Annotation of gcc/jump.c, revision 1.1.1.2

1.1       root        1: /* Optimize jump instructions, for GNU compiler.
                      2:    Copyright (C) 1987, 1988, 1989, 1991 Free Software Foundation, Inc.
                      3: 
                      4: This file is part of GNU CC.
                      5: 
                      6: GNU CC is free software; you can redistribute it and/or modify
                      7: it under the terms of the GNU General Public License as published by
                      8: the Free Software Foundation; either version 2, or (at your option)
                      9: any later version.
                     10: 
                     11: GNU CC is distributed in the hope that it will be useful,
                     12: but WITHOUT ANY WARRANTY; without even the implied warranty of
                     13: MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
                     14: GNU General Public License for more details.
                     15: 
                     16: You should have received a copy of the GNU General Public License
                     17: along with GNU CC; see the file COPYING.  If not, write to
                     18: the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA.  */
                     19: 
                     20: 
                     21: /* This is the jump-optimization pass of the compiler.
                     22:    It is run two or three times: once before cse, sometimes once after cse,
                     23:    and once after reload (before final).
                     24: 
                     25:    jump_optimize deletes unreachable code and labels that are not used.
                     26:    It also deletes jumps that jump to the following insn,
                     27:    and simplifies jumps around unconditional jumps and jumps
                     28:    to unconditional jumps.
                     29: 
                     30:    Each CODE_LABEL has a count of the times it is used
                     31:    stored in the LABEL_NUSES internal field, and each JUMP_INSN
                     32:    has one label that it refers to stored in the
                     33:    JUMP_LABEL internal field.  With this we can detect labels that
                     34:    become unused because of the deletion of all the jumps that
                     35:    formerly used them.  The JUMP_LABEL info is sometimes looked
                     36:    at by later passes.
                     37: 
                     38:    Optionally, cross-jumping can be done.  Currently it is done
                     39:    only the last time (when after reload and before final).
                     40:    In fact, the code for cross-jumping now assumes that register
                     41:    allocation has been done, since it uses `rtx_renumbered_equal_p'.
                     42: 
                     43:    Jump optimization is done after cse when cse's constant-propagation
                     44:    causes jumps to become unconditional or to be deleted.
                     45: 
                     46:    Unreachable loops are not detected here, because the labels
                     47:    have references and the insns appear reachable from the labels.
                     48:    find_basic_blocks in flow.c finds and deletes such loops.
                     49: 
                     50:    The subroutines delete_insn, redirect_jump, and invert_jump are used
                     51:    from other passes as well.  */
                     52: 
                     53: #include "config.h"
                     54: #include "rtl.h"
                     55: #include "flags.h"
                     56: #include "hard-reg-set.h"
                     57: #include "regs.h"
                     58: #include "expr.h"
                     59: #include "insn-config.h"
                     60: #include "insn-flags.h"
                     61: #include "real.h"
                     62: 
                     63: /* ??? Eventually must record somehow the labels used by jumps
                     64:    from nested functions.  */
                     65: /* Pre-record the next or previous real insn for each label?
                     66:    No, this pass is very fast anyway.  */
                     67: /* Condense consecutive labels?
                     68:    This would make life analysis faster, maybe.  */
                     69: /* Optimize jump y; x: ... y: jumpif... x?
                     70:    Don't know if it is worth bothering with.  */
                     71: /* Optimize two cases of conditional jump to conditional jump?
                     72:    This can never delete any instruction or make anything dead,
                     73:    or even change what is live at any point.
                     74:    So perhaps let combiner do it.  */
                     75: 
                     76: /* Vector indexed by uid.
                     77:    For each CODE_LABEL, index by its uid to get first unconditional jump
                     78:    that jumps to the label.
                     79:    For each JUMP_INSN, index by its uid to get the next unconditional jump
                     80:    that jumps to the same label.
                     81:    Element 0 is the start of a chain of all return insns.
                     82:    (It is safe to use element 0 because insn uid 0 is not used.  */
                     83: 
                     84: static rtx *jump_chain;
                     85: 
                     86: /* List of labels referred to from initializers.
                     87:    These can never be deleted.  */
                     88: rtx forced_labels;
                     89: 
                     90: /* Maximum index in jump_chain.  */
                     91: 
                     92: static int max_jump_chain;
                     93: 
                     94: /* Set nonzero by jump_optimize if control can fall through
                     95:    to the end of the function.  */
                     96: int can_reach_end;
                     97: 
                     98: /* Indicates whether death notes are significant in cross jump analysis.
                     99:    Normally they are not significant, because of A and B jump to C,
                    100:    and R dies in A, it must die in B.  But this might not be true after
                    101:    stack register conversion, and we must compare death notes in that
                    102:    case. */
                    103: 
                    104: static int cross_jump_death_matters = 0;
                    105: 
                    106: static int duplicate_loop_exit_test ();
                    107: rtx delete_insn ();
                    108: int redirect_jump ();
                    109: static int redirect_exp ();
                    110: void redirect_tablejump ();
                    111: static int delete_labelref_insn ();
                    112: int invert_jump ();
                    113: static int invert_exp ();
                    114: int condjump_p ();
                    115: int simplejump_p ();
                    116: 
                    117: extern rtx gen_jump ();
                    118: 
                    119: void squeeze_notes ();
                    120: static void mark_jump_label ();
                    121: void delete_jump ();
                    122: static void delete_from_jump_chain ();
                    123: static int tension_vector_labels ();
                    124: static void find_cross_jump ();
                    125: static void do_cross_jump ();
                    126: static int jump_back_p ();
                    127: 
                    128: /* Delete no-op jumps and optimize jumps to jumps
                    129:    and jumps around jumps.
                    130:    Delete unused labels and unreachable code.
                    131: 
                    132:    If CROSS_JUMP is 1, detect matching code
                    133:    before a jump and its destination and unify them.
                    134:    If CROSS_JUMP is 2, do cross-jumping, but pay attention to death notes.
                    135: 
                    136:    If NOOP_MOVES is nonzero, delete no-op move insns.
                    137: 
                    138:    If AFTER_REGSCAN is nonzero, then this jump pass is being run immediately
                    139:    after regscan, and it is safe to use regno_first_uid and regno_last_uid.
                    140: 
                    141:    If `optimize' is zero, don't change any code,
                    142:    just determine whether control drops off the end of the function.
                    143:    This case occurs when we have -W and not -O.
                    144:    It works because `delete_insn' checks the value of `optimize'
                    145:    and refrains from actually deleting when that is 0.  */
                    146: 
                    147: void
                    148: jump_optimize (f, cross_jump, noop_moves, after_regscan)
                    149:      rtx f;
                    150:      int cross_jump;
                    151:      int noop_moves;
                    152:      int after_regscan;
                    153: {
                    154:   register rtx insn;
                    155:   int changed;
                    156:   int first = 1;
                    157:   int max_uid = 0;
                    158:   rtx last_insn;
                    159: 
                    160:   cross_jump_death_matters = (cross_jump == 2);
                    161: 
                    162:   /* Initialize LABEL_NUSES and JUMP_LABEL fields.  */
                    163: 
                    164:   for (insn = f; insn; insn = NEXT_INSN (insn))
                    165:     {
                    166:       if (GET_CODE (insn) == CODE_LABEL)
                    167:        LABEL_NUSES (insn) = (LABEL_PRESERVE_P (insn) != 0);
                    168:       else if (GET_CODE (insn) == JUMP_INSN)
                    169:        JUMP_LABEL (insn) = 0;
                    170:       if (INSN_UID (insn) > max_uid)
                    171:        max_uid = INSN_UID (insn);
                    172:     }
                    173: 
                    174:   max_uid++;
                    175: 
                    176:   /* Delete insns following barriers, up to next label.  */
                    177: 
                    178:   for (insn = f; insn;)
                    179:     {
                    180:       if (GET_CODE (insn) == BARRIER)
                    181:        {
                    182:          insn = NEXT_INSN (insn);
                    183:          while (insn != 0 && GET_CODE (insn) != CODE_LABEL)
                    184:            {
                    185:              if (GET_CODE (insn) == NOTE
                    186:                  && NOTE_LINE_NUMBER (insn) != NOTE_INSN_FUNCTION_END)
                    187:                insn = NEXT_INSN (insn);
                    188:              else
                    189:                insn = delete_insn (insn);
                    190:            }
                    191:          /* INSN is now the code_label.  */
                    192:        }
                    193:       else
                    194:        insn = NEXT_INSN (insn);
                    195:     }
                    196: 
                    197:   /* Leave some extra room for labels and duplicate exit test insns
                    198:      we make.  */
                    199:   max_jump_chain = max_uid * 14 / 10;
                    200:   jump_chain = (rtx *) alloca (max_jump_chain * sizeof (rtx));
                    201:   bzero (jump_chain, max_jump_chain * sizeof (rtx));
                    202: 
                    203:   /* Mark the label each jump jumps to.
                    204:      Combine consecutive labels, and count uses of labels.
                    205: 
                    206:      For each label, make a chain (using `jump_chain')
                    207:      of all the *unconditional* jumps that jump to it;
                    208:      also make a chain of all returns.  */
                    209: 
                    210:   for (insn = f; insn; insn = NEXT_INSN (insn))
                    211:     if ((GET_CODE (insn) == JUMP_INSN || GET_CODE (insn) == INSN
                    212:         || GET_CODE (insn) == CALL_INSN)
                    213:        && ! INSN_DELETED_P (insn))
                    214:       {
                    215:        mark_jump_label (PATTERN (insn), insn, cross_jump);
                    216:        if (GET_CODE (insn) == JUMP_INSN)
                    217:          {
                    218:            if (JUMP_LABEL (insn) != 0 && simplejump_p (insn))
                    219:              {
                    220:                jump_chain[INSN_UID (insn)]
                    221:                  = jump_chain[INSN_UID (JUMP_LABEL (insn))];
                    222:                jump_chain[INSN_UID (JUMP_LABEL (insn))] = insn;
                    223:              }
                    224:            if (GET_CODE (PATTERN (insn)) == RETURN)
                    225:              {
                    226:                jump_chain[INSN_UID (insn)] = jump_chain[0];
                    227:                jump_chain[0] = insn;
                    228:              }
                    229:          }
                    230:       }
                    231: 
                    232:   /* Keep track of labels used from static data;
                    233:      they cannot ever be deleted.  */
                    234: 
                    235:   for (insn = forced_labels; insn; insn = XEXP (insn, 1))
                    236:     LABEL_NUSES (XEXP (insn, 0))++;
                    237: 
                    238:   /* Delete all labels already not referenced.
                    239:      Also find the last insn.  */
                    240: 
                    241:   last_insn = 0;
                    242:   for (insn = f; insn; )
                    243:     {
                    244:       if (GET_CODE (insn) == CODE_LABEL && LABEL_NUSES (insn) == 0)
                    245:        insn = delete_insn (insn);
                    246:       else
                    247:        {
                    248:          last_insn = insn;
                    249:          insn = NEXT_INSN (insn);
                    250:        }
                    251:     }
                    252: 
                    253:   if (!optimize)
                    254:     {
                    255:       /* See if there is still a NOTE_INSN_FUNCTION_END in this function.
                    256:         If so record that this function can drop off the end.  */
                    257: 
                    258:       insn = last_insn;
                    259:       {
                    260:        int n_labels = 1;
                    261:        while (insn
                    262:               /* One label can follow the end-note: the return label.  */
                    263:               && ((GET_CODE (insn) == CODE_LABEL && n_labels-- > 0)
                    264:                   /* Ordinary insns can follow it if returning a structure.  */
                    265:                   || GET_CODE (insn) == INSN
                    266:                   /* If machine uses explicit RETURN insns, no epilogue,
                    267:                      then one of them follows the note.  */
                    268:                   || (GET_CODE (insn) == JUMP_INSN
                    269:                       && GET_CODE (PATTERN (insn)) == RETURN)
                    270:                   /* Other kinds of notes can follow also.  */
                    271:                   || (GET_CODE (insn) == NOTE
                    272:                       && NOTE_LINE_NUMBER (insn) != NOTE_INSN_FUNCTION_END)))
                    273:          insn = PREV_INSN (insn);
                    274:       }
                    275: 
                    276:       /* Report if control can fall through at the end of the function.  */
                    277:       if (insn && GET_CODE (insn) == NOTE
                    278:          && NOTE_LINE_NUMBER (insn) == NOTE_INSN_FUNCTION_END
                    279:          && ! INSN_DELETED_P (insn))
                    280:        can_reach_end = 1;
                    281: 
                    282:       /* Zero the "deleted" flag of all the "deleted" insns.  */
                    283:       for (insn = f; insn; insn = NEXT_INSN (insn))
                    284:        INSN_DELETED_P (insn) = 0;
                    285:       return;
                    286:     }
                    287: 
                    288: #ifdef HAVE_return
                    289:   if (HAVE_return)
                    290:     {
                    291:       /* If we fall through to the epilogue, see if we can insert a RETURN insn
                    292:         in front of it.  If the machine allows it at this point (we might be
                    293:         after reload for a leaf routine), it will improve optimization for it
                    294:         to be there.  */
                    295:       insn = get_last_insn ();
                    296:       while (insn && GET_CODE (insn) == NOTE)
                    297:        insn = PREV_INSN (insn);
                    298: 
                    299:       if (insn && GET_CODE (insn) != BARRIER)
                    300:        {
                    301:          emit_jump_insn (gen_return ());
                    302:          emit_barrier ();
                    303:        }
                    304:     }
                    305: #endif
                    306: 
                    307:   if (noop_moves)
                    308:     for (insn = f; insn; )
                    309:       {
                    310:        register rtx next = NEXT_INSN (insn);
                    311: 
                    312:        if (GET_CODE (insn) == INSN)
                    313:          {
                    314:            register rtx body = PATTERN (insn);
                    315: 
                    316: /* Combine stack_adjusts with following push_insns.  */
                    317: #ifdef PUSH_ROUNDING
                    318:            if (GET_CODE (body) == SET
                    319:                && SET_DEST (body) == stack_pointer_rtx
                    320:                && GET_CODE (SET_SRC (body)) == PLUS
                    321:                && XEXP (SET_SRC (body), 0) == stack_pointer_rtx
                    322:                && GET_CODE (XEXP (SET_SRC (body), 1)) == CONST_INT
                    323:                && INTVAL (XEXP (SET_SRC (body), 1)) > 0)
                    324:              {
                    325:                rtx p;
                    326:                rtx stack_adjust_insn = insn;
                    327:                int stack_adjust_amount = INTVAL (XEXP (SET_SRC (body), 1));
                    328:                int total_pushed = 0;
                    329:                int pushes = 0;
                    330: 
                    331:                /* Find all successive push insns.  */
                    332:                p = insn;
                    333:                /* Don't convert more than three pushes;
                    334:                   that starts adding too many displaced addresses
                    335:                   and the whole thing starts becoming a losing
                    336:                   proposition.  */
                    337:                while (pushes < 3)
                    338:                  {
                    339:                    rtx pbody, dest;
                    340:                    p = next_nonnote_insn (p);
                    341:                    if (p == 0 || GET_CODE (p) != INSN)
                    342:                      break;
                    343:                    pbody = PATTERN (p);
                    344:                    if (GET_CODE (pbody) != SET)
                    345:                      break;
                    346:                    dest = SET_DEST (pbody);
                    347:                    /* Allow a no-op move between the adjust and the push.  */
                    348:                    if (GET_CODE (dest) == REG
                    349:                        && GET_CODE (SET_SRC (pbody)) == REG
                    350:                        && REGNO (dest) == REGNO (SET_SRC (pbody)))
                    351:                      continue;
                    352:                    if (! (GET_CODE (dest) == MEM
                    353:                           && GET_CODE (XEXP (dest, 0)) == POST_INC
                    354:                           && XEXP (XEXP (dest, 0), 0) == stack_pointer_rtx))
                    355:                      break;
                    356:                    pushes++;
                    357:                    if (total_pushed + GET_MODE_SIZE (SET_DEST (pbody))
                    358:                        > stack_adjust_amount)
                    359:                      break;
                    360:                    total_pushed += GET_MODE_SIZE (SET_DEST (pbody));
                    361:                  }
                    362: 
                    363:                /* Discard the amount pushed from the stack adjust;
                    364:                   maybe eliminate it entirely.  */
                    365:                if (total_pushed >= stack_adjust_amount)
                    366:                  {
                    367:                    delete_insn (stack_adjust_insn);
                    368:                    total_pushed = stack_adjust_amount;
                    369:                  }
                    370:                else
                    371:                  XEXP (SET_SRC (PATTERN (stack_adjust_insn)), 1)
                    372:                    = gen_rtx (CONST_INT, VOIDmode, 
                    373:                               stack_adjust_amount - total_pushed);
                    374: 
                    375:                /* Change the appropriate push insns to ordinary stores.  */
                    376:                p = insn;
                    377:                while (total_pushed > 0)
                    378:                  {
                    379:                    rtx pbody, dest;
                    380:                    p = next_nonnote_insn (p);
                    381:                    if (GET_CODE (p) != INSN)
                    382:                      break;
                    383:                    pbody = PATTERN (p);
                    384:                    if (GET_CODE (pbody) == SET)
                    385:                      break;
                    386:                    dest = SET_DEST (pbody);
                    387:                    if (! (GET_CODE (dest) == MEM
                    388:                           && GET_CODE (XEXP (dest, 0)) == POST_INC
                    389:                           && XEXP (XEXP (dest, 0), 0) == stack_pointer_rtx))
                    390:                      break;
                    391:                    total_pushed -= GET_MODE_SIZE (SET_DEST (pbody));
                    392:                    /* If this push doesn't fully fit in the space
                    393:                       of the stack adjust that we deleted,
                    394:                       make another stack adjust here for what we
                    395:                       didn't use up.  There should be peepholes
                    396:                       to recognize the resulting sequence of insns.  */
                    397:                    if (total_pushed < 0)
                    398:                      {
                    399:                        emit_insn_before (gen_add2_insn (stack_pointer_rtx,
                    400:                                                         gen_rtx (CONST_INT, VOIDmode, - total_pushed)),
                    401:                                          p);
                    402:                        break;
                    403:                      }
                    404:                    XEXP (dest, 0)
                    405:                      = plus_constant (stack_pointer_rtx, total_pushed);
                    406:                  }
                    407:              }
                    408: #endif
                    409: 
                    410:            /* Detect and delete no-op move instructions
                    411:               resulting from not allocating a parameter in a register.  */
                    412: 
                    413:            if (GET_CODE (body) == SET
                    414:                && (SET_DEST (body) == SET_SRC (body)
                    415:                    || (GET_CODE (SET_DEST (body)) == MEM
                    416:                        && GET_CODE (SET_SRC (body)) == MEM
                    417:                        && rtx_equal_p (SET_SRC (body), SET_DEST (body))))
                    418:                && ! (GET_CODE (SET_DEST (body)) == MEM
                    419:                      && MEM_VOLATILE_P (SET_DEST (body)))
                    420:                && ! (GET_CODE (SET_SRC (body)) == MEM
                    421:                      && MEM_VOLATILE_P (SET_SRC (body))))
                    422:              delete_insn (insn);
                    423: 
                    424:            /* Detect and ignore no-op move instructions
                    425:               resulting from smart or fortuitous register allocation.  */
                    426: 
                    427:            else if (GET_CODE (body) == SET)
                    428:              {
                    429:                int sreg = true_regnum (SET_SRC (body));
                    430:                int dreg = true_regnum (SET_DEST (body));
                    431: 
                    432:                if (sreg == dreg && sreg >= 0)
                    433:                  delete_insn (insn);
                    434:                else if (sreg >= 0 && dreg >= 0)
                    435:                  {
                    436:                    rtx trial;
                    437:                    rtx tem = find_equiv_reg (0, insn, 0,
                    438:                                              sreg, 0, dreg,
                    439:                                              GET_MODE (SET_SRC (body)));
                    440: 
                    441: #ifdef PRESERVE_DEATH_INFO_REGNO_P
                    442:                    /* Deleting insn could lose a death-note for SREG or DREG
                    443:                       so don't do it if final needs accurate death-notes.  */
                    444:                    if (! PRESERVE_DEATH_INFO_REGNO_P (sreg)
                    445:                        && ! PRESERVE_DEATH_INFO_REGNO_P (dreg))
                    446: #endif
                    447:                      {
                    448:                        /* DREG may have been the target of a REG_DEAD note in
                    449:                           the insn which makes INSN redundant.  If so, reorg
                    450:                           would still think it is dead.  So search for such a
                    451:                           note and delete it if we find it.  */
                    452:                        for (trial = prev_nonnote_insn (insn);
                    453:                             trial && GET_CODE (trial) != CODE_LABEL;
                    454:                             trial = prev_nonnote_insn (trial))
                    455:                          if (find_regno_note (trial, REG_DEAD, dreg))
                    456:                            {
                    457:                              remove_death (dreg, trial);
                    458:                              break;
                    459:                            }
                    460: 
                    461:                        if (tem != 0
                    462:                            && GET_MODE (tem) == GET_MODE (SET_DEST (body)))
                    463:                          delete_insn (insn);
                    464:                      }
                    465:                  }
                    466:                else if (dreg >= 0 && CONSTANT_P (SET_SRC (body))
                    467:                         && find_equiv_reg (SET_SRC (body), insn, 0, dreg, 0,
                    468:                                            0, GET_MODE (SET_DEST (body))))
                    469:                  {
                    470:                    /* This handles the case where we have two consecutive
                    471:                       assignments of the same constant to pseudos that didn't
                    472:                       get a hard reg.  Each SET from the constant will be
                    473:                       converted into a SET of the spill register and an
                    474:                       output reload will be made following it.  This produces
                    475:                       two loads of the same constant into the same spill
                    476:                       register.  */
                    477: 
                    478:                    rtx in_insn = insn;
                    479: 
                    480:                    /* Look back for a death note for the first reg.
                    481:                       If there is one, it is no longer accurate.  */
                    482:                    while (in_insn && GET_CODE (in_insn) != CODE_LABEL)
                    483:                      {
                    484:                        if ((GET_CODE (in_insn) == INSN
                    485:                             || GET_CODE (in_insn) == JUMP_INSN)
                    486:                            && find_regno_note (in_insn, REG_DEAD, dreg))
                    487:                          {
                    488:                            remove_death (dreg, in_insn);
                    489:                            break;
                    490:                          }
                    491:                        in_insn = PREV_INSN (in_insn);
                    492:                      }
                    493: 
                    494:                    /* Delete the second load of the value.  */
                    495:                    delete_insn (insn);
                    496:                  }
                    497:              }
                    498:            else if (GET_CODE (body) == PARALLEL)
                    499:              {
                    500:                /* If each part is a set between two identical registers or
                    501:                   a USE or CLOBBER, delete the insn. */
                    502:                int i, sreg, dreg;
                    503:                rtx tem;
                    504: 
                    505:                for (i = XVECLEN (body, 0) - 1; i >= 0; i--)
                    506:                  {
                    507:                    tem = XVECEXP (body, 0, i);
                    508:                    if (GET_CODE (tem) == USE || GET_CODE (tem) == CLOBBER)
                    509:                      continue;
                    510: 
                    511:                    if (GET_CODE (tem) != SET
                    512:                        || (sreg = true_regnum (SET_SRC (tem))) < 0
                    513:                        || (dreg = true_regnum (SET_DEST (tem))) < 0
                    514:                        || dreg != sreg)
                    515:                      break;
                    516:                  }
                    517:                  
                    518:                if (i < 0)
                    519:                  delete_insn (insn);
                    520:              }
                    521: #if !BYTES_BIG_ENDIAN /* Not worth the hair to detect this
                    522:                         in the big-endian case.  */
                    523:            /* Also delete insns to store bit fields if they are no-ops.  */
                    524:            else if (GET_CODE (body) == SET
                    525:                     && GET_CODE (SET_DEST (body)) == ZERO_EXTRACT
                    526:                     && XEXP (SET_DEST (body), 2) == const0_rtx
                    527:                     && XEXP (SET_DEST (body), 0) == SET_SRC (body)
                    528:                     && ! (GET_CODE (SET_SRC (body)) == MEM
                    529:                           && MEM_VOLATILE_P (SET_SRC (body))))
                    530:              delete_insn (insn);
                    531: #endif /* not BYTES_BIG_ENDIAN */
                    532:          }
                    533:       insn = next;
                    534:     }
                    535: 
                    536:   /* Now iterate optimizing jumps until nothing changes over one pass.  */
                    537:   changed = 1;
                    538:   while (changed)
                    539:     {
                    540:       register rtx next;
                    541:       changed = 0;
                    542: 
                    543:       for (insn = f; insn; insn = next)
                    544:        {
                    545:          rtx reallabelprev;
                    546:          rtx temp, temp1, temp2, temp3, temp4, temp5;
                    547:          rtx nlabel;
                    548:          int this_is_simplejump, this_is_condjump;
                    549: #if 0
                    550:          /* If NOT the first iteration, if this is the last jump pass
                    551:             (just before final), do the special peephole optimizations.
                    552:             Avoiding the first iteration gives ordinary jump opts
                    553:             a chance to work before peephole opts.  */
                    554: 
                    555:          if (reload_completed && !first && !flag_no_peephole)
                    556:            if (GET_CODE (insn) == INSN || GET_CODE (insn) == JUMP_INSN)
                    557:              peephole (insn);
                    558: #endif
                    559: 
                    560:          /* That could have deleted some insns after INSN, so check now
                    561:             what the following insn is.  */
                    562: 
                    563:          next = NEXT_INSN (insn);
                    564: 
                    565:          /* See if this is a NOTE_INSN_LOOP_BEG followed by an unconditional
                    566:             jump.  Try to optimize by duplicating the loop exit test if so.
                    567:             This is only safe immediately after regscan, because it uses
                    568:             the values of regno_first_uid and regno_last_uid.  */
                    569:          if (after_regscan && GET_CODE (insn) == NOTE
                    570:              && NOTE_LINE_NUMBER (insn) == NOTE_INSN_LOOP_BEG
                    571:              && (temp1 = next_nonnote_insn (insn)) != 0
                    572:              && simplejump_p (temp1))
                    573:            {
                    574:              temp = PREV_INSN (insn);
                    575:              if (duplicate_loop_exit_test (insn))
                    576:                {
                    577:                  changed = 1;
                    578:                  next = NEXT_INSN (temp);
                    579:                  continue;
                    580:                }
                    581:            }
                    582: 
                    583:          if (GET_CODE (insn) != JUMP_INSN)
                    584:            continue;
                    585: 
                    586:          this_is_simplejump = simplejump_p (insn);
                    587:          this_is_condjump = condjump_p (insn);
                    588: 
                    589:          /* Tension the labels in dispatch tables.  */
                    590: 
                    591:          if (GET_CODE (PATTERN (insn)) == ADDR_VEC)
                    592:            changed |= tension_vector_labels (PATTERN (insn), 0);
                    593:          if (GET_CODE (PATTERN (insn)) == ADDR_DIFF_VEC)
                    594:            changed |= tension_vector_labels (PATTERN (insn), 1);
                    595: 
                    596:          /* If a dispatch table always goes to the same place,
                    597:             get rid of it and replace the insn that uses it.  */
                    598: 
                    599:          if (GET_CODE (PATTERN (insn)) == ADDR_VEC
                    600:              || GET_CODE (PATTERN (insn)) == ADDR_DIFF_VEC)
                    601:            {
                    602:              int i;
                    603:              rtx pat = PATTERN (insn);
                    604:              int diff_vec_p = GET_CODE (PATTERN (insn)) == ADDR_DIFF_VEC;
                    605:              int len = XVECLEN (pat, diff_vec_p);
                    606:              rtx dispatch = prev_real_insn (insn);
                    607: 
                    608:              for (i = 0; i < len; i++)
                    609:                if (XEXP (XVECEXP (pat, diff_vec_p, i), 0)
                    610:                    != XEXP (XVECEXP (pat, diff_vec_p, 0), 0))
                    611:                  break;
                    612:              if (i == len
                    613:                  && GET_CODE (dispatch) == JUMP_INSN
                    614:                  && JUMP_LABEL (dispatch) != 0
                    615:                  /* Don't mess with a casesi insn.  */
                    616:                  && !(GET_CODE (PATTERN (dispatch)) == SET
                    617:                       && (GET_CODE (SET_SRC (PATTERN (dispatch)))
                    618:                           == IF_THEN_ELSE))
                    619:                  && next_real_insn (JUMP_LABEL (dispatch)) == insn)
                    620:                {
                    621:                  redirect_tablejump (dispatch,
                    622:                                      XEXP (XVECEXP (pat, diff_vec_p, 0), 0));
                    623:                  changed = 1;
                    624:                }
                    625:            }
                    626: 
                    627:          reallabelprev = prev_active_insn (JUMP_LABEL (insn));
                    628: 
                    629:          /* If a jump references the end of the function, try to turn
                    630:             it into a RETURN insn, possibly a conditional one.  */
                    631:          if (JUMP_LABEL (insn)
                    632:              && next_active_insn (JUMP_LABEL (insn)) == 0)
                    633:            changed |= redirect_jump (insn, 0);
                    634: 
                    635:          /* Detect jump to following insn.  */
                    636:          if (reallabelprev == insn && condjump_p (insn))
                    637:            {
                    638:              delete_jump (insn);
                    639:              changed = 1;
                    640:              continue;
                    641:            }
                    642: 
1.1.1.2 ! root      643:          /* If we have an unconditional jump preceded by a USE, try to put
1.1       root      644:             the USE before the target and jump there.  This simplifies many
                    645:             of the optimizations below since we don't have to worry about
                    646:             dealing with these USE insns.  We only do this if the label
                    647:             being branch to already has the identical USE or if code
                    648:             never falls through to that label.  */
                    649: 
                    650:          if (this_is_simplejump
                    651:              && (temp = prev_nonnote_insn (insn)) != 0
                    652:              && GET_CODE (temp) == INSN && GET_CODE (PATTERN (temp)) == USE
                    653:              && (temp1 = prev_nonnote_insn (JUMP_LABEL (insn))) != 0
                    654:              && (GET_CODE (temp1) == BARRIER
                    655:                  || (GET_CODE (temp1) == INSN
                    656:                      && rtx_equal_p (PATTERN (temp), PATTERN (temp1)))))
                    657:            {
                    658:              if (GET_CODE (temp1) == BARRIER)
                    659:                {
                    660:                  reorder_insns (temp, temp, temp1);
                    661:                  temp1 = NEXT_INSN (temp1);
                    662:                }
                    663:              else
                    664:                delete_insn (temp);
                    665: 
                    666:              redirect_jump (insn, get_label_before (temp1));
                    667:              reallabelprev = prev_real_insn (temp1);
                    668:              changed = 1;
                    669:            }
                    670: 
                    671:          /* Simplify   if (...) x = a; else x = b; by converting it
                    672:             to         x = b; if (...) x = a;
                    673:             if B is sufficiently simple, the test doesn't involve X,
                    674:             and nothing in the test modifies B or X.
                    675: 
                    676:             If we have small register classes, we also can't do this if X
                    677:             is a hard register.
                    678: 
                    679:             If the "x = b;" insn has any REG_NOTES, we don't do this because
                    680:             of the possibility that we are running after CSE and there is a
                    681:             REG_EQUAL note that is only valid if the branch has already been
                    682:             taken.  If we move the insn with the REG_EQUAL note, we may
                    683:             fold the comparison to always be false in a later CSE pass.
                    684:             (We could also delete the REG_NOTES when moving the insn, but it
                    685:             seems simpler to not move it.)  An exception is that we can move
                    686:             the insn if the only note is a REG_EQUAL or REG_EQUIV whose
                    687:             value is the same as "b".
                    688: 
                    689:             INSN is the branch over the `else' part. 
                    690: 
                    691:             We set:
                    692: 
1.1.1.2 ! root      693:             TEMP to the jump insn preceding "x = a;"
1.1       root      694:             TEMP1 to X
                    695:             TEMP2 to the insn that sets "x = b;"
                    696:             TEMP3 to the insn that sets "x = a;"  */
                    697: 
                    698:          if (this_is_simplejump
                    699:              && (temp3 = prev_active_insn (insn)) != 0
                    700:              && GET_CODE (temp3) == INSN
                    701:              && GET_CODE (PATTERN (temp3)) == SET
                    702:              && GET_CODE (temp1 = SET_DEST (PATTERN (temp3))) == REG
                    703: #ifdef SMALL_REGISTER_CLASSES
                    704:              && REGNO (temp1) >= FIRST_PSEUDO_REGISTER
                    705: #endif
                    706:              && (temp2 = next_active_insn (insn)) != 0
                    707:              && GET_CODE (temp2) == INSN
                    708:              && GET_CODE (PATTERN (temp2)) == SET
                    709:              && rtx_equal_p (SET_DEST (PATTERN (temp2)), temp1)
                    710:              && (GET_CODE (SET_SRC (PATTERN (temp2))) == REG
                    711:                  || CONSTANT_P (SET_SRC (PATTERN (temp2))))
                    712:              && (REG_NOTES (temp2) == 0
                    713:                  || ((REG_NOTE_KIND (REG_NOTES (temp2)) == REG_EQUAL
                    714:                       || REG_NOTE_KIND (REG_NOTES (temp2)) == REG_EQUIV)
                    715:                      && XEXP (REG_NOTES (temp2), 1) == 0
                    716:                      && rtx_equal_p (XEXP (REG_NOTES (temp2), 0),
                    717:                                      SET_SRC (PATTERN (temp2)))))
                    718:              && (temp = prev_active_insn (temp3)) != 0
                    719:              && condjump_p (temp) && ! simplejump_p (temp)
                    720:              /* TEMP must skip over the "x = a;" insn */
                    721:              && prev_real_insn (JUMP_LABEL (temp)) == insn
                    722:              && no_labels_between_p (insn, JUMP_LABEL (temp))
                    723:              /* There must be no other entries to the "x = b;" insn.  */
                    724:              && no_labels_between_p (JUMP_LABEL (temp), temp2)
                    725:              /* INSN must either branch to the insn after TEMP2 or the insn
                    726:                 after TEMP2 must branch to the same place as INSN.  */
                    727:              && (reallabelprev == temp2
                    728:                  || ((temp4 = next_active_insn (temp2)) != 0
                    729:                      && simplejump_p (temp4)
                    730:                      && JUMP_LABEL (temp4) == JUMP_LABEL (insn))))
                    731:            {
                    732:              /* The test expression, X, may be a complicated test with
                    733:                 multiple branches.  See if we can find all the uses of
                    734:                 the label that TEMP branches to without hitting a CALL_INSN
                    735:                 or a jump to somewhere else.  */
                    736:              rtx target = JUMP_LABEL (temp);
                    737:              int nuses = LABEL_NUSES (target);
                    738:              rtx p, q;
                    739: 
                    740:              /* Set P to the first jump insn that goes around "x = a;".  */
                    741:              for (p = temp; nuses && p; p = prev_nonnote_insn (p))
                    742:                {
                    743:                  if (GET_CODE (p) == JUMP_INSN)
                    744:                    {
                    745:                      if (condjump_p (p) && ! simplejump_p (p)
                    746:                          && JUMP_LABEL (p) == target)
                    747:                        {
                    748:                          nuses--;
                    749:                          if (nuses == 0)
                    750:                            break;
                    751:                        }
                    752:                      else
                    753:                        break;
                    754:                    }
                    755:                  else if (GET_CODE (p) == CALL_INSN)
                    756:                    break;
                    757:                }
                    758: 
                    759: #ifdef HAVE_cc0
                    760:              /* We cannot insert anything between a set of cc and its use
                    761:                 so if P uses cc0, we must back up to the previous insn.  */
                    762:              q = prev_nonnote_insn (p);
                    763:              if (q && GET_RTX_CLASS (GET_CODE (q)) == 'i'
                    764:                  && sets_cc0_p (PATTERN (q)))
                    765:                p = q;
                    766: #endif
                    767: 
                    768:              if (p)
                    769:                p = PREV_INSN (p);
                    770: 
                    771:              /* If we found all the uses and there was no data conflict, we
                    772:                 can move the assignment unless we can branch into the middle
                    773:                 from somewhere.  */
                    774:              if (nuses == 0 && p
                    775:                  && no_labels_between_p (p, insn)
                    776:                  && ! reg_referenced_between_p (temp1, p, NEXT_INSN (temp3))
                    777:                  && ! reg_set_between_p (temp1, p, temp3)
                    778:                  && (GET_CODE (SET_SRC (PATTERN (temp2))) == CONST_INT
                    779:                      || ! reg_set_between_p (SET_SRC (PATTERN (temp2)),
                    780:                                              p, temp2)))
                    781:                {
                    782:                  reorder_insns_with_line_notes (temp2, temp2, p);
                    783: 
                    784:                  /* Set NEXT to an insn that we know won't go away.  */
                    785:                  next = next_active_insn (insn);
                    786: 
                    787:                  /* Delete the jump around the set.  Note that we must do
                    788:                     this before we redirect the test jumps so that it won't
                    789:                     delete the code immediately following the assignment
                    790:                     we moved (which might be a jump).  */
                    791: 
                    792:                  delete_insn (insn);
                    793: 
                    794:                  /* We either have two consecutive labels or a jump to
                    795:                     a jump, so adjust all the JUMP_INSNs to branch to where
                    796:                     INSN branches to.  */
                    797:                  for (p = NEXT_INSN (p); p != next; p = NEXT_INSN (p))
                    798:                    if (GET_CODE (p) == JUMP_INSN)
                    799:                      redirect_jump (p, target);
                    800: 
                    801:                  changed = 1;
                    802:                  continue;
                    803:                }
                    804:            }
                    805: 
                    806:          /* If we have  x = a; if (...) x = b;
                    807:             and either A or B is zero, or if we have  if (...) x = 0;
                    808:             and jumps are expensive, try to use a store-flag insn to
                    809:             avoid the jump.  (If the jump would be faster, the machine
                    810:             should not have defined the scc insns!).  These cases are often
                    811:             made by the previous optimization.
                    812: 
                    813:             INSN here is the jump around the store.  We set:
                    814: 
                    815:             TEMP to the "x = b;" insn.
                    816:             TEMP1 to X.
                    817:             TEMP2 to B (const0_rtx in the second case).
                    818:             TEMP3 to A (X in the second case).
                    819:             TEMP4 to the condition being tested.
                    820:             TEMP5 to the earliest insn used to find the condition.  */
                    821: 
                    822:          if (/* We can't do this after reload has completed.  */
                    823:              ! reload_completed
                    824:              && this_is_condjump && ! this_is_simplejump
                    825:              /* Set TEMP to the "x = b;" insn.  */
                    826:              && (temp = next_nonnote_insn (insn)) != 0
                    827:              && GET_CODE (temp) == INSN
                    828:              && GET_CODE (PATTERN (temp)) == SET
                    829:              && GET_CODE (temp1 = SET_DEST (PATTERN (temp))) == REG
                    830: #ifdef SMALL_REGISTER_CLASSES
                    831:              && REGNO (temp1) >= FIRST_PSEUDO_REGISTER
                    832: #endif
                    833:              && GET_MODE_CLASS (GET_MODE (temp1)) == MODE_INT
                    834:              && (GET_CODE (temp2 = SET_SRC (PATTERN (temp))) == REG
                    835:                  || GET_CODE (temp2) == CONST_INT)
                    836:              /* Allow either form, but prefer the former if both apply.  */
                    837:              && (((temp3 = reg_set_last (temp1, insn)) != 0
                    838:                   && ((GET_CODE (temp3) == REG
                    839: #ifdef SMALL_REGISTER_CLASSES
                    840:                        && REGNO (temp3) >= FIRST_PSEUDO_REGISTER
                    841: #endif
                    842:                        )
                    843:                       || GET_CODE (temp3) == CONST_INT))
                    844:                  /* Make the latter case look like  x = x; if (...) x = 0;  */
                    845:                  || ((temp3 = temp1, BRANCH_COST > 1)
                    846:                      && temp2 == const0_rtx))
                    847:              /* INSN must either branch to the insn after TEMP or the insn
                    848:                 after TEMP must branch to the same place as INSN.  */
                    849:              && (reallabelprev == temp
                    850:                  || ((temp4 = next_active_insn (temp)) != 0
                    851:                      && simplejump_p (temp4)
                    852:                      && JUMP_LABEL (temp4) == JUMP_LABEL (insn)))
                    853:              && (temp4 = get_condition (insn, &temp5)) != 0
                    854: 
                    855:              /* If B is zero, OK; if A is zero, can only do this if we
                    856:                 can reverse the condition.  */
                    857:              && (temp2 == const0_rtx
                    858:                  || (temp3 == const0_rtx
                    859:                      && (can_reverse_comparison_p (temp4, insn)))))
                    860:            {
                    861:              enum rtx_code code = GET_CODE (temp4);
                    862:              rtx yes = temp3, var = temp1;
                    863:              int normalizep;
                    864:              rtx target;
                    865: 
                    866:              /* If necessary, reverse the condition.  */
                    867:              if (temp3 == const0_rtx)
                    868:                code = reverse_condition (code), yes = temp2;
                    869: 
                    870:              /* See if we can do this with a store-flag insn. */
                    871:              start_sequence ();
                    872: 
                    873:              /* If YES is the constant 1, it is best to just compute
                    874:                 the result directly.  If YES is constant and STORE_FLAG_VALUE
                    875:                 includes all of its bits, it is best to compute the flag
                    876:                 value unnormalized and `and' it with YES.  Otherwise,
                    877:                 normalize to -1 and `and' with YES.  */
                    878:              normalizep = (yes == const1_rtx ? 1
                    879:                            : (GET_CODE (yes) == CONST_INT
                    880:                               && (INTVAL (yes) & ~ STORE_FLAG_VALUE) == 0) ? 0
                    881:                            : -1);
                    882: 
                    883:              /* We will be putting the store-flag insn immediately in
                    884:                 front of the comparison that was originally being done,
                    885:                 so we know all the variables in TEMP4 will be valid.
                    886:                 However, this might be in front of the assignment of
                    887:                 A to VAR.  If it is, it would clobber the store-flag
                    888:                 we will be emitting.
                    889: 
                    890:                 Therefore, emit into a temporary which will be copied to
                    891:                 VAR immediately after TEMP.  */
                    892: 
                    893:              target = emit_store_flag (gen_reg_rtx (GET_MODE (var)), code,
                    894:                                        XEXP (temp4, 0), XEXP (temp4, 1),
                    895:                                        VOIDmode,
                    896:                                        (code == LTU || code == LEU 
                    897:                                         || code == GEU || code == GTU),
                    898:                                        normalizep);
                    899:              if (target)
                    900:                {
                    901:                  rtx seq;
                    902: 
                    903:                  if (normalizep != 1)
                    904:                    target = expand_and (yes, target,
                    905:                                         (GET_CODE (target) == REG
                    906:                                          ? target : 0));
                    907:                  seq = gen_sequence ();
                    908:                  end_sequence ();
                    909:                  emit_insn_before (seq, temp5);
                    910:                  emit_insn_after (gen_move_insn (var, target), insn);
                    911:                  delete_insn (temp);
                    912:                  next = NEXT_INSN (insn);
                    913: #ifdef HAVE_cc0
                    914:                  delete_insn (prev_nonnote_insn (insn));
                    915: #endif
                    916:                  delete_insn (insn);
                    917:                  changed = 1;
                    918:                  continue;
                    919:                }
                    920:              else
                    921:                end_sequence ();
                    922:            }
                    923: 
                    924:          /* If branches are expensive, convert
                    925:                if (foo) bar++;    to    bar += (foo != 0);
                    926:             and similarly for "bar--;" 
                    927: 
                    928:             INSN is the conditional branch around the arithmetic.  We set:
                    929: 
                    930:             TEMP is the arithmetic insn.
                    931:             TEMP1 is the SET doing the arthmetic.
                    932:             TEMP2 is the operand being incremented or decremented.
                    933:             TEMP3 to the condition being tested.
                    934:             TEMP4 to the earliest insn used to find the condition.  */
                    935: 
                    936:          if (BRANCH_COST >= 2
                    937:              && ! reload_completed
                    938:              && this_is_condjump && ! this_is_simplejump
                    939:              && (temp = next_nonnote_insn (insn)) != 0
                    940:              && (temp1 = single_set (temp)) != 0
                    941:              && (temp2 = SET_DEST (temp1),
                    942:                  GET_MODE_CLASS (GET_MODE (temp2)) == MODE_INT)
                    943:              && GET_CODE (SET_SRC (temp1)) == PLUS
                    944:              && (XEXP (SET_SRC (temp1), 1) == const1_rtx
                    945:                  || XEXP (SET_SRC (temp1), 1) == constm1_rtx)
                    946:              && rtx_equal_p (temp2, XEXP (SET_SRC (temp1), 0))
                    947:              /* INSN must either branch to the insn after TEMP or the insn
                    948:                 after TEMP must branch to the same place as INSN.  */
                    949:              && (reallabelprev == temp
                    950:                  || ((temp3 = next_active_insn (temp)) != 0
                    951:                      && simplejump_p (temp3)
                    952:                      && JUMP_LABEL (temp3) == JUMP_LABEL (insn)))
                    953:              && (temp3 = get_condition (insn, &temp4)) != 0
                    954:              && can_reverse_comparison_p (temp3, insn))
                    955:            {
                    956:              rtx target, seq;
                    957:              enum rtx_code code = reverse_condition (GET_CODE (temp3));
                    958: 
                    959:              start_sequence ();
                    960: 
                    961:              target = emit_store_flag (gen_reg_rtx (GET_MODE (temp2)), code,
                    962:                                        XEXP (temp3, 0), XEXP (temp3, 1),
                    963:                                        VOIDmode,
                    964:                                        (code == LTU || code == LEU
                    965:                                         || code == GTU || code == GEU), 1);
                    966: 
                    967:              /* If we can do the store-flag, do the addition or
                    968:                 subtraction.  */
                    969: 
                    970:              if (target)
                    971:                target = expand_binop (GET_MODE (temp2),
                    972:                                       (XEXP (SET_SRC (temp1), 1) == const1_rtx
                    973:                                        ? add_optab : sub_optab),
                    974:                                       temp2, target, temp2, OPTAB_WIDEN);
                    975: 
                    976:              if (target != 0)
                    977:                {
                    978:                  /* Put the result back in temp2 in case it isn't already.
                    979:                     Then replace the jump, possible a CC0-setting insn in
                    980:                     front of the jump, and TEMP, with the sequence we have
                    981:                     made.  */
                    982: 
                    983:                  if (target != temp2)
                    984:                    emit_move_insn (temp2, target);
                    985: 
                    986:                  seq = get_insns ();
                    987:                  end_sequence ();
                    988: 
                    989:                  emit_insns_before (seq, temp4);
                    990:                  delete_insn (temp);
                    991:                  next = NEXT_INSN (insn);
                    992: #ifdef HAVE_cc0
                    993:                  delete_insn (prev_nonnote_insn (insn));
                    994: #endif
                    995:                  delete_insn (insn);
                    996:                  changed = 1;
                    997:                  continue;
                    998:                }
                    999:              else
                   1000:                end_sequence ();
                   1001:            }
                   1002: 
                   1003:          /* Simplify   if (...) x = 1; else {...}  if (x) ...
                   1004:             We recognize this case scanning backwards as well.
                   1005: 
                   1006:             TEMP is the assignment to x;
                   1007:             TEMP1 is the label at the head of the second if.  */
                   1008:          /* ?? This should call get_condition to find the values being
                   1009:             compared, instead of looking for a COMPARE insn when HAVE_cc0
                   1010:             is not defined.  This would allow it to work on the m88k.  */
                   1011:          /* ?? This optimization is only safe before cse is run if HAVE_cc0
                   1012:             is not defined and the condition is tested by a separate compare
                   1013:             insn.  This is because the code below assumes that the result
                   1014:             of the compare dies in the following branch.
                   1015: 
                   1016:             Not only that, but there might be other insns between the
                   1017:             compare and branch whose results are live.  Those insns need
                   1018:             to be executed.
                   1019: 
                   1020:             A way to fix this is to move the insns at JUMP_LABEL (insn)
                   1021:             to before INSN.  If we are running before flow, they will
                   1022:             be deleted if they aren't needed.   But this doesn't work
                   1023:             well after flow.
                   1024: 
                   1025:             This is really a special-case of jump threading, anyway.  The
                   1026:             right thing to do is to replace this and jump threading with
                   1027:             much simpler code in cse.
                   1028: 
                   1029:             This code has been turned off in the non-cc0 case in the
                   1030:             meantime.  */
                   1031: 
                   1032: #ifdef HAVE_cc0
                   1033:          else if (this_is_simplejump
                   1034:                   /* Safe to skip USE and CLOBBER insns here
                   1035:                      since they will not be deleted.  */
                   1036:                   && (temp = prev_active_insn (insn))
                   1037:                   && no_labels_between_p (temp, insn)
                   1038:                   && GET_CODE (temp) == INSN
                   1039:                   && GET_CODE (PATTERN (temp)) == SET
                   1040:                   && GET_CODE (SET_DEST (PATTERN (temp))) == REG
                   1041:                   && CONSTANT_P (SET_SRC (PATTERN (temp)))
                   1042:                   && (temp1 = next_active_insn (JUMP_LABEL (insn)))
                   1043:                   /* If we find that the next value tested is `x'
                   1044:                      (TEMP1 is the insn where this happens), win.  */
                   1045:                   && GET_CODE (temp1) == INSN
                   1046:                   && GET_CODE (PATTERN (temp1)) == SET
                   1047: #ifdef HAVE_cc0
                   1048:                   /* Does temp1 `tst' the value of x?  */
                   1049:                   && SET_SRC (PATTERN (temp1)) == SET_DEST (PATTERN (temp))
                   1050:                   && SET_DEST (PATTERN (temp1)) == cc0_rtx
                   1051:                   && (temp1 = next_nonnote_insn (temp1))
                   1052: #else
                   1053:                   /* Does temp1 compare the value of x against zero?  */
                   1054:                   && GET_CODE (SET_SRC (PATTERN (temp1))) == COMPARE
                   1055:                   && XEXP (SET_SRC (PATTERN (temp1)), 1) == const0_rtx
                   1056:                   && (XEXP (SET_SRC (PATTERN (temp1)), 0)
                   1057:                       == SET_DEST (PATTERN (temp)))
                   1058:                   && GET_CODE (SET_DEST (PATTERN (temp1))) == REG
                   1059:                   && (temp1 = find_next_ref (SET_DEST (PATTERN (temp1)), temp1))
                   1060: #endif
                   1061:                   && condjump_p (temp1))
                   1062:            {
                   1063:              /* Get the if_then_else from the condjump.  */
                   1064:              rtx choice = SET_SRC (PATTERN (temp1));
                   1065:              if (GET_CODE (choice) == IF_THEN_ELSE)
                   1066:                {
                   1067:                  enum rtx_code code = GET_CODE (XEXP (choice, 0));
                   1068:                  rtx val = SET_SRC (PATTERN (temp));
                   1069:                  rtx cond
                   1070:                    = simplify_relational_operation (code, GET_MODE (SET_DEST (PATTERN (temp))),
                   1071:                                                     val, const0_rtx);
                   1072:                  rtx ultimate;
                   1073: 
                   1074:                  if (cond == const_true_rtx)
                   1075:                    ultimate = XEXP (choice, 1);
                   1076:                  else if (cond == const0_rtx)
                   1077:                    ultimate = XEXP (choice, 2);
                   1078:                  else
                   1079:                    ultimate = 0;
                   1080: 
                   1081:                  if (ultimate == pc_rtx)
                   1082:                    ultimate = get_label_after (temp1);
                   1083:                  else if (ultimate && GET_CODE (ultimate) != RETURN)
                   1084:                    ultimate = XEXP (ultimate, 0);
                   1085: 
                   1086:                  if (ultimate)
                   1087:                    changed |= redirect_jump (insn, ultimate);
                   1088:                }
                   1089:            }
                   1090: #endif
                   1091: 
                   1092: #if 0
                   1093:          /* @@ This needs a bit of work before it will be right.
                   1094: 
                   1095:             Any type of comparison can be accepted for the first and
                   1096:             second compare.  When rewriting the first jump, we must
                   1097:             compute the what conditions can reach label3, and use the
                   1098:             appropriate code.  We can not simply reverse/swap the code
                   1099:             of the first jump.  In some cases, the second jump must be
                   1100:             rewritten also.
                   1101: 
                   1102:             For example, 
                   1103:             <  == converts to >  ==
                   1104:             <  != converts to ==  >
                   1105:             etc.
                   1106: 
                   1107:             If the code is written to only accept an '==' test for the second
                   1108:             compare, then all that needs to be done is to swap the condition
                   1109:             of the first branch.
                   1110: 
                   1111:             It is questionable whether we want this optimization anyways,
                   1112:             since if the user wrote code like this because he/she knew that
                   1113:             the jump to label1 is taken most of the time, then rewritting
                   1114:             this gives slower code.  */
                   1115:          /* @@ This should call get_condition to find the values being
                   1116:             compared, instead of looking for a COMPARE insn when HAVE_cc0
                   1117:             is not defined.  This would allow it to work on the m88k.  */
                   1118:          /* @@ This optimization is only safe before cse is run if HAVE_cc0
                   1119:             is not defined and the condition is tested by a separate compare
                   1120:             insn.  This is because the code below assumes that the result
                   1121:             of the compare dies in the following branch.  */
                   1122: 
                   1123:          /* Simplify  test a ~= b
                   1124:                       condjump label1;
                   1125:                       test a == b
                   1126:                       condjump label2;
                   1127:                       jump label3;
                   1128:                       label1:
                   1129: 
                   1130:             rewriting as
                   1131:                       test a ~~= b
                   1132:                       condjump label3
                   1133:                       test a == b
                   1134:                       condjump label2
                   1135:                       label1:
                   1136: 
                   1137:             where ~= is an inequality, e.g. >, and ~~= is the swapped
                   1138:             inequality, e.g. <.
                   1139: 
                   1140:             We recognize this case scanning backwards.
                   1141: 
                   1142:             TEMP is the conditional jump to `label2';
                   1143:             TEMP1 is the test for `a == b';
                   1144:             TEMP2 is the conditional jump to `label1';
                   1145:             TEMP3 is the test for `a ~= b'.  */
                   1146:          else if (this_is_simplejump
                   1147:                   && (temp = prev_active_insn (insn))
                   1148:                   && no_labels_between_p (temp, insn)
                   1149:                   && condjump_p (temp)
                   1150:                   && (temp1 = prev_active_insn (temp))
                   1151:                   && no_labels_between_p (temp1, temp)
                   1152:                   && GET_CODE (temp1) == INSN
                   1153:                   && GET_CODE (PATTERN (temp1)) == SET
                   1154: #ifdef HAVE_cc0
                   1155:                   && sets_cc0_p (PATTERN (temp1)) == 1
                   1156: #else
                   1157:                   && GET_CODE (SET_SRC (PATTERN (temp1))) == COMPARE
                   1158:                   && GET_CODE (SET_DEST (PATTERN (temp1))) == REG
                   1159:                   && (temp == find_next_ref (SET_DEST (PATTERN (temp1)), temp1))
                   1160: #endif
                   1161:                   && (temp2 = prev_active_insn (temp1))
                   1162:                   && no_labels_between_p (temp2, temp1)
                   1163:                   && condjump_p (temp2)
                   1164:                   && JUMP_LABEL (temp2) == next_nonnote_insn (NEXT_INSN (insn))
                   1165:                   && (temp3 = prev_active_insn (temp2))
                   1166:                   && no_labels_between_p (temp3, temp2)
                   1167:                   && GET_CODE (PATTERN (temp3)) == SET
                   1168:                   && rtx_equal_p (SET_DEST (PATTERN (temp3)),
                   1169:                                   SET_DEST (PATTERN (temp1)))
                   1170:                   && rtx_equal_p (SET_SRC (PATTERN (temp1)),
                   1171:                                   SET_SRC (PATTERN (temp3)))
                   1172:                   && ! inequality_comparisons_p (PATTERN (temp))
                   1173:                   && inequality_comparisons_p (PATTERN (temp2)))
                   1174:            {
                   1175:              rtx fallthrough_label = JUMP_LABEL (temp2);
                   1176: 
                   1177:              ++LABEL_NUSES (fallthrough_label);
                   1178:              if (swap_jump (temp2, JUMP_LABEL (insn)))
                   1179:                {
                   1180:                  delete_insn (insn);
                   1181:                  changed = 1;
                   1182:                }
                   1183: 
                   1184:              if (--LABEL_NUSES (fallthrough_label) == 0)
                   1185:                delete_insn (fallthrough_label);
                   1186:            }
                   1187: #endif
                   1188:          /* Simplify  if (...) {... x = 1;} if (x) ...
                   1189: 
                   1190:             We recognize this case backwards.
                   1191: 
                   1192:             TEMP is the test of `x';
                   1193:             TEMP1 is the assignment to `x' at the end of the
                   1194:             previous statement.  */
                   1195:          /* @@ This should call get_condition to find the values being
                   1196:             compared, instead of looking for a COMPARE insn when HAVE_cc0
                   1197:             is not defined.  This would allow it to work on the m88k.  */
                   1198:          /* @@ This optimization is only safe before cse is run if HAVE_cc0
                   1199:             is not defined and the condition is tested by a separate compare
                   1200:             insn.  This is because the code below assumes that the result
                   1201:             of the compare dies in the following branch.  */
                   1202: 
                   1203:          /* ??? This has to be turned off.  The problem is that the
                   1204:             unconditional jump might indirectly end up branching to the
                   1205:             label between TEMP1 and TEMP.  We can't detect this, in general,
                   1206:             since it may become a jump to there after further optimizations.
                   1207:             If that jump is done, it will be deleted, so we will retry
                   1208:             this optimization in the next pass, thus an infinite loop.
                   1209: 
                   1210:             The present code prevents this by putting the jump after the
                   1211:             label, but this is not logically correct.  */
                   1212: #if 0
                   1213:          else if (this_is_condjump
                   1214:                   /* Safe to skip USE and CLOBBER insns here
                   1215:                      since they will not be deleted.  */
                   1216:                   && (temp = prev_active_insn (insn))
                   1217:                   && no_labels_between_p (temp, insn)
                   1218:                   && GET_CODE (temp) == INSN
                   1219:                   && GET_CODE (PATTERN (temp)) == SET
                   1220: #ifdef HAVE_cc0
                   1221:                   && sets_cc0_p (PATTERN (temp)) == 1
                   1222:                   && GET_CODE (SET_SRC (PATTERN (temp))) == REG
                   1223: #else
                   1224:                   /* Temp must be a compare insn, we can not accept a register
                   1225:                      to register move here, since it may not be simply a
                   1226:                      tst insn.  */
                   1227:                   && GET_CODE (SET_SRC (PATTERN (temp))) == COMPARE
                   1228:                   && XEXP (SET_SRC (PATTERN (temp)), 1) == const0_rtx
                   1229:                   && GET_CODE (XEXP (SET_SRC (PATTERN (temp)), 0)) == REG
                   1230:                   && GET_CODE (SET_DEST (PATTERN (temp))) == REG
                   1231:                   && insn == find_next_ref (SET_DEST (PATTERN (temp)), temp)
                   1232: #endif
                   1233:                   /* May skip USE or CLOBBER insns here
                   1234:                      for checking for opportunity, since we
                   1235:                      take care of them later.  */
                   1236:                   && (temp1 = prev_active_insn (temp))
                   1237:                   && GET_CODE (temp1) == INSN
                   1238:                   && GET_CODE (PATTERN (temp1)) == SET
                   1239: #ifdef HAVE_cc0
                   1240:                   && SET_SRC (PATTERN (temp)) == SET_DEST (PATTERN (temp1))
                   1241: #else
                   1242:                   && (XEXP (SET_SRC (PATTERN (temp)), 0)
                   1243:                       == SET_DEST (PATTERN (temp1)))
                   1244: #endif
                   1245:                   && CONSTANT_P (SET_SRC (PATTERN (temp1)))
                   1246:                   /* If this isn't true, cse will do the job.  */
                   1247:                   && ! no_labels_between_p (temp1, temp))
                   1248:            {
                   1249:              /* Get the if_then_else from the condjump.  */
                   1250:              rtx choice = SET_SRC (PATTERN (insn));
                   1251:              if (GET_CODE (choice) == IF_THEN_ELSE
                   1252:                  && (GET_CODE (XEXP (choice, 0)) == EQ
                   1253:                      || GET_CODE (XEXP (choice, 0)) == NE))
                   1254:                {
                   1255:                  int want_nonzero = (GET_CODE (XEXP (choice, 0)) == NE);
                   1256:                  rtx last_insn;
                   1257:                  rtx ultimate;
                   1258:                  rtx p;
                   1259: 
                   1260:                  /* Get the place that condjump will jump to
                   1261:                     if it is reached from here.  */
                   1262:                  if ((SET_SRC (PATTERN (temp1)) != const0_rtx)
                   1263:                      == want_nonzero)
                   1264:                    ultimate = XEXP (choice, 1);
                   1265:                  else
                   1266:                    ultimate = XEXP (choice, 2);
                   1267:                  /* Get it as a CODE_LABEL.  */
                   1268:                  if (ultimate == pc_rtx)
                   1269:                    ultimate = get_label_after (insn);
                   1270:                  else
                   1271:                    /* Get the label out of the LABEL_REF.  */
                   1272:                    ultimate = XEXP (ultimate, 0);
                   1273: 
                   1274:                  /* Insert the jump immediately before TEMP, specifically
                   1275:                     after the label that is between TEMP1 and TEMP.  */
                   1276:                  last_insn = PREV_INSN (temp);
                   1277: 
                   1278:                  /* If we would be branching to the next insn, the jump
                   1279:                     would immediately be deleted and the re-inserted in
                   1280:                     a subsequent pass over the code.  So don't do anything
                   1281:                     in that case.  */
                   1282:                  if (next_active_insn (last_insn)
                   1283:                      != next_active_insn (ultimate))
                   1284:                    {
                   1285:                      emit_barrier_after (last_insn);
                   1286:                      p = emit_jump_insn_after (gen_jump (ultimate),
                   1287:                                                last_insn);
                   1288:                      JUMP_LABEL (p) = ultimate;
                   1289:                      ++LABEL_NUSES (ultimate);
                   1290:                      if (INSN_UID (ultimate) < max_jump_chain
                   1291:                          && INSN_CODE (p) < max_jump_chain)
                   1292:                        {
                   1293:                          jump_chain[INSN_UID (p)]
                   1294:                            = jump_chain[INSN_UID (ultimate)];
                   1295:                          jump_chain[INSN_UID (ultimate)] = p;
                   1296:                        }
                   1297:                      changed = 1;
                   1298:                      continue;
                   1299:                    }
                   1300:                }
                   1301:            }
                   1302: #endif
                   1303:          /* Detect a conditional jump going to the same place
                   1304:             as an immediately following unconditional jump.  */
                   1305:          else if (this_is_condjump
                   1306:                   && (temp = next_active_insn (insn)) != 0
                   1307:                   && simplejump_p (temp)
                   1308:                   && (next_active_insn (JUMP_LABEL (insn))
                   1309:                       == next_active_insn (JUMP_LABEL (temp))))
                   1310:            {
                   1311:              delete_jump (insn);
                   1312:              changed = 1;
                   1313:              continue;
                   1314:            }
                   1315:          /* Detect a conditional jump jumping over an unconditional jump.  */
                   1316: 
                   1317:          else if (this_is_condjump && ! this_is_simplejump
                   1318:                   && reallabelprev != 0
                   1319:                   && GET_CODE (reallabelprev) == JUMP_INSN
                   1320:                   && prev_active_insn (reallabelprev) == insn
                   1321:                   && no_labels_between_p (insn, reallabelprev)
                   1322:                   && simplejump_p (reallabelprev))
                   1323:            {
                   1324:              /* When we invert the unconditional jump, we will be
                   1325:                 decrementing the usage count of its old label.
                   1326:                 Make sure that we don't delete it now because that
                   1327:                 might cause the following code to be deleted.  */
                   1328:              rtx prev_uses = prev_nonnote_insn (reallabelprev);
                   1329:              rtx prev_label = JUMP_LABEL (insn);
                   1330: 
                   1331:              ++LABEL_NUSES (prev_label);
                   1332: 
                   1333:              if (invert_jump (insn, JUMP_LABEL (reallabelprev)))
                   1334:                {
                   1335:                  /* It is very likely that if there are USE insns before
                   1336:                     this jump, they hold REG_DEAD notes.  These REG_DEAD
                   1337:                     notes are no longer valid due to this optimization,
                   1338:                     and will cause the life-analysis that following passes
                   1339:                     (notably delayed-branch scheduling) to think that
                   1340:                     these registers are dead when they are not.
                   1341: 
                   1342:                     To prevent this trouble, we just remove the USE insns
                   1343:                     from the insn chain.  */
                   1344: 
                   1345:                  while (prev_uses && GET_CODE (prev_uses) == INSN
                   1346:                         && GET_CODE (PATTERN (prev_uses)) == USE)
                   1347:                    {
                   1348:                      rtx useless = prev_uses;
                   1349:                      prev_uses = prev_nonnote_insn (prev_uses);
                   1350:                      delete_insn (useless);
                   1351:                    }
                   1352: 
                   1353:                  delete_insn (reallabelprev);
                   1354:                  next = insn;
                   1355:                  changed = 1;
                   1356:                }
                   1357: 
                   1358:              /* We can now safely delete the label if it is unreferenced
                   1359:                 since the delete_insn above has deleted the BARRIER.  */
                   1360:              if (--LABEL_NUSES (prev_label) == 0)
                   1361:                delete_insn (prev_label);
                   1362:              continue;
                   1363:            }
                   1364:          else
                   1365:            {
                   1366:              /* Detect a jump to a jump.  */
                   1367: 
                   1368:              nlabel = follow_jumps (JUMP_LABEL (insn));
                   1369:              if (nlabel != JUMP_LABEL (insn)
                   1370:                  && redirect_jump (insn, nlabel))
                   1371:                {
                   1372:                  changed = 1;
                   1373:                  next = insn;
                   1374:                }
                   1375: 
                   1376:              /* Look for   if (foo) bar; else break;  */
                   1377:              /* The insns look like this:
                   1378:                 insn = condjump label1;
                   1379:                 ...range1 (some insns)...
                   1380:                 jump label2;
                   1381:                 label1:
                   1382:                 ...range2 (some insns)...
                   1383:                 jump somewhere unconditionally
                   1384:                 label2:  */
                   1385:              {
                   1386:                rtx label1 = next_label (insn);
                   1387:                rtx range1end = label1 ? prev_active_insn (label1) : 0;
                   1388:                /* Don't do this optimization on the first round, so that
                   1389:                   jump-around-a-jump gets simplified before we ask here
                   1390:                   whether a jump is unconditional.
                   1391: 
                   1392:                   Also don't do it when we are called after reload since
                   1393:                   it will confuse reorg.  */
                   1394:                if (! first
                   1395:                    && (reload_completed ? ! flag_delayed_branch : 1)
                   1396:                    /* Make sure INSN is something we can invert.  */
                   1397:                    && condjump_p (insn)
                   1398:                    && label1 != 0
                   1399:                    && JUMP_LABEL (insn) == label1
                   1400:                    && LABEL_NUSES (label1) == 1
                   1401:                    && GET_CODE (range1end) == JUMP_INSN
                   1402:                    && simplejump_p (range1end))
                   1403:                  {
                   1404:                    rtx label2 = next_label (label1);
                   1405:                    rtx range2end = label2 ? prev_active_insn (label2) : 0;
                   1406:                    if (range1end != range2end
                   1407:                        && JUMP_LABEL (range1end) == label2
                   1408:                        && GET_CODE (range2end) == JUMP_INSN
                   1409:                        && GET_CODE (NEXT_INSN (range2end)) == BARRIER
                   1410:                        /* Invert the jump condition, so we
                   1411:                           still execute the same insns in each case.  */
                   1412:                        && invert_jump (insn, label1))
                   1413:                      {
                   1414:                        rtx range1beg = next_active_insn (insn);
                   1415:                        rtx range2beg = next_active_insn (label1);
                   1416:                        rtx range1after, range2after;
                   1417:                        rtx range1before, range2before;
                   1418: 
1.1.1.2 ! root     1419:                        /* Include in each range any line number before it.  */
        !          1420:                        while (PREV_INSN (range1beg)
        !          1421:                               && GET_CODE (PREV_INSN (range1beg)) == NOTE
        !          1422:                               && NOTE_LINE_NUMBER (PREV_INSN (range1beg)) > 0)
        !          1423:                          range1beg = PREV_INSN (range1beg);
        !          1424: 
        !          1425:                        while (PREV_INSN (range2beg)
        !          1426:                               && GET_CODE (PREV_INSN (range2beg)) == NOTE
        !          1427:                               && NOTE_LINE_NUMBER (PREV_INSN (range2beg)) > 0)
        !          1428:                          range2beg = PREV_INSN (range2beg);
        !          1429: 
1.1       root     1430:                        /* Don't move NOTEs for blocks or loops; shift them
                   1431:                           outside the ranges, where they'll stay put.  */
                   1432:                        squeeze_notes (range1beg, range1end);
                   1433:                        squeeze_notes (range2beg, range2end);
                   1434: 
                   1435:                        /* Get current surrounds of the 2 ranges.  */
                   1436:                        range1before = PREV_INSN (range1beg);
                   1437:                        range2before = PREV_INSN (range2beg);
                   1438:                        range1after = NEXT_INSN (range1end);
                   1439:                        range2after = NEXT_INSN (range2end);
                   1440: 
                   1441:                        /* Splice range2 where range1 was.  */
                   1442:                        NEXT_INSN (range1before) = range2beg;
                   1443:                        PREV_INSN (range2beg) = range1before;
                   1444:                        NEXT_INSN (range2end) = range1after;
                   1445:                        PREV_INSN (range1after) = range2end;
                   1446:                        /* Splice range1 where range2 was.  */
                   1447:                        NEXT_INSN (range2before) = range1beg;
                   1448:                        PREV_INSN (range1beg) = range2before;
                   1449:                        NEXT_INSN (range1end) = range2after;
                   1450:                        PREV_INSN (range2after) = range1end;
                   1451:                        changed = 1;
                   1452:                        continue;
                   1453:                      }
                   1454:                  }
                   1455:              }
                   1456: 
                   1457:              /* Now that the jump has been tensioned,
                   1458:                 try cross jumping: check for identical code
                   1459:                 before the jump and before its target label. */
                   1460: 
                   1461:              /* First, cross jumping of conditional jumps:  */
                   1462: 
                   1463:              if (cross_jump && condjump_p (insn))
                   1464:                {
                   1465:                  rtx newjpos, newlpos;
                   1466:                  rtx x = prev_real_insn (JUMP_LABEL (insn));
                   1467: 
                   1468:                  /* A conditional jump may be crossjumped
                   1469:                     only if the place it jumps to follows
                   1470:                     an opposing jump that comes back here.  */
                   1471: 
                   1472:                  if (x != 0 && ! jump_back_p (x, insn))
                   1473:                    /* We have no opposing jump;
                   1474:                       cannot cross jump this insn.  */
                   1475:                    x = 0;
                   1476: 
                   1477:                  newjpos = 0;
                   1478:                  /* TARGET is nonzero if it is ok to cross jump
                   1479:                     to code before TARGET.  If so, see if matches.  */
                   1480:                  if (x != 0)
                   1481:                    find_cross_jump (insn, x, 2,
                   1482:                                     &newjpos, &newlpos);
                   1483: 
                   1484:                  if (newjpos != 0)
                   1485:                    {
                   1486:                      do_cross_jump (insn, newjpos, newlpos);
                   1487:                      /* Make the old conditional jump
                   1488:                         into an unconditional one.  */
                   1489:                      SET_SRC (PATTERN (insn))
                   1490:                        = gen_rtx (LABEL_REF, VOIDmode, JUMP_LABEL (insn));
                   1491:                      INSN_CODE (insn) = -1;
                   1492:                      emit_barrier_after (insn);
                   1493:                      /* Add to jump_chain unless this is a new label
                   1494:                         whose UID is too large. */
                   1495:                      if (INSN_UID (JUMP_LABEL (insn)) < max_jump_chain)
                   1496:                        {
                   1497:                          jump_chain[INSN_UID (insn)]
                   1498:                            = jump_chain[INSN_UID (JUMP_LABEL (insn))];
                   1499:                          jump_chain[INSN_UID (JUMP_LABEL (insn))] = insn;
                   1500:                        }
                   1501:                      changed = 1;
                   1502:                      next = insn;
                   1503:                    }
                   1504:                }
                   1505: 
                   1506:              /* Cross jumping of unconditional jumps:
                   1507:                 a few differences.  */
                   1508: 
                   1509:              if (cross_jump && simplejump_p (insn))
                   1510:                {
                   1511:                  rtx newjpos, newlpos;
                   1512:                  rtx target;
                   1513: 
                   1514:                  newjpos = 0;
                   1515: 
                   1516:                  /* TARGET is nonzero if it is ok to cross jump
                   1517:                     to code before TARGET.  If so, see if matches.  */
                   1518:                  find_cross_jump (insn, JUMP_LABEL (insn), 1,
                   1519:                                   &newjpos, &newlpos);
                   1520: 
                   1521:                  /* If cannot cross jump to code before the label,
                   1522:                     see if we can cross jump to another jump to
                   1523:                     the same label.  */
                   1524:                  /* Try each other jump to this label.  */
                   1525:                  if (INSN_UID (JUMP_LABEL (insn)) < max_uid)
                   1526:                    for (target = jump_chain[INSN_UID (JUMP_LABEL (insn))];
                   1527:                         target != 0 && newjpos == 0;
                   1528:                         target = jump_chain[INSN_UID (target)])
                   1529:                      if (target != insn
                   1530:                          && JUMP_LABEL (target) == JUMP_LABEL (insn)
                   1531:                          /* Ignore TARGET if it's deleted.  */
                   1532:                          && ! INSN_DELETED_P (target))
                   1533:                        find_cross_jump (insn, target, 2,
                   1534:                                         &newjpos, &newlpos);
                   1535: 
                   1536:                  if (newjpos != 0)
                   1537:                    {
                   1538:                      do_cross_jump (insn, newjpos, newlpos);
                   1539:                      changed = 1;
                   1540:                      next = insn;
                   1541:                    }
                   1542:                }
                   1543: 
                   1544:              /* This code was dead in the previous jump.c!  */
                   1545:              if (cross_jump && GET_CODE (PATTERN (insn)) == RETURN)
                   1546:                {
                   1547:                  /* Return insns all "jump to the same place"
                   1548:                     so we can cross-jump between any two of them.  */
                   1549: 
                   1550:                  rtx newjpos, newlpos, target;
                   1551: 
                   1552:                  newjpos = 0;
                   1553: 
                   1554:                  /* If cannot cross jump to code before the label,
                   1555:                     see if we can cross jump to another jump to
                   1556:                     the same label.  */
                   1557:                  /* Try each other jump to this label.  */
                   1558:                  for (target = jump_chain[0];
                   1559:                       target != 0 && newjpos == 0;
                   1560:                       target = jump_chain[INSN_UID (target)])
                   1561:                    if (target != insn
                   1562:                        && ! INSN_DELETED_P (target)
                   1563:                        && GET_CODE (PATTERN (target)) == RETURN)
                   1564:                      find_cross_jump (insn, target, 2,
                   1565:                                       &newjpos, &newlpos);
                   1566: 
                   1567:                  if (newjpos != 0)
                   1568:                    {
                   1569:                      do_cross_jump (insn, newjpos, newlpos);
                   1570:                      changed = 1;
                   1571:                      next = insn;
                   1572:                    }
                   1573:                }
                   1574:            }
                   1575:        }
                   1576: 
                   1577:       first = 0;
                   1578:     }
                   1579: 
                   1580:   /* Delete extraneous line number notes.
                   1581:      Note that two consecutive notes for different lines are not really
                   1582:      extraneous.  There should be some indication where that line belonged,
                   1583:      even if it became empty.  */
                   1584: 
                   1585:   {
                   1586:     rtx last_note = 0;
                   1587: 
                   1588:     for (insn = f; insn; insn = NEXT_INSN (insn))
                   1589:       if (GET_CODE (insn) == NOTE && NOTE_LINE_NUMBER (insn) >= 0)
                   1590:        {
                   1591:          /* Delete this note if it is identical to previous note.  */
                   1592:          if (last_note
                   1593:              && NOTE_SOURCE_FILE (insn) == NOTE_SOURCE_FILE (last_note)
                   1594:              && NOTE_LINE_NUMBER (insn) == NOTE_LINE_NUMBER (last_note))
                   1595:            {
                   1596:              delete_insn (insn);
                   1597:              continue;
                   1598:            }
                   1599: 
                   1600:          last_note = insn;
                   1601:        }
                   1602:   }
                   1603: 
                   1604:   /* See if there is still a NOTE_INSN_FUNCTION_END in this function.
                   1605:      If so, delete it, and record that this function can drop off the end.  */
                   1606: 
                   1607:   insn = last_insn;
                   1608:   {
                   1609:     int n_labels = 1;
                   1610:     while (insn
                   1611:           /* One label can follow the end-note: the return label.  */
                   1612:           && ((GET_CODE (insn) == CODE_LABEL && n_labels-- > 0)
                   1613:               /* Ordinary insns can follow it if returning a structure.  */
                   1614:               || GET_CODE (insn) == INSN
                   1615:               /* If machine uses explicit RETURN insns, no epilogue,
                   1616:                  then one of them follows the note.  */
                   1617:               || (GET_CODE (insn) == JUMP_INSN
                   1618:                   && GET_CODE (PATTERN (insn)) == RETURN)
                   1619:               /* Other kinds of notes can follow also.  */
                   1620:               || (GET_CODE (insn) == NOTE
                   1621:                   && NOTE_LINE_NUMBER (insn) != NOTE_INSN_FUNCTION_END)))
                   1622:       insn = PREV_INSN (insn);
                   1623:   }
                   1624: 
                   1625:   /* Report if control can fall through at the end of the function.  */
                   1626:   if (insn && GET_CODE (insn) == NOTE
                   1627:       && NOTE_LINE_NUMBER (insn) == NOTE_INSN_FUNCTION_END)
                   1628:     {
                   1629:       can_reach_end = 1;
                   1630:       delete_insn (insn);
                   1631:     }
                   1632: 
                   1633:   /* Show JUMP_CHAIN no longer valid.  */
                   1634:   jump_chain = 0;
                   1635: }
                   1636: 
                   1637: /* LOOP_START is a NOTE_INSN_LOOP_BEG note that is followed by an unconditional
                   1638:    jump.  Assume that this unconditional jump is to the exit test code.  If
                   1639:    the code is sufficiently simple, make a copy of it before INSN,
                   1640:    followed by a jump to the exit of the loop.  Then delete the unconditional
                   1641:    jump after INSN.
                   1642: 
                   1643:    Note that it is possible we can get confused here if the jump immediately
                   1644:    after the loop start branches outside the loop but within an outer loop.
                   1645:    If we are near the exit of that loop, we will copy its exit test.  This
                   1646:    will not generate incorrect code, but could suppress some optimizations.
                   1647:    However, such cases are degenerate loops anyway.
                   1648: 
                   1649:    Return 1 if we made the change, else 0.
                   1650: 
                   1651:    This is only safe immediately after a regscan pass because it uses the
                   1652:    values of regno_first_uid and regno_last_uid.  */
                   1653: 
                   1654: static int
                   1655: duplicate_loop_exit_test (loop_start)
                   1656:      rtx loop_start;
                   1657: {
                   1658:   rtx insn, set, p;
                   1659:   rtx copy, link;
                   1660:   int num_insns = 0;
                   1661:   rtx exitcode = NEXT_INSN (JUMP_LABEL (next_nonnote_insn (loop_start)));
                   1662:   rtx lastexit;
                   1663:   int max_reg = max_reg_num ();
                   1664:   rtx *reg_map = 0;
                   1665: 
                   1666:   /* Scan the exit code.  We do not perform this optimization if any insn:
                   1667: 
                   1668:          is a CALL_INSN
                   1669:         is a CODE_LABEL
                   1670:         has a REG_RETVAL or REG_LIBCALL note (hard to adjust)
                   1671:         is a NOTE_INSN_LOOP_BEG because this means we have a nested loop
                   1672:         is a NOTE_INSN_BLOCK_{BEG,END} because duplicating these notes
                   1673:              are not valid
                   1674: 
                   1675:      Also, don't do this if the exit code is more than 20 insns.  */
                   1676: 
                   1677:   for (insn = exitcode;
                   1678:        insn
                   1679:        && ! (GET_CODE (insn) == NOTE
                   1680:             && NOTE_LINE_NUMBER (insn) == NOTE_INSN_LOOP_END);
                   1681:        insn = NEXT_INSN (insn))
                   1682:     {
                   1683:       switch (GET_CODE (insn))
                   1684:        {
                   1685:        case CODE_LABEL:
                   1686:        case CALL_INSN:
                   1687:          return 0;
                   1688:        case NOTE:
                   1689:          if (NOTE_LINE_NUMBER (insn) == NOTE_INSN_LOOP_BEG
                   1690:              || NOTE_LINE_NUMBER (insn) == NOTE_INSN_BLOCK_BEG
                   1691:              || NOTE_LINE_NUMBER (insn) == NOTE_INSN_BLOCK_END)
                   1692:            return 0;
                   1693:          break;
                   1694:        case JUMP_INSN:
                   1695:        case INSN:
                   1696:          if (++num_insns > 20
                   1697:              || find_reg_note (insn, REG_RETVAL, 0)
                   1698:              || find_reg_note (insn, REG_LIBCALL, 0))
                   1699:            return 0;
                   1700:          break;
                   1701:        }
                   1702:     }
                   1703: 
                   1704:   /* Unless INSN is zero, we can do the optimization.  */
                   1705:   if (insn == 0)
                   1706:     return 0;
                   1707: 
                   1708:   lastexit = insn;
                   1709: 
                   1710:   /* See if any insn sets a register only used in the loop exit code and
                   1711:      not a user variable.  If so, replace it with a new register.  */
                   1712:   for (insn = exitcode; insn != lastexit; insn = NEXT_INSN (insn))
                   1713:     if (GET_CODE (insn) == INSN
                   1714:        && (set = single_set (insn)) != 0
                   1715:        && GET_CODE (SET_DEST (set)) == REG
                   1716:        && REGNO (SET_DEST (set)) >= FIRST_PSEUDO_REGISTER
                   1717:        && regno_first_uid[REGNO (SET_DEST (set))] == INSN_UID (insn))
                   1718:       {
                   1719:        for (p = NEXT_INSN (insn); p != lastexit; p = NEXT_INSN (p))
                   1720:          if (regno_last_uid[REGNO (SET_DEST (set))] == INSN_UID (p))
                   1721:            break;
                   1722: 
                   1723:        if (p != lastexit)
                   1724:          {
                   1725:            /* We can do the replacement.  Allocate reg_map if this is the
                   1726:               first replacement we found.  */
                   1727:            if (reg_map == 0)
                   1728:              {
                   1729:                reg_map = (rtx *) alloca (max_reg * sizeof (rtx));
                   1730:                bzero (reg_map, max_reg * sizeof (rtx));
                   1731:              }
                   1732: 
                   1733:            REG_LOOP_TEST_P (SET_DEST (set)) = 1;
                   1734: 
                   1735:            reg_map[REGNO (SET_DEST (set))]
                   1736:              = gen_reg_rtx (GET_MODE (SET_DEST (set)));
                   1737:          }
                   1738:       }
                   1739: 
                   1740:   /* Now copy each insn.  */
                   1741:   for (insn = exitcode; insn != lastexit; insn = NEXT_INSN (insn))
                   1742:     switch (GET_CODE (insn))
                   1743:       {
                   1744:       case BARRIER:
                   1745:        copy = emit_barrier_before (loop_start);
                   1746:        break;
                   1747:       case NOTE:
                   1748:        /* Only copy line-number notes.  */
                   1749:        if (NOTE_LINE_NUMBER (insn) >= 0)
                   1750:          {
                   1751:            copy = emit_note_before (NOTE_LINE_NUMBER (insn), loop_start);
                   1752:            NOTE_SOURCE_FILE (copy) = NOTE_SOURCE_FILE (insn);
                   1753:          }
                   1754:        break;
                   1755: 
                   1756:       case INSN:
                   1757:        copy = emit_insn_before (copy_rtx (PATTERN (insn)), loop_start);
                   1758:        if (reg_map)
                   1759:          replace_regs (PATTERN (copy), reg_map, max_reg, 1);
                   1760: 
                   1761:        mark_jump_label (PATTERN (copy), copy, 0);
                   1762: 
                   1763:        /* Copy all REG_NOTES except REG_LABEL since mark_jump_label will
                   1764:           make them.  */
                   1765:        for (link = REG_NOTES (insn); link; link = XEXP (link, 1))
                   1766:          if (REG_NOTE_KIND (link) != REG_LABEL)
                   1767:            REG_NOTES (copy)
                   1768:              = copy_rtx (gen_rtx (EXPR_LIST, REG_NOTE_KIND (link),
                   1769:                                   XEXP (link, 0), REG_NOTES (copy)));
                   1770:        if (reg_map && REG_NOTES (copy))
                   1771:          replace_regs (REG_NOTES (copy), reg_map, max_reg, 1);
                   1772:        break;
                   1773: 
                   1774:       case JUMP_INSN:
                   1775:        copy = emit_jump_insn_before (copy_rtx (PATTERN (insn)), loop_start);
                   1776:        if (reg_map)
                   1777:          replace_regs (PATTERN (copy), reg_map, max_reg, 1);
                   1778:        mark_jump_label (PATTERN (copy), copy, 0);
                   1779:        if (REG_NOTES (insn))
                   1780:          {
                   1781:            REG_NOTES (copy) = copy_rtx (REG_NOTES (insn));
                   1782:            if (reg_map)
                   1783:              replace_regs (REG_NOTES (copy), reg_map, max_reg, 1);
                   1784:          }
                   1785:        
                   1786:        /* If this is a simple jump, add it to the jump chain.  */
                   1787: 
                   1788:        if (INSN_UID (copy) < max_jump_chain && JUMP_LABEL (copy)
                   1789:            && simplejump_p (copy))
                   1790:          {
                   1791:            jump_chain[INSN_UID (copy)]
                   1792:              = jump_chain[INSN_UID (JUMP_LABEL (copy))];
                   1793:            jump_chain[INSN_UID (JUMP_LABEL (copy))] = copy;
                   1794:          }
                   1795:        break;
                   1796: 
                   1797:       default:
                   1798:        abort ();
                   1799:       }
                   1800: 
                   1801:   /* Now clean up by emitting a jump to the end label and deleting the jump
                   1802:      at the start of the loop.  */
                   1803:   if (GET_CODE (copy) != BARRIER)
                   1804:     {
                   1805:       copy = emit_jump_insn_before (gen_jump (get_label_after (insn)),
                   1806:                                    loop_start);
                   1807:       mark_jump_label (PATTERN (copy), copy, 0);
                   1808:       if (INSN_UID (copy) < max_jump_chain
                   1809:          && INSN_UID (JUMP_LABEL (copy)) < max_jump_chain)
                   1810:        {
                   1811:          jump_chain[INSN_UID (copy)]
                   1812:            = jump_chain[INSN_UID (JUMP_LABEL (copy))];
                   1813:          jump_chain[INSN_UID (JUMP_LABEL (copy))] = copy;
                   1814:        }
                   1815:       emit_barrier_before (loop_start);
                   1816:     }
                   1817: 
                   1818:   delete_insn (next_nonnote_insn (loop_start));
                   1819: 
                   1820:   /* Mark the exit code as the virtual top of the converted loop.  */
                   1821:   emit_note_before (NOTE_INSN_LOOP_VTOP, exitcode);
                   1822: 
                   1823:   return 1;
                   1824: }
                   1825: 
                   1826: /* Move all block-beg, block-end, loop-beg, loop-cont, loop-vtop, and
                   1827:    loop-end notes between START and END out before START.  Assume neither
                   1828:    START nor END is such a note.  */
                   1829: 
                   1830: void
                   1831: squeeze_notes (start, end)
                   1832:      rtx start, end;
                   1833: {
                   1834:   rtx insn;
                   1835:   rtx next;
                   1836: 
                   1837:   for (insn = start; insn != end; insn = next)
                   1838:     {
                   1839:       next = NEXT_INSN (insn);
                   1840:       if (GET_CODE (insn) == NOTE
                   1841:          && (NOTE_LINE_NUMBER (insn) == NOTE_INSN_BLOCK_END
                   1842:              || NOTE_LINE_NUMBER (insn) == NOTE_INSN_BLOCK_BEG
                   1843:              || NOTE_LINE_NUMBER (insn) == NOTE_INSN_LOOP_BEG
                   1844:              || NOTE_LINE_NUMBER (insn) == NOTE_INSN_LOOP_END
                   1845:              || NOTE_LINE_NUMBER (insn) == NOTE_INSN_LOOP_CONT
                   1846:              || NOTE_LINE_NUMBER (insn) == NOTE_INSN_LOOP_VTOP))
                   1847:        {
                   1848:          rtx prev = PREV_INSN (insn);
                   1849:          PREV_INSN (insn) = PREV_INSN (start);
                   1850:          NEXT_INSN (insn) = start;
                   1851:          NEXT_INSN (PREV_INSN (insn)) = insn;
                   1852:          PREV_INSN (NEXT_INSN (insn)) = insn;
                   1853:          NEXT_INSN (prev) = next;
                   1854:          PREV_INSN (next) = prev;
                   1855:        }
                   1856:     }
                   1857: }
                   1858: 
                   1859: /* Compare the instructions before insn E1 with those before E2
                   1860:    to find an opportunity for cross jumping.
                   1861:    (This means detecting identical sequences of insns followed by
                   1862:    jumps to the same place, or followed by a label and a jump
                   1863:    to that label, and replacing one with a jump to the other.)
                   1864: 
                   1865:    Assume E1 is a jump that jumps to label E2
                   1866:    (that is not always true but it might as well be).
                   1867:    Find the longest possible equivalent sequences
                   1868:    and store the first insns of those sequences into *F1 and *F2.
                   1869:    Store zero there if no equivalent preceding instructions are found.
                   1870: 
                   1871:    We give up if we find a label in stream 1.
                   1872:    Actually we could transfer that label into stream 2.  */
                   1873: 
                   1874: static void
                   1875: find_cross_jump (e1, e2, minimum, f1, f2)
                   1876:      rtx e1, e2;
                   1877:      int minimum;
                   1878:      rtx *f1, *f2;
                   1879: {
                   1880:   register rtx i1 = e1, i2 = e2;
                   1881:   register rtx p1, p2;
                   1882:   int lose = 0;
                   1883: 
                   1884:   rtx last1 = 0, last2 = 0;
                   1885:   rtx afterlast1 = 0, afterlast2 = 0;
                   1886:   rtx prev1;
                   1887: 
                   1888:   *f1 = 0;
                   1889:   *f2 = 0;
                   1890: 
                   1891:   while (1)
                   1892:     {
                   1893:       i1 = prev_nonnote_insn (i1);
                   1894: 
                   1895:       i2 = PREV_INSN (i2);
                   1896:       while (i2 && (GET_CODE (i2) == NOTE || GET_CODE (i2) == CODE_LABEL))
                   1897:        i2 = PREV_INSN (i2);
                   1898: 
                   1899:       if (i1 == 0)
                   1900:        break;
                   1901: 
                   1902:       /* Don't allow the range of insns preceding E1 or E2
                   1903:         to include the other (E2 or E1).  */
                   1904:       if (i2 == e1 || i1 == e2)
                   1905:        break;
                   1906: 
                   1907:       /* If we will get to this code by jumping, those jumps will be
                   1908:         tensioned to go directly to the new label (before I2),
                   1909:         so this cross-jumping won't cost extra.  So reduce the minimum.  */
                   1910:       if (GET_CODE (i1) == CODE_LABEL)
                   1911:        {
                   1912:          --minimum;
                   1913:          break;
                   1914:        }
                   1915: 
                   1916:       if (i2 == 0 || GET_CODE (i1) != GET_CODE (i2))
                   1917:        break;
                   1918: 
                   1919:       p1 = PATTERN (i1);
                   1920:       p2 = PATTERN (i2);
                   1921:        
                   1922: #ifdef STACK_REGS
                   1923:       /* If cross_jump_death_matters is not 0, the insn's mode
                   1924:         indicates whether or not the insn contains any stack-like
                   1925:         regs. */
                   1926: 
                   1927:       if (cross_jump_death_matters && GET_MODE (i1) == QImode)
                   1928:        {
                   1929:          /* If register stack conversion has already been done, then
                   1930:             death notes must also be compared before it is certain that
                   1931:             the two instruction streams match. */
                   1932: 
                   1933:          rtx note;
                   1934:          HARD_REG_SET i1_regset, i2_regset;
                   1935: 
                   1936:          CLEAR_HARD_REG_SET (i1_regset);
                   1937:          CLEAR_HARD_REG_SET (i2_regset);
                   1938: 
                   1939:          for (note = REG_NOTES (i1); note; note = XEXP (note, 1))
                   1940:            if (REG_NOTE_KIND (note) == REG_DEAD
                   1941:                && STACK_REG_P (XEXP (note, 0)))
                   1942:              SET_HARD_REG_BIT (i1_regset, REGNO (XEXP (note, 0)));
                   1943: 
                   1944:          for (note = REG_NOTES (i2); note; note = XEXP (note, 1))
                   1945:            if (REG_NOTE_KIND (note) == REG_DEAD
                   1946:                && STACK_REG_P (XEXP (note, 0)))
                   1947:              SET_HARD_REG_BIT (i2_regset, REGNO (XEXP (note, 0)));
                   1948: 
                   1949:          GO_IF_HARD_REG_EQUAL (i1_regset, i2_regset, done);
                   1950: 
                   1951:          lose = 1;
                   1952: 
                   1953:        done:
                   1954:          ;
                   1955:        }
                   1956: #endif
                   1957: 
                   1958:       if (lose  || GET_CODE (p1) != GET_CODE (p2)
                   1959:          || ! rtx_renumbered_equal_p (p1, p2))
                   1960:        {
                   1961:          /* The following code helps take care of G++ cleanups.  */
                   1962:          rtx equiv1;
                   1963:          rtx equiv2;
                   1964: 
                   1965:          if (!lose && GET_CODE (p1) == GET_CODE (p2)
                   1966:              && ((equiv1 = find_reg_note (i1, REG_EQUAL, 0)) != 0
                   1967:                  || (equiv1 = find_reg_note (i1, REG_EQUIV, 0)) != 0)
                   1968:              && ((equiv2 = find_reg_note (i2, REG_EQUAL, 0)) != 0
                   1969:                  || (equiv2 = find_reg_note (i2, REG_EQUIV, 0)) != 0)
                   1970:              /* If the equivalences are not to a constant, they may
                   1971:                 reference pseudos that no longer exist, so we can't
                   1972:                 use them.  */
                   1973:              && CONSTANT_P (XEXP (equiv1, 0))
                   1974:              && rtx_equal_p (XEXP (equiv1, 0), XEXP (equiv2, 0)))
                   1975:            {
                   1976:              rtx s1 = single_set (i1);
                   1977:              rtx s2 = single_set (i2);
                   1978:              if (s1 != 0 && s2 != 0
                   1979:                  && rtx_renumbered_equal_p (SET_DEST (s1), SET_DEST (s2)))
                   1980:                {
                   1981:                  validate_change (i1, &SET_SRC (s1), XEXP (equiv1, 0), 1);
                   1982:                  validate_change (i2, &SET_SRC (s2), XEXP (equiv2, 0), 1);
                   1983:                  if (! rtx_renumbered_equal_p (p1, p2))
                   1984:                    cancel_changes (0);
                   1985:                  else if (apply_change_group ())
                   1986:                    goto win;
                   1987:                }
                   1988:            }
                   1989: 
                   1990:          /* Insns fail to match; cross jumping is limited to the following
                   1991:             insns.  */
                   1992: 
                   1993: #ifdef HAVE_cc0
                   1994:          /* Don't allow the insn after a compare to be shared by
                   1995:             cross-jumping unless the compare is also shared.
                   1996:             Here, if either of these non-matching insns is a compare,
                   1997:             exclude the following insn from possible cross-jumping.  */
                   1998:          if (sets_cc0_p (p1) || sets_cc0_p (p2))
                   1999:            last1 = afterlast1, last2 = afterlast2, ++minimum;
                   2000: #endif
                   2001: 
                   2002:          /* If cross-jumping here will feed a jump-around-jump
                   2003:             optimization, this jump won't cost extra, so reduce
                   2004:             the minimum.  */
                   2005:          if (GET_CODE (i1) == JUMP_INSN
                   2006:              && JUMP_LABEL (i1)
                   2007:              && prev_real_insn (JUMP_LABEL (i1)) == e1)
                   2008:            --minimum;
                   2009:          break;
                   2010:        }
                   2011: 
                   2012:     win:
                   2013:       if (GET_CODE (p1) != USE && GET_CODE (p1) != CLOBBER)
                   2014:        {
                   2015:          /* Ok, this insn is potentially includable in a cross-jump here.  */
                   2016:          afterlast1 = last1, afterlast2 = last2;
                   2017:          last1 = i1, last2 = i2, --minimum;
                   2018:        }
                   2019:     }
                   2020: 
                   2021:   /* We have to be careful that we do not cross-jump into the middle of
                   2022:      USE-CALL_INSN-CLOBBER sequence.  This sequence is used instead of
                   2023:      putting the USE and CLOBBERs inside the CALL_INSN.  The delay slot
                   2024:      scheduler needs to know what registers are used and modified by the
                   2025:      CALL_INSN and needs the adjacent USE and CLOBBERs to do so.
                   2026: 
                   2027:      ??? At some point we should probably change this so that these are
                   2028:      part of the CALL_INSN.  The way we are doing it now is a kludge that
                   2029:      is now causing trouble.  */
                   2030: 
                   2031:   if (last1 != 0 && GET_CODE (last1) == CALL_INSN
                   2032:       && (prev1 = prev_nonnote_insn (last1))
                   2033:       && GET_CODE (prev1) == INSN
                   2034:       && GET_CODE (PATTERN (prev1)) == USE)
                   2035:     {
                   2036:       /* Remove this CALL_INSN from the range we can cross-jump.  */
                   2037:       last1 = next_real_insn (last1);
                   2038:       last2 = next_real_insn (last2);
                   2039: 
                   2040:       minimum++;
                   2041:     }
                   2042: 
                   2043:   /* Skip past CLOBBERS since they may be right after a CALL_INSN.  It
                   2044:      isn't worth checking for the CALL_INSN.  */
                   2045:   while (last1 != 0 && GET_CODE (PATTERN (last1)) == CLOBBER)
                   2046:     last1 = next_real_insn (last1), last2 = next_real_insn (last2);
                   2047: 
                   2048:   if (minimum <= 0 && last1 != 0 && last1 != e1)
                   2049:     *f1 = last1, *f2 = last2;
                   2050: }
                   2051: 
                   2052: static void
                   2053: do_cross_jump (insn, newjpos, newlpos)
                   2054:      rtx insn, newjpos, newlpos;
                   2055: {
                   2056:   /* Find an existing label at this point
                   2057:      or make a new one if there is none.  */
                   2058:   register rtx label = get_label_before (newlpos);
                   2059: 
                   2060:   /* Make the same jump insn jump to the new point.  */
                   2061:   if (GET_CODE (PATTERN (insn)) == RETURN)
                   2062:     {
                   2063:       /* Remove from jump chain of returns.  */
                   2064:       delete_from_jump_chain (insn);
                   2065:       /* Change the insn.  */
                   2066:       PATTERN (insn) = gen_jump (label);
                   2067:       INSN_CODE (insn) = -1;
                   2068:       JUMP_LABEL (insn) = label;
                   2069:       LABEL_NUSES (label)++;
                   2070:       /* Add to new the jump chain.  */
                   2071:       if (INSN_UID (label) < max_jump_chain
                   2072:          && INSN_UID (insn) < max_jump_chain)
                   2073:        {
                   2074:          jump_chain[INSN_UID (insn)] = jump_chain[INSN_UID (label)];
                   2075:          jump_chain[INSN_UID (label)] = insn;
                   2076:        }
                   2077:     }
                   2078:   else
                   2079:     redirect_jump (insn, label);
                   2080: 
                   2081:   /* Delete the matching insns before the jump.  Also, remove any REG_EQUAL
                   2082:      or REG_EQUIV note in the NEWLPOS stream that isn't also present in
                   2083:      the NEWJPOS stream.  */
                   2084: 
                   2085:   while (newjpos != insn)
                   2086:     {
                   2087:       rtx lnote;
                   2088: 
                   2089:       for (lnote = REG_NOTES (newlpos); lnote; lnote = XEXP (lnote, 1))
                   2090:        if ((REG_NOTE_KIND (lnote) == REG_EQUAL
                   2091:             || REG_NOTE_KIND (lnote) == REG_EQUIV)
                   2092:            && ! find_reg_note (newjpos, REG_EQUAL, XEXP (lnote, 0))
                   2093:            && ! find_reg_note (newjpos, REG_EQUIV, XEXP (lnote, 0)))
                   2094:          remove_note (newlpos, lnote);
                   2095: 
                   2096:       delete_insn (newjpos);
                   2097:       newjpos = next_real_insn (newjpos);
                   2098:       newlpos = next_real_insn (newlpos);
                   2099:     }
                   2100: }
                   2101: 
                   2102: /* Return the label before INSN, or put a new label there.  */
                   2103: 
                   2104: rtx
                   2105: get_label_before (insn)
                   2106:      rtx insn;
                   2107: {
                   2108:   rtx label;
                   2109: 
                   2110:   /* Find an existing label at this point
                   2111:      or make a new one if there is none.  */
                   2112:   label = prev_nonnote_insn (insn);
                   2113: 
                   2114:   if (label == 0 || GET_CODE (label) != CODE_LABEL)
                   2115:     {
                   2116:       rtx prev = PREV_INSN (insn);
                   2117: 
                   2118:       /* Don't put a label between a CALL_INSN and USE insns that preceed
                   2119:         it.  */
                   2120: 
                   2121:       if (GET_CODE (insn) == CALL_INSN
                   2122:          || (GET_CODE (insn) == INSN && GET_CODE (PATTERN (insn)) == SEQUENCE
                   2123:              && GET_CODE (XVECEXP (PATTERN (insn), 0, 0)) == CALL_INSN))
                   2124:        while (GET_CODE (prev) == INSN && GET_CODE (PATTERN (prev)) == USE)
                   2125:          prev = PREV_INSN (prev);
                   2126: 
                   2127:       label = gen_label_rtx ();
                   2128:       emit_label_after (label, prev);
                   2129:       LABEL_NUSES (label) = 0;
                   2130:     }
                   2131:   return label;
                   2132: }
                   2133: 
                   2134: /* Return the label after INSN, or put a new label there.  */
                   2135: 
                   2136: rtx
                   2137: get_label_after (insn)
                   2138:      rtx insn;
                   2139: {
                   2140:   rtx label;
                   2141: 
                   2142:   /* Find an existing label at this point
                   2143:      or make a new one if there is none.  */
                   2144:   label = next_nonnote_insn (insn);
                   2145: 
                   2146:   if (label == 0 || GET_CODE (label) != CODE_LABEL)
                   2147:     {
                   2148:       /* Don't put a label between a CALL_INSN and CLOBBER insns
                   2149:         following it. */
                   2150: 
                   2151:       if (GET_CODE (insn) == CALL_INSN
                   2152:          || (GET_CODE (insn) == INSN && GET_CODE (PATTERN (insn)) == SEQUENCE
                   2153:              && GET_CODE (XVECEXP (PATTERN (insn), 0, 0)) == CALL_INSN))
                   2154:        while (GET_CODE (NEXT_INSN (insn)) == INSN
                   2155:               && GET_CODE (PATTERN (NEXT_INSN (insn))) == CLOBBER)
                   2156:          insn = NEXT_INSN (insn);
                   2157: 
                   2158:       label = gen_label_rtx ();
                   2159:       emit_label_after (label, insn);
                   2160:       LABEL_NUSES (label) = 0;
                   2161:     }
                   2162:   return label;
                   2163: }
                   2164: 
                   2165: /* Return 1 if INSN is a jump that jumps to right after TARGET
                   2166:    only on the condition that TARGET itself would drop through.
                   2167:    Assumes that TARGET is a conditional jump.  */
                   2168: 
                   2169: static int
                   2170: jump_back_p (insn, target)
                   2171:      rtx insn, target;
                   2172: {
                   2173:   rtx cinsn, ctarget;
                   2174:   enum rtx_code codei, codet;
                   2175: 
                   2176:   if (simplejump_p (insn) || ! condjump_p (insn)
                   2177:       || simplejump_p (target)
                   2178:       || target != prev_real_insn (JUMP_LABEL (insn)))
                   2179:     return 0;
                   2180: 
                   2181:   cinsn = XEXP (SET_SRC (PATTERN (insn)), 0);
                   2182:   ctarget = XEXP (SET_SRC (PATTERN (target)), 0);
                   2183: 
                   2184:   codei = GET_CODE (cinsn);
                   2185:   codet = GET_CODE (ctarget);
                   2186: 
                   2187:   if (XEXP (SET_SRC (PATTERN (insn)), 1) == pc_rtx)
                   2188:     {
                   2189:       if (! can_reverse_comparison_p (cinsn, insn))
                   2190:        return 0;
                   2191:       codei = reverse_condition (codei);
                   2192:     }
                   2193: 
                   2194:   if (XEXP (SET_SRC (PATTERN (target)), 2) == pc_rtx)
                   2195:     {
                   2196:       if (! can_reverse_comparison_p (ctarget, target))
                   2197:        return 0;
                   2198:       codet = reverse_condition (codet);
                   2199:     }
                   2200: 
                   2201:   return (codei == codet
                   2202:          && rtx_renumbered_equal_p (XEXP (cinsn, 0), XEXP (ctarget, 0))
                   2203:          && rtx_renumbered_equal_p (XEXP (cinsn, 1), XEXP (ctarget, 1)));
                   2204: }
                   2205: 
                   2206: /* Given a comparison, COMPARISON, inside a conditional jump insn, INSN,
                   2207:    return non-zero if it is safe to reverse this comparison.  It is if our
                   2208:    floating-point is not IEEE, if this is an NE or EQ comparison, or if
                   2209:    this is known to be an integer comparison.  */
                   2210: 
                   2211: int
                   2212: can_reverse_comparison_p (comparison, insn)
                   2213:      rtx comparison;
                   2214:      rtx insn;
                   2215: {
                   2216:   rtx arg0;
                   2217: 
                   2218:   /* If this is not actually a comparison, we can't reverse it.  */
                   2219:   if (GET_RTX_CLASS (GET_CODE (comparison)) != '<')
                   2220:     return 0;
                   2221: 
                   2222:   if (TARGET_FLOAT_FORMAT != IEEE_FLOAT_FORMAT
                   2223:       /* If this is an NE comparison, it is safe to reverse it to an EQ
                   2224:         comparison and vice versa, even for floating point.  If no operands
                   2225:         are NaNs, the reversal is valid.  If some operand is a NaN, EQ is
                   2226:         always false and NE is always true, so the reversal is also valid.  */
                   2227:       || GET_CODE (comparison) == NE
                   2228:       || GET_CODE (comparison) == EQ)
                   2229:     return 1;
                   2230: 
                   2231:   arg0 = XEXP (comparison, 0);
                   2232: 
                   2233:   /* Make sure ARG0 is one of the actual objects being compared.  If we
                   2234:      can't do this, we can't be sure the comparison can be reversed. 
                   2235: 
                   2236:      Handle cc0 and a MODE_CC register.  */
                   2237:   if ((GET_CODE (arg0) == REG && GET_MODE_CLASS (GET_MODE (arg0)) == MODE_CC)
                   2238: #ifdef HAVE_cc0
                   2239:       || arg0 == cc0_rtx
                   2240: #endif
                   2241:       )
                   2242:     {
                   2243:       rtx prev = prev_nonnote_insn (insn);
                   2244:       rtx set = single_set (prev);
                   2245: 
                   2246:       if (set == 0 || SET_DEST (set) != arg0)
                   2247:        return 0;
                   2248: 
                   2249:       arg0 = SET_SRC (set);
                   2250: 
                   2251:       if (GET_CODE (arg0) == COMPARE)
                   2252:        arg0 = XEXP (arg0, 0);
                   2253:     }
                   2254: 
                   2255:   /* We can reverse this if ARG0 is a CONST_INT or if its mode is
                   2256:      not VOIDmode and neither a MODE_CC nor MODE_FLOAT type.  */
                   2257:   return (GET_CODE (arg0) == CONST_INT
                   2258:          || (GET_MODE (arg0) != VOIDmode
                   2259:              && GET_MODE_CLASS (GET_MODE (arg0)) != MODE_CC
                   2260:              && GET_MODE_CLASS (GET_MODE (arg0)) != MODE_FLOAT));
                   2261: }
                   2262: 
                   2263: /* Given an rtx-code for a comparison, return the code
                   2264:    for the negated comparison.
                   2265:    WATCH OUT!  reverse_condition is not safe to use on a jump
                   2266:    that might be acting on the results of an IEEE floating point comparison,
                   2267:    because of the special treatment of non-signaling nans in comparisons.  
                   2268:    Use can_reverse_comparison_p to be sure.  */
                   2269: 
                   2270: enum rtx_code
                   2271: reverse_condition (code)
                   2272:      enum rtx_code code;
                   2273: {
                   2274:   switch (code)
                   2275:     {
                   2276:     case EQ:
                   2277:       return NE;
                   2278: 
                   2279:     case NE:
                   2280:       return EQ;
                   2281: 
                   2282:     case GT:
                   2283:       return LE;
                   2284: 
                   2285:     case GE:
                   2286:       return LT;
                   2287: 
                   2288:     case LT:
                   2289:       return GE;
                   2290: 
                   2291:     case LE:
                   2292:       return GT;
                   2293: 
                   2294:     case GTU:
                   2295:       return LEU;
                   2296: 
                   2297:     case GEU:
                   2298:       return LTU;
                   2299: 
                   2300:     case LTU:
                   2301:       return GEU;
                   2302: 
                   2303:     case LEU:
                   2304:       return GTU;
                   2305: 
                   2306:     default:
                   2307:       abort ();
                   2308:       return UNKNOWN;
                   2309:     }
                   2310: }
                   2311: 
                   2312: /* Similar, but return the code when two operands of a comparison are swapped.
                   2313:    This IS safe for IEEE floating-point.  */
                   2314: 
                   2315: enum rtx_code
                   2316: swap_condition (code)
                   2317:      enum rtx_code code;
                   2318: {
                   2319:   switch (code)
                   2320:     {
                   2321:     case EQ:
                   2322:     case NE:
                   2323:       return code;
                   2324: 
                   2325:     case GT:
                   2326:       return LT;
                   2327: 
                   2328:     case GE:
                   2329:       return LE;
                   2330: 
                   2331:     case LT:
                   2332:       return GT;
                   2333: 
                   2334:     case LE:
                   2335:       return GE;
                   2336: 
                   2337:     case GTU:
                   2338:       return LTU;
                   2339: 
                   2340:     case GEU:
                   2341:       return LEU;
                   2342: 
                   2343:     case LTU:
                   2344:       return GTU;
                   2345: 
                   2346:     case LEU:
                   2347:       return GEU;
                   2348: 
                   2349:     default:
                   2350:       abort ();
                   2351:       return UNKNOWN;
                   2352:     }
                   2353: }
                   2354: 
                   2355: /* Given a comparison CODE, return the corresponding unsigned comparison.
                   2356:    If CODE is an equality comparison or already an unsigned comparison,
                   2357:    CODE is returned.  */
                   2358: 
                   2359: enum rtx_code
                   2360: unsigned_condition (code)
                   2361:      enum rtx_code code;
                   2362: {
                   2363:   switch (code)
                   2364:     {
                   2365:     case EQ:
                   2366:     case NE:
                   2367:     case GTU:
                   2368:     case GEU:
                   2369:     case LTU:
                   2370:     case LEU:
                   2371:       return code;
                   2372: 
                   2373:     case GT:
                   2374:       return GTU;
                   2375: 
                   2376:     case GE:
                   2377:       return GEU;
                   2378: 
                   2379:     case LT:
                   2380:       return LTU;
                   2381: 
                   2382:     case LE:
                   2383:       return LEU;
                   2384: 
                   2385:     default:
                   2386:       abort ();
                   2387:     }
                   2388: }
                   2389: 
                   2390: /* Similarly, return the signed version of a comparison.  */
                   2391: 
                   2392: enum rtx_code
                   2393: signed_condition (code)
                   2394:      enum rtx_code code;
                   2395: {
                   2396:   switch (code)
                   2397:     {
                   2398:     case EQ:
                   2399:     case NE:
                   2400:     case GT:
                   2401:     case GE:
                   2402:     case LT:
                   2403:     case LE:
                   2404:       return code;
                   2405: 
                   2406:     case GTU:
                   2407:       return GT;
                   2408: 
                   2409:     case GEU:
                   2410:       return GE;
                   2411: 
                   2412:     case LTU:
                   2413:       return LT;
                   2414: 
                   2415:     case LEU:
                   2416:       return LE;
                   2417: 
                   2418:     default:
                   2419:       abort ();
                   2420:     }
                   2421: }
                   2422: 
                   2423: /* Return non-zero if CODE1 is more strict than CODE2, i.e., if the
                   2424:    truth of CODE1 implies the truth of CODE2.  */
                   2425: 
                   2426: int
                   2427: comparison_dominates_p (code1, code2)
                   2428:      enum rtx_code code1, code2;
                   2429: {
                   2430:   if (code1 == code2)
                   2431:     return 1;
                   2432: 
                   2433:   switch (code1)
                   2434:     {
                   2435:     case EQ:
                   2436:       if (code2 == LE || code2 == LEU || code2 == GE || code2 == GEU)
                   2437:        return 1;
                   2438:       break;
                   2439: 
                   2440:     case LT:
                   2441:       if (code2 == LE)
                   2442:        return 1;
                   2443:       break;
                   2444: 
                   2445:     case GT:
                   2446:       if (code2 == GE)
                   2447:        return 1;
                   2448:       break;
                   2449: 
                   2450:     case LTU:
                   2451:       if (code2 == LEU)
                   2452:        return 1;
                   2453:       break;
                   2454: 
                   2455:     case GTU:
                   2456:       if (code2 == GEU)
                   2457:        return 1;
                   2458:       break;
                   2459:     }
                   2460: 
                   2461:   return 0;
                   2462: }
                   2463: 
                   2464: /* Return 1 if INSN is an unconditional jump and nothing else.  */
                   2465: 
                   2466: int
                   2467: simplejump_p (insn)
                   2468:      rtx insn;
                   2469: {
                   2470:   return (GET_CODE (insn) == JUMP_INSN
                   2471:          && GET_CODE (PATTERN (insn)) == SET
                   2472:          && GET_CODE (SET_DEST (PATTERN (insn))) == PC
                   2473:          && GET_CODE (SET_SRC (PATTERN (insn))) == LABEL_REF);
                   2474: }
                   2475: 
                   2476: /* Return nonzero if INSN is a (possibly) conditional jump
                   2477:    and nothing more.  */
                   2478: 
                   2479: int
                   2480: condjump_p (insn)
                   2481:      rtx insn;
                   2482: {
                   2483:   register rtx x = PATTERN (insn);
                   2484:   if (GET_CODE (x) != SET)
                   2485:     return 0;
                   2486:   if (GET_CODE (SET_DEST (x)) != PC)
                   2487:     return 0;
                   2488:   if (GET_CODE (SET_SRC (x)) == LABEL_REF)
                   2489:     return 1;
                   2490:   if (GET_CODE (SET_SRC (x)) != IF_THEN_ELSE)
                   2491:     return 0;
                   2492:   if (XEXP (SET_SRC (x), 2) == pc_rtx
                   2493:       && (GET_CODE (XEXP (SET_SRC (x), 1)) == LABEL_REF
                   2494:          || GET_CODE (XEXP (SET_SRC (x), 1)) == RETURN))
                   2495:     return 1;
                   2496:   if (XEXP (SET_SRC (x), 1) == pc_rtx
                   2497:       && (GET_CODE (XEXP (SET_SRC (x), 2)) == LABEL_REF
                   2498:          || GET_CODE (XEXP (SET_SRC (x), 2)) == RETURN))
                   2499:     return 1;
                   2500:   return 0;
                   2501: }
                   2502: 
                   2503: /* Return 1 if X is an RTX that does nothing but set the condition codes
                   2504:    and CLOBBER or USE registers.
                   2505:    Return -1 if X does explicitly set the condition codes,
                   2506:    but also does other things.  */
                   2507: 
                   2508: int
                   2509: sets_cc0_p (x)
                   2510:      rtx x;
                   2511: {
                   2512: #ifdef HAVE_cc0
                   2513:   if (GET_CODE (x) == SET && SET_DEST (x) == cc0_rtx)
                   2514:     return 1;
                   2515:   if (GET_CODE (x) == PARALLEL)
                   2516:     {
                   2517:       int i;
                   2518:       int sets_cc0 = 0;
                   2519:       int other_things = 0;
                   2520:       for (i = XVECLEN (x, 0) - 1; i >= 0; i--)
                   2521:        {
                   2522:          if (GET_CODE (XVECEXP (x, 0, i)) == SET
                   2523:              && SET_DEST (XVECEXP (x, 0, i)) == cc0_rtx)
                   2524:            sets_cc0 = 1;
                   2525:          else if (GET_CODE (XVECEXP (x, 0, i)) == SET)
                   2526:            other_things = 1;
                   2527:        }
                   2528:       return ! sets_cc0 ? 0 : other_things ? -1 : 1;
                   2529:     }
                   2530:   return 0;
                   2531: #else
                   2532:   abort ();
                   2533: #endif
                   2534: }
                   2535: 
                   2536: /* Follow any unconditional jump at LABEL;
                   2537:    return the ultimate label reached by any such chain of jumps.
                   2538:    If LABEL is not followed by a jump, return LABEL.
                   2539:    If the chain loops or we can't find end, return LABEL,
                   2540:    since that tells caller to avoid changing the insn.
                   2541: 
                   2542:    If RELOAD_COMPLETED is 0, we do not chain across a NOTE_INSN_LOOP_BEG or
                   2543:    a USE or CLOBBER.  */
                   2544: 
                   2545: rtx
                   2546: follow_jumps (label)
                   2547:      rtx label;
                   2548: {
                   2549:   register rtx insn;
                   2550:   register rtx next;
                   2551:   register rtx value = label;
                   2552:   register int depth;
                   2553: 
                   2554:   for (depth = 0;
                   2555:        (depth < 10
                   2556:        && (insn = next_active_insn (value)) != 0
                   2557:        && GET_CODE (insn) == JUMP_INSN
                   2558:        && (JUMP_LABEL (insn) != 0 || GET_CODE (PATTERN (insn)) == RETURN)
                   2559:        && (next = NEXT_INSN (insn))
                   2560:        && GET_CODE (next) == BARRIER);
                   2561:        depth++)
                   2562:     {
                   2563:       /* Don't chain through the insn that jumps into a loop
                   2564:         from outside the loop,
                   2565:         since that would create multiple loop entry jumps
                   2566:         and prevent loop optimization.  */
                   2567:       rtx tem;
                   2568:       if (!reload_completed)
                   2569:        for (tem = value; tem != insn; tem = NEXT_INSN (tem))
                   2570:          if (GET_CODE (tem) == NOTE
                   2571:              && NOTE_LINE_NUMBER (tem) == NOTE_INSN_LOOP_BEG)
                   2572:            return value;
                   2573: 
                   2574:       /* If we have found a cycle, make the insn jump to itself.  */
                   2575:       if (JUMP_LABEL (insn) == label)
                   2576:        return label;
                   2577:       value = JUMP_LABEL (insn);
                   2578:     }
                   2579:   if (depth == 10)
                   2580:     return label;
                   2581:   return value;
                   2582: }
                   2583: 
                   2584: /* Assuming that field IDX of X is a vector of label_refs,
                   2585:    replace each of them by the ultimate label reached by it.
                   2586:    Return nonzero if a change is made.
                   2587:    If IGNORE_LOOPS is 0, we do not chain across a NOTE_INSN_LOOP_BEG.  */
                   2588: 
                   2589: static int
                   2590: tension_vector_labels (x, idx)
                   2591:      register rtx x;
                   2592:      register int idx;
                   2593: {
                   2594:   int changed = 0;
                   2595:   register int i;
                   2596:   for (i = XVECLEN (x, idx) - 1; i >= 0; i--)
                   2597:     {
                   2598:       register rtx olabel = XEXP (XVECEXP (x, idx, i), 0);
                   2599:       register rtx nlabel = follow_jumps (olabel);
                   2600:       if (nlabel && nlabel != olabel)
                   2601:        {
                   2602:          XEXP (XVECEXP (x, idx, i), 0) = nlabel;
                   2603:          ++LABEL_NUSES (nlabel);
                   2604:          if (--LABEL_NUSES (olabel) == 0)
                   2605:            delete_insn (olabel);
                   2606:          changed = 1;
                   2607:        }
                   2608:     }
                   2609:   return changed;
                   2610: }
                   2611: 
                   2612: /* Find all CODE_LABELs referred to in X, and increment their use counts.
                   2613:    If INSN is a JUMP_INSN and there is at least one CODE_LABEL referenced
                   2614:    in INSN, then store one of them in JUMP_LABEL (INSN).
                   2615:    If INSN is an INSN or a CALL_INSN and there is at least one CODE_LABEL
                   2616:    referenced in INSN, add a REG_LABEL note containing that label to INSN.
                   2617:    Also, when there are consecutive labels, canonicalize on the last of them.
                   2618: 
                   2619:    Note that two labels separated by a loop-beginning note
                   2620:    must be kept distinct if we have not yet done loop-optimization,
                   2621:    because the gap between them is where loop-optimize
                   2622:    will want to move invariant code to.  CROSS_JUMP tells us
                   2623:    that loop-optimization is done with.
                   2624: 
                   2625:    Once reload has completed (CROSS_JUMP non-zero), we need not consider
                   2626:    two labels distinct if they are separated by only USE or CLOBBER insns.  */
                   2627: 
                   2628: static void
                   2629: mark_jump_label (x, insn, cross_jump)
                   2630:      register rtx x;
                   2631:      rtx insn;
                   2632:      int cross_jump;
                   2633: {
                   2634:   register RTX_CODE code = GET_CODE (x);
                   2635:   register int i;
                   2636:   register char *fmt;
                   2637: 
                   2638:   switch (code)
                   2639:     {
                   2640:     case PC:
                   2641:     case CC0:
                   2642:     case REG:
                   2643:     case SUBREG:
                   2644:     case CONST_INT:
                   2645:     case SYMBOL_REF:
                   2646:     case CONST_DOUBLE:
                   2647:     case CLOBBER:
                   2648:     case CALL:
                   2649:       return;
                   2650: 
                   2651:     case LABEL_REF:
                   2652:       {
                   2653:        register rtx label = XEXP (x, 0);
                   2654:        register rtx next;
                   2655:        if (GET_CODE (label) != CODE_LABEL)
                   2656:          abort ();
                   2657:        /* If there are other labels following this one,
                   2658:           replace it with the last of the consecutive labels.  */
                   2659:        for (next = NEXT_INSN (label); next; next = NEXT_INSN (next))
                   2660:          {
                   2661:            if (GET_CODE (next) == CODE_LABEL)
                   2662:              label = next;
                   2663:            else if (cross_jump && GET_CODE (next) == INSN
                   2664:                     && (GET_CODE (PATTERN (next)) == USE
                   2665:                         || GET_CODE (PATTERN (next)) == CLOBBER))
                   2666:              continue;
                   2667:            else if (GET_CODE (next) != NOTE)
                   2668:              break;
                   2669:            else if (! cross_jump
                   2670:                     && (NOTE_LINE_NUMBER (next) == NOTE_INSN_LOOP_BEG
                   2671:                         || NOTE_LINE_NUMBER (next) == NOTE_INSN_FUNCTION_END))
                   2672:              break;
                   2673:          }
                   2674:        XEXP (x, 0) = label;
                   2675:        ++LABEL_NUSES (label);
                   2676:        if (insn)
                   2677:          {
                   2678:            if (GET_CODE (insn) == JUMP_INSN)
                   2679:              JUMP_LABEL (insn) = label;
1.1.1.2 ! root     2680:            else if (! find_reg_note (insn, REG_LABEL, label))
1.1       root     2681:              {
                   2682:                rtx next = next_real_insn (label);
                   2683:                /* Don't record labels that refer to dispatch tables.
                   2684:                   This is not necessary, since the tablejump
                   2685:                   references the same label.
                   2686:                   And if we did record them, flow.c would make worse code.  */
                   2687:                if (next == 0
                   2688:                    || ! (GET_CODE (next) == JUMP_INSN
                   2689:                          && (GET_CODE (PATTERN (next)) == ADDR_VEC
                   2690:                              || GET_CODE (PATTERN (next)) == ADDR_DIFF_VEC)))
                   2691:                  REG_NOTES (insn) = gen_rtx (EXPR_LIST, REG_LABEL, label,
                   2692:                                              REG_NOTES (insn));
                   2693:              }
                   2694:          }
                   2695:        return;
                   2696:       }
                   2697: 
                   2698:   /* Do walk the labels in a vector, but not the first operand of an
                   2699:      ADDR_DIFF_VEC.  Don't set the JUMP_LABEL of a vector.  */
                   2700:     case ADDR_VEC:
                   2701:     case ADDR_DIFF_VEC:
                   2702:       {
                   2703:        int eltnum = code == ADDR_DIFF_VEC ? 1 : 0;
                   2704: 
                   2705:        for (i = 0; i < XVECLEN (x, eltnum); i++)
                   2706:          mark_jump_label (XVECEXP (x, eltnum, i), 0, cross_jump);
                   2707:        return;
                   2708:       }
                   2709:     }
                   2710: 
                   2711:   fmt = GET_RTX_FORMAT (code);
                   2712:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                   2713:     {
                   2714:       if (fmt[i] == 'e')
                   2715:        mark_jump_label (XEXP (x, i), insn, cross_jump);
                   2716:       else if (fmt[i] == 'E')
                   2717:        {
                   2718:          register int j;
                   2719:          for (j = 0; j < XVECLEN (x, i); j++)
                   2720:            mark_jump_label (XVECEXP (x, i, j), insn, cross_jump);
                   2721:        }
                   2722:     }
                   2723: }
                   2724: 
                   2725: /* If all INSN does is set the pc, delete it,
                   2726:    and delete the insn that set the condition codes for it
                   2727:    if that's what the previous thing was.  */
                   2728: 
                   2729: void
                   2730: delete_jump (insn)
                   2731:      rtx insn;
                   2732: {
                   2733:   register rtx x = PATTERN (insn);
                   2734:   register rtx prev;
                   2735: 
                   2736:   if (GET_CODE (x) == SET
                   2737:       && GET_CODE (SET_DEST (x)) == PC)
                   2738:     {
                   2739:       prev = prev_nonnote_insn (insn);
                   2740: #ifdef HAVE_cc0
                   2741:       /* We assume that at this stage
                   2742:         CC's are always set explicitly
                   2743:         and always immediately before the jump that
                   2744:         will use them.  So if the previous insn
                   2745:         exists to set the CC's, delete it
                   2746:         (unless it performs auto-increments, etc.).  */
                   2747:       if (prev && GET_CODE (prev) == INSN
                   2748:          && sets_cc0_p (PATTERN (prev)))
                   2749:        {
                   2750:          if (sets_cc0_p (PATTERN (prev)) > 0
                   2751:              && !FIND_REG_INC_NOTE (prev, 0))
                   2752:            delete_insn (prev);
                   2753:          else
                   2754:            /* Otherwise, show that cc0 won't be used.  */
                   2755:            REG_NOTES (prev) = gen_rtx (EXPR_LIST, REG_UNUSED,
                   2756:                                        cc0_rtx, REG_NOTES (prev));
                   2757:        }
                   2758: #else
                   2759:       {
                   2760:        rtx note;
                   2761: 
                   2762:        /* If we are running before flow.c, we need do nothing since flow.c
                   2763:           will delete the set of the condition code if it is dead.  We also
                   2764:           can't know if the register being used as the condition code is
                   2765:           dead or not at this point.
                   2766: 
                   2767:           Otherwise, look at all our REG_DEAD notes.  If a previous insn
                   2768:           does nothing other than set a register that dies in this jump,
                   2769:           we can delete the insn.  */
                   2770: 
                   2771:        for (note = REG_NOTES (insn); note; note = XEXP (note, 1))
                   2772:          {
                   2773:            rtx our_prev;
                   2774: 
                   2775:            if (REG_NOTE_KIND (note) != REG_DEAD
                   2776:                /* Verify that the REG_NOTE has a legal value.  */
                   2777:                || GET_CODE (XEXP (note, 0)) != REG)
                   2778:              continue;
                   2779: 
                   2780:            for (our_prev = prev_nonnote_insn (insn);
                   2781:                 our_prev && GET_CODE (our_prev) == INSN;
                   2782:                 our_prev = prev_nonnote_insn (our_prev))
                   2783:              {
                   2784:                /* If we reach a SEQUENCE, it is too complex to try to
                   2785:                   do anything with it, so give up.  */
                   2786:                if (GET_CODE (PATTERN (our_prev)) == SEQUENCE)
                   2787:                  break;
                   2788: 
                   2789:                if (GET_CODE (PATTERN (our_prev)) == USE
                   2790:                    && GET_CODE (XEXP (PATTERN (our_prev), 0)) == INSN)
                   2791:                  /* reorg creates USEs that look like this.  We leave them
                   2792:                     alone because reorg needs them for its own purposes.  */
                   2793:                  break;
                   2794: 
                   2795:                if (reg_set_p (XEXP (note, 0), PATTERN (our_prev)))
                   2796:                  {
                   2797:                    if (FIND_REG_INC_NOTE (our_prev, 0))
                   2798:                      break;
                   2799: 
                   2800:                    if (GET_CODE (PATTERN (our_prev)) == PARALLEL)
                   2801:                      {
                   2802:                        /* If we find a SET of something else, we can't
                   2803:                           delete the insn.  */
                   2804: 
                   2805:                        int i;
                   2806: 
                   2807:                        for (i = 0; i < XVECLEN (PATTERN (our_prev), 0); i++)
                   2808:                          {
                   2809:                            rtx part = XVECEXP (PATTERN (our_prev), 0, i);
                   2810: 
                   2811:                            if (GET_CODE (part) == SET
                   2812:                                && SET_DEST (part) != XEXP (note, 0))
                   2813:                              break;
                   2814:                          }
                   2815: 
                   2816:                        if (i == XVECLEN (PATTERN (our_prev), 0))
                   2817:                          delete_insn (our_prev);
                   2818:                      }
                   2819:                    else if (GET_CODE (PATTERN (our_prev)) == SET
                   2820:                             && SET_DEST (PATTERN (our_prev)) == XEXP (note, 0))
                   2821:                      delete_insn (our_prev);
                   2822: 
                   2823:                    break;
                   2824:                  }
                   2825: 
                   2826:                /* If OUR_PREV references the register that dies here,
                   2827:                   it is an additional use.  Hence any prior SET isn't
                   2828:                   dead.  */
                   2829:                if (reg_overlap_mentioned_p (XEXP (note, 0),
                   2830:                                             PATTERN (our_prev)))
                   2831:                  break;
                   2832:              }
                   2833:          }
                   2834:       }
                   2835: #endif
                   2836:       /* Now delete the jump insn itself.  */
                   2837:       delete_insn (insn);
                   2838:     }
                   2839: }
                   2840: 
                   2841: /* Delete insn INSN from the chain of insns and update label ref counts.
                   2842:    May delete some following insns as a consequence; may even delete
                   2843:    a label elsewhere and insns that follow it.
                   2844: 
                   2845:    Returns the first insn after INSN that was not deleted.  */
                   2846: 
                   2847: rtx
                   2848: delete_insn (insn)
                   2849:      register rtx insn;
                   2850: {
                   2851:   register rtx next = NEXT_INSN (insn);
                   2852:   register rtx prev = PREV_INSN (insn);
                   2853: 
                   2854:   while (next && INSN_DELETED_P (next))
                   2855:     next = NEXT_INSN (next);
                   2856: 
                   2857:   /* This insn is already deleted => return first following nondeleted.  */
                   2858:   if (INSN_DELETED_P (insn))
                   2859:     return next;
                   2860: 
                   2861:   /* Mark this insn as deleted.  */
                   2862: 
                   2863:   INSN_DELETED_P (insn) = 1;
                   2864: 
                   2865:   /* If this is an unconditional jump, delete it from the jump chain.  */
                   2866:   if (simplejump_p (insn))
                   2867:     delete_from_jump_chain (insn);
                   2868: 
                   2869:   /* If instruction is followed by a barrier,
                   2870:      delete the barrier too.  */
                   2871: 
                   2872:   if (next != 0 && GET_CODE (next) == BARRIER)
                   2873:     {
                   2874:       INSN_DELETED_P (next) = 1;
                   2875:       next = NEXT_INSN (next);
                   2876:     }
                   2877: 
                   2878:   /* Patch out INSN (and the barrier if any) */
                   2879: 
                   2880:   if (optimize)
                   2881:     {
                   2882:       if (prev)
                   2883:        {
                   2884:          NEXT_INSN (prev) = next;
                   2885:          if (GET_CODE (prev) == INSN && GET_CODE (PATTERN (prev)) == SEQUENCE)
                   2886:            NEXT_INSN (XVECEXP (PATTERN (prev), 0,
                   2887:                                XVECLEN (PATTERN (prev), 0) - 1)) = next;
                   2888:        }
                   2889: 
                   2890:       if (next)
                   2891:        {
                   2892:          PREV_INSN (next) = prev;
                   2893:          if (GET_CODE (next) == INSN && GET_CODE (PATTERN (next)) == SEQUENCE)
                   2894:            PREV_INSN (XVECEXP (PATTERN (next), 0, 0)) = prev;
                   2895:        }
                   2896: 
                   2897:       if (prev && NEXT_INSN (prev) == 0)
                   2898:        set_last_insn (prev);
                   2899:     }
                   2900: 
                   2901:   /* If deleting a jump, decrement the count of the label,
                   2902:      and delete the label if it is now unused.  */
                   2903: 
                   2904:   if (GET_CODE (insn) == JUMP_INSN && JUMP_LABEL (insn))
                   2905:     if (--LABEL_NUSES (JUMP_LABEL (insn)) == 0)
                   2906:       {
                   2907:        /* This can delete NEXT or PREV,
                   2908:           either directly if NEXT is JUMP_LABEL (INSN),
                   2909:           or indirectly through more levels of jumps.  */
                   2910:        delete_insn (JUMP_LABEL (insn));
                   2911:        /* I feel a little doubtful about this loop,
                   2912:           but I see no clean and sure alternative way
                   2913:           to find the first insn after INSN that is not now deleted.
                   2914:           I hope this works.  */
                   2915:        while (next && INSN_DELETED_P (next))
                   2916:          next = NEXT_INSN (next);
                   2917:        return next;
                   2918:       }
                   2919: 
                   2920:   while (prev && (INSN_DELETED_P (prev) || GET_CODE (prev) == NOTE))
                   2921:     prev = PREV_INSN (prev);
                   2922: 
                   2923:   /* If INSN was a label and a dispatch table follows it,
                   2924:      delete the dispatch table.  The tablejump must have gone already.
                   2925:      It isn't useful to fall through into a table.  */
                   2926: 
                   2927:   if (GET_CODE (insn) == CODE_LABEL
                   2928:       && NEXT_INSN (insn) != 0
                   2929:       && GET_CODE (NEXT_INSN (insn)) == JUMP_INSN
                   2930:       && (GET_CODE (PATTERN (NEXT_INSN (insn))) == ADDR_VEC
                   2931:          || GET_CODE (PATTERN (NEXT_INSN (insn))) == ADDR_DIFF_VEC))
                   2932:     next = delete_insn (NEXT_INSN (insn));
                   2933: 
                   2934:   /* If INSN was a label, delete insns following it if now unreachable.  */
                   2935: 
                   2936:   if (GET_CODE (insn) == CODE_LABEL && prev
                   2937:       && GET_CODE (prev) == BARRIER)
                   2938:     {
                   2939:       register RTX_CODE code;
                   2940:       while (next != 0
                   2941:             && ((code = GET_CODE (next)) == INSN
                   2942:                 || code == JUMP_INSN || code == CALL_INSN
                   2943:                 || code == NOTE))
                   2944:        {
                   2945:          if (code == NOTE
                   2946:              && NOTE_LINE_NUMBER (next) != NOTE_INSN_FUNCTION_END)
                   2947:            next = NEXT_INSN (next);
                   2948:          else
                   2949:            /* Note: if this deletes a jump, it can cause more
                   2950:               deletion of unreachable code, after a different label.
                   2951:               As long as the value from this recursive call is correct,
                   2952:               this invocation functions correctly.  */
                   2953:            next = delete_insn (next);
                   2954:        }
                   2955:     }
                   2956: 
                   2957:   return next;
                   2958: }
                   2959: 
                   2960: /* Advance from INSN till reaching something not deleted
                   2961:    then return that.  May return INSN itself.  */
                   2962: 
                   2963: rtx
                   2964: next_nondeleted_insn (insn)
                   2965:      rtx insn;
                   2966: {
                   2967:   while (INSN_DELETED_P (insn))
                   2968:     insn = NEXT_INSN (insn);
                   2969:   return insn;
                   2970: }
                   2971: 
                   2972: /* Delete a range of insns from FROM to TO, inclusive.
                   2973:    This is for the sake of peephole optimization, so assume
                   2974:    that whatever these insns do will still be done by a new
                   2975:    peephole insn that will replace them.  */
                   2976: 
                   2977: void
                   2978: delete_for_peephole (from, to)
                   2979:      register rtx from, to;
                   2980: {
                   2981:   register rtx insn = from;
                   2982: 
                   2983:   while (1)
                   2984:     {
                   2985:       register rtx next = NEXT_INSN (insn);
                   2986:       register rtx prev = PREV_INSN (insn);
                   2987: 
                   2988:       if (GET_CODE (insn) != NOTE)
                   2989:        {
                   2990:          INSN_DELETED_P (insn) = 1;
                   2991: 
                   2992:          /* Patch this insn out of the chain.  */
                   2993:          /* We don't do this all at once, because we
                   2994:             must preserve all NOTEs.  */
                   2995:          if (prev)
                   2996:            NEXT_INSN (prev) = next;
                   2997: 
                   2998:          if (next)
                   2999:            PREV_INSN (next) = prev;
                   3000:        }
                   3001: 
                   3002:       if (insn == to)
                   3003:        break;
                   3004:       insn = next;
                   3005:     }
                   3006: 
                   3007:   /* Note that if TO is an unconditional jump
                   3008:      we *do not* delete the BARRIER that follows,
                   3009:      since the peephole that replaces this sequence
                   3010:      is also an unconditional jump in that case.  */
                   3011: }
                   3012: 
                   3013: /* Invert the condition of the jump JUMP, and make it jump
                   3014:    to label NLABEL instead of where it jumps now.  */
                   3015: 
                   3016: int
                   3017: invert_jump (jump, nlabel)
                   3018:      rtx jump, nlabel;
                   3019: {
                   3020:   register rtx olabel = JUMP_LABEL (jump);
                   3021: 
                   3022:   /* We have to either invert the condition and change the label or
                   3023:      do neither.  Either operation could fail.  We first try to invert
                   3024:      the jump. If that succeeds, we try changing the label.  If that fails,
                   3025:      we invert the jump back to what it was.  */
                   3026: 
                   3027:   if (! invert_exp (PATTERN (jump), jump))
                   3028:     return 0;
                   3029: 
                   3030:   if (redirect_jump (jump, nlabel))
                   3031:     return 1;
                   3032: 
                   3033:   if (! invert_exp (PATTERN (jump), jump))
                   3034:     /* This should just be putting it back the way it was.  */
                   3035:     abort ();
                   3036: 
                   3037:   return  0;
                   3038: }
                   3039: 
                   3040: /* Invert the jump condition of rtx X contained in jump insn, INSN. 
                   3041: 
                   3042:    Return 1 if we can do so, 0 if we cannot find a way to do so that
                   3043:    matches a pattern.  */
                   3044: 
                   3045: static int
                   3046: invert_exp (x, insn)
                   3047:      rtx x;
                   3048:      rtx insn;
                   3049: {
                   3050:   register RTX_CODE code;
                   3051:   register int i;
                   3052:   register char *fmt;
                   3053: 
                   3054:   code = GET_CODE (x);
                   3055: 
                   3056:   if (code == IF_THEN_ELSE)
                   3057:     {
                   3058:       register rtx comp = XEXP (x, 0);
                   3059:       register rtx tem;
                   3060: 
                   3061:       /* We can do this in two ways:  The preferable way, which can only
                   3062:         be done if this is not an integer comparison, is to reverse
                   3063:         the comparison code.  Otherwise, swap the THEN-part and ELSE-part
                   3064:         of the IF_THEN_ELSE.  If we can't do either, fail.  */
                   3065: 
                   3066:       if (can_reverse_comparison_p (comp, insn)
                   3067:          && validate_change (insn, &XEXP (x, 0),
                   3068:                              gen_rtx (reverse_condition (GET_CODE (comp)),
                   3069:                                       GET_MODE (comp), XEXP (comp, 0),
                   3070:                                       XEXP (comp, 1)), 0))
                   3071:        return 1;
                   3072:                                       
                   3073:       tem = XEXP (x, 1);
                   3074:       validate_change (insn, &XEXP (x, 1), XEXP (x, 2), 1);
                   3075:       validate_change (insn, &XEXP (x, 2), tem, 1);
                   3076:       return apply_change_group ();
                   3077:     }
                   3078: 
                   3079:   fmt = GET_RTX_FORMAT (code);
                   3080:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                   3081:     {
                   3082:       if (fmt[i] == 'e')
                   3083:        if (! invert_exp (XEXP (x, i), insn))
                   3084:          return 0;
                   3085:       if (fmt[i] == 'E')
                   3086:        {
                   3087:          register int j;
                   3088:          for (j = 0; j < XVECLEN (x, i); j++)
                   3089:            if (!invert_exp (XVECEXP (x, i, j), insn))
                   3090:              return 0;
                   3091:        }
                   3092:     }
                   3093: 
                   3094:   return 1;
                   3095: }
                   3096: 
                   3097: /* Make jump JUMP jump to label NLABEL instead of where it jumps now.
                   3098:    If the old jump target label is unused as a result,
                   3099:    it and the code following it may be deleted.
                   3100: 
                   3101:    If NLABEL is zero, we are to turn the jump into a (possibly conditional)
                   3102:    RETURN insn.
                   3103: 
                   3104:    The return value will be 1 if the change was made, 0 if it wasn't (this
                   3105:    can only occur for NLABEL == 0).  */
                   3106: 
                   3107: int
                   3108: redirect_jump (jump, nlabel)
                   3109:      rtx jump, nlabel;
                   3110: {
                   3111:   register rtx olabel = JUMP_LABEL (jump);
                   3112: 
                   3113:   if (nlabel == olabel)
                   3114:     return 1;
                   3115: 
                   3116:   if (! redirect_exp (&PATTERN (jump), olabel, nlabel, jump))
                   3117:     return 0;
                   3118: 
                   3119:   /* If this is an unconditional branch, delete it from the jump_chain of
                   3120:      OLABEL and add it to the jump_chain of NLABEL (assuming both labels
                   3121:      have UID's in range and JUMP_CHAIN is valid).  */
                   3122:   if (jump_chain && (simplejump_p (jump)
                   3123:                     || GET_CODE (PATTERN (jump)) == RETURN))
                   3124:     {
                   3125:       int label_index = nlabel ? INSN_UID (nlabel) : 0;
                   3126: 
                   3127:       delete_from_jump_chain (jump);
                   3128:       if (label_index < max_jump_chain
                   3129:          && INSN_UID (jump) < max_jump_chain)
                   3130:        {
                   3131:          jump_chain[INSN_UID (jump)] = jump_chain[label_index];
                   3132:          jump_chain[label_index] = jump;
                   3133:        }
                   3134:     }
                   3135: 
                   3136:   JUMP_LABEL (jump) = nlabel;
                   3137:   if (nlabel)
                   3138:     ++LABEL_NUSES (nlabel);
                   3139: 
                   3140:   if (olabel && --LABEL_NUSES (olabel) == 0)
                   3141:     delete_insn (olabel);
                   3142: 
                   3143:   return 1;
                   3144: }
                   3145: 
                   3146: /* Delete the instruction JUMP from any jump chain it might be on.  */
                   3147: 
                   3148: static void
                   3149: delete_from_jump_chain (jump)
                   3150:      rtx jump;
                   3151: {
                   3152:   int index;
                   3153:   rtx olabel = JUMP_LABEL (jump);
                   3154: 
                   3155:   /* Handle unconditional jumps.  */
                   3156:   if (jump_chain && olabel != 0
                   3157:       && INSN_UID (olabel) < max_jump_chain
                   3158:       && simplejump_p (jump))
                   3159:     index = INSN_UID (olabel);
                   3160:   /* Handle return insns.  */
                   3161:   else if (jump_chain && GET_CODE (PATTERN (jump)) == RETURN)
                   3162:     index = 0;
                   3163:   else return;
                   3164: 
                   3165:   if (jump_chain[index] == jump)
                   3166:     jump_chain[index] = jump_chain[INSN_UID (jump)];
                   3167:   else
                   3168:     {
                   3169:       rtx insn;
                   3170: 
                   3171:       for (insn = jump_chain[index];
                   3172:           insn != 0;
                   3173:           insn = jump_chain[INSN_UID (insn)])
                   3174:        if (jump_chain[INSN_UID (insn)] == jump)
                   3175:          {
                   3176:            jump_chain[INSN_UID (insn)] = jump_chain[INSN_UID (jump)];
                   3177:            break;
                   3178:          }
                   3179:     }
                   3180: }
                   3181: 
                   3182: /* If NLABEL is nonzero, throughout the rtx at LOC,
                   3183:    alter (LABEL_REF OLABEL) to (LABEL_REF NLABEL).  If OLABEL is
                   3184:    zero, alter (RETURN) to (LABEL_REF NLABEL).
                   3185: 
                   3186:    If NLABEL is zero, alter (LABEL_REF OLABEL) to (RETURN) and check
                   3187:    validity with validate_change.  Convert (set (pc) (label_ref olabel))
                   3188:    to (return).
                   3189: 
                   3190:    Return 0 if we found a change we would like to make but it is invalid.
                   3191:    Otherwise, return 1.  */
                   3192: 
                   3193: static int
                   3194: redirect_exp (loc, olabel, nlabel, insn)
                   3195:      rtx *loc;
                   3196:      rtx olabel, nlabel;
                   3197:      rtx insn;
                   3198: {
                   3199:   register rtx x = *loc;
                   3200:   register RTX_CODE code = GET_CODE (x);
                   3201:   register int i;
                   3202:   register char *fmt;
                   3203: 
                   3204:   if (code == LABEL_REF)
                   3205:     {
                   3206:       if (XEXP (x, 0) == olabel)
                   3207:        {
                   3208:          if (nlabel)
                   3209:            XEXP (x, 0) = nlabel;
                   3210:          else
                   3211:            return validate_change (insn, loc, gen_rtx (RETURN, VOIDmode), 0);
                   3212:          return 1;
                   3213:        }
                   3214:     }
                   3215:   else if (code == RETURN && olabel == 0)
                   3216:     {
                   3217:       x = gen_rtx (LABEL_REF, VOIDmode, nlabel);
                   3218:       if (loc == &PATTERN (insn))
                   3219:        x = gen_rtx (SET, VOIDmode, pc_rtx, x);
                   3220:       return validate_change (insn, loc, x, 0);
                   3221:     }
                   3222: 
                   3223:   if (code == SET && nlabel == 0 && SET_DEST (x) == pc_rtx
                   3224:       && GET_CODE (SET_SRC (x)) == LABEL_REF
                   3225:       && XEXP (SET_SRC (x), 0) == olabel)
                   3226:     return validate_change (insn, loc, gen_rtx (RETURN, VOIDmode), 0);
                   3227: 
                   3228:   fmt = GET_RTX_FORMAT (code);
                   3229:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                   3230:     {
                   3231:       if (fmt[i] == 'e')
                   3232:        if (! redirect_exp (&XEXP (x, i), olabel, nlabel, insn))
                   3233:          return 0;
                   3234:       if (fmt[i] == 'E')
                   3235:        {
                   3236:          register int j;
                   3237:          for (j = 0; j < XVECLEN (x, i); j++)
                   3238:            if (! redirect_exp (&XVECEXP (x, i, j), olabel, nlabel, insn))
                   3239:              return 0;
                   3240:        }
                   3241:     }
                   3242: 
                   3243:   return 1;
                   3244: }
                   3245: 
                   3246: /* Make jump JUMP jump to label NLABEL, assuming it used to be a tablejump.
                   3247: 
                   3248:    If the old jump target label (before the dispatch table) becomes unused,
                   3249:    it and the dispatch table may be deleted.  In that case, find the insn
                   3250:    before the jump references that label and delete it and logical sucessors
                   3251:    too.  */
                   3252: 
                   3253: void
                   3254: redirect_tablejump (jump, nlabel)
                   3255:      rtx jump, nlabel;
                   3256: {
                   3257:   register rtx olabel = JUMP_LABEL (jump);
                   3258: 
                   3259:   /* Add this jump to the jump_chain of NLABEL.  */
                   3260:   if (jump_chain && INSN_UID (nlabel) < max_jump_chain
                   3261:       && INSN_UID (jump) < max_jump_chain)
                   3262:     {
                   3263:       jump_chain[INSN_UID (jump)] = jump_chain[INSN_UID (nlabel)];
                   3264:       jump_chain[INSN_UID (nlabel)] = jump;
                   3265:     }
                   3266: 
                   3267:   PATTERN (jump) = gen_jump (nlabel);
                   3268:   JUMP_LABEL (jump) = nlabel;
                   3269:   ++LABEL_NUSES (nlabel);
                   3270:   INSN_CODE (jump) = -1;
                   3271: 
                   3272:   if (--LABEL_NUSES (olabel) == 0)
                   3273:     {
                   3274:       delete_labelref_insn (jump, olabel, 0);
                   3275:       delete_insn (olabel);
                   3276:     }
                   3277: }
                   3278: 
                   3279: /* Find the insn referencing LABEL that is a logical predecessor of INSN.
                   3280:    If we found one, delete it and then delete this insn if DELETE_THIS is
                   3281:    non-zero.  Return non-zero if INSN or a predecessor references LABEL.  */
                   3282: 
                   3283: static int
                   3284: delete_labelref_insn (insn, label, delete_this)
                   3285:      rtx insn, label;
                   3286:      int delete_this;
                   3287: {
                   3288:   int deleted = 0;
                   3289:   rtx link;
                   3290: 
                   3291:   if (GET_CODE (insn) != NOTE
                   3292:       && reg_mentioned_p (label, PATTERN (insn)))
                   3293:     {
                   3294:       if (delete_this)
                   3295:        {
                   3296:          delete_insn (insn);
                   3297:          deleted = 1;
                   3298:        }
                   3299:       else
                   3300:        return 1;
                   3301:     }
                   3302: 
                   3303:   for (link = LOG_LINKS (insn); link; link = XEXP (link, 1))
                   3304:     if (delete_labelref_insn (XEXP (link, 0), label, 1))
                   3305:       {
                   3306:        if (delete_this)
                   3307:          {
                   3308:            delete_insn (insn);
                   3309:            deleted = 1;
                   3310:          }
                   3311:        else
                   3312:          return 1;
                   3313:       }
                   3314: 
                   3315:   return deleted;
                   3316: }
                   3317: 
                   3318: /* Like rtx_equal_p except that it considers two REGs as equal
                   3319:    if they renumber to the same value.  */
                   3320: 
                   3321: int
                   3322: rtx_renumbered_equal_p (x, y)
                   3323:      rtx x, y;
                   3324: {
                   3325:   register int i;
                   3326:   register RTX_CODE code = GET_CODE (x);
                   3327:   register char *fmt;
                   3328:       
                   3329:   if (x == y)
                   3330:     return 1;
                   3331:   if ((code == REG || (code == SUBREG && GET_CODE (SUBREG_REG (x)) == REG))
                   3332:       && (GET_CODE (y) == REG || (GET_CODE (y) == SUBREG
                   3333:                                  && GET_CODE (SUBREG_REG (y)) == REG)))
                   3334:     {
                   3335:       register int j;
                   3336: 
                   3337:       if (GET_MODE (x) != GET_MODE (y))
                   3338:        return 0;
                   3339: 
                   3340:       /* If we haven't done any renumbering, don't
                   3341:         make any assumptions.  */
                   3342:       if (reg_renumber == 0)
                   3343:        return rtx_equal_p (x, y);
                   3344: 
                   3345:       if (code == SUBREG)
                   3346:        {
                   3347:          i = REGNO (SUBREG_REG (x));
                   3348:          if (reg_renumber[i] >= 0)
                   3349:            i = reg_renumber[i];
                   3350:          i += SUBREG_WORD (x);
                   3351:        }
                   3352:       else
                   3353:        {
                   3354:          i = REGNO (x);
                   3355:          if (reg_renumber[i] >= 0)
                   3356:            i = reg_renumber[i];
                   3357:        }
                   3358:       if (GET_CODE (y) == SUBREG)
                   3359:        {
                   3360:          j = REGNO (SUBREG_REG (y));
                   3361:          if (reg_renumber[j] >= 0)
                   3362:            j = reg_renumber[j];
                   3363:          j += SUBREG_WORD (y);
                   3364:        }
                   3365:       else
                   3366:        {
                   3367:          j = REGNO (y);
                   3368:          if (reg_renumber[j] >= 0)
                   3369:            j = reg_renumber[j];
                   3370:        }
                   3371:       return i == j;
                   3372:     }
                   3373:   /* Now we have disposed of all the cases 
                   3374:      in which different rtx codes can match.  */
                   3375:   if (code != GET_CODE (y))
                   3376:     return 0;
                   3377:   switch (code)
                   3378:     {
                   3379:     case PC:
                   3380:     case CC0:
                   3381:     case ADDR_VEC:
                   3382:     case ADDR_DIFF_VEC:
                   3383:       return 0;
                   3384: 
                   3385:     case CONST_INT:
                   3386:       return XINT (x, 0) == XINT (y, 0);
                   3387: 
                   3388:     case LABEL_REF:
                   3389:       /* Two label-refs are equivalent if they point at labels
                   3390:         in the same position in the instruction stream.  */
                   3391:       return (next_real_insn (XEXP (x, 0))
                   3392:              == next_real_insn (XEXP (y, 0)));
                   3393: 
                   3394:     case SYMBOL_REF:
                   3395:       return XSTR (x, 0) == XSTR (y, 0);
                   3396:     }
                   3397: 
                   3398:   /* (MULT:SI x y) and (MULT:HI x y) are NOT equivalent.  */
                   3399: 
                   3400:   if (GET_MODE (x) != GET_MODE (y))
                   3401:     return 0;
                   3402: 
                   3403:   /* Compare the elements.  If any pair of corresponding elements
                   3404:      fail to match, return 0 for the whole things.  */
                   3405: 
                   3406:   fmt = GET_RTX_FORMAT (code);
                   3407:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                   3408:     {
                   3409:       register int j;
                   3410:       switch (fmt[i])
                   3411:        {
                   3412:        case 'i':
                   3413:          if (XINT (x, i) != XINT (y, i))
                   3414:            return 0;
                   3415:          break;
                   3416: 
                   3417:        case 's':
                   3418:          if (strcmp (XSTR (x, i), XSTR (y, i)))
                   3419:            return 0;
                   3420:          break;
                   3421: 
                   3422:        case 'e':
                   3423:          if (! rtx_renumbered_equal_p (XEXP (x, i), XEXP (y, i)))
                   3424:            return 0;
                   3425:          break;
                   3426: 
                   3427:        case 'u':
                   3428:          if (XEXP (x, i) != XEXP (y, i))
                   3429:            return 0;
                   3430:          /* fall through.  */
                   3431:        case '0':
                   3432:          break;
                   3433: 
                   3434:        case 'E':
                   3435:          if (XVECLEN (x, i) != XVECLEN (y, i))
                   3436:            return 0;
                   3437:          for (j = XVECLEN (x, i) - 1; j >= 0; j--)
                   3438:            if (!rtx_renumbered_equal_p (XVECEXP (x, i, j), XVECEXP (y, i, j)))
                   3439:              return 0;
                   3440:          break;
                   3441: 
                   3442:        default:
                   3443:          abort ();
                   3444:        }
                   3445:     }
                   3446:   return 1;
                   3447: }
                   3448: 
                   3449: /* If X is a hard register or equivalent to one or a subregister of one,
                   3450:    return the hard register number.  If X is a pseudo register that was not
                   3451:    assigned a hard register, return the pseudo register number.  Otherwise,
                   3452:    return -1.  Any rtx is valid for X.  */
                   3453: 
                   3454: int
                   3455: true_regnum (x)
                   3456:      rtx x;
                   3457: {
                   3458:   if (GET_CODE (x) == REG)
                   3459:     {
                   3460:       if (REGNO (x) >= FIRST_PSEUDO_REGISTER && reg_renumber[REGNO (x)] >= 0)
                   3461:        return reg_renumber[REGNO (x)];
                   3462:       return REGNO (x);
                   3463:     }
                   3464:   if (GET_CODE (x) == SUBREG)
                   3465:     {
                   3466:       int base = true_regnum (SUBREG_REG (x));
                   3467:       if (base >= 0 && base < FIRST_PSEUDO_REGISTER)
                   3468:        return SUBREG_WORD (x) + base;
                   3469:     }
                   3470:   return -1;
                   3471: }
                   3472: 
                   3473: /* Optimize code of the form:
                   3474: 
                   3475:        for (x = a[i]; x; ...)
                   3476:          ...
                   3477:        for (x = a[i]; x; ...)
                   3478:          ...
                   3479:       foo:
                   3480: 
                   3481:    Loop optimize will change the above code into
                   3482: 
                   3483:        if (x = a[i])
                   3484:          for (;;)
                   3485:             { ...; if (! (x = ...)) break; }
                   3486:        if (x = a[i])
                   3487:          for (;;)
                   3488:             { ...; if (! (x = ...)) break; }
                   3489:       foo:
                   3490: 
                   3491:    In general, if the first test fails, the program can branch
                   3492:    directly to `foo' and skip the second try which is doomed to fail.
                   3493:    We run this after loop optimization and before flow analysis.  */
                   3494:    
                   3495: /* When comparing the insn patterns, we track the fact that different
                   3496:    pseudo-register numbers may have been used in each computation.
                   3497:    The following array stores an equivalence -- same_regs[I] == J means
                   3498:    that pseudo register I was used in the first set of tests in a context
                   3499:    where J was used in the second set.  We also count the number of such
                   3500:    pending equivalences.  If nonzero, the expressions really aren't the
                   3501:    same.  */
                   3502: 
                   3503: static short *same_regs;
                   3504: 
                   3505: static int num_same_regs;
                   3506: 
                   3507: /* Track any registers modified between the target of the first jump and
                   3508:    the second jump.  They never compare equal.  */
                   3509: 
                   3510: static char *modified_regs;
                   3511: 
                   3512: /* Record if memory was modified.  */
                   3513: 
                   3514: static int modified_mem;
                   3515: 
                   3516: /* Called via note_stores on each insn between the target of the first 
                   3517:    branch and the second branch.  It marks any changed registers.  */
                   3518: 
                   3519: static void
                   3520: mark_modified_reg (dest, x)
                   3521:      rtx dest;
                   3522:      rtx x;
                   3523: {
                   3524:   int regno, i;
                   3525: 
                   3526:   if (GET_CODE (dest) == SUBREG)
                   3527:     dest = SUBREG_REG (dest);
                   3528: 
                   3529:   if (GET_CODE (dest) == MEM)
                   3530:     modified_mem = 1;
                   3531: 
                   3532:   if (GET_CODE (dest) != REG)
                   3533:     return;
                   3534: 
                   3535:   regno = REGNO (dest);
                   3536:   if (regno >= FIRST_PSEUDO_REGISTER)
                   3537:     modified_regs[regno] = 1;
                   3538:   else
                   3539:     for (i = 0; i < HARD_REGNO_NREGS (regno, GET_MODE (dest)); i++)
                   3540:       modified_regs[regno + i] = 1;
                   3541: }
                   3542: 
                   3543: /* F is the first insn in the chain of insns.  */
                   3544:    
                   3545: void
                   3546: thread_jumps (f, max_reg, verbose)
                   3547:      rtx f;
                   3548:      int max_reg;
                   3549:      int verbose;
                   3550: {
                   3551:   /* Basic algorithm is to find a conditional branch,
                   3552:      the label it may branch to, and the branch after
                   3553:      that label.  If the two branches test the same condition,
                   3554:      walk back from both branch paths until the insn patterns
                   3555:      differ, or code labels are hit.  If we make it back to
                   3556:      the target of the first branch, then we know that the first branch
                   3557:      will either always succeed or always fail depending on the relative
                   3558:      senses of the two branches.  So adjust the first branch accordingly
                   3559:      in this case.  */
                   3560:      
                   3561:   rtx label, b1, b2, t1, t2;
                   3562:   enum rtx_code code1, code2;
                   3563:   rtx b1op0, b1op1, b2op0, b2op1;
                   3564:   int changed = 1;
                   3565:   int i;
                   3566:   short *all_reset;
                   3567: 
                   3568:   /* Allocate register tables and quick-reset table.  */
                   3569:   modified_regs = (char *) alloca (max_reg * sizeof (char));
                   3570:   same_regs = (short *) alloca (max_reg * sizeof (short));
                   3571:   all_reset = (short *) alloca (max_reg * sizeof (short));
                   3572:   for (i = 0; i < max_reg; i++)
                   3573:     all_reset[i] = -1;
                   3574:     
                   3575:   while (changed)
                   3576:     {
                   3577:       changed = 0;
                   3578: 
                   3579:       for (b1 = f; b1; b1 = NEXT_INSN (b1))
                   3580:        {
                   3581:          /* Get to a candidate branch insn.  */
                   3582:          if (GET_CODE (b1) != JUMP_INSN
                   3583:              || ! condjump_p (b1) || simplejump_p (b1)
                   3584:              || JUMP_LABEL (b1) == 0)
                   3585:            continue;
                   3586: 
                   3587:          bzero (modified_regs, max_reg * sizeof (char));
                   3588:          modified_mem = 0;
                   3589: 
                   3590:          bcopy (all_reset, same_regs, max_reg * sizeof (short));
                   3591:          num_same_regs = 0;
                   3592: 
                   3593:          label = JUMP_LABEL (b1);
                   3594: 
                   3595:          /* Look for a branch after the target.  Record any registers and
                   3596:             memory modified between the target and the branch.  Stop when we
                   3597:             get to a label since we can't know what was changed there.  */
                   3598:          for (b2 = NEXT_INSN (label); b2; b2 = NEXT_INSN (b2))
                   3599:            {
                   3600:              if (GET_CODE (b2) == CODE_LABEL)
                   3601:                break;
                   3602: 
                   3603:              else if (GET_CODE (b2) == JUMP_INSN)
                   3604:                {
                   3605:                  /* If this is an unconditional jump and is the only use of
                   3606:                     its target label, we can follow it.  */
                   3607:                  if (simplejump_p (b2)
                   3608:                      && JUMP_LABEL (b2) != 0
                   3609:                      && LABEL_NUSES (JUMP_LABEL (b2)) == 1)
                   3610:                    {
                   3611:                      b2 = JUMP_LABEL (b2);
                   3612:                      continue;
                   3613:                    }
                   3614:                  else
                   3615:                    break;
                   3616:                }
                   3617: 
                   3618:              if (GET_CODE (b2) != CALL_INSN && GET_CODE (b2) != INSN)
                   3619:                continue;
                   3620: 
                   3621:              if (GET_CODE (b2) == CALL_INSN)
                   3622:                {
                   3623:                  modified_mem = 1;
                   3624:                  for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
                   3625:                    if (call_used_regs[i] && ! fixed_regs[i]
                   3626:                        && i != STACK_POINTER_REGNUM
                   3627:                        && i != FRAME_POINTER_REGNUM
                   3628:                        && i != ARG_POINTER_REGNUM)
                   3629:                      modified_regs[i] = 1;
                   3630:                }
                   3631: 
                   3632:              note_stores (PATTERN (b2), mark_modified_reg);
                   3633:            }
                   3634: 
                   3635:          /* Check the next candidate branch insn from the label
                   3636:             of the first.  */
                   3637:          if (b2 == 0
                   3638:              || GET_CODE (b2) != JUMP_INSN
                   3639:              || b2 == b1
                   3640:              || ! condjump_p (b2)
                   3641:              || simplejump_p (b2))
                   3642:            continue;
                   3643: 
                   3644:          /* Get the comparison codes and operands, reversing the
                   3645:             codes if appropriate.  If we don't have comparison codes,
                   3646:             we can't do anything.  */
                   3647:          b1op0 = XEXP (XEXP (SET_SRC (PATTERN (b1)), 0), 0);
                   3648:          b1op1 = XEXP (XEXP (SET_SRC (PATTERN (b1)), 0), 1);
                   3649:          code1 = GET_CODE (XEXP (SET_SRC (PATTERN (b1)), 0));
                   3650:          if (XEXP (SET_SRC (PATTERN (b1)), 1) == pc_rtx)
                   3651:            code1 = reverse_condition (code1);
                   3652: 
                   3653:          b2op0 = XEXP (XEXP (SET_SRC (PATTERN (b2)), 0), 0);
                   3654:          b2op1 = XEXP (XEXP (SET_SRC (PATTERN (b2)), 0), 1);
                   3655:          code2 = GET_CODE (XEXP (SET_SRC (PATTERN (b2)), 0));
                   3656:          if (XEXP (SET_SRC (PATTERN (b2)), 1) == pc_rtx)
                   3657:            code2 = reverse_condition (code2);
                   3658: 
                   3659:          /* If they test the same things and knowing that B1 branches
                   3660:             tells us whether or not B2 branches, check if we
                   3661:             can thread the branch.  */
                   3662:          if (rtx_equal_for_thread_p (b1op0, b2op0, b2)
                   3663:              && rtx_equal_for_thread_p (b1op1, b2op1, b2)
                   3664:              && (comparison_dominates_p (code1, code2)
                   3665:                  || comparison_dominates_p (code1, reverse_condition (code2))))
                   3666:            {
                   3667:              t1 = prev_nonnote_insn (b1);
                   3668:              t2 = prev_nonnote_insn (b2);
                   3669:              
                   3670:              while (t1 != 0 && t2 != 0)
                   3671:                {
                   3672:                  if (t1 == 0 || t2 == 0)
                   3673:                    break;
                   3674: 
                   3675:                  if (t2 == label)
                   3676:                    {
                   3677:                      /* We have reached the target of the first branch.
                   3678:                         If there are no pending register equivalents,
                   3679:                         we know that this branch will either always
                   3680:                         succeed (if the senses of the two branches are
                   3681:                         the same) or always fail (if not).  */
                   3682:                      rtx new_label;
                   3683: 
                   3684:                      if (num_same_regs != 0)
                   3685:                        break;
                   3686: 
                   3687:                      if (comparison_dominates_p (code1, code2))
                   3688:                        new_label = JUMP_LABEL (b2);
                   3689:                      else
                   3690:                        new_label = get_label_after (b2);
                   3691: 
                   3692:                      if (JUMP_LABEL (b1) != new_label
                   3693:                          && redirect_jump (b1, new_label))
                   3694:                        changed = 1;
                   3695:                      break;
                   3696:                    }
                   3697:                    
                   3698:                  /* If either of these is not a normal insn (it might be
                   3699:                     a JUMP_INSN, CALL_INSN, or CODE_LABEL) we fail.  (NOTEs
                   3700:                     have already been skipped above.)  Similarly, fail
                   3701:                     if the insns are different.  */
                   3702:                  if (GET_CODE (t1) != INSN || GET_CODE (t2) != INSN
                   3703:                      || recog_memoized (t1) != recog_memoized (t2)
                   3704:                      || ! rtx_equal_for_thread_p (PATTERN (t1),
                   3705:                                                   PATTERN (t2), t2))
                   3706:                    break;
                   3707:                    
                   3708:                  t1 = prev_nonnote_insn (t1);
                   3709:                  t2 = prev_nonnote_insn (t2);
                   3710:                }
                   3711:            }
                   3712:        }
                   3713:     }
                   3714: }
                   3715: 
                   3716: /* This is like RTX_EQUAL_P except that it knows about our handling of
                   3717:    possibly equivalent registers and knows to consider volatile and
                   3718:    modified objects as not equal.
                   3719:    
                   3720:    YINSN is the insn containing Y.  */
                   3721: 
                   3722: int
                   3723: rtx_equal_for_thread_p (x, y, yinsn)
                   3724:      rtx x, y;
                   3725:      rtx yinsn;
                   3726: {
                   3727:   register int i;
                   3728:   register int j;
                   3729:   register enum rtx_code code;
                   3730:   register char *fmt;
                   3731: 
                   3732:   code = GET_CODE (x);
                   3733:   /* Rtx's of different codes cannot be equal.  */
                   3734:   if (code != GET_CODE (y))
                   3735:     return 0;
                   3736: 
                   3737:   /* (MULT:SI x y) and (MULT:HI x y) are NOT equivalent.
                   3738:      (REG:SI x) and (REG:HI x) are NOT equivalent.  */
                   3739: 
                   3740:   if (GET_MODE (x) != GET_MODE (y))
                   3741:     return 0;
                   3742: 
                   3743:   /* Handle special-cases first.  */
                   3744:   switch (code)
                   3745:     {
                   3746:     case REG:
                   3747:       if (REGNO (x) == REGNO (y) && ! modified_regs[REGNO (x)])
                   3748:         return 1;
                   3749: 
                   3750:       /* If neither is user variable or hard register, check for possible
                   3751:         equivalence.  */
                   3752:       if (REG_USERVAR_P (x) || REG_USERVAR_P (y)
                   3753:          || REGNO (x) < FIRST_PSEUDO_REGISTER
                   3754:          || REGNO (y) < FIRST_PSEUDO_REGISTER)
                   3755:        return 0;
                   3756: 
                   3757:       if (same_regs[REGNO (x)] == -1)
                   3758:        {
                   3759:          same_regs[REGNO (x)] = REGNO (y);
                   3760:          num_same_regs++;
                   3761: 
                   3762:          /* If this is the first time we are seeing a register on the `Y'
                   3763:             side, see if it is the last use.  If not, we can't thread the 
                   3764:             jump, so mark it as not equivalent.  */
                   3765:          if (regno_last_uid[REGNO (y)] != INSN_UID (yinsn))
                   3766:            return 0;
                   3767: 
                   3768:          return 1;
                   3769:        }
                   3770:       else
                   3771:        return (same_regs[REGNO (x)] == REGNO (y));
                   3772: 
                   3773:       break;
                   3774: 
                   3775:     case MEM:
                   3776:       /* If memory modified or either volatile, not eqivalent.
                   3777:         Else, check address. */
                   3778:       if (modified_mem || MEM_VOLATILE_P (x) || MEM_VOLATILE_P (y))
                   3779:        return 0;
                   3780: 
                   3781:       return rtx_equal_for_thread_p (XEXP (x, 0), XEXP (y, 0), yinsn);
                   3782: 
                   3783:     case ASM_INPUT:
                   3784:       if (MEM_VOLATILE_P (x) || MEM_VOLATILE_P (y))
                   3785:        return 0;
                   3786: 
                   3787:       break;
                   3788: 
                   3789:     case SET:
                   3790:       /* Cancel a pending `same_regs' if setting equivalenced registers.
                   3791:         Then process source.  */
                   3792:       if (GET_CODE (SET_DEST (x)) == REG
                   3793:           && GET_CODE (SET_DEST (y)) == REG)
                   3794:        {
                   3795:           if (same_regs[REGNO (SET_DEST (x))] == REGNO (SET_DEST (y)))
                   3796:            {
                   3797:              same_regs[REGNO (SET_DEST (x))] = -1;
                   3798:              num_same_regs--;
                   3799:            }
                   3800:          else if (REGNO (SET_DEST (x)) != REGNO (SET_DEST (y)))
                   3801:            return 0;
                   3802:        }
                   3803:       else
                   3804:        if (rtx_equal_for_thread_p (SET_DEST (x), SET_DEST (y), yinsn) == 0)
                   3805:          return 0;
                   3806: 
                   3807:       return rtx_equal_for_thread_p (SET_SRC (x), SET_SRC (y), yinsn);
                   3808: 
                   3809:     case LABEL_REF:
                   3810:       return XEXP (x, 0) == XEXP (y, 0);
                   3811: 
                   3812:     case SYMBOL_REF:
                   3813:       return XSTR (x, 0) == XSTR (y, 0);
                   3814:     }
                   3815: 
                   3816:   if (x == y)
                   3817:     return 1;
                   3818: 
                   3819:   fmt = GET_RTX_FORMAT (code);
                   3820:   for (i = GET_RTX_LENGTH (code) - 1; i >= 0; i--)
                   3821:     {
                   3822:       switch (fmt[i])
                   3823:        {
                   3824:        case 'n':
                   3825:        case 'i':
                   3826:          if (XINT (x, i) != XINT (y, i))
                   3827:            return 0;
                   3828:          break;
                   3829: 
                   3830:        case 'V':
                   3831:        case 'E':
                   3832:          /* Two vectors must have the same length.  */
                   3833:          if (XVECLEN (x, i) != XVECLEN (y, i))
                   3834:            return 0;
                   3835: 
                   3836:          /* And the corresponding elements must match.  */
                   3837:          for (j = 0; j < XVECLEN (x, i); j++)
                   3838:            if (rtx_equal_for_thread_p (XVECEXP (x, i, j),
                   3839:                                        XVECEXP (y, i, j), yinsn) == 0)
                   3840:              return 0;
                   3841:          break;
                   3842: 
                   3843:        case 'e':
                   3844:          if (rtx_equal_for_thread_p (XEXP (x, i), XEXP (y, i), yinsn) == 0)
                   3845:            return 0;
                   3846:          break;
                   3847: 
                   3848:        case 'S':
                   3849:        case 's':
                   3850:          if (strcmp (XSTR (x, i), XSTR (y, i)))
                   3851:            return 0;
                   3852:          break;
                   3853: 
                   3854:        case 'u':
                   3855:          /* These are just backpointers, so they don't matter.  */
                   3856:          break;
                   3857: 
                   3858:        case '0':
                   3859:          break;
                   3860: 
                   3861:          /* It is believed that rtx's at this level will never
                   3862:             contain anything but integers and other rtx's,
                   3863:             except for within LABEL_REFs and SYMBOL_REFs.  */
                   3864:        default:
                   3865:          abort ();
                   3866:        }
                   3867:     }
                   3868:   return 1;
                   3869: }

unix.superglobalmegacorp.com

This archive runs on limited infrastructure. Preserving old code on modern bandwidth. Automated agents are requested to crawl responsibly.