1 /* 2 * ng_ubt.c 3 */ 4 5 /*- 6 * SPDX-License-Identifier: BSD-2-Clause-FreeBSD 7 * 8 * Copyright (c) 2001-2009 Maksim Yevmenkin <m_evmenkin@yahoo.com> 9 * All rights reserved. 10 * 11 * Redistribution and use in source and binary forms, with or without 12 * modification, are permitted provided that the following conditions 13 * are met: 14 * 1. Redistributions of source code must retain the above copyright 15 * notice, this list of conditions and the following disclaimer. 16 * 2. Redistributions in binary form must reproduce the above copyright 17 * notice, this list of conditions and the following disclaimer in the 18 * documentation and/or other materials provided with the distribution. 19 * 20 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND 21 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 22 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 23 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE 24 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 25 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 26 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 27 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 28 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 29 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 30 * SUCH DAMAGE. 31 * 32 * $Id: ng_ubt.c,v 1.16 2003/10/10 19:15:06 max Exp $ 33 * $FreeBSD$ 34 */ 35 36 /* 37 * NOTE: ng_ubt2 driver has a split personality. On one side it is 38 * a USB device driver and on the other it is a Netgraph node. This 39 * driver will *NOT* create traditional /dev/ enties, only Netgraph 40 * node. 41 * 42 * NOTE ON LOCKS USED: ng_ubt2 drives uses 2 locks (mutexes) 43 * 44 * 1) sc_if_mtx - lock for device's interface #0 and #1. This lock is used 45 * by USB for any USB request going over device's interface #0 and #1, 46 * i.e. interrupt, control, bulk and isoc. transfers. 47 * 48 * 2) sc_ng_mtx - this lock is used to protect shared (between USB, Netgraph 49 * and Taskqueue) data, such as outgoing mbuf queues, task flags and hook 50 * pointer. This lock *SHOULD NOT* be grabbed for a long time. In fact, 51 * think of it as a spin lock. 52 * 53 * NOTE ON LOCKING STRATEGY: ng_ubt2 driver operates in 3 different contexts. 54 * 55 * 1) USB context. This is where all the USB related stuff happens. All 56 * callbacks run in this context. All callbacks are called (by USB) with 57 * appropriate interface lock held. It is (generally) allowed to grab 58 * any additional locks. 59 * 60 * 2) Netgraph context. This is where all the Netgraph related stuff happens. 61 * Since we mark node as WRITER, the Netgraph node will be "locked" (from 62 * Netgraph point of view). Any variable that is only modified from the 63 * Netgraph context does not require any additional locking. It is generally 64 * *NOT* allowed to grab *ANY* additional locks. Whatever you do, *DO NOT* 65 * grab any lock in the Netgraph context that could cause de-scheduling of 66 * the Netgraph thread for significant amount of time. In fact, the only 67 * lock that is allowed in the Netgraph context is the sc_ng_mtx lock. 68 * Also make sure that any code that is called from the Netgraph context 69 * follows the rule above. 70 * 71 * 3) Taskqueue context. This is where ubt_task runs. Since we are generally 72 * NOT allowed to grab any lock that could cause de-scheduling in the 73 * Netgraph context, and, USB requires us to grab interface lock before 74 * doing things with transfers, it is safer to transition from the Netgraph 75 * context to the Taskqueue context before we can call into USB subsystem. 76 * 77 * So, to put everything together, the rules are as follows. 78 * It is OK to call from the USB context or the Taskqueue context into 79 * the Netgraph context (i.e. call NG_SEND_xxx functions). In other words 80 * it is allowed to call into the Netgraph context with locks held. 81 * Is it *NOT* OK to call from the Netgraph context into the USB context, 82 * because USB requires us to grab interface locks, and, it is safer to 83 * avoid it. So, to make things safer we set task flags to indicate which 84 * actions we want to perform and schedule ubt_task which would run in the 85 * Taskqueue context. 86 * Is is OK to call from the Taskqueue context into the USB context, 87 * and, ubt_task does just that (i.e. grabs appropriate interface locks 88 * before calling into USB). 89 * Access to the outgoing queues, task flags and hook pointer is 90 * controlled by the sc_ng_mtx lock. It is an unavoidable evil. Again, 91 * sc_ng_mtx should really be a spin lock (and it is very likely to an 92 * equivalent of spin lock due to adaptive nature of FreeBSD mutexes). 93 * All USB callbacks accept softc pointer as a private data. USB ensures 94 * that this pointer is valid. 95 */ 96 97 #include <sys/stdint.h> 98 #include <sys/stddef.h> 99 #include <sys/param.h> 100 #include <sys/queue.h> 101 #include <sys/types.h> 102 #include <sys/systm.h> 103 #include <sys/kernel.h> 104 #include <sys/bus.h> 105 #include <sys/module.h> 106 #include <sys/lock.h> 107 #include <sys/mutex.h> 108 #include <sys/condvar.h> 109 #include <sys/sysctl.h> 110 #include <sys/sx.h> 111 #include <sys/unistd.h> 112 #include <sys/callout.h> 113 #include <sys/malloc.h> 114 #include <sys/priv.h> 115 116 #include "usbdevs.h" 117 #include <dev/usb/usb.h> 118 #include <dev/usb/usbdi.h> 119 #include <dev/usb/usbdi_util.h> 120 121 #define USB_DEBUG_VAR usb_debug 122 #include <dev/usb/usb_debug.h> 123 #include <dev/usb/usb_busdma.h> 124 125 #include <sys/mbuf.h> 126 #include <sys/taskqueue.h> 127 128 #include <netgraph/ng_message.h> 129 #include <netgraph/netgraph.h> 130 #include <netgraph/ng_parse.h> 131 #include <netgraph/bluetooth/include/ng_bluetooth.h> 132 #include <netgraph/bluetooth/include/ng_hci.h> 133 #include <netgraph/bluetooth/include/ng_ubt.h> 134 #include <netgraph/bluetooth/drivers/ubt/ng_ubt_var.h> 135 136 static int ubt_modevent(module_t, int, void *); 137 static device_probe_t ubt_probe; 138 static device_attach_t ubt_attach; 139 static device_detach_t ubt_detach; 140 141 static void ubt_task_schedule(ubt_softc_p, int); 142 static task_fn_t ubt_task; 143 144 #define ubt_xfer_start(sc, i) usbd_transfer_start((sc)->sc_xfer[(i)]) 145 146 /* Netgraph methods */ 147 static ng_constructor_t ng_ubt_constructor; 148 static ng_shutdown_t ng_ubt_shutdown; 149 static ng_newhook_t ng_ubt_newhook; 150 static ng_connect_t ng_ubt_connect; 151 static ng_disconnect_t ng_ubt_disconnect; 152 static ng_rcvmsg_t ng_ubt_rcvmsg; 153 static ng_rcvdata_t ng_ubt_rcvdata; 154 155 static int ng_usb_isoc_enable = 1; 156 157 SYSCTL_INT(_net_bluetooth, OID_AUTO, usb_isoc_enable, CTLFLAG_RWTUN | CTLFLAG_MPSAFE, 158 &ng_usb_isoc_enable, 0, "enable isochronous transfers"); 159 160 /* Queue length */ 161 static const struct ng_parse_struct_field ng_ubt_node_qlen_type_fields[] = 162 { 163 { "queue", &ng_parse_int32_type, }, 164 { "qlen", &ng_parse_int32_type, }, 165 { NULL, } 166 }; 167 static const struct ng_parse_type ng_ubt_node_qlen_type = 168 { 169 &ng_parse_struct_type, 170 &ng_ubt_node_qlen_type_fields 171 }; 172 173 /* Stat info */ 174 static const struct ng_parse_struct_field ng_ubt_node_stat_type_fields[] = 175 { 176 { "pckts_recv", &ng_parse_uint32_type, }, 177 { "bytes_recv", &ng_parse_uint32_type, }, 178 { "pckts_sent", &ng_parse_uint32_type, }, 179 { "bytes_sent", &ng_parse_uint32_type, }, 180 { "oerrors", &ng_parse_uint32_type, }, 181 { "ierrors", &ng_parse_uint32_type, }, 182 { NULL, } 183 }; 184 static const struct ng_parse_type ng_ubt_node_stat_type = 185 { 186 &ng_parse_struct_type, 187 &ng_ubt_node_stat_type_fields 188 }; 189 190 /* Netgraph node command list */ 191 static const struct ng_cmdlist ng_ubt_cmdlist[] = 192 { 193 { 194 NGM_UBT_COOKIE, 195 NGM_UBT_NODE_SET_DEBUG, 196 "set_debug", 197 &ng_parse_uint16_type, 198 NULL 199 }, 200 { 201 NGM_UBT_COOKIE, 202 NGM_UBT_NODE_GET_DEBUG, 203 "get_debug", 204 NULL, 205 &ng_parse_uint16_type 206 }, 207 { 208 NGM_UBT_COOKIE, 209 NGM_UBT_NODE_SET_QLEN, 210 "set_qlen", 211 &ng_ubt_node_qlen_type, 212 NULL 213 }, 214 { 215 NGM_UBT_COOKIE, 216 NGM_UBT_NODE_GET_QLEN, 217 "get_qlen", 218 &ng_ubt_node_qlen_type, 219 &ng_ubt_node_qlen_type 220 }, 221 { 222 NGM_UBT_COOKIE, 223 NGM_UBT_NODE_GET_STAT, 224 "get_stat", 225 NULL, 226 &ng_ubt_node_stat_type 227 }, 228 { 229 NGM_UBT_COOKIE, 230 NGM_UBT_NODE_RESET_STAT, 231 "reset_stat", 232 NULL, 233 NULL 234 }, 235 { 0, } 236 }; 237 238 /* Netgraph node type */ 239 static struct ng_type typestruct = 240 { 241 .version = NG_ABI_VERSION, 242 .name = NG_UBT_NODE_TYPE, 243 .constructor = ng_ubt_constructor, 244 .rcvmsg = ng_ubt_rcvmsg, 245 .shutdown = ng_ubt_shutdown, 246 .newhook = ng_ubt_newhook, 247 .connect = ng_ubt_connect, 248 .rcvdata = ng_ubt_rcvdata, 249 .disconnect = ng_ubt_disconnect, 250 .cmdlist = ng_ubt_cmdlist 251 }; 252 253 /**************************************************************************** 254 **************************************************************************** 255 ** USB specific 256 **************************************************************************** 257 ****************************************************************************/ 258 259 /* USB methods */ 260 static usb_callback_t ubt_probe_intr_callback; 261 static usb_callback_t ubt_ctrl_write_callback; 262 static usb_callback_t ubt_intr_read_callback; 263 static usb_callback_t ubt_bulk_read_callback; 264 static usb_callback_t ubt_bulk_write_callback; 265 static usb_callback_t ubt_isoc_read_callback; 266 static usb_callback_t ubt_isoc_write_callback; 267 268 static int ubt_fwd_mbuf_up(ubt_softc_p, struct mbuf **); 269 static int ubt_isoc_read_one_frame(struct usb_xfer *, int); 270 271 /* 272 * USB config 273 * 274 * The following desribes usb transfers that could be submitted on USB device. 275 * 276 * Interface 0 on the USB device must present the following endpoints 277 * 1) Interrupt endpoint to receive HCI events 278 * 2) Bulk IN endpoint to receive ACL data 279 * 3) Bulk OUT endpoint to send ACL data 280 * 281 * Interface 1 on the USB device must present the following endpoints 282 * 1) Isochronous IN endpoint to receive SCO data 283 * 2) Isochronous OUT endpoint to send SCO data 284 */ 285 286 static const struct usb_config ubt_config[UBT_N_TRANSFER] = 287 { 288 /* 289 * Interface #0 290 */ 291 292 /* Outgoing bulk transfer - ACL packets */ 293 [UBT_IF_0_BULK_DT_WR] = { 294 .type = UE_BULK, 295 .endpoint = UE_ADDR_ANY, 296 .direction = UE_DIR_OUT, 297 .if_index = 0, 298 .bufsize = UBT_BULK_WRITE_BUFFER_SIZE, 299 .flags = { .pipe_bof = 1, .force_short_xfer = 1, }, 300 .callback = &ubt_bulk_write_callback, 301 }, 302 /* Incoming bulk transfer - ACL packets */ 303 [UBT_IF_0_BULK_DT_RD] = { 304 .type = UE_BULK, 305 .endpoint = UE_ADDR_ANY, 306 .direction = UE_DIR_IN, 307 .if_index = 0, 308 .bufsize = UBT_BULK_READ_BUFFER_SIZE, 309 .flags = { .pipe_bof = 1, .short_xfer_ok = 1, }, 310 .callback = &ubt_bulk_read_callback, 311 }, 312 /* Incoming interrupt transfer - HCI events */ 313 [UBT_IF_0_INTR_DT_RD] = { 314 .type = UE_INTERRUPT, 315 .endpoint = UE_ADDR_ANY, 316 .direction = UE_DIR_IN, 317 .if_index = 0, 318 .flags = { .pipe_bof = 1, .short_xfer_ok = 1, }, 319 .bufsize = UBT_INTR_BUFFER_SIZE, 320 .callback = &ubt_intr_read_callback, 321 }, 322 /* Outgoing control transfer - HCI commands */ 323 [UBT_IF_0_CTRL_DT_WR] = { 324 .type = UE_CONTROL, 325 .endpoint = 0x00, /* control pipe */ 326 .direction = UE_DIR_ANY, 327 .if_index = 0, 328 .bufsize = UBT_CTRL_BUFFER_SIZE, 329 .callback = &ubt_ctrl_write_callback, 330 .timeout = 5000, /* 5 seconds */ 331 }, 332 333 /* 334 * Interface #1 335 */ 336 337 /* Incoming isochronous transfer #1 - SCO packets */ 338 [UBT_IF_1_ISOC_DT_RD1] = { 339 .type = UE_ISOCHRONOUS, 340 .endpoint = UE_ADDR_ANY, 341 .direction = UE_DIR_IN, 342 .if_index = 1, 343 .bufsize = 0, /* use "wMaxPacketSize * frames" */ 344 .frames = UBT_ISOC_NFRAMES, 345 .flags = { .short_xfer_ok = 1, }, 346 .callback = &ubt_isoc_read_callback, 347 }, 348 /* Incoming isochronous transfer #2 - SCO packets */ 349 [UBT_IF_1_ISOC_DT_RD2] = { 350 .type = UE_ISOCHRONOUS, 351 .endpoint = UE_ADDR_ANY, 352 .direction = UE_DIR_IN, 353 .if_index = 1, 354 .bufsize = 0, /* use "wMaxPacketSize * frames" */ 355 .frames = UBT_ISOC_NFRAMES, 356 .flags = { .short_xfer_ok = 1, }, 357 .callback = &ubt_isoc_read_callback, 358 }, 359 /* Outgoing isochronous transfer #1 - SCO packets */ 360 [UBT_IF_1_ISOC_DT_WR1] = { 361 .type = UE_ISOCHRONOUS, 362 .endpoint = UE_ADDR_ANY, 363 .direction = UE_DIR_OUT, 364 .if_index = 1, 365 .bufsize = 0, /* use "wMaxPacketSize * frames" */ 366 .frames = UBT_ISOC_NFRAMES, 367 .flags = { .short_xfer_ok = 1, }, 368 .callback = &ubt_isoc_write_callback, 369 }, 370 /* Outgoing isochronous transfer #2 - SCO packets */ 371 [UBT_IF_1_ISOC_DT_WR2] = { 372 .type = UE_ISOCHRONOUS, 373 .endpoint = UE_ADDR_ANY, 374 .direction = UE_DIR_OUT, 375 .if_index = 1, 376 .bufsize = 0, /* use "wMaxPacketSize * frames" */ 377 .frames = UBT_ISOC_NFRAMES, 378 .flags = { .short_xfer_ok = 1, }, 379 .callback = &ubt_isoc_write_callback, 380 }, 381 }; 382 383 /* 384 * If for some reason device should not be attached then put 385 * VendorID/ProductID pair into the list below. The format is 386 * as follows: 387 * 388 * { USB_VPI(VENDOR_ID, PRODUCT_ID, 0) }, 389 * 390 * where VENDOR_ID and PRODUCT_ID are hex numbers. 391 */ 392 393 static const STRUCT_USB_HOST_ID ubt_ignore_devs[] = 394 { 395 /* AVM USB Bluetooth-Adapter BlueFritz! v1.0 */ 396 { USB_VPI(USB_VENDOR_AVM, 0x2200, 0) }, 397 398 /* Atheros 3011 with sflash firmware */ 399 { USB_VPI(0x0cf3, 0x3002, 0) }, 400 { USB_VPI(0x0cf3, 0xe019, 0) }, 401 { USB_VPI(0x13d3, 0x3304, 0) }, 402 { USB_VPI(0x0930, 0x0215, 0) }, 403 { USB_VPI(0x0489, 0xe03d, 0) }, 404 { USB_VPI(0x0489, 0xe027, 0) }, 405 406 /* Atheros AR9285 Malbec with sflash firmware */ 407 { USB_VPI(0x03f0, 0x311d, 0) }, 408 409 /* Atheros 3012 with sflash firmware */ 410 { USB_VPI(0x0cf3, 0x3004, 0), USB_DEV_BCD_LTEQ(1) }, 411 { USB_VPI(0x0cf3, 0x311d, 0), USB_DEV_BCD_LTEQ(1) }, 412 { USB_VPI(0x13d3, 0x3375, 0), USB_DEV_BCD_LTEQ(1) }, 413 { USB_VPI(0x04ca, 0x3005, 0), USB_DEV_BCD_LTEQ(1) }, 414 { USB_VPI(0x04ca, 0x3006, 0), USB_DEV_BCD_LTEQ(1) }, 415 { USB_VPI(0x04ca, 0x3008, 0), USB_DEV_BCD_LTEQ(1) }, 416 { USB_VPI(0x13d3, 0x3362, 0), USB_DEV_BCD_LTEQ(1) }, 417 { USB_VPI(0x0cf3, 0xe004, 0), USB_DEV_BCD_LTEQ(1) }, 418 { USB_VPI(0x0930, 0x0219, 0), USB_DEV_BCD_LTEQ(1) }, 419 { USB_VPI(0x0489, 0xe057, 0), USB_DEV_BCD_LTEQ(1) }, 420 { USB_VPI(0x13d3, 0x3393, 0), USB_DEV_BCD_LTEQ(1) }, 421 { USB_VPI(0x0489, 0xe04e, 0), USB_DEV_BCD_LTEQ(1) }, 422 { USB_VPI(0x0489, 0xe056, 0), USB_DEV_BCD_LTEQ(1) }, 423 424 /* Atheros AR5BBU12 with sflash firmware */ 425 { USB_VPI(0x0489, 0xe02c, 0), USB_DEV_BCD_LTEQ(1) }, 426 427 /* Atheros AR5BBU12 with sflash firmware */ 428 { USB_VPI(0x0489, 0xe03c, 0), USB_DEV_BCD_LTEQ(1) }, 429 { USB_VPI(0x0489, 0xe036, 0), USB_DEV_BCD_LTEQ(1) }, 430 431 /* Intel Wireless controllers are handled in ng_ubt_intel.c */ 432 { USB_VPI(USB_VENDOR_INTEL2, 0x07dc, 0) }, 433 { USB_VPI(USB_VENDOR_INTEL2, 0x0a2a, 0) }, 434 { USB_VPI(USB_VENDOR_INTEL2, 0x0aa7, 0) }, 435 { USB_VPI(USB_VENDOR_INTEL2, 0x0a2b, 0) }, 436 { USB_VPI(USB_VENDOR_INTEL2, 0x0aaa, 0) }, 437 { USB_VPI(USB_VENDOR_INTEL2, 0x0025, 0) }, 438 { USB_VPI(USB_VENDOR_INTEL2, 0x0026, 0) }, 439 { USB_VPI(USB_VENDOR_INTEL2, 0x0029, 0) }, 440 441 /* 442 * Some Intel controllers are not yet supported by ng_ubt_intel and 443 * should be ignored. 444 */ 445 { USB_VPI(USB_VENDOR_INTEL2, 0x0032, 0) }, 446 { USB_VPI(USB_VENDOR_INTEL2, 0x0033, 0) }, 447 }; 448 449 /* List of supported bluetooth devices */ 450 static const STRUCT_USB_HOST_ID ubt_devs[] = 451 { 452 /* Generic Bluetooth class devices */ 453 { USB_IFACE_CLASS(UDCLASS_WIRELESS), 454 USB_IFACE_SUBCLASS(UDSUBCLASS_RF), 455 USB_IFACE_PROTOCOL(UDPROTO_BLUETOOTH) }, 456 457 /* AVM USB Bluetooth-Adapter BlueFritz! v2.0 */ 458 { USB_VPI(USB_VENDOR_AVM, 0x3800, 0) }, 459 460 /* Broadcom USB dongles, mostly BCM20702 and BCM20702A0 */ 461 { USB_VENDOR(USB_VENDOR_BROADCOM), 462 USB_IFACE_CLASS(UICLASS_VENDOR), 463 USB_IFACE_SUBCLASS(UDSUBCLASS_RF), 464 USB_IFACE_PROTOCOL(UDPROTO_BLUETOOTH) }, 465 466 /* Apple-specific (Broadcom) devices */ 467 { USB_VENDOR(USB_VENDOR_APPLE), 468 USB_IFACE_CLASS(UICLASS_VENDOR), 469 USB_IFACE_SUBCLASS(UDSUBCLASS_RF), 470 USB_IFACE_PROTOCOL(UDPROTO_BLUETOOTH) }, 471 472 /* Foxconn - Hon Hai */ 473 { USB_VENDOR(USB_VENDOR_FOXCONN), 474 USB_IFACE_CLASS(UICLASS_VENDOR), 475 USB_IFACE_SUBCLASS(UDSUBCLASS_RF), 476 USB_IFACE_PROTOCOL(UDPROTO_BLUETOOTH) }, 477 478 /* MediaTek MT76x0E */ 479 { USB_VPI(USB_VENDOR_MEDIATEK, 0x763f, 0) }, 480 481 /* Broadcom SoftSailing reporting vendor specific */ 482 { USB_VPI(USB_VENDOR_BROADCOM, 0x21e1, 0) }, 483 484 /* Apple MacBookPro 7,1 */ 485 { USB_VPI(USB_VENDOR_APPLE, 0x8213, 0) }, 486 487 /* Apple iMac11,1 */ 488 { USB_VPI(USB_VENDOR_APPLE, 0x8215, 0) }, 489 490 /* Apple MacBookPro6,2 */ 491 { USB_VPI(USB_VENDOR_APPLE, 0x8218, 0) }, 492 493 /* Apple MacBookAir3,1, MacBookAir3,2 */ 494 { USB_VPI(USB_VENDOR_APPLE, 0x821b, 0) }, 495 496 /* Apple MacBookAir4,1 */ 497 { USB_VPI(USB_VENDOR_APPLE, 0x821f, 0) }, 498 499 /* MacBookAir6,1 */ 500 { USB_VPI(USB_VENDOR_APPLE, 0x828f, 0) }, 501 502 /* Apple MacBookPro8,2 */ 503 { USB_VPI(USB_VENDOR_APPLE, 0x821a, 0) }, 504 505 /* Apple MacMini5,1 */ 506 { USB_VPI(USB_VENDOR_APPLE, 0x8281, 0) }, 507 508 /* Bluetooth Ultraport Module from IBM */ 509 { USB_VPI(USB_VENDOR_TDK, 0x030a, 0) }, 510 511 /* ALPS Modules with non-standard ID */ 512 { USB_VPI(USB_VENDOR_ALPS, 0x3001, 0) }, 513 { USB_VPI(USB_VENDOR_ALPS, 0x3002, 0) }, 514 515 { USB_VPI(USB_VENDOR_ERICSSON2, 0x1002, 0) }, 516 517 /* Canyon CN-BTU1 with HID interfaces */ 518 { USB_VPI(USB_VENDOR_CANYON, 0x0000, 0) }, 519 520 /* Broadcom BCM20702A0 */ 521 { USB_VPI(USB_VENDOR_ASUS, 0x17b5, 0) }, 522 { USB_VPI(USB_VENDOR_ASUS, 0x17cb, 0) }, 523 { USB_VPI(USB_VENDOR_LITEON, 0x2003, 0) }, 524 { USB_VPI(USB_VENDOR_FOXCONN, 0xe042, 0) }, 525 { USB_VPI(USB_VENDOR_DELL, 0x8197, 0) }, 526 { USB_VPI(USB_VENDOR_BELKIN, 0x065a, 0) }, 527 }; 528 529 /* 530 * Does a synchronous (waits for completion event) execution of HCI command. 531 * Size of both command and response buffers are passed in length field of 532 * corresponding structures in "Parameter Total Length" format i.e. 533 * not including HCI packet headers. 534 * 535 * Must not be used after USB transfers have been configured in attach routine. 536 */ 537 538 usb_error_t 539 ubt_do_hci_request(struct usb_device *udev, struct ubt_hci_cmd *cmd, 540 void *evt, usb_timeout_t timeout) 541 { 542 static const struct usb_config ubt_probe_config = { 543 .type = UE_INTERRUPT, 544 .endpoint = UE_ADDR_ANY, 545 .direction = UE_DIR_IN, 546 .flags = { .pipe_bof = 1, .short_xfer_ok = 1 }, 547 .bufsize = UBT_INTR_BUFFER_SIZE, 548 .callback = &ubt_probe_intr_callback, 549 }; 550 struct usb_device_request req; 551 struct usb_xfer *xfer[1]; 552 struct mtx mtx; 553 usb_error_t error = USB_ERR_NORMAL_COMPLETION; 554 uint8_t iface_index = 0; 555 556 /* Initialize a USB control request and then do it */ 557 bzero(&req, sizeof(req)); 558 req.bmRequestType = UBT_HCI_REQUEST; 559 req.wIndex[0] = iface_index; 560 USETW(req.wLength, UBT_HCI_CMD_SIZE(cmd)); 561 562 error = usbd_do_request(udev, NULL, &req, cmd); 563 if (error != USB_ERR_NORMAL_COMPLETION) { 564 printf("ng_ubt: usbd_do_request error=%s\n", 565 usbd_errstr(error)); 566 return (error); 567 } 568 569 if (evt == NULL) 570 return (USB_ERR_NORMAL_COMPLETION); 571 572 /* Initialize INTR endpoint xfer and wait for response */ 573 mtx_init(&mtx, "ubt pb", NULL, MTX_DEF | MTX_NEW); 574 575 error = usbd_transfer_setup(udev, &iface_index, xfer, 576 &ubt_probe_config, 1, evt, &mtx); 577 if (error == USB_ERR_NORMAL_COMPLETION) { 578 mtx_lock(&mtx); 579 usbd_transfer_start(*xfer); 580 581 if (msleep_sbt(evt, &mtx, 0, "ubt pb", SBT_1MS * timeout, 582 0, C_HARDCLOCK) == EWOULDBLOCK) { 583 printf("ng_ubt: HCI command 0x%04x timed out\n", 584 le16toh(cmd->opcode)); 585 error = USB_ERR_TIMEOUT; 586 } 587 588 usbd_transfer_stop(*xfer); 589 mtx_unlock(&mtx); 590 591 usbd_transfer_unsetup(xfer, 1); 592 } else 593 printf("ng_ubt: usbd_transfer_setup error=%s\n", 594 usbd_errstr(error)); 595 596 mtx_destroy(&mtx); 597 598 return (error); 599 } 600 601 /* 602 * Probe for a USB Bluetooth device. 603 * USB context. 604 */ 605 606 static int 607 ubt_probe(device_t dev) 608 { 609 struct usb_attach_arg *uaa = device_get_ivars(dev); 610 int error; 611 612 if (uaa->usb_mode != USB_MODE_HOST) 613 return (ENXIO); 614 615 if (uaa->info.bIfaceIndex != 0) 616 return (ENXIO); 617 618 if (usbd_lookup_id_by_uaa(ubt_ignore_devs, 619 sizeof(ubt_ignore_devs), uaa) == 0) 620 return (ENXIO); 621 622 error = usbd_lookup_id_by_uaa(ubt_devs, sizeof(ubt_devs), uaa); 623 if (error == 0) 624 return (BUS_PROBE_GENERIC); 625 return (error); 626 } /* ubt_probe */ 627 628 /* 629 * Attach the device. 630 * USB context. 631 */ 632 633 static int 634 ubt_attach(device_t dev) 635 { 636 struct usb_attach_arg *uaa = device_get_ivars(dev); 637 struct ubt_softc *sc = device_get_softc(dev); 638 struct usb_endpoint_descriptor *ed; 639 struct usb_interface_descriptor *id; 640 struct usb_interface *iface; 641 uint32_t wMaxPacketSize; 642 uint8_t alt_index, i, j; 643 uint8_t iface_index[2] = { 0, 1 }; 644 645 device_set_usb_desc(dev); 646 647 sc->sc_dev = dev; 648 sc->sc_debug = NG_UBT_WARN_LEVEL; 649 650 /* 651 * Create Netgraph node 652 */ 653 654 if (ng_make_node_common(&typestruct, &sc->sc_node) != 0) { 655 UBT_ALERT(sc, "could not create Netgraph node\n"); 656 return (ENXIO); 657 } 658 659 /* Name Netgraph node */ 660 if (ng_name_node(sc->sc_node, device_get_nameunit(dev)) != 0) { 661 UBT_ALERT(sc, "could not name Netgraph node\n"); 662 NG_NODE_UNREF(sc->sc_node); 663 return (ENXIO); 664 } 665 NG_NODE_SET_PRIVATE(sc->sc_node, sc); 666 NG_NODE_FORCE_WRITER(sc->sc_node); 667 668 /* 669 * Initialize device softc structure 670 */ 671 672 /* initialize locks */ 673 mtx_init(&sc->sc_ng_mtx, "ubt ng", NULL, MTX_DEF); 674 mtx_init(&sc->sc_if_mtx, "ubt if", NULL, MTX_DEF | MTX_RECURSE); 675 676 /* initialize packet queues */ 677 NG_BT_MBUFQ_INIT(&sc->sc_cmdq, UBT_DEFAULT_QLEN); 678 NG_BT_MBUFQ_INIT(&sc->sc_aclq, UBT_DEFAULT_QLEN); 679 NG_BT_MBUFQ_INIT(&sc->sc_scoq, UBT_DEFAULT_QLEN); 680 681 /* initialize glue task */ 682 TASK_INIT(&sc->sc_task, 0, ubt_task, sc); 683 684 /* 685 * Configure Bluetooth USB device. Discover all required USB 686 * interfaces and endpoints. 687 * 688 * USB device must present two interfaces: 689 * 1) Interface 0 that has 3 endpoints 690 * 1) Interrupt endpoint to receive HCI events 691 * 2) Bulk IN endpoint to receive ACL data 692 * 3) Bulk OUT endpoint to send ACL data 693 * 694 * 2) Interface 1 then has 2 endpoints 695 * 1) Isochronous IN endpoint to receive SCO data 696 * 2) Isochronous OUT endpoint to send SCO data 697 * 698 * Interface 1 (with isochronous endpoints) has several alternate 699 * configurations with different packet size. 700 */ 701 702 /* 703 * For interface #1 search alternate settings, and find 704 * the descriptor with the largest wMaxPacketSize 705 */ 706 707 wMaxPacketSize = 0; 708 alt_index = 0; 709 i = 0; 710 j = 0; 711 ed = NULL; 712 713 /* 714 * Search through all the descriptors looking for the largest 715 * packet size: 716 */ 717 while ((ed = (struct usb_endpoint_descriptor *)usb_desc_foreach( 718 usbd_get_config_descriptor(uaa->device), 719 (struct usb_descriptor *)ed))) { 720 if ((ed->bDescriptorType == UDESC_INTERFACE) && 721 (ed->bLength >= sizeof(*id))) { 722 id = (struct usb_interface_descriptor *)ed; 723 i = id->bInterfaceNumber; 724 j = id->bAlternateSetting; 725 } 726 727 if ((ed->bDescriptorType == UDESC_ENDPOINT) && 728 (ed->bLength >= sizeof(*ed)) && 729 (i == 1)) { 730 uint32_t temp; 731 732 temp = usbd_get_max_frame_length( 733 ed, NULL, usbd_get_speed(uaa->device)); 734 if (temp > wMaxPacketSize) { 735 wMaxPacketSize = temp; 736 alt_index = j; 737 } 738 } 739 } 740 741 /* Set alt configuration on interface #1 only if we found it */ 742 if (wMaxPacketSize > 0 && 743 usbd_set_alt_interface_index(uaa->device, 1, alt_index)) { 744 UBT_ALERT(sc, "could not set alternate setting %d " \ 745 "for interface 1!\n", alt_index); 746 goto detach; 747 } 748 749 /* Setup transfers for both interfaces */ 750 if (usbd_transfer_setup(uaa->device, iface_index, sc->sc_xfer, ubt_config, 751 ng_usb_isoc_enable ? UBT_N_TRANSFER : UBT_IF_1_ISOC_DT_RD1, 752 sc, &sc->sc_if_mtx)) { 753 UBT_ALERT(sc, "could not allocate transfers\n"); 754 goto detach; 755 } 756 757 /* Claim all interfaces belonging to the Bluetooth part */ 758 for (i = 1;; i++) { 759 iface = usbd_get_iface(uaa->device, i); 760 if (iface == NULL) 761 break; 762 id = usbd_get_interface_descriptor(iface); 763 764 if ((id != NULL) && 765 (id->bInterfaceClass == UICLASS_WIRELESS) && 766 (id->bInterfaceSubClass == UISUBCLASS_RF) && 767 (id->bInterfaceProtocol == UIPROTO_BLUETOOTH)) { 768 usbd_set_parent_iface(uaa->device, i, 769 uaa->info.bIfaceIndex); 770 } 771 } 772 return (0); /* success */ 773 774 detach: 775 ubt_detach(dev); 776 777 return (ENXIO); 778 } /* ubt_attach */ 779 780 /* 781 * Detach the device. 782 * USB context. 783 */ 784 785 int 786 ubt_detach(device_t dev) 787 { 788 struct ubt_softc *sc = device_get_softc(dev); 789 node_p node = sc->sc_node; 790 791 /* Destroy Netgraph node */ 792 if (node != NULL) { 793 sc->sc_node = NULL; 794 NG_NODE_REALLY_DIE(node); 795 ng_rmnode_self(node); 796 } 797 798 /* Make sure ubt_task in gone */ 799 taskqueue_drain(taskqueue_swi, &sc->sc_task); 800 801 /* Free USB transfers, if any */ 802 usbd_transfer_unsetup(sc->sc_xfer, UBT_N_TRANSFER); 803 804 /* Destroy queues */ 805 UBT_NG_LOCK(sc); 806 NG_BT_MBUFQ_DESTROY(&sc->sc_cmdq); 807 NG_BT_MBUFQ_DESTROY(&sc->sc_aclq); 808 NG_BT_MBUFQ_DESTROY(&sc->sc_scoq); 809 UBT_NG_UNLOCK(sc); 810 811 mtx_destroy(&sc->sc_if_mtx); 812 mtx_destroy(&sc->sc_ng_mtx); 813 814 return (0); 815 } /* ubt_detach */ 816 817 /* 818 * Called when incoming interrupt transfer (HCI event) has completed, i.e. 819 * HCI event was received from the device during device probe stage. 820 * USB context. 821 */ 822 823 static void 824 ubt_probe_intr_callback(struct usb_xfer *xfer, usb_error_t error) 825 { 826 struct ubt_hci_event *evt = usbd_xfer_softc(xfer); 827 struct usb_page_cache *pc; 828 int actlen; 829 830 usbd_xfer_status(xfer, &actlen, NULL, NULL, NULL); 831 832 switch (USB_GET_STATE(xfer)) { 833 case USB_ST_TRANSFERRED: 834 if (actlen > UBT_HCI_EVENT_SIZE(evt)) 835 actlen = UBT_HCI_EVENT_SIZE(evt); 836 pc = usbd_xfer_get_frame(xfer, 0); 837 usbd_copy_out(pc, 0, evt, actlen); 838 /* OneShot mode */ 839 wakeup(evt); 840 break; 841 842 case USB_ST_SETUP: 843 submit_next: 844 usbd_xfer_set_frame_len(xfer, 0, usbd_xfer_max_len(xfer)); 845 usbd_transfer_submit(xfer); 846 break; 847 848 default: 849 if (error != USB_ERR_CANCELLED) { 850 printf("ng_ubt: interrupt transfer failed: %s\n", 851 usbd_errstr(error)); 852 /* Try clear stall first */ 853 usbd_xfer_set_stall(xfer); 854 goto submit_next; 855 } 856 break; 857 } 858 } /* ubt_probe_intr_callback */ 859 860 /* 861 * Called when outgoing control request (HCI command) has completed, i.e. 862 * HCI command was sent to the device. 863 * USB context. 864 */ 865 866 static void 867 ubt_ctrl_write_callback(struct usb_xfer *xfer, usb_error_t error) 868 { 869 struct ubt_softc *sc = usbd_xfer_softc(xfer); 870 struct usb_device_request req; 871 struct mbuf *m; 872 struct usb_page_cache *pc; 873 int actlen; 874 875 usbd_xfer_status(xfer, &actlen, NULL, NULL, NULL); 876 877 switch (USB_GET_STATE(xfer)) { 878 case USB_ST_TRANSFERRED: 879 UBT_INFO(sc, "sent %d bytes to control pipe\n", actlen); 880 UBT_STAT_BYTES_SENT(sc, actlen); 881 UBT_STAT_PCKTS_SENT(sc); 882 /* FALLTHROUGH */ 883 884 case USB_ST_SETUP: 885 send_next: 886 /* Get next command mbuf, if any */ 887 UBT_NG_LOCK(sc); 888 NG_BT_MBUFQ_DEQUEUE(&sc->sc_cmdq, m); 889 UBT_NG_UNLOCK(sc); 890 891 if (m == NULL) { 892 UBT_INFO(sc, "HCI command queue is empty\n"); 893 break; /* transfer complete */ 894 } 895 896 /* Initialize a USB control request and then schedule it */ 897 bzero(&req, sizeof(req)); 898 req.bmRequestType = UBT_HCI_REQUEST; 899 USETW(req.wLength, m->m_pkthdr.len); 900 901 UBT_INFO(sc, "Sending control request, " \ 902 "bmRequestType=0x%02x, wLength=%d\n", 903 req.bmRequestType, UGETW(req.wLength)); 904 905 pc = usbd_xfer_get_frame(xfer, 0); 906 usbd_copy_in(pc, 0, &req, sizeof(req)); 907 pc = usbd_xfer_get_frame(xfer, 1); 908 usbd_m_copy_in(pc, 0, m, 0, m->m_pkthdr.len); 909 910 usbd_xfer_set_frame_len(xfer, 0, sizeof(req)); 911 usbd_xfer_set_frame_len(xfer, 1, m->m_pkthdr.len); 912 usbd_xfer_set_frames(xfer, 2); 913 914 NG_FREE_M(m); 915 916 usbd_transfer_submit(xfer); 917 break; 918 919 default: /* Error */ 920 if (error != USB_ERR_CANCELLED) { 921 UBT_WARN(sc, "control transfer failed: %s\n", 922 usbd_errstr(error)); 923 924 UBT_STAT_OERROR(sc); 925 goto send_next; 926 } 927 928 /* transfer cancelled */ 929 break; 930 } 931 } /* ubt_ctrl_write_callback */ 932 933 /* 934 * Called when incoming interrupt transfer (HCI event) has completed, i.e. 935 * HCI event was received from the device. 936 * USB context. 937 */ 938 939 static void 940 ubt_intr_read_callback(struct usb_xfer *xfer, usb_error_t error) 941 { 942 struct ubt_softc *sc = usbd_xfer_softc(xfer); 943 struct mbuf *m; 944 ng_hci_event_pkt_t *hdr; 945 struct usb_page_cache *pc; 946 int actlen; 947 948 usbd_xfer_status(xfer, &actlen, NULL, NULL, NULL); 949 950 m = NULL; 951 952 switch (USB_GET_STATE(xfer)) { 953 case USB_ST_TRANSFERRED: 954 /* Allocate a new mbuf */ 955 MGETHDR(m, M_NOWAIT, MT_DATA); 956 if (m == NULL) { 957 UBT_STAT_IERROR(sc); 958 goto submit_next; 959 } 960 961 if (!(MCLGET(m, M_NOWAIT))) { 962 UBT_STAT_IERROR(sc); 963 goto submit_next; 964 } 965 966 /* Add HCI packet type */ 967 *mtod(m, uint8_t *)= NG_HCI_EVENT_PKT; 968 m->m_pkthdr.len = m->m_len = 1; 969 970 if (actlen > MCLBYTES - 1) 971 actlen = MCLBYTES - 1; 972 973 pc = usbd_xfer_get_frame(xfer, 0); 974 usbd_copy_out(pc, 0, mtod(m, uint8_t *) + 1, actlen); 975 m->m_pkthdr.len += actlen; 976 m->m_len += actlen; 977 978 UBT_INFO(sc, "got %d bytes from interrupt pipe\n", 979 actlen); 980 981 /* Validate packet and send it up the stack */ 982 if (m->m_pkthdr.len < (int)sizeof(*hdr)) { 983 UBT_INFO(sc, "HCI event packet is too short\n"); 984 985 UBT_STAT_IERROR(sc); 986 goto submit_next; 987 } 988 989 hdr = mtod(m, ng_hci_event_pkt_t *); 990 if (hdr->length != (m->m_pkthdr.len - sizeof(*hdr))) { 991 UBT_ERR(sc, "Invalid HCI event packet size, " \ 992 "length=%d, pktlen=%d\n", 993 hdr->length, m->m_pkthdr.len); 994 995 UBT_STAT_IERROR(sc); 996 goto submit_next; 997 } 998 999 UBT_INFO(sc, "got complete HCI event frame, pktlen=%d, " \ 1000 "length=%d\n", m->m_pkthdr.len, hdr->length); 1001 1002 UBT_STAT_PCKTS_RECV(sc); 1003 UBT_STAT_BYTES_RECV(sc, m->m_pkthdr.len); 1004 1005 ubt_fwd_mbuf_up(sc, &m); 1006 /* m == NULL at this point */ 1007 /* FALLTHROUGH */ 1008 1009 case USB_ST_SETUP: 1010 submit_next: 1011 NG_FREE_M(m); /* checks for m != NULL */ 1012 1013 usbd_xfer_set_frame_len(xfer, 0, usbd_xfer_max_len(xfer)); 1014 usbd_transfer_submit(xfer); 1015 break; 1016 1017 default: /* Error */ 1018 if (error != USB_ERR_CANCELLED) { 1019 UBT_WARN(sc, "interrupt transfer failed: %s\n", 1020 usbd_errstr(error)); 1021 1022 /* Try to clear stall first */ 1023 usbd_xfer_set_stall(xfer); 1024 goto submit_next; 1025 } 1026 /* transfer cancelled */ 1027 break; 1028 } 1029 } /* ubt_intr_read_callback */ 1030 1031 /* 1032 * Called when incoming bulk transfer (ACL packet) has completed, i.e. 1033 * ACL packet was received from the device. 1034 * USB context. 1035 */ 1036 1037 static void 1038 ubt_bulk_read_callback(struct usb_xfer *xfer, usb_error_t error) 1039 { 1040 struct ubt_softc *sc = usbd_xfer_softc(xfer); 1041 struct mbuf *m; 1042 ng_hci_acldata_pkt_t *hdr; 1043 struct usb_page_cache *pc; 1044 int len; 1045 int actlen; 1046 1047 usbd_xfer_status(xfer, &actlen, NULL, NULL, NULL); 1048 1049 m = NULL; 1050 1051 switch (USB_GET_STATE(xfer)) { 1052 case USB_ST_TRANSFERRED: 1053 /* Allocate new mbuf */ 1054 MGETHDR(m, M_NOWAIT, MT_DATA); 1055 if (m == NULL) { 1056 UBT_STAT_IERROR(sc); 1057 goto submit_next; 1058 } 1059 1060 if (!(MCLGET(m, M_NOWAIT))) { 1061 UBT_STAT_IERROR(sc); 1062 goto submit_next; 1063 } 1064 1065 /* Add HCI packet type */ 1066 *mtod(m, uint8_t *)= NG_HCI_ACL_DATA_PKT; 1067 m->m_pkthdr.len = m->m_len = 1; 1068 1069 if (actlen > MCLBYTES - 1) 1070 actlen = MCLBYTES - 1; 1071 1072 pc = usbd_xfer_get_frame(xfer, 0); 1073 usbd_copy_out(pc, 0, mtod(m, uint8_t *) + 1, actlen); 1074 m->m_pkthdr.len += actlen; 1075 m->m_len += actlen; 1076 1077 UBT_INFO(sc, "got %d bytes from bulk-in pipe\n", 1078 actlen); 1079 1080 /* Validate packet and send it up the stack */ 1081 if (m->m_pkthdr.len < (int)sizeof(*hdr)) { 1082 UBT_INFO(sc, "HCI ACL packet is too short\n"); 1083 1084 UBT_STAT_IERROR(sc); 1085 goto submit_next; 1086 } 1087 1088 hdr = mtod(m, ng_hci_acldata_pkt_t *); 1089 len = le16toh(hdr->length); 1090 if (len != (int)(m->m_pkthdr.len - sizeof(*hdr))) { 1091 UBT_ERR(sc, "Invalid ACL packet size, length=%d, " \ 1092 "pktlen=%d\n", len, m->m_pkthdr.len); 1093 1094 UBT_STAT_IERROR(sc); 1095 goto submit_next; 1096 } 1097 1098 UBT_INFO(sc, "got complete ACL data packet, pktlen=%d, " \ 1099 "length=%d\n", m->m_pkthdr.len, len); 1100 1101 UBT_STAT_PCKTS_RECV(sc); 1102 UBT_STAT_BYTES_RECV(sc, m->m_pkthdr.len); 1103 1104 ubt_fwd_mbuf_up(sc, &m); 1105 /* m == NULL at this point */ 1106 /* FALLTHOUGH */ 1107 1108 case USB_ST_SETUP: 1109 submit_next: 1110 NG_FREE_M(m); /* checks for m != NULL */ 1111 1112 usbd_xfer_set_frame_len(xfer, 0, usbd_xfer_max_len(xfer)); 1113 usbd_transfer_submit(xfer); 1114 break; 1115 1116 default: /* Error */ 1117 if (error != USB_ERR_CANCELLED) { 1118 UBT_WARN(sc, "bulk-in transfer failed: %s\n", 1119 usbd_errstr(error)); 1120 1121 /* Try to clear stall first */ 1122 usbd_xfer_set_stall(xfer); 1123 goto submit_next; 1124 } 1125 /* transfer cancelled */ 1126 break; 1127 } 1128 } /* ubt_bulk_read_callback */ 1129 1130 /* 1131 * Called when outgoing bulk transfer (ACL packet) has completed, i.e. 1132 * ACL packet was sent to the device. 1133 * USB context. 1134 */ 1135 1136 static void 1137 ubt_bulk_write_callback(struct usb_xfer *xfer, usb_error_t error) 1138 { 1139 struct ubt_softc *sc = usbd_xfer_softc(xfer); 1140 struct mbuf *m; 1141 struct usb_page_cache *pc; 1142 int actlen; 1143 1144 usbd_xfer_status(xfer, &actlen, NULL, NULL, NULL); 1145 1146 switch (USB_GET_STATE(xfer)) { 1147 case USB_ST_TRANSFERRED: 1148 UBT_INFO(sc, "sent %d bytes to bulk-out pipe\n", actlen); 1149 UBT_STAT_BYTES_SENT(sc, actlen); 1150 UBT_STAT_PCKTS_SENT(sc); 1151 /* FALLTHROUGH */ 1152 1153 case USB_ST_SETUP: 1154 send_next: 1155 /* Get next mbuf, if any */ 1156 UBT_NG_LOCK(sc); 1157 NG_BT_MBUFQ_DEQUEUE(&sc->sc_aclq, m); 1158 UBT_NG_UNLOCK(sc); 1159 1160 if (m == NULL) { 1161 UBT_INFO(sc, "ACL data queue is empty\n"); 1162 break; /* transfer completed */ 1163 } 1164 1165 /* 1166 * Copy ACL data frame back to a linear USB transfer buffer 1167 * and schedule transfer 1168 */ 1169 1170 pc = usbd_xfer_get_frame(xfer, 0); 1171 usbd_m_copy_in(pc, 0, m, 0, m->m_pkthdr.len); 1172 usbd_xfer_set_frame_len(xfer, 0, m->m_pkthdr.len); 1173 1174 UBT_INFO(sc, "bulk-out transfer has been started, len=%d\n", 1175 m->m_pkthdr.len); 1176 1177 NG_FREE_M(m); 1178 1179 usbd_transfer_submit(xfer); 1180 break; 1181 1182 default: /* Error */ 1183 if (error != USB_ERR_CANCELLED) { 1184 UBT_WARN(sc, "bulk-out transfer failed: %s\n", 1185 usbd_errstr(error)); 1186 1187 UBT_STAT_OERROR(sc); 1188 1189 /* try to clear stall first */ 1190 usbd_xfer_set_stall(xfer); 1191 goto send_next; 1192 } 1193 /* transfer cancelled */ 1194 break; 1195 } 1196 } /* ubt_bulk_write_callback */ 1197 1198 /* 1199 * Called when incoming isoc transfer (SCO packet) has completed, i.e. 1200 * SCO packet was received from the device. 1201 * USB context. 1202 */ 1203 1204 static void 1205 ubt_isoc_read_callback(struct usb_xfer *xfer, usb_error_t error) 1206 { 1207 struct ubt_softc *sc = usbd_xfer_softc(xfer); 1208 int n; 1209 int actlen, nframes; 1210 1211 usbd_xfer_status(xfer, &actlen, NULL, NULL, &nframes); 1212 1213 switch (USB_GET_STATE(xfer)) { 1214 case USB_ST_TRANSFERRED: 1215 for (n = 0; n < nframes; n ++) 1216 if (ubt_isoc_read_one_frame(xfer, n) < 0) 1217 break; 1218 /* FALLTHROUGH */ 1219 1220 case USB_ST_SETUP: 1221 read_next: 1222 for (n = 0; n < nframes; n ++) 1223 usbd_xfer_set_frame_len(xfer, n, 1224 usbd_xfer_max_framelen(xfer)); 1225 1226 usbd_transfer_submit(xfer); 1227 break; 1228 1229 default: /* Error */ 1230 if (error != USB_ERR_CANCELLED) { 1231 UBT_STAT_IERROR(sc); 1232 goto read_next; 1233 } 1234 1235 /* transfer cancelled */ 1236 break; 1237 } 1238 } /* ubt_isoc_read_callback */ 1239 1240 /* 1241 * Helper function. Called from ubt_isoc_read_callback() to read 1242 * SCO data from one frame. 1243 * USB context. 1244 */ 1245 1246 static int 1247 ubt_isoc_read_one_frame(struct usb_xfer *xfer, int frame_no) 1248 { 1249 struct ubt_softc *sc = usbd_xfer_softc(xfer); 1250 struct usb_page_cache *pc; 1251 struct mbuf *m; 1252 int len, want, got, total; 1253 1254 /* Get existing SCO reassembly buffer */ 1255 pc = usbd_xfer_get_frame(xfer, 0); 1256 m = sc->sc_isoc_in_buffer; 1257 total = usbd_xfer_frame_len(xfer, frame_no); 1258 1259 /* While we have data in the frame */ 1260 while (total > 0) { 1261 if (m == NULL) { 1262 /* Start new reassembly buffer */ 1263 MGETHDR(m, M_NOWAIT, MT_DATA); 1264 if (m == NULL) { 1265 UBT_STAT_IERROR(sc); 1266 return (-1); /* XXX out of sync! */ 1267 } 1268 1269 if (!(MCLGET(m, M_NOWAIT))) { 1270 UBT_STAT_IERROR(sc); 1271 NG_FREE_M(m); 1272 return (-1); /* XXX out of sync! */ 1273 } 1274 1275 /* Expect SCO header */ 1276 *mtod(m, uint8_t *) = NG_HCI_SCO_DATA_PKT; 1277 m->m_pkthdr.len = m->m_len = got = 1; 1278 want = sizeof(ng_hci_scodata_pkt_t); 1279 } else { 1280 /* 1281 * Check if we have SCO header and if so 1282 * adjust amount of data we want 1283 */ 1284 got = m->m_pkthdr.len; 1285 want = sizeof(ng_hci_scodata_pkt_t); 1286 1287 if (got >= want) 1288 want += mtod(m, ng_hci_scodata_pkt_t *)->length; 1289 } 1290 1291 /* Append frame data to the SCO reassembly buffer */ 1292 len = total; 1293 if (got + len > want) 1294 len = want - got; 1295 1296 usbd_copy_out(pc, frame_no * usbd_xfer_max_framelen(xfer), 1297 mtod(m, uint8_t *) + m->m_pkthdr.len, len); 1298 1299 m->m_pkthdr.len += len; 1300 m->m_len += len; 1301 total -= len; 1302 1303 /* Check if we got everything we wanted, if not - continue */ 1304 if (got != want) 1305 continue; 1306 1307 /* If we got here then we got complete SCO frame */ 1308 UBT_INFO(sc, "got complete SCO data frame, pktlen=%d, " \ 1309 "length=%d\n", m->m_pkthdr.len, 1310 mtod(m, ng_hci_scodata_pkt_t *)->length); 1311 1312 UBT_STAT_PCKTS_RECV(sc); 1313 UBT_STAT_BYTES_RECV(sc, m->m_pkthdr.len); 1314 1315 ubt_fwd_mbuf_up(sc, &m); 1316 /* m == NULL at this point */ 1317 } 1318 1319 /* Put SCO reassembly buffer back */ 1320 sc->sc_isoc_in_buffer = m; 1321 1322 return (0); 1323 } /* ubt_isoc_read_one_frame */ 1324 1325 /* 1326 * Called when outgoing isoc transfer (SCO packet) has completed, i.e. 1327 * SCO packet was sent to the device. 1328 * USB context. 1329 */ 1330 1331 static void 1332 ubt_isoc_write_callback(struct usb_xfer *xfer, usb_error_t error) 1333 { 1334 struct ubt_softc *sc = usbd_xfer_softc(xfer); 1335 struct usb_page_cache *pc; 1336 struct mbuf *m; 1337 int n, space, offset; 1338 int actlen, nframes; 1339 1340 usbd_xfer_status(xfer, &actlen, NULL, NULL, &nframes); 1341 pc = usbd_xfer_get_frame(xfer, 0); 1342 1343 switch (USB_GET_STATE(xfer)) { 1344 case USB_ST_TRANSFERRED: 1345 UBT_INFO(sc, "sent %d bytes to isoc-out pipe\n", actlen); 1346 UBT_STAT_BYTES_SENT(sc, actlen); 1347 UBT_STAT_PCKTS_SENT(sc); 1348 /* FALLTHROUGH */ 1349 1350 case USB_ST_SETUP: 1351 send_next: 1352 offset = 0; 1353 space = usbd_xfer_max_framelen(xfer) * nframes; 1354 m = NULL; 1355 1356 while (space > 0) { 1357 if (m == NULL) { 1358 UBT_NG_LOCK(sc); 1359 NG_BT_MBUFQ_DEQUEUE(&sc->sc_scoq, m); 1360 UBT_NG_UNLOCK(sc); 1361 1362 if (m == NULL) 1363 break; 1364 } 1365 1366 n = min(space, m->m_pkthdr.len); 1367 if (n > 0) { 1368 usbd_m_copy_in(pc, offset, m,0, n); 1369 m_adj(m, n); 1370 1371 offset += n; 1372 space -= n; 1373 } 1374 1375 if (m->m_pkthdr.len == 0) 1376 NG_FREE_M(m); /* sets m = NULL */ 1377 } 1378 1379 /* Put whatever is left from mbuf back on queue */ 1380 if (m != NULL) { 1381 UBT_NG_LOCK(sc); 1382 NG_BT_MBUFQ_PREPEND(&sc->sc_scoq, m); 1383 UBT_NG_UNLOCK(sc); 1384 } 1385 1386 /* 1387 * Calculate sizes for isoc frames. 1388 * Note that offset could be 0 at this point (i.e. we have 1389 * nothing to send). That is fine, as we have isoc. transfers 1390 * going in both directions all the time. In this case it 1391 * would be just empty isoc. transfer. 1392 */ 1393 1394 for (n = 0; n < nframes; n ++) { 1395 usbd_xfer_set_frame_len(xfer, n, 1396 min(offset, usbd_xfer_max_framelen(xfer))); 1397 offset -= usbd_xfer_frame_len(xfer, n); 1398 } 1399 1400 usbd_transfer_submit(xfer); 1401 break; 1402 1403 default: /* Error */ 1404 if (error != USB_ERR_CANCELLED) { 1405 UBT_STAT_OERROR(sc); 1406 goto send_next; 1407 } 1408 1409 /* transfer cancelled */ 1410 break; 1411 } 1412 } 1413 1414 /* 1415 * Utility function to forward provided mbuf upstream (i.e. up the stack). 1416 * Modifies value of the mbuf pointer (sets it to NULL). 1417 * Save to call from any context. 1418 */ 1419 1420 static int 1421 ubt_fwd_mbuf_up(ubt_softc_p sc, struct mbuf **m) 1422 { 1423 hook_p hook; 1424 int error; 1425 1426 /* 1427 * Close the race with Netgraph hook newhook/disconnect methods. 1428 * Save the hook pointer atomically. Two cases are possible: 1429 * 1430 * 1) The hook pointer is NULL. It means disconnect method got 1431 * there first. In this case we are done. 1432 * 1433 * 2) The hook pointer is not NULL. It means that hook pointer 1434 * could be either in valid or invalid (i.e. in the process 1435 * of disconnect) state. In any case grab an extra reference 1436 * to protect the hook pointer. 1437 * 1438 * It is ok to pass hook in invalid state to NG_SEND_DATA_ONLY() as 1439 * it checks for it. Drop extra reference after NG_SEND_DATA_ONLY(). 1440 */ 1441 1442 UBT_NG_LOCK(sc); 1443 if ((hook = sc->sc_hook) != NULL) 1444 NG_HOOK_REF(hook); 1445 UBT_NG_UNLOCK(sc); 1446 1447 if (hook == NULL) { 1448 NG_FREE_M(*m); 1449 return (ENETDOWN); 1450 } 1451 1452 NG_SEND_DATA_ONLY(error, hook, *m); 1453 NG_HOOK_UNREF(hook); 1454 1455 if (error != 0) 1456 UBT_STAT_IERROR(sc); 1457 1458 return (error); 1459 } /* ubt_fwd_mbuf_up */ 1460 1461 /**************************************************************************** 1462 **************************************************************************** 1463 ** Glue 1464 **************************************************************************** 1465 ****************************************************************************/ 1466 1467 /* 1468 * Schedule glue task. Should be called with sc_ng_mtx held. 1469 * Netgraph context. 1470 */ 1471 1472 static void 1473 ubt_task_schedule(ubt_softc_p sc, int action) 1474 { 1475 mtx_assert(&sc->sc_ng_mtx, MA_OWNED); 1476 1477 /* 1478 * Try to handle corner case when "start all" and "stop all" 1479 * actions can both be set before task is executed. 1480 * 1481 * The rules are 1482 * 1483 * sc_task_flags action new sc_task_flags 1484 * ------------------------------------------------------ 1485 * 0 start start 1486 * 0 stop stop 1487 * start start start 1488 * start stop stop 1489 * stop start stop|start 1490 * stop stop stop 1491 * stop|start start stop|start 1492 * stop|start stop stop 1493 */ 1494 1495 if (action != 0) { 1496 if ((action & UBT_FLAG_T_STOP_ALL) != 0) 1497 sc->sc_task_flags &= ~UBT_FLAG_T_START_ALL; 1498 1499 sc->sc_task_flags |= action; 1500 } 1501 1502 if (sc->sc_task_flags & UBT_FLAG_T_PENDING) 1503 return; 1504 1505 if (taskqueue_enqueue(taskqueue_swi, &sc->sc_task) == 0) { 1506 sc->sc_task_flags |= UBT_FLAG_T_PENDING; 1507 return; 1508 } 1509 1510 /* XXX: i think this should never happen */ 1511 } /* ubt_task_schedule */ 1512 1513 /* 1514 * Glue task. Examines sc_task_flags and does things depending on it. 1515 * Taskqueue context. 1516 */ 1517 1518 static void 1519 ubt_task(void *context, int pending) 1520 { 1521 ubt_softc_p sc = context; 1522 int task_flags, i; 1523 1524 UBT_NG_LOCK(sc); 1525 task_flags = sc->sc_task_flags; 1526 sc->sc_task_flags = 0; 1527 UBT_NG_UNLOCK(sc); 1528 1529 /* 1530 * Stop all USB transfers synchronously. 1531 * Stop interface #0 and #1 transfers at the same time and in the 1532 * same loop. usbd_transfer_drain() will do appropriate locking. 1533 */ 1534 1535 if (task_flags & UBT_FLAG_T_STOP_ALL) 1536 for (i = 0; i < UBT_N_TRANSFER; i ++) 1537 usbd_transfer_drain(sc->sc_xfer[i]); 1538 1539 /* Start incoming interrupt and bulk, and all isoc. USB transfers */ 1540 if (task_flags & UBT_FLAG_T_START_ALL) { 1541 /* 1542 * Interface #0 1543 */ 1544 1545 mtx_lock(&sc->sc_if_mtx); 1546 1547 ubt_xfer_start(sc, UBT_IF_0_INTR_DT_RD); 1548 ubt_xfer_start(sc, UBT_IF_0_BULK_DT_RD); 1549 1550 /* 1551 * Interface #1 1552 * Start both read and write isoc. transfers by default. 1553 * Get them going all the time even if we have nothing 1554 * to send to avoid any delays. 1555 */ 1556 1557 ubt_xfer_start(sc, UBT_IF_1_ISOC_DT_RD1); 1558 ubt_xfer_start(sc, UBT_IF_1_ISOC_DT_RD2); 1559 ubt_xfer_start(sc, UBT_IF_1_ISOC_DT_WR1); 1560 ubt_xfer_start(sc, UBT_IF_1_ISOC_DT_WR2); 1561 1562 mtx_unlock(&sc->sc_if_mtx); 1563 } 1564 1565 /* Start outgoing control transfer */ 1566 if (task_flags & UBT_FLAG_T_START_CTRL) { 1567 mtx_lock(&sc->sc_if_mtx); 1568 ubt_xfer_start(sc, UBT_IF_0_CTRL_DT_WR); 1569 mtx_unlock(&sc->sc_if_mtx); 1570 } 1571 1572 /* Start outgoing bulk transfer */ 1573 if (task_flags & UBT_FLAG_T_START_BULK) { 1574 mtx_lock(&sc->sc_if_mtx); 1575 ubt_xfer_start(sc, UBT_IF_0_BULK_DT_WR); 1576 mtx_unlock(&sc->sc_if_mtx); 1577 } 1578 } /* ubt_task */ 1579 1580 /**************************************************************************** 1581 **************************************************************************** 1582 ** Netgraph specific 1583 **************************************************************************** 1584 ****************************************************************************/ 1585 1586 /* 1587 * Netgraph node constructor. Do not allow to create node of this type. 1588 * Netgraph context. 1589 */ 1590 1591 static int 1592 ng_ubt_constructor(node_p node) 1593 { 1594 return (EINVAL); 1595 } /* ng_ubt_constructor */ 1596 1597 /* 1598 * Netgraph node destructor. Destroy node only when device has been detached. 1599 * Netgraph context. 1600 */ 1601 1602 static int 1603 ng_ubt_shutdown(node_p node) 1604 { 1605 if (node->nd_flags & NGF_REALLY_DIE) { 1606 /* 1607 * We came here because the USB device is being 1608 * detached, so stop being persistent. 1609 */ 1610 NG_NODE_SET_PRIVATE(node, NULL); 1611 NG_NODE_UNREF(node); 1612 } else 1613 NG_NODE_REVIVE(node); /* tell ng_rmnode we are persisant */ 1614 1615 return (0); 1616 } /* ng_ubt_shutdown */ 1617 1618 /* 1619 * Create new hook. There can only be one. 1620 * Netgraph context. 1621 */ 1622 1623 static int 1624 ng_ubt_newhook(node_p node, hook_p hook, char const *name) 1625 { 1626 struct ubt_softc *sc = NG_NODE_PRIVATE(node); 1627 1628 if (strcmp(name, NG_UBT_HOOK) != 0) 1629 return (EINVAL); 1630 1631 UBT_NG_LOCK(sc); 1632 if (sc->sc_hook != NULL) { 1633 UBT_NG_UNLOCK(sc); 1634 1635 return (EISCONN); 1636 } 1637 1638 sc->sc_hook = hook; 1639 UBT_NG_UNLOCK(sc); 1640 1641 return (0); 1642 } /* ng_ubt_newhook */ 1643 1644 /* 1645 * Connect hook. Start incoming USB transfers. 1646 * Netgraph context. 1647 */ 1648 1649 static int 1650 ng_ubt_connect(hook_p hook) 1651 { 1652 struct ubt_softc *sc = NG_NODE_PRIVATE(NG_HOOK_NODE(hook)); 1653 1654 NG_HOOK_FORCE_QUEUE(NG_HOOK_PEER(hook)); 1655 1656 UBT_NG_LOCK(sc); 1657 ubt_task_schedule(sc, UBT_FLAG_T_START_ALL); 1658 UBT_NG_UNLOCK(sc); 1659 1660 return (0); 1661 } /* ng_ubt_connect */ 1662 1663 /* 1664 * Disconnect hook. 1665 * Netgraph context. 1666 */ 1667 1668 static int 1669 ng_ubt_disconnect(hook_p hook) 1670 { 1671 struct ubt_softc *sc = NG_NODE_PRIVATE(NG_HOOK_NODE(hook)); 1672 1673 UBT_NG_LOCK(sc); 1674 1675 if (hook != sc->sc_hook) { 1676 UBT_NG_UNLOCK(sc); 1677 1678 return (EINVAL); 1679 } 1680 1681 sc->sc_hook = NULL; 1682 1683 /* Kick off task to stop all USB xfers */ 1684 ubt_task_schedule(sc, UBT_FLAG_T_STOP_ALL); 1685 1686 /* Drain queues */ 1687 NG_BT_MBUFQ_DRAIN(&sc->sc_cmdq); 1688 NG_BT_MBUFQ_DRAIN(&sc->sc_aclq); 1689 NG_BT_MBUFQ_DRAIN(&sc->sc_scoq); 1690 1691 UBT_NG_UNLOCK(sc); 1692 1693 return (0); 1694 } /* ng_ubt_disconnect */ 1695 1696 /* 1697 * Process control message. 1698 * Netgraph context. 1699 */ 1700 1701 static int 1702 ng_ubt_rcvmsg(node_p node, item_p item, hook_p lasthook) 1703 { 1704 struct ubt_softc *sc = NG_NODE_PRIVATE(node); 1705 struct ng_mesg *msg, *rsp = NULL; 1706 struct ng_bt_mbufq *q; 1707 int error = 0, queue, qlen; 1708 1709 NGI_GET_MSG(item, msg); 1710 1711 switch (msg->header.typecookie) { 1712 case NGM_GENERIC_COOKIE: 1713 switch (msg->header.cmd) { 1714 case NGM_TEXT_STATUS: 1715 NG_MKRESPONSE(rsp, msg, NG_TEXTRESPONSE, M_NOWAIT); 1716 if (rsp == NULL) { 1717 error = ENOMEM; 1718 break; 1719 } 1720 1721 snprintf(rsp->data, NG_TEXTRESPONSE, 1722 "Hook: %s\n" \ 1723 "Task flags: %#x\n" \ 1724 "Debug: %d\n" \ 1725 "CMD queue: [have:%d,max:%d]\n" \ 1726 "ACL queue: [have:%d,max:%d]\n" \ 1727 "SCO queue: [have:%d,max:%d]", 1728 (sc->sc_hook != NULL) ? NG_UBT_HOOK : "", 1729 sc->sc_task_flags, 1730 sc->sc_debug, 1731 sc->sc_cmdq.len, 1732 sc->sc_cmdq.maxlen, 1733 sc->sc_aclq.len, 1734 sc->sc_aclq.maxlen, 1735 sc->sc_scoq.len, 1736 sc->sc_scoq.maxlen); 1737 break; 1738 1739 default: 1740 error = EINVAL; 1741 break; 1742 } 1743 break; 1744 1745 case NGM_UBT_COOKIE: 1746 switch (msg->header.cmd) { 1747 case NGM_UBT_NODE_SET_DEBUG: 1748 if (msg->header.arglen != sizeof(ng_ubt_node_debug_ep)){ 1749 error = EMSGSIZE; 1750 break; 1751 } 1752 1753 sc->sc_debug = *((ng_ubt_node_debug_ep *) (msg->data)); 1754 break; 1755 1756 case NGM_UBT_NODE_GET_DEBUG: 1757 NG_MKRESPONSE(rsp, msg, sizeof(ng_ubt_node_debug_ep), 1758 M_NOWAIT); 1759 if (rsp == NULL) { 1760 error = ENOMEM; 1761 break; 1762 } 1763 1764 *((ng_ubt_node_debug_ep *) (rsp->data)) = sc->sc_debug; 1765 break; 1766 1767 case NGM_UBT_NODE_SET_QLEN: 1768 if (msg->header.arglen != sizeof(ng_ubt_node_qlen_ep)) { 1769 error = EMSGSIZE; 1770 break; 1771 } 1772 1773 queue = ((ng_ubt_node_qlen_ep *) (msg->data))->queue; 1774 qlen = ((ng_ubt_node_qlen_ep *) (msg->data))->qlen; 1775 1776 switch (queue) { 1777 case NGM_UBT_NODE_QUEUE_CMD: 1778 q = &sc->sc_cmdq; 1779 break; 1780 1781 case NGM_UBT_NODE_QUEUE_ACL: 1782 q = &sc->sc_aclq; 1783 break; 1784 1785 case NGM_UBT_NODE_QUEUE_SCO: 1786 q = &sc->sc_scoq; 1787 break; 1788 1789 default: 1790 error = EINVAL; 1791 goto done; 1792 /* NOT REACHED */ 1793 } 1794 1795 q->maxlen = qlen; 1796 break; 1797 1798 case NGM_UBT_NODE_GET_QLEN: 1799 if (msg->header.arglen != sizeof(ng_ubt_node_qlen_ep)) { 1800 error = EMSGSIZE; 1801 break; 1802 } 1803 1804 queue = ((ng_ubt_node_qlen_ep *) (msg->data))->queue; 1805 1806 switch (queue) { 1807 case NGM_UBT_NODE_QUEUE_CMD: 1808 q = &sc->sc_cmdq; 1809 break; 1810 1811 case NGM_UBT_NODE_QUEUE_ACL: 1812 q = &sc->sc_aclq; 1813 break; 1814 1815 case NGM_UBT_NODE_QUEUE_SCO: 1816 q = &sc->sc_scoq; 1817 break; 1818 1819 default: 1820 error = EINVAL; 1821 goto done; 1822 /* NOT REACHED */ 1823 } 1824 1825 NG_MKRESPONSE(rsp, msg, sizeof(ng_ubt_node_qlen_ep), 1826 M_NOWAIT); 1827 if (rsp == NULL) { 1828 error = ENOMEM; 1829 break; 1830 } 1831 1832 ((ng_ubt_node_qlen_ep *) (rsp->data))->queue = queue; 1833 ((ng_ubt_node_qlen_ep *) (rsp->data))->qlen = q->maxlen; 1834 break; 1835 1836 case NGM_UBT_NODE_GET_STAT: 1837 NG_MKRESPONSE(rsp, msg, sizeof(ng_ubt_node_stat_ep), 1838 M_NOWAIT); 1839 if (rsp == NULL) { 1840 error = ENOMEM; 1841 break; 1842 } 1843 1844 bcopy(&sc->sc_stat, rsp->data, 1845 sizeof(ng_ubt_node_stat_ep)); 1846 break; 1847 1848 case NGM_UBT_NODE_RESET_STAT: 1849 UBT_STAT_RESET(sc); 1850 break; 1851 1852 default: 1853 error = EINVAL; 1854 break; 1855 } 1856 break; 1857 1858 default: 1859 error = EINVAL; 1860 break; 1861 } 1862 done: 1863 NG_RESPOND_MSG(error, node, item, rsp); 1864 NG_FREE_MSG(msg); 1865 1866 return (error); 1867 } /* ng_ubt_rcvmsg */ 1868 1869 /* 1870 * Process data. 1871 * Netgraph context. 1872 */ 1873 1874 static int 1875 ng_ubt_rcvdata(hook_p hook, item_p item) 1876 { 1877 struct ubt_softc *sc = NG_NODE_PRIVATE(NG_HOOK_NODE(hook)); 1878 struct mbuf *m; 1879 struct ng_bt_mbufq *q; 1880 int action, error = 0; 1881 1882 if (hook != sc->sc_hook) { 1883 error = EINVAL; 1884 goto done; 1885 } 1886 1887 /* Deatch mbuf and get HCI frame type */ 1888 NGI_GET_M(item, m); 1889 1890 /* 1891 * Minimal size of the HCI frame is 4 bytes: 1 byte frame type, 1892 * 2 bytes connection handle and at least 1 byte of length. 1893 * Panic on data frame that has size smaller than 4 bytes (it 1894 * should not happen) 1895 */ 1896 1897 if (m->m_pkthdr.len < 4) 1898 panic("HCI frame size is too small! pktlen=%d\n", 1899 m->m_pkthdr.len); 1900 1901 /* Process HCI frame */ 1902 switch (*mtod(m, uint8_t *)) { /* XXX call m_pullup ? */ 1903 case NG_HCI_CMD_PKT: 1904 if (m->m_pkthdr.len - 1 > (int)UBT_CTRL_BUFFER_SIZE) 1905 panic("HCI command frame size is too big! " \ 1906 "buffer size=%zd, packet len=%d\n", 1907 UBT_CTRL_BUFFER_SIZE, m->m_pkthdr.len); 1908 1909 q = &sc->sc_cmdq; 1910 action = UBT_FLAG_T_START_CTRL; 1911 break; 1912 1913 case NG_HCI_ACL_DATA_PKT: 1914 if (m->m_pkthdr.len - 1 > UBT_BULK_WRITE_BUFFER_SIZE) 1915 panic("ACL data frame size is too big! " \ 1916 "buffer size=%d, packet len=%d\n", 1917 UBT_BULK_WRITE_BUFFER_SIZE, m->m_pkthdr.len); 1918 1919 q = &sc->sc_aclq; 1920 action = UBT_FLAG_T_START_BULK; 1921 break; 1922 1923 case NG_HCI_SCO_DATA_PKT: 1924 q = &sc->sc_scoq; 1925 action = 0; 1926 break; 1927 1928 default: 1929 UBT_ERR(sc, "Dropping unsupported HCI frame, type=0x%02x, " \ 1930 "pktlen=%d\n", *mtod(m, uint8_t *), m->m_pkthdr.len); 1931 1932 NG_FREE_M(m); 1933 error = EINVAL; 1934 goto done; 1935 /* NOT REACHED */ 1936 } 1937 1938 UBT_NG_LOCK(sc); 1939 if (NG_BT_MBUFQ_FULL(q)) { 1940 NG_BT_MBUFQ_DROP(q); 1941 UBT_NG_UNLOCK(sc); 1942 1943 UBT_ERR(sc, "Dropping HCI frame 0x%02x, len=%d. Queue full\n", 1944 *mtod(m, uint8_t *), m->m_pkthdr.len); 1945 1946 NG_FREE_M(m); 1947 } else { 1948 /* Loose HCI packet type, enqueue mbuf and kick off task */ 1949 m_adj(m, sizeof(uint8_t)); 1950 NG_BT_MBUFQ_ENQUEUE(q, m); 1951 ubt_task_schedule(sc, action); 1952 UBT_NG_UNLOCK(sc); 1953 } 1954 done: 1955 NG_FREE_ITEM(item); 1956 1957 return (error); 1958 } /* ng_ubt_rcvdata */ 1959 1960 /**************************************************************************** 1961 **************************************************************************** 1962 ** Module 1963 **************************************************************************** 1964 ****************************************************************************/ 1965 1966 /* 1967 * Load/Unload the driver module 1968 */ 1969 1970 static int 1971 ubt_modevent(module_t mod, int event, void *data) 1972 { 1973 int error; 1974 1975 switch (event) { 1976 case MOD_LOAD: 1977 error = ng_newtype(&typestruct); 1978 if (error != 0) 1979 printf("%s: Could not register Netgraph node type, " \ 1980 "error=%d\n", NG_UBT_NODE_TYPE, error); 1981 break; 1982 1983 case MOD_UNLOAD: 1984 error = ng_rmtype(&typestruct); 1985 break; 1986 1987 default: 1988 error = EOPNOTSUPP; 1989 break; 1990 } 1991 1992 return (error); 1993 } /* ubt_modevent */ 1994 1995 static device_method_t ubt_methods[] = 1996 { 1997 DEVMETHOD(device_probe, ubt_probe), 1998 DEVMETHOD(device_attach, ubt_attach), 1999 DEVMETHOD(device_detach, ubt_detach), 2000 DEVMETHOD_END 2001 }; 2002 2003 driver_t ubt_driver = 2004 { 2005 .name = "ubt", 2006 .methods = ubt_methods, 2007 .size = sizeof(struct ubt_softc), 2008 }; 2009 2010 DRIVER_MODULE(ng_ubt, uhub, ubt_driver, ubt_modevent, 0); 2011 MODULE_VERSION(ng_ubt, NG_BLUETOOTH_VERSION); 2012 MODULE_DEPEND(ng_ubt, netgraph, NG_ABI_VERSION, NG_ABI_VERSION, NG_ABI_VERSION); 2013 MODULE_DEPEND(ng_ubt, ng_hci, NG_BLUETOOTH_VERSION, NG_BLUETOOTH_VERSION, NG_BLUETOOTH_VERSION); 2014 MODULE_DEPEND(ng_ubt, ng_bluetooth, NG_BLUETOOTH_VERSION, NG_BLUETOOTH_VERSION, NG_BLUETOOTH_VERSION); 2015 MODULE_DEPEND(ng_ubt, usb, 1, 1, 1); 2016 USB_PNP_HOST_INFO(ubt_devs); 2017