usb_device.c revision 263799
1/* $FreeBSD: stable/10/sys/dev/usb/usb_device.c 263799 2014-03-27 06:59:56Z hselasky $ */
2/*-
3 * Copyright (c) 2008 Hans Petter Selasky. All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 * 1. Redistributions of source code must retain the above copyright
9 *    notice, this list of conditions and the following disclaimer.
10 * 2. Redistributions in binary form must reproduce the above copyright
11 *    notice, this list of conditions and the following disclaimer in the
12 *    documentation and/or other materials provided with the distribution.
13 *
14 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
15 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
16 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
17 * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
18 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
19 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
20 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
21 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
22 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
23 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
24 * SUCH DAMAGE.
25 */
26
27#ifdef USB_GLOBAL_INCLUDE_FILE
28#include USB_GLOBAL_INCLUDE_FILE
29#else
30#include <sys/stdint.h>
31#include <sys/stddef.h>
32#include <sys/param.h>
33#include <sys/queue.h>
34#include <sys/types.h>
35#include <sys/systm.h>
36#include <sys/kernel.h>
37#include <sys/bus.h>
38#include <sys/module.h>
39#include <sys/lock.h>
40#include <sys/mutex.h>
41#include <sys/condvar.h>
42#include <sys/sysctl.h>
43#include <sys/sx.h>
44#include <sys/unistd.h>
45#include <sys/callout.h>
46#include <sys/malloc.h>
47#include <sys/priv.h>
48#include <sys/conf.h>
49#include <sys/fcntl.h>
50
51#include <dev/usb/usb.h>
52#include <dev/usb/usbdi.h>
53#include <dev/usb/usbdi_util.h>
54#include <dev/usb/usb_ioctl.h>
55
56#if USB_HAVE_UGEN
57#include <sys/sbuf.h>
58#endif
59
60#include "usbdevs.h"
61
62#define	USB_DEBUG_VAR usb_debug
63
64#include <dev/usb/usb_core.h>
65#include <dev/usb/usb_debug.h>
66#include <dev/usb/usb_process.h>
67#include <dev/usb/usb_device.h>
68#include <dev/usb/usb_busdma.h>
69#include <dev/usb/usb_transfer.h>
70#include <dev/usb/usb_request.h>
71#include <dev/usb/usb_dynamic.h>
72#include <dev/usb/usb_hub.h>
73#include <dev/usb/usb_util.h>
74#include <dev/usb/usb_msctest.h>
75#if USB_HAVE_UGEN
76#include <dev/usb/usb_dev.h>
77#include <dev/usb/usb_generic.h>
78#endif
79
80#include <dev/usb/quirk/usb_quirk.h>
81
82#include <dev/usb/usb_controller.h>
83#include <dev/usb/usb_bus.h>
84#endif			/* USB_GLOBAL_INCLUDE_FILE */
85
86/* function prototypes  */
87
88static void	usb_init_endpoint(struct usb_device *, uint8_t,
89		    struct usb_endpoint_descriptor *,
90		    struct usb_endpoint_ss_comp_descriptor *,
91		    struct usb_endpoint *);
92static void	usb_unconfigure(struct usb_device *, uint8_t);
93static void	usb_detach_device_sub(struct usb_device *, device_t *,
94		    char **, uint8_t);
95static uint8_t	usb_probe_and_attach_sub(struct usb_device *,
96		    struct usb_attach_arg *);
97static void	usb_init_attach_arg(struct usb_device *,
98		    struct usb_attach_arg *);
99static void	usb_suspend_resume_sub(struct usb_device *, device_t,
100		    uint8_t);
101static usb_proc_callback_t usbd_clear_stall_proc;
102static usb_error_t usb_config_parse(struct usb_device *, uint8_t, uint8_t);
103static void	usbd_set_device_strings(struct usb_device *);
104#if USB_HAVE_DEVCTL
105static void	usb_notify_addq(const char *type, struct usb_device *);
106#endif
107#if USB_HAVE_UGEN
108static void	usb_fifo_free_wrap(struct usb_device *, uint8_t, uint8_t);
109static void	usb_cdev_create(struct usb_device *);
110static void	usb_cdev_free(struct usb_device *);
111#endif
112
113/* This variable is global to allow easy access to it: */
114
115#ifdef	USB_TEMPLATE
116int	usb_template = USB_TEMPLATE;
117#else
118int	usb_template;
119#endif
120
121TUNABLE_INT("hw.usb.usb_template", &usb_template);
122SYSCTL_INT(_hw_usb, OID_AUTO, template, CTLFLAG_RW | CTLFLAG_TUN,
123    &usb_template, 0, "Selected USB device side template");
124
125/* English is default language */
126
127static int usb_lang_id = 0x0009;
128static int usb_lang_mask = 0x00FF;
129
130TUNABLE_INT("hw.usb.usb_lang_id", &usb_lang_id);
131SYSCTL_INT(_hw_usb, OID_AUTO, usb_lang_id, CTLFLAG_RW | CTLFLAG_TUN,
132    &usb_lang_id, 0, "Preferred USB language ID");
133
134TUNABLE_INT("hw.usb.usb_lang_mask", &usb_lang_mask);
135SYSCTL_INT(_hw_usb, OID_AUTO, usb_lang_mask, CTLFLAG_RW | CTLFLAG_TUN,
136    &usb_lang_mask, 0, "Preferred USB language mask");
137
138static const char* statestr[USB_STATE_MAX] = {
139	[USB_STATE_DETACHED]	= "DETACHED",
140	[USB_STATE_ATTACHED]	= "ATTACHED",
141	[USB_STATE_POWERED]	= "POWERED",
142	[USB_STATE_ADDRESSED]	= "ADDRESSED",
143	[USB_STATE_CONFIGURED]	= "CONFIGURED",
144};
145
146const char *
147usb_statestr(enum usb_dev_state state)
148{
149	return ((state < USB_STATE_MAX) ? statestr[state] : "UNKNOWN");
150}
151
152const char *
153usb_get_manufacturer(struct usb_device *udev)
154{
155	return (udev->manufacturer ? udev->manufacturer : "Unknown");
156}
157
158const char *
159usb_get_product(struct usb_device *udev)
160{
161	return (udev->product ? udev->product : "");
162}
163
164const char *
165usb_get_serial(struct usb_device *udev)
166{
167	return (udev->serial ? udev->serial : "");
168}
169
170/*------------------------------------------------------------------------*
171 *	usbd_get_ep_by_addr
172 *
173 * This function searches for an USB ep by endpoint address and
174 * direction.
175 *
176 * Returns:
177 * NULL: Failure
178 * Else: Success
179 *------------------------------------------------------------------------*/
180struct usb_endpoint *
181usbd_get_ep_by_addr(struct usb_device *udev, uint8_t ea_val)
182{
183	struct usb_endpoint *ep = udev->endpoints;
184	struct usb_endpoint *ep_end = udev->endpoints + udev->endpoints_max;
185	enum {
186		EA_MASK = (UE_DIR_IN | UE_DIR_OUT | UE_ADDR),
187	};
188
189	/*
190	 * According to the USB specification not all bits are used
191	 * for the endpoint address. Keep defined bits only:
192	 */
193	ea_val &= EA_MASK;
194
195	/*
196	 * Iterate accross all the USB endpoints searching for a match
197	 * based on the endpoint address:
198	 */
199	for (; ep != ep_end; ep++) {
200
201		if (ep->edesc == NULL) {
202			continue;
203		}
204		/* do the mask and check the value */
205		if ((ep->edesc->bEndpointAddress & EA_MASK) == ea_val) {
206			goto found;
207		}
208	}
209
210	/*
211	 * The default endpoint is always present and is checked separately:
212	 */
213	if ((udev->ctrl_ep.edesc != NULL) &&
214	    ((udev->ctrl_ep.edesc->bEndpointAddress & EA_MASK) == ea_val)) {
215		ep = &udev->ctrl_ep;
216		goto found;
217	}
218	return (NULL);
219
220found:
221	return (ep);
222}
223
224/*------------------------------------------------------------------------*
225 *	usbd_get_endpoint
226 *
227 * This function searches for an USB endpoint based on the information
228 * given by the passed "struct usb_config" pointer.
229 *
230 * Return values:
231 * NULL: No match.
232 * Else: Pointer to "struct usb_endpoint".
233 *------------------------------------------------------------------------*/
234struct usb_endpoint *
235usbd_get_endpoint(struct usb_device *udev, uint8_t iface_index,
236    const struct usb_config *setup)
237{
238	struct usb_endpoint *ep = udev->endpoints;
239	struct usb_endpoint *ep_end = udev->endpoints + udev->endpoints_max;
240	uint8_t index = setup->ep_index;
241	uint8_t ea_mask;
242	uint8_t ea_val;
243	uint8_t type_mask;
244	uint8_t type_val;
245
246	DPRINTFN(10, "udev=%p iface_index=%d address=0x%x "
247	    "type=0x%x dir=0x%x index=%d\n",
248	    udev, iface_index, setup->endpoint,
249	    setup->type, setup->direction, setup->ep_index);
250
251	/* check USB mode */
252
253	if (setup->usb_mode != USB_MODE_DUAL &&
254	    udev->flags.usb_mode != setup->usb_mode) {
255		/* wrong mode - no endpoint */
256		return (NULL);
257	}
258
259	/* setup expected endpoint direction mask and value */
260
261	if (setup->direction == UE_DIR_RX) {
262		ea_mask = (UE_DIR_IN | UE_DIR_OUT);
263		ea_val = (udev->flags.usb_mode == USB_MODE_DEVICE) ?
264		    UE_DIR_OUT : UE_DIR_IN;
265	} else if (setup->direction == UE_DIR_TX) {
266		ea_mask = (UE_DIR_IN | UE_DIR_OUT);
267		ea_val = (udev->flags.usb_mode == USB_MODE_DEVICE) ?
268		    UE_DIR_IN : UE_DIR_OUT;
269	} else if (setup->direction == UE_DIR_ANY) {
270		/* match any endpoint direction */
271		ea_mask = 0;
272		ea_val = 0;
273	} else {
274		/* match the given endpoint direction */
275		ea_mask = (UE_DIR_IN | UE_DIR_OUT);
276		ea_val = (setup->direction & (UE_DIR_IN | UE_DIR_OUT));
277	}
278
279	/* setup expected endpoint address */
280
281	if (setup->endpoint == UE_ADDR_ANY) {
282		/* match any endpoint address */
283	} else {
284		/* match the given endpoint address */
285		ea_mask |= UE_ADDR;
286		ea_val |= (setup->endpoint & UE_ADDR);
287	}
288
289	/* setup expected endpoint type */
290
291	if (setup->type == UE_BULK_INTR) {
292		/* this will match BULK and INTERRUPT endpoints */
293		type_mask = 2;
294		type_val = 2;
295	} else if (setup->type == UE_TYPE_ANY) {
296		/* match any endpoint type */
297		type_mask = 0;
298		type_val = 0;
299	} else {
300		/* match the given endpoint type */
301		type_mask = UE_XFERTYPE;
302		type_val = (setup->type & UE_XFERTYPE);
303	}
304
305	/*
306	 * Iterate accross all the USB endpoints searching for a match
307	 * based on the endpoint address. Note that we are searching
308	 * the endpoints from the beginning of the "udev->endpoints" array.
309	 */
310	for (; ep != ep_end; ep++) {
311
312		if ((ep->edesc == NULL) ||
313		    (ep->iface_index != iface_index)) {
314			continue;
315		}
316		/* do the masks and check the values */
317
318		if (((ep->edesc->bEndpointAddress & ea_mask) == ea_val) &&
319		    ((ep->edesc->bmAttributes & type_mask) == type_val)) {
320			if (!index--) {
321				goto found;
322			}
323		}
324	}
325
326	/*
327	 * Match against default endpoint last, so that "any endpoint", "any
328	 * address" and "any direction" returns the first endpoint of the
329	 * interface. "iface_index" and "direction" is ignored:
330	 */
331	if ((udev->ctrl_ep.edesc != NULL) &&
332	    ((udev->ctrl_ep.edesc->bEndpointAddress & ea_mask) == ea_val) &&
333	    ((udev->ctrl_ep.edesc->bmAttributes & type_mask) == type_val) &&
334	    (!index)) {
335		ep = &udev->ctrl_ep;
336		goto found;
337	}
338	return (NULL);
339
340found:
341	return (ep);
342}
343
344/*------------------------------------------------------------------------*
345 *	usbd_interface_count
346 *
347 * This function stores the number of USB interfaces excluding
348 * alternate settings, which the USB config descriptor reports into
349 * the unsigned 8-bit integer pointed to by "count".
350 *
351 * Returns:
352 *    0: Success
353 * Else: Failure
354 *------------------------------------------------------------------------*/
355usb_error_t
356usbd_interface_count(struct usb_device *udev, uint8_t *count)
357{
358	if (udev->cdesc == NULL) {
359		*count = 0;
360		return (USB_ERR_NOT_CONFIGURED);
361	}
362	*count = udev->ifaces_max;
363	return (USB_ERR_NORMAL_COMPLETION);
364}
365
366/*------------------------------------------------------------------------*
367 *	usb_init_endpoint
368 *
369 * This function will initialise the USB endpoint structure pointed to by
370 * the "endpoint" argument. The structure pointed to by "endpoint" must be
371 * zeroed before calling this function.
372 *------------------------------------------------------------------------*/
373static void
374usb_init_endpoint(struct usb_device *udev, uint8_t iface_index,
375    struct usb_endpoint_descriptor *edesc,
376    struct usb_endpoint_ss_comp_descriptor *ecomp,
377    struct usb_endpoint *ep)
378{
379	struct usb_bus_methods *methods;
380	usb_stream_t x;
381
382	methods = udev->bus->methods;
383
384	(methods->endpoint_init) (udev, edesc, ep);
385
386	/* initialise USB endpoint structure */
387	ep->edesc = edesc;
388	ep->ecomp = ecomp;
389	ep->iface_index = iface_index;
390
391	/* setup USB stream queues */
392	for (x = 0; x != USB_MAX_EP_STREAMS; x++) {
393		TAILQ_INIT(&ep->endpoint_q[x].head);
394		ep->endpoint_q[x].command = &usbd_pipe_start;
395	}
396
397	/* the pipe is not supported by the hardware */
398 	if (ep->methods == NULL)
399		return;
400
401	/* check for SUPER-speed streams mode endpoint */
402	if (udev->speed == USB_SPEED_SUPER && ecomp != NULL &&
403	    (edesc->bmAttributes & UE_XFERTYPE) == UE_BULK &&
404	    (UE_GET_BULK_STREAMS(ecomp->bmAttributes) != 0)) {
405		usbd_set_endpoint_mode(udev, ep, USB_EP_MODE_STREAMS);
406	} else {
407		usbd_set_endpoint_mode(udev, ep, USB_EP_MODE_DEFAULT);
408	}
409
410	/* clear stall, if any */
411	if (methods->clear_stall != NULL) {
412		USB_BUS_LOCK(udev->bus);
413		(methods->clear_stall) (udev, ep);
414		USB_BUS_UNLOCK(udev->bus);
415	}
416}
417
418/*-----------------------------------------------------------------------*
419 *	usb_endpoint_foreach
420 *
421 * This function will iterate all the USB endpoints except the control
422 * endpoint. This function is NULL safe.
423 *
424 * Return values:
425 * NULL: End of USB endpoints
426 * Else: Pointer to next USB endpoint
427 *------------------------------------------------------------------------*/
428struct usb_endpoint *
429usb_endpoint_foreach(struct usb_device *udev, struct usb_endpoint *ep)
430{
431	struct usb_endpoint *ep_end;
432
433	/* be NULL safe */
434	if (udev == NULL)
435		return (NULL);
436
437	ep_end = udev->endpoints + udev->endpoints_max;
438
439	/* get next endpoint */
440	if (ep == NULL)
441		ep = udev->endpoints;
442	else
443		ep++;
444
445	/* find next allocated ep */
446	while (ep != ep_end) {
447		if (ep->edesc != NULL)
448			return (ep);
449		ep++;
450	}
451	return (NULL);
452}
453
454/*------------------------------------------------------------------------*
455 *	usb_wait_pending_ref_locked
456 *
457 * This function will wait for any USB references to go away before
458 * returning and disable further USB device refcounting on the
459 * specified USB device. This function is used when detaching a USB
460 * device.
461 *------------------------------------------------------------------------*/
462static void
463usb_wait_pending_ref_locked(struct usb_device *udev)
464{
465#if USB_HAVE_UGEN
466	const uint16_t refcount =
467	    usb_proc_is_called_from(
468	    USB_BUS_EXPLORE_PROC(udev->bus)) ? 1 : 2;
469
470	DPRINTF("Refcount = %d\n", (int)refcount);
471
472	while (1) {
473		/* wait for any pending references to go away */
474		mtx_lock(&usb_ref_lock);
475		if (udev->refcount == refcount) {
476			/* prevent further refs being taken */
477			udev->refcount = USB_DEV_REF_MAX;
478			mtx_unlock(&usb_ref_lock);
479			break;
480		}
481		usbd_enum_unlock(udev);
482		cv_wait(&udev->ref_cv, &usb_ref_lock);
483		mtx_unlock(&usb_ref_lock);
484		(void) usbd_enum_lock(udev);
485	}
486#endif
487}
488
489/*------------------------------------------------------------------------*
490 *	usb_ref_restore_locked
491 *
492 * This function will restore the reference count value after a call
493 * to "usb_wait_pending_ref_locked()".
494 *------------------------------------------------------------------------*/
495static void
496usb_ref_restore_locked(struct usb_device *udev)
497{
498#if USB_HAVE_UGEN
499	const uint16_t refcount =
500	    usb_proc_is_called_from(
501	    USB_BUS_EXPLORE_PROC(udev->bus)) ? 1 : 2;
502
503	DPRINTF("Refcount = %d\n", (int)refcount);
504
505	/* restore reference count and wakeup waiters, if any */
506	mtx_lock(&usb_ref_lock);
507	udev->refcount = refcount;
508	cv_broadcast(&udev->ref_cv);
509	mtx_unlock(&usb_ref_lock);
510#endif
511}
512
513/*------------------------------------------------------------------------*
514 *	usb_unconfigure
515 *
516 * This function will free all USB interfaces and USB endpoints belonging
517 * to an USB device.
518 *
519 * Flag values, see "USB_UNCFG_FLAG_XXX".
520 *------------------------------------------------------------------------*/
521static void
522usb_unconfigure(struct usb_device *udev, uint8_t flag)
523{
524	uint8_t do_unlock;
525
526	/* Prevent re-enumeration */
527	do_unlock = usbd_enum_lock(udev);
528
529	/* detach all interface drivers */
530	usb_detach_device(udev, USB_IFACE_INDEX_ANY, flag);
531
532#if USB_HAVE_UGEN
533	/* free all FIFOs except control endpoint FIFOs */
534	usb_fifo_free_wrap(udev, USB_IFACE_INDEX_ANY, flag);
535
536	/*
537	 * Free all cdev's, if any.
538	 */
539	usb_cdev_free(udev);
540#endif
541
542#if USB_HAVE_COMPAT_LINUX
543	/* free Linux compat device, if any */
544	if (udev->linux_endpoint_start) {
545		usb_linux_free_device(udev);
546		udev->linux_endpoint_start = NULL;
547	}
548#endif
549
550	usb_config_parse(udev, USB_IFACE_INDEX_ANY, USB_CFG_FREE);
551
552	/* free "cdesc" after "ifaces" and "endpoints", if any */
553	if (udev->cdesc != NULL) {
554		if (udev->flags.usb_mode != USB_MODE_DEVICE)
555			usbd_free_config_desc(udev, udev->cdesc);
556		udev->cdesc = NULL;
557	}
558	/* set unconfigured state */
559	udev->curr_config_no = USB_UNCONFIG_NO;
560	udev->curr_config_index = USB_UNCONFIG_INDEX;
561
562	if (do_unlock)
563		usbd_enum_unlock(udev);
564}
565
566/*------------------------------------------------------------------------*
567 *	usbd_set_config_index
568 *
569 * This function selects configuration by index, independent of the
570 * actual configuration number. This function should not be used by
571 * USB drivers.
572 *
573 * Returns:
574 *    0: Success
575 * Else: Failure
576 *------------------------------------------------------------------------*/
577usb_error_t
578usbd_set_config_index(struct usb_device *udev, uint8_t index)
579{
580	struct usb_status ds;
581	struct usb_config_descriptor *cdp;
582	uint16_t power;
583	uint16_t max_power;
584	uint8_t selfpowered;
585	uint8_t do_unlock;
586	usb_error_t err;
587
588	DPRINTFN(6, "udev=%p index=%d\n", udev, index);
589
590	/* Prevent re-enumeration */
591	do_unlock = usbd_enum_lock(udev);
592
593	usb_unconfigure(udev, 0);
594
595	if (index == USB_UNCONFIG_INDEX) {
596		/*
597		 * Leave unallocated when unconfiguring the
598		 * device. "usb_unconfigure()" will also reset
599		 * the current config number and index.
600		 */
601		err = usbd_req_set_config(udev, NULL, USB_UNCONFIG_NO);
602		if (udev->state == USB_STATE_CONFIGURED)
603			usb_set_device_state(udev, USB_STATE_ADDRESSED);
604		goto done;
605	}
606	/* get the full config descriptor */
607	if (udev->flags.usb_mode == USB_MODE_DEVICE) {
608		/* save some memory */
609		err = usbd_req_get_descriptor_ptr(udev, &cdp,
610		    (UDESC_CONFIG << 8) | index);
611	} else {
612		/* normal request */
613		err = usbd_req_get_config_desc_full(udev,
614		    NULL, &cdp, index);
615	}
616	if (err) {
617		goto done;
618	}
619	/* set the new config descriptor */
620
621	udev->cdesc = cdp;
622
623	/* Figure out if the device is self or bus powered. */
624	selfpowered = 0;
625	if ((!udev->flags.uq_bus_powered) &&
626	    (cdp->bmAttributes & UC_SELF_POWERED) &&
627	    (udev->flags.usb_mode == USB_MODE_HOST)) {
628		/* May be self powered. */
629		if (cdp->bmAttributes & UC_BUS_POWERED) {
630			/* Must ask device. */
631			err = usbd_req_get_device_status(udev, NULL, &ds);
632			if (err) {
633				DPRINTFN(0, "could not read "
634				    "device status: %s\n",
635				    usbd_errstr(err));
636			} else if (UGETW(ds.wStatus) & UDS_SELF_POWERED) {
637				selfpowered = 1;
638			}
639			DPRINTF("status=0x%04x \n",
640				UGETW(ds.wStatus));
641		} else
642			selfpowered = 1;
643	}
644	DPRINTF("udev=%p cdesc=%p (addr %d) cno=%d attr=0x%02x, "
645	    "selfpowered=%d, power=%d\n",
646	    udev, cdp,
647	    udev->address, cdp->bConfigurationValue, cdp->bmAttributes,
648	    selfpowered, cdp->bMaxPower * 2);
649
650	/* Check if we have enough power. */
651	power = cdp->bMaxPower * 2;
652
653	if (udev->parent_hub) {
654		max_power = udev->parent_hub->hub->portpower;
655	} else {
656		max_power = USB_MAX_POWER;
657	}
658
659	if (power > max_power) {
660		DPRINTFN(0, "power exceeded %d > %d\n", power, max_power);
661		err = USB_ERR_NO_POWER;
662		goto done;
663	}
664	/* Only update "self_powered" in USB Host Mode */
665	if (udev->flags.usb_mode == USB_MODE_HOST) {
666		udev->flags.self_powered = selfpowered;
667	}
668	udev->power = power;
669	udev->curr_config_no = cdp->bConfigurationValue;
670	udev->curr_config_index = index;
671	usb_set_device_state(udev, USB_STATE_CONFIGURED);
672
673	/* Set the actual configuration value. */
674	err = usbd_req_set_config(udev, NULL, cdp->bConfigurationValue);
675	if (err) {
676		goto done;
677	}
678
679	err = usb_config_parse(udev, USB_IFACE_INDEX_ANY, USB_CFG_ALLOC);
680	if (err) {
681		goto done;
682	}
683
684	err = usb_config_parse(udev, USB_IFACE_INDEX_ANY, USB_CFG_INIT);
685	if (err) {
686		goto done;
687	}
688
689#if USB_HAVE_UGEN
690	/* create device nodes for each endpoint */
691	usb_cdev_create(udev);
692#endif
693
694done:
695	DPRINTF("error=%s\n", usbd_errstr(err));
696	if (err) {
697		usb_unconfigure(udev, 0);
698	}
699	if (do_unlock)
700		usbd_enum_unlock(udev);
701	return (err);
702}
703
704/*------------------------------------------------------------------------*
705 *	usb_config_parse
706 *
707 * This function will allocate and free USB interfaces and USB endpoints,
708 * parse the USB configuration structure and initialise the USB endpoints
709 * and interfaces. If "iface_index" is not equal to
710 * "USB_IFACE_INDEX_ANY" then the "cmd" parameter is the
711 * alternate_setting to be selected for the given interface. Else the
712 * "cmd" parameter is defined by "USB_CFG_XXX". "iface_index" can be
713 * "USB_IFACE_INDEX_ANY" or a valid USB interface index. This function
714 * is typically called when setting the configuration or when setting
715 * an alternate interface.
716 *
717 * Returns:
718 *    0: Success
719 * Else: Failure
720 *------------------------------------------------------------------------*/
721static usb_error_t
722usb_config_parse(struct usb_device *udev, uint8_t iface_index, uint8_t cmd)
723{
724	struct usb_idesc_parse_state ips;
725	struct usb_interface_descriptor *id;
726	struct usb_endpoint_descriptor *ed;
727	struct usb_interface *iface;
728	struct usb_endpoint *ep;
729	usb_error_t err;
730	uint8_t ep_curr;
731	uint8_t ep_max;
732	uint8_t temp;
733	uint8_t do_init;
734	uint8_t alt_index;
735
736	if (iface_index != USB_IFACE_INDEX_ANY) {
737		/* parameter overload */
738		alt_index = cmd;
739		cmd = USB_CFG_INIT;
740	} else {
741		/* not used */
742		alt_index = 0;
743	}
744
745	err = 0;
746
747	DPRINTFN(5, "iface_index=%d cmd=%d\n",
748	    iface_index, cmd);
749
750	if (cmd == USB_CFG_FREE)
751		goto cleanup;
752
753	if (cmd == USB_CFG_INIT) {
754		sx_assert(&udev->enum_sx, SA_LOCKED);
755
756		/* check for in-use endpoints */
757
758		ep = udev->endpoints;
759		ep_max = udev->endpoints_max;
760		while (ep_max--) {
761			/* look for matching endpoints */
762			if ((iface_index == USB_IFACE_INDEX_ANY) ||
763			    (iface_index == ep->iface_index)) {
764				if (ep->refcount_alloc != 0) {
765					/*
766					 * This typically indicates a
767					 * more serious error.
768					 */
769					err = USB_ERR_IN_USE;
770				} else {
771					/* reset endpoint */
772					memset(ep, 0, sizeof(*ep));
773					/* make sure we don't zero the endpoint again */
774					ep->iface_index = USB_IFACE_INDEX_ANY;
775				}
776			}
777			ep++;
778		}
779
780		if (err)
781			return (err);
782	}
783
784	memset(&ips, 0, sizeof(ips));
785
786	ep_curr = 0;
787	ep_max = 0;
788
789	while ((id = usb_idesc_foreach(udev->cdesc, &ips))) {
790
791		iface = udev->ifaces + ips.iface_index;
792
793		/* check for specific interface match */
794
795		if (cmd == USB_CFG_INIT) {
796			if ((iface_index != USB_IFACE_INDEX_ANY) &&
797			    (iface_index != ips.iface_index)) {
798				/* wrong interface */
799				do_init = 0;
800			} else if (alt_index != ips.iface_index_alt) {
801				/* wrong alternate setting */
802				do_init = 0;
803			} else {
804				/* initialise interface */
805				do_init = 1;
806			}
807		} else
808			do_init = 0;
809
810		/* check for new interface */
811		if (ips.iface_index_alt == 0) {
812			/* update current number of endpoints */
813			ep_curr = ep_max;
814		}
815		/* check for init */
816		if (do_init) {
817			/* setup the USB interface structure */
818			iface->idesc = id;
819			/* set alternate index */
820			iface->alt_index = alt_index;
821			/* set default interface parent */
822			if (iface_index == USB_IFACE_INDEX_ANY) {
823				iface->parent_iface_index =
824				    USB_IFACE_INDEX_ANY;
825			}
826		}
827
828		DPRINTFN(5, "found idesc nendpt=%d\n", id->bNumEndpoints);
829
830		ed = (struct usb_endpoint_descriptor *)id;
831
832		temp = ep_curr;
833
834		/* iterate all the endpoint descriptors */
835		while ((ed = usb_edesc_foreach(udev->cdesc, ed))) {
836
837			/* check if endpoint limit has been reached */
838			if (temp >= USB_MAX_EP_UNITS) {
839				DPRINTF("Endpoint limit reached\n");
840				break;
841			}
842
843			ep = udev->endpoints + temp;
844
845			if (do_init) {
846				void *ecomp;
847
848				ecomp = usb_ed_comp_foreach(udev->cdesc, (void *)ed);
849				if (ecomp != NULL)
850					DPRINTFN(5, "Found endpoint companion descriptor\n");
851
852				usb_init_endpoint(udev,
853				    ips.iface_index, ed, ecomp, ep);
854			}
855
856			temp ++;
857
858			/* find maximum number of endpoints */
859			if (ep_max < temp)
860				ep_max = temp;
861		}
862	}
863
864	/* NOTE: It is valid to have no interfaces and no endpoints! */
865
866	if (cmd == USB_CFG_ALLOC) {
867		udev->ifaces_max = ips.iface_index;
868#if (USB_HAVE_FIXED_IFACE == 0)
869		udev->ifaces = NULL;
870		if (udev->ifaces_max != 0) {
871			udev->ifaces = malloc(sizeof(*iface) * udev->ifaces_max,
872			        M_USB, M_WAITOK | M_ZERO);
873			if (udev->ifaces == NULL) {
874				err = USB_ERR_NOMEM;
875				goto done;
876			}
877		}
878#endif
879#if (USB_HAVE_FIXED_ENDPOINT == 0)
880		if (ep_max != 0) {
881			udev->endpoints = malloc(sizeof(*ep) * ep_max,
882			        M_USB, M_WAITOK | M_ZERO);
883			if (udev->endpoints == NULL) {
884				err = USB_ERR_NOMEM;
885				goto done;
886			}
887		} else {
888			udev->endpoints = NULL;
889		}
890#endif
891		USB_BUS_LOCK(udev->bus);
892		udev->endpoints_max = ep_max;
893		/* reset any ongoing clear-stall */
894		udev->ep_curr = NULL;
895		USB_BUS_UNLOCK(udev->bus);
896	}
897#if (USB_HAVE_FIXED_IFACE == 0) || (USB_HAVE_FIXED_ENDPOINT == 0)
898done:
899#endif
900	if (err) {
901		if (cmd == USB_CFG_ALLOC) {
902cleanup:
903			USB_BUS_LOCK(udev->bus);
904			udev->endpoints_max = 0;
905			/* reset any ongoing clear-stall */
906			udev->ep_curr = NULL;
907			USB_BUS_UNLOCK(udev->bus);
908
909#if (USB_HAVE_FIXED_IFACE == 0)
910			free(udev->ifaces, M_USB);
911			udev->ifaces = NULL;
912#endif
913#if (USB_HAVE_FIXED_ENDPOINT == 0)
914			free(udev->endpoints, M_USB);
915			udev->endpoints = NULL;
916#endif
917			udev->ifaces_max = 0;
918		}
919	}
920	return (err);
921}
922
923/*------------------------------------------------------------------------*
924 *	usbd_set_alt_interface_index
925 *
926 * This function will select an alternate interface index for the
927 * given interface index. The interface should not be in use when this
928 * function is called. That means there should not be any open USB
929 * transfers. Else an error is returned. If the alternate setting is
930 * already set this function will simply return success. This function
931 * is called in Host mode and Device mode!
932 *
933 * Returns:
934 *    0: Success
935 * Else: Failure
936 *------------------------------------------------------------------------*/
937usb_error_t
938usbd_set_alt_interface_index(struct usb_device *udev,
939    uint8_t iface_index, uint8_t alt_index)
940{
941	struct usb_interface *iface = usbd_get_iface(udev, iface_index);
942	usb_error_t err;
943	uint8_t do_unlock;
944
945	/* Prevent re-enumeration */
946	do_unlock = usbd_enum_lock(udev);
947
948	if (iface == NULL) {
949		err = USB_ERR_INVAL;
950		goto done;
951	}
952	if (iface->alt_index == alt_index) {
953		/*
954		 * Optimise away duplicate setting of
955		 * alternate setting in USB Host Mode!
956		 */
957		err = 0;
958		goto done;
959	}
960#if USB_HAVE_UGEN
961	/*
962	 * Free all generic FIFOs for this interface, except control
963	 * endpoint FIFOs:
964	 */
965	usb_fifo_free_wrap(udev, iface_index, 0);
966#endif
967
968	err = usb_config_parse(udev, iface_index, alt_index);
969	if (err) {
970		goto done;
971	}
972	if (iface->alt_index != alt_index) {
973		/* the alternate setting does not exist */
974		err = USB_ERR_INVAL;
975		goto done;
976	}
977
978	err = usbd_req_set_alt_interface_no(udev, NULL, iface_index,
979	    iface->idesc->bAlternateSetting);
980
981done:
982	if (do_unlock)
983		usbd_enum_unlock(udev);
984	return (err);
985}
986
987/*------------------------------------------------------------------------*
988 *	usbd_set_endpoint_stall
989 *
990 * This function is used to make a BULK or INTERRUPT endpoint send
991 * STALL tokens in USB device mode.
992 *
993 * Returns:
994 *    0: Success
995 * Else: Failure
996 *------------------------------------------------------------------------*/
997usb_error_t
998usbd_set_endpoint_stall(struct usb_device *udev, struct usb_endpoint *ep,
999    uint8_t do_stall)
1000{
1001	struct usb_xfer *xfer;
1002	usb_stream_t x;
1003	uint8_t et;
1004	uint8_t was_stalled;
1005
1006	if (ep == NULL) {
1007		/* nothing to do */
1008		DPRINTF("Cannot find endpoint\n");
1009		/*
1010		 * Pretend that the clear or set stall request is
1011		 * successful else some USB host stacks can do
1012		 * strange things, especially when a control endpoint
1013		 * stalls.
1014		 */
1015		return (0);
1016	}
1017	et = (ep->edesc->bmAttributes & UE_XFERTYPE);
1018
1019	if ((et != UE_BULK) &&
1020	    (et != UE_INTERRUPT)) {
1021		/*
1022	         * Should not stall control
1023	         * nor isochronous endpoints.
1024	         */
1025		DPRINTF("Invalid endpoint\n");
1026		return (0);
1027	}
1028	USB_BUS_LOCK(udev->bus);
1029
1030	/* store current stall state */
1031	was_stalled = ep->is_stalled;
1032
1033	/* check for no change */
1034	if (was_stalled && do_stall) {
1035		/* if the endpoint is already stalled do nothing */
1036		USB_BUS_UNLOCK(udev->bus);
1037		DPRINTF("No change\n");
1038		return (0);
1039	}
1040	/* set stalled state */
1041	ep->is_stalled = 1;
1042
1043	if (do_stall || (!was_stalled)) {
1044		if (!was_stalled) {
1045			for (x = 0; x != USB_MAX_EP_STREAMS; x++) {
1046				/* lookup the current USB transfer, if any */
1047				xfer = ep->endpoint_q[x].curr;
1048				if (xfer != NULL) {
1049					/*
1050					 * The "xfer_stall" method
1051					 * will complete the USB
1052					 * transfer like in case of a
1053					 * timeout setting the error
1054					 * code "USB_ERR_STALLED".
1055					 */
1056					(udev->bus->methods->xfer_stall) (xfer);
1057				}
1058			}
1059		}
1060		(udev->bus->methods->set_stall) (udev, ep, &do_stall);
1061	}
1062	if (!do_stall) {
1063		ep->toggle_next = 0;	/* reset data toggle */
1064		ep->is_stalled = 0;	/* clear stalled state */
1065
1066		(udev->bus->methods->clear_stall) (udev, ep);
1067
1068		/* start the current or next transfer, if any */
1069		for (x = 0; x != USB_MAX_EP_STREAMS; x++) {
1070			usb_command_wrapper(&ep->endpoint_q[x],
1071			    ep->endpoint_q[x].curr);
1072		}
1073	}
1074	USB_BUS_UNLOCK(udev->bus);
1075	return (0);
1076}
1077
1078/*------------------------------------------------------------------------*
1079 *	usb_reset_iface_endpoints - used in USB device side mode
1080 *------------------------------------------------------------------------*/
1081usb_error_t
1082usb_reset_iface_endpoints(struct usb_device *udev, uint8_t iface_index)
1083{
1084	struct usb_endpoint *ep;
1085	struct usb_endpoint *ep_end;
1086
1087	ep = udev->endpoints;
1088	ep_end = udev->endpoints + udev->endpoints_max;
1089
1090	for (; ep != ep_end; ep++) {
1091
1092		if ((ep->edesc == NULL) ||
1093		    (ep->iface_index != iface_index)) {
1094			continue;
1095		}
1096		/* simulate a clear stall from the peer */
1097		usbd_set_endpoint_stall(udev, ep, 0);
1098	}
1099	return (0);
1100}
1101
1102/*------------------------------------------------------------------------*
1103 *	usb_detach_device_sub
1104 *
1105 * This function will try to detach an USB device. If it fails a panic
1106 * will result.
1107 *
1108 * Flag values, see "USB_UNCFG_FLAG_XXX".
1109 *------------------------------------------------------------------------*/
1110static void
1111usb_detach_device_sub(struct usb_device *udev, device_t *ppdev,
1112    char **ppnpinfo, uint8_t flag)
1113{
1114	device_t dev;
1115	char *pnpinfo;
1116	int err;
1117
1118	dev = *ppdev;
1119	if (dev) {
1120		/*
1121		 * NOTE: It is important to clear "*ppdev" before deleting
1122		 * the child due to some device methods being called late
1123		 * during the delete process !
1124		 */
1125		*ppdev = NULL;
1126
1127		device_printf(dev, "at %s, port %d, addr %d "
1128		    "(disconnected)\n",
1129		    device_get_nameunit(udev->parent_dev),
1130		    udev->port_no, udev->address);
1131
1132		if (device_is_attached(dev)) {
1133			if (udev->flags.peer_suspended) {
1134				err = DEVICE_RESUME(dev);
1135				if (err) {
1136					device_printf(dev, "Resume failed\n");
1137				}
1138			}
1139			if (device_detach(dev)) {
1140				goto error;
1141			}
1142		}
1143		if (device_delete_child(udev->parent_dev, dev)) {
1144			goto error;
1145		}
1146	}
1147
1148	pnpinfo = *ppnpinfo;
1149	if (pnpinfo != NULL) {
1150		*ppnpinfo = NULL;
1151		free(pnpinfo, M_USBDEV);
1152	}
1153	return;
1154
1155error:
1156	/* Detach is not allowed to fail in the USB world */
1157	panic("usb_detach_device_sub: A USB driver would not detach\n");
1158}
1159
1160/*------------------------------------------------------------------------*
1161 *	usb_detach_device
1162 *
1163 * The following function will detach the matching interfaces.
1164 * This function is NULL safe.
1165 *
1166 * Flag values, see "USB_UNCFG_FLAG_XXX".
1167 *------------------------------------------------------------------------*/
1168void
1169usb_detach_device(struct usb_device *udev, uint8_t iface_index,
1170    uint8_t flag)
1171{
1172	struct usb_interface *iface;
1173	uint8_t i;
1174
1175	if (udev == NULL) {
1176		/* nothing to do */
1177		return;
1178	}
1179	DPRINTFN(4, "udev=%p\n", udev);
1180
1181	sx_assert(&udev->enum_sx, SA_LOCKED);
1182
1183	/* wait for pending refs to go away */
1184	usb_wait_pending_ref_locked(udev);
1185
1186	/*
1187	 * First detach the child to give the child's detach routine a
1188	 * chance to detach the sub-devices in the correct order.
1189	 * Then delete the child using "device_delete_child()" which
1190	 * will detach all sub-devices from the bottom and upwards!
1191	 */
1192	if (iface_index != USB_IFACE_INDEX_ANY) {
1193		i = iface_index;
1194		iface_index = i + 1;
1195	} else {
1196		i = 0;
1197		iface_index = USB_IFACE_MAX;
1198	}
1199
1200	/* do the detach */
1201
1202	for (; i != iface_index; i++) {
1203
1204		iface = usbd_get_iface(udev, i);
1205		if (iface == NULL) {
1206			/* looks like the end of the USB interfaces */
1207			break;
1208		}
1209		usb_detach_device_sub(udev, &iface->subdev,
1210		    &iface->pnpinfo, flag);
1211	}
1212
1213	usb_ref_restore_locked(udev);
1214}
1215
1216/*------------------------------------------------------------------------*
1217 *	usb_probe_and_attach_sub
1218 *
1219 * Returns:
1220 *    0: Success
1221 * Else: Failure
1222 *------------------------------------------------------------------------*/
1223static uint8_t
1224usb_probe_and_attach_sub(struct usb_device *udev,
1225    struct usb_attach_arg *uaa)
1226{
1227	struct usb_interface *iface;
1228	device_t dev;
1229	int err;
1230
1231	iface = uaa->iface;
1232	if (iface->parent_iface_index != USB_IFACE_INDEX_ANY) {
1233		/* leave interface alone */
1234		return (0);
1235	}
1236	dev = iface->subdev;
1237	if (dev) {
1238
1239		/* clean up after module unload */
1240
1241		if (device_is_attached(dev)) {
1242			/* already a device there */
1243			return (0);
1244		}
1245		/* clear "iface->subdev" as early as possible */
1246
1247		iface->subdev = NULL;
1248
1249		if (device_delete_child(udev->parent_dev, dev)) {
1250
1251			/*
1252			 * Panic here, else one can get a double call
1253			 * to device_detach().  USB devices should
1254			 * never fail on detach!
1255			 */
1256			panic("device_delete_child() failed\n");
1257		}
1258	}
1259	if (uaa->temp_dev == NULL) {
1260
1261		/* create a new child */
1262		uaa->temp_dev = device_add_child(udev->parent_dev, NULL, -1);
1263		if (uaa->temp_dev == NULL) {
1264			device_printf(udev->parent_dev,
1265			    "Device creation failed\n");
1266			return (1);	/* failure */
1267		}
1268		device_set_ivars(uaa->temp_dev, uaa);
1269		device_quiet(uaa->temp_dev);
1270	}
1271	/*
1272	 * Set "subdev" before probe and attach so that "devd" gets
1273	 * the information it needs.
1274	 */
1275	iface->subdev = uaa->temp_dev;
1276
1277	if (device_probe_and_attach(iface->subdev) == 0) {
1278		/*
1279		 * The USB attach arguments are only available during probe
1280		 * and attach !
1281		 */
1282		uaa->temp_dev = NULL;
1283		device_set_ivars(iface->subdev, NULL);
1284
1285		if (udev->flags.peer_suspended) {
1286			err = DEVICE_SUSPEND(iface->subdev);
1287			if (err)
1288				device_printf(iface->subdev, "Suspend failed\n");
1289		}
1290		return (0);		/* success */
1291	} else {
1292		/* No USB driver found */
1293		iface->subdev = NULL;
1294	}
1295	return (1);			/* failure */
1296}
1297
1298/*------------------------------------------------------------------------*
1299 *	usbd_set_parent_iface
1300 *
1301 * Using this function will lock the alternate interface setting on an
1302 * interface. It is typically used for multi interface drivers. In USB
1303 * device side mode it is assumed that the alternate interfaces all
1304 * have the same endpoint descriptors. The default parent index value
1305 * is "USB_IFACE_INDEX_ANY". Then the alternate setting value is not
1306 * locked.
1307 *------------------------------------------------------------------------*/
1308void
1309usbd_set_parent_iface(struct usb_device *udev, uint8_t iface_index,
1310    uint8_t parent_index)
1311{
1312	struct usb_interface *iface;
1313
1314	if (udev == NULL) {
1315		/* nothing to do */
1316		return;
1317	}
1318	iface = usbd_get_iface(udev, iface_index);
1319	if (iface != NULL)
1320		iface->parent_iface_index = parent_index;
1321}
1322
1323static void
1324usb_init_attach_arg(struct usb_device *udev,
1325    struct usb_attach_arg *uaa)
1326{
1327	memset(uaa, 0, sizeof(*uaa));
1328
1329	uaa->device = udev;
1330	uaa->usb_mode = udev->flags.usb_mode;
1331	uaa->port = udev->port_no;
1332	uaa->dev_state = UAA_DEV_READY;
1333
1334	uaa->info.idVendor = UGETW(udev->ddesc.idVendor);
1335	uaa->info.idProduct = UGETW(udev->ddesc.idProduct);
1336	uaa->info.bcdDevice = UGETW(udev->ddesc.bcdDevice);
1337	uaa->info.bDeviceClass = udev->ddesc.bDeviceClass;
1338	uaa->info.bDeviceSubClass = udev->ddesc.bDeviceSubClass;
1339	uaa->info.bDeviceProtocol = udev->ddesc.bDeviceProtocol;
1340	uaa->info.bConfigIndex = udev->curr_config_index;
1341	uaa->info.bConfigNum = udev->curr_config_no;
1342}
1343
1344/*------------------------------------------------------------------------*
1345 *	usb_probe_and_attach
1346 *
1347 * This function is called from "uhub_explore_sub()",
1348 * "usb_handle_set_config()" and "usb_handle_request()".
1349 *
1350 * Returns:
1351 *    0: Success
1352 * Else: A control transfer failed
1353 *------------------------------------------------------------------------*/
1354usb_error_t
1355usb_probe_and_attach(struct usb_device *udev, uint8_t iface_index)
1356{
1357	struct usb_attach_arg uaa;
1358	struct usb_interface *iface;
1359	uint8_t i;
1360	uint8_t j;
1361	uint8_t do_unlock;
1362
1363	if (udev == NULL) {
1364		DPRINTF("udev == NULL\n");
1365		return (USB_ERR_INVAL);
1366	}
1367	/* Prevent re-enumeration */
1368	do_unlock = usbd_enum_lock(udev);
1369
1370	if (udev->curr_config_index == USB_UNCONFIG_INDEX) {
1371		/* do nothing - no configuration has been set */
1372		goto done;
1373	}
1374	/* setup USB attach arguments */
1375
1376	usb_init_attach_arg(udev, &uaa);
1377
1378	/*
1379	 * If the whole USB device is targeted, invoke the USB event
1380	 * handler(s):
1381	 */
1382	if (iface_index == USB_IFACE_INDEX_ANY) {
1383
1384		EVENTHANDLER_INVOKE(usb_dev_configured, udev, &uaa);
1385
1386		if (uaa.dev_state != UAA_DEV_READY) {
1387			/* leave device unconfigured */
1388			usb_unconfigure(udev, 0);
1389			goto done;
1390		}
1391	}
1392
1393	/* Check if only one interface should be probed: */
1394	if (iface_index != USB_IFACE_INDEX_ANY) {
1395		i = iface_index;
1396		j = i + 1;
1397	} else {
1398		i = 0;
1399		j = USB_IFACE_MAX;
1400	}
1401
1402	/* Do the probe and attach */
1403	for (; i != j; i++) {
1404
1405		iface = usbd_get_iface(udev, i);
1406		if (iface == NULL) {
1407			/*
1408			 * Looks like the end of the USB
1409			 * interfaces !
1410			 */
1411			DPRINTFN(2, "end of interfaces "
1412			    "at %u\n", i);
1413			break;
1414		}
1415		if (iface->idesc == NULL) {
1416			/* no interface descriptor */
1417			continue;
1418		}
1419		uaa.iface = iface;
1420
1421		uaa.info.bInterfaceClass =
1422		    iface->idesc->bInterfaceClass;
1423		uaa.info.bInterfaceSubClass =
1424		    iface->idesc->bInterfaceSubClass;
1425		uaa.info.bInterfaceProtocol =
1426		    iface->idesc->bInterfaceProtocol;
1427		uaa.info.bIfaceIndex = i;
1428		uaa.info.bIfaceNum =
1429		    iface->idesc->bInterfaceNumber;
1430		uaa.driver_info = 0;	/* reset driver_info */
1431
1432		DPRINTFN(2, "iclass=%u/%u/%u iindex=%u/%u\n",
1433		    uaa.info.bInterfaceClass,
1434		    uaa.info.bInterfaceSubClass,
1435		    uaa.info.bInterfaceProtocol,
1436		    uaa.info.bIfaceIndex,
1437		    uaa.info.bIfaceNum);
1438
1439		usb_probe_and_attach_sub(udev, &uaa);
1440
1441		/*
1442		 * Remove the leftover child, if any, to enforce that
1443		 * a new nomatch devd event is generated for the next
1444		 * interface if no driver is found:
1445		 */
1446		if (uaa.temp_dev == NULL)
1447			continue;
1448		if (device_delete_child(udev->parent_dev, uaa.temp_dev))
1449			DPRINTFN(0, "device delete child failed\n");
1450		uaa.temp_dev = NULL;
1451	}
1452done:
1453	if (do_unlock)
1454		usbd_enum_unlock(udev);
1455	return (0);
1456}
1457
1458/*------------------------------------------------------------------------*
1459 *	usb_suspend_resume_sub
1460 *
1461 * This function is called when the suspend or resume methods should
1462 * be executed on an USB device.
1463 *------------------------------------------------------------------------*/
1464static void
1465usb_suspend_resume_sub(struct usb_device *udev, device_t dev, uint8_t do_suspend)
1466{
1467	int err;
1468
1469	if (dev == NULL) {
1470		return;
1471	}
1472	if (!device_is_attached(dev)) {
1473		return;
1474	}
1475	if (do_suspend) {
1476		err = DEVICE_SUSPEND(dev);
1477	} else {
1478		err = DEVICE_RESUME(dev);
1479	}
1480	if (err) {
1481		device_printf(dev, "%s failed\n",
1482		    do_suspend ? "Suspend" : "Resume");
1483	}
1484}
1485
1486/*------------------------------------------------------------------------*
1487 *	usb_suspend_resume
1488 *
1489 * The following function will suspend or resume the USB device.
1490 *
1491 * Returns:
1492 *    0: Success
1493 * Else: Failure
1494 *------------------------------------------------------------------------*/
1495usb_error_t
1496usb_suspend_resume(struct usb_device *udev, uint8_t do_suspend)
1497{
1498	struct usb_interface *iface;
1499	uint8_t i;
1500
1501	if (udev == NULL) {
1502		/* nothing to do */
1503		return (0);
1504	}
1505	DPRINTFN(4, "udev=%p do_suspend=%d\n", udev, do_suspend);
1506
1507	sx_assert(&udev->sr_sx, SA_LOCKED);
1508
1509	USB_BUS_LOCK(udev->bus);
1510	/* filter the suspend events */
1511	if (udev->flags.peer_suspended == do_suspend) {
1512		USB_BUS_UNLOCK(udev->bus);
1513		/* nothing to do */
1514		return (0);
1515	}
1516	udev->flags.peer_suspended = do_suspend;
1517	USB_BUS_UNLOCK(udev->bus);
1518
1519	/* do the suspend or resume */
1520
1521	for (i = 0; i != USB_IFACE_MAX; i++) {
1522
1523		iface = usbd_get_iface(udev, i);
1524		if (iface == NULL) {
1525			/* looks like the end of the USB interfaces */
1526			break;
1527		}
1528		usb_suspend_resume_sub(udev, iface->subdev, do_suspend);
1529	}
1530	return (0);
1531}
1532
1533/*------------------------------------------------------------------------*
1534 *      usbd_clear_stall_proc
1535 *
1536 * This function performs generic USB clear stall operations.
1537 *------------------------------------------------------------------------*/
1538static void
1539usbd_clear_stall_proc(struct usb_proc_msg *_pm)
1540{
1541	struct usb_udev_msg *pm = (void *)_pm;
1542	struct usb_device *udev = pm->udev;
1543
1544	/* Change lock */
1545	USB_BUS_UNLOCK(udev->bus);
1546	mtx_lock(&udev->device_mtx);
1547
1548	/* Start clear stall callback */
1549	usbd_transfer_start(udev->ctrl_xfer[1]);
1550
1551	/* Change lock */
1552	mtx_unlock(&udev->device_mtx);
1553	USB_BUS_LOCK(udev->bus);
1554}
1555
1556/*------------------------------------------------------------------------*
1557 *	usb_alloc_device
1558 *
1559 * This function allocates a new USB device. This function is called
1560 * when a new device has been put in the powered state, but not yet in
1561 * the addressed state. Get initial descriptor, set the address, get
1562 * full descriptor and get strings.
1563 *
1564 * Return values:
1565 *    0: Failure
1566 * Else: Success
1567 *------------------------------------------------------------------------*/
1568struct usb_device *
1569usb_alloc_device(device_t parent_dev, struct usb_bus *bus,
1570    struct usb_device *parent_hub, uint8_t depth, uint8_t port_index,
1571    uint8_t port_no, enum usb_dev_speed speed, enum usb_hc_mode mode)
1572{
1573	struct usb_attach_arg uaa;
1574	struct usb_device *udev;
1575	struct usb_device *adev;
1576	struct usb_device *hub;
1577	uint8_t *scratch_ptr;
1578	usb_error_t err;
1579	uint8_t device_index;
1580	uint8_t config_index;
1581	uint8_t config_quirk;
1582	uint8_t set_config_failed;
1583	uint8_t do_unlock;
1584
1585	DPRINTF("parent_dev=%p, bus=%p, parent_hub=%p, depth=%u, "
1586	    "port_index=%u, port_no=%u, speed=%u, usb_mode=%u\n",
1587	    parent_dev, bus, parent_hub, depth, port_index, port_no,
1588	    speed, mode);
1589
1590	/*
1591	 * Find an unused device index. In USB Host mode this is the
1592	 * same as the device address.
1593	 *
1594	 * Device index zero is not used and device index 1 should
1595	 * always be the root hub.
1596	 */
1597	for (device_index = USB_ROOT_HUB_ADDR;
1598	    (device_index != bus->devices_max) &&
1599	    (bus->devices[device_index] != NULL);
1600	    device_index++) /* nop */;
1601
1602	if (device_index == bus->devices_max) {
1603		device_printf(bus->bdev,
1604		    "No free USB device index for new device\n");
1605		return (NULL);
1606	}
1607
1608	if (depth > 0x10) {
1609		device_printf(bus->bdev,
1610		    "Invalid device depth\n");
1611		return (NULL);
1612	}
1613	udev = malloc(sizeof(*udev), M_USB, M_WAITOK | M_ZERO);
1614	if (udev == NULL) {
1615		return (NULL);
1616	}
1617	/* initialise our SX-lock */
1618	sx_init_flags(&udev->enum_sx, "USB config SX lock", SX_DUPOK);
1619	sx_init_flags(&udev->sr_sx, "USB suspend and resume SX lock", SX_NOWITNESS);
1620
1621	cv_init(&udev->ctrlreq_cv, "WCTRL");
1622	cv_init(&udev->ref_cv, "UGONE");
1623
1624	/* initialise our mutex */
1625	mtx_init(&udev->device_mtx, "USB device mutex", NULL, MTX_DEF);
1626
1627	/* initialise generic clear stall */
1628	udev->cs_msg[0].hdr.pm_callback = &usbd_clear_stall_proc;
1629	udev->cs_msg[0].udev = udev;
1630	udev->cs_msg[1].hdr.pm_callback = &usbd_clear_stall_proc;
1631	udev->cs_msg[1].udev = udev;
1632
1633	/* initialise some USB device fields */
1634	udev->parent_hub = parent_hub;
1635	udev->parent_dev = parent_dev;
1636	udev->port_index = port_index;
1637	udev->port_no = port_no;
1638	udev->depth = depth;
1639	udev->bus = bus;
1640	udev->address = USB_START_ADDR;	/* default value */
1641	udev->plugtime = (usb_ticks_t)ticks;
1642	/*
1643	 * We need to force the power mode to "on" because there are plenty
1644	 * of USB devices out there that do not work very well with
1645	 * automatic suspend and resume!
1646	 */
1647	udev->power_mode = usbd_filter_power_mode(udev, USB_POWER_MODE_ON);
1648	udev->pwr_save.last_xfer_time = ticks;
1649	/* we are not ready yet */
1650	udev->refcount = 1;
1651
1652	/* set up default endpoint descriptor */
1653	udev->ctrl_ep_desc.bLength = sizeof(udev->ctrl_ep_desc);
1654	udev->ctrl_ep_desc.bDescriptorType = UDESC_ENDPOINT;
1655	udev->ctrl_ep_desc.bEndpointAddress = USB_CONTROL_ENDPOINT;
1656	udev->ctrl_ep_desc.bmAttributes = UE_CONTROL;
1657	udev->ctrl_ep_desc.wMaxPacketSize[0] = USB_MAX_IPACKET;
1658	udev->ctrl_ep_desc.wMaxPacketSize[1] = 0;
1659	udev->ctrl_ep_desc.bInterval = 0;
1660
1661	/* set up default endpoint companion descriptor */
1662	udev->ctrl_ep_comp_desc.bLength = sizeof(udev->ctrl_ep_comp_desc);
1663	udev->ctrl_ep_comp_desc.bDescriptorType = UDESC_ENDPOINT_SS_COMP;
1664
1665	udev->ddesc.bMaxPacketSize = USB_MAX_IPACKET;
1666
1667	udev->speed = speed;
1668	udev->flags.usb_mode = mode;
1669
1670	/* search for our High Speed USB HUB, if any */
1671
1672	adev = udev;
1673	hub = udev->parent_hub;
1674
1675	while (hub) {
1676		if (hub->speed == USB_SPEED_HIGH) {
1677			udev->hs_hub_addr = hub->address;
1678			udev->parent_hs_hub = hub;
1679			udev->hs_port_no = adev->port_no;
1680			break;
1681		}
1682		adev = hub;
1683		hub = hub->parent_hub;
1684	}
1685
1686	/* init the default endpoint */
1687	usb_init_endpoint(udev, 0,
1688	    &udev->ctrl_ep_desc,
1689	    &udev->ctrl_ep_comp_desc,
1690	    &udev->ctrl_ep);
1691
1692	/* set device index */
1693	udev->device_index = device_index;
1694
1695#if USB_HAVE_UGEN
1696	/* Create ugen name */
1697	snprintf(udev->ugen_name, sizeof(udev->ugen_name),
1698	    USB_GENERIC_NAME "%u.%u", device_get_unit(bus->bdev),
1699	    device_index);
1700	LIST_INIT(&udev->pd_list);
1701
1702	/* Create the control endpoint device */
1703	udev->ctrl_dev = usb_make_dev(udev, NULL, 0, 0,
1704	    FREAD|FWRITE, UID_ROOT, GID_OPERATOR, 0600);
1705
1706	/* Create a link from /dev/ugenX.X to the default endpoint */
1707	if (udev->ctrl_dev != NULL)
1708		make_dev_alias(udev->ctrl_dev->cdev, "%s", udev->ugen_name);
1709#endif
1710	/* Initialise device */
1711	if (bus->methods->device_init != NULL) {
1712		err = (bus->methods->device_init) (udev);
1713		if (err != 0) {
1714			DPRINTFN(0, "device init %d failed "
1715			    "(%s, ignored)\n", device_index,
1716			    usbd_errstr(err));
1717			goto done;
1718		}
1719	}
1720	/* set powered device state after device init is complete */
1721	usb_set_device_state(udev, USB_STATE_POWERED);
1722
1723	if (udev->flags.usb_mode == USB_MODE_HOST) {
1724
1725		err = usbd_req_set_address(udev, NULL, device_index);
1726
1727		/*
1728		 * This is the new USB device address from now on, if
1729		 * the set address request didn't set it already.
1730		 */
1731		if (udev->address == USB_START_ADDR)
1732			udev->address = device_index;
1733
1734		/*
1735		 * We ignore any set-address errors, hence there are
1736		 * buggy USB devices out there that actually receive
1737		 * the SETUP PID, but manage to set the address before
1738		 * the STATUS stage is ACK'ed. If the device responds
1739		 * to the subsequent get-descriptor at the new
1740		 * address, then we know that the set-address command
1741		 * was successful.
1742		 */
1743		if (err) {
1744			DPRINTFN(0, "set address %d failed "
1745			    "(%s, ignored)\n", udev->address,
1746			    usbd_errstr(err));
1747		}
1748	} else {
1749		/* We are not self powered */
1750		udev->flags.self_powered = 0;
1751
1752		/* Set unconfigured state */
1753		udev->curr_config_no = USB_UNCONFIG_NO;
1754		udev->curr_config_index = USB_UNCONFIG_INDEX;
1755
1756		/* Setup USB descriptors */
1757		err = (usb_temp_setup_by_index_p) (udev, usb_template);
1758		if (err) {
1759			DPRINTFN(0, "setting up USB template failed maybe the USB "
1760			    "template module has not been loaded\n");
1761			goto done;
1762		}
1763	}
1764	usb_set_device_state(udev, USB_STATE_ADDRESSED);
1765
1766	/* setup the device descriptor and the initial "wMaxPacketSize" */
1767	err = usbd_setup_device_desc(udev, NULL);
1768
1769	if (err != 0) {
1770		/* try to enumerate two more times */
1771		err = usbd_req_re_enumerate(udev, NULL);
1772		if (err != 0) {
1773			err = usbd_req_re_enumerate(udev, NULL);
1774			if (err != 0) {
1775				goto done;
1776			}
1777		}
1778	}
1779
1780	/*
1781	 * Setup temporary USB attach args so that we can figure out some
1782	 * basic quirks for this device.
1783	 */
1784	usb_init_attach_arg(udev, &uaa);
1785
1786	if (usb_test_quirk(&uaa, UQ_BUS_POWERED)) {
1787		udev->flags.uq_bus_powered = 1;
1788	}
1789	if (usb_test_quirk(&uaa, UQ_NO_STRINGS)) {
1790		udev->flags.no_strings = 1;
1791	}
1792	/*
1793	 * Workaround for buggy USB devices.
1794	 *
1795	 * It appears that some string-less USB chips will crash and
1796	 * disappear if any attempts are made to read any string
1797	 * descriptors.
1798	 *
1799	 * Try to detect such chips by checking the strings in the USB
1800	 * device descriptor. If no strings are present there we
1801	 * simply disable all USB strings.
1802	 */
1803
1804	/* Protect scratch area */
1805	do_unlock = usbd_enum_lock(udev);
1806
1807	scratch_ptr = udev->scratch.data;
1808
1809	if (udev->ddesc.iManufacturer ||
1810	    udev->ddesc.iProduct ||
1811	    udev->ddesc.iSerialNumber) {
1812		/* read out the language ID string */
1813		err = usbd_req_get_string_desc(udev, NULL,
1814		    (char *)scratch_ptr, 4, 0, USB_LANGUAGE_TABLE);
1815	} else {
1816		err = USB_ERR_INVAL;
1817	}
1818
1819	if (err || (scratch_ptr[0] < 4)) {
1820		udev->flags.no_strings = 1;
1821	} else {
1822		uint16_t langid;
1823		uint16_t pref;
1824		uint16_t mask;
1825		uint8_t x;
1826
1827		/* load preferred value and mask */
1828		pref = usb_lang_id;
1829		mask = usb_lang_mask;
1830
1831		/* align length correctly */
1832		scratch_ptr[0] &= ~1U;
1833
1834		/* fix compiler warning */
1835		langid = 0;
1836
1837		/* search for preferred language */
1838		for (x = 2; (x < scratch_ptr[0]); x += 2) {
1839			langid = UGETW(scratch_ptr + x);
1840			if ((langid & mask) == pref)
1841				break;
1842		}
1843		if (x >= scratch_ptr[0]) {
1844			/* pick the first language as the default */
1845			DPRINTFN(1, "Using first language\n");
1846			langid = UGETW(scratch_ptr + 2);
1847		}
1848
1849		DPRINTFN(1, "Language selected: 0x%04x\n", langid);
1850		udev->langid = langid;
1851	}
1852
1853	if (do_unlock)
1854		usbd_enum_unlock(udev);
1855
1856	/* assume 100mA bus powered for now. Changed when configured. */
1857	udev->power = USB_MIN_POWER;
1858	/* fetch the vendor and product strings from the device */
1859	usbd_set_device_strings(udev);
1860
1861	if (udev->flags.usb_mode == USB_MODE_DEVICE) {
1862		/* USB device mode setup is complete */
1863		err = 0;
1864		goto config_done;
1865	}
1866
1867	/*
1868	 * Most USB devices should attach to config index 0 by
1869	 * default
1870	 */
1871	if (usb_test_quirk(&uaa, UQ_CFG_INDEX_0)) {
1872		config_index = 0;
1873		config_quirk = 1;
1874	} else if (usb_test_quirk(&uaa, UQ_CFG_INDEX_1)) {
1875		config_index = 1;
1876		config_quirk = 1;
1877	} else if (usb_test_quirk(&uaa, UQ_CFG_INDEX_2)) {
1878		config_index = 2;
1879		config_quirk = 1;
1880	} else if (usb_test_quirk(&uaa, UQ_CFG_INDEX_3)) {
1881		config_index = 3;
1882		config_quirk = 1;
1883	} else if (usb_test_quirk(&uaa, UQ_CFG_INDEX_4)) {
1884		config_index = 4;
1885		config_quirk = 1;
1886	} else {
1887		config_index = 0;
1888		config_quirk = 0;
1889	}
1890
1891	set_config_failed = 0;
1892repeat_set_config:
1893
1894	DPRINTF("setting config %u\n", config_index);
1895
1896	/* get the USB device configured */
1897	err = usbd_set_config_index(udev, config_index);
1898	if (err) {
1899		if (udev->ddesc.bNumConfigurations != 0) {
1900			if (!set_config_failed) {
1901				set_config_failed = 1;
1902				/* XXX try to re-enumerate the device */
1903				err = usbd_req_re_enumerate(udev, NULL);
1904				if (err == 0)
1905					goto repeat_set_config;
1906			}
1907			DPRINTFN(0, "Failure selecting configuration index %u:"
1908			    "%s, port %u, addr %u (ignored)\n",
1909			    config_index, usbd_errstr(err), udev->port_no,
1910			    udev->address);
1911		}
1912		/*
1913		 * Some USB devices do not have any configurations. Ignore any
1914		 * set config failures!
1915		 */
1916		err = 0;
1917		goto config_done;
1918	}
1919	if (!config_quirk && config_index + 1 < udev->ddesc.bNumConfigurations) {
1920		if ((udev->cdesc->bNumInterface < 2) &&
1921		    usbd_get_no_descriptors(udev->cdesc, UDESC_ENDPOINT) == 0) {
1922			DPRINTFN(0, "Found no endpoints, trying next config\n");
1923			config_index++;
1924			goto repeat_set_config;
1925		}
1926#if USB_HAVE_MSCTEST
1927		if (config_index == 0) {
1928			/*
1929			 * Try to figure out if we have an
1930			 * auto-install disk there:
1931			 */
1932			if (usb_iface_is_cdrom(udev, 0)) {
1933				DPRINTFN(0, "Found possible auto-install "
1934				    "disk (trying next config)\n");
1935				config_index++;
1936				goto repeat_set_config;
1937			}
1938		}
1939#endif
1940	}
1941#if USB_HAVE_MSCTEST
1942	if (set_config_failed == 0 && config_index == 0 &&
1943	    usb_test_quirk(&uaa, UQ_MSC_NO_SYNC_CACHE) == 0 &&
1944	    usb_test_quirk(&uaa, UQ_MSC_NO_GETMAXLUN) == 0) {
1945
1946		/*
1947		 * Try to figure out if there are any MSC quirks we
1948		 * should apply automatically:
1949		 */
1950		err = usb_msc_auto_quirk(udev, 0);
1951
1952		if (err != 0) {
1953			set_config_failed = 1;
1954			goto repeat_set_config;
1955		}
1956	}
1957#endif
1958
1959config_done:
1960	DPRINTF("new dev (addr %d), udev=%p, parent_hub=%p\n",
1961	    udev->address, udev, udev->parent_hub);
1962
1963	/* register our device - we are ready */
1964	usb_bus_port_set_device(bus, parent_hub ?
1965	    parent_hub->hub->ports + port_index : NULL, udev, device_index);
1966
1967#if USB_HAVE_UGEN
1968	/* Symlink the ugen device name */
1969	udev->ugen_symlink = usb_alloc_symlink(udev->ugen_name);
1970
1971	/* Announce device */
1972	printf("%s: <%s> at %s\n", udev->ugen_name,
1973	    usb_get_manufacturer(udev),
1974	    device_get_nameunit(udev->bus->bdev));
1975#endif
1976
1977#if USB_HAVE_DEVCTL
1978	usb_notify_addq("ATTACH", udev);
1979#endif
1980done:
1981	if (err) {
1982		/*
1983		 * Free USB device and all subdevices, if any.
1984		 */
1985		usb_free_device(udev, 0);
1986		udev = NULL;
1987	}
1988	return (udev);
1989}
1990
1991#if USB_HAVE_UGEN
1992struct usb_fs_privdata *
1993usb_make_dev(struct usb_device *udev, const char *devname, int ep,
1994    int fi, int rwmode, uid_t uid, gid_t gid, int mode)
1995{
1996	struct usb_fs_privdata* pd;
1997	char buffer[32];
1998
1999	/* Store information to locate ourselves again later */
2000	pd = malloc(sizeof(struct usb_fs_privdata), M_USBDEV,
2001	    M_WAITOK | M_ZERO);
2002	pd->bus_index = device_get_unit(udev->bus->bdev);
2003	pd->dev_index = udev->device_index;
2004	pd->ep_addr = ep;
2005	pd->fifo_index = fi;
2006	pd->mode = rwmode;
2007
2008	/* Now, create the device itself */
2009	if (devname == NULL) {
2010		devname = buffer;
2011		snprintf(buffer, sizeof(buffer), USB_DEVICE_DIR "/%u.%u.%u",
2012		    pd->bus_index, pd->dev_index, pd->ep_addr);
2013	}
2014
2015	pd->cdev = make_dev(&usb_devsw, 0, uid, gid, mode, "%s", devname);
2016
2017	if (pd->cdev == NULL) {
2018		DPRINTFN(0, "Failed to create device %s\n", devname);
2019		free(pd, M_USBDEV);
2020		return (NULL);
2021	}
2022
2023	/* XXX setting si_drv1 and creating the device is not atomic! */
2024	pd->cdev->si_drv1 = pd;
2025
2026	return (pd);
2027}
2028
2029void
2030usb_destroy_dev(struct usb_fs_privdata *pd)
2031{
2032	if (pd == NULL)
2033		return;
2034
2035	destroy_dev(pd->cdev);
2036
2037	free(pd, M_USBDEV);
2038}
2039
2040static void
2041usb_cdev_create(struct usb_device *udev)
2042{
2043	struct usb_config_descriptor *cd;
2044	struct usb_endpoint_descriptor *ed;
2045	struct usb_descriptor *desc;
2046	struct usb_fs_privdata* pd;
2047	int inmode, outmode, inmask, outmask, mode;
2048	uint8_t ep;
2049
2050	KASSERT(LIST_FIRST(&udev->pd_list) == NULL, ("stale cdev entries"));
2051
2052	DPRINTFN(2, "Creating device nodes\n");
2053
2054	if (usbd_get_mode(udev) == USB_MODE_DEVICE) {
2055		inmode = FWRITE;
2056		outmode = FREAD;
2057	} else {		 /* USB_MODE_HOST */
2058		inmode = FREAD;
2059		outmode = FWRITE;
2060	}
2061
2062	inmask = 0;
2063	outmask = 0;
2064	desc = NULL;
2065
2066	/*
2067	 * Collect all used endpoint numbers instead of just
2068	 * generating 16 static endpoints.
2069	 */
2070	cd = usbd_get_config_descriptor(udev);
2071	while ((desc = usb_desc_foreach(cd, desc))) {
2072		/* filter out all endpoint descriptors */
2073		if ((desc->bDescriptorType == UDESC_ENDPOINT) &&
2074		    (desc->bLength >= sizeof(*ed))) {
2075			ed = (struct usb_endpoint_descriptor *)desc;
2076
2077			/* update masks */
2078			ep = ed->bEndpointAddress;
2079			if (UE_GET_DIR(ep)  == UE_DIR_OUT)
2080				outmask |= 1 << UE_GET_ADDR(ep);
2081			else
2082				inmask |= 1 << UE_GET_ADDR(ep);
2083		}
2084	}
2085
2086	/* Create all available endpoints except EP0 */
2087	for (ep = 1; ep < 16; ep++) {
2088		mode = (inmask & (1 << ep)) ? inmode : 0;
2089		mode |= (outmask & (1 << ep)) ? outmode : 0;
2090		if (mode == 0)
2091			continue;	/* no IN or OUT endpoint */
2092
2093		pd = usb_make_dev(udev, NULL, ep, 0,
2094		    mode, UID_ROOT, GID_OPERATOR, 0600);
2095
2096		if (pd != NULL)
2097			LIST_INSERT_HEAD(&udev->pd_list, pd, pd_next);
2098	}
2099}
2100
2101static void
2102usb_cdev_free(struct usb_device *udev)
2103{
2104	struct usb_fs_privdata* pd;
2105
2106	DPRINTFN(2, "Freeing device nodes\n");
2107
2108	while ((pd = LIST_FIRST(&udev->pd_list)) != NULL) {
2109		KASSERT(pd->cdev->si_drv1 == pd, ("privdata corrupt"));
2110
2111		LIST_REMOVE(pd, pd_next);
2112
2113		usb_destroy_dev(pd);
2114	}
2115}
2116#endif
2117
2118/*------------------------------------------------------------------------*
2119 *	usb_free_device
2120 *
2121 * This function is NULL safe and will free an USB device and its
2122 * children devices, if any.
2123 *
2124 * Flag values: Reserved, set to zero.
2125 *------------------------------------------------------------------------*/
2126void
2127usb_free_device(struct usb_device *udev, uint8_t flag)
2128{
2129	struct usb_bus *bus;
2130
2131	if (udev == NULL)
2132		return;		/* already freed */
2133
2134	DPRINTFN(4, "udev=%p port=%d\n", udev, udev->port_no);
2135
2136	bus = udev->bus;
2137
2138	/* set DETACHED state to prevent any further references */
2139	usb_set_device_state(udev, USB_STATE_DETACHED);
2140
2141#if USB_HAVE_DEVCTL
2142	usb_notify_addq("DETACH", udev);
2143#endif
2144
2145#if USB_HAVE_UGEN
2146	printf("%s: <%s> at %s (disconnected)\n", udev->ugen_name,
2147	    usb_get_manufacturer(udev), device_get_nameunit(bus->bdev));
2148
2149	/* Destroy UGEN symlink, if any */
2150	if (udev->ugen_symlink) {
2151		usb_free_symlink(udev->ugen_symlink);
2152		udev->ugen_symlink = NULL;
2153	}
2154
2155	usb_destroy_dev(udev->ctrl_dev);
2156#endif
2157
2158	if (udev->flags.usb_mode == USB_MODE_DEVICE) {
2159		/* stop receiving any control transfers (Device Side Mode) */
2160		usbd_transfer_unsetup(udev->ctrl_xfer, USB_CTRL_XFER_MAX);
2161	}
2162
2163	/* the following will get the device unconfigured in software */
2164	usb_unconfigure(udev, USB_UNCFG_FLAG_FREE_EP0);
2165
2166	/* final device unregister after all character devices are closed */
2167	usb_bus_port_set_device(bus, udev->parent_hub ?
2168	    udev->parent_hub->hub->ports + udev->port_index : NULL,
2169	    NULL, USB_ROOT_HUB_ADDR);
2170
2171	/* unsetup any leftover default USB transfers */
2172	usbd_transfer_unsetup(udev->ctrl_xfer, USB_CTRL_XFER_MAX);
2173
2174	/* template unsetup, if any */
2175	(usb_temp_unsetup_p) (udev);
2176
2177	/*
2178	 * Make sure that our clear-stall messages are not queued
2179	 * anywhere:
2180	 */
2181	USB_BUS_LOCK(udev->bus);
2182	usb_proc_mwait(USB_BUS_NON_GIANT_PROC(udev->bus),
2183	    &udev->cs_msg[0], &udev->cs_msg[1]);
2184	USB_BUS_UNLOCK(udev->bus);
2185
2186	sx_destroy(&udev->enum_sx);
2187	sx_destroy(&udev->sr_sx);
2188
2189	cv_destroy(&udev->ctrlreq_cv);
2190	cv_destroy(&udev->ref_cv);
2191
2192	mtx_destroy(&udev->device_mtx);
2193#if USB_HAVE_UGEN
2194	KASSERT(LIST_FIRST(&udev->pd_list) == NULL, ("leaked cdev entries"));
2195#endif
2196
2197	/* Uninitialise device */
2198	if (bus->methods->device_uninit != NULL)
2199		(bus->methods->device_uninit) (udev);
2200
2201	/* free device */
2202	free(udev->serial, M_USB);
2203	free(udev->manufacturer, M_USB);
2204	free(udev->product, M_USB);
2205	free(udev, M_USB);
2206}
2207
2208/*------------------------------------------------------------------------*
2209 *	usbd_get_iface
2210 *
2211 * This function is the safe way to get the USB interface structure
2212 * pointer by interface index.
2213 *
2214 * Return values:
2215 *   NULL: Interface not present.
2216 *   Else: Pointer to USB interface structure.
2217 *------------------------------------------------------------------------*/
2218struct usb_interface *
2219usbd_get_iface(struct usb_device *udev, uint8_t iface_index)
2220{
2221	struct usb_interface *iface = udev->ifaces + iface_index;
2222
2223	if (iface_index >= udev->ifaces_max)
2224		return (NULL);
2225	return (iface);
2226}
2227
2228/*------------------------------------------------------------------------*
2229 *	usbd_find_descriptor
2230 *
2231 * This function will lookup the first descriptor that matches the
2232 * criteria given by the arguments "type" and "subtype". Descriptors
2233 * will only be searched within the interface having the index
2234 * "iface_index".  If the "id" argument points to an USB descriptor,
2235 * it will be skipped before the search is started. This allows
2236 * searching for multiple descriptors using the same criteria. Else
2237 * the search is started after the interface descriptor.
2238 *
2239 * Return values:
2240 *   NULL: End of descriptors
2241 *   Else: A descriptor matching the criteria
2242 *------------------------------------------------------------------------*/
2243void   *
2244usbd_find_descriptor(struct usb_device *udev, void *id, uint8_t iface_index,
2245    uint8_t type, uint8_t type_mask,
2246    uint8_t subtype, uint8_t subtype_mask)
2247{
2248	struct usb_descriptor *desc;
2249	struct usb_config_descriptor *cd;
2250	struct usb_interface *iface;
2251
2252	cd = usbd_get_config_descriptor(udev);
2253	if (cd == NULL) {
2254		return (NULL);
2255	}
2256	if (id == NULL) {
2257		iface = usbd_get_iface(udev, iface_index);
2258		if (iface == NULL) {
2259			return (NULL);
2260		}
2261		id = usbd_get_interface_descriptor(iface);
2262		if (id == NULL) {
2263			return (NULL);
2264		}
2265	}
2266	desc = (void *)id;
2267
2268	while ((desc = usb_desc_foreach(cd, desc))) {
2269
2270		if (desc->bDescriptorType == UDESC_INTERFACE) {
2271			break;
2272		}
2273		if (((desc->bDescriptorType & type_mask) == type) &&
2274		    ((desc->bDescriptorSubtype & subtype_mask) == subtype)) {
2275			return (desc);
2276		}
2277	}
2278	return (NULL);
2279}
2280
2281/*------------------------------------------------------------------------*
2282 *	usb_devinfo
2283 *
2284 * This function will dump information from the device descriptor
2285 * belonging to the USB device pointed to by "udev", to the string
2286 * pointed to by "dst_ptr" having a maximum length of "dst_len" bytes
2287 * including the terminating zero.
2288 *------------------------------------------------------------------------*/
2289void
2290usb_devinfo(struct usb_device *udev, char *dst_ptr, uint16_t dst_len)
2291{
2292	struct usb_device_descriptor *udd = &udev->ddesc;
2293	uint16_t bcdDevice;
2294	uint16_t bcdUSB;
2295
2296	bcdUSB = UGETW(udd->bcdUSB);
2297	bcdDevice = UGETW(udd->bcdDevice);
2298
2299	if (udd->bDeviceClass != 0xFF) {
2300		snprintf(dst_ptr, dst_len, "%s %s, class %d/%d, rev %x.%02x/"
2301		    "%x.%02x, addr %d",
2302		    usb_get_manufacturer(udev),
2303		    usb_get_product(udev),
2304		    udd->bDeviceClass, udd->bDeviceSubClass,
2305		    (bcdUSB >> 8), bcdUSB & 0xFF,
2306		    (bcdDevice >> 8), bcdDevice & 0xFF,
2307		    udev->address);
2308	} else {
2309		snprintf(dst_ptr, dst_len, "%s %s, rev %x.%02x/"
2310		    "%x.%02x, addr %d",
2311		    usb_get_manufacturer(udev),
2312		    usb_get_product(udev),
2313		    (bcdUSB >> 8), bcdUSB & 0xFF,
2314		    (bcdDevice >> 8), bcdDevice & 0xFF,
2315		    udev->address);
2316	}
2317}
2318
2319#ifdef USB_VERBOSE
2320/*
2321 * Descriptions of of known vendors and devices ("products").
2322 */
2323struct usb_knowndev {
2324	uint16_t vendor;
2325	uint16_t product;
2326	uint32_t flags;
2327	const char *vendorname;
2328	const char *productname;
2329};
2330
2331#define	USB_KNOWNDEV_NOPROD	0x01	/* match on vendor only */
2332
2333#include "usbdevs.h"
2334#include "usbdevs_data.h"
2335#endif					/* USB_VERBOSE */
2336
2337static void
2338usbd_set_device_strings(struct usb_device *udev)
2339{
2340	struct usb_device_descriptor *udd = &udev->ddesc;
2341#ifdef USB_VERBOSE
2342	const struct usb_knowndev *kdp;
2343#endif
2344	char *temp_ptr;
2345	size_t temp_size;
2346	uint16_t vendor_id;
2347	uint16_t product_id;
2348	uint8_t do_unlock;
2349
2350	/* Protect scratch area */
2351	do_unlock = usbd_enum_lock(udev);
2352
2353	temp_ptr = (char *)udev->scratch.data;
2354	temp_size = sizeof(udev->scratch.data);
2355
2356	vendor_id = UGETW(udd->idVendor);
2357	product_id = UGETW(udd->idProduct);
2358
2359	/* get serial number string */
2360	usbd_req_get_string_any(udev, NULL, temp_ptr, temp_size,
2361	    udev->ddesc.iSerialNumber);
2362	udev->serial = strdup(temp_ptr, M_USB);
2363
2364	/* get manufacturer string */
2365	usbd_req_get_string_any(udev, NULL, temp_ptr, temp_size,
2366	    udev->ddesc.iManufacturer);
2367	usb_trim_spaces(temp_ptr);
2368	if (temp_ptr[0] != '\0')
2369		udev->manufacturer = strdup(temp_ptr, M_USB);
2370
2371	/* get product string */
2372	usbd_req_get_string_any(udev, NULL, temp_ptr, temp_size,
2373	    udev->ddesc.iProduct);
2374	usb_trim_spaces(temp_ptr);
2375	if (temp_ptr[0] != '\0')
2376		udev->product = strdup(temp_ptr, M_USB);
2377
2378#ifdef USB_VERBOSE
2379	if (udev->manufacturer == NULL || udev->product == NULL) {
2380		for (kdp = usb_knowndevs; kdp->vendorname != NULL; kdp++) {
2381			if (kdp->vendor == vendor_id &&
2382			    (kdp->product == product_id ||
2383			    (kdp->flags & USB_KNOWNDEV_NOPROD) != 0))
2384				break;
2385		}
2386		if (kdp->vendorname != NULL) {
2387			/* XXX should use pointer to knowndevs string */
2388			if (udev->manufacturer == NULL) {
2389				udev->manufacturer = strdup(kdp->vendorname,
2390				    M_USB);
2391			}
2392			if (udev->product == NULL &&
2393			    (kdp->flags & USB_KNOWNDEV_NOPROD) == 0) {
2394				udev->product = strdup(kdp->productname,
2395				    M_USB);
2396			}
2397		}
2398	}
2399#endif
2400	/* Provide default strings if none were found */
2401	if (udev->manufacturer == NULL) {
2402		snprintf(temp_ptr, temp_size, "vendor 0x%04x", vendor_id);
2403		udev->manufacturer = strdup(temp_ptr, M_USB);
2404	}
2405	if (udev->product == NULL) {
2406		snprintf(temp_ptr, temp_size, "product 0x%04x", product_id);
2407		udev->product = strdup(temp_ptr, M_USB);
2408	}
2409
2410	if (do_unlock)
2411		usbd_enum_unlock(udev);
2412}
2413
2414/*
2415 * Returns:
2416 * See: USB_MODE_XXX
2417 */
2418enum usb_hc_mode
2419usbd_get_mode(struct usb_device *udev)
2420{
2421	return (udev->flags.usb_mode);
2422}
2423
2424/*
2425 * Returns:
2426 * See: USB_SPEED_XXX
2427 */
2428enum usb_dev_speed
2429usbd_get_speed(struct usb_device *udev)
2430{
2431	return (udev->speed);
2432}
2433
2434uint32_t
2435usbd_get_isoc_fps(struct usb_device *udev)
2436{
2437	;				/* indent fix */
2438	switch (udev->speed) {
2439	case USB_SPEED_LOW:
2440	case USB_SPEED_FULL:
2441		return (1000);
2442	default:
2443		return (8000);
2444	}
2445}
2446
2447struct usb_device_descriptor *
2448usbd_get_device_descriptor(struct usb_device *udev)
2449{
2450	if (udev == NULL)
2451		return (NULL);		/* be NULL safe */
2452	return (&udev->ddesc);
2453}
2454
2455struct usb_config_descriptor *
2456usbd_get_config_descriptor(struct usb_device *udev)
2457{
2458	if (udev == NULL)
2459		return (NULL);		/* be NULL safe */
2460	return (udev->cdesc);
2461}
2462
2463/*------------------------------------------------------------------------*
2464 *	usb_test_quirk - test a device for a given quirk
2465 *
2466 * Return values:
2467 * 0: The USB device does not have the given quirk.
2468 * Else: The USB device has the given quirk.
2469 *------------------------------------------------------------------------*/
2470uint8_t
2471usb_test_quirk(const struct usb_attach_arg *uaa, uint16_t quirk)
2472{
2473	uint8_t found;
2474	uint8_t x;
2475
2476	if (quirk == UQ_NONE)
2477		return (0);
2478
2479	/* search the automatic per device quirks first */
2480
2481	for (x = 0; x != USB_MAX_AUTO_QUIRK; x++) {
2482		if (uaa->device->autoQuirk[x] == quirk)
2483			return (1);
2484	}
2485
2486	/* search global quirk table, if any */
2487
2488	found = (usb_test_quirk_p) (&uaa->info, quirk);
2489
2490	return (found);
2491}
2492
2493struct usb_interface_descriptor *
2494usbd_get_interface_descriptor(struct usb_interface *iface)
2495{
2496	if (iface == NULL)
2497		return (NULL);		/* be NULL safe */
2498	return (iface->idesc);
2499}
2500
2501uint8_t
2502usbd_get_interface_altindex(struct usb_interface *iface)
2503{
2504	return (iface->alt_index);
2505}
2506
2507uint8_t
2508usbd_get_bus_index(struct usb_device *udev)
2509{
2510	return ((uint8_t)device_get_unit(udev->bus->bdev));
2511}
2512
2513uint8_t
2514usbd_get_device_index(struct usb_device *udev)
2515{
2516	return (udev->device_index);
2517}
2518
2519#if USB_HAVE_DEVCTL
2520static void
2521usb_notify_addq(const char *type, struct usb_device *udev)
2522{
2523	struct usb_interface *iface;
2524	struct sbuf *sb;
2525	int i;
2526
2527	/* announce the device */
2528	sb = sbuf_new_auto();
2529	sbuf_printf(sb,
2530#if USB_HAVE_UGEN
2531	    "ugen=%s "
2532	    "cdev=%s "
2533#endif
2534	    "vendor=0x%04x "
2535	    "product=0x%04x "
2536	    "devclass=0x%02x "
2537	    "devsubclass=0x%02x "
2538	    "sernum=\"%s\" "
2539	    "release=0x%04x "
2540	    "mode=%s "
2541	    "port=%u "
2542#if USB_HAVE_UGEN
2543	    "parent=%s"
2544#endif
2545	    "",
2546#if USB_HAVE_UGEN
2547	    udev->ugen_name,
2548	    udev->ugen_name,
2549#endif
2550	    UGETW(udev->ddesc.idVendor),
2551	    UGETW(udev->ddesc.idProduct),
2552	    udev->ddesc.bDeviceClass,
2553	    udev->ddesc.bDeviceSubClass,
2554	    usb_get_serial(udev),
2555	    UGETW(udev->ddesc.bcdDevice),
2556	    (udev->flags.usb_mode == USB_MODE_HOST) ? "host" : "device",
2557	    udev->port_no
2558#if USB_HAVE_UGEN
2559	    , udev->parent_hub != NULL ?
2560		udev->parent_hub->ugen_name :
2561		device_get_nameunit(device_get_parent(udev->bus->bdev))
2562#endif
2563	    );
2564	sbuf_finish(sb);
2565	devctl_notify("USB", "DEVICE", type, sbuf_data(sb));
2566	sbuf_delete(sb);
2567
2568	/* announce each interface */
2569	for (i = 0; i < USB_IFACE_MAX; i++) {
2570		iface = usbd_get_iface(udev, i);
2571		if (iface == NULL)
2572			break;		/* end of interfaces */
2573		if (iface->idesc == NULL)
2574			continue;	/* no interface descriptor */
2575
2576		sb = sbuf_new_auto();
2577		sbuf_printf(sb,
2578#if USB_HAVE_UGEN
2579		    "ugen=%s "
2580		    "cdev=%s "
2581#endif
2582		    "vendor=0x%04x "
2583		    "product=0x%04x "
2584		    "devclass=0x%02x "
2585		    "devsubclass=0x%02x "
2586		    "sernum=\"%s\" "
2587		    "release=0x%04x "
2588		    "mode=%s "
2589		    "interface=%d "
2590		    "endpoints=%d "
2591		    "intclass=0x%02x "
2592		    "intsubclass=0x%02x "
2593		    "intprotocol=0x%02x",
2594#if USB_HAVE_UGEN
2595		    udev->ugen_name,
2596		    udev->ugen_name,
2597#endif
2598		    UGETW(udev->ddesc.idVendor),
2599		    UGETW(udev->ddesc.idProduct),
2600		    udev->ddesc.bDeviceClass,
2601		    udev->ddesc.bDeviceSubClass,
2602		    usb_get_serial(udev),
2603		    UGETW(udev->ddesc.bcdDevice),
2604		    (udev->flags.usb_mode == USB_MODE_HOST) ? "host" : "device",
2605		    iface->idesc->bInterfaceNumber,
2606		    iface->idesc->bNumEndpoints,
2607		    iface->idesc->bInterfaceClass,
2608		    iface->idesc->bInterfaceSubClass,
2609		    iface->idesc->bInterfaceProtocol);
2610		sbuf_finish(sb);
2611		devctl_notify("USB", "INTERFACE", type, sbuf_data(sb));
2612		sbuf_delete(sb);
2613	}
2614}
2615#endif
2616
2617#if USB_HAVE_UGEN
2618/*------------------------------------------------------------------------*
2619 *	usb_fifo_free_wrap
2620 *
2621 * This function will free the FIFOs.
2622 *
2623 * Description of "flag" argument: If the USB_UNCFG_FLAG_FREE_EP0 flag
2624 * is set and "iface_index" is set to "USB_IFACE_INDEX_ANY", we free
2625 * all FIFOs. If the USB_UNCFG_FLAG_FREE_EP0 flag is not set and
2626 * "iface_index" is set to "USB_IFACE_INDEX_ANY", we free all non
2627 * control endpoint FIFOs. If "iface_index" is not set to
2628 * "USB_IFACE_INDEX_ANY" the flag has no effect.
2629 *------------------------------------------------------------------------*/
2630static void
2631usb_fifo_free_wrap(struct usb_device *udev,
2632    uint8_t iface_index, uint8_t flag)
2633{
2634	struct usb_fifo *f;
2635	uint16_t i;
2636
2637	/*
2638	 * Free any USB FIFOs on the given interface:
2639	 */
2640	for (i = 0; i != USB_FIFO_MAX; i++) {
2641		f = udev->fifo[i];
2642		if (f == NULL) {
2643			continue;
2644		}
2645		/* Check if the interface index matches */
2646		if (iface_index == f->iface_index) {
2647			if (f->methods != &usb_ugen_methods) {
2648				/*
2649				 * Don't free any non-generic FIFOs in
2650				 * this case.
2651				 */
2652				continue;
2653			}
2654			if ((f->dev_ep_index == 0) &&
2655			    (f->fs_xfer == NULL)) {
2656				/* no need to free this FIFO */
2657				continue;
2658			}
2659		} else if (iface_index == USB_IFACE_INDEX_ANY) {
2660			if ((f->methods == &usb_ugen_methods) &&
2661			    (f->dev_ep_index == 0) &&
2662			    (!(flag & USB_UNCFG_FLAG_FREE_EP0)) &&
2663			    (f->fs_xfer == NULL)) {
2664				/* no need to free this FIFO */
2665				continue;
2666			}
2667		} else {
2668			/* no need to free this FIFO */
2669			continue;
2670		}
2671		/* wait for pending refs to go away */
2672		usb_wait_pending_ref_locked(udev);
2673
2674		/* free this FIFO */
2675		usb_fifo_free(f);
2676
2677		/* restore refcount */
2678		usb_ref_restore_locked(udev);
2679	}
2680}
2681#endif
2682
2683/*------------------------------------------------------------------------*
2684 *	usb_peer_can_wakeup
2685 *
2686 * Return values:
2687 * 0: Peer cannot do resume signalling.
2688 * Else: Peer can do resume signalling.
2689 *------------------------------------------------------------------------*/
2690uint8_t
2691usb_peer_can_wakeup(struct usb_device *udev)
2692{
2693	const struct usb_config_descriptor *cdp;
2694
2695	cdp = udev->cdesc;
2696	if ((cdp != NULL) && (udev->flags.usb_mode == USB_MODE_HOST)) {
2697		return (cdp->bmAttributes & UC_REMOTE_WAKEUP);
2698	}
2699	return (0);			/* not supported */
2700}
2701
2702void
2703usb_set_device_state(struct usb_device *udev, enum usb_dev_state state)
2704{
2705
2706	KASSERT(state < USB_STATE_MAX, ("invalid udev state"));
2707
2708	DPRINTF("udev %p state %s -> %s\n", udev,
2709	    usb_statestr(udev->state), usb_statestr(state));
2710
2711#if USB_HAVE_UGEN
2712	mtx_lock(&usb_ref_lock);
2713#endif
2714	udev->state = state;
2715#if USB_HAVE_UGEN
2716	mtx_unlock(&usb_ref_lock);
2717#endif
2718	if (udev->bus->methods->device_state_change != NULL)
2719		(udev->bus->methods->device_state_change) (udev);
2720}
2721
2722enum usb_dev_state
2723usb_get_device_state(struct usb_device *udev)
2724{
2725	if (udev == NULL)
2726		return (USB_STATE_DETACHED);
2727	return (udev->state);
2728}
2729
2730uint8_t
2731usbd_device_attached(struct usb_device *udev)
2732{
2733	return (udev->state > USB_STATE_DETACHED);
2734}
2735
2736/*
2737 * The following function locks enumerating the given USB device. If
2738 * the lock is already grabbed this function returns zero. Else a
2739 * non-zero value is returned.
2740 */
2741uint8_t
2742usbd_enum_lock(struct usb_device *udev)
2743{
2744	if (sx_xlocked(&udev->enum_sx))
2745		return (0);
2746
2747	sx_xlock(&udev->enum_sx);
2748	sx_xlock(&udev->sr_sx);
2749	/*
2750	 * NEWBUS LOCK NOTE: We should check if any parent SX locks
2751	 * are locked before locking Giant. Else the lock can be
2752	 * locked multiple times.
2753	 */
2754	mtx_lock(&Giant);
2755	return (1);
2756}
2757
2758/* The following function unlocks enumerating the given USB device. */
2759
2760void
2761usbd_enum_unlock(struct usb_device *udev)
2762{
2763	mtx_unlock(&Giant);
2764	sx_xunlock(&udev->enum_sx);
2765	sx_xunlock(&udev->sr_sx);
2766}
2767
2768/* The following function locks suspend and resume. */
2769
2770void
2771usbd_sr_lock(struct usb_device *udev)
2772{
2773	sx_xlock(&udev->sr_sx);
2774	/*
2775	 * NEWBUS LOCK NOTE: We should check if any parent SX locks
2776	 * are locked before locking Giant. Else the lock can be
2777	 * locked multiple times.
2778	 */
2779	mtx_lock(&Giant);
2780}
2781
2782/* The following function unlocks suspend and resume. */
2783
2784void
2785usbd_sr_unlock(struct usb_device *udev)
2786{
2787	mtx_unlock(&Giant);
2788	sx_xunlock(&udev->sr_sx);
2789}
2790
2791/*
2792 * The following function checks the enumerating lock for the given
2793 * USB device.
2794 */
2795
2796uint8_t
2797usbd_enum_is_locked(struct usb_device *udev)
2798{
2799	return (sx_xlocked(&udev->enum_sx));
2800}
2801
2802/*
2803 * The following function is used to set the per-interface specific
2804 * plug and play information. The string referred to by the pnpinfo
2805 * argument can safely be freed after calling this function. The
2806 * pnpinfo of an interface will be reset at device detach or when
2807 * passing a NULL argument to this function. This function
2808 * returns zero on success, else a USB_ERR_XXX failure code.
2809 */
2810
2811usb_error_t
2812usbd_set_pnpinfo(struct usb_device *udev, uint8_t iface_index, const char *pnpinfo)
2813{
2814	struct usb_interface *iface;
2815
2816	iface = usbd_get_iface(udev, iface_index);
2817	if (iface == NULL)
2818		return (USB_ERR_INVAL);
2819
2820	if (iface->pnpinfo != NULL) {
2821		free(iface->pnpinfo, M_USBDEV);
2822		iface->pnpinfo = NULL;
2823	}
2824
2825	if (pnpinfo == NULL || pnpinfo[0] == 0)
2826		return (0);		/* success */
2827
2828	iface->pnpinfo = strdup(pnpinfo, M_USBDEV);
2829	if (iface->pnpinfo == NULL)
2830		return (USB_ERR_NOMEM);
2831
2832	return (0);			/* success */
2833}
2834
2835usb_error_t
2836usbd_add_dynamic_quirk(struct usb_device *udev, uint16_t quirk)
2837{
2838	uint8_t x;
2839
2840	for (x = 0; x != USB_MAX_AUTO_QUIRK; x++) {
2841		if (udev->autoQuirk[x] == 0 ||
2842		    udev->autoQuirk[x] == quirk) {
2843			udev->autoQuirk[x] = quirk;
2844			return (0);	/* success */
2845		}
2846	}
2847	return (USB_ERR_NOMEM);
2848}
2849
2850/*
2851 * The following function is used to select the endpoint mode. It
2852 * should not be called outside enumeration context.
2853 */
2854
2855usb_error_t
2856usbd_set_endpoint_mode(struct usb_device *udev, struct usb_endpoint *ep,
2857    uint8_t ep_mode)
2858{
2859	usb_error_t error;
2860	uint8_t do_unlock;
2861
2862	/* Prevent re-enumeration */
2863	do_unlock = usbd_enum_lock(udev);
2864
2865	if (udev->bus->methods->set_endpoint_mode != NULL) {
2866		error = (udev->bus->methods->set_endpoint_mode) (
2867		    udev, ep, ep_mode);
2868	} else if (ep_mode != USB_EP_MODE_DEFAULT) {
2869		error = USB_ERR_INVAL;
2870	} else {
2871		error = 0;
2872	}
2873
2874	/* only set new mode regardless of error */
2875	ep->ep_mode = ep_mode;
2876
2877	if (do_unlock)
2878		usbd_enum_unlock(udev);
2879	return (error);
2880}
2881
2882uint8_t
2883usbd_get_endpoint_mode(struct usb_device *udev, struct usb_endpoint *ep)
2884{
2885	return (ep->ep_mode);
2886}
2887