--with-gnu-ld uses different x- fiile under aix 4.1
[official-gcc.git] / gcc / optabs.c
blob83235f79ad0c26d7ce5692d3ff13c3e84ea26fb1
1 /* Expand the basic unary and binary arithmetic operations, for GNU compiler.
2 Copyright (C) 1987, 88, 92-98, 1999 Free Software Foundation, Inc.
4 This file is part of GNU CC.
6 GNU CC is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2, or (at your option)
9 any later version.
11 GNU CC is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
16 You should have received a copy of the GNU General Public License
17 along with GNU CC; see the file COPYING. If not, write to
18 the Free Software Foundation, 59 Temple Place - Suite 330,
19 Boston, MA 02111-1307, USA. */
22 #include "config.h"
23 #include "system.h"
24 #include "rtl.h"
25 #include "tree.h"
26 #include "flags.h"
27 #include "insn-flags.h"
28 #include "insn-codes.h"
29 #include "expr.h"
30 #include "insn-config.h"
31 #include "recog.h"
32 #include "reload.h"
34 /* Each optab contains info on how this target machine
35 can perform a particular operation
36 for all sizes and kinds of operands.
38 The operation to be performed is often specified
39 by passing one of these optabs as an argument.
41 See expr.h for documentation of these optabs. */
43 optab add_optab;
44 optab sub_optab;
45 optab smul_optab;
46 optab smul_highpart_optab;
47 optab umul_highpart_optab;
48 optab smul_widen_optab;
49 optab umul_widen_optab;
50 optab sdiv_optab;
51 optab sdivmod_optab;
52 optab udiv_optab;
53 optab udivmod_optab;
54 optab smod_optab;
55 optab umod_optab;
56 optab flodiv_optab;
57 optab ftrunc_optab;
58 optab and_optab;
59 optab ior_optab;
60 optab xor_optab;
61 optab ashl_optab;
62 optab lshr_optab;
63 optab ashr_optab;
64 optab rotl_optab;
65 optab rotr_optab;
66 optab smin_optab;
67 optab smax_optab;
68 optab umin_optab;
69 optab umax_optab;
71 optab mov_optab;
72 optab movstrict_optab;
74 optab neg_optab;
75 optab abs_optab;
76 optab one_cmpl_optab;
77 optab ffs_optab;
78 optab sqrt_optab;
79 optab sin_optab;
80 optab cos_optab;
82 optab cmp_optab;
83 optab ucmp_optab; /* Used only for libcalls for unsigned comparisons. */
84 optab tst_optab;
86 optab strlen_optab;
88 /* Tables of patterns for extending one integer mode to another. */
89 enum insn_code extendtab[MAX_MACHINE_MODE][MAX_MACHINE_MODE][2];
91 /* Tables of patterns for converting between fixed and floating point. */
92 enum insn_code fixtab[NUM_MACHINE_MODES][NUM_MACHINE_MODES][2];
93 enum insn_code fixtrunctab[NUM_MACHINE_MODES][NUM_MACHINE_MODES][2];
94 enum insn_code floattab[NUM_MACHINE_MODES][NUM_MACHINE_MODES][2];
96 /* Contains the optab used for each rtx code. */
97 optab code_to_optab[NUM_RTX_CODE + 1];
99 /* SYMBOL_REF rtx's for the library functions that are called
100 implicitly and not via optabs. */
102 rtx extendsfdf2_libfunc;
103 rtx extendsfxf2_libfunc;
104 rtx extendsftf2_libfunc;
105 rtx extenddfxf2_libfunc;
106 rtx extenddftf2_libfunc;
108 rtx truncdfsf2_libfunc;
109 rtx truncxfsf2_libfunc;
110 rtx trunctfsf2_libfunc;
111 rtx truncxfdf2_libfunc;
112 rtx trunctfdf2_libfunc;
114 rtx memcpy_libfunc;
115 rtx bcopy_libfunc;
116 rtx memcmp_libfunc;
117 rtx bcmp_libfunc;
118 rtx memset_libfunc;
119 rtx bzero_libfunc;
121 rtx throw_libfunc;
122 rtx rethrow_libfunc;
123 rtx sjthrow_libfunc;
124 rtx sjpopnthrow_libfunc;
125 rtx terminate_libfunc;
126 rtx setjmp_libfunc;
127 rtx longjmp_libfunc;
128 rtx eh_rtime_match_libfunc;
130 rtx eqhf2_libfunc;
131 rtx nehf2_libfunc;
132 rtx gthf2_libfunc;
133 rtx gehf2_libfunc;
134 rtx lthf2_libfunc;
135 rtx lehf2_libfunc;
137 rtx eqsf2_libfunc;
138 rtx nesf2_libfunc;
139 rtx gtsf2_libfunc;
140 rtx gesf2_libfunc;
141 rtx ltsf2_libfunc;
142 rtx lesf2_libfunc;
144 rtx eqdf2_libfunc;
145 rtx nedf2_libfunc;
146 rtx gtdf2_libfunc;
147 rtx gedf2_libfunc;
148 rtx ltdf2_libfunc;
149 rtx ledf2_libfunc;
151 rtx eqxf2_libfunc;
152 rtx nexf2_libfunc;
153 rtx gtxf2_libfunc;
154 rtx gexf2_libfunc;
155 rtx ltxf2_libfunc;
156 rtx lexf2_libfunc;
158 rtx eqtf2_libfunc;
159 rtx netf2_libfunc;
160 rtx gttf2_libfunc;
161 rtx getf2_libfunc;
162 rtx lttf2_libfunc;
163 rtx letf2_libfunc;
165 rtx floatsisf_libfunc;
166 rtx floatdisf_libfunc;
167 rtx floattisf_libfunc;
169 rtx floatsidf_libfunc;
170 rtx floatdidf_libfunc;
171 rtx floattidf_libfunc;
173 rtx floatsixf_libfunc;
174 rtx floatdixf_libfunc;
175 rtx floattixf_libfunc;
177 rtx floatsitf_libfunc;
178 rtx floatditf_libfunc;
179 rtx floattitf_libfunc;
181 rtx fixsfsi_libfunc;
182 rtx fixsfdi_libfunc;
183 rtx fixsfti_libfunc;
185 rtx fixdfsi_libfunc;
186 rtx fixdfdi_libfunc;
187 rtx fixdfti_libfunc;
189 rtx fixxfsi_libfunc;
190 rtx fixxfdi_libfunc;
191 rtx fixxfti_libfunc;
193 rtx fixtfsi_libfunc;
194 rtx fixtfdi_libfunc;
195 rtx fixtfti_libfunc;
197 rtx fixunssfsi_libfunc;
198 rtx fixunssfdi_libfunc;
199 rtx fixunssfti_libfunc;
201 rtx fixunsdfsi_libfunc;
202 rtx fixunsdfdi_libfunc;
203 rtx fixunsdfti_libfunc;
205 rtx fixunsxfsi_libfunc;
206 rtx fixunsxfdi_libfunc;
207 rtx fixunsxfti_libfunc;
209 rtx fixunstfsi_libfunc;
210 rtx fixunstfdi_libfunc;
211 rtx fixunstfti_libfunc;
213 rtx chkr_check_addr_libfunc;
214 rtx chkr_set_right_libfunc;
215 rtx chkr_copy_bitmap_libfunc;
216 rtx chkr_check_exec_libfunc;
217 rtx chkr_check_str_libfunc;
219 rtx profile_function_entry_libfunc;
220 rtx profile_function_exit_libfunc;
222 /* Indexed by the rtx-code for a conditional (eg. EQ, LT,...)
223 gives the gen_function to make a branch to test that condition. */
225 rtxfun bcc_gen_fctn[NUM_RTX_CODE];
227 /* Indexed by the rtx-code for a conditional (eg. EQ, LT,...)
228 gives the insn code to make a store-condition insn
229 to test that condition. */
231 enum insn_code setcc_gen_code[NUM_RTX_CODE];
233 #ifdef HAVE_conditional_move
234 /* Indexed by the machine mode, gives the insn code to make a conditional
235 move insn. This is not indexed by the rtx-code like bcc_gen_fctn and
236 setcc_gen_code to cut down on the number of named patterns. Consider a day
237 when a lot more rtx codes are conditional (eg: for the ARM). */
239 enum insn_code movcc_gen_code[NUM_MACHINE_MODES];
240 #endif
242 static int add_equal_note PROTO((rtx, rtx, enum rtx_code, rtx, rtx));
243 static rtx widen_operand PROTO((rtx, enum machine_mode,
244 enum machine_mode, int, int));
245 static enum insn_code can_fix_p PROTO((enum machine_mode, enum machine_mode,
246 int, int *));
247 static enum insn_code can_float_p PROTO((enum machine_mode, enum machine_mode,
248 int));
249 static rtx ftruncify PROTO((rtx));
250 static optab init_optab PROTO((enum rtx_code));
251 static void init_libfuncs PROTO((optab, int, int, char *, int));
252 static void init_integral_libfuncs PROTO((optab, char *, int));
253 static void init_floating_libfuncs PROTO((optab, char *, int));
254 #ifdef HAVE_conditional_trap
255 static void init_traps PROTO((void));
256 #endif
258 /* Add a REG_EQUAL note to the last insn in SEQ. TARGET is being set to
259 the result of operation CODE applied to OP0 (and OP1 if it is a binary
260 operation).
262 If the last insn does not set TARGET, don't do anything, but return 1.
264 If a previous insn sets TARGET and TARGET is one of OP0 or OP1,
265 don't add the REG_EQUAL note but return 0. Our caller can then try
266 again, ensuring that TARGET is not one of the operands. */
268 static int
269 add_equal_note (seq, target, code, op0, op1)
270 rtx seq;
271 rtx target;
272 enum rtx_code code;
273 rtx op0, op1;
275 rtx set;
276 int i;
277 rtx note;
279 if ((GET_RTX_CLASS (code) != '1' && GET_RTX_CLASS (code) != '2'
280 && GET_RTX_CLASS (code) != 'c' && GET_RTX_CLASS (code) != '<')
281 || GET_CODE (seq) != SEQUENCE
282 || (set = single_set (XVECEXP (seq, 0, XVECLEN (seq, 0) - 1))) == 0
283 || GET_CODE (target) == ZERO_EXTRACT
284 || (! rtx_equal_p (SET_DEST (set), target)
285 /* For a STRICT_LOW_PART, the REG_NOTE applies to what is inside the
286 SUBREG. */
287 && (GET_CODE (SET_DEST (set)) != STRICT_LOW_PART
288 || ! rtx_equal_p (SUBREG_REG (XEXP (SET_DEST (set), 0)),
289 target))))
290 return 1;
292 /* If TARGET is in OP0 or OP1, check if anything in SEQ sets TARGET
293 besides the last insn. */
294 if (reg_overlap_mentioned_p (target, op0)
295 || (op1 && reg_overlap_mentioned_p (target, op1)))
296 for (i = XVECLEN (seq, 0) - 2; i >= 0; i--)
297 if (reg_set_p (target, XVECEXP (seq, 0, i)))
298 return 0;
300 if (GET_RTX_CLASS (code) == '1')
301 note = gen_rtx_fmt_e (code, GET_MODE (target), copy_rtx (op0));
302 else
303 note = gen_rtx_fmt_ee (code, GET_MODE (target), copy_rtx (op0), copy_rtx (op1));
305 REG_NOTES (XVECEXP (seq, 0, XVECLEN (seq, 0) - 1))
306 = gen_rtx_EXPR_LIST (REG_EQUAL, note,
307 REG_NOTES (XVECEXP (seq, 0, XVECLEN (seq, 0) - 1)));
309 return 1;
312 /* Widen OP to MODE and return the rtx for the widened operand. UNSIGNEDP
313 says whether OP is signed or unsigned. NO_EXTEND is nonzero if we need
314 not actually do a sign-extend or zero-extend, but can leave the
315 higher-order bits of the result rtx undefined, for example, in the case
316 of logical operations, but not right shifts. */
318 static rtx
319 widen_operand (op, mode, oldmode, unsignedp, no_extend)
320 rtx op;
321 enum machine_mode mode, oldmode;
322 int unsignedp;
323 int no_extend;
325 rtx result;
327 /* If we must extend do so. If OP is either a constant or a SUBREG
328 for a promoted object, also extend since it will be more efficient to
329 do so. */
330 if (! no_extend
331 || GET_MODE (op) == VOIDmode
332 || (GET_CODE (op) == SUBREG && SUBREG_PROMOTED_VAR_P (op)))
333 return convert_modes (mode, oldmode, op, unsignedp);
335 /* If MODE is no wider than a single word, we return a paradoxical
336 SUBREG. */
337 if (GET_MODE_SIZE (mode) <= UNITS_PER_WORD)
338 return gen_rtx_SUBREG (mode, force_reg (GET_MODE (op), op), 0);
340 /* Otherwise, get an object of MODE, clobber it, and set the low-order
341 part to OP. */
343 result = gen_reg_rtx (mode);
344 emit_insn (gen_rtx_CLOBBER (VOIDmode, result));
345 emit_move_insn (gen_lowpart (GET_MODE (op), result), op);
346 return result;
349 /* Generate code to perform an operation specified by BINOPTAB
350 on operands OP0 and OP1, with result having machine-mode MODE.
352 UNSIGNEDP is for the case where we have to widen the operands
353 to perform the operation. It says to use zero-extension.
355 If TARGET is nonzero, the value
356 is generated there, if it is convenient to do so.
357 In all cases an rtx is returned for the locus of the value;
358 this may or may not be TARGET. */
361 expand_binop (mode, binoptab, op0, op1, target, unsignedp, methods)
362 enum machine_mode mode;
363 optab binoptab;
364 rtx op0, op1;
365 rtx target;
366 int unsignedp;
367 enum optab_methods methods;
369 enum optab_methods next_methods
370 = (methods == OPTAB_LIB || methods == OPTAB_LIB_WIDEN
371 ? OPTAB_WIDEN : methods);
372 enum mode_class class;
373 enum machine_mode wider_mode;
374 register rtx temp;
375 int commutative_op = 0;
376 int shift_op = (binoptab->code == ASHIFT
377 || binoptab->code == ASHIFTRT
378 || binoptab->code == LSHIFTRT
379 || binoptab->code == ROTATE
380 || binoptab->code == ROTATERT);
381 rtx entry_last = get_last_insn ();
382 rtx last;
384 class = GET_MODE_CLASS (mode);
386 op0 = protect_from_queue (op0, 0);
387 op1 = protect_from_queue (op1, 0);
388 if (target)
389 target = protect_from_queue (target, 1);
391 if (flag_force_mem)
393 op0 = force_not_mem (op0);
394 op1 = force_not_mem (op1);
397 /* If subtracting an integer constant, convert this into an addition of
398 the negated constant. */
400 if (binoptab == sub_optab && GET_CODE (op1) == CONST_INT)
402 op1 = negate_rtx (mode, op1);
403 binoptab = add_optab;
406 /* If we are inside an appropriately-short loop and one operand is an
407 expensive constant, force it into a register. */
408 if (CONSTANT_P (op0) && preserve_subexpressions_p ()
409 && rtx_cost (op0, binoptab->code) > 2)
410 op0 = force_reg (mode, op0);
412 if (CONSTANT_P (op1) && preserve_subexpressions_p ()
413 && ! shift_op && rtx_cost (op1, binoptab->code) > 2)
414 op1 = force_reg (mode, op1);
416 /* Record where to delete back to if we backtrack. */
417 last = get_last_insn ();
419 /* If operation is commutative,
420 try to make the first operand a register.
421 Even better, try to make it the same as the target.
422 Also try to make the last operand a constant. */
423 if (GET_RTX_CLASS (binoptab->code) == 'c'
424 || binoptab == smul_widen_optab
425 || binoptab == umul_widen_optab
426 || binoptab == smul_highpart_optab
427 || binoptab == umul_highpart_optab)
429 commutative_op = 1;
431 if (((target == 0 || GET_CODE (target) == REG)
432 ? ((GET_CODE (op1) == REG
433 && GET_CODE (op0) != REG)
434 || target == op1)
435 : rtx_equal_p (op1, target))
436 || GET_CODE (op0) == CONST_INT)
438 temp = op1;
439 op1 = op0;
440 op0 = temp;
444 /* If we can do it with a three-operand insn, do so. */
446 if (methods != OPTAB_MUST_WIDEN
447 && binoptab->handlers[(int) mode].insn_code != CODE_FOR_nothing)
449 int icode = (int) binoptab->handlers[(int) mode].insn_code;
450 enum machine_mode mode0 = insn_operand_mode[icode][1];
451 enum machine_mode mode1 = insn_operand_mode[icode][2];
452 rtx pat;
453 rtx xop0 = op0, xop1 = op1;
455 if (target)
456 temp = target;
457 else
458 temp = gen_reg_rtx (mode);
460 /* If it is a commutative operator and the modes would match
461 if we would swap the operands, we can save the conversions. */
462 if (commutative_op)
464 if (GET_MODE (op0) != mode0 && GET_MODE (op1) != mode1
465 && GET_MODE (op0) == mode1 && GET_MODE (op1) == mode0)
467 register rtx tmp;
469 tmp = op0; op0 = op1; op1 = tmp;
470 tmp = xop0; xop0 = xop1; xop1 = tmp;
474 /* In case the insn wants input operands in modes different from
475 the result, convert the operands. */
477 if (GET_MODE (op0) != VOIDmode
478 && GET_MODE (op0) != mode0
479 && mode0 != VOIDmode)
480 xop0 = convert_to_mode (mode0, xop0, unsignedp);
482 if (GET_MODE (xop1) != VOIDmode
483 && GET_MODE (xop1) != mode1
484 && mode1 != VOIDmode)
485 xop1 = convert_to_mode (mode1, xop1, unsignedp);
487 /* Now, if insn's predicates don't allow our operands, put them into
488 pseudo regs. */
490 if (! (*insn_operand_predicate[icode][1]) (xop0, mode0)
491 && mode0 != VOIDmode)
492 xop0 = copy_to_mode_reg (mode0, xop0);
494 if (! (*insn_operand_predicate[icode][2]) (xop1, mode1)
495 && mode1 != VOIDmode)
496 xop1 = copy_to_mode_reg (mode1, xop1);
498 if (! (*insn_operand_predicate[icode][0]) (temp, mode))
499 temp = gen_reg_rtx (mode);
501 pat = GEN_FCN (icode) (temp, xop0, xop1);
502 if (pat)
504 /* If PAT is a multi-insn sequence, try to add an appropriate
505 REG_EQUAL note to it. If we can't because TEMP conflicts with an
506 operand, call ourselves again, this time without a target. */
507 if (GET_CODE (pat) == SEQUENCE
508 && ! add_equal_note (pat, temp, binoptab->code, xop0, xop1))
510 delete_insns_since (last);
511 return expand_binop (mode, binoptab, op0, op1, NULL_RTX,
512 unsignedp, methods);
515 emit_insn (pat);
516 return temp;
518 else
519 delete_insns_since (last);
522 /* If this is a multiply, see if we can do a widening operation that
523 takes operands of this mode and makes a wider mode. */
525 if (binoptab == smul_optab && GET_MODE_WIDER_MODE (mode) != VOIDmode
526 && (((unsignedp ? umul_widen_optab : smul_widen_optab)
527 ->handlers[(int) GET_MODE_WIDER_MODE (mode)].insn_code)
528 != CODE_FOR_nothing))
530 temp = expand_binop (GET_MODE_WIDER_MODE (mode),
531 unsignedp ? umul_widen_optab : smul_widen_optab,
532 op0, op1, NULL_RTX, unsignedp, OPTAB_DIRECT);
534 if (temp != 0)
536 if (GET_MODE_CLASS (mode) == MODE_INT)
537 return gen_lowpart (mode, temp);
538 else
539 return convert_to_mode (mode, temp, unsignedp);
543 /* Look for a wider mode of the same class for which we think we
544 can open-code the operation. Check for a widening multiply at the
545 wider mode as well. */
547 if ((class == MODE_INT || class == MODE_FLOAT || class == MODE_COMPLEX_FLOAT)
548 && methods != OPTAB_DIRECT && methods != OPTAB_LIB)
549 for (wider_mode = GET_MODE_WIDER_MODE (mode); wider_mode != VOIDmode;
550 wider_mode = GET_MODE_WIDER_MODE (wider_mode))
552 if (binoptab->handlers[(int) wider_mode].insn_code != CODE_FOR_nothing
553 || (binoptab == smul_optab
554 && GET_MODE_WIDER_MODE (wider_mode) != VOIDmode
555 && (((unsignedp ? umul_widen_optab : smul_widen_optab)
556 ->handlers[(int) GET_MODE_WIDER_MODE (wider_mode)].insn_code)
557 != CODE_FOR_nothing)))
559 rtx xop0 = op0, xop1 = op1;
560 int no_extend = 0;
562 /* For certain integer operations, we need not actually extend
563 the narrow operands, as long as we will truncate
564 the results to the same narrowness. */
566 if ((binoptab == ior_optab || binoptab == and_optab
567 || binoptab == xor_optab
568 || binoptab == add_optab || binoptab == sub_optab
569 || binoptab == smul_optab || binoptab == ashl_optab)
570 && class == MODE_INT)
571 no_extend = 1;
573 xop0 = widen_operand (xop0, wider_mode, mode, unsignedp, no_extend);
575 /* The second operand of a shift must always be extended. */
576 xop1 = widen_operand (xop1, wider_mode, mode, unsignedp,
577 no_extend && binoptab != ashl_optab);
579 temp = expand_binop (wider_mode, binoptab, xop0, xop1, NULL_RTX,
580 unsignedp, OPTAB_DIRECT);
581 if (temp)
583 if (class != MODE_INT)
585 if (target == 0)
586 target = gen_reg_rtx (mode);
587 convert_move (target, temp, 0);
588 return target;
590 else
591 return gen_lowpart (mode, temp);
593 else
594 delete_insns_since (last);
598 /* These can be done a word at a time. */
599 if ((binoptab == and_optab || binoptab == ior_optab || binoptab == xor_optab)
600 && class == MODE_INT
601 && GET_MODE_SIZE (mode) > UNITS_PER_WORD
602 && binoptab->handlers[(int) word_mode].insn_code != CODE_FOR_nothing)
604 int i;
605 rtx insns;
606 rtx equiv_value;
608 /* If TARGET is the same as one of the operands, the REG_EQUAL note
609 won't be accurate, so use a new target. */
610 if (target == 0 || target == op0 || target == op1)
611 target = gen_reg_rtx (mode);
613 start_sequence ();
615 /* Do the actual arithmetic. */
616 for (i = 0; i < GET_MODE_BITSIZE (mode) / BITS_PER_WORD; i++)
618 rtx target_piece = operand_subword (target, i, 1, mode);
619 rtx x = expand_binop (word_mode, binoptab,
620 operand_subword_force (op0, i, mode),
621 operand_subword_force (op1, i, mode),
622 target_piece, unsignedp, next_methods);
624 if (x == 0)
625 break;
627 if (target_piece != x)
628 emit_move_insn (target_piece, x);
631 insns = get_insns ();
632 end_sequence ();
634 if (i == GET_MODE_BITSIZE (mode) / BITS_PER_WORD)
636 if (binoptab->code != UNKNOWN)
637 equiv_value
638 = gen_rtx_fmt_ee (binoptab->code, mode,
639 copy_rtx (op0), copy_rtx (op1));
640 else
641 equiv_value = 0;
643 emit_no_conflict_block (insns, target, op0, op1, equiv_value);
644 return target;
648 /* Synthesize double word shifts from single word shifts. */
649 if ((binoptab == lshr_optab || binoptab == ashl_optab
650 || binoptab == ashr_optab)
651 && class == MODE_INT
652 && GET_CODE (op1) == CONST_INT
653 && GET_MODE_SIZE (mode) == 2 * UNITS_PER_WORD
654 && binoptab->handlers[(int) word_mode].insn_code != CODE_FOR_nothing
655 && ashl_optab->handlers[(int) word_mode].insn_code != CODE_FOR_nothing
656 && lshr_optab->handlers[(int) word_mode].insn_code != CODE_FOR_nothing)
658 rtx insns, inter, equiv_value;
659 rtx into_target, outof_target;
660 rtx into_input, outof_input;
661 int shift_count, left_shift, outof_word;
663 /* If TARGET is the same as one of the operands, the REG_EQUAL note
664 won't be accurate, so use a new target. */
665 if (target == 0 || target == op0 || target == op1)
666 target = gen_reg_rtx (mode);
668 start_sequence ();
670 shift_count = INTVAL (op1);
672 /* OUTOF_* is the word we are shifting bits away from, and
673 INTO_* is the word that we are shifting bits towards, thus
674 they differ depending on the direction of the shift and
675 WORDS_BIG_ENDIAN. */
677 left_shift = binoptab == ashl_optab;
678 outof_word = left_shift ^ ! WORDS_BIG_ENDIAN;
680 outof_target = operand_subword (target, outof_word, 1, mode);
681 into_target = operand_subword (target, 1 - outof_word, 1, mode);
683 outof_input = operand_subword_force (op0, outof_word, mode);
684 into_input = operand_subword_force (op0, 1 - outof_word, mode);
686 if (shift_count >= BITS_PER_WORD)
688 inter = expand_binop (word_mode, binoptab,
689 outof_input,
690 GEN_INT (shift_count - BITS_PER_WORD),
691 into_target, unsignedp, next_methods);
693 if (inter != 0 && inter != into_target)
694 emit_move_insn (into_target, inter);
696 /* For a signed right shift, we must fill the word we are shifting
697 out of with copies of the sign bit. Otherwise it is zeroed. */
698 if (inter != 0 && binoptab != ashr_optab)
699 inter = CONST0_RTX (word_mode);
700 else if (inter != 0)
701 inter = expand_binop (word_mode, binoptab,
702 outof_input,
703 GEN_INT (BITS_PER_WORD - 1),
704 outof_target, unsignedp, next_methods);
706 if (inter != 0 && inter != outof_target)
707 emit_move_insn (outof_target, inter);
709 else
711 rtx carries;
712 optab reverse_unsigned_shift, unsigned_shift;
714 /* For a shift of less then BITS_PER_WORD, to compute the carry,
715 we must do a logical shift in the opposite direction of the
716 desired shift. */
718 reverse_unsigned_shift = (left_shift ? lshr_optab : ashl_optab);
720 /* For a shift of less than BITS_PER_WORD, to compute the word
721 shifted towards, we need to unsigned shift the orig value of
722 that word. */
724 unsigned_shift = (left_shift ? ashl_optab : lshr_optab);
726 carries = expand_binop (word_mode, reverse_unsigned_shift,
727 outof_input,
728 GEN_INT (BITS_PER_WORD - shift_count),
729 0, unsignedp, next_methods);
731 if (carries == 0)
732 inter = 0;
733 else
734 inter = expand_binop (word_mode, unsigned_shift, into_input,
735 op1, 0, unsignedp, next_methods);
737 if (inter != 0)
738 inter = expand_binop (word_mode, ior_optab, carries, inter,
739 into_target, unsignedp, next_methods);
741 if (inter != 0 && inter != into_target)
742 emit_move_insn (into_target, inter);
744 if (inter != 0)
745 inter = expand_binop (word_mode, binoptab, outof_input,
746 op1, outof_target, unsignedp, next_methods);
748 if (inter != 0 && inter != outof_target)
749 emit_move_insn (outof_target, inter);
752 insns = get_insns ();
753 end_sequence ();
755 if (inter != 0)
757 if (binoptab->code != UNKNOWN)
758 equiv_value = gen_rtx_fmt_ee (binoptab->code, mode, op0, op1);
759 else
760 equiv_value = 0;
762 emit_no_conflict_block (insns, target, op0, op1, equiv_value);
763 return target;
767 /* Synthesize double word rotates from single word shifts. */
768 if ((binoptab == rotl_optab || binoptab == rotr_optab)
769 && class == MODE_INT
770 && GET_CODE (op1) == CONST_INT
771 && GET_MODE_SIZE (mode) == 2 * UNITS_PER_WORD
772 && ashl_optab->handlers[(int) word_mode].insn_code != CODE_FOR_nothing
773 && lshr_optab->handlers[(int) word_mode].insn_code != CODE_FOR_nothing)
775 rtx insns, equiv_value;
776 rtx into_target, outof_target;
777 rtx into_input, outof_input;
778 rtx inter;
779 int shift_count, left_shift, outof_word;
781 /* If TARGET is the same as one of the operands, the REG_EQUAL note
782 won't be accurate, so use a new target. */
783 if (target == 0 || target == op0 || target == op1)
784 target = gen_reg_rtx (mode);
786 start_sequence ();
788 shift_count = INTVAL (op1);
790 /* OUTOF_* is the word we are shifting bits away from, and
791 INTO_* is the word that we are shifting bits towards, thus
792 they differ depending on the direction of the shift and
793 WORDS_BIG_ENDIAN. */
795 left_shift = (binoptab == rotl_optab);
796 outof_word = left_shift ^ ! WORDS_BIG_ENDIAN;
798 outof_target = operand_subword (target, outof_word, 1, mode);
799 into_target = operand_subword (target, 1 - outof_word, 1, mode);
801 outof_input = operand_subword_force (op0, outof_word, mode);
802 into_input = operand_subword_force (op0, 1 - outof_word, mode);
804 if (shift_count == BITS_PER_WORD)
806 /* This is just a word swap. */
807 emit_move_insn (outof_target, into_input);
808 emit_move_insn (into_target, outof_input);
809 inter = const0_rtx;
811 else
813 rtx into_temp1, into_temp2, outof_temp1, outof_temp2;
814 rtx first_shift_count, second_shift_count;
815 optab reverse_unsigned_shift, unsigned_shift;
817 reverse_unsigned_shift = (left_shift ^ (shift_count < BITS_PER_WORD)
818 ? lshr_optab : ashl_optab);
820 unsigned_shift = (left_shift ^ (shift_count < BITS_PER_WORD)
821 ? ashl_optab : lshr_optab);
823 if (shift_count > BITS_PER_WORD)
825 first_shift_count = GEN_INT (shift_count - BITS_PER_WORD);
826 second_shift_count = GEN_INT (2*BITS_PER_WORD - shift_count);
828 else
830 first_shift_count = GEN_INT (BITS_PER_WORD - shift_count);
831 second_shift_count = GEN_INT (shift_count);
834 into_temp1 = expand_binop (word_mode, unsigned_shift,
835 outof_input, first_shift_count,
836 NULL_RTX, unsignedp, next_methods);
837 into_temp2 = expand_binop (word_mode, reverse_unsigned_shift,
838 into_input, second_shift_count,
839 into_target, unsignedp, next_methods);
841 if (into_temp1 != 0 && into_temp2 != 0)
842 inter = expand_binop (word_mode, ior_optab, into_temp1, into_temp2,
843 into_target, unsignedp, next_methods);
844 else
845 inter = 0;
847 if (inter != 0 && inter != into_target)
848 emit_move_insn (into_target, inter);
850 outof_temp1 = expand_binop (word_mode, unsigned_shift,
851 into_input, first_shift_count,
852 NULL_RTX, unsignedp, next_methods);
853 outof_temp2 = expand_binop (word_mode, reverse_unsigned_shift,
854 outof_input, second_shift_count,
855 outof_target, unsignedp, next_methods);
857 if (inter != 0 && outof_temp1 != 0 && outof_temp2 != 0)
858 inter = expand_binop (word_mode, ior_optab,
859 outof_temp1, outof_temp2,
860 outof_target, unsignedp, next_methods);
862 if (inter != 0 && inter != outof_target)
863 emit_move_insn (outof_target, inter);
866 insns = get_insns ();
867 end_sequence ();
869 if (inter != 0)
871 if (binoptab->code != UNKNOWN)
872 equiv_value = gen_rtx_fmt_ee (binoptab->code, mode, op0, op1);
873 else
874 equiv_value = 0;
876 /* We can't make this a no conflict block if this is a word swap,
877 because the word swap case fails if the input and output values
878 are in the same register. */
879 if (shift_count != BITS_PER_WORD)
880 emit_no_conflict_block (insns, target, op0, op1, equiv_value);
881 else
882 emit_insns (insns);
885 return target;
889 /* These can be done a word at a time by propagating carries. */
890 if ((binoptab == add_optab || binoptab == sub_optab)
891 && class == MODE_INT
892 && GET_MODE_SIZE (mode) >= 2 * UNITS_PER_WORD
893 && binoptab->handlers[(int) word_mode].insn_code != CODE_FOR_nothing)
895 int i;
896 rtx carry_tmp = gen_reg_rtx (word_mode);
897 optab otheroptab = binoptab == add_optab ? sub_optab : add_optab;
898 int nwords = GET_MODE_BITSIZE (mode) / BITS_PER_WORD;
899 rtx carry_in, carry_out;
900 rtx xop0, xop1;
902 /* We can handle either a 1 or -1 value for the carry. If STORE_FLAG
903 value is one of those, use it. Otherwise, use 1 since it is the
904 one easiest to get. */
905 #if STORE_FLAG_VALUE == 1 || STORE_FLAG_VALUE == -1
906 int normalizep = STORE_FLAG_VALUE;
907 #else
908 int normalizep = 1;
909 #endif
911 /* Prepare the operands. */
912 xop0 = force_reg (mode, op0);
913 xop1 = force_reg (mode, op1);
915 if (target == 0 || GET_CODE (target) != REG
916 || target == xop0 || target == xop1)
917 target = gen_reg_rtx (mode);
919 /* Indicate for flow that the entire target reg is being set. */
920 if (GET_CODE (target) == REG)
921 emit_insn (gen_rtx_CLOBBER (VOIDmode, target));
923 /* Do the actual arithmetic. */
924 for (i = 0; i < nwords; i++)
926 int index = (WORDS_BIG_ENDIAN ? nwords - i - 1 : i);
927 rtx target_piece = operand_subword (target, index, 1, mode);
928 rtx op0_piece = operand_subword_force (xop0, index, mode);
929 rtx op1_piece = operand_subword_force (xop1, index, mode);
930 rtx x;
932 /* Main add/subtract of the input operands. */
933 x = expand_binop (word_mode, binoptab,
934 op0_piece, op1_piece,
935 target_piece, unsignedp, next_methods);
936 if (x == 0)
937 break;
939 if (i + 1 < nwords)
941 /* Store carry from main add/subtract. */
942 carry_out = gen_reg_rtx (word_mode);
943 carry_out = emit_store_flag_force (carry_out,
944 (binoptab == add_optab
945 ? LTU : GTU),
946 x, op0_piece,
947 word_mode, 1, normalizep);
950 if (i > 0)
952 /* Add/subtract previous carry to main result. */
953 x = expand_binop (word_mode,
954 normalizep == 1 ? binoptab : otheroptab,
955 x, carry_in,
956 target_piece, 1, next_methods);
957 if (x == 0)
958 break;
959 else if (target_piece != x)
960 emit_move_insn (target_piece, x);
962 if (i + 1 < nwords)
964 /* THIS CODE HAS NOT BEEN TESTED. */
965 /* Get out carry from adding/subtracting carry in. */
966 carry_tmp = emit_store_flag_force (carry_tmp,
967 binoptab == add_optab
968 ? LTU : GTU,
969 x, carry_in,
970 word_mode, 1, normalizep);
972 /* Logical-ior the two poss. carry together. */
973 carry_out = expand_binop (word_mode, ior_optab,
974 carry_out, carry_tmp,
975 carry_out, 0, next_methods);
976 if (carry_out == 0)
977 break;
981 carry_in = carry_out;
984 if (i == GET_MODE_BITSIZE (mode) / BITS_PER_WORD)
986 if (mov_optab->handlers[(int) mode].insn_code != CODE_FOR_nothing)
988 rtx temp = emit_move_insn (target, target);
990 REG_NOTES (temp)
991 = gen_rtx_EXPR_LIST (REG_EQUAL,
992 gen_rtx_fmt_ee (binoptab->code, mode,
993 copy_rtx (xop0),
994 copy_rtx (xop1)),
995 REG_NOTES (temp));
997 return target;
999 else
1000 delete_insns_since (last);
1003 /* If we want to multiply two two-word values and have normal and widening
1004 multiplies of single-word values, we can do this with three smaller
1005 multiplications. Note that we do not make a REG_NO_CONFLICT block here
1006 because we are not operating on one word at a time.
1008 The multiplication proceeds as follows:
1009 _______________________
1010 [__op0_high_|__op0_low__]
1011 _______________________
1012 * [__op1_high_|__op1_low__]
1013 _______________________________________________
1014 _______________________
1015 (1) [__op0_low__*__op1_low__]
1016 _______________________
1017 (2a) [__op0_low__*__op1_high_]
1018 _______________________
1019 (2b) [__op0_high_*__op1_low__]
1020 _______________________
1021 (3) [__op0_high_*__op1_high_]
1024 This gives a 4-word result. Since we are only interested in the
1025 lower 2 words, partial result (3) and the upper words of (2a) and
1026 (2b) don't need to be calculated. Hence (2a) and (2b) can be
1027 calculated using non-widening multiplication.
1029 (1), however, needs to be calculated with an unsigned widening
1030 multiplication. If this operation is not directly supported we
1031 try using a signed widening multiplication and adjust the result.
1032 This adjustment works as follows:
1034 If both operands are positive then no adjustment is needed.
1036 If the operands have different signs, for example op0_low < 0 and
1037 op1_low >= 0, the instruction treats the most significant bit of
1038 op0_low as a sign bit instead of a bit with significance
1039 2**(BITS_PER_WORD-1), i.e. the instruction multiplies op1_low
1040 with 2**BITS_PER_WORD - op0_low, and two's complements the
1041 result. Conclusion: We need to add op1_low * 2**BITS_PER_WORD to
1042 the result.
1044 Similarly, if both operands are negative, we need to add
1045 (op0_low + op1_low) * 2**BITS_PER_WORD.
1047 We use a trick to adjust quickly. We logically shift op0_low right
1048 (op1_low) BITS_PER_WORD-1 steps to get 0 or 1, and add this to
1049 op0_high (op1_high) before it is used to calculate 2b (2a). If no
1050 logical shift exists, we do an arithmetic right shift and subtract
1051 the 0 or -1. */
1053 if (binoptab == smul_optab
1054 && class == MODE_INT
1055 && GET_MODE_SIZE (mode) == 2 * UNITS_PER_WORD
1056 && smul_optab->handlers[(int) word_mode].insn_code != CODE_FOR_nothing
1057 && add_optab->handlers[(int) word_mode].insn_code != CODE_FOR_nothing
1058 && ((umul_widen_optab->handlers[(int) mode].insn_code
1059 != CODE_FOR_nothing)
1060 || (smul_widen_optab->handlers[(int) mode].insn_code
1061 != CODE_FOR_nothing)))
1063 int low = (WORDS_BIG_ENDIAN ? 1 : 0);
1064 int high = (WORDS_BIG_ENDIAN ? 0 : 1);
1065 rtx op0_high = operand_subword_force (op0, high, mode);
1066 rtx op0_low = operand_subword_force (op0, low, mode);
1067 rtx op1_high = operand_subword_force (op1, high, mode);
1068 rtx op1_low = operand_subword_force (op1, low, mode);
1069 rtx product = 0;
1070 rtx op0_xhigh;
1071 rtx op1_xhigh;
1073 /* If the target is the same as one of the inputs, don't use it. This
1074 prevents problems with the REG_EQUAL note. */
1075 if (target == op0 || target == op1
1076 || (target != 0 && GET_CODE (target) != REG))
1077 target = 0;
1079 /* Multiply the two lower words to get a double-word product.
1080 If unsigned widening multiplication is available, use that;
1081 otherwise use the signed form and compensate. */
1083 if (umul_widen_optab->handlers[(int) mode].insn_code != CODE_FOR_nothing)
1085 product = expand_binop (mode, umul_widen_optab, op0_low, op1_low,
1086 target, 1, OPTAB_DIRECT);
1088 /* If we didn't succeed, delete everything we did so far. */
1089 if (product == 0)
1090 delete_insns_since (last);
1091 else
1092 op0_xhigh = op0_high, op1_xhigh = op1_high;
1095 if (product == 0
1096 && smul_widen_optab->handlers[(int) mode].insn_code
1097 != CODE_FOR_nothing)
1099 rtx wordm1 = GEN_INT (BITS_PER_WORD - 1);
1100 product = expand_binop (mode, smul_widen_optab, op0_low, op1_low,
1101 target, 1, OPTAB_DIRECT);
1102 op0_xhigh = expand_binop (word_mode, lshr_optab, op0_low, wordm1,
1103 NULL_RTX, 1, next_methods);
1104 if (op0_xhigh)
1105 op0_xhigh = expand_binop (word_mode, add_optab, op0_high,
1106 op0_xhigh, op0_xhigh, 0, next_methods);
1107 else
1109 op0_xhigh = expand_binop (word_mode, ashr_optab, op0_low, wordm1,
1110 NULL_RTX, 0, next_methods);
1111 if (op0_xhigh)
1112 op0_xhigh = expand_binop (word_mode, sub_optab, op0_high,
1113 op0_xhigh, op0_xhigh, 0,
1114 next_methods);
1117 op1_xhigh = expand_binop (word_mode, lshr_optab, op1_low, wordm1,
1118 NULL_RTX, 1, next_methods);
1119 if (op1_xhigh)
1120 op1_xhigh = expand_binop (word_mode, add_optab, op1_high,
1121 op1_xhigh, op1_xhigh, 0, next_methods);
1122 else
1124 op1_xhigh = expand_binop (word_mode, ashr_optab, op1_low, wordm1,
1125 NULL_RTX, 0, next_methods);
1126 if (op1_xhigh)
1127 op1_xhigh = expand_binop (word_mode, sub_optab, op1_high,
1128 op1_xhigh, op1_xhigh, 0,
1129 next_methods);
1133 /* If we have been able to directly compute the product of the
1134 low-order words of the operands and perform any required adjustments
1135 of the operands, we proceed by trying two more multiplications
1136 and then computing the appropriate sum.
1138 We have checked above that the required addition is provided.
1139 Full-word addition will normally always succeed, especially if
1140 it is provided at all, so we don't worry about its failure. The
1141 multiplication may well fail, however, so we do handle that. */
1143 if (product && op0_xhigh && op1_xhigh)
1145 rtx product_high = operand_subword (product, high, 1, mode);
1146 rtx temp = expand_binop (word_mode, binoptab, op0_low, op1_xhigh,
1147 NULL_RTX, 0, OPTAB_DIRECT);
1149 if (temp != 0)
1150 temp = expand_binop (word_mode, add_optab, temp, product_high,
1151 product_high, 0, next_methods);
1153 if (temp != 0 && temp != product_high)
1154 emit_move_insn (product_high, temp);
1156 if (temp != 0)
1157 temp = expand_binop (word_mode, binoptab, op1_low, op0_xhigh,
1158 NULL_RTX, 0, OPTAB_DIRECT);
1160 if (temp != 0)
1161 temp = expand_binop (word_mode, add_optab, temp,
1162 product_high, product_high,
1163 0, next_methods);
1165 if (temp != 0 && temp != product_high)
1166 emit_move_insn (product_high, temp);
1168 if (temp != 0)
1170 if (mov_optab->handlers[(int) mode].insn_code != CODE_FOR_nothing)
1172 temp = emit_move_insn (product, product);
1173 REG_NOTES (temp)
1174 = gen_rtx_EXPR_LIST (REG_EQUAL,
1175 gen_rtx_fmt_ee (MULT, mode,
1176 copy_rtx (op0),
1177 copy_rtx (op1)),
1178 REG_NOTES (temp));
1180 return product;
1184 /* If we get here, we couldn't do it for some reason even though we
1185 originally thought we could. Delete anything we've emitted in
1186 trying to do it. */
1188 delete_insns_since (last);
1191 /* We need to open-code the complex type operations: '+, -, * and /' */
1193 /* At this point we allow operations between two similar complex
1194 numbers, and also if one of the operands is not a complex number
1195 but rather of MODE_FLOAT or MODE_INT. However, the caller
1196 must make sure that the MODE of the non-complex operand matches
1197 the SUBMODE of the complex operand. */
1199 if (class == MODE_COMPLEX_FLOAT || class == MODE_COMPLEX_INT)
1201 rtx real0 = 0, imag0 = 0;
1202 rtx real1 = 0, imag1 = 0;
1203 rtx realr, imagr, res;
1204 rtx seq;
1205 rtx equiv_value;
1206 int ok = 0;
1208 /* Find the correct mode for the real and imaginary parts */
1209 enum machine_mode submode
1210 = mode_for_size (GET_MODE_UNIT_SIZE (mode) * BITS_PER_UNIT,
1211 class == MODE_COMPLEX_INT ? MODE_INT : MODE_FLOAT,
1214 if (submode == BLKmode)
1215 abort ();
1217 if (! target)
1218 target = gen_reg_rtx (mode);
1220 start_sequence ();
1222 realr = gen_realpart (submode, target);
1223 imagr = gen_imagpart (submode, target);
1225 if (GET_MODE (op0) == mode)
1227 real0 = gen_realpart (submode, op0);
1228 imag0 = gen_imagpart (submode, op0);
1230 else
1231 real0 = op0;
1233 if (GET_MODE (op1) == mode)
1235 real1 = gen_realpart (submode, op1);
1236 imag1 = gen_imagpart (submode, op1);
1238 else
1239 real1 = op1;
1241 if (real0 == 0 || real1 == 0 || ! (imag0 != 0|| imag1 != 0))
1242 abort ();
1244 switch (binoptab->code)
1246 case PLUS:
1247 /* (a+ib) + (c+id) = (a+c) + i(b+d) */
1248 case MINUS:
1249 /* (a+ib) - (c+id) = (a-c) + i(b-d) */
1250 res = expand_binop (submode, binoptab, real0, real1,
1251 realr, unsignedp, methods);
1253 if (res == 0)
1254 break;
1255 else if (res != realr)
1256 emit_move_insn (realr, res);
1258 if (imag0 && imag1)
1259 res = expand_binop (submode, binoptab, imag0, imag1,
1260 imagr, unsignedp, methods);
1261 else if (imag0)
1262 res = imag0;
1263 else if (binoptab->code == MINUS)
1264 res = expand_unop (submode, neg_optab, imag1, imagr, unsignedp);
1265 else
1266 res = imag1;
1268 if (res == 0)
1269 break;
1270 else if (res != imagr)
1271 emit_move_insn (imagr, res);
1273 ok = 1;
1274 break;
1276 case MULT:
1277 /* (a+ib) * (c+id) = (ac-bd) + i(ad+cb) */
1279 if (imag0 && imag1)
1281 rtx temp1, temp2;
1283 /* Don't fetch these from memory more than once. */
1284 real0 = force_reg (submode, real0);
1285 real1 = force_reg (submode, real1);
1286 imag0 = force_reg (submode, imag0);
1287 imag1 = force_reg (submode, imag1);
1289 temp1 = expand_binop (submode, binoptab, real0, real1, NULL_RTX,
1290 unsignedp, methods);
1292 temp2 = expand_binop (submode, binoptab, imag0, imag1, NULL_RTX,
1293 unsignedp, methods);
1295 if (temp1 == 0 || temp2 == 0)
1296 break;
1298 res = expand_binop (submode, sub_optab, temp1, temp2,
1299 realr, unsignedp, methods);
1301 if (res == 0)
1302 break;
1303 else if (res != realr)
1304 emit_move_insn (realr, res);
1306 temp1 = expand_binop (submode, binoptab, real0, imag1,
1307 NULL_RTX, unsignedp, methods);
1309 temp2 = expand_binop (submode, binoptab, real1, imag0,
1310 NULL_RTX, unsignedp, methods);
1312 if (temp1 == 0 || temp2 == 0)
1313 break;
1315 res = expand_binop (submode, add_optab, temp1, temp2,
1316 imagr, unsignedp, methods);
1318 if (res == 0)
1319 break;
1320 else if (res != imagr)
1321 emit_move_insn (imagr, res);
1323 ok = 1;
1325 else
1327 /* Don't fetch these from memory more than once. */
1328 real0 = force_reg (submode, real0);
1329 real1 = force_reg (submode, real1);
1331 res = expand_binop (submode, binoptab, real0, real1,
1332 realr, unsignedp, methods);
1333 if (res == 0)
1334 break;
1335 else if (res != realr)
1336 emit_move_insn (realr, res);
1338 if (imag0 != 0)
1339 res = expand_binop (submode, binoptab,
1340 real1, imag0, imagr, unsignedp, methods);
1341 else
1342 res = expand_binop (submode, binoptab,
1343 real0, imag1, imagr, unsignedp, methods);
1345 if (res == 0)
1346 break;
1347 else if (res != imagr)
1348 emit_move_insn (imagr, res);
1350 ok = 1;
1352 break;
1354 case DIV:
1355 /* (a+ib) / (c+id) = ((ac+bd)/(cc+dd)) + i((bc-ad)/(cc+dd)) */
1357 if (imag1 == 0)
1359 /* (a+ib) / (c+i0) = (a/c) + i(b/c) */
1361 /* Don't fetch these from memory more than once. */
1362 real1 = force_reg (submode, real1);
1364 /* Simply divide the real and imaginary parts by `c' */
1365 if (class == MODE_COMPLEX_FLOAT)
1366 res = expand_binop (submode, binoptab, real0, real1,
1367 realr, unsignedp, methods);
1368 else
1369 res = expand_divmod (0, TRUNC_DIV_EXPR, submode,
1370 real0, real1, realr, unsignedp);
1372 if (res == 0)
1373 break;
1374 else if (res != realr)
1375 emit_move_insn (realr, res);
1377 if (class == MODE_COMPLEX_FLOAT)
1378 res = expand_binop (submode, binoptab, imag0, real1,
1379 imagr, unsignedp, methods);
1380 else
1381 res = expand_divmod (0, TRUNC_DIV_EXPR, submode,
1382 imag0, real1, imagr, unsignedp);
1384 if (res == 0)
1385 break;
1386 else if (res != imagr)
1387 emit_move_insn (imagr, res);
1389 ok = 1;
1391 else
1393 /* Divisor is of complex type:
1394 X/(a+ib) */
1395 rtx divisor;
1396 rtx real_t, imag_t;
1397 rtx temp1, temp2;
1399 /* Don't fetch these from memory more than once. */
1400 real0 = force_reg (submode, real0);
1401 real1 = force_reg (submode, real1);
1403 if (imag0 != 0)
1404 imag0 = force_reg (submode, imag0);
1406 imag1 = force_reg (submode, imag1);
1408 /* Divisor: c*c + d*d */
1409 temp1 = expand_binop (submode, smul_optab, real1, real1,
1410 NULL_RTX, unsignedp, methods);
1412 temp2 = expand_binop (submode, smul_optab, imag1, imag1,
1413 NULL_RTX, unsignedp, methods);
1415 if (temp1 == 0 || temp2 == 0)
1416 break;
1418 divisor = expand_binop (submode, add_optab, temp1, temp2,
1419 NULL_RTX, unsignedp, methods);
1420 if (divisor == 0)
1421 break;
1423 if (imag0 == 0)
1425 /* ((a)(c-id))/divisor */
1426 /* (a+i0) / (c+id) = (ac/(cc+dd)) + i(-ad/(cc+dd)) */
1428 /* Calculate the dividend */
1429 real_t = expand_binop (submode, smul_optab, real0, real1,
1430 NULL_RTX, unsignedp, methods);
1432 imag_t = expand_binop (submode, smul_optab, real0, imag1,
1433 NULL_RTX, unsignedp, methods);
1435 if (real_t == 0 || imag_t == 0)
1436 break;
1438 imag_t = expand_unop (submode, neg_optab, imag_t,
1439 NULL_RTX, unsignedp);
1441 else
1443 /* ((a+ib)(c-id))/divider */
1444 /* Calculate the dividend */
1445 temp1 = expand_binop (submode, smul_optab, real0, real1,
1446 NULL_RTX, unsignedp, methods);
1448 temp2 = expand_binop (submode, smul_optab, imag0, imag1,
1449 NULL_RTX, unsignedp, methods);
1451 if (temp1 == 0 || temp2 == 0)
1452 break;
1454 real_t = expand_binop (submode, add_optab, temp1, temp2,
1455 NULL_RTX, unsignedp, methods);
1457 temp1 = expand_binop (submode, smul_optab, imag0, real1,
1458 NULL_RTX, unsignedp, methods);
1460 temp2 = expand_binop (submode, smul_optab, real0, imag1,
1461 NULL_RTX, unsignedp, methods);
1463 if (temp1 == 0 || temp2 == 0)
1464 break;
1466 imag_t = expand_binop (submode, sub_optab, temp1, temp2,
1467 NULL_RTX, unsignedp, methods);
1469 if (real_t == 0 || imag_t == 0)
1470 break;
1473 if (class == MODE_COMPLEX_FLOAT)
1474 res = expand_binop (submode, binoptab, real_t, divisor,
1475 realr, unsignedp, methods);
1476 else
1477 res = expand_divmod (0, TRUNC_DIV_EXPR, submode,
1478 real_t, divisor, realr, unsignedp);
1480 if (res == 0)
1481 break;
1482 else if (res != realr)
1483 emit_move_insn (realr, res);
1485 if (class == MODE_COMPLEX_FLOAT)
1486 res = expand_binop (submode, binoptab, imag_t, divisor,
1487 imagr, unsignedp, methods);
1488 else
1489 res = expand_divmod (0, TRUNC_DIV_EXPR, submode,
1490 imag_t, divisor, imagr, unsignedp);
1492 if (res == 0)
1493 break;
1494 else if (res != imagr)
1495 emit_move_insn (imagr, res);
1497 ok = 1;
1499 break;
1501 default:
1502 abort ();
1505 seq = get_insns ();
1506 end_sequence ();
1508 if (ok)
1510 if (binoptab->code != UNKNOWN)
1511 equiv_value
1512 = gen_rtx_fmt_ee (binoptab->code, mode,
1513 copy_rtx (op0), copy_rtx (op1));
1514 else
1515 equiv_value = 0;
1517 emit_no_conflict_block (seq, target, op0, op1, equiv_value);
1519 return target;
1523 /* It can't be open-coded in this mode.
1524 Use a library call if one is available and caller says that's ok. */
1526 if (binoptab->handlers[(int) mode].libfunc
1527 && (methods == OPTAB_LIB || methods == OPTAB_LIB_WIDEN))
1529 rtx insns;
1530 rtx op1x = op1;
1531 enum machine_mode op1_mode = mode;
1532 rtx value;
1534 start_sequence ();
1536 if (shift_op)
1538 op1_mode = word_mode;
1539 /* Specify unsigned here,
1540 since negative shift counts are meaningless. */
1541 op1x = convert_to_mode (word_mode, op1, 1);
1544 if (GET_MODE (op0) != VOIDmode
1545 && GET_MODE (op0) != mode)
1546 op0 = convert_to_mode (mode, op0, unsignedp);
1548 /* Pass 1 for NO_QUEUE so we don't lose any increments
1549 if the libcall is cse'd or moved. */
1550 value = emit_library_call_value (binoptab->handlers[(int) mode].libfunc,
1551 NULL_RTX, 1, mode, 2,
1552 op0, mode, op1x, op1_mode);
1554 insns = get_insns ();
1555 end_sequence ();
1557 target = gen_reg_rtx (mode);
1558 emit_libcall_block (insns, target, value,
1559 gen_rtx_fmt_ee (binoptab->code, mode, op0, op1));
1561 return target;
1564 delete_insns_since (last);
1566 /* It can't be done in this mode. Can we do it in a wider mode? */
1568 if (! (methods == OPTAB_WIDEN || methods == OPTAB_LIB_WIDEN
1569 || methods == OPTAB_MUST_WIDEN))
1571 /* Caller says, don't even try. */
1572 delete_insns_since (entry_last);
1573 return 0;
1576 /* Compute the value of METHODS to pass to recursive calls.
1577 Don't allow widening to be tried recursively. */
1579 methods = (methods == OPTAB_LIB_WIDEN ? OPTAB_LIB : OPTAB_DIRECT);
1581 /* Look for a wider mode of the same class for which it appears we can do
1582 the operation. */
1584 if (class == MODE_INT || class == MODE_FLOAT || class == MODE_COMPLEX_FLOAT)
1586 for (wider_mode = GET_MODE_WIDER_MODE (mode); wider_mode != VOIDmode;
1587 wider_mode = GET_MODE_WIDER_MODE (wider_mode))
1589 if ((binoptab->handlers[(int) wider_mode].insn_code
1590 != CODE_FOR_nothing)
1591 || (methods == OPTAB_LIB
1592 && binoptab->handlers[(int) wider_mode].libfunc))
1594 rtx xop0 = op0, xop1 = op1;
1595 int no_extend = 0;
1597 /* For certain integer operations, we need not actually extend
1598 the narrow operands, as long as we will truncate
1599 the results to the same narrowness. */
1601 if ((binoptab == ior_optab || binoptab == and_optab
1602 || binoptab == xor_optab
1603 || binoptab == add_optab || binoptab == sub_optab
1604 || binoptab == smul_optab || binoptab == ashl_optab)
1605 && class == MODE_INT)
1606 no_extend = 1;
1608 xop0 = widen_operand (xop0, wider_mode, mode,
1609 unsignedp, no_extend);
1611 /* The second operand of a shift must always be extended. */
1612 xop1 = widen_operand (xop1, wider_mode, mode, unsignedp,
1613 no_extend && binoptab != ashl_optab);
1615 temp = expand_binop (wider_mode, binoptab, xop0, xop1, NULL_RTX,
1616 unsignedp, methods);
1617 if (temp)
1619 if (class != MODE_INT)
1621 if (target == 0)
1622 target = gen_reg_rtx (mode);
1623 convert_move (target, temp, 0);
1624 return target;
1626 else
1627 return gen_lowpart (mode, temp);
1629 else
1630 delete_insns_since (last);
1635 delete_insns_since (entry_last);
1636 return 0;
1639 /* Expand a binary operator which has both signed and unsigned forms.
1640 UOPTAB is the optab for unsigned operations, and SOPTAB is for
1641 signed operations.
1643 If we widen unsigned operands, we may use a signed wider operation instead
1644 of an unsigned wider operation, since the result would be the same. */
1647 sign_expand_binop (mode, uoptab, soptab, op0, op1, target, unsignedp, methods)
1648 enum machine_mode mode;
1649 optab uoptab, soptab;
1650 rtx op0, op1, target;
1651 int unsignedp;
1652 enum optab_methods methods;
1654 register rtx temp;
1655 optab direct_optab = unsignedp ? uoptab : soptab;
1656 struct optab wide_soptab;
1658 /* Do it without widening, if possible. */
1659 temp = expand_binop (mode, direct_optab, op0, op1, target,
1660 unsignedp, OPTAB_DIRECT);
1661 if (temp || methods == OPTAB_DIRECT)
1662 return temp;
1664 /* Try widening to a signed int. Make a fake signed optab that
1665 hides any signed insn for direct use. */
1666 wide_soptab = *soptab;
1667 wide_soptab.handlers[(int) mode].insn_code = CODE_FOR_nothing;
1668 wide_soptab.handlers[(int) mode].libfunc = 0;
1670 temp = expand_binop (mode, &wide_soptab, op0, op1, target,
1671 unsignedp, OPTAB_WIDEN);
1673 /* For unsigned operands, try widening to an unsigned int. */
1674 if (temp == 0 && unsignedp)
1675 temp = expand_binop (mode, uoptab, op0, op1, target,
1676 unsignedp, OPTAB_WIDEN);
1677 if (temp || methods == OPTAB_WIDEN)
1678 return temp;
1680 /* Use the right width lib call if that exists. */
1681 temp = expand_binop (mode, direct_optab, op0, op1, target, unsignedp, OPTAB_LIB);
1682 if (temp || methods == OPTAB_LIB)
1683 return temp;
1685 /* Must widen and use a lib call, use either signed or unsigned. */
1686 temp = expand_binop (mode, &wide_soptab, op0, op1, target,
1687 unsignedp, methods);
1688 if (temp != 0)
1689 return temp;
1690 if (unsignedp)
1691 return expand_binop (mode, uoptab, op0, op1, target,
1692 unsignedp, methods);
1693 return 0;
1696 /* Generate code to perform an operation specified by BINOPTAB
1697 on operands OP0 and OP1, with two results to TARG1 and TARG2.
1698 We assume that the order of the operands for the instruction
1699 is TARG0, OP0, OP1, TARG1, which would fit a pattern like
1700 [(set TARG0 (operate OP0 OP1)) (set TARG1 (operate ...))].
1702 Either TARG0 or TARG1 may be zero, but what that means is that
1703 the result is not actually wanted. We will generate it into
1704 a dummy pseudo-reg and discard it. They may not both be zero.
1706 Returns 1 if this operation can be performed; 0 if not. */
1709 expand_twoval_binop (binoptab, op0, op1, targ0, targ1, unsignedp)
1710 optab binoptab;
1711 rtx op0, op1;
1712 rtx targ0, targ1;
1713 int unsignedp;
1715 enum machine_mode mode = GET_MODE (targ0 ? targ0 : targ1);
1716 enum mode_class class;
1717 enum machine_mode wider_mode;
1718 rtx entry_last = get_last_insn ();
1719 rtx last;
1721 class = GET_MODE_CLASS (mode);
1723 op0 = protect_from_queue (op0, 0);
1724 op1 = protect_from_queue (op1, 0);
1726 if (flag_force_mem)
1728 op0 = force_not_mem (op0);
1729 op1 = force_not_mem (op1);
1732 /* If we are inside an appropriately-short loop and one operand is an
1733 expensive constant, force it into a register. */
1734 if (CONSTANT_P (op0) && preserve_subexpressions_p ()
1735 && rtx_cost (op0, binoptab->code) > 2)
1736 op0 = force_reg (mode, op0);
1738 if (CONSTANT_P (op1) && preserve_subexpressions_p ()
1739 && rtx_cost (op1, binoptab->code) > 2)
1740 op1 = force_reg (mode, op1);
1742 if (targ0)
1743 targ0 = protect_from_queue (targ0, 1);
1744 else
1745 targ0 = gen_reg_rtx (mode);
1746 if (targ1)
1747 targ1 = protect_from_queue (targ1, 1);
1748 else
1749 targ1 = gen_reg_rtx (mode);
1751 /* Record where to go back to if we fail. */
1752 last = get_last_insn ();
1754 if (binoptab->handlers[(int) mode].insn_code != CODE_FOR_nothing)
1756 int icode = (int) binoptab->handlers[(int) mode].insn_code;
1757 enum machine_mode mode0 = insn_operand_mode[icode][1];
1758 enum machine_mode mode1 = insn_operand_mode[icode][2];
1759 rtx pat;
1760 rtx xop0 = op0, xop1 = op1;
1762 /* In case this insn wants input operands in modes different from the
1763 result, convert the operands. */
1764 if (GET_MODE (op0) != VOIDmode && GET_MODE (op0) != mode0)
1765 xop0 = convert_to_mode (mode0, xop0, unsignedp);
1767 if (GET_MODE (op1) != VOIDmode && GET_MODE (op1) != mode1)
1768 xop1 = convert_to_mode (mode1, xop1, unsignedp);
1770 /* Now, if insn doesn't accept these operands, put them into pseudos. */
1771 if (! (*insn_operand_predicate[icode][1]) (xop0, mode0))
1772 xop0 = copy_to_mode_reg (mode0, xop0);
1774 if (! (*insn_operand_predicate[icode][2]) (xop1, mode1))
1775 xop1 = copy_to_mode_reg (mode1, xop1);
1777 /* We could handle this, but we should always be called with a pseudo
1778 for our targets and all insns should take them as outputs. */
1779 if (! (*insn_operand_predicate[icode][0]) (targ0, mode)
1780 || ! (*insn_operand_predicate[icode][3]) (targ1, mode))
1781 abort ();
1783 pat = GEN_FCN (icode) (targ0, xop0, xop1, targ1);
1784 if (pat)
1786 emit_insn (pat);
1787 return 1;
1789 else
1790 delete_insns_since (last);
1793 /* It can't be done in this mode. Can we do it in a wider mode? */
1795 if (class == MODE_INT || class == MODE_FLOAT || class == MODE_COMPLEX_FLOAT)
1797 for (wider_mode = GET_MODE_WIDER_MODE (mode); wider_mode != VOIDmode;
1798 wider_mode = GET_MODE_WIDER_MODE (wider_mode))
1800 if (binoptab->handlers[(int) wider_mode].insn_code
1801 != CODE_FOR_nothing)
1803 register rtx t0 = gen_reg_rtx (wider_mode);
1804 register rtx t1 = gen_reg_rtx (wider_mode);
1806 if (expand_twoval_binop (binoptab,
1807 convert_modes (wider_mode, mode, op0,
1808 unsignedp),
1809 convert_modes (wider_mode, mode, op1,
1810 unsignedp),
1811 t0, t1, unsignedp))
1813 convert_move (targ0, t0, unsignedp);
1814 convert_move (targ1, t1, unsignedp);
1815 return 1;
1817 else
1818 delete_insns_since (last);
1823 delete_insns_since (entry_last);
1824 return 0;
1827 /* Generate code to perform an operation specified by UNOPTAB
1828 on operand OP0, with result having machine-mode MODE.
1830 UNSIGNEDP is for the case where we have to widen the operands
1831 to perform the operation. It says to use zero-extension.
1833 If TARGET is nonzero, the value
1834 is generated there, if it is convenient to do so.
1835 In all cases an rtx is returned for the locus of the value;
1836 this may or may not be TARGET. */
1839 expand_unop (mode, unoptab, op0, target, unsignedp)
1840 enum machine_mode mode;
1841 optab unoptab;
1842 rtx op0;
1843 rtx target;
1844 int unsignedp;
1846 enum mode_class class;
1847 enum machine_mode wider_mode;
1848 register rtx temp;
1849 rtx last = get_last_insn ();
1850 rtx pat;
1852 class = GET_MODE_CLASS (mode);
1854 op0 = protect_from_queue (op0, 0);
1856 if (flag_force_mem)
1858 op0 = force_not_mem (op0);
1861 if (target)
1862 target = protect_from_queue (target, 1);
1864 if (unoptab->handlers[(int) mode].insn_code != CODE_FOR_nothing)
1866 int icode = (int) unoptab->handlers[(int) mode].insn_code;
1867 enum machine_mode mode0 = insn_operand_mode[icode][1];
1868 rtx xop0 = op0;
1870 if (target)
1871 temp = target;
1872 else
1873 temp = gen_reg_rtx (mode);
1875 if (GET_MODE (xop0) != VOIDmode
1876 && GET_MODE (xop0) != mode0)
1877 xop0 = convert_to_mode (mode0, xop0, unsignedp);
1879 /* Now, if insn doesn't accept our operand, put it into a pseudo. */
1881 if (! (*insn_operand_predicate[icode][1]) (xop0, mode0))
1882 xop0 = copy_to_mode_reg (mode0, xop0);
1884 if (! (*insn_operand_predicate[icode][0]) (temp, mode))
1885 temp = gen_reg_rtx (mode);
1887 pat = GEN_FCN (icode) (temp, xop0);
1888 if (pat)
1890 if (GET_CODE (pat) == SEQUENCE
1891 && ! add_equal_note (pat, temp, unoptab->code, xop0, NULL_RTX))
1893 delete_insns_since (last);
1894 return expand_unop (mode, unoptab, op0, NULL_RTX, unsignedp);
1897 emit_insn (pat);
1899 return temp;
1901 else
1902 delete_insns_since (last);
1905 /* It can't be done in this mode. Can we open-code it in a wider mode? */
1907 if (class == MODE_INT || class == MODE_FLOAT || class == MODE_COMPLEX_FLOAT)
1908 for (wider_mode = GET_MODE_WIDER_MODE (mode); wider_mode != VOIDmode;
1909 wider_mode = GET_MODE_WIDER_MODE (wider_mode))
1911 if (unoptab->handlers[(int) wider_mode].insn_code != CODE_FOR_nothing)
1913 rtx xop0 = op0;
1915 /* For certain operations, we need not actually extend
1916 the narrow operand, as long as we will truncate the
1917 results to the same narrowness. */
1919 xop0 = widen_operand (xop0, wider_mode, mode, unsignedp,
1920 (unoptab == neg_optab
1921 || unoptab == one_cmpl_optab)
1922 && class == MODE_INT);
1924 temp = expand_unop (wider_mode, unoptab, xop0, NULL_RTX,
1925 unsignedp);
1927 if (temp)
1929 if (class != MODE_INT)
1931 if (target == 0)
1932 target = gen_reg_rtx (mode);
1933 convert_move (target, temp, 0);
1934 return target;
1936 else
1937 return gen_lowpart (mode, temp);
1939 else
1940 delete_insns_since (last);
1944 /* These can be done a word at a time. */
1945 if (unoptab == one_cmpl_optab
1946 && class == MODE_INT
1947 && GET_MODE_SIZE (mode) > UNITS_PER_WORD
1948 && unoptab->handlers[(int) word_mode].insn_code != CODE_FOR_nothing)
1950 int i;
1951 rtx insns;
1953 if (target == 0 || target == op0)
1954 target = gen_reg_rtx (mode);
1956 start_sequence ();
1958 /* Do the actual arithmetic. */
1959 for (i = 0; i < GET_MODE_BITSIZE (mode) / BITS_PER_WORD; i++)
1961 rtx target_piece = operand_subword (target, i, 1, mode);
1962 rtx x = expand_unop (word_mode, unoptab,
1963 operand_subword_force (op0, i, mode),
1964 target_piece, unsignedp);
1965 if (target_piece != x)
1966 emit_move_insn (target_piece, x);
1969 insns = get_insns ();
1970 end_sequence ();
1972 emit_no_conflict_block (insns, target, op0, NULL_RTX,
1973 gen_rtx_fmt_e (unoptab->code, mode,
1974 copy_rtx (op0)));
1975 return target;
1978 /* Open-code the complex negation operation. */
1979 else if (unoptab == neg_optab
1980 && (class == MODE_COMPLEX_FLOAT || class == MODE_COMPLEX_INT))
1982 rtx target_piece;
1983 rtx x;
1984 rtx seq;
1986 /* Find the correct mode for the real and imaginary parts */
1987 enum machine_mode submode
1988 = mode_for_size (GET_MODE_UNIT_SIZE (mode) * BITS_PER_UNIT,
1989 class == MODE_COMPLEX_INT ? MODE_INT : MODE_FLOAT,
1992 if (submode == BLKmode)
1993 abort ();
1995 if (target == 0)
1996 target = gen_reg_rtx (mode);
1998 start_sequence ();
2000 target_piece = gen_imagpart (submode, target);
2001 x = expand_unop (submode, unoptab,
2002 gen_imagpart (submode, op0),
2003 target_piece, unsignedp);
2004 if (target_piece != x)
2005 emit_move_insn (target_piece, x);
2007 target_piece = gen_realpart (submode, target);
2008 x = expand_unop (submode, unoptab,
2009 gen_realpart (submode, op0),
2010 target_piece, unsignedp);
2011 if (target_piece != x)
2012 emit_move_insn (target_piece, x);
2014 seq = get_insns ();
2015 end_sequence ();
2017 emit_no_conflict_block (seq, target, op0, 0,
2018 gen_rtx_fmt_e (unoptab->code, mode,
2019 copy_rtx (op0)));
2020 return target;
2023 /* Now try a library call in this mode. */
2024 if (unoptab->handlers[(int) mode].libfunc)
2026 rtx insns;
2027 rtx value;
2029 start_sequence ();
2031 /* Pass 1 for NO_QUEUE so we don't lose any increments
2032 if the libcall is cse'd or moved. */
2033 value = emit_library_call_value (unoptab->handlers[(int) mode].libfunc,
2034 NULL_RTX, 1, mode, 1, op0, mode);
2035 insns = get_insns ();
2036 end_sequence ();
2038 target = gen_reg_rtx (mode);
2039 emit_libcall_block (insns, target, value,
2040 gen_rtx_fmt_e (unoptab->code, mode, op0));
2042 return target;
2045 /* It can't be done in this mode. Can we do it in a wider mode? */
2047 if (class == MODE_INT || class == MODE_FLOAT || class == MODE_COMPLEX_FLOAT)
2049 for (wider_mode = GET_MODE_WIDER_MODE (mode); wider_mode != VOIDmode;
2050 wider_mode = GET_MODE_WIDER_MODE (wider_mode))
2052 if ((unoptab->handlers[(int) wider_mode].insn_code
2053 != CODE_FOR_nothing)
2054 || unoptab->handlers[(int) wider_mode].libfunc)
2056 rtx xop0 = op0;
2058 /* For certain operations, we need not actually extend
2059 the narrow operand, as long as we will truncate the
2060 results to the same narrowness. */
2062 xop0 = widen_operand (xop0, wider_mode, mode, unsignedp,
2063 (unoptab == neg_optab
2064 || unoptab == one_cmpl_optab)
2065 && class == MODE_INT);
2067 temp = expand_unop (wider_mode, unoptab, xop0, NULL_RTX,
2068 unsignedp);
2070 if (temp)
2072 if (class != MODE_INT)
2074 if (target == 0)
2075 target = gen_reg_rtx (mode);
2076 convert_move (target, temp, 0);
2077 return target;
2079 else
2080 return gen_lowpart (mode, temp);
2082 else
2083 delete_insns_since (last);
2088 /* If there is no negate operation, try doing a subtract from zero.
2089 The US Software GOFAST library needs this. */
2090 if (unoptab == neg_optab)
2092 rtx temp;
2093 temp = expand_binop (mode, sub_optab, CONST0_RTX (mode), op0,
2094 target, unsignedp, OPTAB_LIB_WIDEN);
2095 if (temp)
2096 return temp;
2099 return 0;
2102 /* Emit code to compute the absolute value of OP0, with result to
2103 TARGET if convenient. (TARGET may be 0.) The return value says
2104 where the result actually is to be found.
2106 MODE is the mode of the operand; the mode of the result is
2107 different but can be deduced from MODE.
2109 UNSIGNEDP is relevant if extension is needed. */
2112 expand_abs (mode, op0, target, unsignedp, safe)
2113 enum machine_mode mode;
2114 rtx op0;
2115 rtx target;
2116 int unsignedp;
2117 int safe;
2119 rtx temp, op1;
2121 /* First try to do it with a special abs instruction. */
2122 temp = expand_unop (mode, abs_optab, op0, target, 0);
2123 if (temp != 0)
2124 return temp;
2126 /* If this machine has expensive jumps, we can do integer absolute
2127 value of X as (((signed) x >> (W-1)) ^ x) - ((signed) x >> (W-1)),
2128 where W is the width of MODE. */
2130 if (GET_MODE_CLASS (mode) == MODE_INT && BRANCH_COST >= 2)
2132 rtx extended = expand_shift (RSHIFT_EXPR, mode, op0,
2133 size_int (GET_MODE_BITSIZE (mode) - 1),
2134 NULL_RTX, 0);
2136 temp = expand_binop (mode, xor_optab, extended, op0, target, 0,
2137 OPTAB_LIB_WIDEN);
2138 if (temp != 0)
2139 temp = expand_binop (mode, sub_optab, temp, extended, target, 0,
2140 OPTAB_LIB_WIDEN);
2142 if (temp != 0)
2143 return temp;
2146 /* If that does not win, use conditional jump and negate. */
2148 /* It is safe to use the target if it is the same
2149 as the source if this is also a pseudo register */
2150 if (op0 == target && GET_CODE (op0) == REG
2151 && REGNO (op0) >= FIRST_PSEUDO_REGISTER)
2152 safe = 1;
2154 op1 = gen_label_rtx ();
2155 if (target == 0 || ! safe
2156 || GET_MODE (target) != mode
2157 || (GET_CODE (target) == MEM && MEM_VOLATILE_P (target))
2158 || (GET_CODE (target) == REG
2159 && REGNO (target) < FIRST_PSEUDO_REGISTER))
2160 target = gen_reg_rtx (mode);
2162 emit_move_insn (target, op0);
2163 NO_DEFER_POP;
2165 /* If this mode is an integer too wide to compare properly,
2166 compare word by word. Rely on CSE to optimize constant cases. */
2167 if (GET_MODE_CLASS (mode) == MODE_INT && ! can_compare_p (mode))
2168 do_jump_by_parts_greater_rtx (mode, 0, target, const0_rtx,
2169 NULL_RTX, op1);
2170 else
2172 temp = compare_from_rtx (target, CONST0_RTX (mode), GE, 0, mode,
2173 NULL_RTX, 0);
2174 if (temp == const1_rtx)
2175 return target;
2176 else if (temp != const0_rtx)
2178 if (bcc_gen_fctn[(int) GET_CODE (temp)] != 0)
2179 emit_jump_insn ((*bcc_gen_fctn[(int) GET_CODE (temp)]) (op1));
2180 else
2181 abort ();
2185 op0 = expand_unop (mode, neg_optab, target, target, 0);
2186 if (op0 != target)
2187 emit_move_insn (target, op0);
2188 emit_label (op1);
2189 OK_DEFER_POP;
2190 return target;
2193 /* Emit code to compute the absolute value of OP0, with result to
2194 TARGET if convenient. (TARGET may be 0.) The return value says
2195 where the result actually is to be found.
2197 MODE is the mode of the operand; the mode of the result is
2198 different but can be deduced from MODE.
2200 UNSIGNEDP is relevant for complex integer modes. */
2203 expand_complex_abs (mode, op0, target, unsignedp)
2204 enum machine_mode mode;
2205 rtx op0;
2206 rtx target;
2207 int unsignedp;
2209 enum mode_class class = GET_MODE_CLASS (mode);
2210 enum machine_mode wider_mode;
2211 register rtx temp;
2212 rtx entry_last = get_last_insn ();
2213 rtx last;
2214 rtx pat;
2216 /* Find the correct mode for the real and imaginary parts. */
2217 enum machine_mode submode
2218 = mode_for_size (GET_MODE_UNIT_SIZE (mode) * BITS_PER_UNIT,
2219 class == MODE_COMPLEX_INT ? MODE_INT : MODE_FLOAT,
2222 if (submode == BLKmode)
2223 abort ();
2225 op0 = protect_from_queue (op0, 0);
2227 if (flag_force_mem)
2229 op0 = force_not_mem (op0);
2232 last = get_last_insn ();
2234 if (target)
2235 target = protect_from_queue (target, 1);
2237 if (abs_optab->handlers[(int) mode].insn_code != CODE_FOR_nothing)
2239 int icode = (int) abs_optab->handlers[(int) mode].insn_code;
2240 enum machine_mode mode0 = insn_operand_mode[icode][1];
2241 rtx xop0 = op0;
2243 if (target)
2244 temp = target;
2245 else
2246 temp = gen_reg_rtx (submode);
2248 if (GET_MODE (xop0) != VOIDmode
2249 && GET_MODE (xop0) != mode0)
2250 xop0 = convert_to_mode (mode0, xop0, unsignedp);
2252 /* Now, if insn doesn't accept our operand, put it into a pseudo. */
2254 if (! (*insn_operand_predicate[icode][1]) (xop0, mode0))
2255 xop0 = copy_to_mode_reg (mode0, xop0);
2257 if (! (*insn_operand_predicate[icode][0]) (temp, submode))
2258 temp = gen_reg_rtx (submode);
2260 pat = GEN_FCN (icode) (temp, xop0);
2261 if (pat)
2263 if (GET_CODE (pat) == SEQUENCE
2264 && ! add_equal_note (pat, temp, abs_optab->code, xop0, NULL_RTX))
2266 delete_insns_since (last);
2267 return expand_unop (mode, abs_optab, op0, NULL_RTX, unsignedp);
2270 emit_insn (pat);
2272 return temp;
2274 else
2275 delete_insns_since (last);
2278 /* It can't be done in this mode. Can we open-code it in a wider mode? */
2280 for (wider_mode = GET_MODE_WIDER_MODE (mode); wider_mode != VOIDmode;
2281 wider_mode = GET_MODE_WIDER_MODE (wider_mode))
2283 if (abs_optab->handlers[(int) wider_mode].insn_code != CODE_FOR_nothing)
2285 rtx xop0 = op0;
2287 xop0 = convert_modes (wider_mode, mode, xop0, unsignedp);
2288 temp = expand_complex_abs (wider_mode, xop0, NULL_RTX, unsignedp);
2290 if (temp)
2292 if (class != MODE_COMPLEX_INT)
2294 if (target == 0)
2295 target = gen_reg_rtx (submode);
2296 convert_move (target, temp, 0);
2297 return target;
2299 else
2300 return gen_lowpart (submode, temp);
2302 else
2303 delete_insns_since (last);
2307 /* Open-code the complex absolute-value operation
2308 if we can open-code sqrt. Otherwise it's not worth while. */
2309 if (sqrt_optab->handlers[(int) submode].insn_code != CODE_FOR_nothing)
2311 rtx real, imag, total;
2313 real = gen_realpart (submode, op0);
2314 imag = gen_imagpart (submode, op0);
2316 /* Square both parts. */
2317 real = expand_mult (submode, real, real, NULL_RTX, 0);
2318 imag = expand_mult (submode, imag, imag, NULL_RTX, 0);
2320 /* Sum the parts. */
2321 total = expand_binop (submode, add_optab, real, imag, NULL_RTX,
2322 0, OPTAB_LIB_WIDEN);
2324 /* Get sqrt in TARGET. Set TARGET to where the result is. */
2325 target = expand_unop (submode, sqrt_optab, total, target, 0);
2326 if (target == 0)
2327 delete_insns_since (last);
2328 else
2329 return target;
2332 /* Now try a library call in this mode. */
2333 if (abs_optab->handlers[(int) mode].libfunc)
2335 rtx insns;
2336 rtx value;
2338 start_sequence ();
2340 /* Pass 1 for NO_QUEUE so we don't lose any increments
2341 if the libcall is cse'd or moved. */
2342 value = emit_library_call_value (abs_optab->handlers[(int) mode].libfunc,
2343 NULL_RTX, 1, submode, 1, op0, mode);
2344 insns = get_insns ();
2345 end_sequence ();
2347 target = gen_reg_rtx (submode);
2348 emit_libcall_block (insns, target, value,
2349 gen_rtx_fmt_e (abs_optab->code, mode, op0));
2351 return target;
2354 /* It can't be done in this mode. Can we do it in a wider mode? */
2356 for (wider_mode = GET_MODE_WIDER_MODE (mode); wider_mode != VOIDmode;
2357 wider_mode = GET_MODE_WIDER_MODE (wider_mode))
2359 if ((abs_optab->handlers[(int) wider_mode].insn_code
2360 != CODE_FOR_nothing)
2361 || abs_optab->handlers[(int) wider_mode].libfunc)
2363 rtx xop0 = op0;
2365 xop0 = convert_modes (wider_mode, mode, xop0, unsignedp);
2367 temp = expand_complex_abs (wider_mode, xop0, NULL_RTX, unsignedp);
2369 if (temp)
2371 if (class != MODE_COMPLEX_INT)
2373 if (target == 0)
2374 target = gen_reg_rtx (submode);
2375 convert_move (target, temp, 0);
2376 return target;
2378 else
2379 return gen_lowpart (submode, temp);
2381 else
2382 delete_insns_since (last);
2386 delete_insns_since (entry_last);
2387 return 0;
2390 /* Generate an instruction whose insn-code is INSN_CODE,
2391 with two operands: an output TARGET and an input OP0.
2392 TARGET *must* be nonzero, and the output is always stored there.
2393 CODE is an rtx code such that (CODE OP0) is an rtx that describes
2394 the value that is stored into TARGET. */
2396 void
2397 emit_unop_insn (icode, target, op0, code)
2398 int icode;
2399 rtx target;
2400 rtx op0;
2401 enum rtx_code code;
2403 register rtx temp;
2404 enum machine_mode mode0 = insn_operand_mode[icode][1];
2405 rtx pat;
2407 temp = target = protect_from_queue (target, 1);
2409 op0 = protect_from_queue (op0, 0);
2411 /* Sign and zero extension from memory is often done specially on
2412 RISC machines, so forcing into a register here can pessimize
2413 code. */
2414 if (flag_force_mem && code != SIGN_EXTEND && code != ZERO_EXTEND)
2415 op0 = force_not_mem (op0);
2417 /* Now, if insn does not accept our operands, put them into pseudos. */
2419 if (! (*insn_operand_predicate[icode][1]) (op0, mode0))
2420 op0 = copy_to_mode_reg (mode0, op0);
2422 if (! (*insn_operand_predicate[icode][0]) (temp, GET_MODE (temp))
2423 || (flag_force_mem && GET_CODE (temp) == MEM))
2424 temp = gen_reg_rtx (GET_MODE (temp));
2426 pat = GEN_FCN (icode) (temp, op0);
2428 if (GET_CODE (pat) == SEQUENCE && code != UNKNOWN)
2429 add_equal_note (pat, temp, code, op0, NULL_RTX);
2431 emit_insn (pat);
2433 if (temp != target)
2434 emit_move_insn (target, temp);
2437 /* Emit code to perform a series of operations on a multi-word quantity, one
2438 word at a time.
2440 Such a block is preceded by a CLOBBER of the output, consists of multiple
2441 insns, each setting one word of the output, and followed by a SET copying
2442 the output to itself.
2444 Each of the insns setting words of the output receives a REG_NO_CONFLICT
2445 note indicating that it doesn't conflict with the (also multi-word)
2446 inputs. The entire block is surrounded by REG_LIBCALL and REG_RETVAL
2447 notes.
2449 INSNS is a block of code generated to perform the operation, not including
2450 the CLOBBER and final copy. All insns that compute intermediate values
2451 are first emitted, followed by the block as described above.
2453 TARGET, OP0, and OP1 are the output and inputs of the operations,
2454 respectively. OP1 may be zero for a unary operation.
2456 EQUIV, if non-zero, is an expression to be placed into a REG_EQUAL note
2457 on the last insn.
2459 If TARGET is not a register, INSNS is simply emitted with no special
2460 processing. Likewise if anything in INSNS is not an INSN or if
2461 there is a libcall block inside INSNS.
2463 The final insn emitted is returned. */
2466 emit_no_conflict_block (insns, target, op0, op1, equiv)
2467 rtx insns;
2468 rtx target;
2469 rtx op0, op1;
2470 rtx equiv;
2472 rtx prev, next, first, last, insn;
2474 if (GET_CODE (target) != REG || reload_in_progress)
2475 return emit_insns (insns);
2476 else
2477 for (insn = insns; insn; insn = NEXT_INSN (insn))
2478 if (GET_CODE (insn) != INSN
2479 || find_reg_note (insn, REG_LIBCALL, NULL_RTX))
2480 return emit_insns (insns);
2482 /* First emit all insns that do not store into words of the output and remove
2483 these from the list. */
2484 for (insn = insns; insn; insn = next)
2486 rtx set = 0;
2487 int i;
2489 next = NEXT_INSN (insn);
2491 if (GET_CODE (PATTERN (insn)) == SET)
2492 set = PATTERN (insn);
2493 else if (GET_CODE (PATTERN (insn)) == PARALLEL)
2495 for (i = 0; i < XVECLEN (PATTERN (insn), 0); i++)
2496 if (GET_CODE (XVECEXP (PATTERN (insn), 0, i)) == SET)
2498 set = XVECEXP (PATTERN (insn), 0, i);
2499 break;
2503 if (set == 0)
2504 abort ();
2506 if (! reg_overlap_mentioned_p (target, SET_DEST (set)))
2508 if (PREV_INSN (insn))
2509 NEXT_INSN (PREV_INSN (insn)) = next;
2510 else
2511 insns = next;
2513 if (next)
2514 PREV_INSN (next) = PREV_INSN (insn);
2516 add_insn (insn);
2520 prev = get_last_insn ();
2522 /* Now write the CLOBBER of the output, followed by the setting of each
2523 of the words, followed by the final copy. */
2524 if (target != op0 && target != op1)
2525 emit_insn (gen_rtx_CLOBBER (VOIDmode, target));
2527 for (insn = insns; insn; insn = next)
2529 next = NEXT_INSN (insn);
2530 add_insn (insn);
2532 if (op1 && GET_CODE (op1) == REG)
2533 REG_NOTES (insn) = gen_rtx_EXPR_LIST (REG_NO_CONFLICT, op1,
2534 REG_NOTES (insn));
2536 if (op0 && GET_CODE (op0) == REG)
2537 REG_NOTES (insn) = gen_rtx_EXPR_LIST (REG_NO_CONFLICT, op0,
2538 REG_NOTES (insn));
2541 if (mov_optab->handlers[(int) GET_MODE (target)].insn_code
2542 != CODE_FOR_nothing)
2544 last = emit_move_insn (target, target);
2545 if (equiv)
2546 REG_NOTES (last)
2547 = gen_rtx_EXPR_LIST (REG_EQUAL, equiv, REG_NOTES (last));
2549 else
2550 last = get_last_insn ();
2552 if (prev == 0)
2553 first = get_insns ();
2554 else
2555 first = NEXT_INSN (prev);
2557 /* Encapsulate the block so it gets manipulated as a unit. */
2558 REG_NOTES (first) = gen_rtx_INSN_LIST (REG_LIBCALL, last,
2559 REG_NOTES (first));
2560 REG_NOTES (last) = gen_rtx_INSN_LIST (REG_RETVAL, first, REG_NOTES (last));
2562 return last;
2565 /* Emit code to make a call to a constant function or a library call.
2567 INSNS is a list containing all insns emitted in the call.
2568 These insns leave the result in RESULT. Our block is to copy RESULT
2569 to TARGET, which is logically equivalent to EQUIV.
2571 We first emit any insns that set a pseudo on the assumption that these are
2572 loading constants into registers; doing so allows them to be safely cse'ed
2573 between blocks. Then we emit all the other insns in the block, followed by
2574 an insn to move RESULT to TARGET. This last insn will have a REQ_EQUAL
2575 note with an operand of EQUIV.
2577 Moving assignments to pseudos outside of the block is done to improve
2578 the generated code, but is not required to generate correct code,
2579 hence being unable to move an assignment is not grounds for not making
2580 a libcall block. There are two reasons why it is safe to leave these
2581 insns inside the block: First, we know that these pseudos cannot be
2582 used in generated RTL outside the block since they are created for
2583 temporary purposes within the block. Second, CSE will not record the
2584 values of anything set inside a libcall block, so we know they must
2585 be dead at the end of the block.
2587 Except for the first group of insns (the ones setting pseudos), the
2588 block is delimited by REG_RETVAL and REG_LIBCALL notes. */
2590 void
2591 emit_libcall_block (insns, target, result, equiv)
2592 rtx insns;
2593 rtx target;
2594 rtx result;
2595 rtx equiv;
2597 rtx prev, next, first, last, insn;
2599 /* look for any CALL_INSNs in this sequence, and attach a REG_EH_REGION
2600 reg note to indicate that this call cannot throw. (Unless there is
2601 already a REG_EH_REGION note.) */
2603 for (insn = insns; insn; insn = NEXT_INSN (insn))
2605 if (GET_CODE (insn) == CALL_INSN)
2607 rtx note = find_reg_note (insn, REG_EH_REGION, NULL_RTX);
2608 if (note == NULL_RTX)
2609 REG_NOTES (insn) = gen_rtx_EXPR_LIST (REG_EH_REGION, GEN_INT (0),
2610 REG_NOTES (insn));
2614 /* First emit all insns that set pseudos. Remove them from the list as
2615 we go. Avoid insns that set pseudos which were referenced in previous
2616 insns. These can be generated by move_by_pieces, for example,
2617 to update an address. Similarly, avoid insns that reference things
2618 set in previous insns. */
2620 for (insn = insns; insn; insn = next)
2622 rtx set = single_set (insn);
2624 next = NEXT_INSN (insn);
2626 if (set != 0 && GET_CODE (SET_DEST (set)) == REG
2627 && REGNO (SET_DEST (set)) >= FIRST_PSEUDO_REGISTER
2628 && (insn == insns
2629 || (! reg_mentioned_p (SET_DEST (set), PATTERN (insns))
2630 && ! reg_used_between_p (SET_DEST (set), insns, insn)
2631 && ! modified_in_p (SET_SRC (set), insns)
2632 && ! modified_between_p (SET_SRC (set), insns, insn))))
2634 if (PREV_INSN (insn))
2635 NEXT_INSN (PREV_INSN (insn)) = next;
2636 else
2637 insns = next;
2639 if (next)
2640 PREV_INSN (next) = PREV_INSN (insn);
2642 add_insn (insn);
2646 prev = get_last_insn ();
2648 /* Write the remaining insns followed by the final copy. */
2650 for (insn = insns; insn; insn = next)
2652 next = NEXT_INSN (insn);
2654 add_insn (insn);
2657 last = emit_move_insn (target, result);
2658 if (mov_optab->handlers[(int) GET_MODE (target)].insn_code
2659 != CODE_FOR_nothing)
2660 REG_NOTES (last) = gen_rtx_EXPR_LIST (REG_EQUAL, copy_rtx (equiv),
2661 REG_NOTES (last));
2663 if (prev == 0)
2664 first = get_insns ();
2665 else
2666 first = NEXT_INSN (prev);
2668 /* Encapsulate the block so it gets manipulated as a unit. */
2669 REG_NOTES (first) = gen_rtx_INSN_LIST (REG_LIBCALL, last,
2670 REG_NOTES (first));
2671 REG_NOTES (last) = gen_rtx_INSN_LIST (REG_RETVAL, first, REG_NOTES (last));
2674 /* Generate code to store zero in X. */
2676 void
2677 emit_clr_insn (x)
2678 rtx x;
2680 emit_move_insn (x, const0_rtx);
2683 /* Generate code to store 1 in X
2684 assuming it contains zero beforehand. */
2686 void
2687 emit_0_to_1_insn (x)
2688 rtx x;
2690 emit_move_insn (x, const1_rtx);
2693 /* Generate code to compare X with Y
2694 so that the condition codes are set.
2696 MODE is the mode of the inputs (in case they are const_int).
2697 UNSIGNEDP nonzero says that X and Y are unsigned;
2698 this matters if they need to be widened.
2700 If they have mode BLKmode, then SIZE specifies the size of both X and Y,
2701 and ALIGN specifies the known shared alignment of X and Y.
2703 COMPARISON is the rtl operator to compare with (EQ, NE, GT, etc.).
2704 It is ignored for fixed-point and block comparisons;
2705 it is used only for floating-point comparisons. */
2707 void
2708 emit_cmp_insn (x, y, comparison, size, mode, unsignedp, align)
2709 rtx x, y;
2710 enum rtx_code comparison;
2711 rtx size;
2712 enum machine_mode mode;
2713 int unsignedp;
2714 int align;
2716 enum mode_class class;
2717 enum machine_mode wider_mode;
2719 class = GET_MODE_CLASS (mode);
2721 /* They could both be VOIDmode if both args are immediate constants,
2722 but we should fold that at an earlier stage.
2723 With no special code here, this will call abort,
2724 reminding the programmer to implement such folding. */
2726 if (mode != BLKmode && flag_force_mem)
2728 x = force_not_mem (x);
2729 y = force_not_mem (y);
2732 /* If we are inside an appropriately-short loop and one operand is an
2733 expensive constant, force it into a register. */
2734 if (CONSTANT_P (x) && preserve_subexpressions_p () && rtx_cost (x, COMPARE) > 2)
2735 x = force_reg (mode, x);
2737 if (CONSTANT_P (y) && preserve_subexpressions_p () && rtx_cost (y, COMPARE) > 2)
2738 y = force_reg (mode, y);
2740 #ifdef HAVE_cc0
2741 /* Abort if we have a non-canonical comparison. The RTL documentation
2742 states that canonical comparisons are required only for targets which
2743 have cc0. */
2744 if (CONSTANT_P (x) && ! CONSTANT_P (y))
2745 abort();
2746 #endif
2748 /* Don't let both operands fail to indicate the mode. */
2749 if (GET_MODE (x) == VOIDmode && GET_MODE (y) == VOIDmode)
2750 x = force_reg (mode, x);
2752 /* Handle all BLKmode compares. */
2754 if (mode == BLKmode)
2756 emit_queue ();
2757 x = protect_from_queue (x, 0);
2758 y = protect_from_queue (y, 0);
2760 if (size == 0)
2761 abort ();
2762 #ifdef HAVE_cmpstrqi
2763 if (HAVE_cmpstrqi
2764 && GET_CODE (size) == CONST_INT
2765 && INTVAL (size) < (1 << GET_MODE_BITSIZE (QImode)))
2767 enum machine_mode result_mode
2768 = insn_operand_mode[(int) CODE_FOR_cmpstrqi][0];
2769 rtx result = gen_reg_rtx (result_mode);
2770 emit_insn (gen_cmpstrqi (result, x, y, size, GEN_INT (align)));
2771 emit_cmp_insn (result, const0_rtx, comparison, NULL_RTX,
2772 result_mode, 0, 0);
2774 else
2775 #endif
2776 #ifdef HAVE_cmpstrhi
2777 if (HAVE_cmpstrhi
2778 && GET_CODE (size) == CONST_INT
2779 && INTVAL (size) < (1 << GET_MODE_BITSIZE (HImode)))
2781 enum machine_mode result_mode
2782 = insn_operand_mode[(int) CODE_FOR_cmpstrhi][0];
2783 rtx result = gen_reg_rtx (result_mode);
2784 emit_insn (gen_cmpstrhi (result, x, y, size, GEN_INT (align)));
2785 emit_cmp_insn (result, const0_rtx, comparison, NULL_RTX,
2786 result_mode, 0, 0);
2788 else
2789 #endif
2790 #ifdef HAVE_cmpstrsi
2791 if (HAVE_cmpstrsi)
2793 enum machine_mode result_mode
2794 = insn_operand_mode[(int) CODE_FOR_cmpstrsi][0];
2795 rtx result = gen_reg_rtx (result_mode);
2796 size = protect_from_queue (size, 0);
2797 emit_insn (gen_cmpstrsi (result, x, y,
2798 convert_to_mode (SImode, size, 1),
2799 GEN_INT (align)));
2800 emit_cmp_insn (result, const0_rtx, comparison, NULL_RTX,
2801 result_mode, 0, 0);
2803 else
2804 #endif
2806 rtx result;
2808 #ifdef TARGET_MEM_FUNCTIONS
2809 emit_library_call (memcmp_libfunc, 0,
2810 TYPE_MODE (integer_type_node), 3,
2811 XEXP (x, 0), Pmode, XEXP (y, 0), Pmode,
2812 convert_to_mode (TYPE_MODE (sizetype), size,
2813 TREE_UNSIGNED (sizetype)),
2814 TYPE_MODE (sizetype));
2815 #else
2816 emit_library_call (bcmp_libfunc, 0,
2817 TYPE_MODE (integer_type_node), 3,
2818 XEXP (x, 0), Pmode, XEXP (y, 0), Pmode,
2819 convert_to_mode (TYPE_MODE (integer_type_node),
2820 size,
2821 TREE_UNSIGNED (integer_type_node)),
2822 TYPE_MODE (integer_type_node));
2823 #endif
2825 /* Immediately move the result of the libcall into a pseudo
2826 register so reload doesn't clobber the value if it needs
2827 the return register for a spill reg. */
2828 result = gen_reg_rtx (TYPE_MODE (integer_type_node));
2829 emit_move_insn (result,
2830 hard_libcall_value (TYPE_MODE (integer_type_node)));
2831 emit_cmp_insn (result,
2832 const0_rtx, comparison, NULL_RTX,
2833 TYPE_MODE (integer_type_node), 0, 0);
2835 return;
2838 /* Handle some compares against zero. */
2840 if (y == CONST0_RTX (mode)
2841 && tst_optab->handlers[(int) mode].insn_code != CODE_FOR_nothing)
2843 int icode = (int) tst_optab->handlers[(int) mode].insn_code;
2845 emit_queue ();
2846 x = protect_from_queue (x, 0);
2847 y = protect_from_queue (y, 0);
2849 /* Now, if insn does accept these operands, put them into pseudos. */
2850 if (! (*insn_operand_predicate[icode][0])
2851 (x, insn_operand_mode[icode][0]))
2852 x = copy_to_mode_reg (insn_operand_mode[icode][0], x);
2854 emit_insn (GEN_FCN (icode) (x));
2855 return;
2858 /* Handle compares for which there is a directly suitable insn. */
2860 if (cmp_optab->handlers[(int) mode].insn_code != CODE_FOR_nothing)
2862 int icode = (int) cmp_optab->handlers[(int) mode].insn_code;
2864 emit_queue ();
2865 x = protect_from_queue (x, 0);
2866 y = protect_from_queue (y, 0);
2868 /* Now, if insn doesn't accept these operands, put them into pseudos. */
2869 if (! (*insn_operand_predicate[icode][0])
2870 (x, insn_operand_mode[icode][0]))
2871 x = copy_to_mode_reg (insn_operand_mode[icode][0], x);
2873 if (! (*insn_operand_predicate[icode][1])
2874 (y, insn_operand_mode[icode][1]))
2875 y = copy_to_mode_reg (insn_operand_mode[icode][1], y);
2877 emit_insn (GEN_FCN (icode) (x, y));
2878 return;
2881 /* Try widening if we can find a direct insn that way. */
2883 if (class == MODE_INT || class == MODE_FLOAT || class == MODE_COMPLEX_FLOAT)
2885 for (wider_mode = GET_MODE_WIDER_MODE (mode); wider_mode != VOIDmode;
2886 wider_mode = GET_MODE_WIDER_MODE (wider_mode))
2888 if (cmp_optab->handlers[(int) wider_mode].insn_code
2889 != CODE_FOR_nothing)
2891 x = protect_from_queue (x, 0);
2892 y = protect_from_queue (y, 0);
2893 x = convert_modes (wider_mode, mode, x, unsignedp);
2894 y = convert_modes (wider_mode, mode, y, unsignedp);
2895 emit_cmp_insn (x, y, comparison, NULL_RTX,
2896 wider_mode, unsignedp, align);
2897 return;
2902 /* Handle a lib call just for the mode we are using. */
2904 if (cmp_optab->handlers[(int) mode].libfunc
2905 && class != MODE_FLOAT)
2907 rtx libfunc = cmp_optab->handlers[(int) mode].libfunc;
2908 rtx result;
2910 /* If we want unsigned, and this mode has a distinct unsigned
2911 comparison routine, use that. */
2912 if (unsignedp && ucmp_optab->handlers[(int) mode].libfunc)
2913 libfunc = ucmp_optab->handlers[(int) mode].libfunc;
2915 emit_library_call (libfunc, 1,
2916 word_mode, 2, x, mode, y, mode);
2918 /* Immediately move the result of the libcall into a pseudo
2919 register so reload doesn't clobber the value if it needs
2920 the return register for a spill reg. */
2921 result = gen_reg_rtx (word_mode);
2922 emit_move_insn (result, hard_libcall_value (word_mode));
2924 /* Integer comparison returns a result that must be compared against 1,
2925 so that even if we do an unsigned compare afterward,
2926 there is still a value that can represent the result "less than". */
2927 emit_cmp_insn (result, const1_rtx,
2928 comparison, NULL_RTX, word_mode, unsignedp, 0);
2929 return;
2932 if (class == MODE_FLOAT)
2933 emit_float_lib_cmp (x, y, comparison);
2935 else
2936 abort ();
2939 /* Generate code to compare X with Y so that the condition codes are
2940 set and to jump to LABEL if the condition is true. If X is a
2941 constant and Y is not a constant, then the comparison is swapped to
2942 ensure that the comparison RTL has the canonical form.
2944 MODE is the mode of the inputs (in case they are const_int).
2945 UNSIGNEDP nonzero says that X and Y are unsigned;
2946 this matters if they need to be widened.
2948 If they have mode BLKmode, then SIZE specifies the size of both X and Y,
2949 and ALIGN specifies the known shared alignment of X and Y.
2951 COMPARISON is the rtl operator to compare with (EQ, NE, GT, etc.).
2952 It is ignored for fixed-point and block comparisons;
2953 it is used only for floating-point comparisons. */
2955 void
2956 emit_cmp_and_jump_insns (x, y, comparison, size, mode, unsignedp, align, label)
2957 rtx x, y;
2958 enum rtx_code comparison;
2959 rtx size;
2960 enum machine_mode mode;
2961 int unsignedp;
2962 int align;
2963 rtx label;
2965 rtx op0;
2966 rtx op1;
2968 if (CONSTANT_P (x))
2970 /* Swap operands and condition to ensure canonical RTL. */
2971 op0 = y;
2972 op1 = x;
2973 comparison = swap_condition (comparison);
2975 else
2977 op0 = x;
2978 op1 = y;
2980 emit_cmp_insn (op0, op1, comparison, size, mode, unsignedp, align);
2981 emit_jump_insn ((*bcc_gen_fctn[(int) comparison]) (label));
2985 /* Nonzero if a compare of mode MODE can be done straightforwardly
2986 (without splitting it into pieces). */
2989 can_compare_p (mode)
2990 enum machine_mode mode;
2994 if (cmp_optab->handlers[(int)mode].insn_code != CODE_FOR_nothing)
2995 return 1;
2996 mode = GET_MODE_WIDER_MODE (mode);
2997 } while (mode != VOIDmode);
2999 return 0;
3002 /* Emit a library call comparison between floating point X and Y.
3003 COMPARISON is the rtl operator to compare with (EQ, NE, GT, etc.). */
3005 void
3006 emit_float_lib_cmp (x, y, comparison)
3007 rtx x, y;
3008 enum rtx_code comparison;
3010 enum machine_mode mode = GET_MODE (x);
3011 rtx libfunc = 0;
3012 rtx result;
3014 if (mode == HFmode)
3015 switch (comparison)
3017 case EQ:
3018 libfunc = eqhf2_libfunc;
3019 break;
3021 case NE:
3022 libfunc = nehf2_libfunc;
3023 break;
3025 case GT:
3026 libfunc = gthf2_libfunc;
3027 break;
3029 case GE:
3030 libfunc = gehf2_libfunc;
3031 break;
3033 case LT:
3034 libfunc = lthf2_libfunc;
3035 break;
3037 case LE:
3038 libfunc = lehf2_libfunc;
3039 break;
3041 default:
3042 break;
3044 else if (mode == SFmode)
3045 switch (comparison)
3047 case EQ:
3048 libfunc = eqsf2_libfunc;
3049 break;
3051 case NE:
3052 libfunc = nesf2_libfunc;
3053 break;
3055 case GT:
3056 libfunc = gtsf2_libfunc;
3057 break;
3059 case GE:
3060 libfunc = gesf2_libfunc;
3061 break;
3063 case LT:
3064 libfunc = ltsf2_libfunc;
3065 break;
3067 case LE:
3068 libfunc = lesf2_libfunc;
3069 break;
3071 default:
3072 break;
3074 else if (mode == DFmode)
3075 switch (comparison)
3077 case EQ:
3078 libfunc = eqdf2_libfunc;
3079 break;
3081 case NE:
3082 libfunc = nedf2_libfunc;
3083 break;
3085 case GT:
3086 libfunc = gtdf2_libfunc;
3087 break;
3089 case GE:
3090 libfunc = gedf2_libfunc;
3091 break;
3093 case LT:
3094 libfunc = ltdf2_libfunc;
3095 break;
3097 case LE:
3098 libfunc = ledf2_libfunc;
3099 break;
3101 default:
3102 break;
3104 else if (mode == XFmode)
3105 switch (comparison)
3107 case EQ:
3108 libfunc = eqxf2_libfunc;
3109 break;
3111 case NE:
3112 libfunc = nexf2_libfunc;
3113 break;
3115 case GT:
3116 libfunc = gtxf2_libfunc;
3117 break;
3119 case GE:
3120 libfunc = gexf2_libfunc;
3121 break;
3123 case LT:
3124 libfunc = ltxf2_libfunc;
3125 break;
3127 case LE:
3128 libfunc = lexf2_libfunc;
3129 break;
3131 default:
3132 break;
3134 else if (mode == TFmode)
3135 switch (comparison)
3137 case EQ:
3138 libfunc = eqtf2_libfunc;
3139 break;
3141 case NE:
3142 libfunc = netf2_libfunc;
3143 break;
3145 case GT:
3146 libfunc = gttf2_libfunc;
3147 break;
3149 case GE:
3150 libfunc = getf2_libfunc;
3151 break;
3153 case LT:
3154 libfunc = lttf2_libfunc;
3155 break;
3157 case LE:
3158 libfunc = letf2_libfunc;
3159 break;
3161 default:
3162 break;
3164 else
3166 enum machine_mode wider_mode;
3168 for (wider_mode = GET_MODE_WIDER_MODE (mode); wider_mode != VOIDmode;
3169 wider_mode = GET_MODE_WIDER_MODE (wider_mode))
3171 if ((cmp_optab->handlers[(int) wider_mode].insn_code
3172 != CODE_FOR_nothing)
3173 || (cmp_optab->handlers[(int) wider_mode].libfunc != 0))
3175 x = protect_from_queue (x, 0);
3176 y = protect_from_queue (y, 0);
3177 x = convert_to_mode (wider_mode, x, 0);
3178 y = convert_to_mode (wider_mode, y, 0);
3179 emit_float_lib_cmp (x, y, comparison);
3180 return;
3183 abort ();
3186 if (libfunc == 0)
3187 abort ();
3189 emit_library_call (libfunc, 1,
3190 word_mode, 2, x, mode, y, mode);
3192 /* Immediately move the result of the libcall into a pseudo
3193 register so reload doesn't clobber the value if it needs
3194 the return register for a spill reg. */
3195 result = gen_reg_rtx (word_mode);
3196 emit_move_insn (result, hard_libcall_value (word_mode));
3198 emit_cmp_insn (result, const0_rtx, comparison,
3199 NULL_RTX, word_mode, 0, 0);
3202 /* Generate code to indirectly jump to a location given in the rtx LOC. */
3204 void
3205 emit_indirect_jump (loc)
3206 rtx loc;
3208 if (! ((*insn_operand_predicate[(int)CODE_FOR_indirect_jump][0])
3209 (loc, Pmode)))
3210 loc = copy_to_mode_reg (Pmode, loc);
3212 emit_jump_insn (gen_indirect_jump (loc));
3213 emit_barrier ();
3216 #ifdef HAVE_conditional_move
3218 /* Emit a conditional move instruction if the machine supports one for that
3219 condition and machine mode.
3221 OP0 and OP1 are the operands that should be compared using CODE. CMODE is
3222 the mode to use should they be constants. If it is VOIDmode, they cannot
3223 both be constants.
3225 OP2 should be stored in TARGET if the comparison is true, otherwise OP3
3226 should be stored there. MODE is the mode to use should they be constants.
3227 If it is VOIDmode, they cannot both be constants.
3229 The result is either TARGET (perhaps modified) or NULL_RTX if the operation
3230 is not supported. */
3233 emit_conditional_move (target, code, op0, op1, cmode, op2, op3, mode,
3234 unsignedp)
3235 rtx target;
3236 enum rtx_code code;
3237 rtx op0, op1;
3238 enum machine_mode cmode;
3239 rtx op2, op3;
3240 enum machine_mode mode;
3241 int unsignedp;
3243 rtx tem, subtarget, comparison, insn;
3244 enum insn_code icode;
3246 /* If one operand is constant, make it the second one. Only do this
3247 if the other operand is not constant as well. */
3249 if ((CONSTANT_P (op0) && ! CONSTANT_P (op1))
3250 || (GET_CODE (op0) == CONST_INT && GET_CODE (op1) != CONST_INT))
3252 tem = op0;
3253 op0 = op1;
3254 op1 = tem;
3255 code = swap_condition (code);
3258 if (cmode == VOIDmode)
3259 cmode = GET_MODE (op0);
3261 if (((CONSTANT_P (op2) && ! CONSTANT_P (op3))
3262 || (GET_CODE (op2) == CONST_INT && GET_CODE (op3) != CONST_INT))
3263 && (GET_MODE_CLASS (GET_MODE (op1)) != MODE_FLOAT
3264 || TARGET_FLOAT_FORMAT != IEEE_FLOAT_FORMAT || flag_fast_math))
3266 tem = op2;
3267 op2 = op3;
3268 op3 = tem;
3269 code = reverse_condition (code);
3272 if (mode == VOIDmode)
3273 mode = GET_MODE (op2);
3275 icode = movcc_gen_code[mode];
3277 if (icode == CODE_FOR_nothing)
3278 return 0;
3280 if (flag_force_mem)
3282 op2 = force_not_mem (op2);
3283 op3 = force_not_mem (op3);
3286 if (target)
3287 target = protect_from_queue (target, 1);
3288 else
3289 target = gen_reg_rtx (mode);
3291 subtarget = target;
3293 emit_queue ();
3295 op2 = protect_from_queue (op2, 0);
3296 op3 = protect_from_queue (op3, 0);
3298 /* If the insn doesn't accept these operands, put them in pseudos. */
3300 if (! (*insn_operand_predicate[icode][0])
3301 (subtarget, insn_operand_mode[icode][0]))
3302 subtarget = gen_reg_rtx (insn_operand_mode[icode][0]);
3304 if (! (*insn_operand_predicate[icode][2])
3305 (op2, insn_operand_mode[icode][2]))
3306 op2 = copy_to_mode_reg (insn_operand_mode[icode][2], op2);
3308 if (! (*insn_operand_predicate[icode][3])
3309 (op3, insn_operand_mode[icode][3]))
3310 op3 = copy_to_mode_reg (insn_operand_mode[icode][3], op3);
3312 /* Everything should now be in the suitable form, so emit the compare insn
3313 and then the conditional move. */
3315 comparison
3316 = compare_from_rtx (op0, op1, code, unsignedp, cmode, NULL_RTX, 0);
3318 /* ??? Watch for const0_rtx (nop) and const_true_rtx (unconditional)? */
3319 if (GET_CODE (comparison) != code)
3320 /* This shouldn't happen. */
3321 abort ();
3323 insn = GEN_FCN (icode) (subtarget, comparison, op2, op3);
3325 /* If that failed, then give up. */
3326 if (insn == 0)
3327 return 0;
3329 emit_insn (insn);
3331 if (subtarget != target)
3332 convert_move (target, subtarget, 0);
3334 return target;
3337 /* Return non-zero if a conditional move of mode MODE is supported.
3339 This function is for combine so it can tell whether an insn that looks
3340 like a conditional move is actually supported by the hardware. If we
3341 guess wrong we lose a bit on optimization, but that's it. */
3342 /* ??? sparc64 supports conditionally moving integers values based on fp
3343 comparisons, and vice versa. How do we handle them? */
3346 can_conditionally_move_p (mode)
3347 enum machine_mode mode;
3349 if (movcc_gen_code[mode] != CODE_FOR_nothing)
3350 return 1;
3352 return 0;
3355 #endif /* HAVE_conditional_move */
3357 /* These three functions generate an insn body and return it
3358 rather than emitting the insn.
3360 They do not protect from queued increments,
3361 because they may be used 1) in protect_from_queue itself
3362 and 2) in other passes where there is no queue. */
3364 /* Generate and return an insn body to add Y to X. */
3367 gen_add2_insn (x, y)
3368 rtx x, y;
3370 int icode = (int) add_optab->handlers[(int) GET_MODE (x)].insn_code;
3372 if (! (*insn_operand_predicate[icode][0]) (x, insn_operand_mode[icode][0])
3373 || ! (*insn_operand_predicate[icode][1]) (x, insn_operand_mode[icode][1])
3374 || ! (*insn_operand_predicate[icode][2]) (y, insn_operand_mode[icode][2]))
3375 abort ();
3377 return (GEN_FCN (icode) (x, x, y));
3381 have_add2_insn (mode)
3382 enum machine_mode mode;
3384 return add_optab->handlers[(int) mode].insn_code != CODE_FOR_nothing;
3387 /* Generate and return an insn body to subtract Y from X. */
3390 gen_sub2_insn (x, y)
3391 rtx x, y;
3393 int icode = (int) sub_optab->handlers[(int) GET_MODE (x)].insn_code;
3395 if (! (*insn_operand_predicate[icode][0]) (x, insn_operand_mode[icode][0])
3396 || ! (*insn_operand_predicate[icode][1]) (x, insn_operand_mode[icode][1])
3397 || ! (*insn_operand_predicate[icode][2]) (y, insn_operand_mode[icode][2]))
3398 abort ();
3400 return (GEN_FCN (icode) (x, x, y));
3404 have_sub2_insn (mode)
3405 enum machine_mode mode;
3407 return sub_optab->handlers[(int) mode].insn_code != CODE_FOR_nothing;
3410 /* Generate the body of an instruction to copy Y into X.
3411 It may be a SEQUENCE, if one insn isn't enough. */
3414 gen_move_insn (x, y)
3415 rtx x, y;
3417 register enum machine_mode mode = GET_MODE (x);
3418 enum insn_code insn_code;
3419 rtx seq;
3421 if (mode == VOIDmode)
3422 mode = GET_MODE (y);
3424 insn_code = mov_optab->handlers[(int) mode].insn_code;
3426 /* Handle MODE_CC modes: If we don't have a special move insn for this mode,
3427 find a mode to do it in. If we have a movcc, use it. Otherwise,
3428 find the MODE_INT mode of the same width. */
3430 if (GET_MODE_CLASS (mode) == MODE_CC && insn_code == CODE_FOR_nothing)
3432 enum machine_mode tmode = VOIDmode;
3433 rtx x1 = x, y1 = y;
3435 if (mode != CCmode
3436 && mov_optab->handlers[(int) CCmode].insn_code != CODE_FOR_nothing)
3437 tmode = CCmode;
3438 else
3439 for (tmode = QImode; tmode != VOIDmode;
3440 tmode = GET_MODE_WIDER_MODE (tmode))
3441 if (GET_MODE_SIZE (tmode) == GET_MODE_SIZE (mode))
3442 break;
3444 if (tmode == VOIDmode)
3445 abort ();
3447 /* Get X and Y in TMODE. We can't use gen_lowpart here because it
3448 may call change_address which is not appropriate if we were
3449 called when a reload was in progress. We don't have to worry
3450 about changing the address since the size in bytes is supposed to
3451 be the same. Copy the MEM to change the mode and move any
3452 substitutions from the old MEM to the new one. */
3454 if (reload_in_progress)
3456 x = gen_lowpart_common (tmode, x1);
3457 if (x == 0 && GET_CODE (x1) == MEM)
3459 x = gen_rtx_MEM (tmode, XEXP (x1, 0));
3460 RTX_UNCHANGING_P (x) = RTX_UNCHANGING_P (x1);
3461 MEM_COPY_ATTRIBUTES (x, x1);
3462 copy_replacements (x1, x);
3465 y = gen_lowpart_common (tmode, y1);
3466 if (y == 0 && GET_CODE (y1) == MEM)
3468 y = gen_rtx_MEM (tmode, XEXP (y1, 0));
3469 RTX_UNCHANGING_P (y) = RTX_UNCHANGING_P (y1);
3470 MEM_COPY_ATTRIBUTES (y, y1);
3471 copy_replacements (y1, y);
3474 else
3476 x = gen_lowpart (tmode, x);
3477 y = gen_lowpart (tmode, y);
3480 insn_code = mov_optab->handlers[(int) tmode].insn_code;
3481 return (GEN_FCN (insn_code) (x, y));
3484 start_sequence ();
3485 emit_move_insn_1 (x, y);
3486 seq = gen_sequence ();
3487 end_sequence ();
3488 return seq;
3491 /* Return the insn code used to extend FROM_MODE to TO_MODE.
3492 UNSIGNEDP specifies zero-extension instead of sign-extension. If
3493 no such operation exists, CODE_FOR_nothing will be returned. */
3495 enum insn_code
3496 can_extend_p (to_mode, from_mode, unsignedp)
3497 enum machine_mode to_mode, from_mode;
3498 int unsignedp;
3500 return extendtab[(int) to_mode][(int) from_mode][unsignedp];
3503 /* Generate the body of an insn to extend Y (with mode MFROM)
3504 into X (with mode MTO). Do zero-extension if UNSIGNEDP is nonzero. */
3507 gen_extend_insn (x, y, mto, mfrom, unsignedp)
3508 rtx x, y;
3509 enum machine_mode mto, mfrom;
3510 int unsignedp;
3512 return (GEN_FCN (extendtab[(int) mto][(int) mfrom][unsignedp]) (x, y));
3515 /* can_fix_p and can_float_p say whether the target machine
3516 can directly convert a given fixed point type to
3517 a given floating point type, or vice versa.
3518 The returned value is the CODE_FOR_... value to use,
3519 or CODE_FOR_nothing if these modes cannot be directly converted.
3521 *TRUNCP_PTR is set to 1 if it is necessary to output
3522 an explicit FTRUNC insn before the fix insn; otherwise 0. */
3524 static enum insn_code
3525 can_fix_p (fixmode, fltmode, unsignedp, truncp_ptr)
3526 enum machine_mode fltmode, fixmode;
3527 int unsignedp;
3528 int *truncp_ptr;
3530 *truncp_ptr = 0;
3531 if (fixtrunctab[(int) fltmode][(int) fixmode][unsignedp] != CODE_FOR_nothing)
3532 return fixtrunctab[(int) fltmode][(int) fixmode][unsignedp];
3534 if (ftrunc_optab->handlers[(int) fltmode].insn_code != CODE_FOR_nothing)
3536 *truncp_ptr = 1;
3537 return fixtab[(int) fltmode][(int) fixmode][unsignedp];
3539 return CODE_FOR_nothing;
3542 static enum insn_code
3543 can_float_p (fltmode, fixmode, unsignedp)
3544 enum machine_mode fixmode, fltmode;
3545 int unsignedp;
3547 return floattab[(int) fltmode][(int) fixmode][unsignedp];
3550 /* Generate code to convert FROM to floating point
3551 and store in TO. FROM must be fixed point and not VOIDmode.
3552 UNSIGNEDP nonzero means regard FROM as unsigned.
3553 Normally this is done by correcting the final value
3554 if it is negative. */
3556 void
3557 expand_float (to, from, unsignedp)
3558 rtx to, from;
3559 int unsignedp;
3561 enum insn_code icode;
3562 register rtx target = to;
3563 enum machine_mode fmode, imode;
3565 /* Crash now, because we won't be able to decide which mode to use. */
3566 if (GET_MODE (from) == VOIDmode)
3567 abort ();
3569 /* Look for an insn to do the conversion. Do it in the specified
3570 modes if possible; otherwise convert either input, output or both to
3571 wider mode. If the integer mode is wider than the mode of FROM,
3572 we can do the conversion signed even if the input is unsigned. */
3574 for (imode = GET_MODE (from); imode != VOIDmode;
3575 imode = GET_MODE_WIDER_MODE (imode))
3576 for (fmode = GET_MODE (to); fmode != VOIDmode;
3577 fmode = GET_MODE_WIDER_MODE (fmode))
3579 int doing_unsigned = unsignedp;
3581 icode = can_float_p (fmode, imode, unsignedp);
3582 if (icode == CODE_FOR_nothing && imode != GET_MODE (from) && unsignedp)
3583 icode = can_float_p (fmode, imode, 0), doing_unsigned = 0;
3585 if (icode != CODE_FOR_nothing)
3587 to = protect_from_queue (to, 1);
3588 from = protect_from_queue (from, 0);
3590 if (imode != GET_MODE (from))
3591 from = convert_to_mode (imode, from, unsignedp);
3593 if (fmode != GET_MODE (to))
3594 target = gen_reg_rtx (fmode);
3596 emit_unop_insn (icode, target, from,
3597 doing_unsigned ? UNSIGNED_FLOAT : FLOAT);
3599 if (target != to)
3600 convert_move (to, target, 0);
3601 return;
3605 #if !defined (REAL_IS_NOT_DOUBLE) || defined (REAL_ARITHMETIC)
3607 /* Unsigned integer, and no way to convert directly.
3608 Convert as signed, then conditionally adjust the result. */
3609 if (unsignedp)
3611 rtx label = gen_label_rtx ();
3612 rtx temp;
3613 REAL_VALUE_TYPE offset;
3615 emit_queue ();
3617 to = protect_from_queue (to, 1);
3618 from = protect_from_queue (from, 0);
3620 if (flag_force_mem)
3621 from = force_not_mem (from);
3623 /* Look for a usable floating mode FMODE wider than the source and at
3624 least as wide as the target. Using FMODE will avoid rounding woes
3625 with unsigned values greater than the signed maximum value. */
3627 for (fmode = GET_MODE (to); fmode != VOIDmode;
3628 fmode = GET_MODE_WIDER_MODE (fmode))
3629 if (GET_MODE_BITSIZE (GET_MODE (from)) < GET_MODE_BITSIZE (fmode)
3630 && can_float_p (fmode, GET_MODE (from), 0) != CODE_FOR_nothing)
3631 break;
3633 if (fmode == VOIDmode)
3635 /* There is no such mode. Pretend the target is wide enough. */
3636 fmode = GET_MODE (to);
3638 /* Avoid double-rounding when TO is narrower than FROM. */
3639 if ((significand_size (fmode) + 1)
3640 < GET_MODE_BITSIZE (GET_MODE (from)))
3642 rtx temp1;
3643 rtx neglabel = gen_label_rtx ();
3645 /* Don't use TARGET if it isn't a register, is a hard register,
3646 or is the wrong mode. */
3647 if (GET_CODE (target) != REG
3648 || REGNO (target) < FIRST_PSEUDO_REGISTER
3649 || GET_MODE (target) != fmode)
3650 target = gen_reg_rtx (fmode);
3652 imode = GET_MODE (from);
3653 do_pending_stack_adjust ();
3655 /* Test whether the sign bit is set. */
3656 emit_cmp_insn (from, const0_rtx, GE, NULL_RTX, imode, 0, 0);
3657 emit_jump_insn (gen_blt (neglabel));
3659 /* The sign bit is not set. Convert as signed. */
3660 expand_float (target, from, 0);
3661 emit_jump_insn (gen_jump (label));
3662 emit_barrier ();
3664 /* The sign bit is set.
3665 Convert to a usable (positive signed) value by shifting right
3666 one bit, while remembering if a nonzero bit was shifted
3667 out; i.e., compute (from & 1) | (from >> 1). */
3669 emit_label (neglabel);
3670 temp = expand_binop (imode, and_optab, from, const1_rtx,
3671 NULL_RTX, 1, OPTAB_LIB_WIDEN);
3672 temp1 = expand_shift (RSHIFT_EXPR, imode, from, integer_one_node,
3673 NULL_RTX, 1);
3674 temp = expand_binop (imode, ior_optab, temp, temp1, temp, 1,
3675 OPTAB_LIB_WIDEN);
3676 expand_float (target, temp, 0);
3678 /* Multiply by 2 to undo the shift above. */
3679 temp = expand_binop (fmode, add_optab, target, target,
3680 target, 0, OPTAB_LIB_WIDEN);
3681 if (temp != target)
3682 emit_move_insn (target, temp);
3684 do_pending_stack_adjust ();
3685 emit_label (label);
3686 goto done;
3690 /* If we are about to do some arithmetic to correct for an
3691 unsigned operand, do it in a pseudo-register. */
3693 if (GET_MODE (to) != fmode
3694 || GET_CODE (to) != REG || REGNO (to) < FIRST_PSEUDO_REGISTER)
3695 target = gen_reg_rtx (fmode);
3697 /* Convert as signed integer to floating. */
3698 expand_float (target, from, 0);
3700 /* If FROM is negative (and therefore TO is negative),
3701 correct its value by 2**bitwidth. */
3703 do_pending_stack_adjust ();
3704 emit_cmp_insn (from, const0_rtx, GE, NULL_RTX, GET_MODE (from), 0, 0);
3705 emit_jump_insn (gen_bge (label));
3707 /* On SCO 3.2.1, ldexp rejects values outside [0.5, 1).
3708 Rather than setting up a dconst_dot_5, let's hope SCO
3709 fixes the bug. */
3710 offset = REAL_VALUE_LDEXP (dconst1, GET_MODE_BITSIZE (GET_MODE (from)));
3711 temp = expand_binop (fmode, add_optab, target,
3712 CONST_DOUBLE_FROM_REAL_VALUE (offset, fmode),
3713 target, 0, OPTAB_LIB_WIDEN);
3714 if (temp != target)
3715 emit_move_insn (target, temp);
3717 do_pending_stack_adjust ();
3718 emit_label (label);
3719 goto done;
3721 #endif
3723 /* No hardware instruction available; call a library routine to convert from
3724 SImode, DImode, or TImode into SFmode, DFmode, XFmode, or TFmode. */
3726 rtx libfcn;
3727 rtx insns;
3728 rtx value;
3730 to = protect_from_queue (to, 1);
3731 from = protect_from_queue (from, 0);
3733 if (GET_MODE_SIZE (GET_MODE (from)) < GET_MODE_SIZE (SImode))
3734 from = convert_to_mode (SImode, from, unsignedp);
3736 if (flag_force_mem)
3737 from = force_not_mem (from);
3739 if (GET_MODE (to) == SFmode)
3741 if (GET_MODE (from) == SImode)
3742 libfcn = floatsisf_libfunc;
3743 else if (GET_MODE (from) == DImode)
3744 libfcn = floatdisf_libfunc;
3745 else if (GET_MODE (from) == TImode)
3746 libfcn = floattisf_libfunc;
3747 else
3748 abort ();
3750 else if (GET_MODE (to) == DFmode)
3752 if (GET_MODE (from) == SImode)
3753 libfcn = floatsidf_libfunc;
3754 else if (GET_MODE (from) == DImode)
3755 libfcn = floatdidf_libfunc;
3756 else if (GET_MODE (from) == TImode)
3757 libfcn = floattidf_libfunc;
3758 else
3759 abort ();
3761 else if (GET_MODE (to) == XFmode)
3763 if (GET_MODE (from) == SImode)
3764 libfcn = floatsixf_libfunc;
3765 else if (GET_MODE (from) == DImode)
3766 libfcn = floatdixf_libfunc;
3767 else if (GET_MODE (from) == TImode)
3768 libfcn = floattixf_libfunc;
3769 else
3770 abort ();
3772 else if (GET_MODE (to) == TFmode)
3774 if (GET_MODE (from) == SImode)
3775 libfcn = floatsitf_libfunc;
3776 else if (GET_MODE (from) == DImode)
3777 libfcn = floatditf_libfunc;
3778 else if (GET_MODE (from) == TImode)
3779 libfcn = floattitf_libfunc;
3780 else
3781 abort ();
3783 else
3784 abort ();
3786 start_sequence ();
3788 value = emit_library_call_value (libfcn, NULL_RTX, 1,
3789 GET_MODE (to),
3790 1, from, GET_MODE (from));
3791 insns = get_insns ();
3792 end_sequence ();
3794 emit_libcall_block (insns, target, value,
3795 gen_rtx_FLOAT (GET_MODE (to), from));
3798 done:
3800 /* Copy result to requested destination
3801 if we have been computing in a temp location. */
3803 if (target != to)
3805 if (GET_MODE (target) == GET_MODE (to))
3806 emit_move_insn (to, target);
3807 else
3808 convert_move (to, target, 0);
3812 /* expand_fix: generate code to convert FROM to fixed point
3813 and store in TO. FROM must be floating point. */
3815 static rtx
3816 ftruncify (x)
3817 rtx x;
3819 rtx temp = gen_reg_rtx (GET_MODE (x));
3820 return expand_unop (GET_MODE (x), ftrunc_optab, x, temp, 0);
3823 void
3824 expand_fix (to, from, unsignedp)
3825 register rtx to, from;
3826 int unsignedp;
3828 enum insn_code icode;
3829 register rtx target = to;
3830 enum machine_mode fmode, imode;
3831 int must_trunc = 0;
3832 rtx libfcn = 0;
3834 /* We first try to find a pair of modes, one real and one integer, at
3835 least as wide as FROM and TO, respectively, in which we can open-code
3836 this conversion. If the integer mode is wider than the mode of TO,
3837 we can do the conversion either signed or unsigned. */
3839 for (imode = GET_MODE (to); imode != VOIDmode;
3840 imode = GET_MODE_WIDER_MODE (imode))
3841 for (fmode = GET_MODE (from); fmode != VOIDmode;
3842 fmode = GET_MODE_WIDER_MODE (fmode))
3844 int doing_unsigned = unsignedp;
3846 icode = can_fix_p (imode, fmode, unsignedp, &must_trunc);
3847 if (icode == CODE_FOR_nothing && imode != GET_MODE (to) && unsignedp)
3848 icode = can_fix_p (imode, fmode, 0, &must_trunc), doing_unsigned = 0;
3850 if (icode != CODE_FOR_nothing)
3852 to = protect_from_queue (to, 1);
3853 from = protect_from_queue (from, 0);
3855 if (fmode != GET_MODE (from))
3856 from = convert_to_mode (fmode, from, 0);
3858 if (must_trunc)
3859 from = ftruncify (from);
3861 if (imode != GET_MODE (to))
3862 target = gen_reg_rtx (imode);
3864 emit_unop_insn (icode, target, from,
3865 doing_unsigned ? UNSIGNED_FIX : FIX);
3866 if (target != to)
3867 convert_move (to, target, unsignedp);
3868 return;
3872 #if !defined (REAL_IS_NOT_DOUBLE) || defined (REAL_ARITHMETIC)
3873 /* For an unsigned conversion, there is one more way to do it.
3874 If we have a signed conversion, we generate code that compares
3875 the real value to the largest representable positive number. If if
3876 is smaller, the conversion is done normally. Otherwise, subtract
3877 one plus the highest signed number, convert, and add it back.
3879 We only need to check all real modes, since we know we didn't find
3880 anything with a wider integer mode. */
3882 if (unsignedp && GET_MODE_BITSIZE (GET_MODE (to)) <= HOST_BITS_PER_WIDE_INT)
3883 for (fmode = GET_MODE (from); fmode != VOIDmode;
3884 fmode = GET_MODE_WIDER_MODE (fmode))
3885 /* Make sure we won't lose significant bits doing this. */
3886 if (GET_MODE_BITSIZE (fmode) > GET_MODE_BITSIZE (GET_MODE (to))
3887 && CODE_FOR_nothing != can_fix_p (GET_MODE (to), fmode, 0,
3888 &must_trunc))
3890 int bitsize;
3891 REAL_VALUE_TYPE offset;
3892 rtx limit, lab1, lab2, insn;
3894 bitsize = GET_MODE_BITSIZE (GET_MODE (to));
3895 offset = REAL_VALUE_LDEXP (dconst1, bitsize - 1);
3896 limit = CONST_DOUBLE_FROM_REAL_VALUE (offset, fmode);
3897 lab1 = gen_label_rtx ();
3898 lab2 = gen_label_rtx ();
3900 emit_queue ();
3901 to = protect_from_queue (to, 1);
3902 from = protect_from_queue (from, 0);
3904 if (flag_force_mem)
3905 from = force_not_mem (from);
3907 if (fmode != GET_MODE (from))
3908 from = convert_to_mode (fmode, from, 0);
3910 /* See if we need to do the subtraction. */
3911 do_pending_stack_adjust ();
3912 emit_cmp_insn (from, limit, GE, NULL_RTX, GET_MODE (from), 0, 0);
3913 emit_jump_insn (gen_bge (lab1));
3915 /* If not, do the signed "fix" and branch around fixup code. */
3916 expand_fix (to, from, 0);
3917 emit_jump_insn (gen_jump (lab2));
3918 emit_barrier ();
3920 /* Otherwise, subtract 2**(N-1), convert to signed number,
3921 then add 2**(N-1). Do the addition using XOR since this
3922 will often generate better code. */
3923 emit_label (lab1);
3924 target = expand_binop (GET_MODE (from), sub_optab, from, limit,
3925 NULL_RTX, 0, OPTAB_LIB_WIDEN);
3926 expand_fix (to, target, 0);
3927 target = expand_binop (GET_MODE (to), xor_optab, to,
3928 GEN_INT ((HOST_WIDE_INT) 1 << (bitsize - 1)),
3929 to, 1, OPTAB_LIB_WIDEN);
3931 if (target != to)
3932 emit_move_insn (to, target);
3934 emit_label (lab2);
3936 if (mov_optab->handlers[(int) GET_MODE (to)].insn_code
3937 != CODE_FOR_nothing)
3939 /* Make a place for a REG_NOTE and add it. */
3940 insn = emit_move_insn (to, to);
3941 REG_NOTES (insn)
3942 = gen_rtx_EXPR_LIST (REG_EQUAL,
3943 gen_rtx_fmt_e (UNSIGNED_FIX,
3944 GET_MODE (to),
3945 copy_rtx (from)),
3946 REG_NOTES (insn));
3948 return;
3950 #endif
3952 /* We can't do it with an insn, so use a library call. But first ensure
3953 that the mode of TO is at least as wide as SImode, since those are the
3954 only library calls we know about. */
3956 if (GET_MODE_SIZE (GET_MODE (to)) < GET_MODE_SIZE (SImode))
3958 target = gen_reg_rtx (SImode);
3960 expand_fix (target, from, unsignedp);
3962 else if (GET_MODE (from) == SFmode)
3964 if (GET_MODE (to) == SImode)
3965 libfcn = unsignedp ? fixunssfsi_libfunc : fixsfsi_libfunc;
3966 else if (GET_MODE (to) == DImode)
3967 libfcn = unsignedp ? fixunssfdi_libfunc : fixsfdi_libfunc;
3968 else if (GET_MODE (to) == TImode)
3969 libfcn = unsignedp ? fixunssfti_libfunc : fixsfti_libfunc;
3970 else
3971 abort ();
3973 else if (GET_MODE (from) == DFmode)
3975 if (GET_MODE (to) == SImode)
3976 libfcn = unsignedp ? fixunsdfsi_libfunc : fixdfsi_libfunc;
3977 else if (GET_MODE (to) == DImode)
3978 libfcn = unsignedp ? fixunsdfdi_libfunc : fixdfdi_libfunc;
3979 else if (GET_MODE (to) == TImode)
3980 libfcn = unsignedp ? fixunsdfti_libfunc : fixdfti_libfunc;
3981 else
3982 abort ();
3984 else if (GET_MODE (from) == XFmode)
3986 if (GET_MODE (to) == SImode)
3987 libfcn = unsignedp ? fixunsxfsi_libfunc : fixxfsi_libfunc;
3988 else if (GET_MODE (to) == DImode)
3989 libfcn = unsignedp ? fixunsxfdi_libfunc : fixxfdi_libfunc;
3990 else if (GET_MODE (to) == TImode)
3991 libfcn = unsignedp ? fixunsxfti_libfunc : fixxfti_libfunc;
3992 else
3993 abort ();
3995 else if (GET_MODE (from) == TFmode)
3997 if (GET_MODE (to) == SImode)
3998 libfcn = unsignedp ? fixunstfsi_libfunc : fixtfsi_libfunc;
3999 else if (GET_MODE (to) == DImode)
4000 libfcn = unsignedp ? fixunstfdi_libfunc : fixtfdi_libfunc;
4001 else if (GET_MODE (to) == TImode)
4002 libfcn = unsignedp ? fixunstfti_libfunc : fixtfti_libfunc;
4003 else
4004 abort ();
4006 else
4007 abort ();
4009 if (libfcn)
4011 rtx insns;
4012 rtx value;
4014 to = protect_from_queue (to, 1);
4015 from = protect_from_queue (from, 0);
4017 if (flag_force_mem)
4018 from = force_not_mem (from);
4020 start_sequence ();
4022 value = emit_library_call_value (libfcn, NULL_RTX, 1, GET_MODE (to),
4024 1, from, GET_MODE (from));
4025 insns = get_insns ();
4026 end_sequence ();
4028 emit_libcall_block (insns, target, value,
4029 gen_rtx_fmt_e (unsignedp ? UNSIGNED_FIX : FIX,
4030 GET_MODE (to), from));
4033 if (target != to)
4035 if (GET_MODE (to) == GET_MODE (target))
4036 emit_move_insn (to, target);
4037 else
4038 convert_move (to, target, 0);
4042 static optab
4043 init_optab (code)
4044 enum rtx_code code;
4046 int i;
4047 optab op = (optab) xmalloc (sizeof (struct optab));
4048 op->code = code;
4049 for (i = 0; i < NUM_MACHINE_MODES; i++)
4051 op->handlers[i].insn_code = CODE_FOR_nothing;
4052 op->handlers[i].libfunc = 0;
4055 if (code != UNKNOWN)
4056 code_to_optab[(int) code] = op;
4058 return op;
4061 /* Initialize the libfunc fields of an entire group of entries in some
4062 optab. Each entry is set equal to a string consisting of a leading
4063 pair of underscores followed by a generic operation name followed by
4064 a mode name (downshifted to lower case) followed by a single character
4065 representing the number of operands for the given operation (which is
4066 usually one of the characters '2', '3', or '4').
4068 OPTABLE is the table in which libfunc fields are to be initialized.
4069 FIRST_MODE is the first machine mode index in the given optab to
4070 initialize.
4071 LAST_MODE is the last machine mode index in the given optab to
4072 initialize.
4073 OPNAME is the generic (string) name of the operation.
4074 SUFFIX is the character which specifies the number of operands for
4075 the given generic operation.
4078 static void
4079 init_libfuncs (optable, first_mode, last_mode, opname, suffix)
4080 register optab optable;
4081 register int first_mode;
4082 register int last_mode;
4083 register char *opname;
4084 register int suffix;
4086 register int mode;
4087 register unsigned opname_len = strlen (opname);
4089 for (mode = first_mode; (int) mode <= (int) last_mode;
4090 mode = (enum machine_mode) ((int) mode + 1))
4092 register char *mname = mode_name[(int) mode];
4093 register unsigned mname_len = strlen (mname);
4094 register char *libfunc_name
4095 = (char *) xmalloc (2 + opname_len + mname_len + 1 + 1);
4096 register char *p;
4097 register char *q;
4099 p = libfunc_name;
4100 *p++ = '_';
4101 *p++ = '_';
4102 for (q = opname; *q; )
4103 *p++ = *q++;
4104 for (q = mname; *q; q++)
4105 *p++ = tolower ((unsigned char)*q);
4106 *p++ = suffix;
4107 *p++ = '\0';
4108 optable->handlers[(int) mode].libfunc
4109 = gen_rtx_SYMBOL_REF (Pmode, libfunc_name);
4113 /* Initialize the libfunc fields of an entire group of entries in some
4114 optab which correspond to all integer mode operations. The parameters
4115 have the same meaning as similarly named ones for the `init_libfuncs'
4116 routine. (See above). */
4118 static void
4119 init_integral_libfuncs (optable, opname, suffix)
4120 register optab optable;
4121 register char *opname;
4122 register int suffix;
4124 init_libfuncs (optable, SImode, TImode, opname, suffix);
4127 /* Initialize the libfunc fields of an entire group of entries in some
4128 optab which correspond to all real mode operations. The parameters
4129 have the same meaning as similarly named ones for the `init_libfuncs'
4130 routine. (See above). */
4132 static void
4133 init_floating_libfuncs (optable, opname, suffix)
4134 register optab optable;
4135 register char *opname;
4136 register int suffix;
4138 init_libfuncs (optable, SFmode, TFmode, opname, suffix);
4142 /* Call this once to initialize the contents of the optabs
4143 appropriately for the current target machine. */
4145 void
4146 init_optabs ()
4148 int i;
4149 #ifdef FIXUNS_TRUNC_LIKE_FIX_TRUNC
4150 int j;
4151 #endif
4153 enum insn_code *p;
4155 /* Start by initializing all tables to contain CODE_FOR_nothing. */
4157 for (p = fixtab[0][0];
4158 p < fixtab[0][0] + sizeof fixtab / sizeof (fixtab[0][0][0]);
4159 p++)
4160 *p = CODE_FOR_nothing;
4162 for (p = fixtrunctab[0][0];
4163 p < fixtrunctab[0][0] + sizeof fixtrunctab / sizeof (fixtrunctab[0][0][0]);
4164 p++)
4165 *p = CODE_FOR_nothing;
4167 for (p = floattab[0][0];
4168 p < floattab[0][0] + sizeof floattab / sizeof (floattab[0][0][0]);
4169 p++)
4170 *p = CODE_FOR_nothing;
4172 for (p = extendtab[0][0];
4173 p < extendtab[0][0] + sizeof extendtab / sizeof extendtab[0][0][0];
4174 p++)
4175 *p = CODE_FOR_nothing;
4177 for (i = 0; i < NUM_RTX_CODE; i++)
4178 setcc_gen_code[i] = CODE_FOR_nothing;
4180 #ifdef HAVE_conditional_move
4181 for (i = 0; i < NUM_MACHINE_MODES; i++)
4182 movcc_gen_code[i] = CODE_FOR_nothing;
4183 #endif
4185 add_optab = init_optab (PLUS);
4186 sub_optab = init_optab (MINUS);
4187 smul_optab = init_optab (MULT);
4188 smul_highpart_optab = init_optab (UNKNOWN);
4189 umul_highpart_optab = init_optab (UNKNOWN);
4190 smul_widen_optab = init_optab (UNKNOWN);
4191 umul_widen_optab = init_optab (UNKNOWN);
4192 sdiv_optab = init_optab (DIV);
4193 sdivmod_optab = init_optab (UNKNOWN);
4194 udiv_optab = init_optab (UDIV);
4195 udivmod_optab = init_optab (UNKNOWN);
4196 smod_optab = init_optab (MOD);
4197 umod_optab = init_optab (UMOD);
4198 flodiv_optab = init_optab (DIV);
4199 ftrunc_optab = init_optab (UNKNOWN);
4200 and_optab = init_optab (AND);
4201 ior_optab = init_optab (IOR);
4202 xor_optab = init_optab (XOR);
4203 ashl_optab = init_optab (ASHIFT);
4204 ashr_optab = init_optab (ASHIFTRT);
4205 lshr_optab = init_optab (LSHIFTRT);
4206 rotl_optab = init_optab (ROTATE);
4207 rotr_optab = init_optab (ROTATERT);
4208 smin_optab = init_optab (SMIN);
4209 smax_optab = init_optab (SMAX);
4210 umin_optab = init_optab (UMIN);
4211 umax_optab = init_optab (UMAX);
4212 mov_optab = init_optab (UNKNOWN);
4213 movstrict_optab = init_optab (UNKNOWN);
4214 cmp_optab = init_optab (UNKNOWN);
4215 ucmp_optab = init_optab (UNKNOWN);
4216 tst_optab = init_optab (UNKNOWN);
4217 neg_optab = init_optab (NEG);
4218 abs_optab = init_optab (ABS);
4219 one_cmpl_optab = init_optab (NOT);
4220 ffs_optab = init_optab (FFS);
4221 sqrt_optab = init_optab (SQRT);
4222 sin_optab = init_optab (UNKNOWN);
4223 cos_optab = init_optab (UNKNOWN);
4224 strlen_optab = init_optab (UNKNOWN);
4226 for (i = 0; i < NUM_MACHINE_MODES; i++)
4228 movstr_optab[i] = CODE_FOR_nothing;
4229 clrstr_optab[i] = CODE_FOR_nothing;
4231 #ifdef HAVE_SECONDARY_RELOADS
4232 reload_in_optab[i] = reload_out_optab[i] = CODE_FOR_nothing;
4233 #endif
4236 /* Fill in the optabs with the insns we support. */
4237 init_all_optabs ();
4239 #ifdef FIXUNS_TRUNC_LIKE_FIX_TRUNC
4240 /* This flag says the same insns that convert to a signed fixnum
4241 also convert validly to an unsigned one. */
4242 for (i = 0; i < NUM_MACHINE_MODES; i++)
4243 for (j = 0; j < NUM_MACHINE_MODES; j++)
4244 fixtrunctab[i][j][1] = fixtrunctab[i][j][0];
4245 #endif
4247 #ifdef EXTRA_CC_MODES
4248 init_mov_optab ();
4249 #endif
4251 /* Initialize the optabs with the names of the library functions. */
4252 init_integral_libfuncs (add_optab, "add", '3');
4253 init_floating_libfuncs (add_optab, "add", '3');
4254 init_integral_libfuncs (sub_optab, "sub", '3');
4255 init_floating_libfuncs (sub_optab, "sub", '3');
4256 init_integral_libfuncs (smul_optab, "mul", '3');
4257 init_floating_libfuncs (smul_optab, "mul", '3');
4258 init_integral_libfuncs (sdiv_optab, "div", '3');
4259 init_integral_libfuncs (udiv_optab, "udiv", '3');
4260 init_integral_libfuncs (sdivmod_optab, "divmod", '4');
4261 init_integral_libfuncs (udivmod_optab, "udivmod", '4');
4262 init_integral_libfuncs (smod_optab, "mod", '3');
4263 init_integral_libfuncs (umod_optab, "umod", '3');
4264 init_floating_libfuncs (flodiv_optab, "div", '3');
4265 init_floating_libfuncs (ftrunc_optab, "ftrunc", '2');
4266 init_integral_libfuncs (and_optab, "and", '3');
4267 init_integral_libfuncs (ior_optab, "ior", '3');
4268 init_integral_libfuncs (xor_optab, "xor", '3');
4269 init_integral_libfuncs (ashl_optab, "ashl", '3');
4270 init_integral_libfuncs (ashr_optab, "ashr", '3');
4271 init_integral_libfuncs (lshr_optab, "lshr", '3');
4272 init_integral_libfuncs (smin_optab, "min", '3');
4273 init_floating_libfuncs (smin_optab, "min", '3');
4274 init_integral_libfuncs (smax_optab, "max", '3');
4275 init_floating_libfuncs (smax_optab, "max", '3');
4276 init_integral_libfuncs (umin_optab, "umin", '3');
4277 init_integral_libfuncs (umax_optab, "umax", '3');
4278 init_integral_libfuncs (neg_optab, "neg", '2');
4279 init_floating_libfuncs (neg_optab, "neg", '2');
4280 init_integral_libfuncs (one_cmpl_optab, "one_cmpl", '2');
4281 init_integral_libfuncs (ffs_optab, "ffs", '2');
4283 /* Comparison libcalls for integers MUST come in pairs, signed/unsigned. */
4284 init_integral_libfuncs (cmp_optab, "cmp", '2');
4285 init_integral_libfuncs (ucmp_optab, "ucmp", '2');
4286 init_floating_libfuncs (cmp_optab, "cmp", '2');
4288 #ifdef MULSI3_LIBCALL
4289 smul_optab->handlers[(int) SImode].libfunc
4290 = gen_rtx_SYMBOL_REF (Pmode, MULSI3_LIBCALL);
4291 #endif
4292 #ifdef MULDI3_LIBCALL
4293 smul_optab->handlers[(int) DImode].libfunc
4294 = gen_rtx_SYMBOL_REF (Pmode, MULDI3_LIBCALL);
4295 #endif
4297 #ifdef DIVSI3_LIBCALL
4298 sdiv_optab->handlers[(int) SImode].libfunc
4299 = gen_rtx_SYMBOL_REF (Pmode, DIVSI3_LIBCALL);
4300 #endif
4301 #ifdef DIVDI3_LIBCALL
4302 sdiv_optab->handlers[(int) DImode].libfunc
4303 = gen_rtx_SYMBOL_REF (Pmode, DIVDI3_LIBCALL);
4304 #endif
4306 #ifdef UDIVSI3_LIBCALL
4307 udiv_optab->handlers[(int) SImode].libfunc
4308 = gen_rtx_SYMBOL_REF (Pmode, UDIVSI3_LIBCALL);
4309 #endif
4310 #ifdef UDIVDI3_LIBCALL
4311 udiv_optab->handlers[(int) DImode].libfunc
4312 = gen_rtx_SYMBOL_REF (Pmode, UDIVDI3_LIBCALL);
4313 #endif
4315 #ifdef MODSI3_LIBCALL
4316 smod_optab->handlers[(int) SImode].libfunc
4317 = gen_rtx_SYMBOL_REF (Pmode, MODSI3_LIBCALL);
4318 #endif
4319 #ifdef MODDI3_LIBCALL
4320 smod_optab->handlers[(int) DImode].libfunc
4321 = gen_rtx_SYMBOL_REF (Pmode, MODDI3_LIBCALL);
4322 #endif
4324 #ifdef UMODSI3_LIBCALL
4325 umod_optab->handlers[(int) SImode].libfunc
4326 = gen_rtx_SYMBOL_REF (Pmode, UMODSI3_LIBCALL);
4327 #endif
4328 #ifdef UMODDI3_LIBCALL
4329 umod_optab->handlers[(int) DImode].libfunc
4330 = gen_rtx_SYMBOL_REF (Pmode, UMODDI3_LIBCALL);
4331 #endif
4333 /* Use cabs for DC complex abs, since systems generally have cabs.
4334 Don't define any libcall for SCmode, so that cabs will be used. */
4335 abs_optab->handlers[(int) DCmode].libfunc
4336 = gen_rtx_SYMBOL_REF (Pmode, "cabs");
4338 /* The ffs function operates on `int'. */
4339 #ifndef INT_TYPE_SIZE
4340 #define INT_TYPE_SIZE BITS_PER_WORD
4341 #endif
4342 ffs_optab->handlers[(int) mode_for_size (INT_TYPE_SIZE, MODE_INT, 0)] .libfunc
4343 = gen_rtx_SYMBOL_REF (Pmode, "ffs");
4345 extendsfdf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__extendsfdf2");
4346 extendsfxf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__extendsfxf2");
4347 extendsftf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__extendsftf2");
4348 extenddfxf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__extenddfxf2");
4349 extenddftf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__extenddftf2");
4351 truncdfsf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__truncdfsf2");
4352 truncxfsf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__truncxfsf2");
4353 trunctfsf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__trunctfsf2");
4354 truncxfdf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__truncxfdf2");
4355 trunctfdf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__trunctfdf2");
4357 memcpy_libfunc = gen_rtx_SYMBOL_REF (Pmode, "memcpy");
4358 bcopy_libfunc = gen_rtx_SYMBOL_REF (Pmode, "bcopy");
4359 memcmp_libfunc = gen_rtx_SYMBOL_REF (Pmode, "memcmp");
4360 bcmp_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__gcc_bcmp");
4361 memset_libfunc = gen_rtx_SYMBOL_REF (Pmode, "memset");
4362 bzero_libfunc = gen_rtx_SYMBOL_REF (Pmode, "bzero");
4364 throw_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__throw");
4365 rethrow_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__rethrow");
4366 sjthrow_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__sjthrow");
4367 sjpopnthrow_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__sjpopnthrow");
4368 terminate_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__terminate");
4369 eh_rtime_match_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__eh_rtime_match");
4370 #ifndef DONT_USE_BUILTIN_SETJMP
4371 setjmp_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__builtin_setjmp");
4372 longjmp_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__builtin_longjmp");
4373 #else
4374 setjmp_libfunc = gen_rtx_SYMBOL_REF (Pmode, "setjmp");
4375 longjmp_libfunc = gen_rtx_SYMBOL_REF (Pmode, "longjmp");
4376 #endif
4378 eqhf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__eqhf2");
4379 nehf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__nehf2");
4380 gthf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__gthf2");
4381 gehf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__gehf2");
4382 lthf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__lthf2");
4383 lehf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__lehf2");
4385 eqsf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__eqsf2");
4386 nesf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__nesf2");
4387 gtsf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__gtsf2");
4388 gesf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__gesf2");
4389 ltsf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__ltsf2");
4390 lesf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__lesf2");
4392 eqdf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__eqdf2");
4393 nedf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__nedf2");
4394 gtdf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__gtdf2");
4395 gedf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__gedf2");
4396 ltdf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__ltdf2");
4397 ledf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__ledf2");
4399 eqxf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__eqxf2");
4400 nexf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__nexf2");
4401 gtxf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__gtxf2");
4402 gexf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__gexf2");
4403 ltxf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__ltxf2");
4404 lexf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__lexf2");
4406 eqtf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__eqtf2");
4407 netf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__netf2");
4408 gttf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__gttf2");
4409 getf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__getf2");
4410 lttf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__lttf2");
4411 letf2_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__letf2");
4413 floatsisf_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__floatsisf");
4414 floatdisf_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__floatdisf");
4415 floattisf_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__floattisf");
4417 floatsidf_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__floatsidf");
4418 floatdidf_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__floatdidf");
4419 floattidf_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__floattidf");
4421 floatsixf_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__floatsixf");
4422 floatdixf_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__floatdixf");
4423 floattixf_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__floattixf");
4425 floatsitf_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__floatsitf");
4426 floatditf_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__floatditf");
4427 floattitf_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__floattitf");
4429 fixsfsi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixsfsi");
4430 fixsfdi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixsfdi");
4431 fixsfti_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixsfti");
4433 fixdfsi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixdfsi");
4434 fixdfdi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixdfdi");
4435 fixdfti_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixdfti");
4437 fixxfsi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixxfsi");
4438 fixxfdi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixxfdi");
4439 fixxfti_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixxfti");
4441 fixtfsi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixtfsi");
4442 fixtfdi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixtfdi");
4443 fixtfti_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixtfti");
4445 fixunssfsi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixunssfsi");
4446 fixunssfdi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixunssfdi");
4447 fixunssfti_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixunssfti");
4449 fixunsdfsi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixunsdfsi");
4450 fixunsdfdi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixunsdfdi");
4451 fixunsdfti_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixunsdfti");
4453 fixunsxfsi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixunsxfsi");
4454 fixunsxfdi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixunsxfdi");
4455 fixunsxfti_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixunsxfti");
4457 fixunstfsi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixunstfsi");
4458 fixunstfdi_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixunstfdi");
4459 fixunstfti_libfunc = gen_rtx_SYMBOL_REF (Pmode, "__fixunstfti");
4461 /* For check-memory-usage. */
4462 chkr_check_addr_libfunc = gen_rtx_SYMBOL_REF (Pmode, "chkr_check_addr");
4463 chkr_set_right_libfunc = gen_rtx_SYMBOL_REF (Pmode, "chkr_set_right");
4464 chkr_copy_bitmap_libfunc = gen_rtx_SYMBOL_REF (Pmode, "chkr_copy_bitmap");
4465 chkr_check_exec_libfunc = gen_rtx_SYMBOL_REF (Pmode, "chkr_check_exec");
4466 chkr_check_str_libfunc = gen_rtx_SYMBOL_REF (Pmode, "chkr_check_str");
4468 /* For function entry/exit instrumentation. */
4469 profile_function_entry_libfunc
4470 = gen_rtx_SYMBOL_REF (Pmode, "__cyg_profile_func_enter");
4471 profile_function_exit_libfunc
4472 = gen_rtx_SYMBOL_REF (Pmode, "__cyg_profile_func_exit");
4474 #ifdef HAVE_conditional_trap
4475 init_traps ();
4476 #endif
4478 #ifdef INIT_TARGET_OPTABS
4479 /* Allow the target to add more libcalls or rename some, etc. */
4480 INIT_TARGET_OPTABS;
4481 #endif
4484 #ifdef BROKEN_LDEXP
4486 /* SCO 3.2 apparently has a broken ldexp. */
4488 double
4489 ldexp(x,n)
4490 double x;
4491 int n;
4493 if (n > 0)
4494 while (n--)
4495 x *= 2;
4497 return x;
4499 #endif /* BROKEN_LDEXP */
4501 #ifdef HAVE_conditional_trap
4502 /* The insn generating function can not take an rtx_code argument.
4503 TRAP_RTX is used as an rtx argument. Its code is replaced with
4504 the code to be used in the trap insn and all other fields are
4505 ignored.
4507 ??? Will need to change to support garbage collection. */
4508 static rtx trap_rtx;
4510 static void
4511 init_traps ()
4513 if (HAVE_conditional_trap)
4514 trap_rtx = gen_rtx_fmt_ee (EQ, VOIDmode, NULL_RTX, NULL_RTX);
4516 #endif
4518 /* Generate insns to trap with code TCODE if OP1 and OP2 satisfy condition
4519 CODE. Return 0 on failure. */
4522 gen_cond_trap (code, op1, op2, tcode)
4523 enum rtx_code code ATTRIBUTE_UNUSED;
4524 rtx op1, op2 ATTRIBUTE_UNUSED, tcode ATTRIBUTE_UNUSED;
4526 enum machine_mode mode = GET_MODE (op1);
4528 if (mode == VOIDmode)
4529 return 0;
4531 #ifdef HAVE_conditional_trap
4532 if (HAVE_conditional_trap
4533 && cmp_optab->handlers[(int) mode].insn_code != CODE_FOR_nothing)
4535 rtx insn;
4536 emit_insn (GEN_FCN (cmp_optab->handlers[(int) mode].insn_code) (op1, op2));
4537 PUT_CODE (trap_rtx, code);
4538 insn = gen_conditional_trap (trap_rtx, tcode);
4539 if (insn)
4540 return insn;
4542 #endif
4544 return 0;