floatformat.c revision 1.4 1 /* IEEE floating point support routines, for GDB, the GNU Debugger.
2 Copyright 1991, 1994, 1999, 2000, 2003, 2005, 2006, 2010, 2012
3 Free Software Foundation, Inc.
4
5 This file is part of GDB.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 2 of the License, or
10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with this program; if not, write to the Free Software
19 Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston, MA 02110-1301, USA. */
20
21 /* This is needed to pick up the NAN macro on some systems. */
22 #define _GNU_SOURCE
23
24 #ifdef HAVE_CONFIG_H
25 #include "config.h"
26 #endif
27
28 #include <math.h>
29
30 #ifdef HAVE_STRING_H
31 #include <string.h>
32 #endif
33
34 /* On some platforms, <float.h> provides DBL_QNAN. */
35 #ifdef STDC_HEADERS
36 #include <float.h>
37 #endif
38
39 #include "ansidecl.h"
40 #include "libiberty.h"
41 #include "floatformat.h"
42
43 #ifndef INFINITY
44 #ifdef HUGE_VAL
45 #define INFINITY HUGE_VAL
46 #else
47 #define INFINITY (1.0 / 0.0)
48 #endif
49 #endif
50
51 #ifndef NAN
52 #ifdef DBL_QNAN
53 #define NAN DBL_QNAN
54 #else
55 #define NAN (0.0 / 0.0)
56 #endif
57 #endif
58
59 static int mant_bits_set (const struct floatformat *, const unsigned char *);
60 static unsigned long get_field (const unsigned char *,
61 enum floatformat_byteorders,
62 unsigned int,
63 unsigned int,
64 unsigned int);
65 static int floatformat_always_valid (const struct floatformat *fmt,
66 const void *from);
67
68 static int
69 floatformat_always_valid (const struct floatformat *fmt ATTRIBUTE_UNUSED,
70 const void *from ATTRIBUTE_UNUSED)
71 {
72 return 1;
73 }
74
75 /* The odds that CHAR_BIT will be anything but 8 are low enough that I'm not
76 going to bother with trying to muck around with whether it is defined in
77 a system header, what we do if not, etc. */
78 #define FLOATFORMAT_CHAR_BIT 8
79
80 /* floatformats for IEEE half, single and double, big and little endian. */
81 const struct floatformat floatformat_ieee_half_big =
82 {
83 floatformat_big, 16, 0, 1, 5, 15, 31, 6, 10,
84 floatformat_intbit_no,
85 "floatformat_ieee_half_big",
86 floatformat_always_valid,
87 NULL
88 };
89 const struct floatformat floatformat_ieee_half_little =
90 {
91 floatformat_little, 16, 0, 1, 5, 15, 31, 6, 10,
92 floatformat_intbit_no,
93 "floatformat_ieee_half_little",
94 floatformat_always_valid,
95 NULL
96 };
97 const struct floatformat floatformat_ieee_single_big =
98 {
99 floatformat_big, 32, 0, 1, 8, 127, 255, 9, 23,
100 floatformat_intbit_no,
101 "floatformat_ieee_single_big",
102 floatformat_always_valid,
103 NULL
104 };
105 const struct floatformat floatformat_ieee_single_little =
106 {
107 floatformat_little, 32, 0, 1, 8, 127, 255, 9, 23,
108 floatformat_intbit_no,
109 "floatformat_ieee_single_little",
110 floatformat_always_valid,
111 NULL
112 };
113 const struct floatformat floatformat_ieee_double_big =
114 {
115 floatformat_big, 64, 0, 1, 11, 1023, 2047, 12, 52,
116 floatformat_intbit_no,
117 "floatformat_ieee_double_big",
118 floatformat_always_valid,
119 NULL
120 };
121 const struct floatformat floatformat_ieee_double_little =
122 {
123 floatformat_little, 64, 0, 1, 11, 1023, 2047, 12, 52,
124 floatformat_intbit_no,
125 "floatformat_ieee_double_little",
126 floatformat_always_valid,
127 NULL
128 };
129
130 /* floatformat for IEEE double, little endian byte order, with big endian word
131 ordering, as on the ARM. */
132
133 const struct floatformat floatformat_ieee_double_littlebyte_bigword =
134 {
135 floatformat_littlebyte_bigword, 64, 0, 1, 11, 1023, 2047, 12, 52,
136 floatformat_intbit_no,
137 "floatformat_ieee_double_littlebyte_bigword",
138 floatformat_always_valid,
139 NULL
140 };
141
142 /* floatformat for VAX. Not quite IEEE, but close enough. */
143
144 const struct floatformat floatformat_vax_f =
145 {
146 floatformat_vax, 32, 0, 1, 8, 129, 0, 9, 23,
147 floatformat_intbit_no,
148 "floatformat_vax_f",
149 floatformat_always_valid,
150 NULL
151 };
152 const struct floatformat floatformat_vax_d =
153 {
154 floatformat_vax, 64, 0, 1, 8, 129, 0, 9, 55,
155 floatformat_intbit_no,
156 "floatformat_vax_d",
157 floatformat_always_valid,
158 NULL
159 };
160 const struct floatformat floatformat_vax_g =
161 {
162 floatformat_vax, 64, 0, 1, 11, 1025, 0, 12, 52,
163 floatformat_intbit_no,
164 "floatformat_vax_g",
165 floatformat_always_valid,
166 NULL
167 };
168
169 static int floatformat_i387_ext_is_valid (const struct floatformat *fmt,
170 const void *from);
171
172 static int
173 floatformat_i387_ext_is_valid (const struct floatformat *fmt, const void *from)
174 {
175 /* In the i387 double-extended format, if the exponent is all ones,
176 then the integer bit must be set. If the exponent is neither 0
177 nor ~0, the intbit must also be set. Only if the exponent is
178 zero can it be zero, and then it must be zero. */
179 unsigned long exponent, int_bit;
180 const unsigned char *ufrom = (const unsigned char *) from;
181
182 exponent = get_field (ufrom, fmt->byteorder, fmt->totalsize,
183 fmt->exp_start, fmt->exp_len);
184 int_bit = get_field (ufrom, fmt->byteorder, fmt->totalsize,
185 fmt->man_start, 1);
186
187 if ((exponent == 0) != (int_bit == 0))
188 return 0;
189 else
190 return 1;
191 }
192
193 const struct floatformat floatformat_i387_ext =
194 {
195 floatformat_little, 80, 0, 1, 15, 0x3fff, 0x7fff, 16, 64,
196 floatformat_intbit_yes,
197 "floatformat_i387_ext",
198 floatformat_i387_ext_is_valid,
199 NULL
200 };
201 const struct floatformat floatformat_m68881_ext =
202 {
203 /* Note that the bits from 16 to 31 are unused. */
204 floatformat_big, 96, 0, 1, 15, 0x3fff, 0x7fff, 32, 64,
205 floatformat_intbit_yes,
206 "floatformat_m68881_ext",
207 floatformat_always_valid,
208 NULL
209 };
210 const struct floatformat floatformat_i960_ext =
211 {
212 /* Note that the bits from 0 to 15 are unused. */
213 floatformat_little, 96, 16, 17, 15, 0x3fff, 0x7fff, 32, 64,
214 floatformat_intbit_yes,
215 "floatformat_i960_ext",
216 floatformat_always_valid,
217 NULL
218 };
219 const struct floatformat floatformat_m88110_ext =
220 {
221 floatformat_big, 80, 0, 1, 15, 0x3fff, 0x7fff, 16, 64,
222 floatformat_intbit_yes,
223 "floatformat_m88110_ext",
224 floatformat_always_valid,
225 NULL
226 };
227 const struct floatformat floatformat_m88110_harris_ext =
228 {
229 /* Harris uses raw format 128 bytes long, but the number is just an ieee
230 double, and the last 64 bits are wasted. */
231 floatformat_big,128, 0, 1, 11, 0x3ff, 0x7ff, 12, 52,
232 floatformat_intbit_no,
233 "floatformat_m88110_ext_harris",
234 floatformat_always_valid,
235 NULL
236 };
237 const struct floatformat floatformat_arm_ext_big =
238 {
239 /* Bits 1 to 16 are unused. */
240 floatformat_big, 96, 0, 17, 15, 0x3fff, 0x7fff, 32, 64,
241 floatformat_intbit_yes,
242 "floatformat_arm_ext_big",
243 floatformat_always_valid,
244 NULL
245 };
246 const struct floatformat floatformat_arm_ext_littlebyte_bigword =
247 {
248 /* Bits 1 to 16 are unused. */
249 floatformat_littlebyte_bigword, 96, 0, 17, 15, 0x3fff, 0x7fff, 32, 64,
250 floatformat_intbit_yes,
251 "floatformat_arm_ext_littlebyte_bigword",
252 floatformat_always_valid,
253 NULL
254 };
255 const struct floatformat floatformat_ia64_spill_big =
256 {
257 floatformat_big, 128, 0, 1, 17, 65535, 0x1ffff, 18, 64,
258 floatformat_intbit_yes,
259 "floatformat_ia64_spill_big",
260 floatformat_always_valid,
261 NULL
262 };
263 const struct floatformat floatformat_ia64_spill_little =
264 {
265 floatformat_little, 128, 0, 1, 17, 65535, 0x1ffff, 18, 64,
266 floatformat_intbit_yes,
267 "floatformat_ia64_spill_little",
268 floatformat_always_valid,
269 NULL
270 };
271 const struct floatformat floatformat_ia64_quad_big =
272 {
273 floatformat_big, 128, 0, 1, 15, 16383, 0x7fff, 16, 112,
274 floatformat_intbit_no,
275 "floatformat_ia64_quad_big",
276 floatformat_always_valid,
277 NULL
278 };
279 const struct floatformat floatformat_ia64_quad_little =
280 {
281 floatformat_little, 128, 0, 1, 15, 16383, 0x7fff, 16, 112,
282 floatformat_intbit_no,
283 "floatformat_ia64_quad_little",
284 floatformat_always_valid,
285 NULL
286 };
287
288 static int
289 floatformat_ibm_long_double_is_valid (const struct floatformat *fmt,
290 const void *from)
291 {
292 const unsigned char *ufrom = (const unsigned char *) from;
293 const struct floatformat *hfmt = fmt->split_half;
294 long top_exp, bot_exp;
295 int top_nan = 0;
296
297 top_exp = get_field (ufrom, hfmt->byteorder, hfmt->totalsize,
298 hfmt->exp_start, hfmt->exp_len);
299 bot_exp = get_field (ufrom + 8, hfmt->byteorder, hfmt->totalsize,
300 hfmt->exp_start, hfmt->exp_len);
301
302 if ((unsigned long) top_exp == hfmt->exp_nan)
303 top_nan = mant_bits_set (hfmt, ufrom);
304
305 /* A NaN is valid with any low part. */
306 if (top_nan)
307 return 1;
308
309 /* An infinity, zero or denormal requires low part 0 (positive or
310 negative). */
311 if ((unsigned long) top_exp == hfmt->exp_nan || top_exp == 0)
312 {
313 if (bot_exp != 0)
314 return 0;
315
316 return !mant_bits_set (hfmt, ufrom + 8);
317 }
318
319 /* The top part is now a finite normal value. The long double value
320 is the sum of the two parts, and the top part must equal the
321 result of rounding the long double value to nearest double. Thus
322 the bottom part must be <= 0.5ulp of the top part in absolute
323 value, and if it is < 0.5ulp then the long double is definitely
324 valid. */
325 if (bot_exp < top_exp - 53)
326 return 1;
327 if (bot_exp > top_exp - 53 && bot_exp != 0)
328 return 0;
329 if (bot_exp == 0)
330 {
331 /* The bottom part is 0 or denormal. Determine which, and if
332 denormal the first two set bits. */
333 int first_bit = -1, second_bit = -1, cur_bit;
334 for (cur_bit = 0; (unsigned int) cur_bit < hfmt->man_len; cur_bit++)
335 if (get_field (ufrom + 8, hfmt->byteorder, hfmt->totalsize,
336 hfmt->man_start + cur_bit, 1))
337 {
338 if (first_bit == -1)
339 first_bit = cur_bit;
340 else
341 {
342 second_bit = cur_bit;
343 break;
344 }
345 }
346 /* Bottom part 0 is OK. */
347 if (first_bit == -1)
348 return 1;
349 /* The real exponent of the bottom part is -first_bit. */
350 if (-first_bit < top_exp - 53)
351 return 1;
352 if (-first_bit > top_exp - 53)
353 return 0;
354 /* The bottom part is at least 0.5ulp of the top part. For this
355 to be OK, the bottom part must be exactly 0.5ulp (i.e. no
356 more bits set) and the top part must have last bit 0. */
357 if (second_bit != -1)
358 return 0;
359 return !get_field (ufrom, hfmt->byteorder, hfmt->totalsize,
360 hfmt->man_start + hfmt->man_len - 1, 1);
361 }
362 else
363 {
364 /* The bottom part is at least 0.5ulp of the top part. For this
365 to be OK, it must be exactly 0.5ulp (i.e. no explicit bits
366 set) and the top part must have last bit 0. */
367 if (get_field (ufrom, hfmt->byteorder, hfmt->totalsize,
368 hfmt->man_start + hfmt->man_len - 1, 1))
369 return 0;
370 return !mant_bits_set (hfmt, ufrom + 8);
371 }
372 }
373
374 const struct floatformat floatformat_ibm_long_double_big =
375 {
376 floatformat_big, 128, 0, 1, 11, 1023, 2047, 12, 52,
377 floatformat_intbit_no,
378 "floatformat_ibm_long_double_big",
379 floatformat_ibm_long_double_is_valid,
380 &floatformat_ieee_double_big
381 };
382
383 const struct floatformat floatformat_ibm_long_double_little =
384 {
385 floatformat_little, 128, 0, 1, 11, 1023, 2047, 12, 52,
386 floatformat_intbit_no,
387 "floatformat_ibm_long_double_little",
388 floatformat_ibm_long_double_is_valid,
389 &floatformat_ieee_double_little
390 };
391
392
394 #ifndef min
395 #define min(a, b) ((a) < (b) ? (a) : (b))
396 #endif
397
398 /* Return 1 if any bits are explicitly set in the mantissa of UFROM,
399 format FMT, 0 otherwise. */
400 static int
401 mant_bits_set (const struct floatformat *fmt, const unsigned char *ufrom)
402 {
403 unsigned int mant_bits, mant_off;
404 int mant_bits_left;
405
406 mant_off = fmt->man_start;
407 mant_bits_left = fmt->man_len;
408 while (mant_bits_left > 0)
409 {
410 mant_bits = min (mant_bits_left, 32);
411
412 if (get_field (ufrom, fmt->byteorder, fmt->totalsize,
413 mant_off, mant_bits) != 0)
414 return 1;
415
416 mant_off += mant_bits;
417 mant_bits_left -= mant_bits;
418 }
419 return 0;
420 }
421
422 /* Extract a field which starts at START and is LEN bits long. DATA and
423 TOTAL_LEN are the thing we are extracting it from, in byteorder ORDER. */
424 static unsigned long
425 get_field (const unsigned char *data, enum floatformat_byteorders order,
426 unsigned int total_len, unsigned int start, unsigned int len)
427 {
428 unsigned long result = 0;
429 unsigned int cur_byte;
430 int lo_bit, hi_bit, cur_bitshift = 0;
431 int nextbyte = (order == floatformat_little) ? 1 : -1;
432
433 /* Start is in big-endian bit order! Fix that first. */
434 start = total_len - (start + len);
435
436 /* Start at the least significant part of the field. */
437 if (order == floatformat_little)
438 cur_byte = start / FLOATFORMAT_CHAR_BIT;
439 else
440 cur_byte = (total_len - start - 1) / FLOATFORMAT_CHAR_BIT;
441
442 lo_bit = start % FLOATFORMAT_CHAR_BIT;
443 hi_bit = min (lo_bit + len, FLOATFORMAT_CHAR_BIT);
444
445 do
446 {
447 unsigned int shifted = *(data + cur_byte) >> lo_bit;
448 unsigned int bits = hi_bit - lo_bit;
449 unsigned int mask = (1 << bits) - 1;
450 result |= (shifted & mask) << cur_bitshift;
451 len -= bits;
452 cur_bitshift += bits;
453 cur_byte += nextbyte;
454 lo_bit = 0;
455 hi_bit = min (len, FLOATFORMAT_CHAR_BIT);
456 }
457 while (len != 0);
458
459 return result;
460 }
461
462 /* Convert from FMT to a double.
463 FROM is the address of the extended float.
464 Store the double in *TO. */
465
466 void
467 floatformat_to_double (const struct floatformat *fmt,
468 const void *from, double *to)
469 {
470 const unsigned char *ufrom = (const unsigned char *) from;
471 double dto;
472 long exponent;
473 unsigned long mant;
474 unsigned int mant_bits, mant_off;
475 int mant_bits_left;
476
477 /* Split values are not handled specially, since the top half has
478 the correctly rounded double value (in the only supported case of
479 split values). */
480
481 exponent = get_field (ufrom, fmt->byteorder, fmt->totalsize,
482 fmt->exp_start, fmt->exp_len);
483
484 /* If the exponent indicates a NaN, we don't have information to
485 decide what to do. So we handle it like IEEE, except that we
486 don't try to preserve the type of NaN. FIXME. */
487 if ((unsigned long) exponent == fmt->exp_nan)
488 {
489 int nan = mant_bits_set (fmt, ufrom);
490
491 /* On certain systems (such as GNU/Linux), the use of the
492 INFINITY macro below may generate a warning that can not be
493 silenced due to a bug in GCC (PR preprocessor/11931). The
494 preprocessor fails to recognise the __extension__ keyword in
495 conjunction with the GNU/C99 extension for hexadecimal
496 floating point constants and will issue a warning when
497 compiling with -pedantic. */
498 if (nan)
499 dto = NAN;
500 else
501 #ifdef __vax__
502 dto = HUGE_VAL;
503 #else
504 dto = INFINITY;
505 #endif
506
507 if (get_field (ufrom, fmt->byteorder, fmt->totalsize, fmt->sign_start, 1))
508 dto = -dto;
509
510 *to = dto;
511
512 return;
513 }
514
515 mant_bits_left = fmt->man_len;
516 mant_off = fmt->man_start;
517 dto = 0.0;
518
519 /* Build the result algebraically. Might go infinite, underflow, etc;
520 who cares. */
521
522 /* For denorms use minimum exponent. */
523 if (exponent == 0)
524 exponent = 1 - fmt->exp_bias;
525 else
526 {
527 exponent -= fmt->exp_bias;
528
529 /* If this format uses a hidden bit, explicitly add it in now.
530 Otherwise, increment the exponent by one to account for the
531 integer bit. */
532
533 if (fmt->intbit == floatformat_intbit_no)
534 dto = ldexp (1.0, exponent);
535 else
536 exponent++;
537 }
538
539 while (mant_bits_left > 0)
540 {
541 mant_bits = min (mant_bits_left, 32);
542
543 mant = get_field (ufrom, fmt->byteorder, fmt->totalsize,
544 mant_off, mant_bits);
545
546 dto += ldexp ((double) mant, exponent - mant_bits);
547 exponent -= mant_bits;
548 mant_off += mant_bits;
549 mant_bits_left -= mant_bits;
550 }
551
552 /* Negate it if negative. */
553 if (get_field (ufrom, fmt->byteorder, fmt->totalsize, fmt->sign_start, 1))
554 dto = -dto;
555 *to = dto;
556 }
557
558 static void put_field (unsigned char *, enum floatformat_byteorders,
560 unsigned int,
561 unsigned int,
562 unsigned int,
563 unsigned long);
564
565 /* Set a field which starts at START and is LEN bits long. DATA and
566 TOTAL_LEN are the thing we are extracting it from, in byteorder ORDER. */
567 static void
568 put_field (unsigned char *data, enum floatformat_byteorders order,
569 unsigned int total_len, unsigned int start, unsigned int len,
570 unsigned long stuff_to_put)
571 {
572 unsigned int cur_byte;
573 int lo_bit, hi_bit;
574 int nextbyte = (order == floatformat_little) ? 1 : -1;
575
576 /* Start is in big-endian bit order! Fix that first. */
577 start = total_len - (start + len);
578
579 /* Start at the least significant part of the field. */
580 if (order == floatformat_little)
581 cur_byte = start / FLOATFORMAT_CHAR_BIT;
582 else
583 cur_byte = (total_len - start - 1) / FLOATFORMAT_CHAR_BIT;
584
585 lo_bit = start % FLOATFORMAT_CHAR_BIT;
586 hi_bit = min (lo_bit + len, FLOATFORMAT_CHAR_BIT);
587
588 do
589 {
590 unsigned char *byte_ptr = data + cur_byte;
591 unsigned int bits = hi_bit - lo_bit;
592 unsigned int mask = ((1 << bits) - 1) << lo_bit;
593 *byte_ptr = (*byte_ptr & ~mask) | ((stuff_to_put << lo_bit) & mask);
594 stuff_to_put >>= bits;
595 len -= bits;
596 cur_byte += nextbyte;
597 lo_bit = 0;
598 hi_bit = min (len, FLOATFORMAT_CHAR_BIT);
599 }
600 while (len != 0);
601 }
602
603 /* The converse: convert the double *FROM to an extended float
604 and store where TO points. Neither FROM nor TO have any alignment
605 restrictions. */
606
607 void
608 floatformat_from_double (const struct floatformat *fmt,
609 const double *from, void *to)
610 {
611 double dfrom;
612 int exponent;
613 double mant;
614 unsigned int mant_bits, mant_off;
615 int mant_bits_left;
616 unsigned char *uto = (unsigned char *) to;
617
618 dfrom = *from;
619 memset (uto, 0, fmt->totalsize / FLOATFORMAT_CHAR_BIT);
620
621 /* Split values are not handled specially, since a bottom half of
622 zero is correct for any value representable as double (in the
623 only supported case of split values). */
624
625 /* If negative, set the sign bit. */
626 if (dfrom < 0)
627 {
628 put_field (uto, fmt->byteorder, fmt->totalsize, fmt->sign_start, 1, 1);
629 dfrom = -dfrom;
630 }
631
632 if (dfrom == 0)
633 {
634 /* 0.0. */
635 return;
636 }
637
638 if (dfrom != dfrom)
639 {
640 /* NaN. */
641 put_field (uto, fmt->byteorder, fmt->totalsize, fmt->exp_start,
642 fmt->exp_len, fmt->exp_nan);
643 /* Be sure it's not infinity, but NaN value is irrelevant. */
644 put_field (uto, fmt->byteorder, fmt->totalsize, fmt->man_start,
645 32, 1);
646 return;
647 }
648
649 if (dfrom + dfrom == dfrom)
650 {
651 /* This can only happen for an infinite value (or zero, which we
652 already handled above). */
653 put_field (uto, fmt->byteorder, fmt->totalsize, fmt->exp_start,
654 fmt->exp_len, fmt->exp_nan);
655 return;
656 }
657
658 mant = frexp (dfrom, &exponent);
659 if (exponent + fmt->exp_bias - 1 > 0)
660 put_field (uto, fmt->byteorder, fmt->totalsize, fmt->exp_start,
661 fmt->exp_len, exponent + fmt->exp_bias - 1);
662 else
663 {
664 /* Handle a denormalized number. FIXME: What should we do for
665 non-IEEE formats? */
666 put_field (uto, fmt->byteorder, fmt->totalsize, fmt->exp_start,
667 fmt->exp_len, 0);
668 mant = ldexp (mant, exponent + fmt->exp_bias - 1);
669 }
670
671 mant_bits_left = fmt->man_len;
672 mant_off = fmt->man_start;
673 while (mant_bits_left > 0)
674 {
675 unsigned long mant_long;
676 mant_bits = mant_bits_left < 32 ? mant_bits_left : 32;
677
678 mant *= 4294967296.0;
679 mant_long = (unsigned long)mant;
680 mant -= mant_long;
681
682 /* If the integer bit is implicit, and we are not creating a
683 denormalized number, then we need to discard it. */
684 if ((unsigned int) mant_bits_left == fmt->man_len
685 && fmt->intbit == floatformat_intbit_no
686 && exponent + fmt->exp_bias - 1 > 0)
687 {
688 mant_long &= 0x7fffffff;
689 mant_bits -= 1;
690 }
691 else if (mant_bits < 32)
692 {
693 /* The bits we want are in the most significant MANT_BITS bits of
694 mant_long. Move them to the least significant. */
695 mant_long >>= 32 - mant_bits;
696 }
697
698 put_field (uto, fmt->byteorder, fmt->totalsize,
699 mant_off, mant_bits, mant_long);
700 mant_off += mant_bits;
701 mant_bits_left -= mant_bits;
702 }
703 }
704
705 /* Return non-zero iff the data at FROM is a valid number in format FMT. */
706
707 int
708 floatformat_is_valid (const struct floatformat *fmt, const void *from)
709 {
710 return fmt->is_valid (fmt, from);
711 }
712
713
714 #ifdef IEEE_DEBUG
715
716 #include <stdio.h>
717
718 /* This is to be run on a host which uses IEEE floating point. */
719
720 void
721 ieee_test (double n)
722 {
723 double result;
724
725 floatformat_to_double (&floatformat_ieee_double_little, &n, &result);
726 if ((n != result && (! isnan (n) || ! isnan (result)))
727 || (n < 0 && result >= 0)
728 || (n >= 0 && result < 0))
729 printf ("Differ(to): %.20g -> %.20g\n", n, result);
730
731 floatformat_from_double (&floatformat_ieee_double_little, &n, &result);
732 if ((n != result && (! isnan (n) || ! isnan (result)))
733 || (n < 0 && result >= 0)
734 || (n >= 0 && result < 0))
735 printf ("Differ(from): %.20g -> %.20g\n", n, result);
736
737 #if 0
738 {
739 char exten[16];
740
741 floatformat_from_double (&floatformat_m68881_ext, &n, exten);
742 floatformat_to_double (&floatformat_m68881_ext, exten, &result);
743 if (n != result)
744 printf ("Differ(to+from): %.20g -> %.20g\n", n, result);
745 }
746 #endif
747
748 #if IEEE_DEBUG > 1
749 /* This is to be run on a host which uses 68881 format. */
750 {
751 long double ex = *(long double *)exten;
752 if (ex != n)
753 printf ("Differ(from vs. extended): %.20g\n", n);
754 }
755 #endif
756 }
757
758 int
759 main (void)
760 {
761 ieee_test (0.0);
762 ieee_test (0.5);
763 ieee_test (1.1);
764 ieee_test (256.0);
765 ieee_test (0.12345);
766 ieee_test (234235.78907234);
767 ieee_test (-512.0);
768 ieee_test (-0.004321);
769 ieee_test (1.2E-70);
770 ieee_test (1.2E-316);
771 ieee_test (4.9406564584124654E-324);
772 ieee_test (- 4.9406564584124654E-324);
773 ieee_test (- 0.0);
774 ieee_test (- INFINITY);
775 ieee_test (- NAN);
776 ieee_test (INFINITY);
777 ieee_test (NAN);
778 return 0;
779 }
780 #endif
781