Fix warnings building linux-atomic.c and fptr.c on hppa64-linux
[official-gcc.git] / gcc / fold-const-call.c
blobd6cb9b11a318fd2ea71868a62fc2004687d6e047
1 /* Constant folding for calls to built-in and internal functions.
2 Copyright (C) 1988-2021 Free Software Foundation, Inc.
4 This file is part of GCC.
6 GCC is free software; you can redistribute it and/or modify it under
7 the terms of the GNU General Public License as published by the Free
8 Software Foundation; either version 3, or (at your option) any later
9 version.
11 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
12 WARRANTY; without even the implied warranty of MERCHANTABILITY or
13 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
14 for more details.
16 You should have received a copy of the GNU General Public License
17 along with GCC; see the file COPYING3. If not see
18 <http://www.gnu.org/licenses/>. */
20 #include "config.h"
21 #include "system.h"
22 #include "coretypes.h"
23 #include "realmpfr.h"
24 #include "tree.h"
25 #include "stor-layout.h"
26 #include "options.h"
27 #include "fold-const.h"
28 #include "fold-const-call.h"
29 #include "case-cfn-macros.h"
30 #include "tm.h" /* For C[LT]Z_DEFINED_AT_ZERO. */
31 #include "builtins.h"
32 #include "gimple-expr.h"
33 #include "tree-vector-builder.h"
35 /* Functions that test for certain constant types, abstracting away the
36 decision about whether to check for overflow. */
38 static inline bool
39 integer_cst_p (tree t)
41 return TREE_CODE (t) == INTEGER_CST && !TREE_OVERFLOW (t);
44 static inline bool
45 real_cst_p (tree t)
47 return TREE_CODE (t) == REAL_CST && !TREE_OVERFLOW (t);
50 static inline bool
51 complex_cst_p (tree t)
53 return TREE_CODE (t) == COMPLEX_CST;
56 /* Return true if ARG is a size_type_node constant.
57 Store it in *SIZE_OUT if so. */
59 static inline bool
60 size_t_cst_p (tree t, unsigned HOST_WIDE_INT *size_out)
62 if (types_compatible_p (size_type_node, TREE_TYPE (t))
63 && integer_cst_p (t)
64 && tree_fits_uhwi_p (t))
66 *size_out = tree_to_uhwi (t);
67 return true;
69 return false;
72 /* RES is the result of a comparison in which < 0 means "less", 0 means
73 "equal" and > 0 means "more". Canonicalize it to -1, 0 or 1 and
74 return it in type TYPE. */
76 tree
77 build_cmp_result (tree type, int res)
79 return build_int_cst (type, res < 0 ? -1 : res > 0 ? 1 : 0);
82 /* M is the result of trying to constant-fold an expression (starting
83 with clear MPFR flags) and INEXACT says whether the result in M is
84 exact or inexact. Return true if M can be used as a constant-folded
85 result in format FORMAT, storing the value in *RESULT if so. */
87 static bool
88 do_mpfr_ckconv (real_value *result, mpfr_srcptr m, bool inexact,
89 const real_format *format)
91 /* Proceed iff we get a normal number, i.e. not NaN or Inf and no
92 overflow/underflow occurred. If -frounding-math, proceed iff the
93 result of calling FUNC was exact. */
94 if (!mpfr_number_p (m)
95 || mpfr_overflow_p ()
96 || mpfr_underflow_p ()
97 || (flag_rounding_math && inexact))
98 return false;
100 REAL_VALUE_TYPE tmp;
101 real_from_mpfr (&tmp, m, format, MPFR_RNDN);
103 /* Proceed iff GCC's REAL_VALUE_TYPE can hold the MPFR values.
104 If the REAL_VALUE_TYPE is zero but the mpft_t is not, then we
105 underflowed in the conversion. */
106 if (!real_isfinite (&tmp)
107 || ((tmp.cl == rvc_zero) != (mpfr_zero_p (m) != 0)))
108 return false;
110 real_convert (result, format, &tmp);
111 return real_identical (result, &tmp);
114 /* Try to evaluate:
116 *RESULT = f (*ARG)
118 in format FORMAT, given that FUNC is the MPFR implementation of f.
119 Return true on success. */
121 static bool
122 do_mpfr_arg1 (real_value *result,
123 int (*func) (mpfr_ptr, mpfr_srcptr, mpfr_rnd_t),
124 const real_value *arg, const real_format *format)
126 /* To proceed, MPFR must exactly represent the target floating point
127 format, which only happens when the target base equals two. */
128 if (format->b != 2 || !real_isfinite (arg))
129 return false;
131 int prec = format->p;
132 mpfr_rnd_t rnd = format->round_towards_zero ? MPFR_RNDZ : MPFR_RNDN;
133 mpfr_t m;
135 mpfr_init2 (m, prec);
136 mpfr_from_real (m, arg, MPFR_RNDN);
137 mpfr_clear_flags ();
138 bool inexact = func (m, m, rnd);
139 bool ok = do_mpfr_ckconv (result, m, inexact, format);
140 mpfr_clear (m);
142 return ok;
145 /* Try to evaluate:
147 *RESULT_SIN = sin (*ARG);
148 *RESULT_COS = cos (*ARG);
150 for format FORMAT. Return true on success. */
152 static bool
153 do_mpfr_sincos (real_value *result_sin, real_value *result_cos,
154 const real_value *arg, const real_format *format)
156 /* To proceed, MPFR must exactly represent the target floating point
157 format, which only happens when the target base equals two. */
158 if (format->b != 2 || !real_isfinite (arg))
159 return false;
161 int prec = format->p;
162 mpfr_rnd_t rnd = format->round_towards_zero ? MPFR_RNDZ : MPFR_RNDN;
163 mpfr_t m, ms, mc;
165 mpfr_inits2 (prec, m, ms, mc, NULL);
166 mpfr_from_real (m, arg, MPFR_RNDN);
167 mpfr_clear_flags ();
168 bool inexact = mpfr_sin_cos (ms, mc, m, rnd);
169 bool ok = (do_mpfr_ckconv (result_sin, ms, inexact, format)
170 && do_mpfr_ckconv (result_cos, mc, inexact, format));
171 mpfr_clears (m, ms, mc, NULL);
173 return ok;
176 /* Try to evaluate:
178 *RESULT = f (*ARG0, *ARG1)
180 in format FORMAT, given that FUNC is the MPFR implementation of f.
181 Return true on success. */
183 static bool
184 do_mpfr_arg2 (real_value *result,
185 int (*func) (mpfr_ptr, mpfr_srcptr, mpfr_srcptr, mpfr_rnd_t),
186 const real_value *arg0, const real_value *arg1,
187 const real_format *format)
189 /* To proceed, MPFR must exactly represent the target floating point
190 format, which only happens when the target base equals two. */
191 if (format->b != 2 || !real_isfinite (arg0) || !real_isfinite (arg1))
192 return false;
194 int prec = format->p;
195 mpfr_rnd_t rnd = format->round_towards_zero ? MPFR_RNDZ : MPFR_RNDN;
196 mpfr_t m0, m1;
198 mpfr_inits2 (prec, m0, m1, NULL);
199 mpfr_from_real (m0, arg0, MPFR_RNDN);
200 mpfr_from_real (m1, arg1, MPFR_RNDN);
201 mpfr_clear_flags ();
202 bool inexact = func (m0, m0, m1, rnd);
203 bool ok = do_mpfr_ckconv (result, m0, inexact, format);
204 mpfr_clears (m0, m1, NULL);
206 return ok;
209 /* Try to evaluate:
211 *RESULT = f (ARG0, *ARG1)
213 in format FORMAT, given that FUNC is the MPFR implementation of f.
214 Return true on success. */
216 static bool
217 do_mpfr_arg2 (real_value *result,
218 int (*func) (mpfr_ptr, long, mpfr_srcptr, mpfr_rnd_t),
219 const wide_int_ref &arg0, const real_value *arg1,
220 const real_format *format)
222 if (format->b != 2 || !real_isfinite (arg1))
223 return false;
225 int prec = format->p;
226 mpfr_rnd_t rnd = format->round_towards_zero ? MPFR_RNDZ : MPFR_RNDN;
227 mpfr_t m;
229 mpfr_init2 (m, prec);
230 mpfr_from_real (m, arg1, MPFR_RNDN);
231 mpfr_clear_flags ();
232 bool inexact = func (m, arg0.to_shwi (), m, rnd);
233 bool ok = do_mpfr_ckconv (result, m, inexact, format);
234 mpfr_clear (m);
236 return ok;
239 /* Try to evaluate:
241 *RESULT = f (*ARG0, *ARG1, *ARG2)
243 in format FORMAT, given that FUNC is the MPFR implementation of f.
244 Return true on success. */
246 static bool
247 do_mpfr_arg3 (real_value *result,
248 int (*func) (mpfr_ptr, mpfr_srcptr, mpfr_srcptr,
249 mpfr_srcptr, mpfr_rnd_t),
250 const real_value *arg0, const real_value *arg1,
251 const real_value *arg2, const real_format *format)
253 /* To proceed, MPFR must exactly represent the target floating point
254 format, which only happens when the target base equals two. */
255 if (format->b != 2
256 || !real_isfinite (arg0)
257 || !real_isfinite (arg1)
258 || !real_isfinite (arg2))
259 return false;
261 int prec = format->p;
262 mpfr_rnd_t rnd = format->round_towards_zero ? MPFR_RNDZ : MPFR_RNDN;
263 mpfr_t m0, m1, m2;
265 mpfr_inits2 (prec, m0, m1, m2, NULL);
266 mpfr_from_real (m0, arg0, MPFR_RNDN);
267 mpfr_from_real (m1, arg1, MPFR_RNDN);
268 mpfr_from_real (m2, arg2, MPFR_RNDN);
269 mpfr_clear_flags ();
270 bool inexact = func (m0, m0, m1, m2, rnd);
271 bool ok = do_mpfr_ckconv (result, m0, inexact, format);
272 mpfr_clears (m0, m1, m2, NULL);
274 return ok;
277 /* M is the result of trying to constant-fold an expression (starting
278 with clear MPFR flags) and INEXACT says whether the result in M is
279 exact or inexact. Return true if M can be used as a constant-folded
280 result in which the real and imaginary parts have format FORMAT.
281 Store those parts in *RESULT_REAL and *RESULT_IMAG if so. */
283 static bool
284 do_mpc_ckconv (real_value *result_real, real_value *result_imag,
285 mpc_srcptr m, bool inexact, const real_format *format)
287 /* Proceed iff we get a normal number, i.e. not NaN or Inf and no
288 overflow/underflow occurred. If -frounding-math, proceed iff the
289 result of calling FUNC was exact. */
290 if (!mpfr_number_p (mpc_realref (m))
291 || !mpfr_number_p (mpc_imagref (m))
292 || mpfr_overflow_p ()
293 || mpfr_underflow_p ()
294 || (flag_rounding_math && inexact))
295 return false;
297 REAL_VALUE_TYPE tmp_real, tmp_imag;
298 real_from_mpfr (&tmp_real, mpc_realref (m), format, MPFR_RNDN);
299 real_from_mpfr (&tmp_imag, mpc_imagref (m), format, MPFR_RNDN);
301 /* Proceed iff GCC's REAL_VALUE_TYPE can hold the MPFR values.
302 If the REAL_VALUE_TYPE is zero but the mpft_t is not, then we
303 underflowed in the conversion. */
304 if (!real_isfinite (&tmp_real)
305 || !real_isfinite (&tmp_imag)
306 || (tmp_real.cl == rvc_zero) != (mpfr_zero_p (mpc_realref (m)) != 0)
307 || (tmp_imag.cl == rvc_zero) != (mpfr_zero_p (mpc_imagref (m)) != 0))
308 return false;
310 real_convert (result_real, format, &tmp_real);
311 real_convert (result_imag, format, &tmp_imag);
313 return (real_identical (result_real, &tmp_real)
314 && real_identical (result_imag, &tmp_imag));
317 /* Try to evaluate:
319 RESULT = f (ARG)
321 in format FORMAT, given that FUNC is the mpc implementation of f.
322 Return true on success. Both RESULT and ARG are represented as
323 real and imaginary pairs. */
325 static bool
326 do_mpc_arg1 (real_value *result_real, real_value *result_imag,
327 int (*func) (mpc_ptr, mpc_srcptr, mpc_rnd_t),
328 const real_value *arg_real, const real_value *arg_imag,
329 const real_format *format)
331 /* To proceed, MPFR must exactly represent the target floating point
332 format, which only happens when the target base equals two. */
333 if (format->b != 2
334 || !real_isfinite (arg_real)
335 || !real_isfinite (arg_imag))
336 return false;
338 int prec = format->p;
339 mpc_rnd_t crnd = format->round_towards_zero ? MPC_RNDZZ : MPC_RNDNN;
340 mpc_t m;
342 mpc_init2 (m, prec);
343 mpfr_from_real (mpc_realref (m), arg_real, MPFR_RNDN);
344 mpfr_from_real (mpc_imagref (m), arg_imag, MPFR_RNDN);
345 mpfr_clear_flags ();
346 bool inexact = func (m, m, crnd);
347 bool ok = do_mpc_ckconv (result_real, result_imag, m, inexact, format);
348 mpc_clear (m);
350 return ok;
353 /* Try to evaluate:
355 RESULT = f (ARG0, ARG1)
357 in format FORMAT, given that FUNC is the mpc implementation of f.
358 Return true on success. RESULT, ARG0 and ARG1 are represented as
359 real and imaginary pairs. */
361 static bool
362 do_mpc_arg2 (real_value *result_real, real_value *result_imag,
363 int (*func)(mpc_ptr, mpc_srcptr, mpc_srcptr, mpc_rnd_t),
364 const real_value *arg0_real, const real_value *arg0_imag,
365 const real_value *arg1_real, const real_value *arg1_imag,
366 const real_format *format)
368 if (!real_isfinite (arg0_real)
369 || !real_isfinite (arg0_imag)
370 || !real_isfinite (arg1_real)
371 || !real_isfinite (arg1_imag))
372 return false;
374 int prec = format->p;
375 mpc_rnd_t crnd = format->round_towards_zero ? MPC_RNDZZ : MPC_RNDNN;
376 mpc_t m0, m1;
378 mpc_init2 (m0, prec);
379 mpc_init2 (m1, prec);
380 mpfr_from_real (mpc_realref (m0), arg0_real, MPFR_RNDN);
381 mpfr_from_real (mpc_imagref (m0), arg0_imag, MPFR_RNDN);
382 mpfr_from_real (mpc_realref (m1), arg1_real, MPFR_RNDN);
383 mpfr_from_real (mpc_imagref (m1), arg1_imag, MPFR_RNDN);
384 mpfr_clear_flags ();
385 bool inexact = func (m0, m0, m1, crnd);
386 bool ok = do_mpc_ckconv (result_real, result_imag, m0, inexact, format);
387 mpc_clear (m0);
388 mpc_clear (m1);
390 return ok;
393 /* Try to evaluate:
395 *RESULT = logb (*ARG)
397 in format FORMAT. Return true on success. */
399 static bool
400 fold_const_logb (real_value *result, const real_value *arg,
401 const real_format *format)
403 switch (arg->cl)
405 case rvc_nan:
406 /* If arg is +-NaN, then return it. */
407 *result = *arg;
408 return true;
410 case rvc_inf:
411 /* If arg is +-Inf, then return +Inf. */
412 *result = *arg;
413 result->sign = 0;
414 return true;
416 case rvc_zero:
417 /* Zero may set errno and/or raise an exception. */
418 return false;
420 case rvc_normal:
421 /* For normal numbers, proceed iff radix == 2. In GCC,
422 normalized significands are in the range [0.5, 1.0). We
423 want the exponent as if they were [1.0, 2.0) so get the
424 exponent and subtract 1. */
425 if (format->b == 2)
427 real_from_integer (result, format, REAL_EXP (arg) - 1, SIGNED);
428 return true;
430 return false;
432 gcc_unreachable ();
435 /* Try to evaluate:
437 *RESULT = significand (*ARG)
439 in format FORMAT. Return true on success. */
441 static bool
442 fold_const_significand (real_value *result, const real_value *arg,
443 const real_format *format)
445 switch (arg->cl)
447 case rvc_zero:
448 case rvc_nan:
449 case rvc_inf:
450 /* If arg is +-0, +-Inf or +-NaN, then return it. */
451 *result = *arg;
452 return true;
454 case rvc_normal:
455 /* For normal numbers, proceed iff radix == 2. */
456 if (format->b == 2)
458 *result = *arg;
459 /* In GCC, normalized significands are in the range [0.5, 1.0).
460 We want them to be [1.0, 2.0) so set the exponent to 1. */
461 SET_REAL_EXP (result, 1);
462 return true;
464 return false;
466 gcc_unreachable ();
469 /* Try to evaluate:
471 *RESULT = f (*ARG)
473 where FORMAT is the format of *ARG and PRECISION is the number of
474 significant bits in the result. Return true on success. */
476 static bool
477 fold_const_conversion (wide_int *result,
478 void (*fn) (real_value *, format_helper,
479 const real_value *),
480 const real_value *arg, unsigned int precision,
481 const real_format *format)
483 if (!real_isfinite (arg))
484 return false;
486 real_value rounded;
487 fn (&rounded, format, arg);
489 bool fail = false;
490 *result = real_to_integer (&rounded, &fail, precision);
491 return !fail;
494 /* Try to evaluate:
496 *RESULT = pow (*ARG0, *ARG1)
498 in format FORMAT. Return true on success. */
500 static bool
501 fold_const_pow (real_value *result, const real_value *arg0,
502 const real_value *arg1, const real_format *format)
504 if (do_mpfr_arg2 (result, mpfr_pow, arg0, arg1, format))
505 return true;
507 /* Check for an integer exponent. */
508 REAL_VALUE_TYPE cint1;
509 HOST_WIDE_INT n1 = real_to_integer (arg1);
510 real_from_integer (&cint1, VOIDmode, n1, SIGNED);
511 /* Attempt to evaluate pow at compile-time, unless this should
512 raise an exception. */
513 if (real_identical (arg1, &cint1)
514 && (n1 > 0
515 || (!flag_trapping_math && !flag_errno_math)
516 || !real_equal (arg0, &dconst0)))
518 bool inexact = real_powi (result, format, arg0, n1);
519 /* Avoid the folding if flag_signaling_nans is on. */
520 if (flag_unsafe_math_optimizations
521 || (!inexact
522 && !(flag_signaling_nans
523 && REAL_VALUE_ISSIGNALING_NAN (*arg0))))
524 return true;
527 return false;
530 /* Try to evaluate:
532 *RESULT = nextafter (*ARG0, *ARG1)
536 *RESULT = nexttoward (*ARG0, *ARG1)
538 in format FORMAT. Return true on success. */
540 static bool
541 fold_const_nextafter (real_value *result, const real_value *arg0,
542 const real_value *arg1, const real_format *format)
544 if (REAL_VALUE_ISSIGNALING_NAN (*arg0)
545 || REAL_VALUE_ISSIGNALING_NAN (*arg1))
546 return false;
548 /* Don't handle composite modes, nor decimal, nor modes without
549 inf or denorm at least for now. */
550 if (format->pnan < format->p
551 || format->b == 10
552 || !format->has_inf
553 || !format->has_denorm)
554 return false;
556 if (real_nextafter (result, format, arg0, arg1)
557 /* If raising underflow or overflow and setting errno to ERANGE,
558 fail if we care about those side-effects. */
559 && (flag_trapping_math || flag_errno_math))
560 return false;
561 /* Similarly for nextafter (0, 1) raising underflow. */
562 else if (flag_trapping_math
563 && arg0->cl == rvc_zero
564 && result->cl != rvc_zero)
565 return false;
567 real_convert (result, format, result);
569 return true;
572 /* Try to evaluate:
574 *RESULT = ldexp (*ARG0, ARG1)
576 in format FORMAT. Return true on success. */
578 static bool
579 fold_const_builtin_load_exponent (real_value *result, const real_value *arg0,
580 const wide_int_ref &arg1,
581 const real_format *format)
583 /* Bound the maximum adjustment to twice the range of the
584 mode's valid exponents. Use abs to ensure the range is
585 positive as a sanity check. */
586 int max_exp_adj = 2 * labs (format->emax - format->emin);
588 /* The requested adjustment must be inside this range. This
589 is a preliminary cap to avoid things like overflow, we
590 may still fail to compute the result for other reasons. */
591 if (wi::les_p (arg1, -max_exp_adj) || wi::ges_p (arg1, max_exp_adj))
592 return false;
594 /* Don't perform operation if we honor signaling NaNs and
595 operand is a signaling NaN. */
596 if (!flag_unsafe_math_optimizations
597 && flag_signaling_nans
598 && REAL_VALUE_ISSIGNALING_NAN (*arg0))
599 return false;
601 REAL_VALUE_TYPE initial_result;
602 real_ldexp (&initial_result, arg0, arg1.to_shwi ());
604 /* Ensure we didn't overflow. */
605 if (real_isinf (&initial_result))
606 return false;
608 /* Only proceed if the target mode can hold the
609 resulting value. */
610 *result = real_value_truncate (format, initial_result);
611 return real_equal (&initial_result, result);
614 /* Fold a call to __builtin_nan or __builtin_nans with argument ARG and
615 return type TYPE. QUIET is true if a quiet rather than signalling
616 NaN is required. */
618 static tree
619 fold_const_builtin_nan (tree type, tree arg, bool quiet)
621 REAL_VALUE_TYPE real;
622 const char *str = c_getstr (arg);
623 if (str && real_nan (&real, str, quiet, TYPE_MODE (type)))
624 return build_real (type, real);
625 return NULL_TREE;
628 /* Fold a call to IFN_REDUC_<CODE> (ARG), returning a value of type TYPE. */
630 static tree
631 fold_const_reduction (tree type, tree arg, tree_code code)
633 unsigned HOST_WIDE_INT nelts;
634 if (TREE_CODE (arg) != VECTOR_CST
635 || !VECTOR_CST_NELTS (arg).is_constant (&nelts))
636 return NULL_TREE;
638 tree res = VECTOR_CST_ELT (arg, 0);
639 for (unsigned HOST_WIDE_INT i = 1; i < nelts; i++)
641 res = const_binop (code, type, res, VECTOR_CST_ELT (arg, i));
642 if (res == NULL_TREE || !CONSTANT_CLASS_P (res))
643 return NULL_TREE;
645 return res;
648 /* Fold a call to IFN_VEC_CONVERT (ARG) returning TYPE. */
650 static tree
651 fold_const_vec_convert (tree ret_type, tree arg)
653 enum tree_code code = NOP_EXPR;
654 tree arg_type = TREE_TYPE (arg);
655 if (TREE_CODE (arg) != VECTOR_CST)
656 return NULL_TREE;
658 gcc_checking_assert (VECTOR_TYPE_P (ret_type) && VECTOR_TYPE_P (arg_type));
660 if (INTEGRAL_TYPE_P (TREE_TYPE (ret_type))
661 && SCALAR_FLOAT_TYPE_P (TREE_TYPE (arg_type)))
662 code = FIX_TRUNC_EXPR;
663 else if (INTEGRAL_TYPE_P (TREE_TYPE (arg_type))
664 && SCALAR_FLOAT_TYPE_P (TREE_TYPE (ret_type)))
665 code = FLOAT_EXPR;
667 /* We can't handle steps directly when extending, since the
668 values need to wrap at the original precision first. */
669 bool step_ok_p
670 = (INTEGRAL_TYPE_P (TREE_TYPE (ret_type))
671 && INTEGRAL_TYPE_P (TREE_TYPE (arg_type))
672 && (TYPE_PRECISION (TREE_TYPE (ret_type))
673 <= TYPE_PRECISION (TREE_TYPE (arg_type))));
674 tree_vector_builder elts;
675 if (!elts.new_unary_operation (ret_type, arg, step_ok_p))
676 return NULL_TREE;
678 unsigned int count = elts.encoded_nelts ();
679 for (unsigned int i = 0; i < count; ++i)
681 tree elt = fold_unary (code, TREE_TYPE (ret_type),
682 VECTOR_CST_ELT (arg, i));
683 if (elt == NULL_TREE || !CONSTANT_CLASS_P (elt))
684 return NULL_TREE;
685 elts.quick_push (elt);
688 return elts.build ();
691 /* Try to evaluate:
693 IFN_WHILE_ULT (ARG0, ARG1, (TYPE) { ... })
695 Return the value on success and null on failure. */
697 static tree
698 fold_while_ult (tree type, poly_uint64 arg0, poly_uint64 arg1)
700 if (known_ge (arg0, arg1))
701 return build_zero_cst (type);
703 if (maybe_ge (arg0, arg1))
704 return NULL_TREE;
706 poly_uint64 diff = arg1 - arg0;
707 poly_uint64 nelts = TYPE_VECTOR_SUBPARTS (type);
708 if (known_ge (diff, nelts))
709 return build_all_ones_cst (type);
711 unsigned HOST_WIDE_INT const_diff;
712 if (known_le (diff, nelts) && diff.is_constant (&const_diff))
714 tree minus_one = build_minus_one_cst (TREE_TYPE (type));
715 tree zero = build_zero_cst (TREE_TYPE (type));
716 return build_vector_a_then_b (type, const_diff, minus_one, zero);
718 return NULL_TREE;
721 /* Try to evaluate:
723 *RESULT = FN (*ARG)
725 in format FORMAT. Return true on success. */
727 static bool
728 fold_const_call_ss (real_value *result, combined_fn fn,
729 const real_value *arg, const real_format *format)
731 switch (fn)
733 CASE_CFN_SQRT:
734 CASE_CFN_SQRT_FN:
735 return (real_compare (GE_EXPR, arg, &dconst0)
736 && do_mpfr_arg1 (result, mpfr_sqrt, arg, format));
738 CASE_CFN_CBRT:
739 return do_mpfr_arg1 (result, mpfr_cbrt, arg, format);
741 CASE_CFN_ASIN:
742 return (real_compare (GE_EXPR, arg, &dconstm1)
743 && real_compare (LE_EXPR, arg, &dconst1)
744 && do_mpfr_arg1 (result, mpfr_asin, arg, format));
746 CASE_CFN_ACOS:
747 return (real_compare (GE_EXPR, arg, &dconstm1)
748 && real_compare (LE_EXPR, arg, &dconst1)
749 && do_mpfr_arg1 (result, mpfr_acos, arg, format));
751 CASE_CFN_ATAN:
752 return do_mpfr_arg1 (result, mpfr_atan, arg, format);
754 CASE_CFN_ASINH:
755 return do_mpfr_arg1 (result, mpfr_asinh, arg, format);
757 CASE_CFN_ACOSH:
758 return (real_compare (GE_EXPR, arg, &dconst1)
759 && do_mpfr_arg1 (result, mpfr_acosh, arg, format));
761 CASE_CFN_ATANH:
762 return (real_compare (GE_EXPR, arg, &dconstm1)
763 && real_compare (LE_EXPR, arg, &dconst1)
764 && do_mpfr_arg1 (result, mpfr_atanh, arg, format));
766 CASE_CFN_SIN:
767 return do_mpfr_arg1 (result, mpfr_sin, arg, format);
769 CASE_CFN_COS:
770 return do_mpfr_arg1 (result, mpfr_cos, arg, format);
772 CASE_CFN_TAN:
773 return do_mpfr_arg1 (result, mpfr_tan, arg, format);
775 CASE_CFN_SINH:
776 return do_mpfr_arg1 (result, mpfr_sinh, arg, format);
778 CASE_CFN_COSH:
779 return do_mpfr_arg1 (result, mpfr_cosh, arg, format);
781 CASE_CFN_TANH:
782 return do_mpfr_arg1 (result, mpfr_tanh, arg, format);
784 CASE_CFN_ERF:
785 return do_mpfr_arg1 (result, mpfr_erf, arg, format);
787 CASE_CFN_ERFC:
788 return do_mpfr_arg1 (result, mpfr_erfc, arg, format);
790 CASE_CFN_TGAMMA:
791 return do_mpfr_arg1 (result, mpfr_gamma, arg, format);
793 CASE_CFN_EXP:
794 return do_mpfr_arg1 (result, mpfr_exp, arg, format);
796 CASE_CFN_EXP2:
797 return do_mpfr_arg1 (result, mpfr_exp2, arg, format);
799 CASE_CFN_EXP10:
800 CASE_CFN_POW10:
801 return do_mpfr_arg1 (result, mpfr_exp10, arg, format);
803 CASE_CFN_EXPM1:
804 return do_mpfr_arg1 (result, mpfr_expm1, arg, format);
806 CASE_CFN_LOG:
807 return (real_compare (GT_EXPR, arg, &dconst0)
808 && do_mpfr_arg1 (result, mpfr_log, arg, format));
810 CASE_CFN_LOG2:
811 return (real_compare (GT_EXPR, arg, &dconst0)
812 && do_mpfr_arg1 (result, mpfr_log2, arg, format));
814 CASE_CFN_LOG10:
815 return (real_compare (GT_EXPR, arg, &dconst0)
816 && do_mpfr_arg1 (result, mpfr_log10, arg, format));
818 CASE_CFN_LOG1P:
819 return (real_compare (GT_EXPR, arg, &dconstm1)
820 && do_mpfr_arg1 (result, mpfr_log1p, arg, format));
822 CASE_CFN_J0:
823 return do_mpfr_arg1 (result, mpfr_j0, arg, format);
825 CASE_CFN_J1:
826 return do_mpfr_arg1 (result, mpfr_j1, arg, format);
828 CASE_CFN_Y0:
829 return (real_compare (GT_EXPR, arg, &dconst0)
830 && do_mpfr_arg1 (result, mpfr_y0, arg, format));
832 CASE_CFN_Y1:
833 return (real_compare (GT_EXPR, arg, &dconst0)
834 && do_mpfr_arg1 (result, mpfr_y1, arg, format));
836 CASE_CFN_FLOOR:
837 CASE_CFN_FLOOR_FN:
838 if (!REAL_VALUE_ISSIGNALING_NAN (*arg))
840 real_floor (result, format, arg);
841 return true;
843 return false;
845 CASE_CFN_CEIL:
846 CASE_CFN_CEIL_FN:
847 if (!REAL_VALUE_ISSIGNALING_NAN (*arg))
849 real_ceil (result, format, arg);
850 return true;
852 return false;
854 CASE_CFN_TRUNC:
855 CASE_CFN_TRUNC_FN:
856 if (!REAL_VALUE_ISSIGNALING_NAN (*arg))
858 real_trunc (result, format, arg);
859 return true;
861 return false;
863 CASE_CFN_ROUND:
864 CASE_CFN_ROUND_FN:
865 if (!REAL_VALUE_ISSIGNALING_NAN (*arg))
867 real_round (result, format, arg);
868 return true;
870 return false;
872 CASE_CFN_ROUNDEVEN:
873 CASE_CFN_ROUNDEVEN_FN:
874 if (!REAL_VALUE_ISSIGNALING_NAN (*arg))
876 real_roundeven (result, format, arg);
877 return true;
879 return false;
881 CASE_CFN_LOGB:
882 return fold_const_logb (result, arg, format);
884 CASE_CFN_SIGNIFICAND:
885 return fold_const_significand (result, arg, format);
887 default:
888 return false;
892 /* Try to evaluate:
894 *RESULT = FN (*ARG)
896 where FORMAT is the format of ARG and PRECISION is the number of
897 significant bits in the result. Return true on success. */
899 static bool
900 fold_const_call_ss (wide_int *result, combined_fn fn,
901 const real_value *arg, unsigned int precision,
902 const real_format *format)
904 switch (fn)
906 CASE_CFN_SIGNBIT:
907 if (real_isneg (arg))
908 *result = wi::one (precision);
909 else
910 *result = wi::zero (precision);
911 return true;
913 CASE_CFN_ILOGB:
914 /* For ilogb we don't know FP_ILOGB0, so only handle normal values.
915 Proceed iff radix == 2. In GCC, normalized significands are in
916 the range [0.5, 1.0). We want the exponent as if they were
917 [1.0, 2.0) so get the exponent and subtract 1. */
918 if (arg->cl == rvc_normal && format->b == 2)
920 *result = wi::shwi (REAL_EXP (arg) - 1, precision);
921 return true;
923 return false;
925 CASE_CFN_ICEIL:
926 CASE_CFN_LCEIL:
927 CASE_CFN_LLCEIL:
928 return fold_const_conversion (result, real_ceil, arg,
929 precision, format);
931 CASE_CFN_LFLOOR:
932 CASE_CFN_IFLOOR:
933 CASE_CFN_LLFLOOR:
934 return fold_const_conversion (result, real_floor, arg,
935 precision, format);
937 CASE_CFN_IROUND:
938 CASE_CFN_LROUND:
939 CASE_CFN_LLROUND:
940 return fold_const_conversion (result, real_round, arg,
941 precision, format);
943 CASE_CFN_IRINT:
944 CASE_CFN_LRINT:
945 CASE_CFN_LLRINT:
946 /* Not yet folded to a constant. */
947 return false;
949 CASE_CFN_FINITE:
950 case CFN_BUILT_IN_FINITED32:
951 case CFN_BUILT_IN_FINITED64:
952 case CFN_BUILT_IN_FINITED128:
953 case CFN_BUILT_IN_ISFINITE:
954 *result = wi::shwi (real_isfinite (arg) ? 1 : 0, precision);
955 return true;
957 CASE_CFN_ISINF:
958 case CFN_BUILT_IN_ISINFD32:
959 case CFN_BUILT_IN_ISINFD64:
960 case CFN_BUILT_IN_ISINFD128:
961 if (real_isinf (arg))
962 *result = wi::shwi (arg->sign ? -1 : 1, precision);
963 else
964 *result = wi::shwi (0, precision);
965 return true;
967 CASE_CFN_ISNAN:
968 case CFN_BUILT_IN_ISNAND32:
969 case CFN_BUILT_IN_ISNAND64:
970 case CFN_BUILT_IN_ISNAND128:
971 *result = wi::shwi (real_isnan (arg) ? 1 : 0, precision);
972 return true;
974 default:
975 return false;
979 /* Try to evaluate:
981 *RESULT = FN (ARG)
983 where ARG_TYPE is the type of ARG and PRECISION is the number of bits
984 in the result. Return true on success. */
986 static bool
987 fold_const_call_ss (wide_int *result, combined_fn fn, const wide_int_ref &arg,
988 unsigned int precision, tree arg_type)
990 switch (fn)
992 CASE_CFN_FFS:
993 *result = wi::shwi (wi::ffs (arg), precision);
994 return true;
996 CASE_CFN_CLZ:
998 int tmp;
999 if (wi::ne_p (arg, 0))
1000 tmp = wi::clz (arg);
1001 else if (!CLZ_DEFINED_VALUE_AT_ZERO (SCALAR_INT_TYPE_MODE (arg_type),
1002 tmp))
1003 tmp = TYPE_PRECISION (arg_type);
1004 *result = wi::shwi (tmp, precision);
1005 return true;
1008 CASE_CFN_CTZ:
1010 int tmp;
1011 if (wi::ne_p (arg, 0))
1012 tmp = wi::ctz (arg);
1013 else if (!CTZ_DEFINED_VALUE_AT_ZERO (SCALAR_INT_TYPE_MODE (arg_type),
1014 tmp))
1015 tmp = TYPE_PRECISION (arg_type);
1016 *result = wi::shwi (tmp, precision);
1017 return true;
1020 CASE_CFN_CLRSB:
1021 *result = wi::shwi (wi::clrsb (arg), precision);
1022 return true;
1024 CASE_CFN_POPCOUNT:
1025 *result = wi::shwi (wi::popcount (arg), precision);
1026 return true;
1028 CASE_CFN_PARITY:
1029 *result = wi::shwi (wi::parity (arg), precision);
1030 return true;
1032 case CFN_BUILT_IN_BSWAP16:
1033 case CFN_BUILT_IN_BSWAP32:
1034 case CFN_BUILT_IN_BSWAP64:
1035 case CFN_BUILT_IN_BSWAP128:
1036 *result = wide_int::from (arg, precision, TYPE_SIGN (arg_type)).bswap ();
1037 return true;
1039 default:
1040 return false;
1044 /* Try to evaluate:
1046 RESULT = FN (*ARG)
1048 where FORMAT is the format of ARG and of the real and imaginary parts
1049 of RESULT, passed as RESULT_REAL and RESULT_IMAG respectively. Return
1050 true on success. */
1052 static bool
1053 fold_const_call_cs (real_value *result_real, real_value *result_imag,
1054 combined_fn fn, const real_value *arg,
1055 const real_format *format)
1057 switch (fn)
1059 CASE_CFN_CEXPI:
1060 /* cexpi(x+yi) = cos(x)+sin(y)*i. */
1061 return do_mpfr_sincos (result_imag, result_real, arg, format);
1063 default:
1064 return false;
1068 /* Try to evaluate:
1070 *RESULT = fn (ARG)
1072 where FORMAT is the format of RESULT and of the real and imaginary parts
1073 of ARG, passed as ARG_REAL and ARG_IMAG respectively. Return true on
1074 success. */
1076 static bool
1077 fold_const_call_sc (real_value *result, combined_fn fn,
1078 const real_value *arg_real, const real_value *arg_imag,
1079 const real_format *format)
1081 switch (fn)
1083 CASE_CFN_CABS:
1084 return do_mpfr_arg2 (result, mpfr_hypot, arg_real, arg_imag, format);
1086 default:
1087 return false;
1091 /* Try to evaluate:
1093 RESULT = fn (ARG)
1095 where FORMAT is the format of the real and imaginary parts of RESULT
1096 (RESULT_REAL and RESULT_IMAG) and of ARG (ARG_REAL and ARG_IMAG).
1097 Return true on success. */
1099 static bool
1100 fold_const_call_cc (real_value *result_real, real_value *result_imag,
1101 combined_fn fn, const real_value *arg_real,
1102 const real_value *arg_imag, const real_format *format)
1104 switch (fn)
1106 CASE_CFN_CCOS:
1107 return do_mpc_arg1 (result_real, result_imag, mpc_cos,
1108 arg_real, arg_imag, format);
1110 CASE_CFN_CCOSH:
1111 return do_mpc_arg1 (result_real, result_imag, mpc_cosh,
1112 arg_real, arg_imag, format);
1114 CASE_CFN_CPROJ:
1115 if (real_isinf (arg_real) || real_isinf (arg_imag))
1117 real_inf (result_real);
1118 *result_imag = dconst0;
1119 result_imag->sign = arg_imag->sign;
1121 else
1123 *result_real = *arg_real;
1124 *result_imag = *arg_imag;
1126 return true;
1128 CASE_CFN_CSIN:
1129 return do_mpc_arg1 (result_real, result_imag, mpc_sin,
1130 arg_real, arg_imag, format);
1132 CASE_CFN_CSINH:
1133 return do_mpc_arg1 (result_real, result_imag, mpc_sinh,
1134 arg_real, arg_imag, format);
1136 CASE_CFN_CTAN:
1137 return do_mpc_arg1 (result_real, result_imag, mpc_tan,
1138 arg_real, arg_imag, format);
1140 CASE_CFN_CTANH:
1141 return do_mpc_arg1 (result_real, result_imag, mpc_tanh,
1142 arg_real, arg_imag, format);
1144 CASE_CFN_CLOG:
1145 return do_mpc_arg1 (result_real, result_imag, mpc_log,
1146 arg_real, arg_imag, format);
1148 CASE_CFN_CSQRT:
1149 return do_mpc_arg1 (result_real, result_imag, mpc_sqrt,
1150 arg_real, arg_imag, format);
1152 CASE_CFN_CASIN:
1153 return do_mpc_arg1 (result_real, result_imag, mpc_asin,
1154 arg_real, arg_imag, format);
1156 CASE_CFN_CACOS:
1157 return do_mpc_arg1 (result_real, result_imag, mpc_acos,
1158 arg_real, arg_imag, format);
1160 CASE_CFN_CATAN:
1161 return do_mpc_arg1 (result_real, result_imag, mpc_atan,
1162 arg_real, arg_imag, format);
1164 CASE_CFN_CASINH:
1165 return do_mpc_arg1 (result_real, result_imag, mpc_asinh,
1166 arg_real, arg_imag, format);
1168 CASE_CFN_CACOSH:
1169 return do_mpc_arg1 (result_real, result_imag, mpc_acosh,
1170 arg_real, arg_imag, format);
1172 CASE_CFN_CATANH:
1173 return do_mpc_arg1 (result_real, result_imag, mpc_atanh,
1174 arg_real, arg_imag, format);
1176 CASE_CFN_CEXP:
1177 return do_mpc_arg1 (result_real, result_imag, mpc_exp,
1178 arg_real, arg_imag, format);
1180 default:
1181 return false;
1185 /* Subroutine of fold_const_call, with the same interface. Handle cases
1186 where the arguments and result are numerical. */
1188 static tree
1189 fold_const_call_1 (combined_fn fn, tree type, tree arg)
1191 machine_mode mode = TYPE_MODE (type);
1192 machine_mode arg_mode = TYPE_MODE (TREE_TYPE (arg));
1194 if (integer_cst_p (arg))
1196 if (SCALAR_INT_MODE_P (mode))
1198 wide_int result;
1199 if (fold_const_call_ss (&result, fn, wi::to_wide (arg),
1200 TYPE_PRECISION (type), TREE_TYPE (arg)))
1201 return wide_int_to_tree (type, result);
1203 return NULL_TREE;
1206 if (real_cst_p (arg))
1208 gcc_checking_assert (SCALAR_FLOAT_MODE_P (arg_mode));
1209 if (mode == arg_mode)
1211 /* real -> real. */
1212 REAL_VALUE_TYPE result;
1213 if (fold_const_call_ss (&result, fn, TREE_REAL_CST_PTR (arg),
1214 REAL_MODE_FORMAT (mode)))
1215 return build_real (type, result);
1217 else if (COMPLEX_MODE_P (mode)
1218 && GET_MODE_INNER (mode) == arg_mode)
1220 /* real -> complex real. */
1221 REAL_VALUE_TYPE result_real, result_imag;
1222 if (fold_const_call_cs (&result_real, &result_imag, fn,
1223 TREE_REAL_CST_PTR (arg),
1224 REAL_MODE_FORMAT (arg_mode)))
1225 return build_complex (type,
1226 build_real (TREE_TYPE (type), result_real),
1227 build_real (TREE_TYPE (type), result_imag));
1229 else if (INTEGRAL_TYPE_P (type))
1231 /* real -> int. */
1232 wide_int result;
1233 if (fold_const_call_ss (&result, fn,
1234 TREE_REAL_CST_PTR (arg),
1235 TYPE_PRECISION (type),
1236 REAL_MODE_FORMAT (arg_mode)))
1237 return wide_int_to_tree (type, result);
1239 return NULL_TREE;
1242 if (complex_cst_p (arg))
1244 gcc_checking_assert (COMPLEX_MODE_P (arg_mode));
1245 machine_mode inner_mode = GET_MODE_INNER (arg_mode);
1246 tree argr = TREE_REALPART (arg);
1247 tree argi = TREE_IMAGPART (arg);
1248 if (mode == arg_mode
1249 && real_cst_p (argr)
1250 && real_cst_p (argi))
1252 /* complex real -> complex real. */
1253 REAL_VALUE_TYPE result_real, result_imag;
1254 if (fold_const_call_cc (&result_real, &result_imag, fn,
1255 TREE_REAL_CST_PTR (argr),
1256 TREE_REAL_CST_PTR (argi),
1257 REAL_MODE_FORMAT (inner_mode)))
1258 return build_complex (type,
1259 build_real (TREE_TYPE (type), result_real),
1260 build_real (TREE_TYPE (type), result_imag));
1262 if (mode == inner_mode
1263 && real_cst_p (argr)
1264 && real_cst_p (argi))
1266 /* complex real -> real. */
1267 REAL_VALUE_TYPE result;
1268 if (fold_const_call_sc (&result, fn,
1269 TREE_REAL_CST_PTR (argr),
1270 TREE_REAL_CST_PTR (argi),
1271 REAL_MODE_FORMAT (inner_mode)))
1272 return build_real (type, result);
1274 return NULL_TREE;
1277 return NULL_TREE;
1280 /* Try to fold FN (ARG) to a constant. Return the constant on success,
1281 otherwise return null. TYPE is the type of the return value. */
1283 tree
1284 fold_const_call (combined_fn fn, tree type, tree arg)
1286 switch (fn)
1288 case CFN_BUILT_IN_STRLEN:
1289 if (const char *str = c_getstr (arg))
1290 return build_int_cst (type, strlen (str));
1291 return NULL_TREE;
1293 CASE_CFN_NAN:
1294 CASE_FLT_FN_FLOATN_NX (CFN_BUILT_IN_NAN):
1295 case CFN_BUILT_IN_NAND32:
1296 case CFN_BUILT_IN_NAND64:
1297 case CFN_BUILT_IN_NAND128:
1298 return fold_const_builtin_nan (type, arg, true);
1300 CASE_CFN_NANS:
1301 CASE_FLT_FN_FLOATN_NX (CFN_BUILT_IN_NANS):
1302 case CFN_BUILT_IN_NANSD32:
1303 case CFN_BUILT_IN_NANSD64:
1304 case CFN_BUILT_IN_NANSD128:
1305 return fold_const_builtin_nan (type, arg, false);
1307 case CFN_REDUC_PLUS:
1308 return fold_const_reduction (type, arg, PLUS_EXPR);
1310 case CFN_REDUC_MAX:
1311 return fold_const_reduction (type, arg, MAX_EXPR);
1313 case CFN_REDUC_MIN:
1314 return fold_const_reduction (type, arg, MIN_EXPR);
1316 case CFN_REDUC_AND:
1317 return fold_const_reduction (type, arg, BIT_AND_EXPR);
1319 case CFN_REDUC_IOR:
1320 return fold_const_reduction (type, arg, BIT_IOR_EXPR);
1322 case CFN_REDUC_XOR:
1323 return fold_const_reduction (type, arg, BIT_XOR_EXPR);
1325 case CFN_VEC_CONVERT:
1326 return fold_const_vec_convert (type, arg);
1328 default:
1329 return fold_const_call_1 (fn, type, arg);
1333 /* Fold a call to IFN_FOLD_LEFT_<CODE> (ARG0, ARG1), returning a value
1334 of type TYPE. */
1336 static tree
1337 fold_const_fold_left (tree type, tree arg0, tree arg1, tree_code code)
1339 if (TREE_CODE (arg1) != VECTOR_CST)
1340 return NULL_TREE;
1342 unsigned HOST_WIDE_INT nelts;
1343 if (!VECTOR_CST_NELTS (arg1).is_constant (&nelts))
1344 return NULL_TREE;
1346 for (unsigned HOST_WIDE_INT i = 0; i < nelts; i++)
1348 arg0 = const_binop (code, type, arg0, VECTOR_CST_ELT (arg1, i));
1349 if (arg0 == NULL_TREE || !CONSTANT_CLASS_P (arg0))
1350 return NULL_TREE;
1352 return arg0;
1355 /* Try to evaluate:
1357 *RESULT = FN (*ARG0, *ARG1)
1359 in format FORMAT. Return true on success. */
1361 static bool
1362 fold_const_call_sss (real_value *result, combined_fn fn,
1363 const real_value *arg0, const real_value *arg1,
1364 const real_format *format)
1366 switch (fn)
1368 CASE_CFN_DREM:
1369 CASE_CFN_REMAINDER:
1370 return do_mpfr_arg2 (result, mpfr_remainder, arg0, arg1, format);
1372 CASE_CFN_ATAN2:
1373 return do_mpfr_arg2 (result, mpfr_atan2, arg0, arg1, format);
1375 CASE_CFN_FDIM:
1376 return do_mpfr_arg2 (result, mpfr_dim, arg0, arg1, format);
1378 CASE_CFN_FMOD:
1379 return do_mpfr_arg2 (result, mpfr_fmod, arg0, arg1, format);
1381 CASE_CFN_HYPOT:
1382 return do_mpfr_arg2 (result, mpfr_hypot, arg0, arg1, format);
1384 CASE_CFN_COPYSIGN:
1385 CASE_CFN_COPYSIGN_FN:
1386 *result = *arg0;
1387 real_copysign (result, arg1);
1388 return true;
1390 CASE_CFN_FMIN:
1391 CASE_CFN_FMIN_FN:
1392 return do_mpfr_arg2 (result, mpfr_min, arg0, arg1, format);
1394 CASE_CFN_FMAX:
1395 CASE_CFN_FMAX_FN:
1396 return do_mpfr_arg2 (result, mpfr_max, arg0, arg1, format);
1398 CASE_CFN_POW:
1399 return fold_const_pow (result, arg0, arg1, format);
1401 CASE_CFN_NEXTAFTER:
1402 CASE_CFN_NEXTTOWARD:
1403 return fold_const_nextafter (result, arg0, arg1, format);
1405 default:
1406 return false;
1410 /* Try to evaluate:
1412 *RESULT = FN (*ARG0, ARG1)
1414 where FORMAT is the format of *RESULT and *ARG0. Return true on
1415 success. */
1417 static bool
1418 fold_const_call_sss (real_value *result, combined_fn fn,
1419 const real_value *arg0, const wide_int_ref &arg1,
1420 const real_format *format)
1422 switch (fn)
1424 CASE_CFN_LDEXP:
1425 return fold_const_builtin_load_exponent (result, arg0, arg1, format);
1427 CASE_CFN_SCALBN:
1428 CASE_CFN_SCALBLN:
1429 return (format->b == 2
1430 && fold_const_builtin_load_exponent (result, arg0, arg1,
1431 format));
1433 CASE_CFN_POWI:
1434 /* Avoid the folding if flag_signaling_nans is on and
1435 operand is a signaling NaN. */
1436 if (!flag_unsafe_math_optimizations
1437 && flag_signaling_nans
1438 && REAL_VALUE_ISSIGNALING_NAN (*arg0))
1439 return false;
1441 real_powi (result, format, arg0, arg1.to_shwi ());
1442 return true;
1444 default:
1445 return false;
1449 /* Try to evaluate:
1451 *RESULT = FN (ARG0, *ARG1)
1453 where FORMAT is the format of *RESULT and *ARG1. Return true on
1454 success. */
1456 static bool
1457 fold_const_call_sss (real_value *result, combined_fn fn,
1458 const wide_int_ref &arg0, const real_value *arg1,
1459 const real_format *format)
1461 switch (fn)
1463 CASE_CFN_JN:
1464 return do_mpfr_arg2 (result, mpfr_jn, arg0, arg1, format);
1466 CASE_CFN_YN:
1467 return (real_compare (GT_EXPR, arg1, &dconst0)
1468 && do_mpfr_arg2 (result, mpfr_yn, arg0, arg1, format));
1470 default:
1471 return false;
1475 /* Try to evaluate:
1477 RESULT = fn (ARG0, ARG1)
1479 where FORMAT is the format of the real and imaginary parts of RESULT
1480 (RESULT_REAL and RESULT_IMAG), of ARG0 (ARG0_REAL and ARG0_IMAG)
1481 and of ARG1 (ARG1_REAL and ARG1_IMAG). Return true on success. */
1483 static bool
1484 fold_const_call_ccc (real_value *result_real, real_value *result_imag,
1485 combined_fn fn, const real_value *arg0_real,
1486 const real_value *arg0_imag, const real_value *arg1_real,
1487 const real_value *arg1_imag, const real_format *format)
1489 switch (fn)
1491 CASE_CFN_CPOW:
1492 return do_mpc_arg2 (result_real, result_imag, mpc_pow,
1493 arg0_real, arg0_imag, arg1_real, arg1_imag, format);
1495 default:
1496 return false;
1500 /* Subroutine of fold_const_call, with the same interface. Handle cases
1501 where the arguments and result are numerical. */
1503 static tree
1504 fold_const_call_1 (combined_fn fn, tree type, tree arg0, tree arg1)
1506 machine_mode mode = TYPE_MODE (type);
1507 machine_mode arg0_mode = TYPE_MODE (TREE_TYPE (arg0));
1508 machine_mode arg1_mode = TYPE_MODE (TREE_TYPE (arg1));
1510 if (mode == arg0_mode
1511 && real_cst_p (arg0)
1512 && real_cst_p (arg1))
1514 gcc_checking_assert (SCALAR_FLOAT_MODE_P (arg0_mode));
1515 REAL_VALUE_TYPE result;
1516 if (arg0_mode == arg1_mode)
1518 /* real, real -> real. */
1519 if (fold_const_call_sss (&result, fn, TREE_REAL_CST_PTR (arg0),
1520 TREE_REAL_CST_PTR (arg1),
1521 REAL_MODE_FORMAT (mode)))
1522 return build_real (type, result);
1524 else if (arg1_mode == TYPE_MODE (long_double_type_node))
1525 switch (fn)
1527 CASE_CFN_NEXTTOWARD:
1528 /* real, long double -> real. */
1529 if (fold_const_call_sss (&result, fn, TREE_REAL_CST_PTR (arg0),
1530 TREE_REAL_CST_PTR (arg1),
1531 REAL_MODE_FORMAT (mode)))
1532 return build_real (type, result);
1533 break;
1534 default:
1535 break;
1537 return NULL_TREE;
1540 if (real_cst_p (arg0)
1541 && integer_cst_p (arg1))
1543 gcc_checking_assert (SCALAR_FLOAT_MODE_P (arg0_mode));
1544 if (mode == arg0_mode)
1546 /* real, int -> real. */
1547 REAL_VALUE_TYPE result;
1548 if (fold_const_call_sss (&result, fn, TREE_REAL_CST_PTR (arg0),
1549 wi::to_wide (arg1),
1550 REAL_MODE_FORMAT (mode)))
1551 return build_real (type, result);
1553 return NULL_TREE;
1556 if (integer_cst_p (arg0)
1557 && real_cst_p (arg1))
1559 gcc_checking_assert (SCALAR_FLOAT_MODE_P (arg1_mode));
1560 if (mode == arg1_mode)
1562 /* int, real -> real. */
1563 REAL_VALUE_TYPE result;
1564 if (fold_const_call_sss (&result, fn, wi::to_wide (arg0),
1565 TREE_REAL_CST_PTR (arg1),
1566 REAL_MODE_FORMAT (mode)))
1567 return build_real (type, result);
1569 return NULL_TREE;
1572 if (arg0_mode == arg1_mode
1573 && complex_cst_p (arg0)
1574 && complex_cst_p (arg1))
1576 gcc_checking_assert (COMPLEX_MODE_P (arg0_mode));
1577 machine_mode inner_mode = GET_MODE_INNER (arg0_mode);
1578 tree arg0r = TREE_REALPART (arg0);
1579 tree arg0i = TREE_IMAGPART (arg0);
1580 tree arg1r = TREE_REALPART (arg1);
1581 tree arg1i = TREE_IMAGPART (arg1);
1582 if (mode == arg0_mode
1583 && real_cst_p (arg0r)
1584 && real_cst_p (arg0i)
1585 && real_cst_p (arg1r)
1586 && real_cst_p (arg1i))
1588 /* complex real, complex real -> complex real. */
1589 REAL_VALUE_TYPE result_real, result_imag;
1590 if (fold_const_call_ccc (&result_real, &result_imag, fn,
1591 TREE_REAL_CST_PTR (arg0r),
1592 TREE_REAL_CST_PTR (arg0i),
1593 TREE_REAL_CST_PTR (arg1r),
1594 TREE_REAL_CST_PTR (arg1i),
1595 REAL_MODE_FORMAT (inner_mode)))
1596 return build_complex (type,
1597 build_real (TREE_TYPE (type), result_real),
1598 build_real (TREE_TYPE (type), result_imag));
1600 return NULL_TREE;
1603 return NULL_TREE;
1606 /* Try to fold FN (ARG0, ARG1) to a constant. Return the constant on success,
1607 otherwise return null. TYPE is the type of the return value. */
1609 tree
1610 fold_const_call (combined_fn fn, tree type, tree arg0, tree arg1)
1612 const char *p0, *p1;
1613 char c;
1614 switch (fn)
1616 case CFN_BUILT_IN_STRSPN:
1617 if ((p0 = c_getstr (arg0)) && (p1 = c_getstr (arg1)))
1618 return build_int_cst (type, strspn (p0, p1));
1619 return NULL_TREE;
1621 case CFN_BUILT_IN_STRCSPN:
1622 if ((p0 = c_getstr (arg0)) && (p1 = c_getstr (arg1)))
1623 return build_int_cst (type, strcspn (p0, p1));
1624 return NULL_TREE;
1626 case CFN_BUILT_IN_STRCMP:
1627 if ((p0 = c_getstr (arg0)) && (p1 = c_getstr (arg1)))
1628 return build_cmp_result (type, strcmp (p0, p1));
1629 return NULL_TREE;
1631 case CFN_BUILT_IN_STRCASECMP:
1632 if ((p0 = c_getstr (arg0)) && (p1 = c_getstr (arg1)))
1634 int r = strcmp (p0, p1);
1635 if (r == 0)
1636 return build_cmp_result (type, r);
1638 return NULL_TREE;
1640 case CFN_BUILT_IN_INDEX:
1641 case CFN_BUILT_IN_STRCHR:
1642 if ((p0 = c_getstr (arg0)) && target_char_cst_p (arg1, &c))
1644 const char *r = strchr (p0, c);
1645 if (r == NULL)
1646 return build_int_cst (type, 0);
1647 return fold_convert (type,
1648 fold_build_pointer_plus_hwi (arg0, r - p0));
1650 return NULL_TREE;
1652 case CFN_BUILT_IN_RINDEX:
1653 case CFN_BUILT_IN_STRRCHR:
1654 if ((p0 = c_getstr (arg0)) && target_char_cst_p (arg1, &c))
1656 const char *r = strrchr (p0, c);
1657 if (r == NULL)
1658 return build_int_cst (type, 0);
1659 return fold_convert (type,
1660 fold_build_pointer_plus_hwi (arg0, r - p0));
1662 return NULL_TREE;
1664 case CFN_BUILT_IN_STRSTR:
1665 if ((p1 = c_getstr (arg1)))
1667 if ((p0 = c_getstr (arg0)))
1669 const char *r = strstr (p0, p1);
1670 if (r == NULL)
1671 return build_int_cst (type, 0);
1672 return fold_convert (type,
1673 fold_build_pointer_plus_hwi (arg0, r - p0));
1675 if (*p1 == '\0')
1676 return fold_convert (type, arg0);
1678 return NULL_TREE;
1680 case CFN_FOLD_LEFT_PLUS:
1681 return fold_const_fold_left (type, arg0, arg1, PLUS_EXPR);
1683 default:
1684 return fold_const_call_1 (fn, type, arg0, arg1);
1688 /* Try to evaluate:
1690 *RESULT = FN (*ARG0, *ARG1, *ARG2)
1692 in format FORMAT. Return true on success. */
1694 static bool
1695 fold_const_call_ssss (real_value *result, combined_fn fn,
1696 const real_value *arg0, const real_value *arg1,
1697 const real_value *arg2, const real_format *format)
1699 switch (fn)
1701 CASE_CFN_FMA:
1702 CASE_CFN_FMA_FN:
1703 return do_mpfr_arg3 (result, mpfr_fma, arg0, arg1, arg2, format);
1705 case CFN_FMS:
1707 real_value new_arg2 = real_value_negate (arg2);
1708 return do_mpfr_arg3 (result, mpfr_fma, arg0, arg1, &new_arg2, format);
1711 case CFN_FNMA:
1713 real_value new_arg0 = real_value_negate (arg0);
1714 return do_mpfr_arg3 (result, mpfr_fma, &new_arg0, arg1, arg2, format);
1717 case CFN_FNMS:
1719 real_value new_arg0 = real_value_negate (arg0);
1720 real_value new_arg2 = real_value_negate (arg2);
1721 return do_mpfr_arg3 (result, mpfr_fma, &new_arg0, arg1,
1722 &new_arg2, format);
1725 default:
1726 return false;
1730 /* Subroutine of fold_const_call, with the same interface. Handle cases
1731 where the arguments and result are numerical. */
1733 static tree
1734 fold_const_call_1 (combined_fn fn, tree type, tree arg0, tree arg1, tree arg2)
1736 machine_mode mode = TYPE_MODE (type);
1737 machine_mode arg0_mode = TYPE_MODE (TREE_TYPE (arg0));
1738 machine_mode arg1_mode = TYPE_MODE (TREE_TYPE (arg1));
1739 machine_mode arg2_mode = TYPE_MODE (TREE_TYPE (arg2));
1741 if (arg0_mode == arg1_mode
1742 && arg0_mode == arg2_mode
1743 && real_cst_p (arg0)
1744 && real_cst_p (arg1)
1745 && real_cst_p (arg2))
1747 gcc_checking_assert (SCALAR_FLOAT_MODE_P (arg0_mode));
1748 if (mode == arg0_mode)
1750 /* real, real, real -> real. */
1751 REAL_VALUE_TYPE result;
1752 if (fold_const_call_ssss (&result, fn, TREE_REAL_CST_PTR (arg0),
1753 TREE_REAL_CST_PTR (arg1),
1754 TREE_REAL_CST_PTR (arg2),
1755 REAL_MODE_FORMAT (mode)))
1756 return build_real (type, result);
1758 return NULL_TREE;
1761 return NULL_TREE;
1764 /* Try to fold FN (ARG0, ARG1, ARG2) to a constant. Return the constant on
1765 success, otherwise return null. TYPE is the type of the return value. */
1767 tree
1768 fold_const_call (combined_fn fn, tree type, tree arg0, tree arg1, tree arg2)
1770 const char *p0, *p1;
1771 char c;
1772 unsigned HOST_WIDE_INT s0, s1, s2 = 0;
1773 switch (fn)
1775 case CFN_BUILT_IN_STRNCMP:
1776 if (!size_t_cst_p (arg2, &s2))
1777 return NULL_TREE;
1778 if (s2 == 0
1779 && !TREE_SIDE_EFFECTS (arg0)
1780 && !TREE_SIDE_EFFECTS (arg1))
1781 return build_int_cst (type, 0);
1782 else if ((p0 = c_getstr (arg0)) && (p1 = c_getstr (arg1)))
1783 return build_int_cst (type, strncmp (p0, p1, MIN (s2, SIZE_MAX)));
1784 return NULL_TREE;
1786 case CFN_BUILT_IN_STRNCASECMP:
1787 if (!size_t_cst_p (arg2, &s2))
1788 return NULL_TREE;
1789 if (s2 == 0
1790 && !TREE_SIDE_EFFECTS (arg0)
1791 && !TREE_SIDE_EFFECTS (arg1))
1792 return build_int_cst (type, 0);
1793 else if ((p0 = c_getstr (arg0))
1794 && (p1 = c_getstr (arg1))
1795 && strncmp (p0, p1, MIN (s2, SIZE_MAX)) == 0)
1796 return build_int_cst (type, 0);
1797 return NULL_TREE;
1799 case CFN_BUILT_IN_BCMP:
1800 case CFN_BUILT_IN_MEMCMP:
1801 if (!size_t_cst_p (arg2, &s2))
1802 return NULL_TREE;
1803 if (s2 == 0
1804 && !TREE_SIDE_EFFECTS (arg0)
1805 && !TREE_SIDE_EFFECTS (arg1))
1806 return build_int_cst (type, 0);
1807 if ((p0 = getbyterep (arg0, &s0))
1808 && (p1 = getbyterep (arg1, &s1))
1809 && s2 <= s0
1810 && s2 <= s1)
1811 return build_cmp_result (type, memcmp (p0, p1, s2));
1812 return NULL_TREE;
1814 case CFN_BUILT_IN_MEMCHR:
1815 if (!size_t_cst_p (arg2, &s2))
1816 return NULL_TREE;
1817 if (s2 == 0
1818 && !TREE_SIDE_EFFECTS (arg0)
1819 && !TREE_SIDE_EFFECTS (arg1))
1820 return build_int_cst (type, 0);
1821 if ((p0 = getbyterep (arg0, &s0))
1822 && s2 <= s0
1823 && target_char_cst_p (arg1, &c))
1825 const char *r = (const char *) memchr (p0, c, s2);
1826 if (r == NULL)
1827 return build_int_cst (type, 0);
1828 return fold_convert (type,
1829 fold_build_pointer_plus_hwi (arg0, r - p0));
1831 return NULL_TREE;
1833 case CFN_WHILE_ULT:
1835 poly_uint64 parg0, parg1;
1836 if (poly_int_tree_p (arg0, &parg0) && poly_int_tree_p (arg1, &parg1))
1837 return fold_while_ult (type, parg0, parg1);
1838 return NULL_TREE;
1841 default:
1842 return fold_const_call_1 (fn, type, arg0, arg1, arg2);