1 #include <linux/kernel.h>
2 #include <linux/errno.h>
3 #include <linux/init.h>
4 #include <linux/slab.h>
6 #include <linux/module.h>
7 #include <linux/moduleparam.h>
8 #include <linux/scatterlist.h>
9 #include <linux/mutex.h>
11 #include <linux/usb.h>
14 /*-------------------------------------------------------------------------*/
16 /* FIXME make these public somewhere; usbdevfs.h? */
17 struct usbtest_param
{
19 unsigned test_num
; /* 0..(TEST_CASES-1) */
26 struct timeval duration
;
28 #define USBTEST_REQUEST _IOWR('U', 100, struct usbtest_param)
30 /*-------------------------------------------------------------------------*/
32 #define GENERIC /* let probe() bind using module params */
34 /* Some devices that can be used for testing will have "real" drivers.
35 * Entries for those need to be enabled here by hand, after disabling
38 //#define IBOT2 /* grab iBOT2 webcams */
39 //#define KEYSPAN_19Qi /* grab un-renumerated serial adapter */
41 /*-------------------------------------------------------------------------*/
45 u8 ep_in
; /* bulk/intr source */
46 u8 ep_out
; /* bulk/intr sink */
49 unsigned iso
:1; /* try iso in/out */
53 /* this is accessed only through usbfs ioctl calls.
54 * one ioctl to issue a test ... one lock per device.
55 * tests create other threads if they need them.
56 * urbs and buffers are allocated dynamically,
57 * and data generated deterministically.
60 struct usb_interface
*intf
;
61 struct usbtest_info
*info
;
66 struct usb_endpoint_descriptor
*iso_in
, *iso_out
;
73 static struct usb_device
*testdev_to_usbdev(struct usbtest_dev
*test
)
75 return interface_to_usbdev(test
->intf
);
78 /* set up all urbs so they can be used with either bulk or interrupt */
79 #define INTERRUPT_RATE 1 /* msec/transfer */
81 #define ERROR(tdev, fmt, args...) \
82 dev_err(&(tdev)->intf->dev , fmt , ## args)
83 #define WARNING(tdev, fmt, args...) \
84 dev_warn(&(tdev)->intf->dev , fmt , ## args)
86 #define GUARD_BYTE 0xA5
88 /*-------------------------------------------------------------------------*/
91 get_endpoints(struct usbtest_dev
*dev
, struct usb_interface
*intf
)
94 struct usb_host_interface
*alt
;
95 struct usb_host_endpoint
*in
, *out
;
96 struct usb_host_endpoint
*iso_in
, *iso_out
;
97 struct usb_device
*udev
;
99 for (tmp
= 0; tmp
< intf
->num_altsetting
; tmp
++) {
103 iso_in
= iso_out
= NULL
;
104 alt
= intf
->altsetting
+ tmp
;
106 /* take the first altsetting with in-bulk + out-bulk;
107 * ignore other endpoints and altsetttings.
109 for (ep
= 0; ep
< alt
->desc
.bNumEndpoints
; ep
++) {
110 struct usb_host_endpoint
*e
;
112 e
= alt
->endpoint
+ ep
;
113 switch (e
->desc
.bmAttributes
) {
114 case USB_ENDPOINT_XFER_BULK
:
116 case USB_ENDPOINT_XFER_ISOC
:
123 if (usb_endpoint_dir_in(&e
->desc
)) {
132 if (usb_endpoint_dir_in(&e
->desc
)) {
140 if ((in
&& out
) || iso_in
|| iso_out
)
146 udev
= testdev_to_usbdev(dev
);
147 if (alt
->desc
.bAlternateSetting
!= 0) {
148 tmp
= usb_set_interface(udev
,
149 alt
->desc
.bInterfaceNumber
,
150 alt
->desc
.bAlternateSetting
);
156 dev
->in_pipe
= usb_rcvbulkpipe(udev
,
157 in
->desc
.bEndpointAddress
& USB_ENDPOINT_NUMBER_MASK
);
158 dev
->out_pipe
= usb_sndbulkpipe(udev
,
159 out
->desc
.bEndpointAddress
& USB_ENDPOINT_NUMBER_MASK
);
162 dev
->iso_in
= &iso_in
->desc
;
163 dev
->in_iso_pipe
= usb_rcvisocpipe(udev
,
164 iso_in
->desc
.bEndpointAddress
165 & USB_ENDPOINT_NUMBER_MASK
);
169 dev
->iso_out
= &iso_out
->desc
;
170 dev
->out_iso_pipe
= usb_sndisocpipe(udev
,
171 iso_out
->desc
.bEndpointAddress
172 & USB_ENDPOINT_NUMBER_MASK
);
177 /*-------------------------------------------------------------------------*/
179 /* Support for testing basic non-queued I/O streams.
181 * These just package urbs as requests that can be easily canceled.
182 * Each urb's data buffer is dynamically allocated; callers can fill
183 * them with non-zero test data (or test for it) when appropriate.
186 static void simple_callback(struct urb
*urb
)
188 complete(urb
->context
);
191 static struct urb
*usbtest_alloc_urb(
192 struct usb_device
*udev
,
195 unsigned transfer_flags
,
200 urb
= usb_alloc_urb(0, GFP_KERNEL
);
203 usb_fill_bulk_urb(urb
, udev
, pipe
, NULL
, bytes
, simple_callback
, NULL
);
204 urb
->interval
= (udev
->speed
== USB_SPEED_HIGH
)
205 ? (INTERRUPT_RATE
<< 3)
207 urb
->transfer_flags
= transfer_flags
;
208 if (usb_pipein(pipe
))
209 urb
->transfer_flags
|= URB_SHORT_NOT_OK
;
211 if (urb
->transfer_flags
& URB_NO_TRANSFER_DMA_MAP
)
212 urb
->transfer_buffer
= usb_alloc_coherent(udev
, bytes
+ offset
,
213 GFP_KERNEL
, &urb
->transfer_dma
);
215 urb
->transfer_buffer
= kmalloc(bytes
+ offset
, GFP_KERNEL
);
217 if (!urb
->transfer_buffer
) {
222 /* To test unaligned transfers add an offset and fill the
223 unused memory with a guard value */
225 memset(urb
->transfer_buffer
, GUARD_BYTE
, offset
);
226 urb
->transfer_buffer
+= offset
;
227 if (urb
->transfer_flags
& URB_NO_TRANSFER_DMA_MAP
)
228 urb
->transfer_dma
+= offset
;
231 /* For inbound transfers use guard byte so that test fails if
232 data not correctly copied */
233 memset(urb
->transfer_buffer
,
234 usb_pipein(urb
->pipe
) ? GUARD_BYTE
: 0,
239 static struct urb
*simple_alloc_urb(
240 struct usb_device
*udev
,
244 return usbtest_alloc_urb(udev
, pipe
, bytes
, URB_NO_TRANSFER_DMA_MAP
, 0);
247 static unsigned pattern
;
248 static unsigned mod_pattern
;
249 module_param_named(pattern
, mod_pattern
, uint
, S_IRUGO
| S_IWUSR
);
250 MODULE_PARM_DESC(mod_pattern
, "i/o pattern (0 == zeroes)");
252 static inline void simple_fill_buf(struct urb
*urb
)
255 u8
*buf
= urb
->transfer_buffer
;
256 unsigned len
= urb
->transfer_buffer_length
;
265 for (i
= 0; i
< len
; i
++)
266 *buf
++ = (u8
) (i
% 63);
271 static inline unsigned buffer_offset(void *buf
)
273 return (unsigned)buf
& (ARCH_KMALLOC_MINALIGN
- 1);
276 static int check_guard_bytes(struct usbtest_dev
*tdev
, struct urb
*urb
)
278 u8
*buf
= urb
->transfer_buffer
;
279 u8
*guard
= buf
- buffer_offset(buf
);
282 for (i
= 0; guard
< buf
; i
++, guard
++) {
283 if (*guard
!= GUARD_BYTE
) {
284 ERROR(tdev
, "guard byte[%d] %d (not %d)\n",
285 i
, *guard
, GUARD_BYTE
);
292 static int simple_check_buf(struct usbtest_dev
*tdev
, struct urb
*urb
)
296 u8
*buf
= urb
->transfer_buffer
;
297 unsigned len
= urb
->actual_length
;
299 int ret
= check_guard_bytes(tdev
, urb
);
303 for (i
= 0; i
< len
; i
++, buf
++) {
305 /* all-zeroes has no synchronization issues */
309 /* mod63 stays in sync with short-terminated transfers,
310 * or otherwise when host and gadget agree on how large
311 * each usb transfer request should be. resync is done
312 * with set_interface or set_config.
317 /* always fail unsupported patterns */
322 if (*buf
== expected
)
324 ERROR(tdev
, "buf[%d] = %d (not %d)\n", i
, *buf
, expected
);
330 static void simple_free_urb(struct urb
*urb
)
332 unsigned offset
= buffer_offset(urb
->transfer_buffer
);
334 if (urb
->transfer_flags
& URB_NO_TRANSFER_DMA_MAP
)
337 urb
->transfer_buffer_length
+ offset
,
338 urb
->transfer_buffer
- offset
,
339 urb
->transfer_dma
- offset
);
341 kfree(urb
->transfer_buffer
- offset
);
345 static int simple_io(
346 struct usbtest_dev
*tdev
,
354 struct usb_device
*udev
= urb
->dev
;
355 int max
= urb
->transfer_buffer_length
;
356 struct completion completion
;
359 urb
->context
= &completion
;
360 while (retval
== 0 && iterations
-- > 0) {
361 init_completion(&completion
);
362 if (usb_pipeout(urb
->pipe
))
363 simple_fill_buf(urb
);
364 retval
= usb_submit_urb(urb
, GFP_KERNEL
);
368 /* NOTE: no timeouts; can't be broken out of by interrupt */
369 wait_for_completion(&completion
);
370 retval
= urb
->status
;
372 if (retval
== 0 && usb_pipein(urb
->pipe
))
373 retval
= simple_check_buf(tdev
, urb
);
376 int len
= urb
->transfer_buffer_length
;
381 len
= (vary
< max
) ? vary
: max
;
382 urb
->transfer_buffer_length
= len
;
385 /* FIXME if endpoint halted, clear halt (and log) */
387 urb
->transfer_buffer_length
= max
;
389 if (expected
!= retval
)
391 "%s failed, iterations left %d, status %d (not %d)\n",
392 label
, iterations
, retval
, expected
);
397 /*-------------------------------------------------------------------------*/
399 /* We use scatterlist primitives to test queued I/O.
400 * Yes, this also tests the scatterlist primitives.
403 static void free_sglist(struct scatterlist
*sg
, int nents
)
409 for (i
= 0; i
< nents
; i
++) {
410 if (!sg_page(&sg
[i
]))
412 kfree(sg_virt(&sg
[i
]));
417 static struct scatterlist
*
418 alloc_sglist(int nents
, int max
, int vary
)
420 struct scatterlist
*sg
;
424 sg
= kmalloc(nents
* sizeof *sg
, GFP_KERNEL
);
427 sg_init_table(sg
, nents
);
429 for (i
= 0; i
< nents
; i
++) {
433 buf
= kzalloc(size
, GFP_KERNEL
);
439 /* kmalloc pages are always physically contiguous! */
440 sg_set_buf(&sg
[i
], buf
, size
);
447 for (j
= 0; j
< size
; j
++)
448 *buf
++ = (u8
) (j
% 63);
456 size
= (vary
< max
) ? vary
: max
;
463 static int perform_sglist(
464 struct usbtest_dev
*tdev
,
467 struct usb_sg_request
*req
,
468 struct scatterlist
*sg
,
472 struct usb_device
*udev
= testdev_to_usbdev(tdev
);
475 while (retval
== 0 && iterations
-- > 0) {
476 retval
= usb_sg_init(req
, udev
, pipe
,
477 (udev
->speed
== USB_SPEED_HIGH
)
478 ? (INTERRUPT_RATE
<< 3)
480 sg
, nents
, 0, GFP_KERNEL
);
485 retval
= req
->status
;
487 /* FIXME check resulting data pattern */
489 /* FIXME if endpoint halted, clear halt (and log) */
492 /* FIXME for unlink or fault handling tests, don't report
493 * failure if retval is as we expected ...
496 ERROR(tdev
, "perform_sglist failed, "
497 "iterations left %d, status %d\n",
503 /*-------------------------------------------------------------------------*/
505 /* unqueued control message testing
507 * there's a nice set of device functional requirements in chapter 9 of the
508 * usb 2.0 spec, which we can apply to ANY device, even ones that don't use
509 * special test firmware.
511 * we know the device is configured (or suspended) by the time it's visible
512 * through usbfs. we can't change that, so we won't test enumeration (which
513 * worked 'well enough' to get here, this time), power management (ditto),
514 * or remote wakeup (which needs human interaction).
517 static unsigned realworld
= 1;
518 module_param(realworld
, uint
, 0);
519 MODULE_PARM_DESC(realworld
, "clear to demand stricter spec compliance");
521 static int get_altsetting(struct usbtest_dev
*dev
)
523 struct usb_interface
*iface
= dev
->intf
;
524 struct usb_device
*udev
= interface_to_usbdev(iface
);
527 retval
= usb_control_msg(udev
, usb_rcvctrlpipe(udev
, 0),
528 USB_REQ_GET_INTERFACE
, USB_DIR_IN
|USB_RECIP_INTERFACE
,
529 0, iface
->altsetting
[0].desc
.bInterfaceNumber
,
530 dev
->buf
, 1, USB_CTRL_GET_TIMEOUT
);
542 static int set_altsetting(struct usbtest_dev
*dev
, int alternate
)
544 struct usb_interface
*iface
= dev
->intf
;
545 struct usb_device
*udev
;
547 if (alternate
< 0 || alternate
>= 256)
550 udev
= interface_to_usbdev(iface
);
551 return usb_set_interface(udev
,
552 iface
->altsetting
[0].desc
.bInterfaceNumber
,
556 static int is_good_config(struct usbtest_dev
*tdev
, int len
)
558 struct usb_config_descriptor
*config
;
560 if (len
< sizeof *config
)
562 config
= (struct usb_config_descriptor
*) tdev
->buf
;
564 switch (config
->bDescriptorType
) {
566 case USB_DT_OTHER_SPEED_CONFIG
:
567 if (config
->bLength
!= 9) {
568 ERROR(tdev
, "bogus config descriptor length\n");
571 /* this bit 'must be 1' but often isn't */
572 if (!realworld
&& !(config
->bmAttributes
& 0x80)) {
573 ERROR(tdev
, "high bit of config attributes not set\n");
576 if (config
->bmAttributes
& 0x1f) { /* reserved == 0 */
577 ERROR(tdev
, "reserved config bits set\n");
585 if (le16_to_cpu(config
->wTotalLength
) == len
) /* read it all */
587 if (le16_to_cpu(config
->wTotalLength
) >= TBUF_SIZE
) /* max partial read */
589 ERROR(tdev
, "bogus config descriptor read size\n");
593 /* sanity test for standard requests working with usb_control_mesg() and some
594 * of the utility functions which use it.
596 * this doesn't test how endpoint halts behave or data toggles get set, since
597 * we won't do I/O to bulk/interrupt endpoints here (which is how to change
598 * halt or toggle). toggle testing is impractical without support from hcds.
600 * this avoids failing devices linux would normally work with, by not testing
601 * config/altsetting operations for devices that only support their defaults.
602 * such devices rarely support those needless operations.
604 * NOTE that since this is a sanity test, it's not examining boundary cases
605 * to see if usbcore, hcd, and device all behave right. such testing would
606 * involve varied read sizes and other operation sequences.
608 static int ch9_postconfig(struct usbtest_dev
*dev
)
610 struct usb_interface
*iface
= dev
->intf
;
611 struct usb_device
*udev
= interface_to_usbdev(iface
);
614 /* [9.2.3] if there's more than one altsetting, we need to be able to
615 * set and get each one. mostly trusts the descriptors from usbcore.
617 for (i
= 0; i
< iface
->num_altsetting
; i
++) {
619 /* 9.2.3 constrains the range here */
620 alt
= iface
->altsetting
[i
].desc
.bAlternateSetting
;
621 if (alt
< 0 || alt
>= iface
->num_altsetting
) {
623 "invalid alt [%d].bAltSetting = %d\n",
627 /* [real world] get/set unimplemented if there's only one */
628 if (realworld
&& iface
->num_altsetting
== 1)
631 /* [9.4.10] set_interface */
632 retval
= set_altsetting(dev
, alt
);
634 dev_err(&iface
->dev
, "can't set_interface = %d, %d\n",
639 /* [9.4.4] get_interface always works */
640 retval
= get_altsetting(dev
);
642 dev_err(&iface
->dev
, "get alt should be %d, was %d\n",
644 return (retval
< 0) ? retval
: -EDOM
;
649 /* [real world] get_config unimplemented if there's only one */
650 if (!realworld
|| udev
->descriptor
.bNumConfigurations
!= 1) {
651 int expected
= udev
->actconfig
->desc
.bConfigurationValue
;
653 /* [9.4.2] get_configuration always works
654 * ... although some cheap devices (like one TI Hub I've got)
655 * won't return config descriptors except before set_config.
657 retval
= usb_control_msg(udev
, usb_rcvctrlpipe(udev
, 0),
658 USB_REQ_GET_CONFIGURATION
,
659 USB_DIR_IN
| USB_RECIP_DEVICE
,
660 0, 0, dev
->buf
, 1, USB_CTRL_GET_TIMEOUT
);
661 if (retval
!= 1 || dev
->buf
[0] != expected
) {
662 dev_err(&iface
->dev
, "get config --> %d %d (1 %d)\n",
663 retval
, dev
->buf
[0], expected
);
664 return (retval
< 0) ? retval
: -EDOM
;
668 /* there's always [9.4.3] a device descriptor [9.6.1] */
669 retval
= usb_get_descriptor(udev
, USB_DT_DEVICE
, 0,
670 dev
->buf
, sizeof udev
->descriptor
);
671 if (retval
!= sizeof udev
->descriptor
) {
672 dev_err(&iface
->dev
, "dev descriptor --> %d\n", retval
);
673 return (retval
< 0) ? retval
: -EDOM
;
676 /* there's always [9.4.3] at least one config descriptor [9.6.3] */
677 for (i
= 0; i
< udev
->descriptor
.bNumConfigurations
; i
++) {
678 retval
= usb_get_descriptor(udev
, USB_DT_CONFIG
, i
,
679 dev
->buf
, TBUF_SIZE
);
680 if (!is_good_config(dev
, retval
)) {
682 "config [%d] descriptor --> %d\n",
684 return (retval
< 0) ? retval
: -EDOM
;
687 /* FIXME cross-checking udev->config[i] to make sure usbcore
688 * parsed it right (etc) would be good testing paranoia
692 /* and sometimes [9.2.6.6] speed dependent descriptors */
693 if (le16_to_cpu(udev
->descriptor
.bcdUSB
) == 0x0200) {
694 struct usb_qualifier_descriptor
*d
= NULL
;
696 /* device qualifier [9.6.2] */
697 retval
= usb_get_descriptor(udev
,
698 USB_DT_DEVICE_QUALIFIER
, 0, dev
->buf
,
699 sizeof(struct usb_qualifier_descriptor
));
700 if (retval
== -EPIPE
) {
701 if (udev
->speed
== USB_SPEED_HIGH
) {
703 "hs dev qualifier --> %d\n",
705 return (retval
< 0) ? retval
: -EDOM
;
707 /* usb2.0 but not high-speed capable; fine */
708 } else if (retval
!= sizeof(struct usb_qualifier_descriptor
)) {
709 dev_err(&iface
->dev
, "dev qualifier --> %d\n", retval
);
710 return (retval
< 0) ? retval
: -EDOM
;
712 d
= (struct usb_qualifier_descriptor
*) dev
->buf
;
714 /* might not have [9.6.2] any other-speed configs [9.6.4] */
716 unsigned max
= d
->bNumConfigurations
;
717 for (i
= 0; i
< max
; i
++) {
718 retval
= usb_get_descriptor(udev
,
719 USB_DT_OTHER_SPEED_CONFIG
, i
,
720 dev
->buf
, TBUF_SIZE
);
721 if (!is_good_config(dev
, retval
)) {
723 "other speed config --> %d\n",
725 return (retval
< 0) ? retval
: -EDOM
;
730 /* FIXME fetch strings from at least the device descriptor */
732 /* [9.4.5] get_status always works */
733 retval
= usb_get_status(udev
, USB_RECIP_DEVICE
, 0, dev
->buf
);
735 dev_err(&iface
->dev
, "get dev status --> %d\n", retval
);
736 return (retval
< 0) ? retval
: -EDOM
;
739 /* FIXME configuration.bmAttributes says if we could try to set/clear
740 * the device's remote wakeup feature ... if we can, test that here
743 retval
= usb_get_status(udev
, USB_RECIP_INTERFACE
,
744 iface
->altsetting
[0].desc
.bInterfaceNumber
, dev
->buf
);
746 dev_err(&iface
->dev
, "get interface status --> %d\n", retval
);
747 return (retval
< 0) ? retval
: -EDOM
;
749 /* FIXME get status for each endpoint in the interface */
754 /*-------------------------------------------------------------------------*/
756 /* use ch9 requests to test whether:
757 * (a) queues work for control, keeping N subtests queued and
758 * active (auto-resubmit) for M loops through the queue.
759 * (b) protocol stalls (control-only) will autorecover.
760 * it's not like bulk/intr; no halt clearing.
761 * (c) short control reads are reported and handled.
762 * (d) queues are always processed in-order
767 struct usbtest_dev
*dev
;
768 struct completion complete
;
773 struct usbtest_param
*param
;
777 #define NUM_SUBCASES 15 /* how many test subcases here? */
780 struct usb_ctrlrequest setup
;
785 static void ctrl_complete(struct urb
*urb
)
787 struct ctrl_ctx
*ctx
= urb
->context
;
788 struct usb_ctrlrequest
*reqp
;
789 struct subcase
*subcase
;
790 int status
= urb
->status
;
792 reqp
= (struct usb_ctrlrequest
*)urb
->setup_packet
;
793 subcase
= container_of(reqp
, struct subcase
, setup
);
795 spin_lock(&ctx
->lock
);
799 /* queue must transfer and complete in fifo order, unless
800 * usb_unlink_urb() is used to unlink something not at the
801 * physical queue head (not tested).
803 if (subcase
->number
> 0) {
804 if ((subcase
->number
- ctx
->last
) != 1) {
806 "subcase %d completed out of order, last %d\n",
807 subcase
->number
, ctx
->last
);
809 ctx
->last
= subcase
->number
;
813 ctx
->last
= subcase
->number
;
815 /* succeed or fault in only one way? */
816 if (status
== subcase
->expected
)
819 /* async unlink for cleanup? */
820 else if (status
!= -ECONNRESET
) {
822 /* some faults are allowed, not required */
823 if (subcase
->expected
> 0 && (
824 ((status
== -subcase
->expected
/* happened */
825 || status
== 0)))) /* didn't */
827 /* sometimes more than one fault is allowed */
828 else if (subcase
->number
== 12 && status
== -EPIPE
)
831 ERROR(ctx
->dev
, "subtest %d error, status %d\n",
832 subcase
->number
, status
);
835 /* unexpected status codes mean errors; ideally, in hardware */
838 if (ctx
->status
== 0) {
841 ctx
->status
= status
;
842 ERROR(ctx
->dev
, "control queue %02x.%02x, err %d, "
843 "%d left, subcase %d, len %d/%d\n",
844 reqp
->bRequestType
, reqp
->bRequest
,
845 status
, ctx
->count
, subcase
->number
,
847 urb
->transfer_buffer_length
);
849 /* FIXME this "unlink everything" exit route should
850 * be a separate test case.
853 /* unlink whatever's still pending */
854 for (i
= 1; i
< ctx
->param
->sglen
; i
++) {
855 struct urb
*u
= ctx
->urb
[
856 (i
+ subcase
->number
)
857 % ctx
->param
->sglen
];
859 if (u
== urb
|| !u
->dev
)
861 spin_unlock(&ctx
->lock
);
862 status
= usb_unlink_urb(u
);
863 spin_lock(&ctx
->lock
);
870 ERROR(ctx
->dev
, "urb unlink --> %d\n",
874 status
= ctx
->status
;
878 /* resubmit if we need to, else mark this as done */
879 if ((status
== 0) && (ctx
->pending
< ctx
->count
)) {
880 status
= usb_submit_urb(urb
, GFP_ATOMIC
);
883 "can't resubmit ctrl %02x.%02x, err %d\n",
884 reqp
->bRequestType
, reqp
->bRequest
, status
);
891 /* signal completion when nothing's queued */
892 if (ctx
->pending
== 0)
893 complete(&ctx
->complete
);
894 spin_unlock(&ctx
->lock
);
898 test_ctrl_queue(struct usbtest_dev
*dev
, struct usbtest_param
*param
)
900 struct usb_device
*udev
= testdev_to_usbdev(dev
);
902 struct ctrl_ctx context
;
905 spin_lock_init(&context
.lock
);
907 init_completion(&context
.complete
);
908 context
.count
= param
->sglen
* param
->iterations
;
910 context
.status
= -ENOMEM
;
911 context
.param
= param
;
914 /* allocate and init the urbs we'll queue.
915 * as with bulk/intr sglists, sglen is the queue depth; it also
916 * controls which subtests run (more tests than sglen) or rerun.
918 urb
= kcalloc(param
->sglen
, sizeof(struct urb
*), GFP_KERNEL
);
921 for (i
= 0; i
< param
->sglen
; i
++) {
922 int pipe
= usb_rcvctrlpipe(udev
, 0);
925 struct usb_ctrlrequest req
;
926 struct subcase
*reqp
;
928 /* sign of this variable means:
929 * -: tested code must return this (negative) error code
930 * +: tested code may return this (negative too) error code
934 /* requests here are mostly expected to succeed on any
935 * device, but some are chosen to trigger protocol stalls
938 memset(&req
, 0, sizeof req
);
939 req
.bRequest
= USB_REQ_GET_DESCRIPTOR
;
940 req
.bRequestType
= USB_DIR_IN
|USB_RECIP_DEVICE
;
942 switch (i
% NUM_SUBCASES
) {
943 case 0: /* get device descriptor */
944 req
.wValue
= cpu_to_le16(USB_DT_DEVICE
<< 8);
945 len
= sizeof(struct usb_device_descriptor
);
947 case 1: /* get first config descriptor (only) */
948 req
.wValue
= cpu_to_le16((USB_DT_CONFIG
<< 8) | 0);
949 len
= sizeof(struct usb_config_descriptor
);
951 case 2: /* get altsetting (OFTEN STALLS) */
952 req
.bRequest
= USB_REQ_GET_INTERFACE
;
953 req
.bRequestType
= USB_DIR_IN
|USB_RECIP_INTERFACE
;
954 /* index = 0 means first interface */
958 case 3: /* get interface status */
959 req
.bRequest
= USB_REQ_GET_STATUS
;
960 req
.bRequestType
= USB_DIR_IN
|USB_RECIP_INTERFACE
;
964 case 4: /* get device status */
965 req
.bRequest
= USB_REQ_GET_STATUS
;
966 req
.bRequestType
= USB_DIR_IN
|USB_RECIP_DEVICE
;
969 case 5: /* get device qualifier (MAY STALL) */
970 req
.wValue
= cpu_to_le16 (USB_DT_DEVICE_QUALIFIER
<< 8);
971 len
= sizeof(struct usb_qualifier_descriptor
);
972 if (udev
->speed
!= USB_SPEED_HIGH
)
975 case 6: /* get first config descriptor, plus interface */
976 req
.wValue
= cpu_to_le16((USB_DT_CONFIG
<< 8) | 0);
977 len
= sizeof(struct usb_config_descriptor
);
978 len
+= sizeof(struct usb_interface_descriptor
);
980 case 7: /* get interface descriptor (ALWAYS STALLS) */
981 req
.wValue
= cpu_to_le16 (USB_DT_INTERFACE
<< 8);
983 len
= sizeof(struct usb_interface_descriptor
);
986 /* NOTE: two consecutive stalls in the queue here.
987 * that tests fault recovery a bit more aggressively. */
988 case 8: /* clear endpoint halt (MAY STALL) */
989 req
.bRequest
= USB_REQ_CLEAR_FEATURE
;
990 req
.bRequestType
= USB_RECIP_ENDPOINT
;
991 /* wValue 0 == ep halt */
992 /* wIndex 0 == ep0 (shouldn't halt!) */
994 pipe
= usb_sndctrlpipe(udev
, 0);
997 case 9: /* get endpoint status */
998 req
.bRequest
= USB_REQ_GET_STATUS
;
999 req
.bRequestType
= USB_DIR_IN
|USB_RECIP_ENDPOINT
;
1003 case 10: /* trigger short read (EREMOTEIO) */
1004 req
.wValue
= cpu_to_le16((USB_DT_CONFIG
<< 8) | 0);
1006 expected
= -EREMOTEIO
;
1008 /* NOTE: two consecutive _different_ faults in the queue. */
1009 case 11: /* get endpoint descriptor (ALWAYS STALLS) */
1010 req
.wValue
= cpu_to_le16(USB_DT_ENDPOINT
<< 8);
1012 len
= sizeof(struct usb_interface_descriptor
);
1015 /* NOTE: sometimes even a third fault in the queue! */
1016 case 12: /* get string 0 descriptor (MAY STALL) */
1017 req
.wValue
= cpu_to_le16(USB_DT_STRING
<< 8);
1018 /* string == 0, for language IDs */
1019 len
= sizeof(struct usb_interface_descriptor
);
1020 /* may succeed when > 4 languages */
1021 expected
= EREMOTEIO
; /* or EPIPE, if no strings */
1023 case 13: /* short read, resembling case 10 */
1024 req
.wValue
= cpu_to_le16((USB_DT_CONFIG
<< 8) | 0);
1025 /* last data packet "should" be DATA1, not DATA0 */
1026 len
= 1024 - udev
->descriptor
.bMaxPacketSize0
;
1027 expected
= -EREMOTEIO
;
1029 case 14: /* short read; try to fill the last packet */
1030 req
.wValue
= cpu_to_le16((USB_DT_DEVICE
<< 8) | 0);
1031 /* device descriptor size == 18 bytes */
1032 len
= udev
->descriptor
.bMaxPacketSize0
;
1041 expected
= -EREMOTEIO
;
1044 ERROR(dev
, "bogus number of ctrl queue testcases!\n");
1045 context
.status
= -EINVAL
;
1048 req
.wLength
= cpu_to_le16(len
);
1049 urb
[i
] = u
= simple_alloc_urb(udev
, pipe
, len
);
1053 reqp
= kmalloc(sizeof *reqp
, GFP_KERNEL
);
1057 reqp
->number
= i
% NUM_SUBCASES
;
1058 reqp
->expected
= expected
;
1059 u
->setup_packet
= (char *) &reqp
->setup
;
1061 u
->context
= &context
;
1062 u
->complete
= ctrl_complete
;
1065 /* queue the urbs */
1067 spin_lock_irq(&context
.lock
);
1068 for (i
= 0; i
< param
->sglen
; i
++) {
1069 context
.status
= usb_submit_urb(urb
[i
], GFP_ATOMIC
);
1070 if (context
.status
!= 0) {
1071 ERROR(dev
, "can't submit urb[%d], status %d\n",
1073 context
.count
= context
.pending
;
1078 spin_unlock_irq(&context
.lock
);
1080 /* FIXME set timer and time out; provide a disconnect hook */
1082 /* wait for the last one to complete */
1083 if (context
.pending
> 0)
1084 wait_for_completion(&context
.complete
);
1087 for (i
= 0; i
< param
->sglen
; i
++) {
1091 kfree(urb
[i
]->setup_packet
);
1092 simple_free_urb(urb
[i
]);
1095 return context
.status
;
1100 /*-------------------------------------------------------------------------*/
1102 static void unlink1_callback(struct urb
*urb
)
1104 int status
= urb
->status
;
1106 /* we "know" -EPIPE (stall) never happens */
1108 status
= usb_submit_urb(urb
, GFP_ATOMIC
);
1110 urb
->status
= status
;
1111 complete(urb
->context
);
1115 static int unlink1(struct usbtest_dev
*dev
, int pipe
, int size
, int async
)
1118 struct completion completion
;
1121 init_completion(&completion
);
1122 urb
= simple_alloc_urb(testdev_to_usbdev(dev
), pipe
, size
);
1125 urb
->context
= &completion
;
1126 urb
->complete
= unlink1_callback
;
1128 /* keep the endpoint busy. there are lots of hc/hcd-internal
1129 * states, and testing should get to all of them over time.
1131 * FIXME want additional tests for when endpoint is STALLing
1132 * due to errors, or is just NAKing requests.
1134 retval
= usb_submit_urb(urb
, GFP_KERNEL
);
1136 dev_err(&dev
->intf
->dev
, "submit fail %d\n", retval
);
1140 /* unlinking that should always work. variable delay tests more
1141 * hcd states and code paths, even with little other system load.
1143 msleep(jiffies
% (2 * INTERRUPT_RATE
));
1145 while (!completion_done(&completion
)) {
1146 retval
= usb_unlink_urb(urb
);
1151 /* we can't unlink urbs while they're completing
1152 * or if they've completed, and we haven't
1153 * resubmitted. "normal" drivers would prevent
1154 * resubmission, but since we're testing unlink
1157 ERROR(dev
, "unlink retry\n");
1164 dev_err(&dev
->intf
->dev
,
1165 "unlink fail %d\n", retval
);
1174 wait_for_completion(&completion
);
1175 retval
= urb
->status
;
1176 simple_free_urb(urb
);
1179 return (retval
== -ECONNRESET
) ? 0 : retval
- 1000;
1181 return (retval
== -ENOENT
|| retval
== -EPERM
) ?
1185 static int unlink_simple(struct usbtest_dev
*dev
, int pipe
, int len
)
1189 /* test sync and async paths */
1190 retval
= unlink1(dev
, pipe
, len
, 1);
1192 retval
= unlink1(dev
, pipe
, len
, 0);
1196 /*-------------------------------------------------------------------------*/
1198 static int verify_not_halted(struct usbtest_dev
*tdev
, int ep
, struct urb
*urb
)
1203 /* shouldn't look or act halted */
1204 retval
= usb_get_status(urb
->dev
, USB_RECIP_ENDPOINT
, ep
, &status
);
1206 ERROR(tdev
, "ep %02x couldn't get no-halt status, %d\n",
1211 ERROR(tdev
, "ep %02x bogus status: %04x != 0\n", ep
, status
);
1214 retval
= simple_io(tdev
, urb
, 1, 0, 0, __func__
);
1220 static int verify_halted(struct usbtest_dev
*tdev
, int ep
, struct urb
*urb
)
1225 /* should look and act halted */
1226 retval
= usb_get_status(urb
->dev
, USB_RECIP_ENDPOINT
, ep
, &status
);
1228 ERROR(tdev
, "ep %02x couldn't get halt status, %d\n",
1232 le16_to_cpus(&status
);
1234 ERROR(tdev
, "ep %02x bogus status: %04x != 1\n", ep
, status
);
1237 retval
= simple_io(tdev
, urb
, 1, 0, -EPIPE
, __func__
);
1238 if (retval
!= -EPIPE
)
1240 retval
= simple_io(tdev
, urb
, 1, 0, -EPIPE
, "verify_still_halted");
1241 if (retval
!= -EPIPE
)
1246 static int test_halt(struct usbtest_dev
*tdev
, int ep
, struct urb
*urb
)
1250 /* shouldn't look or act halted now */
1251 retval
= verify_not_halted(tdev
, ep
, urb
);
1255 /* set halt (protocol test only), verify it worked */
1256 retval
= usb_control_msg(urb
->dev
, usb_sndctrlpipe(urb
->dev
, 0),
1257 USB_REQ_SET_FEATURE
, USB_RECIP_ENDPOINT
,
1258 USB_ENDPOINT_HALT
, ep
,
1259 NULL
, 0, USB_CTRL_SET_TIMEOUT
);
1261 ERROR(tdev
, "ep %02x couldn't set halt, %d\n", ep
, retval
);
1264 retval
= verify_halted(tdev
, ep
, urb
);
1268 /* clear halt (tests API + protocol), verify it worked */
1269 retval
= usb_clear_halt(urb
->dev
, urb
->pipe
);
1271 ERROR(tdev
, "ep %02x couldn't clear halt, %d\n", ep
, retval
);
1274 retval
= verify_not_halted(tdev
, ep
, urb
);
1278 /* NOTE: could also verify SET_INTERFACE clear halts ... */
1283 static int halt_simple(struct usbtest_dev
*dev
)
1289 urb
= simple_alloc_urb(testdev_to_usbdev(dev
), 0, 512);
1294 ep
= usb_pipeendpoint(dev
->in_pipe
) | USB_DIR_IN
;
1295 urb
->pipe
= dev
->in_pipe
;
1296 retval
= test_halt(dev
, ep
, urb
);
1301 if (dev
->out_pipe
) {
1302 ep
= usb_pipeendpoint(dev
->out_pipe
);
1303 urb
->pipe
= dev
->out_pipe
;
1304 retval
= test_halt(dev
, ep
, urb
);
1307 simple_free_urb(urb
);
1311 /*-------------------------------------------------------------------------*/
1313 /* Control OUT tests use the vendor control requests from Intel's
1314 * USB 2.0 compliance test device: write a buffer, read it back.
1316 * Intel's spec only _requires_ that it work for one packet, which
1317 * is pretty weak. Some HCDs place limits here; most devices will
1318 * need to be able to handle more than one OUT data packet. We'll
1319 * try whatever we're told to try.
1321 static int ctrl_out(struct usbtest_dev
*dev
,
1322 unsigned count
, unsigned length
, unsigned vary
, unsigned offset
)
1328 struct usb_device
*udev
;
1330 if (length
< 1 || length
> 0xffff || vary
>= length
)
1333 buf
= kmalloc(length
+ offset
, GFP_KERNEL
);
1338 udev
= testdev_to_usbdev(dev
);
1342 /* NOTE: hardware might well act differently if we pushed it
1343 * with lots back-to-back queued requests.
1345 for (i
= 0; i
< count
; i
++) {
1346 /* write patterned data */
1347 for (j
= 0; j
< len
; j
++)
1349 retval
= usb_control_msg(udev
, usb_sndctrlpipe(udev
, 0),
1350 0x5b, USB_DIR_OUT
|USB_TYPE_VENDOR
,
1351 0, 0, buf
, len
, USB_CTRL_SET_TIMEOUT
);
1352 if (retval
!= len
) {
1355 ERROR(dev
, "ctrl_out, wlen %d (expected %d)\n",
1362 /* read it back -- assuming nothing intervened!! */
1363 retval
= usb_control_msg(udev
, usb_rcvctrlpipe(udev
, 0),
1364 0x5c, USB_DIR_IN
|USB_TYPE_VENDOR
,
1365 0, 0, buf
, len
, USB_CTRL_GET_TIMEOUT
);
1366 if (retval
!= len
) {
1369 ERROR(dev
, "ctrl_out, rlen %d (expected %d)\n",
1376 /* fail if we can't verify */
1377 for (j
= 0; j
< len
; j
++) {
1378 if (buf
[j
] != (u8
) (i
+ j
)) {
1379 ERROR(dev
, "ctrl_out, byte %d is %d not %d\n",
1380 j
, buf
[j
], (u8
) i
+ j
);
1392 /* [real world] the "zero bytes IN" case isn't really used.
1393 * hardware can easily trip up in this weird case, since its
1394 * status stage is IN, not OUT like other ep0in transfers.
1397 len
= realworld
? 1 : 0;
1401 ERROR(dev
, "ctrl_out %s failed, code %d, count %d\n",
1404 kfree(buf
- offset
);
1408 /*-------------------------------------------------------------------------*/
1410 /* ISO tests ... mimics common usage
1411 * - buffer length is split into N packets (mostly maxpacket sized)
1412 * - multi-buffers according to sglen
1415 struct iso_context
{
1419 struct completion done
;
1421 unsigned long errors
;
1422 unsigned long packet_count
;
1423 struct usbtest_dev
*dev
;
1426 static void iso_callback(struct urb
*urb
)
1428 struct iso_context
*ctx
= urb
->context
;
1430 spin_lock(&ctx
->lock
);
1433 ctx
->packet_count
+= urb
->number_of_packets
;
1434 if (urb
->error_count
> 0)
1435 ctx
->errors
+= urb
->error_count
;
1436 else if (urb
->status
!= 0)
1437 ctx
->errors
+= urb
->number_of_packets
;
1438 else if (urb
->actual_length
!= urb
->transfer_buffer_length
)
1440 else if (check_guard_bytes(ctx
->dev
, urb
) != 0)
1443 if (urb
->status
== 0 && ctx
->count
> (ctx
->pending
- 1)
1444 && !ctx
->submit_error
) {
1445 int status
= usb_submit_urb(urb
, GFP_ATOMIC
);
1450 dev_err(&ctx
->dev
->intf
->dev
,
1451 "iso resubmit err %d\n",
1454 case -ENODEV
: /* disconnected */
1455 case -ESHUTDOWN
: /* endpoint disabled */
1456 ctx
->submit_error
= 1;
1462 if (ctx
->pending
== 0) {
1464 dev_err(&ctx
->dev
->intf
->dev
,
1465 "iso test, %lu errors out of %lu\n",
1466 ctx
->errors
, ctx
->packet_count
);
1467 complete(&ctx
->done
);
1470 spin_unlock(&ctx
->lock
);
1473 static struct urb
*iso_alloc_urb(
1474 struct usb_device
*udev
,
1476 struct usb_endpoint_descriptor
*desc
,
1482 unsigned i
, maxp
, packets
;
1484 if (bytes
< 0 || !desc
)
1486 maxp
= 0x7ff & le16_to_cpu(desc
->wMaxPacketSize
);
1487 maxp
*= 1 + (0x3 & (le16_to_cpu(desc
->wMaxPacketSize
) >> 11));
1488 packets
= DIV_ROUND_UP(bytes
, maxp
);
1490 urb
= usb_alloc_urb(packets
, GFP_KERNEL
);
1496 urb
->number_of_packets
= packets
;
1497 urb
->transfer_buffer_length
= bytes
;
1498 urb
->transfer_buffer
= usb_alloc_coherent(udev
, bytes
+ offset
,
1500 &urb
->transfer_dma
);
1501 if (!urb
->transfer_buffer
) {
1506 memset(urb
->transfer_buffer
, GUARD_BYTE
, offset
);
1507 urb
->transfer_buffer
+= offset
;
1508 urb
->transfer_dma
+= offset
;
1510 /* For inbound transfers use guard byte so that test fails if
1511 data not correctly copied */
1512 memset(urb
->transfer_buffer
,
1513 usb_pipein(urb
->pipe
) ? GUARD_BYTE
: 0,
1516 for (i
= 0; i
< packets
; i
++) {
1517 /* here, only the last packet will be short */
1518 urb
->iso_frame_desc
[i
].length
= min((unsigned) bytes
, maxp
);
1519 bytes
-= urb
->iso_frame_desc
[i
].length
;
1521 urb
->iso_frame_desc
[i
].offset
= maxp
* i
;
1524 urb
->complete
= iso_callback
;
1525 /* urb->context = SET BY CALLER */
1526 urb
->interval
= 1 << (desc
->bInterval
- 1);
1527 urb
->transfer_flags
= URB_ISO_ASAP
| URB_NO_TRANSFER_DMA_MAP
;
1532 test_iso_queue(struct usbtest_dev
*dev
, struct usbtest_param
*param
,
1533 int pipe
, struct usb_endpoint_descriptor
*desc
, unsigned offset
)
1535 struct iso_context context
;
1536 struct usb_device
*udev
;
1538 unsigned long packets
= 0;
1540 struct urb
*urbs
[10]; /* FIXME no limit */
1542 if (param
->sglen
> 10)
1545 memset(&context
, 0, sizeof context
);
1546 context
.count
= param
->iterations
* param
->sglen
;
1548 init_completion(&context
.done
);
1549 spin_lock_init(&context
.lock
);
1551 memset(urbs
, 0, sizeof urbs
);
1552 udev
= testdev_to_usbdev(dev
);
1553 dev_info(&dev
->intf
->dev
,
1554 "... iso period %d %sframes, wMaxPacket %04x\n",
1555 1 << (desc
->bInterval
- 1),
1556 (udev
->speed
== USB_SPEED_HIGH
) ? "micro" : "",
1557 le16_to_cpu(desc
->wMaxPacketSize
));
1559 for (i
= 0; i
< param
->sglen
; i
++) {
1560 urbs
[i
] = iso_alloc_urb(udev
, pipe
, desc
,
1561 param
->length
, offset
);
1566 packets
+= urbs
[i
]->number_of_packets
;
1567 urbs
[i
]->context
= &context
;
1569 packets
*= param
->iterations
;
1570 dev_info(&dev
->intf
->dev
,
1571 "... total %lu msec (%lu packets)\n",
1572 (packets
* (1 << (desc
->bInterval
- 1)))
1573 / ((udev
->speed
== USB_SPEED_HIGH
) ? 8 : 1),
1576 spin_lock_irq(&context
.lock
);
1577 for (i
= 0; i
< param
->sglen
; i
++) {
1579 status
= usb_submit_urb(urbs
[i
], GFP_ATOMIC
);
1581 ERROR(dev
, "submit iso[%d], error %d\n", i
, status
);
1583 spin_unlock_irq(&context
.lock
);
1587 simple_free_urb(urbs
[i
]);
1590 context
.submit_error
= 1;
1594 spin_unlock_irq(&context
.lock
);
1596 wait_for_completion(&context
.done
);
1598 for (i
= 0; i
< param
->sglen
; i
++) {
1600 simple_free_urb(urbs
[i
]);
1603 * Isochronous transfers are expected to fail sometimes. As an
1604 * arbitrary limit, we will report an error if any submissions
1605 * fail or if the transfer failure rate is > 10%.
1609 else if (context
.submit_error
)
1611 else if (context
.errors
> context
.packet_count
/ 10)
1616 for (i
= 0; i
< param
->sglen
; i
++) {
1618 simple_free_urb(urbs
[i
]);
1623 static int test_unaligned_bulk(
1624 struct usbtest_dev
*tdev
,
1628 unsigned transfer_flags
,
1632 struct urb
*urb
= usbtest_alloc_urb(
1633 testdev_to_usbdev(tdev
), pipe
, length
, transfer_flags
, 1);
1638 retval
= simple_io(tdev
, urb
, iterations
, 0, 0, label
);
1639 simple_free_urb(urb
);
1643 /*-------------------------------------------------------------------------*/
1645 /* We only have this one interface to user space, through usbfs.
1646 * User mode code can scan usbfs to find N different devices (maybe on
1647 * different busses) to use when testing, and allocate one thread per
1648 * test. So discovery is simplified, and we have no device naming issues.
1650 * Don't use these only as stress/load tests. Use them along with with
1651 * other USB bus activity: plugging, unplugging, mousing, mp3 playback,
1652 * video capture, and so on. Run different tests at different times, in
1653 * different sequences. Nothing here should interact with other devices,
1654 * except indirectly by consuming USB bandwidth and CPU resources for test
1655 * threads and request completion. But the only way to know that for sure
1656 * is to test when HC queues are in use by many devices.
1658 * WARNING: Because usbfs grabs udev->dev.sem before calling this ioctl(),
1659 * it locks out usbcore in certain code paths. Notably, if you disconnect
1660 * the device-under-test, khubd will wait block forever waiting for the
1661 * ioctl to complete ... so that usb_disconnect() can abort the pending
1662 * urbs and then call usbtest_disconnect(). To abort a test, you're best
1663 * off just killing the userspace task and waiting for it to exit.
1668 usbtest_ioctl(struct usb_interface
*intf
, unsigned int code
, void *buf
)
1670 struct usbtest_dev
*dev
= usb_get_intfdata(intf
);
1671 struct usb_device
*udev
= testdev_to_usbdev(dev
);
1672 struct usbtest_param
*param
= buf
;
1673 int retval
= -EOPNOTSUPP
;
1675 struct scatterlist
*sg
;
1676 struct usb_sg_request req
;
1677 struct timeval start
;
1680 /* FIXME USBDEVFS_CONNECTINFO doesn't say how fast the device is. */
1682 pattern
= mod_pattern
;
1684 if (code
!= USBTEST_REQUEST
)
1687 if (param
->iterations
<= 0)
1690 if (mutex_lock_interruptible(&dev
->lock
))
1691 return -ERESTARTSYS
;
1693 /* FIXME: What if a system sleep starts while a test is running? */
1695 /* some devices, like ez-usb default devices, need a non-default
1696 * altsetting to have any active endpoints. some tests change
1697 * altsettings; force a default so most tests don't need to check.
1699 if (dev
->info
->alt
>= 0) {
1702 if (intf
->altsetting
->desc
.bInterfaceNumber
) {
1703 mutex_unlock(&dev
->lock
);
1706 res
= set_altsetting(dev
, dev
->info
->alt
);
1709 "set altsetting to %d failed, %d\n",
1710 dev
->info
->alt
, res
);
1711 mutex_unlock(&dev
->lock
);
1717 * Just a bunch of test cases that every HCD is expected to handle.
1719 * Some may need specific firmware, though it'd be good to have
1720 * one firmware image to handle all the test cases.
1722 * FIXME add more tests! cancel requests, verify the data, control
1723 * queueing, concurrent read+write threads, and so on.
1725 do_gettimeofday(&start
);
1726 switch (param
->test_num
) {
1729 dev_info(&intf
->dev
, "TEST 0: NOP\n");
1733 /* Simple non-queued bulk I/O tests */
1735 if (dev
->out_pipe
== 0)
1737 dev_info(&intf
->dev
,
1738 "TEST 1: write %d bytes %u times\n",
1739 param
->length
, param
->iterations
);
1740 urb
= simple_alloc_urb(udev
, dev
->out_pipe
, param
->length
);
1745 /* FIRMWARE: bulk sink (maybe accepts short writes) */
1746 retval
= simple_io(dev
, urb
, param
->iterations
, 0, 0, "test1");
1747 simple_free_urb(urb
);
1750 if (dev
->in_pipe
== 0)
1752 dev_info(&intf
->dev
,
1753 "TEST 2: read %d bytes %u times\n",
1754 param
->length
, param
->iterations
);
1755 urb
= simple_alloc_urb(udev
, dev
->in_pipe
, param
->length
);
1760 /* FIRMWARE: bulk source (maybe generates short writes) */
1761 retval
= simple_io(dev
, urb
, param
->iterations
, 0, 0, "test2");
1762 simple_free_urb(urb
);
1765 if (dev
->out_pipe
== 0 || param
->vary
== 0)
1767 dev_info(&intf
->dev
,
1768 "TEST 3: write/%d 0..%d bytes %u times\n",
1769 param
->vary
, param
->length
, param
->iterations
);
1770 urb
= simple_alloc_urb(udev
, dev
->out_pipe
, param
->length
);
1775 /* FIRMWARE: bulk sink (maybe accepts short writes) */
1776 retval
= simple_io(dev
, urb
, param
->iterations
, param
->vary
,
1778 simple_free_urb(urb
);
1781 if (dev
->in_pipe
== 0 || param
->vary
== 0)
1783 dev_info(&intf
->dev
,
1784 "TEST 4: read/%d 0..%d bytes %u times\n",
1785 param
->vary
, param
->length
, param
->iterations
);
1786 urb
= simple_alloc_urb(udev
, dev
->in_pipe
, param
->length
);
1791 /* FIRMWARE: bulk source (maybe generates short writes) */
1792 retval
= simple_io(dev
, urb
, param
->iterations
, param
->vary
,
1794 simple_free_urb(urb
);
1797 /* Queued bulk I/O tests */
1799 if (dev
->out_pipe
== 0 || param
->sglen
== 0)
1801 dev_info(&intf
->dev
,
1802 "TEST 5: write %d sglists %d entries of %d bytes\n",
1804 param
->sglen
, param
->length
);
1805 sg
= alloc_sglist(param
->sglen
, param
->length
, 0);
1810 /* FIRMWARE: bulk sink (maybe accepts short writes) */
1811 retval
= perform_sglist(dev
, param
->iterations
, dev
->out_pipe
,
1812 &req
, sg
, param
->sglen
);
1813 free_sglist(sg
, param
->sglen
);
1817 if (dev
->in_pipe
== 0 || param
->sglen
== 0)
1819 dev_info(&intf
->dev
,
1820 "TEST 6: read %d sglists %d entries of %d bytes\n",
1822 param
->sglen
, param
->length
);
1823 sg
= alloc_sglist(param
->sglen
, param
->length
, 0);
1828 /* FIRMWARE: bulk source (maybe generates short writes) */
1829 retval
= perform_sglist(dev
, param
->iterations
, dev
->in_pipe
,
1830 &req
, sg
, param
->sglen
);
1831 free_sglist(sg
, param
->sglen
);
1834 if (dev
->out_pipe
== 0 || param
->sglen
== 0 || param
->vary
== 0)
1836 dev_info(&intf
->dev
,
1837 "TEST 7: write/%d %d sglists %d entries 0..%d bytes\n",
1838 param
->vary
, param
->iterations
,
1839 param
->sglen
, param
->length
);
1840 sg
= alloc_sglist(param
->sglen
, param
->length
, param
->vary
);
1845 /* FIRMWARE: bulk sink (maybe accepts short writes) */
1846 retval
= perform_sglist(dev
, param
->iterations
, dev
->out_pipe
,
1847 &req
, sg
, param
->sglen
);
1848 free_sglist(sg
, param
->sglen
);
1851 if (dev
->in_pipe
== 0 || param
->sglen
== 0 || param
->vary
== 0)
1853 dev_info(&intf
->dev
,
1854 "TEST 8: read/%d %d sglists %d entries 0..%d bytes\n",
1855 param
->vary
, param
->iterations
,
1856 param
->sglen
, param
->length
);
1857 sg
= alloc_sglist(param
->sglen
, param
->length
, param
->vary
);
1862 /* FIRMWARE: bulk source (maybe generates short writes) */
1863 retval
= perform_sglist(dev
, param
->iterations
, dev
->in_pipe
,
1864 &req
, sg
, param
->sglen
);
1865 free_sglist(sg
, param
->sglen
);
1868 /* non-queued sanity tests for control (chapter 9 subset) */
1871 dev_info(&intf
->dev
,
1872 "TEST 9: ch9 (subset) control tests, %d times\n",
1874 for (i
= param
->iterations
; retval
== 0 && i
--; /* NOP */)
1875 retval
= ch9_postconfig(dev
);
1877 dev_err(&intf
->dev
, "ch9 subset failed, "
1878 "iterations left %d\n", i
);
1881 /* queued control messaging */
1883 if (param
->sglen
== 0)
1886 dev_info(&intf
->dev
,
1887 "TEST 10: queue %d control calls, %d times\n",
1890 retval
= test_ctrl_queue(dev
, param
);
1893 /* simple non-queued unlinks (ring with one urb) */
1895 if (dev
->in_pipe
== 0 || !param
->length
)
1898 dev_info(&intf
->dev
, "TEST 11: unlink %d reads of %d\n",
1899 param
->iterations
, param
->length
);
1900 for (i
= param
->iterations
; retval
== 0 && i
--; /* NOP */)
1901 retval
= unlink_simple(dev
, dev
->in_pipe
,
1904 dev_err(&intf
->dev
, "unlink reads failed %d, "
1905 "iterations left %d\n", retval
, i
);
1908 if (dev
->out_pipe
== 0 || !param
->length
)
1911 dev_info(&intf
->dev
, "TEST 12: unlink %d writes of %d\n",
1912 param
->iterations
, param
->length
);
1913 for (i
= param
->iterations
; retval
== 0 && i
--; /* NOP */)
1914 retval
= unlink_simple(dev
, dev
->out_pipe
,
1917 dev_err(&intf
->dev
, "unlink writes failed %d, "
1918 "iterations left %d\n", retval
, i
);
1923 if (dev
->out_pipe
== 0 && dev
->in_pipe
== 0)
1926 dev_info(&intf
->dev
, "TEST 13: set/clear %d halts\n",
1928 for (i
= param
->iterations
; retval
== 0 && i
--; /* NOP */)
1929 retval
= halt_simple(dev
);
1932 ERROR(dev
, "halts failed, iterations left %d\n", i
);
1935 /* control write tests */
1937 if (!dev
->info
->ctrl_out
)
1939 dev_info(&intf
->dev
, "TEST 14: %d ep0out, %d..%d vary %d\n",
1941 realworld
? 1 : 0, param
->length
,
1943 retval
= ctrl_out(dev
, param
->iterations
,
1944 param
->length
, param
->vary
, 0);
1947 /* iso write tests */
1949 if (dev
->out_iso_pipe
== 0 || param
->sglen
== 0)
1951 dev_info(&intf
->dev
,
1952 "TEST 15: write %d iso, %d entries of %d bytes\n",
1954 param
->sglen
, param
->length
);
1955 /* FIRMWARE: iso sink */
1956 retval
= test_iso_queue(dev
, param
,
1957 dev
->out_iso_pipe
, dev
->iso_out
, 0);
1960 /* iso read tests */
1962 if (dev
->in_iso_pipe
== 0 || param
->sglen
== 0)
1964 dev_info(&intf
->dev
,
1965 "TEST 16: read %d iso, %d entries of %d bytes\n",
1967 param
->sglen
, param
->length
);
1968 /* FIRMWARE: iso source */
1969 retval
= test_iso_queue(dev
, param
,
1970 dev
->in_iso_pipe
, dev
->iso_in
, 0);
1973 /* FIXME unlink from queue (ring with N urbs) */
1975 /* FIXME scatterlist cancel (needs helper thread) */
1977 /* Tests for bulk I/O using DMA mapping by core and odd address */
1979 if (dev
->out_pipe
== 0)
1981 dev_info(&intf
->dev
,
1982 "TEST 17: write odd addr %d bytes %u times core map\n",
1983 param
->length
, param
->iterations
);
1985 retval
= test_unaligned_bulk(
1987 param
->length
, param
->iterations
,
1992 if (dev
->in_pipe
== 0)
1994 dev_info(&intf
->dev
,
1995 "TEST 18: read odd addr %d bytes %u times core map\n",
1996 param
->length
, param
->iterations
);
1998 retval
= test_unaligned_bulk(
2000 param
->length
, param
->iterations
,
2004 /* Tests for bulk I/O using premapped coherent buffer and odd address */
2006 if (dev
->out_pipe
== 0)
2008 dev_info(&intf
->dev
,
2009 "TEST 19: write odd addr %d bytes %u times premapped\n",
2010 param
->length
, param
->iterations
);
2012 retval
= test_unaligned_bulk(
2014 param
->length
, param
->iterations
,
2015 URB_NO_TRANSFER_DMA_MAP
, "test19");
2019 if (dev
->in_pipe
== 0)
2021 dev_info(&intf
->dev
,
2022 "TEST 20: read odd addr %d bytes %u times premapped\n",
2023 param
->length
, param
->iterations
);
2025 retval
= test_unaligned_bulk(
2027 param
->length
, param
->iterations
,
2028 URB_NO_TRANSFER_DMA_MAP
, "test20");
2031 /* control write tests with unaligned buffer */
2033 if (!dev
->info
->ctrl_out
)
2035 dev_info(&intf
->dev
,
2036 "TEST 21: %d ep0out odd addr, %d..%d vary %d\n",
2038 realworld
? 1 : 0, param
->length
,
2040 retval
= ctrl_out(dev
, param
->iterations
,
2041 param
->length
, param
->vary
, 1);
2044 /* unaligned iso tests */
2046 if (dev
->out_iso_pipe
== 0 || param
->sglen
== 0)
2048 dev_info(&intf
->dev
,
2049 "TEST 22: write %d iso odd, %d entries of %d bytes\n",
2051 param
->sglen
, param
->length
);
2052 retval
= test_iso_queue(dev
, param
,
2053 dev
->out_iso_pipe
, dev
->iso_out
, 1);
2057 if (dev
->in_iso_pipe
== 0 || param
->sglen
== 0)
2059 dev_info(&intf
->dev
,
2060 "TEST 23: read %d iso odd, %d entries of %d bytes\n",
2062 param
->sglen
, param
->length
);
2063 retval
= test_iso_queue(dev
, param
,
2064 dev
->in_iso_pipe
, dev
->iso_in
, 1);
2068 do_gettimeofday(¶m
->duration
);
2069 param
->duration
.tv_sec
-= start
.tv_sec
;
2070 param
->duration
.tv_usec
-= start
.tv_usec
;
2071 if (param
->duration
.tv_usec
< 0) {
2072 param
->duration
.tv_usec
+= 1000 * 1000;
2073 param
->duration
.tv_sec
-= 1;
2075 mutex_unlock(&dev
->lock
);
2079 /*-------------------------------------------------------------------------*/
2081 static unsigned force_interrupt
;
2082 module_param(force_interrupt
, uint
, 0);
2083 MODULE_PARM_DESC(force_interrupt
, "0 = test default; else interrupt");
2086 static unsigned short vendor
;
2087 module_param(vendor
, ushort
, 0);
2088 MODULE_PARM_DESC(vendor
, "vendor code (from usb-if)");
2090 static unsigned short product
;
2091 module_param(product
, ushort
, 0);
2092 MODULE_PARM_DESC(product
, "product code (from vendor)");
2096 usbtest_probe(struct usb_interface
*intf
, const struct usb_device_id
*id
)
2098 struct usb_device
*udev
;
2099 struct usbtest_dev
*dev
;
2100 struct usbtest_info
*info
;
2101 char *rtest
, *wtest
;
2102 char *irtest
, *iwtest
;
2104 udev
= interface_to_usbdev(intf
);
2107 /* specify devices by module parameters? */
2108 if (id
->match_flags
== 0) {
2109 /* vendor match required, product match optional */
2110 if (!vendor
|| le16_to_cpu(udev
->descriptor
.idVendor
) != (u16
)vendor
)
2112 if (product
&& le16_to_cpu(udev
->descriptor
.idProduct
) != (u16
)product
)
2114 dev_info(&intf
->dev
, "matched module params, "
2115 "vend=0x%04x prod=0x%04x\n",
2116 le16_to_cpu(udev
->descriptor
.idVendor
),
2117 le16_to_cpu(udev
->descriptor
.idProduct
));
2121 dev
= kzalloc(sizeof(*dev
), GFP_KERNEL
);
2124 info
= (struct usbtest_info
*) id
->driver_info
;
2126 mutex_init(&dev
->lock
);
2130 /* cacheline-aligned scratch for i/o */
2131 dev
->buf
= kmalloc(TBUF_SIZE
, GFP_KERNEL
);
2132 if (dev
->buf
== NULL
) {
2137 /* NOTE this doesn't yet test the handful of difference that are
2138 * visible with high speed interrupts: bigger maxpacket (1K) and
2139 * "high bandwidth" modes (up to 3 packets/uframe).
2142 irtest
= iwtest
= "";
2143 if (force_interrupt
|| udev
->speed
== USB_SPEED_LOW
) {
2145 dev
->in_pipe
= usb_rcvintpipe(udev
, info
->ep_in
);
2149 dev
->out_pipe
= usb_sndintpipe(udev
, info
->ep_out
);
2150 wtest
= " intr-out";
2153 if (info
->autoconf
) {
2156 status
= get_endpoints(dev
, intf
);
2158 WARNING(dev
, "couldn't get endpoints, %d\n",
2162 /* may find bulk or ISO pipes */
2165 dev
->in_pipe
= usb_rcvbulkpipe(udev
,
2168 dev
->out_pipe
= usb_sndbulkpipe(udev
,
2174 wtest
= " bulk-out";
2175 if (dev
->in_iso_pipe
)
2177 if (dev
->out_iso_pipe
)
2178 iwtest
= " iso-out";
2181 usb_set_intfdata(intf
, dev
);
2182 dev_info(&intf
->dev
, "%s\n", info
->name
);
2183 dev_info(&intf
->dev
, "%s speed {control%s%s%s%s%s} tests%s\n",
2185 switch (udev
->speed
) {
2189 case USB_SPEED_FULL
:
2192 case USB_SPEED_HIGH
:
2199 info
->ctrl_out
? " in/out" : "",
2202 info
->alt
>= 0 ? " (+alt)" : "");
2206 static int usbtest_suspend(struct usb_interface
*intf
, pm_message_t message
)
2211 static int usbtest_resume(struct usb_interface
*intf
)
2217 static void usbtest_disconnect(struct usb_interface
*intf
)
2219 struct usbtest_dev
*dev
= usb_get_intfdata(intf
);
2221 usb_set_intfdata(intf
, NULL
);
2222 dev_dbg(&intf
->dev
, "disconnect\n");
2226 /* Basic testing only needs a device that can source or sink bulk traffic.
2227 * Any device can test control transfers (default with GENERIC binding).
2229 * Several entries work with the default EP0 implementation that's built
2230 * into EZ-USB chips. There's a default vendor ID which can be overridden
2231 * by (very) small config EEPROMS, but otherwise all these devices act
2232 * identically until firmware is loaded: only EP0 works. It turns out
2233 * to be easy to make other endpoints work, without modifying that EP0
2234 * behavior. For now, we expect that kind of firmware.
2237 /* an21xx or fx versions of ez-usb */
2238 static struct usbtest_info ez1_info
= {
2239 .name
= "EZ-USB device",
2245 /* fx2 version of ez-usb */
2246 static struct usbtest_info ez2_info
= {
2247 .name
= "FX2 device",
2253 /* ezusb family device with dedicated usb test firmware,
2255 static struct usbtest_info fw_info
= {
2256 .name
= "usb test device",
2260 .autoconf
= 1, /* iso and ctrl_out need autoconf */
2262 .iso
= 1, /* iso_ep's are #8 in/out */
2265 /* peripheral running Linux and 'zero.c' test firmware, or
2266 * its user-mode cousin. different versions of this use
2267 * different hardware with the same vendor/product codes.
2268 * host side MUST rely on the endpoint descriptors.
2270 static struct usbtest_info gz_info
= {
2271 .name
= "Linux gadget zero",
2277 static struct usbtest_info um_info
= {
2278 .name
= "Linux user mode test driver",
2283 static struct usbtest_info um2_info
= {
2284 .name
= "Linux user mode ISO test driver",
2291 /* this is a nice source of high speed bulk data;
2292 * uses an FX2, with firmware provided in the device
2294 static struct usbtest_info ibot2_info
= {
2295 .name
= "iBOT2 webcam",
2302 /* we can use any device to test control traffic */
2303 static struct usbtest_info generic_info
= {
2304 .name
= "Generic USB device",
2310 static const struct usb_device_id id_table
[] = {
2312 /*-------------------------------------------------------------*/
2314 /* EZ-USB devices which download firmware to replace (or in our
2315 * case augment) the default device implementation.
2318 /* generic EZ-USB FX controller */
2319 { USB_DEVICE(0x0547, 0x2235),
2320 .driver_info
= (unsigned long) &ez1_info
,
2323 /* CY3671 development board with EZ-USB FX */
2324 { USB_DEVICE(0x0547, 0x0080),
2325 .driver_info
= (unsigned long) &ez1_info
,
2328 /* generic EZ-USB FX2 controller (or development board) */
2329 { USB_DEVICE(0x04b4, 0x8613),
2330 .driver_info
= (unsigned long) &ez2_info
,
2333 /* re-enumerated usb test device firmware */
2334 { USB_DEVICE(0xfff0, 0xfff0),
2335 .driver_info
= (unsigned long) &fw_info
,
2338 /* "Gadget Zero" firmware runs under Linux */
2339 { USB_DEVICE(0x0525, 0xa4a0),
2340 .driver_info
= (unsigned long) &gz_info
,
2343 /* so does a user-mode variant */
2344 { USB_DEVICE(0x0525, 0xa4a4),
2345 .driver_info
= (unsigned long) &um_info
,
2348 /* ... and a user-mode variant that talks iso */
2349 { USB_DEVICE(0x0525, 0xa4a3),
2350 .driver_info
= (unsigned long) &um2_info
,
2354 /* Keyspan 19qi uses an21xx (original EZ-USB) */
2355 /* this does not coexist with the real Keyspan 19qi driver! */
2356 { USB_DEVICE(0x06cd, 0x010b),
2357 .driver_info
= (unsigned long) &ez1_info
,
2361 /*-------------------------------------------------------------*/
2364 /* iBOT2 makes a nice source of high speed bulk-in data */
2365 /* this does not coexist with a real iBOT2 driver! */
2366 { USB_DEVICE(0x0b62, 0x0059),
2367 .driver_info
= (unsigned long) &ibot2_info
,
2371 /*-------------------------------------------------------------*/
2374 /* module params can specify devices to use for control tests */
2375 { .driver_info
= (unsigned long) &generic_info
, },
2378 /*-------------------------------------------------------------*/
2382 MODULE_DEVICE_TABLE(usb
, id_table
);
2384 static struct usb_driver usbtest_driver
= {
2386 .id_table
= id_table
,
2387 .probe
= usbtest_probe
,
2388 .unlocked_ioctl
= usbtest_ioctl
,
2389 .disconnect
= usbtest_disconnect
,
2390 .suspend
= usbtest_suspend
,
2391 .resume
= usbtest_resume
,
2394 /*-------------------------------------------------------------------------*/
2396 static int __init
usbtest_init(void)
2400 pr_debug("params: vend=0x%04x prod=0x%04x\n", vendor
, product
);
2402 return usb_register(&usbtest_driver
);
2404 module_init(usbtest_init
);
2406 static void __exit
usbtest_exit(void)
2408 usb_deregister(&usbtest_driver
);
2410 module_exit(usbtest_exit
);
2412 MODULE_DESCRIPTION("USB Core/HCD Testing Driver");
2413 MODULE_LICENSE("GPL");