1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * bus.c - bus driver management 4 * 5 * Copyright (c) 2002-3 Patrick Mochel 6 * Copyright (c) 2002-3 Open Source Development Labs 7 * Copyright (c) 2007 Greg Kroah-Hartman <gregkh@suse.de> 8 * Copyright (c) 2007 Novell Inc. 9 * Copyright (c) 2023 Greg Kroah-Hartman <gregkh@linuxfoundation.org> 10 */ 11 12 #include <linux/async.h> 13 #include <linux/device/bus.h> 14 #include <linux/device.h> 15 #include <linux/module.h> 16 #include <linux/errno.h> 17 #include <linux/slab.h> 18 #include <linux/init.h> 19 #include <linux/string.h> 20 #include <linux/mutex.h> 21 #include <linux/sysfs.h> 22 #include "base.h" 23 #include "power/power.h" 24 25 /* /sys/devices/system */ 26 static struct kset *system_kset; 27 28 /* /sys/bus */ 29 static struct kset *bus_kset; 30 31 #define to_bus_attr(_attr) container_of(_attr, struct bus_attribute, attr) 32 33 /* 34 * sysfs bindings for drivers 35 */ 36 37 #define to_drv_attr(_attr) container_of(_attr, struct driver_attribute, attr) 38 39 #define DRIVER_ATTR_IGNORE_LOCKDEP(_name, _mode, _show, _store) \ 40 struct driver_attribute driver_attr_##_name = \ 41 __ATTR_IGNORE_LOCKDEP(_name, _mode, _show, _store) 42 43 static int __must_check bus_rescan_devices_helper(struct device *dev, 44 void *data); 45 46 /** 47 * bus_to_subsys - Turn a struct bus_type into a struct subsys_private 48 * 49 * @bus: pointer to the struct bus_type to look up 50 * 51 * The driver core internals needs to work on the subsys_private structure, not 52 * the external struct bus_type pointer. This function walks the list of 53 * registered busses in the system and finds the matching one and returns the 54 * internal struct subsys_private that relates to that bus. 55 * 56 * Note, the reference count of the return value is INCREMENTED if it is not 57 * NULL. A call to subsys_put() must be done when finished with the pointer in 58 * order for it to be properly freed. 59 */ 60 struct subsys_private *bus_to_subsys(const struct bus_type *bus) 61 { 62 struct subsys_private *sp = NULL; 63 struct kobject *kobj; 64 65 if (!bus || !bus_kset) 66 return NULL; 67 68 spin_lock(&bus_kset->list_lock); 69 70 if (list_empty(&bus_kset->list)) 71 goto done; 72 73 list_for_each_entry(kobj, &bus_kset->list, entry) { 74 struct kset *kset = container_of(kobj, struct kset, kobj); 75 76 sp = container_of_const(kset, struct subsys_private, subsys); 77 if (sp->bus == bus) 78 goto done; 79 } 80 sp = NULL; 81 done: 82 sp = subsys_get(sp); 83 spin_unlock(&bus_kset->list_lock); 84 return sp; 85 } 86 87 static const struct bus_type *bus_get(const struct bus_type *bus) 88 { 89 struct subsys_private *sp = bus_to_subsys(bus); 90 91 if (sp) 92 return bus; 93 return NULL; 94 } 95 96 static void bus_put(const struct bus_type *bus) 97 { 98 struct subsys_private *sp = bus_to_subsys(bus); 99 100 /* two puts are required as the call to bus_to_subsys incremented it again */ 101 subsys_put(sp); 102 subsys_put(sp); 103 } 104 105 static ssize_t drv_attr_show(struct kobject *kobj, struct attribute *attr, 106 char *buf) 107 { 108 struct driver_attribute *drv_attr = to_drv_attr(attr); 109 struct driver_private *drv_priv = to_driver(kobj); 110 ssize_t ret = -EIO; 111 112 if (drv_attr->show) 113 ret = drv_attr->show(drv_priv->driver, buf); 114 return ret; 115 } 116 117 static ssize_t drv_attr_store(struct kobject *kobj, struct attribute *attr, 118 const char *buf, size_t count) 119 { 120 struct driver_attribute *drv_attr = to_drv_attr(attr); 121 struct driver_private *drv_priv = to_driver(kobj); 122 ssize_t ret = -EIO; 123 124 if (drv_attr->store) 125 ret = drv_attr->store(drv_priv->driver, buf, count); 126 return ret; 127 } 128 129 static const struct sysfs_ops driver_sysfs_ops = { 130 .show = drv_attr_show, 131 .store = drv_attr_store, 132 }; 133 134 static void driver_release(struct kobject *kobj) 135 { 136 struct driver_private *drv_priv = to_driver(kobj); 137 138 pr_debug("driver: '%s': %s\n", kobject_name(kobj), __func__); 139 kfree(drv_priv); 140 } 141 142 static const struct kobj_type driver_ktype = { 143 .sysfs_ops = &driver_sysfs_ops, 144 .release = driver_release, 145 }; 146 147 /* 148 * sysfs bindings for buses 149 */ 150 static ssize_t bus_attr_show(struct kobject *kobj, struct attribute *attr, 151 char *buf) 152 { 153 struct bus_attribute *bus_attr = to_bus_attr(attr); 154 struct subsys_private *subsys_priv = to_subsys_private(kobj); 155 /* return -EIO for reading a bus attribute without show() */ 156 ssize_t ret = -EIO; 157 158 if (bus_attr->show) 159 ret = bus_attr->show(subsys_priv->bus, buf); 160 return ret; 161 } 162 163 static ssize_t bus_attr_store(struct kobject *kobj, struct attribute *attr, 164 const char *buf, size_t count) 165 { 166 struct bus_attribute *bus_attr = to_bus_attr(attr); 167 struct subsys_private *subsys_priv = to_subsys_private(kobj); 168 /* return -EIO for writing a bus attribute without store() */ 169 ssize_t ret = -EIO; 170 171 if (bus_attr->store) 172 ret = bus_attr->store(subsys_priv->bus, buf, count); 173 return ret; 174 } 175 176 static const struct sysfs_ops bus_sysfs_ops = { 177 .show = bus_attr_show, 178 .store = bus_attr_store, 179 }; 180 181 int bus_create_file(const struct bus_type *bus, struct bus_attribute *attr) 182 { 183 struct subsys_private *sp = bus_to_subsys(bus); 184 int error; 185 186 if (!sp) 187 return -EINVAL; 188 189 error = sysfs_create_file(&sp->subsys.kobj, &attr->attr); 190 191 subsys_put(sp); 192 return error; 193 } 194 EXPORT_SYMBOL_GPL(bus_create_file); 195 196 void bus_remove_file(const struct bus_type *bus, struct bus_attribute *attr) 197 { 198 struct subsys_private *sp = bus_to_subsys(bus); 199 200 if (!sp) 201 return; 202 203 sysfs_remove_file(&sp->subsys.kobj, &attr->attr); 204 subsys_put(sp); 205 } 206 EXPORT_SYMBOL_GPL(bus_remove_file); 207 208 static void bus_release(struct kobject *kobj) 209 { 210 struct subsys_private *priv = to_subsys_private(kobj); 211 212 lockdep_unregister_key(&priv->lock_key); 213 kfree(priv); 214 } 215 216 static const struct kobj_type bus_ktype = { 217 .sysfs_ops = &bus_sysfs_ops, 218 .release = bus_release, 219 }; 220 221 static int bus_uevent_filter(const struct kobject *kobj) 222 { 223 const struct kobj_type *ktype = get_ktype(kobj); 224 225 if (ktype == &bus_ktype) 226 return 1; 227 return 0; 228 } 229 230 static const struct kset_uevent_ops bus_uevent_ops = { 231 .filter = bus_uevent_filter, 232 }; 233 234 /* Manually detach a device from its associated driver. */ 235 static ssize_t unbind_store(struct device_driver *drv, const char *buf, 236 size_t count) 237 { 238 const struct bus_type *bus = bus_get(drv->bus); 239 struct device *dev; 240 int err = -ENODEV; 241 242 dev = bus_find_device_by_name(bus, NULL, buf); 243 if (dev && dev->driver == drv) { 244 device_driver_detach(dev); 245 err = count; 246 } 247 put_device(dev); 248 bus_put(bus); 249 return err; 250 } 251 static DRIVER_ATTR_IGNORE_LOCKDEP(unbind, 0200, NULL, unbind_store); 252 253 /* 254 * Manually attach a device to a driver. 255 * Note: the driver must want to bind to the device, 256 * it is not possible to override the driver's id table. 257 */ 258 static ssize_t bind_store(struct device_driver *drv, const char *buf, 259 size_t count) 260 { 261 const struct bus_type *bus = bus_get(drv->bus); 262 struct device *dev; 263 int err = -ENODEV; 264 265 dev = bus_find_device_by_name(bus, NULL, buf); 266 if (dev && driver_match_device(drv, dev)) { 267 err = device_driver_attach(drv, dev); 268 if (!err) { 269 /* success */ 270 err = count; 271 } 272 } 273 put_device(dev); 274 bus_put(bus); 275 return err; 276 } 277 static DRIVER_ATTR_IGNORE_LOCKDEP(bind, 0200, NULL, bind_store); 278 279 static ssize_t drivers_autoprobe_show(const struct bus_type *bus, char *buf) 280 { 281 struct subsys_private *sp = bus_to_subsys(bus); 282 int ret; 283 284 if (!sp) 285 return -EINVAL; 286 287 ret = sysfs_emit(buf, "%d\n", sp->drivers_autoprobe); 288 subsys_put(sp); 289 return ret; 290 } 291 292 static ssize_t drivers_autoprobe_store(const struct bus_type *bus, 293 const char *buf, size_t count) 294 { 295 struct subsys_private *sp = bus_to_subsys(bus); 296 297 if (!sp) 298 return -EINVAL; 299 300 if (buf[0] == '0') 301 sp->drivers_autoprobe = 0; 302 else 303 sp->drivers_autoprobe = 1; 304 305 subsys_put(sp); 306 return count; 307 } 308 309 static ssize_t drivers_probe_store(const struct bus_type *bus, 310 const char *buf, size_t count) 311 { 312 struct device *dev; 313 int err = -EINVAL; 314 315 dev = bus_find_device_by_name(bus, NULL, buf); 316 if (!dev) 317 return -ENODEV; 318 if (bus_rescan_devices_helper(dev, NULL) == 0) 319 err = count; 320 put_device(dev); 321 return err; 322 } 323 324 static struct device *next_device(struct klist_iter *i) 325 { 326 struct klist_node *n = klist_next(i); 327 struct device *dev = NULL; 328 struct device_private *dev_prv; 329 330 if (n) { 331 dev_prv = to_device_private_bus(n); 332 dev = dev_prv->device; 333 } 334 return dev; 335 } 336 337 static struct device *prev_device(struct klist_iter *i) 338 { 339 struct klist_node *n = klist_prev(i); 340 struct device *dev = NULL; 341 struct device_private *dev_prv; 342 343 if (n) { 344 dev_prv = to_device_private_bus(n); 345 dev = dev_prv->device; 346 } 347 return dev; 348 } 349 350 /** 351 * bus_for_each_dev - device iterator. 352 * @bus: bus type. 353 * @start: device to start iterating from. 354 * @data: data for the callback. 355 * @fn: function to be called for each device. 356 * 357 * Iterate over @bus's list of devices, and call @fn for each, 358 * passing it @data. If @start is not NULL, we use that device to 359 * begin iterating from. 360 * 361 * We check the return of @fn each time. If it returns anything 362 * other than 0, we break out and return that value. 363 * 364 * NOTE: The device that returns a non-zero value is not retained 365 * in any way, nor is its refcount incremented. If the caller needs 366 * to retain this data, it should do so, and increment the reference 367 * count in the supplied callback. 368 */ 369 int bus_for_each_dev(const struct bus_type *bus, struct device *start, 370 void *data, device_iter_t fn) 371 { 372 struct subsys_private *sp = bus_to_subsys(bus); 373 struct klist_iter i; 374 struct device *dev; 375 int error = 0; 376 377 if (!sp) 378 return -EINVAL; 379 380 klist_iter_init_node(&sp->klist_devices, &i, 381 (start ? &start->p->knode_bus : NULL)); 382 while (!error && (dev = next_device(&i))) 383 error = fn(dev, data); 384 klist_iter_exit(&i); 385 subsys_put(sp); 386 return error; 387 } 388 EXPORT_SYMBOL_GPL(bus_for_each_dev); 389 390 /** 391 * bus_find_device - device iterator for locating a particular device. 392 * @bus: bus type 393 * @start: Device to begin with 394 * @data: Data to pass to match function 395 * @match: Callback function to check device 396 * 397 * This is similar to the bus_for_each_dev() function above, but it 398 * returns a reference to a device that is 'found' for later use, as 399 * determined by the @match callback. 400 * 401 * The callback should return 0 if the device doesn't match and non-zero 402 * if it does. If the callback returns non-zero, this function will 403 * return to the caller and not iterate over any more devices. 404 */ 405 struct device *bus_find_device(const struct bus_type *bus, 406 struct device *start, const void *data, 407 device_match_t match) 408 { 409 struct subsys_private *sp = bus_to_subsys(bus); 410 struct klist_iter i; 411 struct device *dev; 412 413 if (!sp) 414 return NULL; 415 416 klist_iter_init_node(&sp->klist_devices, &i, 417 (start ? &start->p->knode_bus : NULL)); 418 while ((dev = next_device(&i))) { 419 if (match(dev, data)) { 420 get_device(dev); 421 break; 422 } 423 } 424 klist_iter_exit(&i); 425 subsys_put(sp); 426 return dev; 427 } 428 EXPORT_SYMBOL_GPL(bus_find_device); 429 430 struct device *bus_find_device_reverse(const struct bus_type *bus, 431 struct device *start, const void *data, 432 device_match_t match) 433 { 434 struct subsys_private *sp = bus_to_subsys(bus); 435 struct klist_iter i; 436 struct device *dev; 437 438 if (!sp) 439 return NULL; 440 441 klist_iter_init_node(&sp->klist_devices, &i, 442 (start ? &start->p->knode_bus : NULL)); 443 while ((dev = prev_device(&i))) { 444 if (match(dev, data)) { 445 get_device(dev); 446 break; 447 } 448 } 449 klist_iter_exit(&i); 450 subsys_put(sp); 451 return dev; 452 } 453 EXPORT_SYMBOL_GPL(bus_find_device_reverse); 454 455 static struct device_driver *next_driver(struct klist_iter *i) 456 { 457 struct klist_node *n = klist_next(i); 458 struct driver_private *drv_priv; 459 460 if (n) { 461 drv_priv = container_of(n, struct driver_private, knode_bus); 462 return drv_priv->driver; 463 } 464 return NULL; 465 } 466 467 /** 468 * bus_for_each_drv - driver iterator 469 * @bus: bus we're dealing with. 470 * @start: driver to start iterating on. 471 * @data: data to pass to the callback. 472 * @fn: function to call for each driver. 473 * 474 * This is nearly identical to the device iterator above. 475 * We iterate over each driver that belongs to @bus, and call 476 * @fn for each. If @fn returns anything but 0, we break out 477 * and return it. If @start is not NULL, we use it as the head 478 * of the list. 479 * 480 * NOTE: we don't return the driver that returns a non-zero 481 * value, nor do we leave the reference count incremented for that 482 * driver. If the caller needs to know that info, it must set it 483 * in the callback. It must also be sure to increment the refcount 484 * so it doesn't disappear before returning to the caller. 485 */ 486 int bus_for_each_drv(const struct bus_type *bus, struct device_driver *start, 487 void *data, int (*fn)(struct device_driver *, void *)) 488 { 489 struct subsys_private *sp = bus_to_subsys(bus); 490 struct klist_iter i; 491 struct device_driver *drv; 492 int error = 0; 493 494 if (!sp) 495 return -EINVAL; 496 497 klist_iter_init_node(&sp->klist_drivers, &i, 498 start ? &start->p->knode_bus : NULL); 499 while ((drv = next_driver(&i)) && !error) 500 error = fn(drv, data); 501 klist_iter_exit(&i); 502 subsys_put(sp); 503 return error; 504 } 505 EXPORT_SYMBOL_GPL(bus_for_each_drv); 506 507 static ssize_t driver_override_store(struct device *dev, 508 struct device_attribute *attr, 509 const char *buf, size_t count) 510 { 511 int ret; 512 513 ret = __device_set_driver_override(dev, buf, count); 514 if (ret) 515 return ret; 516 517 return count; 518 } 519 520 static ssize_t driver_override_show(struct device *dev, 521 struct device_attribute *attr, char *buf) 522 { 523 guard(spinlock)(&dev->driver_override.lock); 524 return sysfs_emit(buf, "%s\n", dev->driver_override.name); 525 } 526 static DEVICE_ATTR_RW(driver_override); 527 528 static struct attribute *driver_override_dev_attrs[] = { 529 &dev_attr_driver_override.attr, 530 NULL, 531 }; 532 533 static const struct attribute_group driver_override_dev_group = { 534 .attrs = driver_override_dev_attrs, 535 }; 536 537 /** 538 * bus_add_device - add device to bus 539 * @dev: device being added 540 * 541 * - Add device's bus attributes. 542 * - Create links to device's bus. 543 * - Add the device to its bus's list of devices. 544 */ 545 int bus_add_device(struct device *dev) 546 { 547 struct subsys_private *sp = bus_to_subsys(dev->bus); 548 int error; 549 550 if (!sp) { 551 /* 552 * This is a normal operation for many devices that do not 553 * have a bus assigned to them, just say that all went 554 * well. 555 */ 556 return 0; 557 } 558 559 /* 560 * Reference in sp is now incremented and will be dropped when 561 * the device is removed from the bus 562 */ 563 564 pr_debug("bus: '%s': add device %s\n", sp->bus->name, dev_name(dev)); 565 566 error = device_add_groups(dev, sp->bus->dev_groups); 567 if (error) 568 goto out_put; 569 570 if (dev->bus->driver_override) { 571 error = device_add_group(dev, &driver_override_dev_group); 572 if (error) 573 goto out_groups; 574 } 575 576 error = sysfs_create_link(&sp->devices_kset->kobj, &dev->kobj, dev_name(dev)); 577 if (error) 578 goto out_override; 579 580 error = sysfs_create_link(&dev->kobj, &sp->subsys.kobj, "subsystem"); 581 if (error) 582 goto out_subsys; 583 584 klist_add_tail(&dev->p->knode_bus, &sp->klist_devices); 585 return 0; 586 587 out_subsys: 588 sysfs_remove_link(&sp->devices_kset->kobj, dev_name(dev)); 589 out_override: 590 if (dev->bus->driver_override) 591 device_remove_group(dev, &driver_override_dev_group); 592 out_groups: 593 device_remove_groups(dev, sp->bus->dev_groups); 594 out_put: 595 subsys_put(sp); 596 return error; 597 } 598 599 /** 600 * bus_probe_device - probe drivers for a new device 601 * @dev: device to probe 602 * 603 * - Automatically probe for a driver if the bus allows it. 604 */ 605 void bus_probe_device(struct device *dev) 606 { 607 struct subsys_private *sp = bus_to_subsys(dev->bus); 608 struct subsys_interface *sif; 609 610 if (!sp) 611 return; 612 613 device_initial_probe(dev); 614 615 mutex_lock(&sp->mutex); 616 list_for_each_entry(sif, &sp->interfaces, node) 617 if (sif->add_dev) 618 sif->add_dev(dev, sif); 619 mutex_unlock(&sp->mutex); 620 subsys_put(sp); 621 } 622 623 /** 624 * bus_remove_device - remove device from bus 625 * @dev: device to be removed 626 * 627 * - Remove device from all interfaces. 628 * - Remove symlink from bus' directory. 629 * - Delete device from bus's list. 630 * - Detach from its driver. 631 * - Drop reference taken in bus_add_device(). 632 */ 633 void bus_remove_device(struct device *dev) 634 { 635 struct subsys_private *sp = bus_to_subsys(dev->bus); 636 struct subsys_interface *sif; 637 638 if (!sp) 639 return; 640 641 mutex_lock(&sp->mutex); 642 list_for_each_entry(sif, &sp->interfaces, node) 643 if (sif->remove_dev) 644 sif->remove_dev(dev, sif); 645 mutex_unlock(&sp->mutex); 646 647 sysfs_remove_link(&dev->kobj, "subsystem"); 648 sysfs_remove_link(&sp->devices_kset->kobj, dev_name(dev)); 649 if (dev->bus->driver_override) 650 device_remove_group(dev, &driver_override_dev_group); 651 device_remove_groups(dev, dev->bus->dev_groups); 652 if (klist_node_attached(&dev->p->knode_bus)) 653 klist_del(&dev->p->knode_bus); 654 655 pr_debug("bus: '%s': remove device %s\n", 656 dev->bus->name, dev_name(dev)); 657 device_release_driver(dev); 658 659 /* 660 * Decrement the reference count twice, once for the bus_to_subsys() 661 * call in the start of this function, and the second one from the 662 * reference increment in bus_add_device() 663 */ 664 subsys_put(sp); 665 subsys_put(sp); 666 } 667 668 static int __must_check add_bind_files(struct device_driver *drv) 669 { 670 int ret; 671 672 ret = driver_create_file(drv, &driver_attr_unbind); 673 if (ret == 0) { 674 ret = driver_create_file(drv, &driver_attr_bind); 675 if (ret) 676 driver_remove_file(drv, &driver_attr_unbind); 677 } 678 return ret; 679 } 680 681 static void remove_bind_files(struct device_driver *drv) 682 { 683 driver_remove_file(drv, &driver_attr_bind); 684 driver_remove_file(drv, &driver_attr_unbind); 685 } 686 687 static BUS_ATTR_WO(drivers_probe); 688 static BUS_ATTR_RW(drivers_autoprobe); 689 690 static int add_probe_files(const struct bus_type *bus) 691 { 692 int retval; 693 694 retval = bus_create_file(bus, &bus_attr_drivers_probe); 695 if (retval) 696 goto out; 697 698 retval = bus_create_file(bus, &bus_attr_drivers_autoprobe); 699 if (retval) 700 bus_remove_file(bus, &bus_attr_drivers_probe); 701 out: 702 return retval; 703 } 704 705 static void remove_probe_files(const struct bus_type *bus) 706 { 707 bus_remove_file(bus, &bus_attr_drivers_autoprobe); 708 bus_remove_file(bus, &bus_attr_drivers_probe); 709 } 710 711 static ssize_t uevent_store(struct device_driver *drv, const char *buf, 712 size_t count) 713 { 714 int rc; 715 716 rc = kobject_synth_uevent(&drv->p->kobj, buf, count); 717 return rc ? rc : count; 718 } 719 static DRIVER_ATTR_WO(uevent); 720 721 /** 722 * bus_add_driver - Add a driver to the bus. 723 * @drv: driver. 724 */ 725 int bus_add_driver(struct device_driver *drv) 726 { 727 struct subsys_private *sp = bus_to_subsys(drv->bus); 728 struct driver_private *priv; 729 int error = 0; 730 731 if (!sp) 732 return -EINVAL; 733 734 /* 735 * Reference in sp is now incremented and will be dropped when 736 * the driver is removed from the bus 737 */ 738 pr_debug("bus: '%s': add driver %s\n", sp->bus->name, drv->name); 739 740 priv = kzalloc_obj(*priv); 741 if (!priv) { 742 error = -ENOMEM; 743 goto out_put_bus; 744 } 745 klist_init(&priv->klist_devices, NULL, NULL); 746 priv->driver = drv; 747 drv->p = priv; 748 priv->kobj.kset = sp->drivers_kset; 749 error = kobject_init_and_add(&priv->kobj, &driver_ktype, NULL, 750 "%s", drv->name); 751 if (error) 752 goto out_unregister; 753 754 klist_add_tail(&priv->knode_bus, &sp->klist_drivers); 755 if (sp->drivers_autoprobe) { 756 error = driver_attach(drv); 757 if (error) 758 goto out_del_list; 759 } 760 error = module_add_driver(drv->owner, drv); 761 if (error) { 762 printk(KERN_ERR "%s: failed to create module links for %s\n", 763 __func__, drv->name); 764 goto out_detach; 765 } 766 767 error = driver_create_file(drv, &driver_attr_uevent); 768 if (error) { 769 printk(KERN_ERR "%s: uevent attr (%s) failed\n", 770 __func__, drv->name); 771 } 772 error = driver_add_groups(drv, sp->bus->drv_groups); 773 if (error) { 774 /* How the hell do we get out of this pickle? Give up */ 775 printk(KERN_ERR "%s: driver_add_groups(%s) failed\n", 776 __func__, drv->name); 777 } 778 779 if (!drv->suppress_bind_attrs) { 780 error = add_bind_files(drv); 781 if (error) { 782 /* Ditto */ 783 printk(KERN_ERR "%s: add_bind_files(%s) failed\n", 784 __func__, drv->name); 785 } 786 } 787 788 return 0; 789 790 out_detach: 791 driver_detach(drv); 792 out_del_list: 793 klist_del(&priv->knode_bus); 794 out_unregister: 795 kobject_put(&priv->kobj); 796 /* drv->p is freed in driver_release() */ 797 drv->p = NULL; 798 out_put_bus: 799 subsys_put(sp); 800 return error; 801 } 802 803 /** 804 * bus_remove_driver - delete driver from bus's knowledge. 805 * @drv: driver. 806 * 807 * Detach the driver from the devices it controls, and remove 808 * it from its bus's list of drivers. Finally, we drop the reference 809 * to the bus we took in bus_add_driver(). 810 */ 811 void bus_remove_driver(struct device_driver *drv) 812 { 813 struct subsys_private *sp = bus_to_subsys(drv->bus); 814 815 if (!sp) 816 return; 817 818 pr_debug("bus: '%s': remove driver %s\n", sp->bus->name, drv->name); 819 820 if (!drv->suppress_bind_attrs) 821 remove_bind_files(drv); 822 driver_remove_groups(drv, sp->bus->drv_groups); 823 driver_remove_file(drv, &driver_attr_uevent); 824 klist_remove(&drv->p->knode_bus); 825 driver_detach(drv); 826 module_remove_driver(drv); 827 kobject_put(&drv->p->kobj); 828 829 /* 830 * Decrement the reference count twice, once for the bus_to_subsys() 831 * call in the start of this function, and the second one from the 832 * reference increment in bus_add_driver() 833 */ 834 subsys_put(sp); 835 subsys_put(sp); 836 } 837 838 /* Helper for bus_rescan_devices's iter */ 839 static int __must_check bus_rescan_devices_helper(struct device *dev, 840 void *data) 841 { 842 int ret = 0; 843 844 if (!dev->driver) { 845 if (dev->parent && dev->bus->need_parent_lock) 846 device_lock(dev->parent); 847 ret = device_attach(dev); 848 if (dev->parent && dev->bus->need_parent_lock) 849 device_unlock(dev->parent); 850 } 851 return ret < 0 ? ret : 0; 852 } 853 854 /** 855 * bus_rescan_devices - rescan devices on the bus for possible drivers 856 * @bus: the bus to scan. 857 * 858 * This function will look for devices on the bus with no driver 859 * attached and rescan it against existing drivers to see if it matches 860 * any by calling device_attach() for the unbound devices. 861 */ 862 int bus_rescan_devices(const struct bus_type *bus) 863 { 864 return bus_for_each_dev(bus, NULL, NULL, bus_rescan_devices_helper); 865 } 866 EXPORT_SYMBOL_GPL(bus_rescan_devices); 867 868 /** 869 * device_reprobe - remove driver for a device and probe for a new driver 870 * @dev: the device to reprobe 871 * 872 * This function detaches the attached driver (if any) for the given 873 * device and restarts the driver probing process. It is intended 874 * to use if probing criteria changed during a devices lifetime and 875 * driver attachment should change accordingly. 876 */ 877 int device_reprobe(struct device *dev) 878 { 879 if (dev->driver) 880 device_driver_detach(dev); 881 return bus_rescan_devices_helper(dev, NULL); 882 } 883 EXPORT_SYMBOL_GPL(device_reprobe); 884 885 static void klist_devices_get(struct klist_node *n) 886 { 887 struct device_private *dev_prv = to_device_private_bus(n); 888 struct device *dev = dev_prv->device; 889 890 get_device(dev); 891 } 892 893 static void klist_devices_put(struct klist_node *n) 894 { 895 struct device_private *dev_prv = to_device_private_bus(n); 896 struct device *dev = dev_prv->device; 897 898 put_device(dev); 899 } 900 901 static ssize_t bus_uevent_store(const struct bus_type *bus, 902 const char *buf, size_t count) 903 { 904 struct subsys_private *sp = bus_to_subsys(bus); 905 int ret; 906 907 if (!sp) 908 return -EINVAL; 909 910 ret = kobject_synth_uevent(&sp->subsys.kobj, buf, count); 911 subsys_put(sp); 912 913 if (ret) 914 return ret; 915 return count; 916 } 917 /* 918 * "open code" the old BUS_ATTR() macro here. We want to use BUS_ATTR_WO() 919 * here, but can not use it as earlier in the file we have 920 * DEVICE_ATTR_WO(uevent), which would cause a clash with the with the store 921 * function name. 922 */ 923 static struct bus_attribute bus_attr_uevent = __ATTR(uevent, 0200, NULL, 924 bus_uevent_store); 925 926 /** 927 * bus_register - register a driver-core subsystem 928 * @bus: bus to register 929 * 930 * Once we have that, we register the bus with the kobject 931 * infrastructure, then register the children subsystems it has: 932 * the devices and drivers that belong to the subsystem. 933 */ 934 int bus_register(const struct bus_type *bus) 935 { 936 int retval; 937 struct subsys_private *priv; 938 struct kobject *bus_kobj; 939 struct lock_class_key *key; 940 941 priv = kzalloc_obj(struct subsys_private); 942 if (!priv) 943 return -ENOMEM; 944 945 priv->bus = bus; 946 947 BLOCKING_INIT_NOTIFIER_HEAD(&priv->bus_notifier); 948 949 bus_kobj = &priv->subsys.kobj; 950 retval = kobject_set_name(bus_kobj, "%s", bus->name); 951 if (retval) 952 goto out; 953 954 bus_kobj->kset = bus_kset; 955 bus_kobj->ktype = &bus_ktype; 956 priv->drivers_autoprobe = 1; 957 958 retval = kset_register(&priv->subsys); 959 if (retval) 960 goto out; 961 962 retval = bus_create_file(bus, &bus_attr_uevent); 963 if (retval) 964 goto bus_uevent_fail; 965 966 priv->devices_kset = kset_create_and_add("devices", NULL, bus_kobj); 967 if (!priv->devices_kset) { 968 retval = -ENOMEM; 969 goto bus_devices_fail; 970 } 971 972 priv->drivers_kset = kset_create_and_add("drivers", NULL, bus_kobj); 973 if (!priv->drivers_kset) { 974 retval = -ENOMEM; 975 goto bus_drivers_fail; 976 } 977 978 INIT_LIST_HEAD(&priv->interfaces); 979 key = &priv->lock_key; 980 lockdep_register_key(key); 981 __mutex_init(&priv->mutex, "subsys mutex", key); 982 klist_init(&priv->klist_devices, klist_devices_get, klist_devices_put); 983 klist_init(&priv->klist_drivers, NULL, NULL); 984 985 retval = add_probe_files(bus); 986 if (retval) 987 goto bus_probe_files_fail; 988 989 retval = sysfs_create_groups(bus_kobj, bus->bus_groups); 990 if (retval) 991 goto bus_groups_fail; 992 993 pr_debug("bus: '%s': registered\n", bus->name); 994 return 0; 995 996 bus_groups_fail: 997 remove_probe_files(bus); 998 bus_probe_files_fail: 999 kset_unregister(priv->drivers_kset); 1000 bus_drivers_fail: 1001 kset_unregister(priv->devices_kset); 1002 bus_devices_fail: 1003 bus_remove_file(bus, &bus_attr_uevent); 1004 bus_uevent_fail: 1005 kset_unregister(&priv->subsys); 1006 /* Above kset_unregister() will kfree @priv */ 1007 priv = NULL; 1008 out: 1009 kfree(priv); 1010 return retval; 1011 } 1012 EXPORT_SYMBOL_GPL(bus_register); 1013 1014 /** 1015 * bus_unregister - remove a bus from the system 1016 * @bus: bus. 1017 * 1018 * Unregister the child subsystems and the bus itself. 1019 * Finally, we call bus_put() to release the refcount 1020 */ 1021 void bus_unregister(const struct bus_type *bus) 1022 { 1023 struct subsys_private *sp = bus_to_subsys(bus); 1024 struct kobject *bus_kobj; 1025 1026 if (!sp) 1027 return; 1028 1029 pr_debug("bus: '%s': unregistering\n", bus->name); 1030 if (sp->dev_root) 1031 device_unregister(sp->dev_root); 1032 1033 bus_kobj = &sp->subsys.kobj; 1034 sysfs_remove_groups(bus_kobj, bus->bus_groups); 1035 remove_probe_files(bus); 1036 bus_remove_file(bus, &bus_attr_uevent); 1037 1038 kset_unregister(sp->drivers_kset); 1039 kset_unregister(sp->devices_kset); 1040 kset_unregister(&sp->subsys); 1041 subsys_put(sp); 1042 } 1043 EXPORT_SYMBOL_GPL(bus_unregister); 1044 1045 int bus_register_notifier(const struct bus_type *bus, struct notifier_block *nb) 1046 { 1047 struct subsys_private *sp = bus_to_subsys(bus); 1048 int retval; 1049 1050 if (!sp) 1051 return -EINVAL; 1052 1053 retval = blocking_notifier_chain_register(&sp->bus_notifier, nb); 1054 subsys_put(sp); 1055 return retval; 1056 } 1057 EXPORT_SYMBOL_GPL(bus_register_notifier); 1058 1059 int bus_unregister_notifier(const struct bus_type *bus, struct notifier_block *nb) 1060 { 1061 struct subsys_private *sp = bus_to_subsys(bus); 1062 int retval; 1063 1064 if (!sp) 1065 return -EINVAL; 1066 retval = blocking_notifier_chain_unregister(&sp->bus_notifier, nb); 1067 subsys_put(sp); 1068 return retval; 1069 } 1070 EXPORT_SYMBOL_GPL(bus_unregister_notifier); 1071 1072 void bus_notify(struct device *dev, enum bus_notifier_event value) 1073 { 1074 struct subsys_private *sp = bus_to_subsys(dev->bus); 1075 1076 if (!sp) 1077 return; 1078 1079 blocking_notifier_call_chain(&sp->bus_notifier, value, dev); 1080 subsys_put(sp); 1081 } 1082 1083 struct kset *bus_get_kset(const struct bus_type *bus) 1084 { 1085 struct subsys_private *sp = bus_to_subsys(bus); 1086 struct kset *kset; 1087 1088 if (!sp) 1089 return NULL; 1090 1091 kset = &sp->subsys; 1092 subsys_put(sp); 1093 1094 return kset; 1095 } 1096 EXPORT_SYMBOL_GPL(bus_get_kset); 1097 1098 /* 1099 * Yes, this forcibly breaks the klist abstraction temporarily. It 1100 * just wants to sort the klist, not change reference counts and 1101 * take/drop locks rapidly in the process. It does all this while 1102 * holding the lock for the list, so objects can't otherwise be 1103 * added/removed while we're swizzling. 1104 */ 1105 static void device_insertion_sort_klist(struct device *a, struct list_head *list, 1106 int (*compare)(const struct device *a, 1107 const struct device *b)) 1108 { 1109 struct klist_node *n; 1110 struct device_private *dev_prv; 1111 struct device *b; 1112 1113 list_for_each_entry(n, list, n_node) { 1114 dev_prv = to_device_private_bus(n); 1115 b = dev_prv->device; 1116 if (compare(a, b) <= 0) { 1117 list_move_tail(&a->p->knode_bus.n_node, 1118 &b->p->knode_bus.n_node); 1119 return; 1120 } 1121 } 1122 list_move_tail(&a->p->knode_bus.n_node, list); 1123 } 1124 1125 void bus_sort_breadthfirst(const struct bus_type *bus, 1126 int (*compare)(const struct device *a, 1127 const struct device *b)) 1128 { 1129 struct subsys_private *sp = bus_to_subsys(bus); 1130 LIST_HEAD(sorted_devices); 1131 struct klist_node *n, *tmp; 1132 struct device_private *dev_prv; 1133 struct device *dev; 1134 struct klist *device_klist; 1135 1136 if (!sp) 1137 return; 1138 device_klist = &sp->klist_devices; 1139 1140 spin_lock(&device_klist->k_lock); 1141 list_for_each_entry_safe(n, tmp, &device_klist->k_list, n_node) { 1142 dev_prv = to_device_private_bus(n); 1143 dev = dev_prv->device; 1144 device_insertion_sort_klist(dev, &sorted_devices, compare); 1145 } 1146 list_splice(&sorted_devices, &device_klist->k_list); 1147 spin_unlock(&device_klist->k_lock); 1148 subsys_put(sp); 1149 } 1150 EXPORT_SYMBOL_GPL(bus_sort_breadthfirst); 1151 1152 struct subsys_dev_iter { 1153 struct klist_iter ki; 1154 const struct device_type *type; 1155 }; 1156 1157 /** 1158 * subsys_dev_iter_init - initialize subsys device iterator 1159 * @iter: subsys iterator to initialize 1160 * @sp: the subsys private (i.e. bus) we wanna iterate over 1161 * @start: the device to start iterating from, if any 1162 * @type: device_type of the devices to iterate over, NULL for all 1163 * 1164 * Initialize subsys iterator @iter such that it iterates over devices 1165 * of @subsys. If @start is set, the list iteration will start there, 1166 * otherwise if it is NULL, the iteration starts at the beginning of 1167 * the list. 1168 */ 1169 static void subsys_dev_iter_init(struct subsys_dev_iter *iter, struct subsys_private *sp, 1170 struct device *start, const struct device_type *type) 1171 { 1172 struct klist_node *start_knode = NULL; 1173 1174 if (start) 1175 start_knode = &start->p->knode_bus; 1176 klist_iter_init_node(&sp->klist_devices, &iter->ki, start_knode); 1177 iter->type = type; 1178 } 1179 1180 /** 1181 * subsys_dev_iter_next - iterate to the next device 1182 * @iter: subsys iterator to proceed 1183 * 1184 * Proceed @iter to the next device and return it. Returns NULL if 1185 * iteration is complete. 1186 * 1187 * The returned device is referenced and won't be released till 1188 * iterator is proceed to the next device or exited. The caller is 1189 * free to do whatever it wants to do with the device including 1190 * calling back into subsys code. 1191 */ 1192 static struct device *subsys_dev_iter_next(struct subsys_dev_iter *iter) 1193 { 1194 struct klist_node *knode; 1195 struct device *dev; 1196 1197 for (;;) { 1198 knode = klist_next(&iter->ki); 1199 if (!knode) 1200 return NULL; 1201 dev = to_device_private_bus(knode)->device; 1202 if (!iter->type || iter->type == dev->type) 1203 return dev; 1204 } 1205 } 1206 1207 /** 1208 * subsys_dev_iter_exit - finish iteration 1209 * @iter: subsys iterator to finish 1210 * 1211 * Finish an iteration. Always call this function after iteration is 1212 * complete whether the iteration ran till the end or not. 1213 */ 1214 static void subsys_dev_iter_exit(struct subsys_dev_iter *iter) 1215 { 1216 klist_iter_exit(&iter->ki); 1217 } 1218 1219 int subsys_interface_register(struct subsys_interface *sif) 1220 { 1221 struct subsys_private *sp; 1222 struct subsys_dev_iter iter; 1223 struct device *dev; 1224 1225 if (!sif || !sif->subsys) 1226 return -ENODEV; 1227 1228 sp = bus_to_subsys(sif->subsys); 1229 if (!sp) 1230 return -EINVAL; 1231 1232 /* 1233 * Reference in sp is now incremented and will be dropped when 1234 * the interface is removed from the bus 1235 */ 1236 1237 mutex_lock(&sp->mutex); 1238 list_add_tail(&sif->node, &sp->interfaces); 1239 if (sif->add_dev) { 1240 subsys_dev_iter_init(&iter, sp, NULL, NULL); 1241 while ((dev = subsys_dev_iter_next(&iter))) 1242 sif->add_dev(dev, sif); 1243 subsys_dev_iter_exit(&iter); 1244 } 1245 mutex_unlock(&sp->mutex); 1246 1247 return 0; 1248 } 1249 EXPORT_SYMBOL_GPL(subsys_interface_register); 1250 1251 void subsys_interface_unregister(struct subsys_interface *sif) 1252 { 1253 struct subsys_private *sp; 1254 struct subsys_dev_iter iter; 1255 struct device *dev; 1256 1257 if (!sif || !sif->subsys) 1258 return; 1259 1260 sp = bus_to_subsys(sif->subsys); 1261 if (!sp) 1262 return; 1263 1264 mutex_lock(&sp->mutex); 1265 list_del_init(&sif->node); 1266 if (sif->remove_dev) { 1267 subsys_dev_iter_init(&iter, sp, NULL, NULL); 1268 while ((dev = subsys_dev_iter_next(&iter))) 1269 sif->remove_dev(dev, sif); 1270 subsys_dev_iter_exit(&iter); 1271 } 1272 mutex_unlock(&sp->mutex); 1273 1274 /* 1275 * Decrement the reference count twice, once for the bus_to_subsys() 1276 * call in the start of this function, and the second one from the 1277 * reference increment in subsys_interface_register() 1278 */ 1279 subsys_put(sp); 1280 subsys_put(sp); 1281 } 1282 EXPORT_SYMBOL_GPL(subsys_interface_unregister); 1283 1284 static void system_root_device_release(struct device *dev) 1285 { 1286 kfree(dev); 1287 } 1288 1289 static int subsys_register(const struct bus_type *subsys, 1290 const struct attribute_group **groups, 1291 struct kobject *parent_of_root) 1292 { 1293 struct subsys_private *sp; 1294 struct device *dev; 1295 int err; 1296 1297 err = bus_register(subsys); 1298 if (err < 0) 1299 return err; 1300 1301 sp = bus_to_subsys(subsys); 1302 if (!sp) { 1303 err = -EINVAL; 1304 goto err_sp; 1305 } 1306 1307 dev = kzalloc_obj(struct device); 1308 if (!dev) { 1309 err = -ENOMEM; 1310 goto err_dev; 1311 } 1312 1313 err = dev_set_name(dev, "%s", subsys->name); 1314 if (err < 0) 1315 goto err_name; 1316 1317 dev->kobj.parent = parent_of_root; 1318 dev->groups = groups; 1319 dev->release = system_root_device_release; 1320 1321 err = device_register(dev); 1322 if (err < 0) 1323 goto err_dev_reg; 1324 1325 sp->dev_root = dev; 1326 subsys_put(sp); 1327 return 0; 1328 1329 err_dev_reg: 1330 put_device(dev); 1331 dev = NULL; 1332 err_name: 1333 kfree(dev); 1334 err_dev: 1335 subsys_put(sp); 1336 err_sp: 1337 bus_unregister(subsys); 1338 return err; 1339 } 1340 1341 /** 1342 * subsys_system_register - register a subsystem at /sys/devices/system/ 1343 * @subsys: system subsystem 1344 * @groups: default attributes for the root device 1345 * 1346 * All 'system' subsystems have a /sys/devices/system/<name> root device 1347 * with the name of the subsystem. The root device can carry subsystem- 1348 * wide attributes. All registered devices are below this single root 1349 * device and are named after the subsystem with a simple enumeration 1350 * number appended. The registered devices are not explicitly named; 1351 * only 'id' in the device needs to be set. 1352 * 1353 * Do not use this interface for anything new, it exists for compatibility 1354 * with bad ideas only. New subsystems should use plain subsystems; and 1355 * add the subsystem-wide attributes should be added to the subsystem 1356 * directory itself and not some create fake root-device placed in 1357 * /sys/devices/system/<name>. 1358 */ 1359 int subsys_system_register(const struct bus_type *subsys, 1360 const struct attribute_group **groups) 1361 { 1362 return subsys_register(subsys, groups, &system_kset->kobj); 1363 } 1364 EXPORT_SYMBOL_GPL(subsys_system_register); 1365 1366 /** 1367 * subsys_virtual_register - register a subsystem at /sys/devices/virtual/ 1368 * @subsys: virtual subsystem 1369 * @groups: default attributes for the root device 1370 * 1371 * All 'virtual' subsystems have a /sys/devices/system/<name> root device 1372 * with the name of the subsystem. The root device can carry subsystem-wide 1373 * attributes. All registered devices are below this single root device. 1374 * There's no restriction on device naming. This is for kernel software 1375 * constructs which need sysfs interface. 1376 */ 1377 int subsys_virtual_register(const struct bus_type *subsys, 1378 const struct attribute_group **groups) 1379 { 1380 struct kobject *virtual_dir; 1381 1382 virtual_dir = virtual_device_parent(); 1383 if (!virtual_dir) 1384 return -ENOMEM; 1385 1386 return subsys_register(subsys, groups, virtual_dir); 1387 } 1388 EXPORT_SYMBOL_GPL(subsys_virtual_register); 1389 1390 /** 1391 * driver_find - locate driver on a bus by its name. 1392 * @name: name of the driver. 1393 * @bus: bus to scan for the driver. 1394 * 1395 * Call kset_find_obj() to iterate over list of drivers on 1396 * a bus to find driver by name. Return driver if found. 1397 * 1398 * This routine provides no locking to prevent the driver it returns 1399 * from being unregistered or unloaded while the caller is using it. 1400 * The caller is responsible for preventing this. 1401 */ 1402 struct device_driver *driver_find(const char *name, const struct bus_type *bus) 1403 { 1404 struct subsys_private *sp = bus_to_subsys(bus); 1405 struct kobject *k; 1406 struct driver_private *priv; 1407 1408 if (!sp) 1409 return NULL; 1410 1411 k = kset_find_obj(sp->drivers_kset, name); 1412 subsys_put(sp); 1413 if (!k) 1414 return NULL; 1415 1416 priv = to_driver(k); 1417 1418 /* Drop reference added by kset_find_obj() */ 1419 kobject_put(k); 1420 return priv->driver; 1421 } 1422 EXPORT_SYMBOL_GPL(driver_find); 1423 1424 /* 1425 * Warning, the value could go to "removed" instantly after calling this function, so be very 1426 * careful when calling it... 1427 */ 1428 bool bus_is_registered(const struct bus_type *bus) 1429 { 1430 struct subsys_private *sp = bus_to_subsys(bus); 1431 bool is_initialized = false; 1432 1433 if (sp) { 1434 is_initialized = true; 1435 subsys_put(sp); 1436 } 1437 return is_initialized; 1438 } 1439 1440 /** 1441 * bus_get_dev_root - return a pointer to the "device root" of a bus 1442 * @bus: bus to return the device root of. 1443 * 1444 * If a bus has a "device root" structure, return it, WITH THE REFERENCE 1445 * COUNT INCREMENTED. 1446 * 1447 * Note, when finished with the device, a call to put_device() is required. 1448 * 1449 * If the device root is not present (or bus is not a valid pointer), NULL 1450 * will be returned. 1451 */ 1452 struct device *bus_get_dev_root(const struct bus_type *bus) 1453 { 1454 struct subsys_private *sp = bus_to_subsys(bus); 1455 struct device *dev_root; 1456 1457 if (!sp) 1458 return NULL; 1459 1460 dev_root = get_device(sp->dev_root); 1461 subsys_put(sp); 1462 return dev_root; 1463 } 1464 EXPORT_SYMBOL_GPL(bus_get_dev_root); 1465 1466 int __init buses_init(void) 1467 { 1468 bus_kset = kset_create_and_add("bus", &bus_uevent_ops, NULL); 1469 if (!bus_kset) 1470 return -ENOMEM; 1471 1472 system_kset = kset_create_and_add("system", NULL, &devices_kset->kobj); 1473 if (!system_kset) { 1474 /* Do error handling here as devices_init() do */ 1475 kset_unregister(bus_kset); 1476 bus_kset = NULL; 1477 pr_err("%s: failed to create and add kset 'bus'\n", __func__); 1478 return -ENOMEM; 1479 } 1480 1481 return 0; 1482 } 1483