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1.1 root 1: /* Subroutines for insn-output.c for Intel 80386.
2: Copyright (C) 1988 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 1, 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: #ifndef FILE
21: #include <stdio.h>
22: #endif
23:
24: #define FP_TOP (gen_rtx(REG, DFmode, FIRST_FLOAT_REG))
25:
26: #define AT_SP(mode) (gen_rtx (MEM, (mode), stack_pointer_rtx))
27: #define AT_BP(mode) (gen_rtx (MEM, (mode), frame_pointer_rtx))
28:
29: #define RET return ""
30:
31: /* #define RETCOM(X) fprintf (asm_out_file, "%sX fp_pop_level=%d\n", \
32: COMMENT_BEGIN, fp_pop_level); RET */
33: #define RETCOM(X) return ""
34:
35: #define POP_ONE_FP \
36: { /* fp_pop_level--; */ \
37: fprintf (asm_out_file, "\tfstp %sst (0)\n", RP); }
38:
39: extern FILE *asm_out_file;
40: static char *singlemove_string ();
41: static void output_movf ();
42: static void replace_float_constant ();
43: static int mentions_fp_top ();
44: static int call_top_dead_p ();
45: static int fp_top_dead_p1 ();
46: static rtx via_memory ();
47: static void output_asm_insn_double_reg_op ();
48:
49: /* All output functions must increment or decrement this to indicate
50: the net number of pops or pushes which they perform. Note that it won't
51: necessarily balance with the optimize running, since we might have
52: two different calls with the same pop shared by cross jumping.
53: However on optimize the reg dead heuristic seems to work. */
54:
55: int fp_pop_level = 0;
56:
57: static char *hi_reg_name[] = HI_REGISTER_NAMES;
58: static char *qi_reg_name[] = QI_REGISTER_NAMES;
59:
60: /* for fabs, fch, .. where the argument operand[1] must first be moved to
61: constraints "=fm" "0" */
62:
63: #define FP_CALL1(op) \
64: { if (FP_REG_P (operands[0])) \
65: return op; \
66: output_movf (FP_TOP, operands[1]); \
67: output_asm_insn (op, operands); \
68: /* fp_pop_level--; */ \
69: return "fstp%z0 %0"; }
70:
71: /* handle case of call where op0/op1 is "=mf" and opn is "mrf"
72: eg. fadd */
73: #define FP_CALL(op, rev, n) \
74: return fp_call_internal (op, rev, n, operands, insn);
75:
76: static char *
77: fp_call_internal (op, rev, n, operands, insn)
78: char *op;
79: char *rev;
80: int n;
81: rtx *operands;
82: rtx insn;
83: {
84: if (!FP_REG_P (operands[0]))
85: {
86: /* Here destination is in memory
87: and source is in the fp stack. */
88: output_movf (FP_TOP, operands[0]);
89: output_asm_insn_double_reg_op (op, rev, insn);
90: return "fstp%z0 %0";
91: }
92:
93: if (FP_REG_P (operands[n]))
94: {
95: rtx temp = operands[1];
96: char *tem1 = op;
97: operands[1] = operands[n];
98: op = rev;
99: operands[n] = temp;
100: rev = tem1;
101: }
102:
103: if (REG_P (operands[n]))
104: {
105: rtx xops[2];
106: via_memory (operands[n]);
107: operands[n] = AT_SP (GET_MODE (operands[n]));
108: xops[0] = stack_pointer_rtx;
109: xops[1] = gen_rtx (CONST_INT, VOIDmode,
110: GET_MODE_SIZE (GET_MODE (operands[n])));
111: output_asm_insn (op, operands + n);
112: output_asm_insn (AS2 (add%L0,%1,%0), xops);
113: }
114: else
115: output_asm_insn (op, operands + n);
116:
117: RET;
118: }
119:
120: /* Output assembler code to perform insn OP
121: with two stack operands, and output on the stack.
122:
123: REV is the assembler insn that does the same thing but
124: effectively interchanges the meanings of the two arguments.
125:
126: Somewhat counterintuitively, the "first" operand was pushed last.
127:
128: The output replaces either the top-of-stack or both of the arguments,
129: depending on whether the other argument is wanted after this insn. */
130:
131: static void
132: output_asm_insn_double_reg_op (op, rev, insn)
133: char *op;
134: char *rev;
135: rtx insn;
136: {
137: fputc ('\t', asm_out_file);
138: if (top_dead_p (insn))
139: {
140: /* Here we want the "reversed" insn, fsubr or fdivr.
141: But there is an assembler bug in all 80386 assemblers
142: which exchanges the meanings of fsubr and fsub, and of fdivr and fdiv!
143: So use the "unreversed" opcode (which will assemble into
144: the "reversed" insn). */
145: rev = op;
146:
147: while (*rev && *rev != '%')
148: fputc (*rev++, asm_out_file);
149: /* fp_pop_level--; */
150:
151: fprintf (asm_out_file, AS2 (p,%sst,%sst(1)), RP, RP);
152: }
153: else
154: {
155: while (*op && *op != '%')
156: fputc (*op++, asm_out_file);
157: fprintf (asm_out_file,AS2 ( ,%sst(1),%sst), RP, RP);
158: }
159: putc ('\n', asm_out_file);
160: }
161:
162: /* Moves X to memory location 8 below stack pointer
163: and returns an RTX for that memory location.
164: X should be a register, in DFmode or SFmode. */
165:
166: static rtx
167: via_memory (x)
168: rtx x;
169: {
170: if (!REG_P (x))
171: abort ();
172: if (GET_MODE (x) == DFmode)
173: {
174: rtx xops[1];
175: xops[0] = gen_rtx (REG, SImode, REGNO (x) + 1);
176: output_asm_insn ("push%L0 %0", xops);
177: }
178: output_asm_insn ("push%L0 %0", &x);
179: }
180:
181: /* Output an insn to copy the SFmode value in fp0 to OPERAND
182: without clobbering fp0. */
183:
184: void
185: fp_store_sf (target)
186: rtx target;
187: {
188: if (REG_P (target))
189: {
190: rtx xoperands[3];
191: xoperands[0] = stack_pointer_rtx;
192: xoperands[1] = AT_SP (Pmode);
193: xoperands[2] = gen_rtx (CONST_INT, VOIDmode, -4);
194: output_asm_insn (AS2 (add%L0,%2,%0), xoperands);
195: output_asm_insn ("fst%S0 %1", xoperands);
196: output_asm_insn ("pop%L0 %0", &target);
197: }
198: else if (GET_CODE (target) == MEM)
199: output_asm_insn ("fst%S0 %0", &target);
200: }
201:
202: /* Output an insn to pop an SF value from fp0 into TARGET.
203: This destroys the value of fp0. */
204:
205: void
206: fp_pop_sf (target)
207: rtx target;
208: {
209: if (REG_P (target))
210: {
211: rtx xoperands[3];
212: xoperands[0] = stack_pointer_rtx;
213: xoperands[1] = AT_SP (Pmode);
214: xoperands[2] = gen_rtx (CONST_INT, VOIDmode, -4);
215: output_asm_insn (AS2 (add%L0,%2,%0), xoperands);
216: output_asm_insn ("fstp%S0 %1", xoperands);
217: output_asm_insn ("pop%L0 %0", &target);
218: /* fp_pop_level--; */
219: }
220: else if (GET_CODE (target) == MEM)
221: {
222: /* fp_pop_level--; */
223: output_asm_insn ("fstp%S0 %0", &target);
224: }
225: else abort ();
226: }
227:
228: /* Copy the top of the fpu stack into TARGET, without popping. */
229:
230: void
231: fp_store_df (target)
232: rtx target;
233: {
234: if (REG_P (target))
235: {
236: rtx xoperands[4];
237: xoperands[0] = stack_pointer_rtx;
238: xoperands[1] = gen_rtx (REG, SImode, REGNO (target) + 1);
239: xoperands[2] = AT_SP (Pmode);
240: xoperands[3] = gen_rtx (CONST_INT, VOIDmode, -8);
241: output_asm_insn (AS2 (add%L0,%3,%0), xoperands);
242: output_asm_insn ("fst%Q0 %2", xoperands);
243: output_asm_insn ("pop%L0 %0", &target);
244: output_asm_insn ("pop%L0 %1", xoperands);
245: }
246: else if (GET_CODE (target) == MEM)
247: output_asm_insn ("fst%Q0 %0", &target);
248: }
249:
250: /* Copy the top of the fpu stack into TARGET, with popping. */
251:
252: void
253: fp_pop_df (target)
254: rtx target;
255: {
256: if (REG_P (target))
257: {
258: rtx xoperands[4];
259: xoperands[0] = stack_pointer_rtx;
260: xoperands[1] = gen_rtx (REG, SImode, REGNO (target) + 1);
261: xoperands[2] = AT_SP (Pmode);
262: xoperands[3] = gen_rtx (CONST_INT, VOIDmode, -8);
263: output_asm_insn (AS2 (add%L0,%3,%0), xoperands);
264: /* fp_pop_level--; */
265: output_asm_insn ("fstp%Q0 %2", xoperands);
266: output_asm_insn ("pop%L0 %0", &target);
267: output_asm_insn ("pop%L0 %1", xoperands);
268: }
269: else if (GET_CODE (target) == MEM)
270: {
271: /* fp_pop_level--; */
272: output_asm_insn ("fstp%z0 %0", &target);
273: }
274: }
275:
276: #if 0
277: /* Pop the fp stack, convert value to integer and store in TARGET.
278: TARGET may be memory or register, and may have QI, HI or SImode. */
279:
280: void
281: fp_pop_int (target)
282: rtx target;
283: {
284: if (REG_P (target) || GET_MODE (target) != SImode)
285: {
286: rtx xxops[2];
287: xxops[0] = stack_pointer_rtx;
288: xxops[1] = gen_rtx (CONST_INT, VOIDmode, 4);
289: output_asm_insn (AS2 (sub%L0,%1,%0), xxops);
290: xxops[0] = AT_SP (Pmode);
291: /* fp_pop_level--; */
1.1.1.2 ! root 292: output_asm_insn ("fistp%L0 %0", xxops);
1.1 root 293: output_asm_insn ("pop%L0 %0", &target);
294: }
295: else if (GET_CODE (target) == MEM)
296: {
297: /* fp_pop_level--; */
1.1.1.2 ! root 298: output_asm_insn ("fistp%L0 %0", &target);
1.1 root 299: }
300: else abort ();
301: }
302: #endif
303:
304: /* Push the SFmode value X onto the fpu stack. */
305:
306: void
307: fp_push_sf (x)
308: rtx x;
309: {
310: /* fp_pop_level++; */
311: if (REG_P (x))
312: {
313: rtx xoperands[2];
314: rtx xfops[3];
315: output_asm_insn ("push%L0 %0", &x);
316: xfops[0] = AT_SP (Pmode);
317: xfops[2] = gen_rtx (CONST_INT, VOIDmode, 4);
318: xfops[1] = stack_pointer_rtx;
319: output_asm_insn ("fld%S0 %0 \n\tadd%L0 %2,%1", xfops);
320: }
321: else
322: output_asm_insn ("fld%S0 %0", &x);
323: }
324:
325: /* Push the DFmode value X onto the fpu stack. */
326:
327: void
328: fp_push_df (x)
329: rtx x;
330: {
331: /* fp_pop_level++; */
332:
333: if (REG_P (x))
334: {
335: rtx xoperands[2];
336: rtx xfops[3];
337: xoperands[0] = x;
338: xoperands[1] = gen_rtx (REG, SImode, REGNO (x) + 1);
339: output_asm_insn ("push%L0 %1", xoperands);
340: output_asm_insn ("push%L0 %0", xoperands);
341: xfops[0] = AT_SP (Pmode);
342: xfops[2] = gen_rtx (CONST_INT, VOIDmode, 8);
343: xfops[1] = stack_pointer_rtx;
344: output_asm_insn ("fld%Q0 %0 \n\tadd%L0 %2,%1", xfops);
345: }
346: else if (GET_CODE (x) == MEM)
347: output_asm_insn ("fld%Q0 %0", &x);
348: }
349:
350: static char *output_move_const_single ();
351:
352: static char *
353: singlemove_string (operands)
354: rtx *operands;
355: {
356: rtx x;
357: if (GET_CODE (operands[0]) == MEM
358: && GET_CODE (x = XEXP (operands[0], 0)) == PRE_DEC)
359: {
360: if (XEXP (x, 0) != stack_pointer_rtx)
361: abort ();
362: return "push%L0 %1";
363: }
364: else if (GET_CODE (operands[1]) == CONST_DOUBLE)
365: {
366: return output_move_const_single (operands);
367: }
368: else if (GET_CODE (operands[0]) == REG || GET_CODE (operands[1]) == REG)
369: return AS2 (mov%L0,%1,%0);
1.1.1.2 ! root 370: else if (CONSTANT_P (operands[1]))
! 371: return AS2 (mov%L0,%1,%0);
1.1 root 372: else
373: {
374: output_asm_insn ("push%L0 %1", operands);
375: return "pop%L0 %0";
376: }
377: }
378:
379: /* Return a REG that occurs in ADDR with coefficient 1.
380: ADDR can be effectively incremented by incrementing REG. */
381:
382: static rtx
383: find_addr_reg (addr)
384: rtx addr;
385: {
386: while (GET_CODE (addr) == PLUS)
387: {
388: if (GET_CODE (XEXP (addr, 0)) == REG)
389: addr = XEXP (addr, 0);
390: else if (GET_CODE (XEXP (addr, 1)) == REG)
391: addr = XEXP (addr, 1);
392: else if (CONSTANT_P (XEXP (addr, 0)))
393: addr = XEXP (addr, 1);
394: else if (CONSTANT_P (XEXP (addr, 1)))
395: addr = XEXP (addr, 0);
396: else
397: abort ();
398: }
399: if (GET_CODE (addr) == REG)
400: return addr;
401: abort ();
402: }
403:
404: /* Output an insn to add the constant N to the register X. */
405:
406: static void
407: asm_add (n, x)
408: int n;
409: rtx x;
410: {
411: rtx xops[2];
412: xops[1] = x;
413: if (n < 0)
414: {
415: xops[0] = gen_rtx (CONST_INT, VOIDmode, -n);
416: output_asm_insn (AS2 (sub%L0,%0,%1), xops);
417: }
418: else if (n > 0)
419: {
420: xops[0] = gen_rtx (CONST_INT, VOIDmode, n);
421: output_asm_insn (AS2 (add%L0,%0,%1), xops);
422: }
423: }
424:
425: /* Output assembler code to perform a doubleword move insn
426: with operands OPERANDS. */
427:
428: char *
429: output_move_double (operands)
430: rtx *operands;
431: {
432: enum {REGOP, OFFSOP, MEMOP, PUSHOP, POPOP, CNSTOP, RNDOP } optype0, optype1;
433: rtx latehalf[2];
434: rtx addreg0 = 0, addreg1 = 0;
435:
436: /* First classify both operands. */
437:
438: if (REG_P (operands[0]))
439: optype0 = REGOP;
440: else if (offsettable_memref_p (operands[0]))
441: optype0 = OFFSOP;
442: else if (GET_CODE (XEXP (operands[0], 0)) == POST_INC)
443: optype0 = POPOP;
444: else if (GET_CODE (XEXP (operands[0], 0)) == PRE_DEC)
445: optype0 = PUSHOP;
446: else if (GET_CODE (operands[0]) == MEM)
447: optype0 = MEMOP;
448: else
449: optype0 = RNDOP;
450:
451: if (REG_P (operands[1]))
452: optype1 = REGOP;
453: else if (CONSTANT_P (operands[1])
454: || GET_CODE (operands[1]) == CONST_DOUBLE)
455: optype1 = CNSTOP;
456: else if (offsettable_memref_p (operands[1]))
457: optype1 = OFFSOP;
458: else if (GET_CODE (XEXP (operands[1], 0)) == POST_INC)
459: optype1 = POPOP;
460: else if (GET_CODE (XEXP (operands[1], 0)) == PRE_DEC)
461: optype1 = PUSHOP;
462: else if (GET_CODE (operands[1]) == MEM)
463: optype1 = MEMOP;
464: else
465: optype1 = RNDOP;
466:
467: /* Check for the cases that the operand constraints are not
468: supposed to allow to happen. Abort if we get one,
469: because generating code for these cases is painful. */
470:
471: if (optype0 == RNDOP || optype1 == RNDOP)
472: abort ();
473:
474: /* If one operand is decrementing and one is incrementing
475: decrement the former register explicitly
476: and change that operand into ordinary indexing. */
477:
478: if (optype0 == PUSHOP && optype1 == POPOP)
479: {
480: operands[0] = XEXP (XEXP (operands[0], 0), 0);
481: asm_add (-8, operands[0]);
482: operands[0] = gen_rtx (MEM, DImode, operands[0]);
483: optype0 = OFFSOP;
484: }
485: if (optype0 == POPOP && optype1 == PUSHOP)
486: {
487: operands[1] = XEXP (XEXP (operands[1], 0), 0);
488: asm_add (-8, operands[1]);
489: operands[1] = gen_rtx (MEM, DImode, operands[1]);
490: optype1 = OFFSOP;
491: }
492:
493: /* If an operand is an unoffsettable memory ref, find a register
494: we can increment temporarily to make it refer to the second word. */
495:
496: if (optype0 == MEMOP)
497: addreg0 = find_addr_reg (XEXP (operands[0], 0));
498:
499: if (optype1 == MEMOP)
500: addreg1 = find_addr_reg (XEXP (operands[1], 0));
501:
502: /* Ok, we can do one word at a time.
503: Normally we do the low-numbered word first,
504: but if either operand is autodecrementing then we
505: do the high-numbered word first.
506:
507: In either case, set up in LATEHALF the operands to use
508: for the high-numbered word and in some cases alter the
509: operands in OPERANDS to be suitable for the low-numbered word. */
510:
511: if (optype0 == REGOP)
512: latehalf[0] = gen_rtx (REG, SImode, REGNO (operands[0]) + 1);
513: else if (optype0 == OFFSOP)
514: latehalf[0] = adj_offsettable_operand (operands[0], 4);
515: else
516: latehalf[0] = operands[0];
517:
518: if (optype1 == REGOP)
519: latehalf[1] = gen_rtx (REG, SImode, REGNO (operands[1]) + 1);
520: else if (optype1 == OFFSOP)
521: latehalf[1] = adj_offsettable_operand (operands[1], 4);
522: else if (optype1 == CNSTOP)
523: {
524: if (CONSTANT_P (operands[1]))
525: latehalf[1] = const0_rtx;
526: else if (GET_CODE (operands[1]) == CONST_DOUBLE)
527: {
528: latehalf[1] = gen_rtx (CONST_INT, VOIDmode,
529: CONST_DOUBLE_HIGH (operands[1]));
530: operands[1] = gen_rtx (CONST_INT, VOIDmode,
531: CONST_DOUBLE_LOW (operands[1]));
532: }
533: }
534: else
535: latehalf[1] = operands[1];
536:
537: /* If insn is effectively movd N (sp),-(sp) then we will do the
538: high word first. We should use the adjusted operand 1 (which is N+4 (sp))
539: for the low word as well, to compensate for the first decrement of sp. */
540: if (optype0 == PUSHOP
541: && REGNO (XEXP (XEXP (operands[0], 0), 0)) == STACK_POINTER_REGNUM
542: && reg_overlap_mentioned_p (stack_pointer_rtx, operands[1]))
543: operands[1] = latehalf[1];
544:
545: /* If one or both operands autodecrementing,
546: do the two words, high-numbered first. */
547:
548: /* Likewise, the first move would clobber the source of the second one,
549: do them in the other order. This happens only for registers;
550: such overlap can't happen in memory unless the user explicitly
551: sets it up, and that is an undefined circumstance. */
552:
553: if (optype0 == PUSHOP || optype1 == PUSHOP
554: || (optype0 == REGOP && optype1 == REGOP
555: && REGNO (operands[0]) == REGNO (latehalf[1])))
556: {
557: /* Make any unoffsettable addresses point at high-numbered word. */
558: if (addreg0)
559: asm_add (4, addreg0);
560: if (addreg1)
561: asm_add (4, addreg1);
562:
563: /* Do that word. */
564: output_asm_insn (singlemove_string (latehalf), latehalf);
565:
566: /* Undo the adds we just did. */
567: if (addreg0)
568: asm_add (-4, addreg0);
569: if (addreg1)
570: asm_add (-4, addreg1);
571:
572: /* Do low-numbered word. */
573: return singlemove_string (operands);
574: }
575:
576: /* Normal case: do the two words, low-numbered first. */
577:
578: output_asm_insn (singlemove_string (operands), operands);
579:
580: /* Make any unoffsettable addresses point at high-numbered word. */
581: if (addreg0)
582: asm_add (4, addreg0);
583: if (addreg1)
584: asm_add (4, addreg1);
585:
586: /* Do that word. */
587: output_asm_insn (singlemove_string (latehalf), latehalf);
588:
589: /* Undo the adds we just did. */
590: if (addreg0)
591: asm_add (-4, addreg0);
592: if (addreg1)
593: asm_add (-4, addreg1);
594:
595: return "";
596: }
597:
598: int
599: standard_80387_constant_p (x)
600: rtx x;
601: {
602: union { double d; int i[2];} u;
603: register double d;
604: u.i[0] = XINT (x, 0);
605: u.i[1] = XINT (x, 1);
606: d = u.d;
607:
608: if (d == 0)
609: return 1;
610: if (d == 1)
611: return 2;
612: /* Note that on the 80387, other constants, such as pi,
613: are much slower to load as standard constants
614: than to load from doubles in memory! */
615:
616: return 0;
617: }
618:
619: static char *
620: output_move_const_double (operands)
621: rtx *operands;
622: {
623: if (FP_REG_P (operands[0]))
624: {
625: int conval = standard_80387_constant_p (operands[1]);
626:
627: /* fp_pop_level++; */
628: if (conval == 1)
629: return "fldz";
630: if (conval == 2)
631: return "fld1";
632: /* fp_pop_level--; */
633: }
634:
635: output_move_double (operands);
636: }
637:
638:
639: static char *
640: output_move_const_single (operands)
641: rtx *operands;
642: {
643: if (FP_REG_P (operands[0]))
644: {
645: int conval = standard_80387_constant_p (operands[1]);
646:
647: /* fp_pop_level++; */
648: if (conval == 1)
649: return "fldz";
650: if (conval == 2)
651: return "fld1";
652: /* fp_pop_level--; */
653: }
654: if (GET_CODE (operands[1]) == CONST_DOUBLE)
655: {
656: union { int i[2]; double d;} u1;
657: union { int i; float f;} u2;
658: u1.i[0] = CONST_DOUBLE_LOW (operands[1]);
659: u1.i[1] = CONST_DOUBLE_HIGH (operands[1]);
660: u2.f = u1.d;
661: operands[1] = gen_rtx (CONST_INT, VOIDmode, u2.i);
662: }
663: return singlemove_string (operands);
664: }
665:
666: /* Output an insn to move an SF value from FROM to TO.
667: The kinds of operands are not restricted
668: except that they may not both be in memory. */
669:
670: void
671: output_movsf (to, from)
672: rtx from, to;
673: {
674: rtx xops[2];
675: xops[0] = to;
676: xops[1] = from;
677: if (FP_REG_P (from) || FP_REG_P (to))
678: {
679: from = xops[1];
680: }
681:
682: if (FP_REG_P (from))
683: {
684: #if 0
685: {
686: if (REGNO (from) != REGNO (to))
687: {
688: output_asm_insn ("fld%S0 %1 \n\tfstp%S0 %0", xops);
689: }
690: }
691: else
692: #endif
693:
694: if (! FP_REG_P (to))
695: fp_pop_sf (to);
696: }
697: else if (FP_REG_P (to))
698: fp_push_sf (from);
699: else
700: output_asm_insn (singlemove_string (xops), xops);
701: }
702:
703: /* Output an insn to move a DF value from FROM to TO.
704: The kinds of operands are not restricted
705: except that they may not both be in memory. */
706:
707: void
708: output_movdf (to, from)
709: rtx from, to;
710: {
711: rtx xops[2];
712: xops[0] = to;
713: xops[1] = from;
714: if (FP_REG_P (from) || FP_REG_P (to))
715: {
716: from = xops[1];
717: to = xops[0];
718: }
719: if (FP_REG_P (from))
720: {
721: #if 0
722: {
723: if (REGNO (from) != REGNO (to))
724: abort ();
725: /* output_asm_insn ("fld%Q0 %1 \n\t fstp%Q0 %0", xops);*/
726: }
727: else
728: {
729: #endif
730: if (! FP_REG_P (to))
731: fp_pop_df (to);
732: }
733: else if (FP_REG_P (to))
734: fp_push_df (from);
735: else
736: output_asm_insn (output_move_double (xops), xops);
737: }
738:
739: /* does move of FROM to TO where the mode is the minimum of the
740: two */
741:
742: static void
743: output_movf (to, from)
744: rtx to, from;
745: {
746: if (GET_MODE (from) == SFmode || GET_MODE (to) == SFmode)
747: output_movsf (to, from);
748: else
749: output_movdf (to, from);
750: }
751:
752: /* Return the best assembler insn template
753: for moving operands[1] into operands[0] as a fullword. */
754:
755: void
756: function_prologue (file, size)
757: FILE *file;
758: int size;
759: {
760: register int regno;
761: int nregs, limit;
762: rtx xops[4];
763: extern int frame_pointer_needed;
764:
765: /* fp_pop_level = 0; */
766: xops[0] = stack_pointer_rtx;
767: xops[1] = frame_pointer_rtx;
768: xops[2] = gen_rtx (CONST_INT, VOIDmode, size);
769: if (frame_pointer_needed)
770: {
771: output_asm_insn ("push%L0 %1", xops);
772: output_asm_insn (AS2 (mov%L0,%0,%1), xops);
773: if (size)
774: output_asm_insn (AS2 (sub%L0,%2,%0), xops);
775: }
776:
777: /* Note If use enter it is NOT reversed args.
778: This one is not reversed from intel!!
779: I think enter is slower. Also sdb doesn't like it.
780: But if you want it the code is:
781: {
782: xops[3] = const0_rtx;
783: output_asm_insn ("enter %2,%3", xops);
784: }
785: */
786: nregs = 0;
787: limit = (frame_pointer_needed ? FRAME_POINTER_REGNUM : STACK_POINTER_REGNUM);
788: for (regno = limit - 1; regno >= 0; regno--)
789: if (regs_ever_live[regno] && ! call_used_regs[regno])
790: {
791: fprintf (file, "\tpush%s %se%s\n", L_SIZE, RP, hi_reg_name[regno]);
792: }
793: }
794:
795: void
796: function_epilogue (file, size)
797: FILE *file;
798: int size;
799: {
800: register int regno;
801: register int nregs, limit;
802: int assure_sp_pos;
803: extern int frame_pointer_needed;
804: extern int current_function_pops_args;
805: extern int current_function_args_size;
806: limit = (frame_pointer_needed ? FRAME_POINTER_REGNUM : STACK_POINTER_REGNUM);
807: nregs = 0;
808:
809:
810: for (regno = (limit -1); regno >= 0; regno--)
811: if (regs_ever_live[regno] && ! call_used_regs[regno])
812: nregs++;
813:
814: /* sp is often unreliable so we must go off the frame pointer,
815: */
816:
817: if (nregs && frame_pointer_needed)
818: {
819: rtx xops[2];
820: xops[0] = adj_offsettable_operand (AT_BP (Pmode),
821: -size -(nregs*(UNITS_PER_WORD)));
822: xops[1] = stack_pointer_rtx;
823: output_asm_insn (AS2 (lea%L0,%0,%1), xops);
824: }
825: for (regno = 0; regno < limit; regno++)
826: {
827: if (regs_ever_live[regno] && ! call_used_regs[regno])
828: {
829: fprintf (file, "\tpop%s ", L_SIZE);
830: fprintf (file, "%se%s\n", RP, hi_reg_name[regno]);
831: }
832: }
833:
834: if (frame_pointer_needed)
835: fprintf (file, "\tleave\n");
836: if (current_function_pops_args && current_function_args_size)
837: fprintf (file, "\tret %s%d\n", IP,
838: (current_function_args_size
839: + (current_function_returns_struct ? 4 : 0)));
840: else if (current_function_returns_struct)
841: fprintf (file, "\tret %s4\n", IP);
842: else
843: fprintf (file, "\tret\n");
844: }
845:
846: int
847: hard_regno_mode_ok (regno, mode)
848: int regno;
849: enum machine_mode mode;
850: {
851: return
852: (regno < 2 ? 1
853: /* Used to reject floating modes here */
854: : regno < 4 ? 1
855: : regno >= 8 ? mode == DFmode || mode == SFmode
856: : mode != QImode);
857: }
858:
859: /* Print the name of a register based on its machine mode and number.
1.1.1.2 ! root 860: If CODE is 'w', pretend the mode is HImode.
! 861: If CODE is 'b', pretend the mode is QImode. */
1.1 root 862:
863: #define PRINT_REG(X, CODE, FILE) \
864: do { fprintf (FILE, "%s", RP); \
1.1.1.2 ! root 865: switch ((CODE == 'w' ? 2 \
! 866: : CODE == 'b' ? 1 \
! 867: : GET_MODE_SIZE (GET_MODE (X)))) \
1.1 root 868: { \
869: case 4: \
870: case 8: \
871: if (!FP_REG_P (X)) fputs ("e", FILE); \
872: case 2: \
873: fputs (hi_reg_name[REGNO (X)], FILE); \
874: break; \
875: case 1: \
876: fputs (qi_reg_name[REGNO (X)], FILE); \
877: } \
878: } while (0)
879:
880: /* Meaning of CODE:
881: f -- float insn (print a CONST_DOUBLE as a float rather than in hex).
882: L,W,B,Q,S -- print the opcode suffix for specified size of operand.
883: R -- print the prefix for register names.
884: z -- print the opcode suffix for the size of the current operand.
885: * -- print a star (in certain assembler syntax)
886: w -- print the operand as if it's a "word" (HImode) even if it isn't.
887: c -- don't print special prefixes before constant operands.
888: */
889:
890: void
891: print_operand (file, x, code)
892: FILE *file;
893: rtx x;
894: int code;
895: {
896: if (code)
897: {
898: switch (code)
899: {
900: case '*':
901: if (USE_STAR)
902: putc ('*', file);
903: return;
904:
905: case 'L':
906: PUT_OP_SIZE (code, 'l', file);
907: return;
908:
909: case 'W':
910: PUT_OP_SIZE (code, 'w', file);
911: return;
912:
913: case 'B':
914: PUT_OP_SIZE (code, 'b', file);
915: return;
916:
917: case 'Q':
918: PUT_OP_SIZE (code, 'l', file);
919: return;
920:
921: case 'S':
922: PUT_OP_SIZE (code, 's', file);
923: return;
924:
925: case 'R':
926: fprintf (file, "%s", RP);
927: return;
928:
929: case 'z':
930: /* this is the size of op from size of operand */
931: switch (GET_MODE_SIZE (GET_MODE (x)))
932: {
933: case 2:
934: PUT_OP_SIZE ('W', 'w', file);
935: return;
936: case 4:
937: if (GET_MODE (x) == SFmode)
938: {
939: PUT_OP_SIZE ('S', 's', file);
940: return;
941: }
942: else
943: PUT_OP_SIZE ('L', 'l', file);
944: return;
945: case 8:
946: if (!FP_REG_P (x)) PUT_OP_SIZE ('Q', 'l', file);
947: return;
948: case 1:
949: PUT_OP_SIZE ('B', 'b', file);
950: return;
951: }
952: }
953: }
954: if (GET_CODE (x) == REG)
955: {
956: PRINT_REG (x, code, file);
957: }
958: else if (GET_CODE (x) == MEM)
959: {
960: PRINT_PTR (x, file);
961: if (CONSTANT_ADDRESS_P (XEXP (x, 0)))
962: output_addr_const (file, XEXP (x, 0));
963: else
964: output_address (XEXP (x, 0));
965: }
966: else if (GET_CODE (x) == CONST_DOUBLE && GET_MODE (x) == SFmode)
967: {
968: union { double d; int i[2]; } u;
969: union { float f; int i; } u1;
970: u.i[0] = CONST_DOUBLE_LOW (x);
971: u.i[1] = CONST_DOUBLE_HIGH (x);
972: u1.f = u.d;
973: if (code == 'f')
974: fprintf (file, "%.22e", u1.f);
975: else
976: {
977: PRINT_IMMED_PREFIX (file);
978: fprintf (file, "0x%x", u1.i);
979: }
980: }
981: else if (GET_CODE (x) == CONST_DOUBLE && GET_MODE (x) == DFmode)
982: {
983: union { double d; int i[2]; } u;
984: u.i[0] = CONST_DOUBLE_LOW (x);
985: u.i[1] = CONST_DOUBLE_HIGH (x);
986: fprintf (file, "%.22e", u.d);
987: }
988: else
989: {
990: if (code != 'c')
991: {
992: if (GET_CODE (x) == CONST_INT)
993: PRINT_IMMED_PREFIX (file);
994: else if (GET_CODE (x) == CONST || GET_CODE (x) == SYMBOL_REF)
995: PRINT_OFFSET_PREFIX (file);
996: }
997: output_addr_const (file, x);
998: }
999: }
1000:
1001: /* Print a memory operand whose address is ADDR. */
1002:
1003: void
1004: print_operand_address (file, addr)
1005: FILE *file;
1006: register rtx addr;
1007: {
1008: register rtx reg1, reg2, breg, ireg;
1009: rtx offset;
1010:
1011: switch (GET_CODE (addr))
1012: {
1013: case REG:
1014: ADDR_BEG (file);
1015: fprintf (file, "%se", RP);
1016: fputs (hi_reg_name[REGNO (addr)], file);
1017: ADDR_END (file);
1018: break;
1019:
1020: case PLUS:
1021: reg1 = 0;
1022: reg2 = 0;
1023: ireg = 0;
1024: breg = 0;
1025: offset = 0;
1026: if (CONSTANT_ADDRESS_P (XEXP (addr, 0)))
1027: {
1028: offset = XEXP (addr, 0);
1029: addr = XEXP (addr, 1);
1030: }
1031: else if (CONSTANT_ADDRESS_P (XEXP (addr, 1)))
1032: {
1033: offset = XEXP (addr, 1);
1034: addr = XEXP (addr, 0);
1035: }
1036: if (GET_CODE (addr) != PLUS) ;
1037: else if (GET_CODE (XEXP (addr, 0)) == MULT)
1038: {
1039: reg1 = XEXP (addr, 0);
1040: addr = XEXP (addr, 1);
1041: }
1042: else if (GET_CODE (XEXP (addr, 1)) == MULT)
1043: {
1044: reg1 = XEXP (addr, 1);
1045: addr = XEXP (addr, 0);
1046: }
1047: else if (GET_CODE (XEXP (addr, 0)) == REG)
1048: {
1049: reg1 = XEXP (addr, 0);
1050: addr = XEXP (addr, 1);
1051: }
1052: else if (GET_CODE (XEXP (addr, 1)) == REG)
1053: {
1054: reg1 = XEXP (addr, 1);
1055: addr = XEXP (addr, 0);
1056: }
1057: if (GET_CODE (addr) == REG || GET_CODE (addr) == MULT)
1058: {
1059: if (reg1 == 0) reg1 = addr;
1060: else reg2 = addr;
1061: addr = 0;
1062: }
1063: if (offset != 0)
1064: {
1065: if (addr != 0) abort ();
1066: addr = offset;
1067: }
1068: if ((reg1 && GET_CODE (reg1) == MULT)
1069: || (reg2 != 0 && REGNO_OK_FOR_BASE_P (REGNO (reg2))))
1070: {
1071: breg = reg2;
1072: ireg = reg1;
1073: }
1074: else if (reg1 != 0 && REGNO_OK_FOR_BASE_P (REGNO (reg1)))
1075: {
1076: breg = reg1;
1077: ireg = reg2;
1078: }
1079:
1080: if (ireg != 0 || breg != 0)
1081: {
1082: int scale = 1;
1083:
1084: if (addr != 0)
1085: {
1086: if (GET_CODE (addr) == LABEL_REF)
1087: output_asm_label (addr);
1088: else
1089: output_addr_const (file, addr);
1090: }
1091:
1092: if (ireg != 0 && GET_CODE (ireg) == MULT)
1093: {
1094: scale = INTVAL (XEXP (ireg, 1));
1095: ireg = XEXP (ireg, 0);
1096: }
1097: /* output breg+ireg*scale */
1098: PRINT_B_I_S (breg, ireg, scale, file);
1099: break;
1100: }
1101:
1.1.1.2 ! root 1102: case MULT:
! 1103: {
! 1104: int scale;
! 1105: if (GET_CODE (XEXP (addr, 0)) == CONST_INT)
! 1106: {
! 1107: scale = INTVAL (XEXP (addr, 0));
! 1108: ireg = XEXP (addr, 1);
! 1109: }
! 1110: else
! 1111: {
! 1112: scale = INTVAL (XEXP (addr, 1));
! 1113: ireg = XEXP (addr, 0);
! 1114: }
! 1115: output_addr_const (file, const0_rtx);
! 1116: PRINT_B_I_S ((rtx) 0, ireg, scale, file);
! 1117: }
! 1118: break;
! 1119:
1.1 root 1120: default:
1121: if (GET_CODE (addr) == CONST_INT
1122: && INTVAL (addr) < 0x8000
1123: && INTVAL (addr) >= -0x8000)
1124: fprintf (file, "%d", INTVAL (addr));
1125: else
1126: output_addr_const (file, addr);
1127: }
1128: }
1129:
1130: /* Set the cc_status for the results of an insn whose pattern is EXP.
1131: On the 80386, we assume that only test and compare insns, as well
1132: as SI, HI, & DI mode ADD, SUB, NEG, AND, IOR, XOR, ASHIFT, LSHIFT,
1133: ASHIFTRT, and LSHIFTRT instructions set the condition codes usefully.
1134: Also, we assume that jumps and moves don't affect the condition codes.
1135: All else, clobbers the condition codes, by assumption.
1136:
1137: We assume that ALL add, minus, etc. instructions effect the condition
1138: codes. This MUST be consistent with i386.md. */
1139:
1140: notice_update_cc (exp)
1141: rtx exp;
1142: {
1143: if (GET_CODE (exp) == SET)
1144: {
1145: /* Jumps do not alter the cc's. */
1146: if (SET_DEST (exp) == pc_rtx)
1147: return;
1148: /* Moving register or memory into a register:
1149: it doesn't alter the cc's, but it might invalidate
1150: the RTX's which we remember the cc's came from.
1151: (Note that moving a constant 0 or 1 MAY set the cc's). */
1152: if (REG_P (SET_DEST (exp))
1153: && (REG_P (SET_SRC (exp)) || GET_CODE (SET_SRC (exp)) == MEM))
1154: {
1155: if (cc_status.value1
1156: && reg_overlap_mentioned_p (SET_DEST (exp), cc_status.value1))
1157: cc_status.value1 = 0;
1158: if (cc_status.value2
1159: && reg_overlap_mentioned_p (SET_DEST (exp), cc_status.value2))
1160: cc_status.value2 = 0;
1161: return;
1162: }
1163: /* Moving register into memory doesn't alter the cc's.
1164: It may invalidate the RTX's which we remember the cc's came from. */
1165: if (GET_CODE (SET_DEST (exp)) == MEM && REG_P (SET_SRC (exp)))
1166: {
1167: if (cc_status.value1 && GET_CODE (cc_status.value1) == MEM)
1168: cc_status.value1 = 0;
1169: if (cc_status.value2 && GET_CODE (cc_status.value2) == MEM)
1170: cc_status.value2 = 0;
1171: return;
1172: }
1173: /* Function calls clobber the cc's. */
1174: else if (GET_CODE (SET_SRC (exp)) == CALL)
1175: {
1176: CC_STATUS_INIT;
1177: return;
1178: }
1179: /* Tests and compares set the cc's in predictable ways. */
1180: else if (SET_DEST (exp) == cc0_rtx)
1181: {
1182: CC_STATUS_INIT;
1183: cc_status.value1 = SET_SRC (exp);
1184: return;
1185: }
1186: /* Certain instructions effect the condition codes. */
1187: else if (GET_MODE (SET_SRC (exp)) == SImode
1188: || GET_MODE (SET_SRC (exp)) == HImode
1189: || GET_MODE (SET_SRC (exp)) == QImode)
1190: switch (GET_CODE (SET_SRC (exp)))
1191: {
1192: case ASHIFTRT: case LSHIFTRT:
1193: case ASHIFT: case LSHIFT:
1194: /* Shifts on the 386 don't set the condition codes if the
1195: shift count is zero. */
1196: if (GET_CODE (XEXP (SET_SRC (exp), 1)) != CONST_INT)
1197: {
1198: CC_STATUS_INIT;
1199: break;
1200: }
1201: /* We assume that the CONST_INT is non-zero (this rtx would
1202: have been deleted if it were zero. */
1203:
1204: case PLUS: case MINUS: case NEG:
1205: case AND: case IOR: case XOR:
1206: cc_status.flags = CC_NO_OVERFLOW;
1207: cc_status.value1 = SET_SRC (exp);
1208: cc_status.value2 = SET_DEST (exp);
1209: break;
1210:
1211: default:
1212: CC_STATUS_INIT;
1213: }
1214: else
1215: {
1216: CC_STATUS_INIT;
1217: }
1218: }
1219: else if (GET_CODE (exp) == PARALLEL
1220: && GET_CODE (XVECEXP (exp, 0, 0)) == SET)
1221: {
1222: if (SET_DEST (XVECEXP (exp, 0, 0)) == pc_rtx)
1223: return;
1224: if (SET_DEST (XVECEXP (exp, 0, 0)) == cc0_rtx)
1225: {
1226: CC_STATUS_INIT;
1227: cc_status.value1 = SET_SRC (XVECEXP (exp, 0, 0));
1228: return;
1229: }
1230: CC_STATUS_INIT;
1231: }
1232: else
1233: {
1234: CC_STATUS_INIT;
1235: }
1236: }
1237:
1238: /* Nonzero if the top of the fpu stack dies in this insn. */
1239:
1240: int
1241: top_dead_p (insn)
1242: rtx insn;
1243: {
1244: extern int optimize;
1245: if (optimize)
1246: return (find_regno_note (insn, REG_DEAD, FIRST_FLOAT_REG)
1247: || find_regno_note (insn, REG_DEAD, FIRST_FLOAT_REG + 1));
1248:
1249: if (GET_CODE (insn) == CALL_INSN)
1250: return call_top_dead_p (insn);
1251:
1252: return fp_top_dead_p1 (insn);
1253: }
1254:
1255: /* Following is used after a call_value insn
1256: if obey_regdecls there will not be the REG_DEAD notes
1257: to go by (there won't be any cross jumping to worry about
1258: either), and we depend on seeing if the FP_TOP is used
1259: in the next two insn's. Otherwise we depend on the
1260: REG_DEAD notes.
1261: */
1262:
1263: static int
1264: call_top_dead_p (insn)
1265: rtx insn;
1266: {
1267: int i;
1268: for (i = 0; i < 3; i++)
1269: {
1270: insn = NEXT_INSN (insn);
1271: if (insn == 0)
1272: return 1;
1273: if (GET_CODE (insn) == NOTE || GET_CODE (insn) == CODE_LABEL)
1274: continue;
1275: if (GET_CODE (insn) == BARRIER)
1276: abort ();
1277: if (GET_CODE (PATTERN (insn)) == SET
1278: && SET_DEST (PATTERN (insn)) != stack_pointer_rtx)
1279: return (!(mentions_fp_top (SET_SRC (PATTERN (insn)))));
1280: if (GET_CODE (PATTERN (insn)) == CALL)
1281: return 1;
1282: if (GET_CODE (PATTERN (insn)) == USE)
1283: return (! FP_REG_P (XEXP (PATTERN (insn), 0)));
1284: }
1285: return 1;
1286: }
1287:
1288: /* Return 1 if current val of fpu top-of-stack appears unused
1289: in rest of this basic block. */
1290:
1291: static int
1292: fp_top_dead_p1 (insn)
1293: rtx insn;
1294: {
1295: for (insn = NEXT_INSN (insn); insn; insn = NEXT_INSN (insn))
1296: {
1297: switch (GET_CODE (insn))
1298: {
1299: case CALL_INSN:
1300: /* Function calls clobber this value, so it's dead. */
1301: case JUMP_INSN:
1302: case CODE_LABEL:
1303: return 1;
1304:
1305: case INSN:
1306: if (GET_CODE (PATTERN (insn)) == SET)
1307: {
1308: if ((mentions_fp_top (SET_SRC (PATTERN (insn)))))
1309: return 0;
1310: else if (FP_REG_P (SET_DEST (PATTERN (insn))))
1311: return 1;
1312: }
1313: else if (mentions_fp_top (PATTERN (insn)))
1314: return 0;
1315: break;
1316: }
1317: }
1318: return 1;
1319: }
1320:
1321: /* Return 1 if X involves an FPU register. */
1322:
1323: static int
1324: mentions_fp_top (x)
1325: rtx x;
1326: {
1327: register RTX_CODE code;
1328:
1329: code = GET_CODE (x);
1330: switch (code)
1331: {
1332: case LABEL_REF:
1333: case SYMBOL_REF:
1334: case CONST_INT:
1335: case CONST:
1336: case CC0:
1337: case PC:
1338: case CLOBBER:
1339: case MEM:
1340: return 0;
1341:
1342: case REG:
1343: return FP_REGNO_P (REGNO (x));
1344: }
1345:
1346: /* Recursively scan the operands of this expression. */
1347: {
1348: register char *fmt = GET_RTX_FORMAT (code);
1349: register int i;
1350:
1351: for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
1352: {
1353: if (fmt[i] == 'e')
1354: {
1355: if (mentions_fp_top (XEXP (x, i)))
1356: return 1;
1357: }
1358: if (fmt[i] == 'E')
1359: {
1360: register int j;
1361: for (j = 0; j < XVECLEN (x, i); j++)
1362: if (mentions_fp_top (XVECEXP (x, i, j)))
1363: return 1;
1364: }
1365: }
1366: }
1367: return 0;
1368: }
1369:
1370: /* Some asm-dependent functions. */
1371:
1372: #ifdef MASM
1373: #include "masm386.c"
1374: #endif
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