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Created: 2026-07-25 10:20

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/src/binutils-gdb/gas/atof-generic.c
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Count
Source
1
/* atof_generic.c - turn a string of digits into a Flonum
2
   Copyright (C) 1987-2026 Free Software Foundation, Inc.
3
4
   This file is part of GAS, the GNU Assembler.
5
6
   GAS is free software; you can redistribute it and/or modify
7
   it under the terms of the GNU General Public License as published by
8
   the Free Software Foundation; either version 3, or (at your option)
9
   any later version.
10
11
   GAS is distributed in the hope that it will be useful, but WITHOUT
12
   ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
13
   or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public
14
   License for more details.
15
16
   You should have received a copy of the GNU General Public License
17
   along with GAS; see the file COPYING.  If not, write to the Free
18
   Software Foundation, 51 Franklin Street - Fifth Floor, Boston, MA
19
   02110-1301, USA.  */
20
21
#include "as.h"
22
#include "safe-ctype.h"
23
#include <limits.h>
24
25
#ifdef TRACE
26
static void flonum_print (const FLONUM_TYPE *);
27
#endif
28
29
#define ASSUME_DECIMAL_MARK_IS_DOT
30
31
/***********************************************************************\
32
 *                  *
33
 *  Given a string of decimal digits , with optional decimal  *
34
 *  mark and optional decimal exponent (place value) of the   *
35
 *  lowest_order decimal digit: produce a floating point    *
36
 *  number. The number is 'generic' floating point: our   *
37
 *  caller will encode it for a specific machine architecture.  *
38
 *                  *
39
 *  Assumptions             *
40
 *    uses base (radix) 2         *
41
 *    this machine uses 2's complement binary integers  *
42
 *    target flonums use "      "         "       "   *
43
 *    target flonums exponents fit in a long      *
44
 *                  *
45
 \***********************************************************************/
46
47
/*
48
49
  Syntax:
50
51
  <flonum> ::= <optional-sign> <decimal-number> <optional-exponent>
52
  <optional-sign> ::= '+' | '-' | {empty}
53
  <decimal-number> ::= <integer>
54
  | <integer> <radix-character>
55
  | <integer> <radix-character> <integer>
56
  | <radix-character> <integer>
57
58
  <optional-exponent> ::= {empty}
59
  | <exponent-character> <optional-sign> <integer>
60
61
  <integer> ::= <digit> | <digit> <integer>
62
  <digit> ::= '0' | '1' | '2' | '3' | '4' | '5' | '6' | '7' | '8' | '9'
63
  <exponent-character> ::= {one character from "string_of_decimal_exponent_marks"}
64
  <radix-character> ::= {one character from "string_of_decimal_marks"}
65
66
  */
67
68
int
69
atof_generic (/* return pointer to just AFTER number we read.  */
70
        char **address_of_string_pointer,
71
        /* At most one per number.  */
72
        const char *string_of_decimal_marks,
73
        const char *string_of_decimal_exponent_marks,
74
        FLONUM_TYPE *address_of_generic_floating_point_number)
75
3.53k
{
76
3.53k
  int return_value = 0;   /* 0 means OK.  */
77
3.53k
  char *first_digit;
78
3.53k
  unsigned int number_of_digits_before_decimal;
79
3.53k
  unsigned int number_of_digits_after_decimal;
80
3.53k
  unsigned long decimal_exponent;
81
3.53k
  unsigned int number_of_digits_available;
82
3.53k
  char digits_sign_char;
83
84
  /*
85
   * Scan the input string, abstracting (1)digits (2)decimal mark (3) exponent.
86
   * It would be simpler to modify the string, but we don't; just to be nice
87
   * to caller.
88
   * We need to know how many digits we have, so we can allocate space for
89
   * the digits' value.
90
   */
91
92
3.53k
  char *p;
93
3.53k
  char c;
94
3.53k
  int seen_significant_digit;
95
96
3.53k
#ifdef ASSUME_DECIMAL_MARK_IS_DOT
97
3.53k
  gas_assert (string_of_decimal_marks[0] == '.'
98
3.53k
    && string_of_decimal_marks[1] == 0);
99
5.80k
#define IS_DECIMAL_MARK(c)  ((c) == '.')
100
#else
101
#define IS_DECIMAL_MARK(c)  (0 != strchr (string_of_decimal_marks, (c)))
102
#endif
103
104
3.53k
  first_digit = *address_of_string_pointer;
105
3.53k
  c = *first_digit;
106
107
3.53k
  if (c == '-' || c == '+')
108
1.53k
    {
109
1.53k
      digits_sign_char = c;
110
1.53k
      first_digit++;
111
1.53k
    }
112
1.99k
  else
113
1.99k
    digits_sign_char = '+';
114
115
3.53k
  switch (first_digit[0])
116
3.53k
    {
117
0
    case 's':
118
2
    case 'S':
119
13
    case 'q':
120
13
    case 'Q':
121
13
      if (!strncasecmp ("nan", first_digit + 1, 3))
122
11
  {
123
11
    address_of_generic_floating_point_number->sign =
124
11
      digits_sign_char == '+' ? TOUPPER (first_digit[0])
125
11
            : TOLOWER (first_digit[0]);
126
11
    address_of_generic_floating_point_number->exponent = 0;
127
11
    address_of_generic_floating_point_number->leader =
128
11
      address_of_generic_floating_point_number->low;
129
11
    *address_of_string_pointer = first_digit + 4;
130
11
    return 0;
131
11
  }
132
2
      break;
133
134
4
    case 'n':
135
16
    case 'N':
136
16
      if (!strncasecmp ("nan", first_digit, 3))
137
0
  {
138
0
    address_of_generic_floating_point_number->sign =
139
0
      digits_sign_char == '+' ? 0 : 'q';
140
0
    address_of_generic_floating_point_number->exponent = 0;
141
0
    address_of_generic_floating_point_number->leader =
142
0
      address_of_generic_floating_point_number->low;
143
0
    *address_of_string_pointer = first_digit + 3;
144
0
    return 0;
145
0
  }
146
16
      break;
147
148
1.06k
    case 'i':
149
1.06k
    case 'I':
150
1.06k
      if (!strncasecmp ("inf", first_digit, 3))
151
1.03k
  {
152
1.03k
    address_of_generic_floating_point_number->sign =
153
1.03k
      digits_sign_char == '+' ? 'P' : 'N';
154
1.03k
    address_of_generic_floating_point_number->exponent = 0;
155
1.03k
    address_of_generic_floating_point_number->leader =
156
1.03k
      address_of_generic_floating_point_number->low;
157
158
1.03k
    first_digit += 3;
159
1.03k
    if (!strncasecmp ("inity", first_digit, 5))
160
0
      first_digit += 5;
161
162
1.03k
    *address_of_string_pointer = first_digit;
163
164
1.03k
    return 0;
165
1.03k
  }
166
30
      break;
167
3.53k
    }
168
169
2.48k
  number_of_digits_before_decimal = 0;
170
2.48k
  number_of_digits_after_decimal = 0;
171
2.48k
  decimal_exponent = 0;
172
2.48k
  seen_significant_digit = 0;
173
2.48k
  for (p = first_digit;
174
3.34k
       (((c = *p) != '\0')
175
3.33k
  && (!c || !IS_DECIMAL_MARK (c))
176
3.01k
  && (!c || !strchr (string_of_decimal_exponent_marks, c)));
177
2.48k
       p++)
178
2.99k
    {
179
2.99k
      if (ISDIGIT (c))
180
856
  {
181
856
    if (seen_significant_digit || c > '0')
182
845
      {
183
845
        ++number_of_digits_before_decimal;
184
845
        seen_significant_digit = 1;
185
845
      }
186
11
    else
187
11
      {
188
11
        first_digit++;
189
11
      }
190
856
  }
191
2.14k
      else
192
2.14k
  {
193
2.14k
    break;    /* p -> char after pre-decimal digits.  */
194
2.14k
  }
195
2.99k
    }        /* For each digit before decimal mark.  */
196
197
2.48k
#ifndef OLD_FLOAT_READS
198
  /* Ignore trailing 0's after the decimal point.  The original code here
199
     (ifdef'd out) does not do this, and numbers like
200
      4.29496729600000000000e+09  (2**31)
201
     come out inexact for some reason related to length of the digit
202
     string.  */
203
204
  /* The case number_of_digits_before_decimal = 0 is handled for
205
     deleting zeros after decimal.  In this case the decimal mark and
206
     the first zero digits after decimal mark are skipped.  */
207
2.48k
  seen_significant_digit = 0;
208
2.48k
  unsigned long subtract_decimal_exponent = 0;
209
210
2.48k
  if (c && IS_DECIMAL_MARK (c))
211
317
    {
212
317
      unsigned int zeros = 0; /* Length of current string of zeros.  */
213
214
317
      if (number_of_digits_before_decimal == 0)
215
  /* Skip decimal mark.  */
216
307
  first_digit++;
217
218
1.93k
      for (p++; (c = *p) && ISDIGIT (c); p++)
219
1.61k
  {
220
1.61k
    if (c == '0')
221
999
      {
222
999
        if (number_of_digits_before_decimal == 0
223
999
      && !seen_significant_digit)
224
899
    {
225
      /* Skip '0' and the decimal mark.  */
226
899
      first_digit++;
227
899
      subtract_decimal_exponent--;
228
899
    }
229
100
        else
230
100
    zeros++;
231
999
      }
232
615
    else
233
615
      {
234
615
        seen_significant_digit = 1;
235
615
        number_of_digits_after_decimal += 1 + zeros;
236
615
        zeros = 0;
237
615
      }
238
1.61k
  }
239
317
    }
240
#else
241
  if (c && IS_DECIMAL_MARK (c))
242
    {
243
      for (p++;
244
     (((c = *p) != '\0')
245
      && (!c || !strchr (string_of_decimal_exponent_marks, c)));
246
     p++)
247
  {
248
    if (ISDIGIT (c))
249
      {
250
        /* This may be retracted below.  */
251
        number_of_digits_after_decimal++;
252
253
        if ( /* seen_significant_digit || */ c > '0')
254
    {
255
      seen_significant_digit = true;
256
    }
257
      }
258
    else
259
      {
260
        if (!seen_significant_digit)
261
    {
262
      number_of_digits_after_decimal = 0;
263
    }
264
        break;
265
      }
266
  }     /* For each digit after decimal mark.  */
267
    }
268
269
  while (number_of_digits_after_decimal
270
   && first_digit[number_of_digits_before_decimal
271
      + number_of_digits_after_decimal] == '0')
272
    --number_of_digits_after_decimal;
273
#endif
274
275
2.48k
  if (flag_m68k_mri)
276
0
    {
277
0
      while (c == '_')
278
0
  c = *++p;
279
0
    }
280
2.48k
  if (c && strchr (string_of_decimal_exponent_marks, c))
281
271
    {
282
271
      char digits_exponent_sign_char;
283
284
271
      c = *++p;
285
271
      if (flag_m68k_mri)
286
0
  {
287
0
    while (c == '_')
288
0
      c = *++p;
289
0
  }
290
271
      if (c && strchr ("+-", c))
291
73
  {
292
73
    digits_exponent_sign_char = c;
293
73
    c = *++p;
294
73
  }
295
198
      else
296
198
  {
297
198
    digits_exponent_sign_char = '+';
298
198
  }
299
300
1.63k
      for (; (c); c = *++p)
301
1.58k
  {
302
1.58k
    if (ISDIGIT (c))
303
1.36k
      {
304
1.36k
        if (decimal_exponent > LONG_MAX / 10
305
1.30k
      || (decimal_exponent == LONG_MAX / 10
306
12
          && c > '0' + (LONG_MAX - LONG_MAX / 10 * 10)))
307
56
    return_value = ERROR_EXPONENT_OVERFLOW;
308
1.36k
        decimal_exponent = decimal_exponent * 10 + c - '0';
309
1.36k
      }
310
226
    else
311
226
      {
312
226
        break;
313
226
      }
314
1.58k
  }
315
316
271
      if (digits_exponent_sign_char == '-')
317
73
  {
318
73
    decimal_exponent = -decimal_exponent;
319
73
  }
320
271
    }
321
322
2.48k
#ifndef OLD_FLOAT_READS
323
  /* Subtract_decimal_exponent != 0 when number_of_digits_before_decimal = 0
324
     and first digit after decimal is '0'.  */
325
2.48k
  decimal_exponent += subtract_decimal_exponent;
326
2.48k
#endif
327
328
2.48k
  *address_of_string_pointer = p;
329
330
2.48k
  number_of_digits_available =
331
2.48k
    number_of_digits_before_decimal + number_of_digits_after_decimal;
332
2.48k
  if (number_of_digits_available == 0)
333
1.66k
    {
334
1.66k
      address_of_generic_floating_point_number->exponent = 0; /* Not strictly necessary */
335
1.66k
      address_of_generic_floating_point_number->leader
336
1.66k
  = -1 + address_of_generic_floating_point_number->low;
337
1.66k
      address_of_generic_floating_point_number->sign = digits_sign_char;
338
      /* We have just concocted (+/-)0.0E0 */
339
340
1.66k
    }
341
823
  else
342
823
    {
343
823
      int count;    /* Number of useful digits left to scan.  */
344
345
823
      LITTLENUM_TYPE *temporary_binary_low = NULL;
346
823
      LITTLENUM_TYPE *power_binary_low = NULL;
347
823
      LITTLENUM_TYPE *digits_binary_low;
348
823
      unsigned int precision;
349
823
      unsigned int maximum_useful_digits;
350
823
      unsigned int number_of_digits_to_use;
351
823
      unsigned int more_than_enough_bits_for_digits;
352
823
      unsigned int more_than_enough_littlenums_for_digits;
353
823
      unsigned int size_of_digits_in_littlenums;
354
823
      FLONUM_TYPE power_of_10_flonum;
355
823
      FLONUM_TYPE digits_flonum;
356
357
823
      precision = (address_of_generic_floating_point_number->high
358
823
       - address_of_generic_floating_point_number->low
359
823
       + 1);  /* Number of destination littlenums.  */
360
361
      /* precision includes two littlenums worth of guard bits,
362
   so this gives us 10 decimal guard digits here.  */
363
823
      maximum_useful_digits = (precision
364
823
             * LITTLENUM_NUMBER_OF_BITS
365
823
             * 1000000 / 3321928
366
823
             + 1);  /* round up.  */
367
368
823
      if (number_of_digits_available > maximum_useful_digits)
369
11
  {
370
11
    number_of_digits_to_use = maximum_useful_digits;
371
11
  }
372
812
      else
373
812
  {
374
812
    number_of_digits_to_use = number_of_digits_available;
375
812
  }
376
377
823
      decimal_exponent += number_of_digits_before_decimal;
378
823
      decimal_exponent -= number_of_digits_to_use;
379
380
823
      more_than_enough_bits_for_digits
381
823
  = (number_of_digits_to_use * 3321928 / 1000000 + 1);
382
383
823
      more_than_enough_littlenums_for_digits
384
823
  = (more_than_enough_bits_for_digits
385
823
     / LITTLENUM_NUMBER_OF_BITS)
386
823
  + 2;
387
388
      /* Compute (digits) part. In "12.34E56" this is the "1234" part.
389
   Arithmetic is exact here. If no digits are supplied then this
390
   part is a 0 valued binary integer.  Allocate room to build up
391
   the binary number as littlenums.  We want this memory to
392
   disappear when we leave this function.  Assume no alignment
393
   problems => (room for n objects) == n * (room for 1
394
   object).  */
395
396
823
      size_of_digits_in_littlenums = more_than_enough_littlenums_for_digits;
397
398
823
      digits_binary_low = xcalloc (size_of_digits_in_littlenums,
399
823
           sizeof (LITTLENUM_TYPE));
400
401
      /* Digits_binary_low[] is allocated and zeroed.  */
402
403
      /*
404
       * Parse the decimal digits as if * digits_low was in the units position.
405
       * Emit a binary number into digits_binary_low[].
406
       *
407
       * Use a large-precision version of:
408
       * (((1st-digit) * 10 + 2nd-digit) * 10 + 3rd-digit ...) * 10 + last-digit
409
       */
410
411
2.28k
      for (p = first_digit, count = number_of_digits_to_use; count; p++, --count)
412
1.46k
  {
413
1.46k
    c = *p;
414
1.46k
    if (ISDIGIT (c))
415
1.45k
      {
416
        /*
417
         * Multiply by 10. Assume can never overflow.
418
         * Add this digit to digits_binary_low[].
419
         */
420
421
1.45k
        long carry;
422
1.45k
        LITTLENUM_TYPE *littlenum_pointer;
423
1.45k
        LITTLENUM_TYPE *littlenum_limit;
424
425
1.45k
        littlenum_limit = digits_binary_low
426
1.45k
    + more_than_enough_littlenums_for_digits
427
1.45k
    - 1;
428
429
1.45k
        carry = c - '0';  /* char -> binary */
430
431
1.45k
        for (littlenum_pointer = digits_binary_low;
432
6.16k
       littlenum_pointer <= littlenum_limit;
433
4.71k
       littlenum_pointer++)
434
4.71k
    {
435
4.71k
      long work;
436
437
4.71k
      work = carry + 10 * (long) (*littlenum_pointer);
438
4.71k
      *littlenum_pointer = work & LITTLENUM_MASK;
439
4.71k
      carry = work >> LITTLENUM_NUMBER_OF_BITS;
440
4.71k
    }
441
442
1.45k
        if (carry != 0)
443
0
    {
444
      /*
445
       * We have a GROSS internal error.
446
       * This should never happen.
447
       */
448
0
      as_fatal (_("failed sanity check"));
449
0
    }
450
1.45k
      }
451
10
    else
452
10
      {
453
10
        ++count;    /* '.' doesn't alter digits used count.  */
454
10
      }
455
1.46k
  }
456
457
      /*
458
       * Digits_binary_low[] properly encodes the value of the digits.
459
       * Forget about any high-order littlenums that are 0.
460
       */
461
1.67k
      while (digits_binary_low[size_of_digits_in_littlenums - 1] == 0
462
856
       && size_of_digits_in_littlenums >= 2)
463
856
  size_of_digits_in_littlenums--;
464
465
823
      digits_flonum.low = digits_binary_low;
466
823
      digits_flonum.high = digits_binary_low + size_of_digits_in_littlenums - 1;
467
823
      digits_flonum.leader = digits_flonum.high;
468
823
      digits_flonum.exponent = 0;
469
      /*
470
       * The value of digits_flonum . sign should not be important.
471
       * We have already decided the output's sign.
472
       * We trust that the sign won't influence the other parts of the number!
473
       * So we give it a value for these reasons:
474
       * (1) courtesy to humans reading/debugging
475
       *     these numbers so they don't get excited about strange values
476
       * (2) in future there may be more meaning attached to sign,
477
       *     and what was
478
       *     harmless noise may become disruptive, ill-conditioned (or worse)
479
       *     input.
480
       */
481
823
      digits_flonum.sign = '+';
482
483
823
      {
484
  /*
485
   * Compute the mantissa (& exponent) of the power of 10.
486
   * If successful, then multiply the power of 10 by the digits
487
   * giving return_binary_mantissa and return_binary_exponent.
488
   */
489
490
823
  int decimal_exponent_is_negative;
491
  /* This refers to the "-56" in "12.34E-56".  */
492
  /* FALSE: decimal_exponent is positive (or 0) */
493
  /* TRUE:  decimal_exponent is negative */
494
823
  FLONUM_TYPE temporary_flonum;
495
823
  unsigned int size_of_power_in_littlenums;
496
823
  unsigned int size_of_power_in_chars;
497
498
823
  size_of_power_in_littlenums = precision;
499
  /* Precision has a built-in fudge factor so we get a few guard bits.  */
500
501
823
  decimal_exponent_is_negative = (long) decimal_exponent < 0;
502
823
  if (decimal_exponent_is_negative)
503
61
    {
504
61
      decimal_exponent = -decimal_exponent;
505
61
    }
506
507
  /* From now on: the decimal exponent is > 0. Its sign is separate.  */
508
509
823
  size_of_power_in_chars = (size_of_power_in_littlenums
510
823
          * sizeof (LITTLENUM_TYPE)) + 2;
511
512
823
  power_binary_low = xmalloc (size_of_power_in_chars);
513
823
  temporary_binary_low = xmalloc (size_of_power_in_chars);
514
515
823
  memset (power_binary_low, '\0', size_of_power_in_chars);
516
823
  *power_binary_low = 1;
517
823
  power_of_10_flonum.exponent = 0;
518
823
  power_of_10_flonum.low = power_binary_low;
519
823
  power_of_10_flonum.leader = power_binary_low;
520
823
  power_of_10_flonum.high = power_binary_low + size_of_power_in_littlenums - 1;
521
823
  power_of_10_flonum.sign = '+';
522
823
  temporary_flonum.low = temporary_binary_low;
523
823
  temporary_flonum.high = temporary_binary_low + size_of_power_in_littlenums - 1;
524
  /*
525
   * (power) == 1.
526
   * Space for temporary_flonum allocated.
527
   */
528
529
  /*
530
   * ...
531
   *
532
   * WHILE  more bits
533
   * DO find next bit (with place value)
534
   *  multiply into power mantissa
535
   * OD
536
   */
537
823
  {
538
823
    int place_number_limit;
539
    /* Any 10^(2^n) whose "n" exceeds this */
540
    /* value will fall off the end of */
541
    /* flonum_XXXX_powers_of_ten[].  */
542
823
    int place_number;
543
823
    const FLONUM_TYPE *multiplicand;  /* -> 10^(2^n) */
544
545
823
    place_number_limit = table_size_of_flonum_powers_of_ten;
546
547
823
    multiplicand = (decimal_exponent_is_negative
548
823
        ? flonum_negative_powers_of_ten
549
823
        : flonum_positive_powers_of_ten);
550
551
823
    for (place_number = 1;/* Place value of this bit of exponent.  */
552
1.99k
         decimal_exponent;/* Quit when no more 1 bits in exponent.  */
553
1.17k
         decimal_exponent >>= 1, place_number++)
554
1.17k
      {
555
1.17k
        if (decimal_exponent & 1)
556
762
    {
557
762
      if (place_number > place_number_limit)
558
26
        {
559
          /* The decimal exponent has a magnitude so great
560
       that our tables can't help us fragment it.
561
       Although this routine is in error because it
562
       can't imagine a number that big, signal an
563
       error as if it is the user's fault for
564
       presenting such a big number.  */
565
26
          return_value = ERROR_EXPONENT_OVERFLOW;
566
          /* quit out of loop gracefully */
567
26
          decimal_exponent = 0;
568
26
        }
569
736
      else
570
736
        {
571
#ifdef TRACE
572
          printf ("before multiply, place_number = %d., power_of_10_flonum:\n",
573
            place_number);
574
575
          flonum_print (&power_of_10_flonum);
576
          (void) putchar ('\n');
577
#endif
578
#ifdef TRACE
579
          printf ("multiplier:\n");
580
          flonum_print (multiplicand + place_number);
581
          (void) putchar ('\n');
582
#endif
583
736
          flonum_multip (multiplicand + place_number,
584
736
             &power_of_10_flonum, &temporary_flonum);
585
#ifdef TRACE
586
          printf ("after multiply:\n");
587
          flonum_print (&temporary_flonum);
588
          (void) putchar ('\n');
589
#endif
590
736
          flonum_copy (&temporary_flonum, &power_of_10_flonum);
591
#ifdef TRACE
592
          printf ("after copy:\n");
593
          flonum_print (&power_of_10_flonum);
594
          (void) putchar ('\n');
595
#endif
596
736
        } /* If this bit of decimal_exponent was computable.*/
597
762
    } /* If this bit of decimal_exponent was set.  */
598
1.17k
      } /* For each bit of binary representation of exponent */
599
#ifdef TRACE
600
    printf ("after computing power_of_10_flonum:\n");
601
    flonum_print (&power_of_10_flonum);
602
    (void) putchar ('\n');
603
#endif
604
823
  }
605
823
      }
606
607
      /*
608
       * power_of_10_flonum is power of ten in binary (mantissa) , (exponent).
609
       * It may be the number 1, in which case we don't NEED to multiply.
610
       *
611
       * Multiply (decimal digits) by power_of_10_flonum.
612
       */
613
614
823
      flonum_multip (&power_of_10_flonum, &digits_flonum, address_of_generic_floating_point_number);
615
      /* Assert sign of the number we made is '+'.  */
616
823
      address_of_generic_floating_point_number->sign = digits_sign_char;
617
618
823
      free (temporary_binary_low);
619
823
      free (power_binary_low);
620
823
      free (digits_binary_low);
621
823
    }
622
2.48k
  return return_value;
623
2.48k
}
624
625
#ifdef TRACE
626
static void
627
flonum_print (const FLONUM_TYPE *f)
628
{
629
  LITTLENUM_TYPE *lp;
630
  char littlenum_format[10];
631
  sprintf (littlenum_format, " %%0%dx", sizeof (LITTLENUM_TYPE) * 2);
632
#define print_littlenum(LP) (printf (littlenum_format, LP))
633
  printf ("flonum @%p %c e%ld", f, f->sign, f->exponent);
634
  if (f->low < f->high)
635
    for (lp = f->high; lp >= f->low; lp--)
636
      print_littlenum (*lp);
637
  else
638
    for (lp = f->low; lp <= f->high; lp++)
639
      print_littlenum (*lp);
640
  printf ("\n");
641
  fflush (stdout);
642
}
643
#endif
644
645
/* end of atof_generic.c */