usb_request.c revision 194677
1/* $FreeBSD: head/sys/dev/usb/usb_request.c 194677 2009-06-23 02:19:59Z thompsa $ */
2/*-
3 * Copyright (c) 1998 The NetBSD Foundation, Inc. All rights reserved.
4 * Copyright (c) 1998 Lennart Augustsson. All rights reserved.
5 * Copyright (c) 2008 Hans Petter Selasky. All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 *    notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 *    notice, this list of conditions and the following disclaimer in the
14 *    documentation and/or other materials provided with the distribution.
15 *
16 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
17 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
18 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
19 * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
20 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
21 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
22 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
23 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
24 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
25 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
26 * SUCH DAMAGE.
27 */
28
29#include <sys/stdint.h>
30#include <sys/stddef.h>
31#include <sys/param.h>
32#include <sys/queue.h>
33#include <sys/types.h>
34#include <sys/systm.h>
35#include <sys/kernel.h>
36#include <sys/bus.h>
37#include <sys/linker_set.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
49#include <dev/usb/usb.h>
50#include <dev/usb/usbdi.h>
51#include <dev/usb/usbdi_util.h>
52#include <dev/usb/usb_ioctl.h>
53#include <dev/usb/usbhid.h>
54
55#define	USB_DEBUG_VAR usb_debug
56
57#include <dev/usb/usb_core.h>
58#include <dev/usb/usb_busdma.h>
59#include <dev/usb/usb_request.h>
60#include <dev/usb/usb_process.h>
61#include <dev/usb/usb_transfer.h>
62#include <dev/usb/usb_debug.h>
63#include <dev/usb/usb_device.h>
64#include <dev/usb/usb_util.h>
65#include <dev/usb/usb_dynamic.h>
66
67#include <dev/usb/usb_controller.h>
68#include <dev/usb/usb_bus.h>
69#include <sys/ctype.h>
70
71#if USB_DEBUG
72static int usb_pr_poll_delay = USB_PORT_RESET_DELAY;
73static int usb_pr_recovery_delay = USB_PORT_RESET_RECOVERY;
74static int usb_ss_delay = 0;
75
76SYSCTL_INT(_hw_usb, OID_AUTO, pr_poll_delay, CTLFLAG_RW,
77    &usb_pr_poll_delay, 0, "USB port reset poll delay in ms");
78SYSCTL_INT(_hw_usb, OID_AUTO, pr_recovery_delay, CTLFLAG_RW,
79    &usb_pr_recovery_delay, 0, "USB port reset recovery delay in ms");
80SYSCTL_INT(_hw_usb, OID_AUTO, ss_delay, CTLFLAG_RW,
81    &usb_ss_delay, 0, "USB status stage delay in ms");
82#endif
83
84/*------------------------------------------------------------------------*
85 *	usbd_do_request_callback
86 *
87 * This function is the USB callback for generic USB Host control
88 * transfers.
89 *------------------------------------------------------------------------*/
90void
91usbd_do_request_callback(struct usb_xfer *xfer, usb_error_t error)
92{
93	;				/* workaround for a bug in "indent" */
94
95	DPRINTF("st=%u\n", USB_GET_STATE(xfer));
96
97	switch (USB_GET_STATE(xfer)) {
98	case USB_ST_SETUP:
99		usbd_transfer_submit(xfer);
100		break;
101	default:
102		cv_signal(xfer->xroot->udev->default_cv);
103		break;
104	}
105}
106
107/*------------------------------------------------------------------------*
108 *	usb_do_clear_stall_callback
109 *
110 * This function is the USB callback for generic clear stall requests.
111 *------------------------------------------------------------------------*/
112void
113usb_do_clear_stall_callback(struct usb_xfer *xfer, usb_error_t error)
114{
115	struct usb_device_request req;
116	struct usb_device *udev;
117	struct usb_endpoint *ep;
118	struct usb_endpoint *ep_end;
119	struct usb_endpoint *ep_first;
120	uint8_t to;
121
122	udev = xfer->xroot->udev;
123
124	USB_BUS_LOCK(udev->bus);
125
126	/* round robin endpoint clear stall */
127
128	ep = udev->ep_curr;
129	ep_end = udev->endpoints + udev->endpoints_max;
130	ep_first = udev->endpoints;
131	to = udev->endpoints_max;
132
133	switch (USB_GET_STATE(xfer)) {
134	case USB_ST_TRANSFERRED:
135		if (ep == NULL)
136			goto tr_setup;		/* device was unconfigured */
137		if (ep->edesc &&
138		    ep->is_stalled) {
139			ep->toggle_next = 0;
140			ep->is_stalled = 0;
141			/* start up the current or next transfer, if any */
142			usb_command_wrapper(&ep->endpoint_q,
143			    ep->endpoint_q.curr);
144		}
145		ep++;
146
147	case USB_ST_SETUP:
148tr_setup:
149		if (to == 0)
150			break;			/* no endpoints - nothing to do */
151		if ((ep < ep_first) || (ep >= ep_end))
152			ep = ep_first;	/* endpoint wrapped around */
153		if (ep->edesc &&
154		    ep->is_stalled) {
155
156			/* setup a clear-stall packet */
157
158			req.bmRequestType = UT_WRITE_ENDPOINT;
159			req.bRequest = UR_CLEAR_FEATURE;
160			USETW(req.wValue, UF_ENDPOINT_HALT);
161			req.wIndex[0] = ep->edesc->bEndpointAddress;
162			req.wIndex[1] = 0;
163			USETW(req.wLength, 0);
164
165			/* copy in the transfer */
166
167			usbd_copy_in(xfer->frbuffers, 0, &req, sizeof(req));
168
169			/* set length */
170			usbd_xfer_set_frame_len(xfer, 0, sizeof(req));
171			xfer->nframes = 1;
172			USB_BUS_UNLOCK(udev->bus);
173
174			usbd_transfer_submit(xfer);
175
176			USB_BUS_LOCK(udev->bus);
177			break;
178		}
179		ep++;
180		to--;
181		goto tr_setup;
182
183	default:
184		if (xfer->error == USB_ERR_CANCELLED) {
185			break;
186		}
187		goto tr_setup;
188	}
189
190	/* store current endpoint */
191	udev->ep_curr = ep;
192	USB_BUS_UNLOCK(udev->bus);
193}
194
195static usb_handle_req_t *
196usbd_get_hr_func(struct usb_device *udev)
197{
198	/* figure out if there is a Handle Request function */
199	if (udev->flags.usb_mode == USB_MODE_DEVICE)
200		return (usb_temp_get_desc_p);
201	else if (udev->parent_hub == NULL)
202		return (udev->bus->methods->roothub_exec);
203	else
204		return (NULL);
205}
206
207/*------------------------------------------------------------------------*
208 *	usbd_do_request_flags and usbd_do_request
209 *
210 * Description of arguments passed to these functions:
211 *
212 * "udev" - this is the "usb_device" structure pointer on which the
213 * request should be performed. It is possible to call this function
214 * in both Host Side mode and Device Side mode.
215 *
216 * "mtx" - if this argument is non-NULL the mutex pointed to by it
217 * will get dropped and picked up during the execution of this
218 * function, hence this function sometimes needs to sleep. If this
219 * argument is NULL it has no effect.
220 *
221 * "req" - this argument must always be non-NULL and points to an
222 * 8-byte structure holding the USB request to be done. The USB
223 * request structure has a bit telling the direction of the USB
224 * request, if it is a read or a write.
225 *
226 * "data" - if the "wLength" part of the structure pointed to by "req"
227 * is non-zero this argument must point to a valid kernel buffer which
228 * can hold at least "wLength" bytes. If "wLength" is zero "data" can
229 * be NULL.
230 *
231 * "flags" - here is a list of valid flags:
232 *
233 *  o USB_SHORT_XFER_OK: allows the data transfer to be shorter than
234 *  specified
235 *
236 *  o USB_DELAY_STATUS_STAGE: allows the status stage to be performed
237 *  at a later point in time. This is tunable by the "hw.usb.ss_delay"
238 *  sysctl. This flag is mostly useful for debugging.
239 *
240 *  o USB_USER_DATA_PTR: treat the "data" pointer like a userland
241 *  pointer.
242 *
243 * "actlen" - if non-NULL the actual transfer length will be stored in
244 * the 16-bit unsigned integer pointed to by "actlen". This
245 * information is mostly useful when the "USB_SHORT_XFER_OK" flag is
246 * used.
247 *
248 * "timeout" - gives the timeout for the control transfer in
249 * milliseconds. A "timeout" value less than 50 milliseconds is
250 * treated like a 50 millisecond timeout. A "timeout" value greater
251 * than 30 seconds is treated like a 30 second timeout. This USB stack
252 * does not allow control requests without a timeout.
253 *
254 * NOTE: This function is thread safe. All calls to
255 * "usbd_do_request_flags" will be serialised by the use of an
256 * internal "sx_lock".
257 *
258 * Returns:
259 *    0: Success
260 * Else: Failure
261 *------------------------------------------------------------------------*/
262usb_error_t
263usbd_do_request_flags(struct usb_device *udev, struct mtx *mtx,
264    struct usb_device_request *req, void *data, uint16_t flags,
265    uint16_t *actlen, usb_timeout_t timeout)
266{
267	usb_handle_req_t *hr_func;
268	struct usb_xfer *xfer;
269	const void *desc;
270	int err = 0;
271	usb_ticks_t start_ticks;
272	usb_ticks_t delta_ticks;
273	usb_ticks_t max_ticks;
274	uint16_t length;
275	uint16_t temp;
276
277	if (timeout < 50) {
278		/* timeout is too small */
279		timeout = 50;
280	}
281	if (timeout > 30000) {
282		/* timeout is too big */
283		timeout = 30000;
284	}
285	length = UGETW(req->wLength);
286
287	DPRINTFN(5, "udev=%p bmRequestType=0x%02x bRequest=0x%02x "
288	    "wValue=0x%02x%02x wIndex=0x%02x%02x wLength=0x%02x%02x\n",
289	    udev, req->bmRequestType, req->bRequest,
290	    req->wValue[1], req->wValue[0],
291	    req->wIndex[1], req->wIndex[0],
292	    req->wLength[1], req->wLength[0]);
293
294	/* Check if the device is still alive */
295	if (udev->state < USB_STATE_POWERED) {
296		DPRINTF("usb device has gone\n");
297		return (USB_ERR_NOT_CONFIGURED);
298	}
299
300	/*
301	 * Set "actlen" to a known value in case the caller does not
302	 * check the return value:
303	 */
304	if (actlen)
305		*actlen = 0;
306
307#if (USB_HAVE_USER_IO == 0)
308	if (flags & USB_USER_DATA_PTR)
309		return (USB_ERR_INVAL);
310#endif
311	if (mtx) {
312		mtx_unlock(mtx);
313		if (mtx != &Giant) {
314			mtx_assert(mtx, MA_NOTOWNED);
315		}
316	}
317	/*
318	 * Grab the default sx-lock so that serialisation
319	 * is achieved when multiple threads are involved:
320	 */
321
322	sx_xlock(udev->default_sx);
323
324	hr_func = usbd_get_hr_func(udev);
325
326	if (hr_func != NULL) {
327		DPRINTF("Handle Request function is set\n");
328
329		desc = NULL;
330		temp = 0;
331
332		if (!(req->bmRequestType & UT_READ)) {
333			if (length != 0) {
334				DPRINTFN(1, "The handle request function "
335				    "does not support writing data!\n");
336				err = USB_ERR_INVAL;
337				goto done;
338			}
339		}
340
341		/* The root HUB code needs the BUS lock locked */
342
343		USB_BUS_LOCK(udev->bus);
344		err = (hr_func) (udev, req, &desc, &temp);
345		USB_BUS_UNLOCK(udev->bus);
346
347		if (err)
348			goto done;
349
350		if (length > temp) {
351			if (!(flags & USB_SHORT_XFER_OK)) {
352				err = USB_ERR_SHORT_XFER;
353				goto done;
354			}
355			length = temp;
356		}
357		if (actlen)
358			*actlen = length;
359
360		if (length > 0) {
361#if USB_HAVE_USER_IO
362			if (flags & USB_USER_DATA_PTR) {
363				if (copyout(desc, data, length)) {
364					err = USB_ERR_INVAL;
365					goto done;
366				}
367			} else
368#endif
369				bcopy(desc, data, length);
370		}
371		goto done;		/* success */
372	}
373
374	/*
375	 * Setup a new USB transfer or use the existing one, if any:
376	 */
377	usbd_default_transfer_setup(udev);
378
379	xfer = udev->default_xfer[0];
380	if (xfer == NULL) {
381		/* most likely out of memory */
382		err = USB_ERR_NOMEM;
383		goto done;
384	}
385	USB_XFER_LOCK(xfer);
386
387	if (flags & USB_DELAY_STATUS_STAGE)
388		xfer->flags.manual_status = 1;
389	else
390		xfer->flags.manual_status = 0;
391
392	if (flags & USB_SHORT_XFER_OK)
393		xfer->flags.short_xfer_ok = 1;
394	else
395		xfer->flags.short_xfer_ok = 0;
396
397	xfer->timeout = timeout;
398
399	start_ticks = ticks;
400
401	max_ticks = USB_MS_TO_TICKS(timeout);
402
403	usbd_copy_in(xfer->frbuffers, 0, req, sizeof(*req));
404
405	usbd_xfer_set_frame_len(xfer, 0, sizeof(*req));
406	xfer->nframes = 2;
407
408	while (1) {
409		temp = length;
410		if (temp > xfer->max_data_length) {
411			temp = usbd_xfer_max_len(xfer);
412		}
413		usbd_xfer_set_frame_len(xfer, 1, temp);
414
415		if (temp > 0) {
416			if (!(req->bmRequestType & UT_READ)) {
417#if USB_HAVE_USER_IO
418				if (flags & USB_USER_DATA_PTR) {
419					USB_XFER_UNLOCK(xfer);
420					err = usbd_copy_in_user(xfer->frbuffers + 1,
421					    0, data, temp);
422					USB_XFER_LOCK(xfer);
423					if (err) {
424						err = USB_ERR_INVAL;
425						break;
426					}
427				} else
428#endif
429					usbd_copy_in(xfer->frbuffers + 1,
430					    0, data, temp);
431			}
432			xfer->nframes = 2;
433		} else {
434			if (xfer->frlengths[0] == 0) {
435				if (xfer->flags.manual_status) {
436#if USB_DEBUG
437					int temp;
438
439					temp = usb_ss_delay;
440					if (temp > 5000) {
441						temp = 5000;
442					}
443					if (temp > 0) {
444						usb_pause_mtx(
445						    xfer->xroot->xfer_mtx,
446						    USB_MS_TO_TICKS(temp));
447					}
448#endif
449					xfer->flags.manual_status = 0;
450				} else {
451					break;
452				}
453			}
454			xfer->nframes = 1;
455		}
456
457		usbd_transfer_start(xfer);
458
459		while (usbd_transfer_pending(xfer)) {
460			cv_wait(udev->default_cv,
461			    xfer->xroot->xfer_mtx);
462		}
463
464		err = xfer->error;
465
466		if (err) {
467			break;
468		}
469		/* subtract length of SETUP packet, if any */
470
471		if (xfer->aframes > 0) {
472			xfer->actlen -= xfer->frlengths[0];
473		} else {
474			xfer->actlen = 0;
475		}
476
477		/* check for short packet */
478
479		if (temp > xfer->actlen) {
480			temp = xfer->actlen;
481			length = temp;
482		}
483		if (temp > 0) {
484			if (req->bmRequestType & UT_READ) {
485#if USB_HAVE_USER_IO
486				if (flags & USB_USER_DATA_PTR) {
487					USB_XFER_UNLOCK(xfer);
488					err = usbd_copy_out_user(xfer->frbuffers + 1,
489					    0, data, temp);
490					USB_XFER_LOCK(xfer);
491					if (err) {
492						err = USB_ERR_INVAL;
493						break;
494					}
495				} else
496#endif
497					usbd_copy_out(xfer->frbuffers + 1,
498					    0, data, temp);
499			}
500		}
501		/*
502		 * Clear "frlengths[0]" so that we don't send the setup
503		 * packet again:
504		 */
505		usbd_xfer_set_frame_len(xfer, 0, 0);
506
507		/* update length and data pointer */
508		length -= temp;
509		data = USB_ADD_BYTES(data, temp);
510
511		if (actlen) {
512			(*actlen) += temp;
513		}
514		/* check for timeout */
515
516		delta_ticks = ticks - start_ticks;
517		if (delta_ticks > max_ticks) {
518			if (!err) {
519				err = USB_ERR_TIMEOUT;
520			}
521		}
522		if (err) {
523			break;
524		}
525	}
526
527	if (err) {
528		/*
529		 * Make sure that the control endpoint is no longer
530		 * blocked in case of a non-transfer related error:
531		 */
532		usbd_transfer_stop(xfer);
533	}
534	USB_XFER_UNLOCK(xfer);
535
536done:
537	sx_xunlock(udev->default_sx);
538
539	if (mtx) {
540		mtx_lock(mtx);
541	}
542	return ((usb_error_t)err);
543}
544
545/*------------------------------------------------------------------------*
546 *	usbd_do_request_proc - factored out code
547 *
548 * This function is factored out code. It does basically the same like
549 * usbd_do_request_flags, except it will check the status of the
550 * passed process argument before doing the USB request. If the
551 * process is draining the USB_ERR_IOERROR code will be returned. It
552 * is assumed that the mutex associated with the process is locked
553 * when calling this function.
554 *------------------------------------------------------------------------*/
555usb_error_t
556usbd_do_request_proc(struct usb_device *udev, struct usb_process *pproc,
557    struct usb_device_request *req, void *data, uint16_t flags,
558    uint16_t *actlen, usb_timeout_t timeout)
559{
560	usb_error_t err;
561	uint16_t len;
562
563	/* get request data length */
564	len = UGETW(req->wLength);
565
566	/* check if the device is being detached */
567	if (usb_proc_is_gone(pproc)) {
568		err = USB_ERR_IOERROR;
569		goto done;
570	}
571
572	/* forward the USB request */
573	err = usbd_do_request_flags(udev, pproc->up_mtx,
574	    req, data, flags, actlen, timeout);
575
576done:
577	/* on failure we zero the data */
578	/* on short packet we zero the unused data */
579	if ((len != 0) && (req->bmRequestType & UE_DIR_IN)) {
580		if (err)
581			memset(data, 0, len);
582		else if (actlen && *actlen != len)
583			memset(((uint8_t *)data) + *actlen, 0, len - *actlen);
584	}
585	return (err);
586}
587
588/*------------------------------------------------------------------------*
589 *	usbd_req_reset_port
590 *
591 * This function will instruct an USB HUB to perform a reset sequence
592 * on the specified port number.
593 *
594 * Returns:
595 *    0: Success. The USB device should now be at address zero.
596 * Else: Failure. No USB device is present and the USB port should be
597 *       disabled.
598 *------------------------------------------------------------------------*/
599usb_error_t
600usbd_req_reset_port(struct usb_device *udev, struct mtx *mtx, uint8_t port)
601{
602	struct usb_port_status ps;
603	usb_error_t err;
604	uint16_t n;
605
606#if USB_DEBUG
607	uint16_t pr_poll_delay;
608	uint16_t pr_recovery_delay;
609
610#endif
611	err = usbd_req_set_port_feature(udev, mtx, port, UHF_PORT_RESET);
612	if (err) {
613		goto done;
614	}
615#if USB_DEBUG
616	/* range check input parameters */
617	pr_poll_delay = usb_pr_poll_delay;
618	if (pr_poll_delay < 1) {
619		pr_poll_delay = 1;
620	} else if (pr_poll_delay > 1000) {
621		pr_poll_delay = 1000;
622	}
623	pr_recovery_delay = usb_pr_recovery_delay;
624	if (pr_recovery_delay > 1000) {
625		pr_recovery_delay = 1000;
626	}
627#endif
628	n = 0;
629	while (1) {
630#if USB_DEBUG
631		/* wait for the device to recover from reset */
632		usb_pause_mtx(mtx, USB_MS_TO_TICKS(pr_poll_delay));
633		n += pr_poll_delay;
634#else
635		/* wait for the device to recover from reset */
636		usb_pause_mtx(mtx, USB_MS_TO_TICKS(USB_PORT_RESET_DELAY));
637		n += USB_PORT_RESET_DELAY;
638#endif
639		err = usbd_req_get_port_status(udev, mtx, &ps, port);
640		if (err) {
641			goto done;
642		}
643		/* if the device disappeared, just give up */
644		if (!(UGETW(ps.wPortStatus) & UPS_CURRENT_CONNECT_STATUS)) {
645			goto done;
646		}
647		/* check if reset is complete */
648		if (UGETW(ps.wPortChange) & UPS_C_PORT_RESET) {
649			break;
650		}
651		/* check for timeout */
652		if (n > 1000) {
653			n = 0;
654			break;
655		}
656	}
657
658	/* clear port reset first */
659	err = usbd_req_clear_port_feature(
660	    udev, mtx, port, UHF_C_PORT_RESET);
661	if (err) {
662		goto done;
663	}
664	/* check for timeout */
665	if (n == 0) {
666		err = USB_ERR_TIMEOUT;
667		goto done;
668	}
669#if USB_DEBUG
670	/* wait for the device to recover from reset */
671	usb_pause_mtx(mtx, USB_MS_TO_TICKS(pr_recovery_delay));
672#else
673	/* wait for the device to recover from reset */
674	usb_pause_mtx(mtx, USB_MS_TO_TICKS(USB_PORT_RESET_RECOVERY));
675#endif
676
677done:
678	DPRINTFN(2, "port %d reset returning error=%s\n",
679	    port, usbd_errstr(err));
680	return (err);
681}
682
683/*------------------------------------------------------------------------*
684 *	usbd_req_get_desc
685 *
686 * This function can be used to retrieve USB descriptors. It contains
687 * some additional logic like zeroing of missing descriptor bytes and
688 * retrying an USB descriptor in case of failure. The "min_len"
689 * argument specifies the minimum descriptor length. The "max_len"
690 * argument specifies the maximum descriptor length. If the real
691 * descriptor length is less than the minimum length the missing
692 * byte(s) will be zeroed. The type field, the second byte of the USB
693 * descriptor, will get forced to the correct type. If the "actlen"
694 * pointer is non-NULL, the actual length of the transfer will get
695 * stored in the 16-bit unsigned integer which it is pointing to. The
696 * first byte of the descriptor will not get updated. If the "actlen"
697 * pointer is NULL the first byte of the descriptor will get updated
698 * to reflect the actual length instead. If "min_len" is not equal to
699 * "max_len" then this function will try to retrive the beginning of
700 * the descriptor and base the maximum length on the first byte of the
701 * descriptor.
702 *
703 * Returns:
704 *    0: Success
705 * Else: Failure
706 *------------------------------------------------------------------------*/
707usb_error_t
708usbd_req_get_desc(struct usb_device *udev,
709    struct mtx *mtx, uint16_t *actlen, void *desc,
710    uint16_t min_len, uint16_t max_len,
711    uint16_t id, uint8_t type, uint8_t index,
712    uint8_t retries)
713{
714	struct usb_device_request req;
715	uint8_t *buf;
716	usb_error_t err;
717
718	DPRINTFN(4, "id=%d, type=%d, index=%d, max_len=%d\n",
719	    id, type, index, max_len);
720
721	req.bmRequestType = UT_READ_DEVICE;
722	req.bRequest = UR_GET_DESCRIPTOR;
723	USETW2(req.wValue, type, index);
724	USETW(req.wIndex, id);
725
726	while (1) {
727
728		if ((min_len < 2) || (max_len < 2)) {
729			err = USB_ERR_INVAL;
730			goto done;
731		}
732		USETW(req.wLength, min_len);
733
734		err = usbd_do_request_flags(udev, mtx, &req,
735		    desc, 0, NULL, 1000);
736
737		if (err) {
738			if (!retries) {
739				goto done;
740			}
741			retries--;
742
743			usb_pause_mtx(mtx, hz / 5);
744
745			continue;
746		}
747		buf = desc;
748
749		if (min_len == max_len) {
750
751			/* enforce correct length */
752			if ((buf[0] > min_len) && (actlen == NULL))
753				buf[0] = min_len;
754
755			/* enforce correct type */
756			buf[1] = type;
757
758			goto done;
759		}
760		/* range check */
761
762		if (max_len > buf[0]) {
763			max_len = buf[0];
764		}
765		/* zero minimum data */
766
767		while (min_len > max_len) {
768			min_len--;
769			buf[min_len] = 0;
770		}
771
772		/* set new minimum length */
773
774		min_len = max_len;
775	}
776done:
777	if (actlen != NULL) {
778		if (err)
779			*actlen = 0;
780		else
781			*actlen = min_len;
782	}
783	return (err);
784}
785
786/*------------------------------------------------------------------------*
787 *	usbd_req_get_string_any
788 *
789 * This function will return the string given by "string_index"
790 * using the first language ID. The maximum length "len" includes
791 * the terminating zero. The "len" argument should be twice as
792 * big pluss 2 bytes, compared with the actual maximum string length !
793 *
794 * Returns:
795 *    0: Success
796 * Else: Failure
797 *------------------------------------------------------------------------*/
798usb_error_t
799usbd_req_get_string_any(struct usb_device *udev, struct mtx *mtx, char *buf,
800    uint16_t len, uint8_t string_index)
801{
802	char *s;
803	uint8_t *temp;
804	uint16_t i;
805	uint16_t n;
806	uint16_t c;
807	uint8_t swap;
808	usb_error_t err;
809
810	if (len == 0) {
811		/* should not happen */
812		return (USB_ERR_NORMAL_COMPLETION);
813	}
814	if (string_index == 0) {
815		/* this is the language table */
816		buf[0] = 0;
817		return (USB_ERR_INVAL);
818	}
819	if (udev->flags.no_strings) {
820		buf[0] = 0;
821		return (USB_ERR_STALLED);
822	}
823	err = usbd_req_get_string_desc
824	    (udev, mtx, buf, len, udev->langid, string_index);
825	if (err) {
826		buf[0] = 0;
827		return (err);
828	}
829	temp = (uint8_t *)buf;
830
831	if (temp[0] < 2) {
832		/* string length is too short */
833		buf[0] = 0;
834		return (USB_ERR_INVAL);
835	}
836	/* reserve one byte for terminating zero */
837	len--;
838
839	/* find maximum length */
840	s = buf;
841	n = (temp[0] / 2) - 1;
842	if (n > len) {
843		n = len;
844	}
845	/* skip descriptor header */
846	temp += 2;
847
848	/* reset swap state */
849	swap = 3;
850
851	/* convert and filter */
852	for (i = 0; (i != n); i++) {
853		c = UGETW(temp + (2 * i));
854
855		/* convert from Unicode, handle buggy strings */
856		if (((c & 0xff00) == 0) && (swap & 1)) {
857			/* Little Endian, default */
858			*s = c;
859			swap = 1;
860		} else if (((c & 0x00ff) == 0) && (swap & 2)) {
861			/* Big Endian */
862			*s = c >> 8;
863			swap = 2;
864		} else {
865			/* silently skip bad character */
866			continue;
867		}
868
869		/*
870		 * Filter by default - we don't allow greater and less than
871		 * signs because they might confuse the dmesg printouts!
872		 */
873		if ((*s == '<') || (*s == '>') || (!isprint(*s))) {
874			/* silently skip bad character */
875			continue;
876		}
877		s++;
878	}
879	*s = 0;				/* zero terminate resulting string */
880	return (USB_ERR_NORMAL_COMPLETION);
881}
882
883/*------------------------------------------------------------------------*
884 *	usbd_req_get_string_desc
885 *
886 * If you don't know the language ID, consider using
887 * "usbd_req_get_string_any()".
888 *
889 * Returns:
890 *    0: Success
891 * Else: Failure
892 *------------------------------------------------------------------------*/
893usb_error_t
894usbd_req_get_string_desc(struct usb_device *udev, struct mtx *mtx, void *sdesc,
895    uint16_t max_len, uint16_t lang_id,
896    uint8_t string_index)
897{
898	return (usbd_req_get_desc(udev, mtx, NULL, sdesc, 2, max_len, lang_id,
899	    UDESC_STRING, string_index, 0));
900}
901
902/*------------------------------------------------------------------------*
903 *	usbd_req_get_config_desc_ptr
904 *
905 * This function is used in device side mode to retrieve the pointer
906 * to the generated config descriptor. This saves allocating space for
907 * an additional config descriptor when setting the configuration.
908 *
909 * Returns:
910 *    0: Success
911 * Else: Failure
912 *------------------------------------------------------------------------*/
913usb_error_t
914usbd_req_get_descriptor_ptr(struct usb_device *udev,
915    struct usb_config_descriptor **ppcd, uint16_t wValue)
916{
917	struct usb_device_request req;
918	usb_handle_req_t *hr_func;
919	const void *ptr;
920	uint16_t len;
921	usb_error_t err;
922
923	req.bmRequestType = UT_READ_DEVICE;
924	req.bRequest = UR_GET_DESCRIPTOR;
925	USETW(req.wValue, wValue);
926	USETW(req.wIndex, 0);
927	USETW(req.wLength, 0);
928
929	ptr = NULL;
930	len = 0;
931
932	hr_func = usbd_get_hr_func(udev);
933
934	if (hr_func == NULL)
935		err = USB_ERR_INVAL;
936	else {
937		USB_BUS_LOCK(udev->bus);
938		err = (hr_func) (udev, &req, &ptr, &len);
939		USB_BUS_UNLOCK(udev->bus);
940	}
941
942	if (err)
943		ptr = NULL;
944	else if (ptr == NULL)
945		err = USB_ERR_INVAL;
946
947	*ppcd = __DECONST(struct usb_config_descriptor *, ptr);
948
949	return (err);
950}
951
952/*------------------------------------------------------------------------*
953 *	usbd_req_get_config_desc
954 *
955 * Returns:
956 *    0: Success
957 * Else: Failure
958 *------------------------------------------------------------------------*/
959usb_error_t
960usbd_req_get_config_desc(struct usb_device *udev, struct mtx *mtx,
961    struct usb_config_descriptor *d, uint8_t conf_index)
962{
963	usb_error_t err;
964
965	DPRINTFN(4, "confidx=%d\n", conf_index);
966
967	err = usbd_req_get_desc(udev, mtx, NULL, d, sizeof(*d),
968	    sizeof(*d), 0, UDESC_CONFIG, conf_index, 0);
969	if (err) {
970		goto done;
971	}
972	/* Extra sanity checking */
973	if (UGETW(d->wTotalLength) < sizeof(*d)) {
974		err = USB_ERR_INVAL;
975	}
976done:
977	return (err);
978}
979
980/*------------------------------------------------------------------------*
981 *	usbd_req_get_config_desc_full
982 *
983 * This function gets the complete USB configuration descriptor and
984 * ensures that "wTotalLength" is correct.
985 *
986 * Returns:
987 *    0: Success
988 * Else: Failure
989 *------------------------------------------------------------------------*/
990usb_error_t
991usbd_req_get_config_desc_full(struct usb_device *udev, struct mtx *mtx,
992    struct usb_config_descriptor **ppcd, struct malloc_type *mtype,
993    uint8_t index)
994{
995	struct usb_config_descriptor cd;
996	struct usb_config_descriptor *cdesc;
997	uint16_t len;
998	usb_error_t err;
999
1000	DPRINTFN(4, "index=%d\n", index);
1001
1002	*ppcd = NULL;
1003
1004	err = usbd_req_get_config_desc(udev, mtx, &cd, index);
1005	if (err) {
1006		return (err);
1007	}
1008	/* get full descriptor */
1009	len = UGETW(cd.wTotalLength);
1010	if (len < sizeof(*cdesc)) {
1011		/* corrupt descriptor */
1012		return (USB_ERR_INVAL);
1013	}
1014	cdesc = malloc(len, mtype, M_WAITOK);
1015	if (cdesc == NULL) {
1016		return (USB_ERR_NOMEM);
1017	}
1018	err = usbd_req_get_desc(udev, mtx, NULL, cdesc, len, len, 0,
1019	    UDESC_CONFIG, index, 3);
1020	if (err) {
1021		free(cdesc, mtype);
1022		return (err);
1023	}
1024	/* make sure that the device is not fooling us: */
1025	USETW(cdesc->wTotalLength, len);
1026
1027	*ppcd = cdesc;
1028
1029	return (0);			/* success */
1030}
1031
1032/*------------------------------------------------------------------------*
1033 *	usbd_req_get_device_desc
1034 *
1035 * Returns:
1036 *    0: Success
1037 * Else: Failure
1038 *------------------------------------------------------------------------*/
1039usb_error_t
1040usbd_req_get_device_desc(struct usb_device *udev, struct mtx *mtx,
1041    struct usb_device_descriptor *d)
1042{
1043	DPRINTFN(4, "\n");
1044	return (usbd_req_get_desc(udev, mtx, NULL, d, sizeof(*d),
1045	    sizeof(*d), 0, UDESC_DEVICE, 0, 3));
1046}
1047
1048/*------------------------------------------------------------------------*
1049 *	usbd_req_get_alt_interface_no
1050 *
1051 * Returns:
1052 *    0: Success
1053 * Else: Failure
1054 *------------------------------------------------------------------------*/
1055usb_error_t
1056usbd_req_get_alt_interface_no(struct usb_device *udev, struct mtx *mtx,
1057    uint8_t *alt_iface_no, uint8_t iface_index)
1058{
1059	struct usb_interface *iface = usbd_get_iface(udev, iface_index);
1060	struct usb_device_request req;
1061
1062	if ((iface == NULL) || (iface->idesc == NULL)) {
1063		return (USB_ERR_INVAL);
1064	}
1065	req.bmRequestType = UT_READ_INTERFACE;
1066	req.bRequest = UR_GET_INTERFACE;
1067	USETW(req.wValue, 0);
1068	req.wIndex[0] = iface->idesc->bInterfaceNumber;
1069	req.wIndex[1] = 0;
1070	USETW(req.wLength, 1);
1071	return (usbd_do_request(udev, mtx, &req, alt_iface_no));
1072}
1073
1074/*------------------------------------------------------------------------*
1075 *	usbd_req_set_alt_interface_no
1076 *
1077 * Returns:
1078 *    0: Success
1079 * Else: Failure
1080 *------------------------------------------------------------------------*/
1081usb_error_t
1082usbd_req_set_alt_interface_no(struct usb_device *udev, struct mtx *mtx,
1083    uint8_t iface_index, uint8_t alt_no)
1084{
1085	struct usb_interface *iface = usbd_get_iface(udev, iface_index);
1086	struct usb_device_request req;
1087
1088	if ((iface == NULL) || (iface->idesc == NULL)) {
1089		return (USB_ERR_INVAL);
1090	}
1091	req.bmRequestType = UT_WRITE_INTERFACE;
1092	req.bRequest = UR_SET_INTERFACE;
1093	req.wValue[0] = alt_no;
1094	req.wValue[1] = 0;
1095	req.wIndex[0] = iface->idesc->bInterfaceNumber;
1096	req.wIndex[1] = 0;
1097	USETW(req.wLength, 0);
1098	return (usbd_do_request(udev, mtx, &req, 0));
1099}
1100
1101/*------------------------------------------------------------------------*
1102 *	usbd_req_get_device_status
1103 *
1104 * Returns:
1105 *    0: Success
1106 * Else: Failure
1107 *------------------------------------------------------------------------*/
1108usb_error_t
1109usbd_req_get_device_status(struct usb_device *udev, struct mtx *mtx,
1110    struct usb_status *st)
1111{
1112	struct usb_device_request req;
1113
1114	req.bmRequestType = UT_READ_DEVICE;
1115	req.bRequest = UR_GET_STATUS;
1116	USETW(req.wValue, 0);
1117	USETW(req.wIndex, 0);
1118	USETW(req.wLength, sizeof(*st));
1119	return (usbd_do_request(udev, mtx, &req, st));
1120}
1121
1122/*------------------------------------------------------------------------*
1123 *	usbd_req_get_hub_descriptor
1124 *
1125 * Returns:
1126 *    0: Success
1127 * Else: Failure
1128 *------------------------------------------------------------------------*/
1129usb_error_t
1130usbd_req_get_hub_descriptor(struct usb_device *udev, struct mtx *mtx,
1131    struct usb_hub_descriptor *hd, uint8_t nports)
1132{
1133	struct usb_device_request req;
1134	uint16_t len = (nports + 7 + (8 * 8)) / 8;
1135
1136	req.bmRequestType = UT_READ_CLASS_DEVICE;
1137	req.bRequest = UR_GET_DESCRIPTOR;
1138	USETW2(req.wValue, UDESC_HUB, 0);
1139	USETW(req.wIndex, 0);
1140	USETW(req.wLength, len);
1141	return (usbd_do_request(udev, mtx, &req, hd));
1142}
1143
1144/*------------------------------------------------------------------------*
1145 *	usbd_req_get_hub_status
1146 *
1147 * Returns:
1148 *    0: Success
1149 * Else: Failure
1150 *------------------------------------------------------------------------*/
1151usb_error_t
1152usbd_req_get_hub_status(struct usb_device *udev, struct mtx *mtx,
1153    struct usb_hub_status *st)
1154{
1155	struct usb_device_request req;
1156
1157	req.bmRequestType = UT_READ_CLASS_DEVICE;
1158	req.bRequest = UR_GET_STATUS;
1159	USETW(req.wValue, 0);
1160	USETW(req.wIndex, 0);
1161	USETW(req.wLength, sizeof(struct usb_hub_status));
1162	return (usbd_do_request(udev, mtx, &req, st));
1163}
1164
1165/*------------------------------------------------------------------------*
1166 *	usbd_req_set_address
1167 *
1168 * This function is used to set the address for an USB device. After
1169 * port reset the USB device will respond at address zero.
1170 *
1171 * Returns:
1172 *    0: Success
1173 * Else: Failure
1174 *------------------------------------------------------------------------*/
1175usb_error_t
1176usbd_req_set_address(struct usb_device *udev, struct mtx *mtx, uint16_t addr)
1177{
1178	struct usb_device_request req;
1179
1180	DPRINTFN(6, "setting device address=%d\n", addr);
1181
1182	req.bmRequestType = UT_WRITE_DEVICE;
1183	req.bRequest = UR_SET_ADDRESS;
1184	USETW(req.wValue, addr);
1185	USETW(req.wIndex, 0);
1186	USETW(req.wLength, 0);
1187
1188	/* Setting the address should not take more than 1 second ! */
1189	return (usbd_do_request_flags(udev, mtx, &req, NULL,
1190	    USB_DELAY_STATUS_STAGE, NULL, 1000));
1191}
1192
1193/*------------------------------------------------------------------------*
1194 *	usbd_req_get_port_status
1195 *
1196 * Returns:
1197 *    0: Success
1198 * Else: Failure
1199 *------------------------------------------------------------------------*/
1200usb_error_t
1201usbd_req_get_port_status(struct usb_device *udev, struct mtx *mtx,
1202    struct usb_port_status *ps, uint8_t port)
1203{
1204	struct usb_device_request req;
1205
1206	req.bmRequestType = UT_READ_CLASS_OTHER;
1207	req.bRequest = UR_GET_STATUS;
1208	USETW(req.wValue, 0);
1209	req.wIndex[0] = port;
1210	req.wIndex[1] = 0;
1211	USETW(req.wLength, sizeof *ps);
1212	return (usbd_do_request(udev, mtx, &req, ps));
1213}
1214
1215/*------------------------------------------------------------------------*
1216 *	usbd_req_clear_hub_feature
1217 *
1218 * Returns:
1219 *    0: Success
1220 * Else: Failure
1221 *------------------------------------------------------------------------*/
1222usb_error_t
1223usbd_req_clear_hub_feature(struct usb_device *udev, struct mtx *mtx,
1224    uint16_t sel)
1225{
1226	struct usb_device_request req;
1227
1228	req.bmRequestType = UT_WRITE_CLASS_DEVICE;
1229	req.bRequest = UR_CLEAR_FEATURE;
1230	USETW(req.wValue, sel);
1231	USETW(req.wIndex, 0);
1232	USETW(req.wLength, 0);
1233	return (usbd_do_request(udev, mtx, &req, 0));
1234}
1235
1236/*------------------------------------------------------------------------*
1237 *	usbd_req_set_hub_feature
1238 *
1239 * Returns:
1240 *    0: Success
1241 * Else: Failure
1242 *------------------------------------------------------------------------*/
1243usb_error_t
1244usbd_req_set_hub_feature(struct usb_device *udev, struct mtx *mtx,
1245    uint16_t sel)
1246{
1247	struct usb_device_request req;
1248
1249	req.bmRequestType = UT_WRITE_CLASS_DEVICE;
1250	req.bRequest = UR_SET_FEATURE;
1251	USETW(req.wValue, sel);
1252	USETW(req.wIndex, 0);
1253	USETW(req.wLength, 0);
1254	return (usbd_do_request(udev, mtx, &req, 0));
1255}
1256
1257/*------------------------------------------------------------------------*
1258 *	usbd_req_clear_port_feature
1259 *
1260 * Returns:
1261 *    0: Success
1262 * Else: Failure
1263 *------------------------------------------------------------------------*/
1264usb_error_t
1265usbd_req_clear_port_feature(struct usb_device *udev, struct mtx *mtx,
1266    uint8_t port, uint16_t sel)
1267{
1268	struct usb_device_request req;
1269
1270	req.bmRequestType = UT_WRITE_CLASS_OTHER;
1271	req.bRequest = UR_CLEAR_FEATURE;
1272	USETW(req.wValue, sel);
1273	req.wIndex[0] = port;
1274	req.wIndex[1] = 0;
1275	USETW(req.wLength, 0);
1276	return (usbd_do_request(udev, mtx, &req, 0));
1277}
1278
1279/*------------------------------------------------------------------------*
1280 *	usbd_req_set_port_feature
1281 *
1282 * Returns:
1283 *    0: Success
1284 * Else: Failure
1285 *------------------------------------------------------------------------*/
1286usb_error_t
1287usbd_req_set_port_feature(struct usb_device *udev, struct mtx *mtx,
1288    uint8_t port, uint16_t sel)
1289{
1290	struct usb_device_request req;
1291
1292	req.bmRequestType = UT_WRITE_CLASS_OTHER;
1293	req.bRequest = UR_SET_FEATURE;
1294	USETW(req.wValue, sel);
1295	req.wIndex[0] = port;
1296	req.wIndex[1] = 0;
1297	USETW(req.wLength, 0);
1298	return (usbd_do_request(udev, mtx, &req, 0));
1299}
1300
1301/*------------------------------------------------------------------------*
1302 *	usbd_req_set_protocol
1303 *
1304 * Returns:
1305 *    0: Success
1306 * Else: Failure
1307 *------------------------------------------------------------------------*/
1308usb_error_t
1309usbd_req_set_protocol(struct usb_device *udev, struct mtx *mtx,
1310    uint8_t iface_index, uint16_t report)
1311{
1312	struct usb_interface *iface = usbd_get_iface(udev, iface_index);
1313	struct usb_device_request req;
1314
1315	if ((iface == NULL) || (iface->idesc == NULL)) {
1316		return (USB_ERR_INVAL);
1317	}
1318	DPRINTFN(5, "iface=%p, report=%d, endpt=%d\n",
1319	    iface, report, iface->idesc->bInterfaceNumber);
1320
1321	req.bmRequestType = UT_WRITE_CLASS_INTERFACE;
1322	req.bRequest = UR_SET_PROTOCOL;
1323	USETW(req.wValue, report);
1324	req.wIndex[0] = iface->idesc->bInterfaceNumber;
1325	req.wIndex[1] = 0;
1326	USETW(req.wLength, 0);
1327	return (usbd_do_request(udev, mtx, &req, 0));
1328}
1329
1330/*------------------------------------------------------------------------*
1331 *	usbd_req_set_report
1332 *
1333 * Returns:
1334 *    0: Success
1335 * Else: Failure
1336 *------------------------------------------------------------------------*/
1337usb_error_t
1338usbd_req_set_report(struct usb_device *udev, struct mtx *mtx, void *data, uint16_t len,
1339    uint8_t iface_index, uint8_t type, uint8_t id)
1340{
1341	struct usb_interface *iface = usbd_get_iface(udev, iface_index);
1342	struct usb_device_request req;
1343
1344	if ((iface == NULL) || (iface->idesc == NULL)) {
1345		return (USB_ERR_INVAL);
1346	}
1347	DPRINTFN(5, "len=%d\n", len);
1348
1349	req.bmRequestType = UT_WRITE_CLASS_INTERFACE;
1350	req.bRequest = UR_SET_REPORT;
1351	USETW2(req.wValue, type, id);
1352	req.wIndex[0] = iface->idesc->bInterfaceNumber;
1353	req.wIndex[1] = 0;
1354	USETW(req.wLength, len);
1355	return (usbd_do_request(udev, mtx, &req, data));
1356}
1357
1358/*------------------------------------------------------------------------*
1359 *	usbd_req_get_report
1360 *
1361 * Returns:
1362 *    0: Success
1363 * Else: Failure
1364 *------------------------------------------------------------------------*/
1365usb_error_t
1366usbd_req_get_report(struct usb_device *udev, struct mtx *mtx, void *data,
1367    uint16_t len, uint8_t iface_index, uint8_t type, uint8_t id)
1368{
1369	struct usb_interface *iface = usbd_get_iface(udev, iface_index);
1370	struct usb_device_request req;
1371
1372	if ((iface == NULL) || (iface->idesc == NULL) || (id == 0)) {
1373		return (USB_ERR_INVAL);
1374	}
1375	DPRINTFN(5, "len=%d\n", len);
1376
1377	req.bmRequestType = UT_READ_CLASS_INTERFACE;
1378	req.bRequest = UR_GET_REPORT;
1379	USETW2(req.wValue, type, id);
1380	req.wIndex[0] = iface->idesc->bInterfaceNumber;
1381	req.wIndex[1] = 0;
1382	USETW(req.wLength, len);
1383	return (usbd_do_request(udev, mtx, &req, data));
1384}
1385
1386/*------------------------------------------------------------------------*
1387 *	usbd_req_set_idle
1388 *
1389 * Returns:
1390 *    0: Success
1391 * Else: Failure
1392 *------------------------------------------------------------------------*/
1393usb_error_t
1394usbd_req_set_idle(struct usb_device *udev, struct mtx *mtx,
1395    uint8_t iface_index, uint8_t duration, uint8_t id)
1396{
1397	struct usb_interface *iface = usbd_get_iface(udev, iface_index);
1398	struct usb_device_request req;
1399
1400	if ((iface == NULL) || (iface->idesc == NULL)) {
1401		return (USB_ERR_INVAL);
1402	}
1403	DPRINTFN(5, "%d %d\n", duration, id);
1404
1405	req.bmRequestType = UT_WRITE_CLASS_INTERFACE;
1406	req.bRequest = UR_SET_IDLE;
1407	USETW2(req.wValue, duration, id);
1408	req.wIndex[0] = iface->idesc->bInterfaceNumber;
1409	req.wIndex[1] = 0;
1410	USETW(req.wLength, 0);
1411	return (usbd_do_request(udev, mtx, &req, 0));
1412}
1413
1414/*------------------------------------------------------------------------*
1415 *	usbd_req_get_report_descriptor
1416 *
1417 * Returns:
1418 *    0: Success
1419 * Else: Failure
1420 *------------------------------------------------------------------------*/
1421usb_error_t
1422usbd_req_get_report_descriptor(struct usb_device *udev, struct mtx *mtx,
1423    void *d, uint16_t size, uint8_t iface_index)
1424{
1425	struct usb_interface *iface = usbd_get_iface(udev, iface_index);
1426	struct usb_device_request req;
1427
1428	if ((iface == NULL) || (iface->idesc == NULL)) {
1429		return (USB_ERR_INVAL);
1430	}
1431	req.bmRequestType = UT_READ_INTERFACE;
1432	req.bRequest = UR_GET_DESCRIPTOR;
1433	USETW2(req.wValue, UDESC_REPORT, 0);	/* report id should be 0 */
1434	req.wIndex[0] = iface->idesc->bInterfaceNumber;
1435	req.wIndex[1] = 0;
1436	USETW(req.wLength, size);
1437	return (usbd_do_request(udev, mtx, &req, d));
1438}
1439
1440/*------------------------------------------------------------------------*
1441 *	usbd_req_set_config
1442 *
1443 * This function is used to select the current configuration number in
1444 * both USB device side mode and USB host side mode. When setting the
1445 * configuration the function of the interfaces can change.
1446 *
1447 * Returns:
1448 *    0: Success
1449 * Else: Failure
1450 *------------------------------------------------------------------------*/
1451usb_error_t
1452usbd_req_set_config(struct usb_device *udev, struct mtx *mtx, uint8_t conf)
1453{
1454	struct usb_device_request req;
1455
1456	DPRINTF("setting config %d\n", conf);
1457
1458	/* do "set configuration" request */
1459
1460	req.bmRequestType = UT_WRITE_DEVICE;
1461	req.bRequest = UR_SET_CONFIG;
1462	req.wValue[0] = conf;
1463	req.wValue[1] = 0;
1464	USETW(req.wIndex, 0);
1465	USETW(req.wLength, 0);
1466	return (usbd_do_request(udev, mtx, &req, 0));
1467}
1468
1469/*------------------------------------------------------------------------*
1470 *	usbd_req_get_config
1471 *
1472 * Returns:
1473 *    0: Success
1474 * Else: Failure
1475 *------------------------------------------------------------------------*/
1476usb_error_t
1477usbd_req_get_config(struct usb_device *udev, struct mtx *mtx, uint8_t *pconf)
1478{
1479	struct usb_device_request req;
1480
1481	req.bmRequestType = UT_READ_DEVICE;
1482	req.bRequest = UR_GET_CONFIG;
1483	USETW(req.wValue, 0);
1484	USETW(req.wIndex, 0);
1485	USETW(req.wLength, 1);
1486	return (usbd_do_request(udev, mtx, &req, pconf));
1487}
1488
1489/*------------------------------------------------------------------------*
1490 *	usbd_req_re_enumerate
1491 *
1492 * NOTE: After this function returns the hardware is in the
1493 * unconfigured state! The application is responsible for setting a
1494 * new configuration.
1495 *
1496 * Returns:
1497 *    0: Success
1498 * Else: Failure
1499 *------------------------------------------------------------------------*/
1500usb_error_t
1501usbd_req_re_enumerate(struct usb_device *udev, struct mtx *mtx)
1502{
1503	struct usb_device *parent_hub;
1504	usb_error_t err;
1505	uint8_t old_addr;
1506	uint8_t do_retry = 1;
1507
1508	if (udev->flags.usb_mode != USB_MODE_HOST) {
1509		return (USB_ERR_INVAL);
1510	}
1511	old_addr = udev->address;
1512	parent_hub = udev->parent_hub;
1513	if (parent_hub == NULL) {
1514		return (USB_ERR_INVAL);
1515	}
1516retry:
1517	err = usbd_req_reset_port(parent_hub, mtx, udev->port_no);
1518	if (err) {
1519		DPRINTFN(0, "addr=%d, port reset failed, %s\n",
1520		    old_addr, usbd_errstr(err));
1521		goto done;
1522	}
1523	/*
1524	 * After that the port has been reset our device should be at
1525	 * address zero:
1526	 */
1527	udev->address = USB_START_ADDR;
1528
1529	/* reset "bMaxPacketSize" */
1530	udev->ddesc.bMaxPacketSize = USB_MAX_IPACKET;
1531
1532	/*
1533	 * Restore device address:
1534	 */
1535	err = usbd_req_set_address(udev, mtx, old_addr);
1536	if (err) {
1537		/* XXX ignore any errors! */
1538		DPRINTFN(0, "addr=%d, set address failed! (%s, ignored)\n",
1539		    old_addr, usbd_errstr(err));
1540	}
1541	/* restore device address */
1542	udev->address = old_addr;
1543
1544	/* allow device time to set new address */
1545	usb_pause_mtx(mtx, USB_MS_TO_TICKS(USB_SET_ADDRESS_SETTLE));
1546
1547	/* get the device descriptor */
1548	err = usbd_req_get_desc(udev, mtx, NULL, &udev->ddesc,
1549	    USB_MAX_IPACKET, USB_MAX_IPACKET, 0, UDESC_DEVICE, 0, 0);
1550	if (err) {
1551		DPRINTFN(0, "getting device descriptor "
1552		    "at addr %d failed, %s!\n", udev->address,
1553		    usbd_errstr(err));
1554		goto done;
1555	}
1556	/* get the full device descriptor */
1557	err = usbd_req_get_device_desc(udev, mtx, &udev->ddesc);
1558	if (err) {
1559		DPRINTFN(0, "addr=%d, getting device "
1560		    "descriptor failed, %s!\n", old_addr,
1561		    usbd_errstr(err));
1562		goto done;
1563	}
1564done:
1565	if (err && do_retry) {
1566		/* give the USB firmware some time to load */
1567		usb_pause_mtx(mtx, hz / 2);
1568		/* no more retries after this retry */
1569		do_retry = 0;
1570		/* try again */
1571		goto retry;
1572	}
1573	/* restore address */
1574	udev->address = old_addr;
1575	return (err);
1576}
1577
1578/*------------------------------------------------------------------------*
1579 *	usbd_req_clear_device_feature
1580 *
1581 * Returns:
1582 *    0: Success
1583 * Else: Failure
1584 *------------------------------------------------------------------------*/
1585usb_error_t
1586usbd_req_clear_device_feature(struct usb_device *udev, struct mtx *mtx,
1587    uint16_t sel)
1588{
1589	struct usb_device_request req;
1590
1591	req.bmRequestType = UT_WRITE_DEVICE;
1592	req.bRequest = UR_CLEAR_FEATURE;
1593	USETW(req.wValue, sel);
1594	USETW(req.wIndex, 0);
1595	USETW(req.wLength, 0);
1596	return (usbd_do_request(udev, mtx, &req, 0));
1597}
1598
1599/*------------------------------------------------------------------------*
1600 *	usbd_req_set_device_feature
1601 *
1602 * Returns:
1603 *    0: Success
1604 * Else: Failure
1605 *------------------------------------------------------------------------*/
1606usb_error_t
1607usbd_req_set_device_feature(struct usb_device *udev, struct mtx *mtx,
1608    uint16_t sel)
1609{
1610	struct usb_device_request req;
1611
1612	req.bmRequestType = UT_WRITE_DEVICE;
1613	req.bRequest = UR_SET_FEATURE;
1614	USETW(req.wValue, sel);
1615	USETW(req.wIndex, 0);
1616	USETW(req.wLength, 0);
1617	return (usbd_do_request(udev, mtx, &req, 0));
1618}
1619