op.c 39.8 KB
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/*
 *  MIPS emulation micro-operations for qemu.
 * 
 *  Copyright (c) 2004-2005 Jocelyn Mayer
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 *  Copyright (c) 2006 Marius Groeger (FPU operations)
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 *
 * This library is free software; you can redistribute it and/or
 * modify it under the terms of the GNU Lesser General Public
 * License as published by the Free Software Foundation; either
 * version 2 of the License, or (at your option) any later version.
 *
 * This library is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
 * Lesser General Public License for more details.
 *
 * You should have received a copy of the GNU Lesser General Public
 * License along with this library; if not, write to the Free Software
 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
 */

#include "config.h"
#include "exec.h"

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#ifndef CALL_FROM_TB0
#define CALL_FROM_TB0(func) func();
#endif
#ifndef CALL_FROM_TB1
#define CALL_FROM_TB1(func, arg0) func(arg0);
#endif
#ifndef CALL_FROM_TB1_CONST16
#define CALL_FROM_TB1_CONST16(func, arg0) CALL_FROM_TB1(func, arg0);
#endif
#ifndef CALL_FROM_TB2
#define CALL_FROM_TB2(func, arg0, arg1) func(arg0, arg1);
#endif
#ifndef CALL_FROM_TB2_CONST16
#define CALL_FROM_TB2_CONST16(func, arg0, arg1)     \
CALL_FROM_TB2(func, arg0, arg1);
#endif
#ifndef CALL_FROM_TB3
#define CALL_FROM_TB3(func, arg0, arg1, arg2) func(arg0, arg1, arg2);
#endif
#ifndef CALL_FROM_TB4
#define CALL_FROM_TB4(func, arg0, arg1, arg2, arg3) \
        func(arg0, arg1, arg2, arg3);
#endif

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#define REG 1
#include "op_template.c"
#undef REG
#define REG 2
#include "op_template.c"
#undef REG
#define REG 3
#include "op_template.c"
#undef REG
#define REG 4
#include "op_template.c"
#undef REG
#define REG 5
#include "op_template.c"
#undef REG
#define REG 6
#include "op_template.c"
#undef REG
#define REG 7
#include "op_template.c"
#undef REG
#define REG 8
#include "op_template.c"
#undef REG
#define REG 9
#include "op_template.c"
#undef REG
#define REG 10
#include "op_template.c"
#undef REG
#define REG 11
#include "op_template.c"
#undef REG
#define REG 12
#include "op_template.c"
#undef REG
#define REG 13
#include "op_template.c"
#undef REG
#define REG 14
#include "op_template.c"
#undef REG
#define REG 15
#include "op_template.c"
#undef REG
#define REG 16
#include "op_template.c"
#undef REG
#define REG 17
#include "op_template.c"
#undef REG
#define REG 18
#include "op_template.c"
#undef REG
#define REG 19
#include "op_template.c"
#undef REG
#define REG 20
#include "op_template.c"
#undef REG
#define REG 21
#include "op_template.c"
#undef REG
#define REG 22
#include "op_template.c"
#undef REG
#define REG 23
#include "op_template.c"
#undef REG
#define REG 24
#include "op_template.c"
#undef REG
#define REG 25
#include "op_template.c"
#undef REG
#define REG 26
#include "op_template.c"
#undef REG
#define REG 27
#include "op_template.c"
#undef REG
#define REG 28
#include "op_template.c"
#undef REG
#define REG 29
#include "op_template.c"
#undef REG
#define REG 30
#include "op_template.c"
#undef REG
#define REG 31
#include "op_template.c"
#undef REG

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#define TN
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#include "op_template.c"
#undef TN

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#ifdef MIPS_USES_FPU

#define SFREG 0
#define DFREG 0
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 1
#include "fop_template.c"
#undef SFREG
#define SFREG 2
#define DFREG 2
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 3
#include "fop_template.c"
#undef SFREG
#define SFREG 4
#define DFREG 4
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 5
#include "fop_template.c"
#undef SFREG
#define SFREG 6
#define DFREG 6
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 7
#include "fop_template.c"
#undef SFREG
#define SFREG 8
#define DFREG 8
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 9
#include "fop_template.c"
#undef SFREG
#define SFREG 10
#define DFREG 10
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 11
#include "fop_template.c"
#undef SFREG
#define SFREG 12
#define DFREG 12
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 13
#include "fop_template.c"
#undef SFREG
#define SFREG 14
#define DFREG 14
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 15
#include "fop_template.c"
#undef SFREG
#define SFREG 16
#define DFREG 16
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 17
#include "fop_template.c"
#undef SFREG
#define SFREG 18
#define DFREG 18
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 19
#include "fop_template.c"
#undef SFREG
#define SFREG 20
#define DFREG 20
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 21
#include "fop_template.c"
#undef SFREG
#define SFREG 22
#define DFREG 22
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 23
#include "fop_template.c"
#undef SFREG
#define SFREG 24
#define DFREG 24
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 25
#include "fop_template.c"
#undef SFREG
#define SFREG 26
#define DFREG 26
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 27
#include "fop_template.c"
#undef SFREG
#define SFREG 28
#define DFREG 28
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 29
#include "fop_template.c"
#undef SFREG
#define SFREG 30
#define DFREG 30
#include "fop_template.c"
#undef SFREG
#undef DFREG
#define SFREG 31
#include "fop_template.c"
#undef SFREG

#define FTN
#include "fop_template.c"
#undef FTN

#endif

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void op_dup_T0 (void)
{
    T2 = T0;
    RETURN();
}

void op_load_HI (void)
{
    T0 = env->HI;
    RETURN();
}

void op_store_HI (void)
{
    env->HI = T0;
    RETURN();
}

void op_load_LO (void)
{
    T0 = env->LO;
    RETURN();
}

void op_store_LO (void)
{
    env->LO = T0;
    RETURN();
}

/* Load and store */
#define MEMSUFFIX _raw
#include "op_mem.c"
#undef MEMSUFFIX
#if !defined(CONFIG_USER_ONLY)
#define MEMSUFFIX _user
#include "op_mem.c"
#undef MEMSUFFIX

#define MEMSUFFIX _kernel
#include "op_mem.c"
#undef MEMSUFFIX
#endif

/* Arithmetic */
void op_add (void)
{
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    T0 = (int32_t)((int32_t)T0 + (int32_t)T1);
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    RETURN();
}

void op_addo (void)
{
    target_ulong tmp;

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    tmp = (int32_t)T0;
    T0 = (int32_t)T0 + (int32_t)T1;
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    if (((tmp ^ T1 ^ (-1)) & (T0 ^ T1)) >> 31) {
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        /* operands of same sign, result different sign */
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        CALL_FROM_TB1(do_raise_exception_direct, EXCP_OVERFLOW);
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    }
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    T0 = (int32_t)T0;
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    RETURN();
}

void op_sub (void)
{
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    T0 = (int32_t)((int32_t)T0 - (int32_t)T1);
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    RETURN();
}

void op_subo (void)
{
    target_ulong tmp;

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    tmp = (int32_t)T0;
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    T0 = (int32_t)T0 - (int32_t)T1;
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    if (((tmp ^ T1) & (tmp ^ T0)) >> 31) {
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        /* operands of different sign, first operand and result different sign */
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        CALL_FROM_TB1(do_raise_exception_direct, EXCP_OVERFLOW);
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    }
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    T0 = (int32_t)T0;
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    RETURN();
}

void op_mul (void)
{
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    T0 = (int32_t)((int32_t)T0 * (int32_t)T1);
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    RETURN();
}

void op_div (void)
{
    if (T1 != 0) {
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        env->LO = (int32_t)((int32_t)T0 / (int32_t)T1);
        env->HI = (int32_t)((int32_t)T0 % (int32_t)T1);
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    }
    RETURN();
}

void op_divu (void)
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{
    if (T1 != 0) {
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        env->LO = (int32_t)((uint32_t)T0 / (uint32_t)T1);
        env->HI = (int32_t)((uint32_t)T0 % (uint32_t)T1);
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    }
    RETURN();
}

#ifdef MIPS_HAS_MIPS64
/* Arithmetic */
void op_dadd (void)
{
    T0 += T1;
    RETURN();
}

void op_daddo (void)
{
    target_long tmp;

    tmp = T0;
    T0 += T1;
    if (((tmp ^ T1 ^ (-1)) & (T0 ^ T1)) >> 63) {
        /* operands of same sign, result different sign */
        CALL_FROM_TB1(do_raise_exception_direct, EXCP_OVERFLOW);
    }
    RETURN();
}

void op_dsub (void)
{
    T0 -= T1;
    RETURN();
}

void op_dsubo (void)
{
    target_long tmp;

    tmp = T0;
    T0 = (int64_t)T0 - (int64_t)T1;
    if (((tmp ^ T1) & (tmp ^ T0)) >> 63) {
        /* operands of different sign, first operand and result different sign */
        CALL_FROM_TB1(do_raise_exception_direct, EXCP_OVERFLOW);
    }
    RETURN();
}

void op_dmul (void)
{
    T0 = (int64_t)T0 * (int64_t)T1;
    RETURN();
}

#if TARGET_LONG_BITS > HOST_LONG_BITS
/* Those might call libgcc functions.  */
void op_ddiv (void)
{
    do_ddiv();
    RETURN();
}

void op_ddivu (void)
{
    do_ddivu();
    RETURN();
}
#else
void op_ddiv (void)
{
    if (T1 != 0) {
        env->LO = (int64_t)T0 / (int64_t)T1;
        env->HI = (int64_t)T0 % (int64_t)T1;
    }
    RETURN();
}

void op_ddivu (void)
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{
    if (T1 != 0) {
        env->LO = T0 / T1;
        env->HI = T0 % T1;
    }
    RETURN();
}
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#endif
#endif /* MIPS_HAS_MIPS64 */
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/* Logical */
void op_and (void)
{
    T0 &= T1;
    RETURN();
}

void op_nor (void)
{
    T0 = ~(T0 | T1);
    RETURN();
}

void op_or (void)
{
    T0 |= T1;
    RETURN();
}

void op_xor (void)
{
    T0 ^= T1;
    RETURN();
}

void op_sll (void)
{
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    T0 = (int32_t)((uint32_t)T0 << (uint32_t)T1);
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    RETURN();
}

void op_sra (void)
{
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    T0 = (int32_t)((int32_t)T0 >> (uint32_t)T1);
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    RETURN();
}

void op_srl (void)
{
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    T0 = (int32_t)((uint32_t)T0 >> (uint32_t)T1);
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    RETURN();
}

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void op_rotr (void)
{
    target_ulong tmp;

    if (T1) {
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       tmp = (int32_t)((uint32_t)T0 << (0x20 - (uint32_t)T1));
       T0 = (int32_t)((uint32_t)T0 >> (uint32_t)T1) | tmp;
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    } else
       T0 = T1;
    RETURN();
}

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void op_sllv (void)
{
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    T0 = (int32_t)((uint32_t)T1 << ((uint32_t)T0 & 0x1F));
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    RETURN();
}

void op_srav (void)
{
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    T0 = (int32_t)((int32_t)T1 >> (T0 & 0x1F));
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    RETURN();
}

void op_srlv (void)
{
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    T0 = (int32_t)((uint32_t)T1 >> (T0 & 0x1F));
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    RETURN();
}

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void op_rotrv (void)
{
    target_ulong tmp;

    T0 &= 0x1F;
    if (T0) {
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       tmp = (int32_t)((uint32_t)T1 << (0x20 - T0));
       T0 = (int32_t)((uint32_t)T1 >> T0) | tmp;
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    } else
       T0 = T1;
    RETURN();
}

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void op_clo (void)
{
    int n;

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    if (T0 == ~((target_ulong)0)) {
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        T0 = 32;
    } else {
        for (n = 0; n < 32; n++) {
            if (!(T0 & (1 << 31)))
                break;
            T0 = T0 << 1;
        }
        T0 = n;
    }
    RETURN();
}

void op_clz (void)
{
    int n;

    if (T0 == 0) {
        T0 = 32;
    } else {
        for (n = 0; n < 32; n++) {
            if (T0 & (1 << 31))
                break;
            T0 = T0 << 1;
        }
        T0 = n;
    }
    RETURN();
}

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#ifdef MIPS_HAS_MIPS64

#if TARGET_LONG_BITS > HOST_LONG_BITS
/* Those might call libgcc functions.  */
void op_dsll (void)
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{
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    CALL_FROM_TB0(do_dsll);
    RETURN();
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}

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void op_dsll32 (void)
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{
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    CALL_FROM_TB0(do_dsll32);
    RETURN();
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}

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void op_dsra (void)
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{
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    CALL_FROM_TB0(do_dsra);
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    RETURN();
}

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void op_dsra32 (void)
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{
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    CALL_FROM_TB0(do_dsra32);
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    RETURN();
}

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void op_dsrl (void)
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{
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    CALL_FROM_TB0(do_dsrl);
    RETURN();
}
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void op_dsrl32 (void)
{
    CALL_FROM_TB0(do_dsrl32);
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    RETURN();
}

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void op_drotr (void)
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{
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    CALL_FROM_TB0(do_drotr);
    RETURN();
}
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void op_drotr32 (void)
{
    CALL_FROM_TB0(do_drotr32);
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    RETURN();
}

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void op_dsllv (void)
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{
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    CALL_FROM_TB0(do_dsllv);
    RETURN();
}
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void op_dsrav (void)
{
    CALL_FROM_TB0(do_dsrav);
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    RETURN();
}

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void op_dsrlv (void)
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{
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    CALL_FROM_TB0(do_dsrlv);
    RETURN();
}
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void op_drotrv (void)
{
    CALL_FROM_TB0(do_drotrv);
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    RETURN();
}
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#else /* TARGET_LONG_BITS > HOST_LONG_BITS */

void op_dsll (void)
{
    T0 = T0 << T1;
    RETURN();
}

void op_dsll32 (void)
{
    T0 = T0 << (T1 + 32);
    RETURN();
}

void op_dsra (void)
{
    T0 = (int64_t)T0 >> T1;
    RETURN();
}

void op_dsra32 (void)
{
    T0 = (int64_t)T0 >> (T1 + 32);
    RETURN();
}

void op_dsrl (void)
{
    T0 = T0 >> T1;
    RETURN();
}

void op_dsrl32 (void)
{
    T0 = T0 >> (T1 + 32);
    RETURN();
}

void op_drotr (void)
{
    target_ulong tmp;

    if (T1) {
       tmp = T0 << (0x40 - T1);
       T0 = (T0 >> T1) | tmp;
    } else
       T0 = T1;
    RETURN();
}

void op_drotr32 (void)
{
    target_ulong tmp;

    if (T1) {
       tmp = T0 << (0x40 - (32 + T1));
       T0 = (T0 >> (32 + T1)) | tmp;
    } else
       T0 = T1;
    RETURN();
}

void op_dsllv (void)
{
    T0 = T1 << (T0 & 0x3F);
    RETURN();
}

void op_dsrav (void)
{
    T0 = (int64_t)T1 >> (T0 & 0x3F);
    RETURN();
}

void op_dsrlv (void)
{
    T0 = T1 >> (T0 & 0x3F);
    RETURN();
}

void op_drotrv (void)
{
    target_ulong tmp;

    T0 &= 0x3F;
    if (T0) {
       tmp = T1 << (0x40 - T0);
       T0 = (T1 >> T0) | tmp;
    } else
       T0 = T1;
    RETURN();
}
#endif /* TARGET_LONG_BITS > HOST_LONG_BITS */

void op_dclo (void)
{
    int n;

    if (T0 == ~((target_ulong)0)) {
        T0 = 64;
    } else {
        for (n = 0; n < 64; n++) {
            if (!(T0 & (1ULL << 63)))
                break;
            T0 = T0 << 1;
        }
        T0 = n;
    }
    RETURN();
}

void op_dclz (void)
{
    int n;

    if (T0 == 0) {
        T0 = 64;
    } else {
        for (n = 0; n < 64; n++) {
            if (T0 & (1ULL << 63))
                break;
            T0 = T0 << 1;
        }
        T0 = n;
    }
    RETURN();
}
#endif

/* 64 bits arithmetic */
#if TARGET_LONG_BITS > HOST_LONG_BITS
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void op_mult (void)
{
    CALL_FROM_TB0(do_mult);
    RETURN();
}

void op_multu (void)
{
    CALL_FROM_TB0(do_multu);
    RETURN();
}

void op_madd (void)
{
    CALL_FROM_TB0(do_madd);
    RETURN();
}

void op_maddu (void)
{
    CALL_FROM_TB0(do_maddu);
    RETURN();
}

void op_msub (void)
{
    CALL_FROM_TB0(do_msub);
    RETURN();
}

void op_msubu (void)
{
    CALL_FROM_TB0(do_msubu);
    RETURN();
}
835 836 837 838 839 840 841 842 843 844

#else /* TARGET_LONG_BITS > HOST_LONG_BITS */

static inline uint64_t get_HILO (void)
{
    return ((uint64_t)env->HI << 32) | ((uint64_t)(uint32_t)env->LO);
}

static inline void set_HILO (uint64_t HILO)
{
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    env->LO = (int32_t)(HILO & 0xFFFFFFFF);
    env->HI = (int32_t)(HILO >> 32);
847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909
}

void op_mult (void)
{
    set_HILO((int64_t)(int32_t)T0 * (int64_t)(int32_t)T1);
    RETURN();
}

void op_multu (void)
{
    set_HILO((uint64_t)(uint32_t)T0 * (uint64_t)(uint32_t)T1);
    RETURN();
}

void op_madd (void)
{
    int64_t tmp;

    tmp = ((int64_t)(int32_t)T0 * (int64_t)(int32_t)T1);
    set_HILO((int64_t)get_HILO() + tmp);
    RETURN();
}

void op_maddu (void)
{
    uint64_t tmp;

    tmp = ((uint64_t)(uint32_t)T0 * (uint64_t)(uint32_t)T1);
    set_HILO(get_HILO() + tmp);
    RETURN();
}

void op_msub (void)
{
    int64_t tmp;

    tmp = ((int64_t)(int32_t)T0 * (int64_t)(int32_t)T1);
    set_HILO((int64_t)get_HILO() - tmp);
    RETURN();
}

void op_msubu (void)
{
    uint64_t tmp;

    tmp = ((uint64_t)(uint32_t)T0 * (uint64_t)(uint32_t)T1);
    set_HILO(get_HILO() - tmp);
    RETURN();
}
#endif /* TARGET_LONG_BITS > HOST_LONG_BITS */

#ifdef MIPS_HAS_MIPS64
void op_dmult (void)
{
    CALL_FROM_TB0(do_dmult);
    RETURN();
}

void op_dmultu (void)
{
    CALL_FROM_TB0(do_dmultu);
    RETURN();
}
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#endif

/* Conditional moves */
void op_movn (void)
{
    if (T1 != 0)
        env->gpr[PARAM1] = T0;
    RETURN();
}

void op_movz (void)
{
    if (T1 == 0)
        env->gpr[PARAM1] = T0;
    RETURN();
}

927
#ifdef MIPS_USES_FPU
928 929 930 931 932 933 934 935 936 937 938 939 940
void op_movf (void)
{
    if (!(env->fcr31 & PARAM1))
        env->gpr[PARAM2] = env->gpr[PARAM3];
    RETURN();
}

void op_movt (void)
{
    if (env->fcr31 & PARAM1)
        env->gpr[PARAM2] = env->gpr[PARAM3];
    RETURN();
}
941
#endif
942

B
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/* Tests */
#define OP_COND(name, cond) \
void glue(op_, name) (void) \
{                           \
    if (cond) {             \
        T0 = 1;             \
    } else {                \
        T0 = 0;             \
    }                       \
    RETURN();               \
}

OP_COND(eq, T0 == T1);
OP_COND(ne, T0 != T1);
OP_COND(ge, (int32_t)T0 >= (int32_t)T1);
OP_COND(geu, T0 >= T1);
OP_COND(lt, (int32_t)T0 < (int32_t)T1);
OP_COND(ltu, T0 < T1);
OP_COND(gez, (int32_t)T0 >= 0);
OP_COND(gtz, (int32_t)T0 > 0);
OP_COND(lez, (int32_t)T0 <= 0);
OP_COND(ltz, (int32_t)T0 < 0);

966
/* Branches */
B
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//#undef USE_DIRECT_JUMP
B
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void OPPROTO op_goto_tb0(void)
{
    GOTO_TB(op_goto_tb0, PARAM1, 0);
972
    RETURN();
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}

void OPPROTO op_goto_tb1(void)
{
    GOTO_TB(op_goto_tb1, PARAM1, 1);
978
    RETURN();
B
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}
B
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980 981 982 983 984

/* Branch to register */
void op_save_breg_target (void)
{
    env->btarget = T2;
985
    RETURN();
B
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986 987 988 989 990
}

void op_restore_breg_target (void)
{
    T2 = env->btarget;
991
    RETURN();
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}

void op_breg (void)
{
    env->PC = T2;
    RETURN();
}

void op_save_btarget (void)
{
    env->btarget = PARAM1;
    RETURN();
}

/* Conditional branch */
void op_set_bcond (void)
{
    T2 = T0;
    RETURN();
}

void op_save_bcond (void)
{
    env->bcond = T2;
    RETURN();
}

void op_restore_bcond (void)
{
    T2 = env->bcond;
    RETURN();
}

B
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void op_jnz_T2 (void)
B
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1026
{
B
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1027 1028
    if (T2)
        GOTO_LABEL_PARAM(1);
B
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1029 1030 1031 1032
    RETURN();
}

/* CP0 functions */
1033
void op_mfc0_index (void)
B
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{
T
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    T0 = (int32_t)(env->CP0_index);
1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064
    RETURN();
}

void op_mfc0_random (void)
{
    CALL_FROM_TB0(do_mfc0_random);
    RETURN();
}

void op_mfc0_entrylo0 (void)
{
    T0 = env->CP0_EntryLo0;
    RETURN();
}

void op_mfc0_entrylo1 (void)
{
    T0 = env->CP0_EntryLo1;
    RETURN();
}

void op_mfc0_context (void)
{
    T0 = env->CP0_Context;
    RETURN();
}

void op_mfc0_pagemask (void)
{
T
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    T0 = (int32_t)env->CP0_PageMask;
1066 1067 1068
    RETURN();
}

1069 1070
void op_mfc0_pagegrain (void)
{
T
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    T0 = (int32_t)env->CP0_PageGrain;
1072 1073 1074
    RETURN();
}

1075 1076
void op_mfc0_wired (void)
{
T
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    T0 = (int32_t)env->CP0_Wired;
1078 1079 1080
    RETURN();
}

1081 1082
void op_mfc0_hwrena (void)
{
T
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    T0 = (int32_t)env->CP0_HWREna;
1084 1085 1086
    RETURN();
}

1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106
void op_mfc0_badvaddr (void)
{
    T0 = env->CP0_BadVAddr;
    RETURN();
}

void op_mfc0_count (void)
{
    CALL_FROM_TB0(do_mfc0_count);
    RETURN();
}

void op_mfc0_entryhi (void)
{
    T0 = env->CP0_EntryHi;
    RETURN();
}

void op_mfc0_compare (void)
{
T
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    T0 = (int32_t)env->CP0_Compare;
1108 1109 1110 1111 1112
    RETURN();
}

void op_mfc0_status (void)
{
T
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    T0 = (int32_t)env->CP0_Status;
1114 1115 1116 1117 1118 1119 1120 1121 1122
    if (env->hflags & MIPS_HFLAG_UM)
        T0 |= (1 << CP0St_UM);
    if (env->hflags & MIPS_HFLAG_ERL)
        T0 |= (1 << CP0St_ERL);
    if (env->hflags & MIPS_HFLAG_EXL)
        T0 |= (1 << CP0St_EXL);
    RETURN();
}

1123 1124
void op_mfc0_intctl (void)
{
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    T0 = (int32_t)env->CP0_IntCtl;
1126 1127 1128 1129 1130
    RETURN();
}

void op_mfc0_srsctl (void)
{
T
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    T0 = (int32_t)env->CP0_SRSCtl;
1132 1133 1134
    RETURN();
}

1135 1136
void op_mfc0_cause (void)
{
T
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    T0 = (int32_t)env->CP0_Cause;
1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148
    RETURN();
}

void op_mfc0_epc (void)
{
    T0 = env->CP0_EPC;
    RETURN();
}

void op_mfc0_prid (void)
{
T
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    T0 = (int32_t)env->CP0_PRid;
1150 1151 1152
    RETURN();
}

1153 1154 1155 1156 1157 1158
void op_mfc0_ebase (void)
{
    T0 = env->CP0_EBase;
    RETURN();
}

1159 1160
void op_mfc0_config0 (void)
{
T
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    T0 = (int32_t)env->CP0_Config0;
1162 1163 1164 1165 1166
    RETURN();
}

void op_mfc0_config1 (void)
{
T
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    T0 = (int32_t)env->CP0_Config1;
1168 1169 1170
    RETURN();
}

1171 1172
void op_mfc0_config2 (void)
{
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    T0 = (int32_t)env->CP0_Config2;
1174 1175 1176 1177 1178
    RETURN();
}

void op_mfc0_config3 (void)
{
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    T0 = (int32_t)env->CP0_Config3;
1180 1181 1182
    RETURN();
}

1183 1184 1185 1186 1187 1188
void op_mfc0_lladdr (void)
{
    T0 = env->CP0_LLAddr >> 4;
    RETURN();
}

1189
void op_mfc0_watchlo0 (void)
1190
{
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    T0 = (int32_t)env->CP0_WatchLo;
1192 1193 1194
    RETURN();
}

1195
void op_mfc0_watchhi0 (void)
1196
{
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    T0 = (int32_t)env->CP0_WatchHi;
1198 1199 1200
    RETURN();
}

1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212
void op_mfc0_xcontext (void)
{
    T0 = env->CP0_XContext;
    RETURN();
}

void op_mfc0_framemask (void)
{
    T0 = env->CP0_Framemask;
    RETURN();
}

1213 1214
void op_mfc0_debug (void)
{
T
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    T0 = (int32_t)env->CP0_Debug;
1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226
    if (env->hflags & MIPS_HFLAG_DM)
        T0 |= 1 << CP0DB_DM;
    RETURN();
}

void op_mfc0_depc (void)
{
    T0 = env->CP0_DEPC;
    RETURN();
}

1227 1228
void op_mfc0_performance0 (void)
{
T
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    T0 = (int32_t)env->CP0_Performance0;
1230 1231 1232
    RETURN();
}

1233 1234
void op_mfc0_taglo (void)
{
T
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    T0 = (int32_t)env->CP0_TagLo;
1236 1237 1238 1239 1240
    RETURN();
}

void op_mfc0_datalo (void)
{
T
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    T0 = (int32_t)env->CP0_DataLo;
1242 1243 1244
    RETURN();
}

1245 1246
void op_mfc0_taghi (void)
{
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    T0 = (int32_t)env->CP0_TagHi;
1248 1249 1250 1251 1252
    RETURN();
}

void op_mfc0_datahi (void)
{
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    T0 = (int32_t)env->CP0_DataHi;
1254 1255 1256
    RETURN();
}

1257 1258 1259 1260 1261 1262 1263 1264
void op_mfc0_errorepc (void)
{
    T0 = env->CP0_ErrorEPC;
    RETURN();
}

void op_mfc0_desave (void)
{
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    T0 = (int32_t)env->CP0_DESAVE;
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    RETURN();
}

1269
void op_mtc0_index (void)
B
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{
1271
    env->CP0_index = (env->CP0_index & 0x80000000) | (T0 & (MIPS_TLB_NB - 1));
1272 1273 1274 1275 1276
    RETURN();
}

void op_mtc0_entrylo0 (void)
{
1277 1278
    /* Large physaddr not implemented */
    /* 1k pages not implemented */
T
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    env->CP0_EntryLo0 = T0 & (int32_t)0x3FFFFFFF;
1280 1281 1282 1283 1284
    RETURN();
}

void op_mtc0_entrylo1 (void)
{
1285 1286
    /* Large physaddr not implemented */
    /* 1k pages not implemented */
T
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    env->CP0_EntryLo1 = T0 & (int32_t)0x3FFFFFFF;
1288 1289 1290 1291 1292
    RETURN();
}

void op_mtc0_context (void)
{
1293
    env->CP0_Context = (env->CP0_Context & ~0x007FFFFF) | (T0 & 0x007FFFF0);
1294 1295 1296 1297 1298
    RETURN();
}

void op_mtc0_pagemask (void)
{
1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309
    /* 1k pages not implemented */
    env->CP0_PageMask = T0 & 0x1FFFE000;
    RETURN();
}

void op_mtc0_pagegrain (void)
{
    /* SmartMIPS not implemented */
    /* Large physaddr not implemented */
    /* 1k pages not implemented */
    env->CP0_PageGrain = 0;
1310 1311 1312 1313 1314
    RETURN();
}

void op_mtc0_wired (void)
{
1315 1316 1317 1318 1319 1320 1321
    env->CP0_Wired = T0 & (MIPS_TLB_NB - 1);
    RETURN();
}

void op_mtc0_hwrena (void)
{
    env->CP0_HWREna = T0 & 0x0000000F;
1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334
    RETURN();
}

void op_mtc0_count (void)
{
    CALL_FROM_TB2(cpu_mips_store_count, env, T0);
    RETURN();
}

void op_mtc0_entryhi (void)
{
    uint32_t old, val;

1335 1336
    /* 1k pages not implemented */
    /* Ignore MIPS64 TLB for now */
T
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    val = T0 & (int32_t)0xFFFFE0FF;
1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355
    old = env->CP0_EntryHi;
    env->CP0_EntryHi = val;
    /* If the ASID changes, flush qemu's TLB.  */
    if ((old & 0xFF) != (val & 0xFF))
        CALL_FROM_TB2(cpu_mips_tlb_flush, env, 1);
    RETURN();
}

void op_mtc0_compare (void)
{
    CALL_FROM_TB2(cpu_mips_store_compare, env, T0);
    RETURN();
}

void op_mtc0_status (void)
{
    uint32_t val, old, mask;

T
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1356
    val = T0 & (int32_t)0xFA78FF01;
1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383 1384 1385 1386 1387 1388
    old = env->CP0_Status;
    if (T0 & (1 << CP0St_UM))
        env->hflags |= MIPS_HFLAG_UM;
    else
        env->hflags &= ~MIPS_HFLAG_UM;
    if (T0 & (1 << CP0St_ERL))
        env->hflags |= MIPS_HFLAG_ERL;
    else
        env->hflags &= ~MIPS_HFLAG_ERL;
    if (T0 & (1 << CP0St_EXL))
        env->hflags |= MIPS_HFLAG_EXL;
    else
        env->hflags &= ~MIPS_HFLAG_EXL;
    env->CP0_Status = val;
    /* If we unmasked an asserted IRQ, raise it */
    mask = 0x0000FF00;
    if (loglevel & CPU_LOG_TB_IN_ASM)
       CALL_FROM_TB2(do_mtc0_status_debug, old, val);
    if ((val & (1 << CP0St_IE)) && !(old & (1 << CP0St_IE)) &&
        !(env->hflags & MIPS_HFLAG_EXL) &&
        !(env->hflags & MIPS_HFLAG_ERL) &&
        !(env->hflags & MIPS_HFLAG_DM) &&
        (env->CP0_Status & env->CP0_Cause & mask)) {
        env->interrupt_request |= CPU_INTERRUPT_HARD;
       if (logfile)
           CALL_FROM_TB0(do_mtc0_status_irqraise_debug);
    } else if (!(val & (1 << CP0St_IE)) && (old & (1 << CP0St_IE))) {
        env->interrupt_request &= ~CPU_INTERRUPT_HARD;
    }
    RETURN();
}

1389 1390 1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402
void op_mtc0_intctl (void)
{
    /* vectored interrupts not implemented */
    env->CP0_IntCtl = 0;
    RETURN();
}

void op_mtc0_srsctl (void)
{
    /* shadow registers not implemented */
    env->CP0_SRSCtl = 0;
    RETURN();
}

1403 1404 1405 1406
void op_mtc0_cause (void)
{
    uint32_t val, old;

1407
    val = (env->CP0_Cause & 0xB000F87C) | (T0 & 0x00C00300);
1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429
    old = env->CP0_Cause;
    env->CP0_Cause = val;
#if 0
    {
        int i, mask;
       /* Check if we ever asserted a software IRQ */
        for (i = 0; i < 2; i++) {
            mask = 0x100 << i;
            if ((val & mask) & !(old & mask))
                CALL_FROM_TB1(mips_set_irq, i);
        }
    }
#endif
    RETURN();
}

void op_mtc0_epc (void)
{
    env->CP0_EPC = T0;
    RETURN();
}

1430 1431 1432 1433
void op_mtc0_ebase (void)
{
    /* vectored interrupts not implemented */
    /* Multi-CPU not implemented */
T
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1434
    env->CP0_EBase = (int32_t)0x80000000 | (T0 & 0x3FFFF000);
1435 1436 1437
    RETURN();
}

1438 1439 1440
void op_mtc0_config0 (void)
{
#if defined(MIPS_USES_R4K_TLB)
1441 1442
     /* Fixed mapping MMU not implemented */
    env->CP0_Config0 = (env->CP0_Config0 & 0x8017FF88) | (T0 & 0x00000001);
1443
#else
1444
    env->CP0_Config0 = (env->CP0_Config0 & 0xFE17FF88) | (T0 & 0x00000001);
1445 1446 1447 1448
#endif
    RETURN();
}

1449 1450 1451 1452 1453 1454 1455 1456
void op_mtc0_config2 (void)
{
    /* tertiary/secondary caches not implemented */
    env->CP0_Config2 = (env->CP0_Config2 & 0x8FFF0FFF);
    RETURN();
}

void op_mtc0_watchlo0 (void)
1457 1458 1459 1460 1461
{
    env->CP0_WatchLo = T0;
    RETURN();
}

1462
void op_mtc0_watchhi0 (void)
1463 1464 1465 1466 1467
{
    env->CP0_WatchHi = T0 & 0x40FF0FF8;
    RETURN();
}

1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479
void op_mtc0_xcontext (void)
{
    env->CP0_XContext = T0; /* XXX */
    RETURN();
}

void op_mtc0_framemask (void)
{
    env->CP0_Framemask = T0; /* XXX */
    RETURN();
}

1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495
void op_mtc0_debug (void)
{
    env->CP0_Debug = (env->CP0_Debug & 0x8C03FC1F) | (T0 & 0x13300120);
    if (T0 & (1 << CP0DB_DM))
        env->hflags |= MIPS_HFLAG_DM;
    else
        env->hflags &= ~MIPS_HFLAG_DM;
    RETURN();
}

void op_mtc0_depc (void)
{
    env->CP0_DEPC = T0;
    RETURN();
}

1496 1497 1498 1499 1500 1501
void op_mtc0_performance0 (void)
{
    env->CP0_Performance0 = T0; /* XXX */
    RETURN();
}

1502 1503
void op_mtc0_taglo (void)
{
T
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1504
    env->CP0_TagLo = T0 & (int32_t)0xFFFFFCF6;
1505 1506 1507
    RETURN();
}

1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525
void op_mtc0_datalo (void)
{
    env->CP0_DataLo = T0; /* XXX */
    RETURN();
}

void op_mtc0_taghi (void)
{
    env->CP0_TagHi = T0; /* XXX */
    RETURN();
}

void op_mtc0_datahi (void)
{
    env->CP0_DataHi = T0; /* XXX */
    RETURN();
}

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void op_mtc0_errorepc (void)
{
    env->CP0_ErrorEPC = T0;
    RETURN();
}

void op_mtc0_desave (void)
{
    env->CP0_DESAVE = T0;
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    RETURN();
}

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#ifdef MIPS_USES_FPU

#if 0
# define DEBUG_FPU_STATE() CALL_FROM_TB1(dump_fpu, env)
#else
# define DEBUG_FPU_STATE() do { } while(0)
#endif

void op_cp1_enabled(void)
{
    if (!(env->CP0_Status & (1 << CP0St_CU1))) {
        CALL_FROM_TB2(do_raise_exception_err, EXCP_CpU, 1);
    }
    RETURN();
}

/* CP1 functions */
void op_cfc1 (void)
{
    if (T1 == 0) {
        T0 = env->fcr0;
    }
    else {
        /* fetch fcr31, masking unused bits */
        T0 = env->fcr31 & 0x0183FFFF;
    }
    DEBUG_FPU_STATE();
    RETURN();
}

/* convert MIPS rounding mode in FCR31 to IEEE library */
unsigned int ieee_rm[] = { 
    float_round_nearest_even,
    float_round_to_zero,
    float_round_up,
    float_round_down
};

#define RESTORE_ROUNDING_MODE \
    set_float_rounding_mode(ieee_rm[env->fcr31 & 3], &env->fp_status)

void op_ctc1 (void)
{
    if (T1 == 0) {
        /* XXX should this throw an exception?
         * don't write to FCR0.
         * env->fcr0 = T0; 
         */
    }
    else {
        /* store new fcr31, masking unused bits */  
        env->fcr31 = T0 & 0x0183FFFF;

        /* set rounding mode */
        RESTORE_ROUNDING_MODE;

#ifndef CONFIG_SOFTFLOAT
        /* no floating point exception for native float */
        SET_FP_ENABLE(env->fcr31, 0);
#endif
    }
    DEBUG_FPU_STATE();
    RETURN();
}

void op_mfc1 (void)
{
    T0 = WT0;
    DEBUG_FPU_STATE();
    RETURN();
}

void op_mtc1 (void)
{
    WT0 = T0;
    DEBUG_FPU_STATE();
    RETURN();
}

/* Float support.
   Single precition routines have a "s" suffix, double precision a
   "d" suffix.  */

#define FLOAT_OP(name, p) void OPPROTO op_float_##name##_##p(void)

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FLOAT_OP(cvtd, s)
{
    FDT2 = float32_to_float64(WT0, &env->fp_status);
    DEBUG_FPU_STATE();
    RETURN();
}
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FLOAT_OP(cvtd, w)
{
    FDT2 = int32_to_float64(WT0, &env->fp_status);
    DEBUG_FPU_STATE();
    RETURN();
}
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FLOAT_OP(cvts, d)
{
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    FST2 = float64_to_float32(FDT0, &env->fp_status);
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    DEBUG_FPU_STATE();
    RETURN();
}
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FLOAT_OP(cvts, w)
{
    FST2 = int32_to_float32(WT0, &env->fp_status);
    DEBUG_FPU_STATE();
    RETURN();
}
FLOAT_OP(cvtw, s)
{
    WT2 = float32_to_int32(FST0, &env->fp_status);
    DEBUG_FPU_STATE();
    RETURN();
}
FLOAT_OP(cvtw, d)
{
    WT2 = float64_to_int32(FDT0, &env->fp_status);
    DEBUG_FPU_STATE();
    RETURN();
}

FLOAT_OP(roundw, d)
{
    set_float_rounding_mode(float_round_nearest_even, &env->fp_status);
    WT2 = float64_round_to_int(FDT0, &env->fp_status);
    RESTORE_ROUNDING_MODE;

    DEBUG_FPU_STATE();
    RETURN();
}
FLOAT_OP(roundw, s)
{
    set_float_rounding_mode(float_round_nearest_even, &env->fp_status);
    WT2 = float32_round_to_int(FST0, &env->fp_status);
    RESTORE_ROUNDING_MODE;
    DEBUG_FPU_STATE();
    RETURN();
}

FLOAT_OP(truncw, d)
{
    WT2 = float64_to_int32_round_to_zero(FDT0, &env->fp_status);
    DEBUG_FPU_STATE();
    RETURN();
}
FLOAT_OP(truncw, s)
{
    WT2 = float32_to_int32_round_to_zero(FST0, &env->fp_status);
    DEBUG_FPU_STATE();
    RETURN();
}

FLOAT_OP(ceilw, d)
{
    set_float_rounding_mode(float_round_up, &env->fp_status);
    WT2 = float64_round_to_int(FDT0, &env->fp_status);
    RESTORE_ROUNDING_MODE;

    DEBUG_FPU_STATE();
    RETURN();
}
FLOAT_OP(ceilw, s)
{
    set_float_rounding_mode(float_round_up, &env->fp_status);
    WT2 = float32_round_to_int(FST0, &env->fp_status);
    RESTORE_ROUNDING_MODE;
    DEBUG_FPU_STATE();
    RETURN();
}

FLOAT_OP(floorw, d)
{
    set_float_rounding_mode(float_round_down, &env->fp_status);
    WT2 = float64_round_to_int(FDT0, &env->fp_status);
    RESTORE_ROUNDING_MODE;

    DEBUG_FPU_STATE();
    RETURN();
}
FLOAT_OP(floorw, s)
{
    set_float_rounding_mode(float_round_down, &env->fp_status);
    WT2 = float32_round_to_int(FST0, &env->fp_status);
    RESTORE_ROUNDING_MODE;
    DEBUG_FPU_STATE();
    RETURN();
}

/* binary operations */
#define FLOAT_BINOP(name) \
FLOAT_OP(name, d)         \
{                         \
    FDT2 = float64_ ## name (FDT0, FDT1, &env->fp_status);    \
    DEBUG_FPU_STATE();    \
}                         \
FLOAT_OP(name, s)         \
{                         \
    FST2 = float32_ ## name (FST0, FST1, &env->fp_status);    \
    DEBUG_FPU_STATE();    \
}
FLOAT_BINOP(add)
FLOAT_BINOP(sub)
FLOAT_BINOP(mul)
FLOAT_BINOP(div)
#undef FLOAT_BINOP

/* unary operations, modifying fp status  */
#define FLOAT_UNOP(name)  \
FLOAT_OP(name, d)         \
{                         \
    FDT2 = float64_ ## name(FDT0, &env->fp_status);   \
    DEBUG_FPU_STATE();    \
}                         \
FLOAT_OP(name, s)         \
{                         \
    FST2 = float32_ ## name(FST0, &env->fp_status);   \
    DEBUG_FPU_STATE();    \
}
FLOAT_UNOP(sqrt)
#undef FLOAT_UNOP

/* unary operations, not modifying fp status  */
#define FLOAT_UNOP(name)  \
FLOAT_OP(name, d)         \
{                         \
    FDT2 = float64_ ## name(FDT0);   \
    DEBUG_FPU_STATE();    \
}                         \
FLOAT_OP(name, s)         \
{                         \
    FST2 = float32_ ## name(FST0);   \
    DEBUG_FPU_STATE();    \
}
FLOAT_UNOP(abs)
FLOAT_UNOP(chs)
#undef FLOAT_UNOP

FLOAT_OP(mov, d)
{
    FDT2 = FDT0;
    DEBUG_FPU_STATE();
    RETURN();
}
FLOAT_OP(mov, s)
{
    FST2 = FST0;
    DEBUG_FPU_STATE();
    RETURN();
}

#ifdef CONFIG_SOFTFLOAT
#define clear_invalid() do {                                \
    int flags = get_float_exception_flags(&env->fp_status); \
    flags &= ~float_flag_invalid;                           \
    set_float_exception_flags(flags, &env->fp_status);      \
} while(0)
#else
#define clear_invalid() do { } while(0)
#endif

extern void dump_fpu_s(CPUState *env);

#define FOP_COND(fmt, op, sig, cond)           \
void op_cmp_ ## fmt ## _ ## op (void)          \
{                                              \
    if (cond)                                  \
        SET_FP_COND(env->fcr31);               \
    else                                       \
        CLEAR_FP_COND(env->fcr31);             \
    if (!sig)                                  \
        clear_invalid();                       \
    /*CALL_FROM_TB1(dump_fpu_s, env);*/ \
    DEBUG_FPU_STATE();                         \
    RETURN();                                  \
}

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int float64_is_unordered(float64 a, float64 b STATUS_PARAM)
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{
    if (float64_is_nan(a) || float64_is_nan(b)) {
        float_raise(float_flag_invalid, status);
        return 1;
    }
    else {
        return 0;
    }
}

FOP_COND(d, f,   0,                                                      0) 
FOP_COND(d, un,  0, float64_is_unordered(FDT1, FDT0, &env->fp_status))
FOP_COND(d, eq,  0,                                                      float64_eq(FDT0, FDT1, &env->fp_status))
FOP_COND(d, ueq, 0, float64_is_unordered(FDT1, FDT0, &env->fp_status) || float64_eq(FDT0, FDT1, &env->fp_status))
FOP_COND(d, olt, 0,                                                      float64_lt(FDT0, FDT1, &env->fp_status))
FOP_COND(d, ult, 0, float64_is_unordered(FDT1, FDT0, &env->fp_status) || float64_lt(FDT0, FDT1, &env->fp_status))
FOP_COND(d, ole, 0,                                                      float64_le(FDT0, FDT1, &env->fp_status))
FOP_COND(d, ule, 0, float64_is_unordered(FDT1, FDT0, &env->fp_status) || float64_le(FDT0, FDT1, &env->fp_status))
/* NOTE: the comma operator will make "cond" to eval to false,
 * but float*_is_unordered() is still called
 */
FOP_COND(d, sf,  1,                                                      (float64_is_unordered(FDT0, FDT1, &env->fp_status), 0))
FOP_COND(d, ngle,1, float64_is_unordered(FDT1, FDT0, &env->fp_status))
FOP_COND(d, seq, 1,                                                      float64_eq(FDT0, FDT1, &env->fp_status))
FOP_COND(d, ngl, 1, float64_is_unordered(FDT1, FDT0, &env->fp_status) || float64_eq(FDT0, FDT1, &env->fp_status))
FOP_COND(d, lt,  1,                                                      float64_lt(FDT0, FDT1, &env->fp_status))
FOP_COND(d, nge, 1, float64_is_unordered(FDT1, FDT0, &env->fp_status) || float64_lt(FDT0, FDT1, &env->fp_status))
FOP_COND(d, le,  1,                                                      float64_le(FDT0, FDT1, &env->fp_status))
FOP_COND(d, ngt, 1, float64_is_unordered(FDT1, FDT0, &env->fp_status) || float64_le(FDT0, FDT1, &env->fp_status))

flag float32_is_unordered(float32 a, float32 b STATUS_PARAM)
{
    extern flag float32_is_nan( float32 a );
    if (float32_is_nan(a) || float32_is_nan(b)) {
        float_raise(float_flag_invalid, status);
        return 1;
    }
    else {
        return 0;
    }
}

/* NOTE: the comma operator will make "cond" to eval to false,
 * but float*_is_unordered() is still called
 */
FOP_COND(s, f,   0,                                                      0) 
FOP_COND(s, un,  0, float32_is_unordered(FST1, FST0, &env->fp_status))
FOP_COND(s, eq,  0,                                                      float32_eq(FST0, FST1, &env->fp_status))
FOP_COND(s, ueq, 0, float32_is_unordered(FST1, FST0, &env->fp_status) || float32_eq(FST0, FST1, &env->fp_status))
FOP_COND(s, olt, 0,                                                      float32_lt(FST0, FST1, &env->fp_status))
FOP_COND(s, ult, 0, float32_is_unordered(FST1, FST0, &env->fp_status) || float32_lt(FST0, FST1, &env->fp_status))
FOP_COND(s, ole, 0,                                                      float32_le(FST0, FST1, &env->fp_status))
FOP_COND(s, ule, 0, float32_is_unordered(FST1, FST0, &env->fp_status) || float32_le(FST0, FST1, &env->fp_status))
/* NOTE: the comma operator will make "cond" to eval to false,
 * but float*_is_unordered() is still called
 */
FOP_COND(s, sf,  1,                                                      (float32_is_unordered(FST0, FST1, &env->fp_status), 0))
FOP_COND(s, ngle,1, float32_is_unordered(FST1, FST0, &env->fp_status))
FOP_COND(s, seq, 1,                                                      float32_eq(FST0, FST1, &env->fp_status))
FOP_COND(s, ngl, 1, float32_is_unordered(FST1, FST0, &env->fp_status) || float32_eq(FST0, FST1, &env->fp_status))
FOP_COND(s, lt,  1,                                                      float32_lt(FST0, FST1, &env->fp_status))
FOP_COND(s, nge, 1, float32_is_unordered(FST1, FST0, &env->fp_status) || float32_lt(FST0, FST1, &env->fp_status))
FOP_COND(s, le,  1,                                                      float32_le(FST0, FST1, &env->fp_status))
FOP_COND(s, ngt, 1, float32_is_unordered(FST1, FST0, &env->fp_status) || float32_le(FST0, FST1, &env->fp_status))

void op_bc1f (void)
{
    T0 = ! IS_FP_COND_SET(env->fcr31);
    DEBUG_FPU_STATE();
    RETURN();
}

void op_bc1t (void)
{
    T0 = IS_FP_COND_SET(env->fcr31);
    DEBUG_FPU_STATE();
    RETURN();
}
#endif /* MIPS_USES_FPU */

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#if defined(MIPS_USES_R4K_TLB)
void op_tlbwi (void)
{
    CALL_FROM_TB0(do_tlbwi);
    RETURN();
}

void op_tlbwr (void)
{
    CALL_FROM_TB0(do_tlbwr);
    RETURN();
}

void op_tlbp (void)
{
    CALL_FROM_TB0(do_tlbp);
    RETURN();
}

void op_tlbr (void)
{
    CALL_FROM_TB0(do_tlbr);
    RETURN();
}
#endif

/* Specials */
void op_pmon (void)
{
    CALL_FROM_TB1(do_pmon, PARAM1);
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    RETURN();
}

void op_di (void)
{
    uint32_t val;

    T0 = env->CP0_Status;
    val = T0 & ~(1 << CP0St_IE);
    if (val != T0) {
        env->interrupt_request &= ~CPU_INTERRUPT_HARD;
        env->CP0_Status = val;
    }
    RETURN();
}

void op_ei (void)
{
    uint32_t val;

    T0 = env->CP0_Status;
    val = T0 | (1 << CP0St_IE);
    if (val != T0) {
       const uint32_t mask = 0x0000FF00;

       env->CP0_Status = val;
       if (!(env->hflags & MIPS_HFLAG_EXL) &&
           !(env->hflags & MIPS_HFLAG_ERL) &&
           !(env->hflags & MIPS_HFLAG_DM) &&
           (env->CP0_Status & env->CP0_Cause & mask)) {
               env->interrupt_request |= CPU_INTERRUPT_HARD;
               if (logfile)
                   CALL_FROM_TB0(do_mtc0_status_irqraise_debug);
       }
    }
    RETURN();
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}

void op_trap (void)
{
    if (T0) {
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        CALL_FROM_TB1(do_raise_exception_direct, EXCP_TRAP);
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    }
    RETURN();
}

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void op_debug (void)
{
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    CALL_FROM_TB1(do_raise_exception, EXCP_DEBUG);
    RETURN();
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}

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void op_set_lladdr (void)
{
    env->CP0_LLAddr = T2;
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    RETURN();
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}

void debug_eret (void);
void op_eret (void)
{
    CALL_FROM_TB0(debug_eret);
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    if (env->hflags & MIPS_HFLAG_ERL) {
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        env->PC = env->CP0_ErrorEPC;
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        env->hflags &= ~MIPS_HFLAG_ERL;
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	env->CP0_Status &= ~(1 << CP0St_ERL);
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    } else {
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        env->PC = env->CP0_EPC;
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        env->hflags &= ~MIPS_HFLAG_EXL;
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	env->CP0_Status &= ~(1 << CP0St_EXL);
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    }
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    env->CP0_LLAddr = 1;
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    RETURN();
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}

void op_deret (void)
{
    CALL_FROM_TB0(debug_eret);
    env->PC = env->CP0_DEPC;
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    RETURN();
}

void op_rdhwr_cpunum(void)
{
    if (env->CP0_HWREna & (1 << 0))
       T0 = env->CP0_EBase & 0x2ff;
    else
       CALL_FROM_TB1(do_raise_exception_direct, EXCP_RI);
    RETURN();
}

void op_rdhwr_synci_step(void)
{
    if (env->CP0_HWREna & (1 << 1))
       T0 = env->SYNCI_Step;
    else
       CALL_FROM_TB1(do_raise_exception_direct, EXCP_RI);
    RETURN();
}

void op_rdhwr_cc(void)
{
    if (env->CP0_HWREna & (1 << 2))
       T0 = env->CP0_Count;
    else
       CALL_FROM_TB1(do_raise_exception_direct, EXCP_RI);
    RETURN();
}

void op_rdhwr_ccres(void)
{
    if (env->CP0_HWREna & (1 << 3))
       T0 = env->CCRes;
    else
       CALL_FROM_TB1(do_raise_exception_direct, EXCP_RI);
    RETURN();
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}

void op_save_state (void)
{
    env->hflags = PARAM1;
    RETURN();
}

void op_save_pc (void)
{
    env->PC = PARAM1;
    RETURN();
}

void op_raise_exception (void)
{
    CALL_FROM_TB1(do_raise_exception, PARAM1);
    RETURN();
}

void op_raise_exception_err (void)
{
    CALL_FROM_TB2(do_raise_exception_err, PARAM1, PARAM2);
    RETURN();
}

void op_exit_tb (void)
{
    EXIT_TB();
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    RETURN();
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}

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void op_wait (void)
{
    env->halted = 1;
    CALL_FROM_TB1(do_raise_exception, EXCP_HLT);
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    RETURN();
}

/* Bitfield operations. */
void op_ext(void)
{
    unsigned int pos = PARAM1;
    unsigned int size = PARAM2;

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    T0 = ((uint32_t)T1 >> pos) & ((1 << size) - 1);
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    RETURN();
}

void op_ins(void)
{
    unsigned int pos = PARAM1;
    unsigned int size = PARAM2;
    target_ulong mask = ((1 << size) - 1) << pos;

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    T0 = (T2 & ~mask) | (((uint32_t)T1 << pos) & mask);
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    RETURN();
}

void op_wsbh(void)
{
    T0 = ((T1 << 8) & ~0x00FF00FF) | ((T1 >> 8) & 0x00FF00FF);
    RETURN();
}

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#ifdef MIPS_HAS_MIPS64
void op_dext(void)
{
    unsigned int pos = PARAM1;
    unsigned int size = PARAM2;

    T0 = (T1 >> pos) & ((1 << size) - 1);
    RETURN();
}

void op_dins(void)
{
    unsigned int pos = PARAM1;
    unsigned int size = PARAM2;
    target_ulong mask = ((1 << size) - 1) << pos;

    T0 = (T2 & ~mask) | ((T1 << pos) & mask);
    RETURN();
}

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void op_dsbh(void)
{
    T0 = ((T1 << 8) & ~0x00FF00FF00FF00FFULL) | ((T1 >> 8) & 0x00FF00FF00FF00FFULL);
    RETURN();
}

void op_dshd(void)
{
    T0 = ((T1 << 16) & ~0x0000FFFF0000FFFFULL) | ((T1 >> 16) & 0x0000FFFF0000FFFFULL);
    RETURN();
}
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#endif
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void op_seb(void)
{
    T0 = ((T1 & 0xFF) ^ 0x80) - 0x80;
    RETURN();
}

void op_seh(void)
{
    T0 = ((T1 & 0xFFFF) ^ 0x8000) - 0x8000;
    RETURN();
B
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}