4 * Copyright (c) 2005 Fabrice Bellard
6 * 2008 Generic packet handler rewrite by Max Krasnyansky
8 * Permission is hereby granted, free of charge, to any person obtaining a copy
9 * of this software and associated documentation files (the "Software"), to deal
10 * in the Software without restriction, including without limitation the rights
11 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
12 * copies of the Software, and to permit persons to whom the Software is
13 * furnished to do so, subject to the following conditions:
15 * The above copyright notice and this permission notice shall be included in
16 * all copies or substantial portions of the Software.
18 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
19 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
20 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
21 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
22 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
23 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
26 #include "qemu-common.h"
31 void usb_pick_speed(USBPort
*port
)
33 static const int speeds
[] = {
39 USBDevice
*udev
= port
->dev
;
42 for (i
= 0; i
< ARRAY_SIZE(speeds
); i
++) {
43 if ((udev
->speedmask
& (1 << speeds
[i
])) &&
44 (port
->speedmask
& (1 << speeds
[i
]))) {
45 udev
->speed
= speeds
[i
];
51 void usb_attach(USBPort
*port
)
53 USBDevice
*dev
= port
->dev
;
56 assert(dev
->attached
);
57 assert(dev
->state
== USB_STATE_NOTATTACHED
);
59 port
->ops
->attach(port
);
60 dev
->state
= USB_STATE_ATTACHED
;
61 usb_device_handle_attach(dev
);
64 void usb_detach(USBPort
*port
)
66 USBDevice
*dev
= port
->dev
;
69 assert(dev
->state
!= USB_STATE_NOTATTACHED
);
70 port
->ops
->detach(port
);
71 dev
->state
= USB_STATE_NOTATTACHED
;
74 void usb_port_reset(USBPort
*port
)
76 USBDevice
*dev
= port
->dev
;
81 usb_device_reset(dev
);
84 void usb_device_reset(USBDevice
*dev
)
86 if (dev
== NULL
|| !dev
->attached
) {
89 dev
->remote_wakeup
= 0;
91 dev
->state
= USB_STATE_DEFAULT
;
92 usb_device_handle_reset(dev
);
95 void usb_wakeup(USBEndpoint
*ep
, unsigned int stream
)
97 USBDevice
*dev
= ep
->dev
;
98 USBBus
*bus
= usb_bus_from_device(dev
);
100 if (dev
->remote_wakeup
&& dev
->port
&& dev
->port
->ops
->wakeup
) {
101 dev
->port
->ops
->wakeup(dev
->port
);
103 if (bus
->ops
->wakeup_endpoint
) {
104 bus
->ops
->wakeup_endpoint(bus
, ep
, stream
);
108 /**********************/
110 /* generic USB device helpers (you are not forced to use them when
111 writing your USB device driver, but they help handling the
115 #define SETUP_STATE_IDLE 0
116 #define SETUP_STATE_SETUP 1
117 #define SETUP_STATE_DATA 2
118 #define SETUP_STATE_ACK 3
119 #define SETUP_STATE_PARAM 4
121 static void do_token_setup(USBDevice
*s
, USBPacket
*p
)
123 int request
, value
, index
;
125 if (p
->iov
.size
!= 8) {
126 p
->status
= USB_RET_STALL
;
130 usb_packet_copy(p
, s
->setup_buf
, p
->iov
.size
);
131 p
->actual_length
= 0;
132 s
->setup_len
= (s
->setup_buf
[7] << 8) | s
->setup_buf
[6];
135 request
= (s
->setup_buf
[0] << 8) | s
->setup_buf
[1];
136 value
= (s
->setup_buf
[3] << 8) | s
->setup_buf
[2];
137 index
= (s
->setup_buf
[5] << 8) | s
->setup_buf
[4];
139 if (s
->setup_buf
[0] & USB_DIR_IN
) {
140 usb_device_handle_control(s
, p
, request
, value
, index
,
141 s
->setup_len
, s
->data_buf
);
142 if (p
->status
== USB_RET_ASYNC
) {
143 s
->setup_state
= SETUP_STATE_SETUP
;
145 if (p
->status
!= USB_RET_SUCCESS
) {
149 if (p
->actual_length
< s
->setup_len
) {
150 s
->setup_len
= p
->actual_length
;
152 s
->setup_state
= SETUP_STATE_DATA
;
154 if (s
->setup_len
> sizeof(s
->data_buf
)) {
156 "usb_generic_handle_packet: ctrl buffer too small (%d > %zu)\n",
157 s
->setup_len
, sizeof(s
->data_buf
));
158 p
->status
= USB_RET_STALL
;
161 if (s
->setup_len
== 0)
162 s
->setup_state
= SETUP_STATE_ACK
;
164 s
->setup_state
= SETUP_STATE_DATA
;
167 p
->actual_length
= 8;
170 static void do_token_in(USBDevice
*s
, USBPacket
*p
)
172 int request
, value
, index
;
174 assert(p
->ep
->nr
== 0);
176 request
= (s
->setup_buf
[0] << 8) | s
->setup_buf
[1];
177 value
= (s
->setup_buf
[3] << 8) | s
->setup_buf
[2];
178 index
= (s
->setup_buf
[5] << 8) | s
->setup_buf
[4];
180 switch(s
->setup_state
) {
181 case SETUP_STATE_ACK
:
182 if (!(s
->setup_buf
[0] & USB_DIR_IN
)) {
183 usb_device_handle_control(s
, p
, request
, value
, index
,
184 s
->setup_len
, s
->data_buf
);
185 if (p
->status
== USB_RET_ASYNC
) {
188 s
->setup_state
= SETUP_STATE_IDLE
;
189 p
->actual_length
= 0;
193 case SETUP_STATE_DATA
:
194 if (s
->setup_buf
[0] & USB_DIR_IN
) {
195 int len
= s
->setup_len
- s
->setup_index
;
196 if (len
> p
->iov
.size
) {
199 usb_packet_copy(p
, s
->data_buf
+ s
->setup_index
, len
);
200 s
->setup_index
+= len
;
201 if (s
->setup_index
>= s
->setup_len
) {
202 s
->setup_state
= SETUP_STATE_ACK
;
206 s
->setup_state
= SETUP_STATE_IDLE
;
207 p
->status
= USB_RET_STALL
;
211 p
->status
= USB_RET_STALL
;
215 static void do_token_out(USBDevice
*s
, USBPacket
*p
)
217 assert(p
->ep
->nr
== 0);
219 switch(s
->setup_state
) {
220 case SETUP_STATE_ACK
:
221 if (s
->setup_buf
[0] & USB_DIR_IN
) {
222 s
->setup_state
= SETUP_STATE_IDLE
;
225 /* ignore additional output */
229 case SETUP_STATE_DATA
:
230 if (!(s
->setup_buf
[0] & USB_DIR_IN
)) {
231 int len
= s
->setup_len
- s
->setup_index
;
232 if (len
> p
->iov
.size
) {
235 usb_packet_copy(p
, s
->data_buf
+ s
->setup_index
, len
);
236 s
->setup_index
+= len
;
237 if (s
->setup_index
>= s
->setup_len
) {
238 s
->setup_state
= SETUP_STATE_ACK
;
242 s
->setup_state
= SETUP_STATE_IDLE
;
243 p
->status
= USB_RET_STALL
;
247 p
->status
= USB_RET_STALL
;
251 static void do_parameter(USBDevice
*s
, USBPacket
*p
)
253 int i
, request
, value
, index
;
255 for (i
= 0; i
< 8; i
++) {
256 s
->setup_buf
[i
] = p
->parameter
>> (i
*8);
259 s
->setup_state
= SETUP_STATE_PARAM
;
260 s
->setup_len
= (s
->setup_buf
[7] << 8) | s
->setup_buf
[6];
263 request
= (s
->setup_buf
[0] << 8) | s
->setup_buf
[1];
264 value
= (s
->setup_buf
[3] << 8) | s
->setup_buf
[2];
265 index
= (s
->setup_buf
[5] << 8) | s
->setup_buf
[4];
267 if (s
->setup_len
> sizeof(s
->data_buf
)) {
269 "usb_generic_handle_packet: ctrl buffer too small (%d > %zu)\n",
270 s
->setup_len
, sizeof(s
->data_buf
));
271 p
->status
= USB_RET_STALL
;
275 if (p
->pid
== USB_TOKEN_OUT
) {
276 usb_packet_copy(p
, s
->data_buf
, s
->setup_len
);
279 usb_device_handle_control(s
, p
, request
, value
, index
,
280 s
->setup_len
, s
->data_buf
);
281 if (p
->status
== USB_RET_ASYNC
) {
285 if (p
->actual_length
< s
->setup_len
) {
286 s
->setup_len
= p
->actual_length
;
288 if (p
->pid
== USB_TOKEN_IN
) {
289 p
->actual_length
= 0;
290 usb_packet_copy(p
, s
->data_buf
, s
->setup_len
);
294 /* ctrl complete function for devices which use usb_generic_handle_packet and
295 may return USB_RET_ASYNC from their handle_control callback. Device code
296 which does this *must* call this function instead of the normal
297 usb_packet_complete to complete their async control packets. */
298 void usb_generic_async_ctrl_complete(USBDevice
*s
, USBPacket
*p
)
301 s
->setup_state
= SETUP_STATE_IDLE
;
304 switch (s
->setup_state
) {
305 case SETUP_STATE_SETUP
:
306 if (p
->actual_length
< s
->setup_len
) {
307 s
->setup_len
= p
->actual_length
;
309 s
->setup_state
= SETUP_STATE_DATA
;
310 p
->actual_length
= 8;
313 case SETUP_STATE_ACK
:
314 s
->setup_state
= SETUP_STATE_IDLE
;
315 p
->actual_length
= 0;
318 case SETUP_STATE_PARAM
:
319 if (p
->actual_length
< s
->setup_len
) {
320 s
->setup_len
= p
->actual_length
;
322 if (p
->pid
== USB_TOKEN_IN
) {
323 p
->actual_length
= 0;
324 usb_packet_copy(p
, s
->data_buf
, s
->setup_len
);
331 usb_packet_complete(s
, p
);
334 /* XXX: fix overflow */
335 int set_usb_string(uint8_t *buf
, const char *str
)
344 for(i
= 0; i
< len
; i
++) {
351 USBDevice
*usb_find_device(USBPort
*port
, uint8_t addr
)
353 USBDevice
*dev
= port
->dev
;
355 if (dev
== NULL
|| !dev
->attached
|| dev
->state
!= USB_STATE_DEFAULT
) {
358 if (dev
->addr
== addr
) {
361 return usb_device_find_device(dev
, addr
);
364 static void usb_process_one(USBPacket
*p
)
366 USBDevice
*dev
= p
->ep
->dev
;
369 * Handlers expect status to be initialized to USB_RET_SUCCESS, but it
370 * can be USB_RET_NAK here from a previous usb_process_one() call,
371 * or USB_RET_ASYNC from going through usb_queue_one().
373 p
->status
= USB_RET_SUCCESS
;
375 if (p
->ep
->nr
== 0) {
378 do_parameter(dev
, p
);
382 case USB_TOKEN_SETUP
:
383 do_token_setup(dev
, p
);
389 do_token_out(dev
, p
);
392 p
->status
= USB_RET_STALL
;
396 usb_device_handle_data(dev
, p
);
400 static void usb_queue_one(USBPacket
*p
)
402 usb_packet_set_state(p
, USB_PACKET_QUEUED
);
403 QTAILQ_INSERT_TAIL(&p
->ep
->queue
, p
, queue
);
404 p
->status
= USB_RET_ASYNC
;
407 /* Hand over a packet to a device for processing. p->status ==
408 USB_RET_ASYNC indicates the processing isn't finished yet, the
409 driver will call usb_packet_complete() when done processing it. */
410 void usb_handle_packet(USBDevice
*dev
, USBPacket
*p
)
413 p
->status
= USB_RET_NODEV
;
416 assert(dev
== p
->ep
->dev
);
417 assert(dev
->state
== USB_STATE_DEFAULT
);
418 usb_packet_check_state(p
, USB_PACKET_SETUP
);
419 assert(p
->ep
!= NULL
);
421 /* Submitting a new packet clears halt */
423 assert(QTAILQ_EMPTY(&p
->ep
->queue
));
424 p
->ep
->halted
= false;
427 if (QTAILQ_EMPTY(&p
->ep
->queue
) || p
->ep
->pipeline
|| p
->stream
) {
429 if (p
->status
== USB_RET_ASYNC
) {
430 /* hcd drivers cannot handle async for isoc */
431 assert(p
->ep
->type
!= USB_ENDPOINT_XFER_ISOC
);
432 /* using async for interrupt packets breaks migration */
433 assert(p
->ep
->type
!= USB_ENDPOINT_XFER_INT
||
434 (dev
->flags
& (1 << USB_DEV_FLAG_IS_HOST
)));
435 usb_packet_set_state(p
, USB_PACKET_ASYNC
);
436 QTAILQ_INSERT_TAIL(&p
->ep
->queue
, p
, queue
);
437 } else if (p
->status
== USB_RET_ADD_TO_QUEUE
) {
441 * When pipelining is enabled usb-devices must always return async,
442 * otherwise packets can complete out of order!
444 assert(p
->stream
|| !p
->ep
->pipeline
||
445 QTAILQ_EMPTY(&p
->ep
->queue
));
446 if (p
->status
!= USB_RET_NAK
) {
447 usb_packet_set_state(p
, USB_PACKET_COMPLETE
);
455 void usb_packet_complete_one(USBDevice
*dev
, USBPacket
*p
)
457 USBEndpoint
*ep
= p
->ep
;
459 assert(p
->stream
|| QTAILQ_FIRST(&ep
->queue
) == p
);
460 assert(p
->status
!= USB_RET_ASYNC
&& p
->status
!= USB_RET_NAK
);
462 if (p
->status
!= USB_RET_SUCCESS
||
463 (p
->short_not_ok
&& (p
->actual_length
< p
->iov
.size
))) {
466 usb_packet_set_state(p
, USB_PACKET_COMPLETE
);
467 QTAILQ_REMOVE(&ep
->queue
, p
, queue
);
468 dev
->port
->ops
->complete(dev
->port
, p
);
471 /* Notify the controller that an async packet is complete. This should only
472 be called for packets previously deferred by returning USB_RET_ASYNC from
474 void usb_packet_complete(USBDevice
*dev
, USBPacket
*p
)
476 USBEndpoint
*ep
= p
->ep
;
478 usb_packet_check_state(p
, USB_PACKET_ASYNC
);
479 usb_packet_complete_one(dev
, p
);
481 while (!QTAILQ_EMPTY(&ep
->queue
)) {
482 p
= QTAILQ_FIRST(&ep
->queue
);
484 /* Empty the queue on a halt */
485 p
->status
= USB_RET_REMOVE_FROM_QUEUE
;
486 dev
->port
->ops
->complete(dev
->port
, p
);
489 if (p
->state
== USB_PACKET_ASYNC
) {
492 usb_packet_check_state(p
, USB_PACKET_QUEUED
);
494 if (p
->status
== USB_RET_ASYNC
) {
495 usb_packet_set_state(p
, USB_PACKET_ASYNC
);
498 usb_packet_complete_one(ep
->dev
, p
);
502 /* Cancel an active packet. The packed must have been deferred by
503 returning USB_RET_ASYNC from handle_packet, and not yet
505 void usb_cancel_packet(USBPacket
* p
)
507 bool callback
= (p
->state
== USB_PACKET_ASYNC
);
508 assert(usb_packet_is_inflight(p
));
509 usb_packet_set_state(p
, USB_PACKET_CANCELED
);
510 QTAILQ_REMOVE(&p
->ep
->queue
, p
, queue
);
512 usb_device_cancel_packet(p
->ep
->dev
, p
);
517 void usb_packet_init(USBPacket
*p
)
519 qemu_iovec_init(&p
->iov
, 1);
522 static const char *usb_packet_state_name(USBPacketState state
)
524 static const char *name
[] = {
525 [USB_PACKET_UNDEFINED
] = "undef",
526 [USB_PACKET_SETUP
] = "setup",
527 [USB_PACKET_QUEUED
] = "queued",
528 [USB_PACKET_ASYNC
] = "async",
529 [USB_PACKET_COMPLETE
] = "complete",
530 [USB_PACKET_CANCELED
] = "canceled",
532 if (state
< ARRAY_SIZE(name
)) {
538 void usb_packet_check_state(USBPacket
*p
, USBPacketState expected
)
543 if (p
->state
== expected
) {
547 bus
= usb_bus_from_device(dev
);
548 trace_usb_packet_state_fault(bus
->busnr
, dev
->port
->path
, p
->ep
->nr
, p
,
549 usb_packet_state_name(p
->state
),
550 usb_packet_state_name(expected
));
551 assert(!"usb packet state check failed");
554 void usb_packet_set_state(USBPacket
*p
, USBPacketState state
)
557 USBDevice
*dev
= p
->ep
->dev
;
558 USBBus
*bus
= usb_bus_from_device(dev
);
559 trace_usb_packet_state_change(bus
->busnr
, dev
->port
->path
, p
->ep
->nr
, p
,
560 usb_packet_state_name(p
->state
),
561 usb_packet_state_name(state
));
563 trace_usb_packet_state_change(-1, "", -1, p
,
564 usb_packet_state_name(p
->state
),
565 usb_packet_state_name(state
));
570 void usb_packet_setup(USBPacket
*p
, int pid
,
571 USBEndpoint
*ep
, unsigned int stream
,
572 uint64_t id
, bool short_not_ok
, bool int_req
)
574 assert(!usb_packet_is_inflight(p
));
575 assert(p
->iov
.iov
!= NULL
);
580 p
->status
= USB_RET_SUCCESS
;
581 p
->actual_length
= 0;
583 p
->short_not_ok
= short_not_ok
;
584 p
->int_req
= int_req
;
586 qemu_iovec_reset(&p
->iov
);
587 usb_packet_set_state(p
, USB_PACKET_SETUP
);
590 void usb_packet_addbuf(USBPacket
*p
, void *ptr
, size_t len
)
592 qemu_iovec_add(&p
->iov
, ptr
, len
);
595 void usb_packet_copy(USBPacket
*p
, void *ptr
, size_t bytes
)
597 QEMUIOVector
*iov
= p
->combined
? &p
->combined
->iov
: &p
->iov
;
599 assert(p
->actual_length
>= 0);
600 assert(p
->actual_length
+ bytes
<= iov
->size
);
602 case USB_TOKEN_SETUP
:
604 iov_to_buf(iov
->iov
, iov
->niov
, p
->actual_length
, ptr
, bytes
);
607 iov_from_buf(iov
->iov
, iov
->niov
, p
->actual_length
, ptr
, bytes
);
610 fprintf(stderr
, "%s: invalid pid: %x\n", __func__
, p
->pid
);
613 p
->actual_length
+= bytes
;
616 void usb_packet_skip(USBPacket
*p
, size_t bytes
)
618 QEMUIOVector
*iov
= p
->combined
? &p
->combined
->iov
: &p
->iov
;
620 assert(p
->actual_length
>= 0);
621 assert(p
->actual_length
+ bytes
<= iov
->size
);
622 if (p
->pid
== USB_TOKEN_IN
) {
623 iov_memset(iov
->iov
, iov
->niov
, p
->actual_length
, 0, bytes
);
625 p
->actual_length
+= bytes
;
628 size_t usb_packet_size(USBPacket
*p
)
630 return p
->combined
? p
->combined
->iov
.size
: p
->iov
.size
;
633 void usb_packet_cleanup(USBPacket
*p
)
635 assert(!usb_packet_is_inflight(p
));
636 qemu_iovec_destroy(&p
->iov
);
639 void usb_ep_reset(USBDevice
*dev
)
644 dev
->ep_ctl
.type
= USB_ENDPOINT_XFER_CONTROL
;
645 dev
->ep_ctl
.ifnum
= 0;
646 dev
->ep_ctl
.max_packet_size
= 64;
647 dev
->ep_ctl
.max_streams
= 0;
648 dev
->ep_ctl
.dev
= dev
;
649 dev
->ep_ctl
.pipeline
= false;
650 for (ep
= 0; ep
< USB_MAX_ENDPOINTS
; ep
++) {
651 dev
->ep_in
[ep
].nr
= ep
+ 1;
652 dev
->ep_out
[ep
].nr
= ep
+ 1;
653 dev
->ep_in
[ep
].pid
= USB_TOKEN_IN
;
654 dev
->ep_out
[ep
].pid
= USB_TOKEN_OUT
;
655 dev
->ep_in
[ep
].type
= USB_ENDPOINT_XFER_INVALID
;
656 dev
->ep_out
[ep
].type
= USB_ENDPOINT_XFER_INVALID
;
657 dev
->ep_in
[ep
].ifnum
= USB_INTERFACE_INVALID
;
658 dev
->ep_out
[ep
].ifnum
= USB_INTERFACE_INVALID
;
659 dev
->ep_in
[ep
].max_packet_size
= 0;
660 dev
->ep_out
[ep
].max_packet_size
= 0;
661 dev
->ep_in
[ep
].max_streams
= 0;
662 dev
->ep_out
[ep
].max_streams
= 0;
663 dev
->ep_in
[ep
].dev
= dev
;
664 dev
->ep_out
[ep
].dev
= dev
;
665 dev
->ep_in
[ep
].pipeline
= false;
666 dev
->ep_out
[ep
].pipeline
= false;
670 void usb_ep_init(USBDevice
*dev
)
675 QTAILQ_INIT(&dev
->ep_ctl
.queue
);
676 for (ep
= 0; ep
< USB_MAX_ENDPOINTS
; ep
++) {
677 QTAILQ_INIT(&dev
->ep_in
[ep
].queue
);
678 QTAILQ_INIT(&dev
->ep_out
[ep
].queue
);
682 void usb_ep_dump(USBDevice
*dev
)
684 static const char *tname
[] = {
685 [USB_ENDPOINT_XFER_CONTROL
] = "control",
686 [USB_ENDPOINT_XFER_ISOC
] = "isoc",
687 [USB_ENDPOINT_XFER_BULK
] = "bulk",
688 [USB_ENDPOINT_XFER_INT
] = "int",
690 int ifnum
, ep
, first
;
692 fprintf(stderr
, "Device \"%s\", config %d\n",
693 dev
->product_desc
, dev
->configuration
);
694 for (ifnum
= 0; ifnum
< 16; ifnum
++) {
696 for (ep
= 0; ep
< USB_MAX_ENDPOINTS
; ep
++) {
697 if (dev
->ep_in
[ep
].type
!= USB_ENDPOINT_XFER_INVALID
&&
698 dev
->ep_in
[ep
].ifnum
== ifnum
) {
701 fprintf(stderr
, " Interface %d, alternative %d\n",
702 ifnum
, dev
->altsetting
[ifnum
]);
704 fprintf(stderr
, " Endpoint %d, IN, %s, %d max\n", ep
,
705 tname
[dev
->ep_in
[ep
].type
],
706 dev
->ep_in
[ep
].max_packet_size
);
708 if (dev
->ep_out
[ep
].type
!= USB_ENDPOINT_XFER_INVALID
&&
709 dev
->ep_out
[ep
].ifnum
== ifnum
) {
712 fprintf(stderr
, " Interface %d, alternative %d\n",
713 ifnum
, dev
->altsetting
[ifnum
]);
715 fprintf(stderr
, " Endpoint %d, OUT, %s, %d max\n", ep
,
716 tname
[dev
->ep_out
[ep
].type
],
717 dev
->ep_out
[ep
].max_packet_size
);
721 fprintf(stderr
, "--\n");
724 struct USBEndpoint
*usb_ep_get(USBDevice
*dev
, int pid
, int ep
)
726 struct USBEndpoint
*eps
;
731 eps
= (pid
== USB_TOKEN_IN
) ? dev
->ep_in
: dev
->ep_out
;
735 assert(pid
== USB_TOKEN_IN
|| pid
== USB_TOKEN_OUT
);
736 assert(ep
> 0 && ep
<= USB_MAX_ENDPOINTS
);
740 uint8_t usb_ep_get_type(USBDevice
*dev
, int pid
, int ep
)
742 struct USBEndpoint
*uep
= usb_ep_get(dev
, pid
, ep
);
746 void usb_ep_set_type(USBDevice
*dev
, int pid
, int ep
, uint8_t type
)
748 struct USBEndpoint
*uep
= usb_ep_get(dev
, pid
, ep
);
752 uint8_t usb_ep_get_ifnum(USBDevice
*dev
, int pid
, int ep
)
754 struct USBEndpoint
*uep
= usb_ep_get(dev
, pid
, ep
);
758 void usb_ep_set_ifnum(USBDevice
*dev
, int pid
, int ep
, uint8_t ifnum
)
760 struct USBEndpoint
*uep
= usb_ep_get(dev
, pid
, ep
);
764 void usb_ep_set_max_packet_size(USBDevice
*dev
, int pid
, int ep
,
767 struct USBEndpoint
*uep
= usb_ep_get(dev
, pid
, ep
);
768 int size
, microframes
;
771 switch ((raw
>> 11) & 3) {
782 uep
->max_packet_size
= size
* microframes
;
785 int usb_ep_get_max_packet_size(USBDevice
*dev
, int pid
, int ep
)
787 struct USBEndpoint
*uep
= usb_ep_get(dev
, pid
, ep
);
788 return uep
->max_packet_size
;
791 void usb_ep_set_max_streams(USBDevice
*dev
, int pid
, int ep
, uint8_t raw
)
793 struct USBEndpoint
*uep
= usb_ep_get(dev
, pid
, ep
);
796 MaxStreams
= raw
& 0x1f;
798 uep
->max_streams
= 1 << MaxStreams
;
800 uep
->max_streams
= 0;
804 int usb_ep_get_max_streams(USBDevice
*dev
, int pid
, int ep
)
806 struct USBEndpoint
*uep
= usb_ep_get(dev
, pid
, ep
);
807 return uep
->max_streams
;
810 void usb_ep_set_pipeline(USBDevice
*dev
, int pid
, int ep
, bool enabled
)
812 struct USBEndpoint
*uep
= usb_ep_get(dev
, pid
, ep
);
813 uep
->pipeline
= enabled
;
816 void usb_ep_set_halted(USBDevice
*dev
, int pid
, int ep
, bool halted
)
818 struct USBEndpoint
*uep
= usb_ep_get(dev
, pid
, ep
);
819 uep
->halted
= halted
;
822 USBPacket
*usb_ep_find_packet_by_id(USBDevice
*dev
, int pid
, int ep
,
825 struct USBEndpoint
*uep
= usb_ep_get(dev
, pid
, ep
);
828 QTAILQ_FOREACH(p
, &uep
->queue
, queue
) {