/src/icu/icu4c/source/i18n/double-conversion-utils.h
Line | Count | Source |
1 | | // © 2018 and later: Unicode, Inc. and others. |
2 | | // License & terms of use: http://www.unicode.org/copyright.html |
3 | | // |
4 | | // From the double-conversion library. Original license: |
5 | | // |
6 | | // Copyright 2010 the V8 project authors. All rights reserved. |
7 | | // Redistribution and use in source and binary forms, with or without |
8 | | // modification, are permitted provided that the following conditions are |
9 | | // met: |
10 | | // |
11 | | // * Redistributions of source code must retain the above copyright |
12 | | // notice, this list of conditions and the following disclaimer. |
13 | | // * Redistributions in binary form must reproduce the above |
14 | | // copyright notice, this list of conditions and the following |
15 | | // disclaimer in the documentation and/or other materials provided |
16 | | // with the distribution. |
17 | | // * Neither the name of Google Inc. nor the names of its |
18 | | // contributors may be used to endorse or promote products derived |
19 | | // from this software without specific prior written permission. |
20 | | // |
21 | | // THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS |
22 | | // "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT |
23 | | // LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR |
24 | | // A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT |
25 | | // OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, |
26 | | // SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT |
27 | | // LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, |
28 | | // DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY |
29 | | // THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT |
30 | | // (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE |
31 | | // OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. |
32 | | |
33 | | // ICU PATCH: ifdef around UCONFIG_NO_FORMATTING |
34 | | #include "unicode/utypes.h" |
35 | | #if !UCONFIG_NO_FORMATTING |
36 | | |
37 | | #ifndef DOUBLE_CONVERSION_UTILS_H_ |
38 | | #define DOUBLE_CONVERSION_UTILS_H_ |
39 | | |
40 | | // Use DOUBLE_CONVERSION_NON_PREFIXED_MACROS to get unprefixed macros as was |
41 | | // the case in double-conversion releases prior to 3.1.6 |
42 | | |
43 | | #include <cstdlib> |
44 | | #include <cstring> |
45 | | |
46 | | // For pre-C++11 compatibility |
47 | | #if __cplusplus >= 201103L |
48 | 2.00M | #define DOUBLE_CONVERSION_NULLPTR nullptr |
49 | | #else |
50 | | #define DOUBLE_CONVERSION_NULLPTR NULL |
51 | | #endif |
52 | | |
53 | | // ICU PATCH: Use U_ASSERT instead of <assert.h> |
54 | | #include "uassert.h" |
55 | | #ifndef DOUBLE_CONVERSION_ASSERT |
56 | | #define DOUBLE_CONVERSION_ASSERT(condition) \ |
57 | 76.0M | U_ASSERT(condition) |
58 | | #endif |
59 | | #if defined(DOUBLE_CONVERSION_NON_PREFIXED_MACROS) && !defined(ASSERT) |
60 | | #define ASSERT DOUBLE_CONVERSION_ASSERT |
61 | | #endif |
62 | | |
63 | | #ifndef DOUBLE_CONVERSION_UNIMPLEMENTED |
64 | 0 | #define DOUBLE_CONVERSION_UNIMPLEMENTED() (abort()) |
65 | | #endif |
66 | | #if defined(DOUBLE_CONVERSION_NON_PREFIXED_MACROS) && !defined(UNIMPLEMENTED) |
67 | | #define UNIMPLEMENTED DOUBLE_CONVERSION_UNIMPLEMENTED |
68 | | #endif |
69 | | |
70 | | #ifndef DOUBLE_CONVERSION_NO_RETURN |
71 | | #ifdef _MSC_VER |
72 | | #define DOUBLE_CONVERSION_NO_RETURN __declspec(noreturn) |
73 | | #else |
74 | | #define DOUBLE_CONVERSION_NO_RETURN __attribute__((noreturn)) |
75 | | #endif |
76 | | #endif |
77 | | #if defined(DOUBLE_CONVERSION_NON_PREFIXED_MACROS) && !defined(NO_RETURN) |
78 | | #define NO_RETURN DOUBLE_CONVERSION_NO_RETURN |
79 | | #endif |
80 | | |
81 | | #ifndef DOUBLE_CONVERSION_UNREACHABLE |
82 | | #ifdef _MSC_VER |
83 | | void DOUBLE_CONVERSION_NO_RETURN abort_noreturn(); |
84 | | inline void abort_noreturn() { abort(); } |
85 | | #define DOUBLE_CONVERSION_UNREACHABLE() (abort_noreturn()) |
86 | | #else |
87 | 0 | #define DOUBLE_CONVERSION_UNREACHABLE() (abort()) |
88 | | #endif |
89 | | #endif |
90 | | #if defined(DOUBLE_CONVERSION_NON_PREFIXED_MACROS) && !defined(UNREACHABLE) |
91 | | #define UNREACHABLE DOUBLE_CONVERSION_UNREACHABLE |
92 | | #endif |
93 | | |
94 | | // Not all compilers support __has_attribute and combining a check for both |
95 | | // ifdef and __has_attribute on the same preprocessor line isn't portable. |
96 | | #ifdef __has_attribute |
97 | | # define DOUBLE_CONVERSION_HAS_ATTRIBUTE(x) __has_attribute(x) |
98 | | #else |
99 | | # define DOUBLE_CONVERSION_HAS_ATTRIBUTE(x) 0 |
100 | | #endif |
101 | | |
102 | | #ifndef DOUBLE_CONVERSION_UNUSED |
103 | | #if DOUBLE_CONVERSION_HAS_ATTRIBUTE(unused) |
104 | | #define DOUBLE_CONVERSION_UNUSED __attribute__((unused)) |
105 | | #else |
106 | | #define DOUBLE_CONVERSION_UNUSED |
107 | | #endif |
108 | | #endif |
109 | | #if defined(DOUBLE_CONVERSION_NON_PREFIXED_MACROS) && !defined(UNUSED) |
110 | | #define UNUSED DOUBLE_CONVERSION_UNUSED |
111 | | #endif |
112 | | |
113 | | #if DOUBLE_CONVERSION_HAS_ATTRIBUTE(uninitialized) |
114 | 1.00M | #define DOUBLE_CONVERSION_STACK_UNINITIALIZED __attribute__((uninitialized)) |
115 | | #else |
116 | | #define DOUBLE_CONVERSION_STACK_UNINITIALIZED |
117 | | #endif |
118 | | #if defined(DOUBLE_CONVERSION_NON_PREFIXED_MACROS) && !defined(STACK_UNINITIALIZED) |
119 | | #define STACK_UNINITIALIZED DOUBLE_CONVERSION_STACK_UNINITIALIZED |
120 | | #endif |
121 | | |
122 | | // Double operations detection based on target architecture. |
123 | | // Linux uses a 80bit wide floating point stack on x86. This induces double |
124 | | // rounding, which in turn leads to wrong results. |
125 | | // An easy way to test if the floating-point operations are correct is to |
126 | | // evaluate: 89255.0/1e22. If the floating-point stack is 64 bits wide then |
127 | | // the result is equal to 89255e-22. |
128 | | // The best way to test this, is to create a division-function and to compare |
129 | | // the output of the division with the expected result. (Inlining must be |
130 | | // disabled.) |
131 | | // On Linux,x86 89255e-22 != Div_double(89255.0/1e22) |
132 | | // |
133 | | // For example: |
134 | | /* |
135 | | // -- in div.c |
136 | | double Div_double(double x, double y) { return x / y; } |
137 | | |
138 | | // -- in main.c |
139 | | double Div_double(double x, double y); // Forward declaration. |
140 | | |
141 | | int main(int argc, char** argv) { |
142 | | return Div_double(89255.0, 1e22) == 89255e-22; |
143 | | } |
144 | | */ |
145 | | // Run as follows ./main || echo "correct" |
146 | | // |
147 | | // If it prints "correct" then the architecture should be here, in the "correct" section. |
148 | | #if defined(_M_X64) || defined(__x86_64__) || \ |
149 | | defined(__ARMEL__) || defined(__avr32__) || defined(_M_ARM) || defined(_M_ARM64) || \ |
150 | | defined(__hppa__) || defined(__ia64__) || \ |
151 | | defined(__mips__) || \ |
152 | | defined(__loongarch__) || \ |
153 | | defined(__nios2__) || defined(__ghs) || \ |
154 | | defined(__powerpc__) || defined(__ppc__) || defined(__ppc64__) || \ |
155 | | defined(_POWER) || defined(_ARCH_PPC) || defined(_ARCH_PPC64) || \ |
156 | | defined(__sparc__) || defined(__sparc) || defined(__s390__) || \ |
157 | | defined(__SH4__) || defined(__alpha__) || \ |
158 | | defined(_MIPS_ARCH_MIPS32R2) || defined(__ARMEB__) ||\ |
159 | | defined(__AARCH64EL__) || defined(__aarch64__) || defined(__AARCH64EB__) || \ |
160 | | defined(__riscv) || defined(__e2k__) || \ |
161 | | defined(__or1k__) || defined(__arc__) || defined(__ARC64__) || \ |
162 | | defined(__microblaze__) || defined(__XTENSA__) || \ |
163 | | defined(__EMSCRIPTEN__) || defined(__wasm32__) |
164 | | #define DOUBLE_CONVERSION_CORRECT_DOUBLE_OPERATIONS 1 |
165 | | #elif defined(__mc68000__) || \ |
166 | | defined(__pnacl__) || defined(__native_client__) |
167 | | #undef DOUBLE_CONVERSION_CORRECT_DOUBLE_OPERATIONS |
168 | | #elif defined(_M_IX86) || defined(__i386__) || defined(__i386) |
169 | | #if defined(_WIN32) |
170 | | // Windows uses a 64bit wide floating point stack. |
171 | | #define DOUBLE_CONVERSION_CORRECT_DOUBLE_OPERATIONS 1 |
172 | | #else |
173 | | #undef DOUBLE_CONVERSION_CORRECT_DOUBLE_OPERATIONS |
174 | | #endif // _WIN32 |
175 | | #else |
176 | | #error Target architecture was not detected as supported by Double-Conversion. |
177 | | #endif |
178 | | #if defined(DOUBLE_CONVERSION_NON_PREFIXED_MACROS) && !defined(CORRECT_DOUBLE_OPERATIONS) |
179 | | #define CORRECT_DOUBLE_OPERATIONS DOUBLE_CONVERSION_CORRECT_DOUBLE_OPERATIONS |
180 | | #endif |
181 | | |
182 | | #if defined(_WIN32) && !defined(__MINGW32__) |
183 | | |
184 | | typedef signed char int8_t; |
185 | | typedef unsigned char uint8_t; |
186 | | typedef short int16_t; // NOLINT |
187 | | typedef unsigned short uint16_t; // NOLINT |
188 | | typedef int int32_t; |
189 | | typedef unsigned int uint32_t; |
190 | | typedef __int64 int64_t; |
191 | | typedef unsigned __int64 uint64_t; |
192 | | // intptr_t and friends are defined in crtdefs.h through stdio.h. |
193 | | |
194 | | #else |
195 | | |
196 | | #include <stdint.h> |
197 | | |
198 | | #endif |
199 | | |
200 | | typedef uint16_t uc16; |
201 | | |
202 | | // The following macro works on both 32 and 64-bit platforms. |
203 | | // Usage: instead of writing 0x1234567890123456 |
204 | | // write DOUBLE_CONVERSION_UINT64_2PART_C(0x12345678,90123456); |
205 | 1.43M | #define DOUBLE_CONVERSION_UINT64_2PART_C(a, b) (((static_cast<uint64_t>(a) << 32) + 0x##b##u)) |
206 | | #if defined(DOUBLE_CONVERSION_NON_PREFIXED_MACROS) && !defined(UINT64_2PART_C) |
207 | | #define UINT64_2PART_C DOUBLE_CONVERSION_UINT64_2PART_C |
208 | | #endif |
209 | | |
210 | | // The expression DOUBLE_CONVERSION_ARRAY_SIZE(a) is a compile-time constant of type |
211 | | // size_t which represents the number of elements of the given |
212 | | // array. You should only use DOUBLE_CONVERSION_ARRAY_SIZE on statically allocated |
213 | | // arrays. |
214 | | #ifndef DOUBLE_CONVERSION_ARRAY_SIZE |
215 | | #define DOUBLE_CONVERSION_ARRAY_SIZE(a) \ |
216 | | ((sizeof(a) / sizeof(*(a))) / \ |
217 | | static_cast<size_t>(!(sizeof(a) % sizeof(*(a))))) |
218 | | #endif |
219 | | #if defined(DOUBLE_CONVERSION_NON_PREFIXED_MACROS) && !defined(ARRAY_SIZE) |
220 | | #define ARRAY_SIZE DOUBLE_CONVERSION_ARRAY_SIZE |
221 | | #endif |
222 | | |
223 | | // A macro to disallow the evil copy constructor and operator= functions |
224 | | // This should be used in the private: declarations for a class |
225 | | #ifndef DOUBLE_CONVERSION_DISALLOW_COPY_AND_ASSIGN |
226 | | #define DOUBLE_CONVERSION_DISALLOW_COPY_AND_ASSIGN(TypeName) \ |
227 | | TypeName(const TypeName&); \ |
228 | | void operator=(const TypeName&) |
229 | | #endif |
230 | | #if defined(DOUBLE_CONVERSION_NON_PREFIXED_MACROS) && !defined(DC_DISALLOW_COPY_AND_ASSIGN) |
231 | | #define DC_DISALLOW_COPY_AND_ASSIGN DOUBLE_CONVERSION_DISALLOW_COPY_AND_ASSIGN |
232 | | #endif |
233 | | |
234 | | // A macro to disallow all the implicit constructors, namely the |
235 | | // default constructor, copy constructor and operator= functions. |
236 | | // |
237 | | // This should be used in the private: declarations for a class |
238 | | // that wants to prevent anyone from instantiating it. This is |
239 | | // especially useful for classes containing only static methods. |
240 | | #ifndef DOUBLE_CONVERSION_DISALLOW_IMPLICIT_CONSTRUCTORS |
241 | | #define DOUBLE_CONVERSION_DISALLOW_IMPLICIT_CONSTRUCTORS(TypeName) \ |
242 | | TypeName(); \ |
243 | | DOUBLE_CONVERSION_DISALLOW_COPY_AND_ASSIGN(TypeName) |
244 | | #endif |
245 | | #if defined(DOUBLE_CONVERSION_NON_PREFIXED_MACROS) && !defined(DC_DISALLOW_IMPLICIT_CONSTRUCTORS) |
246 | | #define DC_DISALLOW_IMPLICIT_CONSTRUCTORS DOUBLE_CONVERSION_DISALLOW_IMPLICIT_CONSTRUCTORS |
247 | | #endif |
248 | | |
249 | | // ICU PATCH: Wrap in ICU namespace |
250 | | U_NAMESPACE_BEGIN |
251 | | |
252 | | namespace double_conversion { |
253 | | |
254 | 0 | inline int StrLength(const char* string) { |
255 | 0 | size_t length = strlen(string); |
256 | 0 | DOUBLE_CONVERSION_ASSERT(length == static_cast<size_t>(static_cast<int>(length))); |
257 | 0 | return static_cast<int>(length); |
258 | 0 | } |
259 | | |
260 | | // This is a simplified version of V8's Vector class. |
261 | | template <typename T> |
262 | | class Vector { |
263 | | public: |
264 | 0 | Vector() : start_(DOUBLE_CONVERSION_NULLPTR), length_(0) {} |
265 | 2.27M | Vector(T* data, int len) : start_(data), length_(len) { |
266 | 2.27M | DOUBLE_CONVERSION_ASSERT(len == 0 || (len > 0 && data != DOUBLE_CONVERSION_NULLPTR)); |
267 | 2.27M | } icu_78::double_conversion::Vector<char>::Vector(char*, int) Line | Count | Source | 265 | 272k | Vector(T* data, int len) : start_(data), length_(len) { | 266 | 272k | DOUBLE_CONVERSION_ASSERT(len == 0 || (len > 0 && data != DOUBLE_CONVERSION_NULLPTR)); | 267 | 272k | } |
icu_78::double_conversion::Vector<char const>::Vector(char const*, int) Line | Count | Source | 265 | 2.00M | Vector(T* data, int len) : start_(data), length_(len) { | 266 | 2.00M | DOUBLE_CONVERSION_ASSERT(len == 0 || (len > 0 && data != DOUBLE_CONVERSION_NULLPTR)); | 267 | 2.00M | } |
|
268 | | |
269 | | // Returns a vector using the same backing storage as this one, |
270 | | // spanning from and including 'from', to but not including 'to'. |
271 | 479k | Vector<T> SubVector(int from, int to) { |
272 | 479k | DOUBLE_CONVERSION_ASSERT(to <= length_); |
273 | 479k | DOUBLE_CONVERSION_ASSERT(from < to); |
274 | 479k | DOUBLE_CONVERSION_ASSERT(0 <= from); |
275 | 479k | return Vector<T>(start() + from, to - from); |
276 | 479k | } |
277 | | |
278 | | // Returns the length of the vector. |
279 | 11.4M | int length() const { return length_; }Unexecuted instantiation: icu_78::double_conversion::Vector<char>::length() const icu_78::double_conversion::Vector<char const>::length() const Line | Count | Source | 279 | 11.4M | int length() const { return length_; } |
|
280 | | |
281 | | // Returns whether or not the vector is empty. |
282 | 0 | bool is_empty() const { return length_ == 0; } |
283 | | |
284 | | // Returns the pointer to the start of the data in the vector. |
285 | 1.00M | T* start() const { return start_; }Unexecuted instantiation: icu_78::double_conversion::Vector<char>::start() const icu_78::double_conversion::Vector<char const>::start() const Line | Count | Source | 285 | 1.00M | T* start() const { return start_; } |
|
286 | | |
287 | | // Access individual vector elements - checks bounds in debug mode. |
288 | 11.4M | T& operator[](int index) const { |
289 | 11.4M | DOUBLE_CONVERSION_ASSERT(0 <= index && index < length_); |
290 | 11.4M | return start_[index]; |
291 | 11.4M | } icu_78::double_conversion::Vector<char>::operator[](int) const Line | Count | Source | 288 | 4.85M | T& operator[](int index) const { | 289 | 4.85M | DOUBLE_CONVERSION_ASSERT(0 <= index && index < length_); | 290 | 4.85M | return start_[index]; | 291 | 4.85M | } |
icu_78::double_conversion::Vector<char const>::operator[](int) const Line | Count | Source | 288 | 6.63M | T& operator[](int index) const { | 289 | 6.63M | DOUBLE_CONVERSION_ASSERT(0 <= index && index < length_); | 290 | 6.63M | return start_[index]; | 291 | 6.63M | } |
|
292 | | |
293 | | T& first() { return start_[0]; } |
294 | | |
295 | 0 | T& last() { return start_[length_ - 1]; } |
296 | | |
297 | 0 | void pop_back() { |
298 | 0 | DOUBLE_CONVERSION_ASSERT(!is_empty()); |
299 | 0 | --length_; |
300 | 0 | } |
301 | | |
302 | | private: |
303 | | T* start_; |
304 | | int length_; |
305 | | }; |
306 | | |
307 | | |
308 | | // Helper class for building result strings in a character buffer. The |
309 | | // purpose of the class is to use safe operations that checks the |
310 | | // buffer bounds on all operations in debug mode. |
311 | | class StringBuilder { |
312 | | public: |
313 | | StringBuilder(char* buffer, int buffer_size) |
314 | 0 | : buffer_(buffer, buffer_size), position_(0) { } |
315 | | |
316 | 0 | ~StringBuilder() { if (!is_finalized()) Finalize(); } |
317 | | |
318 | 0 | int size() const { return buffer_.length(); } |
319 | | |
320 | | // Get the current position in the builder. |
321 | 0 | int position() const { |
322 | 0 | DOUBLE_CONVERSION_ASSERT(!is_finalized()); |
323 | 0 | return position_; |
324 | 0 | } |
325 | | |
326 | | // Reset the position. |
327 | 0 | void Reset() { position_ = 0; } |
328 | | |
329 | | // Add a single character to the builder. It is not allowed to add |
330 | | // 0-characters; use the Finalize() method to terminate the string |
331 | | // instead. |
332 | 0 | void AddCharacter(char c) { |
333 | 0 | DOUBLE_CONVERSION_ASSERT(c != '\0'); |
334 | 0 | DOUBLE_CONVERSION_ASSERT(!is_finalized() && position_ < buffer_.length()); |
335 | 0 | buffer_[position_++] = c; |
336 | 0 | } |
337 | | |
338 | | // Add an entire string to the builder. Uses strlen() internally to |
339 | | // compute the length of the input string. |
340 | 0 | void AddString(const char* s) { |
341 | 0 | AddSubstring(s, StrLength(s)); |
342 | 0 | } |
343 | | |
344 | | // Add the first 'n' characters of the given string 's' to the |
345 | | // builder. The input string must have enough characters. |
346 | 0 | void AddSubstring(const char* s, int n) { |
347 | 0 | DOUBLE_CONVERSION_ASSERT(!is_finalized() && position_ + n < buffer_.length()); |
348 | 0 | DOUBLE_CONVERSION_ASSERT(static_cast<size_t>(n) <= strlen(s)); |
349 | 0 | memmove(&buffer_[position_], s, static_cast<size_t>(n)); |
350 | 0 | position_ += n; |
351 | 0 | } |
352 | | |
353 | | |
354 | | // Add character padding to the builder. If count is non-positive, |
355 | | // nothing is added to the builder. |
356 | 0 | void AddPadding(char c, int count) { |
357 | 0 | for (int i = 0; i < count; i++) { |
358 | 0 | AddCharacter(c); |
359 | 0 | } |
360 | 0 | } |
361 | | |
362 | | // Finalize the string by 0-terminating it and returning the buffer. |
363 | 0 | char* Finalize() { |
364 | 0 | DOUBLE_CONVERSION_ASSERT(!is_finalized() && position_ < buffer_.length()); |
365 | 0 | buffer_[position_] = '\0'; |
366 | 0 | // Make sure nobody managed to add a 0-character to the |
367 | 0 | // buffer while building the string. |
368 | 0 | DOUBLE_CONVERSION_ASSERT(strlen(buffer_.start()) == static_cast<size_t>(position_)); |
369 | 0 | position_ = -1; |
370 | 0 | DOUBLE_CONVERSION_ASSERT(is_finalized()); |
371 | 0 | return buffer_.start(); |
372 | 0 | } |
373 | | |
374 | | private: |
375 | | Vector<char> buffer_; |
376 | | int position_; |
377 | | |
378 | 0 | bool is_finalized() const { return position_ < 0; } |
379 | | |
380 | | DOUBLE_CONVERSION_DISALLOW_IMPLICIT_CONSTRUCTORS(StringBuilder); |
381 | | }; |
382 | | |
383 | | // The type-based aliasing rule allows the compiler to assume that pointers of |
384 | | // different types (for some definition of different) never alias each other. |
385 | | // Thus the following code does not work: |
386 | | // |
387 | | // float f = foo(); |
388 | | // int fbits = *(int*)(&f); |
389 | | // |
390 | | // The compiler 'knows' that the int pointer can't refer to f since the types |
391 | | // don't match, so the compiler may cache f in a register, leaving random data |
392 | | // in fbits. Using C++ style casts makes no difference, however a pointer to |
393 | | // char data is assumed to alias any other pointer. This is the 'memcpy |
394 | | // exception'. |
395 | | // |
396 | | // Bit_cast uses the memcpy exception to move the bits from a variable of one |
397 | | // type of a variable of another type. Of course the end result is likely to |
398 | | // be implementation dependent. Most compilers (gcc-4.2 and MSVC 2005) |
399 | | // will completely optimize BitCast away. |
400 | | // |
401 | | // There is an additional use for BitCast. |
402 | | // Recent gccs will warn when they see casts that may result in breakage due to |
403 | | // the type-based aliasing rule. If you have checked that there is no breakage |
404 | | // you can use BitCast to cast one pointer type to another. This confuses gcc |
405 | | // enough that it can no longer see that you have cast one pointer type to |
406 | | // another thus avoiding the warning. |
407 | | template <class Dest, class Source> |
408 | 1.27M | Dest BitCast(const Source& source) { |
409 | | // Compile time assertion: sizeof(Dest) == sizeof(Source) |
410 | | // A compile error here means your Dest and Source have different sizes. |
411 | 1.27M | #if __cplusplus >= 201103L |
412 | 1.27M | static_assert(sizeof(Dest) == sizeof(Source), |
413 | 1.27M | "source and destination size mismatch"); |
414 | | #else |
415 | | DOUBLE_CONVERSION_UNUSED |
416 | | typedef char VerifySizesAreEqual[sizeof(Dest) == sizeof(Source) ? 1 : -1]; |
417 | | #endif |
418 | | |
419 | 1.27M | Dest dest; |
420 | 1.27M | memmove(&dest, &source, sizeof(dest)); |
421 | 1.27M | return dest; |
422 | 1.27M | } unsigned long icu_78::double_conversion::BitCast<unsigned long, double>(double const&) Line | Count | Source | 408 | 871k | Dest BitCast(const Source& source) { | 409 | | // Compile time assertion: sizeof(Dest) == sizeof(Source) | 410 | | // A compile error here means your Dest and Source have different sizes. | 411 | 871k | #if __cplusplus >= 201103L | 412 | 871k | static_assert(sizeof(Dest) == sizeof(Source), | 413 | 871k | "source and destination size mismatch"); | 414 | | #else | 415 | | DOUBLE_CONVERSION_UNUSED | 416 | | typedef char VerifySizesAreEqual[sizeof(Dest) == sizeof(Source) ? 1 : -1]; | 417 | | #endif | 418 | | | 419 | 871k | Dest dest; | 420 | 871k | memmove(&dest, &source, sizeof(dest)); | 421 | 871k | return dest; | 422 | 871k | } |
double icu_78::double_conversion::BitCast<double, unsigned long>(unsigned long const&) Line | Count | Source | 408 | 407k | Dest BitCast(const Source& source) { | 409 | | // Compile time assertion: sizeof(Dest) == sizeof(Source) | 410 | | // A compile error here means your Dest and Source have different sizes. | 411 | 407k | #if __cplusplus >= 201103L | 412 | 407k | static_assert(sizeof(Dest) == sizeof(Source), | 413 | 407k | "source and destination size mismatch"); | 414 | | #else | 415 | | DOUBLE_CONVERSION_UNUSED | 416 | | typedef char VerifySizesAreEqual[sizeof(Dest) == sizeof(Source) ? 1 : -1]; | 417 | | #endif | 418 | | | 419 | 407k | Dest dest; | 420 | 407k | memmove(&dest, &source, sizeof(dest)); | 421 | 407k | return dest; | 422 | 407k | } |
Unexecuted instantiation: unsigned int icu_78::double_conversion::BitCast<unsigned int, float>(float const&) Unexecuted instantiation: float icu_78::double_conversion::BitCast<float, unsigned int>(unsigned int const&) |
423 | | |
424 | | template <class Dest, class Source> |
425 | | Dest BitCast(Source* source) { |
426 | | return BitCast<Dest>(reinterpret_cast<uintptr_t>(source)); |
427 | | } |
428 | | |
429 | | } // namespace double_conversion |
430 | | |
431 | | // ICU PATCH: Close ICU namespace |
432 | | U_NAMESPACE_END |
433 | | |
434 | | #endif // DOUBLE_CONVERSION_UTILS_H_ |
435 | | #endif // ICU PATCH: close #if !UCONFIG_NO_FORMATTING |