gdbstub.c 51.9 KB
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/*
 * gdb server stub
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 *
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 * Copyright (c) 2003-2005 Fabrice Bellard
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 *
 * This library is free software; you can redistribute it and/or
 * modify it under the terms of the GNU Lesser General Public
 * License as published by the Free Software Foundation; either
 * version 2 of the License, or (at your option) any later version.
 *
 * This library is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
 * Lesser General Public License for more details.
 *
 * You should have received a copy of the GNU Lesser General Public
 * License along with this library; if not, write to the Free Software
 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
 */
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#include "config.h"
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#include "qemu-common.h"
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#ifdef CONFIG_USER_ONLY
#include <stdlib.h>
#include <stdio.h>
#include <stdarg.h>
#include <string.h>
#include <errno.h>
#include <unistd.h>
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#include <fcntl.h>
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#include "qemu.h"
#else
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#include "qemu-char.h"
#include "sysemu.h"
#include "gdbstub.h"
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#endif
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#define MAX_PACKET_LENGTH 4096

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#include "qemu_socket.h"
#ifdef _WIN32
/* XXX: these constants may be independent of the host ones even for Unix */
#ifndef SIGTRAP
#define SIGTRAP 5
#endif
#ifndef SIGINT
#define SIGINT 2
#endif
#else
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#include <signal.h>
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#endif
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//#define DEBUG_GDB
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typedef struct GDBRegisterState {
    int base_reg;
    int num_regs;
    gdb_reg_cb get_reg;
    gdb_reg_cb set_reg;
    const char *xml;
    struct GDBRegisterState *next;
} GDBRegisterState;

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enum RSState {
    RS_IDLE,
    RS_GETLINE,
    RS_CHKSUM1,
    RS_CHKSUM2,
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    RS_SYSCALL,
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};
typedef struct GDBState {
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    CPUState *c_cpu; /* current CPU for step/continue ops */
    CPUState *g_cpu; /* current CPU for other ops */
    CPUState *query_cpu; /* for q{f|s}ThreadInfo */
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    enum RSState state; /* parsing state */
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    char line_buf[MAX_PACKET_LENGTH];
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    int line_buf_index;
    int line_csum;
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    uint8_t last_packet[MAX_PACKET_LENGTH + 4];
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    int last_packet_len;
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    int signal;
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#ifdef CONFIG_USER_ONLY
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    int fd;
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    int running_state;
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#else
    CharDriverState *chr;
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#endif
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} GDBState;
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/* By default use no IRQs and no timers while single stepping so as to
 * make single stepping like an ICE HW step.
 */
static int sstep_flags = SSTEP_ENABLE|SSTEP_NOIRQ|SSTEP_NOTIMER;

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static GDBState *gdbserver_state;

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/* This is an ugly hack to cope with both new and old gdb.
   If gdb sends qXfer:features:read then assume we're talking to a newish
   gdb that understands target descriptions.  */
static int gdb_has_xml;

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#ifdef CONFIG_USER_ONLY
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/* XXX: This is not thread safe.  Do we care?  */
static int gdbserver_fd = -1;

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static int get_char(GDBState *s)
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{
    uint8_t ch;
    int ret;

    for(;;) {
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        ret = recv(s->fd, &ch, 1, 0);
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        if (ret < 0) {
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            if (errno == ECONNRESET)
                s->fd = -1;
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            if (errno != EINTR && errno != EAGAIN)
                return -1;
        } else if (ret == 0) {
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            close(s->fd);
            s->fd = -1;
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            return -1;
        } else {
            break;
        }
    }
    return ch;
}
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#endif
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static gdb_syscall_complete_cb gdb_current_syscall_cb;

enum {
    GDB_SYS_UNKNOWN,
    GDB_SYS_ENABLED,
    GDB_SYS_DISABLED,
} gdb_syscall_mode;

/* If gdb is connected when the first semihosting syscall occurs then use
   remote gdb syscalls.  Otherwise use native file IO.  */
int use_gdb_syscalls(void)
{
    if (gdb_syscall_mode == GDB_SYS_UNKNOWN) {
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        gdb_syscall_mode = (gdbserver_state ? GDB_SYS_ENABLED
                                            : GDB_SYS_DISABLED);
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    }
    return gdb_syscall_mode == GDB_SYS_ENABLED;
}

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/* Resume execution.  */
static inline void gdb_continue(GDBState *s)
{
#ifdef CONFIG_USER_ONLY
    s->running_state = 1;
#else
    vm_start();
#endif
}

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static void put_buffer(GDBState *s, const uint8_t *buf, int len)
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{
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#ifdef CONFIG_USER_ONLY
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    int ret;

    while (len > 0) {
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        ret = send(s->fd, buf, len, 0);
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        if (ret < 0) {
            if (errno != EINTR && errno != EAGAIN)
                return;
        } else {
            buf += ret;
            len -= ret;
        }
    }
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#else
    qemu_chr_write(s->chr, buf, len);
#endif
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}

static inline int fromhex(int v)
{
    if (v >= '0' && v <= '9')
        return v - '0';
    else if (v >= 'A' && v <= 'F')
        return v - 'A' + 10;
    else if (v >= 'a' && v <= 'f')
        return v - 'a' + 10;
    else
        return 0;
}

static inline int tohex(int v)
{
    if (v < 10)
        return v + '0';
    else
        return v - 10 + 'a';
}

static void memtohex(char *buf, const uint8_t *mem, int len)
{
    int i, c;
    char *q;
    q = buf;
    for(i = 0; i < len; i++) {
        c = mem[i];
        *q++ = tohex(c >> 4);
        *q++ = tohex(c & 0xf);
    }
    *q = '\0';
}

static void hextomem(uint8_t *mem, const char *buf, int len)
{
    int i;

    for(i = 0; i < len; i++) {
        mem[i] = (fromhex(buf[0]) << 4) | fromhex(buf[1]);
        buf += 2;
    }
}

/* return -1 if error, 0 if OK */
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static int put_packet_binary(GDBState *s, const char *buf, int len)
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{
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    int csum, i;
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    uint8_t *p;
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    for(;;) {
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        p = s->last_packet;
        *(p++) = '$';
        memcpy(p, buf, len);
        p += len;
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        csum = 0;
        for(i = 0; i < len; i++) {
            csum += buf[i];
        }
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        *(p++) = '#';
        *(p++) = tohex((csum >> 4) & 0xf);
        *(p++) = tohex((csum) & 0xf);
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        s->last_packet_len = p - s->last_packet;
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        put_buffer(s, (uint8_t *)s->last_packet, s->last_packet_len);
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#ifdef CONFIG_USER_ONLY
        i = get_char(s);
        if (i < 0)
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            return -1;
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        if (i == '+')
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            break;
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#else
        break;
#endif
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    }
    return 0;
}

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/* return -1 if error, 0 if OK */
static int put_packet(GDBState *s, const char *buf)
{
#ifdef DEBUG_GDB
    printf("reply='%s'\n", buf);
#endif
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    return put_packet_binary(s, buf, strlen(buf));
}

/* The GDB remote protocol transfers values in target byte order.  This means
   we can use the raw memory access routines to access the value buffer.
   Conveniently, these also handle the case where the buffer is mis-aligned.
 */
#define GET_REG8(val) do { \
    stb_p(mem_buf, val); \
    return 1; \
    } while(0)
#define GET_REG16(val) do { \
    stw_p(mem_buf, val); \
    return 2; \
    } while(0)
#define GET_REG32(val) do { \
    stl_p(mem_buf, val); \
    return 4; \
    } while(0)
#define GET_REG64(val) do { \
    stq_p(mem_buf, val); \
    return 8; \
    } while(0)

#if TARGET_LONG_BITS == 64
#define GET_REGL(val) GET_REG64(val)
#define ldtul_p(addr) ldq_p(addr)
#else
#define GET_REGL(val) GET_REG32(val)
#define ldtul_p(addr) ldl_p(addr)
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#endif

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#if defined(TARGET_I386)
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#ifdef TARGET_X86_64
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static const int gpr_map[16] = {
    R_EAX, R_EBX, R_ECX, R_EDX, R_ESI, R_EDI, R_EBP, R_ESP,
    8, 9, 10, 11, 12, 13, 14, 15
};
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#else
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static const int gpr_map[8] = {0, 1, 2, 3, 4, 5, 6, 7};
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#endif

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#define NUM_CORE_REGS (CPU_NB_REGS * 2 + 25)

static int cpu_gdb_read_register(CPUState *env, uint8_t *mem_buf, int n)
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{
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    if (n < CPU_NB_REGS) {
        GET_REGL(env->regs[gpr_map[n]]);
    } else if (n >= CPU_NB_REGS + 8 && n < CPU_NB_REGS + 16) {
        /* FIXME: byteswap float values.  */
#ifdef USE_X86LDOUBLE
        memcpy(mem_buf, &env->fpregs[n - (CPU_NB_REGS + 8)], 10);
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#else
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        memset(mem_buf, 0, 10);
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#endif
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        return 10;
    } else if (n >= CPU_NB_REGS + 24) {
        n -= CPU_NB_REGS + 24;
        if (n < CPU_NB_REGS) {
            stq_p(mem_buf, env->xmm_regs[n].XMM_Q(0));
            stq_p(mem_buf + 8, env->xmm_regs[n].XMM_Q(1));
            return 16;
        } else if (n == CPU_NB_REGS) {
            GET_REG32(env->mxcsr);
        } 
    } else {
        n -= CPU_NB_REGS;
        switch (n) {
        case 0: GET_REGL(env->eip);
        case 1: GET_REG32(env->eflags);
        case 2: GET_REG32(env->segs[R_CS].selector);
        case 3: GET_REG32(env->segs[R_SS].selector);
        case 4: GET_REG32(env->segs[R_DS].selector);
        case 5: GET_REG32(env->segs[R_ES].selector);
        case 6: GET_REG32(env->segs[R_FS].selector);
        case 7: GET_REG32(env->segs[R_GS].selector);
        /* 8...15 x87 regs.  */
        case 16: GET_REG32(env->fpuc);
        case 17: GET_REG32((env->fpus & ~0x3800) | (env->fpstt & 0x7) << 11);
        case 18: GET_REG32(0); /* ftag */
        case 19: GET_REG32(0); /* fiseg */
        case 20: GET_REG32(0); /* fioff */
        case 21: GET_REG32(0); /* foseg */
        case 22: GET_REG32(0); /* fooff */
        case 23: GET_REG32(0); /* fop */
        /* 24+ xmm regs.  */
        }
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    }
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    return 0;
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}

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static int cpu_gdb_write_register(CPUState *env, uint8_t *mem_buf, int i)
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{
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    uint32_t tmp;
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    if (i < CPU_NB_REGS) {
        env->regs[gpr_map[i]] = ldtul_p(mem_buf);
        return sizeof(target_ulong);
    } else if (i >= CPU_NB_REGS + 8 && i < CPU_NB_REGS + 16) {
        i -= CPU_NB_REGS + 8;
#ifdef USE_X86LDOUBLE
        memcpy(&env->fpregs[i], mem_buf, 10);
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#endif
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        return 10;
    } else if (i >= CPU_NB_REGS + 24) {
        i -= CPU_NB_REGS + 24;
        if (i < CPU_NB_REGS) {
            env->xmm_regs[i].XMM_Q(0) = ldq_p(mem_buf);
            env->xmm_regs[i].XMM_Q(1) = ldq_p(mem_buf + 8);
            return 16;
        } else if (i == CPU_NB_REGS) {
            env->mxcsr = ldl_p(mem_buf);
            return 4;
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        }
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    } else {
        i -= CPU_NB_REGS;
        switch (i) {
        case 0: env->eip = ldtul_p(mem_buf); return sizeof(target_ulong);
        case 1: env->eflags = ldl_p(mem_buf); return 4;
#if defined(CONFIG_USER_ONLY)
#define LOAD_SEG(index, sreg)\
            tmp = ldl_p(mem_buf);\
            if (tmp != env->segs[sreg].selector)\
                cpu_x86_load_seg(env, sreg, tmp);
#else
/* FIXME: Honor segment registers.  Needs to avoid raising an exception
   when the selector is invalid.  */
#define LOAD_SEG(index, sreg) do {} while(0)
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#endif
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        case 2: LOAD_SEG(10, R_CS); return 4;
        case 3: LOAD_SEG(11, R_SS); return 4;
        case 4: LOAD_SEG(12, R_DS); return 4;
        case 5: LOAD_SEG(13, R_ES); return 4;
        case 6: LOAD_SEG(14, R_FS); return 4;
        case 7: LOAD_SEG(15, R_GS); return 4;
        /* 8...15 x87 regs.  */
        case 16: env->fpuc = ldl_p(mem_buf); return 4;
        case 17:
                 tmp = ldl_p(mem_buf);
                 env->fpstt = (tmp >> 11) & 7;
                 env->fpus = tmp & ~0x3800;
                 return 4;
        case 18: /* ftag */ return 4;
        case 19: /* fiseg */ return 4;
        case 20: /* fioff */ return 4;
        case 21: /* foseg */ return 4;
        case 22: /* fooff */ return 4;
        case 23: /* fop */ return 4;
        /* 24+ xmm regs.  */
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        }
    }
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    /* Unrecognised register.  */
    return 0;
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}

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#elif defined (TARGET_PPC)

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#define NUM_CORE_REGS 71
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static int cpu_gdb_read_register(CPUState *env, uint8_t *mem_buf, int n)
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{
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    if (n < 32) {
        /* gprs */
        GET_REGL(env->gpr[n]);
    } else if (n < 64) {
        /* fprs */
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        stfq_p(mem_buf, env->fpr[n-32]);
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        return 8;
    } else {
        switch (n) {
        case 64: GET_REGL(env->nip);
        case 65: GET_REGL(env->msr);
        case 66:
            {
                uint32_t cr = 0;
                int i;
                for (i = 0; i < 8; i++)
                    cr |= env->crf[i] << (32 - ((i + 1) * 4));
                GET_REG32(cr);
            }
        case 67: GET_REGL(env->lr);
        case 68: GET_REGL(env->ctr);
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        case 69: GET_REGL(env->xer);
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        case 70: GET_REG32(0); /* fpscr */
        }
    }
    return 0;
}
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static int cpu_gdb_write_register(CPUState *env, uint8_t *mem_buf, int n)
{
    if (n < 32) {
        /* gprs */
        env->gpr[n] = ldtul_p(mem_buf);
        return sizeof(target_ulong);
    } else if (n < 64) {
        /* fprs */
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        env->fpr[n-32] = ldfq_p(mem_buf);
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        return 8;
    } else {
        switch (n) {
        case 64:
            env->nip = ldtul_p(mem_buf);
            return sizeof(target_ulong);
        case 65:
            ppc_store_msr(env, ldtul_p(mem_buf));
            return sizeof(target_ulong);
        case 66:
            {
                uint32_t cr = ldl_p(mem_buf);
                int i;
                for (i = 0; i < 8; i++)
                    env->crf[i] = (cr >> (32 - ((i + 1) * 4))) & 0xF;
                return 4;
            }
        case 67:
            env->lr = ldtul_p(mem_buf);
            return sizeof(target_ulong);
        case 68:
            env->ctr = ldtul_p(mem_buf);
            return sizeof(target_ulong);
        case 69:
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            env->xer = ldtul_p(mem_buf);
            return sizeof(target_ulong);
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        case 70:
            /* fpscr */
            return 4;
        }
    }
    return 0;
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}
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#elif defined (TARGET_SPARC)
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#if defined(TARGET_SPARC64) && !defined(TARGET_ABI32)
#define NUM_CORE_REGS 86
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#else
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#define NUM_CORE_REGS 73
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#endif
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#ifdef TARGET_ABI32
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#define GET_REGA(val) GET_REG32(val)
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#else
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#define GET_REGA(val) GET_REGL(val)
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#endif
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static int cpu_gdb_read_register(CPUState *env, uint8_t *mem_buf, int n)
{
    if (n < 8) {
        /* g0..g7 */
        GET_REGA(env->gregs[n]);
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    }
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    if (n < 32) {
        /* register window */
        GET_REGA(env->regwptr[n - 8]);
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    }
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#if defined(TARGET_ABI32) || !defined(TARGET_SPARC64)
    if (n < 64) {
        /* fprs */
        GET_REG32(*((uint32_t *)&env->fpr[n - 32]));
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    }
    /* Y, PSR, WIM, TBR, PC, NPC, FPSR, CPSR */
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    switch (n) {
    case 64: GET_REGA(env->y);
    case 65: GET_REGA(GET_PSR(env));
    case 66: GET_REGA(env->wim);
    case 67: GET_REGA(env->tbr);
    case 68: GET_REGA(env->pc);
    case 69: GET_REGA(env->npc);
    case 70: GET_REGA(env->fsr);
    case 71: GET_REGA(0); /* csr */
    case 72: GET_REGA(0);
    }
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#else
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    if (n < 64) {
        /* f0-f31 */
        GET_REG32(*((uint32_t *)&env->fpr[n - 32]));
    }
    if (n < 80) {
        /* f32-f62 (double width, even numbers only) */
        uint64_t val;
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        val = (uint64_t)*((uint32_t *)&env->fpr[(n - 64) * 2 + 32]) << 32;
        val |= *((uint32_t *)&env->fpr[(n - 64) * 2 + 33]);
        GET_REG64(val);
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    }
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    switch (n) {
    case 80: GET_REGL(env->pc);
    case 81: GET_REGL(env->npc);
    case 82: GET_REGL(((uint64_t)GET_CCR(env) << 32) |
555 556 557
                           ((env->asi & 0xff) << 24) |
                           ((env->pstate & 0xfff) << 8) |
                           GET_CWP64(env));
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    case 83: GET_REGL(env->fsr);
    case 84: GET_REGL(env->fprs);
    case 85: GET_REGL(env->y);
    }
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#endif
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    return 0;
564 565
}

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static int cpu_gdb_write_register(CPUState *env, uint8_t *mem_buf, int n)
567
{
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#if defined(TARGET_ABI32)
    abi_ulong tmp;

    tmp = ldl_p(mem_buf);
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#else
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    target_ulong tmp;

    tmp = ldtul_p(mem_buf);
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#endif
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    if (n < 8) {
        /* g0..g7 */
        env->gregs[n] = tmp;
    } else if (n < 32) {
        /* register window */
        env->regwptr[n - 8] = tmp;
584
    }
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#if defined(TARGET_ABI32) || !defined(TARGET_SPARC64)
    else if (n < 64) {
        /* fprs */
        *((uint32_t *)&env->fpr[n - 32]) = tmp;
    } else {
        /* Y, PSR, WIM, TBR, PC, NPC, FPSR, CPSR */
        switch (n) {
        case 64: env->y = tmp; break;
        case 65: PUT_PSR(env, tmp); break;
        case 66: env->wim = tmp; break;
        case 67: env->tbr = tmp; break;
        case 68: env->pc = tmp; break;
        case 69: env->npc = tmp; break;
        case 70: env->fsr = tmp; break;
        default: return 0;
        }
601
    }
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    return 4;
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#else
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    else if (n < 64) {
        /* f0-f31 */
        env->fpr[n] = ldfl_p(mem_buf);
        return 4;
    } else if (n < 80) {
        /* f32-f62 (double width, even numbers only) */
        *((uint32_t *)&env->fpr[(n - 64) * 2 + 32]) = tmp >> 32;
        *((uint32_t *)&env->fpr[(n - 64) * 2 + 33]) = tmp;
    } else {
        switch (n) {
        case 80: env->pc = tmp; break;
        case 81: env->npc = tmp; break;
        case 82:
	    PUT_CCR(env, tmp >> 32);
	    env->asi = (tmp >> 24) & 0xff;
	    env->pstate = (tmp >> 8) & 0xfff;
	    PUT_CWP64(env, tmp & 0xff);
	    break;
        case 83: env->fsr = tmp; break;
        case 84: env->fprs = tmp; break;
        case 85: env->y = tmp; break;
        default: return 0;
        }
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    }
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    return 8;
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#endif
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}
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#elif defined (TARGET_ARM)
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/* Old gdb always expect FPA registers.  Newer (xml-aware) gdb only expect
   whatever the target description contains.  Due to a historical mishap
   the FPA registers appear in between core integer regs and the CPSR.
   We hack round this by giving the FPA regs zero size when talking to a
   newer gdb.  */
#define NUM_CORE_REGS 26
#define GDB_CORE_XML "arm-core.xml"
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static int cpu_gdb_read_register(CPUState *env, uint8_t *mem_buf, int n)
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{
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    if (n < 16) {
        /* Core integer register.  */
        GET_REG32(env->regs[n]);
    }
    if (n < 24) {
        /* FPA registers.  */
        if (gdb_has_xml)
            return 0;
        memset(mem_buf, 0, 12);
        return 12;
    }
    switch (n) {
    case 24:
        /* FPA status register.  */
        if (gdb_has_xml)
            return 0;
        GET_REG32(0);
    case 25:
        /* CPSR */
        GET_REG32(cpsr_read(env));
    }
    /* Unknown register.  */
    return 0;
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}
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static int cpu_gdb_write_register(CPUState *env, uint8_t *mem_buf, int n)
{
    uint32_t tmp;
671

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    tmp = ldl_p(mem_buf);
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    /* Mask out low bit of PC to workaround gdb bugs.  This will probably
       cause problems if we ever implement the Jazelle DBX extensions.  */
    if (n == 15)
        tmp &= ~1;
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    if (n < 16) {
        /* Core integer register.  */
        env->regs[n] = tmp;
        return 4;
    }
    if (n < 24) { /* 16-23 */
        /* FPA registers (ignored).  */
        if (gdb_has_xml)
            return 0;
        return 12;
    }
    switch (n) {
    case 24:
        /* FPA status register (ignored).  */
        if (gdb_has_xml)
            return 0;
        return 4;
    case 25:
        /* CPSR */
        cpsr_write (env, tmp, 0xffffffff);
        return 4;
    }
    /* Unknown register.  */
    return 0;
}
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#elif defined (TARGET_M68K)
706

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#define NUM_CORE_REGS 18
708

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#define GDB_CORE_XML "cf-core.xml"
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static int cpu_gdb_read_register(CPUState *env, uint8_t *mem_buf, int n)
{
    if (n < 8) {
        /* D0-D7 */
        GET_REG32(env->dregs[n]);
    } else if (n < 16) {
        /* A0-A7 */
        GET_REG32(env->aregs[n - 8]);
    } else {
	switch (n) {
        case 16: GET_REG32(env->sr);
        case 17: GET_REG32(env->pc);
        }
    }
    /* FP registers not included here because they vary between
       ColdFire and m68k.  Use XML bits for these.  */
    return 0;
}
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static int cpu_gdb_write_register(CPUState *env, uint8_t *mem_buf, int n)
{
    uint32_t tmp;
733

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    tmp = ldl_p(mem_buf);
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    if (n < 8) {
        /* D0-D7 */
        env->dregs[n] = tmp;
    } else if (n < 8) {
        /* A0-A7 */
        env->aregs[n - 8] = tmp;
    } else {
        switch (n) {
        case 16: env->sr = tmp; break;
        case 17: env->pc = tmp; break;
        default: return 0;
        }
    }
    return 4;
}
#elif defined (TARGET_MIPS)
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#define NUM_CORE_REGS 73
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static int cpu_gdb_read_register(CPUState *env, uint8_t *mem_buf, int n)
{
    if (n < 32) {
        GET_REGL(env->active_tc.gpr[n]);
    }
    if (env->CP0_Config1 & (1 << CP0C1_FP)) {
        if (n >= 38 && n < 70) {
            if (env->CP0_Status & (1 << CP0St_FR))
		GET_REGL(env->active_fpu.fpr[n - 38].d);
            else
		GET_REGL(env->active_fpu.fpr[n - 38].w[FP_ENDIAN_IDX]);
        }
        switch (n) {
        case 70: GET_REGL((int32_t)env->active_fpu.fcr31);
        case 71: GET_REGL((int32_t)env->active_fpu.fcr0);
        }
    }
    switch (n) {
    case 32: GET_REGL((int32_t)env->CP0_Status);
    case 33: GET_REGL(env->active_tc.LO[0]);
    case 34: GET_REGL(env->active_tc.HI[0]);
    case 35: GET_REGL(env->CP0_BadVAddr);
    case 36: GET_REGL((int32_t)env->CP0_Cause);
    case 37: GET_REGL(env->active_tc.PC);
    case 72: GET_REGL(0); /* fp */
    case 89: GET_REGL((int32_t)env->CP0_PRid);
    }
    if (n >= 73 && n <= 88) {
	/* 16 embedded regs.  */
	GET_REGL(0);
    }
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    return 0;
788 789
}

790 791 792 793 794 795 796 797 798
/* convert MIPS rounding mode in FCR31 to IEEE library */
static unsigned int ieee_rm[] =
  {
    float_round_nearest_even,
    float_round_to_zero,
    float_round_up,
    float_round_down
  };
#define RESTORE_ROUNDING_MODE \
799
    set_float_rounding_mode(ieee_rm[env->active_fpu.fcr31 & 3], &env->active_fpu.fp_status)
800

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static int cpu_gdb_write_register(CPUState *env, uint8_t *mem_buf, int n)
802
{
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    target_ulong tmp;
804

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    tmp = ldtul_p(mem_buf);
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    if (n < 32) {
        env->active_tc.gpr[n] = tmp;
        return sizeof(target_ulong);
    }
    if (env->CP0_Config1 & (1 << CP0C1_FP)
            && n >= 38 && n < 73) {
        if (n < 70) {
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            if (env->CP0_Status & (1 << CP0St_FR))
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              env->active_fpu.fpr[n - 38].d = tmp;
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            else
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              env->active_fpu.fpr[n - 38].w[FP_ENDIAN_IDX] = tmp;
        }
        switch (n) {
        case 70:
            env->active_fpu.fcr31 = tmp & 0xFF83FFFF;
            /* set rounding mode */
            RESTORE_ROUNDING_MODE;
824
#ifndef CONFIG_SOFTFLOAT
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            /* no floating point exception for native float */
            SET_FP_ENABLE(env->active_fpu.fcr31, 0);
827
#endif
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            break;
        case 71: env->active_fpu.fcr0 = tmp; break;
        }
        return sizeof(target_ulong);
    }
    switch (n) {
    case 32: env->CP0_Status = tmp; break;
    case 33: env->active_tc.LO[0] = tmp; break;
    case 34: env->active_tc.HI[0] = tmp; break;
    case 35: env->CP0_BadVAddr = tmp; break;
    case 36: env->CP0_Cause = tmp; break;
    case 37: env->active_tc.PC = tmp; break;
    case 72: /* fp, ignored */ break;
    default: 
	if (n > 89)
	    return 0;
	/* Other registers are readonly.  Ignore writes.  */
	break;
    }

    return sizeof(target_ulong);
849
}
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#elif defined (TARGET_SH4)
851 852

/* Hint: Use "set architecture sh4" in GDB to see fpu registers */
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/* FIXME: We should use XML for this.  */

#define NUM_CORE_REGS 59
856

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static int cpu_gdb_read_register(CPUState *env, uint8_t *mem_buf, int n)
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{
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    if (n < 8) {
        if ((env->sr & (SR_MD | SR_RB)) == (SR_MD | SR_RB)) {
            GET_REGL(env->gregs[n + 16]);
        } else {
            GET_REGL(env->gregs[n]);
        }
    } else if (n < 16) {
        GET_REGL(env->gregs[n - 8]);
    } else if (n >= 25 && n < 41) {
	GET_REGL(env->fregs[(n - 25) + ((env->fpscr & FPSCR_FR) ? 16 : 0)]);
    } else if (n >= 43 && n < 51) {
	GET_REGL(env->gregs[n - 43]);
    } else if (n >= 51 && n < 59) {
	GET_REGL(env->gregs[n - (51 - 16)]);
    }
    switch (n) {
    case 16: GET_REGL(env->pc);
    case 17: GET_REGL(env->pr);
    case 18: GET_REGL(env->gbr);
    case 19: GET_REGL(env->vbr);
    case 20: GET_REGL(env->mach);
    case 21: GET_REGL(env->macl);
    case 22: GET_REGL(env->sr);
    case 23: GET_REGL(env->fpul);
    case 24: GET_REGL(env->fpscr);
    case 41: GET_REGL(env->ssr);
    case 42: GET_REGL(env->spc);
    }

    return 0;
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}

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static int cpu_gdb_write_register(CPUState *env, uint8_t *mem_buf, int n)
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{
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    uint32_t tmp;

    tmp = ldl_p(mem_buf);

    if (n < 8) {
        if ((env->sr & (SR_MD | SR_RB)) == (SR_MD | SR_RB)) {
            env->gregs[n + 16] = tmp;
        } else {
            env->gregs[n] = tmp;
        }
	return 4;
    } else if (n < 16) {
        env->gregs[n - 8] = tmp;
	return 4;
    } else if (n >= 25 && n < 41) {
	env->fregs[(n - 25) + ((env->fpscr & FPSCR_FR) ? 16 : 0)] = tmp;
    } else if (n >= 43 && n < 51) {
	env->gregs[n - 43] = tmp;
	return 4;
    } else if (n >= 51 && n < 59) {
	env->gregs[n - (51 - 16)] = tmp;
	return 4;
    }
    switch (n) {
    case 16: env->pc = tmp;
    case 17: env->pr = tmp;
    case 18: env->gbr = tmp;
    case 19: env->vbr = tmp;
    case 20: env->mach = tmp;
    case 21: env->macl = tmp;
    case 22: env->sr = tmp;
    case 23: env->fpul = tmp;
    case 24: env->fpscr = tmp;
    case 41: env->ssr = tmp;
    case 42: env->spc = tmp;
    default: return 0;
    }

    return 4;
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}
933 934
#elif defined (TARGET_CRIS)

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#define NUM_CORE_REGS 49

static int cpu_gdb_read_register(CPUState *env, uint8_t *mem_buf, int n)
938
{
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    uint8_t srs;

    srs = env->pregs[PR_SRS];
    if (n < 16) {
	GET_REG32(env->regs[n]);
    }

    if (n >= 21 && n < 32) {
	GET_REG32(env->pregs[n - 16]);
    }
    if (n >= 33 && n < 49) {
	GET_REG32(env->sregs[srs][n - 33]);
    }
    switch (n) {
    case 16: GET_REG8(env->pregs[0]);
    case 17: GET_REG8(env->pregs[1]);
    case 18: GET_REG32(env->pregs[2]);
    case 19: GET_REG8(srs);
    case 20: GET_REG16(env->pregs[4]);
    case 32: GET_REG32(env->pc);
    }

    return 0;
962
}
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static int cpu_gdb_write_register(CPUState *env, uint8_t *mem_buf, int n)
965
{
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    uint32_t tmp;

    if (n > 49)
	return 0;

    tmp = ldl_p(mem_buf);

    if (n < 16) {
	env->regs[n] = tmp;
    }

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    if (n >= 21 && n < 32) {
	env->pregs[n - 16] = tmp;
    }

    /* FIXME: Should support function regs be writable?  */
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    switch (n) {
    case 16: return 1;
    case 17: return 1;
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    case 18: env->pregs[PR_PID] = tmp; break;
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    case 19: return 1;
    case 20: return 2;
    case 32: env->pc = tmp; break;
    }

    return 4;
992
}
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#else

#define NUM_CORE_REGS 0

static int cpu_gdb_read_register(CPUState *env, uint8_t *mem_buf, int n)
998
{
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    return 0;
1000 1001
}

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static int cpu_gdb_write_register(CPUState *env, uint8_t *mem_buf, int n)
1003
{
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    return 0;
}
1006

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#endif
1008

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static int num_g_regs = NUM_CORE_REGS;
1010

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#ifdef GDB_CORE_XML
/* Encode data using the encoding for 'x' packets.  */
static int memtox(char *buf, const char *mem, int len)
{
    char *p = buf;
    char c;

    while (len--) {
        c = *(mem++);
        switch (c) {
        case '#': case '$': case '*': case '}':
            *(p++) = '}';
            *(p++) = c ^ 0x20;
            break;
        default:
            *(p++) = c;
            break;
        }
    }
    return p - buf;
}
1032

1033
const char *get_feature_xml(const char *p, const char **newp)
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{
    extern const char *const xml_builtin[][2];
    size_t len;
    int i;
    const char *name;
    static char target_xml[1024];

    len = 0;
    while (p[len] && p[len] != ':')
        len++;
    *newp = p + len;

    name = NULL;
    if (strncmp(p, "target.xml", len) == 0) {
        /* Generate the XML description for this CPU.  */
        if (!target_xml[0]) {
            GDBRegisterState *r;

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            snprintf(target_xml, sizeof(target_xml),
                     "<?xml version=\"1.0\"?>"
                     "<!DOCTYPE target SYSTEM \"gdb-target.dtd\">"
                     "<target>"
                     "<xi:include href=\"%s\"/>",
                     GDB_CORE_XML);
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            for (r = first_cpu->gdb_regs; r; r = r->next) {
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                strcat(target_xml, "<xi:include href=\"");
                strcat(target_xml, r->xml);
                strcat(target_xml, "\"/>");
            }
            strcat(target_xml, "</target>");
        }
        return target_xml;
    }
    for (i = 0; ; i++) {
        name = xml_builtin[i][0];
        if (!name || (strncmp(name, p, len) == 0 && strlen(name) == len))
            break;
    }
    return name ? xml_builtin[i][1] : NULL;
}
#endif
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static int gdb_read_register(CPUState *env, uint8_t *mem_buf, int reg)
{
    GDBRegisterState *r;
1080

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    if (reg < NUM_CORE_REGS)
        return cpu_gdb_read_register(env, mem_buf, reg);
1083

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    for (r = env->gdb_regs; r; r = r->next) {
        if (r->base_reg <= reg && reg < r->base_reg + r->num_regs) {
            return r->get_reg(env, mem_buf, reg - r->base_reg);
        }
    }
    return 0;
1090 1091
}

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static int gdb_write_register(CPUState *env, uint8_t *mem_buf, int reg)
1093
{
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    GDBRegisterState *r;
1095

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    if (reg < NUM_CORE_REGS)
        return cpu_gdb_write_register(env, mem_buf, reg);

    for (r = env->gdb_regs; r; r = r->next) {
        if (r->base_reg <= reg && reg < r->base_reg + r->num_regs) {
            return r->set_reg(env, mem_buf, reg - r->base_reg);
        }
    }
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    return 0;
}

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/* Register a supplemental set of CPU registers.  If g_pos is nonzero it
   specifies the first register number and these registers are included in
   a standard "g" packet.  Direction is relative to gdb, i.e. get_reg is
   gdb reading a CPU register, and set_reg is gdb modifying a CPU register.
 */

void gdb_register_coprocessor(CPUState * env,
                             gdb_reg_cb get_reg, gdb_reg_cb set_reg,
                             int num_regs, const char *xml, int g_pos)
B
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1116
{
P
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1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143 1144
    GDBRegisterState *s;
    GDBRegisterState **p;
    static int last_reg = NUM_CORE_REGS;

    s = (GDBRegisterState *)qemu_mallocz(sizeof(GDBRegisterState));
    s->base_reg = last_reg;
    s->num_regs = num_regs;
    s->get_reg = get_reg;
    s->set_reg = set_reg;
    s->xml = xml;
    p = &env->gdb_regs;
    while (*p) {
        /* Check for duplicates.  */
        if (strcmp((*p)->xml, xml) == 0)
            return;
        p = &(*p)->next;
    }
    /* Add to end of list.  */
    last_reg += num_regs;
    *p = s;
    if (g_pos) {
        if (g_pos != s->base_reg) {
            fprintf(stderr, "Error: Bad gdb register numbering for '%s'\n"
                    "Expected %d got %d\n", xml, g_pos, s->base_reg);
        } else {
            num_g_regs = last_reg;
        }
    }
B
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1145 1146
}

1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161
/* GDB breakpoint/watchpoint types */
#define GDB_BREAKPOINT_SW        0
#define GDB_BREAKPOINT_HW        1
#define GDB_WATCHPOINT_WRITE     2
#define GDB_WATCHPOINT_READ      3
#define GDB_WATCHPOINT_ACCESS    4

#ifndef CONFIG_USER_ONLY
static const int xlat_gdb_type[] = {
    [GDB_WATCHPOINT_WRITE]  = BP_GDB | BP_MEM_WRITE,
    [GDB_WATCHPOINT_READ]   = BP_GDB | BP_MEM_READ,
    [GDB_WATCHPOINT_ACCESS] = BP_GDB | BP_MEM_ACCESS,
};
#endif

1162
static int gdb_breakpoint_insert(target_ulong addr, target_ulong len, int type)
1163
{
1164 1165 1166
    CPUState *env;
    int err = 0;

1167 1168 1169
    switch (type) {
    case GDB_BREAKPOINT_SW:
    case GDB_BREAKPOINT_HW:
1170 1171 1172 1173 1174 1175
        for (env = first_cpu; env != NULL; env = env->next_cpu) {
            err = cpu_breakpoint_insert(env, addr, BP_GDB, NULL);
            if (err)
                break;
        }
        return err;
1176 1177 1178 1179
#ifndef CONFIG_USER_ONLY
    case GDB_WATCHPOINT_WRITE:
    case GDB_WATCHPOINT_READ:
    case GDB_WATCHPOINT_ACCESS:
1180 1181 1182 1183 1184 1185 1186
        for (env = first_cpu; env != NULL; env = env->next_cpu) {
            err = cpu_watchpoint_insert(env, addr, len, xlat_gdb_type[type],
                                        NULL);
            if (err)
                break;
        }
        return err;
1187 1188 1189 1190 1191 1192
#endif
    default:
        return -ENOSYS;
    }
}

1193
static int gdb_breakpoint_remove(target_ulong addr, target_ulong len, int type)
1194
{
1195 1196 1197
    CPUState *env;
    int err = 0;

1198 1199 1200
    switch (type) {
    case GDB_BREAKPOINT_SW:
    case GDB_BREAKPOINT_HW:
1201 1202 1203 1204 1205 1206
        for (env = first_cpu; env != NULL; env = env->next_cpu) {
            err = cpu_breakpoint_remove(env, addr, BP_GDB);
            if (err)
                break;
        }
        return err;
1207 1208 1209 1210
#ifndef CONFIG_USER_ONLY
    case GDB_WATCHPOINT_WRITE:
    case GDB_WATCHPOINT_READ:
    case GDB_WATCHPOINT_ACCESS:
1211 1212 1213 1214 1215 1216
        for (env = first_cpu; env != NULL; env = env->next_cpu) {
            err = cpu_watchpoint_remove(env, addr, len, xlat_gdb_type[type]);
            if (err)
                break;
        }
        return err;
1217 1218 1219 1220 1221 1222
#endif
    default:
        return -ENOSYS;
    }
}

1223
static void gdb_breakpoint_remove_all(void)
1224
{
1225 1226 1227 1228
    CPUState *env;

    for (env = first_cpu; env != NULL; env = env->next_cpu) {
        cpu_breakpoint_remove_all(env, BP_GDB);
1229
#ifndef CONFIG_USER_ONLY
1230
        cpu_watchpoint_remove_all(env, BP_GDB);
1231
#endif
1232
    }
1233 1234
}

1235
static int gdb_handle_packet(GDBState *s, const char *line_buf)
B
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1236
{
1237
    CPUState *env;
B
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1238
    const char *p;
1239
    int ch, reg_size, type, res, thread;
P
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1240 1241 1242
    char buf[MAX_PACKET_LENGTH];
    uint8_t mem_buf[MAX_PACKET_LENGTH];
    uint8_t *registers;
1243
    target_ulong addr, len;
1244

1245 1246 1247 1248 1249 1250 1251
#ifdef DEBUG_GDB
    printf("command='%s'\n", line_buf);
#endif
    p = line_buf;
    ch = *p++;
    switch(ch) {
    case '?':
B
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1252
        /* TODO: Make this return the correct value for user-mode.  */
1253 1254
        snprintf(buf, sizeof(buf), "T%02xthread:%02x;", SIGTRAP,
                 s->c_cpu->cpu_index+1);
1255
        put_packet(s, buf);
1256 1257 1258 1259
        /* Remove all the breakpoints when this query is issued,
         * because gdb is doing and initial connect and the state
         * should be cleaned up.
         */
1260
        gdb_breakpoint_remove_all();
1261 1262 1263
        break;
    case 'c':
        if (*p != '\0') {
1264
            addr = strtoull(p, (char **)&p, 16);
B
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1265
#if defined(TARGET_I386)
1266
            s->c_cpu->eip = addr;
B
ppc fix  
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1267
#elif defined (TARGET_PPC)
1268
            s->c_cpu->nip = addr;
B
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1269
#elif defined (TARGET_SPARC)
1270 1271
            s->c_cpu->pc = addr;
            s->c_cpu->npc = addr + 4;
B
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1272
#elif defined (TARGET_ARM)
1273
            s->c_cpu->regs[15] = addr;
B
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1274
#elif defined (TARGET_SH4)
1275
            s->c_cpu->pc = addr;
1276
#elif defined (TARGET_MIPS)
1277
            s->c_cpu->active_tc.PC = addr;
1278
#elif defined (TARGET_CRIS)
1279
            s->c_cpu->pc = addr;
B
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1280
#endif
1281
        }
1282
        gdb_continue(s);
B
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1283
	return RS_IDLE;
1284 1285 1286 1287
    case 'C':
        s->signal = strtoul(p, (char **)&p, 16);
        gdb_continue(s);
        return RS_IDLE;
1288 1289 1290 1291 1292 1293
    case 'k':
        /* Kill the target */
        fprintf(stderr, "\nQEMU: Terminated via GDBstub\n");
        exit(0);
    case 'D':
        /* Detach packet */
1294
        gdb_breakpoint_remove_all();
1295 1296 1297
        gdb_continue(s);
        put_packet(s, "OK");
        break;
1298 1299
    case 's':
        if (*p != '\0') {
1300
            addr = strtoull(p, (char **)&p, 16);
B
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1301
#if defined(TARGET_I386)
1302
            s->c_cpu->eip = addr;
B
ppc fix  
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1303
#elif defined (TARGET_PPC)
1304
            s->c_cpu->nip = addr;
B
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1305
#elif defined (TARGET_SPARC)
1306 1307
            s->c_cpu->pc = addr;
            s->c_cpu->npc = addr + 4;
B
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1308
#elif defined (TARGET_ARM)
1309
            s->c_cpu->regs[15] = addr;
B
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1310
#elif defined (TARGET_SH4)
1311
            s->c_cpu->pc = addr;
1312
#elif defined (TARGET_MIPS)
1313
            s->c_cpu->active_tc.PC = addr;
1314
#elif defined (TARGET_CRIS)
1315
            s->c_cpu->pc = addr;
B
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1316
#endif
1317
        }
1318
        cpu_single_step(s->c_cpu, sstep_flags);
1319
        gdb_continue(s);
B
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1320
	return RS_IDLE;
P
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1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336
    case 'F':
        {
            target_ulong ret;
            target_ulong err;

            ret = strtoull(p, (char **)&p, 16);
            if (*p == ',') {
                p++;
                err = strtoull(p, (char **)&p, 16);
            } else {
                err = 0;
            }
            if (*p == ',')
                p++;
            type = *p;
            if (gdb_current_syscall_cb)
1337
                gdb_current_syscall_cb(s->c_cpu, ret, err);
P
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1338 1339 1340
            if (type == 'C') {
                put_packet(s, "T02");
            } else {
1341
                gdb_continue(s);
P
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1342 1343 1344
            }
        }
        break;
1345
    case 'g':
P
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1346 1347
        len = 0;
        for (addr = 0; addr < num_g_regs; addr++) {
1348
            reg_size = gdb_read_register(s->g_cpu, mem_buf + len, addr);
P
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1349 1350 1351
            len += reg_size;
        }
        memtohex(buf, mem_buf, len);
1352 1353 1354
        put_packet(s, buf);
        break;
    case 'G':
P
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1355
        registers = mem_buf;
1356 1357
        len = strlen(p) / 2;
        hextomem((uint8_t *)registers, p, len);
P
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1358
        for (addr = 0; addr < num_g_regs && len > 0; addr++) {
1359
            reg_size = gdb_write_register(s->g_cpu, registers, addr);
P
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1360 1361 1362
            len -= reg_size;
            registers += reg_size;
        }
1363 1364 1365
        put_packet(s, "OK");
        break;
    case 'm':
1366
        addr = strtoull(p, (char **)&p, 16);
1367 1368
        if (*p == ',')
            p++;
1369
        len = strtoull(p, NULL, 16);
1370
        if (cpu_memory_rw_debug(s->g_cpu, addr, mem_buf, len, 0) != 0) {
1371 1372 1373 1374 1375
            put_packet (s, "E14");
        } else {
            memtohex(buf, mem_buf, len);
            put_packet(s, buf);
        }
1376 1377
        break;
    case 'M':
1378
        addr = strtoull(p, (char **)&p, 16);
1379 1380
        if (*p == ',')
            p++;
1381
        len = strtoull(p, (char **)&p, 16);
1382
        if (*p == ':')
1383 1384
            p++;
        hextomem(mem_buf, p, len);
1385
        if (cpu_memory_rw_debug(s->g_cpu, addr, mem_buf, len, 1) != 0)
B
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1386
            put_packet(s, "E14");
1387 1388 1389
        else
            put_packet(s, "OK");
        break;
P
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1390 1391 1392 1393 1394 1395 1396
    case 'p':
        /* Older gdb are really dumb, and don't use 'g' if 'p' is avaialable.
           This works, but can be very slow.  Anything new enough to
           understand XML also knows how to use this properly.  */
        if (!gdb_has_xml)
            goto unknown_command;
        addr = strtoull(p, (char **)&p, 16);
1397
        reg_size = gdb_read_register(s->g_cpu, mem_buf, addr);
P
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1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412
        if (reg_size) {
            memtohex(buf, mem_buf, reg_size);
            put_packet(s, buf);
        } else {
            put_packet(s, "E14");
        }
        break;
    case 'P':
        if (!gdb_has_xml)
            goto unknown_command;
        addr = strtoull(p, (char **)&p, 16);
        if (*p == '=')
            p++;
        reg_size = strlen(p) / 2;
        hextomem(mem_buf, p, reg_size);
1413
        gdb_write_register(s->g_cpu, mem_buf, addr);
P
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1414 1415
        put_packet(s, "OK");
        break;
1416 1417 1418 1419 1420
    case 'Z':
    case 'z':
        type = strtoul(p, (char **)&p, 16);
        if (*p == ',')
            p++;
1421
        addr = strtoull(p, (char **)&p, 16);
1422 1423
        if (*p == ',')
            p++;
1424
        len = strtoull(p, (char **)&p, 16);
1425
        if (ch == 'Z')
1426
            res = gdb_breakpoint_insert(addr, len, type);
1427
        else
1428
            res = gdb_breakpoint_remove(addr, len, type);
1429 1430 1431
        if (res >= 0)
             put_packet(s, "OK");
        else if (res == -ENOSYS)
P
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1432
            put_packet(s, "");
1433 1434
        else
            put_packet(s, "E22");
1435
        break;
1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474
    case 'H':
        type = *p++;
        thread = strtoull(p, (char **)&p, 16);
        if (thread == -1 || thread == 0) {
            put_packet(s, "OK");
            break;
        }
        for (env = first_cpu; env != NULL; env = env->next_cpu)
            if (env->cpu_index + 1 == thread)
                break;
        if (env == NULL) {
            put_packet(s, "E22");
            break;
        }
        switch (type) {
        case 'c':
            s->c_cpu = env;
            put_packet(s, "OK");
            break;
        case 'g':
            s->g_cpu = env;
            put_packet(s, "OK");
            break;
        default:
             put_packet(s, "E22");
             break;
        }
        break;
    case 'T':
        thread = strtoull(p, (char **)&p, 16);
#ifndef CONFIG_USER_ONLY
        if (thread > 0 && thread < smp_cpus + 1)
#else
        if (thread == 1)
#endif
             put_packet(s, "OK");
        else
            put_packet(s, "E22");
        break;
1475
    case 'q':
1476 1477 1478 1479
    case 'Q':
        /* parse any 'q' packets here */
        if (!strcmp(p,"qemu.sstepbits")) {
            /* Query Breakpoint bit definitions */
B
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1480 1481 1482 1483
            snprintf(buf, sizeof(buf), "ENABLE=%x,NOIRQ=%x,NOTIMER=%x",
                     SSTEP_ENABLE,
                     SSTEP_NOIRQ,
                     SSTEP_NOTIMER);
1484 1485 1486 1487 1488 1489 1490
            put_packet(s, buf);
            break;
        } else if (strncmp(p,"qemu.sstep",10) == 0) {
            /* Display or change the sstep_flags */
            p += 10;
            if (*p != '=') {
                /* Display current setting */
B
blueswir1 已提交
1491
                snprintf(buf, sizeof(buf), "0x%x", sstep_flags);
1492 1493 1494 1495 1496 1497 1498 1499
                put_packet(s, buf);
                break;
            }
            p++;
            type = strtoul(p, (char **)&p, 16);
            sstep_flags = type;
            put_packet(s, "OK");
            break;
1500 1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528
        } else if (strcmp(p,"C") == 0) {
            /* "Current thread" remains vague in the spec, so always return
             *  the first CPU (gdb returns the first thread). */
            put_packet(s, "QC1");
            break;
        } else if (strcmp(p,"fThreadInfo") == 0) {
            s->query_cpu = first_cpu;
            goto report_cpuinfo;
        } else if (strcmp(p,"sThreadInfo") == 0) {
        report_cpuinfo:
            if (s->query_cpu) {
                snprintf(buf, sizeof(buf), "m%x", s->query_cpu->cpu_index+1);
                put_packet(s, buf);
                s->query_cpu = s->query_cpu->next_cpu;
            } else
                put_packet(s, "l");
            break;
        } else if (strncmp(p,"ThreadExtraInfo,", 16) == 0) {
            thread = strtoull(p+16, (char **)&p, 16);
            for (env = first_cpu; env != NULL; env = env->next_cpu)
                if (env->cpu_index + 1 == thread) {
                    len = snprintf((char *)mem_buf, sizeof(mem_buf),
                                   "CPU#%d [%s]", env->cpu_index,
                                   env->halted ? "halted " : "running");
                    memtohex(buf, mem_buf, len);
                    put_packet(s, buf);
                    break;
                }
            break;
1529 1530 1531
        }
#ifdef CONFIG_LINUX_USER
        else if (strncmp(p, "Offsets", 7) == 0) {
1532
            TaskState *ts = s->c_cpu->opaque;
1533

B
blueswir1 已提交
1534 1535 1536 1537 1538 1539
            snprintf(buf, sizeof(buf),
                     "Text=" TARGET_ABI_FMT_lx ";Data=" TARGET_ABI_FMT_lx
                     ";Bss=" TARGET_ABI_FMT_lx,
                     ts->info->code_offset,
                     ts->info->data_offset,
                     ts->info->data_offset);
1540 1541 1542 1543
            put_packet(s, buf);
            break;
        }
#endif
P
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1544
        if (strncmp(p, "Supported", 9) == 0) {
B
blueswir1 已提交
1545
            snprintf(buf, sizeof(buf), "PacketSize=%x", MAX_PACKET_LENGTH);
P
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1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558
#ifdef GDB_CORE_XML
            strcat(buf, ";qXfer:features:read+");
#endif
            put_packet(s, buf);
            break;
        }
#ifdef GDB_CORE_XML
        if (strncmp(p, "Xfer:features:read:", 19) == 0) {
            const char *xml;
            target_ulong total_len;

            gdb_has_xml = 1;
            p += 19;
1559
            xml = get_feature_xml(p, &p);
P
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1560
            if (!xml) {
B
blueswir1 已提交
1561
                snprintf(buf, sizeof(buf), "E00");
P
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1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574
                put_packet(s, buf);
                break;
            }

            if (*p == ':')
                p++;
            addr = strtoul(p, (char **)&p, 16);
            if (*p == ',')
                p++;
            len = strtoul(p, (char **)&p, 16);

            total_len = strlen(xml);
            if (addr > total_len) {
B
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1575
                snprintf(buf, sizeof(buf), "E00");
P
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1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592 1593 1594
                put_packet(s, buf);
                break;
            }
            if (len > (MAX_PACKET_LENGTH - 5) / 2)
                len = (MAX_PACKET_LENGTH - 5) / 2;
            if (len < total_len - addr) {
                buf[0] = 'm';
                len = memtox(buf + 1, xml + addr, len);
            } else {
                buf[0] = 'l';
                len = memtox(buf + 1, xml + addr, total_len - addr);
            }
            put_packet_binary(s, buf, len + 1);
            break;
        }
#endif
        /* Unrecognised 'q' command.  */
        goto unknown_command;

1595
    default:
P
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1596
    unknown_command:
1597 1598 1599 1600 1601 1602 1603 1604
        /* put empty packet */
        buf[0] = '\0';
        put_packet(s, buf);
        break;
    }
    return RS_IDLE;
}

1605 1606 1607 1608 1609 1610
void gdb_set_stop_cpu(CPUState *env)
{
    gdbserver_state->c_cpu = env;
    gdbserver_state->g_cpu = env;
}

B
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1611
#ifndef CONFIG_USER_ONLY
1612 1613
static void gdb_vm_stopped(void *opaque, int reason)
{
1614 1615
    GDBState *s = gdbserver_state;
    CPUState *env = s->c_cpu;
1616
    char buf[256];
1617
    const char *type;
1618 1619
    int ret;

P
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1620 1621 1622
    if (s->state == RS_SYSCALL)
        return;

1623
    /* disable single step if it was enable */
1624
    cpu_single_step(env, 0);
1625

B
bellard 已提交
1626
    if (reason == EXCP_DEBUG) {
1627 1628
        if (env->watchpoint_hit) {
            switch (env->watchpoint_hit->flags & BP_MEM_ACCESS) {
1629
            case BP_MEM_READ:
1630 1631
                type = "r";
                break;
1632
            case BP_MEM_ACCESS:
1633 1634 1635 1636 1637 1638
                type = "a";
                break;
            default:
                type = "";
                break;
            }
1639 1640 1641 1642
            snprintf(buf, sizeof(buf),
                     "T%02xthread:%02x;%swatch:" TARGET_FMT_lx ";",
                     SIGTRAP, env->cpu_index+1, type,
                     env->watchpoint_hit->vaddr);
1643
            put_packet(s, buf);
1644
            env->watchpoint_hit = NULL;
1645 1646
            return;
        }
1647
	tb_flush(env);
1648
        ret = SIGTRAP;
B
bellard 已提交
1649 1650 1651
    } else if (reason == EXCP_INTERRUPT) {
        ret = SIGINT;
    } else {
1652
        ret = 0;
B
bellard 已提交
1653
    }
1654
    snprintf(buf, sizeof(buf), "T%02xthread:%02x;", ret, env->cpu_index+1);
1655 1656
    put_packet(s, buf);
}
B
bellard 已提交
1657
#endif
1658

P
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1659 1660
/* Send a gdb syscall request.
   This accepts limited printf-style format specifiers, specifically:
P
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1661 1662 1663
    %x  - target_ulong argument printed in hex.
    %lx - 64-bit argument printed in hex.
    %s  - string pointer (target_ulong) and length (int) pair.  */
1664
void gdb_do_syscall(gdb_syscall_complete_cb cb, const char *fmt, ...)
P
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1665 1666 1667 1668 1669
{
    va_list va;
    char buf[256];
    char *p;
    target_ulong addr;
P
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1670
    uint64_t i64;
P
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1671 1672
    GDBState *s;

1673
    s = gdbserver_state;
P
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1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690
    if (!s)
        return;
    gdb_current_syscall_cb = cb;
    s->state = RS_SYSCALL;
#ifndef CONFIG_USER_ONLY
    vm_stop(EXCP_DEBUG);
#endif
    s->state = RS_IDLE;
    va_start(va, fmt);
    p = buf;
    *(p++) = 'F';
    while (*fmt) {
        if (*fmt == '%') {
            fmt++;
            switch (*fmt++) {
            case 'x':
                addr = va_arg(va, target_ulong);
B
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1691
                p += snprintf(p, &buf[sizeof(buf)] - p, TARGET_FMT_lx, addr);
P
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1692
                break;
P
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1693 1694 1695 1696
            case 'l':
                if (*(fmt++) != 'x')
                    goto bad_format;
                i64 = va_arg(va, uint64_t);
B
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1697
                p += snprintf(p, &buf[sizeof(buf)] - p, "%" PRIx64, i64);
P
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1698
                break;
P
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1699 1700
            case 's':
                addr = va_arg(va, target_ulong);
B
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1701 1702
                p += snprintf(p, &buf[sizeof(buf)] - p, TARGET_FMT_lx "/%x",
                              addr, va_arg(va, int));
P
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1703 1704
                break;
            default:
P
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1705
            bad_format:
P
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1706 1707 1708 1709 1710 1711 1712 1713
                fprintf(stderr, "gdbstub: Bad syscall format string '%s'\n",
                        fmt - 1);
                break;
            }
        } else {
            *(p++) = *(fmt++);
        }
    }
P
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1714
    *p = 0;
P
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1715 1716 1717
    va_end(va);
    put_packet(s, buf);
#ifdef CONFIG_USER_ONLY
1718
    gdb_handlesig(s->c_cpu, 0);
P
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#else
1720
    cpu_interrupt(s->c_cpu, CPU_INTERRUPT_EXIT);
P
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1721 1722 1723
#endif
}

B
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static void gdb_read_byte(GDBState *s, int ch)
1725 1726
{
    int i, csum;
T
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1727
    uint8_t reply;
1728

B
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1729
#ifndef CONFIG_USER_ONLY
1730 1731 1732 1733 1734 1735 1736
    if (s->last_packet_len) {
        /* Waiting for a response to the last packet.  If we see the start
           of a new command then abandon the previous response.  */
        if (ch == '-') {
#ifdef DEBUG_GDB
            printf("Got NACK, retransmitting\n");
#endif
T
ths 已提交
1737
            put_buffer(s, (uint8_t *)s->last_packet, s->last_packet_len);
1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748 1749
        }
#ifdef DEBUG_GDB
        else if (ch == '+')
            printf("Got ACK\n");
        else
            printf("Got '%c' when expecting ACK/NACK\n", ch);
#endif
        if (ch == '+' || ch == '$')
            s->last_packet_len = 0;
        if (ch != '$')
            return;
    }
1750 1751 1752 1753
    if (vm_running) {
        /* when the CPU is running, we cannot do anything except stop
           it when receiving a char */
        vm_stop(EXCP_INTERRUPT);
1754
    } else
B
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#endif
B
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1756
    {
1757 1758 1759 1760 1761
        switch(s->state) {
        case RS_IDLE:
            if (ch == '$') {
                s->line_buf_index = 0;
                s->state = RS_GETLINE;
B
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1762
            }
B
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1763
            break;
1764 1765 1766 1767 1768
        case RS_GETLINE:
            if (ch == '#') {
            s->state = RS_CHKSUM1;
            } else if (s->line_buf_index >= sizeof(s->line_buf) - 1) {
                s->state = RS_IDLE;
B
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1769
            } else {
1770
            s->line_buf[s->line_buf_index++] = ch;
B
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1771 1772
            }
            break;
1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784
        case RS_CHKSUM1:
            s->line_buf[s->line_buf_index] = '\0';
            s->line_csum = fromhex(ch) << 4;
            s->state = RS_CHKSUM2;
            break;
        case RS_CHKSUM2:
            s->line_csum |= fromhex(ch);
            csum = 0;
            for(i = 0; i < s->line_buf_index; i++) {
                csum += s->line_buf[i];
            }
            if (s->line_csum != (csum & 0xff)) {
T
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1785 1786
                reply = '-';
                put_buffer(s, &reply, 1);
1787
                s->state = RS_IDLE;
B
bellard 已提交
1788
            } else {
T
ths 已提交
1789 1790
                reply = '+';
                put_buffer(s, &reply, 1);
1791
                s->state = gdb_handle_packet(s, s->line_buf);
B
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1792 1793
            }
            break;
P
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1794 1795
        default:
            abort();
1796 1797 1798 1799
        }
    }
}

B
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1800 1801 1802 1803 1804 1805 1806 1807
#ifdef CONFIG_USER_ONLY
int
gdb_handlesig (CPUState *env, int sig)
{
  GDBState *s;
  char buf[256];
  int n;

1808
  s = gdbserver_state;
1809 1810
  if (gdbserver_fd < 0 || s->fd < 0)
    return sig;
B
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1811 1812 1813 1814 1815 1816 1817 1818 1819 1820

  /* disable single step if it was enabled */
  cpu_single_step(env, 0);
  tb_flush(env);

  if (sig != 0)
    {
      snprintf(buf, sizeof(buf), "S%02x", sig);
      put_packet(s, buf);
    }
1821 1822 1823 1824
  /* put_packet() might have detected that the peer terminated the 
     connection.  */
  if (s->fd < 0)
      return sig;
B
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1825 1826 1827

  sig = 0;
  s->state = RS_IDLE;
B
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1828 1829
  s->running_state = 0;
  while (s->running_state == 0) {
B
bellard 已提交
1830 1831 1832 1833 1834 1835
      n = read (s->fd, buf, 256);
      if (n > 0)
        {
          int i;

          for (i = 0; i < n; i++)
B
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1836
            gdb_read_byte (s, buf[i]);
B
bellard 已提交
1837 1838 1839 1840 1841 1842 1843
        }
      else if (n == 0 || errno != EAGAIN)
        {
          /* XXX: Connection closed.  Should probably wait for annother
             connection before continuing.  */
          return sig;
        }
B
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1844
  }
1845 1846
  sig = s->signal;
  s->signal = 0;
B
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1847 1848
  return sig;
}
1849 1850 1851 1852 1853 1854 1855

/* Tell the remote gdb that the process has exited.  */
void gdb_exit(CPUState *env, int code)
{
  GDBState *s;
  char buf[4];

1856
  s = gdbserver_state;
1857 1858
  if (gdbserver_fd < 0 || s->fd < 0)
    return;
1859 1860 1861 1862 1863

  snprintf(buf, sizeof(buf), "W%02x", code);
  put_packet(s, buf);
}

B
bellard 已提交
1864

1865
static void gdb_accept(void)
1866 1867 1868 1869 1870 1871 1872 1873 1874 1875 1876 1877 1878
{
    GDBState *s;
    struct sockaddr_in sockaddr;
    socklen_t len;
    int val, fd;

    for(;;) {
        len = sizeof(sockaddr);
        fd = accept(gdbserver_fd, (struct sockaddr *)&sockaddr, &len);
        if (fd < 0 && errno != EINTR) {
            perror("accept");
            return;
        } else if (fd >= 0) {
B
bellard 已提交
1879 1880 1881
            break;
        }
    }
1882 1883 1884

    /* set short latency */
    val = 1;
B
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1885
    setsockopt(fd, IPPROTO_TCP, TCP_NODELAY, (char *)&val, sizeof(val));
1886

1887 1888 1889 1890 1891 1892 1893
    s = qemu_mallocz(sizeof(GDBState));
    if (!s) {
        errno = ENOMEM;
        perror("accept");
        return;
    }

B
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1894
    memset (s, 0, sizeof (GDBState));
1895 1896
    s->c_cpu = first_cpu;
    s->g_cpu = first_cpu;
1897
    s->fd = fd;
P
pbrook 已提交
1898
    gdb_has_xml = 0;
1899

1900
    gdbserver_state = s;
P
pbrook 已提交
1901

1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915 1916 1917
    fcntl(fd, F_SETFL, O_NONBLOCK);
}

static int gdbserver_open(int port)
{
    struct sockaddr_in sockaddr;
    int fd, val, ret;

    fd = socket(PF_INET, SOCK_STREAM, 0);
    if (fd < 0) {
        perror("socket");
        return -1;
    }

    /* allow fast reuse */
    val = 1;
B
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1918
    setsockopt(fd, SOL_SOCKET, SO_REUSEADDR, (char *)&val, sizeof(val));
1919 1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932 1933 1934 1935 1936 1937 1938 1939 1940 1941

    sockaddr.sin_family = AF_INET;
    sockaddr.sin_port = htons(port);
    sockaddr.sin_addr.s_addr = 0;
    ret = bind(fd, (struct sockaddr *)&sockaddr, sizeof(sockaddr));
    if (ret < 0) {
        perror("bind");
        return -1;
    }
    ret = listen(fd, 0);
    if (ret < 0) {
        perror("listen");
        return -1;
    }
    return fd;
}

int gdbserver_start(int port)
{
    gdbserver_fd = gdbserver_open(port);
    if (gdbserver_fd < 0)
        return -1;
    /* accept connections */
1942
    gdb_accept();
1943 1944
    return 0;
}
B
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1945
#else
T
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1946
static int gdb_chr_can_receive(void *opaque)
1947
{
P
pbrook 已提交
1948 1949 1950
  /* We can handle an arbitrarily large amount of data.
   Pick the maximum packet size, which is as good as anything.  */
  return MAX_PACKET_LENGTH;
1951 1952
}

T
ths 已提交
1953
static void gdb_chr_receive(void *opaque, const uint8_t *buf, int size)
1954 1955 1956 1957
{
    int i;

    for (i = 0; i < size; i++) {
1958
        gdb_read_byte(gdbserver_state, buf[i]);
1959 1960 1961 1962 1963 1964 1965 1966
    }
}

static void gdb_chr_event(void *opaque, int event)
{
    switch (event) {
    case CHR_EVENT_RESET:
        vm_stop(EXCP_INTERRUPT);
P
pbrook 已提交
1967
        gdb_has_xml = 0;
1968 1969 1970 1971 1972 1973
        break;
    default:
        break;
    }
}

1974
int gdbserver_start(const char *port)
1975 1976
{
    GDBState *s;
1977 1978 1979 1980 1981 1982 1983
    char gdbstub_port_name[128];
    int port_num;
    char *p;
    CharDriverState *chr;

    if (!port || !*port)
      return -1;
1984

1985 1986 1987 1988 1989 1990 1991 1992
    port_num = strtol(port, &p, 10);
    if (*p == 0) {
        /* A numeric value is interpreted as a port number.  */
        snprintf(gdbstub_port_name, sizeof(gdbstub_port_name),
                 "tcp::%d,nowait,nodelay,server", port_num);
        port = gdbstub_port_name;
    }

1993
    chr = qemu_chr_open("gdb", port);
1994 1995 1996 1997 1998 1999 2000
    if (!chr)
        return -1;

    s = qemu_mallocz(sizeof(GDBState));
    if (!s) {
        return -1;
    }
2001 2002
    s->c_cpu = first_cpu;
    s->g_cpu = first_cpu;
2003
    s->chr = chr;
2004
    gdbserver_state = s;
T
ths 已提交
2005
    qemu_chr_add_handlers(chr, gdb_chr_can_receive, gdb_chr_receive,
2006 2007
                          gdb_chr_event, NULL);
    qemu_add_vm_stop_handler(gdb_vm_stopped, NULL);
B
bellard 已提交
2008 2009
    return 0;
}
2010
#endif