1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * 4 * Bluetooth support for Intel PCIe devices 5 * 6 * Copyright (C) 2024 Intel Corporation 7 */ 8 9 #include <linux/kernel.h> 10 #include <linux/module.h> 11 #include <linux/firmware.h> 12 #include <linux/pci.h> 13 #include <linux/wait.h> 14 #include <linux/delay.h> 15 #include <linux/interrupt.h> 16 17 #include <linux/unaligned.h> 18 #include <linux/devcoredump.h> 19 20 #include <net/bluetooth/bluetooth.h> 21 #include <net/bluetooth/hci_core.h> 22 #include <net/bluetooth/hci_drv.h> 23 24 #include "btintel.h" 25 #include "btintel_pcie.h" 26 27 #define VERSION "0.1" 28 29 #define BTINTEL_PCI_DEVICE(dev, subdev) \ 30 .vendor = PCI_VENDOR_ID_INTEL, \ 31 .device = (dev), \ 32 .subvendor = PCI_ANY_ID, \ 33 .subdevice = (subdev), \ 34 .driver_data = 0 35 36 #define POLL_INTERVAL_US 10 37 38 /* Intel Bluetooth PCIe device id table */ 39 static const struct pci_device_id btintel_pcie_table[] = { 40 /* BlazarI, Wildcat Lake */ 41 { BTINTEL_PCI_DEVICE(0x4D76, PCI_ANY_ID) }, 42 /* BlazarI, Lunar Lake */ 43 { BTINTEL_PCI_DEVICE(0xA876, PCI_ANY_ID) }, 44 /* Scorpious, Panther Lake-H484 */ 45 { BTINTEL_PCI_DEVICE(0xE376, PCI_ANY_ID) }, 46 /* Scorpious, Panther Lake-H404 */ 47 { BTINTEL_PCI_DEVICE(0xE476, PCI_ANY_ID) }, 48 { 0 } 49 }; 50 MODULE_DEVICE_TABLE(pci, btintel_pcie_table); 51 52 struct btintel_pcie_dev_recovery { 53 struct list_head list; 54 u8 count; 55 time64_t last_error; 56 char name[]; 57 }; 58 59 /* Intel PCIe uses 4 bytes of HCI type instead of 1 byte BT SIG HCI type */ 60 #define BTINTEL_PCIE_HCI_TYPE_LEN 4 61 #define BTINTEL_PCIE_HCI_CMD_PKT 0x00000001 62 #define BTINTEL_PCIE_HCI_ACL_PKT 0x00000002 63 #define BTINTEL_PCIE_HCI_SCO_PKT 0x00000003 64 #define BTINTEL_PCIE_HCI_EVT_PKT 0x00000004 65 #define BTINTEL_PCIE_HCI_ISO_PKT 0x00000005 66 67 #define BTINTEL_PCIE_MAGIC_NUM 0xA5A5A5A5 68 69 #define BTINTEL_PCIE_BLZR_HWEXP_SIZE 1024 70 #define BTINTEL_PCIE_BLZR_HWEXP_DMP_ADDR 0xB00A7C00 71 72 #define BTINTEL_PCIE_SCP_HWEXP_SIZE 4096 73 #define BTINTEL_PCIE_SCP_HWEXP_DMP_ADDR 0xB030F800 74 75 #define BTINTEL_PCIE_MAGIC_NUM 0xA5A5A5A5 76 77 #define BTINTEL_PCIE_TRIGGER_REASON_USER_TRIGGER 0x17A2 78 #define BTINTEL_PCIE_TRIGGER_REASON_FW_ASSERT 0x1E61 79 80 #define BTINTEL_PCIE_RESET_WINDOW_SECS 5 81 #define BTINTEL_PCIE_FLR_MAX_RETRY 1 82 83 /* Alive interrupt context */ 84 enum { 85 BTINTEL_PCIE_ROM, 86 BTINTEL_PCIE_FW_DL, 87 BTINTEL_PCIE_HCI_RESET, 88 BTINTEL_PCIE_INTEL_HCI_RESET1, 89 BTINTEL_PCIE_INTEL_HCI_RESET2, 90 BTINTEL_PCIE_D0, 91 BTINTEL_PCIE_D3 92 }; 93 94 /* Structure for dbgc fragment buffer 95 * @buf_addr_lsb: LSB of the buffer's physical address 96 * @buf_addr_msb: MSB of the buffer's physical address 97 * @buf_size: Total size of the buffer 98 */ 99 struct btintel_pcie_dbgc_ctxt_buf { 100 u32 buf_addr_lsb; 101 u32 buf_addr_msb; 102 u32 buf_size; 103 }; 104 105 /* Structure for dbgc fragment 106 * @magic_num: 0XA5A5A5A5 107 * @ver: For Driver-FW compatibility 108 * @total_size: Total size of the payload debug info 109 * @num_buf: Num of allocated debug bufs 110 * @bufs: All buffer's addresses and sizes 111 */ 112 struct btintel_pcie_dbgc_ctxt { 113 u32 magic_num; 114 u32 ver; 115 u32 total_size; 116 u32 num_buf; 117 struct btintel_pcie_dbgc_ctxt_buf bufs[BTINTEL_PCIE_DBGC_BUFFER_COUNT]; 118 }; 119 120 struct btintel_pcie_removal { 121 struct pci_dev *pdev; 122 struct work_struct work; 123 }; 124 125 static LIST_HEAD(btintel_pcie_recovery_list); 126 static DEFINE_SPINLOCK(btintel_pcie_recovery_lock); 127 128 static inline char *btintel_pcie_alivectxt_state2str(u32 alive_intr_ctxt) 129 { 130 switch (alive_intr_ctxt) { 131 case BTINTEL_PCIE_ROM: 132 return "rom"; 133 case BTINTEL_PCIE_FW_DL: 134 return "fw_dl"; 135 case BTINTEL_PCIE_D0: 136 return "d0"; 137 case BTINTEL_PCIE_D3: 138 return "d3"; 139 case BTINTEL_PCIE_HCI_RESET: 140 return "hci_reset"; 141 case BTINTEL_PCIE_INTEL_HCI_RESET1: 142 return "intel_reset1"; 143 case BTINTEL_PCIE_INTEL_HCI_RESET2: 144 return "intel_reset2"; 145 default: 146 return "unknown"; 147 } 148 } 149 150 /* This function initializes the memory for DBGC buffers and formats the 151 * DBGC fragment which consists header info and DBGC buffer's LSB, MSB and 152 * size as the payload 153 */ 154 static int btintel_pcie_setup_dbgc(struct btintel_pcie_data *data) 155 { 156 struct btintel_pcie_dbgc_ctxt db_frag; 157 struct data_buf *buf; 158 int i; 159 160 data->dbgc.count = BTINTEL_PCIE_DBGC_BUFFER_COUNT; 161 data->dbgc.bufs = devm_kcalloc(&data->pdev->dev, data->dbgc.count, 162 sizeof(*buf), GFP_KERNEL); 163 if (!data->dbgc.bufs) 164 return -ENOMEM; 165 166 data->dbgc.buf_v_addr = dmam_alloc_coherent(&data->pdev->dev, 167 data->dbgc.count * 168 BTINTEL_PCIE_DBGC_BUFFER_SIZE, 169 &data->dbgc.buf_p_addr, 170 GFP_KERNEL | __GFP_NOWARN); 171 if (!data->dbgc.buf_v_addr) 172 return -ENOMEM; 173 174 data->dbgc.frag_v_addr = dmam_alloc_coherent(&data->pdev->dev, 175 sizeof(struct btintel_pcie_dbgc_ctxt), 176 &data->dbgc.frag_p_addr, 177 GFP_KERNEL | __GFP_NOWARN); 178 if (!data->dbgc.frag_v_addr) 179 return -ENOMEM; 180 181 data->dbgc.frag_size = sizeof(struct btintel_pcie_dbgc_ctxt); 182 183 db_frag.magic_num = BTINTEL_PCIE_MAGIC_NUM; 184 db_frag.ver = BTINTEL_PCIE_DBGC_FRAG_VERSION; 185 db_frag.total_size = BTINTEL_PCIE_DBGC_FRAG_PAYLOAD_SIZE; 186 db_frag.num_buf = BTINTEL_PCIE_DBGC_FRAG_BUFFER_COUNT; 187 188 for (i = 0; i < data->dbgc.count; i++) { 189 buf = &data->dbgc.bufs[i]; 190 buf->data_p_addr = data->dbgc.buf_p_addr + i * BTINTEL_PCIE_DBGC_BUFFER_SIZE; 191 buf->data = data->dbgc.buf_v_addr + i * BTINTEL_PCIE_DBGC_BUFFER_SIZE; 192 db_frag.bufs[i].buf_addr_lsb = lower_32_bits(buf->data_p_addr); 193 db_frag.bufs[i].buf_addr_msb = upper_32_bits(buf->data_p_addr); 194 db_frag.bufs[i].buf_size = BTINTEL_PCIE_DBGC_BUFFER_SIZE; 195 } 196 197 memcpy(data->dbgc.frag_v_addr, &db_frag, sizeof(db_frag)); 198 return 0; 199 } 200 201 static inline void ipc_print_ia_ring(struct hci_dev *hdev, struct ia *ia, 202 u16 queue_num) 203 { 204 bt_dev_dbg(hdev, "IA: %s: tr-h:%02u tr-t:%02u cr-h:%02u cr-t:%02u", 205 queue_num == BTINTEL_PCIE_TXQ_NUM ? "TXQ" : "RXQ", 206 ia->tr_hia[queue_num], ia->tr_tia[queue_num], 207 ia->cr_hia[queue_num], ia->cr_tia[queue_num]); 208 } 209 210 static inline void ipc_print_urbd1(struct hci_dev *hdev, struct urbd1 *urbd1, 211 u16 index) 212 { 213 bt_dev_dbg(hdev, "RXQ:urbd1(%u) frbd_tag:%u status: 0x%x fixed:0x%x", 214 index, urbd1->frbd_tag, urbd1->status, urbd1->fixed); 215 } 216 217 static struct btintel_pcie_data *btintel_pcie_get_data(struct msix_entry *entry) 218 { 219 u8 queue = entry->entry; 220 struct msix_entry *entries = entry - queue; 221 222 return container_of(entries, struct btintel_pcie_data, msix_entries[0]); 223 } 224 225 /* Set the doorbell for TXQ to notify the device that @index (actually index-1) 226 * of the TFD is updated and ready to transmit. 227 */ 228 static void btintel_pcie_set_tx_db(struct btintel_pcie_data *data, u16 index) 229 { 230 u32 val; 231 232 val = index; 233 val |= (BTINTEL_PCIE_TX_DB_VEC << 16); 234 235 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_HBUS_TARG_WRPTR, val); 236 } 237 238 /* Copy the data to next(@tfd_index) data buffer and update the TFD(transfer 239 * descriptor) with the data length and the DMA address of the data buffer. 240 */ 241 static void btintel_pcie_prepare_tx(struct txq *txq, u16 tfd_index, 242 struct sk_buff *skb) 243 { 244 struct data_buf *buf; 245 struct tfd *tfd; 246 247 tfd = &txq->tfds[tfd_index]; 248 memset(tfd, 0, sizeof(*tfd)); 249 250 buf = &txq->bufs[tfd_index]; 251 252 tfd->size = skb->len; 253 tfd->addr = buf->data_p_addr; 254 255 /* Copy the outgoing data to DMA buffer */ 256 memcpy(buf->data, skb->data, tfd->size); 257 } 258 259 static inline void btintel_pcie_dump_debug_registers(struct hci_dev *hdev) 260 { 261 struct btintel_pcie_data *data = hci_get_drvdata(hdev); 262 u16 cr_hia, cr_tia; 263 u32 reg, mbox_reg; 264 struct sk_buff *skb; 265 u8 buf[80]; 266 267 skb = alloc_skb(1024, GFP_ATOMIC); 268 if (!skb) 269 return; 270 271 snprintf(buf, sizeof(buf), "%s", "---- Dump of debug registers ---"); 272 bt_dev_dbg(hdev, "%s", buf); 273 skb_put_data(skb, buf, strlen(buf)); 274 275 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_BOOT_STAGE_REG); 276 snprintf(buf, sizeof(buf), "boot stage: 0x%8.8x", reg); 277 bt_dev_dbg(hdev, "%s", buf); 278 skb_put_data(skb, buf, strlen(buf)); 279 data->boot_stage_cache = reg; 280 281 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_IPC_STATUS_REG); 282 snprintf(buf, sizeof(buf), "ipc status: 0x%8.8x", reg); 283 skb_put_data(skb, buf, strlen(buf)); 284 bt_dev_dbg(hdev, "%s", buf); 285 286 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_IPC_CONTROL_REG); 287 snprintf(buf, sizeof(buf), "ipc control: 0x%8.8x", reg); 288 skb_put_data(skb, buf, strlen(buf)); 289 bt_dev_dbg(hdev, "%s", buf); 290 291 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_IPC_SLEEP_CTL_REG); 292 snprintf(buf, sizeof(buf), "ipc sleep control: 0x%8.8x", reg); 293 skb_put_data(skb, buf, strlen(buf)); 294 bt_dev_dbg(hdev, "%s", buf); 295 296 /*Read the Mail box status and registers*/ 297 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_MBOX_STATUS_REG); 298 snprintf(buf, sizeof(buf), "mbox status: 0x%8.8x", reg); 299 skb_put_data(skb, buf, strlen(buf)); 300 if (reg & BTINTEL_PCIE_CSR_MBOX_STATUS_MBOX1) { 301 mbox_reg = btintel_pcie_rd_reg32(data, 302 BTINTEL_PCIE_CSR_MBOX_1_REG); 303 snprintf(buf, sizeof(buf), "mbox_1: 0x%8.8x", mbox_reg); 304 skb_put_data(skb, buf, strlen(buf)); 305 bt_dev_dbg(hdev, "%s", buf); 306 } 307 308 if (reg & BTINTEL_PCIE_CSR_MBOX_STATUS_MBOX2) { 309 mbox_reg = btintel_pcie_rd_reg32(data, 310 BTINTEL_PCIE_CSR_MBOX_2_REG); 311 snprintf(buf, sizeof(buf), "mbox_2: 0x%8.8x", mbox_reg); 312 skb_put_data(skb, buf, strlen(buf)); 313 bt_dev_dbg(hdev, "%s", buf); 314 } 315 316 if (reg & BTINTEL_PCIE_CSR_MBOX_STATUS_MBOX3) { 317 mbox_reg = btintel_pcie_rd_reg32(data, 318 BTINTEL_PCIE_CSR_MBOX_3_REG); 319 snprintf(buf, sizeof(buf), "mbox_3: 0x%8.8x", mbox_reg); 320 skb_put_data(skb, buf, strlen(buf)); 321 bt_dev_dbg(hdev, "%s", buf); 322 } 323 324 if (reg & BTINTEL_PCIE_CSR_MBOX_STATUS_MBOX4) { 325 mbox_reg = btintel_pcie_rd_reg32(data, 326 BTINTEL_PCIE_CSR_MBOX_4_REG); 327 snprintf(buf, sizeof(buf), "mbox_4: 0x%8.8x", mbox_reg); 328 skb_put_data(skb, buf, strlen(buf)); 329 bt_dev_dbg(hdev, "%s", buf); 330 } 331 332 cr_hia = data->ia.cr_hia[BTINTEL_PCIE_RXQ_NUM]; 333 cr_tia = data->ia.cr_tia[BTINTEL_PCIE_RXQ_NUM]; 334 snprintf(buf, sizeof(buf), "rxq: cr_tia: %u cr_hia: %u", cr_tia, cr_hia); 335 skb_put_data(skb, buf, strlen(buf)); 336 bt_dev_dbg(hdev, "%s", buf); 337 338 cr_hia = data->ia.cr_hia[BTINTEL_PCIE_TXQ_NUM]; 339 cr_tia = data->ia.cr_tia[BTINTEL_PCIE_TXQ_NUM]; 340 snprintf(buf, sizeof(buf), "txq: cr_tia: %u cr_hia: %u", cr_tia, cr_hia); 341 skb_put_data(skb, buf, strlen(buf)); 342 bt_dev_dbg(hdev, "%s", buf); 343 snprintf(buf, sizeof(buf), "--------------------------------"); 344 bt_dev_dbg(hdev, "%s", buf); 345 346 hci_recv_diag(hdev, skb); 347 } 348 349 static int btintel_pcie_send_sync(struct btintel_pcie_data *data, 350 struct sk_buff *skb, u32 pkt_type, u16 opcode) 351 { 352 int ret; 353 u16 tfd_index; 354 u32 old_ctxt; 355 bool wait_on_alive = false; 356 struct hci_dev *hdev = data->hdev; 357 358 struct txq *txq = &data->txq; 359 360 tfd_index = data->ia.tr_hia[BTINTEL_PCIE_TXQ_NUM]; 361 362 if (tfd_index > txq->count) 363 return -ERANGE; 364 365 /* Firmware raises alive interrupt on HCI_OP_RESET or 366 * BTINTEL_HCI_OP_RESET 367 */ 368 wait_on_alive = (pkt_type == BTINTEL_PCIE_HCI_CMD_PKT && 369 (opcode == BTINTEL_HCI_OP_RESET || opcode == HCI_OP_RESET)); 370 371 if (wait_on_alive) { 372 data->gp0_received = false; 373 old_ctxt = data->alive_intr_ctxt; 374 data->alive_intr_ctxt = 375 (opcode == BTINTEL_HCI_OP_RESET ? BTINTEL_PCIE_INTEL_HCI_RESET1 : 376 BTINTEL_PCIE_HCI_RESET); 377 bt_dev_dbg(data->hdev, "sending cmd: 0x%4.4x alive context changed: %s -> %s", 378 opcode, btintel_pcie_alivectxt_state2str(old_ctxt), 379 btintel_pcie_alivectxt_state2str(data->alive_intr_ctxt)); 380 } 381 382 memcpy(skb_push(skb, BTINTEL_PCIE_HCI_TYPE_LEN), &pkt_type, 383 BTINTEL_PCIE_HCI_TYPE_LEN); 384 385 /* Prepare for TX. It updates the TFD with the length of data and 386 * address of the DMA buffer, and copy the data to the DMA buffer 387 */ 388 btintel_pcie_prepare_tx(txq, tfd_index, skb); 389 390 tfd_index = (tfd_index + 1) % txq->count; 391 data->ia.tr_hia[BTINTEL_PCIE_TXQ_NUM] = tfd_index; 392 393 /* Arm wait event condition */ 394 data->tx_wait_done = false; 395 396 /* Set the doorbell to notify the device */ 397 btintel_pcie_set_tx_db(data, tfd_index); 398 399 /* Wait for the complete interrupt - URBD0 */ 400 ret = wait_event_timeout(data->tx_wait_q, data->tx_wait_done, 401 msecs_to_jiffies(BTINTEL_PCIE_TX_WAIT_TIMEOUT_MS)); 402 if (!ret) { 403 bt_dev_err(data->hdev, "Timeout (%u ms) on tx completion", 404 BTINTEL_PCIE_TX_WAIT_TIMEOUT_MS); 405 btintel_pcie_dump_debug_registers(data->hdev); 406 return -ETIME; 407 } 408 409 if (wait_on_alive) { 410 ret = wait_event_timeout(data->gp0_wait_q, 411 data->gp0_received, 412 msecs_to_jiffies(BTINTEL_DEFAULT_INTR_TIMEOUT_MS)); 413 if (!ret) { 414 hdev->stat.err_tx++; 415 bt_dev_err(hdev, "Timeout (%u ms) on alive interrupt, alive context: %s", 416 BTINTEL_DEFAULT_INTR_TIMEOUT_MS, 417 btintel_pcie_alivectxt_state2str(data->alive_intr_ctxt)); 418 return -ETIME; 419 } 420 } 421 return 0; 422 } 423 424 /* Set the doorbell for RXQ to notify the device that @index (actually index-1) 425 * is available to receive the data 426 */ 427 static void btintel_pcie_set_rx_db(struct btintel_pcie_data *data, u16 index) 428 { 429 u32 val; 430 431 val = index; 432 val |= (BTINTEL_PCIE_RX_DB_VEC << 16); 433 434 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_HBUS_TARG_WRPTR, val); 435 } 436 437 /* Update the FRBD (free buffer descriptor) with the @frbd_index and the 438 * DMA address of the free buffer. 439 */ 440 static void btintel_pcie_prepare_rx(struct rxq *rxq, u16 frbd_index) 441 { 442 struct data_buf *buf; 443 struct frbd *frbd; 444 445 /* Get the buffer of the FRBD for DMA */ 446 buf = &rxq->bufs[frbd_index]; 447 448 frbd = &rxq->frbds[frbd_index]; 449 memset(frbd, 0, sizeof(*frbd)); 450 451 /* Update FRBD */ 452 frbd->tag = frbd_index; 453 frbd->addr = buf->data_p_addr; 454 } 455 456 static int btintel_pcie_submit_rx(struct btintel_pcie_data *data) 457 { 458 u16 frbd_index; 459 struct rxq *rxq = &data->rxq; 460 461 frbd_index = data->ia.tr_hia[BTINTEL_PCIE_RXQ_NUM]; 462 463 if (frbd_index > rxq->count) 464 return -ERANGE; 465 466 /* Prepare for RX submit. It updates the FRBD with the address of DMA 467 * buffer 468 */ 469 btintel_pcie_prepare_rx(rxq, frbd_index); 470 471 frbd_index = (frbd_index + 1) % rxq->count; 472 data->ia.tr_hia[BTINTEL_PCIE_RXQ_NUM] = frbd_index; 473 ipc_print_ia_ring(data->hdev, &data->ia, BTINTEL_PCIE_RXQ_NUM); 474 475 /* Set the doorbell to notify the device */ 476 btintel_pcie_set_rx_db(data, frbd_index); 477 478 return 0; 479 } 480 481 static int btintel_pcie_start_rx(struct btintel_pcie_data *data) 482 { 483 int i, ret; 484 struct rxq *rxq = &data->rxq; 485 486 /* Post (BTINTEL_PCIE_RX_DESCS_COUNT - 3) buffers to overcome the 487 * hardware issues leading to race condition at the firmware. 488 */ 489 490 for (i = 0; i < rxq->count - 3; i++) { 491 ret = btintel_pcie_submit_rx(data); 492 if (ret) 493 return ret; 494 } 495 496 return 0; 497 } 498 499 static void btintel_pcie_reset_ia(struct btintel_pcie_data *data) 500 { 501 memset(data->ia.tr_hia, 0, sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES); 502 memset(data->ia.tr_tia, 0, sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES); 503 memset(data->ia.cr_hia, 0, sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES); 504 memset(data->ia.cr_tia, 0, sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES); 505 } 506 507 static int btintel_pcie_reset_bt(struct btintel_pcie_data *data) 508 { 509 u32 reg; 510 int retry = 3; 511 512 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG); 513 514 reg &= ~(BTINTEL_PCIE_CSR_FUNC_CTRL_FUNC_ENA | 515 BTINTEL_PCIE_CSR_FUNC_CTRL_MAC_INIT | 516 BTINTEL_PCIE_CSR_FUNC_CTRL_FUNC_INIT); 517 reg |= BTINTEL_PCIE_CSR_FUNC_CTRL_BUS_MASTER_DISCON; 518 519 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG, reg); 520 521 do { 522 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG); 523 if (reg & BTINTEL_PCIE_CSR_FUNC_CTRL_BUS_MASTER_STS) 524 break; 525 usleep_range(10000, 12000); 526 527 } while (--retry > 0); 528 usleep_range(10000, 12000); 529 530 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG); 531 532 reg &= ~(BTINTEL_PCIE_CSR_FUNC_CTRL_FUNC_ENA | 533 BTINTEL_PCIE_CSR_FUNC_CTRL_MAC_INIT | 534 BTINTEL_PCIE_CSR_FUNC_CTRL_FUNC_INIT); 535 reg |= BTINTEL_PCIE_CSR_FUNC_CTRL_SW_RESET; 536 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG, reg); 537 usleep_range(10000, 12000); 538 539 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG); 540 bt_dev_dbg(data->hdev, "csr register after reset: 0x%8.8x", reg); 541 542 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_BOOT_STAGE_REG); 543 544 /* If shared hardware reset is success then boot stage register shall be 545 * set to 0 546 */ 547 return reg == 0 ? 0 : -ENODEV; 548 } 549 550 static void btintel_pcie_mac_init(struct btintel_pcie_data *data) 551 { 552 u32 reg; 553 554 /* Set MAC_INIT bit to start primary bootloader */ 555 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG); 556 reg &= ~(BTINTEL_PCIE_CSR_FUNC_CTRL_FUNC_INIT | 557 BTINTEL_PCIE_CSR_FUNC_CTRL_BUS_MASTER_DISCON | 558 BTINTEL_PCIE_CSR_FUNC_CTRL_SW_RESET); 559 reg |= (BTINTEL_PCIE_CSR_FUNC_CTRL_FUNC_ENA | 560 BTINTEL_PCIE_CSR_FUNC_CTRL_MAC_INIT); 561 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG, reg); 562 } 563 564 static int btintel_pcie_get_mac_access(struct btintel_pcie_data *data) 565 { 566 u32 reg; 567 int retry = 15; 568 569 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG); 570 571 reg |= BTINTEL_PCIE_CSR_FUNC_CTRL_STOP_MAC_ACCESS_DIS; 572 reg |= BTINTEL_PCIE_CSR_FUNC_CTRL_XTAL_CLK_REQ; 573 if ((reg & BTINTEL_PCIE_CSR_FUNC_CTRL_MAC_ACCESS_STS) == 0) 574 reg |= BTINTEL_PCIE_CSR_FUNC_CTRL_MAC_ACCESS_REQ; 575 576 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG, reg); 577 578 do { 579 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG); 580 if (reg & BTINTEL_PCIE_CSR_FUNC_CTRL_MAC_ACCESS_STS) 581 return 0; 582 /* Need delay here for Target Access harwdware to settle down*/ 583 usleep_range(1000, 1200); 584 585 } while (--retry > 0); 586 587 return -ETIME; 588 } 589 590 static void btintel_pcie_release_mac_access(struct btintel_pcie_data *data) 591 { 592 u32 reg; 593 594 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG); 595 596 if (reg & BTINTEL_PCIE_CSR_FUNC_CTRL_MAC_ACCESS_REQ) 597 reg &= ~BTINTEL_PCIE_CSR_FUNC_CTRL_MAC_ACCESS_REQ; 598 599 if (reg & BTINTEL_PCIE_CSR_FUNC_CTRL_STOP_MAC_ACCESS_DIS) 600 reg &= ~BTINTEL_PCIE_CSR_FUNC_CTRL_STOP_MAC_ACCESS_DIS; 601 602 if (reg & BTINTEL_PCIE_CSR_FUNC_CTRL_XTAL_CLK_REQ) 603 reg &= ~BTINTEL_PCIE_CSR_FUNC_CTRL_XTAL_CLK_REQ; 604 605 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG, reg); 606 } 607 608 static void *btintel_pcie_copy_tlv(void *dest, enum btintel_pcie_tlv_type type, 609 void *data, size_t size) 610 { 611 struct intel_tlv *tlv; 612 613 tlv = dest; 614 tlv->type = type; 615 tlv->len = size; 616 memcpy(tlv->val, data, tlv->len); 617 return dest + sizeof(*tlv) + size; 618 } 619 620 static int btintel_pcie_read_dram_buffers(struct btintel_pcie_data *data) 621 { 622 u32 offset, prev_size, wr_ptr_status, dump_size, data_len; 623 struct btintel_pcie_dbgc *dbgc = &data->dbgc; 624 struct hci_dev *hdev = data->hdev; 625 u8 *pdata, *p, buf_idx; 626 struct intel_tlv *tlv; 627 struct timespec64 now; 628 struct tm tm_now; 629 char fw_build[128]; 630 char ts[128]; 631 char vendor[64]; 632 char driver[64]; 633 634 if (!IS_ENABLED(CONFIG_DEV_COREDUMP)) 635 return -EOPNOTSUPP; 636 637 638 wr_ptr_status = btintel_pcie_rd_dev_mem(data, BTINTEL_PCIE_DBGC_CUR_DBGBUFF_STATUS); 639 offset = wr_ptr_status & BTINTEL_PCIE_DBG_OFFSET_BIT_MASK; 640 641 buf_idx = BTINTEL_PCIE_DBGC_DBG_BUF_IDX(wr_ptr_status); 642 if (buf_idx > dbgc->count) { 643 bt_dev_warn(hdev, "Buffer index is invalid"); 644 return -EINVAL; 645 } 646 647 prev_size = buf_idx * BTINTEL_PCIE_DBGC_BUFFER_SIZE; 648 if (prev_size + offset >= prev_size) 649 data->dmp_hdr.write_ptr = prev_size + offset; 650 else 651 return -EINVAL; 652 653 snprintf(vendor, sizeof(vendor), "Vendor: Intel\n"); 654 snprintf(driver, sizeof(driver), "Driver: %s\n", 655 data->dmp_hdr.driver_name); 656 657 ktime_get_real_ts64(&now); 658 time64_to_tm(now.tv_sec, 0, &tm_now); 659 snprintf(ts, sizeof(ts), "Dump Time: %02d-%02d-%04ld %02d:%02d:%02d", 660 tm_now.tm_mday, tm_now.tm_mon + 1, tm_now.tm_year + 1900, 661 tm_now.tm_hour, tm_now.tm_min, tm_now.tm_sec); 662 663 snprintf(fw_build, sizeof(fw_build), 664 "Firmware Timestamp: Year %u WW %02u buildtype %u build %u", 665 2000 + (data->dmp_hdr.fw_timestamp >> 8), 666 data->dmp_hdr.fw_timestamp & 0xff, data->dmp_hdr.fw_build_type, 667 data->dmp_hdr.fw_build_num); 668 669 data_len = sizeof(*tlv) + sizeof(data->dmp_hdr.cnvi_bt) + 670 sizeof(*tlv) + sizeof(data->dmp_hdr.write_ptr) + 671 sizeof(*tlv) + sizeof(data->dmp_hdr.wrap_ctr) + 672 sizeof(*tlv) + sizeof(data->dmp_hdr.trigger_reason) + 673 sizeof(*tlv) + sizeof(data->dmp_hdr.fw_git_sha1) + 674 sizeof(*tlv) + sizeof(data->dmp_hdr.cnvr_top) + 675 sizeof(*tlv) + sizeof(data->dmp_hdr.cnvi_top) + 676 sizeof(*tlv) + strlen(ts) + 677 sizeof(*tlv) + strlen(fw_build) + 678 sizeof(*tlv) + strlen(vendor) + 679 sizeof(*tlv) + strlen(driver); 680 681 /* 682 * sizeof(u32) - signature 683 * sizeof(data_len) - to store tlv data size 684 * data_len - TLV data 685 */ 686 dump_size = sizeof(u32) + sizeof(data_len) + data_len; 687 688 689 /* Add debug buffers data length to dump size */ 690 dump_size += BTINTEL_PCIE_DBGC_BUFFER_SIZE * dbgc->count; 691 692 pdata = vmalloc(dump_size); 693 if (!pdata) 694 return -ENOMEM; 695 p = pdata; 696 697 *(u32 *)p = BTINTEL_PCIE_MAGIC_NUM; 698 p += sizeof(u32); 699 700 *(u32 *)p = data_len; 701 p += sizeof(u32); 702 703 704 p = btintel_pcie_copy_tlv(p, BTINTEL_VENDOR, vendor, strlen(vendor)); 705 p = btintel_pcie_copy_tlv(p, BTINTEL_DRIVER, driver, strlen(driver)); 706 p = btintel_pcie_copy_tlv(p, BTINTEL_DUMP_TIME, ts, strlen(ts)); 707 p = btintel_pcie_copy_tlv(p, BTINTEL_FW_BUILD, fw_build, 708 strlen(fw_build)); 709 p = btintel_pcie_copy_tlv(p, BTINTEL_CNVI_BT, &data->dmp_hdr.cnvi_bt, 710 sizeof(data->dmp_hdr.cnvi_bt)); 711 p = btintel_pcie_copy_tlv(p, BTINTEL_WRITE_PTR, &data->dmp_hdr.write_ptr, 712 sizeof(data->dmp_hdr.write_ptr)); 713 p = btintel_pcie_copy_tlv(p, BTINTEL_WRAP_CTR, &data->dmp_hdr.wrap_ctr, 714 sizeof(data->dmp_hdr.wrap_ctr)); 715 716 data->dmp_hdr.wrap_ctr = btintel_pcie_rd_dev_mem(data, 717 BTINTEL_PCIE_DBGC_DBGBUFF_WRAP_ARND); 718 719 p = btintel_pcie_copy_tlv(p, BTINTEL_TRIGGER_REASON, &data->dmp_hdr.trigger_reason, 720 sizeof(data->dmp_hdr.trigger_reason)); 721 p = btintel_pcie_copy_tlv(p, BTINTEL_FW_SHA, &data->dmp_hdr.fw_git_sha1, 722 sizeof(data->dmp_hdr.fw_git_sha1)); 723 p = btintel_pcie_copy_tlv(p, BTINTEL_CNVR_TOP, &data->dmp_hdr.cnvr_top, 724 sizeof(data->dmp_hdr.cnvr_top)); 725 p = btintel_pcie_copy_tlv(p, BTINTEL_CNVI_TOP, &data->dmp_hdr.cnvi_top, 726 sizeof(data->dmp_hdr.cnvi_top)); 727 728 memcpy(p, dbgc->bufs[0].data, dbgc->count * BTINTEL_PCIE_DBGC_BUFFER_SIZE); 729 dev_coredumpv(&hdev->dev, pdata, dump_size, GFP_KERNEL); 730 return 0; 731 } 732 733 static void btintel_pcie_dump_traces(struct hci_dev *hdev) 734 { 735 struct btintel_pcie_data *data = hci_get_drvdata(hdev); 736 int ret = 0; 737 738 ret = btintel_pcie_get_mac_access(data); 739 if (ret) { 740 bt_dev_err(hdev, "Failed to get mac access: (%d)", ret); 741 return; 742 } 743 744 ret = btintel_pcie_read_dram_buffers(data); 745 746 btintel_pcie_release_mac_access(data); 747 748 if (ret) 749 bt_dev_err(hdev, "Failed to dump traces: (%d)", ret); 750 } 751 752 /* This function enables BT function by setting BTINTEL_PCIE_CSR_FUNC_CTRL_MAC_INIT bit in 753 * BTINTEL_PCIE_CSR_FUNC_CTRL_REG register and wait for MSI-X with 754 * BTINTEL_PCIE_MSIX_HW_INT_CAUSES_GP0. 755 * Then the host reads firmware version from BTINTEL_CSR_F2D_MBX and the boot stage 756 * from BTINTEL_PCIE_CSR_BOOT_STAGE_REG. 757 */ 758 static int btintel_pcie_enable_bt(struct btintel_pcie_data *data) 759 { 760 int err; 761 u32 reg; 762 763 data->gp0_received = false; 764 765 /* Update the DMA address of CI struct to CSR */ 766 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_CI_ADDR_LSB_REG, 767 data->ci_p_addr & 0xffffffff); 768 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_CI_ADDR_MSB_REG, 769 (u64)data->ci_p_addr >> 32); 770 771 /* Reset the cached value of boot stage. it is updated by the MSI-X 772 * gp0 interrupt handler. 773 */ 774 data->boot_stage_cache = 0x0; 775 776 /* Set MAC_INIT bit to start primary bootloader */ 777 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG); 778 reg &= ~(BTINTEL_PCIE_CSR_FUNC_CTRL_FUNC_INIT | 779 BTINTEL_PCIE_CSR_FUNC_CTRL_BUS_MASTER_DISCON | 780 BTINTEL_PCIE_CSR_FUNC_CTRL_SW_RESET); 781 reg |= (BTINTEL_PCIE_CSR_FUNC_CTRL_FUNC_ENA | 782 BTINTEL_PCIE_CSR_FUNC_CTRL_MAC_INIT); 783 784 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG, reg); 785 786 /* MAC is ready. Enable BT FUNC */ 787 btintel_pcie_set_reg_bits(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG, 788 BTINTEL_PCIE_CSR_FUNC_CTRL_FUNC_INIT); 789 790 btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_FUNC_CTRL_REG); 791 792 /* wait for interrupt from the device after booting up to primary 793 * bootloader. 794 */ 795 data->alive_intr_ctxt = BTINTEL_PCIE_ROM; 796 err = wait_event_timeout(data->gp0_wait_q, data->gp0_received, 797 msecs_to_jiffies(BTINTEL_DEFAULT_INTR_TIMEOUT_MS)); 798 if (!err) 799 return -ETIME; 800 801 /* Check cached boot stage is BTINTEL_PCIE_CSR_BOOT_STAGE_ROM(BIT(0)) */ 802 if (~data->boot_stage_cache & BTINTEL_PCIE_CSR_BOOT_STAGE_ROM) 803 return -ENODEV; 804 805 return 0; 806 } 807 808 static inline bool btintel_pcie_in_op(struct btintel_pcie_data *data) 809 { 810 return data->boot_stage_cache & BTINTEL_PCIE_CSR_BOOT_STAGE_OPFW; 811 } 812 813 static inline bool btintel_pcie_in_iml(struct btintel_pcie_data *data) 814 { 815 return data->boot_stage_cache & BTINTEL_PCIE_CSR_BOOT_STAGE_IML && 816 !(data->boot_stage_cache & BTINTEL_PCIE_CSR_BOOT_STAGE_OPFW); 817 } 818 819 static inline bool btintel_pcie_in_d3(struct btintel_pcie_data *data) 820 { 821 return data->boot_stage_cache & BTINTEL_PCIE_CSR_BOOT_STAGE_D3_STATE_READY; 822 } 823 824 static inline bool btintel_pcie_in_d0(struct btintel_pcie_data *data) 825 { 826 return !(data->boot_stage_cache & BTINTEL_PCIE_CSR_BOOT_STAGE_D3_STATE_READY); 827 } 828 829 static inline bool btintel_pcie_in_device_halt(struct btintel_pcie_data *data) 830 { 831 return data->boot_stage_cache & BTINTEL_PCIE_CSR_BOOT_STAGE_DEVICE_HALTED; 832 } 833 834 static void btintel_pcie_wr_sleep_cntrl(struct btintel_pcie_data *data, 835 u32 dxstate) 836 { 837 bt_dev_dbg(data->hdev, "writing sleep_ctl_reg: 0x%8.8x", dxstate); 838 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_IPC_SLEEP_CTL_REG, dxstate); 839 } 840 841 static int btintel_pcie_read_device_mem(struct btintel_pcie_data *data, 842 void *buf, u32 dev_addr, int len) 843 { 844 int err; 845 u32 *val = buf; 846 847 /* Get device mac access */ 848 err = btintel_pcie_get_mac_access(data); 849 if (err) { 850 bt_dev_err(data->hdev, "Failed to get mac access %d", err); 851 return err; 852 } 853 854 for (; len > 0; len -= 4, dev_addr += 4, val++) 855 *val = btintel_pcie_rd_dev_mem(data, dev_addr); 856 857 btintel_pcie_release_mac_access(data); 858 859 return 0; 860 } 861 862 static inline bool btintel_pcie_in_lockdown(struct btintel_pcie_data *data) 863 { 864 return (data->boot_stage_cache & 865 BTINTEL_PCIE_CSR_BOOT_STAGE_ROM_LOCKDOWN) || 866 (data->boot_stage_cache & 867 BTINTEL_PCIE_CSR_BOOT_STAGE_IML_LOCKDOWN); 868 } 869 870 static inline bool btintel_pcie_in_error(struct btintel_pcie_data *data) 871 { 872 return (data->boot_stage_cache & BTINTEL_PCIE_CSR_BOOT_STAGE_DEVICE_ERR) || 873 (data->boot_stage_cache & BTINTEL_PCIE_CSR_BOOT_STAGE_ABORT_HANDLER); 874 } 875 876 static void btintel_pcie_msix_gp1_handler(struct btintel_pcie_data *data) 877 { 878 bt_dev_err(data->hdev, "Received gp1 mailbox interrupt"); 879 btintel_pcie_dump_debug_registers(data->hdev); 880 } 881 882 /* This function handles the MSI-X interrupt for gp0 cause (bit 0 in 883 * BTINTEL_PCIE_CSR_MSIX_HW_INT_CAUSES) which is sent for boot stage and image response. 884 */ 885 static void btintel_pcie_msix_gp0_handler(struct btintel_pcie_data *data) 886 { 887 bool submit_rx, signal_waitq; 888 u32 reg, old_ctxt; 889 890 /* This interrupt is for three different causes and it is not easy to 891 * know what causes the interrupt. So, it compares each register value 892 * with cached value and update it before it wake up the queue. 893 */ 894 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_BOOT_STAGE_REG); 895 if (reg != data->boot_stage_cache) 896 data->boot_stage_cache = reg; 897 898 bt_dev_dbg(data->hdev, "Alive context: %s old_boot_stage: 0x%8.8x new_boot_stage: 0x%8.8x", 899 btintel_pcie_alivectxt_state2str(data->alive_intr_ctxt), 900 data->boot_stage_cache, reg); 901 reg = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_IMG_RESPONSE_REG); 902 if (reg != data->img_resp_cache) 903 data->img_resp_cache = reg; 904 905 if (btintel_pcie_in_error(data)) { 906 bt_dev_err(data->hdev, "Controller in error state"); 907 btintel_pcie_dump_debug_registers(data->hdev); 908 return; 909 } 910 911 if (btintel_pcie_in_lockdown(data)) { 912 bt_dev_err(data->hdev, "Controller in lockdown state"); 913 btintel_pcie_dump_debug_registers(data->hdev); 914 return; 915 } 916 917 data->gp0_received = true; 918 919 old_ctxt = data->alive_intr_ctxt; 920 submit_rx = false; 921 signal_waitq = false; 922 923 switch (data->alive_intr_ctxt) { 924 case BTINTEL_PCIE_ROM: 925 data->alive_intr_ctxt = BTINTEL_PCIE_FW_DL; 926 signal_waitq = true; 927 break; 928 case BTINTEL_PCIE_FW_DL: 929 /* Error case is already handled. Ideally control shall not 930 * reach here 931 */ 932 break; 933 case BTINTEL_PCIE_INTEL_HCI_RESET1: 934 if (btintel_pcie_in_op(data)) { 935 submit_rx = true; 936 signal_waitq = true; 937 break; 938 } 939 940 if (btintel_pcie_in_iml(data)) { 941 submit_rx = true; 942 signal_waitq = true; 943 data->alive_intr_ctxt = BTINTEL_PCIE_FW_DL; 944 break; 945 } 946 break; 947 case BTINTEL_PCIE_INTEL_HCI_RESET2: 948 if (btintel_test_and_clear_flag(data->hdev, INTEL_WAIT_FOR_D0)) { 949 btintel_wake_up_flag(data->hdev, INTEL_WAIT_FOR_D0); 950 data->alive_intr_ctxt = BTINTEL_PCIE_D0; 951 } 952 break; 953 case BTINTEL_PCIE_D0: 954 if (btintel_pcie_in_d3(data)) { 955 data->alive_intr_ctxt = BTINTEL_PCIE_D3; 956 signal_waitq = true; 957 break; 958 } 959 break; 960 case BTINTEL_PCIE_D3: 961 if (btintel_pcie_in_d0(data)) { 962 data->alive_intr_ctxt = BTINTEL_PCIE_D0; 963 submit_rx = true; 964 signal_waitq = true; 965 break; 966 } 967 break; 968 case BTINTEL_PCIE_HCI_RESET: 969 data->alive_intr_ctxt = BTINTEL_PCIE_D0; 970 submit_rx = true; 971 signal_waitq = true; 972 break; 973 default: 974 bt_dev_err(data->hdev, "Unknown state: 0x%2.2x", 975 data->alive_intr_ctxt); 976 break; 977 } 978 979 if (submit_rx) { 980 btintel_pcie_reset_ia(data); 981 btintel_pcie_start_rx(data); 982 } 983 984 if (signal_waitq) { 985 bt_dev_dbg(data->hdev, "wake up gp0 wait_q"); 986 wake_up(&data->gp0_wait_q); 987 } 988 989 if (old_ctxt != data->alive_intr_ctxt) 990 bt_dev_dbg(data->hdev, "alive context changed: %s -> %s", 991 btintel_pcie_alivectxt_state2str(old_ctxt), 992 btintel_pcie_alivectxt_state2str(data->alive_intr_ctxt)); 993 } 994 995 /* This function handles the MSX-X interrupt for rx queue 0 which is for TX 996 */ 997 static void btintel_pcie_msix_tx_handle(struct btintel_pcie_data *data) 998 { 999 u16 cr_tia, cr_hia; 1000 struct txq *txq; 1001 struct urbd0 *urbd0; 1002 1003 cr_tia = data->ia.cr_tia[BTINTEL_PCIE_TXQ_NUM]; 1004 cr_hia = data->ia.cr_hia[BTINTEL_PCIE_TXQ_NUM]; 1005 1006 if (cr_tia == cr_hia) 1007 return; 1008 1009 txq = &data->txq; 1010 1011 while (cr_tia != cr_hia) { 1012 data->tx_wait_done = true; 1013 wake_up(&data->tx_wait_q); 1014 1015 urbd0 = &txq->urbd0s[cr_tia]; 1016 1017 if (urbd0->tfd_index > txq->count) 1018 return; 1019 1020 cr_tia = (cr_tia + 1) % txq->count; 1021 data->ia.cr_tia[BTINTEL_PCIE_TXQ_NUM] = cr_tia; 1022 ipc_print_ia_ring(data->hdev, &data->ia, BTINTEL_PCIE_TXQ_NUM); 1023 } 1024 } 1025 1026 static int btintel_pcie_recv_event(struct hci_dev *hdev, struct sk_buff *skb) 1027 { 1028 struct hci_event_hdr *hdr = (void *)skb->data; 1029 struct btintel_pcie_data *data = hci_get_drvdata(hdev); 1030 1031 if (skb->len > HCI_EVENT_HDR_SIZE && hdr->evt == 0xff && 1032 hdr->plen > 0) { 1033 const void *ptr = skb->data + HCI_EVENT_HDR_SIZE + 1; 1034 unsigned int len = skb->len - HCI_EVENT_HDR_SIZE - 1; 1035 1036 if (btintel_test_flag(hdev, INTEL_BOOTLOADER)) { 1037 switch (skb->data[2]) { 1038 case 0x02: 1039 /* When switching to the operational firmware 1040 * the device sends a vendor specific event 1041 * indicating that the bootup completed. 1042 */ 1043 btintel_bootup(hdev, ptr, len); 1044 1045 /* If bootup event is from operational image, 1046 * driver needs to write sleep control register to 1047 * move into D0 state 1048 */ 1049 if (btintel_pcie_in_op(data)) { 1050 btintel_pcie_wr_sleep_cntrl(data, BTINTEL_PCIE_STATE_D0); 1051 data->alive_intr_ctxt = BTINTEL_PCIE_INTEL_HCI_RESET2; 1052 kfree_skb(skb); 1053 return 0; 1054 } 1055 1056 if (btintel_pcie_in_iml(data)) { 1057 /* In case of IML, there is no concept 1058 * of D0 transition. Just mimic as if 1059 * IML moved to D0 by clearing INTEL_WAIT_FOR_D0 1060 * bit and waking up the task waiting on 1061 * INTEL_WAIT_FOR_D0. This is required 1062 * as intel_boot() is common function for 1063 * both IML and OP image loading. 1064 */ 1065 if (btintel_test_and_clear_flag(data->hdev, 1066 INTEL_WAIT_FOR_D0)) 1067 btintel_wake_up_flag(data->hdev, 1068 INTEL_WAIT_FOR_D0); 1069 } 1070 kfree_skb(skb); 1071 return 0; 1072 case 0x06: 1073 /* When the firmware loading completes the 1074 * device sends out a vendor specific event 1075 * indicating the result of the firmware 1076 * loading. 1077 */ 1078 btintel_secure_send_result(hdev, ptr, len); 1079 kfree_skb(skb); 1080 return 0; 1081 } 1082 } 1083 1084 /* This is a debug event that comes from IML and OP image when it 1085 * starts execution. There is no need pass this event to stack. 1086 */ 1087 if (skb->data[2] == 0x97) { 1088 hci_recv_diag(hdev, skb); 1089 return 0; 1090 } 1091 } 1092 1093 return hci_recv_frame(hdev, skb); 1094 } 1095 /* Process the received rx data 1096 * It check the frame header to identify the data type and create skb 1097 * and calling HCI API 1098 */ 1099 static int btintel_pcie_recv_frame(struct btintel_pcie_data *data, 1100 struct sk_buff *skb) 1101 { 1102 int ret; 1103 u8 pkt_type; 1104 u16 plen; 1105 u32 pcie_pkt_type; 1106 void *pdata; 1107 struct hci_dev *hdev = data->hdev; 1108 1109 spin_lock(&data->hci_rx_lock); 1110 1111 /* The first 4 bytes indicates the Intel PCIe specific packet type */ 1112 pdata = skb_pull_data(skb, BTINTEL_PCIE_HCI_TYPE_LEN); 1113 if (!pdata) { 1114 bt_dev_err(hdev, "Corrupted packet received"); 1115 ret = -EILSEQ; 1116 goto exit_error; 1117 } 1118 1119 pcie_pkt_type = get_unaligned_le32(pdata); 1120 1121 switch (pcie_pkt_type) { 1122 case BTINTEL_PCIE_HCI_ACL_PKT: 1123 if (skb->len >= HCI_ACL_HDR_SIZE) { 1124 plen = HCI_ACL_HDR_SIZE + __le16_to_cpu(hci_acl_hdr(skb)->dlen); 1125 pkt_type = HCI_ACLDATA_PKT; 1126 } else { 1127 bt_dev_err(hdev, "ACL packet is too short"); 1128 ret = -EILSEQ; 1129 goto exit_error; 1130 } 1131 break; 1132 1133 case BTINTEL_PCIE_HCI_SCO_PKT: 1134 if (skb->len >= HCI_SCO_HDR_SIZE) { 1135 plen = HCI_SCO_HDR_SIZE + hci_sco_hdr(skb)->dlen; 1136 pkt_type = HCI_SCODATA_PKT; 1137 } else { 1138 bt_dev_err(hdev, "SCO packet is too short"); 1139 ret = -EILSEQ; 1140 goto exit_error; 1141 } 1142 break; 1143 1144 case BTINTEL_PCIE_HCI_EVT_PKT: 1145 if (skb->len >= HCI_EVENT_HDR_SIZE) { 1146 plen = HCI_EVENT_HDR_SIZE + hci_event_hdr(skb)->plen; 1147 pkt_type = HCI_EVENT_PKT; 1148 } else { 1149 bt_dev_err(hdev, "Event packet is too short"); 1150 ret = -EILSEQ; 1151 goto exit_error; 1152 } 1153 break; 1154 1155 case BTINTEL_PCIE_HCI_ISO_PKT: 1156 if (skb->len >= HCI_ISO_HDR_SIZE) { 1157 plen = HCI_ISO_HDR_SIZE + __le16_to_cpu(hci_iso_hdr(skb)->dlen); 1158 pkt_type = HCI_ISODATA_PKT; 1159 } else { 1160 bt_dev_err(hdev, "ISO packet is too short"); 1161 ret = -EILSEQ; 1162 goto exit_error; 1163 } 1164 break; 1165 1166 default: 1167 bt_dev_err(hdev, "Invalid packet type received: 0x%4.4x", 1168 pcie_pkt_type); 1169 ret = -EINVAL; 1170 goto exit_error; 1171 } 1172 1173 if (skb->len < plen) { 1174 bt_dev_err(hdev, "Received corrupted packet. type: 0x%2.2x", 1175 pkt_type); 1176 ret = -EILSEQ; 1177 goto exit_error; 1178 } 1179 1180 bt_dev_dbg(hdev, "pkt_type: 0x%2.2x len: %u", pkt_type, plen); 1181 1182 hci_skb_pkt_type(skb) = pkt_type; 1183 hdev->stat.byte_rx += plen; 1184 skb_trim(skb, plen); 1185 1186 if (pcie_pkt_type == BTINTEL_PCIE_HCI_EVT_PKT) 1187 ret = btintel_pcie_recv_event(hdev, skb); 1188 else 1189 ret = hci_recv_frame(hdev, skb); 1190 skb = NULL; /* skb is freed in the callee */ 1191 1192 exit_error: 1193 if (skb) 1194 kfree_skb(skb); 1195 1196 if (ret) 1197 hdev->stat.err_rx++; 1198 1199 spin_unlock(&data->hci_rx_lock); 1200 1201 return ret; 1202 } 1203 1204 static void btintel_pcie_read_hwexp(struct btintel_pcie_data *data) 1205 { 1206 int len, err, offset, pending; 1207 struct sk_buff *skb; 1208 u8 *buf, prefix[64]; 1209 u32 addr, val; 1210 u16 pkt_len; 1211 1212 struct tlv { 1213 u8 type; 1214 __le16 len; 1215 u8 val[]; 1216 } __packed; 1217 1218 struct tlv *tlv; 1219 1220 switch (data->dmp_hdr.cnvi_top & 0xfff) { 1221 case BTINTEL_CNVI_BLAZARI: 1222 case BTINTEL_CNVI_BLAZARIW: 1223 /* only from step B0 onwards */ 1224 if (INTEL_CNVX_TOP_STEP(data->dmp_hdr.cnvi_top) != 0x01) 1225 return; 1226 len = BTINTEL_PCIE_BLZR_HWEXP_SIZE; /* exception data length */ 1227 addr = BTINTEL_PCIE_BLZR_HWEXP_DMP_ADDR; 1228 break; 1229 case BTINTEL_CNVI_SCP: 1230 len = BTINTEL_PCIE_SCP_HWEXP_SIZE; 1231 addr = BTINTEL_PCIE_SCP_HWEXP_DMP_ADDR; 1232 break; 1233 default: 1234 bt_dev_err(data->hdev, "Unsupported cnvi 0x%8.8x", data->dmp_hdr.cnvi_top); 1235 return; 1236 } 1237 1238 buf = kzalloc(len, GFP_KERNEL); 1239 if (!buf) 1240 goto exit_on_error; 1241 1242 btintel_pcie_mac_init(data); 1243 1244 err = btintel_pcie_read_device_mem(data, buf, addr, len); 1245 if (err) 1246 goto exit_on_error; 1247 1248 val = get_unaligned_le32(buf); 1249 if (val != BTINTEL_PCIE_MAGIC_NUM) { 1250 bt_dev_err(data->hdev, "Invalid exception dump signature: 0x%8.8x", 1251 val); 1252 goto exit_on_error; 1253 } 1254 1255 snprintf(prefix, sizeof(prefix), "Bluetooth: %s: ", bt_dev_name(data->hdev)); 1256 1257 offset = 4; 1258 do { 1259 pending = len - offset; 1260 if (pending < sizeof(*tlv)) 1261 break; 1262 tlv = (struct tlv *)(buf + offset); 1263 1264 /* If type == 0, then there are no more TLVs to be parsed */ 1265 if (!tlv->type) { 1266 bt_dev_dbg(data->hdev, "Invalid TLV type 0"); 1267 break; 1268 } 1269 pkt_len = le16_to_cpu(tlv->len); 1270 offset += sizeof(*tlv); 1271 pending = len - offset; 1272 if (pkt_len > pending) 1273 break; 1274 1275 offset += pkt_len; 1276 1277 /* Only TLVs of type == 1 are HCI events, no need to process other 1278 * TLVs 1279 */ 1280 if (tlv->type != 1) 1281 continue; 1282 1283 bt_dev_dbg(data->hdev, "TLV packet length: %u", pkt_len); 1284 if (pkt_len > HCI_MAX_EVENT_SIZE) 1285 break; 1286 skb = bt_skb_alloc(pkt_len, GFP_KERNEL); 1287 if (!skb) 1288 goto exit_on_error; 1289 hci_skb_pkt_type(skb) = HCI_EVENT_PKT; 1290 skb_put_data(skb, tlv->val, pkt_len); 1291 1292 /* copy Intel specific pcie packet type */ 1293 val = BTINTEL_PCIE_HCI_EVT_PKT; 1294 memcpy(skb_push(skb, BTINTEL_PCIE_HCI_TYPE_LEN), &val, 1295 BTINTEL_PCIE_HCI_TYPE_LEN); 1296 1297 print_hex_dump(KERN_DEBUG, prefix, DUMP_PREFIX_OFFSET, 16, 1, 1298 tlv->val, pkt_len, false); 1299 1300 btintel_pcie_recv_frame(data, skb); 1301 } while (offset < len); 1302 1303 exit_on_error: 1304 kfree(buf); 1305 } 1306 1307 static void btintel_pcie_msix_hw_exp_handler(struct btintel_pcie_data *data) 1308 { 1309 bt_dev_err(data->hdev, "Received hw exception interrupt"); 1310 1311 if (test_and_set_bit(BTINTEL_PCIE_CORE_HALTED, &data->flags)) 1312 return; 1313 1314 if (test_and_set_bit(BTINTEL_PCIE_HWEXP_INPROGRESS, &data->flags)) 1315 return; 1316 1317 /* Trigger device core dump when there is HW exception */ 1318 if (!test_and_set_bit(BTINTEL_PCIE_COREDUMP_INPROGRESS, &data->flags)) 1319 data->dmp_hdr.trigger_reason = BTINTEL_PCIE_TRIGGER_REASON_FW_ASSERT; 1320 1321 queue_work(data->workqueue, &data->rx_work); 1322 } 1323 1324 static void btintel_pcie_rx_work(struct work_struct *work) 1325 { 1326 struct btintel_pcie_data *data = container_of(work, 1327 struct btintel_pcie_data, rx_work); 1328 struct sk_buff *skb; 1329 1330 if (test_bit(BTINTEL_PCIE_COREDUMP_INPROGRESS, &data->flags)) { 1331 btintel_pcie_dump_traces(data->hdev); 1332 clear_bit(BTINTEL_PCIE_COREDUMP_INPROGRESS, &data->flags); 1333 } 1334 1335 if (test_bit(BTINTEL_PCIE_HWEXP_INPROGRESS, &data->flags)) { 1336 /* Unlike usb products, controller will not send hardware 1337 * exception event on exception. Instead controller writes the 1338 * hardware event to device memory along with optional debug 1339 * events, raises MSIX and halts. Driver shall read the 1340 * exception event from device memory and passes it stack for 1341 * further processing. 1342 */ 1343 btintel_pcie_read_hwexp(data); 1344 clear_bit(BTINTEL_PCIE_HWEXP_INPROGRESS, &data->flags); 1345 } 1346 1347 /* Process the sk_buf in queue and send to the HCI layer */ 1348 while ((skb = skb_dequeue(&data->rx_skb_q))) { 1349 btintel_pcie_recv_frame(data, skb); 1350 } 1351 } 1352 1353 /* create sk_buff with data and save it to queue and start RX work */ 1354 static int btintel_pcie_submit_rx_work(struct btintel_pcie_data *data, u8 status, 1355 void *buf) 1356 { 1357 int ret, len; 1358 struct rfh_hdr *rfh_hdr; 1359 struct sk_buff *skb; 1360 1361 rfh_hdr = buf; 1362 1363 len = rfh_hdr->packet_len; 1364 if (len <= 0) { 1365 ret = -EINVAL; 1366 goto resubmit; 1367 } 1368 1369 /* Remove RFH header */ 1370 buf += sizeof(*rfh_hdr); 1371 1372 skb = alloc_skb(len, GFP_ATOMIC); 1373 if (!skb) 1374 goto resubmit; 1375 1376 skb_put_data(skb, buf, len); 1377 skb_queue_tail(&data->rx_skb_q, skb); 1378 queue_work(data->workqueue, &data->rx_work); 1379 1380 resubmit: 1381 ret = btintel_pcie_submit_rx(data); 1382 1383 return ret; 1384 } 1385 1386 /* Handles the MSI-X interrupt for rx queue 1 which is for RX */ 1387 static void btintel_pcie_msix_rx_handle(struct btintel_pcie_data *data) 1388 { 1389 u16 cr_hia, cr_tia; 1390 struct rxq *rxq; 1391 struct urbd1 *urbd1; 1392 struct data_buf *buf; 1393 int ret; 1394 struct hci_dev *hdev = data->hdev; 1395 1396 cr_hia = data->ia.cr_hia[BTINTEL_PCIE_RXQ_NUM]; 1397 cr_tia = data->ia.cr_tia[BTINTEL_PCIE_RXQ_NUM]; 1398 1399 bt_dev_dbg(hdev, "RXQ: cr_hia: %u cr_tia: %u", cr_hia, cr_tia); 1400 1401 /* Check CR_TIA and CR_HIA for change */ 1402 if (cr_tia == cr_hia) 1403 return; 1404 1405 rxq = &data->rxq; 1406 1407 /* The firmware sends multiple CD in a single MSI-X and it needs to 1408 * process all received CDs in this interrupt. 1409 */ 1410 while (cr_tia != cr_hia) { 1411 urbd1 = &rxq->urbd1s[cr_tia]; 1412 ipc_print_urbd1(data->hdev, urbd1, cr_tia); 1413 1414 buf = &rxq->bufs[urbd1->frbd_tag]; 1415 if (!buf) { 1416 bt_dev_err(hdev, "RXQ: failed to get the DMA buffer for %d", 1417 urbd1->frbd_tag); 1418 return; 1419 } 1420 1421 ret = btintel_pcie_submit_rx_work(data, urbd1->status, 1422 buf->data); 1423 if (ret) { 1424 bt_dev_err(hdev, "RXQ: failed to submit rx request"); 1425 return; 1426 } 1427 1428 cr_tia = (cr_tia + 1) % rxq->count; 1429 data->ia.cr_tia[BTINTEL_PCIE_RXQ_NUM] = cr_tia; 1430 ipc_print_ia_ring(data->hdev, &data->ia, BTINTEL_PCIE_RXQ_NUM); 1431 } 1432 } 1433 1434 static inline bool btintel_pcie_is_rxq_empty(struct btintel_pcie_data *data) 1435 { 1436 return data->ia.cr_hia[BTINTEL_PCIE_RXQ_NUM] == data->ia.cr_tia[BTINTEL_PCIE_RXQ_NUM]; 1437 } 1438 1439 static inline bool btintel_pcie_is_txackq_empty(struct btintel_pcie_data *data) 1440 { 1441 return data->ia.cr_tia[BTINTEL_PCIE_TXQ_NUM] == data->ia.cr_hia[BTINTEL_PCIE_TXQ_NUM]; 1442 } 1443 1444 static irqreturn_t btintel_pcie_irq_msix_handler(int irq, void *dev_id) 1445 { 1446 struct msix_entry *entry = dev_id; 1447 struct btintel_pcie_data *data = btintel_pcie_get_data(entry); 1448 u32 intr_fh, intr_hw; 1449 1450 spin_lock(&data->irq_lock); 1451 intr_fh = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_MSIX_FH_INT_CAUSES); 1452 intr_hw = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_MSIX_HW_INT_CAUSES); 1453 1454 /* Clear causes registers to avoid being handling the same cause */ 1455 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_MSIX_FH_INT_CAUSES, intr_fh); 1456 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_MSIX_HW_INT_CAUSES, intr_hw); 1457 spin_unlock(&data->irq_lock); 1458 1459 if (unlikely(!(intr_fh | intr_hw))) { 1460 /* Ignore interrupt, inta == 0 */ 1461 return IRQ_NONE; 1462 } 1463 1464 /* This interrupt is raised when there is an hardware exception */ 1465 if (intr_hw & BTINTEL_PCIE_MSIX_HW_INT_CAUSES_HWEXP) 1466 btintel_pcie_msix_hw_exp_handler(data); 1467 1468 if (intr_hw & BTINTEL_PCIE_MSIX_HW_INT_CAUSES_GP1) 1469 btintel_pcie_msix_gp1_handler(data); 1470 1471 1472 /* For TX */ 1473 if (intr_fh & BTINTEL_PCIE_MSIX_FH_INT_CAUSES_0) { 1474 btintel_pcie_msix_tx_handle(data); 1475 if (!btintel_pcie_is_rxq_empty(data)) 1476 btintel_pcie_msix_rx_handle(data); 1477 } 1478 1479 /* For RX */ 1480 if (intr_fh & BTINTEL_PCIE_MSIX_FH_INT_CAUSES_1) { 1481 btintel_pcie_msix_rx_handle(data); 1482 if (!btintel_pcie_is_txackq_empty(data)) 1483 btintel_pcie_msix_tx_handle(data); 1484 } 1485 1486 /* This interrupt is triggered by the firmware after updating 1487 * boot_stage register and image_response register 1488 */ 1489 if (intr_hw & BTINTEL_PCIE_MSIX_HW_INT_CAUSES_GP0) 1490 btintel_pcie_msix_gp0_handler(data); 1491 1492 /* 1493 * Before sending the interrupt the HW disables it to prevent a nested 1494 * interrupt. This is done by writing 1 to the corresponding bit in 1495 * the mask register. After handling the interrupt, it should be 1496 * re-enabled by clearing this bit. This register is defined as write 1 1497 * clear (W1C) register, meaning that it's cleared by writing 1 1498 * to the bit. 1499 */ 1500 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_MSIX_AUTOMASK_ST, 1501 BIT(entry->entry)); 1502 1503 return IRQ_HANDLED; 1504 } 1505 1506 /* This function requests the irq for MSI-X and registers the handlers per irq. 1507 * Currently, it requests only 1 irq for all interrupt causes. 1508 */ 1509 static int btintel_pcie_setup_irq(struct btintel_pcie_data *data) 1510 { 1511 int err; 1512 int num_irqs, i; 1513 1514 for (i = 0; i < BTINTEL_PCIE_MSIX_VEC_MAX; i++) 1515 data->msix_entries[i].entry = i; 1516 1517 num_irqs = pci_alloc_irq_vectors(data->pdev, BTINTEL_PCIE_MSIX_VEC_MIN, 1518 BTINTEL_PCIE_MSIX_VEC_MAX, PCI_IRQ_MSIX); 1519 if (num_irqs < 0) 1520 return num_irqs; 1521 1522 data->alloc_vecs = num_irqs; 1523 data->msix_enabled = 1; 1524 data->def_irq = 0; 1525 1526 /* setup irq handler */ 1527 for (i = 0; i < data->alloc_vecs; i++) { 1528 struct msix_entry *msix_entry; 1529 1530 msix_entry = &data->msix_entries[i]; 1531 msix_entry->vector = pci_irq_vector(data->pdev, i); 1532 1533 err = devm_request_threaded_irq(&data->pdev->dev, 1534 msix_entry->vector, 1535 NULL, 1536 btintel_pcie_irq_msix_handler, 1537 IRQF_ONESHOT | IRQF_SHARED, 1538 KBUILD_MODNAME, 1539 msix_entry); 1540 if (err) { 1541 pci_free_irq_vectors(data->pdev); 1542 data->alloc_vecs = 0; 1543 return err; 1544 } 1545 } 1546 return 0; 1547 } 1548 1549 struct btintel_pcie_causes_list { 1550 u32 cause; 1551 u32 mask_reg; 1552 u8 cause_num; 1553 }; 1554 1555 static struct btintel_pcie_causes_list causes_list[] = { 1556 { BTINTEL_PCIE_MSIX_FH_INT_CAUSES_0, BTINTEL_PCIE_CSR_MSIX_FH_INT_MASK, 0x00 }, 1557 { BTINTEL_PCIE_MSIX_FH_INT_CAUSES_1, BTINTEL_PCIE_CSR_MSIX_FH_INT_MASK, 0x01 }, 1558 { BTINTEL_PCIE_MSIX_HW_INT_CAUSES_GP0, BTINTEL_PCIE_CSR_MSIX_HW_INT_MASK, 0x20 }, 1559 { BTINTEL_PCIE_MSIX_HW_INT_CAUSES_HWEXP, BTINTEL_PCIE_CSR_MSIX_HW_INT_MASK, 0x23 }, 1560 }; 1561 1562 /* This function configures the interrupt masks for both HW_INT_CAUSES and 1563 * FH_INT_CAUSES which are meaningful to us. 1564 * 1565 * After resetting BT function via PCIE FLR or FUNC_CTRL reset, the driver 1566 * need to call this function again to configure since the masks 1567 * are reset to 0xFFFFFFFF after reset. 1568 */ 1569 static void btintel_pcie_config_msix(struct btintel_pcie_data *data) 1570 { 1571 int i; 1572 int val = data->def_irq | BTINTEL_PCIE_MSIX_NON_AUTO_CLEAR_CAUSE; 1573 1574 /* Set Non Auto Clear Cause */ 1575 for (i = 0; i < ARRAY_SIZE(causes_list); i++) { 1576 btintel_pcie_wr_reg8(data, 1577 BTINTEL_PCIE_CSR_MSIX_IVAR(causes_list[i].cause_num), 1578 val); 1579 btintel_pcie_clr_reg_bits(data, 1580 causes_list[i].mask_reg, 1581 causes_list[i].cause); 1582 } 1583 1584 /* Save the initial interrupt mask */ 1585 data->fh_init_mask = ~btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_MSIX_FH_INT_MASK); 1586 data->hw_init_mask = ~btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_MSIX_HW_INT_MASK); 1587 } 1588 1589 static int btintel_pcie_config_pcie(struct pci_dev *pdev, 1590 struct btintel_pcie_data *data) 1591 { 1592 int err; 1593 1594 err = pcim_enable_device(pdev); 1595 if (err) 1596 return err; 1597 1598 pci_set_master(pdev); 1599 1600 err = dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(64)); 1601 if (err) { 1602 err = dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(32)); 1603 if (err) 1604 return err; 1605 } 1606 1607 data->base_addr = pcim_iomap_region(pdev, 0, KBUILD_MODNAME); 1608 if (IS_ERR(data->base_addr)) 1609 return PTR_ERR(data->base_addr); 1610 1611 err = btintel_pcie_setup_irq(data); 1612 if (err) 1613 return err; 1614 1615 /* Configure MSI-X with causes list */ 1616 btintel_pcie_config_msix(data); 1617 1618 return 0; 1619 } 1620 1621 static void btintel_pcie_init_ci(struct btintel_pcie_data *data, 1622 struct ctx_info *ci) 1623 { 1624 ci->version = 0x1; 1625 ci->size = sizeof(*ci); 1626 ci->config = 0x0000; 1627 ci->addr_cr_hia = data->ia.cr_hia_p_addr; 1628 ci->addr_tr_tia = data->ia.tr_tia_p_addr; 1629 ci->addr_cr_tia = data->ia.cr_tia_p_addr; 1630 ci->addr_tr_hia = data->ia.tr_hia_p_addr; 1631 ci->num_cr_ia = BTINTEL_PCIE_NUM_QUEUES; 1632 ci->num_tr_ia = BTINTEL_PCIE_NUM_QUEUES; 1633 ci->addr_urbdq0 = data->txq.urbd0s_p_addr; 1634 ci->addr_tfdq = data->txq.tfds_p_addr; 1635 ci->num_tfdq = data->txq.count; 1636 ci->num_urbdq0 = data->txq.count; 1637 ci->tfdq_db_vec = BTINTEL_PCIE_TXQ_NUM; 1638 ci->urbdq0_db_vec = BTINTEL_PCIE_TXQ_NUM; 1639 ci->rbd_size = BTINTEL_PCIE_RBD_SIZE_4K; 1640 ci->addr_frbdq = data->rxq.frbds_p_addr; 1641 ci->num_frbdq = data->rxq.count; 1642 ci->frbdq_db_vec = BTINTEL_PCIE_RXQ_NUM; 1643 ci->addr_urbdq1 = data->rxq.urbd1s_p_addr; 1644 ci->num_urbdq1 = data->rxq.count; 1645 ci->urbdq_db_vec = BTINTEL_PCIE_RXQ_NUM; 1646 1647 ci->dbg_output_mode = 0x01; 1648 ci->dbgc_addr = data->dbgc.frag_p_addr; 1649 ci->dbgc_size = data->dbgc.frag_size; 1650 ci->dbg_preset = 0x00; 1651 } 1652 1653 static void btintel_pcie_free_txq_bufs(struct btintel_pcie_data *data, 1654 struct txq *txq) 1655 { 1656 /* Free data buffers first */ 1657 dma_free_coherent(&data->pdev->dev, txq->count * BTINTEL_PCIE_BUFFER_SIZE, 1658 txq->buf_v_addr, txq->buf_p_addr); 1659 kfree(txq->bufs); 1660 } 1661 1662 static int btintel_pcie_setup_txq_bufs(struct btintel_pcie_data *data, 1663 struct txq *txq) 1664 { 1665 int i; 1666 struct data_buf *buf; 1667 1668 /* Allocate the same number of buffers as the descriptor */ 1669 txq->bufs = kmalloc_array(txq->count, sizeof(*buf), GFP_KERNEL); 1670 if (!txq->bufs) 1671 return -ENOMEM; 1672 1673 /* Allocate full chunk of data buffer for DMA first and do indexing and 1674 * initialization next, so it can be freed easily 1675 */ 1676 txq->buf_v_addr = dma_alloc_coherent(&data->pdev->dev, 1677 txq->count * BTINTEL_PCIE_BUFFER_SIZE, 1678 &txq->buf_p_addr, 1679 GFP_KERNEL | __GFP_NOWARN); 1680 if (!txq->buf_v_addr) { 1681 kfree(txq->bufs); 1682 return -ENOMEM; 1683 } 1684 1685 /* Setup the allocated DMA buffer to bufs. Each data_buf should 1686 * have virtual address and physical address 1687 */ 1688 for (i = 0; i < txq->count; i++) { 1689 buf = &txq->bufs[i]; 1690 buf->data_p_addr = txq->buf_p_addr + (i * BTINTEL_PCIE_BUFFER_SIZE); 1691 buf->data = txq->buf_v_addr + (i * BTINTEL_PCIE_BUFFER_SIZE); 1692 } 1693 1694 return 0; 1695 } 1696 1697 static void btintel_pcie_free_rxq_bufs(struct btintel_pcie_data *data, 1698 struct rxq *rxq) 1699 { 1700 /* Free data buffers first */ 1701 dma_free_coherent(&data->pdev->dev, rxq->count * BTINTEL_PCIE_BUFFER_SIZE, 1702 rxq->buf_v_addr, rxq->buf_p_addr); 1703 kfree(rxq->bufs); 1704 } 1705 1706 static int btintel_pcie_setup_rxq_bufs(struct btintel_pcie_data *data, 1707 struct rxq *rxq) 1708 { 1709 int i; 1710 struct data_buf *buf; 1711 1712 /* Allocate the same number of buffers as the descriptor */ 1713 rxq->bufs = kmalloc_array(rxq->count, sizeof(*buf), GFP_KERNEL); 1714 if (!rxq->bufs) 1715 return -ENOMEM; 1716 1717 /* Allocate full chunk of data buffer for DMA first and do indexing and 1718 * initialization next, so it can be freed easily 1719 */ 1720 rxq->buf_v_addr = dma_alloc_coherent(&data->pdev->dev, 1721 rxq->count * BTINTEL_PCIE_BUFFER_SIZE, 1722 &rxq->buf_p_addr, 1723 GFP_KERNEL | __GFP_NOWARN); 1724 if (!rxq->buf_v_addr) { 1725 kfree(rxq->bufs); 1726 return -ENOMEM; 1727 } 1728 1729 /* Setup the allocated DMA buffer to bufs. Each data_buf should 1730 * have virtual address and physical address 1731 */ 1732 for (i = 0; i < rxq->count; i++) { 1733 buf = &rxq->bufs[i]; 1734 buf->data_p_addr = rxq->buf_p_addr + (i * BTINTEL_PCIE_BUFFER_SIZE); 1735 buf->data = rxq->buf_v_addr + (i * BTINTEL_PCIE_BUFFER_SIZE); 1736 } 1737 1738 return 0; 1739 } 1740 1741 static void btintel_pcie_setup_ia(struct btintel_pcie_data *data, 1742 dma_addr_t p_addr, void *v_addr, 1743 struct ia *ia) 1744 { 1745 /* TR Head Index Array */ 1746 ia->tr_hia_p_addr = p_addr; 1747 ia->tr_hia = v_addr; 1748 1749 /* TR Tail Index Array */ 1750 ia->tr_tia_p_addr = p_addr + sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES; 1751 ia->tr_tia = v_addr + sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES; 1752 1753 /* CR Head index Array */ 1754 ia->cr_hia_p_addr = p_addr + (sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES * 2); 1755 ia->cr_hia = v_addr + (sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES * 2); 1756 1757 /* CR Tail Index Array */ 1758 ia->cr_tia_p_addr = p_addr + (sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES * 3); 1759 ia->cr_tia = v_addr + (sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES * 3); 1760 } 1761 1762 static void btintel_pcie_free(struct btintel_pcie_data *data) 1763 { 1764 btintel_pcie_free_rxq_bufs(data, &data->rxq); 1765 btintel_pcie_free_txq_bufs(data, &data->txq); 1766 1767 dma_pool_free(data->dma_pool, data->dma_v_addr, data->dma_p_addr); 1768 dma_pool_destroy(data->dma_pool); 1769 } 1770 1771 /* Allocate tx and rx queues, any related data structures and buffers. 1772 */ 1773 static int btintel_pcie_alloc(struct btintel_pcie_data *data) 1774 { 1775 int err = 0; 1776 size_t total; 1777 dma_addr_t p_addr; 1778 void *v_addr; 1779 1780 /* Allocate the chunk of DMA memory for descriptors, index array, and 1781 * context information, instead of allocating individually. 1782 * The DMA memory for data buffer is allocated while setting up the 1783 * each queue. 1784 * 1785 * Total size is sum of the following 1786 * + size of TFD * Number of descriptors in queue 1787 * + size of URBD0 * Number of descriptors in queue 1788 * + size of FRBD * Number of descriptors in queue 1789 * + size of URBD1 * Number of descriptors in queue 1790 * + size of index * Number of queues(2) * type of index array(4) 1791 * + size of context information 1792 */ 1793 total = (sizeof(struct tfd) + sizeof(struct urbd0)) * BTINTEL_PCIE_TX_DESCS_COUNT; 1794 total += (sizeof(struct frbd) + sizeof(struct urbd1)) * BTINTEL_PCIE_RX_DESCS_COUNT; 1795 1796 /* Add the sum of size of index array and size of ci struct */ 1797 total += (sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES * 4) + sizeof(struct ctx_info); 1798 1799 /* Allocate DMA Pool */ 1800 data->dma_pool = dma_pool_create(KBUILD_MODNAME, &data->pdev->dev, 1801 total, BTINTEL_PCIE_DMA_POOL_ALIGNMENT, 0); 1802 if (!data->dma_pool) { 1803 err = -ENOMEM; 1804 goto exit_error; 1805 } 1806 1807 v_addr = dma_pool_zalloc(data->dma_pool, GFP_KERNEL | __GFP_NOWARN, 1808 &p_addr); 1809 if (!v_addr) { 1810 dma_pool_destroy(data->dma_pool); 1811 err = -ENOMEM; 1812 goto exit_error; 1813 } 1814 1815 data->dma_p_addr = p_addr; 1816 data->dma_v_addr = v_addr; 1817 1818 /* Setup descriptor count */ 1819 data->txq.count = BTINTEL_PCIE_TX_DESCS_COUNT; 1820 data->rxq.count = BTINTEL_PCIE_RX_DESCS_COUNT; 1821 1822 /* Setup tfds */ 1823 data->txq.tfds_p_addr = p_addr; 1824 data->txq.tfds = v_addr; 1825 1826 p_addr += (sizeof(struct tfd) * BTINTEL_PCIE_TX_DESCS_COUNT); 1827 v_addr += (sizeof(struct tfd) * BTINTEL_PCIE_TX_DESCS_COUNT); 1828 1829 /* Setup urbd0 */ 1830 data->txq.urbd0s_p_addr = p_addr; 1831 data->txq.urbd0s = v_addr; 1832 1833 p_addr += (sizeof(struct urbd0) * BTINTEL_PCIE_TX_DESCS_COUNT); 1834 v_addr += (sizeof(struct urbd0) * BTINTEL_PCIE_TX_DESCS_COUNT); 1835 1836 /* Setup FRBD*/ 1837 data->rxq.frbds_p_addr = p_addr; 1838 data->rxq.frbds = v_addr; 1839 1840 p_addr += (sizeof(struct frbd) * BTINTEL_PCIE_RX_DESCS_COUNT); 1841 v_addr += (sizeof(struct frbd) * BTINTEL_PCIE_RX_DESCS_COUNT); 1842 1843 /* Setup urbd1 */ 1844 data->rxq.urbd1s_p_addr = p_addr; 1845 data->rxq.urbd1s = v_addr; 1846 1847 p_addr += (sizeof(struct urbd1) * BTINTEL_PCIE_RX_DESCS_COUNT); 1848 v_addr += (sizeof(struct urbd1) * BTINTEL_PCIE_RX_DESCS_COUNT); 1849 1850 /* Setup data buffers for txq */ 1851 err = btintel_pcie_setup_txq_bufs(data, &data->txq); 1852 if (err) 1853 goto exit_error_pool; 1854 1855 /* Setup data buffers for rxq */ 1856 err = btintel_pcie_setup_rxq_bufs(data, &data->rxq); 1857 if (err) 1858 goto exit_error_txq; 1859 1860 /* Setup Index Array */ 1861 btintel_pcie_setup_ia(data, p_addr, v_addr, &data->ia); 1862 1863 /* Setup data buffers for dbgc */ 1864 err = btintel_pcie_setup_dbgc(data); 1865 if (err) 1866 goto exit_error_txq; 1867 1868 /* Setup Context Information */ 1869 p_addr += sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES * 4; 1870 v_addr += sizeof(u16) * BTINTEL_PCIE_NUM_QUEUES * 4; 1871 1872 data->ci = v_addr; 1873 data->ci_p_addr = p_addr; 1874 1875 /* Initialize the CI */ 1876 btintel_pcie_init_ci(data, data->ci); 1877 1878 return 0; 1879 1880 exit_error_txq: 1881 btintel_pcie_free_txq_bufs(data, &data->txq); 1882 exit_error_pool: 1883 dma_pool_free(data->dma_pool, data->dma_v_addr, data->dma_p_addr); 1884 dma_pool_destroy(data->dma_pool); 1885 exit_error: 1886 return err; 1887 } 1888 1889 static int btintel_pcie_open(struct hci_dev *hdev) 1890 { 1891 bt_dev_dbg(hdev, ""); 1892 1893 return 0; 1894 } 1895 1896 static int btintel_pcie_close(struct hci_dev *hdev) 1897 { 1898 bt_dev_dbg(hdev, ""); 1899 1900 return 0; 1901 } 1902 1903 static int btintel_pcie_inject_cmd_complete(struct hci_dev *hdev, __u16 opcode) 1904 { 1905 struct sk_buff *skb; 1906 struct hci_event_hdr *hdr; 1907 struct hci_ev_cmd_complete *evt; 1908 1909 skb = bt_skb_alloc(sizeof(*hdr) + sizeof(*evt) + 1, GFP_KERNEL); 1910 if (!skb) 1911 return -ENOMEM; 1912 1913 hdr = (struct hci_event_hdr *)skb_put(skb, sizeof(*hdr)); 1914 hdr->evt = HCI_EV_CMD_COMPLETE; 1915 hdr->plen = sizeof(*evt) + 1; 1916 1917 evt = (struct hci_ev_cmd_complete *)skb_put(skb, sizeof(*evt)); 1918 evt->ncmd = 0x01; 1919 evt->opcode = cpu_to_le16(opcode); 1920 1921 *(u8 *)skb_put(skb, 1) = 0x00; 1922 1923 hci_skb_pkt_type(skb) = HCI_EVENT_PKT; 1924 1925 return hci_recv_frame(hdev, skb); 1926 } 1927 1928 static int btintel_pcie_send_frame(struct hci_dev *hdev, 1929 struct sk_buff *skb) 1930 { 1931 struct btintel_pcie_data *data = hci_get_drvdata(hdev); 1932 struct hci_command_hdr *cmd; 1933 __u16 opcode = ~0; 1934 int ret; 1935 u32 type; 1936 1937 if (test_bit(BTINTEL_PCIE_CORE_HALTED, &data->flags)) 1938 return -ENODEV; 1939 1940 /* Due to the fw limitation, the type header of the packet should be 1941 * 4 bytes unlike 1 byte for UART. In UART, the firmware can read 1942 * the first byte to get the packet type and redirect the rest of data 1943 * packet to the right handler. 1944 * 1945 * But for PCIe, THF(Transfer Flow Handler) fetches the 4 bytes of data 1946 * from DMA memory and by the time it reads the first 4 bytes, it has 1947 * already consumed some part of packet. Thus the packet type indicator 1948 * for iBT PCIe is 4 bytes. 1949 * 1950 * Luckily, when HCI core creates the skb, it allocates 8 bytes of 1951 * head room for profile and driver use, and before sending the data 1952 * to the device, append the iBT PCIe packet type in the front. 1953 */ 1954 switch (hci_skb_pkt_type(skb)) { 1955 case HCI_COMMAND_PKT: 1956 type = BTINTEL_PCIE_HCI_CMD_PKT; 1957 cmd = (void *)skb->data; 1958 opcode = le16_to_cpu(cmd->opcode); 1959 if (btintel_test_flag(hdev, INTEL_BOOTLOADER)) { 1960 struct hci_command_hdr *cmd = (void *)skb->data; 1961 __u16 opcode = le16_to_cpu(cmd->opcode); 1962 1963 /* When the BTINTEL_HCI_OP_RESET command is issued to 1964 * boot into the operational firmware, it will actually 1965 * not send a command complete event. To keep the flow 1966 * control working inject that event here. 1967 */ 1968 if (opcode == BTINTEL_HCI_OP_RESET) 1969 btintel_pcie_inject_cmd_complete(hdev, opcode); 1970 } 1971 1972 hdev->stat.cmd_tx++; 1973 break; 1974 case HCI_ACLDATA_PKT: 1975 type = BTINTEL_PCIE_HCI_ACL_PKT; 1976 hdev->stat.acl_tx++; 1977 break; 1978 case HCI_SCODATA_PKT: 1979 type = BTINTEL_PCIE_HCI_SCO_PKT; 1980 hdev->stat.sco_tx++; 1981 break; 1982 case HCI_ISODATA_PKT: 1983 type = BTINTEL_PCIE_HCI_ISO_PKT; 1984 break; 1985 default: 1986 bt_dev_err(hdev, "Unknown HCI packet type"); 1987 return -EILSEQ; 1988 } 1989 1990 ret = btintel_pcie_send_sync(data, skb, type, opcode); 1991 if (ret) { 1992 hdev->stat.err_tx++; 1993 bt_dev_err(hdev, "Failed to send frame (%d)", ret); 1994 goto exit_error; 1995 } 1996 1997 hdev->stat.byte_tx += skb->len; 1998 kfree_skb(skb); 1999 2000 exit_error: 2001 return ret; 2002 } 2003 2004 static void btintel_pcie_release_hdev(struct btintel_pcie_data *data) 2005 { 2006 struct hci_dev *hdev; 2007 2008 hdev = data->hdev; 2009 hci_unregister_dev(hdev); 2010 hci_free_dev(hdev); 2011 data->hdev = NULL; 2012 } 2013 2014 static void btintel_pcie_disable_interrupts(struct btintel_pcie_data *data) 2015 { 2016 spin_lock(&data->irq_lock); 2017 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_MSIX_FH_INT_MASK, data->fh_init_mask); 2018 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_MSIX_HW_INT_MASK, data->hw_init_mask); 2019 spin_unlock(&data->irq_lock); 2020 } 2021 2022 static void btintel_pcie_enable_interrupts(struct btintel_pcie_data *data) 2023 { 2024 spin_lock(&data->irq_lock); 2025 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_MSIX_FH_INT_MASK, ~data->fh_init_mask); 2026 btintel_pcie_wr_reg32(data, BTINTEL_PCIE_CSR_MSIX_HW_INT_MASK, ~data->hw_init_mask); 2027 spin_unlock(&data->irq_lock); 2028 } 2029 2030 static void btintel_pcie_synchronize_irqs(struct btintel_pcie_data *data) 2031 { 2032 for (int i = 0; i < data->alloc_vecs; i++) 2033 synchronize_irq(data->msix_entries[i].vector); 2034 } 2035 2036 static int btintel_pcie_setup_internal(struct hci_dev *hdev) 2037 { 2038 struct btintel_pcie_data *data = hci_get_drvdata(hdev); 2039 const u8 param[1] = { 0xFF }; 2040 struct intel_version_tlv ver_tlv; 2041 struct sk_buff *skb; 2042 int err; 2043 2044 BT_DBG("%s", hdev->name); 2045 2046 skb = __hci_cmd_sync(hdev, 0xfc05, 1, param, HCI_CMD_TIMEOUT); 2047 if (IS_ERR(skb)) { 2048 bt_dev_err(hdev, "Reading Intel version command failed (%ld)", 2049 PTR_ERR(skb)); 2050 return PTR_ERR(skb); 2051 } 2052 2053 /* Check the status */ 2054 if (skb->data[0]) { 2055 bt_dev_err(hdev, "Intel Read Version command failed (%02x)", 2056 skb->data[0]); 2057 err = -EIO; 2058 goto exit_error; 2059 } 2060 2061 /* Apply the common HCI quirks for Intel device */ 2062 hci_set_quirk(hdev, HCI_QUIRK_STRICT_DUPLICATE_FILTER); 2063 hci_set_quirk(hdev, HCI_QUIRK_SIMULTANEOUS_DISCOVERY); 2064 hci_set_quirk(hdev, HCI_QUIRK_NON_PERSISTENT_DIAG); 2065 2066 /* Set up the quality report callback for Intel devices */ 2067 hdev->set_quality_report = btintel_set_quality_report; 2068 2069 memset(&ver_tlv, 0, sizeof(ver_tlv)); 2070 /* For TLV type device, parse the tlv data */ 2071 err = btintel_parse_version_tlv(hdev, &ver_tlv, skb); 2072 if (err) { 2073 bt_dev_err(hdev, "Failed to parse TLV version information"); 2074 goto exit_error; 2075 } 2076 2077 switch (INTEL_HW_PLATFORM(ver_tlv.cnvi_bt)) { 2078 case 0x37: 2079 break; 2080 default: 2081 bt_dev_err(hdev, "Unsupported Intel hardware platform (0x%2x)", 2082 INTEL_HW_PLATFORM(ver_tlv.cnvi_bt)); 2083 err = -EINVAL; 2084 goto exit_error; 2085 } 2086 2087 /* Check for supported iBT hardware variants of this firmware 2088 * loading method. 2089 * 2090 * This check has been put in place to ensure correct forward 2091 * compatibility options when newer hardware variants come 2092 * along. 2093 */ 2094 switch (INTEL_HW_VARIANT(ver_tlv.cnvi_bt)) { 2095 case 0x1e: /* BzrI */ 2096 case 0x1f: /* ScP */ 2097 case 0x22: /* BzrIW */ 2098 /* Display version information of TLV type */ 2099 btintel_version_info_tlv(hdev, &ver_tlv); 2100 2101 /* Apply the device specific HCI quirks for TLV based devices 2102 * 2103 * All TLV based devices support WBS 2104 */ 2105 hci_set_quirk(hdev, HCI_QUIRK_WIDEBAND_SPEECH_SUPPORTED); 2106 2107 /* Setup MSFT Extension support */ 2108 btintel_set_msft_opcode(hdev, 2109 INTEL_HW_VARIANT(ver_tlv.cnvi_bt)); 2110 2111 err = btintel_bootloader_setup_tlv(hdev, &ver_tlv); 2112 if (err) 2113 goto exit_error; 2114 break; 2115 default: 2116 bt_dev_err(hdev, "Unsupported Intel hw variant (%u)", 2117 INTEL_HW_VARIANT(ver_tlv.cnvi_bt)); 2118 err = -EINVAL; 2119 goto exit_error; 2120 break; 2121 } 2122 2123 data->dmp_hdr.cnvi_top = ver_tlv.cnvi_top; 2124 data->dmp_hdr.cnvr_top = ver_tlv.cnvr_top; 2125 data->dmp_hdr.fw_timestamp = ver_tlv.timestamp; 2126 data->dmp_hdr.fw_build_type = ver_tlv.build_type; 2127 data->dmp_hdr.fw_build_num = ver_tlv.build_num; 2128 data->dmp_hdr.cnvi_bt = ver_tlv.cnvi_bt; 2129 2130 if (ver_tlv.img_type == 0x02 || ver_tlv.img_type == 0x03) 2131 data->dmp_hdr.fw_git_sha1 = ver_tlv.git_sha1; 2132 2133 btintel_print_fseq_info(hdev); 2134 exit_error: 2135 kfree_skb(skb); 2136 2137 return err; 2138 } 2139 2140 static int btintel_pcie_setup(struct hci_dev *hdev) 2141 { 2142 int err, fw_dl_retry = 0; 2143 struct btintel_pcie_data *data = hci_get_drvdata(hdev); 2144 2145 while ((err = btintel_pcie_setup_internal(hdev)) && fw_dl_retry++ < 1) { 2146 bt_dev_err(hdev, "Firmware download retry count: %d", 2147 fw_dl_retry); 2148 btintel_pcie_dump_debug_registers(hdev); 2149 btintel_pcie_disable_interrupts(data); 2150 btintel_pcie_synchronize_irqs(data); 2151 err = btintel_pcie_reset_bt(data); 2152 if (err) { 2153 bt_dev_err(hdev, "Failed to do shr reset: %d", err); 2154 break; 2155 } 2156 usleep_range(10000, 12000); 2157 btintel_pcie_reset_ia(data); 2158 btintel_pcie_enable_interrupts(data); 2159 btintel_pcie_config_msix(data); 2160 err = btintel_pcie_enable_bt(data); 2161 if (err) { 2162 bt_dev_err(hdev, "Failed to enable hardware: %d", err); 2163 break; 2164 } 2165 btintel_pcie_start_rx(data); 2166 } 2167 2168 if (!err) 2169 set_bit(BTINTEL_PCIE_SETUP_DONE, &data->flags); 2170 return err; 2171 } 2172 2173 static struct btintel_pcie_dev_recovery * 2174 btintel_pcie_get_recovery(struct pci_dev *pdev, struct device *dev) 2175 { 2176 struct btintel_pcie_dev_recovery *tmp, *data = NULL; 2177 const char *name = pci_name(pdev); 2178 const size_t name_len = strlen(name) + 1; 2179 struct hci_dev *hdev = to_hci_dev(dev); 2180 2181 spin_lock(&btintel_pcie_recovery_lock); 2182 list_for_each_entry(tmp, &btintel_pcie_recovery_list, list) { 2183 if (strcmp(tmp->name, name)) 2184 continue; 2185 data = tmp; 2186 break; 2187 } 2188 spin_unlock(&btintel_pcie_recovery_lock); 2189 2190 if (data) { 2191 bt_dev_dbg(hdev, "Found restart data for BDF: %s", data->name); 2192 return data; 2193 } 2194 2195 data = kzalloc(struct_size(data, name, name_len), GFP_ATOMIC); 2196 if (!data) 2197 return NULL; 2198 2199 strscpy(data->name, name, name_len); 2200 spin_lock(&btintel_pcie_recovery_lock); 2201 list_add_tail(&data->list, &btintel_pcie_recovery_list); 2202 spin_unlock(&btintel_pcie_recovery_lock); 2203 2204 return data; 2205 } 2206 2207 static void btintel_pcie_free_restart_list(void) 2208 { 2209 struct btintel_pcie_dev_recovery *tmp; 2210 2211 while ((tmp = list_first_entry_or_null(&btintel_pcie_recovery_list, 2212 typeof(*tmp), list))) { 2213 list_del(&tmp->list); 2214 kfree(tmp); 2215 } 2216 } 2217 2218 static void btintel_pcie_inc_recovery_count(struct pci_dev *pdev, 2219 struct device *dev) 2220 { 2221 struct btintel_pcie_dev_recovery *data; 2222 time64_t retry_window; 2223 2224 data = btintel_pcie_get_recovery(pdev, dev); 2225 if (!data) 2226 return; 2227 2228 retry_window = ktime_get_boottime_seconds() - data->last_error; 2229 if (data->count == 0) { 2230 data->last_error = ktime_get_boottime_seconds(); 2231 data->count++; 2232 } else if (retry_window < BTINTEL_PCIE_RESET_WINDOW_SECS && 2233 data->count <= BTINTEL_PCIE_FLR_MAX_RETRY) { 2234 data->count++; 2235 } else if (retry_window > BTINTEL_PCIE_RESET_WINDOW_SECS) { 2236 data->last_error = 0; 2237 data->count = 0; 2238 } 2239 } 2240 2241 static int btintel_pcie_setup_hdev(struct btintel_pcie_data *data); 2242 2243 static void btintel_pcie_removal_work(struct work_struct *wk) 2244 { 2245 struct btintel_pcie_removal *removal = 2246 container_of(wk, struct btintel_pcie_removal, work); 2247 struct pci_dev *pdev = removal->pdev; 2248 struct btintel_pcie_data *data; 2249 int err; 2250 2251 pci_lock_rescan_remove(); 2252 2253 if (!pdev->bus) 2254 goto error; 2255 2256 data = pci_get_drvdata(pdev); 2257 2258 btintel_pcie_disable_interrupts(data); 2259 btintel_pcie_synchronize_irqs(data); 2260 2261 flush_work(&data->rx_work); 2262 2263 bt_dev_dbg(data->hdev, "Release bluetooth interface"); 2264 btintel_pcie_release_hdev(data); 2265 2266 err = pci_reset_function(pdev); 2267 if (err) { 2268 BT_ERR("Failed resetting the pcie device (%d)", err); 2269 goto error; 2270 } 2271 2272 btintel_pcie_enable_interrupts(data); 2273 btintel_pcie_config_msix(data); 2274 2275 err = btintel_pcie_enable_bt(data); 2276 if (err) { 2277 BT_ERR("Failed to enable bluetooth hardware after reset (%d)", 2278 err); 2279 goto error; 2280 } 2281 2282 btintel_pcie_reset_ia(data); 2283 btintel_pcie_start_rx(data); 2284 data->flags = 0; 2285 2286 err = btintel_pcie_setup_hdev(data); 2287 if (err) { 2288 BT_ERR("Failed registering hdev (%d)", err); 2289 goto error; 2290 } 2291 error: 2292 pci_dev_put(pdev); 2293 pci_unlock_rescan_remove(); 2294 kfree(removal); 2295 } 2296 2297 static void btintel_pcie_reset(struct hci_dev *hdev) 2298 { 2299 struct btintel_pcie_removal *removal; 2300 struct btintel_pcie_data *data; 2301 2302 data = hci_get_drvdata(hdev); 2303 2304 if (!test_bit(BTINTEL_PCIE_SETUP_DONE, &data->flags)) 2305 return; 2306 2307 if (test_and_set_bit(BTINTEL_PCIE_RECOVERY_IN_PROGRESS, &data->flags)) 2308 return; 2309 2310 removal = kzalloc(sizeof(*removal), GFP_ATOMIC); 2311 if (!removal) 2312 return; 2313 2314 removal->pdev = data->pdev; 2315 INIT_WORK(&removal->work, btintel_pcie_removal_work); 2316 pci_dev_get(removal->pdev); 2317 schedule_work(&removal->work); 2318 } 2319 2320 static void btintel_pcie_hw_error(struct hci_dev *hdev, u8 code) 2321 { 2322 struct btintel_pcie_dev_recovery *data; 2323 struct btintel_pcie_data *dev_data = hci_get_drvdata(hdev); 2324 struct pci_dev *pdev = dev_data->pdev; 2325 time64_t retry_window; 2326 2327 if (code == 0x13) { 2328 bt_dev_err(hdev, "Encountered top exception"); 2329 return; 2330 } 2331 2332 data = btintel_pcie_get_recovery(pdev, &hdev->dev); 2333 if (!data) 2334 return; 2335 2336 retry_window = ktime_get_boottime_seconds() - data->last_error; 2337 2338 if (retry_window < BTINTEL_PCIE_RESET_WINDOW_SECS && 2339 data->count >= BTINTEL_PCIE_FLR_MAX_RETRY) { 2340 bt_dev_err(hdev, "Exhausted maximum: %d recovery attempts: %d", 2341 BTINTEL_PCIE_FLR_MAX_RETRY, data->count); 2342 bt_dev_dbg(hdev, "Boot time: %lld seconds", 2343 ktime_get_boottime_seconds()); 2344 bt_dev_dbg(hdev, "last error at: %lld seconds", 2345 data->last_error); 2346 return; 2347 } 2348 btintel_pcie_inc_recovery_count(pdev, &hdev->dev); 2349 btintel_pcie_reset(hdev); 2350 } 2351 2352 static bool btintel_pcie_wakeup(struct hci_dev *hdev) 2353 { 2354 struct btintel_pcie_data *data = hci_get_drvdata(hdev); 2355 2356 return device_may_wakeup(&data->pdev->dev); 2357 } 2358 2359 static const struct { 2360 u16 opcode; 2361 const char *desc; 2362 } btintel_pcie_hci_drv_supported_commands[] = { 2363 /* Common commands */ 2364 { HCI_DRV_OP_READ_INFO, "Read Info" }, 2365 }; 2366 2367 static int btintel_pcie_hci_drv_read_info(struct hci_dev *hdev, void *data, 2368 u16 data_len) 2369 { 2370 struct hci_drv_rp_read_info *rp; 2371 size_t rp_size; 2372 int err, i; 2373 u16 opcode, num_supported_commands = 2374 ARRAY_SIZE(btintel_pcie_hci_drv_supported_commands); 2375 2376 rp_size = sizeof(*rp) + num_supported_commands * 2; 2377 2378 rp = kmalloc(rp_size, GFP_KERNEL); 2379 if (!rp) 2380 return -ENOMEM; 2381 2382 strscpy_pad(rp->driver_name, KBUILD_MODNAME); 2383 2384 rp->num_supported_commands = cpu_to_le16(num_supported_commands); 2385 for (i = 0; i < num_supported_commands; i++) { 2386 opcode = btintel_pcie_hci_drv_supported_commands[i].opcode; 2387 bt_dev_dbg(hdev, 2388 "Supported HCI Drv command (0x%02x|0x%04x): %s", 2389 hci_opcode_ogf(opcode), 2390 hci_opcode_ocf(opcode), 2391 btintel_pcie_hci_drv_supported_commands[i].desc); 2392 rp->supported_commands[i] = cpu_to_le16(opcode); 2393 } 2394 2395 err = hci_drv_cmd_complete(hdev, HCI_DRV_OP_READ_INFO, 2396 HCI_DRV_STATUS_SUCCESS, 2397 rp, rp_size); 2398 2399 kfree(rp); 2400 return err; 2401 } 2402 2403 static const struct hci_drv_handler btintel_pcie_hci_drv_common_handlers[] = { 2404 { btintel_pcie_hci_drv_read_info, HCI_DRV_READ_INFO_SIZE }, 2405 }; 2406 2407 static const struct hci_drv_handler btintel_pcie_hci_drv_specific_handlers[] = {}; 2408 2409 static struct hci_drv btintel_pcie_hci_drv = { 2410 .common_handler_count = ARRAY_SIZE(btintel_pcie_hci_drv_common_handlers), 2411 .common_handlers = btintel_pcie_hci_drv_common_handlers, 2412 .specific_handler_count = ARRAY_SIZE(btintel_pcie_hci_drv_specific_handlers), 2413 .specific_handlers = btintel_pcie_hci_drv_specific_handlers, 2414 }; 2415 2416 static int btintel_pcie_setup_hdev(struct btintel_pcie_data *data) 2417 { 2418 int err; 2419 struct hci_dev *hdev; 2420 2421 hdev = hci_alloc_dev_priv(sizeof(struct btintel_data)); 2422 if (!hdev) 2423 return -ENOMEM; 2424 2425 hdev->bus = HCI_PCI; 2426 hci_set_drvdata(hdev, data); 2427 2428 data->hdev = hdev; 2429 SET_HCIDEV_DEV(hdev, &data->pdev->dev); 2430 2431 hdev->manufacturer = 2; 2432 hdev->open = btintel_pcie_open; 2433 hdev->close = btintel_pcie_close; 2434 hdev->send = btintel_pcie_send_frame; 2435 hdev->setup = btintel_pcie_setup; 2436 hdev->shutdown = btintel_shutdown_combined; 2437 hdev->hw_error = btintel_pcie_hw_error; 2438 hdev->set_diag = btintel_set_diag; 2439 hdev->set_bdaddr = btintel_set_bdaddr; 2440 hdev->reset = btintel_pcie_reset; 2441 hdev->wakeup = btintel_pcie_wakeup; 2442 hdev->hci_drv = &btintel_pcie_hci_drv; 2443 2444 err = hci_register_dev(hdev); 2445 if (err < 0) { 2446 BT_ERR("Failed to register to hdev (%d)", err); 2447 goto exit_error; 2448 } 2449 2450 data->dmp_hdr.driver_name = KBUILD_MODNAME; 2451 return 0; 2452 2453 exit_error: 2454 hci_free_dev(hdev); 2455 return err; 2456 } 2457 2458 static int btintel_pcie_probe(struct pci_dev *pdev, 2459 const struct pci_device_id *ent) 2460 { 2461 int err; 2462 struct btintel_pcie_data *data; 2463 2464 if (!pdev) 2465 return -ENODEV; 2466 2467 data = devm_kzalloc(&pdev->dev, sizeof(*data), GFP_KERNEL); 2468 if (!data) 2469 return -ENOMEM; 2470 2471 data->pdev = pdev; 2472 2473 spin_lock_init(&data->irq_lock); 2474 spin_lock_init(&data->hci_rx_lock); 2475 2476 init_waitqueue_head(&data->gp0_wait_q); 2477 data->gp0_received = false; 2478 2479 init_waitqueue_head(&data->tx_wait_q); 2480 data->tx_wait_done = false; 2481 2482 data->workqueue = alloc_ordered_workqueue(KBUILD_MODNAME, WQ_HIGHPRI); 2483 if (!data->workqueue) 2484 return -ENOMEM; 2485 2486 skb_queue_head_init(&data->rx_skb_q); 2487 INIT_WORK(&data->rx_work, btintel_pcie_rx_work); 2488 2489 data->boot_stage_cache = 0x00; 2490 data->img_resp_cache = 0x00; 2491 2492 err = btintel_pcie_config_pcie(pdev, data); 2493 if (err) 2494 goto exit_error; 2495 2496 pci_set_drvdata(pdev, data); 2497 2498 err = btintel_pcie_alloc(data); 2499 if (err) 2500 goto exit_error; 2501 2502 err = btintel_pcie_enable_bt(data); 2503 if (err) 2504 goto exit_error; 2505 2506 /* CNV information (CNVi and CNVr) is in CSR */ 2507 data->cnvi = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_HW_REV_REG); 2508 2509 data->cnvr = btintel_pcie_rd_reg32(data, BTINTEL_PCIE_CSR_RF_ID_REG); 2510 2511 err = btintel_pcie_start_rx(data); 2512 if (err) 2513 goto exit_error; 2514 2515 err = btintel_pcie_setup_hdev(data); 2516 if (err) 2517 goto exit_error; 2518 2519 bt_dev_dbg(data->hdev, "cnvi: 0x%8.8x cnvr: 0x%8.8x", data->cnvi, 2520 data->cnvr); 2521 return 0; 2522 2523 exit_error: 2524 /* reset device before exit */ 2525 btintel_pcie_reset_bt(data); 2526 2527 pci_clear_master(pdev); 2528 2529 pci_set_drvdata(pdev, NULL); 2530 2531 return err; 2532 } 2533 2534 static void btintel_pcie_remove(struct pci_dev *pdev) 2535 { 2536 struct btintel_pcie_data *data; 2537 2538 data = pci_get_drvdata(pdev); 2539 2540 btintel_pcie_disable_interrupts(data); 2541 2542 btintel_pcie_synchronize_irqs(data); 2543 2544 flush_work(&data->rx_work); 2545 2546 btintel_pcie_reset_bt(data); 2547 for (int i = 0; i < data->alloc_vecs; i++) { 2548 struct msix_entry *msix_entry; 2549 2550 msix_entry = &data->msix_entries[i]; 2551 free_irq(msix_entry->vector, msix_entry); 2552 } 2553 2554 pci_free_irq_vectors(pdev); 2555 2556 btintel_pcie_release_hdev(data); 2557 2558 destroy_workqueue(data->workqueue); 2559 2560 btintel_pcie_free(data); 2561 2562 pci_clear_master(pdev); 2563 2564 pci_set_drvdata(pdev, NULL); 2565 } 2566 2567 #ifdef CONFIG_DEV_COREDUMP 2568 static void btintel_pcie_coredump(struct device *dev) 2569 { 2570 struct pci_dev *pdev = to_pci_dev(dev); 2571 struct btintel_pcie_data *data = pci_get_drvdata(pdev); 2572 2573 if (test_and_set_bit(BTINTEL_PCIE_COREDUMP_INPROGRESS, &data->flags)) 2574 return; 2575 2576 data->dmp_hdr.trigger_reason = BTINTEL_PCIE_TRIGGER_REASON_USER_TRIGGER; 2577 queue_work(data->workqueue, &data->rx_work); 2578 } 2579 #endif 2580 2581 static int btintel_pcie_set_dxstate(struct btintel_pcie_data *data, u32 dxstate) 2582 { 2583 int retry = 0, status; 2584 u32 dx_intr_timeout_ms = 200; 2585 2586 do { 2587 data->gp0_received = false; 2588 2589 btintel_pcie_wr_sleep_cntrl(data, dxstate); 2590 2591 status = wait_event_timeout(data->gp0_wait_q, data->gp0_received, 2592 msecs_to_jiffies(dx_intr_timeout_ms)); 2593 2594 if (status) 2595 return 0; 2596 2597 bt_dev_warn(data->hdev, 2598 "Timeout (%u ms) on alive interrupt for D%d entry, retry count %d", 2599 dx_intr_timeout_ms, dxstate, retry); 2600 2601 /* clear gp0 cause */ 2602 btintel_pcie_clr_reg_bits(data, 2603 BTINTEL_PCIE_CSR_MSIX_HW_INT_CAUSES, 2604 BTINTEL_PCIE_MSIX_HW_INT_CAUSES_GP0); 2605 2606 /* A hardware bug may cause the alive interrupt to be missed. 2607 * Check if the controller reached the expected state and retry 2608 * the operation only if it hasn't. 2609 */ 2610 if (dxstate == BTINTEL_PCIE_STATE_D0) { 2611 if (btintel_pcie_in_d0(data)) 2612 return 0; 2613 } else { 2614 if (btintel_pcie_in_d3(data)) 2615 return 0; 2616 } 2617 2618 } while (++retry < BTINTEL_PCIE_DX_TRANSITION_MAX_RETRIES); 2619 2620 return -EBUSY; 2621 } 2622 2623 static int btintel_pcie_suspend_late(struct device *dev, pm_message_t mesg) 2624 { 2625 struct pci_dev *pdev = to_pci_dev(dev); 2626 struct btintel_pcie_data *data; 2627 ktime_t start; 2628 u32 dxstate; 2629 int err; 2630 2631 data = pci_get_drvdata(pdev); 2632 2633 dxstate = (mesg.event == PM_EVENT_SUSPEND ? 2634 BTINTEL_PCIE_STATE_D3_HOT : BTINTEL_PCIE_STATE_D3_COLD); 2635 2636 data->pm_sx_event = mesg.event; 2637 2638 start = ktime_get(); 2639 2640 /* Refer: 6.4.11.7 -> Platform power management */ 2641 err = btintel_pcie_set_dxstate(data, dxstate); 2642 2643 if (err) 2644 return err; 2645 2646 bt_dev_dbg(data->hdev, 2647 "device entered into d3 state from d0 in %lld us", 2648 ktime_to_us(ktime_get() - start)); 2649 return err; 2650 } 2651 2652 static int btintel_pcie_suspend(struct device *dev) 2653 { 2654 return btintel_pcie_suspend_late(dev, PMSG_SUSPEND); 2655 } 2656 2657 static int btintel_pcie_hibernate(struct device *dev) 2658 { 2659 return btintel_pcie_suspend_late(dev, PMSG_HIBERNATE); 2660 } 2661 2662 static int btintel_pcie_freeze(struct device *dev) 2663 { 2664 return btintel_pcie_suspend_late(dev, PMSG_FREEZE); 2665 } 2666 2667 static int btintel_pcie_resume(struct device *dev) 2668 { 2669 struct pci_dev *pdev = to_pci_dev(dev); 2670 struct btintel_pcie_data *data; 2671 ktime_t start; 2672 int err; 2673 2674 data = pci_get_drvdata(pdev); 2675 data->gp0_received = false; 2676 2677 start = ktime_get(); 2678 2679 /* When the system enters S4 (hibernate) mode, bluetooth device loses 2680 * power, which results in the erasure of its loaded firmware. 2681 * Consequently, function level reset (flr) is required on system 2682 * resume to bring the controller back into an operational state by 2683 * initiating a new firmware download. 2684 */ 2685 2686 if (data->pm_sx_event == PM_EVENT_FREEZE || 2687 data->pm_sx_event == PM_EVENT_HIBERNATE) { 2688 set_bit(BTINTEL_PCIE_CORE_HALTED, &data->flags); 2689 btintel_pcie_reset(data->hdev); 2690 return 0; 2691 } 2692 2693 /* Refer: 6.4.11.7 -> Platform power management */ 2694 err = btintel_pcie_set_dxstate(data, BTINTEL_PCIE_STATE_D0); 2695 2696 if (err == 0) { 2697 bt_dev_dbg(data->hdev, 2698 "device entered into d0 state from d3 in %lld us", 2699 ktime_to_us(ktime_get() - start)); 2700 return err; 2701 } 2702 2703 /* Trigger function level reset if the controller is in error 2704 * state during resume() to bring back the controller to 2705 * operational mode 2706 */ 2707 2708 data->boot_stage_cache = btintel_pcie_rd_reg32(data, 2709 BTINTEL_PCIE_CSR_BOOT_STAGE_REG); 2710 if (btintel_pcie_in_error(data) || 2711 btintel_pcie_in_device_halt(data)) { 2712 bt_dev_err(data->hdev, "Controller in error state for D0 entry"); 2713 if (!test_and_set_bit(BTINTEL_PCIE_COREDUMP_INPROGRESS, 2714 &data->flags)) { 2715 data->dmp_hdr.trigger_reason = 2716 BTINTEL_PCIE_TRIGGER_REASON_FW_ASSERT; 2717 queue_work(data->workqueue, &data->rx_work); 2718 } 2719 set_bit(BTINTEL_PCIE_CORE_HALTED, &data->flags); 2720 btintel_pcie_reset(data->hdev); 2721 } 2722 return err; 2723 } 2724 2725 static const struct dev_pm_ops btintel_pcie_pm_ops = { 2726 .suspend = btintel_pcie_suspend, 2727 .resume = btintel_pcie_resume, 2728 .freeze = btintel_pcie_freeze, 2729 .thaw = btintel_pcie_resume, 2730 .poweroff = btintel_pcie_hibernate, 2731 .restore = btintel_pcie_resume, 2732 }; 2733 2734 static struct pci_driver btintel_pcie_driver = { 2735 .name = KBUILD_MODNAME, 2736 .id_table = btintel_pcie_table, 2737 .probe = btintel_pcie_probe, 2738 .remove = btintel_pcie_remove, 2739 .driver.pm = pm_sleep_ptr(&btintel_pcie_pm_ops), 2740 #ifdef CONFIG_DEV_COREDUMP 2741 .driver.coredump = btintel_pcie_coredump 2742 #endif 2743 }; 2744 2745 static int __init btintel_pcie_init(void) 2746 { 2747 return pci_register_driver(&btintel_pcie_driver); 2748 } 2749 2750 static void __exit btintel_pcie_exit(void) 2751 { 2752 pci_unregister_driver(&btintel_pcie_driver); 2753 btintel_pcie_free_restart_list(); 2754 } 2755 2756 module_init(btintel_pcie_init); 2757 module_exit(btintel_pcie_exit); 2758 2759 MODULE_AUTHOR("Tedd Ho-Jeong An <tedd.an@intel.com>"); 2760 MODULE_DESCRIPTION("Intel Bluetooth PCIe transport driver ver " VERSION); 2761 MODULE_VERSION(VERSION); 2762 MODULE_LICENSE("GPL"); 2763