pcem/src/scsi_cd.c

1716 lines
59 KiB
C

#include <stdio.h>
#include <stdint.h>
#include <stdlib.h>
#include <string.h>
#include "ibm.h"
#include "ide.h"
#include "ide_atapi.h"
#include "scsi.h"
#include "scsi_cd.h"
#include "timer.h"
#define MIN(a, b) ((a) < (b) ? (a) : (b))
#define BUFFER_SIZE (256*1024)
#define MAX_NR_SECTORS 16
enum
{
CMD_POS_IDLE = 0,
CMD_POS_WAIT,
CMD_POS_START_SECTOR,
CMD_POS_TRANSFER,
CMD_POS_COMPLETE
};
/* ATAPI Commands */
#define GPCMD_TEST_UNIT_READY 0x00
#define GPCMD_REQUEST_SENSE 0x03
#define GPCMD_READ_6 0x08
#define GPCMD_INQUIRY 0x12
#define GPCMD_MODE_SELECT_6 0x15
#define GPCMD_MODE_SENSE_6 0x1a
#define GPCMD_START_STOP_UNIT 0x1b
#define GPCMD_PREVENT_REMOVAL 0x1e
#define GPCMD_READ_CDROM_CAPACITY 0x25
#define GPCMD_READ_10 0x28
#define GPCMD_SEEK 0x2b
#define GPCMD_READ_SUBCHANNEL 0x42
#define GPCMD_READ_TOC_PMA_ATIP 0x43
#define GPCMD_READ_HEADER 0x44
#define GPCMD_PLAY_AUDIO_10 0x45
#define GPCMD_PLAY_AUDIO_MSF 0x47
#define GPCMD_GET_EVENT_STATUS_NOTIFICATION 0x4a
#define GPCMD_PAUSE_RESUME 0x4b
#define GPCMD_STOP_PLAY_SCAN 0x4e
#define GPCMD_READ_DISC_INFORMATION 0x51
#define GPCMD_MODE_SELECT_10 0x55
#define GPCMD_MODE_SENSE_10 0x5a
#define GPCMD_PLAY_AUDIO_12 0xa5
#define GPCMD_READ_12 0xa8
#define GPCMD_SEND_DVD_STRUCTURE 0xad
#define GPCMD_SET_SPEED 0xbb
#define GPCMD_MECHANISM_STATUS 0xbd
#define GPCMD_READ_CD 0xbe
/* Mode page codes for mode sense/set */
#define GPMODE_R_W_ERROR_PAGE 0x01
#define GPMODE_CDROM_PAGE 0x0d
#define GPMODE_CDROM_AUDIO_PAGE 0x0e
#define GPMODE_CAPABILITIES_PAGE 0x2a
#define GPMODE_ALL_PAGES 0x3f
/* ATAPI Sense Keys */
#define SENSE_NONE 0
#define SENSE_NOT_READY 2
#define SENSE_ILLEGAL_REQUEST 5
#define SENSE_UNIT_ATTENTION 6
#define ASCQ_AUDIO_PLAY_OPERATION_IN_PROGRESS 0x11
#define ASCQ_AUDIO_PLAY_OPERATION_PAUSED 0x12
#define ASCQ_AUDIO_PLAY_OPERATION_COMPLETED 0x13
/* Tell RISC OS that we have a 4x CD-ROM drive (600kb/sec data, 706kb/sec raw).
Not that it means anything */
#define CDROM_SPEED 706
/* Event notification classes for GET EVENT STATUS NOTIFICATION */
#define GESN_NO_EVENTS 0
#define GESN_OPERATIONAL_CHANGE 1
#define GESN_POWER_MANAGEMENT 2
#define GESN_EXTERNAL_REQUEST 3
#define GESN_MEDIA 4
#define GESN_MULTIPLE_HOSTS 5
#define GESN_DEVICE_BUSY 6
/* Event codes for MEDIA event status notification */
#define MEC_NO_CHANGE 0
#define MEC_EJECT_REQUESTED 1
#define MEC_NEW_MEDIA 2
#define MEC_MEDIA_REMOVAL 3 /* only for media changers */
#define MEC_MEDIA_CHANGED 4 /* only for media changers */
#define MEC_BG_FORMAT_COMPLETED 5 /* MRW or DVD+RW b/g format completed */
#define MEC_BG_FORMAT_RESTARTED 6 /* MRW or DVD+RW b/g format restarted */
#define MS_TRAY_OPEN 1
#define MS_MEDIA_PRESENT 2
#define CHECK_READY 2
#define ALLOW_UA 1
/* Table of all ATAPI commands and their flags, needed for the new disc change / not ready handler. */
static uint8_t atapi_cmd_table[0x100] =
{
[GPCMD_TEST_UNIT_READY] = CHECK_READY,
[GPCMD_REQUEST_SENSE] = ALLOW_UA,
[GPCMD_READ_6] = CHECK_READY,
[GPCMD_INQUIRY] = ALLOW_UA,
[GPCMD_MODE_SELECT_6] = 0,
[GPCMD_MODE_SENSE_6] = 0,
[GPCMD_START_STOP_UNIT] = 0,
[GPCMD_PREVENT_REMOVAL] = CHECK_READY,
[GPCMD_READ_CDROM_CAPACITY] = CHECK_READY,
[GPCMD_READ_10] = CHECK_READY,
[GPCMD_SEEK] = CHECK_READY,
[GPCMD_READ_SUBCHANNEL] = CHECK_READY,
[GPCMD_READ_TOC_PMA_ATIP] = CHECK_READY | ALLOW_UA, /* Read TOC - can get through UNIT_ATTENTION, per VIDE-CDD.SYS */
[GPCMD_READ_HEADER] = CHECK_READY,
[GPCMD_PLAY_AUDIO_10] = CHECK_READY,
[GPCMD_PLAY_AUDIO_MSF] = CHECK_READY,
[GPCMD_GET_EVENT_STATUS_NOTIFICATION] = ALLOW_UA,
[GPCMD_PAUSE_RESUME] = CHECK_READY,
[GPCMD_STOP_PLAY_SCAN] = CHECK_READY,
[GPCMD_READ_DISC_INFORMATION] = CHECK_READY,
[GPCMD_MODE_SELECT_10] = 0,
[GPCMD_MODE_SENSE_10] = 0,
[GPCMD_PLAY_AUDIO_12] = CHECK_READY,
[GPCMD_READ_12] = CHECK_READY,
[GPCMD_SEND_DVD_STRUCTURE] = CHECK_READY, /* Read DVD structure (NOT IMPLEMENTED YET) */
[GPCMD_SET_SPEED] = 0,
[GPCMD_MECHANISM_STATUS] = 0,
[GPCMD_READ_CD] = CHECK_READY,
[0xBF] = CHECK_READY /* Send DVD structure (NOT IMPLEMENTED YET) */
};
#define IMPLEMENTED 1
static uint8_t mode_sense_pages[0x40] =
{
[GPMODE_R_W_ERROR_PAGE] = IMPLEMENTED,
[GPMODE_CDROM_PAGE] = IMPLEMENTED,
[GPMODE_CDROM_AUDIO_PAGE] = IMPLEMENTED,
[GPMODE_CAPABILITIES_PAGE] = IMPLEMENTED,
[GPMODE_ALL_PAGES] = IMPLEMENTED
};
uint8_t mode_pages_in[256][256];
#define PAGE_CHANGEABLE 1
#define PAGE_CHANGED 2
static uint8_t page_flags[256] =
{
[GPMODE_R_W_ERROR_PAGE] = 0,
[GPMODE_CDROM_PAGE] = 0,
[GPMODE_CDROM_AUDIO_PAGE] = PAGE_CHANGEABLE,
[GPMODE_CAPABILITIES_PAGE] = 0,
};
extern int cd_status;
typedef struct scsi_cd_data_t
{
uint8_t data_in[BUFFER_SIZE];
uint8_t data_out[BUFFER_SIZE];
int blocks;
int cmd_pos, new_cmd_pos;
pc_timer_t callback_timer;
int wait_time;
scsi_bus_t *bus;
int addr, len;
int sector_pos;
uint8_t buf[512];
uint8_t status;
int data_pos_read, data_pos_write;
int data_bytes_read, bytes_expected;
int cdlen, cdpos;
int bytes_received, bytes_required;
int sense_key, asc, ascq;
int id;
int received_cdb;
uint8_t cdb[CDB_MAX_LEN];
int prev_status;
int cd_status;
uint8_t prefix_len;
uint8_t page_current;
int is_atapi;
atapi_device_t *atapi_dev;
int pio_mode, mdma_mode;
int short_seek, long_seek;
int max_speed, cur_speed;
int cur_model;
} scsi_cd_data_t;
static scsi_cd_data_t *cd_data = NULL;
/*Note - all transfer speeds currently assume CAV behaviour. Drives above about 8x
should use CLV instead, but this is not currently supported.*/
static struct
{
int speed;
int short_seek;
int long_seek;
} cd_speeds[] =
{
{1, 240, 1446},
{2, 160, 1000},
{3, 150, 900},
{4, 112, 675},
{6, 112, 675},
{8, 112, 675},
{12, 75, 400},
{16, 58, 350},
{20, 50, 300},
{24, 45, 270},
{32, 45, 270},
{40, 50, 300},
{44, 50, 300},
{48, 50, 300},
{52, 45, 270},
{56, 45, 270},
{72, 45, 270},
};
int cd_speed;
int cd_get_speed(int i)
{
return cd_speeds[i].speed;
}
void cd_set_speed(int speed)
{
if (cd_data)
{
int c = 0;
while (1)
{
if (cd_speeds[c].speed == speed)
break;
if (cd_speeds[c].speed >= MAX_CD_SPEED)
break;
c++;
}
cd_data->max_speed = speed;
cd_data->cur_speed = speed;
cd_data->short_seek = cd_speeds[c].short_seek;
cd_data->long_seek = cd_speeds[c].long_seek;
}
}
static struct
{
// suffix numbers are sizes from the specs
char *vendor_8;
char *model_and_firmware_40;
char *serial_20;
char *model_16;
char *firmware_4;
char *serial2_20;
char *firmware2_8;
char *model2_40;
// for PCem config only
char *model_string_40;
char *model_config_string_40;
int interfaces;
int speed; // Not an index, but a "speed" value. -1 == allow override
} const cd_models[] =
{
{
// Generic PCem CD
"PCem",
"PCemCD v1.0",
"53R141",
"PCemCD",
"1.0",
"",
"v1.0",
"PCemCD",
"PCemCD",
"pcemcd",
CD_MODEL_INTERFACE_ALL,
-1,
},
{
// A 4x CD-ROM drive from Aztech. Choose if your system image has the SGIDECD.SYS driver
"AZT",
"AZT 46802I v1.15",
"53R141", // TODO: clone serial from my real one
"46802I",
"1.15",
"",
"v1.15",
"CDA46802I",
"AZT CDA 468-02I 4X",
"azt_cda_468_02i_4x",
CD_MODEL_INTERFACE_IDE,
4,
},
};
char *cd_model = NULL;
char *cd_get_model(int i)
{
return cd_models[i].model_string_40;
}
char *cd_get_config_model(int i)
{
return cd_models[i].model_config_string_40;
}
void cd_set_model(char *model)
{
if (cd_data)
{
int c = 0;
while (1)
{
if (!model)
break;
if (c > MAX_CD_MODEL)
break;
if (!strncmp(cd_models[c].model_string_40, model, 40))
break;
c++;
}
cd_data->cur_model = c;
}
}
int cd_get_model_interfaces(int i)
{
return cd_models[i].interfaces;
}
int cd_get_model_speed(int i)
{
return cd_models[i].speed;
}
char *cd_model_to_config(char *model)
{
int c = 0;
while (1)
{
if (!model)
break;
if (c > MAX_CD_MODEL)
{
c = 0; // default
break;
}
if (!strncmp(cd_models[c].model_string_40, model, 40))
break;
c++;
}
return cd_models[c].model_config_string_40;
}
char *cd_model_from_config(char *config)
{
int c = 0;
while (1)
{
if (!config)
break;
if (c > MAX_CD_MODEL)
{
c = 0; // default
break;
}
if (!strncmp(cd_models[c].model_config_string_40, config, 40))
break;
c++;
}
return cd_models[c].model_string_40;
}
static void scsi_cd_callback(void *p)
{
scsi_cd_data_t *data = p;
if (data->cmd_pos == CMD_POS_WAIT)
{
data->wait_time--;
if (!data->wait_time)
{
data->cmd_pos = data->new_cmd_pos;
scsi_bus_kick(data->bus);
}
else
timer_advance_u64(&data->callback_timer, 1000 * TIMER_USEC);
}
}
//#define SECTOR_TIME 13333 /*Time between sectors on 1x drive*/
#define SECTOR_TIME 12000 /*Adjusted from above value to account for transfer time on current SCSI/ATAPI code*/
/*The seek model is currently very basic. Seeks of less than MIN_SEEK sectors are treated as
immediate. Seeks between MIN_SEEK and MAX_SEEK sectors scale linearly between short_seek and
long seek.
This really shouldn't be a linear scale, but this is a good enough approximation for now.*/
#define MIN_SEEK 2000
#define MAX_SEEK 333000
static int get_seek_time(scsi_cd_data_t *data, uint32_t start, uint32_t dest)
{
uint32_t diff = ABS((int)(start - dest));
if (diff < MIN_SEEK)
return 0;
if (diff > MAX_SEEK)
diff = MAX_SEEK;
diff -= MIN_SEEK;
return data->short_seek + ((data->long_seek * diff) / (MAX_SEEK - MIN_SEEK));
}
static void scsi_add_data(scsi_cd_data_t *data, uint8_t val)
{
data->data_in[data->data_pos_write++] = val;
data->bytes_expected++;
}
static void atapi_cmd_error(scsi_cd_data_t *data, int sensekey, int asc, int ascq)
{
data->status = STATUS_CHECK_CONDITION;
data->sense_key = sensekey;
data->asc = asc;
data->ascq = ascq;
}
static void atapi_sense_clear(scsi_cd_data_t *data, int command, int ignore_ua)
{
if ((data->sense_key == SENSE_UNIT_ATTENTION) || ignore_ua)
{
data->sense_key = 0;
data->asc = 0;
data->ascq = 0;
}
}
static int atapi_event_status(uint8_t *buffer)
{
uint8_t event_code, media_status = 0;
if (buffer[5])
{
media_status = MS_TRAY_OPEN;
atapi->stop();
}
else
{
media_status = MS_MEDIA_PRESENT;
}
event_code = MEC_NO_CHANGE;
if (media_status != MS_TRAY_OPEN)
{
if (!buffer[4])
{
event_code = MEC_NEW_MEDIA;
atapi->load();
}
else if (buffer[4]==2)
{
event_code = MEC_EJECT_REQUESTED;
atapi->eject();
}
}
buffer[4] = event_code;
buffer[5] = media_status;
buffer[6] = 0;
buffer[7] = 0;
return 8;
}
static void ide_padstr8(uint8_t *buf, int buf_size, const char *src)
{
int i;
for (i = 0; i < buf_size; i++) {
if (*src != '\0') {
buf[i] = *src++;
} else {
buf[i] = ' ';
}
}
}
static void *scsi_cd_init(scsi_bus_t *bus, int id)
{
scsi_cd_data_t *data = malloc(sizeof(scsi_cd_data_t));
memset(data, 0, sizeof(scsi_cd_data_t));
data->bus = bus;
data->id = id;
page_flags[GPMODE_CDROM_AUDIO_PAGE] &= 0xFD; /* Clear changed flag for CDROM AUDIO mode page. */
memset(mode_pages_in[GPMODE_CDROM_AUDIO_PAGE], 0, 256); /* Clear the page itself. */
page_flags[GPMODE_CDROM_AUDIO_PAGE] &= ~PAGE_CHANGED;
timer_add(&data->callback_timer, scsi_cd_callback, data, 0);
cd_data = data;
cd_set_speed(cd_speed);
cd_set_model(cd_model);
return data;
}
static void *scsi_cd_atapi_init(scsi_bus_t *bus, int id, atapi_device_t *atapi_dev)
{
scsi_cd_data_t *data = scsi_cd_init(bus, id);
data->is_atapi = 1;
data->atapi_dev = atapi_dev;
return data;
}
static void scsi_cd_close(void *p)
{
scsi_cd_data_t *data = p;
cd_data = NULL;
free(data);
}
static void scsi_cd_reset(void *p)
{
scsi_cd_data_t *data = p;
timer_disable(&data->callback_timer);
data->cmd_pos = CMD_POS_IDLE;
}
static void scsi_cd_illegal(scsi_cd_data_t *data)
{
atapi_cmd_error(data, KEY_ILLEGAL_REQ, ASC_INVALID_LUN, 0);
}
/**
* Fill in ide->buffer with the output of the ATAPI "MODE SENSE" command
*
* @param pos Offset within the buffer to start filling in data
*
* @return Offset within the buffer after the end of the data
*/
static uint32_t ide_atapi_mode_sense(scsi_cd_data_t *data, uint32_t pos, uint8_t type)
{
uint8_t *buf = (uint8_t *)data->data_in;
// pclog("ide_atapi_mode_sense %02X\n",type);
if (type==GPMODE_ALL_PAGES || type==GPMODE_R_W_ERROR_PAGE)
{
/* &01 - Read error recovery */
buf[pos++] = GPMODE_R_W_ERROR_PAGE;
buf[pos++] = 6; /* Page length */
buf[pos++] = 0; /* Error recovery parameters */
buf[pos++] = 5; /* Read retry count */
buf[pos++] = 0; /* Reserved */
buf[pos++] = 0; /* Reserved */
buf[pos++] = 0; /* Reserved */
buf[pos++] = 0; /* Reserved */
}
if (type==GPMODE_ALL_PAGES || type==GPMODE_CDROM_PAGE)
{
/* &0D - CD-ROM Parameters */
buf[pos++] = GPMODE_CDROM_PAGE;
buf[pos++] = 6; /* Page length */
buf[pos++] = 0; /* Reserved */
buf[pos++] = 1; /* Inactivity time multiplier *NEEDED BY RISCOS* value is a guess */
buf[pos++] = 0; buf[pos++] = 60; /* MSF settings */
buf[pos++] = 0; buf[pos++] = 75; /* MSF settings */
}
if (type==GPMODE_ALL_PAGES || type==GPMODE_CDROM_AUDIO_PAGE)
{
/* &0e - CD-ROM Audio Control Parameters */
buf[pos++] = GPMODE_CDROM_AUDIO_PAGE;
buf[pos++] = 0xE; /* Page length */
if (page_flags[GPMODE_CDROM_AUDIO_PAGE] & PAGE_CHANGED)
{
int i;
for (i = 0; i < 14; i++)
{
buf[pos++] = mode_pages_in[GPMODE_CDROM_AUDIO_PAGE][i];
}
}
else
{
buf[pos++] = 5; /* Reserved */
buf[pos++] = 4; /* Reserved */
buf[pos++] = 0; /* Reserved */
buf[pos++] = 0x80; /* Reserved */
buf[pos++] = 0; buf[pos++] = 75; /* Logical audio block per second */
buf[pos++] = 1; /* CDDA Output Port 0 Channel Selection */
buf[pos++] = 0xFF; /* CDDA Output Port 0 Volume */
buf[pos++] = 2; /* CDDA Output Port 1 Channel Selection */
buf[pos++] = 0xFF; /* CDDA Output Port 1 Volume */
buf[pos++] = 0; /* CDDA Output Port 2 Channel Selection */
buf[pos++] = 0; /* CDDA Output Port 2 Volume */
buf[pos++] = 0; /* CDDA Output Port 3 Channel Selection */
buf[pos++] = 0; /* CDDA Output Port 3 Volume */
}
}
if (type==GPMODE_ALL_PAGES || type==GPMODE_CAPABILITIES_PAGE)
{
// pclog("Capabilities page\n");
/* &2A - CD-ROM capabilities and mechanical status */
buf[pos++] = GPMODE_CAPABILITIES_PAGE;
buf[pos++] = 0x12; /* Page length */
buf[pos++] = 0; buf[pos++] = 0; /* CD-R methods */
buf[pos++] = 1; /* Supports audio play, not multisession */
buf[pos++] = 0; /* Some other stuff not supported */
buf[pos++] = 0; /* Some other stuff not supported (lock state + eject) */
buf[pos++] = 0x03; /* Some other stuff not supported */
buf[pos++] = (uint8_t) ((data->max_speed * 176) >> 8);
buf[pos++] = (uint8_t) (data->max_speed * 176); /* Maximum speed */
buf[pos++] = 1; buf[pos++] = 0; /* Number of audio levels - on and off only */
buf[pos++] = 0; buf[pos++] = 0; /* Buffer size - none */
buf[pos++] = (uint8_t) ((data->cur_speed * 176) >> 8);
buf[pos++] = (uint8_t) (data->cur_speed * 176); /* Current speed */
buf[pos++] = 0; /* Reserved */
buf[pos++] = 0; /* Drive digital format */
buf[pos++] = 0; /* Reserved */
buf[pos++] = 0; /* Reserved */
}
return pos;
}
static void cdrom_mode_select(scsi_cd_data_t *data, int data_len)
{
int len = data->data_out[1] | (data->data_out[0] << 8);
int pos = 8 + len; /*Skip over mode parameter header*/
while (pos < data_len)
{
int page_code = data->data_out[pos] & 0x3f;
len = data->data_out[pos+1];
pos += 2;
switch (page_code)
{
case GPMODE_CDROM_AUDIO_PAGE:
if (len != 0xe)
{
atapi_cmd_error(data, KEY_ILLEGAL_REQ, ASC_INV_FIELD_IN_CMD_PACKET, 0);
return;
}
memcpy(mode_pages_in[GPMODE_CDROM_AUDIO_PAGE], &data->data_out[pos], 0xe);
page_flags[GPMODE_CDROM_AUDIO_PAGE] |= PAGE_CHANGED;
pos += len;
break;
case GPMODE_R_W_ERROR_PAGE:
if (len != 0x6)
{
atapi_cmd_error(data, KEY_ILLEGAL_REQ, ASC_INV_FIELD_IN_CMD_PACKET, 0);
return;
}
pos += len;
break;
case GPMODE_CDROM_PAGE:
if (len != 0x6)
{
atapi_cmd_error(data, KEY_ILLEGAL_REQ, ASC_INV_FIELD_IN_CMD_PACKET, 0);
return;
}
pos += len;
break;
case GPMODE_CAPABILITIES_PAGE:
if (len != 0x12)
{
atapi_cmd_error(data, KEY_ILLEGAL_REQ, ASC_INV_FIELD_IN_CMD_PACKET, 0);
return;
}
pos += len;
break;
default:
atapi_cmd_error(data, KEY_ILLEGAL_REQ, ASC_INV_FIELD_IN_CMD_PACKET, 0);
return;
}
}
}
uint32_t atapi_get_cd_channel(int channel)
{
return (page_flags[GPMODE_CDROM_AUDIO_PAGE] & PAGE_CHANGED) ? mode_pages_in[GPMODE_CDROM_AUDIO_PAGE][channel ? 8 : 6] : (channel + 1);
}
uint32_t atapi_get_cd_volume(int channel)
{
return (page_flags[GPMODE_CDROM_AUDIO_PAGE] & PAGE_CHANGED) ? mode_pages_in[GPMODE_CDROM_AUDIO_PAGE][channel ? 9 : 7] : 0xFF;
}
static int scsi_cd_command(uint8_t *cdb, void *p)
{
scsi_cd_data_t *data = p;
uint8_t rcdmode = 0;
int c;
int len;
int msf;
int pos=0;
// unsigned char temp;
uint32_t size;
int is_error;
uint8_t page_code;
int max_len;
unsigned idx = 0;
unsigned size_idx;
unsigned preamble_len;
int toc_format;
int temp_command;
int alloc_length;
int completed;
int changed;
if (!data->received_cdb)
memcpy(data->cdb, cdb, CDB_MAX_LEN);
if ((cdb[0] != SCSI_REQUEST_SENSE/* && cdb[0] != SCSI_INQUIRY*/) && (cdb[1] & 0xe0))
{
pclog("non-zero LUN\n");
/*Non-zero LUN - abort command*/
scsi_cd_illegal(data);
return BUS_CD | BUS_IO;
}
pclog("New CD command %02X %i\n", cdb[0], ins);
msf = cdb[1] & 2;
is_error = 0;
changed = atapi->medium_changed();
/*If UNIT_ATTENTION is set, error out with NOT_READY.
VIDE-CDD.SYS will then issue a READ_TOC, which can pass through UNIT_ATTENTION and will clear sense.
NT 3.1 / AZTIDECD.SYS will then issue a REQUEST_SENSE, which can also pass through UNIT_ATTENTION but will clear sense AFTER sending it back.
In any case, if the command cannot pass through, set our state to errored.*/
if (!(atapi_cmd_table[cdb[0]] & ALLOW_UA) && data->sense_key == SENSE_UNIT_ATTENTION)
{
// fatal("atapi_cmd_error(ide, data->sense_key, data->asc);\n");
is_error = 1;
}
/*Unless the command issued was a REQUEST_SENSE or TEST_UNIT_READY, clear sense.
This is important because both VIDE-CDD.SYS and NT 3.1 / AZTIDECD.SYS rely on this behaving VERY specifically.
VIDE-CDD.SYS will clear sense through READ_TOC, while NT 3.1 / AZTIDECD.SYS will issue a REQUEST_SENSE.*/
if ((cdb[0] != GPCMD_REQUEST_SENSE) && (cdb[0] != GPCMD_TEST_UNIT_READY))
{
/* GPCMD_TEST_UNIT_READY is NOT supposed to clear sense! */
atapi_sense_clear(data, cdb[0], 1);
}
/*If our state has been set to errored, clear it, and return.*/
if (is_error)
{
// fatal("Clear error state\n");
is_error = 0;
return SCSI_PHASE_STATUS;
}
if ((atapi_cmd_table[cdb[0]] & CHECK_READY) && !atapi->ready())
{
atapi_cmd_error(data, SENSE_NOT_READY, ASC_MEDIUM_NOT_PRESENT, 0);
return SCSI_PHASE_STATUS;
}
if ((atapi_cmd_table[cdb[0]] & CHECK_READY) && changed)
{
pclog("Medium changed\n");
atapi_cmd_error(data, SENSE_UNIT_ATTENTION, ASC_MEDIUM_MAY_HAVE_CHANGED, 0);
return SCSI_PHASE_STATUS;
}
data->prev_status = data->cd_status;
data->cd_status = atapi->status();
if (((data->prev_status == CD_STATUS_PLAYING) || (data->prev_status == CD_STATUS_PAUSED)) && ((data->cd_status != CD_STATUS_PLAYING) && (data->cd_status != CD_STATUS_PAUSED)))
completed = 1;
else
completed = 0;
// pclog(" msf %i completed %i\n", msf, completed);
data->status = STATUS_GOOD;
switch (cdb[0])
{
case GPCMD_TEST_UNIT_READY:
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
case SCSI_REZERO_UNIT:
if (data->cmd_pos == CMD_POS_IDLE)
{
uint32_t old_pos = data->cdpos;
int seek_time;
data->cdpos = 0;
seek_time = get_seek_time(data, old_pos, data->cdpos);
if (seek_time)
{
data->cmd_pos = CMD_POS_WAIT;
data->new_cmd_pos = CMD_POS_COMPLETE;
data->wait_time = seek_time;
timer_set_delay_u64(&data->callback_timer, 1000 * TIMER_USEC);
return SCSI_PHASE_COMMAND;
}
}
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
case SCSI_REQUEST_SENSE: /* Used by ROS 4+ */
// pclog("CD REQ SENSE\n");
alloc_length = cdb[4];
temp_command = cdb[0];
//atapi_command_send_init(ide, temp_command, 18, alloc_length);
/*Will return 18 bytes of 0*/
memset(data->data_in, 0, 512);
data->data_in[0] = 0x80 | 0x70;
if ((data->sense_key > 0) || (data->cd_status < CD_STATUS_PLAYING))
{
if (completed)
{
// pclog("completed\n");
data->data_in[2] = SENSE_ILLEGAL_REQUEST;
data->data_in[12] = ASC_AUDIO_PLAY_OPERATION;
data->data_in[13] = ASCQ_AUDIO_PLAY_OPERATION_COMPLETED;
}
else
{
// pclog("!completed %02x %02x %02x\n", data->sense_key, data->asc, data->ascq);
data->data_in[2] = data->sense_key;
data->data_in[12] = data->asc;
data->data_in[13] = data->ascq;
}
}
else
{
data->data_in[2] = SENSE_ILLEGAL_REQUEST;
data->data_in[12] = ASC_AUDIO_PLAY_OPERATION;
data->data_in[13] = (data->cd_status == CD_STATUS_PLAYING) ? ASCQ_AUDIO_PLAY_OPERATION_IN_PROGRESS : ASCQ_AUDIO_PLAY_OPERATION_PAUSED;
}
data->data_in[7] = 0;
/* Clear the sense stuff as per the spec. */
atapi_sense_clear(data, temp_command, 0);
data->bytes_expected = data->data_pos_write = MIN(alloc_length, 18);
return alloc_length ? SCSI_PHASE_DATA_IN : SCSI_PHASE_STATUS;
case SCSI_SEEK_6:
if (data->cmd_pos == CMD_POS_IDLE)
{
uint32_t old_pos = data->cdpos;
int seek_time;
data->cdpos = (((uint32_t)cdb[1] & 0x1f) << 16) | ((uint32_t)cdb[2] << 8) | (uint32_t)cdb[3];
seek_time = get_seek_time(data, old_pos, data->cdpos);
if (seek_time)
{
data->cmd_pos = CMD_POS_WAIT;
data->new_cmd_pos = CMD_POS_COMPLETE;
data->wait_time = seek_time;
timer_set_delay_u64(&data->callback_timer, 1000 * TIMER_USEC);
return SCSI_PHASE_COMMAND;
}
}
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
case GPCMD_SET_SPEED:
data->cur_speed = (cdb[3] | (cdb[2] << 8)) / 176;
if (data->cur_speed < 1)
data->cur_speed = 1;
else if (data->cur_speed > data->max_speed)
data->cur_speed = data->max_speed;
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
case GPCMD_MECHANISM_STATUS: /*0xbd*/
alloc_length = (cdb[7]<<16) | (cdb[8]<<8) | cdb[9];
if (alloc_length == 0)
fatal("Zero allocation length to MECHANISM STATUS not impl.\n");
data->data_in[0] = 0;
data->data_in[1] = 0;
data->data_in[2] = 0;
data->data_in[3] = 0;
data->data_in[4] = 0;
data->data_in[5] = 1;
data->data_in[6] = 0;
data->data_in[7] = 0;
// len = 8;
data->data_pos_read = 0;
data->bytes_expected = data->data_pos_write = MIN(alloc_length, 8);
return alloc_length ? SCSI_PHASE_DATA_IN : SCSI_PHASE_STATUS;
case GPCMD_READ_TOC_PMA_ATIP:
// pclog("Read TOC ready? %08X\n",ide);
toc_format = cdb[2] & 0xf;
if (toc_format == 0)
toc_format = (cdb[9] >> 6) & 3;
alloc_length = cdb[8] + (cdb[7] << 8);
switch (toc_format)
{
case 0: /*Normal*/
// pclog("ATAPI: READ TOC type requested: Normal\n");
len = atapi->readtoc(data->data_in, cdb[6], msf, alloc_length, 0);
break;
case 1: /*Multi session*/
// pclog("ATAPI: READ TOC type requested: Multi-session\n");
len = atapi->readtoc_session(data->data_in, msf, alloc_length);
data->data_in[0] = 0;
data->data_in[1] = 0xA;
break;
case 2: /*Raw*/
// pclog("ATAPI: READ TOC type requested: Raw TOC\n");
len = atapi->readtoc_raw(data->data_in, alloc_length);
break;
default:
atapi_cmd_error(data, SENSE_ILLEGAL_REQUEST, ASC_LBA_OUT_OF_RANGE, 0);
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
}
data->data_pos_read = 0;
data->bytes_expected = data->data_pos_write = MIN(alloc_length, len);
return alloc_length ? SCSI_PHASE_DATA_IN : SCSI_PHASE_STATUS;
case GPCMD_READ_CD:
// pclog("Read CD : start LBA %02X%02X%02X%02X Length %02X%02X%02X Flags %02X\n",cdb[2],cdb[3],cdb[4],cdb[5],cdb[6],cdb[7],cdb[8],cdb[9]);
rcdmode = cdb[9] & 0xF8;
if ((rcdmode != 0x10) && (rcdmode != 0xF8))
{
atapi_cmd_error(data, SENSE_ILLEGAL_REQUEST, ASC_ILLEGAL_OPCODE, 0);
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
}
if (data->cmd_pos == CMD_POS_IDLE)
{
uint32_t old_pos = data->cdpos;
int seek_time;
data->cdlen = (cdb[6] << 16) | (cdb[7] << 8) | cdb[8];
data->cdpos = (cdb[2] << 24) | (cdb[3] << 16) | (cdb[4] << 8) | cdb[5];
data->cmd_pos = CMD_POS_START_SECTOR;
data->bytes_expected = data->cdlen * ((rcdmode == 0x10) ? 2048 : 2352);
if (data->is_atapi)
{
if (rcdmode == 0x10)
atapi_set_transfer_granularity(data->atapi_dev, 2048);
else
atapi_set_transfer_granularity(data->atapi_dev, 2352);
}
seek_time = get_seek_time(data, old_pos, data->cdpos);
if (seek_time)
{
data->cmd_pos = CMD_POS_WAIT;
data->new_cmd_pos = CMD_POS_START_SECTOR;
data->wait_time = seek_time;
timer_set_delay_u64(&data->callback_timer, 1000 * TIMER_USEC);
return SCSI_PHASE_COMMAND;
}
}
if (data->cmd_pos == CMD_POS_WAIT)
return SCSI_PHASE_COMMAND;
if (!data->cdlen)
{
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
}
if (data->cmd_pos == CMD_POS_START_SECTOR)
{
uint64_t time = (((uint64_t)SECTOR_TIME * TIMER_USEC) / data->cur_speed) * (uint64_t)data->cdlen;
data->cmd_pos = CMD_POS_WAIT;
data->new_cmd_pos = CMD_POS_TRANSFER;
if (time > (TIMER_USEC * 1000ull))
{
data->wait_time = (int)(time / (TIMER_USEC * 1000ull));
timer_set_delay_u64(&data->callback_timer, time % (TIMER_USEC * 1000ull));
}
else
{
timer_set_delay_u64(&data->callback_timer, time);
data->wait_time = 1;
}
return SCSI_PHASE_COMMAND;
}
if (rcdmode == 0x10)
{
c = MIN(data->cdlen, MAX_NR_SECTORS);
if (atapi->readsector(data->data_in, data->cdpos, c))
{
// pclog("Read sector failed\n");
atapi_cmd_error(data, SENSE_ILLEGAL_REQUEST, ASC_LBA_OUT_OF_RANGE, 0);
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
}
data->cdpos += c;
data->cdlen -= c;
}
else
{
for (c = 0; c < MAX_NR_SECTORS; c++)
{
atapi->readsector_raw(&data->data_in[c*2352], data->cdpos);
data->cdpos++;
data->cdlen--;
if (!data->cdlen)
{
c++;
break;
}
}
}
readflash_set(READFLASH_HDC, data->id);
data->data_pos_read = 0;
data->data_pos_write = c * ((rcdmode == 0x10) ? 2048 : 2352);
return SCSI_PHASE_DATA_IN;
case GPCMD_READ_6:
case GPCMD_READ_10:
case GPCMD_READ_12:
// pclog("Read: cmd_pos=%i cdlen=%i %p\n", data->cmd_pos, data->cdlen, &data->data_in[0]);
// readcdmode = 0;
if (data->cmd_pos == CMD_POS_IDLE)
{
uint32_t old_pos = data->cdpos;
int seek_time;
if (cdb[0] == GPCMD_READ_6)
{
data->cdlen = cdb[4];
data->cdpos = (((uint32_t)cdb[1] & 0x1f) << 16) | ((uint32_t)cdb[2] << 8) | (uint32_t)cdb[3];
}
else if (cdb[0] == GPCMD_READ_10)
{
data->cdlen = (cdb[7] << 8) | cdb[8];
data->cdpos = (cdb[2] << 24) | (cdb[3] << 16) | (cdb[4] << 8) | cdb[5];
}
else
{
data->cdlen = ((uint32_t)cdb[6] << 24) | ((uint32_t)cdb[7] << 16) | ((uint32_t)cdb[8] << 8) | (uint32_t)cdb[9];
data->cdpos = ((uint32_t)cdb[2] << 24) | ((uint32_t)cdb[3] << 16) | ((uint32_t)cdb[4] << 8) | (uint32_t)cdb[5];
}
// pclog("cdpos=%08x cdlen=%08x\n", data->cdpos, data->cdlen);
data->cmd_pos = CMD_POS_START_SECTOR;
data->bytes_expected = data->cdlen * 2048;
if (data->is_atapi)
atapi_set_transfer_granularity(data->atapi_dev, 2048);
seek_time = get_seek_time(data, old_pos, data->cdpos);
if (seek_time)
{
data->cmd_pos = CMD_POS_WAIT;
data->new_cmd_pos = CMD_POS_START_SECTOR;
data->wait_time = seek_time;
timer_set_delay_u64(&data->callback_timer, 1000 * TIMER_USEC);
return SCSI_PHASE_COMMAND;
}
}
if (data->cmd_pos == CMD_POS_WAIT)
return SCSI_PHASE_COMMAND;
if (!data->cdlen)
{
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
}
if (data->cmd_pos == CMD_POS_START_SECTOR)
{
uint64_t time = (((uint64_t)SECTOR_TIME * TIMER_USEC) / data->cur_speed) * (uint64_t)data->cdlen;
data->cmd_pos = CMD_POS_WAIT;
data->new_cmd_pos = CMD_POS_TRANSFER;
if (time > (TIMER_USEC * 1000ull))
{
data->wait_time = (int)(time / (TIMER_USEC * 1000ull));
timer_set_delay_u64(&data->callback_timer, time % (TIMER_USEC * 1000ull));
}
else
{
timer_set_delay_u64(&data->callback_timer, time);
data->wait_time = 1;
}
return SCSI_PHASE_COMMAND;
}
readflash_set(READFLASH_HDC, data->id);
c = MIN(data->cdlen, MAX_NR_SECTORS);
if (atapi->readsector(data->data_in, data->cdpos, c))
{
// pclog("Read sector failed\n");
atapi_cmd_error(data, SENSE_ILLEGAL_REQUEST, ASC_LBA_OUT_OF_RANGE, 0);
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
}
data->cdpos += c;
data->cdlen -= c;
data->data_pos_read = 0;
data->data_pos_write = c * 2048;
return SCSI_PHASE_DATA_IN;
case GPCMD_READ_HEADER:
alloc_length = cdb[8] | (cdb[7] << 8);
if (msf)
{
atapi_cmd_error(data, SENSE_ILLEGAL_REQUEST, ASC_ILLEGAL_OPCODE, 0);
return SCSI_PHASE_STATUS;
}
for (c = 0; c < 4; c++)
data->data_in[c+4] = cdb[c+2];
data->data_in[0] = 1; /*2048 bytes user data*/
data->data_in[1] = data->data_in[2] = data->data_in[3] = 0;
data->bytes_expected = data->data_pos_write = MIN(6, alloc_length);
return alloc_length ? SCSI_PHASE_DATA_IN : SCSI_PHASE_STATUS;
case GPCMD_MODE_SENSE_6:
case GPCMD_MODE_SENSE_10:
temp_command = cdb[0];
if (temp_command == GPCMD_MODE_SENSE_6)
len = cdb[4];
else
len = cdb[8] | (cdb[7] << 8);
c = cdb[2] & 0x3F;
memset(data->data_in, 0, len);
alloc_length = len;
// for (c=0;c<len;c++) idebufferb[c]=0;
if (!(mode_sense_pages[c] & IMPLEMENTED))
{
atapi_cmd_error(data, SENSE_ILLEGAL_REQUEST, ASC_INV_FIELD_IN_CMD_PACKET, 0);
return SCSI_PHASE_STATUS;
}
if (temp_command == GPCMD_MODE_SENSE_6)
{
len = ide_atapi_mode_sense(data, 4, c);
data->data_in[0] = len - 1;
data->data_in[1] = 3; /*120mm data CD-ROM*/
}
else
{
len = ide_atapi_mode_sense(data, 8, c);
data->data_in[0] = (len - 2)>>8;
data->data_in[1] = (len - 2)&255;
data->data_in[2] = 3; /*120mm data CD-ROM*/
}
data->bytes_expected = data->data_pos_write = MIN(len, alloc_length);
data->cmd_pos = CMD_POS_IDLE;
return alloc_length ? SCSI_PHASE_DATA_IN : SCSI_PHASE_STATUS;
case GPCMD_MODE_SELECT_6:
case GPCMD_MODE_SELECT_10:
if (data->cmd_pos == CMD_POS_IDLE)
{
int len;
if (cdb[0] == GPCMD_MODE_SELECT_6)
{
len = cdb[4];
data->prefix_len = 6;
}
else
{
len = (cdb[7]<<8) | cdb[8];
data->prefix_len = 10;
}
data->cmd_pos = CMD_POS_TRANSFER;
data->bytes_required = len;
return SCSI_PHASE_DATA_OUT;
}
if (data->bytes_received == data->bytes_required)
{
cdrom_mode_select(data, data->bytes_required);
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
}
return SCSI_PHASE_DATA_OUT;
case GPCMD_GET_EVENT_STATUS_NOTIFICATION: /*0x4a*/
temp_command = cdb[0];
alloc_length = (cdb[7] << 16) | (cdb[8] << 8) | cdb[9];
{
struct __attribute__((__packed__))
{
uint8_t opcode;
uint8_t polled;
uint8_t reserved2[2];
uint8_t class;
uint8_t reserved3[2];
uint16_t len;
uint8_t control;
} *gesn_cdb;
struct __attribute__((__packed__))
{
uint16_t len;
uint8_t notification_class;
uint8_t supported_events;
} *gesn_event_header;
unsigned int used_len;
gesn_cdb = (void *)cdb;
gesn_event_header = (void *)data->data_in;
/* It is fine by the MMC spec to not support async mode operations */
if (!(gesn_cdb->polled & 0x01))
{ /* asynchronous mode */
/* Only polling is supported, asynchronous mode is not. */
atapi_cmd_error(data, SENSE_ILLEGAL_REQUEST, ASC_ILLEGAL_OPCODE, 0);
return SCSI_PHASE_STATUS;
}
/* polling mode operation */
/*
* These are the supported events.
*
* We currently only support requests of the 'media' type.
* Notification class requests and supported event classes are bitmasks,
* but they are built from the same values as the "notification class"
* field.
*/
gesn_event_header->supported_events = 1 << GESN_MEDIA;
/*
* We use |= below to set the class field; other bits in this byte
* are reserved now but this is useful to do if we have to use the
* reserved fields later.
*/
gesn_event_header->notification_class = 0;
/*
* Responses to requests are to be based on request priority. The
* notification_class_request_type enum above specifies the
* priority: upper elements are higher prio than lower ones.
*/
if (gesn_cdb->class & (1 << GESN_MEDIA))
{
gesn_event_header->notification_class |= GESN_MEDIA;
used_len = atapi_event_status(data->data_in);
}
else
{
gesn_event_header->notification_class = 0x80; /* No event available */
used_len = sizeof(*gesn_event_header);
}
len = used_len;
gesn_event_header->len = used_len - sizeof(*gesn_event_header);
}
data->bytes_expected = data->data_pos_write = MIN(alloc_length, len);
data->cmd_pos = CMD_POS_IDLE;
return alloc_length ? SCSI_PHASE_DATA_IN : SCSI_PHASE_STATUS;
case GPCMD_READ_DISC_INFORMATION:
alloc_length = cdb[8] | (cdb[7] << 8);
data->data_in[1] = 32;
data->data_in[2] = 0xe; /* last session complete, disc finalized */
data->data_in[3] = 1; /* first track on disc */
data->data_in[4] = 1; /* # of sessions */
data->data_in[5] = 1; /* first track of last session */
data->data_in[6] = 1; /* last track of last session */
data->data_in[7] = 0x20; /* unrestricted use */
data->data_in[8] = 0x00; /* CD-ROM */
data->bytes_expected = data->data_pos_write = MIN(alloc_length, 34);
data->cmd_pos = CMD_POS_IDLE;
return alloc_length ? SCSI_PHASE_DATA_IN : SCSI_PHASE_STATUS;
case GPCMD_PLAY_AUDIO_10:
case GPCMD_PLAY_AUDIO_12:
case GPCMD_PLAY_AUDIO_MSF:
/*This is apparently deprecated in the ATAPI spec, and apparently
has been since 1995 (!). Hence I'm having to guess most of it*/
if (cdb[0] == GPCMD_PLAY_AUDIO_10)
{
pos = (cdb[2] << 24) | (cdb[3] << 16) | (cdb[4] << 8) | cdb[5];
len = (cdb[7] << 8) | cdb[8];
}
else if (cdb[0] == GPCMD_PLAY_AUDIO_MSF)
{
pos = (cdb[3] << 16) | (cdb[4] << 8) | cdb[5];
len = (cdb[6] << 16) | (cdb[7] << 8) | cdb[8];
}
else
{
pos = (cdb[3] << 16) | (cdb[4] << 8) | cdb[5];
len = (cdb[7] << 16) | (cdb[8] << 8) | cdb[9];
}
if ((cdrom_drive < 1) || (data->cd_status <= CD_STATUS_DATA_ONLY) ||
!atapi->is_track_audio(pos, (cdb[0] == GPCMD_PLAY_AUDIO_MSF) ? 1 : 0))
{
atapi_cmd_error(data, SENSE_ILLEGAL_REQUEST, ASC_ILLEGAL_MODE_FOR_THIS_TRACK, 0);
return SCSI_PHASE_STATUS;
}
atapi->playaudio(pos, len, (cdb[0] == GPCMD_PLAY_AUDIO_MSF) ? 1 : 0);
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
case GPCMD_READ_SUBCHANNEL:
alloc_length = cdb[8] | (cdb[7] << 8);
if (cdb[3] != 1)
{
atapi_cmd_error(data, SENSE_ILLEGAL_REQUEST, ASC_ILLEGAL_OPCODE, 0);
return SCSI_PHASE_STATUS;
}
pos = 0;
data->data_in[pos++] = 0;
data->data_in[pos++] = 0; /*Audio status*/
data->data_in[pos++] = 0; data->data_in[pos++] = 0; /*Subchannel length*/
data->data_in[pos++] = 1; /*Format code*/
data->data_in[1] = atapi->getcurrentsubchannel(&data->data_in[5], msf);
// pclog("Read subchannel complete - audio status %02X\n",idebufferb[1]);
len = 11+5;
if (!(cdb[2] & 0x40)) len=4;
data->bytes_expected = data->data_pos_write = MIN(alloc_length, len);
return alloc_length ? SCSI_PHASE_DATA_IN : SCSI_PHASE_STATUS;
case GPCMD_START_STOP_UNIT:
if (!cdb[4]) atapi->stop();
else if (cdb[4] == 2) atapi->eject();
else if (cdb[4] == 3) atapi->load();
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
case GPCMD_INQUIRY:
page_code = cdb[2];
max_len = cdb[4];
alloc_length = max_len;
temp_command = cdb[0];
if (cdb[1] & 1)
{
preamble_len = 4;
size_idx = 3;
data->data_in[idx++] = 05;
data->data_in[idx++] = page_code;
data->data_in[idx++] = 0;
idx++;
switch (page_code)
{
case 0x00:
data->data_in[idx++] = 0x00;
data->data_in[idx++] = 0x83;
break;
case 0x83:
if (idx + 24 > max_len)
{
atapi_cmd_error(data, SENSE_ILLEGAL_REQUEST, ASC_DATA_PHASE_ERROR, 0);
return SCSI_PHASE_STATUS;
}
data->data_in[idx++] = 0x02;
data->data_in[idx++] = 0x00;
data->data_in[idx++] = 0x00;
data->data_in[idx++] = 20;
ide_padstr8(data->data_in + idx, 20, "53R141"); /* Serial */
idx += 20;
if (idx + 72 > max_len)
{
goto atapi_out;
}
data->data_in[idx++] = 0x02;
data->data_in[idx++] = 0x01;
data->data_in[idx++] = 0x00;
data->data_in[idx++] = 68;
ide_padstr8(data->data_in + idx, 8, cd_models[cd_data->cur_model].vendor_8); /* Vendor */
idx += 8;
ide_padstr8(data->data_in + idx, 40, cd_models[cd_data->cur_model].model_and_firmware_40); /* Product */
idx += 40;
ide_padstr8(data->data_in + idx, 20, cd_models[cd_data->cur_model].serial_20); /* Product */
idx += 20;
break;
default:
atapi_cmd_error(data, SENSE_ILLEGAL_REQUEST, ASC_INV_FIELD_IN_CMD_PACKET, 0);
return SCSI_PHASE_STATUS;
}
}
else
{
preamble_len = 5;
size_idx = 4;
data->data_in[0] = 5; /*CD-ROM*/
data->data_in[1] = 0x80; /*Removable*/
if (data->is_atapi)
{
data->data_in[2] = 0; /*Not ANSI compliant*/
data->data_in[3] = 0x21; /*ATAPI compliant*/
}
else
{
data->data_in[2] = 2; /*SCSI-2 compliant*/
data->data_in[3] = 0x02;
}
data->data_in[4] = 31;
data->data_in[5] = 0;
data->data_in[6] = 0;
data->data_in[7] = 0;
ide_padstr8(data->data_in + 8, 8, cd_models[cd_data->cur_model].vendor_8); /* Vendor */
ide_padstr8(data->data_in + 16, 16, cd_models[cd_data->cur_model].model_16); /* Product */
ide_padstr8(data->data_in + 32, 4, cd_models[cd_data->cur_model].firmware_4); /* Revision */
idx = 36;
}
atapi_out:
data->data_in[size_idx] = idx - preamble_len;
data->bytes_expected = data->data_pos_write = MIN(alloc_length, idx);
return alloc_length ? SCSI_PHASE_DATA_IN : SCSI_PHASE_STATUS;
case GPCMD_PREVENT_REMOVAL:
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
case GPCMD_PAUSE_RESUME:
if (cdb[8] & 1) atapi->resume();
else atapi->pause();
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
case GPCMD_SEEK:
if (data->cmd_pos == CMD_POS_IDLE)
{
uint32_t old_pos = data->cdpos;
int seek_time;
data->cdpos = (cdb[3] << 16) | (cdb[4] << 8) | cdb[5];
atapi->seek(data->cdpos);
seek_time = get_seek_time(data, old_pos, data->cdpos);
if (seek_time)
{
data->cmd_pos = CMD_POS_WAIT;
data->new_cmd_pos = CMD_POS_COMPLETE;
data->wait_time = seek_time;
timer_set_delay_u64(&data->callback_timer, 1000 * TIMER_USEC);
return SCSI_PHASE_COMMAND;
}
}
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
case GPCMD_READ_CDROM_CAPACITY:
size = atapi->size();
scsi_add_data(data, (size >> 24) & 0xff);
scsi_add_data(data, (size >> 16) & 0xff);
scsi_add_data(data, (size >> 8) & 0xff);
scsi_add_data(data, size & 0xff);
scsi_add_data(data, (2048 >> 24) & 0xff);
scsi_add_data(data, (2048 >> 16) & 0xff);
scsi_add_data(data, (2048 >> 8) & 0xff);
scsi_add_data(data, 2048 & 0xff);
pclog("READ_CDROM_CAPACITY %08x\n", size);
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_DATA_IN;
case GPCMD_STOP_PLAY_SCAN:
atapi->stop();
data->cmd_pos = CMD_POS_IDLE;
return SCSI_PHASE_STATUS;
case GPCMD_SEND_DVD_STRUCTURE:
default:
atapi_cmd_error(data, SENSE_ILLEGAL_REQUEST, ASC_ILLEGAL_OPCODE, 0);
return SCSI_PHASE_STATUS;
}
}
static uint8_t scsi_cd_read(void *p)
{
scsi_cd_data_t *data = p;
uint8_t temp;
data->data_bytes_read++;
temp = data->data_in[data->data_pos_read++];
if (data->data_pos_read == data->data_pos_write && data->data_bytes_read < data->bytes_expected)
scsi_cd_command(data->cdb, data);
return temp;
}
static void scsi_cd_write(uint8_t val, void *p)
{
scsi_cd_data_t *data = p;
data->data_out[data->data_pos_write++] = val;
data->bytes_received++;
if (data->data_pos_write > BUFFER_SIZE)
fatal("Exceeded data_out buffer size\n");
}
static int scsi_cd_read_complete(void *p)
{
scsi_cd_data_t *data = p;
return (data->data_bytes_read == data->bytes_expected);
}
static int scsi_cd_write_complete(void *p)
{
scsi_cd_data_t *data = p;
return (data->bytes_received == data->bytes_required);
}
static void scsi_cd_start_command(void *p)
{
scsi_cd_data_t *data = p;
data->bytes_received = 0;
data->bytes_required = 0;
data->data_pos_read = data->data_pos_write = 0;
data->data_bytes_read = data->bytes_expected = 0;
data->received_cdb = 0;
data->cmd_pos = CMD_POS_IDLE;
memset(data->data_in, 0, 256);
}
static uint8_t scsi_cd_get_status(void *p)
{
scsi_cd_data_t *data = p;
return data->status;
}
static uint8_t scsi_cd_get_sense_key(void *p)
{
scsi_cd_data_t *data = p;
return data->sense_key;
}
static int scsi_cd_get_bytes_required(void *p)
{
scsi_cd_data_t *data = p;
return data->bytes_required - data->bytes_received;
}
static void scsi_cd_atapi_identify(uint16_t *buffer, void *p)
{
scsi_cd_data_t *data = p;
memset(buffer, 0, 512);
buffer[0] = 0x8000 | (5<<8) | 0x80 | (2<<5); /* ATAPI device, CD-ROM drive, removable media, accelerated DRQ */
ide_padstr((char *)(buffer + 10), cd_models[cd_data->cur_model].serial2_20, 20); /* Serial Number */
ide_padstr((char *)(buffer + 23), cd_models[cd_data->cur_model].firmware2_8, 8); /* Firmware */
ide_padstr((char *)(buffer + 27), cd_models[cd_data->cur_model].model2_40, 40); /* Model */
buffer[49] = 0x300; /*DMA and LBA supported*/
buffer[51] = 120;
buffer[52] = 120;
buffer[53] = 2; /*Words 64-70 are valid*/
buffer[62] = 0x0000;
buffer[63] = 0x0007 | (0x100 << data->mdma_mode); /*Multi-word DMA 0, 1 & 2*/
buffer[64] = 0x0003; /*PIO Modes 3 & 4*/
if (data->pio_mode >= 3)
buffer[64] |= (0x100 << (data->pio_mode - 3));
buffer[65] = 120; /*Minimum multi-word cycle time*/
buffer[66] = 120; /*Recommended multi-word cycle time*/
buffer[67] = 120; /*Minimum PIO cycle time*/
buffer[126] = 0xfffe; /* Interpret zero byte count limit as maximum length */
}
static int scsi_cd_atapi_set_feature(uint8_t feature, uint8_t val, void *p)
{
scsi_cd_data_t *data = p;
switch (feature)
{
case FEATURE_SET_TRANSFER_MODE:
if (!(val & 0xfe))
{
/*Default transfer mode*/
data->pio_mode = 0;
return 1;
}
else if ((val & 0xf8) == 0x08)
{
/*PIO transfer mode*/
if ((val & 7) > 4)
return 0;
data->pio_mode = (val & 7);
return 1;
}
else if ((val & 0xf8) == 0x20)
{
/*Multi-word DMA transfer mode*/
if ((val & 7) > 2)
return 0;
data->mdma_mode = (val & 7);
return 1;
}
return 0; /*Invalid data*/
case FEATURE_ENABLE_IRQ_OVERLAPPED:
case FEATURE_ENABLE_IRQ_SERVICE:
case FEATURE_DISABLE_REVERT:
case FEATURE_DISABLE_IRQ_OVERLAPPED:
case FEATURE_DISABLE_IRQ_SERVICE:
case FEATURE_ENABLE_REVERT:
return 1;
}
return 0; /*Feature not supported*/
}
scsi_device_t scsi_cd =
{
scsi_cd_init,
scsi_cd_atapi_init,
scsi_cd_close,
scsi_cd_reset,
scsi_cd_start_command,
scsi_cd_command,
scsi_cd_get_status,
scsi_cd_get_sense_key,
scsi_cd_get_bytes_required,
scsi_cd_atapi_identify,
scsi_cd_atapi_set_feature,
scsi_cd_read,
scsi_cd_write,
scsi_cd_read_complete,
scsi_cd_write_complete,
};