exec.c 68.1 KB
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/*
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 *  virtual page mapping and translated block handling
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 * 
 *  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
 */
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#include "config.h"
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#ifdef _WIN32
#include <windows.h>
#else
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#include <sys/types.h>
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#include <sys/mman.h>
#endif
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#include <stdlib.h>
#include <stdio.h>
#include <stdarg.h>
#include <string.h>
#include <errno.h>
#include <unistd.h>
#include <inttypes.h>

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#include "cpu.h"
#include "exec-all.h"
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#if defined(CONFIG_USER_ONLY)
#include <qemu.h>
#endif
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//#define DEBUG_TB_INVALIDATE
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//#define DEBUG_FLUSH
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//#define DEBUG_TLB
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/* make various TB consistency checks */
//#define DEBUG_TB_CHECK 
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//#define DEBUG_TLB_CHECK 
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/* threshold to flush the translated code buffer */
#define CODE_GEN_BUFFER_MAX_SIZE (CODE_GEN_BUFFER_SIZE - CODE_GEN_MAX_SIZE)

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#define SMC_BITMAP_USE_THRESHOLD 10

#define MMAP_AREA_START        0x00000000
#define MMAP_AREA_END          0xa8000000
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#if defined(TARGET_SPARC64)
#define TARGET_PHYS_ADDR_SPACE_BITS 41
#elif defined(TARGET_PPC64)
#define TARGET_PHYS_ADDR_SPACE_BITS 42
#else
/* Note: for compatibility with kqemu, we use 32 bits for x86_64 */
#define TARGET_PHYS_ADDR_SPACE_BITS 32
#endif

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TranslationBlock tbs[CODE_GEN_MAX_BLOCKS];
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TranslationBlock *tb_phys_hash[CODE_GEN_PHYS_HASH_SIZE];
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int nb_tbs;
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/* any access to the tbs or the page table must use this lock */
spinlock_t tb_lock = SPIN_LOCK_UNLOCKED;
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uint8_t code_gen_buffer[CODE_GEN_BUFFER_SIZE] __attribute__((aligned (32)));
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uint8_t *code_gen_ptr;

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int phys_ram_size;
int phys_ram_fd;
uint8_t *phys_ram_base;
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uint8_t *phys_ram_dirty;
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CPUState *first_cpu;
/* current CPU in the current thread. It is only valid inside
   cpu_exec() */
CPUState *cpu_single_env; 

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typedef struct PageDesc {
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    /* list of TBs intersecting this ram page */
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    TranslationBlock *first_tb;
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    /* in order to optimize self modifying code, we count the number
       of lookups we do to a given page to use a bitmap */
    unsigned int code_write_count;
    uint8_t *code_bitmap;
#if defined(CONFIG_USER_ONLY)
    unsigned long flags;
#endif
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} PageDesc;

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typedef struct PhysPageDesc {
    /* offset in host memory of the page + io_index in the low 12 bits */
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    uint32_t phys_offset;
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} PhysPageDesc;

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#define L2_BITS 10
#define L1_BITS (32 - L2_BITS - TARGET_PAGE_BITS)

#define L1_SIZE (1 << L1_BITS)
#define L2_SIZE (1 << L2_BITS)

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static void io_mem_init(void);
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unsigned long qemu_real_host_page_size;
unsigned long qemu_host_page_bits;
unsigned long qemu_host_page_size;
unsigned long qemu_host_page_mask;
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/* XXX: for system emulation, it could just be an array */
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static PageDesc *l1_map[L1_SIZE];
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PhysPageDesc **l1_phys_map;
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/* io memory support */
CPUWriteMemoryFunc *io_mem_write[IO_MEM_NB_ENTRIES][4];
CPUReadMemoryFunc *io_mem_read[IO_MEM_NB_ENTRIES][4];
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void *io_mem_opaque[IO_MEM_NB_ENTRIES];
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static int io_mem_nb;

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/* log support */
char *logfilename = "/tmp/qemu.log";
FILE *logfile;
int loglevel;

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/* statistics */
static int tlb_flush_count;
static int tb_flush_count;
static int tb_phys_invalidate_count;

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static void page_init(void)
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{
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    /* NOTE: we can always suppose that qemu_host_page_size >=
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       TARGET_PAGE_SIZE */
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#ifdef _WIN32
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    {
        SYSTEM_INFO system_info;
        DWORD old_protect;
        
        GetSystemInfo(&system_info);
        qemu_real_host_page_size = system_info.dwPageSize;
        
        VirtualProtect(code_gen_buffer, sizeof(code_gen_buffer),
                       PAGE_EXECUTE_READWRITE, &old_protect);
    }
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#else
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    qemu_real_host_page_size = getpagesize();
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    {
        unsigned long start, end;

        start = (unsigned long)code_gen_buffer;
        start &= ~(qemu_real_host_page_size - 1);
        
        end = (unsigned long)code_gen_buffer + sizeof(code_gen_buffer);
        end += qemu_real_host_page_size - 1;
        end &= ~(qemu_real_host_page_size - 1);
        
        mprotect((void *)start, end - start, 
                 PROT_READ | PROT_WRITE | PROT_EXEC);
    }
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#endif
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    if (qemu_host_page_size == 0)
        qemu_host_page_size = qemu_real_host_page_size;
    if (qemu_host_page_size < TARGET_PAGE_SIZE)
        qemu_host_page_size = TARGET_PAGE_SIZE;
    qemu_host_page_bits = 0;
    while ((1 << qemu_host_page_bits) < qemu_host_page_size)
        qemu_host_page_bits++;
    qemu_host_page_mask = ~(qemu_host_page_size - 1);
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    l1_phys_map = qemu_vmalloc(L1_SIZE * sizeof(void *));
    memset(l1_phys_map, 0, L1_SIZE * sizeof(void *));
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}

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static inline PageDesc *page_find_alloc(unsigned int index)
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{
    PageDesc **lp, *p;

    lp = &l1_map[index >> L2_BITS];
    p = *lp;
    if (!p) {
        /* allocate if not found */
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        p = qemu_malloc(sizeof(PageDesc) * L2_SIZE);
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        memset(p, 0, sizeof(PageDesc) * L2_SIZE);
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        *lp = p;
    }
    return p + (index & (L2_SIZE - 1));
}

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static inline PageDesc *page_find(unsigned int index)
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{
    PageDesc *p;

    p = l1_map[index >> L2_BITS];
    if (!p)
        return 0;
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    return p + (index & (L2_SIZE - 1));
}

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static PhysPageDesc *phys_page_find_alloc(target_phys_addr_t index, int alloc)
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{
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    void **lp, **p;
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    p = (void **)l1_phys_map;
#if TARGET_PHYS_ADDR_SPACE_BITS > 32

#if TARGET_PHYS_ADDR_SPACE_BITS > (32 + L1_BITS)
#error unsupported TARGET_PHYS_ADDR_SPACE_BITS
#endif
    lp = p + ((index >> (L1_BITS + L2_BITS)) & (L1_SIZE - 1));
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    p = *lp;
    if (!p) {
        /* allocate if not found */
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        if (!alloc)
            return NULL;
        p = qemu_vmalloc(sizeof(void *) * L1_SIZE);
        memset(p, 0, sizeof(void *) * L1_SIZE);
        *lp = p;
    }
#endif
    lp = p + ((index >> L2_BITS) & (L1_SIZE - 1));
    p = *lp;
    if (!p) {
        /* allocate if not found */
        if (!alloc)
            return NULL;
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        p = qemu_vmalloc(sizeof(PhysPageDesc) * L2_SIZE);
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        memset(p, 0, sizeof(PhysPageDesc) * L2_SIZE);
        *lp = p;
    }
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    return ((PhysPageDesc *)p) + (index & (L2_SIZE - 1));
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}

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static inline PhysPageDesc *phys_page_find(target_phys_addr_t index)
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{
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    return phys_page_find_alloc(index, 0);
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}

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#if !defined(CONFIG_USER_ONLY)
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static void tlb_protect_code(ram_addr_t ram_addr);
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static void tlb_unprotect_code_phys(CPUState *env, ram_addr_t ram_addr, 
                                    target_ulong vaddr);
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#endif
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void cpu_exec_init(CPUState *env)
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{
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    CPUState **penv;
    int cpu_index;

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    if (!code_gen_ptr) {
        code_gen_ptr = code_gen_buffer;
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        page_init();
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        io_mem_init();
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    }
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    env->next_cpu = NULL;
    penv = &first_cpu;
    cpu_index = 0;
    while (*penv != NULL) {
        penv = (CPUState **)&(*penv)->next_cpu;
        cpu_index++;
    }
    env->cpu_index = cpu_index;
    *penv = env;
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}

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static inline void invalidate_page_bitmap(PageDesc *p)
{
    if (p->code_bitmap) {
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        qemu_free(p->code_bitmap);
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        p->code_bitmap = NULL;
    }
    p->code_write_count = 0;
}

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/* set to NULL all the 'first_tb' fields in all PageDescs */
static void page_flush_tb(void)
{
    int i, j;
    PageDesc *p;

    for(i = 0; i < L1_SIZE; i++) {
        p = l1_map[i];
        if (p) {
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            for(j = 0; j < L2_SIZE; j++) {
                p->first_tb = NULL;
                invalidate_page_bitmap(p);
                p++;
            }
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        }
    }
}

/* flush all the translation blocks */
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/* XXX: tb_flush is currently not thread safe */
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void tb_flush(CPUState *env1)
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{
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    CPUState *env;
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#if defined(DEBUG_FLUSH)
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    printf("qemu: flush code_size=%d nb_tbs=%d avg_tb_size=%d\n", 
           code_gen_ptr - code_gen_buffer, 
           nb_tbs, 
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           nb_tbs > 0 ? (code_gen_ptr - code_gen_buffer) / nb_tbs : 0);
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#endif
    nb_tbs = 0;
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    for(env = first_cpu; env != NULL; env = env->next_cpu) {
        memset (env->tb_jmp_cache, 0, TB_JMP_CACHE_SIZE * sizeof (void *));
    }
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    memset (tb_phys_hash, 0, CODE_GEN_PHYS_HASH_SIZE * sizeof (void *));
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    page_flush_tb();
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    code_gen_ptr = code_gen_buffer;
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    /* XXX: flush processor icache at this point if cache flush is
       expensive */
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    tb_flush_count++;
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}

#ifdef DEBUG_TB_CHECK

static void tb_invalidate_check(unsigned long address)
{
    TranslationBlock *tb;
    int i;
    address &= TARGET_PAGE_MASK;
    for(i = 0;i < CODE_GEN_HASH_SIZE; i++) {
        for(tb = tb_hash[i]; tb != NULL; tb = tb->hash_next) {
            if (!(address + TARGET_PAGE_SIZE <= tb->pc ||
                  address >= tb->pc + tb->size)) {
                printf("ERROR invalidate: address=%08lx PC=%08lx size=%04x\n",
                       address, tb->pc, tb->size);
            }
        }
    }
}

/* verify that all the pages have correct rights for code */
static void tb_page_check(void)
{
    TranslationBlock *tb;
    int i, flags1, flags2;
    
    for(i = 0;i < CODE_GEN_HASH_SIZE; i++) {
        for(tb = tb_hash[i]; tb != NULL; tb = tb->hash_next) {
            flags1 = page_get_flags(tb->pc);
            flags2 = page_get_flags(tb->pc + tb->size - 1);
            if ((flags1 & PAGE_WRITE) || (flags2 & PAGE_WRITE)) {
                printf("ERROR page flags: PC=%08lx size=%04x f1=%x f2=%x\n",
                       tb->pc, tb->size, flags1, flags2);
            }
        }
    }
}

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void tb_jmp_check(TranslationBlock *tb)
{
    TranslationBlock *tb1;
    unsigned int n1;

    /* suppress any remaining jumps to this TB */
    tb1 = tb->jmp_first;
    for(;;) {
        n1 = (long)tb1 & 3;
        tb1 = (TranslationBlock *)((long)tb1 & ~3);
        if (n1 == 2)
            break;
        tb1 = tb1->jmp_next[n1];
    }
    /* check end of list */
    if (tb1 != tb) {
        printf("ERROR: jmp_list from 0x%08lx\n", (long)tb);
    }
}

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#endif

/* invalidate one TB */
static inline void tb_remove(TranslationBlock **ptb, TranslationBlock *tb,
                             int next_offset)
{
    TranslationBlock *tb1;
    for(;;) {
        tb1 = *ptb;
        if (tb1 == tb) {
            *ptb = *(TranslationBlock **)((char *)tb1 + next_offset);
            break;
        }
        ptb = (TranslationBlock **)((char *)tb1 + next_offset);
    }
}

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static inline void tb_page_remove(TranslationBlock **ptb, TranslationBlock *tb)
{
    TranslationBlock *tb1;
    unsigned int n1;

    for(;;) {
        tb1 = *ptb;
        n1 = (long)tb1 & 3;
        tb1 = (TranslationBlock *)((long)tb1 & ~3);
        if (tb1 == tb) {
            *ptb = tb1->page_next[n1];
            break;
        }
        ptb = &tb1->page_next[n1];
    }
}

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static inline void tb_jmp_remove(TranslationBlock *tb, int n)
{
    TranslationBlock *tb1, **ptb;
    unsigned int n1;

    ptb = &tb->jmp_next[n];
    tb1 = *ptb;
    if (tb1) {
        /* find tb(n) in circular list */
        for(;;) {
            tb1 = *ptb;
            n1 = (long)tb1 & 3;
            tb1 = (TranslationBlock *)((long)tb1 & ~3);
            if (n1 == n && tb1 == tb)
                break;
            if (n1 == 2) {
                ptb = &tb1->jmp_first;
            } else {
                ptb = &tb1->jmp_next[n1];
            }
        }
        /* now we can suppress tb(n) from the list */
        *ptb = tb->jmp_next[n];

        tb->jmp_next[n] = NULL;
    }
}

/* reset the jump entry 'n' of a TB so that it is not chained to
   another TB */
static inline void tb_reset_jump(TranslationBlock *tb, int n)
{
    tb_set_jmp_target(tb, n, (unsigned long)(tb->tc_ptr + tb->tb_next_offset[n]));
}

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static inline void tb_phys_invalidate(TranslationBlock *tb, unsigned int page_addr)
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{
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    CPUState *env;
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    PageDesc *p;
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    unsigned int h, n1;
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    target_ulong phys_pc;
    TranslationBlock *tb1, *tb2;
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    /* remove the TB from the hash list */
    phys_pc = tb->page_addr[0] + (tb->pc & ~TARGET_PAGE_MASK);
    h = tb_phys_hash_func(phys_pc);
    tb_remove(&tb_phys_hash[h], tb, 
              offsetof(TranslationBlock, phys_hash_next));

    /* remove the TB from the page list */
    if (tb->page_addr[0] != page_addr) {
        p = page_find(tb->page_addr[0] >> TARGET_PAGE_BITS);
        tb_page_remove(&p->first_tb, tb);
        invalidate_page_bitmap(p);
    }
    if (tb->page_addr[1] != -1 && tb->page_addr[1] != page_addr) {
        p = page_find(tb->page_addr[1] >> TARGET_PAGE_BITS);
        tb_page_remove(&p->first_tb, tb);
        invalidate_page_bitmap(p);
    }

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    tb_invalidated_flag = 1;
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    /* remove the TB from the hash list */
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    h = tb_jmp_cache_hash_func(tb->pc);
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    for(env = first_cpu; env != NULL; env = env->next_cpu) {
        if (env->tb_jmp_cache[h] == tb)
            env->tb_jmp_cache[h] = NULL;
    }
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    /* suppress this TB from the two jump lists */
    tb_jmp_remove(tb, 0);
    tb_jmp_remove(tb, 1);

    /* suppress any remaining jumps to this TB */
    tb1 = tb->jmp_first;
    for(;;) {
        n1 = (long)tb1 & 3;
        if (n1 == 2)
            break;
        tb1 = (TranslationBlock *)((long)tb1 & ~3);
        tb2 = tb1->jmp_next[n1];
        tb_reset_jump(tb1, n1);
        tb1->jmp_next[n1] = NULL;
        tb1 = tb2;
    }
    tb->jmp_first = (TranslationBlock *)((long)tb | 2); /* fail safe */
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    tb_phys_invalidate_count++;
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}

static inline void set_bits(uint8_t *tab, int start, int len)
{
    int end, mask, end1;

    end = start + len;
    tab += start >> 3;
    mask = 0xff << (start & 7);
    if ((start & ~7) == (end & ~7)) {
        if (start < end) {
            mask &= ~(0xff << (end & 7));
            *tab |= mask;
        }
    } else {
        *tab++ |= mask;
        start = (start + 8) & ~7;
        end1 = end & ~7;
        while (start < end1) {
            *tab++ = 0xff;
            start += 8;
        }
        if (start < end) {
            mask = ~(0xff << (end & 7));
            *tab |= mask;
        }
    }
}

static void build_page_bitmap(PageDesc *p)
{
    int n, tb_start, tb_end;
    TranslationBlock *tb;
    
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    p->code_bitmap = qemu_malloc(TARGET_PAGE_SIZE / 8);
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    if (!p->code_bitmap)
        return;
    memset(p->code_bitmap, 0, TARGET_PAGE_SIZE / 8);

    tb = p->first_tb;
    while (tb != NULL) {
        n = (long)tb & 3;
        tb = (TranslationBlock *)((long)tb & ~3);
        /* NOTE: this is subtle as a TB may span two physical pages */
        if (n == 0) {
            /* NOTE: tb_end may be after the end of the page, but
               it is not a problem */
            tb_start = tb->pc & ~TARGET_PAGE_MASK;
            tb_end = tb_start + tb->size;
            if (tb_end > TARGET_PAGE_SIZE)
                tb_end = TARGET_PAGE_SIZE;
        } else {
            tb_start = 0;
            tb_end = ((tb->pc + tb->size) & ~TARGET_PAGE_MASK);
        }
        set_bits(p->code_bitmap, tb_start, tb_end - tb_start);
        tb = tb->page_next[n];
    }
}

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#ifdef TARGET_HAS_PRECISE_SMC

static void tb_gen_code(CPUState *env, 
                        target_ulong pc, target_ulong cs_base, int flags,
                        int cflags)
{
    TranslationBlock *tb;
    uint8_t *tc_ptr;
    target_ulong phys_pc, phys_page2, virt_page2;
    int code_gen_size;

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    phys_pc = get_phys_addr_code(env, pc);
    tb = tb_alloc(pc);
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    if (!tb) {
        /* flush must be done */
        tb_flush(env);
        /* cannot fail at this point */
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        tb = tb_alloc(pc);
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    }
    tc_ptr = code_gen_ptr;
    tb->tc_ptr = tc_ptr;
    tb->cs_base = cs_base;
    tb->flags = flags;
    tb->cflags = cflags;
    cpu_gen_code(env, tb, CODE_GEN_MAX_SIZE, &code_gen_size);
    code_gen_ptr = (void *)(((unsigned long)code_gen_ptr + code_gen_size + CODE_GEN_ALIGN - 1) & ~(CODE_GEN_ALIGN - 1));
    
    /* check next page if needed */
B
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    virt_page2 = (pc + tb->size - 1) & TARGET_PAGE_MASK;
B
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591
    phys_page2 = -1;
B
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592
    if ((pc & TARGET_PAGE_MASK) != virt_page2) {
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        phys_page2 = get_phys_addr_code(env, virt_page2);
    }
    tb_link_phys(tb, phys_pc, phys_page2);
}
#endif
    
599 600
/* invalidate all TBs which intersect with the target physical page
   starting in range [start;end[. NOTE: start and end must refer to
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   the same physical page. 'is_cpu_write_access' should be true if called
   from a real cpu write access: the virtual CPU will exit the current
   TB if code is modified inside this TB. */
void tb_invalidate_phys_page_range(target_ulong start, target_ulong end, 
                                   int is_cpu_write_access)
{
    int n, current_tb_modified, current_tb_not_found, current_flags;
    CPUState *env = cpu_single_env;
609
    PageDesc *p;
610
    TranslationBlock *tb, *tb_next, *current_tb, *saved_tb;
611
    target_ulong tb_start, tb_end;
B
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    target_ulong current_pc, current_cs_base;
613 614 615 616 617

    p = page_find(start >> TARGET_PAGE_BITS);
    if (!p) 
        return;
    if (!p->code_bitmap && 
B
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        ++p->code_write_count >= SMC_BITMAP_USE_THRESHOLD &&
        is_cpu_write_access) {
620 621 622 623 624 625
        /* build code bitmap */
        build_page_bitmap(p);
    }

    /* we remove all the TBs in the range [start, end[ */
    /* XXX: see if in some cases it could be faster to invalidate all the code */
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    current_tb_not_found = is_cpu_write_access;
    current_tb_modified = 0;
    current_tb = NULL; /* avoid warning */
    current_pc = 0; /* avoid warning */
    current_cs_base = 0; /* avoid warning */
    current_flags = 0; /* avoid warning */
632 633 634 635 636 637 638 639 640 641 642 643 644 645 646 647
    tb = p->first_tb;
    while (tb != NULL) {
        n = (long)tb & 3;
        tb = (TranslationBlock *)((long)tb & ~3);
        tb_next = tb->page_next[n];
        /* NOTE: this is subtle as a TB may span two physical pages */
        if (n == 0) {
            /* NOTE: tb_end may be after the end of the page, but
               it is not a problem */
            tb_start = tb->page_addr[0] + (tb->pc & ~TARGET_PAGE_MASK);
            tb_end = tb_start + tb->size;
        } else {
            tb_start = tb->page_addr[1];
            tb_end = tb_start + ((tb->pc + tb->size) & ~TARGET_PAGE_MASK);
        }
        if (!(tb_end <= start || tb_start >= end)) {
B
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648 649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676 677
#ifdef TARGET_HAS_PRECISE_SMC
            if (current_tb_not_found) {
                current_tb_not_found = 0;
                current_tb = NULL;
                if (env->mem_write_pc) {
                    /* now we have a real cpu fault */
                    current_tb = tb_find_pc(env->mem_write_pc);
                }
            }
            if (current_tb == tb &&
                !(current_tb->cflags & CF_SINGLE_INSN)) {
                /* If we are modifying the current TB, we must stop
                its execution. We could be more precise by checking
                that the modification is after the current PC, but it
                would require a specialized function to partially
                restore the CPU state */
                
                current_tb_modified = 1;
                cpu_restore_state(current_tb, env, 
                                  env->mem_write_pc, NULL);
#if defined(TARGET_I386)
                current_flags = env->hflags;
                current_flags |= (env->eflags & (IOPL_MASK | TF_MASK | VM_MASK));
                current_cs_base = (target_ulong)env->segs[R_CS].base;
                current_pc = current_cs_base + env->eip;
#else
#error unsupported CPU
#endif
            }
#endif /* TARGET_HAS_PRECISE_SMC */
678 679 680 681 682 683 684
            /* we need to do that to handle the case where a signal
               occurs while doing tb_phys_invalidate() */
            saved_tb = NULL;
            if (env) {
                saved_tb = env->current_tb;
                env->current_tb = NULL;
            }
685
            tb_phys_invalidate(tb, -1);
686 687 688 689 690
            if (env) {
                env->current_tb = saved_tb;
                if (env->interrupt_request && env->current_tb)
                    cpu_interrupt(env, env->interrupt_request);
            }
691 692 693 694 695 696 697
        }
        tb = tb_next;
    }
#if !defined(CONFIG_USER_ONLY)
    /* if no code remaining, no need to continue to use slow writes */
    if (!p->first_tb) {
        invalidate_page_bitmap(p);
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        if (is_cpu_write_access) {
            tlb_unprotect_code_phys(env, start, env->mem_write_vaddr);
        }
    }
#endif
#ifdef TARGET_HAS_PRECISE_SMC
    if (current_tb_modified) {
        /* we generate a block containing just the instruction
           modifying the memory. It will ensure that it cannot modify
           itself */
708
        env->current_tb = NULL;
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        tb_gen_code(env, current_pc, current_cs_base, current_flags, 
                    CF_SINGLE_INSN);
        cpu_resume_from_signal(env, NULL);
712
    }
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#endif
714
}
B
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716
/* len must be <= 8 and start must be a multiple of len */
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static inline void tb_invalidate_phys_page_fast(target_ulong start, int len)
718 719 720
{
    PageDesc *p;
    int offset, b;
721
#if 0
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    if (1) {
        if (loglevel) {
            fprintf(logfile, "modifying code at 0x%x size=%d EIP=%x PC=%08x\n", 
                   cpu_single_env->mem_write_vaddr, len, 
                   cpu_single_env->eip, 
                   cpu_single_env->eip + (long)cpu_single_env->segs[R_CS].base);
        }
729 730
    }
#endif
731 732 733 734 735 736 737 738 739 740
    p = page_find(start >> TARGET_PAGE_BITS);
    if (!p) 
        return;
    if (p->code_bitmap) {
        offset = start & ~TARGET_PAGE_MASK;
        b = p->code_bitmap[offset >> 3] >> (offset & 7);
        if (b & ((1 << len) - 1))
            goto do_invalidate;
    } else {
    do_invalidate:
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        tb_invalidate_phys_page_range(start, start + len, 1);
742 743 744 745
    }
}

#if !defined(CONFIG_SOFTMMU)
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static void tb_invalidate_phys_page(target_ulong addr, 
                                    unsigned long pc, void *puc)
748
{
B
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    int n, current_flags, current_tb_modified;
    target_ulong current_pc, current_cs_base;
751
    PageDesc *p;
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    TranslationBlock *tb, *current_tb;
#ifdef TARGET_HAS_PRECISE_SMC
    CPUState *env = cpu_single_env;
#endif
756 757 758 759 760 761

    addr &= TARGET_PAGE_MASK;
    p = page_find(addr >> TARGET_PAGE_BITS);
    if (!p) 
        return;
    tb = p->first_tb;
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    current_tb_modified = 0;
    current_tb = NULL;
    current_pc = 0; /* avoid warning */
    current_cs_base = 0; /* avoid warning */
    current_flags = 0; /* avoid warning */
#ifdef TARGET_HAS_PRECISE_SMC
    if (tb && pc != 0) {
        current_tb = tb_find_pc(pc);
    }
#endif
772 773 774
    while (tb != NULL) {
        n = (long)tb & 3;
        tb = (TranslationBlock *)((long)tb & ~3);
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#ifdef TARGET_HAS_PRECISE_SMC
        if (current_tb == tb &&
            !(current_tb->cflags & CF_SINGLE_INSN)) {
                /* If we are modifying the current TB, we must stop
                   its execution. We could be more precise by checking
                   that the modification is after the current PC, but it
                   would require a specialized function to partially
                   restore the CPU state */
            
            current_tb_modified = 1;
            cpu_restore_state(current_tb, env, pc, puc);
#if defined(TARGET_I386)
            current_flags = env->hflags;
            current_flags |= (env->eflags & (IOPL_MASK | TF_MASK | VM_MASK));
            current_cs_base = (target_ulong)env->segs[R_CS].base;
            current_pc = current_cs_base + env->eip;
#else
#error unsupported CPU
#endif
        }
#endif /* TARGET_HAS_PRECISE_SMC */
796 797 798
        tb_phys_invalidate(tb, addr);
        tb = tb->page_next[n];
    }
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    p->first_tb = NULL;
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#ifdef TARGET_HAS_PRECISE_SMC
    if (current_tb_modified) {
        /* we generate a block containing just the instruction
           modifying the memory. It will ensure that it cannot modify
           itself */
805
        env->current_tb = NULL;
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        tb_gen_code(env, current_pc, current_cs_base, current_flags, 
                    CF_SINGLE_INSN);
        cpu_resume_from_signal(env, puc);
    }
#endif
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}
812
#endif
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/* add the tb in the target page and protect it if necessary */
815
static inline void tb_alloc_page(TranslationBlock *tb, 
816
                                 unsigned int n, target_ulong page_addr)
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{
    PageDesc *p;
819 820 821
    TranslationBlock *last_first_tb;

    tb->page_addr[n] = page_addr;
822
    p = page_find_alloc(page_addr >> TARGET_PAGE_BITS);
823 824 825 826
    tb->page_next[n] = p->first_tb;
    last_first_tb = p->first_tb;
    p->first_tb = (TranslationBlock *)((long)tb | n);
    invalidate_page_bitmap(p);
B
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828
#if defined(TARGET_HAS_SMC) || 1
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829

830
#if defined(CONFIG_USER_ONLY)
B
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    if (p->flags & PAGE_WRITE) {
832 833
        target_ulong addr;
        PageDesc *p2;
834 835
        int prot;

B
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        /* force the host page as non writable (writes will have a
           page fault + mprotect overhead) */
838
        page_addr &= qemu_host_page_mask;
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        prot = 0;
840 841 842 843 844 845 846 847 848 849 850
        for(addr = page_addr; addr < page_addr + qemu_host_page_size;
            addr += TARGET_PAGE_SIZE) {

            p2 = page_find (addr >> TARGET_PAGE_BITS);
            if (!p2)
                continue;
            prot |= p2->flags;
            p2->flags &= ~PAGE_WRITE;
            page_get_flags(addr);
          }
        mprotect(g2h(page_addr), qemu_host_page_size, 
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                 (prot & PAGE_BITS) & ~PAGE_WRITE);
#ifdef DEBUG_TB_INVALIDATE
        printf("protecting code page: 0x%08lx\n", 
854
               page_addr);
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#endif
    }
857 858 859 860 861
#else
    /* if some code is already present, then the pages are already
       protected. So we handle the case where only the first TB is
       allocated in a physical page */
    if (!last_first_tb) {
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        tlb_protect_code(page_addr);
863 864
    }
#endif
B
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#endif /* TARGET_HAS_SMC */
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867 868 869 870
}

/* Allocate a new translation block. Flush the translation buffer if
   too many translation blocks or too much generated code. */
B
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TranslationBlock *tb_alloc(target_ulong pc)
B
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{
    TranslationBlock *tb;

    if (nb_tbs >= CODE_GEN_MAX_BLOCKS || 
        (code_gen_ptr - code_gen_buffer) >= CODE_GEN_BUFFER_MAX_SIZE)
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        return NULL;
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    tb = &tbs[nb_tbs++];
    tb->pc = pc;
880
    tb->cflags = 0;
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    return tb;
}

884 885 886 887
/* add a new TB and link it to the physical page tables. phys_page2 is
   (-1) to indicate that only one page contains the TB. */
void tb_link_phys(TranslationBlock *tb, 
                  target_ulong phys_pc, target_ulong phys_page2)
B
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{
889 890 891 892 893 894 895 896
    unsigned int h;
    TranslationBlock **ptb;

    /* add in the physical hash table */
    h = tb_phys_hash_func(phys_pc);
    ptb = &tb_phys_hash[h];
    tb->phys_hash_next = *ptb;
    *ptb = tb;
B
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897 898

    /* add in the page list */
899 900 901 902 903 904
    tb_alloc_page(tb, 0, phys_pc & TARGET_PAGE_MASK);
    if (phys_page2 != -1)
        tb_alloc_page(tb, 1, phys_page2);
    else
        tb->page_addr[1] = -1;

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    tb->jmp_first = (TranslationBlock *)((long)tb | 2);
    tb->jmp_next[0] = NULL;
    tb->jmp_next[1] = NULL;
908 909 910 911 912
#ifdef USE_CODE_COPY
    tb->cflags &= ~CF_FP_USED;
    if (tb->cflags & CF_TB_FP_USED)
        tb->cflags |= CF_FP_USED;
#endif
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913 914 915 916 917 918

    /* init original jump addresses */
    if (tb->tb_next_offset[0] != 0xffff)
        tb_reset_jump(tb, 0);
    if (tb->tb_next_offset[1] != 0xffff)
        tb_reset_jump(tb, 1);
919 920 921 922

#ifdef DEBUG_TB_CHECK
    tb_page_check();
#endif
B
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923 924
}

925 926 927
/* find the TB 'tb' such that tb[0].tc_ptr <= tc_ptr <
   tb[1].tc_ptr. Return NULL if not found */
TranslationBlock *tb_find_pc(unsigned long tc_ptr)
B
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928
{
929 930 931
    int m_min, m_max, m;
    unsigned long v;
    TranslationBlock *tb;
B
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932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954

    if (nb_tbs <= 0)
        return NULL;
    if (tc_ptr < (unsigned long)code_gen_buffer ||
        tc_ptr >= (unsigned long)code_gen_ptr)
        return NULL;
    /* binary search (cf Knuth) */
    m_min = 0;
    m_max = nb_tbs - 1;
    while (m_min <= m_max) {
        m = (m_min + m_max) >> 1;
        tb = &tbs[m];
        v = (unsigned long)tb->tc_ptr;
        if (v == tc_ptr)
            return tb;
        else if (tc_ptr < v) {
            m_max = m - 1;
        } else {
            m_min = m + 1;
        }
    } 
    return &tbs[m_max];
}
B
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955

B
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956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991
static void tb_reset_jump_recursive(TranslationBlock *tb);

static inline void tb_reset_jump_recursive2(TranslationBlock *tb, int n)
{
    TranslationBlock *tb1, *tb_next, **ptb;
    unsigned int n1;

    tb1 = tb->jmp_next[n];
    if (tb1 != NULL) {
        /* find head of list */
        for(;;) {
            n1 = (long)tb1 & 3;
            tb1 = (TranslationBlock *)((long)tb1 & ~3);
            if (n1 == 2)
                break;
            tb1 = tb1->jmp_next[n1];
        }
        /* we are now sure now that tb jumps to tb1 */
        tb_next = tb1;

        /* remove tb from the jmp_first list */
        ptb = &tb_next->jmp_first;
        for(;;) {
            tb1 = *ptb;
            n1 = (long)tb1 & 3;
            tb1 = (TranslationBlock *)((long)tb1 & ~3);
            if (n1 == n && tb1 == tb)
                break;
            ptb = &tb1->jmp_next[n1];
        }
        *ptb = tb->jmp_next[n];
        tb->jmp_next[n] = NULL;
        
        /* suppress the jump to next tb in generated code */
        tb_reset_jump(tb, n);

992
        /* suppress jumps in the tb on which we could have jumped */
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993 994 995 996 997 998 999 1000 1001 1002
        tb_reset_jump_recursive(tb_next);
    }
}

static void tb_reset_jump_recursive(TranslationBlock *tb)
{
    tb_reset_jump_recursive2(tb, 0);
    tb_reset_jump_recursive2(tb, 1);
}

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#if defined(TARGET_HAS_ICE)
B
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1004 1005 1006 1007 1008 1009 1010
static void breakpoint_invalidate(CPUState *env, target_ulong pc)
{
    target_ulong phys_addr;

    phys_addr = cpu_get_phys_page_debug(env, pc);
    tb_invalidate_phys_page_range(phys_addr, phys_addr + 1, 0);
}
B
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#endif
B
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1012

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1013 1014
/* add a breakpoint. EXCP_DEBUG is returned by the CPU loop if a
   breakpoint is reached */
1015
int cpu_breakpoint_insert(CPUState *env, target_ulong pc)
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1016
{
B
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1017
#if defined(TARGET_HAS_ICE)
B
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1018
    int i;
B
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1019
    
B
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1020 1021 1022 1023 1024 1025 1026 1027
    for(i = 0; i < env->nb_breakpoints; i++) {
        if (env->breakpoints[i] == pc)
            return 0;
    }

    if (env->nb_breakpoints >= MAX_BREAKPOINTS)
        return -1;
    env->breakpoints[env->nb_breakpoints++] = pc;
B
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1028 1029
    
    breakpoint_invalidate(env, pc);
B
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1030 1031 1032 1033 1034 1035 1036
    return 0;
#else
    return -1;
#endif
}

/* remove a breakpoint */
1037
int cpu_breakpoint_remove(CPUState *env, target_ulong pc)
B
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1038
{
B
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1039
#if defined(TARGET_HAS_ICE)
B
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1040 1041 1042 1043 1044 1045 1046 1047
    int i;
    for(i = 0; i < env->nb_breakpoints; i++) {
        if (env->breakpoints[i] == pc)
            goto found;
    }
    return -1;
 found:
    env->nb_breakpoints--;
B
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1048 1049
    if (i < env->nb_breakpoints)
      env->breakpoints[i] = env->breakpoints[env->nb_breakpoints];
B
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1050 1051

    breakpoint_invalidate(env, pc);
B
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1052 1053 1054 1055 1056 1057
    return 0;
#else
    return -1;
#endif
}

B
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1058 1059 1060 1061
/* enable or disable single step mode. EXCP_DEBUG is returned by the
   CPU loop after each instruction */
void cpu_single_step(CPUState *env, int enabled)
{
B
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1062
#if defined(TARGET_HAS_ICE)
B
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1063 1064 1065
    if (env->singlestep_enabled != enabled) {
        env->singlestep_enabled = enabled;
        /* must flush all the translated code to avoid inconsistancies */
1066
        /* XXX: only flush what is necessary */
1067
        tb_flush(env);
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1068 1069 1070 1071
    }
#endif
}

1072 1073 1074 1075 1076 1077 1078 1079 1080 1081
/* enable or disable low levels log */
void cpu_set_log(int log_flags)
{
    loglevel = log_flags;
    if (loglevel && !logfile) {
        logfile = fopen(logfilename, "w");
        if (!logfile) {
            perror(logfilename);
            _exit(1);
        }
1082 1083 1084 1085 1086 1087 1088
#if !defined(CONFIG_SOFTMMU)
        /* must avoid mmap() usage of glibc by setting a buffer "by hand" */
        {
            static uint8_t logfile_buf[4096];
            setvbuf(logfile, logfile_buf, _IOLBF, sizeof(logfile_buf));
        }
#else
1089
        setvbuf(logfile, NULL, _IOLBF, 0);
1090
#endif
1091 1092 1093 1094 1095 1096 1097
    }
}

void cpu_set_log_filename(const char *filename)
{
    logfilename = strdup(filename);
}
B
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1098

1099
/* mask must never be zero, except for A20 change call */
B
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1100
void cpu_interrupt(CPUState *env, int mask)
B
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1101 1102
{
    TranslationBlock *tb;
1103
    static int interrupt_lock;
1104

B
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1105
    env->interrupt_request |= mask;
B
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1106 1107 1108
    /* if the cpu is currently executing code, we must unlink it and
       all the potentially executing TB */
    tb = env->current_tb;
1109 1110
    if (tb && !testandset(&interrupt_lock)) {
        env->current_tb = NULL;
B
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1111
        tb_reset_jump_recursive(tb);
1112
        interrupt_lock = 0;
B
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1113 1114 1115
    }
}

1116 1117 1118 1119 1120
void cpu_reset_interrupt(CPUState *env, int mask)
{
    env->interrupt_request &= ~mask;
}

1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135
CPULogItem cpu_log_items[] = {
    { CPU_LOG_TB_OUT_ASM, "out_asm", 
      "show generated host assembly code for each compiled TB" },
    { CPU_LOG_TB_IN_ASM, "in_asm",
      "show target assembly code for each compiled TB" },
    { CPU_LOG_TB_OP, "op", 
      "show micro ops for each compiled TB (only usable if 'in_asm' used)" },
#ifdef TARGET_I386
    { CPU_LOG_TB_OP_OPT, "op_opt",
      "show micro ops after optimization for each compiled TB" },
#endif
    { CPU_LOG_INT, "int",
      "show interrupts/exceptions in short format" },
    { CPU_LOG_EXEC, "exec",
      "show trace before each executed TB (lots of logs)" },
1136 1137
    { CPU_LOG_TB_CPU, "cpu",
      "show CPU state before bloc translation" },
1138 1139 1140 1141
#ifdef TARGET_I386
    { CPU_LOG_PCALL, "pcall",
      "show protected mode far calls/returns/exceptions" },
#endif
B
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1142
#ifdef DEBUG_IOPORT
1143 1144
    { CPU_LOG_IOPORT, "ioport",
      "show all i/o ports accesses" },
B
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1145
#endif
1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168
    { 0, NULL, NULL },
};

static int cmp1(const char *s1, int n, const char *s2)
{
    if (strlen(s2) != n)
        return 0;
    return memcmp(s1, s2, n) == 0;
}
      
/* takes a comma separated list of log masks. Return 0 if error. */
int cpu_str_to_log_mask(const char *str)
{
    CPULogItem *item;
    int mask;
    const char *p, *p1;

    p = str;
    mask = 0;
    for(;;) {
        p1 = strchr(p, ',');
        if (!p1)
            p1 = p + strlen(p);
B
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1169 1170 1171 1172 1173
	if(cmp1(p,p1-p,"all")) {
		for(item = cpu_log_items; item->mask != 0; item++) {
			mask |= item->mask;
		}
	} else {
1174 1175 1176 1177 1178
        for(item = cpu_log_items; item->mask != 0; item++) {
            if (cmp1(p, p1 - p, item->name))
                goto found;
        }
        return 0;
B
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1179
	}
1180 1181 1182 1183 1184 1185 1186 1187
    found:
        mask |= item->mask;
        if (*p1 != ',')
            break;
        p = p1 + 1;
    }
    return mask;
}
B
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1188

B
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1189 1190 1191 1192 1193 1194 1195 1196 1197
void cpu_abort(CPUState *env, const char *fmt, ...)
{
    va_list ap;

    va_start(ap, fmt);
    fprintf(stderr, "qemu: fatal: ");
    vfprintf(stderr, fmt, ap);
    fprintf(stderr, "\n");
#ifdef TARGET_I386
B
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1198 1199 1200
    cpu_dump_state(env, stderr, fprintf, X86_DUMP_FPU | X86_DUMP_CCOP);
#else
    cpu_dump_state(env, stderr, fprintf, 0);
B
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1201 1202 1203 1204 1205
#endif
    va_end(ap);
    abort();
}

1206 1207
#if !defined(CONFIG_USER_ONLY)

1208 1209 1210
/* NOTE: if flush_global is true, also flush global entries (not
   implemented yet) */
void tlb_flush(CPUState *env, int flush_global)
1211 1212
{
    int i;
1213

1214 1215 1216
#if defined(DEBUG_TLB)
    printf("tlb_flush:\n");
#endif
1217 1218 1219 1220
    /* must reset current TB so that interrupts cannot modify the
       links while we are modifying them */
    env->current_tb = NULL;

1221
    for(i = 0; i < CPU_TLB_SIZE; i++) {
B
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1222 1223 1224 1225 1226 1227
        env->tlb_table[0][i].addr_read = -1;
        env->tlb_table[0][i].addr_write = -1;
        env->tlb_table[0][i].addr_code = -1;
        env->tlb_table[1][i].addr_read = -1;
        env->tlb_table[1][i].addr_write = -1;
        env->tlb_table[1][i].addr_code = -1;
1228
    }
1229

1230
    memset (env->tb_jmp_cache, 0, TB_JMP_CACHE_SIZE * sizeof (void *));
1231 1232 1233

#if !defined(CONFIG_SOFTMMU)
    munmap((void *)MMAP_AREA_START, MMAP_AREA_END - MMAP_AREA_START);
B
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1234 1235 1236 1237 1238
#endif
#ifdef USE_KQEMU
    if (env->kqemu_enabled) {
        kqemu_flush(env, flush_global);
    }
1239
#endif
B
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1240
    tlb_flush_count++;
1241 1242
}

B
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1243
static inline void tlb_flush_entry(CPUTLBEntry *tlb_entry, target_ulong addr)
B
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1244
{
B
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1245 1246 1247 1248 1249 1250 1251 1252 1253 1254
    if (addr == (tlb_entry->addr_read & 
                 (TARGET_PAGE_MASK | TLB_INVALID_MASK)) ||
        addr == (tlb_entry->addr_write & 
                 (TARGET_PAGE_MASK | TLB_INVALID_MASK)) ||
        addr == (tlb_entry->addr_code & 
                 (TARGET_PAGE_MASK | TLB_INVALID_MASK))) {
        tlb_entry->addr_read = -1;
        tlb_entry->addr_write = -1;
        tlb_entry->addr_code = -1;
    }
B
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1255 1256
}

1257
void tlb_flush_page(CPUState *env, target_ulong addr)
1258
{
1259
    int i;
1260
    TranslationBlock *tb;
1261

1262
#if defined(DEBUG_TLB)
1263
    printf("tlb_flush_page: " TARGET_FMT_lx "\n", addr);
1264
#endif
1265 1266 1267
    /* must reset current TB so that interrupts cannot modify the
       links while we are modifying them */
    env->current_tb = NULL;
B
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1268 1269 1270

    addr &= TARGET_PAGE_MASK;
    i = (addr >> TARGET_PAGE_BITS) & (CPU_TLB_SIZE - 1);
B
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    tlb_flush_entry(&env->tlb_table[0][i], addr);
    tlb_flush_entry(&env->tlb_table[1][i], addr);
1273

1274 1275 1276 1277 1278 1279
    for(i = 0; i < TB_JMP_CACHE_SIZE; i++) {
        tb = env->tb_jmp_cache[i];
        if (tb && 
            ((tb->pc & TARGET_PAGE_MASK) == addr ||
             ((tb->pc + tb->size - 1) & TARGET_PAGE_MASK) == addr)) {
            env->tb_jmp_cache[i] = NULL;
1280 1281 1282
        }
    }

1283
#if !defined(CONFIG_SOFTMMU)
1284
    if (addr < MMAP_AREA_END)
1285
        munmap((void *)addr, TARGET_PAGE_SIZE);
B
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1286
#endif
B
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1287 1288 1289 1290 1291
#ifdef USE_KQEMU
    if (env->kqemu_enabled) {
        kqemu_flush_page(env, addr);
    }
#endif
1292 1293 1294 1295
}

/* update the TLBs so that writes to code in the virtual page 'addr'
   can be detected */
B
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static void tlb_protect_code(ram_addr_t ram_addr)
1297
{
B
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1298 1299 1300
    cpu_physical_memory_reset_dirty(ram_addr, 
                                    ram_addr + TARGET_PAGE_SIZE,
                                    CODE_DIRTY_FLAG);
1301 1302 1303
}

/* update the TLB so that writes in physical page 'phys_addr' are no longer
1304 1305 1306
   tested for self modifying code */
static void tlb_unprotect_code_phys(CPUState *env, ram_addr_t ram_addr, 
                                    target_ulong vaddr)
1307
{
1308
    phys_ram_dirty[ram_addr >> TARGET_PAGE_BITS] |= CODE_DIRTY_FLAG;
1309 1310 1311 1312 1313 1314
}

static inline void tlb_reset_dirty_range(CPUTLBEntry *tlb_entry, 
                                         unsigned long start, unsigned long length)
{
    unsigned long addr;
B
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    if ((tlb_entry->addr_write & ~TARGET_PAGE_MASK) == IO_MEM_RAM) {
        addr = (tlb_entry->addr_write & TARGET_PAGE_MASK) + tlb_entry->addend;
1317
        if ((addr - start) < length) {
B
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            tlb_entry->addr_write = (tlb_entry->addr_write & TARGET_PAGE_MASK) | IO_MEM_NOTDIRTY;
1319 1320 1321 1322
        }
    }
}

1323
void cpu_physical_memory_reset_dirty(ram_addr_t start, ram_addr_t end,
B
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1324
                                     int dirty_flags)
1325 1326
{
    CPUState *env;
B
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1327
    unsigned long length, start1;
B
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1328 1329
    int i, mask, len;
    uint8_t *p;
1330 1331 1332 1333 1334 1335 1336

    start &= TARGET_PAGE_MASK;
    end = TARGET_PAGE_ALIGN(end);

    length = end - start;
    if (length == 0)
        return;
B
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    len = length >> TARGET_PAGE_BITS;
1338
#ifdef USE_KQEMU
B
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1339 1340
    /* XXX: should not depend on cpu context */
    env = first_cpu;
1341
    if (env->kqemu_enabled) {
B
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1342 1343 1344 1345 1346 1347
        ram_addr_t addr;
        addr = start;
        for(i = 0; i < len; i++) {
            kqemu_set_notdirty(env, addr);
            addr += TARGET_PAGE_SIZE;
        }
1348 1349
    }
#endif
B
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1350 1351 1352 1353 1354
    mask = ~dirty_flags;
    p = phys_ram_dirty + (start >> TARGET_PAGE_BITS);
    for(i = 0; i < len; i++)
        p[i] &= mask;

1355 1356
    /* we modify the TLB cache so that the dirty bit will be set again
       when accessing the range */
1357
    start1 = start + (unsigned long)phys_ram_base;
B
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1358 1359
    for(env = first_cpu; env != NULL; env = env->next_cpu) {
        for(i = 0; i < CPU_TLB_SIZE; i++)
B
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            tlb_reset_dirty_range(&env->tlb_table[0][i], start1, length);
B
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        for(i = 0; i < CPU_TLB_SIZE; i++)
B
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            tlb_reset_dirty_range(&env->tlb_table[1][i], start1, length);
B
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    }
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 1389 1390 1391

#if !defined(CONFIG_SOFTMMU)
    /* XXX: this is expensive */
    {
        VirtPageDesc *p;
        int j;
        target_ulong addr;

        for(i = 0; i < L1_SIZE; i++) {
            p = l1_virt_map[i];
            if (p) {
                addr = i << (TARGET_PAGE_BITS + L2_BITS);
                for(j = 0; j < L2_SIZE; j++) {
                    if (p->valid_tag == virt_valid_tag &&
                        p->phys_addr >= start && p->phys_addr < end &&
                        (p->prot & PROT_WRITE)) {
                        if (addr < MMAP_AREA_END) {
                            mprotect((void *)addr, TARGET_PAGE_SIZE, 
                                     p->prot & ~PROT_WRITE);
                        }
                    }
                    addr += TARGET_PAGE_SIZE;
                    p++;
                }
            }
        }
    }
#endif
1392 1393
}

1394 1395 1396 1397
static inline void tlb_update_dirty(CPUTLBEntry *tlb_entry)
{
    ram_addr_t ram_addr;

B
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1398 1399
    if ((tlb_entry->addr_write & ~TARGET_PAGE_MASK) == IO_MEM_RAM) {
        ram_addr = (tlb_entry->addr_write & TARGET_PAGE_MASK) + 
1400 1401
            tlb_entry->addend - (unsigned long)phys_ram_base;
        if (!cpu_physical_memory_is_dirty(ram_addr)) {
B
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            tlb_entry->addr_write |= IO_MEM_NOTDIRTY;
1403 1404 1405 1406 1407 1408 1409 1410 1411
        }
    }
}

/* update the TLB according to the current state of the dirty bits */
void cpu_tlb_update_dirty(CPUState *env)
{
    int i;
    for(i = 0; i < CPU_TLB_SIZE; i++)
B
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1412
        tlb_update_dirty(&env->tlb_table[0][i]);
1413
    for(i = 0; i < CPU_TLB_SIZE; i++)
B
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1414
        tlb_update_dirty(&env->tlb_table[1][i]);
1415 1416
}

1417
static inline void tlb_set_dirty1(CPUTLBEntry *tlb_entry, 
1418
                                  unsigned long start)
1419 1420
{
    unsigned long addr;
B
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1421 1422
    if ((tlb_entry->addr_write & ~TARGET_PAGE_MASK) == IO_MEM_NOTDIRTY) {
        addr = (tlb_entry->addr_write & TARGET_PAGE_MASK) + tlb_entry->addend;
1423
        if (addr == start) {
B
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            tlb_entry->addr_write = (tlb_entry->addr_write & TARGET_PAGE_MASK) | IO_MEM_RAM;
1425 1426 1427 1428 1429 1430
        }
    }
}

/* update the TLB corresponding to virtual page vaddr and phys addr
   addr so that it is no longer dirty */
B
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1431 1432
static inline void tlb_set_dirty(CPUState *env,
                                 unsigned long addr, target_ulong vaddr)
1433 1434 1435 1436 1437
{
    int i;

    addr &= TARGET_PAGE_MASK;
    i = (vaddr >> TARGET_PAGE_BITS) & (CPU_TLB_SIZE - 1);
B
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1438 1439
    tlb_set_dirty1(&env->tlb_table[0][i], addr);
    tlb_set_dirty1(&env->tlb_table[1][i], addr);
1440 1441
}

1442 1443 1444 1445
/* add a new TLB entry. At most one entry for a given virtual address
   is permitted. Return 0 if OK or 2 if the page could not be mapped
   (can only happen in non SOFTMMU mode for I/O pages or pages
   conflicting with the host address space). */
B
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1446 1447 1448
int tlb_set_page_exec(CPUState *env, target_ulong vaddr, 
                      target_phys_addr_t paddr, int prot, 
                      int is_user, int is_softmmu)
1449
{
B
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1450
    PhysPageDesc *p;
B
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1451
    unsigned long pd;
1452
    unsigned int index;
B
bellard 已提交
1453
    target_ulong address;
1454
    target_phys_addr_t addend;
1455
    int ret;
B
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1456
    CPUTLBEntry *te;
1457

B
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1458
    p = phys_page_find(paddr >> TARGET_PAGE_BITS);
1459 1460 1461 1462 1463 1464
    if (!p) {
        pd = IO_MEM_UNASSIGNED;
    } else {
        pd = p->phys_offset;
    }
#if defined(DEBUG_TLB)
1465
    printf("tlb_set_page: vaddr=" TARGET_FMT_lx " paddr=0x%08x prot=%x u=%d smmu=%d pd=0x%08lx\n",
B
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1466
           vaddr, (int)paddr, prot, is_user, is_softmmu, pd);
1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483
#endif

    ret = 0;
#if !defined(CONFIG_SOFTMMU)
    if (is_softmmu) 
#endif
    {
        if ((pd & ~TARGET_PAGE_MASK) > IO_MEM_ROM) {
            /* IO memory case */
            address = vaddr | pd;
            addend = paddr;
        } else {
            /* standard memory */
            address = vaddr;
            addend = (unsigned long)phys_ram_base + (pd & TARGET_PAGE_MASK);
        }
        
B
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1484
        index = (vaddr >> TARGET_PAGE_BITS) & (CPU_TLB_SIZE - 1);
1485
        addend -= vaddr;
B
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1486 1487
        te = &env->tlb_table[is_user][index];
        te->addend = addend;
B
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1488
        if (prot & PAGE_READ) {
B
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1489 1490 1491 1492 1493 1494
            te->addr_read = address;
        } else {
            te->addr_read = -1;
        }
        if (prot & PAGE_EXEC) {
            te->addr_code = address;
1495
        } else {
B
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1496
            te->addr_code = -1;
1497
        }
B
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1498
        if (prot & PAGE_WRITE) {
1499 1500
            if ((pd & ~TARGET_PAGE_MASK) == IO_MEM_ROM) {
                /* ROM: access is ignored (same as unassigned) */
B
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1501
                te->addr_write = vaddr | IO_MEM_ROM;
1502
            } else if ((pd & ~TARGET_PAGE_MASK) == IO_MEM_RAM && 
1503
                       !cpu_physical_memory_is_dirty(pd)) {
B
bellard 已提交
1504
                te->addr_write = vaddr | IO_MEM_NOTDIRTY;
1505
            } else {
B
bellard 已提交
1506
                te->addr_write = address;
1507 1508
            }
        } else {
B
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1509
            te->addr_write = -1;
1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520
        }
    }
#if !defined(CONFIG_SOFTMMU)
    else {
        if ((pd & ~TARGET_PAGE_MASK) > IO_MEM_ROM) {
            /* IO access: no mapping is done as it will be handled by the
               soft MMU */
            if (!(env->hflags & HF_SOFTMMU_MASK))
                ret = 2;
        } else {
            void *map_addr;
1521 1522 1523 1524 1525 1526

            if (vaddr >= MMAP_AREA_END) {
                ret = 2;
            } else {
                if (prot & PROT_WRITE) {
                    if ((pd & ~TARGET_PAGE_MASK) == IO_MEM_ROM || 
B
bellard 已提交
1527
#if defined(TARGET_HAS_SMC) || 1
1528
                        first_tb ||
B
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1529
#endif
1530 1531 1532 1533 1534 1535 1536
                        ((pd & ~TARGET_PAGE_MASK) == IO_MEM_RAM && 
                         !cpu_physical_memory_is_dirty(pd))) {
                        /* ROM: we do as if code was inside */
                        /* if code is present, we only map as read only and save the
                           original mapping */
                        VirtPageDesc *vp;
                        
B
bellard 已提交
1537
                        vp = virt_page_find_alloc(vaddr >> TARGET_PAGE_BITS, 1);
1538 1539 1540 1541 1542 1543 1544 1545 1546 1547 1548
                        vp->phys_addr = pd;
                        vp->prot = prot;
                        vp->valid_tag = virt_valid_tag;
                        prot &= ~PAGE_WRITE;
                    }
                }
                map_addr = mmap((void *)vaddr, TARGET_PAGE_SIZE, prot, 
                                MAP_SHARED | MAP_FIXED, phys_ram_fd, (pd & TARGET_PAGE_MASK));
                if (map_addr == MAP_FAILED) {
                    cpu_abort(env, "mmap failed when mapped physical address 0x%08x to virtual address 0x%08x\n",
                              paddr, vaddr);
1549 1550 1551 1552 1553 1554 1555 1556 1557 1558
                }
            }
        }
    }
#endif
    return ret;
}

/* called from signal handler: invalidate the code and unprotect the
   page. Return TRUE if the fault was succesfully handled. */
1559
int page_unprotect(target_ulong addr, unsigned long pc, void *puc)
1560 1561 1562 1563 1564 1565 1566 1567
{
#if !defined(CONFIG_SOFTMMU)
    VirtPageDesc *vp;

#if defined(DEBUG_TLB)
    printf("page_unprotect: addr=0x%08x\n", addr);
#endif
    addr &= TARGET_PAGE_MASK;
1568 1569 1570 1571

    /* if it is not mapped, no need to worry here */
    if (addr >= MMAP_AREA_END)
        return 0;
1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583 1584
    vp = virt_page_find(addr >> TARGET_PAGE_BITS);
    if (!vp)
        return 0;
    /* NOTE: in this case, validate_tag is _not_ tested as it
       validates only the code TLB */
    if (vp->valid_tag != virt_valid_tag)
        return 0;
    if (!(vp->prot & PAGE_WRITE))
        return 0;
#if defined(DEBUG_TLB)
    printf("page_unprotect: addr=0x%08x phys_addr=0x%08x prot=%x\n", 
           addr, vp->phys_addr, vp->prot);
#endif
1585 1586 1587
    if (mprotect((void *)addr, TARGET_PAGE_SIZE, vp->prot) < 0)
        cpu_abort(cpu_single_env, "error mprotect addr=0x%lx prot=%d\n",
                  (unsigned long)addr, vp->prot);
B
bellard 已提交
1588
    /* set the dirty bit */
B
bellard 已提交
1589
    phys_ram_dirty[vp->phys_addr >> TARGET_PAGE_BITS] = 0xff;
B
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1590 1591
    /* flush the code inside */
    tb_invalidate_phys_page(vp->phys_addr, pc, puc);
1592 1593 1594 1595
    return 1;
#else
    return 0;
#endif
1596 1597
}

1598 1599
#else

1600
void tlb_flush(CPUState *env, int flush_global)
1601 1602 1603
{
}

1604
void tlb_flush_page(CPUState *env, target_ulong addr)
1605 1606 1607
{
}

B
bellard 已提交
1608 1609 1610
int tlb_set_page_exec(CPUState *env, target_ulong vaddr, 
                      target_phys_addr_t paddr, int prot, 
                      int is_user, int is_softmmu)
1611 1612 1613
{
    return 0;
}
1614

1615 1616
/* dump memory mappings */
void page_dump(FILE *f)
1617
{
1618 1619 1620
    unsigned long start, end;
    int i, j, prot, prot1;
    PageDesc *p;
1621

1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654
    fprintf(f, "%-8s %-8s %-8s %s\n",
            "start", "end", "size", "prot");
    start = -1;
    end = -1;
    prot = 0;
    for(i = 0; i <= L1_SIZE; i++) {
        if (i < L1_SIZE)
            p = l1_map[i];
        else
            p = NULL;
        for(j = 0;j < L2_SIZE; j++) {
            if (!p)
                prot1 = 0;
            else
                prot1 = p[j].flags;
            if (prot1 != prot) {
                end = (i << (32 - L1_BITS)) | (j << TARGET_PAGE_BITS);
                if (start != -1) {
                    fprintf(f, "%08lx-%08lx %08lx %c%c%c\n",
                            start, end, end - start, 
                            prot & PAGE_READ ? 'r' : '-',
                            prot & PAGE_WRITE ? 'w' : '-',
                            prot & PAGE_EXEC ? 'x' : '-');
                }
                if (prot1 != 0)
                    start = end;
                else
                    start = -1;
                prot = prot1;
            }
            if (!p)
                break;
        }
1655 1656 1657
    }
}

1658
int page_get_flags(target_ulong address)
1659
{
1660 1661 1662
    PageDesc *p;

    p = page_find(address >> TARGET_PAGE_BITS);
1663
    if (!p)
1664 1665 1666 1667 1668 1669 1670
        return 0;
    return p->flags;
}

/* modify the flags of a page and invalidate the code if
   necessary. The flag PAGE_WRITE_ORG is positionned automatically
   depending on PAGE_WRITE */
1671
void page_set_flags(target_ulong start, target_ulong end, int flags)
1672 1673
{
    PageDesc *p;
1674
    target_ulong addr;
1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687

    start = start & TARGET_PAGE_MASK;
    end = TARGET_PAGE_ALIGN(end);
    if (flags & PAGE_WRITE)
        flags |= PAGE_WRITE_ORG;
    spin_lock(&tb_lock);
    for(addr = start; addr < end; addr += TARGET_PAGE_SIZE) {
        p = page_find_alloc(addr >> TARGET_PAGE_BITS);
        /* if the write protection is set, then we invalidate the code
           inside */
        if (!(p->flags & PAGE_WRITE) && 
            (flags & PAGE_WRITE) &&
            p->first_tb) {
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            tb_invalidate_phys_page(addr, 0, NULL);
1689 1690 1691 1692
        }
        p->flags = flags;
    }
    spin_unlock(&tb_lock);
1693 1694
}

1695 1696
/* called from signal handler: invalidate the code and unprotect the
   page. Return TRUE if the fault was succesfully handled. */
1697
int page_unprotect(target_ulong address, unsigned long pc, void *puc)
1698 1699 1700
{
    unsigned int page_index, prot, pindex;
    PageDesc *p, *p1;
1701
    target_ulong host_start, host_end, addr;
1702

1703
    host_start = address & qemu_host_page_mask;
1704 1705 1706 1707
    page_index = host_start >> TARGET_PAGE_BITS;
    p1 = page_find(page_index);
    if (!p1)
        return 0;
1708
    host_end = host_start + qemu_host_page_size;
1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719
    p = p1;
    prot = 0;
    for(addr = host_start;addr < host_end; addr += TARGET_PAGE_SIZE) {
        prot |= p->flags;
        p++;
    }
    /* if the page was really writable, then we change its
       protection back to writable */
    if (prot & PAGE_WRITE_ORG) {
        pindex = (address - host_start) >> TARGET_PAGE_BITS;
        if (!(p1[pindex].flags & PAGE_WRITE)) {
1720
            mprotect((void *)g2h(host_start), qemu_host_page_size, 
1721 1722 1723 1724
                     (prot & PAGE_BITS) | PAGE_WRITE);
            p1[pindex].flags |= PAGE_WRITE;
            /* and since the content will be modified, we must invalidate
               the corresponding translated code. */
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            tb_invalidate_phys_page(address, pc, puc);
1726 1727 1728 1729 1730 1731 1732 1733 1734 1735
#ifdef DEBUG_TB_CHECK
            tb_invalidate_check(address);
#endif
            return 1;
        }
    }
    return 0;
}

/* call this function when system calls directly modify a memory area */
1736 1737
/* ??? This should be redundant now we have lock_user.  */
void page_unprotect_range(target_ulong data, target_ulong data_size)
1738
{
1739
    target_ulong start, end, addr;
1740

1741
    start = data;
1742 1743 1744 1745
    end = start + data_size;
    start &= TARGET_PAGE_MASK;
    end = TARGET_PAGE_ALIGN(end);
    for(addr = start; addr < end; addr += TARGET_PAGE_SIZE) {
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        page_unprotect(addr, 0, NULL);
1747 1748 1749
    }
}

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static inline void tlb_set_dirty(CPUState *env,
                                 unsigned long addr, target_ulong vaddr)
1752 1753
{
}
1754 1755
#endif /* defined(CONFIG_USER_ONLY) */

1756 1757 1758
/* register physical memory. 'size' must be a multiple of the target
   page size. If (phys_offset & ~TARGET_PAGE_MASK) != 0, then it is an
   io memory page */
1759 1760 1761
void cpu_register_physical_memory(target_phys_addr_t start_addr, 
                                  unsigned long size,
                                  unsigned long phys_offset)
1762
{
1763
    target_phys_addr_t addr, end_addr;
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    PhysPageDesc *p;
1765

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    size = (size + TARGET_PAGE_SIZE - 1) & TARGET_PAGE_MASK;
1767
    end_addr = start_addr + size;
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    for(addr = start_addr; addr != end_addr; addr += TARGET_PAGE_SIZE) {
1769
        p = phys_page_find_alloc(addr >> TARGET_PAGE_BITS, 1);
1770 1771
        p->phys_offset = phys_offset;
        if ((phys_offset & ~TARGET_PAGE_MASK) <= IO_MEM_ROM)
1772 1773 1774 1775
            phys_offset += TARGET_PAGE_SIZE;
    }
}

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static uint32_t unassigned_mem_readb(void *opaque, target_phys_addr_t addr)
1777 1778 1779 1780
{
    return 0;
}

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static void unassigned_mem_writeb(void *opaque, target_phys_addr_t addr, uint32_t val)
1782 1783 1784 1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796
{
}

static CPUReadMemoryFunc *unassigned_mem_read[3] = {
    unassigned_mem_readb,
    unassigned_mem_readb,
    unassigned_mem_readb,
};

static CPUWriteMemoryFunc *unassigned_mem_write[3] = {
    unassigned_mem_writeb,
    unassigned_mem_writeb,
    unassigned_mem_writeb,
};

1797
static void notdirty_mem_writeb(void *opaque, target_phys_addr_t addr, uint32_t val)
1798
{
1799 1800 1801 1802 1803
    unsigned long ram_addr;
    int dirty_flags;
    ram_addr = addr - (unsigned long)phys_ram_base;
    dirty_flags = phys_ram_dirty[ram_addr >> TARGET_PAGE_BITS];
    if (!(dirty_flags & CODE_DIRTY_FLAG)) {
1804
#if !defined(CONFIG_USER_ONLY)
1805 1806
        tb_invalidate_phys_page_fast(ram_addr, 1);
        dirty_flags = phys_ram_dirty[ram_addr >> TARGET_PAGE_BITS];
1807
#endif
1808
    }
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    stb_p((uint8_t *)(long)addr, val);
1810 1811 1812 1813 1814
#ifdef USE_KQEMU
    if (cpu_single_env->kqemu_enabled &&
        (dirty_flags & KQEMU_MODIFY_PAGE_MASK) != KQEMU_MODIFY_PAGE_MASK)
        kqemu_modify_page(cpu_single_env, ram_addr);
#endif
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    dirty_flags |= (0xff & ~CODE_DIRTY_FLAG);
    phys_ram_dirty[ram_addr >> TARGET_PAGE_BITS] = dirty_flags;
    /* we remove the notdirty callback only if the code has been
       flushed */
    if (dirty_flags == 0xff)
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        tlb_set_dirty(cpu_single_env, addr, cpu_single_env->mem_write_vaddr);
1821 1822
}

1823
static void notdirty_mem_writew(void *opaque, target_phys_addr_t addr, uint32_t val)
1824
{
1825 1826 1827 1828 1829
    unsigned long ram_addr;
    int dirty_flags;
    ram_addr = addr - (unsigned long)phys_ram_base;
    dirty_flags = phys_ram_dirty[ram_addr >> TARGET_PAGE_BITS];
    if (!(dirty_flags & CODE_DIRTY_FLAG)) {
1830
#if !defined(CONFIG_USER_ONLY)
1831 1832
        tb_invalidate_phys_page_fast(ram_addr, 2);
        dirty_flags = phys_ram_dirty[ram_addr >> TARGET_PAGE_BITS];
1833
#endif
1834
    }
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    stw_p((uint8_t *)(long)addr, val);
1836 1837 1838 1839 1840
#ifdef USE_KQEMU
    if (cpu_single_env->kqemu_enabled &&
        (dirty_flags & KQEMU_MODIFY_PAGE_MASK) != KQEMU_MODIFY_PAGE_MASK)
        kqemu_modify_page(cpu_single_env, ram_addr);
#endif
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    dirty_flags |= (0xff & ~CODE_DIRTY_FLAG);
    phys_ram_dirty[ram_addr >> TARGET_PAGE_BITS] = dirty_flags;
    /* we remove the notdirty callback only if the code has been
       flushed */
    if (dirty_flags == 0xff)
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        tlb_set_dirty(cpu_single_env, addr, cpu_single_env->mem_write_vaddr);
1847 1848
}

1849
static void notdirty_mem_writel(void *opaque, target_phys_addr_t addr, uint32_t val)
1850
{
1851 1852 1853 1854 1855
    unsigned long ram_addr;
    int dirty_flags;
    ram_addr = addr - (unsigned long)phys_ram_base;
    dirty_flags = phys_ram_dirty[ram_addr >> TARGET_PAGE_BITS];
    if (!(dirty_flags & CODE_DIRTY_FLAG)) {
1856
#if !defined(CONFIG_USER_ONLY)
1857 1858
        tb_invalidate_phys_page_fast(ram_addr, 4);
        dirty_flags = phys_ram_dirty[ram_addr >> TARGET_PAGE_BITS];
1859
#endif
1860
    }
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    stl_p((uint8_t *)(long)addr, val);
1862 1863 1864 1865 1866
#ifdef USE_KQEMU
    if (cpu_single_env->kqemu_enabled &&
        (dirty_flags & KQEMU_MODIFY_PAGE_MASK) != KQEMU_MODIFY_PAGE_MASK)
        kqemu_modify_page(cpu_single_env, ram_addr);
#endif
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    dirty_flags |= (0xff & ~CODE_DIRTY_FLAG);
    phys_ram_dirty[ram_addr >> TARGET_PAGE_BITS] = dirty_flags;
    /* we remove the notdirty callback only if the code has been
       flushed */
    if (dirty_flags == 0xff)
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        tlb_set_dirty(cpu_single_env, addr, cpu_single_env->mem_write_vaddr);
1873 1874
}

1875
static CPUReadMemoryFunc *error_mem_read[3] = {
1876 1877 1878 1879 1880
    NULL, /* never used */
    NULL, /* never used */
    NULL, /* never used */
};

1881 1882 1883 1884 1885 1886
static CPUWriteMemoryFunc *notdirty_mem_write[3] = {
    notdirty_mem_writeb,
    notdirty_mem_writew,
    notdirty_mem_writel,
};

1887 1888
static void io_mem_init(void)
{
1889
    cpu_register_io_memory(IO_MEM_ROM >> IO_MEM_SHIFT, error_mem_read, unassigned_mem_write, NULL);
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    cpu_register_io_memory(IO_MEM_UNASSIGNED >> IO_MEM_SHIFT, unassigned_mem_read, unassigned_mem_write, NULL);
1891
    cpu_register_io_memory(IO_MEM_NOTDIRTY >> IO_MEM_SHIFT, error_mem_read, notdirty_mem_write, NULL);
1892 1893 1894
    io_mem_nb = 5;

    /* alloc dirty bits array */
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    phys_ram_dirty = qemu_vmalloc(phys_ram_size >> TARGET_PAGE_BITS);
1896
    memset(phys_ram_dirty, 0xff, phys_ram_size >> TARGET_PAGE_BITS);
1897 1898 1899 1900 1901 1902 1903 1904 1905 1906
}

/* mem_read and mem_write are arrays of functions containing the
   function to access byte (index 0), word (index 1) and dword (index
   2). All functions must be supplied. If io_index is non zero, the
   corresponding io zone is modified. If it is zero, a new io zone is
   allocated. The return value can be used with
   cpu_register_physical_memory(). (-1) is returned if error. */
int cpu_register_io_memory(int io_index,
                           CPUReadMemoryFunc **mem_read,
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                           CPUWriteMemoryFunc **mem_write,
                           void *opaque)
1909 1910 1911 1912
{
    int i;

    if (io_index <= 0) {
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        if (io_mem_nb >= IO_MEM_NB_ENTRIES)
1914 1915 1916 1917 1918 1919
            return -1;
        io_index = io_mem_nb++;
    } else {
        if (io_index >= IO_MEM_NB_ENTRIES)
            return -1;
    }
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1921 1922 1923 1924
    for(i = 0;i < 3; i++) {
        io_mem_read[io_index][i] = mem_read[i];
        io_mem_write[io_index][i] = mem_write[i];
    }
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    io_mem_opaque[io_index] = opaque;
1926 1927
    return io_index << IO_MEM_SHIFT;
}
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CPUWriteMemoryFunc **cpu_get_io_memory_write(int io_index)
{
    return io_mem_write[io_index >> IO_MEM_SHIFT];
}

CPUReadMemoryFunc **cpu_get_io_memory_read(int io_index)
{
    return io_mem_read[io_index >> IO_MEM_SHIFT];
}

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/* physical memory access (slow version, mainly for debug) */
#if defined(CONFIG_USER_ONLY)
1941
void cpu_physical_memory_rw(target_phys_addr_t addr, uint8_t *buf, 
B
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                            int len, int is_write)
{
    int l, flags;
    target_ulong page;
1946
    void * p;
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1947 1948 1949 1950 1951 1952 1953 1954 1955 1956 1957 1958

    while (len > 0) {
        page = addr & TARGET_PAGE_MASK;
        l = (page + TARGET_PAGE_SIZE) - addr;
        if (l > len)
            l = len;
        flags = page_get_flags(page);
        if (!(flags & PAGE_VALID))
            return;
        if (is_write) {
            if (!(flags & PAGE_WRITE))
                return;
1959 1960 1961
            p = lock_user(addr, len, 0);
            memcpy(p, buf, len);
            unlock_user(p, addr, len);
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        } else {
            if (!(flags & PAGE_READ))
                return;
1965 1966 1967
            p = lock_user(addr, len, 1);
            memcpy(buf, p, len);
            unlock_user(p, addr, 0);
B
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1968 1969 1970 1971 1972 1973
        }
        len -= l;
        buf += l;
        addr += l;
    }
}
B
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1974

B
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1975
#else
1976
void cpu_physical_memory_rw(target_phys_addr_t addr, uint8_t *buf, 
B
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1977 1978 1979 1980 1981
                            int len, int is_write)
{
    int l, io_index;
    uint8_t *ptr;
    uint32_t val;
1982 1983
    target_phys_addr_t page;
    unsigned long pd;
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1984
    PhysPageDesc *p;
B
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1985 1986 1987 1988 1989 1990
    
    while (len > 0) {
        page = addr & TARGET_PAGE_MASK;
        l = (page + TARGET_PAGE_SIZE) - addr;
        if (l > len)
            l = len;
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1991
        p = phys_page_find(page >> TARGET_PAGE_BITS);
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1992 1993 1994 1995 1996 1997 1998
        if (!p) {
            pd = IO_MEM_UNASSIGNED;
        } else {
            pd = p->phys_offset;
        }
        
        if (is_write) {
1999
            if ((pd & ~TARGET_PAGE_MASK) != IO_MEM_RAM) {
B
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2000
                io_index = (pd >> IO_MEM_SHIFT) & (IO_MEM_NB_ENTRIES - 1);
B
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2001 2002
                /* XXX: could force cpu_single_env to NULL to avoid
                   potential bugs */
B
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2003
                if (l >= 4 && ((addr & 3) == 0)) {
B
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2004
                    /* 32 bit write access */
B
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2005
                    val = ldl_p(buf);
B
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2006
                    io_mem_write[io_index][2](io_mem_opaque[io_index], addr, val);
B
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2007 2008
                    l = 4;
                } else if (l >= 2 && ((addr & 1) == 0)) {
B
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2009
                    /* 16 bit write access */
B
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2010
                    val = lduw_p(buf);
B
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2011
                    io_mem_write[io_index][1](io_mem_opaque[io_index], addr, val);
B
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2012 2013
                    l = 2;
                } else {
B
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2014
                    /* 8 bit write access */
B
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2015
                    val = ldub_p(buf);
B
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2016
                    io_mem_write[io_index][0](io_mem_opaque[io_index], addr, val);
B
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2017 2018 2019
                    l = 1;
                }
            } else {
2020 2021
                unsigned long addr1;
                addr1 = (pd & TARGET_PAGE_MASK) + (addr & ~TARGET_PAGE_MASK);
B
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2022
                /* RAM case */
2023
                ptr = phys_ram_base + addr1;
B
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2024
                memcpy(ptr, buf, l);
2025 2026 2027 2028
                if (!cpu_physical_memory_is_dirty(addr1)) {
                    /* invalidate code */
                    tb_invalidate_phys_page_range(addr1, addr1 + l, 0);
                    /* set dirty bit */
B
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2029 2030
                    phys_ram_dirty[addr1 >> TARGET_PAGE_BITS] |= 
                        (0xff & ~CODE_DIRTY_FLAG);
2031
                }
B
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2032 2033
            }
        } else {
2034
            if ((pd & ~TARGET_PAGE_MASK) > IO_MEM_ROM) {
B
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2035 2036 2037 2038
                /* I/O case */
                io_index = (pd >> IO_MEM_SHIFT) & (IO_MEM_NB_ENTRIES - 1);
                if (l >= 4 && ((addr & 3) == 0)) {
                    /* 32 bit read access */
B
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2039
                    val = io_mem_read[io_index][2](io_mem_opaque[io_index], addr);
B
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2040
                    stl_p(buf, val);
B
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2041 2042 2043
                    l = 4;
                } else if (l >= 2 && ((addr & 1) == 0)) {
                    /* 16 bit read access */
B
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2044
                    val = io_mem_read[io_index][1](io_mem_opaque[io_index], addr);
B
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2045
                    stw_p(buf, val);
B
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2046 2047
                    l = 2;
                } else {
B
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2048
                    /* 8 bit read access */
B
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2049
                    val = io_mem_read[io_index][0](io_mem_opaque[io_index], addr);
B
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2050
                    stb_p(buf, val);
B
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2051 2052 2053 2054 2055 2056 2057 2058 2059 2060 2061 2062 2063 2064
                    l = 1;
                }
            } else {
                /* RAM case */
                ptr = phys_ram_base + (pd & TARGET_PAGE_MASK) + 
                    (addr & ~TARGET_PAGE_MASK);
                memcpy(buf, ptr, l);
            }
        }
        len -= l;
        buf += l;
        addr += l;
    }
}
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/* warning: addr must be aligned */
uint32_t ldl_phys(target_phys_addr_t addr)
{
    int io_index;
    uint8_t *ptr;
    uint32_t val;
    unsigned long pd;
    PhysPageDesc *p;

    p = phys_page_find(addr >> TARGET_PAGE_BITS);
    if (!p) {
        pd = IO_MEM_UNASSIGNED;
    } else {
        pd = p->phys_offset;
    }
        
2082
    if ((pd & ~TARGET_PAGE_MASK) > IO_MEM_ROM) {
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2083 2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094
        /* I/O case */
        io_index = (pd >> IO_MEM_SHIFT) & (IO_MEM_NB_ENTRIES - 1);
        val = io_mem_read[io_index][2](io_mem_opaque[io_index], addr);
    } else {
        /* RAM case */
        ptr = phys_ram_base + (pd & TARGET_PAGE_MASK) + 
            (addr & ~TARGET_PAGE_MASK);
        val = ldl_p(ptr);
    }
    return val;
}

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2095 2096 2097 2098 2099 2100 2101 2102 2103 2104 2105 2106 2107 2108 2109 2110 2111 2112 2113 2114 2115 2116 2117 2118 2119 2120 2121 2122 2123 2124 2125 2126 2127 2128 2129
/* warning: addr must be aligned */
uint64_t ldq_phys(target_phys_addr_t addr)
{
    int io_index;
    uint8_t *ptr;
    uint64_t val;
    unsigned long pd;
    PhysPageDesc *p;

    p = phys_page_find(addr >> TARGET_PAGE_BITS);
    if (!p) {
        pd = IO_MEM_UNASSIGNED;
    } else {
        pd = p->phys_offset;
    }
        
    if ((pd & ~TARGET_PAGE_MASK) > IO_MEM_ROM) {
        /* I/O case */
        io_index = (pd >> IO_MEM_SHIFT) & (IO_MEM_NB_ENTRIES - 1);
#ifdef TARGET_WORDS_BIGENDIAN
        val = (uint64_t)io_mem_read[io_index][2](io_mem_opaque[io_index], addr) << 32;
        val |= io_mem_read[io_index][2](io_mem_opaque[io_index], addr + 4);
#else
        val = io_mem_read[io_index][2](io_mem_opaque[io_index], addr);
        val |= (uint64_t)io_mem_read[io_index][2](io_mem_opaque[io_index], addr + 4) << 32;
#endif
    } else {
        /* RAM case */
        ptr = phys_ram_base + (pd & TARGET_PAGE_MASK) + 
            (addr & ~TARGET_PAGE_MASK);
        val = ldq_p(ptr);
    }
    return val;
}

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2130 2131 2132 2133 2134 2135 2136 2137 2138 2139 2140 2141 2142 2143 2144 2145
/* XXX: optimize */
uint32_t ldub_phys(target_phys_addr_t addr)
{
    uint8_t val;
    cpu_physical_memory_read(addr, &val, 1);
    return val;
}

/* XXX: optimize */
uint32_t lduw_phys(target_phys_addr_t addr)
{
    uint16_t val;
    cpu_physical_memory_read(addr, (uint8_t *)&val, 2);
    return tswap16(val);
}

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/* warning: addr must be aligned. The ram page is not masked as dirty
   and the code inside is not invalidated. It is useful if the dirty
   bits are used to track modified PTEs */
void stl_phys_notdirty(target_phys_addr_t addr, uint32_t val)
{
    int io_index;
    uint8_t *ptr;
    unsigned long pd;
    PhysPageDesc *p;

    p = phys_page_find(addr >> TARGET_PAGE_BITS);
    if (!p) {
        pd = IO_MEM_UNASSIGNED;
    } else {
        pd = p->phys_offset;
    }
        
2163
    if ((pd & ~TARGET_PAGE_MASK) != IO_MEM_RAM) {
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        io_index = (pd >> IO_MEM_SHIFT) & (IO_MEM_NB_ENTRIES - 1);
        io_mem_write[io_index][2](io_mem_opaque[io_index], addr, val);
    } else {
        ptr = phys_ram_base + (pd & TARGET_PAGE_MASK) + 
            (addr & ~TARGET_PAGE_MASK);
        stl_p(ptr, val);
    }
}

/* warning: addr must be aligned */
void stl_phys(target_phys_addr_t addr, uint32_t val)
{
    int io_index;
    uint8_t *ptr;
    unsigned long pd;
    PhysPageDesc *p;

    p = phys_page_find(addr >> TARGET_PAGE_BITS);
    if (!p) {
        pd = IO_MEM_UNASSIGNED;
    } else {
        pd = p->phys_offset;
    }
        
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    if ((pd & ~TARGET_PAGE_MASK) != IO_MEM_RAM) {
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        io_index = (pd >> IO_MEM_SHIFT) & (IO_MEM_NB_ENTRIES - 1);
        io_mem_write[io_index][2](io_mem_opaque[io_index], addr, val);
    } else {
        unsigned long addr1;
        addr1 = (pd & TARGET_PAGE_MASK) + (addr & ~TARGET_PAGE_MASK);
        /* RAM case */
        ptr = phys_ram_base + addr1;
        stl_p(ptr, val);
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        if (!cpu_physical_memory_is_dirty(addr1)) {
            /* invalidate code */
            tb_invalidate_phys_page_range(addr1, addr1 + 4, 0);
            /* set dirty bit */
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            phys_ram_dirty[addr1 >> TARGET_PAGE_BITS] |=
                (0xff & ~CODE_DIRTY_FLAG);
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        }
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    }
}

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/* XXX: optimize */
void stb_phys(target_phys_addr_t addr, uint32_t val)
{
    uint8_t v = val;
    cpu_physical_memory_write(addr, &v, 1);
}

/* XXX: optimize */
void stw_phys(target_phys_addr_t addr, uint32_t val)
{
    uint16_t v = tswap16(val);
    cpu_physical_memory_write(addr, (const uint8_t *)&v, 2);
}

/* XXX: optimize */
void stq_phys(target_phys_addr_t addr, uint64_t val)
{
    val = tswap64(val);
    cpu_physical_memory_write(addr, (const uint8_t *)&val, 8);
}

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#endif

/* virtual memory access for debug */
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int cpu_memory_rw_debug(CPUState *env, target_ulong addr, 
                        uint8_t *buf, int len, int is_write)
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{
    int l;
    target_ulong page, phys_addr;

    while (len > 0) {
        page = addr & TARGET_PAGE_MASK;
        phys_addr = cpu_get_phys_page_debug(env, page);
        /* if no physical page mapped, return an error */
        if (phys_addr == -1)
            return -1;
        l = (page + TARGET_PAGE_SIZE) - addr;
        if (l > len)
            l = len;
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        cpu_physical_memory_rw(phys_addr + (addr & ~TARGET_PAGE_MASK), 
                               buf, l, is_write);
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        len -= l;
        buf += l;
        addr += l;
    }
    return 0;
}

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void dump_exec_info(FILE *f,
                    int (*cpu_fprintf)(FILE *f, const char *fmt, ...))
{
    int i, target_code_size, max_target_code_size;
    int direct_jmp_count, direct_jmp2_count, cross_page;
    TranslationBlock *tb;
    
    target_code_size = 0;
    max_target_code_size = 0;
    cross_page = 0;
    direct_jmp_count = 0;
    direct_jmp2_count = 0;
    for(i = 0; i < nb_tbs; i++) {
        tb = &tbs[i];
        target_code_size += tb->size;
        if (tb->size > max_target_code_size)
            max_target_code_size = tb->size;
        if (tb->page_addr[1] != -1)
            cross_page++;
        if (tb->tb_next_offset[0] != 0xffff) {
            direct_jmp_count++;
            if (tb->tb_next_offset[1] != 0xffff) {
                direct_jmp2_count++;
            }
        }
    }
    /* XXX: avoid using doubles ? */
    cpu_fprintf(f, "TB count            %d\n", nb_tbs);
    cpu_fprintf(f, "TB avg target size  %d max=%d bytes\n", 
                nb_tbs ? target_code_size / nb_tbs : 0,
                max_target_code_size);
    cpu_fprintf(f, "TB avg host size    %d bytes (expansion ratio: %0.1f)\n", 
                nb_tbs ? (code_gen_ptr - code_gen_buffer) / nb_tbs : 0,
                target_code_size ? (double) (code_gen_ptr - code_gen_buffer) / target_code_size : 0);
    cpu_fprintf(f, "cross page TB count %d (%d%%)\n", 
            cross_page, 
            nb_tbs ? (cross_page * 100) / nb_tbs : 0);
    cpu_fprintf(f, "direct jump count   %d (%d%%) (2 jumps=%d %d%%)\n",
                direct_jmp_count, 
                nb_tbs ? (direct_jmp_count * 100) / nb_tbs : 0,
                direct_jmp2_count,
                nb_tbs ? (direct_jmp2_count * 100) / nb_tbs : 0);
    cpu_fprintf(f, "TB flush count      %d\n", tb_flush_count);
    cpu_fprintf(f, "TB invalidate count %d\n", tb_phys_invalidate_count);
    cpu_fprintf(f, "TLB flush count     %d\n", tlb_flush_count);
}

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#if !defined(CONFIG_USER_ONLY) 

#define MMUSUFFIX _cmmu
#define GETPC() NULL
#define env cpu_single_env
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#define SOFTMMU_CODE_ACCESS
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#define SHIFT 0
#include "softmmu_template.h"

#define SHIFT 1
#include "softmmu_template.h"

#define SHIFT 2
#include "softmmu_template.h"

#define SHIFT 3
#include "softmmu_template.h"

#undef env

#endif