vl.h 23.8 KB
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/*
 * QEMU System Emulator header
 * 
 * Copyright (c) 2003 Fabrice Bellard
 * 
 * Permission is hereby granted, free of charge, to any person obtaining a copy
 * of this software and associated documentation files (the "Software"), to deal
 * in the Software without restriction, including without limitation the rights
 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
 * copies of the Software, and to permit persons to whom the Software is
 * furnished to do so, subject to the following conditions:
 *
 * The above copyright notice and this permission notice shall be included in
 * all copies or substantial portions of the Software.
 *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
 * THE SOFTWARE.
 */
#ifndef VL_H
#define VL_H

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/* we put basic includes here to avoid repeating them in device drivers */
#include <stdlib.h>
#include <stdio.h>
#include <stdarg.h>
#include <string.h>
#include <inttypes.h>
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#include <time.h>
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#include <ctype.h>
#include <errno.h>
#include <unistd.h>
#include <fcntl.h>
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#include <sys/stat.h>
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#ifndef O_LARGEFILE
#define O_LARGEFILE 0
#endif
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#ifndef O_BINARY
#define O_BINARY 0
#endif
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#ifdef _WIN32
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#define lseek64 _lseeki64
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#endif
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#include "cpu.h"

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#ifndef glue
#define xglue(x, y) x ## y
#define glue(x, y) xglue(x, y)
#define stringify(s)	tostring(s)
#define tostring(s)	#s
#endif

#if defined(WORDS_BIGENDIAN)
static inline uint32_t be32_to_cpu(uint32_t v)
{
    return v;
}

static inline uint16_t be16_to_cpu(uint16_t v)
{
    return v;
}

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static inline uint32_t cpu_to_be32(uint32_t v)
{
    return v;
}

static inline uint16_t cpu_to_be16(uint16_t v)
{
    return v;
}

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static inline uint32_t le32_to_cpu(uint32_t v)
{
    return bswap32(v);
}

static inline uint16_t le16_to_cpu(uint16_t v)
{
    return bswap16(v);
}

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static inline uint32_t cpu_to_le32(uint32_t v)
{
    return bswap32(v);
}

static inline uint16_t cpu_to_le16(uint16_t v)
{
    return bswap16(v);
}

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#else
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static inline uint32_t be32_to_cpu(uint32_t v)
{
    return bswap32(v);
}

static inline uint16_t be16_to_cpu(uint16_t v)
{
    return bswap16(v);
}

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static inline uint32_t cpu_to_be32(uint32_t v)
{
    return bswap32(v);
}

static inline uint16_t cpu_to_be16(uint16_t v)
{
    return bswap16(v);
}

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static inline uint32_t le32_to_cpu(uint32_t v)
{
    return v;
}

static inline uint16_t le16_to_cpu(uint16_t v)
{
    return v;
}
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static inline uint32_t cpu_to_le32(uint32_t v)
{
    return v;
}

static inline uint16_t cpu_to_le16(uint16_t v)
{
    return v;
}
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#endif

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static inline void cpu_to_le16w(uint16_t *p, uint16_t v)
{
    *p = cpu_to_le16(v);
}

static inline void cpu_to_le32w(uint32_t *p, uint32_t v)
{
    *p = cpu_to_le32(v);
}

static inline uint16_t le16_to_cpup(const uint16_t *p)
{
    return le16_to_cpu(*p);
}

static inline uint32_t le32_to_cpup(const uint32_t *p)
{
    return le32_to_cpu(*p);
}

/* unaligned versions (optimized for frequent unaligned accesses)*/

#if defined(__i386__) || defined(__powerpc__)

#define cpu_to_le16wu(p, v) cpu_to_le16w(p, v)
#define cpu_to_le32wu(p, v) cpu_to_le32w(p, v)
#define le16_to_cpupu(p) le16_to_cpup(p)
#define le32_to_cpupu(p) le32_to_cpup(p)

#else

static inline void cpu_to_le16wu(uint16_t *p, uint16_t v)
{
    uint8_t *p1 = (uint8_t *)p;

    p1[0] = v;
    p1[1] = v >> 8;
}

static inline void cpu_to_le32wu(uint32_t *p, uint32_t v)
{
    uint8_t *p1 = (uint8_t *)p;

    p1[0] = v;
    p1[1] = v >> 8;
    p1[2] = v >> 16;
    p1[3] = v >> 24;
}

static inline uint16_t le16_to_cpupu(const uint16_t *p)
{
    const uint8_t *p1 = (const uint8_t *)p;
    return p1[0] | (p1[1] << 8);
}

static inline uint32_t le32_to_cpupu(const uint32_t *p)
{
    const uint8_t *p1 = (const uint8_t *)p;
    return p1[0] | (p1[1] << 8) | (p1[2] << 16) | (p1[3] << 24);
}

#endif
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/* vl.c */
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uint64_t muldiv64(uint64_t a, uint32_t b, uint32_t c);
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void hw_error(const char *fmt, ...);

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int get_image_size(const char *filename);
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int load_image(const char *filename, uint8_t *addr);
extern const char *bios_dir;

void pstrcpy(char *buf, int buf_size, const char *str);
char *pstrcat(char *buf, int buf_size, const char *s);
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int strstart(const char *str, const char *val, const char **ptr);
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extern int vm_running;

typedef void VMStopHandler(void *opaque, int reason);

int qemu_add_vm_stop_handler(VMStopHandler *cb, void *opaque);
void qemu_del_vm_stop_handler(VMStopHandler *cb, void *opaque);

void vm_start(void);
void vm_stop(int reason);

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typedef void QEMUResetHandler(void *opaque);

void qemu_register_reset(QEMUResetHandler *func, void *opaque);
void qemu_system_reset_request(void);
void qemu_system_shutdown_request(void);

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extern int audio_enabled;
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extern int ram_size;
extern int bios_size;
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extern int rtc_utc;
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extern int cirrus_vga_enabled;
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extern int graphic_width;
extern int graphic_height;
extern int graphic_depth;
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/* XXX: make it dynamic */
#if defined (TARGET_PPC)
#define BIOS_SIZE (512 * 1024)
#else
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#define BIOS_SIZE ((256 + 64) * 1024)
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#endif
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/* keyboard/mouse support */

#define MOUSE_EVENT_LBUTTON 0x01
#define MOUSE_EVENT_RBUTTON 0x02
#define MOUSE_EVENT_MBUTTON 0x04

typedef void QEMUPutKBDEvent(void *opaque, int keycode);
typedef void QEMUPutMouseEvent(void *opaque, int dx, int dy, int dz, int buttons_state);

void qemu_add_kbd_event_handler(QEMUPutKBDEvent *func, void *opaque);
void qemu_add_mouse_event_handler(QEMUPutMouseEvent *func, void *opaque);

void kbd_put_keycode(int keycode);
void kbd_mouse_event(int dx, int dy, int dz, int buttons_state);

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/* keysym is a unicode code except for special keys (see QEMU_KEY_xxx
   constants) */
#define QEMU_KEY_ESC1(c) ((c) | 0xe100)
#define QEMU_KEY_BACKSPACE  0x007f
#define QEMU_KEY_UP         QEMU_KEY_ESC1('A')
#define QEMU_KEY_DOWN       QEMU_KEY_ESC1('B')
#define QEMU_KEY_RIGHT      QEMU_KEY_ESC1('C')
#define QEMU_KEY_LEFT       QEMU_KEY_ESC1('D')
#define QEMU_KEY_HOME       QEMU_KEY_ESC1(1)
#define QEMU_KEY_END        QEMU_KEY_ESC1(4)
#define QEMU_KEY_PAGEUP     QEMU_KEY_ESC1(5)
#define QEMU_KEY_PAGEDOWN   QEMU_KEY_ESC1(6)
#define QEMU_KEY_DELETE     QEMU_KEY_ESC1(3)

#define QEMU_KEY_CTRL_UP         0xe400
#define QEMU_KEY_CTRL_DOWN       0xe401
#define QEMU_KEY_CTRL_LEFT       0xe402
#define QEMU_KEY_CTRL_RIGHT      0xe403
#define QEMU_KEY_CTRL_HOME       0xe404
#define QEMU_KEY_CTRL_END        0xe405
#define QEMU_KEY_CTRL_PAGEUP     0xe406
#define QEMU_KEY_CTRL_PAGEDOWN   0xe407

void kbd_put_keysym(int keysym);

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/* async I/O support */

typedef void IOReadHandler(void *opaque, const uint8_t *buf, int size);
typedef int IOCanRWHandler(void *opaque);

int qemu_add_fd_read_handler(int fd, IOCanRWHandler *fd_can_read, 
                             IOReadHandler *fd_read, void *opaque);
void qemu_del_fd_read_handler(int fd);

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/* character device */

#define CHR_EVENT_BREAK 0 /* serial break char */

typedef void IOEventHandler(void *opaque, int event);

typedef struct CharDriverState {
    int (*chr_write)(struct CharDriverState *s, const uint8_t *buf, int len);
    void (*chr_add_read_handler)(struct CharDriverState *s, 
                                 IOCanRWHandler *fd_can_read, 
                                 IOReadHandler *fd_read, void *opaque);
    IOEventHandler *chr_event;
    void *opaque;
} CharDriverState;

void qemu_chr_printf(CharDriverState *s, const char *fmt, ...);
int qemu_chr_write(CharDriverState *s, const uint8_t *buf, int len);
void qemu_chr_add_read_handler(CharDriverState *s, 
                               IOCanRWHandler *fd_can_read, 
                               IOReadHandler *fd_read, void *opaque);
void qemu_chr_add_event_handler(CharDriverState *s, IOEventHandler *chr_event);
                               
CharDriverState *serial_hd;

/* consoles */

typedef struct DisplayState DisplayState;
typedef struct TextConsole TextConsole;

extern TextConsole *vga_console;

TextConsole *graphic_console_init(DisplayState *ds);
int is_active_console(TextConsole *s);
CharDriverState *text_console_init(DisplayState *ds);
void console_select(unsigned int index);

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/* network redirectors support */

#define MAX_NICS 8

typedef struct NetDriverState {
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    int index; /* index number in QEMU */
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    uint8_t macaddr[6];
    char ifname[16];
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    void (*send_packet)(struct NetDriverState *nd, 
                        const uint8_t *buf, int size);
    void (*add_read_packet)(struct NetDriverState *nd, 
                            IOCanRWHandler *fd_can_read, 
                            IOReadHandler *fd_read, void *opaque);
    /* tun specific data */
    int fd;
    /* slirp specific data */
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} NetDriverState;

extern int nb_nics;
extern NetDriverState nd_table[MAX_NICS];

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void qemu_send_packet(NetDriverState *nd, const uint8_t *buf, int size);
void qemu_add_read_packet(NetDriverState *nd, IOCanRWHandler *fd_can_read, 
                          IOReadHandler *fd_read, void *opaque);
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/* timers */

typedef struct QEMUClock QEMUClock;
typedef struct QEMUTimer QEMUTimer;
typedef void QEMUTimerCB(void *opaque);

/* The real time clock should be used only for stuff which does not
   change the virtual machine state, as it is run even if the virtual
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   machine is stopped. The real time clock has a frequency of 1000
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   Hz. */
extern QEMUClock *rt_clock;

/* Rge virtual clock is only run during the emulation. It is stopped
   when the virtual machine is stopped. Virtual timers use a high
   precision clock, usually cpu cycles (use ticks_per_sec). */
extern QEMUClock *vm_clock;

int64_t qemu_get_clock(QEMUClock *clock);

QEMUTimer *qemu_new_timer(QEMUClock *clock, QEMUTimerCB *cb, void *opaque);
void qemu_free_timer(QEMUTimer *ts);
void qemu_del_timer(QEMUTimer *ts);
void qemu_mod_timer(QEMUTimer *ts, int64_t expire_time);
int qemu_timer_pending(QEMUTimer *ts);

extern int64_t ticks_per_sec;
extern int pit_min_timer_count;

void cpu_enable_ticks(void);
void cpu_disable_ticks(void);

/* VM Load/Save */

typedef FILE QEMUFile;

void qemu_put_buffer(QEMUFile *f, const uint8_t *buf, int size);
void qemu_put_byte(QEMUFile *f, int v);
void qemu_put_be16(QEMUFile *f, unsigned int v);
void qemu_put_be32(QEMUFile *f, unsigned int v);
void qemu_put_be64(QEMUFile *f, uint64_t v);
int qemu_get_buffer(QEMUFile *f, uint8_t *buf, int size);
int qemu_get_byte(QEMUFile *f);
unsigned int qemu_get_be16(QEMUFile *f);
unsigned int qemu_get_be32(QEMUFile *f);
uint64_t qemu_get_be64(QEMUFile *f);

static inline void qemu_put_be64s(QEMUFile *f, const uint64_t *pv)
{
    qemu_put_be64(f, *pv);
}

static inline void qemu_put_be32s(QEMUFile *f, const uint32_t *pv)
{
    qemu_put_be32(f, *pv);
}

static inline void qemu_put_be16s(QEMUFile *f, const uint16_t *pv)
{
    qemu_put_be16(f, *pv);
}

static inline void qemu_put_8s(QEMUFile *f, const uint8_t *pv)
{
    qemu_put_byte(f, *pv);
}

static inline void qemu_get_be64s(QEMUFile *f, uint64_t *pv)
{
    *pv = qemu_get_be64(f);
}

static inline void qemu_get_be32s(QEMUFile *f, uint32_t *pv)
{
    *pv = qemu_get_be32(f);
}

static inline void qemu_get_be16s(QEMUFile *f, uint16_t *pv)
{
    *pv = qemu_get_be16(f);
}

static inline void qemu_get_8s(QEMUFile *f, uint8_t *pv)
{
    *pv = qemu_get_byte(f);
}

int64_t qemu_ftell(QEMUFile *f);
int64_t qemu_fseek(QEMUFile *f, int64_t pos, int whence);

typedef void SaveStateHandler(QEMUFile *f, void *opaque);
typedef int LoadStateHandler(QEMUFile *f, void *opaque, int version_id);

int qemu_loadvm(const char *filename);
int qemu_savevm(const char *filename);
int register_savevm(const char *idstr, 
                    int instance_id, 
                    int version_id,
                    SaveStateHandler *save_state,
                    LoadStateHandler *load_state,
                    void *opaque);
void qemu_get_timer(QEMUFile *f, QEMUTimer *ts);
void qemu_put_timer(QEMUFile *f, QEMUTimer *ts);
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/* block.c */
typedef struct BlockDriverState BlockDriverState;

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BlockDriverState *bdrv_new(const char *device_name);
void bdrv_delete(BlockDriverState *bs);
int bdrv_open(BlockDriverState *bs, const char *filename, int snapshot);
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void bdrv_close(BlockDriverState *bs);
int bdrv_read(BlockDriverState *bs, int64_t sector_num, 
              uint8_t *buf, int nb_sectors);
int bdrv_write(BlockDriverState *bs, int64_t sector_num, 
               const uint8_t *buf, int nb_sectors);
void bdrv_get_geometry(BlockDriverState *bs, int64_t *nb_sectors_ptr);
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int bdrv_commit(BlockDriverState *bs);
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void bdrv_set_boot_sector(BlockDriverState *bs, const uint8_t *data, int size);
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#define BDRV_TYPE_HD     0
#define BDRV_TYPE_CDROM  1
#define BDRV_TYPE_FLOPPY 2

void bdrv_set_geometry_hint(BlockDriverState *bs, 
                            int cyls, int heads, int secs);
void bdrv_set_type_hint(BlockDriverState *bs, int type);
void bdrv_get_geometry_hint(BlockDriverState *bs, 
                            int *pcyls, int *pheads, int *psecs);
int bdrv_get_type_hint(BlockDriverState *bs);
int bdrv_is_removable(BlockDriverState *bs);
int bdrv_is_read_only(BlockDriverState *bs);
int bdrv_is_inserted(BlockDriverState *bs);
int bdrv_is_locked(BlockDriverState *bs);
void bdrv_set_locked(BlockDriverState *bs, int locked);
void bdrv_set_change_cb(BlockDriverState *bs, 
                        void (*change_cb)(void *opaque), void *opaque);

void bdrv_info(void);
BlockDriverState *bdrv_find(const char *name);
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void bdrv_iterate(void (*it)(void *opaque, const char *name), void *opaque);
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/* ISA bus */

extern target_phys_addr_t isa_mem_base;

typedef void (IOPortWriteFunc)(void *opaque, uint32_t address, uint32_t data);
typedef uint32_t (IOPortReadFunc)(void *opaque, uint32_t address);

int register_ioport_read(int start, int length, int size, 
                         IOPortReadFunc *func, void *opaque);
int register_ioport_write(int start, int length, int size, 
                          IOPortWriteFunc *func, void *opaque);
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void isa_unassign_ioport(int start, int length);

/* PCI bus */

extern int pci_enabled;

extern target_phys_addr_t pci_mem_base;

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typedef struct PCIBus PCIBus;
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typedef struct PCIDevice PCIDevice;

typedef void PCIConfigWriteFunc(PCIDevice *pci_dev, 
                                uint32_t address, uint32_t data, int len);
typedef uint32_t PCIConfigReadFunc(PCIDevice *pci_dev, 
                                   uint32_t address, int len);
typedef void PCIMapIORegionFunc(PCIDevice *pci_dev, int region_num, 
                                uint32_t addr, uint32_t size, int type);

#define PCI_ADDRESS_SPACE_MEM		0x00
#define PCI_ADDRESS_SPACE_IO		0x01
#define PCI_ADDRESS_SPACE_MEM_PREFETCH	0x08

typedef struct PCIIORegion {
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    uint32_t addr; /* current PCI mapping address. -1 means not mapped */
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    uint32_t size;
    uint8_t type;
    PCIMapIORegionFunc *map_func;
} PCIIORegion;

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#define PCI_ROM_SLOT 6
#define PCI_NUM_REGIONS 7
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struct PCIDevice {
    /* PCI config space */
    uint8_t config[256];

    /* the following fields are read only */
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    PCIBus *bus;
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    int devfn;
    char name[64];
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    PCIIORegion io_regions[PCI_NUM_REGIONS];
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    /* do not access the following fields */
    PCIConfigReadFunc *config_read;
    PCIConfigWriteFunc *config_write;
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    int irq_index;
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};

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PCIDevice *pci_register_device(PCIBus *bus, const char *name,
                               int instance_size, int devfn,
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                               PCIConfigReadFunc *config_read, 
                               PCIConfigWriteFunc *config_write);

void pci_register_io_region(PCIDevice *pci_dev, int region_num, 
                            uint32_t size, int type, 
                            PCIMapIORegionFunc *map_func);

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void pci_set_irq(PCIDevice *pci_dev, int irq_num, int level);

uint32_t pci_default_read_config(PCIDevice *d, 
                                 uint32_t address, int len);
void pci_default_write_config(PCIDevice *d, 
                              uint32_t address, uint32_t val, int len);

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extern struct PIIX3State *piix3_state;

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PCIBus *i440fx_init(void);
void piix3_init(PCIBus *bus);
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void pci_bios_init(void);
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void pci_info(void);
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/* temporary: will be moved in platform specific file */
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PCIBus *pci_prep_init(void);
struct openpic_t;
void pci_pmac_set_openpic(PCIBus *bus, struct openpic_t *openpic);
PCIBus *pci_pmac_init(void);
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/* openpic.c */
typedef struct openpic_t openpic_t;
void openpic_set_irq (openpic_t *opp, int n_IRQ, int level);
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openpic_t *openpic_init (PCIBus *bus, int *pmem_index, int nb_cpus);
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/* vga.c */

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#define VGA_RAM_SIZE (4096 * 1024)
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struct DisplayState {
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    uint8_t *data;
    int linesize;
    int depth;
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    int width;
    int height;
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    void (*dpy_update)(struct DisplayState *s, int x, int y, int w, int h);
    void (*dpy_resize)(struct DisplayState *s, int w, int h);
    void (*dpy_refresh)(struct DisplayState *s);
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};
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static inline void dpy_update(DisplayState *s, int x, int y, int w, int h)
{
    s->dpy_update(s, x, y, w, h);
}

static inline void dpy_resize(DisplayState *s, int w, int h)
{
    s->dpy_resize(s, w, h);
}

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int vga_initialize(PCIBus *bus, DisplayState *ds, uint8_t *vga_ram_base, 
                   unsigned long vga_ram_offset, int vga_ram_size);
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void vga_update_display(void);
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void vga_invalidate_display(void);
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void vga_screen_dump(const char *filename);
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/* cirrus_vga.c */
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void pci_cirrus_vga_init(PCIBus *bus, DisplayState *ds, uint8_t *vga_ram_base, 
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                         unsigned long vga_ram_offset, int vga_ram_size);
void isa_cirrus_vga_init(DisplayState *ds, uint8_t *vga_ram_base, 
                         unsigned long vga_ram_offset, int vga_ram_size);

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/* sdl.c */
void sdl_display_init(DisplayState *ds);

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/* ide.c */
#define MAX_DISKS 4

extern BlockDriverState *bs_table[MAX_DISKS];

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void isa_ide_init(int iobase, int iobase2, int irq,
                  BlockDriverState *hd0, BlockDriverState *hd1);
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void pci_ide_init(PCIBus *bus, BlockDriverState **hd_table);
void pci_piix3_ide_init(PCIBus *bus, BlockDriverState **hd_table);
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int pmac_ide_init (BlockDriverState **hd_table,
                   openpic_t *openpic, int irq);
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/* oss.c */
typedef enum {
  AUD_FMT_U8,
  AUD_FMT_S8,
  AUD_FMT_U16,
  AUD_FMT_S16
} audfmt_e;

void AUD_open (int rfreq, int rnchannels, audfmt_e rfmt);
void AUD_reset (int rfreq, int rnchannels, audfmt_e rfmt);
int AUD_write (void *in_buf, int size);
void AUD_run (void);
void AUD_adjust_estimate (int _leftover);
int AUD_get_free (void);
int AUD_get_live (void);
int AUD_get_buffer_size (void);
void AUD_init (void);

/* dma.c */
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typedef int (*DMA_transfer_handler) (void *opaque, target_ulong addr, int size);
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int DMA_get_channel_mode (int nchan);
void DMA_hold_DREQ (int nchan);
void DMA_release_DREQ (int nchan);
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void DMA_schedule(int nchan);
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void DMA_run (void);
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void DMA_init (int high_page_enable);
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void DMA_register_channel (int nchan,
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                           DMA_transfer_handler transfer_handler, void *opaque);
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/* sb16.c */
void SB16_run (void);
void SB16_init (void);
 
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/* fdc.c */
#define MAX_FD 2
extern BlockDriverState *fd_table[MAX_FD];

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typedef struct fdctrl_t fdctrl_t;

fdctrl_t *fdctrl_init (int irq_lvl, int dma_chann, int mem_mapped, 
                       uint32_t io_base,
                       BlockDriverState **fds);
int fdctrl_get_drive_type(fdctrl_t *fdctrl, int drive_num);
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/* ne2000.c */

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void isa_ne2000_init(int base, int irq, NetDriverState *nd);
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void pci_ne2000_init(PCIBus *bus, NetDriverState *nd);
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/* pckbd.c */

void kbd_init(void);

/* mc146818rtc.c */

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typedef struct RTCState RTCState;
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RTCState *rtc_init(int base, int irq);
void rtc_set_memory(RTCState *s, int addr, int val);
void rtc_set_date(RTCState *s, const struct tm *tm);
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/* serial.c */

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typedef struct SerialState SerialState;
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SerialState *serial_init(int base, int irq, CharDriverState *chr);
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/* i8259.c */

void pic_set_irq(int irq, int level);
void pic_init(void);
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uint32_t pic_intack_read(CPUState *env);
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void pic_info(void);
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void irq_info(void);
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/* i8254.c */

#define PIT_FREQ 1193182

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typedef struct PITState PITState;

PITState *pit_init(int base, int irq);
void pit_set_gate(PITState *pit, int channel, int val);
int pit_get_gate(PITState *pit, int channel);
int pit_get_out(PITState *pit, int channel, int64_t current_time);
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/* pc.c */
void pc_init(int ram_size, int vga_ram_size, int boot_device,
             DisplayState *ds, const char **fd_filename, int snapshot,
             const char *kernel_filename, const char *kernel_cmdline,
             const char *initrd_filename);

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/* ppc.c */
void ppc_init (int ram_size, int vga_ram_size, int boot_device,
	       DisplayState *ds, const char **fd_filename, int snapshot,
	       const char *kernel_filename, const char *kernel_cmdline,
	       const char *initrd_filename);
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void ppc_prep_init (int ram_size, int vga_ram_size, int boot_device,
		    DisplayState *ds, const char **fd_filename, int snapshot,
		    const char *kernel_filename, const char *kernel_cmdline,
		    const char *initrd_filename);
void ppc_chrp_init(int ram_size, int vga_ram_size, int boot_device,
		   DisplayState *ds, const char **fd_filename, int snapshot,
		   const char *kernel_filename, const char *kernel_cmdline,
		   const char *initrd_filename);
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#ifdef TARGET_PPC
ppc_tb_t *cpu_ppc_tb_init (CPUState *env, uint32_t freq);
#endif
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void PREP_debug_write (void *opaque, uint32_t addr, uint32_t val);
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extern CPUWriteMemoryFunc *PPC_io_write[];
extern CPUReadMemoryFunc *PPC_io_read[];
extern int prep_enabled;
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/* NVRAM helpers */
#include "hw/m48t59.h"

void NVRAM_set_byte (m48t59_t *nvram, uint32_t addr, uint8_t value);
uint8_t NVRAM_get_byte (m48t59_t *nvram, uint32_t addr);
void NVRAM_set_word (m48t59_t *nvram, uint32_t addr, uint16_t value);
uint16_t NVRAM_get_word (m48t59_t *nvram, uint32_t addr);
void NVRAM_set_lword (m48t59_t *nvram, uint32_t addr, uint32_t value);
uint32_t NVRAM_get_lword (m48t59_t *nvram, uint32_t addr);
void NVRAM_set_string (m48t59_t *nvram, uint32_t addr,
                       const unsigned char *str, uint32_t max);
int NVRAM_get_string (m48t59_t *nvram, uint8_t *dst, uint16_t addr, int max);
void NVRAM_set_crc (m48t59_t *nvram, uint32_t addr,
                    uint32_t start, uint32_t count);
int PPC_NVRAM_set_params (m48t59_t *nvram, uint16_t NVRAM_size,
                          const unsigned char *arch,
                          uint32_t RAM_size, int boot_device,
                          uint32_t kernel_image, uint32_t kernel_size,
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                          const char *cmdline,
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                          uint32_t initrd_image, uint32_t initrd_size,
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                          uint32_t NVRAM_image,
                          int width, int height, int depth);
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/* adb.c */

#define MAX_ADB_DEVICES 16

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#define ADB_MAX_OUT_LEN 16
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typedef struct ADBDevice ADBDevice;
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/* buf = NULL means polling */
typedef int ADBDeviceRequest(ADBDevice *d, uint8_t *buf_out,
                              const uint8_t *buf, int len);
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typedef int ADBDeviceReset(ADBDevice *d);

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struct ADBDevice {
    struct ADBBusState *bus;
    int devaddr;
    int handler;
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    ADBDeviceRequest *devreq;
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    ADBDeviceReset *devreset;
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    void *opaque;
};

typedef struct ADBBusState {
    ADBDevice devices[MAX_ADB_DEVICES];
    int nb_devices;
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    int poll_index;
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} ADBBusState;

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int adb_request(ADBBusState *s, uint8_t *buf_out,
                const uint8_t *buf, int len);
int adb_poll(ADBBusState *s, uint8_t *buf_out);
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ADBDevice *adb_register_device(ADBBusState *s, int devaddr, 
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                               ADBDeviceRequest *devreq, 
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                               ADBDeviceReset *devreset, 
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                               void *opaque);
void adb_kbd_init(ADBBusState *bus);
void adb_mouse_init(ADBBusState *bus);

/* cuda.c */

extern ADBBusState adb_bus;
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int cuda_init(openpic_t *openpic, int irq);
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/* monitor.c */
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void monitor_init(CharDriverState *hd, int show_banner);
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void term_printf(const char *fmt, ...) __attribute__ ((__format__ (__printf__, 1, 2)));
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void term_flush(void);
void term_print_help(void);

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/* gdbstub.c */

#define DEFAULT_GDBSTUB_PORT 1234

int gdbserver_start(int port);

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#endif /* VL_H */