1 /* $FreeBSD$ */ 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 <dev/usb/usb_mfunc.h> 30 #include <dev/usb/usb_error.h> 31 #include <dev/usb/usb.h> 32 #include <dev/usb/usb_ioctl.h> 33 #include <dev/usb/usbhid.h> 34 35 #define USB_DEBUG_VAR usb2_debug 36 37 #include <dev/usb/usb_core.h> 38 #include <dev/usb/usb_busdma.h> 39 #include <dev/usb/usb_request.h> 40 #include <dev/usb/usb_process.h> 41 #include <dev/usb/usb_transfer.h> 42 #include <dev/usb/usb_debug.h> 43 #include <dev/usb/usb_device.h> 44 #include <dev/usb/usb_util.h> 45 #include <dev/usb/usb_dynamic.h> 46 47 #include <dev/usb/usb_controller.h> 48 #include <dev/usb/usb_bus.h> 49 #include <sys/ctype.h> 50 51 #if USB_DEBUG 52 static int usb2_pr_poll_delay = USB_PORT_RESET_DELAY; 53 static int usb2_pr_recovery_delay = USB_PORT_RESET_RECOVERY; 54 static int usb2_ss_delay = 0; 55 56 SYSCTL_INT(_hw_usb2, OID_AUTO, pr_poll_delay, CTLFLAG_RW, 57 &usb2_pr_poll_delay, 0, "USB port reset poll delay in ms"); 58 SYSCTL_INT(_hw_usb2, OID_AUTO, pr_recovery_delay, CTLFLAG_RW, 59 &usb2_pr_recovery_delay, 0, "USB port reset recovery delay in ms"); 60 SYSCTL_INT(_hw_usb2, OID_AUTO, ss_delay, CTLFLAG_RW, 61 &usb2_ss_delay, 0, "USB status stage delay in ms"); 62 #endif 63 64 /*------------------------------------------------------------------------* 65 * usb2_do_request_callback 66 * 67 * This function is the USB callback for generic USB Host control 68 * transfers. 69 *------------------------------------------------------------------------*/ 70 void 71 usb2_do_request_callback(struct usb2_xfer *xfer) 72 { 73 ; /* workaround for a bug in "indent" */ 74 75 DPRINTF("st=%u\n", USB_GET_STATE(xfer)); 76 77 switch (USB_GET_STATE(xfer)) { 78 case USB_ST_SETUP: 79 usb2_start_hardware(xfer); 80 break; 81 default: 82 usb2_cv_signal(xfer->xroot->udev->default_cv); 83 break; 84 } 85 } 86 87 /*------------------------------------------------------------------------* 88 * usb2_do_clear_stall_callback 89 * 90 * This function is the USB callback for generic clear stall requests. 91 *------------------------------------------------------------------------*/ 92 void 93 usb2_do_clear_stall_callback(struct usb2_xfer *xfer) 94 { 95 struct usb2_device_request req; 96 struct usb2_device *udev; 97 struct usb2_pipe *pipe; 98 struct usb2_pipe *pipe_end; 99 struct usb2_pipe *pipe_first; 100 uint8_t to = USB_EP_MAX; 101 102 udev = xfer->xroot->udev; 103 104 USB_BUS_LOCK(udev->bus); 105 106 /* round robin pipe clear stall */ 107 108 pipe = udev->pipe_curr; 109 pipe_end = udev->pipes + USB_EP_MAX; 110 pipe_first = udev->pipes; 111 if (pipe == NULL) { 112 pipe = pipe_first; 113 } 114 switch (USB_GET_STATE(xfer)) { 115 case USB_ST_TRANSFERRED: 116 if (pipe->edesc && 117 pipe->is_stalled) { 118 pipe->toggle_next = 0; 119 pipe->is_stalled = 0; 120 /* start up the current or next transfer, if any */ 121 usb2_command_wrapper(&pipe->pipe_q, 122 pipe->pipe_q.curr); 123 } 124 pipe++; 125 126 case USB_ST_SETUP: 127 tr_setup: 128 if (pipe == pipe_end) { 129 pipe = pipe_first; 130 } 131 if (pipe->edesc && 132 pipe->is_stalled) { 133 134 /* setup a clear-stall packet */ 135 136 req.bmRequestType = UT_WRITE_ENDPOINT; 137 req.bRequest = UR_CLEAR_FEATURE; 138 USETW(req.wValue, UF_ENDPOINT_HALT); 139 req.wIndex[0] = pipe->edesc->bEndpointAddress; 140 req.wIndex[1] = 0; 141 USETW(req.wLength, 0); 142 143 /* copy in the transfer */ 144 145 usb2_copy_in(xfer->frbuffers, 0, &req, sizeof(req)); 146 147 /* set length */ 148 xfer->frlengths[0] = sizeof(req); 149 xfer->nframes = 1; 150 USB_BUS_UNLOCK(udev->bus); 151 152 usb2_start_hardware(xfer); 153 154 USB_BUS_LOCK(udev->bus); 155 break; 156 } 157 pipe++; 158 if (--to) 159 goto tr_setup; 160 break; 161 162 default: 163 if (xfer->error == USB_ERR_CANCELLED) { 164 break; 165 } 166 goto tr_setup; 167 } 168 169 /* store current pipe */ 170 udev->pipe_curr = pipe; 171 USB_BUS_UNLOCK(udev->bus); 172 } 173 174 /*------------------------------------------------------------------------* 175 * usb2_do_request_flags and usb2_do_request 176 * 177 * Description of arguments passed to these functions: 178 * 179 * "udev" - this is the "usb2_device" structure pointer on which the 180 * request should be performed. It is possible to call this function 181 * in both Host Side mode and Device Side mode. 182 * 183 * "mtx" - if this argument is non-NULL the mutex pointed to by it 184 * will get dropped and picked up during the execution of this 185 * function, hence this function sometimes needs to sleep. If this 186 * argument is NULL it has no effect. 187 * 188 * "req" - this argument must always be non-NULL and points to an 189 * 8-byte structure holding the USB request to be done. The USB 190 * request structure has a bit telling the direction of the USB 191 * request, if it is a read or a write. 192 * 193 * "data" - if the "wLength" part of the structure pointed to by "req" 194 * is non-zero this argument must point to a valid kernel buffer which 195 * can hold at least "wLength" bytes. If "wLength" is zero "data" can 196 * be NULL. 197 * 198 * "flags" - here is a list of valid flags: 199 * 200 * o USB_SHORT_XFER_OK: allows the data transfer to be shorter than 201 * specified 202 * 203 * o USB_DELAY_STATUS_STAGE: allows the status stage to be performed 204 * at a later point in time. This is tunable by the "hw.usb.ss_delay" 205 * sysctl. This flag is mostly useful for debugging. 206 * 207 * o USB_USER_DATA_PTR: treat the "data" pointer like a userland 208 * pointer. 209 * 210 * "actlen" - if non-NULL the actual transfer length will be stored in 211 * the 16-bit unsigned integer pointed to by "actlen". This 212 * information is mostly useful when the "USB_SHORT_XFER_OK" flag is 213 * used. 214 * 215 * "timeout" - gives the timeout for the control transfer in 216 * milliseconds. A "timeout" value less than 50 milliseconds is 217 * treated like a 50 millisecond timeout. A "timeout" value greater 218 * than 30 seconds is treated like a 30 second timeout. This USB stack 219 * does not allow control requests without a timeout. 220 * 221 * NOTE: This function is thread safe. All calls to 222 * "usb2_do_request_flags" will be serialised by the use of an 223 * internal "sx_lock". 224 * 225 * Returns: 226 * 0: Success 227 * Else: Failure 228 *------------------------------------------------------------------------*/ 229 usb2_error_t 230 usb2_do_request_flags(struct usb2_device *udev, struct mtx *mtx, 231 struct usb2_device_request *req, void *data, uint16_t flags, 232 uint16_t *actlen, usb2_timeout_t timeout) 233 { 234 struct usb2_xfer *xfer; 235 const void *desc; 236 int err = 0; 237 usb2_ticks_t start_ticks; 238 usb2_ticks_t delta_ticks; 239 usb2_ticks_t max_ticks; 240 uint16_t length; 241 uint16_t temp; 242 243 if (timeout < 50) { 244 /* timeout is too small */ 245 timeout = 50; 246 } 247 if (timeout > 30000) { 248 /* timeout is too big */ 249 timeout = 30000; 250 } 251 length = UGETW(req->wLength); 252 253 DPRINTFN(5, "udev=%p bmRequestType=0x%02x bRequest=0x%02x " 254 "wValue=0x%02x%02x wIndex=0x%02x%02x wLength=0x%02x%02x\n", 255 udev, req->bmRequestType, req->bRequest, 256 req->wValue[1], req->wValue[0], 257 req->wIndex[1], req->wIndex[0], 258 req->wLength[1], req->wLength[0]); 259 260 /* 261 * Set "actlen" to a known value in case the caller does not 262 * check the return value: 263 */ 264 if (actlen) { 265 *actlen = 0; 266 } 267 #if (USB_HAVE_USER_IO == 0) 268 if (flags & USB_USER_DATA_PTR) 269 return (USB_ERR_INVAL); 270 #endif 271 if (udev->flags.usb2_mode == USB_MODE_DEVICE) { 272 DPRINTF("USB device mode\n"); 273 (usb2_temp_get_desc_p) (udev, req, &desc, &temp); 274 if (length > temp) { 275 if (!(flags & USB_SHORT_XFER_OK)) { 276 return (USB_ERR_SHORT_XFER); 277 } 278 length = temp; 279 } 280 if (actlen) { 281 *actlen = length; 282 } 283 if (length > 0) { 284 #if USB_HAVE_USER_IO 285 if (flags & USB_USER_DATA_PTR) { 286 if (copyout(desc, data, length)) { 287 return (USB_ERR_INVAL); 288 } 289 } else 290 #endif 291 bcopy(desc, data, length); 292 } 293 return (0); /* success */ 294 } 295 if (mtx) { 296 mtx_unlock(mtx); 297 if (mtx != &Giant) { 298 mtx_assert(mtx, MA_NOTOWNED); 299 } 300 } 301 /* 302 * Grab the default sx-lock so that serialisation 303 * is achieved when multiple threads are involved: 304 */ 305 306 sx_xlock(udev->default_sx); 307 308 /* 309 * Setup a new USB transfer or use the existing one, if any: 310 */ 311 usb2_default_transfer_setup(udev); 312 313 xfer = udev->default_xfer[0]; 314 if (xfer == NULL) { 315 /* most likely out of memory */ 316 err = USB_ERR_NOMEM; 317 goto done; 318 } 319 USB_XFER_LOCK(xfer); 320 321 if (flags & USB_DELAY_STATUS_STAGE) { 322 xfer->flags.manual_status = 1; 323 } else { 324 xfer->flags.manual_status = 0; 325 } 326 327 xfer->timeout = timeout; 328 329 start_ticks = ticks; 330 331 max_ticks = USB_MS_TO_TICKS(timeout); 332 333 usb2_copy_in(xfer->frbuffers, 0, req, sizeof(*req)); 334 335 xfer->frlengths[0] = sizeof(*req); 336 xfer->nframes = 2; 337 338 while (1) { 339 temp = length; 340 if (temp > xfer->max_data_length) { 341 temp = xfer->max_data_length; 342 } 343 xfer->frlengths[1] = temp; 344 345 if (temp > 0) { 346 if (!(req->bmRequestType & UT_READ)) { 347 #if USB_HAVE_USER_IO 348 if (flags & USB_USER_DATA_PTR) { 349 USB_XFER_UNLOCK(xfer); 350 err = usb2_copy_in_user(xfer->frbuffers + 1, 351 0, data, temp); 352 USB_XFER_LOCK(xfer); 353 if (err) { 354 err = USB_ERR_INVAL; 355 break; 356 } 357 } else 358 #endif 359 usb2_copy_in(xfer->frbuffers + 1, 360 0, data, temp); 361 } 362 xfer->nframes = 2; 363 } else { 364 if (xfer->frlengths[0] == 0) { 365 if (xfer->flags.manual_status) { 366 #if USB_DEBUG 367 int temp; 368 369 temp = usb2_ss_delay; 370 if (temp > 5000) { 371 temp = 5000; 372 } 373 if (temp > 0) { 374 usb2_pause_mtx( 375 xfer->xroot->xfer_mtx, 376 USB_MS_TO_TICKS(temp)); 377 } 378 #endif 379 xfer->flags.manual_status = 0; 380 } else { 381 break; 382 } 383 } 384 xfer->nframes = 1; 385 } 386 387 usb2_transfer_start(xfer); 388 389 while (usb2_transfer_pending(xfer)) { 390 usb2_cv_wait(udev->default_cv, 391 xfer->xroot->xfer_mtx); 392 } 393 394 err = xfer->error; 395 396 if (err) { 397 break; 398 } 399 /* subtract length of SETUP packet, if any */ 400 401 if (xfer->aframes > 0) { 402 xfer->actlen -= xfer->frlengths[0]; 403 } else { 404 xfer->actlen = 0; 405 } 406 407 /* check for short packet */ 408 409 if (temp > xfer->actlen) { 410 temp = xfer->actlen; 411 if (!(flags & USB_SHORT_XFER_OK)) { 412 err = USB_ERR_SHORT_XFER; 413 } 414 length = temp; 415 } 416 if (temp > 0) { 417 if (req->bmRequestType & UT_READ) { 418 #if USB_HAVE_USER_IO 419 if (flags & USB_USER_DATA_PTR) { 420 USB_XFER_UNLOCK(xfer); 421 err = usb2_copy_out_user(xfer->frbuffers + 1, 422 0, data, temp); 423 USB_XFER_LOCK(xfer); 424 if (err) { 425 err = USB_ERR_INVAL; 426 break; 427 } 428 } else 429 #endif 430 usb2_copy_out(xfer->frbuffers + 1, 431 0, data, temp); 432 } 433 } 434 /* 435 * Clear "frlengths[0]" so that we don't send the setup 436 * packet again: 437 */ 438 xfer->frlengths[0] = 0; 439 440 /* update length and data pointer */ 441 length -= temp; 442 data = USB_ADD_BYTES(data, temp); 443 444 if (actlen) { 445 (*actlen) += temp; 446 } 447 /* check for timeout */ 448 449 delta_ticks = ticks - start_ticks; 450 if (delta_ticks > max_ticks) { 451 if (!err) { 452 err = USB_ERR_TIMEOUT; 453 } 454 } 455 if (err) { 456 break; 457 } 458 } 459 460 if (err) { 461 /* 462 * Make sure that the control endpoint is no longer 463 * blocked in case of a non-transfer related error: 464 */ 465 usb2_transfer_stop(xfer); 466 } 467 USB_XFER_UNLOCK(xfer); 468 469 done: 470 sx_xunlock(udev->default_sx); 471 472 if (mtx) { 473 mtx_lock(mtx); 474 } 475 return ((usb2_error_t)err); 476 } 477 478 /*------------------------------------------------------------------------* 479 * usb2_do_request_proc - factored out code 480 * 481 * This function is factored out code. It does basically the same like 482 * usb2_do_request_flags, except it will check the status of the 483 * passed process argument before doing the USB request. If the 484 * process is draining the USB_ERR_IOERROR code will be returned. It 485 * is assumed that the mutex associated with the process is locked 486 * when calling this function. 487 *------------------------------------------------------------------------*/ 488 usb2_error_t 489 usb2_do_request_proc(struct usb2_device *udev, struct usb2_process *pproc, 490 struct usb2_device_request *req, void *data, uint16_t flags, 491 uint16_t *actlen, usb2_timeout_t timeout) 492 { 493 usb2_error_t err; 494 uint16_t len; 495 496 /* get request data length */ 497 len = UGETW(req->wLength); 498 499 /* check if the device is being detached */ 500 if (usb2_proc_is_gone(pproc)) { 501 err = USB_ERR_IOERROR; 502 goto done; 503 } 504 505 /* forward the USB request */ 506 err = usb2_do_request_flags(udev, pproc->up_mtx, 507 req, data, flags, actlen, timeout); 508 509 done: 510 /* on failure we zero the data */ 511 /* on short packet we zero the unused data */ 512 if ((len != 0) && (req->bmRequestType & UE_DIR_IN)) { 513 if (err) 514 memset(data, 0, len); 515 else if (actlen && *actlen != len) 516 memset(((uint8_t *)data) + *actlen, 0, len - *actlen); 517 } 518 return (err); 519 } 520 521 /*------------------------------------------------------------------------* 522 * usb2_req_reset_port 523 * 524 * This function will instruct an USB HUB to perform a reset sequence 525 * on the specified port number. 526 * 527 * Returns: 528 * 0: Success. The USB device should now be at address zero. 529 * Else: Failure. No USB device is present and the USB port should be 530 * disabled. 531 *------------------------------------------------------------------------*/ 532 usb2_error_t 533 usb2_req_reset_port(struct usb2_device *udev, struct mtx *mtx, uint8_t port) 534 { 535 struct usb2_port_status ps; 536 usb2_error_t err; 537 uint16_t n; 538 539 #if USB_DEBUG 540 uint16_t pr_poll_delay; 541 uint16_t pr_recovery_delay; 542 543 #endif 544 err = usb2_req_set_port_feature(udev, mtx, port, UHF_PORT_RESET); 545 if (err) { 546 goto done; 547 } 548 #if USB_DEBUG 549 /* range check input parameters */ 550 pr_poll_delay = usb2_pr_poll_delay; 551 if (pr_poll_delay < 1) { 552 pr_poll_delay = 1; 553 } else if (pr_poll_delay > 1000) { 554 pr_poll_delay = 1000; 555 } 556 pr_recovery_delay = usb2_pr_recovery_delay; 557 if (pr_recovery_delay > 1000) { 558 pr_recovery_delay = 1000; 559 } 560 #endif 561 n = 0; 562 while (1) { 563 #if USB_DEBUG 564 /* wait for the device to recover from reset */ 565 usb2_pause_mtx(mtx, USB_MS_TO_TICKS(pr_poll_delay)); 566 n += pr_poll_delay; 567 #else 568 /* wait for the device to recover from reset */ 569 usb2_pause_mtx(mtx, USB_MS_TO_TICKS(USB_PORT_RESET_DELAY)); 570 n += USB_PORT_RESET_DELAY; 571 #endif 572 err = usb2_req_get_port_status(udev, mtx, &ps, port); 573 if (err) { 574 goto done; 575 } 576 /* if the device disappeared, just give up */ 577 if (!(UGETW(ps.wPortStatus) & UPS_CURRENT_CONNECT_STATUS)) { 578 goto done; 579 } 580 /* check if reset is complete */ 581 if (UGETW(ps.wPortChange) & UPS_C_PORT_RESET) { 582 break; 583 } 584 /* check for timeout */ 585 if (n > 1000) { 586 n = 0; 587 break; 588 } 589 } 590 591 /* clear port reset first */ 592 err = usb2_req_clear_port_feature( 593 udev, mtx, port, UHF_C_PORT_RESET); 594 if (err) { 595 goto done; 596 } 597 /* check for timeout */ 598 if (n == 0) { 599 err = USB_ERR_TIMEOUT; 600 goto done; 601 } 602 #if USB_DEBUG 603 /* wait for the device to recover from reset */ 604 usb2_pause_mtx(mtx, USB_MS_TO_TICKS(pr_recovery_delay)); 605 #else 606 /* wait for the device to recover from reset */ 607 usb2_pause_mtx(mtx, USB_MS_TO_TICKS(USB_PORT_RESET_RECOVERY)); 608 #endif 609 610 done: 611 DPRINTFN(2, "port %d reset returning error=%s\n", 612 port, usb2_errstr(err)); 613 return (err); 614 } 615 616 /*------------------------------------------------------------------------* 617 * usb2_req_get_desc 618 * 619 * This function can be used to retrieve USB descriptors. It contains 620 * some additional logic like zeroing of missing descriptor bytes and 621 * retrying an USB descriptor in case of failure. The "min_len" 622 * argument specifies the minimum descriptor length. The "max_len" 623 * argument specifies the maximum descriptor length. If the real 624 * descriptor length is less than the minimum length the missing 625 * byte(s) will be zeroed. The type field, the second byte of the USB 626 * descriptor, will get forced to the correct type. If the "actlen" 627 * pointer is non-NULL, the actual length of the transfer will get 628 * stored in the 16-bit unsigned integer which it is pointing to. The 629 * first byte of the descriptor will not get updated. If the "actlen" 630 * pointer is NULL the first byte of the descriptor will get updated 631 * to reflect the actual length instead. If "min_len" is not equal to 632 * "max_len" then this function will try to retrive the beginning of 633 * the descriptor and base the maximum length on the first byte of the 634 * descriptor. 635 * 636 * Returns: 637 * 0: Success 638 * Else: Failure 639 *------------------------------------------------------------------------*/ 640 usb2_error_t 641 usb2_req_get_desc(struct usb2_device *udev, 642 struct mtx *mtx, uint16_t *actlen, void *desc, 643 uint16_t min_len, uint16_t max_len, 644 uint16_t id, uint8_t type, uint8_t index, 645 uint8_t retries) 646 { 647 struct usb2_device_request req; 648 uint8_t *buf; 649 usb2_error_t err; 650 651 DPRINTFN(4, "id=%d, type=%d, index=%d, max_len=%d\n", 652 id, type, index, max_len); 653 654 req.bmRequestType = UT_READ_DEVICE; 655 req.bRequest = UR_GET_DESCRIPTOR; 656 USETW2(req.wValue, type, index); 657 USETW(req.wIndex, id); 658 659 while (1) { 660 661 if ((min_len < 2) || (max_len < 2)) { 662 err = USB_ERR_INVAL; 663 goto done; 664 } 665 USETW(req.wLength, min_len); 666 667 err = usb2_do_request_flags(udev, mtx, &req, 668 desc, 0, NULL, 1000); 669 670 if (err) { 671 if (!retries) { 672 goto done; 673 } 674 retries--; 675 676 usb2_pause_mtx(mtx, hz / 5); 677 678 continue; 679 } 680 buf = desc; 681 682 if (min_len == max_len) { 683 684 /* enforce correct length */ 685 if ((buf[0] > min_len) && (actlen == NULL)) 686 buf[0] = min_len; 687 688 /* enforce correct type */ 689 buf[1] = type; 690 691 goto done; 692 } 693 /* range check */ 694 695 if (max_len > buf[0]) { 696 max_len = buf[0]; 697 } 698 /* zero minimum data */ 699 700 while (min_len > max_len) { 701 min_len--; 702 buf[min_len] = 0; 703 } 704 705 /* set new minimum length */ 706 707 min_len = max_len; 708 } 709 done: 710 if (actlen != NULL) { 711 if (err) 712 *actlen = 0; 713 else 714 *actlen = min_len; 715 } 716 return (err); 717 } 718 719 /*------------------------------------------------------------------------* 720 * usb2_req_get_string_any 721 * 722 * This function will return the string given by "string_index" 723 * using the first language ID. The maximum length "len" includes 724 * the terminating zero. The "len" argument should be twice as 725 * big pluss 2 bytes, compared with the actual maximum string length ! 726 * 727 * Returns: 728 * 0: Success 729 * Else: Failure 730 *------------------------------------------------------------------------*/ 731 usb2_error_t 732 usb2_req_get_string_any(struct usb2_device *udev, struct mtx *mtx, char *buf, 733 uint16_t len, uint8_t string_index) 734 { 735 char *s; 736 uint8_t *temp; 737 uint16_t i; 738 uint16_t n; 739 uint16_t c; 740 uint8_t swap; 741 usb2_error_t err; 742 743 if (len == 0) { 744 /* should not happen */ 745 return (USB_ERR_NORMAL_COMPLETION); 746 } 747 if (string_index == 0) { 748 /* this is the language table */ 749 buf[0] = 0; 750 return (USB_ERR_INVAL); 751 } 752 if (udev->flags.no_strings) { 753 buf[0] = 0; 754 return (USB_ERR_STALLED); 755 } 756 err = usb2_req_get_string_desc 757 (udev, mtx, buf, len, udev->langid, string_index); 758 if (err) { 759 buf[0] = 0; 760 return (err); 761 } 762 temp = (uint8_t *)buf; 763 764 if (temp[0] < 2) { 765 /* string length is too short */ 766 buf[0] = 0; 767 return (USB_ERR_INVAL); 768 } 769 /* reserve one byte for terminating zero */ 770 len--; 771 772 /* find maximum length */ 773 s = buf; 774 n = (temp[0] / 2) - 1; 775 if (n > len) { 776 n = len; 777 } 778 /* skip descriptor header */ 779 temp += 2; 780 781 /* reset swap state */ 782 swap = 3; 783 784 /* convert and filter */ 785 for (i = 0; (i != n); i++) { 786 c = UGETW(temp + (2 * i)); 787 788 /* convert from Unicode, handle buggy strings */ 789 if (((c & 0xff00) == 0) && (swap & 1)) { 790 /* Little Endian, default */ 791 *s = c; 792 swap = 1; 793 } else if (((c & 0x00ff) == 0) && (swap & 2)) { 794 /* Big Endian */ 795 *s = c >> 8; 796 swap = 2; 797 } else { 798 /* silently skip bad character */ 799 continue; 800 } 801 802 /* 803 * Filter by default - we don't allow greater and less than 804 * signs because they might confuse the dmesg printouts! 805 */ 806 if ((*s == '<') || (*s == '>') || (!isprint(*s))) { 807 /* silently skip bad character */ 808 continue; 809 } 810 s++; 811 } 812 *s = 0; /* zero terminate resulting string */ 813 return (USB_ERR_NORMAL_COMPLETION); 814 } 815 816 /*------------------------------------------------------------------------* 817 * usb2_req_get_string_desc 818 * 819 * If you don't know the language ID, consider using 820 * "usb2_req_get_string_any()". 821 * 822 * Returns: 823 * 0: Success 824 * Else: Failure 825 *------------------------------------------------------------------------*/ 826 usb2_error_t 827 usb2_req_get_string_desc(struct usb2_device *udev, struct mtx *mtx, void *sdesc, 828 uint16_t max_len, uint16_t lang_id, 829 uint8_t string_index) 830 { 831 return (usb2_req_get_desc(udev, mtx, NULL, sdesc, 2, max_len, lang_id, 832 UDESC_STRING, string_index, 0)); 833 } 834 835 /*------------------------------------------------------------------------* 836 * usb2_req_get_config_desc 837 * 838 * Returns: 839 * 0: Success 840 * Else: Failure 841 *------------------------------------------------------------------------*/ 842 usb2_error_t 843 usb2_req_get_config_desc(struct usb2_device *udev, struct mtx *mtx, 844 struct usb2_config_descriptor *d, uint8_t conf_index) 845 { 846 usb2_error_t err; 847 848 DPRINTFN(4, "confidx=%d\n", conf_index); 849 850 err = usb2_req_get_desc(udev, mtx, NULL, d, sizeof(*d), 851 sizeof(*d), 0, UDESC_CONFIG, conf_index, 0); 852 if (err) { 853 goto done; 854 } 855 /* Extra sanity checking */ 856 if (UGETW(d->wTotalLength) < sizeof(*d)) { 857 err = USB_ERR_INVAL; 858 } 859 done: 860 return (err); 861 } 862 863 /*------------------------------------------------------------------------* 864 * usb2_req_get_config_desc_full 865 * 866 * This function gets the complete USB configuration descriptor and 867 * ensures that "wTotalLength" is correct. 868 * 869 * Returns: 870 * 0: Success 871 * Else: Failure 872 *------------------------------------------------------------------------*/ 873 usb2_error_t 874 usb2_req_get_config_desc_full(struct usb2_device *udev, struct mtx *mtx, 875 struct usb2_config_descriptor **ppcd, struct malloc_type *mtype, 876 uint8_t index) 877 { 878 struct usb2_config_descriptor cd; 879 struct usb2_config_descriptor *cdesc; 880 uint16_t len; 881 usb2_error_t err; 882 883 DPRINTFN(4, "index=%d\n", index); 884 885 *ppcd = NULL; 886 887 err = usb2_req_get_config_desc(udev, mtx, &cd, index); 888 if (err) { 889 return (err); 890 } 891 /* get full descriptor */ 892 len = UGETW(cd.wTotalLength); 893 if (len < sizeof(*cdesc)) { 894 /* corrupt descriptor */ 895 return (USB_ERR_INVAL); 896 } 897 cdesc = malloc(len, mtype, M_WAITOK); 898 if (cdesc == NULL) { 899 return (USB_ERR_NOMEM); 900 } 901 err = usb2_req_get_desc(udev, mtx, NULL, cdesc, len, len, 0, 902 UDESC_CONFIG, index, 3); 903 if (err) { 904 free(cdesc, mtype); 905 return (err); 906 } 907 /* make sure that the device is not fooling us: */ 908 USETW(cdesc->wTotalLength, len); 909 910 *ppcd = cdesc; 911 912 return (0); /* success */ 913 } 914 915 /*------------------------------------------------------------------------* 916 * usb2_req_get_device_desc 917 * 918 * Returns: 919 * 0: Success 920 * Else: Failure 921 *------------------------------------------------------------------------*/ 922 usb2_error_t 923 usb2_req_get_device_desc(struct usb2_device *udev, struct mtx *mtx, 924 struct usb2_device_descriptor *d) 925 { 926 DPRINTFN(4, "\n"); 927 return (usb2_req_get_desc(udev, mtx, NULL, d, sizeof(*d), 928 sizeof(*d), 0, UDESC_DEVICE, 0, 3)); 929 } 930 931 /*------------------------------------------------------------------------* 932 * usb2_req_get_alt_interface_no 933 * 934 * Returns: 935 * 0: Success 936 * Else: Failure 937 *------------------------------------------------------------------------*/ 938 usb2_error_t 939 usb2_req_get_alt_interface_no(struct usb2_device *udev, struct mtx *mtx, 940 uint8_t *alt_iface_no, uint8_t iface_index) 941 { 942 struct usb2_interface *iface = usb2_get_iface(udev, iface_index); 943 struct usb2_device_request req; 944 945 if ((iface == NULL) || (iface->idesc == NULL)) { 946 return (USB_ERR_INVAL); 947 } 948 req.bmRequestType = UT_READ_INTERFACE; 949 req.bRequest = UR_GET_INTERFACE; 950 USETW(req.wValue, 0); 951 req.wIndex[0] = iface->idesc->bInterfaceNumber; 952 req.wIndex[1] = 0; 953 USETW(req.wLength, 1); 954 return (usb2_do_request(udev, mtx, &req, alt_iface_no)); 955 } 956 957 /*------------------------------------------------------------------------* 958 * usb2_req_set_alt_interface_no 959 * 960 * Returns: 961 * 0: Success 962 * Else: Failure 963 *------------------------------------------------------------------------*/ 964 usb2_error_t 965 usb2_req_set_alt_interface_no(struct usb2_device *udev, struct mtx *mtx, 966 uint8_t iface_index, uint8_t alt_no) 967 { 968 struct usb2_interface *iface = usb2_get_iface(udev, iface_index); 969 struct usb2_device_request req; 970 971 if ((iface == NULL) || (iface->idesc == NULL)) { 972 return (USB_ERR_INVAL); 973 } 974 req.bmRequestType = UT_WRITE_INTERFACE; 975 req.bRequest = UR_SET_INTERFACE; 976 req.wValue[0] = alt_no; 977 req.wValue[1] = 0; 978 req.wIndex[0] = iface->idesc->bInterfaceNumber; 979 req.wIndex[1] = 0; 980 USETW(req.wLength, 0); 981 return (usb2_do_request(udev, mtx, &req, 0)); 982 } 983 984 /*------------------------------------------------------------------------* 985 * usb2_req_get_device_status 986 * 987 * Returns: 988 * 0: Success 989 * Else: Failure 990 *------------------------------------------------------------------------*/ 991 usb2_error_t 992 usb2_req_get_device_status(struct usb2_device *udev, struct mtx *mtx, 993 struct usb2_status *st) 994 { 995 struct usb2_device_request req; 996 997 req.bmRequestType = UT_READ_DEVICE; 998 req.bRequest = UR_GET_STATUS; 999 USETW(req.wValue, 0); 1000 USETW(req.wIndex, 0); 1001 USETW(req.wLength, sizeof(*st)); 1002 return (usb2_do_request(udev, mtx, &req, st)); 1003 } 1004 1005 /*------------------------------------------------------------------------* 1006 * usb2_req_get_hub_descriptor 1007 * 1008 * Returns: 1009 * 0: Success 1010 * Else: Failure 1011 *------------------------------------------------------------------------*/ 1012 usb2_error_t 1013 usb2_req_get_hub_descriptor(struct usb2_device *udev, struct mtx *mtx, 1014 struct usb2_hub_descriptor *hd, uint8_t nports) 1015 { 1016 struct usb2_device_request req; 1017 uint16_t len = (nports + 7 + (8 * 8)) / 8; 1018 1019 req.bmRequestType = UT_READ_CLASS_DEVICE; 1020 req.bRequest = UR_GET_DESCRIPTOR; 1021 USETW2(req.wValue, UDESC_HUB, 0); 1022 USETW(req.wIndex, 0); 1023 USETW(req.wLength, len); 1024 return (usb2_do_request(udev, mtx, &req, hd)); 1025 } 1026 1027 /*------------------------------------------------------------------------* 1028 * usb2_req_get_hub_status 1029 * 1030 * Returns: 1031 * 0: Success 1032 * Else: Failure 1033 *------------------------------------------------------------------------*/ 1034 usb2_error_t 1035 usb2_req_get_hub_status(struct usb2_device *udev, struct mtx *mtx, 1036 struct usb2_hub_status *st) 1037 { 1038 struct usb2_device_request req; 1039 1040 req.bmRequestType = UT_READ_CLASS_DEVICE; 1041 req.bRequest = UR_GET_STATUS; 1042 USETW(req.wValue, 0); 1043 USETW(req.wIndex, 0); 1044 USETW(req.wLength, sizeof(struct usb2_hub_status)); 1045 return (usb2_do_request(udev, mtx, &req, st)); 1046 } 1047 1048 /*------------------------------------------------------------------------* 1049 * usb2_req_set_address 1050 * 1051 * This function is used to set the address for an USB device. After 1052 * port reset the USB device will respond at address zero. 1053 * 1054 * Returns: 1055 * 0: Success 1056 * Else: Failure 1057 *------------------------------------------------------------------------*/ 1058 usb2_error_t 1059 usb2_req_set_address(struct usb2_device *udev, struct mtx *mtx, uint16_t addr) 1060 { 1061 struct usb2_device_request req; 1062 1063 DPRINTFN(6, "setting device address=%d\n", addr); 1064 1065 req.bmRequestType = UT_WRITE_DEVICE; 1066 req.bRequest = UR_SET_ADDRESS; 1067 USETW(req.wValue, addr); 1068 USETW(req.wIndex, 0); 1069 USETW(req.wLength, 0); 1070 1071 /* Setting the address should not take more than 1 second ! */ 1072 return (usb2_do_request_flags(udev, mtx, &req, NULL, 1073 USB_DELAY_STATUS_STAGE, NULL, 1000)); 1074 } 1075 1076 /*------------------------------------------------------------------------* 1077 * usb2_req_get_port_status 1078 * 1079 * Returns: 1080 * 0: Success 1081 * Else: Failure 1082 *------------------------------------------------------------------------*/ 1083 usb2_error_t 1084 usb2_req_get_port_status(struct usb2_device *udev, struct mtx *mtx, 1085 struct usb2_port_status *ps, uint8_t port) 1086 { 1087 struct usb2_device_request req; 1088 1089 req.bmRequestType = UT_READ_CLASS_OTHER; 1090 req.bRequest = UR_GET_STATUS; 1091 USETW(req.wValue, 0); 1092 req.wIndex[0] = port; 1093 req.wIndex[1] = 0; 1094 USETW(req.wLength, sizeof *ps); 1095 return (usb2_do_request(udev, mtx, &req, ps)); 1096 } 1097 1098 /*------------------------------------------------------------------------* 1099 * usb2_req_clear_hub_feature 1100 * 1101 * Returns: 1102 * 0: Success 1103 * Else: Failure 1104 *------------------------------------------------------------------------*/ 1105 usb2_error_t 1106 usb2_req_clear_hub_feature(struct usb2_device *udev, struct mtx *mtx, 1107 uint16_t sel) 1108 { 1109 struct usb2_device_request req; 1110 1111 req.bmRequestType = UT_WRITE_CLASS_DEVICE; 1112 req.bRequest = UR_CLEAR_FEATURE; 1113 USETW(req.wValue, sel); 1114 USETW(req.wIndex, 0); 1115 USETW(req.wLength, 0); 1116 return (usb2_do_request(udev, mtx, &req, 0)); 1117 } 1118 1119 /*------------------------------------------------------------------------* 1120 * usb2_req_set_hub_feature 1121 * 1122 * Returns: 1123 * 0: Success 1124 * Else: Failure 1125 *------------------------------------------------------------------------*/ 1126 usb2_error_t 1127 usb2_req_set_hub_feature(struct usb2_device *udev, struct mtx *mtx, 1128 uint16_t sel) 1129 { 1130 struct usb2_device_request req; 1131 1132 req.bmRequestType = UT_WRITE_CLASS_DEVICE; 1133 req.bRequest = UR_SET_FEATURE; 1134 USETW(req.wValue, sel); 1135 USETW(req.wIndex, 0); 1136 USETW(req.wLength, 0); 1137 return (usb2_do_request(udev, mtx, &req, 0)); 1138 } 1139 1140 /*------------------------------------------------------------------------* 1141 * usb2_req_clear_port_feature 1142 * 1143 * Returns: 1144 * 0: Success 1145 * Else: Failure 1146 *------------------------------------------------------------------------*/ 1147 usb2_error_t 1148 usb2_req_clear_port_feature(struct usb2_device *udev, struct mtx *mtx, 1149 uint8_t port, uint16_t sel) 1150 { 1151 struct usb2_device_request req; 1152 1153 req.bmRequestType = UT_WRITE_CLASS_OTHER; 1154 req.bRequest = UR_CLEAR_FEATURE; 1155 USETW(req.wValue, sel); 1156 req.wIndex[0] = port; 1157 req.wIndex[1] = 0; 1158 USETW(req.wLength, 0); 1159 return (usb2_do_request(udev, mtx, &req, 0)); 1160 } 1161 1162 /*------------------------------------------------------------------------* 1163 * usb2_req_set_port_feature 1164 * 1165 * Returns: 1166 * 0: Success 1167 * Else: Failure 1168 *------------------------------------------------------------------------*/ 1169 usb2_error_t 1170 usb2_req_set_port_feature(struct usb2_device *udev, struct mtx *mtx, 1171 uint8_t port, uint16_t sel) 1172 { 1173 struct usb2_device_request req; 1174 1175 req.bmRequestType = UT_WRITE_CLASS_OTHER; 1176 req.bRequest = UR_SET_FEATURE; 1177 USETW(req.wValue, sel); 1178 req.wIndex[0] = port; 1179 req.wIndex[1] = 0; 1180 USETW(req.wLength, 0); 1181 return (usb2_do_request(udev, mtx, &req, 0)); 1182 } 1183 1184 /*------------------------------------------------------------------------* 1185 * usb2_req_set_protocol 1186 * 1187 * Returns: 1188 * 0: Success 1189 * Else: Failure 1190 *------------------------------------------------------------------------*/ 1191 usb2_error_t 1192 usb2_req_set_protocol(struct usb2_device *udev, struct mtx *mtx, 1193 uint8_t iface_index, uint16_t report) 1194 { 1195 struct usb2_interface *iface = usb2_get_iface(udev, iface_index); 1196 struct usb2_device_request req; 1197 1198 if ((iface == NULL) || (iface->idesc == NULL)) { 1199 return (USB_ERR_INVAL); 1200 } 1201 DPRINTFN(5, "iface=%p, report=%d, endpt=%d\n", 1202 iface, report, iface->idesc->bInterfaceNumber); 1203 1204 req.bmRequestType = UT_WRITE_CLASS_INTERFACE; 1205 req.bRequest = UR_SET_PROTOCOL; 1206 USETW(req.wValue, report); 1207 req.wIndex[0] = iface->idesc->bInterfaceNumber; 1208 req.wIndex[1] = 0; 1209 USETW(req.wLength, 0); 1210 return (usb2_do_request(udev, mtx, &req, 0)); 1211 } 1212 1213 /*------------------------------------------------------------------------* 1214 * usb2_req_set_report 1215 * 1216 * Returns: 1217 * 0: Success 1218 * Else: Failure 1219 *------------------------------------------------------------------------*/ 1220 usb2_error_t 1221 usb2_req_set_report(struct usb2_device *udev, struct mtx *mtx, void *data, uint16_t len, 1222 uint8_t iface_index, uint8_t type, uint8_t id) 1223 { 1224 struct usb2_interface *iface = usb2_get_iface(udev, iface_index); 1225 struct usb2_device_request req; 1226 1227 if ((iface == NULL) || (iface->idesc == NULL)) { 1228 return (USB_ERR_INVAL); 1229 } 1230 DPRINTFN(5, "len=%d\n", len); 1231 1232 req.bmRequestType = UT_WRITE_CLASS_INTERFACE; 1233 req.bRequest = UR_SET_REPORT; 1234 USETW2(req.wValue, type, id); 1235 req.wIndex[0] = iface->idesc->bInterfaceNumber; 1236 req.wIndex[1] = 0; 1237 USETW(req.wLength, len); 1238 return (usb2_do_request(udev, mtx, &req, data)); 1239 } 1240 1241 /*------------------------------------------------------------------------* 1242 * usb2_req_get_report 1243 * 1244 * Returns: 1245 * 0: Success 1246 * Else: Failure 1247 *------------------------------------------------------------------------*/ 1248 usb2_error_t 1249 usb2_req_get_report(struct usb2_device *udev, struct mtx *mtx, void *data, 1250 uint16_t len, uint8_t iface_index, uint8_t type, uint8_t id) 1251 { 1252 struct usb2_interface *iface = usb2_get_iface(udev, iface_index); 1253 struct usb2_device_request req; 1254 1255 if ((iface == NULL) || (iface->idesc == NULL) || (id == 0)) { 1256 return (USB_ERR_INVAL); 1257 } 1258 DPRINTFN(5, "len=%d\n", len); 1259 1260 req.bmRequestType = UT_READ_CLASS_INTERFACE; 1261 req.bRequest = UR_GET_REPORT; 1262 USETW2(req.wValue, type, id); 1263 req.wIndex[0] = iface->idesc->bInterfaceNumber; 1264 req.wIndex[1] = 0; 1265 USETW(req.wLength, len); 1266 return (usb2_do_request(udev, mtx, &req, data)); 1267 } 1268 1269 /*------------------------------------------------------------------------* 1270 * usb2_req_set_idle 1271 * 1272 * Returns: 1273 * 0: Success 1274 * Else: Failure 1275 *------------------------------------------------------------------------*/ 1276 usb2_error_t 1277 usb2_req_set_idle(struct usb2_device *udev, struct mtx *mtx, 1278 uint8_t iface_index, uint8_t duration, uint8_t id) 1279 { 1280 struct usb2_interface *iface = usb2_get_iface(udev, iface_index); 1281 struct usb2_device_request req; 1282 1283 if ((iface == NULL) || (iface->idesc == NULL)) { 1284 return (USB_ERR_INVAL); 1285 } 1286 DPRINTFN(5, "%d %d\n", duration, id); 1287 1288 req.bmRequestType = UT_WRITE_CLASS_INTERFACE; 1289 req.bRequest = UR_SET_IDLE; 1290 USETW2(req.wValue, duration, id); 1291 req.wIndex[0] = iface->idesc->bInterfaceNumber; 1292 req.wIndex[1] = 0; 1293 USETW(req.wLength, 0); 1294 return (usb2_do_request(udev, mtx, &req, 0)); 1295 } 1296 1297 /*------------------------------------------------------------------------* 1298 * usb2_req_get_report_descriptor 1299 * 1300 * Returns: 1301 * 0: Success 1302 * Else: Failure 1303 *------------------------------------------------------------------------*/ 1304 usb2_error_t 1305 usb2_req_get_report_descriptor(struct usb2_device *udev, struct mtx *mtx, 1306 void *d, uint16_t size, uint8_t iface_index) 1307 { 1308 struct usb2_interface *iface = usb2_get_iface(udev, iface_index); 1309 struct usb2_device_request req; 1310 1311 if ((iface == NULL) || (iface->idesc == NULL)) { 1312 return (USB_ERR_INVAL); 1313 } 1314 req.bmRequestType = UT_READ_INTERFACE; 1315 req.bRequest = UR_GET_DESCRIPTOR; 1316 USETW2(req.wValue, UDESC_REPORT, 0); /* report id should be 0 */ 1317 req.wIndex[0] = iface->idesc->bInterfaceNumber; 1318 req.wIndex[1] = 0; 1319 USETW(req.wLength, size); 1320 return (usb2_do_request(udev, mtx, &req, d)); 1321 } 1322 1323 /*------------------------------------------------------------------------* 1324 * usb2_req_set_config 1325 * 1326 * This function is used to select the current configuration number in 1327 * both USB device side mode and USB host side mode. When setting the 1328 * configuration the function of the interfaces can change. 1329 * 1330 * Returns: 1331 * 0: Success 1332 * Else: Failure 1333 *------------------------------------------------------------------------*/ 1334 usb2_error_t 1335 usb2_req_set_config(struct usb2_device *udev, struct mtx *mtx, uint8_t conf) 1336 { 1337 struct usb2_device_request req; 1338 1339 DPRINTF("setting config %d\n", conf); 1340 1341 /* do "set configuration" request */ 1342 1343 req.bmRequestType = UT_WRITE_DEVICE; 1344 req.bRequest = UR_SET_CONFIG; 1345 req.wValue[0] = conf; 1346 req.wValue[1] = 0; 1347 USETW(req.wIndex, 0); 1348 USETW(req.wLength, 0); 1349 return (usb2_do_request(udev, mtx, &req, 0)); 1350 } 1351 1352 /*------------------------------------------------------------------------* 1353 * usb2_req_get_config 1354 * 1355 * Returns: 1356 * 0: Success 1357 * Else: Failure 1358 *------------------------------------------------------------------------*/ 1359 usb2_error_t 1360 usb2_req_get_config(struct usb2_device *udev, struct mtx *mtx, uint8_t *pconf) 1361 { 1362 struct usb2_device_request req; 1363 1364 req.bmRequestType = UT_READ_DEVICE; 1365 req.bRequest = UR_GET_CONFIG; 1366 USETW(req.wValue, 0); 1367 USETW(req.wIndex, 0); 1368 USETW(req.wLength, 1); 1369 return (usb2_do_request(udev, mtx, &req, pconf)); 1370 } 1371 1372 /*------------------------------------------------------------------------* 1373 * usb2_req_re_enumerate 1374 * 1375 * NOTE: After this function returns the hardware is in the 1376 * unconfigured state! The application is responsible for setting a 1377 * new configuration. 1378 * 1379 * Returns: 1380 * 0: Success 1381 * Else: Failure 1382 *------------------------------------------------------------------------*/ 1383 usb2_error_t 1384 usb2_req_re_enumerate(struct usb2_device *udev, struct mtx *mtx) 1385 { 1386 struct usb2_device *parent_hub; 1387 usb2_error_t err; 1388 uint8_t old_addr; 1389 uint8_t do_retry = 1; 1390 1391 if (udev->flags.usb2_mode != USB_MODE_HOST) { 1392 return (USB_ERR_INVAL); 1393 } 1394 old_addr = udev->address; 1395 parent_hub = udev->parent_hub; 1396 if (parent_hub == NULL) { 1397 return (USB_ERR_INVAL); 1398 } 1399 retry: 1400 err = usb2_req_reset_port(parent_hub, mtx, udev->port_no); 1401 if (err) { 1402 DPRINTFN(0, "addr=%d, port reset failed\n", old_addr); 1403 goto done; 1404 } 1405 /* 1406 * After that the port has been reset our device should be at 1407 * address zero: 1408 */ 1409 udev->address = USB_START_ADDR; 1410 1411 /* reset "bMaxPacketSize" */ 1412 udev->ddesc.bMaxPacketSize = USB_MAX_IPACKET; 1413 1414 /* 1415 * Restore device address: 1416 */ 1417 err = usb2_req_set_address(udev, mtx, old_addr); 1418 if (err) { 1419 /* XXX ignore any errors! */ 1420 DPRINTFN(0, "addr=%d, set address failed! (ignored)\n", 1421 old_addr); 1422 } 1423 /* restore device address */ 1424 udev->address = old_addr; 1425 1426 /* allow device time to set new address */ 1427 usb2_pause_mtx(mtx, USB_MS_TO_TICKS(USB_SET_ADDRESS_SETTLE)); 1428 1429 /* get the device descriptor */ 1430 err = usb2_req_get_desc(udev, mtx, NULL, &udev->ddesc, 1431 USB_MAX_IPACKET, USB_MAX_IPACKET, 0, UDESC_DEVICE, 0, 0); 1432 if (err) { 1433 DPRINTFN(0, "getting device descriptor " 1434 "at addr %d failed!\n", udev->address); 1435 goto done; 1436 } 1437 /* get the full device descriptor */ 1438 err = usb2_req_get_device_desc(udev, mtx, &udev->ddesc); 1439 if (err) { 1440 DPRINTFN(0, "addr=%d, getting device " 1441 "descriptor failed!\n", old_addr); 1442 goto done; 1443 } 1444 done: 1445 if (err && do_retry) { 1446 /* give the USB firmware some time to load */ 1447 usb2_pause_mtx(mtx, hz / 2); 1448 /* no more retries after this retry */ 1449 do_retry = 0; 1450 /* try again */ 1451 goto retry; 1452 } 1453 /* restore address */ 1454 udev->address = old_addr; 1455 return (err); 1456 } 1457 1458 /*------------------------------------------------------------------------* 1459 * usb2_req_clear_device_feature 1460 * 1461 * Returns: 1462 * 0: Success 1463 * Else: Failure 1464 *------------------------------------------------------------------------*/ 1465 usb2_error_t 1466 usb2_req_clear_device_feature(struct usb2_device *udev, struct mtx *mtx, 1467 uint16_t sel) 1468 { 1469 struct usb2_device_request req; 1470 1471 req.bmRequestType = UT_WRITE_DEVICE; 1472 req.bRequest = UR_CLEAR_FEATURE; 1473 USETW(req.wValue, sel); 1474 USETW(req.wIndex, 0); 1475 USETW(req.wLength, 0); 1476 return (usb2_do_request(udev, mtx, &req, 0)); 1477 } 1478 1479 /*------------------------------------------------------------------------* 1480 * usb2_req_set_device_feature 1481 * 1482 * Returns: 1483 * 0: Success 1484 * Else: Failure 1485 *------------------------------------------------------------------------*/ 1486 usb2_error_t 1487 usb2_req_set_device_feature(struct usb2_device *udev, struct mtx *mtx, 1488 uint16_t sel) 1489 { 1490 struct usb2_device_request req; 1491 1492 req.bmRequestType = UT_WRITE_DEVICE; 1493 req.bRequest = UR_SET_FEATURE; 1494 USETW(req.wValue, sel); 1495 USETW(req.wIndex, 0); 1496 USETW(req.wLength, 0); 1497 return (usb2_do_request(udev, mtx, &req, 0)); 1498 } 1499