1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * Device probing and sysfs code. 4 * 5 * Copyright (C) 2005-2006 Kristian Hoegsberg <krh@bitplanet.net> 6 */ 7 8 #include <linux/bug.h> 9 #include <linux/ctype.h> 10 #include <linux/delay.h> 11 #include <linux/device.h> 12 #include <linux/errno.h> 13 #include <linux/firewire.h> 14 #include <linux/firewire-constants.h> 15 #include <linux/jiffies.h> 16 #include <linux/kobject.h> 17 #include <linux/list.h> 18 #include <linux/module.h> 19 #include <linux/mutex.h> 20 #include <linux/random.h> 21 #include <linux/rwsem.h> 22 #include <linux/slab.h> 23 #include <linux/spinlock.h> 24 #include <linux/string.h> 25 #include <linux/workqueue.h> 26 27 #include <linux/atomic.h> 28 #include <asm/byteorder.h> 29 30 #include "core.h" 31 32 #define ROOT_DIR_OFFSET 5 33 34 void fw_csr_iterator_init(struct fw_csr_iterator *ci, const u32 *p) 35 { 36 ci->p = p + 1; 37 ci->end = ci->p + (p[0] >> 16); 38 } 39 EXPORT_SYMBOL(fw_csr_iterator_init); 40 41 int fw_csr_iterator_next(struct fw_csr_iterator *ci, int *key, int *value) 42 { 43 *key = *ci->p >> 24; 44 *value = *ci->p & 0xffffff; 45 46 return ci->p++ < ci->end; 47 } 48 EXPORT_SYMBOL(fw_csr_iterator_next); 49 50 static const u32 *search_directory(const u32 *directory, int search_key) 51 { 52 struct fw_csr_iterator ci; 53 int key, value; 54 55 search_key |= CSR_DIRECTORY; 56 57 fw_csr_iterator_init(&ci, directory); 58 while (fw_csr_iterator_next(&ci, &key, &value)) { 59 if (key == search_key) 60 return ci.p - 1 + value; 61 } 62 63 return NULL; 64 } 65 66 static const u32 *search_leaf(const u32 *directory, int search_key) 67 { 68 struct fw_csr_iterator ci; 69 int last_key = 0, key, value; 70 71 fw_csr_iterator_init(&ci, directory); 72 while (fw_csr_iterator_next(&ci, &key, &value)) { 73 if (last_key == search_key && 74 key == (CSR_DESCRIPTOR | CSR_LEAF)) 75 return ci.p - 1 + value; 76 77 last_key = key; 78 } 79 80 return NULL; 81 } 82 83 static int textual_leaf_to_string(const u32 *block, char *buf, size_t size) 84 { 85 unsigned int quadlets, i; 86 char c; 87 88 if (!size || !buf) 89 return -EINVAL; 90 91 quadlets = min(block[0] >> 16, 256U); 92 if (quadlets < 2) 93 return -ENODATA; 94 95 if (block[1] != 0 || block[2] != 0) 96 /* unknown language/character set */ 97 return -ENODATA; 98 99 block += 3; 100 quadlets -= 2; 101 for (i = 0; i < quadlets * 4 && i < size - 1; i++) { 102 c = block[i / 4] >> (24 - 8 * (i % 4)); 103 if (c == '\0') 104 break; 105 buf[i] = c; 106 } 107 buf[i] = '\0'; 108 109 return i; 110 } 111 112 /** 113 * fw_csr_string() - reads a string from the configuration ROM 114 * @directory: e.g. root directory or unit directory 115 * @key: the key of the preceding directory entry 116 * @buf: where to put the string 117 * @size: size of @buf, in bytes 118 * 119 * The string is taken from a minimal ASCII text descriptor leaf just after the entry with the 120 * @key. The string is zero-terminated. An overlong string is silently truncated such that it 121 * and the zero byte fit into @size. 122 * 123 * Returns strlen(buf) or a negative error code. 124 */ 125 int fw_csr_string(const u32 *directory, int key, char *buf, size_t size) 126 { 127 const u32 *leaf = search_leaf(directory, key); 128 if (!leaf) 129 return -ENOENT; 130 131 return textual_leaf_to_string(leaf, buf, size); 132 } 133 EXPORT_SYMBOL(fw_csr_string); 134 135 static void get_ids(const u32 *directory, int *id) 136 { 137 struct fw_csr_iterator ci; 138 int key, value; 139 140 fw_csr_iterator_init(&ci, directory); 141 while (fw_csr_iterator_next(&ci, &key, &value)) { 142 switch (key) { 143 case CSR_VENDOR: id[0] = value; break; 144 case CSR_MODEL: id[1] = value; break; 145 case CSR_SPECIFIER_ID: id[2] = value; break; 146 case CSR_VERSION: id[3] = value; break; 147 } 148 } 149 } 150 151 static void get_modalias_ids(const struct fw_unit *unit, int *id) 152 { 153 const u32 *root_directory = &fw_parent_device(unit)->config_rom[ROOT_DIR_OFFSET]; 154 const u32 *directories[] = {NULL, NULL, NULL}; 155 const u32 *vendor_directory; 156 int i; 157 158 directories[0] = root_directory; 159 160 // Legacy layout of configuration ROM described in Annex 1 of 'Configuration ROM for AV/C 161 // Devices 1.0 (December 12, 2000, 1394 Trading Association, TA Document 1999027)'. 162 vendor_directory = search_directory(root_directory, CSR_VENDOR); 163 if (!vendor_directory) { 164 directories[1] = unit->directory; 165 } else { 166 directories[1] = vendor_directory; 167 directories[2] = unit->directory; 168 } 169 170 for (i = 0; i < ARRAY_SIZE(directories) && !!directories[i]; ++i) 171 get_ids(directories[i], id); 172 } 173 174 static bool match_ids(const struct ieee1394_device_id *id_table, int *id) 175 { 176 int match = 0; 177 178 if (id[0] == id_table->vendor_id) 179 match |= IEEE1394_MATCH_VENDOR_ID; 180 if (id[1] == id_table->model_id) 181 match |= IEEE1394_MATCH_MODEL_ID; 182 if (id[2] == id_table->specifier_id) 183 match |= IEEE1394_MATCH_SPECIFIER_ID; 184 if (id[3] == id_table->version) 185 match |= IEEE1394_MATCH_VERSION; 186 187 return (match & id_table->match_flags) == id_table->match_flags; 188 } 189 190 static const struct ieee1394_device_id *unit_match(struct device *dev, 191 const struct device_driver *drv) 192 { 193 const struct ieee1394_device_id *id_table = 194 container_of_const(drv, struct fw_driver, driver)->id_table; 195 int id[] = {0, 0, 0, 0}; 196 197 get_modalias_ids(fw_unit(dev), id); 198 199 for (; id_table->match_flags != 0; id_table++) 200 if (match_ids(id_table, id)) 201 return id_table; 202 203 return NULL; 204 } 205 206 static bool is_fw_unit(const struct device *dev); 207 208 static int fw_unit_match(struct device *dev, const struct device_driver *drv) 209 { 210 /* We only allow binding to fw_units. */ 211 return is_fw_unit(dev) && unit_match(dev, drv) != NULL; 212 } 213 214 static int fw_unit_probe(struct device *dev) 215 { 216 struct fw_driver *driver = 217 container_of(dev->driver, struct fw_driver, driver); 218 219 return driver->probe(fw_unit(dev), unit_match(dev, dev->driver)); 220 } 221 222 static void fw_unit_remove(struct device *dev) 223 { 224 struct fw_driver *driver = 225 container_of(dev->driver, struct fw_driver, driver); 226 227 driver->remove(fw_unit(dev)); 228 } 229 230 static int get_modalias(const struct fw_unit *unit, char *buffer, size_t buffer_size) 231 { 232 int id[] = {0, 0, 0, 0}; 233 234 get_modalias_ids(unit, id); 235 236 return snprintf(buffer, buffer_size, 237 "ieee1394:ven%08Xmo%08Xsp%08Xver%08X", 238 id[0], id[1], id[2], id[3]); 239 } 240 241 static int fw_unit_uevent(const struct device *dev, struct kobj_uevent_env *env) 242 { 243 const struct fw_unit *unit = fw_unit(dev); 244 char modalias[64]; 245 246 get_modalias(unit, modalias, sizeof(modalias)); 247 248 if (add_uevent_var(env, "MODALIAS=%s", modalias)) 249 return -ENOMEM; 250 251 return 0; 252 } 253 254 const struct bus_type fw_bus_type = { 255 .name = "firewire", 256 .match = fw_unit_match, 257 .probe = fw_unit_probe, 258 .remove = fw_unit_remove, 259 }; 260 EXPORT_SYMBOL(fw_bus_type); 261 262 int fw_device_enable_phys_dma(struct fw_device *device) 263 { 264 int generation = device->generation; 265 266 /* device->node_id, accessed below, must not be older than generation */ 267 smp_rmb(); 268 269 return device->card->driver->enable_phys_dma(device->card, 270 device->node_id, 271 generation); 272 } 273 EXPORT_SYMBOL(fw_device_enable_phys_dma); 274 275 struct config_rom_attribute { 276 struct device_attribute attr; 277 u32 key; 278 }; 279 280 static ssize_t show_immediate(struct device *dev, 281 struct device_attribute *dattr, char *buf) 282 { 283 struct config_rom_attribute *attr = 284 container_of(dattr, struct config_rom_attribute, attr); 285 struct fw_csr_iterator ci; 286 const u32 *directories[] = {NULL, NULL}; 287 int i, value = -1; 288 289 guard(rwsem_read)(&fw_device_rwsem); 290 291 if (is_fw_unit(dev)) { 292 directories[0] = fw_unit(dev)->directory; 293 } else { 294 const u32 *root_directory = fw_device(dev)->config_rom + ROOT_DIR_OFFSET; 295 const u32 *vendor_directory = search_directory(root_directory, CSR_VENDOR); 296 297 if (!vendor_directory) { 298 directories[0] = root_directory; 299 } else { 300 // Legacy layout of configuration ROM described in Annex 1 of 301 // 'Configuration ROM for AV/C Devices 1.0 (December 12, 2000, 1394 Trading 302 // Association, TA Document 1999027)'. 303 directories[0] = vendor_directory; 304 directories[1] = root_directory; 305 } 306 } 307 308 for (i = 0; i < ARRAY_SIZE(directories) && !!directories[i]; ++i) { 309 int key, val; 310 311 fw_csr_iterator_init(&ci, directories[i]); 312 while (fw_csr_iterator_next(&ci, &key, &val)) { 313 if (attr->key == key) 314 value = val; 315 } 316 } 317 318 if (value < 0) 319 return -ENOENT; 320 321 // Note that this function is also called by init_fw_attribute_group() with NULL pointer. 322 return buf ? sysfs_emit(buf, "0x%06x\n", value) : 0; 323 } 324 325 #define IMMEDIATE_ATTR(name, key) \ 326 { __ATTR(name, S_IRUGO, show_immediate, NULL), key } 327 328 static ssize_t show_text_leaf(struct device *dev, 329 struct device_attribute *dattr, char *buf) 330 { 331 struct config_rom_attribute *attr = 332 container_of(dattr, struct config_rom_attribute, attr); 333 const u32 *directories[] = {NULL, NULL}; 334 size_t bufsize; 335 char dummy_buf[2]; 336 int i, ret = -ENOENT; 337 338 guard(rwsem_read)(&fw_device_rwsem); 339 340 if (is_fw_unit(dev)) { 341 directories[0] = fw_unit(dev)->directory; 342 } else { 343 const u32 *root_directory = fw_device(dev)->config_rom + ROOT_DIR_OFFSET; 344 const u32 *vendor_directory = search_directory(root_directory, CSR_VENDOR); 345 346 if (!vendor_directory) { 347 directories[0] = root_directory; 348 } else { 349 // Legacy layout of configuration ROM described in Annex 1 of 350 // 'Configuration ROM for AV/C Devices 1.0 (December 12, 2000, 1394 351 // Trading Association, TA Document 1999027)'. 352 directories[0] = root_directory; 353 directories[1] = vendor_directory; 354 } 355 } 356 357 // Note that this function is also called by init_fw_attribute_group() with NULL pointer. 358 if (buf) { 359 bufsize = PAGE_SIZE - 1; 360 } else { 361 buf = dummy_buf; 362 bufsize = 1; 363 } 364 365 for (i = 0; i < ARRAY_SIZE(directories) && !!directories[i]; ++i) { 366 int result = fw_csr_string(directories[i], attr->key, buf, bufsize); 367 // Detected. 368 if (result >= 0) { 369 ret = result; 370 } else if (i == 0 && attr->key == CSR_VENDOR) { 371 // Sony DVMC-DA1 has configuration ROM such that the descriptor leaf entry 372 // in the root directory follows to the directory entry for vendor ID 373 // instead of the immediate value for vendor ID. 374 result = fw_csr_string(directories[i], CSR_DIRECTORY | attr->key, buf, 375 bufsize); 376 if (result >= 0) 377 ret = result; 378 } 379 } 380 381 if (ret < 0) 382 return ret; 383 384 // Strip trailing whitespace and add newline. 385 while (ret > 0 && isspace(buf[ret - 1])) 386 ret--; 387 strcpy(buf + ret, "\n"); 388 ret++; 389 390 return ret; 391 } 392 393 #define TEXT_LEAF_ATTR(name, key) \ 394 { __ATTR(name, S_IRUGO, show_text_leaf, NULL), key } 395 396 static struct config_rom_attribute config_rom_attributes[] = { 397 IMMEDIATE_ATTR(vendor, CSR_VENDOR), 398 IMMEDIATE_ATTR(hardware_version, CSR_HARDWARE_VERSION), 399 IMMEDIATE_ATTR(specifier_id, CSR_SPECIFIER_ID), 400 IMMEDIATE_ATTR(version, CSR_VERSION), 401 IMMEDIATE_ATTR(model, CSR_MODEL), 402 TEXT_LEAF_ATTR(vendor_name, CSR_VENDOR), 403 TEXT_LEAF_ATTR(model_name, CSR_MODEL), 404 TEXT_LEAF_ATTR(hardware_version_name, CSR_HARDWARE_VERSION), 405 }; 406 407 static void init_fw_attribute_group(struct device *dev, 408 struct device_attribute *attrs, 409 struct fw_attribute_group *group) 410 { 411 struct device_attribute *attr; 412 int i, j; 413 414 for (j = 0; attrs[j].attr.name != NULL; j++) 415 group->attrs[j] = &attrs[j].attr; 416 417 for (i = 0; i < ARRAY_SIZE(config_rom_attributes); i++) { 418 attr = &config_rom_attributes[i].attr; 419 if (attr->show(dev, attr, NULL) < 0) 420 continue; 421 group->attrs[j++] = &attr->attr; 422 } 423 424 group->attrs[j] = NULL; 425 group->groups[0] = &group->group; 426 group->groups[1] = NULL; 427 group->group.attrs = group->attrs; 428 dev->groups = (const struct attribute_group **) group->groups; 429 } 430 431 static ssize_t modalias_show(struct device *dev, 432 struct device_attribute *attr, char *buf) 433 { 434 struct fw_unit *unit = fw_unit(dev); 435 int length; 436 437 length = get_modalias(unit, buf, PAGE_SIZE); 438 strcpy(buf + length, "\n"); 439 440 return length + 1; 441 } 442 443 static ssize_t rom_index_show(struct device *dev, 444 struct device_attribute *attr, char *buf) 445 { 446 struct fw_device *device = fw_device(dev->parent); 447 struct fw_unit *unit = fw_unit(dev); 448 449 return sysfs_emit(buf, "%td\n", unit->directory - device->config_rom); 450 } 451 452 static struct device_attribute fw_unit_attributes[] = { 453 __ATTR_RO(modalias), 454 __ATTR_RO(rom_index), 455 __ATTR_NULL, 456 }; 457 458 static ssize_t config_rom_show(struct device *dev, 459 struct device_attribute *attr, char *buf) 460 { 461 struct fw_device *device = fw_device(dev); 462 size_t length; 463 464 guard(rwsem_read)(&fw_device_rwsem); 465 466 length = device->config_rom_length * 4; 467 memcpy(buf, device->config_rom, length); 468 469 return length; 470 } 471 472 static ssize_t guid_show(struct device *dev, 473 struct device_attribute *attr, char *buf) 474 { 475 struct fw_device *device = fw_device(dev); 476 477 guard(rwsem_read)(&fw_device_rwsem); 478 479 return sysfs_emit(buf, "0x%08x%08x\n", device->config_rom[3], device->config_rom[4]); 480 } 481 482 static ssize_t is_local_show(struct device *dev, 483 struct device_attribute *attr, char *buf) 484 { 485 struct fw_device *device = fw_device(dev); 486 487 return sysfs_emit(buf, "%u\n", device->is_local); 488 } 489 490 static int units_sprintf(char *buf, const u32 *directory) 491 { 492 struct fw_csr_iterator ci; 493 int key, value; 494 int specifier_id = 0; 495 int version = 0; 496 497 fw_csr_iterator_init(&ci, directory); 498 while (fw_csr_iterator_next(&ci, &key, &value)) { 499 switch (key) { 500 case CSR_SPECIFIER_ID: 501 specifier_id = value; 502 break; 503 case CSR_VERSION: 504 version = value; 505 break; 506 } 507 } 508 509 return sprintf(buf, "0x%06x:0x%06x ", specifier_id, version); 510 } 511 512 static ssize_t units_show(struct device *dev, 513 struct device_attribute *attr, char *buf) 514 { 515 struct fw_device *device = fw_device(dev); 516 struct fw_csr_iterator ci; 517 int key, value, i = 0; 518 519 guard(rwsem_read)(&fw_device_rwsem); 520 521 fw_csr_iterator_init(&ci, &device->config_rom[ROOT_DIR_OFFSET]); 522 while (fw_csr_iterator_next(&ci, &key, &value)) { 523 if (key != (CSR_UNIT | CSR_DIRECTORY)) 524 continue; 525 i += units_sprintf(&buf[i], ci.p + value - 1); 526 if (i >= PAGE_SIZE - (8 + 1 + 8 + 1)) 527 break; 528 } 529 530 if (i) 531 buf[i - 1] = '\n'; 532 533 return i; 534 } 535 536 static struct device_attribute fw_device_attributes[] = { 537 __ATTR_RO(config_rom), 538 __ATTR_RO(guid), 539 __ATTR_RO(is_local), 540 __ATTR_RO(units), 541 __ATTR_NULL, 542 }; 543 544 #define CANON_OUI 0x000085 545 546 static int detect_quirks_by_bus_information_block(const u32 *bus_information_block) 547 { 548 int quirks = 0; 549 550 if ((bus_information_block[2] & 0x000000f0) == 0) 551 quirks |= FW_DEVICE_QUIRK_IRM_IS_1394_1995_ONLY; 552 553 if ((bus_information_block[3] >> 8) == CANON_OUI) 554 quirks |= FW_DEVICE_QUIRK_IRM_IGNORES_BUS_MANAGER; 555 556 return quirks; 557 } 558 559 struct entry_match { 560 unsigned int index; 561 u32 value; 562 }; 563 564 static const struct entry_match motu_audio_express_matches[] = { 565 { 1, 0x030001f2 }, 566 { 3, 0xd1000002 }, 567 { 4, 0x8d000005 }, 568 { 6, 0x120001f2 }, 569 { 7, 0x13000033 }, 570 { 8, 0x17104800 }, 571 }; 572 573 static const struct entry_match tascam_fw_series_matches[] = { 574 { 1, 0x0300022e }, 575 { 3, 0x8d000006 }, 576 { 4, 0xd1000001 }, 577 { 6, 0x1200022e }, 578 { 8, 0xd4000004 }, 579 }; 580 581 static int detect_quirks_by_root_directory(const u32 *root_directory, unsigned int length) 582 { 583 static const struct { 584 enum fw_device_quirk quirk; 585 const struct entry_match *matches; 586 unsigned int match_count; 587 } *entry, entries[] = { 588 { 589 .quirk = FW_DEVICE_QUIRK_ACK_PACKET_WITH_INVALID_PENDING_CODE, 590 .matches = motu_audio_express_matches, 591 .match_count = ARRAY_SIZE(motu_audio_express_matches), 592 }, 593 { 594 .quirk = FW_DEVICE_QUIRK_UNSTABLE_AT_S400, 595 .matches = tascam_fw_series_matches, 596 .match_count = ARRAY_SIZE(tascam_fw_series_matches), 597 }, 598 }; 599 int quirks = 0; 600 int i; 601 602 for (i = 0; i < ARRAY_SIZE(entries); ++i) { 603 int j; 604 605 entry = entries + i; 606 for (j = 0; j < entry->match_count; ++j) { 607 unsigned int index = entry->matches[j].index; 608 unsigned int value = entry->matches[j].value; 609 610 if ((length < index) || (root_directory[index] != value)) 611 break; 612 } 613 if (j == entry->match_count) 614 quirks |= entry->quirk; 615 } 616 617 return quirks; 618 } 619 620 static int read_rom(struct fw_device *device, int generation, int speed, int index, u32 *data) 621 { 622 u64 offset = (CSR_REGISTER_BASE | CSR_CONFIG_ROM) + index * 4; 623 int i, rcode; 624 625 /* device->node_id, accessed below, must not be older than generation */ 626 smp_rmb(); 627 628 for (i = 10; i < 100; i += 10) { 629 rcode = fw_run_transaction(device->card, 630 TCODE_READ_QUADLET_REQUEST, device->node_id, 631 generation, speed, offset, data, 4); 632 if (rcode != RCODE_BUSY) 633 break; 634 msleep(i); 635 } 636 be32_to_cpus(data); 637 638 return rcode; 639 } 640 641 // By quadlet unit. 642 #define MAX_CONFIG_ROM_SIZE ((CSR_CONFIG_ROM_END - CSR_CONFIG_ROM) / sizeof(u32)) 643 644 /* 645 * Read the bus info block, perform a speed probe, and read all of the rest of 646 * the config ROM. We do all this with a cached bus generation. If the bus 647 * generation changes under us, read_config_rom will fail and get retried. 648 * It's better to start all over in this case because the node from which we 649 * are reading the ROM may have changed the ROM during the reset. 650 * Returns either a result code or a negative error code. 651 */ 652 static int read_config_rom(struct fw_device *device, int generation) 653 { 654 struct fw_card *card = device->card; 655 const u32 *new_rom, *old_rom __free(kfree) = NULL; 656 u32 *stack, *rom __free(kfree) = NULL; 657 u32 sp, key; 658 int i, end, length, ret, speed; 659 int quirks; 660 661 rom = kmalloc(sizeof(*rom) * MAX_CONFIG_ROM_SIZE + 662 sizeof(*stack) * MAX_CONFIG_ROM_SIZE, GFP_KERNEL); 663 if (rom == NULL) 664 return -ENOMEM; 665 666 stack = &rom[MAX_CONFIG_ROM_SIZE]; 667 memset(rom, 0, sizeof(*rom) * MAX_CONFIG_ROM_SIZE); 668 669 speed = SCODE_100; 670 671 /* First read the bus info block. */ 672 for (i = 0; i < 5; i++) { 673 ret = read_rom(device, generation, speed, i, &rom[i]); 674 if (ret != RCODE_COMPLETE) 675 return ret; 676 /* 677 * As per IEEE1212 7.2, during initialization, devices can 678 * reply with a 0 for the first quadlet of the config 679 * rom to indicate that they are booting (for example, 680 * if the firmware is on the disk of a external 681 * harddisk). In that case we just fail, and the 682 * retry mechanism will try again later. 683 */ 684 if (i == 0 && rom[i] == 0) 685 return RCODE_BUSY; 686 } 687 688 quirks = detect_quirks_by_bus_information_block(rom); 689 690 // Just prevent from torn writing/reading. 691 WRITE_ONCE(device->quirks, quirks); 692 693 /* 694 * Now parse the config rom. The config rom is a recursive 695 * directory structure so we parse it using a stack of 696 * references to the blocks that make up the structure. We 697 * push a reference to the root directory on the stack to 698 * start things off. 699 */ 700 length = i; 701 sp = 0; 702 stack[sp++] = 0xc0000005; 703 while (sp > 0) { 704 /* 705 * Pop the next block reference of the stack. The 706 * lower 24 bits is the offset into the config rom, 707 * the upper 8 bits are the type of the reference the 708 * block. 709 */ 710 key = stack[--sp]; 711 i = key & 0xffffff; 712 if (WARN_ON(i >= MAX_CONFIG_ROM_SIZE)) 713 return -ENXIO; 714 715 /* Read header quadlet for the block to get the length. */ 716 ret = read_rom(device, generation, speed, i, &rom[i]); 717 if (ret != RCODE_COMPLETE) 718 return ret; 719 end = i + (rom[i] >> 16) + 1; 720 if (end > MAX_CONFIG_ROM_SIZE) { 721 /* 722 * This block extends outside the config ROM which is 723 * a firmware bug. Ignore this whole block, i.e. 724 * simply set a fake block length of 0. 725 */ 726 fw_err(card, "skipped invalid ROM block %x at %llx\n", 727 rom[i], 728 i * 4 | CSR_REGISTER_BASE | CSR_CONFIG_ROM); 729 rom[i] = 0; 730 end = i; 731 } 732 i++; 733 734 /* 735 * Now read in the block. If this is a directory 736 * block, check the entries as we read them to see if 737 * it references another block, and push it in that case. 738 */ 739 for (; i < end; i++) { 740 ret = read_rom(device, generation, speed, i, &rom[i]); 741 if (ret != RCODE_COMPLETE) 742 return ret; 743 744 if ((key >> 30) != 3 || (rom[i] >> 30) < 2) 745 continue; 746 /* 747 * Offset points outside the ROM. May be a firmware 748 * bug or an Extended ROM entry (IEEE 1212-2001 clause 749 * 7.7.18). Simply overwrite this pointer here by a 750 * fake immediate entry so that later iterators over 751 * the ROM don't have to check offsets all the time. 752 */ 753 if (i + (rom[i] & 0xffffff) >= MAX_CONFIG_ROM_SIZE) { 754 fw_err(card, 755 "skipped unsupported ROM entry %x at %llx\n", 756 rom[i], 757 i * 4 | CSR_REGISTER_BASE | CSR_CONFIG_ROM); 758 rom[i] = 0; 759 continue; 760 } 761 stack[sp++] = i + rom[i]; 762 } 763 if (length < i) 764 length = i; 765 } 766 767 quirks |= detect_quirks_by_root_directory(rom + ROOT_DIR_OFFSET, length - ROOT_DIR_OFFSET); 768 769 // Just prevent from torn writing/reading. 770 WRITE_ONCE(device->quirks, quirks); 771 772 if (unlikely(quirks & FW_DEVICE_QUIRK_UNSTABLE_AT_S400)) 773 speed = SCODE_200; 774 else 775 speed = device->node->max_speed; 776 777 // Determine the speed of 778 // - devices with link speed less than PHY speed, 779 // - devices with 1394b PHY (unless only connected to 1394a PHYs), 780 // - all devices if there are 1394b repeaters. 781 // Note, we cannot use the bus info block's link_spd as starting point because some buggy 782 // firmwares set it lower than necessary and because 1394-1995 nodes do not have the field. 783 if ((rom[2] & 0x7) < speed || speed == SCODE_BETA || card->beta_repeaters_present) { 784 u32 dummy; 785 786 // for S1600 and S3200. 787 if (speed == SCODE_BETA) 788 speed = card->link_speed; 789 790 while (speed > SCODE_100) { 791 if (read_rom(device, generation, speed, 0, &dummy) == 792 RCODE_COMPLETE) 793 break; 794 --speed; 795 } 796 } 797 798 device->max_speed = speed; 799 800 old_rom = device->config_rom; 801 new_rom = kmemdup(rom, length * 4, GFP_KERNEL); 802 if (new_rom == NULL) 803 return -ENOMEM; 804 805 scoped_guard(rwsem_write, &fw_device_rwsem) { 806 device->config_rom = new_rom; 807 device->config_rom_length = length; 808 } 809 810 device->max_rec = rom[2] >> 12 & 0xf; 811 device->cmc = rom[2] >> 30 & 1; 812 device->irmc = rom[2] >> 31 & 1; 813 814 return RCODE_COMPLETE; 815 } 816 817 static void fw_unit_release(struct device *dev) 818 { 819 struct fw_unit *unit = fw_unit(dev); 820 821 fw_device_put(fw_parent_device(unit)); 822 kfree(unit); 823 } 824 825 static struct device_type fw_unit_type = { 826 .uevent = fw_unit_uevent, 827 .release = fw_unit_release, 828 }; 829 830 static bool is_fw_unit(const struct device *dev) 831 { 832 return dev->type == &fw_unit_type; 833 } 834 835 static void create_units(struct fw_device *device) 836 { 837 struct fw_csr_iterator ci; 838 struct fw_unit *unit; 839 int key, value, i; 840 841 i = 0; 842 fw_csr_iterator_init(&ci, &device->config_rom[ROOT_DIR_OFFSET]); 843 while (fw_csr_iterator_next(&ci, &key, &value)) { 844 if (key != (CSR_UNIT | CSR_DIRECTORY)) 845 continue; 846 847 /* 848 * Get the address of the unit directory and try to 849 * match the drivers id_tables against it. 850 */ 851 unit = kzalloc_obj(*unit); 852 if (unit == NULL) 853 continue; 854 855 unit->directory = ci.p + value - 1; 856 unit->device.bus = &fw_bus_type; 857 unit->device.type = &fw_unit_type; 858 unit->device.parent = &device->device; 859 dev_set_name(&unit->device, "%s.%d", dev_name(&device->device), i++); 860 861 BUILD_BUG_ON(ARRAY_SIZE(unit->attribute_group.attrs) < 862 ARRAY_SIZE(fw_unit_attributes) + 863 ARRAY_SIZE(config_rom_attributes)); 864 init_fw_attribute_group(&unit->device, 865 fw_unit_attributes, 866 &unit->attribute_group); 867 868 fw_device_get(device); 869 if (device_register(&unit->device) < 0) { 870 put_device(&unit->device); 871 continue; 872 } 873 } 874 } 875 876 static int shutdown_unit(struct device *device, void *data) 877 { 878 device_unregister(device); 879 880 return 0; 881 } 882 883 /* 884 * fw_device_rwsem acts as dual purpose mutex: 885 * - serializes accesses to fw_device.config_rom/.config_rom_length and 886 * fw_unit.directory, unless those accesses happen at safe occasions 887 */ 888 DECLARE_RWSEM(fw_device_rwsem); 889 890 DEFINE_XARRAY_ALLOC(fw_device_xa); 891 int fw_cdev_major; 892 893 struct fw_device *fw_device_get_by_devt(dev_t devt) 894 { 895 struct fw_device *device; 896 897 device = xa_load(&fw_device_xa, MINOR(devt)); 898 if (device) 899 fw_device_get(device); 900 901 return device; 902 } 903 904 struct workqueue_struct *fw_workqueue; 905 EXPORT_SYMBOL(fw_workqueue); 906 907 static void fw_schedule_device_work(struct fw_device *device, 908 unsigned long delay) 909 { 910 queue_delayed_work(fw_workqueue, &device->work, delay); 911 } 912 913 /* 914 * These defines control the retry behavior for reading the config 915 * rom. It shouldn't be necessary to tweak these; if the device 916 * doesn't respond to a config rom read within 10 seconds, it's not 917 * going to respond at all. As for the initial delay, a lot of 918 * devices will be able to respond within half a second after bus 919 * reset. On the other hand, it's not really worth being more 920 * aggressive than that, since it scales pretty well; if 10 devices 921 * are plugged in, they're all getting read within one second. 922 */ 923 924 #define MAX_RETRIES 10 925 #define RETRY_DELAY secs_to_jiffies(3) 926 #define INITIAL_DELAY msecs_to_jiffies(500) 927 #define SHUTDOWN_DELAY secs_to_jiffies(2) 928 929 static void fw_device_shutdown(struct work_struct *work) 930 { 931 struct fw_device *device = from_work(device, work, work.work); 932 933 if (time_is_after_jiffies64(device->card->reset_jiffies + SHUTDOWN_DELAY) 934 && !list_empty(&device->card->link)) { 935 fw_schedule_device_work(device, SHUTDOWN_DELAY); 936 return; 937 } 938 939 if (atomic_cmpxchg(&device->state, 940 FW_DEVICE_GONE, 941 FW_DEVICE_SHUTDOWN) != FW_DEVICE_GONE) 942 return; 943 944 fw_device_cdev_remove(device); 945 device_for_each_child(&device->device, NULL, shutdown_unit); 946 device_unregister(&device->device); 947 948 xa_erase(&fw_device_xa, MINOR(device->device.devt)); 949 950 fw_device_put(device); 951 } 952 953 static void fw_device_release(struct device *dev) 954 { 955 struct fw_device *device = fw_device(dev); 956 struct fw_card *card = device->card; 957 958 /* 959 * Take the card lock so we don't set this to NULL while a 960 * FW_NODE_UPDATED callback is being handled or while the 961 * bus manager work looks at this node. 962 */ 963 scoped_guard(spinlock_irqsave, &card->lock) 964 fw_node_set_device(device->node, NULL); 965 966 fw_node_put(device->node); 967 kfree(device->config_rom); 968 kfree(device); 969 fw_card_put(card); 970 } 971 972 static struct device_type fw_device_type = { 973 .release = fw_device_release, 974 }; 975 976 static bool is_fw_device(const struct device *dev) 977 { 978 return dev->type == &fw_device_type; 979 } 980 981 static int update_unit(struct device *dev, void *data) 982 { 983 struct fw_unit *unit = fw_unit(dev); 984 struct fw_driver *driver = (struct fw_driver *)dev->driver; 985 986 if (is_fw_unit(dev) && driver != NULL && driver->update != NULL) { 987 device_lock(dev); 988 driver->update(unit); 989 device_unlock(dev); 990 } 991 992 return 0; 993 } 994 995 static void fw_device_update(struct work_struct *work) 996 { 997 struct fw_device *device = from_work(device, work, work.work); 998 999 fw_device_cdev_update(device); 1000 device_for_each_child(&device->device, NULL, update_unit); 1001 } 1002 1003 enum { BC_UNKNOWN = 0, BC_UNIMPLEMENTED, BC_IMPLEMENTED, }; 1004 1005 static void set_broadcast_channel(struct fw_device *device, int generation) 1006 { 1007 struct fw_card *card = device->card; 1008 __be32 data; 1009 int rcode; 1010 1011 if (!card->broadcast_channel_allocated) 1012 return; 1013 1014 /* 1015 * The Broadcast_Channel Valid bit is required by nodes which want to 1016 * transmit on this channel. Such transmissions are practically 1017 * exclusive to IP over 1394 (RFC 2734). IP capable nodes are required 1018 * to be IRM capable and have a max_rec of 8 or more. We use this fact 1019 * to narrow down to which nodes we send Broadcast_Channel updates. 1020 */ 1021 if (!device->irmc || device->max_rec < 8) 1022 return; 1023 1024 /* 1025 * Some 1394-1995 nodes crash if this 1394a-2000 register is written. 1026 * Perform a read test first. 1027 */ 1028 if (device->bc_implemented == BC_UNKNOWN) { 1029 rcode = fw_run_transaction(card, TCODE_READ_QUADLET_REQUEST, 1030 device->node_id, generation, device->max_speed, 1031 CSR_REGISTER_BASE + CSR_BROADCAST_CHANNEL, 1032 &data, 4); 1033 switch (rcode) { 1034 case RCODE_COMPLETE: 1035 if (data & cpu_to_be32(1 << 31)) { 1036 device->bc_implemented = BC_IMPLEMENTED; 1037 break; 1038 } 1039 fallthrough; /* to case address error */ 1040 case RCODE_ADDRESS_ERROR: 1041 device->bc_implemented = BC_UNIMPLEMENTED; 1042 } 1043 } 1044 1045 if (device->bc_implemented == BC_IMPLEMENTED) { 1046 data = cpu_to_be32(BROADCAST_CHANNEL_INITIAL | 1047 BROADCAST_CHANNEL_VALID); 1048 fw_run_transaction(card, TCODE_WRITE_QUADLET_REQUEST, 1049 device->node_id, generation, device->max_speed, 1050 CSR_REGISTER_BASE + CSR_BROADCAST_CHANNEL, 1051 &data, 4); 1052 } 1053 } 1054 1055 int fw_device_set_broadcast_channel(struct device *dev, void *gen) 1056 { 1057 if (is_fw_device(dev)) 1058 set_broadcast_channel(fw_device(dev), (long)gen); 1059 1060 return 0; 1061 } 1062 1063 static int compare_configuration_rom(struct device *dev, const void *data) 1064 { 1065 const struct fw_device *old = fw_device(dev); 1066 const u32 *config_rom = data; 1067 1068 if (!is_fw_device(dev)) 1069 return 0; 1070 1071 // Compare the bus information block and root_length/root_crc. 1072 return !memcmp(old->config_rom, config_rom, 6 * 4); 1073 } 1074 1075 static void fw_device_init(struct work_struct *work) 1076 { 1077 struct fw_device *device = from_work(device, work, work.work); 1078 struct fw_card *card = device->card; 1079 struct device *found; 1080 u32 minor; 1081 int ret; 1082 1083 /* 1084 * All failure paths here call fw_node_set_device(node, NULL), so that we 1085 * don't try to do device_for_each_child() on a kfree()'d 1086 * device. 1087 */ 1088 1089 ret = read_config_rom(device, device->generation); 1090 if (ret != RCODE_COMPLETE) { 1091 if (device->config_rom_retries < MAX_RETRIES && 1092 atomic_read(&device->state) == FW_DEVICE_INITIALIZING) { 1093 device->config_rom_retries++; 1094 fw_schedule_device_work(device, RETRY_DELAY); 1095 } else { 1096 if (device->node->link_on) 1097 fw_notice(card, "giving up on node %x: reading config rom failed: %s\n", 1098 device->node_id, 1099 fw_rcode_string(ret)); 1100 if (device->node == card->root_node) 1101 fw_schedule_bm_work(card, 0); 1102 fw_device_release(&device->device); 1103 } 1104 return; 1105 } 1106 1107 // If a device was pending for deletion because its node went away but its bus info block 1108 // and root directory header matches that of a newly discovered device, revive the 1109 // existing fw_device. The newly allocated fw_device becomes obsolete instead. 1110 // 1111 // serialize config_rom access. 1112 scoped_guard(rwsem_read, &fw_device_rwsem) { 1113 found = device_find_child(card->device, device->config_rom, 1114 compare_configuration_rom); 1115 } 1116 if (found) { 1117 struct fw_device *reused = fw_device(found); 1118 1119 if (atomic_cmpxchg(&reused->state, 1120 FW_DEVICE_GONE, 1121 FW_DEVICE_RUNNING) == FW_DEVICE_GONE) { 1122 // serialize node access 1123 scoped_guard(spinlock_irq, &card->lock) { 1124 struct fw_node *current_node = device->node; 1125 struct fw_node *obsolete_node = reused->node; 1126 1127 device->node = obsolete_node; 1128 fw_node_set_device(device->node, device); 1129 reused->node = current_node; 1130 fw_node_set_device(reused->node, reused); 1131 1132 reused->max_speed = device->max_speed; 1133 reused->node_id = current_node->node_id; 1134 smp_wmb(); /* update node_id before generation */ 1135 reused->generation = card->generation; 1136 reused->config_rom_retries = 0; 1137 fw_notice(card, "rediscovered device %s\n", 1138 dev_name(found)); 1139 1140 reused->workfn = fw_device_update; 1141 fw_schedule_device_work(reused, 0); 1142 1143 if (current_node == card->root_node) 1144 fw_schedule_bm_work(card, 0); 1145 } 1146 1147 put_device(found); 1148 fw_device_release(&device->device); 1149 1150 return; 1151 } 1152 1153 put_device(found); 1154 } 1155 1156 device_initialize(&device->device); 1157 1158 fw_device_get(device); 1159 1160 // The index of allocated entry is used for minor identifier of device node. 1161 ret = xa_alloc(&fw_device_xa, &minor, device, XA_LIMIT(0, MINORMASK), GFP_KERNEL); 1162 if (ret < 0) 1163 goto error; 1164 1165 device->device.bus = &fw_bus_type; 1166 device->device.type = &fw_device_type; 1167 device->device.parent = card->device; 1168 device->device.devt = MKDEV(fw_cdev_major, minor); 1169 dev_set_name(&device->device, "fw%d", minor); 1170 1171 BUILD_BUG_ON(ARRAY_SIZE(device->attribute_group.attrs) < 1172 ARRAY_SIZE(fw_device_attributes) + 1173 ARRAY_SIZE(config_rom_attributes)); 1174 init_fw_attribute_group(&device->device, 1175 fw_device_attributes, 1176 &device->attribute_group); 1177 1178 if (device_add(&device->device)) { 1179 fw_err(card, "failed to add device\n"); 1180 goto error_with_cdev; 1181 } 1182 1183 create_units(device); 1184 1185 /* 1186 * Transition the device to running state. If it got pulled 1187 * out from under us while we did the initialization work, we 1188 * have to shut down the device again here. Normally, though, 1189 * fw_node_event will be responsible for shutting it down when 1190 * necessary. We have to use the atomic cmpxchg here to avoid 1191 * racing with the FW_NODE_DESTROYED case in 1192 * fw_node_event(). 1193 */ 1194 if (atomic_cmpxchg(&device->state, 1195 FW_DEVICE_INITIALIZING, 1196 FW_DEVICE_RUNNING) == FW_DEVICE_GONE) { 1197 device->workfn = fw_device_shutdown; 1198 fw_schedule_device_work(device, SHUTDOWN_DELAY); 1199 } else { 1200 fw_notice(card, "created device %s: GUID %08x%08x, S%d00, quirks %08x\n", 1201 dev_name(&device->device), 1202 device->config_rom[3], device->config_rom[4], 1203 1 << device->max_speed, device->quirks); 1204 device->config_rom_retries = 0; 1205 1206 set_broadcast_channel(device, device->generation); 1207 1208 add_device_randomness(&device->config_rom[3], 8); 1209 } 1210 1211 /* 1212 * Reschedule the IRM work if we just finished reading the 1213 * root node config rom. If this races with a bus reset we 1214 * just end up running the IRM work a couple of extra times - 1215 * pretty harmless. 1216 */ 1217 if (device->node == card->root_node) 1218 fw_schedule_bm_work(card, 0); 1219 1220 return; 1221 1222 error_with_cdev: 1223 xa_erase(&fw_device_xa, minor); 1224 error: 1225 fw_device_put(device); // fw_device_xa's reference. 1226 1227 put_device(&device->device); /* our reference */ 1228 } 1229 1230 /* Reread and compare bus info block and header of root directory */ 1231 static int reread_config_rom(struct fw_device *device, int generation, 1232 bool *changed) 1233 { 1234 u32 q; 1235 int i, rcode; 1236 1237 for (i = 0; i < 6; i++) { 1238 rcode = read_rom(device, generation, device->max_speed, i, &q); 1239 if (rcode != RCODE_COMPLETE) 1240 return rcode; 1241 1242 if (i == 0 && q == 0) 1243 /* inaccessible (see read_config_rom); retry later */ 1244 return RCODE_BUSY; 1245 1246 if (q != device->config_rom[i]) { 1247 *changed = true; 1248 return RCODE_COMPLETE; 1249 } 1250 } 1251 1252 *changed = false; 1253 return RCODE_COMPLETE; 1254 } 1255 1256 static void fw_device_refresh(struct work_struct *work) 1257 { 1258 struct fw_device *device = from_work(device, work, work.work); 1259 struct fw_card *card = device->card; 1260 int ret, node_id = device->node_id; 1261 bool changed; 1262 1263 ret = reread_config_rom(device, device->generation, &changed); 1264 if (ret != RCODE_COMPLETE) 1265 goto failed_config_rom; 1266 1267 if (!changed) { 1268 if (atomic_cmpxchg(&device->state, 1269 FW_DEVICE_INITIALIZING, 1270 FW_DEVICE_RUNNING) == FW_DEVICE_GONE) 1271 goto gone; 1272 1273 fw_device_update(work); 1274 device->config_rom_retries = 0; 1275 goto out; 1276 } 1277 1278 /* 1279 * Something changed. We keep things simple and don't investigate 1280 * further. We just destroy all previous units and create new ones. 1281 */ 1282 device_for_each_child(&device->device, NULL, shutdown_unit); 1283 1284 ret = read_config_rom(device, device->generation); 1285 if (ret != RCODE_COMPLETE) 1286 goto failed_config_rom; 1287 1288 fw_device_cdev_update(device); 1289 create_units(device); 1290 1291 /* Userspace may want to re-read attributes. */ 1292 kobject_uevent(&device->device.kobj, KOBJ_CHANGE); 1293 1294 if (atomic_cmpxchg(&device->state, 1295 FW_DEVICE_INITIALIZING, 1296 FW_DEVICE_RUNNING) == FW_DEVICE_GONE) 1297 goto gone; 1298 1299 fw_notice(card, "refreshed device %s\n", dev_name(&device->device)); 1300 device->config_rom_retries = 0; 1301 goto out; 1302 1303 failed_config_rom: 1304 if (device->config_rom_retries < MAX_RETRIES && 1305 atomic_read(&device->state) == FW_DEVICE_INITIALIZING) { 1306 device->config_rom_retries++; 1307 fw_schedule_device_work(device, RETRY_DELAY); 1308 return; 1309 } 1310 1311 fw_notice(card, "giving up on refresh of device %s: %s\n", 1312 dev_name(&device->device), fw_rcode_string(ret)); 1313 gone: 1314 atomic_set(&device->state, FW_DEVICE_GONE); 1315 device->workfn = fw_device_shutdown; 1316 fw_schedule_device_work(device, SHUTDOWN_DELAY); 1317 out: 1318 if (node_id == card->root_node->node_id) 1319 fw_schedule_bm_work(card, 0); 1320 } 1321 1322 static void fw_device_workfn(struct work_struct *work) 1323 { 1324 struct fw_device *device = from_work(device, to_delayed_work(work), work); 1325 device->workfn(work); 1326 } 1327 1328 void fw_node_event(struct fw_card *card, struct fw_node *node, int event) 1329 { 1330 struct fw_device *device; 1331 1332 switch (event) { 1333 case FW_NODE_CREATED: 1334 /* 1335 * Attempt to scan the node, regardless whether its self ID has 1336 * the L (link active) flag set or not. Some broken devices 1337 * send L=0 but have an up-and-running link; others send L=1 1338 * without actually having a link. 1339 */ 1340 create: 1341 device = kzalloc_obj(*device, GFP_ATOMIC); 1342 if (device == NULL) 1343 break; 1344 1345 /* 1346 * Do minimal initialization of the device here, the 1347 * rest will happen in fw_device_init(). 1348 * 1349 * Attention: A lot of things, even fw_device_get(), 1350 * cannot be done before fw_device_init() finished! 1351 * You can basically just check device->state and 1352 * schedule work until then, but only while holding 1353 * card->lock. 1354 */ 1355 atomic_set(&device->state, FW_DEVICE_INITIALIZING); 1356 device->card = fw_card_get(card); 1357 device->node = fw_node_get(node); 1358 device->node_id = node->node_id; 1359 device->generation = card->generation; 1360 device->is_local = node == card->local_node; 1361 mutex_init(&device->client_list_mutex); 1362 INIT_LIST_HEAD(&device->client_list); 1363 1364 /* 1365 * Set the node data to point back to this device so 1366 * FW_NODE_UPDATED callbacks can update the node_id 1367 * and generation for the device. 1368 */ 1369 fw_node_set_device(node, device); 1370 1371 /* 1372 * Many devices are slow to respond after bus resets, 1373 * especially if they are bus powered and go through 1374 * power-up after getting plugged in. We schedule the 1375 * first config rom scan half a second after bus reset. 1376 */ 1377 device->workfn = fw_device_init; 1378 INIT_DELAYED_WORK(&device->work, fw_device_workfn); 1379 fw_schedule_device_work(device, INITIAL_DELAY); 1380 break; 1381 1382 case FW_NODE_INITIATED_RESET: 1383 case FW_NODE_LINK_ON: 1384 device = fw_node_get_device(node); 1385 if (device == NULL) 1386 goto create; 1387 1388 device->node_id = node->node_id; 1389 smp_wmb(); /* update node_id before generation */ 1390 device->generation = card->generation; 1391 if (atomic_cmpxchg(&device->state, 1392 FW_DEVICE_RUNNING, 1393 FW_DEVICE_INITIALIZING) == FW_DEVICE_RUNNING) { 1394 device->workfn = fw_device_refresh; 1395 fw_schedule_device_work(device, 1396 device->is_local ? 0 : INITIAL_DELAY); 1397 } 1398 break; 1399 1400 case FW_NODE_UPDATED: 1401 device = fw_node_get_device(node); 1402 if (device == NULL) 1403 break; 1404 1405 device->node_id = node->node_id; 1406 smp_wmb(); /* update node_id before generation */ 1407 device->generation = card->generation; 1408 if (atomic_read(&device->state) == FW_DEVICE_RUNNING) { 1409 device->workfn = fw_device_update; 1410 fw_schedule_device_work(device, 0); 1411 } 1412 break; 1413 1414 case FW_NODE_DESTROYED: 1415 case FW_NODE_LINK_OFF: 1416 if (!fw_node_get_device(node)) 1417 break; 1418 1419 /* 1420 * Destroy the device associated with the node. There 1421 * are two cases here: either the device is fully 1422 * initialized (FW_DEVICE_RUNNING) or we're in the 1423 * process of reading its config rom 1424 * (FW_DEVICE_INITIALIZING). If it is fully 1425 * initialized we can reuse device->work to schedule a 1426 * full fw_device_shutdown(). If not, there's work 1427 * scheduled to read it's config rom, and we just put 1428 * the device in shutdown state to have that code fail 1429 * to create the device. 1430 */ 1431 device = fw_node_get_device(node); 1432 if (atomic_xchg(&device->state, 1433 FW_DEVICE_GONE) == FW_DEVICE_RUNNING) { 1434 device->workfn = fw_device_shutdown; 1435 fw_schedule_device_work(device, 1436 list_empty(&card->link) ? 0 : SHUTDOWN_DELAY); 1437 } 1438 break; 1439 } 1440 } 1441 1442 #ifdef CONFIG_FIREWIRE_KUNIT_DEVICE_ATTRIBUTE_TEST 1443 #include "device-attribute-test.c" 1444 #endif 1445