Annotation of tme/ic/sparc/sparc-execute.c, revision 1.1.1.1

1.1       root        1: /* $Id: sparc-execute.c,v 1.5 2007/03/29 01:06:59 fredette Exp $ */
                      2: 
                      3: /* ic/sparc/sparc-execute.c - executes SPARC instructions: */
                      4: 
                      5: /*
                      6:  * Copyright (c) 2005 Matt Fredette
                      7:  * All rights reserved.
                      8:  *
                      9:  * Redistribution and use in source and binary forms, with or without
                     10:  * modification, are permitted provided that the following conditions
                     11:  * are met:
                     12:  * 1. Redistributions of source code must retain the above copyright
                     13:  *    notice, this list of conditions and the following disclaimer.
                     14:  * 2. Redistributions in binary form must reproduce the above copyright
                     15:  *    notice, this list of conditions and the following disclaimer in the
                     16:  *    documentation and/or other materials provided with the distribution.
                     17:  * 3. All advertising materials mentioning features or use of this software
                     18:  *    must display the following acknowledgement:
                     19:  *      This product includes software developed by Matt Fredette.
                     20:  * 4. The name of the author may not be used to endorse or promote products
                     21:  *    derived from this software without specific prior written permission.
                     22:  *
                     23:  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
                     24:  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED
                     25:  * WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
                     26:  * DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT,
                     27:  * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
                     28:  * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
                     29:  * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
                     30:  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
                     31:  * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN
                     32:  * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
                     33:  * POSSIBILITY OF SUCH DAMAGE.
                     34:  */
                     35: 
                     36: _TME_RCSID("$Id: sparc-execute.c,v 1.5 2007/03/29 01:06:59 fredette Exp $");
                     37: 
                     38: /* includes: */
                     39: #include "sparc-auto.h"
                     40: 
                     41: #if (TME_SPARC_VERSION(ic) < 9)
                     42: #define tme_sparc_ireg_t tme_uint32_t
                     43: #define tme_sparc_ireg(x)  tme_sparc_ireg_uint32(x)
                     44: #define tme_sparc_idle_type_pc tme_sparc_idle_type_pc32
                     45: #else  /* TME_SPARC_VERSION(ic) >= 9 */
                     46: #define tme_sparc_ireg_t tme_uint64_t
                     47: #define tme_sparc_ireg(x)  tme_sparc_ireg_uint64(x)
                     48: #define tme_sparc_idle_type_pc tme_sparc_idle_type_pc64
                     49: #endif /* TME_SPARC_VERSION(ic) >= 9 */
                     50: 
                     51: /* the sparc instruction executor: */
                     52: static void
                     53: _TME_SPARC_EXECUTE_NAME(struct tme_sparc *ic)
                     54: {
                     55:   tme_uint32_t asi_mask_insn;
                     56:   tme_uint32_t asi_mask_data;
                     57:   struct tme_sparc_tlb *itlb_current;
                     58:   struct tme_sparc_tlb itlb_invalid;
                     59:   tme_sparc_ireg_t pc;
                     60:   tme_uint32_t insn;
                     61:   unsigned int opcode;
                     62:   unsigned int reg_rs1;
                     63:   unsigned int reg_rs2;
                     64:   unsigned int reg_rd;
                     65:   int annulled;
                     66:   int rc;
                     67:   tme_uint8_t conds_mask_icc;
                     68:   tme_uint8_t conds_mask_fcc;
                     69:   tme_uint16_t conds_mask;
                     70:   unsigned int cond;
                     71: 
                     72:   /* get the default address space identifiers and masks: */
                     73:   if (TME_SPARC_VERSION(ic) < 9) {
                     74:     if (TME_SPARC_PRIV(ic)) {
                     75:       asi_mask_insn = TME_SPARC32_ASI_MASK_SI;
                     76:       asi_mask_data = TME_SPARC32_ASI_MASK_SD;
                     77:     }
                     78:     else {
                     79:       asi_mask_insn = TME_SPARC32_ASI_MASK_UI;
                     80:       asi_mask_data = TME_SPARC32_ASI_MASK_UD;
                     81:     }
                     82:   }
                     83:   else {
                     84:     asi_mask_data
                     85:       = ((ic->tme_sparc64_ireg_pstate & TME_SPARC64_PSTATE_CLE)
                     86:         ? TME_SPARC64_ASI_MASK_PRIMARY_LITTLE
                     87:         : TME_SPARC64_ASI_MASK_PRIMARY);
                     88:     asi_mask_insn = asi_mask_data;
                     89:   }
                     90:   ic->tme_sparc_asi_mask_insn = asi_mask_insn;
                     91:   ic->tme_sparc_asi_mask_data = asi_mask_data;
                     92: 
                     93:   /* create an invalid instruction TLB entry, and use it as the initial
                     94:      current instruction TLB entry: */
                     95:   tme_bus_tlb_construct(&itlb_invalid.tme_sparc_tlb_bus_tlb);
                     96:   itlb_invalid.tme_sparc_tlb_addr_first = 1;
                     97:   itlb_invalid.tme_sparc_tlb_addr_last = 0;
                     98:   itlb_current = &itlb_invalid;
                     99: 
                    100:   /* busy the invalid instruction TLB entry: */
                    101:   assert (ic->_tme_sparc_itlb_busy == NULL);
                    102:   tme_sparc_tlb_busy(itlb_current);
                    103:   ic->_tme_sparc_itlb_busy = itlb_current;
                    104: 
                    105:   /* the first instruction will not be annulled: */
                    106:   annulled = FALSE;
                    107: 
                    108:   for (;;) {
                    109: 
                    110:     /* if we have used up our instruction burst: */
                    111:     if (__tme_predict_false(ic->_tme_sparc_instruction_burst_remaining == 0)) {
                    112: 
                    113:       /* try to acquire the external mutex and check for external
                    114:         resets, halts, or interrupts, and process them: */
                    115:       rc = tme_mutex_trylock(&ic->tme_sparc_external_mutex);
                    116:       if (__tme_predict_true(TME_THREADS_ERRNO(rc) == TME_OK)) {
                    117: #if TME_SPARC_VERSION(ic) < 9
                    118:        tme_sparc32_external_check(ic);
                    119: #else  /* TME_SPARC_VERSION(ic) >= 9 */
                    120:        tme_sparc64_external_check(ic);
                    121: #endif /* TME_SPARC_VERSION(ic) >= 9 */
                    122: 
                    123:        /* unlock the external mutex: */
                    124:        tme_mutex_unlock(&ic->tme_sparc_external_mutex);
                    125:       }
                    126: 
                    127:       /* start a new instruction burst: */
                    128:       ic->_tme_sparc_instruction_burst_remaining
                    129:        = ic->_tme_sparc_instruction_burst;
                    130: 
                    131:       /* if we are in the idle loop: */
                    132:       if (__tme_predict_false((ic->tme_sparc_ireg(TME_SPARC_IREG_PC_NEXT)
                    133:                               == ic->tme_sparc_idle_type_pc)
                    134:                              && TME_SPARC_IDLE_TYPE_IS(ic,
                    135:                                                        (TME_SPARC_IDLE_TYPE_SUNOS32_TYPE_0)))) {
                    136:        tme_sparc_do_idle(ic);
                    137:       }
                    138: 
                    139:       /* if this is a cooperative threading system: */
                    140: #if TME_THREADS_COOPERATIVE
                    141: 
                    142:       /* unbusy the current instruction TLB entry: */
                    143:       assert (ic->_tme_sparc_itlb_busy == itlb_current);
                    144:       tme_sparc_tlb_unbusy(itlb_current);
                    145:       ic->_tme_sparc_itlb_busy = NULL;
                    146: 
                    147:       /* yield: */
                    148:       tme_thread_yield();
                    149: #endif /* TME_THREADS_COOPERATIVE */
                    150:     }
                    151: 
                    152:     /* we are going to use one instruction in the burst: */
                    153:     ic->_tme_sparc_instruction_burst_remaining--;
                    154: #ifdef _TME_SPARC_STATS
                    155:     ic->tme_sparc_stats.tme_sparc_stats_insns_total++;
                    156: #endif /* _TME_SPARC_STATS */
                    157: 
                    158:     /* update the PCs and get the PC of the instruction to execute: */
                    159:     pc = ic->tme_sparc_ireg(TME_SPARC_IREG_PC_NEXT);
                    160:     ic->tme_sparc_ireg(TME_SPARC_IREG_PC) = pc;
                    161:     ic->tme_sparc_ireg(TME_SPARC_IREG_PC_NEXT) = ic->tme_sparc_ireg(TME_SPARC_IREG_PC_NEXT_NEXT);
                    162:     ic->tme_sparc_ireg(TME_SPARC_IREG_PC_NEXT_NEXT) += sizeof(tme_uint32_t);
                    163: 
                    164:     /* NB that we only save instruction TLB entries that allow fast
                    165:        reading, and we also change tme_sparc_tlb_addr_last to be the
                    166:        last PC covered by the entry (it's normally the last address
                    167:        covered by the entry).  this allows us to do minimal checking
                    168:        of the current instruction TLB entry at itlb_current: */
                    169: 
                    170:     /* if the current instruction TLB entry covers this address: */
                    171:     if (__tme_predict_true(itlb_current->tme_sparc_tlb_addr_first <= pc
                    172:                           && pc <= itlb_current->tme_sparc_tlb_addr_last)) {
                    173: 
                    174:       /* fetch the instruction: */
                    175:       insn = tme_memory_bus_read32((const tme_shared tme_uint32_t *) (itlb_current->tme_sparc_tlb_emulator_off_read + pc),
                    176:                                   itlb_current->tme_sparc_tlb_bus_rwlock,
                    177:                                   sizeof(tme_uint32_t),
                    178:                                   sizeof(tme_sparc_ireg_t));
                    179:       insn = tme_betoh_u32(insn);
                    180:     }
                    181: 
                    182:     /* otherwise, our current TLB entry doesn't cover this address: */
                    183:     else {
                    184: 
                    185:       /* unbusy the current instruction TLB entry: */
                    186:       assert (ic->_tme_sparc_itlb_busy == itlb_current);
                    187:       tme_sparc_tlb_unbusy(itlb_current);
                    188: 
                    189:       /* rehash the current instruction TLB entry: */
                    190:       itlb_current = tme_memory_atomic_pointer_read(struct tme_sparc_tlb *,
                    191:                                                    ic->_tme_sparc_itlb_array,
                    192:                                                    &ic->_tme_sparc_tlb_rwlock);
                    193:       itlb_current += (pc >> 10) % _TME_SPARC_ITLB_HASH_SIZE;
                    194: 
                    195:       /* busy the current instruction TLB entry: */
                    196:       tme_sparc_tlb_busy(itlb_current);
                    197:       ic->_tme_sparc_itlb_busy = itlb_current;
                    198: 
                    199:       /* if the new current instruction TLB entry is valid and covers
                    200:          this address: */
                    201:       if (tme_bus_tlb_is_valid(&itlb_current->tme_sparc_tlb_bus_tlb)
                    202:          && __tme_predict_true(TME_SPARC_TLB_ASI_MASK_OK(itlb_current, asi_mask_insn)
                    203:                                && itlb_current->tme_sparc_tlb_addr_first <= pc
                    204:                                && pc <= itlb_current->tme_sparc_tlb_addr_last)) {
                    205: 
                    206:        /* fetch the instruction: */
                    207:        insn = tme_memory_bus_read32((const tme_shared tme_uint32_t *) (itlb_current->tme_sparc_tlb_emulator_off_read + pc),
                    208:                                     itlb_current->tme_sparc_tlb_bus_rwlock,
                    209:                                     sizeof(tme_uint32_t),
                    210:                                     sizeof(tme_sparc_ireg_t));
                    211:        insn = tme_betoh_u32(insn);
                    212:       }
                    213: 
                    214:       /* otherwise, the new current instruction TLB entry is not valid
                    215:          or does not cover this address: */
                    216:       else {
                    217: 
                    218:        /* we never fill TLB entries on the stack because we never
                    219:           callout multiple fills at the same time, so the global TLB
                    220:           entry pointer always points back to the TLB entry.  this
                    221:           also means that we don't have to call tme_bus_tlb_back()
                    222:           after the fill: */
                    223:        itlb_current->tme_sparc_tlb_bus_tlb.tme_bus_tlb_global = &itlb_current->tme_sparc_tlb_bus_tlb;
                    224: 
                    225:        /* loop until we can busy a valid TLB entry: */
                    226:        do {
                    227: 
                    228:          /* unbusy the current instruction TLB entry for filling: */
                    229:          tme_bus_tlb_unbusy_fill(&itlb_current->tme_sparc_tlb_bus_tlb);
                    230: 
                    231:          /* fill the current instruction TLB entry: */
                    232: #ifdef _TME_SPARC_STATS
                    233:          ic->tme_sparc_stats.tme_sparc_stats_itlb_fill++;
                    234: #endif /* _TME_SPARC_STATS */
                    235:          (*ic->_tme_sparc_bus_connection->tme_sparc_bus_tlb_fill)
                    236:            (ic->_tme_sparc_bus_connection, 
                    237:             itlb_current,
                    238:             asi_mask_insn,
                    239:             ic->tme_sparc_ireg(TME_SPARC_IREG_PC),
                    240:             TME_BUS_CYCLE_READ);
                    241: 
                    242:          /* busy the current instruction TLB entry: */
                    243:          tme_sparc_tlb_busy(itlb_current);
                    244: 
                    245:        } while (tme_bus_tlb_is_invalid(&itlb_current->tme_sparc_tlb_bus_tlb));
                    246: 
                    247:        /* the current instruction TLB entry must now cover this
                    248:            address and allow reading: */
                    249:        /* NB that tme_sparc_tlb_addr_last has not been changed yet: */
                    250:        assert (TME_SPARC_TLB_ASI_MASK_OK(itlb_current, asi_mask_insn)
                    251:                && itlb_current->tme_sparc_tlb_addr_first <= pc
                    252:                && pc <= itlb_current->tme_sparc_tlb_addr_last
                    253:                && (itlb_current->tme_sparc_tlb_emulator_off_read != TME_EMULATOR_OFF_UNDEF
                    254:                    || (itlb_current->tme_sparc_tlb_cycles_ok & TME_BUS_CYCLE_READ)));
                    255: 
                    256:        /* if this current instruction TLB entry covers the entire
                    257:           instruction and allows fast reading: */
                    258:        if (__tme_predict_true(itlb_current->tme_sparc_tlb_addr_last >= (pc + (sizeof(tme_uint32_t) - 1))
                    259:                               && itlb_current->tme_sparc_tlb_emulator_off_read != TME_EMULATOR_OFF_UNDEF)) {
                    260: 
                    261:          /* fetch the instruction: */
                    262:          insn = tme_memory_bus_read32((const tme_shared tme_uint32_t *) (itlb_current->tme_sparc_tlb_emulator_off_read + pc),
                    263:                                       itlb_current->tme_sparc_tlb_bus_rwlock,
                    264:                                       sizeof(tme_uint32_t),
                    265:                                       sizeof(tme_sparc_ireg_t));
                    266:          insn = tme_betoh_u32(insn);
                    267: 
                    268:          /* modify tme_sparc_tlb_addr_last of this first to represent the last valid
                    269:             PC covered by the entry: */
                    270:          itlb_current->tme_sparc_tlb_addr_last
                    271:            &= (((tme_bus_addr_t) 0) - sizeof(tme_uint32_t));
                    272:        }
                    273: 
                    274:        /* otherwise, this instruction TLB entry does not cover the
                    275:           entire instruction and/or it does not allow fast reading.
                    276:           fetching an instruction here may mean making multiple bus
                    277:           cycles.  exactly what happens in this case is
                    278:           implementation-dependent, so we call an
                    279:           implementation-specific function here to handle it: */
                    280:        else {
                    281: 
                    282:          /* unbusy the current instruction TLB entry and poison it,
                    283:             so we won't try to do any fast fetches with it: */
                    284:          assert (ic->_tme_sparc_itlb_busy == itlb_current);
                    285:          tme_sparc_tlb_unbusy(itlb_current);
                    286:          itlb_current->tme_sparc_tlb_addr_first = 1;
                    287:          itlb_current->tme_sparc_tlb_addr_last = 0;
                    288:          ic->_tme_sparc_itlb_busy = NULL;
                    289: 
                    290:          /* NB that while annulled instructions are always fetched,
                    291:             fetching an annulled instruction can never generate an
                    292:             instruction_access exception, since the annul bit is not
                    293:             part of the architected state.  so we pass in the
                    294:             annulled indication to the slow instruction fetcher: */
                    295:          insn = (*ic->_tme_sparc_fetch_slow)(ic, annulled);
                    296: #ifdef _TME_SPARC_STATS
                    297:          ic->tme_sparc_stats.tme_sparc_stats_insns_slow++;
                    298: #endif /* _TME_SPARC_STATS */
                    299: 
                    300:          /* busy the invalid instruction TLB entry: */
                    301:          itlb_current = &itlb_invalid;
                    302:          assert (ic->_tme_sparc_itlb_busy == NULL);
                    303:          tme_sparc_tlb_busy(itlb_current);
                    304:          ic->_tme_sparc_itlb_busy = itlb_current;
                    305:        }
                    306:       }
                    307: 
                    308:       /* if this instruction has been annulled: */
                    309:       if (__tme_predict_false(annulled)) {
                    310: 
                    311:        /* the netbsd32-type-0 idle type is detected when an annulled
                    312:           "wr %g1, PSR_PIL, %psr" or "wr %l1, (IPL_SCHED << 8), %psr"
                    313:           instruction is found four instructions after (in
                    314:           disassembly order, not execution order) a "wr %g1, 0, %psr"
                    315:           or "wr %l1, 0, %psr" instruction that sets PIL to 0x0: */
                    316:        if (__tme_predict_false((insn
                    317:                                 & ~((31 << 25)         /* rd (reserved) */
                    318:                                     | (0x10 << 14)     /* rs1 (mask %ln to %gn) */
                    319:                                     | (0x4 << 8)))     /* imm13 (mask PSR_PIL to (IPL_SCHED << 8)) */
                    320:                                == ((tme_uint32_t)
                    321:                                    (2 << 30)           /* format */
                    322:                                    | (0x31 << 19)      /* op3 (wrpsr) */
                    323:                                    | (0x01 << 14)      /* rs1 (%g1) */
                    324:                                    | (1 << 13)         /* i */
                    325:                                    | 0x0b00))) {       /* imm13 (IPL_SCHED << 8) */
                    326:          if (TME_SPARC_IDLE_TYPE_IS(ic, TME_SPARC_IDLE_TYPE_NETBSD32_TYPE_0)) {
                    327:            if (ic->tme_sparc_ireg(TME_SPARC_IREG_PC)
                    328:                == (ic->tme_sparc_idle_type_pc
                    329:                    - TME_SPARC_IDLE_TYPE_PC_STATE(1)
                    330:                    + (sizeof(tme_uint32_t) * 4))) {
                    331:              ic->tme_sparc_idle_type_pc = ic->tme_sparc_ireg(TME_SPARC_IREG_PC);
                    332:            }
                    333:            if (ic->tme_sparc_ireg(TME_SPARC_IREG_PC)
                    334:                == ic->tme_sparc_idle_type_pc) {
                    335:              tme_sparc_do_idle(ic);
                    336:            }
                    337:          }
                    338:        }          
                    339: 
                    340:        /* make this instruction a nop: */
                    341:        insn = 0x01000000;
                    342:       }
                    343: 
                    344:       /* the next instruction will not be annulled: */
                    345:       annulled = FALSE;
                    346:     }
                    347: 
                    348:     /* start this instruction: */
                    349:     ic->_tme_sparc_insn = insn;
                    350: #ifdef _TME_SPARC_VERIFY
                    351:     if (ic->tme_sparc_ireg(TME_SPARC_IREG_PC) == 0x6000) {
                    352:       tme_sparc_verify_hook();
                    353:     }
                    354: #endif
                    355: 
                    356:     /* set %g0 to zero: */
                    357:     ic->tme_sparc_ireg(TME_SPARC_IREG_G0) = 0;
                    358: 
                    359:     /* if this is a format three instruction (op is two or three): */
                    360:     if (__tme_predict_true(insn >= 0x80000000)) {
                    361: 
                    362:       /* if the i bit is zero: */
                    363:       if (__tme_predict_true((insn & TME_BIT(13)) == 0)) {
                    364: 
                    365:        /* decode rs2: */
                    366:        reg_rs2 = TME_FIELD_MASK_EXTRACTU(insn, TME_SPARC_FORMAT3_MASK_RS2);
                    367:        TME_SPARC_REG_INDEX(ic, reg_rs2);
                    368:       }
                    369: 
                    370:       /* otherwise, the i bit is one: */
                    371:       else {
                    372: 
                    373:        /* decode simm13: */
                    374:        ic->tme_sparc_ireg(TME_SPARC_IREG_IMM) = TME_FIELD_MASK_EXTRACTS(insn, (tme_sparc_ireg_t) 0x1fff);
                    375:        reg_rs2 = TME_SPARC_IREG_IMM;
                    376:       }
                    377: 
                    378:       /* decode rs1: */
                    379:       reg_rs1 = TME_FIELD_MASK_EXTRACTU(insn, TME_SPARC_FORMAT3_MASK_RS1);
                    380:       TME_SPARC_REG_INDEX(ic, reg_rs1);
                    381: 
                    382:       /* decode rd: */
                    383:       reg_rd = TME_FIELD_MASK_EXTRACTU(insn, TME_SPARC_FORMAT3_MASK_RD);
                    384:       TME_SPARC_REG_INDEX(ic, reg_rd);
                    385:     
                    386:       /* form the opcode index: */
                    387:       opcode = TME_FIELD_MASK_EXTRACTU(insn, (0x3f << 19));
                    388:       opcode += ((insn >> (30 - 6)) & 0x40);
                    389:       
                    390:       /* run the instruction: */
                    391:       (*_TME_SPARC_EXECUTE_OPMAP[opcode])
                    392:        (ic, 
                    393:         &ic->tme_sparc_ireg(reg_rs1),
                    394:         &ic->tme_sparc_ireg(reg_rs2),
                    395:         &ic->tme_sparc_ireg(reg_rd));
                    396:     }
                    397: 
                    398:     /* otherwise, if this is a format two instruction: */
                    399:     else if (__tme_predict_true(insn < 0x40000000)) {
                    400: 
                    401:       /* dispatch on op2: */
                    402:       switch (TME_FIELD_MASK_EXTRACTU(insn, (0x7 << 22))) {
                    403:       default:
                    404: 
                    405:       case 0: /* UNIMP: */
                    406: #if TME_SPARC_VERSION(ic) < 9
                    407:        tme_sparc32_trap(ic, TME_SPARC_TRAP_illegal_instruction);
                    408: #else  /* TME_SPARC_VERSION(ic) >= 9 */
                    409:        tme_sparc64_trap(ic, TME_SPARC_TRAP_illegal_instruction);
                    410: #endif /* TME_SPARC_VERSION(ic) >= 9 */
                    411:        continue;
                    412: 
                    413:       case 2: /* Bicc: */
                    414:        conds_mask_icc = _tme_sparc_conds_icc[
                    415: #if TME_SPARC_VERSION(ic) < 9
                    416:          TME_FIELD_MASK_EXTRACTU(ic->tme_sparc32_ireg_psr, TME_SPARC32_PSR_ICC)
                    417: #else  /* TME_SPARC_VERSION(ic) >= 9 */
                    418:          TME_FIELD_MASK_EXTRACTU(ic->tme_sparc64_ireg_ccr, TME_SPARC64_CCR_ICC)
                    419: #endif /* TME_SPARC_VERSION(ic) >= 9 */
                    420:        ];
                    421: 
                    422:        /* add the not-conditions to the conditions mask: */
                    423:        conds_mask = conds_mask_icc ^ 0xff;
                    424:        conds_mask = (conds_mask << 8) | conds_mask_icc;
                    425:        break;
                    426: 
                    427:       case 4: /* SETHI: */
                    428: 
                    429:        /* decode rd: */
                    430:        reg_rd = TME_FIELD_MASK_EXTRACTU(insn, TME_SPARC_FORMAT3_MASK_RD);
                    431:        TME_SPARC_REG_INDEX(ic, reg_rd);
                    432:        ic->tme_sparc_ireg(reg_rd) = (insn << 10);
                    433:        continue;
                    434: 
                    435:       case 6: /* FBfcc: */
                    436:        TME_SPARC_INSN_FPU;
                    437:        conds_mask_fcc = _tme_sparc_conds_fcc[TME_FIELD_MASK_EXTRACTU(ic->tme_sparc_fpu_fsr, TME_SPARC_FSR_FCC)];
                    438: 
                    439:        /* add the not-conditions to the conditions mask: */
                    440:        conds_mask = conds_mask_fcc ^ 0xff;
                    441:        conds_mask = (conds_mask << 8) | conds_mask_fcc;
                    442:        break;
                    443:       }
                    444: 
                    445:       /* get the condition field: */
                    446:       cond = TME_FIELD_MASK_EXTRACTU(insn, (0xf << 25));
                    447: 
                    448:       /* if this conditional branch is taken: */
                    449:       if (conds_mask & TME_BIT(cond)) {
                    450: 
                    451:        /* do the delayed control transfer: */
                    452:        ic->tme_sparc_ireg(TME_SPARC_IREG_PC_NEXT_NEXT)
                    453:          = (ic->tme_sparc_ireg(TME_SPARC_IREG_PC)
                    454:             + (TME_FIELD_MASK_EXTRACTS(insn, (tme_sparc_ireg_t) 0x003fffff) << 2));
                    455: 
                    456:        /* if this is a delayed control transfer to the idle loop: */
                    457:        if (__tme_predict_false(ic->tme_sparc_ireg(TME_SPARC_IREG_PC_NEXT_NEXT)
                    458:                                == ic->tme_sparc_idle_type_pc)) {
                    459:          if (TME_SPARC_IDLE_TYPE_IS(ic, (TME_SPARC_IDLE_TYPE_SUNOS32_TYPE_0))) {
                    460: 
                    461:            /* reduce this instruction burst to include only the delay
                    462:               instruction.  before the next instruction burst begins
                    463:               (on the first instruction of the idle loop) we will
                    464:               detect that and go idle: */
                    465:            ic->_tme_sparc_instruction_burst_remaining = 1;
                    466:          }
                    467:        }
                    468: 
                    469:        /* if this was a conditional branch, clear the annul bit in
                    470:            the instruction image: */
                    471:        if (cond & 7) {
                    472:          insn &= ~TME_BIT(29);
                    473:        }
                    474:       }
                    475: 
                    476:       /* if the annul bit it set: */
                    477:       if (insn & TME_BIT(29)) {
                    478: 
                    479:        /* the next instruction will be annulled.  to get the
                    480:           execution loop to pay attention to the annulled bit,
                    481:           make the current instruction TLB entry invalid: */
                    482:        annulled = TRUE;
                    483:        assert (ic->_tme_sparc_itlb_busy == itlb_current);
                    484:        tme_sparc_tlb_unbusy(itlb_current);
                    485:        itlb_current = &itlb_invalid;
                    486:        tme_sparc_tlb_busy(itlb_current);
                    487:        ic->_tme_sparc_itlb_busy = itlb_current;
                    488:        /* NB that we have to make sure the next instruction gets executed
                    489:           in the immediate next iteration of the execution loop, since the
                    490:           annulled bit is not part of the architected CPU state, and we also
                    491:           want to do good emulation and actually fetch the instruction (as
                    492:           opposed to just advancing the PCs now).  to do this, we make sure
                    493:           that there is at least one more instruction left in the burst: */
                    494:        ic->_tme_sparc_instruction_burst_remaining += (ic->_tme_sparc_instruction_burst_remaining == 0);
                    495:       }
                    496:     }
                    497: 
                    498:     /* otherwise, this is a format one instruction: */
                    499:     else {
                    500: 
                    501:       /* get the current PC: */
                    502:       pc = ic->tme_sparc_ireg(TME_SPARC_IREG_PC);
                    503: 
                    504:       /* write the PC of the CALL into r[15]: */
                    505:       ic->tme_sparc_ireg(ic->tme_sparc_cwp_offset + 15) = pc;
                    506: 
                    507:       /* log the call: */
                    508:       tme_sparc_log(ic, 250, TME_OK,
                    509:                    (TME_SPARC_LOG_HANDLE(ic),
                    510:                     _("call 0x%08x"),
                    511:                     pc + (insn << 2)));
                    512: 
                    513:       /* do the delayed control transfer: */
                    514:       ic->tme_sparc_ireg(TME_SPARC_IREG_PC_NEXT_NEXT) = pc + (insn << 2);
                    515:     }
                    516:   }
                    517:   
                    518:   /* NOTREACHED */
                    519: }

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