1 /* 2 * (C) Copyright 2015 Google, Inc 3 * Written by Simon Glass <sjg@chromium.org> 4 * 5 * usb_match_device() modified from Linux kernel v4.0. 6 * 7 * SPDX-License-Identifier: GPL-2.0+ 8 */ 9 10 #include <common.h> 11 #include <dm.h> 12 #include <errno.h> 13 #include <memalign.h> 14 #include <usb.h> 15 #include <dm/device-internal.h> 16 #include <dm/lists.h> 17 #include <dm/uclass-internal.h> 18 19 DECLARE_GLOBAL_DATA_PTR; 20 21 extern bool usb_started; /* flag for the started/stopped USB status */ 22 static bool asynch_allowed; 23 24 struct usb_uclass_priv { 25 int companion_device_count; 26 }; 27 28 int usb_disable_asynch(int disable) 29 { 30 int old_value = asynch_allowed; 31 32 asynch_allowed = !disable; 33 return old_value; 34 } 35 36 int submit_int_msg(struct usb_device *udev, unsigned long pipe, void *buffer, 37 int length, int interval) 38 { 39 struct udevice *bus = udev->controller_dev; 40 struct dm_usb_ops *ops = usb_get_ops(bus); 41 42 if (!ops->interrupt) 43 return -ENOSYS; 44 45 return ops->interrupt(bus, udev, pipe, buffer, length, interval); 46 } 47 48 int submit_control_msg(struct usb_device *udev, unsigned long pipe, 49 void *buffer, int length, struct devrequest *setup) 50 { 51 struct udevice *bus = udev->controller_dev; 52 struct dm_usb_ops *ops = usb_get_ops(bus); 53 struct usb_uclass_priv *uc_priv = bus->uclass->priv; 54 int err; 55 56 if (!ops->control) 57 return -ENOSYS; 58 59 err = ops->control(bus, udev, pipe, buffer, length, setup); 60 if (setup->request == USB_REQ_SET_FEATURE && 61 setup->requesttype == USB_RT_PORT && 62 setup->value == cpu_to_le16(USB_PORT_FEAT_RESET) && 63 err == -ENXIO) { 64 /* Device handed over to companion after port reset */ 65 uc_priv->companion_device_count++; 66 } 67 68 return err; 69 } 70 71 int submit_bulk_msg(struct usb_device *udev, unsigned long pipe, void *buffer, 72 int length) 73 { 74 struct udevice *bus = udev->controller_dev; 75 struct dm_usb_ops *ops = usb_get_ops(bus); 76 77 if (!ops->bulk) 78 return -ENOSYS; 79 80 return ops->bulk(bus, udev, pipe, buffer, length); 81 } 82 83 struct int_queue *create_int_queue(struct usb_device *udev, 84 unsigned long pipe, int queuesize, int elementsize, 85 void *buffer, int interval) 86 { 87 struct udevice *bus = udev->controller_dev; 88 struct dm_usb_ops *ops = usb_get_ops(bus); 89 90 if (!ops->create_int_queue) 91 return NULL; 92 93 return ops->create_int_queue(bus, udev, pipe, queuesize, elementsize, 94 buffer, interval); 95 } 96 97 void *poll_int_queue(struct usb_device *udev, struct int_queue *queue) 98 { 99 struct udevice *bus = udev->controller_dev; 100 struct dm_usb_ops *ops = usb_get_ops(bus); 101 102 if (!ops->poll_int_queue) 103 return NULL; 104 105 return ops->poll_int_queue(bus, udev, queue); 106 } 107 108 int destroy_int_queue(struct usb_device *udev, struct int_queue *queue) 109 { 110 struct udevice *bus = udev->controller_dev; 111 struct dm_usb_ops *ops = usb_get_ops(bus); 112 113 if (!ops->destroy_int_queue) 114 return -ENOSYS; 115 116 return ops->destroy_int_queue(bus, udev, queue); 117 } 118 119 int usb_alloc_device(struct usb_device *udev) 120 { 121 struct udevice *bus = udev->controller_dev; 122 struct dm_usb_ops *ops = usb_get_ops(bus); 123 124 /* This is only requird by some controllers - current XHCI */ 125 if (!ops->alloc_device) 126 return 0; 127 128 return ops->alloc_device(bus, udev); 129 } 130 131 int usb_reset_root_port(struct usb_device *udev) 132 { 133 struct udevice *bus = udev->controller_dev; 134 struct dm_usb_ops *ops = usb_get_ops(bus); 135 136 if (!ops->reset_root_port) 137 return -ENOSYS; 138 139 return ops->reset_root_port(bus, udev); 140 } 141 142 int usb_update_hub_device(struct usb_device *udev) 143 { 144 struct udevice *bus = udev->controller_dev; 145 struct dm_usb_ops *ops = usb_get_ops(bus); 146 147 if (!ops->update_hub_device) 148 return -ENOSYS; 149 150 return ops->update_hub_device(bus, udev); 151 } 152 153 int usb_get_max_xfer_size(struct usb_device *udev, size_t *size) 154 { 155 struct udevice *bus = udev->controller_dev; 156 struct dm_usb_ops *ops = usb_get_ops(bus); 157 158 if (!ops->get_max_xfer_size) 159 return -ENOSYS; 160 161 return ops->get_max_xfer_size(bus, size); 162 } 163 164 int usb_stop(void) 165 { 166 struct udevice *bus; 167 struct udevice *rh; 168 struct uclass *uc; 169 struct usb_uclass_priv *uc_priv; 170 int err = 0, ret; 171 172 /* De-activate any devices that have been activated */ 173 ret = uclass_get(UCLASS_USB, &uc); 174 if (ret) 175 return ret; 176 177 uc_priv = uc->priv; 178 179 uclass_foreach_dev(bus, uc) { 180 ret = device_remove(bus, DM_REMOVE_NORMAL); 181 if (ret && !err) 182 err = ret; 183 184 /* Locate root hub device */ 185 device_find_first_child(bus, &rh); 186 if (rh) { 187 /* 188 * All USB devices are children of root hub. 189 * Unbinding root hub will unbind all of its children. 190 */ 191 ret = device_unbind(rh); 192 if (ret && !err) 193 err = ret; 194 } 195 } 196 197 #ifdef CONFIG_SANDBOX 198 struct udevice *dev; 199 200 /* Reset all enulation devices */ 201 ret = uclass_get(UCLASS_USB_EMUL, &uc); 202 if (ret) 203 return ret; 204 205 uclass_foreach_dev(dev, uc) 206 usb_emul_reset(dev); 207 #endif 208 #ifdef CONFIG_USB_STORAGE 209 usb_stor_reset(); 210 #endif 211 uc_priv->companion_device_count = 0; 212 usb_started = 0; 213 214 return err; 215 } 216 217 static void usb_scan_bus(struct udevice *bus, bool recurse) 218 { 219 struct usb_bus_priv *priv; 220 struct udevice *dev; 221 int ret; 222 223 priv = dev_get_uclass_priv(bus); 224 225 assert(recurse); /* TODO: Support non-recusive */ 226 227 printf("scanning bus %d for devices... ", bus->seq); 228 debug("\n"); 229 ret = usb_scan_device(bus, 0, USB_SPEED_FULL, &dev); 230 if (ret) 231 printf("failed, error %d\n", ret); 232 else if (priv->next_addr == 0) 233 printf("No USB Device found\n"); 234 else 235 printf("%d USB Device(s) found\n", priv->next_addr); 236 } 237 238 static void remove_inactive_children(struct uclass *uc, struct udevice *bus) 239 { 240 uclass_foreach_dev(bus, uc) { 241 struct udevice *dev, *next; 242 243 if (!device_active(bus)) 244 continue; 245 device_foreach_child_safe(dev, next, bus) { 246 if (!device_active(dev)) 247 device_unbind(dev); 248 } 249 } 250 } 251 252 int usb_init(void) 253 { 254 int controllers_initialized = 0; 255 struct usb_uclass_priv *uc_priv; 256 struct usb_bus_priv *priv; 257 struct udevice *bus; 258 struct uclass *uc; 259 int count = 0; 260 int ret; 261 262 asynch_allowed = 1; 263 264 ret = uclass_get(UCLASS_USB, &uc); 265 if (ret) 266 return ret; 267 268 uc_priv = uc->priv; 269 270 uclass_foreach_dev(bus, uc) { 271 /* init low_level USB */ 272 printf("USB%d: ", count); 273 count++; 274 275 #ifdef CONFIG_SANDBOX 276 /* 277 * For Sandbox, we need scan the device tree each time when we 278 * start the USB stack, in order to re-create the emulated USB 279 * devices and bind drivers for them before we actually do the 280 * driver probe. 281 */ 282 ret = dm_scan_fdt_dev(bus); 283 if (ret) { 284 printf("Sandbox USB device scan failed (%d)\n", ret); 285 continue; 286 } 287 #endif 288 289 ret = device_probe(bus); 290 if (ret == -ENODEV) { /* No such device. */ 291 puts("Port not available.\n"); 292 controllers_initialized++; 293 continue; 294 } 295 296 if (ret) { /* Other error. */ 297 printf("probe failed, error %d\n", ret); 298 continue; 299 } 300 controllers_initialized++; 301 usb_started = true; 302 } 303 304 /* 305 * lowlevel init done, now scan the bus for devices i.e. search HUBs 306 * and configure them, first scan primary controllers. 307 */ 308 uclass_foreach_dev(bus, uc) { 309 if (!device_active(bus)) 310 continue; 311 312 priv = dev_get_uclass_priv(bus); 313 if (!priv->companion) 314 usb_scan_bus(bus, true); 315 } 316 317 /* 318 * Now that the primary controllers have been scanned and have handed 319 * over any devices they do not understand to their companions, scan 320 * the companions if necessary. 321 */ 322 if (uc_priv->companion_device_count) { 323 uclass_foreach_dev(bus, uc) { 324 if (!device_active(bus)) 325 continue; 326 327 priv = dev_get_uclass_priv(bus); 328 if (priv->companion) 329 usb_scan_bus(bus, true); 330 } 331 } 332 333 debug("scan end\n"); 334 335 /* Remove any devices that were not found on this scan */ 336 remove_inactive_children(uc, bus); 337 338 ret = uclass_get(UCLASS_USB_HUB, &uc); 339 if (ret) 340 return ret; 341 remove_inactive_children(uc, bus); 342 343 /* if we were not able to find at least one working bus, bail out */ 344 if (!count) 345 printf("No controllers found\n"); 346 else if (controllers_initialized == 0) 347 printf("USB error: all controllers failed lowlevel init\n"); 348 349 return usb_started ? 0 : -1; 350 } 351 352 /* 353 * TODO(sjg@chromium.org): Remove this legacy function. At present it is needed 354 * to support boards which use driver model for USB but not Ethernet, and want 355 * to use USB Ethernet. 356 * 357 * The #if clause is here to ensure that remains the only case. 358 */ 359 #if !defined(CONFIG_DM_ETH) && defined(CONFIG_USB_HOST_ETHER) 360 static struct usb_device *find_child_devnum(struct udevice *parent, int devnum) 361 { 362 struct usb_device *udev; 363 struct udevice *dev; 364 365 if (!device_active(parent)) 366 return NULL; 367 udev = dev_get_parent_priv(parent); 368 if (udev->devnum == devnum) 369 return udev; 370 371 for (device_find_first_child(parent, &dev); 372 dev; 373 device_find_next_child(&dev)) { 374 udev = find_child_devnum(dev, devnum); 375 if (udev) 376 return udev; 377 } 378 379 return NULL; 380 } 381 382 struct usb_device *usb_get_dev_index(struct udevice *bus, int index) 383 { 384 struct udevice *dev; 385 int devnum = index + 1; /* Addresses are allocated from 1 on USB */ 386 387 device_find_first_child(bus, &dev); 388 if (!dev) 389 return NULL; 390 391 return find_child_devnum(dev, devnum); 392 } 393 #endif 394 395 int usb_setup_ehci_gadget(struct ehci_ctrl **ctlrp) 396 { 397 struct usb_platdata *plat; 398 struct udevice *dev; 399 int ret; 400 401 /* Find the old device and remove it */ 402 ret = uclass_find_device_by_seq(UCLASS_USB, 0, true, &dev); 403 if (ret) 404 return ret; 405 ret = device_remove(dev, DM_REMOVE_NORMAL); 406 if (ret) 407 return ret; 408 409 plat = dev_get_platdata(dev); 410 plat->init_type = USB_INIT_DEVICE; 411 ret = device_probe(dev); 412 if (ret) 413 return ret; 414 *ctlrp = dev_get_priv(dev); 415 416 return 0; 417 } 418 419 /* returns 0 if no match, 1 if match */ 420 static int usb_match_device(const struct usb_device_descriptor *desc, 421 const struct usb_device_id *id) 422 { 423 if ((id->match_flags & USB_DEVICE_ID_MATCH_VENDOR) && 424 id->idVendor != le16_to_cpu(desc->idVendor)) 425 return 0; 426 427 if ((id->match_flags & USB_DEVICE_ID_MATCH_PRODUCT) && 428 id->idProduct != le16_to_cpu(desc->idProduct)) 429 return 0; 430 431 /* No need to test id->bcdDevice_lo != 0, since 0 is never 432 greater than any unsigned number. */ 433 if ((id->match_flags & USB_DEVICE_ID_MATCH_DEV_LO) && 434 (id->bcdDevice_lo > le16_to_cpu(desc->bcdDevice))) 435 return 0; 436 437 if ((id->match_flags & USB_DEVICE_ID_MATCH_DEV_HI) && 438 (id->bcdDevice_hi < le16_to_cpu(desc->bcdDevice))) 439 return 0; 440 441 if ((id->match_flags & USB_DEVICE_ID_MATCH_DEV_CLASS) && 442 (id->bDeviceClass != desc->bDeviceClass)) 443 return 0; 444 445 if ((id->match_flags & USB_DEVICE_ID_MATCH_DEV_SUBCLASS) && 446 (id->bDeviceSubClass != desc->bDeviceSubClass)) 447 return 0; 448 449 if ((id->match_flags & USB_DEVICE_ID_MATCH_DEV_PROTOCOL) && 450 (id->bDeviceProtocol != desc->bDeviceProtocol)) 451 return 0; 452 453 return 1; 454 } 455 456 /* returns 0 if no match, 1 if match */ 457 static int usb_match_one_id_intf(const struct usb_device_descriptor *desc, 458 const struct usb_interface_descriptor *int_desc, 459 const struct usb_device_id *id) 460 { 461 /* The interface class, subclass, protocol and number should never be 462 * checked for a match if the device class is Vendor Specific, 463 * unless the match record specifies the Vendor ID. */ 464 if (desc->bDeviceClass == USB_CLASS_VENDOR_SPEC && 465 !(id->match_flags & USB_DEVICE_ID_MATCH_VENDOR) && 466 (id->match_flags & (USB_DEVICE_ID_MATCH_INT_CLASS | 467 USB_DEVICE_ID_MATCH_INT_SUBCLASS | 468 USB_DEVICE_ID_MATCH_INT_PROTOCOL | 469 USB_DEVICE_ID_MATCH_INT_NUMBER))) 470 return 0; 471 472 if ((id->match_flags & USB_DEVICE_ID_MATCH_INT_CLASS) && 473 (id->bInterfaceClass != int_desc->bInterfaceClass)) 474 return 0; 475 476 if ((id->match_flags & USB_DEVICE_ID_MATCH_INT_SUBCLASS) && 477 (id->bInterfaceSubClass != int_desc->bInterfaceSubClass)) 478 return 0; 479 480 if ((id->match_flags & USB_DEVICE_ID_MATCH_INT_PROTOCOL) && 481 (id->bInterfaceProtocol != int_desc->bInterfaceProtocol)) 482 return 0; 483 484 if ((id->match_flags & USB_DEVICE_ID_MATCH_INT_NUMBER) && 485 (id->bInterfaceNumber != int_desc->bInterfaceNumber)) 486 return 0; 487 488 return 1; 489 } 490 491 /* returns 0 if no match, 1 if match */ 492 static int usb_match_one_id(struct usb_device_descriptor *desc, 493 struct usb_interface_descriptor *int_desc, 494 const struct usb_device_id *id) 495 { 496 if (!usb_match_device(desc, id)) 497 return 0; 498 499 return usb_match_one_id_intf(desc, int_desc, id); 500 } 501 502 /** 503 * usb_find_and_bind_driver() - Find and bind the right USB driver 504 * 505 * This only looks at certain fields in the descriptor. 506 */ 507 static int usb_find_and_bind_driver(struct udevice *parent, 508 struct usb_device_descriptor *desc, 509 struct usb_interface_descriptor *iface, 510 int bus_seq, int devnum, 511 struct udevice **devp) 512 { 513 struct usb_driver_entry *start, *entry; 514 int n_ents; 515 int ret; 516 char name[30], *str; 517 518 *devp = NULL; 519 debug("%s: Searching for driver\n", __func__); 520 start = ll_entry_start(struct usb_driver_entry, usb_driver_entry); 521 n_ents = ll_entry_count(struct usb_driver_entry, usb_driver_entry); 522 for (entry = start; entry != start + n_ents; entry++) { 523 const struct usb_device_id *id; 524 struct udevice *dev; 525 const struct driver *drv; 526 struct usb_dev_platdata *plat; 527 528 for (id = entry->match; id->match_flags; id++) { 529 if (!usb_match_one_id(desc, iface, id)) 530 continue; 531 532 drv = entry->driver; 533 /* 534 * We could pass the descriptor to the driver as 535 * platdata (instead of NULL) and allow its bind() 536 * method to return -ENOENT if it doesn't support this 537 * device. That way we could continue the search to 538 * find another driver. For now this doesn't seem 539 * necesssary, so just bind the first match. 540 */ 541 ret = device_bind(parent, drv, drv->name, NULL, -1, 542 &dev); 543 if (ret) 544 goto error; 545 debug("%s: Match found: %s\n", __func__, drv->name); 546 dev->driver_data = id->driver_info; 547 plat = dev_get_parent_platdata(dev); 548 plat->id = *id; 549 *devp = dev; 550 return 0; 551 } 552 } 553 554 /* Bind a generic driver so that the device can be used */ 555 snprintf(name, sizeof(name), "generic_bus_%x_dev_%x", bus_seq, devnum); 556 str = strdup(name); 557 if (!str) 558 return -ENOMEM; 559 ret = device_bind_driver(parent, "usb_dev_generic_drv", str, devp); 560 561 error: 562 debug("%s: No match found: %d\n", __func__, ret); 563 return ret; 564 } 565 566 /** 567 * usb_find_child() - Find an existing device which matches our needs 568 * 569 * 570 */ 571 static int usb_find_child(struct udevice *parent, 572 struct usb_device_descriptor *desc, 573 struct usb_interface_descriptor *iface, 574 struct udevice **devp) 575 { 576 struct udevice *dev; 577 578 *devp = NULL; 579 for (device_find_first_child(parent, &dev); 580 dev; 581 device_find_next_child(&dev)) { 582 struct usb_dev_platdata *plat = dev_get_parent_platdata(dev); 583 584 /* If this device is already in use, skip it */ 585 if (device_active(dev)) 586 continue; 587 debug(" %s: name='%s', plat=%d, desc=%d\n", __func__, 588 dev->name, plat->id.bDeviceClass, desc->bDeviceClass); 589 if (usb_match_one_id(desc, iface, &plat->id)) { 590 *devp = dev; 591 return 0; 592 } 593 } 594 595 return -ENOENT; 596 } 597 598 int usb_scan_device(struct udevice *parent, int port, 599 enum usb_device_speed speed, struct udevice **devp) 600 { 601 struct udevice *dev; 602 bool created = false; 603 struct usb_dev_platdata *plat; 604 struct usb_bus_priv *priv; 605 struct usb_device *parent_udev; 606 int ret; 607 ALLOC_CACHE_ALIGN_BUFFER(struct usb_device, udev, 1); 608 struct usb_interface_descriptor *iface = &udev->config.if_desc[0].desc; 609 610 *devp = NULL; 611 memset(udev, '\0', sizeof(*udev)); 612 udev->controller_dev = usb_get_bus(parent); 613 priv = dev_get_uclass_priv(udev->controller_dev); 614 615 /* 616 * Somewhat nasty, this. We create a local device and use the normal 617 * USB stack to read its descriptor. Then we know what type of device 618 * to create for real. 619 * 620 * udev->dev is set to the parent, since we don't have a real device 621 * yet. The USB stack should not access udev.dev anyway, except perhaps 622 * to find the controller, and the controller will either be @parent, 623 * or some parent of @parent. 624 * 625 * Another option might be to create the device as a generic USB 626 * device, then morph it into the correct one when we know what it 627 * should be. This means that a generic USB device would morph into 628 * a network controller, or a USB flash stick, for example. However, 629 * we don't support such morphing and it isn't clear that it would 630 * be easy to do. 631 * 632 * Yet another option is to split out the USB stack parts of udev 633 * into something like a 'struct urb' (as Linux does) which can exist 634 * independently of any device. This feels cleaner, but calls for quite 635 * a big change to the USB stack. 636 * 637 * For now, the approach is to set up an empty udev, read its 638 * descriptor and assign it an address, then bind a real device and 639 * stash the resulting information into the device's parent 640 * platform data. Then when we probe it, usb_child_pre_probe() is called 641 * and it will pull the information out of the stash. 642 */ 643 udev->dev = parent; 644 udev->speed = speed; 645 udev->devnum = priv->next_addr + 1; 646 udev->portnr = port; 647 debug("Calling usb_setup_device(), portnr=%d\n", udev->portnr); 648 parent_udev = device_get_uclass_id(parent) == UCLASS_USB_HUB ? 649 dev_get_parent_priv(parent) : NULL; 650 ret = usb_setup_device(udev, priv->desc_before_addr, parent_udev); 651 debug("read_descriptor for '%s': ret=%d\n", parent->name, ret); 652 if (ret) 653 return ret; 654 ret = usb_find_child(parent, &udev->descriptor, iface, &dev); 655 debug("** usb_find_child returns %d\n", ret); 656 if (ret) { 657 if (ret != -ENOENT) 658 return ret; 659 ret = usb_find_and_bind_driver(parent, &udev->descriptor, iface, 660 udev->controller_dev->seq, 661 udev->devnum, &dev); 662 if (ret) 663 return ret; 664 created = true; 665 } 666 plat = dev_get_parent_platdata(dev); 667 debug("%s: Probing '%s', plat=%p\n", __func__, dev->name, plat); 668 plat->devnum = udev->devnum; 669 plat->udev = udev; 670 priv->next_addr++; 671 ret = device_probe(dev); 672 if (ret) { 673 debug("%s: Device '%s' probe failed\n", __func__, dev->name); 674 priv->next_addr--; 675 if (created) 676 device_unbind(dev); 677 return ret; 678 } 679 *devp = dev; 680 681 return 0; 682 } 683 684 /* 685 * Detect if a USB device has been plugged or unplugged. 686 */ 687 int usb_detect_change(void) 688 { 689 struct udevice *hub; 690 struct uclass *uc; 691 int change = 0; 692 int ret; 693 694 ret = uclass_get(UCLASS_USB_HUB, &uc); 695 if (ret) 696 return ret; 697 698 uclass_foreach_dev(hub, uc) { 699 struct usb_device *udev; 700 struct udevice *dev; 701 702 if (!device_active(hub)) 703 continue; 704 for (device_find_first_child(hub, &dev); 705 dev; 706 device_find_next_child(&dev)) { 707 struct usb_port_status status; 708 709 if (!device_active(dev)) 710 continue; 711 712 udev = dev_get_parent_priv(dev); 713 if (usb_get_port_status(udev, udev->portnr, &status) 714 < 0) 715 /* USB request failed */ 716 continue; 717 718 if (le16_to_cpu(status.wPortChange) & 719 USB_PORT_STAT_C_CONNECTION) 720 change++; 721 } 722 } 723 724 return change; 725 } 726 727 static int usb_child_post_bind(struct udevice *dev) 728 { 729 struct usb_dev_platdata *plat = dev_get_parent_platdata(dev); 730 int val; 731 732 if (!dev_of_valid(dev)) 733 return 0; 734 735 /* We only support matching a few things */ 736 val = dev_read_u32_default(dev, "usb,device-class", -1); 737 if (val != -1) { 738 plat->id.match_flags |= USB_DEVICE_ID_MATCH_DEV_CLASS; 739 plat->id.bDeviceClass = val; 740 } 741 val = dev_read_u32_default(dev, "usb,interface-class", -1); 742 if (val != -1) { 743 plat->id.match_flags |= USB_DEVICE_ID_MATCH_INT_CLASS; 744 plat->id.bInterfaceClass = val; 745 } 746 747 return 0; 748 } 749 750 struct udevice *usb_get_bus(struct udevice *dev) 751 { 752 struct udevice *bus; 753 754 for (bus = dev; bus && device_get_uclass_id(bus) != UCLASS_USB; ) 755 bus = bus->parent; 756 if (!bus) { 757 /* By design this cannot happen */ 758 assert(bus); 759 debug("USB HUB '%s' does not have a controller\n", dev->name); 760 } 761 762 return bus; 763 } 764 765 int usb_child_pre_probe(struct udevice *dev) 766 { 767 struct usb_device *udev = dev_get_parent_priv(dev); 768 struct usb_dev_platdata *plat = dev_get_parent_platdata(dev); 769 int ret; 770 771 if (plat->udev) { 772 /* 773 * Copy over all the values set in the on stack struct 774 * usb_device in usb_scan_device() to our final struct 775 * usb_device for this dev. 776 */ 777 *udev = *(plat->udev); 778 /* And clear plat->udev as it will not be valid for long */ 779 plat->udev = NULL; 780 udev->dev = dev; 781 } else { 782 /* 783 * This happens with devices which are explicitly bound 784 * instead of being discovered through usb_scan_device() 785 * such as sandbox emul devices. 786 */ 787 udev->dev = dev; 788 udev->controller_dev = usb_get_bus(dev); 789 udev->devnum = plat->devnum; 790 791 /* 792 * udev did not go through usb_scan_device(), so we need to 793 * select the config and read the config descriptors. 794 */ 795 ret = usb_select_config(udev); 796 if (ret) 797 return ret; 798 } 799 800 return 0; 801 } 802 803 UCLASS_DRIVER(usb) = { 804 .id = UCLASS_USB, 805 .name = "usb", 806 .flags = DM_UC_FLAG_SEQ_ALIAS, 807 .post_bind = dm_scan_fdt_dev, 808 .priv_auto_alloc_size = sizeof(struct usb_uclass_priv), 809 .per_child_auto_alloc_size = sizeof(struct usb_device), 810 .per_device_auto_alloc_size = sizeof(struct usb_bus_priv), 811 .child_post_bind = usb_child_post_bind, 812 .child_pre_probe = usb_child_pre_probe, 813 .per_child_platdata_auto_alloc_size = sizeof(struct usb_dev_platdata), 814 }; 815 816 UCLASS_DRIVER(usb_dev_generic) = { 817 .id = UCLASS_USB_DEV_GENERIC, 818 .name = "usb_dev_generic", 819 }; 820 821 U_BOOT_DRIVER(usb_dev_generic_drv) = { 822 .id = UCLASS_USB_DEV_GENERIC, 823 .name = "usb_dev_generic_drv", 824 }; 825