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1/*
2 * (C) Copyright Linus Torvalds 1999
3 * (C) Copyright Johannes Erdfelt 1999-2001
4 * (C) Copyright Andreas Gal 1999
5 * (C) Copyright Gregory P. Smith 1999
6 * (C) Copyright Deti Fliegl 1999
7 * (C) Copyright Randy Dunlap 2000
8 * (C) Copyright David Brownell 2000-2002
9 *
10 * This program is free software; you can redistribute it and/or modify it
11 * under the terms of the GNU General Public License as published by the
12 * Free Software Foundation; either version 2 of the License, or (at your
13 * option) any later version.
14 *
15 * This program is distributed in the hope that it will be useful, but
16 * WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
17 * or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
18 * for more details.
19 *
20 * You should have received a copy of the GNU General Public License
21 * along with this program; if not, write to the Free Software Foundation,
22 * Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
23 */
24
25#include <linux/bcd.h>
26#include <linux/module.h>
27#include <linux/version.h>
28#include <linux/kernel.h>
29#include <linux/slab.h>
30#include <linux/completion.h>
31#include <linux/utsname.h>
32#include <linux/mm.h>
33#include <asm/io.h>
34#include <linux/device.h>
35#include <linux/dma-mapping.h>
36#include <linux/mutex.h>
37#include <asm/irq.h>
38#include <asm/byteorder.h>
39#include <asm/unaligned.h>
40#include <linux/platform_device.h>
41#include <linux/workqueue.h>
42#include <linux/pm_runtime.h>
43#include <linux/types.h>
44
45#include <linux/phy/phy.h>
46#include <linux/usb.h>
47#include <linux/usb/hcd.h>
48#include <linux/usb/phy.h>
49
50#include "usb.h"
51
52
53/*-------------------------------------------------------------------------*/
54
55/*
56 * USB Host Controller Driver framework
57 *
58 * Plugs into usbcore (usb_bus) and lets HCDs share code, minimizing
59 * HCD-specific behaviors/bugs.
60 *
61 * This does error checks, tracks devices and urbs, and delegates to a
62 * "hc_driver" only for code (and data) that really needs to know about
63 * hardware differences. That includes root hub registers, i/o queues,
64 * and so on ... but as little else as possible.
65 *
66 * Shared code includes most of the "root hub" code (these are emulated,
67 * though each HC's hardware works differently) and PCI glue, plus request
68 * tracking overhead. The HCD code should only block on spinlocks or on
69 * hardware handshaking; blocking on software events (such as other kernel
70 * threads releasing resources, or completing actions) is all generic.
71 *
72 * Happens the USB 2.0 spec says this would be invisible inside the "USBD",
73 * and includes mostly a "HCDI" (HCD Interface) along with some APIs used
74 * only by the hub driver ... and that neither should be seen or used by
75 * usb client device drivers.
76 *
77 * Contributors of ideas or unattributed patches include: David Brownell,
78 * Roman Weissgaerber, Rory Bolt, Greg Kroah-Hartman, ...
79 *
80 * HISTORY:
81 * 2002-02-21 Pull in most of the usb_bus support from usb.c; some
82 * associated cleanup. "usb_hcd" still != "usb_bus".
83 * 2001-12-12 Initial patch version for Linux 2.5.1 kernel.
84 */
85
86/*-------------------------------------------------------------------------*/
87
88/* Keep track of which host controller drivers are loaded */
89unsigned long usb_hcds_loaded;
90EXPORT_SYMBOL_GPL(usb_hcds_loaded);
91
92/* host controllers we manage */
93DEFINE_IDR (usb_bus_idr);
94EXPORT_SYMBOL_GPL (usb_bus_idr);
95
96/* used when allocating bus numbers */
97#define USB_MAXBUS 64
98
99/* used when updating list of hcds */
100DEFINE_MUTEX(usb_bus_idr_lock); /* exported only for usbfs */
101EXPORT_SYMBOL_GPL (usb_bus_idr_lock);
102
103/* used for controlling access to virtual root hubs */
104static DEFINE_SPINLOCK(hcd_root_hub_lock);
105
106/* used when updating an endpoint's URB list */
107static DEFINE_SPINLOCK(hcd_urb_list_lock);
108
109/* used to protect against unlinking URBs after the device is gone */
110static DEFINE_SPINLOCK(hcd_urb_unlink_lock);
111
112/* wait queue for synchronous unlinks */
113DECLARE_WAIT_QUEUE_HEAD(usb_kill_urb_queue);
114
115static inline int is_root_hub(struct usb_device *udev)
116{
117 return (udev->parent == NULL);
118}
119
120/*-------------------------------------------------------------------------*/
121
122/*
123 * Sharable chunks of root hub code.
124 */
125
126/*-------------------------------------------------------------------------*/
127#define KERNEL_REL bin2bcd(((LINUX_VERSION_CODE >> 16) & 0x0ff))
128#define KERNEL_VER bin2bcd(((LINUX_VERSION_CODE >> 8) & 0x0ff))
129
130/* usb 3.1 root hub device descriptor */
131static const u8 usb31_rh_dev_descriptor[18] = {
132 0x12, /* __u8 bLength; */
133 USB_DT_DEVICE, /* __u8 bDescriptorType; Device */
134 0x10, 0x03, /* __le16 bcdUSB; v3.1 */
135
136 0x09, /* __u8 bDeviceClass; HUB_CLASSCODE */
137 0x00, /* __u8 bDeviceSubClass; */
138 0x03, /* __u8 bDeviceProtocol; USB 3 hub */
139 0x09, /* __u8 bMaxPacketSize0; 2^9 = 512 Bytes */
140
141 0x6b, 0x1d, /* __le16 idVendor; Linux Foundation 0x1d6b */
142 0x03, 0x00, /* __le16 idProduct; device 0x0003 */
143 KERNEL_VER, KERNEL_REL, /* __le16 bcdDevice */
144
145 0x03, /* __u8 iManufacturer; */
146 0x02, /* __u8 iProduct; */
147 0x01, /* __u8 iSerialNumber; */
148 0x01 /* __u8 bNumConfigurations; */
149};
150
151/* usb 3.0 root hub device descriptor */
152static const u8 usb3_rh_dev_descriptor[18] = {
153 0x12, /* __u8 bLength; */
154 USB_DT_DEVICE, /* __u8 bDescriptorType; Device */
155 0x00, 0x03, /* __le16 bcdUSB; v3.0 */
156
157 0x09, /* __u8 bDeviceClass; HUB_CLASSCODE */
158 0x00, /* __u8 bDeviceSubClass; */
159 0x03, /* __u8 bDeviceProtocol; USB 3.0 hub */
160 0x09, /* __u8 bMaxPacketSize0; 2^9 = 512 Bytes */
161
162 0x6b, 0x1d, /* __le16 idVendor; Linux Foundation 0x1d6b */
163 0x03, 0x00, /* __le16 idProduct; device 0x0003 */
164 KERNEL_VER, KERNEL_REL, /* __le16 bcdDevice */
165
166 0x03, /* __u8 iManufacturer; */
167 0x02, /* __u8 iProduct; */
168 0x01, /* __u8 iSerialNumber; */
169 0x01 /* __u8 bNumConfigurations; */
170};
171
172/* usb 2.5 (wireless USB 1.0) root hub device descriptor */
173static const u8 usb25_rh_dev_descriptor[18] = {
174 0x12, /* __u8 bLength; */
175 USB_DT_DEVICE, /* __u8 bDescriptorType; Device */
176 0x50, 0x02, /* __le16 bcdUSB; v2.5 */
177
178 0x09, /* __u8 bDeviceClass; HUB_CLASSCODE */
179 0x00, /* __u8 bDeviceSubClass; */
180 0x00, /* __u8 bDeviceProtocol; [ usb 2.0 no TT ] */
181 0xFF, /* __u8 bMaxPacketSize0; always 0xFF (WUSB Spec 7.4.1). */
182
183 0x6b, 0x1d, /* __le16 idVendor; Linux Foundation 0x1d6b */
184 0x02, 0x00, /* __le16 idProduct; device 0x0002 */
185 KERNEL_VER, KERNEL_REL, /* __le16 bcdDevice */
186
187 0x03, /* __u8 iManufacturer; */
188 0x02, /* __u8 iProduct; */
189 0x01, /* __u8 iSerialNumber; */
190 0x01 /* __u8 bNumConfigurations; */
191};
192
193/* usb 2.0 root hub device descriptor */
194static const u8 usb2_rh_dev_descriptor[18] = {
195 0x12, /* __u8 bLength; */
196 USB_DT_DEVICE, /* __u8 bDescriptorType; Device */
197 0x00, 0x02, /* __le16 bcdUSB; v2.0 */
198
199 0x09, /* __u8 bDeviceClass; HUB_CLASSCODE */
200 0x00, /* __u8 bDeviceSubClass; */
201 0x00, /* __u8 bDeviceProtocol; [ usb 2.0 no TT ] */
202 0x40, /* __u8 bMaxPacketSize0; 64 Bytes */
203
204 0x6b, 0x1d, /* __le16 idVendor; Linux Foundation 0x1d6b */
205 0x02, 0x00, /* __le16 idProduct; device 0x0002 */
206 KERNEL_VER, KERNEL_REL, /* __le16 bcdDevice */
207
208 0x03, /* __u8 iManufacturer; */
209 0x02, /* __u8 iProduct; */
210 0x01, /* __u8 iSerialNumber; */
211 0x01 /* __u8 bNumConfigurations; */
212};
213
214/* no usb 2.0 root hub "device qualifier" descriptor: one speed only */
215
216/* usb 1.1 root hub device descriptor */
217static const u8 usb11_rh_dev_descriptor[18] = {
218 0x12, /* __u8 bLength; */
219 USB_DT_DEVICE, /* __u8 bDescriptorType; Device */
220 0x10, 0x01, /* __le16 bcdUSB; v1.1 */
221
222 0x09, /* __u8 bDeviceClass; HUB_CLASSCODE */
223 0x00, /* __u8 bDeviceSubClass; */
224 0x00, /* __u8 bDeviceProtocol; [ low/full speeds only ] */
225 0x40, /* __u8 bMaxPacketSize0; 64 Bytes */
226
227 0x6b, 0x1d, /* __le16 idVendor; Linux Foundation 0x1d6b */
228 0x01, 0x00, /* __le16 idProduct; device 0x0001 */
229 KERNEL_VER, KERNEL_REL, /* __le16 bcdDevice */
230
231 0x03, /* __u8 iManufacturer; */
232 0x02, /* __u8 iProduct; */
233 0x01, /* __u8 iSerialNumber; */
234 0x01 /* __u8 bNumConfigurations; */
235};
236
237
238/*-------------------------------------------------------------------------*/
239
240/* Configuration descriptors for our root hubs */
241
242static const u8 fs_rh_config_descriptor[] = {
243
244 /* one configuration */
245 0x09, /* __u8 bLength; */
246 USB_DT_CONFIG, /* __u8 bDescriptorType; Configuration */
247 0x19, 0x00, /* __le16 wTotalLength; */
248 0x01, /* __u8 bNumInterfaces; (1) */
249 0x01, /* __u8 bConfigurationValue; */
250 0x00, /* __u8 iConfiguration; */
251 0xc0, /* __u8 bmAttributes;
252 Bit 7: must be set,
253 6: Self-powered,
254 5: Remote wakeup,
255 4..0: resvd */
256 0x00, /* __u8 MaxPower; */
257
258 /* USB 1.1:
259 * USB 2.0, single TT organization (mandatory):
260 * one interface, protocol 0
261 *
262 * USB 2.0, multiple TT organization (optional):
263 * two interfaces, protocols 1 (like single TT)
264 * and 2 (multiple TT mode) ... config is
265 * sometimes settable
266 * NOT IMPLEMENTED
267 */
268
269 /* one interface */
270 0x09, /* __u8 if_bLength; */
271 USB_DT_INTERFACE, /* __u8 if_bDescriptorType; Interface */
272 0x00, /* __u8 if_bInterfaceNumber; */
273 0x00, /* __u8 if_bAlternateSetting; */
274 0x01, /* __u8 if_bNumEndpoints; */
275 0x09, /* __u8 if_bInterfaceClass; HUB_CLASSCODE */
276 0x00, /* __u8 if_bInterfaceSubClass; */
277 0x00, /* __u8 if_bInterfaceProtocol; [usb1.1 or single tt] */
278 0x00, /* __u8 if_iInterface; */
279
280 /* one endpoint (status change endpoint) */
281 0x07, /* __u8 ep_bLength; */
282 USB_DT_ENDPOINT, /* __u8 ep_bDescriptorType; Endpoint */
283 0x81, /* __u8 ep_bEndpointAddress; IN Endpoint 1 */
284 0x03, /* __u8 ep_bmAttributes; Interrupt */
285 0x02, 0x00, /* __le16 ep_wMaxPacketSize; 1 + (MAX_ROOT_PORTS / 8) */
286 0xff /* __u8 ep_bInterval; (255ms -- usb 2.0 spec) */
287};
288
289static const u8 hs_rh_config_descriptor[] = {
290
291 /* one configuration */
292 0x09, /* __u8 bLength; */
293 USB_DT_CONFIG, /* __u8 bDescriptorType; Configuration */
294 0x19, 0x00, /* __le16 wTotalLength; */
295 0x01, /* __u8 bNumInterfaces; (1) */
296 0x01, /* __u8 bConfigurationValue; */
297 0x00, /* __u8 iConfiguration; */
298 0xc0, /* __u8 bmAttributes;
299 Bit 7: must be set,
300 6: Self-powered,
301 5: Remote wakeup,
302 4..0: resvd */
303 0x00, /* __u8 MaxPower; */
304
305 /* USB 1.1:
306 * USB 2.0, single TT organization (mandatory):
307 * one interface, protocol 0
308 *
309 * USB 2.0, multiple TT organization (optional):
310 * two interfaces, protocols 1 (like single TT)
311 * and 2 (multiple TT mode) ... config is
312 * sometimes settable
313 * NOT IMPLEMENTED
314 */
315
316 /* one interface */
317 0x09, /* __u8 if_bLength; */
318 USB_DT_INTERFACE, /* __u8 if_bDescriptorType; Interface */
319 0x00, /* __u8 if_bInterfaceNumber; */
320 0x00, /* __u8 if_bAlternateSetting; */
321 0x01, /* __u8 if_bNumEndpoints; */
322 0x09, /* __u8 if_bInterfaceClass; HUB_CLASSCODE */
323 0x00, /* __u8 if_bInterfaceSubClass; */
324 0x00, /* __u8 if_bInterfaceProtocol; [usb1.1 or single tt] */
325 0x00, /* __u8 if_iInterface; */
326
327 /* one endpoint (status change endpoint) */
328 0x07, /* __u8 ep_bLength; */
329 USB_DT_ENDPOINT, /* __u8 ep_bDescriptorType; Endpoint */
330 0x81, /* __u8 ep_bEndpointAddress; IN Endpoint 1 */
331 0x03, /* __u8 ep_bmAttributes; Interrupt */
332 /* __le16 ep_wMaxPacketSize; 1 + (MAX_ROOT_PORTS / 8)
333 * see hub.c:hub_configure() for details. */
334 (USB_MAXCHILDREN + 1 + 7) / 8, 0x00,
335 0x0c /* __u8 ep_bInterval; (256ms -- usb 2.0 spec) */
336};
337
338static const u8 ss_rh_config_descriptor[] = {
339 /* one configuration */
340 0x09, /* __u8 bLength; */
341 USB_DT_CONFIG, /* __u8 bDescriptorType; Configuration */
342 0x1f, 0x00, /* __le16 wTotalLength; */
343 0x01, /* __u8 bNumInterfaces; (1) */
344 0x01, /* __u8 bConfigurationValue; */
345 0x00, /* __u8 iConfiguration; */
346 0xc0, /* __u8 bmAttributes;
347 Bit 7: must be set,
348 6: Self-powered,
349 5: Remote wakeup,
350 4..0: resvd */
351 0x00, /* __u8 MaxPower; */
352
353 /* one interface */
354 0x09, /* __u8 if_bLength; */
355 USB_DT_INTERFACE, /* __u8 if_bDescriptorType; Interface */
356 0x00, /* __u8 if_bInterfaceNumber; */
357 0x00, /* __u8 if_bAlternateSetting; */
358 0x01, /* __u8 if_bNumEndpoints; */
359 0x09, /* __u8 if_bInterfaceClass; HUB_CLASSCODE */
360 0x00, /* __u8 if_bInterfaceSubClass; */
361 0x00, /* __u8 if_bInterfaceProtocol; */
362 0x00, /* __u8 if_iInterface; */
363
364 /* one endpoint (status change endpoint) */
365 0x07, /* __u8 ep_bLength; */
366 USB_DT_ENDPOINT, /* __u8 ep_bDescriptorType; Endpoint */
367 0x81, /* __u8 ep_bEndpointAddress; IN Endpoint 1 */
368 0x03, /* __u8 ep_bmAttributes; Interrupt */
369 /* __le16 ep_wMaxPacketSize; 1 + (MAX_ROOT_PORTS / 8)
370 * see hub.c:hub_configure() for details. */
371 (USB_MAXCHILDREN + 1 + 7) / 8, 0x00,
372 0x0c, /* __u8 ep_bInterval; (256ms -- usb 2.0 spec) */
373
374 /* one SuperSpeed endpoint companion descriptor */
375 0x06, /* __u8 ss_bLength */
376 USB_DT_SS_ENDPOINT_COMP, /* __u8 ss_bDescriptorType; SuperSpeed EP */
377 /* Companion */
378 0x00, /* __u8 ss_bMaxBurst; allows 1 TX between ACKs */
379 0x00, /* __u8 ss_bmAttributes; 1 packet per service interval */
380 0x02, 0x00 /* __le16 ss_wBytesPerInterval; 15 bits for max 15 ports */
381};
382
383/* authorized_default behaviour:
384 * -1 is authorized for all devices except wireless (old behaviour)
385 * 0 is unauthorized for all devices
386 * 1 is authorized for all devices
387 */
388static int authorized_default = -1;
389module_param(authorized_default, int, S_IRUGO|S_IWUSR);
390MODULE_PARM_DESC(authorized_default,
391 "Default USB device authorization: 0 is not authorized, 1 is "
392 "authorized, -1 is authorized except for wireless USB (default, "
393 "old behaviour");
394/*-------------------------------------------------------------------------*/
395
396/**
397 * ascii2desc() - Helper routine for producing UTF-16LE string descriptors
398 * @s: Null-terminated ASCII (actually ISO-8859-1) string
399 * @buf: Buffer for USB string descriptor (header + UTF-16LE)
400 * @len: Length (in bytes; may be odd) of descriptor buffer.
401 *
402 * Return: The number of bytes filled in: 2 + 2*strlen(s) or @len,
403 * whichever is less.
404 *
405 * Note:
406 * USB String descriptors can contain at most 126 characters; input
407 * strings longer than that are truncated.
408 */
409static unsigned
410ascii2desc(char const *s, u8 *buf, unsigned len)
411{
412 unsigned n, t = 2 + 2*strlen(s);
413
414 if (t > 254)
415 t = 254; /* Longest possible UTF string descriptor */
416 if (len > t)
417 len = t;
418
419 t += USB_DT_STRING << 8; /* Now t is first 16 bits to store */
420
421 n = len;
422 while (n--) {
423 *buf++ = t;
424 if (!n--)
425 break;
426 *buf++ = t >> 8;
427 t = (unsigned char)*s++;
428 }
429 return len;
430}
431
432/**
433 * rh_string() - provides string descriptors for root hub
434 * @id: the string ID number (0: langids, 1: serial #, 2: product, 3: vendor)
435 * @hcd: the host controller for this root hub
436 * @data: buffer for output packet
437 * @len: length of the provided buffer
438 *
439 * Produces either a manufacturer, product or serial number string for the
440 * virtual root hub device.
441 *
442 * Return: The number of bytes filled in: the length of the descriptor or
443 * of the provided buffer, whichever is less.
444 */
445static unsigned
446rh_string(int id, struct usb_hcd const *hcd, u8 *data, unsigned len)
447{
448 char buf[100];
449 char const *s;
450 static char const langids[4] = {4, USB_DT_STRING, 0x09, 0x04};
451
452 /* language ids */
453 switch (id) {
454 case 0:
455 /* Array of LANGID codes (0x0409 is MSFT-speak for "en-us") */
456 /* See http://www.usb.org/developers/docs/USB_LANGIDs.pdf */
457 if (len > 4)
458 len = 4;
459 memcpy(data, langids, len);
460 return len;
461 case 1:
462 /* Serial number */
463 s = hcd->self.bus_name;
464 break;
465 case 2:
466 /* Product name */
467 s = hcd->product_desc;
468 break;
469 case 3:
470 /* Manufacturer */
471 snprintf (buf, sizeof buf, "%s %s %s", init_utsname()->sysname,
472 init_utsname()->release, hcd->driver->description);
473 s = buf;
474 break;
475 default:
476 /* Can't happen; caller guarantees it */
477 return 0;
478 }
479
480 return ascii2desc(s, data, len);
481}
482
483
484/* Root hub control transfers execute synchronously */
485static int rh_call_control (struct usb_hcd *hcd, struct urb *urb)
486{
487 struct usb_ctrlrequest *cmd;
488 u16 typeReq, wValue, wIndex, wLength;
489 u8 *ubuf = urb->transfer_buffer;
490 unsigned len = 0;
491 int status;
492 u8 patch_wakeup = 0;
493 u8 patch_protocol = 0;
494 u16 tbuf_size;
495 u8 *tbuf = NULL;
496 const u8 *bufp;
497
498 might_sleep();
499
500 spin_lock_irq(&hcd_root_hub_lock);
501 status = usb_hcd_link_urb_to_ep(hcd, urb);
502 spin_unlock_irq(&hcd_root_hub_lock);
503 if (status)
504 return status;
505 urb->hcpriv = hcd; /* Indicate it's queued */
506
507 cmd = (struct usb_ctrlrequest *) urb->setup_packet;
508 typeReq = (cmd->bRequestType << 8) | cmd->bRequest;
509 wValue = le16_to_cpu (cmd->wValue);
510 wIndex = le16_to_cpu (cmd->wIndex);
511 wLength = le16_to_cpu (cmd->wLength);
512
513 if (wLength > urb->transfer_buffer_length)
514 goto error;
515
516 /*
517 * tbuf should be at least as big as the
518 * USB hub descriptor.
519 */
520 tbuf_size = max_t(u16, sizeof(struct usb_hub_descriptor), wLength);
521 tbuf = kzalloc(tbuf_size, GFP_KERNEL);
522 if (!tbuf)
523 return -ENOMEM;
524
525 bufp = tbuf;
526
527
528 urb->actual_length = 0;
529 switch (typeReq) {
530
531 /* DEVICE REQUESTS */
532
533 /* The root hub's remote wakeup enable bit is implemented using
534 * driver model wakeup flags. If this system supports wakeup
535 * through USB, userspace may change the default "allow wakeup"
536 * policy through sysfs or these calls.
537 *
538 * Most root hubs support wakeup from downstream devices, for
539 * runtime power management (disabling USB clocks and reducing
540 * VBUS power usage). However, not all of them do so; silicon,
541 * board, and BIOS bugs here are not uncommon, so these can't
542 * be treated quite like external hubs.
543 *
544 * Likewise, not all root hubs will pass wakeup events upstream,
545 * to wake up the whole system. So don't assume root hub and
546 * controller capabilities are identical.
547 */
548
549 case DeviceRequest | USB_REQ_GET_STATUS:
550 tbuf[0] = (device_may_wakeup(&hcd->self.root_hub->dev)
551 << USB_DEVICE_REMOTE_WAKEUP)
552 | (1 << USB_DEVICE_SELF_POWERED);
553 tbuf[1] = 0;
554 len = 2;
555 break;
556 case DeviceOutRequest | USB_REQ_CLEAR_FEATURE:
557 if (wValue == USB_DEVICE_REMOTE_WAKEUP)
558 device_set_wakeup_enable(&hcd->self.root_hub->dev, 0);
559 else
560 goto error;
561 break;
562 case DeviceOutRequest | USB_REQ_SET_FEATURE:
563 if (device_can_wakeup(&hcd->self.root_hub->dev)
564 && wValue == USB_DEVICE_REMOTE_WAKEUP)
565 device_set_wakeup_enable(&hcd->self.root_hub->dev, 1);
566 else
567 goto error;
568 break;
569 case DeviceRequest | USB_REQ_GET_CONFIGURATION:
570 tbuf[0] = 1;
571 len = 1;
572 /* FALLTHROUGH */
573 case DeviceOutRequest | USB_REQ_SET_CONFIGURATION:
574 break;
575 case DeviceRequest | USB_REQ_GET_DESCRIPTOR:
576 switch (wValue & 0xff00) {
577 case USB_DT_DEVICE << 8:
578 switch (hcd->speed) {
579 case HCD_USB31:
580 bufp = usb31_rh_dev_descriptor;
581 break;
582 case HCD_USB3:
583 bufp = usb3_rh_dev_descriptor;
584 break;
585 case HCD_USB25:
586 bufp = usb25_rh_dev_descriptor;
587 break;
588 case HCD_USB2:
589 bufp = usb2_rh_dev_descriptor;
590 break;
591 case HCD_USB11:
592 bufp = usb11_rh_dev_descriptor;
593 break;
594 default:
595 goto error;
596 }
597 len = 18;
598 if (hcd->has_tt)
599 patch_protocol = 1;
600 break;
601 case USB_DT_CONFIG << 8:
602 switch (hcd->speed) {
603 case HCD_USB31:
604 case HCD_USB3:
605 bufp = ss_rh_config_descriptor;
606 len = sizeof ss_rh_config_descriptor;
607 break;
608 case HCD_USB25:
609 case HCD_USB2:
610 bufp = hs_rh_config_descriptor;
611 len = sizeof hs_rh_config_descriptor;
612 break;
613 case HCD_USB11:
614 bufp = fs_rh_config_descriptor;
615 len = sizeof fs_rh_config_descriptor;
616 break;
617 default:
618 goto error;
619 }
620 if (device_can_wakeup(&hcd->self.root_hub->dev))
621 patch_wakeup = 1;
622 break;
623 case USB_DT_STRING << 8:
624 if ((wValue & 0xff) < 4)
625 urb->actual_length = rh_string(wValue & 0xff,
626 hcd, ubuf, wLength);
627 else /* unsupported IDs --> "protocol stall" */
628 goto error;
629 break;
630 case USB_DT_BOS << 8:
631 goto nongeneric;
632 default:
633 goto error;
634 }
635 break;
636 case DeviceRequest | USB_REQ_GET_INTERFACE:
637 tbuf[0] = 0;
638 len = 1;
639 /* FALLTHROUGH */
640 case DeviceOutRequest | USB_REQ_SET_INTERFACE:
641 break;
642 case DeviceOutRequest | USB_REQ_SET_ADDRESS:
643 /* wValue == urb->dev->devaddr */
644 dev_dbg (hcd->self.controller, "root hub device address %d\n",
645 wValue);
646 break;
647
648 /* INTERFACE REQUESTS (no defined feature/status flags) */
649
650 /* ENDPOINT REQUESTS */
651
652 case EndpointRequest | USB_REQ_GET_STATUS:
653 /* ENDPOINT_HALT flag */
654 tbuf[0] = 0;
655 tbuf[1] = 0;
656 len = 2;
657 /* FALLTHROUGH */
658 case EndpointOutRequest | USB_REQ_CLEAR_FEATURE:
659 case EndpointOutRequest | USB_REQ_SET_FEATURE:
660 dev_dbg (hcd->self.controller, "no endpoint features yet\n");
661 break;
662
663 /* CLASS REQUESTS (and errors) */
664
665 default:
666nongeneric:
667 /* non-generic request */
668 switch (typeReq) {
669 case GetHubStatus:
670 len = 4;
671 break;
672 case GetPortStatus:
673 if (wValue == HUB_PORT_STATUS)
674 len = 4;
675 else
676 /* other port status types return 8 bytes */
677 len = 8;
678 break;
679 case GetHubDescriptor:
680 len = sizeof (struct usb_hub_descriptor);
681 break;
682 case DeviceRequest | USB_REQ_GET_DESCRIPTOR:
683 /* len is returned by hub_control */
684 break;
685 }
686 status = hcd->driver->hub_control (hcd,
687 typeReq, wValue, wIndex,
688 tbuf, wLength);
689
690 if (typeReq == GetHubDescriptor)
691 usb_hub_adjust_deviceremovable(hcd->self.root_hub,
692 (struct usb_hub_descriptor *)tbuf);
693 break;
694error:
695 /* "protocol stall" on error */
696 status = -EPIPE;
697 }
698
699 if (status < 0) {
700 len = 0;
701 if (status != -EPIPE) {
702 dev_dbg (hcd->self.controller,
703 "CTRL: TypeReq=0x%x val=0x%x "
704 "idx=0x%x len=%d ==> %d\n",
705 typeReq, wValue, wIndex,
706 wLength, status);
707 }
708 } else if (status > 0) {
709 /* hub_control may return the length of data copied. */
710 len = status;
711 status = 0;
712 }
713 if (len) {
714 if (urb->transfer_buffer_length < len)
715 len = urb->transfer_buffer_length;
716 urb->actual_length = len;
717 /* always USB_DIR_IN, toward host */
718 memcpy (ubuf, bufp, len);
719
720 /* report whether RH hardware supports remote wakeup */
721 if (patch_wakeup &&
722 len > offsetof (struct usb_config_descriptor,
723 bmAttributes))
724 ((struct usb_config_descriptor *)ubuf)->bmAttributes
725 |= USB_CONFIG_ATT_WAKEUP;
726
727 /* report whether RH hardware has an integrated TT */
728 if (patch_protocol &&
729 len > offsetof(struct usb_device_descriptor,
730 bDeviceProtocol))
731 ((struct usb_device_descriptor *) ubuf)->
732 bDeviceProtocol = USB_HUB_PR_HS_SINGLE_TT;
733 }
734
735 kfree(tbuf);
736
737 /* any errors get returned through the urb completion */
738 spin_lock_irq(&hcd_root_hub_lock);
739 usb_hcd_unlink_urb_from_ep(hcd, urb);
740 usb_hcd_giveback_urb(hcd, urb, status);
741 spin_unlock_irq(&hcd_root_hub_lock);
742 return 0;
743}
744
745/*-------------------------------------------------------------------------*/
746
747/*
748 * Root Hub interrupt transfers are polled using a timer if the
749 * driver requests it; otherwise the driver is responsible for
750 * calling usb_hcd_poll_rh_status() when an event occurs.
751 *
752 * Completions are called in_interrupt(), but they may or may not
753 * be in_irq().
754 */
755void usb_hcd_poll_rh_status(struct usb_hcd *hcd)
756{
757 struct urb *urb;
758 int length;
759 unsigned long flags;
760 char buffer[6]; /* Any root hubs with > 31 ports? */
761
762 if (unlikely(!hcd->rh_pollable))
763 return;
764 if (!hcd->uses_new_polling && !hcd->status_urb)
765 return;
766
767 length = hcd->driver->hub_status_data(hcd, buffer);
768 if (length > 0) {
769
770 /* try to complete the status urb */
771 spin_lock_irqsave(&hcd_root_hub_lock, flags);
772 urb = hcd->status_urb;
773 if (urb) {
774 clear_bit(HCD_FLAG_POLL_PENDING, &hcd->flags);
775 hcd->status_urb = NULL;
776 urb->actual_length = length;
777 memcpy(urb->transfer_buffer, buffer, length);
778
779 usb_hcd_unlink_urb_from_ep(hcd, urb);
780 usb_hcd_giveback_urb(hcd, urb, 0);
781 } else {
782 length = 0;
783 set_bit(HCD_FLAG_POLL_PENDING, &hcd->flags);
784 }
785 spin_unlock_irqrestore(&hcd_root_hub_lock, flags);
786 }
787
788 /* The USB 2.0 spec says 256 ms. This is close enough and won't
789 * exceed that limit if HZ is 100. The math is more clunky than
790 * maybe expected, this is to make sure that all timers for USB devices
791 * fire at the same time to give the CPU a break in between */
792 if (hcd->uses_new_polling ? HCD_POLL_RH(hcd) :
793 (length == 0 && hcd->status_urb != NULL))
794 mod_timer (&hcd->rh_timer, (jiffies/(HZ/4) + 1) * (HZ/4));
795}
796EXPORT_SYMBOL_GPL(usb_hcd_poll_rh_status);
797
798/* timer callback */
799static void rh_timer_func (unsigned long _hcd)
800{
801 usb_hcd_poll_rh_status((struct usb_hcd *) _hcd);
802}
803
804/*-------------------------------------------------------------------------*/
805
806static int rh_queue_status (struct usb_hcd *hcd, struct urb *urb)
807{
808 int retval;
809 unsigned long flags;
810 unsigned len = 1 + (urb->dev->maxchild / 8);
811
812 spin_lock_irqsave (&hcd_root_hub_lock, flags);
813 if (hcd->status_urb || urb->transfer_buffer_length < len) {
814 dev_dbg (hcd->self.controller, "not queuing rh status urb\n");
815 retval = -EINVAL;
816 goto done;
817 }
818
819 retval = usb_hcd_link_urb_to_ep(hcd, urb);
820 if (retval)
821 goto done;
822
823 hcd->status_urb = urb;
824 urb->hcpriv = hcd; /* indicate it's queued */
825 if (!hcd->uses_new_polling)
826 mod_timer(&hcd->rh_timer, (jiffies/(HZ/4) + 1) * (HZ/4));
827
828 /* If a status change has already occurred, report it ASAP */
829 else if (HCD_POLL_PENDING(hcd))
830 mod_timer(&hcd->rh_timer, jiffies);
831 retval = 0;
832 done:
833 spin_unlock_irqrestore (&hcd_root_hub_lock, flags);
834 return retval;
835}
836
837static int rh_urb_enqueue (struct usb_hcd *hcd, struct urb *urb)
838{
839 if (usb_endpoint_xfer_int(&urb->ep->desc))
840 return rh_queue_status (hcd, urb);
841 if (usb_endpoint_xfer_control(&urb->ep->desc))
842 return rh_call_control (hcd, urb);
843 return -EINVAL;
844}
845
846/*-------------------------------------------------------------------------*/
847
848/* Unlinks of root-hub control URBs are legal, but they don't do anything
849 * since these URBs always execute synchronously.
850 */
851static int usb_rh_urb_dequeue(struct usb_hcd *hcd, struct urb *urb, int status)
852{
853 unsigned long flags;
854 int rc;
855
856 spin_lock_irqsave(&hcd_root_hub_lock, flags);
857 rc = usb_hcd_check_unlink_urb(hcd, urb, status);
858 if (rc)
859 goto done;
860
861 if (usb_endpoint_num(&urb->ep->desc) == 0) { /* Control URB */
862 ; /* Do nothing */
863
864 } else { /* Status URB */
865 if (!hcd->uses_new_polling)
866 del_timer (&hcd->rh_timer);
867 if (urb == hcd->status_urb) {
868 hcd->status_urb = NULL;
869 usb_hcd_unlink_urb_from_ep(hcd, urb);
870 usb_hcd_giveback_urb(hcd, urb, status);
871 }
872 }
873 done:
874 spin_unlock_irqrestore(&hcd_root_hub_lock, flags);
875 return rc;
876}
877
878
879
880/*
881 * Show & store the current value of authorized_default
882 */
883static ssize_t authorized_default_show(struct device *dev,
884 struct device_attribute *attr, char *buf)
885{
886 struct usb_device *rh_usb_dev = to_usb_device(dev);
887 struct usb_bus *usb_bus = rh_usb_dev->bus;
888 struct usb_hcd *hcd;
889
890 hcd = bus_to_hcd(usb_bus);
891 return snprintf(buf, PAGE_SIZE, "%u\n", !!HCD_DEV_AUTHORIZED(hcd));
892}
893
894static ssize_t authorized_default_store(struct device *dev,
895 struct device_attribute *attr,
896 const char *buf, size_t size)
897{
898 ssize_t result;
899 unsigned val;
900 struct usb_device *rh_usb_dev = to_usb_device(dev);
901 struct usb_bus *usb_bus = rh_usb_dev->bus;
902 struct usb_hcd *hcd;
903
904 hcd = bus_to_hcd(usb_bus);
905 result = sscanf(buf, "%u\n", &val);
906 if (result == 1) {
907 if (val)
908 set_bit(HCD_FLAG_DEV_AUTHORIZED, &hcd->flags);
909 else
910 clear_bit(HCD_FLAG_DEV_AUTHORIZED, &hcd->flags);
911
912 result = size;
913 } else {
914 result = -EINVAL;
915 }
916 return result;
917}
918static DEVICE_ATTR_RW(authorized_default);
919
920/*
921 * interface_authorized_default_show - show default authorization status
922 * for USB interfaces
923 *
924 * note: interface_authorized_default is the default value
925 * for initializing the authorized attribute of interfaces
926 */
927static ssize_t interface_authorized_default_show(struct device *dev,
928 struct device_attribute *attr, char *buf)
929{
930 struct usb_device *usb_dev = to_usb_device(dev);
931 struct usb_hcd *hcd = bus_to_hcd(usb_dev->bus);
932
933 return sprintf(buf, "%u\n", !!HCD_INTF_AUTHORIZED(hcd));
934}
935
936/*
937 * interface_authorized_default_store - store default authorization status
938 * for USB interfaces
939 *
940 * note: interface_authorized_default is the default value
941 * for initializing the authorized attribute of interfaces
942 */
943static ssize_t interface_authorized_default_store(struct device *dev,
944 struct device_attribute *attr, const char *buf, size_t count)
945{
946 struct usb_device *usb_dev = to_usb_device(dev);
947 struct usb_hcd *hcd = bus_to_hcd(usb_dev->bus);
948 int rc = count;
949 bool val;
950
951 if (strtobool(buf, &val) != 0)
952 return -EINVAL;
953
954 if (val)
955 set_bit(HCD_FLAG_INTF_AUTHORIZED, &hcd->flags);
956 else
957 clear_bit(HCD_FLAG_INTF_AUTHORIZED, &hcd->flags);
958
959 return rc;
960}
961static DEVICE_ATTR_RW(interface_authorized_default);
962
963/* Group all the USB bus attributes */
964static struct attribute *usb_bus_attrs[] = {
965 &dev_attr_authorized_default.attr,
966 &dev_attr_interface_authorized_default.attr,
967 NULL,
968};
969
970static struct attribute_group usb_bus_attr_group = {
971 .name = NULL, /* we want them in the same directory */
972 .attrs = usb_bus_attrs,
973};
974
975
976
977/*-------------------------------------------------------------------------*/
978
979/**
980 * usb_bus_init - shared initialization code
981 * @bus: the bus structure being initialized
982 *
983 * This code is used to initialize a usb_bus structure, memory for which is
984 * separately managed.
985 */
986static void usb_bus_init (struct usb_bus *bus)
987{
988 memset (&bus->devmap, 0, sizeof(struct usb_devmap));
989
990 bus->devnum_next = 1;
991
992 bus->root_hub = NULL;
993 bus->busnum = -1;
994 bus->bandwidth_allocated = 0;
995 bus->bandwidth_int_reqs = 0;
996 bus->bandwidth_isoc_reqs = 0;
997 mutex_init(&bus->usb_address0_mutex);
998}
999
1000/*-------------------------------------------------------------------------*/
1001
1002/**
1003 * usb_register_bus - registers the USB host controller with the usb core
1004 * @bus: pointer to the bus to register
1005 * Context: !in_interrupt()
1006 *
1007 * Assigns a bus number, and links the controller into usbcore data
1008 * structures so that it can be seen by scanning the bus list.
1009 *
1010 * Return: 0 if successful. A negative error code otherwise.
1011 */
1012static int usb_register_bus(struct usb_bus *bus)
1013{
1014 int result = -E2BIG;
1015 int busnum;
1016
1017 mutex_lock(&usb_bus_idr_lock);
1018 busnum = idr_alloc(&usb_bus_idr, bus, 1, USB_MAXBUS, GFP_KERNEL);
1019 if (busnum < 0) {
1020 pr_err("%s: failed to get bus number\n", usbcore_name);
1021 goto error_find_busnum;
1022 }
1023 bus->busnum = busnum;
1024 mutex_unlock(&usb_bus_idr_lock);
1025
1026 usb_notify_add_bus(bus);
1027
1028 dev_info (bus->controller, "new USB bus registered, assigned bus "
1029 "number %d\n", bus->busnum);
1030 return 0;
1031
1032error_find_busnum:
1033 mutex_unlock(&usb_bus_idr_lock);
1034 return result;
1035}
1036
1037/**
1038 * usb_deregister_bus - deregisters the USB host controller
1039 * @bus: pointer to the bus to deregister
1040 * Context: !in_interrupt()
1041 *
1042 * Recycles the bus number, and unlinks the controller from usbcore data
1043 * structures so that it won't be seen by scanning the bus list.
1044 */
1045static void usb_deregister_bus (struct usb_bus *bus)
1046{
1047 dev_info (bus->controller, "USB bus %d deregistered\n", bus->busnum);
1048
1049 /*
1050 * NOTE: make sure that all the devices are removed by the
1051 * controller code, as well as having it call this when cleaning
1052 * itself up
1053 */
1054 mutex_lock(&usb_bus_idr_lock);
1055 idr_remove(&usb_bus_idr, bus->busnum);
1056 mutex_unlock(&usb_bus_idr_lock);
1057
1058 usb_notify_remove_bus(bus);
1059}
1060
1061/**
1062 * register_root_hub - called by usb_add_hcd() to register a root hub
1063 * @hcd: host controller for this root hub
1064 *
1065 * This function registers the root hub with the USB subsystem. It sets up
1066 * the device properly in the device tree and then calls usb_new_device()
1067 * to register the usb device. It also assigns the root hub's USB address
1068 * (always 1).
1069 *
1070 * Return: 0 if successful. A negative error code otherwise.
1071 */
1072static int register_root_hub(struct usb_hcd *hcd)
1073{
1074 struct device *parent_dev = hcd->self.controller;
1075 struct usb_device *usb_dev = hcd->self.root_hub;
1076 const int devnum = 1;
1077 int retval;
1078
1079 usb_dev->devnum = devnum;
1080 usb_dev->bus->devnum_next = devnum + 1;
1081 memset (&usb_dev->bus->devmap.devicemap, 0,
1082 sizeof usb_dev->bus->devmap.devicemap);
1083 set_bit (devnum, usb_dev->bus->devmap.devicemap);
1084 usb_set_device_state(usb_dev, USB_STATE_ADDRESS);
1085
1086 mutex_lock(&usb_bus_idr_lock);
1087
1088 usb_dev->ep0.desc.wMaxPacketSize = cpu_to_le16(64);
1089 retval = usb_get_device_descriptor(usb_dev, USB_DT_DEVICE_SIZE);
1090 if (retval != sizeof usb_dev->descriptor) {
1091 mutex_unlock(&usb_bus_idr_lock);
1092 dev_dbg (parent_dev, "can't read %s device descriptor %d\n",
1093 dev_name(&usb_dev->dev), retval);
1094 return (retval < 0) ? retval : -EMSGSIZE;
1095 }
1096
1097 if (le16_to_cpu(usb_dev->descriptor.bcdUSB) >= 0x0201) {
1098 retval = usb_get_bos_descriptor(usb_dev);
1099 if (!retval) {
1100 usb_dev->lpm_capable = usb_device_supports_lpm(usb_dev);
1101 } else if (usb_dev->speed >= USB_SPEED_SUPER) {
1102 mutex_unlock(&usb_bus_idr_lock);
1103 dev_dbg(parent_dev, "can't read %s bos descriptor %d\n",
1104 dev_name(&usb_dev->dev), retval);
1105 return retval;
1106 }
1107 }
1108
1109 retval = usb_new_device (usb_dev);
1110 if (retval) {
1111 dev_err (parent_dev, "can't register root hub for %s, %d\n",
1112 dev_name(&usb_dev->dev), retval);
1113 } else {
1114 spin_lock_irq (&hcd_root_hub_lock);
1115 hcd->rh_registered = 1;
1116 spin_unlock_irq (&hcd_root_hub_lock);
1117
1118 /* Did the HC die before the root hub was registered? */
1119 if (HCD_DEAD(hcd))
1120 usb_hc_died (hcd); /* This time clean up */
1121 }
1122 mutex_unlock(&usb_bus_idr_lock);
1123
1124 return retval;
1125}
1126
1127/*
1128 * usb_hcd_start_port_resume - a root-hub port is sending a resume signal
1129 * @bus: the bus which the root hub belongs to
1130 * @portnum: the port which is being resumed
1131 *
1132 * HCDs should call this function when they know that a resume signal is
1133 * being sent to a root-hub port. The root hub will be prevented from
1134 * going into autosuspend until usb_hcd_end_port_resume() is called.
1135 *
1136 * The bus's private lock must be held by the caller.
1137 */
1138void usb_hcd_start_port_resume(struct usb_bus *bus, int portnum)
1139{
1140 unsigned bit = 1 << portnum;
1141
1142 if (!(bus->resuming_ports & bit)) {
1143 bus->resuming_ports |= bit;
1144 pm_runtime_get_noresume(&bus->root_hub->dev);
1145 }
1146}
1147EXPORT_SYMBOL_GPL(usb_hcd_start_port_resume);
1148
1149/*
1150 * usb_hcd_end_port_resume - a root-hub port has stopped sending a resume signal
1151 * @bus: the bus which the root hub belongs to
1152 * @portnum: the port which is being resumed
1153 *
1154 * HCDs should call this function when they know that a resume signal has
1155 * stopped being sent to a root-hub port. The root hub will be allowed to
1156 * autosuspend again.
1157 *
1158 * The bus's private lock must be held by the caller.
1159 */
1160void usb_hcd_end_port_resume(struct usb_bus *bus, int portnum)
1161{
1162 unsigned bit = 1 << portnum;
1163
1164 if (bus->resuming_ports & bit) {
1165 bus->resuming_ports &= ~bit;
1166 pm_runtime_put_noidle(&bus->root_hub->dev);
1167 }
1168}
1169EXPORT_SYMBOL_GPL(usb_hcd_end_port_resume);
1170
1171/*-------------------------------------------------------------------------*/
1172
1173/**
1174 * usb_calc_bus_time - approximate periodic transaction time in nanoseconds
1175 * @speed: from dev->speed; USB_SPEED_{LOW,FULL,HIGH}
1176 * @is_input: true iff the transaction sends data to the host
1177 * @isoc: true for isochronous transactions, false for interrupt ones
1178 * @bytecount: how many bytes in the transaction.
1179 *
1180 * Return: Approximate bus time in nanoseconds for a periodic transaction.
1181 *
1182 * Note:
1183 * See USB 2.0 spec section 5.11.3; only periodic transfers need to be
1184 * scheduled in software, this function is only used for such scheduling.
1185 */
1186long usb_calc_bus_time (int speed, int is_input, int isoc, int bytecount)
1187{
1188 unsigned long tmp;
1189
1190 switch (speed) {
1191 case USB_SPEED_LOW: /* INTR only */
1192 if (is_input) {
1193 tmp = (67667L * (31L + 10L * BitTime (bytecount))) / 1000L;
1194 return 64060L + (2 * BW_HUB_LS_SETUP) + BW_HOST_DELAY + tmp;
1195 } else {
1196 tmp = (66700L * (31L + 10L * BitTime (bytecount))) / 1000L;
1197 return 64107L + (2 * BW_HUB_LS_SETUP) + BW_HOST_DELAY + tmp;
1198 }
1199 case USB_SPEED_FULL: /* ISOC or INTR */
1200 if (isoc) {
1201 tmp = (8354L * (31L + 10L * BitTime (bytecount))) / 1000L;
1202 return ((is_input) ? 7268L : 6265L) + BW_HOST_DELAY + tmp;
1203 } else {
1204 tmp = (8354L * (31L + 10L * BitTime (bytecount))) / 1000L;
1205 return 9107L + BW_HOST_DELAY + tmp;
1206 }
1207 case USB_SPEED_HIGH: /* ISOC or INTR */
1208 /* FIXME adjust for input vs output */
1209 if (isoc)
1210 tmp = HS_NSECS_ISO (bytecount);
1211 else
1212 tmp = HS_NSECS (bytecount);
1213 return tmp;
1214 default:
1215 pr_debug ("%s: bogus device speed!\n", usbcore_name);
1216 return -1;
1217 }
1218}
1219EXPORT_SYMBOL_GPL(usb_calc_bus_time);
1220
1221
1222/*-------------------------------------------------------------------------*/
1223
1224/*
1225 * Generic HC operations.
1226 */
1227
1228/*-------------------------------------------------------------------------*/
1229
1230/**
1231 * usb_hcd_link_urb_to_ep - add an URB to its endpoint queue
1232 * @hcd: host controller to which @urb was submitted
1233 * @urb: URB being submitted
1234 *
1235 * Host controller drivers should call this routine in their enqueue()
1236 * method. The HCD's private spinlock must be held and interrupts must
1237 * be disabled. The actions carried out here are required for URB
1238 * submission, as well as for endpoint shutdown and for usb_kill_urb.
1239 *
1240 * Return: 0 for no error, otherwise a negative error code (in which case
1241 * the enqueue() method must fail). If no error occurs but enqueue() fails
1242 * anyway, it must call usb_hcd_unlink_urb_from_ep() before releasing
1243 * the private spinlock and returning.
1244 */
1245int usb_hcd_link_urb_to_ep(struct usb_hcd *hcd, struct urb *urb)
1246{
1247 int rc = 0;
1248
1249 spin_lock(&hcd_urb_list_lock);
1250
1251 /* Check that the URB isn't being killed */
1252 if (unlikely(atomic_read(&urb->reject))) {
1253 rc = -EPERM;
1254 goto done;
1255 }
1256
1257 if (unlikely(!urb->ep->enabled)) {
1258 rc = -ENOENT;
1259 goto done;
1260 }
1261
1262 if (unlikely(!urb->dev->can_submit)) {
1263 rc = -EHOSTUNREACH;
1264 goto done;
1265 }
1266
1267 /*
1268 * Check the host controller's state and add the URB to the
1269 * endpoint's queue.
1270 */
1271 if (HCD_RH_RUNNING(hcd)) {
1272 urb->unlinked = 0;
1273 list_add_tail(&urb->urb_list, &urb->ep->urb_list);
1274 } else {
1275 rc = -ESHUTDOWN;
1276 goto done;
1277 }
1278 done:
1279 spin_unlock(&hcd_urb_list_lock);
1280 return rc;
1281}
1282EXPORT_SYMBOL_GPL(usb_hcd_link_urb_to_ep);
1283
1284/**
1285 * usb_hcd_check_unlink_urb - check whether an URB may be unlinked
1286 * @hcd: host controller to which @urb was submitted
1287 * @urb: URB being checked for unlinkability
1288 * @status: error code to store in @urb if the unlink succeeds
1289 *
1290 * Host controller drivers should call this routine in their dequeue()
1291 * method. The HCD's private spinlock must be held and interrupts must
1292 * be disabled. The actions carried out here are required for making
1293 * sure than an unlink is valid.
1294 *
1295 * Return: 0 for no error, otherwise a negative error code (in which case
1296 * the dequeue() method must fail). The possible error codes are:
1297 *
1298 * -EIDRM: @urb was not submitted or has already completed.
1299 * The completion function may not have been called yet.
1300 *
1301 * -EBUSY: @urb has already been unlinked.
1302 */
1303int usb_hcd_check_unlink_urb(struct usb_hcd *hcd, struct urb *urb,
1304 int status)
1305{
1306 struct list_head *tmp;
1307
1308 /* insist the urb is still queued */
1309 list_for_each(tmp, &urb->ep->urb_list) {
1310 if (tmp == &urb->urb_list)
1311 break;
1312 }
1313 if (tmp != &urb->urb_list)
1314 return -EIDRM;
1315
1316 /* Any status except -EINPROGRESS means something already started to
1317 * unlink this URB from the hardware. So there's no more work to do.
1318 */
1319 if (urb->unlinked)
1320 return -EBUSY;
1321 urb->unlinked = status;
1322 return 0;
1323}
1324EXPORT_SYMBOL_GPL(usb_hcd_check_unlink_urb);
1325
1326/**
1327 * usb_hcd_unlink_urb_from_ep - remove an URB from its endpoint queue
1328 * @hcd: host controller to which @urb was submitted
1329 * @urb: URB being unlinked
1330 *
1331 * Host controller drivers should call this routine before calling
1332 * usb_hcd_giveback_urb(). The HCD's private spinlock must be held and
1333 * interrupts must be disabled. The actions carried out here are required
1334 * for URB completion.
1335 */
1336void usb_hcd_unlink_urb_from_ep(struct usb_hcd *hcd, struct urb *urb)
1337{
1338 /* clear all state linking urb to this dev (and hcd) */
1339 spin_lock(&hcd_urb_list_lock);
1340 list_del_init(&urb->urb_list);
1341 spin_unlock(&hcd_urb_list_lock);
1342}
1343EXPORT_SYMBOL_GPL(usb_hcd_unlink_urb_from_ep);
1344
1345/*
1346 * Some usb host controllers can only perform dma using a small SRAM area.
1347 * The usb core itself is however optimized for host controllers that can dma
1348 * using regular system memory - like pci devices doing bus mastering.
1349 *
1350 * To support host controllers with limited dma capabilities we provide dma
1351 * bounce buffers. This feature can be enabled using the HCD_LOCAL_MEM flag.
1352 * For this to work properly the host controller code must first use the
1353 * function dma_declare_coherent_memory() to point out which memory area
1354 * that should be used for dma allocations.
1355 *
1356 * The HCD_LOCAL_MEM flag then tells the usb code to allocate all data for
1357 * dma using dma_alloc_coherent() which in turn allocates from the memory
1358 * area pointed out with dma_declare_coherent_memory().
1359 *
1360 * So, to summarize...
1361 *
1362 * - We need "local" memory, canonical example being
1363 * a small SRAM on a discrete controller being the
1364 * only memory that the controller can read ...
1365 * (a) "normal" kernel memory is no good, and
1366 * (b) there's not enough to share
1367 *
1368 * - The only *portable* hook for such stuff in the
1369 * DMA framework is dma_declare_coherent_memory()
1370 *
1371 * - So we use that, even though the primary requirement
1372 * is that the memory be "local" (hence addressable
1373 * by that device), not "coherent".
1374 *
1375 */
1376
1377static int hcd_alloc_coherent(struct usb_bus *bus,
1378 gfp_t mem_flags, dma_addr_t *dma_handle,
1379 void **vaddr_handle, size_t size,
1380 enum dma_data_direction dir)
1381{
1382 unsigned char *vaddr;
1383
1384 if (*vaddr_handle == NULL) {
1385 WARN_ON_ONCE(1);
1386 return -EFAULT;
1387 }
1388
1389 vaddr = hcd_buffer_alloc(bus, size + sizeof(vaddr),
1390 mem_flags, dma_handle);
1391 if (!vaddr)
1392 return -ENOMEM;
1393
1394 /*
1395 * Store the virtual address of the buffer at the end
1396 * of the allocated dma buffer. The size of the buffer
1397 * may be uneven so use unaligned functions instead
1398 * of just rounding up. It makes sense to optimize for
1399 * memory footprint over access speed since the amount
1400 * of memory available for dma may be limited.
1401 */
1402 put_unaligned((unsigned long)*vaddr_handle,
1403 (unsigned long *)(vaddr + size));
1404
1405 if (dir == DMA_TO_DEVICE)
1406 memcpy(vaddr, *vaddr_handle, size);
1407
1408 *vaddr_handle = vaddr;
1409 return 0;
1410}
1411
1412static void hcd_free_coherent(struct usb_bus *bus, dma_addr_t *dma_handle,
1413 void **vaddr_handle, size_t size,
1414 enum dma_data_direction dir)
1415{
1416 unsigned char *vaddr = *vaddr_handle;
1417
1418 vaddr = (void *)get_unaligned((unsigned long *)(vaddr + size));
1419
1420 if (dir == DMA_FROM_DEVICE)
1421 memcpy(vaddr, *vaddr_handle, size);
1422
1423 hcd_buffer_free(bus, size + sizeof(vaddr), *vaddr_handle, *dma_handle);
1424
1425 *vaddr_handle = vaddr;
1426 *dma_handle = 0;
1427}
1428
1429void usb_hcd_unmap_urb_setup_for_dma(struct usb_hcd *hcd, struct urb *urb)
1430{
1431 if (IS_ENABLED(CONFIG_HAS_DMA) &&
1432 (urb->transfer_flags & URB_SETUP_MAP_SINGLE))
1433 dma_unmap_single(hcd->self.controller,
1434 urb->setup_dma,
1435 sizeof(struct usb_ctrlrequest),
1436 DMA_TO_DEVICE);
1437 else if (urb->transfer_flags & URB_SETUP_MAP_LOCAL)
1438 hcd_free_coherent(urb->dev->bus,
1439 &urb->setup_dma,
1440 (void **) &urb->setup_packet,
1441 sizeof(struct usb_ctrlrequest),
1442 DMA_TO_DEVICE);
1443
1444 /* Make it safe to call this routine more than once */
1445 urb->transfer_flags &= ~(URB_SETUP_MAP_SINGLE | URB_SETUP_MAP_LOCAL);
1446}
1447EXPORT_SYMBOL_GPL(usb_hcd_unmap_urb_setup_for_dma);
1448
1449static void unmap_urb_for_dma(struct usb_hcd *hcd, struct urb *urb)
1450{
1451 if (hcd->driver->unmap_urb_for_dma)
1452 hcd->driver->unmap_urb_for_dma(hcd, urb);
1453 else
1454 usb_hcd_unmap_urb_for_dma(hcd, urb);
1455}
1456
1457void usb_hcd_unmap_urb_for_dma(struct usb_hcd *hcd, struct urb *urb)
1458{
1459 enum dma_data_direction dir;
1460
1461 usb_hcd_unmap_urb_setup_for_dma(hcd, urb);
1462
1463 dir = usb_urb_dir_in(urb) ? DMA_FROM_DEVICE : DMA_TO_DEVICE;
1464 if (IS_ENABLED(CONFIG_HAS_DMA) &&
1465 (urb->transfer_flags & URB_DMA_MAP_SG))
1466 dma_unmap_sg(hcd->self.controller,
1467 urb->sg,
1468 urb->num_sgs,
1469 dir);
1470 else if (IS_ENABLED(CONFIG_HAS_DMA) &&
1471 (urb->transfer_flags & URB_DMA_MAP_PAGE))
1472 dma_unmap_page(hcd->self.controller,
1473 urb->transfer_dma,
1474 urb->transfer_buffer_length,
1475 dir);
1476 else if (IS_ENABLED(CONFIG_HAS_DMA) &&
1477 (urb->transfer_flags & URB_DMA_MAP_SINGLE))
1478 dma_unmap_single(hcd->self.controller,
1479 urb->transfer_dma,
1480 urb->transfer_buffer_length,
1481 dir);
1482 else if (urb->transfer_flags & URB_MAP_LOCAL)
1483 hcd_free_coherent(urb->dev->bus,
1484 &urb->transfer_dma,
1485 &urb->transfer_buffer,
1486 urb->transfer_buffer_length,
1487 dir);
1488
1489 /* Make it safe to call this routine more than once */
1490 urb->transfer_flags &= ~(URB_DMA_MAP_SG | URB_DMA_MAP_PAGE |
1491 URB_DMA_MAP_SINGLE | URB_MAP_LOCAL);
1492}
1493EXPORT_SYMBOL_GPL(usb_hcd_unmap_urb_for_dma);
1494
1495static int map_urb_for_dma(struct usb_hcd *hcd, struct urb *urb,
1496 gfp_t mem_flags)
1497{
1498 if (hcd->driver->map_urb_for_dma)
1499 return hcd->driver->map_urb_for_dma(hcd, urb, mem_flags);
1500 else
1501 return usb_hcd_map_urb_for_dma(hcd, urb, mem_flags);
1502}
1503
1504int usb_hcd_map_urb_for_dma(struct usb_hcd *hcd, struct urb *urb,
1505 gfp_t mem_flags)
1506{
1507 enum dma_data_direction dir;
1508 int ret = 0;
1509
1510 /* Map the URB's buffers for DMA access.
1511 * Lower level HCD code should use *_dma exclusively,
1512 * unless it uses pio or talks to another transport,
1513 * or uses the provided scatter gather list for bulk.
1514 */
1515
1516 if (usb_endpoint_xfer_control(&urb->ep->desc)) {
1517 if (hcd->self.uses_pio_for_control)
1518 return ret;
1519 if (IS_ENABLED(CONFIG_HAS_DMA) && hcd->self.uses_dma) {
1520 urb->setup_dma = dma_map_single(
1521 hcd->self.controller,
1522 urb->setup_packet,
1523 sizeof(struct usb_ctrlrequest),
1524 DMA_TO_DEVICE);
1525 if (dma_mapping_error(hcd->self.controller,
1526 urb->setup_dma))
1527 return -EAGAIN;
1528 urb->transfer_flags |= URB_SETUP_MAP_SINGLE;
1529 } else if (hcd->driver->flags & HCD_LOCAL_MEM) {
1530 ret = hcd_alloc_coherent(
1531 urb->dev->bus, mem_flags,
1532 &urb->setup_dma,
1533 (void **)&urb->setup_packet,
1534 sizeof(struct usb_ctrlrequest),
1535 DMA_TO_DEVICE);
1536 if (ret)
1537 return ret;
1538 urb->transfer_flags |= URB_SETUP_MAP_LOCAL;
1539 }
1540 }
1541
1542 dir = usb_urb_dir_in(urb) ? DMA_FROM_DEVICE : DMA_TO_DEVICE;
1543 if (urb->transfer_buffer_length != 0
1544 && !(urb->transfer_flags & URB_NO_TRANSFER_DMA_MAP)) {
1545 if (IS_ENABLED(CONFIG_HAS_DMA) && hcd->self.uses_dma) {
1546 if (urb->num_sgs) {
1547 int n;
1548
1549 /* We don't support sg for isoc transfers ! */
1550 if (usb_endpoint_xfer_isoc(&urb->ep->desc)) {
1551 WARN_ON(1);
1552 return -EINVAL;
1553 }
1554
1555 n = dma_map_sg(
1556 hcd->self.controller,
1557 urb->sg,
1558 urb->num_sgs,
1559 dir);
1560 if (n <= 0)
1561 ret = -EAGAIN;
1562 else
1563 urb->transfer_flags |= URB_DMA_MAP_SG;
1564 urb->num_mapped_sgs = n;
1565 if (n != urb->num_sgs)
1566 urb->transfer_flags |=
1567 URB_DMA_SG_COMBINED;
1568 } else if (urb->sg) {
1569 struct scatterlist *sg = urb->sg;
1570 urb->transfer_dma = dma_map_page(
1571 hcd->self.controller,
1572 sg_page(sg),
1573 sg->offset,
1574 urb->transfer_buffer_length,
1575 dir);
1576 if (dma_mapping_error(hcd->self.controller,
1577 urb->transfer_dma))
1578 ret = -EAGAIN;
1579 else
1580 urb->transfer_flags |= URB_DMA_MAP_PAGE;
1581 } else if (is_vmalloc_addr(urb->transfer_buffer)) {
1582 WARN_ONCE(1, "transfer buffer not dma capable\n");
1583 ret = -EAGAIN;
1584 } else {
1585 urb->transfer_dma = dma_map_single(
1586 hcd->self.controller,
1587 urb->transfer_buffer,
1588 urb->transfer_buffer_length,
1589 dir);
1590 if (dma_mapping_error(hcd->self.controller,
1591 urb->transfer_dma))
1592 ret = -EAGAIN;
1593 else
1594 urb->transfer_flags |= URB_DMA_MAP_SINGLE;
1595 }
1596 } else if (hcd->driver->flags & HCD_LOCAL_MEM) {
1597 ret = hcd_alloc_coherent(
1598 urb->dev->bus, mem_flags,
1599 &urb->transfer_dma,
1600 &urb->transfer_buffer,
1601 urb->transfer_buffer_length,
1602 dir);
1603 if (ret == 0)
1604 urb->transfer_flags |= URB_MAP_LOCAL;
1605 }
1606 if (ret && (urb->transfer_flags & (URB_SETUP_MAP_SINGLE |
1607 URB_SETUP_MAP_LOCAL)))
1608 usb_hcd_unmap_urb_for_dma(hcd, urb);
1609 }
1610 return ret;
1611}
1612EXPORT_SYMBOL_GPL(usb_hcd_map_urb_for_dma);
1613
1614/*-------------------------------------------------------------------------*/
1615
1616/* may be called in any context with a valid urb->dev usecount
1617 * caller surrenders "ownership" of urb
1618 * expects usb_submit_urb() to have sanity checked and conditioned all
1619 * inputs in the urb
1620 */
1621int usb_hcd_submit_urb (struct urb *urb, gfp_t mem_flags)
1622{
1623 int status;
1624 struct usb_hcd *hcd = bus_to_hcd(urb->dev->bus);
1625
1626 /* increment urb's reference count as part of giving it to the HCD
1627 * (which will control it). HCD guarantees that it either returns
1628 * an error or calls giveback(), but not both.
1629 */
1630 usb_get_urb(urb);
1631 atomic_inc(&urb->use_count);
1632 atomic_inc(&urb->dev->urbnum);
1633 usbmon_urb_submit(&hcd->self, urb);
1634
1635 /* NOTE requirements on root-hub callers (usbfs and the hub
1636 * driver, for now): URBs' urb->transfer_buffer must be
1637 * valid and usb_buffer_{sync,unmap}() not be needed, since
1638 * they could clobber root hub response data. Also, control
1639 * URBs must be submitted in process context with interrupts
1640 * enabled.
1641 */
1642
1643 if (is_root_hub(urb->dev)) {
1644 status = rh_urb_enqueue(hcd, urb);
1645 } else {
1646 status = map_urb_for_dma(hcd, urb, mem_flags);
1647 if (likely(status == 0)) {
1648 status = hcd->driver->urb_enqueue(hcd, urb, mem_flags);
1649 if (unlikely(status))
1650 unmap_urb_for_dma(hcd, urb);
1651 }
1652 }
1653
1654 if (unlikely(status)) {
1655 usbmon_urb_submit_error(&hcd->self, urb, status);
1656 urb->hcpriv = NULL;
1657 INIT_LIST_HEAD(&urb->urb_list);
1658 atomic_dec(&urb->use_count);
1659 atomic_dec(&urb->dev->urbnum);
1660 if (atomic_read(&urb->reject))
1661 wake_up(&usb_kill_urb_queue);
1662 usb_put_urb(urb);
1663 }
1664 return status;
1665}
1666
1667/*-------------------------------------------------------------------------*/
1668
1669/* this makes the hcd giveback() the urb more quickly, by kicking it
1670 * off hardware queues (which may take a while) and returning it as
1671 * soon as practical. we've already set up the urb's return status,
1672 * but we can't know if the callback completed already.
1673 */
1674static int unlink1(struct usb_hcd *hcd, struct urb *urb, int status)
1675{
1676 int value;
1677
1678 if (is_root_hub(urb->dev))
1679 value = usb_rh_urb_dequeue(hcd, urb, status);
1680 else {
1681
1682 /* The only reason an HCD might fail this call is if
1683 * it has not yet fully queued the urb to begin with.
1684 * Such failures should be harmless. */
1685 value = hcd->driver->urb_dequeue(hcd, urb, status);
1686 }
1687 return value;
1688}
1689
1690/*
1691 * called in any context
1692 *
1693 * caller guarantees urb won't be recycled till both unlink()
1694 * and the urb's completion function return
1695 */
1696int usb_hcd_unlink_urb (struct urb *urb, int status)
1697{
1698 struct usb_hcd *hcd;
1699 struct usb_device *udev = urb->dev;
1700 int retval = -EIDRM;
1701 unsigned long flags;
1702
1703 /* Prevent the device and bus from going away while
1704 * the unlink is carried out. If they are already gone
1705 * then urb->use_count must be 0, since disconnected
1706 * devices can't have any active URBs.
1707 */
1708 spin_lock_irqsave(&hcd_urb_unlink_lock, flags);
1709 if (atomic_read(&urb->use_count) > 0) {
1710 retval = 0;
1711 usb_get_dev(udev);
1712 }
1713 spin_unlock_irqrestore(&hcd_urb_unlink_lock, flags);
1714 if (retval == 0) {
1715 hcd = bus_to_hcd(urb->dev->bus);
1716 retval = unlink1(hcd, urb, status);
1717 if (retval == 0)
1718 retval = -EINPROGRESS;
1719 else if (retval != -EIDRM && retval != -EBUSY)
1720 dev_dbg(&udev->dev, "hcd_unlink_urb %p fail %d\n",
1721 urb, retval);
1722 usb_put_dev(udev);
1723 }
1724 return retval;
1725}
1726
1727/*-------------------------------------------------------------------------*/
1728
1729static void __usb_hcd_giveback_urb(struct urb *urb)
1730{
1731 struct usb_hcd *hcd = bus_to_hcd(urb->dev->bus);
1732 struct usb_anchor *anchor = urb->anchor;
1733 int status = urb->unlinked;
1734 unsigned long flags;
1735
1736 urb->hcpriv = NULL;
1737 if (unlikely((urb->transfer_flags & URB_SHORT_NOT_OK) &&
1738 urb->actual_length < urb->transfer_buffer_length &&
1739 !status))
1740 status = -EREMOTEIO;
1741
1742 unmap_urb_for_dma(hcd, urb);
1743 usbmon_urb_complete(&hcd->self, urb, status);
1744 usb_anchor_suspend_wakeups(anchor);
1745 usb_unanchor_urb(urb);
1746 if (likely(status == 0))
1747 usb_led_activity(USB_LED_EVENT_HOST);
1748
1749 /* pass ownership to the completion handler */
1750 urb->status = status;
1751
1752 /*
1753 * We disable local IRQs here avoid possible deadlock because
1754 * drivers may call spin_lock() to hold lock which might be
1755 * acquired in one hard interrupt handler.
1756 *
1757 * The local_irq_save()/local_irq_restore() around complete()
1758 * will be removed if current USB drivers have been cleaned up
1759 * and no one may trigger the above deadlock situation when
1760 * running complete() in tasklet.
1761 */
1762 local_irq_save(flags);
1763 urb->complete(urb);
1764 local_irq_restore(flags);
1765
1766 usb_anchor_resume_wakeups(anchor);
1767 atomic_dec(&urb->use_count);
1768 if (unlikely(atomic_read(&urb->reject)))
1769 wake_up(&usb_kill_urb_queue);
1770 usb_put_urb(urb);
1771}
1772
1773static void usb_giveback_urb_bh(unsigned long param)
1774{
1775 struct giveback_urb_bh *bh = (struct giveback_urb_bh *)param;
1776 struct list_head local_list;
1777
1778 spin_lock_irq(&bh->lock);
1779 bh->running = true;
1780 restart:
1781 list_replace_init(&bh->head, &local_list);
1782 spin_unlock_irq(&bh->lock);
1783
1784 while (!list_empty(&local_list)) {
1785 struct urb *urb;
1786
1787 urb = list_entry(local_list.next, struct urb, urb_list);
1788 list_del_init(&urb->urb_list);
1789 bh->completing_ep = urb->ep;
1790 __usb_hcd_giveback_urb(urb);
1791 bh->completing_ep = NULL;
1792 }
1793
1794 /* check if there are new URBs to giveback */
1795 spin_lock_irq(&bh->lock);
1796 if (!list_empty(&bh->head))
1797 goto restart;
1798 bh->running = false;
1799 spin_unlock_irq(&bh->lock);
1800}
1801
1802/**
1803 * usb_hcd_giveback_urb - return URB from HCD to device driver
1804 * @hcd: host controller returning the URB
1805 * @urb: urb being returned to the USB device driver.
1806 * @status: completion status code for the URB.
1807 * Context: in_interrupt()
1808 *
1809 * This hands the URB from HCD to its USB device driver, using its
1810 * completion function. The HCD has freed all per-urb resources
1811 * (and is done using urb->hcpriv). It also released all HCD locks;
1812 * the device driver won't cause problems if it frees, modifies,
1813 * or resubmits this URB.
1814 *
1815 * If @urb was unlinked, the value of @status will be overridden by
1816 * @urb->unlinked. Erroneous short transfers are detected in case
1817 * the HCD hasn't checked for them.
1818 */
1819void usb_hcd_giveback_urb(struct usb_hcd *hcd, struct urb *urb, int status)
1820{
1821 struct giveback_urb_bh *bh;
1822 bool running, high_prio_bh;
1823
1824 /* pass status to tasklet via unlinked */
1825 if (likely(!urb->unlinked))
1826 urb->unlinked = status;
1827
1828 if (!hcd_giveback_urb_in_bh(hcd) && !is_root_hub(urb->dev)) {
1829 __usb_hcd_giveback_urb(urb);
1830 return;
1831 }
1832
1833 if (usb_pipeisoc(urb->pipe) || usb_pipeint(urb->pipe)) {
1834 bh = &hcd->high_prio_bh;
1835 high_prio_bh = true;
1836 } else {
1837 bh = &hcd->low_prio_bh;
1838 high_prio_bh = false;
1839 }
1840
1841 spin_lock(&bh->lock);
1842 list_add_tail(&urb->urb_list, &bh->head);
1843 running = bh->running;
1844 spin_unlock(&bh->lock);
1845
1846 if (running)
1847 ;
1848 else if (high_prio_bh)
1849 tasklet_hi_schedule(&bh->bh);
1850 else
1851 tasklet_schedule(&bh->bh);
1852}
1853EXPORT_SYMBOL_GPL(usb_hcd_giveback_urb);
1854
1855/*-------------------------------------------------------------------------*/
1856
1857/* Cancel all URBs pending on this endpoint and wait for the endpoint's
1858 * queue to drain completely. The caller must first insure that no more
1859 * URBs can be submitted for this endpoint.
1860 */
1861void usb_hcd_flush_endpoint(struct usb_device *udev,
1862 struct usb_host_endpoint *ep)
1863{
1864 struct usb_hcd *hcd;
1865 struct urb *urb;
1866
1867 if (!ep)
1868 return;
1869 might_sleep();
1870 hcd = bus_to_hcd(udev->bus);
1871
1872 /* No more submits can occur */
1873 spin_lock_irq(&hcd_urb_list_lock);
1874rescan:
1875 list_for_each_entry (urb, &ep->urb_list, urb_list) {
1876 int is_in;
1877
1878 if (urb->unlinked)
1879 continue;
1880 usb_get_urb (urb);
1881 is_in = usb_urb_dir_in(urb);
1882 spin_unlock(&hcd_urb_list_lock);
1883
1884 /* kick hcd */
1885 unlink1(hcd, urb, -ESHUTDOWN);
1886 dev_dbg (hcd->self.controller,
1887 "shutdown urb %p ep%d%s%s\n",
1888 urb, usb_endpoint_num(&ep->desc),
1889 is_in ? "in" : "out",
1890 ({ char *s;
1891
1892 switch (usb_endpoint_type(&ep->desc)) {
1893 case USB_ENDPOINT_XFER_CONTROL:
1894 s = ""; break;
1895 case USB_ENDPOINT_XFER_BULK:
1896 s = "-bulk"; break;
1897 case USB_ENDPOINT_XFER_INT:
1898 s = "-intr"; break;
1899 default:
1900 s = "-iso"; break;
1901 };
1902 s;
1903 }));
1904 usb_put_urb (urb);
1905
1906 /* list contents may have changed */
1907 spin_lock(&hcd_urb_list_lock);
1908 goto rescan;
1909 }
1910 spin_unlock_irq(&hcd_urb_list_lock);
1911
1912 /* Wait until the endpoint queue is completely empty */
1913 while (!list_empty (&ep->urb_list)) {
1914 spin_lock_irq(&hcd_urb_list_lock);
1915
1916 /* The list may have changed while we acquired the spinlock */
1917 urb = NULL;
1918 if (!list_empty (&ep->urb_list)) {
1919 urb = list_entry (ep->urb_list.prev, struct urb,
1920 urb_list);
1921 usb_get_urb (urb);
1922 }
1923 spin_unlock_irq(&hcd_urb_list_lock);
1924
1925 if (urb) {
1926 usb_kill_urb (urb);
1927 usb_put_urb (urb);
1928 }
1929 }
1930}
1931
1932/**
1933 * usb_hcd_alloc_bandwidth - check whether a new bandwidth setting exceeds
1934 * the bus bandwidth
1935 * @udev: target &usb_device
1936 * @new_config: new configuration to install
1937 * @cur_alt: the current alternate interface setting
1938 * @new_alt: alternate interface setting that is being installed
1939 *
1940 * To change configurations, pass in the new configuration in new_config,
1941 * and pass NULL for cur_alt and new_alt.
1942 *
1943 * To reset a device's configuration (put the device in the ADDRESSED state),
1944 * pass in NULL for new_config, cur_alt, and new_alt.
1945 *
1946 * To change alternate interface settings, pass in NULL for new_config,
1947 * pass in the current alternate interface setting in cur_alt,
1948 * and pass in the new alternate interface setting in new_alt.
1949 *
1950 * Return: An error if the requested bandwidth change exceeds the
1951 * bus bandwidth or host controller internal resources.
1952 */
1953int usb_hcd_alloc_bandwidth(struct usb_device *udev,
1954 struct usb_host_config *new_config,
1955 struct usb_host_interface *cur_alt,
1956 struct usb_host_interface *new_alt)
1957{
1958 int num_intfs, i, j;
1959 struct usb_host_interface *alt = NULL;
1960 int ret = 0;
1961 struct usb_hcd *hcd;
1962 struct usb_host_endpoint *ep;
1963
1964 hcd = bus_to_hcd(udev->bus);
1965 if (!hcd->driver->check_bandwidth)
1966 return 0;
1967
1968 /* Configuration is being removed - set configuration 0 */
1969 if (!new_config && !cur_alt) {
1970 for (i = 1; i < 16; ++i) {
1971 ep = udev->ep_out[i];
1972 if (ep)
1973 hcd->driver->drop_endpoint(hcd, udev, ep);
1974 ep = udev->ep_in[i];
1975 if (ep)
1976 hcd->driver->drop_endpoint(hcd, udev, ep);
1977 }
1978 hcd->driver->check_bandwidth(hcd, udev);
1979 return 0;
1980 }
1981 /* Check if the HCD says there's enough bandwidth. Enable all endpoints
1982 * each interface's alt setting 0 and ask the HCD to check the bandwidth
1983 * of the bus. There will always be bandwidth for endpoint 0, so it's
1984 * ok to exclude it.
1985 */
1986 if (new_config) {
1987 num_intfs = new_config->desc.bNumInterfaces;
1988 /* Remove endpoints (except endpoint 0, which is always on the
1989 * schedule) from the old config from the schedule
1990 */
1991 for (i = 1; i < 16; ++i) {
1992 ep = udev->ep_out[i];
1993 if (ep) {
1994 ret = hcd->driver->drop_endpoint(hcd, udev, ep);
1995 if (ret < 0)
1996 goto reset;
1997 }
1998 ep = udev->ep_in[i];
1999 if (ep) {
2000 ret = hcd->driver->drop_endpoint(hcd, udev, ep);
2001 if (ret < 0)
2002 goto reset;
2003 }
2004 }
2005 for (i = 0; i < num_intfs; ++i) {
2006 struct usb_host_interface *first_alt;
2007 int iface_num;
2008
2009 first_alt = &new_config->intf_cache[i]->altsetting[0];
2010 iface_num = first_alt->desc.bInterfaceNumber;
2011 /* Set up endpoints for alternate interface setting 0 */
2012 alt = usb_find_alt_setting(new_config, iface_num, 0);
2013 if (!alt)
2014 /* No alt setting 0? Pick the first setting. */
2015 alt = first_alt;
2016
2017 for (j = 0; j < alt->desc.bNumEndpoints; j++) {
2018 ret = hcd->driver->add_endpoint(hcd, udev, &alt->endpoint[j]);
2019 if (ret < 0)
2020 goto reset;
2021 }
2022 }
2023 }
2024 if (cur_alt && new_alt) {
2025 struct usb_interface *iface = usb_ifnum_to_if(udev,
2026 cur_alt->desc.bInterfaceNumber);
2027
2028 if (!iface)
2029 return -EINVAL;
2030 if (iface->resetting_device) {
2031 /*
2032 * The USB core just reset the device, so the xHCI host
2033 * and the device will think alt setting 0 is installed.
2034 * However, the USB core will pass in the alternate
2035 * setting installed before the reset as cur_alt. Dig
2036 * out the alternate setting 0 structure, or the first
2037 * alternate setting if a broken device doesn't have alt
2038 * setting 0.
2039 */
2040 cur_alt = usb_altnum_to_altsetting(iface, 0);
2041 if (!cur_alt)
2042 cur_alt = &iface->altsetting[0];
2043 }
2044
2045 /* Drop all the endpoints in the current alt setting */
2046 for (i = 0; i < cur_alt->desc.bNumEndpoints; i++) {
2047 ret = hcd->driver->drop_endpoint(hcd, udev,
2048 &cur_alt->endpoint[i]);
2049 if (ret < 0)
2050 goto reset;
2051 }
2052 /* Add all the endpoints in the new alt setting */
2053 for (i = 0; i < new_alt->desc.bNumEndpoints; i++) {
2054 ret = hcd->driver->add_endpoint(hcd, udev,
2055 &new_alt->endpoint[i]);
2056 if (ret < 0)
2057 goto reset;
2058 }
2059 }
2060 ret = hcd->driver->check_bandwidth(hcd, udev);
2061reset:
2062 if (ret < 0)
2063 hcd->driver->reset_bandwidth(hcd, udev);
2064 return ret;
2065}
2066
2067/* Disables the endpoint: synchronizes with the hcd to make sure all
2068 * endpoint state is gone from hardware. usb_hcd_flush_endpoint() must
2069 * have been called previously. Use for set_configuration, set_interface,
2070 * driver removal, physical disconnect.
2071 *
2072 * example: a qh stored in ep->hcpriv, holding state related to endpoint
2073 * type, maxpacket size, toggle, halt status, and scheduling.
2074 */
2075void usb_hcd_disable_endpoint(struct usb_device *udev,
2076 struct usb_host_endpoint *ep)
2077{
2078 struct usb_hcd *hcd;
2079
2080 might_sleep();
2081 hcd = bus_to_hcd(udev->bus);
2082 if (hcd->driver->endpoint_disable)
2083 hcd->driver->endpoint_disable(hcd, ep);
2084}
2085
2086/**
2087 * usb_hcd_reset_endpoint - reset host endpoint state
2088 * @udev: USB device.
2089 * @ep: the endpoint to reset.
2090 *
2091 * Resets any host endpoint state such as the toggle bit, sequence
2092 * number and current window.
2093 */
2094void usb_hcd_reset_endpoint(struct usb_device *udev,
2095 struct usb_host_endpoint *ep)
2096{
2097 struct usb_hcd *hcd = bus_to_hcd(udev->bus);
2098
2099 if (hcd->driver->endpoint_reset)
2100 hcd->driver->endpoint_reset(hcd, ep);
2101 else {
2102 int epnum = usb_endpoint_num(&ep->desc);
2103 int is_out = usb_endpoint_dir_out(&ep->desc);
2104 int is_control = usb_endpoint_xfer_control(&ep->desc);
2105
2106 usb_settoggle(udev, epnum, is_out, 0);
2107 if (is_control)
2108 usb_settoggle(udev, epnum, !is_out, 0);
2109 }
2110}
2111
2112/**
2113 * usb_alloc_streams - allocate bulk endpoint stream IDs.
2114 * @interface: alternate setting that includes all endpoints.
2115 * @eps: array of endpoints that need streams.
2116 * @num_eps: number of endpoints in the array.
2117 * @num_streams: number of streams to allocate.
2118 * @mem_flags: flags hcd should use to allocate memory.
2119 *
2120 * Sets up a group of bulk endpoints to have @num_streams stream IDs available.
2121 * Drivers may queue multiple transfers to different stream IDs, which may
2122 * complete in a different order than they were queued.
2123 *
2124 * Return: On success, the number of allocated streams. On failure, a negative
2125 * error code.
2126 */
2127int usb_alloc_streams(struct usb_interface *interface,
2128 struct usb_host_endpoint **eps, unsigned int num_eps,
2129 unsigned int num_streams, gfp_t mem_flags)
2130{
2131 struct usb_hcd *hcd;
2132 struct usb_device *dev;
2133 int i, ret;
2134
2135 dev = interface_to_usbdev(interface);
2136 hcd = bus_to_hcd(dev->bus);
2137 if (!hcd->driver->alloc_streams || !hcd->driver->free_streams)
2138 return -EINVAL;
2139 if (dev->speed < USB_SPEED_SUPER)
2140 return -EINVAL;
2141 if (dev->state < USB_STATE_CONFIGURED)
2142 return -ENODEV;
2143
2144 for (i = 0; i < num_eps; i++) {
2145 /* Streams only apply to bulk endpoints. */
2146 if (!usb_endpoint_xfer_bulk(&eps[i]->desc))
2147 return -EINVAL;
2148 /* Re-alloc is not allowed */
2149 if (eps[i]->streams)
2150 return -EINVAL;
2151 }
2152
2153 ret = hcd->driver->alloc_streams(hcd, dev, eps, num_eps,
2154 num_streams, mem_flags);
2155 if (ret < 0)
2156 return ret;
2157
2158 for (i = 0; i < num_eps; i++)
2159 eps[i]->streams = ret;
2160
2161 return ret;
2162}
2163EXPORT_SYMBOL_GPL(usb_alloc_streams);
2164
2165/**
2166 * usb_free_streams - free bulk endpoint stream IDs.
2167 * @interface: alternate setting that includes all endpoints.
2168 * @eps: array of endpoints to remove streams from.
2169 * @num_eps: number of endpoints in the array.
2170 * @mem_flags: flags hcd should use to allocate memory.
2171 *
2172 * Reverts a group of bulk endpoints back to not using stream IDs.
2173 * Can fail if we are given bad arguments, or HCD is broken.
2174 *
2175 * Return: 0 on success. On failure, a negative error code.
2176 */
2177int usb_free_streams(struct usb_interface *interface,
2178 struct usb_host_endpoint **eps, unsigned int num_eps,
2179 gfp_t mem_flags)
2180{
2181 struct usb_hcd *hcd;
2182 struct usb_device *dev;
2183 int i, ret;
2184
2185 dev = interface_to_usbdev(interface);
2186 hcd = bus_to_hcd(dev->bus);
2187 if (dev->speed < USB_SPEED_SUPER)
2188 return -EINVAL;
2189
2190 /* Double-free is not allowed */
2191 for (i = 0; i < num_eps; i++)
2192 if (!eps[i] || !eps[i]->streams)
2193 return -EINVAL;
2194
2195 ret = hcd->driver->free_streams(hcd, dev, eps, num_eps, mem_flags);
2196 if (ret < 0)
2197 return ret;
2198
2199 for (i = 0; i < num_eps; i++)
2200 eps[i]->streams = 0;
2201
2202 return ret;
2203}
2204EXPORT_SYMBOL_GPL(usb_free_streams);
2205
2206/* Protect against drivers that try to unlink URBs after the device
2207 * is gone, by waiting until all unlinks for @udev are finished.
2208 * Since we don't currently track URBs by device, simply wait until
2209 * nothing is running in the locked region of usb_hcd_unlink_urb().
2210 */
2211void usb_hcd_synchronize_unlinks(struct usb_device *udev)
2212{
2213 spin_lock_irq(&hcd_urb_unlink_lock);
2214 spin_unlock_irq(&hcd_urb_unlink_lock);
2215}
2216
2217/*-------------------------------------------------------------------------*/
2218
2219/* called in any context */
2220int usb_hcd_get_frame_number (struct usb_device *udev)
2221{
2222 struct usb_hcd *hcd = bus_to_hcd(udev->bus);
2223
2224 if (!HCD_RH_RUNNING(hcd))
2225 return -ESHUTDOWN;
2226 return hcd->driver->get_frame_number (hcd);
2227}
2228
2229/*-------------------------------------------------------------------------*/
2230
2231#ifdef CONFIG_PM
2232
2233int hcd_bus_suspend(struct usb_device *rhdev, pm_message_t msg)
2234{
2235 struct usb_hcd *hcd = bus_to_hcd(rhdev->bus);
2236 int status;
2237 int old_state = hcd->state;
2238
2239 dev_dbg(&rhdev->dev, "bus %ssuspend, wakeup %d\n",
2240 (PMSG_IS_AUTO(msg) ? "auto-" : ""),
2241 rhdev->do_remote_wakeup);
2242 if (HCD_DEAD(hcd)) {
2243 dev_dbg(&rhdev->dev, "skipped %s of dead bus\n", "suspend");
2244 return 0;
2245 }
2246
2247 if (!hcd->driver->bus_suspend) {
2248 status = -ENOENT;
2249 } else {
2250 clear_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2251 hcd->state = HC_STATE_QUIESCING;
2252 status = hcd->driver->bus_suspend(hcd);
2253 }
2254 if (status == 0) {
2255 usb_set_device_state(rhdev, USB_STATE_SUSPENDED);
2256 hcd->state = HC_STATE_SUSPENDED;
2257
2258 /* Did we race with a root-hub wakeup event? */
2259 if (rhdev->do_remote_wakeup) {
2260 char buffer[6];
2261
2262 status = hcd->driver->hub_status_data(hcd, buffer);
2263 if (status != 0) {
2264 dev_dbg(&rhdev->dev, "suspend raced with wakeup event\n");
2265 hcd_bus_resume(rhdev, PMSG_AUTO_RESUME);
2266 status = -EBUSY;
2267 }
2268 }
2269 } else {
2270 spin_lock_irq(&hcd_root_hub_lock);
2271 if (!HCD_DEAD(hcd)) {
2272 set_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2273 hcd->state = old_state;
2274 }
2275 spin_unlock_irq(&hcd_root_hub_lock);
2276 dev_dbg(&rhdev->dev, "bus %s fail, err %d\n",
2277 "suspend", status);
2278 }
2279 return status;
2280}
2281
2282int hcd_bus_resume(struct usb_device *rhdev, pm_message_t msg)
2283{
2284 struct usb_hcd *hcd = bus_to_hcd(rhdev->bus);
2285 int status;
2286 int old_state = hcd->state;
2287
2288 dev_dbg(&rhdev->dev, "usb %sresume\n",
2289 (PMSG_IS_AUTO(msg) ? "auto-" : ""));
2290 if (HCD_DEAD(hcd)) {
2291 dev_dbg(&rhdev->dev, "skipped %s of dead bus\n", "resume");
2292 return 0;
2293 }
2294 if (!hcd->driver->bus_resume)
2295 return -ENOENT;
2296 if (HCD_RH_RUNNING(hcd))
2297 return 0;
2298
2299 hcd->state = HC_STATE_RESUMING;
2300 status = hcd->driver->bus_resume(hcd);
2301 clear_bit(HCD_FLAG_WAKEUP_PENDING, &hcd->flags);
2302 if (status == 0) {
2303 struct usb_device *udev;
2304 int port1;
2305
2306 spin_lock_irq(&hcd_root_hub_lock);
2307 if (!HCD_DEAD(hcd)) {
2308 usb_set_device_state(rhdev, rhdev->actconfig
2309 ? USB_STATE_CONFIGURED
2310 : USB_STATE_ADDRESS);
2311 set_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2312 hcd->state = HC_STATE_RUNNING;
2313 }
2314 spin_unlock_irq(&hcd_root_hub_lock);
2315
2316 /*
2317 * Check whether any of the enabled ports on the root hub are
2318 * unsuspended. If they are then a TRSMRCY delay is needed
2319 * (this is what the USB-2 spec calls a "global resume").
2320 * Otherwise we can skip the delay.
2321 */
2322 usb_hub_for_each_child(rhdev, port1, udev) {
2323 if (udev->state != USB_STATE_NOTATTACHED &&
2324 !udev->port_is_suspended) {
2325 usleep_range(10000, 11000); /* TRSMRCY */
2326 break;
2327 }
2328 }
2329 } else {
2330 hcd->state = old_state;
2331 dev_dbg(&rhdev->dev, "bus %s fail, err %d\n",
2332 "resume", status);
2333 if (status != -ESHUTDOWN)
2334 usb_hc_died(hcd);
2335 }
2336 return status;
2337}
2338
2339/* Workqueue routine for root-hub remote wakeup */
2340static void hcd_resume_work(struct work_struct *work)
2341{
2342 struct usb_hcd *hcd = container_of(work, struct usb_hcd, wakeup_work);
2343 struct usb_device *udev = hcd->self.root_hub;
2344
2345 usb_remote_wakeup(udev);
2346}
2347
2348/**
2349 * usb_hcd_resume_root_hub - called by HCD to resume its root hub
2350 * @hcd: host controller for this root hub
2351 *
2352 * The USB host controller calls this function when its root hub is
2353 * suspended (with the remote wakeup feature enabled) and a remote
2354 * wakeup request is received. The routine submits a workqueue request
2355 * to resume the root hub (that is, manage its downstream ports again).
2356 */
2357void usb_hcd_resume_root_hub (struct usb_hcd *hcd)
2358{
2359 unsigned long flags;
2360
2361 spin_lock_irqsave (&hcd_root_hub_lock, flags);
2362 if (hcd->rh_registered) {
2363 set_bit(HCD_FLAG_WAKEUP_PENDING, &hcd->flags);
2364 queue_work(pm_wq, &hcd->wakeup_work);
2365 }
2366 spin_unlock_irqrestore (&hcd_root_hub_lock, flags);
2367}
2368EXPORT_SYMBOL_GPL(usb_hcd_resume_root_hub);
2369
2370#endif /* CONFIG_PM */
2371
2372/*-------------------------------------------------------------------------*/
2373
2374#ifdef CONFIG_USB_OTG
2375
2376/**
2377 * usb_bus_start_enum - start immediate enumeration (for OTG)
2378 * @bus: the bus (must use hcd framework)
2379 * @port_num: 1-based number of port; usually bus->otg_port
2380 * Context: in_interrupt()
2381 *
2382 * Starts enumeration, with an immediate reset followed later by
2383 * hub_wq identifying and possibly configuring the device.
2384 * This is needed by OTG controller drivers, where it helps meet
2385 * HNP protocol timing requirements for starting a port reset.
2386 *
2387 * Return: 0 if successful.
2388 */
2389int usb_bus_start_enum(struct usb_bus *bus, unsigned port_num)
2390{
2391 struct usb_hcd *hcd;
2392 int status = -EOPNOTSUPP;
2393
2394 /* NOTE: since HNP can't start by grabbing the bus's address0_sem,
2395 * boards with root hubs hooked up to internal devices (instead of
2396 * just the OTG port) may need more attention to resetting...
2397 */
2398 hcd = bus_to_hcd(bus);
2399 if (port_num && hcd->driver->start_port_reset)
2400 status = hcd->driver->start_port_reset(hcd, port_num);
2401
2402 /* allocate hub_wq shortly after (first) root port reset finishes;
2403 * it may issue others, until at least 50 msecs have passed.
2404 */
2405 if (status == 0)
2406 mod_timer(&hcd->rh_timer, jiffies + msecs_to_jiffies(10));
2407 return status;
2408}
2409EXPORT_SYMBOL_GPL(usb_bus_start_enum);
2410
2411#endif
2412
2413/*-------------------------------------------------------------------------*/
2414
2415/**
2416 * usb_hcd_irq - hook IRQs to HCD framework (bus glue)
2417 * @irq: the IRQ being raised
2418 * @__hcd: pointer to the HCD whose IRQ is being signaled
2419 *
2420 * If the controller isn't HALTed, calls the driver's irq handler.
2421 * Checks whether the controller is now dead.
2422 *
2423 * Return: %IRQ_HANDLED if the IRQ was handled. %IRQ_NONE otherwise.
2424 */
2425irqreturn_t usb_hcd_irq (int irq, void *__hcd)
2426{
2427 struct usb_hcd *hcd = __hcd;
2428 irqreturn_t rc;
2429
2430 if (unlikely(HCD_DEAD(hcd) || !HCD_HW_ACCESSIBLE(hcd)))
2431 rc = IRQ_NONE;
2432 else if (hcd->driver->irq(hcd) == IRQ_NONE)
2433 rc = IRQ_NONE;
2434 else
2435 rc = IRQ_HANDLED;
2436
2437 return rc;
2438}
2439EXPORT_SYMBOL_GPL(usb_hcd_irq);
2440
2441/*-------------------------------------------------------------------------*/
2442
2443/**
2444 * usb_hc_died - report abnormal shutdown of a host controller (bus glue)
2445 * @hcd: pointer to the HCD representing the controller
2446 *
2447 * This is called by bus glue to report a USB host controller that died
2448 * while operations may still have been pending. It's called automatically
2449 * by the PCI glue, so only glue for non-PCI busses should need to call it.
2450 *
2451 * Only call this function with the primary HCD.
2452 */
2453void usb_hc_died (struct usb_hcd *hcd)
2454{
2455 unsigned long flags;
2456
2457 dev_err (hcd->self.controller, "HC died; cleaning up\n");
2458
2459 spin_lock_irqsave (&hcd_root_hub_lock, flags);
2460 clear_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2461 set_bit(HCD_FLAG_DEAD, &hcd->flags);
2462 if (hcd->rh_registered) {
2463 clear_bit(HCD_FLAG_POLL_RH, &hcd->flags);
2464
2465 /* make hub_wq clean up old urbs and devices */
2466 usb_set_device_state (hcd->self.root_hub,
2467 USB_STATE_NOTATTACHED);
2468 usb_kick_hub_wq(hcd->self.root_hub);
2469 }
2470 if (usb_hcd_is_primary_hcd(hcd) && hcd->shared_hcd) {
2471 hcd = hcd->shared_hcd;
2472 if (hcd->rh_registered) {
2473 clear_bit(HCD_FLAG_POLL_RH, &hcd->flags);
2474
2475 /* make hub_wq clean up old urbs and devices */
2476 usb_set_device_state(hcd->self.root_hub,
2477 USB_STATE_NOTATTACHED);
2478 usb_kick_hub_wq(hcd->self.root_hub);
2479 }
2480 }
2481 spin_unlock_irqrestore (&hcd_root_hub_lock, flags);
2482 /* Make sure that the other roothub is also deallocated. */
2483}
2484EXPORT_SYMBOL_GPL (usb_hc_died);
2485
2486/*-------------------------------------------------------------------------*/
2487
2488static void init_giveback_urb_bh(struct giveback_urb_bh *bh)
2489{
2490
2491 spin_lock_init(&bh->lock);
2492 INIT_LIST_HEAD(&bh->head);
2493 tasklet_init(&bh->bh, usb_giveback_urb_bh, (unsigned long)bh);
2494}
2495
2496/**
2497 * usb_create_shared_hcd - create and initialize an HCD structure
2498 * @driver: HC driver that will use this hcd
2499 * @dev: device for this HC, stored in hcd->self.controller
2500 * @bus_name: value to store in hcd->self.bus_name
2501 * @primary_hcd: a pointer to the usb_hcd structure that is sharing the
2502 * PCI device. Only allocate certain resources for the primary HCD
2503 * Context: !in_interrupt()
2504 *
2505 * Allocate a struct usb_hcd, with extra space at the end for the
2506 * HC driver's private data. Initialize the generic members of the
2507 * hcd structure.
2508 *
2509 * Return: On success, a pointer to the created and initialized HCD structure.
2510 * On failure (e.g. if memory is unavailable), %NULL.
2511 */
2512struct usb_hcd *usb_create_shared_hcd(const struct hc_driver *driver,
2513 struct device *dev, const char *bus_name,
2514 struct usb_hcd *primary_hcd)
2515{
2516 struct usb_hcd *hcd;
2517
2518 hcd = kzalloc(sizeof(*hcd) + driver->hcd_priv_size, GFP_KERNEL);
2519 if (!hcd) {
2520 dev_dbg (dev, "hcd alloc failed\n");
2521 return NULL;
2522 }
2523 if (primary_hcd == NULL) {
2524 hcd->bandwidth_mutex = kmalloc(sizeof(*hcd->bandwidth_mutex),
2525 GFP_KERNEL);
2526 if (!hcd->bandwidth_mutex) {
2527 kfree(hcd);
2528 dev_dbg(dev, "hcd bandwidth mutex alloc failed\n");
2529 return NULL;
2530 }
2531 mutex_init(hcd->bandwidth_mutex);
2532 dev_set_drvdata(dev, hcd);
2533 } else {
2534 mutex_lock(&usb_port_peer_mutex);
2535 hcd->bandwidth_mutex = primary_hcd->bandwidth_mutex;
2536 hcd->primary_hcd = primary_hcd;
2537 primary_hcd->primary_hcd = primary_hcd;
2538 hcd->shared_hcd = primary_hcd;
2539 primary_hcd->shared_hcd = hcd;
2540 mutex_unlock(&usb_port_peer_mutex);
2541 }
2542
2543 kref_init(&hcd->kref);
2544
2545 usb_bus_init(&hcd->self);
2546 hcd->self.controller = dev;
2547 hcd->self.bus_name = bus_name;
2548 hcd->self.uses_dma = (dev->dma_mask != NULL);
2549
2550 init_timer(&hcd->rh_timer);
2551 hcd->rh_timer.function = rh_timer_func;
2552 hcd->rh_timer.data = (unsigned long) hcd;
2553#ifdef CONFIG_PM
2554 INIT_WORK(&hcd->wakeup_work, hcd_resume_work);
2555#endif
2556
2557 hcd->driver = driver;
2558 hcd->speed = driver->flags & HCD_MASK;
2559 hcd->product_desc = (driver->product_desc) ? driver->product_desc :
2560 "USB Host Controller";
2561 return hcd;
2562}
2563EXPORT_SYMBOL_GPL(usb_create_shared_hcd);
2564
2565/**
2566 * usb_create_hcd - create and initialize an HCD structure
2567 * @driver: HC driver that will use this hcd
2568 * @dev: device for this HC, stored in hcd->self.controller
2569 * @bus_name: value to store in hcd->self.bus_name
2570 * Context: !in_interrupt()
2571 *
2572 * Allocate a struct usb_hcd, with extra space at the end for the
2573 * HC driver's private data. Initialize the generic members of the
2574 * hcd structure.
2575 *
2576 * Return: On success, a pointer to the created and initialized HCD
2577 * structure. On failure (e.g. if memory is unavailable), %NULL.
2578 */
2579struct usb_hcd *usb_create_hcd(const struct hc_driver *driver,
2580 struct device *dev, const char *bus_name)
2581{
2582 return usb_create_shared_hcd(driver, dev, bus_name, NULL);
2583}
2584EXPORT_SYMBOL_GPL(usb_create_hcd);
2585
2586/*
2587 * Roothubs that share one PCI device must also share the bandwidth mutex.
2588 * Don't deallocate the bandwidth_mutex until the last shared usb_hcd is
2589 * deallocated.
2590 *
2591 * Make sure to only deallocate the bandwidth_mutex when the primary HCD is
2592 * freed. When hcd_release() is called for either hcd in a peer set
2593 * invalidate the peer's ->shared_hcd and ->primary_hcd pointers to
2594 * block new peering attempts
2595 */
2596static void hcd_release(struct kref *kref)
2597{
2598 struct usb_hcd *hcd = container_of (kref, struct usb_hcd, kref);
2599
2600 mutex_lock(&usb_port_peer_mutex);
2601 if (usb_hcd_is_primary_hcd(hcd))
2602 kfree(hcd->bandwidth_mutex);
2603 if (hcd->shared_hcd) {
2604 struct usb_hcd *peer = hcd->shared_hcd;
2605
2606 peer->shared_hcd = NULL;
2607 if (peer->primary_hcd == hcd)
2608 peer->primary_hcd = NULL;
2609 }
2610 mutex_unlock(&usb_port_peer_mutex);
2611 kfree(hcd);
2612}
2613
2614struct usb_hcd *usb_get_hcd (struct usb_hcd *hcd)
2615{
2616 if (hcd)
2617 kref_get (&hcd->kref);
2618 return hcd;
2619}
2620EXPORT_SYMBOL_GPL(usb_get_hcd);
2621
2622void usb_put_hcd (struct usb_hcd *hcd)
2623{
2624 if (hcd)
2625 kref_put (&hcd->kref, hcd_release);
2626}
2627EXPORT_SYMBOL_GPL(usb_put_hcd);
2628
2629int usb_hcd_is_primary_hcd(struct usb_hcd *hcd)
2630{
2631 if (!hcd->primary_hcd)
2632 return 1;
2633 return hcd == hcd->primary_hcd;
2634}
2635EXPORT_SYMBOL_GPL(usb_hcd_is_primary_hcd);
2636
2637int usb_hcd_find_raw_port_number(struct usb_hcd *hcd, int port1)
2638{
2639 if (!hcd->driver->find_raw_port_number)
2640 return port1;
2641
2642 return hcd->driver->find_raw_port_number(hcd, port1);
2643}
2644
2645static int usb_hcd_request_irqs(struct usb_hcd *hcd,
2646 unsigned int irqnum, unsigned long irqflags)
2647{
2648 int retval;
2649
2650 if (hcd->driver->irq) {
2651
2652 snprintf(hcd->irq_descr, sizeof(hcd->irq_descr), "%s:usb%d",
2653 hcd->driver->description, hcd->self.busnum);
2654 retval = request_irq(irqnum, &usb_hcd_irq, irqflags,
2655 hcd->irq_descr, hcd);
2656 if (retval != 0) {
2657 dev_err(hcd->self.controller,
2658 "request interrupt %d failed\n",
2659 irqnum);
2660 return retval;
2661 }
2662 hcd->irq = irqnum;
2663 dev_info(hcd->self.controller, "irq %d, %s 0x%08llx\n", irqnum,
2664 (hcd->driver->flags & HCD_MEMORY) ?
2665 "io mem" : "io base",
2666 (unsigned long long)hcd->rsrc_start);
2667 } else {
2668 hcd->irq = 0;
2669 if (hcd->rsrc_start)
2670 dev_info(hcd->self.controller, "%s 0x%08llx\n",
2671 (hcd->driver->flags & HCD_MEMORY) ?
2672 "io mem" : "io base",
2673 (unsigned long long)hcd->rsrc_start);
2674 }
2675 return 0;
2676}
2677
2678/*
2679 * Before we free this root hub, flush in-flight peering attempts
2680 * and disable peer lookups
2681 */
2682static void usb_put_invalidate_rhdev(struct usb_hcd *hcd)
2683{
2684 struct usb_device *rhdev;
2685
2686 mutex_lock(&usb_port_peer_mutex);
2687 rhdev = hcd->self.root_hub;
2688 hcd->self.root_hub = NULL;
2689 mutex_unlock(&usb_port_peer_mutex);
2690 usb_put_dev(rhdev);
2691}
2692
2693/**
2694 * usb_add_hcd - finish generic HCD structure initialization and register
2695 * @hcd: the usb_hcd structure to initialize
2696 * @irqnum: Interrupt line to allocate
2697 * @irqflags: Interrupt type flags
2698 *
2699 * Finish the remaining parts of generic HCD initialization: allocate the
2700 * buffers of consistent memory, register the bus, request the IRQ line,
2701 * and call the driver's reset() and start() routines.
2702 */
2703int usb_add_hcd(struct usb_hcd *hcd,
2704 unsigned int irqnum, unsigned long irqflags)
2705{
2706 int retval;
2707 struct usb_device *rhdev;
2708
2709 if (IS_ENABLED(CONFIG_USB_PHY) && !hcd->usb_phy) {
2710 struct usb_phy *phy = usb_get_phy_dev(hcd->self.controller, 0);
2711
2712 if (IS_ERR(phy)) {
2713 retval = PTR_ERR(phy);
2714 if (retval == -EPROBE_DEFER)
2715 return retval;
2716 } else {
2717 retval = usb_phy_init(phy);
2718 if (retval) {
2719 usb_put_phy(phy);
2720 return retval;
2721 }
2722 hcd->usb_phy = phy;
2723 hcd->remove_phy = 1;
2724 }
2725 }
2726
2727 if (IS_ENABLED(CONFIG_GENERIC_PHY) && !hcd->phy) {
2728 struct phy *phy = phy_get(hcd->self.controller, "usb");
2729
2730 if (IS_ERR(phy)) {
2731 retval = PTR_ERR(phy);
2732 if (retval == -EPROBE_DEFER)
2733 goto err_phy;
2734 } else {
2735 retval = phy_init(phy);
2736 if (retval) {
2737 phy_put(phy);
2738 goto err_phy;
2739 }
2740 retval = phy_power_on(phy);
2741 if (retval) {
2742 phy_exit(phy);
2743 phy_put(phy);
2744 goto err_phy;
2745 }
2746 hcd->phy = phy;
2747 hcd->remove_phy = 1;
2748 }
2749 }
2750
2751 dev_info(hcd->self.controller, "%s\n", hcd->product_desc);
2752
2753 /* Keep old behaviour if authorized_default is not in [0, 1]. */
2754 if (authorized_default < 0 || authorized_default > 1) {
2755 if (hcd->wireless)
2756 clear_bit(HCD_FLAG_DEV_AUTHORIZED, &hcd->flags);
2757 else
2758 set_bit(HCD_FLAG_DEV_AUTHORIZED, &hcd->flags);
2759 } else {
2760 if (authorized_default)
2761 set_bit(HCD_FLAG_DEV_AUTHORIZED, &hcd->flags);
2762 else
2763 clear_bit(HCD_FLAG_DEV_AUTHORIZED, &hcd->flags);
2764 }
2765 set_bit(HCD_FLAG_HW_ACCESSIBLE, &hcd->flags);
2766
2767 /* per default all interfaces are authorized */
2768 set_bit(HCD_FLAG_INTF_AUTHORIZED, &hcd->flags);
2769
2770 /* HC is in reset state, but accessible. Now do the one-time init,
2771 * bottom up so that hcds can customize the root hubs before hub_wq
2772 * starts talking to them. (Note, bus id is assigned early too.)
2773 */
2774 retval = hcd_buffer_create(hcd);
2775 if (retval != 0) {
2776 dev_dbg(hcd->self.controller, "pool alloc failed\n");
2777 goto err_create_buf;
2778 }
2779
2780 retval = usb_register_bus(&hcd->self);
2781 if (retval < 0)
2782 goto err_register_bus;
2783
2784 rhdev = usb_alloc_dev(NULL, &hcd->self, 0);
2785 if (rhdev == NULL) {
2786 dev_err(hcd->self.controller, "unable to allocate root hub\n");
2787 retval = -ENOMEM;
2788 goto err_allocate_root_hub;
2789 }
2790 mutex_lock(&usb_port_peer_mutex);
2791 hcd->self.root_hub = rhdev;
2792 mutex_unlock(&usb_port_peer_mutex);
2793
2794 switch (hcd->speed) {
2795 case HCD_USB11:
2796 rhdev->speed = USB_SPEED_FULL;
2797 break;
2798 case HCD_USB2:
2799 rhdev->speed = USB_SPEED_HIGH;
2800 break;
2801 case HCD_USB25:
2802 rhdev->speed = USB_SPEED_WIRELESS;
2803 break;
2804 case HCD_USB3:
2805 rhdev->speed = USB_SPEED_SUPER;
2806 break;
2807 case HCD_USB31:
2808 rhdev->speed = USB_SPEED_SUPER_PLUS;
2809 break;
2810 default:
2811 retval = -EINVAL;
2812 goto err_set_rh_speed;
2813 }
2814
2815 /* wakeup flag init defaults to "everything works" for root hubs,
2816 * but drivers can override it in reset() if needed, along with
2817 * recording the overall controller's system wakeup capability.
2818 */
2819 device_set_wakeup_capable(&rhdev->dev, 1);
2820
2821 /* HCD_FLAG_RH_RUNNING doesn't matter until the root hub is
2822 * registered. But since the controller can die at any time,
2823 * let's initialize the flag before touching the hardware.
2824 */
2825 set_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2826
2827 /* "reset" is misnamed; its role is now one-time init. the controller
2828 * should already have been reset (and boot firmware kicked off etc).
2829 */
2830 if (hcd->driver->reset) {
2831 retval = hcd->driver->reset(hcd);
2832 if (retval < 0) {
2833 dev_err(hcd->self.controller, "can't setup: %d\n",
2834 retval);
2835 goto err_hcd_driver_setup;
2836 }
2837 }
2838 hcd->rh_pollable = 1;
2839
2840 /* NOTE: root hub and controller capabilities may not be the same */
2841 if (device_can_wakeup(hcd->self.controller)
2842 && device_can_wakeup(&hcd->self.root_hub->dev))
2843 dev_dbg(hcd->self.controller, "supports USB remote wakeup\n");
2844
2845 /* initialize tasklets */
2846 init_giveback_urb_bh(&hcd->high_prio_bh);
2847 init_giveback_urb_bh(&hcd->low_prio_bh);
2848
2849 /* enable irqs just before we start the controller,
2850 * if the BIOS provides legacy PCI irqs.
2851 */
2852 if (usb_hcd_is_primary_hcd(hcd) && irqnum) {
2853 retval = usb_hcd_request_irqs(hcd, irqnum, irqflags);
2854 if (retval)
2855 goto err_request_irq;
2856 }
2857
2858 hcd->state = HC_STATE_RUNNING;
2859 retval = hcd->driver->start(hcd);
2860 if (retval < 0) {
2861 dev_err(hcd->self.controller, "startup error %d\n", retval);
2862 goto err_hcd_driver_start;
2863 }
2864
2865 /* starting here, usbcore will pay attention to this root hub */
2866 retval = register_root_hub(hcd);
2867 if (retval != 0)
2868 goto err_register_root_hub;
2869
2870 retval = sysfs_create_group(&rhdev->dev.kobj, &usb_bus_attr_group);
2871 if (retval < 0) {
2872 printk(KERN_ERR "Cannot register USB bus sysfs attributes: %d\n",
2873 retval);
2874 goto error_create_attr_group;
2875 }
2876 if (hcd->uses_new_polling && HCD_POLL_RH(hcd))
2877 usb_hcd_poll_rh_status(hcd);
2878
2879 return retval;
2880
2881error_create_attr_group:
2882 clear_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2883 if (HC_IS_RUNNING(hcd->state))
2884 hcd->state = HC_STATE_QUIESCING;
2885 spin_lock_irq(&hcd_root_hub_lock);
2886 hcd->rh_registered = 0;
2887 spin_unlock_irq(&hcd_root_hub_lock);
2888
2889#ifdef CONFIG_PM
2890 cancel_work_sync(&hcd->wakeup_work);
2891#endif
2892 mutex_lock(&usb_bus_idr_lock);
2893 usb_disconnect(&rhdev); /* Sets rhdev to NULL */
2894 mutex_unlock(&usb_bus_idr_lock);
2895err_register_root_hub:
2896 hcd->rh_pollable = 0;
2897 clear_bit(HCD_FLAG_POLL_RH, &hcd->flags);
2898 del_timer_sync(&hcd->rh_timer);
2899 hcd->driver->stop(hcd);
2900 hcd->state = HC_STATE_HALT;
2901 clear_bit(HCD_FLAG_POLL_RH, &hcd->flags);
2902 del_timer_sync(&hcd->rh_timer);
2903err_hcd_driver_start:
2904 if (usb_hcd_is_primary_hcd(hcd) && hcd->irq > 0)
2905 free_irq(irqnum, hcd);
2906err_request_irq:
2907err_hcd_driver_setup:
2908err_set_rh_speed:
2909 usb_put_invalidate_rhdev(hcd);
2910err_allocate_root_hub:
2911 usb_deregister_bus(&hcd->self);
2912err_register_bus:
2913 hcd_buffer_destroy(hcd);
2914err_create_buf:
2915 if (IS_ENABLED(CONFIG_GENERIC_PHY) && hcd->remove_phy && hcd->phy) {
2916 phy_power_off(hcd->phy);
2917 phy_exit(hcd->phy);
2918 phy_put(hcd->phy);
2919 hcd->phy = NULL;
2920 }
2921err_phy:
2922 if (hcd->remove_phy && hcd->usb_phy) {
2923 usb_phy_shutdown(hcd->usb_phy);
2924 usb_put_phy(hcd->usb_phy);
2925 hcd->usb_phy = NULL;
2926 }
2927 return retval;
2928}
2929EXPORT_SYMBOL_GPL(usb_add_hcd);
2930
2931/**
2932 * usb_remove_hcd - shutdown processing for generic HCDs
2933 * @hcd: the usb_hcd structure to remove
2934 * Context: !in_interrupt()
2935 *
2936 * Disconnects the root hub, then reverses the effects of usb_add_hcd(),
2937 * invoking the HCD's stop() method.
2938 */
2939void usb_remove_hcd(struct usb_hcd *hcd)
2940{
2941 struct usb_device *rhdev = hcd->self.root_hub;
2942
2943 dev_info(hcd->self.controller, "remove, state %x\n", hcd->state);
2944
2945 usb_get_dev(rhdev);
2946 sysfs_remove_group(&rhdev->dev.kobj, &usb_bus_attr_group);
2947
2948 clear_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2949 if (HC_IS_RUNNING (hcd->state))
2950 hcd->state = HC_STATE_QUIESCING;
2951
2952 dev_dbg(hcd->self.controller, "roothub graceful disconnect\n");
2953 spin_lock_irq (&hcd_root_hub_lock);
2954 hcd->rh_registered = 0;
2955 spin_unlock_irq (&hcd_root_hub_lock);
2956
2957#ifdef CONFIG_PM
2958 cancel_work_sync(&hcd->wakeup_work);
2959#endif
2960
2961 mutex_lock(&usb_bus_idr_lock);
2962 usb_disconnect(&rhdev); /* Sets rhdev to NULL */
2963 mutex_unlock(&usb_bus_idr_lock);
2964
2965 /*
2966 * tasklet_kill() isn't needed here because:
2967 * - driver's disconnect() called from usb_disconnect() should
2968 * make sure its URBs are completed during the disconnect()
2969 * callback
2970 *
2971 * - it is too late to run complete() here since driver may have
2972 * been removed already now
2973 */
2974
2975 /* Prevent any more root-hub status calls from the timer.
2976 * The HCD might still restart the timer (if a port status change
2977 * interrupt occurs), but usb_hcd_poll_rh_status() won't invoke
2978 * the hub_status_data() callback.
2979 */
2980 hcd->rh_pollable = 0;
2981 clear_bit(HCD_FLAG_POLL_RH, &hcd->flags);
2982 del_timer_sync(&hcd->rh_timer);
2983
2984 hcd->driver->stop(hcd);
2985 hcd->state = HC_STATE_HALT;
2986
2987 /* In case the HCD restarted the timer, stop it again. */
2988 clear_bit(HCD_FLAG_POLL_RH, &hcd->flags);
2989 del_timer_sync(&hcd->rh_timer);
2990
2991 if (usb_hcd_is_primary_hcd(hcd)) {
2992 if (hcd->irq > 0)
2993 free_irq(hcd->irq, hcd);
2994 }
2995
2996 usb_deregister_bus(&hcd->self);
2997 hcd_buffer_destroy(hcd);
2998
2999 if (IS_ENABLED(CONFIG_GENERIC_PHY) && hcd->remove_phy && hcd->phy) {
3000 phy_power_off(hcd->phy);
3001 phy_exit(hcd->phy);
3002 phy_put(hcd->phy);
3003 hcd->phy = NULL;
3004 }
3005 if (hcd->remove_phy && hcd->usb_phy) {
3006 usb_phy_shutdown(hcd->usb_phy);
3007 usb_put_phy(hcd->usb_phy);
3008 hcd->usb_phy = NULL;
3009 }
3010
3011 usb_put_invalidate_rhdev(hcd);
3012}
3013EXPORT_SYMBOL_GPL(usb_remove_hcd);
3014
3015void
3016usb_hcd_platform_shutdown(struct platform_device *dev)
3017{
3018 struct usb_hcd *hcd = platform_get_drvdata(dev);
3019
3020 if (hcd->driver->shutdown)
3021 hcd->driver->shutdown(hcd);
3022}
3023EXPORT_SYMBOL_GPL(usb_hcd_platform_shutdown);
3024
3025/*-------------------------------------------------------------------------*/
3026
3027#if defined(CONFIG_USB_MON) || defined(CONFIG_USB_MON_MODULE)
3028
3029const struct usb_mon_operations *mon_ops;
3030
3031/*
3032 * The registration is unlocked.
3033 * We do it this way because we do not want to lock in hot paths.
3034 *
3035 * Notice that the code is minimally error-proof. Because usbmon needs
3036 * symbols from usbcore, usbcore gets referenced and cannot be unloaded first.
3037 */
3038
3039int usb_mon_register(const struct usb_mon_operations *ops)
3040{
3041
3042 if (mon_ops)
3043 return -EBUSY;
3044
3045 mon_ops = ops;
3046 mb();
3047 return 0;
3048}
3049EXPORT_SYMBOL_GPL (usb_mon_register);
3050
3051void usb_mon_deregister (void)
3052{
3053
3054 if (mon_ops == NULL) {
3055 printk(KERN_ERR "USB: monitor was not registered\n");
3056 return;
3057 }
3058 mon_ops = NULL;
3059 mb();
3060}
3061EXPORT_SYMBOL_GPL (usb_mon_deregister);
3062
3063#endif /* CONFIG_USB_MON || CONFIG_USB_MON_MODULE */
1// SPDX-License-Identifier: GPL-2.0+
2/*
3 * (C) Copyright Linus Torvalds 1999
4 * (C) Copyright Johannes Erdfelt 1999-2001
5 * (C) Copyright Andreas Gal 1999
6 * (C) Copyright Gregory P. Smith 1999
7 * (C) Copyright Deti Fliegl 1999
8 * (C) Copyright Randy Dunlap 2000
9 * (C) Copyright David Brownell 2000-2002
10 */
11
12#include <linux/bcd.h>
13#include <linux/module.h>
14#include <linux/version.h>
15#include <linux/kernel.h>
16#include <linux/sched/task_stack.h>
17#include <linux/slab.h>
18#include <linux/completion.h>
19#include <linux/utsname.h>
20#include <linux/mm.h>
21#include <asm/io.h>
22#include <linux/device.h>
23#include <linux/dma-mapping.h>
24#include <linux/mutex.h>
25#include <asm/irq.h>
26#include <asm/byteorder.h>
27#include <asm/unaligned.h>
28#include <linux/platform_device.h>
29#include <linux/workqueue.h>
30#include <linux/pm_runtime.h>
31#include <linux/types.h>
32#include <linux/genalloc.h>
33#include <linux/io.h>
34#include <linux/kcov.h>
35
36#include <linux/phy/phy.h>
37#include <linux/usb.h>
38#include <linux/usb/hcd.h>
39#include <linux/usb/otg.h>
40
41#include "usb.h"
42#include "phy.h"
43
44
45/*-------------------------------------------------------------------------*/
46
47/*
48 * USB Host Controller Driver framework
49 *
50 * Plugs into usbcore (usb_bus) and lets HCDs share code, minimizing
51 * HCD-specific behaviors/bugs.
52 *
53 * This does error checks, tracks devices and urbs, and delegates to a
54 * "hc_driver" only for code (and data) that really needs to know about
55 * hardware differences. That includes root hub registers, i/o queues,
56 * and so on ... but as little else as possible.
57 *
58 * Shared code includes most of the "root hub" code (these are emulated,
59 * though each HC's hardware works differently) and PCI glue, plus request
60 * tracking overhead. The HCD code should only block on spinlocks or on
61 * hardware handshaking; blocking on software events (such as other kernel
62 * threads releasing resources, or completing actions) is all generic.
63 *
64 * Happens the USB 2.0 spec says this would be invisible inside the "USBD",
65 * and includes mostly a "HCDI" (HCD Interface) along with some APIs used
66 * only by the hub driver ... and that neither should be seen or used by
67 * usb client device drivers.
68 *
69 * Contributors of ideas or unattributed patches include: David Brownell,
70 * Roman Weissgaerber, Rory Bolt, Greg Kroah-Hartman, ...
71 *
72 * HISTORY:
73 * 2002-02-21 Pull in most of the usb_bus support from usb.c; some
74 * associated cleanup. "usb_hcd" still != "usb_bus".
75 * 2001-12-12 Initial patch version for Linux 2.5.1 kernel.
76 */
77
78/*-------------------------------------------------------------------------*/
79
80/* Keep track of which host controller drivers are loaded */
81unsigned long usb_hcds_loaded;
82EXPORT_SYMBOL_GPL(usb_hcds_loaded);
83
84/* host controllers we manage */
85DEFINE_IDR (usb_bus_idr);
86EXPORT_SYMBOL_GPL (usb_bus_idr);
87
88/* used when allocating bus numbers */
89#define USB_MAXBUS 64
90
91/* used when updating list of hcds */
92DEFINE_MUTEX(usb_bus_idr_lock); /* exported only for usbfs */
93EXPORT_SYMBOL_GPL (usb_bus_idr_lock);
94
95/* used for controlling access to virtual root hubs */
96static DEFINE_SPINLOCK(hcd_root_hub_lock);
97
98/* used when updating an endpoint's URB list */
99static DEFINE_SPINLOCK(hcd_urb_list_lock);
100
101/* used to protect against unlinking URBs after the device is gone */
102static DEFINE_SPINLOCK(hcd_urb_unlink_lock);
103
104/* wait queue for synchronous unlinks */
105DECLARE_WAIT_QUEUE_HEAD(usb_kill_urb_queue);
106
107/*-------------------------------------------------------------------------*/
108
109/*
110 * Sharable chunks of root hub code.
111 */
112
113/*-------------------------------------------------------------------------*/
114#define KERNEL_REL bin2bcd(LINUX_VERSION_MAJOR)
115#define KERNEL_VER bin2bcd(LINUX_VERSION_PATCHLEVEL)
116
117/* usb 3.1 root hub device descriptor */
118static const u8 usb31_rh_dev_descriptor[18] = {
119 0x12, /* __u8 bLength; */
120 USB_DT_DEVICE, /* __u8 bDescriptorType; Device */
121 0x10, 0x03, /* __le16 bcdUSB; v3.1 */
122
123 0x09, /* __u8 bDeviceClass; HUB_CLASSCODE */
124 0x00, /* __u8 bDeviceSubClass; */
125 0x03, /* __u8 bDeviceProtocol; USB 3 hub */
126 0x09, /* __u8 bMaxPacketSize0; 2^9 = 512 Bytes */
127
128 0x6b, 0x1d, /* __le16 idVendor; Linux Foundation 0x1d6b */
129 0x03, 0x00, /* __le16 idProduct; device 0x0003 */
130 KERNEL_VER, KERNEL_REL, /* __le16 bcdDevice */
131
132 0x03, /* __u8 iManufacturer; */
133 0x02, /* __u8 iProduct; */
134 0x01, /* __u8 iSerialNumber; */
135 0x01 /* __u8 bNumConfigurations; */
136};
137
138/* usb 3.0 root hub device descriptor */
139static const u8 usb3_rh_dev_descriptor[18] = {
140 0x12, /* __u8 bLength; */
141 USB_DT_DEVICE, /* __u8 bDescriptorType; Device */
142 0x00, 0x03, /* __le16 bcdUSB; v3.0 */
143
144 0x09, /* __u8 bDeviceClass; HUB_CLASSCODE */
145 0x00, /* __u8 bDeviceSubClass; */
146 0x03, /* __u8 bDeviceProtocol; USB 3.0 hub */
147 0x09, /* __u8 bMaxPacketSize0; 2^9 = 512 Bytes */
148
149 0x6b, 0x1d, /* __le16 idVendor; Linux Foundation 0x1d6b */
150 0x03, 0x00, /* __le16 idProduct; device 0x0003 */
151 KERNEL_VER, KERNEL_REL, /* __le16 bcdDevice */
152
153 0x03, /* __u8 iManufacturer; */
154 0x02, /* __u8 iProduct; */
155 0x01, /* __u8 iSerialNumber; */
156 0x01 /* __u8 bNumConfigurations; */
157};
158
159/* usb 2.0 root hub device descriptor */
160static const u8 usb2_rh_dev_descriptor[18] = {
161 0x12, /* __u8 bLength; */
162 USB_DT_DEVICE, /* __u8 bDescriptorType; Device */
163 0x00, 0x02, /* __le16 bcdUSB; v2.0 */
164
165 0x09, /* __u8 bDeviceClass; HUB_CLASSCODE */
166 0x00, /* __u8 bDeviceSubClass; */
167 0x00, /* __u8 bDeviceProtocol; [ usb 2.0 no TT ] */
168 0x40, /* __u8 bMaxPacketSize0; 64 Bytes */
169
170 0x6b, 0x1d, /* __le16 idVendor; Linux Foundation 0x1d6b */
171 0x02, 0x00, /* __le16 idProduct; device 0x0002 */
172 KERNEL_VER, KERNEL_REL, /* __le16 bcdDevice */
173
174 0x03, /* __u8 iManufacturer; */
175 0x02, /* __u8 iProduct; */
176 0x01, /* __u8 iSerialNumber; */
177 0x01 /* __u8 bNumConfigurations; */
178};
179
180/* no usb 2.0 root hub "device qualifier" descriptor: one speed only */
181
182/* usb 1.1 root hub device descriptor */
183static const u8 usb11_rh_dev_descriptor[18] = {
184 0x12, /* __u8 bLength; */
185 USB_DT_DEVICE, /* __u8 bDescriptorType; Device */
186 0x10, 0x01, /* __le16 bcdUSB; v1.1 */
187
188 0x09, /* __u8 bDeviceClass; HUB_CLASSCODE */
189 0x00, /* __u8 bDeviceSubClass; */
190 0x00, /* __u8 bDeviceProtocol; [ low/full speeds only ] */
191 0x40, /* __u8 bMaxPacketSize0; 64 Bytes */
192
193 0x6b, 0x1d, /* __le16 idVendor; Linux Foundation 0x1d6b */
194 0x01, 0x00, /* __le16 idProduct; device 0x0001 */
195 KERNEL_VER, KERNEL_REL, /* __le16 bcdDevice */
196
197 0x03, /* __u8 iManufacturer; */
198 0x02, /* __u8 iProduct; */
199 0x01, /* __u8 iSerialNumber; */
200 0x01 /* __u8 bNumConfigurations; */
201};
202
203
204/*-------------------------------------------------------------------------*/
205
206/* Configuration descriptors for our root hubs */
207
208static const u8 fs_rh_config_descriptor[] = {
209
210 /* one configuration */
211 0x09, /* __u8 bLength; */
212 USB_DT_CONFIG, /* __u8 bDescriptorType; Configuration */
213 0x19, 0x00, /* __le16 wTotalLength; */
214 0x01, /* __u8 bNumInterfaces; (1) */
215 0x01, /* __u8 bConfigurationValue; */
216 0x00, /* __u8 iConfiguration; */
217 0xc0, /* __u8 bmAttributes;
218 Bit 7: must be set,
219 6: Self-powered,
220 5: Remote wakeup,
221 4..0: resvd */
222 0x00, /* __u8 MaxPower; */
223
224 /* USB 1.1:
225 * USB 2.0, single TT organization (mandatory):
226 * one interface, protocol 0
227 *
228 * USB 2.0, multiple TT organization (optional):
229 * two interfaces, protocols 1 (like single TT)
230 * and 2 (multiple TT mode) ... config is
231 * sometimes settable
232 * NOT IMPLEMENTED
233 */
234
235 /* one interface */
236 0x09, /* __u8 if_bLength; */
237 USB_DT_INTERFACE, /* __u8 if_bDescriptorType; Interface */
238 0x00, /* __u8 if_bInterfaceNumber; */
239 0x00, /* __u8 if_bAlternateSetting; */
240 0x01, /* __u8 if_bNumEndpoints; */
241 0x09, /* __u8 if_bInterfaceClass; HUB_CLASSCODE */
242 0x00, /* __u8 if_bInterfaceSubClass; */
243 0x00, /* __u8 if_bInterfaceProtocol; [usb1.1 or single tt] */
244 0x00, /* __u8 if_iInterface; */
245
246 /* one endpoint (status change endpoint) */
247 0x07, /* __u8 ep_bLength; */
248 USB_DT_ENDPOINT, /* __u8 ep_bDescriptorType; Endpoint */
249 0x81, /* __u8 ep_bEndpointAddress; IN Endpoint 1 */
250 0x03, /* __u8 ep_bmAttributes; Interrupt */
251 0x02, 0x00, /* __le16 ep_wMaxPacketSize; 1 + (MAX_ROOT_PORTS / 8) */
252 0xff /* __u8 ep_bInterval; (255ms -- usb 2.0 spec) */
253};
254
255static const u8 hs_rh_config_descriptor[] = {
256
257 /* one configuration */
258 0x09, /* __u8 bLength; */
259 USB_DT_CONFIG, /* __u8 bDescriptorType; Configuration */
260 0x19, 0x00, /* __le16 wTotalLength; */
261 0x01, /* __u8 bNumInterfaces; (1) */
262 0x01, /* __u8 bConfigurationValue; */
263 0x00, /* __u8 iConfiguration; */
264 0xc0, /* __u8 bmAttributes;
265 Bit 7: must be set,
266 6: Self-powered,
267 5: Remote wakeup,
268 4..0: resvd */
269 0x00, /* __u8 MaxPower; */
270
271 /* USB 1.1:
272 * USB 2.0, single TT organization (mandatory):
273 * one interface, protocol 0
274 *
275 * USB 2.0, multiple TT organization (optional):
276 * two interfaces, protocols 1 (like single TT)
277 * and 2 (multiple TT mode) ... config is
278 * sometimes settable
279 * NOT IMPLEMENTED
280 */
281
282 /* one interface */
283 0x09, /* __u8 if_bLength; */
284 USB_DT_INTERFACE, /* __u8 if_bDescriptorType; Interface */
285 0x00, /* __u8 if_bInterfaceNumber; */
286 0x00, /* __u8 if_bAlternateSetting; */
287 0x01, /* __u8 if_bNumEndpoints; */
288 0x09, /* __u8 if_bInterfaceClass; HUB_CLASSCODE */
289 0x00, /* __u8 if_bInterfaceSubClass; */
290 0x00, /* __u8 if_bInterfaceProtocol; [usb1.1 or single tt] */
291 0x00, /* __u8 if_iInterface; */
292
293 /* one endpoint (status change endpoint) */
294 0x07, /* __u8 ep_bLength; */
295 USB_DT_ENDPOINT, /* __u8 ep_bDescriptorType; Endpoint */
296 0x81, /* __u8 ep_bEndpointAddress; IN Endpoint 1 */
297 0x03, /* __u8 ep_bmAttributes; Interrupt */
298 /* __le16 ep_wMaxPacketSize; 1 + (MAX_ROOT_PORTS / 8)
299 * see hub.c:hub_configure() for details. */
300 (USB_MAXCHILDREN + 1 + 7) / 8, 0x00,
301 0x0c /* __u8 ep_bInterval; (256ms -- usb 2.0 spec) */
302};
303
304static const u8 ss_rh_config_descriptor[] = {
305 /* one configuration */
306 0x09, /* __u8 bLength; */
307 USB_DT_CONFIG, /* __u8 bDescriptorType; Configuration */
308 0x1f, 0x00, /* __le16 wTotalLength; */
309 0x01, /* __u8 bNumInterfaces; (1) */
310 0x01, /* __u8 bConfigurationValue; */
311 0x00, /* __u8 iConfiguration; */
312 0xc0, /* __u8 bmAttributes;
313 Bit 7: must be set,
314 6: Self-powered,
315 5: Remote wakeup,
316 4..0: resvd */
317 0x00, /* __u8 MaxPower; */
318
319 /* one interface */
320 0x09, /* __u8 if_bLength; */
321 USB_DT_INTERFACE, /* __u8 if_bDescriptorType; Interface */
322 0x00, /* __u8 if_bInterfaceNumber; */
323 0x00, /* __u8 if_bAlternateSetting; */
324 0x01, /* __u8 if_bNumEndpoints; */
325 0x09, /* __u8 if_bInterfaceClass; HUB_CLASSCODE */
326 0x00, /* __u8 if_bInterfaceSubClass; */
327 0x00, /* __u8 if_bInterfaceProtocol; */
328 0x00, /* __u8 if_iInterface; */
329
330 /* one endpoint (status change endpoint) */
331 0x07, /* __u8 ep_bLength; */
332 USB_DT_ENDPOINT, /* __u8 ep_bDescriptorType; Endpoint */
333 0x81, /* __u8 ep_bEndpointAddress; IN Endpoint 1 */
334 0x03, /* __u8 ep_bmAttributes; Interrupt */
335 /* __le16 ep_wMaxPacketSize; 1 + (MAX_ROOT_PORTS / 8)
336 * see hub.c:hub_configure() for details. */
337 (USB_MAXCHILDREN + 1 + 7) / 8, 0x00,
338 0x0c, /* __u8 ep_bInterval; (256ms -- usb 2.0 spec) */
339
340 /* one SuperSpeed endpoint companion descriptor */
341 0x06, /* __u8 ss_bLength */
342 USB_DT_SS_ENDPOINT_COMP, /* __u8 ss_bDescriptorType; SuperSpeed EP */
343 /* Companion */
344 0x00, /* __u8 ss_bMaxBurst; allows 1 TX between ACKs */
345 0x00, /* __u8 ss_bmAttributes; 1 packet per service interval */
346 0x02, 0x00 /* __le16 ss_wBytesPerInterval; 15 bits for max 15 ports */
347};
348
349/* authorized_default behaviour:
350 * -1 is authorized for all devices (leftover from wireless USB)
351 * 0 is unauthorized for all devices
352 * 1 is authorized for all devices
353 * 2 is authorized for internal devices
354 */
355#define USB_AUTHORIZE_WIRED -1
356#define USB_AUTHORIZE_NONE 0
357#define USB_AUTHORIZE_ALL 1
358#define USB_AUTHORIZE_INTERNAL 2
359
360static int authorized_default = CONFIG_USB_DEFAULT_AUTHORIZATION_MODE;
361module_param(authorized_default, int, S_IRUGO|S_IWUSR);
362MODULE_PARM_DESC(authorized_default,
363 "Default USB device authorization: 0 is not authorized, 1 is authorized (default), 2 is authorized for internal devices, -1 is authorized (same as 1)");
364/*-------------------------------------------------------------------------*/
365
366/**
367 * ascii2desc() - Helper routine for producing UTF-16LE string descriptors
368 * @s: Null-terminated ASCII (actually ISO-8859-1) string
369 * @buf: Buffer for USB string descriptor (header + UTF-16LE)
370 * @len: Length (in bytes; may be odd) of descriptor buffer.
371 *
372 * Return: The number of bytes filled in: 2 + 2*strlen(s) or @len,
373 * whichever is less.
374 *
375 * Note:
376 * USB String descriptors can contain at most 126 characters; input
377 * strings longer than that are truncated.
378 */
379static unsigned
380ascii2desc(char const *s, u8 *buf, unsigned len)
381{
382 unsigned n, t = 2 + 2*strlen(s);
383
384 if (t > 254)
385 t = 254; /* Longest possible UTF string descriptor */
386 if (len > t)
387 len = t;
388
389 t += USB_DT_STRING << 8; /* Now t is first 16 bits to store */
390
391 n = len;
392 while (n--) {
393 *buf++ = t;
394 if (!n--)
395 break;
396 *buf++ = t >> 8;
397 t = (unsigned char)*s++;
398 }
399 return len;
400}
401
402/**
403 * rh_string() - provides string descriptors for root hub
404 * @id: the string ID number (0: langids, 1: serial #, 2: product, 3: vendor)
405 * @hcd: the host controller for this root hub
406 * @data: buffer for output packet
407 * @len: length of the provided buffer
408 *
409 * Produces either a manufacturer, product or serial number string for the
410 * virtual root hub device.
411 *
412 * Return: The number of bytes filled in: the length of the descriptor or
413 * of the provided buffer, whichever is less.
414 */
415static unsigned
416rh_string(int id, struct usb_hcd const *hcd, u8 *data, unsigned len)
417{
418 char buf[100];
419 char const *s;
420 static char const langids[4] = {4, USB_DT_STRING, 0x09, 0x04};
421
422 /* language ids */
423 switch (id) {
424 case 0:
425 /* Array of LANGID codes (0x0409 is MSFT-speak for "en-us") */
426 /* See http://www.usb.org/developers/docs/USB_LANGIDs.pdf */
427 if (len > 4)
428 len = 4;
429 memcpy(data, langids, len);
430 return len;
431 case 1:
432 /* Serial number */
433 s = hcd->self.bus_name;
434 break;
435 case 2:
436 /* Product name */
437 s = hcd->product_desc;
438 break;
439 case 3:
440 /* Manufacturer */
441 snprintf (buf, sizeof buf, "%s %s %s", init_utsname()->sysname,
442 init_utsname()->release, hcd->driver->description);
443 s = buf;
444 break;
445 default:
446 /* Can't happen; caller guarantees it */
447 return 0;
448 }
449
450 return ascii2desc(s, data, len);
451}
452
453
454/* Root hub control transfers execute synchronously */
455static int rh_call_control (struct usb_hcd *hcd, struct urb *urb)
456{
457 struct usb_ctrlrequest *cmd;
458 u16 typeReq, wValue, wIndex, wLength;
459 u8 *ubuf = urb->transfer_buffer;
460 unsigned len = 0;
461 int status;
462 u8 patch_wakeup = 0;
463 u8 patch_protocol = 0;
464 u16 tbuf_size;
465 u8 *tbuf = NULL;
466 const u8 *bufp;
467
468 might_sleep();
469
470 spin_lock_irq(&hcd_root_hub_lock);
471 status = usb_hcd_link_urb_to_ep(hcd, urb);
472 spin_unlock_irq(&hcd_root_hub_lock);
473 if (status)
474 return status;
475 urb->hcpriv = hcd; /* Indicate it's queued */
476
477 cmd = (struct usb_ctrlrequest *) urb->setup_packet;
478 typeReq = (cmd->bRequestType << 8) | cmd->bRequest;
479 wValue = le16_to_cpu (cmd->wValue);
480 wIndex = le16_to_cpu (cmd->wIndex);
481 wLength = le16_to_cpu (cmd->wLength);
482
483 if (wLength > urb->transfer_buffer_length)
484 goto error;
485
486 /*
487 * tbuf should be at least as big as the
488 * USB hub descriptor.
489 */
490 tbuf_size = max_t(u16, sizeof(struct usb_hub_descriptor), wLength);
491 tbuf = kzalloc(tbuf_size, GFP_KERNEL);
492 if (!tbuf) {
493 status = -ENOMEM;
494 goto err_alloc;
495 }
496
497 bufp = tbuf;
498
499
500 urb->actual_length = 0;
501 switch (typeReq) {
502
503 /* DEVICE REQUESTS */
504
505 /* The root hub's remote wakeup enable bit is implemented using
506 * driver model wakeup flags. If this system supports wakeup
507 * through USB, userspace may change the default "allow wakeup"
508 * policy through sysfs or these calls.
509 *
510 * Most root hubs support wakeup from downstream devices, for
511 * runtime power management (disabling USB clocks and reducing
512 * VBUS power usage). However, not all of them do so; silicon,
513 * board, and BIOS bugs here are not uncommon, so these can't
514 * be treated quite like external hubs.
515 *
516 * Likewise, not all root hubs will pass wakeup events upstream,
517 * to wake up the whole system. So don't assume root hub and
518 * controller capabilities are identical.
519 */
520
521 case DeviceRequest | USB_REQ_GET_STATUS:
522 tbuf[0] = (device_may_wakeup(&hcd->self.root_hub->dev)
523 << USB_DEVICE_REMOTE_WAKEUP)
524 | (1 << USB_DEVICE_SELF_POWERED);
525 tbuf[1] = 0;
526 len = 2;
527 break;
528 case DeviceOutRequest | USB_REQ_CLEAR_FEATURE:
529 if (wValue == USB_DEVICE_REMOTE_WAKEUP)
530 device_set_wakeup_enable(&hcd->self.root_hub->dev, 0);
531 else
532 goto error;
533 break;
534 case DeviceOutRequest | USB_REQ_SET_FEATURE:
535 if (device_can_wakeup(&hcd->self.root_hub->dev)
536 && wValue == USB_DEVICE_REMOTE_WAKEUP)
537 device_set_wakeup_enable(&hcd->self.root_hub->dev, 1);
538 else
539 goto error;
540 break;
541 case DeviceRequest | USB_REQ_GET_CONFIGURATION:
542 tbuf[0] = 1;
543 len = 1;
544 fallthrough;
545 case DeviceOutRequest | USB_REQ_SET_CONFIGURATION:
546 break;
547 case DeviceRequest | USB_REQ_GET_DESCRIPTOR:
548 switch (wValue & 0xff00) {
549 case USB_DT_DEVICE << 8:
550 switch (hcd->speed) {
551 case HCD_USB32:
552 case HCD_USB31:
553 bufp = usb31_rh_dev_descriptor;
554 break;
555 case HCD_USB3:
556 bufp = usb3_rh_dev_descriptor;
557 break;
558 case HCD_USB2:
559 bufp = usb2_rh_dev_descriptor;
560 break;
561 case HCD_USB11:
562 bufp = usb11_rh_dev_descriptor;
563 break;
564 default:
565 goto error;
566 }
567 len = 18;
568 if (hcd->has_tt)
569 patch_protocol = 1;
570 break;
571 case USB_DT_CONFIG << 8:
572 switch (hcd->speed) {
573 case HCD_USB32:
574 case HCD_USB31:
575 case HCD_USB3:
576 bufp = ss_rh_config_descriptor;
577 len = sizeof ss_rh_config_descriptor;
578 break;
579 case HCD_USB2:
580 bufp = hs_rh_config_descriptor;
581 len = sizeof hs_rh_config_descriptor;
582 break;
583 case HCD_USB11:
584 bufp = fs_rh_config_descriptor;
585 len = sizeof fs_rh_config_descriptor;
586 break;
587 default:
588 goto error;
589 }
590 if (device_can_wakeup(&hcd->self.root_hub->dev))
591 patch_wakeup = 1;
592 break;
593 case USB_DT_STRING << 8:
594 if ((wValue & 0xff) < 4)
595 urb->actual_length = rh_string(wValue & 0xff,
596 hcd, ubuf, wLength);
597 else /* unsupported IDs --> "protocol stall" */
598 goto error;
599 break;
600 case USB_DT_BOS << 8:
601 goto nongeneric;
602 default:
603 goto error;
604 }
605 break;
606 case DeviceRequest | USB_REQ_GET_INTERFACE:
607 tbuf[0] = 0;
608 len = 1;
609 fallthrough;
610 case DeviceOutRequest | USB_REQ_SET_INTERFACE:
611 break;
612 case DeviceOutRequest | USB_REQ_SET_ADDRESS:
613 /* wValue == urb->dev->devaddr */
614 dev_dbg (hcd->self.controller, "root hub device address %d\n",
615 wValue);
616 break;
617
618 /* INTERFACE REQUESTS (no defined feature/status flags) */
619
620 /* ENDPOINT REQUESTS */
621
622 case EndpointRequest | USB_REQ_GET_STATUS:
623 /* ENDPOINT_HALT flag */
624 tbuf[0] = 0;
625 tbuf[1] = 0;
626 len = 2;
627 fallthrough;
628 case EndpointOutRequest | USB_REQ_CLEAR_FEATURE:
629 case EndpointOutRequest | USB_REQ_SET_FEATURE:
630 dev_dbg (hcd->self.controller, "no endpoint features yet\n");
631 break;
632
633 /* CLASS REQUESTS (and errors) */
634
635 default:
636nongeneric:
637 /* non-generic request */
638 switch (typeReq) {
639 case GetHubStatus:
640 len = 4;
641 break;
642 case GetPortStatus:
643 if (wValue == HUB_PORT_STATUS)
644 len = 4;
645 else
646 /* other port status types return 8 bytes */
647 len = 8;
648 break;
649 case GetHubDescriptor:
650 len = sizeof (struct usb_hub_descriptor);
651 break;
652 case DeviceRequest | USB_REQ_GET_DESCRIPTOR:
653 /* len is returned by hub_control */
654 break;
655 }
656 status = hcd->driver->hub_control (hcd,
657 typeReq, wValue, wIndex,
658 tbuf, wLength);
659
660 if (typeReq == GetHubDescriptor)
661 usb_hub_adjust_deviceremovable(hcd->self.root_hub,
662 (struct usb_hub_descriptor *)tbuf);
663 break;
664error:
665 /* "protocol stall" on error */
666 status = -EPIPE;
667 }
668
669 if (status < 0) {
670 len = 0;
671 if (status != -EPIPE) {
672 dev_dbg (hcd->self.controller,
673 "CTRL: TypeReq=0x%x val=0x%x "
674 "idx=0x%x len=%d ==> %d\n",
675 typeReq, wValue, wIndex,
676 wLength, status);
677 }
678 } else if (status > 0) {
679 /* hub_control may return the length of data copied. */
680 len = status;
681 status = 0;
682 }
683 if (len) {
684 if (urb->transfer_buffer_length < len)
685 len = urb->transfer_buffer_length;
686 urb->actual_length = len;
687 /* always USB_DIR_IN, toward host */
688 memcpy (ubuf, bufp, len);
689
690 /* report whether RH hardware supports remote wakeup */
691 if (patch_wakeup &&
692 len > offsetof (struct usb_config_descriptor,
693 bmAttributes))
694 ((struct usb_config_descriptor *)ubuf)->bmAttributes
695 |= USB_CONFIG_ATT_WAKEUP;
696
697 /* report whether RH hardware has an integrated TT */
698 if (patch_protocol &&
699 len > offsetof(struct usb_device_descriptor,
700 bDeviceProtocol))
701 ((struct usb_device_descriptor *) ubuf)->
702 bDeviceProtocol = USB_HUB_PR_HS_SINGLE_TT;
703 }
704
705 kfree(tbuf);
706 err_alloc:
707
708 /* any errors get returned through the urb completion */
709 spin_lock_irq(&hcd_root_hub_lock);
710 usb_hcd_unlink_urb_from_ep(hcd, urb);
711 usb_hcd_giveback_urb(hcd, urb, status);
712 spin_unlock_irq(&hcd_root_hub_lock);
713 return 0;
714}
715
716/*-------------------------------------------------------------------------*/
717
718/*
719 * Root Hub interrupt transfers are polled using a timer if the
720 * driver requests it; otherwise the driver is responsible for
721 * calling usb_hcd_poll_rh_status() when an event occurs.
722 *
723 * Completion handler may not sleep. See usb_hcd_giveback_urb() for details.
724 */
725void usb_hcd_poll_rh_status(struct usb_hcd *hcd)
726{
727 struct urb *urb;
728 int length;
729 int status;
730 unsigned long flags;
731 char buffer[6]; /* Any root hubs with > 31 ports? */
732
733 if (unlikely(!hcd->rh_pollable))
734 return;
735 if (!hcd->uses_new_polling && !hcd->status_urb)
736 return;
737
738 length = hcd->driver->hub_status_data(hcd, buffer);
739 if (length > 0) {
740
741 /* try to complete the status urb */
742 spin_lock_irqsave(&hcd_root_hub_lock, flags);
743 urb = hcd->status_urb;
744 if (urb) {
745 clear_bit(HCD_FLAG_POLL_PENDING, &hcd->flags);
746 hcd->status_urb = NULL;
747 if (urb->transfer_buffer_length >= length) {
748 status = 0;
749 } else {
750 status = -EOVERFLOW;
751 length = urb->transfer_buffer_length;
752 }
753 urb->actual_length = length;
754 memcpy(urb->transfer_buffer, buffer, length);
755
756 usb_hcd_unlink_urb_from_ep(hcd, urb);
757 usb_hcd_giveback_urb(hcd, urb, status);
758 } else {
759 length = 0;
760 set_bit(HCD_FLAG_POLL_PENDING, &hcd->flags);
761 }
762 spin_unlock_irqrestore(&hcd_root_hub_lock, flags);
763 }
764
765 /* The USB 2.0 spec says 256 ms. This is close enough and won't
766 * exceed that limit if HZ is 100. The math is more clunky than
767 * maybe expected, this is to make sure that all timers for USB devices
768 * fire at the same time to give the CPU a break in between */
769 if (hcd->uses_new_polling ? HCD_POLL_RH(hcd) :
770 (length == 0 && hcd->status_urb != NULL))
771 mod_timer (&hcd->rh_timer, (jiffies/(HZ/4) + 1) * (HZ/4));
772}
773EXPORT_SYMBOL_GPL(usb_hcd_poll_rh_status);
774
775/* timer callback */
776static void rh_timer_func (struct timer_list *t)
777{
778 struct usb_hcd *_hcd = from_timer(_hcd, t, rh_timer);
779
780 usb_hcd_poll_rh_status(_hcd);
781}
782
783/*-------------------------------------------------------------------------*/
784
785static int rh_queue_status (struct usb_hcd *hcd, struct urb *urb)
786{
787 int retval;
788 unsigned long flags;
789 unsigned len = 1 + (urb->dev->maxchild / 8);
790
791 spin_lock_irqsave (&hcd_root_hub_lock, flags);
792 if (hcd->status_urb || urb->transfer_buffer_length < len) {
793 dev_dbg (hcd->self.controller, "not queuing rh status urb\n");
794 retval = -EINVAL;
795 goto done;
796 }
797
798 retval = usb_hcd_link_urb_to_ep(hcd, urb);
799 if (retval)
800 goto done;
801
802 hcd->status_urb = urb;
803 urb->hcpriv = hcd; /* indicate it's queued */
804 if (!hcd->uses_new_polling)
805 mod_timer(&hcd->rh_timer, (jiffies/(HZ/4) + 1) * (HZ/4));
806
807 /* If a status change has already occurred, report it ASAP */
808 else if (HCD_POLL_PENDING(hcd))
809 mod_timer(&hcd->rh_timer, jiffies);
810 retval = 0;
811 done:
812 spin_unlock_irqrestore (&hcd_root_hub_lock, flags);
813 return retval;
814}
815
816static int rh_urb_enqueue (struct usb_hcd *hcd, struct urb *urb)
817{
818 if (usb_endpoint_xfer_int(&urb->ep->desc))
819 return rh_queue_status (hcd, urb);
820 if (usb_endpoint_xfer_control(&urb->ep->desc))
821 return rh_call_control (hcd, urb);
822 return -EINVAL;
823}
824
825/*-------------------------------------------------------------------------*/
826
827/* Unlinks of root-hub control URBs are legal, but they don't do anything
828 * since these URBs always execute synchronously.
829 */
830static int usb_rh_urb_dequeue(struct usb_hcd *hcd, struct urb *urb, int status)
831{
832 unsigned long flags;
833 int rc;
834
835 spin_lock_irqsave(&hcd_root_hub_lock, flags);
836 rc = usb_hcd_check_unlink_urb(hcd, urb, status);
837 if (rc)
838 goto done;
839
840 if (usb_endpoint_num(&urb->ep->desc) == 0) { /* Control URB */
841 ; /* Do nothing */
842
843 } else { /* Status URB */
844 if (!hcd->uses_new_polling)
845 del_timer (&hcd->rh_timer);
846 if (urb == hcd->status_urb) {
847 hcd->status_urb = NULL;
848 usb_hcd_unlink_urb_from_ep(hcd, urb);
849 usb_hcd_giveback_urb(hcd, urb, status);
850 }
851 }
852 done:
853 spin_unlock_irqrestore(&hcd_root_hub_lock, flags);
854 return rc;
855}
856
857
858/*-------------------------------------------------------------------------*/
859
860/**
861 * usb_bus_init - shared initialization code
862 * @bus: the bus structure being initialized
863 *
864 * This code is used to initialize a usb_bus structure, memory for which is
865 * separately managed.
866 */
867static void usb_bus_init (struct usb_bus *bus)
868{
869 memset (&bus->devmap, 0, sizeof(struct usb_devmap));
870
871 bus->devnum_next = 1;
872
873 bus->root_hub = NULL;
874 bus->busnum = -1;
875 bus->bandwidth_allocated = 0;
876 bus->bandwidth_int_reqs = 0;
877 bus->bandwidth_isoc_reqs = 0;
878 mutex_init(&bus->devnum_next_mutex);
879}
880
881/*-------------------------------------------------------------------------*/
882
883/**
884 * usb_register_bus - registers the USB host controller with the usb core
885 * @bus: pointer to the bus to register
886 *
887 * Context: task context, might sleep.
888 *
889 * Assigns a bus number, and links the controller into usbcore data
890 * structures so that it can be seen by scanning the bus list.
891 *
892 * Return: 0 if successful. A negative error code otherwise.
893 */
894static int usb_register_bus(struct usb_bus *bus)
895{
896 int result = -E2BIG;
897 int busnum;
898
899 mutex_lock(&usb_bus_idr_lock);
900 busnum = idr_alloc(&usb_bus_idr, bus, 1, USB_MAXBUS, GFP_KERNEL);
901 if (busnum < 0) {
902 pr_err("%s: failed to get bus number\n", usbcore_name);
903 goto error_find_busnum;
904 }
905 bus->busnum = busnum;
906 mutex_unlock(&usb_bus_idr_lock);
907
908 usb_notify_add_bus(bus);
909
910 dev_info (bus->controller, "new USB bus registered, assigned bus "
911 "number %d\n", bus->busnum);
912 return 0;
913
914error_find_busnum:
915 mutex_unlock(&usb_bus_idr_lock);
916 return result;
917}
918
919/**
920 * usb_deregister_bus - deregisters the USB host controller
921 * @bus: pointer to the bus to deregister
922 *
923 * Context: task context, might sleep.
924 *
925 * Recycles the bus number, and unlinks the controller from usbcore data
926 * structures so that it won't be seen by scanning the bus list.
927 */
928static void usb_deregister_bus (struct usb_bus *bus)
929{
930 dev_info (bus->controller, "USB bus %d deregistered\n", bus->busnum);
931
932 /*
933 * NOTE: make sure that all the devices are removed by the
934 * controller code, as well as having it call this when cleaning
935 * itself up
936 */
937 mutex_lock(&usb_bus_idr_lock);
938 idr_remove(&usb_bus_idr, bus->busnum);
939 mutex_unlock(&usb_bus_idr_lock);
940
941 usb_notify_remove_bus(bus);
942}
943
944/**
945 * register_root_hub - called by usb_add_hcd() to register a root hub
946 * @hcd: host controller for this root hub
947 *
948 * This function registers the root hub with the USB subsystem. It sets up
949 * the device properly in the device tree and then calls usb_new_device()
950 * to register the usb device. It also assigns the root hub's USB address
951 * (always 1).
952 *
953 * Return: 0 if successful. A negative error code otherwise.
954 */
955static int register_root_hub(struct usb_hcd *hcd)
956{
957 struct device *parent_dev = hcd->self.controller;
958 struct usb_device *usb_dev = hcd->self.root_hub;
959 struct usb_device_descriptor *descr;
960 const int devnum = 1;
961 int retval;
962
963 usb_dev->devnum = devnum;
964 usb_dev->bus->devnum_next = devnum + 1;
965 set_bit (devnum, usb_dev->bus->devmap.devicemap);
966 usb_set_device_state(usb_dev, USB_STATE_ADDRESS);
967
968 mutex_lock(&usb_bus_idr_lock);
969
970 usb_dev->ep0.desc.wMaxPacketSize = cpu_to_le16(64);
971 descr = usb_get_device_descriptor(usb_dev);
972 if (IS_ERR(descr)) {
973 retval = PTR_ERR(descr);
974 mutex_unlock(&usb_bus_idr_lock);
975 dev_dbg (parent_dev, "can't read %s device descriptor %d\n",
976 dev_name(&usb_dev->dev), retval);
977 return retval;
978 }
979 usb_dev->descriptor = *descr;
980 kfree(descr);
981
982 if (le16_to_cpu(usb_dev->descriptor.bcdUSB) >= 0x0201) {
983 retval = usb_get_bos_descriptor(usb_dev);
984 if (!retval) {
985 usb_dev->lpm_capable = usb_device_supports_lpm(usb_dev);
986 } else if (usb_dev->speed >= USB_SPEED_SUPER) {
987 mutex_unlock(&usb_bus_idr_lock);
988 dev_dbg(parent_dev, "can't read %s bos descriptor %d\n",
989 dev_name(&usb_dev->dev), retval);
990 return retval;
991 }
992 }
993
994 retval = usb_new_device (usb_dev);
995 if (retval) {
996 dev_err (parent_dev, "can't register root hub for %s, %d\n",
997 dev_name(&usb_dev->dev), retval);
998 } else {
999 spin_lock_irq (&hcd_root_hub_lock);
1000 hcd->rh_registered = 1;
1001 spin_unlock_irq (&hcd_root_hub_lock);
1002
1003 /* Did the HC die before the root hub was registered? */
1004 if (HCD_DEAD(hcd))
1005 usb_hc_died (hcd); /* This time clean up */
1006 }
1007 mutex_unlock(&usb_bus_idr_lock);
1008
1009 return retval;
1010}
1011
1012/*
1013 * usb_hcd_start_port_resume - a root-hub port is sending a resume signal
1014 * @bus: the bus which the root hub belongs to
1015 * @portnum: the port which is being resumed
1016 *
1017 * HCDs should call this function when they know that a resume signal is
1018 * being sent to a root-hub port. The root hub will be prevented from
1019 * going into autosuspend until usb_hcd_end_port_resume() is called.
1020 *
1021 * The bus's private lock must be held by the caller.
1022 */
1023void usb_hcd_start_port_resume(struct usb_bus *bus, int portnum)
1024{
1025 unsigned bit = 1 << portnum;
1026
1027 if (!(bus->resuming_ports & bit)) {
1028 bus->resuming_ports |= bit;
1029 pm_runtime_get_noresume(&bus->root_hub->dev);
1030 }
1031}
1032EXPORT_SYMBOL_GPL(usb_hcd_start_port_resume);
1033
1034/*
1035 * usb_hcd_end_port_resume - a root-hub port has stopped sending a resume signal
1036 * @bus: the bus which the root hub belongs to
1037 * @portnum: the port which is being resumed
1038 *
1039 * HCDs should call this function when they know that a resume signal has
1040 * stopped being sent to a root-hub port. The root hub will be allowed to
1041 * autosuspend again.
1042 *
1043 * The bus's private lock must be held by the caller.
1044 */
1045void usb_hcd_end_port_resume(struct usb_bus *bus, int portnum)
1046{
1047 unsigned bit = 1 << portnum;
1048
1049 if (bus->resuming_ports & bit) {
1050 bus->resuming_ports &= ~bit;
1051 pm_runtime_put_noidle(&bus->root_hub->dev);
1052 }
1053}
1054EXPORT_SYMBOL_GPL(usb_hcd_end_port_resume);
1055
1056/*-------------------------------------------------------------------------*/
1057
1058/**
1059 * usb_calc_bus_time - approximate periodic transaction time in nanoseconds
1060 * @speed: from dev->speed; USB_SPEED_{LOW,FULL,HIGH}
1061 * @is_input: true iff the transaction sends data to the host
1062 * @isoc: true for isochronous transactions, false for interrupt ones
1063 * @bytecount: how many bytes in the transaction.
1064 *
1065 * Return: Approximate bus time in nanoseconds for a periodic transaction.
1066 *
1067 * Note:
1068 * See USB 2.0 spec section 5.11.3; only periodic transfers need to be
1069 * scheduled in software, this function is only used for such scheduling.
1070 */
1071long usb_calc_bus_time (int speed, int is_input, int isoc, int bytecount)
1072{
1073 unsigned long tmp;
1074
1075 switch (speed) {
1076 case USB_SPEED_LOW: /* INTR only */
1077 if (is_input) {
1078 tmp = (67667L * (31L + 10L * BitTime (bytecount))) / 1000L;
1079 return 64060L + (2 * BW_HUB_LS_SETUP) + BW_HOST_DELAY + tmp;
1080 } else {
1081 tmp = (66700L * (31L + 10L * BitTime (bytecount))) / 1000L;
1082 return 64107L + (2 * BW_HUB_LS_SETUP) + BW_HOST_DELAY + tmp;
1083 }
1084 case USB_SPEED_FULL: /* ISOC or INTR */
1085 if (isoc) {
1086 tmp = (8354L * (31L + 10L * BitTime (bytecount))) / 1000L;
1087 return ((is_input) ? 7268L : 6265L) + BW_HOST_DELAY + tmp;
1088 } else {
1089 tmp = (8354L * (31L + 10L * BitTime (bytecount))) / 1000L;
1090 return 9107L + BW_HOST_DELAY + tmp;
1091 }
1092 case USB_SPEED_HIGH: /* ISOC or INTR */
1093 /* FIXME adjust for input vs output */
1094 if (isoc)
1095 tmp = HS_NSECS_ISO (bytecount);
1096 else
1097 tmp = HS_NSECS (bytecount);
1098 return tmp;
1099 default:
1100 pr_debug ("%s: bogus device speed!\n", usbcore_name);
1101 return -1;
1102 }
1103}
1104EXPORT_SYMBOL_GPL(usb_calc_bus_time);
1105
1106
1107/*-------------------------------------------------------------------------*/
1108
1109/*
1110 * Generic HC operations.
1111 */
1112
1113/*-------------------------------------------------------------------------*/
1114
1115/**
1116 * usb_hcd_link_urb_to_ep - add an URB to its endpoint queue
1117 * @hcd: host controller to which @urb was submitted
1118 * @urb: URB being submitted
1119 *
1120 * Host controller drivers should call this routine in their enqueue()
1121 * method. The HCD's private spinlock must be held and interrupts must
1122 * be disabled. The actions carried out here are required for URB
1123 * submission, as well as for endpoint shutdown and for usb_kill_urb.
1124 *
1125 * Return: 0 for no error, otherwise a negative error code (in which case
1126 * the enqueue() method must fail). If no error occurs but enqueue() fails
1127 * anyway, it must call usb_hcd_unlink_urb_from_ep() before releasing
1128 * the private spinlock and returning.
1129 */
1130int usb_hcd_link_urb_to_ep(struct usb_hcd *hcd, struct urb *urb)
1131{
1132 int rc = 0;
1133
1134 spin_lock(&hcd_urb_list_lock);
1135
1136 /* Check that the URB isn't being killed */
1137 if (unlikely(atomic_read(&urb->reject))) {
1138 rc = -EPERM;
1139 goto done;
1140 }
1141
1142 if (unlikely(!urb->ep->enabled)) {
1143 rc = -ENOENT;
1144 goto done;
1145 }
1146
1147 if (unlikely(!urb->dev->can_submit)) {
1148 rc = -EHOSTUNREACH;
1149 goto done;
1150 }
1151
1152 /*
1153 * Check the host controller's state and add the URB to the
1154 * endpoint's queue.
1155 */
1156 if (HCD_RH_RUNNING(hcd)) {
1157 urb->unlinked = 0;
1158 list_add_tail(&urb->urb_list, &urb->ep->urb_list);
1159 } else {
1160 rc = -ESHUTDOWN;
1161 goto done;
1162 }
1163 done:
1164 spin_unlock(&hcd_urb_list_lock);
1165 return rc;
1166}
1167EXPORT_SYMBOL_GPL(usb_hcd_link_urb_to_ep);
1168
1169/**
1170 * usb_hcd_check_unlink_urb - check whether an URB may be unlinked
1171 * @hcd: host controller to which @urb was submitted
1172 * @urb: URB being checked for unlinkability
1173 * @status: error code to store in @urb if the unlink succeeds
1174 *
1175 * Host controller drivers should call this routine in their dequeue()
1176 * method. The HCD's private spinlock must be held and interrupts must
1177 * be disabled. The actions carried out here are required for making
1178 * sure than an unlink is valid.
1179 *
1180 * Return: 0 for no error, otherwise a negative error code (in which case
1181 * the dequeue() method must fail). The possible error codes are:
1182 *
1183 * -EIDRM: @urb was not submitted or has already completed.
1184 * The completion function may not have been called yet.
1185 *
1186 * -EBUSY: @urb has already been unlinked.
1187 */
1188int usb_hcd_check_unlink_urb(struct usb_hcd *hcd, struct urb *urb,
1189 int status)
1190{
1191 struct list_head *tmp;
1192
1193 /* insist the urb is still queued */
1194 list_for_each(tmp, &urb->ep->urb_list) {
1195 if (tmp == &urb->urb_list)
1196 break;
1197 }
1198 if (tmp != &urb->urb_list)
1199 return -EIDRM;
1200
1201 /* Any status except -EINPROGRESS means something already started to
1202 * unlink this URB from the hardware. So there's no more work to do.
1203 */
1204 if (urb->unlinked)
1205 return -EBUSY;
1206 urb->unlinked = status;
1207 return 0;
1208}
1209EXPORT_SYMBOL_GPL(usb_hcd_check_unlink_urb);
1210
1211/**
1212 * usb_hcd_unlink_urb_from_ep - remove an URB from its endpoint queue
1213 * @hcd: host controller to which @urb was submitted
1214 * @urb: URB being unlinked
1215 *
1216 * Host controller drivers should call this routine before calling
1217 * usb_hcd_giveback_urb(). The HCD's private spinlock must be held and
1218 * interrupts must be disabled. The actions carried out here are required
1219 * for URB completion.
1220 */
1221void usb_hcd_unlink_urb_from_ep(struct usb_hcd *hcd, struct urb *urb)
1222{
1223 /* clear all state linking urb to this dev (and hcd) */
1224 spin_lock(&hcd_urb_list_lock);
1225 list_del_init(&urb->urb_list);
1226 spin_unlock(&hcd_urb_list_lock);
1227}
1228EXPORT_SYMBOL_GPL(usb_hcd_unlink_urb_from_ep);
1229
1230/*
1231 * Some usb host controllers can only perform dma using a small SRAM area,
1232 * or have restrictions on addressable DRAM.
1233 * The usb core itself is however optimized for host controllers that can dma
1234 * using regular system memory - like pci devices doing bus mastering.
1235 *
1236 * To support host controllers with limited dma capabilities we provide dma
1237 * bounce buffers. This feature can be enabled by initializing
1238 * hcd->localmem_pool using usb_hcd_setup_local_mem().
1239 *
1240 * The initialized hcd->localmem_pool then tells the usb code to allocate all
1241 * data for dma using the genalloc API.
1242 *
1243 * So, to summarize...
1244 *
1245 * - We need "local" memory, canonical example being
1246 * a small SRAM on a discrete controller being the
1247 * only memory that the controller can read ...
1248 * (a) "normal" kernel memory is no good, and
1249 * (b) there's not enough to share
1250 *
1251 * - So we use that, even though the primary requirement
1252 * is that the memory be "local" (hence addressable
1253 * by that device), not "coherent".
1254 *
1255 */
1256
1257static int hcd_alloc_coherent(struct usb_bus *bus,
1258 gfp_t mem_flags, dma_addr_t *dma_handle,
1259 void **vaddr_handle, size_t size,
1260 enum dma_data_direction dir)
1261{
1262 unsigned char *vaddr;
1263
1264 if (*vaddr_handle == NULL) {
1265 WARN_ON_ONCE(1);
1266 return -EFAULT;
1267 }
1268
1269 vaddr = hcd_buffer_alloc(bus, size + sizeof(unsigned long),
1270 mem_flags, dma_handle);
1271 if (!vaddr)
1272 return -ENOMEM;
1273
1274 /*
1275 * Store the virtual address of the buffer at the end
1276 * of the allocated dma buffer. The size of the buffer
1277 * may be uneven so use unaligned functions instead
1278 * of just rounding up. It makes sense to optimize for
1279 * memory footprint over access speed since the amount
1280 * of memory available for dma may be limited.
1281 */
1282 put_unaligned((unsigned long)*vaddr_handle,
1283 (unsigned long *)(vaddr + size));
1284
1285 if (dir == DMA_TO_DEVICE)
1286 memcpy(vaddr, *vaddr_handle, size);
1287
1288 *vaddr_handle = vaddr;
1289 return 0;
1290}
1291
1292static void hcd_free_coherent(struct usb_bus *bus, dma_addr_t *dma_handle,
1293 void **vaddr_handle, size_t size,
1294 enum dma_data_direction dir)
1295{
1296 unsigned char *vaddr = *vaddr_handle;
1297
1298 vaddr = (void *)get_unaligned((unsigned long *)(vaddr + size));
1299
1300 if (dir == DMA_FROM_DEVICE)
1301 memcpy(vaddr, *vaddr_handle, size);
1302
1303 hcd_buffer_free(bus, size + sizeof(vaddr), *vaddr_handle, *dma_handle);
1304
1305 *vaddr_handle = vaddr;
1306 *dma_handle = 0;
1307}
1308
1309void usb_hcd_unmap_urb_setup_for_dma(struct usb_hcd *hcd, struct urb *urb)
1310{
1311 if (IS_ENABLED(CONFIG_HAS_DMA) &&
1312 (urb->transfer_flags & URB_SETUP_MAP_SINGLE))
1313 dma_unmap_single(hcd->self.sysdev,
1314 urb->setup_dma,
1315 sizeof(struct usb_ctrlrequest),
1316 DMA_TO_DEVICE);
1317 else if (urb->transfer_flags & URB_SETUP_MAP_LOCAL)
1318 hcd_free_coherent(urb->dev->bus,
1319 &urb->setup_dma,
1320 (void **) &urb->setup_packet,
1321 sizeof(struct usb_ctrlrequest),
1322 DMA_TO_DEVICE);
1323
1324 /* Make it safe to call this routine more than once */
1325 urb->transfer_flags &= ~(URB_SETUP_MAP_SINGLE | URB_SETUP_MAP_LOCAL);
1326}
1327EXPORT_SYMBOL_GPL(usb_hcd_unmap_urb_setup_for_dma);
1328
1329static void unmap_urb_for_dma(struct usb_hcd *hcd, struct urb *urb)
1330{
1331 if (hcd->driver->unmap_urb_for_dma)
1332 hcd->driver->unmap_urb_for_dma(hcd, urb);
1333 else
1334 usb_hcd_unmap_urb_for_dma(hcd, urb);
1335}
1336
1337void usb_hcd_unmap_urb_for_dma(struct usb_hcd *hcd, struct urb *urb)
1338{
1339 enum dma_data_direction dir;
1340
1341 usb_hcd_unmap_urb_setup_for_dma(hcd, urb);
1342
1343 dir = usb_urb_dir_in(urb) ? DMA_FROM_DEVICE : DMA_TO_DEVICE;
1344 if (IS_ENABLED(CONFIG_HAS_DMA) &&
1345 (urb->transfer_flags & URB_DMA_MAP_SG))
1346 dma_unmap_sg(hcd->self.sysdev,
1347 urb->sg,
1348 urb->num_sgs,
1349 dir);
1350 else if (IS_ENABLED(CONFIG_HAS_DMA) &&
1351 (urb->transfer_flags & URB_DMA_MAP_PAGE))
1352 dma_unmap_page(hcd->self.sysdev,
1353 urb->transfer_dma,
1354 urb->transfer_buffer_length,
1355 dir);
1356 else if (IS_ENABLED(CONFIG_HAS_DMA) &&
1357 (urb->transfer_flags & URB_DMA_MAP_SINGLE))
1358 dma_unmap_single(hcd->self.sysdev,
1359 urb->transfer_dma,
1360 urb->transfer_buffer_length,
1361 dir);
1362 else if (urb->transfer_flags & URB_MAP_LOCAL)
1363 hcd_free_coherent(urb->dev->bus,
1364 &urb->transfer_dma,
1365 &urb->transfer_buffer,
1366 urb->transfer_buffer_length,
1367 dir);
1368
1369 /* Make it safe to call this routine more than once */
1370 urb->transfer_flags &= ~(URB_DMA_MAP_SG | URB_DMA_MAP_PAGE |
1371 URB_DMA_MAP_SINGLE | URB_MAP_LOCAL);
1372}
1373EXPORT_SYMBOL_GPL(usb_hcd_unmap_urb_for_dma);
1374
1375static int map_urb_for_dma(struct usb_hcd *hcd, struct urb *urb,
1376 gfp_t mem_flags)
1377{
1378 if (hcd->driver->map_urb_for_dma)
1379 return hcd->driver->map_urb_for_dma(hcd, urb, mem_flags);
1380 else
1381 return usb_hcd_map_urb_for_dma(hcd, urb, mem_flags);
1382}
1383
1384int usb_hcd_map_urb_for_dma(struct usb_hcd *hcd, struct urb *urb,
1385 gfp_t mem_flags)
1386{
1387 enum dma_data_direction dir;
1388 int ret = 0;
1389
1390 /* Map the URB's buffers for DMA access.
1391 * Lower level HCD code should use *_dma exclusively,
1392 * unless it uses pio or talks to another transport,
1393 * or uses the provided scatter gather list for bulk.
1394 */
1395
1396 if (usb_endpoint_xfer_control(&urb->ep->desc)) {
1397 if (hcd->self.uses_pio_for_control)
1398 return ret;
1399 if (hcd->localmem_pool) {
1400 ret = hcd_alloc_coherent(
1401 urb->dev->bus, mem_flags,
1402 &urb->setup_dma,
1403 (void **)&urb->setup_packet,
1404 sizeof(struct usb_ctrlrequest),
1405 DMA_TO_DEVICE);
1406 if (ret)
1407 return ret;
1408 urb->transfer_flags |= URB_SETUP_MAP_LOCAL;
1409 } else if (hcd_uses_dma(hcd)) {
1410 if (object_is_on_stack(urb->setup_packet)) {
1411 WARN_ONCE(1, "setup packet is on stack\n");
1412 return -EAGAIN;
1413 }
1414
1415 urb->setup_dma = dma_map_single(
1416 hcd->self.sysdev,
1417 urb->setup_packet,
1418 sizeof(struct usb_ctrlrequest),
1419 DMA_TO_DEVICE);
1420 if (dma_mapping_error(hcd->self.sysdev,
1421 urb->setup_dma))
1422 return -EAGAIN;
1423 urb->transfer_flags |= URB_SETUP_MAP_SINGLE;
1424 }
1425 }
1426
1427 dir = usb_urb_dir_in(urb) ? DMA_FROM_DEVICE : DMA_TO_DEVICE;
1428 if (urb->transfer_buffer_length != 0
1429 && !(urb->transfer_flags & URB_NO_TRANSFER_DMA_MAP)) {
1430 if (hcd->localmem_pool) {
1431 ret = hcd_alloc_coherent(
1432 urb->dev->bus, mem_flags,
1433 &urb->transfer_dma,
1434 &urb->transfer_buffer,
1435 urb->transfer_buffer_length,
1436 dir);
1437 if (ret == 0)
1438 urb->transfer_flags |= URB_MAP_LOCAL;
1439 } else if (hcd_uses_dma(hcd)) {
1440 if (urb->num_sgs) {
1441 int n;
1442
1443 /* We don't support sg for isoc transfers ! */
1444 if (usb_endpoint_xfer_isoc(&urb->ep->desc)) {
1445 WARN_ON(1);
1446 return -EINVAL;
1447 }
1448
1449 n = dma_map_sg(
1450 hcd->self.sysdev,
1451 urb->sg,
1452 urb->num_sgs,
1453 dir);
1454 if (!n)
1455 ret = -EAGAIN;
1456 else
1457 urb->transfer_flags |= URB_DMA_MAP_SG;
1458 urb->num_mapped_sgs = n;
1459 if (n != urb->num_sgs)
1460 urb->transfer_flags |=
1461 URB_DMA_SG_COMBINED;
1462 } else if (urb->sg) {
1463 struct scatterlist *sg = urb->sg;
1464 urb->transfer_dma = dma_map_page(
1465 hcd->self.sysdev,
1466 sg_page(sg),
1467 sg->offset,
1468 urb->transfer_buffer_length,
1469 dir);
1470 if (dma_mapping_error(hcd->self.sysdev,
1471 urb->transfer_dma))
1472 ret = -EAGAIN;
1473 else
1474 urb->transfer_flags |= URB_DMA_MAP_PAGE;
1475 } else if (object_is_on_stack(urb->transfer_buffer)) {
1476 WARN_ONCE(1, "transfer buffer is on stack\n");
1477 ret = -EAGAIN;
1478 } else {
1479 urb->transfer_dma = dma_map_single(
1480 hcd->self.sysdev,
1481 urb->transfer_buffer,
1482 urb->transfer_buffer_length,
1483 dir);
1484 if (dma_mapping_error(hcd->self.sysdev,
1485 urb->transfer_dma))
1486 ret = -EAGAIN;
1487 else
1488 urb->transfer_flags |= URB_DMA_MAP_SINGLE;
1489 }
1490 }
1491 if (ret && (urb->transfer_flags & (URB_SETUP_MAP_SINGLE |
1492 URB_SETUP_MAP_LOCAL)))
1493 usb_hcd_unmap_urb_for_dma(hcd, urb);
1494 }
1495 return ret;
1496}
1497EXPORT_SYMBOL_GPL(usb_hcd_map_urb_for_dma);
1498
1499/*-------------------------------------------------------------------------*/
1500
1501/* may be called in any context with a valid urb->dev usecount
1502 * caller surrenders "ownership" of urb
1503 * expects usb_submit_urb() to have sanity checked and conditioned all
1504 * inputs in the urb
1505 */
1506int usb_hcd_submit_urb (struct urb *urb, gfp_t mem_flags)
1507{
1508 int status;
1509 struct usb_hcd *hcd = bus_to_hcd(urb->dev->bus);
1510
1511 /* increment urb's reference count as part of giving it to the HCD
1512 * (which will control it). HCD guarantees that it either returns
1513 * an error or calls giveback(), but not both.
1514 */
1515 usb_get_urb(urb);
1516 atomic_inc(&urb->use_count);
1517 atomic_inc(&urb->dev->urbnum);
1518 usbmon_urb_submit(&hcd->self, urb);
1519
1520 /* NOTE requirements on root-hub callers (usbfs and the hub
1521 * driver, for now): URBs' urb->transfer_buffer must be
1522 * valid and usb_buffer_{sync,unmap}() not be needed, since
1523 * they could clobber root hub response data. Also, control
1524 * URBs must be submitted in process context with interrupts
1525 * enabled.
1526 */
1527
1528 if (is_root_hub(urb->dev)) {
1529 status = rh_urb_enqueue(hcd, urb);
1530 } else {
1531 status = map_urb_for_dma(hcd, urb, mem_flags);
1532 if (likely(status == 0)) {
1533 status = hcd->driver->urb_enqueue(hcd, urb, mem_flags);
1534 if (unlikely(status))
1535 unmap_urb_for_dma(hcd, urb);
1536 }
1537 }
1538
1539 if (unlikely(status)) {
1540 usbmon_urb_submit_error(&hcd->self, urb, status);
1541 urb->hcpriv = NULL;
1542 INIT_LIST_HEAD(&urb->urb_list);
1543 atomic_dec(&urb->use_count);
1544 /*
1545 * Order the write of urb->use_count above before the read
1546 * of urb->reject below. Pairs with the memory barriers in
1547 * usb_kill_urb() and usb_poison_urb().
1548 */
1549 smp_mb__after_atomic();
1550
1551 atomic_dec(&urb->dev->urbnum);
1552 if (atomic_read(&urb->reject))
1553 wake_up(&usb_kill_urb_queue);
1554 usb_put_urb(urb);
1555 }
1556 return status;
1557}
1558
1559/*-------------------------------------------------------------------------*/
1560
1561/* this makes the hcd giveback() the urb more quickly, by kicking it
1562 * off hardware queues (which may take a while) and returning it as
1563 * soon as practical. we've already set up the urb's return status,
1564 * but we can't know if the callback completed already.
1565 */
1566static int unlink1(struct usb_hcd *hcd, struct urb *urb, int status)
1567{
1568 int value;
1569
1570 if (is_root_hub(urb->dev))
1571 value = usb_rh_urb_dequeue(hcd, urb, status);
1572 else {
1573
1574 /* The only reason an HCD might fail this call is if
1575 * it has not yet fully queued the urb to begin with.
1576 * Such failures should be harmless. */
1577 value = hcd->driver->urb_dequeue(hcd, urb, status);
1578 }
1579 return value;
1580}
1581
1582/*
1583 * called in any context
1584 *
1585 * caller guarantees urb won't be recycled till both unlink()
1586 * and the urb's completion function return
1587 */
1588int usb_hcd_unlink_urb (struct urb *urb, int status)
1589{
1590 struct usb_hcd *hcd;
1591 struct usb_device *udev = urb->dev;
1592 int retval = -EIDRM;
1593 unsigned long flags;
1594
1595 /* Prevent the device and bus from going away while
1596 * the unlink is carried out. If they are already gone
1597 * then urb->use_count must be 0, since disconnected
1598 * devices can't have any active URBs.
1599 */
1600 spin_lock_irqsave(&hcd_urb_unlink_lock, flags);
1601 if (atomic_read(&urb->use_count) > 0) {
1602 retval = 0;
1603 usb_get_dev(udev);
1604 }
1605 spin_unlock_irqrestore(&hcd_urb_unlink_lock, flags);
1606 if (retval == 0) {
1607 hcd = bus_to_hcd(urb->dev->bus);
1608 retval = unlink1(hcd, urb, status);
1609 if (retval == 0)
1610 retval = -EINPROGRESS;
1611 else if (retval != -EIDRM && retval != -EBUSY)
1612 dev_dbg(&udev->dev, "hcd_unlink_urb %pK fail %d\n",
1613 urb, retval);
1614 usb_put_dev(udev);
1615 }
1616 return retval;
1617}
1618
1619/*-------------------------------------------------------------------------*/
1620
1621static void __usb_hcd_giveback_urb(struct urb *urb)
1622{
1623 struct usb_hcd *hcd = bus_to_hcd(urb->dev->bus);
1624 struct usb_anchor *anchor = urb->anchor;
1625 int status = urb->unlinked;
1626
1627 urb->hcpriv = NULL;
1628 if (unlikely((urb->transfer_flags & URB_SHORT_NOT_OK) &&
1629 urb->actual_length < urb->transfer_buffer_length &&
1630 !status))
1631 status = -EREMOTEIO;
1632
1633 unmap_urb_for_dma(hcd, urb);
1634 usbmon_urb_complete(&hcd->self, urb, status);
1635 usb_anchor_suspend_wakeups(anchor);
1636 usb_unanchor_urb(urb);
1637 if (likely(status == 0))
1638 usb_led_activity(USB_LED_EVENT_HOST);
1639
1640 /* pass ownership to the completion handler */
1641 urb->status = status;
1642 /*
1643 * This function can be called in task context inside another remote
1644 * coverage collection section, but kcov doesn't support that kind of
1645 * recursion yet. Only collect coverage in softirq context for now.
1646 */
1647 kcov_remote_start_usb_softirq((u64)urb->dev->bus->busnum);
1648 urb->complete(urb);
1649 kcov_remote_stop_softirq();
1650
1651 usb_anchor_resume_wakeups(anchor);
1652 atomic_dec(&urb->use_count);
1653 /*
1654 * Order the write of urb->use_count above before the read
1655 * of urb->reject below. Pairs with the memory barriers in
1656 * usb_kill_urb() and usb_poison_urb().
1657 */
1658 smp_mb__after_atomic();
1659
1660 if (unlikely(atomic_read(&urb->reject)))
1661 wake_up(&usb_kill_urb_queue);
1662 usb_put_urb(urb);
1663}
1664
1665static void usb_giveback_urb_bh(struct work_struct *work)
1666{
1667 struct giveback_urb_bh *bh =
1668 container_of(work, struct giveback_urb_bh, bh);
1669 struct list_head local_list;
1670
1671 spin_lock_irq(&bh->lock);
1672 bh->running = true;
1673 list_replace_init(&bh->head, &local_list);
1674 spin_unlock_irq(&bh->lock);
1675
1676 while (!list_empty(&local_list)) {
1677 struct urb *urb;
1678
1679 urb = list_entry(local_list.next, struct urb, urb_list);
1680 list_del_init(&urb->urb_list);
1681 bh->completing_ep = urb->ep;
1682 __usb_hcd_giveback_urb(urb);
1683 bh->completing_ep = NULL;
1684 }
1685
1686 /*
1687 * giveback new URBs next time to prevent this function
1688 * from not exiting for a long time.
1689 */
1690 spin_lock_irq(&bh->lock);
1691 if (!list_empty(&bh->head)) {
1692 if (bh->high_prio)
1693 queue_work(system_bh_highpri_wq, &bh->bh);
1694 else
1695 queue_work(system_bh_wq, &bh->bh);
1696 }
1697 bh->running = false;
1698 spin_unlock_irq(&bh->lock);
1699}
1700
1701/**
1702 * usb_hcd_giveback_urb - return URB from HCD to device driver
1703 * @hcd: host controller returning the URB
1704 * @urb: urb being returned to the USB device driver.
1705 * @status: completion status code for the URB.
1706 *
1707 * Context: atomic. The completion callback is invoked in caller's context.
1708 * For HCDs with HCD_BH flag set, the completion callback is invoked in BH
1709 * context (except for URBs submitted to the root hub which always complete in
1710 * caller's context).
1711 *
1712 * This hands the URB from HCD to its USB device driver, using its
1713 * completion function. The HCD has freed all per-urb resources
1714 * (and is done using urb->hcpriv). It also released all HCD locks;
1715 * the device driver won't cause problems if it frees, modifies,
1716 * or resubmits this URB.
1717 *
1718 * If @urb was unlinked, the value of @status will be overridden by
1719 * @urb->unlinked. Erroneous short transfers are detected in case
1720 * the HCD hasn't checked for them.
1721 */
1722void usb_hcd_giveback_urb(struct usb_hcd *hcd, struct urb *urb, int status)
1723{
1724 struct giveback_urb_bh *bh;
1725 bool running;
1726
1727 /* pass status to BH via unlinked */
1728 if (likely(!urb->unlinked))
1729 urb->unlinked = status;
1730
1731 if (!hcd_giveback_urb_in_bh(hcd) && !is_root_hub(urb->dev)) {
1732 __usb_hcd_giveback_urb(urb);
1733 return;
1734 }
1735
1736 if (usb_pipeisoc(urb->pipe) || usb_pipeint(urb->pipe))
1737 bh = &hcd->high_prio_bh;
1738 else
1739 bh = &hcd->low_prio_bh;
1740
1741 spin_lock(&bh->lock);
1742 list_add_tail(&urb->urb_list, &bh->head);
1743 running = bh->running;
1744 spin_unlock(&bh->lock);
1745
1746 if (running)
1747 ;
1748 else if (bh->high_prio)
1749 queue_work(system_bh_highpri_wq, &bh->bh);
1750 else
1751 queue_work(system_bh_wq, &bh->bh);
1752}
1753EXPORT_SYMBOL_GPL(usb_hcd_giveback_urb);
1754
1755/*-------------------------------------------------------------------------*/
1756
1757/* Cancel all URBs pending on this endpoint and wait for the endpoint's
1758 * queue to drain completely. The caller must first insure that no more
1759 * URBs can be submitted for this endpoint.
1760 */
1761void usb_hcd_flush_endpoint(struct usb_device *udev,
1762 struct usb_host_endpoint *ep)
1763{
1764 struct usb_hcd *hcd;
1765 struct urb *urb;
1766
1767 if (!ep)
1768 return;
1769 might_sleep();
1770 hcd = bus_to_hcd(udev->bus);
1771
1772 /* No more submits can occur */
1773 spin_lock_irq(&hcd_urb_list_lock);
1774rescan:
1775 list_for_each_entry_reverse(urb, &ep->urb_list, urb_list) {
1776 int is_in;
1777
1778 if (urb->unlinked)
1779 continue;
1780 usb_get_urb (urb);
1781 is_in = usb_urb_dir_in(urb);
1782 spin_unlock(&hcd_urb_list_lock);
1783
1784 /* kick hcd */
1785 unlink1(hcd, urb, -ESHUTDOWN);
1786 dev_dbg (hcd->self.controller,
1787 "shutdown urb %pK ep%d%s-%s\n",
1788 urb, usb_endpoint_num(&ep->desc),
1789 is_in ? "in" : "out",
1790 usb_ep_type_string(usb_endpoint_type(&ep->desc)));
1791 usb_put_urb (urb);
1792
1793 /* list contents may have changed */
1794 spin_lock(&hcd_urb_list_lock);
1795 goto rescan;
1796 }
1797 spin_unlock_irq(&hcd_urb_list_lock);
1798
1799 /* Wait until the endpoint queue is completely empty */
1800 while (!list_empty (&ep->urb_list)) {
1801 spin_lock_irq(&hcd_urb_list_lock);
1802
1803 /* The list may have changed while we acquired the spinlock */
1804 urb = NULL;
1805 if (!list_empty (&ep->urb_list)) {
1806 urb = list_entry (ep->urb_list.prev, struct urb,
1807 urb_list);
1808 usb_get_urb (urb);
1809 }
1810 spin_unlock_irq(&hcd_urb_list_lock);
1811
1812 if (urb) {
1813 usb_kill_urb (urb);
1814 usb_put_urb (urb);
1815 }
1816 }
1817}
1818
1819/**
1820 * usb_hcd_alloc_bandwidth - check whether a new bandwidth setting exceeds
1821 * the bus bandwidth
1822 * @udev: target &usb_device
1823 * @new_config: new configuration to install
1824 * @cur_alt: the current alternate interface setting
1825 * @new_alt: alternate interface setting that is being installed
1826 *
1827 * To change configurations, pass in the new configuration in new_config,
1828 * and pass NULL for cur_alt and new_alt.
1829 *
1830 * To reset a device's configuration (put the device in the ADDRESSED state),
1831 * pass in NULL for new_config, cur_alt, and new_alt.
1832 *
1833 * To change alternate interface settings, pass in NULL for new_config,
1834 * pass in the current alternate interface setting in cur_alt,
1835 * and pass in the new alternate interface setting in new_alt.
1836 *
1837 * Return: An error if the requested bandwidth change exceeds the
1838 * bus bandwidth or host controller internal resources.
1839 */
1840int usb_hcd_alloc_bandwidth(struct usb_device *udev,
1841 struct usb_host_config *new_config,
1842 struct usb_host_interface *cur_alt,
1843 struct usb_host_interface *new_alt)
1844{
1845 int num_intfs, i, j;
1846 struct usb_host_interface *alt = NULL;
1847 int ret = 0;
1848 struct usb_hcd *hcd;
1849 struct usb_host_endpoint *ep;
1850
1851 hcd = bus_to_hcd(udev->bus);
1852 if (!hcd->driver->check_bandwidth)
1853 return 0;
1854
1855 /* Configuration is being removed - set configuration 0 */
1856 if (!new_config && !cur_alt) {
1857 for (i = 1; i < 16; ++i) {
1858 ep = udev->ep_out[i];
1859 if (ep)
1860 hcd->driver->drop_endpoint(hcd, udev, ep);
1861 ep = udev->ep_in[i];
1862 if (ep)
1863 hcd->driver->drop_endpoint(hcd, udev, ep);
1864 }
1865 hcd->driver->check_bandwidth(hcd, udev);
1866 return 0;
1867 }
1868 /* Check if the HCD says there's enough bandwidth. Enable all endpoints
1869 * each interface's alt setting 0 and ask the HCD to check the bandwidth
1870 * of the bus. There will always be bandwidth for endpoint 0, so it's
1871 * ok to exclude it.
1872 */
1873 if (new_config) {
1874 num_intfs = new_config->desc.bNumInterfaces;
1875 /* Remove endpoints (except endpoint 0, which is always on the
1876 * schedule) from the old config from the schedule
1877 */
1878 for (i = 1; i < 16; ++i) {
1879 ep = udev->ep_out[i];
1880 if (ep) {
1881 ret = hcd->driver->drop_endpoint(hcd, udev, ep);
1882 if (ret < 0)
1883 goto reset;
1884 }
1885 ep = udev->ep_in[i];
1886 if (ep) {
1887 ret = hcd->driver->drop_endpoint(hcd, udev, ep);
1888 if (ret < 0)
1889 goto reset;
1890 }
1891 }
1892 for (i = 0; i < num_intfs; ++i) {
1893 struct usb_host_interface *first_alt;
1894 int iface_num;
1895
1896 first_alt = &new_config->intf_cache[i]->altsetting[0];
1897 iface_num = first_alt->desc.bInterfaceNumber;
1898 /* Set up endpoints for alternate interface setting 0 */
1899 alt = usb_find_alt_setting(new_config, iface_num, 0);
1900 if (!alt)
1901 /* No alt setting 0? Pick the first setting. */
1902 alt = first_alt;
1903
1904 for (j = 0; j < alt->desc.bNumEndpoints; j++) {
1905 ret = hcd->driver->add_endpoint(hcd, udev, &alt->endpoint[j]);
1906 if (ret < 0)
1907 goto reset;
1908 }
1909 }
1910 }
1911 if (cur_alt && new_alt) {
1912 struct usb_interface *iface = usb_ifnum_to_if(udev,
1913 cur_alt->desc.bInterfaceNumber);
1914
1915 if (!iface)
1916 return -EINVAL;
1917 if (iface->resetting_device) {
1918 /*
1919 * The USB core just reset the device, so the xHCI host
1920 * and the device will think alt setting 0 is installed.
1921 * However, the USB core will pass in the alternate
1922 * setting installed before the reset as cur_alt. Dig
1923 * out the alternate setting 0 structure, or the first
1924 * alternate setting if a broken device doesn't have alt
1925 * setting 0.
1926 */
1927 cur_alt = usb_altnum_to_altsetting(iface, 0);
1928 if (!cur_alt)
1929 cur_alt = &iface->altsetting[0];
1930 }
1931
1932 /* Drop all the endpoints in the current alt setting */
1933 for (i = 0; i < cur_alt->desc.bNumEndpoints; i++) {
1934 ret = hcd->driver->drop_endpoint(hcd, udev,
1935 &cur_alt->endpoint[i]);
1936 if (ret < 0)
1937 goto reset;
1938 }
1939 /* Add all the endpoints in the new alt setting */
1940 for (i = 0; i < new_alt->desc.bNumEndpoints; i++) {
1941 ret = hcd->driver->add_endpoint(hcd, udev,
1942 &new_alt->endpoint[i]);
1943 if (ret < 0)
1944 goto reset;
1945 }
1946 }
1947 ret = hcd->driver->check_bandwidth(hcd, udev);
1948reset:
1949 if (ret < 0)
1950 hcd->driver->reset_bandwidth(hcd, udev);
1951 return ret;
1952}
1953
1954/* Disables the endpoint: synchronizes with the hcd to make sure all
1955 * endpoint state is gone from hardware. usb_hcd_flush_endpoint() must
1956 * have been called previously. Use for set_configuration, set_interface,
1957 * driver removal, physical disconnect.
1958 *
1959 * example: a qh stored in ep->hcpriv, holding state related to endpoint
1960 * type, maxpacket size, toggle, halt status, and scheduling.
1961 */
1962void usb_hcd_disable_endpoint(struct usb_device *udev,
1963 struct usb_host_endpoint *ep)
1964{
1965 struct usb_hcd *hcd;
1966
1967 might_sleep();
1968 hcd = bus_to_hcd(udev->bus);
1969 if (hcd->driver->endpoint_disable)
1970 hcd->driver->endpoint_disable(hcd, ep);
1971}
1972
1973/**
1974 * usb_hcd_reset_endpoint - reset host endpoint state
1975 * @udev: USB device.
1976 * @ep: the endpoint to reset.
1977 *
1978 * Resets any host endpoint state such as the toggle bit, sequence
1979 * number and current window.
1980 */
1981void usb_hcd_reset_endpoint(struct usb_device *udev,
1982 struct usb_host_endpoint *ep)
1983{
1984 struct usb_hcd *hcd = bus_to_hcd(udev->bus);
1985
1986 if (hcd->driver->endpoint_reset)
1987 hcd->driver->endpoint_reset(hcd, ep);
1988 else {
1989 int epnum = usb_endpoint_num(&ep->desc);
1990 int is_out = usb_endpoint_dir_out(&ep->desc);
1991 int is_control = usb_endpoint_xfer_control(&ep->desc);
1992
1993 usb_settoggle(udev, epnum, is_out, 0);
1994 if (is_control)
1995 usb_settoggle(udev, epnum, !is_out, 0);
1996 }
1997}
1998
1999/**
2000 * usb_alloc_streams - allocate bulk endpoint stream IDs.
2001 * @interface: alternate setting that includes all endpoints.
2002 * @eps: array of endpoints that need streams.
2003 * @num_eps: number of endpoints in the array.
2004 * @num_streams: number of streams to allocate.
2005 * @mem_flags: flags hcd should use to allocate memory.
2006 *
2007 * Sets up a group of bulk endpoints to have @num_streams stream IDs available.
2008 * Drivers may queue multiple transfers to different stream IDs, which may
2009 * complete in a different order than they were queued.
2010 *
2011 * Return: On success, the number of allocated streams. On failure, a negative
2012 * error code.
2013 */
2014int usb_alloc_streams(struct usb_interface *interface,
2015 struct usb_host_endpoint **eps, unsigned int num_eps,
2016 unsigned int num_streams, gfp_t mem_flags)
2017{
2018 struct usb_hcd *hcd;
2019 struct usb_device *dev;
2020 int i, ret;
2021
2022 dev = interface_to_usbdev(interface);
2023 hcd = bus_to_hcd(dev->bus);
2024 if (!hcd->driver->alloc_streams || !hcd->driver->free_streams)
2025 return -EINVAL;
2026 if (dev->speed < USB_SPEED_SUPER)
2027 return -EINVAL;
2028 if (dev->state < USB_STATE_CONFIGURED)
2029 return -ENODEV;
2030
2031 for (i = 0; i < num_eps; i++) {
2032 /* Streams only apply to bulk endpoints. */
2033 if (!usb_endpoint_xfer_bulk(&eps[i]->desc))
2034 return -EINVAL;
2035 /* Re-alloc is not allowed */
2036 if (eps[i]->streams)
2037 return -EINVAL;
2038 }
2039
2040 ret = hcd->driver->alloc_streams(hcd, dev, eps, num_eps,
2041 num_streams, mem_flags);
2042 if (ret < 0)
2043 return ret;
2044
2045 for (i = 0; i < num_eps; i++)
2046 eps[i]->streams = ret;
2047
2048 return ret;
2049}
2050EXPORT_SYMBOL_GPL(usb_alloc_streams);
2051
2052/**
2053 * usb_free_streams - free bulk endpoint stream IDs.
2054 * @interface: alternate setting that includes all endpoints.
2055 * @eps: array of endpoints to remove streams from.
2056 * @num_eps: number of endpoints in the array.
2057 * @mem_flags: flags hcd should use to allocate memory.
2058 *
2059 * Reverts a group of bulk endpoints back to not using stream IDs.
2060 * Can fail if we are given bad arguments, or HCD is broken.
2061 *
2062 * Return: 0 on success. On failure, a negative error code.
2063 */
2064int usb_free_streams(struct usb_interface *interface,
2065 struct usb_host_endpoint **eps, unsigned int num_eps,
2066 gfp_t mem_flags)
2067{
2068 struct usb_hcd *hcd;
2069 struct usb_device *dev;
2070 int i, ret;
2071
2072 dev = interface_to_usbdev(interface);
2073 hcd = bus_to_hcd(dev->bus);
2074 if (dev->speed < USB_SPEED_SUPER)
2075 return -EINVAL;
2076
2077 /* Double-free is not allowed */
2078 for (i = 0; i < num_eps; i++)
2079 if (!eps[i] || !eps[i]->streams)
2080 return -EINVAL;
2081
2082 ret = hcd->driver->free_streams(hcd, dev, eps, num_eps, mem_flags);
2083 if (ret < 0)
2084 return ret;
2085
2086 for (i = 0; i < num_eps; i++)
2087 eps[i]->streams = 0;
2088
2089 return ret;
2090}
2091EXPORT_SYMBOL_GPL(usb_free_streams);
2092
2093/* Protect against drivers that try to unlink URBs after the device
2094 * is gone, by waiting until all unlinks for @udev are finished.
2095 * Since we don't currently track URBs by device, simply wait until
2096 * nothing is running in the locked region of usb_hcd_unlink_urb().
2097 */
2098void usb_hcd_synchronize_unlinks(struct usb_device *udev)
2099{
2100 spin_lock_irq(&hcd_urb_unlink_lock);
2101 spin_unlock_irq(&hcd_urb_unlink_lock);
2102}
2103
2104/*-------------------------------------------------------------------------*/
2105
2106/* called in any context */
2107int usb_hcd_get_frame_number (struct usb_device *udev)
2108{
2109 struct usb_hcd *hcd = bus_to_hcd(udev->bus);
2110
2111 if (!HCD_RH_RUNNING(hcd))
2112 return -ESHUTDOWN;
2113 return hcd->driver->get_frame_number (hcd);
2114}
2115
2116/*-------------------------------------------------------------------------*/
2117#ifdef CONFIG_USB_HCD_TEST_MODE
2118
2119static void usb_ehset_completion(struct urb *urb)
2120{
2121 struct completion *done = urb->context;
2122
2123 complete(done);
2124}
2125/*
2126 * Allocate and initialize a control URB. This request will be used by the
2127 * EHSET SINGLE_STEP_SET_FEATURE test in which the DATA and STATUS stages
2128 * of the GetDescriptor request are sent 15 seconds after the SETUP stage.
2129 * Return NULL if failed.
2130 */
2131static struct urb *request_single_step_set_feature_urb(
2132 struct usb_device *udev,
2133 void *dr,
2134 void *buf,
2135 struct completion *done)
2136{
2137 struct urb *urb;
2138 struct usb_hcd *hcd = bus_to_hcd(udev->bus);
2139
2140 urb = usb_alloc_urb(0, GFP_KERNEL);
2141 if (!urb)
2142 return NULL;
2143
2144 urb->pipe = usb_rcvctrlpipe(udev, 0);
2145
2146 urb->ep = &udev->ep0;
2147 urb->dev = udev;
2148 urb->setup_packet = (void *)dr;
2149 urb->transfer_buffer = buf;
2150 urb->transfer_buffer_length = USB_DT_DEVICE_SIZE;
2151 urb->complete = usb_ehset_completion;
2152 urb->status = -EINPROGRESS;
2153 urb->actual_length = 0;
2154 urb->transfer_flags = URB_DIR_IN;
2155 usb_get_urb(urb);
2156 atomic_inc(&urb->use_count);
2157 atomic_inc(&urb->dev->urbnum);
2158 if (map_urb_for_dma(hcd, urb, GFP_KERNEL)) {
2159 usb_put_urb(urb);
2160 usb_free_urb(urb);
2161 return NULL;
2162 }
2163
2164 urb->context = done;
2165 return urb;
2166}
2167
2168int ehset_single_step_set_feature(struct usb_hcd *hcd, int port)
2169{
2170 int retval = -ENOMEM;
2171 struct usb_ctrlrequest *dr;
2172 struct urb *urb;
2173 struct usb_device *udev;
2174 struct usb_device_descriptor *buf;
2175 DECLARE_COMPLETION_ONSTACK(done);
2176
2177 /* Obtain udev of the rhub's child port */
2178 udev = usb_hub_find_child(hcd->self.root_hub, port);
2179 if (!udev) {
2180 dev_err(hcd->self.controller, "No device attached to the RootHub\n");
2181 return -ENODEV;
2182 }
2183 buf = kmalloc(USB_DT_DEVICE_SIZE, GFP_KERNEL);
2184 if (!buf)
2185 return -ENOMEM;
2186
2187 dr = kmalloc(sizeof(struct usb_ctrlrequest), GFP_KERNEL);
2188 if (!dr) {
2189 kfree(buf);
2190 return -ENOMEM;
2191 }
2192
2193 /* Fill Setup packet for GetDescriptor */
2194 dr->bRequestType = USB_DIR_IN;
2195 dr->bRequest = USB_REQ_GET_DESCRIPTOR;
2196 dr->wValue = cpu_to_le16(USB_DT_DEVICE << 8);
2197 dr->wIndex = 0;
2198 dr->wLength = cpu_to_le16(USB_DT_DEVICE_SIZE);
2199 urb = request_single_step_set_feature_urb(udev, dr, buf, &done);
2200 if (!urb)
2201 goto cleanup;
2202
2203 /* Submit just the SETUP stage */
2204 retval = hcd->driver->submit_single_step_set_feature(hcd, urb, 1);
2205 if (retval)
2206 goto out1;
2207 if (!wait_for_completion_timeout(&done, msecs_to_jiffies(2000))) {
2208 usb_kill_urb(urb);
2209 retval = -ETIMEDOUT;
2210 dev_err(hcd->self.controller,
2211 "%s SETUP stage timed out on ep0\n", __func__);
2212 goto out1;
2213 }
2214 msleep(15 * 1000);
2215
2216 /* Complete remaining DATA and STATUS stages using the same URB */
2217 urb->status = -EINPROGRESS;
2218 usb_get_urb(urb);
2219 atomic_inc(&urb->use_count);
2220 atomic_inc(&urb->dev->urbnum);
2221 retval = hcd->driver->submit_single_step_set_feature(hcd, urb, 0);
2222 if (!retval && !wait_for_completion_timeout(&done,
2223 msecs_to_jiffies(2000))) {
2224 usb_kill_urb(urb);
2225 retval = -ETIMEDOUT;
2226 dev_err(hcd->self.controller,
2227 "%s IN stage timed out on ep0\n", __func__);
2228 }
2229out1:
2230 usb_free_urb(urb);
2231cleanup:
2232 kfree(dr);
2233 kfree(buf);
2234 return retval;
2235}
2236EXPORT_SYMBOL_GPL(ehset_single_step_set_feature);
2237#endif /* CONFIG_USB_HCD_TEST_MODE */
2238
2239/*-------------------------------------------------------------------------*/
2240
2241#ifdef CONFIG_PM
2242
2243int hcd_bus_suspend(struct usb_device *rhdev, pm_message_t msg)
2244{
2245 struct usb_hcd *hcd = bus_to_hcd(rhdev->bus);
2246 int status;
2247 int old_state = hcd->state;
2248
2249 dev_dbg(&rhdev->dev, "bus %ssuspend, wakeup %d\n",
2250 (PMSG_IS_AUTO(msg) ? "auto-" : ""),
2251 rhdev->do_remote_wakeup);
2252 if (HCD_DEAD(hcd)) {
2253 dev_dbg(&rhdev->dev, "skipped %s of dead bus\n", "suspend");
2254 return 0;
2255 }
2256
2257 if (!hcd->driver->bus_suspend) {
2258 status = -ENOENT;
2259 } else {
2260 clear_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2261 hcd->state = HC_STATE_QUIESCING;
2262 status = hcd->driver->bus_suspend(hcd);
2263 }
2264 if (status == 0) {
2265 usb_set_device_state(rhdev, USB_STATE_SUSPENDED);
2266 hcd->state = HC_STATE_SUSPENDED;
2267
2268 if (!PMSG_IS_AUTO(msg))
2269 usb_phy_roothub_suspend(hcd->self.sysdev,
2270 hcd->phy_roothub);
2271
2272 /* Did we race with a root-hub wakeup event? */
2273 if (rhdev->do_remote_wakeup) {
2274 char buffer[6];
2275
2276 status = hcd->driver->hub_status_data(hcd, buffer);
2277 if (status != 0) {
2278 dev_dbg(&rhdev->dev, "suspend raced with wakeup event\n");
2279 hcd_bus_resume(rhdev, PMSG_AUTO_RESUME);
2280 status = -EBUSY;
2281 }
2282 }
2283 } else {
2284 spin_lock_irq(&hcd_root_hub_lock);
2285 if (!HCD_DEAD(hcd)) {
2286 set_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2287 hcd->state = old_state;
2288 }
2289 spin_unlock_irq(&hcd_root_hub_lock);
2290 dev_dbg(&rhdev->dev, "bus %s fail, err %d\n",
2291 "suspend", status);
2292 }
2293 return status;
2294}
2295
2296int hcd_bus_resume(struct usb_device *rhdev, pm_message_t msg)
2297{
2298 struct usb_hcd *hcd = bus_to_hcd(rhdev->bus);
2299 int status;
2300 int old_state = hcd->state;
2301
2302 dev_dbg(&rhdev->dev, "usb %sresume\n",
2303 (PMSG_IS_AUTO(msg) ? "auto-" : ""));
2304 if (HCD_DEAD(hcd)) {
2305 dev_dbg(&rhdev->dev, "skipped %s of dead bus\n", "resume");
2306 return 0;
2307 }
2308
2309 if (!PMSG_IS_AUTO(msg)) {
2310 status = usb_phy_roothub_resume(hcd->self.sysdev,
2311 hcd->phy_roothub);
2312 if (status)
2313 return status;
2314 }
2315
2316 if (!hcd->driver->bus_resume)
2317 return -ENOENT;
2318 if (HCD_RH_RUNNING(hcd))
2319 return 0;
2320
2321 hcd->state = HC_STATE_RESUMING;
2322 status = hcd->driver->bus_resume(hcd);
2323 clear_bit(HCD_FLAG_WAKEUP_PENDING, &hcd->flags);
2324 if (status == 0)
2325 status = usb_phy_roothub_calibrate(hcd->phy_roothub);
2326
2327 if (status == 0) {
2328 struct usb_device *udev;
2329 int port1;
2330
2331 spin_lock_irq(&hcd_root_hub_lock);
2332 if (!HCD_DEAD(hcd)) {
2333 usb_set_device_state(rhdev, rhdev->actconfig
2334 ? USB_STATE_CONFIGURED
2335 : USB_STATE_ADDRESS);
2336 set_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2337 hcd->state = HC_STATE_RUNNING;
2338 }
2339 spin_unlock_irq(&hcd_root_hub_lock);
2340
2341 /*
2342 * Check whether any of the enabled ports on the root hub are
2343 * unsuspended. If they are then a TRSMRCY delay is needed
2344 * (this is what the USB-2 spec calls a "global resume").
2345 * Otherwise we can skip the delay.
2346 */
2347 usb_hub_for_each_child(rhdev, port1, udev) {
2348 if (udev->state != USB_STATE_NOTATTACHED &&
2349 !udev->port_is_suspended) {
2350 usleep_range(10000, 11000); /* TRSMRCY */
2351 break;
2352 }
2353 }
2354 } else {
2355 hcd->state = old_state;
2356 usb_phy_roothub_suspend(hcd->self.sysdev, hcd->phy_roothub);
2357 dev_dbg(&rhdev->dev, "bus %s fail, err %d\n",
2358 "resume", status);
2359 if (status != -ESHUTDOWN)
2360 usb_hc_died(hcd);
2361 }
2362 return status;
2363}
2364
2365/* Workqueue routine for root-hub remote wakeup */
2366static void hcd_resume_work(struct work_struct *work)
2367{
2368 struct usb_hcd *hcd = container_of(work, struct usb_hcd, wakeup_work);
2369 struct usb_device *udev = hcd->self.root_hub;
2370
2371 usb_remote_wakeup(udev);
2372}
2373
2374/**
2375 * usb_hcd_resume_root_hub - called by HCD to resume its root hub
2376 * @hcd: host controller for this root hub
2377 *
2378 * The USB host controller calls this function when its root hub is
2379 * suspended (with the remote wakeup feature enabled) and a remote
2380 * wakeup request is received. The routine submits a workqueue request
2381 * to resume the root hub (that is, manage its downstream ports again).
2382 */
2383void usb_hcd_resume_root_hub (struct usb_hcd *hcd)
2384{
2385 unsigned long flags;
2386
2387 spin_lock_irqsave (&hcd_root_hub_lock, flags);
2388 if (hcd->rh_registered) {
2389 pm_wakeup_event(&hcd->self.root_hub->dev, 0);
2390 set_bit(HCD_FLAG_WAKEUP_PENDING, &hcd->flags);
2391 queue_work(pm_wq, &hcd->wakeup_work);
2392 }
2393 spin_unlock_irqrestore (&hcd_root_hub_lock, flags);
2394}
2395EXPORT_SYMBOL_GPL(usb_hcd_resume_root_hub);
2396
2397#endif /* CONFIG_PM */
2398
2399/*-------------------------------------------------------------------------*/
2400
2401#ifdef CONFIG_USB_OTG
2402
2403/**
2404 * usb_bus_start_enum - start immediate enumeration (for OTG)
2405 * @bus: the bus (must use hcd framework)
2406 * @port_num: 1-based number of port; usually bus->otg_port
2407 * Context: atomic
2408 *
2409 * Starts enumeration, with an immediate reset followed later by
2410 * hub_wq identifying and possibly configuring the device.
2411 * This is needed by OTG controller drivers, where it helps meet
2412 * HNP protocol timing requirements for starting a port reset.
2413 *
2414 * Return: 0 if successful.
2415 */
2416int usb_bus_start_enum(struct usb_bus *bus, unsigned port_num)
2417{
2418 struct usb_hcd *hcd;
2419 int status = -EOPNOTSUPP;
2420
2421 /* NOTE: since HNP can't start by grabbing the bus's address0_sem,
2422 * boards with root hubs hooked up to internal devices (instead of
2423 * just the OTG port) may need more attention to resetting...
2424 */
2425 hcd = bus_to_hcd(bus);
2426 if (port_num && hcd->driver->start_port_reset)
2427 status = hcd->driver->start_port_reset(hcd, port_num);
2428
2429 /* allocate hub_wq shortly after (first) root port reset finishes;
2430 * it may issue others, until at least 50 msecs have passed.
2431 */
2432 if (status == 0)
2433 mod_timer(&hcd->rh_timer, jiffies + msecs_to_jiffies(10));
2434 return status;
2435}
2436EXPORT_SYMBOL_GPL(usb_bus_start_enum);
2437
2438#endif
2439
2440/*-------------------------------------------------------------------------*/
2441
2442/**
2443 * usb_hcd_irq - hook IRQs to HCD framework (bus glue)
2444 * @irq: the IRQ being raised
2445 * @__hcd: pointer to the HCD whose IRQ is being signaled
2446 *
2447 * If the controller isn't HALTed, calls the driver's irq handler.
2448 * Checks whether the controller is now dead.
2449 *
2450 * Return: %IRQ_HANDLED if the IRQ was handled. %IRQ_NONE otherwise.
2451 */
2452irqreturn_t usb_hcd_irq (int irq, void *__hcd)
2453{
2454 struct usb_hcd *hcd = __hcd;
2455 irqreturn_t rc;
2456
2457 if (unlikely(HCD_DEAD(hcd) || !HCD_HW_ACCESSIBLE(hcd)))
2458 rc = IRQ_NONE;
2459 else if (hcd->driver->irq(hcd) == IRQ_NONE)
2460 rc = IRQ_NONE;
2461 else
2462 rc = IRQ_HANDLED;
2463
2464 return rc;
2465}
2466EXPORT_SYMBOL_GPL(usb_hcd_irq);
2467
2468/*-------------------------------------------------------------------------*/
2469
2470/* Workqueue routine for when the root-hub has died. */
2471static void hcd_died_work(struct work_struct *work)
2472{
2473 struct usb_hcd *hcd = container_of(work, struct usb_hcd, died_work);
2474 static char *env[] = {
2475 "ERROR=DEAD",
2476 NULL
2477 };
2478
2479 /* Notify user space that the host controller has died */
2480 kobject_uevent_env(&hcd->self.root_hub->dev.kobj, KOBJ_OFFLINE, env);
2481}
2482
2483/**
2484 * usb_hc_died - report abnormal shutdown of a host controller (bus glue)
2485 * @hcd: pointer to the HCD representing the controller
2486 *
2487 * This is called by bus glue to report a USB host controller that died
2488 * while operations may still have been pending. It's called automatically
2489 * by the PCI glue, so only glue for non-PCI busses should need to call it.
2490 *
2491 * Only call this function with the primary HCD.
2492 */
2493void usb_hc_died (struct usb_hcd *hcd)
2494{
2495 unsigned long flags;
2496
2497 dev_err (hcd->self.controller, "HC died; cleaning up\n");
2498
2499 spin_lock_irqsave (&hcd_root_hub_lock, flags);
2500 clear_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2501 set_bit(HCD_FLAG_DEAD, &hcd->flags);
2502 if (hcd->rh_registered) {
2503 clear_bit(HCD_FLAG_POLL_RH, &hcd->flags);
2504
2505 /* make hub_wq clean up old urbs and devices */
2506 usb_set_device_state (hcd->self.root_hub,
2507 USB_STATE_NOTATTACHED);
2508 usb_kick_hub_wq(hcd->self.root_hub);
2509 }
2510 if (usb_hcd_is_primary_hcd(hcd) && hcd->shared_hcd) {
2511 hcd = hcd->shared_hcd;
2512 clear_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2513 set_bit(HCD_FLAG_DEAD, &hcd->flags);
2514 if (hcd->rh_registered) {
2515 clear_bit(HCD_FLAG_POLL_RH, &hcd->flags);
2516
2517 /* make hub_wq clean up old urbs and devices */
2518 usb_set_device_state(hcd->self.root_hub,
2519 USB_STATE_NOTATTACHED);
2520 usb_kick_hub_wq(hcd->self.root_hub);
2521 }
2522 }
2523
2524 /* Handle the case where this function gets called with a shared HCD */
2525 if (usb_hcd_is_primary_hcd(hcd))
2526 schedule_work(&hcd->died_work);
2527 else
2528 schedule_work(&hcd->primary_hcd->died_work);
2529
2530 spin_unlock_irqrestore (&hcd_root_hub_lock, flags);
2531 /* Make sure that the other roothub is also deallocated. */
2532}
2533EXPORT_SYMBOL_GPL (usb_hc_died);
2534
2535/*-------------------------------------------------------------------------*/
2536
2537static void init_giveback_urb_bh(struct giveback_urb_bh *bh)
2538{
2539
2540 spin_lock_init(&bh->lock);
2541 INIT_LIST_HEAD(&bh->head);
2542 INIT_WORK(&bh->bh, usb_giveback_urb_bh);
2543}
2544
2545struct usb_hcd *__usb_create_hcd(const struct hc_driver *driver,
2546 struct device *sysdev, struct device *dev, const char *bus_name,
2547 struct usb_hcd *primary_hcd)
2548{
2549 struct usb_hcd *hcd;
2550
2551 hcd = kzalloc(sizeof(*hcd) + driver->hcd_priv_size, GFP_KERNEL);
2552 if (!hcd)
2553 return NULL;
2554 if (primary_hcd == NULL) {
2555 hcd->address0_mutex = kmalloc(sizeof(*hcd->address0_mutex),
2556 GFP_KERNEL);
2557 if (!hcd->address0_mutex) {
2558 kfree(hcd);
2559 dev_dbg(dev, "hcd address0 mutex alloc failed\n");
2560 return NULL;
2561 }
2562 mutex_init(hcd->address0_mutex);
2563 hcd->bandwidth_mutex = kmalloc(sizeof(*hcd->bandwidth_mutex),
2564 GFP_KERNEL);
2565 if (!hcd->bandwidth_mutex) {
2566 kfree(hcd->address0_mutex);
2567 kfree(hcd);
2568 dev_dbg(dev, "hcd bandwidth mutex alloc failed\n");
2569 return NULL;
2570 }
2571 mutex_init(hcd->bandwidth_mutex);
2572 dev_set_drvdata(dev, hcd);
2573 } else {
2574 mutex_lock(&usb_port_peer_mutex);
2575 hcd->address0_mutex = primary_hcd->address0_mutex;
2576 hcd->bandwidth_mutex = primary_hcd->bandwidth_mutex;
2577 hcd->primary_hcd = primary_hcd;
2578 primary_hcd->primary_hcd = primary_hcd;
2579 hcd->shared_hcd = primary_hcd;
2580 primary_hcd->shared_hcd = hcd;
2581 mutex_unlock(&usb_port_peer_mutex);
2582 }
2583
2584 kref_init(&hcd->kref);
2585
2586 usb_bus_init(&hcd->self);
2587 hcd->self.controller = dev;
2588 hcd->self.sysdev = sysdev;
2589 hcd->self.bus_name = bus_name;
2590
2591 timer_setup(&hcd->rh_timer, rh_timer_func, 0);
2592#ifdef CONFIG_PM
2593 INIT_WORK(&hcd->wakeup_work, hcd_resume_work);
2594#endif
2595
2596 INIT_WORK(&hcd->died_work, hcd_died_work);
2597
2598 hcd->driver = driver;
2599 hcd->speed = driver->flags & HCD_MASK;
2600 hcd->product_desc = (driver->product_desc) ? driver->product_desc :
2601 "USB Host Controller";
2602 return hcd;
2603}
2604EXPORT_SYMBOL_GPL(__usb_create_hcd);
2605
2606/**
2607 * usb_create_shared_hcd - create and initialize an HCD structure
2608 * @driver: HC driver that will use this hcd
2609 * @dev: device for this HC, stored in hcd->self.controller
2610 * @bus_name: value to store in hcd->self.bus_name
2611 * @primary_hcd: a pointer to the usb_hcd structure that is sharing the
2612 * PCI device. Only allocate certain resources for the primary HCD
2613 *
2614 * Context: task context, might sleep.
2615 *
2616 * Allocate a struct usb_hcd, with extra space at the end for the
2617 * HC driver's private data. Initialize the generic members of the
2618 * hcd structure.
2619 *
2620 * Return: On success, a pointer to the created and initialized HCD structure.
2621 * On failure (e.g. if memory is unavailable), %NULL.
2622 */
2623struct usb_hcd *usb_create_shared_hcd(const struct hc_driver *driver,
2624 struct device *dev, const char *bus_name,
2625 struct usb_hcd *primary_hcd)
2626{
2627 return __usb_create_hcd(driver, dev, dev, bus_name, primary_hcd);
2628}
2629EXPORT_SYMBOL_GPL(usb_create_shared_hcd);
2630
2631/**
2632 * usb_create_hcd - create and initialize an HCD structure
2633 * @driver: HC driver that will use this hcd
2634 * @dev: device for this HC, stored in hcd->self.controller
2635 * @bus_name: value to store in hcd->self.bus_name
2636 *
2637 * Context: task context, might sleep.
2638 *
2639 * Allocate a struct usb_hcd, with extra space at the end for the
2640 * HC driver's private data. Initialize the generic members of the
2641 * hcd structure.
2642 *
2643 * Return: On success, a pointer to the created and initialized HCD
2644 * structure. On failure (e.g. if memory is unavailable), %NULL.
2645 */
2646struct usb_hcd *usb_create_hcd(const struct hc_driver *driver,
2647 struct device *dev, const char *bus_name)
2648{
2649 return __usb_create_hcd(driver, dev, dev, bus_name, NULL);
2650}
2651EXPORT_SYMBOL_GPL(usb_create_hcd);
2652
2653/*
2654 * Roothubs that share one PCI device must also share the bandwidth mutex.
2655 * Don't deallocate the bandwidth_mutex until the last shared usb_hcd is
2656 * deallocated.
2657 *
2658 * Make sure to deallocate the bandwidth_mutex only when the last HCD is
2659 * freed. When hcd_release() is called for either hcd in a peer set,
2660 * invalidate the peer's ->shared_hcd and ->primary_hcd pointers.
2661 */
2662static void hcd_release(struct kref *kref)
2663{
2664 struct usb_hcd *hcd = container_of (kref, struct usb_hcd, kref);
2665
2666 mutex_lock(&usb_port_peer_mutex);
2667 if (hcd->shared_hcd) {
2668 struct usb_hcd *peer = hcd->shared_hcd;
2669
2670 peer->shared_hcd = NULL;
2671 peer->primary_hcd = NULL;
2672 } else {
2673 kfree(hcd->address0_mutex);
2674 kfree(hcd->bandwidth_mutex);
2675 }
2676 mutex_unlock(&usb_port_peer_mutex);
2677 kfree(hcd);
2678}
2679
2680struct usb_hcd *usb_get_hcd (struct usb_hcd *hcd)
2681{
2682 if (hcd)
2683 kref_get (&hcd->kref);
2684 return hcd;
2685}
2686EXPORT_SYMBOL_GPL(usb_get_hcd);
2687
2688void usb_put_hcd (struct usb_hcd *hcd)
2689{
2690 if (hcd)
2691 kref_put (&hcd->kref, hcd_release);
2692}
2693EXPORT_SYMBOL_GPL(usb_put_hcd);
2694
2695int usb_hcd_is_primary_hcd(struct usb_hcd *hcd)
2696{
2697 if (!hcd->primary_hcd)
2698 return 1;
2699 return hcd == hcd->primary_hcd;
2700}
2701EXPORT_SYMBOL_GPL(usb_hcd_is_primary_hcd);
2702
2703int usb_hcd_find_raw_port_number(struct usb_hcd *hcd, int port1)
2704{
2705 if (!hcd->driver->find_raw_port_number)
2706 return port1;
2707
2708 return hcd->driver->find_raw_port_number(hcd, port1);
2709}
2710
2711static int usb_hcd_request_irqs(struct usb_hcd *hcd,
2712 unsigned int irqnum, unsigned long irqflags)
2713{
2714 int retval;
2715
2716 if (hcd->driver->irq) {
2717
2718 snprintf(hcd->irq_descr, sizeof(hcd->irq_descr), "%s:usb%d",
2719 hcd->driver->description, hcd->self.busnum);
2720 retval = request_irq(irqnum, &usb_hcd_irq, irqflags,
2721 hcd->irq_descr, hcd);
2722 if (retval != 0) {
2723 dev_err(hcd->self.controller,
2724 "request interrupt %d failed\n",
2725 irqnum);
2726 return retval;
2727 }
2728 hcd->irq = irqnum;
2729 dev_info(hcd->self.controller, "irq %d, %s 0x%08llx\n", irqnum,
2730 (hcd->driver->flags & HCD_MEMORY) ?
2731 "io mem" : "io port",
2732 (unsigned long long)hcd->rsrc_start);
2733 } else {
2734 hcd->irq = 0;
2735 if (hcd->rsrc_start)
2736 dev_info(hcd->self.controller, "%s 0x%08llx\n",
2737 (hcd->driver->flags & HCD_MEMORY) ?
2738 "io mem" : "io port",
2739 (unsigned long long)hcd->rsrc_start);
2740 }
2741 return 0;
2742}
2743
2744/*
2745 * Before we free this root hub, flush in-flight peering attempts
2746 * and disable peer lookups
2747 */
2748static void usb_put_invalidate_rhdev(struct usb_hcd *hcd)
2749{
2750 struct usb_device *rhdev;
2751
2752 mutex_lock(&usb_port_peer_mutex);
2753 rhdev = hcd->self.root_hub;
2754 hcd->self.root_hub = NULL;
2755 mutex_unlock(&usb_port_peer_mutex);
2756 usb_put_dev(rhdev);
2757}
2758
2759/**
2760 * usb_stop_hcd - Halt the HCD
2761 * @hcd: the usb_hcd that has to be halted
2762 *
2763 * Stop the root-hub polling timer and invoke the HCD's ->stop callback.
2764 */
2765static void usb_stop_hcd(struct usb_hcd *hcd)
2766{
2767 hcd->rh_pollable = 0;
2768 clear_bit(HCD_FLAG_POLL_RH, &hcd->flags);
2769 del_timer_sync(&hcd->rh_timer);
2770
2771 hcd->driver->stop(hcd);
2772 hcd->state = HC_STATE_HALT;
2773
2774 /* In case the HCD restarted the timer, stop it again. */
2775 clear_bit(HCD_FLAG_POLL_RH, &hcd->flags);
2776 del_timer_sync(&hcd->rh_timer);
2777}
2778
2779/**
2780 * usb_add_hcd - finish generic HCD structure initialization and register
2781 * @hcd: the usb_hcd structure to initialize
2782 * @irqnum: Interrupt line to allocate
2783 * @irqflags: Interrupt type flags
2784 *
2785 * Finish the remaining parts of generic HCD initialization: allocate the
2786 * buffers of consistent memory, register the bus, request the IRQ line,
2787 * and call the driver's reset() and start() routines.
2788 */
2789int usb_add_hcd(struct usb_hcd *hcd,
2790 unsigned int irqnum, unsigned long irqflags)
2791{
2792 int retval;
2793 struct usb_device *rhdev;
2794 struct usb_hcd *shared_hcd;
2795
2796 if (!hcd->skip_phy_initialization) {
2797 if (usb_hcd_is_primary_hcd(hcd)) {
2798 hcd->phy_roothub = usb_phy_roothub_alloc(hcd->self.sysdev);
2799 if (IS_ERR(hcd->phy_roothub))
2800 return PTR_ERR(hcd->phy_roothub);
2801 } else {
2802 hcd->phy_roothub = usb_phy_roothub_alloc_usb3_phy(hcd->self.sysdev);
2803 if (IS_ERR(hcd->phy_roothub))
2804 return PTR_ERR(hcd->phy_roothub);
2805 }
2806
2807 retval = usb_phy_roothub_init(hcd->phy_roothub);
2808 if (retval)
2809 return retval;
2810
2811 retval = usb_phy_roothub_set_mode(hcd->phy_roothub,
2812 PHY_MODE_USB_HOST_SS);
2813 if (retval)
2814 retval = usb_phy_roothub_set_mode(hcd->phy_roothub,
2815 PHY_MODE_USB_HOST);
2816 if (retval)
2817 goto err_usb_phy_roothub_power_on;
2818
2819 retval = usb_phy_roothub_power_on(hcd->phy_roothub);
2820 if (retval)
2821 goto err_usb_phy_roothub_power_on;
2822 }
2823
2824 dev_info(hcd->self.controller, "%s\n", hcd->product_desc);
2825
2826 switch (authorized_default) {
2827 case USB_AUTHORIZE_NONE:
2828 hcd->dev_policy = USB_DEVICE_AUTHORIZE_NONE;
2829 break;
2830
2831 case USB_AUTHORIZE_INTERNAL:
2832 hcd->dev_policy = USB_DEVICE_AUTHORIZE_INTERNAL;
2833 break;
2834
2835 case USB_AUTHORIZE_ALL:
2836 case USB_AUTHORIZE_WIRED:
2837 default:
2838 hcd->dev_policy = USB_DEVICE_AUTHORIZE_ALL;
2839 break;
2840 }
2841
2842 set_bit(HCD_FLAG_HW_ACCESSIBLE, &hcd->flags);
2843
2844 /* per default all interfaces are authorized */
2845 set_bit(HCD_FLAG_INTF_AUTHORIZED, &hcd->flags);
2846
2847 /* HC is in reset state, but accessible. Now do the one-time init,
2848 * bottom up so that hcds can customize the root hubs before hub_wq
2849 * starts talking to them. (Note, bus id is assigned early too.)
2850 */
2851 retval = hcd_buffer_create(hcd);
2852 if (retval != 0) {
2853 dev_dbg(hcd->self.sysdev, "pool alloc failed\n");
2854 goto err_create_buf;
2855 }
2856
2857 retval = usb_register_bus(&hcd->self);
2858 if (retval < 0)
2859 goto err_register_bus;
2860
2861 rhdev = usb_alloc_dev(NULL, &hcd->self, 0);
2862 if (rhdev == NULL) {
2863 dev_err(hcd->self.sysdev, "unable to allocate root hub\n");
2864 retval = -ENOMEM;
2865 goto err_allocate_root_hub;
2866 }
2867 mutex_lock(&usb_port_peer_mutex);
2868 hcd->self.root_hub = rhdev;
2869 mutex_unlock(&usb_port_peer_mutex);
2870
2871 rhdev->rx_lanes = 1;
2872 rhdev->tx_lanes = 1;
2873 rhdev->ssp_rate = USB_SSP_GEN_UNKNOWN;
2874
2875 switch (hcd->speed) {
2876 case HCD_USB11:
2877 rhdev->speed = USB_SPEED_FULL;
2878 break;
2879 case HCD_USB2:
2880 rhdev->speed = USB_SPEED_HIGH;
2881 break;
2882 case HCD_USB3:
2883 rhdev->speed = USB_SPEED_SUPER;
2884 break;
2885 case HCD_USB32:
2886 rhdev->rx_lanes = 2;
2887 rhdev->tx_lanes = 2;
2888 rhdev->ssp_rate = USB_SSP_GEN_2x2;
2889 rhdev->speed = USB_SPEED_SUPER_PLUS;
2890 break;
2891 case HCD_USB31:
2892 rhdev->ssp_rate = USB_SSP_GEN_2x1;
2893 rhdev->speed = USB_SPEED_SUPER_PLUS;
2894 break;
2895 default:
2896 retval = -EINVAL;
2897 goto err_set_rh_speed;
2898 }
2899
2900 /* wakeup flag init defaults to "everything works" for root hubs,
2901 * but drivers can override it in reset() if needed, along with
2902 * recording the overall controller's system wakeup capability.
2903 */
2904 device_set_wakeup_capable(&rhdev->dev, 1);
2905
2906 /* HCD_FLAG_RH_RUNNING doesn't matter until the root hub is
2907 * registered. But since the controller can die at any time,
2908 * let's initialize the flag before touching the hardware.
2909 */
2910 set_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
2911
2912 /* "reset" is misnamed; its role is now one-time init. the controller
2913 * should already have been reset (and boot firmware kicked off etc).
2914 */
2915 if (hcd->driver->reset) {
2916 retval = hcd->driver->reset(hcd);
2917 if (retval < 0) {
2918 dev_err(hcd->self.controller, "can't setup: %d\n",
2919 retval);
2920 goto err_hcd_driver_setup;
2921 }
2922 }
2923 hcd->rh_pollable = 1;
2924
2925 retval = usb_phy_roothub_calibrate(hcd->phy_roothub);
2926 if (retval)
2927 goto err_hcd_driver_setup;
2928
2929 /* NOTE: root hub and controller capabilities may not be the same */
2930 if (device_can_wakeup(hcd->self.controller)
2931 && device_can_wakeup(&hcd->self.root_hub->dev))
2932 dev_dbg(hcd->self.controller, "supports USB remote wakeup\n");
2933
2934 /* initialize BHs */
2935 init_giveback_urb_bh(&hcd->high_prio_bh);
2936 hcd->high_prio_bh.high_prio = true;
2937 init_giveback_urb_bh(&hcd->low_prio_bh);
2938
2939 /* enable irqs just before we start the controller,
2940 * if the BIOS provides legacy PCI irqs.
2941 */
2942 if (usb_hcd_is_primary_hcd(hcd) && irqnum) {
2943 retval = usb_hcd_request_irqs(hcd, irqnum, irqflags);
2944 if (retval)
2945 goto err_request_irq;
2946 }
2947
2948 hcd->state = HC_STATE_RUNNING;
2949 retval = hcd->driver->start(hcd);
2950 if (retval < 0) {
2951 dev_err(hcd->self.controller, "startup error %d\n", retval);
2952 goto err_hcd_driver_start;
2953 }
2954
2955 /* starting here, usbcore will pay attention to the shared HCD roothub */
2956 shared_hcd = hcd->shared_hcd;
2957 if (!usb_hcd_is_primary_hcd(hcd) && shared_hcd && HCD_DEFER_RH_REGISTER(shared_hcd)) {
2958 retval = register_root_hub(shared_hcd);
2959 if (retval != 0)
2960 goto err_register_root_hub;
2961
2962 if (shared_hcd->uses_new_polling && HCD_POLL_RH(shared_hcd))
2963 usb_hcd_poll_rh_status(shared_hcd);
2964 }
2965
2966 /* starting here, usbcore will pay attention to this root hub */
2967 if (!HCD_DEFER_RH_REGISTER(hcd)) {
2968 retval = register_root_hub(hcd);
2969 if (retval != 0)
2970 goto err_register_root_hub;
2971
2972 if (hcd->uses_new_polling && HCD_POLL_RH(hcd))
2973 usb_hcd_poll_rh_status(hcd);
2974 }
2975
2976 return retval;
2977
2978err_register_root_hub:
2979 usb_stop_hcd(hcd);
2980err_hcd_driver_start:
2981 if (usb_hcd_is_primary_hcd(hcd) && hcd->irq > 0)
2982 free_irq(irqnum, hcd);
2983err_request_irq:
2984err_hcd_driver_setup:
2985err_set_rh_speed:
2986 usb_put_invalidate_rhdev(hcd);
2987err_allocate_root_hub:
2988 usb_deregister_bus(&hcd->self);
2989err_register_bus:
2990 hcd_buffer_destroy(hcd);
2991err_create_buf:
2992 usb_phy_roothub_power_off(hcd->phy_roothub);
2993err_usb_phy_roothub_power_on:
2994 usb_phy_roothub_exit(hcd->phy_roothub);
2995
2996 return retval;
2997}
2998EXPORT_SYMBOL_GPL(usb_add_hcd);
2999
3000/**
3001 * usb_remove_hcd - shutdown processing for generic HCDs
3002 * @hcd: the usb_hcd structure to remove
3003 *
3004 * Context: task context, might sleep.
3005 *
3006 * Disconnects the root hub, then reverses the effects of usb_add_hcd(),
3007 * invoking the HCD's stop() method.
3008 */
3009void usb_remove_hcd(struct usb_hcd *hcd)
3010{
3011 struct usb_device *rhdev;
3012 bool rh_registered;
3013
3014 if (!hcd) {
3015 pr_debug("%s: hcd is NULL\n", __func__);
3016 return;
3017 }
3018 rhdev = hcd->self.root_hub;
3019
3020 dev_info(hcd->self.controller, "remove, state %x\n", hcd->state);
3021
3022 usb_get_dev(rhdev);
3023 clear_bit(HCD_FLAG_RH_RUNNING, &hcd->flags);
3024 if (HC_IS_RUNNING (hcd->state))
3025 hcd->state = HC_STATE_QUIESCING;
3026
3027 dev_dbg(hcd->self.controller, "roothub graceful disconnect\n");
3028 spin_lock_irq (&hcd_root_hub_lock);
3029 rh_registered = hcd->rh_registered;
3030 hcd->rh_registered = 0;
3031 spin_unlock_irq (&hcd_root_hub_lock);
3032
3033#ifdef CONFIG_PM
3034 cancel_work_sync(&hcd->wakeup_work);
3035#endif
3036 cancel_work_sync(&hcd->died_work);
3037
3038 mutex_lock(&usb_bus_idr_lock);
3039 if (rh_registered)
3040 usb_disconnect(&rhdev); /* Sets rhdev to NULL */
3041 mutex_unlock(&usb_bus_idr_lock);
3042
3043 /*
3044 * flush_work() isn't needed here because:
3045 * - driver's disconnect() called from usb_disconnect() should
3046 * make sure its URBs are completed during the disconnect()
3047 * callback
3048 *
3049 * - it is too late to run complete() here since driver may have
3050 * been removed already now
3051 */
3052
3053 /* Prevent any more root-hub status calls from the timer.
3054 * The HCD might still restart the timer (if a port status change
3055 * interrupt occurs), but usb_hcd_poll_rh_status() won't invoke
3056 * the hub_status_data() callback.
3057 */
3058 usb_stop_hcd(hcd);
3059
3060 if (usb_hcd_is_primary_hcd(hcd)) {
3061 if (hcd->irq > 0)
3062 free_irq(hcd->irq, hcd);
3063 }
3064
3065 usb_deregister_bus(&hcd->self);
3066 hcd_buffer_destroy(hcd);
3067
3068 usb_phy_roothub_power_off(hcd->phy_roothub);
3069 usb_phy_roothub_exit(hcd->phy_roothub);
3070
3071 usb_put_invalidate_rhdev(hcd);
3072 hcd->flags = 0;
3073}
3074EXPORT_SYMBOL_GPL(usb_remove_hcd);
3075
3076void
3077usb_hcd_platform_shutdown(struct platform_device *dev)
3078{
3079 struct usb_hcd *hcd = platform_get_drvdata(dev);
3080
3081 /* No need for pm_runtime_put(), we're shutting down */
3082 pm_runtime_get_sync(&dev->dev);
3083
3084 if (hcd->driver->shutdown)
3085 hcd->driver->shutdown(hcd);
3086}
3087EXPORT_SYMBOL_GPL(usb_hcd_platform_shutdown);
3088
3089int usb_hcd_setup_local_mem(struct usb_hcd *hcd, phys_addr_t phys_addr,
3090 dma_addr_t dma, size_t size)
3091{
3092 int err;
3093 void *local_mem;
3094
3095 hcd->localmem_pool = devm_gen_pool_create(hcd->self.sysdev, 4,
3096 dev_to_node(hcd->self.sysdev),
3097 dev_name(hcd->self.sysdev));
3098 if (IS_ERR(hcd->localmem_pool))
3099 return PTR_ERR(hcd->localmem_pool);
3100
3101 /*
3102 * if a physical SRAM address was passed, map it, otherwise
3103 * allocate system memory as a buffer.
3104 */
3105 if (phys_addr)
3106 local_mem = devm_memremap(hcd->self.sysdev, phys_addr,
3107 size, MEMREMAP_WC);
3108 else
3109 local_mem = dmam_alloc_attrs(hcd->self.sysdev, size, &dma,
3110 GFP_KERNEL,
3111 DMA_ATTR_WRITE_COMBINE);
3112
3113 if (IS_ERR_OR_NULL(local_mem)) {
3114 if (!local_mem)
3115 return -ENOMEM;
3116
3117 return PTR_ERR(local_mem);
3118 }
3119
3120 /*
3121 * Here we pass a dma_addr_t but the arg type is a phys_addr_t.
3122 * It's not backed by system memory and thus there's no kernel mapping
3123 * for it.
3124 */
3125 err = gen_pool_add_virt(hcd->localmem_pool, (unsigned long)local_mem,
3126 dma, size, dev_to_node(hcd->self.sysdev));
3127 if (err < 0) {
3128 dev_err(hcd->self.sysdev, "gen_pool_add_virt failed with %d\n",
3129 err);
3130 return err;
3131 }
3132
3133 return 0;
3134}
3135EXPORT_SYMBOL_GPL(usb_hcd_setup_local_mem);
3136
3137/*-------------------------------------------------------------------------*/
3138
3139#if IS_ENABLED(CONFIG_USB_MON)
3140
3141const struct usb_mon_operations *mon_ops;
3142
3143/*
3144 * The registration is unlocked.
3145 * We do it this way because we do not want to lock in hot paths.
3146 *
3147 * Notice that the code is minimally error-proof. Because usbmon needs
3148 * symbols from usbcore, usbcore gets referenced and cannot be unloaded first.
3149 */
3150
3151int usb_mon_register(const struct usb_mon_operations *ops)
3152{
3153
3154 if (mon_ops)
3155 return -EBUSY;
3156
3157 mon_ops = ops;
3158 mb();
3159 return 0;
3160}
3161EXPORT_SYMBOL_GPL (usb_mon_register);
3162
3163void usb_mon_deregister (void)
3164{
3165
3166 if (mon_ops == NULL) {
3167 printk(KERN_ERR "USB: monitor was not registered\n");
3168 return;
3169 }
3170 mon_ops = NULL;
3171 mb();
3172}
3173EXPORT_SYMBOL_GPL (usb_mon_deregister);
3174
3175#endif /* CONFIG_USB_MON || CONFIG_USB_MON_MODULE */