source: vendor/gcc/current/libiberty/floatformat.c

Last change on this file was 1391, checked in by bird, 22 years ago

GCC v3.3.3 sources.

  • Property cvs2svn:cvs-rev set to 1.1.1.2
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Line 
1/* IEEE floating point support routines, for GDB, the GNU Debugger.
2 Copyright (C) 1991, 1994, 1999, 2000 Free Software Foundation, Inc.
3
4This file is part of GDB.
5
6This program is free software; you can redistribute it and/or modify
7it under the terms of the GNU General Public License as published by
8the Free Software Foundation; either version 2 of the License, or
9(at your option) any later version.
10
11This program is distributed in the hope that it will be useful,
12but WITHOUT ANY WARRANTY; without even the implied warranty of
13MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14GNU General Public License for more details.
15
16You should have received a copy of the GNU General Public License
17along with this program; if not, write to the Free Software
18Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */
19
20#include "floatformat.h"
21#include <math.h> /* ldexp */
22#ifdef __STDC__
23#include <stddef.h>
24extern void *memcpy (void *s1, const void *s2, size_t n);
25extern void *memset (void *s, int c, size_t n);
26#else
27extern char *memcpy ();
28extern char *memset ();
29#endif
30
31/* The odds that CHAR_BIT will be anything but 8 are low enough that I'm not
32 going to bother with trying to muck around with whether it is defined in
33 a system header, what we do if not, etc. */
34#define FLOATFORMAT_CHAR_BIT 8
35
36/* floatformats for IEEE single and double, big and little endian. */
37const struct floatformat floatformat_ieee_single_big =
38{
39 floatformat_big, 32, 0, 1, 8, 127, 255, 9, 23,
40 floatformat_intbit_no,
41 "floatformat_ieee_single_big"
42};
43const struct floatformat floatformat_ieee_single_little =
44{
45 floatformat_little, 32, 0, 1, 8, 127, 255, 9, 23,
46 floatformat_intbit_no,
47 "floatformat_ieee_single_little"
48};
49const struct floatformat floatformat_ieee_double_big =
50{
51 floatformat_big, 64, 0, 1, 11, 1023, 2047, 12, 52,
52 floatformat_intbit_no,
53 "floatformat_ieee_double_big"
54};
55const struct floatformat floatformat_ieee_double_little =
56{
57 floatformat_little, 64, 0, 1, 11, 1023, 2047, 12, 52,
58 floatformat_intbit_no,
59 "floatformat_ieee_double_little"
60};
61
62/* floatformat for IEEE double, little endian byte order, with big endian word
63 ordering, as on the ARM. */
64
65const struct floatformat floatformat_ieee_double_littlebyte_bigword =
66{
67 floatformat_littlebyte_bigword, 64, 0, 1, 11, 1023, 2047, 12, 52,
68 floatformat_intbit_no,
69 "floatformat_ieee_double_littlebyte_bigword"
70};
71
72const struct floatformat floatformat_i387_ext =
73{
74 floatformat_little, 80, 0, 1, 15, 0x3fff, 0x7fff, 16, 64,
75 floatformat_intbit_yes,
76 "floatformat_i387_ext"
77};
78const struct floatformat floatformat_m68881_ext =
79{
80 /* Note that the bits from 16 to 31 are unused. */
81 floatformat_big, 96, 0, 1, 15, 0x3fff, 0x7fff, 32, 64,
82 floatformat_intbit_yes,
83 "floatformat_m68881_ext"
84};
85const struct floatformat floatformat_i960_ext =
86{
87 /* Note that the bits from 0 to 15 are unused. */
88 floatformat_little, 96, 16, 17, 15, 0x3fff, 0x7fff, 32, 64,
89 floatformat_intbit_yes,
90 "floatformat_i960_ext"
91};
92const struct floatformat floatformat_m88110_ext =
93{
94 floatformat_big, 80, 0, 1, 15, 0x3fff, 0x7fff, 16, 64,
95 floatformat_intbit_yes,
96 "floatformat_m88110_ext"
97};
98const struct floatformat floatformat_m88110_harris_ext =
99{
100 /* Harris uses raw format 128 bytes long, but the number is just an ieee
101 double, and the last 64 bits are wasted. */
102 floatformat_big,128, 0, 1, 11, 0x3ff, 0x7ff, 12, 52,
103 floatformat_intbit_no,
104 "floatformat_m88110_ext_harris"
105};
106const struct floatformat floatformat_arm_ext_big =
107{
108 /* Bits 1 to 16 are unused. */
109 floatformat_big, 96, 0, 17, 15, 0x3fff, 0x7fff, 32, 64,
110 floatformat_intbit_yes,
111 "floatformat_arm_ext_big"
112};
113const struct floatformat floatformat_arm_ext_littlebyte_bigword =
114{
115 /* Bits 1 to 16 are unused. */
116 floatformat_littlebyte_bigword, 96, 0, 17, 15, 0x3fff, 0x7fff, 32, 64,
117 floatformat_intbit_yes,
118 "floatformat_arm_ext_littlebyte_bigword"
119};
120const struct floatformat floatformat_ia64_spill_big =
121{
122 floatformat_big, 128, 0, 1, 17, 65535, 0x1ffff, 18, 64,
123 floatformat_intbit_yes,
124 "floatformat_ia64_spill_big"
125};
126const struct floatformat floatformat_ia64_spill_little =
127{
128 floatformat_little, 128, 0, 1, 17, 65535, 0x1ffff, 18, 64,
129 floatformat_intbit_yes,
130 "floatformat_ia64_spill_little"
131};
132const struct floatformat floatformat_ia64_quad_big =
133{
134 floatformat_big, 128, 0, 1, 15, 16383, 0x7fff, 16, 112,
135 floatformat_intbit_no,
136 "floatformat_ia64_quad_big"
137};
138const struct floatformat floatformat_ia64_quad_little =
139{
140 floatformat_little, 128, 0, 1, 15, 16383, 0x7fff, 16, 112,
141 floatformat_intbit_no,
142 "floatformat_ia64_quad_little"
143};
144
145
146static unsigned long get_field PARAMS ((unsigned char *,
147 enum floatformat_byteorders,
148 unsigned int,
149 unsigned int,
150 unsigned int));
151
152/* Extract a field which starts at START and is LEN bytes long. DATA and
153 TOTAL_LEN are the thing we are extracting it from, in byteorder ORDER. */
154static unsigned long
155get_field (data, order, total_len, start, len)
156 unsigned char *data;
157 enum floatformat_byteorders order;
158 unsigned int total_len;
159 unsigned int start;
160 unsigned int len;
161{
162 unsigned long result;
163 unsigned int cur_byte;
164 int cur_bitshift;
165
166 /* Start at the least significant part of the field. */
167 cur_byte = (start + len) / FLOATFORMAT_CHAR_BIT;
168 if (order == floatformat_little)
169 cur_byte = (total_len / FLOATFORMAT_CHAR_BIT) - cur_byte - 1;
170 cur_bitshift =
171 ((start + len) % FLOATFORMAT_CHAR_BIT) - FLOATFORMAT_CHAR_BIT;
172 result = *(data + cur_byte) >> (-cur_bitshift);
173 cur_bitshift += FLOATFORMAT_CHAR_BIT;
174 if (order == floatformat_little)
175 ++cur_byte;
176 else
177 --cur_byte;
178
179 /* Move towards the most significant part of the field. */
180 while ((unsigned int) cur_bitshift < len)
181 {
182 if (len - cur_bitshift < FLOATFORMAT_CHAR_BIT)
183 /* This is the last byte; zero out the bits which are not part of
184 this field. */
185 result |=
186 (*(data + cur_byte) & ((1 << (len - cur_bitshift)) - 1))
187 << cur_bitshift;
188 else
189 result |= *(data + cur_byte) << cur_bitshift;
190 cur_bitshift += FLOATFORMAT_CHAR_BIT;
191 if (order == floatformat_little)
192 ++cur_byte;
193 else
194 --cur_byte;
195 }
196 return result;
197}
198
199#ifndef min
200#define min(a, b) ((a) < (b) ? (a) : (b))
201#endif
202
203/* Convert from FMT to a double.
204 FROM is the address of the extended float.
205 Store the double in *TO. */
206
207void
208floatformat_to_double (fmt, from, to)
209 const struct floatformat *fmt;
210 char *from;
211 double *to;
212{
213 unsigned char *ufrom = (unsigned char *)from;
214 double dto;
215 long exponent;
216 unsigned long mant;
217 unsigned int mant_bits, mant_off;
218 int mant_bits_left;
219 int special_exponent; /* It's a NaN, denorm or zero */
220
221 exponent = get_field (ufrom, fmt->byteorder, fmt->totalsize,
222 fmt->exp_start, fmt->exp_len);
223 /* Note that if exponent indicates a NaN, we can't really do anything useful
224 (not knowing if the host has NaN's, or how to build one). So it will
225 end up as an infinity or something close; that is OK. */
226
227 mant_bits_left = fmt->man_len;
228 mant_off = fmt->man_start;
229 dto = 0.0;
230
231 special_exponent = exponent == 0 || (unsigned long) exponent == fmt->exp_nan;
232
233 /* Don't bias zero's, denorms or NaNs. */
234 if (!special_exponent)
235 exponent -= fmt->exp_bias;
236
237 /* Build the result algebraically. Might go infinite, underflow, etc;
238 who cares. */
239
240 /* If this format uses a hidden bit, explicitly add it in now. Otherwise,
241 increment the exponent by one to account for the integer bit. */
242
243 if (!special_exponent)
244 {
245 if (fmt->intbit == floatformat_intbit_no)
246 dto = ldexp (1.0, exponent);
247 else
248 exponent++;
249 }
250
251 while (mant_bits_left > 0)
252 {
253 mant_bits = min (mant_bits_left, 32);
254
255 mant = get_field (ufrom, fmt->byteorder, fmt->totalsize,
256 mant_off, mant_bits);
257
258 dto += ldexp ((double)mant, exponent - mant_bits);
259 exponent -= mant_bits;
260 mant_off += mant_bits;
261 mant_bits_left -= mant_bits;
262 }
263
264 /* Negate it if negative. */
265 if (get_field (ufrom, fmt->byteorder, fmt->totalsize, fmt->sign_start, 1))
266 dto = -dto;
267 *to = dto;
268}
269
270
271static void put_field PARAMS ((unsigned char *, enum floatformat_byteorders,
272 unsigned int,
273 unsigned int,
274 unsigned int,
275 unsigned long));
276
277/* Set a field which starts at START and is LEN bytes long. DATA and
278 TOTAL_LEN are the thing we are extracting it from, in byteorder ORDER. */
279static void
280put_field (data, order, total_len, start, len, stuff_to_put)
281 unsigned char *data;
282 enum floatformat_byteorders order;
283 unsigned int total_len;
284 unsigned int start;
285 unsigned int len;
286 unsigned long stuff_to_put;
287{
288 unsigned int cur_byte;
289 int cur_bitshift;
290
291 /* Start at the least significant part of the field. */
292 cur_byte = (start + len) / FLOATFORMAT_CHAR_BIT;
293 if (order == floatformat_little)
294 cur_byte = (total_len / FLOATFORMAT_CHAR_BIT) - cur_byte - 1;
295 cur_bitshift =
296 ((start + len) % FLOATFORMAT_CHAR_BIT) - FLOATFORMAT_CHAR_BIT;
297 *(data + cur_byte) &=
298 ~(((1 << ((start + len) % FLOATFORMAT_CHAR_BIT)) - 1) << (-cur_bitshift));
299 *(data + cur_byte) |=
300 (stuff_to_put & ((1 << FLOATFORMAT_CHAR_BIT) - 1)) << (-cur_bitshift);
301 cur_bitshift += FLOATFORMAT_CHAR_BIT;
302 if (order == floatformat_little)
303 ++cur_byte;
304 else
305 --cur_byte;
306
307 /* Move towards the most significant part of the field. */
308 while ((unsigned int) cur_bitshift < len)
309 {
310 if (len - cur_bitshift < FLOATFORMAT_CHAR_BIT)
311 {
312 /* This is the last byte. */
313 *(data + cur_byte) &=
314 ~((1 << (len - cur_bitshift)) - 1);
315 *(data + cur_byte) |= (stuff_to_put >> cur_bitshift);
316 }
317 else
318 *(data + cur_byte) = ((stuff_to_put >> cur_bitshift)
319 & ((1 << FLOATFORMAT_CHAR_BIT) - 1));
320 cur_bitshift += FLOATFORMAT_CHAR_BIT;
321 if (order == floatformat_little)
322 ++cur_byte;
323 else
324 --cur_byte;
325 }
326}
327
328/* The converse: convert the double *FROM to an extended float
329 and store where TO points. Neither FROM nor TO have any alignment
330 restrictions. */
331
332void
333floatformat_from_double (fmt, from, to)
334 const struct floatformat *fmt;
335 double *from;
336 char *to;
337{
338 double dfrom;
339 int exponent;
340 double mant;
341 unsigned int mant_bits, mant_off;
342 int mant_bits_left;
343 unsigned char *uto = (unsigned char *)to;
344
345 memcpy (&dfrom, from, sizeof (dfrom));
346 memset (uto, 0, fmt->totalsize / FLOATFORMAT_CHAR_BIT);
347 if (dfrom == 0)
348 return; /* Result is zero */
349 if (dfrom != dfrom)
350 {
351 /* From is NaN */
352 put_field (uto, fmt->byteorder, fmt->totalsize, fmt->exp_start,
353 fmt->exp_len, fmt->exp_nan);
354 /* Be sure it's not infinity, but NaN value is irrel */
355 put_field (uto, fmt->byteorder, fmt->totalsize, fmt->man_start,
356 32, 1);
357 return;
358 }
359
360 /* If negative, set the sign bit. */
361 if (dfrom < 0)
362 {
363 put_field (uto, fmt->byteorder, fmt->totalsize, fmt->sign_start, 1, 1);
364 dfrom = -dfrom;
365 }
366
367 /* How to tell an infinity from an ordinary number? FIXME-someday */
368
369 mant = frexp (dfrom, &exponent);
370 put_field (uto, fmt->byteorder, fmt->totalsize, fmt->exp_start, fmt->exp_len,
371 exponent + fmt->exp_bias - 1);
372
373 mant_bits_left = fmt->man_len;
374 mant_off = fmt->man_start;
375 while (mant_bits_left > 0)
376 {
377 unsigned long mant_long;
378 mant_bits = mant_bits_left < 32 ? mant_bits_left : 32;
379
380 mant *= 4294967296.0;
381 mant_long = (unsigned long)mant;
382 mant -= mant_long;
383
384 /* If the integer bit is implicit, then we need to discard it.
385 If we are discarding a zero, we should be (but are not) creating
386 a denormalized number which means adjusting the exponent
387 (I think). */
388 if ((unsigned int) mant_bits_left == fmt->man_len
389 && fmt->intbit == floatformat_intbit_no)
390 {
391 mant_long &= 0x7fffffff;
392 mant_bits -= 1;
393 }
394 else if (mant_bits < 32)
395 {
396 /* The bits we want are in the most significant MANT_BITS bits of
397 mant_long. Move them to the least significant. */
398 mant_long >>= 32 - mant_bits;
399 }
400
401 put_field (uto, fmt->byteorder, fmt->totalsize,
402 mant_off, mant_bits, mant_long);
403 mant_off += mant_bits;
404 mant_bits_left -= mant_bits;
405 }
406}
407
408
409#ifdef IEEE_DEBUG
410
411/* This is to be run on a host which uses IEEE floating point. */
412
413void
414ieee_test (n)
415 double n;
416{
417 double result;
418 char exten[16];
419
420 floatformat_to_double (&floatformat_ieee_double_big, &n, &result);
421 if (n != result)
422 printf ("Differ(to): %.20g -> %.20g\n", n, result);
423 floatformat_from_double (&floatformat_ieee_double_big, &n, &result);
424 if (n != result)
425 printf ("Differ(from): %.20g -> %.20g\n", n, result);
426
427 floatformat_from_double (&floatformat_m68881_ext, &n, exten);
428 floatformat_to_double (&floatformat_m68881_ext, exten, &result);
429 if (n != result)
430 printf ("Differ(to+from): %.20g -> %.20g\n", n, result);
431
432#if IEEE_DEBUG > 1
433 /* This is to be run on a host which uses 68881 format. */
434 {
435 long double ex = *(long double *)exten;
436 if (ex != n)
437 printf ("Differ(from vs. extended): %.20g\n", n);
438 }
439#endif
440}
441
442int
443main ()
444{
445 ieee_test (0.5);
446 ieee_test (256.0);
447 ieee_test (0.12345);
448 ieee_test (234235.78907234);
449 ieee_test (-512.0);
450 ieee_test (-0.004321);
451 return 0;
452}
453#endif
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