helper2.c 32.6 KB
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/*
 *  i386 helpers (without register variable usage)
 * 
 *  Copyright (c) 2003 Fabrice Bellard
 *
 * 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 <stdarg.h>
#include <stdlib.h>
#include <stdio.h>
#include <string.h>
#include <inttypes.h>
#include <signal.h>
#include <assert.h>

#include "cpu.h"
#include "exec-all.h"

//#define DEBUG_MMU

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#ifdef USE_CODE_COPY
#include <asm/ldt.h>
#include <linux/unistd.h>
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#include <linux/version.h>
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int modify_ldt(int func, void *ptr, unsigned long bytecount)
{
	return syscall(__NR_modify_ldt, func, ptr, bytecount);
}
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#if LINUX_VERSION_CODE >= KERNEL_VERSION(2, 5, 66)
#define modify_ldt_ldt_s user_desc
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#endif
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#endif /* USE_CODE_COPY */
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CPUX86State *cpu_x86_init(void)
{
    CPUX86State *env;
    static int inited;

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    env = qemu_mallocz(sizeof(CPUX86State));
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    if (!env)
        return NULL;
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    cpu_exec_init(env);

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    /* init various static tables */
    if (!inited) {
        inited = 1;
        optimize_flags_init();
    }
#ifdef USE_CODE_COPY
    /* testing code for code copy case */
    {
        struct modify_ldt_ldt_s ldt;
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        ldt.entry_number = 1;
        ldt.base_addr = (unsigned long)env;
        ldt.limit = (sizeof(CPUState) + 0xfff) >> 12;
        ldt.seg_32bit = 1;
        ldt.contents = MODIFY_LDT_CONTENTS_DATA;
        ldt.read_exec_only = 0;
        ldt.limit_in_pages = 1;
        ldt.seg_not_present = 0;
        ldt.useable = 1;
        modify_ldt(1, &ldt, sizeof(ldt)); /* write ldt entry */
        
        asm volatile ("movl %0, %%fs" : : "r" ((1 << 3) | 7));
    }
#endif
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    {
        int family, model, stepping;
#ifdef TARGET_X86_64
        env->cpuid_vendor1 = 0x68747541; /* "Auth" */
        env->cpuid_vendor2 = 0x69746e65; /* "enti" */
        env->cpuid_vendor3 = 0x444d4163; /* "cAMD" */
        family = 6;
        model = 2;
        stepping = 3;
#else
        env->cpuid_vendor1 = 0x756e6547; /* "Genu" */
        env->cpuid_vendor2 = 0x49656e69; /* "ineI" */
        env->cpuid_vendor3 = 0x6c65746e; /* "ntel" */
#if 0
        /* pentium 75-200 */
        family = 5;
        model = 2;
        stepping = 11;
#else
        /* pentium pro */
        family = 6;
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        model = 3;
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        stepping = 3;
#endif
#endif
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        env->cpuid_level = 2;
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        env->cpuid_version = (family << 8) | (model << 4) | stepping;
        env->cpuid_features = (CPUID_FP87 | CPUID_DE | CPUID_PSE |
                               CPUID_TSC | CPUID_MSR | CPUID_MCE |
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                               CPUID_CX8 | CPUID_PGE | CPUID_CMOV |
                               CPUID_PAT);
        env->pat = 0x0007040600070406ULL;
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        env->cpuid_ext_features = CPUID_EXT_SSE3;
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        env->cpuid_features |= CPUID_FXSR | CPUID_MMX | CPUID_SSE | CPUID_SSE2 | CPUID_PAE | CPUID_SEP;
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        env->cpuid_features |= CPUID_APIC;
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        env->cpuid_xlevel = 0;
        {
            const char *model_id = "QEMU Virtual CPU version " QEMU_VERSION;
            int c, len, i;
            len = strlen(model_id);
            for(i = 0; i < 48; i++) {
                if (i >= len)
                    c = '\0';
                else
                    c = model_id[i];
                env->cpuid_model[i >> 2] |= c << (8 * (i & 3));
            }
        }
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#ifdef TARGET_X86_64
        /* currently not enabled for std i386 because not fully tested */
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        env->cpuid_ext2_features = (env->cpuid_features & 0x0183F3FF);
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        env->cpuid_ext2_features |= CPUID_EXT2_LM | CPUID_EXT2_SYSCALL | CPUID_EXT2_NX;
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        env->cpuid_xlevel = 0x80000008;
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        /* these features are needed for Win64 and aren't fully implemented */
        env->cpuid_features |= CPUID_MTRR | CPUID_CLFLUSH | CPUID_MCA;
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        /* this feature is needed for Solaris and isn't fully implemented */
        env->cpuid_features |= CPUID_PSE36;
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#endif
    }
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    cpu_reset(env);
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#ifdef USE_KQEMU
    kqemu_init(env);
#endif
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    return env;
}

/* NOTE: must be called outside the CPU execute loop */
void cpu_reset(CPUX86State *env)
{
    int i;

    memset(env, 0, offsetof(CPUX86State, breakpoints));
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    tlb_flush(env, 1);
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    /* init to reset state */

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#ifdef CONFIG_SOFTMMU
    env->hflags |= HF_SOFTMMU_MASK;
#endif
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    cpu_x86_update_cr0(env, 0x60000010);
    env->a20_mask = 0xffffffff;
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    env->smbase = 0x30000;

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    env->idt.limit = 0xffff;
    env->gdt.limit = 0xffff;
    env->ldt.limit = 0xffff;
    env->ldt.flags = DESC_P_MASK;
    env->tr.limit = 0xffff;
    env->tr.flags = DESC_P_MASK;
    
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    cpu_x86_load_seg_cache(env, R_CS, 0xf000, 0xffff0000, 0xffff, 0); 
    cpu_x86_load_seg_cache(env, R_DS, 0, 0, 0xffff, 0);
    cpu_x86_load_seg_cache(env, R_ES, 0, 0, 0xffff, 0);
    cpu_x86_load_seg_cache(env, R_SS, 0, 0, 0xffff, 0);
    cpu_x86_load_seg_cache(env, R_FS, 0, 0, 0xffff, 0);
    cpu_x86_load_seg_cache(env, R_GS, 0, 0, 0xffff, 0);
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    env->eip = 0xfff0;
    env->regs[R_EDX] = 0x600; /* indicate P6 processor */
    
    env->eflags = 0x2;
    
    /* FPU init */
    for(i = 0;i < 8; i++)
        env->fptags[i] = 1;
    env->fpuc = 0x37f;
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    env->mxcsr = 0x1f80;
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}

void cpu_x86_close(CPUX86State *env)
{
    free(env);
}

/***********************************************************/
/* x86 debug */

static const char *cc_op_str[] = {
    "DYNAMIC",
    "EFLAGS",
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    "MULB",
    "MULW",
    "MULL",
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    "MULQ",

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    "ADDB",
    "ADDW",
    "ADDL",
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    "ADDQ",

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    "ADCB",
    "ADCW",
    "ADCL",
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    "ADCQ",

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    "SUBB",
    "SUBW",
    "SUBL",
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    "SUBQ",

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    "SBBB",
    "SBBW",
    "SBBL",
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    "SBBQ",

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    "LOGICB",
    "LOGICW",
    "LOGICL",
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    "LOGICQ",

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    "INCB",
    "INCW",
    "INCL",
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    "INCQ",

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    "DECB",
    "DECW",
    "DECL",
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    "DECQ",

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    "SHLB",
    "SHLW",
    "SHLL",
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    "SHLQ",

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    "SARB",
    "SARW",
    "SARL",
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    "SARQ",
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};

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void cpu_dump_state(CPUState *env, FILE *f, 
                    int (*cpu_fprintf)(FILE *f, const char *fmt, ...),
                    int flags)
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{
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    int eflags, i, nb;
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    char cc_op_name[32];
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    static const char *seg_name[6] = { "ES", "CS", "SS", "DS", "FS", "GS" };
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    eflags = env->eflags;
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#ifdef TARGET_X86_64
    if (env->hflags & HF_CS64_MASK) {
        cpu_fprintf(f, 
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                    "RAX=%016" PRIx64 " RBX=%016" PRIx64 " RCX=%016" PRIx64 " RDX=%016" PRIx64 "\n"
                    "RSI=%016" PRIx64 " RDI=%016" PRIx64 " RBP=%016" PRIx64 " RSP=%016" PRIx64 "\n"
                    "R8 =%016" PRIx64 " R9 =%016" PRIx64 " R10=%016" PRIx64 " R11=%016" PRIx64 "\n"
                    "R12=%016" PRIx64 " R13=%016" PRIx64 " R14=%016" PRIx64 " R15=%016" PRIx64 "\n"
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                    "RIP=%016" PRIx64 " RFL=%08x [%c%c%c%c%c%c%c] CPL=%d II=%d A20=%d SMM=%d HLT=%d\n",
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                    env->regs[R_EAX], 
                    env->regs[R_EBX], 
                    env->regs[R_ECX], 
                    env->regs[R_EDX], 
                    env->regs[R_ESI], 
                    env->regs[R_EDI], 
                    env->regs[R_EBP], 
                    env->regs[R_ESP], 
                    env->regs[8], 
                    env->regs[9], 
                    env->regs[10], 
                    env->regs[11], 
                    env->regs[12], 
                    env->regs[13], 
                    env->regs[14], 
                    env->regs[15], 
                    env->eip, eflags,
                    eflags & DF_MASK ? 'D' : '-',
                    eflags & CC_O ? 'O' : '-',
                    eflags & CC_S ? 'S' : '-',
                    eflags & CC_Z ? 'Z' : '-',
                    eflags & CC_A ? 'A' : '-',
                    eflags & CC_P ? 'P' : '-',
                    eflags & CC_C ? 'C' : '-',
                    env->hflags & HF_CPL_MASK, 
                    (env->hflags >> HF_INHIBIT_IRQ_SHIFT) & 1,
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                    (env->a20_mask >> 20) & 1,
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                    (env->hflags >> HF_SMM_SHIFT) & 1,
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                    (env->hflags >> HF_HALTED_SHIFT) & 1);
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    } else 
#endif
    {
        cpu_fprintf(f, "EAX=%08x EBX=%08x ECX=%08x EDX=%08x\n"
                    "ESI=%08x EDI=%08x EBP=%08x ESP=%08x\n"
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                    "EIP=%08x EFL=%08x [%c%c%c%c%c%c%c] CPL=%d II=%d A20=%d SMM=%d HLT=%d\n",
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                    (uint32_t)env->regs[R_EAX], 
                    (uint32_t)env->regs[R_EBX], 
                    (uint32_t)env->regs[R_ECX], 
                    (uint32_t)env->regs[R_EDX], 
                    (uint32_t)env->regs[R_ESI], 
                    (uint32_t)env->regs[R_EDI], 
                    (uint32_t)env->regs[R_EBP], 
                    (uint32_t)env->regs[R_ESP], 
                    (uint32_t)env->eip, eflags,
                    eflags & DF_MASK ? 'D' : '-',
                    eflags & CC_O ? 'O' : '-',
                    eflags & CC_S ? 'S' : '-',
                    eflags & CC_Z ? 'Z' : '-',
                    eflags & CC_A ? 'A' : '-',
                    eflags & CC_P ? 'P' : '-',
                    eflags & CC_C ? 'C' : '-',
                    env->hflags & HF_CPL_MASK, 
                    (env->hflags >> HF_INHIBIT_IRQ_SHIFT) & 1,
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                    (env->a20_mask >> 20) & 1,
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                    (env->hflags >> HF_SMM_SHIFT) & 1,
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                    (env->hflags >> HF_HALTED_SHIFT) & 1);
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    }

#ifdef TARGET_X86_64
    if (env->hflags & HF_LMA_MASK) {
        for(i = 0; i < 6; i++) {
            SegmentCache *sc = &env->segs[i];
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            cpu_fprintf(f, "%s =%04x %016" PRIx64 " %08x %08x\n",
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                        seg_name[i],
                        sc->selector,
                        sc->base,
                        sc->limit,
                        sc->flags);
        }
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        cpu_fprintf(f, "LDT=%04x %016" PRIx64 " %08x %08x\n",
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                    env->ldt.selector,
                    env->ldt.base,
                    env->ldt.limit,
                    env->ldt.flags);
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        cpu_fprintf(f, "TR =%04x %016" PRIx64 " %08x %08x\n",
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                    env->tr.selector,
                    env->tr.base,
                    env->tr.limit,
                    env->tr.flags);
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        cpu_fprintf(f, "GDT=     %016" PRIx64 " %08x\n",
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                    env->gdt.base, env->gdt.limit);
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        cpu_fprintf(f, "IDT=     %016" PRIx64 " %08x\n",
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                    env->idt.base, env->idt.limit);
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        cpu_fprintf(f, "CR0=%08x CR2=%016" PRIx64 " CR3=%016" PRIx64 " CR4=%08x\n",
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                    (uint32_t)env->cr[0], 
                    env->cr[2], 
                    env->cr[3], 
                    (uint32_t)env->cr[4]);
    } else
#endif
    {
        for(i = 0; i < 6; i++) {
            SegmentCache *sc = &env->segs[i];
            cpu_fprintf(f, "%s =%04x %08x %08x %08x\n",
                        seg_name[i],
                        sc->selector,
                        (uint32_t)sc->base,
                        sc->limit,
                        sc->flags);
        }
        cpu_fprintf(f, "LDT=%04x %08x %08x %08x\n",
                    env->ldt.selector,
                    (uint32_t)env->ldt.base,
                    env->ldt.limit,
                    env->ldt.flags);
        cpu_fprintf(f, "TR =%04x %08x %08x %08x\n",
                    env->tr.selector,
                    (uint32_t)env->tr.base,
                    env->tr.limit,
                    env->tr.flags);
        cpu_fprintf(f, "GDT=     %08x %08x\n",
                    (uint32_t)env->gdt.base, env->gdt.limit);
        cpu_fprintf(f, "IDT=     %08x %08x\n",
                    (uint32_t)env->idt.base, env->idt.limit);
        cpu_fprintf(f, "CR0=%08x CR2=%08x CR3=%08x CR4=%08x\n",
                    (uint32_t)env->cr[0], 
                    (uint32_t)env->cr[2], 
                    (uint32_t)env->cr[3], 
                    (uint32_t)env->cr[4]);
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    }
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    if (flags & X86_DUMP_CCOP) {
        if ((unsigned)env->cc_op < CC_OP_NB)
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            snprintf(cc_op_name, sizeof(cc_op_name), "%s", cc_op_str[env->cc_op]);
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        else
            snprintf(cc_op_name, sizeof(cc_op_name), "[%d]", env->cc_op);
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#ifdef TARGET_X86_64
        if (env->hflags & HF_CS64_MASK) {
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            cpu_fprintf(f, "CCS=%016" PRIx64 " CCD=%016" PRIx64 " CCO=%-8s\n",
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                        env->cc_src, env->cc_dst, 
                        cc_op_name);
        } else 
#endif
        {
            cpu_fprintf(f, "CCS=%08x CCD=%08x CCO=%-8s\n",
                        (uint32_t)env->cc_src, (uint32_t)env->cc_dst, 
                        cc_op_name);
        }
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    }
    if (flags & X86_DUMP_FPU) {
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        int fptag;
        fptag = 0;
        for(i = 0; i < 8; i++) {
            fptag |= ((!env->fptags[i]) << i);
        }
        cpu_fprintf(f, "FCW=%04x FSW=%04x [ST=%d] FTW=%02x MXCSR=%08x\n",
                    env->fpuc,
                    (env->fpus & ~0x3800) | (env->fpstt & 0x7) << 11,
                    env->fpstt,
                    fptag,
                    env->mxcsr);
        for(i=0;i<8;i++) {
#if defined(USE_X86LDOUBLE)
            union {
                long double d;
                struct {
                    uint64_t lower;
                    uint16_t upper;
                } l;
            } tmp;
            tmp.d = env->fpregs[i].d;
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            cpu_fprintf(f, "FPR%d=%016" PRIx64 " %04x",
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                        i, tmp.l.lower, tmp.l.upper);
#else
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            cpu_fprintf(f, "FPR%d=%016" PRIx64,
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                        i, env->fpregs[i].mmx.q);
#endif
            if ((i & 1) == 1)
                cpu_fprintf(f, "\n");
            else
                cpu_fprintf(f, " ");
        }
        if (env->hflags & HF_CS64_MASK) 
            nb = 16;
        else
            nb = 8;
        for(i=0;i<nb;i++) {
            cpu_fprintf(f, "XMM%02d=%08x%08x%08x%08x",
                        i, 
                        env->xmm_regs[i].XMM_L(3),
                        env->xmm_regs[i].XMM_L(2),
                        env->xmm_regs[i].XMM_L(1),
                        env->xmm_regs[i].XMM_L(0));
            if ((i & 1) == 1)
                cpu_fprintf(f, "\n");
            else
                cpu_fprintf(f, " ");
        }
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    }
}

/***********************************************************/
/* x86 mmu */
/* XXX: add PGE support */

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void cpu_x86_set_a20(CPUX86State *env, int a20_state)
{
    a20_state = (a20_state != 0);
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    if (a20_state != ((env->a20_mask >> 20) & 1)) {
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#if defined(DEBUG_MMU)
        printf("A20 update: a20=%d\n", a20_state);
#endif
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        /* if the cpu is currently executing code, we must unlink it and
           all the potentially executing TB */
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        cpu_interrupt(env, CPU_INTERRUPT_EXITTB);
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        /* when a20 is changed, all the MMU mappings are invalid, so
           we must flush everything */
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        tlb_flush(env, 1);
        env->a20_mask = 0xffefffff | (a20_state << 20);
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    }
}

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void cpu_x86_update_cr0(CPUX86State *env, uint32_t new_cr0)
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{
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    int pe_state;
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#if defined(DEBUG_MMU)
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    printf("CR0 update: CR0=0x%08x\n", new_cr0);
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#endif
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    if ((new_cr0 & (CR0_PG_MASK | CR0_WP_MASK | CR0_PE_MASK)) !=
        (env->cr[0] & (CR0_PG_MASK | CR0_WP_MASK | CR0_PE_MASK))) {
        tlb_flush(env, 1);
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    }
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#ifdef TARGET_X86_64
    if (!(env->cr[0] & CR0_PG_MASK) && (new_cr0 & CR0_PG_MASK) &&
        (env->efer & MSR_EFER_LME)) {
        /* enter in long mode */
        /* XXX: generate an exception */
        if (!(env->cr[4] & CR4_PAE_MASK))
            return;
        env->efer |= MSR_EFER_LMA;
        env->hflags |= HF_LMA_MASK;
    } else if ((env->cr[0] & CR0_PG_MASK) && !(new_cr0 & CR0_PG_MASK) &&
               (env->efer & MSR_EFER_LMA)) {
        /* exit long mode */
        env->efer &= ~MSR_EFER_LMA;
        env->hflags &= ~(HF_LMA_MASK | HF_CS64_MASK);
        env->eip &= 0xffffffff;
    }
#endif
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    env->cr[0] = new_cr0 | CR0_ET_MASK;
517
    
518 519 520 521 522
    /* update PE flag in hidden flags */
    pe_state = (env->cr[0] & CR0_PE_MASK);
    env->hflags = (env->hflags & ~HF_PE_MASK) | (pe_state << HF_PE_SHIFT);
    /* ensure that ADDSEG is always set in real mode */
    env->hflags |= ((pe_state ^ 1) << HF_ADDSEG_SHIFT);
523 524 525
    /* update FPU flags */
    env->hflags = (env->hflags & ~(HF_MP_MASK | HF_EM_MASK | HF_TS_MASK)) |
        ((new_cr0 << (HF_MP_SHIFT - 1)) & (HF_MP_MASK | HF_EM_MASK | HF_TS_MASK));
B
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}

B
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/* XXX: in legacy PAE mode, generate a GPF if reserved bits are set in
   the PDPT */
B
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530
void cpu_x86_update_cr3(CPUX86State *env, target_ulong new_cr3)
B
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531
{
532
    env->cr[3] = new_cr3;
B
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533 534
    if (env->cr[0] & CR0_PG_MASK) {
#if defined(DEBUG_MMU)
B
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535
        printf("CR3 update: CR3=" TARGET_FMT_lx "\n", new_cr3);
B
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536
#endif
537
        tlb_flush(env, 0);
B
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538 539 540
    }
}

541
void cpu_x86_update_cr4(CPUX86State *env, uint32_t new_cr4)
B
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542
{
543
#if defined(DEBUG_MMU)
B
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    printf("CR4 update: CR4=%08x\n", (uint32_t)env->cr[4]);
545 546 547 548 549
#endif
    if ((new_cr4 & (CR4_PGE_MASK | CR4_PAE_MASK | CR4_PSE_MASK)) !=
        (env->cr[4] & (CR4_PGE_MASK | CR4_PAE_MASK | CR4_PSE_MASK))) {
        tlb_flush(env, 1);
    }
B
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550 551 552 553 554 555 556 557
    /* SSE handling */
    if (!(env->cpuid_features & CPUID_SSE))
        new_cr4 &= ~CR4_OSFXSR_MASK;
    if (new_cr4 & CR4_OSFXSR_MASK)
        env->hflags |= HF_OSFXSR_MASK;
    else
        env->hflags &= ~HF_OSFXSR_MASK;

558
    env->cr[4] = new_cr4;
B
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}

/* XXX: also flush 4MB pages */
562
void cpu_x86_flush_tlb(CPUX86State *env, target_ulong addr)
B
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563 564 565 566
{
    tlb_flush_page(env, addr);
}

B
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567
#if defined(CONFIG_USER_ONLY) 
B
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568

B
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int cpu_x86_handle_mmu_fault(CPUX86State *env, target_ulong addr, 
                             int is_write, int is_user, int is_softmmu)
B
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571
{
B
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572 573 574 575 576
    /* user mode only emulation */
    is_write &= 1;
    env->cr[2] = addr;
    env->error_code = (is_write << PG_ERROR_W_BIT);
    env->error_code |= PG_ERROR_U_MASK;
B
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577
    env->exception_index = EXCP0E_PAGE;
B
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578
    return 1;
B
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579 580
}

581
target_phys_addr_t cpu_get_phys_page_debug(CPUState *env, target_ulong addr)
B
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582
{
B
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583
    return addr;
B
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584 585
}

B
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#else

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#define PHYS_ADDR_MASK 0xfffff000

B
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/* return value:
   -1 = cannot handle fault 
   0  = nothing more to do 
   1  = generate PF fault
   2  = soft MMU activation required for this block
*/
B
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int cpu_x86_handle_mmu_fault(CPUX86State *env, target_ulong addr, 
B
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                             int is_write1, int is_user, int is_softmmu)
B
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598
{
B
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599
    uint64_t ptep, pte;
B
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600
    uint32_t pdpe_addr, pde_addr, pte_addr;
B
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    int error_code, is_dirty, prot, page_size, ret, is_write;
B
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602 603
    unsigned long paddr, page_offset;
    target_ulong vaddr, virt_addr;
B
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605
#if defined(DEBUG_MMU)
B
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606
    printf("MMU fault: addr=" TARGET_FMT_lx " w=%d u=%d eip=" TARGET_FMT_lx "\n", 
B
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607
           addr, is_write1, is_user, env->eip);
B
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608
#endif
B
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609
    is_write = is_write1 & 1;
B
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610
    
B
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611 612
    if (!(env->cr[0] & CR0_PG_MASK)) {
        pte = addr;
B
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613
        virt_addr = addr & TARGET_PAGE_MASK;
B
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614
        prot = PAGE_READ | PAGE_WRITE | PAGE_EXEC;
B
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615 616 617 618
        page_size = 4096;
        goto do_mapping;
    }

B
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619
    if (env->cr[4] & CR4_PAE_MASK) {
B
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620 621
        uint64_t pde, pdpe;

B
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622 623 624
        /* XXX: we only use 32 bit physical addresses */
#ifdef TARGET_X86_64
        if (env->hflags & HF_LMA_MASK) {
B
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625 626
            uint32_t pml4e_addr;
            uint64_t pml4e;
B
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627 628 629 630 631
            int32_t sext;

            /* test virtual address sign extension */
            sext = (int64_t)addr >> 47;
            if (sext != 0 && sext != -1) {
B
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632 633 634
                env->error_code = 0;
                env->exception_index = EXCP0D_GPF;
                return 1;
B
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635 636 637 638
            }
            
            pml4e_addr = ((env->cr[3] & ~0xfff) + (((addr >> 39) & 0x1ff) << 3)) & 
                env->a20_mask;
B
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639
            pml4e = ldq_phys(pml4e_addr);
B
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640 641 642 643
            if (!(pml4e & PG_PRESENT_MASK)) {
                error_code = 0;
                goto do_fault;
            }
B
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644 645 646 647
            if (!(env->efer & MSR_EFER_NXE) && (pml4e & PG_NX_MASK)) {
                error_code = PG_ERROR_RSVD_MASK;
                goto do_fault;
            }
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648 649
            if (!(pml4e & PG_ACCESSED_MASK)) {
                pml4e |= PG_ACCESSED_MASK;
B
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650
                stl_phys_notdirty(pml4e_addr, pml4e);
B
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651
            }
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            ptep = pml4e ^ PG_NX_MASK;
            pdpe_addr = ((pml4e & PHYS_ADDR_MASK) + (((addr >> 30) & 0x1ff) << 3)) & 
B
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654
                env->a20_mask;
B
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655
            pdpe = ldq_phys(pdpe_addr);
B
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656 657 658 659
            if (!(pdpe & PG_PRESENT_MASK)) {
                error_code = 0;
                goto do_fault;
            }
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660 661 662 663 664
            if (!(env->efer & MSR_EFER_NXE) && (pdpe & PG_NX_MASK)) {
                error_code = PG_ERROR_RSVD_MASK;
                goto do_fault;
            }
            ptep &= pdpe ^ PG_NX_MASK;
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            if (!(pdpe & PG_ACCESSED_MASK)) {
                pdpe |= PG_ACCESSED_MASK;
B
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                stl_phys_notdirty(pdpe_addr, pdpe);
B
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            }
B
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669
        } else
B
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670 671
#endif
        {
B
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            /* XXX: load them when cr3 is loaded ? */
673
            pdpe_addr = ((env->cr[3] & ~0x1f) + ((addr >> 27) & 0x18)) & 
B
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                env->a20_mask;
B
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675
            pdpe = ldq_phys(pdpe_addr);
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676 677 678 679
            if (!(pdpe & PG_PRESENT_MASK)) {
                error_code = 0;
                goto do_fault;
            }
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            ptep = PG_NX_MASK | PG_USER_MASK | PG_RW_MASK;
681
        }
B
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B
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        pde_addr = ((pdpe & PHYS_ADDR_MASK) + (((addr >> 21) & 0x1ff) << 3)) &
B
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684
            env->a20_mask;
B
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685
        pde = ldq_phys(pde_addr);
B
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686 687 688
        if (!(pde & PG_PRESENT_MASK)) {
            error_code = 0;
            goto do_fault;
B
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689
        }
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690 691 692 693 694
        if (!(env->efer & MSR_EFER_NXE) && (pde & PG_NX_MASK)) {
            error_code = PG_ERROR_RSVD_MASK;
            goto do_fault;
        }
        ptep &= pde ^ PG_NX_MASK;
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695 696 697
        if (pde & PG_PSE_MASK) {
            /* 2 MB page */
            page_size = 2048 * 1024;
B
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698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720
            ptep ^= PG_NX_MASK;
            if ((ptep & PG_NX_MASK) && is_write1 == 2)
                goto do_fault_protect;
            if (is_user) {
                if (!(ptep & PG_USER_MASK))
                    goto do_fault_protect;
                if (is_write && !(ptep & PG_RW_MASK))
                    goto do_fault_protect;
            } else {
                if ((env->cr[0] & CR0_WP_MASK) && 
                    is_write && !(ptep & PG_RW_MASK)) 
                    goto do_fault_protect;
            }
            is_dirty = is_write && !(pde & PG_DIRTY_MASK);
            if (!(pde & PG_ACCESSED_MASK) || is_dirty) {
                pde |= PG_ACCESSED_MASK;
                if (is_dirty)
                    pde |= PG_DIRTY_MASK;
                stl_phys_notdirty(pde_addr, pde);
            }
            /* align to page_size */
            pte = pde & ((PHYS_ADDR_MASK & ~(page_size - 1)) | 0xfff); 
            virt_addr = addr & ~(page_size - 1);
B
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721 722 723 724
        } else {
            /* 4 KB page */
            if (!(pde & PG_ACCESSED_MASK)) {
                pde |= PG_ACCESSED_MASK;
B
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                stl_phys_notdirty(pde_addr, pde);
B
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726
            }
B
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727
            pte_addr = ((pde & PHYS_ADDR_MASK) + (((addr >> 12) & 0x1ff) << 3)) &
B
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728
                env->a20_mask;
B
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729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760 761 762
            pte = ldq_phys(pte_addr);
            if (!(pte & PG_PRESENT_MASK)) {
                error_code = 0;
                goto do_fault;
            }
            if (!(env->efer & MSR_EFER_NXE) && (pte & PG_NX_MASK)) {
                error_code = PG_ERROR_RSVD_MASK;
                goto do_fault;
            }
            /* combine pde and pte nx, user and rw protections */
            ptep &= pte ^ PG_NX_MASK;
            ptep ^= PG_NX_MASK;
            if ((ptep & PG_NX_MASK) && is_write1 == 2)
                goto do_fault_protect; 
            if (is_user) {
                if (!(ptep & PG_USER_MASK))
                    goto do_fault_protect;
                if (is_write && !(ptep & PG_RW_MASK))
                    goto do_fault_protect;
            } else {
                if ((env->cr[0] & CR0_WP_MASK) &&
                    is_write && !(ptep & PG_RW_MASK)) 
                    goto do_fault_protect;
            }
            is_dirty = is_write && !(pte & PG_DIRTY_MASK);
            if (!(pte & PG_ACCESSED_MASK) || is_dirty) {
                pte |= PG_ACCESSED_MASK;
                if (is_dirty)
                    pte |= PG_DIRTY_MASK;
                stl_phys_notdirty(pte_addr, pte);
            }
            page_size = 4096;
            virt_addr = addr & ~0xfff;
            pte = pte & (PHYS_ADDR_MASK | 0xfff);
B
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763
        }
B
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764
    } else {
B
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765 766
        uint32_t pde;

B
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767
        /* page directory entry */
768
        pde_addr = ((env->cr[3] & ~0xfff) + ((addr >> 20) & 0xffc)) & 
B
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769
            env->a20_mask;
B
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770
        pde = ldl_phys(pde_addr);
B
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771
        if (!(pde & PG_PRESENT_MASK)) {
B
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772 773 774
            error_code = 0;
            goto do_fault;
        }
B
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775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792
        /* if PSE bit is set, then we use a 4MB page */
        if ((pde & PG_PSE_MASK) && (env->cr[4] & CR4_PSE_MASK)) {
            page_size = 4096 * 1024;
            if (is_user) {
                if (!(pde & PG_USER_MASK))
                    goto do_fault_protect;
                if (is_write && !(pde & PG_RW_MASK))
                    goto do_fault_protect;
            } else {
                if ((env->cr[0] & CR0_WP_MASK) && 
                    is_write && !(pde & PG_RW_MASK)) 
                    goto do_fault_protect;
            }
            is_dirty = is_write && !(pde & PG_DIRTY_MASK);
            if (!(pde & PG_ACCESSED_MASK) || is_dirty) {
                pde |= PG_ACCESSED_MASK;
                if (is_dirty)
                    pde |= PG_DIRTY_MASK;
B
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793
                stl_phys_notdirty(pde_addr, pde);
B
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794 795 796 797 798
            }
        
            pte = pde & ~( (page_size - 1) & ~0xfff); /* align to page_size */
            ptep = pte;
            virt_addr = addr & ~(page_size - 1);
B
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799
        } else {
B
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800 801
            if (!(pde & PG_ACCESSED_MASK)) {
                pde |= PG_ACCESSED_MASK;
B
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802
                stl_phys_notdirty(pde_addr, pde);
B
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803 804 805 806 807
            }

            /* page directory entry */
            pte_addr = ((pde & ~0xfff) + ((addr >> 10) & 0xffc)) & 
                env->a20_mask;
B
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808
            pte = ldl_phys(pte_addr);
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809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829
            if (!(pte & PG_PRESENT_MASK)) {
                error_code = 0;
                goto do_fault;
            }
            /* combine pde and pte user and rw protections */
            ptep = pte & pde;
            if (is_user) {
                if (!(ptep & PG_USER_MASK))
                    goto do_fault_protect;
                if (is_write && !(ptep & PG_RW_MASK))
                    goto do_fault_protect;
            } else {
                if ((env->cr[0] & CR0_WP_MASK) &&
                    is_write && !(ptep & PG_RW_MASK)) 
                    goto do_fault_protect;
            }
            is_dirty = is_write && !(pte & PG_DIRTY_MASK);
            if (!(pte & PG_ACCESSED_MASK) || is_dirty) {
                pte |= PG_ACCESSED_MASK;
                if (is_dirty)
                    pte |= PG_DIRTY_MASK;
B
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830
                stl_phys_notdirty(pte_addr, pte);
B
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831 832 833
            }
            page_size = 4096;
            virt_addr = addr & ~0xfff;
B
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834
        }
B
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835 836 837 838 839 840 841 842 843 844 845 846 847 848 849
    }
    /* the page can be put in the TLB */
    prot = PAGE_READ;
    if (!(ptep & PG_NX_MASK))
        prot |= PAGE_EXEC;
    if (pte & PG_DIRTY_MASK) {
        /* only set write access if already dirty... otherwise wait
           for dirty access */
        if (is_user) {
            if (ptep & PG_RW_MASK)
                prot |= PAGE_WRITE;
        } else {
            if (!(env->cr[0] & CR0_WP_MASK) ||
                (ptep & PG_RW_MASK))
                prot |= PAGE_WRITE;
850
        }
B
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851 852
    }
 do_mapping:
853
    pte = pte & env->a20_mask;
B
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854

855 856 857 858 859 860
    /* Even if 4MB pages, we map only one 4KB page in the cache to
       avoid filling it too fast */
    page_offset = (addr & TARGET_PAGE_MASK) & (page_size - 1);
    paddr = (pte & TARGET_PAGE_MASK) + page_offset;
    vaddr = virt_addr + page_offset;
    
B
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861
    ret = tlb_set_page_exec(env, vaddr, paddr, prot, is_user, is_softmmu);
B
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862 863 864 865 866
    return ret;
 do_fault_protect:
    error_code = PG_ERROR_P_MASK;
 do_fault:
    env->cr[2] = addr;
B
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867
    error_code |= (is_write << PG_ERROR_W_BIT);
B
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868
    if (is_user)
B
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869 870 871 872 873 874
        error_code |= PG_ERROR_U_MASK;
    if (is_write1 == 2 && 
        (env->efer & MSR_EFER_NXE) && 
        (env->cr[4] & CR4_PAE_MASK))
        error_code |= PG_ERROR_I_D_MASK;
    env->error_code = error_code;
B
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875
    env->exception_index = EXCP0E_PAGE;
B
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876 877
    return 1;
}
878

879
target_phys_addr_t cpu_get_phys_page_debug(CPUState *env, target_ulong addr)
880
{
881
    uint32_t pde_addr, pte_addr;
882 883
    uint32_t pde, pte, paddr, page_offset, page_size;

884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900
    if (env->cr[4] & CR4_PAE_MASK) {
        uint32_t pdpe_addr, pde_addr, pte_addr;
        uint32_t pdpe;

        /* XXX: we only use 32 bit physical addresses */
#ifdef TARGET_X86_64
        if (env->hflags & HF_LMA_MASK) {
            uint32_t pml4e_addr, pml4e;
            int32_t sext;

            /* test virtual address sign extension */
            sext = (int64_t)addr >> 47;
            if (sext != 0 && sext != -1)
                return -1;
            
            pml4e_addr = ((env->cr[3] & ~0xfff) + (((addr >> 39) & 0x1ff) << 3)) & 
                env->a20_mask;
B
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901
            pml4e = ldl_phys(pml4e_addr);
902 903 904 905 906
            if (!(pml4e & PG_PRESENT_MASK))
                return -1;
            
            pdpe_addr = ((pml4e & ~0xfff) + (((addr >> 30) & 0x1ff) << 3)) & 
                env->a20_mask;
B
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907
            pdpe = ldl_phys(pdpe_addr);
908 909 910 911 912
            if (!(pdpe & PG_PRESENT_MASK))
                return -1;
        } else 
#endif
        {
913
            pdpe_addr = ((env->cr[3] & ~0x1f) + ((addr >> 27) & 0x18)) & 
914
                env->a20_mask;
B
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915
            pdpe = ldl_phys(pdpe_addr);
916 917 918 919 920 921
            if (!(pdpe & PG_PRESENT_MASK))
                return -1;
        }

        pde_addr = ((pdpe & ~0xfff) + (((addr >> 21) & 0x1ff) << 3)) &
            env->a20_mask;
B
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922
        pde = ldl_phys(pde_addr);
923
        if (!(pde & PG_PRESENT_MASK)) {
924
            return -1;
925 926 927 928 929 930 931 932 933 934
        }
        if (pde & PG_PSE_MASK) {
            /* 2 MB page */
            page_size = 2048 * 1024;
            pte = pde & ~( (page_size - 1) & ~0xfff); /* align to page_size */
        } else {
            /* 4 KB page */
            pte_addr = ((pde & ~0xfff) + (((addr >> 12) & 0x1ff) << 3)) &
                env->a20_mask;
            page_size = 4096;
B
bellard 已提交
935
            pte = ldl_phys(pte_addr);
936 937 938 939 940
        }
    } else {
        if (!(env->cr[0] & CR0_PG_MASK)) {
            pte = addr;
            page_size = 4096;
941 942
        } else {
            /* page directory entry */
943
            pde_addr = ((env->cr[3] & ~0xfff) + ((addr >> 20) & 0xffc)) & env->a20_mask;
B
bellard 已提交
944
            pde = ldl_phys(pde_addr);
945
            if (!(pde & PG_PRESENT_MASK)) 
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                return -1;
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            if ((pde & PG_PSE_MASK) && (env->cr[4] & CR4_PSE_MASK)) {
                pte = pde & ~0x003ff000; /* align to 4MB */
                page_size = 4096 * 1024;
            } else {
                /* page directory entry */
                pte_addr = ((pde & ~0xfff) + ((addr >> 10) & 0xffc)) & env->a20_mask;
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                pte = ldl_phys(pte_addr);
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                if (!(pte & PG_PRESENT_MASK))
                    return -1;
                page_size = 4096;
            }
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        }
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        pte = pte & env->a20_mask;
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    }
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    page_offset = (addr & TARGET_PAGE_MASK) & (page_size - 1);
    paddr = (pte & TARGET_PAGE_MASK) + page_offset;
    return paddr;
}
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#endif /* !CONFIG_USER_ONLY */
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#if defined(USE_CODE_COPY)
struct fpstate {
    uint16_t fpuc;
    uint16_t dummy1;
    uint16_t fpus;
    uint16_t dummy2;
    uint16_t fptag;
    uint16_t dummy3;

    uint32_t fpip;
    uint32_t fpcs;
    uint32_t fpoo;
    uint32_t fpos;
    uint8_t fpregs1[8 * 10];
};

void restore_native_fp_state(CPUState *env)
{
    int fptag, i, j;
    struct fpstate fp1, *fp = &fp1;
    
    fp->fpuc = env->fpuc;
    fp->fpus = (env->fpus & ~0x3800) | (env->fpstt & 0x7) << 11;
    fptag = 0;
    for (i=7; i>=0; i--) {
	fptag <<= 2;
	if (env->fptags[i]) {
            fptag |= 3;
        } else {
            /* the FPU automatically computes it */
        }
    }
    fp->fptag = fptag;
    j = env->fpstt;
    for(i = 0;i < 8; i++) {
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        memcpy(&fp->fpregs1[i * 10], &env->fpregs[j].d, 10);
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        j = (j + 1) & 7;
    }
    asm volatile ("frstor %0" : "=m" (*fp));
    env->native_fp_regs = 1;
}
 
void save_native_fp_state(CPUState *env)
{
    int fptag, i, j;
    uint16_t fpuc;
    struct fpstate fp1, *fp = &fp1;

    asm volatile ("fsave %0" : : "m" (*fp));
    env->fpuc = fp->fpuc;
    env->fpstt = (fp->fpus >> 11) & 7;
    env->fpus = fp->fpus & ~0x3800;
    fptag = fp->fptag;
    for(i = 0;i < 8; i++) {
        env->fptags[i] = ((fptag & 3) == 3);
        fptag >>= 2;
    }
    j = env->fpstt;
    for(i = 0;i < 8; i++) {
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        memcpy(&env->fpregs[j].d, &fp->fpregs1[i * 10], 10);
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        j = (j + 1) & 7;
    }
    /* we must restore the default rounding state */
    /* XXX: we do not restore the exception state */
    fpuc = 0x037f | (env->fpuc & (3 << 10));
    asm volatile("fldcw %0" : : "m" (fpuc));
    env->native_fp_regs = 0;
}
#endif