Coverage Report

Created: 2025-10-24 06:54

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/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