Annotation of gcc/rtlanal.c, revision 1.1.1.5

1.1       root        1: /* Analyze RTL for C-Compiler
1.1.1.5 ! root        2:    Copyright (C) 1987, 88, 91, 92, 93, 1994 Free Software Foundation, Inc.
1.1       root        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: 
                     24: void note_stores ();
                     25: int reg_set_p ();
                     26: 
                     27: /* Bit flags that specify the machine subtype we are compiling for.
                     28:    Bits are tested using macros TARGET_... defined in the tm.h file
                     29:    and set by `-m...' switches.  Must be defined in rtlanal.c.  */
                     30: 
                     31: int target_flags;
                     32: 
                     33: /* Return 1 if the value of X is unstable
                     34:    (would be different at a different point in the program).
                     35:    The frame pointer, arg pointer, etc. are considered stable
                     36:    (within one function) and so is anything marked `unchanging'.  */
                     37: 
                     38: int
                     39: rtx_unstable_p (x)
                     40:      rtx x;
                     41: {
                     42:   register RTX_CODE code = GET_CODE (x);
                     43:   register int i;
                     44:   register char *fmt;
                     45: 
                     46:   if (code == MEM)
                     47:     return ! RTX_UNCHANGING_P (x);
                     48: 
                     49:   if (code == QUEUED)
                     50:     return 1;
                     51: 
                     52:   if (code == CONST || code == CONST_INT)
                     53:     return 0;
                     54: 
                     55:   if (code == REG)
                     56:     return ! (REGNO (x) == FRAME_POINTER_REGNUM
1.1.1.4   root       57:              || REGNO (x) == HARD_FRAME_POINTER_REGNUM
1.1       root       58:              || REGNO (x) == ARG_POINTER_REGNUM
                     59:              || RTX_UNCHANGING_P (x));
                     60: 
                     61:   fmt = GET_RTX_FORMAT (code);
                     62:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                     63:     if (fmt[i] == 'e')
                     64:       if (rtx_unstable_p (XEXP (x, i)))
                     65:        return 1;
                     66:   return 0;
                     67: }
                     68: 
                     69: /* Return 1 if X has a value that can vary even between two
                     70:    executions of the program.  0 means X can be compared reliably
                     71:    against certain constants or near-constants.
                     72:    The frame pointer and the arg pointer are considered constant.  */
                     73: 
                     74: int
                     75: rtx_varies_p (x)
                     76:      rtx x;
                     77: {
                     78:   register RTX_CODE code = GET_CODE (x);
                     79:   register int i;
                     80:   register char *fmt;
                     81: 
                     82:   switch (code)
                     83:     {
                     84:     case MEM:
                     85:     case QUEUED:
                     86:       return 1;
                     87: 
                     88:     case CONST:
                     89:     case CONST_INT:
                     90:     case CONST_DOUBLE:
                     91:     case SYMBOL_REF:
                     92:     case LABEL_REF:
                     93:       return 0;
                     94: 
                     95:     case REG:
                     96:       /* Note that we have to test for the actual rtx used for the frame
                     97:         and arg pointers and not just the register number in case we have
                     98:         eliminated the frame and/or arg pointer and are using it
                     99:         for pseudos.  */
1.1.1.4   root      100:       return ! (x == frame_pointer_rtx || x == hard_frame_pointer_rtx
                    101:                || x == arg_pointer_rtx);
1.1       root      102: 
                    103:     case LO_SUM:
                    104:       /* The operand 0 of a LO_SUM is considered constant
                    105:         (in fact is it related specifically to operand 1).  */
                    106:       return rtx_varies_p (XEXP (x, 1));
                    107:     }
                    108: 
                    109:   fmt = GET_RTX_FORMAT (code);
                    110:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                    111:     if (fmt[i] == 'e')
                    112:       if (rtx_varies_p (XEXP (x, i)))
                    113:        return 1;
                    114:   return 0;
                    115: }
                    116: 
                    117: /* Return 0 if the use of X as an address in a MEM can cause a trap.  */
                    118: 
                    119: int
                    120: rtx_addr_can_trap_p (x)
                    121:      register rtx x;
                    122: {
                    123:   register enum rtx_code code = GET_CODE (x);
                    124: 
                    125:   switch (code)
                    126:     {
                    127:     case SYMBOL_REF:
                    128:     case LABEL_REF:
                    129:       /* SYMBOL_REF is problematic due to the possible presence of
                    130:         a #pragma weak, but to say that loads from symbols can trap is
                    131:         *very* costly.  It's not at all clear what's best here.  For
                    132:         now, we ignore the impact of #pragma weak.  */
                    133:       return 0;
                    134: 
                    135:     case REG:
                    136:       /* As in rtx_varies_p, we have to use the actual rtx, not reg number.  */
1.1.1.4   root      137:       return ! (x == frame_pointer_rtx || x == hard_frame_pointer_rtx
                    138:                || x == stack_pointer_rtx || x == arg_pointer_rtx);
1.1       root      139: 
                    140:     case CONST:
                    141:       return rtx_addr_can_trap_p (XEXP (x, 0));
                    142: 
                    143:     case PLUS:
                    144:       /* An address is assumed not to trap if it is an address that can't
                    145:         trap plus a constant integer.  */
                    146:       return (rtx_addr_can_trap_p (XEXP (x, 0))
                    147:              || GET_CODE (XEXP (x, 1)) != CONST_INT);
                    148: 
                    149:     case LO_SUM:
                    150:       return rtx_addr_can_trap_p (XEXP (x, 1));
                    151:     }
                    152: 
                    153:   /* If it isn't one of the case above, it can cause a trap.  */
                    154:   return 1;
                    155: }
                    156: 
                    157: /* Return 1 if X refers to a memory location whose address 
                    158:    cannot be compared reliably with constant addresses,
                    159:    or if X refers to a BLKmode memory object.  */
                    160: 
                    161: int
                    162: rtx_addr_varies_p (x)
                    163:      rtx x;
                    164: {
                    165:   register enum rtx_code code;
                    166:   register int i;
                    167:   register char *fmt;
                    168: 
                    169:   if (x == 0)
                    170:     return 0;
                    171: 
                    172:   code = GET_CODE (x);
                    173:   if (code == MEM)
                    174:     return GET_MODE (x) == BLKmode || rtx_varies_p (XEXP (x, 0));
                    175: 
                    176:   fmt = GET_RTX_FORMAT (code);
                    177:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                    178:     if (fmt[i] == 'e')
                    179:       if (rtx_addr_varies_p (XEXP (x, i)))
                    180:        return 1;
                    181:   return 0;
                    182: }
                    183: 
                    184: /* Return the value of the integer term in X, if one is apparent;
                    185:    otherwise return 0.
                    186:    Only obvious integer terms are detected.
                    187:    This is used in cse.c with the `related_value' field.*/
                    188: 
1.1.1.2   root      189: HOST_WIDE_INT
1.1       root      190: get_integer_term (x)
                    191:      rtx x;
                    192: {
                    193:   if (GET_CODE (x) == CONST)
                    194:     x = XEXP (x, 0);
                    195: 
                    196:   if (GET_CODE (x) == MINUS
                    197:       && GET_CODE (XEXP (x, 1)) == CONST_INT)
                    198:     return - INTVAL (XEXP (x, 1));
                    199:   if (GET_CODE (x) == PLUS
                    200:       && GET_CODE (XEXP (x, 1)) == CONST_INT)
                    201:     return INTVAL (XEXP (x, 1));
                    202:   return 0;
                    203: }
                    204: 
                    205: /* If X is a constant, return the value sans apparent integer term;
                    206:    otherwise return 0.
                    207:    Only obvious integer terms are detected.  */
                    208: 
                    209: rtx
                    210: get_related_value (x)
                    211:      rtx x;
                    212: {
                    213:   if (GET_CODE (x) != CONST)
                    214:     return 0;
                    215:   x = XEXP (x, 0);
                    216:   if (GET_CODE (x) == PLUS
                    217:       && GET_CODE (XEXP (x, 1)) == CONST_INT)
                    218:     return XEXP (x, 0);
                    219:   else if (GET_CODE (x) == MINUS
                    220:           && GET_CODE (XEXP (x, 1)) == CONST_INT)
                    221:     return XEXP (x, 0);
                    222:   return 0;
                    223: }
                    224: 
                    225: /* Nonzero if register REG appears somewhere within IN.
                    226:    Also works if REG is not a register; in this case it checks
                    227:    for a subexpression of IN that is Lisp "equal" to REG.  */
                    228: 
                    229: int
                    230: reg_mentioned_p (reg, in)
                    231:      register rtx reg, in;
                    232: {
                    233:   register char *fmt;
                    234:   register int i;
                    235:   register enum rtx_code code;
                    236: 
                    237:   if (in == 0)
                    238:     return 0;
                    239: 
                    240:   if (reg == in)
                    241:     return 1;
                    242: 
                    243:   if (GET_CODE (in) == LABEL_REF)
                    244:     return reg == XEXP (in, 0);
                    245: 
                    246:   code = GET_CODE (in);
                    247: 
                    248:   switch (code)
                    249:     {
                    250:       /* Compare registers by number.  */
                    251:     case REG:
                    252:       return GET_CODE (reg) == REG && REGNO (in) == REGNO (reg);
                    253: 
                    254:       /* These codes have no constituent expressions
                    255:         and are unique.  */
                    256:     case SCRATCH:
                    257:     case CC0:
                    258:     case PC:
                    259:       return 0;
                    260: 
                    261:     case CONST_INT:
                    262:       return GET_CODE (reg) == CONST_INT && INTVAL (in) == INTVAL (reg);
                    263:       
                    264:     case CONST_DOUBLE:
                    265:       /* These are kept unique for a given value.  */
                    266:       return 0;
                    267:     }
                    268: 
                    269:   if (GET_CODE (reg) == code && rtx_equal_p (reg, in))
                    270:     return 1;
                    271: 
                    272:   fmt = GET_RTX_FORMAT (code);
                    273: 
                    274:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                    275:     {
                    276:       if (fmt[i] == 'E')
                    277:        {
                    278:          register int j;
                    279:          for (j = XVECLEN (in, i) - 1; j >= 0; j--)
                    280:            if (reg_mentioned_p (reg, XVECEXP (in, i, j)))
                    281:              return 1;
                    282:        }
                    283:       else if (fmt[i] == 'e'
                    284:               && reg_mentioned_p (reg, XEXP (in, i)))
                    285:        return 1;
                    286:     }
                    287:   return 0;
                    288: }
                    289: 
                    290: /* Return 1 if in between BEG and END, exclusive of BEG and END, there is
                    291:    no CODE_LABEL insn.  */
                    292: 
                    293: int
                    294: no_labels_between_p (beg, end)
                    295:      rtx beg, end;
                    296: {
                    297:   register rtx p;
                    298:   for (p = NEXT_INSN (beg); p != end; p = NEXT_INSN (p))
                    299:     if (GET_CODE (p) == CODE_LABEL)
                    300:       return 0;
                    301:   return 1;
                    302: }
                    303: 
                    304: /* Nonzero if register REG is used in an insn between
                    305:    FROM_INSN and TO_INSN (exclusive of those two).  */
                    306: 
                    307: int
                    308: reg_used_between_p (reg, from_insn, to_insn)
                    309:      rtx reg, from_insn, to_insn;
                    310: {
                    311:   register rtx insn;
                    312: 
                    313:   if (from_insn == to_insn)
                    314:     return 0;
                    315: 
                    316:   for (insn = NEXT_INSN (from_insn); insn != to_insn; insn = NEXT_INSN (insn))
                    317:     if (GET_RTX_CLASS (GET_CODE (insn)) == 'i'
1.1.1.5 ! root      318:        && (reg_overlap_mentioned_p (reg, PATTERN (insn))
        !           319:           || (GET_CODE (insn) == CALL_INSN
        !           320:              && (find_reg_fusage (insn, USE, reg)
        !           321:                  || find_reg_fusage (insn, CLOBBER, reg)))))
1.1       root      322:       return 1;
                    323:   return 0;
                    324: }
                    325: 
                    326: /* Nonzero if the old value of X, a register, is referenced in BODY.  If X
                    327:    is entirely replaced by a new value and the only use is as a SET_DEST,
                    328:    we do not consider it a reference.  */
                    329: 
                    330: int
                    331: reg_referenced_p (x, body)
                    332:      rtx x;
                    333:      rtx body;
                    334: {
                    335:   int i;
                    336: 
                    337:   switch (GET_CODE (body))
                    338:     {
                    339:     case SET:
                    340:       if (reg_overlap_mentioned_p (x, SET_SRC (body)))
                    341:        return 1;
                    342: 
                    343:       /* If the destination is anything other than CC0, PC, a REG or a SUBREG
                    344:         of a REG that occupies all of the REG, the insn references X if
                    345:         it is mentioned in the destination.  */
                    346:       if (GET_CODE (SET_DEST (body)) != CC0
                    347:          && GET_CODE (SET_DEST (body)) != PC
                    348:          && GET_CODE (SET_DEST (body)) != REG
                    349:          && ! (GET_CODE (SET_DEST (body)) == SUBREG
                    350:                && GET_CODE (SUBREG_REG (SET_DEST (body))) == REG
                    351:                && (((GET_MODE_SIZE (GET_MODE (SUBREG_REG (SET_DEST (body))))
                    352:                      + (UNITS_PER_WORD - 1)) / UNITS_PER_WORD)
                    353:                    == ((GET_MODE_SIZE (GET_MODE (SET_DEST (body)))
                    354:                         + (UNITS_PER_WORD - 1)) / UNITS_PER_WORD)))
                    355:          && reg_overlap_mentioned_p (x, SET_DEST (body)))
                    356:        return 1;
                    357:       break;
                    358: 
                    359:     case ASM_OPERANDS:
                    360:       for (i = ASM_OPERANDS_INPUT_LENGTH (body) - 1; i >= 0; i--)
                    361:        if (reg_overlap_mentioned_p (x, ASM_OPERANDS_INPUT (body, i)))
                    362:          return 1;
                    363:       break;
                    364: 
                    365:     case CALL:
                    366:     case USE:
                    367:       return reg_overlap_mentioned_p (x, body);
                    368: 
                    369:     case TRAP_IF:
                    370:       return reg_overlap_mentioned_p (x, TRAP_CONDITION (body));
                    371: 
                    372:     case UNSPEC:
                    373:     case UNSPEC_VOLATILE:
                    374:     case PARALLEL:
                    375:       for (i = XVECLEN (body, 0) - 1; i >= 0; i--)
                    376:        if (reg_referenced_p (x, XVECEXP (body, 0, i)))
                    377:          return 1;
                    378:       break;
                    379:     }
                    380: 
                    381:   return 0;
                    382: }
                    383: 
                    384: /* Nonzero if register REG is referenced in an insn between
                    385:    FROM_INSN and TO_INSN (exclusive of those two).  Sets of REG do
                    386:    not count. */
                    387: 
                    388: int
                    389: reg_referenced_between_p (reg, from_insn, to_insn)
                    390:      rtx reg, from_insn, to_insn;
                    391: {
                    392:   register rtx insn;
                    393: 
                    394:   if (from_insn == to_insn)
                    395:     return 0;
                    396: 
                    397:   for (insn = NEXT_INSN (from_insn); insn != to_insn; insn = NEXT_INSN (insn))
                    398:     if (GET_RTX_CLASS (GET_CODE (insn)) == 'i'
1.1.1.5 ! root      399:        && (reg_referenced_p (reg, PATTERN (insn))
        !           400:           || (GET_CODE (insn) == CALL_INSN
        !           401:              && find_reg_fusage (insn, USE, reg))))
1.1       root      402:       return 1;
                    403:   return 0;
                    404: }
                    405: 
                    406: /* Nonzero if register REG is set or clobbered in an insn between
                    407:    FROM_INSN and TO_INSN (exclusive of those two).  */
                    408: 
                    409: int
                    410: reg_set_between_p (reg, from_insn, to_insn)
                    411:      rtx reg, from_insn, to_insn;
                    412: {
                    413:   register rtx insn;
                    414: 
                    415:   if (from_insn == to_insn)
                    416:     return 0;
                    417: 
                    418:   for (insn = NEXT_INSN (from_insn); insn != to_insn; insn = NEXT_INSN (insn))
                    419:     if (GET_RTX_CLASS (GET_CODE (insn)) == 'i'
                    420:        && reg_set_p (reg, insn))
                    421:       return 1;
                    422:   return 0;
                    423: }
                    424: 
                    425: /* Internals of reg_set_between_p.  */
                    426: 
                    427: static rtx reg_set_reg;
                    428: static int reg_set_flag;
                    429: 
                    430: void
                    431: reg_set_p_1 (x)
                    432:      rtx x;
                    433: {
                    434:   /* We don't want to return 1 if X is a MEM that contains a register
                    435:      within REG_SET_REG.  */
                    436: 
                    437:   if ((GET_CODE (x) != MEM)
                    438:       && reg_overlap_mentioned_p (reg_set_reg, x))
                    439:     reg_set_flag = 1;
                    440: }
                    441: 
                    442: int
                    443: reg_set_p (reg, insn)
                    444:      rtx reg, insn;
                    445: {
                    446:   rtx body = insn;
                    447: 
                    448:   /* We can be passed an insn or part of one.  If we are passed an insn,
                    449:      check if a side-effect of the insn clobbers REG.  */
                    450:   if (GET_RTX_CLASS (GET_CODE (insn)) == 'i')
                    451:     {
                    452:       if (FIND_REG_INC_NOTE (insn, reg)
                    453:          || (GET_CODE (insn) == CALL_INSN
                    454:              /* We'd like to test call_used_regs here, but rtlanal.c can't
                    455:                 reference that variable due to its use in genattrtab.  So
1.1.1.5 ! root      456:                 we'll just be more conservative.
        !           457: 
        !           458:                 ??? Unless we could ensure that the CALL_INSN_FUNCTION_USAGE
        !           459:                 information holds all clobbered registers.  */
1.1       root      460:              && ((GET_CODE (reg) == REG
                    461:                   && REGNO (reg) < FIRST_PSEUDO_REGISTER)
1.1.1.5 ! root      462:                  || GET_CODE (reg) == MEM
        !           463:                  || find_reg_fusage (insn, CLOBBER, reg))))
1.1       root      464:        return 1;
                    465: 
                    466:       body = PATTERN (insn);
                    467:     }
                    468: 
                    469:   reg_set_reg = reg;
                    470:   reg_set_flag = 0;
                    471:   note_stores (body, reg_set_p_1);
                    472:   return reg_set_flag;
                    473: }
                    474: 
                    475: /* Similar to reg_set_between_p, but check all registers in X.  Return 0
                    476:    only if none of them are modified between START and END.  Return 1 if
                    477:    X contains a MEM; this routine does not perform any memory aliasing.  */
                    478: 
                    479: int
                    480: modified_between_p (x, start, end)
                    481:      rtx x;
                    482:      rtx start, end;
                    483: {
                    484:   enum rtx_code code = GET_CODE (x);
                    485:   char *fmt;
1.1.1.4   root      486:   int i, j;
1.1       root      487: 
                    488:   switch (code)
                    489:     {
                    490:     case CONST_INT:
                    491:     case CONST_DOUBLE:
                    492:     case CONST:
                    493:     case SYMBOL_REF:
                    494:     case LABEL_REF:
                    495:       return 0;
                    496: 
                    497:     case PC:
                    498:     case CC0:
                    499:       return 1;
                    500: 
                    501:     case MEM:
                    502:       /* If the memory is not constant, assume it is modified.  If it is
                    503:         constant, we still have to check the address.  */
                    504:       if (! RTX_UNCHANGING_P (x))
                    505:        return 1;
                    506:       break;
                    507: 
                    508:     case REG:
                    509:       return reg_set_between_p (x, start, end);
                    510:     }
                    511: 
                    512:   fmt = GET_RTX_FORMAT (code);
                    513:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
1.1.1.4   root      514:     {
                    515:       if (fmt[i] == 'e' && modified_between_p (XEXP (x, i), start, end))
                    516:        return 1;
                    517: 
                    518:       if (fmt[i] == 'E')
                    519:        for (j = XVECLEN (x, i) - 1; j >= 0; j--)
                    520:          if (modified_between_p (XVECEXP (x, i, j), start, end))
                    521:            return 1;
                    522:     }
                    523: 
                    524:   return 0;
                    525: }
                    526: 
                    527: /* Similar to reg_set_p, but check all registers in X.  Return 0 only if none
                    528:    of them are modified in INSN.  Return 1 if X contains a MEM; this routine
                    529:    does not perform any memory aliasing.  */
                    530: 
                    531: int
                    532: modified_in_p (x, insn)
                    533:      rtx x;
                    534:      rtx insn;
                    535: {
                    536:   enum rtx_code code = GET_CODE (x);
                    537:   char *fmt;
                    538:   int i, j;
                    539: 
                    540:   switch (code)
                    541:     {
                    542:     case CONST_INT:
                    543:     case CONST_DOUBLE:
                    544:     case CONST:
                    545:     case SYMBOL_REF:
                    546:     case LABEL_REF:
                    547:       return 0;
                    548: 
                    549:     case PC:
                    550:     case CC0:
1.1       root      551:       return 1;
                    552: 
1.1.1.4   root      553:     case MEM:
                    554:       /* If the memory is not constant, assume it is modified.  If it is
                    555:         constant, we still have to check the address.  */
                    556:       if (! RTX_UNCHANGING_P (x))
                    557:        return 1;
                    558:       break;
                    559: 
                    560:     case REG:
                    561:       return reg_set_p (x, insn);
                    562:     }
                    563: 
                    564:   fmt = GET_RTX_FORMAT (code);
                    565:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                    566:     {
                    567:       if (fmt[i] == 'e' && modified_in_p (XEXP (x, i), insn))
                    568:        return 1;
                    569: 
                    570:       if (fmt[i] == 'E')
                    571:        for (j = XVECLEN (x, i) - 1; j >= 0; j--)
                    572:          if (modified_in_p (XVECEXP (x, i, j), insn))
                    573:            return 1;
                    574:     }
                    575: 
1.1       root      576:   return 0;
                    577: }
                    578: 
                    579: /* Given an INSN, return a SET expression if this insn has only a single SET.
                    580:    It may also have CLOBBERs, USEs, or SET whose output
                    581:    will not be used, which we ignore.  */
                    582: 
                    583: rtx
                    584: single_set (insn)
                    585:      rtx insn;
                    586: {
                    587:   rtx set;
                    588:   int i;
                    589:   
                    590:   if (GET_RTX_CLASS (GET_CODE (insn)) != 'i')
                    591:     return 0;
                    592: 
                    593:   if (GET_CODE (PATTERN (insn)) == SET)
                    594:     return PATTERN (insn);
                    595:   
                    596:   else if (GET_CODE (PATTERN (insn)) == PARALLEL)
                    597:     {
                    598:       for (i = 0, set = 0; i < XVECLEN (PATTERN (insn), 0); i++)
                    599:        if (GET_CODE (XVECEXP (PATTERN (insn), 0, i)) == SET
1.1.1.2   root      600:            && (! find_reg_note (insn, REG_UNUSED,
                    601:                                 SET_DEST (XVECEXP (PATTERN (insn), 0, i)))
                    602:                || side_effects_p (XVECEXP (PATTERN (insn), 0, i))))
1.1       root      603:          {
                    604:            if (set)
                    605:              return 0;
                    606:            else
                    607:              set = XVECEXP (PATTERN (insn), 0, i);
                    608:          }
                    609:       return set;
                    610:     }
                    611:   
                    612:   return 0;
                    613: }
                    614: 
                    615: /* Return the last thing that X was assigned from before *PINSN.  Verify that
                    616:    the object is not modified up to VALID_TO.  If it was, if we hit
                    617:    a partial assignment to X, or hit a CODE_LABEL first, return X.  If we
                    618:    found an assignment, update *PINSN to point to it.  */
                    619: 
                    620: rtx
                    621: find_last_value (x, pinsn, valid_to)
                    622:      rtx x;
                    623:      rtx *pinsn;
                    624:      rtx valid_to;
                    625: {
                    626:   rtx p;
                    627: 
                    628:   for (p = PREV_INSN (*pinsn); p && GET_CODE (p) != CODE_LABEL;
                    629:        p = PREV_INSN (p))
                    630:     if (GET_RTX_CLASS (GET_CODE (p)) == 'i')
                    631:       {
                    632:        rtx set = single_set (p);
1.1.1.2   root      633:        rtx note = find_reg_note (p, REG_EQUAL, NULL_RTX);
1.1       root      634: 
                    635:        if (set && rtx_equal_p (x, SET_DEST (set)))
                    636:          {
                    637:            rtx src = SET_SRC (set);
                    638: 
                    639:            if (note && GET_CODE (XEXP (note, 0)) != EXPR_LIST)
                    640:              src = XEXP (note, 0);
                    641: 
                    642:            if (! modified_between_p (src, PREV_INSN (p), valid_to)
                    643:                /* Reject hard registers because we don't usually want
                    644:                   to use them; we'd rather use a pseudo.  */
                    645:                && ! (GET_CODE (src) == REG
                    646:                      && REGNO (src) < FIRST_PSEUDO_REGISTER))
                    647:              {
                    648:                *pinsn = p;
                    649:                return src;
                    650:              }
                    651:          }
                    652:          
                    653:        /* If set in non-simple way, we don't have a value.  */
                    654:        if (reg_set_p (x, p))
                    655:          break;
                    656:       }
                    657: 
                    658:   return x;
                    659: }     
                    660: 
                    661: /* Return nonzero if register in range [REGNO, ENDREGNO)
                    662:    appears either explicitly or implicitly in X
                    663:    other than being stored into.
                    664: 
                    665:    References contained within the substructure at LOC do not count.
                    666:    LOC may be zero, meaning don't ignore anything.  */
                    667: 
                    668: int
                    669: refers_to_regno_p (regno, endregno, x, loc)
                    670:      int regno, endregno;
                    671:      rtx x;
                    672:      rtx *loc;
                    673: {
                    674:   register int i;
                    675:   register RTX_CODE code;
                    676:   register char *fmt;
                    677: 
                    678:  repeat:
                    679:   /* The contents of a REG_NONNEG note is always zero, so we must come here
                    680:      upon repeat in case the last REG_NOTE is a REG_NONNEG note.  */
                    681:   if (x == 0)
                    682:     return 0;
                    683: 
                    684:   code = GET_CODE (x);
                    685: 
                    686:   switch (code)
                    687:     {
                    688:     case REG:
                    689:       i = REGNO (x);
1.1.1.4   root      690: 
                    691:       /* If we modifying the stack, frame, or argument pointer, it will
                    692:         clobber a virtual register.  In fact, we could be more precise,
                    693:         but it isn't worth it.  */
                    694:       if ((i == STACK_POINTER_REGNUM
                    695: #if FRAME_POINTER_REGNUM != ARG_POINTER_REGNUM
                    696:           || i == ARG_POINTER_REGNUM
                    697: #endif
                    698:           || i == FRAME_POINTER_REGNUM)
                    699:          && regno >= FIRST_VIRTUAL_REGISTER && regno <= LAST_VIRTUAL_REGISTER)
                    700:        return 1;
                    701: 
1.1       root      702:       return (endregno > i
                    703:              && regno < i + (i < FIRST_PSEUDO_REGISTER 
                    704:                              ? HARD_REGNO_NREGS (i, GET_MODE (x))
                    705:                              : 1));
                    706: 
                    707:     case SUBREG:
                    708:       /* If this is a SUBREG of a hard reg, we can see exactly which
                    709:         registers are being modified.  Otherwise, handle normally.  */
                    710:       if (GET_CODE (SUBREG_REG (x)) == REG
                    711:          && REGNO (SUBREG_REG (x)) < FIRST_PSEUDO_REGISTER)
                    712:        {
                    713:          int inner_regno = REGNO (SUBREG_REG (x)) + SUBREG_WORD (x);
                    714:          int inner_endregno
                    715:            = inner_regno + (inner_regno < FIRST_PSEUDO_REGISTER
                    716:                             ? HARD_REGNO_NREGS (regno, GET_MODE (x)) : 1);
                    717: 
                    718:          return endregno > inner_regno && regno < inner_endregno;
                    719:        }
                    720:       break;
                    721: 
                    722:     case CLOBBER:
                    723:     case SET:
                    724:       if (&SET_DEST (x) != loc
                    725:          /* Note setting a SUBREG counts as referring to the REG it is in for
                    726:             a pseudo but not for hard registers since we can
                    727:             treat each word individually.  */
                    728:          && ((GET_CODE (SET_DEST (x)) == SUBREG
                    729:               && loc != &SUBREG_REG (SET_DEST (x))
                    730:               && GET_CODE (SUBREG_REG (SET_DEST (x))) == REG
                    731:               && REGNO (SUBREG_REG (SET_DEST (x))) >= FIRST_PSEUDO_REGISTER
                    732:               && refers_to_regno_p (regno, endregno,
                    733:                                     SUBREG_REG (SET_DEST (x)), loc))
                    734:              || (GET_CODE (SET_DEST (x)) != REG
                    735:                  && refers_to_regno_p (regno, endregno, SET_DEST (x), loc))))
                    736:        return 1;
                    737: 
                    738:       if (code == CLOBBER || loc == &SET_SRC (x))
                    739:        return 0;
                    740:       x = SET_SRC (x);
                    741:       goto repeat;
                    742:     }
                    743: 
                    744:   /* X does not match, so try its subexpressions.  */
                    745: 
                    746:   fmt = GET_RTX_FORMAT (code);
                    747:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                    748:     {
                    749:       if (fmt[i] == 'e' && loc != &XEXP (x, i))
                    750:        {
                    751:          if (i == 0)
                    752:            {
                    753:              x = XEXP (x, 0);
                    754:              goto repeat;
                    755:            }
                    756:          else
                    757:            if (refers_to_regno_p (regno, endregno, XEXP (x, i), loc))
                    758:              return 1;
                    759:        }
                    760:       else if (fmt[i] == 'E')
                    761:        {
                    762:          register int j;
                    763:          for (j = XVECLEN (x, i) - 1; j >=0; j--)
                    764:            if (loc != &XVECEXP (x, i, j)
                    765:                && refers_to_regno_p (regno, endregno, XVECEXP (x, i, j), loc))
                    766:              return 1;
                    767:        }
                    768:     }
                    769:   return 0;
                    770: }
                    771: 
                    772: /* Nonzero if modifying X will affect IN.  If X is a register or a SUBREG,
                    773:    we check if any register number in X conflicts with the relevant register
                    774:    numbers.  If X is a constant, return 0.  If X is a MEM, return 1 iff IN
                    775:    contains a MEM (we don't bother checking for memory addresses that can't
                    776:    conflict because we expect this to be a rare case.  */
                    777: 
                    778: int
                    779: reg_overlap_mentioned_p (x, in)
                    780:      rtx x, in;
                    781: {
                    782:   int regno, endregno;
                    783: 
                    784:   if (GET_CODE (x) == SUBREG)
                    785:     {
                    786:       regno = REGNO (SUBREG_REG (x));
                    787:       if (regno < FIRST_PSEUDO_REGISTER)
                    788:        regno += SUBREG_WORD (x);
                    789:     }
                    790:   else if (GET_CODE (x) == REG)
                    791:     regno = REGNO (x);
                    792:   else if (CONSTANT_P (x))
                    793:     return 0;
                    794:   else if (GET_CODE (x) == MEM)
                    795:     {
                    796:       char *fmt;
                    797:       int i;
                    798: 
                    799:       if (GET_CODE (in) == MEM)
                    800:        return 1;
                    801: 
                    802:       fmt = GET_RTX_FORMAT (GET_CODE (in));
                    803: 
                    804:       for (i = GET_RTX_LENGTH (GET_CODE (in)) - 1; i >= 0; i--)
                    805:        if (fmt[i] == 'e' && reg_overlap_mentioned_p (x, XEXP (in, i)))
                    806:          return 1;
                    807: 
                    808:       return 0;
                    809:     }
                    810:   else if (GET_CODE (x) == SCRATCH || GET_CODE (x) == PC
                    811:           || GET_CODE (x) == CC0)
                    812:     return reg_mentioned_p (x, in);
                    813:   else
                    814:     abort ();
                    815: 
                    816:   endregno = regno + (regno < FIRST_PSEUDO_REGISTER
                    817:                      ? HARD_REGNO_NREGS (regno, GET_MODE (x)) : 1);
                    818: 
1.1.1.2   root      819:   return refers_to_regno_p (regno, endregno, in, NULL_PTR);
1.1       root      820: }
                    821: 
                    822: /* Used for communications between the next few functions.  */
                    823: 
                    824: static int reg_set_last_unknown;
                    825: static rtx reg_set_last_value;
                    826: static int reg_set_last_first_regno, reg_set_last_last_regno;
                    827: 
                    828: /* Called via note_stores from reg_set_last.  */
                    829: 
                    830: static void
                    831: reg_set_last_1 (x, pat)
                    832:      rtx x;
                    833:      rtx pat;
                    834: {
                    835:   int first, last;
                    836: 
                    837:   /* If X is not a register, or is not one in the range we care
                    838:      about, ignore.  */
                    839:   if (GET_CODE (x) != REG)
                    840:     return;
                    841: 
                    842:   first = REGNO (x);
                    843:   last = first + (first < FIRST_PSEUDO_REGISTER
                    844:                  ? HARD_REGNO_NREGS (first, GET_MODE (x)) : 1);
                    845: 
                    846:   if (first >= reg_set_last_last_regno
                    847:       || last <= reg_set_last_first_regno)
                    848:     return;
                    849: 
                    850:   /* If this is a CLOBBER or is some complex LHS, or doesn't modify
                    851:      exactly the registers we care about, show we don't know the value.  */
                    852:   if (GET_CODE (pat) == CLOBBER || SET_DEST (pat) != x
                    853:       || first != reg_set_last_first_regno
                    854:       || last != reg_set_last_last_regno)
                    855:     reg_set_last_unknown = 1;
                    856:   else
                    857:     reg_set_last_value = SET_SRC (pat);
                    858: }
                    859: 
                    860: /* Return the last value to which REG was set prior to INSN.  If we can't
                    861:    find it easily, return 0.
                    862: 
1.1.1.2   root      863:    We only return a REG, SUBREG, or constant because it is too hard to
                    864:    check if a MEM remains unchanged.  */
1.1       root      865: 
                    866: rtx
                    867: reg_set_last (x, insn)
                    868:      rtx x;
                    869:      rtx insn;
                    870: {
                    871:   rtx orig_insn = insn;
                    872: 
                    873:   reg_set_last_first_regno = REGNO (x);
                    874: 
                    875:   reg_set_last_last_regno
                    876:     = reg_set_last_first_regno
                    877:       + (reg_set_last_first_regno < FIRST_PSEUDO_REGISTER
                    878:         ? HARD_REGNO_NREGS (reg_set_last_first_regno, GET_MODE (x)) : 1);
                    879: 
                    880:   reg_set_last_unknown = 0;
                    881:   reg_set_last_value = 0;
                    882: 
                    883:   /* Scan backwards until reg_set_last_1 changed one of the above flags.
                    884:      Stop when we reach a label or X is a hard reg and we reach a
                    885:      CALL_INSN (if reg_set_last_last_regno is a hard reg).
                    886: 
                    887:      If we find a set of X, ensure that its SET_SRC remains unchanged.  */
                    888: 
1.1.1.3   root      889:   /* We compare with <= here, because reg_set_last_last_regno
                    890:      is actually the number of the first reg *not* in X.  */
1.1       root      891:   for (;
                    892:        insn && GET_CODE (insn) != CODE_LABEL
                    893:        && ! (GET_CODE (insn) == CALL_INSN
                    894:             && reg_set_last_last_regno <= FIRST_PSEUDO_REGISTER);
                    895:        insn = PREV_INSN (insn))
                    896:     if (GET_RTX_CLASS (GET_CODE (insn)) == 'i')
                    897:       {
                    898:        note_stores (PATTERN (insn), reg_set_last_1);
                    899:        if (reg_set_last_unknown)
                    900:          return 0;
                    901:        else if (reg_set_last_value)
                    902:          {
                    903:            if (CONSTANT_P (reg_set_last_value)
1.1.1.2   root      904:                || ((GET_CODE (reg_set_last_value) == REG
                    905:                     || GET_CODE (reg_set_last_value) == SUBREG)
1.1       root      906:                    && ! reg_set_between_p (reg_set_last_value,
                    907:                                            NEXT_INSN (insn), orig_insn)))
                    908:              return reg_set_last_value;
                    909:            else
                    910:              return 0;
                    911:          }
                    912:       }
                    913: 
                    914:   return 0;
                    915: }
                    916: 
                    917: /* This is 1 until after reload pass.  */
                    918: int rtx_equal_function_value_matters;
                    919: 
                    920: /* Return 1 if X and Y are identical-looking rtx's.
                    921:    This is the Lisp function EQUAL for rtx arguments.  */
                    922: 
                    923: int
                    924: rtx_equal_p (x, y)
                    925:      rtx x, y;
                    926: {
                    927:   register int i;
                    928:   register int j;
                    929:   register enum rtx_code code;
                    930:   register char *fmt;
                    931: 
                    932:   if (x == y)
                    933:     return 1;
                    934:   if (x == 0 || y == 0)
                    935:     return 0;
                    936: 
                    937:   code = GET_CODE (x);
                    938:   /* Rtx's of different codes cannot be equal.  */
                    939:   if (code != GET_CODE (y))
                    940:     return 0;
                    941: 
                    942:   /* (MULT:SI x y) and (MULT:HI x y) are NOT equivalent.
                    943:      (REG:SI x) and (REG:HI x) are NOT equivalent.  */
                    944: 
                    945:   if (GET_MODE (x) != GET_MODE (y))
                    946:     return 0;
                    947: 
                    948:   /* REG, LABEL_REF, and SYMBOL_REF can be compared nonrecursively.  */
                    949: 
                    950:   if (code == REG)
                    951:     /* Until rtl generation is complete, don't consider a reference to the
                    952:        return register of the current function the same as the return from a
                    953:        called function.  This eases the job of function integration.  Once the
                    954:        distinction is no longer needed, they can be considered equivalent.  */
                    955:     return (REGNO (x) == REGNO (y)
                    956:            && (! rtx_equal_function_value_matters
                    957:                || REG_FUNCTION_VALUE_P (x) == REG_FUNCTION_VALUE_P (y)));
                    958:   else if (code == LABEL_REF)
                    959:     return XEXP (x, 0) == XEXP (y, 0);
                    960:   else if (code == SYMBOL_REF)
                    961:     return XSTR (x, 0) == XSTR (y, 0);
                    962:   else if (code == SCRATCH || code == CONST_DOUBLE)
                    963:     return 0;
                    964: 
                    965:   /* Compare the elements.  If any pair of corresponding elements
                    966:      fail to match, return 0 for the whole things.  */
                    967: 
                    968:   fmt = GET_RTX_FORMAT (code);
                    969:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                    970:     {
                    971:       switch (fmt[i])
                    972:        {
1.1.1.2   root      973:        case 'w':
                    974:          if (XWINT (x, i) != XWINT (y, i))
                    975:            return 0;
                    976:          break;
                    977: 
1.1       root      978:        case 'n':
                    979:        case 'i':
                    980:          if (XINT (x, i) != XINT (y, i))
                    981:            return 0;
                    982:          break;
                    983: 
                    984:        case 'V':
                    985:        case 'E':
                    986:          /* Two vectors must have the same length.  */
                    987:          if (XVECLEN (x, i) != XVECLEN (y, i))
                    988:            return 0;
                    989: 
                    990:          /* And the corresponding elements must match.  */
                    991:          for (j = 0; j < XVECLEN (x, i); j++)
                    992:            if (rtx_equal_p (XVECEXP (x, i, j), XVECEXP (y, i, j)) == 0)
                    993:              return 0;
                    994:          break;
                    995: 
                    996:        case 'e':
                    997:          if (rtx_equal_p (XEXP (x, i), XEXP (y, i)) == 0)
                    998:            return 0;
                    999:          break;
                   1000: 
                   1001:        case 'S':
                   1002:        case 's':
                   1003:          if (strcmp (XSTR (x, i), XSTR (y, i)))
                   1004:            return 0;
                   1005:          break;
                   1006: 
                   1007:        case 'u':
                   1008:          /* These are just backpointers, so they don't matter.  */
                   1009:          break;
                   1010: 
                   1011:        case '0':
                   1012:          break;
                   1013: 
                   1014:          /* It is believed that rtx's at this level will never
                   1015:             contain anything but integers and other rtx's,
                   1016:             except for within LABEL_REFs and SYMBOL_REFs.  */
                   1017:        default:
                   1018:          abort ();
                   1019:        }
                   1020:     }
                   1021:   return 1;
                   1022: }
                   1023: 
                   1024: /* Call FUN on each register or MEM that is stored into or clobbered by X.
                   1025:    (X would be the pattern of an insn).
                   1026:    FUN receives two arguments:
                   1027:      the REG, MEM, CC0 or PC being stored in or clobbered,
                   1028:      the SET or CLOBBER rtx that does the store.
                   1029: 
                   1030:   If the item being stored in or clobbered is a SUBREG of a hard register,
                   1031:   the SUBREG will be passed.  */
                   1032:      
                   1033: void
                   1034: note_stores (x, fun)
                   1035:      register rtx x;
                   1036:      void (*fun) ();
                   1037: {
                   1038:   if ((GET_CODE (x) == SET || GET_CODE (x) == CLOBBER))
                   1039:     {
                   1040:       register rtx dest = SET_DEST (x);
                   1041:       while ((GET_CODE (dest) == SUBREG
                   1042:              && (GET_CODE (SUBREG_REG (dest)) != REG
                   1043:                  || REGNO (SUBREG_REG (dest)) >= FIRST_PSEUDO_REGISTER))
                   1044:             || GET_CODE (dest) == ZERO_EXTRACT
                   1045:             || GET_CODE (dest) == SIGN_EXTRACT
                   1046:             || GET_CODE (dest) == STRICT_LOW_PART)
                   1047:        dest = XEXP (dest, 0);
                   1048:       (*fun) (dest, x);
                   1049:     }
                   1050:   else if (GET_CODE (x) == PARALLEL)
                   1051:     {
                   1052:       register int i;
                   1053:       for (i = XVECLEN (x, 0) - 1; i >= 0; i--)
                   1054:        {
                   1055:          register rtx y = XVECEXP (x, 0, i);
                   1056:          if (GET_CODE (y) == SET || GET_CODE (y) == CLOBBER)
                   1057:            {
                   1058:              register rtx dest = SET_DEST (y);
                   1059:              while ((GET_CODE (dest) == SUBREG
                   1060:                      && (GET_CODE (SUBREG_REG (dest)) != REG
                   1061:                          || (REGNO (SUBREG_REG (dest))
                   1062:                              >= FIRST_PSEUDO_REGISTER)))
                   1063:                     || GET_CODE (dest) == ZERO_EXTRACT
                   1064:                     || GET_CODE (dest) == SIGN_EXTRACT
                   1065:                     || GET_CODE (dest) == STRICT_LOW_PART)
                   1066:                dest = XEXP (dest, 0);
                   1067:              (*fun) (dest, y);
                   1068:            }
                   1069:        }
                   1070:     }
                   1071: }
                   1072: 
                   1073: /* Return nonzero if X's old contents don't survive after INSN.
                   1074:    This will be true if X is (cc0) or if X is a register and
                   1075:    X dies in INSN or because INSN entirely sets X.
                   1076: 
                   1077:    "Entirely set" means set directly and not through a SUBREG,
                   1078:    ZERO_EXTRACT or SIGN_EXTRACT, so no trace of the old contents remains.
                   1079:    Likewise, REG_INC does not count.
                   1080: 
                   1081:    REG may be a hard or pseudo reg.  Renumbering is not taken into account,
                   1082:    but for this use that makes no difference, since regs don't overlap
                   1083:    during their lifetimes.  Therefore, this function may be used
                   1084:    at any time after deaths have been computed (in flow.c).
                   1085: 
                   1086:    If REG is a hard reg that occupies multiple machine registers, this
                   1087:    function will only return 1 if each of those registers will be replaced
                   1088:    by INSN.  */
                   1089: 
                   1090: int
                   1091: dead_or_set_p (insn, x)
                   1092:      rtx insn;
                   1093:      rtx x;
                   1094: {
                   1095:   register int regno, last_regno;
                   1096:   register int i;
                   1097: 
                   1098:   /* Can't use cc0_rtx below since this file is used by genattrtab.c.  */
                   1099:   if (GET_CODE (x) == CC0)
                   1100:     return 1;
                   1101: 
                   1102:   if (GET_CODE (x) != REG)
                   1103:     abort ();
                   1104: 
                   1105:   regno = REGNO (x);
                   1106:   last_regno = (regno >= FIRST_PSEUDO_REGISTER ? regno
                   1107:                : regno + HARD_REGNO_NREGS (regno, GET_MODE (x)) - 1);
                   1108: 
                   1109:   for (i = regno; i <= last_regno; i++)
                   1110:     if (! dead_or_set_regno_p (insn, i))
                   1111:       return 0;
                   1112: 
                   1113:   return 1;
                   1114: }
                   1115: 
                   1116: /* Utility function for dead_or_set_p to check an individual register.  Also
                   1117:    called from flow.c.  */
                   1118: 
                   1119: int
                   1120: dead_or_set_regno_p (insn, test_regno)
                   1121:      rtx insn;
                   1122:      int test_regno;
                   1123: {
                   1124:   int regno, endregno;
                   1125:   rtx link;
                   1126: 
                   1127:   /* See if there is a death note for something that includes TEST_REGNO.  */
                   1128:   for (link = REG_NOTES (insn); link; link = XEXP (link, 1))
                   1129:     {
                   1130:       if (REG_NOTE_KIND (link) != REG_DEAD || GET_CODE (XEXP (link, 0)) != REG)
                   1131:        continue;
                   1132: 
                   1133:       regno = REGNO (XEXP (link, 0));
                   1134:       endregno = (regno >= FIRST_PSEUDO_REGISTER ? regno + 1
                   1135:                  : regno + HARD_REGNO_NREGS (regno,
                   1136:                                              GET_MODE (XEXP (link, 0))));
                   1137: 
                   1138:       if (test_regno >= regno && test_regno < endregno)
                   1139:        return 1;
                   1140:     }
                   1141: 
1.1.1.5 ! root     1142:   if (GET_CODE (insn) == CALL_INSN
        !          1143:       && find_regno_fusage (insn, CLOBBER, test_regno))
        !          1144:     return 1;
        !          1145: 
1.1       root     1146:   if (GET_CODE (PATTERN (insn)) == SET)
                   1147:     {
                   1148:       rtx dest = SET_DEST (PATTERN (insn));
                   1149:  
                   1150:       /* A value is totally replaced if it is the destination or the
                   1151:         destination is a SUBREG of REGNO that does not change the number of
                   1152:         words in it.  */
                   1153:      if (GET_CODE (dest) == SUBREG
                   1154:          && (((GET_MODE_SIZE (GET_MODE (dest))
                   1155:                + UNITS_PER_WORD - 1) / UNITS_PER_WORD)
                   1156:              == ((GET_MODE_SIZE (GET_MODE (SUBREG_REG (dest)))
                   1157:                   + UNITS_PER_WORD - 1) / UNITS_PER_WORD)))
                   1158:        dest = SUBREG_REG (dest);
                   1159: 
                   1160:       if (GET_CODE (dest) != REG)
                   1161:        return 0;
                   1162: 
                   1163:       regno = REGNO (dest);
                   1164:       endregno = (regno >= FIRST_PSEUDO_REGISTER ? regno + 1
                   1165:                  : regno + HARD_REGNO_NREGS (regno, GET_MODE (dest)));
                   1166: 
                   1167:       return (test_regno >= regno && test_regno < endregno);
                   1168:     }
                   1169:   else if (GET_CODE (PATTERN (insn)) == PARALLEL)
                   1170:     {
                   1171:       register int i;
                   1172: 
                   1173:       for (i = XVECLEN (PATTERN (insn), 0) - 1; i >= 0; i--)
                   1174:        {
                   1175:          rtx body = XVECEXP (PATTERN (insn), 0, i);
                   1176: 
                   1177:          if (GET_CODE (body) == SET || GET_CODE (body) == CLOBBER)
                   1178:            {
                   1179:              rtx dest = SET_DEST (body);
                   1180: 
                   1181:              if (GET_CODE (dest) == SUBREG
                   1182:                  && (((GET_MODE_SIZE (GET_MODE (dest))
                   1183:                        + UNITS_PER_WORD - 1) / UNITS_PER_WORD)
                   1184:                      == ((GET_MODE_SIZE (GET_MODE (SUBREG_REG (dest)))
                   1185:                           + UNITS_PER_WORD - 1) / UNITS_PER_WORD)))
                   1186:                dest = SUBREG_REG (dest);
                   1187: 
                   1188:              if (GET_CODE (dest) != REG)
                   1189:                continue;
                   1190: 
                   1191:              regno = REGNO (dest);
                   1192:              endregno = (regno >= FIRST_PSEUDO_REGISTER ? regno + 1
                   1193:                          : regno + HARD_REGNO_NREGS (regno, GET_MODE (dest)));
                   1194: 
                   1195:              if (test_regno >= regno && test_regno < endregno)
                   1196:                return 1;
                   1197:            }
                   1198:        }
                   1199:     }
                   1200: 
                   1201:   return 0;
                   1202: }
                   1203: 
                   1204: /* Return the reg-note of kind KIND in insn INSN, if there is one.
                   1205:    If DATUM is nonzero, look for one whose datum is DATUM.  */
                   1206: 
                   1207: rtx
                   1208: find_reg_note (insn, kind, datum)
                   1209:      rtx insn;
                   1210:      enum reg_note kind;
                   1211:      rtx datum;
                   1212: {
                   1213:   register rtx link;
                   1214: 
                   1215:   for (link = REG_NOTES (insn); link; link = XEXP (link, 1))
                   1216:     if (REG_NOTE_KIND (link) == kind
                   1217:        && (datum == 0 || datum == XEXP (link, 0)))
                   1218:       return link;
                   1219:   return 0;
                   1220: }
                   1221: 
                   1222: /* Return the reg-note of kind KIND in insn INSN which applies to register
1.1.1.3   root     1223:    number REGNO, if any.  Return 0 if there is no such reg-note.  Note that
                   1224:    the REGNO of this NOTE need not be REGNO if REGNO is a hard register;
                   1225:    it might be the case that the note overlaps REGNO.  */
1.1       root     1226: 
                   1227: rtx
                   1228: find_regno_note (insn, kind, regno)
                   1229:      rtx insn;
                   1230:      enum reg_note kind;
                   1231:      int regno;
                   1232: {
                   1233:   register rtx link;
                   1234: 
                   1235:   for (link = REG_NOTES (insn); link; link = XEXP (link, 1))
                   1236:     if (REG_NOTE_KIND (link) == kind
                   1237:        /* Verify that it is a register, so that scratch and MEM won't cause a
                   1238:           problem here.  */
                   1239:        && GET_CODE (XEXP (link, 0)) == REG
1.1.1.3   root     1240:        && REGNO (XEXP (link, 0)) <= regno
                   1241:        && ((REGNO (XEXP (link, 0))
                   1242:             + (REGNO (XEXP (link, 0)) >= FIRST_PSEUDO_REGISTER ? 1
                   1243:                : HARD_REGNO_NREGS (REGNO (XEXP (link, 0)),
                   1244:                                    GET_MODE (XEXP (link, 0)))))
                   1245:            > regno))
1.1       root     1246:       return link;
                   1247:   return 0;
                   1248: }
1.1.1.5 ! root     1249: 
        !          1250: /* Return true if DATUM, or any overlap of DATUM, of kind CODE is found
        !          1251:    in the CALL_INSN_FUNCTION_USAGE information of INSN.  */
        !          1252: 
        !          1253: int
        !          1254: find_reg_fusage (insn, code, datum)
        !          1255:      rtx insn;
        !          1256:      enum rtx_code code;
        !          1257:      rtx datum;
        !          1258: {
        !          1259:   /* If it's not a CALL_INSN, it can't possibly have a
        !          1260:      CALL_INSN_FUNCTION_USAGE field, so don't bother checking.  */
        !          1261:   if (GET_CODE (insn) != CALL_INSN)
        !          1262:     return 0;
        !          1263: 
        !          1264:   if (! datum)
        !          1265:     abort();
        !          1266: 
        !          1267:   if (GET_CODE (datum) != REG)
        !          1268:     {
        !          1269:       register rtx link;
        !          1270: 
        !          1271:       for (link = CALL_INSN_FUNCTION_USAGE (insn);
        !          1272:            link;
        !          1273:           link = XEXP (link, 1))
        !          1274:         if (GET_CODE (XEXP (link, 0)) == code
        !          1275:            && rtx_equal_p (datum, SET_DEST (XEXP (link, 0))))
        !          1276:           return 1;
        !          1277:     }
        !          1278:   else
        !          1279:     {
        !          1280:       register int regno = REGNO (datum);
        !          1281: 
        !          1282:       /* CALL_INSN_FUNCTION_USAGE information cannot contain references
        !          1283:         to pseudo registers, so don't bother checking.  */
        !          1284: 
        !          1285:       if (regno < FIRST_PSEUDO_REGISTER)
        !          1286:         {
        !          1287:          int end_regno = regno + HARD_REGNO_NREGS (regno, GET_MODE (datum));
        !          1288:          int i;
        !          1289: 
        !          1290:          for (i = regno; i < end_regno; i++)
        !          1291:            if (find_regno_fusage (insn, code, i))
        !          1292:              return 1;
        !          1293:         }
        !          1294:     }
        !          1295: 
        !          1296:   return 0;
        !          1297: }
        !          1298: 
        !          1299: /* Return true if REGNO, or any overlap of REGNO, of kind CODE is found
        !          1300:    in the CALL_INSN_FUNCTION_USAGE information of INSN.  */
        !          1301: 
        !          1302: int
        !          1303: find_regno_fusage (insn, code, regno)
        !          1304:      rtx insn;
        !          1305:      enum rtx_code code;
        !          1306:      int regno;
        !          1307: {
        !          1308:   register rtx link;
        !          1309: 
        !          1310:   /* CALL_INSN_FUNCTION_USAGE information cannot contain references
        !          1311:      to pseudo registers, so don't bother checking.  */
        !          1312: 
        !          1313:   if (regno >= FIRST_PSEUDO_REGISTER
        !          1314:       || GET_CODE (insn) != CALL_INSN )
        !          1315:     return 0;
        !          1316: 
        !          1317:   for (link = CALL_INSN_FUNCTION_USAGE (insn); link; link = XEXP (link, 1))
        !          1318:    {
        !          1319:     register int regnote;
        !          1320:     register rtx op;
        !          1321: 
        !          1322:     if (GET_CODE (op = XEXP (link, 0)) == code
        !          1323:        && GET_CODE (SET_DEST (op)) == REG
        !          1324:        && (regnote = REGNO (SET_DEST (op))) <= regno
        !          1325:        && regnote
        !          1326:                + HARD_REGNO_NREGS (regnote, GET_MODE (SET_DEST (op)))
        !          1327:            > regno)
        !          1328:       return 1;
        !          1329:    }
        !          1330: 
        !          1331:   return 0;
        !          1332: }
1.1       root     1333: 
                   1334: /* Remove register note NOTE from the REG_NOTES of INSN.  */
                   1335: 
                   1336: void
                   1337: remove_note (insn, note)
                   1338:      register rtx note;
                   1339:      register rtx insn;
                   1340: {
                   1341:   register rtx link;
                   1342: 
                   1343:   if (REG_NOTES (insn) == note)
                   1344:     {
                   1345:       REG_NOTES (insn) = XEXP (note, 1);
                   1346:       return;
                   1347:     }
                   1348: 
                   1349:   for (link = REG_NOTES (insn); link; link = XEXP (link, 1))
                   1350:     if (XEXP (link, 1) == note)
                   1351:       {
                   1352:        XEXP (link, 1) = XEXP (note, 1);
                   1353:        return;
                   1354:       }
                   1355: 
                   1356:   abort ();
                   1357: }
                   1358: 
1.1.1.4   root     1359: /* Nonzero if X contains any volatile instructions.  These are instructions
                   1360:    which may cause unpredictable machine state instructions, and thus no
                   1361:    instructions should be moved or combined across them.  This includes
                   1362:    only volatile asms and UNSPEC_VOLATILE instructions.  */
                   1363: 
                   1364: int
                   1365: volatile_insn_p (x)
                   1366:      rtx x;
                   1367: {
                   1368:   register RTX_CODE code;
                   1369: 
                   1370:   code = GET_CODE (x);
                   1371:   switch (code)
                   1372:     {
                   1373:     case LABEL_REF:
                   1374:     case SYMBOL_REF:
                   1375:     case CONST_INT:
                   1376:     case CONST:
                   1377:     case CONST_DOUBLE:
                   1378:     case CC0:
                   1379:     case PC:
                   1380:     case REG:
                   1381:     case SCRATCH:
                   1382:     case CLOBBER:
                   1383:     case ASM_INPUT:
                   1384:     case ADDR_VEC:
                   1385:     case ADDR_DIFF_VEC:
                   1386:     case CALL:
                   1387:     case MEM:
                   1388:       return 0;
                   1389: 
                   1390:     case UNSPEC_VOLATILE:
                   1391:  /* case TRAP_IF: This isn't clear yet.  */
                   1392:       return 1;
                   1393: 
                   1394:     case ASM_OPERANDS:
                   1395:       if (MEM_VOLATILE_P (x))
                   1396:        return 1;
                   1397:     }
                   1398: 
                   1399:   /* Recursively scan the operands of this expression.  */
                   1400: 
                   1401:   {
                   1402:     register char *fmt = GET_RTX_FORMAT (code);
                   1403:     register int i;
                   1404:     
                   1405:     for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                   1406:       {
                   1407:        if (fmt[i] == 'e')
                   1408:          {
1.1.1.5 ! root     1409:            if (volatile_insn_p (XEXP (x, i)))
1.1.1.4   root     1410:              return 1;
                   1411:          }
                   1412:        if (fmt[i] == 'E')
                   1413:          {
                   1414:            register int j;
                   1415:            for (j = 0; j < XVECLEN (x, i); j++)
1.1.1.5 ! root     1416:              if (volatile_insn_p (XVECEXP (x, i, j)))
1.1.1.4   root     1417:                return 1;
                   1418:          }
                   1419:       }
                   1420:   }
                   1421:   return 0;
                   1422: }
                   1423: 
1.1       root     1424: /* Nonzero if X contains any volatile memory references
                   1425:    UNSPEC_VOLATILE operations or volatile ASM_OPERANDS expressions.  */
                   1426: 
                   1427: int
                   1428: volatile_refs_p (x)
                   1429:      rtx x;
                   1430: {
                   1431:   register RTX_CODE code;
                   1432: 
                   1433:   code = GET_CODE (x);
                   1434:   switch (code)
                   1435:     {
                   1436:     case LABEL_REF:
                   1437:     case SYMBOL_REF:
                   1438:     case CONST_INT:
                   1439:     case CONST:
                   1440:     case CONST_DOUBLE:
                   1441:     case CC0:
                   1442:     case PC:
                   1443:     case REG:
                   1444:     case SCRATCH:
                   1445:     case CLOBBER:
                   1446:     case ASM_INPUT:
                   1447:     case ADDR_VEC:
                   1448:     case ADDR_DIFF_VEC:
                   1449:       return 0;
                   1450: 
                   1451:     case CALL:
                   1452:     case UNSPEC_VOLATILE:
                   1453:  /* case TRAP_IF: This isn't clear yet.  */
                   1454:       return 1;
                   1455: 
                   1456:     case MEM:
                   1457:     case ASM_OPERANDS:
                   1458:       if (MEM_VOLATILE_P (x))
                   1459:        return 1;
                   1460:     }
                   1461: 
                   1462:   /* Recursively scan the operands of this expression.  */
                   1463: 
                   1464:   {
                   1465:     register char *fmt = GET_RTX_FORMAT (code);
                   1466:     register int i;
                   1467:     
                   1468:     for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                   1469:       {
                   1470:        if (fmt[i] == 'e')
                   1471:          {
                   1472:            if (volatile_refs_p (XEXP (x, i)))
                   1473:              return 1;
                   1474:          }
                   1475:        if (fmt[i] == 'E')
                   1476:          {
                   1477:            register int j;
                   1478:            for (j = 0; j < XVECLEN (x, i); j++)
                   1479:              if (volatile_refs_p (XVECEXP (x, i, j)))
                   1480:                return 1;
                   1481:          }
                   1482:       }
                   1483:   }
                   1484:   return 0;
                   1485: }
                   1486: 
                   1487: /* Similar to above, except that it also rejects register pre- and post-
                   1488:    incrementing.  */
                   1489: 
                   1490: int
                   1491: side_effects_p (x)
                   1492:      rtx x;
                   1493: {
                   1494:   register RTX_CODE code;
                   1495: 
                   1496:   code = GET_CODE (x);
                   1497:   switch (code)
                   1498:     {
                   1499:     case LABEL_REF:
                   1500:     case SYMBOL_REF:
                   1501:     case CONST_INT:
                   1502:     case CONST:
                   1503:     case CONST_DOUBLE:
                   1504:     case CC0:
                   1505:     case PC:
                   1506:     case REG:
                   1507:     case SCRATCH:
                   1508:     case ASM_INPUT:
                   1509:     case ADDR_VEC:
                   1510:     case ADDR_DIFF_VEC:
                   1511:       return 0;
                   1512: 
                   1513:     case CLOBBER:
                   1514:       /* Reject CLOBBER with a non-VOID mode.  These are made by combine.c
                   1515:         when some combination can't be done.  If we see one, don't think
                   1516:         that we can simplify the expression.  */
                   1517:       return (GET_MODE (x) != VOIDmode);
                   1518: 
                   1519:     case PRE_INC:
                   1520:     case PRE_DEC:
                   1521:     case POST_INC:
                   1522:     case POST_DEC:
                   1523:     case CALL:
                   1524:     case UNSPEC_VOLATILE:
                   1525:  /* case TRAP_IF: This isn't clear yet.  */
                   1526:       return 1;
                   1527: 
                   1528:     case MEM:
                   1529:     case ASM_OPERANDS:
                   1530:       if (MEM_VOLATILE_P (x))
                   1531:        return 1;
                   1532:     }
                   1533: 
                   1534:   /* Recursively scan the operands of this expression.  */
                   1535: 
                   1536:   {
                   1537:     register char *fmt = GET_RTX_FORMAT (code);
                   1538:     register int i;
                   1539:     
                   1540:     for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                   1541:       {
                   1542:        if (fmt[i] == 'e')
                   1543:          {
                   1544:            if (side_effects_p (XEXP (x, i)))
                   1545:              return 1;
                   1546:          }
                   1547:        if (fmt[i] == 'E')
                   1548:          {
                   1549:            register int j;
                   1550:            for (j = 0; j < XVECLEN (x, i); j++)
                   1551:              if (side_effects_p (XVECEXP (x, i, j)))
                   1552:                return 1;
                   1553:          }
                   1554:       }
                   1555:   }
                   1556:   return 0;
                   1557: }
                   1558: 
                   1559: /* Return nonzero if evaluating rtx X might cause a trap.  */
                   1560: 
                   1561: int
                   1562: may_trap_p (x)
                   1563:      rtx x;
                   1564: {
                   1565:   int i;
                   1566:   enum rtx_code code;
                   1567:   char *fmt;
                   1568: 
                   1569:   if (x == 0)
                   1570:     return 0;
                   1571:   code = GET_CODE (x);
                   1572:   switch (code)
                   1573:     {
                   1574:       /* Handle these cases quickly.  */
                   1575:     case CONST_INT:
                   1576:     case CONST_DOUBLE:
                   1577:     case SYMBOL_REF:
                   1578:     case LABEL_REF:
                   1579:     case CONST:
                   1580:     case PC:
                   1581:     case CC0:
                   1582:     case REG:
                   1583:     case SCRATCH:
                   1584:       return 0;
                   1585: 
                   1586:       /* Conditional trap can trap!  */
                   1587:     case UNSPEC_VOLATILE:
                   1588:     case TRAP_IF:
                   1589:       return 1;
                   1590: 
                   1591:       /* Memory ref can trap unless it's a static var or a stack slot.  */
                   1592:     case MEM:
                   1593:       return rtx_addr_can_trap_p (XEXP (x, 0));
                   1594: 
                   1595:       /* Division by a non-constant might trap.  */
                   1596:     case DIV:
                   1597:     case MOD:
                   1598:     case UDIV:
                   1599:     case UMOD:
                   1600:       if (! CONSTANT_P (XEXP (x, 1)))
                   1601:        return 1;
                   1602:       /* This was const0_rtx, but by not using that,
                   1603:         we can link this file into other programs.  */
                   1604:       if (GET_CODE (XEXP (x, 1)) == CONST_INT && INTVAL (XEXP (x, 1)) == 0)
                   1605:        return 1;
1.1.1.5 ! root     1606:     case EXPR_LIST:
        !          1607:       /* An EXPR_LIST is used to represent a function call.  This
        !          1608:         certainly may trap.  */
        !          1609:       return 1;
1.1       root     1610:     default:
                   1611:       /* Any floating arithmetic may trap.  */
                   1612:       if (GET_MODE_CLASS (GET_MODE (x)) == MODE_FLOAT)
                   1613:        return 1;
                   1614:     }
                   1615: 
                   1616:   fmt = GET_RTX_FORMAT (code);
                   1617:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                   1618:     {
                   1619:       if (fmt[i] == 'e')
                   1620:        {
                   1621:          if (may_trap_p (XEXP (x, i)))
                   1622:            return 1;
                   1623:        }
                   1624:       else if (fmt[i] == 'E')
                   1625:        {
                   1626:          register int j;
                   1627:          for (j = 0; j < XVECLEN (x, i); j++)
                   1628:            if (may_trap_p (XVECEXP (x, i, j)))
                   1629:              return 1;
                   1630:        }
                   1631:     }
                   1632:   return 0;
                   1633: }
                   1634: 
                   1635: /* Return nonzero if X contains a comparison that is not either EQ or NE,
                   1636:    i.e., an inequality.  */
                   1637: 
                   1638: int
                   1639: inequality_comparisons_p (x)
                   1640:      rtx x;
                   1641: {
                   1642:   register char *fmt;
                   1643:   register int len, i;
                   1644:   register enum rtx_code code = GET_CODE (x);
                   1645: 
                   1646:   switch (code)
                   1647:     {
                   1648:     case REG:
                   1649:     case SCRATCH:
                   1650:     case PC:
                   1651:     case CC0:
                   1652:     case CONST_INT:
                   1653:     case CONST_DOUBLE:
                   1654:     case CONST:
                   1655:     case LABEL_REF:
                   1656:     case SYMBOL_REF:
                   1657:       return 0;
                   1658: 
                   1659:     case LT:
                   1660:     case LTU:
                   1661:     case GT:
                   1662:     case GTU:
                   1663:     case LE:
                   1664:     case LEU:
                   1665:     case GE:
                   1666:     case GEU:
                   1667:       return 1;
                   1668:     }
                   1669: 
                   1670:   len = GET_RTX_LENGTH (code);
                   1671:   fmt = GET_RTX_FORMAT (code);
                   1672: 
                   1673:   for (i = 0; i < len; i++)
                   1674:     {
                   1675:       if (fmt[i] == 'e')
                   1676:        {
                   1677:          if (inequality_comparisons_p (XEXP (x, i)))
                   1678:            return 1;
                   1679:        }
                   1680:       else if (fmt[i] == 'E')
                   1681:        {
                   1682:          register int j;
                   1683:          for (j = XVECLEN (x, i) - 1; j >= 0; j--)
                   1684:            if (inequality_comparisons_p (XVECEXP (x, i, j)))
                   1685:              return 1;
                   1686:        }
                   1687:     }
                   1688:            
                   1689:   return 0;
                   1690: }
                   1691: 
                   1692: /* Replace any occurrence of FROM in X with TO.
                   1693: 
                   1694:    Note that copying is not done so X must not be shared unless all copies
                   1695:    are to be modified.  */
                   1696: 
                   1697: rtx
                   1698: replace_rtx (x, from, to)
                   1699:      rtx x, from, to;
                   1700: {
                   1701:   register int i, j;
                   1702:   register char *fmt;
                   1703: 
                   1704:   if (x == from)
                   1705:     return to;
                   1706: 
                   1707:   /* Allow this function to make replacements in EXPR_LISTs.  */
                   1708:   if (x == 0)
                   1709:     return 0;
                   1710: 
                   1711:   fmt = GET_RTX_FORMAT (GET_CODE (x));
                   1712:   for (i = GET_RTX_LENGTH (GET_CODE (x)) - 1; i >= 0; i--)
                   1713:     {
                   1714:       if (fmt[i] == 'e')
                   1715:        XEXP (x, i) = replace_rtx (XEXP (x, i), from, to);
                   1716:       else if (fmt[i] == 'E')
                   1717:        for (j = XVECLEN (x, i) - 1; j >= 0; j--)
                   1718:          XVECEXP (x, i, j) = replace_rtx (XVECEXP (x, i, j), from, to);
                   1719:     }
                   1720: 
                   1721:   return x;
                   1722: }  
                   1723: 
                   1724: /* Throughout the rtx X, replace many registers according to REG_MAP.
                   1725:    Return the replacement for X (which may be X with altered contents).
                   1726:    REG_MAP[R] is the replacement for register R, or 0 for don't replace.
                   1727:    NREGS is the length of REG_MAP; regs >= NREGS are not mapped.  
                   1728: 
                   1729:    We only support REG_MAP entries of REG or SUBREG.  Also, hard registers
                   1730:    should not be mapped to pseudos or vice versa since validate_change
                   1731:    is not called.
                   1732: 
                   1733:    If REPLACE_DEST is 1, replacements are also done in destinations;
                   1734:    otherwise, only sources are replaced.  */
                   1735: 
                   1736: rtx
                   1737: replace_regs (x, reg_map, nregs, replace_dest)
                   1738:      rtx x;
                   1739:      rtx *reg_map;
                   1740:      int nregs;
                   1741:      int replace_dest;
                   1742: {
                   1743:   register enum rtx_code code;
                   1744:   register int i;
                   1745:   register char *fmt;
                   1746: 
                   1747:   if (x == 0)
                   1748:     return x;
                   1749: 
                   1750:   code = GET_CODE (x);
                   1751:   switch (code)
                   1752:     {
                   1753:     case SCRATCH:
                   1754:     case PC:
                   1755:     case CC0:
                   1756:     case CONST_INT:
                   1757:     case CONST_DOUBLE:
                   1758:     case CONST:
                   1759:     case SYMBOL_REF:
                   1760:     case LABEL_REF:
                   1761:       return x;
                   1762: 
                   1763:     case REG:
                   1764:       /* Verify that the register has an entry before trying to access it.  */
                   1765:       if (REGNO (x) < nregs && reg_map[REGNO (x)] != 0)
1.1.1.5 ! root     1766:        {
        !          1767:          /* SUBREGs can't be shared.  Always return a copy to ensure that if
        !          1768:             this replacement occurs more than once then each instance will
        !          1769:             get distinct rtx.  */
        !          1770:          if (GET_CODE (reg_map[REGNO (x)]) == SUBREG)
        !          1771:            return copy_rtx (reg_map[REGNO (x)]);
        !          1772:          return reg_map[REGNO (x)];
        !          1773:        }
1.1       root     1774:       return x;
                   1775: 
                   1776:     case SUBREG:
                   1777:       /* Prevent making nested SUBREGs.  */
                   1778:       if (GET_CODE (SUBREG_REG (x)) == REG && REGNO (SUBREG_REG (x)) < nregs
                   1779:          && reg_map[REGNO (SUBREG_REG (x))] != 0
                   1780:          && GET_CODE (reg_map[REGNO (SUBREG_REG (x))]) == SUBREG)
                   1781:        {
                   1782:          rtx map_val = reg_map[REGNO (SUBREG_REG (x))];
                   1783:          rtx map_inner = SUBREG_REG (map_val);
                   1784: 
                   1785:          if (GET_MODE (x) == GET_MODE (map_inner))
                   1786:            return map_inner;
                   1787:          else
                   1788:            {
                   1789:              /* We cannot call gen_rtx here since we may be linked with
                   1790:                 genattrtab.c.  */
                   1791:              /* Let's try clobbering the incoming SUBREG and see
                   1792:                 if this is really safe.  */
                   1793:              SUBREG_REG (x) = map_inner;
                   1794:              SUBREG_WORD (x) += SUBREG_WORD (map_val);
                   1795:              return x;
                   1796: #if 0
                   1797:              rtx new = rtx_alloc (SUBREG);
                   1798:              PUT_MODE (new, GET_MODE (x));
                   1799:              SUBREG_REG (new) = map_inner;
                   1800:              SUBREG_WORD (new) = SUBREG_WORD (x) + SUBREG_WORD (map_val);
                   1801: #endif
                   1802:            }
                   1803:        }
                   1804:       break;
                   1805: 
                   1806:     case SET:
                   1807:       if (replace_dest)
                   1808:        SET_DEST (x) = replace_regs (SET_DEST (x), reg_map, nregs, 0);
                   1809: 
                   1810:       else if (GET_CODE (SET_DEST (x)) == MEM
                   1811:               || GET_CODE (SET_DEST (x)) == STRICT_LOW_PART)
                   1812:        /* Even if we are not to replace destinations, replace register if it
                   1813:           is CONTAINED in destination (destination is memory or
                   1814:           STRICT_LOW_PART).  */
                   1815:        XEXP (SET_DEST (x), 0) = replace_regs (XEXP (SET_DEST (x), 0),
                   1816:                                               reg_map, nregs, 0);
                   1817:       else if (GET_CODE (SET_DEST (x)) == ZERO_EXTRACT)
                   1818:        /* Similarly, for ZERO_EXTRACT we replace all operands.  */
                   1819:        break;
                   1820: 
                   1821:       SET_SRC (x) = replace_regs (SET_SRC (x), reg_map, nregs, 0);
                   1822:       return x;
                   1823:     }
                   1824: 
                   1825:   fmt = GET_RTX_FORMAT (code);
                   1826:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                   1827:     {
                   1828:       if (fmt[i] == 'e')
                   1829:        XEXP (x, i) = replace_regs (XEXP (x, i), reg_map, nregs, replace_dest);
                   1830:       if (fmt[i] == 'E')
                   1831:        {
                   1832:          register int j;
                   1833:          for (j = 0; j < XVECLEN (x, i); j++)
                   1834:            XVECEXP (x, i, j) = replace_regs (XVECEXP (x, i, j), reg_map,
                   1835:                                              nregs, replace_dest);
                   1836:        }
                   1837:     }
                   1838:   return x;
                   1839: }

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