1 /* 2 * ipmi_ssif.c 3 * 4 * The interface to the IPMI driver for SMBus access to a SMBus 5 * compliant device. Called SSIF by the IPMI spec. 6 * 7 * Author: Intel Corporation 8 * Todd Davis <todd.c.davis@intel.com> 9 * 10 * Rewritten by Corey Minyard <minyard@acm.org> to support the 11 * non-blocking I2C interface, add support for multi-part 12 * transactions, add PEC support, and general clenaup. 13 * 14 * Copyright 2003 Intel Corporation 15 * Copyright 2005 MontaVista Software 16 * 17 * This program is free software; you can redistribute it and/or modify it 18 * under the terms of the GNU General Public License as published by the 19 * Free Software Foundation; either version 2 of the License, or (at your 20 * option) any later version. 21 */ 22 23 /* 24 * This file holds the "policy" for the interface to the SSIF state 25 * machine. It does the configuration, handles timers and interrupts, 26 * and drives the real SSIF state machine. 27 */ 28 29 /* 30 * TODO: Figure out how to use SMB alerts. This will require a new 31 * interface into the I2C driver, I believe. 32 */ 33 34 #if defined(MODVERSIONS) 35 #include <linux/modversions.h> 36 #endif 37 38 #include <linux/module.h> 39 #include <linux/moduleparam.h> 40 #include <linux/sched.h> 41 #include <linux/seq_file.h> 42 #include <linux/timer.h> 43 #include <linux/delay.h> 44 #include <linux/errno.h> 45 #include <linux/spinlock.h> 46 #include <linux/slab.h> 47 #include <linux/list.h> 48 #include <linux/i2c.h> 49 #include <linux/ipmi_smi.h> 50 #include <linux/init.h> 51 #include <linux/dmi.h> 52 #include <linux/kthread.h> 53 #include <linux/acpi.h> 54 #include <linux/ctype.h> 55 #include <linux/time64.h> 56 57 #define PFX "ipmi_ssif: " 58 #define DEVICE_NAME "ipmi_ssif" 59 60 #define IPMI_GET_SYSTEM_INTERFACE_CAPABILITIES_CMD 0x57 61 62 #define SSIF_IPMI_REQUEST 2 63 #define SSIF_IPMI_MULTI_PART_REQUEST_START 6 64 #define SSIF_IPMI_MULTI_PART_REQUEST_MIDDLE 7 65 #define SSIF_IPMI_RESPONSE 3 66 #define SSIF_IPMI_MULTI_PART_RESPONSE_MIDDLE 9 67 68 /* ssif_debug is a bit-field 69 * SSIF_DEBUG_MSG - commands and their responses 70 * SSIF_DEBUG_STATES - message states 71 * SSIF_DEBUG_TIMING - Measure times between events in the driver 72 */ 73 #define SSIF_DEBUG_TIMING 4 74 #define SSIF_DEBUG_STATE 2 75 #define SSIF_DEBUG_MSG 1 76 #define SSIF_NODEBUG 0 77 #define SSIF_DEFAULT_DEBUG (SSIF_NODEBUG) 78 79 /* 80 * Timer values 81 */ 82 #define SSIF_MSG_USEC 20000 /* 20ms between message tries. */ 83 #define SSIF_MSG_PART_USEC 5000 /* 5ms for a message part */ 84 85 /* How many times to we retry sending/receiving the message. */ 86 #define SSIF_SEND_RETRIES 5 87 #define SSIF_RECV_RETRIES 250 88 89 #define SSIF_MSG_MSEC (SSIF_MSG_USEC / 1000) 90 #define SSIF_MSG_JIFFIES ((SSIF_MSG_USEC * 1000) / TICK_NSEC) 91 #define SSIF_MSG_PART_JIFFIES ((SSIF_MSG_PART_USEC * 1000) / TICK_NSEC) 92 93 enum ssif_intf_state { 94 SSIF_NORMAL, 95 SSIF_GETTING_FLAGS, 96 SSIF_GETTING_EVENTS, 97 SSIF_CLEARING_FLAGS, 98 SSIF_GETTING_MESSAGES, 99 /* FIXME - add watchdog stuff. */ 100 }; 101 102 #define SSIF_IDLE(ssif) ((ssif)->ssif_state == SSIF_NORMAL \ 103 && (ssif)->curr_msg == NULL) 104 105 /* 106 * Indexes into stats[] in ssif_info below. 107 */ 108 enum ssif_stat_indexes { 109 /* Number of total messages sent. */ 110 SSIF_STAT_sent_messages = 0, 111 112 /* 113 * Number of message parts sent. Messages may be broken into 114 * parts if they are long. 115 */ 116 SSIF_STAT_sent_messages_parts, 117 118 /* 119 * Number of time a message was retried. 120 */ 121 SSIF_STAT_send_retries, 122 123 /* 124 * Number of times the send of a message failed. 125 */ 126 SSIF_STAT_send_errors, 127 128 /* 129 * Number of message responses received. 130 */ 131 SSIF_STAT_received_messages, 132 133 /* 134 * Number of message fragments received. 135 */ 136 SSIF_STAT_received_message_parts, 137 138 /* 139 * Number of times the receive of a message was retried. 140 */ 141 SSIF_STAT_receive_retries, 142 143 /* 144 * Number of errors receiving messages. 145 */ 146 SSIF_STAT_receive_errors, 147 148 /* 149 * Number of times a flag fetch was requested. 150 */ 151 SSIF_STAT_flag_fetches, 152 153 /* 154 * Number of times the hardware didn't follow the state machine. 155 */ 156 SSIF_STAT_hosed, 157 158 /* 159 * Number of received events. 160 */ 161 SSIF_STAT_events, 162 163 /* Number of asyncronous messages received. */ 164 SSIF_STAT_incoming_messages, 165 166 /* Number of watchdog pretimeouts. */ 167 SSIF_STAT_watchdog_pretimeouts, 168 169 /* Number of alers received. */ 170 SSIF_STAT_alerts, 171 172 /* Always add statistics before this value, it must be last. */ 173 SSIF_NUM_STATS 174 }; 175 176 struct ssif_addr_info { 177 unsigned short addr; 178 struct i2c_board_info binfo; 179 char *adapter_name; 180 int debug; 181 int slave_addr; 182 enum ipmi_addr_src addr_src; 183 union ipmi_smi_info_union addr_info; 184 185 struct mutex clients_mutex; 186 struct list_head clients; 187 188 struct list_head link; 189 }; 190 191 struct ssif_info; 192 193 typedef void (*ssif_i2c_done)(struct ssif_info *ssif_info, int result, 194 unsigned char *data, unsigned int len); 195 196 struct ssif_info { 197 ipmi_smi_t intf; 198 int intf_num; 199 spinlock_t lock; 200 struct ipmi_smi_msg *waiting_msg; 201 struct ipmi_smi_msg *curr_msg; 202 enum ssif_intf_state ssif_state; 203 unsigned long ssif_debug; 204 205 struct ipmi_smi_handlers handlers; 206 207 enum ipmi_addr_src addr_source; /* ACPI, PCI, SMBIOS, hardcode, etc. */ 208 union ipmi_smi_info_union addr_info; 209 210 /* 211 * Flags from the last GET_MSG_FLAGS command, used when an ATTN 212 * is set to hold the flags until we are done handling everything 213 * from the flags. 214 */ 215 #define RECEIVE_MSG_AVAIL 0x01 216 #define EVENT_MSG_BUFFER_FULL 0x02 217 #define WDT_PRE_TIMEOUT_INT 0x08 218 unsigned char msg_flags; 219 220 u8 global_enables; 221 bool has_event_buffer; 222 bool supports_alert; 223 224 /* 225 * Used to tell what we should do with alerts. If we are 226 * waiting on a response, read the data immediately. 227 */ 228 bool got_alert; 229 bool waiting_alert; 230 231 /* 232 * If set to true, this will request events the next time the 233 * state machine is idle. 234 */ 235 bool req_events; 236 237 /* 238 * If set to true, this will request flags the next time the 239 * state machine is idle. 240 */ 241 bool req_flags; 242 243 /* 244 * Used to perform timer operations when run-to-completion 245 * mode is on. This is a countdown timer. 246 */ 247 int rtc_us_timer; 248 249 /* Used for sending/receiving data. +1 for the length. */ 250 unsigned char data[IPMI_MAX_MSG_LENGTH + 1]; 251 unsigned int data_len; 252 253 /* Temp receive buffer, gets copied into data. */ 254 unsigned char recv[I2C_SMBUS_BLOCK_MAX]; 255 256 struct i2c_client *client; 257 ssif_i2c_done done_handler; 258 259 /* Thread interface handling */ 260 struct task_struct *thread; 261 struct completion wake_thread; 262 bool stopping; 263 int i2c_read_write; 264 int i2c_command; 265 unsigned char *i2c_data; 266 unsigned int i2c_size; 267 268 /* From the device id response. */ 269 struct ipmi_device_id device_id; 270 271 struct timer_list retry_timer; 272 int retries_left; 273 274 /* Info from SSIF cmd */ 275 unsigned char max_xmit_msg_size; 276 unsigned char max_recv_msg_size; 277 unsigned int multi_support; 278 int supports_pec; 279 280 #define SSIF_NO_MULTI 0 281 #define SSIF_MULTI_2_PART 1 282 #define SSIF_MULTI_n_PART 2 283 unsigned char *multi_data; 284 unsigned int multi_len; 285 unsigned int multi_pos; 286 287 atomic_t stats[SSIF_NUM_STATS]; 288 }; 289 290 #define ssif_inc_stat(ssif, stat) \ 291 atomic_inc(&(ssif)->stats[SSIF_STAT_ ## stat]) 292 #define ssif_get_stat(ssif, stat) \ 293 ((unsigned int) atomic_read(&(ssif)->stats[SSIF_STAT_ ## stat])) 294 295 static bool initialized; 296 297 static atomic_t next_intf = ATOMIC_INIT(0); 298 299 static void return_hosed_msg(struct ssif_info *ssif_info, 300 struct ipmi_smi_msg *msg); 301 static void start_next_msg(struct ssif_info *ssif_info, unsigned long *flags); 302 static int start_send(struct ssif_info *ssif_info, 303 unsigned char *data, 304 unsigned int len); 305 306 static unsigned long *ipmi_ssif_lock_cond(struct ssif_info *ssif_info, 307 unsigned long *flags) 308 { 309 spin_lock_irqsave(&ssif_info->lock, *flags); 310 return flags; 311 } 312 313 static void ipmi_ssif_unlock_cond(struct ssif_info *ssif_info, 314 unsigned long *flags) 315 { 316 spin_unlock_irqrestore(&ssif_info->lock, *flags); 317 } 318 319 static void deliver_recv_msg(struct ssif_info *ssif_info, 320 struct ipmi_smi_msg *msg) 321 { 322 ipmi_smi_t intf = ssif_info->intf; 323 324 if (!intf) { 325 ipmi_free_smi_msg(msg); 326 } else if (msg->rsp_size < 0) { 327 return_hosed_msg(ssif_info, msg); 328 pr_err(PFX 329 "Malformed message in deliver_recv_msg: rsp_size = %d\n", 330 msg->rsp_size); 331 } else { 332 ipmi_smi_msg_received(intf, msg); 333 } 334 } 335 336 static void return_hosed_msg(struct ssif_info *ssif_info, 337 struct ipmi_smi_msg *msg) 338 { 339 ssif_inc_stat(ssif_info, hosed); 340 341 /* Make it a response */ 342 msg->rsp[0] = msg->data[0] | 4; 343 msg->rsp[1] = msg->data[1]; 344 msg->rsp[2] = 0xFF; /* Unknown error. */ 345 msg->rsp_size = 3; 346 347 deliver_recv_msg(ssif_info, msg); 348 } 349 350 /* 351 * Must be called with the message lock held. This will release the 352 * message lock. Note that the caller will check SSIF_IDLE and start a 353 * new operation, so there is no need to check for new messages to 354 * start in here. 355 */ 356 static void start_clear_flags(struct ssif_info *ssif_info, unsigned long *flags) 357 { 358 unsigned char msg[3]; 359 360 ssif_info->msg_flags &= ~WDT_PRE_TIMEOUT_INT; 361 ssif_info->ssif_state = SSIF_CLEARING_FLAGS; 362 ipmi_ssif_unlock_cond(ssif_info, flags); 363 364 /* Make sure the watchdog pre-timeout flag is not set at startup. */ 365 msg[0] = (IPMI_NETFN_APP_REQUEST << 2); 366 msg[1] = IPMI_CLEAR_MSG_FLAGS_CMD; 367 msg[2] = WDT_PRE_TIMEOUT_INT; 368 369 if (start_send(ssif_info, msg, 3) != 0) { 370 /* Error, just go to normal state. */ 371 ssif_info->ssif_state = SSIF_NORMAL; 372 } 373 } 374 375 static void start_flag_fetch(struct ssif_info *ssif_info, unsigned long *flags) 376 { 377 unsigned char mb[2]; 378 379 ssif_info->req_flags = false; 380 ssif_info->ssif_state = SSIF_GETTING_FLAGS; 381 ipmi_ssif_unlock_cond(ssif_info, flags); 382 383 mb[0] = (IPMI_NETFN_APP_REQUEST << 2); 384 mb[1] = IPMI_GET_MSG_FLAGS_CMD; 385 if (start_send(ssif_info, mb, 2) != 0) 386 ssif_info->ssif_state = SSIF_NORMAL; 387 } 388 389 static void check_start_send(struct ssif_info *ssif_info, unsigned long *flags, 390 struct ipmi_smi_msg *msg) 391 { 392 if (start_send(ssif_info, msg->data, msg->data_size) != 0) { 393 unsigned long oflags; 394 395 flags = ipmi_ssif_lock_cond(ssif_info, &oflags); 396 ssif_info->curr_msg = NULL; 397 ssif_info->ssif_state = SSIF_NORMAL; 398 ipmi_ssif_unlock_cond(ssif_info, flags); 399 ipmi_free_smi_msg(msg); 400 } 401 } 402 403 static void start_event_fetch(struct ssif_info *ssif_info, unsigned long *flags) 404 { 405 struct ipmi_smi_msg *msg; 406 407 ssif_info->req_events = false; 408 409 msg = ipmi_alloc_smi_msg(); 410 if (!msg) { 411 ssif_info->ssif_state = SSIF_NORMAL; 412 return; 413 } 414 415 ssif_info->curr_msg = msg; 416 ssif_info->ssif_state = SSIF_GETTING_EVENTS; 417 ipmi_ssif_unlock_cond(ssif_info, flags); 418 419 msg->data[0] = (IPMI_NETFN_APP_REQUEST << 2); 420 msg->data[1] = IPMI_READ_EVENT_MSG_BUFFER_CMD; 421 msg->data_size = 2; 422 423 check_start_send(ssif_info, flags, msg); 424 } 425 426 static void start_recv_msg_fetch(struct ssif_info *ssif_info, 427 unsigned long *flags) 428 { 429 struct ipmi_smi_msg *msg; 430 431 msg = ipmi_alloc_smi_msg(); 432 if (!msg) { 433 ssif_info->ssif_state = SSIF_NORMAL; 434 return; 435 } 436 437 ssif_info->curr_msg = msg; 438 ssif_info->ssif_state = SSIF_GETTING_MESSAGES; 439 ipmi_ssif_unlock_cond(ssif_info, flags); 440 441 msg->data[0] = (IPMI_NETFN_APP_REQUEST << 2); 442 msg->data[1] = IPMI_GET_MSG_CMD; 443 msg->data_size = 2; 444 445 check_start_send(ssif_info, flags, msg); 446 } 447 448 /* 449 * Must be called with the message lock held. This will release the 450 * message lock. Note that the caller will check SSIF_IDLE and start a 451 * new operation, so there is no need to check for new messages to 452 * start in here. 453 */ 454 static void handle_flags(struct ssif_info *ssif_info, unsigned long *flags) 455 { 456 if (ssif_info->msg_flags & WDT_PRE_TIMEOUT_INT) { 457 ipmi_smi_t intf = ssif_info->intf; 458 /* Watchdog pre-timeout */ 459 ssif_inc_stat(ssif_info, watchdog_pretimeouts); 460 start_clear_flags(ssif_info, flags); 461 if (intf) 462 ipmi_smi_watchdog_pretimeout(intf); 463 } else if (ssif_info->msg_flags & RECEIVE_MSG_AVAIL) 464 /* Messages available. */ 465 start_recv_msg_fetch(ssif_info, flags); 466 else if (ssif_info->msg_flags & EVENT_MSG_BUFFER_FULL) 467 /* Events available. */ 468 start_event_fetch(ssif_info, flags); 469 else { 470 ssif_info->ssif_state = SSIF_NORMAL; 471 ipmi_ssif_unlock_cond(ssif_info, flags); 472 } 473 } 474 475 static int ipmi_ssif_thread(void *data) 476 { 477 struct ssif_info *ssif_info = data; 478 479 while (!kthread_should_stop()) { 480 int result; 481 482 /* Wait for something to do */ 483 result = wait_for_completion_interruptible( 484 &ssif_info->wake_thread); 485 if (ssif_info->stopping) 486 break; 487 if (result == -ERESTARTSYS) 488 continue; 489 init_completion(&ssif_info->wake_thread); 490 491 if (ssif_info->i2c_read_write == I2C_SMBUS_WRITE) { 492 result = i2c_smbus_write_block_data( 493 ssif_info->client, ssif_info->i2c_command, 494 ssif_info->i2c_data[0], 495 ssif_info->i2c_data + 1); 496 ssif_info->done_handler(ssif_info, result, NULL, 0); 497 } else { 498 result = i2c_smbus_read_block_data( 499 ssif_info->client, ssif_info->i2c_command, 500 ssif_info->i2c_data); 501 if (result < 0) 502 ssif_info->done_handler(ssif_info, result, 503 NULL, 0); 504 else 505 ssif_info->done_handler(ssif_info, 0, 506 ssif_info->i2c_data, 507 result); 508 } 509 } 510 511 return 0; 512 } 513 514 static int ssif_i2c_send(struct ssif_info *ssif_info, 515 ssif_i2c_done handler, 516 int read_write, int command, 517 unsigned char *data, unsigned int size) 518 { 519 ssif_info->done_handler = handler; 520 521 ssif_info->i2c_read_write = read_write; 522 ssif_info->i2c_command = command; 523 ssif_info->i2c_data = data; 524 ssif_info->i2c_size = size; 525 complete(&ssif_info->wake_thread); 526 return 0; 527 } 528 529 530 static void msg_done_handler(struct ssif_info *ssif_info, int result, 531 unsigned char *data, unsigned int len); 532 533 static void start_get(struct ssif_info *ssif_info) 534 { 535 int rv; 536 537 ssif_info->rtc_us_timer = 0; 538 ssif_info->multi_pos = 0; 539 540 rv = ssif_i2c_send(ssif_info, msg_done_handler, I2C_SMBUS_READ, 541 SSIF_IPMI_RESPONSE, 542 ssif_info->recv, I2C_SMBUS_BLOCK_DATA); 543 if (rv < 0) { 544 /* request failed, just return the error. */ 545 if (ssif_info->ssif_debug & SSIF_DEBUG_MSG) 546 pr_info("Error from i2c_non_blocking_op(5)\n"); 547 548 msg_done_handler(ssif_info, -EIO, NULL, 0); 549 } 550 } 551 552 static void retry_timeout(unsigned long data) 553 { 554 struct ssif_info *ssif_info = (void *) data; 555 unsigned long oflags, *flags; 556 bool waiting; 557 558 if (ssif_info->stopping) 559 return; 560 561 flags = ipmi_ssif_lock_cond(ssif_info, &oflags); 562 waiting = ssif_info->waiting_alert; 563 ssif_info->waiting_alert = false; 564 ipmi_ssif_unlock_cond(ssif_info, flags); 565 566 if (waiting) 567 start_get(ssif_info); 568 } 569 570 571 static void ssif_alert(struct i2c_client *client, unsigned int data) 572 { 573 struct ssif_info *ssif_info = i2c_get_clientdata(client); 574 unsigned long oflags, *flags; 575 bool do_get = false; 576 577 ssif_inc_stat(ssif_info, alerts); 578 579 flags = ipmi_ssif_lock_cond(ssif_info, &oflags); 580 if (ssif_info->waiting_alert) { 581 ssif_info->waiting_alert = false; 582 del_timer(&ssif_info->retry_timer); 583 do_get = true; 584 } else if (ssif_info->curr_msg) { 585 ssif_info->got_alert = true; 586 } 587 ipmi_ssif_unlock_cond(ssif_info, flags); 588 if (do_get) 589 start_get(ssif_info); 590 } 591 592 static int start_resend(struct ssif_info *ssif_info); 593 594 static void msg_done_handler(struct ssif_info *ssif_info, int result, 595 unsigned char *data, unsigned int len) 596 { 597 struct ipmi_smi_msg *msg; 598 unsigned long oflags, *flags; 599 int rv; 600 601 /* 602 * We are single-threaded here, so no need for a lock until we 603 * start messing with driver states or the queues. 604 */ 605 606 if (result < 0) { 607 ssif_info->retries_left--; 608 if (ssif_info->retries_left > 0) { 609 ssif_inc_stat(ssif_info, receive_retries); 610 611 flags = ipmi_ssif_lock_cond(ssif_info, &oflags); 612 ssif_info->waiting_alert = true; 613 ssif_info->rtc_us_timer = SSIF_MSG_USEC; 614 mod_timer(&ssif_info->retry_timer, 615 jiffies + SSIF_MSG_JIFFIES); 616 ipmi_ssif_unlock_cond(ssif_info, flags); 617 return; 618 } 619 620 ssif_inc_stat(ssif_info, receive_errors); 621 622 if (ssif_info->ssif_debug & SSIF_DEBUG_MSG) 623 pr_info("Error in msg_done_handler: %d\n", result); 624 len = 0; 625 goto continue_op; 626 } 627 628 if ((len > 1) && (ssif_info->multi_pos == 0) 629 && (data[0] == 0x00) && (data[1] == 0x01)) { 630 /* Start of multi-part read. Start the next transaction. */ 631 int i; 632 633 ssif_inc_stat(ssif_info, received_message_parts); 634 635 /* Remove the multi-part read marker. */ 636 len -= 2; 637 for (i = 0; i < len; i++) 638 ssif_info->data[i] = data[i+2]; 639 ssif_info->multi_len = len; 640 ssif_info->multi_pos = 1; 641 642 rv = ssif_i2c_send(ssif_info, msg_done_handler, I2C_SMBUS_READ, 643 SSIF_IPMI_MULTI_PART_RESPONSE_MIDDLE, 644 ssif_info->recv, I2C_SMBUS_BLOCK_DATA); 645 if (rv < 0) { 646 if (ssif_info->ssif_debug & SSIF_DEBUG_MSG) 647 pr_info("Error from i2c_non_blocking_op(1)\n"); 648 649 result = -EIO; 650 } else 651 return; 652 } else if (ssif_info->multi_pos) { 653 /* Middle of multi-part read. Start the next transaction. */ 654 int i; 655 unsigned char blocknum; 656 657 if (len == 0) { 658 result = -EIO; 659 if (ssif_info->ssif_debug & SSIF_DEBUG_MSG) 660 pr_info(PFX "Middle message with no data\n"); 661 662 goto continue_op; 663 } 664 665 blocknum = data[0]; 666 667 if (ssif_info->multi_len + len - 1 > IPMI_MAX_MSG_LENGTH) { 668 /* Received message too big, abort the operation. */ 669 result = -E2BIG; 670 if (ssif_info->ssif_debug & SSIF_DEBUG_MSG) 671 pr_info("Received message too big\n"); 672 673 goto continue_op; 674 } 675 676 /* Remove the blocknum from the data. */ 677 len--; 678 for (i = 0; i < len; i++) 679 ssif_info->data[i + ssif_info->multi_len] = data[i + 1]; 680 ssif_info->multi_len += len; 681 if (blocknum == 0xff) { 682 /* End of read */ 683 len = ssif_info->multi_len; 684 data = ssif_info->data; 685 } else if (blocknum + 1 != ssif_info->multi_pos) { 686 /* 687 * Out of sequence block, just abort. Block 688 * numbers start at zero for the second block, 689 * but multi_pos starts at one, so the +1. 690 */ 691 result = -EIO; 692 } else { 693 ssif_inc_stat(ssif_info, received_message_parts); 694 695 ssif_info->multi_pos++; 696 697 rv = ssif_i2c_send(ssif_info, msg_done_handler, 698 I2C_SMBUS_READ, 699 SSIF_IPMI_MULTI_PART_RESPONSE_MIDDLE, 700 ssif_info->recv, 701 I2C_SMBUS_BLOCK_DATA); 702 if (rv < 0) { 703 if (ssif_info->ssif_debug & SSIF_DEBUG_MSG) 704 pr_info(PFX 705 "Error from ssif_i2c_send\n"); 706 707 result = -EIO; 708 } else 709 return; 710 } 711 } 712 713 if (result < 0) { 714 ssif_inc_stat(ssif_info, receive_errors); 715 } else { 716 ssif_inc_stat(ssif_info, received_messages); 717 ssif_inc_stat(ssif_info, received_message_parts); 718 } 719 720 721 continue_op: 722 if (ssif_info->ssif_debug & SSIF_DEBUG_STATE) 723 pr_info(PFX "DONE 1: state = %d, result=%d.\n", 724 ssif_info->ssif_state, result); 725 726 flags = ipmi_ssif_lock_cond(ssif_info, &oflags); 727 msg = ssif_info->curr_msg; 728 if (msg) { 729 msg->rsp_size = len; 730 if (msg->rsp_size > IPMI_MAX_MSG_LENGTH) 731 msg->rsp_size = IPMI_MAX_MSG_LENGTH; 732 memcpy(msg->rsp, data, msg->rsp_size); 733 ssif_info->curr_msg = NULL; 734 } 735 736 switch (ssif_info->ssif_state) { 737 case SSIF_NORMAL: 738 ipmi_ssif_unlock_cond(ssif_info, flags); 739 if (!msg) 740 break; 741 742 if (result < 0) 743 return_hosed_msg(ssif_info, msg); 744 else 745 deliver_recv_msg(ssif_info, msg); 746 break; 747 748 case SSIF_GETTING_FLAGS: 749 /* We got the flags from the SSIF, now handle them. */ 750 if ((result < 0) || (len < 4) || (data[2] != 0)) { 751 /* 752 * Error fetching flags, or invalid length, 753 * just give up for now. 754 */ 755 ssif_info->ssif_state = SSIF_NORMAL; 756 ipmi_ssif_unlock_cond(ssif_info, flags); 757 pr_warn(PFX "Error getting flags: %d %d, %x\n", 758 result, len, data[2]); 759 } else if (data[0] != (IPMI_NETFN_APP_REQUEST | 1) << 2 760 || data[1] != IPMI_GET_MSG_FLAGS_CMD) { 761 pr_warn(PFX "Invalid response getting flags: %x %x\n", 762 data[0], data[1]); 763 } else { 764 ssif_inc_stat(ssif_info, flag_fetches); 765 ssif_info->msg_flags = data[3]; 766 handle_flags(ssif_info, flags); 767 } 768 break; 769 770 case SSIF_CLEARING_FLAGS: 771 /* We cleared the flags. */ 772 if ((result < 0) || (len < 3) || (data[2] != 0)) { 773 /* Error clearing flags */ 774 pr_warn(PFX "Error clearing flags: %d %d, %x\n", 775 result, len, data[2]); 776 } else if (data[0] != (IPMI_NETFN_APP_REQUEST | 1) << 2 777 || data[1] != IPMI_CLEAR_MSG_FLAGS_CMD) { 778 pr_warn(PFX "Invalid response clearing flags: %x %x\n", 779 data[0], data[1]); 780 } 781 ssif_info->ssif_state = SSIF_NORMAL; 782 ipmi_ssif_unlock_cond(ssif_info, flags); 783 break; 784 785 case SSIF_GETTING_EVENTS: 786 if ((result < 0) || (len < 3) || (msg->rsp[2] != 0)) { 787 /* Error getting event, probably done. */ 788 msg->done(msg); 789 790 /* Take off the event flag. */ 791 ssif_info->msg_flags &= ~EVENT_MSG_BUFFER_FULL; 792 handle_flags(ssif_info, flags); 793 } else if (msg->rsp[0] != (IPMI_NETFN_APP_REQUEST | 1) << 2 794 || msg->rsp[1] != IPMI_READ_EVENT_MSG_BUFFER_CMD) { 795 pr_warn(PFX "Invalid response getting events: %x %x\n", 796 msg->rsp[0], msg->rsp[1]); 797 msg->done(msg); 798 /* Take off the event flag. */ 799 ssif_info->msg_flags &= ~EVENT_MSG_BUFFER_FULL; 800 handle_flags(ssif_info, flags); 801 } else { 802 handle_flags(ssif_info, flags); 803 ssif_inc_stat(ssif_info, events); 804 deliver_recv_msg(ssif_info, msg); 805 } 806 break; 807 808 case SSIF_GETTING_MESSAGES: 809 if ((result < 0) || (len < 3) || (msg->rsp[2] != 0)) { 810 /* Error getting event, probably done. */ 811 msg->done(msg); 812 813 /* Take off the msg flag. */ 814 ssif_info->msg_flags &= ~RECEIVE_MSG_AVAIL; 815 handle_flags(ssif_info, flags); 816 } else if (msg->rsp[0] != (IPMI_NETFN_APP_REQUEST | 1) << 2 817 || msg->rsp[1] != IPMI_GET_MSG_CMD) { 818 pr_warn(PFX "Invalid response clearing flags: %x %x\n", 819 msg->rsp[0], msg->rsp[1]); 820 msg->done(msg); 821 822 /* Take off the msg flag. */ 823 ssif_info->msg_flags &= ~RECEIVE_MSG_AVAIL; 824 handle_flags(ssif_info, flags); 825 } else { 826 ssif_inc_stat(ssif_info, incoming_messages); 827 handle_flags(ssif_info, flags); 828 deliver_recv_msg(ssif_info, msg); 829 } 830 break; 831 } 832 833 flags = ipmi_ssif_lock_cond(ssif_info, &oflags); 834 if (SSIF_IDLE(ssif_info) && !ssif_info->stopping) { 835 if (ssif_info->req_events) 836 start_event_fetch(ssif_info, flags); 837 else if (ssif_info->req_flags) 838 start_flag_fetch(ssif_info, flags); 839 else 840 start_next_msg(ssif_info, flags); 841 } else 842 ipmi_ssif_unlock_cond(ssif_info, flags); 843 844 if (ssif_info->ssif_debug & SSIF_DEBUG_STATE) 845 pr_info(PFX "DONE 2: state = %d.\n", ssif_info->ssif_state); 846 } 847 848 static void msg_written_handler(struct ssif_info *ssif_info, int result, 849 unsigned char *data, unsigned int len) 850 { 851 int rv; 852 853 /* We are single-threaded here, so no need for a lock. */ 854 if (result < 0) { 855 ssif_info->retries_left--; 856 if (ssif_info->retries_left > 0) { 857 if (!start_resend(ssif_info)) { 858 ssif_inc_stat(ssif_info, send_retries); 859 return; 860 } 861 /* request failed, just return the error. */ 862 ssif_inc_stat(ssif_info, send_errors); 863 864 if (ssif_info->ssif_debug & SSIF_DEBUG_MSG) 865 pr_info(PFX 866 "Out of retries in msg_written_handler\n"); 867 msg_done_handler(ssif_info, -EIO, NULL, 0); 868 return; 869 } 870 871 ssif_inc_stat(ssif_info, send_errors); 872 873 /* 874 * Got an error on transmit, let the done routine 875 * handle it. 876 */ 877 if (ssif_info->ssif_debug & SSIF_DEBUG_MSG) 878 pr_info("Error in msg_written_handler: %d\n", result); 879 880 msg_done_handler(ssif_info, result, NULL, 0); 881 return; 882 } 883 884 if (ssif_info->multi_data) { 885 /* 886 * In the middle of a multi-data write. See the comment 887 * in the SSIF_MULTI_n_PART case in the probe function 888 * for details on the intricacies of this. 889 */ 890 int left; 891 892 ssif_inc_stat(ssif_info, sent_messages_parts); 893 894 left = ssif_info->multi_len - ssif_info->multi_pos; 895 if (left > 32) 896 left = 32; 897 /* Length byte. */ 898 ssif_info->multi_data[ssif_info->multi_pos] = left; 899 ssif_info->multi_pos += left; 900 if (left < 32) 901 /* 902 * Write is finished. Note that we must end 903 * with a write of less than 32 bytes to 904 * complete the transaction, even if it is 905 * zero bytes. 906 */ 907 ssif_info->multi_data = NULL; 908 909 rv = ssif_i2c_send(ssif_info, msg_written_handler, 910 I2C_SMBUS_WRITE, 911 SSIF_IPMI_MULTI_PART_REQUEST_MIDDLE, 912 ssif_info->multi_data + ssif_info->multi_pos, 913 I2C_SMBUS_BLOCK_DATA); 914 if (rv < 0) { 915 /* request failed, just return the error. */ 916 ssif_inc_stat(ssif_info, send_errors); 917 918 if (ssif_info->ssif_debug & SSIF_DEBUG_MSG) 919 pr_info("Error from i2c_non_blocking_op(3)\n"); 920 msg_done_handler(ssif_info, -EIO, NULL, 0); 921 } 922 } else { 923 unsigned long oflags, *flags; 924 bool got_alert; 925 926 ssif_inc_stat(ssif_info, sent_messages); 927 ssif_inc_stat(ssif_info, sent_messages_parts); 928 929 flags = ipmi_ssif_lock_cond(ssif_info, &oflags); 930 got_alert = ssif_info->got_alert; 931 if (got_alert) { 932 ssif_info->got_alert = false; 933 ssif_info->waiting_alert = false; 934 } 935 936 if (got_alert) { 937 ipmi_ssif_unlock_cond(ssif_info, flags); 938 /* The alert already happened, try now. */ 939 retry_timeout((unsigned long) ssif_info); 940 } else { 941 /* Wait a jiffie then request the next message */ 942 ssif_info->waiting_alert = true; 943 ssif_info->retries_left = SSIF_RECV_RETRIES; 944 ssif_info->rtc_us_timer = SSIF_MSG_PART_USEC; 945 mod_timer(&ssif_info->retry_timer, 946 jiffies + SSIF_MSG_PART_JIFFIES); 947 ipmi_ssif_unlock_cond(ssif_info, flags); 948 } 949 } 950 } 951 952 static int start_resend(struct ssif_info *ssif_info) 953 { 954 int rv; 955 int command; 956 957 ssif_info->got_alert = false; 958 959 if (ssif_info->data_len > 32) { 960 command = SSIF_IPMI_MULTI_PART_REQUEST_START; 961 ssif_info->multi_data = ssif_info->data; 962 ssif_info->multi_len = ssif_info->data_len; 963 /* 964 * Subtle thing, this is 32, not 33, because we will 965 * overwrite the thing at position 32 (which was just 966 * transmitted) with the new length. 967 */ 968 ssif_info->multi_pos = 32; 969 ssif_info->data[0] = 32; 970 } else { 971 ssif_info->multi_data = NULL; 972 command = SSIF_IPMI_REQUEST; 973 ssif_info->data[0] = ssif_info->data_len; 974 } 975 976 rv = ssif_i2c_send(ssif_info, msg_written_handler, I2C_SMBUS_WRITE, 977 command, ssif_info->data, I2C_SMBUS_BLOCK_DATA); 978 if (rv && (ssif_info->ssif_debug & SSIF_DEBUG_MSG)) 979 pr_info("Error from i2c_non_blocking_op(4)\n"); 980 return rv; 981 } 982 983 static int start_send(struct ssif_info *ssif_info, 984 unsigned char *data, 985 unsigned int len) 986 { 987 if (len > IPMI_MAX_MSG_LENGTH) 988 return -E2BIG; 989 if (len > ssif_info->max_xmit_msg_size) 990 return -E2BIG; 991 992 ssif_info->retries_left = SSIF_SEND_RETRIES; 993 memcpy(ssif_info->data + 1, data, len); 994 ssif_info->data_len = len; 995 return start_resend(ssif_info); 996 } 997 998 /* Must be called with the message lock held. */ 999 static void start_next_msg(struct ssif_info *ssif_info, unsigned long *flags) 1000 { 1001 struct ipmi_smi_msg *msg; 1002 unsigned long oflags; 1003 1004 restart: 1005 if (!SSIF_IDLE(ssif_info)) { 1006 ipmi_ssif_unlock_cond(ssif_info, flags); 1007 return; 1008 } 1009 1010 if (!ssif_info->waiting_msg) { 1011 ssif_info->curr_msg = NULL; 1012 ipmi_ssif_unlock_cond(ssif_info, flags); 1013 } else { 1014 int rv; 1015 1016 ssif_info->curr_msg = ssif_info->waiting_msg; 1017 ssif_info->waiting_msg = NULL; 1018 ipmi_ssif_unlock_cond(ssif_info, flags); 1019 rv = start_send(ssif_info, 1020 ssif_info->curr_msg->data, 1021 ssif_info->curr_msg->data_size); 1022 if (rv) { 1023 msg = ssif_info->curr_msg; 1024 ssif_info->curr_msg = NULL; 1025 return_hosed_msg(ssif_info, msg); 1026 flags = ipmi_ssif_lock_cond(ssif_info, &oflags); 1027 goto restart; 1028 } 1029 } 1030 } 1031 1032 static void sender(void *send_info, 1033 struct ipmi_smi_msg *msg) 1034 { 1035 struct ssif_info *ssif_info = (struct ssif_info *) send_info; 1036 unsigned long oflags, *flags; 1037 1038 BUG_ON(ssif_info->waiting_msg); 1039 ssif_info->waiting_msg = msg; 1040 1041 flags = ipmi_ssif_lock_cond(ssif_info, &oflags); 1042 start_next_msg(ssif_info, flags); 1043 1044 if (ssif_info->ssif_debug & SSIF_DEBUG_TIMING) { 1045 struct timespec64 t; 1046 1047 ktime_get_real_ts64(&t); 1048 pr_info("**Enqueue %02x %02x: %lld.%6.6ld\n", 1049 msg->data[0], msg->data[1], 1050 (long long) t.tv_sec, (long) t.tv_nsec / NSEC_PER_USEC); 1051 } 1052 } 1053 1054 static int get_smi_info(void *send_info, struct ipmi_smi_info *data) 1055 { 1056 struct ssif_info *ssif_info = send_info; 1057 1058 data->addr_src = ssif_info->addr_source; 1059 data->dev = &ssif_info->client->dev; 1060 data->addr_info = ssif_info->addr_info; 1061 get_device(data->dev); 1062 1063 return 0; 1064 } 1065 1066 /* 1067 * Instead of having our own timer to periodically check the message 1068 * flags, we let the message handler drive us. 1069 */ 1070 static void request_events(void *send_info) 1071 { 1072 struct ssif_info *ssif_info = (struct ssif_info *) send_info; 1073 unsigned long oflags, *flags; 1074 1075 if (!ssif_info->has_event_buffer) 1076 return; 1077 1078 flags = ipmi_ssif_lock_cond(ssif_info, &oflags); 1079 /* 1080 * Request flags first, not events, because the lower layer 1081 * doesn't have a way to send an attention. But make sure 1082 * event checking still happens. 1083 */ 1084 ssif_info->req_events = true; 1085 if (SSIF_IDLE(ssif_info)) 1086 start_flag_fetch(ssif_info, flags); 1087 else { 1088 ssif_info->req_flags = true; 1089 ipmi_ssif_unlock_cond(ssif_info, flags); 1090 } 1091 } 1092 1093 static int inc_usecount(void *send_info) 1094 { 1095 struct ssif_info *ssif_info = send_info; 1096 1097 if (!i2c_get_adapter(ssif_info->client->adapter->nr)) 1098 return -ENODEV; 1099 1100 i2c_use_client(ssif_info->client); 1101 return 0; 1102 } 1103 1104 static void dec_usecount(void *send_info) 1105 { 1106 struct ssif_info *ssif_info = send_info; 1107 1108 i2c_release_client(ssif_info->client); 1109 i2c_put_adapter(ssif_info->client->adapter); 1110 } 1111 1112 static int ssif_start_processing(void *send_info, 1113 ipmi_smi_t intf) 1114 { 1115 struct ssif_info *ssif_info = send_info; 1116 1117 ssif_info->intf = intf; 1118 1119 return 0; 1120 } 1121 1122 #define MAX_SSIF_BMCS 4 1123 1124 static unsigned short addr[MAX_SSIF_BMCS]; 1125 static int num_addrs; 1126 module_param_array(addr, ushort, &num_addrs, 0); 1127 MODULE_PARM_DESC(addr, "The addresses to scan for IPMI BMCs on the SSIFs."); 1128 1129 static char *adapter_name[MAX_SSIF_BMCS]; 1130 static int num_adapter_names; 1131 module_param_array(adapter_name, charp, &num_adapter_names, 0); 1132 MODULE_PARM_DESC(adapter_name, "The string name of the I2C device that has the BMC. By default all devices are scanned."); 1133 1134 static int slave_addrs[MAX_SSIF_BMCS]; 1135 static int num_slave_addrs; 1136 module_param_array(slave_addrs, int, &num_slave_addrs, 0); 1137 MODULE_PARM_DESC(slave_addrs, 1138 "The default IPMB slave address for the controller."); 1139 1140 static bool alerts_broken; 1141 module_param(alerts_broken, bool, 0); 1142 MODULE_PARM_DESC(alerts_broken, "Don't enable alerts for the controller."); 1143 1144 /* 1145 * Bit 0 enables message debugging, bit 1 enables state debugging, and 1146 * bit 2 enables timing debugging. This is an array indexed by 1147 * interface number" 1148 */ 1149 static int dbg[MAX_SSIF_BMCS]; 1150 static int num_dbg; 1151 module_param_array(dbg, int, &num_dbg, 0); 1152 MODULE_PARM_DESC(dbg, "Turn on debugging."); 1153 1154 static bool ssif_dbg_probe; 1155 module_param_named(dbg_probe, ssif_dbg_probe, bool, 0); 1156 MODULE_PARM_DESC(dbg_probe, "Enable debugging of probing of adapters."); 1157 1158 static int use_thread; 1159 module_param(use_thread, int, 0); 1160 MODULE_PARM_DESC(use_thread, "Use the thread interface."); 1161 1162 static bool ssif_tryacpi = true; 1163 module_param_named(tryacpi, ssif_tryacpi, bool, 0); 1164 MODULE_PARM_DESC(tryacpi, "Setting this to zero will disable the default scan of the interfaces identified via ACPI"); 1165 1166 static bool ssif_trydmi = true; 1167 module_param_named(trydmi, ssif_trydmi, bool, 0); 1168 MODULE_PARM_DESC(trydmi, "Setting this to zero will disable the default scan of the interfaces identified via DMI (SMBIOS)"); 1169 1170 static DEFINE_MUTEX(ssif_infos_mutex); 1171 static LIST_HEAD(ssif_infos); 1172 1173 static int ssif_remove(struct i2c_client *client) 1174 { 1175 struct ssif_info *ssif_info = i2c_get_clientdata(client); 1176 int rv; 1177 1178 if (!ssif_info) 1179 return 0; 1180 1181 /* 1182 * After this point, we won't deliver anything asychronously 1183 * to the message handler. We can unregister ourself. 1184 */ 1185 rv = ipmi_unregister_smi(ssif_info->intf); 1186 if (rv) { 1187 pr_err(PFX "Unable to unregister device: errno=%d\n", rv); 1188 return rv; 1189 } 1190 ssif_info->intf = NULL; 1191 1192 /* make sure the driver is not looking for flags any more. */ 1193 while (ssif_info->ssif_state != SSIF_NORMAL) 1194 schedule_timeout(1); 1195 1196 ssif_info->stopping = true; 1197 del_timer_sync(&ssif_info->retry_timer); 1198 if (ssif_info->thread) { 1199 complete(&ssif_info->wake_thread); 1200 kthread_stop(ssif_info->thread); 1201 } 1202 1203 /* 1204 * No message can be outstanding now, we have removed the 1205 * upper layer and it permitted us to do so. 1206 */ 1207 kfree(ssif_info); 1208 return 0; 1209 } 1210 1211 static int do_cmd(struct i2c_client *client, int len, unsigned char *msg, 1212 int *resp_len, unsigned char *resp) 1213 { 1214 int retry_cnt; 1215 int ret; 1216 1217 retry_cnt = SSIF_SEND_RETRIES; 1218 retry1: 1219 ret = i2c_smbus_write_block_data(client, SSIF_IPMI_REQUEST, len, msg); 1220 if (ret) { 1221 retry_cnt--; 1222 if (retry_cnt > 0) 1223 goto retry1; 1224 return -ENODEV; 1225 } 1226 1227 ret = -ENODEV; 1228 retry_cnt = SSIF_RECV_RETRIES; 1229 while (retry_cnt > 0) { 1230 ret = i2c_smbus_read_block_data(client, SSIF_IPMI_RESPONSE, 1231 resp); 1232 if (ret > 0) 1233 break; 1234 msleep(SSIF_MSG_MSEC); 1235 retry_cnt--; 1236 if (retry_cnt <= 0) 1237 break; 1238 } 1239 1240 if (ret > 0) { 1241 /* Validate that the response is correct. */ 1242 if (ret < 3 || 1243 (resp[0] != (msg[0] | (1 << 2))) || 1244 (resp[1] != msg[1])) 1245 ret = -EINVAL; 1246 else { 1247 *resp_len = ret; 1248 ret = 0; 1249 } 1250 } 1251 1252 return ret; 1253 } 1254 1255 static int ssif_detect(struct i2c_client *client, struct i2c_board_info *info) 1256 { 1257 unsigned char *resp; 1258 unsigned char msg[3]; 1259 int rv; 1260 int len; 1261 1262 resp = kmalloc(IPMI_MAX_MSG_LENGTH, GFP_KERNEL); 1263 if (!resp) 1264 return -ENOMEM; 1265 1266 /* Do a Get Device ID command, since it is required. */ 1267 msg[0] = IPMI_NETFN_APP_REQUEST << 2; 1268 msg[1] = IPMI_GET_DEVICE_ID_CMD; 1269 rv = do_cmd(client, 2, msg, &len, resp); 1270 if (rv) 1271 rv = -ENODEV; 1272 else 1273 strlcpy(info->type, DEVICE_NAME, I2C_NAME_SIZE); 1274 kfree(resp); 1275 return rv; 1276 } 1277 1278 static int smi_type_proc_show(struct seq_file *m, void *v) 1279 { 1280 seq_puts(m, "ssif\n"); 1281 1282 return 0; 1283 } 1284 1285 static int smi_type_proc_open(struct inode *inode, struct file *file) 1286 { 1287 return single_open(file, smi_type_proc_show, inode->i_private); 1288 } 1289 1290 static const struct file_operations smi_type_proc_ops = { 1291 .open = smi_type_proc_open, 1292 .read = seq_read, 1293 .llseek = seq_lseek, 1294 .release = single_release, 1295 }; 1296 1297 static int smi_stats_proc_show(struct seq_file *m, void *v) 1298 { 1299 struct ssif_info *ssif_info = m->private; 1300 1301 seq_printf(m, "sent_messages: %u\n", 1302 ssif_get_stat(ssif_info, sent_messages)); 1303 seq_printf(m, "sent_messages_parts: %u\n", 1304 ssif_get_stat(ssif_info, sent_messages_parts)); 1305 seq_printf(m, "send_retries: %u\n", 1306 ssif_get_stat(ssif_info, send_retries)); 1307 seq_printf(m, "send_errors: %u\n", 1308 ssif_get_stat(ssif_info, send_errors)); 1309 seq_printf(m, "received_messages: %u\n", 1310 ssif_get_stat(ssif_info, received_messages)); 1311 seq_printf(m, "received_message_parts: %u\n", 1312 ssif_get_stat(ssif_info, received_message_parts)); 1313 seq_printf(m, "receive_retries: %u\n", 1314 ssif_get_stat(ssif_info, receive_retries)); 1315 seq_printf(m, "receive_errors: %u\n", 1316 ssif_get_stat(ssif_info, receive_errors)); 1317 seq_printf(m, "flag_fetches: %u\n", 1318 ssif_get_stat(ssif_info, flag_fetches)); 1319 seq_printf(m, "hosed: %u\n", 1320 ssif_get_stat(ssif_info, hosed)); 1321 seq_printf(m, "events: %u\n", 1322 ssif_get_stat(ssif_info, events)); 1323 seq_printf(m, "watchdog_pretimeouts: %u\n", 1324 ssif_get_stat(ssif_info, watchdog_pretimeouts)); 1325 seq_printf(m, "alerts: %u\n", 1326 ssif_get_stat(ssif_info, alerts)); 1327 return 0; 1328 } 1329 1330 static int smi_stats_proc_open(struct inode *inode, struct file *file) 1331 { 1332 return single_open(file, smi_stats_proc_show, PDE_DATA(inode)); 1333 } 1334 1335 static const struct file_operations smi_stats_proc_ops = { 1336 .open = smi_stats_proc_open, 1337 .read = seq_read, 1338 .llseek = seq_lseek, 1339 .release = single_release, 1340 }; 1341 1342 static int strcmp_nospace(char *s1, char *s2) 1343 { 1344 while (*s1 && *s2) { 1345 while (isspace(*s1)) 1346 s1++; 1347 while (isspace(*s2)) 1348 s2++; 1349 if (*s1 > *s2) 1350 return 1; 1351 if (*s1 < *s2) 1352 return -1; 1353 s1++; 1354 s2++; 1355 } 1356 return 0; 1357 } 1358 1359 static struct ssif_addr_info *ssif_info_find(unsigned short addr, 1360 char *adapter_name, 1361 bool match_null_name) 1362 { 1363 struct ssif_addr_info *info, *found = NULL; 1364 1365 restart: 1366 list_for_each_entry(info, &ssif_infos, link) { 1367 if (info->binfo.addr == addr) { 1368 if (info->adapter_name || adapter_name) { 1369 if (!info->adapter_name != !adapter_name) { 1370 /* One is NULL and one is not */ 1371 continue; 1372 } 1373 if (adapter_name && 1374 strcmp_nospace(info->adapter_name, 1375 adapter_name)) 1376 /* Names do not match */ 1377 continue; 1378 } 1379 found = info; 1380 break; 1381 } 1382 } 1383 1384 if (!found && match_null_name) { 1385 /* Try to get an exact match first, then try with a NULL name */ 1386 adapter_name = NULL; 1387 match_null_name = false; 1388 goto restart; 1389 } 1390 1391 return found; 1392 } 1393 1394 static bool check_acpi(struct ssif_info *ssif_info, struct device *dev) 1395 { 1396 #ifdef CONFIG_ACPI 1397 acpi_handle acpi_handle; 1398 1399 acpi_handle = ACPI_HANDLE(dev); 1400 if (acpi_handle) { 1401 ssif_info->addr_source = SI_ACPI; 1402 ssif_info->addr_info.acpi_info.acpi_handle = acpi_handle; 1403 return true; 1404 } 1405 #endif 1406 return false; 1407 } 1408 1409 /* 1410 * Global enables we care about. 1411 */ 1412 #define GLOBAL_ENABLES_MASK (IPMI_BMC_EVT_MSG_BUFF | IPMI_BMC_RCV_MSG_INTR | \ 1413 IPMI_BMC_EVT_MSG_INTR) 1414 1415 static int ssif_probe(struct i2c_client *client, const struct i2c_device_id *id) 1416 { 1417 unsigned char msg[3]; 1418 unsigned char *resp; 1419 struct ssif_info *ssif_info; 1420 int rv = 0; 1421 int len; 1422 int i; 1423 u8 slave_addr = 0; 1424 struct ssif_addr_info *addr_info = NULL; 1425 1426 1427 resp = kmalloc(IPMI_MAX_MSG_LENGTH, GFP_KERNEL); 1428 if (!resp) 1429 return -ENOMEM; 1430 1431 ssif_info = kzalloc(sizeof(*ssif_info), GFP_KERNEL); 1432 if (!ssif_info) { 1433 kfree(resp); 1434 return -ENOMEM; 1435 } 1436 1437 if (!check_acpi(ssif_info, &client->dev)) { 1438 addr_info = ssif_info_find(client->addr, client->adapter->name, 1439 true); 1440 if (!addr_info) { 1441 /* Must have come in through sysfs. */ 1442 ssif_info->addr_source = SI_HOTMOD; 1443 } else { 1444 ssif_info->addr_source = addr_info->addr_src; 1445 ssif_info->ssif_debug = addr_info->debug; 1446 ssif_info->addr_info = addr_info->addr_info; 1447 slave_addr = addr_info->slave_addr; 1448 } 1449 } 1450 1451 pr_info(PFX "Trying %s-specified SSIF interface at i2c address 0x%x, adapter %s, slave address 0x%x\n", 1452 ipmi_addr_src_to_str(ssif_info->addr_source), 1453 client->addr, client->adapter->name, slave_addr); 1454 1455 /* 1456 * Do a Get Device ID command, since it comes back with some 1457 * useful info. 1458 */ 1459 msg[0] = IPMI_NETFN_APP_REQUEST << 2; 1460 msg[1] = IPMI_GET_DEVICE_ID_CMD; 1461 rv = do_cmd(client, 2, msg, &len, resp); 1462 if (rv) 1463 goto out; 1464 1465 rv = ipmi_demangle_device_id(resp, len, &ssif_info->device_id); 1466 if (rv) 1467 goto out; 1468 1469 ssif_info->client = client; 1470 i2c_set_clientdata(client, ssif_info); 1471 1472 /* Now check for system interface capabilities */ 1473 msg[0] = IPMI_NETFN_APP_REQUEST << 2; 1474 msg[1] = IPMI_GET_SYSTEM_INTERFACE_CAPABILITIES_CMD; 1475 msg[2] = 0; /* SSIF */ 1476 rv = do_cmd(client, 3, msg, &len, resp); 1477 if (!rv && (len >= 3) && (resp[2] == 0)) { 1478 if (len < 7) { 1479 if (ssif_dbg_probe) 1480 pr_info(PFX "SSIF info too short: %d\n", len); 1481 goto no_support; 1482 } 1483 1484 /* Got a good SSIF response, handle it. */ 1485 ssif_info->max_xmit_msg_size = resp[5]; 1486 ssif_info->max_recv_msg_size = resp[6]; 1487 ssif_info->multi_support = (resp[4] >> 6) & 0x3; 1488 ssif_info->supports_pec = (resp[4] >> 3) & 0x1; 1489 1490 /* Sanitize the data */ 1491 switch (ssif_info->multi_support) { 1492 case SSIF_NO_MULTI: 1493 if (ssif_info->max_xmit_msg_size > 32) 1494 ssif_info->max_xmit_msg_size = 32; 1495 if (ssif_info->max_recv_msg_size > 32) 1496 ssif_info->max_recv_msg_size = 32; 1497 break; 1498 1499 case SSIF_MULTI_2_PART: 1500 if (ssif_info->max_xmit_msg_size > 63) 1501 ssif_info->max_xmit_msg_size = 63; 1502 if (ssif_info->max_recv_msg_size > 62) 1503 ssif_info->max_recv_msg_size = 62; 1504 break; 1505 1506 case SSIF_MULTI_n_PART: 1507 /* 1508 * The specification is rather confusing at 1509 * this point, but I think I understand what 1510 * is meant. At least I have a workable 1511 * solution. With multi-part messages, you 1512 * cannot send a message that is a multiple of 1513 * 32-bytes in length, because the start and 1514 * middle messages are 32-bytes and the end 1515 * message must be at least one byte. You 1516 * can't fudge on an extra byte, that would 1517 * screw up things like fru data writes. So 1518 * we limit the length to 63 bytes. That way 1519 * a 32-byte message gets sent as a single 1520 * part. A larger message will be a 32-byte 1521 * start and the next message is always going 1522 * to be 1-31 bytes in length. Not ideal, but 1523 * it should work. 1524 */ 1525 if (ssif_info->max_xmit_msg_size > 63) 1526 ssif_info->max_xmit_msg_size = 63; 1527 break; 1528 1529 default: 1530 /* Data is not sane, just give up. */ 1531 goto no_support; 1532 } 1533 } else { 1534 no_support: 1535 /* Assume no multi-part or PEC support */ 1536 pr_info(PFX "Error fetching SSIF: %d %d %2.2x, your system probably doesn't support this command so using defaults\n", 1537 rv, len, resp[2]); 1538 1539 ssif_info->max_xmit_msg_size = 32; 1540 ssif_info->max_recv_msg_size = 32; 1541 ssif_info->multi_support = SSIF_NO_MULTI; 1542 ssif_info->supports_pec = 0; 1543 } 1544 1545 /* Make sure the NMI timeout is cleared. */ 1546 msg[0] = IPMI_NETFN_APP_REQUEST << 2; 1547 msg[1] = IPMI_CLEAR_MSG_FLAGS_CMD; 1548 msg[2] = WDT_PRE_TIMEOUT_INT; 1549 rv = do_cmd(client, 3, msg, &len, resp); 1550 if (rv || (len < 3) || (resp[2] != 0)) 1551 pr_warn(PFX "Unable to clear message flags: %d %d %2.2x\n", 1552 rv, len, resp[2]); 1553 1554 /* Attempt to enable the event buffer. */ 1555 msg[0] = IPMI_NETFN_APP_REQUEST << 2; 1556 msg[1] = IPMI_GET_BMC_GLOBAL_ENABLES_CMD; 1557 rv = do_cmd(client, 2, msg, &len, resp); 1558 if (rv || (len < 4) || (resp[2] != 0)) { 1559 pr_warn(PFX "Error getting global enables: %d %d %2.2x\n", 1560 rv, len, resp[2]); 1561 rv = 0; /* Not fatal */ 1562 goto found; 1563 } 1564 1565 ssif_info->global_enables = resp[3]; 1566 1567 if (resp[3] & IPMI_BMC_EVT_MSG_BUFF) { 1568 ssif_info->has_event_buffer = true; 1569 /* buffer is already enabled, nothing to do. */ 1570 goto found; 1571 } 1572 1573 msg[0] = IPMI_NETFN_APP_REQUEST << 2; 1574 msg[1] = IPMI_SET_BMC_GLOBAL_ENABLES_CMD; 1575 msg[2] = ssif_info->global_enables | IPMI_BMC_EVT_MSG_BUFF; 1576 rv = do_cmd(client, 3, msg, &len, resp); 1577 if (rv || (len < 2)) { 1578 pr_warn(PFX "Error setting global enables: %d %d %2.2x\n", 1579 rv, len, resp[2]); 1580 rv = 0; /* Not fatal */ 1581 goto found; 1582 } 1583 1584 if (resp[2] == 0) { 1585 /* A successful return means the event buffer is supported. */ 1586 ssif_info->has_event_buffer = true; 1587 ssif_info->global_enables |= IPMI_BMC_EVT_MSG_BUFF; 1588 } 1589 1590 /* Some systems don't behave well if you enable alerts. */ 1591 if (alerts_broken) 1592 goto found; 1593 1594 msg[0] = IPMI_NETFN_APP_REQUEST << 2; 1595 msg[1] = IPMI_SET_BMC_GLOBAL_ENABLES_CMD; 1596 msg[2] = ssif_info->global_enables | IPMI_BMC_RCV_MSG_INTR; 1597 rv = do_cmd(client, 3, msg, &len, resp); 1598 if (rv || (len < 2)) { 1599 pr_warn(PFX "Error setting global enables: %d %d %2.2x\n", 1600 rv, len, resp[2]); 1601 rv = 0; /* Not fatal */ 1602 goto found; 1603 } 1604 1605 if (resp[2] == 0) { 1606 /* A successful return means the alert is supported. */ 1607 ssif_info->supports_alert = true; 1608 ssif_info->global_enables |= IPMI_BMC_RCV_MSG_INTR; 1609 } 1610 1611 found: 1612 ssif_info->intf_num = atomic_inc_return(&next_intf); 1613 1614 if (ssif_dbg_probe) { 1615 pr_info("ssif_probe: i2c_probe found device at i2c address %x\n", 1616 client->addr); 1617 } 1618 1619 spin_lock_init(&ssif_info->lock); 1620 ssif_info->ssif_state = SSIF_NORMAL; 1621 init_timer(&ssif_info->retry_timer); 1622 ssif_info->retry_timer.data = (unsigned long) ssif_info; 1623 ssif_info->retry_timer.function = retry_timeout; 1624 1625 for (i = 0; i < SSIF_NUM_STATS; i++) 1626 atomic_set(&ssif_info->stats[i], 0); 1627 1628 if (ssif_info->supports_pec) 1629 ssif_info->client->flags |= I2C_CLIENT_PEC; 1630 1631 ssif_info->handlers.owner = THIS_MODULE; 1632 ssif_info->handlers.start_processing = ssif_start_processing; 1633 ssif_info->handlers.get_smi_info = get_smi_info; 1634 ssif_info->handlers.sender = sender; 1635 ssif_info->handlers.request_events = request_events; 1636 ssif_info->handlers.inc_usecount = inc_usecount; 1637 ssif_info->handlers.dec_usecount = dec_usecount; 1638 1639 { 1640 unsigned int thread_num; 1641 1642 thread_num = ((ssif_info->client->adapter->nr << 8) | 1643 ssif_info->client->addr); 1644 init_completion(&ssif_info->wake_thread); 1645 ssif_info->thread = kthread_run(ipmi_ssif_thread, ssif_info, 1646 "kssif%4.4x", thread_num); 1647 if (IS_ERR(ssif_info->thread)) { 1648 rv = PTR_ERR(ssif_info->thread); 1649 dev_notice(&ssif_info->client->dev, 1650 "Could not start kernel thread: error %d\n", 1651 rv); 1652 goto out; 1653 } 1654 } 1655 1656 rv = ipmi_register_smi(&ssif_info->handlers, 1657 ssif_info, 1658 &ssif_info->device_id, 1659 &ssif_info->client->dev, 1660 slave_addr); 1661 if (rv) { 1662 pr_err(PFX "Unable to register device: error %d\n", rv); 1663 goto out; 1664 } 1665 1666 rv = ipmi_smi_add_proc_entry(ssif_info->intf, "type", 1667 &smi_type_proc_ops, 1668 ssif_info); 1669 if (rv) { 1670 pr_err(PFX "Unable to create proc entry: %d\n", rv); 1671 goto out_err_unreg; 1672 } 1673 1674 rv = ipmi_smi_add_proc_entry(ssif_info->intf, "ssif_stats", 1675 &smi_stats_proc_ops, 1676 ssif_info); 1677 if (rv) { 1678 pr_err(PFX "Unable to create proc entry: %d\n", rv); 1679 goto out_err_unreg; 1680 } 1681 1682 out: 1683 if (rv) 1684 kfree(ssif_info); 1685 kfree(resp); 1686 return rv; 1687 1688 out_err_unreg: 1689 ipmi_unregister_smi(ssif_info->intf); 1690 goto out; 1691 } 1692 1693 static int ssif_adapter_handler(struct device *adev, void *opaque) 1694 { 1695 struct ssif_addr_info *addr_info = opaque; 1696 1697 if (adev->type != &i2c_adapter_type) 1698 return 0; 1699 1700 i2c_new_device(to_i2c_adapter(adev), &addr_info->binfo); 1701 1702 if (!addr_info->adapter_name) 1703 return 1; /* Only try the first I2C adapter by default. */ 1704 return 0; 1705 } 1706 1707 static int new_ssif_client(int addr, char *adapter_name, 1708 int debug, int slave_addr, 1709 enum ipmi_addr_src addr_src) 1710 { 1711 struct ssif_addr_info *addr_info; 1712 int rv = 0; 1713 1714 mutex_lock(&ssif_infos_mutex); 1715 if (ssif_info_find(addr, adapter_name, false)) { 1716 rv = -EEXIST; 1717 goto out_unlock; 1718 } 1719 1720 addr_info = kzalloc(sizeof(*addr_info), GFP_KERNEL); 1721 if (!addr_info) { 1722 rv = -ENOMEM; 1723 goto out_unlock; 1724 } 1725 1726 if (adapter_name) { 1727 addr_info->adapter_name = kstrdup(adapter_name, GFP_KERNEL); 1728 if (!addr_info->adapter_name) { 1729 kfree(addr_info); 1730 rv = -ENOMEM; 1731 goto out_unlock; 1732 } 1733 } 1734 1735 strncpy(addr_info->binfo.type, DEVICE_NAME, 1736 sizeof(addr_info->binfo.type)); 1737 addr_info->binfo.addr = addr; 1738 addr_info->binfo.platform_data = addr_info; 1739 addr_info->debug = debug; 1740 addr_info->slave_addr = slave_addr; 1741 addr_info->addr_src = addr_src; 1742 1743 list_add_tail(&addr_info->link, &ssif_infos); 1744 1745 if (initialized) 1746 i2c_for_each_dev(addr_info, ssif_adapter_handler); 1747 /* Otherwise address list will get it */ 1748 1749 out_unlock: 1750 mutex_unlock(&ssif_infos_mutex); 1751 return rv; 1752 } 1753 1754 static void free_ssif_clients(void) 1755 { 1756 struct ssif_addr_info *info, *tmp; 1757 1758 mutex_lock(&ssif_infos_mutex); 1759 list_for_each_entry_safe(info, tmp, &ssif_infos, link) { 1760 list_del(&info->link); 1761 kfree(info->adapter_name); 1762 kfree(info); 1763 } 1764 mutex_unlock(&ssif_infos_mutex); 1765 } 1766 1767 static unsigned short *ssif_address_list(void) 1768 { 1769 struct ssif_addr_info *info; 1770 unsigned int count = 0, i; 1771 unsigned short *address_list; 1772 1773 list_for_each_entry(info, &ssif_infos, link) 1774 count++; 1775 1776 address_list = kzalloc(sizeof(*address_list) * (count + 1), GFP_KERNEL); 1777 if (!address_list) 1778 return NULL; 1779 1780 i = 0; 1781 list_for_each_entry(info, &ssif_infos, link) { 1782 unsigned short addr = info->binfo.addr; 1783 int j; 1784 1785 for (j = 0; j < i; j++) { 1786 if (address_list[j] == addr) 1787 goto skip_addr; 1788 } 1789 address_list[i] = addr; 1790 skip_addr: 1791 i++; 1792 } 1793 address_list[i] = I2C_CLIENT_END; 1794 1795 return address_list; 1796 } 1797 1798 #ifdef CONFIG_ACPI 1799 static const struct acpi_device_id ssif_acpi_match[] = { 1800 { "IPI0001", 0 }, 1801 { }, 1802 }; 1803 MODULE_DEVICE_TABLE(acpi, ssif_acpi_match); 1804 1805 /* 1806 * Once we get an ACPI failure, we don't try any more, because we go 1807 * through the tables sequentially. Once we don't find a table, there 1808 * are no more. 1809 */ 1810 static int acpi_failure; 1811 1812 /* 1813 * Defined in the IPMI 2.0 spec. 1814 */ 1815 struct SPMITable { 1816 s8 Signature[4]; 1817 u32 Length; 1818 u8 Revision; 1819 u8 Checksum; 1820 s8 OEMID[6]; 1821 s8 OEMTableID[8]; 1822 s8 OEMRevision[4]; 1823 s8 CreatorID[4]; 1824 s8 CreatorRevision[4]; 1825 u8 InterfaceType; 1826 u8 IPMIlegacy; 1827 s16 SpecificationRevision; 1828 1829 /* 1830 * Bit 0 - SCI interrupt supported 1831 * Bit 1 - I/O APIC/SAPIC 1832 */ 1833 u8 InterruptType; 1834 1835 /* 1836 * If bit 0 of InterruptType is set, then this is the SCI 1837 * interrupt in the GPEx_STS register. 1838 */ 1839 u8 GPE; 1840 1841 s16 Reserved; 1842 1843 /* 1844 * If bit 1 of InterruptType is set, then this is the I/O 1845 * APIC/SAPIC interrupt. 1846 */ 1847 u32 GlobalSystemInterrupt; 1848 1849 /* The actual register address. */ 1850 struct acpi_generic_address addr; 1851 1852 u8 UID[4]; 1853 1854 s8 spmi_id[1]; /* A '\0' terminated array starts here. */ 1855 }; 1856 1857 static int try_init_spmi(struct SPMITable *spmi) 1858 { 1859 unsigned short myaddr; 1860 1861 if (num_addrs >= MAX_SSIF_BMCS) 1862 return -1; 1863 1864 if (spmi->IPMIlegacy != 1) { 1865 pr_warn("IPMI: Bad SPMI legacy: %d\n", spmi->IPMIlegacy); 1866 return -ENODEV; 1867 } 1868 1869 if (spmi->InterfaceType != 4) 1870 return -ENODEV; 1871 1872 if (spmi->addr.space_id != ACPI_ADR_SPACE_SMBUS) { 1873 pr_warn(PFX "Invalid ACPI SSIF I/O Address type: %d\n", 1874 spmi->addr.space_id); 1875 return -EIO; 1876 } 1877 1878 myaddr = spmi->addr.address >> 1; 1879 1880 return new_ssif_client(myaddr, NULL, 0, 0, SI_SPMI); 1881 } 1882 1883 static void spmi_find_bmc(void) 1884 { 1885 acpi_status status; 1886 struct SPMITable *spmi; 1887 int i; 1888 1889 if (acpi_disabled) 1890 return; 1891 1892 if (acpi_failure) 1893 return; 1894 1895 for (i = 0; ; i++) { 1896 status = acpi_get_table(ACPI_SIG_SPMI, i+1, 1897 (struct acpi_table_header **)&spmi); 1898 if (status != AE_OK) 1899 return; 1900 1901 try_init_spmi(spmi); 1902 } 1903 } 1904 #else 1905 static void spmi_find_bmc(void) { } 1906 #endif 1907 1908 #ifdef CONFIG_DMI 1909 static int decode_dmi(const struct dmi_device *dmi_dev) 1910 { 1911 struct dmi_header *dm = dmi_dev->device_data; 1912 u8 *data = (u8 *) dm; 1913 u8 len = dm->length; 1914 unsigned short myaddr; 1915 int slave_addr; 1916 1917 if (num_addrs >= MAX_SSIF_BMCS) 1918 return -1; 1919 1920 if (len < 9) 1921 return -1; 1922 1923 if (data[0x04] != 4) /* Not SSIF */ 1924 return -1; 1925 1926 if ((data[8] >> 1) == 0) { 1927 /* 1928 * Some broken systems put the I2C address in 1929 * the slave address field. We try to 1930 * accommodate them here. 1931 */ 1932 myaddr = data[6] >> 1; 1933 slave_addr = 0; 1934 } else { 1935 myaddr = data[8] >> 1; 1936 slave_addr = data[6]; 1937 } 1938 1939 return new_ssif_client(myaddr, NULL, 0, 0, SI_SMBIOS); 1940 } 1941 1942 static void dmi_iterator(void) 1943 { 1944 const struct dmi_device *dev = NULL; 1945 1946 while ((dev = dmi_find_device(DMI_DEV_TYPE_IPMI, NULL, dev))) 1947 decode_dmi(dev); 1948 } 1949 #else 1950 static void dmi_iterator(void) { } 1951 #endif 1952 1953 static const struct i2c_device_id ssif_id[] = { 1954 { DEVICE_NAME, 0 }, 1955 { } 1956 }; 1957 MODULE_DEVICE_TABLE(i2c, ssif_id); 1958 1959 static struct i2c_driver ssif_i2c_driver = { 1960 .class = I2C_CLASS_HWMON, 1961 .driver = { 1962 .name = DEVICE_NAME 1963 }, 1964 .probe = ssif_probe, 1965 .remove = ssif_remove, 1966 .alert = ssif_alert, 1967 .id_table = ssif_id, 1968 .detect = ssif_detect 1969 }; 1970 1971 static int init_ipmi_ssif(void) 1972 { 1973 int i; 1974 int rv; 1975 1976 if (initialized) 1977 return 0; 1978 1979 pr_info("IPMI SSIF Interface driver\n"); 1980 1981 /* build list for i2c from addr list */ 1982 for (i = 0; i < num_addrs; i++) { 1983 rv = new_ssif_client(addr[i], adapter_name[i], 1984 dbg[i], slave_addrs[i], 1985 SI_HARDCODED); 1986 if (rv) 1987 pr_err(PFX 1988 "Couldn't add hardcoded device at addr 0x%x\n", 1989 addr[i]); 1990 } 1991 1992 if (ssif_tryacpi) 1993 ssif_i2c_driver.driver.acpi_match_table = 1994 ACPI_PTR(ssif_acpi_match); 1995 if (ssif_trydmi) 1996 dmi_iterator(); 1997 if (ssif_tryacpi) 1998 spmi_find_bmc(); 1999 2000 ssif_i2c_driver.address_list = ssif_address_list(); 2001 2002 rv = i2c_add_driver(&ssif_i2c_driver); 2003 if (!rv) 2004 initialized = true; 2005 2006 return rv; 2007 } 2008 module_init(init_ipmi_ssif); 2009 2010 static void cleanup_ipmi_ssif(void) 2011 { 2012 if (!initialized) 2013 return; 2014 2015 initialized = false; 2016 2017 i2c_del_driver(&ssif_i2c_driver); 2018 2019 free_ssif_clients(); 2020 } 2021 module_exit(cleanup_ipmi_ssif); 2022 2023 MODULE_AUTHOR("Todd C Davis <todd.c.davis@intel.com>, Corey Minyard <minyard@acm.org>"); 2024 MODULE_DESCRIPTION("IPMI driver for management controllers on a SMBus"); 2025 MODULE_LICENSE("GPL"); 2026