main.c 38.7 KB
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/*
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 *  qemu user main
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 * 
 *  Copyright (c) 2003 Fabrice Bellard
 *
 *  This program is free software; you can redistribute it and/or modify
 *  it under the terms of the GNU General Public License as published by
 *  the Free Software Foundation; either version 2 of the License, or
 *  (at your option) any later version.
 *
 *  This program 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 General Public License for more details.
 *
 *  You should have received a copy of the GNU General Public License
 *  along with this program; if not, write to the Free Software
 *  Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
 */
#include <stdlib.h>
#include <stdio.h>
#include <stdarg.h>
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#include <string.h>
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#include <errno.h>
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#include <unistd.h>
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#include "qemu.h"
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#define DEBUG_LOGFILE "/tmp/qemu.log"
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#ifdef __APPLE__
#include <crt_externs.h>
# define environ  (*_NSGetEnviron())
#endif

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static const char *interp_prefix = CONFIG_QEMU_PREFIX;
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#if defined(__i386__) && !defined(CONFIG_STATIC)
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/* Force usage of an ELF interpreter even if it is an ELF shared
   object ! */
const char interp[] __attribute__((section(".interp"))) = "/lib/ld-linux.so.2";
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#endif
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/* for recent libc, we add these dummy symbols which are not declared
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   when generating a linked object (bug in ld ?) */
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#if (__GLIBC__ > 2 || (__GLIBC__ == 2 && __GLIBC_MINOR__ >= 3)) && !defined(CONFIG_STATIC)
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long __preinit_array_start[0];
long __preinit_array_end[0];
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long __init_array_start[0];
long __init_array_end[0];
long __fini_array_start[0];
long __fini_array_end[0];
#endif

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/* XXX: on x86 MAP_GROWSDOWN only works if ESP <= address + 32, so
   we allocate a bigger stack. Need a better solution, for example
   by remapping the process stack directly at the right place */
unsigned long x86_stack_size = 512 * 1024;
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void gemu_log(const char *fmt, ...)
{
    va_list ap;

    va_start(ap, fmt);
    vfprintf(stderr, fmt, ap);
    va_end(ap);
}

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void cpu_outb(CPUState *env, int addr, int val)
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{
    fprintf(stderr, "outb: port=0x%04x, data=%02x\n", addr, val);
}

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void cpu_outw(CPUState *env, int addr, int val)
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{
    fprintf(stderr, "outw: port=0x%04x, data=%04x\n", addr, val);
}

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void cpu_outl(CPUState *env, int addr, int val)
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{
    fprintf(stderr, "outl: port=0x%04x, data=%08x\n", addr, val);
}

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int cpu_inb(CPUState *env, int addr)
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{
    fprintf(stderr, "inb: port=0x%04x\n", addr);
    return 0;
}

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int cpu_inw(CPUState *env, int addr)
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{
    fprintf(stderr, "inw: port=0x%04x\n", addr);
    return 0;
}

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int cpu_inl(CPUState *env, int addr)
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{
    fprintf(stderr, "inl: port=0x%04x\n", addr);
    return 0;
}

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int cpu_get_pic_interrupt(CPUState *env)
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{
    return -1;
}

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/* timers for rdtsc */

#if defined(__i386__)

int64_t cpu_get_real_ticks(void)
{
    int64_t val;
    asm volatile ("rdtsc" : "=A" (val));
    return val;
}

#elif defined(__x86_64__)

int64_t cpu_get_real_ticks(void)
{
    uint32_t low,high;
    int64_t val;
    asm volatile("rdtsc" : "=a" (low), "=d" (high));
    val = high;
    val <<= 32;
    val |= low;
    return val;
}

#else

static uint64_t emu_time;

int64_t cpu_get_real_ticks(void)
{
    return emu_time++;
}

#endif

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#ifdef TARGET_I386
/***********************************************************/
/* CPUX86 core interface */

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uint64_t cpu_get_tsc(CPUX86State *env)
{
    return cpu_get_real_ticks();
}

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static void write_dt(void *ptr, unsigned long addr, unsigned long limit, 
                     int flags)
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{
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    unsigned int e1, e2;
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    e1 = (addr << 16) | (limit & 0xffff);
    e2 = ((addr >> 16) & 0xff) | (addr & 0xff000000) | (limit & 0x000f0000);
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    e2 |= flags;
    stl((uint8_t *)ptr, e1);
    stl((uint8_t *)ptr + 4, e2);
}

static void set_gate(void *ptr, unsigned int type, unsigned int dpl, 
                     unsigned long addr, unsigned int sel)
{
    unsigned int e1, e2;
    e1 = (addr & 0xffff) | (sel << 16);
    e2 = (addr & 0xffff0000) | 0x8000 | (dpl << 13) | (type << 8);
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    stl((uint8_t *)ptr, e1);
    stl((uint8_t *)ptr + 4, e2);
}

uint64_t gdt_table[6];
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uint64_t idt_table[256];

/* only dpl matters as we do only user space emulation */
static void set_idt(int n, unsigned int dpl)
{
    set_gate(idt_table + n, 0, dpl, 0, 0);
}
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void cpu_loop(CPUX86State *env)
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{
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    int trapnr;
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    target_ulong pc;
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    target_siginfo_t info;
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    for(;;) {
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        trapnr = cpu_x86_exec(env);
        switch(trapnr) {
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        case 0x80:
            /* linux syscall */
            env->regs[R_EAX] = do_syscall(env, 
                                          env->regs[R_EAX], 
                                          env->regs[R_EBX],
                                          env->regs[R_ECX],
                                          env->regs[R_EDX],
                                          env->regs[R_ESI],
                                          env->regs[R_EDI],
                                          env->regs[R_EBP]);
            break;
        case EXCP0B_NOSEG:
        case EXCP0C_STACK:
            info.si_signo = SIGBUS;
            info.si_errno = 0;
            info.si_code = TARGET_SI_KERNEL;
            info._sifields._sigfault._addr = 0;
            queue_signal(info.si_signo, &info);
            break;
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        case EXCP0D_GPF:
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            if (env->eflags & VM_MASK) {
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                handle_vm86_fault(env);
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            } else {
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                info.si_signo = SIGSEGV;
                info.si_errno = 0;
                info.si_code = TARGET_SI_KERNEL;
                info._sifields._sigfault._addr = 0;
                queue_signal(info.si_signo, &info);
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            }
            break;
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        case EXCP0E_PAGE:
            info.si_signo = SIGSEGV;
            info.si_errno = 0;
            if (!(env->error_code & 1))
                info.si_code = TARGET_SEGV_MAPERR;
            else
                info.si_code = TARGET_SEGV_ACCERR;
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            info._sifields._sigfault._addr = env->cr[2];
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            queue_signal(info.si_signo, &info);
            break;
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        case EXCP00_DIVZ:
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            if (env->eflags & VM_MASK) {
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                handle_vm86_trap(env, trapnr);
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            } else {
                /* division by zero */
                info.si_signo = SIGFPE;
                info.si_errno = 0;
                info.si_code = TARGET_FPE_INTDIV;
                info._sifields._sigfault._addr = env->eip;
                queue_signal(info.si_signo, &info);
            }
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            break;
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        case EXCP01_SSTP:
        case EXCP03_INT3:
            if (env->eflags & VM_MASK) {
                handle_vm86_trap(env, trapnr);
            } else {
                info.si_signo = SIGTRAP;
                info.si_errno = 0;
                if (trapnr == EXCP01_SSTP) {
                    info.si_code = TARGET_TRAP_BRKPT;
                    info._sifields._sigfault._addr = env->eip;
                } else {
                    info.si_code = TARGET_SI_KERNEL;
                    info._sifields._sigfault._addr = 0;
                }
                queue_signal(info.si_signo, &info);
            }
            break;
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        case EXCP04_INTO:
        case EXCP05_BOUND:
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            if (env->eflags & VM_MASK) {
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                handle_vm86_trap(env, trapnr);
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            } else {
                info.si_signo = SIGSEGV;
                info.si_errno = 0;
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                info.si_code = TARGET_SI_KERNEL;
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                info._sifields._sigfault._addr = 0;
                queue_signal(info.si_signo, &info);
            }
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            break;
        case EXCP06_ILLOP:
            info.si_signo = SIGILL;
            info.si_errno = 0;
            info.si_code = TARGET_ILL_ILLOPN;
            info._sifields._sigfault._addr = env->eip;
            queue_signal(info.si_signo, &info);
            break;
        case EXCP_INTERRUPT:
            /* just indicate that signals should be handled asap */
            break;
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        case EXCP_DEBUG:
            {
                int sig;

                sig = gdb_handlesig (env, TARGET_SIGTRAP);
                if (sig)
                  {
                    info.si_signo = sig;
                    info.si_errno = 0;
                    info.si_code = TARGET_TRAP_BRKPT;
                    queue_signal(info.si_signo, &info);
                  }
            }
            break;
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        default:
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            pc = env->segs[R_CS].base + env->eip;
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            fprintf(stderr, "qemu: 0x%08lx: unhandled CPU exception 0x%x - aborting\n", 
                    (long)pc, trapnr);
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            abort();
        }
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        process_pending_signals(env);
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    }
}
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#endif

#ifdef TARGET_ARM

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/* XXX: find a better solution */
extern void tb_invalidate_page_range(target_ulong start, target_ulong end);

static void arm_cache_flush(target_ulong start, target_ulong last)
{
    target_ulong addr, last1;

    if (last < start)
        return;
    addr = start;
    for(;;) {
        last1 = ((addr + TARGET_PAGE_SIZE) & TARGET_PAGE_MASK) - 1;
        if (last1 > last)
            last1 = last;
        tb_invalidate_page_range(addr, last1 + 1);
        if (last1 == last)
            break;
        addr = last1 + 1;
    }
}

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void cpu_loop(CPUARMState *env)
{
    int trapnr;
    unsigned int n, insn;
    target_siginfo_t info;
    
    for(;;) {
        trapnr = cpu_arm_exec(env);
        switch(trapnr) {
        case EXCP_UDEF:
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            {
                TaskState *ts = env->opaque;
                uint32_t opcode;

                /* we handle the FPU emulation here, as Linux */
                /* we get the opcode */
                opcode = ldl_raw((uint8_t *)env->regs[15]);
                
                if (EmulateAll(opcode, &ts->fpa, env->regs) == 0) {
                    info.si_signo = SIGILL;
                    info.si_errno = 0;
                    info.si_code = TARGET_ILL_ILLOPN;
                    info._sifields._sigfault._addr = env->regs[15];
                    queue_signal(info.si_signo, &info);
                } else {
                    /* increment PC */
                    env->regs[15] += 4;
                }
            }
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            break;
        case EXCP_SWI:
            {
                /* system call */
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                if (env->thumb) {
                    insn = lduw((void *)(env->regs[15] - 2));
                    n = insn & 0xff;
                } else {
                    insn = ldl((void *)(env->regs[15] - 4));
                    n = insn & 0xffffff;
                }

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                if (n == ARM_NR_cacheflush) {
                    arm_cache_flush(env->regs[0], env->regs[1]);
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                } else if (n == ARM_NR_semihosting
                           || n == ARM_NR_thumb_semihosting) {
                    env->regs[0] = do_arm_semihosting (env);
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                } else if (n >= ARM_SYSCALL_BASE
                           || (env->thumb && n == ARM_THUMB_SYSCALL)) {
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                    /* linux syscall */
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                    if (env->thumb) {
                        n = env->regs[7];
                    } else {
                        n -= ARM_SYSCALL_BASE;
                    }
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                    env->regs[0] = do_syscall(env, 
                                              n, 
                                              env->regs[0],
                                              env->regs[1],
                                              env->regs[2],
                                              env->regs[3],
                                              env->regs[4],
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                                              env->regs[5]);
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                } else {
                    goto error;
                }
            }
            break;
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        case EXCP_INTERRUPT:
            /* just indicate that signals should be handled asap */
            break;
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        case EXCP_PREFETCH_ABORT:
        case EXCP_DATA_ABORT:
            {
                info.si_signo = SIGSEGV;
                info.si_errno = 0;
                /* XXX: check env->error_code */
                info.si_code = TARGET_SEGV_MAPERR;
                info._sifields._sigfault._addr = env->cp15_6;
                queue_signal(info.si_signo, &info);
            }
            break;
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        case EXCP_DEBUG:
            {
                int sig;

                sig = gdb_handlesig (env, TARGET_SIGTRAP);
                if (sig)
                  {
                    info.si_signo = sig;
                    info.si_errno = 0;
                    info.si_code = TARGET_TRAP_BRKPT;
                    queue_signal(info.si_signo, &info);
                  }
            }
            break;
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        default:
        error:
            fprintf(stderr, "qemu: unhandled CPU exception 0x%x - aborting\n", 
                    trapnr);
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            cpu_dump_state(env, stderr, fprintf, 0);
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            abort();
        }
        process_pending_signals(env);
    }
}

#endif
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#ifdef TARGET_SPARC

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//#define DEBUG_WIN

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/* WARNING: dealing with register windows _is_ complicated. More info
   can be found at http://www.sics.se/~psm/sparcstack.html */
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static inline int get_reg_index(CPUSPARCState *env, int cwp, int index)
{
    index = (index + cwp * 16) & (16 * NWINDOWS - 1);
    /* wrap handling : if cwp is on the last window, then we use the
       registers 'after' the end */
    if (index < 8 && env->cwp == (NWINDOWS - 1))
        index += (16 * NWINDOWS);
    return index;
}

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/* save the register window 'cwp1' */
static inline void save_window_offset(CPUSPARCState *env, int cwp1)
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{
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    unsigned int i;
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    uint32_t *sp_ptr;
    
    sp_ptr = (uint32_t *)(env->regbase[get_reg_index(env, cwp1, 6)]);
#if defined(DEBUG_WIN)
    printf("win_overflow: sp_ptr=0x%x save_cwp=%d\n", 
           (int)sp_ptr, cwp1);
#endif
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    for(i = 0; i < 16; i++) {
        put_user(env->regbase[get_reg_index(env, cwp1, 8 + i)], sp_ptr);
        sp_ptr++;
    }
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}

static void save_window(CPUSPARCState *env)
{
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    unsigned int new_wim;
    new_wim = ((env->wim >> 1) | (env->wim << (NWINDOWS - 1))) &
        ((1LL << NWINDOWS) - 1);
    save_window_offset(env, (env->cwp - 2) & (NWINDOWS - 1));
    env->wim = new_wim;
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}

static void restore_window(CPUSPARCState *env)
{
    unsigned int new_wim, i, cwp1;
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    uint32_t *sp_ptr, reg;
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    new_wim = ((env->wim << 1) | (env->wim >> (NWINDOWS - 1))) &
        ((1LL << NWINDOWS) - 1);
    
    /* restore the invalid window */
    cwp1 = (env->cwp + 1) & (NWINDOWS - 1);
    sp_ptr = (uint32_t *)(env->regbase[get_reg_index(env, cwp1, 6)]);
#if defined(DEBUG_WIN)
    printf("win_underflow: sp_ptr=0x%x load_cwp=%d\n", 
           (int)sp_ptr, cwp1);
#endif
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    for(i = 0; i < 16; i++) {
        get_user(reg, sp_ptr);
        env->regbase[get_reg_index(env, cwp1, 8 + i)] = reg;
        sp_ptr++;
    }
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    env->wim = new_wim;
}

static void flush_windows(CPUSPARCState *env)
{
    int offset, cwp1;
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    offset = 1;
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    for(;;) {
        /* if restore would invoke restore_window(), then we can stop */
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        cwp1 = (env->cwp + offset) & (NWINDOWS - 1);
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        if (env->wim & (1 << cwp1))
            break;
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        save_window_offset(env, cwp1);
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        offset++;
    }
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    /* set wim so that restore will reload the registers */
    cwp1 = (env->cwp + 1) & (NWINDOWS - 1);
    env->wim = 1 << cwp1;
#if defined(DEBUG_WIN)
    printf("flush_windows: nb=%d\n", offset - 1);
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#endif
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}
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void cpu_loop (CPUSPARCState *env)
{
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    int trapnr, ret;
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    target_siginfo_t info;
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    while (1) {
        trapnr = cpu_sparc_exec (env);
        
        switch (trapnr) {
        case 0x88: 
        case 0x90:
            ret = do_syscall (env, env->gregs[1],
                              env->regwptr[0], env->regwptr[1], 
                              env->regwptr[2], env->regwptr[3], 
                              env->regwptr[4], env->regwptr[5]);
            if ((unsigned int)ret >= (unsigned int)(-515)) {
                env->psr |= PSR_CARRY;
                ret = -ret;
            } else {
                env->psr &= ~PSR_CARRY;
            }
            env->regwptr[0] = ret;
            /* next instruction */
            env->pc = env->npc;
            env->npc = env->npc + 4;
            break;
        case 0x83: /* flush windows */
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            flush_windows(env);
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            /* next instruction */
            env->pc = env->npc;
            env->npc = env->npc + 4;
            break;
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#ifndef TARGET_SPARC64
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        case TT_WIN_OVF: /* window overflow */
            save_window(env);
            break;
        case TT_WIN_UNF: /* window underflow */
            restore_window(env);
            break;
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        case TT_TFAULT:
        case TT_DFAULT:
            {
                info.si_signo = SIGSEGV;
                info.si_errno = 0;
                /* XXX: check env->error_code */
                info.si_code = TARGET_SEGV_MAPERR;
                info._sifields._sigfault._addr = env->mmuregs[4];
                queue_signal(info.si_signo, &info);
            }
            break;
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#else
	    // XXX
#endif
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	case 0x100: // XXX, why do we get these?
	    break;
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        case EXCP_DEBUG:
            {
                int sig;

                sig = gdb_handlesig (env, TARGET_SIGTRAP);
                if (sig)
                  {
                    info.si_signo = sig;
                    info.si_errno = 0;
                    info.si_code = TARGET_TRAP_BRKPT;
                    queue_signal(info.si_signo, &info);
                  }
            }
            break;
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        default:
            printf ("Unhandled trap: 0x%x\n", trapnr);
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            cpu_dump_state(env, stderr, fprintf, 0);
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            exit (1);
        }
        process_pending_signals (env);
    }
599 600 601 602
}

#endif

603
#ifdef TARGET_PPC
604 605 606 607 608 609 610 611 612 613 614 615 616 617 618 619 620 621 622 623 624 625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645 646

static inline uint64_t cpu_ppc_get_tb (CPUState *env)
{
    /* TO FIX */
    return 0;
}
  
uint32_t cpu_ppc_load_tbl (CPUState *env)
{
    return cpu_ppc_get_tb(env) & 0xFFFFFFFF;
}
  
uint32_t cpu_ppc_load_tbu (CPUState *env)
{
    return cpu_ppc_get_tb(env) >> 32;
}
  
static void cpu_ppc_store_tb (CPUState *env, uint64_t value)
{
    /* TO FIX */
}

void cpu_ppc_store_tbu (CPUState *env, uint32_t value)
{
    cpu_ppc_store_tb(env, ((uint64_t)value << 32) | cpu_ppc_load_tbl(env));
}
 
void cpu_ppc_store_tbl (CPUState *env, uint32_t value)
{
    cpu_ppc_store_tb(env, ((uint64_t)cpu_ppc_load_tbl(env) << 32) | value);
}
  
uint32_t cpu_ppc_load_decr (CPUState *env)
{
    /* TO FIX */
    return -1;
}
 
void cpu_ppc_store_decr (CPUState *env, uint32_t value)
{
    /* TO FIX */
}
 
647 648 649
void cpu_loop(CPUPPCState *env)
{
    target_siginfo_t info;
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    int trapnr;
    uint32_t ret;
652 653 654
    
    for(;;) {
        trapnr = cpu_ppc_exec(env);
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        if (trapnr != EXCP_SYSCALL_USER && trapnr != EXCP_BRANCH &&
            trapnr != EXCP_TRACE) {
            if (loglevel > 0) {
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                cpu_dump_state(env, logfile, fprintf, 0);
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            }
        }
661 662 663
        switch(trapnr) {
        case EXCP_NONE:
            break;
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        case EXCP_SYSCALL_USER:
            /* system call */
            /* WARNING:
             * PPC ABI uses overflow flag in cr0 to signal an error
             * in syscalls.
             */
670
#if 0
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            printf("syscall %d 0x%08x 0x%08x 0x%08x 0x%08x\n", env->gpr[0],
                   env->gpr[3], env->gpr[4], env->gpr[5], env->gpr[6]);
673
#endif
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            env->crf[0] &= ~0x1;
            ret = do_syscall(env, env->gpr[0], env->gpr[3], env->gpr[4],
                             env->gpr[5], env->gpr[6], env->gpr[7],
                             env->gpr[8]);
            if (ret > (uint32_t)(-515)) {
                env->crf[0] |= 0x1;
                ret = -ret;
            }
            env->gpr[3] = ret;
#if 0
            printf("syscall returned 0x%08x (%d)\n", ret, ret);
#endif
            break;
        case EXCP_RESET:
            /* Should not happen ! */
            fprintf(stderr, "RESET asked... Stop emulation\n");
            if (loglevel)
                fprintf(logfile, "RESET asked... Stop emulation\n");
692
            abort();
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        case EXCP_MACHINE_CHECK:
            fprintf(stderr, "Machine check exeption...  Stop emulation\n");
            if (loglevel)
                fprintf(logfile, "RESET asked... Stop emulation\n");
            info.si_signo = TARGET_SIGBUS;
698
            info.si_errno = 0;
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            info.si_code = TARGET_BUS_OBJERR;
            info._sifields._sigfault._addr = env->nip - 4;
            queue_signal(info.si_signo, &info);
        case EXCP_DSI:
703 704
            fprintf(stderr, "Invalid data memory access: 0x%08x\n",
                    env->spr[SPR_DAR]);
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            if (loglevel) {
                fprintf(logfile, "Invalid data memory access: 0x%08x\n",
707
                        env->spr[SPR_DAR]);
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            }
709 710
            switch (env->error_code & 0xFF000000) {
            case 0x40000000:
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                info.si_signo = TARGET_SIGSEGV;
                info.si_errno = 0;
                info.si_code = TARGET_SEGV_MAPERR;
                break;
715
            case 0x04000000:
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                info.si_signo = TARGET_SIGILL;
                info.si_errno = 0;
                info.si_code = TARGET_ILL_ILLADR;
                break;
720
            case 0x08000000:
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                info.si_signo = TARGET_SIGSEGV;
                info.si_errno = 0;
                info.si_code = TARGET_SEGV_ACCERR;
                break;
            default:
                /* Let's send a regular segfault... */
                fprintf(stderr, "Invalid segfault errno (%02x)\n",
                        env->error_code);
                if (loglevel) {
                    fprintf(logfile, "Invalid segfault errno (%02x)\n",
                            env->error_code);
                }
                info.si_signo = TARGET_SIGSEGV;
                info.si_errno = 0;
                info.si_code = TARGET_SEGV_MAPERR;
                break;
            }
738 739 740
            info._sifields._sigfault._addr = env->nip;
            queue_signal(info.si_signo, &info);
            break;
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        case EXCP_ISI:
742
            fprintf(stderr, "Invalid instruction fetch\n");
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            if (loglevel)
                fprintf(logfile, "Invalid instruction fetch\n");
745 746
            switch (env->error_code & 0xFF000000) {
            case 0x40000000:
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                info.si_signo = TARGET_SIGSEGV;
748
            info.si_errno = 0;
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                info.si_code = TARGET_SEGV_MAPERR;
                break;
751 752
            case 0x10000000:
            case 0x08000000:
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                info.si_signo = TARGET_SIGSEGV;
                info.si_errno = 0;
                info.si_code = TARGET_SEGV_ACCERR;
                break;
            default:
                /* Let's send a regular segfault... */
                fprintf(stderr, "Invalid segfault errno (%02x)\n",
                        env->error_code);
                if (loglevel) {
                    fprintf(logfile, "Invalid segfault errno (%02x)\n",
                            env->error_code);
                }
                info.si_signo = TARGET_SIGSEGV;
                info.si_errno = 0;
                info.si_code = TARGET_SEGV_MAPERR;
                break;
            }
            info._sifields._sigfault._addr = env->nip - 4;
771 772
            queue_signal(info.si_signo, &info);
            break;
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        case EXCP_EXTERNAL:
            /* Should not happen ! */
            fprintf(stderr, "External interruption... Stop emulation\n");
            if (loglevel)
                fprintf(logfile, "External interruption... Stop emulation\n");
778
            abort();
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        case EXCP_ALIGN:
            fprintf(stderr, "Invalid unaligned memory access\n");
            if (loglevel)
                fprintf(logfile, "Invalid unaligned memory access\n");
            info.si_signo = TARGET_SIGBUS;
784
            info.si_errno = 0;
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            info.si_code = TARGET_BUS_ADRALN;
            info._sifields._sigfault._addr = env->nip - 4;
787 788
            queue_signal(info.si_signo, &info);
            break;
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        case EXCP_PROGRAM:
            switch (env->error_code & ~0xF) {
            case EXCP_FP:
            fprintf(stderr, "Program exception\n");
                if (loglevel)
                    fprintf(logfile, "Program exception\n");
                /* Set FX */
                env->fpscr[7] |= 0x8;
                /* Finally, update FEX */
                if ((((env->fpscr[7] & 0x3) << 3) | (env->fpscr[6] >> 1)) &
                    ((env->fpscr[1] << 1) | (env->fpscr[0] >> 3)))
                    env->fpscr[7] |= 0x4;
                info.si_signo = TARGET_SIGFPE;
                info.si_errno = 0;
                switch (env->error_code & 0xF) {
                case EXCP_FP_OX:
                    info.si_code = TARGET_FPE_FLTOVF;
                    break;
                case EXCP_FP_UX:
                    info.si_code = TARGET_FPE_FLTUND;
                    break;
                case EXCP_FP_ZX:
                case EXCP_FP_VXZDZ:
                    info.si_code = TARGET_FPE_FLTDIV;
                    break;
                case EXCP_FP_XX:
                    info.si_code = TARGET_FPE_FLTRES;
                    break;
                case EXCP_FP_VXSOFT:
                    info.si_code = TARGET_FPE_FLTINV;
                    break;
                case EXCP_FP_VXNAN:
                case EXCP_FP_VXISI:
                case EXCP_FP_VXIDI:
                case EXCP_FP_VXIMZ:
                case EXCP_FP_VXVC:
                case EXCP_FP_VXSQRT:
                case EXCP_FP_VXCVI:
                    info.si_code = TARGET_FPE_FLTSUB;
                    break;
                default:
                    fprintf(stderr, "Unknown floating point exception "
                            "(%02x)\n", env->error_code);
                    if (loglevel) {
                        fprintf(logfile, "Unknown floating point exception "
                                "(%02x)\n", env->error_code & 0xF);
                    }
                }
            break;
838
        case EXCP_INVAL:
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                fprintf(stderr, "Invalid instruction\n");
                if (loglevel)
                    fprintf(logfile, "Invalid instruction\n");
                info.si_signo = TARGET_SIGILL;
                info.si_errno = 0;
                switch (env->error_code & 0xF) {
                case EXCP_INVAL_INVAL:
                    info.si_code = TARGET_ILL_ILLOPC;
                    break;
                case EXCP_INVAL_LSWX:
849
            info.si_code = TARGET_ILL_ILLOPN;
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                    break;
                case EXCP_INVAL_SPR:
                    info.si_code = TARGET_ILL_PRVREG;
                    break;
                case EXCP_INVAL_FP:
                    info.si_code = TARGET_ILL_COPROC;
                    break;
                default:
                    fprintf(stderr, "Unknown invalid operation (%02x)\n",
                            env->error_code & 0xF);
                    if (loglevel) {
                        fprintf(logfile, "Unknown invalid operation (%02x)\n",
                                env->error_code & 0xF);
                    }
                    info.si_code = TARGET_ILL_ILLADR;
                    break;
                }
                break;
            case EXCP_PRIV:
                fprintf(stderr, "Privilege violation\n");
                if (loglevel)
                    fprintf(logfile, "Privilege violation\n");
                info.si_signo = TARGET_SIGILL;
                info.si_errno = 0;
                switch (env->error_code & 0xF) {
                case EXCP_PRIV_OPC:
                    info.si_code = TARGET_ILL_PRVOPC;
                    break;
                case EXCP_PRIV_REG:
                    info.si_code = TARGET_ILL_PRVREG;
                break;
                default:
                    fprintf(stderr, "Unknown privilege violation (%02x)\n",
                            env->error_code & 0xF);
                    info.si_code = TARGET_ILL_PRVOPC;
                    break;
                }
                break;
            case EXCP_TRAP:
                fprintf(stderr, "Tried to call a TRAP\n");
                if (loglevel)
                    fprintf(logfile, "Tried to call a TRAP\n");
                abort();
            default:
                /* Should not happen ! */
                fprintf(stderr, "Unknown program exception (%02x)\n",
                        env->error_code);
                if (loglevel) {
                    fprintf(logfile, "Unknwon program exception (%02x)\n",
                            env->error_code);
                }
                abort();
            }
            info._sifields._sigfault._addr = env->nip - 4;
904 905
            queue_signal(info.si_signo, &info);
            break;
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        case EXCP_NO_FP:
            fprintf(stderr, "No floating point allowed\n");
            if (loglevel)
                fprintf(logfile, "No floating point allowed\n");
            info.si_signo = TARGET_SIGILL;
911
            info.si_errno = 0;
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            info.si_code = TARGET_ILL_COPROC;
            info._sifields._sigfault._addr = env->nip - 4;
914 915
            queue_signal(info.si_signo, &info);
            break;
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        case EXCP_DECR:
            /* Should not happen ! */
            fprintf(stderr, "Decrementer exception\n");
            if (loglevel)
                fprintf(logfile, "Decrementer exception\n");
            abort();
        case EXCP_TRACE:
            /* Do nothing: we use this to trace execution */
924
            break;
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        case EXCP_FP_ASSIST:
            /* Should not happen ! */
            fprintf(stderr, "Floating point assist exception\n");
            if (loglevel)
                fprintf(logfile, "Floating point assist exception\n");
            abort();
        case EXCP_MTMSR:
            /* We reloaded the msr, just go on */
933
            if (msr_pr == 0) {
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                fprintf(stderr, "Tried to go into supervisor mode !\n");
                if (loglevel)
                    fprintf(logfile, "Tried to go into supervisor mode !\n");
                abort();
938
        }
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            break;
        case EXCP_BRANCH:
            /* We stopped because of a jump... */
            break;
        case EXCP_INTERRUPT:
            /* Don't know why this should ever happen... */
            break;
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        case EXCP_DEBUG:
            {
                int sig;

                sig = gdb_handlesig (env, TARGET_SIGTRAP);
                if (sig)
                  {
                    info.si_signo = sig;
                    info.si_errno = 0;
                    info.si_code = TARGET_TRAP_BRKPT;
                    queue_signal(info.si_signo, &info);
                  }
            }
            break;
960 961 962
        default:
            fprintf(stderr, "qemu: unhandled CPU exception 0x%x - aborting\n", 
                    trapnr);
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            if (loglevel) {
                fprintf(logfile, "qemu: unhandled CPU exception 0x%02x - "
                        "0x%02x - aborting\n", trapnr, env->error_code);
            }
967 968 969 970 971 972 973
            abort();
        }
        process_pending_signals(env);
    }
}
#endif

974 975
void usage(void)
{
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    printf("qemu-" TARGET_ARCH " version " QEMU_VERSION ", Copyright (c) 2003-2004 Fabrice Bellard\n"
B
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           "usage: qemu-" TARGET_ARCH " [-h] [-g] [-d opts] [-L path] [-s size] program [arguments...]\n"
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           "Linux CPU emulator (compiled for %s emulation)\n"
979
           "\n"
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           "-h           print this help\n"
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           "-g           wait gdb connection to port %d\n"
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           "-L path      set the elf interpreter prefix (default=%s)\n"
           "-s size      set the stack size in bytes (default=%ld)\n"
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           "\n"
           "debug options:\n"
986 987 988
#ifdef USE_CODE_COPY
           "-no-code-copy   disable code copy acceleration\n"
#endif
989
           "-d options   activate log (logfile=%s)\n"
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           "-p pagesize  set the host page size to 'pagesize'\n",
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           TARGET_ARCH,
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           DEFAULT_GDBSTUB_PORT,
993
           interp_prefix, 
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           x86_stack_size,
           DEBUG_LOGFILE);
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    _exit(1);
997 998
}

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/* XXX: currently only used for async signals (see signal.c) */
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CPUState *global_env;
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/* used only if single thread */
CPUState *cpu_single_env = NULL;

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/* used to free thread contexts */
TaskState *first_task_state;
B
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1007 1008 1009
int main(int argc, char **argv)
{
    const char *filename;
B
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    struct target_pt_regs regs1, *regs = &regs1;
1011
    struct image_info info1, *info = &info1;
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    TaskState ts1, *ts = &ts1;
B
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    CPUState *env;
B
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1014
    int optind;
1015
    const char *r;
B
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1016
    int use_gdbstub = 0;
1017
    
1018 1019
    if (argc <= 1)
        usage();
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    /* init debug */
    cpu_set_log_filename(DEBUG_LOGFILE);

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    optind = 1;
1025 1026 1027 1028 1029 1030
    for(;;) {
        if (optind >= argc)
            break;
        r = argv[optind];
        if (r[0] != '-')
            break;
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        optind++;
1032 1033 1034 1035
        r++;
        if (!strcmp(r, "-")) {
            break;
        } else if (!strcmp(r, "d")) {
B
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            int mask;
            CPULogItem *item;
1038 1039 1040

	    if (optind >= argc)
		break;
B
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1042 1043
	    r = argv[optind++];
            mask = cpu_str_to_log_mask(r);
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1044 1045 1046 1047 1048 1049 1050 1051
            if (!mask) {
                printf("Log items (comma separated):\n");
                for(item = cpu_log_items; item->mask != 0; item++) {
                    printf("%-10s %s\n", item->name, item->help);
                }
                exit(1);
            }
            cpu_set_log(mask);
1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062
        } else if (!strcmp(r, "s")) {
            r = argv[optind++];
            x86_stack_size = strtol(r, (char **)&r, 0);
            if (x86_stack_size <= 0)
                usage();
            if (*r == 'M')
                x86_stack_size *= 1024 * 1024;
            else if (*r == 'k' || *r == 'K')
                x86_stack_size *= 1024;
        } else if (!strcmp(r, "L")) {
            interp_prefix = argv[optind++];
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        } else if (!strcmp(r, "p")) {
1064 1065 1066
            qemu_host_page_size = atoi(argv[optind++]);
            if (qemu_host_page_size == 0 ||
                (qemu_host_page_size & (qemu_host_page_size - 1)) != 0) {
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                fprintf(stderr, "page size must be a power of two\n");
                exit(1);
            }
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        } else if (!strcmp(r, "g")) {
            use_gdbstub = 1;
1072 1073 1074 1075 1076 1077 1078
        } else 
#ifdef USE_CODE_COPY
        if (!strcmp(r, "no-code-copy")) {
            code_copy_enabled = 0;
        } else 
#endif
        {
1079 1080
            usage();
        }
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    }
1082 1083
    if (optind >= argc)
        usage();
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1084 1085
    filename = argv[optind];

1086
    /* Zero out regs */
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    memset(regs, 0, sizeof(struct target_pt_regs));
1088 1089 1090 1091

    /* Zero out image_info */
    memset(info, 0, sizeof(struct image_info));

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    /* Scan interp_prefix dir for replacement files. */
    init_paths(interp_prefix);

1095 1096
    /* NOTE: we need to init the CPU at this stage to get
       qemu_host_page_size */
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    env = cpu_init();
1098
    
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    if (elf_exec(filename, argv+optind, environ, regs, info) != 0) {
1100
	printf("Error loading %s\n", filename);
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	_exit(1);
1102 1103
    }
    
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    if (loglevel) {
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        page_dump(logfile);
    
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        fprintf(logfile, "start_brk   0x%08lx\n" , info->start_brk);
        fprintf(logfile, "end_code    0x%08lx\n" , info->end_code);
        fprintf(logfile, "start_code  0x%08lx\n" , info->start_code);
        fprintf(logfile, "end_data    0x%08lx\n" , info->end_data);
        fprintf(logfile, "start_stack 0x%08lx\n" , info->start_stack);
        fprintf(logfile, "brk         0x%08lx\n" , info->brk);
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        fprintf(logfile, "entry       0x%08lx\n" , info->entry);
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    }
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    target_set_brk((char *)info->brk);
    syscall_init();
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    signal_init();
1119

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    global_env = env;
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    /* build Task State */
    memset(ts, 0, sizeof(TaskState));
    env->opaque = ts;
    ts->used = 1;
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    env->user_mode_only = 1;
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#if defined(TARGET_I386)
1129 1130
    cpu_x86_set_cpl(env, 3);

B
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    env->cr[0] = CR0_PG_MASK | CR0_WP_MASK | CR0_PE_MASK;
B
sse fix  
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    env->hflags |= HF_PE_MASK;
    if (env->cpuid_features & CPUID_SSE) {
        env->cr[4] |= CR4_OSFXSR_MASK;
        env->hflags |= HF_OSFXSR_MASK;
    }

B
cleanup  
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    /* flags setup : we activate the IRQs by default as in user mode */
    env->eflags |= IF_MASK;
    
B
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    /* linux register setup */
B
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    env->regs[R_EAX] = regs->eax;
    env->regs[R_EBX] = regs->ebx;
    env->regs[R_ECX] = regs->ecx;
    env->regs[R_EDX] = regs->edx;
    env->regs[R_ESI] = regs->esi;
    env->regs[R_EDI] = regs->edi;
    env->regs[R_EBP] = regs->ebp;
    env->regs[R_ESP] = regs->esp;
B
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    env->eip = regs->eip;
1151

1152
    /* linux interrupt setup */
B
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    env->idt.base = (long)idt_table;
1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176
    env->idt.limit = sizeof(idt_table) - 1;
    set_idt(0, 0);
    set_idt(1, 0);
    set_idt(2, 0);
    set_idt(3, 3);
    set_idt(4, 3);
    set_idt(5, 3);
    set_idt(6, 0);
    set_idt(7, 0);
    set_idt(8, 0);
    set_idt(9, 0);
    set_idt(10, 0);
    set_idt(11, 0);
    set_idt(12, 0);
    set_idt(13, 0);
    set_idt(14, 0);
    set_idt(15, 0);
    set_idt(16, 0);
    set_idt(17, 0);
    set_idt(18, 0);
    set_idt(19, 0);
    set_idt(0x80, 3);

B
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    /* linux segment setup */
B
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    env->gdt.base = (long)gdt_table;
B
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    env->gdt.limit = sizeof(gdt_table) - 1;
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    write_dt(&gdt_table[__USER_CS >> 3], 0, 0xfffff,
             DESC_G_MASK | DESC_B_MASK | DESC_P_MASK | DESC_S_MASK | 
             (3 << DESC_DPL_SHIFT) | (0xa << DESC_TYPE_SHIFT));
    write_dt(&gdt_table[__USER_DS >> 3], 0, 0xfffff,
             DESC_G_MASK | DESC_B_MASK | DESC_P_MASK | DESC_S_MASK | 
             (3 << DESC_DPL_SHIFT) | (0x2 << DESC_TYPE_SHIFT));
B
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    cpu_x86_load_seg(env, R_CS, __USER_CS);
    cpu_x86_load_seg(env, R_DS, __USER_DS);
    cpu_x86_load_seg(env, R_ES, __USER_DS);
    cpu_x86_load_seg(env, R_SS, __USER_DS);
    cpu_x86_load_seg(env, R_FS, __USER_DS);
    cpu_x86_load_seg(env, R_GS, __USER_DS);
1192

B
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#elif defined(TARGET_ARM)
    {
        int i;
        for(i = 0; i < 16; i++) {
            env->regs[i] = regs->uregs[i];
        }
        env->cpsr = regs->uregs[16];
1200 1201 1202 1203
        ts->stack_base = info->start_stack;
        ts->heap_base = info->brk;
        /* This will be filled in on the first SYS_HEAPINFO call.  */
        ts->heap_limit = 0;
B
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    }
1205
#elif defined(TARGET_SPARC)
1206 1207 1208 1209 1210 1211 1212 1213 1214 1215
    {
        int i;
	env->pc = regs->pc;
	env->npc = regs->npc;
        env->y = regs->y;
        for(i = 0; i < 8; i++)
            env->gregs[i] = regs->u_regs[i];
        for(i = 0; i < 8; i++)
            env->regwptr[i] = regs->u_regs[i + 8];
    }
1216 1217
#elif defined(TARGET_PPC)
    {
1218
        ppc_def_t *def;
1219
        int i;
1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236

        /* Choose and initialise CPU */
        /* XXX: CPU model (or PVR) should be provided on command line */
        //        ppc_find_by_name("750gx", &def);
        //        ppc_find_by_name("750fx", &def);
        //        ppc_find_by_name("750p", &def);
        ppc_find_by_name("750", &def);
        //        ppc_find_by_name("G3", &def);
        //        ppc_find_by_name("604r", &def);
        //        ppc_find_by_name("604e", &def);
        //        ppc_find_by_name("604", &def);
        if (def == NULL) {
            cpu_abort(cpu_single_env,
                      "Unable to find PowerPC CPU definition\n");
        }
        cpu_ppc_register(cpu_single_env, def);

B
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        for (i = 0; i < 32; i++) {
B
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            if (i != 12 && i != 6 && i != 13)
B
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                env->msr[i] = (regs->msr >> i) & 1;
        }
1241 1242 1243 1244 1245
        env->nip = regs->nip;
        for(i = 0; i < 32; i++) {
            env->gpr[i] = regs->gpr[i];
        }
    }
B
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#else
#error unsupported target CPU
#endif
1249

B
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    if (use_gdbstub) {
        gdbserver_start (DEFAULT_GDBSTUB_PORT);
        gdb_handlesig(env, 0);
    }
B
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    cpu_loop(env);
    /* never exits */
1256 1257
    return 0;
}