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1.1 root 1: /* Convert tree expression to rtl instructions, for GNU compiler.
2: Copyright (C) 1988, 1992 Free Software Foundation, Inc.
3:
4: This file is part of GNU CC.
5:
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.
10:
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.
15:
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, 675 Mass Ave, Cambridge, MA 02139, USA. */
19:
20:
21: #include "config.h"
22: #include "rtl.h"
23: #include "tree.h"
24: #include "flags.h"
25: #include "function.h"
26: #include "insn-flags.h"
27: #include "insn-codes.h"
28: #include "expr.h"
29: #include "insn-config.h"
30: #include "recog.h"
31: #include "output.h"
32: #include "gvarargs.h"
33: #include "typeclass.h"
34:
35: #define CEIL(x,y) (((x) + (y) - 1) / (y))
36:
37: /* Decide whether a function's arguments should be processed
38: from first to last or from last to first. */
39:
40: #ifdef STACK_GROWS_DOWNWARD
41: #ifdef PUSH_ROUNDING
42: #define PUSH_ARGS_REVERSED /* If it's last to first */
43: #endif
44: #endif
45:
46: #ifndef STACK_PUSH_CODE
47: #ifdef STACK_GROWS_DOWNWARD
48: #define STACK_PUSH_CODE PRE_DEC
49: #else
50: #define STACK_PUSH_CODE PRE_INC
51: #endif
52: #endif
53:
54: /* Like STACK_BOUNDARY but in units of bytes, not bits. */
55: #define STACK_BYTES (STACK_BOUNDARY / BITS_PER_UNIT)
56:
57: /* If this is nonzero, we do not bother generating VOLATILE
58: around volatile memory references, and we are willing to
59: output indirect addresses. If cse is to follow, we reject
60: indirect addresses so a useful potential cse is generated;
61: if it is used only once, instruction combination will produce
62: the same indirect address eventually. */
63: int cse_not_expected;
64:
65: /* Nonzero to generate code for all the subroutines within an
66: expression before generating the upper levels of the expression.
67: Nowadays this is never zero. */
68: int do_preexpand_calls = 1;
69:
70: /* Number of units that we should eventually pop off the stack.
71: These are the arguments to function calls that have already returned. */
72: int pending_stack_adjust;
73:
74: /* Nonzero means stack pops must not be deferred, and deferred stack
75: pops must not be output. It is nonzero inside a function call,
76: inside a conditional expression, inside a statement expression,
77: and in other cases as well. */
78: int inhibit_defer_pop;
79:
80: /* A list of all cleanups which belong to the arguments of
81: function calls being expanded by expand_call. */
82: tree cleanups_this_call;
83:
84: /* Nonzero means __builtin_saveregs has already been done in this function.
85: The value is the pseudoreg containing the value __builtin_saveregs
86: returned. */
87: static rtx saveregs_value;
88:
89: rtx store_expr ();
90: static void store_constructor ();
91: static rtx store_field ();
92: static rtx expand_builtin ();
93: static rtx compare ();
94: static rtx do_store_flag ();
95: static void preexpand_calls ();
96: static rtx expand_increment ();
97: static void init_queue ();
98:
99: void do_pending_stack_adjust ();
100: static void do_jump_for_compare ();
101: static void do_jump_by_parts_equality ();
102: static void do_jump_by_parts_equality_rtx ();
103: static void do_jump_by_parts_greater ();
104:
1.1.1.4 ! root 105: /* Record for each mode whether we can move a register directly to or
! 106: from an object of that mode in memory. If we can't, we won't try
! 107: to use that mode directly when accessing a field of that mode. */
! 108:
! 109: static char direct_load[NUM_MACHINE_MODES];
! 110: static char direct_store[NUM_MACHINE_MODES];
! 111:
1.1 root 112: /* MOVE_RATIO is the number of move instructions that is better than
113: a block move. */
114:
115: #ifndef MOVE_RATIO
1.1.1.4 ! root 116: #if defined (HAVE_movstrqi) || defined (HAVE_movstrhi) || defined (HAVE_movstrsi) || defined (HAVE_movstrdi) || defined (HAVE_movstrti)
1.1 root 117: #define MOVE_RATIO 2
118: #else
119: /* A value of around 6 would minimize code size; infinity would minimize
120: execution time. */
121: #define MOVE_RATIO 15
122: #endif
123: #endif
1.1.1.2 root 124:
1.1.1.4 ! root 125: /* This array records the insn_code of insns to perform block moves. */
! 126: static enum insn_code movstr_optab[NUM_MACHINE_MODES];
! 127:
1.1.1.2 root 128: /* SLOW_UNALIGNED_ACCESS is non-zero if unaligned accesses are very slow. */
129:
130: #ifndef SLOW_UNALIGNED_ACCESS
131: #define SLOW_UNALIGNED_ACCESS 0
132: #endif
1.1 root 133:
1.1.1.4 ! root 134: /* This is run once per compilation to set up which modes can be used
! 135: directly in memory and to initialize the block move optab. */
! 136:
! 137: void
! 138: init_expr_once ()
! 139: {
! 140: rtx insn, pat;
! 141: enum machine_mode mode;
! 142: /* Try indexing by frame ptr and try by stack ptr.
! 143: It is known that on the Convex the stack ptr isn't a valid index.
! 144: With luck, one or the other is valid on any machine. */
! 145: rtx mem = gen_rtx (MEM, VOIDmode, stack_pointer_rtx);
! 146: rtx mem1 = gen_rtx (MEM, VOIDmode, frame_pointer_rtx);
! 147:
! 148: start_sequence ();
! 149: insn = emit_insn (gen_rtx (SET, 0, 0));
! 150: pat = PATTERN (insn);
! 151:
! 152: for (mode = VOIDmode; (int) mode < NUM_MACHINE_MODES;
! 153: mode = (enum machine_mode) ((int) mode + 1))
! 154: {
! 155: int regno;
! 156: rtx reg;
! 157: int num_clobbers;
! 158:
! 159: direct_load[(int) mode] = direct_store[(int) mode] = 0;
! 160: PUT_MODE (mem, mode);
! 161: PUT_MODE (mem1, mode);
! 162:
! 163: /* See if there is some register that can be used in this mode and
! 164: directly loaded or stored from memory. */
! 165:
! 166: if (mode != VOIDmode && mode != BLKmode)
! 167: for (regno = 0; regno < FIRST_PSEUDO_REGISTER
! 168: && (direct_load[(int) mode] == 0 || direct_store[(int) mode] == 0);
! 169: regno++)
! 170: {
! 171: if (! HARD_REGNO_MODE_OK (regno, mode))
! 172: continue;
! 173:
! 174: reg = gen_rtx (REG, mode, regno);
! 175:
! 176: SET_SRC (pat) = mem;
! 177: SET_DEST (pat) = reg;
! 178: if (recog (pat, insn, &num_clobbers) >= 0)
! 179: direct_load[(int) mode] = 1;
! 180:
! 181: SET_SRC (pat) = mem1;
! 182: SET_DEST (pat) = reg;
! 183: if (recog (pat, insn, &num_clobbers) >= 0)
! 184: direct_load[(int) mode] = 1;
! 185:
! 186: SET_SRC (pat) = reg;
! 187: SET_DEST (pat) = mem;
! 188: if (recog (pat, insn, &num_clobbers) >= 0)
! 189: direct_store[(int) mode] = 1;
! 190:
! 191: SET_SRC (pat) = reg;
! 192: SET_DEST (pat) = mem1;
! 193: if (recog (pat, insn, &num_clobbers) >= 0)
! 194: direct_store[(int) mode] = 1;
! 195: }
! 196:
! 197: movstr_optab[(int) mode] = CODE_FOR_nothing;
! 198: }
! 199:
! 200: end_sequence ();
! 201:
! 202: #ifdef HAVE_movstrqi
! 203: if (HAVE_movstrqi)
! 204: movstr_optab[(int) QImode] = CODE_FOR_movstrqi;
! 205: #endif
! 206: #ifdef HAVE_movstrhi
! 207: if (HAVE_movstrhi)
! 208: movstr_optab[(int) HImode] = CODE_FOR_movstrhi;
! 209: #endif
! 210: #ifdef HAVE_movstrsi
! 211: if (HAVE_movstrsi)
! 212: movstr_optab[(int) SImode] = CODE_FOR_movstrsi;
! 213: #endif
! 214: #ifdef HAVE_movstrdi
! 215: if (HAVE_movstrdi)
! 216: movstr_optab[(int) DImode] = CODE_FOR_movstrdi;
! 217: #endif
! 218: #ifdef HAVE_movstrti
! 219: if (HAVE_movstrti)
! 220: movstr_optab[(int) TImode] = CODE_FOR_movstrti;
! 221: #endif
! 222: }
! 223:
1.1 root 224: /* This is run at the start of compiling a function. */
225:
226: void
227: init_expr ()
228: {
229: init_queue ();
230:
231: pending_stack_adjust = 0;
232: inhibit_defer_pop = 0;
233: cleanups_this_call = 0;
234: saveregs_value = 0;
1.1.1.2 root 235: forced_labels = 0;
1.1 root 236: }
237:
238: /* Save all variables describing the current status into the structure *P.
239: This is used before starting a nested function. */
240:
241: void
242: save_expr_status (p)
243: struct function *p;
244: {
245: /* Instead of saving the postincrement queue, empty it. */
246: emit_queue ();
247:
248: p->pending_stack_adjust = pending_stack_adjust;
249: p->inhibit_defer_pop = inhibit_defer_pop;
250: p->cleanups_this_call = cleanups_this_call;
251: p->saveregs_value = saveregs_value;
1.1.1.2 root 252: p->forced_labels = forced_labels;
1.1 root 253:
254: pending_stack_adjust = 0;
255: inhibit_defer_pop = 0;
256: cleanups_this_call = 0;
257: saveregs_value = 0;
1.1.1.2 root 258: forced_labels = 0;
1.1 root 259: }
260:
261: /* Restore all variables describing the current status from the structure *P.
262: This is used after a nested function. */
263:
264: void
265: restore_expr_status (p)
266: struct function *p;
267: {
268: pending_stack_adjust = p->pending_stack_adjust;
269: inhibit_defer_pop = p->inhibit_defer_pop;
270: cleanups_this_call = p->cleanups_this_call;
271: saveregs_value = p->saveregs_value;
1.1.1.2 root 272: forced_labels = p->forced_labels;
1.1 root 273: }
274:
275: /* Manage the queue of increment instructions to be output
276: for POSTINCREMENT_EXPR expressions, etc. */
277:
278: static rtx pending_chain;
279:
280: /* Queue up to increment (or change) VAR later. BODY says how:
281: BODY should be the same thing you would pass to emit_insn
282: to increment right away. It will go to emit_insn later on.
283:
284: The value is a QUEUED expression to be used in place of VAR
285: where you want to guarantee the pre-incrementation value of VAR. */
286:
287: static rtx
288: enqueue_insn (var, body)
289: rtx var, body;
290: {
291: pending_chain = gen_rtx (QUEUED, GET_MODE (var),
1.1.1.4 ! root 292: var, NULL_RTX, NULL_RTX, body, pending_chain);
1.1 root 293: return pending_chain;
294: }
295:
296: /* Use protect_from_queue to convert a QUEUED expression
297: into something that you can put immediately into an instruction.
298: If the queued incrementation has not happened yet,
299: protect_from_queue returns the variable itself.
300: If the incrementation has happened, protect_from_queue returns a temp
301: that contains a copy of the old value of the variable.
302:
303: Any time an rtx which might possibly be a QUEUED is to be put
304: into an instruction, it must be passed through protect_from_queue first.
305: QUEUED expressions are not meaningful in instructions.
306:
307: Do not pass a value through protect_from_queue and then hold
308: on to it for a while before putting it in an instruction!
309: If the queue is flushed in between, incorrect code will result. */
310:
311: rtx
312: protect_from_queue (x, modify)
313: register rtx x;
314: int modify;
315: {
316: register RTX_CODE code = GET_CODE (x);
317:
318: #if 0 /* A QUEUED can hang around after the queue is forced out. */
319: /* Shortcut for most common case. */
320: if (pending_chain == 0)
321: return x;
322: #endif
323:
324: if (code != QUEUED)
325: {
326: /* A special hack for read access to (MEM (QUEUED ...))
327: to facilitate use of autoincrement.
328: Make a copy of the contents of the memory location
329: rather than a copy of the address, but not
330: if the value is of mode BLKmode. */
331: if (code == MEM && GET_MODE (x) != BLKmode
332: && GET_CODE (XEXP (x, 0)) == QUEUED && !modify)
333: {
334: register rtx y = XEXP (x, 0);
335: XEXP (x, 0) = QUEUED_VAR (y);
336: if (QUEUED_INSN (y))
337: {
338: register rtx temp = gen_reg_rtx (GET_MODE (x));
339: emit_insn_before (gen_move_insn (temp, x),
340: QUEUED_INSN (y));
341: return temp;
342: }
343: return x;
344: }
345: /* Otherwise, recursively protect the subexpressions of all
346: the kinds of rtx's that can contain a QUEUED. */
347: if (code == MEM)
348: XEXP (x, 0) = protect_from_queue (XEXP (x, 0), 0);
349: else if (code == PLUS || code == MULT)
350: {
351: XEXP (x, 0) = protect_from_queue (XEXP (x, 0), 0);
352: XEXP (x, 1) = protect_from_queue (XEXP (x, 1), 0);
353: }
354: return x;
355: }
356: /* If the increment has not happened, use the variable itself. */
357: if (QUEUED_INSN (x) == 0)
358: return QUEUED_VAR (x);
359: /* If the increment has happened and a pre-increment copy exists,
360: use that copy. */
361: if (QUEUED_COPY (x) != 0)
362: return QUEUED_COPY (x);
363: /* The increment has happened but we haven't set up a pre-increment copy.
364: Set one up now, and use it. */
365: QUEUED_COPY (x) = gen_reg_rtx (GET_MODE (QUEUED_VAR (x)));
366: emit_insn_before (gen_move_insn (QUEUED_COPY (x), QUEUED_VAR (x)),
367: QUEUED_INSN (x));
368: return QUEUED_COPY (x);
369: }
370:
371: /* Return nonzero if X contains a QUEUED expression:
372: if it contains anything that will be altered by a queued increment.
373: We handle only combinations of MEM, PLUS, MINUS and MULT operators
374: since memory addresses generally contain only those. */
375:
376: static int
377: queued_subexp_p (x)
378: rtx x;
379: {
380: register enum rtx_code code = GET_CODE (x);
381: switch (code)
382: {
383: case QUEUED:
384: return 1;
385: case MEM:
386: return queued_subexp_p (XEXP (x, 0));
387: case MULT:
388: case PLUS:
389: case MINUS:
390: return queued_subexp_p (XEXP (x, 0))
391: || queued_subexp_p (XEXP (x, 1));
392: }
393: return 0;
394: }
395:
396: /* Perform all the pending incrementations. */
397:
398: void
399: emit_queue ()
400: {
401: register rtx p;
402: while (p = pending_chain)
403: {
404: QUEUED_INSN (p) = emit_insn (QUEUED_BODY (p));
405: pending_chain = QUEUED_NEXT (p);
406: }
407: }
408:
409: static void
410: init_queue ()
411: {
412: if (pending_chain)
413: abort ();
414: }
415:
416: /* Copy data from FROM to TO, where the machine modes are not the same.
417: Both modes may be integer, or both may be floating.
418: UNSIGNEDP should be nonzero if FROM is an unsigned type.
419: This causes zero-extension instead of sign-extension. */
420:
421: void
422: convert_move (to, from, unsignedp)
423: register rtx to, from;
424: int unsignedp;
425: {
426: enum machine_mode to_mode = GET_MODE (to);
427: enum machine_mode from_mode = GET_MODE (from);
428: int to_real = GET_MODE_CLASS (to_mode) == MODE_FLOAT;
429: int from_real = GET_MODE_CLASS (from_mode) == MODE_FLOAT;
430: enum insn_code code;
431: rtx libcall;
432:
433: /* rtx code for making an equivalent value. */
434: enum rtx_code equiv_code = (unsignedp ? ZERO_EXTEND : SIGN_EXTEND);
435:
436: to = protect_from_queue (to, 1);
437: from = protect_from_queue (from, 0);
438:
439: if (to_real != from_real)
440: abort ();
441:
1.1.1.4 ! root 442: /* If FROM is a SUBREG that indicates that we have already done at least
! 443: the required extension, strip it. We don't handle such SUBREGs as
! 444: TO here. */
! 445:
! 446: if (GET_CODE (from) == SUBREG && SUBREG_PROMOTED_VAR_P (from)
! 447: && (GET_MODE_SIZE (GET_MODE (SUBREG_REG (from)))
! 448: >= GET_MODE_SIZE (to_mode))
! 449: && SUBREG_PROMOTED_UNSIGNED_P (from) == unsignedp)
! 450: from = gen_lowpart (to_mode, from), from_mode = to_mode;
! 451:
! 452: if (GET_CODE (to) == SUBREG && SUBREG_PROMOTED_VAR_P (to))
! 453: abort ();
! 454:
1.1 root 455: if (to_mode == from_mode
456: || (from_mode == VOIDmode && CONSTANT_P (from)))
457: {
458: emit_move_insn (to, from);
459: return;
460: }
461:
462: if (to_real)
463: {
464: #ifdef HAVE_extendsfdf2
465: if (HAVE_extendsfdf2 && from_mode == SFmode && to_mode == DFmode)
466: {
467: emit_unop_insn (CODE_FOR_extendsfdf2, to, from, UNKNOWN);
468: return;
469: }
470: #endif
1.1.1.4 ! root 471: #ifdef HAVE_extendsfxf2
! 472: if (HAVE_extendsfxf2 && from_mode == SFmode && to_mode == XFmode)
! 473: {
! 474: emit_unop_insn (CODE_FOR_extendsfxf2, to, from, UNKNOWN);
! 475: return;
! 476: }
! 477: #endif
1.1 root 478: #ifdef HAVE_extendsftf2
479: if (HAVE_extendsftf2 && from_mode == SFmode && to_mode == TFmode)
480: {
481: emit_unop_insn (CODE_FOR_extendsftf2, to, from, UNKNOWN);
482: return;
483: }
484: #endif
1.1.1.4 ! root 485: #ifdef HAVE_extenddfxf2
! 486: if (HAVE_extenddfxf2 && from_mode == DFmode && to_mode == XFmode)
! 487: {
! 488: emit_unop_insn (CODE_FOR_extenddfxf2, to, from, UNKNOWN);
! 489: return;
! 490: }
! 491: #endif
1.1 root 492: #ifdef HAVE_extenddftf2
493: if (HAVE_extenddftf2 && from_mode == DFmode && to_mode == TFmode)
494: {
495: emit_unop_insn (CODE_FOR_extenddftf2, to, from, UNKNOWN);
496: return;
497: }
498: #endif
499: #ifdef HAVE_truncdfsf2
500: if (HAVE_truncdfsf2 && from_mode == DFmode && to_mode == SFmode)
501: {
502: emit_unop_insn (CODE_FOR_truncdfsf2, to, from, UNKNOWN);
503: return;
504: }
505: #endif
1.1.1.4 ! root 506: #ifdef HAVE_truncxfsf2
! 507: if (HAVE_truncxfsf2 && from_mode == XFmode && to_mode == SFmode)
! 508: {
! 509: emit_unop_insn (CODE_FOR_truncxfsf2, to, from, UNKNOWN);
! 510: return;
! 511: }
! 512: #endif
1.1 root 513: #ifdef HAVE_trunctfsf2
514: if (HAVE_trunctfsf2 && from_mode == TFmode && to_mode == SFmode)
515: {
516: emit_unop_insn (CODE_FOR_trunctfsf2, to, from, UNKNOWN);
517: return;
518: }
519: #endif
1.1.1.4 ! root 520: #ifdef HAVE_truncxfdf2
! 521: if (HAVE_truncxfdf2 && from_mode == XFmode && to_mode == DFmode)
! 522: {
! 523: emit_unop_insn (CODE_FOR_truncxfdf2, to, from, UNKNOWN);
! 524: return;
! 525: }
! 526: #endif
1.1 root 527: #ifdef HAVE_trunctfdf2
528: if (HAVE_trunctfdf2 && from_mode == TFmode && to_mode == DFmode)
529: {
530: emit_unop_insn (CODE_FOR_trunctfdf2, to, from, UNKNOWN);
531: return;
532: }
533: #endif
534:
1.1.1.4 ! root 535: libcall = (rtx) 0;
! 536: switch (from_mode)
! 537: {
! 538: case SFmode:
! 539: switch (to_mode)
! 540: {
! 541: case DFmode:
! 542: libcall = extendsfdf2_libfunc;
! 543: break;
! 544:
! 545: case XFmode:
! 546: libcall = extendsfxf2_libfunc;
! 547: break;
! 548:
! 549: case TFmode:
! 550: libcall = extendsftf2_libfunc;
! 551: break;
! 552: }
! 553: break;
! 554:
! 555: case DFmode:
! 556: switch (to_mode)
! 557: {
! 558: case SFmode:
! 559: libcall = truncdfsf2_libfunc;
! 560: break;
! 561:
! 562: case XFmode:
! 563: libcall = extenddfxf2_libfunc;
! 564: break;
! 565:
! 566: case TFmode:
! 567: libcall = extenddftf2_libfunc;
! 568: break;
! 569: }
! 570: break;
! 571:
! 572: case XFmode:
! 573: switch (to_mode)
! 574: {
! 575: case SFmode:
! 576: libcall = truncxfsf2_libfunc;
! 577: break;
! 578:
! 579: case DFmode:
! 580: libcall = truncxfdf2_libfunc;
! 581: break;
! 582: }
! 583: break;
! 584:
! 585: case TFmode:
! 586: switch (to_mode)
! 587: {
! 588: case SFmode:
! 589: libcall = trunctfsf2_libfunc;
! 590: break;
! 591:
! 592: case DFmode:
! 593: libcall = trunctfdf2_libfunc;
! 594: break;
! 595: }
! 596: break;
! 597: }
! 598:
! 599: if (libcall == (rtx) 0)
! 600: /* This conversion is not implemented yet. */
1.1 root 601: abort ();
602:
1.1.1.2 root 603: emit_library_call (libcall, 1, to_mode, 1, from, from_mode);
1.1 root 604: emit_move_insn (to, hard_libcall_value (to_mode));
605: return;
606: }
607:
608: /* Now both modes are integers. */
609:
610: /* Handle expanding beyond a word. */
611: if (GET_MODE_BITSIZE (from_mode) < GET_MODE_BITSIZE (to_mode)
612: && GET_MODE_BITSIZE (to_mode) > BITS_PER_WORD)
613: {
614: rtx insns;
615: rtx lowpart;
616: rtx fill_value;
617: rtx lowfrom;
618: int i;
619: enum machine_mode lowpart_mode;
620: int nwords = CEIL (GET_MODE_SIZE (to_mode), UNITS_PER_WORD);
621:
622: /* Try converting directly if the insn is supported. */
623: if ((code = can_extend_p (to_mode, from_mode, unsignedp))
624: != CODE_FOR_nothing)
625: {
1.1.1.4 ! root 626: /* If FROM is a SUBREG, put it into a register. Do this
! 627: so that we always generate the same set of insns for
! 628: better cse'ing; if an intermediate assignment occurred,
! 629: we won't be doing the operation directly on the SUBREG. */
! 630: if (optimize > 0 && GET_CODE (from) == SUBREG)
! 631: from = force_reg (from_mode, from);
1.1 root 632: emit_unop_insn (code, to, from, equiv_code);
633: return;
634: }
635: /* Next, try converting via full word. */
636: else if (GET_MODE_BITSIZE (from_mode) < BITS_PER_WORD
637: && ((code = can_extend_p (to_mode, word_mode, unsignedp))
638: != CODE_FOR_nothing))
639: {
640: convert_move (gen_lowpart (word_mode, to), from, unsignedp);
641: emit_unop_insn (code, to,
642: gen_lowpart (word_mode, to), equiv_code);
643: return;
644: }
645:
646: /* No special multiword conversion insn; do it by hand. */
647: start_sequence ();
648:
649: /* Get a copy of FROM widened to a word, if necessary. */
650: if (GET_MODE_BITSIZE (from_mode) < BITS_PER_WORD)
651: lowpart_mode = word_mode;
652: else
653: lowpart_mode = from_mode;
654:
655: lowfrom = convert_to_mode (lowpart_mode, from, unsignedp);
656:
657: lowpart = gen_lowpart (lowpart_mode, to);
658: emit_move_insn (lowpart, lowfrom);
659:
660: /* Compute the value to put in each remaining word. */
661: if (unsignedp)
662: fill_value = const0_rtx;
663: else
664: {
665: #ifdef HAVE_slt
666: if (HAVE_slt
667: && insn_operand_mode[(int) CODE_FOR_slt][0] == word_mode
668: && STORE_FLAG_VALUE == -1)
669: {
1.1.1.4 ! root 670: emit_cmp_insn (lowfrom, const0_rtx, NE, NULL_RTX,
! 671: lowpart_mode, 0, 0);
1.1 root 672: fill_value = gen_reg_rtx (word_mode);
673: emit_insn (gen_slt (fill_value));
674: }
675: else
676: #endif
677: {
678: fill_value
679: = expand_shift (RSHIFT_EXPR, lowpart_mode, lowfrom,
680: size_int (GET_MODE_BITSIZE (lowpart_mode) - 1),
1.1.1.4 ! root 681: NULL_RTX, 0);
1.1 root 682: fill_value = convert_to_mode (word_mode, fill_value, 1);
683: }
684: }
685:
686: /* Fill the remaining words. */
687: for (i = GET_MODE_SIZE (lowpart_mode) / UNITS_PER_WORD; i < nwords; i++)
688: {
689: int index = (WORDS_BIG_ENDIAN ? nwords - i - 1 : i);
690: rtx subword = operand_subword (to, index, 1, to_mode);
691:
692: if (subword == 0)
693: abort ();
694:
695: if (fill_value != subword)
696: emit_move_insn (subword, fill_value);
697: }
698:
699: insns = get_insns ();
700: end_sequence ();
701:
1.1.1.4 ! root 702: emit_no_conflict_block (insns, to, from, NULL_RTX,
1.1 root 703: gen_rtx (equiv_code, to_mode, from));
704: return;
705: }
706:
707: if (GET_MODE_BITSIZE (from_mode) > BITS_PER_WORD)
708: {
709: convert_move (to, gen_lowpart (word_mode, from), 0);
710: return;
711: }
712:
713: /* Handle pointer conversion */ /* SPEE 900220 */
714: if (to_mode == PSImode)
715: {
716: if (from_mode != SImode)
717: from = convert_to_mode (SImode, from, unsignedp);
718:
719: #ifdef HAVE_truncsipsi
720: if (HAVE_truncsipsi)
721: {
722: emit_unop_insn (CODE_FOR_truncsipsi, to, from, UNKNOWN);
723: return;
724: }
725: #endif /* HAVE_truncsipsi */
726: abort ();
727: }
728:
729: if (from_mode == PSImode)
730: {
731: if (to_mode != SImode)
732: {
733: from = convert_to_mode (SImode, from, unsignedp);
734: from_mode = SImode;
735: }
736: else
737: {
738: #ifdef HAVE_extendpsisi
739: if (HAVE_extendpsisi)
740: {
741: emit_unop_insn (CODE_FOR_extendpsisi, to, from, UNKNOWN);
742: return;
743: }
744: #endif /* HAVE_extendpsisi */
745: abort ();
746: }
747: }
748:
749: /* Now follow all the conversions between integers
750: no more than a word long. */
751:
752: /* For truncation, usually we can just refer to FROM in a narrower mode. */
753: if (GET_MODE_BITSIZE (to_mode) < GET_MODE_BITSIZE (from_mode)
754: && TRULY_NOOP_TRUNCATION (GET_MODE_BITSIZE (to_mode),
755: GET_MODE_BITSIZE (from_mode))
756: && ((GET_CODE (from) == MEM
757: && ! MEM_VOLATILE_P (from)
1.1.1.4 ! root 758: && direct_load[(int) to_mode]
1.1 root 759: && ! mode_dependent_address_p (XEXP (from, 0)))
760: || GET_CODE (from) == REG
761: || GET_CODE (from) == SUBREG))
762: {
763: emit_move_insn (to, gen_lowpart (to_mode, from));
764: return;
765: }
766:
767: /* For truncation, usually we can just refer to FROM in a narrower mode. */
768: if (GET_MODE_BITSIZE (to_mode) > GET_MODE_BITSIZE (from_mode))
769: {
770: /* Convert directly if that works. */
771: if ((code = can_extend_p (to_mode, from_mode, unsignedp))
772: != CODE_FOR_nothing)
773: {
1.1.1.4 ! root 774: /* If FROM is a SUBREG, put it into a register. Do this
! 775: so that we always generate the same set of insns for
! 776: better cse'ing; if an intermediate assignment occurred,
! 777: we won't be doing the operation directly on the SUBREG. */
! 778: if (optimize > 0 && GET_CODE (from) == SUBREG)
! 779: from = force_reg (from_mode, from);
1.1 root 780: emit_unop_insn (code, to, from, equiv_code);
781: return;
782: }
783: else
784: {
785: enum machine_mode intermediate;
786:
787: /* Search for a mode to convert via. */
788: for (intermediate = from_mode; intermediate != VOIDmode;
789: intermediate = GET_MODE_WIDER_MODE (intermediate))
790: if ((can_extend_p (to_mode, intermediate, unsignedp)
791: != CODE_FOR_nothing)
792: && (can_extend_p (intermediate, from_mode, unsignedp)
793: != CODE_FOR_nothing))
794: {
795: convert_move (to, convert_to_mode (intermediate, from,
796: unsignedp), unsignedp);
797: return;
798: }
799:
800: /* No suitable intermediate mode. */
801: abort ();
802: }
803: }
804:
805: /* Support special truncate insns for certain modes. */
806:
807: if (from_mode == DImode && to_mode == SImode)
808: {
809: #ifdef HAVE_truncdisi2
810: if (HAVE_truncdisi2)
811: {
812: emit_unop_insn (CODE_FOR_truncdisi2, to, from, UNKNOWN);
813: return;
814: }
815: #endif
816: convert_move (to, force_reg (from_mode, from), unsignedp);
817: return;
818: }
819:
820: if (from_mode == DImode && to_mode == HImode)
821: {
822: #ifdef HAVE_truncdihi2
823: if (HAVE_truncdihi2)
824: {
825: emit_unop_insn (CODE_FOR_truncdihi2, to, from, UNKNOWN);
826: return;
827: }
828: #endif
829: convert_move (to, force_reg (from_mode, from), unsignedp);
830: return;
831: }
832:
833: if (from_mode == DImode && to_mode == QImode)
834: {
835: #ifdef HAVE_truncdiqi2
836: if (HAVE_truncdiqi2)
837: {
838: emit_unop_insn (CODE_FOR_truncdiqi2, to, from, UNKNOWN);
839: return;
840: }
841: #endif
842: convert_move (to, force_reg (from_mode, from), unsignedp);
843: return;
844: }
845:
846: if (from_mode == SImode && to_mode == HImode)
847: {
848: #ifdef HAVE_truncsihi2
849: if (HAVE_truncsihi2)
850: {
851: emit_unop_insn (CODE_FOR_truncsihi2, to, from, UNKNOWN);
852: return;
853: }
854: #endif
855: convert_move (to, force_reg (from_mode, from), unsignedp);
856: return;
857: }
858:
859: if (from_mode == SImode && to_mode == QImode)
860: {
861: #ifdef HAVE_truncsiqi2
862: if (HAVE_truncsiqi2)
863: {
864: emit_unop_insn (CODE_FOR_truncsiqi2, to, from, UNKNOWN);
865: return;
866: }
867: #endif
868: convert_move (to, force_reg (from_mode, from), unsignedp);
869: return;
870: }
871:
872: if (from_mode == HImode && to_mode == QImode)
873: {
874: #ifdef HAVE_trunchiqi2
875: if (HAVE_trunchiqi2)
876: {
877: emit_unop_insn (CODE_FOR_trunchiqi2, to, from, UNKNOWN);
878: return;
879: }
880: #endif
881: convert_move (to, force_reg (from_mode, from), unsignedp);
882: return;
883: }
884:
885: /* Handle truncation of volatile memrefs, and so on;
886: the things that couldn't be truncated directly,
887: and for which there was no special instruction. */
888: if (GET_MODE_BITSIZE (to_mode) < GET_MODE_BITSIZE (from_mode))
889: {
890: rtx temp = force_reg (to_mode, gen_lowpart (to_mode, from));
891: emit_move_insn (to, temp);
892: return;
893: }
894:
895: /* Mode combination is not recognized. */
896: abort ();
897: }
898:
899: /* Return an rtx for a value that would result
900: from converting X to mode MODE.
901: Both X and MODE may be floating, or both integer.
902: UNSIGNEDP is nonzero if X is an unsigned value.
903: This can be done by referring to a part of X in place
1.1.1.4 ! root 904: or by copying to a new temporary with conversion.
! 905:
! 906: This function *must not* call protect_from_queue
! 907: except when putting X into an insn (in which case convert_move does it). */
1.1 root 908:
909: rtx
910: convert_to_mode (mode, x, unsignedp)
911: enum machine_mode mode;
912: rtx x;
913: int unsignedp;
914: {
915: register rtx temp;
1.1.1.4 ! root 916:
! 917: /* If FROM is a SUBREG that indicates that we have already done at least
! 918: the required extension, strip it. */
1.1 root 919:
1.1.1.4 ! root 920: if (GET_CODE (x) == SUBREG && SUBREG_PROMOTED_VAR_P (x)
! 921: && GET_MODE_SIZE (GET_MODE (SUBREG_REG (x))) >= GET_MODE_SIZE (mode)
! 922: && SUBREG_PROMOTED_UNSIGNED_P (x) == unsignedp)
! 923: x = gen_lowpart (mode, x);
1.1 root 924:
925: if (mode == GET_MODE (x))
926: return x;
927:
928: /* There is one case that we must handle specially: If we are converting
1.1.1.4 ! root 929: a CONST_INT into a mode whose size is twice HOST_BITS_PER_WIDE_INT and
1.1 root 930: we are to interpret the constant as unsigned, gen_lowpart will do
931: the wrong if the constant appears negative. What we want to do is
932: make the high-order word of the constant zero, not all ones. */
933:
934: if (unsignedp && GET_MODE_CLASS (mode) == MODE_INT
1.1.1.4 ! root 935: && GET_MODE_BITSIZE (mode) == 2 * HOST_BITS_PER_WIDE_INT
1.1 root 936: && GET_CODE (x) == CONST_INT && INTVAL (x) < 0)
1.1.1.4 ! root 937: return immed_double_const (INTVAL (x), (HOST_WIDE_INT) 0, mode);
1.1 root 938:
939: /* We can do this with a gen_lowpart if both desired and current modes
940: are integer, and this is either a constant integer, a register, or a
941: non-volatile MEM. Except for the constant case, we must be narrowing
942: the operand. */
943:
944: if (GET_CODE (x) == CONST_INT
945: || (GET_MODE_CLASS (mode) == MODE_INT
946: && GET_MODE_CLASS (GET_MODE (x)) == MODE_INT
947: && (GET_CODE (x) == CONST_DOUBLE
948: || (GET_MODE_SIZE (mode) <= GET_MODE_SIZE (GET_MODE (x))
949: && ((GET_CODE (x) == MEM && ! MEM_VOLATILE_P (x))
1.1.1.4 ! root 950: && direct_load[(int) mode]
1.1 root 951: || GET_CODE (x) == REG)))))
952: return gen_lowpart (mode, x);
953:
954: temp = gen_reg_rtx (mode);
955: convert_move (temp, x, unsignedp);
956: return temp;
957: }
958:
959: /* Generate several move instructions to copy LEN bytes
960: from block FROM to block TO. (These are MEM rtx's with BLKmode).
961: The caller must pass FROM and TO
962: through protect_from_queue before calling.
963: ALIGN (in bytes) is maximum alignment we can assume. */
964:
965: struct move_by_pieces
966: {
967: rtx to;
968: rtx to_addr;
969: int autinc_to;
970: int explicit_inc_to;
971: rtx from;
972: rtx from_addr;
973: int autinc_from;
974: int explicit_inc_from;
975: int len;
976: int offset;
977: int reverse;
978: };
979:
980: static void move_by_pieces_1 ();
981: static int move_by_pieces_ninsns ();
982:
983: static void
984: move_by_pieces (to, from, len, align)
985: rtx to, from;
986: int len, align;
987: {
988: struct move_by_pieces data;
989: rtx to_addr = XEXP (to, 0), from_addr = XEXP (from, 0);
1.1.1.2 root 990: int max_size = MOVE_MAX + 1;
1.1 root 991:
992: data.offset = 0;
993: data.to_addr = to_addr;
994: data.from_addr = from_addr;
995: data.to = to;
996: data.from = from;
997: data.autinc_to
998: = (GET_CODE (to_addr) == PRE_INC || GET_CODE (to_addr) == PRE_DEC
999: || GET_CODE (to_addr) == POST_INC || GET_CODE (to_addr) == POST_DEC);
1000: data.autinc_from
1001: = (GET_CODE (from_addr) == PRE_INC || GET_CODE (from_addr) == PRE_DEC
1002: || GET_CODE (from_addr) == POST_INC
1003: || GET_CODE (from_addr) == POST_DEC);
1004:
1005: data.explicit_inc_from = 0;
1006: data.explicit_inc_to = 0;
1007: data.reverse
1008: = (GET_CODE (to_addr) == PRE_DEC || GET_CODE (to_addr) == POST_DEC);
1009: if (data.reverse) data.offset = len;
1010: data.len = len;
1011:
1012: /* If copying requires more than two move insns,
1013: copy addresses to registers (to make displacements shorter)
1014: and use post-increment if available. */
1015: if (!(data.autinc_from && data.autinc_to)
1016: && move_by_pieces_ninsns (len, align) > 2)
1017: {
1018: #ifdef HAVE_PRE_DECREMENT
1019: if (data.reverse && ! data.autinc_from)
1020: {
1021: data.from_addr = copy_addr_to_reg (plus_constant (from_addr, len));
1022: data.autinc_from = 1;
1023: data.explicit_inc_from = -1;
1024: }
1025: #endif
1026: #ifdef HAVE_POST_INCREMENT
1027: if (! data.autinc_from)
1028: {
1029: data.from_addr = copy_addr_to_reg (from_addr);
1030: data.autinc_from = 1;
1031: data.explicit_inc_from = 1;
1032: }
1033: #endif
1034: if (!data.autinc_from && CONSTANT_P (from_addr))
1035: data.from_addr = copy_addr_to_reg (from_addr);
1036: #ifdef HAVE_PRE_DECREMENT
1037: if (data.reverse && ! data.autinc_to)
1038: {
1039: data.to_addr = copy_addr_to_reg (plus_constant (to_addr, len));
1040: data.autinc_to = 1;
1041: data.explicit_inc_to = -1;
1042: }
1043: #endif
1044: #ifdef HAVE_POST_INCREMENT
1045: if (! data.reverse && ! data.autinc_to)
1046: {
1047: data.to_addr = copy_addr_to_reg (to_addr);
1048: data.autinc_to = 1;
1049: data.explicit_inc_to = 1;
1050: }
1051: #endif
1052: if (!data.autinc_to && CONSTANT_P (to_addr))
1053: data.to_addr = copy_addr_to_reg (to_addr);
1054: }
1055:
1.1.1.2 root 1056: if (! (STRICT_ALIGNMENT || SLOW_UNALIGNED_ACCESS)
1057: || align > MOVE_MAX || align >= BIGGEST_ALIGNMENT / BITS_PER_UNIT)
1.1 root 1058: align = MOVE_MAX;
1059:
1060: /* First move what we can in the largest integer mode, then go to
1061: successively smaller modes. */
1062:
1063: while (max_size > 1)
1064: {
1065: enum machine_mode mode = VOIDmode, tmode;
1066: enum insn_code icode;
1067:
1.1.1.3 root 1068: for (tmode = GET_CLASS_NARROWEST_MODE (MODE_INT);
1069: tmode != VOIDmode; tmode = GET_MODE_WIDER_MODE (tmode))
1070: if (GET_MODE_SIZE (tmode) < max_size)
1.1 root 1071: mode = tmode;
1072:
1073: if (mode == VOIDmode)
1074: break;
1075:
1076: icode = mov_optab->handlers[(int) mode].insn_code;
1077: if (icode != CODE_FOR_nothing
1078: && align >= MIN (BIGGEST_ALIGNMENT / BITS_PER_UNIT,
1079: GET_MODE_SIZE (mode)))
1080: move_by_pieces_1 (GEN_FCN (icode), mode, &data);
1081:
1082: max_size = GET_MODE_SIZE (mode);
1083: }
1084:
1085: /* The code above should have handled everything. */
1086: if (data.len != 0)
1087: abort ();
1088: }
1089:
1090: /* Return number of insns required to move L bytes by pieces.
1091: ALIGN (in bytes) is maximum alignment we can assume. */
1092:
1093: static int
1094: move_by_pieces_ninsns (l, align)
1095: unsigned int l;
1096: int align;
1097: {
1098: register int n_insns = 0;
1.1.1.2 root 1099: int max_size = MOVE_MAX + 1;
1.1 root 1100:
1.1.1.2 root 1101: if (! (STRICT_ALIGNMENT || SLOW_UNALIGNED_ACCESS)
1102: || align > MOVE_MAX || align >= BIGGEST_ALIGNMENT / BITS_PER_UNIT)
1.1 root 1103: align = MOVE_MAX;
1104:
1105: while (max_size > 1)
1106: {
1107: enum machine_mode mode = VOIDmode, tmode;
1108: enum insn_code icode;
1109:
1.1.1.3 root 1110: for (tmode = GET_CLASS_NARROWEST_MODE (MODE_INT);
1111: tmode != VOIDmode; tmode = GET_MODE_WIDER_MODE (tmode))
1112: if (GET_MODE_SIZE (tmode) < max_size)
1.1 root 1113: mode = tmode;
1114:
1115: if (mode == VOIDmode)
1116: break;
1117:
1118: icode = mov_optab->handlers[(int) mode].insn_code;
1119: if (icode != CODE_FOR_nothing
1120: && align >= MIN (BIGGEST_ALIGNMENT / BITS_PER_UNIT,
1121: GET_MODE_SIZE (mode)))
1122: n_insns += l / GET_MODE_SIZE (mode), l %= GET_MODE_SIZE (mode);
1123:
1124: max_size = GET_MODE_SIZE (mode);
1125: }
1126:
1127: return n_insns;
1128: }
1129:
1130: /* Subroutine of move_by_pieces. Move as many bytes as appropriate
1131: with move instructions for mode MODE. GENFUN is the gen_... function
1132: to make a move insn for that mode. DATA has all the other info. */
1133:
1134: static void
1135: move_by_pieces_1 (genfun, mode, data)
1136: rtx (*genfun) ();
1137: enum machine_mode mode;
1138: struct move_by_pieces *data;
1139: {
1140: register int size = GET_MODE_SIZE (mode);
1141: register rtx to1, from1;
1142:
1143: while (data->len >= size)
1144: {
1145: if (data->reverse) data->offset -= size;
1146:
1147: to1 = (data->autinc_to
1148: ? gen_rtx (MEM, mode, data->to_addr)
1149: : change_address (data->to, mode,
1150: plus_constant (data->to_addr, data->offset)));
1151: from1 =
1152: (data->autinc_from
1153: ? gen_rtx (MEM, mode, data->from_addr)
1154: : change_address (data->from, mode,
1155: plus_constant (data->from_addr, data->offset)));
1156:
1157: #ifdef HAVE_PRE_DECREMENT
1158: if (data->explicit_inc_to < 0)
1.1.1.4 ! root 1159: emit_insn (gen_add2_insn (data->to_addr, GEN_INT (-size)));
1.1 root 1160: if (data->explicit_inc_from < 0)
1.1.1.4 ! root 1161: emit_insn (gen_add2_insn (data->from_addr, GEN_INT (-size)));
1.1 root 1162: #endif
1163:
1164: emit_insn ((*genfun) (to1, from1));
1165: #ifdef HAVE_POST_INCREMENT
1166: if (data->explicit_inc_to > 0)
1.1.1.4 ! root 1167: emit_insn (gen_add2_insn (data->to_addr, GEN_INT (size)));
1.1 root 1168: if (data->explicit_inc_from > 0)
1.1.1.4 ! root 1169: emit_insn (gen_add2_insn (data->from_addr, GEN_INT (size)));
1.1 root 1170: #endif
1171:
1172: if (! data->reverse) data->offset += size;
1173:
1174: data->len -= size;
1175: }
1176: }
1177:
1178: /* Emit code to move a block Y to a block X.
1179: This may be done with string-move instructions,
1180: with multiple scalar move instructions, or with a library call.
1181:
1182: Both X and Y must be MEM rtx's (perhaps inside VOLATILE)
1183: with mode BLKmode.
1184: SIZE is an rtx that says how long they are.
1185: ALIGN is the maximum alignment we can assume they have,
1186: measured in bytes. */
1187:
1188: void
1189: emit_block_move (x, y, size, align)
1190: rtx x, y;
1191: rtx size;
1192: int align;
1193: {
1194: if (GET_MODE (x) != BLKmode)
1195: abort ();
1196:
1197: if (GET_MODE (y) != BLKmode)
1198: abort ();
1199:
1200: x = protect_from_queue (x, 1);
1201: y = protect_from_queue (y, 0);
1.1.1.4 ! root 1202: size = protect_from_queue (size, 0);
1.1 root 1203:
1204: if (GET_CODE (x) != MEM)
1205: abort ();
1206: if (GET_CODE (y) != MEM)
1207: abort ();
1208: if (size == 0)
1209: abort ();
1210:
1211: if (GET_CODE (size) == CONST_INT
1.1.1.4 ! root 1212: && (move_by_pieces_ninsns (INTVAL (size), align) < MOVE_RATIO))
1.1 root 1213: move_by_pieces (x, y, INTVAL (size), align);
1214: else
1215: {
1216: /* Try the most limited insn first, because there's no point
1217: including more than one in the machine description unless
1218: the more limited one has some advantage. */
1.1.1.4 ! root 1219:
! 1220: rtx opalign = GEN_INT (align);
! 1221: enum machine_mode mode;
! 1222:
! 1223: for (mode = GET_CLASS_NARROWEST_MODE (MODE_INT); mode != VOIDmode;
! 1224: mode = GET_MODE_WIDER_MODE (mode))
1.1 root 1225: {
1.1.1.4 ! root 1226: enum insn_code code = movstr_optab[(int) mode];
! 1227:
! 1228: if (code != CODE_FOR_nothing
! 1229: /* We don't need MODE to be narrower than BITS_PER_HOST_WIDE_INT
! 1230: here because if SIZE is less than the mode mask, as it is
! 1231: returned by the macro, it will definately be less than the
! 1232: actual mode mask. */
! 1233: && (unsigned) INTVAL (size) <= GET_MODE_MASK (mode)
! 1234: && (insn_operand_predicate[(int) code][0] == 0
! 1235: || (*insn_operand_predicate[(int) code][0]) (x, BLKmode))
! 1236: && (insn_operand_predicate[(int) code][1] == 0
! 1237: || (*insn_operand_predicate[(int) code][1]) (y, BLKmode))
! 1238: && (insn_operand_predicate[(int) code][3] == 0
! 1239: || (*insn_operand_predicate[(int) code][3]) (opalign,
! 1240: VOIDmode)))
1.1 root 1241: {
1.1.1.4 ! root 1242: rtx op2;
! 1243: rtx last = get_last_insn ();
! 1244: rtx pat;
! 1245:
! 1246: op2 = convert_to_mode (mode, size, 1);
! 1247: if (insn_operand_predicate[(int) code][2] != 0
! 1248: && ! (*insn_operand_predicate[(int) code][2]) (op2, mode))
! 1249: op2 = copy_to_mode_reg (mode, op2);
! 1250:
! 1251: pat = GEN_FCN ((int) code) (x, y, op2, opalign);
! 1252: if (pat)
! 1253: {
! 1254: emit_insn (pat);
! 1255: return;
! 1256: }
! 1257: else
! 1258: delete_insns_since (last);
1.1 root 1259: }
1260: }
1261:
1262: #ifdef TARGET_MEM_FUNCTIONS
1.1.1.4 ! root 1263: emit_library_call (memcpy_libfunc, 0,
1.1 root 1264: VOIDmode, 3, XEXP (x, 0), Pmode,
1265: XEXP (y, 0), Pmode,
1.1.1.4 ! root 1266: convert_to_mode (Pmode, size, 1), Pmode);
1.1 root 1267: #else
1.1.1.4 ! root 1268: emit_library_call (bcopy_libfunc, 0,
1.1 root 1269: VOIDmode, 3, XEXP (y, 0), Pmode,
1270: XEXP (x, 0), Pmode,
1.1.1.4 ! root 1271: convert_to_mode (Pmode, size, 1), Pmode);
1.1 root 1272: #endif
1273: }
1274: }
1275:
1276: /* Copy all or part of a value X into registers starting at REGNO.
1277: The number of registers to be filled is NREGS. */
1278:
1279: void
1280: move_block_to_reg (regno, x, nregs, mode)
1281: int regno;
1282: rtx x;
1283: int nregs;
1284: enum machine_mode mode;
1285: {
1286: int i;
1287: rtx pat, last;
1288:
1289: if (CONSTANT_P (x) && ! LEGITIMATE_CONSTANT_P (x))
1290: x = validize_mem (force_const_mem (mode, x));
1291:
1292: /* See if the machine can do this with a load multiple insn. */
1293: #ifdef HAVE_load_multiple
1294: last = get_last_insn ();
1295: pat = gen_load_multiple (gen_rtx (REG, word_mode, regno), x,
1.1.1.4 ! root 1296: GEN_INT (nregs));
1.1 root 1297: if (pat)
1298: {
1299: emit_insn (pat);
1300: return;
1301: }
1302: else
1303: delete_insns_since (last);
1304: #endif
1305:
1306: for (i = 0; i < nregs; i++)
1307: emit_move_insn (gen_rtx (REG, word_mode, regno + i),
1308: operand_subword_force (x, i, mode));
1309: }
1310:
1311: /* Copy all or part of a BLKmode value X out of registers starting at REGNO.
1312: The number of registers to be filled is NREGS. */
1313:
1314: void
1315: move_block_from_reg (regno, x, nregs)
1316: int regno;
1317: rtx x;
1318: int nregs;
1319: {
1320: int i;
1321: rtx pat, last;
1322:
1323: /* See if the machine can do this with a store multiple insn. */
1324: #ifdef HAVE_store_multiple
1325: last = get_last_insn ();
1326: pat = gen_store_multiple (x, gen_rtx (REG, word_mode, regno),
1.1.1.4 ! root 1327: GEN_INT (nregs));
1.1 root 1328: if (pat)
1329: {
1330: emit_insn (pat);
1331: return;
1332: }
1333: else
1334: delete_insns_since (last);
1335: #endif
1336:
1337: for (i = 0; i < nregs; i++)
1338: {
1339: rtx tem = operand_subword (x, i, 1, BLKmode);
1340:
1341: if (tem == 0)
1342: abort ();
1343:
1344: emit_move_insn (tem, gen_rtx (REG, word_mode, regno + i));
1345: }
1346: }
1347:
1348: /* Mark NREGS consecutive regs, starting at REGNO, as being live now. */
1349:
1350: void
1351: use_regs (regno, nregs)
1352: int regno;
1353: int nregs;
1354: {
1355: int i;
1356:
1357: for (i = 0; i < nregs; i++)
1358: emit_insn (gen_rtx (USE, VOIDmode, gen_rtx (REG, word_mode, regno + i)));
1359: }
1.1.1.4 ! root 1360:
! 1361: /* Mark the instructions since PREV as a libcall block.
! 1362: Add REG_LIBCALL to PREV and add a REG_RETVAL to the most recent insn. */
! 1363:
! 1364: static rtx
! 1365: group_insns (prev)
! 1366: rtx prev;
! 1367: {
! 1368: rtx insn_first;
! 1369: rtx insn_last;
! 1370:
! 1371: /* Find the instructions to mark */
! 1372: if (prev)
! 1373: insn_first = NEXT_INSN (prev);
! 1374: else
! 1375: insn_first = get_insns ();
! 1376:
! 1377: insn_last = get_last_insn ();
! 1378:
! 1379: REG_NOTES (insn_last) = gen_rtx (INSN_LIST, REG_RETVAL, insn_first,
! 1380: REG_NOTES (insn_last));
! 1381:
! 1382: REG_NOTES (insn_first) = gen_rtx (INSN_LIST, REG_LIBCALL, insn_last,
! 1383: REG_NOTES (insn_first));
! 1384: }
1.1 root 1385:
1386: /* Write zeros through the storage of OBJECT.
1387: If OBJECT has BLKmode, SIZE is its length in bytes. */
1388:
1389: void
1390: clear_storage (object, size)
1391: rtx object;
1392: int size;
1393: {
1394: if (GET_MODE (object) == BLKmode)
1395: {
1396: #ifdef TARGET_MEM_FUNCTIONS
1.1.1.4 ! root 1397: emit_library_call (memset_libfunc, 0,
1.1 root 1398: VOIDmode, 3,
1399: XEXP (object, 0), Pmode, const0_rtx, Pmode,
1.1.1.4 ! root 1400: GEN_INT (size), Pmode);
1.1 root 1401: #else
1.1.1.4 ! root 1402: emit_library_call (bzero_libfunc, 0,
1.1 root 1403: VOIDmode, 2,
1404: XEXP (object, 0), Pmode,
1.1.1.4 ! root 1405: GEN_INT (size), Pmode);
1.1 root 1406: #endif
1407: }
1408: else
1409: emit_move_insn (object, const0_rtx);
1410: }
1411:
1412: /* Generate code to copy Y into X.
1413: Both Y and X must have the same mode, except that
1414: Y can be a constant with VOIDmode.
1415: This mode cannot be BLKmode; use emit_block_move for that.
1416:
1417: Return the last instruction emitted. */
1418:
1419: rtx
1420: emit_move_insn (x, y)
1421: rtx x, y;
1422: {
1423: enum machine_mode mode = GET_MODE (x);
1.1.1.4 ! root 1424: enum machine_mode submode;
! 1425: enum mode_class class = GET_MODE_CLASS (mode);
1.1 root 1426: int i;
1427:
1428: x = protect_from_queue (x, 1);
1429: y = protect_from_queue (y, 0);
1430:
1431: if (mode == BLKmode || (GET_MODE (y) != mode && GET_MODE (y) != VOIDmode))
1432: abort ();
1433:
1434: if (CONSTANT_P (y) && ! LEGITIMATE_CONSTANT_P (y))
1435: y = force_const_mem (mode, y);
1436:
1437: /* If X or Y are memory references, verify that their addresses are valid
1438: for the machine. */
1439: if (GET_CODE (x) == MEM
1440: && ((! memory_address_p (GET_MODE (x), XEXP (x, 0))
1441: && ! push_operand (x, GET_MODE (x)))
1442: || (flag_force_addr
1443: && CONSTANT_ADDRESS_P (XEXP (x, 0)))))
1444: x = change_address (x, VOIDmode, XEXP (x, 0));
1445:
1446: if (GET_CODE (y) == MEM
1447: && (! memory_address_p (GET_MODE (y), XEXP (y, 0))
1448: || (flag_force_addr
1449: && CONSTANT_ADDRESS_P (XEXP (y, 0)))))
1450: y = change_address (y, VOIDmode, XEXP (y, 0));
1451:
1452: if (mode == BLKmode)
1453: abort ();
1454:
1.1.1.4 ! root 1455: if (class == MODE_COMPLEX_FLOAT || class == MODE_COMPLEX_INT)
! 1456: submode = mode_for_size (GET_MODE_UNIT_SIZE (mode) * BITS_PER_UNIT,
! 1457: (class == MODE_COMPLEX_INT
! 1458: ? MODE_INT : MODE_FLOAT),
! 1459: 0);
! 1460:
1.1 root 1461: if (mov_optab->handlers[(int) mode].insn_code != CODE_FOR_nothing)
1462: return
1463: emit_insn (GEN_FCN (mov_optab->handlers[(int) mode].insn_code) (x, y));
1464:
1.1.1.4 ! root 1465: /* Expand complex moves by moving real part and imag part, if posible. */
! 1466: else if ((class == MODE_COMPLEX_FLOAT || class == MODE_COMPLEX_INT)
! 1467: && submode != BLKmode
! 1468: && (mov_optab->handlers[(int) submode].insn_code
! 1469: != CODE_FOR_nothing))
! 1470: {
! 1471: /* Don't split destination if it is a stack push. */
! 1472: int stack = push_operand (x, GET_MODE (x));
! 1473: rtx prev = get_last_insn ();
! 1474:
! 1475: /* Tell flow that the whole of the destination is being set. */
! 1476: if (GET_CODE (x) == REG)
! 1477: emit_insn (gen_rtx (CLOBBER, VOIDmode, x));
! 1478:
! 1479: /* If this is a stack, push the highpart first, so it
! 1480: will be in the argument order.
! 1481:
! 1482: In that case, change_address is used only to convert
! 1483: the mode, not to change the address. */
! 1484: emit_insn (GEN_FCN (mov_optab->handlers[(int) submode].insn_code)
! 1485: ((stack ? change_address (x, submode, (rtx) 0)
! 1486: : gen_highpart (submode, x)),
! 1487: gen_highpart (submode, y)));
! 1488: emit_insn (GEN_FCN (mov_optab->handlers[(int) submode].insn_code)
! 1489: ((stack ? change_address (x, submode, (rtx) 0)
! 1490: : gen_lowpart (submode, x)),
! 1491: gen_lowpart (submode, y)));
! 1492:
! 1493: group_insns (prev);
! 1494:
! 1495: return get_last_insn ();
! 1496: }
! 1497:
1.1 root 1498: /* This will handle any multi-word mode that lacks a move_insn pattern.
1499: However, you will get better code if you define such patterns,
1500: even if they must turn into multiple assembler instructions. */
1.1.1.4 ! root 1501: else if (GET_MODE_SIZE (mode) > UNITS_PER_WORD)
1.1 root 1502: {
1503: rtx last_insn = 0;
1.1.1.4 ! root 1504: rtx prev_insn = get_last_insn ();
1.1 root 1505:
1506: for (i = 0;
1507: i < (GET_MODE_SIZE (mode) + (UNITS_PER_WORD - 1)) / UNITS_PER_WORD;
1508: i++)
1509: {
1510: rtx xpart = operand_subword (x, i, 1, mode);
1511: rtx ypart = operand_subword (y, i, 1, mode);
1512:
1513: /* If we can't get a part of Y, put Y into memory if it is a
1514: constant. Otherwise, force it into a register. If we still
1515: can't get a part of Y, abort. */
1516: if (ypart == 0 && CONSTANT_P (y))
1517: {
1518: y = force_const_mem (mode, y);
1519: ypart = operand_subword (y, i, 1, mode);
1520: }
1521: else if (ypart == 0)
1522: ypart = operand_subword_force (y, i, mode);
1523:
1524: if (xpart == 0 || ypart == 0)
1525: abort ();
1526:
1527: last_insn = emit_move_insn (xpart, ypart);
1528: }
1.1.1.4 ! root 1529: /* Mark these insns as a libcall block. */
! 1530: group_insns (prev_insn);
! 1531:
1.1 root 1532: return last_insn;
1533: }
1534: else
1535: abort ();
1536: }
1537:
1538: /* Pushing data onto the stack. */
1539:
1540: /* Push a block of length SIZE (perhaps variable)
1541: and return an rtx to address the beginning of the block.
1542: Note that it is not possible for the value returned to be a QUEUED.
1543: The value may be virtual_outgoing_args_rtx.
1544:
1545: EXTRA is the number of bytes of padding to push in addition to SIZE.
1546: BELOW nonzero means this padding comes at low addresses;
1547: otherwise, the padding comes at high addresses. */
1548:
1549: rtx
1550: push_block (size, extra, below)
1551: rtx size;
1552: int extra, below;
1553: {
1554: register rtx temp;
1555: if (CONSTANT_P (size))
1556: anti_adjust_stack (plus_constant (size, extra));
1557: else if (GET_CODE (size) == REG && extra == 0)
1558: anti_adjust_stack (size);
1559: else
1560: {
1561: rtx temp = copy_to_mode_reg (Pmode, size);
1562: if (extra != 0)
1.1.1.4 ! root 1563: temp = expand_binop (Pmode, add_optab, temp, GEN_INT (extra),
1.1 root 1564: temp, 0, OPTAB_LIB_WIDEN);
1565: anti_adjust_stack (temp);
1566: }
1567:
1568: #ifdef STACK_GROWS_DOWNWARD
1569: temp = virtual_outgoing_args_rtx;
1570: if (extra != 0 && below)
1571: temp = plus_constant (temp, extra);
1572: #else
1573: if (GET_CODE (size) == CONST_INT)
1574: temp = plus_constant (virtual_outgoing_args_rtx,
1575: - INTVAL (size) - (below ? 0 : extra));
1576: else if (extra != 0 && !below)
1577: temp = gen_rtx (PLUS, Pmode, virtual_outgoing_args_rtx,
1578: negate_rtx (Pmode, plus_constant (size, extra)));
1579: else
1580: temp = gen_rtx (PLUS, Pmode, virtual_outgoing_args_rtx,
1581: negate_rtx (Pmode, size));
1582: #endif
1583:
1584: return memory_address (GET_CLASS_NARROWEST_MODE (MODE_INT), temp);
1585: }
1586:
1.1.1.4 ! root 1587: rtx
1.1 root 1588: gen_push_operand ()
1589: {
1590: return gen_rtx (STACK_PUSH_CODE, Pmode, stack_pointer_rtx);
1591: }
1592:
1593: /* Generate code to push X onto the stack, assuming it has mode MODE and
1594: type TYPE.
1595: MODE is redundant except when X is a CONST_INT (since they don't
1596: carry mode info).
1597: SIZE is an rtx for the size of data to be copied (in bytes),
1598: needed only if X is BLKmode.
1599:
1600: ALIGN (in bytes) is maximum alignment we can assume.
1601:
1602: If PARTIAL is nonzero, then copy that many of the first words
1603: of X into registers starting with REG, and push the rest of X.
1604: The amount of space pushed is decreased by PARTIAL words,
1605: rounded *down* to a multiple of PARM_BOUNDARY.
1606: REG must be a hard register in this case.
1607:
1608: EXTRA is the amount in bytes of extra space to leave next to this arg.
1.1.1.3 root 1609: This is ignored if an argument block has already been allocated.
1.1 root 1610:
1611: On a machine that lacks real push insns, ARGS_ADDR is the address of
1612: the bottom of the argument block for this call. We use indexing off there
1613: to store the arg. On machines with push insns, ARGS_ADDR is 0 when a
1614: argument block has not been preallocated.
1615:
1616: ARGS_SO_FAR is the size of args previously pushed for this call. */
1617:
1618: void
1619: emit_push_insn (x, mode, type, size, align, partial, reg, extra,
1620: args_addr, args_so_far)
1621: register rtx x;
1622: enum machine_mode mode;
1623: tree type;
1624: rtx size;
1625: int align;
1626: int partial;
1627: rtx reg;
1628: int extra;
1629: rtx args_addr;
1630: rtx args_so_far;
1631: {
1632: rtx xinner;
1633: enum direction stack_direction
1634: #ifdef STACK_GROWS_DOWNWARD
1635: = downward;
1636: #else
1637: = upward;
1638: #endif
1639:
1640: /* Decide where to pad the argument: `downward' for below,
1641: `upward' for above, or `none' for don't pad it.
1642: Default is below for small data on big-endian machines; else above. */
1643: enum direction where_pad = FUNCTION_ARG_PADDING (mode, type);
1644:
1645: /* Invert direction if stack is post-update. */
1646: if (STACK_PUSH_CODE == POST_INC || STACK_PUSH_CODE == POST_DEC)
1647: if (where_pad != none)
1648: where_pad = (where_pad == downward ? upward : downward);
1649:
1650: xinner = x = protect_from_queue (x, 0);
1651:
1652: if (mode == BLKmode)
1653: {
1654: /* Copy a block into the stack, entirely or partially. */
1655:
1656: register rtx temp;
1657: int used = partial * UNITS_PER_WORD;
1658: int offset = used % (PARM_BOUNDARY / BITS_PER_UNIT);
1659: int skip;
1660:
1661: if (size == 0)
1662: abort ();
1663:
1664: used -= offset;
1665:
1666: /* USED is now the # of bytes we need not copy to the stack
1667: because registers will take care of them. */
1668:
1669: if (partial != 0)
1670: xinner = change_address (xinner, BLKmode,
1671: plus_constant (XEXP (xinner, 0), used));
1672:
1673: /* If the partial register-part of the arg counts in its stack size,
1674: skip the part of stack space corresponding to the registers.
1675: Otherwise, start copying to the beginning of the stack space,
1676: by setting SKIP to 0. */
1677: #ifndef REG_PARM_STACK_SPACE
1678: skip = 0;
1679: #else
1680: skip = used;
1681: #endif
1682:
1683: #ifdef PUSH_ROUNDING
1684: /* Do it with several push insns if that doesn't take lots of insns
1685: and if there is no difficulty with push insns that skip bytes
1686: on the stack for alignment purposes. */
1687: if (args_addr == 0
1688: && GET_CODE (size) == CONST_INT
1689: && skip == 0
1690: && (move_by_pieces_ninsns ((unsigned) INTVAL (size) - used, align)
1691: < MOVE_RATIO)
1692: /* Here we avoid the case of a structure whose weak alignment
1693: forces many pushes of a small amount of data,
1694: and such small pushes do rounding that causes trouble. */
1.1.1.2 root 1695: && ((! STRICT_ALIGNMENT && ! SLOW_UNALIGNED_ACCESS)
1696: || align >= BIGGEST_ALIGNMENT / BITS_PER_UNIT
1.1 root 1697: || PUSH_ROUNDING (align) == align)
1698: && PUSH_ROUNDING (INTVAL (size)) == INTVAL (size))
1699: {
1700: /* Push padding now if padding above and stack grows down,
1701: or if padding below and stack grows up.
1702: But if space already allocated, this has already been done. */
1703: if (extra && args_addr == 0
1704: && where_pad != none && where_pad != stack_direction)
1.1.1.4 ! root 1705: anti_adjust_stack (GEN_INT (extra));
1.1 root 1706:
1707: move_by_pieces (gen_rtx (MEM, BLKmode, gen_push_operand ()), xinner,
1708: INTVAL (size) - used, align);
1709: }
1710: else
1711: #endif /* PUSH_ROUNDING */
1712: {
1713: /* Otherwise make space on the stack and copy the data
1714: to the address of that space. */
1715:
1716: /* Deduct words put into registers from the size we must copy. */
1717: if (partial != 0)
1718: {
1719: if (GET_CODE (size) == CONST_INT)
1.1.1.4 ! root 1720: size = GEN_INT (INTVAL (size) - used);
1.1 root 1721: else
1722: size = expand_binop (GET_MODE (size), sub_optab, size,
1.1.1.4 ! root 1723: GEN_INT (used), NULL_RTX, 0,
! 1724: OPTAB_LIB_WIDEN);
1.1 root 1725: }
1726:
1727: /* Get the address of the stack space.
1728: In this case, we do not deal with EXTRA separately.
1729: A single stack adjust will do. */
1730: if (! args_addr)
1731: {
1732: temp = push_block (size, extra, where_pad == downward);
1733: extra = 0;
1734: }
1735: else if (GET_CODE (args_so_far) == CONST_INT)
1736: temp = memory_address (BLKmode,
1737: plus_constant (args_addr,
1738: skip + INTVAL (args_so_far)));
1739: else
1740: temp = memory_address (BLKmode,
1741: plus_constant (gen_rtx (PLUS, Pmode,
1742: args_addr, args_so_far),
1743: skip));
1744:
1745: /* TEMP is the address of the block. Copy the data there. */
1746: if (GET_CODE (size) == CONST_INT
1747: && (move_by_pieces_ninsns ((unsigned) INTVAL (size), align)
1748: < MOVE_RATIO))
1749: {
1750: move_by_pieces (gen_rtx (MEM, BLKmode, temp), xinner,
1751: INTVAL (size), align);
1752: goto ret;
1753: }
1754: /* Try the most limited insn first, because there's no point
1755: including more than one in the machine description unless
1756: the more limited one has some advantage. */
1757: #ifdef HAVE_movstrqi
1758: if (HAVE_movstrqi
1759: && GET_CODE (size) == CONST_INT
1760: && ((unsigned) INTVAL (size)
1761: < (1 << (GET_MODE_BITSIZE (QImode) - 1))))
1762: {
1763: emit_insn (gen_movstrqi (gen_rtx (MEM, BLKmode, temp),
1.1.1.4 ! root 1764: xinner, size, GEN_INT (align)));
1.1 root 1765: goto ret;
1766: }
1767: #endif
1768: #ifdef HAVE_movstrhi
1769: if (HAVE_movstrhi
1770: && GET_CODE (size) == CONST_INT
1771: && ((unsigned) INTVAL (size)
1772: < (1 << (GET_MODE_BITSIZE (HImode) - 1))))
1773: {
1774: emit_insn (gen_movstrhi (gen_rtx (MEM, BLKmode, temp),
1.1.1.4 ! root 1775: xinner, size, GEN_INT (align)));
1.1 root 1776: goto ret;
1777: }
1778: #endif
1779: #ifdef HAVE_movstrsi
1780: if (HAVE_movstrsi)
1781: {
1782: emit_insn (gen_movstrsi (gen_rtx (MEM, BLKmode, temp),
1.1.1.4 ! root 1783: xinner, size, GEN_INT (align)));
1.1 root 1784: goto ret;
1785: }
1786: #endif
1787: #ifdef HAVE_movstrdi
1788: if (HAVE_movstrdi)
1789: {
1790: emit_insn (gen_movstrdi (gen_rtx (MEM, BLKmode, temp),
1.1.1.4 ! root 1791: xinner, size, GEN_INT (align)));
1.1 root 1792: goto ret;
1793: }
1794: #endif
1795:
1796: #ifndef ACCUMULATE_OUTGOING_ARGS
1797: /* If the source is referenced relative to the stack pointer,
1798: copy it to another register to stabilize it. We do not need
1799: to do this if we know that we won't be changing sp. */
1800:
1801: if (reg_mentioned_p (virtual_stack_dynamic_rtx, temp)
1802: || reg_mentioned_p (virtual_outgoing_args_rtx, temp))
1803: temp = copy_to_reg (temp);
1804: #endif
1805:
1806: /* Make inhibit_defer_pop nonzero around the library call
1807: to force it to pop the bcopy-arguments right away. */
1808: NO_DEFER_POP;
1809: #ifdef TARGET_MEM_FUNCTIONS
1.1.1.4 ! root 1810: emit_library_call (memcpy_libfunc, 0,
1.1 root 1811: VOIDmode, 3, temp, Pmode, XEXP (xinner, 0), Pmode,
1812: size, Pmode);
1813: #else
1.1.1.4 ! root 1814: emit_library_call (bcopy_libfunc, 0,
1.1 root 1815: VOIDmode, 3, XEXP (xinner, 0), Pmode, temp, Pmode,
1816: size, Pmode);
1817: #endif
1818: OK_DEFER_POP;
1819: }
1820: }
1821: else if (partial > 0)
1822: {
1823: /* Scalar partly in registers. */
1824:
1825: int size = GET_MODE_SIZE (mode) / UNITS_PER_WORD;
1826: int i;
1827: int not_stack;
1828: /* # words of start of argument
1829: that we must make space for but need not store. */
1830: int offset = partial % (PARM_BOUNDARY / BITS_PER_WORD);
1831: int args_offset = INTVAL (args_so_far);
1832: int skip;
1833:
1834: /* Push padding now if padding above and stack grows down,
1835: or if padding below and stack grows up.
1836: But if space already allocated, this has already been done. */
1837: if (extra && args_addr == 0
1838: && where_pad != none && where_pad != stack_direction)
1.1.1.4 ! root 1839: anti_adjust_stack (GEN_INT (extra));
1.1 root 1840:
1841: /* If we make space by pushing it, we might as well push
1842: the real data. Otherwise, we can leave OFFSET nonzero
1843: and leave the space uninitialized. */
1844: if (args_addr == 0)
1845: offset = 0;
1846:
1847: /* Now NOT_STACK gets the number of words that we don't need to
1848: allocate on the stack. */
1849: not_stack = partial - offset;
1850:
1851: /* If the partial register-part of the arg counts in its stack size,
1852: skip the part of stack space corresponding to the registers.
1853: Otherwise, start copying to the beginning of the stack space,
1854: by setting SKIP to 0. */
1855: #ifndef REG_PARM_STACK_SPACE
1856: skip = 0;
1857: #else
1858: skip = not_stack;
1859: #endif
1860:
1861: if (CONSTANT_P (x) && ! LEGITIMATE_CONSTANT_P (x))
1862: x = validize_mem (force_const_mem (mode, x));
1863:
1864: /* If X is a hard register in a non-integer mode, copy it into a pseudo;
1865: SUBREGs of such registers are not allowed. */
1866: if ((GET_CODE (x) == REG && REGNO (x) < FIRST_PSEUDO_REGISTER
1867: && GET_MODE_CLASS (GET_MODE (x)) != MODE_INT))
1868: x = copy_to_reg (x);
1869:
1870: /* Loop over all the words allocated on the stack for this arg. */
1871: /* We can do it by words, because any scalar bigger than a word
1872: has a size a multiple of a word. */
1873: #ifndef PUSH_ARGS_REVERSED
1874: for (i = not_stack; i < size; i++)
1875: #else
1876: for (i = size - 1; i >= not_stack; i--)
1877: #endif
1878: if (i >= not_stack + offset)
1879: emit_push_insn (operand_subword_force (x, i, mode),
1.1.1.4 ! root 1880: word_mode, NULL_TREE, NULL_RTX, align, 0, NULL_RTX,
! 1881: 0, args_addr,
! 1882: GEN_INT (args_offset + ((i - not_stack + skip)
1.1 root 1883: * UNITS_PER_WORD)));
1884: }
1885: else
1886: {
1887: rtx addr;
1888:
1889: /* Push padding now if padding above and stack grows down,
1890: or if padding below and stack grows up.
1891: But if space already allocated, this has already been done. */
1892: if (extra && args_addr == 0
1893: && where_pad != none && where_pad != stack_direction)
1.1.1.4 ! root 1894: anti_adjust_stack (GEN_INT (extra));
1.1 root 1895:
1896: #ifdef PUSH_ROUNDING
1897: if (args_addr == 0)
1898: addr = gen_push_operand ();
1899: else
1900: #endif
1901: if (GET_CODE (args_so_far) == CONST_INT)
1902: addr
1903: = memory_address (mode,
1904: plus_constant (args_addr, INTVAL (args_so_far)));
1905: else
1906: addr = memory_address (mode, gen_rtx (PLUS, Pmode, args_addr,
1907: args_so_far));
1908:
1909: emit_move_insn (gen_rtx (MEM, mode, addr), x);
1910: }
1911:
1912: ret:
1913: /* If part should go in registers, copy that part
1914: into the appropriate registers. Do this now, at the end,
1915: since mem-to-mem copies above may do function calls. */
1916: if (partial > 0)
1917: move_block_to_reg (REGNO (reg), x, partial, mode);
1918:
1919: if (extra && args_addr == 0 && where_pad == stack_direction)
1.1.1.4 ! root 1920: anti_adjust_stack (GEN_INT (extra));
1.1 root 1921: }
1922:
1923: /* Output a library call to function FUN (a SYMBOL_REF rtx)
1924: (emitting the queue unless NO_QUEUE is nonzero),
1925: for a value of mode OUTMODE,
1926: with NARGS different arguments, passed as alternating rtx values
1927: and machine_modes to convert them to.
1928: The rtx values should have been passed through protect_from_queue already.
1929:
1930: NO_QUEUE will be true if and only if the library call is a `const' call
1931: which will be enclosed in REG_LIBCALL/REG_RETVAL notes; it is equivalent
1.1.1.4 ! root 1932: to the variable is_const in expand_call.
! 1933:
! 1934: NO_QUEUE must be true for const calls, because if it isn't, then
! 1935: any pending increment will be emitted between REG_LIBCALL/REG_RETVAL notes,
! 1936: and will be lost if the libcall sequence is optimized away.
! 1937:
! 1938: NO_QUEUE must be false for non-const calls, because if it isn't, the
! 1939: call insn will have its CONST_CALL_P bit set, and it will be incorrectly
! 1940: optimized. For instance, the instruction scheduler may incorrectly
! 1941: move memory references across the non-const call. */
1.1 root 1942:
1943: void
1944: emit_library_call (va_alist)
1945: va_dcl
1946: {
1947: va_list p;
1948: struct args_size args_size;
1949: register int argnum;
1950: enum machine_mode outmode;
1951: int nargs;
1952: rtx fun;
1953: rtx orgfun;
1954: int inc;
1955: int count;
1956: rtx argblock = 0;
1957: CUMULATIVE_ARGS args_so_far;
1958: struct arg { rtx value; enum machine_mode mode; rtx reg; int partial;
1959: struct args_size offset; struct args_size size; };
1960: struct arg *argvec;
1961: int old_inhibit_defer_pop = inhibit_defer_pop;
1962: int no_queue = 0;
1963: rtx use_insns;
1964:
1965: va_start (p);
1966: orgfun = fun = va_arg (p, rtx);
1967: no_queue = va_arg (p, int);
1968: outmode = va_arg (p, enum machine_mode);
1969: nargs = va_arg (p, int);
1970:
1971: /* Copy all the libcall-arguments out of the varargs data
1972: and into a vector ARGVEC.
1973:
1974: Compute how to pass each argument. We only support a very small subset
1975: of the full argument passing conventions to limit complexity here since
1976: library functions shouldn't have many args. */
1977:
1978: argvec = (struct arg *) alloca (nargs * sizeof (struct arg));
1979:
1980: INIT_CUMULATIVE_ARGS (args_so_far, (tree)0, fun);
1981:
1982: args_size.constant = 0;
1983: args_size.var = 0;
1984:
1985: for (count = 0; count < nargs; count++)
1986: {
1987: rtx val = va_arg (p, rtx);
1988: enum machine_mode mode = va_arg (p, enum machine_mode);
1989:
1990: /* We cannot convert the arg value to the mode the library wants here;
1991: must do it earlier where we know the signedness of the arg. */
1992: if (mode == BLKmode
1993: || (GET_MODE (val) != mode && GET_MODE (val) != VOIDmode))
1994: abort ();
1995:
1996: /* On some machines, there's no way to pass a float to a library fcn.
1997: Pass it as a double instead. */
1998: #ifdef LIBGCC_NEEDS_DOUBLE
1999: if (LIBGCC_NEEDS_DOUBLE && mode == SFmode)
1.1.1.4 ! root 2000: val = convert_to_mode (DFmode, val, 0), mode = DFmode;
1.1 root 2001: #endif
2002:
1.1.1.4 ! root 2003: /* There's no need to call protect_from_queue, because
! 2004: either emit_move_insn or emit_push_insn will do that. */
! 2005:
1.1 root 2006: /* Make sure it is a reasonable operand for a move or push insn. */
2007: if (GET_CODE (val) != REG && GET_CODE (val) != MEM
2008: && ! (CONSTANT_P (val) && LEGITIMATE_CONSTANT_P (val)))
1.1.1.4 ! root 2009: val = force_operand (val, NULL_RTX);
1.1 root 2010:
2011: argvec[count].value = val;
2012: argvec[count].mode = mode;
2013:
2014: #ifdef FUNCTION_ARG_PASS_BY_REFERENCE
1.1.1.4 ! root 2015: if (FUNCTION_ARG_PASS_BY_REFERENCE (args_so_far, mode, NULL_TREE, 1))
1.1 root 2016: abort ();
2017: #endif
2018:
1.1.1.4 ! root 2019: argvec[count].reg = FUNCTION_ARG (args_so_far, mode, NULL_TREE, 1);
1.1 root 2020: if (argvec[count].reg && GET_CODE (argvec[count].reg) == EXPR_LIST)
2021: abort ();
2022: #ifdef FUNCTION_ARG_PARTIAL_NREGS
2023: argvec[count].partial
1.1.1.4 ! root 2024: = FUNCTION_ARG_PARTIAL_NREGS (args_so_far, mode, NULL_TREE, 1);
1.1 root 2025: #else
2026: argvec[count].partial = 0;
2027: #endif
2028:
1.1.1.4 ! root 2029: locate_and_pad_parm (mode, NULL_TREE,
1.1 root 2030: argvec[count].reg && argvec[count].partial == 0,
1.1.1.4 ! root 2031: NULL_TREE, &args_size, &argvec[count].offset,
1.1 root 2032: &argvec[count].size);
2033:
2034: if (argvec[count].size.var)
2035: abort ();
2036:
2037: #ifndef REG_PARM_STACK_SPACE
2038: if (argvec[count].partial)
2039: argvec[count].size.constant -= argvec[count].partial * UNITS_PER_WORD;
2040: #endif
2041:
2042: if (argvec[count].reg == 0 || argvec[count].partial != 0
2043: #ifdef REG_PARM_STACK_SPACE
2044: || 1
2045: #endif
2046: )
2047: args_size.constant += argvec[count].size.constant;
2048:
2049: #ifdef ACCUMULATE_OUTGOING_ARGS
2050: /* If this arg is actually passed on the stack, it might be
2051: clobbering something we already put there (this library call might
2052: be inside the evaluation of an argument to a function whose call
2053: requires the stack). This will only occur when the library call
2054: has sufficient args to run out of argument registers. Abort in
2055: this case; if this ever occurs, code must be added to save and
2056: restore the arg slot. */
2057:
2058: if (argvec[count].reg == 0 || argvec[count].partial != 0)
2059: abort ();
2060: #endif
2061:
2062: FUNCTION_ARG_ADVANCE (args_so_far, mode, (tree)0, 1);
2063: }
2064: va_end (p);
2065:
2066: /* If this machine requires an external definition for library
2067: functions, write one out. */
2068: assemble_external_libcall (fun);
2069:
2070: #ifdef STACK_BOUNDARY
2071: args_size.constant = (((args_size.constant + (STACK_BYTES - 1))
2072: / STACK_BYTES) * STACK_BYTES);
2073: #endif
2074:
2075: #ifdef REG_PARM_STACK_SPACE
2076: args_size.constant = MAX (args_size.constant,
2077: REG_PARM_STACK_SPACE ((tree) 0));
2078: #endif
2079:
2080: #ifdef ACCUMULATE_OUTGOING_ARGS
2081: if (args_size.constant > current_function_outgoing_args_size)
2082: current_function_outgoing_args_size = args_size.constant;
2083: args_size.constant = 0;
2084: #endif
2085:
2086: #ifndef PUSH_ROUNDING
1.1.1.4 ! root 2087: argblock = push_block (GEN_INT (args_size.constant), 0, 0);
1.1 root 2088: #endif
2089:
2090: #ifdef PUSH_ARGS_REVERSED
2091: inc = -1;
2092: argnum = nargs - 1;
2093: #else
2094: inc = 1;
2095: argnum = 0;
2096: #endif
2097:
2098: /* Push the args that need to be pushed. */
2099:
2100: for (count = 0; count < nargs; count++, argnum += inc)
2101: {
2102: register enum machine_mode mode = argvec[argnum].mode;
2103: register rtx val = argvec[argnum].value;
2104: rtx reg = argvec[argnum].reg;
2105: int partial = argvec[argnum].partial;
2106:
2107: if (! (reg != 0 && partial == 0))
1.1.1.4 ! root 2108: emit_push_insn (val, mode, NULL_TREE, NULL_RTX, 0, partial, reg, 0,
! 2109: argblock, GEN_INT (argvec[count].offset.constant));
1.1 root 2110: NO_DEFER_POP;
2111: }
2112:
2113: #ifdef PUSH_ARGS_REVERSED
2114: argnum = nargs - 1;
2115: #else
2116: argnum = 0;
2117: #endif
2118:
2119: /* Now load any reg parms into their regs. */
2120:
2121: for (count = 0; count < nargs; count++, argnum += inc)
2122: {
2123: register enum machine_mode mode = argvec[argnum].mode;
2124: register rtx val = argvec[argnum].value;
2125: rtx reg = argvec[argnum].reg;
2126: int partial = argvec[argnum].partial;
2127:
2128: if (reg != 0 && partial == 0)
2129: emit_move_insn (reg, val);
2130: NO_DEFER_POP;
2131: }
2132:
2133: /* For version 1.37, try deleting this entirely. */
2134: if (! no_queue)
2135: emit_queue ();
2136:
2137: /* Any regs containing parms remain in use through the call. */
2138: start_sequence ();
2139: for (count = 0; count < nargs; count++)
2140: if (argvec[count].reg != 0)
2141: emit_insn (gen_rtx (USE, VOIDmode, argvec[count].reg));
2142:
2143: use_insns = get_insns ();
2144: end_sequence ();
2145:
1.1.1.4 ! root 2146: fun = prepare_call_address (fun, NULL_TREE, &use_insns);
1.1 root 2147:
2148: /* Don't allow popping to be deferred, since then
2149: cse'ing of library calls could delete a call and leave the pop. */
2150: NO_DEFER_POP;
2151:
2152: /* We pass the old value of inhibit_defer_pop + 1 to emit_call_1, which
2153: will set inhibit_defer_pop to that value. */
2154:
2155: emit_call_1 (fun, get_identifier (XSTR (orgfun, 0)), args_size.constant, 0,
2156: FUNCTION_ARG (args_so_far, VOIDmode, void_type_node, 1),
1.1.1.4 ! root 2157: outmode != VOIDmode ? hard_libcall_value (outmode) : NULL_RTX,
1.1 root 2158: old_inhibit_defer_pop + 1, use_insns, no_queue);
2159:
2160: /* Now restore inhibit_defer_pop to its actual original value. */
2161: OK_DEFER_POP;
2162: }
2163:
2164: /* Expand an assignment that stores the value of FROM into TO.
2165: If WANT_VALUE is nonzero, return an rtx for the value of TO.
2166: (This may contain a QUEUED rtx.)
2167: Otherwise, the returned value is not meaningful.
2168:
2169: SUGGEST_REG is no longer actually used.
2170: It used to mean, copy the value through a register
2171: and return that register, if that is possible.
2172: But now we do this if WANT_VALUE.
2173:
2174: If the value stored is a constant, we return the constant. */
2175:
2176: rtx
2177: expand_assignment (to, from, want_value, suggest_reg)
2178: tree to, from;
2179: int want_value;
2180: int suggest_reg;
2181: {
2182: register rtx to_rtx = 0;
2183: rtx result;
2184:
2185: /* Don't crash if the lhs of the assignment was erroneous. */
2186:
2187: if (TREE_CODE (to) == ERROR_MARK)
1.1.1.4 ! root 2188: return expand_expr (from, NULL_RTX, VOIDmode, 0);
1.1 root 2189:
2190: /* Assignment of a structure component needs special treatment
2191: if the structure component's rtx is not simply a MEM.
2192: Assignment of an array element at a constant index
2193: has the same problem. */
2194:
2195: if (TREE_CODE (to) == COMPONENT_REF
2196: || TREE_CODE (to) == BIT_FIELD_REF
2197: || (TREE_CODE (to) == ARRAY_REF
2198: && TREE_CODE (TREE_OPERAND (to, 1)) == INTEGER_CST
2199: && TREE_CODE (TYPE_SIZE (TREE_TYPE (to))) == INTEGER_CST))
2200: {
2201: enum machine_mode mode1;
2202: int bitsize;
2203: int bitpos;
1.1.1.3 root 2204: tree offset;
1.1 root 2205: int unsignedp;
2206: int volatilep = 0;
1.1.1.3 root 2207: tree tem = get_inner_reference (to, &bitsize, &bitpos, &offset,
1.1 root 2208: &mode1, &unsignedp, &volatilep);
2209:
2210: /* If we are going to use store_bit_field and extract_bit_field,
2211: make sure to_rtx will be safe for multiple use. */
2212:
2213: if (mode1 == VOIDmode && want_value)
2214: tem = stabilize_reference (tem);
2215:
1.1.1.4 ! root 2216: to_rtx = expand_expr (tem, NULL_RTX, VOIDmode, 0);
1.1.1.3 root 2217: if (offset != 0)
2218: {
1.1.1.4 ! root 2219: rtx offset_rtx = expand_expr (offset, NULL_RTX, VOIDmode, 0);
1.1.1.3 root 2220:
2221: if (GET_CODE (to_rtx) != MEM)
2222: abort ();
2223: to_rtx = change_address (to_rtx, VOIDmode,
2224: gen_rtx (PLUS, Pmode, XEXP (to_rtx, 0),
2225: force_reg (Pmode, offset_rtx)));
2226: }
1.1 root 2227: if (volatilep)
2228: {
2229: if (GET_CODE (to_rtx) == MEM)
2230: MEM_VOLATILE_P (to_rtx) = 1;
2231: #if 0 /* This was turned off because, when a field is volatile
2232: in an object which is not volatile, the object may be in a register,
2233: and then we would abort over here. */
2234: else
2235: abort ();
2236: #endif
2237: }
2238:
2239: result = store_field (to_rtx, bitsize, bitpos, mode1, from,
2240: (want_value
2241: /* Spurious cast makes HPUX compiler happy. */
2242: ? (enum machine_mode) TYPE_MODE (TREE_TYPE (to))
2243: : VOIDmode),
2244: unsignedp,
2245: /* Required alignment of containing datum. */
2246: TYPE_ALIGN (TREE_TYPE (tem)) / BITS_PER_UNIT,
2247: int_size_in_bytes (TREE_TYPE (tem)));
2248: preserve_temp_slots (result);
2249: free_temp_slots ();
2250:
2251: return result;
2252: }
2253:
2254: /* Ordinary treatment. Expand TO to get a REG or MEM rtx.
2255: Don't re-expand if it was expanded already (in COMPONENT_REF case). */
2256:
2257: if (to_rtx == 0)
1.1.1.4 ! root 2258: to_rtx = expand_expr (to, NULL_RTX, VOIDmode, 0);
1.1 root 2259:
2260: /* In case we are returning the contents of an object which overlaps
2261: the place the value is being stored, use a safe function when copying
2262: a value through a pointer into a structure value return block. */
2263: if (TREE_CODE (to) == RESULT_DECL && TREE_CODE (from) == INDIRECT_REF
2264: && current_function_returns_struct
2265: && !current_function_returns_pcc_struct)
2266: {
1.1.1.4 ! root 2267: rtx from_rtx = expand_expr (from, NULL_RTX, VOIDmode, 0);
1.1 root 2268: rtx size = expr_size (from);
2269:
2270: #ifdef TARGET_MEM_FUNCTIONS
1.1.1.4 ! root 2271: emit_library_call (memcpy_libfunc, 0,
1.1 root 2272: VOIDmode, 3, XEXP (to_rtx, 0), Pmode,
2273: XEXP (from_rtx, 0), Pmode,
2274: size, Pmode);
2275: #else
1.1.1.4 ! root 2276: emit_library_call (bcopy_libfunc, 0,
1.1 root 2277: VOIDmode, 3, XEXP (from_rtx, 0), Pmode,
2278: XEXP (to_rtx, 0), Pmode,
2279: size, Pmode);
2280: #endif
2281:
2282: preserve_temp_slots (to_rtx);
2283: free_temp_slots ();
2284: return to_rtx;
2285: }
2286:
2287: /* Compute FROM and store the value in the rtx we got. */
2288:
2289: result = store_expr (from, to_rtx, want_value);
2290: preserve_temp_slots (result);
2291: free_temp_slots ();
2292: return result;
2293: }
2294:
2295: /* Generate code for computing expression EXP,
2296: and storing the value into TARGET.
2297: Returns TARGET or an equivalent value.
2298: TARGET may contain a QUEUED rtx.
2299:
2300: If SUGGEST_REG is nonzero, copy the value through a register
2301: and return that register, if that is possible.
2302:
2303: If the value stored is a constant, we return the constant. */
2304:
2305: rtx
2306: store_expr (exp, target, suggest_reg)
2307: register tree exp;
2308: register rtx target;
2309: int suggest_reg;
2310: {
2311: register rtx temp;
2312: int dont_return_target = 0;
2313:
2314: if (TREE_CODE (exp) == COMPOUND_EXPR)
2315: {
2316: /* Perform first part of compound expression, then assign from second
2317: part. */
2318: expand_expr (TREE_OPERAND (exp, 0), const0_rtx, VOIDmode, 0);
2319: emit_queue ();
2320: return store_expr (TREE_OPERAND (exp, 1), target, suggest_reg);
2321: }
2322: else if (TREE_CODE (exp) == COND_EXPR && GET_MODE (target) == BLKmode)
2323: {
2324: /* For conditional expression, get safe form of the target. Then
2325: test the condition, doing the appropriate assignment on either
2326: side. This avoids the creation of unnecessary temporaries.
2327: For non-BLKmode, it is more efficient not to do this. */
2328:
2329: rtx lab1 = gen_label_rtx (), lab2 = gen_label_rtx ();
2330:
2331: emit_queue ();
2332: target = protect_from_queue (target, 1);
2333:
2334: NO_DEFER_POP;
2335: jumpifnot (TREE_OPERAND (exp, 0), lab1);
2336: store_expr (TREE_OPERAND (exp, 1), target, suggest_reg);
2337: emit_queue ();
2338: emit_jump_insn (gen_jump (lab2));
2339: emit_barrier ();
2340: emit_label (lab1);
2341: store_expr (TREE_OPERAND (exp, 2), target, suggest_reg);
2342: emit_queue ();
2343: emit_label (lab2);
2344: OK_DEFER_POP;
2345: return target;
2346: }
2347: else if (suggest_reg && GET_CODE (target) == MEM
2348: && GET_MODE (target) != BLKmode)
2349: /* If target is in memory and caller wants value in a register instead,
2350: arrange that. Pass TARGET as target for expand_expr so that,
2351: if EXP is another assignment, SUGGEST_REG will be nonzero for it.
2352: We know expand_expr will not use the target in that case. */
2353: {
1.1.1.4 ! root 2354: temp = expand_expr (exp, cse_not_expected ? NULL_RTX : target,
1.1 root 2355: GET_MODE (target), 0);
2356: if (GET_MODE (temp) != BLKmode && GET_MODE (temp) != VOIDmode)
2357: temp = copy_to_reg (temp);
2358: dont_return_target = 1;
2359: }
2360: else if (queued_subexp_p (target))
2361: /* If target contains a postincrement, it is not safe
2362: to use as the returned value. It would access the wrong
2363: place by the time the queued increment gets output.
2364: So copy the value through a temporary and use that temp
2365: as the result. */
2366: {
2367: if (GET_MODE (target) != BLKmode && GET_MODE (target) != VOIDmode)
2368: {
2369: /* Expand EXP into a new pseudo. */
2370: temp = gen_reg_rtx (GET_MODE (target));
2371: temp = expand_expr (exp, temp, GET_MODE (target), 0);
2372: }
2373: else
1.1.1.4 ! root 2374: temp = expand_expr (exp, NULL_RTX, GET_MODE (target), 0);
1.1 root 2375: dont_return_target = 1;
2376: }
1.1.1.4 ! root 2377: else if (GET_CODE (target) == SUBREG && SUBREG_PROMOTED_VAR_P (target))
! 2378: /* If this is an scalar in a register that is stored in a wider mode
! 2379: than the declared mode, compute the result into its declared mode
! 2380: and then convert to the wider mode. Our value is the computed
! 2381: expression. */
! 2382: {
! 2383: temp = expand_expr (exp, NULL_RTX, VOIDmode, 0);
! 2384: convert_move (SUBREG_REG (target), temp,
! 2385: SUBREG_PROMOTED_UNSIGNED_P (target));
! 2386: return temp;
! 2387: }
1.1 root 2388: else
2389: {
2390: temp = expand_expr (exp, target, GET_MODE (target), 0);
2391: /* DO return TARGET if it's a specified hardware register.
2392: expand_return relies on this. */
2393: if (!(target && GET_CODE (target) == REG
2394: && REGNO (target) < FIRST_PSEUDO_REGISTER)
2395: && CONSTANT_P (temp))
2396: dont_return_target = 1;
2397: }
2398:
2399: /* If value was not generated in the target, store it there.
2400: Convert the value to TARGET's type first if nec. */
2401:
2402: if (temp != target && TREE_CODE (exp) != ERROR_MARK)
2403: {
2404: target = protect_from_queue (target, 1);
2405: if (GET_MODE (temp) != GET_MODE (target)
2406: && GET_MODE (temp) != VOIDmode)
2407: {
2408: int unsignedp = TREE_UNSIGNED (TREE_TYPE (exp));
2409: if (dont_return_target)
2410: {
2411: /* In this case, we will return TEMP,
2412: so make sure it has the proper mode.
2413: But don't forget to store the value into TARGET. */
2414: temp = convert_to_mode (GET_MODE (target), temp, unsignedp);
2415: emit_move_insn (target, temp);
2416: }
2417: else
2418: convert_move (target, temp, unsignedp);
2419: }
2420:
2421: else if (GET_MODE (temp) == BLKmode && TREE_CODE (exp) == STRING_CST)
2422: {
2423: /* Handle copying a string constant into an array.
2424: The string constant may be shorter than the array.
2425: So copy just the string's actual length, and clear the rest. */
2426: rtx size;
2427:
1.1.1.2 root 2428: /* Get the size of the data type of the string,
2429: which is actually the size of the target. */
2430: size = expr_size (exp);
2431: if (GET_CODE (size) == CONST_INT
2432: && INTVAL (size) < TREE_STRING_LENGTH (exp))
2433: emit_block_move (target, temp, size,
2434: TYPE_ALIGN (TREE_TYPE (exp)) / BITS_PER_UNIT);
2435: else
1.1 root 2436: {
1.1.1.2 root 2437: /* Compute the size of the data to copy from the string. */
2438: tree copy_size
2439: = fold (build (MIN_EXPR, sizetype,
2440: size_binop (CEIL_DIV_EXPR,
2441: TYPE_SIZE (TREE_TYPE (exp)),
2442: size_int (BITS_PER_UNIT)),
2443: convert (sizetype,
2444: build_int_2 (TREE_STRING_LENGTH (exp), 0))));
1.1.1.4 ! root 2445: rtx copy_size_rtx = expand_expr (copy_size, NULL_RTX,
! 2446: VOIDmode, 0);
1.1.1.2 root 2447: rtx label = 0;
2448:
2449: /* Copy that much. */
2450: emit_block_move (target, temp, copy_size_rtx,
2451: TYPE_ALIGN (TREE_TYPE (exp)) / BITS_PER_UNIT);
2452:
2453: /* Figure out how much is left in TARGET
2454: that we have to clear. */
2455: if (GET_CODE (copy_size_rtx) == CONST_INT)
2456: {
2457: temp = plus_constant (XEXP (target, 0),
2458: TREE_STRING_LENGTH (exp));
2459: size = plus_constant (size,
2460: - TREE_STRING_LENGTH (exp));
2461: }
2462: else
2463: {
2464: enum machine_mode size_mode = Pmode;
2465:
2466: temp = force_reg (Pmode, XEXP (target, 0));
2467: temp = expand_binop (size_mode, add_optab, temp,
1.1.1.4 ! root 2468: copy_size_rtx, NULL_RTX, 0,
! 2469: OPTAB_LIB_WIDEN);
1.1.1.2 root 2470:
2471: size = expand_binop (size_mode, sub_optab, size,
1.1.1.4 ! root 2472: copy_size_rtx, NULL_RTX, 0,
! 2473: OPTAB_LIB_WIDEN);
1.1.1.2 root 2474:
1.1.1.4 ! root 2475: emit_cmp_insn (size, const0_rtx, LT, NULL_RTX,
1.1.1.2 root 2476: GET_MODE (size), 0, 0);
2477: label = gen_label_rtx ();
2478: emit_jump_insn (gen_blt (label));
2479: }
2480:
2481: if (size != const0_rtx)
2482: {
1.1 root 2483: #ifdef TARGET_MEM_FUNCTIONS
1.1.1.4 ! root 2484: emit_library_call (memset_libfunc, 0, VOIDmode, 3,
1.1.1.2 root 2485: temp, Pmode, const0_rtx, Pmode, size, Pmode);
1.1 root 2486: #else
1.1.1.4 ! root 2487: emit_library_call (bzero_libfunc, 0, VOIDmode, 2,
1.1.1.2 root 2488: temp, Pmode, size, Pmode);
1.1 root 2489: #endif
1.1.1.2 root 2490: }
2491: if (label)
2492: emit_label (label);
1.1 root 2493: }
2494: }
2495: else if (GET_MODE (temp) == BLKmode)
2496: emit_block_move (target, temp, expr_size (exp),
2497: TYPE_ALIGN (TREE_TYPE (exp)) / BITS_PER_UNIT);
2498: else
2499: emit_move_insn (target, temp);
2500: }
2501: if (dont_return_target)
2502: return temp;
2503: return target;
2504: }
2505:
2506: /* Store the value of constructor EXP into the rtx TARGET.
2507: TARGET is either a REG or a MEM. */
2508:
2509: static void
2510: store_constructor (exp, target)
2511: tree exp;
2512: rtx target;
2513: {
1.1.1.3 root 2514: tree type = TREE_TYPE (exp);
2515:
1.1 root 2516: /* We know our target cannot conflict, since safe_from_p has been called. */
2517: #if 0
2518: /* Don't try copying piece by piece into a hard register
2519: since that is vulnerable to being clobbered by EXP.
2520: Instead, construct in a pseudo register and then copy it all. */
2521: if (GET_CODE (target) == REG && REGNO (target) < FIRST_PSEUDO_REGISTER)
2522: {
2523: rtx temp = gen_reg_rtx (GET_MODE (target));
2524: store_constructor (exp, temp);
2525: emit_move_insn (target, temp);
2526: return;
2527: }
2528: #endif
2529:
1.1.1.3 root 2530: if (TREE_CODE (type) == RECORD_TYPE || TREE_CODE (type) == UNION_TYPE)
1.1 root 2531: {
2532: register tree elt;
2533:
1.1.1.3 root 2534: /* Inform later passes that the whole union value is dead. */
2535: if (TREE_CODE (type) == UNION_TYPE)
1.1 root 2536: emit_insn (gen_rtx (CLOBBER, VOIDmode, target));
1.1.1.3 root 2537:
2538: /* If we are building a static constructor into a register,
2539: set the initial value as zero so we can fold the value into
2540: a constant. */
2541: else if (GET_CODE (target) == REG && TREE_STATIC (exp))
2542: emit_move_insn (target, const0_rtx);
2543:
1.1 root 2544: /* If the constructor has fewer fields than the structure,
2545: clear the whole structure first. */
2546: else if (list_length (CONSTRUCTOR_ELTS (exp))
1.1.1.3 root 2547: != list_length (TYPE_FIELDS (type)))
2548: clear_storage (target, int_size_in_bytes (type));
1.1 root 2549: else
2550: /* Inform later passes that the old value is dead. */
2551: emit_insn (gen_rtx (CLOBBER, VOIDmode, target));
2552:
2553: /* Store each element of the constructor into
2554: the corresponding field of TARGET. */
2555:
2556: for (elt = CONSTRUCTOR_ELTS (exp); elt; elt = TREE_CHAIN (elt))
2557: {
2558: register tree field = TREE_PURPOSE (elt);
2559: register enum machine_mode mode;
2560: int bitsize;
2561: int bitpos;
2562: int unsignedp;
2563:
1.1.1.4 ! root 2564: /* Just ignore missing fields.
! 2565: We cleared the whole structure, above,
! 2566: if any fields are missing. */
! 2567: if (field == 0)
! 2568: continue;
! 2569:
1.1 root 2570: bitsize = TREE_INT_CST_LOW (DECL_SIZE (field));
2571: unsignedp = TREE_UNSIGNED (field);
2572: mode = DECL_MODE (field);
2573: if (DECL_BIT_FIELD (field))
2574: mode = VOIDmode;
2575:
2576: if (TREE_CODE (DECL_FIELD_BITPOS (field)) != INTEGER_CST)
2577: /* ??? This case remains to be written. */
2578: abort ();
2579:
2580: bitpos = TREE_INT_CST_LOW (DECL_FIELD_BITPOS (field));
2581:
2582: store_field (target, bitsize, bitpos, mode, TREE_VALUE (elt),
2583: /* The alignment of TARGET is
2584: at least what its type requires. */
2585: VOIDmode, 0,
1.1.1.3 root 2586: TYPE_ALIGN (type) / BITS_PER_UNIT,
2587: int_size_in_bytes (type));
1.1 root 2588: }
2589: }
1.1.1.3 root 2590: else if (TREE_CODE (type) == ARRAY_TYPE)
1.1 root 2591: {
2592: register tree elt;
2593: register int i;
1.1.1.3 root 2594: tree domain = TYPE_DOMAIN (type);
1.1.1.4 ! root 2595: HOST_WIDE_INT minelt = TREE_INT_CST_LOW (TYPE_MIN_VALUE (domain));
! 2596: HOST_WIDE_INT maxelt = TREE_INT_CST_LOW (TYPE_MAX_VALUE (domain));
1.1.1.3 root 2597: tree elttype = TREE_TYPE (type);
1.1 root 2598:
2599: /* If the constructor has fewer fields than the structure,
1.1.1.3 root 2600: clear the whole structure first. Similarly if this this is
2601: static constructor of a non-BLKmode object. */
1.1 root 2602:
1.1.1.3 root 2603: if (list_length (CONSTRUCTOR_ELTS (exp)) < maxelt - minelt + 1
2604: || (GET_CODE (target) == REG && TREE_STATIC (exp)))
1.1 root 2605: clear_storage (target, maxelt - minelt + 1);
2606: else
2607: /* Inform later passes that the old value is dead. */
2608: emit_insn (gen_rtx (CLOBBER, VOIDmode, target));
2609:
2610: /* Store each element of the constructor into
2611: the corresponding element of TARGET, determined
2612: by counting the elements. */
2613: for (elt = CONSTRUCTOR_ELTS (exp), i = 0;
2614: elt;
2615: elt = TREE_CHAIN (elt), i++)
2616: {
2617: register enum machine_mode mode;
2618: int bitsize;
2619: int bitpos;
2620: int unsignedp;
2621:
2622: mode = TYPE_MODE (elttype);
2623: bitsize = GET_MODE_BITSIZE (mode);
2624: unsignedp = TREE_UNSIGNED (elttype);
2625:
2626: bitpos = (i * TREE_INT_CST_LOW (TYPE_SIZE (elttype)));
2627:
2628: store_field (target, bitsize, bitpos, mode, TREE_VALUE (elt),
2629: /* The alignment of TARGET is
2630: at least what its type requires. */
2631: VOIDmode, 0,
1.1.1.3 root 2632: TYPE_ALIGN (type) / BITS_PER_UNIT,
2633: int_size_in_bytes (type));
1.1 root 2634: }
2635: }
2636:
2637: else
2638: abort ();
2639: }
2640:
2641: /* Store the value of EXP (an expression tree)
2642: into a subfield of TARGET which has mode MODE and occupies
2643: BITSIZE bits, starting BITPOS bits from the start of TARGET.
2644: If MODE is VOIDmode, it means that we are storing into a bit-field.
2645:
2646: If VALUE_MODE is VOIDmode, return nothing in particular.
2647: UNSIGNEDP is not used in this case.
2648:
2649: Otherwise, return an rtx for the value stored. This rtx
2650: has mode VALUE_MODE if that is convenient to do.
2651: In this case, UNSIGNEDP must be nonzero if the value is an unsigned type.
2652:
2653: ALIGN is the alignment that TARGET is known to have, measured in bytes.
2654: TOTAL_SIZE is the size in bytes of the structure, or -1 if varying. */
2655:
2656: static rtx
2657: store_field (target, bitsize, bitpos, mode, exp, value_mode,
2658: unsignedp, align, total_size)
2659: rtx target;
2660: int bitsize, bitpos;
2661: enum machine_mode mode;
2662: tree exp;
2663: enum machine_mode value_mode;
2664: int unsignedp;
2665: int align;
2666: int total_size;
2667: {
1.1.1.4 ! root 2668: HOST_WIDE_INT width_mask = 0;
1.1 root 2669:
1.1.1.4 ! root 2670: if (bitsize < HOST_BITS_PER_WIDE_INT)
! 2671: width_mask = ((HOST_WIDE_INT) 1 << bitsize) - 1;
1.1 root 2672:
2673: /* If we are storing into an unaligned field of an aligned union that is
2674: in a register, we may have the mode of TARGET being an integer mode but
2675: MODE == BLKmode. In that case, get an aligned object whose size and
2676: alignment are the same as TARGET and store TARGET into it (we can avoid
2677: the store if the field being stored is the entire width of TARGET). Then
2678: call ourselves recursively to store the field into a BLKmode version of
2679: that object. Finally, load from the object into TARGET. This is not
2680: very efficient in general, but should only be slightly more expensive
2681: than the otherwise-required unaligned accesses. Perhaps this can be
2682: cleaned up later. */
2683:
2684: if (mode == BLKmode
2685: && (GET_CODE (target) == REG || GET_CODE (target) == SUBREG))
2686: {
2687: rtx object = assign_stack_temp (GET_MODE (target),
2688: GET_MODE_SIZE (GET_MODE (target)), 0);
2689: rtx blk_object = copy_rtx (object);
2690:
2691: PUT_MODE (blk_object, BLKmode);
2692:
2693: if (bitsize != GET_MODE_BITSIZE (GET_MODE (target)))
2694: emit_move_insn (object, target);
2695:
2696: store_field (blk_object, bitsize, bitpos, mode, exp, VOIDmode, 0,
2697: align, total_size);
2698:
2699: emit_move_insn (target, object);
2700:
2701: return target;
2702: }
2703:
2704: /* If the structure is in a register or if the component
2705: is a bit field, we cannot use addressing to access it.
2706: Use bit-field techniques or SUBREG to store in it. */
2707:
1.1.1.4 ! root 2708: if (mode == VOIDmode
! 2709: || (mode != BLKmode && ! direct_store[(int) mode])
! 2710: || GET_CODE (target) == REG
1.1 root 2711: || GET_CODE (target) == SUBREG)
2712: {
1.1.1.4 ! root 2713: rtx temp = expand_expr (exp, NULL_RTX, VOIDmode, 0);
1.1 root 2714: /* Store the value in the bitfield. */
2715: store_bit_field (target, bitsize, bitpos, mode, temp, align, total_size);
2716: if (value_mode != VOIDmode)
2717: {
2718: /* The caller wants an rtx for the value. */
2719: /* If possible, avoid refetching from the bitfield itself. */
2720: if (width_mask != 0
2721: && ! (GET_CODE (target) == MEM && MEM_VOLATILE_P (target)))
1.1.1.4 ! root 2722: {
! 2723: tree count;
! 2724: enum machine_mode tmode;
! 2725:
! 2726: if (unsignedp)
! 2727: return expand_and (temp, GEN_INT (width_mask), NULL_RTX);
! 2728: tmode = GET_MODE (temp);
! 2729: if (tmode == VOIDmode)
! 2730: tmode = value_mode;
! 2731: count = build_int_2 (GET_MODE_BITSIZE (tmode) - bitsize, 0);
! 2732: temp = expand_shift (LSHIFT_EXPR, tmode, temp, count, 0, 0);
! 2733: return expand_shift (RSHIFT_EXPR, tmode, temp, count, 0, 0);
! 2734: }
1.1 root 2735: return extract_bit_field (target, bitsize, bitpos, unsignedp,
1.1.1.4 ! root 2736: NULL_RTX, value_mode, 0, align,
! 2737: total_size);
1.1 root 2738: }
2739: return const0_rtx;
2740: }
2741: else
2742: {
2743: rtx addr = XEXP (target, 0);
2744: rtx to_rtx;
2745:
2746: /* If a value is wanted, it must be the lhs;
2747: so make the address stable for multiple use. */
2748:
2749: if (value_mode != VOIDmode && GET_CODE (addr) != REG
2750: && ! CONSTANT_ADDRESS_P (addr)
2751: /* A frame-pointer reference is already stable. */
2752: && ! (GET_CODE (addr) == PLUS
2753: && GET_CODE (XEXP (addr, 1)) == CONST_INT
2754: && (XEXP (addr, 0) == virtual_incoming_args_rtx
2755: || XEXP (addr, 0) == virtual_stack_vars_rtx)))
2756: addr = copy_to_reg (addr);
2757:
2758: /* Now build a reference to just the desired component. */
2759:
2760: to_rtx = change_address (target, mode,
2761: plus_constant (addr, (bitpos / BITS_PER_UNIT)));
2762: MEM_IN_STRUCT_P (to_rtx) = 1;
2763:
2764: return store_expr (exp, to_rtx, value_mode != VOIDmode);
2765: }
2766: }
2767:
2768: /* Given an expression EXP that may be a COMPONENT_REF, a BIT_FIELD_REF,
2769: or an ARRAY_REF, look for nested COMPONENT_REFs, BIT_FIELD_REFs, or
2770: ARRAY_REFs at constant positions and find the ultimate containing object,
2771: which we return.
2772:
2773: We set *PBITSIZE to the size in bits that we want, *PBITPOS to the
2774: bit position, and *PUNSIGNEDP to the signedness of the field.
1.1.1.3 root 2775: If the position of the field is variable, we store a tree
2776: giving the variable offset (in units) in *POFFSET.
2777: This offset is in addition to the bit position.
2778: If the position is not variable, we store 0 in *POFFSET.
1.1 root 2779:
2780: If any of the extraction expressions is volatile,
2781: we store 1 in *PVOLATILEP. Otherwise we don't change that.
2782:
2783: If the field is a bit-field, *PMODE is set to VOIDmode. Otherwise, it
2784: is a mode that can be used to access the field. In that case, *PBITSIZE
1.1.1.3 root 2785: is redundant.
2786:
2787: If the field describes a variable-sized object, *PMODE is set to
2788: VOIDmode and *PBITSIZE is set to -1. An access cannot be made in
2789: this case, but the address of the object can be found. */
1.1 root 2790:
2791: tree
1.1.1.3 root 2792: get_inner_reference (exp, pbitsize, pbitpos, poffset, pmode, punsignedp, pvolatilep)
1.1 root 2793: tree exp;
2794: int *pbitsize;
2795: int *pbitpos;
1.1.1.3 root 2796: tree *poffset;
1.1 root 2797: enum machine_mode *pmode;
2798: int *punsignedp;
2799: int *pvolatilep;
2800: {
2801: tree size_tree = 0;
2802: enum machine_mode mode = VOIDmode;
1.1.1.3 root 2803: tree offset = 0;
1.1 root 2804:
2805: if (TREE_CODE (exp) == COMPONENT_REF)
2806: {
2807: size_tree = DECL_SIZE (TREE_OPERAND (exp, 1));
2808: if (! DECL_BIT_FIELD (TREE_OPERAND (exp, 1)))
2809: mode = DECL_MODE (TREE_OPERAND (exp, 1));
2810: *punsignedp = TREE_UNSIGNED (TREE_OPERAND (exp, 1));
2811: }
2812: else if (TREE_CODE (exp) == BIT_FIELD_REF)
2813: {
2814: size_tree = TREE_OPERAND (exp, 1);
2815: *punsignedp = TREE_UNSIGNED (exp);
2816: }
2817: else
2818: {
2819: mode = TYPE_MODE (TREE_TYPE (exp));
2820: *pbitsize = GET_MODE_BITSIZE (mode);
2821: *punsignedp = TREE_UNSIGNED (TREE_TYPE (exp));
2822: }
2823:
2824: if (size_tree)
2825: {
2826: if (TREE_CODE (size_tree) != INTEGER_CST)
1.1.1.3 root 2827: mode = BLKmode, *pbitsize = -1;
2828: else
2829: *pbitsize = TREE_INT_CST_LOW (size_tree);
1.1 root 2830: }
2831:
2832: /* Compute cumulative bit-offset for nested component-refs and array-refs,
2833: and find the ultimate containing object. */
2834:
2835: *pbitpos = 0;
2836:
2837: while (1)
2838: {
1.1.1.4 ! root 2839: if (TREE_CODE (exp) == INDIRECT_REF && flag_volatile)
! 2840: *pvolatilep = 1;
! 2841:
1.1.1.3 root 2842: if (TREE_CODE (exp) == COMPONENT_REF || TREE_CODE (exp) == BIT_FIELD_REF)
1.1 root 2843: {
1.1.1.3 root 2844: tree pos = (TREE_CODE (exp) == COMPONENT_REF
2845: ? DECL_FIELD_BITPOS (TREE_OPERAND (exp, 1))
2846: : TREE_OPERAND (exp, 2));
1.1 root 2847:
1.1.1.3 root 2848: if (TREE_CODE (pos) == PLUS_EXPR)
2849: {
2850: tree constant, var;
2851: if (TREE_CODE (TREE_OPERAND (pos, 0)) == INTEGER_CST)
2852: {
2853: constant = TREE_OPERAND (pos, 0);
2854: var = TREE_OPERAND (pos, 1);
2855: }
2856: else if (TREE_CODE (TREE_OPERAND (pos, 1)) == INTEGER_CST)
2857: {
2858: constant = TREE_OPERAND (pos, 1);
2859: var = TREE_OPERAND (pos, 0);
2860: }
2861: else
2862: abort ();
2863: *pbitpos += TREE_INT_CST_LOW (constant);
2864: if (offset)
2865: offset = size_binop (PLUS_EXPR, offset,
2866: size_binop (FLOOR_DIV_EXPR, var,
2867: size_int (BITS_PER_UNIT)));
2868: else
2869: offset = size_binop (FLOOR_DIV_EXPR, var,
2870: size_int (BITS_PER_UNIT));
2871: }
2872: else if (TREE_CODE (pos) == INTEGER_CST)
2873: *pbitpos += TREE_INT_CST_LOW (pos);
2874: else
2875: {
2876: /* Assume here that the offset is a multiple of a unit.
2877: If not, there should be an explicitly added constant. */
2878: if (offset)
2879: offset = size_binop (PLUS_EXPR, offset,
2880: size_binop (FLOOR_DIV_EXPR, pos,
2881: size_int (BITS_PER_UNIT)));
2882: else
2883: offset = size_binop (FLOOR_DIV_EXPR, pos,
2884: size_int (BITS_PER_UNIT));
2885: }
1.1 root 2886: }
2887:
2888: else if (TREE_CODE (exp) == ARRAY_REF
2889: && TREE_CODE (TREE_OPERAND (exp, 1)) == INTEGER_CST
2890: && TREE_CODE (TYPE_SIZE (TREE_TYPE (exp))) == INTEGER_CST)
2891: {
2892: *pbitpos += (TREE_INT_CST_LOW (TREE_OPERAND (exp, 1))
2893: * TREE_INT_CST_LOW (TYPE_SIZE (TREE_TYPE (exp))));
2894: }
2895: else if (TREE_CODE (exp) != NON_LVALUE_EXPR
2896: && ! ((TREE_CODE (exp) == NOP_EXPR
2897: || TREE_CODE (exp) == CONVERT_EXPR)
2898: && (TYPE_MODE (TREE_TYPE (exp))
2899: == TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0))))))
2900: break;
1.1.1.3 root 2901:
2902: /* If any reference in the chain is volatile, the effect is volatile. */
2903: if (TREE_THIS_VOLATILE (exp))
2904: *pvolatilep = 1;
1.1 root 2905: exp = TREE_OPERAND (exp, 0);
2906: }
2907:
2908: /* If this was a bit-field, see if there is a mode that allows direct
2909: access in case EXP is in memory. */
2910: if (mode == VOIDmode && *pbitpos % *pbitsize == 0)
2911: {
2912: mode = mode_for_size (*pbitsize, MODE_INT, 0);
2913: if (mode == BLKmode)
2914: mode = VOIDmode;
2915: }
2916:
2917: *pmode = mode;
1.1.1.3 root 2918: *poffset = offset;
2919: #if 0
2920: /* We aren't finished fixing the callers to really handle nonzero offset. */
2921: if (offset != 0)
2922: abort ();
2923: #endif
1.1 root 2924:
2925: return exp;
2926: }
2927:
2928: /* Given an rtx VALUE that may contain additions and multiplications,
2929: return an equivalent value that just refers to a register or memory.
2930: This is done by generating instructions to perform the arithmetic
1.1.1.4 ! root 2931: and returning a pseudo-register containing the value.
! 2932:
! 2933: The returned value may be a REG, SUBREG, MEM or constant. */
1.1 root 2934:
2935: rtx
2936: force_operand (value, target)
2937: rtx value, target;
2938: {
2939: register optab binoptab = 0;
2940: /* Use a temporary to force order of execution of calls to
2941: `force_operand'. */
2942: rtx tmp;
2943: register rtx op2;
2944: /* Use subtarget as the target for operand 0 of a binary operation. */
2945: register rtx subtarget = (target != 0 && GET_CODE (target) == REG ? target : 0);
2946:
2947: if (GET_CODE (value) == PLUS)
2948: binoptab = add_optab;
2949: else if (GET_CODE (value) == MINUS)
2950: binoptab = sub_optab;
2951: else if (GET_CODE (value) == MULT)
2952: {
2953: op2 = XEXP (value, 1);
2954: if (!CONSTANT_P (op2)
2955: && !(GET_CODE (op2) == REG && op2 != subtarget))
2956: subtarget = 0;
2957: tmp = force_operand (XEXP (value, 0), subtarget);
2958: return expand_mult (GET_MODE (value), tmp,
1.1.1.4 ! root 2959: force_operand (op2, NULL_RTX),
1.1 root 2960: target, 0);
2961: }
2962:
2963: if (binoptab)
2964: {
2965: op2 = XEXP (value, 1);
2966: if (!CONSTANT_P (op2)
2967: && !(GET_CODE (op2) == REG && op2 != subtarget))
2968: subtarget = 0;
2969: if (binoptab == sub_optab && GET_CODE (op2) == CONST_INT)
2970: {
2971: binoptab = add_optab;
2972: op2 = negate_rtx (GET_MODE (value), op2);
2973: }
2974:
2975: /* Check for an addition with OP2 a constant integer and our first
2976: operand a PLUS of a virtual register and something else. In that
2977: case, we want to emit the sum of the virtual register and the
2978: constant first and then add the other value. This allows virtual
2979: register instantiation to simply modify the constant rather than
2980: creating another one around this addition. */
2981: if (binoptab == add_optab && GET_CODE (op2) == CONST_INT
2982: && GET_CODE (XEXP (value, 0)) == PLUS
2983: && GET_CODE (XEXP (XEXP (value, 0), 0)) == REG
2984: && REGNO (XEXP (XEXP (value, 0), 0)) >= FIRST_VIRTUAL_REGISTER
2985: && REGNO (XEXP (XEXP (value, 0), 0)) <= LAST_VIRTUAL_REGISTER)
2986: {
2987: rtx temp = expand_binop (GET_MODE (value), binoptab,
2988: XEXP (XEXP (value, 0), 0), op2,
2989: subtarget, 0, OPTAB_LIB_WIDEN);
2990: return expand_binop (GET_MODE (value), binoptab, temp,
2991: force_operand (XEXP (XEXP (value, 0), 1), 0),
2992: target, 0, OPTAB_LIB_WIDEN);
2993: }
2994:
2995: tmp = force_operand (XEXP (value, 0), subtarget);
2996: return expand_binop (GET_MODE (value), binoptab, tmp,
1.1.1.4 ! root 2997: force_operand (op2, NULL_RTX),
1.1 root 2998: target, 0, OPTAB_LIB_WIDEN);
2999: /* We give UNSIGNEP = 0 to expand_binop
3000: because the only operations we are expanding here are signed ones. */
3001: }
3002: return value;
3003: }
3004:
3005: /* Subroutine of expand_expr:
3006: save the non-copied parts (LIST) of an expr (LHS), and return a list
3007: which can restore these values to their previous values,
3008: should something modify their storage. */
3009:
3010: static tree
3011: save_noncopied_parts (lhs, list)
3012: tree lhs;
3013: tree list;
3014: {
3015: tree tail;
3016: tree parts = 0;
3017:
3018: for (tail = list; tail; tail = TREE_CHAIN (tail))
3019: if (TREE_CODE (TREE_VALUE (tail)) == TREE_LIST)
3020: parts = chainon (parts, save_noncopied_parts (lhs, TREE_VALUE (tail)));
3021: else
3022: {
3023: tree part = TREE_VALUE (tail);
3024: tree part_type = TREE_TYPE (part);
1.1.1.4 ! root 3025: tree to_be_saved = build (COMPONENT_REF, part_type, lhs, part);
1.1 root 3026: rtx target = assign_stack_temp (TYPE_MODE (part_type),
3027: int_size_in_bytes (part_type), 0);
3028: if (! memory_address_p (TYPE_MODE (part_type), XEXP (target, 0)))
1.1.1.4 ! root 3029: target = change_address (target, TYPE_MODE (part_type), NULL_RTX);
1.1 root 3030: parts = tree_cons (to_be_saved,
1.1.1.4 ! root 3031: build (RTL_EXPR, part_type, NULL_TREE,
! 3032: (tree) target),
1.1 root 3033: parts);
3034: store_expr (TREE_PURPOSE (parts), RTL_EXPR_RTL (TREE_VALUE (parts)), 0);
3035: }
3036: return parts;
3037: }
3038:
3039: /* Subroutine of expand_expr:
3040: record the non-copied parts (LIST) of an expr (LHS), and return a list
3041: which specifies the initial values of these parts. */
3042:
3043: static tree
3044: init_noncopied_parts (lhs, list)
3045: tree lhs;
3046: tree list;
3047: {
3048: tree tail;
3049: tree parts = 0;
3050:
3051: for (tail = list; tail; tail = TREE_CHAIN (tail))
3052: if (TREE_CODE (TREE_VALUE (tail)) == TREE_LIST)
3053: parts = chainon (parts, init_noncopied_parts (lhs, TREE_VALUE (tail)));
3054: else
3055: {
3056: tree part = TREE_VALUE (tail);
3057: tree part_type = TREE_TYPE (part);
1.1.1.4 ! root 3058: tree to_be_initialized = build (COMPONENT_REF, part_type, lhs, part);
1.1 root 3059: parts = tree_cons (TREE_PURPOSE (tail), to_be_initialized, parts);
3060: }
3061: return parts;
3062: }
3063:
3064: /* Subroutine of expand_expr: return nonzero iff there is no way that
3065: EXP can reference X, which is being modified. */
3066:
3067: static int
3068: safe_from_p (x, exp)
3069: rtx x;
3070: tree exp;
3071: {
3072: rtx exp_rtl = 0;
3073: int i, nops;
3074:
3075: if (x == 0)
3076: return 1;
3077:
3078: /* If this is a subreg of a hard register, declare it unsafe, otherwise,
3079: find the underlying pseudo. */
3080: if (GET_CODE (x) == SUBREG)
3081: {
3082: x = SUBREG_REG (x);
3083: if (GET_CODE (x) == REG && REGNO (x) < FIRST_PSEUDO_REGISTER)
3084: return 0;
3085: }
3086:
3087: /* If X is a location in the outgoing argument area, it is always safe. */
3088: if (GET_CODE (x) == MEM
3089: && (XEXP (x, 0) == virtual_outgoing_args_rtx
3090: || (GET_CODE (XEXP (x, 0)) == PLUS
3091: && XEXP (XEXP (x, 0), 0) == virtual_outgoing_args_rtx)))
3092: return 1;
3093:
3094: switch (TREE_CODE_CLASS (TREE_CODE (exp)))
3095: {
3096: case 'd':
3097: exp_rtl = DECL_RTL (exp);
3098: break;
3099:
3100: case 'c':
3101: return 1;
3102:
3103: case 'x':
3104: if (TREE_CODE (exp) == TREE_LIST)
1.1.1.4 ! root 3105: return ((TREE_VALUE (exp) == 0
! 3106: || safe_from_p (x, TREE_VALUE (exp)))
1.1 root 3107: && (TREE_CHAIN (exp) == 0
3108: || safe_from_p (x, TREE_CHAIN (exp))));
3109: else
3110: return 0;
3111:
3112: case '1':
3113: return safe_from_p (x, TREE_OPERAND (exp, 0));
3114:
3115: case '2':
3116: case '<':
3117: return (safe_from_p (x, TREE_OPERAND (exp, 0))
3118: && safe_from_p (x, TREE_OPERAND (exp, 1)));
3119:
3120: case 'e':
3121: case 'r':
3122: /* Now do code-specific tests. EXP_RTL is set to any rtx we find in
3123: the expression. If it is set, we conflict iff we are that rtx or
3124: both are in memory. Otherwise, we check all operands of the
3125: expression recursively. */
3126:
3127: switch (TREE_CODE (exp))
3128: {
3129: case ADDR_EXPR:
3130: return staticp (TREE_OPERAND (exp, 0));
3131:
3132: case INDIRECT_REF:
3133: if (GET_CODE (x) == MEM)
3134: return 0;
3135: break;
3136:
3137: case CALL_EXPR:
3138: exp_rtl = CALL_EXPR_RTL (exp);
3139: if (exp_rtl == 0)
3140: {
3141: /* Assume that the call will clobber all hard registers and
3142: all of memory. */
3143: if ((GET_CODE (x) == REG && REGNO (x) < FIRST_PSEUDO_REGISTER)
3144: || GET_CODE (x) == MEM)
3145: return 0;
3146: }
3147:
3148: break;
3149:
3150: case RTL_EXPR:
3151: exp_rtl = RTL_EXPR_RTL (exp);
3152: if (exp_rtl == 0)
3153: /* We don't know what this can modify. */
3154: return 0;
3155:
3156: break;
3157:
3158: case WITH_CLEANUP_EXPR:
3159: exp_rtl = RTL_EXPR_RTL (exp);
3160: break;
3161:
3162: case SAVE_EXPR:
3163: exp_rtl = SAVE_EXPR_RTL (exp);
3164: break;
3165:
1.1.1.3 root 3166: case BIND_EXPR:
3167: /* The only operand we look at is operand 1. The rest aren't
3168: part of the expression. */
3169: return safe_from_p (x, TREE_OPERAND (exp, 1));
3170:
1.1 root 3171: case METHOD_CALL_EXPR:
3172: /* This takes a rtx argument, but shouldn't appear here. */
3173: abort ();
3174: }
3175:
3176: /* If we have an rtx, we do not need to scan our operands. */
3177: if (exp_rtl)
3178: break;
3179:
3180: nops = tree_code_length[(int) TREE_CODE (exp)];
3181: for (i = 0; i < nops; i++)
3182: if (TREE_OPERAND (exp, i) != 0
3183: && ! safe_from_p (x, TREE_OPERAND (exp, i)))
3184: return 0;
3185: }
3186:
3187: /* If we have an rtl, find any enclosed object. Then see if we conflict
3188: with it. */
3189: if (exp_rtl)
3190: {
3191: if (GET_CODE (exp_rtl) == SUBREG)
3192: {
3193: exp_rtl = SUBREG_REG (exp_rtl);
3194: if (GET_CODE (exp_rtl) == REG
3195: && REGNO (exp_rtl) < FIRST_PSEUDO_REGISTER)
3196: return 0;
3197: }
3198:
3199: /* If the rtl is X, then it is not safe. Otherwise, it is unless both
3200: are memory and EXP is not readonly. */
3201: return ! (rtx_equal_p (x, exp_rtl)
3202: || (GET_CODE (x) == MEM && GET_CODE (exp_rtl) == MEM
3203: && ! TREE_READONLY (exp)));
3204: }
3205:
3206: /* If we reach here, it is safe. */
3207: return 1;
3208: }
3209:
3210: /* Subroutine of expand_expr: return nonzero iff EXP is an
3211: expression whose type is statically determinable. */
3212:
3213: static int
3214: fixed_type_p (exp)
3215: tree exp;
3216: {
3217: if (TREE_CODE (exp) == PARM_DECL
3218: || TREE_CODE (exp) == VAR_DECL
3219: || TREE_CODE (exp) == CALL_EXPR || TREE_CODE (exp) == TARGET_EXPR
3220: || TREE_CODE (exp) == COMPONENT_REF
3221: || TREE_CODE (exp) == ARRAY_REF)
3222: return 1;
3223: return 0;
3224: }
3225:
3226: /* expand_expr: generate code for computing expression EXP.
3227: An rtx for the computed value is returned. The value is never null.
3228: In the case of a void EXP, const0_rtx is returned.
3229:
3230: The value may be stored in TARGET if TARGET is nonzero.
3231: TARGET is just a suggestion; callers must assume that
3232: the rtx returned may not be the same as TARGET.
3233:
3234: If TARGET is CONST0_RTX, it means that the value will be ignored.
3235:
3236: If TMODE is not VOIDmode, it suggests generating the
3237: result in mode TMODE. But this is done only when convenient.
3238: Otherwise, TMODE is ignored and the value generated in its natural mode.
3239: TMODE is just a suggestion; callers must assume that
3240: the rtx returned may not have mode TMODE.
3241:
3242: EXPAND_CONST_ADDRESS says that it is okay to return a MEM
3243: with a constant address even if that address is not normally legitimate.
3244: EXPAND_INITIALIZER and EXPAND_SUM also have this effect.
3245:
3246: If MODIFIER is EXPAND_SUM then when EXP is an addition
3247: we can return an rtx of the form (MULT (REG ...) (CONST_INT ...))
3248: or a nest of (PLUS ...) and (MINUS ...) where the terms are
3249: products as above, or REG or MEM, or constant.
3250: Ordinarily in such cases we would output mul or add instructions
3251: and then return a pseudo reg containing the sum.
3252:
3253: EXPAND_INITIALIZER is much like EXPAND_SUM except that
3254: it also marks a label as absolutely required (it can't be dead).
1.1.1.4 ! root 3255: It also makes a ZERO_EXTEND or SIGN_EXTEND instead of emitting extend insns.
1.1.1.3 root 3256: This is used for outputting expressions used in initializers. */
1.1 root 3257:
3258: rtx
3259: expand_expr (exp, target, tmode, modifier)
3260: register tree exp;
3261: rtx target;
3262: enum machine_mode tmode;
3263: enum expand_modifier modifier;
3264: {
3265: register rtx op0, op1, temp;
3266: tree type = TREE_TYPE (exp);
3267: int unsignedp = TREE_UNSIGNED (type);
3268: register enum machine_mode mode = TYPE_MODE (type);
3269: register enum tree_code code = TREE_CODE (exp);
3270: optab this_optab;
3271: /* Use subtarget as the target for operand 0 of a binary operation. */
3272: rtx subtarget = (target != 0 && GET_CODE (target) == REG ? target : 0);
3273: rtx original_target = target;
3274: int ignore = target == const0_rtx;
3275: tree context;
3276:
3277: /* Don't use hard regs as subtargets, because the combiner
3278: can only handle pseudo regs. */
3279: if (subtarget && REGNO (subtarget) < FIRST_PSEUDO_REGISTER)
3280: subtarget = 0;
3281: /* Avoid subtargets inside loops,
3282: since they hide some invariant expressions. */
3283: if (preserve_subexpressions_p ())
3284: subtarget = 0;
3285:
3286: if (ignore) target = 0, original_target = 0;
3287:
3288: /* If will do cse, generate all results into pseudo registers
3289: since 1) that allows cse to find more things
3290: and 2) otherwise cse could produce an insn the machine
3291: cannot support. */
3292:
3293: if (! cse_not_expected && mode != BLKmode && target
3294: && (GET_CODE (target) != REG || REGNO (target) < FIRST_PSEUDO_REGISTER))
3295: target = subtarget;
3296:
3297: /* Ensure we reference a volatile object even if value is ignored. */
3298: if (ignore && TREE_THIS_VOLATILE (exp)
3299: && mode != VOIDmode && mode != BLKmode)
3300: {
3301: target = gen_reg_rtx (mode);
3302: temp = expand_expr (exp, target, VOIDmode, modifier);
3303: if (temp != target)
3304: emit_move_insn (target, temp);
3305: return target;
3306: }
3307:
3308: switch (code)
3309: {
3310: case LABEL_DECL:
1.1.1.3 root 3311: {
3312: tree function = decl_function_context (exp);
3313: /* Handle using a label in a containing function. */
3314: if (function != current_function_decl && function != 0)
3315: {
3316: struct function *p = find_function_data (function);
3317: /* Allocate in the memory associated with the function
3318: that the label is in. */
3319: push_obstacks (p->function_obstack,
3320: p->function_maybepermanent_obstack);
3321:
3322: p->forced_labels = gen_rtx (EXPR_LIST, VOIDmode,
3323: label_rtx (exp), p->forced_labels);
3324: pop_obstacks ();
3325: }
3326: else if (modifier == EXPAND_INITIALIZER)
3327: forced_labels = gen_rtx (EXPR_LIST, VOIDmode,
3328: label_rtx (exp), forced_labels);
1.1.1.4 ! root 3329: temp = gen_rtx (MEM, FUNCTION_MODE,
1.1.1.3 root 3330: gen_rtx (LABEL_REF, Pmode, label_rtx (exp)));
1.1.1.4 ! root 3331: if (function != current_function_decl && function != 0)
! 3332: LABEL_REF_NONLOCAL_P (XEXP (temp, 0)) = 1;
! 3333: return temp;
1.1.1.3 root 3334: }
1.1 root 3335:
3336: case PARM_DECL:
3337: if (DECL_RTL (exp) == 0)
3338: {
3339: error_with_decl (exp, "prior parameter's size depends on `%s'");
1.1.1.3 root 3340: return CONST0_RTX (mode);
1.1 root 3341: }
3342:
3343: case FUNCTION_DECL:
3344: case VAR_DECL:
3345: case RESULT_DECL:
3346: if (DECL_RTL (exp) == 0)
3347: abort ();
3348: /* Ensure variable marked as used
3349: even if it doesn't go through a parser. */
3350: TREE_USED (exp) = 1;
3351: /* Handle variables inherited from containing functions. */
3352: context = decl_function_context (exp);
3353:
3354: /* We treat inline_function_decl as an alias for the current function
3355: because that is the inline function whose vars, types, etc.
3356: are being merged into the current function.
3357: See expand_inline_function. */
3358: if (context != 0 && context != current_function_decl
3359: && context != inline_function_decl
3360: /* If var is static, we don't need a static chain to access it. */
3361: && ! (GET_CODE (DECL_RTL (exp)) == MEM
3362: && CONSTANT_P (XEXP (DECL_RTL (exp), 0))))
3363: {
3364: rtx addr;
3365:
3366: /* Mark as non-local and addressable. */
1.1.1.4 ! root 3367: DECL_NONLOCAL (exp) = 1;
1.1 root 3368: mark_addressable (exp);
3369: if (GET_CODE (DECL_RTL (exp)) != MEM)
3370: abort ();
3371: addr = XEXP (DECL_RTL (exp), 0);
3372: if (GET_CODE (addr) == MEM)
3373: addr = gen_rtx (MEM, Pmode, fix_lexical_addr (XEXP (addr, 0), exp));
3374: else
3375: addr = fix_lexical_addr (addr, exp);
3376: return change_address (DECL_RTL (exp), mode, addr);
3377: }
1.1.1.3 root 3378:
1.1 root 3379: /* This is the case of an array whose size is to be determined
3380: from its initializer, while the initializer is still being parsed.
3381: See expand_decl. */
3382: if (GET_CODE (DECL_RTL (exp)) == MEM
3383: && GET_CODE (XEXP (DECL_RTL (exp), 0)) == REG)
3384: return change_address (DECL_RTL (exp), GET_MODE (DECL_RTL (exp)),
3385: XEXP (DECL_RTL (exp), 0));
3386: if (GET_CODE (DECL_RTL (exp)) == MEM
3387: && modifier != EXPAND_CONST_ADDRESS
3388: && modifier != EXPAND_SUM
3389: && modifier != EXPAND_INITIALIZER)
3390: {
3391: /* DECL_RTL probably contains a constant address.
3392: On RISC machines where a constant address isn't valid,
3393: make some insns to get that address into a register. */
3394: if (!memory_address_p (DECL_MODE (exp), XEXP (DECL_RTL (exp), 0))
3395: || (flag_force_addr
3396: && CONSTANT_ADDRESS_P (XEXP (DECL_RTL (exp), 0))))
3397: return change_address (DECL_RTL (exp), VOIDmode,
3398: copy_rtx (XEXP (DECL_RTL (exp), 0)));
3399: }
1.1.1.4 ! root 3400:
! 3401: /* If the mode of DECL_RTL does not match that of the decl, it
! 3402: must be a promoted value. We return a SUBREG of the wanted mode,
! 3403: but mark it so that we know that it was already extended. */
! 3404:
! 3405: if (GET_CODE (DECL_RTL (exp)) == REG
! 3406: && GET_MODE (DECL_RTL (exp)) != mode)
! 3407: {
! 3408: enum machine_mode decl_mode = DECL_MODE (exp);
! 3409:
! 3410: /* Get the signedness used for this variable. Ensure we get the
! 3411: same mode we got when the variable was declared. */
! 3412:
! 3413: PROMOTE_MODE (decl_mode, unsignedp, type);
! 3414:
! 3415: if (decl_mode != GET_MODE (DECL_RTL (exp)))
! 3416: abort ();
! 3417:
! 3418: temp = gen_rtx (SUBREG, mode, DECL_RTL (exp), 0);
! 3419: SUBREG_PROMOTED_VAR_P (temp) = 1;
! 3420: SUBREG_PROMOTED_UNSIGNED_P (temp) = unsignedp;
! 3421: return temp;
! 3422: }
! 3423:
1.1 root 3424: return DECL_RTL (exp);
3425:
3426: case INTEGER_CST:
3427: return immed_double_const (TREE_INT_CST_LOW (exp),
3428: TREE_INT_CST_HIGH (exp),
3429: mode);
3430:
3431: case CONST_DECL:
3432: return expand_expr (DECL_INITIAL (exp), target, VOIDmode, 0);
3433:
3434: case REAL_CST:
3435: /* If optimized, generate immediate CONST_DOUBLE
3436: which will be turned into memory by reload if necessary.
3437:
3438: We used to force a register so that loop.c could see it. But
3439: this does not allow gen_* patterns to perform optimizations with
3440: the constants. It also produces two insns in cases like "x = 1.0;".
3441: On most machines, floating-point constants are not permitted in
3442: many insns, so we'd end up copying it to a register in any case.
3443:
3444: Now, we do the copying in expand_binop, if appropriate. */
3445: return immed_real_const (exp);
3446:
3447: case COMPLEX_CST:
3448: case STRING_CST:
3449: if (! TREE_CST_RTL (exp))
3450: output_constant_def (exp);
3451:
3452: /* TREE_CST_RTL probably contains a constant address.
3453: On RISC machines where a constant address isn't valid,
3454: make some insns to get that address into a register. */
3455: if (GET_CODE (TREE_CST_RTL (exp)) == MEM
3456: && modifier != EXPAND_CONST_ADDRESS
3457: && modifier != EXPAND_INITIALIZER
3458: && modifier != EXPAND_SUM
3459: && !memory_address_p (mode, XEXP (TREE_CST_RTL (exp), 0)))
3460: return change_address (TREE_CST_RTL (exp), VOIDmode,
3461: copy_rtx (XEXP (TREE_CST_RTL (exp), 0)));
3462: return TREE_CST_RTL (exp);
3463:
3464: case SAVE_EXPR:
3465: context = decl_function_context (exp);
3466: /* We treat inline_function_decl as an alias for the current function
3467: because that is the inline function whose vars, types, etc.
3468: are being merged into the current function.
3469: See expand_inline_function. */
3470: if (context == current_function_decl || context == inline_function_decl)
3471: context = 0;
3472:
3473: /* If this is non-local, handle it. */
3474: if (context)
3475: {
3476: temp = SAVE_EXPR_RTL (exp);
3477: if (temp && GET_CODE (temp) == REG)
3478: {
3479: put_var_into_stack (exp);
3480: temp = SAVE_EXPR_RTL (exp);
3481: }
3482: if (temp == 0 || GET_CODE (temp) != MEM)
3483: abort ();
3484: return change_address (temp, mode,
3485: fix_lexical_addr (XEXP (temp, 0), exp));
3486: }
3487: if (SAVE_EXPR_RTL (exp) == 0)
3488: {
3489: if (mode == BLKmode)
3490: temp
3491: = assign_stack_temp (mode,
3492: int_size_in_bytes (TREE_TYPE (exp)), 0);
3493: else
1.1.1.4 ! root 3494: {
! 3495: enum machine_mode var_mode = mode;
! 3496:
! 3497: if (TREE_CODE (type) == INTEGER_TYPE
! 3498: || TREE_CODE (type) == ENUMERAL_TYPE
! 3499: || TREE_CODE (type) == BOOLEAN_TYPE
! 3500: || TREE_CODE (type) == CHAR_TYPE
! 3501: || TREE_CODE (type) == REAL_TYPE
! 3502: || TREE_CODE (type) == POINTER_TYPE
! 3503: || TREE_CODE (type) == OFFSET_TYPE)
! 3504: {
! 3505: PROMOTE_MODE (var_mode, unsignedp, type);
! 3506: }
! 3507:
! 3508: temp = gen_reg_rtx (var_mode);
! 3509: }
! 3510:
1.1 root 3511: SAVE_EXPR_RTL (exp) = temp;
3512: store_expr (TREE_OPERAND (exp, 0), temp, 0);
3513: if (!optimize && GET_CODE (temp) == REG)
3514: save_expr_regs = gen_rtx (EXPR_LIST, VOIDmode, temp,
3515: save_expr_regs);
3516: }
1.1.1.4 ! root 3517:
! 3518: /* If the mode of SAVE_EXPR_RTL does not match that of the expression, it
! 3519: must be a promoted value. We return a SUBREG of the wanted mode,
! 3520: but mark it so that we know that it was already extended. Note
! 3521: that `unsignedp' was modified above in this case. */
! 3522:
! 3523: if (GET_CODE (SAVE_EXPR_RTL (exp)) == REG
! 3524: && GET_MODE (SAVE_EXPR_RTL (exp)) != mode)
! 3525: {
! 3526: temp = gen_rtx (SUBREG, mode, SAVE_EXPR_RTL (exp), 0);
! 3527: SUBREG_PROMOTED_VAR_P (temp) = 1;
! 3528: SUBREG_PROMOTED_UNSIGNED_P (temp) = unsignedp;
! 3529: return temp;
! 3530: }
! 3531:
1.1 root 3532: return SAVE_EXPR_RTL (exp);
3533:
3534: case EXIT_EXPR:
3535: /* Exit the current loop if the body-expression is true. */
3536: {
3537: rtx label = gen_label_rtx ();
1.1.1.4 ! root 3538: do_jump (TREE_OPERAND (exp, 0), label, NULL_RTX);
! 3539: expand_exit_loop (NULL_PTR);
1.1 root 3540: emit_label (label);
3541: }
3542: return const0_rtx;
3543:
3544: case LOOP_EXPR:
3545: expand_start_loop (1);
3546: expand_expr_stmt (TREE_OPERAND (exp, 0));
3547: expand_end_loop ();
3548:
3549: return const0_rtx;
3550:
3551: case BIND_EXPR:
3552: {
3553: tree vars = TREE_OPERAND (exp, 0);
3554: int vars_need_expansion = 0;
3555:
3556: /* Need to open a binding contour here because
3557: if there are any cleanups they most be contained here. */
3558: expand_start_bindings (0);
3559:
1.1.1.4 ! root 3560: /* Mark the corresponding BLOCK for output in its proper place. */
! 3561: if (TREE_OPERAND (exp, 2) != 0
! 3562: && ! TREE_USED (TREE_OPERAND (exp, 2)))
! 3563: insert_block (TREE_OPERAND (exp, 2));
1.1 root 3564:
3565: /* If VARS have not yet been expanded, expand them now. */
3566: while (vars)
3567: {
3568: if (DECL_RTL (vars) == 0)
3569: {
3570: vars_need_expansion = 1;
3571: expand_decl (vars);
3572: }
3573: expand_decl_init (vars);
3574: vars = TREE_CHAIN (vars);
3575: }
3576:
3577: temp = expand_expr (TREE_OPERAND (exp, 1), target, tmode, modifier);
3578:
3579: expand_end_bindings (TREE_OPERAND (exp, 0), 0, 0);
3580:
3581: return temp;
3582: }
3583:
3584: case RTL_EXPR:
3585: if (RTL_EXPR_SEQUENCE (exp) == const0_rtx)
3586: abort ();
3587: emit_insns (RTL_EXPR_SEQUENCE (exp));
3588: RTL_EXPR_SEQUENCE (exp) = const0_rtx;
3589: return RTL_EXPR_RTL (exp);
3590:
3591: case CONSTRUCTOR:
1.1.1.3 root 3592: /* All elts simple constants => refer to a constant in memory. But
3593: if this is a non-BLKmode mode, let it store a field at a time
3594: since that should make a CONST_INT or CONST_DOUBLE when we
3595: fold. */
3596: if (TREE_STATIC (exp) && (mode == BLKmode || TREE_ADDRESSABLE (exp)))
1.1 root 3597: {
3598: rtx constructor = output_constant_def (exp);
1.1.1.3 root 3599: if (modifier != EXPAND_CONST_ADDRESS
3600: && modifier != EXPAND_INITIALIZER
3601: && modifier != EXPAND_SUM
3602: && !memory_address_p (GET_MODE (constructor),
3603: XEXP (constructor, 0)))
1.1 root 3604: constructor = change_address (constructor, VOIDmode,
3605: XEXP (constructor, 0));
3606: return constructor;
3607: }
3608:
3609: if (ignore)
3610: {
3611: tree elt;
3612: for (elt = CONSTRUCTOR_ELTS (exp); elt; elt = TREE_CHAIN (elt))
3613: expand_expr (TREE_VALUE (elt), const0_rtx, VOIDmode, 0);
3614: return const0_rtx;
3615: }
3616: else
3617: {
3618: if (target == 0 || ! safe_from_p (target, exp))
3619: {
3620: if (mode != BLKmode && ! TREE_ADDRESSABLE (exp))
3621: target = gen_reg_rtx (mode);
3622: else
3623: {
3624: rtx safe_target = assign_stack_temp (mode, int_size_in_bytes (type), 0);
3625: if (target)
3626: MEM_IN_STRUCT_P (safe_target) = MEM_IN_STRUCT_P (target);
3627: target = safe_target;
3628: }
3629: }
3630: store_constructor (exp, target);
3631: return target;
3632: }
3633:
3634: case INDIRECT_REF:
3635: {
3636: tree exp1 = TREE_OPERAND (exp, 0);
3637: tree exp2;
3638:
3639: /* A SAVE_EXPR as the address in an INDIRECT_EXPR is generated
3640: for *PTR += ANYTHING where PTR is put inside the SAVE_EXPR.
3641: This code has the same general effect as simply doing
3642: expand_expr on the save expr, except that the expression PTR
3643: is computed for use as a memory address. This means different
3644: code, suitable for indexing, may be generated. */
3645: if (TREE_CODE (exp1) == SAVE_EXPR
3646: && SAVE_EXPR_RTL (exp1) == 0
3647: && TREE_CODE (exp2 = TREE_OPERAND (exp1, 0)) != ERROR_MARK
3648: && TYPE_MODE (TREE_TYPE (exp1)) == Pmode
3649: && TYPE_MODE (TREE_TYPE (exp2)) == Pmode)
3650: {
1.1.1.4 ! root 3651: temp = expand_expr (TREE_OPERAND (exp1, 0), NULL_RTX,
! 3652: VOIDmode, EXPAND_SUM);
1.1 root 3653: op0 = memory_address (mode, temp);
3654: op0 = copy_all_regs (op0);
3655: SAVE_EXPR_RTL (exp1) = op0;
3656: }
3657: else
3658: {
1.1.1.4 ! root 3659: op0 = expand_expr (exp1, NULL_RTX, VOIDmode, EXPAND_SUM);
1.1 root 3660: op0 = memory_address (mode, op0);
3661: }
1.1.1.3 root 3662:
3663: temp = gen_rtx (MEM, mode, op0);
3664: /* If address was computed by addition,
3665: mark this as an element of an aggregate. */
3666: if (TREE_CODE (TREE_OPERAND (exp, 0)) == PLUS_EXPR
3667: || (TREE_CODE (TREE_OPERAND (exp, 0)) == SAVE_EXPR
3668: && TREE_CODE (TREE_OPERAND (TREE_OPERAND (exp, 0), 0)) == PLUS_EXPR)
3669: || TREE_CODE (TREE_TYPE (exp)) == ARRAY_TYPE
3670: || TREE_CODE (TREE_TYPE (exp)) == RECORD_TYPE
3671: || TREE_CODE (TREE_TYPE (exp)) == UNION_TYPE
3672: || (TREE_CODE (exp1) == ADDR_EXPR
3673: && (exp2 = TREE_OPERAND (exp1, 0))
3674: && (TREE_CODE (TREE_TYPE (exp2)) == ARRAY_TYPE
3675: || TREE_CODE (TREE_TYPE (exp2)) == RECORD_TYPE
3676: || TREE_CODE (TREE_TYPE (exp2)) == UNION_TYPE)))
3677: MEM_IN_STRUCT_P (temp) = 1;
3678: MEM_VOLATILE_P (temp) = TREE_THIS_VOLATILE (exp) || flag_volatile;
1.1 root 3679: #if 0 /* It is incorrectto set RTX_UNCHANGING_P here, because the fact that
3680: a location is accessed through a pointer to const does not mean
3681: that the value there can never change. */
1.1.1.3 root 3682: RTX_UNCHANGING_P (temp) = TREE_READONLY (exp);
1.1 root 3683: #endif
1.1.1.3 root 3684: return temp;
3685: }
1.1 root 3686:
3687: case ARRAY_REF:
3688: if (TREE_CODE (TREE_OPERAND (exp, 1)) != INTEGER_CST
3689: || TREE_CODE (TYPE_SIZE (type)) != INTEGER_CST)
3690: {
3691: /* Nonconstant array index or nonconstant element size.
3692: Generate the tree for *(&array+index) and expand that,
3693: except do it in a language-independent way
3694: and don't complain about non-lvalue arrays.
3695: `mark_addressable' should already have been called
3696: for any array for which this case will be reached. */
3697:
3698: /* Don't forget the const or volatile flag from the array element. */
3699: tree variant_type = build_type_variant (type,
3700: TREE_READONLY (exp),
3701: TREE_THIS_VOLATILE (exp));
3702: tree array_adr = build1 (ADDR_EXPR, build_pointer_type (variant_type),
3703: TREE_OPERAND (exp, 0));
3704: tree index = TREE_OPERAND (exp, 1);
3705: tree elt;
3706:
3707: /* Convert the integer argument to a type the same size as a pointer
3708: so the multiply won't overflow spuriously. */
3709: if (TYPE_PRECISION (TREE_TYPE (index)) != POINTER_SIZE)
3710: index = convert (type_for_size (POINTER_SIZE, 0), index);
3711:
3712: /* Don't think the address has side effects
3713: just because the array does.
3714: (In some cases the address might have side effects,
3715: and we fail to record that fact here. However, it should not
3716: matter, since expand_expr should not care.) */
3717: TREE_SIDE_EFFECTS (array_adr) = 0;
3718:
3719: elt = build1 (INDIRECT_REF, type,
3720: fold (build (PLUS_EXPR, TYPE_POINTER_TO (variant_type),
3721: array_adr,
3722: fold (build (MULT_EXPR,
3723: TYPE_POINTER_TO (variant_type),
3724: index, size_in_bytes (type))))));
3725:
3726: /* Volatility, etc., of new expression is same as old expression. */
3727: TREE_SIDE_EFFECTS (elt) = TREE_SIDE_EFFECTS (exp);
3728: TREE_THIS_VOLATILE (elt) = TREE_THIS_VOLATILE (exp);
3729: TREE_READONLY (elt) = TREE_READONLY (exp);
3730:
3731: return expand_expr (elt, target, tmode, modifier);
3732: }
3733:
3734: /* Fold an expression like: "foo"[2].
3735: This is not done in fold so it won't happen inside &. */
3736: {
3737: int i;
3738: tree arg0 = TREE_OPERAND (exp, 0);
3739: tree arg1 = TREE_OPERAND (exp, 1);
3740:
3741: if (TREE_CODE (arg0) == STRING_CST
3742: && TREE_CODE (arg1) == INTEGER_CST
3743: && !TREE_INT_CST_HIGH (arg1)
3744: && (i = TREE_INT_CST_LOW (arg1)) < TREE_STRING_LENGTH (arg0))
3745: {
3746: if (TREE_TYPE (TREE_TYPE (arg0)) == integer_type_node)
3747: {
3748: exp = build_int_2 (((int *)TREE_STRING_POINTER (arg0))[i], 0);
3749: TREE_TYPE (exp) = integer_type_node;
3750: return expand_expr (exp, target, tmode, modifier);
3751: }
3752: if (TREE_TYPE (TREE_TYPE (arg0)) == char_type_node)
3753: {
3754: exp = build_int_2 (TREE_STRING_POINTER (arg0)[i], 0);
3755: TREE_TYPE (exp) = integer_type_node;
3756: return expand_expr (convert (TREE_TYPE (TREE_TYPE (arg0)), exp), target, tmode, modifier);
3757: }
3758: }
3759: }
3760:
3761: /* If this is a constant index into a constant array,
1.1.1.3 root 3762: just get the value from the array. Handle both the cases when
3763: we have an explicit constructor and when our operand is a variable
3764: that was declared const. */
3765:
3766: if (TREE_CODE (TREE_OPERAND (exp, 0)) == CONSTRUCTOR
3767: && ! TREE_SIDE_EFFECTS (TREE_OPERAND (exp, 0)))
1.1 root 3768: {
3769: tree index = fold (TREE_OPERAND (exp, 1));
1.1.1.3 root 3770: if (TREE_CODE (index) == INTEGER_CST
3771: && TREE_INT_CST_HIGH (index) == 0)
1.1 root 3772: {
3773: int i = TREE_INT_CST_LOW (index);
1.1.1.3 root 3774: tree elem = CONSTRUCTOR_ELTS (TREE_OPERAND (exp, 0));
1.1 root 3775:
1.1.1.3 root 3776: while (elem && i--)
3777: elem = TREE_CHAIN (elem);
3778: if (elem)
3779: return expand_expr (fold (TREE_VALUE (elem)), target,
3780: tmode, modifier);
3781: }
3782: }
3783:
3784: else if (TREE_READONLY (TREE_OPERAND (exp, 0))
3785: && ! TREE_SIDE_EFFECTS (TREE_OPERAND (exp, 0))
3786: && TREE_CODE (TREE_TYPE (TREE_OPERAND (exp, 0))) == ARRAY_TYPE
3787: && TREE_CODE (TREE_OPERAND (exp, 0)) == VAR_DECL
3788: && DECL_INITIAL (TREE_OPERAND (exp, 0))
3789: && optimize >= 1
3790: && (TREE_CODE (DECL_INITIAL (TREE_OPERAND (exp, 0)))
3791: != ERROR_MARK))
3792: {
3793: tree index = fold (TREE_OPERAND (exp, 1));
3794: if (TREE_CODE (index) == INTEGER_CST
3795: && TREE_INT_CST_HIGH (index) == 0)
3796: {
3797: int i = TREE_INT_CST_LOW (index);
3798: tree init = DECL_INITIAL (TREE_OPERAND (exp, 0));
3799:
3800: if (TREE_CODE (init) == CONSTRUCTOR)
3801: {
3802: tree elem = CONSTRUCTOR_ELTS (init);
3803:
3804: while (elem && i--)
3805: elem = TREE_CHAIN (elem);
3806: if (elem)
3807: return expand_expr (fold (TREE_VALUE (elem)), target,
3808: tmode, modifier);
3809: }
3810: else if (TREE_CODE (init) == STRING_CST
3811: && i < TREE_STRING_LENGTH (init))
3812: {
1.1.1.4 ! root 3813: temp = GEN_INT (TREE_STRING_POINTER (init)[i]);
1.1.1.3 root 3814: return convert_to_mode (mode, temp, 0);
3815: }
1.1 root 3816: }
3817: }
3818: /* Treat array-ref with constant index as a component-ref. */
3819:
3820: case COMPONENT_REF:
3821: case BIT_FIELD_REF:
1.1.1.3 root 3822: /* If the operand is a CONSTRUCTOR, we can just extract the
3823: appropriate field if it is present. */
3824: if (code != ARRAY_REF
3825: && TREE_CODE (TREE_OPERAND (exp, 0)) == CONSTRUCTOR)
3826: {
3827: tree elt;
3828:
3829: for (elt = CONSTRUCTOR_ELTS (TREE_OPERAND (exp, 0)); elt;
3830: elt = TREE_CHAIN (elt))
3831: if (TREE_PURPOSE (elt) == TREE_OPERAND (exp, 1))
3832: return expand_expr (TREE_VALUE (elt), target, tmode, modifier);
3833: }
3834:
1.1 root 3835: {
3836: enum machine_mode mode1;
3837: int bitsize;
3838: int bitpos;
1.1.1.3 root 3839: tree offset;
1.1 root 3840: int volatilep = 0;
1.1.1.3 root 3841: tree tem = get_inner_reference (exp, &bitsize, &bitpos, &offset,
1.1 root 3842: &mode1, &unsignedp, &volatilep);
3843:
3844: /* In some cases, we will be offsetting OP0's address by a constant.
3845: So get it as a sum, if possible. If we will be using it
3846: directly in an insn, we validate it. */
1.1.1.4 ! root 3847: op0 = expand_expr (tem, NULL_RTX, VOIDmode, EXPAND_SUM);
1.1 root 3848:
1.1.1.3 root 3849: /* If this is a constant, put it into a register if it is a
3850: legimate constant and memory if it isn't. */
3851: if (CONSTANT_P (op0))
3852: {
3853: enum machine_mode mode = TYPE_MODE (TREE_TYPE (tem));
3854: if (LEGITIMATE_CONSTANT_P (op0))
3855: op0 = force_reg (mode, op0);
3856: else
3857: op0 = validize_mem (force_const_mem (mode, op0));
3858: }
3859:
3860: if (offset != 0)
3861: {
1.1.1.4 ! root 3862: rtx offset_rtx = expand_expr (offset, NULL_RTX, VOIDmode, 0);
1.1.1.3 root 3863:
3864: if (GET_CODE (op0) != MEM)
3865: abort ();
3866: op0 = change_address (op0, VOIDmode,
3867: gen_rtx (PLUS, Pmode, XEXP (op0, 0),
3868: force_reg (Pmode, offset_rtx)));
3869: }
3870:
1.1 root 3871: /* Don't forget about volatility even if this is a bitfield. */
3872: if (GET_CODE (op0) == MEM && volatilep && ! MEM_VOLATILE_P (op0))
3873: {
3874: op0 = copy_rtx (op0);
3875: MEM_VOLATILE_P (op0) = 1;
3876: }
3877:
3878: if (mode1 == VOIDmode
1.1.1.4 ! root 3879: || (mode1 != BLKmode && ! direct_load[(int) mode1]
! 3880: && modifier != EXPAND_CONST_ADDRESS
! 3881: && modifier != EXPAND_SUM && modifier != EXPAND_INITIALIZER)
1.1 root 3882: || GET_CODE (op0) == REG || GET_CODE (op0) == SUBREG)
3883: {
3884: /* In cases where an aligned union has an unaligned object
3885: as a field, we might be extracting a BLKmode value from
3886: an integer-mode (e.g., SImode) object. Handle this case
3887: by doing the extract into an object as wide as the field
3888: (which we know to be the width of a basic mode), then
3889: storing into memory, and changing the mode to BLKmode. */
3890: enum machine_mode ext_mode = mode;
3891:
3892: if (ext_mode == BLKmode)
3893: ext_mode = mode_for_size (bitsize, MODE_INT, 1);
3894:
3895: if (ext_mode == BLKmode)
3896: abort ();
3897:
3898: op0 = extract_bit_field (validize_mem (op0), bitsize, bitpos,
3899: unsignedp, target, ext_mode, ext_mode,
3900: TYPE_ALIGN (TREE_TYPE (tem)) / BITS_PER_UNIT,
3901: int_size_in_bytes (TREE_TYPE (tem)));
3902: if (mode == BLKmode)
3903: {
3904: rtx new = assign_stack_temp (ext_mode,
3905: bitsize / BITS_PER_UNIT, 0);
3906:
3907: emit_move_insn (new, op0);
3908: op0 = copy_rtx (new);
3909: PUT_MODE (op0, BLKmode);
3910: }
3911:
3912: return op0;
3913: }
3914:
3915: /* Get a reference to just this component. */
3916: if (modifier == EXPAND_CONST_ADDRESS
3917: || modifier == EXPAND_SUM || modifier == EXPAND_INITIALIZER)
3918: op0 = gen_rtx (MEM, mode1, plus_constant (XEXP (op0, 0),
3919: (bitpos / BITS_PER_UNIT)));
3920: else
3921: op0 = change_address (op0, mode1,
3922: plus_constant (XEXP (op0, 0),
3923: (bitpos / BITS_PER_UNIT)));
3924: MEM_IN_STRUCT_P (op0) = 1;
3925: MEM_VOLATILE_P (op0) |= volatilep;
3926: if (mode == mode1 || mode1 == BLKmode || mode1 == tmode)
3927: return op0;
3928: if (target == 0)
3929: target = gen_reg_rtx (tmode != VOIDmode ? tmode : mode);
3930: convert_move (target, op0, unsignedp);
3931: return target;
3932: }
3933:
3934: case OFFSET_REF:
3935: {
3936: tree base = build_unary_op (ADDR_EXPR, TREE_OPERAND (exp, 0), 0);
3937: tree addr = build (PLUS_EXPR, type, base, TREE_OPERAND (exp, 1));
1.1.1.4 ! root 3938: op0 = expand_expr (addr, NULL_RTX, VOIDmode, EXPAND_SUM);
1.1 root 3939: temp = gen_rtx (MEM, mode, memory_address (mode, op0));
3940: MEM_IN_STRUCT_P (temp) = 1;
3941: MEM_VOLATILE_P (temp) = TREE_THIS_VOLATILE (exp) || flag_volatile;
3942: #if 0 /* It is incorrectto set RTX_UNCHANGING_P here, because the fact that
3943: a location is accessed through a pointer to const does not mean
3944: that the value there can never change. */
3945: RTX_UNCHANGING_P (temp) = TREE_READONLY (exp);
3946: #endif
3947: return temp;
3948: }
3949:
3950: /* Intended for a reference to a buffer of a file-object in Pascal.
3951: But it's not certain that a special tree code will really be
3952: necessary for these. INDIRECT_REF might work for them. */
3953: case BUFFER_REF:
3954: abort ();
3955:
1.1.1.4 ! root 3956: /* IN_EXPR: Inlined pascal set IN expression.
! 3957:
! 3958: Algorithm:
! 3959: rlo = set_low - (set_low%bits_per_word);
! 3960: the_word = set [ (index - rlo)/bits_per_word ];
! 3961: bit_index = index % bits_per_word;
! 3962: bitmask = 1 << bit_index;
! 3963: return !!(the_word & bitmask); */
! 3964: case IN_EXPR:
! 3965: preexpand_calls (exp);
! 3966: {
! 3967: tree set = TREE_OPERAND (exp, 0);
! 3968: tree index = TREE_OPERAND (exp, 1);
! 3969: tree set_type = TREE_TYPE (set);
! 3970:
! 3971: tree set_low_bound = TYPE_MIN_VALUE (TYPE_DOMAIN (set_type));
! 3972: tree set_high_bound = TYPE_MAX_VALUE (TYPE_DOMAIN (set_type));
! 3973:
! 3974: rtx index_val;
! 3975: rtx lo_r;
! 3976: rtx hi_r;
! 3977: rtx rlow;
! 3978: rtx diff, quo, rem, addr, bit, result;
! 3979: rtx setval, setaddr;
! 3980: enum machine_mode index_mode = TYPE_MODE (TREE_TYPE (index));
! 3981:
! 3982: if (target == 0)
! 3983: target = gen_reg_rtx (TYPE_MODE (TREE_TYPE (exp)));
! 3984:
! 3985: /* If domain is empty, answer is no. */
! 3986: if (tree_int_cst_lt (set_high_bound, set_low_bound))
! 3987: return const0_rtx;
! 3988:
! 3989: index_val = expand_expr (index, 0, VOIDmode, 0);
! 3990: lo_r = expand_expr (set_low_bound, 0, VOIDmode, 0);
! 3991: hi_r = expand_expr (set_high_bound, 0, VOIDmode, 0);
! 3992: setval = expand_expr (set, 0, VOIDmode, 0);
! 3993: setaddr = XEXP (setval, 0);
! 3994:
! 3995: /* Compare index against bounds, if they are constant. */
! 3996: if (GET_CODE (index_val) == CONST_INT
! 3997: && GET_CODE (lo_r) == CONST_INT)
! 3998: {
! 3999: if (INTVAL (index_val) < INTVAL (lo_r))
! 4000: return const0_rtx;
! 4001: }
! 4002:
! 4003: if (GET_CODE (index_val) == CONST_INT
! 4004: && GET_CODE (hi_r) == CONST_INT)
! 4005: {
! 4006: if (INTVAL (hi_r) < INTVAL (index_val))
! 4007: return const0_rtx;
! 4008: }
! 4009:
! 4010: /* If we get here, we have to generate the code for both cases
! 4011: (in range and out of range). */
! 4012:
! 4013: op0 = gen_label_rtx ();
! 4014: op1 = gen_label_rtx ();
! 4015:
! 4016: if (! (GET_CODE (index_val) == CONST_INT
! 4017: && GET_CODE (lo_r) == CONST_INT))
! 4018: {
! 4019: emit_cmp_insn (index_val, lo_r, LT, 0, GET_MODE (index_val), 0, 0);
! 4020: emit_jump_insn (gen_blt (op1));
! 4021: }
! 4022:
! 4023: if (! (GET_CODE (index_val) == CONST_INT
! 4024: && GET_CODE (hi_r) == CONST_INT))
! 4025: {
! 4026: emit_cmp_insn (index_val, hi_r, GT, 0, GET_MODE (index_val), 0, 0);
! 4027: emit_jump_insn (gen_bgt (op1));
! 4028: }
! 4029:
! 4030: /* Calculate the element number of bit zero in the first word
! 4031: of the set. */
! 4032: if (GET_CODE (lo_r) == CONST_INT)
! 4033: rlow = gen_rtx (CONST_INT, VOIDmode,
! 4034: INTVAL (lo_r) & ~ (1 << BITS_PER_UNIT));
! 4035: else
! 4036: rlow = expand_binop (index_mode, and_optab,
! 4037: lo_r, gen_rtx (CONST_INT, VOIDmode,
! 4038: ~ (1 << BITS_PER_UNIT)),
! 4039: 0, 0, OPTAB_LIB_WIDEN);
! 4040:
! 4041: diff = expand_binop (index_mode, sub_optab,
! 4042: index_val, rlow, 0, 0, OPTAB_LIB_WIDEN);
! 4043:
! 4044: quo = expand_divmod (0, TRUNC_DIV_EXPR, index_mode, diff,
! 4045: gen_rtx (CONST_INT, VOIDmode, BITS_PER_UNIT),
! 4046: 0, 0);
! 4047: rem = expand_divmod (1, TRUNC_MOD_EXPR, index_mode, index_val,
! 4048: gen_rtx (CONST_INT, VOIDmode, BITS_PER_UNIT),
! 4049: 0, 0);
! 4050: addr = memory_address (byte_mode,
! 4051: expand_binop (index_mode, add_optab,
! 4052: diff, setaddr));
! 4053: /* Extract the bit we want to examine */
! 4054: bit = expand_shift (RSHIFT_EXPR, byte_mode,
! 4055: gen_rtx (MEM, byte_mode, addr), rem, 0, 1);
! 4056: result = expand_binop (SImode, and_optab, bit, const1_rtx, target,
! 4057: 1, OPTAB_LIB_WIDEN);
! 4058: emit_move_insn (target, result);
! 4059:
! 4060: /* Output the code to handle the out-of-range case. */
! 4061: emit_jump (op0);
! 4062: emit_label (op1);
! 4063: emit_move_insn (target, const0_rtx);
! 4064: emit_label (op0);
! 4065: return target;
! 4066: }
! 4067:
1.1 root 4068: case WITH_CLEANUP_EXPR:
4069: if (RTL_EXPR_RTL (exp) == 0)
4070: {
4071: RTL_EXPR_RTL (exp)
4072: = expand_expr (TREE_OPERAND (exp, 0), target, tmode, modifier);
1.1.1.4 ! root 4073: cleanups_this_call
! 4074: = tree_cons (NULL_TREE, TREE_OPERAND (exp, 2), cleanups_this_call);
1.1 root 4075: /* That's it for this cleanup. */
4076: TREE_OPERAND (exp, 2) = 0;
4077: }
4078: return RTL_EXPR_RTL (exp);
4079:
4080: case CALL_EXPR:
4081: /* Check for a built-in function. */
4082: if (TREE_CODE (TREE_OPERAND (exp, 0)) == ADDR_EXPR
4083: && TREE_CODE (TREE_OPERAND (TREE_OPERAND (exp, 0), 0)) == FUNCTION_DECL
4084: && DECL_BUILT_IN (TREE_OPERAND (TREE_OPERAND (exp, 0), 0)))
4085: return expand_builtin (exp, target, subtarget, tmode, ignore);
4086: /* If this call was expanded already by preexpand_calls,
4087: just return the result we got. */
4088: if (CALL_EXPR_RTL (exp) != 0)
4089: return CALL_EXPR_RTL (exp);
1.1.1.3 root 4090: return expand_call (exp, target, ignore);
1.1 root 4091:
4092: case NON_LVALUE_EXPR:
4093: case NOP_EXPR:
4094: case CONVERT_EXPR:
4095: case REFERENCE_EXPR:
4096: if (TREE_CODE (type) == VOID_TYPE || ignore)
4097: {
4098: expand_expr (TREE_OPERAND (exp, 0), const0_rtx, VOIDmode, modifier);
4099: return const0_rtx;
4100: }
4101: if (mode == TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0))))
4102: return expand_expr (TREE_OPERAND (exp, 0), target, VOIDmode, modifier);
4103: if (TREE_CODE (type) == UNION_TYPE)
4104: {
4105: tree valtype = TREE_TYPE (TREE_OPERAND (exp, 0));
4106: if (target == 0)
4107: {
4108: if (mode == BLKmode)
4109: {
4110: if (TYPE_SIZE (type) == 0
4111: || TREE_CODE (TYPE_SIZE (type)) != INTEGER_CST)
4112: abort ();
4113: target = assign_stack_temp (BLKmode,
4114: (TREE_INT_CST_LOW (TYPE_SIZE (type))
4115: + BITS_PER_UNIT - 1)
4116: / BITS_PER_UNIT, 0);
4117: }
4118: else
4119: target = gen_reg_rtx (mode);
4120: }
4121: if (GET_CODE (target) == MEM)
4122: /* Store data into beginning of memory target. */
4123: store_expr (TREE_OPERAND (exp, 0),
4124: change_address (target, TYPE_MODE (valtype), 0), 0);
1.1.1.4 ! root 4125:
1.1 root 4126: else if (GET_CODE (target) == REG)
4127: /* Store this field into a union of the proper type. */
4128: store_field (target, GET_MODE_BITSIZE (TYPE_MODE (valtype)), 0,
4129: TYPE_MODE (valtype), TREE_OPERAND (exp, 0),
4130: VOIDmode, 0, 1,
4131: int_size_in_bytes (TREE_TYPE (TREE_OPERAND (exp, 0))));
4132: else
4133: abort ();
4134:
4135: /* Return the entire union. */
4136: return target;
4137: }
1.1.1.4 ! root 4138: op0 = expand_expr (TREE_OPERAND (exp, 0), NULL_RTX, mode, 0);
1.1 root 4139: if (GET_MODE (op0) == mode || GET_MODE (op0) == VOIDmode)
4140: return op0;
1.1.1.4 ! root 4141: if (modifier == EXPAND_INITIALIZER)
! 4142: return gen_rtx (unsignedp ? ZERO_EXTEND : SIGN_EXTEND, mode, op0);
1.1 root 4143: if (flag_force_mem && GET_CODE (op0) == MEM)
4144: op0 = copy_to_reg (op0);
4145:
4146: if (target == 0)
4147: return convert_to_mode (mode, op0, TREE_UNSIGNED (TREE_TYPE (TREE_OPERAND (exp, 0))));
4148: else
4149: convert_move (target, op0, TREE_UNSIGNED (TREE_TYPE (TREE_OPERAND (exp, 0))));
4150: return target;
4151:
4152: case PLUS_EXPR:
4153: /* We come here from MINUS_EXPR when the second operand is a constant. */
4154: plus_expr:
4155: this_optab = add_optab;
4156:
4157: /* If we are adding a constant, an RTL_EXPR that is sp, fp, or ap, and
4158: something else, make sure we add the register to the constant and
4159: then to the other thing. This case can occur during strength
4160: reduction and doing it this way will produce better code if the
4161: frame pointer or argument pointer is eliminated.
4162:
4163: fold-const.c will ensure that the constant is always in the inner
4164: PLUS_EXPR, so the only case we need to do anything about is if
4165: sp, ap, or fp is our second argument, in which case we must swap
4166: the innermost first argument and our second argument. */
4167:
4168: if (TREE_CODE (TREE_OPERAND (exp, 0)) == PLUS_EXPR
4169: && TREE_CODE (TREE_OPERAND (TREE_OPERAND (exp, 0), 1)) == INTEGER_CST
4170: && TREE_CODE (TREE_OPERAND (exp, 1)) == RTL_EXPR
4171: && (RTL_EXPR_RTL (TREE_OPERAND (exp, 1)) == frame_pointer_rtx
4172: || RTL_EXPR_RTL (TREE_OPERAND (exp, 1)) == stack_pointer_rtx
4173: || RTL_EXPR_RTL (TREE_OPERAND (exp, 1)) == arg_pointer_rtx))
4174: {
4175: tree t = TREE_OPERAND (exp, 1);
4176:
4177: TREE_OPERAND (exp, 1) = TREE_OPERAND (TREE_OPERAND (exp, 0), 0);
4178: TREE_OPERAND (TREE_OPERAND (exp, 0), 0) = t;
4179: }
4180:
4181: /* If the result is to be Pmode and we are adding an integer to
4182: something, we might be forming a constant. So try to use
4183: plus_constant. If it produces a sum and we can't accept it,
4184: use force_operand. This allows P = &ARR[const] to generate
4185: efficient code on machines where a SYMBOL_REF is not a valid
4186: address.
4187:
4188: If this is an EXPAND_SUM call, always return the sum. */
4189: if (TREE_CODE (TREE_OPERAND (exp, 0)) == INTEGER_CST
1.1.1.4 ! root 4190: && GET_MODE_BITSIZE (mode) <= HOST_BITS_PER_WIDE_INT
1.1 root 4191: && (modifier == EXPAND_SUM || modifier == EXPAND_INITIALIZER
4192: || mode == Pmode))
4193: {
4194: op1 = expand_expr (TREE_OPERAND (exp, 1), subtarget, VOIDmode,
4195: EXPAND_SUM);
4196: op1 = plus_constant (op1, TREE_INT_CST_LOW (TREE_OPERAND (exp, 0)));
4197: if (modifier != EXPAND_SUM && modifier != EXPAND_INITIALIZER)
4198: op1 = force_operand (op1, target);
4199: return op1;
4200: }
4201:
4202: else if (TREE_CODE (TREE_OPERAND (exp, 1)) == INTEGER_CST
4203: && GET_MODE_BITSIZE (mode) <= HOST_BITS_PER_INT
4204: && (modifier == EXPAND_SUM || modifier == EXPAND_INITIALIZER
4205: || mode == Pmode))
4206: {
4207: op0 = expand_expr (TREE_OPERAND (exp, 0), subtarget, VOIDmode,
4208: EXPAND_SUM);
4209: op0 = plus_constant (op0, TREE_INT_CST_LOW (TREE_OPERAND (exp, 1)));
4210: if (modifier != EXPAND_SUM && modifier != EXPAND_INITIALIZER)
4211: op0 = force_operand (op0, target);
4212: return op0;
4213: }
4214:
4215: /* No sense saving up arithmetic to be done
4216: if it's all in the wrong mode to form part of an address.
4217: And force_operand won't know whether to sign-extend or
4218: zero-extend. */
4219: if ((modifier != EXPAND_SUM && modifier != EXPAND_INITIALIZER)
4220: || mode != Pmode) goto binop;
4221:
4222: preexpand_calls (exp);
4223: if (! safe_from_p (subtarget, TREE_OPERAND (exp, 1)))
4224: subtarget = 0;
4225:
4226: op0 = expand_expr (TREE_OPERAND (exp, 0), subtarget, VOIDmode, modifier);
1.1.1.4 ! root 4227: op1 = expand_expr (TREE_OPERAND (exp, 1), NULL_RTX, VOIDmode, modifier);
1.1.1.2 root 4228:
1.1 root 4229: /* Make sure any term that's a sum with a constant comes last. */
4230: if (GET_CODE (op0) == PLUS
4231: && CONSTANT_P (XEXP (op0, 1)))
4232: {
4233: temp = op0;
4234: op0 = op1;
4235: op1 = temp;
4236: }
4237: /* If adding to a sum including a constant,
4238: associate it to put the constant outside. */
4239: if (GET_CODE (op1) == PLUS
4240: && CONSTANT_P (XEXP (op1, 1)))
4241: {
1.1.1.2 root 4242: rtx constant_term = const0_rtx;
4243:
4244: temp = simplify_binary_operation (PLUS, mode, XEXP (op1, 0), op0);
4245: if (temp != 0)
4246: op0 = temp;
1.1.1.3 root 4247: /* Ensure that MULT comes first if there is one. */
4248: else if (GET_CODE (op0) == MULT)
4249: op0 = gen_rtx (PLUS, mode, op0, XEXP (op1, 0));
1.1.1.2 root 4250: else
4251: op0 = gen_rtx (PLUS, mode, XEXP (op1, 0), op0);
1.1 root 4252:
4253: /* Let's also eliminate constants from op0 if possible. */
1.1.1.2 root 4254: op0 = eliminate_constant_term (op0, &constant_term);
4255:
4256: /* CONSTANT_TERM and XEXP (op1, 1) are known to be constant, so
4257: their sum should be a constant. Form it into OP1, since the
4258: result we want will then be OP0 + OP1. */
4259:
4260: temp = simplify_binary_operation (PLUS, mode, constant_term,
4261: XEXP (op1, 1));
4262: if (temp != 0)
4263: op1 = temp;
1.1 root 4264: else
1.1.1.2 root 4265: op1 = gen_rtx (PLUS, mode, constant_term, XEXP (op1, 1));
1.1 root 4266: }
1.1.1.2 root 4267:
4268: /* Put a constant term last and put a multiplication first. */
4269: if (CONSTANT_P (op0) || GET_CODE (op1) == MULT)
4270: temp = op1, op1 = op0, op0 = temp;
4271:
4272: temp = simplify_binary_operation (PLUS, mode, op0, op1);
4273: return temp ? temp : gen_rtx (PLUS, mode, op0, op1);
1.1 root 4274:
4275: case MINUS_EXPR:
4276: /* Handle difference of two symbolic constants,
4277: for the sake of an initializer. */
4278: if ((modifier == EXPAND_SUM || modifier == EXPAND_INITIALIZER)
4279: && really_constant_p (TREE_OPERAND (exp, 0))
4280: && really_constant_p (TREE_OPERAND (exp, 1)))
4281: {
1.1.1.4 ! root 4282: rtx op0 = expand_expr (TREE_OPERAND (exp, 0), NULL_RTX,
! 4283: VOIDmode, modifier);
! 4284: rtx op1 = expand_expr (TREE_OPERAND (exp, 1), NULL_RTX,
! 4285: VOIDmode, modifier);
1.1 root 4286: return gen_rtx (MINUS, mode, op0, op1);
4287: }
4288: /* Convert A - const to A + (-const). */
4289: if (TREE_CODE (TREE_OPERAND (exp, 1)) == INTEGER_CST)
4290: {
4291: exp = build (PLUS_EXPR, type, TREE_OPERAND (exp, 0),
4292: fold (build1 (NEGATE_EXPR, type,
4293: TREE_OPERAND (exp, 1))));
4294: goto plus_expr;
4295: }
4296: this_optab = sub_optab;
4297: goto binop;
4298:
4299: case MULT_EXPR:
4300: preexpand_calls (exp);
4301: /* If first operand is constant, swap them.
4302: Thus the following special case checks need only
4303: check the second operand. */
4304: if (TREE_CODE (TREE_OPERAND (exp, 0)) == INTEGER_CST)
4305: {
4306: register tree t1 = TREE_OPERAND (exp, 0);
4307: TREE_OPERAND (exp, 0) = TREE_OPERAND (exp, 1);
4308: TREE_OPERAND (exp, 1) = t1;
4309: }
4310:
4311: /* Attempt to return something suitable for generating an
4312: indexed address, for machines that support that. */
4313:
4314: if (modifier == EXPAND_SUM && mode == Pmode
4315: && TREE_CODE (TREE_OPERAND (exp, 1)) == INTEGER_CST
1.1.1.4 ! root 4316: && GET_MODE_BITSIZE (mode) <= HOST_BITS_PER_WIDE_INT)
1.1 root 4317: {
4318: op0 = expand_expr (TREE_OPERAND (exp, 0), subtarget, VOIDmode, EXPAND_SUM);
4319:
4320: /* Apply distributive law if OP0 is x+c. */
4321: if (GET_CODE (op0) == PLUS
4322: && GET_CODE (XEXP (op0, 1)) == CONST_INT)
4323: return gen_rtx (PLUS, mode,
4324: gen_rtx (MULT, mode, XEXP (op0, 0),
1.1.1.4 ! root 4325: GEN_INT (TREE_INT_CST_LOW (TREE_OPERAND (exp, 1)))),
! 4326: GEN_INT (TREE_INT_CST_LOW (TREE_OPERAND (exp, 1))
! 4327: * INTVAL (XEXP (op0, 1))));
1.1 root 4328:
4329: if (GET_CODE (op0) != REG)
1.1.1.4 ! root 4330: op0 = force_operand (op0, NULL_RTX);
1.1 root 4331: if (GET_CODE (op0) != REG)
4332: op0 = copy_to_mode_reg (mode, op0);
4333:
4334: return gen_rtx (MULT, mode, op0,
1.1.1.4 ! root 4335: GEN_INT (TREE_INT_CST_LOW (TREE_OPERAND (exp, 1))));
1.1 root 4336: }
4337:
4338: if (! safe_from_p (subtarget, TREE_OPERAND (exp, 1)))
4339: subtarget = 0;
4340:
4341: /* Check for multiplying things that have been extended
4342: from a narrower type. If this machine supports multiplying
4343: in that narrower type with a result in the desired type,
4344: do it that way, and avoid the explicit type-conversion. */
4345: if (TREE_CODE (TREE_OPERAND (exp, 0)) == NOP_EXPR
4346: && TREE_CODE (type) == INTEGER_TYPE
4347: && (TYPE_PRECISION (TREE_TYPE (TREE_OPERAND (TREE_OPERAND (exp, 0), 0)))
4348: < TYPE_PRECISION (TREE_TYPE (TREE_OPERAND (exp, 0))))
4349: && ((TREE_CODE (TREE_OPERAND (exp, 1)) == INTEGER_CST
4350: && int_fits_type_p (TREE_OPERAND (exp, 1),
4351: TREE_TYPE (TREE_OPERAND (TREE_OPERAND (exp, 0), 0)))
4352: /* Don't use a widening multiply if a shift will do. */
4353: && ((GET_MODE_BITSIZE (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 1))))
1.1.1.4 ! root 4354: > HOST_BITS_PER_WIDE_INT)
1.1 root 4355: || exact_log2 (TREE_INT_CST_LOW (TREE_OPERAND (exp, 1))) < 0))
4356: ||
4357: (TREE_CODE (TREE_OPERAND (exp, 1)) == NOP_EXPR
4358: && (TYPE_PRECISION (TREE_TYPE (TREE_OPERAND (TREE_OPERAND (exp, 1), 0)))
4359: ==
4360: TYPE_PRECISION (TREE_TYPE (TREE_OPERAND (TREE_OPERAND (exp, 0), 0))))
4361: /* If both operands are extended, they must either both
4362: be zero-extended or both be sign-extended. */
4363: && (TREE_UNSIGNED (TREE_TYPE (TREE_OPERAND (TREE_OPERAND (exp, 1), 0)))
4364: ==
4365: TREE_UNSIGNED (TREE_TYPE (TREE_OPERAND (TREE_OPERAND (exp, 0), 0)))))))
4366: {
4367: enum machine_mode innermode
4368: = TYPE_MODE (TREE_TYPE (TREE_OPERAND (TREE_OPERAND (exp, 0), 0)));
4369: this_optab = (TREE_UNSIGNED (TREE_TYPE (TREE_OPERAND (TREE_OPERAND (exp, 0), 0)))
4370: ? umul_widen_optab : smul_widen_optab);
4371: if (mode == GET_MODE_WIDER_MODE (innermode)
4372: && this_optab->handlers[(int) mode].insn_code != CODE_FOR_nothing)
4373: {
4374: op0 = expand_expr (TREE_OPERAND (TREE_OPERAND (exp, 0), 0),
1.1.1.4 ! root 4375: NULL_RTX, VOIDmode, 0);
1.1 root 4376: if (TREE_CODE (TREE_OPERAND (exp, 1)) == INTEGER_CST)
1.1.1.4 ! root 4377: op1 = expand_expr (TREE_OPERAND (exp, 1), NULL_RTX,
! 4378: VOIDmode, 0);
1.1 root 4379: else
4380: op1 = expand_expr (TREE_OPERAND (TREE_OPERAND (exp, 1), 0),
1.1.1.4 ! root 4381: NULL_RTX, VOIDmode, 0);
1.1 root 4382: goto binop2;
4383: }
4384: }
4385: op0 = expand_expr (TREE_OPERAND (exp, 0), subtarget, VOIDmode, 0);
1.1.1.4 ! root 4386: op1 = expand_expr (TREE_OPERAND (exp, 1), NULL_RTX, VOIDmode, 0);
1.1 root 4387: return expand_mult (mode, op0, op1, target, unsignedp);
4388:
4389: case TRUNC_DIV_EXPR:
4390: case FLOOR_DIV_EXPR:
4391: case CEIL_DIV_EXPR:
4392: case ROUND_DIV_EXPR:
4393: case EXACT_DIV_EXPR:
4394: preexpand_calls (exp);
4395: if (! safe_from_p (subtarget, TREE_OPERAND (exp, 1)))
4396: subtarget = 0;
4397: /* Possible optimization: compute the dividend with EXPAND_SUM
4398: then if the divisor is constant can optimize the case
4399: where some terms of the dividend have coeffs divisible by it. */
4400: op0 = expand_expr (TREE_OPERAND (exp, 0), subtarget, VOIDmode, 0);
1.1.1.4 ! root 4401: op1 = expand_expr (TREE_OPERAND (exp, 1), NULL_RTX, VOIDmode, 0);
1.1 root 4402: return expand_divmod (0, code, mode, op0, op1, target, unsignedp);
4403:
4404: case RDIV_EXPR:
4405: this_optab = flodiv_optab;
4406: goto binop;
4407:
4408: case TRUNC_MOD_EXPR:
4409: case FLOOR_MOD_EXPR:
4410: case CEIL_MOD_EXPR:
4411: case ROUND_MOD_EXPR:
4412: preexpand_calls (exp);
4413: if (! safe_from_p (subtarget, TREE_OPERAND (exp, 1)))
4414: subtarget = 0;
4415: op0 = expand_expr (TREE_OPERAND (exp, 0), subtarget, VOIDmode, 0);
1.1.1.4 ! root 4416: op1 = expand_expr (TREE_OPERAND (exp, 1), NULL_RTX, VOIDmode, 0);
1.1 root 4417: return expand_divmod (1, code, mode, op0, op1, target, unsignedp);
4418:
4419: case FIX_ROUND_EXPR:
4420: case FIX_FLOOR_EXPR:
4421: case FIX_CEIL_EXPR:
4422: abort (); /* Not used for C. */
4423:
4424: case FIX_TRUNC_EXPR:
1.1.1.4 ! root 4425: op0 = expand_expr (TREE_OPERAND (exp, 0), NULL_RTX, VOIDmode, 0);
1.1 root 4426: if (target == 0)
4427: target = gen_reg_rtx (mode);
4428: expand_fix (target, op0, unsignedp);
4429: return target;
4430:
4431: case FLOAT_EXPR:
1.1.1.4 ! root 4432: op0 = expand_expr (TREE_OPERAND (exp, 0), NULL_RTX, VOIDmode, 0);
1.1 root 4433: if (target == 0)
4434: target = gen_reg_rtx (mode);
4435: /* expand_float can't figure out what to do if FROM has VOIDmode.
4436: So give it the correct mode. With -O, cse will optimize this. */
4437: if (GET_MODE (op0) == VOIDmode)
4438: op0 = copy_to_mode_reg (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0))),
4439: op0);
4440: expand_float (target, op0,
4441: TREE_UNSIGNED (TREE_TYPE (TREE_OPERAND (exp, 0))));
4442: return target;
4443:
4444: case NEGATE_EXPR:
4445: op0 = expand_expr (TREE_OPERAND (exp, 0), target, VOIDmode, 0);
4446: temp = expand_unop (mode, neg_optab, op0, target, 0);
4447: if (temp == 0)
4448: abort ();
4449: return temp;
4450:
4451: case ABS_EXPR:
4452: op0 = expand_expr (TREE_OPERAND (exp, 0), subtarget, VOIDmode, 0);
4453:
1.1.1.4 ! root 4454: /* Handle complex values specially. */
! 4455: {
! 4456: enum machine_mode opmode
! 4457: = TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0)));
! 4458:
! 4459: if (GET_MODE_CLASS (opmode) == MODE_COMPLEX_INT
! 4460: || GET_MODE_CLASS (opmode) == MODE_COMPLEX_FLOAT)
! 4461: return expand_complex_abs (opmode, op0, target, unsignedp);
! 4462: }
! 4463:
1.1 root 4464: /* Unsigned abs is simply the operand. Testing here means we don't
4465: risk generating incorrect code below. */
4466: if (TREE_UNSIGNED (type))
4467: return op0;
4468:
4469: /* First try to do it with a special abs instruction. */
4470: temp = expand_unop (mode, abs_optab, op0, target, 0);
4471: if (temp != 0)
4472: return temp;
4473:
4474: /* If this machine has expensive jumps, we can do integer absolute
4475: value of X as (((signed) x >> (W-1)) ^ x) - ((signed) x >> (W-1)),
4476: where W is the width of MODE. */
4477:
4478: if (GET_MODE_CLASS (mode) == MODE_INT && BRANCH_COST >= 2)
4479: {
4480: rtx extended = expand_shift (RSHIFT_EXPR, mode, op0,
4481: size_int (GET_MODE_BITSIZE (mode) - 1),
1.1.1.4 ! root 4482: NULL_RTX, 0);
1.1 root 4483:
4484: temp = expand_binop (mode, xor_optab, extended, op0, target, 0,
4485: OPTAB_LIB_WIDEN);
4486: if (temp != 0)
4487: temp = expand_binop (mode, sub_optab, temp, extended, target, 0,
4488: OPTAB_LIB_WIDEN);
4489:
4490: if (temp != 0)
4491: return temp;
4492: }
4493:
4494: /* If that does not win, use conditional jump and negate. */
4495: target = original_target;
4496: temp = gen_label_rtx ();
4497: if (target == 0 || ! safe_from_p (target, TREE_OPERAND (exp, 0))
4498: || (GET_CODE (target) == REG
4499: && REGNO (target) < FIRST_PSEUDO_REGISTER))
4500: target = gen_reg_rtx (mode);
4501: emit_move_insn (target, op0);
4502: emit_cmp_insn (target,
4503: expand_expr (convert (type, integer_zero_node),
1.1.1.4 ! root 4504: NULL_RTX, VOIDmode, 0),
! 4505: GE, NULL_RTX, mode, 0, 0);
1.1 root 4506: NO_DEFER_POP;
4507: emit_jump_insn (gen_bge (temp));
4508: op0 = expand_unop (mode, neg_optab, target, target, 0);
4509: if (op0 != target)
4510: emit_move_insn (target, op0);
4511: emit_label (temp);
4512: OK_DEFER_POP;
4513: return target;
4514:
4515: case MAX_EXPR:
4516: case MIN_EXPR:
4517: target = original_target;
4518: if (target == 0 || ! safe_from_p (target, TREE_OPERAND (exp, 1))
4519: || (GET_CODE (target) == REG
4520: && REGNO (target) < FIRST_PSEUDO_REGISTER))
4521: target = gen_reg_rtx (mode);
1.1.1.4 ! root 4522: op1 = expand_expr (TREE_OPERAND (exp, 1), NULL_RTX, VOIDmode, 0);
1.1 root 4523: op0 = expand_expr (TREE_OPERAND (exp, 0), target, VOIDmode, 0);
4524:
4525: /* First try to do it with a special MIN or MAX instruction.
4526: If that does not win, use a conditional jump to select the proper
4527: value. */
4528: this_optab = (TREE_UNSIGNED (type)
4529: ? (code == MIN_EXPR ? umin_optab : umax_optab)
4530: : (code == MIN_EXPR ? smin_optab : smax_optab));
4531:
4532: temp = expand_binop (mode, this_optab, op0, op1, target, unsignedp,
4533: OPTAB_WIDEN);
4534: if (temp != 0)
4535: return temp;
4536:
4537: if (target != op0)
4538: emit_move_insn (target, op0);
4539: op0 = gen_label_rtx ();
4540: if (code == MAX_EXPR)
4541: temp = (TREE_UNSIGNED (TREE_TYPE (TREE_OPERAND (exp, 1)))
1.1.1.4 ! root 4542: ? compare_from_rtx (target, op1, GEU, 1, mode, NULL_RTX, 0)
! 4543: : compare_from_rtx (target, op1, GE, 0, mode, NULL_RTX, 0));
1.1 root 4544: else
4545: temp = (TREE_UNSIGNED (TREE_TYPE (TREE_OPERAND (exp, 1)))
1.1.1.4 ! root 4546: ? compare_from_rtx (target, op1, LEU, 1, mode, NULL_RTX, 0)
! 4547: : compare_from_rtx (target, op1, LE, 0, mode, NULL_RTX, 0));
1.1 root 4548: if (temp == const0_rtx)
4549: emit_move_insn (target, op1);
4550: else if (temp != const_true_rtx)
4551: {
4552: if (bcc_gen_fctn[(int) GET_CODE (temp)] != 0)
4553: emit_jump_insn ((*bcc_gen_fctn[(int) GET_CODE (temp)]) (op0));
4554: else
4555: abort ();
4556: emit_move_insn (target, op1);
4557: }
4558: emit_label (op0);
4559: return target;
4560:
4561: /* ??? Can optimize when the operand of this is a bitwise operation,
4562: by using a different bitwise operation. */
4563: case BIT_NOT_EXPR:
4564: op0 = expand_expr (TREE_OPERAND (exp, 0), subtarget, VOIDmode, 0);
4565: temp = expand_unop (mode, one_cmpl_optab, op0, target, 1);
4566: if (temp == 0)
4567: abort ();
4568: return temp;
4569:
4570: case FFS_EXPR:
4571: op0 = expand_expr (TREE_OPERAND (exp, 0), subtarget, VOIDmode, 0);
4572: temp = expand_unop (mode, ffs_optab, op0, target, 1);
4573: if (temp == 0)
4574: abort ();
4575: return temp;
4576:
4577: /* ??? Can optimize bitwise operations with one arg constant.
4578: Can optimize (a bitwise1 n) bitwise2 (a bitwise3 b)
4579: and (a bitwise1 b) bitwise2 b (etc)
4580: but that is probably not worth while. */
4581:
4582: /* BIT_AND_EXPR is for bitwise anding.
4583: TRUTH_AND_EXPR is for anding two boolean values
4584: when we want in all cases to compute both of them.
4585: In general it is fastest to do TRUTH_AND_EXPR by
4586: computing both operands as actual zero-or-1 values
4587: and then bitwise anding. In cases where there cannot
4588: be any side effects, better code would be made by
4589: treating TRUTH_AND_EXPR like TRUTH_ANDIF_EXPR;
4590: but the question is how to recognize those cases. */
4591:
4592: case TRUTH_AND_EXPR:
4593: case BIT_AND_EXPR:
4594: this_optab = and_optab;
4595: goto binop;
4596:
4597: /* See comment above about TRUTH_AND_EXPR; it applies here too. */
4598: case TRUTH_OR_EXPR:
4599: case BIT_IOR_EXPR:
4600: this_optab = ior_optab;
4601: goto binop;
4602:
4603: case BIT_XOR_EXPR:
4604: this_optab = xor_optab;
4605: goto binop;
4606:
4607: case LSHIFT_EXPR:
4608: case RSHIFT_EXPR:
4609: case LROTATE_EXPR:
4610: case RROTATE_EXPR:
4611: preexpand_calls (exp);
4612: if (! safe_from_p (subtarget, TREE_OPERAND (exp, 1)))
4613: subtarget = 0;
4614: op0 = expand_expr (TREE_OPERAND (exp, 0), subtarget, VOIDmode, 0);
4615: return expand_shift (code, mode, op0, TREE_OPERAND (exp, 1), target,
4616: unsignedp);
4617:
4618: /* Could determine the answer when only additive constants differ.
4619: Also, the addition of one can be handled by changing the condition. */
4620: case LT_EXPR:
4621: case LE_EXPR:
4622: case GT_EXPR:
4623: case GE_EXPR:
4624: case EQ_EXPR:
4625: case NE_EXPR:
4626: preexpand_calls (exp);
4627: temp = do_store_flag (exp, target, tmode != VOIDmode ? tmode : mode, 0);
4628: if (temp != 0)
4629: return temp;
4630: /* For foo != 0, load foo, and if it is nonzero load 1 instead. */
4631: if (code == NE_EXPR && integer_zerop (TREE_OPERAND (exp, 1))
4632: && original_target
4633: && GET_CODE (original_target) == REG
4634: && (GET_MODE (original_target)
4635: == TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0)))))
4636: {
4637: temp = expand_expr (TREE_OPERAND (exp, 0), original_target, VOIDmode, 0);
4638: if (temp != original_target)
4639: temp = copy_to_reg (temp);
4640: op1 = gen_label_rtx ();
1.1.1.4 ! root 4641: emit_cmp_insn (temp, const0_rtx, EQ, NULL_RTX,
1.1 root 4642: GET_MODE (temp), unsignedp, 0);
4643: emit_jump_insn (gen_beq (op1));
4644: emit_move_insn (temp, const1_rtx);
4645: emit_label (op1);
4646: return temp;
4647: }
4648: /* If no set-flag instruction, must generate a conditional
4649: store into a temporary variable. Drop through
4650: and handle this like && and ||. */
4651:
4652: case TRUTH_ANDIF_EXPR:
4653: case TRUTH_ORIF_EXPR:
4654: if (target == 0 || ! safe_from_p (target, exp)
4655: /* Make sure we don't have a hard reg (such as function's return
4656: value) live across basic blocks, if not optimizing. */
4657: || (!optimize && GET_CODE (target) == REG
4658: && REGNO (target) < FIRST_PSEUDO_REGISTER))
4659: target = gen_reg_rtx (tmode != VOIDmode ? tmode : mode);
4660: emit_clr_insn (target);
4661: op1 = gen_label_rtx ();
4662: jumpifnot (exp, op1);
4663: emit_0_to_1_insn (target);
4664: emit_label (op1);
4665: return target;
4666:
4667: case TRUTH_NOT_EXPR:
4668: op0 = expand_expr (TREE_OPERAND (exp, 0), target, VOIDmode, 0);
4669: /* The parser is careful to generate TRUTH_NOT_EXPR
4670: only with operands that are always zero or one. */
1.1.1.4 ! root 4671: temp = expand_binop (mode, xor_optab, op0, const1_rtx,
1.1 root 4672: target, 1, OPTAB_LIB_WIDEN);
4673: if (temp == 0)
4674: abort ();
4675: return temp;
4676:
4677: case COMPOUND_EXPR:
4678: expand_expr (TREE_OPERAND (exp, 0), const0_rtx, VOIDmode, 0);
4679: emit_queue ();
4680: return expand_expr (TREE_OPERAND (exp, 1),
4681: (ignore ? const0_rtx : target),
4682: VOIDmode, 0);
4683:
4684: case COND_EXPR:
4685: {
4686: /* Note that COND_EXPRs whose type is a structure or union
4687: are required to be constructed to contain assignments of
4688: a temporary variable, so that we can evaluate them here
4689: for side effect only. If type is void, we must do likewise. */
4690:
4691: /* If an arm of the branch requires a cleanup,
4692: only that cleanup is performed. */
4693:
4694: tree singleton = 0;
4695: tree binary_op = 0, unary_op = 0;
4696: tree old_cleanups = cleanups_this_call;
4697: cleanups_this_call = 0;
4698:
4699: /* If this is (A ? 1 : 0) and A is a condition, just evaluate it and
4700: convert it to our mode, if necessary. */
4701: if (integer_onep (TREE_OPERAND (exp, 1))
4702: && integer_zerop (TREE_OPERAND (exp, 2))
4703: && TREE_CODE_CLASS (TREE_CODE (TREE_OPERAND (exp, 0))) == '<')
4704: {
4705: op0 = expand_expr (TREE_OPERAND (exp, 0), target, mode, modifier);
4706: if (GET_MODE (op0) == mode)
4707: return op0;
4708: if (target == 0)
4709: target = gen_reg_rtx (mode);
4710: convert_move (target, op0, unsignedp);
4711: return target;
4712: }
4713:
4714: /* If we are not to produce a result, we have no target. Otherwise,
4715: if a target was specified use it; it will not be used as an
4716: intermediate target unless it is safe. If no target, use a
4717: temporary. */
4718:
4719: if (mode == VOIDmode || ignore)
4720: temp = 0;
4721: else if (original_target
4722: && safe_from_p (original_target, TREE_OPERAND (exp, 0)))
4723: temp = original_target;
4724: else if (mode == BLKmode)
4725: {
4726: if (TYPE_SIZE (type) == 0
4727: || TREE_CODE (TYPE_SIZE (type)) != INTEGER_CST)
4728: abort ();
4729: temp = assign_stack_temp (BLKmode,
4730: (TREE_INT_CST_LOW (TYPE_SIZE (type))
4731: + BITS_PER_UNIT - 1)
4732: / BITS_PER_UNIT, 0);
4733: }
4734: else
4735: temp = gen_reg_rtx (mode);
4736:
4737: /* Check for X ? A + B : A. If we have this, we can copy
4738: A to the output and conditionally add B. Similarly for unary
4739: operations. Don't do this if X has side-effects because
4740: those side effects might affect A or B and the "?" operation is
4741: a sequence point in ANSI. (We test for side effects later.) */
4742:
4743: if (TREE_CODE_CLASS (TREE_CODE (TREE_OPERAND (exp, 1))) == '2'
4744: && operand_equal_p (TREE_OPERAND (exp, 2),
4745: TREE_OPERAND (TREE_OPERAND (exp, 1), 0), 0))
4746: singleton = TREE_OPERAND (exp, 2), binary_op = TREE_OPERAND (exp, 1);
4747: else if (TREE_CODE_CLASS (TREE_CODE (TREE_OPERAND (exp, 2))) == '2'
4748: && operand_equal_p (TREE_OPERAND (exp, 1),
4749: TREE_OPERAND (TREE_OPERAND (exp, 2), 0), 0))
4750: singleton = TREE_OPERAND (exp, 1), binary_op = TREE_OPERAND (exp, 2);
4751: else if (TREE_CODE_CLASS (TREE_CODE (TREE_OPERAND (exp, 1))) == '1'
4752: && operand_equal_p (TREE_OPERAND (exp, 2),
4753: TREE_OPERAND (TREE_OPERAND (exp, 1), 0), 0))
4754: singleton = TREE_OPERAND (exp, 2), unary_op = TREE_OPERAND (exp, 1);
4755: else if (TREE_CODE_CLASS (TREE_CODE (TREE_OPERAND (exp, 2))) == '1'
4756: && operand_equal_p (TREE_OPERAND (exp, 1),
4757: TREE_OPERAND (TREE_OPERAND (exp, 2), 0), 0))
4758: singleton = TREE_OPERAND (exp, 1), unary_op = TREE_OPERAND (exp, 2);
4759:
4760: /* If we had X ? A + 1 : A and we can do the test of X as a store-flag
4761: operation, do this as A + (X != 0). Similarly for other simple
4762: binary operators. */
4763: if (singleton && binary_op
4764: && ! TREE_SIDE_EFFECTS (TREE_OPERAND (exp, 0))
4765: && (TREE_CODE (binary_op) == PLUS_EXPR
4766: || TREE_CODE (binary_op) == MINUS_EXPR
4767: || TREE_CODE (binary_op) == BIT_IOR_EXPR
4768: || TREE_CODE (binary_op) == BIT_XOR_EXPR
4769: || TREE_CODE (binary_op) == BIT_AND_EXPR)
4770: && integer_onep (TREE_OPERAND (binary_op, 1))
4771: && TREE_CODE_CLASS (TREE_CODE (TREE_OPERAND (exp, 0))) == '<')
4772: {
4773: rtx result;
4774: optab boptab = (TREE_CODE (binary_op) == PLUS_EXPR ? add_optab
4775: : TREE_CODE (binary_op) == MINUS_EXPR ? sub_optab
4776: : TREE_CODE (binary_op) == BIT_IOR_EXPR ? ior_optab
4777: : TREE_CODE (binary_op) == BIT_XOR_EXPR ? xor_optab
4778: : and_optab);
4779:
4780: /* If we had X ? A : A + 1, do this as A + (X == 0).
4781:
4782: We have to invert the truth value here and then put it
4783: back later if do_store_flag fails. We cannot simply copy
4784: TREE_OPERAND (exp, 0) to another variable and modify that
4785: because invert_truthvalue can modify the tree pointed to
4786: by its argument. */
4787: if (singleton == TREE_OPERAND (exp, 1))
4788: TREE_OPERAND (exp, 0)
4789: = invert_truthvalue (TREE_OPERAND (exp, 0));
4790:
4791: result = do_store_flag (TREE_OPERAND (exp, 0),
1.1.1.4 ! root 4792: (safe_from_p (temp, singleton)
! 4793: ? temp : NULL_RTX),
1.1 root 4794: mode, BRANCH_COST <= 1);
4795:
4796: if (result)
4797: {
1.1.1.4 ! root 4798: op1 = expand_expr (singleton, NULL_RTX, VOIDmode, 0);
1.1 root 4799: return expand_binop (mode, boptab, op1, result, temp,
4800: unsignedp, OPTAB_LIB_WIDEN);
4801: }
4802: else if (singleton == TREE_OPERAND (exp, 1))
4803: TREE_OPERAND (exp, 0)
4804: = invert_truthvalue (TREE_OPERAND (exp, 0));
4805: }
4806:
4807: NO_DEFER_POP;
4808: op0 = gen_label_rtx ();
4809:
4810: if (singleton && ! TREE_SIDE_EFFECTS (TREE_OPERAND (exp, 0)))
4811: {
4812: if (temp != 0)
4813: {
4814: /* If the target conflicts with the other operand of the
4815: binary op, we can't use it. Also, we can't use the target
4816: if it is a hard register, because evaluating the condition
4817: might clobber it. */
4818: if ((binary_op
4819: && ! safe_from_p (temp, TREE_OPERAND (binary_op, 1)))
4820: || (GET_CODE (temp) == REG
4821: && REGNO (temp) < FIRST_PSEUDO_REGISTER))
4822: temp = gen_reg_rtx (mode);
4823: store_expr (singleton, temp, 0);
4824: }
4825: else
1.1.1.4 ! root 4826: expand_expr (singleton,
! 4827: ignore ? const1_rtx : NULL_RTX, VOIDmode, 0);
1.1 root 4828: if (cleanups_this_call)
4829: {
4830: sorry ("aggregate value in COND_EXPR");
4831: cleanups_this_call = 0;
4832: }
4833: if (singleton == TREE_OPERAND (exp, 1))
4834: jumpif (TREE_OPERAND (exp, 0), op0);
4835: else
4836: jumpifnot (TREE_OPERAND (exp, 0), op0);
4837:
4838: if (binary_op && temp == 0)
4839: /* Just touch the other operand. */
4840: expand_expr (TREE_OPERAND (binary_op, 1),
1.1.1.4 ! root 4841: ignore ? const0_rtx : NULL_RTX, VOIDmode, 0);
1.1 root 4842: else if (binary_op)
4843: store_expr (build (TREE_CODE (binary_op), type,
4844: make_tree (type, temp),
4845: TREE_OPERAND (binary_op, 1)),
4846: temp, 0);
4847: else
4848: store_expr (build1 (TREE_CODE (unary_op), type,
4849: make_tree (type, temp)),
4850: temp, 0);
4851: op1 = op0;
4852: }
4853: #if 0
4854: /* This is now done in jump.c and is better done there because it
4855: produces shorter register lifetimes. */
4856:
4857: /* Check for both possibilities either constants or variables
4858: in registers (but not the same as the target!). If so, can
4859: save branches by assigning one, branching, and assigning the
4860: other. */
4861: else if (temp && GET_MODE (temp) != BLKmode
4862: && (TREE_CONSTANT (TREE_OPERAND (exp, 1))
4863: || ((TREE_CODE (TREE_OPERAND (exp, 1)) == PARM_DECL
4864: || TREE_CODE (TREE_OPERAND (exp, 1)) == VAR_DECL)
4865: && DECL_RTL (TREE_OPERAND (exp, 1))
4866: && GET_CODE (DECL_RTL (TREE_OPERAND (exp, 1))) == REG
4867: && DECL_RTL (TREE_OPERAND (exp, 1)) != temp))
4868: && (TREE_CONSTANT (TREE_OPERAND (exp, 2))
4869: || ((TREE_CODE (TREE_OPERAND (exp, 2)) == PARM_DECL
4870: || TREE_CODE (TREE_OPERAND (exp, 2)) == VAR_DECL)
4871: && DECL_RTL (TREE_OPERAND (exp, 2))
4872: && GET_CODE (DECL_RTL (TREE_OPERAND (exp, 2))) == REG
4873: && DECL_RTL (TREE_OPERAND (exp, 2)) != temp)))
4874: {
4875: if (GET_CODE (temp) == REG && REGNO (temp) < FIRST_PSEUDO_REGISTER)
4876: temp = gen_reg_rtx (mode);
4877: store_expr (TREE_OPERAND (exp, 2), temp, 0);
4878: jumpifnot (TREE_OPERAND (exp, 0), op0);
4879: store_expr (TREE_OPERAND (exp, 1), temp, 0);
4880: op1 = op0;
4881: }
4882: #endif
4883: /* Check for A op 0 ? A : FOO and A op 0 ? FOO : A where OP is any
4884: comparison operator. If we have one of these cases, set the
4885: output to A, branch on A (cse will merge these two references),
4886: then set the output to FOO. */
4887: else if (temp
4888: && TREE_CODE_CLASS (TREE_CODE (TREE_OPERAND (exp, 0))) == '<'
4889: && integer_zerop (TREE_OPERAND (TREE_OPERAND (exp, 0), 1))
4890: && operand_equal_p (TREE_OPERAND (TREE_OPERAND (exp, 0), 0),
4891: TREE_OPERAND (exp, 1), 0)
4892: && ! TREE_SIDE_EFFECTS (TREE_OPERAND (exp, 0))
4893: && safe_from_p (temp, TREE_OPERAND (exp, 2)))
4894: {
4895: if (GET_CODE (temp) == REG && REGNO (temp) < FIRST_PSEUDO_REGISTER)
4896: temp = gen_reg_rtx (mode);
4897: store_expr (TREE_OPERAND (exp, 1), temp, 0);
4898: jumpif (TREE_OPERAND (exp, 0), op0);
4899: store_expr (TREE_OPERAND (exp, 2), temp, 0);
4900: op1 = op0;
4901: }
4902: else if (temp
4903: && TREE_CODE_CLASS (TREE_CODE (TREE_OPERAND (exp, 0))) == '<'
4904: && integer_zerop (TREE_OPERAND (TREE_OPERAND (exp, 0), 1))
4905: && operand_equal_p (TREE_OPERAND (TREE_OPERAND (exp, 0), 0),
4906: TREE_OPERAND (exp, 2), 0)
4907: && ! TREE_SIDE_EFFECTS (TREE_OPERAND (exp, 0))
4908: && safe_from_p (temp, TREE_OPERAND (exp, 1)))
4909: {
4910: if (GET_CODE (temp) == REG && REGNO (temp) < FIRST_PSEUDO_REGISTER)
4911: temp = gen_reg_rtx (mode);
4912: store_expr (TREE_OPERAND (exp, 2), temp, 0);
4913: jumpifnot (TREE_OPERAND (exp, 0), op0);
4914: store_expr (TREE_OPERAND (exp, 1), temp, 0);
4915: op1 = op0;
4916: }
4917: else
4918: {
4919: op1 = gen_label_rtx ();
4920: jumpifnot (TREE_OPERAND (exp, 0), op0);
4921: if (temp != 0)
4922: store_expr (TREE_OPERAND (exp, 1), temp, 0);
4923: else
1.1.1.4 ! root 4924: expand_expr (TREE_OPERAND (exp, 1),
! 4925: ignore ? const0_rtx : NULL_RTX, VOIDmode, 0);
1.1 root 4926: if (cleanups_this_call)
4927: {
4928: sorry ("aggregate value in COND_EXPR");
4929: cleanups_this_call = 0;
4930: }
4931:
4932: emit_queue ();
4933: emit_jump_insn (gen_jump (op1));
4934: emit_barrier ();
4935: emit_label (op0);
4936: if (temp != 0)
4937: store_expr (TREE_OPERAND (exp, 2), temp, 0);
4938: else
1.1.1.4 ! root 4939: expand_expr (TREE_OPERAND (exp, 2),
! 4940: ignore ? const0_rtx : NULL_RTX, VOIDmode, 0);
1.1 root 4941: }
4942:
4943: if (cleanups_this_call)
4944: {
4945: sorry ("aggregate value in COND_EXPR");
4946: cleanups_this_call = 0;
4947: }
4948:
4949: emit_queue ();
4950: emit_label (op1);
4951: OK_DEFER_POP;
4952: cleanups_this_call = old_cleanups;
4953: return temp;
4954: }
4955:
4956: case TARGET_EXPR:
4957: {
4958: /* Something needs to be initialized, but we didn't know
4959: where that thing was when building the tree. For example,
4960: it could be the return value of a function, or a parameter
4961: to a function which lays down in the stack, or a temporary
4962: variable which must be passed by reference.
4963:
4964: We guarantee that the expression will either be constructed
4965: or copied into our original target. */
4966:
4967: tree slot = TREE_OPERAND (exp, 0);
1.1.1.4 ! root 4968: tree exp1;
1.1 root 4969:
4970: if (TREE_CODE (slot) != VAR_DECL)
4971: abort ();
4972:
4973: if (target == 0)
4974: {
4975: if (DECL_RTL (slot) != 0)
1.1.1.4 ! root 4976: {
! 4977: target = DECL_RTL (slot);
! 4978: /* If we have already expanded the slot, so don't do
! 4979: it again. (mrs) */
! 4980: if (TREE_OPERAND (exp, 1) == NULL_TREE)
! 4981: return target;
! 4982: }
1.1 root 4983: else
4984: {
4985: target = assign_stack_temp (mode, int_size_in_bytes (type), 0);
4986: /* All temp slots at this level must not conflict. */
4987: preserve_temp_slots (target);
4988: DECL_RTL (slot) = target;
4989: }
4990:
4991: #if 0
1.1.1.4 ! root 4992: /* I bet this needs to be done, and I bet that it needs to
! 4993: be above, inside the else clause. The reason is
! 4994: simple, how else is it going to get cleaned up? (mrs)
! 4995:
! 4996: The reason is probably did not work before, and was
! 4997: commented out is because this was re-expanding already
! 4998: expanded target_exprs (target == 0 and DECL_RTL (slot)
! 4999: != 0) also cleaning them up many times as well. :-( */
! 5000:
1.1 root 5001: /* Since SLOT is not known to the called function
5002: to belong to its stack frame, we must build an explicit
5003: cleanup. This case occurs when we must build up a reference
5004: to pass the reference as an argument. In this case,
5005: it is very likely that such a reference need not be
5006: built here. */
5007:
5008: if (TREE_OPERAND (exp, 2) == 0)
5009: TREE_OPERAND (exp, 2) = maybe_build_cleanup (slot);
5010: if (TREE_OPERAND (exp, 2))
1.1.1.4 ! root 5011: cleanups_this_call = tree_cons (NULL_TREE, TREE_OPERAND (exp, 2),
! 5012: cleanups_this_call);
1.1 root 5013: #endif
5014: }
5015: else
5016: {
5017: /* This case does occur, when expanding a parameter which
5018: needs to be constructed on the stack. The target
5019: is the actual stack address that we want to initialize.
5020: The function we call will perform the cleanup in this case. */
5021:
5022: DECL_RTL (slot) = target;
5023: }
5024:
1.1.1.4 ! root 5025: exp1 = TREE_OPERAND (exp, 1);
! 5026: /* Mark it as expanded. */
! 5027: TREE_OPERAND (exp, 1) = NULL_TREE;
! 5028:
! 5029: return expand_expr (exp1, target, tmode, modifier);
1.1 root 5030: }
5031:
5032: case INIT_EXPR:
5033: {
5034: tree lhs = TREE_OPERAND (exp, 0);
5035: tree rhs = TREE_OPERAND (exp, 1);
5036: tree noncopied_parts = 0;
5037: tree lhs_type = TREE_TYPE (lhs);
5038:
5039: temp = expand_assignment (lhs, rhs, ! ignore, original_target != 0);
5040: if (TYPE_NONCOPIED_PARTS (lhs_type) != 0 && !fixed_type_p (rhs))
5041: noncopied_parts = init_noncopied_parts (stabilize_reference (lhs),
5042: TYPE_NONCOPIED_PARTS (lhs_type));
5043: while (noncopied_parts != 0)
5044: {
5045: expand_assignment (TREE_VALUE (noncopied_parts),
5046: TREE_PURPOSE (noncopied_parts), 0, 0);
5047: noncopied_parts = TREE_CHAIN (noncopied_parts);
5048: }
5049: return temp;
5050: }
5051:
5052: case MODIFY_EXPR:
5053: {
5054: /* If lhs is complex, expand calls in rhs before computing it.
5055: That's so we don't compute a pointer and save it over a call.
5056: If lhs is simple, compute it first so we can give it as a
5057: target if the rhs is just a call. This avoids an extra temp and copy
5058: and that prevents a partial-subsumption which makes bad code.
5059: Actually we could treat component_ref's of vars like vars. */
5060:
5061: tree lhs = TREE_OPERAND (exp, 0);
5062: tree rhs = TREE_OPERAND (exp, 1);
5063: tree noncopied_parts = 0;
5064: tree lhs_type = TREE_TYPE (lhs);
5065:
5066: temp = 0;
5067:
5068: if (TREE_CODE (lhs) != VAR_DECL
5069: && TREE_CODE (lhs) != RESULT_DECL
5070: && TREE_CODE (lhs) != PARM_DECL)
5071: preexpand_calls (exp);
5072:
5073: /* Check for |= or &= of a bitfield of size one into another bitfield
5074: of size 1. In this case, (unless we need the result of the
5075: assignment) we can do this more efficiently with a
5076: test followed by an assignment, if necessary.
5077:
5078: ??? At this point, we can't get a BIT_FIELD_REF here. But if
5079: things change so we do, this code should be enhanced to
5080: support it. */
5081: if (ignore
5082: && TREE_CODE (lhs) == COMPONENT_REF
5083: && (TREE_CODE (rhs) == BIT_IOR_EXPR
5084: || TREE_CODE (rhs) == BIT_AND_EXPR)
5085: && TREE_OPERAND (rhs, 0) == lhs
5086: && TREE_CODE (TREE_OPERAND (rhs, 1)) == COMPONENT_REF
5087: && TREE_INT_CST_LOW (DECL_SIZE (TREE_OPERAND (lhs, 1))) == 1
5088: && TREE_INT_CST_LOW (DECL_SIZE (TREE_OPERAND (TREE_OPERAND (rhs, 1), 1))) == 1)
5089: {
5090: rtx label = gen_label_rtx ();
5091:
5092: do_jump (TREE_OPERAND (rhs, 1),
5093: TREE_CODE (rhs) == BIT_IOR_EXPR ? label : 0,
5094: TREE_CODE (rhs) == BIT_AND_EXPR ? label : 0);
5095: expand_assignment (lhs, convert (TREE_TYPE (rhs),
5096: (TREE_CODE (rhs) == BIT_IOR_EXPR
5097: ? integer_one_node
5098: : integer_zero_node)),
5099: 0, 0);
1.1.1.3 root 5100: do_pending_stack_adjust ();
1.1 root 5101: emit_label (label);
5102: return const0_rtx;
5103: }
5104:
5105: if (TYPE_NONCOPIED_PARTS (lhs_type) != 0
5106: && ! (fixed_type_p (lhs) && fixed_type_p (rhs)))
5107: noncopied_parts = save_noncopied_parts (stabilize_reference (lhs),
5108: TYPE_NONCOPIED_PARTS (lhs_type));
5109:
5110: temp = expand_assignment (lhs, rhs, ! ignore, original_target != 0);
5111: while (noncopied_parts != 0)
5112: {
5113: expand_assignment (TREE_PURPOSE (noncopied_parts),
5114: TREE_VALUE (noncopied_parts), 0, 0);
5115: noncopied_parts = TREE_CHAIN (noncopied_parts);
5116: }
5117: return temp;
5118: }
5119:
5120: case PREINCREMENT_EXPR:
5121: case PREDECREMENT_EXPR:
5122: return expand_increment (exp, 0);
5123:
5124: case POSTINCREMENT_EXPR:
5125: case POSTDECREMENT_EXPR:
5126: /* Faster to treat as pre-increment if result is not used. */
5127: return expand_increment (exp, ! ignore);
5128:
5129: case ADDR_EXPR:
5130: /* Are we taking the address of a nested function? */
5131: if (TREE_CODE (TREE_OPERAND (exp, 0)) == FUNCTION_DECL
5132: && decl_function_context (TREE_OPERAND (exp, 0)) != 0)
5133: {
5134: op0 = trampoline_address (TREE_OPERAND (exp, 0));
5135: op0 = force_operand (op0, target);
5136: }
5137: else
5138: {
1.1.1.4 ! root 5139: op0 = expand_expr (TREE_OPERAND (exp, 0), NULL_RTX, VOIDmode,
1.1 root 5140: (modifier == EXPAND_INITIALIZER
5141: ? modifier : EXPAND_CONST_ADDRESS));
5142: if (GET_CODE (op0) != MEM)
5143: abort ();
5144:
5145: if (modifier == EXPAND_SUM || modifier == EXPAND_INITIALIZER)
5146: return XEXP (op0, 0);
5147: op0 = force_operand (XEXP (op0, 0), target);
5148: }
5149: if (flag_force_addr && GET_CODE (op0) != REG)
5150: return force_reg (Pmode, op0);
5151: return op0;
5152:
5153: case ENTRY_VALUE_EXPR:
5154: abort ();
5155:
1.1.1.4 ! root 5156: /* COMPLEX type for Extended Pascal & Fortran */
! 5157: case COMPLEX_EXPR:
! 5158: {
! 5159: enum machine_mode mode = TYPE_MODE (TREE_TYPE (TREE_TYPE (exp)));
! 5160:
! 5161: rtx prev;
! 5162:
! 5163: /* Get the rtx code of the operands. */
! 5164: op0 = expand_expr (TREE_OPERAND (exp, 0), 0, VOIDmode, 0);
! 5165: op1 = expand_expr (TREE_OPERAND (exp, 1), 0, VOIDmode, 0);
! 5166:
! 5167: if (! target)
! 5168: target = gen_reg_rtx (TYPE_MODE (TREE_TYPE (exp)));
! 5169:
! 5170: prev = get_last_insn ();
! 5171:
! 5172: /* Tell flow that the whole of the destination is being set. */
! 5173: if (GET_CODE (target) == REG)
! 5174: emit_insn (gen_rtx (CLOBBER, VOIDmode, target));
! 5175:
! 5176: /* Move the real (op0) and imaginary (op1) parts to their location. */
! 5177: emit_move_insn (gen_realpart (mode, target), op0);
! 5178: emit_move_insn (gen_imagpart (mode, target), op1);
! 5179:
! 5180: /* Complex construction should appear as a single unit. */
! 5181: group_insns (prev);
! 5182:
! 5183: return target;
! 5184: }
! 5185:
! 5186: case REALPART_EXPR:
! 5187: op0 = expand_expr (TREE_OPERAND (exp, 0), 0, VOIDmode, 0);
! 5188: return gen_realpart (mode, op0);
! 5189:
! 5190: case IMAGPART_EXPR:
! 5191: op0 = expand_expr (TREE_OPERAND (exp, 0), 0, VOIDmode, 0);
! 5192: return gen_imagpart (mode, op0);
! 5193:
! 5194: case CONJ_EXPR:
! 5195: {
! 5196: enum machine_mode mode = TYPE_MODE (TREE_TYPE (TREE_TYPE (exp)));
! 5197: rtx imag_t;
! 5198: rtx prev;
! 5199:
! 5200: op0 = expand_expr (TREE_OPERAND (exp, 0), 0, VOIDmode, 0);
! 5201:
! 5202: if (! target)
! 5203: target = gen_reg_rtx (TYPE_MODE (TREE_TYPE (exp)));
! 5204:
! 5205: prev = get_last_insn ();
! 5206:
! 5207: /* Tell flow that the whole of the destination is being set. */
! 5208: if (GET_CODE (target) == REG)
! 5209: emit_insn (gen_rtx (CLOBBER, VOIDmode, target));
! 5210:
! 5211: /* Store the realpart and the negated imagpart to target. */
! 5212: emit_move_insn (gen_realpart (mode, target), gen_realpart (mode, op0));
! 5213:
! 5214: imag_t = gen_imagpart (mode, target);
! 5215: temp = expand_unop (mode, neg_optab,
! 5216: gen_imagpart (mode, op0), imag_t, 0);
! 5217: if (temp != imag_t)
! 5218: emit_move_insn (imag_t, temp);
! 5219:
! 5220: /* Conjugate should appear as a single unit */
! 5221: group_insns (prev);
! 5222:
! 5223: return target;
! 5224: }
! 5225:
1.1 root 5226: case ERROR_MARK:
5227: return const0_rtx;
5228:
5229: default:
5230: return (*lang_expand_expr) (exp, target, tmode, modifier);
5231: }
5232:
5233: /* Here to do an ordinary binary operator, generating an instruction
5234: from the optab already placed in `this_optab'. */
5235: binop:
5236: preexpand_calls (exp);
5237: if (! safe_from_p (subtarget, TREE_OPERAND (exp, 1)))
5238: subtarget = 0;
5239: op0 = expand_expr (TREE_OPERAND (exp, 0), subtarget, VOIDmode, 0);
1.1.1.4 ! root 5240: op1 = expand_expr (TREE_OPERAND (exp, 1), NULL_RTX, VOIDmode, 0);
1.1 root 5241: binop2:
5242: temp = expand_binop (mode, this_optab, op0, op1, target,
5243: unsignedp, OPTAB_LIB_WIDEN);
5244: if (temp == 0)
5245: abort ();
5246: return temp;
5247: }
5248:
1.1.1.2 root 5249: /* Return the alignment in bits of EXP, a pointer valued expression.
5250: But don't return more than MAX_ALIGN no matter what.
1.1 root 5251: The alignment returned is, by default, the alignment of the thing that
5252: EXP points to (if it is not a POINTER_TYPE, 0 is returned).
5253:
5254: Otherwise, look at the expression to see if we can do better, i.e., if the
5255: expression is actually pointing at an object whose alignment is tighter. */
5256:
5257: static int
5258: get_pointer_alignment (exp, max_align)
5259: tree exp;
5260: unsigned max_align;
5261: {
5262: unsigned align, inner;
5263:
5264: if (TREE_CODE (TREE_TYPE (exp)) != POINTER_TYPE)
5265: return 0;
5266:
5267: align = TYPE_ALIGN (TREE_TYPE (TREE_TYPE (exp)));
5268: align = MIN (align, max_align);
5269:
5270: while (1)
5271: {
5272: switch (TREE_CODE (exp))
5273: {
5274: case NOP_EXPR:
5275: case CONVERT_EXPR:
5276: case NON_LVALUE_EXPR:
5277: exp = TREE_OPERAND (exp, 0);
5278: if (TREE_CODE (TREE_TYPE (exp)) != POINTER_TYPE)
5279: return align;
5280: inner = TYPE_ALIGN (TREE_TYPE (TREE_TYPE (exp)));
5281: inner = MIN (inner, max_align);
5282: align = MAX (align, inner);
5283: break;
5284:
5285: case PLUS_EXPR:
5286: /* If sum of pointer + int, restrict our maximum alignment to that
5287: imposed by the integer. If not, we can't do any better than
5288: ALIGN. */
5289: if (TREE_CODE (TREE_OPERAND (exp, 1)) != INTEGER_CST)
5290: return align;
5291:
1.1.1.2 root 5292: while (((TREE_INT_CST_LOW (TREE_OPERAND (exp, 1)) * BITS_PER_UNIT)
5293: & (max_align - 1))
5294: != 0)
1.1 root 5295: max_align >>= 1;
5296:
5297: exp = TREE_OPERAND (exp, 0);
5298: break;
5299:
5300: case ADDR_EXPR:
5301: /* See what we are pointing at and look at its alignment. */
5302: exp = TREE_OPERAND (exp, 0);
1.1.1.3 root 5303: if (TREE_CODE (exp) == FUNCTION_DECL)
5304: align = MAX (align, FUNCTION_BOUNDARY);
5305: else if (TREE_CODE_CLASS (TREE_CODE (exp)) == 'd')
1.1 root 5306: align = MAX (align, DECL_ALIGN (exp));
5307: #ifdef CONSTANT_ALIGNMENT
5308: else if (TREE_CODE_CLASS (TREE_CODE (exp)) == 'c')
5309: align = CONSTANT_ALIGNMENT (exp, align);
5310: #endif
5311: return MIN (align, max_align);
5312:
5313: default:
5314: return align;
5315: }
5316: }
5317: }
5318:
5319: /* Return the tree node and offset if a given argument corresponds to
5320: a string constant. */
5321:
5322: static tree
5323: string_constant (arg, ptr_offset)
5324: tree arg;
5325: tree *ptr_offset;
5326: {
5327: STRIP_NOPS (arg);
5328:
5329: if (TREE_CODE (arg) == ADDR_EXPR
5330: && TREE_CODE (TREE_OPERAND (arg, 0)) == STRING_CST)
5331: {
5332: *ptr_offset = integer_zero_node;
5333: return TREE_OPERAND (arg, 0);
5334: }
5335: else if (TREE_CODE (arg) == PLUS_EXPR)
5336: {
5337: tree arg0 = TREE_OPERAND (arg, 0);
5338: tree arg1 = TREE_OPERAND (arg, 1);
5339:
5340: STRIP_NOPS (arg0);
5341: STRIP_NOPS (arg1);
5342:
5343: if (TREE_CODE (arg0) == ADDR_EXPR
5344: && TREE_CODE (TREE_OPERAND (arg0, 0)) == STRING_CST)
5345: {
5346: *ptr_offset = arg1;
5347: return TREE_OPERAND (arg0, 0);
5348: }
5349: else if (TREE_CODE (arg1) == ADDR_EXPR
5350: && TREE_CODE (TREE_OPERAND (arg1, 0)) == STRING_CST)
5351: {
5352: *ptr_offset = arg0;
5353: return TREE_OPERAND (arg1, 0);
5354: }
5355: }
5356:
5357: return 0;
5358: }
5359:
5360: /* Compute the length of a C string. TREE_STRING_LENGTH is not the right
5361: way, because it could contain a zero byte in the middle.
5362: TREE_STRING_LENGTH is the size of the character array, not the string.
5363:
5364: Unfortunately, string_constant can't access the values of const char
5365: arrays with initializers, so neither can we do so here. */
5366:
5367: static tree
5368: c_strlen (src)
5369: tree src;
5370: {
5371: tree offset_node;
5372: int offset, max;
5373: char *ptr;
5374:
5375: src = string_constant (src, &offset_node);
5376: if (src == 0)
5377: return 0;
5378: max = TREE_STRING_LENGTH (src);
5379: ptr = TREE_STRING_POINTER (src);
5380: if (offset_node && TREE_CODE (offset_node) != INTEGER_CST)
5381: {
5382: /* If the string has an internal zero byte (e.g., "foo\0bar"), we can't
5383: compute the offset to the following null if we don't know where to
5384: start searching for it. */
5385: int i;
5386: for (i = 0; i < max; i++)
5387: if (ptr[i] == 0)
5388: return 0;
5389: /* We don't know the starting offset, but we do know that the string
5390: has no internal zero bytes. We can assume that the offset falls
5391: within the bounds of the string; otherwise, the programmer deserves
5392: what he gets. Subtract the offset from the length of the string,
5393: and return that. */
5394: /* This would perhaps not be valid if we were dealing with named
5395: arrays in addition to literal string constants. */
5396: return size_binop (MINUS_EXPR, size_int (max), offset_node);
5397: }
5398:
5399: /* We have a known offset into the string. Start searching there for
5400: a null character. */
5401: if (offset_node == 0)
5402: offset = 0;
5403: else
5404: {
5405: /* Did we get a long long offset? If so, punt. */
5406: if (TREE_INT_CST_HIGH (offset_node) != 0)
5407: return 0;
5408: offset = TREE_INT_CST_LOW (offset_node);
5409: }
5410: /* If the offset is known to be out of bounds, warn, and call strlen at
5411: runtime. */
5412: if (offset < 0 || offset > max)
5413: {
5414: warning ("offset outside bounds of constant string");
5415: return 0;
5416: }
5417: /* Use strlen to search for the first zero byte. Since any strings
5418: constructed with build_string will have nulls appended, we win even
5419: if we get handed something like (char[4])"abcd".
5420:
5421: Since OFFSET is our starting index into the string, no further
5422: calculation is needed. */
5423: return size_int (strlen (ptr + offset));
5424: }
5425:
5426: /* Expand an expression EXP that calls a built-in function,
5427: with result going to TARGET if that's convenient
5428: (and in mode MODE if that's convenient).
5429: SUBTARGET may be used as the target for computing one of EXP's operands.
5430: IGNORE is nonzero if the value is to be ignored. */
5431:
5432: static rtx
5433: expand_builtin (exp, target, subtarget, mode, ignore)
5434: tree exp;
5435: rtx target;
5436: rtx subtarget;
5437: enum machine_mode mode;
5438: int ignore;
5439: {
5440: tree fndecl = TREE_OPERAND (TREE_OPERAND (exp, 0), 0);
5441: tree arglist = TREE_OPERAND (exp, 1);
5442: rtx op0;
1.1.1.4 ! root 5443: rtx lab1, insns;
1.1 root 5444: enum machine_mode value_mode = TYPE_MODE (TREE_TYPE (exp));
1.1.1.4 ! root 5445: optab builtin_optab;
1.1 root 5446:
5447: switch (DECL_FUNCTION_CODE (fndecl))
5448: {
5449: case BUILT_IN_ABS:
5450: case BUILT_IN_LABS:
5451: case BUILT_IN_FABS:
5452: /* build_function_call changes these into ABS_EXPR. */
5453: abort ();
5454:
1.1.1.4 ! root 5455: case BUILT_IN_SIN:
! 5456: case BUILT_IN_COS:
1.1.1.2 root 5457: case BUILT_IN_FSQRT:
5458: /* If not optimizing, call the library function. */
1.1.1.3 root 5459: if (! optimize)
1.1.1.2 root 5460: break;
5461:
5462: if (arglist == 0
1.1.1.3 root 5463: /* Arg could be wrong type if user redeclared this fcn wrong. */
1.1.1.2 root 5464: || TREE_CODE (TREE_TYPE (TREE_VALUE (arglist))) != REAL_TYPE)
1.1.1.3 root 5465: return CONST0_RTX (TYPE_MODE (TREE_TYPE (exp)));
1.1.1.2 root 5466:
1.1.1.3 root 5467: /* Stabilize and compute the argument. */
5468: if (TREE_CODE (TREE_VALUE (arglist)) != VAR_DECL
5469: && TREE_CODE (TREE_VALUE (arglist)) != PARM_DECL)
5470: {
5471: exp = copy_node (exp);
5472: arglist = copy_node (arglist);
5473: TREE_OPERAND (exp, 1) = arglist;
5474: TREE_VALUE (arglist) = save_expr (TREE_VALUE (arglist));
5475: }
1.1.1.2 root 5476: op0 = expand_expr (TREE_VALUE (arglist), subtarget, VOIDmode, 0);
1.1.1.3 root 5477:
5478: /* Make a suitable register to place result in. */
5479: target = gen_reg_rtx (TYPE_MODE (TREE_TYPE (exp)));
5480:
1.1.1.4 ! root 5481: emit_queue ();
1.1.1.3 root 5482: start_sequence ();
5483:
1.1.1.4 ! root 5484: switch (DECL_FUNCTION_CODE (fndecl))
! 5485: {
! 5486: case BUILT_IN_SIN:
! 5487: builtin_optab = sin_optab; break;
! 5488: case BUILT_IN_COS:
! 5489: builtin_optab = cos_optab; break;
! 5490: case BUILT_IN_FSQRT:
! 5491: builtin_optab = sqrt_optab; break;
! 5492: default:
! 5493: abort ();
1.1.1.3 root 5494: }
5495:
1.1.1.4 ! root 5496: /* Compute into TARGET.
1.1.1.2 root 5497: Set TARGET to wherever the result comes back. */
5498: target = expand_unop (TYPE_MODE (TREE_TYPE (TREE_VALUE (arglist))),
1.1.1.4 ! root 5499: builtin_optab, op0, target, 0);
1.1.1.3 root 5500:
5501: /* If we were unable to expand via the builtin, stop the
5502: sequence (without outputting the insns) and break, causing
5503: a call the the library function. */
1.1.1.2 root 5504: if (target == 0)
1.1.1.3 root 5505: {
5506: end_sequence ();
5507: break;
5508: }
1.1.1.2 root 5509:
1.1.1.4 ! root 5510: /* Check the results by default. But if flag_fast_math is turned on,
! 5511: then assume sqrt will always be called with valid arguments. */
! 5512:
! 5513: if (! flag_fast_math)
! 5514: {
! 5515: /* Don't define the builtin FP instructions
! 5516: if your machine is not IEEE. */
! 5517: if (TARGET_FLOAT_FORMAT != IEEE_FLOAT_FORMAT)
! 5518: abort ();
! 5519:
! 5520: lab1 = gen_label_rtx ();
! 5521:
! 5522: /* Test the result; if it is NaN, set errno=EDOM because
! 5523: the argument was not in the domain. */
! 5524: emit_cmp_insn (target, target, EQ, 0, GET_MODE (target), 0, 0);
! 5525: emit_jump_insn (gen_beq (lab1));
! 5526:
! 5527: #if TARGET_EDOM
! 5528: {
! 5529: #ifdef GEN_ERRNO_RTX
! 5530: rtx errno_rtx = GEN_ERRNO_RTX;
! 5531: #else
! 5532: rtx errno_rtx
! 5533: = gen_rtx (MEM, word_mode, gen_rtx (SYMBOL_REF, Pmode, "*errno"));
! 5534: #endif
! 5535:
! 5536: emit_move_insn (errno_rtx, GEN_INT (TARGET_EDOM));
! 5537: }
! 5538: #else
! 5539: /* We can't set errno=EDOM directly; let the library call do it.
! 5540: Pop the arguments right away in case the call gets deleted. */
! 5541: NO_DEFER_POP;
! 5542: expand_call (exp, target, 0);
! 5543: OK_DEFER_POP;
! 5544: #endif
! 5545:
! 5546: emit_label (lab1);
! 5547: }
1.1.1.2 root 5548:
1.1.1.3 root 5549: /* Output the entire sequence. */
5550: insns = get_insns ();
5551: end_sequence ();
5552: emit_insns (insns);
5553:
5554: return target;
5555:
1.1 root 5556: case BUILT_IN_SAVEREGS:
5557: /* Don't do __builtin_saveregs more than once in a function.
5558: Save the result of the first call and reuse it. */
5559: if (saveregs_value != 0)
5560: return saveregs_value;
5561: {
5562: /* When this function is called, it means that registers must be
5563: saved on entry to this function. So we migrate the
5564: call to the first insn of this function. */
5565: rtx temp;
5566: rtx seq;
5567: rtx valreg, saved_valreg;
5568:
5569: /* Now really call the function. `expand_call' does not call
5570: expand_builtin, so there is no danger of infinite recursion here. */
5571: start_sequence ();
5572:
5573: #ifdef EXPAND_BUILTIN_SAVEREGS
5574: /* Do whatever the machine needs done in this case. */
5575: temp = EXPAND_BUILTIN_SAVEREGS (arglist);
5576: #else
5577: /* The register where the function returns its value
5578: is likely to have something else in it, such as an argument.
5579: So preserve that register around the call. */
5580: if (value_mode != VOIDmode)
5581: {
5582: valreg = hard_libcall_value (value_mode);
5583: saved_valreg = gen_reg_rtx (value_mode);
5584: emit_move_insn (saved_valreg, valreg);
5585: }
5586:
5587: /* Generate the call, putting the value in a pseudo. */
5588: temp = expand_call (exp, target, ignore);
5589:
5590: if (value_mode != VOIDmode)
5591: emit_move_insn (valreg, saved_valreg);
5592: #endif
5593:
5594: seq = get_insns ();
5595: end_sequence ();
5596:
5597: saveregs_value = temp;
5598:
5599: /* This won't work inside a SEQUENCE--it really has to be
5600: at the start of the function. */
5601: if (in_sequence_p ())
5602: {
5603: /* Better to do this than to crash. */
5604: error ("`va_start' used within `({...})'");
5605: return temp;
5606: }
5607:
5608: /* Put the sequence after the NOTE that starts the function. */
5609: emit_insns_before (seq, NEXT_INSN (get_insns ()));
5610: return temp;
5611: }
5612:
5613: /* __builtin_args_info (N) returns word N of the arg space info
5614: for the current function. The number and meanings of words
5615: is controlled by the definition of CUMULATIVE_ARGS. */
5616: case BUILT_IN_ARGS_INFO:
5617: {
5618: int nwords = sizeof (CUMULATIVE_ARGS) / sizeof (int);
5619: int i;
5620: int *word_ptr = (int *) ¤t_function_args_info;
5621: tree type, elts, result;
5622:
5623: if (sizeof (CUMULATIVE_ARGS) % sizeof (int) != 0)
5624: fatal ("CUMULATIVE_ARGS type defined badly; see %s, line %d",
5625: __FILE__, __LINE__);
5626:
5627: if (arglist != 0)
5628: {
5629: tree arg = TREE_VALUE (arglist);
5630: if (TREE_CODE (arg) != INTEGER_CST)
5631: error ("argument of __builtin_args_info must be constant");
5632: else
5633: {
5634: int wordnum = TREE_INT_CST_LOW (arg);
5635:
5636: if (wordnum < 0 || wordnum >= nwords)
5637: error ("argument of __builtin_args_info out of range");
5638: else
1.1.1.4 ! root 5639: return GEN_INT (word_ptr[wordnum]);
1.1 root 5640: }
5641: }
5642: else
5643: error ("missing argument in __builtin_args_info");
5644:
5645: return const0_rtx;
5646:
5647: #if 0
5648: for (i = 0; i < nwords; i++)
5649: elts = tree_cons (NULL_TREE, build_int_2 (word_ptr[i], 0));
5650:
5651: type = build_array_type (integer_type_node,
5652: build_index_type (build_int_2 (nwords, 0)));
5653: result = build (CONSTRUCTOR, type, NULL_TREE, nreverse (elts));
5654: TREE_CONSTANT (result) = 1;
5655: TREE_STATIC (result) = 1;
5656: result = build (INDIRECT_REF, build_pointer_type (type), result);
5657: TREE_CONSTANT (result) = 1;
1.1.1.4 ! root 5658: return expand_expr (result, NULL_RTX, VOIDmode, 0);
1.1 root 5659: #endif
5660: }
5661:
5662: /* Return the address of the first anonymous stack arg. */
5663: case BUILT_IN_NEXT_ARG:
5664: {
5665: tree fntype = TREE_TYPE (current_function_decl);
5666: if (!(TYPE_ARG_TYPES (fntype) != 0
5667: && (TREE_VALUE (tree_last (TYPE_ARG_TYPES (fntype)))
5668: != void_type_node)))
5669: {
5670: error ("`va_start' used in function with fixed args");
5671: return const0_rtx;
5672: }
5673: }
5674:
5675: return expand_binop (Pmode, add_optab,
5676: current_function_internal_arg_pointer,
5677: current_function_arg_offset_rtx,
1.1.1.4 ! root 5678: NULL_RTX, 0, OPTAB_LIB_WIDEN);
1.1 root 5679:
5680: case BUILT_IN_CLASSIFY_TYPE:
5681: if (arglist != 0)
5682: {
5683: tree type = TREE_TYPE (TREE_VALUE (arglist));
5684: enum tree_code code = TREE_CODE (type);
5685: if (code == VOID_TYPE)
1.1.1.4 ! root 5686: return GEN_INT (void_type_class);
1.1 root 5687: if (code == INTEGER_TYPE)
1.1.1.4 ! root 5688: return GEN_INT (integer_type_class);
1.1 root 5689: if (code == CHAR_TYPE)
1.1.1.4 ! root 5690: return GEN_INT (char_type_class);
1.1 root 5691: if (code == ENUMERAL_TYPE)
1.1.1.4 ! root 5692: return GEN_INT (enumeral_type_class);
1.1 root 5693: if (code == BOOLEAN_TYPE)
1.1.1.4 ! root 5694: return GEN_INT (boolean_type_class);
1.1 root 5695: if (code == POINTER_TYPE)
1.1.1.4 ! root 5696: return GEN_INT (pointer_type_class);
1.1 root 5697: if (code == REFERENCE_TYPE)
1.1.1.4 ! root 5698: return GEN_INT (reference_type_class);
1.1 root 5699: if (code == OFFSET_TYPE)
1.1.1.4 ! root 5700: return GEN_INT (offset_type_class);
1.1 root 5701: if (code == REAL_TYPE)
1.1.1.4 ! root 5702: return GEN_INT (real_type_class);
1.1 root 5703: if (code == COMPLEX_TYPE)
1.1.1.4 ! root 5704: return GEN_INT (complex_type_class);
1.1 root 5705: if (code == FUNCTION_TYPE)
1.1.1.4 ! root 5706: return GEN_INT (function_type_class);
1.1 root 5707: if (code == METHOD_TYPE)
1.1.1.4 ! root 5708: return GEN_INT (method_type_class);
1.1 root 5709: if (code == RECORD_TYPE)
1.1.1.4 ! root 5710: return GEN_INT (record_type_class);
1.1 root 5711: if (code == UNION_TYPE)
1.1.1.4 ! root 5712: return GEN_INT (union_type_class);
1.1 root 5713: if (code == ARRAY_TYPE)
1.1.1.4 ! root 5714: return GEN_INT (array_type_class);
1.1 root 5715: if (code == STRING_TYPE)
1.1.1.4 ! root 5716: return GEN_INT (string_type_class);
1.1 root 5717: if (code == SET_TYPE)
1.1.1.4 ! root 5718: return GEN_INT (set_type_class);
1.1 root 5719: if (code == FILE_TYPE)
1.1.1.4 ! root 5720: return GEN_INT (file_type_class);
1.1 root 5721: if (code == LANG_TYPE)
1.1.1.4 ! root 5722: return GEN_INT (lang_type_class);
1.1 root 5723: }
1.1.1.4 ! root 5724: return GEN_INT (no_type_class);
1.1 root 5725:
5726: case BUILT_IN_CONSTANT_P:
5727: if (arglist == 0)
5728: return const0_rtx;
5729: else
1.1.1.4 ! root 5730: return (TREE_CODE_CLASS (TREE_CODE (TREE_VALUE (arglist))) == 'c'
1.1 root 5731: ? const1_rtx : const0_rtx);
5732:
5733: case BUILT_IN_FRAME_ADDRESS:
5734: /* The argument must be a nonnegative integer constant.
5735: It counts the number of frames to scan up the stack.
5736: The value is the address of that frame. */
5737: case BUILT_IN_RETURN_ADDRESS:
5738: /* The argument must be a nonnegative integer constant.
5739: It counts the number of frames to scan up the stack.
5740: The value is the return address saved in that frame. */
5741: if (arglist == 0)
5742: /* Warning about missing arg was already issued. */
5743: return const0_rtx;
5744: else if (TREE_CODE (TREE_VALUE (arglist)) != INTEGER_CST)
5745: {
5746: error ("invalid arg to __builtin_return_address");
5747: return const0_rtx;
5748: }
5749: else if (tree_int_cst_lt (TREE_VALUE (arglist), integer_zero_node))
5750: {
5751: error ("invalid arg to __builtin_return_address");
5752: return const0_rtx;
5753: }
5754: else
5755: {
5756: int count = TREE_INT_CST_LOW (TREE_VALUE (arglist));
5757: rtx tem = frame_pointer_rtx;
5758: int i;
5759:
5760: /* Scan back COUNT frames to the specified frame. */
5761: for (i = 0; i < count; i++)
5762: {
5763: /* Assume the dynamic chain pointer is in the word that
5764: the frame address points to, unless otherwise specified. */
5765: #ifdef DYNAMIC_CHAIN_ADDRESS
5766: tem = DYNAMIC_CHAIN_ADDRESS (tem);
5767: #endif
5768: tem = memory_address (Pmode, tem);
5769: tem = copy_to_reg (gen_rtx (MEM, Pmode, tem));
5770: }
5771:
5772: /* For __builtin_frame_address, return what we've got. */
5773: if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_FRAME_ADDRESS)
5774: return tem;
5775:
5776: /* For __builtin_return_address,
5777: Get the return address from that frame. */
5778: #ifdef RETURN_ADDR_RTX
5779: return RETURN_ADDR_RTX (count, tem);
5780: #else
5781: tem = memory_address (Pmode,
5782: plus_constant (tem, GET_MODE_SIZE (Pmode)));
5783: return copy_to_reg (gen_rtx (MEM, Pmode, tem));
5784: #endif
5785: }
5786:
5787: case BUILT_IN_ALLOCA:
5788: if (arglist == 0
5789: /* Arg could be non-integer if user redeclared this fcn wrong. */
5790: || TREE_CODE (TREE_TYPE (TREE_VALUE (arglist))) != INTEGER_TYPE)
5791: return const0_rtx;
5792: current_function_calls_alloca = 1;
5793: /* Compute the argument. */
1.1.1.4 ! root 5794: op0 = expand_expr (TREE_VALUE (arglist), NULL_RTX, VOIDmode, 0);
1.1 root 5795:
5796: /* Allocate the desired space. */
1.1.1.3 root 5797: target = allocate_dynamic_stack_space (op0, target, BITS_PER_UNIT);
1.1 root 5798:
5799: /* Record the new stack level for nonlocal gotos. */
1.1.1.3 root 5800: if (nonlocal_goto_handler_slot != 0)
1.1.1.4 ! root 5801: emit_stack_save (SAVE_NONLOCAL, &nonlocal_goto_stack_level, NULL_RTX);
1.1 root 5802: return target;
5803:
5804: case BUILT_IN_FFS:
5805: /* If not optimizing, call the library function. */
5806: if (!optimize)
5807: break;
5808:
5809: if (arglist == 0
5810: /* Arg could be non-integer if user redeclared this fcn wrong. */
5811: || TREE_CODE (TREE_TYPE (TREE_VALUE (arglist))) != INTEGER_TYPE)
5812: return const0_rtx;
5813:
5814: /* Compute the argument. */
5815: op0 = expand_expr (TREE_VALUE (arglist), subtarget, VOIDmode, 0);
5816: /* Compute ffs, into TARGET if possible.
5817: Set TARGET to wherever the result comes back. */
5818: target = expand_unop (TYPE_MODE (TREE_TYPE (TREE_VALUE (arglist))),
5819: ffs_optab, op0, target, 1);
5820: if (target == 0)
5821: abort ();
5822: return target;
5823:
5824: case BUILT_IN_STRLEN:
5825: /* If not optimizing, call the library function. */
5826: if (!optimize)
5827: break;
5828:
5829: if (arglist == 0
5830: /* Arg could be non-pointer if user redeclared this fcn wrong. */
5831: || TREE_CODE (TREE_TYPE (TREE_VALUE (arglist))) != POINTER_TYPE)
5832: return const0_rtx;
5833: else
5834: {
1.1.1.3 root 5835: tree src = TREE_VALUE (arglist);
5836: tree len = c_strlen (src);
1.1 root 5837:
1.1.1.3 root 5838: int align
5839: = get_pointer_alignment (src, BIGGEST_ALIGNMENT) / BITS_PER_UNIT;
5840:
5841: rtx result, src_rtx, char_rtx;
5842: enum machine_mode insn_mode = value_mode, char_mode;
5843: enum insn_code icode;
5844:
5845: /* If the length is known, just return it. */
5846: if (len != 0)
5847: return expand_expr (len, target, mode, 0);
5848:
5849: /* If SRC is not a pointer type, don't do this operation inline. */
5850: if (align == 0)
1.1 root 5851: break;
1.1.1.3 root 5852:
5853: /* Call a function if we can't compute strlen in the right mode. */
5854:
5855: while (insn_mode != VOIDmode)
5856: {
5857: icode = strlen_optab->handlers[(int) insn_mode].insn_code;
5858: if (icode != CODE_FOR_nothing)
5859: break;
5860:
5861: insn_mode = GET_MODE_WIDER_MODE (insn_mode);
5862: }
5863: if (insn_mode == VOIDmode)
5864: break;
5865:
5866: /* Make a place to write the result of the instruction. */
5867: result = target;
5868: if (! (result != 0
5869: && GET_CODE (result) == REG
5870: && GET_MODE (result) == insn_mode
5871: && REGNO (result) >= FIRST_PSEUDO_REGISTER))
5872: result = gen_reg_rtx (insn_mode);
5873:
5874: /* Make sure the operands are acceptable to the predicates. */
5875:
5876: if (! (*insn_operand_predicate[(int)icode][0]) (result, insn_mode))
5877: result = gen_reg_rtx (insn_mode);
5878:
5879: src_rtx = memory_address (BLKmode,
1.1.1.4 ! root 5880: expand_expr (src, NULL_RTX, Pmode,
1.1.1.3 root 5881: EXPAND_NORMAL));
5882: if (! (*insn_operand_predicate[(int)icode][1]) (src_rtx, Pmode))
5883: src_rtx = copy_to_mode_reg (Pmode, src_rtx);
5884:
5885: char_rtx = const0_rtx;
5886: char_mode = insn_operand_mode[(int)icode][2];
5887: if (! (*insn_operand_predicate[(int)icode][2]) (char_rtx, char_mode))
5888: char_rtx = copy_to_mode_reg (char_mode, char_rtx);
5889:
5890: emit_insn (GEN_FCN (icode) (result,
5891: gen_rtx (MEM, BLKmode, src_rtx),
1.1.1.4 ! root 5892: char_rtx, GEN_INT (align)));
1.1.1.3 root 5893:
5894: /* Return the value in the proper mode for this function. */
5895: if (GET_MODE (result) == value_mode)
5896: return result;
5897: else if (target != 0)
5898: {
5899: convert_move (target, result, 0);
5900: return target;
5901: }
5902: else
5903: return convert_to_mode (value_mode, result, 0);
1.1 root 5904: }
5905:
5906: case BUILT_IN_STRCPY:
5907: /* If not optimizing, call the library function. */
5908: if (!optimize)
5909: break;
5910:
5911: if (arglist == 0
5912: /* Arg could be non-pointer if user redeclared this fcn wrong. */
5913: || TREE_CODE (TREE_TYPE (TREE_VALUE (arglist))) != POINTER_TYPE
5914: || TREE_CHAIN (arglist) == 0
5915: || TREE_CODE (TREE_TYPE (TREE_VALUE (TREE_CHAIN (arglist)))) != POINTER_TYPE)
5916: return const0_rtx;
5917: else
5918: {
5919: tree len = c_strlen (TREE_VALUE (TREE_CHAIN (arglist)));
5920:
5921: if (len == 0)
5922: break;
5923:
5924: len = size_binop (PLUS_EXPR, len, integer_one_node);
5925:
1.1.1.4 ! root 5926: chainon (arglist, build_tree_list (NULL_TREE, len));
1.1 root 5927: }
5928:
5929: /* Drops in. */
5930: case BUILT_IN_MEMCPY:
5931: /* If not optimizing, call the library function. */
5932: if (!optimize)
5933: break;
5934:
5935: if (arglist == 0
5936: /* Arg could be non-pointer if user redeclared this fcn wrong. */
5937: || TREE_CODE (TREE_TYPE (TREE_VALUE (arglist))) != POINTER_TYPE
5938: || TREE_CHAIN (arglist) == 0
5939: || TREE_CODE (TREE_TYPE (TREE_VALUE (TREE_CHAIN (arglist)))) != POINTER_TYPE
5940: || TREE_CHAIN (TREE_CHAIN (arglist)) == 0
5941: || TREE_CODE (TREE_TYPE (TREE_VALUE (TREE_CHAIN (TREE_CHAIN (arglist))))) != INTEGER_TYPE)
5942: return const0_rtx;
5943: else
5944: {
5945: tree dest = TREE_VALUE (arglist);
5946: tree src = TREE_VALUE (TREE_CHAIN (arglist));
5947: tree len = TREE_VALUE (TREE_CHAIN (TREE_CHAIN (arglist)));
5948:
5949: int src_align
5950: = get_pointer_alignment (src, BIGGEST_ALIGNMENT) / BITS_PER_UNIT;
5951: int dest_align
5952: = get_pointer_alignment (dest, BIGGEST_ALIGNMENT) / BITS_PER_UNIT;
5953: rtx dest_rtx;
5954:
5955: /* If either SRC or DEST is not a pointer type, don't do
5956: this operation in-line. */
5957: if (src_align == 0 || dest_align == 0)
5958: {
5959: if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_STRCPY)
5960: TREE_CHAIN (TREE_CHAIN (arglist)) = 0;
5961: break;
5962: }
5963:
1.1.1.4 ! root 5964: dest_rtx = expand_expr (dest, NULL_RTX, Pmode, EXPAND_NORMAL);
1.1 root 5965:
5966: /* Copy word part most expediently. */
5967: emit_block_move (gen_rtx (MEM, BLKmode,
5968: memory_address (BLKmode, dest_rtx)),
5969: gen_rtx (MEM, BLKmode,
5970: memory_address (BLKmode,
1.1.1.4 ! root 5971: expand_expr (src, NULL_RTX,
! 5972: Pmode,
1.1 root 5973: EXPAND_NORMAL))),
1.1.1.4 ! root 5974: expand_expr (len, NULL_RTX, VOIDmode, 0),
1.1 root 5975: MIN (src_align, dest_align));
5976: return dest_rtx;
5977: }
5978:
5979: /* These comparison functions need an instruction that returns an actual
5980: index. An ordinary compare that just sets the condition codes
5981: is not enough. */
5982: #ifdef HAVE_cmpstrsi
5983: case BUILT_IN_STRCMP:
5984: /* If not optimizing, call the library function. */
5985: if (!optimize)
5986: break;
5987:
5988: if (arglist == 0
5989: /* Arg could be non-pointer if user redeclared this fcn wrong. */
5990: || TREE_CODE (TREE_TYPE (TREE_VALUE (arglist))) != POINTER_TYPE
5991: || TREE_CHAIN (arglist) == 0
5992: || TREE_CODE (TREE_TYPE (TREE_VALUE (TREE_CHAIN (arglist)))) != POINTER_TYPE)
5993: return const0_rtx;
5994: else if (!HAVE_cmpstrsi)
5995: break;
5996: {
5997: tree arg1 = TREE_VALUE (arglist);
5998: tree arg2 = TREE_VALUE (TREE_CHAIN (arglist));
5999: tree offset;
6000: tree len, len2;
6001:
6002: len = c_strlen (arg1);
6003: if (len)
6004: len = size_binop (PLUS_EXPR, integer_one_node, len);
6005: len2 = c_strlen (arg2);
6006: if (len2)
6007: len2 = size_binop (PLUS_EXPR, integer_one_node, len2);
6008:
6009: /* If we don't have a constant length for the first, use the length
6010: of the second, if we know it. We don't require a constant for
6011: this case; some cost analysis could be done if both are available
6012: but neither is constant. For now, assume they're equally cheap.
6013:
6014: If both strings have constant lengths, use the smaller. This
6015: could arise if optimization results in strcpy being called with
6016: two fixed strings, or if the code was machine-generated. We should
6017: add some code to the `memcmp' handler below to deal with such
6018: situations, someday. */
6019: if (!len || TREE_CODE (len) != INTEGER_CST)
6020: {
6021: if (len2)
6022: len = len2;
6023: else if (len == 0)
6024: break;
6025: }
6026: else if (len2 && TREE_CODE (len2) == INTEGER_CST)
6027: {
6028: if (tree_int_cst_lt (len2, len))
6029: len = len2;
6030: }
6031:
1.1.1.4 ! root 6032: chainon (arglist, build_tree_list (NULL_TREE, len));
1.1 root 6033: }
6034:
6035: /* Drops in. */
6036: case BUILT_IN_MEMCMP:
6037: /* If not optimizing, call the library function. */
6038: if (!optimize)
6039: break;
6040:
6041: if (arglist == 0
6042: /* Arg could be non-pointer if user redeclared this fcn wrong. */
6043: || TREE_CODE (TREE_TYPE (TREE_VALUE (arglist))) != POINTER_TYPE
6044: || TREE_CHAIN (arglist) == 0
6045: || TREE_CODE (TREE_TYPE (TREE_VALUE (TREE_CHAIN (arglist)))) != POINTER_TYPE
6046: || TREE_CHAIN (TREE_CHAIN (arglist)) == 0
6047: || TREE_CODE (TREE_TYPE (TREE_VALUE (TREE_CHAIN (TREE_CHAIN (arglist))))) != INTEGER_TYPE)
6048: return const0_rtx;
6049: else if (!HAVE_cmpstrsi)
6050: break;
6051: {
6052: tree arg1 = TREE_VALUE (arglist);
6053: tree arg2 = TREE_VALUE (TREE_CHAIN (arglist));
6054: tree len = TREE_VALUE (TREE_CHAIN (TREE_CHAIN (arglist)));
6055: rtx result;
6056:
6057: int arg1_align
6058: = get_pointer_alignment (arg1, BIGGEST_ALIGNMENT) / BITS_PER_UNIT;
6059: int arg2_align
6060: = get_pointer_alignment (arg2, BIGGEST_ALIGNMENT) / BITS_PER_UNIT;
6061: enum machine_mode insn_mode
6062: = insn_operand_mode[(int) CODE_FOR_cmpstrsi][0];
6063:
6064: /* If we don't have POINTER_TYPE, call the function. */
6065: if (arg1_align == 0 || arg2_align == 0)
6066: {
6067: if (DECL_FUNCTION_CODE (fndecl) == BUILT_IN_STRCMP)
6068: TREE_CHAIN (TREE_CHAIN (arglist)) = 0;
6069: break;
6070: }
6071:
6072: /* Make a place to write the result of the instruction. */
6073: result = target;
6074: if (! (result != 0
6075: && GET_CODE (result) == REG && GET_MODE (result) == insn_mode
6076: && REGNO (result) >= FIRST_PSEUDO_REGISTER))
6077: result = gen_reg_rtx (insn_mode);
6078:
6079: emit_insn (gen_cmpstrsi (result,
6080: gen_rtx (MEM, BLKmode,
1.1.1.4 ! root 6081: expand_expr (arg1, NULL_RTX, Pmode,
! 6082: EXPAND_NORMAL)),
1.1 root 6083: gen_rtx (MEM, BLKmode,
1.1.1.4 ! root 6084: expand_expr (arg2, NULL_RTX, Pmode,
! 6085: EXPAND_NORMAL)),
! 6086: expand_expr (len, NULL_RTX, VOIDmode, 0),
! 6087: GEN_INT (MIN (arg1_align, arg2_align))));
1.1 root 6088:
6089: /* Return the value in the proper mode for this function. */
6090: mode = TYPE_MODE (TREE_TYPE (exp));
6091: if (GET_MODE (result) == mode)
6092: return result;
6093: else if (target != 0)
6094: {
6095: convert_move (target, result, 0);
6096: return target;
6097: }
6098: else
6099: return convert_to_mode (mode, result, 0);
6100: }
6101: #else
6102: case BUILT_IN_STRCMP:
6103: case BUILT_IN_MEMCMP:
6104: break;
6105: #endif
6106:
6107: default: /* just do library call, if unknown builtin */
6108: error ("built-in function %s not currently supported",
6109: IDENTIFIER_POINTER (DECL_NAME (fndecl)));
6110: }
6111:
6112: /* The switch statement above can drop through to cause the function
6113: to be called normally. */
6114:
6115: return expand_call (exp, target, ignore);
6116: }
6117:
6118: /* Expand code for a post- or pre- increment or decrement
6119: and return the RTX for the result.
6120: POST is 1 for postinc/decrements and 0 for preinc/decrements. */
6121:
6122: static rtx
6123: expand_increment (exp, post)
6124: register tree exp;
6125: int post;
6126: {
6127: register rtx op0, op1;
6128: register rtx temp, value;
6129: register tree incremented = TREE_OPERAND (exp, 0);
6130: optab this_optab = add_optab;
6131: int icode;
6132: enum machine_mode mode = TYPE_MODE (TREE_TYPE (exp));
6133: int op0_is_copy = 0;
6134:
6135: /* Stabilize any component ref that might need to be
6136: evaluated more than once below. */
6137: if (TREE_CODE (incremented) == BIT_FIELD_REF
6138: || (TREE_CODE (incremented) == COMPONENT_REF
6139: && (TREE_CODE (TREE_OPERAND (incremented, 0)) != INDIRECT_REF
6140: || DECL_BIT_FIELD (TREE_OPERAND (incremented, 1)))))
6141: incremented = stabilize_reference (incremented);
6142:
6143: /* Compute the operands as RTX.
6144: Note whether OP0 is the actual lvalue or a copy of it:
1.1.1.3 root 6145: I believe it is a copy iff it is a register or subreg
1.1.1.4 ! root 6146: and insns were generated in computing it. */
! 6147:
1.1 root 6148: temp = get_last_insn ();
1.1.1.4 ! root 6149: op0 = expand_expr (incremented, NULL_RTX, VOIDmode, 0);
! 6150:
! 6151: /* If OP0 is a SUBREG made for a promoted variable, we cannot increment
! 6152: in place but intead must do sign- or zero-extension during assignment,
! 6153: so we copy it into a new register and let the code below use it as
! 6154: a copy.
! 6155:
! 6156: Note that we can safely modify this SUBREG since it is know not to be
! 6157: shared (it was made by the expand_expr call above). */
! 6158:
! 6159: if (GET_CODE (op0) == SUBREG && SUBREG_PROMOTED_VAR_P (op0))
! 6160: SUBREG_REG (op0) = copy_to_reg (SUBREG_REG (op0));
! 6161:
1.1.1.3 root 6162: op0_is_copy = ((GET_CODE (op0) == SUBREG || GET_CODE (op0) == REG)
6163: && temp != get_last_insn ());
1.1.1.4 ! root 6164: op1 = expand_expr (TREE_OPERAND (exp, 1), NULL_RTX, VOIDmode, 0);
1.1 root 6165:
6166: /* Decide whether incrementing or decrementing. */
6167: if (TREE_CODE (exp) == POSTDECREMENT_EXPR
6168: || TREE_CODE (exp) == PREDECREMENT_EXPR)
6169: this_optab = sub_optab;
6170:
6171: /* If OP0 is not the actual lvalue, but rather a copy in a register,
6172: then we cannot just increment OP0. We must
6173: therefore contrive to increment the original value.
6174: Then we can return OP0 since it is a copy of the old value. */
6175: if (op0_is_copy)
6176: {
6177: /* This is the easiest way to increment the value wherever it is.
6178: Problems with multiple evaluation of INCREMENTED
6179: are prevented because either (1) it is a component_ref,
6180: in which case it was stabilized above, or (2) it is an array_ref
6181: with constant index in an array in a register, which is
6182: safe to reevaluate. */
6183: tree newexp = build ((this_optab == add_optab
6184: ? PLUS_EXPR : MINUS_EXPR),
6185: TREE_TYPE (exp),
6186: incremented,
6187: TREE_OPERAND (exp, 1));
6188: temp = expand_assignment (incremented, newexp, ! post, 0);
6189: return post ? op0 : temp;
6190: }
6191:
6192: /* Convert decrement by a constant into a negative increment. */
6193: if (this_optab == sub_optab
6194: && GET_CODE (op1) == CONST_INT)
6195: {
1.1.1.4 ! root 6196: op1 = GEN_INT (- INTVAL (op1));
1.1 root 6197: this_optab = add_optab;
6198: }
6199:
6200: if (post)
6201: {
6202: /* We have a true reference to the value in OP0.
6203: If there is an insn to add or subtract in this mode, queue it. */
6204:
6205: #if 0 /* Turned off to avoid making extra insn for indexed memref. */
6206: op0 = stabilize (op0);
6207: #endif
6208:
6209: icode = (int) this_optab->handlers[(int) mode].insn_code;
6210: if (icode != (int) CODE_FOR_nothing
6211: /* Make sure that OP0 is valid for operands 0 and 1
6212: of the insn we want to queue. */
6213: && (*insn_operand_predicate[icode][0]) (op0, mode)
6214: && (*insn_operand_predicate[icode][1]) (op0, mode))
6215: {
6216: if (! (*insn_operand_predicate[icode][2]) (op1, mode))
6217: op1 = force_reg (mode, op1);
6218:
6219: return enqueue_insn (op0, GEN_FCN (icode) (op0, op0, op1));
6220: }
6221: }
6222:
6223: /* Preincrement, or we can't increment with one simple insn. */
6224: if (post)
6225: /* Save a copy of the value before inc or dec, to return it later. */
6226: temp = value = copy_to_reg (op0);
6227: else
6228: /* Arrange to return the incremented value. */
6229: /* Copy the rtx because expand_binop will protect from the queue,
6230: and the results of that would be invalid for us to return
6231: if our caller does emit_queue before using our result. */
6232: temp = copy_rtx (value = op0);
6233:
6234: /* Increment however we can. */
6235: op1 = expand_binop (mode, this_optab, value, op1, op0,
6236: TREE_UNSIGNED (TREE_TYPE (exp)), OPTAB_LIB_WIDEN);
6237: /* Make sure the value is stored into OP0. */
6238: if (op1 != op0)
6239: emit_move_insn (op0, op1);
6240:
6241: return temp;
6242: }
6243:
6244: /* Expand all function calls contained within EXP, innermost ones first.
6245: But don't look within expressions that have sequence points.
6246: For each CALL_EXPR, record the rtx for its value
6247: in the CALL_EXPR_RTL field. */
6248:
6249: static void
6250: preexpand_calls (exp)
6251: tree exp;
6252: {
6253: register int nops, i;
6254: int type = TREE_CODE_CLASS (TREE_CODE (exp));
6255:
6256: if (! do_preexpand_calls)
6257: return;
6258:
6259: /* Only expressions and references can contain calls. */
6260:
6261: if (type != 'e' && type != '<' && type != '1' && type != '2' && type != 'r')
6262: return;
6263:
6264: switch (TREE_CODE (exp))
6265: {
6266: case CALL_EXPR:
6267: /* Do nothing if already expanded. */
6268: if (CALL_EXPR_RTL (exp) != 0)
6269: return;
6270:
6271: /* Do nothing to built-in functions. */
6272: if (TREE_CODE (TREE_OPERAND (exp, 0)) != ADDR_EXPR
6273: || TREE_CODE (TREE_OPERAND (TREE_OPERAND (exp, 0), 0)) != FUNCTION_DECL
6274: || ! DECL_BUILT_IN (TREE_OPERAND (TREE_OPERAND (exp, 0), 0)))
1.1.1.4 ! root 6275: CALL_EXPR_RTL (exp) = expand_call (exp, NULL_RTX, 0);
1.1 root 6276: return;
6277:
6278: case COMPOUND_EXPR:
6279: case COND_EXPR:
6280: case TRUTH_ANDIF_EXPR:
6281: case TRUTH_ORIF_EXPR:
6282: /* If we find one of these, then we can be sure
6283: the adjust will be done for it (since it makes jumps).
6284: Do it now, so that if this is inside an argument
6285: of a function, we don't get the stack adjustment
6286: after some other args have already been pushed. */
6287: do_pending_stack_adjust ();
6288: return;
6289:
6290: case BLOCK:
6291: case RTL_EXPR:
6292: case WITH_CLEANUP_EXPR:
6293: return;
6294:
6295: case SAVE_EXPR:
6296: if (SAVE_EXPR_RTL (exp) != 0)
6297: return;
6298: }
6299:
6300: nops = tree_code_length[(int) TREE_CODE (exp)];
6301: for (i = 0; i < nops; i++)
6302: if (TREE_OPERAND (exp, i) != 0)
6303: {
6304: type = TREE_CODE_CLASS (TREE_CODE (TREE_OPERAND (exp, i)));
6305: if (type == 'e' || type == '<' || type == '1' || type == '2'
6306: || type == 'r')
6307: preexpand_calls (TREE_OPERAND (exp, i));
6308: }
6309: }
6310:
6311: /* At the start of a function, record that we have no previously-pushed
6312: arguments waiting to be popped. */
6313:
6314: void
6315: init_pending_stack_adjust ()
6316: {
6317: pending_stack_adjust = 0;
6318: }
6319:
6320: /* When exiting from function, if safe, clear out any pending stack adjust
6321: so the adjustment won't get done. */
6322:
6323: void
6324: clear_pending_stack_adjust ()
6325: {
6326: #ifdef EXIT_IGNORE_STACK
1.1.1.2 root 6327: if (! flag_omit_frame_pointer && EXIT_IGNORE_STACK
1.1.1.4 ! root 6328: && ! (DECL_INLINE (current_function_decl) && ! flag_no_inline)
1.1 root 6329: && ! flag_inline_functions)
6330: pending_stack_adjust = 0;
6331: #endif
6332: }
6333:
6334: /* Pop any previously-pushed arguments that have not been popped yet. */
6335:
6336: void
6337: do_pending_stack_adjust ()
6338: {
6339: if (inhibit_defer_pop == 0)
6340: {
6341: if (pending_stack_adjust != 0)
1.1.1.4 ! root 6342: adjust_stack (GEN_INT (pending_stack_adjust));
1.1 root 6343: pending_stack_adjust = 0;
6344: }
6345: }
6346:
6347: /* Expand all cleanups up to OLD_CLEANUPS.
6348: Needed here, and also for language-dependent calls. */
6349:
6350: void
6351: expand_cleanups_to (old_cleanups)
6352: tree old_cleanups;
6353: {
6354: while (cleanups_this_call != old_cleanups)
6355: {
1.1.1.4 ! root 6356: expand_expr (TREE_VALUE (cleanups_this_call), NULL_RTX, VOIDmode, 0);
1.1 root 6357: cleanups_this_call = TREE_CHAIN (cleanups_this_call);
6358: }
6359: }
6360:
6361: /* Expand conditional expressions. */
6362:
6363: /* Generate code to evaluate EXP and jump to LABEL if the value is zero.
6364: LABEL is an rtx of code CODE_LABEL, in this function and all the
6365: functions here. */
6366:
6367: void
6368: jumpifnot (exp, label)
6369: tree exp;
6370: rtx label;
6371: {
1.1.1.4 ! root 6372: do_jump (exp, label, NULL_RTX);
1.1 root 6373: }
6374:
6375: /* Generate code to evaluate EXP and jump to LABEL if the value is nonzero. */
6376:
6377: void
6378: jumpif (exp, label)
6379: tree exp;
6380: rtx label;
6381: {
1.1.1.4 ! root 6382: do_jump (exp, NULL_RTX, label);
1.1 root 6383: }
6384:
6385: /* Generate code to evaluate EXP and jump to IF_FALSE_LABEL if
6386: the result is zero, or IF_TRUE_LABEL if the result is one.
6387: Either of IF_FALSE_LABEL and IF_TRUE_LABEL may be zero,
6388: meaning fall through in that case.
6389:
1.1.1.3 root 6390: do_jump always does any pending stack adjust except when it does not
6391: actually perform a jump. An example where there is no jump
6392: is when EXP is `(foo (), 0)' and IF_FALSE_LABEL is null.
6393:
1.1 root 6394: This function is responsible for optimizing cases such as
6395: &&, || and comparison operators in EXP. */
6396:
6397: void
6398: do_jump (exp, if_false_label, if_true_label)
6399: tree exp;
6400: rtx if_false_label, if_true_label;
6401: {
6402: register enum tree_code code = TREE_CODE (exp);
6403: /* Some cases need to create a label to jump to
6404: in order to properly fall through.
6405: These cases set DROP_THROUGH_LABEL nonzero. */
6406: rtx drop_through_label = 0;
6407: rtx temp;
6408: rtx comparison = 0;
6409: int i;
6410: tree type;
6411:
6412: emit_queue ();
6413:
6414: switch (code)
6415: {
6416: case ERROR_MARK:
6417: break;
6418:
6419: case INTEGER_CST:
6420: temp = integer_zerop (exp) ? if_false_label : if_true_label;
6421: if (temp)
6422: emit_jump (temp);
6423: break;
6424:
6425: #if 0
6426: /* This is not true with #pragma weak */
6427: case ADDR_EXPR:
6428: /* The address of something can never be zero. */
6429: if (if_true_label)
6430: emit_jump (if_true_label);
6431: break;
6432: #endif
6433:
6434: case NOP_EXPR:
6435: if (TREE_CODE (TREE_OPERAND (exp, 0)) == COMPONENT_REF
6436: || TREE_CODE (TREE_OPERAND (exp, 0)) == BIT_FIELD_REF
6437: || TREE_CODE (TREE_OPERAND (exp, 0)) == ARRAY_REF)
6438: goto normal;
6439: case CONVERT_EXPR:
6440: /* If we are narrowing the operand, we have to do the compare in the
6441: narrower mode. */
6442: if ((TYPE_PRECISION (TREE_TYPE (exp))
6443: < TYPE_PRECISION (TREE_TYPE (TREE_OPERAND (exp, 0)))))
6444: goto normal;
6445: case NON_LVALUE_EXPR:
6446: case REFERENCE_EXPR:
6447: case ABS_EXPR:
6448: case NEGATE_EXPR:
6449: case LROTATE_EXPR:
6450: case RROTATE_EXPR:
6451: /* These cannot change zero->non-zero or vice versa. */
6452: do_jump (TREE_OPERAND (exp, 0), if_false_label, if_true_label);
6453: break;
6454:
6455: #if 0
6456: /* This is never less insns than evaluating the PLUS_EXPR followed by
6457: a test and can be longer if the test is eliminated. */
6458: case PLUS_EXPR:
6459: /* Reduce to minus. */
6460: exp = build (MINUS_EXPR, TREE_TYPE (exp),
6461: TREE_OPERAND (exp, 0),
6462: fold (build1 (NEGATE_EXPR, TREE_TYPE (TREE_OPERAND (exp, 1)),
6463: TREE_OPERAND (exp, 1))));
6464: /* Process as MINUS. */
6465: #endif
6466:
6467: case MINUS_EXPR:
6468: /* Non-zero iff operands of minus differ. */
6469: comparison = compare (build (NE_EXPR, TREE_TYPE (exp),
6470: TREE_OPERAND (exp, 0),
6471: TREE_OPERAND (exp, 1)),
6472: NE, NE);
6473: break;
6474:
6475: case BIT_AND_EXPR:
6476: /* If we are AND'ing with a small constant, do this comparison in the
6477: smallest type that fits. If the machine doesn't have comparisons
6478: that small, it will be converted back to the wider comparison.
6479: This helps if we are testing the sign bit of a narrower object.
6480: combine can't do this for us because it can't know whether a
6481: ZERO_EXTRACT or a compare in a smaller mode exists, but we do. */
6482:
1.1.1.4 ! root 6483: if (! SLOW_BYTE_ACCESS
! 6484: && TREE_CODE (TREE_OPERAND (exp, 1)) == INTEGER_CST
! 6485: && TYPE_PRECISION (TREE_TYPE (exp)) <= HOST_BITS_PER_WIDE_INT
1.1 root 6486: && (i = floor_log2 (TREE_INT_CST_LOW (TREE_OPERAND (exp, 1)))) >= 0
6487: && (type = type_for_size (i + 1, 1)) != 0
1.1.1.4 ! root 6488: && TYPE_PRECISION (type) < TYPE_PRECISION (TREE_TYPE (exp))
! 6489: && (cmp_optab->handlers[(int) TYPE_MODE (type)].insn_code
! 6490: != CODE_FOR_nothing))
1.1 root 6491: {
6492: do_jump (convert (type, exp), if_false_label, if_true_label);
6493: break;
6494: }
6495: goto normal;
6496:
6497: case TRUTH_NOT_EXPR:
6498: do_jump (TREE_OPERAND (exp, 0), if_true_label, if_false_label);
6499: break;
6500:
6501: case TRUTH_ANDIF_EXPR:
6502: if (if_false_label == 0)
6503: if_false_label = drop_through_label = gen_label_rtx ();
1.1.1.4 ! root 6504: do_jump (TREE_OPERAND (exp, 0), if_false_label, NULL_RTX);
1.1 root 6505: do_jump (TREE_OPERAND (exp, 1), if_false_label, if_true_label);
6506: break;
6507:
6508: case TRUTH_ORIF_EXPR:
6509: if (if_true_label == 0)
6510: if_true_label = drop_through_label = gen_label_rtx ();
1.1.1.4 ! root 6511: do_jump (TREE_OPERAND (exp, 0), NULL_RTX, if_true_label);
1.1 root 6512: do_jump (TREE_OPERAND (exp, 1), if_false_label, if_true_label);
6513: break;
6514:
6515: case COMPOUND_EXPR:
6516: expand_expr (TREE_OPERAND (exp, 0), const0_rtx, VOIDmode, 0);
6517: free_temp_slots ();
6518: emit_queue ();
1.1.1.3 root 6519: do_pending_stack_adjust ();
1.1 root 6520: do_jump (TREE_OPERAND (exp, 1), if_false_label, if_true_label);
6521: break;
6522:
6523: case COMPONENT_REF:
6524: case BIT_FIELD_REF:
6525: case ARRAY_REF:
6526: {
6527: int bitsize, bitpos, unsignedp;
6528: enum machine_mode mode;
6529: tree type;
1.1.1.3 root 6530: tree offset;
1.1 root 6531: int volatilep = 0;
6532:
6533: /* Get description of this reference. We don't actually care
6534: about the underlying object here. */
1.1.1.3 root 6535: get_inner_reference (exp, &bitsize, &bitpos, &offset,
6536: &mode, &unsignedp, &volatilep);
1.1 root 6537:
6538: type = type_for_size (bitsize, unsignedp);
1.1.1.4 ! root 6539: if (! SLOW_BYTE_ACCESS
! 6540: && type != 0 && bitsize >= 0
! 6541: && TYPE_PRECISION (type) < TYPE_PRECISION (TREE_TYPE (exp))
! 6542: && (cmp_optab->handlers[(int) TYPE_MODE (type)].insn_code
! 6543: != CODE_FOR_nothing))
1.1 root 6544: {
6545: do_jump (convert (type, exp), if_false_label, if_true_label);
6546: break;
6547: }
6548: goto normal;
6549: }
6550:
6551: case COND_EXPR:
6552: /* Do (a ? 1 : 0) and (a ? 0 : 1) as special cases. */
6553: if (integer_onep (TREE_OPERAND (exp, 1))
6554: && integer_zerop (TREE_OPERAND (exp, 2)))
6555: do_jump (TREE_OPERAND (exp, 0), if_false_label, if_true_label);
6556:
6557: else if (integer_zerop (TREE_OPERAND (exp, 1))
6558: && integer_onep (TREE_OPERAND (exp, 2)))
6559: do_jump (TREE_OPERAND (exp, 0), if_true_label, if_false_label);
6560:
6561: else
6562: {
6563: register rtx label1 = gen_label_rtx ();
6564: drop_through_label = gen_label_rtx ();
1.1.1.4 ! root 6565: do_jump (TREE_OPERAND (exp, 0), label1, NULL_RTX);
1.1 root 6566: /* Now the THEN-expression. */
6567: do_jump (TREE_OPERAND (exp, 1),
6568: if_false_label ? if_false_label : drop_through_label,
6569: if_true_label ? if_true_label : drop_through_label);
1.1.1.3 root 6570: /* In case the do_jump just above never jumps. */
6571: do_pending_stack_adjust ();
1.1 root 6572: emit_label (label1);
6573: /* Now the ELSE-expression. */
6574: do_jump (TREE_OPERAND (exp, 2),
6575: if_false_label ? if_false_label : drop_through_label,
6576: if_true_label ? if_true_label : drop_through_label);
6577: }
6578: break;
6579:
6580: case EQ_EXPR:
6581: if (integer_zerop (TREE_OPERAND (exp, 1)))
6582: do_jump (TREE_OPERAND (exp, 0), if_true_label, if_false_label);
6583: else if ((GET_MODE_CLASS (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0))))
6584: == MODE_INT)
6585: &&
6586: !can_compare_p (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0)))))
6587: do_jump_by_parts_equality (exp, if_false_label, if_true_label);
6588: else
6589: comparison = compare (exp, EQ, EQ);
6590: break;
6591:
6592: case NE_EXPR:
6593: if (integer_zerop (TREE_OPERAND (exp, 1)))
6594: do_jump (TREE_OPERAND (exp, 0), if_false_label, if_true_label);
6595: else if ((GET_MODE_CLASS (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0))))
6596: == MODE_INT)
6597: &&
6598: !can_compare_p (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0)))))
6599: do_jump_by_parts_equality (exp, if_true_label, if_false_label);
6600: else
6601: comparison = compare (exp, NE, NE);
6602: break;
6603:
6604: case LT_EXPR:
6605: if ((GET_MODE_CLASS (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0))))
6606: == MODE_INT)
6607: && !can_compare_p (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0)))))
6608: do_jump_by_parts_greater (exp, 1, if_false_label, if_true_label);
6609: else
6610: comparison = compare (exp, LT, LTU);
6611: break;
6612:
6613: case LE_EXPR:
6614: if ((GET_MODE_CLASS (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0))))
6615: == MODE_INT)
6616: && !can_compare_p (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0)))))
6617: do_jump_by_parts_greater (exp, 0, if_true_label, if_false_label);
6618: else
6619: comparison = compare (exp, LE, LEU);
6620: break;
6621:
6622: case GT_EXPR:
6623: if ((GET_MODE_CLASS (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0))))
6624: == MODE_INT)
6625: && !can_compare_p (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0)))))
6626: do_jump_by_parts_greater (exp, 0, if_false_label, if_true_label);
6627: else
6628: comparison = compare (exp, GT, GTU);
6629: break;
6630:
6631: case GE_EXPR:
6632: if ((GET_MODE_CLASS (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0))))
6633: == MODE_INT)
6634: && !can_compare_p (TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0)))))
6635: do_jump_by_parts_greater (exp, 1, if_true_label, if_false_label);
6636: else
6637: comparison = compare (exp, GE, GEU);
6638: break;
6639:
6640: default:
6641: normal:
1.1.1.4 ! root 6642: temp = expand_expr (exp, NULL_RTX, VOIDmode, 0);
1.1 root 6643: #if 0
6644: /* This is not needed any more and causes poor code since it causes
6645: comparisons and tests from non-SI objects to have different code
6646: sequences. */
6647: /* Copy to register to avoid generating bad insns by cse
6648: from (set (mem ...) (arithop)) (set (cc0) (mem ...)). */
6649: if (!cse_not_expected && GET_CODE (temp) == MEM)
6650: temp = copy_to_reg (temp);
6651: #endif
6652: do_pending_stack_adjust ();
6653: if (GET_CODE (temp) == CONST_INT)
6654: comparison = (temp == const0_rtx ? const0_rtx : const_true_rtx);
6655: else if (GET_CODE (temp) == LABEL_REF)
6656: comparison = const_true_rtx;
6657: else if (GET_MODE_CLASS (GET_MODE (temp)) == MODE_INT
6658: && !can_compare_p (GET_MODE (temp)))
6659: /* Note swapping the labels gives us not-equal. */
6660: do_jump_by_parts_equality_rtx (temp, if_true_label, if_false_label);
6661: else if (GET_MODE (temp) != VOIDmode)
6662: comparison = compare_from_rtx (temp, CONST0_RTX (GET_MODE (temp)),
1.1.1.4 ! root 6663: NE, TREE_UNSIGNED (TREE_TYPE (exp)),
! 6664: GET_MODE (temp), NULL_RTX, 0);
1.1 root 6665: else
6666: abort ();
6667: }
6668:
6669: /* Do any postincrements in the expression that was tested. */
6670: emit_queue ();
6671:
6672: /* If COMPARISON is nonzero here, it is an rtx that can be substituted
6673: straight into a conditional jump instruction as the jump condition.
6674: Otherwise, all the work has been done already. */
6675:
6676: if (comparison == const_true_rtx)
6677: {
6678: if (if_true_label)
6679: emit_jump (if_true_label);
6680: }
6681: else if (comparison == const0_rtx)
6682: {
6683: if (if_false_label)
6684: emit_jump (if_false_label);
6685: }
6686: else if (comparison)
6687: do_jump_for_compare (comparison, if_false_label, if_true_label);
6688:
6689: free_temp_slots ();
6690:
6691: if (drop_through_label)
1.1.1.3 root 6692: {
6693: /* If do_jump produces code that might be jumped around,
6694: do any stack adjusts from that code, before the place
6695: where control merges in. */
6696: do_pending_stack_adjust ();
6697: emit_label (drop_through_label);
6698: }
1.1 root 6699: }
6700:
6701: /* Given a comparison expression EXP for values too wide to be compared
6702: with one insn, test the comparison and jump to the appropriate label.
6703: The code of EXP is ignored; we always test GT if SWAP is 0,
6704: and LT if SWAP is 1. */
6705:
6706: static void
6707: do_jump_by_parts_greater (exp, swap, if_false_label, if_true_label)
6708: tree exp;
6709: int swap;
6710: rtx if_false_label, if_true_label;
6711: {
1.1.1.4 ! root 6712: rtx op0 = expand_expr (TREE_OPERAND (exp, swap), NULL_RTX, VOIDmode, 0);
! 6713: rtx op1 = expand_expr (TREE_OPERAND (exp, !swap), NULL_RTX, VOIDmode, 0);
1.1 root 6714: enum machine_mode mode = TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0)));
6715: int nwords = (GET_MODE_SIZE (mode) / UNITS_PER_WORD);
6716: rtx drop_through_label = 0;
6717: int unsignedp = TREE_UNSIGNED (TREE_TYPE (TREE_OPERAND (exp, 0)));
6718: int i;
6719:
6720: if (! if_true_label || ! if_false_label)
6721: drop_through_label = gen_label_rtx ();
6722: if (! if_true_label)
6723: if_true_label = drop_through_label;
6724: if (! if_false_label)
6725: if_false_label = drop_through_label;
6726:
6727: /* Compare a word at a time, high order first. */
6728: for (i = 0; i < nwords; i++)
6729: {
6730: rtx comp;
6731: rtx op0_word, op1_word;
6732:
6733: if (WORDS_BIG_ENDIAN)
6734: {
6735: op0_word = operand_subword_force (op0, i, mode);
6736: op1_word = operand_subword_force (op1, i, mode);
6737: }
6738: else
6739: {
6740: op0_word = operand_subword_force (op0, nwords - 1 - i, mode);
6741: op1_word = operand_subword_force (op1, nwords - 1 - i, mode);
6742: }
6743:
6744: /* All but high-order word must be compared as unsigned. */
6745: comp = compare_from_rtx (op0_word, op1_word,
6746: (unsignedp || i > 0) ? GTU : GT,
1.1.1.4 ! root 6747: unsignedp, word_mode, NULL_RTX, 0);
1.1 root 6748: if (comp == const_true_rtx)
6749: emit_jump (if_true_label);
6750: else if (comp != const0_rtx)
1.1.1.4 ! root 6751: do_jump_for_compare (comp, NULL_RTX, if_true_label);
1.1 root 6752:
6753: /* Consider lower words only if these are equal. */
6754: comp = compare_from_rtx (op0_word, op1_word, NE, unsignedp, word_mode,
1.1.1.4 ! root 6755: NULL_RTX, 0);
1.1 root 6756: if (comp == const_true_rtx)
6757: emit_jump (if_false_label);
6758: else if (comp != const0_rtx)
1.1.1.4 ! root 6759: do_jump_for_compare (comp, NULL_RTX, if_false_label);
1.1 root 6760: }
6761:
6762: if (if_false_label)
6763: emit_jump (if_false_label);
6764: if (drop_through_label)
6765: emit_label (drop_through_label);
6766: }
6767:
6768: /* Given an EQ_EXPR expression EXP for values too wide to be compared
6769: with one insn, test the comparison and jump to the appropriate label. */
6770:
6771: static void
6772: do_jump_by_parts_equality (exp, if_false_label, if_true_label)
6773: tree exp;
6774: rtx if_false_label, if_true_label;
6775: {
1.1.1.4 ! root 6776: rtx op0 = expand_expr (TREE_OPERAND (exp, 0), NULL_RTX, VOIDmode, 0);
! 6777: rtx op1 = expand_expr (TREE_OPERAND (exp, 1), NULL_RTX, VOIDmode, 0);
1.1 root 6778: enum machine_mode mode = TYPE_MODE (TREE_TYPE (TREE_OPERAND (exp, 0)));
6779: int nwords = (GET_MODE_SIZE (mode) / UNITS_PER_WORD);
6780: int i;
6781: rtx drop_through_label = 0;
6782:
6783: if (! if_false_label)
6784: drop_through_label = if_false_label = gen_label_rtx ();
6785:
6786: for (i = 0; i < nwords; i++)
6787: {
6788: rtx comp = compare_from_rtx (operand_subword_force (op0, i, mode),
6789: operand_subword_force (op1, i, mode),
1.1.1.4 ! root 6790: EQ, TREE_UNSIGNED (TREE_TYPE (exp)),
! 6791: word_mode, NULL_RTX, 0);
1.1 root 6792: if (comp == const_true_rtx)
6793: emit_jump (if_false_label);
6794: else if (comp != const0_rtx)
1.1.1.4 ! root 6795: do_jump_for_compare (comp, if_false_label, NULL_RTX);
1.1 root 6796: }
6797:
6798: if (if_true_label)
6799: emit_jump (if_true_label);
6800: if (drop_through_label)
6801: emit_label (drop_through_label);
6802: }
6803:
6804: /* Jump according to whether OP0 is 0.
6805: We assume that OP0 has an integer mode that is too wide
6806: for the available compare insns. */
6807:
6808: static void
6809: do_jump_by_parts_equality_rtx (op0, if_false_label, if_true_label)
6810: rtx op0;
6811: rtx if_false_label, if_true_label;
6812: {
6813: int nwords = GET_MODE_SIZE (GET_MODE (op0)) / UNITS_PER_WORD;
6814: int i;
6815: rtx drop_through_label = 0;
6816:
6817: if (! if_false_label)
6818: drop_through_label = if_false_label = gen_label_rtx ();
6819:
6820: for (i = 0; i < nwords; i++)
6821: {
6822: rtx comp = compare_from_rtx (operand_subword_force (op0, i,
6823: GET_MODE (op0)),
1.1.1.4 ! root 6824: const0_rtx, EQ, 1, word_mode, NULL_RTX, 0);
1.1 root 6825: if (comp == const_true_rtx)
6826: emit_jump (if_false_label);
6827: else if (comp != const0_rtx)
1.1.1.4 ! root 6828: do_jump_for_compare (comp, if_false_label, NULL_RTX);
1.1 root 6829: }
6830:
6831: if (if_true_label)
6832: emit_jump (if_true_label);
6833: if (drop_through_label)
6834: emit_label (drop_through_label);
6835: }
6836:
6837: /* Given a comparison expression in rtl form, output conditional branches to
6838: IF_TRUE_LABEL, IF_FALSE_LABEL, or both. */
6839:
6840: static void
6841: do_jump_for_compare (comparison, if_false_label, if_true_label)
6842: rtx comparison, if_false_label, if_true_label;
6843: {
6844: if (if_true_label)
6845: {
6846: if (bcc_gen_fctn[(int) GET_CODE (comparison)] != 0)
6847: emit_jump_insn ((*bcc_gen_fctn[(int) GET_CODE (comparison)]) (if_true_label));
6848: else
6849: abort ();
6850:
6851: if (if_false_label)
6852: emit_jump (if_false_label);
6853: }
6854: else if (if_false_label)
6855: {
6856: rtx insn;
6857: rtx prev = PREV_INSN (get_last_insn ());
6858: rtx branch = 0;
6859:
6860: /* Output the branch with the opposite condition. Then try to invert
6861: what is generated. If more than one insn is a branch, or if the
6862: branch is not the last insn written, abort. If we can't invert
6863: the branch, emit make a true label, redirect this jump to that,
6864: emit a jump to the false label and define the true label. */
6865:
6866: if (bcc_gen_fctn[(int) GET_CODE (comparison)] != 0)
6867: emit_jump_insn ((*bcc_gen_fctn[(int) GET_CODE (comparison)]) (if_false_label));
6868: else
6869: abort ();
6870:
6871: /* Here we get the insn before what was just emitted.
6872: On some machines, emitting the branch can discard
6873: the previous compare insn and emit a replacement. */
6874: if (prev == 0)
6875: /* If there's only one preceding insn... */
6876: insn = get_insns ();
6877: else
6878: insn = NEXT_INSN (prev);
6879:
6880: for (insn = NEXT_INSN (insn); insn; insn = NEXT_INSN (insn))
6881: if (GET_CODE (insn) == JUMP_INSN)
6882: {
6883: if (branch)
6884: abort ();
6885: branch = insn;
6886: }
6887:
6888: if (branch != get_last_insn ())
6889: abort ();
6890:
6891: if (! invert_jump (branch, if_false_label))
6892: {
6893: if_true_label = gen_label_rtx ();
6894: redirect_jump (branch, if_true_label);
6895: emit_jump (if_false_label);
6896: emit_label (if_true_label);
6897: }
6898: }
6899: }
6900:
6901: /* Generate code for a comparison expression EXP
6902: (including code to compute the values to be compared)
6903: and set (CC0) according to the result.
6904: SIGNED_CODE should be the rtx operation for this comparison for
6905: signed data; UNSIGNED_CODE, likewise for use if data is unsigned.
6906:
6907: We force a stack adjustment unless there are currently
6908: things pushed on the stack that aren't yet used. */
6909:
6910: static rtx
6911: compare (exp, signed_code, unsigned_code)
6912: register tree exp;
6913: enum rtx_code signed_code, unsigned_code;
6914: {
1.1.1.4 ! root 6915: register rtx op0
! 6916: = expand_expr (TREE_OPERAND (exp, 0), NULL_RTX, VOIDmode, 0);
! 6917: register rtx op1
! 6918: = expand_expr (TREE_OPERAND (exp, 1), NULL_RTX, VOIDmode, 0);
1.1 root 6919: register tree type = TREE_TYPE (TREE_OPERAND (exp, 0));
6920: register enum machine_mode mode = TYPE_MODE (type);
6921: int unsignedp = TREE_UNSIGNED (type);
6922: enum rtx_code code = unsignedp ? unsigned_code : signed_code;
6923:
6924: return compare_from_rtx (op0, op1, code, unsignedp, mode,
6925: ((mode == BLKmode)
1.1.1.4 ! root 6926: ? expr_size (TREE_OPERAND (exp, 0)) : NULL_RTX),
1.1 root 6927: TYPE_ALIGN (TREE_TYPE (exp)) / BITS_PER_UNIT);
6928: }
6929:
6930: /* Like compare but expects the values to compare as two rtx's.
6931: The decision as to signed or unsigned comparison must be made by the caller.
6932:
6933: If MODE is BLKmode, SIZE is an RTX giving the size of the objects being
6934: compared.
6935:
6936: If ALIGN is non-zero, it is the alignment of this type; if zero, the
6937: size of MODE should be used. */
6938:
6939: rtx
6940: compare_from_rtx (op0, op1, code, unsignedp, mode, size, align)
6941: register rtx op0, op1;
6942: enum rtx_code code;
6943: int unsignedp;
6944: enum machine_mode mode;
6945: rtx size;
6946: int align;
6947: {
6948: /* If one operand is constant, make it the second one. */
6949:
6950: if (GET_CODE (op0) == CONST_INT || GET_CODE (op0) == CONST_DOUBLE)
6951: {
6952: rtx tem = op0;
6953: op0 = op1;
6954: op1 = tem;
6955: code = swap_condition (code);
6956: }
6957:
6958: if (flag_force_mem)
6959: {
6960: op0 = force_not_mem (op0);
6961: op1 = force_not_mem (op1);
6962: }
6963:
6964: do_pending_stack_adjust ();
6965:
6966: if (GET_CODE (op0) == CONST_INT && GET_CODE (op1) == CONST_INT)
6967: return simplify_relational_operation (code, mode, op0, op1);
6968:
1.1.1.4 ! root 6969: #if 0
! 6970: /* There's no need to do this now that combine.c can eliminate lots of
! 6971: sign extensions. This can be less efficient in certain cases on other
! 6972: machines.
! 6973:
1.1 root 6974: /* If this is a signed equality comparison, we can do it as an
6975: unsigned comparison since zero-extension is cheaper than sign
1.1.1.4 ! root 6976: extension and comparisons with zero are done as unsigned. This is
! 6977: the case even on machines that can do fast sign extension, since
! 6978: zero-extension is easier to combinen with other operations than
! 6979: sign-extension is. If we are comparing against a constant, we must
! 6980: convert it to what it would look like unsigned. */
1.1 root 6981: if ((code == EQ || code == NE) && ! unsignedp
1.1.1.4 ! root 6982: && GET_MODE_BITSIZE (GET_MODE (op0)) <= HOST_BITS_PER_WIDE_INT)
1.1 root 6983: {
6984: if (GET_CODE (op1) == CONST_INT
6985: && (INTVAL (op1) & GET_MODE_MASK (GET_MODE (op0))) != INTVAL (op1))
1.1.1.4 ! root 6986: op1 = GEN_INT (INTVAL (op1) & GET_MODE_MASK (GET_MODE (op0)));
1.1 root 6987: unsignedp = 1;
6988: }
1.1.1.4 ! root 6989: #endif
1.1 root 6990:
6991: emit_cmp_insn (op0, op1, code, size, mode, unsignedp, align);
6992:
6993: return gen_rtx (code, VOIDmode, cc0_rtx, const0_rtx);
6994: }
6995:
6996: /* Generate code to calculate EXP using a store-flag instruction
1.1.1.3 root 6997: and return an rtx for the result. EXP is either a comparison
6998: or a TRUTH_NOT_EXPR whose operand is a comparison.
6999:
1.1 root 7000: If TARGET is nonzero, store the result there if convenient.
7001:
7002: If ONLY_CHEAP is non-zero, only do this if it is likely to be very
7003: cheap.
7004:
7005: Return zero if there is no suitable set-flag instruction
7006: available on this machine.
7007:
7008: Once expand_expr has been called on the arguments of the comparison,
7009: we are committed to doing the store flag, since it is not safe to
7010: re-evaluate the expression. We emit the store-flag insn by calling
7011: emit_store_flag, but only expand the arguments if we have a reason
7012: to believe that emit_store_flag will be successful. If we think that
7013: it will, but it isn't, we have to simulate the store-flag with a
7014: set/jump/set sequence. */
7015:
7016: static rtx
7017: do_store_flag (exp, target, mode, only_cheap)
7018: tree exp;
7019: rtx target;
7020: enum machine_mode mode;
7021: int only_cheap;
7022: {
7023: enum rtx_code code;
1.1.1.3 root 7024: tree arg0, arg1, type;
1.1 root 7025: tree tem;
1.1.1.3 root 7026: enum machine_mode operand_mode;
7027: int invert = 0;
7028: int unsignedp;
1.1 root 7029: rtx op0, op1;
7030: enum insn_code icode;
7031: rtx subtarget = target;
7032: rtx result, label, pattern, jump_pat;
7033:
1.1.1.3 root 7034: /* If this is a TRUTH_NOT_EXPR, set a flag indicating we must invert the
7035: result at the end. We can't simply invert the test since it would
7036: have already been inverted if it were valid. This case occurs for
7037: some floating-point comparisons. */
7038:
7039: if (TREE_CODE (exp) == TRUTH_NOT_EXPR)
7040: invert = 1, exp = TREE_OPERAND (exp, 0);
7041:
7042: arg0 = TREE_OPERAND (exp, 0);
7043: arg1 = TREE_OPERAND (exp, 1);
7044: type = TREE_TYPE (arg0);
7045: operand_mode = TYPE_MODE (type);
7046: unsignedp = TREE_UNSIGNED (type);
7047:
1.1 root 7048: /* We won't bother with BLKmode store-flag operations because it would mean
7049: passing a lot of information to emit_store_flag. */
7050: if (operand_mode == BLKmode)
7051: return 0;
7052:
1.1.1.4 ! root 7053: STRIP_NOPS (arg0);
! 7054: STRIP_NOPS (arg1);
1.1 root 7055:
7056: /* Get the rtx comparison code to use. We know that EXP is a comparison
7057: operation of some type. Some comparisons against 1 and -1 can be
7058: converted to comparisons with zero. Do so here so that the tests
1.1.1.2 root 7059: below will be aware that we have a comparison with zero. These
7060: tests will not catch constants in the first operand, but constants
7061: are rarely passed as the first operand. */
1.1 root 7062:
7063: switch (TREE_CODE (exp))
7064: {
7065: case EQ_EXPR:
7066: code = EQ;
7067: break;
7068: case NE_EXPR:
7069: code = NE;
7070: break;
7071: case LT_EXPR:
7072: if (integer_onep (arg1))
7073: arg1 = integer_zero_node, code = unsignedp ? LEU : LE;
7074: else
7075: code = unsignedp ? LTU : LT;
7076: break;
7077: case LE_EXPR:
7078: if (integer_all_onesp (arg1))
7079: arg1 = integer_zero_node, code = unsignedp ? LTU : LT;
7080: else
7081: code = unsignedp ? LEU : LE;
7082: break;
7083: case GT_EXPR:
7084: if (integer_all_onesp (arg1))
7085: arg1 = integer_zero_node, code = unsignedp ? GEU : GE;
7086: else
7087: code = unsignedp ? GTU : GT;
7088: break;
7089: case GE_EXPR:
7090: if (integer_onep (arg1))
7091: arg1 = integer_zero_node, code = unsignedp ? GTU : GT;
7092: else
7093: code = unsignedp ? GEU : GE;
7094: break;
7095: default:
7096: abort ();
7097: }
7098:
1.1.1.2 root 7099: /* Put a constant second. */
7100: if (TREE_CODE (arg0) == REAL_CST || TREE_CODE (arg0) == INTEGER_CST)
7101: {
7102: tem = arg0; arg0 = arg1; arg1 = tem;
7103: code = swap_condition (code);
7104: }
7105:
1.1 root 7106: /* If this is an equality or inequality test of a single bit, we can
7107: do this by shifting the bit being tested to the low-order bit and
7108: masking the result with the constant 1. If the condition was EQ,
7109: we xor it with 1. This does not require an scc insn and is faster
7110: than an scc insn even if we have it. */
7111:
7112: if ((code == NE || code == EQ)
7113: && TREE_CODE (arg0) == BIT_AND_EXPR && integer_zerop (arg1)
7114: && integer_pow2p (TREE_OPERAND (arg0, 1))
1.1.1.4 ! root 7115: && TYPE_PRECISION (type) <= HOST_BITS_PER_WIDE_INT)
1.1 root 7116: {
7117: int bitnum = exact_log2 (INTVAL (expand_expr (TREE_OPERAND (arg0, 1),
1.1.1.4 ! root 7118: NULL_RTX, VOIDmode, 0)));
1.1 root 7119:
7120: if (subtarget == 0 || GET_CODE (subtarget) != REG
7121: || GET_MODE (subtarget) != operand_mode
7122: || ! safe_from_p (subtarget, TREE_OPERAND (arg0, 0)))
7123: subtarget = 0;
7124:
7125: op0 = expand_expr (TREE_OPERAND (arg0, 0), subtarget, VOIDmode, 0);
7126:
7127: if (bitnum != 0)
7128: op0 = expand_shift (RSHIFT_EXPR, GET_MODE (op0), op0,
7129: size_int (bitnum), target, 1);
7130:
7131: if (GET_MODE (op0) != mode)
7132: op0 = convert_to_mode (mode, op0, 1);
7133:
7134: if (bitnum != TYPE_PRECISION (type) - 1)
7135: op0 = expand_and (op0, const1_rtx, target);
7136:
1.1.1.3 root 7137: if ((code == EQ && ! invert) || (code == NE && invert))
1.1 root 7138: op0 = expand_binop (mode, xor_optab, op0, const1_rtx, target, 0,
7139: OPTAB_LIB_WIDEN);
7140:
7141: return op0;
7142: }
7143:
7144: /* Now see if we are likely to be able to do this. Return if not. */
7145: if (! can_compare_p (operand_mode))
7146: return 0;
7147: icode = setcc_gen_code[(int) code];
7148: if (icode == CODE_FOR_nothing
7149: || (only_cheap && insn_operand_mode[(int) icode][0] != mode))
7150: {
7151: /* We can only do this if it is one of the special cases that
7152: can be handled without an scc insn. */
7153: if ((code == LT && integer_zerop (arg1))
7154: || (! only_cheap && code == GE && integer_zerop (arg1)))
7155: ;
7156: else if (BRANCH_COST >= 0
7157: && ! only_cheap && (code == NE || code == EQ)
7158: && TREE_CODE (type) != REAL_TYPE
7159: && ((abs_optab->handlers[(int) operand_mode].insn_code
7160: != CODE_FOR_nothing)
7161: || (ffs_optab->handlers[(int) operand_mode].insn_code
7162: != CODE_FOR_nothing)))
7163: ;
7164: else
7165: return 0;
7166: }
7167:
7168: preexpand_calls (exp);
7169: if (subtarget == 0 || GET_CODE (subtarget) != REG
7170: || GET_MODE (subtarget) != operand_mode
7171: || ! safe_from_p (subtarget, arg1))
7172: subtarget = 0;
7173:
7174: op0 = expand_expr (arg0, subtarget, VOIDmode, 0);
1.1.1.4 ! root 7175: op1 = expand_expr (arg1, NULL_RTX, VOIDmode, 0);
1.1 root 7176:
7177: if (target == 0)
7178: target = gen_reg_rtx (mode);
7179:
1.1.1.4 ! root 7180: /* Pass copies of OP0 and OP1 in case they contain a QUEUED. This is safe
! 7181: because, if the emit_store_flag does anything it will succeed and
! 7182: OP0 and OP1 will not be used subsequently. */
! 7183:
! 7184: result = emit_store_flag (target, code,
! 7185: queued_subexp_p (op0) ? copy_rtx (op0) : op0,
! 7186: queued_subexp_p (op1) ? copy_rtx (op1) : op1,
! 7187: operand_mode, unsignedp, 1);
1.1 root 7188:
7189: if (result)
1.1.1.3 root 7190: {
7191: if (invert)
7192: result = expand_binop (mode, xor_optab, result, const1_rtx,
7193: result, 0, OPTAB_LIB_WIDEN);
7194: return result;
7195: }
1.1 root 7196:
7197: /* If this failed, we have to do this with set/compare/jump/set code. */
7198: if (target == 0 || GET_CODE (target) != REG
7199: || reg_mentioned_p (target, op0) || reg_mentioned_p (target, op1))
7200: target = gen_reg_rtx (GET_MODE (target));
7201:
1.1.1.3 root 7202: emit_move_insn (target, invert ? const0_rtx : const1_rtx);
1.1.1.4 ! root 7203: result = compare_from_rtx (op0, op1, code, unsignedp,
! 7204: operand_mode, NULL_RTX, 0);
1.1 root 7205: if (GET_CODE (result) == CONST_INT)
1.1.1.3 root 7206: return (((result == const0_rtx && ! invert)
7207: || (result != const0_rtx && invert))
7208: ? const0_rtx : const1_rtx);
1.1 root 7209:
7210: label = gen_label_rtx ();
7211: if (bcc_gen_fctn[(int) code] == 0)
7212: abort ();
7213:
7214: emit_jump_insn ((*bcc_gen_fctn[(int) code]) (label));
1.1.1.3 root 7215: emit_move_insn (target, invert ? const1_rtx : const0_rtx);
1.1 root 7216: emit_label (label);
7217:
7218: return target;
7219: }
7220:
7221: /* Generate a tablejump instruction (used for switch statements). */
7222:
7223: #ifdef HAVE_tablejump
7224:
7225: /* INDEX is the value being switched on, with the lowest value
7226: in the table already subtracted.
1.1.1.3 root 7227: MODE is its expected mode (needed if INDEX is constant).
1.1 root 7228: RANGE is the length of the jump table.
7229: TABLE_LABEL is a CODE_LABEL rtx for the table itself.
7230:
7231: DEFAULT_LABEL is a CODE_LABEL rtx to jump to if the
7232: index value is out of range. */
7233:
7234: void
1.1.1.2 root 7235: do_tablejump (index, mode, range, table_label, default_label)
1.1 root 7236: rtx index, range, table_label, default_label;
1.1.1.2 root 7237: enum machine_mode mode;
1.1 root 7238: {
7239: register rtx temp, vector;
7240:
1.1.1.3 root 7241: /* Do an unsigned comparison (in the proper mode) between the index
7242: expression and the value which represents the length of the range.
7243: Since we just finished subtracting the lower bound of the range
7244: from the index expression, this comparison allows us to simultaneously
7245: check that the original index expression value is both greater than
7246: or equal to the minimum value of the range and less than or equal to
7247: the maximum value of the range. */
1.1.1.2 root 7248:
1.1.1.4 ! root 7249: emit_cmp_insn (range, index, LTU, NULL_RTX, mode, 0, 0);
1.1 root 7250: emit_jump_insn (gen_bltu (default_label));
1.1.1.3 root 7251:
7252: /* If index is in range, it must fit in Pmode.
7253: Convert to Pmode so we can index with it. */
7254: if (mode != Pmode)
7255: index = convert_to_mode (Pmode, index, 1);
7256:
1.1 root 7257: /* If flag_force_addr were to affect this address
7258: it could interfere with the tricky assumptions made
7259: about addresses that contain label-refs,
7260: which may be valid only very near the tablejump itself. */
7261: /* ??? The only correct use of CASE_VECTOR_MODE is the one inside the
7262: GET_MODE_SIZE, because this indicates how large insns are. The other
7263: uses should all be Pmode, because they are addresses. This code
7264: could fail if addresses and insns are not the same size. */
7265: index = memory_address_noforce
7266: (CASE_VECTOR_MODE,
7267: gen_rtx (PLUS, Pmode,
7268: gen_rtx (MULT, Pmode, index,
1.1.1.4 ! root 7269: GEN_INT (GET_MODE_SIZE (CASE_VECTOR_MODE))),
1.1 root 7270: gen_rtx (LABEL_REF, Pmode, table_label)));
7271: temp = gen_reg_rtx (CASE_VECTOR_MODE);
7272: vector = gen_rtx (MEM, CASE_VECTOR_MODE, index);
7273: RTX_UNCHANGING_P (vector) = 1;
7274: convert_move (temp, vector, 0);
7275:
7276: emit_jump_insn (gen_tablejump (temp, table_label));
7277:
7278: #ifndef CASE_VECTOR_PC_RELATIVE
7279: /* If we are generating PIC code or if the table is PC-relative, the
7280: table and JUMP_INSN must be adjacent, so don't output a BARRIER. */
7281: if (! flag_pic)
7282: emit_barrier ();
7283: #endif
7284: }
7285:
7286: #endif /* HAVE_tablejump */
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