re PR rtl-optimization/64616 (Redundant ldr when accessing var inside and outside...
[gcc.git] / gcc / builtins.c
1 /* Expand builtin functions.
2 Copyright (C) 1988-2015 Free Software Foundation, Inc.
3
4 This file is part of GCC.
5
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.
10
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.
15
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/>. */
19
20 #include "config.h"
21 #include "system.h"
22 #include "coretypes.h"
23 #include "tm.h"
24 #include "machmode.h"
25 #include "rtl.h"
26 #include "hash-set.h"
27 #include "vec.h"
28 #include "double-int.h"
29 #include "input.h"
30 #include "alias.h"
31 #include "symtab.h"
32 #include "wide-int.h"
33 #include "inchash.h"
34 #include "tree.h"
35 #include "fold-const.h"
36 #include "stringpool.h"
37 #include "stor-layout.h"
38 #include "calls.h"
39 #include "varasm.h"
40 #include "tree-object-size.h"
41 #include "realmpfr.h"
42 #include "predict.h"
43 #include "hashtab.h"
44 #include "hard-reg-set.h"
45 #include "function.h"
46 #include "cfgrtl.h"
47 #include "basic-block.h"
48 #include "tree-ssa-alias.h"
49 #include "internal-fn.h"
50 #include "gimple-expr.h"
51 #include "is-a.h"
52 #include "gimple.h"
53 #include "flags.h"
54 #include "regs.h"
55 #include "except.h"
56 #include "insn-config.h"
57 #include "statistics.h"
58 #include "real.h"
59 #include "fixed-value.h"
60 #include "expmed.h"
61 #include "dojump.h"
62 #include "explow.h"
63 #include "emit-rtl.h"
64 #include "stmt.h"
65 #include "expr.h"
66 #include "insn-codes.h"
67 #include "optabs.h"
68 #include "libfuncs.h"
69 #include "recog.h"
70 #include "output.h"
71 #include "typeclass.h"
72 #include "tm_p.h"
73 #include "target.h"
74 #include "langhooks.h"
75 #include "tree-ssanames.h"
76 #include "tree-dfa.h"
77 #include "value-prof.h"
78 #include "diagnostic-core.h"
79 #include "builtins.h"
80 #include "asan.h"
81 #include "cilk.h"
82 #include "ipa-ref.h"
83 #include "lto-streamer.h"
84 #include "cgraph.h"
85 #include "tree-chkp.h"
86 #include "rtl-chkp.h"
87 #include "gomp-constants.h"
88
89
90 static tree do_mpc_arg1 (tree, tree, int (*)(mpc_ptr, mpc_srcptr, mpc_rnd_t));
91
92 struct target_builtins default_target_builtins;
93 #if SWITCHABLE_TARGET
94 struct target_builtins *this_target_builtins = &default_target_builtins;
95 #endif
96
97 /* Define the names of the builtin function types and codes. */
98 const char *const built_in_class_names[BUILT_IN_LAST]
99 = {"NOT_BUILT_IN", "BUILT_IN_FRONTEND", "BUILT_IN_MD", "BUILT_IN_NORMAL"};
100
101 #define DEF_BUILTIN(X, N, C, T, LT, B, F, NA, AT, IM, COND) #X,
102 const char * built_in_names[(int) END_BUILTINS] =
103 {
104 #include "builtins.def"
105 };
106 #undef DEF_BUILTIN
107
108 /* Setup an array of builtin_info_type, make sure each element decl is
109 initialized to NULL_TREE. */
110 builtin_info_type builtin_info[(int)END_BUILTINS];
111
112 /* Non-zero if __builtin_constant_p should be folded right away. */
113 bool force_folding_builtin_constant_p;
114
115 static rtx c_readstr (const char *, machine_mode);
116 static int target_char_cast (tree, char *);
117 static rtx get_memory_rtx (tree, tree);
118 static int apply_args_size (void);
119 static int apply_result_size (void);
120 #if defined (HAVE_untyped_call) || defined (HAVE_untyped_return)
121 static rtx result_vector (int, rtx);
122 #endif
123 static void expand_builtin_update_setjmp_buf (rtx);
124 static void expand_builtin_prefetch (tree);
125 static rtx expand_builtin_apply_args (void);
126 static rtx expand_builtin_apply_args_1 (void);
127 static rtx expand_builtin_apply (rtx, rtx, rtx);
128 static void expand_builtin_return (rtx);
129 static enum type_class type_to_class (tree);
130 static rtx expand_builtin_classify_type (tree);
131 static void expand_errno_check (tree, rtx);
132 static rtx expand_builtin_mathfn (tree, rtx, rtx);
133 static rtx expand_builtin_mathfn_2 (tree, rtx, rtx);
134 static rtx expand_builtin_mathfn_3 (tree, rtx, rtx);
135 static rtx expand_builtin_mathfn_ternary (tree, rtx, rtx);
136 static rtx expand_builtin_interclass_mathfn (tree, rtx);
137 static rtx expand_builtin_sincos (tree);
138 static rtx expand_builtin_cexpi (tree, rtx);
139 static rtx expand_builtin_int_roundingfn (tree, rtx);
140 static rtx expand_builtin_int_roundingfn_2 (tree, rtx);
141 static rtx expand_builtin_next_arg (void);
142 static rtx expand_builtin_va_start (tree);
143 static rtx expand_builtin_va_end (tree);
144 static rtx expand_builtin_va_copy (tree);
145 static rtx expand_builtin_memcmp (tree, rtx, machine_mode);
146 static rtx expand_builtin_strcmp (tree, rtx);
147 static rtx expand_builtin_strncmp (tree, rtx, machine_mode);
148 static rtx builtin_memcpy_read_str (void *, HOST_WIDE_INT, machine_mode);
149 static rtx expand_builtin_memcpy (tree, rtx);
150 static rtx expand_builtin_memcpy_with_bounds (tree, rtx);
151 static rtx expand_builtin_memcpy_args (tree, tree, tree, rtx, tree);
152 static rtx expand_builtin_mempcpy (tree, rtx, machine_mode);
153 static rtx expand_builtin_mempcpy_with_bounds (tree, rtx, machine_mode);
154 static rtx expand_builtin_mempcpy_args (tree, tree, tree, rtx,
155 machine_mode, int, tree);
156 static rtx expand_builtin_strcpy (tree, rtx);
157 static rtx expand_builtin_strcpy_args (tree, tree, rtx);
158 static rtx expand_builtin_stpcpy (tree, rtx, machine_mode);
159 static rtx expand_builtin_strncpy (tree, rtx);
160 static rtx builtin_memset_gen_str (void *, HOST_WIDE_INT, machine_mode);
161 static rtx expand_builtin_memset (tree, rtx, machine_mode);
162 static rtx expand_builtin_memset_with_bounds (tree, rtx, machine_mode);
163 static rtx expand_builtin_memset_args (tree, tree, tree, rtx, machine_mode, tree);
164 static rtx expand_builtin_bzero (tree);
165 static rtx expand_builtin_strlen (tree, rtx, machine_mode);
166 static rtx expand_builtin_alloca (tree, bool);
167 static rtx expand_builtin_unop (machine_mode, tree, rtx, rtx, optab);
168 static rtx expand_builtin_frame_address (tree, tree);
169 static tree stabilize_va_list_loc (location_t, tree, int);
170 static rtx expand_builtin_expect (tree, rtx);
171 static tree fold_builtin_constant_p (tree);
172 static tree fold_builtin_classify_type (tree);
173 static tree fold_builtin_strlen (location_t, tree, tree);
174 static tree fold_builtin_inf (location_t, tree, int);
175 static tree fold_builtin_nan (tree, tree, int);
176 static tree rewrite_call_expr (location_t, tree, int, tree, int, ...);
177 static bool validate_arg (const_tree, enum tree_code code);
178 static bool integer_valued_real_p (tree);
179 static tree fold_trunc_transparent_mathfn (location_t, tree, tree);
180 static rtx expand_builtin_fabs (tree, rtx, rtx);
181 static rtx expand_builtin_signbit (tree, rtx);
182 static tree fold_builtin_sqrt (location_t, tree, tree);
183 static tree fold_builtin_cbrt (location_t, tree, tree);
184 static tree fold_builtin_pow (location_t, tree, tree, tree, tree);
185 static tree fold_builtin_powi (location_t, tree, tree, tree, tree);
186 static tree fold_builtin_cos (location_t, tree, tree, tree);
187 static tree fold_builtin_cosh (location_t, tree, tree, tree);
188 static tree fold_builtin_tan (tree, tree);
189 static tree fold_builtin_trunc (location_t, tree, tree);
190 static tree fold_builtin_floor (location_t, tree, tree);
191 static tree fold_builtin_ceil (location_t, tree, tree);
192 static tree fold_builtin_round (location_t, tree, tree);
193 static tree fold_builtin_int_roundingfn (location_t, tree, tree);
194 static tree fold_builtin_bitop (tree, tree);
195 static tree fold_builtin_strchr (location_t, tree, tree, tree);
196 static tree fold_builtin_memchr (location_t, tree, tree, tree, tree);
197 static tree fold_builtin_memcmp (location_t, tree, tree, tree);
198 static tree fold_builtin_strcmp (location_t, tree, tree);
199 static tree fold_builtin_strncmp (location_t, tree, tree, tree);
200 static tree fold_builtin_signbit (location_t, tree, tree);
201 static tree fold_builtin_copysign (location_t, tree, tree, tree, tree);
202 static tree fold_builtin_isascii (location_t, tree);
203 static tree fold_builtin_toascii (location_t, tree);
204 static tree fold_builtin_isdigit (location_t, tree);
205 static tree fold_builtin_fabs (location_t, tree, tree);
206 static tree fold_builtin_abs (location_t, tree, tree);
207 static tree fold_builtin_unordered_cmp (location_t, tree, tree, tree, enum tree_code,
208 enum tree_code);
209 static tree fold_builtin_0 (location_t, tree);
210 static tree fold_builtin_1 (location_t, tree, tree);
211 static tree fold_builtin_2 (location_t, tree, tree, tree);
212 static tree fold_builtin_3 (location_t, tree, tree, tree, tree);
213 static tree fold_builtin_varargs (location_t, tree, tree*, int);
214
215 static tree fold_builtin_strpbrk (location_t, tree, tree, tree);
216 static tree fold_builtin_strstr (location_t, tree, tree, tree);
217 static tree fold_builtin_strrchr (location_t, tree, tree, tree);
218 static tree fold_builtin_strspn (location_t, tree, tree);
219 static tree fold_builtin_strcspn (location_t, tree, tree);
220
221 static rtx expand_builtin_object_size (tree);
222 static rtx expand_builtin_memory_chk (tree, rtx, machine_mode,
223 enum built_in_function);
224 static void maybe_emit_chk_warning (tree, enum built_in_function);
225 static void maybe_emit_sprintf_chk_warning (tree, enum built_in_function);
226 static void maybe_emit_free_warning (tree);
227 static tree fold_builtin_object_size (tree, tree);
228
229 unsigned HOST_WIDE_INT target_newline;
230 unsigned HOST_WIDE_INT target_percent;
231 static unsigned HOST_WIDE_INT target_c;
232 static unsigned HOST_WIDE_INT target_s;
233 char target_percent_c[3];
234 char target_percent_s[3];
235 char target_percent_s_newline[4];
236 static tree do_mpfr_arg1 (tree, tree, int (*)(mpfr_ptr, mpfr_srcptr, mp_rnd_t),
237 const REAL_VALUE_TYPE *, const REAL_VALUE_TYPE *, bool);
238 static tree do_mpfr_arg2 (tree, tree, tree,
239 int (*)(mpfr_ptr, mpfr_srcptr, mpfr_srcptr, mp_rnd_t));
240 static tree do_mpfr_arg3 (tree, tree, tree, tree,
241 int (*)(mpfr_ptr, mpfr_srcptr, mpfr_srcptr, mpfr_srcptr, mp_rnd_t));
242 static tree do_mpfr_sincos (tree, tree, tree);
243 static tree do_mpfr_bessel_n (tree, tree, tree,
244 int (*)(mpfr_ptr, long, mpfr_srcptr, mp_rnd_t),
245 const REAL_VALUE_TYPE *, bool);
246 static tree do_mpfr_remquo (tree, tree, tree);
247 static tree do_mpfr_lgamma_r (tree, tree, tree);
248 static void expand_builtin_sync_synchronize (void);
249
250 /* Return true if NAME starts with __builtin_ or __sync_. */
251
252 static bool
253 is_builtin_name (const char *name)
254 {
255 if (strncmp (name, "__builtin_", 10) == 0)
256 return true;
257 if (strncmp (name, "__sync_", 7) == 0)
258 return true;
259 if (strncmp (name, "__atomic_", 9) == 0)
260 return true;
261 if (flag_cilkplus
262 && (!strcmp (name, "__cilkrts_detach")
263 || !strcmp (name, "__cilkrts_pop_frame")))
264 return true;
265 return false;
266 }
267
268
269 /* Return true if DECL is a function symbol representing a built-in. */
270
271 bool
272 is_builtin_fn (tree decl)
273 {
274 return TREE_CODE (decl) == FUNCTION_DECL && DECL_BUILT_IN (decl);
275 }
276
277 /* Return true if NODE should be considered for inline expansion regardless
278 of the optimization level. This means whenever a function is invoked with
279 its "internal" name, which normally contains the prefix "__builtin". */
280
281 static bool
282 called_as_built_in (tree node)
283 {
284 /* Note that we must use DECL_NAME, not DECL_ASSEMBLER_NAME_SET_P since
285 we want the name used to call the function, not the name it
286 will have. */
287 const char *name = IDENTIFIER_POINTER (DECL_NAME (node));
288 return is_builtin_name (name);
289 }
290
291 /* Compute values M and N such that M divides (address of EXP - N) and such
292 that N < M. If these numbers can be determined, store M in alignp and N in
293 *BITPOSP and return true. Otherwise return false and store BITS_PER_UNIT to
294 *alignp and any bit-offset to *bitposp.
295
296 Note that the address (and thus the alignment) computed here is based
297 on the address to which a symbol resolves, whereas DECL_ALIGN is based
298 on the address at which an object is actually located. These two
299 addresses are not always the same. For example, on ARM targets,
300 the address &foo of a Thumb function foo() has the lowest bit set,
301 whereas foo() itself starts on an even address.
302
303 If ADDR_P is true we are taking the address of the memory reference EXP
304 and thus cannot rely on the access taking place. */
305
306 static bool
307 get_object_alignment_2 (tree exp, unsigned int *alignp,
308 unsigned HOST_WIDE_INT *bitposp, bool addr_p)
309 {
310 HOST_WIDE_INT bitsize, bitpos;
311 tree offset;
312 machine_mode mode;
313 int unsignedp, volatilep;
314 unsigned int align = BITS_PER_UNIT;
315 bool known_alignment = false;
316
317 /* Get the innermost object and the constant (bitpos) and possibly
318 variable (offset) offset of the access. */
319 exp = get_inner_reference (exp, &bitsize, &bitpos, &offset,
320 &mode, &unsignedp, &volatilep, true);
321
322 /* Extract alignment information from the innermost object and
323 possibly adjust bitpos and offset. */
324 if (TREE_CODE (exp) == FUNCTION_DECL)
325 {
326 /* Function addresses can encode extra information besides their
327 alignment. However, if TARGET_PTRMEMFUNC_VBIT_LOCATION
328 allows the low bit to be used as a virtual bit, we know
329 that the address itself must be at least 2-byte aligned. */
330 if (TARGET_PTRMEMFUNC_VBIT_LOCATION == ptrmemfunc_vbit_in_pfn)
331 align = 2 * BITS_PER_UNIT;
332 }
333 else if (TREE_CODE (exp) == LABEL_DECL)
334 ;
335 else if (TREE_CODE (exp) == CONST_DECL)
336 {
337 /* The alignment of a CONST_DECL is determined by its initializer. */
338 exp = DECL_INITIAL (exp);
339 align = TYPE_ALIGN (TREE_TYPE (exp));
340 #ifdef CONSTANT_ALIGNMENT
341 if (CONSTANT_CLASS_P (exp))
342 align = (unsigned) CONSTANT_ALIGNMENT (exp, align);
343 #endif
344 known_alignment = true;
345 }
346 else if (DECL_P (exp))
347 {
348 align = DECL_ALIGN (exp);
349 known_alignment = true;
350 }
351 else if (TREE_CODE (exp) == VIEW_CONVERT_EXPR)
352 {
353 align = TYPE_ALIGN (TREE_TYPE (exp));
354 }
355 else if (TREE_CODE (exp) == INDIRECT_REF
356 || TREE_CODE (exp) == MEM_REF
357 || TREE_CODE (exp) == TARGET_MEM_REF)
358 {
359 tree addr = TREE_OPERAND (exp, 0);
360 unsigned ptr_align;
361 unsigned HOST_WIDE_INT ptr_bitpos;
362 unsigned HOST_WIDE_INT ptr_bitmask = ~0;
363
364 /* If the address is explicitely aligned, handle that. */
365 if (TREE_CODE (addr) == BIT_AND_EXPR
366 && TREE_CODE (TREE_OPERAND (addr, 1)) == INTEGER_CST)
367 {
368 ptr_bitmask = TREE_INT_CST_LOW (TREE_OPERAND (addr, 1));
369 ptr_bitmask *= BITS_PER_UNIT;
370 align = ptr_bitmask & -ptr_bitmask;
371 addr = TREE_OPERAND (addr, 0);
372 }
373
374 known_alignment
375 = get_pointer_alignment_1 (addr, &ptr_align, &ptr_bitpos);
376 align = MAX (ptr_align, align);
377
378 /* Re-apply explicit alignment to the bitpos. */
379 ptr_bitpos &= ptr_bitmask;
380
381 /* The alignment of the pointer operand in a TARGET_MEM_REF
382 has to take the variable offset parts into account. */
383 if (TREE_CODE (exp) == TARGET_MEM_REF)
384 {
385 if (TMR_INDEX (exp))
386 {
387 unsigned HOST_WIDE_INT step = 1;
388 if (TMR_STEP (exp))
389 step = TREE_INT_CST_LOW (TMR_STEP (exp));
390 align = MIN (align, (step & -step) * BITS_PER_UNIT);
391 }
392 if (TMR_INDEX2 (exp))
393 align = BITS_PER_UNIT;
394 known_alignment = false;
395 }
396
397 /* When EXP is an actual memory reference then we can use
398 TYPE_ALIGN of a pointer indirection to derive alignment.
399 Do so only if get_pointer_alignment_1 did not reveal absolute
400 alignment knowledge and if using that alignment would
401 improve the situation. */
402 if (!addr_p && !known_alignment
403 && TYPE_ALIGN (TREE_TYPE (exp)) > align)
404 align = TYPE_ALIGN (TREE_TYPE (exp));
405 else
406 {
407 /* Else adjust bitpos accordingly. */
408 bitpos += ptr_bitpos;
409 if (TREE_CODE (exp) == MEM_REF
410 || TREE_CODE (exp) == TARGET_MEM_REF)
411 bitpos += mem_ref_offset (exp).to_short_addr () * BITS_PER_UNIT;
412 }
413 }
414 else if (TREE_CODE (exp) == STRING_CST)
415 {
416 /* STRING_CST are the only constant objects we allow to be not
417 wrapped inside a CONST_DECL. */
418 align = TYPE_ALIGN (TREE_TYPE (exp));
419 #ifdef CONSTANT_ALIGNMENT
420 if (CONSTANT_CLASS_P (exp))
421 align = (unsigned) CONSTANT_ALIGNMENT (exp, align);
422 #endif
423 known_alignment = true;
424 }
425
426 /* If there is a non-constant offset part extract the maximum
427 alignment that can prevail. */
428 if (offset)
429 {
430 unsigned int trailing_zeros = tree_ctz (offset);
431 if (trailing_zeros < HOST_BITS_PER_INT)
432 {
433 unsigned int inner = (1U << trailing_zeros) * BITS_PER_UNIT;
434 if (inner)
435 align = MIN (align, inner);
436 }
437 }
438
439 *alignp = align;
440 *bitposp = bitpos & (*alignp - 1);
441 return known_alignment;
442 }
443
444 /* For a memory reference expression EXP compute values M and N such that M
445 divides (&EXP - N) and such that N < M. If these numbers can be determined,
446 store M in alignp and N in *BITPOSP and return true. Otherwise return false
447 and store BITS_PER_UNIT to *alignp and any bit-offset to *bitposp. */
448
449 bool
450 get_object_alignment_1 (tree exp, unsigned int *alignp,
451 unsigned HOST_WIDE_INT *bitposp)
452 {
453 return get_object_alignment_2 (exp, alignp, bitposp, false);
454 }
455
456 /* Return the alignment in bits of EXP, an object. */
457
458 unsigned int
459 get_object_alignment (tree exp)
460 {
461 unsigned HOST_WIDE_INT bitpos = 0;
462 unsigned int align;
463
464 get_object_alignment_1 (exp, &align, &bitpos);
465
466 /* align and bitpos now specify known low bits of the pointer.
467 ptr & (align - 1) == bitpos. */
468
469 if (bitpos != 0)
470 align = (bitpos & -bitpos);
471 return align;
472 }
473
474 /* For a pointer valued expression EXP compute values M and N such that M
475 divides (EXP - N) and such that N < M. If these numbers can be determined,
476 store M in alignp and N in *BITPOSP and return true. Return false if
477 the results are just a conservative approximation.
478
479 If EXP is not a pointer, false is returned too. */
480
481 bool
482 get_pointer_alignment_1 (tree exp, unsigned int *alignp,
483 unsigned HOST_WIDE_INT *bitposp)
484 {
485 STRIP_NOPS (exp);
486
487 if (TREE_CODE (exp) == ADDR_EXPR)
488 return get_object_alignment_2 (TREE_OPERAND (exp, 0),
489 alignp, bitposp, true);
490 else if (TREE_CODE (exp) == SSA_NAME
491 && POINTER_TYPE_P (TREE_TYPE (exp)))
492 {
493 unsigned int ptr_align, ptr_misalign;
494 struct ptr_info_def *pi = SSA_NAME_PTR_INFO (exp);
495
496 if (pi && get_ptr_info_alignment (pi, &ptr_align, &ptr_misalign))
497 {
498 *bitposp = ptr_misalign * BITS_PER_UNIT;
499 *alignp = ptr_align * BITS_PER_UNIT;
500 /* We cannot really tell whether this result is an approximation. */
501 return true;
502 }
503 else
504 {
505 *bitposp = 0;
506 *alignp = BITS_PER_UNIT;
507 return false;
508 }
509 }
510 else if (TREE_CODE (exp) == INTEGER_CST)
511 {
512 *alignp = BIGGEST_ALIGNMENT;
513 *bitposp = ((TREE_INT_CST_LOW (exp) * BITS_PER_UNIT)
514 & (BIGGEST_ALIGNMENT - 1));
515 return true;
516 }
517
518 *bitposp = 0;
519 *alignp = BITS_PER_UNIT;
520 return false;
521 }
522
523 /* Return the alignment in bits of EXP, a pointer valued expression.
524 The alignment returned is, by default, the alignment of the thing that
525 EXP points to. If it is not a POINTER_TYPE, 0 is returned.
526
527 Otherwise, look at the expression to see if we can do better, i.e., if the
528 expression is actually pointing at an object whose alignment is tighter. */
529
530 unsigned int
531 get_pointer_alignment (tree exp)
532 {
533 unsigned HOST_WIDE_INT bitpos = 0;
534 unsigned int align;
535
536 get_pointer_alignment_1 (exp, &align, &bitpos);
537
538 /* align and bitpos now specify known low bits of the pointer.
539 ptr & (align - 1) == bitpos. */
540
541 if (bitpos != 0)
542 align = (bitpos & -bitpos);
543
544 return align;
545 }
546
547 /* Compute the length of a C string. TREE_STRING_LENGTH is not the right
548 way, because it could contain a zero byte in the middle.
549 TREE_STRING_LENGTH is the size of the character array, not the string.
550
551 ONLY_VALUE should be nonzero if the result is not going to be emitted
552 into the instruction stream and zero if it is going to be expanded.
553 E.g. with i++ ? "foo" : "bar", if ONLY_VALUE is nonzero, constant 3
554 is returned, otherwise NULL, since
555 len = c_strlen (src, 1); if (len) expand_expr (len, ...); would not
556 evaluate the side-effects.
557
558 If ONLY_VALUE is two then we do not emit warnings about out-of-bound
559 accesses. Note that this implies the result is not going to be emitted
560 into the instruction stream.
561
562 The value returned is of type `ssizetype'.
563
564 Unfortunately, string_constant can't access the values of const char
565 arrays with initializers, so neither can we do so here. */
566
567 tree
568 c_strlen (tree src, int only_value)
569 {
570 tree offset_node;
571 HOST_WIDE_INT offset;
572 int max;
573 const char *ptr;
574 location_t loc;
575
576 STRIP_NOPS (src);
577 if (TREE_CODE (src) == COND_EXPR
578 && (only_value || !TREE_SIDE_EFFECTS (TREE_OPERAND (src, 0))))
579 {
580 tree len1, len2;
581
582 len1 = c_strlen (TREE_OPERAND (src, 1), only_value);
583 len2 = c_strlen (TREE_OPERAND (src, 2), only_value);
584 if (tree_int_cst_equal (len1, len2))
585 return len1;
586 }
587
588 if (TREE_CODE (src) == COMPOUND_EXPR
589 && (only_value || !TREE_SIDE_EFFECTS (TREE_OPERAND (src, 0))))
590 return c_strlen (TREE_OPERAND (src, 1), only_value);
591
592 loc = EXPR_LOC_OR_LOC (src, input_location);
593
594 src = string_constant (src, &offset_node);
595 if (src == 0)
596 return NULL_TREE;
597
598 max = TREE_STRING_LENGTH (src) - 1;
599 ptr = TREE_STRING_POINTER (src);
600
601 if (offset_node && TREE_CODE (offset_node) != INTEGER_CST)
602 {
603 /* If the string has an internal zero byte (e.g., "foo\0bar"), we can't
604 compute the offset to the following null if we don't know where to
605 start searching for it. */
606 int i;
607
608 for (i = 0; i < max; i++)
609 if (ptr[i] == 0)
610 return NULL_TREE;
611
612 /* We don't know the starting offset, but we do know that the string
613 has no internal zero bytes. We can assume that the offset falls
614 within the bounds of the string; otherwise, the programmer deserves
615 what he gets. Subtract the offset from the length of the string,
616 and return that. This would perhaps not be valid if we were dealing
617 with named arrays in addition to literal string constants. */
618
619 return size_diffop_loc (loc, size_int (max), offset_node);
620 }
621
622 /* We have a known offset into the string. Start searching there for
623 a null character if we can represent it as a single HOST_WIDE_INT. */
624 if (offset_node == 0)
625 offset = 0;
626 else if (! tree_fits_shwi_p (offset_node))
627 offset = -1;
628 else
629 offset = tree_to_shwi (offset_node);
630
631 /* If the offset is known to be out of bounds, warn, and call strlen at
632 runtime. */
633 if (offset < 0 || offset > max)
634 {
635 /* Suppress multiple warnings for propagated constant strings. */
636 if (only_value != 2
637 && !TREE_NO_WARNING (src))
638 {
639 warning_at (loc, 0, "offset outside bounds of constant string");
640 TREE_NO_WARNING (src) = 1;
641 }
642 return NULL_TREE;
643 }
644
645 /* Use strlen to search for the first zero byte. Since any strings
646 constructed with build_string will have nulls appended, we win even
647 if we get handed something like (char[4])"abcd".
648
649 Since OFFSET is our starting index into the string, no further
650 calculation is needed. */
651 return ssize_int (strlen (ptr + offset));
652 }
653
654 /* Return a char pointer for a C string if it is a string constant
655 or sum of string constant and integer constant. */
656
657 const char *
658 c_getstr (tree src)
659 {
660 tree offset_node;
661
662 src = string_constant (src, &offset_node);
663 if (src == 0)
664 return 0;
665
666 if (offset_node == 0)
667 return TREE_STRING_POINTER (src);
668 else if (!tree_fits_uhwi_p (offset_node)
669 || compare_tree_int (offset_node, TREE_STRING_LENGTH (src) - 1) > 0)
670 return 0;
671
672 return TREE_STRING_POINTER (src) + tree_to_uhwi (offset_node);
673 }
674
675 /* Return a constant integer corresponding to target reading
676 GET_MODE_BITSIZE (MODE) bits from string constant STR. */
677
678 static rtx
679 c_readstr (const char *str, machine_mode mode)
680 {
681 HOST_WIDE_INT ch;
682 unsigned int i, j;
683 HOST_WIDE_INT tmp[MAX_BITSIZE_MODE_ANY_INT / HOST_BITS_PER_WIDE_INT];
684
685 gcc_assert (GET_MODE_CLASS (mode) == MODE_INT);
686 unsigned int len = (GET_MODE_PRECISION (mode) + HOST_BITS_PER_WIDE_INT - 1)
687 / HOST_BITS_PER_WIDE_INT;
688
689 gcc_assert (len <= MAX_BITSIZE_MODE_ANY_INT / HOST_BITS_PER_WIDE_INT);
690 for (i = 0; i < len; i++)
691 tmp[i] = 0;
692
693 ch = 1;
694 for (i = 0; i < GET_MODE_SIZE (mode); i++)
695 {
696 j = i;
697 if (WORDS_BIG_ENDIAN)
698 j = GET_MODE_SIZE (mode) - i - 1;
699 if (BYTES_BIG_ENDIAN != WORDS_BIG_ENDIAN
700 && GET_MODE_SIZE (mode) >= UNITS_PER_WORD)
701 j = j + UNITS_PER_WORD - 2 * (j % UNITS_PER_WORD) - 1;
702 j *= BITS_PER_UNIT;
703
704 if (ch)
705 ch = (unsigned char) str[i];
706 tmp[j / HOST_BITS_PER_WIDE_INT] |= ch << (j % HOST_BITS_PER_WIDE_INT);
707 }
708
709 wide_int c = wide_int::from_array (tmp, len, GET_MODE_PRECISION (mode));
710 return immed_wide_int_const (c, mode);
711 }
712
713 /* Cast a target constant CST to target CHAR and if that value fits into
714 host char type, return zero and put that value into variable pointed to by
715 P. */
716
717 static int
718 target_char_cast (tree cst, char *p)
719 {
720 unsigned HOST_WIDE_INT val, hostval;
721
722 if (TREE_CODE (cst) != INTEGER_CST
723 || CHAR_TYPE_SIZE > HOST_BITS_PER_WIDE_INT)
724 return 1;
725
726 /* Do not care if it fits or not right here. */
727 val = TREE_INT_CST_LOW (cst);
728
729 if (CHAR_TYPE_SIZE < HOST_BITS_PER_WIDE_INT)
730 val &= (((unsigned HOST_WIDE_INT) 1) << CHAR_TYPE_SIZE) - 1;
731
732 hostval = val;
733 if (HOST_BITS_PER_CHAR < HOST_BITS_PER_WIDE_INT)
734 hostval &= (((unsigned HOST_WIDE_INT) 1) << HOST_BITS_PER_CHAR) - 1;
735
736 if (val != hostval)
737 return 1;
738
739 *p = hostval;
740 return 0;
741 }
742
743 /* Similar to save_expr, but assumes that arbitrary code is not executed
744 in between the multiple evaluations. In particular, we assume that a
745 non-addressable local variable will not be modified. */
746
747 static tree
748 builtin_save_expr (tree exp)
749 {
750 if (TREE_CODE (exp) == SSA_NAME
751 || (TREE_ADDRESSABLE (exp) == 0
752 && (TREE_CODE (exp) == PARM_DECL
753 || (TREE_CODE (exp) == VAR_DECL && !TREE_STATIC (exp)))))
754 return exp;
755
756 return save_expr (exp);
757 }
758
759 /* Given TEM, a pointer to a stack frame, follow the dynamic chain COUNT
760 times to get the address of either a higher stack frame, or a return
761 address located within it (depending on FNDECL_CODE). */
762
763 static rtx
764 expand_builtin_return_addr (enum built_in_function fndecl_code, int count)
765 {
766 int i;
767
768 #ifdef INITIAL_FRAME_ADDRESS_RTX
769 rtx tem = INITIAL_FRAME_ADDRESS_RTX;
770 #else
771 rtx tem;
772
773 /* For a zero count with __builtin_return_address, we don't care what
774 frame address we return, because target-specific definitions will
775 override us. Therefore frame pointer elimination is OK, and using
776 the soft frame pointer is OK.
777
778 For a nonzero count, or a zero count with __builtin_frame_address,
779 we require a stable offset from the current frame pointer to the
780 previous one, so we must use the hard frame pointer, and
781 we must disable frame pointer elimination. */
782 if (count == 0 && fndecl_code == BUILT_IN_RETURN_ADDRESS)
783 tem = frame_pointer_rtx;
784 else
785 {
786 tem = hard_frame_pointer_rtx;
787
788 /* Tell reload not to eliminate the frame pointer. */
789 crtl->accesses_prior_frames = 1;
790 }
791 #endif
792
793 /* Some machines need special handling before we can access
794 arbitrary frames. For example, on the SPARC, we must first flush
795 all register windows to the stack. */
796 #ifdef SETUP_FRAME_ADDRESSES
797 if (count > 0)
798 SETUP_FRAME_ADDRESSES ();
799 #endif
800
801 /* On the SPARC, the return address is not in the frame, it is in a
802 register. There is no way to access it off of the current frame
803 pointer, but it can be accessed off the previous frame pointer by
804 reading the value from the register window save area. */
805 if (RETURN_ADDR_IN_PREVIOUS_FRAME && fndecl_code == BUILT_IN_RETURN_ADDRESS)
806 count--;
807
808 /* Scan back COUNT frames to the specified frame. */
809 for (i = 0; i < count; i++)
810 {
811 /* Assume the dynamic chain pointer is in the word that the
812 frame address points to, unless otherwise specified. */
813 #ifdef DYNAMIC_CHAIN_ADDRESS
814 tem = DYNAMIC_CHAIN_ADDRESS (tem);
815 #endif
816 tem = memory_address (Pmode, tem);
817 tem = gen_frame_mem (Pmode, tem);
818 tem = copy_to_reg (tem);
819 }
820
821 /* For __builtin_frame_address, return what we've got. But, on
822 the SPARC for example, we may have to add a bias. */
823 if (fndecl_code == BUILT_IN_FRAME_ADDRESS)
824 #ifdef FRAME_ADDR_RTX
825 return FRAME_ADDR_RTX (tem);
826 #else
827 return tem;
828 #endif
829
830 /* For __builtin_return_address, get the return address from that frame. */
831 #ifdef RETURN_ADDR_RTX
832 tem = RETURN_ADDR_RTX (count, tem);
833 #else
834 tem = memory_address (Pmode,
835 plus_constant (Pmode, tem, GET_MODE_SIZE (Pmode)));
836 tem = gen_frame_mem (Pmode, tem);
837 #endif
838 return tem;
839 }
840
841 /* Alias set used for setjmp buffer. */
842 static alias_set_type setjmp_alias_set = -1;
843
844 /* Construct the leading half of a __builtin_setjmp call. Control will
845 return to RECEIVER_LABEL. This is also called directly by the SJLJ
846 exception handling code. */
847
848 void
849 expand_builtin_setjmp_setup (rtx buf_addr, rtx receiver_label)
850 {
851 machine_mode sa_mode = STACK_SAVEAREA_MODE (SAVE_NONLOCAL);
852 rtx stack_save;
853 rtx mem;
854
855 if (setjmp_alias_set == -1)
856 setjmp_alias_set = new_alias_set ();
857
858 buf_addr = convert_memory_address (Pmode, buf_addr);
859
860 buf_addr = force_reg (Pmode, force_operand (buf_addr, NULL_RTX));
861
862 /* We store the frame pointer and the address of receiver_label in
863 the buffer and use the rest of it for the stack save area, which
864 is machine-dependent. */
865
866 mem = gen_rtx_MEM (Pmode, buf_addr);
867 set_mem_alias_set (mem, setjmp_alias_set);
868 emit_move_insn (mem, targetm.builtin_setjmp_frame_value ());
869
870 mem = gen_rtx_MEM (Pmode, plus_constant (Pmode, buf_addr,
871 GET_MODE_SIZE (Pmode))),
872 set_mem_alias_set (mem, setjmp_alias_set);
873
874 emit_move_insn (validize_mem (mem),
875 force_reg (Pmode, gen_rtx_LABEL_REF (Pmode, receiver_label)));
876
877 stack_save = gen_rtx_MEM (sa_mode,
878 plus_constant (Pmode, buf_addr,
879 2 * GET_MODE_SIZE (Pmode)));
880 set_mem_alias_set (stack_save, setjmp_alias_set);
881 emit_stack_save (SAVE_NONLOCAL, &stack_save);
882
883 /* If there is further processing to do, do it. */
884 #ifdef HAVE_builtin_setjmp_setup
885 if (HAVE_builtin_setjmp_setup)
886 emit_insn (gen_builtin_setjmp_setup (buf_addr));
887 #endif
888
889 /* We have a nonlocal label. */
890 cfun->has_nonlocal_label = 1;
891 }
892
893 /* Construct the trailing part of a __builtin_setjmp call. This is
894 also called directly by the SJLJ exception handling code.
895 If RECEIVER_LABEL is NULL, instead contruct a nonlocal goto handler. */
896
897 void
898 expand_builtin_setjmp_receiver (rtx receiver_label ATTRIBUTE_UNUSED)
899 {
900 rtx chain;
901
902 /* Mark the FP as used when we get here, so we have to make sure it's
903 marked as used by this function. */
904 emit_use (hard_frame_pointer_rtx);
905
906 /* Mark the static chain as clobbered here so life information
907 doesn't get messed up for it. */
908 chain = targetm.calls.static_chain (current_function_decl, true);
909 if (chain && REG_P (chain))
910 emit_clobber (chain);
911
912 /* Now put in the code to restore the frame pointer, and argument
913 pointer, if needed. */
914 #ifdef HAVE_nonlocal_goto
915 if (! HAVE_nonlocal_goto)
916 #endif
917 {
918 /* First adjust our frame pointer to its actual value. It was
919 previously set to the start of the virtual area corresponding to
920 the stacked variables when we branched here and now needs to be
921 adjusted to the actual hardware fp value.
922
923 Assignments to virtual registers are converted by
924 instantiate_virtual_regs into the corresponding assignment
925 to the underlying register (fp in this case) that makes
926 the original assignment true.
927 So the following insn will actually be decrementing fp by
928 STARTING_FRAME_OFFSET. */
929 emit_move_insn (virtual_stack_vars_rtx, hard_frame_pointer_rtx);
930
931 /* Restoring the frame pointer also modifies the hard frame pointer.
932 Mark it used (so that the previous assignment remains live once
933 the frame pointer is eliminated) and clobbered (to represent the
934 implicit update from the assignment). */
935 emit_use (hard_frame_pointer_rtx);
936 emit_clobber (hard_frame_pointer_rtx);
937 }
938
939 #if !HARD_FRAME_POINTER_IS_ARG_POINTER
940 if (fixed_regs[ARG_POINTER_REGNUM])
941 {
942 #ifdef ELIMINABLE_REGS
943 /* If the argument pointer can be eliminated in favor of the
944 frame pointer, we don't need to restore it. We assume here
945 that if such an elimination is present, it can always be used.
946 This is the case on all known machines; if we don't make this
947 assumption, we do unnecessary saving on many machines. */
948 size_t i;
949 static const struct elims {const int from, to;} elim_regs[] = ELIMINABLE_REGS;
950
951 for (i = 0; i < ARRAY_SIZE (elim_regs); i++)
952 if (elim_regs[i].from == ARG_POINTER_REGNUM
953 && elim_regs[i].to == HARD_FRAME_POINTER_REGNUM)
954 break;
955
956 if (i == ARRAY_SIZE (elim_regs))
957 #endif
958 {
959 /* Now restore our arg pointer from the address at which it
960 was saved in our stack frame. */
961 emit_move_insn (crtl->args.internal_arg_pointer,
962 copy_to_reg (get_arg_pointer_save_area ()));
963 }
964 }
965 #endif
966
967 #ifdef HAVE_builtin_setjmp_receiver
968 if (receiver_label != NULL && HAVE_builtin_setjmp_receiver)
969 emit_insn (gen_builtin_setjmp_receiver (receiver_label));
970 else
971 #endif
972 #ifdef HAVE_nonlocal_goto_receiver
973 if (HAVE_nonlocal_goto_receiver)
974 emit_insn (gen_nonlocal_goto_receiver ());
975 else
976 #endif
977 { /* Nothing */ }
978
979 /* We must not allow the code we just generated to be reordered by
980 scheduling. Specifically, the update of the frame pointer must
981 happen immediately, not later. */
982 emit_insn (gen_blockage ());
983 }
984
985 /* __builtin_longjmp is passed a pointer to an array of five words (not
986 all will be used on all machines). It operates similarly to the C
987 library function of the same name, but is more efficient. Much of
988 the code below is copied from the handling of non-local gotos. */
989
990 static void
991 expand_builtin_longjmp (rtx buf_addr, rtx value)
992 {
993 rtx fp, lab, stack;
994 rtx_insn *insn, *last;
995 machine_mode sa_mode = STACK_SAVEAREA_MODE (SAVE_NONLOCAL);
996
997 /* DRAP is needed for stack realign if longjmp is expanded to current
998 function */
999 if (SUPPORTS_STACK_ALIGNMENT)
1000 crtl->need_drap = true;
1001
1002 if (setjmp_alias_set == -1)
1003 setjmp_alias_set = new_alias_set ();
1004
1005 buf_addr = convert_memory_address (Pmode, buf_addr);
1006
1007 buf_addr = force_reg (Pmode, buf_addr);
1008
1009 /* We require that the user must pass a second argument of 1, because
1010 that is what builtin_setjmp will return. */
1011 gcc_assert (value == const1_rtx);
1012
1013 last = get_last_insn ();
1014 #ifdef HAVE_builtin_longjmp
1015 if (HAVE_builtin_longjmp)
1016 emit_insn (gen_builtin_longjmp (buf_addr));
1017 else
1018 #endif
1019 {
1020 fp = gen_rtx_MEM (Pmode, buf_addr);
1021 lab = gen_rtx_MEM (Pmode, plus_constant (Pmode, buf_addr,
1022 GET_MODE_SIZE (Pmode)));
1023
1024 stack = gen_rtx_MEM (sa_mode, plus_constant (Pmode, buf_addr,
1025 2 * GET_MODE_SIZE (Pmode)));
1026 set_mem_alias_set (fp, setjmp_alias_set);
1027 set_mem_alias_set (lab, setjmp_alias_set);
1028 set_mem_alias_set (stack, setjmp_alias_set);
1029
1030 /* Pick up FP, label, and SP from the block and jump. This code is
1031 from expand_goto in stmt.c; see there for detailed comments. */
1032 #ifdef HAVE_nonlocal_goto
1033 if (HAVE_nonlocal_goto)
1034 /* We have to pass a value to the nonlocal_goto pattern that will
1035 get copied into the static_chain pointer, but it does not matter
1036 what that value is, because builtin_setjmp does not use it. */
1037 emit_insn (gen_nonlocal_goto (value, lab, stack, fp));
1038 else
1039 #endif
1040 {
1041 lab = copy_to_reg (lab);
1042
1043 emit_clobber (gen_rtx_MEM (BLKmode, gen_rtx_SCRATCH (VOIDmode)));
1044 emit_clobber (gen_rtx_MEM (BLKmode, hard_frame_pointer_rtx));
1045
1046 emit_move_insn (hard_frame_pointer_rtx, fp);
1047 emit_stack_restore (SAVE_NONLOCAL, stack);
1048
1049 emit_use (hard_frame_pointer_rtx);
1050 emit_use (stack_pointer_rtx);
1051 emit_indirect_jump (lab);
1052 }
1053 }
1054
1055 /* Search backwards and mark the jump insn as a non-local goto.
1056 Note that this precludes the use of __builtin_longjmp to a
1057 __builtin_setjmp target in the same function. However, we've
1058 already cautioned the user that these functions are for
1059 internal exception handling use only. */
1060 for (insn = get_last_insn (); insn; insn = PREV_INSN (insn))
1061 {
1062 gcc_assert (insn != last);
1063
1064 if (JUMP_P (insn))
1065 {
1066 add_reg_note (insn, REG_NON_LOCAL_GOTO, const0_rtx);
1067 break;
1068 }
1069 else if (CALL_P (insn))
1070 break;
1071 }
1072 }
1073
1074 static inline bool
1075 more_const_call_expr_args_p (const const_call_expr_arg_iterator *iter)
1076 {
1077 return (iter->i < iter->n);
1078 }
1079
1080 /* This function validates the types of a function call argument list
1081 against a specified list of tree_codes. If the last specifier is a 0,
1082 that represents an ellipses, otherwise the last specifier must be a
1083 VOID_TYPE. */
1084
1085 static bool
1086 validate_arglist (const_tree callexpr, ...)
1087 {
1088 enum tree_code code;
1089 bool res = 0;
1090 va_list ap;
1091 const_call_expr_arg_iterator iter;
1092 const_tree arg;
1093
1094 va_start (ap, callexpr);
1095 init_const_call_expr_arg_iterator (callexpr, &iter);
1096
1097 do
1098 {
1099 code = (enum tree_code) va_arg (ap, int);
1100 switch (code)
1101 {
1102 case 0:
1103 /* This signifies an ellipses, any further arguments are all ok. */
1104 res = true;
1105 goto end;
1106 case VOID_TYPE:
1107 /* This signifies an endlink, if no arguments remain, return
1108 true, otherwise return false. */
1109 res = !more_const_call_expr_args_p (&iter);
1110 goto end;
1111 default:
1112 /* If no parameters remain or the parameter's code does not
1113 match the specified code, return false. Otherwise continue
1114 checking any remaining arguments. */
1115 arg = next_const_call_expr_arg (&iter);
1116 if (!validate_arg (arg, code))
1117 goto end;
1118 break;
1119 }
1120 }
1121 while (1);
1122
1123 /* We need gotos here since we can only have one VA_CLOSE in a
1124 function. */
1125 end: ;
1126 va_end (ap);
1127
1128 return res;
1129 }
1130
1131 /* Expand a call to __builtin_nonlocal_goto. We're passed the target label
1132 and the address of the save area. */
1133
1134 static rtx
1135 expand_builtin_nonlocal_goto (tree exp)
1136 {
1137 tree t_label, t_save_area;
1138 rtx r_label, r_save_area, r_fp, r_sp;
1139 rtx_insn *insn;
1140
1141 if (!validate_arglist (exp, POINTER_TYPE, POINTER_TYPE, VOID_TYPE))
1142 return NULL_RTX;
1143
1144 t_label = CALL_EXPR_ARG (exp, 0);
1145 t_save_area = CALL_EXPR_ARG (exp, 1);
1146
1147 r_label = expand_normal (t_label);
1148 r_label = convert_memory_address (Pmode, r_label);
1149 r_save_area = expand_normal (t_save_area);
1150 r_save_area = convert_memory_address (Pmode, r_save_area);
1151 /* Copy the address of the save location to a register just in case it was
1152 based on the frame pointer. */
1153 r_save_area = copy_to_reg (r_save_area);
1154 r_fp = gen_rtx_MEM (Pmode, r_save_area);
1155 r_sp = gen_rtx_MEM (STACK_SAVEAREA_MODE (SAVE_NONLOCAL),
1156 plus_constant (Pmode, r_save_area,
1157 GET_MODE_SIZE (Pmode)));
1158
1159 crtl->has_nonlocal_goto = 1;
1160
1161 #ifdef HAVE_nonlocal_goto
1162 /* ??? We no longer need to pass the static chain value, afaik. */
1163 if (HAVE_nonlocal_goto)
1164 emit_insn (gen_nonlocal_goto (const0_rtx, r_label, r_sp, r_fp));
1165 else
1166 #endif
1167 {
1168 r_label = copy_to_reg (r_label);
1169
1170 emit_clobber (gen_rtx_MEM (BLKmode, gen_rtx_SCRATCH (VOIDmode)));
1171 emit_clobber (gen_rtx_MEM (BLKmode, hard_frame_pointer_rtx));
1172
1173 /* Restore frame pointer for containing function. */
1174 emit_move_insn (hard_frame_pointer_rtx, r_fp);
1175 emit_stack_restore (SAVE_NONLOCAL, r_sp);
1176
1177 /* USE of hard_frame_pointer_rtx added for consistency;
1178 not clear if really needed. */
1179 emit_use (hard_frame_pointer_rtx);
1180 emit_use (stack_pointer_rtx);
1181
1182 /* If the architecture is using a GP register, we must
1183 conservatively assume that the target function makes use of it.
1184 The prologue of functions with nonlocal gotos must therefore
1185 initialize the GP register to the appropriate value, and we
1186 must then make sure that this value is live at the point
1187 of the jump. (Note that this doesn't necessarily apply
1188 to targets with a nonlocal_goto pattern; they are free
1189 to implement it in their own way. Note also that this is
1190 a no-op if the GP register is a global invariant.) */
1191 if ((unsigned) PIC_OFFSET_TABLE_REGNUM != INVALID_REGNUM
1192 && fixed_regs[PIC_OFFSET_TABLE_REGNUM])
1193 emit_use (pic_offset_table_rtx);
1194
1195 emit_indirect_jump (r_label);
1196 }
1197
1198 /* Search backwards to the jump insn and mark it as a
1199 non-local goto. */
1200 for (insn = get_last_insn (); insn; insn = PREV_INSN (insn))
1201 {
1202 if (JUMP_P (insn))
1203 {
1204 add_reg_note (insn, REG_NON_LOCAL_GOTO, const0_rtx);
1205 break;
1206 }
1207 else if (CALL_P (insn))
1208 break;
1209 }
1210
1211 return const0_rtx;
1212 }
1213
1214 /* __builtin_update_setjmp_buf is passed a pointer to an array of five words
1215 (not all will be used on all machines) that was passed to __builtin_setjmp.
1216 It updates the stack pointer in that block to correspond to the current
1217 stack pointer. */
1218
1219 static void
1220 expand_builtin_update_setjmp_buf (rtx buf_addr)
1221 {
1222 machine_mode sa_mode = STACK_SAVEAREA_MODE (SAVE_NONLOCAL);
1223 rtx stack_save
1224 = gen_rtx_MEM (sa_mode,
1225 memory_address
1226 (sa_mode,
1227 plus_constant (Pmode, buf_addr,
1228 2 * GET_MODE_SIZE (Pmode))));
1229
1230 emit_stack_save (SAVE_NONLOCAL, &stack_save);
1231 }
1232
1233 /* Expand a call to __builtin_prefetch. For a target that does not support
1234 data prefetch, evaluate the memory address argument in case it has side
1235 effects. */
1236
1237 static void
1238 expand_builtin_prefetch (tree exp)
1239 {
1240 tree arg0, arg1, arg2;
1241 int nargs;
1242 rtx op0, op1, op2;
1243
1244 if (!validate_arglist (exp, POINTER_TYPE, 0))
1245 return;
1246
1247 arg0 = CALL_EXPR_ARG (exp, 0);
1248
1249 /* Arguments 1 and 2 are optional; argument 1 (read/write) defaults to
1250 zero (read) and argument 2 (locality) defaults to 3 (high degree of
1251 locality). */
1252 nargs = call_expr_nargs (exp);
1253 if (nargs > 1)
1254 arg1 = CALL_EXPR_ARG (exp, 1);
1255 else
1256 arg1 = integer_zero_node;
1257 if (nargs > 2)
1258 arg2 = CALL_EXPR_ARG (exp, 2);
1259 else
1260 arg2 = integer_three_node;
1261
1262 /* Argument 0 is an address. */
1263 op0 = expand_expr (arg0, NULL_RTX, Pmode, EXPAND_NORMAL);
1264
1265 /* Argument 1 (read/write flag) must be a compile-time constant int. */
1266 if (TREE_CODE (arg1) != INTEGER_CST)
1267 {
1268 error ("second argument to %<__builtin_prefetch%> must be a constant");
1269 arg1 = integer_zero_node;
1270 }
1271 op1 = expand_normal (arg1);
1272 /* Argument 1 must be either zero or one. */
1273 if (INTVAL (op1) != 0 && INTVAL (op1) != 1)
1274 {
1275 warning (0, "invalid second argument to %<__builtin_prefetch%>;"
1276 " using zero");
1277 op1 = const0_rtx;
1278 }
1279
1280 /* Argument 2 (locality) must be a compile-time constant int. */
1281 if (TREE_CODE (arg2) != INTEGER_CST)
1282 {
1283 error ("third argument to %<__builtin_prefetch%> must be a constant");
1284 arg2 = integer_zero_node;
1285 }
1286 op2 = expand_normal (arg2);
1287 /* Argument 2 must be 0, 1, 2, or 3. */
1288 if (INTVAL (op2) < 0 || INTVAL (op2) > 3)
1289 {
1290 warning (0, "invalid third argument to %<__builtin_prefetch%>; using zero");
1291 op2 = const0_rtx;
1292 }
1293
1294 #ifdef HAVE_prefetch
1295 if (HAVE_prefetch)
1296 {
1297 struct expand_operand ops[3];
1298
1299 create_address_operand (&ops[0], op0);
1300 create_integer_operand (&ops[1], INTVAL (op1));
1301 create_integer_operand (&ops[2], INTVAL (op2));
1302 if (maybe_expand_insn (CODE_FOR_prefetch, 3, ops))
1303 return;
1304 }
1305 #endif
1306
1307 /* Don't do anything with direct references to volatile memory, but
1308 generate code to handle other side effects. */
1309 if (!MEM_P (op0) && side_effects_p (op0))
1310 emit_insn (op0);
1311 }
1312
1313 /* Get a MEM rtx for expression EXP which is the address of an operand
1314 to be used in a string instruction (cmpstrsi, movmemsi, ..). LEN is
1315 the maximum length of the block of memory that might be accessed or
1316 NULL if unknown. */
1317
1318 static rtx
1319 get_memory_rtx (tree exp, tree len)
1320 {
1321 tree orig_exp = exp;
1322 rtx addr, mem;
1323
1324 /* When EXP is not resolved SAVE_EXPR, MEM_ATTRS can be still derived
1325 from its expression, for expr->a.b only <variable>.a.b is recorded. */
1326 if (TREE_CODE (exp) == SAVE_EXPR && !SAVE_EXPR_RESOLVED_P (exp))
1327 exp = TREE_OPERAND (exp, 0);
1328
1329 addr = expand_expr (orig_exp, NULL_RTX, ptr_mode, EXPAND_NORMAL);
1330 mem = gen_rtx_MEM (BLKmode, memory_address (BLKmode, addr));
1331
1332 /* Get an expression we can use to find the attributes to assign to MEM.
1333 First remove any nops. */
1334 while (CONVERT_EXPR_P (exp)
1335 && POINTER_TYPE_P (TREE_TYPE (TREE_OPERAND (exp, 0))))
1336 exp = TREE_OPERAND (exp, 0);
1337
1338 /* Build a MEM_REF representing the whole accessed area as a byte blob,
1339 (as builtin stringops may alias with anything). */
1340 exp = fold_build2 (MEM_REF,
1341 build_array_type (char_type_node,
1342 build_range_type (sizetype,
1343 size_one_node, len)),
1344 exp, build_int_cst (ptr_type_node, 0));
1345
1346 /* If the MEM_REF has no acceptable address, try to get the base object
1347 from the original address we got, and build an all-aliasing
1348 unknown-sized access to that one. */
1349 if (is_gimple_mem_ref_addr (TREE_OPERAND (exp, 0)))
1350 set_mem_attributes (mem, exp, 0);
1351 else if (TREE_CODE (TREE_OPERAND (exp, 0)) == ADDR_EXPR
1352 && (exp = get_base_address (TREE_OPERAND (TREE_OPERAND (exp, 0),
1353 0))))
1354 {
1355 exp = build_fold_addr_expr (exp);
1356 exp = fold_build2 (MEM_REF,
1357 build_array_type (char_type_node,
1358 build_range_type (sizetype,
1359 size_zero_node,
1360 NULL)),
1361 exp, build_int_cst (ptr_type_node, 0));
1362 set_mem_attributes (mem, exp, 0);
1363 }
1364 set_mem_alias_set (mem, 0);
1365 return mem;
1366 }
1367 \f
1368 /* Built-in functions to perform an untyped call and return. */
1369
1370 #define apply_args_mode \
1371 (this_target_builtins->x_apply_args_mode)
1372 #define apply_result_mode \
1373 (this_target_builtins->x_apply_result_mode)
1374
1375 /* Return the size required for the block returned by __builtin_apply_args,
1376 and initialize apply_args_mode. */
1377
1378 static int
1379 apply_args_size (void)
1380 {
1381 static int size = -1;
1382 int align;
1383 unsigned int regno;
1384 machine_mode mode;
1385
1386 /* The values computed by this function never change. */
1387 if (size < 0)
1388 {
1389 /* The first value is the incoming arg-pointer. */
1390 size = GET_MODE_SIZE (Pmode);
1391
1392 /* The second value is the structure value address unless this is
1393 passed as an "invisible" first argument. */
1394 if (targetm.calls.struct_value_rtx (cfun ? TREE_TYPE (cfun->decl) : 0, 0))
1395 size += GET_MODE_SIZE (Pmode);
1396
1397 for (regno = 0; regno < FIRST_PSEUDO_REGISTER; regno++)
1398 if (FUNCTION_ARG_REGNO_P (regno))
1399 {
1400 mode = targetm.calls.get_raw_arg_mode (regno);
1401
1402 gcc_assert (mode != VOIDmode);
1403
1404 align = GET_MODE_ALIGNMENT (mode) / BITS_PER_UNIT;
1405 if (size % align != 0)
1406 size = CEIL (size, align) * align;
1407 size += GET_MODE_SIZE (mode);
1408 apply_args_mode[regno] = mode;
1409 }
1410 else
1411 {
1412 apply_args_mode[regno] = VOIDmode;
1413 }
1414 }
1415 return size;
1416 }
1417
1418 /* Return the size required for the block returned by __builtin_apply,
1419 and initialize apply_result_mode. */
1420
1421 static int
1422 apply_result_size (void)
1423 {
1424 static int size = -1;
1425 int align, regno;
1426 machine_mode mode;
1427
1428 /* The values computed by this function never change. */
1429 if (size < 0)
1430 {
1431 size = 0;
1432
1433 for (regno = 0; regno < FIRST_PSEUDO_REGISTER; regno++)
1434 if (targetm.calls.function_value_regno_p (regno))
1435 {
1436 mode = targetm.calls.get_raw_result_mode (regno);
1437
1438 gcc_assert (mode != VOIDmode);
1439
1440 align = GET_MODE_ALIGNMENT (mode) / BITS_PER_UNIT;
1441 if (size % align != 0)
1442 size = CEIL (size, align) * align;
1443 size += GET_MODE_SIZE (mode);
1444 apply_result_mode[regno] = mode;
1445 }
1446 else
1447 apply_result_mode[regno] = VOIDmode;
1448
1449 /* Allow targets that use untyped_call and untyped_return to override
1450 the size so that machine-specific information can be stored here. */
1451 #ifdef APPLY_RESULT_SIZE
1452 size = APPLY_RESULT_SIZE;
1453 #endif
1454 }
1455 return size;
1456 }
1457
1458 #if defined (HAVE_untyped_call) || defined (HAVE_untyped_return)
1459 /* Create a vector describing the result block RESULT. If SAVEP is true,
1460 the result block is used to save the values; otherwise it is used to
1461 restore the values. */
1462
1463 static rtx
1464 result_vector (int savep, rtx result)
1465 {
1466 int regno, size, align, nelts;
1467 machine_mode mode;
1468 rtx reg, mem;
1469 rtx *savevec = XALLOCAVEC (rtx, FIRST_PSEUDO_REGISTER);
1470
1471 size = nelts = 0;
1472 for (regno = 0; regno < FIRST_PSEUDO_REGISTER; regno++)
1473 if ((mode = apply_result_mode[regno]) != VOIDmode)
1474 {
1475 align = GET_MODE_ALIGNMENT (mode) / BITS_PER_UNIT;
1476 if (size % align != 0)
1477 size = CEIL (size, align) * align;
1478 reg = gen_rtx_REG (mode, savep ? regno : INCOMING_REGNO (regno));
1479 mem = adjust_address (result, mode, size);
1480 savevec[nelts++] = (savep
1481 ? gen_rtx_SET (mem, reg)
1482 : gen_rtx_SET (reg, mem));
1483 size += GET_MODE_SIZE (mode);
1484 }
1485 return gen_rtx_PARALLEL (VOIDmode, gen_rtvec_v (nelts, savevec));
1486 }
1487 #endif /* HAVE_untyped_call or HAVE_untyped_return */
1488
1489 /* Save the state required to perform an untyped call with the same
1490 arguments as were passed to the current function. */
1491
1492 static rtx
1493 expand_builtin_apply_args_1 (void)
1494 {
1495 rtx registers, tem;
1496 int size, align, regno;
1497 machine_mode mode;
1498 rtx struct_incoming_value = targetm.calls.struct_value_rtx (cfun ? TREE_TYPE (cfun->decl) : 0, 1);
1499
1500 /* Create a block where the arg-pointer, structure value address,
1501 and argument registers can be saved. */
1502 registers = assign_stack_local (BLKmode, apply_args_size (), -1);
1503
1504 /* Walk past the arg-pointer and structure value address. */
1505 size = GET_MODE_SIZE (Pmode);
1506 if (targetm.calls.struct_value_rtx (cfun ? TREE_TYPE (cfun->decl) : 0, 0))
1507 size += GET_MODE_SIZE (Pmode);
1508
1509 /* Save each register used in calling a function to the block. */
1510 for (regno = 0; regno < FIRST_PSEUDO_REGISTER; regno++)
1511 if ((mode = apply_args_mode[regno]) != VOIDmode)
1512 {
1513 align = GET_MODE_ALIGNMENT (mode) / BITS_PER_UNIT;
1514 if (size % align != 0)
1515 size = CEIL (size, align) * align;
1516
1517 tem = gen_rtx_REG (mode, INCOMING_REGNO (regno));
1518
1519 emit_move_insn (adjust_address (registers, mode, size), tem);
1520 size += GET_MODE_SIZE (mode);
1521 }
1522
1523 /* Save the arg pointer to the block. */
1524 tem = copy_to_reg (crtl->args.internal_arg_pointer);
1525 #ifdef STACK_GROWS_DOWNWARD
1526 /* We need the pointer as the caller actually passed them to us, not
1527 as we might have pretended they were passed. Make sure it's a valid
1528 operand, as emit_move_insn isn't expected to handle a PLUS. */
1529 tem
1530 = force_operand (plus_constant (Pmode, tem, crtl->args.pretend_args_size),
1531 NULL_RTX);
1532 #endif
1533 emit_move_insn (adjust_address (registers, Pmode, 0), tem);
1534
1535 size = GET_MODE_SIZE (Pmode);
1536
1537 /* Save the structure value address unless this is passed as an
1538 "invisible" first argument. */
1539 if (struct_incoming_value)
1540 {
1541 emit_move_insn (adjust_address (registers, Pmode, size),
1542 copy_to_reg (struct_incoming_value));
1543 size += GET_MODE_SIZE (Pmode);
1544 }
1545
1546 /* Return the address of the block. */
1547 return copy_addr_to_reg (XEXP (registers, 0));
1548 }
1549
1550 /* __builtin_apply_args returns block of memory allocated on
1551 the stack into which is stored the arg pointer, structure
1552 value address, static chain, and all the registers that might
1553 possibly be used in performing a function call. The code is
1554 moved to the start of the function so the incoming values are
1555 saved. */
1556
1557 static rtx
1558 expand_builtin_apply_args (void)
1559 {
1560 /* Don't do __builtin_apply_args more than once in a function.
1561 Save the result of the first call and reuse it. */
1562 if (apply_args_value != 0)
1563 return apply_args_value;
1564 {
1565 /* When this function is called, it means that registers must be
1566 saved on entry to this function. So we migrate the
1567 call to the first insn of this function. */
1568 rtx temp;
1569 rtx seq;
1570
1571 start_sequence ();
1572 temp = expand_builtin_apply_args_1 ();
1573 seq = get_insns ();
1574 end_sequence ();
1575
1576 apply_args_value = temp;
1577
1578 /* Put the insns after the NOTE that starts the function.
1579 If this is inside a start_sequence, make the outer-level insn
1580 chain current, so the code is placed at the start of the
1581 function. If internal_arg_pointer is a non-virtual pseudo,
1582 it needs to be placed after the function that initializes
1583 that pseudo. */
1584 push_topmost_sequence ();
1585 if (REG_P (crtl->args.internal_arg_pointer)
1586 && REGNO (crtl->args.internal_arg_pointer) > LAST_VIRTUAL_REGISTER)
1587 emit_insn_before (seq, parm_birth_insn);
1588 else
1589 emit_insn_before (seq, NEXT_INSN (entry_of_function ()));
1590 pop_topmost_sequence ();
1591 return temp;
1592 }
1593 }
1594
1595 /* Perform an untyped call and save the state required to perform an
1596 untyped return of whatever value was returned by the given function. */
1597
1598 static rtx
1599 expand_builtin_apply (rtx function, rtx arguments, rtx argsize)
1600 {
1601 int size, align, regno;
1602 machine_mode mode;
1603 rtx incoming_args, result, reg, dest, src;
1604 rtx_call_insn *call_insn;
1605 rtx old_stack_level = 0;
1606 rtx call_fusage = 0;
1607 rtx struct_value = targetm.calls.struct_value_rtx (cfun ? TREE_TYPE (cfun->decl) : 0, 0);
1608
1609 arguments = convert_memory_address (Pmode, arguments);
1610
1611 /* Create a block where the return registers can be saved. */
1612 result = assign_stack_local (BLKmode, apply_result_size (), -1);
1613
1614 /* Fetch the arg pointer from the ARGUMENTS block. */
1615 incoming_args = gen_reg_rtx (Pmode);
1616 emit_move_insn (incoming_args, gen_rtx_MEM (Pmode, arguments));
1617 #ifndef STACK_GROWS_DOWNWARD
1618 incoming_args = expand_simple_binop (Pmode, MINUS, incoming_args, argsize,
1619 incoming_args, 0, OPTAB_LIB_WIDEN);
1620 #endif
1621
1622 /* Push a new argument block and copy the arguments. Do not allow
1623 the (potential) memcpy call below to interfere with our stack
1624 manipulations. */
1625 do_pending_stack_adjust ();
1626 NO_DEFER_POP;
1627
1628 /* Save the stack with nonlocal if available. */
1629 #ifdef HAVE_save_stack_nonlocal
1630 if (HAVE_save_stack_nonlocal)
1631 emit_stack_save (SAVE_NONLOCAL, &old_stack_level);
1632 else
1633 #endif
1634 emit_stack_save (SAVE_BLOCK, &old_stack_level);
1635
1636 /* Allocate a block of memory onto the stack and copy the memory
1637 arguments to the outgoing arguments address. We can pass TRUE
1638 as the 4th argument because we just saved the stack pointer
1639 and will restore it right after the call. */
1640 allocate_dynamic_stack_space (argsize, 0, BIGGEST_ALIGNMENT, true);
1641
1642 /* Set DRAP flag to true, even though allocate_dynamic_stack_space
1643 may have already set current_function_calls_alloca to true.
1644 current_function_calls_alloca won't be set if argsize is zero,
1645 so we have to guarantee need_drap is true here. */
1646 if (SUPPORTS_STACK_ALIGNMENT)
1647 crtl->need_drap = true;
1648
1649 dest = virtual_outgoing_args_rtx;
1650 #ifndef STACK_GROWS_DOWNWARD
1651 if (CONST_INT_P (argsize))
1652 dest = plus_constant (Pmode, dest, -INTVAL (argsize));
1653 else
1654 dest = gen_rtx_PLUS (Pmode, dest, negate_rtx (Pmode, argsize));
1655 #endif
1656 dest = gen_rtx_MEM (BLKmode, dest);
1657 set_mem_align (dest, PARM_BOUNDARY);
1658 src = gen_rtx_MEM (BLKmode, incoming_args);
1659 set_mem_align (src, PARM_BOUNDARY);
1660 emit_block_move (dest, src, argsize, BLOCK_OP_NORMAL);
1661
1662 /* Refer to the argument block. */
1663 apply_args_size ();
1664 arguments = gen_rtx_MEM (BLKmode, arguments);
1665 set_mem_align (arguments, PARM_BOUNDARY);
1666
1667 /* Walk past the arg-pointer and structure value address. */
1668 size = GET_MODE_SIZE (Pmode);
1669 if (struct_value)
1670 size += GET_MODE_SIZE (Pmode);
1671
1672 /* Restore each of the registers previously saved. Make USE insns
1673 for each of these registers for use in making the call. */
1674 for (regno = 0; regno < FIRST_PSEUDO_REGISTER; regno++)
1675 if ((mode = apply_args_mode[regno]) != VOIDmode)
1676 {
1677 align = GET_MODE_ALIGNMENT (mode) / BITS_PER_UNIT;
1678 if (size % align != 0)
1679 size = CEIL (size, align) * align;
1680 reg = gen_rtx_REG (mode, regno);
1681 emit_move_insn (reg, adjust_address (arguments, mode, size));
1682 use_reg (&call_fusage, reg);
1683 size += GET_MODE_SIZE (mode);
1684 }
1685
1686 /* Restore the structure value address unless this is passed as an
1687 "invisible" first argument. */
1688 size = GET_MODE_SIZE (Pmode);
1689 if (struct_value)
1690 {
1691 rtx value = gen_reg_rtx (Pmode);
1692 emit_move_insn (value, adjust_address (arguments, Pmode, size));
1693 emit_move_insn (struct_value, value);
1694 if (REG_P (struct_value))
1695 use_reg (&call_fusage, struct_value);
1696 size += GET_MODE_SIZE (Pmode);
1697 }
1698
1699 /* All arguments and registers used for the call are set up by now! */
1700 function = prepare_call_address (NULL, function, NULL, &call_fusage, 0, 0);
1701
1702 /* Ensure address is valid. SYMBOL_REF is already valid, so no need,
1703 and we don't want to load it into a register as an optimization,
1704 because prepare_call_address already did it if it should be done. */
1705 if (GET_CODE (function) != SYMBOL_REF)
1706 function = memory_address (FUNCTION_MODE, function);
1707
1708 /* Generate the actual call instruction and save the return value. */
1709 #ifdef HAVE_untyped_call
1710 if (HAVE_untyped_call)
1711 emit_call_insn (gen_untyped_call (gen_rtx_MEM (FUNCTION_MODE, function),
1712 result, result_vector (1, result)));
1713 else
1714 #endif
1715 #ifdef HAVE_call_value
1716 if (HAVE_call_value)
1717 {
1718 rtx valreg = 0;
1719
1720 /* Locate the unique return register. It is not possible to
1721 express a call that sets more than one return register using
1722 call_value; use untyped_call for that. In fact, untyped_call
1723 only needs to save the return registers in the given block. */
1724 for (regno = 0; regno < FIRST_PSEUDO_REGISTER; regno++)
1725 if ((mode = apply_result_mode[regno]) != VOIDmode)
1726 {
1727 gcc_assert (!valreg); /* HAVE_untyped_call required. */
1728
1729 valreg = gen_rtx_REG (mode, regno);
1730 }
1731
1732 emit_call_insn (GEN_CALL_VALUE (valreg,
1733 gen_rtx_MEM (FUNCTION_MODE, function),
1734 const0_rtx, NULL_RTX, const0_rtx));
1735
1736 emit_move_insn (adjust_address (result, GET_MODE (valreg), 0), valreg);
1737 }
1738 else
1739 #endif
1740 gcc_unreachable ();
1741
1742 /* Find the CALL insn we just emitted, and attach the register usage
1743 information. */
1744 call_insn = last_call_insn ();
1745 add_function_usage_to (call_insn, call_fusage);
1746
1747 /* Restore the stack. */
1748 #ifdef HAVE_save_stack_nonlocal
1749 if (HAVE_save_stack_nonlocal)
1750 emit_stack_restore (SAVE_NONLOCAL, old_stack_level);
1751 else
1752 #endif
1753 emit_stack_restore (SAVE_BLOCK, old_stack_level);
1754 fixup_args_size_notes (call_insn, get_last_insn (), 0);
1755
1756 OK_DEFER_POP;
1757
1758 /* Return the address of the result block. */
1759 result = copy_addr_to_reg (XEXP (result, 0));
1760 return convert_memory_address (ptr_mode, result);
1761 }
1762
1763 /* Perform an untyped return. */
1764
1765 static void
1766 expand_builtin_return (rtx result)
1767 {
1768 int size, align, regno;
1769 machine_mode mode;
1770 rtx reg;
1771 rtx_insn *call_fusage = 0;
1772
1773 result = convert_memory_address (Pmode, result);
1774
1775 apply_result_size ();
1776 result = gen_rtx_MEM (BLKmode, result);
1777
1778 #ifdef HAVE_untyped_return
1779 if (HAVE_untyped_return)
1780 {
1781 emit_jump_insn (gen_untyped_return (result, result_vector (0, result)));
1782 emit_barrier ();
1783 return;
1784 }
1785 #endif
1786
1787 /* Restore the return value and note that each value is used. */
1788 size = 0;
1789 for (regno = 0; regno < FIRST_PSEUDO_REGISTER; regno++)
1790 if ((mode = apply_result_mode[regno]) != VOIDmode)
1791 {
1792 align = GET_MODE_ALIGNMENT (mode) / BITS_PER_UNIT;
1793 if (size % align != 0)
1794 size = CEIL (size, align) * align;
1795 reg = gen_rtx_REG (mode, INCOMING_REGNO (regno));
1796 emit_move_insn (reg, adjust_address (result, mode, size));
1797
1798 push_to_sequence (call_fusage);
1799 emit_use (reg);
1800 call_fusage = get_insns ();
1801 end_sequence ();
1802 size += GET_MODE_SIZE (mode);
1803 }
1804
1805 /* Put the USE insns before the return. */
1806 emit_insn (call_fusage);
1807
1808 /* Return whatever values was restored by jumping directly to the end
1809 of the function. */
1810 expand_naked_return ();
1811 }
1812
1813 /* Used by expand_builtin_classify_type and fold_builtin_classify_type. */
1814
1815 static enum type_class
1816 type_to_class (tree type)
1817 {
1818 switch (TREE_CODE (type))
1819 {
1820 case VOID_TYPE: return void_type_class;
1821 case INTEGER_TYPE: return integer_type_class;
1822 case ENUMERAL_TYPE: return enumeral_type_class;
1823 case BOOLEAN_TYPE: return boolean_type_class;
1824 case POINTER_TYPE: return pointer_type_class;
1825 case REFERENCE_TYPE: return reference_type_class;
1826 case OFFSET_TYPE: return offset_type_class;
1827 case REAL_TYPE: return real_type_class;
1828 case COMPLEX_TYPE: return complex_type_class;
1829 case FUNCTION_TYPE: return function_type_class;
1830 case METHOD_TYPE: return method_type_class;
1831 case RECORD_TYPE: return record_type_class;
1832 case UNION_TYPE:
1833 case QUAL_UNION_TYPE: return union_type_class;
1834 case ARRAY_TYPE: return (TYPE_STRING_FLAG (type)
1835 ? string_type_class : array_type_class);
1836 case LANG_TYPE: return lang_type_class;
1837 default: return no_type_class;
1838 }
1839 }
1840
1841 /* Expand a call EXP to __builtin_classify_type. */
1842
1843 static rtx
1844 expand_builtin_classify_type (tree exp)
1845 {
1846 if (call_expr_nargs (exp))
1847 return GEN_INT (type_to_class (TREE_TYPE (CALL_EXPR_ARG (exp, 0))));
1848 return GEN_INT (no_type_class);
1849 }
1850
1851 /* This helper macro, meant to be used in mathfn_built_in below,
1852 determines which among a set of three builtin math functions is
1853 appropriate for a given type mode. The `F' and `L' cases are
1854 automatically generated from the `double' case. */
1855 #define CASE_MATHFN(BUILT_IN_MATHFN) \
1856 case BUILT_IN_MATHFN: case BUILT_IN_MATHFN##F: case BUILT_IN_MATHFN##L: \
1857 fcode = BUILT_IN_MATHFN; fcodef = BUILT_IN_MATHFN##F ; \
1858 fcodel = BUILT_IN_MATHFN##L ; break;
1859 /* Similar to above, but appends _R after any F/L suffix. */
1860 #define CASE_MATHFN_REENT(BUILT_IN_MATHFN) \
1861 case BUILT_IN_MATHFN##_R: case BUILT_IN_MATHFN##F_R: case BUILT_IN_MATHFN##L_R: \
1862 fcode = BUILT_IN_MATHFN##_R; fcodef = BUILT_IN_MATHFN##F_R ; \
1863 fcodel = BUILT_IN_MATHFN##L_R ; break;
1864
1865 /* Return mathematic function equivalent to FN but operating directly on TYPE,
1866 if available. If IMPLICIT is true use the implicit builtin declaration,
1867 otherwise use the explicit declaration. If we can't do the conversion,
1868 return zero. */
1869
1870 static tree
1871 mathfn_built_in_1 (tree type, enum built_in_function fn, bool implicit_p)
1872 {
1873 enum built_in_function fcode, fcodef, fcodel, fcode2;
1874
1875 switch (fn)
1876 {
1877 CASE_MATHFN (BUILT_IN_ACOS)
1878 CASE_MATHFN (BUILT_IN_ACOSH)
1879 CASE_MATHFN (BUILT_IN_ASIN)
1880 CASE_MATHFN (BUILT_IN_ASINH)
1881 CASE_MATHFN (BUILT_IN_ATAN)
1882 CASE_MATHFN (BUILT_IN_ATAN2)
1883 CASE_MATHFN (BUILT_IN_ATANH)
1884 CASE_MATHFN (BUILT_IN_CBRT)
1885 CASE_MATHFN (BUILT_IN_CEIL)
1886 CASE_MATHFN (BUILT_IN_CEXPI)
1887 CASE_MATHFN (BUILT_IN_COPYSIGN)
1888 CASE_MATHFN (BUILT_IN_COS)
1889 CASE_MATHFN (BUILT_IN_COSH)
1890 CASE_MATHFN (BUILT_IN_DREM)
1891 CASE_MATHFN (BUILT_IN_ERF)
1892 CASE_MATHFN (BUILT_IN_ERFC)
1893 CASE_MATHFN (BUILT_IN_EXP)
1894 CASE_MATHFN (BUILT_IN_EXP10)
1895 CASE_MATHFN (BUILT_IN_EXP2)
1896 CASE_MATHFN (BUILT_IN_EXPM1)
1897 CASE_MATHFN (BUILT_IN_FABS)
1898 CASE_MATHFN (BUILT_IN_FDIM)
1899 CASE_MATHFN (BUILT_IN_FLOOR)
1900 CASE_MATHFN (BUILT_IN_FMA)
1901 CASE_MATHFN (BUILT_IN_FMAX)
1902 CASE_MATHFN (BUILT_IN_FMIN)
1903 CASE_MATHFN (BUILT_IN_FMOD)
1904 CASE_MATHFN (BUILT_IN_FREXP)
1905 CASE_MATHFN (BUILT_IN_GAMMA)
1906 CASE_MATHFN_REENT (BUILT_IN_GAMMA) /* GAMMA_R */
1907 CASE_MATHFN (BUILT_IN_HUGE_VAL)
1908 CASE_MATHFN (BUILT_IN_HYPOT)
1909 CASE_MATHFN (BUILT_IN_ILOGB)
1910 CASE_MATHFN (BUILT_IN_ICEIL)
1911 CASE_MATHFN (BUILT_IN_IFLOOR)
1912 CASE_MATHFN (BUILT_IN_INF)
1913 CASE_MATHFN (BUILT_IN_IRINT)
1914 CASE_MATHFN (BUILT_IN_IROUND)
1915 CASE_MATHFN (BUILT_IN_ISINF)
1916 CASE_MATHFN (BUILT_IN_J0)
1917 CASE_MATHFN (BUILT_IN_J1)
1918 CASE_MATHFN (BUILT_IN_JN)
1919 CASE_MATHFN (BUILT_IN_LCEIL)
1920 CASE_MATHFN (BUILT_IN_LDEXP)
1921 CASE_MATHFN (BUILT_IN_LFLOOR)
1922 CASE_MATHFN (BUILT_IN_LGAMMA)
1923 CASE_MATHFN_REENT (BUILT_IN_LGAMMA) /* LGAMMA_R */
1924 CASE_MATHFN (BUILT_IN_LLCEIL)
1925 CASE_MATHFN (BUILT_IN_LLFLOOR)
1926 CASE_MATHFN (BUILT_IN_LLRINT)
1927 CASE_MATHFN (BUILT_IN_LLROUND)
1928 CASE_MATHFN (BUILT_IN_LOG)
1929 CASE_MATHFN (BUILT_IN_LOG10)
1930 CASE_MATHFN (BUILT_IN_LOG1P)
1931 CASE_MATHFN (BUILT_IN_LOG2)
1932 CASE_MATHFN (BUILT_IN_LOGB)
1933 CASE_MATHFN (BUILT_IN_LRINT)
1934 CASE_MATHFN (BUILT_IN_LROUND)
1935 CASE_MATHFN (BUILT_IN_MODF)
1936 CASE_MATHFN (BUILT_IN_NAN)
1937 CASE_MATHFN (BUILT_IN_NANS)
1938 CASE_MATHFN (BUILT_IN_NEARBYINT)
1939 CASE_MATHFN (BUILT_IN_NEXTAFTER)
1940 CASE_MATHFN (BUILT_IN_NEXTTOWARD)
1941 CASE_MATHFN (BUILT_IN_POW)
1942 CASE_MATHFN (BUILT_IN_POWI)
1943 CASE_MATHFN (BUILT_IN_POW10)
1944 CASE_MATHFN (BUILT_IN_REMAINDER)
1945 CASE_MATHFN (BUILT_IN_REMQUO)
1946 CASE_MATHFN (BUILT_IN_RINT)
1947 CASE_MATHFN (BUILT_IN_ROUND)
1948 CASE_MATHFN (BUILT_IN_SCALB)
1949 CASE_MATHFN (BUILT_IN_SCALBLN)
1950 CASE_MATHFN (BUILT_IN_SCALBN)
1951 CASE_MATHFN (BUILT_IN_SIGNBIT)
1952 CASE_MATHFN (BUILT_IN_SIGNIFICAND)
1953 CASE_MATHFN (BUILT_IN_SIN)
1954 CASE_MATHFN (BUILT_IN_SINCOS)
1955 CASE_MATHFN (BUILT_IN_SINH)
1956 CASE_MATHFN (BUILT_IN_SQRT)
1957 CASE_MATHFN (BUILT_IN_TAN)
1958 CASE_MATHFN (BUILT_IN_TANH)
1959 CASE_MATHFN (BUILT_IN_TGAMMA)
1960 CASE_MATHFN (BUILT_IN_TRUNC)
1961 CASE_MATHFN (BUILT_IN_Y0)
1962 CASE_MATHFN (BUILT_IN_Y1)
1963 CASE_MATHFN (BUILT_IN_YN)
1964
1965 default:
1966 return NULL_TREE;
1967 }
1968
1969 if (TYPE_MAIN_VARIANT (type) == double_type_node)
1970 fcode2 = fcode;
1971 else if (TYPE_MAIN_VARIANT (type) == float_type_node)
1972 fcode2 = fcodef;
1973 else if (TYPE_MAIN_VARIANT (type) == long_double_type_node)
1974 fcode2 = fcodel;
1975 else
1976 return NULL_TREE;
1977
1978 if (implicit_p && !builtin_decl_implicit_p (fcode2))
1979 return NULL_TREE;
1980
1981 return builtin_decl_explicit (fcode2);
1982 }
1983
1984 /* Like mathfn_built_in_1(), but always use the implicit array. */
1985
1986 tree
1987 mathfn_built_in (tree type, enum built_in_function fn)
1988 {
1989 return mathfn_built_in_1 (type, fn, /*implicit=*/ 1);
1990 }
1991
1992 /* If errno must be maintained, expand the RTL to check if the result,
1993 TARGET, of a built-in function call, EXP, is NaN, and if so set
1994 errno to EDOM. */
1995
1996 static void
1997 expand_errno_check (tree exp, rtx target)
1998 {
1999 rtx_code_label *lab = gen_label_rtx ();
2000
2001 /* Test the result; if it is NaN, set errno=EDOM because
2002 the argument was not in the domain. */
2003 do_compare_rtx_and_jump (target, target, EQ, 0, GET_MODE (target),
2004 NULL_RTX, NULL_RTX, lab,
2005 /* The jump is very likely. */
2006 REG_BR_PROB_BASE - (REG_BR_PROB_BASE / 2000 - 1));
2007
2008 #ifdef TARGET_EDOM
2009 /* If this built-in doesn't throw an exception, set errno directly. */
2010 if (TREE_NOTHROW (TREE_OPERAND (CALL_EXPR_FN (exp), 0)))
2011 {
2012 #ifdef GEN_ERRNO_RTX
2013 rtx errno_rtx = GEN_ERRNO_RTX;
2014 #else
2015 rtx errno_rtx
2016 = gen_rtx_MEM (word_mode, gen_rtx_SYMBOL_REF (Pmode, "errno"));
2017 #endif
2018 emit_move_insn (errno_rtx,
2019 gen_int_mode (TARGET_EDOM, GET_MODE (errno_rtx)));
2020 emit_label (lab);
2021 return;
2022 }
2023 #endif
2024
2025 /* Make sure the library call isn't expanded as a tail call. */
2026 CALL_EXPR_TAILCALL (exp) = 0;
2027
2028 /* We can't set errno=EDOM directly; let the library call do it.
2029 Pop the arguments right away in case the call gets deleted. */
2030 NO_DEFER_POP;
2031 expand_call (exp, target, 0);
2032 OK_DEFER_POP;
2033 emit_label (lab);
2034 }
2035
2036 /* Expand a call to one of the builtin math functions (sqrt, exp, or log).
2037 Return NULL_RTX if a normal call should be emitted rather than expanding
2038 the function in-line. EXP is the expression that is a call to the builtin
2039 function; if convenient, the result should be placed in TARGET.
2040 SUBTARGET may be used as the target for computing one of EXP's operands. */
2041
2042 static rtx
2043 expand_builtin_mathfn (tree exp, rtx target, rtx subtarget)
2044 {
2045 optab builtin_optab;
2046 rtx op0;
2047 rtx_insn *insns;
2048 tree fndecl = get_callee_fndecl (exp);
2049 machine_mode mode;
2050 bool errno_set = false;
2051 bool try_widening = false;
2052 tree arg;
2053
2054 if (!validate_arglist (exp, REAL_TYPE, VOID_TYPE))
2055 return NULL_RTX;
2056
2057 arg = CALL_EXPR_ARG (exp, 0);
2058
2059 switch (DECL_FUNCTION_CODE (fndecl))
2060 {
2061 CASE_FLT_FN (BUILT_IN_SQRT):
2062 errno_set = ! tree_expr_nonnegative_p (arg);
2063 try_widening = true;
2064 builtin_optab = sqrt_optab;
2065 break;
2066 CASE_FLT_FN (BUILT_IN_EXP):
2067 errno_set = true; builtin_optab = exp_optab; break;
2068 CASE_FLT_FN (BUILT_IN_EXP10):
2069 CASE_FLT_FN (BUILT_IN_POW10):
2070 errno_set = true; builtin_optab = exp10_optab; break;
2071 CASE_FLT_FN (BUILT_IN_EXP2):
2072 errno_set = true; builtin_optab = exp2_optab; break;
2073 CASE_FLT_FN (BUILT_IN_EXPM1):
2074 errno_set = true; builtin_optab = expm1_optab; break;
2075 CASE_FLT_FN (BUILT_IN_LOGB):
2076 errno_set = true; builtin_optab = logb_optab; break;
2077 CASE_FLT_FN (BUILT_IN_LOG):
2078 errno_set = true; builtin_optab = log_optab; break;
2079 CASE_FLT_FN (BUILT_IN_LOG10):
2080 errno_set = true; builtin_optab = log10_optab; break;
2081 CASE_FLT_FN (BUILT_IN_LOG2):
2082 errno_set = true; builtin_optab = log2_optab; break;
2083 CASE_FLT_FN (BUILT_IN_LOG1P):
2084 errno_set = true; builtin_optab = log1p_optab; break;
2085 CASE_FLT_FN (BUILT_IN_ASIN):
2086 builtin_optab = asin_optab; break;
2087 CASE_FLT_FN (BUILT_IN_ACOS):
2088 builtin_optab = acos_optab; break;
2089 CASE_FLT_FN (BUILT_IN_TAN):
2090 builtin_optab = tan_optab; break;
2091 CASE_FLT_FN (BUILT_IN_ATAN):
2092 builtin_optab = atan_optab; break;
2093 CASE_FLT_FN (BUILT_IN_FLOOR):
2094 builtin_optab = floor_optab; break;
2095 CASE_FLT_FN (BUILT_IN_CEIL):
2096 builtin_optab = ceil_optab; break;
2097 CASE_FLT_FN (BUILT_IN_TRUNC):
2098 builtin_optab = btrunc_optab; break;
2099 CASE_FLT_FN (BUILT_IN_ROUND):
2100 builtin_optab = round_optab; break;
2101 CASE_FLT_FN (BUILT_IN_NEARBYINT):
2102 builtin_optab = nearbyint_optab;
2103 if (flag_trapping_math)
2104 break;
2105 /* Else fallthrough and expand as rint. */
2106 CASE_FLT_FN (BUILT_IN_RINT):
2107 builtin_optab = rint_optab; break;
2108 CASE_FLT_FN (BUILT_IN_SIGNIFICAND):
2109 builtin_optab = significand_optab; break;
2110 default:
2111 gcc_unreachable ();
2112 }
2113
2114 /* Make a suitable register to place result in. */
2115 mode = TYPE_MODE (TREE_TYPE (exp));
2116
2117 if (! flag_errno_math || ! HONOR_NANS (mode))
2118 errno_set = false;
2119
2120 /* Before working hard, check whether the instruction is available, but try
2121 to widen the mode for specific operations. */
2122 if ((optab_handler (builtin_optab, mode) != CODE_FOR_nothing
2123 || (try_widening && !excess_precision_type (TREE_TYPE (exp))))
2124 && (!errno_set || !optimize_insn_for_size_p ()))
2125 {
2126 rtx result = gen_reg_rtx (mode);
2127
2128 /* Wrap the computation of the argument in a SAVE_EXPR, as we may
2129 need to expand the argument again. This way, we will not perform
2130 side-effects more the once. */
2131 CALL_EXPR_ARG (exp, 0) = arg = builtin_save_expr (arg);
2132
2133 op0 = expand_expr (arg, subtarget, VOIDmode, EXPAND_NORMAL);
2134
2135 start_sequence ();
2136
2137 /* Compute into RESULT.
2138 Set RESULT to wherever the result comes back. */
2139 result = expand_unop (mode, builtin_optab, op0, result, 0);
2140
2141 if (result != 0)
2142 {
2143 if (errno_set)
2144 expand_errno_check (exp, result);
2145
2146 /* Output the entire sequence. */
2147 insns = get_insns ();
2148 end_sequence ();
2149 emit_insn (insns);
2150 return result;
2151 }
2152
2153 /* If we were unable to expand via the builtin, stop the sequence
2154 (without outputting the insns) and call to the library function
2155 with the stabilized argument list. */
2156 end_sequence ();
2157 }
2158
2159 return expand_call (exp, target, target == const0_rtx);
2160 }
2161
2162 /* Expand a call to the builtin binary math functions (pow and atan2).
2163 Return NULL_RTX if a normal call should be emitted rather than expanding the
2164 function in-line. EXP is the expression that is a call to the builtin
2165 function; if convenient, the result should be placed in TARGET.
2166 SUBTARGET may be used as the target for computing one of EXP's
2167 operands. */
2168
2169 static rtx
2170 expand_builtin_mathfn_2 (tree exp, rtx target, rtx subtarget)
2171 {
2172 optab builtin_optab;
2173 rtx op0, op1, result;
2174 rtx_insn *insns;
2175 int op1_type = REAL_TYPE;
2176 tree fndecl = get_callee_fndecl (exp);
2177 tree arg0, arg1;
2178 machine_mode mode;
2179 bool errno_set = true;
2180
2181 switch (DECL_FUNCTION_CODE (fndecl))
2182 {
2183 CASE_FLT_FN (BUILT_IN_SCALBN):
2184 CASE_FLT_FN (BUILT_IN_SCALBLN):
2185 CASE_FLT_FN (BUILT_IN_LDEXP):
2186 op1_type = INTEGER_TYPE;
2187 default:
2188 break;
2189 }
2190
2191 if (!validate_arglist (exp, REAL_TYPE, op1_type, VOID_TYPE))
2192 return NULL_RTX;
2193
2194 arg0 = CALL_EXPR_ARG (exp, 0);
2195 arg1 = CALL_EXPR_ARG (exp, 1);
2196
2197 switch (DECL_FUNCTION_CODE (fndecl))
2198 {
2199 CASE_FLT_FN (BUILT_IN_POW):
2200 builtin_optab = pow_optab; break;
2201 CASE_FLT_FN (BUILT_IN_ATAN2):
2202 builtin_optab = atan2_optab; break;
2203 CASE_FLT_FN (BUILT_IN_SCALB):
2204 if (REAL_MODE_FORMAT (TYPE_MODE (TREE_TYPE (exp)))->b != 2)
2205 return 0;
2206 builtin_optab = scalb_optab; break;
2207 CASE_FLT_FN (BUILT_IN_SCALBN):
2208 CASE_FLT_FN (BUILT_IN_SCALBLN):
2209 if (REAL_MODE_FORMAT (TYPE_MODE (TREE_TYPE (exp)))->b != 2)
2210 return 0;
2211 /* Fall through... */
2212 CASE_FLT_FN (BUILT_IN_LDEXP):
2213 builtin_optab = ldexp_optab; break;
2214 CASE_FLT_FN (BUILT_IN_FMOD):
2215 builtin_optab = fmod_optab; break;
2216 CASE_FLT_FN (BUILT_IN_REMAINDER):
2217 CASE_FLT_FN (BUILT_IN_DREM):
2218 builtin_optab = remainder_optab; break;
2219 default:
2220 gcc_unreachable ();
2221 }
2222
2223 /* Make a suitable register to place result in. */
2224 mode = TYPE_MODE (TREE_TYPE (exp));
2225
2226 /* Before working hard, check whether the instruction is available. */
2227 if (optab_handler (builtin_optab, mode) == CODE_FOR_nothing)
2228 return NULL_RTX;
2229
2230 result = gen_reg_rtx (mode);
2231
2232 if (! flag_errno_math || ! HONOR_NANS (mode))
2233 errno_set = false;
2234
2235 if (errno_set && optimize_insn_for_size_p ())
2236 return 0;
2237
2238 /* Always stabilize the argument list. */
2239 CALL_EXPR_ARG (exp, 0) = arg0 = builtin_save_expr (arg0);
2240 CALL_EXPR_ARG (exp, 1) = arg1 = builtin_save_expr (arg1);
2241
2242 op0 = expand_expr (arg0, subtarget, VOIDmode, EXPAND_NORMAL);
2243 op1 = expand_normal (arg1);
2244
2245 start_sequence ();
2246
2247 /* Compute into RESULT.
2248 Set RESULT to wherever the result comes back. */
2249 result = expand_binop (mode, builtin_optab, op0, op1,
2250 result, 0, OPTAB_DIRECT);
2251
2252 /* If we were unable to expand via the builtin, stop the sequence
2253 (without outputting the insns) and call to the library function
2254 with the stabilized argument list. */
2255 if (result == 0)
2256 {
2257 end_sequence ();
2258 return expand_call (exp, target, target == const0_rtx);
2259 }
2260
2261 if (errno_set)
2262 expand_errno_check (exp, result);
2263
2264 /* Output the entire sequence. */
2265 insns = get_insns ();
2266 end_sequence ();
2267 emit_insn (insns);
2268
2269 return result;
2270 }
2271
2272 /* Expand a call to the builtin trinary math functions (fma).
2273 Return NULL_RTX if a normal call should be emitted rather than expanding the
2274 function in-line. EXP is the expression that is a call to the builtin
2275 function; if convenient, the result should be placed in TARGET.
2276 SUBTARGET may be used as the target for computing one of EXP's
2277 operands. */
2278
2279 static rtx
2280 expand_builtin_mathfn_ternary (tree exp, rtx target, rtx subtarget)
2281 {
2282 optab builtin_optab;
2283 rtx op0, op1, op2, result;
2284 rtx_insn *insns;
2285 tree fndecl = get_callee_fndecl (exp);
2286 tree arg0, arg1, arg2;
2287 machine_mode mode;
2288
2289 if (!validate_arglist (exp, REAL_TYPE, REAL_TYPE, REAL_TYPE, VOID_TYPE))
2290 return NULL_RTX;
2291
2292 arg0 = CALL_EXPR_ARG (exp, 0);
2293 arg1 = CALL_EXPR_ARG (exp, 1);
2294 arg2 = CALL_EXPR_ARG (exp, 2);
2295
2296 switch (DECL_FUNCTION_CODE (fndecl))
2297 {
2298 CASE_FLT_FN (BUILT_IN_FMA):
2299 builtin_optab = fma_optab; break;
2300 default:
2301 gcc_unreachable ();
2302 }
2303
2304 /* Make a suitable register to place result in. */
2305 mode = TYPE_MODE (TREE_TYPE (exp));
2306
2307 /* Before working hard, check whether the instruction is available. */
2308 if (optab_handler (builtin_optab, mode) == CODE_FOR_nothing)
2309 return NULL_RTX;
2310
2311 result = gen_reg_rtx (mode);
2312
2313 /* Always stabilize the argument list. */
2314 CALL_EXPR_ARG (exp, 0) = arg0 = builtin_save_expr (arg0);
2315 CALL_EXPR_ARG (exp, 1) = arg1 = builtin_save_expr (arg1);
2316 CALL_EXPR_ARG (exp, 2) = arg2 = builtin_save_expr (arg2);
2317
2318 op0 = expand_expr (arg0, subtarget, VOIDmode, EXPAND_NORMAL);
2319 op1 = expand_normal (arg1);
2320 op2 = expand_normal (arg2);
2321
2322 start_sequence ();
2323
2324 /* Compute into RESULT.
2325 Set RESULT to wherever the result comes back. */
2326 result = expand_ternary_op (mode, builtin_optab, op0, op1, op2,
2327 result, 0);
2328
2329 /* If we were unable to expand via the builtin, stop the sequence
2330 (without outputting the insns) and call to the library function
2331 with the stabilized argument list. */
2332 if (result == 0)
2333 {
2334 end_sequence ();
2335 return expand_call (exp, target, target == const0_rtx);
2336 }
2337
2338 /* Output the entire sequence. */
2339 insns = get_insns ();
2340 end_sequence ();
2341 emit_insn (insns);
2342
2343 return result;
2344 }
2345
2346 /* Expand a call to the builtin sin and cos math functions.
2347 Return NULL_RTX if a normal call should be emitted rather than expanding the
2348 function in-line. EXP is the expression that is a call to the builtin
2349 function; if convenient, the result should be placed in TARGET.
2350 SUBTARGET may be used as the target for computing one of EXP's
2351 operands. */
2352
2353 static rtx
2354 expand_builtin_mathfn_3 (tree exp, rtx target, rtx subtarget)
2355 {
2356 optab builtin_optab;
2357 rtx op0;
2358 rtx_insn *insns;
2359 tree fndecl = get_callee_fndecl (exp);
2360 machine_mode mode;
2361 tree arg;
2362
2363 if (!validate_arglist (exp, REAL_TYPE, VOID_TYPE))
2364 return NULL_RTX;
2365
2366 arg = CALL_EXPR_ARG (exp, 0);
2367
2368 switch (DECL_FUNCTION_CODE (fndecl))
2369 {
2370 CASE_FLT_FN (BUILT_IN_SIN):
2371 CASE_FLT_FN (BUILT_IN_COS):
2372 builtin_optab = sincos_optab; break;
2373 default:
2374 gcc_unreachable ();
2375 }
2376
2377 /* Make a suitable register to place result in. */
2378 mode = TYPE_MODE (TREE_TYPE (exp));
2379
2380 /* Check if sincos insn is available, otherwise fallback
2381 to sin or cos insn. */
2382 if (optab_handler (builtin_optab, mode) == CODE_FOR_nothing)
2383 switch (DECL_FUNCTION_CODE (fndecl))
2384 {
2385 CASE_FLT_FN (BUILT_IN_SIN):
2386 builtin_optab = sin_optab; break;
2387 CASE_FLT_FN (BUILT_IN_COS):
2388 builtin_optab = cos_optab; break;
2389 default:
2390 gcc_unreachable ();
2391 }
2392
2393 /* Before working hard, check whether the instruction is available. */
2394 if (optab_handler (builtin_optab, mode) != CODE_FOR_nothing)
2395 {
2396 rtx result = gen_reg_rtx (mode);
2397
2398 /* Wrap the computation of the argument in a SAVE_EXPR, as we may
2399 need to expand the argument again. This way, we will not perform
2400 side-effects more the once. */
2401 CALL_EXPR_ARG (exp, 0) = arg = builtin_save_expr (arg);
2402
2403 op0 = expand_expr (arg, subtarget, VOIDmode, EXPAND_NORMAL);
2404
2405 start_sequence ();
2406
2407 /* Compute into RESULT.
2408 Set RESULT to wherever the result comes back. */
2409 if (builtin_optab == sincos_optab)
2410 {
2411 int ok;
2412
2413 switch (DECL_FUNCTION_CODE (fndecl))
2414 {
2415 CASE_FLT_FN (BUILT_IN_SIN):
2416 ok = expand_twoval_unop (builtin_optab, op0, 0, result, 0);
2417 break;
2418 CASE_FLT_FN (BUILT_IN_COS):
2419 ok = expand_twoval_unop (builtin_optab, op0, result, 0, 0);
2420 break;
2421 default:
2422 gcc_unreachable ();
2423 }
2424 gcc_assert (ok);
2425 }
2426 else
2427 result = expand_unop (mode, builtin_optab, op0, result, 0);
2428
2429 if (result != 0)
2430 {
2431 /* Output the entire sequence. */
2432 insns = get_insns ();
2433 end_sequence ();
2434 emit_insn (insns);
2435 return result;
2436 }
2437
2438 /* If we were unable to expand via the builtin, stop the sequence
2439 (without outputting the insns) and call to the library function
2440 with the stabilized argument list. */
2441 end_sequence ();
2442 }
2443
2444 return expand_call (exp, target, target == const0_rtx);
2445 }
2446
2447 /* Given an interclass math builtin decl FNDECL and it's argument ARG
2448 return an RTL instruction code that implements the functionality.
2449 If that isn't possible or available return CODE_FOR_nothing. */
2450
2451 static enum insn_code
2452 interclass_mathfn_icode (tree arg, tree fndecl)
2453 {
2454 bool errno_set = false;
2455 optab builtin_optab = unknown_optab;
2456 machine_mode mode;
2457
2458 switch (DECL_FUNCTION_CODE (fndecl))
2459 {
2460 CASE_FLT_FN (BUILT_IN_ILOGB):
2461 errno_set = true; builtin_optab = ilogb_optab; break;
2462 CASE_FLT_FN (BUILT_IN_ISINF):
2463 builtin_optab = isinf_optab; break;
2464 case BUILT_IN_ISNORMAL:
2465 case BUILT_IN_ISFINITE:
2466 CASE_FLT_FN (BUILT_IN_FINITE):
2467 case BUILT_IN_FINITED32:
2468 case BUILT_IN_FINITED64:
2469 case BUILT_IN_FINITED128:
2470 case BUILT_IN_ISINFD32:
2471 case BUILT_IN_ISINFD64:
2472 case BUILT_IN_ISINFD128:
2473 /* These builtins have no optabs (yet). */
2474 break;
2475 default:
2476 gcc_unreachable ();
2477 }
2478
2479 /* There's no easy way to detect the case we need to set EDOM. */
2480 if (flag_errno_math && errno_set)
2481 return CODE_FOR_nothing;
2482
2483 /* Optab mode depends on the mode of the input argument. */
2484 mode = TYPE_MODE (TREE_TYPE (arg));
2485
2486 if (builtin_optab)
2487 return optab_handler (builtin_optab, mode);
2488 return CODE_FOR_nothing;
2489 }
2490
2491 /* Expand a call to one of the builtin math functions that operate on
2492 floating point argument and output an integer result (ilogb, isinf,
2493 isnan, etc).
2494 Return 0 if a normal call should be emitted rather than expanding the
2495 function in-line. EXP is the expression that is a call to the builtin
2496 function; if convenient, the result should be placed in TARGET. */
2497
2498 static rtx
2499 expand_builtin_interclass_mathfn (tree exp, rtx target)
2500 {
2501 enum insn_code icode = CODE_FOR_nothing;
2502 rtx op0;
2503 tree fndecl = get_callee_fndecl (exp);
2504 machine_mode mode;
2505 tree arg;
2506
2507 if (!validate_arglist (exp, REAL_TYPE, VOID_TYPE))
2508 return NULL_RTX;
2509
2510 arg = CALL_EXPR_ARG (exp, 0);
2511 icode = interclass_mathfn_icode (arg, fndecl);
2512 mode = TYPE_MODE (TREE_TYPE (arg));
2513
2514 if (icode != CODE_FOR_nothing)
2515 {
2516 struct expand_operand ops[1];
2517 rtx_insn *last = get_last_insn ();
2518 tree orig_arg = arg;
2519
2520 /* Wrap the computation of the argument in a SAVE_EXPR, as we may
2521 need to expand the argument again. This way, we will not perform
2522 side-effects more the once. */
2523 CALL_EXPR_ARG (exp, 0) = arg = builtin_save_expr (arg);
2524
2525 op0 = expand_expr (arg, NULL_RTX, VOIDmode, EXPAND_NORMAL);
2526
2527 if (mode != GET_MODE (op0))
2528 op0 = convert_to_mode (mode, op0, 0);
2529
2530 create_output_operand (&ops[0], target, TYPE_MODE (TREE_TYPE (exp)));
2531 if (maybe_legitimize_operands (icode, 0, 1, ops)
2532 && maybe_emit_unop_insn (icode, ops[0].value, op0, UNKNOWN))
2533 return ops[0].value;
2534
2535 delete_insns_since (last);
2536 CALL_EXPR_ARG (exp, 0) = orig_arg;
2537 }
2538
2539 return NULL_RTX;
2540 }
2541
2542 /* Expand a call to the builtin sincos math function.
2543 Return NULL_RTX if a normal call should be emitted rather than expanding the
2544 function in-line. EXP is the expression that is a call to the builtin
2545 function. */
2546
2547 static rtx
2548 expand_builtin_sincos (tree exp)
2549 {
2550 rtx op0, op1, op2, target1, target2;
2551 machine_mode mode;
2552 tree arg, sinp, cosp;
2553 int result;
2554 location_t loc = EXPR_LOCATION (exp);
2555 tree alias_type, alias_off;
2556
2557 if (!validate_arglist (exp, REAL_TYPE,
2558 POINTER_TYPE, POINTER_TYPE, VOID_TYPE))
2559 return NULL_RTX;
2560
2561 arg = CALL_EXPR_ARG (exp, 0);
2562 sinp = CALL_EXPR_ARG (exp, 1);
2563 cosp = CALL_EXPR_ARG (exp, 2);
2564
2565 /* Make a suitable register to place result in. */
2566 mode = TYPE_MODE (TREE_TYPE (arg));
2567
2568 /* Check if sincos insn is available, otherwise emit the call. */
2569 if (optab_handler (sincos_optab, mode) == CODE_FOR_nothing)
2570 return NULL_RTX;
2571
2572 target1 = gen_reg_rtx (mode);
2573 target2 = gen_reg_rtx (mode);
2574
2575 op0 = expand_normal (arg);
2576 alias_type = build_pointer_type_for_mode (TREE_TYPE (arg), ptr_mode, true);
2577 alias_off = build_int_cst (alias_type, 0);
2578 op1 = expand_normal (fold_build2_loc (loc, MEM_REF, TREE_TYPE (arg),
2579 sinp, alias_off));
2580 op2 = expand_normal (fold_build2_loc (loc, MEM_REF, TREE_TYPE (arg),
2581 cosp, alias_off));
2582
2583 /* Compute into target1 and target2.
2584 Set TARGET to wherever the result comes back. */
2585 result = expand_twoval_unop (sincos_optab, op0, target2, target1, 0);
2586 gcc_assert (result);
2587
2588 /* Move target1 and target2 to the memory locations indicated
2589 by op1 and op2. */
2590 emit_move_insn (op1, target1);
2591 emit_move_insn (op2, target2);
2592
2593 return const0_rtx;
2594 }
2595
2596 /* Expand a call to the internal cexpi builtin to the sincos math function.
2597 EXP is the expression that is a call to the builtin function; if convenient,
2598 the result should be placed in TARGET. */
2599
2600 static rtx
2601 expand_builtin_cexpi (tree exp, rtx target)
2602 {
2603 tree fndecl = get_callee_fndecl (exp);
2604 tree arg, type;
2605 machine_mode mode;
2606 rtx op0, op1, op2;
2607 location_t loc = EXPR_LOCATION (exp);
2608
2609 if (!validate_arglist (exp, REAL_TYPE, VOID_TYPE))
2610 return NULL_RTX;
2611
2612 arg = CALL_EXPR_ARG (exp, 0);
2613 type = TREE_TYPE (arg);
2614 mode = TYPE_MODE (TREE_TYPE (arg));
2615
2616 /* Try expanding via a sincos optab, fall back to emitting a libcall
2617 to sincos or cexp. We are sure we have sincos or cexp because cexpi
2618 is only generated from sincos, cexp or if we have either of them. */
2619 if (optab_handler (sincos_optab, mode) != CODE_FOR_nothing)
2620 {
2621 op1 = gen_reg_rtx (mode);
2622 op2 = gen_reg_rtx (mode);
2623
2624 op0 = expand_expr (arg, NULL_RTX, VOIDmode, EXPAND_NORMAL);
2625
2626 /* Compute into op1 and op2. */
2627 expand_twoval_unop (sincos_optab, op0, op2, op1, 0);
2628 }
2629 else if (targetm.libc_has_function (function_sincos))
2630 {
2631 tree call, fn = NULL_TREE;
2632 tree top1, top2;
2633 rtx op1a, op2a;
2634
2635 if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_CEXPIF)
2636 fn = builtin_decl_explicit (BUILT_IN_SINCOSF);
2637 else if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_CEXPI)
2638 fn = builtin_decl_explicit (BUILT_IN_SINCOS);
2639 else if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_CEXPIL)
2640 fn = builtin_decl_explicit (BUILT_IN_SINCOSL);
2641 else
2642 gcc_unreachable ();
2643
2644 op1 = assign_temp (TREE_TYPE (arg), 1, 1);
2645 op2 = assign_temp (TREE_TYPE (arg), 1, 1);
2646 op1a = copy_addr_to_reg (XEXP (op1, 0));
2647 op2a = copy_addr_to_reg (XEXP (op2, 0));
2648 top1 = make_tree (build_pointer_type (TREE_TYPE (arg)), op1a);
2649 top2 = make_tree (build_pointer_type (TREE_TYPE (arg)), op2a);
2650
2651 /* Make sure not to fold the sincos call again. */
2652 call = build1 (ADDR_EXPR, build_pointer_type (TREE_TYPE (fn)), fn);
2653 expand_normal (build_call_nary (TREE_TYPE (TREE_TYPE (fn)),
2654 call, 3, arg, top1, top2));
2655 }
2656 else
2657 {
2658 tree call, fn = NULL_TREE, narg;
2659 tree ctype = build_complex_type (type);
2660
2661 if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_CEXPIF)
2662 fn = builtin_decl_explicit (BUILT_IN_CEXPF);
2663 else if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_CEXPI)
2664 fn = builtin_decl_explicit (BUILT_IN_CEXP);
2665 else if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_CEXPIL)
2666 fn = builtin_decl_explicit (BUILT_IN_CEXPL);
2667 else
2668 gcc_unreachable ();
2669
2670 /* If we don't have a decl for cexp create one. This is the
2671 friendliest fallback if the user calls __builtin_cexpi
2672 without full target C99 function support. */
2673 if (fn == NULL_TREE)
2674 {
2675 tree fntype;
2676 const char *name = NULL;
2677
2678 if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_CEXPIF)
2679 name = "cexpf";
2680 else if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_CEXPI)
2681 name = "cexp";
2682 else if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_CEXPIL)
2683 name = "cexpl";
2684
2685 fntype = build_function_type_list (ctype, ctype, NULL_TREE);
2686 fn = build_fn_decl (name, fntype);
2687 }
2688
2689 narg = fold_build2_loc (loc, COMPLEX_EXPR, ctype,
2690 build_real (type, dconst0), arg);
2691
2692 /* Make sure not to fold the cexp call again. */
2693 call = build1 (ADDR_EXPR, build_pointer_type (TREE_TYPE (fn)), fn);
2694 return expand_expr (build_call_nary (ctype, call, 1, narg),
2695 target, VOIDmode, EXPAND_NORMAL);
2696 }
2697
2698 /* Now build the proper return type. */
2699 return expand_expr (build2 (COMPLEX_EXPR, build_complex_type (type),
2700 make_tree (TREE_TYPE (arg), op2),
2701 make_tree (TREE_TYPE (arg), op1)),
2702 target, VOIDmode, EXPAND_NORMAL);
2703 }
2704
2705 /* Conveniently construct a function call expression. FNDECL names the
2706 function to be called, N is the number of arguments, and the "..."
2707 parameters are the argument expressions. Unlike build_call_exr
2708 this doesn't fold the call, hence it will always return a CALL_EXPR. */
2709
2710 static tree
2711 build_call_nofold_loc (location_t loc, tree fndecl, int n, ...)
2712 {
2713 va_list ap;
2714 tree fntype = TREE_TYPE (fndecl);
2715 tree fn = build1 (ADDR_EXPR, build_pointer_type (fntype), fndecl);
2716
2717 va_start (ap, n);
2718 fn = build_call_valist (TREE_TYPE (fntype), fn, n, ap);
2719 va_end (ap);
2720 SET_EXPR_LOCATION (fn, loc);
2721 return fn;
2722 }
2723
2724 /* Expand a call to one of the builtin rounding functions gcc defines
2725 as an extension (lfloor and lceil). As these are gcc extensions we
2726 do not need to worry about setting errno to EDOM.
2727 If expanding via optab fails, lower expression to (int)(floor(x)).
2728 EXP is the expression that is a call to the builtin function;
2729 if convenient, the result should be placed in TARGET. */
2730
2731 static rtx
2732 expand_builtin_int_roundingfn (tree exp, rtx target)
2733 {
2734 convert_optab builtin_optab;
2735 rtx op0, tmp;
2736 rtx_insn *insns;
2737 tree fndecl = get_callee_fndecl (exp);
2738 enum built_in_function fallback_fn;
2739 tree fallback_fndecl;
2740 machine_mode mode;
2741 tree arg;
2742
2743 if (!validate_arglist (exp, REAL_TYPE, VOID_TYPE))
2744 gcc_unreachable ();
2745
2746 arg = CALL_EXPR_ARG (exp, 0);
2747
2748 switch (DECL_FUNCTION_CODE (fndecl))
2749 {
2750 CASE_FLT_FN (BUILT_IN_ICEIL):
2751 CASE_FLT_FN (BUILT_IN_LCEIL):
2752 CASE_FLT_FN (BUILT_IN_LLCEIL):
2753 builtin_optab = lceil_optab;
2754 fallback_fn = BUILT_IN_CEIL;
2755 break;
2756
2757 CASE_FLT_FN (BUILT_IN_IFLOOR):
2758 CASE_FLT_FN (BUILT_IN_LFLOOR):
2759 CASE_FLT_FN (BUILT_IN_LLFLOOR):
2760 builtin_optab = lfloor_optab;
2761 fallback_fn = BUILT_IN_FLOOR;
2762 break;
2763
2764 default:
2765 gcc_unreachable ();
2766 }
2767
2768 /* Make a suitable register to place result in. */
2769 mode = TYPE_MODE (TREE_TYPE (exp));
2770
2771 target = gen_reg_rtx (mode);
2772
2773 /* Wrap the computation of the argument in a SAVE_EXPR, as we may
2774 need to expand the argument again. This way, we will not perform
2775 side-effects more the once. */
2776 CALL_EXPR_ARG (exp, 0) = arg = builtin_save_expr (arg);
2777
2778 op0 = expand_expr (arg, NULL, VOIDmode, EXPAND_NORMAL);
2779
2780 start_sequence ();
2781
2782 /* Compute into TARGET. */
2783 if (expand_sfix_optab (target, op0, builtin_optab))
2784 {
2785 /* Output the entire sequence. */
2786 insns = get_insns ();
2787 end_sequence ();
2788 emit_insn (insns);
2789 return target;
2790 }
2791
2792 /* If we were unable to expand via the builtin, stop the sequence
2793 (without outputting the insns). */
2794 end_sequence ();
2795
2796 /* Fall back to floating point rounding optab. */
2797 fallback_fndecl = mathfn_built_in (TREE_TYPE (arg), fallback_fn);
2798
2799 /* For non-C99 targets we may end up without a fallback fndecl here
2800 if the user called __builtin_lfloor directly. In this case emit
2801 a call to the floor/ceil variants nevertheless. This should result
2802 in the best user experience for not full C99 targets. */
2803 if (fallback_fndecl == NULL_TREE)
2804 {
2805 tree fntype;
2806 const char *name = NULL;
2807
2808 switch (DECL_FUNCTION_CODE (fndecl))
2809 {
2810 case BUILT_IN_ICEIL:
2811 case BUILT_IN_LCEIL:
2812 case BUILT_IN_LLCEIL:
2813 name = "ceil";
2814 break;
2815 case BUILT_IN_ICEILF:
2816 case BUILT_IN_LCEILF:
2817 case BUILT_IN_LLCEILF:
2818 name = "ceilf";
2819 break;
2820 case BUILT_IN_ICEILL:
2821 case BUILT_IN_LCEILL:
2822 case BUILT_IN_LLCEILL:
2823 name = "ceill";
2824 break;
2825 case BUILT_IN_IFLOOR:
2826 case BUILT_IN_LFLOOR:
2827 case BUILT_IN_LLFLOOR:
2828 name = "floor";
2829 break;
2830 case BUILT_IN_IFLOORF:
2831 case BUILT_IN_LFLOORF:
2832 case BUILT_IN_LLFLOORF:
2833 name = "floorf";
2834 break;
2835 case BUILT_IN_IFLOORL:
2836 case BUILT_IN_LFLOORL:
2837 case BUILT_IN_LLFLOORL:
2838 name = "floorl";
2839 break;
2840 default:
2841 gcc_unreachable ();
2842 }
2843
2844 fntype = build_function_type_list (TREE_TYPE (arg),
2845 TREE_TYPE (arg), NULL_TREE);
2846 fallback_fndecl = build_fn_decl (name, fntype);
2847 }
2848
2849 exp = build_call_nofold_loc (EXPR_LOCATION (exp), fallback_fndecl, 1, arg);
2850
2851 tmp = expand_normal (exp);
2852 tmp = maybe_emit_group_store (tmp, TREE_TYPE (exp));
2853
2854 /* Truncate the result of floating point optab to integer
2855 via expand_fix (). */
2856 target = gen_reg_rtx (mode);
2857 expand_fix (target, tmp, 0);
2858
2859 return target;
2860 }
2861
2862 /* Expand a call to one of the builtin math functions doing integer
2863 conversion (lrint).
2864 Return 0 if a normal call should be emitted rather than expanding the
2865 function in-line. EXP is the expression that is a call to the builtin
2866 function; if convenient, the result should be placed in TARGET. */
2867
2868 static rtx
2869 expand_builtin_int_roundingfn_2 (tree exp, rtx target)
2870 {
2871 convert_optab builtin_optab;
2872 rtx op0;
2873 rtx_insn *insns;
2874 tree fndecl = get_callee_fndecl (exp);
2875 tree arg;
2876 machine_mode mode;
2877 enum built_in_function fallback_fn = BUILT_IN_NONE;
2878
2879 if (!validate_arglist (exp, REAL_TYPE, VOID_TYPE))
2880 gcc_unreachable ();
2881
2882 arg = CALL_EXPR_ARG (exp, 0);
2883
2884 switch (DECL_FUNCTION_CODE (fndecl))
2885 {
2886 CASE_FLT_FN (BUILT_IN_IRINT):
2887 fallback_fn = BUILT_IN_LRINT;
2888 /* FALLTHRU */
2889 CASE_FLT_FN (BUILT_IN_LRINT):
2890 CASE_FLT_FN (BUILT_IN_LLRINT):
2891 builtin_optab = lrint_optab;
2892 break;
2893
2894 CASE_FLT_FN (BUILT_IN_IROUND):
2895 fallback_fn = BUILT_IN_LROUND;
2896 /* FALLTHRU */
2897 CASE_FLT_FN (BUILT_IN_LROUND):
2898 CASE_FLT_FN (BUILT_IN_LLROUND):
2899 builtin_optab = lround_optab;
2900 break;
2901
2902 default:
2903 gcc_unreachable ();
2904 }
2905
2906 /* There's no easy way to detect the case we need to set EDOM. */
2907 if (flag_errno_math && fallback_fn == BUILT_IN_NONE)
2908 return NULL_RTX;
2909
2910 /* Make a suitable register to place result in. */
2911 mode = TYPE_MODE (TREE_TYPE (exp));
2912
2913 /* There's no easy way to detect the case we need to set EDOM. */
2914 if (!flag_errno_math)
2915 {
2916 rtx result = gen_reg_rtx (mode);
2917
2918 /* Wrap the computation of the argument in a SAVE_EXPR, as we may
2919 need to expand the argument again. This way, we will not perform
2920 side-effects more the once. */
2921 CALL_EXPR_ARG (exp, 0) = arg = builtin_save_expr (arg);
2922
2923 op0 = expand_expr (arg, NULL, VOIDmode, EXPAND_NORMAL);
2924
2925 start_sequence ();
2926
2927 if (expand_sfix_optab (result, op0, builtin_optab))
2928 {
2929 /* Output the entire sequence. */
2930 insns = get_insns ();
2931 end_sequence ();
2932 emit_insn (insns);
2933 return result;
2934 }
2935
2936 /* If we were unable to expand via the builtin, stop the sequence
2937 (without outputting the insns) and call to the library function
2938 with the stabilized argument list. */
2939 end_sequence ();
2940 }
2941
2942 if (fallback_fn != BUILT_IN_NONE)
2943 {
2944 /* Fall back to rounding to long int. Use implicit_p 0 - for non-C99
2945 targets, (int) round (x) should never be transformed into
2946 BUILT_IN_IROUND and if __builtin_iround is called directly, emit
2947 a call to lround in the hope that the target provides at least some
2948 C99 functions. This should result in the best user experience for
2949 not full C99 targets. */
2950 tree fallback_fndecl = mathfn_built_in_1 (TREE_TYPE (arg),
2951 fallback_fn, 0);
2952
2953 exp = build_call_nofold_loc (EXPR_LOCATION (exp),
2954 fallback_fndecl, 1, arg);
2955
2956 target = expand_call (exp, NULL_RTX, target == const0_rtx);
2957 target = maybe_emit_group_store (target, TREE_TYPE (exp));
2958 return convert_to_mode (mode, target, 0);
2959 }
2960
2961 return expand_call (exp, target, target == const0_rtx);
2962 }
2963
2964 /* Expand a call to the powi built-in mathematical function. Return NULL_RTX if
2965 a normal call should be emitted rather than expanding the function
2966 in-line. EXP is the expression that is a call to the builtin
2967 function; if convenient, the result should be placed in TARGET. */
2968
2969 static rtx
2970 expand_builtin_powi (tree exp, rtx target)
2971 {
2972 tree arg0, arg1;
2973 rtx op0, op1;
2974 machine_mode mode;
2975 machine_mode mode2;
2976
2977 if (! validate_arglist (exp, REAL_TYPE, INTEGER_TYPE, VOID_TYPE))
2978 return NULL_RTX;
2979
2980 arg0 = CALL_EXPR_ARG (exp, 0);
2981 arg1 = CALL_EXPR_ARG (exp, 1);
2982 mode = TYPE_MODE (TREE_TYPE (exp));
2983
2984 /* Emit a libcall to libgcc. */
2985
2986 /* Mode of the 2nd argument must match that of an int. */
2987 mode2 = mode_for_size (INT_TYPE_SIZE, MODE_INT, 0);
2988
2989 if (target == NULL_RTX)
2990 target = gen_reg_rtx (mode);
2991
2992 op0 = expand_expr (arg0, NULL_RTX, mode, EXPAND_NORMAL);
2993 if (GET_MODE (op0) != mode)
2994 op0 = convert_to_mode (mode, op0, 0);
2995 op1 = expand_expr (arg1, NULL_RTX, mode2, EXPAND_NORMAL);
2996 if (GET_MODE (op1) != mode2)
2997 op1 = convert_to_mode (mode2, op1, 0);
2998
2999 target = emit_library_call_value (optab_libfunc (powi_optab, mode),
3000 target, LCT_CONST, mode, 2,
3001 op0, mode, op1, mode2);
3002
3003 return target;
3004 }
3005
3006 /* Expand expression EXP which is a call to the strlen builtin. Return
3007 NULL_RTX if we failed the caller should emit a normal call, otherwise
3008 try to get the result in TARGET, if convenient. */
3009
3010 static rtx
3011 expand_builtin_strlen (tree exp, rtx target,
3012 machine_mode target_mode)
3013 {
3014 if (!validate_arglist (exp, POINTER_TYPE, VOID_TYPE))
3015 return NULL_RTX;
3016 else
3017 {
3018 struct expand_operand ops[4];
3019 rtx pat;
3020 tree len;
3021 tree src = CALL_EXPR_ARG (exp, 0);
3022 rtx src_reg;
3023 rtx_insn *before_strlen;
3024 machine_mode insn_mode = target_mode;
3025 enum insn_code icode = CODE_FOR_nothing;
3026 unsigned int align;
3027
3028 /* If the length can be computed at compile-time, return it. */
3029 len = c_strlen (src, 0);
3030 if (len)
3031 return expand_expr (len, target, target_mode, EXPAND_NORMAL);
3032
3033 /* If the length can be computed at compile-time and is constant
3034 integer, but there are side-effects in src, evaluate
3035 src for side-effects, then return len.
3036 E.g. x = strlen (i++ ? "xfoo" + 1 : "bar");
3037 can be optimized into: i++; x = 3; */
3038 len = c_strlen (src, 1);
3039 if (len && TREE_CODE (len) == INTEGER_CST)
3040 {
3041 expand_expr (src, const0_rtx, VOIDmode, EXPAND_NORMAL);
3042 return expand_expr (len, target, target_mode, EXPAND_NORMAL);
3043 }
3044
3045 align = get_pointer_alignment (src) / BITS_PER_UNIT;
3046
3047 /* If SRC is not a pointer type, don't do this operation inline. */
3048 if (align == 0)
3049 return NULL_RTX;
3050
3051 /* Bail out if we can't compute strlen in the right mode. */
3052 while (insn_mode != VOIDmode)
3053 {
3054 icode = optab_handler (strlen_optab, insn_mode);
3055 if (icode != CODE_FOR_nothing)
3056 break;
3057
3058 insn_mode = GET_MODE_WIDER_MODE (insn_mode);
3059 }
3060 if (insn_mode == VOIDmode)
3061 return NULL_RTX;
3062
3063 /* Make a place to hold the source address. We will not expand
3064 the actual source until we are sure that the expansion will
3065 not fail -- there are trees that cannot be expanded twice. */
3066 src_reg = gen_reg_rtx (Pmode);
3067
3068 /* Mark the beginning of the strlen sequence so we can emit the
3069 source operand later. */
3070 before_strlen = get_last_insn ();
3071
3072 create_output_operand (&ops[0], target, insn_mode);
3073 create_fixed_operand (&ops[1], gen_rtx_MEM (BLKmode, src_reg));
3074 create_integer_operand (&ops[2], 0);
3075 create_integer_operand (&ops[3], align);
3076 if (!maybe_expand_insn (icode, 4, ops))
3077 return NULL_RTX;
3078
3079 /* Now that we are assured of success, expand the source. */
3080 start_sequence ();
3081 pat = expand_expr (src, src_reg, Pmode, EXPAND_NORMAL);
3082 if (pat != src_reg)
3083 {
3084 #ifdef POINTERS_EXTEND_UNSIGNED
3085 if (GET_MODE (pat) != Pmode)
3086 pat = convert_to_mode (Pmode, pat,
3087 POINTERS_EXTEND_UNSIGNED);
3088 #endif
3089 emit_move_insn (src_reg, pat);
3090 }
3091 pat = get_insns ();
3092 end_sequence ();
3093
3094 if (before_strlen)
3095 emit_insn_after (pat, before_strlen);
3096 else
3097 emit_insn_before (pat, get_insns ());
3098
3099 /* Return the value in the proper mode for this function. */
3100 if (GET_MODE (ops[0].value) == target_mode)
3101 target = ops[0].value;
3102 else if (target != 0)
3103 convert_move (target, ops[0].value, 0);
3104 else
3105 target = convert_to_mode (target_mode, ops[0].value, 0);
3106
3107 return target;
3108 }
3109 }
3110
3111 /* Callback routine for store_by_pieces. Read GET_MODE_BITSIZE (MODE)
3112 bytes from constant string DATA + OFFSET and return it as target
3113 constant. */
3114
3115 static rtx
3116 builtin_memcpy_read_str (void *data, HOST_WIDE_INT offset,
3117 machine_mode mode)
3118 {
3119 const char *str = (const char *) data;
3120
3121 gcc_assert (offset >= 0
3122 && ((unsigned HOST_WIDE_INT) offset + GET_MODE_SIZE (mode)
3123 <= strlen (str) + 1));
3124
3125 return c_readstr (str + offset, mode);
3126 }
3127
3128 /* LEN specify length of the block of memcpy/memset operation.
3129 Figure out its range and put it into MIN_SIZE/MAX_SIZE.
3130 In some cases we can make very likely guess on max size, then we
3131 set it into PROBABLE_MAX_SIZE. */
3132
3133 static void
3134 determine_block_size (tree len, rtx len_rtx,
3135 unsigned HOST_WIDE_INT *min_size,
3136 unsigned HOST_WIDE_INT *max_size,
3137 unsigned HOST_WIDE_INT *probable_max_size)
3138 {
3139 if (CONST_INT_P (len_rtx))
3140 {
3141 *min_size = *max_size = *probable_max_size = UINTVAL (len_rtx);
3142 return;
3143 }
3144 else
3145 {
3146 wide_int min, max;
3147 enum value_range_type range_type = VR_UNDEFINED;
3148
3149 /* Determine bounds from the type. */
3150 if (tree_fits_uhwi_p (TYPE_MIN_VALUE (TREE_TYPE (len))))
3151 *min_size = tree_to_uhwi (TYPE_MIN_VALUE (TREE_TYPE (len)));
3152 else
3153 *min_size = 0;
3154 if (tree_fits_uhwi_p (TYPE_MAX_VALUE (TREE_TYPE (len))))
3155 *probable_max_size = *max_size
3156 = tree_to_uhwi (TYPE_MAX_VALUE (TREE_TYPE (len)));
3157 else
3158 *probable_max_size = *max_size = GET_MODE_MASK (GET_MODE (len_rtx));
3159
3160 if (TREE_CODE (len) == SSA_NAME)
3161 range_type = get_range_info (len, &min, &max);
3162 if (range_type == VR_RANGE)
3163 {
3164 if (wi::fits_uhwi_p (min) && *min_size < min.to_uhwi ())
3165 *min_size = min.to_uhwi ();
3166 if (wi::fits_uhwi_p (max) && *max_size > max.to_uhwi ())
3167 *probable_max_size = *max_size = max.to_uhwi ();
3168 }
3169 else if (range_type == VR_ANTI_RANGE)
3170 {
3171 /* Anti range 0...N lets us to determine minimal size to N+1. */
3172 if (min == 0)
3173 {
3174 if (wi::fits_uhwi_p (max) && max.to_uhwi () + 1 != 0)
3175 *min_size = max.to_uhwi () + 1;
3176 }
3177 /* Code like
3178
3179 int n;
3180 if (n < 100)
3181 memcpy (a, b, n)
3182
3183 Produce anti range allowing negative values of N. We still
3184 can use the information and make a guess that N is not negative.
3185 */
3186 else if (!wi::leu_p (max, 1 << 30) && wi::fits_uhwi_p (min))
3187 *probable_max_size = min.to_uhwi () - 1;
3188 }
3189 }
3190 gcc_checking_assert (*max_size <=
3191 (unsigned HOST_WIDE_INT)
3192 GET_MODE_MASK (GET_MODE (len_rtx)));
3193 }
3194
3195 /* Helper function to do the actual work for expand_builtin_memcpy. */
3196
3197 static rtx
3198 expand_builtin_memcpy_args (tree dest, tree src, tree len, rtx target, tree exp)
3199 {
3200 const char *src_str;
3201 unsigned int src_align = get_pointer_alignment (src);
3202 unsigned int dest_align = get_pointer_alignment (dest);
3203 rtx dest_mem, src_mem, dest_addr, len_rtx;
3204 HOST_WIDE_INT expected_size = -1;
3205 unsigned int expected_align = 0;
3206 unsigned HOST_WIDE_INT min_size;
3207 unsigned HOST_WIDE_INT max_size;
3208 unsigned HOST_WIDE_INT probable_max_size;
3209
3210 /* If DEST is not a pointer type, call the normal function. */
3211 if (dest_align == 0)
3212 return NULL_RTX;
3213
3214 /* If either SRC is not a pointer type, don't do this
3215 operation in-line. */
3216 if (src_align == 0)
3217 return NULL_RTX;
3218
3219 if (currently_expanding_gimple_stmt)
3220 stringop_block_profile (currently_expanding_gimple_stmt,
3221 &expected_align, &expected_size);
3222
3223 if (expected_align < dest_align)
3224 expected_align = dest_align;
3225 dest_mem = get_memory_rtx (dest, len);
3226 set_mem_align (dest_mem, dest_align);
3227 len_rtx = expand_normal (len);
3228 determine_block_size (len, len_rtx, &min_size, &max_size,
3229 &probable_max_size);
3230 src_str = c_getstr (src);
3231
3232 /* If SRC is a string constant and block move would be done
3233 by pieces, we can avoid loading the string from memory
3234 and only stored the computed constants. */
3235 if (src_str
3236 && CONST_INT_P (len_rtx)
3237 && (unsigned HOST_WIDE_INT) INTVAL (len_rtx) <= strlen (src_str) + 1
3238 && can_store_by_pieces (INTVAL (len_rtx), builtin_memcpy_read_str,
3239 CONST_CAST (char *, src_str),
3240 dest_align, false))
3241 {
3242 dest_mem = store_by_pieces (dest_mem, INTVAL (len_rtx),
3243 builtin_memcpy_read_str,
3244 CONST_CAST (char *, src_str),
3245 dest_align, false, 0);
3246 dest_mem = force_operand (XEXP (dest_mem, 0), target);
3247 dest_mem = convert_memory_address (ptr_mode, dest_mem);
3248 return dest_mem;
3249 }
3250
3251 src_mem = get_memory_rtx (src, len);
3252 set_mem_align (src_mem, src_align);
3253
3254 /* Copy word part most expediently. */
3255 dest_addr = emit_block_move_hints (dest_mem, src_mem, len_rtx,
3256 CALL_EXPR_TAILCALL (exp)
3257 ? BLOCK_OP_TAILCALL : BLOCK_OP_NORMAL,
3258 expected_align, expected_size,
3259 min_size, max_size, probable_max_size);
3260
3261 if (dest_addr == 0)
3262 {
3263 dest_addr = force_operand (XEXP (dest_mem, 0), target);
3264 dest_addr = convert_memory_address (ptr_mode, dest_addr);
3265 }
3266
3267 return dest_addr;
3268 }
3269
3270 /* Expand a call EXP to the memcpy builtin.
3271 Return NULL_RTX if we failed, the caller should emit a normal call,
3272 otherwise try to get the result in TARGET, if convenient (and in
3273 mode MODE if that's convenient). */
3274
3275 static rtx
3276 expand_builtin_memcpy (tree exp, rtx target)
3277 {
3278 if (!validate_arglist (exp,
3279 POINTER_TYPE, POINTER_TYPE, INTEGER_TYPE, VOID_TYPE))
3280 return NULL_RTX;
3281 else
3282 {
3283 tree dest = CALL_EXPR_ARG (exp, 0);
3284 tree src = CALL_EXPR_ARG (exp, 1);
3285 tree len = CALL_EXPR_ARG (exp, 2);
3286 return expand_builtin_memcpy_args (dest, src, len, target, exp);
3287 }
3288 }
3289
3290 /* Expand an instrumented call EXP to the memcpy builtin.
3291 Return NULL_RTX if we failed, the caller should emit a normal call,
3292 otherwise try to get the result in TARGET, if convenient (and in
3293 mode MODE if that's convenient). */
3294
3295 static rtx
3296 expand_builtin_memcpy_with_bounds (tree exp, rtx target)
3297 {
3298 if (!validate_arglist (exp,
3299 POINTER_TYPE, POINTER_BOUNDS_TYPE,
3300 POINTER_TYPE, POINTER_BOUNDS_TYPE,
3301 INTEGER_TYPE, VOID_TYPE))
3302 return NULL_RTX;
3303 else
3304 {
3305 tree dest = CALL_EXPR_ARG (exp, 0);
3306 tree src = CALL_EXPR_ARG (exp, 2);
3307 tree len = CALL_EXPR_ARG (exp, 4);
3308 rtx res = expand_builtin_memcpy_args (dest, src, len, target, exp);
3309
3310 /* Return src bounds with the result. */
3311 if (res)
3312 {
3313 rtx bnd = force_reg (targetm.chkp_bound_mode (),
3314 expand_normal (CALL_EXPR_ARG (exp, 1)));
3315 res = chkp_join_splitted_slot (res, bnd);
3316 }
3317 return res;
3318 }
3319 }
3320
3321 /* Expand a call EXP to the mempcpy builtin.
3322 Return NULL_RTX if we failed; the caller should emit a normal call,
3323 otherwise try to get the result in TARGET, if convenient (and in
3324 mode MODE if that's convenient). If ENDP is 0 return the
3325 destination pointer, if ENDP is 1 return the end pointer ala
3326 mempcpy, and if ENDP is 2 return the end pointer minus one ala
3327 stpcpy. */
3328
3329 static rtx
3330 expand_builtin_mempcpy (tree exp, rtx target, machine_mode mode)
3331 {
3332 if (!validate_arglist (exp,
3333 POINTER_TYPE, POINTER_TYPE, INTEGER_TYPE, VOID_TYPE))
3334 return NULL_RTX;
3335 else
3336 {
3337 tree dest = CALL_EXPR_ARG (exp, 0);
3338 tree src = CALL_EXPR_ARG (exp, 1);
3339 tree len = CALL_EXPR_ARG (exp, 2);
3340 return expand_builtin_mempcpy_args (dest, src, len,
3341 target, mode, /*endp=*/ 1,
3342 exp);
3343 }
3344 }
3345
3346 /* Expand an instrumented call EXP to the mempcpy builtin.
3347 Return NULL_RTX if we failed, the caller should emit a normal call,
3348 otherwise try to get the result in TARGET, if convenient (and in
3349 mode MODE if that's convenient). */
3350
3351 static rtx
3352 expand_builtin_mempcpy_with_bounds (tree exp, rtx target, machine_mode mode)
3353 {
3354 if (!validate_arglist (exp,
3355 POINTER_TYPE, POINTER_BOUNDS_TYPE,
3356 POINTER_TYPE, POINTER_BOUNDS_TYPE,
3357 INTEGER_TYPE, VOID_TYPE))
3358 return NULL_RTX;
3359 else
3360 {
3361 tree dest = CALL_EXPR_ARG (exp, 0);
3362 tree src = CALL_EXPR_ARG (exp, 2);
3363 tree len = CALL_EXPR_ARG (exp, 4);
3364 rtx res = expand_builtin_mempcpy_args (dest, src, len, target,
3365 mode, 1, exp);
3366
3367 /* Return src bounds with the result. */
3368 if (res)
3369 {
3370 rtx bnd = force_reg (targetm.chkp_bound_mode (),
3371 expand_normal (CALL_EXPR_ARG (exp, 1)));
3372 res = chkp_join_splitted_slot (res, bnd);
3373 }
3374 return res;
3375 }
3376 }
3377
3378 /* Helper function to do the actual work for expand_builtin_mempcpy. The
3379 arguments to the builtin_mempcpy call DEST, SRC, and LEN are broken out
3380 so that this can also be called without constructing an actual CALL_EXPR.
3381 The other arguments and return value are the same as for
3382 expand_builtin_mempcpy. */
3383
3384 static rtx
3385 expand_builtin_mempcpy_args (tree dest, tree src, tree len,
3386 rtx target, machine_mode mode, int endp,
3387 tree orig_exp)
3388 {
3389 tree fndecl = get_callee_fndecl (orig_exp);
3390
3391 /* If return value is ignored, transform mempcpy into memcpy. */
3392 if (target == const0_rtx
3393 && DECL_FUNCTION_CODE (fndecl) == BUILT_IN_CHKP_MEMPCPY_NOBND_NOCHK_CHKP
3394 && builtin_decl_implicit_p (BUILT_IN_CHKP_MEMCPY_NOBND_NOCHK_CHKP))
3395 {
3396 tree fn = builtin_decl_implicit (BUILT_IN_CHKP_MEMCPY_NOBND_NOCHK_CHKP);
3397 tree result = build_call_nofold_loc (UNKNOWN_LOCATION, fn, 3,
3398 dest, src, len);
3399 return expand_expr (result, target, mode, EXPAND_NORMAL);
3400 }
3401 else if (target == const0_rtx
3402 && builtin_decl_implicit_p (BUILT_IN_MEMCPY))
3403 {
3404 tree fn = builtin_decl_implicit (BUILT_IN_MEMCPY);
3405 tree result = build_call_nofold_loc (UNKNOWN_LOCATION, fn, 3,
3406 dest, src, len);
3407 return expand_expr (result, target, mode, EXPAND_NORMAL);
3408 }
3409 else
3410 {
3411 const char *src_str;
3412 unsigned int src_align = get_pointer_alignment (src);
3413 unsigned int dest_align = get_pointer_alignment (dest);
3414 rtx dest_mem, src_mem, len_rtx;
3415
3416 /* If either SRC or DEST is not a pointer type, don't do this
3417 operation in-line. */
3418 if (dest_align == 0 || src_align == 0)
3419 return NULL_RTX;
3420
3421 /* If LEN is not constant, call the normal function. */
3422 if (! tree_fits_uhwi_p (len))
3423 return NULL_RTX;
3424
3425 len_rtx = expand_normal (len);
3426 src_str = c_getstr (src);
3427
3428 /* If SRC is a string constant and block move would be done
3429 by pieces, we can avoid loading the string from memory
3430 and only stored the computed constants. */
3431 if (src_str
3432 && CONST_INT_P (len_rtx)
3433 && (unsigned HOST_WIDE_INT) INTVAL (len_rtx) <= strlen (src_str) + 1
3434 && can_store_by_pieces (INTVAL (len_rtx), builtin_memcpy_read_str,
3435 CONST_CAST (char *, src_str),
3436 dest_align, false))
3437 {
3438 dest_mem = get_memory_rtx (dest, len);
3439 set_mem_align (dest_mem, dest_align);
3440 dest_mem = store_by_pieces (dest_mem, INTVAL (len_rtx),
3441 builtin_memcpy_read_str,
3442 CONST_CAST (char *, src_str),
3443 dest_align, false, endp);
3444 dest_mem = force_operand (XEXP (dest_mem, 0), NULL_RTX);
3445 dest_mem = convert_memory_address (ptr_mode, dest_mem);
3446 return dest_mem;
3447 }
3448
3449 if (CONST_INT_P (len_rtx)
3450 && can_move_by_pieces (INTVAL (len_rtx),
3451 MIN (dest_align, src_align)))
3452 {
3453 dest_mem = get_memory_rtx (dest, len);
3454 set_mem_align (dest_mem, dest_align);
3455 src_mem = get_memory_rtx (src, len);
3456 set_mem_align (src_mem, src_align);
3457 dest_mem = move_by_pieces (dest_mem, src_mem, INTVAL (len_rtx),
3458 MIN (dest_align, src_align), endp);
3459 dest_mem = force_operand (XEXP (dest_mem, 0), NULL_RTX);
3460 dest_mem = convert_memory_address (ptr_mode, dest_mem);
3461 return dest_mem;
3462 }
3463
3464 return NULL_RTX;
3465 }
3466 }
3467
3468 #ifndef HAVE_movstr
3469 # define HAVE_movstr 0
3470 # define CODE_FOR_movstr CODE_FOR_nothing
3471 #endif
3472
3473 /* Expand into a movstr instruction, if one is available. Return NULL_RTX if
3474 we failed, the caller should emit a normal call, otherwise try to
3475 get the result in TARGET, if convenient. If ENDP is 0 return the
3476 destination pointer, if ENDP is 1 return the end pointer ala
3477 mempcpy, and if ENDP is 2 return the end pointer minus one ala
3478 stpcpy. */
3479
3480 static rtx
3481 expand_movstr (tree dest, tree src, rtx target, int endp)
3482 {
3483 struct expand_operand ops[3];
3484 rtx dest_mem;
3485 rtx src_mem;
3486
3487 if (!HAVE_movstr)
3488 return NULL_RTX;
3489
3490 dest_mem = get_memory_rtx (dest, NULL);
3491 src_mem = get_memory_rtx (src, NULL);
3492 if (!endp)
3493 {
3494 target = force_reg (Pmode, XEXP (dest_mem, 0));
3495 dest_mem = replace_equiv_address (dest_mem, target);
3496 }
3497
3498 create_output_operand (&ops[0], endp ? target : NULL_RTX, Pmode);
3499 create_fixed_operand (&ops[1], dest_mem);
3500 create_fixed_operand (&ops[2], src_mem);
3501 if (!maybe_expand_insn (CODE_FOR_movstr, 3, ops))
3502 return NULL_RTX;
3503
3504 if (endp && target != const0_rtx)
3505 {
3506 target = ops[0].value;
3507 /* movstr is supposed to set end to the address of the NUL
3508 terminator. If the caller requested a mempcpy-like return value,
3509 adjust it. */
3510 if (endp == 1)
3511 {
3512 rtx tem = plus_constant (GET_MODE (target),
3513 gen_lowpart (GET_MODE (target), target), 1);
3514 emit_move_insn (target, force_operand (tem, NULL_RTX));
3515 }
3516 }
3517 return target;
3518 }
3519
3520 /* Expand expression EXP, which is a call to the strcpy builtin. Return
3521 NULL_RTX if we failed the caller should emit a normal call, otherwise
3522 try to get the result in TARGET, if convenient (and in mode MODE if that's
3523 convenient). */
3524
3525 static rtx
3526 expand_builtin_strcpy (tree exp, rtx target)
3527 {
3528 if (validate_arglist (exp, POINTER_TYPE, POINTER_TYPE, VOID_TYPE))
3529 {
3530 tree dest = CALL_EXPR_ARG (exp, 0);
3531 tree src = CALL_EXPR_ARG (exp, 1);
3532 return expand_builtin_strcpy_args (dest, src, target);
3533 }
3534 return NULL_RTX;
3535 }
3536
3537 /* Helper function to do the actual work for expand_builtin_strcpy. The
3538 arguments to the builtin_strcpy call DEST and SRC are broken out
3539 so that this can also be called without constructing an actual CALL_EXPR.
3540 The other arguments and return value are the same as for
3541 expand_builtin_strcpy. */
3542
3543 static rtx
3544 expand_builtin_strcpy_args (tree dest, tree src, rtx target)
3545 {
3546 return expand_movstr (dest, src, target, /*endp=*/0);
3547 }
3548
3549 /* Expand a call EXP to the stpcpy builtin.
3550 Return NULL_RTX if we failed the caller should emit a normal call,
3551 otherwise try to get the result in TARGET, if convenient (and in
3552 mode MODE if that's convenient). */
3553
3554 static rtx
3555 expand_builtin_stpcpy (tree exp, rtx target, machine_mode mode)
3556 {
3557 tree dst, src;
3558 location_t loc = EXPR_LOCATION (exp);
3559
3560 if (!validate_arglist (exp, POINTER_TYPE, POINTER_TYPE, VOID_TYPE))
3561 return NULL_RTX;
3562
3563 dst = CALL_EXPR_ARG (exp, 0);
3564 src = CALL_EXPR_ARG (exp, 1);
3565
3566 /* If return value is ignored, transform stpcpy into strcpy. */
3567 if (target == const0_rtx && builtin_decl_implicit (BUILT_IN_STRCPY))
3568 {
3569 tree fn = builtin_decl_implicit (BUILT_IN_STRCPY);
3570 tree result = build_call_nofold_loc (loc, fn, 2, dst, src);
3571 return expand_expr (result, target, mode, EXPAND_NORMAL);
3572 }
3573 else
3574 {
3575 tree len, lenp1;
3576 rtx ret;
3577
3578 /* Ensure we get an actual string whose length can be evaluated at
3579 compile-time, not an expression containing a string. This is
3580 because the latter will potentially produce pessimized code
3581 when used to produce the return value. */
3582 if (! c_getstr (src) || ! (len = c_strlen (src, 0)))
3583 return expand_movstr (dst, src, target, /*endp=*/2);
3584
3585 lenp1 = size_binop_loc (loc, PLUS_EXPR, len, ssize_int (1));
3586 ret = expand_builtin_mempcpy_args (dst, src, lenp1,
3587 target, mode, /*endp=*/2,
3588 exp);
3589
3590 if (ret)
3591 return ret;
3592
3593 if (TREE_CODE (len) == INTEGER_CST)
3594 {
3595 rtx len_rtx = expand_normal (len);
3596
3597 if (CONST_INT_P (len_rtx))
3598 {
3599 ret = expand_builtin_strcpy_args (dst, src, target);
3600
3601 if (ret)
3602 {
3603 if (! target)
3604 {
3605 if (mode != VOIDmode)
3606 target = gen_reg_rtx (mode);
3607 else
3608 target = gen_reg_rtx (GET_MODE (ret));
3609 }
3610 if (GET_MODE (target) != GET_MODE (ret))
3611 ret = gen_lowpart (GET_MODE (target), ret);
3612
3613 ret = plus_constant (GET_MODE (ret), ret, INTVAL (len_rtx));
3614 ret = emit_move_insn (target, force_operand (ret, NULL_RTX));
3615 gcc_assert (ret);
3616
3617 return target;
3618 }
3619 }
3620 }
3621
3622 return expand_movstr (dst, src, target, /*endp=*/2);
3623 }
3624 }
3625
3626 /* Callback routine for store_by_pieces. Read GET_MODE_BITSIZE (MODE)
3627 bytes from constant string DATA + OFFSET and return it as target
3628 constant. */
3629
3630 rtx
3631 builtin_strncpy_read_str (void *data, HOST_WIDE_INT offset,
3632 machine_mode mode)
3633 {
3634 const char *str = (const char *) data;
3635
3636 if ((unsigned HOST_WIDE_INT) offset > strlen (str))
3637 return const0_rtx;
3638
3639 return c_readstr (str + offset, mode);
3640 }
3641
3642 /* Expand expression EXP, which is a call to the strncpy builtin. Return
3643 NULL_RTX if we failed the caller should emit a normal call. */
3644
3645 static rtx
3646 expand_builtin_strncpy (tree exp, rtx target)
3647 {
3648 location_t loc = EXPR_LOCATION (exp);
3649
3650 if (validate_arglist (exp,
3651 POINTER_TYPE, POINTER_TYPE, INTEGER_TYPE, VOID_TYPE))
3652 {
3653 tree dest = CALL_EXPR_ARG (exp, 0);
3654 tree src = CALL_EXPR_ARG (exp, 1);
3655 tree len = CALL_EXPR_ARG (exp, 2);
3656 tree slen = c_strlen (src, 1);
3657
3658 /* We must be passed a constant len and src parameter. */
3659 if (!tree_fits_uhwi_p (len) || !slen || !tree_fits_uhwi_p (slen))
3660 return NULL_RTX;
3661
3662 slen = size_binop_loc (loc, PLUS_EXPR, slen, ssize_int (1));
3663
3664 /* We're required to pad with trailing zeros if the requested
3665 len is greater than strlen(s2)+1. In that case try to
3666 use store_by_pieces, if it fails, punt. */
3667 if (tree_int_cst_lt (slen, len))
3668 {
3669 unsigned int dest_align = get_pointer_alignment (dest);
3670 const char *p = c_getstr (src);
3671 rtx dest_mem;
3672
3673 if (!p || dest_align == 0 || !tree_fits_uhwi_p (len)
3674 || !can_store_by_pieces (tree_to_uhwi (len),
3675 builtin_strncpy_read_str,
3676 CONST_CAST (char *, p),
3677 dest_align, false))
3678 return NULL_RTX;
3679
3680 dest_mem = get_memory_rtx (dest, len);
3681 store_by_pieces (dest_mem, tree_to_uhwi (len),
3682 builtin_strncpy_read_str,
3683 CONST_CAST (char *, p), dest_align, false, 0);
3684 dest_mem = force_operand (XEXP (dest_mem, 0), target);
3685 dest_mem = convert_memory_address (ptr_mode, dest_mem);
3686 return dest_mem;
3687 }
3688 }
3689 return NULL_RTX;
3690 }
3691
3692 /* Callback routine for store_by_pieces. Read GET_MODE_BITSIZE (MODE)
3693 bytes from constant string DATA + OFFSET and return it as target
3694 constant. */
3695
3696 rtx
3697 builtin_memset_read_str (void *data, HOST_WIDE_INT offset ATTRIBUTE_UNUSED,
3698 machine_mode mode)
3699 {
3700 const char *c = (const char *) data;
3701 char *p = XALLOCAVEC (char, GET_MODE_SIZE (mode));
3702
3703 memset (p, *c, GET_MODE_SIZE (mode));
3704
3705 return c_readstr (p, mode);
3706 }
3707
3708 /* Callback routine for store_by_pieces. Return the RTL of a register
3709 containing GET_MODE_SIZE (MODE) consecutive copies of the unsigned
3710 char value given in the RTL register data. For example, if mode is
3711 4 bytes wide, return the RTL for 0x01010101*data. */
3712
3713 static rtx
3714 builtin_memset_gen_str (void *data, HOST_WIDE_INT offset ATTRIBUTE_UNUSED,
3715 machine_mode mode)
3716 {
3717 rtx target, coeff;
3718 size_t size;
3719 char *p;
3720
3721 size = GET_MODE_SIZE (mode);
3722 if (size == 1)
3723 return (rtx) data;
3724
3725 p = XALLOCAVEC (char, size);
3726 memset (p, 1, size);
3727 coeff = c_readstr (p, mode);
3728
3729 target = convert_to_mode (mode, (rtx) data, 1);
3730 target = expand_mult (mode, target, coeff, NULL_RTX, 1);
3731 return force_reg (mode, target);
3732 }
3733
3734 /* Expand expression EXP, which is a call to the memset builtin. Return
3735 NULL_RTX if we failed the caller should emit a normal call, otherwise
3736 try to get the result in TARGET, if convenient (and in mode MODE if that's
3737 convenient). */
3738
3739 static rtx
3740 expand_builtin_memset (tree exp, rtx target, machine_mode mode)
3741 {
3742 if (!validate_arglist (exp,
3743 POINTER_TYPE, INTEGER_TYPE, INTEGER_TYPE, VOID_TYPE))
3744 return NULL_RTX;
3745 else
3746 {
3747 tree dest = CALL_EXPR_ARG (exp, 0);
3748 tree val = CALL_EXPR_ARG (exp, 1);
3749 tree len = CALL_EXPR_ARG (exp, 2);
3750 return expand_builtin_memset_args (dest, val, len, target, mode, exp);
3751 }
3752 }
3753
3754 /* Expand expression EXP, which is an instrumented call to the memset builtin.
3755 Return NULL_RTX if we failed the caller should emit a normal call, otherwise
3756 try to get the result in TARGET, if convenient (and in mode MODE if that's
3757 convenient). */
3758
3759 static rtx
3760 expand_builtin_memset_with_bounds (tree exp, rtx target, machine_mode mode)
3761 {
3762 if (!validate_arglist (exp,
3763 POINTER_TYPE, POINTER_BOUNDS_TYPE,
3764 INTEGER_TYPE, INTEGER_TYPE, VOID_TYPE))
3765 return NULL_RTX;
3766 else
3767 {
3768 tree dest = CALL_EXPR_ARG (exp, 0);
3769 tree val = CALL_EXPR_ARG (exp, 2);
3770 tree len = CALL_EXPR_ARG (exp, 3);
3771 rtx res = expand_builtin_memset_args (dest, val, len, target, mode, exp);
3772
3773 /* Return src bounds with the result. */
3774 if (res)
3775 {
3776 rtx bnd = force_reg (targetm.chkp_bound_mode (),
3777 expand_normal (CALL_EXPR_ARG (exp, 1)));
3778 res = chkp_join_splitted_slot (res, bnd);
3779 }
3780 return res;
3781 }
3782 }
3783
3784 /* Helper function to do the actual work for expand_builtin_memset. The
3785 arguments to the builtin_memset call DEST, VAL, and LEN are broken out
3786 so that this can also be called without constructing an actual CALL_EXPR.
3787 The other arguments and return value are the same as for
3788 expand_builtin_memset. */
3789
3790 static rtx
3791 expand_builtin_memset_args (tree dest, tree val, tree len,
3792 rtx target, machine_mode mode, tree orig_exp)
3793 {
3794 tree fndecl, fn;
3795 enum built_in_function fcode;
3796 machine_mode val_mode;
3797 char c;
3798 unsigned int dest_align;
3799 rtx dest_mem, dest_addr, len_rtx;
3800 HOST_WIDE_INT expected_size = -1;
3801 unsigned int expected_align = 0;
3802 unsigned HOST_WIDE_INT min_size;
3803 unsigned HOST_WIDE_INT max_size;
3804 unsigned HOST_WIDE_INT probable_max_size;
3805
3806 dest_align = get_pointer_alignment (dest);
3807
3808 /* If DEST is not a pointer type, don't do this operation in-line. */
3809 if (dest_align == 0)
3810 return NULL_RTX;
3811
3812 if (currently_expanding_gimple_stmt)
3813 stringop_block_profile (currently_expanding_gimple_stmt,
3814 &expected_align, &expected_size);
3815
3816 if (expected_align < dest_align)
3817 expected_align = dest_align;
3818
3819 /* If the LEN parameter is zero, return DEST. */
3820 if (integer_zerop (len))
3821 {
3822 /* Evaluate and ignore VAL in case it has side-effects. */
3823 expand_expr (val, const0_rtx, VOIDmode, EXPAND_NORMAL);
3824 return expand_expr (dest, target, mode, EXPAND_NORMAL);
3825 }
3826
3827 /* Stabilize the arguments in case we fail. */
3828 dest = builtin_save_expr (dest);
3829 val = builtin_save_expr (val);
3830 len = builtin_save_expr (len);
3831
3832 len_rtx = expand_normal (len);
3833 determine_block_size (len, len_rtx, &min_size, &max_size,
3834 &probable_max_size);
3835 dest_mem = get_memory_rtx (dest, len);
3836 val_mode = TYPE_MODE (unsigned_char_type_node);
3837
3838 if (TREE_CODE (val) != INTEGER_CST)
3839 {
3840 rtx val_rtx;
3841
3842 val_rtx = expand_normal (val);
3843 val_rtx = convert_to_mode (val_mode, val_rtx, 0);
3844
3845 /* Assume that we can memset by pieces if we can store
3846 * the coefficients by pieces (in the required modes).
3847 * We can't pass builtin_memset_gen_str as that emits RTL. */
3848 c = 1;
3849 if (tree_fits_uhwi_p (len)
3850 && can_store_by_pieces (tree_to_uhwi (len),
3851 builtin_memset_read_str, &c, dest_align,
3852 true))
3853 {
3854 val_rtx = force_reg (val_mode, val_rtx);
3855 store_by_pieces (dest_mem, tree_to_uhwi (len),
3856 builtin_memset_gen_str, val_rtx, dest_align,
3857 true, 0);
3858 }
3859 else if (!set_storage_via_setmem (dest_mem, len_rtx, val_rtx,
3860 dest_align, expected_align,
3861 expected_size, min_size, max_size,
3862 probable_max_size))
3863 goto do_libcall;
3864
3865 dest_mem = force_operand (XEXP (dest_mem, 0), NULL_RTX);
3866 dest_mem = convert_memory_address (ptr_mode, dest_mem);
3867 return dest_mem;
3868 }
3869
3870 if (target_char_cast (val, &c))
3871 goto do_libcall;
3872
3873 if (c)
3874 {
3875 if (tree_fits_uhwi_p (len)
3876 && can_store_by_pieces (tree_to_uhwi (len),
3877 builtin_memset_read_str, &c, dest_align,
3878 true))
3879 store_by_pieces (dest_mem, tree_to_uhwi (len),
3880 builtin_memset_read_str, &c, dest_align, true, 0);
3881 else if (!set_storage_via_setmem (dest_mem, len_rtx,
3882 gen_int_mode (c, val_mode),
3883 dest_align, expected_align,
3884 expected_size, min_size, max_size,
3885 probable_max_size))
3886 goto do_libcall;
3887
3888 dest_mem = force_operand (XEXP (dest_mem, 0), NULL_RTX);
3889 dest_mem = convert_memory_address (ptr_mode, dest_mem);
3890 return dest_mem;
3891 }
3892
3893 set_mem_align (dest_mem, dest_align);
3894 dest_addr = clear_storage_hints (dest_mem, len_rtx,
3895 CALL_EXPR_TAILCALL (orig_exp)
3896 ? BLOCK_OP_TAILCALL : BLOCK_OP_NORMAL,
3897 expected_align, expected_size,
3898 min_size, max_size,
3899 probable_max_size);
3900
3901 if (dest_addr == 0)
3902 {
3903 dest_addr = force_operand (XEXP (dest_mem, 0), NULL_RTX);
3904 dest_addr = convert_memory_address (ptr_mode, dest_addr);
3905 }
3906
3907 return dest_addr;
3908
3909 do_libcall:
3910 fndecl = get_callee_fndecl (orig_exp);
3911 fcode = DECL_FUNCTION_CODE (fndecl);
3912 if (fcode == BUILT_IN_MEMSET
3913 || fcode == BUILT_IN_CHKP_MEMSET_NOBND_NOCHK_CHKP)
3914 fn = build_call_nofold_loc (EXPR_LOCATION (orig_exp), fndecl, 3,
3915 dest, val, len);
3916 else if (fcode == BUILT_IN_BZERO)
3917 fn = build_call_nofold_loc (EXPR_LOCATION (orig_exp), fndecl, 2,
3918 dest, len);
3919 else
3920 gcc_unreachable ();
3921 gcc_assert (TREE_CODE (fn) == CALL_EXPR);
3922 CALL_EXPR_TAILCALL (fn) = CALL_EXPR_TAILCALL (orig_exp);
3923 return expand_call (fn, target, target == const0_rtx);
3924 }
3925
3926 /* Expand expression EXP, which is a call to the bzero builtin. Return
3927 NULL_RTX if we failed the caller should emit a normal call. */
3928
3929 static rtx
3930 expand_builtin_bzero (tree exp)
3931 {
3932 tree dest, size;
3933 location_t loc = EXPR_LOCATION (exp);
3934
3935 if (!validate_arglist (exp, POINTER_TYPE, INTEGER_TYPE, VOID_TYPE))
3936 return NULL_RTX;
3937
3938 dest = CALL_EXPR_ARG (exp, 0);
3939 size = CALL_EXPR_ARG (exp, 1);
3940
3941 /* New argument list transforming bzero(ptr x, int y) to
3942 memset(ptr x, int 0, size_t y). This is done this way
3943 so that if it isn't expanded inline, we fallback to
3944 calling bzero instead of memset. */
3945
3946 return expand_builtin_memset_args (dest, integer_zero_node,
3947 fold_convert_loc (loc,
3948 size_type_node, size),
3949 const0_rtx, VOIDmode, exp);
3950 }
3951
3952 /* Expand expression EXP, which is a call to the memcmp built-in function.
3953 Return NULL_RTX if we failed and the caller should emit a normal call,
3954 otherwise try to get the result in TARGET, if convenient (and in mode
3955 MODE, if that's convenient). */
3956
3957 static rtx
3958 expand_builtin_memcmp (tree exp, ATTRIBUTE_UNUSED rtx target,
3959 ATTRIBUTE_UNUSED machine_mode mode)
3960 {
3961 location_t loc ATTRIBUTE_UNUSED = EXPR_LOCATION (exp);
3962
3963 if (!validate_arglist (exp,
3964 POINTER_TYPE, POINTER_TYPE, INTEGER_TYPE, VOID_TYPE))
3965 return NULL_RTX;
3966
3967 /* Note: The cmpstrnsi pattern, if it exists, is not suitable for
3968 implementing memcmp because it will stop if it encounters two
3969 zero bytes. */
3970 #if defined HAVE_cmpmemsi
3971 {
3972 rtx arg1_rtx, arg2_rtx, arg3_rtx;
3973 rtx result;
3974 rtx insn;
3975 tree arg1 = CALL_EXPR_ARG (exp, 0);
3976 tree arg2 = CALL_EXPR_ARG (exp, 1);
3977 tree len = CALL_EXPR_ARG (exp, 2);
3978
3979 unsigned int arg1_align = get_pointer_alignment (arg1) / BITS_PER_UNIT;
3980 unsigned int arg2_align = get_pointer_alignment (arg2) / BITS_PER_UNIT;
3981 machine_mode insn_mode;
3982
3983 if (HAVE_cmpmemsi)
3984 insn_mode = insn_data[(int) CODE_FOR_cmpmemsi].operand[0].mode;
3985 else
3986 return NULL_RTX;
3987
3988 /* If we don't have POINTER_TYPE, call the function. */
3989 if (arg1_align == 0 || arg2_align == 0)
3990 return NULL_RTX;
3991
3992 /* Make a place to write the result of the instruction. */
3993 result = target;
3994 if (! (result != 0
3995 && REG_P (result) && GET_MODE (result) == insn_mode
3996 && REGNO (result) >= FIRST_PSEUDO_REGISTER))
3997 result = gen_reg_rtx (insn_mode);
3998
3999 arg1_rtx = get_memory_rtx (arg1, len);
4000 arg2_rtx = get_memory_rtx (arg2, len);
4001 arg3_rtx = expand_normal (fold_convert_loc (loc, sizetype, len));
4002
4003 /* Set MEM_SIZE as appropriate. */
4004 if (CONST_INT_P (arg3_rtx))
4005 {
4006 set_mem_size (arg1_rtx, INTVAL (arg3_rtx));
4007 set_mem_size (arg2_rtx, INTVAL (arg3_rtx));
4008 }
4009
4010 if (HAVE_cmpmemsi)
4011 insn = gen_cmpmemsi (result, arg1_rtx, arg2_rtx, arg3_rtx,
4012 GEN_INT (MIN (arg1_align, arg2_align)));
4013 else
4014 gcc_unreachable ();
4015
4016 if (insn)
4017 emit_insn (insn);
4018 else
4019 emit_library_call_value (memcmp_libfunc, result, LCT_PURE,
4020 TYPE_MODE (integer_type_node), 3,
4021 XEXP (arg1_rtx, 0), Pmode,
4022 XEXP (arg2_rtx, 0), Pmode,
4023 convert_to_mode (TYPE_MODE (sizetype), arg3_rtx,
4024 TYPE_UNSIGNED (sizetype)),
4025 TYPE_MODE (sizetype));
4026
4027 /* Return the value in the proper mode for this function. */
4028 mode = TYPE_MODE (TREE_TYPE (exp));
4029 if (GET_MODE (result) == mode)
4030 return result;
4031 else if (target != 0)
4032 {
4033 convert_move (target, result, 0);
4034 return target;
4035 }
4036 else
4037 return convert_to_mode (mode, result, 0);
4038 }
4039 #endif /* HAVE_cmpmemsi. */
4040
4041 return NULL_RTX;
4042 }
4043
4044 /* Expand expression EXP, which is a call to the strcmp builtin. Return NULL_RTX
4045 if we failed the caller should emit a normal call, otherwise try to get
4046 the result in TARGET, if convenient. */
4047
4048 static rtx
4049 expand_builtin_strcmp (tree exp, ATTRIBUTE_UNUSED rtx target)
4050 {
4051 if (!validate_arglist (exp, POINTER_TYPE, POINTER_TYPE, VOID_TYPE))
4052 return NULL_RTX;
4053
4054 #if defined HAVE_cmpstrsi || defined HAVE_cmpstrnsi
4055 if (direct_optab_handler (cmpstr_optab, SImode) != CODE_FOR_nothing
4056 || direct_optab_handler (cmpstrn_optab, SImode) != CODE_FOR_nothing)
4057 {
4058 rtx arg1_rtx, arg2_rtx;
4059 rtx result, insn = NULL_RTX;
4060 tree fndecl, fn;
4061 tree arg1 = CALL_EXPR_ARG (exp, 0);
4062 tree arg2 = CALL_EXPR_ARG (exp, 1);
4063
4064 unsigned int arg1_align = get_pointer_alignment (arg1) / BITS_PER_UNIT;
4065 unsigned int arg2_align = get_pointer_alignment (arg2) / BITS_PER_UNIT;
4066
4067 /* If we don't have POINTER_TYPE, call the function. */
4068 if (arg1_align == 0 || arg2_align == 0)
4069 return NULL_RTX;
4070
4071 /* Stabilize the arguments in case gen_cmpstr(n)si fail. */
4072 arg1 = builtin_save_expr (arg1);
4073 arg2 = builtin_save_expr (arg2);
4074
4075 arg1_rtx = get_memory_rtx (arg1, NULL);
4076 arg2_rtx = get_memory_rtx (arg2, NULL);
4077
4078 #ifdef HAVE_cmpstrsi
4079 /* Try to call cmpstrsi. */
4080 if (HAVE_cmpstrsi)
4081 {
4082 machine_mode insn_mode
4083 = insn_data[(int) CODE_FOR_cmpstrsi].operand[0].mode;
4084
4085 /* Make a place to write the result of the instruction. */
4086 result = target;
4087 if (! (result != 0
4088 && REG_P (result) && GET_MODE (result) == insn_mode
4089 && REGNO (result) >= FIRST_PSEUDO_REGISTER))
4090 result = gen_reg_rtx (insn_mode);
4091
4092 insn = gen_cmpstrsi (result, arg1_rtx, arg2_rtx,
4093 GEN_INT (MIN (arg1_align, arg2_align)));
4094 }
4095 #endif
4096 #ifdef HAVE_cmpstrnsi
4097 /* Try to determine at least one length and call cmpstrnsi. */
4098 if (!insn && HAVE_cmpstrnsi)
4099 {
4100 tree len;
4101 rtx arg3_rtx;
4102
4103 machine_mode insn_mode
4104 = insn_data[(int) CODE_FOR_cmpstrnsi].operand[0].mode;
4105 tree len1 = c_strlen (arg1, 1);
4106 tree len2 = c_strlen (arg2, 1);
4107
4108 if (len1)
4109 len1 = size_binop (PLUS_EXPR, ssize_int (1), len1);
4110 if (len2)
4111 len2 = size_binop (PLUS_EXPR, ssize_int (1), len2);
4112
4113 /* If we don't have a constant length for the first, use the length
4114 of the second, if we know it. We don't require a constant for
4115 this case; some cost analysis could be done if both are available
4116 but neither is constant. For now, assume they're equally cheap,
4117 unless one has side effects. If both strings have constant lengths,
4118 use the smaller. */
4119
4120 if (!len1)
4121 len = len2;
4122 else if (!len2)
4123 len = len1;
4124 else if (TREE_SIDE_EFFECTS (len1))
4125 len = len2;
4126 else if (TREE_SIDE_EFFECTS (len2))
4127 len = len1;
4128 else if (TREE_CODE (len1) != INTEGER_CST)
4129 len = len2;
4130 else if (TREE_CODE (len2) != INTEGER_CST)
4131 len = len1;
4132 else if (tree_int_cst_lt (len1, len2))
4133 len = len1;
4134 else
4135 len = len2;
4136
4137 /* If both arguments have side effects, we cannot optimize. */
4138 if (!len || TREE_SIDE_EFFECTS (len))
4139 goto do_libcall;
4140
4141 arg3_rtx = expand_normal (len);
4142
4143 /* Make a place to write the result of the instruction. */
4144 result = target;
4145 if (! (result != 0
4146 && REG_P (result) && GET_MODE (result) == insn_mode
4147 && REGNO (result) >= FIRST_PSEUDO_REGISTER))
4148 result = gen_reg_rtx (insn_mode);
4149
4150 insn = gen_cmpstrnsi (result, arg1_rtx, arg2_rtx, arg3_rtx,
4151 GEN_INT (MIN (arg1_align, arg2_align)));
4152 }
4153 #endif
4154
4155 if (insn)
4156 {
4157 machine_mode mode;
4158 emit_insn (insn);
4159
4160 /* Return the value in the proper mode for this function. */
4161 mode = TYPE_MODE (TREE_TYPE (exp));
4162 if (GET_MODE (result) == mode)
4163 return result;
4164 if (target == 0)
4165 return convert_to_mode (mode, result, 0);
4166 convert_move (target, result, 0);
4167 return target;
4168 }
4169
4170 /* Expand the library call ourselves using a stabilized argument
4171 list to avoid re-evaluating the function's arguments twice. */
4172 #ifdef HAVE_cmpstrnsi
4173 do_libcall:
4174 #endif
4175 fndecl = get_callee_fndecl (exp);
4176 fn = build_call_nofold_loc (EXPR_LOCATION (exp), fndecl, 2, arg1, arg2);
4177 gcc_assert (TREE_CODE (fn) == CALL_EXPR);
4178 CALL_EXPR_TAILCALL (fn) = CALL_EXPR_TAILCALL (exp);
4179 return expand_call (fn, target, target == const0_rtx);
4180 }
4181 #endif
4182 return NULL_RTX;
4183 }
4184
4185 /* Expand expression EXP, which is a call to the strncmp builtin. Return
4186 NULL_RTX if we failed the caller should emit a normal call, otherwise try to get
4187 the result in TARGET, if convenient. */
4188
4189 static rtx
4190 expand_builtin_strncmp (tree exp, ATTRIBUTE_UNUSED rtx target,
4191 ATTRIBUTE_UNUSED machine_mode mode)
4192 {
4193 location_t loc ATTRIBUTE_UNUSED = EXPR_LOCATION (exp);
4194
4195 if (!validate_arglist (exp,
4196 POINTER_TYPE, POINTER_TYPE, INTEGER_TYPE, VOID_TYPE))
4197 return NULL_RTX;
4198
4199 /* If c_strlen can determine an expression for one of the string
4200 lengths, and it doesn't have side effects, then emit cmpstrnsi
4201 using length MIN(strlen(string)+1, arg3). */
4202 #ifdef HAVE_cmpstrnsi
4203 if (HAVE_cmpstrnsi)
4204 {
4205 tree len, len1, len2;
4206 rtx arg1_rtx, arg2_rtx, arg3_rtx;
4207 rtx result, insn;
4208 tree fndecl, fn;
4209 tree arg1 = CALL_EXPR_ARG (exp, 0);
4210 tree arg2 = CALL_EXPR_ARG (exp, 1);
4211 tree arg3 = CALL_EXPR_ARG (exp, 2);
4212
4213 unsigned int arg1_align = get_pointer_alignment (arg1) / BITS_PER_UNIT;
4214 unsigned int arg2_align = get_pointer_alignment (arg2) / BITS_PER_UNIT;
4215 machine_mode insn_mode
4216 = insn_data[(int) CODE_FOR_cmpstrnsi].operand[0].mode;
4217
4218 len1 = c_strlen (arg1, 1);
4219 len2 = c_strlen (arg2, 1);
4220
4221 if (len1)
4222 len1 = size_binop_loc (loc, PLUS_EXPR, ssize_int (1), len1);
4223 if (len2)
4224 len2 = size_binop_loc (loc, PLUS_EXPR, ssize_int (1), len2);
4225
4226 /* If we don't have a constant length for the first, use the length
4227 of the second, if we know it. We don't require a constant for
4228 this case; some cost analysis could be done if both are available
4229 but neither is constant. For now, assume they're equally cheap,
4230 unless one has side effects. If both strings have constant lengths,
4231 use the smaller. */
4232
4233 if (!len1)
4234 len = len2;
4235 else if (!len2)
4236 len = len1;
4237 else if (TREE_SIDE_EFFECTS (len1))
4238 len = len2;
4239 else if (TREE_SIDE_EFFECTS (len2))
4240 len = len1;
4241 else if (TREE_CODE (len1) != INTEGER_CST)
4242 len = len2;
4243 else if (TREE_CODE (len2) != INTEGER_CST)
4244 len = len1;
4245 else if (tree_int_cst_lt (len1, len2))
4246 len = len1;
4247 else
4248 len = len2;
4249
4250 /* If both arguments have side effects, we cannot optimize. */
4251 if (!len || TREE_SIDE_EFFECTS (len))
4252 return NULL_RTX;
4253
4254 /* The actual new length parameter is MIN(len,arg3). */
4255 len = fold_build2_loc (loc, MIN_EXPR, TREE_TYPE (len), len,
4256 fold_convert_loc (loc, TREE_TYPE (len), arg3));
4257
4258 /* If we don't have POINTER_TYPE, call the function. */
4259 if (arg1_align == 0 || arg2_align == 0)
4260 return NULL_RTX;
4261
4262 /* Make a place to write the result of the instruction. */
4263 result = target;
4264 if (! (result != 0
4265 && REG_P (result) && GET_MODE (result) == insn_mode
4266 && REGNO (result) >= FIRST_PSEUDO_REGISTER))
4267 result = gen_reg_rtx (insn_mode);
4268
4269 /* Stabilize the arguments in case gen_cmpstrnsi fails. */
4270 arg1 = builtin_save_expr (arg1);
4271 arg2 = builtin_save_expr (arg2);
4272 len = builtin_save_expr (len);
4273
4274 arg1_rtx = get_memory_rtx (arg1, len);
4275 arg2_rtx = get_memory_rtx (arg2, len);
4276 arg3_rtx = expand_normal (len);
4277 insn = gen_cmpstrnsi (result, arg1_rtx, arg2_rtx, arg3_rtx,
4278 GEN_INT (MIN (arg1_align, arg2_align)));
4279 if (insn)
4280 {
4281 emit_insn (insn);
4282
4283 /* Return the value in the proper mode for this function. */
4284 mode = TYPE_MODE (TREE_TYPE (exp));
4285 if (GET_MODE (result) == mode)
4286 return result;
4287 if (target == 0)
4288 return convert_to_mode (mode, result, 0);
4289 convert_move (target, result, 0);
4290 return target;
4291 }
4292
4293 /* Expand the library call ourselves using a stabilized argument
4294 list to avoid re-evaluating the function's arguments twice. */
4295 fndecl = get_callee_fndecl (exp);
4296 fn = build_call_nofold_loc (EXPR_LOCATION (exp), fndecl, 3,
4297 arg1, arg2, len);
4298 gcc_assert (TREE_CODE (fn) == CALL_EXPR);
4299 CALL_EXPR_TAILCALL (fn) = CALL_EXPR_TAILCALL (exp);
4300 return expand_call (fn, target, target == const0_rtx);
4301 }
4302 #endif
4303 return NULL_RTX;
4304 }
4305
4306 /* Expand a call to __builtin_saveregs, generating the result in TARGET,
4307 if that's convenient. */
4308
4309 rtx
4310 expand_builtin_saveregs (void)
4311 {
4312 rtx val;
4313 rtx_insn *seq;
4314
4315 /* Don't do __builtin_saveregs more than once in a function.
4316 Save the result of the first call and reuse it. */
4317 if (saveregs_value != 0)
4318 return saveregs_value;
4319
4320 /* When this function is called, it means that registers must be
4321 saved on entry to this function. So we migrate the call to the
4322 first insn of this function. */
4323
4324 start_sequence ();
4325
4326 /* Do whatever the machine needs done in this case. */
4327 val = targetm.calls.expand_builtin_saveregs ();
4328
4329 seq = get_insns ();
4330 end_sequence ();
4331
4332 saveregs_value = val;
4333
4334 /* Put the insns after the NOTE that starts the function. If this
4335 is inside a start_sequence, make the outer-level insn chain current, so
4336 the code is placed at the start of the function. */
4337 push_topmost_sequence ();
4338 emit_insn_after (seq, entry_of_function ());
4339 pop_topmost_sequence ();
4340
4341 return val;
4342 }
4343
4344 /* Expand a call to __builtin_next_arg. */
4345
4346 static rtx
4347 expand_builtin_next_arg (void)
4348 {
4349 /* Checking arguments is already done in fold_builtin_next_arg
4350 that must be called before this function. */
4351 return expand_binop (ptr_mode, add_optab,
4352 crtl->args.internal_arg_pointer,
4353 crtl->args.arg_offset_rtx,
4354 NULL_RTX, 0, OPTAB_LIB_WIDEN);
4355 }
4356
4357 /* Make it easier for the backends by protecting the valist argument
4358 from multiple evaluations. */
4359
4360 static tree
4361 stabilize_va_list_loc (location_t loc, tree valist, int needs_lvalue)
4362 {
4363 tree vatype = targetm.canonical_va_list_type (TREE_TYPE (valist));
4364
4365 /* The current way of determining the type of valist is completely
4366 bogus. We should have the information on the va builtin instead. */
4367 if (!vatype)
4368 vatype = targetm.fn_abi_va_list (cfun->decl);
4369
4370 if (TREE_CODE (vatype) == ARRAY_TYPE)
4371 {
4372 if (TREE_SIDE_EFFECTS (valist))
4373 valist = save_expr (valist);
4374
4375 /* For this case, the backends will be expecting a pointer to
4376 vatype, but it's possible we've actually been given an array
4377 (an actual TARGET_CANONICAL_VA_LIST_TYPE (valist)).
4378 So fix it. */
4379 if (TREE_CODE (TREE_TYPE (valist)) == ARRAY_TYPE)
4380 {
4381 tree p1 = build_pointer_type (TREE_TYPE (vatype));
4382 valist = build_fold_addr_expr_with_type_loc (loc, valist, p1);
4383 }
4384 }
4385 else
4386 {
4387 tree pt = build_pointer_type (vatype);
4388
4389 if (! needs_lvalue)
4390 {
4391 if (! TREE_SIDE_EFFECTS (valist))
4392 return valist;
4393
4394 valist = fold_build1_loc (loc, ADDR_EXPR, pt, valist);
4395 TREE_SIDE_EFFECTS (valist) = 1;
4396 }
4397
4398 if (TREE_SIDE_EFFECTS (valist))
4399 valist = save_expr (valist);
4400 valist = fold_build2_loc (loc, MEM_REF,
4401 vatype, valist, build_int_cst (pt, 0));
4402 }
4403
4404 return valist;
4405 }
4406
4407 /* The "standard" definition of va_list is void*. */
4408
4409 tree
4410 std_build_builtin_va_list (void)
4411 {
4412 return ptr_type_node;
4413 }
4414
4415 /* The "standard" abi va_list is va_list_type_node. */
4416
4417 tree
4418 std_fn_abi_va_list (tree fndecl ATTRIBUTE_UNUSED)
4419 {
4420 return va_list_type_node;
4421 }
4422
4423 /* The "standard" type of va_list is va_list_type_node. */
4424
4425 tree
4426 std_canonical_va_list_type (tree type)
4427 {
4428 tree wtype, htype;
4429
4430 if (INDIRECT_REF_P (type))
4431 type = TREE_TYPE (type);
4432 else if (POINTER_TYPE_P (type) && POINTER_TYPE_P (TREE_TYPE (type)))
4433 type = TREE_TYPE (type);
4434 wtype = va_list_type_node;
4435 htype = type;
4436 /* Treat structure va_list types. */
4437 if (TREE_CODE (wtype) == RECORD_TYPE && POINTER_TYPE_P (htype))
4438 htype = TREE_TYPE (htype);
4439 else if (TREE_CODE (wtype) == ARRAY_TYPE)
4440 {
4441 /* If va_list is an array type, the argument may have decayed
4442 to a pointer type, e.g. by being passed to another function.
4443 In that case, unwrap both types so that we can compare the
4444 underlying records. */
4445 if (TREE_CODE (htype) == ARRAY_TYPE
4446 || POINTER_TYPE_P (htype))
4447 {
4448 wtype = TREE_TYPE (wtype);
4449 htype = TREE_TYPE (htype);
4450 }
4451 }
4452 if (TYPE_MAIN_VARIANT (wtype) == TYPE_MAIN_VARIANT (htype))
4453 return va_list_type_node;
4454
4455 return NULL_TREE;
4456 }
4457
4458 /* The "standard" implementation of va_start: just assign `nextarg' to
4459 the variable. */
4460
4461 void
4462 std_expand_builtin_va_start (tree valist, rtx nextarg)
4463 {
4464 rtx va_r = expand_expr (valist, NULL_RTX, VOIDmode, EXPAND_WRITE);
4465 convert_move (va_r, nextarg, 0);
4466
4467 /* We do not have any valid bounds for the pointer, so
4468 just store zero bounds for it. */
4469 if (chkp_function_instrumented_p (current_function_decl))
4470 chkp_expand_bounds_reset_for_mem (valist,
4471 make_tree (TREE_TYPE (valist),
4472 nextarg));
4473 }
4474
4475 /* Expand EXP, a call to __builtin_va_start. */
4476
4477 static rtx
4478 expand_builtin_va_start (tree exp)
4479 {
4480 rtx nextarg;
4481 tree valist;
4482 location_t loc = EXPR_LOCATION (exp);
4483
4484 if (call_expr_nargs (exp) < 2)
4485 {
4486 error_at (loc, "too few arguments to function %<va_start%>");
4487 return const0_rtx;
4488 }
4489
4490 if (fold_builtin_next_arg (exp, true))
4491 return const0_rtx;
4492
4493 nextarg = expand_builtin_next_arg ();
4494 valist = stabilize_va_list_loc (loc, CALL_EXPR_ARG (exp, 0), 1);
4495
4496 if (targetm.expand_builtin_va_start)
4497 targetm.expand_builtin_va_start (valist, nextarg);
4498 else
4499 std_expand_builtin_va_start (valist, nextarg);
4500
4501 return const0_rtx;
4502 }
4503
4504 /* Expand EXP, a call to __builtin_va_end. */
4505
4506 static rtx
4507 expand_builtin_va_end (tree exp)
4508 {
4509 tree valist = CALL_EXPR_ARG (exp, 0);
4510
4511 /* Evaluate for side effects, if needed. I hate macros that don't
4512 do that. */
4513 if (TREE_SIDE_EFFECTS (valist))
4514 expand_expr (valist, const0_rtx, VOIDmode, EXPAND_NORMAL);
4515
4516 return const0_rtx;
4517 }
4518
4519 /* Expand EXP, a call to __builtin_va_copy. We do this as a
4520 builtin rather than just as an assignment in stdarg.h because of the
4521 nastiness of array-type va_list types. */
4522
4523 static rtx
4524 expand_builtin_va_copy (tree exp)
4525 {
4526 tree dst, src, t;
4527 location_t loc = EXPR_LOCATION (exp);
4528
4529 dst = CALL_EXPR_ARG (exp, 0);
4530 src = CALL_EXPR_ARG (exp, 1);
4531
4532 dst = stabilize_va_list_loc (loc, dst, 1);
4533 src = stabilize_va_list_loc (loc, src, 0);
4534
4535 gcc_assert (cfun != NULL && cfun->decl != NULL_TREE);
4536
4537 if (TREE_CODE (targetm.fn_abi_va_list (cfun->decl)) != ARRAY_TYPE)
4538 {
4539 t = build2 (MODIFY_EXPR, targetm.fn_abi_va_list (cfun->decl), dst, src);
4540 TREE_SIDE_EFFECTS (t) = 1;
4541 expand_expr (t, const0_rtx, VOIDmode, EXPAND_NORMAL);
4542 }
4543 else
4544 {
4545 rtx dstb, srcb, size;
4546
4547 /* Evaluate to pointers. */
4548 dstb = expand_expr (dst, NULL_RTX, Pmode, EXPAND_NORMAL);
4549 srcb = expand_expr (src, NULL_RTX, Pmode, EXPAND_NORMAL);
4550 size = expand_expr (TYPE_SIZE_UNIT (targetm.fn_abi_va_list (cfun->decl)),
4551 NULL_RTX, VOIDmode, EXPAND_NORMAL);
4552
4553 dstb = convert_memory_address (Pmode, dstb);
4554 srcb = convert_memory_address (Pmode, srcb);
4555
4556 /* "Dereference" to BLKmode memories. */
4557 dstb = gen_rtx_MEM (BLKmode, dstb);
4558 set_mem_alias_set (dstb, get_alias_set (TREE_TYPE (TREE_TYPE (dst))));
4559 set_mem_align (dstb, TYPE_ALIGN (targetm.fn_abi_va_list (cfun->decl)));
4560 srcb = gen_rtx_MEM (BLKmode, srcb);
4561 set_mem_alias_set (srcb, get_alias_set (TREE_TYPE (TREE_TYPE (src))));
4562 set_mem_align (srcb, TYPE_ALIGN (targetm.fn_abi_va_list (cfun->decl)));
4563
4564 /* Copy. */
4565 emit_block_move (dstb, srcb, size, BLOCK_OP_NORMAL);
4566 }
4567
4568 return const0_rtx;
4569 }
4570
4571 /* Expand a call to one of the builtin functions __builtin_frame_address or
4572 __builtin_return_address. */
4573
4574 static rtx
4575 expand_builtin_frame_address (tree fndecl, tree exp)
4576 {
4577 /* The argument must be a nonnegative integer constant.
4578 It counts the number of frames to scan up the stack.
4579 The value is the return address saved in that frame. */
4580 if (call_expr_nargs (exp) == 0)
4581 /* Warning about missing arg was already issued. */
4582 return const0_rtx;
4583 else if (! tree_fits_uhwi_p (CALL_EXPR_ARG (exp, 0)))
4584 {
4585 if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_FRAME_ADDRESS)
4586 error ("invalid argument to %<__builtin_frame_address%>");
4587 else
4588 error ("invalid argument to %<__builtin_return_address%>");
4589 return const0_rtx;
4590 }
4591 else
4592 {
4593 rtx tem
4594 = expand_builtin_return_addr (DECL_FUNCTION_CODE (fndecl),
4595 tree_to_uhwi (CALL_EXPR_ARG (exp, 0)));
4596
4597 /* Some ports cannot access arbitrary stack frames. */
4598 if (tem == NULL)
4599 {
4600 if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_FRAME_ADDRESS)
4601 warning (0, "unsupported argument to %<__builtin_frame_address%>");
4602 else
4603 warning (0, "unsupported argument to %<__builtin_return_address%>");
4604 return const0_rtx;
4605 }
4606
4607 /* For __builtin_frame_address, return what we've got. */
4608 if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_FRAME_ADDRESS)
4609 return tem;
4610
4611 if (!REG_P (tem)
4612 && ! CONSTANT_P (tem))
4613 tem = copy_addr_to_reg (tem);
4614 return tem;
4615 }
4616 }
4617
4618 /* Expand EXP, a call to the alloca builtin. Return NULL_RTX if we
4619 failed and the caller should emit a normal call. CANNOT_ACCUMULATE
4620 is the same as for allocate_dynamic_stack_space. */
4621
4622 static rtx
4623 expand_builtin_alloca (tree exp, bool cannot_accumulate)
4624 {
4625 rtx op0;
4626 rtx result;
4627 bool valid_arglist;
4628 unsigned int align;
4629 bool alloca_with_align = (DECL_FUNCTION_CODE (get_callee_fndecl (exp))
4630 == BUILT_IN_ALLOCA_WITH_ALIGN);
4631
4632 valid_arglist
4633 = (alloca_with_align
4634 ? validate_arglist (exp, INTEGER_TYPE, INTEGER_TYPE, VOID_TYPE)
4635 : validate_arglist (exp, INTEGER_TYPE, VOID_TYPE));
4636
4637 if (!valid_arglist)
4638 return NULL_RTX;
4639
4640 /* Compute the argument. */
4641 op0 = expand_normal (CALL_EXPR_ARG (exp, 0));
4642
4643 /* Compute the alignment. */
4644 align = (alloca_with_align
4645 ? TREE_INT_CST_LOW (CALL_EXPR_ARG (exp, 1))
4646 : BIGGEST_ALIGNMENT);
4647
4648 /* Allocate the desired space. */
4649 result = allocate_dynamic_stack_space (op0, 0, align, cannot_accumulate);
4650 result = convert_memory_address (ptr_mode, result);
4651
4652 return result;
4653 }
4654
4655 /* Expand a call to bswap builtin in EXP.
4656 Return NULL_RTX if a normal call should be emitted rather than expanding the
4657 function in-line. If convenient, the result should be placed in TARGET.
4658 SUBTARGET may be used as the target for computing one of EXP's operands. */
4659
4660 static rtx
4661 expand_builtin_bswap (machine_mode target_mode, tree exp, rtx target,
4662 rtx subtarget)
4663 {
4664 tree arg;
4665 rtx op0;
4666
4667 if (!validate_arglist (exp, INTEGER_TYPE, VOID_TYPE))
4668 return NULL_RTX;
4669
4670 arg = CALL_EXPR_ARG (exp, 0);
4671 op0 = expand_expr (arg,
4672 subtarget && GET_MODE (subtarget) == target_mode
4673 ? subtarget : NULL_RTX,
4674 target_mode, EXPAND_NORMAL);
4675 if (GET_MODE (op0) != target_mode)
4676 op0 = convert_to_mode (target_mode, op0, 1);
4677
4678 target = expand_unop (target_mode, bswap_optab, op0, target, 1);
4679
4680 gcc_assert (target);
4681
4682 return convert_to_mode (target_mode, target, 1);
4683 }
4684
4685 /* Expand a call to a unary builtin in EXP.
4686 Return NULL_RTX if a normal call should be emitted rather than expanding the
4687 function in-line. If convenient, the result should be placed in TARGET.
4688 SUBTARGET may be used as the target for computing one of EXP's operands. */
4689
4690 static rtx
4691 expand_builtin_unop (machine_mode target_mode, tree exp, rtx target,
4692 rtx subtarget, optab op_optab)
4693 {
4694 rtx op0;
4695
4696 if (!validate_arglist (exp, INTEGER_TYPE, VOID_TYPE))
4697 return NULL_RTX;
4698
4699 /* Compute the argument. */
4700 op0 = expand_expr (CALL_EXPR_ARG (exp, 0),
4701 (subtarget
4702 && (TYPE_MODE (TREE_TYPE (CALL_EXPR_ARG (exp, 0)))
4703 == GET_MODE (subtarget))) ? subtarget : NULL_RTX,
4704 VOIDmode, EXPAND_NORMAL);
4705 /* Compute op, into TARGET if possible.
4706 Set TARGET to wherever the result comes back. */
4707 target = expand_unop (TYPE_MODE (TREE_TYPE (CALL_EXPR_ARG (exp, 0))),
4708 op_optab, op0, target, op_optab != clrsb_optab);
4709 gcc_assert (target);
4710
4711 return convert_to_mode (target_mode, target, 0);
4712 }
4713
4714 /* Expand a call to __builtin_expect. We just return our argument
4715 as the builtin_expect semantic should've been already executed by
4716 tree branch prediction pass. */
4717
4718 static rtx
4719 expand_builtin_expect (tree exp, rtx target)
4720 {
4721 tree arg;
4722
4723 if (call_expr_nargs (exp) < 2)
4724 return const0_rtx;
4725 arg = CALL_EXPR_ARG (exp, 0);
4726
4727 target = expand_expr (arg, target, VOIDmode, EXPAND_NORMAL);
4728 /* When guessing was done, the hints should be already stripped away. */
4729 gcc_assert (!flag_guess_branch_prob
4730 || optimize == 0 || seen_error ());
4731 return target;
4732 }
4733
4734 /* Expand a call to __builtin_assume_aligned. We just return our first
4735 argument as the builtin_assume_aligned semantic should've been already
4736 executed by CCP. */
4737
4738 static rtx
4739 expand_builtin_assume_aligned (tree exp, rtx target)
4740 {
4741 if (call_expr_nargs (exp) < 2)
4742 return const0_rtx;
4743 target = expand_expr (CALL_EXPR_ARG (exp, 0), target, VOIDmode,
4744 EXPAND_NORMAL);
4745 gcc_assert (!TREE_SIDE_EFFECTS (CALL_EXPR_ARG (exp, 1))
4746 && (call_expr_nargs (exp) < 3
4747 || !TREE_SIDE_EFFECTS (CALL_EXPR_ARG (exp, 2))));
4748 return target;
4749 }
4750
4751 void
4752 expand_builtin_trap (void)
4753 {
4754 #ifdef HAVE_trap
4755 if (HAVE_trap)
4756 {
4757 rtx_insn *insn = emit_insn (gen_trap ());
4758 /* For trap insns when not accumulating outgoing args force
4759 REG_ARGS_SIZE note to prevent crossjumping of calls with
4760 different args sizes. */
4761 if (!ACCUMULATE_OUTGOING_ARGS)
4762 add_reg_note (insn, REG_ARGS_SIZE, GEN_INT (stack_pointer_delta));
4763 }
4764 else
4765 #endif
4766 emit_library_call (abort_libfunc, LCT_NORETURN, VOIDmode, 0);
4767 emit_barrier ();
4768 }
4769
4770 /* Expand a call to __builtin_unreachable. We do nothing except emit
4771 a barrier saying that control flow will not pass here.
4772
4773 It is the responsibility of the program being compiled to ensure
4774 that control flow does never reach __builtin_unreachable. */
4775 static void
4776 expand_builtin_unreachable (void)
4777 {
4778 emit_barrier ();
4779 }
4780
4781 /* Expand EXP, a call to fabs, fabsf or fabsl.
4782 Return NULL_RTX if a normal call should be emitted rather than expanding
4783 the function inline. If convenient, the result should be placed
4784 in TARGET. SUBTARGET may be used as the target for computing
4785 the operand. */
4786
4787 static rtx
4788 expand_builtin_fabs (tree exp, rtx target, rtx subtarget)
4789 {
4790 machine_mode mode;
4791 tree arg;
4792 rtx op0;
4793
4794 if (!validate_arglist (exp, REAL_TYPE, VOID_TYPE))
4795 return NULL_RTX;
4796
4797 arg = CALL_EXPR_ARG (exp, 0);
4798 CALL_EXPR_ARG (exp, 0) = arg = builtin_save_expr (arg);
4799 mode = TYPE_MODE (TREE_TYPE (arg));
4800 op0 = expand_expr (arg, subtarget, VOIDmode, EXPAND_NORMAL);
4801 return expand_abs (mode, op0, target, 0, safe_from_p (target, arg, 1));
4802 }
4803
4804 /* Expand EXP, a call to copysign, copysignf, or copysignl.
4805 Return NULL is a normal call should be emitted rather than expanding the
4806 function inline. If convenient, the result should be placed in TARGET.
4807 SUBTARGET may be used as the target for computing the operand. */
4808
4809 static rtx
4810 expand_builtin_copysign (tree exp, rtx target, rtx subtarget)
4811 {
4812 rtx op0, op1;
4813 tree arg;
4814
4815 if (!validate_arglist (exp, REAL_TYPE, REAL_TYPE, VOID_TYPE))
4816 return NULL_RTX;
4817
4818 arg = CALL_EXPR_ARG (exp, 0);
4819 op0 = expand_expr (arg, subtarget, VOIDmode, EXPAND_NORMAL);
4820
4821 arg = CALL_EXPR_ARG (exp, 1);
4822 op1 = expand_normal (arg);
4823
4824 return expand_copysign (op0, op1, target);
4825 }
4826
4827 /* Expand a call to __builtin___clear_cache. */
4828
4829 static rtx
4830 expand_builtin___clear_cache (tree exp ATTRIBUTE_UNUSED)
4831 {
4832 #ifndef HAVE_clear_cache
4833 #ifdef CLEAR_INSN_CACHE
4834 /* There is no "clear_cache" insn, and __clear_cache() in libgcc
4835 does something. Just do the default expansion to a call to
4836 __clear_cache(). */
4837 return NULL_RTX;
4838 #else
4839 /* There is no "clear_cache" insn, and __clear_cache() in libgcc
4840 does nothing. There is no need to call it. Do nothing. */
4841 return const0_rtx;
4842 #endif /* CLEAR_INSN_CACHE */
4843 #else
4844 /* We have a "clear_cache" insn, and it will handle everything. */
4845 tree begin, end;
4846 rtx begin_rtx, end_rtx;
4847
4848 /* We must not expand to a library call. If we did, any
4849 fallback library function in libgcc that might contain a call to
4850 __builtin___clear_cache() would recurse infinitely. */
4851 if (!validate_arglist (exp, POINTER_TYPE, POINTER_TYPE, VOID_TYPE))
4852 {
4853 error ("both arguments to %<__builtin___clear_cache%> must be pointers");
4854 return const0_rtx;
4855 }
4856
4857 if (HAVE_clear_cache)
4858 {
4859 struct expand_operand ops[2];
4860
4861 begin = CALL_EXPR_ARG (exp, 0);
4862 begin_rtx = expand_expr (begin, NULL_RTX, Pmode, EXPAND_NORMAL);
4863
4864 end = CALL_EXPR_ARG (exp, 1);
4865 end_rtx = expand_expr (end, NULL_RTX, Pmode, EXPAND_NORMAL);
4866
4867 create_address_operand (&ops[0], begin_rtx);
4868 create_address_operand (&ops[1], end_rtx);
4869 if (maybe_expand_insn (CODE_FOR_clear_cache, 2, ops))
4870 return const0_rtx;
4871 }
4872 return const0_rtx;
4873 #endif /* HAVE_clear_cache */
4874 }
4875
4876 /* Given a trampoline address, make sure it satisfies TRAMPOLINE_ALIGNMENT. */
4877
4878 static rtx
4879 round_trampoline_addr (rtx tramp)
4880 {
4881 rtx temp, addend, mask;
4882
4883 /* If we don't need too much alignment, we'll have been guaranteed
4884 proper alignment by get_trampoline_type. */
4885 if (TRAMPOLINE_ALIGNMENT <= STACK_BOUNDARY)
4886 return tramp;
4887
4888 /* Round address up to desired boundary. */
4889 temp = gen_reg_rtx (Pmode);
4890 addend = gen_int_mode (TRAMPOLINE_ALIGNMENT / BITS_PER_UNIT - 1, Pmode);
4891 mask = gen_int_mode (-TRAMPOLINE_ALIGNMENT / BITS_PER_UNIT, Pmode);
4892
4893 temp = expand_simple_binop (Pmode, PLUS, tramp, addend,
4894 temp, 0, OPTAB_LIB_WIDEN);
4895 tramp = expand_simple_binop (Pmode, AND, temp, mask,
4896 temp, 0, OPTAB_LIB_WIDEN);
4897
4898 return tramp;
4899 }
4900
4901 static rtx
4902 expand_builtin_init_trampoline (tree exp, bool onstack)
4903 {
4904 tree t_tramp, t_func, t_chain;
4905 rtx m_tramp, r_tramp, r_chain, tmp;
4906
4907 if (!validate_arglist (exp, POINTER_TYPE, POINTER_TYPE,
4908 POINTER_TYPE, VOID_TYPE))
4909 return NULL_RTX;
4910
4911 t_tramp = CALL_EXPR_ARG (exp, 0);
4912 t_func = CALL_EXPR_ARG (exp, 1);
4913 t_chain = CALL_EXPR_ARG (exp, 2);
4914
4915 r_tramp = expand_normal (t_tramp);
4916 m_tramp = gen_rtx_MEM (BLKmode, r_tramp);
4917 MEM_NOTRAP_P (m_tramp) = 1;
4918
4919 /* If ONSTACK, the TRAMP argument should be the address of a field
4920 within the local function's FRAME decl. Either way, let's see if
4921 we can fill in the MEM_ATTRs for this memory. */
4922 if (TREE_CODE (t_tramp) == ADDR_EXPR)
4923 set_mem_attributes (m_tramp, TREE_OPERAND (t_tramp, 0), true);
4924
4925 /* Creator of a heap trampoline is responsible for making sure the
4926 address is aligned to at least STACK_BOUNDARY. Normally malloc
4927 will ensure this anyhow. */
4928 tmp = round_trampoline_addr (r_tramp);
4929 if (tmp != r_tramp)
4930 {
4931 m_tramp = change_address (m_tramp, BLKmode, tmp);
4932 set_mem_align (m_tramp, TRAMPOLINE_ALIGNMENT);
4933 set_mem_size (m_tramp, TRAMPOLINE_SIZE);
4934 }
4935
4936 /* The FUNC argument should be the address of the nested function.
4937 Extract the actual function decl to pass to the hook. */
4938 gcc_assert (TREE_CODE (t_func) == ADDR_EXPR);
4939 t_func = TREE_OPERAND (t_func, 0);
4940 gcc_assert (TREE_CODE (t_func) == FUNCTION_DECL);
4941
4942 r_chain = expand_normal (t_chain);
4943
4944 /* Generate insns to initialize the trampoline. */
4945 targetm.calls.trampoline_init (m_tramp, t_func, r_chain);
4946
4947 if (onstack)
4948 {
4949 trampolines_created = 1;
4950
4951 warning_at (DECL_SOURCE_LOCATION (t_func), OPT_Wtrampolines,
4952 "trampoline generated for nested function %qD", t_func);
4953 }
4954
4955 return const0_rtx;
4956 }
4957
4958 static rtx
4959 expand_builtin_adjust_trampoline (tree exp)
4960 {
4961 rtx tramp;
4962
4963 if (!validate_arglist (exp, POINTER_TYPE, VOID_TYPE))
4964 return NULL_RTX;
4965
4966 tramp = expand_normal (CALL_EXPR_ARG (exp, 0));
4967 tramp = round_trampoline_addr (tramp);
4968 if (targetm.calls.trampoline_adjust_address)
4969 tramp = targetm.calls.trampoline_adjust_address (tramp);
4970
4971 return tramp;
4972 }
4973
4974 /* Expand the call EXP to the built-in signbit, signbitf or signbitl
4975 function. The function first checks whether the back end provides
4976 an insn to implement signbit for the respective mode. If not, it
4977 checks whether the floating point format of the value is such that
4978 the sign bit can be extracted. If that is not the case, the
4979 function returns NULL_RTX to indicate that a normal call should be
4980 emitted rather than expanding the function in-line. EXP is the
4981 expression that is a call to the builtin function; if convenient,
4982 the result should be placed in TARGET. */
4983 static rtx
4984 expand_builtin_signbit (tree exp, rtx target)
4985 {
4986 const struct real_format *fmt;
4987 machine_mode fmode, imode, rmode;
4988 tree arg;
4989 int word, bitpos;
4990 enum insn_code icode;
4991 rtx temp;
4992 location_t loc = EXPR_LOCATION (exp);
4993
4994 if (!validate_arglist (exp, REAL_TYPE, VOID_TYPE))
4995 return NULL_RTX;
4996
4997 arg = CALL_EXPR_ARG (exp, 0);
4998 fmode = TYPE_MODE (TREE_TYPE (arg));
4999 rmode = TYPE_MODE (TREE_TYPE (exp));
5000 fmt = REAL_MODE_FORMAT (fmode);
5001
5002 arg = builtin_save_expr (arg);
5003
5004 /* Expand the argument yielding a RTX expression. */
5005 temp = expand_normal (arg);
5006
5007 /* Check if the back end provides an insn that handles signbit for the
5008 argument's mode. */
5009 icode = optab_handler (signbit_optab, fmode);
5010 if (icode != CODE_FOR_nothing)
5011 {
5012 rtx_insn *last = get_last_insn ();
5013 target = gen_reg_rtx (TYPE_MODE (TREE_TYPE (exp)));
5014 if (maybe_emit_unop_insn (icode, target, temp, UNKNOWN))
5015 return target;
5016 delete_insns_since (last);
5017 }
5018
5019 /* For floating point formats without a sign bit, implement signbit
5020 as "ARG < 0.0". */
5021 bitpos = fmt->signbit_ro;
5022 if (bitpos < 0)
5023 {
5024 /* But we can't do this if the format supports signed zero. */
5025 if (fmt->has_signed_zero && HONOR_SIGNED_ZEROS (fmode))
5026 return NULL_RTX;
5027
5028 arg = fold_build2_loc (loc, LT_EXPR, TREE_TYPE (exp), arg,
5029 build_real (TREE_TYPE (arg), dconst0));
5030 return expand_expr (arg, target, VOIDmode, EXPAND_NORMAL);
5031 }
5032
5033 if (GET_MODE_SIZE (fmode) <= UNITS_PER_WORD)
5034 {
5035 imode = int_mode_for_mode (fmode);
5036 if (imode == BLKmode)
5037 return NULL_RTX;
5038 temp = gen_lowpart (imode, temp);
5039 }
5040 else
5041 {
5042 imode = word_mode;
5043 /* Handle targets with different FP word orders. */
5044 if (FLOAT_WORDS_BIG_ENDIAN)
5045 word = (GET_MODE_BITSIZE (fmode) - bitpos) / BITS_PER_WORD;
5046 else
5047 word = bitpos / BITS_PER_WORD;
5048 temp = operand_subword_force (temp, word, fmode);
5049 bitpos = bitpos % BITS_PER_WORD;
5050 }
5051
5052 /* Force the intermediate word_mode (or narrower) result into a
5053 register. This avoids attempting to create paradoxical SUBREGs
5054 of floating point modes below. */
5055 temp = force_reg (imode, temp);
5056
5057 /* If the bitpos is within the "result mode" lowpart, the operation
5058 can be implement with a single bitwise AND. Otherwise, we need
5059 a right shift and an AND. */
5060
5061 if (bitpos < GET_MODE_BITSIZE (rmode))
5062 {
5063 wide_int mask = wi::set_bit_in_zero (bitpos, GET_MODE_PRECISION (rmode));
5064
5065 if (GET_MODE_SIZE (imode) > GET_MODE_SIZE (rmode))
5066 temp = gen_lowpart (rmode, temp);
5067 temp = expand_binop (rmode, and_optab, temp,
5068 immed_wide_int_const (mask, rmode),
5069 NULL_RTX, 1, OPTAB_LIB_WIDEN);
5070 }
5071 else
5072 {
5073 /* Perform a logical right shift to place the signbit in the least
5074 significant bit, then truncate the result to the desired mode
5075 and mask just this bit. */
5076 temp = expand_shift (RSHIFT_EXPR, imode, temp, bitpos, NULL_RTX, 1);
5077 temp = gen_lowpart (rmode, temp);
5078 temp = expand_binop (rmode, and_optab, temp, const1_rtx,
5079 NULL_RTX, 1, OPTAB_LIB_WIDEN);
5080 }
5081
5082 return temp;
5083 }
5084
5085 /* Expand fork or exec calls. TARGET is the desired target of the
5086 call. EXP is the call. FN is the
5087 identificator of the actual function. IGNORE is nonzero if the
5088 value is to be ignored. */
5089
5090 static rtx
5091 expand_builtin_fork_or_exec (tree fn, tree exp, rtx target, int ignore)
5092 {
5093 tree id, decl;
5094 tree call;
5095
5096 /* If we are not profiling, just call the function. */
5097 if (!profile_arc_flag)
5098 return NULL_RTX;
5099
5100 /* Otherwise call the wrapper. This should be equivalent for the rest of
5101 compiler, so the code does not diverge, and the wrapper may run the
5102 code necessary for keeping the profiling sane. */
5103
5104 switch (DECL_FUNCTION_CODE (fn))
5105 {
5106 case BUILT_IN_FORK:
5107 id = get_identifier ("__gcov_fork");
5108 break;
5109
5110 case BUILT_IN_EXECL:
5111 id = get_identifier ("__gcov_execl");
5112 break;
5113
5114 case BUILT_IN_EXECV:
5115 id = get_identifier ("__gcov_execv");
5116 break;
5117
5118 case BUILT_IN_EXECLP:
5119 id = get_identifier ("__gcov_execlp");
5120 break;
5121
5122 case BUILT_IN_EXECLE:
5123 id = get_identifier ("__gcov_execle");
5124 break;
5125
5126 case BUILT_IN_EXECVP:
5127 id = get_identifier ("__gcov_execvp");
5128 break;
5129
5130 case BUILT_IN_EXECVE:
5131 id = get_identifier ("__gcov_execve");
5132 break;
5133
5134 default:
5135 gcc_unreachable ();
5136 }
5137
5138 decl = build_decl (DECL_SOURCE_LOCATION (fn),
5139 FUNCTION_DECL, id, TREE_TYPE (fn));
5140 DECL_EXTERNAL (decl) = 1;
5141 TREE_PUBLIC (decl) = 1;
5142 DECL_ARTIFICIAL (decl) = 1;
5143 TREE_NOTHROW (decl) = 1;
5144 DECL_VISIBILITY (decl) = VISIBILITY_DEFAULT;
5145 DECL_VISIBILITY_SPECIFIED (decl) = 1;
5146 call = rewrite_call_expr (EXPR_LOCATION (exp), exp, 0, decl, 0);
5147 return expand_call (call, target, ignore);
5148 }
5149
5150
5151 \f
5152 /* Reconstitute a mode for a __sync intrinsic operation. Since the type of
5153 the pointer in these functions is void*, the tree optimizers may remove
5154 casts. The mode computed in expand_builtin isn't reliable either, due
5155 to __sync_bool_compare_and_swap.
5156
5157 FCODE_DIFF should be fcode - base, where base is the FOO_1 code for the
5158 group of builtins. This gives us log2 of the mode size. */
5159
5160 static inline machine_mode
5161 get_builtin_sync_mode (int fcode_diff)
5162 {
5163 /* The size is not negotiable, so ask not to get BLKmode in return
5164 if the target indicates that a smaller size would be better. */
5165 return mode_for_size (BITS_PER_UNIT << fcode_diff, MODE_INT, 0);
5166 }
5167
5168 /* Expand the memory expression LOC and return the appropriate memory operand
5169 for the builtin_sync operations. */
5170
5171 static rtx
5172 get_builtin_sync_mem (tree loc, machine_mode mode)
5173 {
5174 rtx addr, mem;
5175
5176 addr = expand_expr (loc, NULL_RTX, ptr_mode, EXPAND_SUM);
5177 addr = convert_memory_address (Pmode, addr);
5178
5179 /* Note that we explicitly do not want any alias information for this
5180 memory, so that we kill all other live memories. Otherwise we don't
5181 satisfy the full barrier semantics of the intrinsic. */
5182 mem = validize_mem (gen_rtx_MEM (mode, addr));
5183
5184 /* The alignment needs to be at least according to that of the mode. */
5185 set_mem_align (mem, MAX (GET_MODE_ALIGNMENT (mode),
5186 get_pointer_alignment (loc)));
5187 set_mem_alias_set (mem, ALIAS_SET_MEMORY_BARRIER);
5188 MEM_VOLATILE_P (mem) = 1;
5189
5190 return mem;
5191 }
5192
5193 /* Make sure an argument is in the right mode.
5194 EXP is the tree argument.
5195 MODE is the mode it should be in. */
5196
5197 static rtx
5198 expand_expr_force_mode (tree exp, machine_mode mode)
5199 {
5200 rtx val;
5201 machine_mode old_mode;
5202
5203 val = expand_expr (exp, NULL_RTX, mode, EXPAND_NORMAL);
5204 /* If VAL is promoted to a wider mode, convert it back to MODE. Take care
5205 of CONST_INTs, where we know the old_mode only from the call argument. */
5206
5207 old_mode = GET_MODE (val);
5208 if (old_mode == VOIDmode)
5209 old_mode = TYPE_MODE (TREE_TYPE (exp));
5210 val = convert_modes (mode, old_mode, val, 1);
5211 return val;
5212 }
5213
5214
5215 /* Expand the __sync_xxx_and_fetch and __sync_fetch_and_xxx intrinsics.
5216 EXP is the CALL_EXPR. CODE is the rtx code
5217 that corresponds to the arithmetic or logical operation from the name;
5218 an exception here is that NOT actually means NAND. TARGET is an optional
5219 place for us to store the results; AFTER is true if this is the
5220 fetch_and_xxx form. */
5221
5222 static rtx
5223 expand_builtin_sync_operation (machine_mode mode, tree exp,
5224 enum rtx_code code, bool after,
5225 rtx target)
5226 {
5227 rtx val, mem;
5228 location_t loc = EXPR_LOCATION (exp);
5229
5230 if (code == NOT && warn_sync_nand)
5231 {
5232 tree fndecl = get_callee_fndecl (exp);
5233 enum built_in_function fcode = DECL_FUNCTION_CODE (fndecl);
5234
5235 static bool warned_f_a_n, warned_n_a_f;
5236
5237 switch (fcode)
5238 {
5239 case BUILT_IN_SYNC_FETCH_AND_NAND_1:
5240 case BUILT_IN_SYNC_FETCH_AND_NAND_2:
5241 case BUILT_IN_SYNC_FETCH_AND_NAND_4:
5242 case BUILT_IN_SYNC_FETCH_AND_NAND_8:
5243 case BUILT_IN_SYNC_FETCH_AND_NAND_16:
5244 if (warned_f_a_n)
5245 break;
5246
5247 fndecl = builtin_decl_implicit (BUILT_IN_SYNC_FETCH_AND_NAND_N);
5248 inform (loc, "%qD changed semantics in GCC 4.4", fndecl);
5249 warned_f_a_n = true;
5250 break;
5251
5252 case BUILT_IN_SYNC_NAND_AND_FETCH_1:
5253 case BUILT_IN_SYNC_NAND_AND_FETCH_2:
5254 case BUILT_IN_SYNC_NAND_AND_FETCH_4:
5255 case BUILT_IN_SYNC_NAND_AND_FETCH_8:
5256 case BUILT_IN_SYNC_NAND_AND_FETCH_16:
5257 if (warned_n_a_f)
5258 break;
5259
5260 fndecl = builtin_decl_implicit (BUILT_IN_SYNC_NAND_AND_FETCH_N);
5261 inform (loc, "%qD changed semantics in GCC 4.4", fndecl);
5262 warned_n_a_f = true;
5263 break;
5264
5265 default:
5266 gcc_unreachable ();
5267 }
5268 }
5269
5270 /* Expand the operands. */
5271 mem = get_builtin_sync_mem (CALL_EXPR_ARG (exp, 0), mode);
5272 val = expand_expr_force_mode (CALL_EXPR_ARG (exp, 1), mode);
5273
5274 return expand_atomic_fetch_op (target, mem, val, code, MEMMODEL_SYNC_SEQ_CST,
5275 after);
5276 }
5277
5278 /* Expand the __sync_val_compare_and_swap and __sync_bool_compare_and_swap
5279 intrinsics. EXP is the CALL_EXPR. IS_BOOL is
5280 true if this is the boolean form. TARGET is a place for us to store the
5281 results; this is NOT optional if IS_BOOL is true. */
5282
5283 static rtx
5284 expand_builtin_compare_and_swap (machine_mode mode, tree exp,
5285 bool is_bool, rtx target)
5286 {
5287 rtx old_val, new_val, mem;
5288 rtx *pbool, *poval;
5289
5290 /* Expand the operands. */
5291 mem = get_builtin_sync_mem (CALL_EXPR_ARG (exp, 0), mode);
5292 old_val = expand_expr_force_mode (CALL_EXPR_ARG (exp, 1), mode);
5293 new_val = expand_expr_force_mode (CALL_EXPR_ARG (exp, 2), mode);
5294
5295 pbool = poval = NULL;
5296 if (target != const0_rtx)
5297 {
5298 if (is_bool)
5299 pbool = &target;
5300 else
5301 poval = &target;
5302 }
5303 if (!expand_atomic_compare_and_swap (pbool, poval, mem, old_val, new_val,
5304 false, MEMMODEL_SYNC_SEQ_CST,
5305 MEMMODEL_SYNC_SEQ_CST))
5306 return NULL_RTX;
5307
5308 return target;
5309 }
5310
5311 /* Expand the __sync_lock_test_and_set intrinsic. Note that the most
5312 general form is actually an atomic exchange, and some targets only
5313 support a reduced form with the second argument being a constant 1.
5314 EXP is the CALL_EXPR; TARGET is an optional place for us to store
5315 the results. */
5316
5317 static rtx
5318 expand_builtin_sync_lock_test_and_set (machine_mode mode, tree exp,
5319 rtx target)
5320 {
5321 rtx val, mem;
5322
5323 /* Expand the operands. */
5324 mem = get_builtin_sync_mem (CALL_EXPR_ARG (exp, 0), mode);
5325 val = expand_expr_force_mode (CALL_EXPR_ARG (exp, 1), mode);
5326
5327 return expand_sync_lock_test_and_set (target, mem, val);
5328 }
5329
5330 /* Expand the __sync_lock_release intrinsic. EXP is the CALL_EXPR. */
5331
5332 static void
5333 expand_builtin_sync_lock_release (machine_mode mode, tree exp)
5334 {
5335 rtx mem;
5336
5337 /* Expand the operands. */
5338 mem = get_builtin_sync_mem (CALL_EXPR_ARG (exp, 0), mode);
5339
5340 expand_atomic_store (mem, const0_rtx, MEMMODEL_SYNC_RELEASE, true);
5341 }
5342
5343 /* Given an integer representing an ``enum memmodel'', verify its
5344 correctness and return the memory model enum. */
5345
5346 static enum memmodel
5347 get_memmodel (tree exp)
5348 {
5349 rtx op;
5350 unsigned HOST_WIDE_INT val;
5351
5352 /* If the parameter is not a constant, it's a run time value so we'll just
5353 convert it to MEMMODEL_SEQ_CST to avoid annoying runtime checking. */
5354 if (TREE_CODE (exp) != INTEGER_CST)
5355 return MEMMODEL_SEQ_CST;
5356
5357 op = expand_normal (exp);
5358
5359 val = INTVAL (op);
5360 if (targetm.memmodel_check)
5361 val = targetm.memmodel_check (val);
5362 else if (val & ~MEMMODEL_MASK)
5363 {
5364 warning (OPT_Winvalid_memory_model,
5365 "Unknown architecture specifier in memory model to builtin.");
5366 return MEMMODEL_SEQ_CST;
5367 }
5368
5369 /* Should never see a user explicit SYNC memodel model, so >= LAST works. */
5370 if (memmodel_base (val) >= MEMMODEL_LAST)
5371 {
5372 warning (OPT_Winvalid_memory_model,
5373 "invalid memory model argument to builtin");
5374 return MEMMODEL_SEQ_CST;
5375 }
5376
5377 /* Workaround for Bugzilla 59448. GCC doesn't track consume properly, so
5378 be conservative and promote consume to acquire. */
5379 if (val == MEMMODEL_CONSUME)
5380 val = MEMMODEL_ACQUIRE;
5381
5382 return (enum memmodel) val;
5383 }
5384
5385 /* Expand the __atomic_exchange intrinsic:
5386 TYPE __atomic_exchange (TYPE *object, TYPE desired, enum memmodel)
5387 EXP is the CALL_EXPR.
5388 TARGET is an optional place for us to store the results. */
5389
5390 static rtx
5391 expand_builtin_atomic_exchange (machine_mode mode, tree exp, rtx target)
5392 {
5393 rtx val, mem;
5394 enum memmodel model;
5395
5396 model = get_memmodel (CALL_EXPR_ARG (exp, 2));
5397
5398 if (!flag_inline_atomics)
5399 return NULL_RTX;
5400
5401 /* Expand the operands. */
5402 mem = get_builtin_sync_mem (CALL_EXPR_ARG (exp, 0), mode);
5403 val = expand_expr_force_mode (CALL_EXPR_ARG (exp, 1), mode);
5404
5405 return expand_atomic_exchange (target, mem, val, model);
5406 }
5407
5408 /* Expand the __atomic_compare_exchange intrinsic:
5409 bool __atomic_compare_exchange (TYPE *object, TYPE *expect,
5410 TYPE desired, BOOL weak,
5411 enum memmodel success,
5412 enum memmodel failure)
5413 EXP is the CALL_EXPR.
5414 TARGET is an optional place for us to store the results. */
5415
5416 static rtx
5417 expand_builtin_atomic_compare_exchange (machine_mode mode, tree exp,
5418 rtx target)
5419 {
5420 rtx expect, desired, mem, oldval;
5421 rtx_code_label *label;
5422 enum memmodel success, failure;
5423 tree weak;
5424 bool is_weak;
5425
5426 success = get_memmodel (CALL_EXPR_ARG (exp, 4));
5427 failure = get_memmodel (CALL_EXPR_ARG (exp, 5));
5428
5429 if (failure > success)
5430 {
5431 warning (OPT_Winvalid_memory_model,
5432 "failure memory model cannot be stronger than success memory "
5433 "model for %<__atomic_compare_exchange%>");
5434 success = MEMMODEL_SEQ_CST;
5435 }
5436
5437 if (is_mm_release (failure) || is_mm_acq_rel (failure))
5438 {
5439 warning (OPT_Winvalid_memory_model,
5440 "invalid failure memory model for "
5441 "%<__atomic_compare_exchange%>");
5442 failure = MEMMODEL_SEQ_CST;
5443 success = MEMMODEL_SEQ_CST;
5444 }
5445
5446
5447 if (!flag_inline_atomics)
5448 return NULL_RTX;
5449
5450 /* Expand the operands. */
5451 mem = get_builtin_sync_mem (CALL_EXPR_ARG (exp, 0), mode);
5452
5453 expect = expand_normal (CALL_EXPR_ARG (exp, 1));
5454 expect = convert_memory_address (Pmode, expect);
5455 expect = gen_rtx_MEM (mode, expect);
5456 desired = expand_expr_force_mode (CALL_EXPR_ARG (exp, 2), mode);
5457
5458 weak = CALL_EXPR_ARG (exp, 3);
5459 is_weak = false;
5460 if (tree_fits_shwi_p (weak) && tree_to_shwi (weak) != 0)
5461 is_weak = true;
5462
5463 if (target == const0_rtx)
5464 target = NULL;
5465
5466 /* Lest the rtl backend create a race condition with an imporoper store
5467 to memory, always create a new pseudo for OLDVAL. */
5468 oldval = NULL;
5469
5470 if (!expand_atomic_compare_and_swap (&target, &oldval, mem, expect, desired,
5471 is_weak, success, failure))
5472 return NULL_RTX;
5473
5474 /* Conditionally store back to EXPECT, lest we create a race condition
5475 with an improper store to memory. */
5476 /* ??? With a rearrangement of atomics at the gimple level, we can handle
5477 the normal case where EXPECT is totally private, i.e. a register. At
5478 which point the store can be unconditional. */
5479 label = gen_label_rtx ();
5480 emit_cmp_and_jump_insns (target, const0_rtx, NE, NULL, VOIDmode, 1, label);
5481 emit_move_insn (expect, oldval);
5482 emit_label (label);
5483
5484 return target;
5485 }
5486
5487 /* Expand the __atomic_load intrinsic:
5488 TYPE __atomic_load (TYPE *object, enum memmodel)
5489 EXP is the CALL_EXPR.
5490 TARGET is an optional place for us to store the results. */
5491
5492 static rtx
5493 expand_builtin_atomic_load (machine_mode mode, tree exp, rtx target)
5494 {
5495 rtx mem;
5496 enum memmodel model;
5497
5498 model = get_memmodel (CALL_EXPR_ARG (exp, 1));
5499 if (is_mm_release (model) || is_mm_acq_rel (model))
5500 {
5501 warning (OPT_Winvalid_memory_model,
5502 "invalid memory model for %<__atomic_load%>");
5503 model = MEMMODEL_SEQ_CST;
5504 }
5505
5506 if (!flag_inline_atomics)
5507 return NULL_RTX;
5508
5509 /* Expand the operand. */
5510 mem = get_builtin_sync_mem (CALL_EXPR_ARG (exp, 0), mode);
5511
5512 return expand_atomic_load (target, mem, model);
5513 }
5514
5515
5516 /* Expand the __atomic_store intrinsic:
5517 void __atomic_store (TYPE *object, TYPE desired, enum memmodel)
5518 EXP is the CALL_EXPR.
5519 TARGET is an optional place for us to store the results. */
5520
5521 static rtx
5522 expand_builtin_atomic_store (machine_mode mode, tree exp)
5523 {
5524 rtx mem, val;
5525 enum memmodel model;
5526
5527 model = get_memmodel (CALL_EXPR_ARG (exp, 2));
5528 if (!(is_mm_relaxed (model) || is_mm_seq_cst (model)
5529 || is_mm_release (model)))
5530 {
5531 warning (OPT_Winvalid_memory_model,
5532 "invalid memory model for %<__atomic_store%>");
5533 model = MEMMODEL_SEQ_CST;
5534 }
5535
5536 if (!flag_inline_atomics)
5537 return NULL_RTX;
5538
5539 /* Expand the operands. */
5540 mem = get_builtin_sync_mem (CALL_EXPR_ARG (exp, 0), mode);
5541 val = expand_expr_force_mode (CALL_EXPR_ARG (exp, 1), mode);
5542
5543 return expand_atomic_store (mem, val, model, false);
5544 }
5545
5546 /* Expand the __atomic_fetch_XXX intrinsic:
5547 TYPE __atomic_fetch_XXX (TYPE *object, TYPE val, enum memmodel)
5548 EXP is the CALL_EXPR.
5549 TARGET is an optional place for us to store the results.
5550 CODE is the operation, PLUS, MINUS, ADD, XOR, or IOR.
5551 FETCH_AFTER is true if returning the result of the operation.
5552 FETCH_AFTER is false if returning the value before the operation.
5553 IGNORE is true if the result is not used.
5554 EXT_CALL is the correct builtin for an external call if this cannot be
5555 resolved to an instruction sequence. */
5556
5557 static rtx
5558 expand_builtin_atomic_fetch_op (machine_mode mode, tree exp, rtx target,
5559 enum rtx_code code, bool fetch_after,
5560 bool ignore, enum built_in_function ext_call)
5561 {
5562 rtx val, mem, ret;
5563 enum memmodel model;
5564 tree fndecl;
5565 tree addr;
5566
5567 model = get_memmodel (CALL_EXPR_ARG (exp, 2));
5568
5569 /* Expand the operands. */
5570 mem = get_builtin_sync_mem (CALL_EXPR_ARG (exp, 0), mode);
5571 val = expand_expr_force_mode (CALL_EXPR_ARG (exp, 1), mode);
5572
5573 /* Only try generating instructions if inlining is turned on. */
5574 if (flag_inline_atomics)
5575 {
5576 ret = expand_atomic_fetch_op (target, mem, val, code, model, fetch_after);
5577 if (ret)
5578 return ret;
5579 }
5580
5581 /* Return if a different routine isn't needed for the library call. */
5582 if (ext_call == BUILT_IN_NONE)
5583 return NULL_RTX;
5584
5585 /* Change the call to the specified function. */
5586 fndecl = get_callee_fndecl (exp);
5587 addr = CALL_EXPR_FN (exp);
5588 STRIP_NOPS (addr);
5589
5590 gcc_assert (TREE_OPERAND (addr, 0) == fndecl);
5591 TREE_OPERAND (addr, 0) = builtin_decl_explicit (ext_call);
5592
5593 /* Expand the call here so we can emit trailing code. */
5594 ret = expand_call (exp, target, ignore);
5595
5596 /* Replace the original function just in case it matters. */
5597 TREE_OPERAND (addr, 0) = fndecl;
5598
5599 /* Then issue the arithmetic correction to return the right result. */
5600 if (!ignore)
5601 {
5602 if (code == NOT)
5603 {
5604 ret = expand_simple_binop (mode, AND, ret, val, NULL_RTX, true,
5605 OPTAB_LIB_WIDEN);
5606 ret = expand_simple_unop (mode, NOT, ret, target, true);
5607 }
5608 else
5609 ret = expand_simple_binop (mode, code, ret, val, target, true,
5610 OPTAB_LIB_WIDEN);
5611 }
5612 return ret;
5613 }
5614
5615
5616 #ifndef HAVE_atomic_clear
5617 # define HAVE_atomic_clear 0
5618 # define gen_atomic_clear(x,y) (gcc_unreachable (), NULL_RTX)
5619 #endif
5620
5621 /* Expand an atomic clear operation.
5622 void _atomic_clear (BOOL *obj, enum memmodel)
5623 EXP is the call expression. */
5624
5625 static rtx
5626 expand_builtin_atomic_clear (tree exp)
5627 {
5628 machine_mode mode;
5629 rtx mem, ret;
5630 enum memmodel model;
5631
5632 mode = mode_for_size (BOOL_TYPE_SIZE, MODE_INT, 0);
5633 mem = get_builtin_sync_mem (CALL_EXPR_ARG (exp, 0), mode);
5634 model = get_memmodel (CALL_EXPR_ARG (exp, 1));
5635
5636 if (is_mm_consume (model) || is_mm_acquire (model) || is_mm_acq_rel (model))
5637 {
5638 warning (OPT_Winvalid_memory_model,
5639 "invalid memory model for %<__atomic_store%>");
5640 model = MEMMODEL_SEQ_CST;
5641 }
5642
5643 if (HAVE_atomic_clear)
5644 {
5645 emit_insn (gen_atomic_clear (mem, model));
5646 return const0_rtx;
5647 }
5648
5649 /* Try issuing an __atomic_store, and allow fallback to __sync_lock_release.
5650 Failing that, a store is issued by __atomic_store. The only way this can
5651 fail is if the bool type is larger than a word size. Unlikely, but
5652 handle it anyway for completeness. Assume a single threaded model since
5653 there is no atomic support in this case, and no barriers are required. */
5654 ret = expand_atomic_store (mem, const0_rtx, model, true);
5655 if (!ret)
5656 emit_move_insn (mem, const0_rtx);
5657 return const0_rtx;
5658 }
5659
5660 /* Expand an atomic test_and_set operation.
5661 bool _atomic_test_and_set (BOOL *obj, enum memmodel)
5662 EXP is the call expression. */
5663
5664 static rtx
5665 expand_builtin_atomic_test_and_set (tree exp, rtx target)
5666 {
5667 rtx mem;
5668 enum memmodel model;
5669 machine_mode mode;
5670
5671 mode = mode_for_size (BOOL_TYPE_SIZE, MODE_INT, 0);
5672 mem = get_builtin_sync_mem (CALL_EXPR_ARG (exp, 0), mode);
5673 model = get_memmodel (CALL_EXPR_ARG (exp, 1));
5674
5675 return expand_atomic_test_and_set (target, mem, model);
5676 }
5677
5678
5679 /* Return true if (optional) argument ARG1 of size ARG0 is always lock free on
5680 this architecture. If ARG1 is NULL, use typical alignment for size ARG0. */
5681
5682 static tree
5683 fold_builtin_atomic_always_lock_free (tree arg0, tree arg1)
5684 {
5685 int size;
5686 machine_mode mode;
5687 unsigned int mode_align, type_align;
5688
5689 if (TREE_CODE (arg0) != INTEGER_CST)
5690 return NULL_TREE;
5691
5692 size = INTVAL (expand_normal (arg0)) * BITS_PER_UNIT;
5693 mode = mode_for_size (size, MODE_INT, 0);
5694 mode_align = GET_MODE_ALIGNMENT (mode);
5695
5696 if (TREE_CODE (arg1) == INTEGER_CST && INTVAL (expand_normal (arg1)) == 0)
5697 type_align = mode_align;
5698 else
5699 {
5700 tree ttype = TREE_TYPE (arg1);
5701
5702 /* This function is usually invoked and folded immediately by the front
5703 end before anything else has a chance to look at it. The pointer
5704 parameter at this point is usually cast to a void *, so check for that
5705 and look past the cast. */
5706 if (CONVERT_EXPR_P (arg1) && POINTER_TYPE_P (ttype)
5707 && VOID_TYPE_P (TREE_TYPE (ttype)))
5708 arg1 = TREE_OPERAND (arg1, 0);
5709
5710 ttype = TREE_TYPE (arg1);
5711 gcc_assert (POINTER_TYPE_P (ttype));
5712
5713 /* Get the underlying type of the object. */
5714 ttype = TREE_TYPE (ttype);
5715 type_align = TYPE_ALIGN (ttype);
5716 }
5717
5718 /* If the object has smaller alignment, the the lock free routines cannot
5719 be used. */
5720 if (type_align < mode_align)
5721 return boolean_false_node;
5722
5723 /* Check if a compare_and_swap pattern exists for the mode which represents
5724 the required size. The pattern is not allowed to fail, so the existence
5725 of the pattern indicates support is present. */
5726 if (can_compare_and_swap_p (mode, true))
5727 return boolean_true_node;
5728 else
5729 return boolean_false_node;
5730 }
5731
5732 /* Return true if the parameters to call EXP represent an object which will
5733 always generate lock free instructions. The first argument represents the
5734 size of the object, and the second parameter is a pointer to the object
5735 itself. If NULL is passed for the object, then the result is based on
5736 typical alignment for an object of the specified size. Otherwise return
5737 false. */
5738
5739 static rtx
5740 expand_builtin_atomic_always_lock_free (tree exp)
5741 {
5742 tree size;
5743 tree arg0 = CALL_EXPR_ARG (exp, 0);
5744 tree arg1 = CALL_EXPR_ARG (exp, 1);
5745
5746 if (TREE_CODE (arg0) != INTEGER_CST)
5747 {
5748 error ("non-constant argument 1 to __atomic_always_lock_free");
5749 return const0_rtx;
5750 }
5751
5752 size = fold_builtin_atomic_always_lock_free (arg0, arg1);
5753 if (size == boolean_true_node)
5754 return const1_rtx;
5755 return const0_rtx;
5756 }
5757
5758 /* Return a one or zero if it can be determined that object ARG1 of size ARG
5759 is lock free on this architecture. */
5760
5761 static tree
5762 fold_builtin_atomic_is_lock_free (tree arg0, tree arg1)
5763 {
5764 if (!flag_inline_atomics)
5765 return NULL_TREE;
5766
5767 /* If it isn't always lock free, don't generate a result. */
5768 if (fold_builtin_atomic_always_lock_free (arg0, arg1) == boolean_true_node)
5769 return boolean_true_node;
5770
5771 return NULL_TREE;
5772 }
5773
5774 /* Return true if the parameters to call EXP represent an object which will
5775 always generate lock free instructions. The first argument represents the
5776 size of the object, and the second parameter is a pointer to the object
5777 itself. If NULL is passed for the object, then the result is based on
5778 typical alignment for an object of the specified size. Otherwise return
5779 NULL*/
5780
5781 static rtx
5782 expand_builtin_atomic_is_lock_free (tree exp)
5783 {
5784 tree size;
5785 tree arg0 = CALL_EXPR_ARG (exp, 0);
5786 tree arg1 = CALL_EXPR_ARG (exp, 1);
5787
5788 if (!INTEGRAL_TYPE_P (TREE_TYPE (arg0)))
5789 {
5790 error ("non-integer argument 1 to __atomic_is_lock_free");
5791 return NULL_RTX;
5792 }
5793
5794 if (!flag_inline_atomics)
5795 return NULL_RTX;
5796
5797 /* If the value is known at compile time, return the RTX for it. */
5798 size = fold_builtin_atomic_is_lock_free (arg0, arg1);
5799 if (size == boolean_true_node)
5800 return const1_rtx;
5801
5802 return NULL_RTX;
5803 }
5804
5805 /* Expand the __atomic_thread_fence intrinsic:
5806 void __atomic_thread_fence (enum memmodel)
5807 EXP is the CALL_EXPR. */
5808
5809 static void
5810 expand_builtin_atomic_thread_fence (tree exp)
5811 {
5812 enum memmodel model = get_memmodel (CALL_EXPR_ARG (exp, 0));
5813 expand_mem_thread_fence (model);
5814 }
5815
5816 /* Expand the __atomic_signal_fence intrinsic:
5817 void __atomic_signal_fence (enum memmodel)
5818 EXP is the CALL_EXPR. */
5819
5820 static void
5821 expand_builtin_atomic_signal_fence (tree exp)
5822 {
5823 enum memmodel model = get_memmodel (CALL_EXPR_ARG (exp, 0));
5824 expand_mem_signal_fence (model);
5825 }
5826
5827 /* Expand the __sync_synchronize intrinsic. */
5828
5829 static void
5830 expand_builtin_sync_synchronize (void)
5831 {
5832 expand_mem_thread_fence (MEMMODEL_SYNC_SEQ_CST);
5833 }
5834
5835 static rtx
5836 expand_builtin_thread_pointer (tree exp, rtx target)
5837 {
5838 enum insn_code icode;
5839 if (!validate_arglist (exp, VOID_TYPE))
5840 return const0_rtx;
5841 icode = direct_optab_handler (get_thread_pointer_optab, Pmode);
5842 if (icode != CODE_FOR_nothing)
5843 {
5844 struct expand_operand op;
5845 /* If the target is not sutitable then create a new target. */
5846 if (target == NULL_RTX
5847 || !REG_P (target)
5848 || GET_MODE (target) != Pmode)
5849 target = gen_reg_rtx (Pmode);
5850 create_output_operand (&op, target, Pmode);
5851 expand_insn (icode, 1, &op);
5852 return target;
5853 }
5854 error ("__builtin_thread_pointer is not supported on this target");
5855 return const0_rtx;
5856 }
5857
5858 static void
5859 expand_builtin_set_thread_pointer (tree exp)
5860 {
5861 enum insn_code icode;
5862 if (!validate_arglist (exp, POINTER_TYPE, VOID_TYPE))
5863 return;
5864 icode = direct_optab_handler (set_thread_pointer_optab, Pmode);
5865 if (icode != CODE_FOR_nothing)
5866 {
5867 struct expand_operand op;
5868 rtx val = expand_expr (CALL_EXPR_ARG (exp, 0), NULL_RTX,
5869 Pmode, EXPAND_NORMAL);
5870 create_input_operand (&op, val, Pmode);
5871 expand_insn (icode, 1, &op);
5872 return;
5873 }
5874 error ("__builtin_set_thread_pointer is not supported on this target");
5875 }
5876
5877 \f
5878 /* Emit code to restore the current value of stack. */
5879
5880 static void
5881 expand_stack_restore (tree var)
5882 {
5883 rtx_insn *prev;
5884 rtx sa = expand_normal (var);
5885
5886 sa = convert_memory_address (Pmode, sa);
5887
5888 prev = get_last_insn ();
5889 emit_stack_restore (SAVE_BLOCK, sa);
5890 fixup_args_size_notes (prev, get_last_insn (), 0);
5891 }
5892
5893
5894 /* Emit code to save the current value of stack. */
5895
5896 static rtx
5897 expand_stack_save (void)
5898 {
5899 rtx ret = NULL_RTX;
5900
5901 do_pending_stack_adjust ();
5902 emit_stack_save (SAVE_BLOCK, &ret);
5903 return ret;
5904 }
5905
5906
5907 /* Expand OpenACC acc_on_device.
5908
5909 This has to happen late (that is, not in early folding; expand_builtin_*,
5910 rather than fold_builtin_*), as we have to act differently for host and
5911 acceleration device (ACCEL_COMPILER conditional). */
5912
5913 static rtx
5914 expand_builtin_acc_on_device (tree exp, rtx target)
5915 {
5916 if (!validate_arglist (exp, INTEGER_TYPE, VOID_TYPE))
5917 return NULL_RTX;
5918
5919 tree arg = CALL_EXPR_ARG (exp, 0);
5920
5921 /* Return (arg == v1 || arg == v2) ? 1 : 0. */
5922 machine_mode v_mode = TYPE_MODE (TREE_TYPE (arg));
5923 rtx v = expand_normal (arg), v1, v2;
5924 #ifdef ACCEL_COMPILER
5925 v1 = GEN_INT (GOMP_DEVICE_NOT_HOST);
5926 v2 = GEN_INT (ACCEL_COMPILER_acc_device);
5927 #else
5928 v1 = GEN_INT (GOMP_DEVICE_NONE);
5929 v2 = GEN_INT (GOMP_DEVICE_HOST);
5930 #endif
5931 machine_mode target_mode = TYPE_MODE (integer_type_node);
5932 if (!target || !register_operand (target, target_mode))
5933 target = gen_reg_rtx (target_mode);
5934 emit_move_insn (target, const1_rtx);
5935 rtx_code_label *done_label = gen_label_rtx ();
5936 do_compare_rtx_and_jump (v, v1, EQ, false, v_mode, NULL_RTX,
5937 NULL_RTX, done_label, PROB_EVEN);
5938 do_compare_rtx_and_jump (v, v2, EQ, false, v_mode, NULL_RTX,
5939 NULL_RTX, done_label, PROB_EVEN);
5940 emit_move_insn (target, const0_rtx);
5941 emit_label (done_label);
5942
5943 return target;
5944 }
5945
5946
5947 /* Expand an expression EXP that calls a built-in function,
5948 with result going to TARGET if that's convenient
5949 (and in mode MODE if that's convenient).
5950 SUBTARGET may be used as the target for computing one of EXP's operands.
5951 IGNORE is nonzero if the value is to be ignored. */
5952
5953 rtx
5954 expand_builtin (tree exp, rtx target, rtx subtarget, machine_mode mode,
5955 int ignore)
5956 {
5957 tree fndecl = get_callee_fndecl (exp);
5958 enum built_in_function fcode = DECL_FUNCTION_CODE (fndecl);
5959 machine_mode target_mode = TYPE_MODE (TREE_TYPE (exp));
5960 int flags;
5961
5962 if (DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_MD)
5963 return targetm.expand_builtin (exp, target, subtarget, mode, ignore);
5964
5965 /* When ASan is enabled, we don't want to expand some memory/string
5966 builtins and rely on libsanitizer's hooks. This allows us to avoid
5967 redundant checks and be sure, that possible overflow will be detected
5968 by ASan. */
5969
5970 if ((flag_sanitize & SANITIZE_ADDRESS) && asan_intercepted_p (fcode))
5971 return expand_call (exp, target, ignore);
5972
5973 /* When not optimizing, generate calls to library functions for a certain
5974 set of builtins. */
5975 if (!optimize
5976 && !called_as_built_in (fndecl)
5977 && fcode != BUILT_IN_FORK
5978 && fcode != BUILT_IN_EXECL
5979 && fcode != BUILT_IN_EXECV
5980 && fcode != BUILT_IN_EXECLP
5981 && fcode != BUILT_IN_EXECLE
5982 && fcode != BUILT_IN_EXECVP
5983 && fcode != BUILT_IN_EXECVE
5984 && fcode != BUILT_IN_ALLOCA
5985 && fcode != BUILT_IN_ALLOCA_WITH_ALIGN
5986 && fcode != BUILT_IN_FREE
5987 && fcode != BUILT_IN_CHKP_SET_PTR_BOUNDS
5988 && fcode != BUILT_IN_CHKP_INIT_PTR_BOUNDS
5989 && fcode != BUILT_IN_CHKP_NULL_PTR_BOUNDS
5990 && fcode != BUILT_IN_CHKP_COPY_PTR_BOUNDS
5991 && fcode != BUILT_IN_CHKP_NARROW_PTR_BOUNDS
5992 && fcode != BUILT_IN_CHKP_STORE_PTR_BOUNDS
5993 && fcode != BUILT_IN_CHKP_CHECK_PTR_LBOUNDS
5994 && fcode != BUILT_IN_CHKP_CHECK_PTR_UBOUNDS
5995 && fcode != BUILT_IN_CHKP_CHECK_PTR_BOUNDS
5996 && fcode != BUILT_IN_CHKP_GET_PTR_LBOUND
5997 && fcode != BUILT_IN_CHKP_GET_PTR_UBOUND
5998 && fcode != BUILT_IN_CHKP_BNDRET)
5999 return expand_call (exp, target, ignore);
6000
6001 /* The built-in function expanders test for target == const0_rtx
6002 to determine whether the function's result will be ignored. */
6003 if (ignore)
6004 target = const0_rtx;
6005
6006 /* If the result of a pure or const built-in function is ignored, and
6007 none of its arguments are volatile, we can avoid expanding the
6008 built-in call and just evaluate the arguments for side-effects. */
6009 if (target == const0_rtx
6010 && ((flags = flags_from_decl_or_type (fndecl)) & (ECF_CONST | ECF_PURE))
6011 && !(flags & ECF_LOOPING_CONST_OR_PURE))
6012 {
6013 bool volatilep = false;
6014 tree arg;
6015 call_expr_arg_iterator iter;
6016
6017 FOR_EACH_CALL_EXPR_ARG (arg, iter, exp)
6018 if (TREE_THIS_VOLATILE (arg))
6019 {
6020 volatilep = true;
6021 break;
6022 }
6023
6024 if (! volatilep)
6025 {
6026 FOR_EACH_CALL_EXPR_ARG (arg, iter, exp)
6027 expand_expr (arg, const0_rtx, VOIDmode, EXPAND_NORMAL);
6028 return const0_rtx;
6029 }
6030 }
6031
6032 /* expand_builtin_with_bounds is supposed to be used for
6033 instrumented builtin calls. */
6034 gcc_assert (!CALL_WITH_BOUNDS_P (exp));
6035
6036 switch (fcode)
6037 {
6038 CASE_FLT_FN (BUILT_IN_FABS):
6039 case BUILT_IN_FABSD32:
6040 case BUILT_IN_FABSD64:
6041 case BUILT_IN_FABSD128:
6042 target = expand_builtin_fabs (exp, target, subtarget);
6043 if (target)
6044 return target;
6045 break;
6046
6047 CASE_FLT_FN (BUILT_IN_COPYSIGN):
6048 target = expand_builtin_copysign (exp, target, subtarget);
6049 if (target)
6050 return target;
6051 break;
6052
6053 /* Just do a normal library call if we were unable to fold
6054 the values. */
6055 CASE_FLT_FN (BUILT_IN_CABS):
6056 break;
6057
6058 CASE_FLT_FN (BUILT_IN_EXP):
6059 CASE_FLT_FN (BUILT_IN_EXP10):
6060 CASE_FLT_FN (BUILT_IN_POW10):
6061 CASE_FLT_FN (BUILT_IN_EXP2):
6062 CASE_FLT_FN (BUILT_IN_EXPM1):
6063 CASE_FLT_FN (BUILT_IN_LOGB):
6064 CASE_FLT_FN (BUILT_IN_LOG):
6065 CASE_FLT_FN (BUILT_IN_LOG10):
6066 CASE_FLT_FN (BUILT_IN_LOG2):
6067 CASE_FLT_FN (BUILT_IN_LOG1P):
6068 CASE_FLT_FN (BUILT_IN_TAN):
6069 CASE_FLT_FN (BUILT_IN_ASIN):
6070 CASE_FLT_FN (BUILT_IN_ACOS):
6071 CASE_FLT_FN (BUILT_IN_ATAN):
6072 CASE_FLT_FN (BUILT_IN_SIGNIFICAND):
6073 /* Treat these like sqrt only if unsafe math optimizations are allowed,
6074 because of possible accuracy problems. */
6075 if (! flag_unsafe_math_optimizations)
6076 break;
6077 CASE_FLT_FN (BUILT_IN_SQRT):
6078 CASE_FLT_FN (BUILT_IN_FLOOR):
6079 CASE_FLT_FN (BUILT_IN_CEIL):
6080 CASE_FLT_FN (BUILT_IN_TRUNC):
6081 CASE_FLT_FN (BUILT_IN_ROUND):
6082 CASE_FLT_FN (BUILT_IN_NEARBYINT):
6083 CASE_FLT_FN (BUILT_IN_RINT):
6084 target = expand_builtin_mathfn (exp, target, subtarget);
6085 if (target)
6086 return target;
6087 break;
6088
6089 CASE_FLT_FN (BUILT_IN_FMA):
6090 target = expand_builtin_mathfn_ternary (exp, target, subtarget);
6091 if (target)
6092 return target;
6093 break;
6094
6095 CASE_FLT_FN (BUILT_IN_ILOGB):
6096 if (! flag_unsafe_math_optimizations)
6097 break;
6098 CASE_FLT_FN (BUILT_IN_ISINF):
6099 CASE_FLT_FN (BUILT_IN_FINITE):
6100 case BUILT_IN_ISFINITE:
6101 case BUILT_IN_ISNORMAL:
6102 target = expand_builtin_interclass_mathfn (exp, target);
6103 if (target)
6104 return target;
6105 break;
6106
6107 CASE_FLT_FN (BUILT_IN_ICEIL):
6108 CASE_FLT_FN (BUILT_IN_LCEIL):
6109 CASE_FLT_FN (BUILT_IN_LLCEIL):
6110 CASE_FLT_FN (BUILT_IN_LFLOOR):
6111 CASE_FLT_FN (BUILT_IN_IFLOOR):
6112 CASE_FLT_FN (BUILT_IN_LLFLOOR):
6113 target = expand_builtin_int_roundingfn (exp, target);
6114 if (target)
6115 return target;
6116 break;
6117
6118 CASE_FLT_FN (BUILT_IN_IRINT):
6119 CASE_FLT_FN (BUILT_IN_LRINT):
6120 CASE_FLT_FN (BUILT_IN_LLRINT):
6121 CASE_FLT_FN (BUILT_IN_IROUND):
6122 CASE_FLT_FN (BUILT_IN_LROUND):
6123 CASE_FLT_FN (BUILT_IN_LLROUND):
6124 target = expand_builtin_int_roundingfn_2 (exp, target);
6125 if (target)
6126 return target;
6127 break;
6128
6129 CASE_FLT_FN (BUILT_IN_POWI):
6130 target = expand_builtin_powi (exp, target);
6131 if (target)
6132 return target;
6133 break;
6134
6135 CASE_FLT_FN (BUILT_IN_ATAN2):
6136 CASE_FLT_FN (BUILT_IN_LDEXP):
6137 CASE_FLT_FN (BUILT_IN_SCALB):
6138 CASE_FLT_FN (BUILT_IN_SCALBN):
6139 CASE_FLT_FN (BUILT_IN_SCALBLN):
6140 if (! flag_unsafe_math_optimizations)
6141 break;
6142
6143 CASE_FLT_FN (BUILT_IN_FMOD):
6144 CASE_FLT_FN (BUILT_IN_REMAINDER):
6145 CASE_FLT_FN (BUILT_IN_DREM):
6146 CASE_FLT_FN (BUILT_IN_POW):
6147 target = expand_builtin_mathfn_2 (exp, target, subtarget);
6148 if (target)
6149 return target;
6150 break;
6151
6152 CASE_FLT_FN (BUILT_IN_CEXPI):
6153 target = expand_builtin_cexpi (exp, target);
6154 gcc_assert (target);
6155 return target;
6156
6157 CASE_FLT_FN (BUILT_IN_SIN):
6158 CASE_FLT_FN (BUILT_IN_COS):
6159 if (! flag_unsafe_math_optimizations)
6160 break;
6161 target = expand_builtin_mathfn_3 (exp, target, subtarget);
6162 if (target)
6163 return target;
6164 break;
6165
6166 CASE_FLT_FN (BUILT_IN_SINCOS):
6167 if (! flag_unsafe_math_optimizations)
6168 break;
6169 target = expand_builtin_sincos (exp);
6170 if (target)
6171 return target;
6172 break;
6173
6174 case BUILT_IN_APPLY_ARGS:
6175 return expand_builtin_apply_args ();
6176
6177 /* __builtin_apply (FUNCTION, ARGUMENTS, ARGSIZE) invokes
6178 FUNCTION with a copy of the parameters described by
6179 ARGUMENTS, and ARGSIZE. It returns a block of memory
6180 allocated on the stack into which is stored all the registers
6181 that might possibly be used for returning the result of a
6182 function. ARGUMENTS is the value returned by
6183 __builtin_apply_args. ARGSIZE is the number of bytes of
6184 arguments that must be copied. ??? How should this value be
6185 computed? We'll also need a safe worst case value for varargs
6186 functions. */
6187 case BUILT_IN_APPLY:
6188 if (!validate_arglist (exp, POINTER_TYPE,
6189 POINTER_TYPE, INTEGER_TYPE, VOID_TYPE)
6190 && !validate_arglist (exp, REFERENCE_TYPE,
6191 POINTER_TYPE, INTEGER_TYPE, VOID_TYPE))
6192 return const0_rtx;
6193 else
6194 {
6195 rtx ops[3];
6196
6197 ops[0] = expand_normal (CALL_EXPR_ARG (exp, 0));
6198 ops[1] = expand_normal (CALL_EXPR_ARG (exp, 1));
6199 ops[2] = expand_normal (CALL_EXPR_ARG (exp, 2));
6200
6201 return expand_builtin_apply (ops[0], ops[1], ops[2]);
6202 }
6203
6204 /* __builtin_return (RESULT) causes the function to return the
6205 value described by RESULT. RESULT is address of the block of
6206 memory returned by __builtin_apply. */
6207 case BUILT_IN_RETURN:
6208 if (validate_arglist (exp, POINTER_TYPE, VOID_TYPE))
6209 expand_builtin_return (expand_normal (CALL_EXPR_ARG (exp, 0)));
6210 return const0_rtx;
6211
6212 case BUILT_IN_SAVEREGS:
6213 return expand_builtin_saveregs ();
6214
6215 case BUILT_IN_VA_ARG_PACK:
6216 /* All valid uses of __builtin_va_arg_pack () are removed during
6217 inlining. */
6218 error ("%Kinvalid use of %<__builtin_va_arg_pack ()%>", exp);
6219 return const0_rtx;
6220
6221 case BUILT_IN_VA_ARG_PACK_LEN:
6222 /* All valid uses of __builtin_va_arg_pack_len () are removed during
6223 inlining. */
6224 error ("%Kinvalid use of %<__builtin_va_arg_pack_len ()%>", exp);
6225 return const0_rtx;
6226
6227 /* Return the address of the first anonymous stack arg. */
6228 case BUILT_IN_NEXT_ARG:
6229 if (fold_builtin_next_arg (exp, false))
6230 return const0_rtx;
6231 return expand_builtin_next_arg ();
6232
6233 case BUILT_IN_CLEAR_CACHE:
6234 target = expand_builtin___clear_cache (exp);
6235 if (target)
6236 return target;
6237 break;
6238
6239 case BUILT_IN_CLASSIFY_TYPE:
6240 return expand_builtin_classify_type (exp);
6241
6242 case BUILT_IN_CONSTANT_P:
6243 return const0_rtx;
6244
6245 case BUILT_IN_FRAME_ADDRESS:
6246 case BUILT_IN_RETURN_ADDRESS:
6247 return expand_builtin_frame_address (fndecl, exp);
6248
6249 /* Returns the address of the area where the structure is returned.
6250 0 otherwise. */
6251 case BUILT_IN_AGGREGATE_INCOMING_ADDRESS:
6252 if (call_expr_nargs (exp) != 0
6253 || ! AGGREGATE_TYPE_P (TREE_TYPE (TREE_TYPE (current_function_decl)))
6254 || !MEM_P (DECL_RTL (DECL_RESULT (current_function_decl))))
6255 return const0_rtx;
6256 else
6257 return XEXP (DECL_RTL (DECL_RESULT (current_function_decl)), 0);
6258
6259 case BUILT_IN_ALLOCA:
6260 case BUILT_IN_ALLOCA_WITH_ALIGN:
6261 /* If the allocation stems from the declaration of a variable-sized
6262 object, it cannot accumulate. */
6263 target = expand_builtin_alloca (exp, CALL_ALLOCA_FOR_VAR_P (exp));
6264 if (target)
6265 return target;
6266 break;
6267
6268 case BUILT_IN_STACK_SAVE:
6269 return expand_stack_save ();
6270
6271 case BUILT_IN_STACK_RESTORE:
6272 expand_stack_restore (CALL_EXPR_ARG (exp, 0));
6273 return const0_rtx;
6274
6275 case BUILT_IN_BSWAP16:
6276 case BUILT_IN_BSWAP32:
6277 case BUILT_IN_BSWAP64:
6278 target = expand_builtin_bswap (target_mode, exp, target, subtarget);
6279 if (target)
6280 return target;
6281 break;
6282
6283 CASE_INT_FN (BUILT_IN_FFS):
6284 target = expand_builtin_unop (target_mode, exp, target,
6285 subtarget, ffs_optab);
6286 if (target)
6287 return target;
6288 break;
6289
6290 CASE_INT_FN (BUILT_IN_CLZ):
6291 target = expand_builtin_unop (target_mode, exp, target,
6292 subtarget, clz_optab);
6293 if (target)
6294 return target;
6295 break;
6296
6297 CASE_INT_FN (BUILT_IN_CTZ):
6298 target = expand_builtin_unop (target_mode, exp, target,
6299 subtarget, ctz_optab);
6300 if (target)
6301 return target;
6302 break;
6303
6304 CASE_INT_FN (BUILT_IN_CLRSB):
6305 target = expand_builtin_unop (target_mode, exp, target,
6306 subtarget, clrsb_optab);
6307 if (target)
6308 return target;
6309 break;
6310
6311 CASE_INT_FN (BUILT_IN_POPCOUNT):
6312 target = expand_builtin_unop (target_mode, exp, target,
6313 subtarget, popcount_optab);
6314 if (target)
6315 return target;
6316 break;
6317
6318 CASE_INT_FN (BUILT_IN_PARITY):
6319 target = expand_builtin_unop (target_mode, exp, target,
6320 subtarget, parity_optab);
6321 if (target)
6322 return target;
6323 break;
6324
6325 case BUILT_IN_STRLEN:
6326 target = expand_builtin_strlen (exp, target, target_mode);
6327 if (target)
6328 return target;
6329 break;
6330
6331 case BUILT_IN_STRCPY:
6332 target = expand_builtin_strcpy (exp, target);
6333 if (target)
6334 return target;
6335 break;
6336
6337 case BUILT_IN_STRNCPY:
6338 target = expand_builtin_strncpy (exp, target);
6339 if (target)
6340 return target;
6341 break;
6342
6343 case BUILT_IN_STPCPY:
6344 target = expand_builtin_stpcpy (exp, target, mode);
6345 if (target)
6346 return target;
6347 break;
6348
6349 case BUILT_IN_MEMCPY:
6350 target = expand_builtin_memcpy (exp, target);
6351 if (target)
6352 return target;
6353 break;
6354
6355 case BUILT_IN_MEMPCPY:
6356 target = expand_builtin_mempcpy (exp, target, mode);
6357 if (target)
6358 return target;
6359 break;
6360
6361 case BUILT_IN_MEMSET:
6362 target = expand_builtin_memset (exp, target, mode);
6363 if (target)
6364 return target;
6365 break;
6366
6367 case BUILT_IN_BZERO:
6368 target = expand_builtin_bzero (exp);
6369 if (target)
6370 return target;
6371 break;
6372
6373 case BUILT_IN_STRCMP:
6374 target = expand_builtin_strcmp (exp, target);
6375 if (target)
6376 return target;
6377 break;
6378
6379 case BUILT_IN_STRNCMP:
6380 target = expand_builtin_strncmp (exp, target, mode);
6381 if (target)
6382 return target;
6383 break;
6384
6385 case BUILT_IN_BCMP:
6386 case BUILT_IN_MEMCMP:
6387 target = expand_builtin_memcmp (exp, target, mode);
6388 if (target)
6389 return target;
6390 break;
6391
6392 case BUILT_IN_SETJMP:
6393 /* This should have been lowered to the builtins below. */
6394 gcc_unreachable ();
6395
6396 case BUILT_IN_SETJMP_SETUP:
6397 /* __builtin_setjmp_setup is passed a pointer to an array of five words
6398 and the receiver label. */
6399 if (validate_arglist (exp, POINTER_TYPE, POINTER_TYPE, VOID_TYPE))
6400 {
6401 rtx buf_addr = expand_expr (CALL_EXPR_ARG (exp, 0), subtarget,
6402 VOIDmode, EXPAND_NORMAL);
6403 tree label = TREE_OPERAND (CALL_EXPR_ARG (exp, 1), 0);
6404 rtx label_r = label_rtx (label);
6405
6406 /* This is copied from the handling of non-local gotos. */
6407 expand_builtin_setjmp_setup (buf_addr, label_r);
6408 nonlocal_goto_handler_labels
6409 = gen_rtx_INSN_LIST (VOIDmode, label_r,
6410 nonlocal_goto_handler_labels);
6411 /* ??? Do not let expand_label treat us as such since we would
6412 not want to be both on the list of non-local labels and on
6413 the list of forced labels. */
6414 FORCED_LABEL (label) = 0;
6415 return const0_rtx;
6416 }
6417 break;
6418
6419 case BUILT_IN_SETJMP_RECEIVER:
6420 /* __builtin_setjmp_receiver is passed the receiver label. */
6421 if (validate_arglist (exp, POINTER_TYPE, VOID_TYPE))
6422 {
6423 tree label = TREE_OPERAND (CALL_EXPR_ARG (exp, 0), 0);
6424 rtx label_r = label_rtx (label);
6425
6426 expand_builtin_setjmp_receiver (label_r);
6427 return const0_rtx;
6428 }
6429 break;
6430
6431 /* __builtin_longjmp is passed a pointer to an array of five words.
6432 It's similar to the C library longjmp function but works with
6433 __builtin_setjmp above. */
6434 case BUILT_IN_LONGJMP:
6435 if (validate_arglist (exp, POINTER_TYPE, INTEGER_TYPE, VOID_TYPE))
6436 {
6437 rtx buf_addr = expand_expr (CALL_EXPR_ARG (exp, 0), subtarget,
6438 VOIDmode, EXPAND_NORMAL);
6439 rtx value = expand_normal (CALL_EXPR_ARG (exp, 1));
6440
6441 if (value != const1_rtx)
6442 {
6443 error ("%<__builtin_longjmp%> second argument must be 1");
6444 return const0_rtx;
6445 }
6446
6447 expand_builtin_longjmp (buf_addr, value);
6448 return const0_rtx;
6449 }
6450 break;
6451
6452 case BUILT_IN_NONLOCAL_GOTO:
6453 target = expand_builtin_nonlocal_goto (exp);
6454 if (target)
6455 return target;
6456 break;
6457
6458 /* This updates the setjmp buffer that is its argument with the value
6459 of the current stack pointer. */
6460 case BUILT_IN_UPDATE_SETJMP_BUF:
6461 if (validate_arglist (exp, POINTER_TYPE, VOID_TYPE))
6462 {
6463 rtx buf_addr
6464 = expand_normal (CALL_EXPR_ARG (exp, 0));
6465
6466 expand_builtin_update_setjmp_buf (buf_addr);
6467 return const0_rtx;
6468 }
6469 break;
6470
6471 case BUILT_IN_TRAP:
6472 expand_builtin_trap ();
6473 return const0_rtx;
6474
6475 case BUILT_IN_UNREACHABLE:
6476 expand_builtin_unreachable ();
6477 return const0_rtx;
6478
6479 CASE_FLT_FN (BUILT_IN_SIGNBIT):
6480 case BUILT_IN_SIGNBITD32:
6481 case BUILT_IN_SIGNBITD64:
6482 case BUILT_IN_SIGNBITD128:
6483 target = expand_builtin_signbit (exp, target);
6484 if (target)
6485 return target;
6486 break;
6487
6488 /* Various hooks for the DWARF 2 __throw routine. */
6489 case BUILT_IN_UNWIND_INIT:
6490 expand_builtin_unwind_init ();
6491 return const0_rtx;
6492 case BUILT_IN_DWARF_CFA:
6493 return virtual_cfa_rtx;
6494 #ifdef DWARF2_UNWIND_INFO
6495 case BUILT_IN_DWARF_SP_COLUMN:
6496 return expand_builtin_dwarf_sp_column ();
6497 case BUILT_IN_INIT_DWARF_REG_SIZES:
6498 expand_builtin_init_dwarf_reg_sizes (CALL_EXPR_ARG (exp, 0));
6499 return const0_rtx;
6500 #endif
6501 case BUILT_IN_FROB_RETURN_ADDR:
6502 return expand_builtin_frob_return_addr (CALL_EXPR_ARG (exp, 0));
6503 case BUILT_IN_EXTRACT_RETURN_ADDR:
6504 return expand_builtin_extract_return_addr (CALL_EXPR_ARG (exp, 0));
6505 case BUILT_IN_EH_RETURN:
6506 expand_builtin_eh_return (CALL_EXPR_ARG (exp, 0),
6507 CALL_EXPR_ARG (exp, 1));
6508 return const0_rtx;
6509 case BUILT_IN_EH_RETURN_DATA_REGNO:
6510 return expand_builtin_eh_return_data_regno (exp);
6511 case BUILT_IN_EXTEND_POINTER:
6512 return expand_builtin_extend_pointer (CALL_EXPR_ARG (exp, 0));
6513 case BUILT_IN_EH_POINTER:
6514 return expand_builtin_eh_pointer (exp);
6515 case BUILT_IN_EH_FILTER:
6516 return expand_builtin_eh_filter (exp);
6517 case BUILT_IN_EH_COPY_VALUES:
6518 return expand_builtin_eh_copy_values (exp);
6519
6520 case BUILT_IN_VA_START:
6521 return expand_builtin_va_start (exp);
6522 case BUILT_IN_VA_END:
6523 return expand_builtin_va_end (exp);
6524 case BUILT_IN_VA_COPY:
6525 return expand_builtin_va_copy (exp);
6526 case BUILT_IN_EXPECT:
6527 return expand_builtin_expect (exp, target);
6528 case BUILT_IN_ASSUME_ALIGNED:
6529 return expand_builtin_assume_aligned (exp, target);
6530 case BUILT_IN_PREFETCH:
6531 expand_builtin_prefetch (exp);
6532 return const0_rtx;
6533
6534 case BUILT_IN_INIT_TRAMPOLINE:
6535 return expand_builtin_init_trampoline (exp, true);
6536 case BUILT_IN_INIT_HEAP_TRAMPOLINE:
6537 return expand_builtin_init_trampoline (exp, false);
6538 case BUILT_IN_ADJUST_TRAMPOLINE:
6539 return expand_builtin_adjust_trampoline (exp);
6540
6541 case BUILT_IN_FORK:
6542 case BUILT_IN_EXECL:
6543 case BUILT_IN_EXECV:
6544 case BUILT_IN_EXECLP:
6545 case BUILT_IN_EXECLE:
6546 case BUILT_IN_EXECVP:
6547 case BUILT_IN_EXECVE:
6548 target = expand_builtin_fork_or_exec (fndecl, exp, target, ignore);
6549 if (target)
6550 return target;
6551 break;
6552
6553 case BUILT_IN_SYNC_FETCH_AND_ADD_1:
6554 case BUILT_IN_SYNC_FETCH_AND_ADD_2:
6555 case BUILT_IN_SYNC_FETCH_AND_ADD_4:
6556 case BUILT_IN_SYNC_FETCH_AND_ADD_8:
6557 case BUILT_IN_SYNC_FETCH_AND_ADD_16:
6558 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_FETCH_AND_ADD_1);
6559 target = expand_builtin_sync_operation (mode, exp, PLUS, false, target);
6560 if (target)
6561 return target;
6562 break;
6563
6564 case BUILT_IN_SYNC_FETCH_AND_SUB_1:
6565 case BUILT_IN_SYNC_FETCH_AND_SUB_2:
6566 case BUILT_IN_SYNC_FETCH_AND_SUB_4:
6567 case BUILT_IN_SYNC_FETCH_AND_SUB_8:
6568 case BUILT_IN_SYNC_FETCH_AND_SUB_16:
6569 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_FETCH_AND_SUB_1);
6570 target = expand_builtin_sync_operation (mode, exp, MINUS, false, target);
6571 if (target)
6572 return target;
6573 break;
6574
6575 case BUILT_IN_SYNC_FETCH_AND_OR_1:
6576 case BUILT_IN_SYNC_FETCH_AND_OR_2:
6577 case BUILT_IN_SYNC_FETCH_AND_OR_4:
6578 case BUILT_IN_SYNC_FETCH_AND_OR_8:
6579 case BUILT_IN_SYNC_FETCH_AND_OR_16:
6580 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_FETCH_AND_OR_1);
6581 target = expand_builtin_sync_operation (mode, exp, IOR, false, target);
6582 if (target)
6583 return target;
6584 break;
6585
6586 case BUILT_IN_SYNC_FETCH_AND_AND_1:
6587 case BUILT_IN_SYNC_FETCH_AND_AND_2:
6588 case BUILT_IN_SYNC_FETCH_AND_AND_4:
6589 case BUILT_IN_SYNC_FETCH_AND_AND_8:
6590 case BUILT_IN_SYNC_FETCH_AND_AND_16:
6591 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_FETCH_AND_AND_1);
6592 target = expand_builtin_sync_operation (mode, exp, AND, false, target);
6593 if (target)
6594 return target;
6595 break;
6596
6597 case BUILT_IN_SYNC_FETCH_AND_XOR_1:
6598 case BUILT_IN_SYNC_FETCH_AND_XOR_2:
6599 case BUILT_IN_SYNC_FETCH_AND_XOR_4:
6600 case BUILT_IN_SYNC_FETCH_AND_XOR_8:
6601 case BUILT_IN_SYNC_FETCH_AND_XOR_16:
6602 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_FETCH_AND_XOR_1);
6603 target = expand_builtin_sync_operation (mode, exp, XOR, false, target);
6604 if (target)
6605 return target;
6606 break;
6607
6608 case BUILT_IN_SYNC_FETCH_AND_NAND_1:
6609 case BUILT_IN_SYNC_FETCH_AND_NAND_2:
6610 case BUILT_IN_SYNC_FETCH_AND_NAND_4:
6611 case BUILT_IN_SYNC_FETCH_AND_NAND_8:
6612 case BUILT_IN_SYNC_FETCH_AND_NAND_16:
6613 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_FETCH_AND_NAND_1);
6614 target = expand_builtin_sync_operation (mode, exp, NOT, false, target);
6615 if (target)
6616 return target;
6617 break;
6618
6619 case BUILT_IN_SYNC_ADD_AND_FETCH_1:
6620 case BUILT_IN_SYNC_ADD_AND_FETCH_2:
6621 case BUILT_IN_SYNC_ADD_AND_FETCH_4:
6622 case BUILT_IN_SYNC_ADD_AND_FETCH_8:
6623 case BUILT_IN_SYNC_ADD_AND_FETCH_16:
6624 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_ADD_AND_FETCH_1);
6625 target = expand_builtin_sync_operation (mode, exp, PLUS, true, target);
6626 if (target)
6627 return target;
6628 break;
6629
6630 case BUILT_IN_SYNC_SUB_AND_FETCH_1:
6631 case BUILT_IN_SYNC_SUB_AND_FETCH_2:
6632 case BUILT_IN_SYNC_SUB_AND_FETCH_4:
6633 case BUILT_IN_SYNC_SUB_AND_FETCH_8:
6634 case BUILT_IN_SYNC_SUB_AND_FETCH_16:
6635 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_SUB_AND_FETCH_1);
6636 target = expand_builtin_sync_operation (mode, exp, MINUS, true, target);
6637 if (target)
6638 return target;
6639 break;
6640
6641 case BUILT_IN_SYNC_OR_AND_FETCH_1:
6642 case BUILT_IN_SYNC_OR_AND_FETCH_2:
6643 case BUILT_IN_SYNC_OR_AND_FETCH_4:
6644 case BUILT_IN_SYNC_OR_AND_FETCH_8:
6645 case BUILT_IN_SYNC_OR_AND_FETCH_16:
6646 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_OR_AND_FETCH_1);
6647 target = expand_builtin_sync_operation (mode, exp, IOR, true, target);
6648 if (target)
6649 return target;
6650 break;
6651
6652 case BUILT_IN_SYNC_AND_AND_FETCH_1:
6653 case BUILT_IN_SYNC_AND_AND_FETCH_2:
6654 case BUILT_IN_SYNC_AND_AND_FETCH_4:
6655 case BUILT_IN_SYNC_AND_AND_FETCH_8:
6656 case BUILT_IN_SYNC_AND_AND_FETCH_16:
6657 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_AND_AND_FETCH_1);
6658 target = expand_builtin_sync_operation (mode, exp, AND, true, target);
6659 if (target)
6660 return target;
6661 break;
6662
6663 case BUILT_IN_SYNC_XOR_AND_FETCH_1:
6664 case BUILT_IN_SYNC_XOR_AND_FETCH_2:
6665 case BUILT_IN_SYNC_XOR_AND_FETCH_4:
6666 case BUILT_IN_SYNC_XOR_AND_FETCH_8:
6667 case BUILT_IN_SYNC_XOR_AND_FETCH_16:
6668 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_XOR_AND_FETCH_1);
6669 target = expand_builtin_sync_operation (mode, exp, XOR, true, target);
6670 if (target)
6671 return target;
6672 break;
6673
6674 case BUILT_IN_SYNC_NAND_AND_FETCH_1:
6675 case BUILT_IN_SYNC_NAND_AND_FETCH_2:
6676 case BUILT_IN_SYNC_NAND_AND_FETCH_4:
6677 case BUILT_IN_SYNC_NAND_AND_FETCH_8:
6678 case BUILT_IN_SYNC_NAND_AND_FETCH_16:
6679 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_NAND_AND_FETCH_1);
6680 target = expand_builtin_sync_operation (mode, exp, NOT, true, target);
6681 if (target)
6682 return target;
6683 break;
6684
6685 case BUILT_IN_SYNC_BOOL_COMPARE_AND_SWAP_1:
6686 case BUILT_IN_SYNC_BOOL_COMPARE_AND_SWAP_2:
6687 case BUILT_IN_SYNC_BOOL_COMPARE_AND_SWAP_4:
6688 case BUILT_IN_SYNC_BOOL_COMPARE_AND_SWAP_8:
6689 case BUILT_IN_SYNC_BOOL_COMPARE_AND_SWAP_16:
6690 if (mode == VOIDmode)
6691 mode = TYPE_MODE (boolean_type_node);
6692 if (!target || !register_operand (target, mode))
6693 target = gen_reg_rtx (mode);
6694
6695 mode = get_builtin_sync_mode
6696 (fcode - BUILT_IN_SYNC_BOOL_COMPARE_AND_SWAP_1);
6697 target = expand_builtin_compare_and_swap (mode, exp, true, target);
6698 if (target)
6699 return target;
6700 break;
6701
6702 case BUILT_IN_SYNC_VAL_COMPARE_AND_SWAP_1:
6703 case BUILT_IN_SYNC_VAL_COMPARE_AND_SWAP_2:
6704 case BUILT_IN_SYNC_VAL_COMPARE_AND_SWAP_4:
6705 case BUILT_IN_SYNC_VAL_COMPARE_AND_SWAP_8:
6706 case BUILT_IN_SYNC_VAL_COMPARE_AND_SWAP_16:
6707 mode = get_builtin_sync_mode
6708 (fcode - BUILT_IN_SYNC_VAL_COMPARE_AND_SWAP_1);
6709 target = expand_builtin_compare_and_swap (mode, exp, false, target);
6710 if (target)
6711 return target;
6712 break;
6713
6714 case BUILT_IN_SYNC_LOCK_TEST_AND_SET_1:
6715 case BUILT_IN_SYNC_LOCK_TEST_AND_SET_2:
6716 case BUILT_IN_SYNC_LOCK_TEST_AND_SET_4:
6717 case BUILT_IN_SYNC_LOCK_TEST_AND_SET_8:
6718 case BUILT_IN_SYNC_LOCK_TEST_AND_SET_16:
6719 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_LOCK_TEST_AND_SET_1);
6720 target = expand_builtin_sync_lock_test_and_set (mode, exp, target);
6721 if (target)
6722 return target;
6723 break;
6724
6725 case BUILT_IN_SYNC_LOCK_RELEASE_1:
6726 case BUILT_IN_SYNC_LOCK_RELEASE_2:
6727 case BUILT_IN_SYNC_LOCK_RELEASE_4:
6728 case BUILT_IN_SYNC_LOCK_RELEASE_8:
6729 case BUILT_IN_SYNC_LOCK_RELEASE_16:
6730 mode = get_builtin_sync_mode (fcode - BUILT_IN_SYNC_LOCK_RELEASE_1);
6731 expand_builtin_sync_lock_release (mode, exp);
6732 return const0_rtx;
6733
6734 case BUILT_IN_SYNC_SYNCHRONIZE:
6735 expand_builtin_sync_synchronize ();
6736 return const0_rtx;
6737
6738 case BUILT_IN_ATOMIC_EXCHANGE_1:
6739 case BUILT_IN_ATOMIC_EXCHANGE_2:
6740 case BUILT_IN_ATOMIC_EXCHANGE_4:
6741 case BUILT_IN_ATOMIC_EXCHANGE_8:
6742 case BUILT_IN_ATOMIC_EXCHANGE_16:
6743 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_EXCHANGE_1);
6744 target = expand_builtin_atomic_exchange (mode, exp, target);
6745 if (target)
6746 return target;
6747 break;
6748
6749 case BUILT_IN_ATOMIC_COMPARE_EXCHANGE_1:
6750 case BUILT_IN_ATOMIC_COMPARE_EXCHANGE_2:
6751 case BUILT_IN_ATOMIC_COMPARE_EXCHANGE_4:
6752 case BUILT_IN_ATOMIC_COMPARE_EXCHANGE_8:
6753 case BUILT_IN_ATOMIC_COMPARE_EXCHANGE_16:
6754 {
6755 unsigned int nargs, z;
6756 vec<tree, va_gc> *vec;
6757
6758 mode =
6759 get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_COMPARE_EXCHANGE_1);
6760 target = expand_builtin_atomic_compare_exchange (mode, exp, target);
6761 if (target)
6762 return target;
6763
6764 /* If this is turned into an external library call, the weak parameter
6765 must be dropped to match the expected parameter list. */
6766 nargs = call_expr_nargs (exp);
6767 vec_alloc (vec, nargs - 1);
6768 for (z = 0; z < 3; z++)
6769 vec->quick_push (CALL_EXPR_ARG (exp, z));
6770 /* Skip the boolean weak parameter. */
6771 for (z = 4; z < 6; z++)
6772 vec->quick_push (CALL_EXPR_ARG (exp, z));
6773 exp = build_call_vec (TREE_TYPE (exp), CALL_EXPR_FN (exp), vec);
6774 break;
6775 }
6776
6777 case BUILT_IN_ATOMIC_LOAD_1:
6778 case BUILT_IN_ATOMIC_LOAD_2:
6779 case BUILT_IN_ATOMIC_LOAD_4:
6780 case BUILT_IN_ATOMIC_LOAD_8:
6781 case BUILT_IN_ATOMIC_LOAD_16:
6782 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_LOAD_1);
6783 target = expand_builtin_atomic_load (mode, exp, target);
6784 if (target)
6785 return target;
6786 break;
6787
6788 case BUILT_IN_ATOMIC_STORE_1:
6789 case BUILT_IN_ATOMIC_STORE_2:
6790 case BUILT_IN_ATOMIC_STORE_4:
6791 case BUILT_IN_ATOMIC_STORE_8:
6792 case BUILT_IN_ATOMIC_STORE_16:
6793 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_STORE_1);
6794 target = expand_builtin_atomic_store (mode, exp);
6795 if (target)
6796 return const0_rtx;
6797 break;
6798
6799 case BUILT_IN_ATOMIC_ADD_FETCH_1:
6800 case BUILT_IN_ATOMIC_ADD_FETCH_2:
6801 case BUILT_IN_ATOMIC_ADD_FETCH_4:
6802 case BUILT_IN_ATOMIC_ADD_FETCH_8:
6803 case BUILT_IN_ATOMIC_ADD_FETCH_16:
6804 {
6805 enum built_in_function lib;
6806 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_ADD_FETCH_1);
6807 lib = (enum built_in_function)((int)BUILT_IN_ATOMIC_FETCH_ADD_1 +
6808 (fcode - BUILT_IN_ATOMIC_ADD_FETCH_1));
6809 target = expand_builtin_atomic_fetch_op (mode, exp, target, PLUS, true,
6810 ignore, lib);
6811 if (target)
6812 return target;
6813 break;
6814 }
6815 case BUILT_IN_ATOMIC_SUB_FETCH_1:
6816 case BUILT_IN_ATOMIC_SUB_FETCH_2:
6817 case BUILT_IN_ATOMIC_SUB_FETCH_4:
6818 case BUILT_IN_ATOMIC_SUB_FETCH_8:
6819 case BUILT_IN_ATOMIC_SUB_FETCH_16:
6820 {
6821 enum built_in_function lib;
6822 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_SUB_FETCH_1);
6823 lib = (enum built_in_function)((int)BUILT_IN_ATOMIC_FETCH_SUB_1 +
6824 (fcode - BUILT_IN_ATOMIC_SUB_FETCH_1));
6825 target = expand_builtin_atomic_fetch_op (mode, exp, target, MINUS, true,
6826 ignore, lib);
6827 if (target)
6828 return target;
6829 break;
6830 }
6831 case BUILT_IN_ATOMIC_AND_FETCH_1:
6832 case BUILT_IN_ATOMIC_AND_FETCH_2:
6833 case BUILT_IN_ATOMIC_AND_FETCH_4:
6834 case BUILT_IN_ATOMIC_AND_FETCH_8:
6835 case BUILT_IN_ATOMIC_AND_FETCH_16:
6836 {
6837 enum built_in_function lib;
6838 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_AND_FETCH_1);
6839 lib = (enum built_in_function)((int)BUILT_IN_ATOMIC_FETCH_AND_1 +
6840 (fcode - BUILT_IN_ATOMIC_AND_FETCH_1));
6841 target = expand_builtin_atomic_fetch_op (mode, exp, target, AND, true,
6842 ignore, lib);
6843 if (target)
6844 return target;
6845 break;
6846 }
6847 case BUILT_IN_ATOMIC_NAND_FETCH_1:
6848 case BUILT_IN_ATOMIC_NAND_FETCH_2:
6849 case BUILT_IN_ATOMIC_NAND_FETCH_4:
6850 case BUILT_IN_ATOMIC_NAND_FETCH_8:
6851 case BUILT_IN_ATOMIC_NAND_FETCH_16:
6852 {
6853 enum built_in_function lib;
6854 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_NAND_FETCH_1);
6855 lib = (enum built_in_function)((int)BUILT_IN_ATOMIC_FETCH_NAND_1 +
6856 (fcode - BUILT_IN_ATOMIC_NAND_FETCH_1));
6857 target = expand_builtin_atomic_fetch_op (mode, exp, target, NOT, true,
6858 ignore, lib);
6859 if (target)
6860 return target;
6861 break;
6862 }
6863 case BUILT_IN_ATOMIC_XOR_FETCH_1:
6864 case BUILT_IN_ATOMIC_XOR_FETCH_2:
6865 case BUILT_IN_ATOMIC_XOR_FETCH_4:
6866 case BUILT_IN_ATOMIC_XOR_FETCH_8:
6867 case BUILT_IN_ATOMIC_XOR_FETCH_16:
6868 {
6869 enum built_in_function lib;
6870 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_XOR_FETCH_1);
6871 lib = (enum built_in_function)((int)BUILT_IN_ATOMIC_FETCH_XOR_1 +
6872 (fcode - BUILT_IN_ATOMIC_XOR_FETCH_1));
6873 target = expand_builtin_atomic_fetch_op (mode, exp, target, XOR, true,
6874 ignore, lib);
6875 if (target)
6876 return target;
6877 break;
6878 }
6879 case BUILT_IN_ATOMIC_OR_FETCH_1:
6880 case BUILT_IN_ATOMIC_OR_FETCH_2:
6881 case BUILT_IN_ATOMIC_OR_FETCH_4:
6882 case BUILT_IN_ATOMIC_OR_FETCH_8:
6883 case BUILT_IN_ATOMIC_OR_FETCH_16:
6884 {
6885 enum built_in_function lib;
6886 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_OR_FETCH_1);
6887 lib = (enum built_in_function)((int)BUILT_IN_ATOMIC_FETCH_OR_1 +
6888 (fcode - BUILT_IN_ATOMIC_OR_FETCH_1));
6889 target = expand_builtin_atomic_fetch_op (mode, exp, target, IOR, true,
6890 ignore, lib);
6891 if (target)
6892 return target;
6893 break;
6894 }
6895 case BUILT_IN_ATOMIC_FETCH_ADD_1:
6896 case BUILT_IN_ATOMIC_FETCH_ADD_2:
6897 case BUILT_IN_ATOMIC_FETCH_ADD_4:
6898 case BUILT_IN_ATOMIC_FETCH_ADD_8:
6899 case BUILT_IN_ATOMIC_FETCH_ADD_16:
6900 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_FETCH_ADD_1);
6901 target = expand_builtin_atomic_fetch_op (mode, exp, target, PLUS, false,
6902 ignore, BUILT_IN_NONE);
6903 if (target)
6904 return target;
6905 break;
6906
6907 case BUILT_IN_ATOMIC_FETCH_SUB_1:
6908 case BUILT_IN_ATOMIC_FETCH_SUB_2:
6909 case BUILT_IN_ATOMIC_FETCH_SUB_4:
6910 case BUILT_IN_ATOMIC_FETCH_SUB_8:
6911 case BUILT_IN_ATOMIC_FETCH_SUB_16:
6912 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_FETCH_SUB_1);
6913 target = expand_builtin_atomic_fetch_op (mode, exp, target, MINUS, false,
6914 ignore, BUILT_IN_NONE);
6915 if (target)
6916 return target;
6917 break;
6918
6919 case BUILT_IN_ATOMIC_FETCH_AND_1:
6920 case BUILT_IN_ATOMIC_FETCH_AND_2:
6921 case BUILT_IN_ATOMIC_FETCH_AND_4:
6922 case BUILT_IN_ATOMIC_FETCH_AND_8:
6923 case BUILT_IN_ATOMIC_FETCH_AND_16:
6924 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_FETCH_AND_1);
6925 target = expand_builtin_atomic_fetch_op (mode, exp, target, AND, false,
6926 ignore, BUILT_IN_NONE);
6927 if (target)
6928 return target;
6929 break;
6930
6931 case BUILT_IN_ATOMIC_FETCH_NAND_1:
6932 case BUILT_IN_ATOMIC_FETCH_NAND_2:
6933 case BUILT_IN_ATOMIC_FETCH_NAND_4:
6934 case BUILT_IN_ATOMIC_FETCH_NAND_8:
6935 case BUILT_IN_ATOMIC_FETCH_NAND_16:
6936 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_FETCH_NAND_1);
6937 target = expand_builtin_atomic_fetch_op (mode, exp, target, NOT, false,
6938 ignore, BUILT_IN_NONE);
6939 if (target)
6940 return target;
6941 break;
6942
6943 case BUILT_IN_ATOMIC_FETCH_XOR_1:
6944 case BUILT_IN_ATOMIC_FETCH_XOR_2:
6945 case BUILT_IN_ATOMIC_FETCH_XOR_4:
6946 case BUILT_IN_ATOMIC_FETCH_XOR_8:
6947 case BUILT_IN_ATOMIC_FETCH_XOR_16:
6948 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_FETCH_XOR_1);
6949 target = expand_builtin_atomic_fetch_op (mode, exp, target, XOR, false,
6950 ignore, BUILT_IN_NONE);
6951 if (target)
6952 return target;
6953 break;
6954
6955 case BUILT_IN_ATOMIC_FETCH_OR_1:
6956 case BUILT_IN_ATOMIC_FETCH_OR_2:
6957 case BUILT_IN_ATOMIC_FETCH_OR_4:
6958 case BUILT_IN_ATOMIC_FETCH_OR_8:
6959 case BUILT_IN_ATOMIC_FETCH_OR_16:
6960 mode = get_builtin_sync_mode (fcode - BUILT_IN_ATOMIC_FETCH_OR_1);
6961 target = expand_builtin_atomic_fetch_op (mode, exp, target, IOR, false,
6962 ignore, BUILT_IN_NONE);
6963 if (target)
6964 return target;
6965 break;
6966
6967 case BUILT_IN_ATOMIC_TEST_AND_SET:
6968 return expand_builtin_atomic_test_and_set (exp, target);
6969
6970 case BUILT_IN_ATOMIC_CLEAR:
6971 return expand_builtin_atomic_clear (exp);
6972
6973 case BUILT_IN_ATOMIC_ALWAYS_LOCK_FREE:
6974 return expand_builtin_atomic_always_lock_free (exp);
6975
6976 case BUILT_IN_ATOMIC_IS_LOCK_FREE:
6977 target = expand_builtin_atomic_is_lock_free (exp);
6978 if (target)
6979 return target;
6980 break;
6981
6982 case BUILT_IN_ATOMIC_THREAD_FENCE:
6983 expand_builtin_atomic_thread_fence (exp);
6984 return const0_rtx;
6985
6986 case BUILT_IN_ATOMIC_SIGNAL_FENCE:
6987 expand_builtin_atomic_signal_fence (exp);
6988 return const0_rtx;
6989
6990 case BUILT_IN_OBJECT_SIZE:
6991 return expand_builtin_object_size (exp);
6992
6993 case BUILT_IN_MEMCPY_CHK:
6994 case BUILT_IN_MEMPCPY_CHK:
6995 case BUILT_IN_MEMMOVE_CHK:
6996 case BUILT_IN_MEMSET_CHK:
6997 target = expand_builtin_memory_chk (exp, target, mode, fcode);
6998 if (target)
6999 return target;
7000 break;
7001
7002 case BUILT_IN_STRCPY_CHK:
7003 case BUILT_IN_STPCPY_CHK:
7004 case BUILT_IN_STRNCPY_CHK:
7005 case BUILT_IN_STPNCPY_CHK:
7006 case BUILT_IN_STRCAT_CHK:
7007 case BUILT_IN_STRNCAT_CHK:
7008 case BUILT_IN_SNPRINTF_CHK:
7009 case BUILT_IN_VSNPRINTF_CHK:
7010 maybe_emit_chk_warning (exp, fcode);
7011 break;
7012
7013 case BUILT_IN_SPRINTF_CHK:
7014 case BUILT_IN_VSPRINTF_CHK:
7015 maybe_emit_sprintf_chk_warning (exp, fcode);
7016 break;
7017
7018 case BUILT_IN_FREE:
7019 if (warn_free_nonheap_object)
7020 maybe_emit_free_warning (exp);
7021 break;
7022
7023 case BUILT_IN_THREAD_POINTER:
7024 return expand_builtin_thread_pointer (exp, target);
7025
7026 case BUILT_IN_SET_THREAD_POINTER:
7027 expand_builtin_set_thread_pointer (exp);
7028 return const0_rtx;
7029
7030 case BUILT_IN_CILK_DETACH:
7031 expand_builtin_cilk_detach (exp);
7032 return const0_rtx;
7033
7034 case BUILT_IN_CILK_POP_FRAME:
7035 expand_builtin_cilk_pop_frame (exp);
7036 return const0_rtx;
7037
7038 case BUILT_IN_CHKP_INIT_PTR_BOUNDS:
7039 case BUILT_IN_CHKP_NULL_PTR_BOUNDS:
7040 case BUILT_IN_CHKP_COPY_PTR_BOUNDS:
7041 case BUILT_IN_CHKP_CHECK_PTR_LBOUNDS:
7042 case BUILT_IN_CHKP_CHECK_PTR_UBOUNDS:
7043 case BUILT_IN_CHKP_CHECK_PTR_BOUNDS:
7044 case BUILT_IN_CHKP_SET_PTR_BOUNDS:
7045 case BUILT_IN_CHKP_NARROW_PTR_BOUNDS:
7046 case BUILT_IN_CHKP_STORE_PTR_BOUNDS:
7047 case BUILT_IN_CHKP_GET_PTR_LBOUND:
7048 case BUILT_IN_CHKP_GET_PTR_UBOUND:
7049 /* We allow user CHKP builtins if Pointer Bounds
7050 Checker is off. */
7051 if (!chkp_function_instrumented_p (current_function_decl))
7052 {
7053 if (fcode == BUILT_IN_CHKP_SET_PTR_BOUNDS
7054 || fcode == BUILT_IN_CHKP_NARROW_PTR_BOUNDS
7055 || fcode == BUILT_IN_CHKP_INIT_PTR_BOUNDS
7056 || fcode == BUILT_IN_CHKP_NULL_PTR_BOUNDS
7057 || fcode == BUILT_IN_CHKP_COPY_PTR_BOUNDS)
7058 return expand_normal (CALL_EXPR_ARG (exp, 0));
7059 else if (fcode == BUILT_IN_CHKP_GET_PTR_LBOUND)
7060 return expand_normal (size_zero_node);
7061 else if (fcode == BUILT_IN_CHKP_GET_PTR_UBOUND)
7062 return expand_normal (size_int (-1));
7063 else
7064 return const0_rtx;
7065 }
7066 /* FALLTHROUGH */
7067
7068 case BUILT_IN_CHKP_BNDMK:
7069 case BUILT_IN_CHKP_BNDSTX:
7070 case BUILT_IN_CHKP_BNDCL:
7071 case BUILT_IN_CHKP_BNDCU:
7072 case BUILT_IN_CHKP_BNDLDX:
7073 case BUILT_IN_CHKP_BNDRET:
7074 case BUILT_IN_CHKP_INTERSECT:
7075 case BUILT_IN_CHKP_NARROW:
7076 case BUILT_IN_CHKP_EXTRACT_LOWER:
7077 case BUILT_IN_CHKP_EXTRACT_UPPER:
7078 /* Software implementation of Pointer Bounds Checker is NYI.
7079 Target support is required. */
7080 error ("Your target platform does not support -fcheck-pointer-bounds");
7081 break;
7082
7083 case BUILT_IN_ACC_ON_DEVICE:
7084 target = expand_builtin_acc_on_device (exp, target);
7085 if (target)
7086 return target;
7087 break;
7088
7089 default: /* just do library call, if unknown builtin */
7090 break;
7091 }
7092
7093 /* The switch statement above can drop through to cause the function
7094 to be called normally. */
7095 return expand_call (exp, target, ignore);
7096 }
7097
7098 /* Similar to expand_builtin but is used for instrumented calls. */
7099
7100 rtx
7101 expand_builtin_with_bounds (tree exp, rtx target,
7102 rtx subtarget ATTRIBUTE_UNUSED,
7103 machine_mode mode, int ignore)
7104 {
7105 tree fndecl = get_callee_fndecl (exp);
7106 enum built_in_function fcode = DECL_FUNCTION_CODE (fndecl);
7107
7108 gcc_assert (CALL_WITH_BOUNDS_P (exp));
7109
7110 if (DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_MD)
7111 return targetm.expand_builtin (exp, target, subtarget, mode, ignore);
7112
7113 gcc_assert (fcode > BEGIN_CHKP_BUILTINS
7114 && fcode < END_CHKP_BUILTINS);
7115
7116 switch (fcode)
7117 {
7118 case BUILT_IN_CHKP_MEMCPY_NOBND_NOCHK_CHKP:
7119 target = expand_builtin_memcpy_with_bounds (exp, target);
7120 if (target)
7121 return target;
7122 break;
7123
7124 case BUILT_IN_CHKP_MEMPCPY_NOBND_NOCHK_CHKP:
7125 target = expand_builtin_mempcpy_with_bounds (exp, target, mode);
7126 if (target)
7127 return target;
7128 break;
7129
7130 case BUILT_IN_CHKP_MEMSET_NOBND_NOCHK_CHKP:
7131 target = expand_builtin_memset_with_bounds (exp, target, mode);
7132 if (target)
7133 return target;
7134 break;
7135
7136 default:
7137 break;
7138 }
7139
7140 /* The switch statement above can drop through to cause the function
7141 to be called normally. */
7142 return expand_call (exp, target, ignore);
7143 }
7144
7145 /* Determine whether a tree node represents a call to a built-in
7146 function. If the tree T is a call to a built-in function with
7147 the right number of arguments of the appropriate types, return
7148 the DECL_FUNCTION_CODE of the call, e.g. BUILT_IN_SQRT.
7149 Otherwise the return value is END_BUILTINS. */
7150
7151 enum built_in_function
7152 builtin_mathfn_code (const_tree t)
7153 {
7154 const_tree fndecl, arg, parmlist;
7155 const_tree argtype, parmtype;
7156 const_call_expr_arg_iterator iter;
7157
7158 if (TREE_CODE (t) != CALL_EXPR
7159 || TREE_CODE (CALL_EXPR_FN (t)) != ADDR_EXPR)
7160 return END_BUILTINS;
7161
7162 fndecl = get_callee_fndecl (t);
7163 if (fndecl == NULL_TREE
7164 || TREE_CODE (fndecl) != FUNCTION_DECL
7165 || ! DECL_BUILT_IN (fndecl)
7166 || DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_MD)
7167 return END_BUILTINS;
7168
7169 parmlist = TYPE_ARG_TYPES (TREE_TYPE (fndecl));
7170 init_const_call_expr_arg_iterator (t, &iter);
7171 for (; parmlist; parmlist = TREE_CHAIN (parmlist))
7172 {
7173 /* If a function doesn't take a variable number of arguments,
7174 the last element in the list will have type `void'. */
7175 parmtype = TREE_VALUE (parmlist);
7176 if (VOID_TYPE_P (parmtype))
7177 {
7178 if (more_const_call_expr_args_p (&iter))
7179 return END_BUILTINS;
7180 return DECL_FUNCTION_CODE (fndecl);
7181 }
7182
7183 if (! more_const_call_expr_args_p (&iter))
7184 return END_BUILTINS;
7185
7186 arg = next_const_call_expr_arg (&iter);
7187 argtype = TREE_TYPE (arg);
7188
7189 if (SCALAR_FLOAT_TYPE_P (parmtype))
7190 {
7191 if (! SCALAR_FLOAT_TYPE_P (argtype))
7192 return END_BUILTINS;
7193 }
7194 else if (COMPLEX_FLOAT_TYPE_P (parmtype))
7195 {
7196 if (! COMPLEX_FLOAT_TYPE_P (argtype))
7197 return END_BUILTINS;
7198 }
7199 else if (POINTER_TYPE_P (parmtype))
7200 {
7201 if (! POINTER_TYPE_P (argtype))
7202 return END_BUILTINS;
7203 }
7204 else if (INTEGRAL_TYPE_P (parmtype))
7205 {
7206 if (! INTEGRAL_TYPE_P (argtype))
7207 return END_BUILTINS;
7208 }
7209 else
7210 return END_BUILTINS;
7211 }
7212
7213 /* Variable-length argument list. */
7214 return DECL_FUNCTION_CODE (fndecl);
7215 }
7216
7217 /* Fold a call to __builtin_constant_p, if we know its argument ARG will
7218 evaluate to a constant. */
7219
7220 static tree
7221 fold_builtin_constant_p (tree arg)
7222 {
7223 /* We return 1 for a numeric type that's known to be a constant
7224 value at compile-time or for an aggregate type that's a
7225 literal constant. */
7226 STRIP_NOPS (arg);
7227
7228 /* If we know this is a constant, emit the constant of one. */
7229 if (CONSTANT_CLASS_P (arg)
7230 || (TREE_CODE (arg) == CONSTRUCTOR
7231 && TREE_CONSTANT (arg)))
7232 return integer_one_node;
7233 if (TREE_CODE (arg) == ADDR_EXPR)
7234 {
7235 tree op = TREE_OPERAND (arg, 0);
7236 if (TREE_CODE (op) == STRING_CST
7237 || (TREE_CODE (op) == ARRAY_REF
7238 && integer_zerop (TREE_OPERAND (op, 1))
7239 && TREE_CODE (TREE_OPERAND (op, 0)) == STRING_CST))
7240 return integer_one_node;
7241 }
7242
7243 /* If this expression has side effects, show we don't know it to be a
7244 constant. Likewise if it's a pointer or aggregate type since in
7245 those case we only want literals, since those are only optimized
7246 when generating RTL, not later.
7247 And finally, if we are compiling an initializer, not code, we
7248 need to return a definite result now; there's not going to be any
7249 more optimization done. */
7250 if (TREE_SIDE_EFFECTS (arg)
7251 || AGGREGATE_TYPE_P (TREE_TYPE (arg))
7252 || POINTER_TYPE_P (TREE_TYPE (arg))
7253 || cfun == 0
7254 || folding_initializer
7255 || force_folding_builtin_constant_p)
7256 return integer_zero_node;
7257
7258 return NULL_TREE;
7259 }
7260
7261 /* Create builtin_expect with PRED and EXPECTED as its arguments and
7262 return it as a truthvalue. */
7263
7264 static tree
7265 build_builtin_expect_predicate (location_t loc, tree pred, tree expected,
7266 tree predictor)
7267 {
7268 tree fn, arg_types, pred_type, expected_type, call_expr, ret_type;
7269
7270 fn = builtin_decl_explicit (BUILT_IN_EXPECT);
7271 arg_types = TYPE_ARG_TYPES (TREE_TYPE (fn));
7272 ret_type = TREE_TYPE (TREE_TYPE (fn));
7273 pred_type = TREE_VALUE (arg_types);
7274 expected_type = TREE_VALUE (TREE_CHAIN (arg_types));
7275
7276 pred = fold_convert_loc (loc, pred_type, pred);
7277 expected = fold_convert_loc (loc, expected_type, expected);
7278 call_expr = build_call_expr_loc (loc, fn, predictor ? 3 : 2, pred, expected,
7279 predictor);
7280
7281 return build2 (NE_EXPR, TREE_TYPE (pred), call_expr,
7282 build_int_cst (ret_type, 0));
7283 }
7284
7285 /* Fold a call to builtin_expect with arguments ARG0 and ARG1. Return
7286 NULL_TREE if no simplification is possible. */
7287
7288 tree
7289 fold_builtin_expect (location_t loc, tree arg0, tree arg1, tree arg2)
7290 {
7291 tree inner, fndecl, inner_arg0;
7292 enum tree_code code;
7293
7294 /* Distribute the expected value over short-circuiting operators.
7295 See through the cast from truthvalue_type_node to long. */
7296 inner_arg0 = arg0;
7297 while (CONVERT_EXPR_P (inner_arg0)
7298 && INTEGRAL_TYPE_P (TREE_TYPE (inner_arg0))
7299 && INTEGRAL_TYPE_P (TREE_TYPE (TREE_OPERAND (inner_arg0, 0))))
7300 inner_arg0 = TREE_OPERAND (inner_arg0, 0);
7301
7302 /* If this is a builtin_expect within a builtin_expect keep the
7303 inner one. See through a comparison against a constant. It
7304 might have been added to create a thruthvalue. */
7305 inner = inner_arg0;
7306
7307 if (COMPARISON_CLASS_P (inner)
7308 && TREE_CODE (TREE_OPERAND (inner, 1)) == INTEGER_CST)
7309 inner = TREE_OPERAND (inner, 0);
7310
7311 if (TREE_CODE (inner) == CALL_EXPR
7312 && (fndecl = get_callee_fndecl (inner))
7313 && DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_NORMAL
7314 && DECL_FUNCTION_CODE (fndecl) == BUILT_IN_EXPECT)
7315 return arg0;
7316
7317 inner = inner_arg0;
7318 code = TREE_CODE (inner);
7319 if (code == TRUTH_ANDIF_EXPR || code == TRUTH_ORIF_EXPR)
7320 {
7321 tree op0 = TREE_OPERAND (inner, 0);
7322 tree op1 = TREE_OPERAND (inner, 1);
7323
7324 op0 = build_builtin_expect_predicate (loc, op0, arg1, arg2);
7325 op1 = build_builtin_expect_predicate (loc, op1, arg1, arg2);
7326 inner = build2 (code, TREE_TYPE (inner), op0, op1);
7327
7328 return fold_convert_loc (loc, TREE_TYPE (arg0), inner);
7329 }
7330
7331 /* If the argument isn't invariant then there's nothing else we can do. */
7332 if (!TREE_CONSTANT (inner_arg0))
7333 return NULL_TREE;
7334
7335 /* If we expect that a comparison against the argument will fold to
7336 a constant return the constant. In practice, this means a true
7337 constant or the address of a non-weak symbol. */
7338 inner = inner_arg0;
7339 STRIP_NOPS (inner);
7340 if (TREE_CODE (inner) == ADDR_EXPR)
7341 {
7342 do
7343 {
7344 inner = TREE_OPERAND (inner, 0);
7345 }
7346 while (TREE_CODE (inner) == COMPONENT_REF
7347 || TREE_CODE (inner) == ARRAY_REF);
7348 if ((TREE_CODE (inner) == VAR_DECL
7349 || TREE_CODE (inner) == FUNCTION_DECL)
7350 && DECL_WEAK (inner))
7351 return NULL_TREE;
7352 }
7353
7354 /* Otherwise, ARG0 already has the proper type for the return value. */
7355 return arg0;
7356 }
7357
7358 /* Fold a call to __builtin_classify_type with argument ARG. */
7359
7360 static tree
7361 fold_builtin_classify_type (tree arg)
7362 {
7363 if (arg == 0)
7364 return build_int_cst (integer_type_node, no_type_class);
7365
7366 return build_int_cst (integer_type_node, type_to_class (TREE_TYPE (arg)));
7367 }
7368
7369 /* Fold a call to __builtin_strlen with argument ARG. */
7370
7371 static tree
7372 fold_builtin_strlen (location_t loc, tree type, tree arg)
7373 {
7374 if (!validate_arg (arg, POINTER_TYPE))
7375 return NULL_TREE;
7376 else
7377 {
7378 tree len = c_strlen (arg, 0);
7379
7380 if (len)
7381 return fold_convert_loc (loc, type, len);
7382
7383 return NULL_TREE;
7384 }
7385 }
7386
7387 /* Fold a call to __builtin_inf or __builtin_huge_val. */
7388
7389 static tree
7390 fold_builtin_inf (location_t loc, tree type, int warn)
7391 {
7392 REAL_VALUE_TYPE real;
7393
7394 /* __builtin_inff is intended to be usable to define INFINITY on all
7395 targets. If an infinity is not available, INFINITY expands "to a
7396 positive constant of type float that overflows at translation
7397 time", footnote "In this case, using INFINITY will violate the
7398 constraint in 6.4.4 and thus require a diagnostic." (C99 7.12#4).
7399 Thus we pedwarn to ensure this constraint violation is
7400 diagnosed. */
7401 if (!MODE_HAS_INFINITIES (TYPE_MODE (type)) && warn)
7402 pedwarn (loc, 0, "target format does not support infinity");
7403
7404 real_inf (&real);
7405 return build_real (type, real);
7406 }
7407
7408 /* Fold a call to __builtin_nan or __builtin_nans with argument ARG. */
7409
7410 static tree
7411 fold_builtin_nan (tree arg, tree type, int quiet)
7412 {
7413 REAL_VALUE_TYPE real;
7414 const char *str;
7415
7416 if (!validate_arg (arg, POINTER_TYPE))
7417 return NULL_TREE;
7418 str = c_getstr (arg);
7419 if (!str)
7420 return NULL_TREE;
7421
7422 if (!real_nan (&real, str, quiet, TYPE_MODE (type)))
7423 return NULL_TREE;
7424
7425 return build_real (type, real);
7426 }
7427
7428 /* Return true if the floating point expression T has an integer value.
7429 We also allow +Inf, -Inf and NaN to be considered integer values. */
7430
7431 static bool
7432 integer_valued_real_p (tree t)
7433 {
7434 switch (TREE_CODE (t))
7435 {
7436 case FLOAT_EXPR:
7437 return true;
7438
7439 case ABS_EXPR:
7440 case SAVE_EXPR:
7441 return integer_valued_real_p (TREE_OPERAND (t, 0));
7442
7443 case COMPOUND_EXPR:
7444 case MODIFY_EXPR:
7445 case BIND_EXPR:
7446 return integer_valued_real_p (TREE_OPERAND (t, 1));
7447
7448 case PLUS_EXPR:
7449 case MINUS_EXPR:
7450 case MULT_EXPR:
7451 case MIN_EXPR:
7452 case MAX_EXPR:
7453 return integer_valued_real_p (TREE_OPERAND (t, 0))
7454 && integer_valued_real_p (TREE_OPERAND (t, 1));
7455
7456 case COND_EXPR:
7457 return integer_valued_real_p (TREE_OPERAND (t, 1))
7458 && integer_valued_real_p (TREE_OPERAND (t, 2));
7459
7460 case REAL_CST:
7461 return real_isinteger (TREE_REAL_CST_PTR (t), TYPE_MODE (TREE_TYPE (t)));
7462
7463 CASE_CONVERT:
7464 {
7465 tree type = TREE_TYPE (TREE_OPERAND (t, 0));
7466 if (TREE_CODE (type) == INTEGER_TYPE)
7467 return true;
7468 if (TREE_CODE (type) == REAL_TYPE)
7469 return integer_valued_real_p (TREE_OPERAND (t, 0));
7470 break;
7471 }
7472
7473 case CALL_EXPR:
7474 switch (builtin_mathfn_code (t))
7475 {
7476 CASE_FLT_FN (BUILT_IN_CEIL):
7477 CASE_FLT_FN (BUILT_IN_FLOOR):
7478 CASE_FLT_FN (BUILT_IN_NEARBYINT):
7479 CASE_FLT_FN (BUILT_IN_RINT):
7480 CASE_FLT_FN (BUILT_IN_ROUND):
7481 CASE_FLT_FN (BUILT_IN_TRUNC):
7482 return true;
7483
7484 CASE_FLT_FN (BUILT_IN_FMIN):
7485 CASE_FLT_FN (BUILT_IN_FMAX):
7486 return integer_valued_real_p (CALL_EXPR_ARG (t, 0))
7487 && integer_valued_real_p (CALL_EXPR_ARG (t, 1));
7488
7489 default:
7490 break;
7491 }
7492 break;
7493
7494 default:
7495 break;
7496 }
7497 return false;
7498 }
7499
7500 /* FNDECL is assumed to be a builtin where truncation can be propagated
7501 across (for instance floor((double)f) == (double)floorf (f).
7502 Do the transformation for a call with argument ARG. */
7503
7504 static tree
7505 fold_trunc_transparent_mathfn (location_t loc, tree fndecl, tree arg)
7506 {
7507 enum built_in_function fcode = DECL_FUNCTION_CODE (fndecl);
7508
7509 if (!validate_arg (arg, REAL_TYPE))
7510 return NULL_TREE;
7511
7512 /* Integer rounding functions are idempotent. */
7513 if (fcode == builtin_mathfn_code (arg))
7514 return arg;
7515
7516 /* If argument is already integer valued, and we don't need to worry
7517 about setting errno, there's no need to perform rounding. */
7518 if (! flag_errno_math && integer_valued_real_p (arg))
7519 return arg;
7520
7521 if (optimize)
7522 {
7523 tree arg0 = strip_float_extensions (arg);
7524 tree ftype = TREE_TYPE (TREE_TYPE (fndecl));
7525 tree newtype = TREE_TYPE (arg0);
7526 tree decl;
7527
7528 if (TYPE_PRECISION (newtype) < TYPE_PRECISION (ftype)
7529 && (decl = mathfn_built_in (newtype, fcode)))
7530 return fold_convert_loc (loc, ftype,
7531 build_call_expr_loc (loc, decl, 1,
7532 fold_convert_loc (loc,
7533 newtype,
7534 arg0)));
7535 }
7536 return NULL_TREE;
7537 }
7538
7539 /* FNDECL is assumed to be builtin which can narrow the FP type of
7540 the argument, for instance lround((double)f) -> lroundf (f).
7541 Do the transformation for a call with argument ARG. */
7542
7543 static tree
7544 fold_fixed_mathfn (location_t loc, tree fndecl, tree arg)
7545 {
7546 enum built_in_function fcode = DECL_FUNCTION_CODE (fndecl);
7547
7548 if (!validate_arg (arg, REAL_TYPE))
7549 return NULL_TREE;
7550
7551 /* If argument is already integer valued, and we don't need to worry
7552 about setting errno, there's no need to perform rounding. */
7553 if (! flag_errno_math && integer_valued_real_p (arg))
7554 return fold_build1_loc (loc, FIX_TRUNC_EXPR,
7555 TREE_TYPE (TREE_TYPE (fndecl)), arg);
7556
7557 if (optimize)
7558 {
7559 tree ftype = TREE_TYPE (arg);
7560 tree arg0 = strip_float_extensions (arg);
7561 tree newtype = TREE_TYPE (arg0);
7562 tree decl;
7563
7564 if (TYPE_PRECISION (newtype) < TYPE_PRECISION (ftype)
7565 && (decl = mathfn_built_in (newtype, fcode)))
7566 return build_call_expr_loc (loc, decl, 1,
7567 fold_convert_loc (loc, newtype, arg0));
7568 }
7569
7570 /* Canonicalize iround (x) to lround (x) on ILP32 targets where
7571 sizeof (int) == sizeof (long). */
7572 if (TYPE_PRECISION (integer_type_node)
7573 == TYPE_PRECISION (long_integer_type_node))
7574 {
7575 tree newfn = NULL_TREE;
7576 switch (fcode)
7577 {
7578 CASE_FLT_FN (BUILT_IN_ICEIL):
7579 newfn = mathfn_built_in (TREE_TYPE (arg), BUILT_IN_LCEIL);
7580 break;
7581
7582 CASE_FLT_FN (BUILT_IN_IFLOOR):
7583 newfn = mathfn_built_in (TREE_TYPE (arg), BUILT_IN_LFLOOR);
7584 break;
7585
7586 CASE_FLT_FN (BUILT_IN_IROUND):
7587 newfn = mathfn_built_in (TREE_TYPE (arg), BUILT_IN_LROUND);
7588 break;
7589
7590 CASE_FLT_FN (BUILT_IN_IRINT):
7591 newfn = mathfn_built_in (TREE_TYPE (arg), BUILT_IN_LRINT);
7592 break;
7593
7594 default:
7595 break;
7596 }
7597
7598 if (newfn)
7599 {
7600 tree newcall = build_call_expr_loc (loc, newfn, 1, arg);
7601 return fold_convert_loc (loc,
7602 TREE_TYPE (TREE_TYPE (fndecl)), newcall);
7603 }
7604 }
7605
7606 /* Canonicalize llround (x) to lround (x) on LP64 targets where
7607 sizeof (long long) == sizeof (long). */
7608 if (TYPE_PRECISION (long_long_integer_type_node)
7609 == TYPE_PRECISION (long_integer_type_node))
7610 {
7611 tree newfn = NULL_TREE;
7612 switch (fcode)
7613 {
7614 CASE_FLT_FN (BUILT_IN_LLCEIL):
7615 newfn = mathfn_built_in (TREE_TYPE (arg), BUILT_IN_LCEIL);
7616 break;
7617
7618 CASE_FLT_FN (BUILT_IN_LLFLOOR):
7619 newfn = mathfn_built_in (TREE_TYPE (arg), BUILT_IN_LFLOOR);
7620 break;
7621
7622 CASE_FLT_FN (BUILT_IN_LLROUND):
7623 newfn = mathfn_built_in (TREE_TYPE (arg), BUILT_IN_LROUND);
7624 break;
7625
7626 CASE_FLT_FN (BUILT_IN_LLRINT):
7627 newfn = mathfn_built_in (TREE_TYPE (arg), BUILT_IN_LRINT);
7628 break;
7629
7630 default:
7631 break;
7632 }
7633
7634 if (newfn)
7635 {
7636 tree newcall = build_call_expr_loc (loc, newfn, 1, arg);
7637 return fold_convert_loc (loc,
7638 TREE_TYPE (TREE_TYPE (fndecl)), newcall);
7639 }
7640 }
7641
7642 return NULL_TREE;
7643 }
7644
7645 /* Fold call to builtin cabs, cabsf or cabsl with argument ARG. TYPE is the
7646 return type. Return NULL_TREE if no simplification can be made. */
7647
7648 static tree
7649 fold_builtin_cabs (location_t loc, tree arg, tree type, tree fndecl)
7650 {
7651 tree res;
7652
7653 if (!validate_arg (arg, COMPLEX_TYPE)
7654 || TREE_CODE (TREE_TYPE (TREE_TYPE (arg))) != REAL_TYPE)
7655 return NULL_TREE;
7656
7657 /* Calculate the result when the argument is a constant. */
7658 if (TREE_CODE (arg) == COMPLEX_CST
7659 && (res = do_mpfr_arg2 (TREE_REALPART (arg), TREE_IMAGPART (arg),
7660 type, mpfr_hypot)))
7661 return res;
7662
7663 if (TREE_CODE (arg) == COMPLEX_EXPR)
7664 {
7665 tree real = TREE_OPERAND (arg, 0);
7666 tree imag = TREE_OPERAND (arg, 1);
7667
7668 /* If either part is zero, cabs is fabs of the other. */
7669 if (real_zerop (real))
7670 return fold_build1_loc (loc, ABS_EXPR, type, imag);
7671 if (real_zerop (imag))
7672 return fold_build1_loc (loc, ABS_EXPR, type, real);
7673
7674 /* cabs(x+xi) -> fabs(x)*sqrt(2). */
7675 if (flag_unsafe_math_optimizations
7676 && operand_equal_p (real, imag, OEP_PURE_SAME))
7677 {
7678 const REAL_VALUE_TYPE sqrt2_trunc
7679 = real_value_truncate (TYPE_MODE (type), dconst_sqrt2 ());
7680 STRIP_NOPS (real);
7681 return fold_build2_loc (loc, MULT_EXPR, type,
7682 fold_build1_loc (loc, ABS_EXPR, type, real),
7683 build_real (type, sqrt2_trunc));
7684 }
7685 }
7686
7687 /* Optimize cabs(-z) and cabs(conj(z)) as cabs(z). */
7688 if (TREE_CODE (arg) == NEGATE_EXPR
7689 || TREE_CODE (arg) == CONJ_EXPR)
7690 return build_call_expr_loc (loc, fndecl, 1, TREE_OPERAND (arg, 0));
7691
7692 /* Don't do this when optimizing for size. */
7693 if (flag_unsafe_math_optimizations
7694 && optimize && optimize_function_for_speed_p (cfun))
7695 {
7696 tree sqrtfn = mathfn_built_in (type, BUILT_IN_SQRT);
7697
7698 if (sqrtfn != NULL_TREE)
7699 {
7700 tree rpart, ipart, result;
7701
7702 arg = builtin_save_expr (arg);
7703
7704 rpart = fold_build1_loc (loc, REALPART_EXPR, type, arg);
7705 ipart = fold_build1_loc (loc, IMAGPART_EXPR, type, arg);
7706
7707 rpart = builtin_save_expr (rpart);
7708 ipart = builtin_save_expr (ipart);
7709
7710 result = fold_build2_loc (loc, PLUS_EXPR, type,
7711 fold_build2_loc (loc, MULT_EXPR, type,
7712 rpart, rpart),
7713 fold_build2_loc (loc, MULT_EXPR, type,
7714 ipart, ipart));
7715
7716 return build_call_expr_loc (loc, sqrtfn, 1, result);
7717 }
7718 }
7719
7720 return NULL_TREE;
7721 }
7722
7723 /* Build a complex (inf +- 0i) for the result of cproj. TYPE is the
7724 complex tree type of the result. If NEG is true, the imaginary
7725 zero is negative. */
7726
7727 static tree
7728 build_complex_cproj (tree type, bool neg)
7729 {
7730 REAL_VALUE_TYPE rinf, rzero = dconst0;
7731
7732 real_inf (&rinf);
7733 rzero.sign = neg;
7734 return build_complex (type, build_real (TREE_TYPE (type), rinf),
7735 build_real (TREE_TYPE (type), rzero));
7736 }
7737
7738 /* Fold call to builtin cproj, cprojf or cprojl with argument ARG. TYPE is the
7739 return type. Return NULL_TREE if no simplification can be made. */
7740
7741 static tree
7742 fold_builtin_cproj (location_t loc, tree arg, tree type)
7743 {
7744 if (!validate_arg (arg, COMPLEX_TYPE)
7745 || TREE_CODE (TREE_TYPE (TREE_TYPE (arg))) != REAL_TYPE)
7746 return NULL_TREE;
7747
7748 /* If there are no infinities, return arg. */
7749 if (! HONOR_INFINITIES (type))
7750 return non_lvalue_loc (loc, arg);
7751
7752 /* Calculate the result when the argument is a constant. */
7753 if (TREE_CODE (arg) == COMPLEX_CST)
7754 {
7755 const REAL_VALUE_TYPE *real = TREE_REAL_CST_PTR (TREE_REALPART (arg));
7756 const REAL_VALUE_TYPE *imag = TREE_REAL_CST_PTR (TREE_IMAGPART (arg));
7757
7758 if (real_isinf (real) || real_isinf (imag))
7759 return build_complex_cproj (type, imag->sign);
7760 else
7761 return arg;
7762 }
7763 else if (TREE_CODE (arg) == COMPLEX_EXPR)
7764 {
7765 tree real = TREE_OPERAND (arg, 0);
7766 tree imag = TREE_OPERAND (arg, 1);
7767
7768 STRIP_NOPS (real);
7769 STRIP_NOPS (imag);
7770
7771 /* If the real part is inf and the imag part is known to be
7772 nonnegative, return (inf + 0i). Remember side-effects are
7773 possible in the imag part. */
7774 if (TREE_CODE (real) == REAL_CST
7775 && real_isinf (TREE_REAL_CST_PTR (real))
7776 && tree_expr_nonnegative_p (imag))
7777 return omit_one_operand_loc (loc, type,
7778 build_complex_cproj (type, false),
7779 arg);
7780
7781 /* If the imag part is inf, return (inf+I*copysign(0,imag)).
7782 Remember side-effects are possible in the real part. */
7783 if (TREE_CODE (imag) == REAL_CST
7784 && real_isinf (TREE_REAL_CST_PTR (imag)))
7785 return
7786 omit_one_operand_loc (loc, type,
7787 build_complex_cproj (type, TREE_REAL_CST_PTR
7788 (imag)->sign), arg);
7789 }
7790
7791 return NULL_TREE;
7792 }
7793
7794 /* Fold a builtin function call to sqrt, sqrtf, or sqrtl with argument ARG.
7795 Return NULL_TREE if no simplification can be made. */
7796
7797 static tree
7798 fold_builtin_sqrt (location_t loc, tree arg, tree type)
7799 {
7800
7801 enum built_in_function fcode;
7802 tree res;
7803
7804 if (!validate_arg (arg, REAL_TYPE))
7805 return NULL_TREE;
7806
7807 /* Calculate the result when the argument is a constant. */
7808 if ((res = do_mpfr_arg1 (arg, type, mpfr_sqrt, &dconst0, NULL, true)))
7809 return res;
7810
7811 /* Optimize sqrt(expN(x)) = expN(x*0.5). */
7812 fcode = builtin_mathfn_code (arg);
7813 if (flag_unsafe_math_optimizations && BUILTIN_EXPONENT_P (fcode))
7814 {
7815 tree expfn = TREE_OPERAND (CALL_EXPR_FN (arg), 0);
7816 arg = fold_build2_loc (loc, MULT_EXPR, type,
7817 CALL_EXPR_ARG (arg, 0),
7818 build_real (type, dconsthalf));
7819 return build_call_expr_loc (loc, expfn, 1, arg);
7820 }
7821
7822 /* Optimize sqrt(Nroot(x)) -> pow(x,1/(2*N)). */
7823 if (flag_unsafe_math_optimizations && BUILTIN_ROOT_P (fcode))
7824 {
7825 tree powfn = mathfn_built_in (type, BUILT_IN_POW);
7826
7827 if (powfn)
7828 {
7829 tree arg0 = CALL_EXPR_ARG (arg, 0);
7830 tree tree_root;
7831 /* The inner root was either sqrt or cbrt. */
7832 /* This was a conditional expression but it triggered a bug
7833 in Sun C 5.5. */
7834 REAL_VALUE_TYPE dconstroot;
7835 if (BUILTIN_SQRT_P (fcode))
7836 dconstroot = dconsthalf;
7837 else
7838 dconstroot = dconst_third ();
7839
7840 /* Adjust for the outer root. */
7841 SET_REAL_EXP (&dconstroot, REAL_EXP (&dconstroot) - 1);
7842 dconstroot = real_value_truncate (TYPE_MODE (type), dconstroot);
7843 tree_root = build_real (type, dconstroot);
7844 return build_call_expr_loc (loc, powfn, 2, arg0, tree_root);
7845 }
7846 }
7847
7848 /* Optimize sqrt(pow(x,y)) = pow(|x|,y*0.5). */
7849 if (flag_unsafe_math_optimizations
7850 && (fcode == BUILT_IN_POW
7851 || fcode == BUILT_IN_POWF
7852 || fcode == BUILT_IN_POWL))
7853 {
7854 tree powfn = TREE_OPERAND (CALL_EXPR_FN (arg), 0);
7855 tree arg0 = CALL_EXPR_ARG (arg, 0);
7856 tree arg1 = CALL_EXPR_ARG (arg, 1);
7857 tree narg1;
7858 if (!tree_expr_nonnegative_p (arg0))
7859 arg0 = build1 (ABS_EXPR, type, arg0);
7860 narg1 = fold_build2_loc (loc, MULT_EXPR, type, arg1,
7861 build_real (type, dconsthalf));
7862 return build_call_expr_loc (loc, powfn, 2, arg0, narg1);
7863 }
7864
7865 return NULL_TREE;
7866 }
7867
7868 /* Fold a builtin function call to cbrt, cbrtf, or cbrtl with argument ARG.
7869 Return NULL_TREE if no simplification can be made. */
7870
7871 static tree
7872 fold_builtin_cbrt (location_t loc, tree arg, tree type)
7873 {
7874 const enum built_in_function fcode = builtin_mathfn_code (arg);
7875 tree res;
7876
7877 if (!validate_arg (arg, REAL_TYPE))
7878 return NULL_TREE;
7879
7880 /* Calculate the result when the argument is a constant. */
7881 if ((res = do_mpfr_arg1 (arg, type, mpfr_cbrt, NULL, NULL, 0)))
7882 return res;
7883
7884 if (flag_unsafe_math_optimizations)
7885 {
7886 /* Optimize cbrt(expN(x)) -> expN(x/3). */
7887 if (BUILTIN_EXPONENT_P (fcode))
7888 {
7889 tree expfn = TREE_OPERAND (CALL_EXPR_FN (arg), 0);
7890 const REAL_VALUE_TYPE third_trunc =
7891 real_value_truncate (TYPE_MODE (type), dconst_third ());
7892 arg = fold_build2_loc (loc, MULT_EXPR, type,
7893 CALL_EXPR_ARG (arg, 0),
7894 build_real (type, third_trunc));
7895 return build_call_expr_loc (loc, expfn, 1, arg);
7896 }
7897
7898 /* Optimize cbrt(sqrt(x)) -> pow(x,1/6). */
7899 if (BUILTIN_SQRT_P (fcode))
7900 {
7901 tree powfn = mathfn_built_in (type, BUILT_IN_POW);
7902
7903 if (powfn)
7904 {
7905 tree arg0 = CALL_EXPR_ARG (arg, 0);
7906 tree tree_root;
7907 REAL_VALUE_TYPE dconstroot = dconst_third ();
7908
7909 SET_REAL_EXP (&dconstroot, REAL_EXP (&dconstroot) - 1);
7910 dconstroot = real_value_truncate (TYPE_MODE (type), dconstroot);
7911 tree_root = build_real (type, dconstroot);
7912 return build_call_expr_loc (loc, powfn, 2, arg0, tree_root);
7913 }
7914 }
7915
7916 /* Optimize cbrt(cbrt(x)) -> pow(x,1/9) iff x is nonnegative. */
7917 if (BUILTIN_CBRT_P (fcode))
7918 {
7919 tree arg0 = CALL_EXPR_ARG (arg, 0);
7920 if (tree_expr_nonnegative_p (arg0))
7921 {
7922 tree powfn = mathfn_built_in (type, BUILT_IN_POW);
7923
7924 if (powfn)
7925 {
7926 tree tree_root;
7927 REAL_VALUE_TYPE dconstroot;
7928
7929 real_arithmetic (&dconstroot, MULT_EXPR,
7930 dconst_third_ptr (), dconst_third_ptr ());
7931 dconstroot = real_value_truncate (TYPE_MODE (type), dconstroot);
7932 tree_root = build_real (type, dconstroot);
7933 return build_call_expr_loc (loc, powfn, 2, arg0, tree_root);
7934 }
7935 }
7936 }
7937
7938 /* Optimize cbrt(pow(x,y)) -> pow(x,y/3) iff x is nonnegative. */
7939 if (fcode == BUILT_IN_POW
7940 || fcode == BUILT_IN_POWF
7941 || fcode == BUILT_IN_POWL)
7942 {
7943 tree arg00 = CALL_EXPR_ARG (arg, 0);
7944 tree arg01 = CALL_EXPR_ARG (arg, 1);
7945 if (tree_expr_nonnegative_p (arg00))
7946 {
7947 tree powfn = TREE_OPERAND (CALL_EXPR_FN (arg), 0);
7948 const REAL_VALUE_TYPE dconstroot
7949 = real_value_truncate (TYPE_MODE (type), dconst_third ());
7950 tree narg01 = fold_build2_loc (loc, MULT_EXPR, type, arg01,
7951 build_real (type, dconstroot));
7952 return build_call_expr_loc (loc, powfn, 2, arg00, narg01);
7953 }
7954 }
7955 }
7956 return NULL_TREE;
7957 }
7958
7959 /* Fold function call to builtin cos, cosf, or cosl with argument ARG.
7960 TYPE is the type of the return value. Return NULL_TREE if no
7961 simplification can be made. */
7962
7963 static tree
7964 fold_builtin_cos (location_t loc,
7965 tree arg, tree type, tree fndecl)
7966 {
7967 tree res, narg;
7968
7969 if (!validate_arg (arg, REAL_TYPE))
7970 return NULL_TREE;
7971
7972 /* Calculate the result when the argument is a constant. */
7973 if ((res = do_mpfr_arg1 (arg, type, mpfr_cos, NULL, NULL, 0)))
7974 return res;
7975
7976 /* Optimize cos(-x) into cos (x). */
7977 if ((narg = fold_strip_sign_ops (arg)))
7978 return build_call_expr_loc (loc, fndecl, 1, narg);
7979
7980 return NULL_TREE;
7981 }
7982
7983 /* Fold function call to builtin cosh, coshf, or coshl with argument ARG.
7984 Return NULL_TREE if no simplification can be made. */
7985
7986 static tree
7987 fold_builtin_cosh (location_t loc, tree arg, tree type, tree fndecl)
7988 {
7989 if (validate_arg (arg, REAL_TYPE))
7990 {
7991 tree res, narg;
7992
7993 /* Calculate the result when the argument is a constant. */
7994 if ((res = do_mpfr_arg1 (arg, type, mpfr_cosh, NULL, NULL, 0)))
7995 return res;
7996
7997 /* Optimize cosh(-x) into cosh (x). */
7998 if ((narg = fold_strip_sign_ops (arg)))
7999 return build_call_expr_loc (loc, fndecl, 1, narg);
8000 }
8001
8002 return NULL_TREE;
8003 }
8004
8005 /* Fold function call to builtin ccos (or ccosh if HYPER is TRUE) with
8006 argument ARG. TYPE is the type of the return value. Return
8007 NULL_TREE if no simplification can be made. */
8008
8009 static tree
8010 fold_builtin_ccos (location_t loc, tree arg, tree type, tree fndecl,
8011 bool hyper)
8012 {
8013 if (validate_arg (arg, COMPLEX_TYPE)
8014 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg))) == REAL_TYPE)
8015 {
8016 tree tmp;
8017
8018 /* Calculate the result when the argument is a constant. */
8019 if ((tmp = do_mpc_arg1 (arg, type, (hyper ? mpc_cosh : mpc_cos))))
8020 return tmp;
8021
8022 /* Optimize fn(-x) into fn(x). */
8023 if ((tmp = fold_strip_sign_ops (arg)))
8024 return build_call_expr_loc (loc, fndecl, 1, tmp);
8025 }
8026
8027 return NULL_TREE;
8028 }
8029
8030 /* Fold function call to builtin tan, tanf, or tanl with argument ARG.
8031 Return NULL_TREE if no simplification can be made. */
8032
8033 static tree
8034 fold_builtin_tan (tree arg, tree type)
8035 {
8036 enum built_in_function fcode;
8037 tree res;
8038
8039 if (!validate_arg (arg, REAL_TYPE))
8040 return NULL_TREE;
8041
8042 /* Calculate the result when the argument is a constant. */
8043 if ((res = do_mpfr_arg1 (arg, type, mpfr_tan, NULL, NULL, 0)))
8044 return res;
8045
8046 /* Optimize tan(atan(x)) = x. */
8047 fcode = builtin_mathfn_code (arg);
8048 if (flag_unsafe_math_optimizations
8049 && (fcode == BUILT_IN_ATAN
8050 || fcode == BUILT_IN_ATANF
8051 || fcode == BUILT_IN_ATANL))
8052 return CALL_EXPR_ARG (arg, 0);
8053
8054 return NULL_TREE;
8055 }
8056
8057 /* Fold function call to builtin sincos, sincosf, or sincosl. Return
8058 NULL_TREE if no simplification can be made. */
8059
8060 static tree
8061 fold_builtin_sincos (location_t loc,
8062 tree arg0, tree arg1, tree arg2)
8063 {
8064 tree type;
8065 tree res, fn, call;
8066
8067 if (!validate_arg (arg0, REAL_TYPE)
8068 || !validate_arg (arg1, POINTER_TYPE)
8069 || !validate_arg (arg2, POINTER_TYPE))
8070 return NULL_TREE;
8071
8072 type = TREE_TYPE (arg0);
8073
8074 /* Calculate the result when the argument is a constant. */
8075 if ((res = do_mpfr_sincos (arg0, arg1, arg2)))
8076 return res;
8077
8078 /* Canonicalize sincos to cexpi. */
8079 if (!targetm.libc_has_function (function_c99_math_complex))
8080 return NULL_TREE;
8081 fn = mathfn_built_in (type, BUILT_IN_CEXPI);
8082 if (!fn)
8083 return NULL_TREE;
8084
8085 call = build_call_expr_loc (loc, fn, 1, arg0);
8086 call = builtin_save_expr (call);
8087
8088 return build2 (COMPOUND_EXPR, void_type_node,
8089 build2 (MODIFY_EXPR, void_type_node,
8090 build_fold_indirect_ref_loc (loc, arg1),
8091 build1 (IMAGPART_EXPR, type, call)),
8092 build2 (MODIFY_EXPR, void_type_node,
8093 build_fold_indirect_ref_loc (loc, arg2),
8094 build1 (REALPART_EXPR, type, call)));
8095 }
8096
8097 /* Fold function call to builtin cexp, cexpf, or cexpl. Return
8098 NULL_TREE if no simplification can be made. */
8099
8100 static tree
8101 fold_builtin_cexp (location_t loc, tree arg0, tree type)
8102 {
8103 tree rtype;
8104 tree realp, imagp, ifn;
8105 tree res;
8106
8107 if (!validate_arg (arg0, COMPLEX_TYPE)
8108 || TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) != REAL_TYPE)
8109 return NULL_TREE;
8110
8111 /* Calculate the result when the argument is a constant. */
8112 if ((res = do_mpc_arg1 (arg0, type, mpc_exp)))
8113 return res;
8114
8115 rtype = TREE_TYPE (TREE_TYPE (arg0));
8116
8117 /* In case we can figure out the real part of arg0 and it is constant zero
8118 fold to cexpi. */
8119 if (!targetm.libc_has_function (function_c99_math_complex))
8120 return NULL_TREE;
8121 ifn = mathfn_built_in (rtype, BUILT_IN_CEXPI);
8122 if (!ifn)
8123 return NULL_TREE;
8124
8125 if ((realp = fold_unary_loc (loc, REALPART_EXPR, rtype, arg0))
8126 && real_zerop (realp))
8127 {
8128 tree narg = fold_build1_loc (loc, IMAGPART_EXPR, rtype, arg0);
8129 return build_call_expr_loc (loc, ifn, 1, narg);
8130 }
8131
8132 /* In case we can easily decompose real and imaginary parts split cexp
8133 to exp (r) * cexpi (i). */
8134 if (flag_unsafe_math_optimizations
8135 && realp)
8136 {
8137 tree rfn, rcall, icall;
8138
8139 rfn = mathfn_built_in (rtype, BUILT_IN_EXP);
8140 if (!rfn)
8141 return NULL_TREE;
8142
8143 imagp = fold_unary_loc (loc, IMAGPART_EXPR, rtype, arg0);
8144 if (!imagp)
8145 return NULL_TREE;
8146
8147 icall = build_call_expr_loc (loc, ifn, 1, imagp);
8148 icall = builtin_save_expr (icall);
8149 rcall = build_call_expr_loc (loc, rfn, 1, realp);
8150 rcall = builtin_save_expr (rcall);
8151 return fold_build2_loc (loc, COMPLEX_EXPR, type,
8152 fold_build2_loc (loc, MULT_EXPR, rtype,
8153 rcall,
8154 fold_build1_loc (loc, REALPART_EXPR,
8155 rtype, icall)),
8156 fold_build2_loc (loc, MULT_EXPR, rtype,
8157 rcall,
8158 fold_build1_loc (loc, IMAGPART_EXPR,
8159 rtype, icall)));
8160 }
8161
8162 return NULL_TREE;
8163 }
8164
8165 /* Fold function call to builtin trunc, truncf or truncl with argument ARG.
8166 Return NULL_TREE if no simplification can be made. */
8167
8168 static tree
8169 fold_builtin_trunc (location_t loc, tree fndecl, tree arg)
8170 {
8171 if (!validate_arg (arg, REAL_TYPE))
8172 return NULL_TREE;
8173
8174 /* Optimize trunc of constant value. */
8175 if (TREE_CODE (arg) == REAL_CST && !TREE_OVERFLOW (arg))
8176 {
8177 REAL_VALUE_TYPE r, x;
8178 tree type = TREE_TYPE (TREE_TYPE (fndecl));
8179
8180 x = TREE_REAL_CST (arg);
8181 real_trunc (&r, TYPE_MODE (type), &x);
8182 return build_real (type, r);
8183 }
8184
8185 return fold_trunc_transparent_mathfn (loc, fndecl, arg);
8186 }
8187
8188 /* Fold function call to builtin floor, floorf or floorl with argument ARG.
8189 Return NULL_TREE if no simplification can be made. */
8190
8191 static tree
8192 fold_builtin_floor (location_t loc, tree fndecl, tree arg)
8193 {
8194 if (!validate_arg (arg, REAL_TYPE))
8195 return NULL_TREE;
8196
8197 /* Optimize floor of constant value. */
8198 if (TREE_CODE (arg) == REAL_CST && !TREE_OVERFLOW (arg))
8199 {
8200 REAL_VALUE_TYPE x;
8201
8202 x = TREE_REAL_CST (arg);
8203 if (! REAL_VALUE_ISNAN (x) || ! flag_errno_math)
8204 {
8205 tree type = TREE_TYPE (TREE_TYPE (fndecl));
8206 REAL_VALUE_TYPE r;
8207
8208 real_floor (&r, TYPE_MODE (type), &x);
8209 return build_real (type, r);
8210 }
8211 }
8212
8213 /* Fold floor (x) where x is nonnegative to trunc (x). */
8214 if (tree_expr_nonnegative_p (arg))
8215 {
8216 tree truncfn = mathfn_built_in (TREE_TYPE (arg), BUILT_IN_TRUNC);
8217 if (truncfn)
8218 return build_call_expr_loc (loc, truncfn, 1, arg);
8219 }
8220
8221 return fold_trunc_transparent_mathfn (loc, fndecl, arg);
8222 }
8223
8224 /* Fold function call to builtin ceil, ceilf or ceill with argument ARG.
8225 Return NULL_TREE if no simplification can be made. */
8226
8227 static tree
8228 fold_builtin_ceil (location_t loc, tree fndecl, tree arg)
8229 {
8230 if (!validate_arg (arg, REAL_TYPE))
8231 return NULL_TREE;
8232
8233 /* Optimize ceil of constant value. */
8234 if (TREE_CODE (arg) == REAL_CST && !TREE_OVERFLOW (arg))
8235 {
8236 REAL_VALUE_TYPE x;
8237
8238 x = TREE_REAL_CST (arg);
8239 if (! REAL_VALUE_ISNAN (x) || ! flag_errno_math)
8240 {
8241 tree type = TREE_TYPE (TREE_TYPE (fndecl));
8242 REAL_VALUE_TYPE r;
8243
8244 real_ceil (&r, TYPE_MODE (type), &x);
8245 return build_real (type, r);
8246 }
8247 }
8248
8249 return fold_trunc_transparent_mathfn (loc, fndecl, arg);
8250 }
8251
8252 /* Fold function call to builtin round, roundf or roundl with argument ARG.
8253 Return NULL_TREE if no simplification can be made. */
8254
8255 static tree
8256 fold_builtin_round (location_t loc, tree fndecl, tree arg)
8257 {
8258 if (!validate_arg (arg, REAL_TYPE))
8259 return NULL_TREE;
8260
8261 /* Optimize round of constant value. */
8262 if (TREE_CODE (arg) == REAL_CST && !TREE_OVERFLOW (arg))
8263 {
8264 REAL_VALUE_TYPE x;
8265
8266 x = TREE_REAL_CST (arg);
8267 if (! REAL_VALUE_ISNAN (x) || ! flag_errno_math)
8268 {
8269 tree type = TREE_TYPE (TREE_TYPE (fndecl));
8270 REAL_VALUE_TYPE r;
8271
8272 real_round (&r, TYPE_MODE (type), &x);
8273 return build_real (type, r);
8274 }
8275 }
8276
8277 return fold_trunc_transparent_mathfn (loc, fndecl, arg);
8278 }
8279
8280 /* Fold function call to builtin lround, lroundf or lroundl (or the
8281 corresponding long long versions) and other rounding functions. ARG
8282 is the argument to the call. Return NULL_TREE if no simplification
8283 can be made. */
8284
8285 static tree
8286 fold_builtin_int_roundingfn (location_t loc, tree fndecl, tree arg)
8287 {
8288 if (!validate_arg (arg, REAL_TYPE))
8289 return NULL_TREE;
8290
8291 /* Optimize lround of constant value. */
8292 if (TREE_CODE (arg) == REAL_CST && !TREE_OVERFLOW (arg))
8293 {
8294 const REAL_VALUE_TYPE x = TREE_REAL_CST (arg);
8295
8296 if (real_isfinite (&x))
8297 {
8298 tree itype = TREE_TYPE (TREE_TYPE (fndecl));
8299 tree ftype = TREE_TYPE (arg);
8300 REAL_VALUE_TYPE r;
8301 bool fail = false;
8302
8303 switch (DECL_FUNCTION_CODE (fndecl))
8304 {
8305 CASE_FLT_FN (BUILT_IN_IFLOOR):
8306 CASE_FLT_FN (BUILT_IN_LFLOOR):
8307 CASE_FLT_FN (BUILT_IN_LLFLOOR):
8308 real_floor (&r, TYPE_MODE (ftype), &x);
8309 break;
8310
8311 CASE_FLT_FN (BUILT_IN_ICEIL):
8312 CASE_FLT_FN (BUILT_IN_LCEIL):
8313 CASE_FLT_FN (BUILT_IN_LLCEIL):
8314 real_ceil (&r, TYPE_MODE (ftype), &x);
8315 break;
8316
8317 CASE_FLT_FN (BUILT_IN_IROUND):
8318 CASE_FLT_FN (BUILT_IN_LROUND):
8319 CASE_FLT_FN (BUILT_IN_LLROUND):
8320 real_round (&r, TYPE_MODE (ftype), &x);
8321 break;
8322
8323 default:
8324 gcc_unreachable ();
8325 }
8326
8327 wide_int val = real_to_integer (&r, &fail, TYPE_PRECISION (itype));
8328 if (!fail)
8329 return wide_int_to_tree (itype, val);
8330 }
8331 }
8332
8333 switch (DECL_FUNCTION_CODE (fndecl))
8334 {
8335 CASE_FLT_FN (BUILT_IN_LFLOOR):
8336 CASE_FLT_FN (BUILT_IN_LLFLOOR):
8337 /* Fold lfloor (x) where x is nonnegative to FIX_TRUNC (x). */
8338 if (tree_expr_nonnegative_p (arg))
8339 return fold_build1_loc (loc, FIX_TRUNC_EXPR,
8340 TREE_TYPE (TREE_TYPE (fndecl)), arg);
8341 break;
8342 default:;
8343 }
8344
8345 return fold_fixed_mathfn (loc, fndecl, arg);
8346 }
8347
8348 /* Fold function call to builtin ffs, clz, ctz, popcount and parity
8349 and their long and long long variants (i.e. ffsl and ffsll). ARG is
8350 the argument to the call. Return NULL_TREE if no simplification can
8351 be made. */
8352
8353 static tree
8354 fold_builtin_bitop (tree fndecl, tree arg)
8355 {
8356 if (!validate_arg (arg, INTEGER_TYPE))
8357 return NULL_TREE;
8358
8359 /* Optimize for constant argument. */
8360 if (TREE_CODE (arg) == INTEGER_CST && !TREE_OVERFLOW (arg))
8361 {
8362 tree type = TREE_TYPE (arg);
8363 int result;
8364
8365 switch (DECL_FUNCTION_CODE (fndecl))
8366 {
8367 CASE_INT_FN (BUILT_IN_FFS):
8368 result = wi::ffs (arg);
8369 break;
8370
8371 CASE_INT_FN (BUILT_IN_CLZ):
8372 if (wi::ne_p (arg, 0))
8373 result = wi::clz (arg);
8374 else if (! CLZ_DEFINED_VALUE_AT_ZERO (TYPE_MODE (type), result))
8375 result = TYPE_PRECISION (type);
8376 break;
8377
8378 CASE_INT_FN (BUILT_IN_CTZ):
8379 if (wi::ne_p (arg, 0))
8380 result = wi::ctz (arg);
8381 else if (! CTZ_DEFINED_VALUE_AT_ZERO (TYPE_MODE (type), result))
8382 result = TYPE_PRECISION (type);
8383 break;
8384
8385 CASE_INT_FN (BUILT_IN_CLRSB):
8386 result = wi::clrsb (arg);
8387 break;
8388
8389 CASE_INT_FN (BUILT_IN_POPCOUNT):
8390 result = wi::popcount (arg);
8391 break;
8392
8393 CASE_INT_FN (BUILT_IN_PARITY):
8394 result = wi::parity (arg);
8395 break;
8396
8397 default:
8398 gcc_unreachable ();
8399 }
8400
8401 return build_int_cst (TREE_TYPE (TREE_TYPE (fndecl)), result);
8402 }
8403
8404 return NULL_TREE;
8405 }
8406
8407 /* Fold function call to builtin_bswap and the short, long and long long
8408 variants. Return NULL_TREE if no simplification can be made. */
8409 static tree
8410 fold_builtin_bswap (tree fndecl, tree arg)
8411 {
8412 if (! validate_arg (arg, INTEGER_TYPE))
8413 return NULL_TREE;
8414
8415 /* Optimize constant value. */
8416 if (TREE_CODE (arg) == INTEGER_CST && !TREE_OVERFLOW (arg))
8417 {
8418 tree type = TREE_TYPE (TREE_TYPE (fndecl));
8419
8420 switch (DECL_FUNCTION_CODE (fndecl))
8421 {
8422 case BUILT_IN_BSWAP16:
8423 case BUILT_IN_BSWAP32:
8424 case BUILT_IN_BSWAP64:
8425 {
8426 signop sgn = TYPE_SIGN (type);
8427 tree result =
8428 wide_int_to_tree (type,
8429 wide_int::from (arg, TYPE_PRECISION (type),
8430 sgn).bswap ());
8431 return result;
8432 }
8433 default:
8434 gcc_unreachable ();
8435 }
8436 }
8437
8438 return NULL_TREE;
8439 }
8440
8441 /* Fold a builtin function call to hypot, hypotf, or hypotl. Return
8442 NULL_TREE if no simplification can be made. */
8443
8444 static tree
8445 fold_builtin_hypot (location_t loc, tree fndecl,
8446 tree arg0, tree arg1, tree type)
8447 {
8448 tree res, narg0, narg1;
8449
8450 if (!validate_arg (arg0, REAL_TYPE)
8451 || !validate_arg (arg1, REAL_TYPE))
8452 return NULL_TREE;
8453
8454 /* Calculate the result when the argument is a constant. */
8455 if ((res = do_mpfr_arg2 (arg0, arg1, type, mpfr_hypot)))
8456 return res;
8457
8458 /* If either argument to hypot has a negate or abs, strip that off.
8459 E.g. hypot(-x,fabs(y)) -> hypot(x,y). */
8460 narg0 = fold_strip_sign_ops (arg0);
8461 narg1 = fold_strip_sign_ops (arg1);
8462 if (narg0 || narg1)
8463 {
8464 return build_call_expr_loc (loc, fndecl, 2, narg0 ? narg0 : arg0,
8465 narg1 ? narg1 : arg1);
8466 }
8467
8468 /* If either argument is zero, hypot is fabs of the other. */
8469 if (real_zerop (arg0))
8470 return fold_build1_loc (loc, ABS_EXPR, type, arg1);
8471 else if (real_zerop (arg1))
8472 return fold_build1_loc (loc, ABS_EXPR, type, arg0);
8473
8474 /* hypot(x,x) -> fabs(x)*sqrt(2). */
8475 if (flag_unsafe_math_optimizations
8476 && operand_equal_p (arg0, arg1, OEP_PURE_SAME))
8477 {
8478 const REAL_VALUE_TYPE sqrt2_trunc
8479 = real_value_truncate (TYPE_MODE (type), dconst_sqrt2 ());
8480 return fold_build2_loc (loc, MULT_EXPR, type,
8481 fold_build1_loc (loc, ABS_EXPR, type, arg0),
8482 build_real (type, sqrt2_trunc));
8483 }
8484
8485 return NULL_TREE;
8486 }
8487
8488
8489 /* Fold a builtin function call to pow, powf, or powl. Return
8490 NULL_TREE if no simplification can be made. */
8491 static tree
8492 fold_builtin_pow (location_t loc, tree fndecl, tree arg0, tree arg1, tree type)
8493 {
8494 tree res;
8495
8496 if (!validate_arg (arg0, REAL_TYPE)
8497 || !validate_arg (arg1, REAL_TYPE))
8498 return NULL_TREE;
8499
8500 /* Calculate the result when the argument is a constant. */
8501 if ((res = do_mpfr_arg2 (arg0, arg1, type, mpfr_pow)))
8502 return res;
8503
8504 /* Optimize pow(1.0,y) = 1.0. */
8505 if (real_onep (arg0))
8506 return omit_one_operand_loc (loc, type, build_real (type, dconst1), arg1);
8507
8508 if (TREE_CODE (arg1) == REAL_CST
8509 && !TREE_OVERFLOW (arg1))
8510 {
8511 REAL_VALUE_TYPE cint;
8512 REAL_VALUE_TYPE c;
8513 HOST_WIDE_INT n;
8514
8515 c = TREE_REAL_CST (arg1);
8516
8517 /* Optimize pow(x,0.0) = 1.0. */
8518 if (REAL_VALUES_EQUAL (c, dconst0))
8519 return omit_one_operand_loc (loc, type, build_real (type, dconst1),
8520 arg0);
8521
8522 /* Optimize pow(x,1.0) = x. */
8523 if (REAL_VALUES_EQUAL (c, dconst1))
8524 return arg0;
8525
8526 /* Optimize pow(x,-1.0) = 1.0/x. */
8527 if (REAL_VALUES_EQUAL (c, dconstm1))
8528 return fold_build2_loc (loc, RDIV_EXPR, type,
8529 build_real (type, dconst1), arg0);
8530
8531 /* Optimize pow(x,0.5) = sqrt(x). */
8532 if (flag_unsafe_math_optimizations
8533 && REAL_VALUES_EQUAL (c, dconsthalf))
8534 {
8535 tree sqrtfn = mathfn_built_in (type, BUILT_IN_SQRT);
8536
8537 if (sqrtfn != NULL_TREE)
8538 return build_call_expr_loc (loc, sqrtfn, 1, arg0);
8539 }
8540
8541 /* Optimize pow(x,1.0/3.0) = cbrt(x). */
8542 if (flag_unsafe_math_optimizations)
8543 {
8544 const REAL_VALUE_TYPE dconstroot
8545 = real_value_truncate (TYPE_MODE (type), dconst_third ());
8546
8547 if (REAL_VALUES_EQUAL (c, dconstroot))
8548 {
8549 tree cbrtfn = mathfn_built_in (type, BUILT_IN_CBRT);
8550 if (cbrtfn != NULL_TREE)
8551 return build_call_expr_loc (loc, cbrtfn, 1, arg0);
8552 }
8553 }
8554
8555 /* Check for an integer exponent. */
8556 n = real_to_integer (&c);
8557 real_from_integer (&cint, VOIDmode, n, SIGNED);
8558 if (real_identical (&c, &cint))
8559 {
8560 /* Attempt to evaluate pow at compile-time, unless this should
8561 raise an exception. */
8562 if (TREE_CODE (arg0) == REAL_CST
8563 && !TREE_OVERFLOW (arg0)
8564 && (n > 0
8565 || (!flag_trapping_math && !flag_errno_math)
8566 || !REAL_VALUES_EQUAL (TREE_REAL_CST (arg0), dconst0)))
8567 {
8568 REAL_VALUE_TYPE x;
8569 bool inexact;
8570
8571 x = TREE_REAL_CST (arg0);
8572 inexact = real_powi (&x, TYPE_MODE (type), &x, n);
8573 if (flag_unsafe_math_optimizations || !inexact)
8574 return build_real (type, x);
8575 }
8576
8577 /* Strip sign ops from even integer powers. */
8578 if ((n & 1) == 0 && flag_unsafe_math_optimizations)
8579 {
8580 tree narg0 = fold_strip_sign_ops (arg0);
8581 if (narg0)
8582 return build_call_expr_loc (loc, fndecl, 2, narg0, arg1);
8583 }
8584 }
8585 }
8586
8587 if (flag_unsafe_math_optimizations)
8588 {
8589 const enum built_in_function fcode = builtin_mathfn_code (arg0);
8590
8591 /* Optimize pow(expN(x),y) = expN(x*y). */
8592 if (BUILTIN_EXPONENT_P (fcode))
8593 {
8594 tree expfn = TREE_OPERAND (CALL_EXPR_FN (arg0), 0);
8595 tree arg = CALL_EXPR_ARG (arg0, 0);
8596 arg = fold_build2_loc (loc, MULT_EXPR, type, arg, arg1);
8597 return build_call_expr_loc (loc, expfn, 1, arg);
8598 }
8599
8600 /* Optimize pow(sqrt(x),y) = pow(x,y*0.5). */
8601 if (BUILTIN_SQRT_P (fcode))
8602 {
8603 tree narg0 = CALL_EXPR_ARG (arg0, 0);
8604 tree narg1 = fold_build2_loc (loc, MULT_EXPR, type, arg1,
8605 build_real (type, dconsthalf));
8606 return build_call_expr_loc (loc, fndecl, 2, narg0, narg1);
8607 }
8608
8609 /* Optimize pow(cbrt(x),y) = pow(x,y/3) iff x is nonnegative. */
8610 if (BUILTIN_CBRT_P (fcode))
8611 {
8612 tree arg = CALL_EXPR_ARG (arg0, 0);
8613 if (tree_expr_nonnegative_p (arg))
8614 {
8615 const REAL_VALUE_TYPE dconstroot
8616 = real_value_truncate (TYPE_MODE (type), dconst_third ());
8617 tree narg1 = fold_build2_loc (loc, MULT_EXPR, type, arg1,
8618 build_real (type, dconstroot));
8619 return build_call_expr_loc (loc, fndecl, 2, arg, narg1);
8620 }
8621 }
8622
8623 /* Optimize pow(pow(x,y),z) = pow(x,y*z) iff x is nonnegative. */
8624 if (fcode == BUILT_IN_POW
8625 || fcode == BUILT_IN_POWF
8626 || fcode == BUILT_IN_POWL)
8627 {
8628 tree arg00 = CALL_EXPR_ARG (arg0, 0);
8629 if (tree_expr_nonnegative_p (arg00))
8630 {
8631 tree arg01 = CALL_EXPR_ARG (arg0, 1);
8632 tree narg1 = fold_build2_loc (loc, MULT_EXPR, type, arg01, arg1);
8633 return build_call_expr_loc (loc, fndecl, 2, arg00, narg1);
8634 }
8635 }
8636 }
8637
8638 return NULL_TREE;
8639 }
8640
8641 /* Fold a builtin function call to powi, powif, or powil with argument ARG.
8642 Return NULL_TREE if no simplification can be made. */
8643 static tree
8644 fold_builtin_powi (location_t loc, tree fndecl ATTRIBUTE_UNUSED,
8645 tree arg0, tree arg1, tree type)
8646 {
8647 if (!validate_arg (arg0, REAL_TYPE)
8648 || !validate_arg (arg1, INTEGER_TYPE))
8649 return NULL_TREE;
8650
8651 /* Optimize pow(1.0,y) = 1.0. */
8652 if (real_onep (arg0))
8653 return omit_one_operand_loc (loc, type, build_real (type, dconst1), arg1);
8654
8655 if (tree_fits_shwi_p (arg1))
8656 {
8657 HOST_WIDE_INT c = tree_to_shwi (arg1);
8658
8659 /* Evaluate powi at compile-time. */
8660 if (TREE_CODE (arg0) == REAL_CST
8661 && !TREE_OVERFLOW (arg0))
8662 {
8663 REAL_VALUE_TYPE x;
8664 x = TREE_REAL_CST (arg0);
8665 real_powi (&x, TYPE_MODE (type), &x, c);
8666 return build_real (type, x);
8667 }
8668
8669 /* Optimize pow(x,0) = 1.0. */
8670 if (c == 0)
8671 return omit_one_operand_loc (loc, type, build_real (type, dconst1),
8672 arg0);
8673
8674 /* Optimize pow(x,1) = x. */
8675 if (c == 1)
8676 return arg0;
8677
8678 /* Optimize pow(x,-1) = 1.0/x. */
8679 if (c == -1)
8680 return fold_build2_loc (loc, RDIV_EXPR, type,
8681 build_real (type, dconst1), arg0);
8682 }
8683
8684 return NULL_TREE;
8685 }
8686
8687 /* A subroutine of fold_builtin to fold the various exponent
8688 functions. Return NULL_TREE if no simplification can be made.
8689 FUNC is the corresponding MPFR exponent function. */
8690
8691 static tree
8692 fold_builtin_exponent (location_t loc, tree fndecl, tree arg,
8693 int (*func)(mpfr_ptr, mpfr_srcptr, mp_rnd_t))
8694 {
8695 if (validate_arg (arg, REAL_TYPE))
8696 {
8697 tree type = TREE_TYPE (TREE_TYPE (fndecl));
8698 tree res;
8699
8700 /* Calculate the result when the argument is a constant. */
8701 if ((res = do_mpfr_arg1 (arg, type, func, NULL, NULL, 0)))
8702 return res;
8703
8704 /* Optimize expN(logN(x)) = x. */
8705 if (flag_unsafe_math_optimizations)
8706 {
8707 const enum built_in_function fcode = builtin_mathfn_code (arg);
8708
8709 if ((func == mpfr_exp
8710 && (fcode == BUILT_IN_LOG
8711 || fcode == BUILT_IN_LOGF
8712 || fcode == BUILT_IN_LOGL))
8713 || (func == mpfr_exp2
8714 && (fcode == BUILT_IN_LOG2
8715 || fcode == BUILT_IN_LOG2F
8716 || fcode == BUILT_IN_LOG2L))
8717 || (func == mpfr_exp10
8718 && (fcode == BUILT_IN_LOG10
8719 || fcode == BUILT_IN_LOG10F
8720 || fcode == BUILT_IN_LOG10L)))
8721 return fold_convert_loc (loc, type, CALL_EXPR_ARG (arg, 0));
8722 }
8723 }
8724
8725 return NULL_TREE;
8726 }
8727
8728 /* Fold function call to builtin memchr. ARG1, ARG2 and LEN are the
8729 arguments to the call, and TYPE is its return type.
8730 Return NULL_TREE if no simplification can be made. */
8731
8732 static tree
8733 fold_builtin_memchr (location_t loc, tree arg1, tree arg2, tree len, tree type)
8734 {
8735 if (!validate_arg (arg1, POINTER_TYPE)
8736 || !validate_arg (arg2, INTEGER_TYPE)
8737 || !validate_arg (len, INTEGER_TYPE))
8738 return NULL_TREE;
8739 else
8740 {
8741 const char *p1;
8742
8743 if (TREE_CODE (arg2) != INTEGER_CST
8744 || !tree_fits_uhwi_p (len))
8745 return NULL_TREE;
8746
8747 p1 = c_getstr (arg1);
8748 if (p1 && compare_tree_int (len, strlen (p1) + 1) <= 0)
8749 {
8750 char c;
8751 const char *r;
8752 tree tem;
8753
8754 if (target_char_cast (arg2, &c))
8755 return NULL_TREE;
8756
8757 r = (const char *) memchr (p1, c, tree_to_uhwi (len));
8758
8759 if (r == NULL)
8760 return build_int_cst (TREE_TYPE (arg1), 0);
8761
8762 tem = fold_build_pointer_plus_hwi_loc (loc, arg1, r - p1);
8763 return fold_convert_loc (loc, type, tem);
8764 }
8765 return NULL_TREE;
8766 }
8767 }
8768
8769 /* Fold function call to builtin memcmp with arguments ARG1 and ARG2.
8770 Return NULL_TREE if no simplification can be made. */
8771
8772 static tree
8773 fold_builtin_memcmp (location_t loc, tree arg1, tree arg2, tree len)
8774 {
8775 const char *p1, *p2;
8776
8777 if (!validate_arg (arg1, POINTER_TYPE)
8778 || !validate_arg (arg2, POINTER_TYPE)
8779 || !validate_arg (len, INTEGER_TYPE))
8780 return NULL_TREE;
8781
8782 /* If the LEN parameter is zero, return zero. */
8783 if (integer_zerop (len))
8784 return omit_two_operands_loc (loc, integer_type_node, integer_zero_node,
8785 arg1, arg2);
8786
8787 /* If ARG1 and ARG2 are the same (and not volatile), return zero. */
8788 if (operand_equal_p (arg1, arg2, 0))
8789 return omit_one_operand_loc (loc, integer_type_node, integer_zero_node, len);
8790
8791 p1 = c_getstr (arg1);
8792 p2 = c_getstr (arg2);
8793
8794 /* If all arguments are constant, and the value of len is not greater
8795 than the lengths of arg1 and arg2, evaluate at compile-time. */
8796 if (tree_fits_uhwi_p (len) && p1 && p2
8797 && compare_tree_int (len, strlen (p1) + 1) <= 0
8798 && compare_tree_int (len, strlen (p2) + 1) <= 0)
8799 {
8800 const int r = memcmp (p1, p2, tree_to_uhwi (len));
8801
8802 if (r > 0)
8803 return integer_one_node;
8804 else if (r < 0)
8805 return integer_minus_one_node;
8806 else
8807 return integer_zero_node;
8808 }
8809
8810 /* If len parameter is one, return an expression corresponding to
8811 (*(const unsigned char*)arg1 - (const unsigned char*)arg2). */
8812 if (tree_fits_uhwi_p (len) && tree_to_uhwi (len) == 1)
8813 {
8814 tree cst_uchar_node = build_type_variant (unsigned_char_type_node, 1, 0);
8815 tree cst_uchar_ptr_node
8816 = build_pointer_type_for_mode (cst_uchar_node, ptr_mode, true);
8817
8818 tree ind1
8819 = fold_convert_loc (loc, integer_type_node,
8820 build1 (INDIRECT_REF, cst_uchar_node,
8821 fold_convert_loc (loc,
8822 cst_uchar_ptr_node,
8823 arg1)));
8824 tree ind2
8825 = fold_convert_loc (loc, integer_type_node,
8826 build1 (INDIRECT_REF, cst_uchar_node,
8827 fold_convert_loc (loc,
8828 cst_uchar_ptr_node,
8829 arg2)));
8830 return fold_build2_loc (loc, MINUS_EXPR, integer_type_node, ind1, ind2);
8831 }
8832
8833 return NULL_TREE;
8834 }
8835
8836 /* Fold function call to builtin strcmp with arguments ARG1 and ARG2.
8837 Return NULL_TREE if no simplification can be made. */
8838
8839 static tree
8840 fold_builtin_strcmp (location_t loc, tree arg1, tree arg2)
8841 {
8842 const char *p1, *p2;
8843
8844 if (!validate_arg (arg1, POINTER_TYPE)
8845 || !validate_arg (arg2, POINTER_TYPE))
8846 return NULL_TREE;
8847
8848 /* If ARG1 and ARG2 are the same (and not volatile), return zero. */
8849 if (operand_equal_p (arg1, arg2, 0))
8850 return integer_zero_node;
8851
8852 p1 = c_getstr (arg1);
8853 p2 = c_getstr (arg2);
8854
8855 if (p1 && p2)
8856 {
8857 const int i = strcmp (p1, p2);
8858 if (i < 0)
8859 return integer_minus_one_node;
8860 else if (i > 0)
8861 return integer_one_node;
8862 else
8863 return integer_zero_node;
8864 }
8865
8866 /* If the second arg is "", return *(const unsigned char*)arg1. */
8867 if (p2 && *p2 == '\0')
8868 {
8869 tree cst_uchar_node = build_type_variant (unsigned_char_type_node, 1, 0);
8870 tree cst_uchar_ptr_node
8871 = build_pointer_type_for_mode (cst_uchar_node, ptr_mode, true);
8872
8873 return fold_convert_loc (loc, integer_type_node,
8874 build1 (INDIRECT_REF, cst_uchar_node,
8875 fold_convert_loc (loc,
8876 cst_uchar_ptr_node,
8877 arg1)));
8878 }
8879
8880 /* If the first arg is "", return -*(const unsigned char*)arg2. */
8881 if (p1 && *p1 == '\0')
8882 {
8883 tree cst_uchar_node = build_type_variant (unsigned_char_type_node, 1, 0);
8884 tree cst_uchar_ptr_node
8885 = build_pointer_type_for_mode (cst_uchar_node, ptr_mode, true);
8886
8887 tree temp
8888 = fold_convert_loc (loc, integer_type_node,
8889 build1 (INDIRECT_REF, cst_uchar_node,
8890 fold_convert_loc (loc,
8891 cst_uchar_ptr_node,
8892 arg2)));
8893 return fold_build1_loc (loc, NEGATE_EXPR, integer_type_node, temp);
8894 }
8895
8896 return NULL_TREE;
8897 }
8898
8899 /* Fold function call to builtin strncmp with arguments ARG1, ARG2, and LEN.
8900 Return NULL_TREE if no simplification can be made. */
8901
8902 static tree
8903 fold_builtin_strncmp (location_t loc, tree arg1, tree arg2, tree len)
8904 {
8905 const char *p1, *p2;
8906
8907 if (!validate_arg (arg1, POINTER_TYPE)
8908 || !validate_arg (arg2, POINTER_TYPE)
8909 || !validate_arg (len, INTEGER_TYPE))
8910 return NULL_TREE;
8911
8912 /* If the LEN parameter is zero, return zero. */
8913 if (integer_zerop (len))
8914 return omit_two_operands_loc (loc, integer_type_node, integer_zero_node,
8915 arg1, arg2);
8916
8917 /* If ARG1 and ARG2 are the same (and not volatile), return zero. */
8918 if (operand_equal_p (arg1, arg2, 0))
8919 return omit_one_operand_loc (loc, integer_type_node, integer_zero_node, len);
8920
8921 p1 = c_getstr (arg1);
8922 p2 = c_getstr (arg2);
8923
8924 if (tree_fits_uhwi_p (len) && p1 && p2)
8925 {
8926 const int i = strncmp (p1, p2, tree_to_uhwi (len));
8927 if (i > 0)
8928 return integer_one_node;
8929 else if (i < 0)
8930 return integer_minus_one_node;
8931 else
8932 return integer_zero_node;
8933 }
8934
8935 /* If the second arg is "", and the length is greater than zero,
8936 return *(const unsigned char*)arg1. */
8937 if (p2 && *p2 == '\0'
8938 && TREE_CODE (len) == INTEGER_CST
8939 && tree_int_cst_sgn (len) == 1)
8940 {
8941 tree cst_uchar_node = build_type_variant (unsigned_char_type_node, 1, 0);
8942 tree cst_uchar_ptr_node
8943 = build_pointer_type_for_mode (cst_uchar_node, ptr_mode, true);
8944
8945 return fold_convert_loc (loc, integer_type_node,
8946 build1 (INDIRECT_REF, cst_uchar_node,
8947 fold_convert_loc (loc,
8948 cst_uchar_ptr_node,
8949 arg1)));
8950 }
8951
8952 /* If the first arg is "", and the length is greater than zero,
8953 return -*(const unsigned char*)arg2. */
8954 if (p1 && *p1 == '\0'
8955 && TREE_CODE (len) == INTEGER_CST
8956 && tree_int_cst_sgn (len) == 1)
8957 {
8958 tree cst_uchar_node = build_type_variant (unsigned_char_type_node, 1, 0);
8959 tree cst_uchar_ptr_node
8960 = build_pointer_type_for_mode (cst_uchar_node, ptr_mode, true);
8961
8962 tree temp = fold_convert_loc (loc, integer_type_node,
8963 build1 (INDIRECT_REF, cst_uchar_node,
8964 fold_convert_loc (loc,
8965 cst_uchar_ptr_node,
8966 arg2)));
8967 return fold_build1_loc (loc, NEGATE_EXPR, integer_type_node, temp);
8968 }
8969
8970 /* If len parameter is one, return an expression corresponding to
8971 (*(const unsigned char*)arg1 - (const unsigned char*)arg2). */
8972 if (tree_fits_uhwi_p (len) && tree_to_uhwi (len) == 1)
8973 {
8974 tree cst_uchar_node = build_type_variant (unsigned_char_type_node, 1, 0);
8975 tree cst_uchar_ptr_node
8976 = build_pointer_type_for_mode (cst_uchar_node, ptr_mode, true);
8977
8978 tree ind1 = fold_convert_loc (loc, integer_type_node,
8979 build1 (INDIRECT_REF, cst_uchar_node,
8980 fold_convert_loc (loc,
8981 cst_uchar_ptr_node,
8982 arg1)));
8983 tree ind2 = fold_convert_loc (loc, integer_type_node,
8984 build1 (INDIRECT_REF, cst_uchar_node,
8985 fold_convert_loc (loc,
8986 cst_uchar_ptr_node,
8987 arg2)));
8988 return fold_build2_loc (loc, MINUS_EXPR, integer_type_node, ind1, ind2);
8989 }
8990
8991 return NULL_TREE;
8992 }
8993
8994 /* Fold function call to builtin signbit, signbitf or signbitl with argument
8995 ARG. Return NULL_TREE if no simplification can be made. */
8996
8997 static tree
8998 fold_builtin_signbit (location_t loc, tree arg, tree type)
8999 {
9000 if (!validate_arg (arg, REAL_TYPE))
9001 return NULL_TREE;
9002
9003 /* If ARG is a compile-time constant, determine the result. */
9004 if (TREE_CODE (arg) == REAL_CST
9005 && !TREE_OVERFLOW (arg))
9006 {
9007 REAL_VALUE_TYPE c;
9008
9009 c = TREE_REAL_CST (arg);
9010 return (REAL_VALUE_NEGATIVE (c)
9011 ? build_one_cst (type)
9012 : build_zero_cst (type));
9013 }
9014
9015 /* If ARG is non-negative, the result is always zero. */
9016 if (tree_expr_nonnegative_p (arg))
9017 return omit_one_operand_loc (loc, type, integer_zero_node, arg);
9018
9019 /* If ARG's format doesn't have signed zeros, return "arg < 0.0". */
9020 if (!HONOR_SIGNED_ZEROS (arg))
9021 return fold_convert (type,
9022 fold_build2_loc (loc, LT_EXPR, boolean_type_node, arg,
9023 build_real (TREE_TYPE (arg), dconst0)));
9024
9025 return NULL_TREE;
9026 }
9027
9028 /* Fold function call to builtin copysign, copysignf or copysignl with
9029 arguments ARG1 and ARG2. Return NULL_TREE if no simplification can
9030 be made. */
9031
9032 static tree
9033 fold_builtin_copysign (location_t loc, tree fndecl,
9034 tree arg1, tree arg2, tree type)
9035 {
9036 tree tem;
9037
9038 if (!validate_arg (arg1, REAL_TYPE)
9039 || !validate_arg (arg2, REAL_TYPE))
9040 return NULL_TREE;
9041
9042 /* copysign(X,X) is X. */
9043 if (operand_equal_p (arg1, arg2, 0))
9044 return fold_convert_loc (loc, type, arg1);
9045
9046 /* If ARG1 and ARG2 are compile-time constants, determine the result. */
9047 if (TREE_CODE (arg1) == REAL_CST
9048 && TREE_CODE (arg2) == REAL_CST
9049 && !TREE_OVERFLOW (arg1)
9050 && !TREE_OVERFLOW (arg2))
9051 {
9052 REAL_VALUE_TYPE c1, c2;
9053
9054 c1 = TREE_REAL_CST (arg1);
9055 c2 = TREE_REAL_CST (arg2);
9056 /* c1.sign := c2.sign. */
9057 real_copysign (&c1, &c2);
9058 return build_real (type, c1);
9059 }
9060
9061 /* copysign(X, Y) is fabs(X) when Y is always non-negative.
9062 Remember to evaluate Y for side-effects. */
9063 if (tree_expr_nonnegative_p (arg2))
9064 return omit_one_operand_loc (loc, type,
9065 fold_build1_loc (loc, ABS_EXPR, type, arg1),
9066 arg2);
9067
9068 /* Strip sign changing operations for the first argument. */
9069 tem = fold_strip_sign_ops (arg1);
9070 if (tem)
9071 return build_call_expr_loc (loc, fndecl, 2, tem, arg2);
9072
9073 return NULL_TREE;
9074 }
9075
9076 /* Fold a call to builtin isascii with argument ARG. */
9077
9078 static tree
9079 fold_builtin_isascii (location_t loc, tree arg)
9080 {
9081 if (!validate_arg (arg, INTEGER_TYPE))
9082 return NULL_TREE;
9083 else
9084 {
9085 /* Transform isascii(c) -> ((c & ~0x7f) == 0). */
9086 arg = fold_build2 (BIT_AND_EXPR, integer_type_node, arg,
9087 build_int_cst (integer_type_node,
9088 ~ (unsigned HOST_WIDE_INT) 0x7f));
9089 return fold_build2_loc (loc, EQ_EXPR, integer_type_node,
9090 arg, integer_zero_node);
9091 }
9092 }
9093
9094 /* Fold a call to builtin toascii with argument ARG. */
9095
9096 static tree
9097 fold_builtin_toascii (location_t loc, tree arg)
9098 {
9099 if (!validate_arg (arg, INTEGER_TYPE))
9100 return NULL_TREE;
9101
9102 /* Transform toascii(c) -> (c & 0x7f). */
9103 return fold_build2_loc (loc, BIT_AND_EXPR, integer_type_node, arg,
9104 build_int_cst (integer_type_node, 0x7f));
9105 }
9106
9107 /* Fold a call to builtin isdigit with argument ARG. */
9108
9109 static tree
9110 fold_builtin_isdigit (location_t loc, tree arg)
9111 {
9112 if (!validate_arg (arg, INTEGER_TYPE))
9113 return NULL_TREE;
9114 else
9115 {
9116 /* Transform isdigit(c) -> (unsigned)(c) - '0' <= 9. */
9117 /* According to the C standard, isdigit is unaffected by locale.
9118 However, it definitely is affected by the target character set. */
9119 unsigned HOST_WIDE_INT target_digit0
9120 = lang_hooks.to_target_charset ('0');
9121
9122 if (target_digit0 == 0)
9123 return NULL_TREE;
9124
9125 arg = fold_convert_loc (loc, unsigned_type_node, arg);
9126 arg = fold_build2 (MINUS_EXPR, unsigned_type_node, arg,
9127 build_int_cst (unsigned_type_node, target_digit0));
9128 return fold_build2_loc (loc, LE_EXPR, integer_type_node, arg,
9129 build_int_cst (unsigned_type_node, 9));
9130 }
9131 }
9132
9133 /* Fold a call to fabs, fabsf or fabsl with argument ARG. */
9134
9135 static tree
9136 fold_builtin_fabs (location_t loc, tree arg, tree type)
9137 {
9138 if (!validate_arg (arg, REAL_TYPE))
9139 return NULL_TREE;
9140
9141 arg = fold_convert_loc (loc, type, arg);
9142 if (TREE_CODE (arg) == REAL_CST)
9143 return fold_abs_const (arg, type);
9144 return fold_build1_loc (loc, ABS_EXPR, type, arg);
9145 }
9146
9147 /* Fold a call to abs, labs, llabs or imaxabs with argument ARG. */
9148
9149 static tree
9150 fold_builtin_abs (location_t loc, tree arg, tree type)
9151 {
9152 if (!validate_arg (arg, INTEGER_TYPE))
9153 return NULL_TREE;
9154
9155 arg = fold_convert_loc (loc, type, arg);
9156 if (TREE_CODE (arg) == INTEGER_CST)
9157 return fold_abs_const (arg, type);
9158 return fold_build1_loc (loc, ABS_EXPR, type, arg);
9159 }
9160
9161 /* Fold a fma operation with arguments ARG[012]. */
9162
9163 tree
9164 fold_fma (location_t loc ATTRIBUTE_UNUSED,
9165 tree type, tree arg0, tree arg1, tree arg2)
9166 {
9167 if (TREE_CODE (arg0) == REAL_CST
9168 && TREE_CODE (arg1) == REAL_CST
9169 && TREE_CODE (arg2) == REAL_CST)
9170 return do_mpfr_arg3 (arg0, arg1, arg2, type, mpfr_fma);
9171
9172 return NULL_TREE;
9173 }
9174
9175 /* Fold a call to fma, fmaf, or fmal with arguments ARG[012]. */
9176
9177 static tree
9178 fold_builtin_fma (location_t loc, tree arg0, tree arg1, tree arg2, tree type)
9179 {
9180 if (validate_arg (arg0, REAL_TYPE)
9181 && validate_arg (arg1, REAL_TYPE)
9182 && validate_arg (arg2, REAL_TYPE))
9183 {
9184 tree tem = fold_fma (loc, type, arg0, arg1, arg2);
9185 if (tem)
9186 return tem;
9187
9188 /* ??? Only expand to FMA_EXPR if it's directly supported. */
9189 if (optab_handler (fma_optab, TYPE_MODE (type)) != CODE_FOR_nothing)
9190 return fold_build3_loc (loc, FMA_EXPR, type, arg0, arg1, arg2);
9191 }
9192 return NULL_TREE;
9193 }
9194
9195 /* Fold a call to builtin fmin or fmax. */
9196
9197 static tree
9198 fold_builtin_fmin_fmax (location_t loc, tree arg0, tree arg1,
9199 tree type, bool max)
9200 {
9201 if (validate_arg (arg0, REAL_TYPE) && validate_arg (arg1, REAL_TYPE))
9202 {
9203 /* Calculate the result when the argument is a constant. */
9204 tree res = do_mpfr_arg2 (arg0, arg1, type, (max ? mpfr_max : mpfr_min));
9205
9206 if (res)
9207 return res;
9208
9209 /* If either argument is NaN, return the other one. Avoid the
9210 transformation if we get (and honor) a signalling NaN. Using
9211 omit_one_operand() ensures we create a non-lvalue. */
9212 if (TREE_CODE (arg0) == REAL_CST
9213 && real_isnan (&TREE_REAL_CST (arg0))
9214 && (! HONOR_SNANS (arg0)
9215 || ! TREE_REAL_CST (arg0).signalling))
9216 return omit_one_operand_loc (loc, type, arg1, arg0);
9217 if (TREE_CODE (arg1) == REAL_CST
9218 && real_isnan (&TREE_REAL_CST (arg1))
9219 && (! HONOR_SNANS (arg1)
9220 || ! TREE_REAL_CST (arg1).signalling))
9221 return omit_one_operand_loc (loc, type, arg0, arg1);
9222
9223 /* Transform fmin/fmax(x,x) -> x. */
9224 if (operand_equal_p (arg0, arg1, OEP_PURE_SAME))
9225 return omit_one_operand_loc (loc, type, arg0, arg1);
9226
9227 /* Convert fmin/fmax to MIN_EXPR/MAX_EXPR. C99 requires these
9228 functions to return the numeric arg if the other one is NaN.
9229 These tree codes don't honor that, so only transform if
9230 -ffinite-math-only is set. C99 doesn't require -0.0 to be
9231 handled, so we don't have to worry about it either. */
9232 if (flag_finite_math_only)
9233 return fold_build2_loc (loc, (max ? MAX_EXPR : MIN_EXPR), type,
9234 fold_convert_loc (loc, type, arg0),
9235 fold_convert_loc (loc, type, arg1));
9236 }
9237 return NULL_TREE;
9238 }
9239
9240 /* Fold a call to builtin carg(a+bi) -> atan2(b,a). */
9241
9242 static tree
9243 fold_builtin_carg (location_t loc, tree arg, tree type)
9244 {
9245 if (validate_arg (arg, COMPLEX_TYPE)
9246 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg))) == REAL_TYPE)
9247 {
9248 tree atan2_fn = mathfn_built_in (type, BUILT_IN_ATAN2);
9249
9250 if (atan2_fn)
9251 {
9252 tree new_arg = builtin_save_expr (arg);
9253 tree r_arg = fold_build1_loc (loc, REALPART_EXPR, type, new_arg);
9254 tree i_arg = fold_build1_loc (loc, IMAGPART_EXPR, type, new_arg);
9255 return build_call_expr_loc (loc, atan2_fn, 2, i_arg, r_arg);
9256 }
9257 }
9258
9259 return NULL_TREE;
9260 }
9261
9262 /* Fold a call to builtin logb/ilogb. */
9263
9264 static tree
9265 fold_builtin_logb (location_t loc, tree arg, tree rettype)
9266 {
9267 if (! validate_arg (arg, REAL_TYPE))
9268 return NULL_TREE;
9269
9270 STRIP_NOPS (arg);
9271
9272 if (TREE_CODE (arg) == REAL_CST && ! TREE_OVERFLOW (arg))
9273 {
9274 const REAL_VALUE_TYPE *const value = TREE_REAL_CST_PTR (arg);
9275
9276 switch (value->cl)
9277 {
9278 case rvc_nan:
9279 case rvc_inf:
9280 /* If arg is Inf or NaN and we're logb, return it. */
9281 if (TREE_CODE (rettype) == REAL_TYPE)
9282 {
9283 /* For logb(-Inf) we have to return +Inf. */
9284 if (real_isinf (value) && real_isneg (value))
9285 {
9286 REAL_VALUE_TYPE tem;
9287 real_inf (&tem);
9288 return build_real (rettype, tem);
9289 }
9290 return fold_convert_loc (loc, rettype, arg);
9291 }
9292 /* Fall through... */
9293 case rvc_zero:
9294 /* Zero may set errno and/or raise an exception for logb, also
9295 for ilogb we don't know FP_ILOGB0. */
9296 return NULL_TREE;
9297 case rvc_normal:
9298 /* For normal numbers, proceed iff radix == 2. In GCC,
9299 normalized significands are in the range [0.5, 1.0). We
9300 want the exponent as if they were [1.0, 2.0) so get the
9301 exponent and subtract 1. */
9302 if (REAL_MODE_FORMAT (TYPE_MODE (TREE_TYPE (arg)))->b == 2)
9303 return fold_convert_loc (loc, rettype,
9304 build_int_cst (integer_type_node,
9305 REAL_EXP (value)-1));
9306 break;
9307 }
9308 }
9309
9310 return NULL_TREE;
9311 }
9312
9313 /* Fold a call to builtin significand, if radix == 2. */
9314
9315 static tree
9316 fold_builtin_significand (location_t loc, tree arg, tree rettype)
9317 {
9318 if (! validate_arg (arg, REAL_TYPE))
9319 return NULL_TREE;
9320
9321 STRIP_NOPS (arg);
9322
9323 if (TREE_CODE (arg) == REAL_CST && ! TREE_OVERFLOW (arg))
9324 {
9325 const REAL_VALUE_TYPE *const value = TREE_REAL_CST_PTR (arg);
9326
9327 switch (value->cl)
9328 {
9329 case rvc_zero:
9330 case rvc_nan:
9331 case rvc_inf:
9332 /* If arg is +-0, +-Inf or +-NaN, then return it. */
9333 return fold_convert_loc (loc, rettype, arg);
9334 case rvc_normal:
9335 /* For normal numbers, proceed iff radix == 2. */
9336 if (REAL_MODE_FORMAT (TYPE_MODE (TREE_TYPE (arg)))->b == 2)
9337 {
9338 REAL_VALUE_TYPE result = *value;
9339 /* In GCC, normalized significands are in the range [0.5,
9340 1.0). We want them to be [1.0, 2.0) so set the
9341 exponent to 1. */
9342 SET_REAL_EXP (&result, 1);
9343 return build_real (rettype, result);
9344 }
9345 break;
9346 }
9347 }
9348
9349 return NULL_TREE;
9350 }
9351
9352 /* Fold a call to builtin frexp, we can assume the base is 2. */
9353
9354 static tree
9355 fold_builtin_frexp (location_t loc, tree arg0, tree arg1, tree rettype)
9356 {
9357 if (! validate_arg (arg0, REAL_TYPE) || ! validate_arg (arg1, POINTER_TYPE))
9358 return NULL_TREE;
9359
9360 STRIP_NOPS (arg0);
9361
9362 if (!(TREE_CODE (arg0) == REAL_CST && ! TREE_OVERFLOW (arg0)))
9363 return NULL_TREE;
9364
9365 arg1 = build_fold_indirect_ref_loc (loc, arg1);
9366
9367 /* Proceed if a valid pointer type was passed in. */
9368 if (TYPE_MAIN_VARIANT (TREE_TYPE (arg1)) == integer_type_node)
9369 {
9370 const REAL_VALUE_TYPE *const value = TREE_REAL_CST_PTR (arg0);
9371 tree frac, exp;
9372
9373 switch (value->cl)
9374 {
9375 case rvc_zero:
9376 /* For +-0, return (*exp = 0, +-0). */
9377 exp = integer_zero_node;
9378 frac = arg0;
9379 break;
9380 case rvc_nan:
9381 case rvc_inf:
9382 /* For +-NaN or +-Inf, *exp is unspecified, return arg0. */
9383 return omit_one_operand_loc (loc, rettype, arg0, arg1);
9384 case rvc_normal:
9385 {
9386 /* Since the frexp function always expects base 2, and in
9387 GCC normalized significands are already in the range
9388 [0.5, 1.0), we have exactly what frexp wants. */
9389 REAL_VALUE_TYPE frac_rvt = *value;
9390 SET_REAL_EXP (&frac_rvt, 0);
9391 frac = build_real (rettype, frac_rvt);
9392 exp = build_int_cst (integer_type_node, REAL_EXP (value));
9393 }
9394 break;
9395 default:
9396 gcc_unreachable ();
9397 }
9398
9399 /* Create the COMPOUND_EXPR (*arg1 = trunc, frac). */
9400 arg1 = fold_build2_loc (loc, MODIFY_EXPR, rettype, arg1, exp);
9401 TREE_SIDE_EFFECTS (arg1) = 1;
9402 return fold_build2_loc (loc, COMPOUND_EXPR, rettype, arg1, frac);
9403 }
9404
9405 return NULL_TREE;
9406 }
9407
9408 /* Fold a call to builtin ldexp or scalbn/scalbln. If LDEXP is true
9409 then we can assume the base is two. If it's false, then we have to
9410 check the mode of the TYPE parameter in certain cases. */
9411
9412 static tree
9413 fold_builtin_load_exponent (location_t loc, tree arg0, tree arg1,
9414 tree type, bool ldexp)
9415 {
9416 if (validate_arg (arg0, REAL_TYPE) && validate_arg (arg1, INTEGER_TYPE))
9417 {
9418 STRIP_NOPS (arg0);
9419 STRIP_NOPS (arg1);
9420
9421 /* If arg0 is 0, Inf or NaN, or if arg1 is 0, then return arg0. */
9422 if (real_zerop (arg0) || integer_zerop (arg1)
9423 || (TREE_CODE (arg0) == REAL_CST
9424 && !real_isfinite (&TREE_REAL_CST (arg0))))
9425 return omit_one_operand_loc (loc, type, arg0, arg1);
9426
9427 /* If both arguments are constant, then try to evaluate it. */
9428 if ((ldexp || REAL_MODE_FORMAT (TYPE_MODE (type))->b == 2)
9429 && TREE_CODE (arg0) == REAL_CST && !TREE_OVERFLOW (arg0)
9430 && tree_fits_shwi_p (arg1))
9431 {
9432 /* Bound the maximum adjustment to twice the range of the
9433 mode's valid exponents. Use abs to ensure the range is
9434 positive as a sanity check. */
9435 const long max_exp_adj = 2 *
9436 labs (REAL_MODE_FORMAT (TYPE_MODE (type))->emax
9437 - REAL_MODE_FORMAT (TYPE_MODE (type))->emin);
9438
9439 /* Get the user-requested adjustment. */
9440 const HOST_WIDE_INT req_exp_adj = tree_to_shwi (arg1);
9441
9442 /* The requested adjustment must be inside this range. This
9443 is a preliminary cap to avoid things like overflow, we
9444 may still fail to compute the result for other reasons. */
9445 if (-max_exp_adj < req_exp_adj && req_exp_adj < max_exp_adj)
9446 {
9447 REAL_VALUE_TYPE initial_result;
9448
9449 real_ldexp (&initial_result, &TREE_REAL_CST (arg0), req_exp_adj);
9450
9451 /* Ensure we didn't overflow. */
9452 if (! real_isinf (&initial_result))
9453 {
9454 const REAL_VALUE_TYPE trunc_result
9455 = real_value_truncate (TYPE_MODE (type), initial_result);
9456
9457 /* Only proceed if the target mode can hold the
9458 resulting value. */
9459 if (REAL_VALUES_EQUAL (initial_result, trunc_result))
9460 return build_real (type, trunc_result);
9461 }
9462 }
9463 }
9464 }
9465
9466 return NULL_TREE;
9467 }
9468
9469 /* Fold a call to builtin modf. */
9470
9471 static tree
9472 fold_builtin_modf (location_t loc, tree arg0, tree arg1, tree rettype)
9473 {
9474 if (! validate_arg (arg0, REAL_TYPE) || ! validate_arg (arg1, POINTER_TYPE))
9475 return NULL_TREE;
9476
9477 STRIP_NOPS (arg0);
9478
9479 if (!(TREE_CODE (arg0) == REAL_CST && ! TREE_OVERFLOW (arg0)))
9480 return NULL_TREE;
9481
9482 arg1 = build_fold_indirect_ref_loc (loc, arg1);
9483
9484 /* Proceed if a valid pointer type was passed in. */
9485 if (TYPE_MAIN_VARIANT (TREE_TYPE (arg1)) == TYPE_MAIN_VARIANT (rettype))
9486 {
9487 const REAL_VALUE_TYPE *const value = TREE_REAL_CST_PTR (arg0);
9488 REAL_VALUE_TYPE trunc, frac;
9489
9490 switch (value->cl)
9491 {
9492 case rvc_nan:
9493 case rvc_zero:
9494 /* For +-NaN or +-0, return (*arg1 = arg0, arg0). */
9495 trunc = frac = *value;
9496 break;
9497 case rvc_inf:
9498 /* For +-Inf, return (*arg1 = arg0, +-0). */
9499 frac = dconst0;
9500 frac.sign = value->sign;
9501 trunc = *value;
9502 break;
9503 case rvc_normal:
9504 /* Return (*arg1 = trunc(arg0), arg0-trunc(arg0)). */
9505 real_trunc (&trunc, VOIDmode, value);
9506 real_arithmetic (&frac, MINUS_EXPR, value, &trunc);
9507 /* If the original number was negative and already
9508 integral, then the fractional part is -0.0. */
9509 if (value->sign && frac.cl == rvc_zero)
9510 frac.sign = value->sign;
9511 break;
9512 }
9513
9514 /* Create the COMPOUND_EXPR (*arg1 = trunc, frac). */
9515 arg1 = fold_build2_loc (loc, MODIFY_EXPR, rettype, arg1,
9516 build_real (rettype, trunc));
9517 TREE_SIDE_EFFECTS (arg1) = 1;
9518 return fold_build2_loc (loc, COMPOUND_EXPR, rettype, arg1,
9519 build_real (rettype, frac));
9520 }
9521
9522 return NULL_TREE;
9523 }
9524
9525 /* Given a location LOC, an interclass builtin function decl FNDECL
9526 and its single argument ARG, return an folded expression computing
9527 the same, or NULL_TREE if we either couldn't or didn't want to fold
9528 (the latter happen if there's an RTL instruction available). */
9529
9530 static tree
9531 fold_builtin_interclass_mathfn (location_t loc, tree fndecl, tree arg)
9532 {
9533 machine_mode mode;
9534
9535 if (!validate_arg (arg, REAL_TYPE))
9536 return NULL_TREE;
9537
9538 if (interclass_mathfn_icode (arg, fndecl) != CODE_FOR_nothing)
9539 return NULL_TREE;
9540
9541 mode = TYPE_MODE (TREE_TYPE (arg));
9542
9543 /* If there is no optab, try generic code. */
9544 switch (DECL_FUNCTION_CODE (fndecl))
9545 {
9546 tree result;
9547
9548 CASE_FLT_FN (BUILT_IN_ISINF):
9549 {
9550 /* isinf(x) -> isgreater(fabs(x),DBL_MAX). */
9551 tree const isgr_fn = builtin_decl_explicit (BUILT_IN_ISGREATER);
9552 tree const type = TREE_TYPE (arg);
9553 REAL_VALUE_TYPE r;
9554 char buf[128];
9555
9556 get_max_float (REAL_MODE_FORMAT (mode), buf, sizeof (buf));
9557 real_from_string (&r, buf);
9558 result = build_call_expr (isgr_fn, 2,
9559 fold_build1_loc (loc, ABS_EXPR, type, arg),
9560 build_real (type, r));
9561 return result;
9562 }
9563 CASE_FLT_FN (BUILT_IN_FINITE):
9564 case BUILT_IN_ISFINITE:
9565 {
9566 /* isfinite(x) -> islessequal(fabs(x),DBL_MAX). */
9567 tree const isle_fn = builtin_decl_explicit (BUILT_IN_ISLESSEQUAL);
9568 tree const type = TREE_TYPE (arg);
9569 REAL_VALUE_TYPE r;
9570 char buf[128];
9571
9572 get_max_float (REAL_MODE_FORMAT (mode), buf, sizeof (buf));
9573 real_from_string (&r, buf);
9574 result = build_call_expr (isle_fn, 2,
9575 fold_build1_loc (loc, ABS_EXPR, type, arg),
9576 build_real (type, r));
9577 /*result = fold_build2_loc (loc, UNGT_EXPR,
9578 TREE_TYPE (TREE_TYPE (fndecl)),
9579 fold_build1_loc (loc, ABS_EXPR, type, arg),
9580 build_real (type, r));
9581 result = fold_build1_loc (loc, TRUTH_NOT_EXPR,
9582 TREE_TYPE (TREE_TYPE (fndecl)),
9583 result);*/
9584 return result;
9585 }
9586 case BUILT_IN_ISNORMAL:
9587 {
9588 /* isnormal(x) -> isgreaterequal(fabs(x),DBL_MIN) &
9589 islessequal(fabs(x),DBL_MAX). */
9590 tree const isle_fn = builtin_decl_explicit (BUILT_IN_ISLESSEQUAL);
9591 tree const isge_fn = builtin_decl_explicit (BUILT_IN_ISGREATEREQUAL);
9592 tree const type = TREE_TYPE (arg);
9593 REAL_VALUE_TYPE rmax, rmin;
9594 char buf[128];
9595
9596 get_max_float (REAL_MODE_FORMAT (mode), buf, sizeof (buf));
9597 real_from_string (&rmax, buf);
9598 sprintf (buf, "0x1p%d", REAL_MODE_FORMAT (mode)->emin - 1);
9599 real_from_string (&rmin, buf);
9600 arg = builtin_save_expr (fold_build1_loc (loc, ABS_EXPR, type, arg));
9601 result = build_call_expr (isle_fn, 2, arg,
9602 build_real (type, rmax));
9603 result = fold_build2 (BIT_AND_EXPR, integer_type_node, result,
9604 build_call_expr (isge_fn, 2, arg,
9605 build_real (type, rmin)));
9606 return result;
9607 }
9608 default:
9609 break;
9610 }
9611
9612 return NULL_TREE;
9613 }
9614
9615 /* Fold a call to __builtin_isnan(), __builtin_isinf, __builtin_finite.
9616 ARG is the argument for the call. */
9617
9618 static tree
9619 fold_builtin_classify (location_t loc, tree fndecl, tree arg, int builtin_index)
9620 {
9621 tree type = TREE_TYPE (TREE_TYPE (fndecl));
9622 REAL_VALUE_TYPE r;
9623
9624 if (!validate_arg (arg, REAL_TYPE))
9625 return NULL_TREE;
9626
9627 switch (builtin_index)
9628 {
9629 case BUILT_IN_ISINF:
9630 if (!HONOR_INFINITIES (arg))
9631 return omit_one_operand_loc (loc, type, integer_zero_node, arg);
9632
9633 if (TREE_CODE (arg) == REAL_CST)
9634 {
9635 r = TREE_REAL_CST (arg);
9636 if (real_isinf (&r))
9637 return real_compare (GT_EXPR, &r, &dconst0)
9638 ? integer_one_node : integer_minus_one_node;
9639 else
9640 return integer_zero_node;
9641 }
9642
9643 return NULL_TREE;
9644
9645 case BUILT_IN_ISINF_SIGN:
9646 {
9647 /* isinf_sign(x) -> isinf(x) ? (signbit(x) ? -1 : 1) : 0 */
9648 /* In a boolean context, GCC will fold the inner COND_EXPR to
9649 1. So e.g. "if (isinf_sign(x))" would be folded to just
9650 "if (isinf(x) ? 1 : 0)" which becomes "if (isinf(x))". */
9651 tree signbit_fn = mathfn_built_in_1 (TREE_TYPE (arg), BUILT_IN_SIGNBIT, 0);
9652 tree isinf_fn = builtin_decl_explicit (BUILT_IN_ISINF);
9653 tree tmp = NULL_TREE;
9654
9655 arg = builtin_save_expr (arg);
9656
9657 if (signbit_fn && isinf_fn)
9658 {
9659 tree signbit_call = build_call_expr_loc (loc, signbit_fn, 1, arg);
9660 tree isinf_call = build_call_expr_loc (loc, isinf_fn, 1, arg);
9661
9662 signbit_call = fold_build2_loc (loc, NE_EXPR, integer_type_node,
9663 signbit_call, integer_zero_node);
9664 isinf_call = fold_build2_loc (loc, NE_EXPR, integer_type_node,
9665 isinf_call, integer_zero_node);
9666
9667 tmp = fold_build3_loc (loc, COND_EXPR, integer_type_node, signbit_call,
9668 integer_minus_one_node, integer_one_node);
9669 tmp = fold_build3_loc (loc, COND_EXPR, integer_type_node,
9670 isinf_call, tmp,
9671 integer_zero_node);
9672 }
9673
9674 return tmp;
9675 }
9676
9677 case BUILT_IN_ISFINITE:
9678 if (!HONOR_NANS (arg)
9679 && !HONOR_INFINITIES (arg))
9680 return omit_one_operand_loc (loc, type, integer_one_node, arg);
9681
9682 if (TREE_CODE (arg) == REAL_CST)
9683 {
9684 r = TREE_REAL_CST (arg);
9685 return real_isfinite (&r) ? integer_one_node : integer_zero_node;
9686 }
9687
9688 return NULL_TREE;
9689
9690 case BUILT_IN_ISNAN:
9691 if (!HONOR_NANS (arg))
9692 return omit_one_operand_loc (loc, type, integer_zero_node, arg);
9693
9694 if (TREE_CODE (arg) == REAL_CST)
9695 {
9696 r = TREE_REAL_CST (arg);
9697 return real_isnan (&r) ? integer_one_node : integer_zero_node;
9698 }
9699
9700 arg = builtin_save_expr (arg);
9701 return fold_build2_loc (loc, UNORDERED_EXPR, type, arg, arg);
9702
9703 default:
9704 gcc_unreachable ();
9705 }
9706 }
9707
9708 /* Fold a call to __builtin_fpclassify(int, int, int, int, int, ...).
9709 This builtin will generate code to return the appropriate floating
9710 point classification depending on the value of the floating point
9711 number passed in. The possible return values must be supplied as
9712 int arguments to the call in the following order: FP_NAN, FP_INFINITE,
9713 FP_NORMAL, FP_SUBNORMAL and FP_ZERO. The ellipses is for exactly
9714 one floating point argument which is "type generic". */
9715
9716 static tree
9717 fold_builtin_fpclassify (location_t loc, tree *args, int nargs)
9718 {
9719 tree fp_nan, fp_infinite, fp_normal, fp_subnormal, fp_zero,
9720 arg, type, res, tmp;
9721 machine_mode mode;
9722 REAL_VALUE_TYPE r;
9723 char buf[128];
9724
9725 /* Verify the required arguments in the original call. */
9726 if (nargs != 6
9727 || !validate_arg (args[0], INTEGER_TYPE)
9728 || !validate_arg (args[1], INTEGER_TYPE)
9729 || !validate_arg (args[2], INTEGER_TYPE)
9730 || !validate_arg (args[3], INTEGER_TYPE)
9731 || !validate_arg (args[4], INTEGER_TYPE)
9732 || !validate_arg (args[5], REAL_TYPE))
9733 return NULL_TREE;
9734
9735 fp_nan = args[0];
9736 fp_infinite = args[1];
9737 fp_normal = args[2];
9738 fp_subnormal = args[3];
9739 fp_zero = args[4];
9740 arg = args[5];
9741 type = TREE_TYPE (arg);
9742 mode = TYPE_MODE (type);
9743 arg = builtin_save_expr (fold_build1_loc (loc, ABS_EXPR, type, arg));
9744
9745 /* fpclassify(x) ->
9746 isnan(x) ? FP_NAN :
9747 (fabs(x) == Inf ? FP_INFINITE :
9748 (fabs(x) >= DBL_MIN ? FP_NORMAL :
9749 (x == 0 ? FP_ZERO : FP_SUBNORMAL))). */
9750
9751 tmp = fold_build2_loc (loc, EQ_EXPR, integer_type_node, arg,
9752 build_real (type, dconst0));
9753 res = fold_build3_loc (loc, COND_EXPR, integer_type_node,
9754 tmp, fp_zero, fp_subnormal);
9755
9756 sprintf (buf, "0x1p%d", REAL_MODE_FORMAT (mode)->emin - 1);
9757 real_from_string (&r, buf);
9758 tmp = fold_build2_loc (loc, GE_EXPR, integer_type_node,
9759 arg, build_real (type, r));
9760 res = fold_build3_loc (loc, COND_EXPR, integer_type_node, tmp, fp_normal, res);
9761
9762 if (HONOR_INFINITIES (mode))
9763 {
9764 real_inf (&r);
9765 tmp = fold_build2_loc (loc, EQ_EXPR, integer_type_node, arg,
9766 build_real (type, r));
9767 res = fold_build3_loc (loc, COND_EXPR, integer_type_node, tmp,
9768 fp_infinite, res);
9769 }
9770
9771 if (HONOR_NANS (mode))
9772 {
9773 tmp = fold_build2_loc (loc, ORDERED_EXPR, integer_type_node, arg, arg);
9774 res = fold_build3_loc (loc, COND_EXPR, integer_type_node, tmp, res, fp_nan);
9775 }
9776
9777 return res;
9778 }
9779
9780 /* Fold a call to an unordered comparison function such as
9781 __builtin_isgreater(). FNDECL is the FUNCTION_DECL for the function
9782 being called and ARG0 and ARG1 are the arguments for the call.
9783 UNORDERED_CODE and ORDERED_CODE are comparison codes that give
9784 the opposite of the desired result. UNORDERED_CODE is used
9785 for modes that can hold NaNs and ORDERED_CODE is used for
9786 the rest. */
9787
9788 static tree
9789 fold_builtin_unordered_cmp (location_t loc, tree fndecl, tree arg0, tree arg1,
9790 enum tree_code unordered_code,
9791 enum tree_code ordered_code)
9792 {
9793 tree type = TREE_TYPE (TREE_TYPE (fndecl));
9794 enum tree_code code;
9795 tree type0, type1;
9796 enum tree_code code0, code1;
9797 tree cmp_type = NULL_TREE;
9798
9799 type0 = TREE_TYPE (arg0);
9800 type1 = TREE_TYPE (arg1);
9801
9802 code0 = TREE_CODE (type0);
9803 code1 = TREE_CODE (type1);
9804
9805 if (code0 == REAL_TYPE && code1 == REAL_TYPE)
9806 /* Choose the wider of two real types. */
9807 cmp_type = TYPE_PRECISION (type0) >= TYPE_PRECISION (type1)
9808 ? type0 : type1;
9809 else if (code0 == REAL_TYPE && code1 == INTEGER_TYPE)
9810 cmp_type = type0;
9811 else if (code0 == INTEGER_TYPE && code1 == REAL_TYPE)
9812 cmp_type = type1;
9813
9814 arg0 = fold_convert_loc (loc, cmp_type, arg0);
9815 arg1 = fold_convert_loc (loc, cmp_type, arg1);
9816
9817 if (unordered_code == UNORDERED_EXPR)
9818 {
9819 if (!HONOR_NANS (arg0))
9820 return omit_two_operands_loc (loc, type, integer_zero_node, arg0, arg1);
9821 return fold_build2_loc (loc, UNORDERED_EXPR, type, arg0, arg1);
9822 }
9823
9824 code = HONOR_NANS (arg0) ? unordered_code : ordered_code;
9825 return fold_build1_loc (loc, TRUTH_NOT_EXPR, type,
9826 fold_build2_loc (loc, code, type, arg0, arg1));
9827 }
9828
9829 /* Fold __builtin_{,s,u}{add,sub,mul}{,l,ll}_overflow, either into normal
9830 arithmetics if it can never overflow, or into internal functions that
9831 return both result of arithmetics and overflowed boolean flag in
9832 a complex integer result, or some other check for overflow. */
9833
9834 static tree
9835 fold_builtin_arith_overflow (location_t loc, enum built_in_function fcode,
9836 tree arg0, tree arg1, tree arg2)
9837 {
9838 enum internal_fn ifn = IFN_LAST;
9839 tree type = TREE_TYPE (TREE_TYPE (arg2));
9840 tree mem_arg2 = build_fold_indirect_ref_loc (loc, arg2);
9841 switch (fcode)
9842 {
9843 case BUILT_IN_ADD_OVERFLOW:
9844 case BUILT_IN_SADD_OVERFLOW:
9845 case BUILT_IN_SADDL_OVERFLOW:
9846 case BUILT_IN_SADDLL_OVERFLOW:
9847 case BUILT_IN_UADD_OVERFLOW:
9848 case BUILT_IN_UADDL_OVERFLOW:
9849 case BUILT_IN_UADDLL_OVERFLOW:
9850 ifn = IFN_ADD_OVERFLOW;
9851 break;
9852 case BUILT_IN_SUB_OVERFLOW:
9853 case BUILT_IN_SSUB_OVERFLOW:
9854 case BUILT_IN_SSUBL_OVERFLOW:
9855 case BUILT_IN_SSUBLL_OVERFLOW:
9856 case BUILT_IN_USUB_OVERFLOW:
9857 case BUILT_IN_USUBL_OVERFLOW:
9858 case BUILT_IN_USUBLL_OVERFLOW:
9859 ifn = IFN_SUB_OVERFLOW;
9860 break;
9861 case BUILT_IN_MUL_OVERFLOW:
9862 case BUILT_IN_SMUL_OVERFLOW:
9863 case BUILT_IN_SMULL_OVERFLOW:
9864 case BUILT_IN_SMULLL_OVERFLOW:
9865 case BUILT_IN_UMUL_OVERFLOW:
9866 case BUILT_IN_UMULL_OVERFLOW:
9867 case BUILT_IN_UMULLL_OVERFLOW:
9868 ifn = IFN_MUL_OVERFLOW;
9869 break;
9870 default:
9871 gcc_unreachable ();
9872 }
9873 tree ctype = build_complex_type (type);
9874 tree call = build_call_expr_internal_loc (loc, ifn, ctype,
9875 2, arg0, arg1);
9876 tree tgt = save_expr (call);
9877 tree intres = build1_loc (loc, REALPART_EXPR, type, tgt);
9878 tree ovfres = build1_loc (loc, IMAGPART_EXPR, type, tgt);
9879 ovfres = fold_convert_loc (loc, boolean_type_node, ovfres);
9880 tree store
9881 = fold_build2_loc (loc, MODIFY_EXPR, void_type_node, mem_arg2, intres);
9882 return build2_loc (loc, COMPOUND_EXPR, boolean_type_node, store, ovfres);
9883 }
9884
9885 /* Fold a call to built-in function FNDECL with 0 arguments.
9886 This function returns NULL_TREE if no simplification was possible. */
9887
9888 static tree
9889 fold_builtin_0 (location_t loc, tree fndecl)
9890 {
9891 tree type = TREE_TYPE (TREE_TYPE (fndecl));
9892 enum built_in_function fcode = DECL_FUNCTION_CODE (fndecl);
9893 switch (fcode)
9894 {
9895 CASE_FLT_FN (BUILT_IN_INF):
9896 case BUILT_IN_INFD32:
9897 case BUILT_IN_INFD64:
9898 case BUILT_IN_INFD128:
9899 return fold_builtin_inf (loc, type, true);
9900
9901 CASE_FLT_FN (BUILT_IN_HUGE_VAL):
9902 return fold_builtin_inf (loc, type, false);
9903
9904 case BUILT_IN_CLASSIFY_TYPE:
9905 return fold_builtin_classify_type (NULL_TREE);
9906
9907 default:
9908 break;
9909 }
9910 return NULL_TREE;
9911 }
9912
9913 /* Fold a call to built-in function FNDECL with 1 argument, ARG0.
9914 This function returns NULL_TREE if no simplification was possible. */
9915
9916 static tree
9917 fold_builtin_1 (location_t loc, tree fndecl, tree arg0)
9918 {
9919 tree type = TREE_TYPE (TREE_TYPE (fndecl));
9920 enum built_in_function fcode = DECL_FUNCTION_CODE (fndecl);
9921 switch (fcode)
9922 {
9923 case BUILT_IN_CONSTANT_P:
9924 {
9925 tree val = fold_builtin_constant_p (arg0);
9926
9927 /* Gimplification will pull the CALL_EXPR for the builtin out of
9928 an if condition. When not optimizing, we'll not CSE it back.
9929 To avoid link error types of regressions, return false now. */
9930 if (!val && !optimize)
9931 val = integer_zero_node;
9932
9933 return val;
9934 }
9935
9936 case BUILT_IN_CLASSIFY_TYPE:
9937 return fold_builtin_classify_type (arg0);
9938
9939 case BUILT_IN_STRLEN:
9940 return fold_builtin_strlen (loc, type, arg0);
9941
9942 CASE_FLT_FN (BUILT_IN_FABS):
9943 case BUILT_IN_FABSD32:
9944 case BUILT_IN_FABSD64:
9945 case BUILT_IN_FABSD128:
9946 return fold_builtin_fabs (loc, arg0, type);
9947
9948 case BUILT_IN_ABS:
9949 case BUILT_IN_LABS:
9950 case BUILT_IN_LLABS:
9951 case BUILT_IN_IMAXABS:
9952 return fold_builtin_abs (loc, arg0, type);
9953
9954 CASE_FLT_FN (BUILT_IN_CONJ):
9955 if (validate_arg (arg0, COMPLEX_TYPE)
9956 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
9957 return fold_build1_loc (loc, CONJ_EXPR, type, arg0);
9958 break;
9959
9960 CASE_FLT_FN (BUILT_IN_CREAL):
9961 if (validate_arg (arg0, COMPLEX_TYPE)
9962 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
9963 return non_lvalue_loc (loc, fold_build1_loc (loc, REALPART_EXPR, type, arg0));
9964 break;
9965
9966 CASE_FLT_FN (BUILT_IN_CIMAG):
9967 if (validate_arg (arg0, COMPLEX_TYPE)
9968 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
9969 return non_lvalue_loc (loc, fold_build1_loc (loc, IMAGPART_EXPR, type, arg0));
9970 break;
9971
9972 CASE_FLT_FN (BUILT_IN_CCOS):
9973 return fold_builtin_ccos (loc, arg0, type, fndecl, /*hyper=*/ false);
9974
9975 CASE_FLT_FN (BUILT_IN_CCOSH):
9976 return fold_builtin_ccos (loc, arg0, type, fndecl, /*hyper=*/ true);
9977
9978 CASE_FLT_FN (BUILT_IN_CPROJ):
9979 return fold_builtin_cproj (loc, arg0, type);
9980
9981 CASE_FLT_FN (BUILT_IN_CSIN):
9982 if (validate_arg (arg0, COMPLEX_TYPE)
9983 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
9984 return do_mpc_arg1 (arg0, type, mpc_sin);
9985 break;
9986
9987 CASE_FLT_FN (BUILT_IN_CSINH):
9988 if (validate_arg (arg0, COMPLEX_TYPE)
9989 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
9990 return do_mpc_arg1 (arg0, type, mpc_sinh);
9991 break;
9992
9993 CASE_FLT_FN (BUILT_IN_CTAN):
9994 if (validate_arg (arg0, COMPLEX_TYPE)
9995 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
9996 return do_mpc_arg1 (arg0, type, mpc_tan);
9997 break;
9998
9999 CASE_FLT_FN (BUILT_IN_CTANH):
10000 if (validate_arg (arg0, COMPLEX_TYPE)
10001 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
10002 return do_mpc_arg1 (arg0, type, mpc_tanh);
10003 break;
10004
10005 CASE_FLT_FN (BUILT_IN_CLOG):
10006 if (validate_arg (arg0, COMPLEX_TYPE)
10007 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
10008 return do_mpc_arg1 (arg0, type, mpc_log);
10009 break;
10010
10011 CASE_FLT_FN (BUILT_IN_CSQRT):
10012 if (validate_arg (arg0, COMPLEX_TYPE)
10013 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
10014 return do_mpc_arg1 (arg0, type, mpc_sqrt);
10015 break;
10016
10017 CASE_FLT_FN (BUILT_IN_CASIN):
10018 if (validate_arg (arg0, COMPLEX_TYPE)
10019 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
10020 return do_mpc_arg1 (arg0, type, mpc_asin);
10021 break;
10022
10023 CASE_FLT_FN (BUILT_IN_CACOS):
10024 if (validate_arg (arg0, COMPLEX_TYPE)
10025 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
10026 return do_mpc_arg1 (arg0, type, mpc_acos);
10027 break;
10028
10029 CASE_FLT_FN (BUILT_IN_CATAN):
10030 if (validate_arg (arg0, COMPLEX_TYPE)
10031 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
10032 return do_mpc_arg1 (arg0, type, mpc_atan);
10033 break;
10034
10035 CASE_FLT_FN (BUILT_IN_CASINH):
10036 if (validate_arg (arg0, COMPLEX_TYPE)
10037 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
10038 return do_mpc_arg1 (arg0, type, mpc_asinh);
10039 break;
10040
10041 CASE_FLT_FN (BUILT_IN_CACOSH):
10042 if (validate_arg (arg0, COMPLEX_TYPE)
10043 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
10044 return do_mpc_arg1 (arg0, type, mpc_acosh);
10045 break;
10046
10047 CASE_FLT_FN (BUILT_IN_CATANH):
10048 if (validate_arg (arg0, COMPLEX_TYPE)
10049 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE)
10050 return do_mpc_arg1 (arg0, type, mpc_atanh);
10051 break;
10052
10053 CASE_FLT_FN (BUILT_IN_CABS):
10054 return fold_builtin_cabs (loc, arg0, type, fndecl);
10055
10056 CASE_FLT_FN (BUILT_IN_CARG):
10057 return fold_builtin_carg (loc, arg0, type);
10058
10059 CASE_FLT_FN (BUILT_IN_SQRT):
10060 return fold_builtin_sqrt (loc, arg0, type);
10061
10062 CASE_FLT_FN (BUILT_IN_CBRT):
10063 return fold_builtin_cbrt (loc, arg0, type);
10064
10065 CASE_FLT_FN (BUILT_IN_ASIN):
10066 if (validate_arg (arg0, REAL_TYPE))
10067 return do_mpfr_arg1 (arg0, type, mpfr_asin,
10068 &dconstm1, &dconst1, true);
10069 break;
10070
10071 CASE_FLT_FN (BUILT_IN_ACOS):
10072 if (validate_arg (arg0, REAL_TYPE))
10073 return do_mpfr_arg1 (arg0, type, mpfr_acos,
10074 &dconstm1, &dconst1, true);
10075 break;
10076
10077 CASE_FLT_FN (BUILT_IN_ATAN):
10078 if (validate_arg (arg0, REAL_TYPE))
10079 return do_mpfr_arg1 (arg0, type, mpfr_atan, NULL, NULL, 0);
10080 break;
10081
10082 CASE_FLT_FN (BUILT_IN_ASINH):
10083 if (validate_arg (arg0, REAL_TYPE))
10084 return do_mpfr_arg1 (arg0, type, mpfr_asinh, NULL, NULL, 0);
10085 break;
10086
10087 CASE_FLT_FN (BUILT_IN_ACOSH):
10088 if (validate_arg (arg0, REAL_TYPE))
10089 return do_mpfr_arg1 (arg0, type, mpfr_acosh,
10090 &dconst1, NULL, true);
10091 break;
10092
10093 CASE_FLT_FN (BUILT_IN_ATANH):
10094 if (validate_arg (arg0, REAL_TYPE))
10095 return do_mpfr_arg1 (arg0, type, mpfr_atanh,
10096 &dconstm1, &dconst1, false);
10097 break;
10098
10099 CASE_FLT_FN (BUILT_IN_SIN):
10100 if (validate_arg (arg0, REAL_TYPE))
10101 return do_mpfr_arg1 (arg0, type, mpfr_sin, NULL, NULL, 0);
10102 break;
10103
10104 CASE_FLT_FN (BUILT_IN_COS):
10105 return fold_builtin_cos (loc, arg0, type, fndecl);
10106
10107 CASE_FLT_FN (BUILT_IN_TAN):
10108 return fold_builtin_tan (arg0, type);
10109
10110 CASE_FLT_FN (BUILT_IN_CEXP):
10111 return fold_builtin_cexp (loc, arg0, type);
10112
10113 CASE_FLT_FN (BUILT_IN_CEXPI):
10114 if (validate_arg (arg0, REAL_TYPE))
10115 return do_mpfr_sincos (arg0, NULL_TREE, NULL_TREE);
10116 break;
10117
10118 CASE_FLT_FN (BUILT_IN_SINH):
10119 if (validate_arg (arg0, REAL_TYPE))
10120 return do_mpfr_arg1 (arg0, type, mpfr_sinh, NULL, NULL, 0);
10121 break;
10122
10123 CASE_FLT_FN (BUILT_IN_COSH):
10124 return fold_builtin_cosh (loc, arg0, type, fndecl);
10125
10126 CASE_FLT_FN (BUILT_IN_TANH):
10127 if (validate_arg (arg0, REAL_TYPE))
10128 return do_mpfr_arg1 (arg0, type, mpfr_tanh, NULL, NULL, 0);
10129 break;
10130
10131 CASE_FLT_FN (BUILT_IN_ERF):
10132 if (validate_arg (arg0, REAL_TYPE))
10133 return do_mpfr_arg1 (arg0, type, mpfr_erf, NULL, NULL, 0);
10134 break;
10135
10136 CASE_FLT_FN (BUILT_IN_ERFC):
10137 if (validate_arg (arg0, REAL_TYPE))
10138 return do_mpfr_arg1 (arg0, type, mpfr_erfc, NULL, NULL, 0);
10139 break;
10140
10141 CASE_FLT_FN (BUILT_IN_TGAMMA):
10142 if (validate_arg (arg0, REAL_TYPE))
10143 return do_mpfr_arg1 (arg0, type, mpfr_gamma, NULL, NULL, 0);
10144 break;
10145
10146 CASE_FLT_FN (BUILT_IN_EXP):
10147 return fold_builtin_exponent (loc, fndecl, arg0, mpfr_exp);
10148
10149 CASE_FLT_FN (BUILT_IN_EXP2):
10150 return fold_builtin_exponent (loc, fndecl, arg0, mpfr_exp2);
10151
10152 CASE_FLT_FN (BUILT_IN_EXP10):
10153 CASE_FLT_FN (BUILT_IN_POW10):
10154 return fold_builtin_exponent (loc, fndecl, arg0, mpfr_exp10);
10155
10156 CASE_FLT_FN (BUILT_IN_EXPM1):
10157 if (validate_arg (arg0, REAL_TYPE))
10158 return do_mpfr_arg1 (arg0, type, mpfr_expm1, NULL, NULL, 0);
10159 break;
10160
10161 CASE_FLT_FN (BUILT_IN_LOG):
10162 if (validate_arg (arg0, REAL_TYPE))
10163 return do_mpfr_arg1 (arg0, type, mpfr_log, &dconst0, NULL, false);
10164 break;
10165
10166 CASE_FLT_FN (BUILT_IN_LOG2):
10167 if (validate_arg (arg0, REAL_TYPE))
10168 return do_mpfr_arg1 (arg0, type, mpfr_log2, &dconst0, NULL, false);
10169 break;
10170
10171 CASE_FLT_FN (BUILT_IN_LOG10):
10172 if (validate_arg (arg0, REAL_TYPE))
10173 return do_mpfr_arg1 (arg0, type, mpfr_log10, &dconst0, NULL, false);
10174 break;
10175
10176 CASE_FLT_FN (BUILT_IN_LOG1P):
10177 if (validate_arg (arg0, REAL_TYPE))
10178 return do_mpfr_arg1 (arg0, type, mpfr_log1p,
10179 &dconstm1, NULL, false);
10180 break;
10181
10182 CASE_FLT_FN (BUILT_IN_J0):
10183 if (validate_arg (arg0, REAL_TYPE))
10184 return do_mpfr_arg1 (arg0, type, mpfr_j0,
10185 NULL, NULL, 0);
10186 break;
10187
10188 CASE_FLT_FN (BUILT_IN_J1):
10189 if (validate_arg (arg0, REAL_TYPE))
10190 return do_mpfr_arg1 (arg0, type, mpfr_j1,
10191 NULL, NULL, 0);
10192 break;
10193
10194 CASE_FLT_FN (BUILT_IN_Y0):
10195 if (validate_arg (arg0, REAL_TYPE))
10196 return do_mpfr_arg1 (arg0, type, mpfr_y0,
10197 &dconst0, NULL, false);
10198 break;
10199
10200 CASE_FLT_FN (BUILT_IN_Y1):
10201 if (validate_arg (arg0, REAL_TYPE))
10202 return do_mpfr_arg1 (arg0, type, mpfr_y1,
10203 &dconst0, NULL, false);
10204 break;
10205
10206 CASE_FLT_FN (BUILT_IN_NAN):
10207 case BUILT_IN_NAND32:
10208 case BUILT_IN_NAND64:
10209 case BUILT_IN_NAND128:
10210 return fold_builtin_nan (arg0, type, true);
10211
10212 CASE_FLT_FN (BUILT_IN_NANS):
10213 return fold_builtin_nan (arg0, type, false);
10214
10215 CASE_FLT_FN (BUILT_IN_FLOOR):
10216 return fold_builtin_floor (loc, fndecl, arg0);
10217
10218 CASE_FLT_FN (BUILT_IN_CEIL):
10219 return fold_builtin_ceil (loc, fndecl, arg0);
10220
10221 CASE_FLT_FN (BUILT_IN_TRUNC):
10222 return fold_builtin_trunc (loc, fndecl, arg0);
10223
10224 CASE_FLT_FN (BUILT_IN_ROUND):
10225 return fold_builtin_round (loc, fndecl, arg0);
10226
10227 CASE_FLT_FN (BUILT_IN_NEARBYINT):
10228 CASE_FLT_FN (BUILT_IN_RINT):
10229 return fold_trunc_transparent_mathfn (loc, fndecl, arg0);
10230
10231 CASE_FLT_FN (BUILT_IN_ICEIL):
10232 CASE_FLT_FN (BUILT_IN_LCEIL):
10233 CASE_FLT_FN (BUILT_IN_LLCEIL):
10234 CASE_FLT_FN (BUILT_IN_LFLOOR):
10235 CASE_FLT_FN (BUILT_IN_IFLOOR):
10236 CASE_FLT_FN (BUILT_IN_LLFLOOR):
10237 CASE_FLT_FN (BUILT_IN_IROUND):
10238 CASE_FLT_FN (BUILT_IN_LROUND):
10239 CASE_FLT_FN (BUILT_IN_LLROUND):
10240 return fold_builtin_int_roundingfn (loc, fndecl, arg0);
10241
10242 CASE_FLT_FN (BUILT_IN_IRINT):
10243 CASE_FLT_FN (BUILT_IN_LRINT):
10244 CASE_FLT_FN (BUILT_IN_LLRINT):
10245 return fold_fixed_mathfn (loc, fndecl, arg0);
10246
10247 case BUILT_IN_BSWAP16:
10248 case BUILT_IN_BSWAP32:
10249 case BUILT_IN_BSWAP64:
10250 return fold_builtin_bswap (fndecl, arg0);
10251
10252 CASE_INT_FN (BUILT_IN_FFS):
10253 CASE_INT_FN (BUILT_IN_CLZ):
10254 CASE_INT_FN (BUILT_IN_CTZ):
10255 CASE_INT_FN (BUILT_IN_CLRSB):
10256 CASE_INT_FN (BUILT_IN_POPCOUNT):
10257 CASE_INT_FN (BUILT_IN_PARITY):
10258 return fold_builtin_bitop (fndecl, arg0);
10259
10260 CASE_FLT_FN (BUILT_IN_SIGNBIT):
10261 return fold_builtin_signbit (loc, arg0, type);
10262
10263 CASE_FLT_FN (BUILT_IN_SIGNIFICAND):
10264 return fold_builtin_significand (loc, arg0, type);
10265
10266 CASE_FLT_FN (BUILT_IN_ILOGB):
10267 CASE_FLT_FN (BUILT_IN_LOGB):
10268 return fold_builtin_logb (loc, arg0, type);
10269
10270 case BUILT_IN_ISASCII:
10271 return fold_builtin_isascii (loc, arg0);
10272
10273 case BUILT_IN_TOASCII:
10274 return fold_builtin_toascii (loc, arg0);
10275
10276 case BUILT_IN_ISDIGIT:
10277 return fold_builtin_isdigit (loc, arg0);
10278
10279 CASE_FLT_FN (BUILT_IN_FINITE):
10280 case BUILT_IN_FINITED32:
10281 case BUILT_IN_FINITED64:
10282 case BUILT_IN_FINITED128:
10283 case BUILT_IN_ISFINITE:
10284 {
10285 tree ret = fold_builtin_classify (loc, fndecl, arg0, BUILT_IN_ISFINITE);
10286 if (ret)
10287 return ret;
10288 return fold_builtin_interclass_mathfn (loc, fndecl, arg0);
10289 }
10290
10291 CASE_FLT_FN (BUILT_IN_ISINF):
10292 case BUILT_IN_ISINFD32:
10293 case BUILT_IN_ISINFD64:
10294 case BUILT_IN_ISINFD128:
10295 {
10296 tree ret = fold_builtin_classify (loc, fndecl, arg0, BUILT_IN_ISINF);
10297 if (ret)
10298 return ret;
10299 return fold_builtin_interclass_mathfn (loc, fndecl, arg0);
10300 }
10301
10302 case BUILT_IN_ISNORMAL:
10303 return fold_builtin_interclass_mathfn (loc, fndecl, arg0);
10304
10305 case BUILT_IN_ISINF_SIGN:
10306 return fold_builtin_classify (loc, fndecl, arg0, BUILT_IN_ISINF_SIGN);
10307
10308 CASE_FLT_FN (BUILT_IN_ISNAN):
10309 case BUILT_IN_ISNAND32:
10310 case BUILT_IN_ISNAND64:
10311 case BUILT_IN_ISNAND128:
10312 return fold_builtin_classify (loc, fndecl, arg0, BUILT_IN_ISNAN);
10313
10314 case BUILT_IN_FREE:
10315 if (integer_zerop (arg0))
10316 return build_empty_stmt (loc);
10317 break;
10318
10319 default:
10320 break;
10321 }
10322
10323 return NULL_TREE;
10324
10325 }
10326
10327 /* Fold a call to built-in function FNDECL with 2 arguments, ARG0 and ARG1.
10328 This function returns NULL_TREE if no simplification was possible. */
10329
10330 static tree
10331 fold_builtin_2 (location_t loc, tree fndecl, tree arg0, tree arg1)
10332 {
10333 tree type = TREE_TYPE (TREE_TYPE (fndecl));
10334 enum built_in_function fcode = DECL_FUNCTION_CODE (fndecl);
10335
10336 switch (fcode)
10337 {
10338 CASE_FLT_FN (BUILT_IN_JN):
10339 if (validate_arg (arg0, INTEGER_TYPE)
10340 && validate_arg (arg1, REAL_TYPE))
10341 return do_mpfr_bessel_n (arg0, arg1, type, mpfr_jn, NULL, 0);
10342 break;
10343
10344 CASE_FLT_FN (BUILT_IN_YN):
10345 if (validate_arg (arg0, INTEGER_TYPE)
10346 && validate_arg (arg1, REAL_TYPE))
10347 return do_mpfr_bessel_n (arg0, arg1, type, mpfr_yn,
10348 &dconst0, false);
10349 break;
10350
10351 CASE_FLT_FN (BUILT_IN_DREM):
10352 CASE_FLT_FN (BUILT_IN_REMAINDER):
10353 if (validate_arg (arg0, REAL_TYPE)
10354 && validate_arg (arg1, REAL_TYPE))
10355 return do_mpfr_arg2 (arg0, arg1, type, mpfr_remainder);
10356 break;
10357
10358 CASE_FLT_FN_REENT (BUILT_IN_GAMMA): /* GAMMA_R */
10359 CASE_FLT_FN_REENT (BUILT_IN_LGAMMA): /* LGAMMA_R */
10360 if (validate_arg (arg0, REAL_TYPE)
10361 && validate_arg (arg1, POINTER_TYPE))
10362 return do_mpfr_lgamma_r (arg0, arg1, type);
10363 break;
10364
10365 CASE_FLT_FN (BUILT_IN_ATAN2):
10366 if (validate_arg (arg0, REAL_TYPE)
10367 && validate_arg (arg1, REAL_TYPE))
10368 return do_mpfr_arg2 (arg0, arg1, type, mpfr_atan2);
10369 break;
10370
10371 CASE_FLT_FN (BUILT_IN_FDIM):
10372 if (validate_arg (arg0, REAL_TYPE)
10373 && validate_arg (arg1, REAL_TYPE))
10374 return do_mpfr_arg2 (arg0, arg1, type, mpfr_dim);
10375 break;
10376
10377 CASE_FLT_FN (BUILT_IN_HYPOT):
10378 return fold_builtin_hypot (loc, fndecl, arg0, arg1, type);
10379
10380 CASE_FLT_FN (BUILT_IN_CPOW):
10381 if (validate_arg (arg0, COMPLEX_TYPE)
10382 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE
10383 && validate_arg (arg1, COMPLEX_TYPE)
10384 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg1))) == REAL_TYPE)
10385 return do_mpc_arg2 (arg0, arg1, type, /*do_nonfinite=*/ 0, mpc_pow);
10386 break;
10387
10388 CASE_FLT_FN (BUILT_IN_LDEXP):
10389 return fold_builtin_load_exponent (loc, arg0, arg1, type, /*ldexp=*/true);
10390 CASE_FLT_FN (BUILT_IN_SCALBN):
10391 CASE_FLT_FN (BUILT_IN_SCALBLN):
10392 return fold_builtin_load_exponent (loc, arg0, arg1,
10393 type, /*ldexp=*/false);
10394
10395 CASE_FLT_FN (BUILT_IN_FREXP):
10396 return fold_builtin_frexp (loc, arg0, arg1, type);
10397
10398 CASE_FLT_FN (BUILT_IN_MODF):
10399 return fold_builtin_modf (loc, arg0, arg1, type);
10400
10401 case BUILT_IN_STRSTR:
10402 return fold_builtin_strstr (loc, arg0, arg1, type);
10403
10404 case BUILT_IN_STRSPN:
10405 return fold_builtin_strspn (loc, arg0, arg1);
10406
10407 case BUILT_IN_STRCSPN:
10408 return fold_builtin_strcspn (loc, arg0, arg1);
10409
10410 case BUILT_IN_STRCHR:
10411 case BUILT_IN_INDEX:
10412 return fold_builtin_strchr (loc, arg0, arg1, type);
10413
10414 case BUILT_IN_STRRCHR:
10415 case BUILT_IN_RINDEX:
10416 return fold_builtin_strrchr (loc, arg0, arg1, type);
10417
10418 case BUILT_IN_STRCMP:
10419 return fold_builtin_strcmp (loc, arg0, arg1);
10420
10421 case BUILT_IN_STRPBRK:
10422 return fold_builtin_strpbrk (loc, arg0, arg1, type);
10423
10424 case BUILT_IN_EXPECT:
10425 return fold_builtin_expect (loc, arg0, arg1, NULL_TREE);
10426
10427 CASE_FLT_FN (BUILT_IN_POW):
10428 return fold_builtin_pow (loc, fndecl, arg0, arg1, type);
10429
10430 CASE_FLT_FN (BUILT_IN_POWI):
10431 return fold_builtin_powi (loc, fndecl, arg0, arg1, type);
10432
10433 CASE_FLT_FN (BUILT_IN_COPYSIGN):
10434 return fold_builtin_copysign (loc, fndecl, arg0, arg1, type);
10435
10436 CASE_FLT_FN (BUILT_IN_FMIN):
10437 return fold_builtin_fmin_fmax (loc, arg0, arg1, type, /*max=*/false);
10438
10439 CASE_FLT_FN (BUILT_IN_FMAX):
10440 return fold_builtin_fmin_fmax (loc, arg0, arg1, type, /*max=*/true);
10441
10442 case BUILT_IN_ISGREATER:
10443 return fold_builtin_unordered_cmp (loc, fndecl,
10444 arg0, arg1, UNLE_EXPR, LE_EXPR);
10445 case BUILT_IN_ISGREATEREQUAL:
10446 return fold_builtin_unordered_cmp (loc, fndecl,
10447 arg0, arg1, UNLT_EXPR, LT_EXPR);
10448 case BUILT_IN_ISLESS:
10449 return fold_builtin_unordered_cmp (loc, fndecl,
10450 arg0, arg1, UNGE_EXPR, GE_EXPR);
10451 case BUILT_IN_ISLESSEQUAL:
10452 return fold_builtin_unordered_cmp (loc, fndecl,
10453 arg0, arg1, UNGT_EXPR, GT_EXPR);
10454 case BUILT_IN_ISLESSGREATER:
10455 return fold_builtin_unordered_cmp (loc, fndecl,
10456 arg0, arg1, UNEQ_EXPR, EQ_EXPR);
10457 case BUILT_IN_ISUNORDERED:
10458 return fold_builtin_unordered_cmp (loc, fndecl,
10459 arg0, arg1, UNORDERED_EXPR,
10460 NOP_EXPR);
10461
10462 /* We do the folding for va_start in the expander. */
10463 case BUILT_IN_VA_START:
10464 break;
10465
10466 case BUILT_IN_OBJECT_SIZE:
10467 return fold_builtin_object_size (arg0, arg1);
10468
10469 case BUILT_IN_ATOMIC_ALWAYS_LOCK_FREE:
10470 return fold_builtin_atomic_always_lock_free (arg0, arg1);
10471
10472 case BUILT_IN_ATOMIC_IS_LOCK_FREE:
10473 return fold_builtin_atomic_is_lock_free (arg0, arg1);
10474
10475 default:
10476 break;
10477 }
10478 return NULL_TREE;
10479 }
10480
10481 /* Fold a call to built-in function FNDECL with 3 arguments, ARG0, ARG1,
10482 and ARG2.
10483 This function returns NULL_TREE if no simplification was possible. */
10484
10485 static tree
10486 fold_builtin_3 (location_t loc, tree fndecl,
10487 tree arg0, tree arg1, tree arg2)
10488 {
10489 tree type = TREE_TYPE (TREE_TYPE (fndecl));
10490 enum built_in_function fcode = DECL_FUNCTION_CODE (fndecl);
10491 switch (fcode)
10492 {
10493
10494 CASE_FLT_FN (BUILT_IN_SINCOS):
10495 return fold_builtin_sincos (loc, arg0, arg1, arg2);
10496
10497 CASE_FLT_FN (BUILT_IN_FMA):
10498 return fold_builtin_fma (loc, arg0, arg1, arg2, type);
10499 break;
10500
10501 CASE_FLT_FN (BUILT_IN_REMQUO):
10502 if (validate_arg (arg0, REAL_TYPE)
10503 && validate_arg (arg1, REAL_TYPE)
10504 && validate_arg (arg2, POINTER_TYPE))
10505 return do_mpfr_remquo (arg0, arg1, arg2);
10506 break;
10507
10508 case BUILT_IN_STRNCMP:
10509 return fold_builtin_strncmp (loc, arg0, arg1, arg2);
10510
10511 case BUILT_IN_MEMCHR:
10512 return fold_builtin_memchr (loc, arg0, arg1, arg2, type);
10513
10514 case BUILT_IN_BCMP:
10515 case BUILT_IN_MEMCMP:
10516 return fold_builtin_memcmp (loc, arg0, arg1, arg2);;
10517
10518 case BUILT_IN_EXPECT:
10519 return fold_builtin_expect (loc, arg0, arg1, arg2);
10520
10521 case BUILT_IN_ADD_OVERFLOW:
10522 case BUILT_IN_SUB_OVERFLOW:
10523 case BUILT_IN_MUL_OVERFLOW:
10524 case BUILT_IN_SADD_OVERFLOW:
10525 case BUILT_IN_SADDL_OVERFLOW:
10526 case BUILT_IN_SADDLL_OVERFLOW:
10527 case BUILT_IN_SSUB_OVERFLOW:
10528 case BUILT_IN_SSUBL_OVERFLOW:
10529 case BUILT_IN_SSUBLL_OVERFLOW:
10530 case BUILT_IN_SMUL_OVERFLOW:
10531 case BUILT_IN_SMULL_OVERFLOW:
10532 case BUILT_IN_SMULLL_OVERFLOW:
10533 case BUILT_IN_UADD_OVERFLOW:
10534 case BUILT_IN_UADDL_OVERFLOW:
10535 case BUILT_IN_UADDLL_OVERFLOW:
10536 case BUILT_IN_USUB_OVERFLOW:
10537 case BUILT_IN_USUBL_OVERFLOW:
10538 case BUILT_IN_USUBLL_OVERFLOW:
10539 case BUILT_IN_UMUL_OVERFLOW:
10540 case BUILT_IN_UMULL_OVERFLOW:
10541 case BUILT_IN_UMULLL_OVERFLOW:
10542 return fold_builtin_arith_overflow (loc, fcode, arg0, arg1, arg2);
10543
10544 default:
10545 break;
10546 }
10547 return NULL_TREE;
10548 }
10549
10550 /* Fold a call to built-in function FNDECL. ARGS is an array of NARGS
10551 arguments. IGNORE is true if the result of the
10552 function call is ignored. This function returns NULL_TREE if no
10553 simplification was possible. */
10554
10555 tree
10556 fold_builtin_n (location_t loc, tree fndecl, tree *args, int nargs, bool)
10557 {
10558 tree ret = NULL_TREE;
10559
10560 switch (nargs)
10561 {
10562 case 0:
10563 ret = fold_builtin_0 (loc, fndecl);
10564 break;
10565 case 1:
10566 ret = fold_builtin_1 (loc, fndecl, args[0]);
10567 break;
10568 case 2:
10569 ret = fold_builtin_2 (loc, fndecl, args[0], args[1]);
10570 break;
10571 case 3:
10572 ret = fold_builtin_3 (loc, fndecl, args[0], args[1], args[2]);
10573 break;
10574 default:
10575 ret = fold_builtin_varargs (loc, fndecl, args, nargs);
10576 break;
10577 }
10578 if (ret)
10579 {
10580 ret = build1 (NOP_EXPR, TREE_TYPE (ret), ret);
10581 SET_EXPR_LOCATION (ret, loc);
10582 TREE_NO_WARNING (ret) = 1;
10583 return ret;
10584 }
10585 return NULL_TREE;
10586 }
10587
10588 /* Construct a new CALL_EXPR to FNDECL using the tail of the argument
10589 list ARGS along with N new arguments in NEWARGS. SKIP is the number
10590 of arguments in ARGS to be omitted. OLDNARGS is the number of
10591 elements in ARGS. */
10592
10593 static tree
10594 rewrite_call_expr_valist (location_t loc, int oldnargs, tree *args,
10595 int skip, tree fndecl, int n, va_list newargs)
10596 {
10597 int nargs = oldnargs - skip + n;
10598 tree *buffer;
10599
10600 if (n > 0)
10601 {
10602 int i, j;
10603
10604 buffer = XALLOCAVEC (tree, nargs);
10605 for (i = 0; i < n; i++)
10606 buffer[i] = va_arg (newargs, tree);
10607 for (j = skip; j < oldnargs; j++, i++)
10608 buffer[i] = args[j];
10609 }
10610 else
10611 buffer = args + skip;
10612
10613 return build_call_expr_loc_array (loc, fndecl, nargs, buffer);
10614 }
10615
10616 /* Return true if FNDECL shouldn't be folded right now.
10617 If a built-in function has an inline attribute always_inline
10618 wrapper, defer folding it after always_inline functions have
10619 been inlined, otherwise e.g. -D_FORTIFY_SOURCE checking
10620 might not be performed. */
10621
10622 bool
10623 avoid_folding_inline_builtin (tree fndecl)
10624 {
10625 return (DECL_DECLARED_INLINE_P (fndecl)
10626 && DECL_DISREGARD_INLINE_LIMITS (fndecl)
10627 && cfun
10628 && !cfun->always_inline_functions_inlined
10629 && lookup_attribute ("always_inline", DECL_ATTRIBUTES (fndecl)));
10630 }
10631
10632 /* A wrapper function for builtin folding that prevents warnings for
10633 "statement without effect" and the like, caused by removing the
10634 call node earlier than the warning is generated. */
10635
10636 tree
10637 fold_call_expr (location_t loc, tree exp, bool ignore)
10638 {
10639 tree ret = NULL_TREE;
10640 tree fndecl = get_callee_fndecl (exp);
10641 if (fndecl
10642 && TREE_CODE (fndecl) == FUNCTION_DECL
10643 && DECL_BUILT_IN (fndecl)
10644 /* If CALL_EXPR_VA_ARG_PACK is set, the arguments aren't finalized
10645 yet. Defer folding until we see all the arguments
10646 (after inlining). */
10647 && !CALL_EXPR_VA_ARG_PACK (exp))
10648 {
10649 int nargs = call_expr_nargs (exp);
10650
10651 /* Before gimplification CALL_EXPR_VA_ARG_PACK is not set, but
10652 instead last argument is __builtin_va_arg_pack (). Defer folding
10653 even in that case, until arguments are finalized. */
10654 if (nargs && TREE_CODE (CALL_EXPR_ARG (exp, nargs - 1)) == CALL_EXPR)
10655 {
10656 tree fndecl2 = get_callee_fndecl (CALL_EXPR_ARG (exp, nargs - 1));
10657 if (fndecl2
10658 && TREE_CODE (fndecl2) == FUNCTION_DECL
10659 && DECL_BUILT_IN_CLASS (fndecl2) == BUILT_IN_NORMAL
10660 && DECL_FUNCTION_CODE (fndecl2) == BUILT_IN_VA_ARG_PACK)
10661 return NULL_TREE;
10662 }
10663
10664 if (avoid_folding_inline_builtin (fndecl))
10665 return NULL_TREE;
10666
10667 if (DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_MD)
10668 return targetm.fold_builtin (fndecl, call_expr_nargs (exp),
10669 CALL_EXPR_ARGP (exp), ignore);
10670 else
10671 {
10672 tree *args = CALL_EXPR_ARGP (exp);
10673 ret = fold_builtin_n (loc, fndecl, args, nargs, ignore);
10674 if (ret)
10675 return ret;
10676 }
10677 }
10678 return NULL_TREE;
10679 }
10680
10681 /* Fold a CALL_EXPR with type TYPE with FN as the function expression.
10682 N arguments are passed in the array ARGARRAY. Return a folded
10683 expression or NULL_TREE if no simplification was possible. */
10684
10685 tree
10686 fold_builtin_call_array (location_t loc, tree,
10687 tree fn,
10688 int n,
10689 tree *argarray)
10690 {
10691 if (TREE_CODE (fn) != ADDR_EXPR)
10692 return NULL_TREE;
10693
10694 tree fndecl = TREE_OPERAND (fn, 0);
10695 if (TREE_CODE (fndecl) == FUNCTION_DECL
10696 && DECL_BUILT_IN (fndecl))
10697 {
10698 /* If last argument is __builtin_va_arg_pack (), arguments to this
10699 function are not finalized yet. Defer folding until they are. */
10700 if (n && TREE_CODE (argarray[n - 1]) == CALL_EXPR)
10701 {
10702 tree fndecl2 = get_callee_fndecl (argarray[n - 1]);
10703 if (fndecl2
10704 && TREE_CODE (fndecl2) == FUNCTION_DECL
10705 && DECL_BUILT_IN_CLASS (fndecl2) == BUILT_IN_NORMAL
10706 && DECL_FUNCTION_CODE (fndecl2) == BUILT_IN_VA_ARG_PACK)
10707 return NULL_TREE;
10708 }
10709 if (avoid_folding_inline_builtin (fndecl))
10710 return NULL_TREE;
10711 if (DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_MD)
10712 return targetm.fold_builtin (fndecl, n, argarray, false);
10713 else
10714 return fold_builtin_n (loc, fndecl, argarray, n, false);
10715 }
10716
10717 return NULL_TREE;
10718 }
10719
10720 /* Construct a new CALL_EXPR using the tail of the argument list of EXP
10721 along with N new arguments specified as the "..." parameters. SKIP
10722 is the number of arguments in EXP to be omitted. This function is used
10723 to do varargs-to-varargs transformations. */
10724
10725 static tree
10726 rewrite_call_expr (location_t loc, tree exp, int skip, tree fndecl, int n, ...)
10727 {
10728 va_list ap;
10729 tree t;
10730
10731 va_start (ap, n);
10732 t = rewrite_call_expr_valist (loc, call_expr_nargs (exp),
10733 CALL_EXPR_ARGP (exp), skip, fndecl, n, ap);
10734 va_end (ap);
10735
10736 return t;
10737 }
10738
10739 /* Validate a single argument ARG against a tree code CODE representing
10740 a type. */
10741
10742 static bool
10743 validate_arg (const_tree arg, enum tree_code code)
10744 {
10745 if (!arg)
10746 return false;
10747 else if (code == POINTER_TYPE)
10748 return POINTER_TYPE_P (TREE_TYPE (arg));
10749 else if (code == INTEGER_TYPE)
10750 return INTEGRAL_TYPE_P (TREE_TYPE (arg));
10751 return code == TREE_CODE (TREE_TYPE (arg));
10752 }
10753
10754 /* This function validates the types of a function call argument list
10755 against a specified list of tree_codes. If the last specifier is a 0,
10756 that represents an ellipses, otherwise the last specifier must be a
10757 VOID_TYPE.
10758
10759 This is the GIMPLE version of validate_arglist. Eventually we want to
10760 completely convert builtins.c to work from GIMPLEs and the tree based
10761 validate_arglist will then be removed. */
10762
10763 bool
10764 validate_gimple_arglist (const gcall *call, ...)
10765 {
10766 enum tree_code code;
10767 bool res = 0;
10768 va_list ap;
10769 const_tree arg;
10770 size_t i;
10771
10772 va_start (ap, call);
10773 i = 0;
10774
10775 do
10776 {
10777 code = (enum tree_code) va_arg (ap, int);
10778 switch (code)
10779 {
10780 case 0:
10781 /* This signifies an ellipses, any further arguments are all ok. */
10782 res = true;
10783 goto end;
10784 case VOID_TYPE:
10785 /* This signifies an endlink, if no arguments remain, return
10786 true, otherwise return false. */
10787 res = (i == gimple_call_num_args (call));
10788 goto end;
10789 default:
10790 /* If no parameters remain or the parameter's code does not
10791 match the specified code, return false. Otherwise continue
10792 checking any remaining arguments. */
10793 arg = gimple_call_arg (call, i++);
10794 if (!validate_arg (arg, code))
10795 goto end;
10796 break;
10797 }
10798 }
10799 while (1);
10800
10801 /* We need gotos here since we can only have one VA_CLOSE in a
10802 function. */
10803 end: ;
10804 va_end (ap);
10805
10806 return res;
10807 }
10808
10809 /* Default target-specific builtin expander that does nothing. */
10810
10811 rtx
10812 default_expand_builtin (tree exp ATTRIBUTE_UNUSED,
10813 rtx target ATTRIBUTE_UNUSED,
10814 rtx subtarget ATTRIBUTE_UNUSED,
10815 machine_mode mode ATTRIBUTE_UNUSED,
10816 int ignore ATTRIBUTE_UNUSED)
10817 {
10818 return NULL_RTX;
10819 }
10820
10821 /* Returns true is EXP represents data that would potentially reside
10822 in a readonly section. */
10823
10824 bool
10825 readonly_data_expr (tree exp)
10826 {
10827 STRIP_NOPS (exp);
10828
10829 if (TREE_CODE (exp) != ADDR_EXPR)
10830 return false;
10831
10832 exp = get_base_address (TREE_OPERAND (exp, 0));
10833 if (!exp)
10834 return false;
10835
10836 /* Make sure we call decl_readonly_section only for trees it
10837 can handle (since it returns true for everything it doesn't
10838 understand). */
10839 if (TREE_CODE (exp) == STRING_CST
10840 || TREE_CODE (exp) == CONSTRUCTOR
10841 || (TREE_CODE (exp) == VAR_DECL && TREE_STATIC (exp)))
10842 return decl_readonly_section (exp, 0);
10843 else
10844 return false;
10845 }
10846
10847 /* Simplify a call to the strstr builtin. S1 and S2 are the arguments
10848 to the call, and TYPE is its return type.
10849
10850 Return NULL_TREE if no simplification was possible, otherwise return the
10851 simplified form of the call as a tree.
10852
10853 The simplified form may be a constant or other expression which
10854 computes the same value, but in a more efficient manner (including
10855 calls to other builtin functions).
10856
10857 The call may contain arguments which need to be evaluated, but
10858 which are not useful to determine the result of the call. In
10859 this case we return a chain of COMPOUND_EXPRs. The LHS of each
10860 COMPOUND_EXPR will be an argument which must be evaluated.
10861 COMPOUND_EXPRs are chained through their RHS. The RHS of the last
10862 COMPOUND_EXPR in the chain will contain the tree for the simplified
10863 form of the builtin function call. */
10864
10865 static tree
10866 fold_builtin_strstr (location_t loc, tree s1, tree s2, tree type)
10867 {
10868 if (!validate_arg (s1, POINTER_TYPE)
10869 || !validate_arg (s2, POINTER_TYPE))
10870 return NULL_TREE;
10871 else
10872 {
10873 tree fn;
10874 const char *p1, *p2;
10875
10876 p2 = c_getstr (s2);
10877 if (p2 == NULL)
10878 return NULL_TREE;
10879
10880 p1 = c_getstr (s1);
10881 if (p1 != NULL)
10882 {
10883 const char *r = strstr (p1, p2);
10884 tree tem;
10885
10886 if (r == NULL)
10887 return build_int_cst (TREE_TYPE (s1), 0);
10888
10889 /* Return an offset into the constant string argument. */
10890 tem = fold_build_pointer_plus_hwi_loc (loc, s1, r - p1);
10891 return fold_convert_loc (loc, type, tem);
10892 }
10893
10894 /* The argument is const char *, and the result is char *, so we need
10895 a type conversion here to avoid a warning. */
10896 if (p2[0] == '\0')
10897 return fold_convert_loc (loc, type, s1);
10898
10899 if (p2[1] != '\0')
10900 return NULL_TREE;
10901
10902 fn = builtin_decl_implicit (BUILT_IN_STRCHR);
10903 if (!fn)
10904 return NULL_TREE;
10905
10906 /* New argument list transforming strstr(s1, s2) to
10907 strchr(s1, s2[0]). */
10908 return build_call_expr_loc (loc, fn, 2, s1,
10909 build_int_cst (integer_type_node, p2[0]));
10910 }
10911 }
10912
10913 /* Simplify a call to the strchr builtin. S1 and S2 are the arguments to
10914 the call, and TYPE is its return type.
10915
10916 Return NULL_TREE if no simplification was possible, otherwise return the
10917 simplified form of the call as a tree.
10918
10919 The simplified form may be a constant or other expression which
10920 computes the same value, but in a more efficient manner (including
10921 calls to other builtin functions).
10922
10923 The call may contain arguments which need to be evaluated, but
10924 which are not useful to determine the result of the call. In
10925 this case we return a chain of COMPOUND_EXPRs. The LHS of each
10926 COMPOUND_EXPR will be an argument which must be evaluated.
10927 COMPOUND_EXPRs are chained through their RHS. The RHS of the last
10928 COMPOUND_EXPR in the chain will contain the tree for the simplified
10929 form of the builtin function call. */
10930
10931 static tree
10932 fold_builtin_strchr (location_t loc, tree s1, tree s2, tree type)
10933 {
10934 if (!validate_arg (s1, POINTER_TYPE)
10935 || !validate_arg (s2, INTEGER_TYPE))
10936 return NULL_TREE;
10937 else
10938 {
10939 const char *p1;
10940
10941 if (TREE_CODE (s2) != INTEGER_CST)
10942 return NULL_TREE;
10943
10944 p1 = c_getstr (s1);
10945 if (p1 != NULL)
10946 {
10947 char c;
10948 const char *r;
10949 tree tem;
10950
10951 if (target_char_cast (s2, &c))
10952 return NULL_TREE;
10953
10954 r = strchr (p1, c);
10955
10956 if (r == NULL)
10957 return build_int_cst (TREE_TYPE (s1), 0);
10958
10959 /* Return an offset into the constant string argument. */
10960 tem = fold_build_pointer_plus_hwi_loc (loc, s1, r - p1);
10961 return fold_convert_loc (loc, type, tem);
10962 }
10963 return NULL_TREE;
10964 }
10965 }
10966
10967 /* Simplify a call to the strrchr builtin. S1 and S2 are the arguments to
10968 the call, and TYPE is its return type.
10969
10970 Return NULL_TREE if no simplification was possible, otherwise return the
10971 simplified form of the call as a tree.
10972
10973 The simplified form may be a constant or other expression which
10974 computes the same value, but in a more efficient manner (including
10975 calls to other builtin functions).
10976
10977 The call may contain arguments which need to be evaluated, but
10978 which are not useful to determine the result of the call. In
10979 this case we return a chain of COMPOUND_EXPRs. The LHS of each
10980 COMPOUND_EXPR will be an argument which must be evaluated.
10981 COMPOUND_EXPRs are chained through their RHS. The RHS of the last
10982 COMPOUND_EXPR in the chain will contain the tree for the simplified
10983 form of the builtin function call. */
10984
10985 static tree
10986 fold_builtin_strrchr (location_t loc, tree s1, tree s2, tree type)
10987 {
10988 if (!validate_arg (s1, POINTER_TYPE)
10989 || !validate_arg (s2, INTEGER_TYPE))
10990 return NULL_TREE;
10991 else
10992 {
10993 tree fn;
10994 const char *p1;
10995
10996 if (TREE_CODE (s2) != INTEGER_CST)
10997 return NULL_TREE;
10998
10999 p1 = c_getstr (s1);
11000 if (p1 != NULL)
11001 {
11002 char c;
11003 const char *r;
11004 tree tem;
11005
11006 if (target_char_cast (s2, &c))
11007 return NULL_TREE;
11008
11009 r = strrchr (p1, c);
11010
11011 if (r == NULL)
11012 return build_int_cst (TREE_TYPE (s1), 0);
11013
11014 /* Return an offset into the constant string argument. */
11015 tem = fold_build_pointer_plus_hwi_loc (loc, s1, r - p1);
11016 return fold_convert_loc (loc, type, tem);
11017 }
11018
11019 if (! integer_zerop (s2))
11020 return NULL_TREE;
11021
11022 fn = builtin_decl_implicit (BUILT_IN_STRCHR);
11023 if (!fn)
11024 return NULL_TREE;
11025
11026 /* Transform strrchr(s1, '\0') to strchr(s1, '\0'). */
11027 return build_call_expr_loc (loc, fn, 2, s1, s2);
11028 }
11029 }
11030
11031 /* Simplify a call to the strpbrk builtin. S1 and S2 are the arguments
11032 to the call, and TYPE is its return type.
11033
11034 Return NULL_TREE if no simplification was possible, otherwise return the
11035 simplified form of the call as a tree.
11036
11037 The simplified form may be a constant or other expression which
11038 computes the same value, but in a more efficient manner (including
11039 calls to other builtin functions).
11040
11041 The call may contain arguments which need to be evaluated, but
11042 which are not useful to determine the result of the call. In
11043 this case we return a chain of COMPOUND_EXPRs. The LHS of each
11044 COMPOUND_EXPR will be an argument which must be evaluated.
11045 COMPOUND_EXPRs are chained through their RHS. The RHS of the last
11046 COMPOUND_EXPR in the chain will contain the tree for the simplified
11047 form of the builtin function call. */
11048
11049 static tree
11050 fold_builtin_strpbrk (location_t loc, tree s1, tree s2, tree type)
11051 {
11052 if (!validate_arg (s1, POINTER_TYPE)
11053 || !validate_arg (s2, POINTER_TYPE))
11054 return NULL_TREE;
11055 else
11056 {
11057 tree fn;
11058 const char *p1, *p2;
11059
11060 p2 = c_getstr (s2);
11061 if (p2 == NULL)
11062 return NULL_TREE;
11063
11064 p1 = c_getstr (s1);
11065 if (p1 != NULL)
11066 {
11067 const char *r = strpbrk (p1, p2);
11068 tree tem;
11069
11070 if (r == NULL)
11071 return build_int_cst (TREE_TYPE (s1), 0);
11072
11073 /* Return an offset into the constant string argument. */
11074 tem = fold_build_pointer_plus_hwi_loc (loc, s1, r - p1);
11075 return fold_convert_loc (loc, type, tem);
11076 }
11077
11078 if (p2[0] == '\0')
11079 /* strpbrk(x, "") == NULL.
11080 Evaluate and ignore s1 in case it had side-effects. */
11081 return omit_one_operand_loc (loc, TREE_TYPE (s1), integer_zero_node, s1);
11082
11083 if (p2[1] != '\0')
11084 return NULL_TREE; /* Really call strpbrk. */
11085
11086 fn = builtin_decl_implicit (BUILT_IN_STRCHR);
11087 if (!fn)
11088 return NULL_TREE;
11089
11090 /* New argument list transforming strpbrk(s1, s2) to
11091 strchr(s1, s2[0]). */
11092 return build_call_expr_loc (loc, fn, 2, s1,
11093 build_int_cst (integer_type_node, p2[0]));
11094 }
11095 }
11096
11097 /* Simplify a call to the strspn builtin. S1 and S2 are the arguments
11098 to the call.
11099
11100 Return NULL_TREE if no simplification was possible, otherwise return the
11101 simplified form of the call as a tree.
11102
11103 The simplified form may be a constant or other expression which
11104 computes the same value, but in a more efficient manner (including
11105 calls to other builtin functions).
11106
11107 The call may contain arguments which need to be evaluated, but
11108 which are not useful to determine the result of the call. In
11109 this case we return a chain of COMPOUND_EXPRs. The LHS of each
11110 COMPOUND_EXPR will be an argument which must be evaluated.
11111 COMPOUND_EXPRs are chained through their RHS. The RHS of the last
11112 COMPOUND_EXPR in the chain will contain the tree for the simplified
11113 form of the builtin function call. */
11114
11115 static tree
11116 fold_builtin_strspn (location_t loc, tree s1, tree s2)
11117 {
11118 if (!validate_arg (s1, POINTER_TYPE)
11119 || !validate_arg (s2, POINTER_TYPE))
11120 return NULL_TREE;
11121 else
11122 {
11123 const char *p1 = c_getstr (s1), *p2 = c_getstr (s2);
11124
11125 /* If both arguments are constants, evaluate at compile-time. */
11126 if (p1 && p2)
11127 {
11128 const size_t r = strspn (p1, p2);
11129 return build_int_cst (size_type_node, r);
11130 }
11131
11132 /* If either argument is "", return NULL_TREE. */
11133 if ((p1 && *p1 == '\0') || (p2 && *p2 == '\0'))
11134 /* Evaluate and ignore both arguments in case either one has
11135 side-effects. */
11136 return omit_two_operands_loc (loc, size_type_node, size_zero_node,
11137 s1, s2);
11138 return NULL_TREE;
11139 }
11140 }
11141
11142 /* Simplify a call to the strcspn builtin. S1 and S2 are the arguments
11143 to the call.
11144
11145 Return NULL_TREE if no simplification was possible, otherwise return the
11146 simplified form of the call as a tree.
11147
11148 The simplified form may be a constant or other expression which
11149 computes the same value, but in a more efficient manner (including
11150 calls to other builtin functions).
11151
11152 The call may contain arguments which need to be evaluated, but
11153 which are not useful to determine the result of the call. In
11154 this case we return a chain of COMPOUND_EXPRs. The LHS of each
11155 COMPOUND_EXPR will be an argument which must be evaluated.
11156 COMPOUND_EXPRs are chained through their RHS. The RHS of the last
11157 COMPOUND_EXPR in the chain will contain the tree for the simplified
11158 form of the builtin function call. */
11159
11160 static tree
11161 fold_builtin_strcspn (location_t loc, tree s1, tree s2)
11162 {
11163 if (!validate_arg (s1, POINTER_TYPE)
11164 || !validate_arg (s2, POINTER_TYPE))
11165 return NULL_TREE;
11166 else
11167 {
11168 const char *p1 = c_getstr (s1), *p2 = c_getstr (s2);
11169
11170 /* If both arguments are constants, evaluate at compile-time. */
11171 if (p1 && p2)
11172 {
11173 const size_t r = strcspn (p1, p2);
11174 return build_int_cst (size_type_node, r);
11175 }
11176
11177 /* If the first argument is "", return NULL_TREE. */
11178 if (p1 && *p1 == '\0')
11179 {
11180 /* Evaluate and ignore argument s2 in case it has
11181 side-effects. */
11182 return omit_one_operand_loc (loc, size_type_node,
11183 size_zero_node, s2);
11184 }
11185
11186 /* If the second argument is "", return __builtin_strlen(s1). */
11187 if (p2 && *p2 == '\0')
11188 {
11189 tree fn = builtin_decl_implicit (BUILT_IN_STRLEN);
11190
11191 /* If the replacement _DECL isn't initialized, don't do the
11192 transformation. */
11193 if (!fn)
11194 return NULL_TREE;
11195
11196 return build_call_expr_loc (loc, fn, 1, s1);
11197 }
11198 return NULL_TREE;
11199 }
11200 }
11201
11202 /* Fold the next_arg or va_start call EXP. Returns true if there was an error
11203 produced. False otherwise. This is done so that we don't output the error
11204 or warning twice or three times. */
11205
11206 bool
11207 fold_builtin_next_arg (tree exp, bool va_start_p)
11208 {
11209 tree fntype = TREE_TYPE (current_function_decl);
11210 int nargs = call_expr_nargs (exp);
11211 tree arg;
11212 /* There is good chance the current input_location points inside the
11213 definition of the va_start macro (perhaps on the token for
11214 builtin) in a system header, so warnings will not be emitted.
11215 Use the location in real source code. */
11216 source_location current_location =
11217 linemap_unwind_to_first_non_reserved_loc (line_table, input_location,
11218 NULL);
11219
11220 if (!stdarg_p (fntype))
11221 {
11222 error ("%<va_start%> used in function with fixed args");
11223 return true;
11224 }
11225
11226 if (va_start_p)
11227 {
11228 if (va_start_p && (nargs != 2))
11229 {
11230 error ("wrong number of arguments to function %<va_start%>");
11231 return true;
11232 }
11233 arg = CALL_EXPR_ARG (exp, 1);
11234 }
11235 /* We use __builtin_va_start (ap, 0, 0) or __builtin_next_arg (0, 0)
11236 when we checked the arguments and if needed issued a warning. */
11237 else
11238 {
11239 if (nargs == 0)
11240 {
11241 /* Evidently an out of date version of <stdarg.h>; can't validate
11242 va_start's second argument, but can still work as intended. */
11243 warning_at (current_location,
11244 OPT_Wvarargs,
11245 "%<__builtin_next_arg%> called without an argument");
11246 return true;
11247 }
11248 else if (nargs > 1)
11249 {
11250 error ("wrong number of arguments to function %<__builtin_next_arg%>");
11251 return true;
11252 }
11253 arg = CALL_EXPR_ARG (exp, 0);
11254 }
11255
11256 if (TREE_CODE (arg) == SSA_NAME)
11257 arg = SSA_NAME_VAR (arg);
11258
11259 /* We destructively modify the call to be __builtin_va_start (ap, 0)
11260 or __builtin_next_arg (0) the first time we see it, after checking
11261 the arguments and if needed issuing a warning. */
11262 if (!integer_zerop (arg))
11263 {
11264 tree last_parm = tree_last (DECL_ARGUMENTS (current_function_decl));
11265
11266 /* Strip off all nops for the sake of the comparison. This
11267 is not quite the same as STRIP_NOPS. It does more.
11268 We must also strip off INDIRECT_EXPR for C++ reference
11269 parameters. */
11270 while (CONVERT_EXPR_P (arg)
11271 || TREE_CODE (arg) == INDIRECT_REF)
11272 arg = TREE_OPERAND (arg, 0);
11273 if (arg != last_parm)
11274 {
11275 /* FIXME: Sometimes with the tree optimizers we can get the
11276 not the last argument even though the user used the last
11277 argument. We just warn and set the arg to be the last
11278 argument so that we will get wrong-code because of
11279 it. */
11280 warning_at (current_location,
11281 OPT_Wvarargs,
11282 "second parameter of %<va_start%> not last named argument");
11283 }
11284
11285 /* Undefined by C99 7.15.1.4p4 (va_start):
11286 "If the parameter parmN is declared with the register storage
11287 class, with a function or array type, or with a type that is
11288 not compatible with the type that results after application of
11289 the default argument promotions, the behavior is undefined."
11290 */
11291 else if (DECL_REGISTER (arg))
11292 {
11293 warning_at (current_location,
11294 OPT_Wvarargs,
11295 "undefined behaviour when second parameter of "
11296 "%<va_start%> is declared with %<register%> storage");
11297 }
11298
11299 /* We want to verify the second parameter just once before the tree
11300 optimizers are run and then avoid keeping it in the tree,
11301 as otherwise we could warn even for correct code like:
11302 void foo (int i, ...)
11303 { va_list ap; i++; va_start (ap, i); va_end (ap); } */
11304 if (va_start_p)
11305 CALL_EXPR_ARG (exp, 1) = integer_zero_node;
11306 else
11307 CALL_EXPR_ARG (exp, 0) = integer_zero_node;
11308 }
11309 return false;
11310 }
11311
11312
11313 /* Expand a call EXP to __builtin_object_size. */
11314
11315 static rtx
11316 expand_builtin_object_size (tree exp)
11317 {
11318 tree ost;
11319 int object_size_type;
11320 tree fndecl = get_callee_fndecl (exp);
11321
11322 if (!validate_arglist (exp, POINTER_TYPE, INTEGER_TYPE, VOID_TYPE))
11323 {
11324 error ("%Kfirst argument of %D must be a pointer, second integer constant",
11325 exp, fndecl);
11326 expand_builtin_trap ();
11327 return const0_rtx;
11328 }
11329
11330 ost = CALL_EXPR_ARG (exp, 1);
11331 STRIP_NOPS (ost);
11332
11333 if (TREE_CODE (ost) != INTEGER_CST
11334 || tree_int_cst_sgn (ost) < 0
11335 || compare_tree_int (ost, 3) > 0)
11336 {
11337 error ("%Klast argument of %D is not integer constant between 0 and 3",
11338 exp, fndecl);
11339 expand_builtin_trap ();
11340 return const0_rtx;
11341 }
11342
11343 object_size_type = tree_to_shwi (ost);
11344
11345 return object_size_type < 2 ? constm1_rtx : const0_rtx;
11346 }
11347
11348 /* Expand EXP, a call to the __mem{cpy,pcpy,move,set}_chk builtin.
11349 FCODE is the BUILT_IN_* to use.
11350 Return NULL_RTX if we failed; the caller should emit a normal call,
11351 otherwise try to get the result in TARGET, if convenient (and in
11352 mode MODE if that's convenient). */
11353
11354 static rtx
11355 expand_builtin_memory_chk (tree exp, rtx target, machine_mode mode,
11356 enum built_in_function fcode)
11357 {
11358 tree dest, src, len, size;
11359
11360 if (!validate_arglist (exp,
11361 POINTER_TYPE,
11362 fcode == BUILT_IN_MEMSET_CHK
11363 ? INTEGER_TYPE : POINTER_TYPE,
11364 INTEGER_TYPE, INTEGER_TYPE, VOID_TYPE))
11365 return NULL_RTX;
11366
11367 dest = CALL_EXPR_ARG (exp, 0);
11368 src = CALL_EXPR_ARG (exp, 1);
11369 len = CALL_EXPR_ARG (exp, 2);
11370 size = CALL_EXPR_ARG (exp, 3);
11371
11372 if (! tree_fits_uhwi_p (size))
11373 return NULL_RTX;
11374
11375 if (tree_fits_uhwi_p (len) || integer_all_onesp (size))
11376 {
11377 tree fn;
11378
11379 if (! integer_all_onesp (size) && tree_int_cst_lt (size, len))
11380 {
11381 warning_at (tree_nonartificial_location (exp),
11382 0, "%Kcall to %D will always overflow destination buffer",
11383 exp, get_callee_fndecl (exp));
11384 return NULL_RTX;
11385 }
11386
11387 fn = NULL_TREE;
11388 /* If __builtin_mem{cpy,pcpy,move,set}_chk is used, assume
11389 mem{cpy,pcpy,move,set} is available. */
11390 switch (fcode)
11391 {
11392 case BUILT_IN_MEMCPY_CHK:
11393 fn = builtin_decl_explicit (BUILT_IN_MEMCPY);
11394 break;
11395 case BUILT_IN_MEMPCPY_CHK:
11396 fn = builtin_decl_explicit (BUILT_IN_MEMPCPY);
11397 break;
11398 case BUILT_IN_MEMMOVE_CHK:
11399 fn = builtin_decl_explicit (BUILT_IN_MEMMOVE);
11400 break;
11401 case BUILT_IN_MEMSET_CHK:
11402 fn = builtin_decl_explicit (BUILT_IN_MEMSET);
11403 break;
11404 default:
11405 break;
11406 }
11407
11408 if (! fn)
11409 return NULL_RTX;
11410
11411 fn = build_call_nofold_loc (EXPR_LOCATION (exp), fn, 3, dest, src, len);
11412 gcc_assert (TREE_CODE (fn) == CALL_EXPR);
11413 CALL_EXPR_TAILCALL (fn) = CALL_EXPR_TAILCALL (exp);
11414 return expand_expr (fn, target, mode, EXPAND_NORMAL);
11415 }
11416 else if (fcode == BUILT_IN_MEMSET_CHK)
11417 return NULL_RTX;
11418 else
11419 {
11420 unsigned int dest_align = get_pointer_alignment (dest);
11421
11422 /* If DEST is not a pointer type, call the normal function. */
11423 if (dest_align == 0)
11424 return NULL_RTX;
11425
11426 /* If SRC and DEST are the same (and not volatile), do nothing. */
11427 if (operand_equal_p (src, dest, 0))
11428 {
11429 tree expr;
11430
11431 if (fcode != BUILT_IN_MEMPCPY_CHK)
11432 {
11433 /* Evaluate and ignore LEN in case it has side-effects. */
11434 expand_expr (len, const0_rtx, VOIDmode, EXPAND_NORMAL);
11435 return expand_expr (dest, target, mode, EXPAND_NORMAL);
11436 }
11437
11438 expr = fold_build_pointer_plus (dest, len);
11439 return expand_expr (expr, target, mode, EXPAND_NORMAL);
11440 }
11441
11442 /* __memmove_chk special case. */
11443 if (fcode == BUILT_IN_MEMMOVE_CHK)
11444 {
11445 unsigned int src_align = get_pointer_alignment (src);
11446
11447 if (src_align == 0)
11448 return NULL_RTX;
11449
11450 /* If src is categorized for a readonly section we can use
11451 normal __memcpy_chk. */
11452 if (readonly_data_expr (src))
11453 {
11454 tree fn = builtin_decl_explicit (BUILT_IN_MEMCPY_CHK);
11455 if (!fn)
11456 return NULL_RTX;
11457 fn = build_call_nofold_loc (EXPR_LOCATION (exp), fn, 4,
11458 dest, src, len, size);
11459 gcc_assert (TREE_CODE (fn) == CALL_EXPR);
11460 CALL_EXPR_TAILCALL (fn) = CALL_EXPR_TAILCALL (exp);
11461 return expand_expr (fn, target, mode, EXPAND_NORMAL);
11462 }
11463 }
11464 return NULL_RTX;
11465 }
11466 }
11467
11468 /* Emit warning if a buffer overflow is detected at compile time. */
11469
11470 static void
11471 maybe_emit_chk_warning (tree exp, enum built_in_function fcode)
11472 {
11473 int is_strlen = 0;
11474 tree len, size;
11475 location_t loc = tree_nonartificial_location (exp);
11476
11477 switch (fcode)
11478 {
11479 case BUILT_IN_STRCPY_CHK:
11480 case BUILT_IN_STPCPY_CHK:
11481 /* For __strcat_chk the warning will be emitted only if overflowing
11482 by at least strlen (dest) + 1 bytes. */
11483 case BUILT_IN_STRCAT_CHK:
11484 len = CALL_EXPR_ARG (exp, 1);
11485 size = CALL_EXPR_ARG (exp, 2);
11486 is_strlen = 1;
11487 break;
11488 case BUILT_IN_STRNCAT_CHK:
11489 case BUILT_IN_STRNCPY_CHK:
11490 case BUILT_IN_STPNCPY_CHK:
11491 len = CALL_EXPR_ARG (exp, 2);
11492 size = CALL_EXPR_ARG (exp, 3);
11493 break;
11494 case BUILT_IN_SNPRINTF_CHK:
11495 case BUILT_IN_VSNPRINTF_CHK:
11496 len = CALL_EXPR_ARG (exp, 1);
11497 size = CALL_EXPR_ARG (exp, 3);
11498 break;
11499 default:
11500 gcc_unreachable ();
11501 }
11502
11503 if (!len || !size)
11504 return;
11505
11506 if (! tree_fits_uhwi_p (size) || integer_all_onesp (size))
11507 return;
11508
11509 if (is_strlen)
11510 {
11511 len = c_strlen (len, 1);
11512 if (! len || ! tree_fits_uhwi_p (len) || tree_int_cst_lt (len, size))
11513 return;
11514 }
11515 else if (fcode == BUILT_IN_STRNCAT_CHK)
11516 {
11517 tree src = CALL_EXPR_ARG (exp, 1);
11518 if (! src || ! tree_fits_uhwi_p (len) || tree_int_cst_lt (len, size))
11519 return;
11520 src = c_strlen (src, 1);
11521 if (! src || ! tree_fits_uhwi_p (src))
11522 {
11523 warning_at (loc, 0, "%Kcall to %D might overflow destination buffer",
11524 exp, get_callee_fndecl (exp));
11525 return;
11526 }
11527 else if (tree_int_cst_lt (src, size))
11528 return;
11529 }
11530 else if (! tree_fits_uhwi_p (len) || ! tree_int_cst_lt (size, len))
11531 return;
11532
11533 warning_at (loc, 0, "%Kcall to %D will always overflow destination buffer",
11534 exp, get_callee_fndecl (exp));
11535 }
11536
11537 /* Emit warning if a buffer overflow is detected at compile time
11538 in __sprintf_chk/__vsprintf_chk calls. */
11539
11540 static void
11541 maybe_emit_sprintf_chk_warning (tree exp, enum built_in_function fcode)
11542 {
11543 tree size, len, fmt;
11544 const char *fmt_str;
11545 int nargs = call_expr_nargs (exp);
11546
11547 /* Verify the required arguments in the original call. */
11548
11549 if (nargs < 4)
11550 return;
11551 size = CALL_EXPR_ARG (exp, 2);
11552 fmt = CALL_EXPR_ARG (exp, 3);
11553
11554 if (! tree_fits_uhwi_p (size) || integer_all_onesp (size))
11555 return;
11556
11557 /* Check whether the format is a literal string constant. */
11558 fmt_str = c_getstr (fmt);
11559 if (fmt_str == NULL)
11560 return;
11561
11562 if (!init_target_chars ())
11563 return;
11564
11565 /* If the format doesn't contain % args or %%, we know its size. */
11566 if (strchr (fmt_str, target_percent) == 0)
11567 len = build_int_cstu (size_type_node, strlen (fmt_str));
11568 /* If the format is "%s" and first ... argument is a string literal,
11569 we know it too. */
11570 else if (fcode == BUILT_IN_SPRINTF_CHK
11571 && strcmp (fmt_str, target_percent_s) == 0)
11572 {
11573 tree arg;
11574
11575 if (nargs < 5)
11576 return;
11577 arg = CALL_EXPR_ARG (exp, 4);
11578 if (! POINTER_TYPE_P (TREE_TYPE (arg)))
11579 return;
11580
11581 len = c_strlen (arg, 1);
11582 if (!len || ! tree_fits_uhwi_p (len))
11583 return;
11584 }
11585 else
11586 return;
11587
11588 if (! tree_int_cst_lt (len, size))
11589 warning_at (tree_nonartificial_location (exp),
11590 0, "%Kcall to %D will always overflow destination buffer",
11591 exp, get_callee_fndecl (exp));
11592 }
11593
11594 /* Emit warning if a free is called with address of a variable. */
11595
11596 static void
11597 maybe_emit_free_warning (tree exp)
11598 {
11599 tree arg = CALL_EXPR_ARG (exp, 0);
11600
11601 STRIP_NOPS (arg);
11602 if (TREE_CODE (arg) != ADDR_EXPR)
11603 return;
11604
11605 arg = get_base_address (TREE_OPERAND (arg, 0));
11606 if (arg == NULL || INDIRECT_REF_P (arg) || TREE_CODE (arg) == MEM_REF)
11607 return;
11608
11609 if (SSA_VAR_P (arg))
11610 warning_at (tree_nonartificial_location (exp), OPT_Wfree_nonheap_object,
11611 "%Kattempt to free a non-heap object %qD", exp, arg);
11612 else
11613 warning_at (tree_nonartificial_location (exp), OPT_Wfree_nonheap_object,
11614 "%Kattempt to free a non-heap object", exp);
11615 }
11616
11617 /* Fold a call to __builtin_object_size with arguments PTR and OST,
11618 if possible. */
11619
11620 static tree
11621 fold_builtin_object_size (tree ptr, tree ost)
11622 {
11623 unsigned HOST_WIDE_INT bytes;
11624 int object_size_type;
11625
11626 if (!validate_arg (ptr, POINTER_TYPE)
11627 || !validate_arg (ost, INTEGER_TYPE))
11628 return NULL_TREE;
11629
11630 STRIP_NOPS (ost);
11631
11632 if (TREE_CODE (ost) != INTEGER_CST
11633 || tree_int_cst_sgn (ost) < 0
11634 || compare_tree_int (ost, 3) > 0)
11635 return NULL_TREE;
11636
11637 object_size_type = tree_to_shwi (ost);
11638
11639 /* __builtin_object_size doesn't evaluate side-effects in its arguments;
11640 if there are any side-effects, it returns (size_t) -1 for types 0 and 1
11641 and (size_t) 0 for types 2 and 3. */
11642 if (TREE_SIDE_EFFECTS (ptr))
11643 return build_int_cst_type (size_type_node, object_size_type < 2 ? -1 : 0);
11644
11645 if (TREE_CODE (ptr) == ADDR_EXPR)
11646 {
11647 bytes = compute_builtin_object_size (ptr, object_size_type);
11648 if (wi::fits_to_tree_p (bytes, size_type_node))
11649 return build_int_cstu (size_type_node, bytes);
11650 }
11651 else if (TREE_CODE (ptr) == SSA_NAME)
11652 {
11653 /* If object size is not known yet, delay folding until
11654 later. Maybe subsequent passes will help determining
11655 it. */
11656 bytes = compute_builtin_object_size (ptr, object_size_type);
11657 if (bytes != (unsigned HOST_WIDE_INT) (object_size_type < 2 ? -1 : 0)
11658 && wi::fits_to_tree_p (bytes, size_type_node))
11659 return build_int_cstu (size_type_node, bytes);
11660 }
11661
11662 return NULL_TREE;
11663 }
11664
11665 /* Builtins with folding operations that operate on "..." arguments
11666 need special handling; we need to store the arguments in a convenient
11667 data structure before attempting any folding. Fortunately there are
11668 only a few builtins that fall into this category. FNDECL is the
11669 function, EXP is the CALL_EXPR for the call. */
11670
11671 static tree
11672 fold_builtin_varargs (location_t loc, tree fndecl, tree *args, int nargs)
11673 {
11674 enum built_in_function fcode = DECL_FUNCTION_CODE (fndecl);
11675 tree ret = NULL_TREE;
11676
11677 switch (fcode)
11678 {
11679 case BUILT_IN_FPCLASSIFY:
11680 ret = fold_builtin_fpclassify (loc, args, nargs);
11681 break;
11682
11683 default:
11684 break;
11685 }
11686 if (ret)
11687 {
11688 ret = build1 (NOP_EXPR, TREE_TYPE (ret), ret);
11689 SET_EXPR_LOCATION (ret, loc);
11690 TREE_NO_WARNING (ret) = 1;
11691 return ret;
11692 }
11693 return NULL_TREE;
11694 }
11695
11696 /* Initialize format string characters in the target charset. */
11697
11698 bool
11699 init_target_chars (void)
11700 {
11701 static bool init;
11702 if (!init)
11703 {
11704 target_newline = lang_hooks.to_target_charset ('\n');
11705 target_percent = lang_hooks.to_target_charset ('%');
11706 target_c = lang_hooks.to_target_charset ('c');
11707 target_s = lang_hooks.to_target_charset ('s');
11708 if (target_newline == 0 || target_percent == 0 || target_c == 0
11709 || target_s == 0)
11710 return false;
11711
11712 target_percent_c[0] = target_percent;
11713 target_percent_c[1] = target_c;
11714 target_percent_c[2] = '\0';
11715
11716 target_percent_s[0] = target_percent;
11717 target_percent_s[1] = target_s;
11718 target_percent_s[2] = '\0';
11719
11720 target_percent_s_newline[0] = target_percent;
11721 target_percent_s_newline[1] = target_s;
11722 target_percent_s_newline[2] = target_newline;
11723 target_percent_s_newline[3] = '\0';
11724
11725 init = true;
11726 }
11727 return true;
11728 }
11729
11730 /* Helper function for do_mpfr_arg*(). Ensure M is a normal number
11731 and no overflow/underflow occurred. INEXACT is true if M was not
11732 exactly calculated. TYPE is the tree type for the result. This
11733 function assumes that you cleared the MPFR flags and then
11734 calculated M to see if anything subsequently set a flag prior to
11735 entering this function. Return NULL_TREE if any checks fail. */
11736
11737 static tree
11738 do_mpfr_ckconv (mpfr_srcptr m, tree type, int inexact)
11739 {
11740 /* Proceed iff we get a normal number, i.e. not NaN or Inf and no
11741 overflow/underflow occurred. If -frounding-math, proceed iff the
11742 result of calling FUNC was exact. */
11743 if (mpfr_number_p (m) && !mpfr_overflow_p () && !mpfr_underflow_p ()
11744 && (!flag_rounding_math || !inexact))
11745 {
11746 REAL_VALUE_TYPE rr;
11747
11748 real_from_mpfr (&rr, m, type, GMP_RNDN);
11749 /* Proceed iff GCC's REAL_VALUE_TYPE can hold the MPFR value,
11750 check for overflow/underflow. If the REAL_VALUE_TYPE is zero
11751 but the mpft_t is not, then we underflowed in the
11752 conversion. */
11753 if (real_isfinite (&rr)
11754 && (rr.cl == rvc_zero) == (mpfr_zero_p (m) != 0))
11755 {
11756 REAL_VALUE_TYPE rmode;
11757
11758 real_convert (&rmode, TYPE_MODE (type), &rr);
11759 /* Proceed iff the specified mode can hold the value. */
11760 if (real_identical (&rmode, &rr))
11761 return build_real (type, rmode);
11762 }
11763 }
11764 return NULL_TREE;
11765 }
11766
11767 /* Helper function for do_mpc_arg*(). Ensure M is a normal complex
11768 number and no overflow/underflow occurred. INEXACT is true if M
11769 was not exactly calculated. TYPE is the tree type for the result.
11770 This function assumes that you cleared the MPFR flags and then
11771 calculated M to see if anything subsequently set a flag prior to
11772 entering this function. Return NULL_TREE if any checks fail, if
11773 FORCE_CONVERT is true, then bypass the checks. */
11774
11775 static tree
11776 do_mpc_ckconv (mpc_srcptr m, tree type, int inexact, int force_convert)
11777 {
11778 /* Proceed iff we get a normal number, i.e. not NaN or Inf and no
11779 overflow/underflow occurred. If -frounding-math, proceed iff the
11780 result of calling FUNC was exact. */
11781 if (force_convert
11782 || (mpfr_number_p (mpc_realref (m)) && mpfr_number_p (mpc_imagref (m))
11783 && !mpfr_overflow_p () && !mpfr_underflow_p ()
11784 && (!flag_rounding_math || !inexact)))
11785 {
11786 REAL_VALUE_TYPE re, im;
11787
11788 real_from_mpfr (&re, mpc_realref (m), TREE_TYPE (type), GMP_RNDN);
11789 real_from_mpfr (&im, mpc_imagref (m), TREE_TYPE (type), GMP_RNDN);
11790 /* Proceed iff GCC's REAL_VALUE_TYPE can hold the MPFR values,
11791 check for overflow/underflow. If the REAL_VALUE_TYPE is zero
11792 but the mpft_t is not, then we underflowed in the
11793 conversion. */
11794 if (force_convert
11795 || (real_isfinite (&re) && real_isfinite (&im)
11796 && (re.cl == rvc_zero) == (mpfr_zero_p (mpc_realref (m)) != 0)
11797 && (im.cl == rvc_zero) == (mpfr_zero_p (mpc_imagref (m)) != 0)))
11798 {
11799 REAL_VALUE_TYPE re_mode, im_mode;
11800
11801 real_convert (&re_mode, TYPE_MODE (TREE_TYPE (type)), &re);
11802 real_convert (&im_mode, TYPE_MODE (TREE_TYPE (type)), &im);
11803 /* Proceed iff the specified mode can hold the value. */
11804 if (force_convert
11805 || (real_identical (&re_mode, &re)
11806 && real_identical (&im_mode, &im)))
11807 return build_complex (type, build_real (TREE_TYPE (type), re_mode),
11808 build_real (TREE_TYPE (type), im_mode));
11809 }
11810 }
11811 return NULL_TREE;
11812 }
11813
11814 /* If argument ARG is a REAL_CST, call the one-argument mpfr function
11815 FUNC on it and return the resulting value as a tree with type TYPE.
11816 If MIN and/or MAX are not NULL, then the supplied ARG must be
11817 within those bounds. If INCLUSIVE is true, then MIN/MAX are
11818 acceptable values, otherwise they are not. The mpfr precision is
11819 set to the precision of TYPE. We assume that function FUNC returns
11820 zero if the result could be calculated exactly within the requested
11821 precision. */
11822
11823 static tree
11824 do_mpfr_arg1 (tree arg, tree type, int (*func)(mpfr_ptr, mpfr_srcptr, mp_rnd_t),
11825 const REAL_VALUE_TYPE *min, const REAL_VALUE_TYPE *max,
11826 bool inclusive)
11827 {
11828 tree result = NULL_TREE;
11829
11830 STRIP_NOPS (arg);
11831
11832 /* To proceed, MPFR must exactly represent the target floating point
11833 format, which only happens when the target base equals two. */
11834 if (REAL_MODE_FORMAT (TYPE_MODE (type))->b == 2
11835 && TREE_CODE (arg) == REAL_CST && !TREE_OVERFLOW (arg))
11836 {
11837 const REAL_VALUE_TYPE *const ra = &TREE_REAL_CST (arg);
11838
11839 if (real_isfinite (ra)
11840 && (!min || real_compare (inclusive ? GE_EXPR: GT_EXPR , ra, min))
11841 && (!max || real_compare (inclusive ? LE_EXPR: LT_EXPR , ra, max)))
11842 {
11843 const struct real_format *fmt = REAL_MODE_FORMAT (TYPE_MODE (type));
11844 const int prec = fmt->p;
11845 const mp_rnd_t rnd = fmt->round_towards_zero? GMP_RNDZ : GMP_RNDN;
11846 int inexact;
11847 mpfr_t m;
11848
11849 mpfr_init2 (m, prec);
11850 mpfr_from_real (m, ra, GMP_RNDN);
11851 mpfr_clear_flags ();
11852 inexact = func (m, m, rnd);
11853 result = do_mpfr_ckconv (m, type, inexact);
11854 mpfr_clear (m);
11855 }
11856 }
11857
11858 return result;
11859 }
11860
11861 /* If argument ARG is a REAL_CST, call the two-argument mpfr function
11862 FUNC on it and return the resulting value as a tree with type TYPE.
11863 The mpfr precision is set to the precision of TYPE. We assume that
11864 function FUNC returns zero if the result could be calculated
11865 exactly within the requested precision. */
11866
11867 static tree
11868 do_mpfr_arg2 (tree arg1, tree arg2, tree type,
11869 int (*func)(mpfr_ptr, mpfr_srcptr, mpfr_srcptr, mp_rnd_t))
11870 {
11871 tree result = NULL_TREE;
11872
11873 STRIP_NOPS (arg1);
11874 STRIP_NOPS (arg2);
11875
11876 /* To proceed, MPFR must exactly represent the target floating point
11877 format, which only happens when the target base equals two. */
11878 if (REAL_MODE_FORMAT (TYPE_MODE (type))->b == 2
11879 && TREE_CODE (arg1) == REAL_CST && !TREE_OVERFLOW (arg1)
11880 && TREE_CODE (arg2) == REAL_CST && !TREE_OVERFLOW (arg2))
11881 {
11882 const REAL_VALUE_TYPE *const ra1 = &TREE_REAL_CST (arg1);
11883 const REAL_VALUE_TYPE *const ra2 = &TREE_REAL_CST (arg2);
11884
11885 if (real_isfinite (ra1) && real_isfinite (ra2))
11886 {
11887 const struct real_format *fmt = REAL_MODE_FORMAT (TYPE_MODE (type));
11888 const int prec = fmt->p;
11889 const mp_rnd_t rnd = fmt->round_towards_zero? GMP_RNDZ : GMP_RNDN;
11890 int inexact;
11891 mpfr_t m1, m2;
11892
11893 mpfr_inits2 (prec, m1, m2, NULL);
11894 mpfr_from_real (m1, ra1, GMP_RNDN);
11895 mpfr_from_real (m2, ra2, GMP_RNDN);
11896 mpfr_clear_flags ();
11897 inexact = func (m1, m1, m2, rnd);
11898 result = do_mpfr_ckconv (m1, type, inexact);
11899 mpfr_clears (m1, m2, NULL);
11900 }
11901 }
11902
11903 return result;
11904 }
11905
11906 /* If argument ARG is a REAL_CST, call the three-argument mpfr function
11907 FUNC on it and return the resulting value as a tree with type TYPE.
11908 The mpfr precision is set to the precision of TYPE. We assume that
11909 function FUNC returns zero if the result could be calculated
11910 exactly within the requested precision. */
11911
11912 static tree
11913 do_mpfr_arg3 (tree arg1, tree arg2, tree arg3, tree type,
11914 int (*func)(mpfr_ptr, mpfr_srcptr, mpfr_srcptr, mpfr_srcptr, mp_rnd_t))
11915 {
11916 tree result = NULL_TREE;
11917
11918 STRIP_NOPS (arg1);
11919 STRIP_NOPS (arg2);
11920 STRIP_NOPS (arg3);
11921
11922 /* To proceed, MPFR must exactly represent the target floating point
11923 format, which only happens when the target base equals two. */
11924 if (REAL_MODE_FORMAT (TYPE_MODE (type))->b == 2
11925 && TREE_CODE (arg1) == REAL_CST && !TREE_OVERFLOW (arg1)
11926 && TREE_CODE (arg2) == REAL_CST && !TREE_OVERFLOW (arg2)
11927 && TREE_CODE (arg3) == REAL_CST && !TREE_OVERFLOW (arg3))
11928 {
11929 const REAL_VALUE_TYPE *const ra1 = &TREE_REAL_CST (arg1);
11930 const REAL_VALUE_TYPE *const ra2 = &TREE_REAL_CST (arg2);
11931 const REAL_VALUE_TYPE *const ra3 = &TREE_REAL_CST (arg3);
11932
11933 if (real_isfinite (ra1) && real_isfinite (ra2) && real_isfinite (ra3))
11934 {
11935 const struct real_format *fmt = REAL_MODE_FORMAT (TYPE_MODE (type));
11936 const int prec = fmt->p;
11937 const mp_rnd_t rnd = fmt->round_towards_zero? GMP_RNDZ : GMP_RNDN;
11938 int inexact;
11939 mpfr_t m1, m2, m3;
11940
11941 mpfr_inits2 (prec, m1, m2, m3, NULL);
11942 mpfr_from_real (m1, ra1, GMP_RNDN);
11943 mpfr_from_real (m2, ra2, GMP_RNDN);
11944 mpfr_from_real (m3, ra3, GMP_RNDN);
11945 mpfr_clear_flags ();
11946 inexact = func (m1, m1, m2, m3, rnd);
11947 result = do_mpfr_ckconv (m1, type, inexact);
11948 mpfr_clears (m1, m2, m3, NULL);
11949 }
11950 }
11951
11952 return result;
11953 }
11954
11955 /* If argument ARG is a REAL_CST, call mpfr_sin_cos() on it and set
11956 the pointers *(ARG_SINP) and *(ARG_COSP) to the resulting values.
11957 If ARG_SINP and ARG_COSP are NULL then the result is returned
11958 as a complex value.
11959 The type is taken from the type of ARG and is used for setting the
11960 precision of the calculation and results. */
11961
11962 static tree
11963 do_mpfr_sincos (tree arg, tree arg_sinp, tree arg_cosp)
11964 {
11965 tree const type = TREE_TYPE (arg);
11966 tree result = NULL_TREE;
11967
11968 STRIP_NOPS (arg);
11969
11970 /* To proceed, MPFR must exactly represent the target floating point
11971 format, which only happens when the target base equals two. */
11972 if (REAL_MODE_FORMAT (TYPE_MODE (type))->b == 2
11973 && TREE_CODE (arg) == REAL_CST
11974 && !TREE_OVERFLOW (arg))
11975 {
11976 const REAL_VALUE_TYPE *const ra = &TREE_REAL_CST (arg);
11977
11978 if (real_isfinite (ra))
11979 {
11980 const struct real_format *fmt = REAL_MODE_FORMAT (TYPE_MODE (type));
11981 const int prec = fmt->p;
11982 const mp_rnd_t rnd = fmt->round_towards_zero? GMP_RNDZ : GMP_RNDN;
11983 tree result_s, result_c;
11984 int inexact;
11985 mpfr_t m, ms, mc;
11986
11987 mpfr_inits2 (prec, m, ms, mc, NULL);
11988 mpfr_from_real (m, ra, GMP_RNDN);
11989 mpfr_clear_flags ();
11990 inexact = mpfr_sin_cos (ms, mc, m, rnd);
11991 result_s = do_mpfr_ckconv (ms, type, inexact);
11992 result_c = do_mpfr_ckconv (mc, type, inexact);
11993 mpfr_clears (m, ms, mc, NULL);
11994 if (result_s && result_c)
11995 {
11996 /* If we are to return in a complex value do so. */
11997 if (!arg_sinp && !arg_cosp)
11998 return build_complex (build_complex_type (type),
11999 result_c, result_s);
12000
12001 /* Dereference the sin/cos pointer arguments. */
12002 arg_sinp = build_fold_indirect_ref (arg_sinp);
12003 arg_cosp = build_fold_indirect_ref (arg_cosp);
12004 /* Proceed if valid pointer type were passed in. */
12005 if (TYPE_MAIN_VARIANT (TREE_TYPE (arg_sinp)) == TYPE_MAIN_VARIANT (type)
12006 && TYPE_MAIN_VARIANT (TREE_TYPE (arg_cosp)) == TYPE_MAIN_VARIANT (type))
12007 {
12008 /* Set the values. */
12009 result_s = fold_build2 (MODIFY_EXPR, type, arg_sinp,
12010 result_s);
12011 TREE_SIDE_EFFECTS (result_s) = 1;
12012 result_c = fold_build2 (MODIFY_EXPR, type, arg_cosp,
12013 result_c);
12014 TREE_SIDE_EFFECTS (result_c) = 1;
12015 /* Combine the assignments into a compound expr. */
12016 result = non_lvalue (fold_build2 (COMPOUND_EXPR, type,
12017 result_s, result_c));
12018 }
12019 }
12020 }
12021 }
12022 return result;
12023 }
12024
12025 /* If argument ARG1 is an INTEGER_CST and ARG2 is a REAL_CST, call the
12026 two-argument mpfr order N Bessel function FUNC on them and return
12027 the resulting value as a tree with type TYPE. The mpfr precision
12028 is set to the precision of TYPE. We assume that function FUNC
12029 returns zero if the result could be calculated exactly within the
12030 requested precision. */
12031 static tree
12032 do_mpfr_bessel_n (tree arg1, tree arg2, tree type,
12033 int (*func)(mpfr_ptr, long, mpfr_srcptr, mp_rnd_t),
12034 const REAL_VALUE_TYPE *min, bool inclusive)
12035 {
12036 tree result = NULL_TREE;
12037
12038 STRIP_NOPS (arg1);
12039 STRIP_NOPS (arg2);
12040
12041 /* To proceed, MPFR must exactly represent the target floating point
12042 format, which only happens when the target base equals two. */
12043 if (REAL_MODE_FORMAT (TYPE_MODE (type))->b == 2
12044 && tree_fits_shwi_p (arg1)
12045 && TREE_CODE (arg2) == REAL_CST && !TREE_OVERFLOW (arg2))
12046 {
12047 const HOST_WIDE_INT n = tree_to_shwi (arg1);
12048 const REAL_VALUE_TYPE *const ra = &TREE_REAL_CST (arg2);
12049
12050 if (n == (long)n
12051 && real_isfinite (ra)
12052 && (!min || real_compare (inclusive ? GE_EXPR: GT_EXPR , ra, min)))
12053 {
12054 const struct real_format *fmt = REAL_MODE_FORMAT (TYPE_MODE (type));
12055 const int prec = fmt->p;
12056 const mp_rnd_t rnd = fmt->round_towards_zero? GMP_RNDZ : GMP_RNDN;
12057 int inexact;
12058 mpfr_t m;
12059
12060 mpfr_init2 (m, prec);
12061 mpfr_from_real (m, ra, GMP_RNDN);
12062 mpfr_clear_flags ();
12063 inexact = func (m, n, m, rnd);
12064 result = do_mpfr_ckconv (m, type, inexact);
12065 mpfr_clear (m);
12066 }
12067 }
12068
12069 return result;
12070 }
12071
12072 /* If arguments ARG0 and ARG1 are REAL_CSTs, call mpfr_remquo() to set
12073 the pointer *(ARG_QUO) and return the result. The type is taken
12074 from the type of ARG0 and is used for setting the precision of the
12075 calculation and results. */
12076
12077 static tree
12078 do_mpfr_remquo (tree arg0, tree arg1, tree arg_quo)
12079 {
12080 tree const type = TREE_TYPE (arg0);
12081 tree result = NULL_TREE;
12082
12083 STRIP_NOPS (arg0);
12084 STRIP_NOPS (arg1);
12085
12086 /* To proceed, MPFR must exactly represent the target floating point
12087 format, which only happens when the target base equals two. */
12088 if (REAL_MODE_FORMAT (TYPE_MODE (type))->b == 2
12089 && TREE_CODE (arg0) == REAL_CST && !TREE_OVERFLOW (arg0)
12090 && TREE_CODE (arg1) == REAL_CST && !TREE_OVERFLOW (arg1))
12091 {
12092 const REAL_VALUE_TYPE *const ra0 = TREE_REAL_CST_PTR (arg0);
12093 const REAL_VALUE_TYPE *const ra1 = TREE_REAL_CST_PTR (arg1);
12094
12095 if (real_isfinite (ra0) && real_isfinite (ra1))
12096 {
12097 const struct real_format *fmt = REAL_MODE_FORMAT (TYPE_MODE (type));
12098 const int prec = fmt->p;
12099 const mp_rnd_t rnd = fmt->round_towards_zero? GMP_RNDZ : GMP_RNDN;
12100 tree result_rem;
12101 long integer_quo;
12102 mpfr_t m0, m1;
12103
12104 mpfr_inits2 (prec, m0, m1, NULL);
12105 mpfr_from_real (m0, ra0, GMP_RNDN);
12106 mpfr_from_real (m1, ra1, GMP_RNDN);
12107 mpfr_clear_flags ();
12108 mpfr_remquo (m0, &integer_quo, m0, m1, rnd);
12109 /* Remquo is independent of the rounding mode, so pass
12110 inexact=0 to do_mpfr_ckconv(). */
12111 result_rem = do_mpfr_ckconv (m0, type, /*inexact=*/ 0);
12112 mpfr_clears (m0, m1, NULL);
12113 if (result_rem)
12114 {
12115 /* MPFR calculates quo in the host's long so it may
12116 return more bits in quo than the target int can hold
12117 if sizeof(host long) > sizeof(target int). This can
12118 happen even for native compilers in LP64 mode. In
12119 these cases, modulo the quo value with the largest
12120 number that the target int can hold while leaving one
12121 bit for the sign. */
12122 if (sizeof (integer_quo) * CHAR_BIT > INT_TYPE_SIZE)
12123 integer_quo %= (long)(1UL << (INT_TYPE_SIZE - 1));
12124
12125 /* Dereference the quo pointer argument. */
12126 arg_quo = build_fold_indirect_ref (arg_quo);
12127 /* Proceed iff a valid pointer type was passed in. */
12128 if (TYPE_MAIN_VARIANT (TREE_TYPE (arg_quo)) == integer_type_node)
12129 {
12130 /* Set the value. */
12131 tree result_quo
12132 = fold_build2 (MODIFY_EXPR, TREE_TYPE (arg_quo), arg_quo,
12133 build_int_cst (TREE_TYPE (arg_quo),
12134 integer_quo));
12135 TREE_SIDE_EFFECTS (result_quo) = 1;
12136 /* Combine the quo assignment with the rem. */
12137 result = non_lvalue (fold_build2 (COMPOUND_EXPR, type,
12138 result_quo, result_rem));
12139 }
12140 }
12141 }
12142 }
12143 return result;
12144 }
12145
12146 /* If ARG is a REAL_CST, call mpfr_lgamma() on it and return the
12147 resulting value as a tree with type TYPE. The mpfr precision is
12148 set to the precision of TYPE. We assume that this mpfr function
12149 returns zero if the result could be calculated exactly within the
12150 requested precision. In addition, the integer pointer represented
12151 by ARG_SG will be dereferenced and set to the appropriate signgam
12152 (-1,1) value. */
12153
12154 static tree
12155 do_mpfr_lgamma_r (tree arg, tree arg_sg, tree type)
12156 {
12157 tree result = NULL_TREE;
12158
12159 STRIP_NOPS (arg);
12160
12161 /* To proceed, MPFR must exactly represent the target floating point
12162 format, which only happens when the target base equals two. Also
12163 verify ARG is a constant and that ARG_SG is an int pointer. */
12164 if (REAL_MODE_FORMAT (TYPE_MODE (type))->b == 2
12165 && TREE_CODE (arg) == REAL_CST && !TREE_OVERFLOW (arg)
12166 && TREE_CODE (TREE_TYPE (arg_sg)) == POINTER_TYPE
12167 && TYPE_MAIN_VARIANT (TREE_TYPE (TREE_TYPE (arg_sg))) == integer_type_node)
12168 {
12169 const REAL_VALUE_TYPE *const ra = TREE_REAL_CST_PTR (arg);
12170
12171 /* In addition to NaN and Inf, the argument cannot be zero or a
12172 negative integer. */
12173 if (real_isfinite (ra)
12174 && ra->cl != rvc_zero
12175 && !(real_isneg (ra) && real_isinteger (ra, TYPE_MODE (type))))
12176 {
12177 const struct real_format *fmt = REAL_MODE_FORMAT (TYPE_MODE (type));
12178 const int prec = fmt->p;
12179 const mp_rnd_t rnd = fmt->round_towards_zero? GMP_RNDZ : GMP_RNDN;
12180 int inexact, sg;
12181 mpfr_t m;
12182 tree result_lg;
12183
12184 mpfr_init2 (m, prec);
12185 mpfr_from_real (m, ra, GMP_RNDN);
12186 mpfr_clear_flags ();
12187 inexact = mpfr_lgamma (m, &sg, m, rnd);
12188 result_lg = do_mpfr_ckconv (m, type, inexact);
12189 mpfr_clear (m);
12190 if (result_lg)
12191 {
12192 tree result_sg;
12193
12194 /* Dereference the arg_sg pointer argument. */
12195 arg_sg = build_fold_indirect_ref (arg_sg);
12196 /* Assign the signgam value into *arg_sg. */
12197 result_sg = fold_build2 (MODIFY_EXPR,
12198 TREE_TYPE (arg_sg), arg_sg,
12199 build_int_cst (TREE_TYPE (arg_sg), sg));
12200 TREE_SIDE_EFFECTS (result_sg) = 1;
12201 /* Combine the signgam assignment with the lgamma result. */
12202 result = non_lvalue (fold_build2 (COMPOUND_EXPR, type,
12203 result_sg, result_lg));
12204 }
12205 }
12206 }
12207
12208 return result;
12209 }
12210
12211 /* If argument ARG is a COMPLEX_CST, call the one-argument mpc
12212 function FUNC on it and return the resulting value as a tree with
12213 type TYPE. The mpfr precision is set to the precision of TYPE. We
12214 assume that function FUNC returns zero if the result could be
12215 calculated exactly within the requested precision. */
12216
12217 static tree
12218 do_mpc_arg1 (tree arg, tree type, int (*func)(mpc_ptr, mpc_srcptr, mpc_rnd_t))
12219 {
12220 tree result = NULL_TREE;
12221
12222 STRIP_NOPS (arg);
12223
12224 /* To proceed, MPFR must exactly represent the target floating point
12225 format, which only happens when the target base equals two. */
12226 if (TREE_CODE (arg) == COMPLEX_CST && !TREE_OVERFLOW (arg)
12227 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg))) == REAL_TYPE
12228 && REAL_MODE_FORMAT (TYPE_MODE (TREE_TYPE (TREE_TYPE (arg))))->b == 2)
12229 {
12230 const REAL_VALUE_TYPE *const re = TREE_REAL_CST_PTR (TREE_REALPART (arg));
12231 const REAL_VALUE_TYPE *const im = TREE_REAL_CST_PTR (TREE_IMAGPART (arg));
12232
12233 if (real_isfinite (re) && real_isfinite (im))
12234 {
12235 const struct real_format *const fmt =
12236 REAL_MODE_FORMAT (TYPE_MODE (TREE_TYPE (type)));
12237 const int prec = fmt->p;
12238 const mp_rnd_t rnd = fmt->round_towards_zero ? GMP_RNDZ : GMP_RNDN;
12239 const mpc_rnd_t crnd = fmt->round_towards_zero ? MPC_RNDZZ : MPC_RNDNN;
12240 int inexact;
12241 mpc_t m;
12242
12243 mpc_init2 (m, prec);
12244 mpfr_from_real (mpc_realref (m), re, rnd);
12245 mpfr_from_real (mpc_imagref (m), im, rnd);
12246 mpfr_clear_flags ();
12247 inexact = func (m, m, crnd);
12248 result = do_mpc_ckconv (m, type, inexact, /*force_convert=*/ 0);
12249 mpc_clear (m);
12250 }
12251 }
12252
12253 return result;
12254 }
12255
12256 /* If arguments ARG0 and ARG1 are a COMPLEX_CST, call the two-argument
12257 mpc function FUNC on it and return the resulting value as a tree
12258 with type TYPE. The mpfr precision is set to the precision of
12259 TYPE. We assume that function FUNC returns zero if the result
12260 could be calculated exactly within the requested precision. If
12261 DO_NONFINITE is true, then fold expressions containing Inf or NaN
12262 in the arguments and/or results. */
12263
12264 tree
12265 do_mpc_arg2 (tree arg0, tree arg1, tree type, int do_nonfinite,
12266 int (*func)(mpc_ptr, mpc_srcptr, mpc_srcptr, mpc_rnd_t))
12267 {
12268 tree result = NULL_TREE;
12269
12270 STRIP_NOPS (arg0);
12271 STRIP_NOPS (arg1);
12272
12273 /* To proceed, MPFR must exactly represent the target floating point
12274 format, which only happens when the target base equals two. */
12275 if (TREE_CODE (arg0) == COMPLEX_CST && !TREE_OVERFLOW (arg0)
12276 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg0))) == REAL_TYPE
12277 && TREE_CODE (arg1) == COMPLEX_CST && !TREE_OVERFLOW (arg1)
12278 && TREE_CODE (TREE_TYPE (TREE_TYPE (arg1))) == REAL_TYPE
12279 && REAL_MODE_FORMAT (TYPE_MODE (TREE_TYPE (TREE_TYPE (arg0))))->b == 2)
12280 {
12281 const REAL_VALUE_TYPE *const re0 = TREE_REAL_CST_PTR (TREE_REALPART (arg0));
12282 const REAL_VALUE_TYPE *const im0 = TREE_REAL_CST_PTR (TREE_IMAGPART (arg0));
12283 const REAL_VALUE_TYPE *const re1 = TREE_REAL_CST_PTR (TREE_REALPART (arg1));
12284 const REAL_VALUE_TYPE *const im1 = TREE_REAL_CST_PTR (TREE_IMAGPART (arg1));
12285
12286 if (do_nonfinite
12287 || (real_isfinite (re0) && real_isfinite (im0)
12288 && real_isfinite (re1) && real_isfinite (im1)))
12289 {
12290 const struct real_format *const fmt =
12291 REAL_MODE_FORMAT (TYPE_MODE (TREE_TYPE (type)));
12292 const int prec = fmt->p;
12293 const mp_rnd_t rnd = fmt->round_towards_zero ? GMP_RNDZ : GMP_RNDN;
12294 const mpc_rnd_t crnd = fmt->round_towards_zero ? MPC_RNDZZ : MPC_RNDNN;
12295 int inexact;
12296 mpc_t m0, m1;
12297
12298 mpc_init2 (m0, prec);
12299 mpc_init2 (m1, prec);
12300 mpfr_from_real (mpc_realref (m0), re0, rnd);
12301 mpfr_from_real (mpc_imagref (m0), im0, rnd);
12302 mpfr_from_real (mpc_realref (m1), re1, rnd);
12303 mpfr_from_real (mpc_imagref (m1), im1, rnd);
12304 mpfr_clear_flags ();
12305 inexact = func (m0, m0, m1, crnd);
12306 result = do_mpc_ckconv (m0, type, inexact, do_nonfinite);
12307 mpc_clear (m0);
12308 mpc_clear (m1);
12309 }
12310 }
12311
12312 return result;
12313 }
12314
12315 /* A wrapper function for builtin folding that prevents warnings for
12316 "statement without effect" and the like, caused by removing the
12317 call node earlier than the warning is generated. */
12318
12319 tree
12320 fold_call_stmt (gcall *stmt, bool ignore)
12321 {
12322 tree ret = NULL_TREE;
12323 tree fndecl = gimple_call_fndecl (stmt);
12324 location_t loc = gimple_location (stmt);
12325 if (fndecl
12326 && TREE_CODE (fndecl) == FUNCTION_DECL
12327 && DECL_BUILT_IN (fndecl)
12328 && !gimple_call_va_arg_pack_p (stmt))
12329 {
12330 int nargs = gimple_call_num_args (stmt);
12331 tree *args = (nargs > 0
12332 ? gimple_call_arg_ptr (stmt, 0)
12333 : &error_mark_node);
12334
12335 if (avoid_folding_inline_builtin (fndecl))
12336 return NULL_TREE;
12337 if (DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_MD)
12338 {
12339 return targetm.fold_builtin (fndecl, nargs, args, ignore);
12340 }
12341 else
12342 {
12343 ret = fold_builtin_n (loc, fndecl, args, nargs, ignore);
12344 if (ret)
12345 {
12346 /* Propagate location information from original call to
12347 expansion of builtin. Otherwise things like
12348 maybe_emit_chk_warning, that operate on the expansion
12349 of a builtin, will use the wrong location information. */
12350 if (gimple_has_location (stmt))
12351 {
12352 tree realret = ret;
12353 if (TREE_CODE (ret) == NOP_EXPR)
12354 realret = TREE_OPERAND (ret, 0);
12355 if (CAN_HAVE_LOCATION_P (realret)
12356 && !EXPR_HAS_LOCATION (realret))
12357 SET_EXPR_LOCATION (realret, loc);
12358 return realret;
12359 }
12360 return ret;
12361 }
12362 }
12363 }
12364 return NULL_TREE;
12365 }
12366
12367 /* Look up the function in builtin_decl that corresponds to DECL
12368 and set ASMSPEC as its user assembler name. DECL must be a
12369 function decl that declares a builtin. */
12370
12371 void
12372 set_builtin_user_assembler_name (tree decl, const char *asmspec)
12373 {
12374 tree builtin;
12375 gcc_assert (TREE_CODE (decl) == FUNCTION_DECL
12376 && DECL_BUILT_IN_CLASS (decl) == BUILT_IN_NORMAL
12377 && asmspec != 0);
12378
12379 builtin = builtin_decl_explicit (DECL_FUNCTION_CODE (decl));
12380 set_user_assembler_name (builtin, asmspec);
12381 switch (DECL_FUNCTION_CODE (decl))
12382 {
12383 case BUILT_IN_MEMCPY:
12384 init_block_move_fn (asmspec);
12385 memcpy_libfunc = set_user_assembler_libfunc ("memcpy", asmspec);
12386 break;
12387 case BUILT_IN_MEMSET:
12388 init_block_clear_fn (asmspec);
12389 memset_libfunc = set_user_assembler_libfunc ("memset", asmspec);
12390 break;
12391 case BUILT_IN_MEMMOVE:
12392 memmove_libfunc = set_user_assembler_libfunc ("memmove", asmspec);
12393 break;
12394 case BUILT_IN_MEMCMP:
12395 memcmp_libfunc = set_user_assembler_libfunc ("memcmp", asmspec);
12396 break;
12397 case BUILT_IN_ABORT:
12398 abort_libfunc = set_user_assembler_libfunc ("abort", asmspec);
12399 break;
12400 case BUILT_IN_FFS:
12401 if (INT_TYPE_SIZE < BITS_PER_WORD)
12402 {
12403 set_user_assembler_libfunc ("ffs", asmspec);
12404 set_optab_libfunc (ffs_optab, mode_for_size (INT_TYPE_SIZE,
12405 MODE_INT, 0), "ffs");
12406 }
12407 break;
12408 default:
12409 break;
12410 }
12411 }
12412
12413 /* Return true if DECL is a builtin that expands to a constant or similarly
12414 simple code. */
12415 bool
12416 is_simple_builtin (tree decl)
12417 {
12418 if (decl && DECL_BUILT_IN_CLASS (decl) == BUILT_IN_NORMAL)
12419 switch (DECL_FUNCTION_CODE (decl))
12420 {
12421 /* Builtins that expand to constants. */
12422 case BUILT_IN_CONSTANT_P:
12423 case BUILT_IN_EXPECT:
12424 case BUILT_IN_OBJECT_SIZE:
12425 case BUILT_IN_UNREACHABLE:
12426 /* Simple register moves or loads from stack. */
12427 case BUILT_IN_ASSUME_ALIGNED:
12428 case BUILT_IN_RETURN_ADDRESS:
12429 case BUILT_IN_EXTRACT_RETURN_ADDR:
12430 case BUILT_IN_FROB_RETURN_ADDR:
12431 case BUILT_IN_RETURN:
12432 case BUILT_IN_AGGREGATE_INCOMING_ADDRESS:
12433 case BUILT_IN_FRAME_ADDRESS:
12434 case BUILT_IN_VA_END:
12435 case BUILT_IN_STACK_SAVE:
12436 case BUILT_IN_STACK_RESTORE:
12437 /* Exception state returns or moves registers around. */
12438 case BUILT_IN_EH_FILTER:
12439 case BUILT_IN_EH_POINTER:
12440 case BUILT_IN_EH_COPY_VALUES:
12441 return true;
12442
12443 default:
12444 return false;
12445 }
12446
12447 return false;
12448 }
12449
12450 /* Return true if DECL is a builtin that is not expensive, i.e., they are
12451 most probably expanded inline into reasonably simple code. This is a
12452 superset of is_simple_builtin. */
12453 bool
12454 is_inexpensive_builtin (tree decl)
12455 {
12456 if (!decl)
12457 return false;
12458 else if (DECL_BUILT_IN_CLASS (decl) == BUILT_IN_MD)
12459 return true;
12460 else if (DECL_BUILT_IN_CLASS (decl) == BUILT_IN_NORMAL)
12461 switch (DECL_FUNCTION_CODE (decl))
12462 {
12463 case BUILT_IN_ABS:
12464 case BUILT_IN_ALLOCA:
12465 case BUILT_IN_ALLOCA_WITH_ALIGN:
12466 case BUILT_IN_BSWAP16:
12467 case BUILT_IN_BSWAP32:
12468 case BUILT_IN_BSWAP64:
12469 case BUILT_IN_CLZ:
12470 case BUILT_IN_CLZIMAX:
12471 case BUILT_IN_CLZL:
12472 case BUILT_IN_CLZLL:
12473 case BUILT_IN_CTZ:
12474 case BUILT_IN_CTZIMAX:
12475 case BUILT_IN_CTZL:
12476 case BUILT_IN_CTZLL:
12477 case BUILT_IN_FFS:
12478 case BUILT_IN_FFSIMAX:
12479 case BUILT_IN_FFSL:
12480 case BUILT_IN_FFSLL:
12481 case BUILT_IN_IMAXABS:
12482 case BUILT_IN_FINITE:
12483 case BUILT_IN_FINITEF:
12484 case BUILT_IN_FINITEL:
12485 case BUILT_IN_FINITED32:
12486 case BUILT_IN_FINITED64:
12487 case BUILT_IN_FINITED128:
12488 case BUILT_IN_FPCLASSIFY:
12489 case BUILT_IN_ISFINITE:
12490 case BUILT_IN_ISINF_SIGN:
12491 case BUILT_IN_ISINF:
12492 case BUILT_IN_ISINFF:
12493 case BUILT_IN_ISINFL:
12494 case BUILT_IN_ISINFD32:
12495 case BUILT_IN_ISINFD64:
12496 case BUILT_IN_ISINFD128:
12497 case BUILT_IN_ISNAN:
12498 case BUILT_IN_ISNANF:
12499 case BUILT_IN_ISNANL:
12500 case BUILT_IN_ISNAND32:
12501 case BUILT_IN_ISNAND64:
12502 case BUILT_IN_ISNAND128:
12503 case BUILT_IN_ISNORMAL:
12504 case BUILT_IN_ISGREATER:
12505 case BUILT_IN_ISGREATEREQUAL:
12506 case BUILT_IN_ISLESS:
12507 case BUILT_IN_ISLESSEQUAL:
12508 case BUILT_IN_ISLESSGREATER:
12509 case BUILT_IN_ISUNORDERED:
12510 case BUILT_IN_VA_ARG_PACK:
12511 case BUILT_IN_VA_ARG_PACK_LEN:
12512 case BUILT_IN_VA_COPY:
12513 case BUILT_IN_TRAP:
12514 case BUILT_IN_SAVEREGS:
12515 case BUILT_IN_POPCOUNTL:
12516 case BUILT_IN_POPCOUNTLL:
12517 case BUILT_IN_POPCOUNTIMAX:
12518 case BUILT_IN_POPCOUNT:
12519 case BUILT_IN_PARITYL:
12520 case BUILT_IN_PARITYLL:
12521 case BUILT_IN_PARITYIMAX:
12522 case BUILT_IN_PARITY:
12523 case BUILT_IN_LABS:
12524 case BUILT_IN_LLABS:
12525 case BUILT_IN_PREFETCH:
12526 case BUILT_IN_ACC_ON_DEVICE:
12527 return true;
12528
12529 default:
12530 return is_simple_builtin (decl);
12531 }
12532
12533 return false;
12534 }