.data_), id_(a.id_) {++count;} 70 template <class U> test_allocator(const test_allocator<U>& a) TEST_NOEXCEPT 71 : data_(a.data_), id_(a.id_) {++count;} 72 ~test_allocator() TEST_NOEXCEPT { 73 assert(data_ >= 0); assert(id_ >= 0); 74 --count; data_ = -1; id_ = -1; 75 } 76 pointer address(reference x) const {return &x;} 77 const_pointer address(const_reference x) const {return &x;} 78 pointer allocate(size_type n, const void* = 0) 79 { 80 assert(data_ >= 0); 81 if (time_to_throw >= throw_after) { 82 #ifndef TEST_HAS_NO_EXCEPTIONS 83 throw std::bad_alloc(); 84 #else 85 std::terminate(); 86 #endif 87 } 88 ++time_to_throw; 89 ++alloc_count; 90 return (pointer)::operator new(n * sizeof(T)); 91 } 92 void deallocate(pointer p, size_type) 93 {assert(data_ >= 0); --alloc_count; ::operator delete((void*)p);} 94 size_type max_size() const TEST_NOEXCEPT 95 {return UINT_MAX / sizeof(T);} 96 #if TEST_STD_VER < 11 97 void construct(pointer p, const T& val) 98 {::new(static_cast<void*>(p)) T(val);} 99 #else 100 template <class U> void construct(pointer p, U&& val) 101 {::new(static_cast<void*>(p)) T(std::forward<U>(val));} 102 #endif 103 void destroy(pointer p) 104 {p->~T();} 105 friend bool operator==(const test_allocator& x, const test_allocator& y) 106 {return x.data_ == y.data_;} 107 friend bool operator!=(const test_allocator& x, const test_allocator& y) 108 {return !(x == y);} 109 110 int get_data() const { return data_; } 111 int get_id() const { return id_; } 112 }; 113 114 template <class T> 115 class non_default_test_allocator 116 : public test_alloc_base 117 { 118 int data_; 119 120 template <class U> friend class non_default_test_allocator; 121 public: 122 123 typedef unsigned size_type; 124 typedef int difference_type; 125 typedef T value_type; 126 typedef value_type* pointer; 127 typedef const value_type* const_pointer; 128 typedef typename std::add_lvalue_reference<value_type>::type reference; 129 typedef typename std::add_lvalue_reference<const value_type>::type const_reference; 130 131 template <class U> struct rebind {typedef non_default_test_allocator<U> other;}; 132 133 // non_default_test_allocator() TEST_NOEXCEPT : data_(0) {++count;} 134 explicit non_default_test_allocator(int i) TEST_NOEXCEPT : data_(i) {++count;} 135 non_default_test_allocator(const non_default_test_allocator& a) TEST_NOEXCEPT 136 : data_(a.data_) {++count;} 137 template <class U> non_default_test_allocator(const non_default_test_allocator<U>& a) TEST_NOEXCEPT 138 : data_(a.data_) {++count;} 139 ~non_default_test_allocator() TEST_NOEXCEPT {assert(data_ >= 0); --count; data_ = -1;} 140 pointer address(reference x) const {return &x;} 141 const_pointer address(const_reference x) const {return &x;} 142 pointer allocate(size_type n, const void* = 0) 143 { 144 assert(data_ >= 0); 145 if (time_to_throw >= throw_after) { 146 #ifndef TEST_HAS_NO_EXCEPTIONS 147 throw std::bad_alloc(); 148 #else 149 std::terminate(); 150 #endif 151 } 152 ++time_to_throw; 153 ++alloc_count; 154 return (pointer)::operator new (n * sizeof(T)); 155 } 156 void deallocate(pointer p, size_type) 157 {assert(data_ >= 0); --alloc_count; ::operator delete((void*)p); } 158 size_type max_size() const TEST_NOEXCEPT 159 {return UINT_MAX / sizeof(T);} 160 #if TEST_STD_VER < 11 161 void construct(pointer p, const T& val) 162 {::new(static_cast<void*>(p)) T(val);} 163 #else 164 template <class U> void construct(pointer p, U&& val) 165 {::new(static_cast<void*>(p)) T(std::forward<U>(val));} 166 #endif 167 void destroy(pointer p) {p->~T();} 168 169 friend bool operator==(const non_default_test_allocator& x, const non_default_test_allocator& y) 170 {return x.data_ == y.data_;} 171 friend bool operator!=(const non_default_test_allocator& x, const non_default_test_allocator& y) 172 {return !(x == y);} 173 }; 174 175 template <> 176 class test_allocator<void> 177 : public test_alloc_base 178 { 179 int data_; 180 int id_; 181 182 template <class U> friend class test_allocator; 183 public: 184 185 typedef unsigned size_type; 186 typedef int difference_type; 187 typedef void value_type; 188 typedef value_type* pointer; 189 typedef const value_type* const_pointer; 190 191 template <class U> struct rebind {typedef test_allocator<U> other;}; 192 193 test_allocator() TEST_NOEXCEPT : data_(0), id_(0) {} 194 explicit test_allocator(int i, int id = 0) TEST_NOEXCEPT : data_(i), id_(id) {} 195 test_allocator(const test_allocator& a) TEST_NOEXCEPT 196 : data_(a.data_), id_(a.id_) {} 197 template <class U> test_allocator(const test_allocator<U>& a) TEST_NOEXCEPT 198 : data_(a.data_), id_(a.id_) {} 199 ~test_allocator() TEST_NOEXCEPT {data_ = -1; id_ = -1; } 200 201 int get_id() const { return id_; } 202 int get_data() const { return data_; } 203 204 friend bool operator==(const test_allocator& x, const test_allocator& y) 205 {return x.data_ == y.data_;} 206 friend bool operator!=(const test_allocator& x, const test_allocator& y) 207 {return !(x == y);} 208 }; 209 210 template <class T> 211 class other_allocator 212 { 213 int data_; 214 215 template <class U> friend class other_allocator; 216 217 public: 218 typedef T value_type; 219 220 other_allocator() : data_(-1) {} 221 explicit other_allocator(int i) : data_(i) {} 222 template <class U> other_allocator(const other_allocator<U>& a) 223 : data_(a.data_) {} 224 T* allocate(std::size_t n) 225 {return (T*)::operator new(n * sizeof(T));} 226 void deallocate(T* p, std::size_t) 227 {::operator delete((void*)p);} 228 229 other_allocator select_on_container_copy_construction() const 230 {return other_allocator(-2);} 231 232 friend bool operator==(const other_allocator& x, const other_allocator& y) 233 {return x.data_ == y.data_;} 234 friend bool operator!=(const other_allocator& x, const other_allocator& y) 235 {return !(x == y);} 236 237 typedef std::true_type propagate_on_container_copy_assignment; 238 typedef std::true_type propagate_on_container_move_assignment; 239 typedef std::true_type propagate_on_container_swap; 240 241 #if TEST_STD_VER < 11 242 std::size_t max_size() const 243 {return UINT_MAX / sizeof(T);} 244 #endif 245 246 }; 247 248 #if TEST_STD_VER >= 11 249 250 struct Ctor_Tag {}; 251 252 template <typename T> class TaggingAllocator; 253 254 struct Tag_X { 255 // All constructors must be passed the Tag type. 256 257 // DefaultInsertable into vector<X, TaggingAllocator<X>>, 258 Tag_X(Ctor_Tag) {} 259 // CopyInsertable into vector<X, TaggingAllocator<X>>, 260 Tag_X(Ctor_Tag, const Tag_X&) {} 261 // MoveInsertable into vector<X, TaggingAllocator<X>>, and 262 Tag_X(Ctor_Tag, Tag_X&&) {} 263 264 // EmplaceConstructible into vector<X, TaggingAllocator<X>> from args. 265 template<typename... Args> 266 Tag_X(Ctor_Tag, Args&&...) { } 267 268 // not DefaultConstructible, CopyConstructible or MoveConstructible. 269 Tag_X() = delete; 270 Tag_X(const Tag_X&) = delete; 271 Tag_X(Tag_X&&) = delete; 272 273 // CopyAssignable. 274 Tag_X& operator=(const Tag_X&) { return *this; } 275 276 // MoveAssignable. 277 Tag_X& operator=(Tag_X&&) { return *this; } 278 279 private: 280 // Not Destructible. 281 ~Tag_X() { } 282 283 // Erasable from vector<X, TaggingAllocator<X>>. 284 friend class TaggingAllocator<Tag_X>; 285 }; 286 287 288 template<typename T> 289 class TaggingAllocator { 290 public: 291 using value_type = T; 292 TaggingAllocator() = default; 293 294 template<typename U> 295 TaggingAllocator(const TaggingAllocator<U>&) { } 296 297 T* allocate(std::size_t n) { return std::allocator<T>{}.allocate(n); } 298 299 void deallocate(T* p, std::size_t n) { std::allocator<T>{}.deallocate(p, n); } 300 301 template<typename... Args> 302 void construct(Tag_X* p, Args&&... args) 303 { ::new((void*)p) Tag_X(Ctor_Tag{}, std::forward<Args>(args)...); } 304 305 template<typename U, typename... Args> 306 void construct(U* p, Args&&... args) 307 { ::new((void*)p) U(std::forward<Args>(args)...); } 308 309 template<typename U, typename... Args> 310 void destroy(U* p) 311 { p->~U(); } 312 }; 313 314 template<typename T, typename U> 315 bool 316 operator==(const TaggingAllocator<T>&, const TaggingAllocator<U>&) 317 { return true; } 318 319 template<typename T, typename U> 320 bool 321 operator!=(const TaggingAllocator<T>&, const TaggingAllocator<U>&) 322 { return false; } 323 #endif 324 325 template <std::size_t MaxAllocs> 326 struct limited_alloc_handle { 327 std::size_t outstanding_; 328 void* last_alloc_; 329 330 limited_alloc_handle() : outstanding_(0), last_alloc_(nullptr) {} 331 332 template <class T> 333 T *allocate(std::size_t N) { 334 if (N + outstanding_ > MaxAllocs) 335 TEST_THROW(std::bad_alloc()); 336 last_alloc_ = ::operator new(N*sizeof(T)); 337 outstanding_ += N; 338 return static_cast<T*>(last_alloc_); 339 } 340 341 void deallocate(void* ptr, std::size_t N) { 342 if (ptr == last_alloc_) { 343 last_alloc_ = nullptr; 344 assert(outstanding_ >= N); 345 outstanding_ -= N; 346 } 347 ::operator delete(ptr); 348 } 349 }; 350 351 template <class T, std::size_t N> 352 class limited_allocator 353 { 354 template <class U, std::size_t UN> friend class limited_allocator; 355 typedef limited_alloc_handle<N> BuffT; 356 std::shared_ptr<BuffT> handle_; 357 public: 358 typedef T value_type; 359 typedef value_type* pointer; 360 typedef const value_type* const_pointer; 361 typedef value_type& reference; 362 typedef const value_type& const_reference; 363 typedef std::size_t size_type; 364 typedef std::ptrdiff_t difference_type; 365 366 template <class U> struct rebind { typedef limited_allocator<U, N> other; }; 367 368 limited_allocator() : handle_(new BuffT) {} 369 370 limited_allocator(limited_allocator const& other) : handle_(other.handle_) {} 371 372 template <class U> 373 explicit limited_allocator(limited_allocator<U, N> const& other) 374 : handle_(other.handle_) {} 375 376 private: 377 limited_allocator& operator=(const limited_allocator&);// = delete; 378 379 public: 380 pointer allocate(size_type n) { return handle_->template allocate<T>(n); } 381 void deallocate(pointer p, size_type n) { handle_->deallocate(p, n); } 382 size_type max_size() const {return N;} 383 384 BuffT* getHandle() const { return handle_.get(); } 385 }; 386 387 template <class T, class U, std::size_t N> 388 inline bool operator==(limited_allocator<T, N> const& LHS, 389 limited_allocator<U, N> const& RHS) { 390 return LHS.getHandle() == RHS.getHandle(); 391 } 392 393 template <class T, class U, std::size_t N> 394 inline bool operator!=(limited_allocator<T, N> const& LHS, 395 limited_allocator<U, N> const& RHS) { 396 return !(LHS == RHS); 397 } 398 399 400 #endif // TEST_ALLOCATOR_H 401