real.h revision 1.1 1 1.1 mrg /* Definitions of floating-point access for GNU compiler.
2 1.1 mrg Copyright (C) 1989, 1991, 1994, 1996, 1997, 1998, 1999,
3 1.1 mrg 2000, 2002, 2003, 2004, 2005, 2007, 2008, 2009, 2010
4 1.1 mrg Free Software Foundation, Inc.
5 1.1 mrg
6 1.1 mrg This file is part of GCC.
7 1.1 mrg
8 1.1 mrg GCC is free software; you can redistribute it and/or modify it under
9 1.1 mrg the terms of the GNU General Public License as published by the Free
10 1.1 mrg Software Foundation; either version 3, or (at your option) any later
11 1.1 mrg version.
12 1.1 mrg
13 1.1 mrg GCC is distributed in the hope that it will be useful, but WITHOUT ANY
14 1.1 mrg WARRANTY; without even the implied warranty of MERCHANTABILITY or
15 1.1 mrg FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
16 1.1 mrg for more details.
17 1.1 mrg
18 1.1 mrg You should have received a copy of the GNU General Public License
19 1.1 mrg along with GCC; see the file COPYING3. If not see
20 1.1 mrg <http://www.gnu.org/licenses/>. */
21 1.1 mrg
22 1.1 mrg #ifndef GCC_REAL_H
23 1.1 mrg #define GCC_REAL_H
24 1.1 mrg
25 1.1 mrg #ifndef GENERATOR_FILE
26 1.1 mrg #include <gmp.h>
27 1.1 mrg #include <mpfr.h>
28 1.1 mrg #include <mpc.h>
29 1.1 mrg extern tree do_mpc_arg2 (tree, tree, tree, int, int (*)(mpc_ptr, mpc_srcptr, mpc_srcptr, mpc_rnd_t));
30 1.1 mrg #endif
31 1.1 mrg #include "machmode.h"
32 1.1 mrg
33 1.1 mrg /* An expanded form of the represented number. */
34 1.1 mrg
35 1.1 mrg /* Enumerate the special cases of numbers that we encounter. */
36 1.1 mrg enum real_value_class {
37 1.1 mrg rvc_zero,
38 1.1 mrg rvc_normal,
39 1.1 mrg rvc_inf,
40 1.1 mrg rvc_nan
41 1.1 mrg };
42 1.1 mrg
43 1.1 mrg #define SIGNIFICAND_BITS (128 + HOST_BITS_PER_LONG)
44 1.1 mrg #define EXP_BITS (32 - 6)
45 1.1 mrg #define MAX_EXP ((1 << (EXP_BITS - 1)) - 1)
46 1.1 mrg #define SIGSZ (SIGNIFICAND_BITS / HOST_BITS_PER_LONG)
47 1.1 mrg #define SIG_MSB ((unsigned long)1 << (HOST_BITS_PER_LONG - 1))
48 1.1 mrg
49 1.1 mrg struct GTY(()) real_value {
50 1.1 mrg /* Use the same underlying type for all bit-fields, so as to make
51 1.1 mrg sure they're packed together, otherwise REAL_VALUE_TYPE_SIZE will
52 1.1 mrg be miscomputed. */
53 1.1 mrg unsigned int /* ENUM_BITFIELD (real_value_class) */ cl : 2;
54 1.1 mrg unsigned int decimal : 1;
55 1.1 mrg unsigned int sign : 1;
56 1.1 mrg unsigned int signalling : 1;
57 1.1 mrg unsigned int canonical : 1;
58 1.1 mrg unsigned int uexp : EXP_BITS;
59 1.1 mrg unsigned long sig[SIGSZ];
60 1.1 mrg };
61 1.1 mrg
62 1.1 mrg #define REAL_EXP(REAL) \
63 1.1 mrg ((int)((REAL)->uexp ^ (unsigned int)(1 << (EXP_BITS - 1))) \
64 1.1 mrg - (1 << (EXP_BITS - 1)))
65 1.1 mrg #define SET_REAL_EXP(REAL, EXP) \
66 1.1 mrg ((REAL)->uexp = ((unsigned int)(EXP) & (unsigned int)((1 << EXP_BITS) - 1)))
67 1.1 mrg
68 1.1 mrg /* Various headers condition prototypes on #ifdef REAL_VALUE_TYPE, so it
69 1.1 mrg needs to be a macro. We do need to continue to have a structure tag
70 1.1 mrg so that other headers can forward declare it. */
71 1.1 mrg #define REAL_VALUE_TYPE struct real_value
72 1.1 mrg
73 1.1 mrg /* We store a REAL_VALUE_TYPE into an rtx, and we do this by putting it in
74 1.1 mrg consecutive "w" slots. Moreover, we've got to compute the number of "w"
75 1.1 mrg slots at preprocessor time, which means we can't use sizeof. Guess. */
76 1.1 mrg
77 1.1 mrg #define REAL_VALUE_TYPE_SIZE (SIGNIFICAND_BITS + 32)
78 1.1 mrg #define REAL_WIDTH \
79 1.1 mrg (REAL_VALUE_TYPE_SIZE/HOST_BITS_PER_WIDE_INT \
80 1.1 mrg + (REAL_VALUE_TYPE_SIZE%HOST_BITS_PER_WIDE_INT ? 1 : 0)) /* round up */
81 1.1 mrg
82 1.1 mrg /* Verify the guess. */
83 1.1 mrg extern char test_real_width
84 1.1 mrg [sizeof(REAL_VALUE_TYPE) <= REAL_WIDTH*sizeof(HOST_WIDE_INT) ? 1 : -1];
85 1.1 mrg
86 1.1 mrg /* Calculate the format for CONST_DOUBLE. We need as many slots as
87 1.1 mrg are necessary to overlay a REAL_VALUE_TYPE on them. This could be
88 1.1 mrg as many as four (32-bit HOST_WIDE_INT, 128-bit REAL_VALUE_TYPE).
89 1.1 mrg
90 1.1 mrg A number of places assume that there are always at least two 'w'
91 1.1 mrg slots in a CONST_DOUBLE, so we provide them even if one would suffice. */
92 1.1 mrg
93 1.1 mrg #if REAL_WIDTH == 1
94 1.1 mrg # define CONST_DOUBLE_FORMAT "ww"
95 1.1 mrg #else
96 1.1 mrg # if REAL_WIDTH == 2
97 1.1 mrg # define CONST_DOUBLE_FORMAT "ww"
98 1.1 mrg # else
99 1.1 mrg # if REAL_WIDTH == 3
100 1.1 mrg # define CONST_DOUBLE_FORMAT "www"
101 1.1 mrg # else
102 1.1 mrg # if REAL_WIDTH == 4
103 1.1 mrg # define CONST_DOUBLE_FORMAT "wwww"
104 1.1 mrg # else
105 1.1 mrg # if REAL_WIDTH == 5
106 1.1 mrg # define CONST_DOUBLE_FORMAT "wwwww"
107 1.1 mrg # else
108 1.1 mrg # if REAL_WIDTH == 6
109 1.1 mrg # define CONST_DOUBLE_FORMAT "wwwwww"
110 1.1 mrg # else
111 1.1 mrg #error "REAL_WIDTH > 6 not supported"
112 1.1 mrg # endif
113 1.1 mrg # endif
114 1.1 mrg # endif
115 1.1 mrg # endif
116 1.1 mrg # endif
117 1.1 mrg #endif
118 1.1 mrg
119 1.1 mrg
120 1.1 mrg /* Describes the properties of the specific target format in use. */
121 1.1 mrg struct real_format
122 1.1 mrg {
123 1.1 mrg /* Move to and from the target bytes. */
124 1.1 mrg void (*encode) (const struct real_format *, long *,
125 1.1 mrg const REAL_VALUE_TYPE *);
126 1.1 mrg void (*decode) (const struct real_format *, REAL_VALUE_TYPE *,
127 1.1 mrg const long *);
128 1.1 mrg
129 1.1 mrg /* The radix of the exponent and digits of the significand. */
130 1.1 mrg int b;
131 1.1 mrg
132 1.1 mrg /* Size of the significand in digits of radix B. */
133 1.1 mrg int p;
134 1.1 mrg
135 1.1 mrg /* Size of the significant of a NaN, in digits of radix B. */
136 1.1 mrg int pnan;
137 1.1 mrg
138 1.1 mrg /* The minimum negative integer, x, such that b**(x-1) is normalized. */
139 1.1 mrg int emin;
140 1.1 mrg
141 1.1 mrg /* The maximum integer, x, such that b**(x-1) is representable. */
142 1.1 mrg int emax;
143 1.1 mrg
144 1.1 mrg /* The bit position of the sign bit, for determining whether a value
145 1.1 mrg is positive/negative, or -1 for a complex encoding. */
146 1.1 mrg int signbit_ro;
147 1.1 mrg
148 1.1 mrg /* The bit position of the sign bit, for changing the sign of a number,
149 1.1 mrg or -1 for a complex encoding. */
150 1.1 mrg int signbit_rw;
151 1.1 mrg
152 1.1 mrg /* Default rounding mode for operations on this format. */
153 1.1 mrg bool round_towards_zero;
154 1.1 mrg bool has_sign_dependent_rounding;
155 1.1 mrg
156 1.1 mrg /* Properties of the format. */
157 1.1 mrg bool has_nans;
158 1.1 mrg bool has_inf;
159 1.1 mrg bool has_denorm;
160 1.1 mrg bool has_signed_zero;
161 1.1 mrg bool qnan_msb_set;
162 1.1 mrg bool canonical_nan_lsbs_set;
163 1.1 mrg };
164 1.1 mrg
165 1.1 mrg
166 1.1 mrg /* The target format used for each floating point mode.
167 1.1 mrg Float modes are followed by decimal float modes, with entries for
168 1.1 mrg float modes indexed by (MODE - first float mode), and entries for
169 1.1 mrg decimal float modes indexed by (MODE - first decimal float mode) +
170 1.1 mrg the number of float modes. */
171 1.1 mrg extern const struct real_format *
172 1.1 mrg real_format_for_mode[MAX_MODE_FLOAT - MIN_MODE_FLOAT + 1
173 1.1 mrg + MAX_MODE_DECIMAL_FLOAT - MIN_MODE_DECIMAL_FLOAT + 1];
174 1.1 mrg
175 1.1 mrg #define REAL_MODE_FORMAT(MODE) \
176 1.1 mrg (real_format_for_mode[DECIMAL_FLOAT_MODE_P (MODE) \
177 1.1 mrg ? (((MODE) - MIN_MODE_DECIMAL_FLOAT) \
178 1.1 mrg + (MAX_MODE_FLOAT - MIN_MODE_FLOAT + 1)) \
179 1.1 mrg : ((MODE) - MIN_MODE_FLOAT)])
180 1.1 mrg
181 1.1 mrg #define FLOAT_MODE_FORMAT(MODE) \
182 1.1 mrg (REAL_MODE_FORMAT (SCALAR_FLOAT_MODE_P (MODE)? (MODE) \
183 1.1 mrg : GET_MODE_INNER (MODE)))
184 1.1 mrg
185 1.1 mrg /* The following macro determines whether the floating point format is
186 1.1 mrg composite, i.e. may contain non-consecutive mantissa bits, in which
187 1.1 mrg case compile-time FP overflow may not model run-time overflow. */
188 1.1 mrg #define MODE_COMPOSITE_P(MODE) \
189 1.1 mrg (FLOAT_MODE_P (MODE) \
190 1.1 mrg && FLOAT_MODE_FORMAT (MODE)->pnan < FLOAT_MODE_FORMAT (MODE)->p)
191 1.1 mrg
192 1.1 mrg /* Accessor macros for format properties. */
193 1.1 mrg #define MODE_HAS_NANS(MODE) \
194 1.1 mrg (FLOAT_MODE_P (MODE) && FLOAT_MODE_FORMAT (MODE)->has_nans)
195 1.1 mrg #define MODE_HAS_INFINITIES(MODE) \
196 1.1 mrg (FLOAT_MODE_P (MODE) && FLOAT_MODE_FORMAT (MODE)->has_inf)
197 1.1 mrg #define MODE_HAS_SIGNED_ZEROS(MODE) \
198 1.1 mrg (FLOAT_MODE_P (MODE) && FLOAT_MODE_FORMAT (MODE)->has_signed_zero)
199 1.1 mrg #define MODE_HAS_SIGN_DEPENDENT_ROUNDING(MODE) \
200 1.1 mrg (FLOAT_MODE_P (MODE) \
201 1.1 mrg && FLOAT_MODE_FORMAT (MODE)->has_sign_dependent_rounding)
202 1.1 mrg
203 1.1 mrg /* True if the given mode has a NaN representation and the treatment of
204 1.1 mrg NaN operands is important. Certain optimizations, such as folding
205 1.1 mrg x * 0 into 0, are not correct for NaN operands, and are normally
206 1.1 mrg disabled for modes with NaNs. The user can ask for them to be
207 1.1 mrg done anyway using the -funsafe-math-optimizations switch. */
208 1.1 mrg #define HONOR_NANS(MODE) \
209 1.1 mrg (MODE_HAS_NANS (MODE) && !flag_finite_math_only)
210 1.1 mrg
211 1.1 mrg /* Like HONOR_NANs, but true if we honor signaling NaNs (or sNaNs). */
212 1.1 mrg #define HONOR_SNANS(MODE) (flag_signaling_nans && HONOR_NANS (MODE))
213 1.1 mrg
214 1.1 mrg /* As for HONOR_NANS, but true if the mode can represent infinity and
215 1.1 mrg the treatment of infinite values is important. */
216 1.1 mrg #define HONOR_INFINITIES(MODE) \
217 1.1 mrg (MODE_HAS_INFINITIES (MODE) && !flag_finite_math_only)
218 1.1 mrg
219 1.1 mrg /* Like HONOR_NANS, but true if the given mode distinguishes between
220 1.1 mrg positive and negative zero, and the sign of zero is important. */
221 1.1 mrg #define HONOR_SIGNED_ZEROS(MODE) \
222 1.1 mrg (MODE_HAS_SIGNED_ZEROS (MODE) && flag_signed_zeros)
223 1.1 mrg
224 1.1 mrg /* Like HONOR_NANS, but true if given mode supports sign-dependent rounding,
225 1.1 mrg and the rounding mode is important. */
226 1.1 mrg #define HONOR_SIGN_DEPENDENT_ROUNDING(MODE) \
227 1.1 mrg (MODE_HAS_SIGN_DEPENDENT_ROUNDING (MODE) && flag_rounding_math)
228 1.1 mrg
229 1.1 mrg /* Declare functions in real.c. */
230 1.1 mrg
231 1.1 mrg /* Binary or unary arithmetic on tree_code. */
232 1.1 mrg extern bool real_arithmetic (REAL_VALUE_TYPE *, int, const REAL_VALUE_TYPE *,
233 1.1 mrg const REAL_VALUE_TYPE *);
234 1.1 mrg
235 1.1 mrg /* Compare reals by tree_code. */
236 1.1 mrg extern bool real_compare (int, const REAL_VALUE_TYPE *, const REAL_VALUE_TYPE *);
237 1.1 mrg
238 1.1 mrg /* Determine whether a floating-point value X is infinite. */
239 1.1 mrg extern bool real_isinf (const REAL_VALUE_TYPE *);
240 1.1 mrg
241 1.1 mrg /* Determine whether a floating-point value X is a NaN. */
242 1.1 mrg extern bool real_isnan (const REAL_VALUE_TYPE *);
243 1.1 mrg
244 1.1 mrg /* Determine whether a floating-point value X is finite. */
245 1.1 mrg extern bool real_isfinite (const REAL_VALUE_TYPE *);
246 1.1 mrg
247 1.1 mrg /* Determine whether a floating-point value X is negative. */
248 1.1 mrg extern bool real_isneg (const REAL_VALUE_TYPE *);
249 1.1 mrg
250 1.1 mrg /* Determine whether a floating-point value X is minus zero. */
251 1.1 mrg extern bool real_isnegzero (const REAL_VALUE_TYPE *);
252 1.1 mrg
253 1.1 mrg /* Compare two floating-point objects for bitwise identity. */
254 1.1 mrg extern bool real_identical (const REAL_VALUE_TYPE *, const REAL_VALUE_TYPE *);
255 1.1 mrg
256 1.1 mrg /* Extend or truncate to a new mode. */
257 1.1 mrg extern void real_convert (REAL_VALUE_TYPE *, enum machine_mode,
258 1.1 mrg const REAL_VALUE_TYPE *);
259 1.1 mrg
260 1.1 mrg /* Return true if truncating to NEW is exact. */
261 1.1 mrg extern bool exact_real_truncate (enum machine_mode, const REAL_VALUE_TYPE *);
262 1.1 mrg
263 1.1 mrg /* Render R as a decimal floating point constant. */
264 1.1 mrg extern void real_to_decimal (char *, const REAL_VALUE_TYPE *, size_t,
265 1.1 mrg size_t, int);
266 1.1 mrg
267 1.1 mrg /* Render R as a decimal floating point constant, rounded so as to be
268 1.1 mrg parsed back to the same value when interpreted in mode MODE. */
269 1.1 mrg extern void real_to_decimal_for_mode (char *, const REAL_VALUE_TYPE *, size_t,
270 1.1 mrg size_t, int, enum machine_mode);
271 1.1 mrg
272 1.1 mrg /* Render R as a hexadecimal floating point constant. */
273 1.1 mrg extern void real_to_hexadecimal (char *, const REAL_VALUE_TYPE *,
274 1.1 mrg size_t, size_t, int);
275 1.1 mrg
276 1.1 mrg /* Render R as an integer. */
277 1.1 mrg extern HOST_WIDE_INT real_to_integer (const REAL_VALUE_TYPE *);
278 1.1 mrg extern void real_to_integer2 (HOST_WIDE_INT *, HOST_WIDE_INT *,
279 1.1 mrg const REAL_VALUE_TYPE *);
280 1.1 mrg
281 1.1 mrg /* Initialize R from a decimal or hexadecimal string. Return -1 if
282 1.1 mrg the value underflows, +1 if overflows, and 0 otherwise. */
283 1.1 mrg extern int real_from_string (REAL_VALUE_TYPE *, const char *);
284 1.1 mrg /* Wrapper to allow different internal representation for decimal floats. */
285 1.1 mrg extern void real_from_string3 (REAL_VALUE_TYPE *, const char *, enum machine_mode);
286 1.1 mrg
287 1.1 mrg /* Initialize R from an integer pair HIGH/LOW. */
288 1.1 mrg extern void real_from_integer (REAL_VALUE_TYPE *, enum machine_mode,
289 1.1 mrg unsigned HOST_WIDE_INT, HOST_WIDE_INT, int);
290 1.1 mrg
291 1.1 mrg extern long real_to_target_fmt (long *, const REAL_VALUE_TYPE *,
292 1.1 mrg const struct real_format *);
293 1.1 mrg extern long real_to_target (long *, const REAL_VALUE_TYPE *, enum machine_mode);
294 1.1 mrg
295 1.1 mrg extern void real_from_target_fmt (REAL_VALUE_TYPE *, const long *,
296 1.1 mrg const struct real_format *);
297 1.1 mrg extern void real_from_target (REAL_VALUE_TYPE *, const long *,
298 1.1 mrg enum machine_mode);
299 1.1 mrg
300 1.1 mrg extern void real_inf (REAL_VALUE_TYPE *);
301 1.1 mrg
302 1.1 mrg extern bool real_nan (REAL_VALUE_TYPE *, const char *, int, enum machine_mode);
303 1.1 mrg
304 1.1 mrg extern void real_maxval (REAL_VALUE_TYPE *, int, enum machine_mode);
305 1.1 mrg
306 1.1 mrg extern void real_2expN (REAL_VALUE_TYPE *, int, enum machine_mode);
307 1.1 mrg
308 1.1 mrg extern unsigned int real_hash (const REAL_VALUE_TYPE *);
309 1.1 mrg
310 1.1 mrg
311 1.1 mrg /* Target formats defined in real.c. */
312 1.1 mrg extern const struct real_format ieee_single_format;
313 1.1 mrg extern const struct real_format mips_single_format;
314 1.1 mrg extern const struct real_format motorola_single_format;
315 1.1 mrg extern const struct real_format spu_single_format;
316 1.1 mrg extern const struct real_format ieee_double_format;
317 1.1 mrg extern const struct real_format mips_double_format;
318 1.1 mrg extern const struct real_format motorola_double_format;
319 1.1 mrg extern const struct real_format ieee_extended_motorola_format;
320 1.1 mrg extern const struct real_format ieee_extended_intel_96_format;
321 1.1 mrg extern const struct real_format ieee_extended_intel_96_round_53_format;
322 1.1 mrg extern const struct real_format ieee_extended_intel_128_format;
323 1.1 mrg extern const struct real_format ibm_extended_format;
324 1.1 mrg extern const struct real_format mips_extended_format;
325 1.1 mrg extern const struct real_format ieee_quad_format;
326 1.1 mrg extern const struct real_format mips_quad_format;
327 1.1 mrg extern const struct real_format vax_f_format;
328 1.1 mrg extern const struct real_format vax_d_format;
329 1.1 mrg extern const struct real_format vax_g_format;
330 1.1 mrg extern const struct real_format real_internal_format;
331 1.1 mrg extern const struct real_format decimal_single_format;
332 1.1 mrg extern const struct real_format decimal_double_format;
333 1.1 mrg extern const struct real_format decimal_quad_format;
334 1.1 mrg extern const struct real_format ieee_half_format;
335 1.1 mrg extern const struct real_format arm_half_format;
336 1.1 mrg
337 1.1 mrg
338 1.1 mrg /* ====================================================================== */
339 1.1 mrg /* Crap. */
340 1.1 mrg
341 1.1 mrg #define REAL_ARITHMETIC(value, code, d1, d2) \
342 1.1 mrg real_arithmetic (&(value), code, &(d1), &(d2))
343 1.1 mrg
344 1.1 mrg #define REAL_VALUES_IDENTICAL(x, y) real_identical (&(x), &(y))
345 1.1 mrg #define REAL_VALUES_EQUAL(x, y) real_compare (EQ_EXPR, &(x), &(y))
346 1.1 mrg #define REAL_VALUES_LESS(x, y) real_compare (LT_EXPR, &(x), &(y))
347 1.1 mrg
348 1.1 mrg /* Determine whether a floating-point value X is infinite. */
349 1.1 mrg #define REAL_VALUE_ISINF(x) real_isinf (&(x))
350 1.1 mrg
351 1.1 mrg /* Determine whether a floating-point value X is a NaN. */
352 1.1 mrg #define REAL_VALUE_ISNAN(x) real_isnan (&(x))
353 1.1 mrg
354 1.1 mrg /* Determine whether a floating-point value X is negative. */
355 1.1 mrg #define REAL_VALUE_NEGATIVE(x) real_isneg (&(x))
356 1.1 mrg
357 1.1 mrg /* Determine whether a floating-point value X is minus zero. */
358 1.1 mrg #define REAL_VALUE_MINUS_ZERO(x) real_isnegzero (&(x))
359 1.1 mrg
360 1.1 mrg /* IN is a REAL_VALUE_TYPE. OUT is an array of longs. */
361 1.1 mrg #define REAL_VALUE_TO_TARGET_LONG_DOUBLE(IN, OUT) \
362 1.1 mrg real_to_target (OUT, &(IN), \
363 1.1 mrg mode_for_size (LONG_DOUBLE_TYPE_SIZE, MODE_FLOAT, 0))
364 1.1 mrg
365 1.1 mrg #define REAL_VALUE_TO_TARGET_DOUBLE(IN, OUT) \
366 1.1 mrg real_to_target (OUT, &(IN), mode_for_size (64, MODE_FLOAT, 0))
367 1.1 mrg
368 1.1 mrg /* IN is a REAL_VALUE_TYPE. OUT is a long. */
369 1.1 mrg #define REAL_VALUE_TO_TARGET_SINGLE(IN, OUT) \
370 1.1 mrg ((OUT) = real_to_target (NULL, &(IN), mode_for_size (32, MODE_FLOAT, 0)))
371 1.1 mrg
372 1.1 mrg #define REAL_VALUE_FROM_INT(r, lo, hi, mode) \
373 1.1 mrg real_from_integer (&(r), mode, lo, hi, 0)
374 1.1 mrg
375 1.1 mrg #define REAL_VALUE_FROM_UNSIGNED_INT(r, lo, hi, mode) \
376 1.1 mrg real_from_integer (&(r), mode, lo, hi, 1)
377 1.1 mrg
378 1.1 mrg /* Real values to IEEE 754 decimal floats. */
379 1.1 mrg
380 1.1 mrg /* IN is a REAL_VALUE_TYPE. OUT is an array of longs. */
381 1.1 mrg #define REAL_VALUE_TO_TARGET_DECIMAL128(IN, OUT) \
382 1.1 mrg real_to_target (OUT, &(IN), mode_for_size (128, MODE_DECIMAL_FLOAT, 0))
383 1.1 mrg
384 1.1 mrg #define REAL_VALUE_TO_TARGET_DECIMAL64(IN, OUT) \
385 1.1 mrg real_to_target (OUT, &(IN), mode_for_size (64, MODE_DECIMAL_FLOAT, 0))
386 1.1 mrg
387 1.1 mrg /* IN is a REAL_VALUE_TYPE. OUT is a long. */
388 1.1 mrg #define REAL_VALUE_TO_TARGET_DECIMAL32(IN, OUT) \
389 1.1 mrg ((OUT) = real_to_target (NULL, &(IN), mode_for_size (32, MODE_DECIMAL_FLOAT, 0)))
390 1.1 mrg
391 1.1 mrg extern REAL_VALUE_TYPE real_value_truncate (enum machine_mode,
392 1.1 mrg REAL_VALUE_TYPE);
393 1.1 mrg
394 1.1 mrg #define REAL_VALUE_TO_INT(plow, phigh, r) \
395 1.1 mrg real_to_integer2 (plow, phigh, &(r))
396 1.1 mrg
397 1.1 mrg extern REAL_VALUE_TYPE real_arithmetic2 (int, const REAL_VALUE_TYPE *,
398 1.1 mrg const REAL_VALUE_TYPE *);
399 1.1 mrg
400 1.1 mrg #define REAL_VALUE_NEGATE(X) \
401 1.1 mrg real_arithmetic2 (NEGATE_EXPR, &(X), NULL)
402 1.1 mrg
403 1.1 mrg #define REAL_VALUE_ABS(X) \
404 1.1 mrg real_arithmetic2 (ABS_EXPR, &(X), NULL)
405 1.1 mrg
406 1.1 mrg extern int significand_size (enum machine_mode);
407 1.1 mrg
408 1.1 mrg extern REAL_VALUE_TYPE real_from_string2 (const char *, enum machine_mode);
409 1.1 mrg
410 1.1 mrg #define REAL_VALUE_ATOF(s, m) \
411 1.1 mrg real_from_string2 (s, m)
412 1.1 mrg
413 1.1 mrg #define CONST_DOUBLE_ATOF(s, m) \
414 1.1 mrg CONST_DOUBLE_FROM_REAL_VALUE (real_from_string2 (s, m), m)
415 1.1 mrg
416 1.1 mrg #define REAL_VALUE_FIX(r) \
417 1.1 mrg real_to_integer (&(r))
418 1.1 mrg
419 1.1 mrg /* ??? Not quite right. */
420 1.1 mrg #define REAL_VALUE_UNSIGNED_FIX(r) \
421 1.1 mrg real_to_integer (&(r))
422 1.1 mrg
423 1.1 mrg /* ??? These were added for Paranoia support. */
424 1.1 mrg
425 1.1 mrg /* Return floor log2(R). */
426 1.1 mrg extern int real_exponent (const REAL_VALUE_TYPE *);
427 1.1 mrg
428 1.1 mrg /* R = A * 2**EXP. */
429 1.1 mrg extern void real_ldexp (REAL_VALUE_TYPE *, const REAL_VALUE_TYPE *, int);
430 1.1 mrg
431 1.1 mrg /* **** End of software floating point emulator interface macros **** */
432 1.1 mrg
433 1.1 mrg /* Constant real values 0, 1, 2, -1 and 0.5. */
435 1.1 mrg
436 1.1 mrg extern REAL_VALUE_TYPE dconst0;
437 1.1 mrg extern REAL_VALUE_TYPE dconst1;
438 1.1 mrg extern REAL_VALUE_TYPE dconst2;
439 1.1 mrg extern REAL_VALUE_TYPE dconstm1;
440 1.1 mrg extern REAL_VALUE_TYPE dconsthalf;
441 1.1 mrg
442 1.1 mrg #define dconst_e() (*dconst_e_ptr ())
443 1.1 mrg #define dconst_third() (*dconst_third_ptr ())
444 1.1 mrg #define dconst_sqrt2() (*dconst_sqrt2_ptr ())
445 1.1 mrg
446 1.1 mrg /* Function to return the real value special constant 'e'. */
447 1.1 mrg extern const REAL_VALUE_TYPE * dconst_e_ptr (void);
448 1.1 mrg
449 1.1 mrg /* Returns the special REAL_VALUE_TYPE corresponding to 1/3. */
450 1.1 mrg extern const REAL_VALUE_TYPE * dconst_third_ptr (void);
451 1.1 mrg
452 1.1 mrg /* Returns the special REAL_VALUE_TYPE corresponding to sqrt(2). */
453 1.1 mrg extern const REAL_VALUE_TYPE * dconst_sqrt2_ptr (void);
454 1.1 mrg
455 1.1 mrg /* Function to return a real value (not a tree node)
456 1.1 mrg from a given integer constant. */
457 1.1 mrg REAL_VALUE_TYPE real_value_from_int_cst (const_tree, const_tree);
458 1.1 mrg
459 1.1 mrg /* Given a CONST_DOUBLE in FROM, store into TO the value it represents. */
460 1.1 mrg #define REAL_VALUE_FROM_CONST_DOUBLE(to, from) \
461 1.1 mrg ((to) = *CONST_DOUBLE_REAL_VALUE (from))
462 1.1 mrg
463 1.1 mrg /* Return a CONST_DOUBLE with value R and mode M. */
464 1.1 mrg #define CONST_DOUBLE_FROM_REAL_VALUE(r, m) \
465 1.1 mrg const_double_from_real_value (r, m)
466 1.1 mrg extern rtx const_double_from_real_value (REAL_VALUE_TYPE, enum machine_mode);
467 1.1 mrg
468 1.1 mrg /* Replace R by 1/R in the given machine mode, if the result is exact. */
469 1.1 mrg extern bool exact_real_inverse (enum machine_mode, REAL_VALUE_TYPE *);
470 1.1 mrg
471 1.1 mrg /* Return true if arithmetic on values in IMODE that were promoted
472 1.1 mrg from values in TMODE is equivalent to direct arithmetic on values
473 1.1 mrg in TMODE. */
474 1.1 mrg bool real_can_shorten_arithmetic (enum machine_mode, enum machine_mode);
475 1.1 mrg
476 1.1 mrg /* In tree.c: wrap up a REAL_VALUE_TYPE in a tree node. */
477 1.1 mrg extern tree build_real (tree, REAL_VALUE_TYPE);
478 1.1 mrg
479 1.1 mrg /* Calculate R as the square root of X in the given machine mode. */
480 1.1 mrg extern bool real_sqrt (REAL_VALUE_TYPE *, enum machine_mode,
481 1.1 mrg const REAL_VALUE_TYPE *);
482 1.1 mrg
483 1.1 mrg /* Calculate R as X raised to the integer exponent N in mode MODE. */
484 1.1 mrg extern bool real_powi (REAL_VALUE_TYPE *, enum machine_mode,
485 1.1 mrg const REAL_VALUE_TYPE *, HOST_WIDE_INT);
486 1.1 mrg
487 1.1 mrg /* Standard round to integer value functions. */
488 1.1 mrg extern void real_trunc (REAL_VALUE_TYPE *, enum machine_mode,
489 1.1 mrg const REAL_VALUE_TYPE *);
490 1.1 mrg extern void real_floor (REAL_VALUE_TYPE *, enum machine_mode,
491 1.1 mrg const REAL_VALUE_TYPE *);
492 1.1 mrg extern void real_ceil (REAL_VALUE_TYPE *, enum machine_mode,
493 1.1 mrg const REAL_VALUE_TYPE *);
494 1.1 mrg extern void real_round (REAL_VALUE_TYPE *, enum machine_mode,
495 1.1 mrg const REAL_VALUE_TYPE *);
496 1.1 mrg
497 1.1 mrg /* Set the sign of R to the sign of X. */
498 1.1 mrg extern void real_copysign (REAL_VALUE_TYPE *, const REAL_VALUE_TYPE *);
499 1.1 mrg
500 1.1 mrg #ifndef GENERATOR_FILE
501 1.1 mrg /* Convert between MPFR and REAL_VALUE_TYPE. The caller is
502 1.1 mrg responsible for initializing and clearing the MPFR parameter. */
503 1.1 mrg
504 1.1 mrg extern void real_from_mpfr (REAL_VALUE_TYPE *, mpfr_srcptr, tree, mp_rnd_t);
505 1.1 mrg extern void mpfr_from_real (mpfr_ptr, const REAL_VALUE_TYPE *, mp_rnd_t);
506 1.1 mrg #endif
507 1.1 mrg
508 1.1 mrg /* Check whether the real constant value given is an integer. */
509 1.1 mrg extern bool real_isinteger (const REAL_VALUE_TYPE *c, enum machine_mode mode);
510 1.1 mrg
511 1.1 mrg /* Write into BUF the maximum representable finite floating-point
512 1.1 mrg number, (1 - b**-p) * b**emax for a given FP format FMT as a hex
513 1.1 mrg float string. BUF must be large enough to contain the result. */
514 1.1 mrg extern void get_max_float (const struct real_format *, char *, size_t);
515 #endif /* ! GCC_REAL_H */
516