1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * HID driver for Logitech Unifying receivers 4 * 5 * Copyright (c) 2011 Logitech 6 */ 7 8 9 10 #include <linux/device.h> 11 #include <linux/hid.h> 12 #include <linux/module.h> 13 #include <linux/kfifo.h> 14 #include <linux/delay.h> 15 #include <linux/usb.h> /* For to_usb_interface for kvm extra intf check */ 16 #include <asm/unaligned.h> 17 #include "hid-ids.h" 18 19 #define DJ_MAX_PAIRED_DEVICES 6 20 #define DJ_MAX_NUMBER_NOTIFS 8 21 #define DJ_RECEIVER_INDEX 0 22 #define DJ_DEVICE_INDEX_MIN 1 23 #define DJ_DEVICE_INDEX_MAX 6 24 25 #define DJREPORT_SHORT_LENGTH 15 26 #define DJREPORT_LONG_LENGTH 32 27 28 #define REPORT_ID_DJ_SHORT 0x20 29 #define REPORT_ID_DJ_LONG 0x21 30 31 #define REPORT_ID_HIDPP_SHORT 0x10 32 #define REPORT_ID_HIDPP_LONG 0x11 33 #define REPORT_ID_HIDPP_VERY_LONG 0x12 34 35 #define HIDPP_REPORT_SHORT_LENGTH 7 36 #define HIDPP_REPORT_LONG_LENGTH 20 37 38 #define HIDPP_RECEIVER_INDEX 0xff 39 40 #define REPORT_TYPE_RFREPORT_FIRST 0x01 41 #define REPORT_TYPE_RFREPORT_LAST 0x1F 42 43 /* Command Switch to DJ mode */ 44 #define REPORT_TYPE_CMD_SWITCH 0x80 45 #define CMD_SWITCH_PARAM_DEVBITFIELD 0x00 46 #define CMD_SWITCH_PARAM_TIMEOUT_SECONDS 0x01 47 #define TIMEOUT_NO_KEEPALIVE 0x00 48 49 /* Command to Get the list of Paired devices */ 50 #define REPORT_TYPE_CMD_GET_PAIRED_DEVICES 0x81 51 52 /* Device Paired Notification */ 53 #define REPORT_TYPE_NOTIF_DEVICE_PAIRED 0x41 54 #define SPFUNCTION_MORE_NOTIF_EXPECTED 0x01 55 #define SPFUNCTION_DEVICE_LIST_EMPTY 0x02 56 #define DEVICE_PAIRED_PARAM_SPFUNCTION 0x00 57 #define DEVICE_PAIRED_PARAM_EQUAD_ID_LSB 0x01 58 #define DEVICE_PAIRED_PARAM_EQUAD_ID_MSB 0x02 59 #define DEVICE_PAIRED_RF_REPORT_TYPE 0x03 60 61 /* Device Un-Paired Notification */ 62 #define REPORT_TYPE_NOTIF_DEVICE_UNPAIRED 0x40 63 64 /* Connection Status Notification */ 65 #define REPORT_TYPE_NOTIF_CONNECTION_STATUS 0x42 66 #define CONNECTION_STATUS_PARAM_STATUS 0x00 67 #define STATUS_LINKLOSS 0x01 68 69 /* Error Notification */ 70 #define REPORT_TYPE_NOTIF_ERROR 0x7F 71 #define NOTIF_ERROR_PARAM_ETYPE 0x00 72 #define ETYPE_KEEPALIVE_TIMEOUT 0x01 73 74 /* supported DJ HID && RF report types */ 75 #define REPORT_TYPE_KEYBOARD 0x01 76 #define REPORT_TYPE_MOUSE 0x02 77 #define REPORT_TYPE_CONSUMER_CONTROL 0x03 78 #define REPORT_TYPE_SYSTEM_CONTROL 0x04 79 #define REPORT_TYPE_MEDIA_CENTER 0x08 80 #define REPORT_TYPE_LEDS 0x0E 81 82 /* RF Report types bitfield */ 83 #define STD_KEYBOARD BIT(1) 84 #define STD_MOUSE BIT(2) 85 #define MULTIMEDIA BIT(3) 86 #define POWER_KEYS BIT(4) 87 #define MEDIA_CENTER BIT(8) 88 #define KBD_LEDS BIT(14) 89 /* Fake (bitnr > NUMBER_OF_HID_REPORTS) bit to track HID++ capability */ 90 #define HIDPP BIT_ULL(63) 91 92 /* HID++ Device Connected Notification */ 93 #define REPORT_TYPE_NOTIF_DEVICE_CONNECTED 0x41 94 #define HIDPP_PARAM_PROTO_TYPE 0x00 95 #define HIDPP_PARAM_DEVICE_INFO 0x01 96 #define HIDPP_PARAM_EQUAD_LSB 0x02 97 #define HIDPP_PARAM_EQUAD_MSB 0x03 98 #define HIDPP_PARAM_27MHZ_DEVID 0x03 99 #define HIDPP_DEVICE_TYPE_MASK GENMASK(3, 0) 100 #define HIDPP_LINK_STATUS_MASK BIT(6) 101 #define HIDPP_MANUFACTURER_MASK BIT(7) 102 103 #define HIDPP_DEVICE_TYPE_KEYBOARD 1 104 #define HIDPP_DEVICE_TYPE_MOUSE 2 105 106 #define HIDPP_SET_REGISTER 0x80 107 #define HIDPP_GET_LONG_REGISTER 0x83 108 #define HIDPP_REG_CONNECTION_STATE 0x02 109 #define HIDPP_REG_PAIRING_INFORMATION 0xB5 110 #define HIDPP_PAIRING_INFORMATION 0x20 111 #define HIDPP_FAKE_DEVICE_ARRIVAL 0x02 112 113 enum recvr_type { 114 recvr_type_dj, 115 recvr_type_hidpp, 116 recvr_type_gaming_hidpp, 117 recvr_type_mouse_only, 118 recvr_type_27mhz, 119 recvr_type_bluetooth, 120 }; 121 122 struct dj_report { 123 u8 report_id; 124 u8 device_index; 125 u8 report_type; 126 u8 report_params[DJREPORT_SHORT_LENGTH - 3]; 127 }; 128 129 struct hidpp_event { 130 u8 report_id; 131 u8 device_index; 132 u8 sub_id; 133 u8 params[HIDPP_REPORT_LONG_LENGTH - 3U]; 134 } __packed; 135 136 struct dj_receiver_dev { 137 struct hid_device *mouse; 138 struct hid_device *keyboard; 139 struct hid_device *hidpp; 140 struct dj_device *paired_dj_devices[DJ_MAX_PAIRED_DEVICES + 141 DJ_DEVICE_INDEX_MIN]; 142 struct list_head list; 143 struct kref kref; 144 struct work_struct work; 145 struct kfifo notif_fifo; 146 unsigned long last_query; /* in jiffies */ 147 bool ready; 148 enum recvr_type type; 149 unsigned int unnumbered_application; 150 spinlock_t lock; 151 }; 152 153 struct dj_device { 154 struct hid_device *hdev; 155 struct dj_receiver_dev *dj_receiver_dev; 156 u64 reports_supported; 157 u8 device_index; 158 }; 159 160 #define WORKITEM_TYPE_EMPTY 0 161 #define WORKITEM_TYPE_PAIRED 1 162 #define WORKITEM_TYPE_UNPAIRED 2 163 #define WORKITEM_TYPE_UNKNOWN 255 164 165 struct dj_workitem { 166 u8 type; /* WORKITEM_TYPE_* */ 167 u8 device_index; 168 u8 device_type; 169 u8 quad_id_msb; 170 u8 quad_id_lsb; 171 u64 reports_supported; 172 }; 173 174 /* Keyboard descriptor (1) */ 175 static const char kbd_descriptor[] = { 176 0x05, 0x01, /* USAGE_PAGE (generic Desktop) */ 177 0x09, 0x06, /* USAGE (Keyboard) */ 178 0xA1, 0x01, /* COLLECTION (Application) */ 179 0x85, 0x01, /* REPORT_ID (1) */ 180 0x95, 0x08, /* REPORT_COUNT (8) */ 181 0x75, 0x01, /* REPORT_SIZE (1) */ 182 0x15, 0x00, /* LOGICAL_MINIMUM (0) */ 183 0x25, 0x01, /* LOGICAL_MAXIMUM (1) */ 184 0x05, 0x07, /* USAGE_PAGE (Keyboard) */ 185 0x19, 0xE0, /* USAGE_MINIMUM (Left Control) */ 186 0x29, 0xE7, /* USAGE_MAXIMUM (Right GUI) */ 187 0x81, 0x02, /* INPUT (Data,Var,Abs) */ 188 0x95, 0x06, /* REPORT_COUNT (6) */ 189 0x75, 0x08, /* REPORT_SIZE (8) */ 190 0x15, 0x00, /* LOGICAL_MINIMUM (0) */ 191 0x26, 0xFF, 0x00, /* LOGICAL_MAXIMUM (255) */ 192 0x05, 0x07, /* USAGE_PAGE (Keyboard) */ 193 0x19, 0x00, /* USAGE_MINIMUM (no event) */ 194 0x2A, 0xFF, 0x00, /* USAGE_MAXIMUM (reserved) */ 195 0x81, 0x00, /* INPUT (Data,Ary,Abs) */ 196 0x85, 0x0e, /* REPORT_ID (14) */ 197 0x05, 0x08, /* USAGE PAGE (LED page) */ 198 0x95, 0x05, /* REPORT COUNT (5) */ 199 0x75, 0x01, /* REPORT SIZE (1) */ 200 0x15, 0x00, /* LOGICAL_MINIMUM (0) */ 201 0x25, 0x01, /* LOGICAL_MAXIMUM (1) */ 202 0x19, 0x01, /* USAGE MINIMUM (1) */ 203 0x29, 0x05, /* USAGE MAXIMUM (5) */ 204 0x91, 0x02, /* OUTPUT (Data, Variable, Absolute) */ 205 0x95, 0x01, /* REPORT COUNT (1) */ 206 0x75, 0x03, /* REPORT SIZE (3) */ 207 0x91, 0x01, /* OUTPUT (Constant) */ 208 0xC0 209 }; 210 211 /* Mouse descriptor (2) */ 212 static const char mse_descriptor[] = { 213 0x05, 0x01, /* USAGE_PAGE (Generic Desktop) */ 214 0x09, 0x02, /* USAGE (Mouse) */ 215 0xA1, 0x01, /* COLLECTION (Application) */ 216 0x85, 0x02, /* REPORT_ID = 2 */ 217 0x09, 0x01, /* USAGE (pointer) */ 218 0xA1, 0x00, /* COLLECTION (physical) */ 219 0x05, 0x09, /* USAGE_PAGE (buttons) */ 220 0x19, 0x01, /* USAGE_MIN (1) */ 221 0x29, 0x10, /* USAGE_MAX (16) */ 222 0x15, 0x00, /* LOGICAL_MIN (0) */ 223 0x25, 0x01, /* LOGICAL_MAX (1) */ 224 0x95, 0x10, /* REPORT_COUNT (16) */ 225 0x75, 0x01, /* REPORT_SIZE (1) */ 226 0x81, 0x02, /* INPUT (data var abs) */ 227 0x05, 0x01, /* USAGE_PAGE (generic desktop) */ 228 0x16, 0x01, 0xF8, /* LOGICAL_MIN (-2047) */ 229 0x26, 0xFF, 0x07, /* LOGICAL_MAX (2047) */ 230 0x75, 0x0C, /* REPORT_SIZE (12) */ 231 0x95, 0x02, /* REPORT_COUNT (2) */ 232 0x09, 0x30, /* USAGE (X) */ 233 0x09, 0x31, /* USAGE (Y) */ 234 0x81, 0x06, /* INPUT */ 235 0x15, 0x81, /* LOGICAL_MIN (-127) */ 236 0x25, 0x7F, /* LOGICAL_MAX (127) */ 237 0x75, 0x08, /* REPORT_SIZE (8) */ 238 0x95, 0x01, /* REPORT_COUNT (1) */ 239 0x09, 0x38, /* USAGE (wheel) */ 240 0x81, 0x06, /* INPUT */ 241 0x05, 0x0C, /* USAGE_PAGE(consumer) */ 242 0x0A, 0x38, 0x02, /* USAGE(AC Pan) */ 243 0x95, 0x01, /* REPORT_COUNT (1) */ 244 0x81, 0x06, /* INPUT */ 245 0xC0, /* END_COLLECTION */ 246 0xC0, /* END_COLLECTION */ 247 }; 248 249 /* Mouse descriptor (2) for 27 MHz receiver, only 8 buttons */ 250 static const char mse_27mhz_descriptor[] = { 251 0x05, 0x01, /* USAGE_PAGE (Generic Desktop) */ 252 0x09, 0x02, /* USAGE (Mouse) */ 253 0xA1, 0x01, /* COLLECTION (Application) */ 254 0x85, 0x02, /* REPORT_ID = 2 */ 255 0x09, 0x01, /* USAGE (pointer) */ 256 0xA1, 0x00, /* COLLECTION (physical) */ 257 0x05, 0x09, /* USAGE_PAGE (buttons) */ 258 0x19, 0x01, /* USAGE_MIN (1) */ 259 0x29, 0x08, /* USAGE_MAX (8) */ 260 0x15, 0x00, /* LOGICAL_MIN (0) */ 261 0x25, 0x01, /* LOGICAL_MAX (1) */ 262 0x95, 0x08, /* REPORT_COUNT (8) */ 263 0x75, 0x01, /* REPORT_SIZE (1) */ 264 0x81, 0x02, /* INPUT (data var abs) */ 265 0x05, 0x01, /* USAGE_PAGE (generic desktop) */ 266 0x16, 0x01, 0xF8, /* LOGICAL_MIN (-2047) */ 267 0x26, 0xFF, 0x07, /* LOGICAL_MAX (2047) */ 268 0x75, 0x0C, /* REPORT_SIZE (12) */ 269 0x95, 0x02, /* REPORT_COUNT (2) */ 270 0x09, 0x30, /* USAGE (X) */ 271 0x09, 0x31, /* USAGE (Y) */ 272 0x81, 0x06, /* INPUT */ 273 0x15, 0x81, /* LOGICAL_MIN (-127) */ 274 0x25, 0x7F, /* LOGICAL_MAX (127) */ 275 0x75, 0x08, /* REPORT_SIZE (8) */ 276 0x95, 0x01, /* REPORT_COUNT (1) */ 277 0x09, 0x38, /* USAGE (wheel) */ 278 0x81, 0x06, /* INPUT */ 279 0x05, 0x0C, /* USAGE_PAGE(consumer) */ 280 0x0A, 0x38, 0x02, /* USAGE(AC Pan) */ 281 0x95, 0x01, /* REPORT_COUNT (1) */ 282 0x81, 0x06, /* INPUT */ 283 0xC0, /* END_COLLECTION */ 284 0xC0, /* END_COLLECTION */ 285 }; 286 287 /* Mouse descriptor (2) for Bluetooth receiver, low-res hwheel, 12 buttons */ 288 static const char mse_bluetooth_descriptor[] = { 289 0x05, 0x01, /* USAGE_PAGE (Generic Desktop) */ 290 0x09, 0x02, /* USAGE (Mouse) */ 291 0xA1, 0x01, /* COLLECTION (Application) */ 292 0x85, 0x02, /* REPORT_ID = 2 */ 293 0x09, 0x01, /* USAGE (pointer) */ 294 0xA1, 0x00, /* COLLECTION (physical) */ 295 0x05, 0x09, /* USAGE_PAGE (buttons) */ 296 0x19, 0x01, /* USAGE_MIN (1) */ 297 0x29, 0x08, /* USAGE_MAX (8) */ 298 0x15, 0x00, /* LOGICAL_MIN (0) */ 299 0x25, 0x01, /* LOGICAL_MAX (1) */ 300 0x95, 0x08, /* REPORT_COUNT (8) */ 301 0x75, 0x01, /* REPORT_SIZE (1) */ 302 0x81, 0x02, /* INPUT (data var abs) */ 303 0x05, 0x01, /* USAGE_PAGE (generic desktop) */ 304 0x16, 0x01, 0xF8, /* LOGICAL_MIN (-2047) */ 305 0x26, 0xFF, 0x07, /* LOGICAL_MAX (2047) */ 306 0x75, 0x0C, /* REPORT_SIZE (12) */ 307 0x95, 0x02, /* REPORT_COUNT (2) */ 308 0x09, 0x30, /* USAGE (X) */ 309 0x09, 0x31, /* USAGE (Y) */ 310 0x81, 0x06, /* INPUT */ 311 0x15, 0x81, /* LOGICAL_MIN (-127) */ 312 0x25, 0x7F, /* LOGICAL_MAX (127) */ 313 0x75, 0x08, /* REPORT_SIZE (8) */ 314 0x95, 0x01, /* REPORT_COUNT (1) */ 315 0x09, 0x38, /* USAGE (wheel) */ 316 0x81, 0x06, /* INPUT */ 317 0x05, 0x0C, /* USAGE_PAGE(consumer) */ 318 0x0A, 0x38, 0x02, /* USAGE(AC Pan) */ 319 0x15, 0xF9, /* LOGICAL_MIN (-7) */ 320 0x25, 0x07, /* LOGICAL_MAX (7) */ 321 0x75, 0x04, /* REPORT_SIZE (4) */ 322 0x95, 0x01, /* REPORT_COUNT (1) */ 323 0x81, 0x06, /* INPUT */ 324 0x05, 0x09, /* USAGE_PAGE (buttons) */ 325 0x19, 0x09, /* USAGE_MIN (9) */ 326 0x29, 0x0C, /* USAGE_MAX (12) */ 327 0x15, 0x00, /* LOGICAL_MIN (0) */ 328 0x25, 0x01, /* LOGICAL_MAX (1) */ 329 0x75, 0x01, /* REPORT_SIZE (1) */ 330 0x95, 0x04, /* REPORT_COUNT (4) */ 331 0x81, 0x06, /* INPUT */ 332 0xC0, /* END_COLLECTION */ 333 0xC0, /* END_COLLECTION */ 334 }; 335 336 /* Gaming Mouse descriptor (2) */ 337 static const char mse_high_res_descriptor[] = { 338 0x05, 0x01, /* USAGE_PAGE (Generic Desktop) */ 339 0x09, 0x02, /* USAGE (Mouse) */ 340 0xA1, 0x01, /* COLLECTION (Application) */ 341 0x85, 0x02, /* REPORT_ID = 2 */ 342 0x09, 0x01, /* USAGE (pointer) */ 343 0xA1, 0x00, /* COLLECTION (physical) */ 344 0x05, 0x09, /* USAGE_PAGE (buttons) */ 345 0x19, 0x01, /* USAGE_MIN (1) */ 346 0x29, 0x10, /* USAGE_MAX (16) */ 347 0x15, 0x00, /* LOGICAL_MIN (0) */ 348 0x25, 0x01, /* LOGICAL_MAX (1) */ 349 0x95, 0x10, /* REPORT_COUNT (16) */ 350 0x75, 0x01, /* REPORT_SIZE (1) */ 351 0x81, 0x02, /* INPUT (data var abs) */ 352 0x05, 0x01, /* USAGE_PAGE (generic desktop) */ 353 0x16, 0x01, 0x80, /* LOGICAL_MIN (-32767) */ 354 0x26, 0xFF, 0x7F, /* LOGICAL_MAX (32767) */ 355 0x75, 0x10, /* REPORT_SIZE (16) */ 356 0x95, 0x02, /* REPORT_COUNT (2) */ 357 0x09, 0x30, /* USAGE (X) */ 358 0x09, 0x31, /* USAGE (Y) */ 359 0x81, 0x06, /* INPUT */ 360 0x15, 0x81, /* LOGICAL_MIN (-127) */ 361 0x25, 0x7F, /* LOGICAL_MAX (127) */ 362 0x75, 0x08, /* REPORT_SIZE (8) */ 363 0x95, 0x01, /* REPORT_COUNT (1) */ 364 0x09, 0x38, /* USAGE (wheel) */ 365 0x81, 0x06, /* INPUT */ 366 0x05, 0x0C, /* USAGE_PAGE(consumer) */ 367 0x0A, 0x38, 0x02, /* USAGE(AC Pan) */ 368 0x95, 0x01, /* REPORT_COUNT (1) */ 369 0x81, 0x06, /* INPUT */ 370 0xC0, /* END_COLLECTION */ 371 0xC0, /* END_COLLECTION */ 372 }; 373 374 /* Consumer Control descriptor (3) */ 375 static const char consumer_descriptor[] = { 376 0x05, 0x0C, /* USAGE_PAGE (Consumer Devices) */ 377 0x09, 0x01, /* USAGE (Consumer Control) */ 378 0xA1, 0x01, /* COLLECTION (Application) */ 379 0x85, 0x03, /* REPORT_ID = 3 */ 380 0x75, 0x10, /* REPORT_SIZE (16) */ 381 0x95, 0x02, /* REPORT_COUNT (2) */ 382 0x15, 0x01, /* LOGICAL_MIN (1) */ 383 0x26, 0x8C, 0x02, /* LOGICAL_MAX (652) */ 384 0x19, 0x01, /* USAGE_MIN (1) */ 385 0x2A, 0x8C, 0x02, /* USAGE_MAX (652) */ 386 0x81, 0x00, /* INPUT (Data Ary Abs) */ 387 0xC0, /* END_COLLECTION */ 388 }; /* */ 389 390 /* System control descriptor (4) */ 391 static const char syscontrol_descriptor[] = { 392 0x05, 0x01, /* USAGE_PAGE (Generic Desktop) */ 393 0x09, 0x80, /* USAGE (System Control) */ 394 0xA1, 0x01, /* COLLECTION (Application) */ 395 0x85, 0x04, /* REPORT_ID = 4 */ 396 0x75, 0x02, /* REPORT_SIZE (2) */ 397 0x95, 0x01, /* REPORT_COUNT (1) */ 398 0x15, 0x01, /* LOGICAL_MIN (1) */ 399 0x25, 0x03, /* LOGICAL_MAX (3) */ 400 0x09, 0x82, /* USAGE (System Sleep) */ 401 0x09, 0x81, /* USAGE (System Power Down) */ 402 0x09, 0x83, /* USAGE (System Wake Up) */ 403 0x81, 0x60, /* INPUT (Data Ary Abs NPrf Null) */ 404 0x75, 0x06, /* REPORT_SIZE (6) */ 405 0x81, 0x03, /* INPUT (Cnst Var Abs) */ 406 0xC0, /* END_COLLECTION */ 407 }; 408 409 /* Media descriptor (8) */ 410 static const char media_descriptor[] = { 411 0x06, 0xbc, 0xff, /* Usage Page 0xffbc */ 412 0x09, 0x88, /* Usage 0x0088 */ 413 0xa1, 0x01, /* BeginCollection */ 414 0x85, 0x08, /* Report ID 8 */ 415 0x19, 0x01, /* Usage Min 0x0001 */ 416 0x29, 0xff, /* Usage Max 0x00ff */ 417 0x15, 0x01, /* Logical Min 1 */ 418 0x26, 0xff, 0x00, /* Logical Max 255 */ 419 0x75, 0x08, /* Report Size 8 */ 420 0x95, 0x01, /* Report Count 1 */ 421 0x81, 0x00, /* Input */ 422 0xc0, /* EndCollection */ 423 }; /* */ 424 425 /* HIDPP descriptor */ 426 static const char hidpp_descriptor[] = { 427 0x06, 0x00, 0xff, /* Usage Page (Vendor Defined Page 1) */ 428 0x09, 0x01, /* Usage (Vendor Usage 1) */ 429 0xa1, 0x01, /* Collection (Application) */ 430 0x85, 0x10, /* Report ID (16) */ 431 0x75, 0x08, /* Report Size (8) */ 432 0x95, 0x06, /* Report Count (6) */ 433 0x15, 0x00, /* Logical Minimum (0) */ 434 0x26, 0xff, 0x00, /* Logical Maximum (255) */ 435 0x09, 0x01, /* Usage (Vendor Usage 1) */ 436 0x81, 0x00, /* Input (Data,Arr,Abs) */ 437 0x09, 0x01, /* Usage (Vendor Usage 1) */ 438 0x91, 0x00, /* Output (Data,Arr,Abs) */ 439 0xc0, /* End Collection */ 440 0x06, 0x00, 0xff, /* Usage Page (Vendor Defined Page 1) */ 441 0x09, 0x02, /* Usage (Vendor Usage 2) */ 442 0xa1, 0x01, /* Collection (Application) */ 443 0x85, 0x11, /* Report ID (17) */ 444 0x75, 0x08, /* Report Size (8) */ 445 0x95, 0x13, /* Report Count (19) */ 446 0x15, 0x00, /* Logical Minimum (0) */ 447 0x26, 0xff, 0x00, /* Logical Maximum (255) */ 448 0x09, 0x02, /* Usage (Vendor Usage 2) */ 449 0x81, 0x00, /* Input (Data,Arr,Abs) */ 450 0x09, 0x02, /* Usage (Vendor Usage 2) */ 451 0x91, 0x00, /* Output (Data,Arr,Abs) */ 452 0xc0, /* End Collection */ 453 0x06, 0x00, 0xff, /* Usage Page (Vendor Defined Page 1) */ 454 0x09, 0x04, /* Usage (Vendor Usage 0x04) */ 455 0xa1, 0x01, /* Collection (Application) */ 456 0x85, 0x20, /* Report ID (32) */ 457 0x75, 0x08, /* Report Size (8) */ 458 0x95, 0x0e, /* Report Count (14) */ 459 0x15, 0x00, /* Logical Minimum (0) */ 460 0x26, 0xff, 0x00, /* Logical Maximum (255) */ 461 0x09, 0x41, /* Usage (Vendor Usage 0x41) */ 462 0x81, 0x00, /* Input (Data,Arr,Abs) */ 463 0x09, 0x41, /* Usage (Vendor Usage 0x41) */ 464 0x91, 0x00, /* Output (Data,Arr,Abs) */ 465 0x85, 0x21, /* Report ID (33) */ 466 0x95, 0x1f, /* Report Count (31) */ 467 0x15, 0x00, /* Logical Minimum (0) */ 468 0x26, 0xff, 0x00, /* Logical Maximum (255) */ 469 0x09, 0x42, /* Usage (Vendor Usage 0x42) */ 470 0x81, 0x00, /* Input (Data,Arr,Abs) */ 471 0x09, 0x42, /* Usage (Vendor Usage 0x42) */ 472 0x91, 0x00, /* Output (Data,Arr,Abs) */ 473 0xc0, /* End Collection */ 474 }; 475 476 /* Maximum size of all defined hid reports in bytes (including report id) */ 477 #define MAX_REPORT_SIZE 8 478 479 /* Make sure all descriptors are present here */ 480 #define MAX_RDESC_SIZE \ 481 (sizeof(kbd_descriptor) + \ 482 sizeof(mse_bluetooth_descriptor) + \ 483 sizeof(consumer_descriptor) + \ 484 sizeof(syscontrol_descriptor) + \ 485 sizeof(media_descriptor) + \ 486 sizeof(hidpp_descriptor)) 487 488 /* Number of possible hid report types that can be created by this driver. 489 * 490 * Right now, RF report types have the same report types (or report id's) 491 * than the hid report created from those RF reports. In the future 492 * this doesnt have to be true. 493 * 494 * For instance, RF report type 0x01 which has a size of 8 bytes, corresponds 495 * to hid report id 0x01, this is standard keyboard. Same thing applies to mice 496 * reports and consumer control, etc. If a new RF report is created, it doesn't 497 * has to have the same report id as its corresponding hid report, so an 498 * translation may have to take place for future report types. 499 */ 500 #define NUMBER_OF_HID_REPORTS 32 501 static const u8 hid_reportid_size_map[NUMBER_OF_HID_REPORTS] = { 502 [1] = 8, /* Standard keyboard */ 503 [2] = 8, /* Standard mouse */ 504 [3] = 5, /* Consumer control */ 505 [4] = 2, /* System control */ 506 [8] = 2, /* Media Center */ 507 }; 508 509 510 #define LOGITECH_DJ_INTERFACE_NUMBER 0x02 511 512 static struct hid_ll_driver logi_dj_ll_driver; 513 514 static int logi_dj_recv_query_paired_devices(struct dj_receiver_dev *djrcv_dev); 515 static void delayedwork_callback(struct work_struct *work); 516 517 static LIST_HEAD(dj_hdev_list); 518 static DEFINE_MUTEX(dj_hdev_list_lock); 519 520 /* 521 * dj/HID++ receivers are really a single logical entity, but for BIOS/Windows 522 * compatibility they have multiple USB interfaces. On HID++ receivers we need 523 * to listen for input reports on both interfaces. The functions below are used 524 * to create a single struct dj_receiver_dev for all interfaces belonging to 525 * a single USB-device / receiver. 526 */ 527 static struct dj_receiver_dev *dj_find_receiver_dev(struct hid_device *hdev, 528 enum recvr_type type) 529 { 530 struct dj_receiver_dev *djrcv_dev; 531 char sep; 532 533 /* 534 * The bluetooth receiver contains a built-in hub and has separate 535 * USB-devices for the keyboard and mouse interfaces. 536 */ 537 sep = (type == recvr_type_bluetooth) ? '.' : '/'; 538 539 /* Try to find an already-probed interface from the same device */ 540 list_for_each_entry(djrcv_dev, &dj_hdev_list, list) { 541 if (djrcv_dev->mouse && 542 hid_compare_device_paths(hdev, djrcv_dev->mouse, sep)) { 543 kref_get(&djrcv_dev->kref); 544 return djrcv_dev; 545 } 546 if (djrcv_dev->keyboard && 547 hid_compare_device_paths(hdev, djrcv_dev->keyboard, sep)) { 548 kref_get(&djrcv_dev->kref); 549 return djrcv_dev; 550 } 551 if (djrcv_dev->hidpp && 552 hid_compare_device_paths(hdev, djrcv_dev->hidpp, sep)) { 553 kref_get(&djrcv_dev->kref); 554 return djrcv_dev; 555 } 556 } 557 558 return NULL; 559 } 560 561 static void dj_release_receiver_dev(struct kref *kref) 562 { 563 struct dj_receiver_dev *djrcv_dev = container_of(kref, struct dj_receiver_dev, kref); 564 565 list_del(&djrcv_dev->list); 566 kfifo_free(&djrcv_dev->notif_fifo); 567 kfree(djrcv_dev); 568 } 569 570 static void dj_put_receiver_dev(struct hid_device *hdev) 571 { 572 struct dj_receiver_dev *djrcv_dev = hid_get_drvdata(hdev); 573 574 mutex_lock(&dj_hdev_list_lock); 575 576 if (djrcv_dev->mouse == hdev) 577 djrcv_dev->mouse = NULL; 578 if (djrcv_dev->keyboard == hdev) 579 djrcv_dev->keyboard = NULL; 580 if (djrcv_dev->hidpp == hdev) 581 djrcv_dev->hidpp = NULL; 582 583 kref_put(&djrcv_dev->kref, dj_release_receiver_dev); 584 585 mutex_unlock(&dj_hdev_list_lock); 586 } 587 588 static struct dj_receiver_dev *dj_get_receiver_dev(struct hid_device *hdev, 589 enum recvr_type type, 590 unsigned int application, 591 bool is_hidpp) 592 { 593 struct dj_receiver_dev *djrcv_dev; 594 595 mutex_lock(&dj_hdev_list_lock); 596 597 djrcv_dev = dj_find_receiver_dev(hdev, type); 598 if (!djrcv_dev) { 599 djrcv_dev = kzalloc(sizeof(*djrcv_dev), GFP_KERNEL); 600 if (!djrcv_dev) 601 goto out; 602 603 INIT_WORK(&djrcv_dev->work, delayedwork_callback); 604 spin_lock_init(&djrcv_dev->lock); 605 if (kfifo_alloc(&djrcv_dev->notif_fifo, 606 DJ_MAX_NUMBER_NOTIFS * sizeof(struct dj_workitem), 607 GFP_KERNEL)) { 608 kfree(djrcv_dev); 609 djrcv_dev = NULL; 610 goto out; 611 } 612 kref_init(&djrcv_dev->kref); 613 list_add_tail(&djrcv_dev->list, &dj_hdev_list); 614 djrcv_dev->last_query = jiffies; 615 djrcv_dev->type = type; 616 } 617 618 if (application == HID_GD_KEYBOARD) 619 djrcv_dev->keyboard = hdev; 620 if (application == HID_GD_MOUSE) 621 djrcv_dev->mouse = hdev; 622 if (is_hidpp) 623 djrcv_dev->hidpp = hdev; 624 625 hid_set_drvdata(hdev, djrcv_dev); 626 out: 627 mutex_unlock(&dj_hdev_list_lock); 628 return djrcv_dev; 629 } 630 631 static void logi_dj_recv_destroy_djhid_device(struct dj_receiver_dev *djrcv_dev, 632 struct dj_workitem *workitem) 633 { 634 /* Called in delayed work context */ 635 struct dj_device *dj_dev; 636 unsigned long flags; 637 638 spin_lock_irqsave(&djrcv_dev->lock, flags); 639 dj_dev = djrcv_dev->paired_dj_devices[workitem->device_index]; 640 djrcv_dev->paired_dj_devices[workitem->device_index] = NULL; 641 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 642 643 if (dj_dev != NULL) { 644 hid_destroy_device(dj_dev->hdev); 645 kfree(dj_dev); 646 } else { 647 hid_err(djrcv_dev->hidpp, "%s: can't destroy a NULL device\n", 648 __func__); 649 } 650 } 651 652 static void logi_dj_recv_add_djhid_device(struct dj_receiver_dev *djrcv_dev, 653 struct dj_workitem *workitem) 654 { 655 /* Called in delayed work context */ 656 struct hid_device *djrcv_hdev = djrcv_dev->hidpp; 657 struct hid_device *dj_hiddev; 658 struct dj_device *dj_dev; 659 u8 device_index = workitem->device_index; 660 unsigned long flags; 661 662 /* Device index goes from 1 to 6, we need 3 bytes to store the 663 * semicolon, the index, and a null terminator 664 */ 665 unsigned char tmpstr[3]; 666 667 /* We are the only one ever adding a device, no need to lock */ 668 if (djrcv_dev->paired_dj_devices[device_index]) { 669 /* The device is already known. No need to reallocate it. */ 670 dbg_hid("%s: device is already known\n", __func__); 671 return; 672 } 673 674 dj_hiddev = hid_allocate_device(); 675 if (IS_ERR(dj_hiddev)) { 676 hid_err(djrcv_hdev, "%s: hid_allocate_dev failed\n", __func__); 677 return; 678 } 679 680 dj_hiddev->ll_driver = &logi_dj_ll_driver; 681 682 dj_hiddev->dev.parent = &djrcv_hdev->dev; 683 dj_hiddev->bus = BUS_USB; 684 dj_hiddev->vendor = djrcv_hdev->vendor; 685 dj_hiddev->product = (workitem->quad_id_msb << 8) | 686 workitem->quad_id_lsb; 687 if (workitem->device_type) { 688 const char *type_str = "Device"; 689 690 switch (workitem->device_type) { 691 case 0x01: type_str = "Keyboard"; break; 692 case 0x02: type_str = "Mouse"; break; 693 case 0x03: type_str = "Numpad"; break; 694 case 0x04: type_str = "Presenter"; break; 695 case 0x07: type_str = "Remote Control"; break; 696 case 0x08: type_str = "Trackball"; break; 697 case 0x09: type_str = "Touchpad"; break; 698 } 699 snprintf(dj_hiddev->name, sizeof(dj_hiddev->name), 700 "Logitech Wireless %s PID:%04x", 701 type_str, dj_hiddev->product); 702 } else { 703 snprintf(dj_hiddev->name, sizeof(dj_hiddev->name), 704 "Logitech Unifying Device. Wireless PID:%04x", 705 dj_hiddev->product); 706 } 707 708 if (djrcv_dev->type == recvr_type_27mhz) 709 dj_hiddev->group = HID_GROUP_LOGITECH_27MHZ_DEVICE; 710 else 711 dj_hiddev->group = HID_GROUP_LOGITECH_DJ_DEVICE; 712 713 memcpy(dj_hiddev->phys, djrcv_hdev->phys, sizeof(djrcv_hdev->phys)); 714 snprintf(tmpstr, sizeof(tmpstr), ":%d", device_index); 715 strlcat(dj_hiddev->phys, tmpstr, sizeof(dj_hiddev->phys)); 716 717 dj_dev = kzalloc(sizeof(struct dj_device), GFP_KERNEL); 718 719 if (!dj_dev) { 720 hid_err(djrcv_hdev, "%s: failed allocating dj_dev\n", __func__); 721 goto dj_device_allocate_fail; 722 } 723 724 dj_dev->reports_supported = workitem->reports_supported; 725 dj_dev->hdev = dj_hiddev; 726 dj_dev->dj_receiver_dev = djrcv_dev; 727 dj_dev->device_index = device_index; 728 dj_hiddev->driver_data = dj_dev; 729 730 spin_lock_irqsave(&djrcv_dev->lock, flags); 731 djrcv_dev->paired_dj_devices[device_index] = dj_dev; 732 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 733 734 if (hid_add_device(dj_hiddev)) { 735 hid_err(djrcv_hdev, "%s: failed adding dj_device\n", __func__); 736 goto hid_add_device_fail; 737 } 738 739 return; 740 741 hid_add_device_fail: 742 spin_lock_irqsave(&djrcv_dev->lock, flags); 743 djrcv_dev->paired_dj_devices[device_index] = NULL; 744 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 745 kfree(dj_dev); 746 dj_device_allocate_fail: 747 hid_destroy_device(dj_hiddev); 748 } 749 750 static void delayedwork_callback(struct work_struct *work) 751 { 752 struct dj_receiver_dev *djrcv_dev = 753 container_of(work, struct dj_receiver_dev, work); 754 755 struct dj_workitem workitem; 756 unsigned long flags; 757 int count; 758 int retval; 759 760 dbg_hid("%s\n", __func__); 761 762 spin_lock_irqsave(&djrcv_dev->lock, flags); 763 764 /* 765 * Since we attach to multiple interfaces, we may get scheduled before 766 * we are bound to the HID++ interface, catch this. 767 */ 768 if (!djrcv_dev->ready) { 769 pr_warn("%s: delayedwork queued before hidpp interface was enumerated\n", 770 __func__); 771 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 772 return; 773 } 774 775 count = kfifo_out(&djrcv_dev->notif_fifo, &workitem, sizeof(workitem)); 776 777 if (count != sizeof(workitem)) { 778 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 779 return; 780 } 781 782 if (!kfifo_is_empty(&djrcv_dev->notif_fifo)) 783 schedule_work(&djrcv_dev->work); 784 785 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 786 787 switch (workitem.type) { 788 case WORKITEM_TYPE_PAIRED: 789 logi_dj_recv_add_djhid_device(djrcv_dev, &workitem); 790 break; 791 case WORKITEM_TYPE_UNPAIRED: 792 logi_dj_recv_destroy_djhid_device(djrcv_dev, &workitem); 793 break; 794 case WORKITEM_TYPE_UNKNOWN: 795 retval = logi_dj_recv_query_paired_devices(djrcv_dev); 796 if (retval) { 797 hid_err(djrcv_dev->hidpp, "%s: logi_dj_recv_query_paired_devices error: %d\n", 798 __func__, retval); 799 } 800 break; 801 case WORKITEM_TYPE_EMPTY: 802 dbg_hid("%s: device list is empty\n", __func__); 803 break; 804 } 805 } 806 807 /* 808 * Sometimes we receive reports for which we do not have a paired dj_device 809 * associated with the device_index or report-type to forward the report to. 810 * This means that the original "device paired" notification corresponding 811 * to the dj_device never arrived to this driver. Possible reasons for this are: 812 * 1) hid-core discards all packets coming from a device during probe(). 813 * 2) if the receiver is plugged into a KVM switch then the pairing reports 814 * are only forwarded to it if the focus is on this PC. 815 * This function deals with this by re-asking the receiver for the list of 816 * connected devices in the delayed work callback. 817 * This function MUST be called with djrcv->lock held. 818 */ 819 static void logi_dj_recv_queue_unknown_work(struct dj_receiver_dev *djrcv_dev) 820 { 821 struct dj_workitem workitem = { .type = WORKITEM_TYPE_UNKNOWN }; 822 823 /* Rate limit queries done because of unhandeled reports to 2/sec */ 824 if (time_before(jiffies, djrcv_dev->last_query + HZ / 2)) 825 return; 826 827 kfifo_in(&djrcv_dev->notif_fifo, &workitem, sizeof(workitem)); 828 schedule_work(&djrcv_dev->work); 829 } 830 831 static void logi_dj_recv_queue_notification(struct dj_receiver_dev *djrcv_dev, 832 struct dj_report *dj_report) 833 { 834 /* We are called from atomic context (tasklet && djrcv->lock held) */ 835 struct dj_workitem workitem = { 836 .device_index = dj_report->device_index, 837 }; 838 839 switch (dj_report->report_type) { 840 case REPORT_TYPE_NOTIF_DEVICE_PAIRED: 841 workitem.type = WORKITEM_TYPE_PAIRED; 842 if (dj_report->report_params[DEVICE_PAIRED_PARAM_SPFUNCTION] & 843 SPFUNCTION_DEVICE_LIST_EMPTY) { 844 workitem.type = WORKITEM_TYPE_EMPTY; 845 break; 846 } 847 /* fall-through */ 848 case REPORT_TYPE_NOTIF_DEVICE_UNPAIRED: 849 workitem.quad_id_msb = 850 dj_report->report_params[DEVICE_PAIRED_PARAM_EQUAD_ID_MSB]; 851 workitem.quad_id_lsb = 852 dj_report->report_params[DEVICE_PAIRED_PARAM_EQUAD_ID_LSB]; 853 workitem.reports_supported = get_unaligned_le32( 854 dj_report->report_params + 855 DEVICE_PAIRED_RF_REPORT_TYPE); 856 workitem.reports_supported |= HIDPP; 857 if (dj_report->report_type == REPORT_TYPE_NOTIF_DEVICE_UNPAIRED) 858 workitem.type = WORKITEM_TYPE_UNPAIRED; 859 break; 860 default: 861 logi_dj_recv_queue_unknown_work(djrcv_dev); 862 return; 863 } 864 865 kfifo_in(&djrcv_dev->notif_fifo, &workitem, sizeof(workitem)); 866 schedule_work(&djrcv_dev->work); 867 } 868 869 static void logi_hidpp_dev_conn_notif_equad(struct hid_device *hdev, 870 struct hidpp_event *hidpp_report, 871 struct dj_workitem *workitem) 872 { 873 struct dj_receiver_dev *djrcv_dev = hid_get_drvdata(hdev); 874 875 workitem->type = WORKITEM_TYPE_PAIRED; 876 workitem->device_type = hidpp_report->params[HIDPP_PARAM_DEVICE_INFO] & 877 HIDPP_DEVICE_TYPE_MASK; 878 workitem->quad_id_msb = hidpp_report->params[HIDPP_PARAM_EQUAD_MSB]; 879 workitem->quad_id_lsb = hidpp_report->params[HIDPP_PARAM_EQUAD_LSB]; 880 switch (workitem->device_type) { 881 case REPORT_TYPE_KEYBOARD: 882 workitem->reports_supported |= STD_KEYBOARD | MULTIMEDIA | 883 POWER_KEYS | MEDIA_CENTER | 884 HIDPP; 885 break; 886 case REPORT_TYPE_MOUSE: 887 workitem->reports_supported |= STD_MOUSE | HIDPP; 888 if (djrcv_dev->type == recvr_type_mouse_only) 889 workitem->reports_supported |= MULTIMEDIA; 890 break; 891 } 892 } 893 894 static void logi_hidpp_dev_conn_notif_27mhz(struct hid_device *hdev, 895 struct hidpp_event *hidpp_report, 896 struct dj_workitem *workitem) 897 { 898 workitem->type = WORKITEM_TYPE_PAIRED; 899 workitem->quad_id_lsb = hidpp_report->params[HIDPP_PARAM_27MHZ_DEVID]; 900 switch (hidpp_report->device_index) { 901 case 1: /* Index 1 is always a mouse */ 902 case 2: /* Index 2 is always a mouse */ 903 workitem->device_type = HIDPP_DEVICE_TYPE_MOUSE; 904 workitem->reports_supported |= STD_MOUSE | HIDPP; 905 break; 906 case 3: /* Index 3 is always the keyboard */ 907 case 4: /* Index 4 is used for an optional separate numpad */ 908 workitem->device_type = HIDPP_DEVICE_TYPE_KEYBOARD; 909 workitem->reports_supported |= STD_KEYBOARD | MULTIMEDIA | 910 POWER_KEYS | HIDPP; 911 break; 912 default: 913 hid_warn(hdev, "%s: unexpected device-index %d", __func__, 914 hidpp_report->device_index); 915 } 916 } 917 918 static void logi_hidpp_recv_queue_notif(struct hid_device *hdev, 919 struct hidpp_event *hidpp_report) 920 { 921 /* We are called from atomic context (tasklet && djrcv->lock held) */ 922 struct dj_receiver_dev *djrcv_dev = hid_get_drvdata(hdev); 923 const char *device_type = "UNKNOWN"; 924 struct dj_workitem workitem = { 925 .type = WORKITEM_TYPE_EMPTY, 926 .device_index = hidpp_report->device_index, 927 }; 928 929 switch (hidpp_report->params[HIDPP_PARAM_PROTO_TYPE]) { 930 case 0x01: 931 device_type = "Bluetooth"; 932 /* Bluetooth connect packet contents is the same as (e)QUAD */ 933 logi_hidpp_dev_conn_notif_equad(hdev, hidpp_report, &workitem); 934 if (!(hidpp_report->params[HIDPP_PARAM_DEVICE_INFO] & 935 HIDPP_MANUFACTURER_MASK)) { 936 hid_info(hdev, "Non Logitech device connected on slot %d\n", 937 hidpp_report->device_index); 938 workitem.reports_supported &= ~HIDPP; 939 } 940 break; 941 case 0x02: 942 device_type = "27 Mhz"; 943 logi_hidpp_dev_conn_notif_27mhz(hdev, hidpp_report, &workitem); 944 break; 945 case 0x03: 946 device_type = "QUAD or eQUAD"; 947 logi_hidpp_dev_conn_notif_equad(hdev, hidpp_report, &workitem); 948 break; 949 case 0x04: 950 device_type = "eQUAD step 4 DJ"; 951 logi_hidpp_dev_conn_notif_equad(hdev, hidpp_report, &workitem); 952 break; 953 case 0x05: 954 device_type = "DFU Lite"; 955 break; 956 case 0x06: 957 device_type = "eQUAD step 4 Lite"; 958 logi_hidpp_dev_conn_notif_equad(hdev, hidpp_report, &workitem); 959 break; 960 case 0x07: 961 device_type = "eQUAD step 4 Gaming"; 962 break; 963 case 0x08: 964 device_type = "eQUAD step 4 for gamepads"; 965 break; 966 case 0x0a: 967 device_type = "eQUAD nano Lite"; 968 logi_hidpp_dev_conn_notif_equad(hdev, hidpp_report, &workitem); 969 break; 970 case 0x0c: 971 device_type = "eQUAD Lightspeed"; 972 logi_hidpp_dev_conn_notif_equad(hdev, hidpp_report, &workitem); 973 workitem.reports_supported |= STD_KEYBOARD; 974 break; 975 } 976 977 if (workitem.type == WORKITEM_TYPE_EMPTY) { 978 hid_warn(hdev, 979 "unusable device of type %s (0x%02x) connected on slot %d", 980 device_type, 981 hidpp_report->params[HIDPP_PARAM_PROTO_TYPE], 982 hidpp_report->device_index); 983 return; 984 } 985 986 hid_info(hdev, "device of type %s (0x%02x) connected on slot %d", 987 device_type, hidpp_report->params[HIDPP_PARAM_PROTO_TYPE], 988 hidpp_report->device_index); 989 990 kfifo_in(&djrcv_dev->notif_fifo, &workitem, sizeof(workitem)); 991 schedule_work(&djrcv_dev->work); 992 } 993 994 static void logi_dj_recv_forward_null_report(struct dj_receiver_dev *djrcv_dev, 995 struct dj_report *dj_report) 996 { 997 /* We are called from atomic context (tasklet && djrcv->lock held) */ 998 unsigned int i; 999 u8 reportbuffer[MAX_REPORT_SIZE]; 1000 struct dj_device *djdev; 1001 1002 djdev = djrcv_dev->paired_dj_devices[dj_report->device_index]; 1003 1004 memset(reportbuffer, 0, sizeof(reportbuffer)); 1005 1006 for (i = 0; i < NUMBER_OF_HID_REPORTS; i++) { 1007 if (djdev->reports_supported & (1 << i)) { 1008 reportbuffer[0] = i; 1009 if (hid_input_report(djdev->hdev, 1010 HID_INPUT_REPORT, 1011 reportbuffer, 1012 hid_reportid_size_map[i], 1)) { 1013 dbg_hid("hid_input_report error sending null " 1014 "report\n"); 1015 } 1016 } 1017 } 1018 } 1019 1020 static void logi_dj_recv_forward_dj(struct dj_receiver_dev *djrcv_dev, 1021 struct dj_report *dj_report) 1022 { 1023 /* We are called from atomic context (tasklet && djrcv->lock held) */ 1024 struct dj_device *dj_device; 1025 1026 dj_device = djrcv_dev->paired_dj_devices[dj_report->device_index]; 1027 1028 if ((dj_report->report_type > ARRAY_SIZE(hid_reportid_size_map) - 1) || 1029 (hid_reportid_size_map[dj_report->report_type] == 0)) { 1030 dbg_hid("invalid report type:%x\n", dj_report->report_type); 1031 return; 1032 } 1033 1034 if (hid_input_report(dj_device->hdev, 1035 HID_INPUT_REPORT, &dj_report->report_type, 1036 hid_reportid_size_map[dj_report->report_type], 1)) { 1037 dbg_hid("hid_input_report error\n"); 1038 } 1039 } 1040 1041 static void logi_dj_recv_forward_report(struct dj_device *dj_dev, u8 *data, 1042 int size) 1043 { 1044 /* We are called from atomic context (tasklet && djrcv->lock held) */ 1045 if (hid_input_report(dj_dev->hdev, HID_INPUT_REPORT, data, size, 1)) 1046 dbg_hid("hid_input_report error\n"); 1047 } 1048 1049 static void logi_dj_recv_forward_input_report(struct hid_device *hdev, 1050 u8 *data, int size) 1051 { 1052 struct dj_receiver_dev *djrcv_dev = hid_get_drvdata(hdev); 1053 struct dj_device *dj_dev; 1054 unsigned long flags; 1055 u8 report = data[0]; 1056 int i; 1057 1058 if (report > REPORT_TYPE_RFREPORT_LAST) { 1059 hid_err(hdev, "Unexpected input report number %d\n", report); 1060 return; 1061 } 1062 1063 spin_lock_irqsave(&djrcv_dev->lock, flags); 1064 for (i = 0; i < (DJ_MAX_PAIRED_DEVICES + DJ_DEVICE_INDEX_MIN); i++) { 1065 dj_dev = djrcv_dev->paired_dj_devices[i]; 1066 if (dj_dev && (dj_dev->reports_supported & BIT(report))) { 1067 logi_dj_recv_forward_report(dj_dev, data, size); 1068 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 1069 return; 1070 } 1071 } 1072 1073 logi_dj_recv_queue_unknown_work(djrcv_dev); 1074 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 1075 1076 dbg_hid("No dj-devs handling input report number %d\n", report); 1077 } 1078 1079 static int logi_dj_recv_send_report(struct dj_receiver_dev *djrcv_dev, 1080 struct dj_report *dj_report) 1081 { 1082 struct hid_device *hdev = djrcv_dev->hidpp; 1083 struct hid_report *report; 1084 struct hid_report_enum *output_report_enum; 1085 u8 *data = (u8 *)(&dj_report->device_index); 1086 unsigned int i; 1087 1088 output_report_enum = &hdev->report_enum[HID_OUTPUT_REPORT]; 1089 report = output_report_enum->report_id_hash[REPORT_ID_DJ_SHORT]; 1090 1091 if (!report) { 1092 hid_err(hdev, "%s: unable to find dj report\n", __func__); 1093 return -ENODEV; 1094 } 1095 1096 for (i = 0; i < DJREPORT_SHORT_LENGTH - 1; i++) 1097 report->field[0]->value[i] = data[i]; 1098 1099 hid_hw_request(hdev, report, HID_REQ_SET_REPORT); 1100 1101 return 0; 1102 } 1103 1104 static int logi_dj_recv_query_hidpp_devices(struct dj_receiver_dev *djrcv_dev) 1105 { 1106 static const u8 template[] = { 1107 REPORT_ID_HIDPP_SHORT, 1108 HIDPP_RECEIVER_INDEX, 1109 HIDPP_SET_REGISTER, 1110 HIDPP_REG_CONNECTION_STATE, 1111 HIDPP_FAKE_DEVICE_ARRIVAL, 1112 0x00, 0x00 1113 }; 1114 u8 *hidpp_report; 1115 int retval; 1116 1117 hidpp_report = kmemdup(template, sizeof(template), GFP_KERNEL); 1118 if (!hidpp_report) 1119 return -ENOMEM; 1120 1121 retval = hid_hw_raw_request(djrcv_dev->hidpp, 1122 REPORT_ID_HIDPP_SHORT, 1123 hidpp_report, sizeof(template), 1124 HID_OUTPUT_REPORT, 1125 HID_REQ_SET_REPORT); 1126 1127 kfree(hidpp_report); 1128 return retval; 1129 } 1130 1131 static int logi_dj_recv_query_paired_devices(struct dj_receiver_dev *djrcv_dev) 1132 { 1133 struct dj_report *dj_report; 1134 int retval; 1135 1136 djrcv_dev->last_query = jiffies; 1137 1138 if (djrcv_dev->type != recvr_type_dj) 1139 return logi_dj_recv_query_hidpp_devices(djrcv_dev); 1140 1141 dj_report = kzalloc(sizeof(struct dj_report), GFP_KERNEL); 1142 if (!dj_report) 1143 return -ENOMEM; 1144 dj_report->report_id = REPORT_ID_DJ_SHORT; 1145 dj_report->device_index = 0xFF; 1146 dj_report->report_type = REPORT_TYPE_CMD_GET_PAIRED_DEVICES; 1147 retval = logi_dj_recv_send_report(djrcv_dev, dj_report); 1148 kfree(dj_report); 1149 return retval; 1150 } 1151 1152 1153 static int logi_dj_recv_switch_to_dj_mode(struct dj_receiver_dev *djrcv_dev, 1154 unsigned timeout) 1155 { 1156 struct hid_device *hdev = djrcv_dev->hidpp; 1157 struct dj_report *dj_report; 1158 u8 *buf; 1159 int retval = 0; 1160 1161 dj_report = kzalloc(sizeof(struct dj_report), GFP_KERNEL); 1162 if (!dj_report) 1163 return -ENOMEM; 1164 1165 if (djrcv_dev->type == recvr_type_dj) { 1166 dj_report->report_id = REPORT_ID_DJ_SHORT; 1167 dj_report->device_index = 0xFF; 1168 dj_report->report_type = REPORT_TYPE_CMD_SWITCH; 1169 dj_report->report_params[CMD_SWITCH_PARAM_DEVBITFIELD] = 0x3F; 1170 dj_report->report_params[CMD_SWITCH_PARAM_TIMEOUT_SECONDS] = 1171 (u8)timeout; 1172 1173 retval = logi_dj_recv_send_report(djrcv_dev, dj_report); 1174 1175 /* 1176 * Ugly sleep to work around a USB 3.0 bug when the receiver is 1177 * still processing the "switch-to-dj" command while we send an 1178 * other command. 1179 * 50 msec should gives enough time to the receiver to be ready. 1180 */ 1181 msleep(50); 1182 } 1183 1184 /* 1185 * Magical bits to set up hidpp notifications when the dj devices 1186 * are connected/disconnected. 1187 * 1188 * We can reuse dj_report because HIDPP_REPORT_SHORT_LENGTH is smaller 1189 * than DJREPORT_SHORT_LENGTH. 1190 */ 1191 buf = (u8 *)dj_report; 1192 1193 memset(buf, 0, HIDPP_REPORT_SHORT_LENGTH); 1194 1195 buf[0] = REPORT_ID_HIDPP_SHORT; 1196 buf[1] = 0xFF; 1197 buf[2] = 0x80; 1198 buf[3] = 0x00; 1199 buf[4] = 0x00; 1200 buf[5] = 0x09; 1201 buf[6] = 0x00; 1202 1203 hid_hw_raw_request(hdev, REPORT_ID_HIDPP_SHORT, buf, 1204 HIDPP_REPORT_SHORT_LENGTH, HID_OUTPUT_REPORT, 1205 HID_REQ_SET_REPORT); 1206 1207 kfree(dj_report); 1208 return retval; 1209 } 1210 1211 1212 static int logi_dj_ll_open(struct hid_device *hid) 1213 { 1214 dbg_hid("%s: %s\n", __func__, hid->phys); 1215 return 0; 1216 1217 } 1218 1219 static void logi_dj_ll_close(struct hid_device *hid) 1220 { 1221 dbg_hid("%s: %s\n", __func__, hid->phys); 1222 } 1223 1224 /* 1225 * Register 0xB5 is "pairing information". It is solely intended for the 1226 * receiver, so do not overwrite the device index. 1227 */ 1228 static u8 unifying_pairing_query[] = { REPORT_ID_HIDPP_SHORT, 1229 HIDPP_RECEIVER_INDEX, 1230 HIDPP_GET_LONG_REGISTER, 1231 HIDPP_REG_PAIRING_INFORMATION }; 1232 static u8 unifying_pairing_answer[] = { REPORT_ID_HIDPP_LONG, 1233 HIDPP_RECEIVER_INDEX, 1234 HIDPP_GET_LONG_REGISTER, 1235 HIDPP_REG_PAIRING_INFORMATION }; 1236 1237 static int logi_dj_ll_raw_request(struct hid_device *hid, 1238 unsigned char reportnum, __u8 *buf, 1239 size_t count, unsigned char report_type, 1240 int reqtype) 1241 { 1242 struct dj_device *djdev = hid->driver_data; 1243 struct dj_receiver_dev *djrcv_dev = djdev->dj_receiver_dev; 1244 u8 *out_buf; 1245 int ret; 1246 1247 if ((buf[0] == REPORT_ID_HIDPP_SHORT) || 1248 (buf[0] == REPORT_ID_HIDPP_LONG) || 1249 (buf[0] == REPORT_ID_HIDPP_VERY_LONG)) { 1250 if (count < 2) 1251 return -EINVAL; 1252 1253 /* special case where we should not overwrite 1254 * the device_index */ 1255 if (count == 7 && !memcmp(buf, unifying_pairing_query, 1256 sizeof(unifying_pairing_query))) 1257 buf[4] = (buf[4] & 0xf0) | (djdev->device_index - 1); 1258 else 1259 buf[1] = djdev->device_index; 1260 return hid_hw_raw_request(djrcv_dev->hidpp, reportnum, buf, 1261 count, report_type, reqtype); 1262 } 1263 1264 if (buf[0] != REPORT_TYPE_LEDS) 1265 return -EINVAL; 1266 1267 if (djrcv_dev->type != recvr_type_dj && count >= 2) { 1268 if (!djrcv_dev->keyboard) { 1269 hid_warn(hid, "Received REPORT_TYPE_LEDS request before the keyboard interface was enumerated\n"); 1270 return 0; 1271 } 1272 /* usbhid overrides the report ID and ignores the first byte */ 1273 return hid_hw_raw_request(djrcv_dev->keyboard, 0, buf, count, 1274 report_type, reqtype); 1275 } 1276 1277 out_buf = kzalloc(DJREPORT_SHORT_LENGTH, GFP_ATOMIC); 1278 if (!out_buf) 1279 return -ENOMEM; 1280 1281 if (count > DJREPORT_SHORT_LENGTH - 2) 1282 count = DJREPORT_SHORT_LENGTH - 2; 1283 1284 out_buf[0] = REPORT_ID_DJ_SHORT; 1285 out_buf[1] = djdev->device_index; 1286 memcpy(out_buf + 2, buf, count); 1287 1288 ret = hid_hw_raw_request(djrcv_dev->hidpp, out_buf[0], out_buf, 1289 DJREPORT_SHORT_LENGTH, report_type, reqtype); 1290 1291 kfree(out_buf); 1292 return ret; 1293 } 1294 1295 static void rdcat(char *rdesc, unsigned int *rsize, const char *data, unsigned int size) 1296 { 1297 memcpy(rdesc + *rsize, data, size); 1298 *rsize += size; 1299 } 1300 1301 static int logi_dj_ll_parse(struct hid_device *hid) 1302 { 1303 struct dj_device *djdev = hid->driver_data; 1304 unsigned int rsize = 0; 1305 char *rdesc; 1306 int retval; 1307 1308 dbg_hid("%s\n", __func__); 1309 1310 djdev->hdev->version = 0x0111; 1311 djdev->hdev->country = 0x00; 1312 1313 rdesc = kmalloc(MAX_RDESC_SIZE, GFP_KERNEL); 1314 if (!rdesc) 1315 return -ENOMEM; 1316 1317 if (djdev->reports_supported & STD_KEYBOARD) { 1318 dbg_hid("%s: sending a kbd descriptor, reports_supported: %llx\n", 1319 __func__, djdev->reports_supported); 1320 rdcat(rdesc, &rsize, kbd_descriptor, sizeof(kbd_descriptor)); 1321 } 1322 1323 if (djdev->reports_supported & STD_MOUSE) { 1324 dbg_hid("%s: sending a mouse descriptor, reports_supported: %llx\n", 1325 __func__, djdev->reports_supported); 1326 if (djdev->dj_receiver_dev->type == recvr_type_gaming_hidpp || 1327 djdev->dj_receiver_dev->type == recvr_type_mouse_only) 1328 rdcat(rdesc, &rsize, mse_high_res_descriptor, 1329 sizeof(mse_high_res_descriptor)); 1330 else if (djdev->dj_receiver_dev->type == recvr_type_27mhz) 1331 rdcat(rdesc, &rsize, mse_27mhz_descriptor, 1332 sizeof(mse_27mhz_descriptor)); 1333 else if (djdev->dj_receiver_dev->type == recvr_type_bluetooth) 1334 rdcat(rdesc, &rsize, mse_bluetooth_descriptor, 1335 sizeof(mse_bluetooth_descriptor)); 1336 else 1337 rdcat(rdesc, &rsize, mse_descriptor, 1338 sizeof(mse_descriptor)); 1339 } 1340 1341 if (djdev->reports_supported & MULTIMEDIA) { 1342 dbg_hid("%s: sending a multimedia report descriptor: %llx\n", 1343 __func__, djdev->reports_supported); 1344 rdcat(rdesc, &rsize, consumer_descriptor, sizeof(consumer_descriptor)); 1345 } 1346 1347 if (djdev->reports_supported & POWER_KEYS) { 1348 dbg_hid("%s: sending a power keys report descriptor: %llx\n", 1349 __func__, djdev->reports_supported); 1350 rdcat(rdesc, &rsize, syscontrol_descriptor, sizeof(syscontrol_descriptor)); 1351 } 1352 1353 if (djdev->reports_supported & MEDIA_CENTER) { 1354 dbg_hid("%s: sending a media center report descriptor: %llx\n", 1355 __func__, djdev->reports_supported); 1356 rdcat(rdesc, &rsize, media_descriptor, sizeof(media_descriptor)); 1357 } 1358 1359 if (djdev->reports_supported & KBD_LEDS) { 1360 dbg_hid("%s: need to send kbd leds report descriptor: %llx\n", 1361 __func__, djdev->reports_supported); 1362 } 1363 1364 if (djdev->reports_supported & HIDPP) { 1365 rdcat(rdesc, &rsize, hidpp_descriptor, 1366 sizeof(hidpp_descriptor)); 1367 } 1368 1369 retval = hid_parse_report(hid, rdesc, rsize); 1370 kfree(rdesc); 1371 1372 return retval; 1373 } 1374 1375 static int logi_dj_ll_start(struct hid_device *hid) 1376 { 1377 dbg_hid("%s\n", __func__); 1378 return 0; 1379 } 1380 1381 static void logi_dj_ll_stop(struct hid_device *hid) 1382 { 1383 dbg_hid("%s\n", __func__); 1384 } 1385 1386 1387 static struct hid_ll_driver logi_dj_ll_driver = { 1388 .parse = logi_dj_ll_parse, 1389 .start = logi_dj_ll_start, 1390 .stop = logi_dj_ll_stop, 1391 .open = logi_dj_ll_open, 1392 .close = logi_dj_ll_close, 1393 .raw_request = logi_dj_ll_raw_request, 1394 }; 1395 1396 static int logi_dj_dj_event(struct hid_device *hdev, 1397 struct hid_report *report, u8 *data, 1398 int size) 1399 { 1400 struct dj_receiver_dev *djrcv_dev = hid_get_drvdata(hdev); 1401 struct dj_report *dj_report = (struct dj_report *) data; 1402 unsigned long flags; 1403 1404 /* 1405 * Here we receive all data coming from iface 2, there are 3 cases: 1406 * 1407 * 1) Data is intended for this driver i. e. data contains arrival, 1408 * departure, etc notifications, in which case we queue them for delayed 1409 * processing by the work queue. We return 1 to hid-core as no further 1410 * processing is required from it. 1411 * 1412 * 2) Data informs a connection change, if the change means rf link 1413 * loss, then we must send a null report to the upper layer to discard 1414 * potentially pressed keys that may be repeated forever by the input 1415 * layer. Return 1 to hid-core as no further processing is required. 1416 * 1417 * 3) Data is an actual input event from a paired DJ device in which 1418 * case we forward it to the correct hid device (via hid_input_report() 1419 * ) and return 1 so hid-core does not anything else with it. 1420 */ 1421 1422 if ((dj_report->device_index < DJ_DEVICE_INDEX_MIN) || 1423 (dj_report->device_index > DJ_DEVICE_INDEX_MAX)) { 1424 /* 1425 * Device index is wrong, bail out. 1426 * This driver can ignore safely the receiver notifications, 1427 * so ignore those reports too. 1428 */ 1429 if (dj_report->device_index != DJ_RECEIVER_INDEX) 1430 hid_err(hdev, "%s: invalid device index:%d\n", 1431 __func__, dj_report->device_index); 1432 return false; 1433 } 1434 1435 spin_lock_irqsave(&djrcv_dev->lock, flags); 1436 1437 if (!djrcv_dev->paired_dj_devices[dj_report->device_index]) { 1438 /* received an event for an unknown device, bail out */ 1439 logi_dj_recv_queue_notification(djrcv_dev, dj_report); 1440 goto out; 1441 } 1442 1443 switch (dj_report->report_type) { 1444 case REPORT_TYPE_NOTIF_DEVICE_PAIRED: 1445 /* pairing notifications are handled above the switch */ 1446 break; 1447 case REPORT_TYPE_NOTIF_DEVICE_UNPAIRED: 1448 logi_dj_recv_queue_notification(djrcv_dev, dj_report); 1449 break; 1450 case REPORT_TYPE_NOTIF_CONNECTION_STATUS: 1451 if (dj_report->report_params[CONNECTION_STATUS_PARAM_STATUS] == 1452 STATUS_LINKLOSS) { 1453 logi_dj_recv_forward_null_report(djrcv_dev, dj_report); 1454 } 1455 break; 1456 default: 1457 logi_dj_recv_forward_dj(djrcv_dev, dj_report); 1458 } 1459 1460 out: 1461 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 1462 1463 return true; 1464 } 1465 1466 static int logi_dj_hidpp_event(struct hid_device *hdev, 1467 struct hid_report *report, u8 *data, 1468 int size) 1469 { 1470 struct dj_receiver_dev *djrcv_dev = hid_get_drvdata(hdev); 1471 struct hidpp_event *hidpp_report = (struct hidpp_event *) data; 1472 struct dj_device *dj_dev; 1473 unsigned long flags; 1474 u8 device_index = hidpp_report->device_index; 1475 1476 if (device_index == HIDPP_RECEIVER_INDEX) { 1477 /* special case were the device wants to know its unifying 1478 * name */ 1479 if (size == HIDPP_REPORT_LONG_LENGTH && 1480 !memcmp(data, unifying_pairing_answer, 1481 sizeof(unifying_pairing_answer))) 1482 device_index = (data[4] & 0x0F) + 1; 1483 else 1484 return false; 1485 } 1486 1487 /* 1488 * Data is from the HID++ collection, in this case, we forward the 1489 * data to the corresponding child dj device and return 0 to hid-core 1490 * so he data also goes to the hidraw device of the receiver. This 1491 * allows a user space application to implement the full HID++ routing 1492 * via the receiver. 1493 */ 1494 1495 if ((device_index < DJ_DEVICE_INDEX_MIN) || 1496 (device_index > DJ_DEVICE_INDEX_MAX)) { 1497 /* 1498 * Device index is wrong, bail out. 1499 * This driver can ignore safely the receiver notifications, 1500 * so ignore those reports too. 1501 */ 1502 hid_err(hdev, "%s: invalid device index:%d\n", __func__, 1503 hidpp_report->device_index); 1504 return false; 1505 } 1506 1507 spin_lock_irqsave(&djrcv_dev->lock, flags); 1508 1509 dj_dev = djrcv_dev->paired_dj_devices[device_index]; 1510 1511 /* 1512 * With 27 MHz receivers, we do not get an explicit unpair event, 1513 * remove the old device if the user has paired a *different* device. 1514 */ 1515 if (djrcv_dev->type == recvr_type_27mhz && dj_dev && 1516 hidpp_report->sub_id == REPORT_TYPE_NOTIF_DEVICE_CONNECTED && 1517 hidpp_report->params[HIDPP_PARAM_PROTO_TYPE] == 0x02 && 1518 hidpp_report->params[HIDPP_PARAM_27MHZ_DEVID] != 1519 dj_dev->hdev->product) { 1520 struct dj_workitem workitem = { 1521 .device_index = hidpp_report->device_index, 1522 .type = WORKITEM_TYPE_UNPAIRED, 1523 }; 1524 kfifo_in(&djrcv_dev->notif_fifo, &workitem, sizeof(workitem)); 1525 /* logi_hidpp_recv_queue_notif will queue the work */ 1526 dj_dev = NULL; 1527 } 1528 1529 if (dj_dev) { 1530 logi_dj_recv_forward_report(dj_dev, data, size); 1531 } else { 1532 if (hidpp_report->sub_id == REPORT_TYPE_NOTIF_DEVICE_CONNECTED) 1533 logi_hidpp_recv_queue_notif(hdev, hidpp_report); 1534 else 1535 logi_dj_recv_queue_unknown_work(djrcv_dev); 1536 } 1537 1538 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 1539 1540 return false; 1541 } 1542 1543 static int logi_dj_raw_event(struct hid_device *hdev, 1544 struct hid_report *report, u8 *data, 1545 int size) 1546 { 1547 struct dj_receiver_dev *djrcv_dev = hid_get_drvdata(hdev); 1548 dbg_hid("%s, size:%d\n", __func__, size); 1549 1550 if (!djrcv_dev) 1551 return 0; 1552 1553 if (!hdev->report_enum[HID_INPUT_REPORT].numbered) { 1554 1555 if (djrcv_dev->unnumbered_application == HID_GD_KEYBOARD) { 1556 /* 1557 * For the keyboard, we can reuse the same report by 1558 * using the second byte which is constant in the USB 1559 * HID report descriptor. 1560 */ 1561 data[1] = data[0]; 1562 data[0] = REPORT_TYPE_KEYBOARD; 1563 1564 logi_dj_recv_forward_input_report(hdev, data, size); 1565 1566 /* restore previous state */ 1567 data[0] = data[1]; 1568 data[1] = 0; 1569 } 1570 /* 1571 * Mouse-only receivers send unnumbered mouse data. The 27 MHz 1572 * receiver uses 6 byte packets, the nano receiver 8 bytes. 1573 */ 1574 if (djrcv_dev->unnumbered_application == HID_GD_MOUSE && 1575 size <= 8) { 1576 u8 mouse_report[9]; 1577 1578 /* Prepend report id */ 1579 mouse_report[0] = REPORT_TYPE_MOUSE; 1580 memcpy(mouse_report + 1, data, size); 1581 logi_dj_recv_forward_input_report(hdev, mouse_report, 1582 size + 1); 1583 } 1584 1585 return false; 1586 } 1587 1588 switch (data[0]) { 1589 case REPORT_ID_DJ_SHORT: 1590 if (size != DJREPORT_SHORT_LENGTH) { 1591 hid_err(hdev, "Short DJ report bad size (%d)", size); 1592 return false; 1593 } 1594 return logi_dj_dj_event(hdev, report, data, size); 1595 case REPORT_ID_DJ_LONG: 1596 if (size != DJREPORT_LONG_LENGTH) { 1597 hid_err(hdev, "Long DJ report bad size (%d)", size); 1598 return false; 1599 } 1600 return logi_dj_dj_event(hdev, report, data, size); 1601 case REPORT_ID_HIDPP_SHORT: 1602 if (size != HIDPP_REPORT_SHORT_LENGTH) { 1603 hid_err(hdev, "Short HID++ report bad size (%d)", size); 1604 return false; 1605 } 1606 return logi_dj_hidpp_event(hdev, report, data, size); 1607 case REPORT_ID_HIDPP_LONG: 1608 if (size != HIDPP_REPORT_LONG_LENGTH) { 1609 hid_err(hdev, "Long HID++ report bad size (%d)", size); 1610 return false; 1611 } 1612 return logi_dj_hidpp_event(hdev, report, data, size); 1613 } 1614 1615 logi_dj_recv_forward_input_report(hdev, data, size); 1616 1617 return false; 1618 } 1619 1620 static int logi_dj_probe(struct hid_device *hdev, 1621 const struct hid_device_id *id) 1622 { 1623 struct hid_report_enum *rep_enum; 1624 struct hid_report *rep; 1625 struct dj_receiver_dev *djrcv_dev; 1626 struct usb_interface *intf; 1627 unsigned int no_dj_interfaces = 0; 1628 bool has_hidpp = false; 1629 unsigned long flags; 1630 int retval; 1631 1632 /* 1633 * Call to usbhid to fetch the HID descriptors of the current 1634 * interface subsequently call to the hid/hid-core to parse the 1635 * fetched descriptors. 1636 */ 1637 retval = hid_parse(hdev); 1638 if (retval) { 1639 hid_err(hdev, "%s: parse failed\n", __func__); 1640 return retval; 1641 } 1642 1643 /* 1644 * Some KVMs add an extra interface for e.g. mouse emulation. If we 1645 * treat these as logitech-dj interfaces then this causes input events 1646 * reported through this extra interface to not be reported correctly. 1647 * To avoid this, we treat these as generic-hid devices. 1648 */ 1649 switch (id->driver_data) { 1650 case recvr_type_dj: no_dj_interfaces = 3; break; 1651 case recvr_type_hidpp: no_dj_interfaces = 2; break; 1652 case recvr_type_gaming_hidpp: no_dj_interfaces = 3; break; 1653 case recvr_type_mouse_only: no_dj_interfaces = 2; break; 1654 case recvr_type_27mhz: no_dj_interfaces = 2; break; 1655 case recvr_type_bluetooth: no_dj_interfaces = 2; break; 1656 } 1657 if (hid_is_using_ll_driver(hdev, &usb_hid_driver)) { 1658 intf = to_usb_interface(hdev->dev.parent); 1659 if (intf && intf->altsetting->desc.bInterfaceNumber >= 1660 no_dj_interfaces) { 1661 hdev->quirks |= HID_QUIRK_INPUT_PER_APP; 1662 return hid_hw_start(hdev, HID_CONNECT_DEFAULT); 1663 } 1664 } 1665 1666 rep_enum = &hdev->report_enum[HID_INPUT_REPORT]; 1667 1668 /* no input reports, bail out */ 1669 if (list_empty(&rep_enum->report_list)) 1670 return -ENODEV; 1671 1672 /* 1673 * Check for the HID++ application. 1674 * Note: we should theoretically check for HID++ and DJ 1675 * collections, but this will do. 1676 */ 1677 list_for_each_entry(rep, &rep_enum->report_list, list) { 1678 if (rep->application == 0xff000001) 1679 has_hidpp = true; 1680 } 1681 1682 /* 1683 * Ignore interfaces without DJ/HID++ collection, they will not carry 1684 * any data, dont create any hid_device for them. 1685 */ 1686 if (!has_hidpp && id->driver_data == recvr_type_dj) 1687 return -ENODEV; 1688 1689 /* get the current application attached to the node */ 1690 rep = list_first_entry(&rep_enum->report_list, struct hid_report, list); 1691 djrcv_dev = dj_get_receiver_dev(hdev, id->driver_data, 1692 rep->application, has_hidpp); 1693 if (!djrcv_dev) { 1694 hid_err(hdev, "%s: dj_get_receiver_dev failed\n", __func__); 1695 return -ENOMEM; 1696 } 1697 1698 if (!rep_enum->numbered) 1699 djrcv_dev->unnumbered_application = rep->application; 1700 1701 /* Starts the usb device and connects to upper interfaces hiddev and 1702 * hidraw */ 1703 retval = hid_hw_start(hdev, HID_CONNECT_HIDRAW|HID_CONNECT_HIDDEV); 1704 if (retval) { 1705 hid_err(hdev, "%s: hid_hw_start returned error\n", __func__); 1706 goto hid_hw_start_fail; 1707 } 1708 1709 if (has_hidpp) { 1710 retval = logi_dj_recv_switch_to_dj_mode(djrcv_dev, 0); 1711 if (retval < 0) { 1712 hid_err(hdev, "%s: logi_dj_recv_switch_to_dj_mode returned error:%d\n", 1713 __func__, retval); 1714 goto switch_to_dj_mode_fail; 1715 } 1716 } 1717 1718 /* This is enabling the polling urb on the IN endpoint */ 1719 retval = hid_hw_open(hdev); 1720 if (retval < 0) { 1721 hid_err(hdev, "%s: hid_hw_open returned error:%d\n", 1722 __func__, retval); 1723 goto llopen_failed; 1724 } 1725 1726 /* Allow incoming packets to arrive: */ 1727 hid_device_io_start(hdev); 1728 1729 if (has_hidpp) { 1730 spin_lock_irqsave(&djrcv_dev->lock, flags); 1731 djrcv_dev->ready = true; 1732 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 1733 retval = logi_dj_recv_query_paired_devices(djrcv_dev); 1734 if (retval < 0) { 1735 hid_err(hdev, "%s: logi_dj_recv_query_paired_devices error:%d\n", 1736 __func__, retval); 1737 goto logi_dj_recv_query_paired_devices_failed; 1738 } 1739 } 1740 1741 return retval; 1742 1743 logi_dj_recv_query_paired_devices_failed: 1744 hid_hw_close(hdev); 1745 1746 llopen_failed: 1747 switch_to_dj_mode_fail: 1748 hid_hw_stop(hdev); 1749 1750 hid_hw_start_fail: 1751 dj_put_receiver_dev(hdev); 1752 return retval; 1753 } 1754 1755 #ifdef CONFIG_PM 1756 static int logi_dj_reset_resume(struct hid_device *hdev) 1757 { 1758 int retval; 1759 struct dj_receiver_dev *djrcv_dev = hid_get_drvdata(hdev); 1760 1761 if (!djrcv_dev || djrcv_dev->hidpp != hdev) 1762 return 0; 1763 1764 retval = logi_dj_recv_switch_to_dj_mode(djrcv_dev, 0); 1765 if (retval < 0) { 1766 hid_err(hdev, "%s: logi_dj_recv_switch_to_dj_mode returned error:%d\n", 1767 __func__, retval); 1768 } 1769 1770 return 0; 1771 } 1772 #endif 1773 1774 static void logi_dj_remove(struct hid_device *hdev) 1775 { 1776 struct dj_receiver_dev *djrcv_dev = hid_get_drvdata(hdev); 1777 struct dj_device *dj_dev; 1778 unsigned long flags; 1779 int i; 1780 1781 dbg_hid("%s\n", __func__); 1782 1783 if (!djrcv_dev) 1784 return hid_hw_stop(hdev); 1785 1786 /* 1787 * This ensures that if the work gets requeued from another 1788 * interface of the same receiver it will be a no-op. 1789 */ 1790 spin_lock_irqsave(&djrcv_dev->lock, flags); 1791 djrcv_dev->ready = false; 1792 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 1793 1794 cancel_work_sync(&djrcv_dev->work); 1795 1796 hid_hw_close(hdev); 1797 hid_hw_stop(hdev); 1798 1799 /* 1800 * For proper operation we need access to all interfaces, so we destroy 1801 * the paired devices when we're unbound from any interface. 1802 * 1803 * Note we may still be bound to other interfaces, sharing the same 1804 * djrcv_dev, so we need locking here. 1805 */ 1806 for (i = 0; i < (DJ_MAX_PAIRED_DEVICES + DJ_DEVICE_INDEX_MIN); i++) { 1807 spin_lock_irqsave(&djrcv_dev->lock, flags); 1808 dj_dev = djrcv_dev->paired_dj_devices[i]; 1809 djrcv_dev->paired_dj_devices[i] = NULL; 1810 spin_unlock_irqrestore(&djrcv_dev->lock, flags); 1811 if (dj_dev != NULL) { 1812 hid_destroy_device(dj_dev->hdev); 1813 kfree(dj_dev); 1814 } 1815 } 1816 1817 dj_put_receiver_dev(hdev); 1818 } 1819 1820 static const struct hid_device_id logi_dj_receivers[] = { 1821 {HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH, 1822 USB_DEVICE_ID_LOGITECH_UNIFYING_RECEIVER), 1823 .driver_data = recvr_type_dj}, 1824 {HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH, 1825 USB_DEVICE_ID_LOGITECH_UNIFYING_RECEIVER_2), 1826 .driver_data = recvr_type_dj}, 1827 { /* Logitech Nano mouse only receiver */ 1828 HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH, 1829 USB_DEVICE_ID_LOGITECH_NANO_RECEIVER), 1830 .driver_data = recvr_type_mouse_only}, 1831 { /* Logitech Nano (non DJ) receiver */ 1832 HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH, 1833 USB_DEVICE_ID_LOGITECH_NANO_RECEIVER_2), 1834 .driver_data = recvr_type_hidpp}, 1835 { /* Logitech gaming receiver (0xc539) */ 1836 HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH, 1837 USB_DEVICE_ID_LOGITECH_NANO_RECEIVER_GAMING), 1838 .driver_data = recvr_type_gaming_hidpp}, 1839 { /* Logitech 27 MHz HID++ 1.0 receiver (0xc513) */ 1840 HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH, USB_DEVICE_ID_MX3000_RECEIVER), 1841 .driver_data = recvr_type_27mhz}, 1842 { /* Logitech 27 MHz HID++ 1.0 receiver (0xc517) */ 1843 HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH, 1844 USB_DEVICE_ID_S510_RECEIVER_2), 1845 .driver_data = recvr_type_27mhz}, 1846 { /* Logitech 27 MHz HID++ 1.0 mouse-only receiver (0xc51b) */ 1847 HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH, 1848 USB_DEVICE_ID_LOGITECH_27MHZ_MOUSE_RECEIVER), 1849 .driver_data = recvr_type_27mhz}, 1850 { /* Logitech MX5000 HID++ / bluetooth receiver keyboard intf. */ 1851 HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH, 1852 0xc70e), 1853 .driver_data = recvr_type_bluetooth}, 1854 { /* Logitech MX5000 HID++ / bluetooth receiver mouse intf. */ 1855 HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH, 1856 0xc70a), 1857 .driver_data = recvr_type_bluetooth}, 1858 { /* Logitech MX5500 HID++ / bluetooth receiver keyboard intf. */ 1859 HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH, 1860 0xc71b), 1861 .driver_data = recvr_type_bluetooth}, 1862 { /* Logitech MX5500 HID++ / bluetooth receiver mouse intf. */ 1863 HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH, 1864 0xc71c), 1865 .driver_data = recvr_type_bluetooth}, 1866 {} 1867 }; 1868 1869 MODULE_DEVICE_TABLE(hid, logi_dj_receivers); 1870 1871 static struct hid_driver logi_djreceiver_driver = { 1872 .name = "logitech-djreceiver", 1873 .id_table = logi_dj_receivers, 1874 .probe = logi_dj_probe, 1875 .remove = logi_dj_remove, 1876 .raw_event = logi_dj_raw_event, 1877 #ifdef CONFIG_PM 1878 .reset_resume = logi_dj_reset_resume, 1879 #endif 1880 }; 1881 1882 module_hid_driver(logi_djreceiver_driver); 1883 1884 MODULE_LICENSE("GPL"); 1885 MODULE_AUTHOR("Logitech"); 1886 MODULE_AUTHOR("Nestor Lopez Casado"); 1887 MODULE_AUTHOR("nlopezcasad@logitech.com"); 1888