1 /* 2 * USB hub driver. 3 * 4 * (C) Copyright 1999 Linus Torvalds 5 * (C) Copyright 1999 Johannes Erdfelt 6 * (C) Copyright 1999 Gregory P. Smith 7 * (C) Copyright 2001 Brad Hards (bhards@bigpond.net.au) 8 * 9 */ 10 11 #include <linux/kernel.h> 12 #include <linux/errno.h> 13 #include <linux/module.h> 14 #include <linux/moduleparam.h> 15 #include <linux/completion.h> 16 #include <linux/sched.h> 17 #include <linux/list.h> 18 #include <linux/slab.h> 19 #include <linux/ioctl.h> 20 #include <linux/usb.h> 21 #include <linux/usbdevice_fs.h> 22 #include <linux/usb/hcd.h> 23 #include <linux/usb/quirks.h> 24 #include <linux/kthread.h> 25 #include <linux/mutex.h> 26 #include <linux/freezer.h> 27 28 #include <asm/uaccess.h> 29 #include <asm/byteorder.h> 30 31 #include "usb.h" 32 33 /* if we are in debug mode, always announce new devices */ 34 #ifdef DEBUG 35 #ifndef CONFIG_USB_ANNOUNCE_NEW_DEVICES 36 #define CONFIG_USB_ANNOUNCE_NEW_DEVICES 37 #endif 38 #endif 39 40 struct usb_hub { 41 struct device *intfdev; /* the "interface" device */ 42 struct usb_device *hdev; 43 struct kref kref; 44 struct urb *urb; /* for interrupt polling pipe */ 45 46 /* buffer for urb ... with extra space in case of babble */ 47 char (*buffer)[8]; 48 union { 49 struct usb_hub_status hub; 50 struct usb_port_status port; 51 } *status; /* buffer for status reports */ 52 struct mutex status_mutex; /* for the status buffer */ 53 54 int error; /* last reported error */ 55 int nerrors; /* track consecutive errors */ 56 57 struct list_head event_list; /* hubs w/data or errs ready */ 58 unsigned long event_bits[1]; /* status change bitmask */ 59 unsigned long change_bits[1]; /* ports with logical connect 60 status change */ 61 unsigned long busy_bits[1]; /* ports being reset or 62 resumed */ 63 unsigned long removed_bits[1]; /* ports with a "removed" 64 device present */ 65 unsigned long wakeup_bits[1]; /* ports that have signaled 66 remote wakeup */ 67 #if USB_MAXCHILDREN > 31 /* 8*sizeof(unsigned long) - 1 */ 68 #error event_bits[] is too short! 69 #endif 70 71 struct usb_hub_descriptor *descriptor; /* class descriptor */ 72 struct usb_tt tt; /* Transaction Translator */ 73 74 unsigned mA_per_port; /* current for each child */ 75 76 unsigned limited_power:1; 77 unsigned quiescing:1; 78 unsigned disconnected:1; 79 80 unsigned has_indicators:1; 81 u8 indicator[USB_MAXCHILDREN]; 82 struct delayed_work leds; 83 struct delayed_work init_work; 84 void **port_owners; 85 }; 86 87 static inline int hub_is_superspeed(struct usb_device *hdev) 88 { 89 return (hdev->descriptor.bDeviceProtocol == USB_HUB_PR_SS); 90 } 91 92 /* Protect struct usb_device->state and ->children members 93 * Note: Both are also protected by ->dev.sem, except that ->state can 94 * change to USB_STATE_NOTATTACHED even when the semaphore isn't held. */ 95 static DEFINE_SPINLOCK(device_state_lock); 96 97 /* khubd's worklist and its lock */ 98 static DEFINE_SPINLOCK(hub_event_lock); 99 static LIST_HEAD(hub_event_list); /* List of hubs needing servicing */ 100 101 /* Wakes up khubd */ 102 static DECLARE_WAIT_QUEUE_HEAD(khubd_wait); 103 104 static struct task_struct *khubd_task; 105 106 /* cycle leds on hubs that aren't blinking for attention */ 107 static bool blinkenlights = 0; 108 module_param (blinkenlights, bool, S_IRUGO); 109 MODULE_PARM_DESC (blinkenlights, "true to cycle leds on hubs"); 110 111 /* 112 * Device SATA8000 FW1.0 from DATAST0R Technology Corp requires about 113 * 10 seconds to send reply for the initial 64-byte descriptor request. 114 */ 115 /* define initial 64-byte descriptor request timeout in milliseconds */ 116 static int initial_descriptor_timeout = USB_CTRL_GET_TIMEOUT; 117 module_param(initial_descriptor_timeout, int, S_IRUGO|S_IWUSR); 118 MODULE_PARM_DESC(initial_descriptor_timeout, 119 "initial 64-byte descriptor request timeout in milliseconds " 120 "(default 5000 - 5.0 seconds)"); 121 122 /* 123 * As of 2.6.10 we introduce a new USB device initialization scheme which 124 * closely resembles the way Windows works. Hopefully it will be compatible 125 * with a wider range of devices than the old scheme. However some previously 126 * working devices may start giving rise to "device not accepting address" 127 * errors; if that happens the user can try the old scheme by adjusting the 128 * following module parameters. 129 * 130 * For maximum flexibility there are two boolean parameters to control the 131 * hub driver's behavior. On the first initialization attempt, if the 132 * "old_scheme_first" parameter is set then the old scheme will be used, 133 * otherwise the new scheme is used. If that fails and "use_both_schemes" 134 * is set, then the driver will make another attempt, using the other scheme. 135 */ 136 static bool old_scheme_first = 0; 137 module_param(old_scheme_first, bool, S_IRUGO | S_IWUSR); 138 MODULE_PARM_DESC(old_scheme_first, 139 "start with the old device initialization scheme"); 140 141 static bool use_both_schemes = 1; 142 module_param(use_both_schemes, bool, S_IRUGO | S_IWUSR); 143 MODULE_PARM_DESC(use_both_schemes, 144 "try the other device initialization scheme if the " 145 "first one fails"); 146 147 /* Mutual exclusion for EHCI CF initialization. This interferes with 148 * port reset on some companion controllers. 149 */ 150 DECLARE_RWSEM(ehci_cf_port_reset_rwsem); 151 EXPORT_SYMBOL_GPL(ehci_cf_port_reset_rwsem); 152 153 #define HUB_DEBOUNCE_TIMEOUT 1500 154 #define HUB_DEBOUNCE_STEP 25 155 #define HUB_DEBOUNCE_STABLE 100 156 157 158 static int usb_reset_and_verify_device(struct usb_device *udev); 159 160 static inline char *portspeed(struct usb_hub *hub, int portstatus) 161 { 162 if (hub_is_superspeed(hub->hdev)) 163 return "5.0 Gb/s"; 164 if (portstatus & USB_PORT_STAT_HIGH_SPEED) 165 return "480 Mb/s"; 166 else if (portstatus & USB_PORT_STAT_LOW_SPEED) 167 return "1.5 Mb/s"; 168 else 169 return "12 Mb/s"; 170 } 171 172 /* Note that hdev or one of its children must be locked! */ 173 static struct usb_hub *hdev_to_hub(struct usb_device *hdev) 174 { 175 if (!hdev || !hdev->actconfig) 176 return NULL; 177 return usb_get_intfdata(hdev->actconfig->interface[0]); 178 } 179 180 static int usb_device_supports_lpm(struct usb_device *udev) 181 { 182 /* USB 2.1 (and greater) devices indicate LPM support through 183 * their USB 2.0 Extended Capabilities BOS descriptor. 184 */ 185 if (udev->speed == USB_SPEED_HIGH) { 186 if (udev->bos->ext_cap && 187 (USB_LPM_SUPPORT & 188 le32_to_cpu(udev->bos->ext_cap->bmAttributes))) 189 return 1; 190 return 0; 191 } 192 193 /* All USB 3.0 must support LPM, but we need their max exit latency 194 * information from the SuperSpeed Extended Capabilities BOS descriptor. 195 */ 196 if (!udev->bos->ss_cap) { 197 dev_warn(&udev->dev, "No LPM exit latency info found. " 198 "Power management will be impacted.\n"); 199 return 0; 200 } 201 if (udev->parent->lpm_capable) 202 return 1; 203 204 dev_warn(&udev->dev, "Parent hub missing LPM exit latency info. " 205 "Power management will be impacted.\n"); 206 return 0; 207 } 208 209 /* 210 * Set the Maximum Exit Latency (MEL) for the host to initiate a transition from 211 * either U1 or U2. 212 */ 213 static void usb_set_lpm_mel(struct usb_device *udev, 214 struct usb3_lpm_parameters *udev_lpm_params, 215 unsigned int udev_exit_latency, 216 struct usb_hub *hub, 217 struct usb3_lpm_parameters *hub_lpm_params, 218 unsigned int hub_exit_latency) 219 { 220 unsigned int total_mel; 221 unsigned int device_mel; 222 unsigned int hub_mel; 223 224 /* 225 * Calculate the time it takes to transition all links from the roothub 226 * to the parent hub into U0. The parent hub must then decode the 227 * packet (hub header decode latency) to figure out which port it was 228 * bound for. 229 * 230 * The Hub Header decode latency is expressed in 0.1us intervals (0x1 231 * means 0.1us). Multiply that by 100 to get nanoseconds. 232 */ 233 total_mel = hub_lpm_params->mel + 234 (hub->descriptor->u.ss.bHubHdrDecLat * 100); 235 236 /* 237 * How long will it take to transition the downstream hub's port into 238 * U0? The greater of either the hub exit latency or the device exit 239 * latency. 240 * 241 * The BOS U1/U2 exit latencies are expressed in 1us intervals. 242 * Multiply that by 1000 to get nanoseconds. 243 */ 244 device_mel = udev_exit_latency * 1000; 245 hub_mel = hub_exit_latency * 1000; 246 if (device_mel > hub_mel) 247 total_mel += device_mel; 248 else 249 total_mel += hub_mel; 250 251 udev_lpm_params->mel = total_mel; 252 } 253 254 /* 255 * Set the maximum Device to Host Exit Latency (PEL) for the device to initiate 256 * a transition from either U1 or U2. 257 */ 258 static void usb_set_lpm_pel(struct usb_device *udev, 259 struct usb3_lpm_parameters *udev_lpm_params, 260 unsigned int udev_exit_latency, 261 struct usb_hub *hub, 262 struct usb3_lpm_parameters *hub_lpm_params, 263 unsigned int hub_exit_latency, 264 unsigned int port_to_port_exit_latency) 265 { 266 unsigned int first_link_pel; 267 unsigned int hub_pel; 268 269 /* 270 * First, the device sends an LFPS to transition the link between the 271 * device and the parent hub into U0. The exit latency is the bigger of 272 * the device exit latency or the hub exit latency. 273 */ 274 if (udev_exit_latency > hub_exit_latency) 275 first_link_pel = udev_exit_latency * 1000; 276 else 277 first_link_pel = hub_exit_latency * 1000; 278 279 /* 280 * When the hub starts to receive the LFPS, there is a slight delay for 281 * it to figure out that one of the ports is sending an LFPS. Then it 282 * will forward the LFPS to its upstream link. The exit latency is the 283 * delay, plus the PEL that we calculated for this hub. 284 */ 285 hub_pel = port_to_port_exit_latency * 1000 + hub_lpm_params->pel; 286 287 /* 288 * According to figure C-7 in the USB 3.0 spec, the PEL for this device 289 * is the greater of the two exit latencies. 290 */ 291 if (first_link_pel > hub_pel) 292 udev_lpm_params->pel = first_link_pel; 293 else 294 udev_lpm_params->pel = hub_pel; 295 } 296 297 /* 298 * Set the System Exit Latency (SEL) to indicate the total worst-case time from 299 * when a device initiates a transition to U0, until when it will receive the 300 * first packet from the host controller. 301 * 302 * Section C.1.5.1 describes the four components to this: 303 * - t1: device PEL 304 * - t2: time for the ERDY to make it from the device to the host. 305 * - t3: a host-specific delay to process the ERDY. 306 * - t4: time for the packet to make it from the host to the device. 307 * 308 * t3 is specific to both the xHCI host and the platform the host is integrated 309 * into. The Intel HW folks have said it's negligible, FIXME if a different 310 * vendor says otherwise. 311 */ 312 static void usb_set_lpm_sel(struct usb_device *udev, 313 struct usb3_lpm_parameters *udev_lpm_params) 314 { 315 struct usb_device *parent; 316 unsigned int num_hubs; 317 unsigned int total_sel; 318 319 /* t1 = device PEL */ 320 total_sel = udev_lpm_params->pel; 321 /* How many external hubs are in between the device & the root port. */ 322 for (parent = udev->parent, num_hubs = 0; parent->parent; 323 parent = parent->parent) 324 num_hubs++; 325 /* t2 = 2.1us + 250ns * (num_hubs - 1) */ 326 if (num_hubs > 0) 327 total_sel += 2100 + 250 * (num_hubs - 1); 328 329 /* t4 = 250ns * num_hubs */ 330 total_sel += 250 * num_hubs; 331 332 udev_lpm_params->sel = total_sel; 333 } 334 335 static void usb_set_lpm_parameters(struct usb_device *udev) 336 { 337 struct usb_hub *hub; 338 unsigned int port_to_port_delay; 339 unsigned int udev_u1_del; 340 unsigned int udev_u2_del; 341 unsigned int hub_u1_del; 342 unsigned int hub_u2_del; 343 344 if (!udev->lpm_capable || udev->speed != USB_SPEED_SUPER) 345 return; 346 347 hub = hdev_to_hub(udev->parent); 348 /* It doesn't take time to transition the roothub into U0, since it 349 * doesn't have an upstream link. 350 */ 351 if (!hub) 352 return; 353 354 udev_u1_del = udev->bos->ss_cap->bU1devExitLat; 355 udev_u2_del = udev->bos->ss_cap->bU2DevExitLat; 356 hub_u1_del = udev->parent->bos->ss_cap->bU1devExitLat; 357 hub_u2_del = udev->parent->bos->ss_cap->bU2DevExitLat; 358 359 usb_set_lpm_mel(udev, &udev->u1_params, udev_u1_del, 360 hub, &udev->parent->u1_params, hub_u1_del); 361 362 usb_set_lpm_mel(udev, &udev->u2_params, udev_u2_del, 363 hub, &udev->parent->u2_params, hub_u2_del); 364 365 /* 366 * Appendix C, section C.2.2.2, says that there is a slight delay from 367 * when the parent hub notices the downstream port is trying to 368 * transition to U0 to when the hub initiates a U0 transition on its 369 * upstream port. The section says the delays are tPort2PortU1EL and 370 * tPort2PortU2EL, but it doesn't define what they are. 371 * 372 * The hub chapter, sections 10.4.2.4 and 10.4.2.5 seem to be talking 373 * about the same delays. Use the maximum delay calculations from those 374 * sections. For U1, it's tHubPort2PortExitLat, which is 1us max. For 375 * U2, it's tHubPort2PortExitLat + U2DevExitLat - U1DevExitLat. I 376 * assume the device exit latencies they are talking about are the hub 377 * exit latencies. 378 * 379 * What do we do if the U2 exit latency is less than the U1 exit 380 * latency? It's possible, although not likely... 381 */ 382 port_to_port_delay = 1; 383 384 usb_set_lpm_pel(udev, &udev->u1_params, udev_u1_del, 385 hub, &udev->parent->u1_params, hub_u1_del, 386 port_to_port_delay); 387 388 if (hub_u2_del > hub_u1_del) 389 port_to_port_delay = 1 + hub_u2_del - hub_u1_del; 390 else 391 port_to_port_delay = 1 + hub_u1_del; 392 393 usb_set_lpm_pel(udev, &udev->u2_params, udev_u2_del, 394 hub, &udev->parent->u2_params, hub_u2_del, 395 port_to_port_delay); 396 397 /* Now that we've got PEL, calculate SEL. */ 398 usb_set_lpm_sel(udev, &udev->u1_params); 399 usb_set_lpm_sel(udev, &udev->u2_params); 400 } 401 402 /* USB 2.0 spec Section 11.24.4.5 */ 403 static int get_hub_descriptor(struct usb_device *hdev, void *data) 404 { 405 int i, ret, size; 406 unsigned dtype; 407 408 if (hub_is_superspeed(hdev)) { 409 dtype = USB_DT_SS_HUB; 410 size = USB_DT_SS_HUB_SIZE; 411 } else { 412 dtype = USB_DT_HUB; 413 size = sizeof(struct usb_hub_descriptor); 414 } 415 416 for (i = 0; i < 3; i++) { 417 ret = usb_control_msg(hdev, usb_rcvctrlpipe(hdev, 0), 418 USB_REQ_GET_DESCRIPTOR, USB_DIR_IN | USB_RT_HUB, 419 dtype << 8, 0, data, size, 420 USB_CTRL_GET_TIMEOUT); 421 if (ret >= (USB_DT_HUB_NONVAR_SIZE + 2)) 422 return ret; 423 } 424 return -EINVAL; 425 } 426 427 /* 428 * USB 2.0 spec Section 11.24.2.1 429 */ 430 static int clear_hub_feature(struct usb_device *hdev, int feature) 431 { 432 return usb_control_msg(hdev, usb_sndctrlpipe(hdev, 0), 433 USB_REQ_CLEAR_FEATURE, USB_RT_HUB, feature, 0, NULL, 0, 1000); 434 } 435 436 /* 437 * USB 2.0 spec Section 11.24.2.2 438 */ 439 static int clear_port_feature(struct usb_device *hdev, int port1, int feature) 440 { 441 return usb_control_msg(hdev, usb_sndctrlpipe(hdev, 0), 442 USB_REQ_CLEAR_FEATURE, USB_RT_PORT, feature, port1, 443 NULL, 0, 1000); 444 } 445 446 /* 447 * USB 2.0 spec Section 11.24.2.13 448 */ 449 static int set_port_feature(struct usb_device *hdev, int port1, int feature) 450 { 451 return usb_control_msg(hdev, usb_sndctrlpipe(hdev, 0), 452 USB_REQ_SET_FEATURE, USB_RT_PORT, feature, port1, 453 NULL, 0, 1000); 454 } 455 456 /* 457 * USB 2.0 spec Section 11.24.2.7.1.10 and table 11-7 458 * for info about using port indicators 459 */ 460 static void set_port_led( 461 struct usb_hub *hub, 462 int port1, 463 int selector 464 ) 465 { 466 int status = set_port_feature(hub->hdev, (selector << 8) | port1, 467 USB_PORT_FEAT_INDICATOR); 468 if (status < 0) 469 dev_dbg (hub->intfdev, 470 "port %d indicator %s status %d\n", 471 port1, 472 ({ char *s; switch (selector) { 473 case HUB_LED_AMBER: s = "amber"; break; 474 case HUB_LED_GREEN: s = "green"; break; 475 case HUB_LED_OFF: s = "off"; break; 476 case HUB_LED_AUTO: s = "auto"; break; 477 default: s = "??"; break; 478 }; s; }), 479 status); 480 } 481 482 #define LED_CYCLE_PERIOD ((2*HZ)/3) 483 484 static void led_work (struct work_struct *work) 485 { 486 struct usb_hub *hub = 487 container_of(work, struct usb_hub, leds.work); 488 struct usb_device *hdev = hub->hdev; 489 unsigned i; 490 unsigned changed = 0; 491 int cursor = -1; 492 493 if (hdev->state != USB_STATE_CONFIGURED || hub->quiescing) 494 return; 495 496 for (i = 0; i < hub->descriptor->bNbrPorts; i++) { 497 unsigned selector, mode; 498 499 /* 30%-50% duty cycle */ 500 501 switch (hub->indicator[i]) { 502 /* cycle marker */ 503 case INDICATOR_CYCLE: 504 cursor = i; 505 selector = HUB_LED_AUTO; 506 mode = INDICATOR_AUTO; 507 break; 508 /* blinking green = sw attention */ 509 case INDICATOR_GREEN_BLINK: 510 selector = HUB_LED_GREEN; 511 mode = INDICATOR_GREEN_BLINK_OFF; 512 break; 513 case INDICATOR_GREEN_BLINK_OFF: 514 selector = HUB_LED_OFF; 515 mode = INDICATOR_GREEN_BLINK; 516 break; 517 /* blinking amber = hw attention */ 518 case INDICATOR_AMBER_BLINK: 519 selector = HUB_LED_AMBER; 520 mode = INDICATOR_AMBER_BLINK_OFF; 521 break; 522 case INDICATOR_AMBER_BLINK_OFF: 523 selector = HUB_LED_OFF; 524 mode = INDICATOR_AMBER_BLINK; 525 break; 526 /* blink green/amber = reserved */ 527 case INDICATOR_ALT_BLINK: 528 selector = HUB_LED_GREEN; 529 mode = INDICATOR_ALT_BLINK_OFF; 530 break; 531 case INDICATOR_ALT_BLINK_OFF: 532 selector = HUB_LED_AMBER; 533 mode = INDICATOR_ALT_BLINK; 534 break; 535 default: 536 continue; 537 } 538 if (selector != HUB_LED_AUTO) 539 changed = 1; 540 set_port_led(hub, i + 1, selector); 541 hub->indicator[i] = mode; 542 } 543 if (!changed && blinkenlights) { 544 cursor++; 545 cursor %= hub->descriptor->bNbrPorts; 546 set_port_led(hub, cursor + 1, HUB_LED_GREEN); 547 hub->indicator[cursor] = INDICATOR_CYCLE; 548 changed++; 549 } 550 if (changed) 551 schedule_delayed_work(&hub->leds, LED_CYCLE_PERIOD); 552 } 553 554 /* use a short timeout for hub/port status fetches */ 555 #define USB_STS_TIMEOUT 1000 556 #define USB_STS_RETRIES 5 557 558 /* 559 * USB 2.0 spec Section 11.24.2.6 560 */ 561 static int get_hub_status(struct usb_device *hdev, 562 struct usb_hub_status *data) 563 { 564 int i, status = -ETIMEDOUT; 565 566 for (i = 0; i < USB_STS_RETRIES && 567 (status == -ETIMEDOUT || status == -EPIPE); i++) { 568 status = usb_control_msg(hdev, usb_rcvctrlpipe(hdev, 0), 569 USB_REQ_GET_STATUS, USB_DIR_IN | USB_RT_HUB, 0, 0, 570 data, sizeof(*data), USB_STS_TIMEOUT); 571 } 572 return status; 573 } 574 575 /* 576 * USB 2.0 spec Section 11.24.2.7 577 */ 578 static int get_port_status(struct usb_device *hdev, int port1, 579 struct usb_port_status *data) 580 { 581 int i, status = -ETIMEDOUT; 582 583 for (i = 0; i < USB_STS_RETRIES && 584 (status == -ETIMEDOUT || status == -EPIPE); i++) { 585 status = usb_control_msg(hdev, usb_rcvctrlpipe(hdev, 0), 586 USB_REQ_GET_STATUS, USB_DIR_IN | USB_RT_PORT, 0, port1, 587 data, sizeof(*data), USB_STS_TIMEOUT); 588 } 589 return status; 590 } 591 592 static int hub_port_status(struct usb_hub *hub, int port1, 593 u16 *status, u16 *change) 594 { 595 int ret; 596 597 mutex_lock(&hub->status_mutex); 598 ret = get_port_status(hub->hdev, port1, &hub->status->port); 599 if (ret < 4) { 600 dev_err(hub->intfdev, 601 "%s failed (err = %d)\n", __func__, ret); 602 if (ret >= 0) 603 ret = -EIO; 604 } else { 605 *status = le16_to_cpu(hub->status->port.wPortStatus); 606 *change = le16_to_cpu(hub->status->port.wPortChange); 607 608 ret = 0; 609 } 610 mutex_unlock(&hub->status_mutex); 611 return ret; 612 } 613 614 static void kick_khubd(struct usb_hub *hub) 615 { 616 unsigned long flags; 617 618 spin_lock_irqsave(&hub_event_lock, flags); 619 if (!hub->disconnected && list_empty(&hub->event_list)) { 620 list_add_tail(&hub->event_list, &hub_event_list); 621 622 /* Suppress autosuspend until khubd runs */ 623 usb_autopm_get_interface_no_resume( 624 to_usb_interface(hub->intfdev)); 625 wake_up(&khubd_wait); 626 } 627 spin_unlock_irqrestore(&hub_event_lock, flags); 628 } 629 630 void usb_kick_khubd(struct usb_device *hdev) 631 { 632 struct usb_hub *hub = hdev_to_hub(hdev); 633 634 if (hub) 635 kick_khubd(hub); 636 } 637 638 /* 639 * Let the USB core know that a USB 3.0 device has sent a Function Wake Device 640 * Notification, which indicates it had initiated remote wakeup. 641 * 642 * USB 3.0 hubs do not report the port link state change from U3 to U0 when the 643 * device initiates resume, so the USB core will not receive notice of the 644 * resume through the normal hub interrupt URB. 645 */ 646 void usb_wakeup_notification(struct usb_device *hdev, 647 unsigned int portnum) 648 { 649 struct usb_hub *hub; 650 651 if (!hdev) 652 return; 653 654 hub = hdev_to_hub(hdev); 655 if (hub) { 656 set_bit(portnum, hub->wakeup_bits); 657 kick_khubd(hub); 658 } 659 } 660 EXPORT_SYMBOL_GPL(usb_wakeup_notification); 661 662 /* completion function, fires on port status changes and various faults */ 663 static void hub_irq(struct urb *urb) 664 { 665 struct usb_hub *hub = urb->context; 666 int status = urb->status; 667 unsigned i; 668 unsigned long bits; 669 670 switch (status) { 671 case -ENOENT: /* synchronous unlink */ 672 case -ECONNRESET: /* async unlink */ 673 case -ESHUTDOWN: /* hardware going away */ 674 return; 675 676 default: /* presumably an error */ 677 /* Cause a hub reset after 10 consecutive errors */ 678 dev_dbg (hub->intfdev, "transfer --> %d\n", status); 679 if ((++hub->nerrors < 10) || hub->error) 680 goto resubmit; 681 hub->error = status; 682 /* FALL THROUGH */ 683 684 /* let khubd handle things */ 685 case 0: /* we got data: port status changed */ 686 bits = 0; 687 for (i = 0; i < urb->actual_length; ++i) 688 bits |= ((unsigned long) ((*hub->buffer)[i])) 689 << (i*8); 690 hub->event_bits[0] = bits; 691 break; 692 } 693 694 hub->nerrors = 0; 695 696 /* Something happened, let khubd figure it out */ 697 kick_khubd(hub); 698 699 resubmit: 700 if (hub->quiescing) 701 return; 702 703 if ((status = usb_submit_urb (hub->urb, GFP_ATOMIC)) != 0 704 && status != -ENODEV && status != -EPERM) 705 dev_err (hub->intfdev, "resubmit --> %d\n", status); 706 } 707 708 /* USB 2.0 spec Section 11.24.2.3 */ 709 static inline int 710 hub_clear_tt_buffer (struct usb_device *hdev, u16 devinfo, u16 tt) 711 { 712 return usb_control_msg(hdev, usb_sndctrlpipe(hdev, 0), 713 HUB_CLEAR_TT_BUFFER, USB_RT_PORT, devinfo, 714 tt, NULL, 0, 1000); 715 } 716 717 /* 718 * enumeration blocks khubd for a long time. we use keventd instead, since 719 * long blocking there is the exception, not the rule. accordingly, HCDs 720 * talking to TTs must queue control transfers (not just bulk and iso), so 721 * both can talk to the same hub concurrently. 722 */ 723 static void hub_tt_work(struct work_struct *work) 724 { 725 struct usb_hub *hub = 726 container_of(work, struct usb_hub, tt.clear_work); 727 unsigned long flags; 728 int limit = 100; 729 730 spin_lock_irqsave (&hub->tt.lock, flags); 731 while (--limit && !list_empty (&hub->tt.clear_list)) { 732 struct list_head *next; 733 struct usb_tt_clear *clear; 734 struct usb_device *hdev = hub->hdev; 735 const struct hc_driver *drv; 736 int status; 737 738 next = hub->tt.clear_list.next; 739 clear = list_entry (next, struct usb_tt_clear, clear_list); 740 list_del (&clear->clear_list); 741 742 /* drop lock so HCD can concurrently report other TT errors */ 743 spin_unlock_irqrestore (&hub->tt.lock, flags); 744 status = hub_clear_tt_buffer (hdev, clear->devinfo, clear->tt); 745 if (status) 746 dev_err (&hdev->dev, 747 "clear tt %d (%04x) error %d\n", 748 clear->tt, clear->devinfo, status); 749 750 /* Tell the HCD, even if the operation failed */ 751 drv = clear->hcd->driver; 752 if (drv->clear_tt_buffer_complete) 753 (drv->clear_tt_buffer_complete)(clear->hcd, clear->ep); 754 755 kfree(clear); 756 spin_lock_irqsave(&hub->tt.lock, flags); 757 } 758 spin_unlock_irqrestore (&hub->tt.lock, flags); 759 } 760 761 /** 762 * usb_hub_clear_tt_buffer - clear control/bulk TT state in high speed hub 763 * @urb: an URB associated with the failed or incomplete split transaction 764 * 765 * High speed HCDs use this to tell the hub driver that some split control or 766 * bulk transaction failed in a way that requires clearing internal state of 767 * a transaction translator. This is normally detected (and reported) from 768 * interrupt context. 769 * 770 * It may not be possible for that hub to handle additional full (or low) 771 * speed transactions until that state is fully cleared out. 772 */ 773 int usb_hub_clear_tt_buffer(struct urb *urb) 774 { 775 struct usb_device *udev = urb->dev; 776 int pipe = urb->pipe; 777 struct usb_tt *tt = udev->tt; 778 unsigned long flags; 779 struct usb_tt_clear *clear; 780 781 /* we've got to cope with an arbitrary number of pending TT clears, 782 * since each TT has "at least two" buffers that can need it (and 783 * there can be many TTs per hub). even if they're uncommon. 784 */ 785 if ((clear = kmalloc (sizeof *clear, GFP_ATOMIC)) == NULL) { 786 dev_err (&udev->dev, "can't save CLEAR_TT_BUFFER state\n"); 787 /* FIXME recover somehow ... RESET_TT? */ 788 return -ENOMEM; 789 } 790 791 /* info that CLEAR_TT_BUFFER needs */ 792 clear->tt = tt->multi ? udev->ttport : 1; 793 clear->devinfo = usb_pipeendpoint (pipe); 794 clear->devinfo |= udev->devnum << 4; 795 clear->devinfo |= usb_pipecontrol (pipe) 796 ? (USB_ENDPOINT_XFER_CONTROL << 11) 797 : (USB_ENDPOINT_XFER_BULK << 11); 798 if (usb_pipein (pipe)) 799 clear->devinfo |= 1 << 15; 800 801 /* info for completion callback */ 802 clear->hcd = bus_to_hcd(udev->bus); 803 clear->ep = urb->ep; 804 805 /* tell keventd to clear state for this TT */ 806 spin_lock_irqsave (&tt->lock, flags); 807 list_add_tail (&clear->clear_list, &tt->clear_list); 808 schedule_work(&tt->clear_work); 809 spin_unlock_irqrestore (&tt->lock, flags); 810 return 0; 811 } 812 EXPORT_SYMBOL_GPL(usb_hub_clear_tt_buffer); 813 814 /* If do_delay is false, return the number of milliseconds the caller 815 * needs to delay. 816 */ 817 static unsigned hub_power_on(struct usb_hub *hub, bool do_delay) 818 { 819 int port1; 820 unsigned pgood_delay = hub->descriptor->bPwrOn2PwrGood * 2; 821 unsigned delay; 822 u16 wHubCharacteristics = 823 le16_to_cpu(hub->descriptor->wHubCharacteristics); 824 825 /* Enable power on each port. Some hubs have reserved values 826 * of LPSM (> 2) in their descriptors, even though they are 827 * USB 2.0 hubs. Some hubs do not implement port-power switching 828 * but only emulate it. In all cases, the ports won't work 829 * unless we send these messages to the hub. 830 */ 831 if ((wHubCharacteristics & HUB_CHAR_LPSM) < 2) 832 dev_dbg(hub->intfdev, "enabling power on all ports\n"); 833 else 834 dev_dbg(hub->intfdev, "trying to enable port power on " 835 "non-switchable hub\n"); 836 for (port1 = 1; port1 <= hub->descriptor->bNbrPorts; port1++) 837 set_port_feature(hub->hdev, port1, USB_PORT_FEAT_POWER); 838 839 /* Wait at least 100 msec for power to become stable */ 840 delay = max(pgood_delay, (unsigned) 100); 841 if (do_delay) 842 msleep(delay); 843 return delay; 844 } 845 846 static int hub_hub_status(struct usb_hub *hub, 847 u16 *status, u16 *change) 848 { 849 int ret; 850 851 mutex_lock(&hub->status_mutex); 852 ret = get_hub_status(hub->hdev, &hub->status->hub); 853 if (ret < 0) 854 dev_err (hub->intfdev, 855 "%s failed (err = %d)\n", __func__, ret); 856 else { 857 *status = le16_to_cpu(hub->status->hub.wHubStatus); 858 *change = le16_to_cpu(hub->status->hub.wHubChange); 859 ret = 0; 860 } 861 mutex_unlock(&hub->status_mutex); 862 return ret; 863 } 864 865 static int hub_port_disable(struct usb_hub *hub, int port1, int set_state) 866 { 867 struct usb_device *hdev = hub->hdev; 868 int ret = 0; 869 870 if (hdev->children[port1-1] && set_state) 871 usb_set_device_state(hdev->children[port1-1], 872 USB_STATE_NOTATTACHED); 873 if (!hub->error && !hub_is_superspeed(hub->hdev)) 874 ret = clear_port_feature(hdev, port1, USB_PORT_FEAT_ENABLE); 875 if (ret) 876 dev_err(hub->intfdev, "cannot disable port %d (err = %d)\n", 877 port1, ret); 878 return ret; 879 } 880 881 /* 882 * Disable a port and mark a logical connect-change event, so that some 883 * time later khubd will disconnect() any existing usb_device on the port 884 * and will re-enumerate if there actually is a device attached. 885 */ 886 static void hub_port_logical_disconnect(struct usb_hub *hub, int port1) 887 { 888 dev_dbg(hub->intfdev, "logical disconnect on port %d\n", port1); 889 hub_port_disable(hub, port1, 1); 890 891 /* FIXME let caller ask to power down the port: 892 * - some devices won't enumerate without a VBUS power cycle 893 * - SRP saves power that way 894 * - ... new call, TBD ... 895 * That's easy if this hub can switch power per-port, and 896 * khubd reactivates the port later (timer, SRP, etc). 897 * Powerdown must be optional, because of reset/DFU. 898 */ 899 900 set_bit(port1, hub->change_bits); 901 kick_khubd(hub); 902 } 903 904 /** 905 * usb_remove_device - disable a device's port on its parent hub 906 * @udev: device to be disabled and removed 907 * Context: @udev locked, must be able to sleep. 908 * 909 * After @udev's port has been disabled, khubd is notified and it will 910 * see that the device has been disconnected. When the device is 911 * physically unplugged and something is plugged in, the events will 912 * be received and processed normally. 913 */ 914 int usb_remove_device(struct usb_device *udev) 915 { 916 struct usb_hub *hub; 917 struct usb_interface *intf; 918 919 if (!udev->parent) /* Can't remove a root hub */ 920 return -EINVAL; 921 hub = hdev_to_hub(udev->parent); 922 intf = to_usb_interface(hub->intfdev); 923 924 usb_autopm_get_interface(intf); 925 set_bit(udev->portnum, hub->removed_bits); 926 hub_port_logical_disconnect(hub, udev->portnum); 927 usb_autopm_put_interface(intf); 928 return 0; 929 } 930 931 enum hub_activation_type { 932 HUB_INIT, HUB_INIT2, HUB_INIT3, /* INITs must come first */ 933 HUB_POST_RESET, HUB_RESUME, HUB_RESET_RESUME, 934 }; 935 936 static void hub_init_func2(struct work_struct *ws); 937 static void hub_init_func3(struct work_struct *ws); 938 939 static void hub_activate(struct usb_hub *hub, enum hub_activation_type type) 940 { 941 struct usb_device *hdev = hub->hdev; 942 struct usb_hcd *hcd; 943 int ret; 944 int port1; 945 int status; 946 bool need_debounce_delay = false; 947 unsigned delay; 948 949 /* Continue a partial initialization */ 950 if (type == HUB_INIT2) 951 goto init2; 952 if (type == HUB_INIT3) 953 goto init3; 954 955 /* The superspeed hub except for root hub has to use Hub Depth 956 * value as an offset into the route string to locate the bits 957 * it uses to determine the downstream port number. So hub driver 958 * should send a set hub depth request to superspeed hub after 959 * the superspeed hub is set configuration in initialization or 960 * reset procedure. 961 * 962 * After a resume, port power should still be on. 963 * For any other type of activation, turn it on. 964 */ 965 if (type != HUB_RESUME) { 966 if (hdev->parent && hub_is_superspeed(hdev)) { 967 ret = usb_control_msg(hdev, usb_sndctrlpipe(hdev, 0), 968 HUB_SET_DEPTH, USB_RT_HUB, 969 hdev->level - 1, 0, NULL, 0, 970 USB_CTRL_SET_TIMEOUT); 971 if (ret < 0) 972 dev_err(hub->intfdev, 973 "set hub depth failed\n"); 974 } 975 976 /* Speed up system boot by using a delayed_work for the 977 * hub's initial power-up delays. This is pretty awkward 978 * and the implementation looks like a home-brewed sort of 979 * setjmp/longjmp, but it saves at least 100 ms for each 980 * root hub (assuming usbcore is compiled into the kernel 981 * rather than as a module). It adds up. 982 * 983 * This can't be done for HUB_RESUME or HUB_RESET_RESUME 984 * because for those activation types the ports have to be 985 * operational when we return. In theory this could be done 986 * for HUB_POST_RESET, but it's easier not to. 987 */ 988 if (type == HUB_INIT) { 989 delay = hub_power_on(hub, false); 990 PREPARE_DELAYED_WORK(&hub->init_work, hub_init_func2); 991 schedule_delayed_work(&hub->init_work, 992 msecs_to_jiffies(delay)); 993 994 /* Suppress autosuspend until init is done */ 995 usb_autopm_get_interface_no_resume( 996 to_usb_interface(hub->intfdev)); 997 return; /* Continues at init2: below */ 998 } else if (type == HUB_RESET_RESUME) { 999 /* The internal host controller state for the hub device 1000 * may be gone after a host power loss on system resume. 1001 * Update the device's info so the HW knows it's a hub. 1002 */ 1003 hcd = bus_to_hcd(hdev->bus); 1004 if (hcd->driver->update_hub_device) { 1005 ret = hcd->driver->update_hub_device(hcd, hdev, 1006 &hub->tt, GFP_NOIO); 1007 if (ret < 0) { 1008 dev_err(hub->intfdev, "Host not " 1009 "accepting hub info " 1010 "update.\n"); 1011 dev_err(hub->intfdev, "LS/FS devices " 1012 "and hubs may not work " 1013 "under this hub\n."); 1014 } 1015 } 1016 hub_power_on(hub, true); 1017 } else { 1018 hub_power_on(hub, true); 1019 } 1020 } 1021 init2: 1022 1023 /* Check each port and set hub->change_bits to let khubd know 1024 * which ports need attention. 1025 */ 1026 for (port1 = 1; port1 <= hdev->maxchild; ++port1) { 1027 struct usb_device *udev = hdev->children[port1-1]; 1028 u16 portstatus, portchange; 1029 1030 portstatus = portchange = 0; 1031 status = hub_port_status(hub, port1, &portstatus, &portchange); 1032 if (udev || (portstatus & USB_PORT_STAT_CONNECTION)) 1033 dev_dbg(hub->intfdev, 1034 "port %d: status %04x change %04x\n", 1035 port1, portstatus, portchange); 1036 1037 /* After anything other than HUB_RESUME (i.e., initialization 1038 * or any sort of reset), every port should be disabled. 1039 * Unconnected ports should likewise be disabled (paranoia), 1040 * and so should ports for which we have no usb_device. 1041 */ 1042 if ((portstatus & USB_PORT_STAT_ENABLE) && ( 1043 type != HUB_RESUME || 1044 !(portstatus & USB_PORT_STAT_CONNECTION) || 1045 !udev || 1046 udev->state == USB_STATE_NOTATTACHED)) { 1047 /* 1048 * USB3 protocol ports will automatically transition 1049 * to Enabled state when detect an USB3.0 device attach. 1050 * Do not disable USB3 protocol ports. 1051 */ 1052 if (!hub_is_superspeed(hdev)) { 1053 clear_port_feature(hdev, port1, 1054 USB_PORT_FEAT_ENABLE); 1055 portstatus &= ~USB_PORT_STAT_ENABLE; 1056 } else { 1057 /* Pretend that power was lost for USB3 devs */ 1058 portstatus &= ~USB_PORT_STAT_ENABLE; 1059 } 1060 } 1061 1062 /* Clear status-change flags; we'll debounce later */ 1063 if (portchange & USB_PORT_STAT_C_CONNECTION) { 1064 need_debounce_delay = true; 1065 clear_port_feature(hub->hdev, port1, 1066 USB_PORT_FEAT_C_CONNECTION); 1067 } 1068 if (portchange & USB_PORT_STAT_C_ENABLE) { 1069 need_debounce_delay = true; 1070 clear_port_feature(hub->hdev, port1, 1071 USB_PORT_FEAT_C_ENABLE); 1072 } 1073 if ((portchange & USB_PORT_STAT_C_BH_RESET) && 1074 hub_is_superspeed(hub->hdev)) { 1075 need_debounce_delay = true; 1076 clear_port_feature(hub->hdev, port1, 1077 USB_PORT_FEAT_C_BH_PORT_RESET); 1078 } 1079 /* We can forget about a "removed" device when there's a 1080 * physical disconnect or the connect status changes. 1081 */ 1082 if (!(portstatus & USB_PORT_STAT_CONNECTION) || 1083 (portchange & USB_PORT_STAT_C_CONNECTION)) 1084 clear_bit(port1, hub->removed_bits); 1085 1086 if (!udev || udev->state == USB_STATE_NOTATTACHED) { 1087 /* Tell khubd to disconnect the device or 1088 * check for a new connection 1089 */ 1090 if (udev || (portstatus & USB_PORT_STAT_CONNECTION)) 1091 set_bit(port1, hub->change_bits); 1092 1093 } else if (portstatus & USB_PORT_STAT_ENABLE) { 1094 bool port_resumed = (portstatus & 1095 USB_PORT_STAT_LINK_STATE) == 1096 USB_SS_PORT_LS_U0; 1097 /* The power session apparently survived the resume. 1098 * If there was an overcurrent or suspend change 1099 * (i.e., remote wakeup request), have khubd 1100 * take care of it. Look at the port link state 1101 * for USB 3.0 hubs, since they don't have a suspend 1102 * change bit, and they don't set the port link change 1103 * bit on device-initiated resume. 1104 */ 1105 if (portchange || (hub_is_superspeed(hub->hdev) && 1106 port_resumed)) 1107 set_bit(port1, hub->change_bits); 1108 1109 } else if (udev->persist_enabled) { 1110 #ifdef CONFIG_PM 1111 udev->reset_resume = 1; 1112 #endif 1113 set_bit(port1, hub->change_bits); 1114 1115 } else { 1116 /* The power session is gone; tell khubd */ 1117 usb_set_device_state(udev, USB_STATE_NOTATTACHED); 1118 set_bit(port1, hub->change_bits); 1119 } 1120 } 1121 1122 /* If no port-status-change flags were set, we don't need any 1123 * debouncing. If flags were set we can try to debounce the 1124 * ports all at once right now, instead of letting khubd do them 1125 * one at a time later on. 1126 * 1127 * If any port-status changes do occur during this delay, khubd 1128 * will see them later and handle them normally. 1129 */ 1130 if (need_debounce_delay) { 1131 delay = HUB_DEBOUNCE_STABLE; 1132 1133 /* Don't do a long sleep inside a workqueue routine */ 1134 if (type == HUB_INIT2) { 1135 PREPARE_DELAYED_WORK(&hub->init_work, hub_init_func3); 1136 schedule_delayed_work(&hub->init_work, 1137 msecs_to_jiffies(delay)); 1138 return; /* Continues at init3: below */ 1139 } else { 1140 msleep(delay); 1141 } 1142 } 1143 init3: 1144 hub->quiescing = 0; 1145 1146 status = usb_submit_urb(hub->urb, GFP_NOIO); 1147 if (status < 0) 1148 dev_err(hub->intfdev, "activate --> %d\n", status); 1149 if (hub->has_indicators && blinkenlights) 1150 schedule_delayed_work(&hub->leds, LED_CYCLE_PERIOD); 1151 1152 /* Scan all ports that need attention */ 1153 kick_khubd(hub); 1154 1155 /* Allow autosuspend if it was suppressed */ 1156 if (type <= HUB_INIT3) 1157 usb_autopm_put_interface_async(to_usb_interface(hub->intfdev)); 1158 } 1159 1160 /* Implement the continuations for the delays above */ 1161 static void hub_init_func2(struct work_struct *ws) 1162 { 1163 struct usb_hub *hub = container_of(ws, struct usb_hub, init_work.work); 1164 1165 hub_activate(hub, HUB_INIT2); 1166 } 1167 1168 static void hub_init_func3(struct work_struct *ws) 1169 { 1170 struct usb_hub *hub = container_of(ws, struct usb_hub, init_work.work); 1171 1172 hub_activate(hub, HUB_INIT3); 1173 } 1174 1175 enum hub_quiescing_type { 1176 HUB_DISCONNECT, HUB_PRE_RESET, HUB_SUSPEND 1177 }; 1178 1179 static void hub_quiesce(struct usb_hub *hub, enum hub_quiescing_type type) 1180 { 1181 struct usb_device *hdev = hub->hdev; 1182 int i; 1183 1184 cancel_delayed_work_sync(&hub->init_work); 1185 1186 /* khubd and related activity won't re-trigger */ 1187 hub->quiescing = 1; 1188 1189 if (type != HUB_SUSPEND) { 1190 /* Disconnect all the children */ 1191 for (i = 0; i < hdev->maxchild; ++i) { 1192 if (hdev->children[i]) 1193 usb_disconnect(&hdev->children[i]); 1194 } 1195 } 1196 1197 /* Stop khubd and related activity */ 1198 usb_kill_urb(hub->urb); 1199 if (hub->has_indicators) 1200 cancel_delayed_work_sync(&hub->leds); 1201 if (hub->tt.hub) 1202 cancel_work_sync(&hub->tt.clear_work); 1203 } 1204 1205 /* caller has locked the hub device */ 1206 static int hub_pre_reset(struct usb_interface *intf) 1207 { 1208 struct usb_hub *hub = usb_get_intfdata(intf); 1209 1210 hub_quiesce(hub, HUB_PRE_RESET); 1211 return 0; 1212 } 1213 1214 /* caller has locked the hub device */ 1215 static int hub_post_reset(struct usb_interface *intf) 1216 { 1217 struct usb_hub *hub = usb_get_intfdata(intf); 1218 1219 hub_activate(hub, HUB_POST_RESET); 1220 return 0; 1221 } 1222 1223 static int hub_configure(struct usb_hub *hub, 1224 struct usb_endpoint_descriptor *endpoint) 1225 { 1226 struct usb_hcd *hcd; 1227 struct usb_device *hdev = hub->hdev; 1228 struct device *hub_dev = hub->intfdev; 1229 u16 hubstatus, hubchange; 1230 u16 wHubCharacteristics; 1231 unsigned int pipe; 1232 int maxp, ret; 1233 char *message = "out of memory"; 1234 1235 hub->buffer = kmalloc(sizeof(*hub->buffer), GFP_KERNEL); 1236 if (!hub->buffer) { 1237 ret = -ENOMEM; 1238 goto fail; 1239 } 1240 1241 hub->status = kmalloc(sizeof(*hub->status), GFP_KERNEL); 1242 if (!hub->status) { 1243 ret = -ENOMEM; 1244 goto fail; 1245 } 1246 mutex_init(&hub->status_mutex); 1247 1248 hub->descriptor = kmalloc(sizeof(*hub->descriptor), GFP_KERNEL); 1249 if (!hub->descriptor) { 1250 ret = -ENOMEM; 1251 goto fail; 1252 } 1253 1254 /* Request the entire hub descriptor. 1255 * hub->descriptor can handle USB_MAXCHILDREN ports, 1256 * but the hub can/will return fewer bytes here. 1257 */ 1258 ret = get_hub_descriptor(hdev, hub->descriptor); 1259 if (ret < 0) { 1260 message = "can't read hub descriptor"; 1261 goto fail; 1262 } else if (hub->descriptor->bNbrPorts > USB_MAXCHILDREN) { 1263 message = "hub has too many ports!"; 1264 ret = -ENODEV; 1265 goto fail; 1266 } 1267 1268 hdev->maxchild = hub->descriptor->bNbrPorts; 1269 dev_info (hub_dev, "%d port%s detected\n", hdev->maxchild, 1270 (hdev->maxchild == 1) ? "" : "s"); 1271 1272 hdev->children = kzalloc(hdev->maxchild * 1273 sizeof(struct usb_device *), GFP_KERNEL); 1274 hub->port_owners = kzalloc(hdev->maxchild * sizeof(void *), GFP_KERNEL); 1275 if (!hdev->children || !hub->port_owners) { 1276 ret = -ENOMEM; 1277 goto fail; 1278 } 1279 1280 wHubCharacteristics = le16_to_cpu(hub->descriptor->wHubCharacteristics); 1281 1282 /* FIXME for USB 3.0, skip for now */ 1283 if ((wHubCharacteristics & HUB_CHAR_COMPOUND) && 1284 !(hub_is_superspeed(hdev))) { 1285 int i; 1286 char portstr [USB_MAXCHILDREN + 1]; 1287 1288 for (i = 0; i < hdev->maxchild; i++) 1289 portstr[i] = hub->descriptor->u.hs.DeviceRemovable 1290 [((i + 1) / 8)] & (1 << ((i + 1) % 8)) 1291 ? 'F' : 'R'; 1292 portstr[hdev->maxchild] = 0; 1293 dev_dbg(hub_dev, "compound device; port removable status: %s\n", portstr); 1294 } else 1295 dev_dbg(hub_dev, "standalone hub\n"); 1296 1297 switch (wHubCharacteristics & HUB_CHAR_LPSM) { 1298 case HUB_CHAR_COMMON_LPSM: 1299 dev_dbg(hub_dev, "ganged power switching\n"); 1300 break; 1301 case HUB_CHAR_INDV_PORT_LPSM: 1302 dev_dbg(hub_dev, "individual port power switching\n"); 1303 break; 1304 case HUB_CHAR_NO_LPSM: 1305 case HUB_CHAR_LPSM: 1306 dev_dbg(hub_dev, "no power switching (usb 1.0)\n"); 1307 break; 1308 } 1309 1310 switch (wHubCharacteristics & HUB_CHAR_OCPM) { 1311 case HUB_CHAR_COMMON_OCPM: 1312 dev_dbg(hub_dev, "global over-current protection\n"); 1313 break; 1314 case HUB_CHAR_INDV_PORT_OCPM: 1315 dev_dbg(hub_dev, "individual port over-current protection\n"); 1316 break; 1317 case HUB_CHAR_NO_OCPM: 1318 case HUB_CHAR_OCPM: 1319 dev_dbg(hub_dev, "no over-current protection\n"); 1320 break; 1321 } 1322 1323 spin_lock_init (&hub->tt.lock); 1324 INIT_LIST_HEAD (&hub->tt.clear_list); 1325 INIT_WORK(&hub->tt.clear_work, hub_tt_work); 1326 switch (hdev->descriptor.bDeviceProtocol) { 1327 case USB_HUB_PR_FS: 1328 break; 1329 case USB_HUB_PR_HS_SINGLE_TT: 1330 dev_dbg(hub_dev, "Single TT\n"); 1331 hub->tt.hub = hdev; 1332 break; 1333 case USB_HUB_PR_HS_MULTI_TT: 1334 ret = usb_set_interface(hdev, 0, 1); 1335 if (ret == 0) { 1336 dev_dbg(hub_dev, "TT per port\n"); 1337 hub->tt.multi = 1; 1338 } else 1339 dev_err(hub_dev, "Using single TT (err %d)\n", 1340 ret); 1341 hub->tt.hub = hdev; 1342 break; 1343 case USB_HUB_PR_SS: 1344 /* USB 3.0 hubs don't have a TT */ 1345 break; 1346 default: 1347 dev_dbg(hub_dev, "Unrecognized hub protocol %d\n", 1348 hdev->descriptor.bDeviceProtocol); 1349 break; 1350 } 1351 1352 /* Note 8 FS bit times == (8 bits / 12000000 bps) ~= 666ns */ 1353 switch (wHubCharacteristics & HUB_CHAR_TTTT) { 1354 case HUB_TTTT_8_BITS: 1355 if (hdev->descriptor.bDeviceProtocol != 0) { 1356 hub->tt.think_time = 666; 1357 dev_dbg(hub_dev, "TT requires at most %d " 1358 "FS bit times (%d ns)\n", 1359 8, hub->tt.think_time); 1360 } 1361 break; 1362 case HUB_TTTT_16_BITS: 1363 hub->tt.think_time = 666 * 2; 1364 dev_dbg(hub_dev, "TT requires at most %d " 1365 "FS bit times (%d ns)\n", 1366 16, hub->tt.think_time); 1367 break; 1368 case HUB_TTTT_24_BITS: 1369 hub->tt.think_time = 666 * 3; 1370 dev_dbg(hub_dev, "TT requires at most %d " 1371 "FS bit times (%d ns)\n", 1372 24, hub->tt.think_time); 1373 break; 1374 case HUB_TTTT_32_BITS: 1375 hub->tt.think_time = 666 * 4; 1376 dev_dbg(hub_dev, "TT requires at most %d " 1377 "FS bit times (%d ns)\n", 1378 32, hub->tt.think_time); 1379 break; 1380 } 1381 1382 /* probe() zeroes hub->indicator[] */ 1383 if (wHubCharacteristics & HUB_CHAR_PORTIND) { 1384 hub->has_indicators = 1; 1385 dev_dbg(hub_dev, "Port indicators are supported\n"); 1386 } 1387 1388 dev_dbg(hub_dev, "power on to power good time: %dms\n", 1389 hub->descriptor->bPwrOn2PwrGood * 2); 1390 1391 /* power budgeting mostly matters with bus-powered hubs, 1392 * and battery-powered root hubs (may provide just 8 mA). 1393 */ 1394 ret = usb_get_status(hdev, USB_RECIP_DEVICE, 0, &hubstatus); 1395 if (ret < 2) { 1396 message = "can't get hub status"; 1397 goto fail; 1398 } 1399 le16_to_cpus(&hubstatus); 1400 if (hdev == hdev->bus->root_hub) { 1401 if (hdev->bus_mA == 0 || hdev->bus_mA >= 500) 1402 hub->mA_per_port = 500; 1403 else { 1404 hub->mA_per_port = hdev->bus_mA; 1405 hub->limited_power = 1; 1406 } 1407 } else if ((hubstatus & (1 << USB_DEVICE_SELF_POWERED)) == 0) { 1408 dev_dbg(hub_dev, "hub controller current requirement: %dmA\n", 1409 hub->descriptor->bHubContrCurrent); 1410 hub->limited_power = 1; 1411 if (hdev->maxchild > 0) { 1412 int remaining = hdev->bus_mA - 1413 hub->descriptor->bHubContrCurrent; 1414 1415 if (remaining < hdev->maxchild * 100) 1416 dev_warn(hub_dev, 1417 "insufficient power available " 1418 "to use all downstream ports\n"); 1419 hub->mA_per_port = 100; /* 7.2.1.1 */ 1420 } 1421 } else { /* Self-powered external hub */ 1422 /* FIXME: What about battery-powered external hubs that 1423 * provide less current per port? */ 1424 hub->mA_per_port = 500; 1425 } 1426 if (hub->mA_per_port < 500) 1427 dev_dbg(hub_dev, "%umA bus power budget for each child\n", 1428 hub->mA_per_port); 1429 1430 /* Update the HCD's internal representation of this hub before khubd 1431 * starts getting port status changes for devices under the hub. 1432 */ 1433 hcd = bus_to_hcd(hdev->bus); 1434 if (hcd->driver->update_hub_device) { 1435 ret = hcd->driver->update_hub_device(hcd, hdev, 1436 &hub->tt, GFP_KERNEL); 1437 if (ret < 0) { 1438 message = "can't update HCD hub info"; 1439 goto fail; 1440 } 1441 } 1442 1443 ret = hub_hub_status(hub, &hubstatus, &hubchange); 1444 if (ret < 0) { 1445 message = "can't get hub status"; 1446 goto fail; 1447 } 1448 1449 /* local power status reports aren't always correct */ 1450 if (hdev->actconfig->desc.bmAttributes & USB_CONFIG_ATT_SELFPOWER) 1451 dev_dbg(hub_dev, "local power source is %s\n", 1452 (hubstatus & HUB_STATUS_LOCAL_POWER) 1453 ? "lost (inactive)" : "good"); 1454 1455 if ((wHubCharacteristics & HUB_CHAR_OCPM) == 0) 1456 dev_dbg(hub_dev, "%sover-current condition exists\n", 1457 (hubstatus & HUB_STATUS_OVERCURRENT) ? "" : "no "); 1458 1459 /* set up the interrupt endpoint 1460 * We use the EP's maxpacket size instead of (PORTS+1+7)/8 1461 * bytes as USB2.0[11.12.3] says because some hubs are known 1462 * to send more data (and thus cause overflow). For root hubs, 1463 * maxpktsize is defined in hcd.c's fake endpoint descriptors 1464 * to be big enough for at least USB_MAXCHILDREN ports. */ 1465 pipe = usb_rcvintpipe(hdev, endpoint->bEndpointAddress); 1466 maxp = usb_maxpacket(hdev, pipe, usb_pipeout(pipe)); 1467 1468 if (maxp > sizeof(*hub->buffer)) 1469 maxp = sizeof(*hub->buffer); 1470 1471 hub->urb = usb_alloc_urb(0, GFP_KERNEL); 1472 if (!hub->urb) { 1473 ret = -ENOMEM; 1474 goto fail; 1475 } 1476 1477 usb_fill_int_urb(hub->urb, hdev, pipe, *hub->buffer, maxp, hub_irq, 1478 hub, endpoint->bInterval); 1479 1480 /* maybe cycle the hub leds */ 1481 if (hub->has_indicators && blinkenlights) 1482 hub->indicator [0] = INDICATOR_CYCLE; 1483 1484 hub_activate(hub, HUB_INIT); 1485 return 0; 1486 1487 fail: 1488 dev_err (hub_dev, "config failed, %s (err %d)\n", 1489 message, ret); 1490 /* hub_disconnect() frees urb and descriptor */ 1491 return ret; 1492 } 1493 1494 static void hub_release(struct kref *kref) 1495 { 1496 struct usb_hub *hub = container_of(kref, struct usb_hub, kref); 1497 1498 usb_put_intf(to_usb_interface(hub->intfdev)); 1499 kfree(hub); 1500 } 1501 1502 static unsigned highspeed_hubs; 1503 1504 static void hub_disconnect(struct usb_interface *intf) 1505 { 1506 struct usb_hub *hub = usb_get_intfdata(intf); 1507 struct usb_device *hdev = interface_to_usbdev(intf); 1508 1509 /* Take the hub off the event list and don't let it be added again */ 1510 spin_lock_irq(&hub_event_lock); 1511 if (!list_empty(&hub->event_list)) { 1512 list_del_init(&hub->event_list); 1513 usb_autopm_put_interface_no_suspend(intf); 1514 } 1515 hub->disconnected = 1; 1516 spin_unlock_irq(&hub_event_lock); 1517 1518 /* Disconnect all children and quiesce the hub */ 1519 hub->error = 0; 1520 hub_quiesce(hub, HUB_DISCONNECT); 1521 1522 usb_set_intfdata (intf, NULL); 1523 hub->hdev->maxchild = 0; 1524 1525 if (hub->hdev->speed == USB_SPEED_HIGH) 1526 highspeed_hubs--; 1527 1528 usb_free_urb(hub->urb); 1529 kfree(hdev->children); 1530 kfree(hub->port_owners); 1531 kfree(hub->descriptor); 1532 kfree(hub->status); 1533 kfree(hub->buffer); 1534 1535 kref_put(&hub->kref, hub_release); 1536 } 1537 1538 static int hub_probe(struct usb_interface *intf, const struct usb_device_id *id) 1539 { 1540 struct usb_host_interface *desc; 1541 struct usb_endpoint_descriptor *endpoint; 1542 struct usb_device *hdev; 1543 struct usb_hub *hub; 1544 1545 desc = intf->cur_altsetting; 1546 hdev = interface_to_usbdev(intf); 1547 1548 /* Hubs have proper suspend/resume support. */ 1549 usb_enable_autosuspend(hdev); 1550 1551 if (hdev->level == MAX_TOPO_LEVEL) { 1552 dev_err(&intf->dev, 1553 "Unsupported bus topology: hub nested too deep\n"); 1554 return -E2BIG; 1555 } 1556 1557 #ifdef CONFIG_USB_OTG_BLACKLIST_HUB 1558 if (hdev->parent) { 1559 dev_warn(&intf->dev, "ignoring external hub\n"); 1560 return -ENODEV; 1561 } 1562 #endif 1563 1564 /* Some hubs have a subclass of 1, which AFAICT according to the */ 1565 /* specs is not defined, but it works */ 1566 if ((desc->desc.bInterfaceSubClass != 0) && 1567 (desc->desc.bInterfaceSubClass != 1)) { 1568 descriptor_error: 1569 dev_err (&intf->dev, "bad descriptor, ignoring hub\n"); 1570 return -EIO; 1571 } 1572 1573 /* Multiple endpoints? What kind of mutant ninja-hub is this? */ 1574 if (desc->desc.bNumEndpoints != 1) 1575 goto descriptor_error; 1576 1577 endpoint = &desc->endpoint[0].desc; 1578 1579 /* If it's not an interrupt in endpoint, we'd better punt! */ 1580 if (!usb_endpoint_is_int_in(endpoint)) 1581 goto descriptor_error; 1582 1583 /* We found a hub */ 1584 dev_info (&intf->dev, "USB hub found\n"); 1585 1586 hub = kzalloc(sizeof(*hub), GFP_KERNEL); 1587 if (!hub) { 1588 dev_dbg (&intf->dev, "couldn't kmalloc hub struct\n"); 1589 return -ENOMEM; 1590 } 1591 1592 kref_init(&hub->kref); 1593 INIT_LIST_HEAD(&hub->event_list); 1594 hub->intfdev = &intf->dev; 1595 hub->hdev = hdev; 1596 INIT_DELAYED_WORK(&hub->leds, led_work); 1597 INIT_DELAYED_WORK(&hub->init_work, NULL); 1598 usb_get_intf(intf); 1599 1600 usb_set_intfdata (intf, hub); 1601 intf->needs_remote_wakeup = 1; 1602 1603 if (hdev->speed == USB_SPEED_HIGH) 1604 highspeed_hubs++; 1605 1606 if (hub_configure(hub, endpoint) >= 0) 1607 return 0; 1608 1609 hub_disconnect (intf); 1610 return -ENODEV; 1611 } 1612 1613 static int 1614 hub_ioctl(struct usb_interface *intf, unsigned int code, void *user_data) 1615 { 1616 struct usb_device *hdev = interface_to_usbdev (intf); 1617 1618 /* assert ifno == 0 (part of hub spec) */ 1619 switch (code) { 1620 case USBDEVFS_HUB_PORTINFO: { 1621 struct usbdevfs_hub_portinfo *info = user_data; 1622 int i; 1623 1624 spin_lock_irq(&device_state_lock); 1625 if (hdev->devnum <= 0) 1626 info->nports = 0; 1627 else { 1628 info->nports = hdev->maxchild; 1629 for (i = 0; i < info->nports; i++) { 1630 if (hdev->children[i] == NULL) 1631 info->port[i] = 0; 1632 else 1633 info->port[i] = 1634 hdev->children[i]->devnum; 1635 } 1636 } 1637 spin_unlock_irq(&device_state_lock); 1638 1639 return info->nports + 1; 1640 } 1641 1642 default: 1643 return -ENOSYS; 1644 } 1645 } 1646 1647 /* 1648 * Allow user programs to claim ports on a hub. When a device is attached 1649 * to one of these "claimed" ports, the program will "own" the device. 1650 */ 1651 static int find_port_owner(struct usb_device *hdev, unsigned port1, 1652 void ***ppowner) 1653 { 1654 if (hdev->state == USB_STATE_NOTATTACHED) 1655 return -ENODEV; 1656 if (port1 == 0 || port1 > hdev->maxchild) 1657 return -EINVAL; 1658 1659 /* This assumes that devices not managed by the hub driver 1660 * will always have maxchild equal to 0. 1661 */ 1662 *ppowner = &(hdev_to_hub(hdev)->port_owners[port1 - 1]); 1663 return 0; 1664 } 1665 1666 /* In the following three functions, the caller must hold hdev's lock */ 1667 int usb_hub_claim_port(struct usb_device *hdev, unsigned port1, void *owner) 1668 { 1669 int rc; 1670 void **powner; 1671 1672 rc = find_port_owner(hdev, port1, &powner); 1673 if (rc) 1674 return rc; 1675 if (*powner) 1676 return -EBUSY; 1677 *powner = owner; 1678 return rc; 1679 } 1680 1681 int usb_hub_release_port(struct usb_device *hdev, unsigned port1, void *owner) 1682 { 1683 int rc; 1684 void **powner; 1685 1686 rc = find_port_owner(hdev, port1, &powner); 1687 if (rc) 1688 return rc; 1689 if (*powner != owner) 1690 return -ENOENT; 1691 *powner = NULL; 1692 return rc; 1693 } 1694 1695 void usb_hub_release_all_ports(struct usb_device *hdev, void *owner) 1696 { 1697 int n; 1698 void **powner; 1699 1700 n = find_port_owner(hdev, 1, &powner); 1701 if (n == 0) { 1702 for (; n < hdev->maxchild; (++n, ++powner)) { 1703 if (*powner == owner) 1704 *powner = NULL; 1705 } 1706 } 1707 } 1708 1709 /* The caller must hold udev's lock */ 1710 bool usb_device_is_owned(struct usb_device *udev) 1711 { 1712 struct usb_hub *hub; 1713 1714 if (udev->state == USB_STATE_NOTATTACHED || !udev->parent) 1715 return false; 1716 hub = hdev_to_hub(udev->parent); 1717 return !!hub->port_owners[udev->portnum - 1]; 1718 } 1719 1720 1721 static void recursively_mark_NOTATTACHED(struct usb_device *udev) 1722 { 1723 int i; 1724 1725 for (i = 0; i < udev->maxchild; ++i) { 1726 if (udev->children[i]) 1727 recursively_mark_NOTATTACHED(udev->children[i]); 1728 } 1729 if (udev->state == USB_STATE_SUSPENDED) 1730 udev->active_duration -= jiffies; 1731 udev->state = USB_STATE_NOTATTACHED; 1732 } 1733 1734 /** 1735 * usb_set_device_state - change a device's current state (usbcore, hcds) 1736 * @udev: pointer to device whose state should be changed 1737 * @new_state: new state value to be stored 1738 * 1739 * udev->state is _not_ fully protected by the device lock. Although 1740 * most transitions are made only while holding the lock, the state can 1741 * can change to USB_STATE_NOTATTACHED at almost any time. This 1742 * is so that devices can be marked as disconnected as soon as possible, 1743 * without having to wait for any semaphores to be released. As a result, 1744 * all changes to any device's state must be protected by the 1745 * device_state_lock spinlock. 1746 * 1747 * Once a device has been added to the device tree, all changes to its state 1748 * should be made using this routine. The state should _not_ be set directly. 1749 * 1750 * If udev->state is already USB_STATE_NOTATTACHED then no change is made. 1751 * Otherwise udev->state is set to new_state, and if new_state is 1752 * USB_STATE_NOTATTACHED then all of udev's descendants' states are also set 1753 * to USB_STATE_NOTATTACHED. 1754 */ 1755 void usb_set_device_state(struct usb_device *udev, 1756 enum usb_device_state new_state) 1757 { 1758 unsigned long flags; 1759 int wakeup = -1; 1760 1761 spin_lock_irqsave(&device_state_lock, flags); 1762 if (udev->state == USB_STATE_NOTATTACHED) 1763 ; /* do nothing */ 1764 else if (new_state != USB_STATE_NOTATTACHED) { 1765 1766 /* root hub wakeup capabilities are managed out-of-band 1767 * and may involve silicon errata ... ignore them here. 1768 */ 1769 if (udev->parent) { 1770 if (udev->state == USB_STATE_SUSPENDED 1771 || new_state == USB_STATE_SUSPENDED) 1772 ; /* No change to wakeup settings */ 1773 else if (new_state == USB_STATE_CONFIGURED) 1774 wakeup = udev->actconfig->desc.bmAttributes 1775 & USB_CONFIG_ATT_WAKEUP; 1776 else 1777 wakeup = 0; 1778 } 1779 if (udev->state == USB_STATE_SUSPENDED && 1780 new_state != USB_STATE_SUSPENDED) 1781 udev->active_duration -= jiffies; 1782 else if (new_state == USB_STATE_SUSPENDED && 1783 udev->state != USB_STATE_SUSPENDED) 1784 udev->active_duration += jiffies; 1785 udev->state = new_state; 1786 } else 1787 recursively_mark_NOTATTACHED(udev); 1788 spin_unlock_irqrestore(&device_state_lock, flags); 1789 if (wakeup >= 0) 1790 device_set_wakeup_capable(&udev->dev, wakeup); 1791 } 1792 EXPORT_SYMBOL_GPL(usb_set_device_state); 1793 1794 /* 1795 * Choose a device number. 1796 * 1797 * Device numbers are used as filenames in usbfs. On USB-1.1 and 1798 * USB-2.0 buses they are also used as device addresses, however on 1799 * USB-3.0 buses the address is assigned by the controller hardware 1800 * and it usually is not the same as the device number. 1801 * 1802 * WUSB devices are simple: they have no hubs behind, so the mapping 1803 * device <-> virtual port number becomes 1:1. Why? to simplify the 1804 * life of the device connection logic in 1805 * drivers/usb/wusbcore/devconnect.c. When we do the initial secret 1806 * handshake we need to assign a temporary address in the unauthorized 1807 * space. For simplicity we use the first virtual port number found to 1808 * be free [drivers/usb/wusbcore/devconnect.c:wusbhc_devconnect_ack()] 1809 * and that becomes it's address [X < 128] or its unauthorized address 1810 * [X | 0x80]. 1811 * 1812 * We add 1 as an offset to the one-based USB-stack port number 1813 * (zero-based wusb virtual port index) for two reasons: (a) dev addr 1814 * 0 is reserved by USB for default address; (b) Linux's USB stack 1815 * uses always #1 for the root hub of the controller. So USB stack's 1816 * port #1, which is wusb virtual-port #0 has address #2. 1817 * 1818 * Devices connected under xHCI are not as simple. The host controller 1819 * supports virtualization, so the hardware assigns device addresses and 1820 * the HCD must setup data structures before issuing a set address 1821 * command to the hardware. 1822 */ 1823 static void choose_devnum(struct usb_device *udev) 1824 { 1825 int devnum; 1826 struct usb_bus *bus = udev->bus; 1827 1828 /* If khubd ever becomes multithreaded, this will need a lock */ 1829 if (udev->wusb) { 1830 devnum = udev->portnum + 1; 1831 BUG_ON(test_bit(devnum, bus->devmap.devicemap)); 1832 } else { 1833 /* Try to allocate the next devnum beginning at 1834 * bus->devnum_next. */ 1835 devnum = find_next_zero_bit(bus->devmap.devicemap, 128, 1836 bus->devnum_next); 1837 if (devnum >= 128) 1838 devnum = find_next_zero_bit(bus->devmap.devicemap, 1839 128, 1); 1840 bus->devnum_next = ( devnum >= 127 ? 1 : devnum + 1); 1841 } 1842 if (devnum < 128) { 1843 set_bit(devnum, bus->devmap.devicemap); 1844 udev->devnum = devnum; 1845 } 1846 } 1847 1848 static void release_devnum(struct usb_device *udev) 1849 { 1850 if (udev->devnum > 0) { 1851 clear_bit(udev->devnum, udev->bus->devmap.devicemap); 1852 udev->devnum = -1; 1853 } 1854 } 1855 1856 static void update_devnum(struct usb_device *udev, int devnum) 1857 { 1858 /* The address for a WUSB device is managed by wusbcore. */ 1859 if (!udev->wusb) 1860 udev->devnum = devnum; 1861 } 1862 1863 static void hub_free_dev(struct usb_device *udev) 1864 { 1865 struct usb_hcd *hcd = bus_to_hcd(udev->bus); 1866 1867 /* Root hubs aren't real devices, so don't free HCD resources */ 1868 if (hcd->driver->free_dev && udev->parent) 1869 hcd->driver->free_dev(hcd, udev); 1870 } 1871 1872 /** 1873 * usb_disconnect - disconnect a device (usbcore-internal) 1874 * @pdev: pointer to device being disconnected 1875 * Context: !in_interrupt () 1876 * 1877 * Something got disconnected. Get rid of it and all of its children. 1878 * 1879 * If *pdev is a normal device then the parent hub must already be locked. 1880 * If *pdev is a root hub then this routine will acquire the 1881 * usb_bus_list_lock on behalf of the caller. 1882 * 1883 * Only hub drivers (including virtual root hub drivers for host 1884 * controllers) should ever call this. 1885 * 1886 * This call is synchronous, and may not be used in an interrupt context. 1887 */ 1888 void usb_disconnect(struct usb_device **pdev) 1889 { 1890 struct usb_device *udev = *pdev; 1891 int i; 1892 1893 /* mark the device as inactive, so any further urb submissions for 1894 * this device (and any of its children) will fail immediately. 1895 * this quiesces everything except pending urbs. 1896 */ 1897 usb_set_device_state(udev, USB_STATE_NOTATTACHED); 1898 dev_info(&udev->dev, "USB disconnect, device number %d\n", 1899 udev->devnum); 1900 1901 usb_lock_device(udev); 1902 1903 /* Free up all the children before we remove this device */ 1904 for (i = 0; i < udev->maxchild; i++) { 1905 if (udev->children[i]) 1906 usb_disconnect(&udev->children[i]); 1907 } 1908 1909 /* deallocate hcd/hardware state ... nuking all pending urbs and 1910 * cleaning up all state associated with the current configuration 1911 * so that the hardware is now fully quiesced. 1912 */ 1913 dev_dbg (&udev->dev, "unregistering device\n"); 1914 usb_disable_device(udev, 0); 1915 usb_hcd_synchronize_unlinks(udev); 1916 1917 usb_remove_ep_devs(&udev->ep0); 1918 usb_unlock_device(udev); 1919 1920 /* Unregister the device. The device driver is responsible 1921 * for de-configuring the device and invoking the remove-device 1922 * notifier chain (used by usbfs and possibly others). 1923 */ 1924 device_del(&udev->dev); 1925 1926 /* Free the device number and delete the parent's children[] 1927 * (or root_hub) pointer. 1928 */ 1929 release_devnum(udev); 1930 1931 /* Avoid races with recursively_mark_NOTATTACHED() */ 1932 spin_lock_irq(&device_state_lock); 1933 *pdev = NULL; 1934 spin_unlock_irq(&device_state_lock); 1935 1936 hub_free_dev(udev); 1937 1938 put_device(&udev->dev); 1939 } 1940 1941 #ifdef CONFIG_USB_ANNOUNCE_NEW_DEVICES 1942 static void show_string(struct usb_device *udev, char *id, char *string) 1943 { 1944 if (!string) 1945 return; 1946 dev_printk(KERN_INFO, &udev->dev, "%s: %s\n", id, string); 1947 } 1948 1949 static void announce_device(struct usb_device *udev) 1950 { 1951 dev_info(&udev->dev, "New USB device found, idVendor=%04x, idProduct=%04x\n", 1952 le16_to_cpu(udev->descriptor.idVendor), 1953 le16_to_cpu(udev->descriptor.idProduct)); 1954 dev_info(&udev->dev, 1955 "New USB device strings: Mfr=%d, Product=%d, SerialNumber=%d\n", 1956 udev->descriptor.iManufacturer, 1957 udev->descriptor.iProduct, 1958 udev->descriptor.iSerialNumber); 1959 show_string(udev, "Product", udev->product); 1960 show_string(udev, "Manufacturer", udev->manufacturer); 1961 show_string(udev, "SerialNumber", udev->serial); 1962 } 1963 #else 1964 static inline void announce_device(struct usb_device *udev) { } 1965 #endif 1966 1967 #ifdef CONFIG_USB_OTG 1968 #include "otg_whitelist.h" 1969 #endif 1970 1971 /** 1972 * usb_enumerate_device_otg - FIXME (usbcore-internal) 1973 * @udev: newly addressed device (in ADDRESS state) 1974 * 1975 * Finish enumeration for On-The-Go devices 1976 */ 1977 static int usb_enumerate_device_otg(struct usb_device *udev) 1978 { 1979 int err = 0; 1980 1981 #ifdef CONFIG_USB_OTG 1982 /* 1983 * OTG-aware devices on OTG-capable root hubs may be able to use SRP, 1984 * to wake us after we've powered off VBUS; and HNP, switching roles 1985 * "host" to "peripheral". The OTG descriptor helps figure this out. 1986 */ 1987 if (!udev->bus->is_b_host 1988 && udev->config 1989 && udev->parent == udev->bus->root_hub) { 1990 struct usb_otg_descriptor *desc = NULL; 1991 struct usb_bus *bus = udev->bus; 1992 1993 /* descriptor may appear anywhere in config */ 1994 if (__usb_get_extra_descriptor (udev->rawdescriptors[0], 1995 le16_to_cpu(udev->config[0].desc.wTotalLength), 1996 USB_DT_OTG, (void **) &desc) == 0) { 1997 if (desc->bmAttributes & USB_OTG_HNP) { 1998 unsigned port1 = udev->portnum; 1999 2000 dev_info(&udev->dev, 2001 "Dual-Role OTG device on %sHNP port\n", 2002 (port1 == bus->otg_port) 2003 ? "" : "non-"); 2004 2005 /* enable HNP before suspend, it's simpler */ 2006 if (port1 == bus->otg_port) 2007 bus->b_hnp_enable = 1; 2008 err = usb_control_msg(udev, 2009 usb_sndctrlpipe(udev, 0), 2010 USB_REQ_SET_FEATURE, 0, 2011 bus->b_hnp_enable 2012 ? USB_DEVICE_B_HNP_ENABLE 2013 : USB_DEVICE_A_ALT_HNP_SUPPORT, 2014 0, NULL, 0, USB_CTRL_SET_TIMEOUT); 2015 if (err < 0) { 2016 /* OTG MESSAGE: report errors here, 2017 * customize to match your product. 2018 */ 2019 dev_info(&udev->dev, 2020 "can't set HNP mode: %d\n", 2021 err); 2022 bus->b_hnp_enable = 0; 2023 } 2024 } 2025 } 2026 } 2027 2028 if (!is_targeted(udev)) { 2029 2030 /* Maybe it can talk to us, though we can't talk to it. 2031 * (Includes HNP test device.) 2032 */ 2033 if (udev->bus->b_hnp_enable || udev->bus->is_b_host) { 2034 err = usb_port_suspend(udev, PMSG_SUSPEND); 2035 if (err < 0) 2036 dev_dbg(&udev->dev, "HNP fail, %d\n", err); 2037 } 2038 err = -ENOTSUPP; 2039 goto fail; 2040 } 2041 fail: 2042 #endif 2043 return err; 2044 } 2045 2046 2047 /** 2048 * usb_enumerate_device - Read device configs/intfs/otg (usbcore-internal) 2049 * @udev: newly addressed device (in ADDRESS state) 2050 * 2051 * This is only called by usb_new_device() and usb_authorize_device() 2052 * and FIXME -- all comments that apply to them apply here wrt to 2053 * environment. 2054 * 2055 * If the device is WUSB and not authorized, we don't attempt to read 2056 * the string descriptors, as they will be errored out by the device 2057 * until it has been authorized. 2058 */ 2059 static int usb_enumerate_device(struct usb_device *udev) 2060 { 2061 int err; 2062 2063 if (udev->config == NULL) { 2064 err = usb_get_configuration(udev); 2065 if (err < 0) { 2066 dev_err(&udev->dev, "can't read configurations, error %d\n", 2067 err); 2068 goto fail; 2069 } 2070 } 2071 if (udev->wusb == 1 && udev->authorized == 0) { 2072 udev->product = kstrdup("n/a (unauthorized)", GFP_KERNEL); 2073 udev->manufacturer = kstrdup("n/a (unauthorized)", GFP_KERNEL); 2074 udev->serial = kstrdup("n/a (unauthorized)", GFP_KERNEL); 2075 } 2076 else { 2077 /* read the standard strings and cache them if present */ 2078 udev->product = usb_cache_string(udev, udev->descriptor.iProduct); 2079 udev->manufacturer = usb_cache_string(udev, 2080 udev->descriptor.iManufacturer); 2081 udev->serial = usb_cache_string(udev, udev->descriptor.iSerialNumber); 2082 } 2083 err = usb_enumerate_device_otg(udev); 2084 fail: 2085 return err; 2086 } 2087 2088 static void set_usb_port_removable(struct usb_device *udev) 2089 { 2090 struct usb_device *hdev = udev->parent; 2091 struct usb_hub *hub; 2092 u8 port = udev->portnum; 2093 u16 wHubCharacteristics; 2094 bool removable = true; 2095 2096 if (!hdev) 2097 return; 2098 2099 hub = hdev_to_hub(udev->parent); 2100 2101 wHubCharacteristics = le16_to_cpu(hub->descriptor->wHubCharacteristics); 2102 2103 if (!(wHubCharacteristics & HUB_CHAR_COMPOUND)) 2104 return; 2105 2106 if (hub_is_superspeed(hdev)) { 2107 if (hub->descriptor->u.ss.DeviceRemovable & (1 << port)) 2108 removable = false; 2109 } else { 2110 if (hub->descriptor->u.hs.DeviceRemovable[port / 8] & (1 << (port % 8))) 2111 removable = false; 2112 } 2113 2114 if (removable) 2115 udev->removable = USB_DEVICE_REMOVABLE; 2116 else 2117 udev->removable = USB_DEVICE_FIXED; 2118 } 2119 2120 /** 2121 * usb_new_device - perform initial device setup (usbcore-internal) 2122 * @udev: newly addressed device (in ADDRESS state) 2123 * 2124 * This is called with devices which have been detected but not fully 2125 * enumerated. The device descriptor is available, but not descriptors 2126 * for any device configuration. The caller must have locked either 2127 * the parent hub (if udev is a normal device) or else the 2128 * usb_bus_list_lock (if udev is a root hub). The parent's pointer to 2129 * udev has already been installed, but udev is not yet visible through 2130 * sysfs or other filesystem code. 2131 * 2132 * It will return if the device is configured properly or not. Zero if 2133 * the interface was registered with the driver core; else a negative 2134 * errno value. 2135 * 2136 * This call is synchronous, and may not be used in an interrupt context. 2137 * 2138 * Only the hub driver or root-hub registrar should ever call this. 2139 */ 2140 int usb_new_device(struct usb_device *udev) 2141 { 2142 int err; 2143 2144 if (udev->parent) { 2145 /* Initialize non-root-hub device wakeup to disabled; 2146 * device (un)configuration controls wakeup capable 2147 * sysfs power/wakeup controls wakeup enabled/disabled 2148 */ 2149 device_init_wakeup(&udev->dev, 0); 2150 } 2151 2152 /* Tell the runtime-PM framework the device is active */ 2153 pm_runtime_set_active(&udev->dev); 2154 pm_runtime_get_noresume(&udev->dev); 2155 pm_runtime_use_autosuspend(&udev->dev); 2156 pm_runtime_enable(&udev->dev); 2157 2158 /* By default, forbid autosuspend for all devices. It will be 2159 * allowed for hubs during binding. 2160 */ 2161 usb_disable_autosuspend(udev); 2162 2163 err = usb_enumerate_device(udev); /* Read descriptors */ 2164 if (err < 0) 2165 goto fail; 2166 dev_dbg(&udev->dev, "udev %d, busnum %d, minor = %d\n", 2167 udev->devnum, udev->bus->busnum, 2168 (((udev->bus->busnum-1) * 128) + (udev->devnum-1))); 2169 /* export the usbdev device-node for libusb */ 2170 udev->dev.devt = MKDEV(USB_DEVICE_MAJOR, 2171 (((udev->bus->busnum-1) * 128) + (udev->devnum-1))); 2172 2173 /* Tell the world! */ 2174 announce_device(udev); 2175 2176 device_enable_async_suspend(&udev->dev); 2177 2178 /* 2179 * check whether the hub marks this port as non-removable. Do it 2180 * now so that platform-specific data can override it in 2181 * device_add() 2182 */ 2183 if (udev->parent) 2184 set_usb_port_removable(udev); 2185 2186 /* Register the device. The device driver is responsible 2187 * for configuring the device and invoking the add-device 2188 * notifier chain (used by usbfs and possibly others). 2189 */ 2190 err = device_add(&udev->dev); 2191 if (err) { 2192 dev_err(&udev->dev, "can't device_add, error %d\n", err); 2193 goto fail; 2194 } 2195 2196 (void) usb_create_ep_devs(&udev->dev, &udev->ep0, udev); 2197 usb_mark_last_busy(udev); 2198 pm_runtime_put_sync_autosuspend(&udev->dev); 2199 return err; 2200 2201 fail: 2202 usb_set_device_state(udev, USB_STATE_NOTATTACHED); 2203 pm_runtime_disable(&udev->dev); 2204 pm_runtime_set_suspended(&udev->dev); 2205 return err; 2206 } 2207 2208 2209 /** 2210 * usb_deauthorize_device - deauthorize a device (usbcore-internal) 2211 * @usb_dev: USB device 2212 * 2213 * Move the USB device to a very basic state where interfaces are disabled 2214 * and the device is in fact unconfigured and unusable. 2215 * 2216 * We share a lock (that we have) with device_del(), so we need to 2217 * defer its call. 2218 */ 2219 int usb_deauthorize_device(struct usb_device *usb_dev) 2220 { 2221 usb_lock_device(usb_dev); 2222 if (usb_dev->authorized == 0) 2223 goto out_unauthorized; 2224 2225 usb_dev->authorized = 0; 2226 usb_set_configuration(usb_dev, -1); 2227 2228 kfree(usb_dev->product); 2229 usb_dev->product = kstrdup("n/a (unauthorized)", GFP_KERNEL); 2230 kfree(usb_dev->manufacturer); 2231 usb_dev->manufacturer = kstrdup("n/a (unauthorized)", GFP_KERNEL); 2232 kfree(usb_dev->serial); 2233 usb_dev->serial = kstrdup("n/a (unauthorized)", GFP_KERNEL); 2234 2235 usb_destroy_configuration(usb_dev); 2236 usb_dev->descriptor.bNumConfigurations = 0; 2237 2238 out_unauthorized: 2239 usb_unlock_device(usb_dev); 2240 return 0; 2241 } 2242 2243 2244 int usb_authorize_device(struct usb_device *usb_dev) 2245 { 2246 int result = 0, c; 2247 2248 usb_lock_device(usb_dev); 2249 if (usb_dev->authorized == 1) 2250 goto out_authorized; 2251 2252 result = usb_autoresume_device(usb_dev); 2253 if (result < 0) { 2254 dev_err(&usb_dev->dev, 2255 "can't autoresume for authorization: %d\n", result); 2256 goto error_autoresume; 2257 } 2258 result = usb_get_device_descriptor(usb_dev, sizeof(usb_dev->descriptor)); 2259 if (result < 0) { 2260 dev_err(&usb_dev->dev, "can't re-read device descriptor for " 2261 "authorization: %d\n", result); 2262 goto error_device_descriptor; 2263 } 2264 2265 kfree(usb_dev->product); 2266 usb_dev->product = NULL; 2267 kfree(usb_dev->manufacturer); 2268 usb_dev->manufacturer = NULL; 2269 kfree(usb_dev->serial); 2270 usb_dev->serial = NULL; 2271 2272 usb_dev->authorized = 1; 2273 result = usb_enumerate_device(usb_dev); 2274 if (result < 0) 2275 goto error_enumerate; 2276 /* Choose and set the configuration. This registers the interfaces 2277 * with the driver core and lets interface drivers bind to them. 2278 */ 2279 c = usb_choose_configuration(usb_dev); 2280 if (c >= 0) { 2281 result = usb_set_configuration(usb_dev, c); 2282 if (result) { 2283 dev_err(&usb_dev->dev, 2284 "can't set config #%d, error %d\n", c, result); 2285 /* This need not be fatal. The user can try to 2286 * set other configurations. */ 2287 } 2288 } 2289 dev_info(&usb_dev->dev, "authorized to connect\n"); 2290 2291 error_enumerate: 2292 error_device_descriptor: 2293 usb_autosuspend_device(usb_dev); 2294 error_autoresume: 2295 out_authorized: 2296 usb_unlock_device(usb_dev); // complements locktree 2297 return result; 2298 } 2299 2300 2301 /* Returns 1 if @hub is a WUSB root hub, 0 otherwise */ 2302 static unsigned hub_is_wusb(struct usb_hub *hub) 2303 { 2304 struct usb_hcd *hcd; 2305 if (hub->hdev->parent != NULL) /* not a root hub? */ 2306 return 0; 2307 hcd = container_of(hub->hdev->bus, struct usb_hcd, self); 2308 return hcd->wireless; 2309 } 2310 2311 2312 #define PORT_RESET_TRIES 5 2313 #define SET_ADDRESS_TRIES 2 2314 #define GET_DESCRIPTOR_TRIES 2 2315 #define SET_CONFIG_TRIES (2 * (use_both_schemes + 1)) 2316 #define USE_NEW_SCHEME(i) ((i) / 2 == (int)old_scheme_first) 2317 2318 #define HUB_ROOT_RESET_TIME 50 /* times are in msec */ 2319 #define HUB_SHORT_RESET_TIME 10 2320 #define HUB_BH_RESET_TIME 50 2321 #define HUB_LONG_RESET_TIME 200 2322 #define HUB_RESET_TIMEOUT 500 2323 2324 static int hub_port_reset(struct usb_hub *hub, int port1, 2325 struct usb_device *udev, unsigned int delay, bool warm); 2326 2327 /* Is a USB 3.0 port in the Inactive state? */ 2328 static bool hub_port_inactive(struct usb_hub *hub, u16 portstatus) 2329 { 2330 return hub_is_superspeed(hub->hdev) && 2331 (portstatus & USB_PORT_STAT_LINK_STATE) == 2332 USB_SS_PORT_LS_SS_INACTIVE; 2333 } 2334 2335 static int hub_port_wait_reset(struct usb_hub *hub, int port1, 2336 struct usb_device *udev, unsigned int delay, bool warm) 2337 { 2338 int delay_time, ret; 2339 u16 portstatus; 2340 u16 portchange; 2341 2342 for (delay_time = 0; 2343 delay_time < HUB_RESET_TIMEOUT; 2344 delay_time += delay) { 2345 /* wait to give the device a chance to reset */ 2346 msleep(delay); 2347 2348 /* read and decode port status */ 2349 ret = hub_port_status(hub, port1, &portstatus, &portchange); 2350 if (ret < 0) 2351 return ret; 2352 2353 /* 2354 * Some buggy devices require a warm reset to be issued even 2355 * when the port appears not to be connected. 2356 */ 2357 if (!warm) { 2358 /* 2359 * Some buggy devices can cause an NEC host controller 2360 * to transition to the "Error" state after a hot port 2361 * reset. This will show up as the port state in 2362 * "Inactive", and the port may also report a 2363 * disconnect. Forcing a warm port reset seems to make 2364 * the device work. 2365 * 2366 * See https://bugzilla.kernel.org/show_bug.cgi?id=41752 2367 */ 2368 if (hub_port_inactive(hub, portstatus)) { 2369 int ret; 2370 2371 if ((portchange & USB_PORT_STAT_C_CONNECTION)) 2372 clear_port_feature(hub->hdev, port1, 2373 USB_PORT_FEAT_C_CONNECTION); 2374 if (portchange & USB_PORT_STAT_C_LINK_STATE) 2375 clear_port_feature(hub->hdev, port1, 2376 USB_PORT_FEAT_C_PORT_LINK_STATE); 2377 if (portchange & USB_PORT_STAT_C_RESET) 2378 clear_port_feature(hub->hdev, port1, 2379 USB_PORT_FEAT_C_RESET); 2380 dev_dbg(hub->intfdev, "hot reset failed, warm reset port %d\n", 2381 port1); 2382 ret = hub_port_reset(hub, port1, 2383 udev, HUB_BH_RESET_TIME, 2384 true); 2385 if ((portchange & USB_PORT_STAT_C_CONNECTION)) 2386 clear_port_feature(hub->hdev, port1, 2387 USB_PORT_FEAT_C_CONNECTION); 2388 return ret; 2389 } 2390 /* Device went away? */ 2391 if (!(portstatus & USB_PORT_STAT_CONNECTION)) 2392 return -ENOTCONN; 2393 2394 /* bomb out completely if the connection bounced */ 2395 if ((portchange & USB_PORT_STAT_C_CONNECTION)) 2396 return -ENOTCONN; 2397 2398 /* if we`ve finished resetting, then break out of 2399 * the loop 2400 */ 2401 if (!(portstatus & USB_PORT_STAT_RESET) && 2402 (portstatus & USB_PORT_STAT_ENABLE)) { 2403 if (hub_is_wusb(hub)) 2404 udev->speed = USB_SPEED_WIRELESS; 2405 else if (hub_is_superspeed(hub->hdev)) 2406 udev->speed = USB_SPEED_SUPER; 2407 else if (portstatus & USB_PORT_STAT_HIGH_SPEED) 2408 udev->speed = USB_SPEED_HIGH; 2409 else if (portstatus & USB_PORT_STAT_LOW_SPEED) 2410 udev->speed = USB_SPEED_LOW; 2411 else 2412 udev->speed = USB_SPEED_FULL; 2413 return 0; 2414 } 2415 } else { 2416 if (portchange & USB_PORT_STAT_C_BH_RESET) 2417 return 0; 2418 } 2419 2420 /* switch to the long delay after two short delay failures */ 2421 if (delay_time >= 2 * HUB_SHORT_RESET_TIME) 2422 delay = HUB_LONG_RESET_TIME; 2423 2424 dev_dbg (hub->intfdev, 2425 "port %d not %sreset yet, waiting %dms\n", 2426 port1, warm ? "warm " : "", delay); 2427 } 2428 2429 return -EBUSY; 2430 } 2431 2432 static void hub_port_finish_reset(struct usb_hub *hub, int port1, 2433 struct usb_device *udev, int *status, bool warm) 2434 { 2435 switch (*status) { 2436 case 0: 2437 if (!warm) { 2438 struct usb_hcd *hcd; 2439 /* TRSTRCY = 10 ms; plus some extra */ 2440 msleep(10 + 40); 2441 update_devnum(udev, 0); 2442 hcd = bus_to_hcd(udev->bus); 2443 if (hcd->driver->reset_device) { 2444 *status = hcd->driver->reset_device(hcd, udev); 2445 if (*status < 0) { 2446 dev_err(&udev->dev, "Cannot reset " 2447 "HCD device state\n"); 2448 break; 2449 } 2450 } 2451 } 2452 /* FALL THROUGH */ 2453 case -ENOTCONN: 2454 case -ENODEV: 2455 clear_port_feature(hub->hdev, 2456 port1, USB_PORT_FEAT_C_RESET); 2457 /* FIXME need disconnect() for NOTATTACHED device */ 2458 if (warm) { 2459 clear_port_feature(hub->hdev, port1, 2460 USB_PORT_FEAT_C_BH_PORT_RESET); 2461 clear_port_feature(hub->hdev, port1, 2462 USB_PORT_FEAT_C_PORT_LINK_STATE); 2463 } else { 2464 usb_set_device_state(udev, *status 2465 ? USB_STATE_NOTATTACHED 2466 : USB_STATE_DEFAULT); 2467 } 2468 break; 2469 } 2470 } 2471 2472 /* Handle port reset and port warm(BH) reset (for USB3 protocol ports) */ 2473 static int hub_port_reset(struct usb_hub *hub, int port1, 2474 struct usb_device *udev, unsigned int delay, bool warm) 2475 { 2476 int i, status; 2477 2478 if (!warm) { 2479 /* Block EHCI CF initialization during the port reset. 2480 * Some companion controllers don't like it when they mix. 2481 */ 2482 down_read(&ehci_cf_port_reset_rwsem); 2483 } else { 2484 if (!hub_is_superspeed(hub->hdev)) { 2485 dev_err(hub->intfdev, "only USB3 hub support " 2486 "warm reset\n"); 2487 return -EINVAL; 2488 } 2489 } 2490 2491 /* Reset the port */ 2492 for (i = 0; i < PORT_RESET_TRIES; i++) { 2493 status = set_port_feature(hub->hdev, port1, (warm ? 2494 USB_PORT_FEAT_BH_PORT_RESET : 2495 USB_PORT_FEAT_RESET)); 2496 if (status) { 2497 dev_err(hub->intfdev, 2498 "cannot %sreset port %d (err = %d)\n", 2499 warm ? "warm " : "", port1, status); 2500 } else { 2501 status = hub_port_wait_reset(hub, port1, udev, delay, 2502 warm); 2503 if (status && status != -ENOTCONN) 2504 dev_dbg(hub->intfdev, 2505 "port_wait_reset: err = %d\n", 2506 status); 2507 } 2508 2509 /* return on disconnect or reset */ 2510 if (status == 0 || status == -ENOTCONN || status == -ENODEV) { 2511 hub_port_finish_reset(hub, port1, udev, &status, warm); 2512 goto done; 2513 } 2514 2515 dev_dbg (hub->intfdev, 2516 "port %d not enabled, trying %sreset again...\n", 2517 port1, warm ? "warm " : ""); 2518 delay = HUB_LONG_RESET_TIME; 2519 } 2520 2521 dev_err (hub->intfdev, 2522 "Cannot enable port %i. Maybe the USB cable is bad?\n", 2523 port1); 2524 2525 done: 2526 if (!warm) 2527 up_read(&ehci_cf_port_reset_rwsem); 2528 2529 return status; 2530 } 2531 2532 /* Check if a port is power on */ 2533 static int port_is_power_on(struct usb_hub *hub, unsigned portstatus) 2534 { 2535 int ret = 0; 2536 2537 if (hub_is_superspeed(hub->hdev)) { 2538 if (portstatus & USB_SS_PORT_STAT_POWER) 2539 ret = 1; 2540 } else { 2541 if (portstatus & USB_PORT_STAT_POWER) 2542 ret = 1; 2543 } 2544 2545 return ret; 2546 } 2547 2548 #ifdef CONFIG_PM 2549 2550 /* Check if a port is suspended(USB2.0 port) or in U3 state(USB3.0 port) */ 2551 static int port_is_suspended(struct usb_hub *hub, unsigned portstatus) 2552 { 2553 int ret = 0; 2554 2555 if (hub_is_superspeed(hub->hdev)) { 2556 if ((portstatus & USB_PORT_STAT_LINK_STATE) 2557 == USB_SS_PORT_LS_U3) 2558 ret = 1; 2559 } else { 2560 if (portstatus & USB_PORT_STAT_SUSPEND) 2561 ret = 1; 2562 } 2563 2564 return ret; 2565 } 2566 2567 /* Determine whether the device on a port is ready for a normal resume, 2568 * is ready for a reset-resume, or should be disconnected. 2569 */ 2570 static int check_port_resume_type(struct usb_device *udev, 2571 struct usb_hub *hub, int port1, 2572 int status, unsigned portchange, unsigned portstatus) 2573 { 2574 /* Is the device still present? */ 2575 if (status || port_is_suspended(hub, portstatus) || 2576 !port_is_power_on(hub, portstatus) || 2577 !(portstatus & USB_PORT_STAT_CONNECTION)) { 2578 if (status >= 0) 2579 status = -ENODEV; 2580 } 2581 2582 /* Can't do a normal resume if the port isn't enabled, 2583 * so try a reset-resume instead. 2584 */ 2585 else if (!(portstatus & USB_PORT_STAT_ENABLE) && !udev->reset_resume) { 2586 if (udev->persist_enabled) 2587 udev->reset_resume = 1; 2588 else 2589 status = -ENODEV; 2590 } 2591 2592 if (status) { 2593 dev_dbg(hub->intfdev, 2594 "port %d status %04x.%04x after resume, %d\n", 2595 port1, portchange, portstatus, status); 2596 } else if (udev->reset_resume) { 2597 2598 /* Late port handoff can set status-change bits */ 2599 if (portchange & USB_PORT_STAT_C_CONNECTION) 2600 clear_port_feature(hub->hdev, port1, 2601 USB_PORT_FEAT_C_CONNECTION); 2602 if (portchange & USB_PORT_STAT_C_ENABLE) 2603 clear_port_feature(hub->hdev, port1, 2604 USB_PORT_FEAT_C_ENABLE); 2605 } 2606 2607 return status; 2608 } 2609 2610 #ifdef CONFIG_USB_SUSPEND 2611 2612 /* 2613 * usb_port_suspend - suspend a usb device's upstream port 2614 * @udev: device that's no longer in active use, not a root hub 2615 * Context: must be able to sleep; device not locked; pm locks held 2616 * 2617 * Suspends a USB device that isn't in active use, conserving power. 2618 * Devices may wake out of a suspend, if anything important happens, 2619 * using the remote wakeup mechanism. They may also be taken out of 2620 * suspend by the host, using usb_port_resume(). It's also routine 2621 * to disconnect devices while they are suspended. 2622 * 2623 * This only affects the USB hardware for a device; its interfaces 2624 * (and, for hubs, child devices) must already have been suspended. 2625 * 2626 * Selective port suspend reduces power; most suspended devices draw 2627 * less than 500 uA. It's also used in OTG, along with remote wakeup. 2628 * All devices below the suspended port are also suspended. 2629 * 2630 * Devices leave suspend state when the host wakes them up. Some devices 2631 * also support "remote wakeup", where the device can activate the USB 2632 * tree above them to deliver data, such as a keypress or packet. In 2633 * some cases, this wakes the USB host. 2634 * 2635 * Suspending OTG devices may trigger HNP, if that's been enabled 2636 * between a pair of dual-role devices. That will change roles, such 2637 * as from A-Host to A-Peripheral or from B-Host back to B-Peripheral. 2638 * 2639 * Devices on USB hub ports have only one "suspend" state, corresponding 2640 * to ACPI D2, "may cause the device to lose some context". 2641 * State transitions include: 2642 * 2643 * - suspend, resume ... when the VBUS power link stays live 2644 * - suspend, disconnect ... VBUS lost 2645 * 2646 * Once VBUS drop breaks the circuit, the port it's using has to go through 2647 * normal re-enumeration procedures, starting with enabling VBUS power. 2648 * Other than re-initializing the hub (plug/unplug, except for root hubs), 2649 * Linux (2.6) currently has NO mechanisms to initiate that: no khubd 2650 * timer, no SRP, no requests through sysfs. 2651 * 2652 * If CONFIG_USB_SUSPEND isn't enabled, devices only really suspend when 2653 * the root hub for their bus goes into global suspend ... so we don't 2654 * (falsely) update the device power state to say it suspended. 2655 * 2656 * Returns 0 on success, else negative errno. 2657 */ 2658 int usb_port_suspend(struct usb_device *udev, pm_message_t msg) 2659 { 2660 struct usb_hub *hub = hdev_to_hub(udev->parent); 2661 int port1 = udev->portnum; 2662 int status; 2663 2664 /* enable remote wakeup when appropriate; this lets the device 2665 * wake up the upstream hub (including maybe the root hub). 2666 * 2667 * NOTE: OTG devices may issue remote wakeup (or SRP) even when 2668 * we don't explicitly enable it here. 2669 */ 2670 if (udev->do_remote_wakeup) { 2671 if (!hub_is_superspeed(hub->hdev)) { 2672 status = usb_control_msg(udev, usb_sndctrlpipe(udev, 0), 2673 USB_REQ_SET_FEATURE, USB_RECIP_DEVICE, 2674 USB_DEVICE_REMOTE_WAKEUP, 0, 2675 NULL, 0, 2676 USB_CTRL_SET_TIMEOUT); 2677 } else { 2678 /* Assume there's only one function on the USB 3.0 2679 * device and enable remote wake for the first 2680 * interface. FIXME if the interface association 2681 * descriptor shows there's more than one function. 2682 */ 2683 status = usb_control_msg(udev, usb_sndctrlpipe(udev, 0), 2684 USB_REQ_SET_FEATURE, 2685 USB_RECIP_INTERFACE, 2686 USB_INTRF_FUNC_SUSPEND, 2687 USB_INTRF_FUNC_SUSPEND_RW | 2688 USB_INTRF_FUNC_SUSPEND_LP, 2689 NULL, 0, 2690 USB_CTRL_SET_TIMEOUT); 2691 } 2692 if (status) { 2693 dev_dbg(&udev->dev, "won't remote wakeup, status %d\n", 2694 status); 2695 /* bail if autosuspend is requested */ 2696 if (PMSG_IS_AUTO(msg)) 2697 return status; 2698 } 2699 } 2700 2701 /* disable USB2 hardware LPM */ 2702 if (udev->usb2_hw_lpm_enabled == 1) 2703 usb_set_usb2_hardware_lpm(udev, 0); 2704 2705 if (usb_unlocked_disable_lpm(udev)) { 2706 dev_err(&udev->dev, "%s Failed to disable LPM before suspend\n.", 2707 __func__); 2708 return -ENOMEM; 2709 } 2710 2711 /* see 7.1.7.6 */ 2712 if (hub_is_superspeed(hub->hdev)) 2713 status = set_port_feature(hub->hdev, 2714 port1 | (USB_SS_PORT_LS_U3 << 3), 2715 USB_PORT_FEAT_LINK_STATE); 2716 else 2717 status = set_port_feature(hub->hdev, port1, 2718 USB_PORT_FEAT_SUSPEND); 2719 if (status) { 2720 dev_dbg(hub->intfdev, "can't suspend port %d, status %d\n", 2721 port1, status); 2722 /* paranoia: "should not happen" */ 2723 if (udev->do_remote_wakeup) 2724 (void) usb_control_msg(udev, usb_sndctrlpipe(udev, 0), 2725 USB_REQ_CLEAR_FEATURE, USB_RECIP_DEVICE, 2726 USB_DEVICE_REMOTE_WAKEUP, 0, 2727 NULL, 0, 2728 USB_CTRL_SET_TIMEOUT); 2729 2730 /* Try to enable USB2 hardware LPM again */ 2731 if (udev->usb2_hw_lpm_capable == 1) 2732 usb_set_usb2_hardware_lpm(udev, 1); 2733 2734 /* Try to enable USB3 LPM again */ 2735 usb_unlocked_enable_lpm(udev); 2736 2737 /* System sleep transitions should never fail */ 2738 if (!PMSG_IS_AUTO(msg)) 2739 status = 0; 2740 } else { 2741 /* device has up to 10 msec to fully suspend */ 2742 dev_dbg(&udev->dev, "usb %ssuspend, wakeup %d\n", 2743 (PMSG_IS_AUTO(msg) ? "auto-" : ""), 2744 udev->do_remote_wakeup); 2745 usb_set_device_state(udev, USB_STATE_SUSPENDED); 2746 msleep(10); 2747 } 2748 usb_mark_last_busy(hub->hdev); 2749 return status; 2750 } 2751 2752 /* 2753 * If the USB "suspend" state is in use (rather than "global suspend"), 2754 * many devices will be individually taken out of suspend state using 2755 * special "resume" signaling. This routine kicks in shortly after 2756 * hardware resume signaling is finished, either because of selective 2757 * resume (by host) or remote wakeup (by device) ... now see what changed 2758 * in the tree that's rooted at this device. 2759 * 2760 * If @udev->reset_resume is set then the device is reset before the 2761 * status check is done. 2762 */ 2763 static int finish_port_resume(struct usb_device *udev) 2764 { 2765 int status = 0; 2766 u16 devstatus; 2767 2768 /* caller owns the udev device lock */ 2769 dev_dbg(&udev->dev, "%s\n", 2770 udev->reset_resume ? "finish reset-resume" : "finish resume"); 2771 2772 /* usb ch9 identifies four variants of SUSPENDED, based on what 2773 * state the device resumes to. Linux currently won't see the 2774 * first two on the host side; they'd be inside hub_port_init() 2775 * during many timeouts, but khubd can't suspend until later. 2776 */ 2777 usb_set_device_state(udev, udev->actconfig 2778 ? USB_STATE_CONFIGURED 2779 : USB_STATE_ADDRESS); 2780 2781 /* 10.5.4.5 says not to reset a suspended port if the attached 2782 * device is enabled for remote wakeup. Hence the reset 2783 * operation is carried out here, after the port has been 2784 * resumed. 2785 */ 2786 if (udev->reset_resume) 2787 retry_reset_resume: 2788 status = usb_reset_and_verify_device(udev); 2789 2790 /* 10.5.4.5 says be sure devices in the tree are still there. 2791 * For now let's assume the device didn't go crazy on resume, 2792 * and device drivers will know about any resume quirks. 2793 */ 2794 if (status == 0) { 2795 devstatus = 0; 2796 status = usb_get_status(udev, USB_RECIP_DEVICE, 0, &devstatus); 2797 if (status >= 0) 2798 status = (status > 0 ? 0 : -ENODEV); 2799 2800 /* If a normal resume failed, try doing a reset-resume */ 2801 if (status && !udev->reset_resume && udev->persist_enabled) { 2802 dev_dbg(&udev->dev, "retry with reset-resume\n"); 2803 udev->reset_resume = 1; 2804 goto retry_reset_resume; 2805 } 2806 } 2807 2808 if (status) { 2809 dev_dbg(&udev->dev, "gone after usb resume? status %d\n", 2810 status); 2811 } else if (udev->actconfig) { 2812 le16_to_cpus(&devstatus); 2813 if (devstatus & (1 << USB_DEVICE_REMOTE_WAKEUP)) { 2814 status = usb_control_msg(udev, 2815 usb_sndctrlpipe(udev, 0), 2816 USB_REQ_CLEAR_FEATURE, 2817 USB_RECIP_DEVICE, 2818 USB_DEVICE_REMOTE_WAKEUP, 0, 2819 NULL, 0, 2820 USB_CTRL_SET_TIMEOUT); 2821 if (status) 2822 dev_dbg(&udev->dev, 2823 "disable remote wakeup, status %d\n", 2824 status); 2825 } 2826 status = 0; 2827 } 2828 return status; 2829 } 2830 2831 /* 2832 * usb_port_resume - re-activate a suspended usb device's upstream port 2833 * @udev: device to re-activate, not a root hub 2834 * Context: must be able to sleep; device not locked; pm locks held 2835 * 2836 * This will re-activate the suspended device, increasing power usage 2837 * while letting drivers communicate again with its endpoints. 2838 * USB resume explicitly guarantees that the power session between 2839 * the host and the device is the same as it was when the device 2840 * suspended. 2841 * 2842 * If @udev->reset_resume is set then this routine won't check that the 2843 * port is still enabled. Furthermore, finish_port_resume() above will 2844 * reset @udev. The end result is that a broken power session can be 2845 * recovered and @udev will appear to persist across a loss of VBUS power. 2846 * 2847 * For example, if a host controller doesn't maintain VBUS suspend current 2848 * during a system sleep or is reset when the system wakes up, all the USB 2849 * power sessions below it will be broken. This is especially troublesome 2850 * for mass-storage devices containing mounted filesystems, since the 2851 * device will appear to have disconnected and all the memory mappings 2852 * to it will be lost. Using the USB_PERSIST facility, the device can be 2853 * made to appear as if it had not disconnected. 2854 * 2855 * This facility can be dangerous. Although usb_reset_and_verify_device() makes 2856 * every effort to insure that the same device is present after the 2857 * reset as before, it cannot provide a 100% guarantee. Furthermore it's 2858 * quite possible for a device to remain unaltered but its media to be 2859 * changed. If the user replaces a flash memory card while the system is 2860 * asleep, he will have only himself to blame when the filesystem on the 2861 * new card is corrupted and the system crashes. 2862 * 2863 * Returns 0 on success, else negative errno. 2864 */ 2865 int usb_port_resume(struct usb_device *udev, pm_message_t msg) 2866 { 2867 struct usb_hub *hub = hdev_to_hub(udev->parent); 2868 int port1 = udev->portnum; 2869 int status; 2870 u16 portchange, portstatus; 2871 2872 /* Skip the initial Clear-Suspend step for a remote wakeup */ 2873 status = hub_port_status(hub, port1, &portstatus, &portchange); 2874 if (status == 0 && !port_is_suspended(hub, portstatus)) 2875 goto SuspendCleared; 2876 2877 // dev_dbg(hub->intfdev, "resume port %d\n", port1); 2878 2879 set_bit(port1, hub->busy_bits); 2880 2881 /* see 7.1.7.7; affects power usage, but not budgeting */ 2882 if (hub_is_superspeed(hub->hdev)) 2883 status = set_port_feature(hub->hdev, 2884 port1 | (USB_SS_PORT_LS_U0 << 3), 2885 USB_PORT_FEAT_LINK_STATE); 2886 else 2887 status = clear_port_feature(hub->hdev, 2888 port1, USB_PORT_FEAT_SUSPEND); 2889 if (status) { 2890 dev_dbg(hub->intfdev, "can't resume port %d, status %d\n", 2891 port1, status); 2892 } else { 2893 /* drive resume for at least 20 msec */ 2894 dev_dbg(&udev->dev, "usb %sresume\n", 2895 (PMSG_IS_AUTO(msg) ? "auto-" : "")); 2896 msleep(25); 2897 2898 /* Virtual root hubs can trigger on GET_PORT_STATUS to 2899 * stop resume signaling. Then finish the resume 2900 * sequence. 2901 */ 2902 status = hub_port_status(hub, port1, &portstatus, &portchange); 2903 2904 /* TRSMRCY = 10 msec */ 2905 msleep(10); 2906 } 2907 2908 SuspendCleared: 2909 if (status == 0) { 2910 if (hub_is_superspeed(hub->hdev)) { 2911 if (portchange & USB_PORT_STAT_C_LINK_STATE) 2912 clear_port_feature(hub->hdev, port1, 2913 USB_PORT_FEAT_C_PORT_LINK_STATE); 2914 } else { 2915 if (portchange & USB_PORT_STAT_C_SUSPEND) 2916 clear_port_feature(hub->hdev, port1, 2917 USB_PORT_FEAT_C_SUSPEND); 2918 } 2919 } 2920 2921 clear_bit(port1, hub->busy_bits); 2922 2923 status = check_port_resume_type(udev, 2924 hub, port1, status, portchange, portstatus); 2925 if (status == 0) 2926 status = finish_port_resume(udev); 2927 if (status < 0) { 2928 dev_dbg(&udev->dev, "can't resume, status %d\n", status); 2929 hub_port_logical_disconnect(hub, port1); 2930 } else { 2931 /* Try to enable USB2 hardware LPM */ 2932 if (udev->usb2_hw_lpm_capable == 1) 2933 usb_set_usb2_hardware_lpm(udev, 1); 2934 2935 /* Try to enable USB3 LPM */ 2936 usb_unlocked_enable_lpm(udev); 2937 } 2938 2939 return status; 2940 } 2941 2942 /* caller has locked udev */ 2943 int usb_remote_wakeup(struct usb_device *udev) 2944 { 2945 int status = 0; 2946 2947 if (udev->state == USB_STATE_SUSPENDED) { 2948 dev_dbg(&udev->dev, "usb %sresume\n", "wakeup-"); 2949 status = usb_autoresume_device(udev); 2950 if (status == 0) { 2951 /* Let the drivers do their thing, then... */ 2952 usb_autosuspend_device(udev); 2953 } 2954 } 2955 return status; 2956 } 2957 2958 #else /* CONFIG_USB_SUSPEND */ 2959 2960 /* When CONFIG_USB_SUSPEND isn't set, we never suspend or resume any ports. */ 2961 2962 int usb_port_suspend(struct usb_device *udev, pm_message_t msg) 2963 { 2964 return 0; 2965 } 2966 2967 /* However we may need to do a reset-resume */ 2968 2969 int usb_port_resume(struct usb_device *udev, pm_message_t msg) 2970 { 2971 struct usb_hub *hub = hdev_to_hub(udev->parent); 2972 int port1 = udev->portnum; 2973 int status; 2974 u16 portchange, portstatus; 2975 2976 status = hub_port_status(hub, port1, &portstatus, &portchange); 2977 status = check_port_resume_type(udev, 2978 hub, port1, status, portchange, portstatus); 2979 2980 if (status) { 2981 dev_dbg(&udev->dev, "can't resume, status %d\n", status); 2982 hub_port_logical_disconnect(hub, port1); 2983 } else if (udev->reset_resume) { 2984 dev_dbg(&udev->dev, "reset-resume\n"); 2985 status = usb_reset_and_verify_device(udev); 2986 } 2987 return status; 2988 } 2989 2990 #endif 2991 2992 static int hub_suspend(struct usb_interface *intf, pm_message_t msg) 2993 { 2994 struct usb_hub *hub = usb_get_intfdata (intf); 2995 struct usb_device *hdev = hub->hdev; 2996 unsigned port1; 2997 int status; 2998 2999 /* Warn if children aren't already suspended */ 3000 for (port1 = 1; port1 <= hdev->maxchild; port1++) { 3001 struct usb_device *udev; 3002 3003 udev = hdev->children [port1-1]; 3004 if (udev && udev->can_submit) { 3005 dev_warn(&intf->dev, "port %d nyet suspended\n", port1); 3006 if (PMSG_IS_AUTO(msg)) 3007 return -EBUSY; 3008 } 3009 } 3010 if (hub_is_superspeed(hdev) && hdev->do_remote_wakeup) { 3011 /* Enable hub to send remote wakeup for all ports. */ 3012 for (port1 = 1; port1 <= hdev->maxchild; port1++) { 3013 status = set_port_feature(hdev, 3014 port1 | 3015 USB_PORT_FEAT_REMOTE_WAKE_CONNECT | 3016 USB_PORT_FEAT_REMOTE_WAKE_DISCONNECT | 3017 USB_PORT_FEAT_REMOTE_WAKE_OVER_CURRENT, 3018 USB_PORT_FEAT_REMOTE_WAKE_MASK); 3019 } 3020 } 3021 3022 dev_dbg(&intf->dev, "%s\n", __func__); 3023 3024 /* stop khubd and related activity */ 3025 hub_quiesce(hub, HUB_SUSPEND); 3026 return 0; 3027 } 3028 3029 static int hub_resume(struct usb_interface *intf) 3030 { 3031 struct usb_hub *hub = usb_get_intfdata(intf); 3032 3033 dev_dbg(&intf->dev, "%s\n", __func__); 3034 hub_activate(hub, HUB_RESUME); 3035 return 0; 3036 } 3037 3038 static int hub_reset_resume(struct usb_interface *intf) 3039 { 3040 struct usb_hub *hub = usb_get_intfdata(intf); 3041 3042 dev_dbg(&intf->dev, "%s\n", __func__); 3043 hub_activate(hub, HUB_RESET_RESUME); 3044 return 0; 3045 } 3046 3047 /** 3048 * usb_root_hub_lost_power - called by HCD if the root hub lost Vbus power 3049 * @rhdev: struct usb_device for the root hub 3050 * 3051 * The USB host controller driver calls this function when its root hub 3052 * is resumed and Vbus power has been interrupted or the controller 3053 * has been reset. The routine marks @rhdev as having lost power. 3054 * When the hub driver is resumed it will take notice and carry out 3055 * power-session recovery for all the "USB-PERSIST"-enabled child devices; 3056 * the others will be disconnected. 3057 */ 3058 void usb_root_hub_lost_power(struct usb_device *rhdev) 3059 { 3060 dev_warn(&rhdev->dev, "root hub lost power or was reset\n"); 3061 rhdev->reset_resume = 1; 3062 } 3063 EXPORT_SYMBOL_GPL(usb_root_hub_lost_power); 3064 3065 static const char * const usb3_lpm_names[] = { 3066 "U0", 3067 "U1", 3068 "U2", 3069 "U3", 3070 }; 3071 3072 /* 3073 * Send a Set SEL control transfer to the device, prior to enabling 3074 * device-initiated U1 or U2. This lets the device know the exit latencies from 3075 * the time the device initiates a U1 or U2 exit, to the time it will receive a 3076 * packet from the host. 3077 * 3078 * This function will fail if the SEL or PEL values for udev are greater than 3079 * the maximum allowed values for the link state to be enabled. 3080 */ 3081 static int usb_req_set_sel(struct usb_device *udev, enum usb3_link_state state) 3082 { 3083 struct usb_set_sel_req *sel_values; 3084 unsigned long long u1_sel; 3085 unsigned long long u1_pel; 3086 unsigned long long u2_sel; 3087 unsigned long long u2_pel; 3088 int ret; 3089 3090 /* Convert SEL and PEL stored in ns to us */ 3091 u1_sel = DIV_ROUND_UP(udev->u1_params.sel, 1000); 3092 u1_pel = DIV_ROUND_UP(udev->u1_params.pel, 1000); 3093 u2_sel = DIV_ROUND_UP(udev->u2_params.sel, 1000); 3094 u2_pel = DIV_ROUND_UP(udev->u2_params.pel, 1000); 3095 3096 /* 3097 * Make sure that the calculated SEL and PEL values for the link 3098 * state we're enabling aren't bigger than the max SEL/PEL 3099 * value that will fit in the SET SEL control transfer. 3100 * Otherwise the device would get an incorrect idea of the exit 3101 * latency for the link state, and could start a device-initiated 3102 * U1/U2 when the exit latencies are too high. 3103 */ 3104 if ((state == USB3_LPM_U1 && 3105 (u1_sel > USB3_LPM_MAX_U1_SEL_PEL || 3106 u1_pel > USB3_LPM_MAX_U1_SEL_PEL)) || 3107 (state == USB3_LPM_U2 && 3108 (u2_sel > USB3_LPM_MAX_U2_SEL_PEL || 3109 u2_pel > USB3_LPM_MAX_U2_SEL_PEL))) { 3110 dev_dbg(&udev->dev, "Device-initiated %s disabled due " 3111 "to long SEL %llu ms or PEL %llu ms\n", 3112 usb3_lpm_names[state], u1_sel, u1_pel); 3113 return -EINVAL; 3114 } 3115 3116 /* 3117 * If we're enabling device-initiated LPM for one link state, 3118 * but the other link state has a too high SEL or PEL value, 3119 * just set those values to the max in the Set SEL request. 3120 */ 3121 if (u1_sel > USB3_LPM_MAX_U1_SEL_PEL) 3122 u1_sel = USB3_LPM_MAX_U1_SEL_PEL; 3123 3124 if (u1_pel > USB3_LPM_MAX_U1_SEL_PEL) 3125 u1_pel = USB3_LPM_MAX_U1_SEL_PEL; 3126 3127 if (u2_sel > USB3_LPM_MAX_U2_SEL_PEL) 3128 u2_sel = USB3_LPM_MAX_U2_SEL_PEL; 3129 3130 if (u2_pel > USB3_LPM_MAX_U2_SEL_PEL) 3131 u2_pel = USB3_LPM_MAX_U2_SEL_PEL; 3132 3133 /* 3134 * usb_enable_lpm() can be called as part of a failed device reset, 3135 * which may be initiated by an error path of a mass storage driver. 3136 * Therefore, use GFP_NOIO. 3137 */ 3138 sel_values = kmalloc(sizeof *(sel_values), GFP_NOIO); 3139 if (!sel_values) 3140 return -ENOMEM; 3141 3142 sel_values->u1_sel = u1_sel; 3143 sel_values->u1_pel = u1_pel; 3144 sel_values->u2_sel = cpu_to_le16(u2_sel); 3145 sel_values->u2_pel = cpu_to_le16(u2_pel); 3146 3147 ret = usb_control_msg(udev, usb_sndctrlpipe(udev, 0), 3148 USB_REQ_SET_SEL, 3149 USB_RECIP_DEVICE, 3150 0, 0, 3151 sel_values, sizeof *(sel_values), 3152 USB_CTRL_SET_TIMEOUT); 3153 kfree(sel_values); 3154 return ret; 3155 } 3156 3157 /* 3158 * Enable or disable device-initiated U1 or U2 transitions. 3159 */ 3160 static int usb_set_device_initiated_lpm(struct usb_device *udev, 3161 enum usb3_link_state state, bool enable) 3162 { 3163 int ret; 3164 int feature; 3165 3166 switch (state) { 3167 case USB3_LPM_U1: 3168 feature = USB_DEVICE_U1_ENABLE; 3169 break; 3170 case USB3_LPM_U2: 3171 feature = USB_DEVICE_U2_ENABLE; 3172 break; 3173 default: 3174 dev_warn(&udev->dev, "%s: Can't %s non-U1 or U2 state.\n", 3175 __func__, enable ? "enable" : "disable"); 3176 return -EINVAL; 3177 } 3178 3179 if (udev->state != USB_STATE_CONFIGURED) { 3180 dev_dbg(&udev->dev, "%s: Can't %s %s state " 3181 "for unconfigured device.\n", 3182 __func__, enable ? "enable" : "disable", 3183 usb3_lpm_names[state]); 3184 return 0; 3185 } 3186 3187 if (enable) { 3188 /* 3189 * First, let the device know about the exit latencies 3190 * associated with the link state we're about to enable. 3191 */ 3192 ret = usb_req_set_sel(udev, state); 3193 if (ret < 0) { 3194 dev_warn(&udev->dev, "Set SEL for device-initiated " 3195 "%s failed.\n", usb3_lpm_names[state]); 3196 return -EBUSY; 3197 } 3198 /* 3199 * Now send the control transfer to enable device-initiated LPM 3200 * for either U1 or U2. 3201 */ 3202 ret = usb_control_msg(udev, usb_sndctrlpipe(udev, 0), 3203 USB_REQ_SET_FEATURE, 3204 USB_RECIP_DEVICE, 3205 feature, 3206 0, NULL, 0, 3207 USB_CTRL_SET_TIMEOUT); 3208 } else { 3209 ret = usb_control_msg(udev, usb_sndctrlpipe(udev, 0), 3210 USB_REQ_CLEAR_FEATURE, 3211 USB_RECIP_DEVICE, 3212 feature, 3213 0, NULL, 0, 3214 USB_CTRL_SET_TIMEOUT); 3215 } 3216 if (ret < 0) { 3217 dev_warn(&udev->dev, "%s of device-initiated %s failed.\n", 3218 enable ? "Enable" : "Disable", 3219 usb3_lpm_names[state]); 3220 return -EBUSY; 3221 } 3222 return 0; 3223 } 3224 3225 static int usb_set_lpm_timeout(struct usb_device *udev, 3226 enum usb3_link_state state, int timeout) 3227 { 3228 int ret; 3229 int feature; 3230 3231 switch (state) { 3232 case USB3_LPM_U1: 3233 feature = USB_PORT_FEAT_U1_TIMEOUT; 3234 break; 3235 case USB3_LPM_U2: 3236 feature = USB_PORT_FEAT_U2_TIMEOUT; 3237 break; 3238 default: 3239 dev_warn(&udev->dev, "%s: Can't set timeout for non-U1 or U2 state.\n", 3240 __func__); 3241 return -EINVAL; 3242 } 3243 3244 if (state == USB3_LPM_U1 && timeout > USB3_LPM_U1_MAX_TIMEOUT && 3245 timeout != USB3_LPM_DEVICE_INITIATED) { 3246 dev_warn(&udev->dev, "Failed to set %s timeout to 0x%x, " 3247 "which is a reserved value.\n", 3248 usb3_lpm_names[state], timeout); 3249 return -EINVAL; 3250 } 3251 3252 ret = set_port_feature(udev->parent, 3253 USB_PORT_LPM_TIMEOUT(timeout) | udev->portnum, 3254 feature); 3255 if (ret < 0) { 3256 dev_warn(&udev->dev, "Failed to set %s timeout to 0x%x," 3257 "error code %i\n", usb3_lpm_names[state], 3258 timeout, ret); 3259 return -EBUSY; 3260 } 3261 if (state == USB3_LPM_U1) 3262 udev->u1_params.timeout = timeout; 3263 else 3264 udev->u2_params.timeout = timeout; 3265 return 0; 3266 } 3267 3268 /* 3269 * Enable the hub-initiated U1/U2 idle timeouts, and enable device-initiated 3270 * U1/U2 entry. 3271 * 3272 * We will attempt to enable U1 or U2, but there are no guarantees that the 3273 * control transfers to set the hub timeout or enable device-initiated U1/U2 3274 * will be successful. 3275 * 3276 * If we cannot set the parent hub U1/U2 timeout, we attempt to let the xHCI 3277 * driver know about it. If that call fails, it should be harmless, and just 3278 * take up more slightly more bus bandwidth for unnecessary U1/U2 exit latency. 3279 */ 3280 static void usb_enable_link_state(struct usb_hcd *hcd, struct usb_device *udev, 3281 enum usb3_link_state state) 3282 { 3283 int timeout; 3284 3285 /* We allow the host controller to set the U1/U2 timeout internally 3286 * first, so that it can change its schedule to account for the 3287 * additional latency to send data to a device in a lower power 3288 * link state. 3289 */ 3290 timeout = hcd->driver->enable_usb3_lpm_timeout(hcd, udev, state); 3291 3292 /* xHCI host controller doesn't want to enable this LPM state. */ 3293 if (timeout == 0) 3294 return; 3295 3296 if (timeout < 0) { 3297 dev_warn(&udev->dev, "Could not enable %s link state, " 3298 "xHCI error %i.\n", usb3_lpm_names[state], 3299 timeout); 3300 return; 3301 } 3302 3303 if (usb_set_lpm_timeout(udev, state, timeout)) 3304 /* If we can't set the parent hub U1/U2 timeout, 3305 * device-initiated LPM won't be allowed either, so let the xHCI 3306 * host know that this link state won't be enabled. 3307 */ 3308 hcd->driver->disable_usb3_lpm_timeout(hcd, udev, state); 3309 3310 /* Only a configured device will accept the Set Feature U1/U2_ENABLE */ 3311 else if (udev->actconfig) 3312 usb_set_device_initiated_lpm(udev, state, true); 3313 3314 } 3315 3316 /* 3317 * Disable the hub-initiated U1/U2 idle timeouts, and disable device-initiated 3318 * U1/U2 entry. 3319 * 3320 * If this function returns -EBUSY, the parent hub will still allow U1/U2 entry. 3321 * If zero is returned, the parent will not allow the link to go into U1/U2. 3322 * 3323 * If zero is returned, device-initiated U1/U2 entry may still be enabled, but 3324 * it won't have an effect on the bus link state because the parent hub will 3325 * still disallow device-initiated U1/U2 entry. 3326 * 3327 * If zero is returned, the xHCI host controller may still think U1/U2 entry is 3328 * possible. The result will be slightly more bus bandwidth will be taken up 3329 * (to account for U1/U2 exit latency), but it should be harmless. 3330 */ 3331 static int usb_disable_link_state(struct usb_hcd *hcd, struct usb_device *udev, 3332 enum usb3_link_state state) 3333 { 3334 int feature; 3335 3336 switch (state) { 3337 case USB3_LPM_U1: 3338 feature = USB_PORT_FEAT_U1_TIMEOUT; 3339 break; 3340 case USB3_LPM_U2: 3341 feature = USB_PORT_FEAT_U2_TIMEOUT; 3342 break; 3343 default: 3344 dev_warn(&udev->dev, "%s: Can't disable non-U1 or U2 state.\n", 3345 __func__); 3346 return -EINVAL; 3347 } 3348 3349 if (usb_set_lpm_timeout(udev, state, 0)) 3350 return -EBUSY; 3351 3352 usb_set_device_initiated_lpm(udev, state, false); 3353 3354 if (hcd->driver->disable_usb3_lpm_timeout(hcd, udev, state)) 3355 dev_warn(&udev->dev, "Could not disable xHCI %s timeout, " 3356 "bus schedule bandwidth may be impacted.\n", 3357 usb3_lpm_names[state]); 3358 return 0; 3359 } 3360 3361 /* 3362 * Disable hub-initiated and device-initiated U1 and U2 entry. 3363 * Caller must own the bandwidth_mutex. 3364 * 3365 * This will call usb_enable_lpm() on failure, which will decrement 3366 * lpm_disable_count, and will re-enable LPM if lpm_disable_count reaches zero. 3367 */ 3368 int usb_disable_lpm(struct usb_device *udev) 3369 { 3370 struct usb_hcd *hcd; 3371 3372 if (!udev || !udev->parent || 3373 udev->speed != USB_SPEED_SUPER || 3374 !udev->lpm_capable) 3375 return 0; 3376 3377 hcd = bus_to_hcd(udev->bus); 3378 if (!hcd || !hcd->driver->disable_usb3_lpm_timeout) 3379 return 0; 3380 3381 udev->lpm_disable_count++; 3382 if ((udev->u1_params.timeout == 0 && udev->u1_params.timeout == 0)) 3383 return 0; 3384 3385 /* If LPM is enabled, attempt to disable it. */ 3386 if (usb_disable_link_state(hcd, udev, USB3_LPM_U1)) 3387 goto enable_lpm; 3388 if (usb_disable_link_state(hcd, udev, USB3_LPM_U2)) 3389 goto enable_lpm; 3390 3391 return 0; 3392 3393 enable_lpm: 3394 usb_enable_lpm(udev); 3395 return -EBUSY; 3396 } 3397 EXPORT_SYMBOL_GPL(usb_disable_lpm); 3398 3399 /* Grab the bandwidth_mutex before calling usb_disable_lpm() */ 3400 int usb_unlocked_disable_lpm(struct usb_device *udev) 3401 { 3402 struct usb_hcd *hcd = bus_to_hcd(udev->bus); 3403 int ret; 3404 3405 if (!hcd) 3406 return -EINVAL; 3407 3408 mutex_lock(hcd->bandwidth_mutex); 3409 ret = usb_disable_lpm(udev); 3410 mutex_unlock(hcd->bandwidth_mutex); 3411 3412 return ret; 3413 } 3414 EXPORT_SYMBOL_GPL(usb_unlocked_disable_lpm); 3415 3416 /* 3417 * Attempt to enable device-initiated and hub-initiated U1 and U2 entry. The 3418 * xHCI host policy may prevent U1 or U2 from being enabled. 3419 * 3420 * Other callers may have disabled link PM, so U1 and U2 entry will be disabled 3421 * until the lpm_disable_count drops to zero. Caller must own the 3422 * bandwidth_mutex. 3423 */ 3424 void usb_enable_lpm(struct usb_device *udev) 3425 { 3426 struct usb_hcd *hcd; 3427 3428 if (!udev || !udev->parent || 3429 udev->speed != USB_SPEED_SUPER || 3430 !udev->lpm_capable) 3431 return; 3432 3433 udev->lpm_disable_count--; 3434 hcd = bus_to_hcd(udev->bus); 3435 /* Double check that we can both enable and disable LPM. 3436 * Device must be configured to accept set feature U1/U2 timeout. 3437 */ 3438 if (!hcd || !hcd->driver->enable_usb3_lpm_timeout || 3439 !hcd->driver->disable_usb3_lpm_timeout) 3440 return; 3441 3442 if (udev->lpm_disable_count > 0) 3443 return; 3444 3445 usb_enable_link_state(hcd, udev, USB3_LPM_U1); 3446 usb_enable_link_state(hcd, udev, USB3_LPM_U2); 3447 } 3448 EXPORT_SYMBOL_GPL(usb_enable_lpm); 3449 3450 /* Grab the bandwidth_mutex before calling usb_enable_lpm() */ 3451 void usb_unlocked_enable_lpm(struct usb_device *udev) 3452 { 3453 struct usb_hcd *hcd = bus_to_hcd(udev->bus); 3454 3455 if (!hcd) 3456 return; 3457 3458 mutex_lock(hcd->bandwidth_mutex); 3459 usb_enable_lpm(udev); 3460 mutex_unlock(hcd->bandwidth_mutex); 3461 } 3462 EXPORT_SYMBOL_GPL(usb_unlocked_enable_lpm); 3463 3464 3465 #else /* CONFIG_PM */ 3466 3467 #define hub_suspend NULL 3468 #define hub_resume NULL 3469 #define hub_reset_resume NULL 3470 3471 int usb_disable_lpm(struct usb_device *udev) 3472 { 3473 return 0; 3474 } 3475 EXPORT_SYMBOL_GPL(usb_disable_lpm); 3476 3477 void usb_enable_lpm(struct usb_device *udev) { } 3478 EXPORT_SYMBOL_GPL(usb_enable_lpm); 3479 3480 int usb_unlocked_disable_lpm(struct usb_device *udev) 3481 { 3482 return 0; 3483 } 3484 EXPORT_SYMBOL_GPL(usb_unlocked_disable_lpm); 3485 3486 void usb_unlocked_enable_lpm(struct usb_device *udev) { } 3487 EXPORT_SYMBOL_GPL(usb_unlocked_enable_lpm); 3488 #endif 3489 3490 3491 /* USB 2.0 spec, 7.1.7.3 / fig 7-29: 3492 * 3493 * Between connect detection and reset signaling there must be a delay 3494 * of 100ms at least for debounce and power-settling. The corresponding 3495 * timer shall restart whenever the downstream port detects a disconnect. 3496 * 3497 * Apparently there are some bluetooth and irda-dongles and a number of 3498 * low-speed devices for which this debounce period may last over a second. 3499 * Not covered by the spec - but easy to deal with. 3500 * 3501 * This implementation uses a 1500ms total debounce timeout; if the 3502 * connection isn't stable by then it returns -ETIMEDOUT. It checks 3503 * every 25ms for transient disconnects. When the port status has been 3504 * unchanged for 100ms it returns the port status. 3505 */ 3506 static int hub_port_debounce(struct usb_hub *hub, int port1) 3507 { 3508 int ret; 3509 int total_time, stable_time = 0; 3510 u16 portchange, portstatus; 3511 unsigned connection = 0xffff; 3512 3513 for (total_time = 0; ; total_time += HUB_DEBOUNCE_STEP) { 3514 ret = hub_port_status(hub, port1, &portstatus, &portchange); 3515 if (ret < 0) 3516 return ret; 3517 3518 if (!(portchange & USB_PORT_STAT_C_CONNECTION) && 3519 (portstatus & USB_PORT_STAT_CONNECTION) == connection) { 3520 stable_time += HUB_DEBOUNCE_STEP; 3521 if (stable_time >= HUB_DEBOUNCE_STABLE) 3522 break; 3523 } else { 3524 stable_time = 0; 3525 connection = portstatus & USB_PORT_STAT_CONNECTION; 3526 } 3527 3528 if (portchange & USB_PORT_STAT_C_CONNECTION) { 3529 clear_port_feature(hub->hdev, port1, 3530 USB_PORT_FEAT_C_CONNECTION); 3531 } 3532 3533 if (total_time >= HUB_DEBOUNCE_TIMEOUT) 3534 break; 3535 msleep(HUB_DEBOUNCE_STEP); 3536 } 3537 3538 dev_dbg (hub->intfdev, 3539 "debounce: port %d: total %dms stable %dms status 0x%x\n", 3540 port1, total_time, stable_time, portstatus); 3541 3542 if (stable_time < HUB_DEBOUNCE_STABLE) 3543 return -ETIMEDOUT; 3544 return portstatus; 3545 } 3546 3547 void usb_ep0_reinit(struct usb_device *udev) 3548 { 3549 usb_disable_endpoint(udev, 0 + USB_DIR_IN, true); 3550 usb_disable_endpoint(udev, 0 + USB_DIR_OUT, true); 3551 usb_enable_endpoint(udev, &udev->ep0, true); 3552 } 3553 EXPORT_SYMBOL_GPL(usb_ep0_reinit); 3554 3555 #define usb_sndaddr0pipe() (PIPE_CONTROL << 30) 3556 #define usb_rcvaddr0pipe() ((PIPE_CONTROL << 30) | USB_DIR_IN) 3557 3558 static int hub_set_address(struct usb_device *udev, int devnum) 3559 { 3560 int retval; 3561 struct usb_hcd *hcd = bus_to_hcd(udev->bus); 3562 3563 /* 3564 * The host controller will choose the device address, 3565 * instead of the core having chosen it earlier 3566 */ 3567 if (!hcd->driver->address_device && devnum <= 1) 3568 return -EINVAL; 3569 if (udev->state == USB_STATE_ADDRESS) 3570 return 0; 3571 if (udev->state != USB_STATE_DEFAULT) 3572 return -EINVAL; 3573 if (hcd->driver->address_device) 3574 retval = hcd->driver->address_device(hcd, udev); 3575 else 3576 retval = usb_control_msg(udev, usb_sndaddr0pipe(), 3577 USB_REQ_SET_ADDRESS, 0, devnum, 0, 3578 NULL, 0, USB_CTRL_SET_TIMEOUT); 3579 if (retval == 0) { 3580 update_devnum(udev, devnum); 3581 /* Device now using proper address. */ 3582 usb_set_device_state(udev, USB_STATE_ADDRESS); 3583 usb_ep0_reinit(udev); 3584 } 3585 return retval; 3586 } 3587 3588 /* Reset device, (re)assign address, get device descriptor. 3589 * Device connection must be stable, no more debouncing needed. 3590 * Returns device in USB_STATE_ADDRESS, except on error. 3591 * 3592 * If this is called for an already-existing device (as part of 3593 * usb_reset_and_verify_device), the caller must own the device lock. For a 3594 * newly detected device that is not accessible through any global 3595 * pointers, it's not necessary to lock the device. 3596 */ 3597 static int 3598 hub_port_init (struct usb_hub *hub, struct usb_device *udev, int port1, 3599 int retry_counter) 3600 { 3601 static DEFINE_MUTEX(usb_address0_mutex); 3602 3603 struct usb_device *hdev = hub->hdev; 3604 struct usb_hcd *hcd = bus_to_hcd(hdev->bus); 3605 int i, j, retval; 3606 unsigned delay = HUB_SHORT_RESET_TIME; 3607 enum usb_device_speed oldspeed = udev->speed; 3608 const char *speed; 3609 int devnum = udev->devnum; 3610 3611 /* root hub ports have a slightly longer reset period 3612 * (from USB 2.0 spec, section 7.1.7.5) 3613 */ 3614 if (!hdev->parent) { 3615 delay = HUB_ROOT_RESET_TIME; 3616 if (port1 == hdev->bus->otg_port) 3617 hdev->bus->b_hnp_enable = 0; 3618 } 3619 3620 /* Some low speed devices have problems with the quick delay, so */ 3621 /* be a bit pessimistic with those devices. RHbug #23670 */ 3622 if (oldspeed == USB_SPEED_LOW) 3623 delay = HUB_LONG_RESET_TIME; 3624 3625 mutex_lock(&usb_address0_mutex); 3626 3627 /* Reset the device; full speed may morph to high speed */ 3628 /* FIXME a USB 2.0 device may morph into SuperSpeed on reset. */ 3629 retval = hub_port_reset(hub, port1, udev, delay, false); 3630 if (retval < 0) /* error or disconnect */ 3631 goto fail; 3632 /* success, speed is known */ 3633 3634 retval = -ENODEV; 3635 3636 if (oldspeed != USB_SPEED_UNKNOWN && oldspeed != udev->speed) { 3637 dev_dbg(&udev->dev, "device reset changed speed!\n"); 3638 goto fail; 3639 } 3640 oldspeed = udev->speed; 3641 3642 /* USB 2.0 section 5.5.3 talks about ep0 maxpacket ... 3643 * it's fixed size except for full speed devices. 3644 * For Wireless USB devices, ep0 max packet is always 512 (tho 3645 * reported as 0xff in the device descriptor). WUSB1.0[4.8.1]. 3646 */ 3647 switch (udev->speed) { 3648 case USB_SPEED_SUPER: 3649 case USB_SPEED_WIRELESS: /* fixed at 512 */ 3650 udev->ep0.desc.wMaxPacketSize = cpu_to_le16(512); 3651 break; 3652 case USB_SPEED_HIGH: /* fixed at 64 */ 3653 udev->ep0.desc.wMaxPacketSize = cpu_to_le16(64); 3654 break; 3655 case USB_SPEED_FULL: /* 8, 16, 32, or 64 */ 3656 /* to determine the ep0 maxpacket size, try to read 3657 * the device descriptor to get bMaxPacketSize0 and 3658 * then correct our initial guess. 3659 */ 3660 udev->ep0.desc.wMaxPacketSize = cpu_to_le16(64); 3661 break; 3662 case USB_SPEED_LOW: /* fixed at 8 */ 3663 udev->ep0.desc.wMaxPacketSize = cpu_to_le16(8); 3664 break; 3665 default: 3666 goto fail; 3667 } 3668 3669 if (udev->speed == USB_SPEED_WIRELESS) 3670 speed = "variable speed Wireless"; 3671 else 3672 speed = usb_speed_string(udev->speed); 3673 3674 if (udev->speed != USB_SPEED_SUPER) 3675 dev_info(&udev->dev, 3676 "%s %s USB device number %d using %s\n", 3677 (udev->config) ? "reset" : "new", speed, 3678 devnum, udev->bus->controller->driver->name); 3679 3680 /* Set up TT records, if needed */ 3681 if (hdev->tt) { 3682 udev->tt = hdev->tt; 3683 udev->ttport = hdev->ttport; 3684 } else if (udev->speed != USB_SPEED_HIGH 3685 && hdev->speed == USB_SPEED_HIGH) { 3686 if (!hub->tt.hub) { 3687 dev_err(&udev->dev, "parent hub has no TT\n"); 3688 retval = -EINVAL; 3689 goto fail; 3690 } 3691 udev->tt = &hub->tt; 3692 udev->ttport = port1; 3693 } 3694 3695 /* Why interleave GET_DESCRIPTOR and SET_ADDRESS this way? 3696 * Because device hardware and firmware is sometimes buggy in 3697 * this area, and this is how Linux has done it for ages. 3698 * Change it cautiously. 3699 * 3700 * NOTE: If USE_NEW_SCHEME() is true we will start by issuing 3701 * a 64-byte GET_DESCRIPTOR request. This is what Windows does, 3702 * so it may help with some non-standards-compliant devices. 3703 * Otherwise we start with SET_ADDRESS and then try to read the 3704 * first 8 bytes of the device descriptor to get the ep0 maxpacket 3705 * value. 3706 */ 3707 for (i = 0; i < GET_DESCRIPTOR_TRIES; (++i, msleep(100))) { 3708 if (USE_NEW_SCHEME(retry_counter) && !(hcd->driver->flags & HCD_USB3)) { 3709 struct usb_device_descriptor *buf; 3710 int r = 0; 3711 3712 #define GET_DESCRIPTOR_BUFSIZE 64 3713 buf = kmalloc(GET_DESCRIPTOR_BUFSIZE, GFP_NOIO); 3714 if (!buf) { 3715 retval = -ENOMEM; 3716 continue; 3717 } 3718 3719 /* Retry on all errors; some devices are flakey. 3720 * 255 is for WUSB devices, we actually need to use 3721 * 512 (WUSB1.0[4.8.1]). 3722 */ 3723 for (j = 0; j < 3; ++j) { 3724 buf->bMaxPacketSize0 = 0; 3725 r = usb_control_msg(udev, usb_rcvaddr0pipe(), 3726 USB_REQ_GET_DESCRIPTOR, USB_DIR_IN, 3727 USB_DT_DEVICE << 8, 0, 3728 buf, GET_DESCRIPTOR_BUFSIZE, 3729 initial_descriptor_timeout); 3730 switch (buf->bMaxPacketSize0) { 3731 case 8: case 16: case 32: case 64: case 255: 3732 if (buf->bDescriptorType == 3733 USB_DT_DEVICE) { 3734 r = 0; 3735 break; 3736 } 3737 /* FALL THROUGH */ 3738 default: 3739 if (r == 0) 3740 r = -EPROTO; 3741 break; 3742 } 3743 if (r == 0) 3744 break; 3745 } 3746 udev->descriptor.bMaxPacketSize0 = 3747 buf->bMaxPacketSize0; 3748 kfree(buf); 3749 3750 retval = hub_port_reset(hub, port1, udev, delay, false); 3751 if (retval < 0) /* error or disconnect */ 3752 goto fail; 3753 if (oldspeed != udev->speed) { 3754 dev_dbg(&udev->dev, 3755 "device reset changed speed!\n"); 3756 retval = -ENODEV; 3757 goto fail; 3758 } 3759 if (r) { 3760 dev_err(&udev->dev, 3761 "device descriptor read/64, error %d\n", 3762 r); 3763 retval = -EMSGSIZE; 3764 continue; 3765 } 3766 #undef GET_DESCRIPTOR_BUFSIZE 3767 } 3768 3769 /* 3770 * If device is WUSB, we already assigned an 3771 * unauthorized address in the Connect Ack sequence; 3772 * authorization will assign the final address. 3773 */ 3774 if (udev->wusb == 0) { 3775 for (j = 0; j < SET_ADDRESS_TRIES; ++j) { 3776 retval = hub_set_address(udev, devnum); 3777 if (retval >= 0) 3778 break; 3779 msleep(200); 3780 } 3781 if (retval < 0) { 3782 dev_err(&udev->dev, 3783 "device not accepting address %d, error %d\n", 3784 devnum, retval); 3785 goto fail; 3786 } 3787 if (udev->speed == USB_SPEED_SUPER) { 3788 devnum = udev->devnum; 3789 dev_info(&udev->dev, 3790 "%s SuperSpeed USB device number %d using %s\n", 3791 (udev->config) ? "reset" : "new", 3792 devnum, udev->bus->controller->driver->name); 3793 } 3794 3795 /* cope with hardware quirkiness: 3796 * - let SET_ADDRESS settle, some device hardware wants it 3797 * - read ep0 maxpacket even for high and low speed, 3798 */ 3799 msleep(10); 3800 if (USE_NEW_SCHEME(retry_counter) && !(hcd->driver->flags & HCD_USB3)) 3801 break; 3802 } 3803 3804 retval = usb_get_device_descriptor(udev, 8); 3805 if (retval < 8) { 3806 dev_err(&udev->dev, 3807 "device descriptor read/8, error %d\n", 3808 retval); 3809 if (retval >= 0) 3810 retval = -EMSGSIZE; 3811 } else { 3812 retval = 0; 3813 break; 3814 } 3815 } 3816 if (retval) 3817 goto fail; 3818 3819 /* 3820 * Some superspeed devices have finished the link training process 3821 * and attached to a superspeed hub port, but the device descriptor 3822 * got from those devices show they aren't superspeed devices. Warm 3823 * reset the port attached by the devices can fix them. 3824 */ 3825 if ((udev->speed == USB_SPEED_SUPER) && 3826 (le16_to_cpu(udev->descriptor.bcdUSB) < 0x0300)) { 3827 dev_err(&udev->dev, "got a wrong device descriptor, " 3828 "warm reset device\n"); 3829 hub_port_reset(hub, port1, udev, 3830 HUB_BH_RESET_TIME, true); 3831 retval = -EINVAL; 3832 goto fail; 3833 } 3834 3835 if (udev->descriptor.bMaxPacketSize0 == 0xff || 3836 udev->speed == USB_SPEED_SUPER) 3837 i = 512; 3838 else 3839 i = udev->descriptor.bMaxPacketSize0; 3840 if (usb_endpoint_maxp(&udev->ep0.desc) != i) { 3841 if (udev->speed == USB_SPEED_LOW || 3842 !(i == 8 || i == 16 || i == 32 || i == 64)) { 3843 dev_err(&udev->dev, "Invalid ep0 maxpacket: %d\n", i); 3844 retval = -EMSGSIZE; 3845 goto fail; 3846 } 3847 if (udev->speed == USB_SPEED_FULL) 3848 dev_dbg(&udev->dev, "ep0 maxpacket = %d\n", i); 3849 else 3850 dev_warn(&udev->dev, "Using ep0 maxpacket: %d\n", i); 3851 udev->ep0.desc.wMaxPacketSize = cpu_to_le16(i); 3852 usb_ep0_reinit(udev); 3853 } 3854 3855 retval = usb_get_device_descriptor(udev, USB_DT_DEVICE_SIZE); 3856 if (retval < (signed)sizeof(udev->descriptor)) { 3857 dev_err(&udev->dev, "device descriptor read/all, error %d\n", 3858 retval); 3859 if (retval >= 0) 3860 retval = -ENOMSG; 3861 goto fail; 3862 } 3863 3864 if (udev->wusb == 0 && le16_to_cpu(udev->descriptor.bcdUSB) >= 0x0201) { 3865 retval = usb_get_bos_descriptor(udev); 3866 if (!retval) { 3867 udev->lpm_capable = usb_device_supports_lpm(udev); 3868 usb_set_lpm_parameters(udev); 3869 } 3870 } 3871 3872 retval = 0; 3873 /* notify HCD that we have a device connected and addressed */ 3874 if (hcd->driver->update_device) 3875 hcd->driver->update_device(hcd, udev); 3876 fail: 3877 if (retval) { 3878 hub_port_disable(hub, port1, 0); 3879 update_devnum(udev, devnum); /* for disconnect processing */ 3880 } 3881 mutex_unlock(&usb_address0_mutex); 3882 return retval; 3883 } 3884 3885 static void 3886 check_highspeed (struct usb_hub *hub, struct usb_device *udev, int port1) 3887 { 3888 struct usb_qualifier_descriptor *qual; 3889 int status; 3890 3891 qual = kmalloc (sizeof *qual, GFP_KERNEL); 3892 if (qual == NULL) 3893 return; 3894 3895 status = usb_get_descriptor (udev, USB_DT_DEVICE_QUALIFIER, 0, 3896 qual, sizeof *qual); 3897 if (status == sizeof *qual) { 3898 dev_info(&udev->dev, "not running at top speed; " 3899 "connect to a high speed hub\n"); 3900 /* hub LEDs are probably harder to miss than syslog */ 3901 if (hub->has_indicators) { 3902 hub->indicator[port1-1] = INDICATOR_GREEN_BLINK; 3903 schedule_delayed_work (&hub->leds, 0); 3904 } 3905 } 3906 kfree(qual); 3907 } 3908 3909 static unsigned 3910 hub_power_remaining (struct usb_hub *hub) 3911 { 3912 struct usb_device *hdev = hub->hdev; 3913 int remaining; 3914 int port1; 3915 3916 if (!hub->limited_power) 3917 return 0; 3918 3919 remaining = hdev->bus_mA - hub->descriptor->bHubContrCurrent; 3920 for (port1 = 1; port1 <= hdev->maxchild; ++port1) { 3921 struct usb_device *udev = hdev->children[port1 - 1]; 3922 int delta; 3923 3924 if (!udev) 3925 continue; 3926 3927 /* Unconfigured devices may not use more than 100mA, 3928 * or 8mA for OTG ports */ 3929 if (udev->actconfig) 3930 delta = udev->actconfig->desc.bMaxPower * 2; 3931 else if (port1 != udev->bus->otg_port || hdev->parent) 3932 delta = 100; 3933 else 3934 delta = 8; 3935 if (delta > hub->mA_per_port) 3936 dev_warn(&udev->dev, 3937 "%dmA is over %umA budget for port %d!\n", 3938 delta, hub->mA_per_port, port1); 3939 remaining -= delta; 3940 } 3941 if (remaining < 0) { 3942 dev_warn(hub->intfdev, "%dmA over power budget!\n", 3943 - remaining); 3944 remaining = 0; 3945 } 3946 return remaining; 3947 } 3948 3949 /* Handle physical or logical connection change events. 3950 * This routine is called when: 3951 * a port connection-change occurs; 3952 * a port enable-change occurs (often caused by EMI); 3953 * usb_reset_and_verify_device() encounters changed descriptors (as from 3954 * a firmware download) 3955 * caller already locked the hub 3956 */ 3957 static void hub_port_connect_change(struct usb_hub *hub, int port1, 3958 u16 portstatus, u16 portchange) 3959 { 3960 struct usb_device *hdev = hub->hdev; 3961 struct device *hub_dev = hub->intfdev; 3962 struct usb_hcd *hcd = bus_to_hcd(hdev->bus); 3963 unsigned wHubCharacteristics = 3964 le16_to_cpu(hub->descriptor->wHubCharacteristics); 3965 struct usb_device *udev; 3966 int status, i; 3967 3968 dev_dbg (hub_dev, 3969 "port %d, status %04x, change %04x, %s\n", 3970 port1, portstatus, portchange, portspeed(hub, portstatus)); 3971 3972 if (hub->has_indicators) { 3973 set_port_led(hub, port1, HUB_LED_AUTO); 3974 hub->indicator[port1-1] = INDICATOR_AUTO; 3975 } 3976 3977 #ifdef CONFIG_USB_OTG 3978 /* during HNP, don't repeat the debounce */ 3979 if (hdev->bus->is_b_host) 3980 portchange &= ~(USB_PORT_STAT_C_CONNECTION | 3981 USB_PORT_STAT_C_ENABLE); 3982 #endif 3983 3984 /* Try to resuscitate an existing device */ 3985 udev = hdev->children[port1-1]; 3986 if ((portstatus & USB_PORT_STAT_CONNECTION) && udev && 3987 udev->state != USB_STATE_NOTATTACHED) { 3988 usb_lock_device(udev); 3989 if (portstatus & USB_PORT_STAT_ENABLE) { 3990 status = 0; /* Nothing to do */ 3991 3992 #ifdef CONFIG_USB_SUSPEND 3993 } else if (udev->state == USB_STATE_SUSPENDED && 3994 udev->persist_enabled) { 3995 /* For a suspended device, treat this as a 3996 * remote wakeup event. 3997 */ 3998 status = usb_remote_wakeup(udev); 3999 #endif 4000 4001 } else { 4002 status = -ENODEV; /* Don't resuscitate */ 4003 } 4004 usb_unlock_device(udev); 4005 4006 if (status == 0) { 4007 clear_bit(port1, hub->change_bits); 4008 return; 4009 } 4010 } 4011 4012 /* Disconnect any existing devices under this port */ 4013 if (udev) 4014 usb_disconnect(&hdev->children[port1-1]); 4015 clear_bit(port1, hub->change_bits); 4016 4017 /* We can forget about a "removed" device when there's a physical 4018 * disconnect or the connect status changes. 4019 */ 4020 if (!(portstatus & USB_PORT_STAT_CONNECTION) || 4021 (portchange & USB_PORT_STAT_C_CONNECTION)) 4022 clear_bit(port1, hub->removed_bits); 4023 4024 if (portchange & (USB_PORT_STAT_C_CONNECTION | 4025 USB_PORT_STAT_C_ENABLE)) { 4026 status = hub_port_debounce(hub, port1); 4027 if (status < 0) { 4028 if (printk_ratelimit()) 4029 dev_err(hub_dev, "connect-debounce failed, " 4030 "port %d disabled\n", port1); 4031 portstatus &= ~USB_PORT_STAT_CONNECTION; 4032 } else { 4033 portstatus = status; 4034 } 4035 } 4036 4037 /* Return now if debouncing failed or nothing is connected or 4038 * the device was "removed". 4039 */ 4040 if (!(portstatus & USB_PORT_STAT_CONNECTION) || 4041 test_bit(port1, hub->removed_bits)) { 4042 4043 /* maybe switch power back on (e.g. root hub was reset) */ 4044 if ((wHubCharacteristics & HUB_CHAR_LPSM) < 2 4045 && !port_is_power_on(hub, portstatus)) 4046 set_port_feature(hdev, port1, USB_PORT_FEAT_POWER); 4047 4048 if (portstatus & USB_PORT_STAT_ENABLE) 4049 goto done; 4050 return; 4051 } 4052 4053 for (i = 0; i < SET_CONFIG_TRIES; i++) { 4054 4055 /* reallocate for each attempt, since references 4056 * to the previous one can escape in various ways 4057 */ 4058 udev = usb_alloc_dev(hdev, hdev->bus, port1); 4059 if (!udev) { 4060 dev_err (hub_dev, 4061 "couldn't allocate port %d usb_device\n", 4062 port1); 4063 goto done; 4064 } 4065 4066 usb_set_device_state(udev, USB_STATE_POWERED); 4067 udev->bus_mA = hub->mA_per_port; 4068 udev->level = hdev->level + 1; 4069 udev->wusb = hub_is_wusb(hub); 4070 4071 /* Only USB 3.0 devices are connected to SuperSpeed hubs. */ 4072 if (hub_is_superspeed(hub->hdev)) 4073 udev->speed = USB_SPEED_SUPER; 4074 else 4075 udev->speed = USB_SPEED_UNKNOWN; 4076 4077 choose_devnum(udev); 4078 if (udev->devnum <= 0) { 4079 status = -ENOTCONN; /* Don't retry */ 4080 goto loop; 4081 } 4082 4083 /* reset (non-USB 3.0 devices) and get descriptor */ 4084 status = hub_port_init(hub, udev, port1, i); 4085 if (status < 0) 4086 goto loop; 4087 4088 usb_detect_quirks(udev); 4089 if (udev->quirks & USB_QUIRK_DELAY_INIT) 4090 msleep(1000); 4091 4092 /* consecutive bus-powered hubs aren't reliable; they can 4093 * violate the voltage drop budget. if the new child has 4094 * a "powered" LED, users should notice we didn't enable it 4095 * (without reading syslog), even without per-port LEDs 4096 * on the parent. 4097 */ 4098 if (udev->descriptor.bDeviceClass == USB_CLASS_HUB 4099 && udev->bus_mA <= 100) { 4100 u16 devstat; 4101 4102 status = usb_get_status(udev, USB_RECIP_DEVICE, 0, 4103 &devstat); 4104 if (status < 2) { 4105 dev_dbg(&udev->dev, "get status %d ?\n", status); 4106 goto loop_disable; 4107 } 4108 le16_to_cpus(&devstat); 4109 if ((devstat & (1 << USB_DEVICE_SELF_POWERED)) == 0) { 4110 dev_err(&udev->dev, 4111 "can't connect bus-powered hub " 4112 "to this port\n"); 4113 if (hub->has_indicators) { 4114 hub->indicator[port1-1] = 4115 INDICATOR_AMBER_BLINK; 4116 schedule_delayed_work (&hub->leds, 0); 4117 } 4118 status = -ENOTCONN; /* Don't retry */ 4119 goto loop_disable; 4120 } 4121 } 4122 4123 /* check for devices running slower than they could */ 4124 if (le16_to_cpu(udev->descriptor.bcdUSB) >= 0x0200 4125 && udev->speed == USB_SPEED_FULL 4126 && highspeed_hubs != 0) 4127 check_highspeed (hub, udev, port1); 4128 4129 /* Store the parent's children[] pointer. At this point 4130 * udev becomes globally accessible, although presumably 4131 * no one will look at it until hdev is unlocked. 4132 */ 4133 status = 0; 4134 4135 /* We mustn't add new devices if the parent hub has 4136 * been disconnected; we would race with the 4137 * recursively_mark_NOTATTACHED() routine. 4138 */ 4139 spin_lock_irq(&device_state_lock); 4140 if (hdev->state == USB_STATE_NOTATTACHED) 4141 status = -ENOTCONN; 4142 else 4143 hdev->children[port1-1] = udev; 4144 spin_unlock_irq(&device_state_lock); 4145 4146 /* Run it through the hoops (find a driver, etc) */ 4147 if (!status) { 4148 status = usb_new_device(udev); 4149 if (status) { 4150 spin_lock_irq(&device_state_lock); 4151 hdev->children[port1-1] = NULL; 4152 spin_unlock_irq(&device_state_lock); 4153 } 4154 } 4155 4156 if (status) 4157 goto loop_disable; 4158 4159 status = hub_power_remaining(hub); 4160 if (status) 4161 dev_dbg(hub_dev, "%dmA power budget left\n", status); 4162 4163 return; 4164 4165 loop_disable: 4166 hub_port_disable(hub, port1, 1); 4167 loop: 4168 usb_ep0_reinit(udev); 4169 release_devnum(udev); 4170 hub_free_dev(udev); 4171 usb_put_dev(udev); 4172 if ((status == -ENOTCONN) || (status == -ENOTSUPP)) 4173 break; 4174 } 4175 if (hub->hdev->parent || 4176 !hcd->driver->port_handed_over || 4177 !(hcd->driver->port_handed_over)(hcd, port1)) 4178 dev_err(hub_dev, "unable to enumerate USB device on port %d\n", 4179 port1); 4180 4181 done: 4182 hub_port_disable(hub, port1, 1); 4183 if (hcd->driver->relinquish_port && !hub->hdev->parent) 4184 hcd->driver->relinquish_port(hcd, port1); 4185 } 4186 4187 /* Returns 1 if there was a remote wakeup and a connect status change. */ 4188 static int hub_handle_remote_wakeup(struct usb_hub *hub, unsigned int port, 4189 u16 portstatus, u16 portchange) 4190 { 4191 struct usb_device *hdev; 4192 struct usb_device *udev; 4193 int connect_change = 0; 4194 int ret; 4195 4196 hdev = hub->hdev; 4197 udev = hdev->children[port-1]; 4198 if (!hub_is_superspeed(hdev)) { 4199 if (!(portchange & USB_PORT_STAT_C_SUSPEND)) 4200 return 0; 4201 clear_port_feature(hdev, port, USB_PORT_FEAT_C_SUSPEND); 4202 } else { 4203 if (!udev || udev->state != USB_STATE_SUSPENDED || 4204 (portstatus & USB_PORT_STAT_LINK_STATE) != 4205 USB_SS_PORT_LS_U0) 4206 return 0; 4207 } 4208 4209 if (udev) { 4210 /* TRSMRCY = 10 msec */ 4211 msleep(10); 4212 4213 usb_lock_device(udev); 4214 ret = usb_remote_wakeup(udev); 4215 usb_unlock_device(udev); 4216 if (ret < 0) 4217 connect_change = 1; 4218 } else { 4219 ret = -ENODEV; 4220 hub_port_disable(hub, port, 1); 4221 } 4222 dev_dbg(hub->intfdev, "resume on port %d, status %d\n", 4223 port, ret); 4224 return connect_change; 4225 } 4226 4227 static void hub_events(void) 4228 { 4229 struct list_head *tmp; 4230 struct usb_device *hdev; 4231 struct usb_interface *intf; 4232 struct usb_hub *hub; 4233 struct device *hub_dev; 4234 u16 hubstatus; 4235 u16 hubchange; 4236 u16 portstatus; 4237 u16 portchange; 4238 int i, ret; 4239 int connect_change, wakeup_change; 4240 4241 /* 4242 * We restart the list every time to avoid a deadlock with 4243 * deleting hubs downstream from this one. This should be 4244 * safe since we delete the hub from the event list. 4245 * Not the most efficient, but avoids deadlocks. 4246 */ 4247 while (1) { 4248 4249 /* Grab the first entry at the beginning of the list */ 4250 spin_lock_irq(&hub_event_lock); 4251 if (list_empty(&hub_event_list)) { 4252 spin_unlock_irq(&hub_event_lock); 4253 break; 4254 } 4255 4256 tmp = hub_event_list.next; 4257 list_del_init(tmp); 4258 4259 hub = list_entry(tmp, struct usb_hub, event_list); 4260 kref_get(&hub->kref); 4261 spin_unlock_irq(&hub_event_lock); 4262 4263 hdev = hub->hdev; 4264 hub_dev = hub->intfdev; 4265 intf = to_usb_interface(hub_dev); 4266 dev_dbg(hub_dev, "state %d ports %d chg %04x evt %04x\n", 4267 hdev->state, hub->descriptor 4268 ? hub->descriptor->bNbrPorts 4269 : 0, 4270 /* NOTE: expects max 15 ports... */ 4271 (u16) hub->change_bits[0], 4272 (u16) hub->event_bits[0]); 4273 4274 /* Lock the device, then check to see if we were 4275 * disconnected while waiting for the lock to succeed. */ 4276 usb_lock_device(hdev); 4277 if (unlikely(hub->disconnected)) 4278 goto loop_disconnected; 4279 4280 /* If the hub has died, clean up after it */ 4281 if (hdev->state == USB_STATE_NOTATTACHED) { 4282 hub->error = -ENODEV; 4283 hub_quiesce(hub, HUB_DISCONNECT); 4284 goto loop; 4285 } 4286 4287 /* Autoresume */ 4288 ret = usb_autopm_get_interface(intf); 4289 if (ret) { 4290 dev_dbg(hub_dev, "Can't autoresume: %d\n", ret); 4291 goto loop; 4292 } 4293 4294 /* If this is an inactive hub, do nothing */ 4295 if (hub->quiescing) 4296 goto loop_autopm; 4297 4298 if (hub->error) { 4299 dev_dbg (hub_dev, "resetting for error %d\n", 4300 hub->error); 4301 4302 ret = usb_reset_device(hdev); 4303 if (ret) { 4304 dev_dbg (hub_dev, 4305 "error resetting hub: %d\n", ret); 4306 goto loop_autopm; 4307 } 4308 4309 hub->nerrors = 0; 4310 hub->error = 0; 4311 } 4312 4313 /* deal with port status changes */ 4314 for (i = 1; i <= hub->descriptor->bNbrPorts; i++) { 4315 if (test_bit(i, hub->busy_bits)) 4316 continue; 4317 connect_change = test_bit(i, hub->change_bits); 4318 wakeup_change = test_and_clear_bit(i, hub->wakeup_bits); 4319 if (!test_and_clear_bit(i, hub->event_bits) && 4320 !connect_change && !wakeup_change) 4321 continue; 4322 4323 ret = hub_port_status(hub, i, 4324 &portstatus, &portchange); 4325 if (ret < 0) 4326 continue; 4327 4328 if (portchange & USB_PORT_STAT_C_CONNECTION) { 4329 clear_port_feature(hdev, i, 4330 USB_PORT_FEAT_C_CONNECTION); 4331 connect_change = 1; 4332 } 4333 4334 if (portchange & USB_PORT_STAT_C_ENABLE) { 4335 if (!connect_change) 4336 dev_dbg (hub_dev, 4337 "port %d enable change, " 4338 "status %08x\n", 4339 i, portstatus); 4340 clear_port_feature(hdev, i, 4341 USB_PORT_FEAT_C_ENABLE); 4342 4343 /* 4344 * EM interference sometimes causes badly 4345 * shielded USB devices to be shutdown by 4346 * the hub, this hack enables them again. 4347 * Works at least with mouse driver. 4348 */ 4349 if (!(portstatus & USB_PORT_STAT_ENABLE) 4350 && !connect_change 4351 && hdev->children[i-1]) { 4352 dev_err (hub_dev, 4353 "port %i " 4354 "disabled by hub (EMI?), " 4355 "re-enabling...\n", 4356 i); 4357 connect_change = 1; 4358 } 4359 } 4360 4361 if (hub_handle_remote_wakeup(hub, i, 4362 portstatus, portchange)) 4363 connect_change = 1; 4364 4365 if (portchange & USB_PORT_STAT_C_OVERCURRENT) { 4366 u16 status = 0; 4367 u16 unused; 4368 4369 dev_dbg(hub_dev, "over-current change on port " 4370 "%d\n", i); 4371 clear_port_feature(hdev, i, 4372 USB_PORT_FEAT_C_OVER_CURRENT); 4373 msleep(100); /* Cool down */ 4374 hub_power_on(hub, true); 4375 hub_port_status(hub, i, &status, &unused); 4376 if (status & USB_PORT_STAT_OVERCURRENT) 4377 dev_err(hub_dev, "over-current " 4378 "condition on port %d\n", i); 4379 } 4380 4381 if (portchange & USB_PORT_STAT_C_RESET) { 4382 dev_dbg (hub_dev, 4383 "reset change on port %d\n", 4384 i); 4385 clear_port_feature(hdev, i, 4386 USB_PORT_FEAT_C_RESET); 4387 } 4388 if ((portchange & USB_PORT_STAT_C_BH_RESET) && 4389 hub_is_superspeed(hub->hdev)) { 4390 dev_dbg(hub_dev, 4391 "warm reset change on port %d\n", 4392 i); 4393 clear_port_feature(hdev, i, 4394 USB_PORT_FEAT_C_BH_PORT_RESET); 4395 } 4396 if (portchange & USB_PORT_STAT_C_LINK_STATE) { 4397 clear_port_feature(hub->hdev, i, 4398 USB_PORT_FEAT_C_PORT_LINK_STATE); 4399 } 4400 if (portchange & USB_PORT_STAT_C_CONFIG_ERROR) { 4401 dev_warn(hub_dev, 4402 "config error on port %d\n", 4403 i); 4404 clear_port_feature(hub->hdev, i, 4405 USB_PORT_FEAT_C_PORT_CONFIG_ERROR); 4406 } 4407 4408 /* Warm reset a USB3 protocol port if it's in 4409 * SS.Inactive state. 4410 */ 4411 if (hub_is_superspeed(hub->hdev) && 4412 (portstatus & USB_PORT_STAT_LINK_STATE) 4413 == USB_SS_PORT_LS_SS_INACTIVE) { 4414 dev_dbg(hub_dev, "warm reset port %d\n", i); 4415 hub_port_reset(hub, i, NULL, 4416 HUB_BH_RESET_TIME, true); 4417 } 4418 4419 if (connect_change) 4420 hub_port_connect_change(hub, i, 4421 portstatus, portchange); 4422 } /* end for i */ 4423 4424 /* deal with hub status changes */ 4425 if (test_and_clear_bit(0, hub->event_bits) == 0) 4426 ; /* do nothing */ 4427 else if (hub_hub_status(hub, &hubstatus, &hubchange) < 0) 4428 dev_err (hub_dev, "get_hub_status failed\n"); 4429 else { 4430 if (hubchange & HUB_CHANGE_LOCAL_POWER) { 4431 dev_dbg (hub_dev, "power change\n"); 4432 clear_hub_feature(hdev, C_HUB_LOCAL_POWER); 4433 if (hubstatus & HUB_STATUS_LOCAL_POWER) 4434 /* FIXME: Is this always true? */ 4435 hub->limited_power = 1; 4436 else 4437 hub->limited_power = 0; 4438 } 4439 if (hubchange & HUB_CHANGE_OVERCURRENT) { 4440 u16 status = 0; 4441 u16 unused; 4442 4443 dev_dbg(hub_dev, "over-current change\n"); 4444 clear_hub_feature(hdev, C_HUB_OVER_CURRENT); 4445 msleep(500); /* Cool down */ 4446 hub_power_on(hub, true); 4447 hub_hub_status(hub, &status, &unused); 4448 if (status & HUB_STATUS_OVERCURRENT) 4449 dev_err(hub_dev, "over-current " 4450 "condition\n"); 4451 } 4452 } 4453 4454 loop_autopm: 4455 /* Balance the usb_autopm_get_interface() above */ 4456 usb_autopm_put_interface_no_suspend(intf); 4457 loop: 4458 /* Balance the usb_autopm_get_interface_no_resume() in 4459 * kick_khubd() and allow autosuspend. 4460 */ 4461 usb_autopm_put_interface(intf); 4462 loop_disconnected: 4463 usb_unlock_device(hdev); 4464 kref_put(&hub->kref, hub_release); 4465 4466 } /* end while (1) */ 4467 } 4468 4469 static int hub_thread(void *__unused) 4470 { 4471 /* khubd needs to be freezable to avoid intefering with USB-PERSIST 4472 * port handover. Otherwise it might see that a full-speed device 4473 * was gone before the EHCI controller had handed its port over to 4474 * the companion full-speed controller. 4475 */ 4476 set_freezable(); 4477 4478 do { 4479 hub_events(); 4480 wait_event_freezable(khubd_wait, 4481 !list_empty(&hub_event_list) || 4482 kthread_should_stop()); 4483 } while (!kthread_should_stop() || !list_empty(&hub_event_list)); 4484 4485 pr_debug("%s: khubd exiting\n", usbcore_name); 4486 return 0; 4487 } 4488 4489 static const struct usb_device_id hub_id_table[] = { 4490 { .match_flags = USB_DEVICE_ID_MATCH_DEV_CLASS, 4491 .bDeviceClass = USB_CLASS_HUB}, 4492 { .match_flags = USB_DEVICE_ID_MATCH_INT_CLASS, 4493 .bInterfaceClass = USB_CLASS_HUB}, 4494 { } /* Terminating entry */ 4495 }; 4496 4497 MODULE_DEVICE_TABLE (usb, hub_id_table); 4498 4499 static struct usb_driver hub_driver = { 4500 .name = "hub", 4501 .probe = hub_probe, 4502 .disconnect = hub_disconnect, 4503 .suspend = hub_suspend, 4504 .resume = hub_resume, 4505 .reset_resume = hub_reset_resume, 4506 .pre_reset = hub_pre_reset, 4507 .post_reset = hub_post_reset, 4508 .unlocked_ioctl = hub_ioctl, 4509 .id_table = hub_id_table, 4510 .supports_autosuspend = 1, 4511 }; 4512 4513 int usb_hub_init(void) 4514 { 4515 if (usb_register(&hub_driver) < 0) { 4516 printk(KERN_ERR "%s: can't register hub driver\n", 4517 usbcore_name); 4518 return -1; 4519 } 4520 4521 khubd_task = kthread_run(hub_thread, NULL, "khubd"); 4522 if (!IS_ERR(khubd_task)) 4523 return 0; 4524 4525 /* Fall through if kernel_thread failed */ 4526 usb_deregister(&hub_driver); 4527 printk(KERN_ERR "%s: can't start khubd\n", usbcore_name); 4528 4529 return -1; 4530 } 4531 4532 void usb_hub_cleanup(void) 4533 { 4534 kthread_stop(khubd_task); 4535 4536 /* 4537 * Hub resources are freed for us by usb_deregister. It calls 4538 * usb_driver_purge on every device which in turn calls that 4539 * devices disconnect function if it is using this driver. 4540 * The hub_disconnect function takes care of releasing the 4541 * individual hub resources. -greg 4542 */ 4543 usb_deregister(&hub_driver); 4544 } /* usb_hub_cleanup() */ 4545 4546 static int descriptors_changed(struct usb_device *udev, 4547 struct usb_device_descriptor *old_device_descriptor) 4548 { 4549 int changed = 0; 4550 unsigned index; 4551 unsigned serial_len = 0; 4552 unsigned len; 4553 unsigned old_length; 4554 int length; 4555 char *buf; 4556 4557 if (memcmp(&udev->descriptor, old_device_descriptor, 4558 sizeof(*old_device_descriptor)) != 0) 4559 return 1; 4560 4561 /* Since the idVendor, idProduct, and bcdDevice values in the 4562 * device descriptor haven't changed, we will assume the 4563 * Manufacturer and Product strings haven't changed either. 4564 * But the SerialNumber string could be different (e.g., a 4565 * different flash card of the same brand). 4566 */ 4567 if (udev->serial) 4568 serial_len = strlen(udev->serial) + 1; 4569 4570 len = serial_len; 4571 for (index = 0; index < udev->descriptor.bNumConfigurations; index++) { 4572 old_length = le16_to_cpu(udev->config[index].desc.wTotalLength); 4573 len = max(len, old_length); 4574 } 4575 4576 buf = kmalloc(len, GFP_NOIO); 4577 if (buf == NULL) { 4578 dev_err(&udev->dev, "no mem to re-read configs after reset\n"); 4579 /* assume the worst */ 4580 return 1; 4581 } 4582 for (index = 0; index < udev->descriptor.bNumConfigurations; index++) { 4583 old_length = le16_to_cpu(udev->config[index].desc.wTotalLength); 4584 length = usb_get_descriptor(udev, USB_DT_CONFIG, index, buf, 4585 old_length); 4586 if (length != old_length) { 4587 dev_dbg(&udev->dev, "config index %d, error %d\n", 4588 index, length); 4589 changed = 1; 4590 break; 4591 } 4592 if (memcmp (buf, udev->rawdescriptors[index], old_length) 4593 != 0) { 4594 dev_dbg(&udev->dev, "config index %d changed (#%d)\n", 4595 index, 4596 ((struct usb_config_descriptor *) buf)-> 4597 bConfigurationValue); 4598 changed = 1; 4599 break; 4600 } 4601 } 4602 4603 if (!changed && serial_len) { 4604 length = usb_string(udev, udev->descriptor.iSerialNumber, 4605 buf, serial_len); 4606 if (length + 1 != serial_len) { 4607 dev_dbg(&udev->dev, "serial string error %d\n", 4608 length); 4609 changed = 1; 4610 } else if (memcmp(buf, udev->serial, length) != 0) { 4611 dev_dbg(&udev->dev, "serial string changed\n"); 4612 changed = 1; 4613 } 4614 } 4615 4616 kfree(buf); 4617 return changed; 4618 } 4619 4620 /** 4621 * usb_reset_and_verify_device - perform a USB port reset to reinitialize a device 4622 * @udev: device to reset (not in SUSPENDED or NOTATTACHED state) 4623 * 4624 * WARNING - don't use this routine to reset a composite device 4625 * (one with multiple interfaces owned by separate drivers)! 4626 * Use usb_reset_device() instead. 4627 * 4628 * Do a port reset, reassign the device's address, and establish its 4629 * former operating configuration. If the reset fails, or the device's 4630 * descriptors change from their values before the reset, or the original 4631 * configuration and altsettings cannot be restored, a flag will be set 4632 * telling khubd to pretend the device has been disconnected and then 4633 * re-connected. All drivers will be unbound, and the device will be 4634 * re-enumerated and probed all over again. 4635 * 4636 * Returns 0 if the reset succeeded, -ENODEV if the device has been 4637 * flagged for logical disconnection, or some other negative error code 4638 * if the reset wasn't even attempted. 4639 * 4640 * The caller must own the device lock. For example, it's safe to use 4641 * this from a driver probe() routine after downloading new firmware. 4642 * For calls that might not occur during probe(), drivers should lock 4643 * the device using usb_lock_device_for_reset(). 4644 * 4645 * Locking exception: This routine may also be called from within an 4646 * autoresume handler. Such usage won't conflict with other tasks 4647 * holding the device lock because these tasks should always call 4648 * usb_autopm_resume_device(), thereby preventing any unwanted autoresume. 4649 */ 4650 static int usb_reset_and_verify_device(struct usb_device *udev) 4651 { 4652 struct usb_device *parent_hdev = udev->parent; 4653 struct usb_hub *parent_hub; 4654 struct usb_hcd *hcd = bus_to_hcd(udev->bus); 4655 struct usb_device_descriptor descriptor = udev->descriptor; 4656 int i, ret = 0; 4657 int port1 = udev->portnum; 4658 4659 if (udev->state == USB_STATE_NOTATTACHED || 4660 udev->state == USB_STATE_SUSPENDED) { 4661 dev_dbg(&udev->dev, "device reset not allowed in state %d\n", 4662 udev->state); 4663 return -EINVAL; 4664 } 4665 4666 if (!parent_hdev) { 4667 /* this requires hcd-specific logic; see ohci_restart() */ 4668 dev_dbg(&udev->dev, "%s for root hub!\n", __func__); 4669 return -EISDIR; 4670 } 4671 parent_hub = hdev_to_hub(parent_hdev); 4672 4673 set_bit(port1, parent_hub->busy_bits); 4674 for (i = 0; i < SET_CONFIG_TRIES; ++i) { 4675 4676 /* ep0 maxpacket size may change; let the HCD know about it. 4677 * Other endpoints will be handled by re-enumeration. */ 4678 usb_ep0_reinit(udev); 4679 ret = hub_port_init(parent_hub, udev, port1, i); 4680 if (ret >= 0 || ret == -ENOTCONN || ret == -ENODEV) 4681 break; 4682 } 4683 clear_bit(port1, parent_hub->busy_bits); 4684 4685 if (ret < 0) 4686 goto re_enumerate; 4687 4688 /* Device might have changed firmware (DFU or similar) */ 4689 if (descriptors_changed(udev, &descriptor)) { 4690 dev_info(&udev->dev, "device firmware changed\n"); 4691 udev->descriptor = descriptor; /* for disconnect() calls */ 4692 goto re_enumerate; 4693 } 4694 4695 /* Restore the device's previous configuration */ 4696 if (!udev->actconfig) 4697 goto done; 4698 4699 mutex_lock(hcd->bandwidth_mutex); 4700 /* Disable LPM while we reset the device and reinstall the alt settings. 4701 * Device-initiated LPM settings, and system exit latency settings are 4702 * cleared when the device is reset, so we have to set them up again. 4703 */ 4704 ret = usb_disable_lpm(udev); 4705 if (ret) { 4706 dev_err(&udev->dev, "%s Failed to disable LPM\n.", __func__); 4707 mutex_unlock(hcd->bandwidth_mutex); 4708 goto done; 4709 } 4710 ret = usb_hcd_alloc_bandwidth(udev, udev->actconfig, NULL, NULL); 4711 if (ret < 0) { 4712 dev_warn(&udev->dev, 4713 "Busted HC? Not enough HCD resources for " 4714 "old configuration.\n"); 4715 usb_enable_lpm(udev); 4716 mutex_unlock(hcd->bandwidth_mutex); 4717 goto re_enumerate; 4718 } 4719 ret = usb_control_msg(udev, usb_sndctrlpipe(udev, 0), 4720 USB_REQ_SET_CONFIGURATION, 0, 4721 udev->actconfig->desc.bConfigurationValue, 0, 4722 NULL, 0, USB_CTRL_SET_TIMEOUT); 4723 if (ret < 0) { 4724 dev_err(&udev->dev, 4725 "can't restore configuration #%d (error=%d)\n", 4726 udev->actconfig->desc.bConfigurationValue, ret); 4727 usb_enable_lpm(udev); 4728 mutex_unlock(hcd->bandwidth_mutex); 4729 goto re_enumerate; 4730 } 4731 mutex_unlock(hcd->bandwidth_mutex); 4732 usb_set_device_state(udev, USB_STATE_CONFIGURED); 4733 4734 /* Put interfaces back into the same altsettings as before. 4735 * Don't bother to send the Set-Interface request for interfaces 4736 * that were already in altsetting 0; besides being unnecessary, 4737 * many devices can't handle it. Instead just reset the host-side 4738 * endpoint state. 4739 */ 4740 for (i = 0; i < udev->actconfig->desc.bNumInterfaces; i++) { 4741 struct usb_host_config *config = udev->actconfig; 4742 struct usb_interface *intf = config->interface[i]; 4743 struct usb_interface_descriptor *desc; 4744 4745 desc = &intf->cur_altsetting->desc; 4746 if (desc->bAlternateSetting == 0) { 4747 usb_disable_interface(udev, intf, true); 4748 usb_enable_interface(udev, intf, true); 4749 ret = 0; 4750 } else { 4751 /* Let the bandwidth allocation function know that this 4752 * device has been reset, and it will have to use 4753 * alternate setting 0 as the current alternate setting. 4754 */ 4755 intf->resetting_device = 1; 4756 ret = usb_set_interface(udev, desc->bInterfaceNumber, 4757 desc->bAlternateSetting); 4758 intf->resetting_device = 0; 4759 } 4760 if (ret < 0) { 4761 dev_err(&udev->dev, "failed to restore interface %d " 4762 "altsetting %d (error=%d)\n", 4763 desc->bInterfaceNumber, 4764 desc->bAlternateSetting, 4765 ret); 4766 usb_unlocked_enable_lpm(udev); 4767 goto re_enumerate; 4768 } 4769 } 4770 4771 /* Now that the alt settings are re-installed, enable LPM. */ 4772 usb_unlocked_enable_lpm(udev); 4773 done: 4774 return 0; 4775 4776 re_enumerate: 4777 hub_port_logical_disconnect(parent_hub, port1); 4778 return -ENODEV; 4779 } 4780 4781 /** 4782 * usb_reset_device - warn interface drivers and perform a USB port reset 4783 * @udev: device to reset (not in SUSPENDED or NOTATTACHED state) 4784 * 4785 * Warns all drivers bound to registered interfaces (using their pre_reset 4786 * method), performs the port reset, and then lets the drivers know that 4787 * the reset is over (using their post_reset method). 4788 * 4789 * Return value is the same as for usb_reset_and_verify_device(). 4790 * 4791 * The caller must own the device lock. For example, it's safe to use 4792 * this from a driver probe() routine after downloading new firmware. 4793 * For calls that might not occur during probe(), drivers should lock 4794 * the device using usb_lock_device_for_reset(). 4795 * 4796 * If an interface is currently being probed or disconnected, we assume 4797 * its driver knows how to handle resets. For all other interfaces, 4798 * if the driver doesn't have pre_reset and post_reset methods then 4799 * we attempt to unbind it and rebind afterward. 4800 */ 4801 int usb_reset_device(struct usb_device *udev) 4802 { 4803 int ret; 4804 int i; 4805 struct usb_host_config *config = udev->actconfig; 4806 4807 if (udev->state == USB_STATE_NOTATTACHED || 4808 udev->state == USB_STATE_SUSPENDED) { 4809 dev_dbg(&udev->dev, "device reset not allowed in state %d\n", 4810 udev->state); 4811 return -EINVAL; 4812 } 4813 4814 /* Prevent autosuspend during the reset */ 4815 usb_autoresume_device(udev); 4816 4817 if (config) { 4818 for (i = 0; i < config->desc.bNumInterfaces; ++i) { 4819 struct usb_interface *cintf = config->interface[i]; 4820 struct usb_driver *drv; 4821 int unbind = 0; 4822 4823 if (cintf->dev.driver) { 4824 drv = to_usb_driver(cintf->dev.driver); 4825 if (drv->pre_reset && drv->post_reset) 4826 unbind = (drv->pre_reset)(cintf); 4827 else if (cintf->condition == 4828 USB_INTERFACE_BOUND) 4829 unbind = 1; 4830 if (unbind) 4831 usb_forced_unbind_intf(cintf); 4832 } 4833 } 4834 } 4835 4836 ret = usb_reset_and_verify_device(udev); 4837 4838 if (config) { 4839 for (i = config->desc.bNumInterfaces - 1; i >= 0; --i) { 4840 struct usb_interface *cintf = config->interface[i]; 4841 struct usb_driver *drv; 4842 int rebind = cintf->needs_binding; 4843 4844 if (!rebind && cintf->dev.driver) { 4845 drv = to_usb_driver(cintf->dev.driver); 4846 if (drv->post_reset) 4847 rebind = (drv->post_reset)(cintf); 4848 else if (cintf->condition == 4849 USB_INTERFACE_BOUND) 4850 rebind = 1; 4851 } 4852 if (ret == 0 && rebind) 4853 usb_rebind_intf(cintf); 4854 } 4855 } 4856 4857 usb_autosuspend_device(udev); 4858 return ret; 4859 } 4860 EXPORT_SYMBOL_GPL(usb_reset_device); 4861 4862 4863 /** 4864 * usb_queue_reset_device - Reset a USB device from an atomic context 4865 * @iface: USB interface belonging to the device to reset 4866 * 4867 * This function can be used to reset a USB device from an atomic 4868 * context, where usb_reset_device() won't work (as it blocks). 4869 * 4870 * Doing a reset via this method is functionally equivalent to calling 4871 * usb_reset_device(), except for the fact that it is delayed to a 4872 * workqueue. This means that any drivers bound to other interfaces 4873 * might be unbound, as well as users from usbfs in user space. 4874 * 4875 * Corner cases: 4876 * 4877 * - Scheduling two resets at the same time from two different drivers 4878 * attached to two different interfaces of the same device is 4879 * possible; depending on how the driver attached to each interface 4880 * handles ->pre_reset(), the second reset might happen or not. 4881 * 4882 * - If a driver is unbound and it had a pending reset, the reset will 4883 * be cancelled. 4884 * 4885 * - This function can be called during .probe() or .disconnect() 4886 * times. On return from .disconnect(), any pending resets will be 4887 * cancelled. 4888 * 4889 * There is no no need to lock/unlock the @reset_ws as schedule_work() 4890 * does its own. 4891 * 4892 * NOTE: We don't do any reference count tracking because it is not 4893 * needed. The lifecycle of the work_struct is tied to the 4894 * usb_interface. Before destroying the interface we cancel the 4895 * work_struct, so the fact that work_struct is queued and or 4896 * running means the interface (and thus, the device) exist and 4897 * are referenced. 4898 */ 4899 void usb_queue_reset_device(struct usb_interface *iface) 4900 { 4901 schedule_work(&iface->reset_ws); 4902 } 4903 EXPORT_SYMBOL_GPL(usb_queue_reset_device); 4904