usb.h 69 KB

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  1. #ifndef __LINUX_USB_H
  2. #define __LINUX_USB_H
  3. #include <linux/mod_devicetable.h>
  4. #include <linux/usb/ch9.h>
  5. #define USB_MAJOR 180
  6. #define USB_DEVICE_MAJOR 189
  7. #ifdef __KERNEL__
  8. #include <linux/errno.h> /* for -ENODEV */
  9. #include <linux/delay.h> /* for mdelay() */
  10. #include <linux/interrupt.h> /* for in_interrupt() */
  11. #include <linux/list.h> /* for struct list_head */
  12. #include <linux/kref.h> /* for struct kref */
  13. #include <linux/device.h> /* for struct device */
  14. #include <linux/fs.h> /* for struct file_operations */
  15. #include <linux/completion.h> /* for struct completion */
  16. #include <linux/sched.h> /* for current && schedule_timeout */
  17. #include <linux/mutex.h> /* for struct mutex */
  18. #include <linux/pm_runtime.h> /* for runtime PM */
  19. struct usb_device;
  20. struct usb_driver;
  21. struct wusb_dev;
  22. /*-------------------------------------------------------------------------*/
  23. /*
  24. * Host-side wrappers for standard USB descriptors ... these are parsed
  25. * from the data provided by devices. Parsing turns them from a flat
  26. * sequence of descriptors into a hierarchy:
  27. *
  28. * - devices have one (usually) or more configs;
  29. * - configs have one (often) or more interfaces;
  30. * - interfaces have one (usually) or more settings;
  31. * - each interface setting has zero or (usually) more endpoints.
  32. * - a SuperSpeed endpoint has a companion descriptor
  33. *
  34. * And there might be other descriptors mixed in with those.
  35. *
  36. * Devices may also have class-specific or vendor-specific descriptors.
  37. */
  38. struct ep_device;
  39. /**
  40. * struct usb_host_endpoint - host-side endpoint descriptor and queue
  41. * @desc: descriptor for this endpoint, wMaxPacketSize in native byteorder
  42. * @ss_ep_comp: SuperSpeed companion descriptor for this endpoint
  43. * @urb_list: urbs queued to this endpoint; maintained by usbcore
  44. * @hcpriv: for use by HCD; typically holds hardware dma queue head (QH)
  45. * with one or more transfer descriptors (TDs) per urb
  46. * @ep_dev: ep_device for sysfs info
  47. * @extra: descriptors following this endpoint in the configuration
  48. * @extralen: how many bytes of "extra" are valid
  49. * @enabled: URBs may be submitted to this endpoint
  50. *
  51. * USB requests are always queued to a given endpoint, identified by a
  52. * descriptor within an active interface in a given USB configuration.
  53. */
  54. struct usb_host_endpoint {
  55. struct usb_endpoint_descriptor desc;
  56. struct usb_ss_ep_comp_descriptor ss_ep_comp;
  57. struct list_head urb_list;
  58. void *hcpriv;
  59. struct ep_device *ep_dev; /* For sysfs info */
  60. unsigned char *extra; /* Extra descriptors */
  61. int extralen;
  62. int enabled;
  63. };
  64. /* host-side wrapper for one interface setting's parsed descriptors */
  65. struct usb_host_interface {
  66. struct usb_interface_descriptor desc;
  67. int extralen;
  68. unsigned char *extra; /* Extra descriptors */
  69. /* array of desc.bNumEndpoint endpoints associated with this
  70. * interface setting. these will be in no particular order.
  71. */
  72. struct usb_host_endpoint *endpoint;
  73. char *string; /* iInterface string, if present */
  74. };
  75. enum usb_interface_condition {
  76. USB_INTERFACE_UNBOUND = 0,
  77. USB_INTERFACE_BINDING,
  78. USB_INTERFACE_BOUND,
  79. USB_INTERFACE_UNBINDING,
  80. };
  81. /**
  82. * struct usb_interface - what usb device drivers talk to
  83. * @altsetting: array of interface structures, one for each alternate
  84. * setting that may be selected. Each one includes a set of
  85. * endpoint configurations. They will be in no particular order.
  86. * @cur_altsetting: the current altsetting.
  87. * @num_altsetting: number of altsettings defined.
  88. * @intf_assoc: interface association descriptor
  89. * @minor: the minor number assigned to this interface, if this
  90. * interface is bound to a driver that uses the USB major number.
  91. * If this interface does not use the USB major, this field should
  92. * be unused. The driver should set this value in the probe()
  93. * function of the driver, after it has been assigned a minor
  94. * number from the USB core by calling usb_register_dev().
  95. * @condition: binding state of the interface: not bound, binding
  96. * (in probe()), bound to a driver, or unbinding (in disconnect())
  97. * @sysfs_files_created: sysfs attributes exist
  98. * @ep_devs_created: endpoint child pseudo-devices exist
  99. * @unregistering: flag set when the interface is being unregistered
  100. * @needs_remote_wakeup: flag set when the driver requires remote-wakeup
  101. * capability during autosuspend.
  102. * @needs_altsetting0: flag set when a set-interface request for altsetting 0
  103. * has been deferred.
  104. * @needs_binding: flag set when the driver should be re-probed or unbound
  105. * following a reset or suspend operation it doesn't support.
  106. * @dev: driver model's view of this device
  107. * @usb_dev: if an interface is bound to the USB major, this will point
  108. * to the sysfs representation for that device.
  109. * @pm_usage_cnt: PM usage counter for this interface
  110. * @reset_ws: Used for scheduling resets from atomic context.
  111. * @reset_running: set to 1 if the interface is currently running a
  112. * queued reset so that usb_cancel_queued_reset() doesn't try to
  113. * remove from the workqueue when running inside the worker
  114. * thread. See __usb_queue_reset_device().
  115. * @resetting_device: USB core reset the device, so use alt setting 0 as
  116. * current; needs bandwidth alloc after reset.
  117. *
  118. * USB device drivers attach to interfaces on a physical device. Each
  119. * interface encapsulates a single high level function, such as feeding
  120. * an audio stream to a speaker or reporting a change in a volume control.
  121. * Many USB devices only have one interface. The protocol used to talk to
  122. * an interface's endpoints can be defined in a usb "class" specification,
  123. * or by a product's vendor. The (default) control endpoint is part of
  124. * every interface, but is never listed among the interface's descriptors.
  125. *
  126. * The driver that is bound to the interface can use standard driver model
  127. * calls such as dev_get_drvdata() on the dev member of this structure.
  128. *
  129. * Each interface may have alternate settings. The initial configuration
  130. * of a device sets altsetting 0, but the device driver can change
  131. * that setting using usb_set_interface(). Alternate settings are often
  132. * used to control the use of periodic endpoints, such as by having
  133. * different endpoints use different amounts of reserved USB bandwidth.
  134. * All standards-conformant USB devices that use isochronous endpoints
  135. * will use them in non-default settings.
  136. *
  137. * The USB specification says that alternate setting numbers must run from
  138. * 0 to one less than the total number of alternate settings. But some
  139. * devices manage to mess this up, and the structures aren't necessarily
  140. * stored in numerical order anyhow. Use usb_altnum_to_altsetting() to
  141. * look up an alternate setting in the altsetting array based on its number.
  142. */
  143. struct usb_interface {
  144. /* array of alternate settings for this interface,
  145. * stored in no particular order */
  146. struct usb_host_interface *altsetting;
  147. struct usb_host_interface *cur_altsetting; /* the currently
  148. * active alternate setting */
  149. unsigned num_altsetting; /* number of alternate settings */
  150. /* If there is an interface association descriptor then it will list
  151. * the associated interfaces */
  152. struct usb_interface_assoc_descriptor *intf_assoc;
  153. int minor; /* minor number this interface is
  154. * bound to */
  155. enum usb_interface_condition condition; /* state of binding */
  156. unsigned sysfs_files_created:1; /* the sysfs attributes exist */
  157. unsigned ep_devs_created:1; /* endpoint "devices" exist */
  158. unsigned unregistering:1; /* unregistration is in progress */
  159. unsigned needs_remote_wakeup:1; /* driver requires remote wakeup */
  160. unsigned needs_altsetting0:1; /* switch to altsetting 0 is pending */
  161. unsigned needs_binding:1; /* needs delayed unbind/rebind */
  162. unsigned reset_running:1;
  163. unsigned resetting_device:1; /* true: bandwidth alloc after reset */
  164. struct device dev; /* interface specific device info */
  165. struct device *usb_dev;
  166. atomic_t pm_usage_cnt; /* usage counter for autosuspend */
  167. struct work_struct reset_ws; /* for resets in atomic context */
  168. };
  169. #define to_usb_interface(d) container_of(d, struct usb_interface, dev)
  170. static inline void *usb_get_intfdata(struct usb_interface *intf)
  171. {
  172. return dev_get_drvdata(&intf->dev);
  173. }
  174. static inline void usb_set_intfdata(struct usb_interface *intf, void *data)
  175. {
  176. dev_set_drvdata(&intf->dev, data);
  177. }
  178. struct usb_interface *usb_get_intf(struct usb_interface *intf);
  179. void usb_put_intf(struct usb_interface *intf);
  180. /* this maximum is arbitrary */
  181. #define USB_MAXINTERFACES 32
  182. #define USB_MAXIADS (USB_MAXINTERFACES/2)
  183. /**
  184. * struct usb_interface_cache - long-term representation of a device interface
  185. * @num_altsetting: number of altsettings defined.
  186. * @ref: reference counter.
  187. * @altsetting: variable-length array of interface structures, one for
  188. * each alternate setting that may be selected. Each one includes a
  189. * set of endpoint configurations. They will be in no particular order.
  190. *
  191. * These structures persist for the lifetime of a usb_device, unlike
  192. * struct usb_interface (which persists only as long as its configuration
  193. * is installed). The altsetting arrays can be accessed through these
  194. * structures at any time, permitting comparison of configurations and
  195. * providing support for the /proc/bus/usb/devices pseudo-file.
  196. */
  197. struct usb_interface_cache {
  198. unsigned num_altsetting; /* number of alternate settings */
  199. struct kref ref; /* reference counter */
  200. /* variable-length array of alternate settings for this interface,
  201. * stored in no particular order */
  202. struct usb_host_interface altsetting[0];
  203. };
  204. #define ref_to_usb_interface_cache(r) \
  205. container_of(r, struct usb_interface_cache, ref)
  206. #define altsetting_to_usb_interface_cache(a) \
  207. container_of(a, struct usb_interface_cache, altsetting[0])
  208. /**
  209. * struct usb_host_config - representation of a device's configuration
  210. * @desc: the device's configuration descriptor.
  211. * @string: pointer to the cached version of the iConfiguration string, if
  212. * present for this configuration.
  213. * @intf_assoc: list of any interface association descriptors in this config
  214. * @interface: array of pointers to usb_interface structures, one for each
  215. * interface in the configuration. The number of interfaces is stored
  216. * in desc.bNumInterfaces. These pointers are valid only while the
  217. * the configuration is active.
  218. * @intf_cache: array of pointers to usb_interface_cache structures, one
  219. * for each interface in the configuration. These structures exist
  220. * for the entire life of the device.
  221. * @extra: pointer to buffer containing all extra descriptors associated
  222. * with this configuration (those preceding the first interface
  223. * descriptor).
  224. * @extralen: length of the extra descriptors buffer.
  225. *
  226. * USB devices may have multiple configurations, but only one can be active
  227. * at any time. Each encapsulates a different operational environment;
  228. * for example, a dual-speed device would have separate configurations for
  229. * full-speed and high-speed operation. The number of configurations
  230. * available is stored in the device descriptor as bNumConfigurations.
  231. *
  232. * A configuration can contain multiple interfaces. Each corresponds to
  233. * a different function of the USB device, and all are available whenever
  234. * the configuration is active. The USB standard says that interfaces
  235. * are supposed to be numbered from 0 to desc.bNumInterfaces-1, but a lot
  236. * of devices get this wrong. In addition, the interface array is not
  237. * guaranteed to be sorted in numerical order. Use usb_ifnum_to_if() to
  238. * look up an interface entry based on its number.
  239. *
  240. * Device drivers should not attempt to activate configurations. The choice
  241. * of which configuration to install is a policy decision based on such
  242. * considerations as available power, functionality provided, and the user's
  243. * desires (expressed through userspace tools). However, drivers can call
  244. * usb_reset_configuration() to reinitialize the current configuration and
  245. * all its interfaces.
  246. */
  247. struct usb_host_config {
  248. struct usb_config_descriptor desc;
  249. char *string; /* iConfiguration string, if present */
  250. /* List of any Interface Association Descriptors in this
  251. * configuration. */
  252. struct usb_interface_assoc_descriptor *intf_assoc[USB_MAXIADS];
  253. /* the interfaces associated with this configuration,
  254. * stored in no particular order */
  255. struct usb_interface *interface[USB_MAXINTERFACES];
  256. /* Interface information available even when this is not the
  257. * active configuration */
  258. struct usb_interface_cache *intf_cache[USB_MAXINTERFACES];
  259. unsigned char *extra; /* Extra descriptors */
  260. int extralen;
  261. };
  262. /* USB2.0 and USB3.0 device BOS descriptor set */
  263. struct usb_host_bos {
  264. struct usb_bos_descriptor *desc;
  265. /* wireless cap descriptor is handled by wusb */
  266. struct usb_ext_cap_descriptor *ext_cap;
  267. struct usb_ss_cap_descriptor *ss_cap;
  268. struct usb_ss_container_id_descriptor *ss_id;
  269. };
  270. int __usb_get_extra_descriptor(char *buffer, unsigned size,
  271. unsigned char type, void **ptr);
  272. #define usb_get_extra_descriptor(ifpoint, type, ptr) \
  273. __usb_get_extra_descriptor((ifpoint)->extra, \
  274. (ifpoint)->extralen, \
  275. type, (void **)ptr)
  276. /* ----------------------------------------------------------------------- */
  277. /* USB device number allocation bitmap */
  278. struct usb_devmap {
  279. unsigned long devicemap[128 / (8*sizeof(unsigned long))];
  280. };
  281. /*
  282. * Allocated per bus (tree of devices) we have:
  283. */
  284. struct usb_bus {
  285. struct device *controller; /* host/master side hardware */
  286. int busnum; /* Bus number (in order of reg) */
  287. const char *bus_name; /* stable id (PCI slot_name etc) */
  288. u8 uses_dma; /* Does the host controller use DMA? */
  289. u8 uses_pio_for_control; /*
  290. * Does the host controller use PIO
  291. * for control transfers?
  292. */
  293. u8 otg_port; /* 0, or number of OTG/HNP port */
  294. unsigned is_b_host:1; /* true during some HNP roleswitches */
  295. unsigned b_hnp_enable:1; /* OTG: did A-Host enable HNP? */
  296. unsigned no_stop_on_short:1; /*
  297. * Quirk: some controllers don't stop
  298. * the ep queue on a short transfer
  299. * with the URB_SHORT_NOT_OK flag set.
  300. */
  301. unsigned sg_tablesize; /* 0 or largest number of sg list entries */
  302. int devnum_next; /* Next open device number in
  303. * round-robin allocation */
  304. struct usb_devmap devmap; /* device address allocation map */
  305. struct usb_device *root_hub; /* Root hub */
  306. struct usb_bus *hs_companion; /* Companion EHCI bus, if any */
  307. struct list_head bus_list; /* list of busses */
  308. int bandwidth_allocated; /* on this bus: how much of the time
  309. * reserved for periodic (intr/iso)
  310. * requests is used, on average?
  311. * Units: microseconds/frame.
  312. * Limits: Full/low speed reserve 90%,
  313. * while high speed reserves 80%.
  314. */
  315. int bandwidth_int_reqs; /* number of Interrupt requests */
  316. int bandwidth_isoc_reqs; /* number of Isoc. requests */
  317. unsigned resuming_ports; /* bit array: resuming root-hub ports */
  318. #if defined(CONFIG_USB_MON) || defined(CONFIG_USB_MON_MODULE)
  319. struct mon_bus *mon_bus; /* non-null when associated */
  320. int monitored; /* non-zero when monitored */
  321. #endif
  322. };
  323. /* ----------------------------------------------------------------------- */
  324. /* This is arbitrary.
  325. * From USB 2.0 spec Table 11-13, offset 7, a hub can
  326. * have up to 255 ports. The most yet reported is 10.
  327. *
  328. * Current Wireless USB host hardware (Intel i1480 for example) allows
  329. * up to 22 devices to connect. Upcoming hardware might raise that
  330. * limit. Because the arrays need to add a bit for hub status data, we
  331. * do 31, so plus one evens out to four bytes.
  332. */
  333. #define USB_MAXCHILDREN (31)
  334. struct usb_tt;
  335. enum usb_device_removable {
  336. USB_DEVICE_REMOVABLE_UNKNOWN = 0,
  337. USB_DEVICE_REMOVABLE,
  338. USB_DEVICE_FIXED,
  339. };
  340. enum usb_port_connect_type {
  341. USB_PORT_CONNECT_TYPE_UNKNOWN = 0,
  342. USB_PORT_CONNECT_TYPE_HOT_PLUG,
  343. USB_PORT_CONNECT_TYPE_HARD_WIRED,
  344. USB_PORT_NOT_USED,
  345. };
  346. /*
  347. * USB 3.0 Link Power Management (LPM) parameters.
  348. *
  349. * PEL and SEL are USB 3.0 Link PM latencies for device-initiated LPM exit.
  350. * MEL is the USB 3.0 Link PM latency for host-initiated LPM exit.
  351. * All three are stored in nanoseconds.
  352. */
  353. struct usb3_lpm_parameters {
  354. /*
  355. * Maximum exit latency (MEL) for the host to send a packet to the
  356. * device (either a Ping for isoc endpoints, or a data packet for
  357. * interrupt endpoints), the hubs to decode the packet, and for all hubs
  358. * in the path to transition the links to U0.
  359. */
  360. unsigned int mel;
  361. /*
  362. * Maximum exit latency for a device-initiated LPM transition to bring
  363. * all links into U0. Abbreviated as "PEL" in section 9.4.12 of the USB
  364. * 3.0 spec, with no explanation of what "P" stands for. "Path"?
  365. */
  366. unsigned int pel;
  367. /*
  368. * The System Exit Latency (SEL) includes PEL, and three other
  369. * latencies. After a device initiates a U0 transition, it will take
  370. * some time from when the device sends the ERDY to when it will finally
  371. * receive the data packet. Basically, SEL should be the worse-case
  372. * latency from when a device starts initiating a U0 transition to when
  373. * it will get data.
  374. */
  375. unsigned int sel;
  376. /*
  377. * The idle timeout value that is currently programmed into the parent
  378. * hub for this device. When the timer counts to zero, the parent hub
  379. * will initiate an LPM transition to either U1 or U2.
  380. */
  381. int timeout;
  382. };
  383. /**
  384. * struct usb_device - kernel's representation of a USB device
  385. * @devnum: device number; address on a USB bus
  386. * @devpath: device ID string for use in messages (e.g., /port/...)
  387. * @route: tree topology hex string for use with xHCI
  388. * @state: device state: configured, not attached, etc.
  389. * @speed: device speed: high/full/low (or error)
  390. * @tt: Transaction Translator info; used with low/full speed dev, highspeed hub
  391. * @ttport: device port on that tt hub
  392. * @toggle: one bit for each endpoint, with ([0] = IN, [1] = OUT) endpoints
  393. * @parent: our hub, unless we're the root
  394. * @bus: bus we're part of
  395. * @ep0: endpoint 0 data (default control pipe)
  396. * @dev: generic device interface
  397. * @descriptor: USB device descriptor
  398. * @bos: USB device BOS descriptor set
  399. * @config: all of the device's configs
  400. * @actconfig: the active configuration
  401. * @ep_in: array of IN endpoints
  402. * @ep_out: array of OUT endpoints
  403. * @rawdescriptors: raw descriptors for each config
  404. * @bus_mA: Current available from the bus
  405. * @portnum: parent port number (origin 1)
  406. * @level: number of USB hub ancestors
  407. * @can_submit: URBs may be submitted
  408. * @persist_enabled: USB_PERSIST enabled for this device
  409. * @have_langid: whether string_langid is valid
  410. * @authorized: policy has said we can use it;
  411. * (user space) policy determines if we authorize this device to be
  412. * used or not. By default, wired USB devices are authorized.
  413. * WUSB devices are not, until we authorize them from user space.
  414. * FIXME -- complete doc
  415. * @authenticated: Crypto authentication passed
  416. * @wusb: device is Wireless USB
  417. * @lpm_capable: device supports LPM
  418. * @usb2_hw_lpm_capable: device can perform USB2 hardware LPM
  419. * @usb2_hw_lpm_enabled: USB2 hardware LPM enabled
  420. * @string_langid: language ID for strings
  421. * @product: iProduct string, if present (static)
  422. * @manufacturer: iManufacturer string, if present (static)
  423. * @serial: iSerialNumber string, if present (static)
  424. * @filelist: usbfs files that are open to this device
  425. * @usb_classdev: USB class device that was created for usbfs device
  426. * access from userspace
  427. * @usbfs_dentry: usbfs dentry entry for the device
  428. * @maxchild: number of ports if hub
  429. * @quirks: quirks of the whole device
  430. * @urbnum: number of URBs submitted for the whole device
  431. * @active_duration: total time device is not suspended
  432. * @connect_time: time device was first connected
  433. * @do_remote_wakeup: remote wakeup should be enabled
  434. * @reset_resume: needs reset instead of resume
  435. * @port_is_suspended: the upstream port is suspended (L2 or U3)
  436. * @wusb_dev: if this is a Wireless USB device, link to the WUSB
  437. * specific data for the device.
  438. * @slot_id: Slot ID assigned by xHCI
  439. * @removable: Device can be physically removed from this port
  440. * @u1_params: exit latencies for USB3 U1 LPM state, and hub-initiated timeout.
  441. * @u2_params: exit latencies for USB3 U2 LPM state, and hub-initiated timeout.
  442. * @lpm_disable_count: Ref count used by usb_disable_lpm() and usb_enable_lpm()
  443. * to keep track of the number of functions that require USB 3.0 Link Power
  444. * Management to be disabled for this usb_device. This count should only
  445. * be manipulated by those functions, with the bandwidth_mutex is held.
  446. *
  447. * Notes:
  448. * Usbcore drivers should not set usbdev->state directly. Instead use
  449. * usb_set_device_state().
  450. */
  451. struct usb_device {
  452. int devnum;
  453. char devpath[16];
  454. u32 route;
  455. enum usb_device_state state;
  456. enum usb_device_speed speed;
  457. struct usb_tt *tt;
  458. int ttport;
  459. unsigned int toggle[2];
  460. struct usb_device *parent;
  461. struct usb_bus *bus;
  462. struct usb_host_endpoint ep0;
  463. struct device dev;
  464. struct usb_device_descriptor descriptor;
  465. struct usb_host_bos *bos;
  466. struct usb_host_config *config;
  467. struct usb_host_config *actconfig;
  468. struct usb_host_endpoint *ep_in[16];
  469. struct usb_host_endpoint *ep_out[16];
  470. char **rawdescriptors;
  471. unsigned short bus_mA;
  472. u8 portnum;
  473. u8 level;
  474. unsigned can_submit:1;
  475. unsigned persist_enabled:1;
  476. unsigned have_langid:1;
  477. unsigned authorized:1;
  478. unsigned authenticated:1;
  479. unsigned wusb:1;
  480. unsigned lpm_capable:1;
  481. unsigned usb2_hw_lpm_capable:1;
  482. unsigned usb2_hw_lpm_enabled:1;
  483. unsigned usb3_lpm_enabled:1;
  484. int string_langid;
  485. /* static strings from the device */
  486. char *product;
  487. char *manufacturer;
  488. char *serial;
  489. struct list_head filelist;
  490. int maxchild;
  491. u32 quirks;
  492. atomic_t urbnum;
  493. unsigned long active_duration;
  494. #ifdef CONFIG_PM
  495. unsigned long connect_time;
  496. unsigned do_remote_wakeup:1;
  497. unsigned reset_resume:1;
  498. unsigned port_is_suspended:1;
  499. #endif
  500. struct wusb_dev *wusb_dev;
  501. int slot_id;
  502. enum usb_device_removable removable;
  503. struct usb3_lpm_parameters u1_params;
  504. struct usb3_lpm_parameters u2_params;
  505. unsigned lpm_disable_count;
  506. };
  507. #define to_usb_device(d) container_of(d, struct usb_device, dev)
  508. static inline struct usb_device *interface_to_usbdev(struct usb_interface *intf)
  509. {
  510. return to_usb_device(intf->dev.parent);
  511. }
  512. extern struct usb_device *usb_get_dev(struct usb_device *dev);
  513. extern void usb_put_dev(struct usb_device *dev);
  514. extern struct usb_device *usb_hub_find_child(struct usb_device *hdev,
  515. int port1);
  516. /**
  517. * usb_hub_for_each_child - iterate over all child devices on the hub
  518. * @hdev: USB device belonging to the usb hub
  519. * @port1: portnum associated with child device
  520. * @child: child device pointer
  521. */
  522. #define usb_hub_for_each_child(hdev, port1, child) \
  523. for (port1 = 1, child = usb_hub_find_child(hdev, port1); \
  524. port1 <= hdev->maxchild; \
  525. child = usb_hub_find_child(hdev, ++port1)) \
  526. if (!child) continue; else
  527. /* USB device locking */
  528. #define usb_lock_device(udev) device_lock(&(udev)->dev)
  529. #define usb_unlock_device(udev) device_unlock(&(udev)->dev)
  530. #define usb_trylock_device(udev) device_trylock(&(udev)->dev)
  531. extern int usb_lock_device_for_reset(struct usb_device *udev,
  532. const struct usb_interface *iface);
  533. /* USB port reset for device reinitialization */
  534. extern int usb_reset_device(struct usb_device *dev);
  535. extern void usb_queue_reset_device(struct usb_interface *dev);
  536. #ifdef CONFIG_ACPI
  537. extern int usb_acpi_set_power_state(struct usb_device *hdev, int index,
  538. bool enable);
  539. extern bool usb_acpi_power_manageable(struct usb_device *hdev, int index);
  540. #else
  541. static inline int usb_acpi_set_power_state(struct usb_device *hdev, int index,
  542. bool enable) { return 0; }
  543. static inline bool usb_acpi_power_manageable(struct usb_device *hdev, int index)
  544. { return true; }
  545. #endif
  546. /* USB autosuspend and autoresume */
  547. #ifdef CONFIG_USB_SUSPEND
  548. extern void usb_enable_autosuspend(struct usb_device *udev);
  549. extern void usb_disable_autosuspend(struct usb_device *udev);
  550. extern int usb_autopm_get_interface(struct usb_interface *intf);
  551. extern void usb_autopm_put_interface(struct usb_interface *intf);
  552. extern int usb_autopm_get_interface_async(struct usb_interface *intf);
  553. extern void usb_autopm_put_interface_async(struct usb_interface *intf);
  554. extern void usb_autopm_get_interface_no_resume(struct usb_interface *intf);
  555. extern void usb_autopm_put_interface_no_suspend(struct usb_interface *intf);
  556. static inline void usb_mark_last_busy(struct usb_device *udev)
  557. {
  558. pm_runtime_mark_last_busy(&udev->dev);
  559. }
  560. #else
  561. static inline int usb_enable_autosuspend(struct usb_device *udev)
  562. { return 0; }
  563. static inline int usb_disable_autosuspend(struct usb_device *udev)
  564. { return 0; }
  565. static inline int usb_autopm_get_interface(struct usb_interface *intf)
  566. { return 0; }
  567. static inline int usb_autopm_get_interface_async(struct usb_interface *intf)
  568. { return 0; }
  569. static inline void usb_autopm_put_interface(struct usb_interface *intf)
  570. { }
  571. static inline void usb_autopm_put_interface_async(struct usb_interface *intf)
  572. { }
  573. static inline void usb_autopm_get_interface_no_resume(
  574. struct usb_interface *intf)
  575. { }
  576. static inline void usb_autopm_put_interface_no_suspend(
  577. struct usb_interface *intf)
  578. { }
  579. static inline void usb_mark_last_busy(struct usb_device *udev)
  580. { }
  581. #endif
  582. extern int usb_disable_lpm(struct usb_device *udev);
  583. extern void usb_enable_lpm(struct usb_device *udev);
  584. /* Same as above, but these functions lock/unlock the bandwidth_mutex. */
  585. extern int usb_unlocked_disable_lpm(struct usb_device *udev);
  586. extern void usb_unlocked_enable_lpm(struct usb_device *udev);
  587. extern int usb_disable_ltm(struct usb_device *udev);
  588. extern void usb_enable_ltm(struct usb_device *udev);
  589. static inline bool usb_device_supports_ltm(struct usb_device *udev)
  590. {
  591. if (udev->speed != USB_SPEED_SUPER || !udev->bos || !udev->bos->ss_cap)
  592. return false;
  593. return udev->bos->ss_cap->bmAttributes & USB_LTM_SUPPORT;
  594. }
  595. /*-------------------------------------------------------------------------*/
  596. /* for drivers using iso endpoints */
  597. extern int usb_get_current_frame_number(struct usb_device *usb_dev);
  598. /* Sets up a group of bulk endpoints to support multiple stream IDs. */
  599. extern int usb_alloc_streams(struct usb_interface *interface,
  600. struct usb_host_endpoint **eps, unsigned int num_eps,
  601. unsigned int num_streams, gfp_t mem_flags);
  602. /* Reverts a group of bulk endpoints back to not using stream IDs. */
  603. extern void usb_free_streams(struct usb_interface *interface,
  604. struct usb_host_endpoint **eps, unsigned int num_eps,
  605. gfp_t mem_flags);
  606. /* used these for multi-interface device registration */
  607. extern int usb_driver_claim_interface(struct usb_driver *driver,
  608. struct usb_interface *iface, void *priv);
  609. /**
  610. * usb_interface_claimed - returns true iff an interface is claimed
  611. * @iface: the interface being checked
  612. *
  613. * Returns true (nonzero) iff the interface is claimed, else false (zero).
  614. * Callers must own the driver model's usb bus readlock. So driver
  615. * probe() entries don't need extra locking, but other call contexts
  616. * may need to explicitly claim that lock.
  617. *
  618. */
  619. static inline int usb_interface_claimed(struct usb_interface *iface)
  620. {
  621. return (iface->dev.driver != NULL);
  622. }
  623. extern void usb_driver_release_interface(struct usb_driver *driver,
  624. struct usb_interface *iface);
  625. const struct usb_device_id *usb_match_id(struct usb_interface *interface,
  626. const struct usb_device_id *id);
  627. extern int usb_match_one_id(struct usb_interface *interface,
  628. const struct usb_device_id *id);
  629. extern struct usb_interface *usb_find_interface(struct usb_driver *drv,
  630. int minor);
  631. extern struct usb_interface *usb_ifnum_to_if(const struct usb_device *dev,
  632. unsigned ifnum);
  633. extern struct usb_host_interface *usb_altnum_to_altsetting(
  634. const struct usb_interface *intf, unsigned int altnum);
  635. extern struct usb_host_interface *usb_find_alt_setting(
  636. struct usb_host_config *config,
  637. unsigned int iface_num,
  638. unsigned int alt_num);
  639. /**
  640. * usb_make_path - returns stable device path in the usb tree
  641. * @dev: the device whose path is being constructed
  642. * @buf: where to put the string
  643. * @size: how big is "buf"?
  644. *
  645. * Returns length of the string (> 0) or negative if size was too small.
  646. *
  647. * This identifier is intended to be "stable", reflecting physical paths in
  648. * hardware such as physical bus addresses for host controllers or ports on
  649. * USB hubs. That makes it stay the same until systems are physically
  650. * reconfigured, by re-cabling a tree of USB devices or by moving USB host
  651. * controllers. Adding and removing devices, including virtual root hubs
  652. * in host controller driver modules, does not change these path identifiers;
  653. * neither does rebooting or re-enumerating. These are more useful identifiers
  654. * than changeable ("unstable") ones like bus numbers or device addresses.
  655. *
  656. * With a partial exception for devices connected to USB 2.0 root hubs, these
  657. * identifiers are also predictable. So long as the device tree isn't changed,
  658. * plugging any USB device into a given hub port always gives it the same path.
  659. * Because of the use of "companion" controllers, devices connected to ports on
  660. * USB 2.0 root hubs (EHCI host controllers) will get one path ID if they are
  661. * high speed, and a different one if they are full or low speed.
  662. */
  663. static inline int usb_make_path(struct usb_device *dev, char *buf, size_t size)
  664. {
  665. int actual;
  666. actual = snprintf(buf, size, "usb-%s-%s", dev->bus->bus_name,
  667. dev->devpath);
  668. return (actual >= (int)size) ? -1 : actual;
  669. }
  670. /*-------------------------------------------------------------------------*/
  671. #define USB_DEVICE_ID_MATCH_DEVICE \
  672. (USB_DEVICE_ID_MATCH_VENDOR | USB_DEVICE_ID_MATCH_PRODUCT)
  673. #define USB_DEVICE_ID_MATCH_DEV_RANGE \
  674. (USB_DEVICE_ID_MATCH_DEV_LO | USB_DEVICE_ID_MATCH_DEV_HI)
  675. #define USB_DEVICE_ID_MATCH_DEVICE_AND_VERSION \
  676. (USB_DEVICE_ID_MATCH_DEVICE | USB_DEVICE_ID_MATCH_DEV_RANGE)
  677. #define USB_DEVICE_ID_MATCH_DEV_INFO \
  678. (USB_DEVICE_ID_MATCH_DEV_CLASS | \
  679. USB_DEVICE_ID_MATCH_DEV_SUBCLASS | \
  680. USB_DEVICE_ID_MATCH_DEV_PROTOCOL)
  681. #define USB_DEVICE_ID_MATCH_INT_INFO \
  682. (USB_DEVICE_ID_MATCH_INT_CLASS | \
  683. USB_DEVICE_ID_MATCH_INT_SUBCLASS | \
  684. USB_DEVICE_ID_MATCH_INT_PROTOCOL)
  685. /**
  686. * USB_DEVICE - macro used to describe a specific usb device
  687. * @vend: the 16 bit USB Vendor ID
  688. * @prod: the 16 bit USB Product ID
  689. *
  690. * This macro is used to create a struct usb_device_id that matches a
  691. * specific device.
  692. */
  693. #define USB_DEVICE(vend, prod) \
  694. .match_flags = USB_DEVICE_ID_MATCH_DEVICE, \
  695. .idVendor = (vend), \
  696. .idProduct = (prod)
  697. /**
  698. * USB_DEVICE_VER - describe a specific usb device with a version range
  699. * @vend: the 16 bit USB Vendor ID
  700. * @prod: the 16 bit USB Product ID
  701. * @lo: the bcdDevice_lo value
  702. * @hi: the bcdDevice_hi value
  703. *
  704. * This macro is used to create a struct usb_device_id that matches a
  705. * specific device, with a version range.
  706. */
  707. #define USB_DEVICE_VER(vend, prod, lo, hi) \
  708. .match_flags = USB_DEVICE_ID_MATCH_DEVICE_AND_VERSION, \
  709. .idVendor = (vend), \
  710. .idProduct = (prod), \
  711. .bcdDevice_lo = (lo), \
  712. .bcdDevice_hi = (hi)
  713. /**
  714. * USB_DEVICE_INTERFACE_CLASS - describe a usb device with a specific interface class
  715. * @vend: the 16 bit USB Vendor ID
  716. * @prod: the 16 bit USB Product ID
  717. * @cl: bInterfaceClass value
  718. *
  719. * This macro is used to create a struct usb_device_id that matches a
  720. * specific interface class of devices.
  721. */
  722. #define USB_DEVICE_INTERFACE_CLASS(vend, prod, cl) \
  723. .match_flags = USB_DEVICE_ID_MATCH_DEVICE | \
  724. USB_DEVICE_ID_MATCH_INT_CLASS, \
  725. .idVendor = (vend), \
  726. .idProduct = (prod), \
  727. .bInterfaceClass = (cl)
  728. /**
  729. * USB_DEVICE_INTERFACE_PROTOCOL - describe a usb device with a specific interface protocol
  730. * @vend: the 16 bit USB Vendor ID
  731. * @prod: the 16 bit USB Product ID
  732. * @pr: bInterfaceProtocol value
  733. *
  734. * This macro is used to create a struct usb_device_id that matches a
  735. * specific interface protocol of devices.
  736. */
  737. #define USB_DEVICE_INTERFACE_PROTOCOL(vend, prod, pr) \
  738. .match_flags = USB_DEVICE_ID_MATCH_DEVICE | \
  739. USB_DEVICE_ID_MATCH_INT_PROTOCOL, \
  740. .idVendor = (vend), \
  741. .idProduct = (prod), \
  742. .bInterfaceProtocol = (pr)
  743. /**
  744. * USB_DEVICE_INTERFACE_NUMBER - describe a usb device with a specific interface number
  745. * @vend: the 16 bit USB Vendor ID
  746. * @prod: the 16 bit USB Product ID
  747. * @num: bInterfaceNumber value
  748. *
  749. * This macro is used to create a struct usb_device_id that matches a
  750. * specific interface number of devices.
  751. */
  752. #define USB_DEVICE_INTERFACE_NUMBER(vend, prod, num) \
  753. .match_flags = USB_DEVICE_ID_MATCH_DEVICE | \
  754. USB_DEVICE_ID_MATCH_INT_NUMBER, \
  755. .idVendor = (vend), \
  756. .idProduct = (prod), \
  757. .bInterfaceNumber = (num)
  758. /**
  759. * USB_DEVICE_INFO - macro used to describe a class of usb devices
  760. * @cl: bDeviceClass value
  761. * @sc: bDeviceSubClass value
  762. * @pr: bDeviceProtocol value
  763. *
  764. * This macro is used to create a struct usb_device_id that matches a
  765. * specific class of devices.
  766. */
  767. #define USB_DEVICE_INFO(cl, sc, pr) \
  768. .match_flags = USB_DEVICE_ID_MATCH_DEV_INFO, \
  769. .bDeviceClass = (cl), \
  770. .bDeviceSubClass = (sc), \
  771. .bDeviceProtocol = (pr)
  772. /**
  773. * USB_INTERFACE_INFO - macro used to describe a class of usb interfaces
  774. * @cl: bInterfaceClass value
  775. * @sc: bInterfaceSubClass value
  776. * @pr: bInterfaceProtocol value
  777. *
  778. * This macro is used to create a struct usb_device_id that matches a
  779. * specific class of interfaces.
  780. */
  781. #define USB_INTERFACE_INFO(cl, sc, pr) \
  782. .match_flags = USB_DEVICE_ID_MATCH_INT_INFO, \
  783. .bInterfaceClass = (cl), \
  784. .bInterfaceSubClass = (sc), \
  785. .bInterfaceProtocol = (pr)
  786. /**
  787. * USB_DEVICE_AND_INTERFACE_INFO - describe a specific usb device with a class of usb interfaces
  788. * @vend: the 16 bit USB Vendor ID
  789. * @prod: the 16 bit USB Product ID
  790. * @cl: bInterfaceClass value
  791. * @sc: bInterfaceSubClass value
  792. * @pr: bInterfaceProtocol value
  793. *
  794. * This macro is used to create a struct usb_device_id that matches a
  795. * specific device with a specific class of interfaces.
  796. *
  797. * This is especially useful when explicitly matching devices that have
  798. * vendor specific bDeviceClass values, but standards-compliant interfaces.
  799. */
  800. #define USB_DEVICE_AND_INTERFACE_INFO(vend, prod, cl, sc, pr) \
  801. .match_flags = USB_DEVICE_ID_MATCH_INT_INFO \
  802. | USB_DEVICE_ID_MATCH_DEVICE, \
  803. .idVendor = (vend), \
  804. .idProduct = (prod), \
  805. .bInterfaceClass = (cl), \
  806. .bInterfaceSubClass = (sc), \
  807. .bInterfaceProtocol = (pr)
  808. /**
  809. * USB_VENDOR_AND_INTERFACE_INFO - describe a specific usb vendor with a class of usb interfaces
  810. * @vend: the 16 bit USB Vendor ID
  811. * @cl: bInterfaceClass value
  812. * @sc: bInterfaceSubClass value
  813. * @pr: bInterfaceProtocol value
  814. *
  815. * This macro is used to create a struct usb_device_id that matches a
  816. * specific vendor with a specific class of interfaces.
  817. *
  818. * This is especially useful when explicitly matching devices that have
  819. * vendor specific bDeviceClass values, but standards-compliant interfaces.
  820. */
  821. #define USB_VENDOR_AND_INTERFACE_INFO(vend, cl, sc, pr) \
  822. .match_flags = USB_DEVICE_ID_MATCH_INT_INFO \
  823. | USB_DEVICE_ID_MATCH_VENDOR, \
  824. .idVendor = (vend), \
  825. .bInterfaceClass = (cl), \
  826. .bInterfaceSubClass = (sc), \
  827. .bInterfaceProtocol = (pr)
  828. /* ----------------------------------------------------------------------- */
  829. /* Stuff for dynamic usb ids */
  830. struct usb_dynids {
  831. spinlock_t lock;
  832. struct list_head list;
  833. };
  834. struct usb_dynid {
  835. struct list_head node;
  836. struct usb_device_id id;
  837. };
  838. extern ssize_t usb_store_new_id(struct usb_dynids *dynids,
  839. struct device_driver *driver,
  840. const char *buf, size_t count);
  841. extern ssize_t usb_show_dynids(struct usb_dynids *dynids, char *buf);
  842. /**
  843. * struct usbdrv_wrap - wrapper for driver-model structure
  844. * @driver: The driver-model core driver structure.
  845. * @for_devices: Non-zero for device drivers, 0 for interface drivers.
  846. */
  847. struct usbdrv_wrap {
  848. struct device_driver driver;
  849. int for_devices;
  850. };
  851. /**
  852. * struct usb_driver - identifies USB interface driver to usbcore
  853. * @name: The driver name should be unique among USB drivers,
  854. * and should normally be the same as the module name.
  855. * @probe: Called to see if the driver is willing to manage a particular
  856. * interface on a device. If it is, probe returns zero and uses
  857. * usb_set_intfdata() to associate driver-specific data with the
  858. * interface. It may also use usb_set_interface() to specify the
  859. * appropriate altsetting. If unwilling to manage the interface,
  860. * return -ENODEV, if genuine IO errors occurred, an appropriate
  861. * negative errno value.
  862. * @disconnect: Called when the interface is no longer accessible, usually
  863. * because its device has been (or is being) disconnected or the
  864. * driver module is being unloaded.
  865. * @unlocked_ioctl: Used for drivers that want to talk to userspace through
  866. * the "usbfs" filesystem. This lets devices provide ways to
  867. * expose information to user space regardless of where they
  868. * do (or don't) show up otherwise in the filesystem.
  869. * @suspend: Called when the device is going to be suspended by the system.
  870. * @resume: Called when the device is being resumed by the system.
  871. * @reset_resume: Called when the suspended device has been reset instead
  872. * of being resumed.
  873. * @pre_reset: Called by usb_reset_device() when the device is about to be
  874. * reset. This routine must not return until the driver has no active
  875. * URBs for the device, and no more URBs may be submitted until the
  876. * post_reset method is called.
  877. * @post_reset: Called by usb_reset_device() after the device
  878. * has been reset
  879. * @id_table: USB drivers use ID table to support hotplugging.
  880. * Export this with MODULE_DEVICE_TABLE(usb,...). This must be set
  881. * or your driver's probe function will never get called.
  882. * @dynids: used internally to hold the list of dynamically added device
  883. * ids for this driver.
  884. * @drvwrap: Driver-model core structure wrapper.
  885. * @no_dynamic_id: if set to 1, the USB core will not allow dynamic ids to be
  886. * added to this driver by preventing the sysfs file from being created.
  887. * @supports_autosuspend: if set to 0, the USB core will not allow autosuspend
  888. * for interfaces bound to this driver.
  889. * @soft_unbind: if set to 1, the USB core will not kill URBs and disable
  890. * endpoints before calling the driver's disconnect method.
  891. * @disable_hub_initiated_lpm: if set to 0, the USB core will not allow hubs
  892. * to initiate lower power link state transitions when an idle timeout
  893. * occurs. Device-initiated USB 3.0 link PM will still be allowed.
  894. *
  895. * USB interface drivers must provide a name, probe() and disconnect()
  896. * methods, and an id_table. Other driver fields are optional.
  897. *
  898. * The id_table is used in hotplugging. It holds a set of descriptors,
  899. * and specialized data may be associated with each entry. That table
  900. * is used by both user and kernel mode hotplugging support.
  901. *
  902. * The probe() and disconnect() methods are called in a context where
  903. * they can sleep, but they should avoid abusing the privilege. Most
  904. * work to connect to a device should be done when the device is opened,
  905. * and undone at the last close. The disconnect code needs to address
  906. * concurrency issues with respect to open() and close() methods, as
  907. * well as forcing all pending I/O requests to complete (by unlinking
  908. * them as necessary, and blocking until the unlinks complete).
  909. */
  910. struct usb_driver {
  911. const char *name;
  912. int (*probe) (struct usb_interface *intf,
  913. const struct usb_device_id *id);
  914. void (*disconnect) (struct usb_interface *intf);
  915. int (*unlocked_ioctl) (struct usb_interface *intf, unsigned int code,
  916. void *buf);
  917. int (*suspend) (struct usb_interface *intf, pm_message_t message);
  918. int (*resume) (struct usb_interface *intf);
  919. int (*reset_resume)(struct usb_interface *intf);
  920. int (*pre_reset)(struct usb_interface *intf);
  921. int (*post_reset)(struct usb_interface *intf);
  922. const struct usb_device_id *id_table;
  923. struct usb_dynids dynids;
  924. struct usbdrv_wrap drvwrap;
  925. unsigned int no_dynamic_id:1;
  926. unsigned int supports_autosuspend:1;
  927. unsigned int disable_hub_initiated_lpm:1;
  928. unsigned int soft_unbind:1;
  929. };
  930. #define to_usb_driver(d) container_of(d, struct usb_driver, drvwrap.driver)
  931. /**
  932. * struct usb_device_driver - identifies USB device driver to usbcore
  933. * @name: The driver name should be unique among USB drivers,
  934. * and should normally be the same as the module name.
  935. * @probe: Called to see if the driver is willing to manage a particular
  936. * device. If it is, probe returns zero and uses dev_set_drvdata()
  937. * to associate driver-specific data with the device. If unwilling
  938. * to manage the device, return a negative errno value.
  939. * @disconnect: Called when the device is no longer accessible, usually
  940. * because it has been (or is being) disconnected or the driver's
  941. * module is being unloaded.
  942. * @suspend: Called when the device is going to be suspended by the system.
  943. * @resume: Called when the device is being resumed by the system.
  944. * @drvwrap: Driver-model core structure wrapper.
  945. * @supports_autosuspend: if set to 0, the USB core will not allow autosuspend
  946. * for devices bound to this driver.
  947. *
  948. * USB drivers must provide all the fields listed above except drvwrap.
  949. */
  950. struct usb_device_driver {
  951. const char *name;
  952. int (*probe) (struct usb_device *udev);
  953. void (*disconnect) (struct usb_device *udev);
  954. int (*suspend) (struct usb_device *udev, pm_message_t message);
  955. int (*resume) (struct usb_device *udev, pm_message_t message);
  956. struct usbdrv_wrap drvwrap;
  957. unsigned int supports_autosuspend:1;
  958. };
  959. #define to_usb_device_driver(d) container_of(d, struct usb_device_driver, \
  960. drvwrap.driver)
  961. extern struct bus_type usb_bus_type;
  962. /**
  963. * struct usb_class_driver - identifies a USB driver that wants to use the USB major number
  964. * @name: the usb class device name for this driver. Will show up in sysfs.
  965. * @devnode: Callback to provide a naming hint for a possible
  966. * device node to create.
  967. * @fops: pointer to the struct file_operations of this driver.
  968. * @minor_base: the start of the minor range for this driver.
  969. *
  970. * This structure is used for the usb_register_dev() and
  971. * usb_unregister_dev() functions, to consolidate a number of the
  972. * parameters used for them.
  973. */
  974. struct usb_class_driver {
  975. char *name;
  976. char *(*devnode)(struct device *dev, umode_t *mode);
  977. const struct file_operations *fops;
  978. int minor_base;
  979. };
  980. /*
  981. * use these in module_init()/module_exit()
  982. * and don't forget MODULE_DEVICE_TABLE(usb, ...)
  983. */
  984. extern int usb_register_driver(struct usb_driver *, struct module *,
  985. const char *);
  986. /* use a define to avoid include chaining to get THIS_MODULE & friends */
  987. #define usb_register(driver) \
  988. usb_register_driver(driver, THIS_MODULE, KBUILD_MODNAME)
  989. extern void usb_deregister(struct usb_driver *);
  990. /**
  991. * module_usb_driver() - Helper macro for registering a USB driver
  992. * @__usb_driver: usb_driver struct
  993. *
  994. * Helper macro for USB drivers which do not do anything special in module
  995. * init/exit. This eliminates a lot of boilerplate. Each module may only
  996. * use this macro once, and calling it replaces module_init() and module_exit()
  997. */
  998. #define module_usb_driver(__usb_driver) \
  999. module_driver(__usb_driver, usb_register, \
  1000. usb_deregister)
  1001. extern int usb_register_device_driver(struct usb_device_driver *,
  1002. struct module *);
  1003. extern void usb_deregister_device_driver(struct usb_device_driver *);
  1004. extern int usb_register_dev(struct usb_interface *intf,
  1005. struct usb_class_driver *class_driver);
  1006. extern void usb_deregister_dev(struct usb_interface *intf,
  1007. struct usb_class_driver *class_driver);
  1008. extern int usb_disabled(void);
  1009. /* ----------------------------------------------------------------------- */
  1010. /*
  1011. * URB support, for asynchronous request completions
  1012. */
  1013. /*
  1014. * urb->transfer_flags:
  1015. *
  1016. * Note: URB_DIR_IN/OUT is automatically set in usb_submit_urb().
  1017. */
  1018. #define URB_SHORT_NOT_OK 0x0001 /* report short reads as errors */
  1019. #define URB_ISO_ASAP 0x0002 /* iso-only; use the first unexpired
  1020. * slot in the schedule */
  1021. #define URB_NO_TRANSFER_DMA_MAP 0x0004 /* urb->transfer_dma valid on submit */
  1022. #define URB_NO_FSBR 0x0020 /* UHCI-specific */
  1023. #define URB_ZERO_PACKET 0x0040 /* Finish bulk OUT with short packet */
  1024. #define URB_NO_INTERRUPT 0x0080 /* HINT: no non-error interrupt
  1025. * needed */
  1026. #define URB_FREE_BUFFER 0x0100 /* Free transfer buffer with the URB */
  1027. /* The following flags are used internally by usbcore and HCDs */
  1028. #define URB_DIR_IN 0x0200 /* Transfer from device to host */
  1029. #define URB_DIR_OUT 0
  1030. #define URB_DIR_MASK URB_DIR_IN
  1031. #define URB_DMA_MAP_SINGLE 0x00010000 /* Non-scatter-gather mapping */
  1032. #define URB_DMA_MAP_PAGE 0x00020000 /* HCD-unsupported S-G */
  1033. #define URB_DMA_MAP_SG 0x00040000 /* HCD-supported S-G */
  1034. #define URB_MAP_LOCAL 0x00080000 /* HCD-local-memory mapping */
  1035. #define URB_SETUP_MAP_SINGLE 0x00100000 /* Setup packet DMA mapped */
  1036. #define URB_SETUP_MAP_LOCAL 0x00200000 /* HCD-local setup packet */
  1037. #define URB_DMA_SG_COMBINED 0x00400000 /* S-G entries were combined */
  1038. #define URB_ALIGNED_TEMP_BUFFER 0x00800000 /* Temp buffer was alloc'd */
  1039. struct usb_iso_packet_descriptor {
  1040. unsigned int offset;
  1041. unsigned int length; /* expected length */
  1042. unsigned int actual_length;
  1043. int status;
  1044. };
  1045. struct urb;
  1046. struct usb_anchor {
  1047. struct list_head urb_list;
  1048. wait_queue_head_t wait;
  1049. spinlock_t lock;
  1050. unsigned int poisoned:1;
  1051. };
  1052. static inline void init_usb_anchor(struct usb_anchor *anchor)
  1053. {
  1054. INIT_LIST_HEAD(&anchor->urb_list);
  1055. init_waitqueue_head(&anchor->wait);
  1056. spin_lock_init(&anchor->lock);
  1057. }
  1058. typedef void (*usb_complete_t)(struct urb *);
  1059. /**
  1060. * struct urb - USB Request Block
  1061. * @urb_list: For use by current owner of the URB.
  1062. * @anchor_list: membership in the list of an anchor
  1063. * @anchor: to anchor URBs to a common mooring
  1064. * @ep: Points to the endpoint's data structure. Will eventually
  1065. * replace @pipe.
  1066. * @pipe: Holds endpoint number, direction, type, and more.
  1067. * Create these values with the eight macros available;
  1068. * usb_{snd,rcv}TYPEpipe(dev,endpoint), where the TYPE is "ctrl"
  1069. * (control), "bulk", "int" (interrupt), or "iso" (isochronous).
  1070. * For example usb_sndbulkpipe() or usb_rcvintpipe(). Endpoint
  1071. * numbers range from zero to fifteen. Note that "in" endpoint two
  1072. * is a different endpoint (and pipe) from "out" endpoint two.
  1073. * The current configuration controls the existence, type, and
  1074. * maximum packet size of any given endpoint.
  1075. * @stream_id: the endpoint's stream ID for bulk streams
  1076. * @dev: Identifies the USB device to perform the request.
  1077. * @status: This is read in non-iso completion functions to get the
  1078. * status of the particular request. ISO requests only use it
  1079. * to tell whether the URB was unlinked; detailed status for
  1080. * each frame is in the fields of the iso_frame-desc.
  1081. * @transfer_flags: A variety of flags may be used to affect how URB
  1082. * submission, unlinking, or operation are handled. Different
  1083. * kinds of URB can use different flags.
  1084. * @transfer_buffer: This identifies the buffer to (or from) which the I/O
  1085. * request will be performed unless URB_NO_TRANSFER_DMA_MAP is set
  1086. * (however, do not leave garbage in transfer_buffer even then).
  1087. * This buffer must be suitable for DMA; allocate it with
  1088. * kmalloc() or equivalent. For transfers to "in" endpoints, contents
  1089. * of this buffer will be modified. This buffer is used for the data
  1090. * stage of control transfers.
  1091. * @transfer_dma: When transfer_flags includes URB_NO_TRANSFER_DMA_MAP,
  1092. * the device driver is saying that it provided this DMA address,
  1093. * which the host controller driver should use in preference to the
  1094. * transfer_buffer.
  1095. * @sg: scatter gather buffer list
  1096. * @num_mapped_sgs: (internal) number of mapped sg entries
  1097. * @num_sgs: number of entries in the sg list
  1098. * @transfer_buffer_length: How big is transfer_buffer. The transfer may
  1099. * be broken up into chunks according to the current maximum packet
  1100. * size for the endpoint, which is a function of the configuration
  1101. * and is encoded in the pipe. When the length is zero, neither
  1102. * transfer_buffer nor transfer_dma is used.
  1103. * @actual_length: This is read in non-iso completion functions, and
  1104. * it tells how many bytes (out of transfer_buffer_length) were
  1105. * transferred. It will normally be the same as requested, unless
  1106. * either an error was reported or a short read was performed.
  1107. * The URB_SHORT_NOT_OK transfer flag may be used to make such
  1108. * short reads be reported as errors.
  1109. * @setup_packet: Only used for control transfers, this points to eight bytes
  1110. * of setup data. Control transfers always start by sending this data
  1111. * to the device. Then transfer_buffer is read or written, if needed.
  1112. * @setup_dma: DMA pointer for the setup packet. The caller must not use
  1113. * this field; setup_packet must point to a valid buffer.
  1114. * @start_frame: Returns the initial frame for isochronous transfers.
  1115. * @number_of_packets: Lists the number of ISO transfer buffers.
  1116. * @interval: Specifies the polling interval for interrupt or isochronous
  1117. * transfers. The units are frames (milliseconds) for full and low
  1118. * speed devices, and microframes (1/8 millisecond) for highspeed
  1119. * and SuperSpeed devices.
  1120. * @error_count: Returns the number of ISO transfers that reported errors.
  1121. * @context: For use in completion functions. This normally points to
  1122. * request-specific driver context.
  1123. * @complete: Completion handler. This URB is passed as the parameter to the
  1124. * completion function. The completion function may then do what
  1125. * it likes with the URB, including resubmitting or freeing it.
  1126. * @iso_frame_desc: Used to provide arrays of ISO transfer buffers and to
  1127. * collect the transfer status for each buffer.
  1128. *
  1129. * This structure identifies USB transfer requests. URBs must be allocated by
  1130. * calling usb_alloc_urb() and freed with a call to usb_free_urb().
  1131. * Initialization may be done using various usb_fill_*_urb() functions. URBs
  1132. * are submitted using usb_submit_urb(), and pending requests may be canceled
  1133. * using usb_unlink_urb() or usb_kill_urb().
  1134. *
  1135. * Data Transfer Buffers:
  1136. *
  1137. * Normally drivers provide I/O buffers allocated with kmalloc() or otherwise
  1138. * taken from the general page pool. That is provided by transfer_buffer
  1139. * (control requests also use setup_packet), and host controller drivers
  1140. * perform a dma mapping (and unmapping) for each buffer transferred. Those
  1141. * mapping operations can be expensive on some platforms (perhaps using a dma
  1142. * bounce buffer or talking to an IOMMU),
  1143. * although they're cheap on commodity x86 and ppc hardware.
  1144. *
  1145. * Alternatively, drivers may pass the URB_NO_TRANSFER_DMA_MAP transfer flag,
  1146. * which tells the host controller driver that no such mapping is needed for
  1147. * the transfer_buffer since
  1148. * the device driver is DMA-aware. For example, a device driver might
  1149. * allocate a DMA buffer with usb_alloc_coherent() or call usb_buffer_map().
  1150. * When this transfer flag is provided, host controller drivers will
  1151. * attempt to use the dma address found in the transfer_dma
  1152. * field rather than determining a dma address themselves.
  1153. *
  1154. * Note that transfer_buffer must still be set if the controller
  1155. * does not support DMA (as indicated by bus.uses_dma) and when talking
  1156. * to root hub. If you have to trasfer between highmem zone and the device
  1157. * on such controller, create a bounce buffer or bail out with an error.
  1158. * If transfer_buffer cannot be set (is in highmem) and the controller is DMA
  1159. * capable, assign NULL to it, so that usbmon knows not to use the value.
  1160. * The setup_packet must always be set, so it cannot be located in highmem.
  1161. *
  1162. * Initialization:
  1163. *
  1164. * All URBs submitted must initialize the dev, pipe, transfer_flags (may be
  1165. * zero), and complete fields. All URBs must also initialize
  1166. * transfer_buffer and transfer_buffer_length. They may provide the
  1167. * URB_SHORT_NOT_OK transfer flag, indicating that short reads are
  1168. * to be treated as errors; that flag is invalid for write requests.
  1169. *
  1170. * Bulk URBs may
  1171. * use the URB_ZERO_PACKET transfer flag, indicating that bulk OUT transfers
  1172. * should always terminate with a short packet, even if it means adding an
  1173. * extra zero length packet.
  1174. *
  1175. * Control URBs must provide a valid pointer in the setup_packet field.
  1176. * Unlike the transfer_buffer, the setup_packet may not be mapped for DMA
  1177. * beforehand.
  1178. *
  1179. * Interrupt URBs must provide an interval, saying how often (in milliseconds
  1180. * or, for highspeed devices, 125 microsecond units)
  1181. * to poll for transfers. After the URB has been submitted, the interval
  1182. * field reflects how the transfer was actually scheduled.
  1183. * The polling interval may be more frequent than requested.
  1184. * For example, some controllers have a maximum interval of 32 milliseconds,
  1185. * while others support intervals of up to 1024 milliseconds.
  1186. * Isochronous URBs also have transfer intervals. (Note that for isochronous
  1187. * endpoints, as well as high speed interrupt endpoints, the encoding of
  1188. * the transfer interval in the endpoint descriptor is logarithmic.
  1189. * Device drivers must convert that value to linear units themselves.)
  1190. *
  1191. * If an isochronous endpoint queue isn't already running, the host
  1192. * controller will schedule a new URB to start as soon as bandwidth
  1193. * utilization allows. If the queue is running then a new URB will be
  1194. * scheduled to start in the first transfer slot following the end of the
  1195. * preceding URB, if that slot has not already expired. If the slot has
  1196. * expired (which can happen when IRQ delivery is delayed for a long time),
  1197. * the scheduling behavior depends on the URB_ISO_ASAP flag. If the flag
  1198. * is clear then the URB will be scheduled to start in the expired slot,
  1199. * implying that some of its packets will not be transferred; if the flag
  1200. * is set then the URB will be scheduled in the first unexpired slot,
  1201. * breaking the queue's synchronization. Upon URB completion, the
  1202. * start_frame field will be set to the (micro)frame number in which the
  1203. * transfer was scheduled. Ranges for frame counter values are HC-specific
  1204. * and can go from as low as 256 to as high as 65536 frames.
  1205. *
  1206. * Isochronous URBs have a different data transfer model, in part because
  1207. * the quality of service is only "best effort". Callers provide specially
  1208. * allocated URBs, with number_of_packets worth of iso_frame_desc structures
  1209. * at the end. Each such packet is an individual ISO transfer. Isochronous
  1210. * URBs are normally queued, submitted by drivers to arrange that
  1211. * transfers are at least double buffered, and then explicitly resubmitted
  1212. * in completion handlers, so
  1213. * that data (such as audio or video) streams at as constant a rate as the
  1214. * host controller scheduler can support.
  1215. *
  1216. * Completion Callbacks:
  1217. *
  1218. * The completion callback is made in_interrupt(), and one of the first
  1219. * things that a completion handler should do is check the status field.
  1220. * The status field is provided for all URBs. It is used to report
  1221. * unlinked URBs, and status for all non-ISO transfers. It should not
  1222. * be examined before the URB is returned to the completion handler.
  1223. *
  1224. * The context field is normally used to link URBs back to the relevant
  1225. * driver or request state.
  1226. *
  1227. * When the completion callback is invoked for non-isochronous URBs, the
  1228. * actual_length field tells how many bytes were transferred. This field
  1229. * is updated even when the URB terminated with an error or was unlinked.
  1230. *
  1231. * ISO transfer status is reported in the status and actual_length fields
  1232. * of the iso_frame_desc array, and the number of errors is reported in
  1233. * error_count. Completion callbacks for ISO transfers will normally
  1234. * (re)submit URBs to ensure a constant transfer rate.
  1235. *
  1236. * Note that even fields marked "public" should not be touched by the driver
  1237. * when the urb is owned by the hcd, that is, since the call to
  1238. * usb_submit_urb() till the entry into the completion routine.
  1239. */
  1240. struct urb {
  1241. /* private: usb core and host controller only fields in the urb */
  1242. struct kref kref; /* reference count of the URB */
  1243. void *hcpriv; /* private data for host controller */
  1244. atomic_t use_count; /* concurrent submissions counter */
  1245. atomic_t reject; /* submissions will fail */
  1246. int unlinked; /* unlink error code */
  1247. /* public: documented fields in the urb that can be used by drivers */
  1248. struct list_head urb_list; /* list head for use by the urb's
  1249. * current owner */
  1250. struct list_head anchor_list; /* the URB may be anchored */
  1251. struct usb_anchor *anchor;
  1252. struct usb_device *dev; /* (in) pointer to associated device */
  1253. struct usb_host_endpoint *ep; /* (internal) pointer to endpoint */
  1254. unsigned int pipe; /* (in) pipe information */
  1255. unsigned int stream_id; /* (in) stream ID */
  1256. int status; /* (return) non-ISO status */
  1257. unsigned int transfer_flags; /* (in) URB_SHORT_NOT_OK | ...*/
  1258. void *transfer_buffer; /* (in) associated data buffer */
  1259. dma_addr_t transfer_dma; /* (in) dma addr for transfer_buffer */
  1260. struct scatterlist *sg; /* (in) scatter gather buffer list */
  1261. int num_mapped_sgs; /* (internal) mapped sg entries */
  1262. int num_sgs; /* (in) number of entries in the sg list */
  1263. u32 transfer_buffer_length; /* (in) data buffer length */
  1264. u32 actual_length; /* (return) actual transfer length */
  1265. unsigned char *setup_packet; /* (in) setup packet (control only) */
  1266. dma_addr_t setup_dma; /* (in) dma addr for setup_packet */
  1267. int start_frame; /* (modify) start frame (ISO) */
  1268. int number_of_packets; /* (in) number of ISO packets */
  1269. int interval; /* (modify) transfer interval
  1270. * (INT/ISO) */
  1271. int error_count; /* (return) number of ISO errors */
  1272. void *context; /* (in) context for completion */
  1273. usb_complete_t complete; /* (in) completion routine */
  1274. struct usb_iso_packet_descriptor iso_frame_desc[0];
  1275. /* (in) ISO ONLY */
  1276. };
  1277. /* ----------------------------------------------------------------------- */
  1278. /**
  1279. * usb_fill_control_urb - initializes a control urb
  1280. * @urb: pointer to the urb to initialize.
  1281. * @dev: pointer to the struct usb_device for this urb.
  1282. * @pipe: the endpoint pipe
  1283. * @setup_packet: pointer to the setup_packet buffer
  1284. * @transfer_buffer: pointer to the transfer buffer
  1285. * @buffer_length: length of the transfer buffer
  1286. * @complete_fn: pointer to the usb_complete_t function
  1287. * @context: what to set the urb context to.
  1288. *
  1289. * Initializes a control urb with the proper information needed to submit
  1290. * it to a device.
  1291. */
  1292. static inline void usb_fill_control_urb(struct urb *urb,
  1293. struct usb_device *dev,
  1294. unsigned int pipe,
  1295. unsigned char *setup_packet,
  1296. void *transfer_buffer,
  1297. int buffer_length,
  1298. usb_complete_t complete_fn,
  1299. void *context)
  1300. {
  1301. urb->dev = dev;
  1302. urb->pipe = pipe;
  1303. urb->setup_packet = setup_packet;
  1304. urb->transfer_buffer = transfer_buffer;
  1305. urb->transfer_buffer_length = buffer_length;
  1306. urb->complete = complete_fn;
  1307. urb->context = context;
  1308. }
  1309. /**
  1310. * usb_fill_bulk_urb - macro to help initialize a bulk urb
  1311. * @urb: pointer to the urb to initialize.
  1312. * @dev: pointer to the struct usb_device for this urb.
  1313. * @pipe: the endpoint pipe
  1314. * @transfer_buffer: pointer to the transfer buffer
  1315. * @buffer_length: length of the transfer buffer
  1316. * @complete_fn: pointer to the usb_complete_t function
  1317. * @context: what to set the urb context to.
  1318. *
  1319. * Initializes a bulk urb with the proper information needed to submit it
  1320. * to a device.
  1321. */
  1322. static inline void usb_fill_bulk_urb(struct urb *urb,
  1323. struct usb_device *dev,
  1324. unsigned int pipe,
  1325. void *transfer_buffer,
  1326. int buffer_length,
  1327. usb_complete_t complete_fn,
  1328. void *context)
  1329. {
  1330. urb->dev = dev;
  1331. urb->pipe = pipe;
  1332. urb->transfer_buffer = transfer_buffer;
  1333. urb->transfer_buffer_length = buffer_length;
  1334. urb->complete = complete_fn;
  1335. urb->context = context;
  1336. }
  1337. /**
  1338. * usb_fill_int_urb - macro to help initialize a interrupt urb
  1339. * @urb: pointer to the urb to initialize.
  1340. * @dev: pointer to the struct usb_device for this urb.
  1341. * @pipe: the endpoint pipe
  1342. * @transfer_buffer: pointer to the transfer buffer
  1343. * @buffer_length: length of the transfer buffer
  1344. * @complete_fn: pointer to the usb_complete_t function
  1345. * @context: what to set the urb context to.
  1346. * @interval: what to set the urb interval to, encoded like
  1347. * the endpoint descriptor's bInterval value.
  1348. *
  1349. * Initializes a interrupt urb with the proper information needed to submit
  1350. * it to a device.
  1351. *
  1352. * Note that High Speed and SuperSpeed interrupt endpoints use a logarithmic
  1353. * encoding of the endpoint interval, and express polling intervals in
  1354. * microframes (eight per millisecond) rather than in frames (one per
  1355. * millisecond).
  1356. *
  1357. * Wireless USB also uses the logarithmic encoding, but specifies it in units of
  1358. * 128us instead of 125us. For Wireless USB devices, the interval is passed
  1359. * through to the host controller, rather than being translated into microframe
  1360. * units.
  1361. */
  1362. static inline void usb_fill_int_urb(struct urb *urb,
  1363. struct usb_device *dev,
  1364. unsigned int pipe,
  1365. void *transfer_buffer,
  1366. int buffer_length,
  1367. usb_complete_t complete_fn,
  1368. void *context,
  1369. int interval)
  1370. {
  1371. urb->dev = dev;
  1372. urb->pipe = pipe;
  1373. urb->transfer_buffer = transfer_buffer;
  1374. urb->transfer_buffer_length = buffer_length;
  1375. urb->complete = complete_fn;
  1376. urb->context = context;
  1377. if (dev->speed == USB_SPEED_HIGH || dev->speed == USB_SPEED_SUPER)
  1378. urb->interval = 1 << (interval - 1);
  1379. else
  1380. urb->interval = interval;
  1381. urb->start_frame = -1;
  1382. }
  1383. extern void usb_init_urb(struct urb *urb);
  1384. extern struct urb *usb_alloc_urb(int iso_packets, gfp_t mem_flags);
  1385. extern void usb_free_urb(struct urb *urb);
  1386. #define usb_put_urb usb_free_urb
  1387. extern struct urb *usb_get_urb(struct urb *urb);
  1388. extern int usb_submit_urb(struct urb *urb, gfp_t mem_flags);
  1389. extern int usb_unlink_urb(struct urb *urb);
  1390. extern void usb_kill_urb(struct urb *urb);
  1391. extern void usb_poison_urb(struct urb *urb);
  1392. extern void usb_unpoison_urb(struct urb *urb);
  1393. extern void usb_block_urb(struct urb *urb);
  1394. extern void usb_kill_anchored_urbs(struct usb_anchor *anchor);
  1395. extern void usb_poison_anchored_urbs(struct usb_anchor *anchor);
  1396. extern void usb_unpoison_anchored_urbs(struct usb_anchor *anchor);
  1397. extern void usb_unlink_anchored_urbs(struct usb_anchor *anchor);
  1398. extern void usb_anchor_urb(struct urb *urb, struct usb_anchor *anchor);
  1399. extern void usb_unanchor_urb(struct urb *urb);
  1400. extern int usb_wait_anchor_empty_timeout(struct usb_anchor *anchor,
  1401. unsigned int timeout);
  1402. extern struct urb *usb_get_from_anchor(struct usb_anchor *anchor);
  1403. extern void usb_scuttle_anchored_urbs(struct usb_anchor *anchor);
  1404. extern int usb_anchor_empty(struct usb_anchor *anchor);
  1405. #define usb_unblock_urb usb_unpoison_urb
  1406. /**
  1407. * usb_urb_dir_in - check if an URB describes an IN transfer
  1408. * @urb: URB to be checked
  1409. *
  1410. * Returns 1 if @urb describes an IN transfer (device-to-host),
  1411. * otherwise 0.
  1412. */
  1413. static inline int usb_urb_dir_in(struct urb *urb)
  1414. {
  1415. return (urb->transfer_flags & URB_DIR_MASK) == URB_DIR_IN;
  1416. }
  1417. /**
  1418. * usb_urb_dir_out - check if an URB describes an OUT transfer
  1419. * @urb: URB to be checked
  1420. *
  1421. * Returns 1 if @urb describes an OUT transfer (host-to-device),
  1422. * otherwise 0.
  1423. */
  1424. static inline int usb_urb_dir_out(struct urb *urb)
  1425. {
  1426. return (urb->transfer_flags & URB_DIR_MASK) == URB_DIR_OUT;
  1427. }
  1428. void *usb_alloc_coherent(struct usb_device *dev, size_t size,
  1429. gfp_t mem_flags, dma_addr_t *dma);
  1430. void usb_free_coherent(struct usb_device *dev, size_t size,
  1431. void *addr, dma_addr_t dma);
  1432. #if 0
  1433. struct urb *usb_buffer_map(struct urb *urb);
  1434. void usb_buffer_dmasync(struct urb *urb);
  1435. void usb_buffer_unmap(struct urb *urb);
  1436. #endif
  1437. struct scatterlist;
  1438. int usb_buffer_map_sg(const struct usb_device *dev, int is_in,
  1439. struct scatterlist *sg, int nents);
  1440. #if 0
  1441. void usb_buffer_dmasync_sg(const struct usb_device *dev, int is_in,
  1442. struct scatterlist *sg, int n_hw_ents);
  1443. #endif
  1444. void usb_buffer_unmap_sg(const struct usb_device *dev, int is_in,
  1445. struct scatterlist *sg, int n_hw_ents);
  1446. /*-------------------------------------------------------------------*
  1447. * SYNCHRONOUS CALL SUPPORT *
  1448. *-------------------------------------------------------------------*/
  1449. extern int usb_control_msg(struct usb_device *dev, unsigned int pipe,
  1450. __u8 request, __u8 requesttype, __u16 value, __u16 index,
  1451. void *data, __u16 size, int timeout);
  1452. extern int usb_interrupt_msg(struct usb_device *usb_dev, unsigned int pipe,
  1453. void *data, int len, int *actual_length, int timeout);
  1454. extern int usb_bulk_msg(struct usb_device *usb_dev, unsigned int pipe,
  1455. void *data, int len, int *actual_length,
  1456. int timeout);
  1457. /* wrappers around usb_control_msg() for the most common standard requests */
  1458. extern int usb_get_descriptor(struct usb_device *dev, unsigned char desctype,
  1459. unsigned char descindex, void *buf, int size);
  1460. extern int usb_get_status(struct usb_device *dev,
  1461. int type, int target, void *data);
  1462. extern int usb_string(struct usb_device *dev, int index,
  1463. char *buf, size_t size);
  1464. /* wrappers that also update important state inside usbcore */
  1465. extern int usb_clear_halt(struct usb_device *dev, int pipe);
  1466. extern int usb_reset_configuration(struct usb_device *dev);
  1467. extern int usb_set_interface(struct usb_device *dev, int ifnum, int alternate);
  1468. extern void usb_reset_endpoint(struct usb_device *dev, unsigned int epaddr);
  1469. /* this request isn't really synchronous, but it belongs with the others */
  1470. extern int usb_driver_set_configuration(struct usb_device *udev, int config);
  1471. /*
  1472. * timeouts, in milliseconds, used for sending/receiving control messages
  1473. * they typically complete within a few frames (msec) after they're issued
  1474. * USB identifies 5 second timeouts, maybe more in a few cases, and a few
  1475. * slow devices (like some MGE Ellipse UPSes) actually push that limit.
  1476. */
  1477. #define USB_CTRL_GET_TIMEOUT 5000
  1478. #define USB_CTRL_SET_TIMEOUT 5000
  1479. /**
  1480. * struct usb_sg_request - support for scatter/gather I/O
  1481. * @status: zero indicates success, else negative errno
  1482. * @bytes: counts bytes transferred.
  1483. *
  1484. * These requests are initialized using usb_sg_init(), and then are used
  1485. * as request handles passed to usb_sg_wait() or usb_sg_cancel(). Most
  1486. * members of the request object aren't for driver access.
  1487. *
  1488. * The status and bytecount values are valid only after usb_sg_wait()
  1489. * returns. If the status is zero, then the bytecount matches the total
  1490. * from the request.
  1491. *
  1492. * After an error completion, drivers may need to clear a halt condition
  1493. * on the endpoint.
  1494. */
  1495. struct usb_sg_request {
  1496. int status;
  1497. size_t bytes;
  1498. /* private:
  1499. * members below are private to usbcore,
  1500. * and are not provided for driver access!
  1501. */
  1502. spinlock_t lock;
  1503. struct usb_device *dev;
  1504. int pipe;
  1505. int entries;
  1506. struct urb **urbs;
  1507. int count;
  1508. struct completion complete;
  1509. };
  1510. int usb_sg_init(
  1511. struct usb_sg_request *io,
  1512. struct usb_device *dev,
  1513. unsigned pipe,
  1514. unsigned period,
  1515. struct scatterlist *sg,
  1516. int nents,
  1517. size_t length,
  1518. gfp_t mem_flags
  1519. );
  1520. void usb_sg_cancel(struct usb_sg_request *io);
  1521. void usb_sg_wait(struct usb_sg_request *io);
  1522. /* ----------------------------------------------------------------------- */
  1523. /*
  1524. * For various legacy reasons, Linux has a small cookie that's paired with
  1525. * a struct usb_device to identify an endpoint queue. Queue characteristics
  1526. * are defined by the endpoint's descriptor. This cookie is called a "pipe",
  1527. * an unsigned int encoded as:
  1528. *
  1529. * - direction: bit 7 (0 = Host-to-Device [Out],
  1530. * 1 = Device-to-Host [In] ...
  1531. * like endpoint bEndpointAddress)
  1532. * - device address: bits 8-14 ... bit positions known to uhci-hcd
  1533. * - endpoint: bits 15-18 ... bit positions known to uhci-hcd
  1534. * - pipe type: bits 30-31 (00 = isochronous, 01 = interrupt,
  1535. * 10 = control, 11 = bulk)
  1536. *
  1537. * Given the device address and endpoint descriptor, pipes are redundant.
  1538. */
  1539. /* NOTE: these are not the standard USB_ENDPOINT_XFER_* values!! */
  1540. /* (yet ... they're the values used by usbfs) */
  1541. #define PIPE_ISOCHRONOUS 0
  1542. #define PIPE_INTERRUPT 1
  1543. #define PIPE_CONTROL 2
  1544. #define PIPE_BULK 3
  1545. #define usb_pipein(pipe) ((pipe) & USB_DIR_IN)
  1546. #define usb_pipeout(pipe) (!usb_pipein(pipe))
  1547. #define usb_pipedevice(pipe) (((pipe) >> 8) & 0x7f)
  1548. #define usb_pipeendpoint(pipe) (((pipe) >> 15) & 0xf)
  1549. #define usb_pipetype(pipe) (((pipe) >> 30) & 3)
  1550. #define usb_pipeisoc(pipe) (usb_pipetype((pipe)) == PIPE_ISOCHRONOUS)
  1551. #define usb_pipeint(pipe) (usb_pipetype((pipe)) == PIPE_INTERRUPT)
  1552. #define usb_pipecontrol(pipe) (usb_pipetype((pipe)) == PIPE_CONTROL)
  1553. #define usb_pipebulk(pipe) (usb_pipetype((pipe)) == PIPE_BULK)
  1554. static inline unsigned int __create_pipe(struct usb_device *dev,
  1555. unsigned int endpoint)
  1556. {
  1557. return (dev->devnum << 8) | (endpoint << 15);
  1558. }
  1559. /* Create various pipes... */
  1560. #define usb_sndctrlpipe(dev, endpoint) \
  1561. ((PIPE_CONTROL << 30) | __create_pipe(dev, endpoint))
  1562. #define usb_rcvctrlpipe(dev, endpoint) \
  1563. ((PIPE_CONTROL << 30) | __create_pipe(dev, endpoint) | USB_DIR_IN)
  1564. #define usb_sndisocpipe(dev, endpoint) \
  1565. ((PIPE_ISOCHRONOUS << 30) | __create_pipe(dev, endpoint))
  1566. #define usb_rcvisocpipe(dev, endpoint) \
  1567. ((PIPE_ISOCHRONOUS << 30) | __create_pipe(dev, endpoint) | USB_DIR_IN)
  1568. #define usb_sndbulkpipe(dev, endpoint) \
  1569. ((PIPE_BULK << 30) | __create_pipe(dev, endpoint))
  1570. #define usb_rcvbulkpipe(dev, endpoint) \
  1571. ((PIPE_BULK << 30) | __create_pipe(dev, endpoint) | USB_DIR_IN)
  1572. #define usb_sndintpipe(dev, endpoint) \
  1573. ((PIPE_INTERRUPT << 30) | __create_pipe(dev, endpoint))
  1574. #define usb_rcvintpipe(dev, endpoint) \
  1575. ((PIPE_INTERRUPT << 30) | __create_pipe(dev, endpoint) | USB_DIR_IN)
  1576. static inline struct usb_host_endpoint *
  1577. usb_pipe_endpoint(struct usb_device *dev, unsigned int pipe)
  1578. {
  1579. struct usb_host_endpoint **eps;
  1580. eps = usb_pipein(pipe) ? dev->ep_in : dev->ep_out;
  1581. return eps[usb_pipeendpoint(pipe)];
  1582. }
  1583. /*-------------------------------------------------------------------------*/
  1584. static inline __u16
  1585. usb_maxpacket(struct usb_device *udev, int pipe, int is_out)
  1586. {
  1587. struct usb_host_endpoint *ep;
  1588. unsigned epnum = usb_pipeendpoint(pipe);
  1589. if (is_out) {
  1590. WARN_ON(usb_pipein(pipe));
  1591. ep = udev->ep_out[epnum];
  1592. } else {
  1593. WARN_ON(usb_pipeout(pipe));
  1594. ep = udev->ep_in[epnum];
  1595. }
  1596. if (!ep)
  1597. return 0;
  1598. /* NOTE: only 0x07ff bits are for packet size... */
  1599. return usb_endpoint_maxp(&ep->desc);
  1600. }
  1601. /* ----------------------------------------------------------------------- */
  1602. /* translate USB error codes to codes user space understands */
  1603. static inline int usb_translate_errors(int error_code)
  1604. {
  1605. switch (error_code) {
  1606. case 0:
  1607. case -ENOMEM:
  1608. case -ENODEV:
  1609. case -EOPNOTSUPP:
  1610. return error_code;
  1611. default:
  1612. return -EIO;
  1613. }
  1614. }
  1615. /* Events from the usb core */
  1616. #define USB_DEVICE_ADD 0x0001
  1617. #define USB_DEVICE_REMOVE 0x0002
  1618. #define USB_BUS_ADD 0x0003
  1619. #define USB_BUS_REMOVE 0x0004
  1620. extern void usb_register_notify(struct notifier_block *nb);
  1621. extern void usb_unregister_notify(struct notifier_block *nb);
  1622. /* debugfs stuff */
  1623. extern struct dentry *usb_debug_root;
  1624. #endif /* __KERNEL__ */
  1625. #endif