1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * NXP Bluetooth driver 4 * Copyright 2023-2025 NXP 5 */ 6 7 #include <linux/module.h> 8 #include <linux/kernel.h> 9 10 #include <linux/serdev.h> 11 #include <linux/of.h> 12 #include <linux/of_graph.h> 13 #include <linux/pwrseq/consumer.h> 14 #include <linux/skbuff.h> 15 #include <linux/unaligned.h> 16 #include <linux/firmware.h> 17 #include <linux/string.h> 18 #include <linux/crc8.h> 19 #include <linux/crc32.h> 20 #include <linux/string_helpers.h> 21 #include <linux/gpio/consumer.h> 22 #include <linux/of_irq.h> 23 #include <linux/regulator/consumer.h> 24 #include <linux/reset.h> 25 26 #include <net/bluetooth/bluetooth.h> 27 #include <net/bluetooth/hci_core.h> 28 29 #include "hci_uart.h" 30 31 #define MANUFACTURER_NXP 37 32 33 #define BTNXPUART_TX_STATE_ACTIVE 1 34 #define BTNXPUART_FW_DOWNLOADING 2 35 #define BTNXPUART_CHECK_BOOT_SIGNATURE 3 36 #define BTNXPUART_SERDEV_OPEN 4 37 #define BTNXPUART_IR_IN_PROGRESS 5 38 #define BTNXPUART_FW_DOWNLOAD_ABORT 6 39 #define BTNXPUART_FW_DUMP_IN_PROGRESS 7 40 41 /* NXP HW err codes */ 42 #define BTNXPUART_IR_HW_ERR 0xb0 43 44 #define FIRMWARE_W8987 "uart8987_bt.bin" 45 #define FIRMWARE_W8987_OLD "uartuart8987_bt.bin" 46 #define FIRMWARE_W8997 "uart8997_bt_v4.bin" 47 #define FIRMWARE_W8997_OLD "uartuart8997_bt_v4.bin" 48 #define FIRMWARE_W9098 "uart9098_bt_v1.bin" 49 #define FIRMWARE_W9098_OLD "uartuart9098_bt_v1.bin" 50 #define FIRMWARE_IW416 "uartiw416_bt.bin" 51 #define FIRMWARE_IW416_OLD "uartiw416_bt_v0.bin" 52 #define FIRMWARE_IW612 "uartspi_n61x_v1.bin.se" 53 #define FIRMWARE_IW610 "uartspi_iw610.bin" 54 #define FIRMWARE_SECURE_IW610 "uartspi_iw610.bin.se" 55 #define FIRMWARE_IW624 "uartiw624_bt.bin" 56 #define FIRMWARE_SECURE_IW624 "uartiw624_bt.bin.se" 57 #define FIRMWARE_AW693 "uartaw693_bt.bin" 58 #define FIRMWARE_SECURE_AW693 "uartaw693_bt.bin.se" 59 #define FIRMWARE_AW693_A1 "uartaw693_bt_v1.bin" 60 #define FIRMWARE_SECURE_AW693_A1 "uartaw693_bt_v1.bin.se" 61 #define FIRMWARE_HELPER "helper_uart_3000000.bin" 62 63 #define CHIP_ID_W9098 0x5c03 64 #define CHIP_ID_IW416 0x7201 65 #define CHIP_ID_IW612 0x7601 66 #define CHIP_ID_IW624a 0x8000 67 #define CHIP_ID_IW624c 0x8001 68 #define CHIP_ID_AW693a0 0x8200 69 #define CHIP_ID_AW693a1 0x8201 70 #define CHIP_ID_IW610a0 0x8800 71 #define CHIP_ID_IW610a1 0x8801 72 73 #define FW_SECURE_MASK 0xc0 74 #define FW_OPEN 0x00 75 #define FW_AUTH_ILLEGAL 0x40 76 #define FW_AUTH_PLAIN 0x80 77 #define FW_AUTH_ENC 0xc0 78 79 #define HCI_NXP_PRI_BAUDRATE 115200 80 #define HCI_NXP_SEC_BAUDRATE_3M 3000000 81 #define HCI_NXP_SEC_BAUDRATE_4M 4000000 82 83 #define MAX_FW_FILE_NAME_LEN 50 84 85 /* Default ps timeout period in milliseconds */ 86 #define PS_DEFAULT_TIMEOUT_PERIOD_MS 2000 87 88 /* wakeup methods */ 89 #define WAKEUP_METHOD_DTR 0 90 #define WAKEUP_METHOD_BREAK 1 91 #define WAKEUP_METHOD_EXT_BREAK 2 92 #define WAKEUP_METHOD_RTS 3 93 #define WAKEUP_METHOD_GPIO 4 94 #define WAKEUP_METHOD_INVALID 0xff 95 96 /* power save mode status */ 97 #define PS_MODE_DISABLE 0 98 #define PS_MODE_ENABLE 1 99 100 /* Power Save Commands to ps_work_func */ 101 #define PS_CMD_EXIT_PS 1 102 #define PS_CMD_ENTER_PS 2 103 104 /* power save state */ 105 #define PS_STATE_AWAKE 0 106 #define PS_STATE_SLEEP 1 107 108 /* NXP Vendor Commands. Refer user manual UM11628 on nxp.com */ 109 /* Set custom BD Address */ 110 #define HCI_NXP_SET_BD_ADDR 0xfc22 111 /* Set Auto-Sleep mode */ 112 #define HCI_NXP_AUTO_SLEEP_MODE 0xfc23 113 /* Set Wakeup method */ 114 #define HCI_NXP_WAKEUP_METHOD 0xfc53 115 /* Set operational baudrate */ 116 #define HCI_NXP_SET_OPER_SPEED 0xfc09 117 /* Independent Reset (Soft Reset) */ 118 #define HCI_NXP_IND_RESET 0xfcfc 119 /* Bluetooth vendor command: Trigger FW dump */ 120 #define HCI_NXP_TRIGGER_DUMP 0xfe91 121 122 /* Bluetooth Power State : Vendor cmd params */ 123 #define BT_PS_ENABLE 0x02 124 #define BT_PS_DISABLE 0x03 125 126 /* Bluetooth Host Wakeup Methods */ 127 #define BT_HOST_WAKEUP_METHOD_NONE 0x00 128 #define BT_HOST_WAKEUP_METHOD_DTR 0x01 129 #define BT_HOST_WAKEUP_METHOD_BREAK 0x02 130 #define BT_HOST_WAKEUP_METHOD_GPIO 0x03 131 132 /* Bluetooth Chip Wakeup Methods */ 133 #define BT_CTRL_WAKEUP_METHOD_DSR 0x00 134 #define BT_CTRL_WAKEUP_METHOD_BREAK 0x01 135 #define BT_CTRL_WAKEUP_METHOD_GPIO 0x02 136 #define BT_CTRL_WAKEUP_METHOD_EXT_BREAK 0x04 137 #define BT_CTRL_WAKEUP_METHOD_RTS 0x05 138 139 struct ps_data { 140 u8 target_ps_mode; /* ps mode to be set */ 141 u8 cur_psmode; /* current ps_mode */ 142 u8 ps_state; /* controller's power save state */ 143 u8 ps_cmd; 144 u8 h2c_wakeupmode; 145 u8 cur_h2c_wakeupmode; 146 u8 c2h_wakeupmode; 147 u8 c2h_wakeup_gpio; 148 u8 h2c_wakeup_gpio; 149 bool driver_sent_cmd; 150 u16 h2c_ps_interval; 151 u16 c2h_ps_interval; 152 bool wakeup_source; 153 struct gpio_desc *h2c_ps_gpio; 154 s32 irq_handler; 155 struct hci_dev *hdev; 156 struct work_struct work; 157 struct timer_list ps_timer; 158 struct mutex ps_lock; 159 }; 160 161 struct wakeup_cmd_payload { 162 u8 c2h_wakeupmode; 163 u8 c2h_wakeup_gpio; 164 u8 h2c_wakeupmode; 165 u8 h2c_wakeup_gpio; 166 } __packed; 167 168 struct psmode_cmd_payload { 169 u8 ps_cmd; 170 __le16 c2h_ps_interval; 171 } __packed; 172 173 struct btnxpuart_data { 174 const char *helper_fw_name; 175 const char *fw_name; 176 const char *fw_name_old; 177 }; 178 179 enum bootloader_param_change { 180 not_changed, 181 cmd_sent, 182 changed 183 }; 184 185 struct btnxpuart_dev { 186 struct hci_dev *hdev; 187 struct serdev_device *serdev; 188 189 struct work_struct tx_work; 190 unsigned long tx_state; 191 struct sk_buff_head txq; 192 struct sk_buff *rx_skb; 193 194 const struct firmware *fw; 195 u8 fw_name[MAX_FW_FILE_NAME_LEN]; 196 u32 fw_dnld_v1_offset; 197 u32 fw_v1_sent_bytes; 198 u32 fw_dnld_v3_offset; 199 u32 fw_v3_offset_correction; 200 u32 fw_v3_prev_sent; 201 u32 fw_v1_expected_len; 202 u32 boot_reg_offset; 203 wait_queue_head_t fw_dnld_done_wait_q; 204 wait_queue_head_t check_boot_sign_wait_q; 205 206 u32 new_baudrate; 207 u32 current_baudrate; 208 u32 fw_init_baudrate; 209 u32 secondary_baudrate; 210 enum bootloader_param_change timeout_changed; 211 enum bootloader_param_change baudrate_changed; 212 bool helper_downloaded; 213 214 struct ps_data psdata; 215 struct btnxpuart_data *nxp_data; 216 struct pwrseq_desc *pwrseq; 217 struct reset_control *pdn; 218 struct hci_uart hu; 219 }; 220 221 #define NXP_V1_FW_REQ_PKT 0xa5 222 #define NXP_V1_CHIP_VER_PKT 0xaa 223 #define NXP_V3_FW_REQ_PKT 0xa7 224 #define NXP_V3_CHIP_VER_PKT 0xab 225 226 #define NXP_ACK_V1 0x5a 227 #define NXP_NAK_V1 0xbf 228 #define NXP_ACK_V3 0x7a 229 #define NXP_NAK_V3 0x7b 230 #define NXP_CRC_ERROR_V3 0x7c 231 232 /* Bootloader signature error codes: Refer AN12820 from nxp.com */ 233 #define NXP_CRC_RX_ERROR BIT(0) /* CRC error in previous packet */ 234 #define NXP_ACK_RX_TIMEOUT BIT(2) /* ACK not received from host */ 235 #define NXP_HDR_RX_TIMEOUT BIT(3) /* FW Header chunk not received */ 236 #define NXP_DATA_RX_TIMEOUT BIT(4) /* FW Data chunk not received */ 237 238 #define HDR_LEN 16 239 240 #define NXP_RECV_CHIP_VER_V1 \ 241 .type = NXP_V1_CHIP_VER_PKT, \ 242 .hlen = 4, \ 243 .loff = 0, \ 244 .lsize = 0, \ 245 .maxlen = 4 246 247 #define NXP_RECV_FW_REQ_V1 \ 248 .type = NXP_V1_FW_REQ_PKT, \ 249 .hlen = 4, \ 250 .loff = 0, \ 251 .lsize = 0, \ 252 .maxlen = 4 253 254 #define NXP_RECV_CHIP_VER_V3 \ 255 .type = NXP_V3_CHIP_VER_PKT, \ 256 .hlen = 4, \ 257 .loff = 0, \ 258 .lsize = 0, \ 259 .maxlen = 4 260 261 #define NXP_RECV_FW_REQ_V3 \ 262 .type = NXP_V3_FW_REQ_PKT, \ 263 .hlen = 9, \ 264 .loff = 0, \ 265 .lsize = 0, \ 266 .maxlen = 9 267 268 struct v1_data_req { 269 __le16 len; 270 __le16 len_comp; 271 } __packed; 272 273 struct v1_start_ind { 274 __le16 chip_id; 275 __le16 chip_id_comp; 276 } __packed; 277 278 struct v3_data_req { 279 __le16 len; 280 __le32 offset; 281 __le16 error; 282 u8 crc; 283 } __packed; 284 285 struct v3_start_ind { 286 __le16 chip_id; 287 u8 loader_ver; 288 u8 crc; 289 } __packed; 290 291 /* UART register addresses of BT chip */ 292 #define CLKDIVADDR 0x7f00008f 293 #define UARTDIVADDR 0x7f000090 294 #define UARTMCRADDR 0x7f000091 295 #define UARTREINITADDR 0x7f000092 296 #define UARTICRADDR 0x7f000093 297 #define UARTFCRADDR 0x7f000094 298 299 #define MCR 0x00000022 300 #define INIT 0x00000001 301 #define ICR 0x000000c7 302 #define FCR 0x000000c7 303 304 #define POLYNOMIAL8 0x07 305 306 struct uart_reg { 307 __le32 address; 308 __le32 value; 309 } __packed; 310 311 struct uart_config { 312 struct uart_reg clkdiv; 313 struct uart_reg uartdiv; 314 struct uart_reg mcr; 315 struct uart_reg re_init; 316 struct uart_reg icr; 317 struct uart_reg fcr; 318 __be32 crc; 319 } __packed; 320 321 struct nxp_bootloader_cmd { 322 __le32 header; 323 __le32 arg; 324 __le32 payload_len; 325 __be32 crc; 326 } __packed; 327 328 struct nxp_v3_rx_timeout_nak { 329 u8 nak; 330 __le32 offset; 331 u8 crc; 332 } __packed; 333 334 union nxp_v3_rx_timeout_nak_u { 335 struct nxp_v3_rx_timeout_nak pkt; 336 u8 buf[6]; 337 }; 338 339 struct nxp_v3_crc_nak { 340 u8 nak; 341 u8 crc; 342 } __packed; 343 344 union nxp_v3_crc_nak_u { 345 struct nxp_v3_crc_nak pkt; 346 u8 buf[2]; 347 }; 348 349 /* FW dump */ 350 #define NXP_FW_DUMP_SIZE (1024 * 1000) 351 352 struct nxp_fw_dump_hdr { 353 __le16 seq_num; 354 __le16 reserved; 355 __le16 buf_type; 356 __le16 buf_len; 357 }; 358 359 union nxp_set_bd_addr_payload { 360 struct { 361 u8 param_id; 362 u8 param_len; 363 u8 param[6]; 364 } __packed data; 365 u8 buf[8]; 366 }; 367 368 static u8 crc8_table[CRC8_TABLE_SIZE]; 369 370 /* Default configurations */ 371 #define DEFAULT_H2C_WAKEUP_MODE WAKEUP_METHOD_BREAK 372 #define DEFAULT_PS_MODE PS_MODE_ENABLE 373 #define FW_INIT_BAUDRATE HCI_NXP_PRI_BAUDRATE 374 375 static struct sk_buff *nxp_drv_send_cmd(struct hci_dev *hdev, u16 opcode, 376 u32 plen, 377 void *param, 378 bool resp) 379 { 380 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 381 struct ps_data *psdata = &nxpdev->psdata; 382 struct sk_buff *skb = NULL; 383 384 /* set flag to prevent nxp_enqueue from parsing values from this command and 385 * calling hci_cmd_sync_queue() again. 386 */ 387 psdata->driver_sent_cmd = true; 388 if (resp) { 389 skb = __hci_cmd_sync(hdev, opcode, plen, param, HCI_CMD_TIMEOUT); 390 } else { 391 __hci_cmd_send(hdev, opcode, plen, param); 392 /* Allow command to be sent before tx_work is cancelled 393 * by btnxpuart_flush() 394 */ 395 msleep(20); 396 } 397 psdata->driver_sent_cmd = false; 398 399 return skb; 400 } 401 402 static void btnxpuart_tx_wakeup(struct btnxpuart_dev *nxpdev) 403 { 404 if (schedule_work(&nxpdev->tx_work)) 405 set_bit(BTNXPUART_TX_STATE_ACTIVE, &nxpdev->tx_state); 406 } 407 408 /* NXP Power Save Feature */ 409 static void ps_start_timer(struct btnxpuart_dev *nxpdev) 410 { 411 struct ps_data *psdata = &nxpdev->psdata; 412 413 if (!psdata) 414 return; 415 416 if (psdata->cur_psmode == PS_MODE_ENABLE) 417 mod_timer(&psdata->ps_timer, jiffies + msecs_to_jiffies(psdata->h2c_ps_interval)); 418 419 if (psdata->ps_state == PS_STATE_AWAKE && psdata->ps_cmd == PS_CMD_ENTER_PS) 420 cancel_work_sync(&psdata->work); 421 } 422 423 static void ps_cancel_timer(struct btnxpuart_dev *nxpdev) 424 { 425 struct ps_data *psdata = &nxpdev->psdata; 426 427 flush_work(&psdata->work); 428 timer_shutdown_sync(&psdata->ps_timer); 429 } 430 431 static void ps_control(struct hci_dev *hdev, u8 ps_state) 432 { 433 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 434 struct ps_data *psdata = &nxpdev->psdata; 435 int status = 0; 436 437 if (psdata->ps_state == ps_state || 438 !test_bit(BTNXPUART_SERDEV_OPEN, &nxpdev->tx_state)) 439 return; 440 441 mutex_lock(&psdata->ps_lock); 442 switch (psdata->cur_h2c_wakeupmode) { 443 case WAKEUP_METHOD_GPIO: 444 if (ps_state == PS_STATE_AWAKE) 445 gpiod_set_value_cansleep(psdata->h2c_ps_gpio, 0); 446 else 447 gpiod_set_value_cansleep(psdata->h2c_ps_gpio, 1); 448 bt_dev_dbg(hdev, "Set h2c_ps_gpio: %s", 449 str_high_low(ps_state == PS_STATE_SLEEP)); 450 break; 451 case WAKEUP_METHOD_DTR: 452 if (ps_state == PS_STATE_AWAKE) 453 status = serdev_device_set_tiocm(nxpdev->serdev, TIOCM_DTR, 0); 454 else 455 status = serdev_device_set_tiocm(nxpdev->serdev, 0, TIOCM_DTR); 456 break; 457 case WAKEUP_METHOD_BREAK: 458 default: 459 if (ps_state == PS_STATE_AWAKE) 460 status = serdev_device_break_ctl(nxpdev->serdev, 0); 461 else 462 status = serdev_device_break_ctl(nxpdev->serdev, -1); 463 msleep(20); /* Allow chip to detect UART-break and enter sleep */ 464 bt_dev_dbg(hdev, "Set UART break: %s, status=%d", 465 str_on_off(ps_state == PS_STATE_SLEEP), status); 466 break; 467 } 468 if (!status) 469 psdata->ps_state = ps_state; 470 mutex_unlock(&psdata->ps_lock); 471 472 if (ps_state == PS_STATE_AWAKE) 473 btnxpuart_tx_wakeup(nxpdev); 474 } 475 476 static void ps_work_func(struct work_struct *work) 477 { 478 struct ps_data *data = container_of(work, struct ps_data, work); 479 480 if (data->ps_cmd == PS_CMD_ENTER_PS && data->cur_psmode == PS_MODE_ENABLE) 481 ps_control(data->hdev, PS_STATE_SLEEP); 482 else if (data->ps_cmd == PS_CMD_EXIT_PS) 483 ps_control(data->hdev, PS_STATE_AWAKE); 484 } 485 486 static void ps_timeout_func(struct timer_list *t) 487 { 488 struct ps_data *data = timer_container_of(data, t, ps_timer); 489 struct hci_dev *hdev = data->hdev; 490 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 491 492 if (test_bit(BTNXPUART_TX_STATE_ACTIVE, &nxpdev->tx_state)) { 493 ps_start_timer(nxpdev); 494 } else { 495 data->ps_cmd = PS_CMD_ENTER_PS; 496 schedule_work(&data->work); 497 } 498 } 499 500 static irqreturn_t ps_host_wakeup_irq_handler(int irq, void *priv) 501 { 502 struct btnxpuart_dev *nxpdev = (struct btnxpuart_dev *)priv; 503 504 bt_dev_dbg(nxpdev->hdev, "Host wakeup interrupt"); 505 return IRQ_HANDLED; 506 } 507 static int ps_setup(struct hci_dev *hdev) 508 { 509 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 510 struct serdev_device *serdev = nxpdev->serdev; 511 struct ps_data *psdata = &nxpdev->psdata; 512 int ret; 513 514 /* Out-Of-Band Device Wakeup */ 515 psdata->h2c_ps_gpio = devm_gpiod_get_optional(&serdev->dev, "device-wakeup", 516 GPIOD_OUT_LOW); 517 if (IS_ERR(psdata->h2c_ps_gpio)) { 518 bt_dev_err(hdev, "Error fetching device-wakeup-gpios: %ld", 519 PTR_ERR(psdata->h2c_ps_gpio)); 520 return PTR_ERR(psdata->h2c_ps_gpio); 521 } 522 523 if (device_property_read_u8(&serdev->dev, "nxp,wakein-pin", &psdata->h2c_wakeup_gpio)) { 524 psdata->h2c_wakeup_gpio = 0xff; /* 0xff: use default pin/gpio */ 525 } else if (!psdata->h2c_ps_gpio) { 526 bt_dev_warn(hdev, "nxp,wakein-pin property without device-wakeup-gpios"); 527 psdata->h2c_wakeup_gpio = 0xff; 528 } 529 530 /* Out-Of-Band Host Wakeup */ 531 if (of_property_read_bool(serdev->dev.of_node, "wakeup-source")) { 532 psdata->irq_handler = of_irq_get_byname(serdev->dev.of_node, "wakeup"); 533 bt_dev_info(nxpdev->hdev, "irq_handler: %d", psdata->irq_handler); 534 if (psdata->irq_handler > 0) 535 psdata->wakeup_source = true; 536 } 537 538 if (device_property_read_u8(&serdev->dev, "nxp,wakeout-pin", &psdata->c2h_wakeup_gpio)) { 539 psdata->c2h_wakeup_gpio = 0xff; 540 if (psdata->wakeup_source) { 541 bt_dev_warn(hdev, "host wakeup interrupt without nxp,wakeout-pin"); 542 psdata->wakeup_source = false; 543 } 544 } else if (!psdata->wakeup_source) { 545 bt_dev_warn(hdev, "nxp,wakeout-pin property without host wakeup interrupt"); 546 psdata->c2h_wakeup_gpio = 0xff; 547 } 548 549 if (psdata->wakeup_source) { 550 ret = devm_request_threaded_irq(&serdev->dev, psdata->irq_handler, 551 NULL, ps_host_wakeup_irq_handler, 552 IRQF_ONESHOT, 553 dev_name(&serdev->dev), nxpdev); 554 if (ret) 555 bt_dev_info(hdev, "error setting wakeup IRQ handler, ignoring\n"); 556 disable_irq(psdata->irq_handler); 557 device_init_wakeup(&serdev->dev, true); 558 } 559 560 psdata->hdev = hdev; 561 INIT_WORK(&psdata->work, ps_work_func); 562 mutex_init(&psdata->ps_lock); 563 timer_setup(&psdata->ps_timer, ps_timeout_func, 0); 564 565 return 0; 566 } 567 568 static bool ps_wakeup(struct btnxpuart_dev *nxpdev) 569 { 570 struct ps_data *psdata = &nxpdev->psdata; 571 u8 ps_state; 572 573 mutex_lock(&psdata->ps_lock); 574 ps_state = psdata->ps_state; 575 mutex_unlock(&psdata->ps_lock); 576 577 if (ps_state != PS_STATE_AWAKE) { 578 psdata->ps_cmd = PS_CMD_EXIT_PS; 579 schedule_work(&psdata->work); 580 return true; 581 } 582 return false; 583 } 584 585 static void ps_cleanup(struct btnxpuart_dev *nxpdev) 586 { 587 struct ps_data *psdata = &nxpdev->psdata; 588 u8 ps_state; 589 590 mutex_lock(&psdata->ps_lock); 591 ps_state = psdata->ps_state; 592 mutex_unlock(&psdata->ps_lock); 593 594 if (ps_state != PS_STATE_AWAKE) 595 ps_control(psdata->hdev, PS_STATE_AWAKE); 596 597 ps_cancel_timer(nxpdev); 598 cancel_work_sync(&psdata->work); 599 mutex_destroy(&psdata->ps_lock); 600 } 601 602 static int send_ps_cmd(struct hci_dev *hdev, void *data) 603 { 604 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 605 struct ps_data *psdata = &nxpdev->psdata; 606 struct psmode_cmd_payload pcmd; 607 struct sk_buff *skb; 608 u8 *status; 609 610 if (psdata->target_ps_mode == PS_MODE_ENABLE) 611 pcmd.ps_cmd = BT_PS_ENABLE; 612 else 613 pcmd.ps_cmd = BT_PS_DISABLE; 614 pcmd.c2h_ps_interval = __cpu_to_le16(psdata->c2h_ps_interval); 615 616 skb = nxp_drv_send_cmd(hdev, HCI_NXP_AUTO_SLEEP_MODE, sizeof(pcmd), 617 &pcmd, true); 618 if (IS_ERR(skb)) { 619 bt_dev_err(hdev, "Setting Power Save mode failed (%ld)", PTR_ERR(skb)); 620 return PTR_ERR(skb); 621 } 622 623 status = skb_pull_data(skb, 1); 624 if (status) { 625 if (!*status) 626 psdata->cur_psmode = psdata->target_ps_mode; 627 else 628 psdata->target_ps_mode = psdata->cur_psmode; 629 if (psdata->cur_psmode == PS_MODE_ENABLE) 630 ps_start_timer(nxpdev); 631 else 632 ps_wakeup(nxpdev); 633 bt_dev_dbg(hdev, "Power Save mode response: status=%d, ps_mode=%d", 634 *status, psdata->cur_psmode); 635 } 636 kfree_skb(skb); 637 638 return 0; 639 } 640 641 static int send_wakeup_method_cmd(struct hci_dev *hdev, void *data) 642 { 643 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 644 struct ps_data *psdata = &nxpdev->psdata; 645 struct wakeup_cmd_payload pcmd; 646 struct sk_buff *skb; 647 u8 *status; 648 649 pcmd.c2h_wakeupmode = psdata->c2h_wakeupmode; 650 pcmd.c2h_wakeup_gpio = psdata->c2h_wakeup_gpio; 651 pcmd.h2c_wakeup_gpio = 0xff; 652 switch (psdata->h2c_wakeupmode) { 653 case WAKEUP_METHOD_GPIO: 654 pcmd.h2c_wakeupmode = BT_CTRL_WAKEUP_METHOD_GPIO; 655 pcmd.h2c_wakeup_gpio = psdata->h2c_wakeup_gpio; 656 break; 657 case WAKEUP_METHOD_DTR: 658 pcmd.h2c_wakeupmode = BT_CTRL_WAKEUP_METHOD_DSR; 659 break; 660 case WAKEUP_METHOD_BREAK: 661 default: 662 pcmd.h2c_wakeupmode = BT_CTRL_WAKEUP_METHOD_BREAK; 663 break; 664 } 665 666 skb = nxp_drv_send_cmd(hdev, HCI_NXP_WAKEUP_METHOD, sizeof(pcmd), 667 &pcmd, true); 668 if (IS_ERR(skb)) { 669 bt_dev_err(hdev, "Setting wake-up method failed (%ld)", PTR_ERR(skb)); 670 return PTR_ERR(skb); 671 } 672 673 status = skb_pull_data(skb, 1); 674 if (status) { 675 if (*status == 0) 676 psdata->cur_h2c_wakeupmode = psdata->h2c_wakeupmode; 677 else 678 psdata->h2c_wakeupmode = psdata->cur_h2c_wakeupmode; 679 bt_dev_dbg(hdev, "Set Wakeup Method response: status=%d, h2c_wakeupmode=%d", 680 *status, psdata->cur_h2c_wakeupmode); 681 } 682 kfree_skb(skb); 683 684 return 0; 685 } 686 687 static void ps_init(struct hci_dev *hdev) 688 { 689 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 690 struct ps_data *psdata = &nxpdev->psdata; 691 u8 default_h2c_wakeup_mode = DEFAULT_H2C_WAKEUP_MODE; 692 693 serdev_device_set_tiocm(nxpdev->serdev, 0, TIOCM_RTS); 694 usleep_range(5000, 10000); 695 serdev_device_set_tiocm(nxpdev->serdev, TIOCM_RTS, 0); 696 usleep_range(5000, 10000); 697 698 psdata->ps_state = PS_STATE_AWAKE; 699 700 if (psdata->c2h_wakeup_gpio != 0xff) 701 psdata->c2h_wakeupmode = BT_HOST_WAKEUP_METHOD_GPIO; 702 else 703 psdata->c2h_wakeupmode = BT_HOST_WAKEUP_METHOD_NONE; 704 705 psdata->cur_h2c_wakeupmode = WAKEUP_METHOD_INVALID; 706 if (psdata->h2c_ps_gpio) 707 default_h2c_wakeup_mode = WAKEUP_METHOD_GPIO; 708 709 psdata->h2c_ps_interval = PS_DEFAULT_TIMEOUT_PERIOD_MS; 710 711 switch (default_h2c_wakeup_mode) { 712 case WAKEUP_METHOD_GPIO: 713 psdata->h2c_wakeupmode = WAKEUP_METHOD_GPIO; 714 gpiod_set_value_cansleep(psdata->h2c_ps_gpio, 0); 715 usleep_range(5000, 10000); 716 break; 717 case WAKEUP_METHOD_DTR: 718 psdata->h2c_wakeupmode = WAKEUP_METHOD_DTR; 719 serdev_device_set_tiocm(nxpdev->serdev, 0, TIOCM_DTR); 720 serdev_device_set_tiocm(nxpdev->serdev, TIOCM_DTR, 0); 721 break; 722 case WAKEUP_METHOD_BREAK: 723 default: 724 psdata->h2c_wakeupmode = WAKEUP_METHOD_BREAK; 725 serdev_device_break_ctl(nxpdev->serdev, -1); 726 usleep_range(5000, 10000); 727 serdev_device_break_ctl(nxpdev->serdev, 0); 728 usleep_range(5000, 10000); 729 break; 730 } 731 732 psdata->cur_psmode = PS_MODE_DISABLE; 733 psdata->target_ps_mode = DEFAULT_PS_MODE; 734 } 735 736 /* NXP Firmware Download Feature */ 737 static int nxp_download_firmware(struct hci_dev *hdev) 738 { 739 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 740 int err = 0; 741 742 nxpdev->fw_dnld_v1_offset = 0; 743 nxpdev->fw_v1_sent_bytes = 0; 744 nxpdev->fw_v1_expected_len = HDR_LEN; 745 nxpdev->boot_reg_offset = 0; 746 nxpdev->fw_dnld_v3_offset = 0; 747 nxpdev->fw_v3_offset_correction = 0; 748 nxpdev->baudrate_changed = not_changed; 749 nxpdev->timeout_changed = not_changed; 750 nxpdev->helper_downloaded = false; 751 752 serdev_device_set_baudrate(nxpdev->serdev, HCI_NXP_PRI_BAUDRATE); 753 serdev_device_set_flow_control(nxpdev->serdev, false); 754 nxpdev->current_baudrate = HCI_NXP_PRI_BAUDRATE; 755 756 /* Wait till FW is downloaded */ 757 err = wait_event_interruptible_timeout(nxpdev->fw_dnld_done_wait_q, 758 !test_bit(BTNXPUART_FW_DOWNLOADING, 759 &nxpdev->tx_state), 760 msecs_to_jiffies(60000)); 761 762 if (nxpdev->fw && strlen(nxpdev->fw_name)) { 763 release_firmware(nxpdev->fw); 764 memset(nxpdev->fw_name, 0, sizeof(nxpdev->fw_name)); 765 } 766 767 if (err == 0) { 768 bt_dev_err(hdev, "FW Download Timeout. offset: %d", 769 nxpdev->fw_dnld_v1_offset ? 770 nxpdev->fw_dnld_v1_offset : 771 nxpdev->fw_dnld_v3_offset); 772 return -ETIMEDOUT; 773 } 774 if (test_bit(BTNXPUART_FW_DOWNLOAD_ABORT, &nxpdev->tx_state)) { 775 bt_dev_err(hdev, "FW Download Aborted"); 776 return -EINTR; 777 } 778 779 serdev_device_set_flow_control(nxpdev->serdev, true); 780 781 /* Allow the downloaded FW to initialize */ 782 msleep(1200); 783 784 return 0; 785 } 786 787 static void nxp_send_ack(u8 ack, struct hci_dev *hdev) 788 { 789 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 790 u8 ack_nak[2]; 791 int len = 1; 792 793 ack_nak[0] = ack; 794 if (ack == NXP_ACK_V3) { 795 ack_nak[1] = crc8(crc8_table, ack_nak, 1, 0xff); 796 len = 2; 797 } 798 serdev_device_write_buf(nxpdev->serdev, ack_nak, len); 799 } 800 801 static bool nxp_fw_change_baudrate(struct hci_dev *hdev, u16 req_len) 802 { 803 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 804 struct nxp_bootloader_cmd nxp_cmd5; 805 struct uart_config uart_config; 806 u32 clkdivaddr = CLKDIVADDR - nxpdev->boot_reg_offset; 807 u32 uartdivaddr = UARTDIVADDR - nxpdev->boot_reg_offset; 808 u32 uartmcraddr = UARTMCRADDR - nxpdev->boot_reg_offset; 809 u32 uartreinitaddr = UARTREINITADDR - nxpdev->boot_reg_offset; 810 u32 uarticraddr = UARTICRADDR - nxpdev->boot_reg_offset; 811 u32 uartfcraddr = UARTFCRADDR - nxpdev->boot_reg_offset; 812 813 if (req_len == sizeof(nxp_cmd5)) { 814 nxp_cmd5.header = __cpu_to_le32(5); 815 nxp_cmd5.arg = 0; 816 nxp_cmd5.payload_len = __cpu_to_le32(sizeof(uart_config)); 817 /* FW expects swapped CRC bytes */ 818 nxp_cmd5.crc = __cpu_to_be32(crc32_be(0UL, (char *)&nxp_cmd5, 819 sizeof(nxp_cmd5) - 4)); 820 821 serdev_device_write_buf(nxpdev->serdev, (u8 *)&nxp_cmd5, sizeof(nxp_cmd5)); 822 nxpdev->fw_v3_offset_correction += req_len; 823 } else if (req_len == sizeof(uart_config)) { 824 uart_config.clkdiv.address = __cpu_to_le32(clkdivaddr); 825 if (nxpdev->new_baudrate == HCI_NXP_SEC_BAUDRATE_4M) 826 uart_config.clkdiv.value = __cpu_to_le32(0x01000000); 827 else 828 uart_config.clkdiv.value = __cpu_to_le32(0x00c00000); 829 uart_config.uartdiv.address = __cpu_to_le32(uartdivaddr); 830 uart_config.uartdiv.value = __cpu_to_le32(1); 831 uart_config.mcr.address = __cpu_to_le32(uartmcraddr); 832 uart_config.mcr.value = __cpu_to_le32(MCR); 833 uart_config.re_init.address = __cpu_to_le32(uartreinitaddr); 834 uart_config.re_init.value = __cpu_to_le32(INIT); 835 uart_config.icr.address = __cpu_to_le32(uarticraddr); 836 uart_config.icr.value = __cpu_to_le32(ICR); 837 uart_config.fcr.address = __cpu_to_le32(uartfcraddr); 838 uart_config.fcr.value = __cpu_to_le32(FCR); 839 /* FW expects swapped CRC bytes */ 840 uart_config.crc = __cpu_to_be32(crc32_be(0UL, (char *)&uart_config, 841 sizeof(uart_config) - 4)); 842 843 serdev_device_write_buf(nxpdev->serdev, (u8 *)&uart_config, sizeof(uart_config)); 844 serdev_device_wait_until_sent(nxpdev->serdev, 0); 845 nxpdev->fw_v3_offset_correction += req_len; 846 return true; 847 } 848 return false; 849 } 850 851 static bool nxp_fw_change_timeout(struct hci_dev *hdev, u16 req_len) 852 { 853 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 854 struct nxp_bootloader_cmd nxp_cmd7; 855 856 if (req_len != sizeof(nxp_cmd7)) 857 return false; 858 859 nxp_cmd7.header = __cpu_to_le32(7); 860 nxp_cmd7.arg = __cpu_to_le32(0x70); 861 nxp_cmd7.payload_len = 0; 862 /* FW expects swapped CRC bytes */ 863 nxp_cmd7.crc = __cpu_to_be32(crc32_be(0UL, (char *)&nxp_cmd7, 864 sizeof(nxp_cmd7) - 4)); 865 serdev_device_write_buf(nxpdev->serdev, (u8 *)&nxp_cmd7, sizeof(nxp_cmd7)); 866 serdev_device_wait_until_sent(nxpdev->serdev, 0); 867 nxpdev->fw_v3_offset_correction += req_len; 868 return true; 869 } 870 871 static u32 nxp_get_data_len(const u8 *buf) 872 { 873 struct nxp_bootloader_cmd *hdr = (struct nxp_bootloader_cmd *)buf; 874 875 return __le32_to_cpu(hdr->payload_len); 876 } 877 878 static bool is_fw_downloading(struct btnxpuart_dev *nxpdev) 879 { 880 return test_bit(BTNXPUART_FW_DOWNLOADING, &nxpdev->tx_state); 881 } 882 883 static bool ind_reset_in_progress(struct btnxpuart_dev *nxpdev) 884 { 885 return test_bit(BTNXPUART_IR_IN_PROGRESS, &nxpdev->tx_state); 886 } 887 888 static bool fw_dump_in_progress(struct btnxpuart_dev *nxpdev) 889 { 890 return test_bit(BTNXPUART_FW_DUMP_IN_PROGRESS, &nxpdev->tx_state); 891 } 892 893 static bool process_boot_signature(struct btnxpuart_dev *nxpdev) 894 { 895 if (test_bit(BTNXPUART_CHECK_BOOT_SIGNATURE, &nxpdev->tx_state)) { 896 clear_bit(BTNXPUART_CHECK_BOOT_SIGNATURE, &nxpdev->tx_state); 897 wake_up_interruptible(&nxpdev->check_boot_sign_wait_q); 898 return false; 899 } 900 return is_fw_downloading(nxpdev); 901 } 902 903 static int nxp_request_firmware(struct hci_dev *hdev, const char *fw_name, 904 const char *fw_name_old) 905 { 906 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 907 const char *fw_name_dt; 908 int err = 0; 909 910 if (!fw_name) 911 return -ENOENT; 912 913 if (!strlen(nxpdev->fw_name)) { 914 if (strcmp(fw_name, FIRMWARE_HELPER) && 915 !device_property_read_string(&nxpdev->serdev->dev, 916 "firmware-name", 917 &fw_name_dt)) 918 fw_name = fw_name_dt; 919 snprintf(nxpdev->fw_name, MAX_FW_FILE_NAME_LEN, "nxp/%s", fw_name); 920 err = request_firmware_direct(&nxpdev->fw, nxpdev->fw_name, &hdev->dev); 921 if (err < 0 && fw_name_old) { 922 snprintf(nxpdev->fw_name, MAX_FW_FILE_NAME_LEN, "nxp/%s", fw_name_old); 923 err = request_firmware_direct(&nxpdev->fw, nxpdev->fw_name, &hdev->dev); 924 } 925 926 bt_dev_info(hdev, "Request Firmware: %s", nxpdev->fw_name); 927 if (err < 0) { 928 bt_dev_err(hdev, "Firmware file %s not found", nxpdev->fw_name); 929 clear_bit(BTNXPUART_FW_DOWNLOADING, &nxpdev->tx_state); 930 } 931 } 932 return err; 933 } 934 935 /* for legacy chipsets with V1 bootloader */ 936 static int nxp_recv_chip_ver_v1(struct hci_dev *hdev, struct sk_buff *skb) 937 { 938 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 939 struct v1_start_ind *req; 940 __u16 chip_id; 941 942 req = skb_pull_data(skb, sizeof(*req)); 943 if (!req) 944 goto free_skb; 945 946 chip_id = le16_to_cpu(req->chip_id ^ req->chip_id_comp); 947 if (chip_id == 0xffff && nxpdev->fw_dnld_v1_offset) { 948 nxpdev->fw_dnld_v1_offset = 0; 949 nxpdev->fw_v1_sent_bytes = 0; 950 nxpdev->fw_v1_expected_len = HDR_LEN; 951 release_firmware(nxpdev->fw); 952 memset(nxpdev->fw_name, 0, sizeof(nxpdev->fw_name)); 953 nxp_send_ack(NXP_ACK_V1, hdev); 954 } 955 956 free_skb: 957 kfree_skb(skb); 958 return 0; 959 } 960 961 static int nxp_recv_fw_req_v1(struct hci_dev *hdev, struct sk_buff *skb) 962 { 963 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 964 struct btnxpuart_data *nxp_data = nxpdev->nxp_data; 965 struct v1_data_req *req; 966 __u16 len; 967 968 if (!process_boot_signature(nxpdev)) 969 goto free_skb; 970 971 req = skb_pull_data(skb, sizeof(*req)); 972 if (!req) 973 goto free_skb; 974 975 len = __le16_to_cpu(req->len ^ req->len_comp); 976 if (len != 0xffff) { 977 bt_dev_dbg(hdev, "ERR: Send NAK"); 978 nxp_send_ack(NXP_NAK_V1, hdev); 979 goto free_skb; 980 } 981 nxp_send_ack(NXP_ACK_V1, hdev); 982 983 len = __le16_to_cpu(req->len); 984 985 if (!nxp_data->helper_fw_name) { 986 if (nxpdev->timeout_changed != changed) { 987 nxp_fw_change_timeout(hdev, len); 988 nxpdev->timeout_changed = changed; 989 goto free_skb; 990 } 991 if (nxpdev->baudrate_changed != changed) { 992 nxpdev->new_baudrate = nxpdev->secondary_baudrate; 993 if (nxp_fw_change_baudrate(hdev, len)) { 994 nxpdev->baudrate_changed = changed; 995 serdev_device_set_baudrate(nxpdev->serdev, 996 nxpdev->secondary_baudrate); 997 serdev_device_set_flow_control(nxpdev->serdev, true); 998 nxpdev->current_baudrate = nxpdev->secondary_baudrate; 999 } 1000 goto free_skb; 1001 } 1002 } 1003 1004 if (!nxp_data->helper_fw_name || nxpdev->helper_downloaded) { 1005 if (nxp_request_firmware(hdev, nxp_data->fw_name, nxp_data->fw_name_old)) 1006 goto free_skb; 1007 } else if (nxp_data->helper_fw_name && !nxpdev->helper_downloaded) { 1008 if (nxp_request_firmware(hdev, nxp_data->helper_fw_name, NULL)) 1009 goto free_skb; 1010 } 1011 1012 if (!len) { 1013 bt_dev_info(hdev, "FW Download Complete: %zu bytes", 1014 nxpdev->fw->size); 1015 if (nxp_data->helper_fw_name && !nxpdev->helper_downloaded) { 1016 nxpdev->helper_downloaded = true; 1017 serdev_device_wait_until_sent(nxpdev->serdev, 0); 1018 serdev_device_set_baudrate(nxpdev->serdev, 1019 HCI_NXP_SEC_BAUDRATE_3M); 1020 serdev_device_set_flow_control(nxpdev->serdev, true); 1021 } else { 1022 clear_bit(BTNXPUART_FW_DOWNLOADING, &nxpdev->tx_state); 1023 wake_up_interruptible(&nxpdev->fw_dnld_done_wait_q); 1024 } 1025 goto free_skb; 1026 } 1027 if (len & 0x01) { 1028 /* The CRC did not match at the other end. 1029 * Simply send the same bytes again. 1030 */ 1031 len = nxpdev->fw_v1_sent_bytes; 1032 bt_dev_dbg(hdev, "CRC error. Resend %d bytes of FW.", len); 1033 } else { 1034 nxpdev->fw_dnld_v1_offset += nxpdev->fw_v1_sent_bytes; 1035 1036 /* The FW bin file is made up of many blocks of 1037 * 16 byte header and payload data chunks. If the 1038 * FW has requested a header, read the payload length 1039 * info from the header, before sending the header. 1040 * In the next iteration, the FW should request the 1041 * payload data chunk, which should be equal to the 1042 * payload length read from header. If there is a 1043 * mismatch, clearly the driver and FW are out of sync, 1044 * and we need to re-send the previous header again. 1045 */ 1046 if (len == nxpdev->fw_v1_expected_len) { 1047 if (len == HDR_LEN) 1048 nxpdev->fw_v1_expected_len = nxp_get_data_len(nxpdev->fw->data + 1049 nxpdev->fw_dnld_v1_offset); 1050 else 1051 nxpdev->fw_v1_expected_len = HDR_LEN; 1052 } else if (len == HDR_LEN) { 1053 /* FW download out of sync. Send previous chunk again */ 1054 nxpdev->fw_dnld_v1_offset -= nxpdev->fw_v1_sent_bytes; 1055 nxpdev->fw_v1_expected_len = HDR_LEN; 1056 } 1057 } 1058 1059 if (nxpdev->fw_dnld_v1_offset + len <= nxpdev->fw->size) 1060 serdev_device_write_buf(nxpdev->serdev, nxpdev->fw->data + 1061 nxpdev->fw_dnld_v1_offset, len); 1062 nxpdev->fw_v1_sent_bytes = len; 1063 1064 free_skb: 1065 kfree_skb(skb); 1066 return 0; 1067 } 1068 1069 static char *nxp_get_fw_name_from_chipid(struct hci_dev *hdev, u16 chipid, 1070 u8 loader_ver) 1071 { 1072 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1073 char *fw_name = NULL; 1074 1075 switch (chipid) { 1076 case CHIP_ID_W9098: 1077 fw_name = FIRMWARE_W9098; 1078 break; 1079 case CHIP_ID_IW416: 1080 fw_name = FIRMWARE_IW416; 1081 break; 1082 case CHIP_ID_IW612: 1083 fw_name = FIRMWARE_IW612; 1084 break; 1085 case CHIP_ID_IW624a: 1086 case CHIP_ID_IW624c: 1087 nxpdev->boot_reg_offset = 1; 1088 if ((loader_ver & FW_SECURE_MASK) == FW_OPEN) 1089 fw_name = FIRMWARE_IW624; 1090 else if ((loader_ver & FW_SECURE_MASK) != FW_AUTH_ILLEGAL) 1091 fw_name = FIRMWARE_SECURE_IW624; 1092 else 1093 bt_dev_err(hdev, "Illegal loader version %02x", loader_ver); 1094 break; 1095 case CHIP_ID_AW693a0: 1096 if ((loader_ver & FW_SECURE_MASK) == FW_OPEN) 1097 fw_name = FIRMWARE_AW693; 1098 else if ((loader_ver & FW_SECURE_MASK) != FW_AUTH_ILLEGAL) 1099 fw_name = FIRMWARE_SECURE_AW693; 1100 else 1101 bt_dev_err(hdev, "Illegal loader version %02x", loader_ver); 1102 break; 1103 case CHIP_ID_AW693a1: 1104 if ((loader_ver & FW_SECURE_MASK) == FW_OPEN) 1105 fw_name = FIRMWARE_AW693_A1; 1106 else if ((loader_ver & FW_SECURE_MASK) != FW_AUTH_ILLEGAL) 1107 fw_name = FIRMWARE_SECURE_AW693_A1; 1108 else 1109 bt_dev_err(hdev, "Illegal loader version %02x", loader_ver); 1110 break; 1111 case CHIP_ID_IW610a0: 1112 case CHIP_ID_IW610a1: 1113 if ((loader_ver & FW_SECURE_MASK) == FW_OPEN) 1114 fw_name = FIRMWARE_IW610; 1115 else if ((loader_ver & FW_SECURE_MASK) != FW_AUTH_ILLEGAL) 1116 fw_name = FIRMWARE_SECURE_IW610; 1117 else 1118 bt_dev_err(hdev, "Illegal loader version %02x", loader_ver); 1119 break; 1120 default: 1121 bt_dev_err(hdev, "Unknown chip signature %04x", chipid); 1122 break; 1123 } 1124 return fw_name; 1125 } 1126 1127 static char *nxp_get_old_fw_name_from_chipid(struct hci_dev *hdev, u16 chipid, 1128 u8 loader_ver) 1129 { 1130 char *fw_name_old = NULL; 1131 1132 switch (chipid) { 1133 case CHIP_ID_W9098: 1134 fw_name_old = FIRMWARE_W9098_OLD; 1135 break; 1136 case CHIP_ID_IW416: 1137 fw_name_old = FIRMWARE_IW416_OLD; 1138 break; 1139 } 1140 return fw_name_old; 1141 } 1142 1143 static int nxp_recv_chip_ver_v3(struct hci_dev *hdev, struct sk_buff *skb) 1144 { 1145 struct v3_start_ind *req = skb_pull_data(skb, sizeof(*req)); 1146 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1147 const char *fw_name; 1148 const char *fw_name_old; 1149 u16 chip_id; 1150 u8 loader_ver; 1151 1152 if (!process_boot_signature(nxpdev)) 1153 goto free_skb; 1154 1155 chip_id = le16_to_cpu(req->chip_id); 1156 loader_ver = req->loader_ver; 1157 bt_dev_info(hdev, "ChipID: %04x, Version: %d", chip_id, loader_ver); 1158 fw_name = nxp_get_fw_name_from_chipid(hdev, chip_id, loader_ver); 1159 fw_name_old = nxp_get_old_fw_name_from_chipid(hdev, chip_id, loader_ver); 1160 if (!nxp_request_firmware(hdev, fw_name, fw_name_old)) 1161 nxp_send_ack(NXP_ACK_V3, hdev); 1162 1163 free_skb: 1164 kfree_skb(skb); 1165 return 0; 1166 } 1167 1168 static void nxp_handle_fw_download_error(struct hci_dev *hdev, struct v3_data_req *req) 1169 { 1170 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1171 __u32 offset = __le32_to_cpu(req->offset); 1172 __u16 err = __le16_to_cpu(req->error); 1173 union nxp_v3_rx_timeout_nak_u timeout_nak_buf; 1174 union nxp_v3_crc_nak_u crc_nak_buf; 1175 1176 if (err & NXP_CRC_RX_ERROR) { 1177 crc_nak_buf.pkt.nak = NXP_CRC_ERROR_V3; 1178 crc_nak_buf.pkt.crc = crc8(crc8_table, crc_nak_buf.buf, 1179 sizeof(crc_nak_buf) - 1, 0xff); 1180 serdev_device_write_buf(nxpdev->serdev, crc_nak_buf.buf, 1181 sizeof(crc_nak_buf)); 1182 } else if (err & NXP_ACK_RX_TIMEOUT || 1183 err & NXP_HDR_RX_TIMEOUT || 1184 err & NXP_DATA_RX_TIMEOUT) { 1185 timeout_nak_buf.pkt.nak = NXP_NAK_V3; 1186 timeout_nak_buf.pkt.offset = __cpu_to_le32(offset); 1187 timeout_nak_buf.pkt.crc = crc8(crc8_table, timeout_nak_buf.buf, 1188 sizeof(timeout_nak_buf) - 1, 0xff); 1189 serdev_device_write_buf(nxpdev->serdev, timeout_nak_buf.buf, 1190 sizeof(timeout_nak_buf)); 1191 } else { 1192 bt_dev_err(hdev, "Unknown bootloader error code: %d", err); 1193 } 1194 } 1195 1196 static int nxp_recv_fw_req_v3(struct hci_dev *hdev, struct sk_buff *skb) 1197 { 1198 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1199 struct v3_data_req *req; 1200 __u16 len = 0; 1201 __u16 err = 0; 1202 __u32 offset; 1203 1204 if (!process_boot_signature(nxpdev)) 1205 goto free_skb; 1206 1207 req = skb_pull_data(skb, sizeof(*req)); 1208 if (!req || !nxpdev->fw) 1209 goto free_skb; 1210 1211 err = __le16_to_cpu(req->error); 1212 1213 if (!err) { 1214 nxp_send_ack(NXP_ACK_V3, hdev); 1215 if (nxpdev->timeout_changed == cmd_sent) 1216 nxpdev->timeout_changed = changed; 1217 if (nxpdev->baudrate_changed == cmd_sent) 1218 nxpdev->baudrate_changed = changed; 1219 } else { 1220 nxp_handle_fw_download_error(hdev, req); 1221 if (nxpdev->timeout_changed == cmd_sent && 1222 err == NXP_CRC_RX_ERROR) { 1223 nxpdev->fw_v3_offset_correction -= nxpdev->fw_v3_prev_sent; 1224 nxpdev->timeout_changed = not_changed; 1225 } 1226 if (nxpdev->baudrate_changed == cmd_sent && 1227 err == NXP_CRC_RX_ERROR) { 1228 nxpdev->fw_v3_offset_correction -= nxpdev->fw_v3_prev_sent; 1229 nxpdev->baudrate_changed = not_changed; 1230 } 1231 goto free_skb; 1232 } 1233 1234 len = __le16_to_cpu(req->len); 1235 1236 if (nxpdev->timeout_changed != changed) { 1237 nxp_fw_change_timeout(hdev, len); 1238 nxpdev->timeout_changed = cmd_sent; 1239 goto free_skb; 1240 } 1241 1242 if (nxpdev->baudrate_changed != changed) { 1243 nxpdev->new_baudrate = nxpdev->secondary_baudrate; 1244 if (nxp_fw_change_baudrate(hdev, len)) { 1245 nxpdev->baudrate_changed = cmd_sent; 1246 serdev_device_set_baudrate(nxpdev->serdev, 1247 nxpdev->secondary_baudrate); 1248 serdev_device_set_flow_control(nxpdev->serdev, true); 1249 nxpdev->current_baudrate = nxpdev->secondary_baudrate; 1250 } 1251 goto free_skb; 1252 } 1253 1254 if (req->len == 0) { 1255 bt_dev_info(hdev, "FW Download Complete: %zu bytes", 1256 nxpdev->fw->size); 1257 clear_bit(BTNXPUART_FW_DOWNLOADING, &nxpdev->tx_state); 1258 wake_up_interruptible(&nxpdev->fw_dnld_done_wait_q); 1259 goto free_skb; 1260 } 1261 1262 offset = __le32_to_cpu(req->offset); 1263 if (offset < nxpdev->fw_v3_offset_correction) { 1264 /* This scenario should ideally never occur. But if it ever does, 1265 * FW is out of sync and needs a power cycle. 1266 */ 1267 bt_dev_err(hdev, "Something went wrong during FW download"); 1268 bt_dev_err(hdev, "Please power cycle and try again"); 1269 goto free_skb; 1270 } 1271 1272 nxpdev->fw_dnld_v3_offset = offset - nxpdev->fw_v3_offset_correction; 1273 if (nxpdev->fw_dnld_v3_offset >= nxpdev->fw->size || 1274 len > nxpdev->fw->size - nxpdev->fw_dnld_v3_offset) { 1275 bt_dev_err(hdev, "FW download out of bounds, ignoring request"); 1276 len = 0; 1277 goto free_skb; 1278 } 1279 serdev_device_write_buf(nxpdev->serdev, nxpdev->fw->data + 1280 nxpdev->fw_dnld_v3_offset, len); 1281 1282 free_skb: 1283 nxpdev->fw_v3_prev_sent = len; 1284 kfree_skb(skb); 1285 return 0; 1286 } 1287 1288 static int nxp_set_baudrate_cmd(struct hci_dev *hdev, void *data) 1289 { 1290 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1291 __le32 new_baudrate = __cpu_to_le32(nxpdev->new_baudrate); 1292 struct ps_data *psdata = &nxpdev->psdata; 1293 struct sk_buff *skb; 1294 u8 *status; 1295 1296 if (!psdata) 1297 return 0; 1298 1299 skb = nxp_drv_send_cmd(hdev, HCI_NXP_SET_OPER_SPEED, 4, 1300 (u8 *)&new_baudrate, true); 1301 if (IS_ERR(skb)) { 1302 bt_dev_err(hdev, "Setting baudrate failed (%ld)", PTR_ERR(skb)); 1303 return PTR_ERR(skb); 1304 } 1305 1306 status = (u8 *)skb_pull_data(skb, 1); 1307 if (status) { 1308 if (*status == 0) { 1309 serdev_device_set_baudrate(nxpdev->serdev, nxpdev->new_baudrate); 1310 nxpdev->current_baudrate = nxpdev->new_baudrate; 1311 } 1312 bt_dev_dbg(hdev, "Set baudrate response: status=%d, baudrate=%d", 1313 *status, nxpdev->new_baudrate); 1314 } 1315 kfree_skb(skb); 1316 1317 return 0; 1318 } 1319 1320 static int nxp_check_boot_sign(struct btnxpuart_dev *nxpdev) 1321 { 1322 serdev_device_set_baudrate(nxpdev->serdev, HCI_NXP_PRI_BAUDRATE); 1323 if (ind_reset_in_progress(nxpdev)) 1324 serdev_device_set_flow_control(nxpdev->serdev, false); 1325 else 1326 serdev_device_set_flow_control(nxpdev->serdev, true); 1327 set_bit(BTNXPUART_CHECK_BOOT_SIGNATURE, &nxpdev->tx_state); 1328 1329 return wait_event_interruptible_timeout(nxpdev->check_boot_sign_wait_q, 1330 !test_bit(BTNXPUART_CHECK_BOOT_SIGNATURE, 1331 &nxpdev->tx_state), 1332 msecs_to_jiffies(1000)); 1333 } 1334 1335 static int nxp_set_ind_reset(struct hci_dev *hdev, void *data) 1336 { 1337 return __hci_reset_dev(hdev, BTNXPUART_IR_HW_ERR); 1338 } 1339 1340 /* Firmware dump */ 1341 static void nxp_coredump(struct hci_dev *hdev) 1342 { 1343 struct sk_buff *skb; 1344 u8 pcmd = 2; 1345 1346 skb = nxp_drv_send_cmd(hdev, HCI_NXP_TRIGGER_DUMP, 1, &pcmd, true); 1347 if (IS_ERR(skb)) 1348 bt_dev_err(hdev, "Failed to trigger FW Dump. (%ld)", PTR_ERR(skb)); 1349 else 1350 kfree_skb(skb); 1351 } 1352 1353 static void nxp_coredump_hdr(struct hci_dev *hdev, struct sk_buff *skb) 1354 { 1355 /* Nothing to be added in FW dump header */ 1356 } 1357 1358 static int nxp_process_fw_dump(struct hci_dev *hdev, struct sk_buff *skb) 1359 { 1360 struct hci_acl_hdr *acl_hdr = (struct hci_acl_hdr *)skb_pull_data(skb, 1361 sizeof(*acl_hdr)); 1362 struct nxp_fw_dump_hdr *fw_dump_hdr; 1363 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1364 __u16 seq_num; 1365 __u16 buf_len; 1366 int err; 1367 1368 fw_dump_hdr = skb_pull_data(skb, sizeof(*fw_dump_hdr)); 1369 if (!fw_dump_hdr) { 1370 bt_dev_warn(hdev, "FW dump: invalid or corrupt fw dump chunk"); 1371 goto free_skb; 1372 } 1373 1374 seq_num = __le16_to_cpu(fw_dump_hdr->seq_num); 1375 buf_len = __le16_to_cpu(fw_dump_hdr->buf_len); 1376 1377 if (seq_num == 0x0001) { 1378 if (test_and_set_bit(BTNXPUART_FW_DUMP_IN_PROGRESS, &nxpdev->tx_state)) { 1379 bt_dev_err(hdev, "FW dump already in progress"); 1380 goto free_skb; 1381 } 1382 bt_dev_warn(hdev, "==== Start FW dump ==="); 1383 err = hci_devcd_init(hdev, NXP_FW_DUMP_SIZE); 1384 if (err < 0) 1385 goto free_skb; 1386 1387 schedule_delayed_work(&hdev->dump.dump_timeout, 1388 msecs_to_jiffies(20000)); 1389 } 1390 1391 err = hci_devcd_append(hdev, skb_clone(skb, GFP_ATOMIC)); 1392 if (err < 0) 1393 goto free_skb; 1394 1395 if (buf_len == 0) { 1396 bt_dev_warn(hdev, "==== FW dump complete ==="); 1397 hci_devcd_complete(hdev); 1398 nxp_set_ind_reset(hdev, NULL); 1399 } 1400 1401 free_skb: 1402 kfree_skb(skb); 1403 return 0; 1404 } 1405 1406 static int nxp_recv_acl_pkt(struct hci_dev *hdev, struct sk_buff *skb) 1407 { 1408 __u16 handle = __le16_to_cpu(hci_acl_hdr(skb)->handle); 1409 1410 /* FW dump chunks are ACL packets with conn handle 0xfff */ 1411 if ((handle & 0x0FFF) == 0xFFF) 1412 return nxp_process_fw_dump(hdev, skb); 1413 else 1414 return hci_recv_frame(hdev, skb); 1415 } 1416 1417 static int nxp_set_bdaddr(struct hci_dev *hdev, const bdaddr_t *bdaddr) 1418 { 1419 union nxp_set_bd_addr_payload pcmd; 1420 int err; 1421 1422 pcmd.data.param_id = 0xfe; 1423 pcmd.data.param_len = 6; 1424 memcpy(pcmd.data.param, bdaddr, 6); 1425 1426 /* BD address can be assigned only after first reset command. */ 1427 err = __hci_cmd_sync_status(hdev, HCI_OP_RESET, 0, NULL, 1428 HCI_INIT_TIMEOUT); 1429 if (err) { 1430 bt_dev_err(hdev, 1431 "Reset before setting local-bd-addr failed (%d)", 1432 err); 1433 return err; 1434 } 1435 1436 err = __hci_cmd_sync_status(hdev, HCI_NXP_SET_BD_ADDR, sizeof(pcmd), 1437 pcmd.buf, HCI_CMD_TIMEOUT); 1438 if (err) { 1439 bt_dev_err(hdev, "Changing device address failed (%d)", err); 1440 return err; 1441 } 1442 1443 return 0; 1444 } 1445 1446 /* NXP protocol */ 1447 static int nxp_setup(struct hci_dev *hdev) 1448 { 1449 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1450 struct serdev_device *serdev = nxpdev->serdev; 1451 char device_string[30]; 1452 char event_string[50]; 1453 char *envp[] = {device_string, event_string, NULL}; 1454 int err = 0; 1455 1456 if (nxp_check_boot_sign(nxpdev)) { 1457 bt_dev_dbg(hdev, "Need FW Download."); 1458 err = nxp_download_firmware(hdev); 1459 if (err < 0) 1460 return err; 1461 } else { 1462 bt_dev_info(hdev, "FW already running."); 1463 clear_bit(BTNXPUART_FW_DOWNLOADING, &nxpdev->tx_state); 1464 } 1465 1466 snprintf(device_string, 30, "BTNXPUART_DEV=%s", dev_name(&serdev->dev)); 1467 snprintf(event_string, 50, "BTNXPUART_STATE=FW_READY"); 1468 bt_dev_dbg(hdev, "==== Send uevent: %s:%s ===", device_string, 1469 event_string); 1470 kobject_uevent_env(&serdev->dev.kobj, KOBJ_CHANGE, envp); 1471 1472 serdev_device_set_baudrate(nxpdev->serdev, nxpdev->fw_init_baudrate); 1473 nxpdev->current_baudrate = nxpdev->fw_init_baudrate; 1474 1475 ps_init(hdev); 1476 1477 if (test_and_clear_bit(BTNXPUART_IR_IN_PROGRESS, &nxpdev->tx_state)) 1478 hci_dev_clear_flag(hdev, HCI_SETUP); 1479 1480 return 0; 1481 } 1482 1483 static int nxp_post_init(struct hci_dev *hdev) 1484 { 1485 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1486 struct ps_data *psdata = &nxpdev->psdata; 1487 1488 if (nxpdev->current_baudrate != nxpdev->secondary_baudrate) { 1489 nxpdev->new_baudrate = nxpdev->secondary_baudrate; 1490 nxp_set_baudrate_cmd(hdev, NULL); 1491 } 1492 if (psdata->cur_h2c_wakeupmode != psdata->h2c_wakeupmode) 1493 send_wakeup_method_cmd(hdev, NULL); 1494 if (psdata->cur_psmode != psdata->target_ps_mode) 1495 send_ps_cmd(hdev, NULL); 1496 return 0; 1497 } 1498 1499 static void nxp_hw_err(struct hci_dev *hdev, u8 code) 1500 { 1501 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1502 1503 switch (code) { 1504 case BTNXPUART_IR_HW_ERR: 1505 set_bit(BTNXPUART_IR_IN_PROGRESS, &nxpdev->tx_state); 1506 hci_dev_set_flag(hdev, HCI_SETUP); 1507 break; 1508 default: 1509 break; 1510 } 1511 } 1512 1513 static int nxp_shutdown(struct hci_dev *hdev) 1514 { 1515 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1516 struct sk_buff *skb; 1517 u8 pcmd = 0; 1518 1519 if (ind_reset_in_progress(nxpdev)) { 1520 if (test_and_clear_bit(BTNXPUART_FW_DUMP_IN_PROGRESS, 1521 &nxpdev->tx_state)) 1522 skb = nxp_drv_send_cmd(hdev, HCI_NXP_IND_RESET, 1, 1523 &pcmd, false); 1524 else 1525 skb = nxp_drv_send_cmd(hdev, HCI_NXP_IND_RESET, 1, 1526 &pcmd, true); 1527 serdev_device_set_flow_control(nxpdev->serdev, false); 1528 set_bit(BTNXPUART_FW_DOWNLOADING, &nxpdev->tx_state); 1529 /* HCI_NXP_IND_RESET command may not returns any response */ 1530 if (!IS_ERR(skb)) 1531 kfree_skb(skb); 1532 } 1533 1534 return 0; 1535 } 1536 1537 static bool nxp_wakeup(struct hci_dev *hdev) 1538 { 1539 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1540 struct ps_data *psdata = &nxpdev->psdata; 1541 1542 if (psdata->c2h_wakeupmode != BT_HOST_WAKEUP_METHOD_NONE) 1543 return true; 1544 1545 return false; 1546 } 1547 1548 static void nxp_reset(struct hci_dev *hdev) 1549 { 1550 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1551 1552 if (!ind_reset_in_progress(nxpdev) && !fw_dump_in_progress(nxpdev)) { 1553 bt_dev_dbg(hdev, "CMD Timeout detected. Resetting."); 1554 nxp_set_ind_reset(hdev, NULL); 1555 } 1556 } 1557 1558 static int btnxpuart_queue_skb(struct hci_dev *hdev, struct sk_buff *skb) 1559 { 1560 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1561 1562 /* Prepend skb with frame type */ 1563 memcpy(skb_push(skb, 1), &hci_skb_pkt_type(skb), 1); 1564 skb_queue_tail(&nxpdev->txq, skb); 1565 btnxpuart_tx_wakeup(nxpdev); 1566 return 0; 1567 } 1568 1569 static int nxp_enqueue(struct hci_dev *hdev, struct sk_buff *skb) 1570 { 1571 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1572 struct ps_data *psdata = &nxpdev->psdata; 1573 struct hci_command_hdr *hdr; 1574 struct psmode_cmd_payload ps_parm; 1575 struct wakeup_cmd_payload wakeup_parm; 1576 __le32 baudrate_parm; 1577 1578 if (fw_dump_in_progress(nxpdev)) 1579 return -EBUSY; 1580 1581 /* if vendor commands are received from user space (e.g. hcitool), update 1582 * driver flags accordingly and ask driver to re-send the command to FW. 1583 * In case the payload for any command does not match expected payload 1584 * length, let the firmware and user space program handle it, or throw 1585 * an error. 1586 */ 1587 if (bt_cb(skb)->pkt_type == HCI_COMMAND_PKT && !psdata->driver_sent_cmd) { 1588 hdr = (struct hci_command_hdr *)skb->data; 1589 if (hdr->plen != (skb->len - HCI_COMMAND_HDR_SIZE)) 1590 return btnxpuart_queue_skb(hdev, skb); 1591 1592 switch (__le16_to_cpu(hdr->opcode)) { 1593 case HCI_NXP_AUTO_SLEEP_MODE: 1594 if (hdr->plen == sizeof(ps_parm)) { 1595 memcpy(&ps_parm, skb->data + HCI_COMMAND_HDR_SIZE, hdr->plen); 1596 if (ps_parm.ps_cmd == BT_PS_ENABLE) 1597 psdata->target_ps_mode = PS_MODE_ENABLE; 1598 else if (ps_parm.ps_cmd == BT_PS_DISABLE) 1599 psdata->target_ps_mode = PS_MODE_DISABLE; 1600 psdata->c2h_ps_interval = __le16_to_cpu(ps_parm.c2h_ps_interval); 1601 hci_cmd_sync_queue(hdev, send_ps_cmd, NULL, NULL); 1602 goto free_skb; 1603 } 1604 break; 1605 case HCI_NXP_WAKEUP_METHOD: 1606 if (hdr->plen == sizeof(wakeup_parm)) { 1607 memcpy(&wakeup_parm, skb->data + HCI_COMMAND_HDR_SIZE, hdr->plen); 1608 psdata->c2h_wakeupmode = wakeup_parm.c2h_wakeupmode; 1609 psdata->c2h_wakeup_gpio = wakeup_parm.c2h_wakeup_gpio; 1610 psdata->h2c_wakeup_gpio = wakeup_parm.h2c_wakeup_gpio; 1611 switch (wakeup_parm.h2c_wakeupmode) { 1612 case BT_CTRL_WAKEUP_METHOD_GPIO: 1613 psdata->h2c_wakeupmode = WAKEUP_METHOD_GPIO; 1614 break; 1615 case BT_CTRL_WAKEUP_METHOD_DSR: 1616 psdata->h2c_wakeupmode = WAKEUP_METHOD_DTR; 1617 break; 1618 case BT_CTRL_WAKEUP_METHOD_BREAK: 1619 default: 1620 psdata->h2c_wakeupmode = WAKEUP_METHOD_BREAK; 1621 break; 1622 } 1623 hci_cmd_sync_queue(hdev, send_wakeup_method_cmd, NULL, NULL); 1624 goto free_skb; 1625 } 1626 break; 1627 case HCI_NXP_SET_OPER_SPEED: 1628 if (hdr->plen == sizeof(baudrate_parm)) { 1629 memcpy(&baudrate_parm, skb->data + HCI_COMMAND_HDR_SIZE, hdr->plen); 1630 nxpdev->new_baudrate = __le32_to_cpu(baudrate_parm); 1631 hci_cmd_sync_queue(hdev, nxp_set_baudrate_cmd, NULL, NULL); 1632 goto free_skb; 1633 } 1634 break; 1635 case HCI_NXP_IND_RESET: 1636 if (hdr->plen == 1) { 1637 hci_cmd_sync_queue(hdev, nxp_set_ind_reset, NULL, NULL); 1638 goto free_skb; 1639 } 1640 break; 1641 default: 1642 break; 1643 } 1644 } 1645 1646 return btnxpuart_queue_skb(hdev, skb); 1647 1648 free_skb: 1649 kfree_skb(skb); 1650 return 0; 1651 } 1652 1653 static struct sk_buff *nxp_dequeue(void *data) 1654 { 1655 struct btnxpuart_dev *nxpdev = (struct btnxpuart_dev *)data; 1656 1657 ps_start_timer(nxpdev); 1658 return skb_dequeue(&nxpdev->txq); 1659 } 1660 1661 /* btnxpuart based on serdev */ 1662 static void btnxpuart_tx_work(struct work_struct *work) 1663 { 1664 struct btnxpuart_dev *nxpdev = container_of(work, struct btnxpuart_dev, 1665 tx_work); 1666 struct serdev_device *serdev = nxpdev->serdev; 1667 struct hci_dev *hdev = nxpdev->hdev; 1668 struct sk_buff *skb; 1669 int len; 1670 1671 if (ps_wakeup(nxpdev)) 1672 return; 1673 1674 while ((skb = nxp_dequeue(nxpdev))) { 1675 len = serdev_device_write_buf(serdev, skb->data, skb->len); 1676 hdev->stat.byte_tx += len; 1677 1678 skb_pull(skb, len); 1679 if (skb->len > 0) { 1680 skb_queue_head(&nxpdev->txq, skb); 1681 continue; 1682 } 1683 1684 switch (hci_skb_pkt_type(skb)) { 1685 case HCI_COMMAND_PKT: 1686 hdev->stat.cmd_tx++; 1687 break; 1688 case HCI_ACLDATA_PKT: 1689 hdev->stat.acl_tx++; 1690 break; 1691 case HCI_SCODATA_PKT: 1692 hdev->stat.sco_tx++; 1693 break; 1694 } 1695 1696 kfree_skb(skb); 1697 } 1698 clear_bit(BTNXPUART_TX_STATE_ACTIVE, &nxpdev->tx_state); 1699 } 1700 1701 static int btnxpuart_open(struct hci_dev *hdev) 1702 { 1703 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1704 int err = 0; 1705 1706 err = serdev_device_open(nxpdev->serdev); 1707 if (err) { 1708 bt_dev_err(hdev, "Unable to open UART device %s", 1709 dev_name(&nxpdev->serdev->dev)); 1710 } else { 1711 set_bit(BTNXPUART_SERDEV_OPEN, &nxpdev->tx_state); 1712 } 1713 return err; 1714 } 1715 1716 static int btnxpuart_close(struct hci_dev *hdev) 1717 { 1718 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1719 1720 serdev_device_close(nxpdev->serdev); 1721 skb_queue_purge(&nxpdev->txq); 1722 if (!IS_ERR_OR_NULL(nxpdev->rx_skb)) { 1723 kfree_skb(nxpdev->rx_skb); 1724 nxpdev->rx_skb = NULL; 1725 } 1726 clear_bit(BTNXPUART_SERDEV_OPEN, &nxpdev->tx_state); 1727 return 0; 1728 } 1729 1730 static int btnxpuart_flush(struct hci_dev *hdev) 1731 { 1732 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1733 1734 /* Flush any pending characters */ 1735 serdev_device_write_flush(nxpdev->serdev); 1736 skb_queue_purge(&nxpdev->txq); 1737 1738 cancel_work_sync(&nxpdev->tx_work); 1739 1740 if (!IS_ERR_OR_NULL(nxpdev->rx_skb)) { 1741 kfree_skb(nxpdev->rx_skb); 1742 nxpdev->rx_skb = NULL; 1743 } 1744 1745 return 0; 1746 } 1747 1748 static const struct h4_recv_pkt nxp_recv_pkts[] = { 1749 { H4_RECV_ACL, .recv = nxp_recv_acl_pkt }, 1750 { H4_RECV_SCO, .recv = hci_recv_frame }, 1751 { H4_RECV_EVENT, .recv = hci_recv_frame }, 1752 { H4_RECV_ISO, .recv = hci_recv_frame }, 1753 { NXP_RECV_CHIP_VER_V1, .recv = nxp_recv_chip_ver_v1 }, 1754 { NXP_RECV_FW_REQ_V1, .recv = nxp_recv_fw_req_v1 }, 1755 { NXP_RECV_CHIP_VER_V3, .recv = nxp_recv_chip_ver_v3 }, 1756 { NXP_RECV_FW_REQ_V3, .recv = nxp_recv_fw_req_v3 }, 1757 }; 1758 1759 static size_t btnxpuart_receive_buf(struct serdev_device *serdev, 1760 const u8 *data, size_t count) 1761 { 1762 struct btnxpuart_dev *nxpdev = serdev_device_get_drvdata(serdev); 1763 1764 ps_start_timer(nxpdev); 1765 1766 nxpdev->rx_skb = h4_recv_buf(&nxpdev->hu, nxpdev->rx_skb, data, count, 1767 nxp_recv_pkts, ARRAY_SIZE(nxp_recv_pkts)); 1768 if (IS_ERR(nxpdev->rx_skb)) { 1769 int err = PTR_ERR(nxpdev->rx_skb); 1770 /* Safe to ignore out-of-sync bootloader signatures */ 1771 if (!is_fw_downloading(nxpdev) && 1772 !ind_reset_in_progress(nxpdev)) 1773 bt_dev_err(nxpdev->hdev, "Frame reassembly failed (%d)", err); 1774 return count; 1775 } 1776 if (!is_fw_downloading(nxpdev) && 1777 !ind_reset_in_progress(nxpdev)) 1778 nxpdev->hdev->stat.byte_rx += count; 1779 return count; 1780 } 1781 1782 static void btnxpuart_write_wakeup(struct serdev_device *serdev) 1783 { 1784 serdev_device_write_wakeup(serdev); 1785 } 1786 1787 static const struct serdev_device_ops btnxpuart_client_ops = { 1788 .receive_buf = btnxpuart_receive_buf, 1789 .write_wakeup = btnxpuart_write_wakeup, 1790 }; 1791 1792 static void nxp_coredump_notify(struct hci_dev *hdev, int state) 1793 { 1794 struct btnxpuart_dev *nxpdev = hci_get_drvdata(hdev); 1795 struct serdev_device *serdev = nxpdev->serdev; 1796 char device_string[30]; 1797 char event_string[50]; 1798 char *envp[] = {device_string, event_string, NULL}; 1799 1800 snprintf(device_string, 30, "BTNXPUART_DEV=%s", dev_name(&serdev->dev)); 1801 switch (state) { 1802 case HCI_DEVCOREDUMP_ACTIVE: 1803 snprintf(event_string, 50, "BTNXPUART_STATE=FW_DUMP_ACTIVE"); 1804 break; 1805 case HCI_DEVCOREDUMP_DONE: 1806 snprintf(event_string, 50, "BTNXPUART_STATE=FW_DUMP_DONE"); 1807 break; 1808 case HCI_DEVCOREDUMP_TIMEOUT: 1809 snprintf(event_string, 50, "BTNXPUART_STATE=FW_DUMP_TIMEOUT"); 1810 break; 1811 default: 1812 snprintf(event_string, 50, "BTNXPUART_STATE=FW_DUMP_STATE_%d", 1813 state); 1814 break; 1815 } 1816 bt_dev_dbg(hdev, "==== Send uevent: %s:%s ===", device_string, 1817 event_string); 1818 kobject_uevent_env(&serdev->dev.kobj, KOBJ_CHANGE, envp); 1819 } 1820 1821 /* 1822 * Check if the remote M.2 connector device linked via OF graph is present 1823 * and available. This is used to determine whether the pwrseq path should 1824 * be taken. When the remote connector node is disabled (e.g., by a DT 1825 * overlay switching from PCIe WiFi to SDIO WiFi), the pwrseq path is 1826 * skipped, allowing the BT driver to use a direct bluetooth child node 1827 * instead. 1828 */ 1829 static bool nxp_m2_connector_is_available(struct device *dev) 1830 { 1831 struct device_node *ep __free(device_node) = 1832 of_graph_get_next_endpoint(dev_of_node(dev), NULL); 1833 1834 if (!ep) 1835 return false; 1836 1837 struct device_node *remote __free(device_node) = 1838 of_graph_get_remote_port_parent(ep); 1839 1840 return remote && of_device_is_available(remote); 1841 } 1842 1843 static int nxp_serdev_probe(struct serdev_device *serdev) 1844 { 1845 struct hci_dev *hdev; 1846 struct btnxpuart_dev *nxpdev; 1847 bdaddr_t ba = {0}; 1848 int err; 1849 1850 nxpdev = devm_kzalloc(&serdev->dev, sizeof(*nxpdev), GFP_KERNEL); 1851 if (!nxpdev) 1852 return -ENOMEM; 1853 1854 nxpdev->nxp_data = (struct btnxpuart_data *)device_get_match_data(&serdev->dev); 1855 1856 nxpdev->serdev = serdev; 1857 serdev_device_set_drvdata(serdev, nxpdev); 1858 1859 serdev_device_set_client_ops(serdev, &btnxpuart_client_ops); 1860 1861 INIT_WORK(&nxpdev->tx_work, btnxpuart_tx_work); 1862 skb_queue_head_init(&nxpdev->txq); 1863 1864 init_waitqueue_head(&nxpdev->fw_dnld_done_wait_q); 1865 init_waitqueue_head(&nxpdev->check_boot_sign_wait_q); 1866 1867 device_property_read_u32(&nxpdev->serdev->dev, "fw-init-baudrate", 1868 &nxpdev->fw_init_baudrate); 1869 if (!nxpdev->fw_init_baudrate) 1870 nxpdev->fw_init_baudrate = FW_INIT_BAUDRATE; 1871 1872 device_property_read_u32(&nxpdev->serdev->dev, "max-speed", 1873 &nxpdev->secondary_baudrate); 1874 if (!nxpdev->secondary_baudrate || 1875 (nxpdev->secondary_baudrate != HCI_NXP_SEC_BAUDRATE_3M && 1876 nxpdev->secondary_baudrate != HCI_NXP_SEC_BAUDRATE_4M)) { 1877 if (nxpdev->secondary_baudrate) 1878 dev_err(&serdev->dev, 1879 "Invalid max-speed. Using default 3000000."); 1880 nxpdev->secondary_baudrate = HCI_NXP_SEC_BAUDRATE_3M; 1881 } 1882 1883 set_bit(BTNXPUART_FW_DOWNLOADING, &nxpdev->tx_state); 1884 1885 crc8_populate_msb(crc8_table, POLYNOMIAL8); 1886 1887 nxpdev->pdn = devm_reset_control_get_optional_shared(&serdev->dev, NULL); 1888 if (IS_ERR(nxpdev->pdn)) 1889 return PTR_ERR(nxpdev->pdn); 1890 1891 err = devm_regulator_get_enable(&serdev->dev, "vcc"); 1892 if (err) { 1893 dev_err(&serdev->dev, "Failed to enable vcc regulator\n"); 1894 return err; 1895 } 1896 1897 if (nxp_m2_connector_is_available(&serdev->ctrl->dev)) { 1898 struct pwrseq_desc *pwrseq; 1899 1900 pwrseq = pwrseq_get(&serdev->ctrl->dev, "uart"); 1901 if (IS_ERR(pwrseq)) 1902 return dev_err_probe(&serdev->dev, PTR_ERR(pwrseq), 1903 "failed to get pwrseq\n"); 1904 1905 nxpdev->pwrseq = pwrseq; 1906 err = pwrseq_enable(pwrseq); 1907 if (err) 1908 goto err_pwrseq_put; 1909 } 1910 1911 /* Initialize and register HCI device */ 1912 hdev = hci_alloc_dev(); 1913 if (!hdev) { 1914 dev_err(&serdev->dev, "Can't allocate HCI device\n"); 1915 err = -ENOMEM; 1916 goto err_pwrseq_put; 1917 } 1918 1919 reset_control_deassert(nxpdev->pdn); 1920 1921 nxpdev->hdev = hdev; 1922 nxpdev->hu.hdev = hdev; 1923 1924 hdev->bus = HCI_UART; 1925 hci_set_drvdata(hdev, nxpdev); 1926 1927 hdev->manufacturer = MANUFACTURER_NXP; 1928 hdev->open = btnxpuart_open; 1929 hdev->close = btnxpuart_close; 1930 hdev->flush = btnxpuart_flush; 1931 hdev->setup = nxp_setup; 1932 hdev->post_init = nxp_post_init; 1933 hdev->send = nxp_enqueue; 1934 hdev->hw_error = nxp_hw_err; 1935 hdev->shutdown = nxp_shutdown; 1936 hdev->wakeup = nxp_wakeup; 1937 hdev->reset = nxp_reset; 1938 hdev->set_bdaddr = nxp_set_bdaddr; 1939 SET_HCIDEV_DEV(hdev, &serdev->dev); 1940 1941 device_property_read_u8_array(&nxpdev->serdev->dev, 1942 "local-bd-address", 1943 (u8 *)&ba, sizeof(ba)); 1944 if (bacmp(&ba, BDADDR_ANY)) 1945 hci_set_quirk(hdev, HCI_QUIRK_USE_BDADDR_PROPERTY); 1946 1947 err = hci_register_dev(hdev); 1948 if (err < 0) { 1949 dev_err(&serdev->dev, "Can't register HCI device\n"); 1950 goto probe_fail; 1951 } 1952 1953 if (ps_setup(hdev)) { 1954 err = -ENODEV; 1955 goto probe_fail_unregister; 1956 } 1957 1958 hci_devcd_register(hdev, nxp_coredump, nxp_coredump_hdr, 1959 nxp_coredump_notify); 1960 1961 return 0; 1962 1963 probe_fail_unregister: 1964 hci_unregister_dev(hdev); 1965 probe_fail: 1966 reset_control_assert(nxpdev->pdn); 1967 hci_free_dev(hdev); 1968 err_pwrseq_put: 1969 if (nxpdev->pwrseq) 1970 pwrseq_put(nxpdev->pwrseq); 1971 return err; 1972 } 1973 1974 static void nxp_serdev_remove(struct serdev_device *serdev) 1975 { 1976 struct btnxpuart_dev *nxpdev = serdev_device_get_drvdata(serdev); 1977 struct hci_dev *hdev = nxpdev->hdev; 1978 1979 if (is_fw_downloading(nxpdev)) { 1980 set_bit(BTNXPUART_FW_DOWNLOAD_ABORT, &nxpdev->tx_state); 1981 clear_bit(BTNXPUART_FW_DOWNLOADING, &nxpdev->tx_state); 1982 wake_up_interruptible(&nxpdev->check_boot_sign_wait_q); 1983 wake_up_interruptible(&nxpdev->fw_dnld_done_wait_q); 1984 } else { 1985 /* Restore FW baudrate to fw_init_baudrate if changed. 1986 * This will ensure FW baudrate is in sync with 1987 * driver baudrate in case this driver is re-inserted. 1988 */ 1989 if (nxpdev->current_baudrate != nxpdev->fw_init_baudrate) { 1990 nxpdev->new_baudrate = nxpdev->fw_init_baudrate; 1991 nxp_set_baudrate_cmd(hdev, NULL); 1992 } 1993 } 1994 1995 ps_cleanup(nxpdev); 1996 hci_unregister_dev(hdev); 1997 reset_control_assert(nxpdev->pdn); 1998 if (nxpdev->pwrseq) 1999 pwrseq_put(nxpdev->pwrseq); 2000 hci_free_dev(hdev); 2001 } 2002 2003 static int __maybe_unused nxp_serdev_suspend(struct device *dev) 2004 { 2005 struct btnxpuart_dev *nxpdev = dev_get_drvdata(dev); 2006 struct ps_data *psdata = &nxpdev->psdata; 2007 2008 ps_control(psdata->hdev, PS_STATE_SLEEP); 2009 2010 if (psdata->wakeup_source) { 2011 enable_irq_wake(psdata->irq_handler); 2012 enable_irq(psdata->irq_handler); 2013 } 2014 return 0; 2015 } 2016 2017 static int __maybe_unused nxp_serdev_resume(struct device *dev) 2018 { 2019 struct btnxpuart_dev *nxpdev = dev_get_drvdata(dev); 2020 struct ps_data *psdata = &nxpdev->psdata; 2021 2022 if (psdata->wakeup_source) { 2023 disable_irq(psdata->irq_handler); 2024 disable_irq_wake(psdata->irq_handler); 2025 } 2026 2027 ps_control(psdata->hdev, PS_STATE_AWAKE); 2028 return 0; 2029 } 2030 2031 #ifdef CONFIG_DEV_COREDUMP 2032 static void nxp_serdev_coredump(struct device *dev) 2033 { 2034 struct btnxpuart_dev *nxpdev = dev_get_drvdata(dev); 2035 struct hci_dev *hdev = nxpdev->hdev; 2036 2037 if (hdev->dump.coredump) 2038 hdev->dump.coredump(hdev); 2039 } 2040 #endif 2041 2042 static struct btnxpuart_data w8987_data __maybe_unused = { 2043 .helper_fw_name = NULL, 2044 .fw_name = FIRMWARE_W8987, 2045 .fw_name_old = FIRMWARE_W8987_OLD, 2046 }; 2047 2048 static struct btnxpuart_data w8997_data __maybe_unused = { 2049 .helper_fw_name = FIRMWARE_HELPER, 2050 .fw_name = FIRMWARE_W8997, 2051 .fw_name_old = FIRMWARE_W8997_OLD, 2052 }; 2053 2054 static const struct of_device_id nxpuart_of_match_table[] __maybe_unused = { 2055 { .compatible = "nxp,88w8987-bt", .data = &w8987_data }, 2056 { .compatible = "nxp,88w8997-bt", .data = &w8997_data }, 2057 { } 2058 }; 2059 MODULE_DEVICE_TABLE(of, nxpuart_of_match_table); 2060 2061 static const struct dev_pm_ops nxp_pm_ops = { 2062 SET_SYSTEM_SLEEP_PM_OPS(nxp_serdev_suspend, nxp_serdev_resume) 2063 }; 2064 2065 static struct serdev_device_driver nxp_serdev_driver = { 2066 .probe = nxp_serdev_probe, 2067 .remove = nxp_serdev_remove, 2068 .driver = { 2069 .name = "btnxpuart", 2070 .of_match_table = of_match_ptr(nxpuart_of_match_table), 2071 .pm = &nxp_pm_ops, 2072 #ifdef CONFIG_DEV_COREDUMP 2073 .coredump = nxp_serdev_coredump, 2074 #endif 2075 }, 2076 }; 2077 2078 module_serdev_device_driver(nxp_serdev_driver); 2079 2080 MODULE_AUTHOR("Neeraj Sanjay Kale <neeraj.sanjaykale@nxp.com>"); 2081 MODULE_DESCRIPTION("NXP Bluetooth Serial driver"); 2082 MODULE_LICENSE("GPL"); 2083