1 /* 2 * Copyright 2004-2012, Haiku, Inc. All rights reserved. 3 * Copyright 2002-2003, Thomas Kurschel. All rights reserved. 4 * 5 * Distributed under the terms of the MIT License. 6 */ 7 8 9 /*! Peripheral driver to handle CD-ROM drives. To be more 10 precisely, it supports CD-ROM and WORM drives (well - 11 I've never _seen_ a WORM driver). 12 13 Much work is done by scsi_periph and block_io. 14 */ 15 16 17 #include "scsi_cd.h" 18 19 #include <stdlib.h> 20 #include <string.h> 21 22 #include <algorithm> 23 24 #include <fs/devfs.h> 25 #include <io_requests.h> 26 #include <vm/vm_page.h> 27 28 #include "IOCache.h" 29 #include "IOSchedulerSimple.h" 30 31 32 //#define TRACE_CD_DISK 33 #ifdef TRACE_CD_DISK 34 # define TRACE(x...) dprintf("scsi_cd: " x) 35 #else 36 # define TRACE(x...) ; 37 #endif 38 39 40 static const uint8 kCDIcon[] = { 41 0x6e, 0x63, 0x69, 0x66, 0x05, 0x05, 0x00, 0x02, 0x03, 0x06, 0x05, 0xb8, 42 0x12, 0xa5, 0xbe, 0x03, 0xe1, 0x3d, 0xe7, 0x84, 0xb8, 0x02, 0x10, 0x49, 43 0xf7, 0x9f, 0x49, 0xed, 0xd8, 0x00, 0xf1, 0xf1, 0xf1, 0x36, 0xd9, 0xdd, 44 0xf4, 0x8a, 0x99, 0x96, 0xb9, 0xb4, 0xb8, 0xbe, 0xdb, 0xff, 0xf4, 0xf4, 45 0xf4, 0x04, 0xeb, 0xd0, 0x02, 0x00, 0x06, 0x02, 0x3c, 0x92, 0xc0, 0x38, 46 0x8f, 0x5f, 0xb8, 0x54, 0x50, 0x3c, 0x57, 0x63, 0x48, 0xd8, 0xdf, 0x48, 47 0x89, 0x5b, 0x00, 0x41, 0x37, 0xa9, 0xff, 0xb9, 0xb9, 0xb9, 0x04, 0x01, 48 0x7e, 0x04, 0x02, 0x04, 0x3f, 0x2c, 0x4e, 0x2c, 0x30, 0x2c, 0x22, 0x40, 49 0x22, 0x34, 0x22, 0x4c, 0x3f, 0x54, 0x30, 0x54, 0x4e, 0x54, 0x5c, 0x40, 50 0x5c, 0x4c, 0x5c, 0x34, 0x02, 0x04, 0x3f, 0x3a, 0x43, 0x3a, 0x3b, 0x3a, 51 0x39, 0x3e, 0x39, 0x3c, 0x39, 0x40, 0x3f, 0x42, 0x3b, 0x42, 0x43, 0x42, 52 0x45, 0x3e, 0x45, 0x40, 0x45, 0x3c, 0x02, 0x04, 0x4b, 0x3e, 0x4b, 0x3a, 53 0x4b, 0x42, 0x3f, 0x46, 0x47, 0x46, 0x37, 0x46, 0x33, 0x3e, 0x33, 0x42, 54 0x33, 0x3a, 0x3f, 0xbb, 0xf7, 0x37, 0xbb, 0xf7, 0x47, 0xbb, 0xf7, 0x02, 55 0x04, 0x40, 0x2a, 0x54, 0x2a, 0x50, 0x2c, 0x5c, 0x40, 0x5c, 0x34, 0x5c, 56 0x4c, 0x40, 0x56, 0x50, 0x54, 0x54, 0x56, 0x60, 0x40, 0x60, 0x4c, 0x60, 57 0x34, 0x06, 0x0a, 0x04, 0x01, 0x03, 0x00, 0x0a, 0x00, 0x02, 0x00, 0x01, 58 0x18, 0x15, 0xff, 0x01, 0x17, 0x84, 0x00, 0x04, 0x0a, 0x00, 0x02, 0x00, 59 0x01, 0x18, 0x00, 0x15, 0x01, 0x17, 0x86, 0x00, 0x04, 0x0a, 0x01, 0x02, 60 0x00, 0x02, 0x00, 0x0a, 0x02, 0x02, 0x02, 0x01, 0x00, 0x0a, 0x03, 0x01, 61 0x02, 0x10, 0x01, 0x17, 0x82, 0x00, 0x04 62 }; 63 64 65 static scsi_periph_interface *sSCSIPeripheral; 66 static device_manager_info *sDeviceManager; 67 68 69 #define SCSI_CD_STD_TIMEOUT 10 70 71 72 static status_t 73 update_capacity(cd_driver_info *info) 74 { 75 TRACE("update_capacity()\n"); 76 77 scsi_ccb *ccb = info->scsi->alloc_ccb(info->scsi_device); 78 if (ccb == NULL) 79 return B_NO_MEMORY; 80 81 status_t status = sSCSIPeripheral->check_capacity( 82 info->scsi_periph_device, ccb); 83 84 info->scsi->free_ccb(ccb); 85 86 return status; 87 } 88 89 90 /*! Iteratively correct the reported capacity by trying to read from the device 91 close to its end. 92 */ 93 static uint64 94 test_capacity(cd_driver_info *info) 95 { 96 static const size_t kMaxEntries = 4; 97 const uint32 blockSize = info->block_size; 98 const size_t kBufferSize = blockSize * 4; 99 100 TRACE("test_capacity: read with buffer size %" B_PRIuSIZE ", block size %" 101 B_PRIu32", capacity %llu\n", kBufferSize, blockSize, 102 info->original_capacity); 103 104 info->capacity = info->original_capacity; 105 106 size_t numBlocks = B_PAGE_SIZE / blockSize; 107 uint64 offset = info->original_capacity; 108 if (offset <= numBlocks) 109 return B_OK; 110 111 offset -= numBlocks; 112 113 scsi_ccb *request = info->scsi->alloc_ccb(info->scsi_device); 114 if (request == NULL) 115 return B_NO_MEMORY; 116 117 // Allocate buffer 118 119 physical_entry entries[4]; 120 size_t numEntries = 0; 121 122 vm_page_reservation reservation; 123 vm_page_reserve_pages(&reservation, 124 (kBufferSize - 1 + B_PAGE_SIZE) / B_PAGE_SIZE, VM_PRIORITY_SYSTEM); 125 126 for (size_t left = kBufferSize; numEntries < kMaxEntries && left > 0; 127 numEntries++) { 128 size_t bytes = std::min(left, (size_t)B_PAGE_SIZE); 129 130 vm_page* page = vm_page_allocate_page(&reservation, 131 PAGE_STATE_WIRED | VM_PAGE_ALLOC_BUSY); 132 133 entries[numEntries].address = page->physical_page_number * B_PAGE_SIZE; 134 entries[numEntries].size = bytes; 135 136 left -= bytes; 137 } 138 139 vm_page_unreserve_pages(&reservation); 140 141 // Read close to the end of the device to find out its real end 142 143 // Only try 1 second before the end (= 75 blocks) 144 while (offset > info->original_capacity - 75) { 145 size_t bytesTransferred; 146 status_t status = sSCSIPeripheral->read_write(info->scsi_periph_device, 147 request, offset, numBlocks, entries, numEntries, false, 148 &bytesTransferred); 149 150 TRACE("test_capacity: read from offset %llu: %s\n", offset, 151 strerror(status)); 152 153 if (status == B_OK || (request->sense[0] & 0x7f) != 0x70) 154 break; 155 156 switch (request->sense[2]) { 157 case SCSIS_KEY_MEDIUM_ERROR: 158 case SCSIS_KEY_ILLEGAL_REQUEST: 159 case SCSIS_KEY_VOLUME_OVERFLOW: 160 { 161 // find out the problematic sector 162 uint32 errorBlock = (request->sense[3] << 24U) 163 | (request->sense[4] << 16U) | (request->sense[5] << 8U) 164 | request->sense[6]; 165 if (errorBlock >= offset) 166 info->capacity = errorBlock; 167 break; 168 } 169 170 default: 171 break; 172 } 173 174 if (numBlocks > offset) 175 break; 176 177 offset -= numBlocks; 178 } 179 180 info->scsi->free_ccb(request); 181 182 for (size_t i = 0; i < numEntries; i++) { 183 vm_page_set_state(vm_lookup_page(entries[i].address / B_PAGE_SIZE), 184 PAGE_STATE_FREE); 185 } 186 187 if (info->capacity != info->original_capacity) { 188 dprintf("scsi_cd: adjusted capacity from %" B_PRIu64 " to %" B_PRIu64 189 " blocks.\n", info->original_capacity, info->capacity); 190 } 191 192 return B_OK; 193 } 194 195 196 static status_t 197 get_geometry(cd_handle *handle, device_geometry *geometry) 198 { 199 cd_driver_info *info = handle->info; 200 201 status_t status = update_capacity(info); 202 203 // it seems that Be expects B_GET_GEOMETRY to always succeed unless 204 // the medium has been changed; e.g. if we report B_DEV_NO_MEDIA, the 205 // info is ignored by the CDPlayer and CDBurner 206 if (status == B_DEV_MEDIA_CHANGED) 207 return B_DEV_MEDIA_CHANGED; 208 209 devfs_compute_geometry_size(geometry, info->capacity, info->block_size); 210 geometry->bytes_per_physical_sector = info->physical_block_size; 211 212 geometry->device_type = info->device_type; 213 geometry->removable = info->removable; 214 215 // TBD: for all but CD-ROMs, read mode sense - medium type 216 // (bit 7 of block device specific parameter for Optical Memory Block Device) 217 // (same for Direct-Access Block Devices) 218 // (same for write-once block devices) 219 // (same for optical memory block devices) 220 geometry->read_only = true; 221 geometry->write_once = info->device_type == scsi_dev_WORM; 222 223 TRACE("scsi_disk: get_geometry(): %ld, %ld, %ld, %ld, %d, %d, %d, %d\n", 224 geometry->bytes_per_sector, geometry->sectors_per_track, 225 geometry->cylinder_count, geometry->head_count, geometry->device_type, 226 geometry->removable, geometry->read_only, geometry->write_once); 227 228 return B_OK; 229 } 230 231 232 static status_t 233 get_toc(cd_driver_info *info, scsi_toc *toc) 234 { 235 scsi_ccb *ccb; 236 status_t res; 237 scsi_cmd_read_toc *cmd; 238 size_t dataLength; 239 scsi_toc_general *shortResponse = (scsi_toc_general *)toc->toc_data; 240 241 TRACE("get_toc()\n"); 242 243 ccb = info->scsi->alloc_ccb(info->scsi_device); 244 if (ccb == NULL) 245 return B_NO_MEMORY; 246 247 // first read number of tracks only 248 ccb->flags = SCSI_DIR_IN; 249 250 cmd = (scsi_cmd_read_toc *)ccb->cdb; 251 252 memset(cmd, 0, sizeof(*cmd)); 253 cmd->opcode = SCSI_OP_READ_TOC; 254 cmd->time = 1; 255 cmd->format = SCSI_TOC_FORMAT_TOC; 256 cmd->track = 1; 257 cmd->allocation_length = B_HOST_TO_BENDIAN_INT16(sizeof(scsi_toc_general)); 258 259 ccb->cdb_length = sizeof(*cmd); 260 261 ccb->sort = -1; 262 ccb->timeout = SCSI_CD_STD_TIMEOUT; 263 264 ccb->data = toc->toc_data; 265 ccb->sg_list = NULL; 266 ccb->data_length = sizeof(toc->toc_data); 267 268 res = sSCSIPeripheral->safe_exec(info->scsi_periph_device, ccb); 269 if (res != B_OK) 270 goto err; 271 272 // then read all track infos 273 // (little hint: number of tracks is last - first + 1; 274 // but scsi_toc_toc has already one track, so we get 275 // last - first extra tracks; finally, we want the lead-out as 276 // well, so we add an extra track) 277 dataLength = (shortResponse->last - shortResponse->first + 1) 278 * sizeof(scsi_toc_track) + sizeof(scsi_toc_toc); 279 dataLength = min_c(dataLength, sizeof(toc->toc_data)); 280 281 TRACE(" tracks: %d - %d, data length %d\n", shortResponse->first, 282 shortResponse->last, (int)dataLength); 283 284 cmd->allocation_length = B_HOST_TO_BENDIAN_INT16(dataLength); 285 286 res = sSCSIPeripheral->safe_exec(info->scsi_periph_device, ccb); 287 288 err: 289 info->scsi->free_ccb(ccb); 290 291 return res; 292 } 293 294 295 static status_t 296 load_eject(cd_driver_info *info, bool load) 297 { 298 TRACE("load_eject()\n"); 299 300 scsi_ccb *ccb = info->scsi->alloc_ccb(info->scsi_device); 301 if (ccb == NULL) 302 return B_NO_MEMORY; 303 304 err_res result = sSCSIPeripheral->send_start_stop( 305 info->scsi_periph_device, ccb, load, true); 306 307 info->scsi->free_ccb(ccb); 308 309 return result.error_code; 310 } 311 312 313 static status_t 314 get_position(cd_driver_info *info, scsi_position *position) 315 { 316 scsi_cmd_read_subchannel cmd; 317 318 TRACE("get_position()\n"); 319 320 memset(&cmd, 0, sizeof(cmd)); 321 cmd.opcode = SCSI_OP_READ_SUB_CHANNEL; 322 cmd.time = 1; 323 cmd.subq = 1; 324 cmd.parameter_list = scsi_sub_channel_parameter_list_cd_pos; 325 cmd.track = 0; 326 cmd.allocation_length = B_HOST_TO_BENDIAN_INT16(sizeof(scsi_position)); 327 328 return sSCSIPeripheral->simple_exec(info->scsi_periph_device, 329 &cmd, sizeof(cmd), position, sizeof(*position), SCSI_DIR_IN); 330 } 331 332 333 static status_t 334 get_set_volume(cd_driver_info *info, scsi_volume *volume, bool set) 335 { 336 scsi_cmd_mode_sense_6 cmd; 337 scsi_mode_param_header_6 header; 338 size_t len; 339 void *buffer; 340 scsi_modepage_audio *page; 341 status_t res; 342 343 TRACE("get_set_volume()\n"); 344 345 // determine size of block descriptor 346 memset(&cmd, 0, sizeof(cmd)); 347 cmd.opcode = SCSI_OP_MODE_SENSE_6; 348 cmd.page_code = SCSI_MODEPAGE_AUDIO; 349 cmd.page_control = SCSI_MODE_SENSE_PC_CURRENT; 350 cmd.allocation_length = sizeof(header); 351 352 memset(&header, -2, sizeof(header)); 353 354 res = sSCSIPeripheral->simple_exec(info->scsi_periph_device, &cmd, 355 sizeof(cmd), &header, sizeof(header), SCSI_DIR_IN); 356 if (res != B_OK) 357 return res; 358 359 TRACE(" block_desc_len=%d", header.block_desc_length); 360 #if 0 361 // ToDo: why this?? 362 return B_ERROR; 363 #endif 364 365 // retrieve param header, block descriptor and actual codepage 366 len = sizeof(header) + header.block_desc_length 367 + sizeof(scsi_modepage_audio); 368 369 buffer = malloc(len); 370 if (buffer == NULL) 371 return B_NO_MEMORY; 372 373 memset(buffer, -1, len); 374 375 cmd.allocation_length = len; 376 377 res = sSCSIPeripheral->simple_exec(info->scsi_periph_device, &cmd, 378 sizeof(cmd), buffer, len, SCSI_DIR_IN); 379 if (res != B_OK) { 380 free(buffer); 381 return res; 382 } 383 384 TRACE(" mode_data_len=%d, block_desc_len=%d", 385 ((scsi_mode_param_header_6 *)buffer)->mode_data_length, 386 ((scsi_mode_param_header_6 *)buffer)->block_desc_length); 387 388 // find control page and retrieve values 389 page = (scsi_modepage_audio *)((char *)buffer + sizeof(header) 390 + header.block_desc_length); 391 392 TRACE(" page=%p, codepage=%d", page, page->header.page_code); 393 394 if (!set) { 395 volume->port0_channel = page->ports[0].channel; 396 volume->port0_volume = page->ports[0].volume; 397 volume->port1_channel = page->ports[1].channel; 398 volume->port1_volume = page->ports[1].volume; 399 volume->port2_channel = page->ports[2].channel; 400 volume->port2_volume = page->ports[2].volume; 401 volume->port3_channel = page->ports[3].channel; 402 volume->port3_volume = page->ports[3].volume; 403 404 #if 0 405 SHOW_FLOW(3, "1: %d - %d", volume->port0_channel, volume->port0_volume); 406 SHOW_FLOW(3, "2: %d - %d", volume->port1_channel, volume->port1_volume); 407 SHOW_FLOW(3, "3: %d - %d", volume->port2_channel, volume->port2_volume); 408 SHOW_FLOW(3, "4: %d - %d", volume->port3_channel, volume->port3_volume); 409 #endif 410 res = B_OK; 411 } else { 412 scsi_cmd_mode_select_6 cmd; 413 414 if (volume->flags & 0x01) 415 page->ports[0].channel = volume->port0_channel; 416 if (volume->flags & 0x02) 417 page->ports[0].volume = volume->port0_volume; 418 if (volume->flags & 0x04) 419 page->ports[1].channel = volume->port1_channel; 420 if (volume->flags & 0x08) 421 page->ports[1].volume = volume->port1_volume; 422 if (volume->flags & 0x10) 423 page->ports[2].channel = volume->port2_channel; 424 if (volume->flags & 0x20) 425 page->ports[2].volume = volume->port2_volume; 426 if (volume->flags & 0x40) 427 page->ports[3].channel = volume->port3_channel; 428 if (volume->flags & 0x80) 429 page->ports[3].volume = volume->port3_volume; 430 431 memset(&cmd, 0, sizeof(cmd)); 432 cmd.opcode = SCSI_OP_MODE_SELECT_6; 433 cmd.pf = 1; 434 cmd.param_list_length = sizeof(header) + header.block_desc_length 435 + sizeof(*page); 436 437 res = sSCSIPeripheral->simple_exec(info->scsi_periph_device, 438 &cmd, sizeof(cmd), buffer, len, SCSI_DIR_OUT); 439 } 440 441 free(buffer); 442 return res; 443 } 444 445 446 /*! Play audio cd; time is in MSF */ 447 static status_t 448 play_msf(cd_driver_info *info, const scsi_play_position *position) 449 { 450 scsi_cmd_play_msf cmd; 451 452 TRACE("play_msf(): %d:%d:%d-%d:%d:%d\n", position->start_m, 453 position->start_s, position->start_f, position->end_m, position->end_s, 454 position->end_f); 455 456 memset(&cmd, 0, sizeof(cmd)); 457 458 cmd.opcode = SCSI_OP_PLAY_MSF; 459 cmd.start_minute = position->start_m; 460 cmd.start_second = position->start_s; 461 cmd.start_frame = position->start_f; 462 cmd.end_minute = position->end_m; 463 cmd.end_second = position->end_s; 464 cmd.end_frame = position->end_f; 465 466 return sSCSIPeripheral->simple_exec(info->scsi_periph_device, 467 &cmd, sizeof(cmd), NULL, 0, SCSI_DIR_NONE); 468 } 469 470 471 /*! Play audio cd; time is in track/index */ 472 static status_t 473 play_track_index(cd_driver_info *info, const scsi_play_track *buf) 474 { 475 scsi_toc generic_toc; 476 scsi_toc_toc *toc; 477 status_t res; 478 int start_track, end_track; 479 scsi_play_position position; 480 481 TRACE("play_track_index(): %d-%d\n", buf->start_track, buf->end_track); 482 483 // the corresponding command PLAY AUDIO TRACK/INDEX is deprecated, 484 // so we have to simulate it by converting track to time via TOC 485 res = get_toc(info, &generic_toc); 486 if (res != B_OK) 487 return res; 488 489 toc = (scsi_toc_toc *)&generic_toc.toc_data[0]; 490 491 start_track = buf->start_track; 492 end_track = buf->end_track; 493 494 if (start_track > toc->last_track) 495 return B_BAD_INDEX; 496 497 if (end_track > toc->last_track) 498 end_track = toc->last_track + 1; 499 500 if (end_track < toc->last_track + 1) 501 ++end_track; 502 503 start_track -= toc->first_track; 504 end_track -= toc->first_track; 505 506 if (start_track < 0 || end_track < 0) 507 return B_BAD_INDEX; 508 509 position.start_m = toc->tracks[start_track].start.time.minute; 510 position.start_s = toc->tracks[start_track].start.time.second; 511 position.start_f = toc->tracks[start_track].start.time.frame; 512 513 position.end_m = toc->tracks[end_track].start.time.minute; 514 position.end_s = toc->tracks[end_track].start.time.second; 515 position.end_f = toc->tracks[end_track].start.time.frame; 516 517 return play_msf(info, &position); 518 } 519 520 521 static status_t 522 stop_audio(cd_driver_info *info) 523 { 524 scsi_cmd_stop_play cmd; 525 526 TRACE("stop_audio()\n"); 527 528 memset( &cmd, 0, sizeof( cmd )); 529 cmd.opcode = SCSI_OP_STOP_PLAY; 530 531 return sSCSIPeripheral->simple_exec(info->scsi_periph_device, 532 &cmd, sizeof(cmd), NULL, 0, SCSI_DIR_NONE); 533 } 534 535 536 static status_t 537 pause_resume(cd_driver_info *info, bool resume) 538 { 539 scsi_cmd_pause_resume cmd; 540 541 TRACE("pause_resume()\n"); 542 543 memset(&cmd, 0, sizeof(cmd)); 544 cmd.opcode = SCSI_OP_PAUSE_RESUME; 545 cmd.resume = resume; 546 547 return sSCSIPeripheral->simple_exec(info->scsi_periph_device, 548 &cmd, sizeof(cmd), NULL, 0, SCSI_DIR_NONE); 549 } 550 551 552 static status_t 553 scan(cd_driver_info *info, const scsi_scan *buf) 554 { 555 scsi_cmd_scan cmd; 556 scsi_position curPos; 557 scsi_cd_current_position *cdPos; 558 559 TRACE("scan(direction =% d)\n", buf->direction); 560 561 status_t res = get_position(info, &curPos); 562 if (res != B_OK) 563 return res; 564 565 cdPos = (scsi_cd_current_position *)((char *)&curPos 566 + sizeof(scsi_subchannel_data_header)); 567 568 if (buf->direction == 0) { 569 scsi_play_position playPos; 570 571 // to stop scan, we issue play command with "open end" 572 playPos.start_m = cdPos->absolute_address.time.minute; 573 playPos.start_s = cdPos->absolute_address.time.second; 574 playPos.start_f = cdPos->absolute_address.time.frame; 575 playPos.end_m = 99; 576 playPos.end_s = 59; 577 playPos.end_f = 24; 578 579 return play_msf(info, &playPos); 580 } 581 582 memset(&cmd, 0, sizeof(cmd)); 583 584 cmd.opcode = SCSI_OP_SCAN; 585 cmd.direct = buf->direction < 0; 586 cmd.start.time = cdPos->absolute_address.time; 587 cmd.type = scsi_scan_msf; 588 589 /* 590 tmp = (uint8 *)&cmd; 591 dprintf("%d %d %d %d %d %d %d %d %d %d %d %d\n", 592 tmp[0], tmp[1], tmp[2], tmp[3], tmp[4], tmp[5], 593 tmp[6], tmp[7], tmp[8], tmp[9], tmp[10], tmp[11]); 594 */ 595 596 return sSCSIPeripheral->simple_exec(info->scsi_periph_device, 597 &cmd, sizeof(cmd), NULL, 0, SCSI_DIR_NONE); 598 } 599 600 601 static status_t 602 read_cd(cd_driver_info *info, const scsi_read_cd *readCD) 603 { 604 scsi_cmd_read_cd *cmd; 605 uint32 lba, length; 606 scsi_ccb *ccb; 607 status_t res; 608 609 // we use safe_exec instead of simple_exec as we want to set 610 // the sorting order manually (only makes much sense if you grab 611 // multiple tracks at once, but we are prepared) 612 ccb = info->scsi->alloc_ccb(info->scsi_device); 613 614 if (ccb == NULL) 615 return B_NO_MEMORY; 616 617 cmd = (scsi_cmd_read_cd *)ccb->cdb; 618 memset(cmd, 0, sizeof(*cmd)); 619 cmd->opcode = SCSI_OP_READ_CD; 620 cmd->sector_type = 1; 621 622 // skip first two seconds, they are lead-in 623 lba = (readCD->start_m * 60 + readCD->start_s) * 75 + readCD->start_f 624 - 2 * 75; 625 length = (readCD->length_m * 60 + readCD->length_s) * 75 + readCD->length_f; 626 627 cmd->lba = B_HOST_TO_BENDIAN_INT32(lba); 628 cmd->high_length = (length >> 16) & 0xff; 629 cmd->mid_length = (length >> 8) & 0xff; 630 cmd->low_length = length & 0xff; 631 632 cmd->error_field = scsi_read_cd_error_none; 633 cmd->edc_ecc = 0; 634 cmd->user_data = 1; 635 cmd->header_code = scsi_read_cd_header_none; 636 cmd->sync = 0; 637 cmd->sub_channel_selection = scsi_read_cd_sub_channel_none; 638 639 ccb->cdb_length = sizeof(*cmd); 640 641 ccb->flags = SCSI_DIR_IN | SCSI_DIS_DISCONNECT; 642 ccb->sort = lba; 643 // are 10 seconds enough for timeout? 644 ccb->timeout = 10; 645 646 // TODO: we pass a user buffer here! 647 ccb->data = (uint8 *)readCD->buffer; 648 ccb->sg_list = NULL; 649 ccb->data_length = readCD->buffer_length; 650 651 res = sSCSIPeripheral->safe_exec(info->scsi_periph_device, ccb); 652 653 info->scsi->free_ccb(ccb); 654 655 return res; 656 } 657 658 659 static status_t 660 do_io(void* cookie, IOOperation* operation) 661 { 662 cd_driver_info* info = (cd_driver_info*)cookie; 663 664 // TODO: this can go away as soon as we pushed the IOOperation to the upper 665 // layers - we can then set scsi_periph::io() as callback for the scheduler 666 size_t bytesTransferred; 667 status_t status = sSCSIPeripheral->io(info->scsi_periph_device, operation, 668 &bytesTransferred); 669 670 info->io_scheduler->OperationCompleted(operation, status, bytesTransferred); 671 return status; 672 } 673 674 675 // #pragma mark - device module API 676 677 678 static status_t 679 cd_init_device(void* _info, void** _cookie) 680 { 681 cd_driver_info* info = (cd_driver_info*)_info; 682 683 update_capacity(info); 684 // Get initial capacity, but ignore the result; we do not care 685 // whether or not a media is present 686 687 *_cookie = info; 688 return B_OK; 689 } 690 691 692 static void 693 cd_uninit_device(void* _cookie) 694 { 695 cd_driver_info* info = (cd_driver_info*)_cookie; 696 697 delete info->io_scheduler; 698 delete info->dma_resource; 699 info->io_scheduler = NULL; 700 info->dma_resource = NULL; 701 } 702 703 704 static status_t 705 cd_open(void* _info, const char* path, int openMode, void** _cookie) 706 { 707 cd_driver_info* info = (cd_driver_info*)_info; 708 709 cd_handle* handle = (cd_handle*)malloc(sizeof(cd_handle)); 710 if (handle == NULL) 711 return B_NO_MEMORY; 712 713 handle->info = info; 714 715 status_t status = sSCSIPeripheral->handle_open(info->scsi_periph_device, 716 (periph_handle_cookie)handle, &handle->scsi_periph_handle); 717 if (status < B_OK) { 718 free(handle); 719 return status; 720 } 721 722 *_cookie = handle; 723 return B_OK; 724 } 725 726 727 static status_t 728 cd_close(void* cookie) 729 { 730 cd_handle* handle = (cd_handle*)cookie; 731 TRACE("close()\n"); 732 733 sSCSIPeripheral->handle_close(handle->scsi_periph_handle); 734 return B_OK; 735 } 736 737 738 static status_t 739 cd_free(void* cookie) 740 { 741 cd_handle* handle = (cd_handle*)cookie; 742 TRACE("free()\n"); 743 744 sSCSIPeripheral->handle_free(handle->scsi_periph_handle); 745 free(handle); 746 return B_OK; 747 } 748 749 750 static status_t 751 cd_io(void* cookie, io_request* request) 752 { 753 cd_handle* handle = (cd_handle*)cookie; 754 755 if (handle->info->capacity == 0 || handle->info->io_scheduler == NULL) { 756 notify_io_request(request, B_DEV_NO_MEDIA); 757 return B_DEV_NO_MEDIA; 758 } 759 760 return handle->info->io_scheduler->ScheduleRequest(request); 761 } 762 763 764 static status_t 765 cd_ioctl(void* cookie, uint32 op, void* buffer, size_t length) 766 { 767 cd_handle* handle = (cd_handle*)cookie; 768 cd_driver_info *info = handle->info; 769 770 TRACE("ioctl(op = %lu)\n", op); 771 772 switch (op) { 773 case B_GET_DEVICE_SIZE: 774 { 775 status_t status = update_capacity(info); 776 if (status != B_OK) 777 return status; 778 779 size_t size = info->capacity * info->block_size; 780 return user_memcpy(buffer, &size, sizeof(size_t)); 781 } 782 783 case B_GET_GEOMETRY: 784 { 785 if (buffer == NULL || length > sizeof(device_geometry)) 786 return B_BAD_VALUE; 787 788 device_geometry geometry; 789 status_t status = get_geometry(handle, &geometry); 790 if (status != B_OK) 791 return status; 792 793 return user_memcpy(buffer, &geometry, length); 794 } 795 796 case B_GET_ICON_NAME: 797 return user_strlcpy((char*)buffer, "devices/drive-optical", 798 B_FILE_NAME_LENGTH); 799 800 case B_GET_VECTOR_ICON: 801 { 802 device_icon iconData; 803 if (length != sizeof(device_icon)) 804 return B_BAD_VALUE; 805 if (user_memcpy(&iconData, buffer, sizeof(device_icon)) != B_OK) 806 return B_BAD_ADDRESS; 807 808 if (iconData.icon_size >= (int32)sizeof(kCDIcon)) { 809 if (user_memcpy(iconData.icon_data, kCDIcon, 810 sizeof(kCDIcon)) != B_OK) 811 return B_BAD_ADDRESS; 812 } 813 814 iconData.icon_size = sizeof(kCDIcon); 815 return user_memcpy(buffer, &iconData, sizeof(device_icon)); 816 } 817 818 case B_SCSI_GET_TOC: 819 // TODO: we pass a user buffer here! 820 return get_toc(info, (scsi_toc *)buffer); 821 822 case B_EJECT_DEVICE: 823 case B_SCSI_EJECT: 824 return load_eject(info, false); 825 826 case B_LOAD_MEDIA: 827 return load_eject(info, true); 828 829 case B_SCSI_GET_POSITION: 830 { 831 if (buffer == NULL) 832 return B_BAD_VALUE; 833 834 scsi_position position; 835 status_t status = get_position(info, &position); 836 if (status != B_OK) 837 return status; 838 839 return user_memcpy(buffer, &position, sizeof(scsi_position)); 840 } 841 842 case B_SCSI_GET_VOLUME: 843 // TODO: we pass a user buffer here! 844 return get_set_volume(info, (scsi_volume *)buffer, false); 845 case B_SCSI_SET_VOLUME: 846 // TODO: we pass a user buffer here! 847 return get_set_volume(info, (scsi_volume *)buffer, true); 848 849 case B_SCSI_PLAY_TRACK: 850 { 851 scsi_play_track track; 852 if (user_memcpy(&track, buffer, sizeof(scsi_play_track)) != B_OK) 853 return B_BAD_ADDRESS; 854 855 return play_track_index(info, &track); 856 } 857 case B_SCSI_PLAY_POSITION: 858 { 859 scsi_play_position position; 860 if (user_memcpy(&position, buffer, sizeof(scsi_play_position)) 861 != B_OK) 862 return B_BAD_ADDRESS; 863 864 return play_msf(info, &position); 865 } 866 867 case B_SCSI_STOP_AUDIO: 868 return stop_audio(info); 869 case B_SCSI_PAUSE_AUDIO: 870 return pause_resume(info, false); 871 case B_SCSI_RESUME_AUDIO: 872 return pause_resume(info, true); 873 874 case B_SCSI_SCAN: 875 { 876 scsi_scan scanBuffer; 877 if (user_memcpy(&scanBuffer, buffer, sizeof(scsi_scan)) != B_OK) 878 return B_BAD_ADDRESS; 879 880 return scan(info, &scanBuffer); 881 } 882 case B_SCSI_READ_CD: 883 // TODO: we pass a user buffer here! 884 return read_cd(info, (scsi_read_cd *)buffer); 885 886 default: 887 return sSCSIPeripheral->ioctl(handle->scsi_periph_handle, op, 888 buffer, length); 889 } 890 } 891 892 893 // #pragma mark - scsi_periph callbacks 894 895 896 static void 897 cd_set_capacity(cd_driver_info* info, uint64 capacity, uint32 blockSize, uint32 physicalBlockSize) 898 { 899 TRACE("cd_set_capacity(info = %p, capacity = %lld, blockSize = %ld)\n", 900 info, capacity, blockSize); 901 902 if (info->block_size != blockSize) { 903 if (capacity == 0) { 904 // there is obviously no medium in the drive, don't try to update 905 // the DMA resource 906 return; 907 } 908 909 if (info->block_size != 0) { 910 dprintf("old %" B_PRId32 ", new %" B_PRId32 "\n", info->block_size, 911 blockSize); 912 panic("updating DMAResource not yet implemented..."); 913 } 914 915 // TODO: we need to replace the DMAResource in our IOScheduler 916 status_t status = info->dma_resource->Init(info->node, blockSize, 1024, 917 32); 918 if (status != B_OK) 919 panic("initializing DMAResource failed: %s", strerror(status)); 920 921 // Allocate the I/O scheduler. If there seems to be sufficient memory 922 // we use an IOCache, since that adds caching at the lowest I/O layer 923 // and thus dramatically reduces I/O operations and seeks. The 924 // disadvantage is that it increases free memory (physical pages) 925 // fragmentation, which makes large contiguous allocations more likely 926 // to fail. 927 size_t freeMemory = vm_page_num_free_pages(); 928 if (freeMemory > 180 * 1024 * 1024 / B_PAGE_SIZE) { 929 info->io_scheduler = new(std::nothrow) IOCache(info->dma_resource, 930 1024 * 1024); 931 } else { 932 dprintf("scsi_cd: Using IOSchedulerSimple instead of IOCache to " 933 "avoid memory allocation issues.\n"); 934 info->io_scheduler = new(std::nothrow) IOSchedulerSimple( 935 info->dma_resource); 936 } 937 938 if (info->io_scheduler == NULL) 939 panic("allocating IOScheduler failed."); 940 941 // TODO: use whole device name here 942 status = info->io_scheduler->Init("scsi"); 943 if (status != B_OK) 944 panic("initializing IOScheduler failed: %s", strerror(status)); 945 946 info->io_scheduler->SetCallback(do_io, info); 947 info->block_size = blockSize; 948 info->physical_block_size = physicalBlockSize; 949 } 950 951 if (info->original_capacity != capacity && info->io_scheduler != NULL) { 952 info->original_capacity = capacity; 953 954 // For CDs, it's obviously relatively normal that they report a larger 955 // capacity than it can actually address. Therefore we'll manually 956 // correct the value here. 957 test_capacity(info); 958 959 info->io_scheduler->SetDeviceCapacity(info->capacity * blockSize); 960 } 961 } 962 963 964 static void 965 cd_media_changed(cd_driver_info* info, scsi_ccb* request) 966 { 967 // do a capacity check 968 // TODO: is this a good idea (e.g. if this is an empty CD)? 969 info->original_capacity = 0; 970 info->capacity = 0; 971 sSCSIPeripheral->check_capacity(info->scsi_periph_device, request); 972 973 if (info->io_scheduler != NULL) 974 info->io_scheduler->MediaChanged(); 975 } 976 977 978 scsi_periph_callbacks callbacks = { 979 (void (*)(periph_device_cookie, uint64, uint32, uint32))cd_set_capacity, 980 (void (*)(periph_device_cookie, scsi_ccb *))cd_media_changed 981 }; 982 983 984 // #pragma mark - driver module API 985 986 987 static float 988 cd_supports_device(device_node* parent) 989 { 990 const char* bus; 991 uint8 deviceType; 992 993 // make sure parent is really the SCSI bus manager 994 if (sDeviceManager->get_attr_string(parent, B_DEVICE_BUS, &bus, false)) 995 return -1; 996 997 if (strcmp(bus, "scsi")) 998 return 0.0; 999 1000 // check whether it's really a CD-ROM or WORM 1001 if (sDeviceManager->get_attr_uint8(parent, SCSI_DEVICE_TYPE_ITEM, 1002 &deviceType, true) != B_OK 1003 || (deviceType != scsi_dev_CDROM && deviceType != scsi_dev_WORM)) 1004 return 0.0; 1005 1006 return 0.6; 1007 } 1008 1009 1010 /*! Called whenever a new device was added to system; 1011 if we really support it, we create a new node that gets 1012 server by the block_io module 1013 */ 1014 static status_t 1015 cd_register_device(device_node* node) 1016 { 1017 const scsi_res_inquiry* deviceInquiry = NULL; 1018 size_t inquiryLength; 1019 uint32 maxBlocks; 1020 1021 // get inquiry data 1022 if (sDeviceManager->get_attr_raw(node, SCSI_DEVICE_INQUIRY_ITEM, 1023 (const void**)&deviceInquiry, &inquiryLength, true) != B_OK 1024 || inquiryLength < sizeof(scsi_res_inquiry)) 1025 return B_ERROR; 1026 1027 // get block limit of underlying hardware to lower it (if necessary) 1028 if (sDeviceManager->get_attr_uint32(node, B_DMA_MAX_TRANSFER_BLOCKS, 1029 &maxBlocks, true) != B_OK) 1030 maxBlocks = INT_MAX; 1031 1032 // using 10 byte commands, at most 0xffff blocks can be transmitted at once 1033 // (sadly, we cannot update this value later on if only 6 byte commands 1034 // are supported, but the block_io module can live with that) 1035 maxBlocks = min_c(maxBlocks, 0xffff); 1036 1037 // ready to register 1038 device_attr attrs[] = { 1039 {B_DEVICE_PRETTY_NAME, B_STRING_TYPE, {.string = "SCSI CD-ROM Drive"}}, 1040 {"removable", B_UINT8_TYPE, {.ui8 = deviceInquiry->removable_medium}}, 1041 {B_DMA_MAX_TRANSFER_BLOCKS, B_UINT32_TYPE, {.ui32 = maxBlocks}}, 1042 { NULL } 1043 }; 1044 1045 return sDeviceManager->register_node(node, SCSI_CD_DRIVER_MODULE_NAME, 1046 attrs, NULL, NULL); 1047 } 1048 1049 1050 static status_t 1051 cd_init_driver(device_node* node, void** _cookie) 1052 { 1053 TRACE("cd_init_driver\n"); 1054 1055 uint8 removable; 1056 status_t status = sDeviceManager->get_attr_uint8(node, "removable", 1057 &removable, false); 1058 if (status != B_OK) 1059 return status; 1060 1061 cd_driver_info* info = (cd_driver_info*)malloc(sizeof(cd_driver_info)); 1062 if (info == NULL) 1063 return B_NO_MEMORY; 1064 1065 memset(info, 0, sizeof(cd_driver_info)); 1066 1067 info->dma_resource = new(std::nothrow) DMAResource; 1068 if (info->dma_resource == NULL) { 1069 free(info); 1070 return B_NO_MEMORY; 1071 } 1072 1073 info->node = node; 1074 info->removable = removable; 1075 1076 // set capacity to zero, so it get checked on first opened handle 1077 info->original_capacity = 0; 1078 info->capacity = 0; 1079 info->block_size = 0; 1080 1081 sDeviceManager->get_attr_uint8(node, SCSI_DEVICE_TYPE_ITEM, 1082 &info->device_type, true); 1083 1084 device_node *parent = sDeviceManager->get_parent_node(node); 1085 sDeviceManager->get_driver(parent, (driver_module_info**)&info->scsi, 1086 (void**)&info->scsi_device); 1087 sDeviceManager->put_node(parent); 1088 1089 status = sSCSIPeripheral->register_device((periph_device_cookie)info, 1090 &callbacks, info->scsi_device, info->scsi, info->node, 1091 info->removable, 10, &info->scsi_periph_device); 1092 if (status != B_OK) { 1093 free(info); 1094 return status; 1095 } 1096 1097 *_cookie = info; 1098 return B_OK; 1099 } 1100 1101 1102 static void 1103 cd_uninit_driver(void* _cookie) 1104 { 1105 cd_driver_info* info = (cd_driver_info*)_cookie; 1106 1107 sSCSIPeripheral->unregister_device(info->scsi_periph_device); 1108 free(info); 1109 } 1110 1111 1112 static status_t 1113 cd_register_child_devices(void* _cookie) 1114 { 1115 cd_driver_info* info = (cd_driver_info*)_cookie; 1116 1117 char* name = sSCSIPeripheral->compose_device_name(info->node, "disk/scsi"); 1118 if (name == NULL) 1119 return B_ERROR; 1120 1121 status_t status = sDeviceManager->publish_device(info->node, name, 1122 SCSI_CD_DEVICE_MODULE_NAME); 1123 1124 free(name); 1125 return status; 1126 } 1127 1128 1129 module_dependency module_dependencies[] = { 1130 {SCSI_PERIPH_MODULE_NAME, (module_info**)&sSCSIPeripheral}, 1131 {B_DEVICE_MANAGER_MODULE_NAME, (module_info**)&sDeviceManager}, 1132 {} 1133 }; 1134 1135 struct device_module_info sSCSICDDevice = { 1136 { 1137 SCSI_CD_DEVICE_MODULE_NAME, 1138 0, 1139 NULL 1140 }, 1141 1142 cd_init_device, 1143 cd_uninit_device, 1144 NULL, // remove, 1145 1146 cd_open, 1147 cd_close, 1148 cd_free, 1149 NULL, // read 1150 NULL, // write 1151 cd_io, 1152 cd_ioctl, 1153 1154 NULL, // select 1155 NULL, // deselect 1156 }; 1157 1158 struct driver_module_info sSCSICDDriver = { 1159 { 1160 SCSI_CD_DRIVER_MODULE_NAME, 1161 0, 1162 NULL 1163 }, 1164 1165 cd_supports_device, 1166 cd_register_device, 1167 cd_init_driver, 1168 cd_uninit_driver, 1169 cd_register_child_devices, 1170 NULL, // rescan 1171 NULL, // removed 1172 }; 1173 1174 module_info* modules[] = { 1175 (module_info*)&sSCSICDDriver, 1176 (module_info*)&sSCSICDDevice, 1177 NULL 1178 }; 1179