Coverage Report

Created: 2026-06-02 06:36

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/php-src/Zend/zend_strtod.c
Line
Count
Source
1
/****************************************************************
2
 *
3
 * The author of this software is David M. Gay.
4
 *
5
 * Copyright (c) 1991, 2000, 2001 by Lucent Technologies.
6
 *
7
 * Permission to use, copy, modify, and distribute this software for any
8
 * purpose without fee is hereby granted, provided that this entire notice
9
 * is included in all copies of any software which is or includes a copy
10
 * or modification of this software and in all copies of the supporting
11
 * documentation for such software.
12
 *
13
 * THIS SOFTWARE IS BEING PROVIDED "AS IS", WITHOUT ANY EXPRESS OR IMPLIED
14
 * WARRANTY.  IN PARTICULAR, NEITHER THE AUTHOR NOR LUCENT MAKES ANY
15
 * REPRESENTATION OR WARRANTY OF ANY KIND CONCERNING THE MERCHANTABILITY
16
 * OF THIS SOFTWARE OR ITS FITNESS FOR ANY PARTICULAR PURPOSE.
17
 *
18
 ***************************************************************/
19
20
/* Please send bug reports to David M. Gay (dmg at acm dot org,
21
 * with " at " changed at "@" and " dot " changed to ".").  */
22
23
/* On a machine with IEEE extended-precision registers, it is
24
 * necessary to specify double-precision (53-bit) rounding precision
25
 * before invoking strtod or dtoa.  If the machine uses (the equivalent
26
 * of) Intel 80x87 arithmetic, the call
27
 *  _control87(PC_53, MCW_PC);
28
 * does this with many compilers.  Whether this or another call is
29
 * appropriate depends on the compiler; for this to work, it may be
30
 * necessary to #include "float.h" or another system-dependent header
31
 * file.
32
 */
33
34
/* strtod for IEEE-, VAX-, and IBM-arithmetic machines.
35
 * (Note that IEEE arithmetic is disabled by gcc's -ffast-math flag.)
36
 *
37
 * This strtod returns a nearest machine number to the input decimal
38
 * string (or sets errno to ERANGE).  With IEEE arithmetic, ties are
39
 * broken by the IEEE round-even rule.  Otherwise ties are broken by
40
 * biased rounding (add half and chop).
41
 *
42
 * Inspired loosely by William D. Clinger's paper "How to Read Floating
43
 * Point Numbers Accurately" [Proc. ACM SIGPLAN '90, pp. 92-101].
44
 *
45
 * Modifications:
46
 *
47
 *  1. We only require IEEE, IBM, or VAX double-precision
48
 *    arithmetic (not IEEE double-extended).
49
 *  2. We get by with floating-point arithmetic in a case that
50
 *    Clinger missed -- when we're computing d * 10^n
51
 *    for a small integer d and the integer n is not too
52
 *    much larger than 22 (the maximum integer k for which
53
 *    we can represent 10^k exactly), we may be able to
54
 *    compute (d*10^k) * 10^(e-k) with just one roundoff.
55
 *  3. Rather than a bit-at-a-time adjustment of the binary
56
 *    result in the hard case, we use floating-point
57
 *    arithmetic to determine the adjustment to within
58
 *    one bit; only in really hard cases do we need to
59
 *    compute a second residual.
60
 *  4. Because of 3., we don't need a large table of powers of 10
61
 *    for ten-to-e (just some small tables, e.g. of 10^k
62
 *    for 0 <= k <= 22).
63
 */
64
65
/*
66
 * #define IEEE_8087 for IEEE-arithmetic machines where the least
67
 *  significant byte has the lowest address.
68
 * #define IEEE_MC68k for IEEE-arithmetic machines where the most
69
 *  significant byte has the lowest address.
70
 * #define Long int on machines with 32-bit ints and 64-bit longs.
71
 * #define IBM for IBM mainframe-style floating-point arithmetic.
72
 * #define VAX for VAX-style floating-point arithmetic (D_floating).
73
 * #define No_leftright to omit left-right logic in fast floating-point
74
 *  computation of dtoa.  This will cause dtoa modes 4 and 5 to be
75
 *  treated the same as modes 2 and 3 for some inputs.
76
 * #define Honor_FLT_ROUNDS if FLT_ROUNDS can assume the values 2 or 3
77
 *  and strtod and dtoa should round accordingly.  Unless Trust_FLT_ROUNDS
78
 *  is also #defined, fegetround() will be queried for the rounding mode.
79
 *  Note that both FLT_ROUNDS and fegetround() are specified by the C99
80
 *  standard (and are specified to be consistent, with fesetround()
81
 *  affecting the value of FLT_ROUNDS), but that some (Linux) systems
82
 *  do not work correctly in this regard, so using fegetround() is more
83
 *  portable than using FLT_ROUNDS directly.
84
 * #define Check_FLT_ROUNDS if FLT_ROUNDS can assume the values 2 or 3
85
 *  and Honor_FLT_ROUNDS is not #defined.
86
 * #define RND_PRODQUOT to use rnd_prod and rnd_quot (assembly routines
87
 *  that use extended-precision instructions to compute rounded
88
 *  products and quotients) with IBM.
89
 * #define ROUND_BIASED for IEEE-format with biased rounding and arithmetic
90
 *  that rounds toward +Infinity.
91
 * #define ROUND_BIASED_without_Round_Up for IEEE-format with biased
92
 *  rounding when the underlying floating-point arithmetic uses
93
 *  unbiased rounding.  This prevent using ordinary floating-point
94
 *  arithmetic when the result could be computed with one rounding error.
95
 * #define Inaccurate_Divide for IEEE-format with correctly rounded
96
 *  products but inaccurate quotients, e.g., for Intel i860.
97
 * #define NO_LONG_LONG on machines that do not have a "long long"
98
 *  integer type (of >= 64 bits).  On such machines, you can
99
 *  #define Just_16 to store 16 bits per 32-bit Long when doing
100
 *  high-precision integer arithmetic.  Whether this speeds things
101
 *  up or slows things down depends on the machine and the number
102
 *  being converted.  If long long is available and the name is
103
 *  something other than "long long", #define Llong to be the name,
104
 *  and if "unsigned Llong" does not work as an unsigned version of
105
 *  Llong, #define #ULLong to be the corresponding unsigned type.
106
 * #define KR_headers for old-style C function headers.
107
 * #define Bad_float_h if your system lacks a float.h or if it does not
108
 *  define some or all of DBL_DIG, DBL_MAX_10_EXP, DBL_MAX_EXP,
109
 *  FLT_RADIX, FLT_ROUNDS, and DBL_MAX.
110
 * #define MALLOC your_malloc, where your_malloc(n) acts like malloc(n)
111
 *  if memory is available and otherwise does something you deem
112
 *  appropriate.  If MALLOC is undefined, malloc will be invoked
113
 *  directly -- and assumed always to succeed.  Similarly, if you
114
 *  want something other than the system's free() to be called to
115
 *  recycle memory acquired from MALLOC, #define FREE to be the
116
 *  name of the alternate routine.  (FREE or free is only called in
117
 *  pathological cases, e.g., in a dtoa call after a dtoa return in
118
 *  mode 3 with thousands of digits requested.)
119
 * #define Omit_Private_Memory to omit logic (added Jan. 1998) for making
120
 *  memory allocations from a private pool of memory when possible.
121
 *  When used, the private pool is PRIVATE_MEM bytes long:  2304 bytes,
122
 *  unless #defined to be a different length.  This default length
123
 *  suffices to get rid of MALLOC calls except for unusual cases,
124
 *  such as decimal-to-binary conversion of a very long string of
125
 *  digits.  The longest string dtoa can return is about 751 bytes
126
 *  long.  For conversions by strtod of strings of 800 digits and
127
 *  all dtoa conversions in single-threaded executions with 8-byte
128
 *  pointers, PRIVATE_MEM >= 7400 appears to suffice; with 4-byte
129
 *  pointers, PRIVATE_MEM >= 7112 appears adequate.
130
 * #define NO_INFNAN_CHECK if you do not wish to have INFNAN_CHECK
131
 *  #defined automatically on IEEE systems.  On such systems,
132
 *  when INFNAN_CHECK is #defined, strtod checks
133
 *  for Infinity and NaN (case insensitively).  On some systems
134
 *  (e.g., some HP systems), it may be necessary to #define NAN_WORD0
135
 *  appropriately -- to the most significant word of a quiet NaN.
136
 *  (On HP Series 700/800 machines, -DNAN_WORD0=0x7ff40000 works.)
137
 *  When INFNAN_CHECK is #defined and No_Hex_NaN is not #defined,
138
 *  strtod also accepts (case insensitively) strings of the form
139
 *  NaN(x), where x is a string of hexadecimal digits and spaces;
140
 *  if there is only one string of hexadecimal digits, it is taken
141
 *  for the 52 fraction bits of the resulting NaN; if there are two
142
 *  or more strings of hex digits, the first is for the high 20 bits,
143
 *  the second and subsequent for the low 32 bits, with intervening
144
 *  white space ignored; but if this results in none of the 52
145
 *  fraction bits being on (an IEEE Infinity symbol), then NAN_WORD0
146
 *  and NAN_WORD1 are used instead.
147
 * #define MULTIPLE_THREADS if the system offers preemptively scheduled
148
 *  multiple threads.  In this case, you must provide (or suitably
149
 *  #define) two locks, acquired by ACQUIRE_DTOA_LOCK(n) and freed
150
 *  by FREE_DTOA_LOCK(n) for n = 0 or 1.  (The second lock, accessed
151
 *  in pow5mult, ensures lazy evaluation of only one copy of high
152
 *  powers of 5; omitting this lock would introduce a small
153
 *  probability of wasting memory, but would otherwise be harmless.)
154
 *  You must also invoke freedtoa(s) to free the value s returned by
155
 *  dtoa.  You may do so whether or not MULTIPLE_THREADS is #defined.
156
 * #define NO_IEEE_Scale to disable new (Feb. 1997) logic in strtod that
157
 *  avoids underflows on inputs whose result does not underflow.
158
 *  If you #define NO_IEEE_Scale on a machine that uses IEEE-format
159
 *  floating-point numbers and flushes underflows to zero rather
160
 *  than implementing gradual underflow, then you must also #define
161
 *  Sudden_Underflow.
162
 * #define USE_LOCALE to use the current locale's decimal_point value.
163
 * #define SET_INEXACT if IEEE arithmetic is being used and extra
164
 *  computation should be done to set the inexact flag when the
165
 *  result is inexact and avoid setting inexact when the result
166
 *  is exact.  In this case, dtoa.c must be compiled in
167
 *  an environment, perhaps provided by #include "dtoa.c" in a
168
 *  suitable wrapper, that defines two functions,
169
 *    int get_inexact(void);
170
 *    void clear_inexact(void);
171
 *  such that get_inexact() returns a nonzero value if the
172
 *  inexact bit is already set, and clear_inexact() sets the
173
 *  inexact bit to 0.  When SET_INEXACT is #defined, strtod
174
 *  also does extra computations to set the underflow and overflow
175
 *  flags when appropriate (i.e., when the result is tiny and
176
 *  inexact or when it is a numeric value rounded to +-infinity).
177
 * #define NO_ERRNO if strtod should not assign errno = ERANGE when
178
 *  the result overflows to +-Infinity or underflows to 0.
179
 * #define NO_HEX_FP to omit recognition of hexadecimal floating-point
180
 *  values by strtod.
181
 * #define NO_STRTOD_BIGCOMP (on IEEE-arithmetic systems only for now)
182
 *  to disable logic for "fast" testing of very long input strings
183
 *  to strtod.  This testing proceeds by initially truncating the
184
 *  input string, then if necessary comparing the whole string with
185
 *  a decimal expansion to decide close cases. This logic is only
186
 *  used for input more than STRTOD_DIGLIM digits long (default 40).
187
 */
188
189
#include <zend_operators.h>
190
#include <zend_strtod.h>
191
#include "zend_strtod_int.h"
192
#include "zend_globals.h"
193
194
#ifndef Long
195
642k
#define Long int32_t
196
#endif
197
#ifndef ULong
198
10.7M
#define ULong uint32_t
199
#endif
200
201
#undef Bigint
202
#undef freelist
203
#undef p5s
204
#undef dtoa_result
205
206
9.82M
#define Bigint      _zend_strtod_bigint
207
13.5M
#define freelist    (EG(strtod_state).freelist)
208
291k
#define p5s         (EG(strtod_state).p5s)
209
602k
#define dtoa_result (EG(strtod_state).result)
210
211
#ifdef DEBUG
212
static void Bug(const char *message) {
213
  fprintf(stderr, "%s\n", message);
214
}
215
#endif
216
217
#include "stdlib.h"
218
#include "string.h"
219
220
#ifdef USE_LOCALE
221
#include "locale.h"
222
#endif
223
224
#ifdef Honor_FLT_ROUNDS
225
#ifndef Trust_FLT_ROUNDS
226
#include <fenv.h>
227
#endif
228
#endif
229
230
#ifdef MALLOC
231
#ifdef KR_headers
232
extern char *MALLOC();
233
#else
234
extern void *MALLOC(size_t);
235
#endif
236
#else
237
33
#define MALLOC malloc
238
0
#define FREE   free
239
#endif
240
241
#ifndef Omit_Private_Memory
242
#ifndef PRIVATE_MEM
243
#define PRIVATE_MEM 2304
244
#endif
245
#define PRIVATE_mem ((PRIVATE_MEM+sizeof(double)-1)/sizeof(double))
246
static double private_mem[PRIVATE_mem], *pmem_next = private_mem;
247
#endif
248
249
#undef IEEE_Arith
250
#undef Avoid_Underflow
251
#ifdef IEEE_MC68k
252
#define IEEE_Arith
253
#endif
254
#ifdef IEEE_8087
255
#define IEEE_Arith
256
#endif
257
258
#ifdef IEEE_Arith
259
#ifndef NO_INFNAN_CHECK
260
#undef INFNAN_CHECK
261
#define INFNAN_CHECK
262
#endif
263
#else
264
#undef INFNAN_CHECK
265
#define NO_STRTOD_BIGCOMP
266
#endif
267
268
#include "errno.h"
269
270
#ifdef Bad_float_h
271
272
#ifdef IEEE_Arith
273
#define DBL_DIG 15
274
#define DBL_MAX_10_EXP 308
275
#define DBL_MAX_EXP 1024
276
#define FLT_RADIX 2
277
#endif /*IEEE_Arith*/
278
279
#ifdef IBM
280
#define DBL_DIG 16
281
#define DBL_MAX_10_EXP 75
282
#define DBL_MAX_EXP 63
283
#define FLT_RADIX 16
284
#define DBL_MAX 7.2370055773322621e+75
285
#endif
286
287
#ifdef VAX
288
#define DBL_DIG 16
289
#define DBL_MAX_10_EXP 38
290
#define DBL_MAX_EXP 127
291
#define FLT_RADIX 2
292
#define DBL_MAX 1.7014118346046923e+38
293
#endif
294
295
#else /* ifndef Bad_float_h */
296
#include "float.h"
297
#endif /* Bad_float_h */
298
299
#ifndef __MATH_H__
300
#include "math.h"
301
#endif
302
303
#ifndef CONST
304
#ifdef KR_headers
305
#define CONST /* blank */
306
#else
307
250k
#define CONST const
308
#endif
309
#endif
310
311
#if defined(IEEE_8087) + defined(IEEE_MC68k) + defined(VAX) + defined(IBM) != 1
312
Exactly one of IEEE_8087, IEEE_MC68k, VAX, or IBM should be defined.
313
#endif
314
315
typedef union { double d; ULong L[2]; } U;
316
317
#ifdef IEEE_8087
318
2.99M
#define word0(x) (x)->L[1]
319
1.14M
#define word1(x) (x)->L[0]
320
#else
321
#define word0(x) (x)->L[0]
322
#define word1(x) (x)->L[1]
323
#endif
324
9.48M
#define dval(x) (x)->d
325
326
#ifndef STRTOD_DIGLIM
327
171k
#define STRTOD_DIGLIM 40
328
#endif
329
330
#ifdef DIGLIM_DEBUG
331
extern int strtod_diglim;
332
#else
333
171k
#define strtod_diglim STRTOD_DIGLIM
334
#endif
335
336
/* The following definition of Storeinc is appropriate for MIPS processors.
337
 * An alternative that might be better on some machines is
338
 * #define Storeinc(a,b,c) (*a++ = b << 16 | c & 0xffff)
339
 */
340
#if defined(IEEE_8087) + defined(VAX) + defined(__arm__)
341
#define Storeinc(a,b,c) (((unsigned short *)a)[1] = (unsigned short)b, \
342
((unsigned short *)a)[0] = (unsigned short)c, a++)
343
#else
344
#define Storeinc(a,b,c) (((unsigned short *)a)[0] = (unsigned short)b, \
345
((unsigned short *)a)[1] = (unsigned short)c, a++)
346
#endif
347
348
/* #define P DBL_MANT_DIG */
349
/* Ten_pmax = floor(P*log(2)/log(5)) */
350
/* Bletch = (highest power of 2 < DBL_MAX_10_EXP) / 16 */
351
/* Quick_max = floor((P-1)*log(FLT_RADIX)/log(10) - 1) */
352
/* Int_max = floor(P*log(FLT_RADIX)/log(10) - 1) */
353
354
#ifdef IEEE_Arith
355
486k
#define Exp_shift  20
356
271k
#define Exp_shift1 20
357
1.12M
#define Exp_msk1    0x100000
358
#define Exp_msk11   0x100000
359
892k
#define Exp_mask  0x7ff00000
360
1.92M
#define P 53
361
#define Nbits 53
362
783k
#define Bias 1023
363
#define Emax 1023
364
356k
#define Emin (-1022)
365
220k
#define Exp_1  0x3ff00000
366
79.0k
#define Exp_11 0x3ff00000
367
333k
#define Ebits 11
368
401k
#define Frac_mask  0xfffff
369
80.3k
#define Frac_mask1 0xfffff
370
165k
#define Ten_pmax 22
371
42.2k
#define Bletch 0x10
372
129k
#define Bndry_mask  0xfffff
373
5.29k
#define Bndry_mask1 0xfffff
374
228k
#define LSB 1
375
154k
#define Sign_bit 0x80000000
376
1.96k
#define Log2P 1
377
#define Tiny0 0
378
39.5k
#define Tiny1 1
379
261k
#define Quick_max 14
380
30.0k
#define Int_max 14
381
#ifndef NO_IEEE_Scale
382
#define Avoid_Underflow
383
#ifdef Flush_Denorm /* debugging option */
384
#undef Sudden_Underflow
385
#endif
386
#endif
387
388
#ifndef Flt_Rounds
389
#ifdef FLT_ROUNDS
390
150k
#define Flt_Rounds FLT_ROUNDS
391
#else
392
#define Flt_Rounds 1
393
#endif
394
#endif /*Flt_Rounds*/
395
396
#ifdef Honor_FLT_ROUNDS
397
#undef Check_FLT_ROUNDS
398
#define Check_FLT_ROUNDS
399
#else
400
#define Rounding Flt_Rounds
401
#endif
402
403
#else /* ifndef IEEE_Arith */
404
#undef Check_FLT_ROUNDS
405
#undef Honor_FLT_ROUNDS
406
#undef SET_INEXACT
407
#undef  Sudden_Underflow
408
#define Sudden_Underflow
409
#ifdef IBM
410
#undef Flt_Rounds
411
#define Flt_Rounds 0
412
#define Exp_shift  24
413
#define Exp_shift1 24
414
#define Exp_msk1   0x1000000
415
#define Exp_msk11  0x1000000
416
#define Exp_mask  0x7f000000
417
#define P 14
418
#define Nbits 56
419
#define Bias 65
420
#define Emax 248
421
#define Emin (-260)
422
#define Exp_1  0x41000000
423
#define Exp_11 0x41000000
424
#define Ebits 8 /* exponent has 7 bits, but 8 is the right value in b2d */
425
#define Frac_mask  0xffffff
426
#define Frac_mask1 0xffffff
427
#define Bletch 4
428
#define Ten_pmax 22
429
#define Bndry_mask  0xefffff
430
#define Bndry_mask1 0xffffff
431
#define LSB 1
432
#define Sign_bit 0x80000000
433
#define Log2P 4
434
#define Tiny0 0x100000
435
#define Tiny1 0
436
#define Quick_max 14
437
#define Int_max 15
438
#else /* VAX */
439
#undef Flt_Rounds
440
#define Flt_Rounds 1
441
#define Exp_shift  23
442
#define Exp_shift1 7
443
#define Exp_msk1    0x80
444
#define Exp_msk11   0x800000
445
#define Exp_mask  0x7f80
446
#define P 56
447
#define Nbits 56
448
#define Bias 129
449
#define Emax 126
450
#define Emin (-129)
451
#define Exp_1  0x40800000
452
#define Exp_11 0x4080
453
#define Ebits 8
454
#define Frac_mask  0x7fffff
455
#define Frac_mask1 0xffff007f
456
#define Ten_pmax 24
457
#define Bletch 2
458
#define Bndry_mask  0xffff007f
459
#define Bndry_mask1 0xffff007f
460
#define LSB 0x10000
461
#define Sign_bit 0x8000
462
#define Log2P 1
463
#define Tiny0 0x80
464
#define Tiny1 0
465
#define Quick_max 15
466
#define Int_max 15
467
#endif /* IBM, VAX */
468
#endif /* IEEE_Arith */
469
470
#ifndef IEEE_Arith
471
#define ROUND_BIASED
472
#else
473
#ifdef ROUND_BIASED_without_Round_Up
474
#undef  ROUND_BIASED
475
#define ROUND_BIASED
476
#endif
477
#endif
478
479
#ifdef RND_PRODQUOT
480
#define rounded_product(a,b) a = rnd_prod(a, b)
481
#define rounded_quotient(a,b) a = rnd_quot(a, b)
482
#ifdef KR_headers
483
extern double rnd_prod(), rnd_quot();
484
#else
485
extern double rnd_prod(double, double), rnd_quot(double, double);
486
#endif
487
#else
488
1.06k
#define rounded_product(a,b) a *= b
489
19.8k
#define rounded_quotient(a,b) a /= b
490
#endif
491
492
1.92k
#define Big0 (Frac_mask1 | Exp_msk1*(DBL_MAX_EXP+Bias-1))
493
1.27k
#define Big1 0xffffffff
494
495
#ifndef Pack_32
496
#define Pack_32
497
#endif
498
499
typedef struct BCinfo BCinfo;
500
 struct
501
BCinfo { int dp0, dp1, dplen, dsign, e0, inexact, nd, nd0, rounding, scale, uflchk; };
502
503
#ifdef KR_headers
504
#define FFFFFFFF ((((unsigned long)0xffff)<<16)|(unsigned long)0xffff)
505
#else
506
69.3M
#define FFFFFFFF 0xffffffffUL
507
#endif
508
509
#ifdef NO_LONG_LONG
510
#undef ULLong
511
#ifdef Just_16
512
#undef Pack_32
513
/* When Pack_32 is not defined, we store 16 bits per 32-bit Long.
514
 * This makes some inner loops simpler and sometimes saves work
515
 * during multiplications, but it often seems to make things slightly
516
 * slower.  Hence the default is now to store 32 bits per Long.
517
 */
518
#endif
519
#else /* long long available */
520
#ifndef Llong
521
#define Llong long long
522
#endif
523
#ifndef ULLong
524
5.19M
#define ULLong unsigned Llong
525
#endif
526
#endif /* NO_LONG_LONG */
527
528
#ifndef MULTIPLE_THREADS
529
#define ACQUIRE_DTOA_LOCK(n)  /*nothing*/
530
#define FREE_DTOA_LOCK(n) /*nothing*/
531
#endif
532
533
6.78M
#define Kmax ZEND_STRTOD_K_MAX
534
535
 struct
536
Bigint {
537
  struct Bigint *next;
538
  int k, maxwds, sign, wds;
539
  ULong x[1];
540
  };
541
542
 typedef struct Bigint Bigint;
543
544
#ifndef Bigint
545
 static Bigint *freelist[Kmax+1];
546
#endif
547
548
static void destroy_freelist(void);
549
static void free_p5s(void);
550
551
#ifdef MULTIPLE_THREADS
552
static MUTEX_T dtoa_mutex;
553
static MUTEX_T pow5mult_mutex;
554
#endif /* ZTS */
555
556
ZEND_API int zend_shutdown_strtod(void) /* {{{ */
557
0
{
558
0
  destroy_freelist();
559
0
  free_p5s();
560
561
0
  return 1;
562
0
}
563
/* }}} */
564
565
 static Bigint *
566
Balloc
567
#ifdef KR_headers
568
  (k) int k;
569
#else
570
  (int k)
571
#endif
572
3.39M
{
573
3.39M
  int x;
574
3.39M
  Bigint *rv;
575
#ifndef Omit_Private_Memory
576
  unsigned int len;
577
#endif
578
579
3.39M
  ACQUIRE_DTOA_LOCK(0);
580
  /* The k > Kmax case does not need ACQUIRE_DTOA_LOCK(0), */
581
  /* but this case seems very unlikely. */
582
3.39M
  if (k <= Kmax && (rv = freelist[k]))
583
3.39M
    freelist[k] = rv->next;
584
33
  else {
585
33
    x = 1 << k;
586
33
#ifdef Omit_Private_Memory
587
33
    rv = (Bigint *)MALLOC(sizeof(Bigint) + (x-1)*sizeof(ULong));
588
33
    if (!rv) {
589
0
      FREE_DTOA_LOCK(0);
590
0
      zend_error_noreturn(E_ERROR, "Balloc() failed to allocate memory");
591
0
    }
592
#else
593
    len = (sizeof(Bigint) + (x-1)*sizeof(ULong) + sizeof(double) - 1)
594
      /sizeof(double);
595
    if (k <= Kmax && pmem_next - private_mem + len <= PRIVATE_mem) {
596
      rv = (Bigint*)pmem_next;
597
      pmem_next += len;
598
      }
599
    else
600
      rv = (Bigint*)MALLOC(len*sizeof(double));
601
      if (!rv) {
602
        FREE_DTOA_LOCK(0);
603
        zend_error_noreturn(E_ERROR, "Balloc() failed to allocate memory");
604
      }
605
#endif
606
33
    rv->k = k;
607
33
    rv->maxwds = x;
608
33
    }
609
3.39M
  FREE_DTOA_LOCK(0);
610
3.39M
  rv->sign = rv->wds = 0;
611
3.39M
  return rv;
612
3.39M
  }
613
614
 static void
615
Bfree
616
#ifdef KR_headers
617
  (v) Bigint *v;
618
#else
619
  (Bigint *v)
620
#endif
621
3.39M
{
622
3.39M
  if (v) {
623
3.39M
    if (v->k > Kmax)
624
0
      FREE((void*)v);
625
3.39M
    else {
626
3.39M
      ACQUIRE_DTOA_LOCK(0);
627
3.39M
      v->next = freelist[v->k];
628
3.39M
      freelist[v->k] = v;
629
3.39M
      FREE_DTOA_LOCK(0);
630
3.39M
      }
631
3.39M
    }
632
3.39M
  }
633
634
240k
#define Bcopy(x,y) memcpy((char *)&x->sign, (char *)&y->sign, \
635
240k
y->wds*sizeof(Long) + 2*sizeof(int))
636
637
 static Bigint *
638
multadd
639
#ifdef KR_headers
640
  (b, m, a) Bigint *b; int m, a;
641
#else
642
  (Bigint *b, int m, int a) /* multiply by m and add a */
643
#endif
644
2.55M
{
645
2.55M
  int i, wds;
646
2.55M
#ifdef ULLong
647
2.55M
  ULong *x;
648
2.55M
  ULLong carry, y;
649
#else
650
  ULong carry, *x, y;
651
#ifdef Pack_32
652
  ULong xi, z;
653
#endif
654
#endif
655
2.55M
  Bigint *b1;
656
657
2.55M
  wds = b->wds;
658
2.55M
  x = b->x;
659
2.55M
  i = 0;
660
2.55M
  carry = a;
661
17.3M
  do {
662
17.3M
#ifdef ULLong
663
17.3M
    y = *x * (ULLong)m + carry;
664
17.3M
    carry = y >> 32;
665
17.3M
    *x++ = y & FFFFFFFF;
666
#else
667
#ifdef Pack_32
668
    xi = *x;
669
    y = (xi & 0xffff) * m + carry;
670
    z = (xi >> 16) * m + (y >> 16);
671
    carry = z >> 16;
672
    *x++ = (z << 16) + (y & 0xffff);
673
#else
674
    y = *x * m + carry;
675
    carry = y >> 16;
676
    *x++ = y & 0xffff;
677
#endif
678
#endif
679
17.3M
    }
680
17.3M
    while(++i < wds);
681
2.55M
  if (carry) {
682
149k
    if (wds >= b->maxwds) {
683
12.1k
      b1 = Balloc(b->k+1);
684
12.1k
      Bcopy(b1, b);
685
12.1k
      Bfree(b);
686
12.1k
      b = b1;
687
12.1k
      }
688
149k
    b->x[wds++] = carry;
689
149k
    b->wds = wds;
690
149k
    }
691
2.55M
  return b;
692
2.55M
  }
693
694
 static Bigint *
695
s2b
696
#ifdef KR_headers
697
  (s, nd0, nd, y9, dplen) CONST char *s; int nd0, nd, dplen; ULong y9;
698
#else
699
  (const char *s, int nd0, int nd, ULong y9, int dplen)
700
#endif
701
171k
{
702
171k
  Bigint *b;
703
171k
  int i, k;
704
171k
  Long x, y;
705
706
171k
  x = (nd + 8) / 9;
707
289k
  for(k = 0, y = 1; x > y; y <<= 1, k++) ;
708
171k
#ifdef Pack_32
709
171k
  b = Balloc(k);
710
171k
  b->x[0] = y9;
711
171k
  b->wds = 1;
712
#else
713
  b = Balloc(k+1);
714
  b->x[0] = y9 & 0xffff;
715
  b->wds = (b->x[1] = y9 >> 16) ? 2 : 1;
716
#endif
717
718
171k
  i = 9;
719
171k
  if (9 < nd0) {
720
86.4k
    s += 9;
721
857k
    do b = multadd(b, 10, *s++ - '0');
722
857k
      while(++i < nd0);
723
86.4k
    s += dplen;
724
86.4k
    }
725
84.7k
  else
726
84.7k
    s += dplen + 9;
727
320k
  for(; i < nd; i++)
728
149k
    b = multadd(b, 10, *s++ - '0');
729
171k
  return b;
730
171k
  }
731
732
 static int
733
hi0bits
734
#ifdef KR_headers
735
  (x) ULong x;
736
#else
737
  (ULong x)
738
#endif
739
276k
{
740
276k
  int k = 0;
741
742
276k
  if (!(x & 0xffff0000)) {
743
168k
    k = 16;
744
168k
    x <<= 16;
745
168k
    }
746
276k
  if (!(x & 0xff000000)) {
747
111k
    k += 8;
748
111k
    x <<= 8;
749
111k
    }
750
276k
  if (!(x & 0xf0000000)) {
751
136k
    k += 4;
752
136k
    x <<= 4;
753
136k
    }
754
276k
  if (!(x & 0xc0000000)) {
755
147k
    k += 2;
756
147k
    x <<= 2;
757
147k
    }
758
276k
  if (!(x & 0x80000000)) {
759
128k
    k++;
760
128k
    if (!(x & 0x40000000))
761
0
      return 32;
762
128k
    }
763
276k
  return k;
764
276k
  }
765
766
 static int
767
lo0bits
768
#ifdef KR_headers
769
  (y) ULong *y;
770
#else
771
  (ULong *y)
772
#endif
773
401k
{
774
401k
  int k;
775
401k
  ULong x = *y;
776
777
401k
  if (x & 7) {
778
272k
    if (x & 1)
779
135k
      return 0;
780
136k
    if (x & 2) {
781
63.5k
      *y = x >> 1;
782
63.5k
      return 1;
783
63.5k
      }
784
73.0k
    *y = x >> 2;
785
73.0k
    return 2;
786
136k
    }
787
129k
  k = 0;
788
129k
  if (!(x & 0xffff)) {
789
17.5k
    k = 16;
790
17.5k
    x >>= 16;
791
17.5k
    }
792
129k
  if (!(x & 0xff)) {
793
20.8k
    k += 8;
794
20.8k
    x >>= 8;
795
20.8k
    }
796
129k
  if (!(x & 0xf)) {
797
77.2k
    k += 4;
798
77.2k
    x >>= 4;
799
77.2k
    }
800
129k
  if (!(x & 0x3)) {
801
77.3k
    k += 2;
802
77.3k
    x >>= 2;
803
77.3k
    }
804
129k
  if (!(x & 1)) {
805
83.8k
    k++;
806
83.8k
    x >>= 1;
807
83.8k
    if (!x)
808
0
      return 32;
809
83.8k
    }
810
129k
  *y = x;
811
129k
  return k;
812
129k
  }
813
814
 static Bigint *
815
i2b
816
#ifdef KR_headers
817
  (i) int i;
818
#else
819
  (int i)
820
#endif
821
321k
{
822
321k
  Bigint *b;
823
824
321k
  b = Balloc(1);
825
321k
  b->x[0] = i;
826
321k
  b->wds = 1;
827
321k
  return b;
828
321k
  }
829
830
 static Bigint *
831
mult
832
#ifdef KR_headers
833
  (a, b) Bigint *a, *b;
834
#else
835
  (Bigint *a, Bigint *b)
836
#endif
837
1.02M
{
838
1.02M
  Bigint *c;
839
1.02M
  int k, wa, wb, wc;
840
1.02M
  ULong *x, *xa, *xae, *xb, *xbe, *xc, *xc0;
841
1.02M
  ULong y;
842
1.02M
#ifdef ULLong
843
1.02M
  ULLong carry, z;
844
#else
845
  ULong carry, z;
846
#ifdef Pack_32
847
  ULong z2;
848
#endif
849
#endif
850
851
1.02M
  if (a->wds < b->wds) {
852
520k
    c = a;
853
520k
    a = b;
854
520k
    b = c;
855
520k
    }
856
1.02M
  k = a->k;
857
1.02M
  wa = a->wds;
858
1.02M
  wb = b->wds;
859
1.02M
  wc = wa + wb;
860
1.02M
  if (wc > a->maxwds)
861
399k
    k++;
862
1.02M
  c = Balloc(k);
863
10.8M
  for(x = c->x, xa = x + wc; x < xa; x++)
864
9.80M
    *x = 0;
865
1.02M
  xa = a->x;
866
1.02M
  xae = xa + wa;
867
1.02M
  xb = b->x;
868
1.02M
  xbe = xb + wb;
869
1.02M
  xc0 = c->x;
870
1.02M
#ifdef ULLong
871
3.22M
  for(; xb < xbe; xc0++) {
872
2.19M
    if ((y = *xb++)) {
873
2.19M
      x = xa;
874
2.19M
      xc = xc0;
875
2.19M
      carry = 0;
876
22.2M
      do {
877
22.2M
        z = *x++ * (ULLong)y + *xc + carry;
878
22.2M
        carry = z >> 32;
879
22.2M
        *xc++ = z & FFFFFFFF;
880
22.2M
        }
881
22.2M
        while(x < xae);
882
2.19M
      *xc = carry;
883
2.19M
      }
884
2.19M
    }
885
#else
886
#ifdef Pack_32
887
  for(; xb < xbe; xb++, xc0++) {
888
    if (y = *xb & 0xffff) {
889
      x = xa;
890
      xc = xc0;
891
      carry = 0;
892
      do {
893
        z = (*x & 0xffff) * y + (*xc & 0xffff) + carry;
894
        carry = z >> 16;
895
        z2 = (*x++ >> 16) * y + (*xc >> 16) + carry;
896
        carry = z2 >> 16;
897
        Storeinc(xc, z2, z);
898
        }
899
        while(x < xae);
900
      *xc = carry;
901
      }
902
    if (y = *xb >> 16) {
903
      x = xa;
904
      xc = xc0;
905
      carry = 0;
906
      z2 = *xc;
907
      do {
908
        z = (*x & 0xffff) * y + (*xc >> 16) + carry;
909
        carry = z >> 16;
910
        Storeinc(xc, z, z2);
911
        z2 = (*x++ >> 16) * y + (*xc & 0xffff) + carry;
912
        carry = z2 >> 16;
913
        }
914
        while(x < xae);
915
      *xc = z2;
916
      }
917
    }
918
#else
919
  for(; xb < xbe; xc0++) {
920
    if (y = *xb++) {
921
      x = xa;
922
      xc = xc0;
923
      carry = 0;
924
      do {
925
        z = *x++ * y + *xc + carry;
926
        carry = z >> 16;
927
        *xc++ = z & 0xffff;
928
        }
929
        while(x < xae);
930
      *xc = carry;
931
      }
932
    }
933
#endif
934
#endif
935
1.73M
  for(xc0 = c->x, xc = xc0 + wc; wc > 0 && !*--xc; --wc) ;
936
1.02M
  c->wds = wc;
937
1.02M
  return c;
938
1.02M
  }
939
940
#ifndef p5s
941
 static Bigint *p5s;
942
#endif
943
944
 static Bigint *
945
pow5mult
946
#ifdef KR_headers
947
  (b, k) Bigint *b; int k;
948
#else
949
  (Bigint *b, int k)
950
#endif
951
292k
{
952
292k
  Bigint *b1, *p5, *p51;
953
292k
  int i;
954
292k
  static const int p05[3] = { 5, 25, 125 };
955
956
292k
  if ((i = k & 3))
957
243k
    b = multadd(b, p05[i-1], 0);
958
959
292k
  if (!(k >>= 2))
960
1.26k
    return b;
961
291k
  if (!(p5 = p5s)) {
962
    /* first time */
963
#ifdef MULTIPLE_THREADS
964
    ACQUIRE_DTOA_LOCK(1);
965
    if (!(p5 = p5s)) {
966
      p5 = p5s = i2b(625);
967
      p5->next = 0;
968
      }
969
    FREE_DTOA_LOCK(1);
970
#else
971
1
    p5 = p5s = i2b(625);
972
1
    p5->next = 0;
973
1
#endif
974
1
    }
975
1.68M
  for(;;) {
976
1.68M
    if (k & 1) {
977
889k
      b1 = mult(b, p5);
978
889k
      Bfree(b);
979
889k
      b = b1;
980
889k
      }
981
1.68M
    if (!(k >>= 1))
982
291k
      break;
983
1.39M
    if (!(p51 = p5->next)) {
984
#ifdef MULTIPLE_THREADS
985
      ACQUIRE_DTOA_LOCK(1);
986
      if (!(p51 = p5->next)) {
987
        p51 = p5->next = mult(p5,p5);
988
        p51->next = 0;
989
        }
990
      FREE_DTOA_LOCK(1);
991
#else
992
6
      p51 = p5->next = mult(p5,p5);
993
6
      p51->next = 0;
994
6
#endif
995
6
      }
996
1.39M
    p5 = p51;
997
1.39M
    }
998
291k
  return b;
999
292k
  }
1000
1001
 static Bigint *
1002
lshift
1003
#ifdef KR_headers
1004
  (b, k) Bigint *b; int k;
1005
#else
1006
  (Bigint *b, int k)
1007
#endif
1008
700k
{
1009
700k
  int i, k1, n, n1;
1010
700k
  Bigint *b1;
1011
700k
  ULong *x, *x1, *xe, z;
1012
1013
700k
#ifdef Pack_32
1014
700k
  n = k >> 5;
1015
#else
1016
  n = k >> 4;
1017
#endif
1018
700k
  k1 = b->k;
1019
700k
  n1 = n + b->wds + 1;
1020
1.95M
  for(i = b->maxwds; n1 > i; i <<= 1)
1021
1.25M
    k1++;
1022
700k
  b1 = Balloc(k1);
1023
700k
  x1 = b1->x;
1024
5.52M
  for(i = 0; i < n; i++)
1025
4.82M
    *x1++ = 0;
1026
700k
  x = b->x;
1027
700k
  xe = x + b->wds;
1028
700k
#ifdef Pack_32
1029
700k
  if (k &= 0x1f) {
1030
689k
    k1 = 32 - k;
1031
689k
    z = 0;
1032
4.96M
    do {
1033
4.96M
      *x1++ = *x << k | z;
1034
4.96M
      z = *x++ >> k1;
1035
4.96M
      }
1036
4.96M
      while(x < xe);
1037
689k
    if ((*x1 = z))
1038
215k
      ++n1;
1039
689k
    }
1040
#else
1041
  if (k &= 0xf) {
1042
    k1 = 16 - k;
1043
    z = 0;
1044
    do {
1045
      *x1++ = *x << k  & 0xffff | z;
1046
      z = *x++ >> k1;
1047
      }
1048
      while(x < xe);
1049
    if (*x1 = z)
1050
      ++n1;
1051
    }
1052
#endif
1053
10.8k
  else do
1054
19.9k
    *x1++ = *x++;
1055
19.9k
    while(x < xe);
1056
700k
  b1->wds = n1 - 1;
1057
700k
  Bfree(b);
1058
700k
  return b1;
1059
700k
  }
1060
1061
 static int
1062
cmp
1063
#ifdef KR_headers
1064
  (a, b) Bigint *a, *b;
1065
#else
1066
  (Bigint *a, Bigint *b)
1067
#endif
1068
2.18M
{
1069
2.18M
  ULong *xa, *xa0, *xb, *xb0;
1070
2.18M
  int i, j;
1071
1072
2.18M
  i = a->wds;
1073
2.18M
  j = b->wds;
1074
#ifdef DEBUG
1075
  if (i > 1 && !a->x[i-1])
1076
    Bug("cmp called with a->x[a->wds-1] == 0");
1077
  if (j > 1 && !b->x[j-1])
1078
    Bug("cmp called with b->x[b->wds-1] == 0");
1079
#endif
1080
2.18M
  if (i -= j)
1081
154k
    return i;
1082
2.03M
  xa0 = a->x;
1083
2.03M
  xa = xa0 + j;
1084
2.03M
  xb0 = b->x;
1085
2.03M
  xb = xb0 + j;
1086
2.37M
  for(;;) {
1087
2.37M
    if (*--xa != *--xb)
1088
2.02M
      return *xa < *xb ? -1 : 1;
1089
347k
    if (xa <= xa0)
1090
11.7k
      break;
1091
347k
    }
1092
11.7k
  return 0;
1093
2.03M
  }
1094
1095
 static Bigint *
1096
diff
1097
#ifdef KR_headers
1098
  (a, b) Bigint *a, *b;
1099
#else
1100
  (Bigint *a, Bigint *b)
1101
#endif
1102
377k
{
1103
377k
  Bigint *c;
1104
377k
  int i, wa, wb;
1105
377k
  ULong *xa, *xae, *xb, *xbe, *xc;
1106
377k
#ifdef ULLong
1107
377k
  ULLong borrow, y;
1108
#else
1109
  ULong borrow, y;
1110
#ifdef Pack_32
1111
  ULong z;
1112
#endif
1113
#endif
1114
1115
377k
  i = cmp(a,b);
1116
377k
  if (!i) {
1117
2.96k
    c = Balloc(0);
1118
2.96k
    c->wds = 1;
1119
2.96k
    c->x[0] = 0;
1120
2.96k
    return c;
1121
2.96k
    }
1122
374k
  if (i < 0) {
1123
137k
    c = a;
1124
137k
    a = b;
1125
137k
    b = c;
1126
137k
    i = 1;
1127
137k
    }
1128
236k
  else
1129
236k
    i = 0;
1130
374k
  c = Balloc(a->k);
1131
374k
  c->sign = i;
1132
374k
  wa = a->wds;
1133
374k
  xa = a->x;
1134
374k
  xae = xa + wa;
1135
374k
  wb = b->wds;
1136
374k
  xb = b->x;
1137
374k
  xbe = xb + wb;
1138
374k
  xc = c->x;
1139
374k
  borrow = 0;
1140
374k
#ifdef ULLong
1141
5.27M
  do {
1142
5.27M
    y = (ULLong)*xa++ - *xb++ - borrow;
1143
5.27M
    borrow = y >> 32 & (ULong)1;
1144
5.27M
    *xc++ = y & FFFFFFFF;
1145
5.27M
    }
1146
5.27M
    while(xb < xbe);
1147
445k
  while(xa < xae) {
1148
70.3k
    y = *xa++ - borrow;
1149
70.3k
    borrow = y >> 32 & (ULong)1;
1150
70.3k
    *xc++ = y & FFFFFFFF;
1151
70.3k
    }
1152
#else
1153
#ifdef Pack_32
1154
  do {
1155
    y = (*xa & 0xffff) - (*xb & 0xffff) - borrow;
1156
    borrow = (y & 0x10000) >> 16;
1157
    z = (*xa++ >> 16) - (*xb++ >> 16) - borrow;
1158
    borrow = (z & 0x10000) >> 16;
1159
    Storeinc(xc, z, y);
1160
    }
1161
    while(xb < xbe);
1162
  while(xa < xae) {
1163
    y = (*xa & 0xffff) - borrow;
1164
    borrow = (y & 0x10000) >> 16;
1165
    z = (*xa++ >> 16) - borrow;
1166
    borrow = (z & 0x10000) >> 16;
1167
    Storeinc(xc, z, y);
1168
    }
1169
#else
1170
  do {
1171
    y = *xa++ - *xb++ - borrow;
1172
    borrow = (y & 0x10000) >> 16;
1173
    *xc++ = y & 0xffff;
1174
    }
1175
    while(xb < xbe);
1176
  while(xa < xae) {
1177
    y = *xa++ - borrow;
1178
    borrow = (y & 0x10000) >> 16;
1179
    *xc++ = y & 0xffff;
1180
    }
1181
#endif
1182
#endif
1183
763k
  while(!*--xc)
1184
388k
    wa--;
1185
374k
  c->wds = wa;
1186
374k
  return c;
1187
377k
  }
1188
1189
 static double
1190
ulp
1191
#ifdef KR_headers
1192
  (x) U *x;
1193
#else
1194
  (U *x)
1195
#endif
1196
70.5k
{
1197
70.5k
  Long L;
1198
70.5k
  U u;
1199
1200
70.5k
  L = (word0(x) & Exp_mask) - (P-1)*Exp_msk1;
1201
#ifndef Avoid_Underflow
1202
#ifndef Sudden_Underflow
1203
  if (L > 0) {
1204
#endif
1205
#endif
1206
#ifdef IBM
1207
    L |= Exp_msk1 >> 4;
1208
#endif
1209
70.5k
    word0(&u) = L;
1210
70.5k
    word1(&u) = 0;
1211
#ifndef Avoid_Underflow
1212
#ifndef Sudden_Underflow
1213
    }
1214
  else {
1215
    L = -L >> Exp_shift;
1216
    if (L < Exp_shift) {
1217
      word0(&u) = 0x80000 >> L;
1218
      word1(&u) = 0;
1219
      }
1220
    else {
1221
      word0(&u) = 0;
1222
      L -= Exp_shift;
1223
      word1(&u) = L >= 31 ? 1 : 1 << 31 - L;
1224
      }
1225
    }
1226
#endif
1227
#endif
1228
70.5k
  return dval(&u);
1229
70.5k
  }
1230
1231
 static double
1232
b2d
1233
#ifdef KR_headers
1234
  (a, e) Bigint *a; int *e;
1235
#else
1236
  (Bigint *a, int *e)
1237
#endif
1238
138k
{
1239
138k
  ULong *xa, *xa0, w, y, z;
1240
138k
  int k;
1241
138k
  U d;
1242
#ifdef VAX
1243
  ULong d0, d1;
1244
#else
1245
138k
#define d0 word0(&d)
1246
138k
#define d1 word1(&d)
1247
138k
#endif
1248
1249
138k
  xa0 = a->x;
1250
138k
  xa = xa0 + a->wds;
1251
138k
  y = *--xa;
1252
#ifdef DEBUG
1253
  if (!y) Bug("zero y in b2d");
1254
#endif
1255
138k
  k = hi0bits(y);
1256
138k
  *e = 32 - k;
1257
138k
#ifdef Pack_32
1258
138k
  if (k < Ebits) {
1259
28.7k
    d0 = Exp_1 | y >> (Ebits - k);
1260
28.7k
    w = xa > xa0 ? *--xa : 0;
1261
28.7k
    d1 = y << ((32-Ebits) + k) | w >> (Ebits - k);
1262
28.7k
    goto ret_d;
1263
28.7k
    }
1264
109k
  z = xa > xa0 ? *--xa : 0;
1265
109k
  if (k -= Ebits) {
1266
108k
    d0 = Exp_1 | y << k | z >> (32 - k);
1267
108k
    y = xa > xa0 ? *--xa : 0;
1268
108k
    d1 = z << k | y >> (32 - k);
1269
108k
    }
1270
726
  else {
1271
726
    d0 = Exp_1 | y;
1272
726
    d1 = z;
1273
726
    }
1274
#else
1275
  if (k < Ebits + 16) {
1276
    z = xa > xa0 ? *--xa : 0;
1277
    d0 = Exp_1 | y << k - Ebits | z >> Ebits + 16 - k;
1278
    w = xa > xa0 ? *--xa : 0;
1279
    y = xa > xa0 ? *--xa : 0;
1280
    d1 = z << k + 16 - Ebits | w << k - Ebits | y >> 16 + Ebits - k;
1281
    goto ret_d;
1282
    }
1283
  z = xa > xa0 ? *--xa : 0;
1284
  w = xa > xa0 ? *--xa : 0;
1285
  k -= Ebits + 16;
1286
  d0 = Exp_1 | y << k + 16 | z << k | w >> 16 - k;
1287
  y = xa > xa0 ? *--xa : 0;
1288
  d1 = w << k + 16 | y << k;
1289
#endif
1290
138k
 ret_d:
1291
#ifdef VAX
1292
  word0(&d) = d0 >> 16 | d0 << 16;
1293
  word1(&d) = d1 >> 16 | d1 << 16;
1294
#else
1295
138k
#undef d0
1296
138k
#undef d1
1297
138k
#endif
1298
138k
  return dval(&d);
1299
109k
  }
1300
1301
 static Bigint *
1302
d2b
1303
#ifdef KR_headers
1304
  (d, e, bits) U *d; int *e, *bits;
1305
#else
1306
  (U *d, int *e, int *bits)
1307
#endif
1308
401k
{
1309
401k
  Bigint *b;
1310
401k
  int de, k;
1311
401k
  ULong *x, y, z;
1312
401k
#ifndef Sudden_Underflow
1313
401k
  int i;
1314
401k
#endif
1315
#ifdef VAX
1316
  ULong d0, d1;
1317
  d0 = word0(d) >> 16 | word0(d) << 16;
1318
  d1 = word1(d) >> 16 | word1(d) << 16;
1319
#else
1320
1.20M
#define d0 word0(d)
1321
401k
#define d1 word1(d)
1322
401k
#endif
1323
1324
401k
#ifdef Pack_32
1325
401k
  b = Balloc(1);
1326
#else
1327
  b = Balloc(2);
1328
#endif
1329
401k
  x = b->x;
1330
1331
401k
  z = d0 & Frac_mask;
1332
401k
  d0 &= 0x7fffffff; /* clear sign bit, which we ignore */
1333
#ifdef Sudden_Underflow
1334
  de = (int)(d0 >> Exp_shift);
1335
#ifndef IBM
1336
  z |= Exp_msk11;
1337
#endif
1338
#else
1339
401k
  if ((de = (int)(d0 >> Exp_shift)))
1340
345k
    z |= Exp_msk1;
1341
401k
#endif
1342
401k
#ifdef Pack_32
1343
401k
  if ((y = d1)) {
1344
380k
    if ((k = lo0bits(&y))) {
1345
246k
      x[0] = y | z << (32 - k);
1346
246k
      z >>= k;
1347
246k
      }
1348
134k
    else
1349
134k
      x[0] = y;
1350
380k
#ifndef Sudden_Underflow
1351
380k
    i =
1352
380k
#endif
1353
380k
        b->wds = (x[1] = z) ? 2 : 1;
1354
380k
    }
1355
21.3k
  else {
1356
21.3k
    k = lo0bits(&z);
1357
21.3k
    x[0] = z;
1358
21.3k
#ifndef Sudden_Underflow
1359
21.3k
    i =
1360
21.3k
#endif
1361
21.3k
        b->wds = 1;
1362
21.3k
    k += 32;
1363
21.3k
    }
1364
#else
1365
  if (y = d1) {
1366
    if (k = lo0bits(&y))
1367
      if (k >= 16) {
1368
        x[0] = y | z << 32 - k & 0xffff;
1369
        x[1] = z >> k - 16 & 0xffff;
1370
        x[2] = z >> k;
1371
        i = 2;
1372
        }
1373
      else {
1374
        x[0] = y & 0xffff;
1375
        x[1] = y >> 16 | z << 16 - k & 0xffff;
1376
        x[2] = z >> k & 0xffff;
1377
        x[3] = z >> k+16;
1378
        i = 3;
1379
        }
1380
    else {
1381
      x[0] = y & 0xffff;
1382
      x[1] = y >> 16;
1383
      x[2] = z & 0xffff;
1384
      x[3] = z >> 16;
1385
      i = 3;
1386
      }
1387
    }
1388
  else {
1389
#ifdef DEBUG
1390
    if (!z)
1391
      Bug("Zero passed to d2b");
1392
#endif
1393
    k = lo0bits(&z);
1394
    if (k >= 16) {
1395
      x[0] = z;
1396
      i = 0;
1397
      }
1398
    else {
1399
      x[0] = z & 0xffff;
1400
      x[1] = z >> 16;
1401
      i = 1;
1402
      }
1403
    k += 32;
1404
    }
1405
  while(!x[i])
1406
    --i;
1407
  b->wds = i + 1;
1408
#endif
1409
401k
#ifndef Sudden_Underflow
1410
401k
  if (de) {
1411
345k
#endif
1412
#ifdef IBM
1413
    *e = (de - Bias - (P-1) << 2) + k;
1414
    *bits = 4*P + 8 - k - hi0bits(word0(d) & Frac_mask);
1415
#else
1416
345k
    *e = de - Bias - (P-1) + k;
1417
345k
    *bits = P - k;
1418
345k
#endif
1419
345k
#ifndef Sudden_Underflow
1420
345k
    }
1421
56.7k
  else {
1422
56.7k
    *e = de - Bias - (P-1) + 1 + k;
1423
56.7k
#ifdef Pack_32
1424
56.7k
    *bits = 32*i - hi0bits(x[i-1]);
1425
#else
1426
    *bits = (i+2)*16 - hi0bits(x[i]);
1427
#endif
1428
56.7k
    }
1429
401k
#endif
1430
401k
  return b;
1431
401k
  }
1432
#undef d0
1433
#undef d1
1434
1435
 static double
1436
ratio
1437
#ifdef KR_headers
1438
  (a, b) Bigint *a, *b;
1439
#else
1440
  (Bigint *a, Bigint *b)
1441
#endif
1442
69.0k
{
1443
69.0k
  U da, db;
1444
69.0k
  int k, ka, kb;
1445
1446
69.0k
  dval(&da) = b2d(a, &ka);
1447
69.0k
  dval(&db) = b2d(b, &kb);
1448
69.0k
#ifdef Pack_32
1449
69.0k
  k = ka - kb + 32*(a->wds - b->wds);
1450
#else
1451
  k = ka - kb + 16*(a->wds - b->wds);
1452
#endif
1453
#ifdef IBM
1454
  if (k > 0) {
1455
    word0(&da) += (k >> 2)*Exp_msk1;
1456
    if (k &= 3)
1457
      dval(&da) *= 1 << k;
1458
    }
1459
  else {
1460
    k = -k;
1461
    word0(&db) += (k >> 2)*Exp_msk1;
1462
    if (k &= 3)
1463
      dval(&db) *= 1 << k;
1464
    }
1465
#else
1466
69.0k
  if (k > 0)
1467
25.4k
    word0(&da) += k*Exp_msk1;
1468
43.6k
  else {
1469
43.6k
    k = -k;
1470
43.6k
    word0(&db) += k*Exp_msk1;
1471
43.6k
    }
1472
69.0k
#endif
1473
69.0k
  return dval(&da) / dval(&db);
1474
69.0k
  }
1475
1476
 static CONST double
1477
tens[] = {
1478
    1e0, 1e1, 1e2, 1e3, 1e4, 1e5, 1e6, 1e7, 1e8, 1e9,
1479
    1e10, 1e11, 1e12, 1e13, 1e14, 1e15, 1e16, 1e17, 1e18, 1e19,
1480
    1e20, 1e21, 1e22
1481
#ifdef VAX
1482
    , 1e23, 1e24
1483
#endif
1484
    };
1485
1486
 static CONST double
1487
#ifdef IEEE_Arith
1488
bigtens[] = { 1e16, 1e32, 1e64, 1e128, 1e256 };
1489
static CONST double tinytens[] = { 1e-16, 1e-32, 1e-64, 1e-128,
1490
#ifdef Avoid_Underflow
1491
    9007199254740992.*9007199254740992.e-256
1492
    /* = 2^106 * 1e-256 */
1493
#else
1494
    1e-256
1495
#endif
1496
    };
1497
/* The factor of 2^53 in tinytens[4] helps us avoid setting the underflow */
1498
/* flag unnecessarily.  It leads to a song and dance at the end of strtod. */
1499
95.6k
#define Scale_Bit 0x10
1500
97.8k
#define n_bigtens 5
1501
#else
1502
#ifdef IBM
1503
bigtens[] = { 1e16, 1e32, 1e64 };
1504
static CONST double tinytens[] = { 1e-16, 1e-32, 1e-64 };
1505
#define n_bigtens 3
1506
#else
1507
bigtens[] = { 1e16, 1e32 };
1508
static CONST double tinytens[] = { 1e-16, 1e-32 };
1509
#define n_bigtens 2
1510
#endif
1511
#endif
1512
1513
#undef Need_Hexdig
1514
#ifdef INFNAN_CHECK
1515
#ifndef No_Hex_NaN
1516
#define Need_Hexdig
1517
#endif
1518
#endif
1519
1520
#ifndef Need_Hexdig
1521
#ifndef NO_HEX_FP
1522
#define Need_Hexdig
1523
#endif
1524
#endif
1525
1526
#ifdef Need_Hexdig /*{*/
1527
#if 0
1528
static unsigned char hexdig[256];
1529
1530
 static void
1531
htinit(unsigned char *h, unsigned char *s, int inc)
1532
{
1533
  int i, j;
1534
  for(i = 0; (j = s[i]) !=0; i++)
1535
    h[j] = i + inc;
1536
  }
1537
1538
 static void
1539
hexdig_init(void) /* Use of hexdig_init omitted 20121220 to avoid a */
1540
      /* race condition when multiple threads are used. */
1541
{
1542
#define USC (unsigned char *)
1543
  htinit(hexdig, USC "0123456789", 0x10);
1544
  htinit(hexdig, USC "abcdef", 0x10 + 10);
1545
  htinit(hexdig, USC "ABCDEF", 0x10 + 10);
1546
  }
1547
#else
1548
static const unsigned char hexdig[256] = {
1549
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,
1550
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,
1551
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,
1552
  16,17,18,19,20,21,22,23,24,25,0,0,0,0,0,0,
1553
  0,26,27,28,29,30,31,0,0,0,0,0,0,0,0,0,
1554
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,
1555
  0,26,27,28,29,30,31,0,0,0,0,0,0,0,0,0,
1556
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,
1557
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,
1558
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,
1559
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,
1560
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,
1561
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,
1562
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,
1563
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,
1564
  0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0
1565
  };
1566
#endif
1567
#endif /* } Need_Hexdig */
1568
1569
#ifdef INFNAN_CHECK
1570
1571
#ifndef NAN_WORD0
1572
#define NAN_WORD0 0x7ff80000
1573
#endif
1574
1575
#ifndef NAN_WORD1
1576
#define NAN_WORD1 0
1577
#endif
1578
1579
 static int
1580
match
1581
#ifdef KR_headers
1582
  (sp, t) char **sp, *t;
1583
#else
1584
  (const char **sp, const char *t)
1585
#endif
1586
{
1587
  int c, d;
1588
  CONST char *s = *sp;
1589
1590
  while((d = *t++)) {
1591
    if ((c = *++s) >= 'A' && c <= 'Z')
1592
      c += 'a' - 'A';
1593
    if (c != d)
1594
      return 0;
1595
    }
1596
  *sp = s + 1;
1597
  return 1;
1598
  }
1599
1600
#ifndef No_Hex_NaN
1601
 static void
1602
hexnan
1603
#ifdef KR_headers
1604
  (rvp, sp) U *rvp; CONST char **sp;
1605
#else
1606
  (U *rvp, const char **sp)
1607
#endif
1608
{
1609
  ULong c, x[2];
1610
  CONST char *s;
1611
  int c1, havedig, udx0, xshift;
1612
1613
  /**** if (!hexdig['0']) hexdig_init(); ****/
1614
  x[0] = x[1] = 0;
1615
  havedig = xshift = 0;
1616
  udx0 = 1;
1617
  s = *sp;
1618
  /* allow optional initial 0x or 0X */
1619
  while((c = *(CONST unsigned char*)(s+1)) && c <= ' ')
1620
    ++s;
1621
  if (s[1] == '0' && (s[2] == 'x' || s[2] == 'X'))
1622
    s += 2;
1623
  while((c = *(CONST unsigned char*)++s)) {
1624
    if ((c1 = hexdig[c]))
1625
      c  = c1 & 0xf;
1626
    else if (c <= ' ') {
1627
      if (udx0 && havedig) {
1628
        udx0 = 0;
1629
        xshift = 1;
1630
        }
1631
      continue;
1632
      }
1633
#ifdef GDTOA_NON_PEDANTIC_NANCHECK
1634
    else if (/*(*/ c == ')' && havedig) {
1635
      *sp = s + 1;
1636
      break;
1637
      }
1638
    else
1639
      return; /* invalid form: don't change *sp */
1640
#else
1641
    else {
1642
      do {
1643
        if (/*(*/ c == ')') {
1644
          *sp = s + 1;
1645
          break;
1646
          }
1647
        } while((c = *++s));
1648
      break;
1649
      }
1650
#endif
1651
    havedig = 1;
1652
    if (xshift) {
1653
      xshift = 0;
1654
      x[0] = x[1];
1655
      x[1] = 0;
1656
      }
1657
    if (udx0)
1658
      x[0] = (x[0] << 4) | (x[1] >> 28);
1659
    x[1] = (x[1] << 4) | c;
1660
    }
1661
  if ((x[0] &= 0xfffff) || x[1]) {
1662
    word0(rvp) = Exp_mask | x[0];
1663
    word1(rvp) = x[1];
1664
    }
1665
  }
1666
#endif /*No_Hex_NaN*/
1667
#endif /* INFNAN_CHECK */
1668
1669
#ifdef Pack_32
1670
#define ULbits 32
1671
#define kshift 5
1672
81.2k
#define kmask 31
1673
#else
1674
#define ULbits 16
1675
#define kshift 4
1676
#define kmask 15
1677
#endif
1678
1679
#if !defined(NO_HEX_FP) || defined(Honor_FLT_ROUNDS) /*{*/
1680
 static Bigint *
1681
#ifdef KR_headers
1682
increment(b) Bigint *b;
1683
#else
1684
increment(Bigint *b)
1685
#endif
1686
{
1687
  ULong *x, *xe;
1688
  Bigint *b1;
1689
1690
  x = b->x;
1691
  xe = x + b->wds;
1692
  do {
1693
    if (*x < (ULong)0xffffffffL) {
1694
      ++*x;
1695
      return b;
1696
      }
1697
    *x++ = 0;
1698
    } while(x < xe);
1699
  {
1700
    if (b->wds >= b->maxwds) {
1701
      b1 = Balloc(b->k+1);
1702
      Bcopy(b1,b);
1703
      Bfree(b);
1704
      b = b1;
1705
      }
1706
    b->x[b->wds++] = 1;
1707
    }
1708
  return b;
1709
  }
1710
1711
#endif /*}*/
1712
1713
#ifndef NO_HEX_FP /*{*/
1714
1715
 static void
1716
#ifdef KR_headers
1717
rshift(b, k) Bigint *b; int k;
1718
#else
1719
rshift(Bigint *b, int k)
1720
#endif
1721
{
1722
  ULong *x, *x1, *xe, y;
1723
  int n;
1724
1725
  x = x1 = b->x;
1726
  n = k >> kshift;
1727
  if (n < b->wds) {
1728
    xe = x + b->wds;
1729
    x += n;
1730
    if (k &= kmask) {
1731
      n = 32 - k;
1732
      y = *x++ >> k;
1733
      while(x < xe) {
1734
        *x1++ = (y | (*x << n)) & 0xffffffff;
1735
        y = *x++ >> k;
1736
        }
1737
      if ((*x1 = y) !=0)
1738
        x1++;
1739
      }
1740
    else
1741
      while(x < xe)
1742
        *x1++ = *x++;
1743
    }
1744
  if ((b->wds = x1 - b->x) == 0)
1745
    b->x[0] = 0;
1746
  }
1747
1748
 static ULong
1749
#ifdef KR_headers
1750
any_on(b, k) Bigint *b; int k;
1751
#else
1752
any_on(Bigint *b, int k)
1753
#endif
1754
{
1755
  int n, nwds;
1756
  ULong *x, *x0, x1, x2;
1757
1758
  x = b->x;
1759
  nwds = b->wds;
1760
  n = k >> kshift;
1761
  if (n > nwds)
1762
    n = nwds;
1763
  else if (n < nwds && (k &= kmask)) {
1764
    x1 = x2 = x[n];
1765
    x1 >>= k;
1766
    x1 <<= k;
1767
    if (x1 != x2)
1768
      return 1;
1769
    }
1770
  x0 = x;
1771
  x += n;
1772
  while(x > x0)
1773
    if (*--x)
1774
      return 1;
1775
  return 0;
1776
  }
1777
1778
enum {  /* rounding values: same as FLT_ROUNDS */
1779
  Round_zero = 0,
1780
  Round_near = 1,
1781
  Round_up = 2,
1782
  Round_down = 3
1783
  };
1784
1785
 void
1786
#ifdef KR_headers
1787
gethex(sp, rvp, rounding, sign)
1788
  CONST char **sp; U *rvp; int rounding, sign;
1789
#else
1790
gethex( CONST char **sp, U *rvp, int rounding, int sign)
1791
#endif
1792
{
1793
  Bigint *b;
1794
  CONST unsigned char *decpt, *s0, *s, *s1;
1795
  Long e, e1;
1796
  ULong L, lostbits, *x;
1797
  int big, denorm, esign, havedig, k, n, nbits, up, zret;
1798
#ifdef IBM
1799
  int j;
1800
#endif
1801
  enum {
1802
#ifdef IEEE_Arith /*{{*/
1803
    emax = 0x7fe - Bias - P + 1,
1804
    emin = Emin - P + 1
1805
#else /*}{*/
1806
    emin = Emin - P,
1807
#ifdef VAX
1808
    emax = 0x7ff - Bias - P + 1
1809
#endif
1810
#ifdef IBM
1811
    emax = 0x7f - Bias - P
1812
#endif
1813
#endif /*}}*/
1814
    };
1815
#ifdef USE_LOCALE
1816
  int i;
1817
#ifdef NO_LOCALE_CACHE
1818
  const unsigned char *decimalpoint = (unsigned char*)
1819
    localeconv()->decimal_point;
1820
#else
1821
  const unsigned char *decimalpoint;
1822
  static unsigned char *decimalpoint_cache;
1823
  if (!(s0 = decimalpoint_cache)) {
1824
    s0 = (unsigned char*)localeconv()->decimal_point;
1825
    if ((decimalpoint_cache = (unsigned char*)
1826
        MALLOC(strlen((CONST char*)s0) + 1))) {
1827
      strcpy((char*)decimalpoint_cache, (CONST char*)s0);
1828
      s0 = decimalpoint_cache;
1829
      }
1830
    }
1831
  decimalpoint = s0;
1832
#endif
1833
#endif
1834
1835
  /**** if (!hexdig['0']) hexdig_init(); ****/
1836
  havedig = 0;
1837
  s0 = *(CONST unsigned char **)sp + 2;
1838
  while(s0[havedig] == '0')
1839
    havedig++;
1840
  s0 += havedig;
1841
  s = s0;
1842
  decpt = 0;
1843
  zret = 0;
1844
  e = 0;
1845
  if (hexdig[*s])
1846
    havedig++;
1847
  else {
1848
    zret = 1;
1849
#ifdef USE_LOCALE
1850
    for(i = 0; decimalpoint[i]; ++i) {
1851
      if (s[i] != decimalpoint[i])
1852
        goto pcheck;
1853
      }
1854
    decpt = s += i;
1855
#else
1856
    if (*s != '.')
1857
      goto pcheck;
1858
    decpt = ++s;
1859
#endif
1860
    if (!hexdig[*s])
1861
      goto pcheck;
1862
    while(*s == '0')
1863
      s++;
1864
    if (hexdig[*s])
1865
      zret = 0;
1866
    havedig = 1;
1867
    s0 = s;
1868
    }
1869
  while(hexdig[*s])
1870
    s++;
1871
#ifdef USE_LOCALE
1872
  if (*s == *decimalpoint && !decpt) {
1873
    for(i = 1; decimalpoint[i]; ++i) {
1874
      if (s[i] != decimalpoint[i])
1875
        goto pcheck;
1876
      }
1877
    decpt = s += i;
1878
#else
1879
  if (*s == '.' && !decpt) {
1880
    decpt = ++s;
1881
#endif
1882
    while(hexdig[*s])
1883
      s++;
1884
    }/*}*/
1885
  if (decpt)
1886
    e = -(((Long)(s-decpt)) << 2);
1887
 pcheck:
1888
  s1 = s;
1889
  big = esign = 0;
1890
  switch(*s) {
1891
    case 'p':
1892
    case 'P':
1893
    switch(*++s) {
1894
      case '-':
1895
      esign = 1;
1896
      ZEND_FALLTHROUGH;
1897
      case '+':
1898
      s++;
1899
      }
1900
    if ((n = hexdig[*s]) == 0 || n > 0x19) {
1901
      s = s1;
1902
      break;
1903
      }
1904
    e1 = n - 0x10;
1905
    while((n = hexdig[*++s]) !=0 && n <= 0x19) {
1906
      if (e1 & 0xf8000000)
1907
        big = 1;
1908
      e1 = 10*e1 + n - 0x10;
1909
      }
1910
    if (esign)
1911
      e1 = -e1;
1912
    e += e1;
1913
    }
1914
  *sp = (char*)s;
1915
  if (!havedig)
1916
    *sp = (char*)s0 - 1;
1917
  if (zret)
1918
    goto retz1;
1919
  if (big) {
1920
    if (esign) {
1921
#ifdef IEEE_Arith
1922
      switch(rounding) {
1923
        case Round_up:
1924
        if (sign)
1925
          break;
1926
        goto ret_tiny;
1927
        case Round_down:
1928
        if (!sign)
1929
          break;
1930
        goto ret_tiny;
1931
        }
1932
#endif
1933
      goto retz;
1934
#ifdef IEEE_Arith
1935
 ret_tinyf:
1936
      Bfree(b);
1937
 ret_tiny:
1938
#ifndef NO_ERRNO
1939
      errno = ERANGE;
1940
#endif
1941
      word0(rvp) = 0;
1942
      word1(rvp) = 1;
1943
      return;
1944
#endif /* IEEE_Arith */
1945
      }
1946
    switch(rounding) {
1947
      case Round_near:
1948
      goto ovfl1;
1949
      case Round_up:
1950
      if (!sign)
1951
        goto ovfl1;
1952
      goto ret_big;
1953
      case Round_down:
1954
      if (sign)
1955
        goto ovfl1;
1956
      goto ret_big;
1957
      }
1958
 ret_big:
1959
    word0(rvp) = Big0;
1960
    word1(rvp) = Big1;
1961
    return;
1962
    }
1963
  n = s1 - s0 - 1;
1964
  for(k = 0; n > (1 << (kshift-2)) - 1; n >>= 1)
1965
    k++;
1966
  b = Balloc(k);
1967
  x = b->x;
1968
  n = 0;
1969
  L = 0;
1970
#ifdef USE_LOCALE
1971
  for(i = 0; decimalpoint[i+1]; ++i);
1972
#endif
1973
  while(s1 > s0) {
1974
#ifdef USE_LOCALE
1975
    if (*--s1 == decimalpoint[i]) {
1976
      s1 -= i;
1977
      continue;
1978
      }
1979
#else
1980
    if (*--s1 == '.')
1981
      continue;
1982
#endif
1983
    if (n == ULbits) {
1984
      *x++ = L;
1985
      L = 0;
1986
      n = 0;
1987
      }
1988
    L |= (hexdig[*s1] & 0x0f) << n;
1989
    n += 4;
1990
    }
1991
  *x++ = L;
1992
  b->wds = n = x - b->x;
1993
  n = ULbits*n - hi0bits(L);
1994
  nbits = Nbits;
1995
  lostbits = 0;
1996
  x = b->x;
1997
  if (n > nbits) {
1998
    n -= nbits;
1999
    if (any_on(b,n)) {
2000
      lostbits = 1;
2001
      k = n - 1;
2002
      if (x[k>>kshift] & 1 << (k & kmask)) {
2003
        lostbits = 2;
2004
        if (k > 0 && any_on(b,k))
2005
          lostbits = 3;
2006
        }
2007
      }
2008
    rshift(b, n);
2009
    e += n;
2010
    }
2011
  else if (n < nbits) {
2012
    n = nbits - n;
2013
    b = lshift(b, n);
2014
    e -= n;
2015
    x = b->x;
2016
    }
2017
  if (e > Emax) {
2018
 ovfl:
2019
    Bfree(b);
2020
 ovfl1:
2021
#ifndef NO_ERRNO
2022
    errno = ERANGE;
2023
#endif
2024
    word0(rvp) = Exp_mask;
2025
    word1(rvp) = 0;
2026
    return;
2027
    }
2028
  denorm = 0;
2029
  if (e < emin) {
2030
    denorm = 1;
2031
    n = emin - e;
2032
    if (n >= nbits) {
2033
#ifdef IEEE_Arith /*{*/
2034
      switch (rounding) {
2035
        case Round_near:
2036
        if (n == nbits && (n < 2 || any_on(b,n-1)))
2037
          goto ret_tinyf;
2038
        break;
2039
        case Round_up:
2040
        if (!sign)
2041
          goto ret_tinyf;
2042
        break;
2043
        case Round_down:
2044
        if (sign)
2045
          goto ret_tinyf;
2046
        }
2047
#endif /* } IEEE_Arith */
2048
      Bfree(b);
2049
 retz:
2050
#ifndef NO_ERRNO
2051
      errno = ERANGE;
2052
#endif
2053
 retz1:
2054
      rvp->d = 0.;
2055
      return;
2056
      }
2057
    k = n - 1;
2058
    if (lostbits)
2059
      lostbits = 1;
2060
    else if (k > 0)
2061
      lostbits = any_on(b,k);
2062
    if (x[k>>kshift] & 1 << (k & kmask))
2063
      lostbits |= 2;
2064
    nbits -= n;
2065
    rshift(b,n);
2066
    e = emin;
2067
    }
2068
  if (lostbits) {
2069
    up = 0;
2070
    switch(rounding) {
2071
      case Round_zero:
2072
      break;
2073
      case Round_near:
2074
      if (lostbits & 2
2075
       && (lostbits & 1) | (x[0] & 1))
2076
        up = 1;
2077
      break;
2078
      case Round_up:
2079
      up = 1 - sign;
2080
      break;
2081
      case Round_down:
2082
      up = sign;
2083
      }
2084
    if (up) {
2085
      k = b->wds;
2086
      b = increment(b);
2087
      x = b->x;
2088
      if (denorm) {
2089
#if 0
2090
        if (nbits == Nbits - 1
2091
         && x[nbits >> kshift] & 1 << (nbits & kmask))
2092
          denorm = 0; /* not currently used */
2093
#endif
2094
        }
2095
      else if (b->wds > k
2096
       || ((n = nbits & kmask) !=0
2097
           && hi0bits(x[k-1]) < 32-n)) {
2098
        rshift(b,1);
2099
        if (++e > Emax)
2100
          goto ovfl;
2101
        }
2102
      }
2103
    }
2104
#ifdef IEEE_Arith
2105
  if (denorm)
2106
    word0(rvp) = b->wds > 1 ? b->x[1] & ~0x100000 : 0;
2107
  else
2108
    word0(rvp) = (b->x[1] & ~0x100000) | ((e + 0x3ff + 52) << 20);
2109
  word1(rvp) = b->x[0];
2110
#endif
2111
#ifdef IBM
2112
  if ((j = e & 3)) {
2113
    k = b->x[0] & ((1 << j) - 1);
2114
    rshift(b,j);
2115
    if (k) {
2116
      switch(rounding) {
2117
        case Round_up:
2118
        if (!sign)
2119
          increment(b);
2120
        break;
2121
        case Round_down:
2122
        if (sign)
2123
          increment(b);
2124
        break;
2125
        case Round_near:
2126
        j = 1 << (j-1);
2127
        if (k & j && ((k & (j-1)) | lostbits))
2128
          increment(b);
2129
        }
2130
      }
2131
    }
2132
  e >>= 2;
2133
  word0(rvp) = b->x[1] | ((e + 65 + 13) << 24);
2134
  word1(rvp) = b->x[0];
2135
#endif
2136
#ifdef VAX
2137
  /* The next two lines ignore swap of low- and high-order 2 bytes. */
2138
  /* word0(rvp) = (b->x[1] & ~0x800000) | ((e + 129 + 55) << 23); */
2139
  /* word1(rvp) = b->x[0]; */
2140
  word0(rvp) = ((b->x[1] & ~0x800000) >> 16) | ((e + 129 + 55) << 7) | (b->x[1] << 16);
2141
  word1(rvp) = (b->x[0] >> 16) | (b->x[0] << 16);
2142
#endif
2143
  Bfree(b);
2144
  }
2145
#endif /*!NO_HEX_FP}*/
2146
2147
 static int
2148
#ifdef KR_headers
2149
dshift(b, p2) Bigint *b; int p2;
2150
#else
2151
dshift(Bigint *b, int p2)
2152
#endif
2153
81.2k
{
2154
81.2k
  int rv = hi0bits(b->x[b->wds-1]) - 4;
2155
81.2k
  if (p2 > 0)
2156
26.9k
    rv -= p2;
2157
81.2k
  return rv & kmask;
2158
81.2k
  }
2159
2160
 static int
2161
quorem
2162
#ifdef KR_headers
2163
  (b, S) Bigint *b, *S;
2164
#else
2165
  (Bigint *b, Bigint *S)
2166
#endif
2167
1.23M
{
2168
1.23M
  int n;
2169
1.23M
  ULong *bx, *bxe, q, *sx, *sxe;
2170
1.23M
#ifdef ULLong
2171
1.23M
  ULLong borrow, carry, y, ys;
2172
#else
2173
  ULong borrow, carry, y, ys;
2174
#ifdef Pack_32
2175
  ULong si, z, zs;
2176
#endif
2177
#endif
2178
2179
1.23M
  n = S->wds;
2180
#ifdef DEBUG
2181
  /*debug*/ if (b->wds > n)
2182
  /*debug*/ Bug("oversize b in quorem");
2183
#endif
2184
1.23M
  if (b->wds < n)
2185
24.1k
    return 0;
2186
1.21M
  sx = S->x;
2187
1.21M
  sxe = sx + --n;
2188
1.21M
  bx = b->x;
2189
1.21M
  bxe = bx + n;
2190
1.21M
  q = *bxe / (*sxe + 1);  /* ensure q <= true quotient */
2191
#ifdef DEBUG
2192
#ifdef NO_STRTOD_BIGCOMP
2193
  /*debug*/ if (q > 9)
2194
#else
2195
  /* An oversized q is possible when quorem is called from bigcomp and */
2196
  /* the input is near, e.g., twice the smallest denormalized number. */
2197
  /*debug*/ if (q > 15)
2198
#endif
2199
  /*debug*/ Bug("oversized quotient in quorem");
2200
#endif
2201
1.21M
  if (q) {
2202
968k
    borrow = 0;
2203
968k
    carry = 0;
2204
12.1M
    do {
2205
12.1M
#ifdef ULLong
2206
12.1M
      ys = *sx++ * (ULLong)q + carry;
2207
12.1M
      carry = ys >> 32;
2208
12.1M
      y = *bx - (ys & FFFFFFFF) - borrow;
2209
12.1M
      borrow = y >> 32 & (ULong)1;
2210
12.1M
      *bx++ = y & FFFFFFFF;
2211
#else
2212
#ifdef Pack_32
2213
      si = *sx++;
2214
      ys = (si & 0xffff) * q + carry;
2215
      zs = (si >> 16) * q + (ys >> 16);
2216
      carry = zs >> 16;
2217
      y = (*bx & 0xffff) - (ys & 0xffff) - borrow;
2218
      borrow = (y & 0x10000) >> 16;
2219
      z = (*bx >> 16) - (zs & 0xffff) - borrow;
2220
      borrow = (z & 0x10000) >> 16;
2221
      Storeinc(bx, z, y);
2222
#else
2223
      ys = *sx++ * q + carry;
2224
      carry = ys >> 16;
2225
      y = *bx - (ys & 0xffff) - borrow;
2226
      borrow = (y & 0x10000) >> 16;
2227
      *bx++ = y & 0xffff;
2228
#endif
2229
#endif
2230
12.1M
      }
2231
12.1M
      while(sx <= sxe);
2232
968k
    if (!*bxe) {
2233
354
      bx = b->x;
2234
354
      while(--bxe > bx && !*bxe)
2235
0
        --n;
2236
354
      b->wds = n;
2237
354
      }
2238
968k
    }
2239
1.21M
  if (cmp(b, S) >= 0) {
2240
12.2k
    q++;
2241
12.2k
    borrow = 0;
2242
12.2k
    carry = 0;
2243
12.2k
    bx = b->x;
2244
12.2k
    sx = S->x;
2245
49.1k
    do {
2246
49.1k
#ifdef ULLong
2247
49.1k
      ys = *sx++ + carry;
2248
49.1k
      carry = ys >> 32;
2249
49.1k
      y = *bx - (ys & FFFFFFFF) - borrow;
2250
49.1k
      borrow = y >> 32 & (ULong)1;
2251
49.1k
      *bx++ = y & FFFFFFFF;
2252
#else
2253
#ifdef Pack_32
2254
      si = *sx++;
2255
      ys = (si & 0xffff) + carry;
2256
      zs = (si >> 16) + (ys >> 16);
2257
      carry = zs >> 16;
2258
      y = (*bx & 0xffff) - (ys & 0xffff) - borrow;
2259
      borrow = (y & 0x10000) >> 16;
2260
      z = (*bx >> 16) - (zs & 0xffff) - borrow;
2261
      borrow = (z & 0x10000) >> 16;
2262
      Storeinc(bx, z, y);
2263
#else
2264
      ys = *sx++ + carry;
2265
      carry = ys >> 16;
2266
      y = *bx - (ys & 0xffff) - borrow;
2267
      borrow = (y & 0x10000) >> 16;
2268
      *bx++ = y & 0xffff;
2269
#endif
2270
#endif
2271
49.1k
      }
2272
49.1k
      while(sx <= sxe);
2273
12.2k
    bx = b->x;
2274
12.2k
    bxe = bx + n;
2275
12.2k
    if (!*bxe) {
2276
13.5k
      while(--bxe > bx && !*bxe)
2277
1.98k
        --n;
2278
11.6k
      b->wds = n;
2279
11.6k
      }
2280
12.2k
    }
2281
1.21M
  return q;
2282
1.23M
  }
2283
2284
#if defined(Avoid_Underflow) || !defined(NO_STRTOD_BIGCOMP) /*{*/
2285
 static double
2286
sulp
2287
#ifdef KR_headers
2288
  (x, bc) U *x; BCinfo *bc;
2289
#else
2290
  (U *x, BCinfo *bc)
2291
#endif
2292
1.52k
{
2293
1.52k
  U u;
2294
1.52k
  double rv;
2295
1.52k
  int i;
2296
2297
1.52k
  rv = ulp(x);
2298
1.52k
  if (!bc->scale || (i = 2*P + 1 - ((word0(x) & Exp_mask) >> Exp_shift)) <= 0)
2299
1.51k
    return rv; /* Is there an example where i <= 0 ? */
2300
7
  word0(&u) = Exp_1 + (i << Exp_shift);
2301
7
  word1(&u) = 0;
2302
7
  return rv * u.d;
2303
1.52k
  }
2304
#endif /*}*/
2305
2306
#ifndef NO_STRTOD_BIGCOMP
2307
 static void
2308
bigcomp
2309
#ifdef KR_headers
2310
  (rv, s0, bc)
2311
  U *rv; CONST char *s0; BCinfo *bc;
2312
#else
2313
  (U *rv, const char *s0, BCinfo *bc)
2314
#endif
2315
38.2k
{
2316
38.2k
  Bigint *b, *d;
2317
38.2k
  int b2, bbits, d2, dd, dig, dsign, i, j, nd, nd0, p2, p5, speccase;
2318
2319
38.2k
  dsign = bc->dsign;
2320
38.2k
  nd = bc->nd;
2321
38.2k
  nd0 = bc->nd0;
2322
38.2k
  p5 = nd + bc->e0 - 1;
2323
38.2k
  speccase = 0;
2324
38.2k
#ifndef Sudden_Underflow
2325
38.2k
  if (rv->d == 0.) { /* special case: value near underflow-to-zero */
2326
        /* threshold was rounded to zero */
2327
946
    b = i2b(1);
2328
946
    p2 = Emin - P + 1;
2329
946
    bbits = 1;
2330
946
#ifdef Avoid_Underflow
2331
946
    word0(rv) = (P+2) << Exp_shift;
2332
#else
2333
    word1(rv) = 1;
2334
#endif
2335
946
    i = 0;
2336
#ifdef Honor_FLT_ROUNDS
2337
    if (bc->rounding == 1)
2338
#endif
2339
946
      {
2340
946
      speccase = 1;
2341
946
      --p2;
2342
946
      dsign = 0;
2343
946
      goto have_i;
2344
946
      }
2345
946
    }
2346
37.3k
  else
2347
37.3k
#endif
2348
37.3k
    b = d2b(rv, &p2, &bbits);
2349
37.3k
#ifdef Avoid_Underflow
2350
37.3k
  p2 -= bc->scale;
2351
37.3k
#endif
2352
  /* floor(log2(rv)) == bbits - 1 + p2 */
2353
  /* Check for denormal case. */
2354
37.3k
  i = P - bbits;
2355
37.3k
  if (i > (j = P - Emin - 1 + p2)) {
2356
#ifdef Sudden_Underflow
2357
    Bfree(b);
2358
    b = i2b(1);
2359
    p2 = Emin;
2360
    i = P - 1;
2361
#ifdef Avoid_Underflow
2362
    word0(rv) = (1 + bc->scale) << Exp_shift;
2363
#else
2364
    word0(rv) = Exp_msk1;
2365
#endif
2366
    word1(rv) = 0;
2367
#else
2368
502
    i = j;
2369
502
#endif
2370
502
    }
2371
#ifdef Honor_FLT_ROUNDS
2372
  if (bc->rounding != 1) {
2373
    if (i > 0)
2374
      b = lshift(b, i);
2375
    if (dsign)
2376
      b = increment(b);
2377
    }
2378
  else
2379
#endif
2380
37.3k
    {
2381
37.3k
    b = lshift(b, ++i);
2382
37.3k
    b->x[0] |= 1;
2383
37.3k
    }
2384
37.3k
#ifndef Sudden_Underflow
2385
38.2k
 have_i:
2386
38.2k
#endif
2387
38.2k
  p2 -= p5 + i;
2388
38.2k
  d = i2b(1);
2389
  /* Arrange for convenient computation of quotients:
2390
   * shift left if necessary so divisor has 4 leading 0 bits.
2391
   */
2392
38.2k
  if (p5 > 0)
2393
28.9k
    d = pow5mult(d, p5);
2394
9.26k
  else if (p5 < 0)
2395
8.88k
    b = pow5mult(b, -p5);
2396
38.2k
  if (p2 > 0) {
2397
26.2k
    b2 = p2;
2398
26.2k
    d2 = 0;
2399
26.2k
    }
2400
12.0k
  else {
2401
12.0k
    b2 = 0;
2402
12.0k
    d2 = -p2;
2403
12.0k
    }
2404
38.2k
  i = dshift(d, d2);
2405
38.2k
  if ((b2 += i) > 0)
2406
37.4k
    b = lshift(b, b2);
2407
38.2k
  if ((d2 += i) > 0)
2408
37.0k
    d = lshift(d, d2);
2409
2410
  /* Now b/d = exactly half-way between the two floating-point values */
2411
  /* on either side of the input string.  Compute first digit of b/d. */
2412
2413
38.2k
  if (!(dig = quorem(b,d))) {
2414
0
    b = multadd(b, 10, 0);  /* very unlikely */
2415
0
    dig = quorem(b,d);
2416
0
    }
2417
2418
  /* Compare b/d with s0 */
2419
2420
614k
  for(i = 0; i < nd0; ) {
2421
610k
    if ((dd = s0[i++] - '0' - dig))
2422
33.0k
      goto ret;
2423
577k
    if (!b->x[0] && b->wds == 1) {
2424
1.01k
      if (i < nd)
2425
800
        dd = 1;
2426
1.01k
      goto ret;
2427
1.01k
      }
2428
576k
    b = multadd(b, 10, 0);
2429
576k
    dig = quorem(b,d);
2430
576k
    }
2431
23.4k
  for(j = bc->dp1; i++ < nd;) {
2432
22.6k
    if ((dd = s0[j++] - '0' - dig))
2433
3.43k
      goto ret;
2434
19.2k
    if (!b->x[0] && b->wds == 1) {
2435
16
      if (i < nd)
2436
16
        dd = 1;
2437
16
      goto ret;
2438
16
      }
2439
19.2k
    b = multadd(b, 10, 0);
2440
19.2k
    dig = quorem(b,d);
2441
19.2k
    }
2442
748
  if (dig > 0 || b->x[0] || b->wds > 1)
2443
748
    dd = -1;
2444
38.2k
 ret:
2445
38.2k
  Bfree(b);
2446
38.2k
  Bfree(d);
2447
#ifdef Honor_FLT_ROUNDS
2448
  if (bc->rounding != 1) {
2449
    if (dd < 0) {
2450
      if (bc->rounding == 0) {
2451
        if (!dsign)
2452
          goto retlow1;
2453
        }
2454
      else if (dsign)
2455
        goto rethi1;
2456
      }
2457
    else if (dd > 0) {
2458
      if (bc->rounding == 0) {
2459
        if (dsign)
2460
          goto rethi1;
2461
        goto ret1;
2462
        }
2463
      if (!dsign)
2464
        goto rethi1;
2465
      dval(rv) += 2.*sulp(rv,bc);
2466
      }
2467
    else {
2468
      bc->inexact = 0;
2469
      if (dsign)
2470
        goto rethi1;
2471
      }
2472
    }
2473
  else
2474
#endif
2475
38.2k
  if (speccase) {
2476
946
    if (dd <= 0)
2477
946
      rv->d = 0.;
2478
946
    }
2479
37.3k
  else if (dd < 0) {
2480
36.2k
    if (!dsign)  /* does not happen for round-near */
2481
0
retlow1:
2482
0
      dval(rv) -= sulp(rv,bc);
2483
36.2k
    }
2484
1.09k
  else if (dd > 0) {
2485
879
    if (dsign) {
2486
1.09k
 rethi1:
2487
1.09k
      dval(rv) += sulp(rv,bc);
2488
1.09k
      }
2489
879
    }
2490
213
  else {
2491
    /* Exact half-way case:  apply round-even rule. */
2492
213
    if ((j = ((word0(rv) & Exp_mask) >> Exp_shift) - bc->scale) <= 0) {
2493
0
      i = 1 - j;
2494
0
      if (i <= 31) {
2495
0
        if (word1(rv) & (0x1 << i))
2496
0
          goto odd;
2497
0
        }
2498
0
      else if (word0(rv) & (0x1 << (i-32)))
2499
0
        goto odd;
2500
0
      }
2501
213
    else if (word1(rv) & 1) {
2502
213
 odd:
2503
213
      if (dsign)
2504
213
        goto rethi1;
2505
0
      goto retlow1;
2506
213
      }
2507
213
    }
2508
2509
#ifdef Honor_FLT_ROUNDS
2510
 ret1:
2511
#endif
2512
38.2k
  return;
2513
38.2k
  }
2514
#endif /* NO_STRTOD_BIGCOMP */
2515
2516
ZEND_API double
2517
zend_strtod
2518
#ifdef KR_headers
2519
  (s00, se) CONST char *s00; char **se;
2520
#else
2521
  (const char *s00, const char **se)
2522
#endif
2523
250k
{
2524
250k
  int bb2, bb5, bbe, bd2, bd5, bbbits, bs2, c, e, e1;
2525
250k
  int esign, i, j, k, nd, nd0, nf, nz, nz0, nz1, sign;
2526
250k
  CONST char *s, *s0, *s1;
2527
250k
  volatile double aadj, aadj1;
2528
250k
  Long L;
2529
250k
  U aadj2, adj, rv, rv0;
2530
250k
  ULong y, z;
2531
250k
  BCinfo bc;
2532
250k
  Bigint *bb, *bb1, *bd, *bd0, *bs, *delta;
2533
250k
#ifdef Avoid_Underflow
2534
250k
  ULong Lsb, Lsb1;
2535
250k
#endif
2536
#ifdef SET_INEXACT
2537
  int oldinexact;
2538
#endif
2539
250k
#ifndef NO_STRTOD_BIGCOMP
2540
250k
  int req_bigcomp = 0;
2541
250k
#endif
2542
#ifdef Honor_FLT_ROUNDS /*{*/
2543
#ifdef Trust_FLT_ROUNDS /*{{ only define this if FLT_ROUNDS really works! */
2544
  bc.rounding = Flt_Rounds;
2545
#else /*}{*/
2546
  bc.rounding = 1;
2547
  switch(fegetround()) {
2548
    case FE_TOWARDZERO: bc.rounding = 0; break;
2549
    case FE_UPWARD: bc.rounding = 2; break;
2550
    case FE_DOWNWARD: bc.rounding = 3;
2551
    }
2552
#endif /*}}*/
2553
#endif /*}*/
2554
#ifdef USE_LOCALE
2555
  CONST char *s2;
2556
#endif
2557
2558
250k
  sign = nz0 = nz1 = nz = bc.dplen = bc.uflchk = 0;
2559
250k
  dval(&rv) = 0.;
2560
250k
  for(s = s00;;s++) switch(*s) {
2561
7.47k
    case '-':
2562
7.47k
      sign = 1;
2563
7.47k
      ZEND_FALLTHROUGH;
2564
12.1k
    case '+':
2565
12.1k
      if (*++s)
2566
12.1k
        goto break2;
2567
1
      ZEND_FALLTHROUGH;
2568
5
    case 0:
2569
5
      goto ret0;
2570
125
    case '\t':
2571
300
    case '\n':
2572
386
    case '\v':
2573
512
    case '\f':
2574
664
    case '\r':
2575
795
    case ' ':
2576
795
      continue;
2577
237k
    default:
2578
237k
      goto break2;
2579
250k
    }
2580
250k
 break2:
2581
250k
  if (*s == '0') {
2582
#ifndef NO_HEX_FP /*{*/
2583
    switch(s[1]) {
2584
      case 'x':
2585
      case 'X':
2586
#ifdef Honor_FLT_ROUNDS
2587
      gethex(&s, &rv, bc.rounding, sign);
2588
#else
2589
      gethex(&s, &rv, 1, sign);
2590
#endif
2591
      goto ret;
2592
      }
2593
#endif /*}*/
2594
92.4k
    nz0 = 1;
2595
724k
    while(*++s == '0') ;
2596
92.4k
    if (!*s)
2597
1
      goto ret;
2598
92.4k
    }
2599
250k
  s0 = s;
2600
250k
  y = z = 0;
2601
13.6M
  for(nd = nf = 0; (c = *s) >= '0' && c <= '9'; nd++, s++)
2602
13.4M
    if (nd < 9)
2603
1.25M
      y = 10*y + c - '0';
2604
12.1M
    else if (nd < DBL_DIG + 2)
2605
766k
      z = 10*z + c - '0';
2606
250k
  nd0 = nd;
2607
250k
  bc.dp0 = bc.dp1 = s - s0;
2608
447k
  for(s1 = s; s1 > s0 && *--s1 == '0'; )
2609
197k
    ++nz1;
2610
#ifdef USE_LOCALE
2611
  s1 = localeconv()->decimal_point;
2612
  if (c == *s1) {
2613
    c = '.';
2614
    if (*++s1) {
2615
      s2 = s;
2616
      for(;;) {
2617
        if (*++s2 != *s1) {
2618
          c = 0;
2619
          break;
2620
          }
2621
        if (!*++s1) {
2622
          s = s2;
2623
          break;
2624
          }
2625
        }
2626
      }
2627
    }
2628
#endif
2629
250k
  if (c == '.') {
2630
74.2k
    c = *++s;
2631
74.2k
    bc.dp1 = s - s0;
2632
74.2k
    bc.dplen = bc.dp1 - bc.dp0;
2633
74.2k
    if (!nd) {
2634
5.83M
      for(; c == '0'; c = *++s)
2635
5.79M
        nz++;
2636
41.3k
      if (c > '0' && c <= '9') {
2637
36.8k
        bc.dp0 = s0 - s;
2638
36.8k
        bc.dp1 = bc.dp0 + bc.dplen;
2639
36.8k
        s0 = s;
2640
36.8k
        nf += nz;
2641
36.8k
        nz = 0;
2642
36.8k
        goto have_dig;
2643
36.8k
        }
2644
4.54k
      goto dig_done;
2645
41.3k
      }
2646
8.95M
    for(; c >= '0' && c <= '9'; c = *++s) {
2647
8.92M
 have_dig:
2648
8.92M
      nz++;
2649
8.92M
      if (c -= '0') {
2650
593k
        nf += nz;
2651
8.71M
        for(i = 1; i < nz; i++)
2652
8.12M
          if (nd++ < 9)
2653
52.2k
            y *= 10;
2654
8.07M
          else if (nd <= DBL_DIG + 2)
2655
82.2k
            z *= 10;
2656
593k
        if (nd++ < 9)
2657
187k
          y = 10*y + c;
2658
405k
        else if (nd <= DBL_DIG + 2)
2659
69.2k
          z = 10*z + c;
2660
593k
        nz = nz1 = 0;
2661
593k
        }
2662
8.92M
      }
2663
32.8k
    }
2664
250k
 dig_done:
2665
250k
  if (nd < 0) {
2666
    /* overflow */
2667
0
    nd = DBL_DIG + 2;
2668
0
  }
2669
250k
  if (nf < 0) {
2670
    /* overflow */
2671
0
    nf = DBL_DIG + 2;
2672
0
  }
2673
250k
  e = 0;
2674
250k
  if (c == 'e' || c == 'E') {
2675
107k
    if (!nd && !nz && !nz0) {
2676
1
      goto ret0;
2677
1
      }
2678
107k
    s00 = s;
2679
107k
    esign = 0;
2680
107k
    switch(c = *++s) {
2681
85.8k
      case '-':
2682
85.8k
        esign = 1;
2683
85.8k
        ZEND_FALLTHROUGH;
2684
86.3k
      case '+':
2685
86.3k
        c = *++s;
2686
107k
      }
2687
107k
    if (c >= '0' && c <= '9') {
2688
1.00M
      while(c == '0')
2689
893k
        c = *++s;
2690
106k
      if (c > '0' && c <= '9') {
2691
104k
        L = c - '0';
2692
104k
        s1 = s;
2693
598k
        while((c = *++s) >= '0' && c <= '9')
2694
494k
          L = (Long) (10*(ULong)L + (c - '0'));
2695
104k
        if (s - s1 > 8 || L > 19999)
2696
          /* Avoid confusion from exponents
2697
           * so large that e might overflow.
2698
           */
2699
4.54k
          e = 19999; /* safe for 16 bit ints */
2700
99.6k
        else
2701
99.6k
          e = (int)L;
2702
104k
        if (esign)
2703
85.5k
          e = -e;
2704
104k
        }
2705
2.76k
      else
2706
2.76k
        e = 0;
2707
106k
      }
2708
499
    else
2709
499
      s = s00;
2710
107k
    }
2711
250k
  if (!nd) {
2712
5.12k
    if (!nz && !nz0) {
2713
#ifdef INFNAN_CHECK
2714
      /* Check for Nan and Infinity */
2715
      if (!bc.dplen)
2716
       switch(c) {
2717
        case 'i':
2718
        case 'I':
2719
        if (match(&s,"nf")) {
2720
          --s;
2721
          if (!match(&s,"inity"))
2722
            ++s;
2723
          word0(&rv) = 0x7ff00000;
2724
          word1(&rv) = 0;
2725
          goto ret;
2726
          }
2727
        break;
2728
        case 'n':
2729
        case 'N':
2730
        if (match(&s, "an")) {
2731
          word0(&rv) = NAN_WORD0;
2732
          word1(&rv) = NAN_WORD1;
2733
#ifndef No_Hex_NaN
2734
          if (*s == '(') /*)*/
2735
            hexnan(&rv, &s);
2736
#endif
2737
          goto ret;
2738
          }
2739
        }
2740
#endif /* INFNAN_CHECK */
2741
21
 ret0:
2742
21
      s = s00;
2743
21
      sign = 0;
2744
21
      }
2745
5.12k
    goto ret;
2746
5.12k
    }
2747
244k
  bc.e0 = e1 = e -= nf;
2748
2749
  /* Now we have nd0 digits, starting at s0, followed by a
2750
   * decimal point, followed by nd-nd0 digits.  The number we're
2751
   * after is the integer represented by those digits times
2752
   * 10**e */
2753
2754
244k
  if (!nd0)
2755
36.8k
    nd0 = nd;
2756
244k
  k = nd < DBL_DIG + 2 ? nd : DBL_DIG + 2;
2757
244k
  dval(&rv) = y;
2758
244k
  if (k > 9) {
2759
#ifdef SET_INEXACT
2760
    if (k > DBL_DIG)
2761
      oldinexact = get_inexact();
2762
#endif
2763
122k
    dval(&rv) = tens[k - 9] * dval(&rv) + z;
2764
122k
    }
2765
244k
  bd0 = 0;
2766
244k
  if (nd <= DBL_DIG
2767
134k
#ifndef RND_PRODQUOT
2768
134k
#ifndef Honor_FLT_ROUNDS
2769
134k
    && Flt_Rounds == 1
2770
244k
#endif
2771
244k
#endif
2772
244k
      ) {
2773
134k
    if (!e)
2774
34.9k
      goto ret;
2775
99.9k
#ifndef ROUND_BIASED_without_Round_Up
2776
99.9k
    if (e > 0) {
2777
13.4k
      if (e <= Ten_pmax) {
2778
#ifdef VAX
2779
        goto vax_ovfl_check;
2780
#else
2781
#ifdef Honor_FLT_ROUNDS
2782
        /* round correctly FLT_ROUNDS = 2 or 3 */
2783
        if (sign) {
2784
          rv.d = -rv.d;
2785
          sign = 0;
2786
          }
2787
#endif
2788
721
        /* rv = */ rounded_product(dval(&rv), tens[e]);
2789
721
        goto ret;
2790
721
#endif
2791
721
        }
2792
12.7k
      i = DBL_DIG - nd;
2793
12.7k
      if (e <= Ten_pmax + i) {
2794
        /* A fancier test would sometimes let us do
2795
         * this for larger i values.
2796
         */
2797
#ifdef Honor_FLT_ROUNDS
2798
        /* round correctly FLT_ROUNDS = 2 or 3 */
2799
        if (sign) {
2800
          rv.d = -rv.d;
2801
          sign = 0;
2802
          }
2803
#endif
2804
347
        e -= i;
2805
347
        dval(&rv) *= tens[i];
2806
#ifdef VAX
2807
        /* VAX exponent range is so narrow we must
2808
         * worry about overflow here...
2809
         */
2810
 vax_ovfl_check:
2811
        word0(&rv) -= P*Exp_msk1;
2812
        /* rv = */ rounded_product(dval(&rv), tens[e]);
2813
        if ((word0(&rv) & Exp_mask)
2814
         > Exp_msk1*(DBL_MAX_EXP+Bias-1-P))
2815
          goto ovfl;
2816
        word0(&rv) += P*Exp_msk1;
2817
#else
2818
347
        /* rv = */ rounded_product(dval(&rv), tens[e]);
2819
347
#endif
2820
347
        goto ret;
2821
347
        }
2822
12.7k
      }
2823
86.5k
#ifndef Inaccurate_Divide
2824
86.5k
    else if (e >= -Ten_pmax) {
2825
#ifdef Honor_FLT_ROUNDS
2826
      /* round correctly FLT_ROUNDS = 2 or 3 */
2827
      if (sign) {
2828
        rv.d = -rv.d;
2829
        sign = 0;
2830
        }
2831
#endif
2832
19.8k
      /* rv = */ rounded_quotient(dval(&rv), tens[-e]);
2833
19.8k
      goto ret;
2834
19.8k
      }
2835
99.9k
#endif
2836
99.9k
#endif /* ROUND_BIASED_without_Round_Up */
2837
99.9k
    }
2838
189k
  e1 += nd - k;
2839
2840
189k
#ifdef IEEE_Arith
2841
#ifdef SET_INEXACT
2842
  bc.inexact = 1;
2843
  if (k <= DBL_DIG)
2844
    oldinexact = get_inexact();
2845
#endif
2846
189k
#ifdef Avoid_Underflow
2847
189k
  bc.scale = 0;
2848
189k
#endif
2849
#ifdef Honor_FLT_ROUNDS
2850
  if (bc.rounding >= 2) {
2851
    if (sign)
2852
      bc.rounding = bc.rounding == 2 ? 0 : 2;
2853
    else
2854
      if (bc.rounding != 2)
2855
        bc.rounding = 0;
2856
    }
2857
#endif
2858
189k
#endif /*IEEE_Arith*/
2859
2860
  /* Get starting approximation = rv * 10**e1 */
2861
2862
189k
  if (e1 > 0) {
2863
80.7k
    if ((i = e1 & 15))
2864
78.3k
      dval(&rv) *= tens[i];
2865
80.7k
    if (e1 &= ~15) {
2866
70.1k
      if (e1 > DBL_MAX_10_EXP) {
2867
16.9k
 ovfl:
2868
        /* Can't trust HUGE_VAL */
2869
16.9k
#ifdef IEEE_Arith
2870
#ifdef Honor_FLT_ROUNDS
2871
        switch(bc.rounding) {
2872
          case 0: /* toward 0 */
2873
          case 3: /* toward -infinity */
2874
          word0(&rv) = Big0;
2875
          word1(&rv) = Big1;
2876
          break;
2877
          default:
2878
          word0(&rv) = Exp_mask;
2879
          word1(&rv) = 0;
2880
          }
2881
#else /*Honor_FLT_ROUNDS*/
2882
16.9k
        word0(&rv) = Exp_mask;
2883
16.9k
        word1(&rv) = 0;
2884
16.9k
#endif /*Honor_FLT_ROUNDS*/
2885
#ifdef SET_INEXACT
2886
        /* set overflow bit */
2887
        dval(&rv0) = 1e300;
2888
        dval(&rv0) *= dval(&rv0);
2889
#endif
2890
#else /*IEEE_Arith*/
2891
        word0(&rv) = Big0;
2892
        word1(&rv) = Big1;
2893
#endif /*IEEE_Arith*/
2894
19.4k
 range_err:
2895
19.4k
        if (bd0) {
2896
636
          Bfree(bb);
2897
636
          Bfree(bd);
2898
636
          Bfree(bs);
2899
636
          Bfree(bd0);
2900
636
          Bfree(delta);
2901
636
          }
2902
#ifndef NO_ERRNO
2903
        errno = ERANGE;
2904
#endif
2905
19.4k
        goto ret;
2906
16.9k
        }
2907
63.9k
      e1 >>= 4;
2908
222k
      for(j = 0; e1 > 1; j++, e1 >>= 1)
2909
158k
        if (e1 & 1)
2910
71.4k
          dval(&rv) *= bigtens[j];
2911
    /* The last multiplication could overflow. */
2912
63.9k
      word0(&rv) -= P*Exp_msk1;
2913
63.9k
      dval(&rv) *= bigtens[j];
2914
63.9k
      if ((z = word0(&rv) & Exp_mask)
2915
63.9k
       > Exp_msk1*(DBL_MAX_EXP+Bias-P))
2916
10.0k
        goto ovfl;
2917
53.8k
      if (z > Exp_msk1*(DBL_MAX_EXP+Bias-1-P)) {
2918
        /* set to largest number */
2919
        /* (Can't trust DBL_MAX) */
2920
636
        word0(&rv) = Big0;
2921
636
        word1(&rv) = Big1;
2922
636
        }
2923
53.2k
      else
2924
53.2k
        word0(&rv) += P*Exp_msk1;
2925
53.8k
      }
2926
80.7k
    }
2927
108k
  else if (e1 < 0) {
2928
105k
    e1 = -e1;
2929
105k
    if ((i = e1 & 15))
2930
101k
      dval(&rv) /= tens[i];
2931
105k
    if (e1 >>= 4) {
2932
96.5k
      if (e1 >= 1 << n_bigtens)
2933
875
        goto undfl;
2934
95.6k
#ifdef Avoid_Underflow
2935
95.6k
      if (e1 & Scale_Bit)
2936
83.9k
        bc.scale = 2*P;
2937
542k
      for(j = 0; e1 > 0; j++, e1 >>= 1)
2938
447k
        if (e1 & 1)
2939
254k
          dval(&rv) *= tinytens[j];
2940
95.6k
      if (bc.scale && (j = 2*P + 1 - ((word0(&rv) & Exp_mask)
2941
83.9k
            >> Exp_shift)) > 0) {
2942
        /* scaled rv is denormal; clear j low bits */
2943
64.1k
        if (j >= 32) {
2944
6.30k
          if (j > 54)
2945
685
            goto undfl;
2946
5.61k
          word1(&rv) = 0;
2947
5.61k
          if (j >= 53)
2948
1.00k
           word0(&rv) = (P+2)*Exp_msk1;
2949
4.60k
          else
2950
4.60k
           word0(&rv) &= 0xffffffff << (j-32);
2951
5.61k
          }
2952
57.8k
        else
2953
57.8k
          word1(&rv) &= 0xffffffff << j;
2954
64.1k
        }
2955
#else
2956
      for(j = 0; e1 > 1; j++, e1 >>= 1)
2957
        if (e1 & 1)
2958
          dval(&rv) *= tinytens[j];
2959
      /* The last multiplication could underflow. */
2960
      dval(&rv0) = dval(&rv);
2961
      dval(&rv) *= tinytens[j];
2962
      if (!dval(&rv)) {
2963
        dval(&rv) = 2.*dval(&rv0);
2964
        dval(&rv) *= tinytens[j];
2965
#endif
2966
94.9k
        if (!dval(&rv)) {
2967
2.50k
 undfl:
2968
2.50k
          dval(&rv) = 0.;
2969
2.50k
          goto range_err;
2970
0
          }
2971
#ifndef Avoid_Underflow
2972
        word0(&rv) = Tiny0;
2973
        word1(&rv) = Tiny1;
2974
        /* The refinement below will clean
2975
         * this approximation up.
2976
         */
2977
        }
2978
#endif
2979
94.9k
      }
2980
105k
    }
2981
2982
  /* Now the hard part -- adjusting rv to the correct value.*/
2983
2984
  /* Put digits into bd: true value = bd * 10^e */
2985
2986
171k
  bc.nd = nd - nz1;
2987
171k
#ifndef NO_STRTOD_BIGCOMP
2988
171k
  bc.nd0 = nd0; /* Only needed if nd > strtod_diglim, but done here */
2989
      /* to silence an erroneous warning about bc.nd0 */
2990
      /* possibly not being initialized. */
2991
171k
  if (nd > strtod_diglim) {
2992
    /* ASSERT(strtod_diglim >= 18); 18 == one more than the */
2993
    /* minimum number of decimal digits to distinguish double values */
2994
    /* in IEEE arithmetic. */
2995
64.1k
    i = j = 18;
2996
64.1k
    if (i > nd0)
2997
5.62k
      j += bc.dplen;
2998
320k
    for(;;) {
2999
320k
      if (--j < bc.dp1 && j >= bc.dp0)
3000
1.72k
        j = bc.dp0 - 1;
3001
320k
      if (s0[j] != '0')
3002
64.1k
        break;
3003
256k
      --i;
3004
256k
      }
3005
64.1k
    e += nd - i;
3006
64.1k
    nd = i;
3007
64.1k
    if (nd0 > nd)
3008
58.5k
      nd0 = nd;
3009
64.1k
    if (nd < 9) { /* must recompute y */
3010
16.7k
      y = 0;
3011
71.8k
      for(i = 0; i < nd0; ++i)
3012
55.1k
        y = 10*y + s0[i] - '0';
3013
20.1k
      for(j = bc.dp1; i < nd; ++i)
3014
3.42k
        y = 10*y + s0[j++] - '0';
3015
16.7k
      }
3016
64.1k
    }
3017
171k
#endif
3018
171k
  bd0 = s2b(s0, nd0, nd, y, bc.dplen);
3019
3020
228k
  for(;;) {
3021
228k
    bd = Balloc(bd0->k);
3022
228k
    Bcopy(bd, bd0);
3023
228k
    bb = d2b(&rv, &bbe, &bbbits); /* rv = bb * 2^bbe */
3024
228k
    bs = i2b(1);
3025
3026
228k
    if (e >= 0) {
3027
90.7k
      bb2 = bb5 = 0;
3028
90.7k
      bd2 = bd5 = e;
3029
90.7k
      }
3030
137k
    else {
3031
137k
      bb2 = bb5 = -e;
3032
137k
      bd2 = bd5 = 0;
3033
137k
      }
3034
228k
    if (bbe >= 0)
3035
94.5k
      bb2 += bbe;
3036
134k
    else
3037
134k
      bd2 -= bbe;
3038
228k
    bs2 = bb2;
3039
#ifdef Honor_FLT_ROUNDS
3040
    if (bc.rounding != 1)
3041
      bs2++;
3042
#endif
3043
228k
#ifdef Avoid_Underflow
3044
228k
    Lsb = LSB;
3045
228k
    Lsb1 = 0;
3046
228k
    j = bbe - bc.scale;
3047
228k
    i = j + bbbits - 1; /* logb(rv) */
3048
228k
    j = P + 1 - bbbits;
3049
228k
    if (i < Emin) { /* denormal */
3050
89.5k
      i = Emin - i;
3051
89.5k
      j -= i;
3052
89.5k
      if (i < 32)
3053
80.3k
        Lsb <<= i;
3054
9.21k
      else if (i < 52)
3055
8.17k
        Lsb1 = Lsb << (i-32);
3056
1.04k
      else
3057
1.04k
        Lsb1 = Exp_mask;
3058
89.5k
      }
3059
#else /*Avoid_Underflow*/
3060
#ifdef Sudden_Underflow
3061
#ifdef IBM
3062
    j = 1 + 4*P - 3 - bbbits + ((bbe + bbbits - 1) & 3);
3063
#else
3064
    j = P + 1 - bbbits;
3065
#endif
3066
#else /*Sudden_Underflow*/
3067
    j = bbe;
3068
    i = j + bbbits - 1; /* logb(rv) */
3069
    if (i < Emin) /* denormal */
3070
      j += P - Emin;
3071
    else
3072
      j = P + 1 - bbbits;
3073
#endif /*Sudden_Underflow*/
3074
#endif /*Avoid_Underflow*/
3075
228k
    bb2 += j;
3076
228k
    bd2 += j;
3077
228k
#ifdef Avoid_Underflow
3078
228k
    bd2 += bc.scale;
3079
228k
#endif
3080
228k
    i = bb2 < bd2 ? bb2 : bd2;
3081
228k
    if (i > bs2)
3082
134k
      i = bs2;
3083
228k
    if (i > 0) {
3084
228k
      bb2 -= i;
3085
228k
      bd2 -= i;
3086
228k
      bs2 -= i;
3087
228k
      }
3088
228k
    if (bb5 > 0) {
3089
137k
      bs = pow5mult(bs, bb5);
3090
137k
      bb1 = mult(bs, bb);
3091
137k
      Bfree(bb);
3092
137k
      bb = bb1;
3093
137k
      }
3094
228k
    if (bb2 > 0)
3095
228k
      bb = lshift(bb, bb2);
3096
228k
    if (bd5 > 0)
3097
73.6k
      bd = pow5mult(bd, bd5);
3098
228k
    if (bd2 > 0)
3099
134k
      bd = lshift(bd, bd2);
3100
228k
    if (bs2 > 0)
3101
92.9k
      bs = lshift(bs, bs2);
3102
228k
    delta = diff(bb, bd);
3103
228k
    bc.dsign = delta->sign;
3104
228k
    delta->sign = 0;
3105
228k
    i = cmp(delta, bs);
3106
228k
#ifndef NO_STRTOD_BIGCOMP /*{*/
3107
228k
    if (bc.nd > nd && i <= 0) {
3108
64.0k
      if (bc.dsign) {
3109
        /* Must use bigcomp(). */
3110
37.3k
        req_bigcomp = 1;
3111
37.3k
        break;
3112
37.3k
        }
3113
#ifdef Honor_FLT_ROUNDS
3114
      if (bc.rounding != 1) {
3115
        if (i < 0) {
3116
          req_bigcomp = 1;
3117
          break;
3118
          }
3119
        }
3120
      else
3121
#endif
3122
26.7k
        i = -1; /* Discarded digits make delta smaller. */
3123
26.7k
      }
3124
191k
#endif /*}*/
3125
#ifdef Honor_FLT_ROUNDS /*{*/
3126
    if (bc.rounding != 1) {
3127
      if (i < 0) {
3128
        /* Error is less than an ulp */
3129
        if (!delta->x[0] && delta->wds <= 1) {
3130
          /* exact */
3131
#ifdef SET_INEXACT
3132
          bc.inexact = 0;
3133
#endif
3134
          break;
3135
          }
3136
        if (bc.rounding) {
3137
          if (bc.dsign) {
3138
            adj.d = 1.;
3139
            goto apply_adj;
3140
            }
3141
          }
3142
        else if (!bc.dsign) {
3143
          adj.d = -1.;
3144
          if (!word1(&rv)
3145
           && !(word0(&rv) & Frac_mask)) {
3146
            y = word0(&rv) & Exp_mask;
3147
#ifdef Avoid_Underflow
3148
            if (!bc.scale || y > 2*P*Exp_msk1)
3149
#else
3150
            if (y)
3151
#endif
3152
              {
3153
              delta = lshift(delta,Log2P);
3154
              if (cmp(delta, bs) <= 0)
3155
              adj.d = -0.5;
3156
              }
3157
            }
3158
 apply_adj:
3159
#ifdef Avoid_Underflow /*{*/
3160
          if (bc.scale && (y = word0(&rv) & Exp_mask)
3161
            <= 2*P*Exp_msk1)
3162
            word0(&adj) += (2*P+1)*Exp_msk1 - y;
3163
#else
3164
#ifdef Sudden_Underflow
3165
          if ((word0(&rv) & Exp_mask) <=
3166
              P*Exp_msk1) {
3167
            word0(&rv) += P*Exp_msk1;
3168
            dval(&rv) += adj.d*ulp(dval(&rv));
3169
            word0(&rv) -= P*Exp_msk1;
3170
            }
3171
          else
3172
#endif /*Sudden_Underflow*/
3173
#endif /*Avoid_Underflow}*/
3174
          dval(&rv) += adj.d*ulp(&rv);
3175
          }
3176
        break;
3177
        }
3178
      adj.d = ratio(delta, bs);
3179
      if (adj.d < 1.)
3180
        adj.d = 1.;
3181
      if (adj.d <= 0x7ffffffe) {
3182
        /* adj = rounding ? ceil(adj) : floor(adj); */
3183
        y = adj.d;
3184
        if (y != adj.d) {
3185
          if (!((bc.rounding>>1) ^ bc.dsign))
3186
            y++;
3187
          adj.d = y;
3188
          }
3189
        }
3190
#ifdef Avoid_Underflow /*{*/
3191
      if (bc.scale && (y = word0(&rv) & Exp_mask) <= 2*P*Exp_msk1)
3192
        word0(&adj) += (2*P+1)*Exp_msk1 - y;
3193
#else
3194
#ifdef Sudden_Underflow
3195
      if ((word0(&rv) & Exp_mask) <= P*Exp_msk1) {
3196
        word0(&rv) += P*Exp_msk1;
3197
        adj.d *= ulp(dval(&rv));
3198
        if (bc.dsign)
3199
          dval(&rv) += adj.d;
3200
        else
3201
          dval(&rv) -= adj.d;
3202
        word0(&rv) -= P*Exp_msk1;
3203
        goto cont;
3204
        }
3205
#endif /*Sudden_Underflow*/
3206
#endif /*Avoid_Underflow}*/
3207
      adj.d *= ulp(&rv);
3208
      if (bc.dsign) {
3209
        if (word0(&rv) == Big0 && word1(&rv) == Big1)
3210
          goto ovfl;
3211
        dval(&rv) += adj.d;
3212
        }
3213
      else
3214
        dval(&rv) -= adj.d;
3215
      goto cont;
3216
      }
3217
#endif /*}Honor_FLT_ROUNDS*/
3218
3219
191k
    if (i < 0) {
3220
      /* Error is less than half an ulp -- check for
3221
       * special case of mantissa a power of two.
3222
       */
3223
120k
      if (bc.dsign || word1(&rv) || word0(&rv) & Bndry_mask
3224
3.58k
#ifdef IEEE_Arith /*{*/
3225
3.58k
#ifdef Avoid_Underflow
3226
3.58k
       || (word0(&rv) & Exp_mask) <= (2*P+1)*Exp_msk1
3227
#else
3228
       || (word0(&rv) & Exp_mask) <= Exp_msk1
3229
#endif
3230
120k
#endif /*}*/
3231
120k
        ) {
3232
#ifdef SET_INEXACT
3233
        if (!delta->x[0] && delta->wds <= 1)
3234
          bc.inexact = 0;
3235
#endif
3236
117k
        break;
3237
117k
        }
3238
2.77k
      if (!delta->x[0] && delta->wds <= 1) {
3239
        /* exact result */
3240
#ifdef SET_INEXACT
3241
        bc.inexact = 0;
3242
#endif
3243
1.13k
        break;
3244
1.13k
        }
3245
1.64k
      delta = lshift(delta,Log2P);
3246
1.64k
      if (cmp(delta, bs) > 0)
3247
999
        goto drop_down;
3248
641
      break;
3249
1.64k
      }
3250
71.1k
    if (i == 0) {
3251
      /* exactly half-way between */
3252
2.08k
      if (bc.dsign) {
3253
1.43k
        if ((word0(&rv) & Bndry_mask1) == Bndry_mask1
3254
1.01k
         &&  word1(&rv) == (
3255
1.01k
#ifdef Avoid_Underflow
3256
1.01k
      (bc.scale && (y = word0(&rv) & Exp_mask) <= 2*P*Exp_msk1)
3257
1.01k
    ? (0xffffffff & (0xffffffff << (2*P+1-(y>>Exp_shift)))) :
3258
1.01k
#endif
3259
1.01k
               0xffffffff)) {
3260
          /*boundary case -- increment exponent*/
3261
7
          if (word0(&rv) == Big0 && word1(&rv) == Big1)
3262
0
            goto ovfl;
3263
7
          word0(&rv) = (word0(&rv) & Exp_mask)
3264
7
            + Exp_msk1
3265
#ifdef IBM
3266
            | Exp_msk1 >> 4
3267
#endif
3268
7
            ;
3269
7
          word1(&rv) = 0;
3270
7
#ifdef Avoid_Underflow
3271
7
          bc.dsign = 0;
3272
7
#endif
3273
7
          break;
3274
7
          }
3275
1.43k
        }
3276
654
      else if (!(word0(&rv) & Bndry_mask) && !word1(&rv)) {
3277
999
 drop_down:
3278
        /* boundary case -- decrement exponent */
3279
#ifdef Sudden_Underflow /*{{*/
3280
        L = word0(&rv) & Exp_mask;
3281
#ifdef IBM
3282
        if (L <  Exp_msk1)
3283
#else
3284
#ifdef Avoid_Underflow
3285
        if (L <= (bc.scale ? (2*P+1)*Exp_msk1 : Exp_msk1))
3286
#else
3287
        if (L <= Exp_msk1)
3288
#endif /*Avoid_Underflow*/
3289
#endif /*IBM*/
3290
          {
3291
          if (bc.nd >nd) {
3292
            bc.uflchk = 1;
3293
            break;
3294
            }
3295
          goto undfl;
3296
          }
3297
        L -= Exp_msk1;
3298
#else /*Sudden_Underflow}{*/
3299
999
#ifdef Avoid_Underflow
3300
999
        if (bc.scale) {
3301
0
          L = word0(&rv) & Exp_mask;
3302
0
          if (L <= (2*P+1)*Exp_msk1) {
3303
0
            if (L > (P+2)*Exp_msk1)
3304
              /* round even ==> */
3305
              /* accept rv */
3306
0
              break;
3307
            /* rv = smallest denormal */
3308
0
            if (bc.nd >nd) {
3309
0
              bc.uflchk = 1;
3310
0
              break;
3311
0
              }
3312
0
            goto undfl;
3313
0
            }
3314
0
          }
3315
999
#endif /*Avoid_Underflow*/
3316
999
        L = (word0(&rv) & Exp_mask) - Exp_msk1;
3317
999
#endif /*Sudden_Underflow}}*/
3318
999
        word0(&rv) = L | Bndry_mask1;
3319
999
        word1(&rv) = 0xffffffff;
3320
#ifdef IBM
3321
        goto cont;
3322
#else
3323
999
#ifndef NO_STRTOD_BIGCOMP
3324
999
        if (bc.nd > nd)
3325
691
          goto cont;
3326
308
#endif
3327
308
        break;
3328
999
#endif
3329
999
        }
3330
2.07k
#ifndef ROUND_BIASED
3331
2.07k
#ifdef Avoid_Underflow
3332
2.07k
      if (Lsb1) {
3333
0
        if (!(word0(&rv) & Lsb1))
3334
0
          break;
3335
0
        }
3336
2.07k
      else if (!(word1(&rv) & Lsb))
3337
1.64k
        break;
3338
#else
3339
      if (!(word1(&rv) & LSB))
3340
        break;
3341
#endif
3342
434
#endif
3343
434
      if (bc.dsign)
3344
284
#ifdef Avoid_Underflow
3345
284
        dval(&rv) += sulp(&rv, &bc);
3346
#else
3347
        dval(&rv) += ulp(&rv);
3348
#endif
3349
150
#ifndef ROUND_BIASED
3350
150
      else {
3351
150
#ifdef Avoid_Underflow
3352
150
        dval(&rv) -= sulp(&rv, &bc);
3353
#else
3354
        dval(&rv) -= ulp(&rv);
3355
#endif
3356
150
#ifndef Sudden_Underflow
3357
150
        if (!dval(&rv)) {
3358
0
          if (bc.nd >nd) {
3359
0
            bc.uflchk = 1;
3360
0
            break;
3361
0
            }
3362
0
          goto undfl;
3363
0
          }
3364
150
#endif
3365
150
        }
3366
434
#ifdef Avoid_Underflow
3367
434
      bc.dsign = 1 - bc.dsign;
3368
434
#endif
3369
434
#endif
3370
434
      break;
3371
434
      }
3372
69.0k
    if ((aadj = ratio(delta, bs)) <= 2.) {
3373
53.8k
      if (bc.dsign)
3374
33.0k
        aadj = aadj1 = 1.;
3375
20.7k
      else if (word1(&rv) || word0(&rv) & Bndry_mask) {
3376
19.7k
#ifndef Sudden_Underflow
3377
19.7k
        if (word1(&rv) == Tiny1 && !word0(&rv)) {
3378
0
          if (bc.nd >nd) {
3379
0
            bc.uflchk = 1;
3380
0
            break;
3381
0
            }
3382
0
          goto undfl;
3383
0
          }
3384
19.7k
#endif
3385
19.7k
        aadj = 1.;
3386
19.7k
        aadj1 = -1.;
3387
19.7k
        }
3388
946
      else {
3389
        /* special case -- power of FLT_RADIX to be */
3390
        /* rounded down... */
3391
3392
946
        if (aadj < 2./FLT_RADIX)
3393
0
          aadj = 1./FLT_RADIX;
3394
946
        else
3395
946
          aadj *= 0.5;
3396
946
        aadj1 = -aadj;
3397
946
        }
3398
53.8k
      }
3399
15.2k
    else {
3400
15.2k
      aadj *= 0.5;
3401
15.2k
      aadj1 = bc.dsign ? aadj : -aadj;
3402
#ifdef Check_FLT_ROUNDS
3403
      switch(bc.rounding) {
3404
        case 2: /* towards +infinity */
3405
          aadj1 -= 0.5;
3406
          break;
3407
        case 0: /* towards 0 */
3408
        case 3: /* towards -infinity */
3409
          aadj1 += 0.5;
3410
        }
3411
#else
3412
15.2k
      if (Flt_Rounds == 0)
3413
0
        aadj1 += 0.5;
3414
15.2k
#endif /*Check_FLT_ROUNDS*/
3415
15.2k
      }
3416
69.0k
    y = word0(&rv) & Exp_mask;
3417
3418
    /* Check for overflow */
3419
3420
69.0k
    if (y == Exp_msk1*(DBL_MAX_EXP+Bias-1)) {
3421
1.14k
      dval(&rv0) = dval(&rv);
3422
1.14k
      word0(&rv) -= P*Exp_msk1;
3423
1.14k
      adj.d = aadj1 * ulp(&rv);
3424
1.14k
      dval(&rv) += adj.d;
3425
1.14k
      if ((word0(&rv) & Exp_mask) >=
3426
1.14k
          Exp_msk1*(DBL_MAX_EXP+Bias-P)) {
3427
636
        if (word0(&rv0) == Big0 && word1(&rv0) == Big1)
3428
636
          goto ovfl;
3429
0
        word0(&rv) = Big0;
3430
0
        word1(&rv) = Big1;
3431
0
        goto cont;
3432
636
        }
3433
504
      else
3434
504
        word0(&rv) += P*Exp_msk1;
3435
1.14k
      }
3436
67.9k
    else {
3437
67.9k
#ifdef Avoid_Underflow
3438
67.9k
      if (bc.scale && y <= 2*P*Exp_msk1) {
3439
26.9k
        if (aadj <= 0x7fffffff) {
3440
26.9k
          if ((z = aadj) <= 0)
3441
946
            z = 1;
3442
26.9k
          aadj = z;
3443
26.9k
          aadj1 = bc.dsign ? aadj : -aadj;
3444
26.9k
          }
3445
26.9k
        dval(&aadj2) = aadj1;
3446
26.9k
        word0(&aadj2) += (2*P+1)*Exp_msk1 - y;
3447
26.9k
        aadj1 = dval(&aadj2);
3448
26.9k
        adj.d = aadj1 * ulp(&rv);
3449
26.9k
        dval(&rv) += adj.d;
3450
26.9k
        if (rv.d == 0.)
3451
#ifdef NO_STRTOD_BIGCOMP
3452
          goto undfl;
3453
#else
3454
946
          {
3455
946
          req_bigcomp = 1;
3456
946
          break;
3457
946
          }
3458
26.9k
#endif
3459
26.9k
        }
3460
40.9k
      else {
3461
40.9k
        adj.d = aadj1 * ulp(&rv);
3462
40.9k
        dval(&rv) += adj.d;
3463
40.9k
        }
3464
#else
3465
#ifdef Sudden_Underflow
3466
      if ((word0(&rv) & Exp_mask) <= P*Exp_msk1) {
3467
        dval(&rv0) = dval(&rv);
3468
        word0(&rv) += P*Exp_msk1;
3469
        adj.d = aadj1 * ulp(&rv);
3470
        dval(&rv) += adj.d;
3471
#ifdef IBM
3472
        if ((word0(&rv) & Exp_mask) <  P*Exp_msk1)
3473
#else
3474
        if ((word0(&rv) & Exp_mask) <= P*Exp_msk1)
3475
#endif
3476
          {
3477
          if (word0(&rv0) == Tiny0
3478
           && word1(&rv0) == Tiny1) {
3479
            if (bc.nd >nd) {
3480
              bc.uflchk = 1;
3481
              break;
3482
              }
3483
            goto undfl;
3484
            }
3485
          word0(&rv) = Tiny0;
3486
          word1(&rv) = Tiny1;
3487
          goto cont;
3488
          }
3489
        else
3490
          word0(&rv) -= P*Exp_msk1;
3491
        }
3492
      else {
3493
        adj.d = aadj1 * ulp(&rv);
3494
        dval(&rv) += adj.d;
3495
        }
3496
#else /*Sudden_Underflow*/
3497
      /* Compute adj so that the IEEE rounding rules will
3498
       * correctly round rv + adj in some half-way cases.
3499
       * If rv * ulp(rv) is denormalized (i.e.,
3500
       * y <= (P-1)*Exp_msk1), we must adjust aadj to avoid
3501
       * trouble from bits lost to denormalization;
3502
       * example: 1.2e-307 .
3503
       */
3504
      if (y <= (P-1)*Exp_msk1 && aadj > 1.) {
3505
        aadj1 = (double)(int)(aadj + 0.5);
3506
        if (!bc.dsign)
3507
          aadj1 = -aadj1;
3508
        }
3509
      adj.d = aadj1 * ulp(&rv);
3510
      dval(&rv) += adj.d;
3511
#endif /*Sudden_Underflow*/
3512
#endif /*Avoid_Underflow*/
3513
67.9k
      }
3514
67.4k
    z = word0(&rv) & Exp_mask;
3515
67.4k
#ifndef SET_INEXACT
3516
67.4k
    if (bc.nd == nd) {
3517
41.1k
#ifdef Avoid_Underflow
3518
41.1k
    if (!bc.scale)
3519
12.3k
#endif
3520
12.3k
    if (y == z) {
3521
      /* Can we stop now? */
3522
12.0k
      L = (Long)aadj;
3523
12.0k
      aadj -= L;
3524
      /* The tolerances below are conservative. */
3525
12.0k
      if (bc.dsign || word1(&rv) || word0(&rv) & Bndry_mask) {
3526
11.9k
        if (aadj < .4999999 || aadj > .5000001)
3527
10.5k
          break;
3528
11.9k
        }
3529
46
      else if (aadj < .4999999/FLT_RADIX)
3530
46
        break;
3531
12.0k
      }
3532
41.1k
    }
3533
56.8k
#endif
3534
57.5k
 cont:
3535
57.5k
    Bfree(bb);
3536
57.5k
    Bfree(bd);
3537
57.5k
    Bfree(bs);
3538
57.5k
    Bfree(delta);
3539
57.5k
    }
3540
170k
  Bfree(bb);
3541
170k
  Bfree(bd);
3542
170k
  Bfree(bs);
3543
170k
  Bfree(bd0);
3544
170k
  Bfree(delta);
3545
170k
#ifndef NO_STRTOD_BIGCOMP
3546
170k
  if (req_bigcomp) {
3547
38.2k
    bd0 = 0;
3548
38.2k
    bc.e0 += nz1;
3549
38.2k
    bigcomp(&rv, s0, &bc);
3550
38.2k
    y = word0(&rv) & Exp_mask;
3551
38.2k
    if (y == Exp_mask)
3552
0
      goto ovfl;
3553
38.2k
    if (y == 0 && rv.d == 0.)
3554
946
      goto undfl;
3555
38.2k
    }
3556
169k
#endif
3557
#ifdef SET_INEXACT
3558
  if (bc.inexact) {
3559
    if (!oldinexact) {
3560
      word0(&rv0) = Exp_1 + (70 << Exp_shift);
3561
      word1(&rv0) = 0;
3562
      dval(&rv0) += 1.;
3563
      }
3564
    }
3565
  else if (!oldinexact)
3566
    clear_inexact();
3567
#endif
3568
169k
#ifdef Avoid_Underflow
3569
169k
  if (bc.scale) {
3570
82.3k
    word0(&rv0) = Exp_1 - 2*P*Exp_msk1;
3571
82.3k
    word1(&rv0) = 0;
3572
82.3k
    dval(&rv) *= dval(&rv0);
3573
#ifndef NO_ERRNO
3574
    /* try to avoid the bug of testing an 8087 register value */
3575
#ifdef IEEE_Arith
3576
    if (!(word0(&rv) & Exp_mask))
3577
#else
3578
    if (word0(&rv) == 0 && word1(&rv) == 0)
3579
#endif
3580
      errno = ERANGE;
3581
#endif
3582
82.3k
    }
3583
169k
#endif /* Avoid_Underflow */
3584
#ifdef SET_INEXACT
3585
  if (bc.inexact && !(word0(&rv) & Exp_mask)) {
3586
    /* set underflow bit */
3587
    dval(&rv0) = 1e-300;
3588
    dval(&rv0) *= dval(&rv0);
3589
    }
3590
#endif
3591
250k
 ret:
3592
250k
  if (se)
3593
1.75k
    *se = (char *)s;
3594
250k
  return sign ? -dval(&rv) : dval(&rv);
3595
169k
  }
3596
3597
#if !defined(MULTIPLE_THREADS) && !defined(dtoa_result)
3598
 ZEND_TLS char *dtoa_result;
3599
#endif
3600
3601
 static char *
3602
#ifdef KR_headers
3603
rv_alloc(i) int i;
3604
#else
3605
rv_alloc(int i)
3606
#endif
3607
150k
{
3608
3609
150k
  int j, k, *r;
3610
150k
  size_t rem;
3611
3612
150k
  rem = sizeof(Bigint) - sizeof(ULong) - sizeof(int);
3613
3614
3615
150k
  j = sizeof(ULong);
3616
150k
  if (i > ((INT_MAX >> 2) + rem))
3617
0
    i = (INT_MAX >> 2) + rem;
3618
150k
  for(k = 0;
3619
150k
    rem + j <= (size_t)i; j <<= 1)
3620
0
      k++;
3621
3622
150k
  r = (int*)Balloc(k);
3623
150k
  *r = k;
3624
150k
  return
3625
150k
#ifndef MULTIPLE_THREADS
3626
150k
  dtoa_result =
3627
150k
#endif
3628
150k
    (char *)(r+1);
3629
150k
  }
3630
3631
 static char *
3632
#ifdef KR_headers
3633
nrv_alloc(s, rve, n) char *s, **rve; int n;
3634
#else
3635
nrv_alloc(const char *s, char **rve, int n)
3636
#endif
3637
14.6k
{
3638
14.6k
  char *rv, *t;
3639
3640
14.6k
  t = rv = rv_alloc(n);
3641
116k
  while((*t = *s++)) t++;
3642
14.6k
  if (rve)
3643
0
    *rve = t;
3644
14.6k
  return rv;
3645
14.6k
  }
3646
3647
/* freedtoa(s) must be used to free values s returned by dtoa
3648
 * when MULTIPLE_THREADS is #defined.  It should be used in all cases,
3649
 * but for consistency with earlier versions of dtoa, it is optional
3650
 * when MULTIPLE_THREADS is not defined.
3651
 */
3652
3653
ZEND_API void
3654
#ifdef KR_headers
3655
zend_freedtoa(s) char *s;
3656
#else
3657
zend_freedtoa(char *s)
3658
#endif
3659
150k
{
3660
150k
  Bigint *b = (Bigint *)((int *)s - 1);
3661
150k
  b->maxwds = 1 << (b->k = *(int*)b);
3662
150k
  Bfree(b);
3663
150k
#ifndef MULTIPLE_THREADS
3664
150k
  if (s == dtoa_result)
3665
150k
    dtoa_result = 0;
3666
150k
#endif
3667
150k
  }
3668
3669
/* dtoa for IEEE arithmetic (dmg): convert double to ASCII string.
3670
 *
3671
 * Inspired by "How to Print Floating-Point Numbers Accurately" by
3672
 * Guy L. Steele, Jr. and Jon L. White [Proc. ACM SIGPLAN '90, pp. 112-126].
3673
 *
3674
 * Modifications:
3675
 *  1. Rather than iterating, we use a simple numeric overestimate
3676
 *     to determine k = floor(log10(d)).  We scale relevant
3677
 *     quantities using O(log2(k)) rather than O(k) multiplications.
3678
 *  2. For some modes > 2 (corresponding to ecvt and fcvt), we don't
3679
 *     try to generate digits strictly left to right.  Instead, we
3680
 *     compute with fewer bits and propagate the carry if necessary
3681
 *     when rounding the final digit up.  This is often faster.
3682
 *  3. Under the assumption that input will be rounded nearest,
3683
 *     mode 0 renders 1e23 as 1e23 rather than 9.999999999999999e22.
3684
 *     That is, we allow equality in stopping tests when the
3685
 *     round-nearest rule will give the same floating-point value
3686
 *     as would satisfaction of the stopping test with strict
3687
 *     inequality.
3688
 *  4. We remove common factors of powers of 2 from relevant
3689
 *     quantities.
3690
 *  5. When converting floating-point integers less than 1e16,
3691
 *     we use floating-point arithmetic rather than resorting
3692
 *     to multiple-precision integers.
3693
 *  6. When asked to produce fewer than 15 digits, we first try
3694
 *     to get by with floating-point arithmetic; we resort to
3695
 *     multiple-precision integer arithmetic only if we cannot
3696
 *     guarantee that the floating-point calculation has given
3697
 *     the correctly rounded result.  For k requested digits and
3698
 *     "uniformly" distributed input, the probability is
3699
 *     something like 10^(k-15) that we must resort to the Long
3700
 *     calculation.
3701
 */
3702
3703
ZEND_API char *zend_dtoa(double dd, int mode, int ndigits, int *decpt, bool *sign, char **rve)
3704
150k
{
3705
 /* Arguments ndigits, decpt, sign are similar to those
3706
  of ecvt and fcvt; trailing zeros are suppressed from
3707
  the returned string.  If not null, *rve is set to point
3708
  to the end of the return value.  If d is +-Infinity or NaN,
3709
  then *decpt is set to 9999.
3710
3711
  mode:
3712
    0 ==> shortest string that yields d when read in
3713
      and rounded to nearest.
3714
    1 ==> like 0, but with Steele & White stopping rule;
3715
      e.g. with IEEE P754 arithmetic , mode 0 gives
3716
      1e23 whereas mode 1 gives 9.999999999999999e22.
3717
    2 ==> max(1,ndigits) significant digits.  This gives a
3718
      return value similar to that of ecvt, except
3719
      that trailing zeros are suppressed.
3720
    3 ==> through ndigits past the decimal point.  This
3721
      gives a return value similar to that from fcvt,
3722
      except that trailing zeros are suppressed, and
3723
      ndigits can be negative.
3724
    4,5 ==> similar to 2 and 3, respectively, but (in
3725
      round-nearest mode) with the tests of mode 0 to
3726
      possibly return a shorter string that rounds to d.
3727
      With IEEE arithmetic and compilation with
3728
      -DHonor_FLT_ROUNDS, modes 4 and 5 behave the same
3729
      as modes 2 and 3 when FLT_ROUNDS != 1.
3730
    6-9 ==> Debugging modes similar to mode - 4:  don't try
3731
      fast floating-point estimate (if applicable).
3732
3733
    Values of mode other than 0-9 are treated as mode 0.
3734
3735
    Sufficient space is allocated to the return value
3736
    to hold the suppressed trailing zeros.
3737
  */
3738
3739
150k
  int bbits, b2, b5, be, dig, i, ieps, ilim = 0, ilim0, ilim1,
3740
150k
    j, j1 = 0, k, k0, k_check, leftright, m2, m5, s2, s5,
3741
150k
    spec_case = 0, try_quick;
3742
150k
  Long L;
3743
150k
#ifndef Sudden_Underflow
3744
150k
  int denorm;
3745
150k
  ULong x;
3746
150k
#endif
3747
150k
  Bigint *b, *b1, *delta, *mlo, *mhi, *S;
3748
150k
  U d2, eps, u;
3749
150k
  double ds;
3750
150k
  char *s, *s0;
3751
150k
#ifndef No_leftright
3752
150k
#ifdef IEEE_Arith
3753
150k
  U eps1;
3754
150k
#endif
3755
150k
#endif
3756
#ifdef SET_INEXACT
3757
  int inexact, oldinexact;
3758
#endif
3759
#ifdef Honor_FLT_ROUNDS /*{*/
3760
  int Rounding;
3761
#ifdef Trust_FLT_ROUNDS /*{{ only define this if FLT_ROUNDS really works! */
3762
  Rounding = Flt_Rounds;
3763
#else /*}{*/
3764
  Rounding = 1;
3765
  switch(fegetround()) {
3766
    case FE_TOWARDZERO: Rounding = 0; break;
3767
    case FE_UPWARD: Rounding = 2; break;
3768
    case FE_DOWNWARD: Rounding = 3;
3769
    }
3770
#endif /*}}*/
3771
#endif /*}*/
3772
3773
150k
#ifndef MULTIPLE_THREADS
3774
150k
  if (dtoa_result) {
3775
0
    zend_freedtoa(dtoa_result);
3776
0
    dtoa_result = 0;
3777
0
    }
3778
150k
#endif
3779
3780
150k
  u.d = dd;
3781
150k
  if (word0(&u) & Sign_bit) {
3782
    /* set sign for everything, including 0's and NaNs */
3783
4.36k
    *sign = 1;
3784
4.36k
    word0(&u) &= ~Sign_bit; /* clear sign bit */
3785
4.36k
    }
3786
146k
  else
3787
146k
    *sign = 0;
3788
3789
150k
#if defined(IEEE_Arith) + defined(VAX)
3790
150k
#ifdef IEEE_Arith
3791
150k
  if ((word0(&u) & Exp_mask) == Exp_mask)
3792
#else
3793
  if (word0(&u)  == 0x8000)
3794
#endif
3795
12.4k
    {
3796
    /* Infinity or NaN */
3797
12.4k
    *decpt = 9999;
3798
12.4k
#ifdef IEEE_Arith
3799
12.4k
    if (!word1(&u) && !(word0(&u) & 0xfffff))
3800
12.4k
      return nrv_alloc("Infinity", rve, 8);
3801
1
#endif
3802
1
    return nrv_alloc("NaN", rve, 3);
3803
12.4k
    }
3804
138k
#endif
3805
#ifdef IBM
3806
  dval(&u) += 0; /* normalize */
3807
#endif
3808
138k
  if (!dval(&u)) {
3809
2.22k
    *decpt = 1;
3810
2.22k
    return nrv_alloc("0", rve, 1);
3811
2.22k
    }
3812
3813
#ifdef SET_INEXACT
3814
  try_quick = oldinexact = get_inexact();
3815
  inexact = 1;
3816
#endif
3817
#ifdef Honor_FLT_ROUNDS
3818
  if (Rounding >= 2) {
3819
    if (*sign)
3820
      Rounding = Rounding == 2 ? 0 : 2;
3821
    else
3822
      if (Rounding != 2)
3823
        Rounding = 0;
3824
    }
3825
#endif
3826
3827
135k
  b = d2b(&u, &be, &bbits);
3828
#ifdef Sudden_Underflow
3829
  i = (int)(word0(&u) >> Exp_shift1 & (Exp_mask>>Exp_shift1));
3830
#else
3831
135k
  if ((i = (int)(word0(&u) >> Exp_shift1 & (Exp_mask>>Exp_shift1)))) {
3832
79.0k
#endif
3833
79.0k
    dval(&d2) = dval(&u);
3834
79.0k
    word0(&d2) &= Frac_mask1;
3835
79.0k
    word0(&d2) |= Exp_11;
3836
#ifdef IBM
3837
    if (j = 11 - hi0bits(word0(&d2) & Frac_mask))
3838
      dval(&d2) /= 1 << j;
3839
#endif
3840
3841
    /* log(x) ~=~ log(1.5) + (x-1.5)/1.5
3842
     * log10(x)  =  log(x) / log(10)
3843
     *    ~=~ log(1.5)/log(10) + (x-1.5)/(1.5*log(10))
3844
     * log10(d) = (i-Bias)*log(2)/log(10) + log10(d2)
3845
     *
3846
     * This suggests computing an approximation k to log10(d) by
3847
     *
3848
     * k = (i - Bias)*0.301029995663981
3849
     *  + ( (d2-1.5)*0.289529654602168 + 0.176091259055681 );
3850
     *
3851
     * We want k to be too large rather than too small.
3852
     * The error in the first-order Taylor series approximation
3853
     * is in our favor, so we just round up the constant enough
3854
     * to compensate for any error in the multiplication of
3855
     * (i - Bias) by 0.301029995663981; since |i - Bias| <= 1077,
3856
     * and 1077 * 0.30103 * 2^-52 ~=~ 7.2e-14,
3857
     * adding 1e-13 to the constant term more than suffices.
3858
     * Hence we adjust the constant term to 0.1760912590558.
3859
     * (We could get a more accurate k by invoking log10,
3860
     *  but this is probably not worthwhile.)
3861
     */
3862
3863
79.0k
    i -= Bias;
3864
#ifdef IBM
3865
    i <<= 2;
3866
    i += j;
3867
#endif
3868
79.0k
#ifndef Sudden_Underflow
3869
79.0k
    denorm = 0;
3870
79.0k
    }
3871
56.7k
  else {
3872
    /* d is denormalized */
3873
3874
56.7k
    i = bbits + be + (Bias + (P-1) - 1);
3875
56.7k
    x = i > 32  ? word0(&u) << (64 - i) | word1(&u) >> (i - 32)
3876
56.7k
          : word1(&u) << (32 - i);
3877
56.7k
    dval(&d2) = x;
3878
56.7k
    word0(&d2) -= 31*Exp_msk1; /* adjust exponent */
3879
56.7k
    i -= (Bias + (P-1) - 1) + 1;
3880
56.7k
    denorm = 1;
3881
56.7k
    }
3882
135k
#endif
3883
135k
  ds = (dval(&d2)-1.5)*0.289529654602168 + 0.1760912590558 + i*0.301029995663981;
3884
135k
  k = (int)ds;
3885
135k
  if (ds < 0. && ds != k)
3886
82.9k
    k--; /* want k = floor(ds) */
3887
135k
  k_check = 1;
3888
135k
  if (k >= 0 && k <= Ten_pmax) {
3889
19.5k
    if (dval(&u) < tens[k])
3890
1.54k
      k--;
3891
19.5k
    k_check = 0;
3892
19.5k
    }
3893
135k
  j = bbits - i - 1;
3894
135k
  if (j >= 0) {
3895
97.4k
    b2 = 0;
3896
97.4k
    s2 = j;
3897
97.4k
    }
3898
38.3k
  else {
3899
38.3k
    b2 = -j;
3900
38.3k
    s2 = 0;
3901
38.3k
    }
3902
135k
  if (k >= 0) {
3903
52.9k
    b5 = 0;
3904
52.9k
    s5 = k;
3905
52.9k
    s2 += k;
3906
52.9k
    }
3907
82.9k
  else {
3908
82.9k
    b2 -= k;
3909
82.9k
    b5 = -k;
3910
82.9k
    s5 = 0;
3911
82.9k
    }
3912
135k
  if (mode < 0 || mode > 9)
3913
0
    mode = 0;
3914
3915
135k
#ifndef SET_INEXACT
3916
#ifdef Check_FLT_ROUNDS
3917
  try_quick = Rounding == 1;
3918
#else
3919
135k
  try_quick = 1;
3920
135k
#endif
3921
135k
#endif /*SET_INEXACT*/
3922
3923
135k
  if (mode > 5) {
3924
0
    mode -= 4;
3925
0
    try_quick = 0;
3926
0
    }
3927
135k
  leftright = 1;
3928
135k
  ilim = ilim1 = -1;  /* Values for cases 0 and 1; done here to */
3929
        /* silence erroneous "gcc -Wall" warning. */
3930
135k
  switch(mode) {
3931
10.5k
    case 0:
3932
10.5k
    case 1:
3933
10.5k
      i = 18;
3934
10.5k
      ndigits = 0;
3935
10.5k
      break;
3936
125k
    case 2:
3937
125k
      leftright = 0;
3938
125k
      ZEND_FALLTHROUGH;
3939
125k
    case 4:
3940
125k
      if (ndigits <= 0)
3941
0
        ndigits = 1;
3942
125k
      ilim = ilim1 = i = ndigits;
3943
125k
      break;
3944
0
    case 3:
3945
0
      leftright = 0;
3946
0
      ZEND_FALLTHROUGH;
3947
0
    case 5:
3948
0
      i = ndigits + k + 1;
3949
0
      ilim = i;
3950
0
      ilim1 = i - 1;
3951
0
      if (i <= 0)
3952
0
        i = 1;
3953
135k
    }
3954
135k
  s = s0 = rv_alloc(i);
3955
3956
#ifdef Honor_FLT_ROUNDS
3957
  if (mode > 1 && Rounding != 1)
3958
    leftright = 0;
3959
#endif
3960
3961
135k
  if (ilim >= 0 && ilim <= Quick_max && try_quick) {
3962
3963
    /* Try to get by with floating-point arithmetic. */
3964
3965
125k
    i = 0;
3966
125k
    dval(&d2) = dval(&u);
3967
125k
    k0 = k;
3968
125k
    ilim0 = ilim;
3969
125k
    ieps = 2; /* conservative */
3970
125k
    if (k > 0) {
3971
40.9k
      ds = tens[k&0xf];
3972
40.9k
      j = k >> 4;
3973
40.9k
      if (j & Bletch) {
3974
        /* prevent overflows */
3975
1.29k
        j &= Bletch - 1;
3976
1.29k
        dval(&u) /= bigtens[n_bigtens-1];
3977
1.29k
        ieps++;
3978
1.29k
        }
3979
123k
      for(; j; j >>= 1, i++)
3980
82.6k
        if (j & 1) {
3981
49.0k
          ieps++;
3982
49.0k
          ds *= bigtens[i];
3983
49.0k
          }
3984
40.9k
      dval(&u) /= ds;
3985
40.9k
      }
3986
84.2k
    else if ((j1 = -k)) {
3987
82.9k
      dval(&u) *= tens[j1 & 0xf];
3988
471k
      for(j = j1 >> 4; j; j >>= 1, i++)
3989
388k
        if (j & 1) {
3990
218k
          ieps++;
3991
218k
          dval(&u) *= bigtens[i];
3992
218k
          }
3993
82.9k
      }
3994
125k
    if (k_check && dval(&u) < 1. && ilim > 0) {
3995
3.98k
      if (ilim1 <= 0)
3996
0
        goto fast_failed;
3997
3.98k
      ilim = ilim1;
3998
3.98k
      k--;
3999
3.98k
      dval(&u) *= 10.;
4000
3.98k
      ieps++;
4001
3.98k
      }
4002
125k
    dval(&eps) = ieps*dval(&u) + 7.;
4003
125k
    word0(&eps) -= (P-1)*Exp_msk1;
4004
125k
    if (ilim == 0) {
4005
0
      S = mhi = 0;
4006
0
      dval(&u) -= 5.;
4007
0
      if (dval(&u) > dval(&eps))
4008
0
        goto one_digit;
4009
0
      if (dval(&u) < -dval(&eps))
4010
0
        goto no_digits;
4011
0
      goto fast_failed;
4012
0
      }
4013
125k
#ifndef No_leftright
4014
125k
    if (leftright) {
4015
      /* Use Steele & White method of only
4016
       * generating digits needed.
4017
       */
4018
0
      dval(&eps) = 0.5/tens[ilim-1] - dval(&eps);
4019
0
#ifdef IEEE_Arith
4020
0
      if (k0 < 0 && j1 >= 307) {
4021
0
        eps1.d = 1.01e256; /* 1.01 allows roundoff in the next few lines */
4022
0
        word0(&eps1) -= Exp_msk1 * (Bias+P-1);
4023
0
        dval(&eps1) *= tens[j1 & 0xf];
4024
0
        for(i = 0, j = (j1-256) >> 4; j; j >>= 1, i++)
4025
0
          if (j & 1)
4026
0
            dval(&eps1) *= bigtens[i];
4027
0
        if (eps.d < eps1.d)
4028
0
          eps.d = eps1.d;
4029
0
        }
4030
0
#endif
4031
0
      for(i = 0;;) {
4032
0
        L = dval(&u);
4033
0
        dval(&u) -= L;
4034
0
        *s++ = '0' + (int)L;
4035
0
        if (1. - dval(&u) < dval(&eps))
4036
0
          goto bump_up;
4037
0
        if (dval(&u) < dval(&eps))
4038
0
          goto ret1;
4039
0
        if (++i >= ilim)
4040
0
          break;
4041
0
        dval(&eps) *= 10.;
4042
0
        dval(&u) *= 10.;
4043
0
        }
4044
0
      }
4045
125k
    else {
4046
125k
#endif
4047
      /* Generate ilim digits, then fix them up. */
4048
125k
      dval(&eps) *= tens[ilim-1];
4049
1.67M
      for(i = 1;; i++, dval(&u) *= 10.) {
4050
1.67M
        L = (Long)(dval(&u));
4051
1.67M
        if (!(dval(&u) -= L))
4052
5.97k
          ilim = i;
4053
1.67M
        *s++ = '0' + (int)L;
4054
1.67M
        if (i == ilim) {
4055
125k
          if (dval(&u) > 0.5 + dval(&eps))
4056
21.6k
            goto bump_up;
4057
103k
          else if (dval(&u) < 0.5 - dval(&eps)) {
4058
503k
            while(*--s == '0');
4059
70.5k
            s++;
4060
70.5k
            goto ret1;
4061
70.5k
            }
4062
33.0k
          break;
4063
125k
          }
4064
1.67M
        }
4065
125k
#ifndef No_leftright
4066
125k
      }
4067
33.0k
#endif
4068
33.0k
 fast_failed:
4069
33.0k
    s = s0;
4070
33.0k
    dval(&u) = dval(&d2);
4071
33.0k
    k = k0;
4072
33.0k
    ilim = ilim0;
4073
33.0k
    }
4074
4075
  /* Do we have a "small" integer? */
4076
4077
43.6k
  if (be >= 0 && k <= Int_max) {
4078
    /* Yes. */
4079
646
    ds = tens[k];
4080
646
    if (ndigits < 0 && ilim <= 0) {
4081
0
      S = mhi = 0;
4082
0
      if (ilim < 0 || dval(&u) <= 5*ds)
4083
0
        goto no_digits;
4084
0
      goto one_digit;
4085
0
      }
4086
9.04k
    for(i = 1;; i++, dval(&u) *= 10.) {
4087
9.04k
      L = (Long)(dval(&u) / ds);
4088
9.04k
      dval(&u) -= L*ds;
4089
#ifdef Check_FLT_ROUNDS
4090
      /* If FLT_ROUNDS == 2, L will usually be high by 1 */
4091
      if (dval(&u) < 0) {
4092
        L--;
4093
        dval(&u) += ds;
4094
        }
4095
#endif
4096
9.04k
      *s++ = '0' + (int)L;
4097
9.04k
      if (!dval(&u)) {
4098
#ifdef SET_INEXACT
4099
        inexact = 0;
4100
#endif
4101
0
        break;
4102
0
        }
4103
9.04k
      if (i == ilim) {
4104
#ifdef Honor_FLT_ROUNDS
4105
        if (mode > 1)
4106
        switch(Rounding) {
4107
          case 0: goto ret1;
4108
          case 2: goto bump_up;
4109
          }
4110
#endif
4111
646
        dval(&u) += dval(&u);
4112
#ifdef ROUND_BIASED
4113
        if (dval(&u) >= ds)
4114
#else
4115
646
        if (dval(&u) > ds || (dval(&u) == ds && L & 1))
4116
71
#endif
4117
71
          {
4118
21.7k
 bump_up:
4119
224k
          while(*--s == '9')
4120
202k
            if (s == s0) {
4121
82
              k++;
4122
82
              *s = '0';
4123
82
              break;
4124
82
              }
4125
21.7k
          ++*s++;
4126
21.7k
          }
4127
22.3k
        break;
4128
646
        }
4129
9.04k
      }
4130
22.3k
    goto ret1;
4131
646
    }
4132
4133
43.0k
  m2 = b2;
4134
43.0k
  m5 = b5;
4135
43.0k
  mhi = mlo = 0;
4136
43.0k
  if (leftright) {
4137
10.5k
    i =
4138
10.5k
#ifndef Sudden_Underflow
4139
10.5k
      denorm ? be + (Bias + (P-1) - 1 + 1) :
4140
10.5k
#endif
4141
#ifdef IBM
4142
      1 + 4*P - 3 - bbits + ((bbits + be - 1) & 3);
4143
#else
4144
10.5k
      1 + P - bbits;
4145
10.5k
#endif
4146
10.5k
    b2 += i;
4147
10.5k
    s2 += i;
4148
10.5k
    mhi = i2b(1);
4149
10.5k
    }
4150
43.0k
  if (m2 > 0 && s2 > 0) {
4151
38.8k
    i = m2 < s2 ? m2 : s2;
4152
38.8k
    b2 -= i;
4153
38.8k
    m2 -= i;
4154
38.8k
    s2 -= i;
4155
38.8k
    }
4156
43.0k
  if (b5 > 0) {
4157
9.48k
    if (leftright) {
4158
0
      if (m5 > 0) {
4159
0
        mhi = pow5mult(mhi, m5);
4160
0
        b1 = mult(mhi, b);
4161
0
        Bfree(b);
4162
0
        b = b1;
4163
0
        }
4164
0
      if ((j = b5 - m5))
4165
0
        b = pow5mult(b, j);
4166
0
      }
4167
9.48k
    else
4168
9.48k
      b = pow5mult(b, b5);
4169
9.48k
    }
4170
43.0k
  S = i2b(1);
4171
43.0k
  if (s5 > 0)
4172
33.5k
    S = pow5mult(S, s5);
4173
4174
  /* Check for special case that d is a normalized power of 2. */
4175
4176
43.0k
  spec_case = 0;
4177
43.0k
  if ((mode < 2 || leftright)
4178
#ifdef Honor_FLT_ROUNDS
4179
      && Rounding == 1
4180
#endif
4181
43.0k
        ) {
4182
10.5k
    if (!word1(&u) && !(word0(&u) & Bndry_mask)
4183
109
#ifndef Sudden_Underflow
4184
109
     && word0(&u) & (Exp_mask & ~Exp_msk1)
4185
10.5k
#endif
4186
10.5k
        ) {
4187
      /* The special case */
4188
109
      b2 += Log2P;
4189
109
      s2 += Log2P;
4190
109
      spec_case = 1;
4191
109
      }
4192
10.5k
    }
4193
4194
  /* Arrange for convenient computation of quotients:
4195
   * shift left if necessary so divisor has 4 leading 0 bits.
4196
   *
4197
   * Perhaps we should just compute leading 28 bits of S once
4198
   * and for all and pass them and a shift to quorem, so it
4199
   * can do shifts and ORs to compute the numerator for q.
4200
   */
4201
43.0k
  i = dshift(S, s2);
4202
43.0k
  b2 += i;
4203
43.0k
  m2 += i;
4204
43.0k
  s2 += i;
4205
43.0k
  if (b2 > 0)
4206
42.4k
    b = lshift(b, b2);
4207
43.0k
  if (s2 > 0)
4208
42.8k
    S = lshift(S, s2);
4209
43.0k
  if (k_check) {
4210
37.3k
    if (cmp(b,S) < 0) {
4211
5.23k
      k--;
4212
5.23k
      b = multadd(b, 10, 0);  /* we botched the k estimate */
4213
5.23k
      if (leftright)
4214
1.44k
        mhi = multadd(mhi, 10, 0);
4215
5.23k
      ilim = ilim1;
4216
5.23k
      }
4217
37.3k
    }
4218
43.0k
  if (ilim <= 0 && (mode == 3 || mode == 5)) {
4219
0
    if (ilim < 0 || cmp(b,S = multadd(S,5,0)) <= 0) {
4220
      /* no digits, fcvt style */
4221
0
 no_digits:
4222
0
      k = -1 - ndigits;
4223
0
      goto ret;
4224
0
      }
4225
0
 one_digit:
4226
0
    *s++ = '1';
4227
0
    k++;
4228
0
    goto ret;
4229
0
    }
4230
43.0k
  if (leftright) {
4231
10.5k
    if (m2 > 0)
4232
10.5k
      mhi = lshift(mhi, m2);
4233
4234
    /* Compute mlo -- check for special case
4235
     * that d is a normalized power of 2.
4236
     */
4237
4238
10.5k
    mlo = mhi;
4239
10.5k
    if (spec_case) {
4240
109
      mhi = Balloc(mhi->k);
4241
109
      Bcopy(mhi, mlo);
4242
109
      mhi = lshift(mhi, Log2P);
4243
109
      }
4244
4245
148k
    for(i = 1;;i++) {
4246
148k
      dig = quorem(b,S) + '0';
4247
      /* Do we yet have the shortest decimal string
4248
       * that will round to d?
4249
       */
4250
148k
      j = cmp(b, mlo);
4251
148k
      delta = diff(S, mhi);
4252
148k
      j1 = delta->sign ? 1 : cmp(b, delta);
4253
148k
      Bfree(delta);
4254
148k
#ifndef ROUND_BIASED
4255
148k
      if (j1 == 0 && mode != 1 && !(word1(&u) & 1)
4256
#ifdef Honor_FLT_ROUNDS
4257
        && Rounding >= 1
4258
#endif
4259
148k
                   ) {
4260
1.01k
        if (dig == '9')
4261
778
          goto round_9_up;
4262
234
        if (j > 0)
4263
234
          dig++;
4264
#ifdef SET_INEXACT
4265
        else if (!b->x[0] && b->wds <= 1)
4266
          inexact = 0;
4267
#endif
4268
234
        *s++ = dig;
4269
234
        goto ret;
4270
1.01k
        }
4271
147k
#endif
4272
147k
      if (j < 0 || (j == 0 && mode != 1
4273
204
#ifndef ROUND_BIASED
4274
204
              && !(word1(&u) & 1)
4275
142k
#endif
4276
142k
          )) {
4277
5.47k
        if (!b->x[0] && b->wds <= 1) {
4278
#ifdef SET_INEXACT
4279
          inexact = 0;
4280
#endif
4281
139
          goto accept_dig;
4282
139
          }
4283
#ifdef Honor_FLT_ROUNDS
4284
        if (mode > 1)
4285
         switch(Rounding) {
4286
          case 0: goto accept_dig;
4287
          case 2: goto keep_dig;
4288
          }
4289
#endif /*Honor_FLT_ROUNDS*/
4290
5.33k
        if (j1 > 0) {
4291
3.23k
          b = lshift(b, 1);
4292
3.23k
          j1 = cmp(b, S);
4293
#ifdef ROUND_BIASED
4294
          if (j1 >= 0 /*)*/
4295
#else
4296
3.23k
          if ((j1 > 0 || (j1 == 0 && dig & 1))
4297
1.67k
#endif
4298
1.67k
          && dig++ == '9')
4299
0
            goto round_9_up;
4300
3.23k
          }
4301
5.47k
 accept_dig:
4302
5.47k
        *s++ = dig;
4303
5.47k
        goto ret;
4304
5.33k
        }
4305
142k
      if (j1 > 0) {
4306
#ifdef Honor_FLT_ROUNDS
4307
        if (!Rounding)
4308
          goto accept_dig;
4309
#endif
4310
4.11k
        if (dig == '9') { /* possible if i == 1 */
4311
790
 round_9_up:
4312
790
          *s++ = '9';
4313
790
          goto roundoff;
4314
12
          }
4315
4.09k
        *s++ = dig + 1;
4316
4.09k
        goto ret;
4317
4.11k
        }
4318
#ifdef Honor_FLT_ROUNDS
4319
 keep_dig:
4320
#endif
4321
138k
      *s++ = dig;
4322
138k
      if (i == ilim)
4323
0
        break;
4324
138k
      b = multadd(b, 10, 0);
4325
138k
      if (mlo == mhi)
4326
136k
        mlo = mhi = multadd(mhi, 10, 0);
4327
1.74k
      else {
4328
1.74k
        mlo = multadd(mlo, 10, 0);
4329
1.74k
        mhi = multadd(mhi, 10, 0);
4330
1.74k
        }
4331
138k
      }
4332
10.5k
    }
4333
32.4k
  else
4334
453k
    for(i = 1;; i++) {
4335
453k
      *s++ = dig = quorem(b,S) + '0';
4336
453k
      if (!b->x[0] && b->wds <= 1) {
4337
#ifdef SET_INEXACT
4338
        inexact = 0;
4339
#endif
4340
0
        goto ret;
4341
0
        }
4342
453k
      if (i >= ilim)
4343
32.4k
        break;
4344
421k
      b = multadd(b, 10, 0);
4345
421k
      }
4346
4347
  /* Round off last digit */
4348
4349
#ifdef Honor_FLT_ROUNDS
4350
  switch(Rounding) {
4351
    case 0: goto trimzeros;
4352
    case 2: goto roundoff;
4353
    }
4354
#endif
4355
32.4k
  b = lshift(b, 1);
4356
32.4k
  j = cmp(b, S);
4357
#ifdef ROUND_BIASED
4358
  if (j >= 0)
4359
#else
4360
32.4k
  if (j > 0 || (j == 0 && dig & 1))
4361
24.5k
#endif
4362
24.5k
    {
4363
25.3k
 roundoff:
4364
26.0k
    while(*--s == '9')
4365
1.48k
      if (s == s0) {
4366
790
        k++;
4367
790
        *s++ = '1';
4368
790
        goto ret;
4369
790
        }
4370
24.5k
    ++*s++;
4371
24.5k
    }
4372
7.88k
  else {
4373
#ifdef Honor_FLT_ROUNDS
4374
 trimzeros:
4375
#endif
4376
15.7k
    while(*--s == '0');
4377
7.88k
    s++;
4378
7.88k
    }
4379
43.0k
 ret:
4380
43.0k
  Bfree(S);
4381
43.0k
  if (mhi) {
4382
10.5k
    if (mlo && mlo != mhi)
4383
109
      Bfree(mlo);
4384
10.5k
    Bfree(mhi);
4385
10.5k
    }
4386
135k
 ret1:
4387
#ifdef SET_INEXACT
4388
  if (inexact) {
4389
    if (!oldinexact) {
4390
      word0(&u) = Exp_1 + (70 << Exp_shift);
4391
      word1(&u) = 0;
4392
      dval(&u) += 1.;
4393
      }
4394
    }
4395
  else if (!oldinexact)
4396
    clear_inexact();
4397
#endif
4398
135k
  Bfree(b);
4399
135k
  *s = 0;
4400
135k
  *decpt = k + 1;
4401
135k
  if (rve)
4402
0
    *rve = s;
4403
135k
  return s0;
4404
43.0k
  }
4405
4406
ZEND_API double zend_hex_strtod(const char *str, const char **endptr)
4407
0
{
4408
0
  const char *s = str;
4409
0
  char c;
4410
0
  int any = 0;
4411
0
  double value = 0;
4412
4413
0
  if (*s == '0' && (s[1] == 'x' || s[1] == 'X')) {
4414
0
    s += 2;
4415
0
  }
4416
4417
0
  while ((c = *s++)) {
4418
0
    if (c >= '0' && c <= '9') {
4419
0
      c -= '0';
4420
0
    } else if (c >= 'A' && c <= 'F') {
4421
0
      c -= 'A' - 10;
4422
0
    } else if (c >= 'a' && c <= 'f') {
4423
0
      c -= 'a' - 10;
4424
0
    } else {
4425
0
      break;
4426
0
    }
4427
4428
0
    any = 1;
4429
0
    value = value * 16 + c;
4430
0
  }
4431
4432
0
  if (endptr != NULL) {
4433
0
    *endptr = any ? s - 1 : str;
4434
0
  }
4435
4436
0
  return value;
4437
0
}
4438
4439
ZEND_API double zend_oct_strtod(const char *str, const char **endptr)
4440
0
{
4441
0
  const char *s = str;
4442
0
  char c;
4443
0
  double value = 0;
4444
0
  int any = 0;
4445
4446
0
  if (str[0] == '\0') {
4447
0
    if (endptr != NULL) {
4448
0
      *endptr = str;
4449
0
    }
4450
0
    return 0.0;
4451
0
  }
4452
4453
0
  while ((c = *s++)) {
4454
0
    if (c < '0' || c > '7') {
4455
      /* break and return the current value if the number is not well-formed
4456
       * that's what Linux strtol() does
4457
       */
4458
0
      break;
4459
0
    }
4460
0
    value = value * 8 + c - '0';
4461
0
    any = 1;
4462
0
  }
4463
4464
0
  if (endptr != NULL) {
4465
0
    *endptr = any ? s - 1 : str;
4466
0
  }
4467
4468
0
  return value;
4469
0
}
4470
4471
ZEND_API double zend_bin_strtod(const char *str, const char **endptr)
4472
0
{
4473
0
  const char *s = str;
4474
0
  char    c;
4475
0
  double    value = 0;
4476
0
  int     any = 0;
4477
4478
0
  if ('0' == *s && ('b' == s[1] || 'B' == s[1])) {
4479
0
    s += 2;
4480
0
  }
4481
4482
0
  while ((c = *s++)) {
4483
    /*
4484
     * Verify the validity of the current character as a base-2 digit.  In
4485
     * the event that an invalid digit is found, halt the conversion and
4486
     * return the portion which has been converted thus far.
4487
     */
4488
0
    if ('0' == c || '1' == c)
4489
0
      value = value * 2 + c - '0';
4490
0
    else
4491
0
      break;
4492
4493
0
    any = 1;
4494
0
  }
4495
4496
  /*
4497
   * As with many strtoX implementations, should the subject sequence be
4498
   * empty or not well-formed, no conversion is performed and the original
4499
   * value of str is stored in *endptr, provided that endptr is not a null
4500
   * pointer.
4501
   */
4502
0
  if (NULL != endptr) {
4503
0
    *endptr = (char *)(any ? s - 1 : str);
4504
0
  }
4505
4506
0
  return value;
4507
0
}
4508
4509
ZEND_API char *zend_gcvt(double value, int ndigit, char dec_point, char exponent, char *buf)
4510
150k
{
4511
150k
  char *digits, *dst, *src;
4512
150k
  int i, decpt;
4513
150k
  bool sign;
4514
150k
  int mode = ndigit >= 0 ? 2 : 0;
4515
4516
150k
  if (mode == 0) {
4517
10.5k
    ndigit = 17;
4518
10.5k
  }
4519
150k
  digits = zend_dtoa(value, mode, ndigit, &decpt, &sign, NULL);
4520
150k
  if (decpt == 9999) {
4521
    /*
4522
     * Infinity or NaN, convert to inf or nan with sign.
4523
     * We assume the buffer is at least ndigit long.
4524
     */
4525
12.4k
    snprintf(buf, ndigit + 1, "%s%s", (sign && *digits == 'I') ? "-" : "", *digits == 'I' ? "INF" : "NAN");
4526
12.4k
    zend_freedtoa(digits);
4527
12.4k
    return (buf);
4528
12.4k
  }
4529
4530
138k
  dst = buf;
4531
138k
  if (sign) {
4532
4.28k
    *dst++ = '-';
4533
4.28k
  }
4534
4535
138k
  if ((decpt >= 0 && decpt > ndigit) || decpt < -3) { /* use E-style */
4536
    /* exponential format (e.g. 1.2345e+13) */
4537
119k
    if (--decpt < 0) {
4538
80.7k
      sign = true;
4539
80.7k
      decpt = -decpt;
4540
80.7k
    } else {
4541
38.3k
      sign = false;
4542
38.3k
    }
4543
119k
    src = digits;
4544
119k
    *dst++ = *src++;
4545
119k
    *dst++ = dec_point;
4546
119k
    if (*src == '\0') {
4547
28.4k
      *dst++ = '0';
4548
90.5k
    } else {
4549
920k
      do {
4550
920k
        *dst++ = *src++;
4551
920k
      } while (*src != '\0');
4552
90.5k
    }
4553
119k
    *dst++ = exponent;
4554
119k
    if (sign) {
4555
80.7k
      *dst++ = '-';
4556
80.7k
    } else {
4557
38.3k
      *dst++ = '+';
4558
38.3k
    }
4559
119k
    if (decpt < 10) {
4560
545
      *dst++ = '0' + decpt;
4561
545
      *dst = '\0';
4562
118k
    } else {
4563
      /* XXX - optimize */
4564
118k
      int n;
4565
336k
      for (n = decpt, i = 0; (n /= 10) != 0; i++);
4566
118k
      dst[i + 1] = '\0';
4567
454k
      while (decpt != 0) {
4568
336k
        dst[i--] = '0' + decpt % 10;
4569
336k
        decpt /= 10;
4570
336k
      }
4571
118k
    }
4572
119k
  } else if (decpt < 0) {
4573
    /* standard format 0. */
4574
612
    *dst++ = '0';   /* zero before decimal point */
4575
612
    *dst++ = dec_point;
4576
1.30k
    do {
4577
1.30k
      *dst++ = '0';
4578
1.30k
    } while (++decpt < 0);
4579
612
    src = digits;
4580
1.83k
    while (*src != '\0') {
4581
1.21k
      *dst++ = *src++;
4582
1.21k
    }
4583
612
    *dst = '\0';
4584
18.4k
  } else {
4585
    /* standard format */
4586
141k
    for (i = 0, src = digits; i < decpt; i++) {
4587
122k
      if (*src != '\0') {
4588
117k
        *dst++ = *src++;
4589
117k
      } else {
4590
5.38k
        *dst++ = '0';
4591
5.38k
      }
4592
122k
    }
4593
18.4k
    if (*src != '\0') {
4594
4.13k
      if (src == digits) {
4595
1.58k
        *dst++ = '0';   /* zero before decimal point */
4596
1.58k
      }
4597
4.13k
      *dst++ = dec_point;
4598
28.8k
      for (i = decpt; digits[i] != '\0'; i++) {
4599
24.7k
        *dst++ = digits[i];
4600
24.7k
      }
4601
4.13k
    }
4602
18.4k
    *dst = '\0';
4603
18.4k
  }
4604
138k
  zend_freedtoa(digits);
4605
138k
  return (buf);
4606
150k
}
4607
4608
static void destroy_freelist(void)
4609
0
{
4610
0
  int i;
4611
0
  Bigint *tmp;
4612
4613
0
  ACQUIRE_DTOA_LOCK(0)
4614
0
  for (i = 0; i <= Kmax; i++) {
4615
0
    Bigint **listp = &freelist[i];
4616
0
    while ((tmp = *listp) != NULL) {
4617
0
      *listp = tmp->next;
4618
0
      FREE(tmp);
4619
0
    }
4620
0
    freelist[i] = NULL;
4621
0
  }
4622
0
  FREE_DTOA_LOCK(0)
4623
0
}
4624
4625
static void free_p5s(void)
4626
0
{
4627
0
  Bigint **listp, *tmp;
4628
4629
0
  ACQUIRE_DTOA_LOCK(1)
4630
0
  listp = &p5s;
4631
0
  while ((tmp = *listp) != NULL) {
4632
0
    *listp = tmp->next;
4633
0
    FREE(tmp);
4634
0
  }
4635
0
  p5s = NULL;
4636
0
  FREE_DTOA_LOCK(1)
4637
0
}