1 // SPDX-License-Identifier: GPL-2.0+ 2 /* 3 * ipmi_si.c 4 * 5 * The interface to the IPMI driver for the system interfaces (KCS, SMIC, 6 * BT). 7 * 8 * Author: MontaVista Software, Inc. 9 * Corey Minyard <minyard@mvista.com> 10 * source@mvista.com 11 * 12 * Copyright 2002 MontaVista Software Inc. 13 * Copyright 2006 IBM Corp., Christian Krafft <krafft@de.ibm.com> 14 */ 15 16 /* 17 * This file holds the "policy" for the interface to the SMI state 18 * machine. It does the configuration, handles timers and interrupts, 19 * and drives the real SMI state machine. 20 */ 21 22 #define pr_fmt(fmt) "ipmi_si: " fmt 23 24 #include <linux/module.h> 25 #include <linux/moduleparam.h> 26 #include <linux/sched.h> 27 #include <linux/seq_file.h> 28 #include <linux/timer.h> 29 #include <linux/errno.h> 30 #include <linux/spinlock.h> 31 #include <linux/slab.h> 32 #include <linux/delay.h> 33 #include <linux/list.h> 34 #include <linux/notifier.h> 35 #include <linux/mutex.h> 36 #include <linux/kthread.h> 37 #include <asm/irq.h> 38 #include <linux/interrupt.h> 39 #include <linux/rcupdate.h> 40 #include <linux/ipmi.h> 41 #include <linux/ipmi_smi.h> 42 #include <linux/workqueue.h> 43 #include "ipmi_si.h" 44 #include "ipmi_si_sm.h" 45 #include <linux/string.h> 46 #include <linux/ctype.h> 47 48 /* Measure times between events in the driver. */ 49 #undef DEBUG_TIMING 50 51 /* Call every 10 ms. */ 52 #define SI_TIMEOUT_TIME_USEC 10000 53 #define SI_USEC_PER_JIFFY (1000000/HZ) 54 #define SI_TIMEOUT_JIFFIES (SI_TIMEOUT_TIME_USEC/SI_USEC_PER_JIFFY) 55 #define SI_SHORT_TIMEOUT_USEC 250 /* .25ms when the SM request a 56 short timeout */ 57 #define SI_TIMEOUT_HOSED (HZ) /* 1 second when in hosed state. */ 58 59 enum si_intf_state { 60 SI_NORMAL, 61 SI_GETTING_FLAGS, 62 SI_GETTING_EVENTS, 63 SI_CLEARING_FLAGS, 64 SI_GETTING_MESSAGES, 65 SI_CHECKING_ENABLES, 66 SI_SETTING_ENABLES, 67 SI_HOSED 68 /* FIXME - add watchdog stuff. */ 69 }; 70 71 /* Some BT-specific defines we need here. */ 72 #define IPMI_BT_INTMASK_REG 2 73 #define IPMI_BT_INTMASK_CLEAR_IRQ_BIT 2 74 #define IPMI_BT_INTMASK_ENABLE_IRQ_BIT 1 75 76 /* 'invalid' to allow a firmware-specified interface to be disabled */ 77 const char *const si_to_str[] = { "invalid", "kcs", "smic", "bt", NULL }; 78 79 const struct ipmi_match_info ipmi_kcs_si_info = { .type = SI_KCS }; 80 const struct ipmi_match_info ipmi_smic_si_info = { .type = SI_SMIC }; 81 const struct ipmi_match_info ipmi_bt_si_info = { .type = SI_BT }; 82 83 static bool initialized; 84 85 /* 86 * Indexes into stats[] in smi_info below. 87 */ 88 enum si_stat_indexes { 89 /* 90 * Number of times the driver requested a timer while an operation 91 * was in progress. 92 */ 93 SI_STAT_short_timeouts = 0, 94 95 /* 96 * Number of times the driver requested a timer while nothing was in 97 * progress. 98 */ 99 SI_STAT_long_timeouts, 100 101 /* Number of times the interface was idle while being polled. */ 102 SI_STAT_idles, 103 104 /* Number of interrupts the driver handled. */ 105 SI_STAT_interrupts, 106 107 /* Number of time the driver got an ATTN from the hardware. */ 108 SI_STAT_attentions, 109 110 /* Number of times the driver requested flags from the hardware. */ 111 SI_STAT_flag_fetches, 112 113 /* Number of times the hardware didn't follow the state machine. */ 114 SI_STAT_hosed_count, 115 116 /* Number of completed messages. */ 117 SI_STAT_complete_transactions, 118 119 /* Number of IPMI events received from the hardware. */ 120 SI_STAT_events, 121 122 /* Number of watchdog pretimeouts. */ 123 SI_STAT_watchdog_pretimeouts, 124 125 /* Number of asynchronous messages received. */ 126 SI_STAT_incoming_messages, 127 128 129 /* This *must* remain last, add new values above this. */ 130 SI_NUM_STATS 131 }; 132 133 struct smi_info { 134 int si_num; 135 struct ipmi_smi *intf; 136 struct si_sm_data *si_sm; 137 const struct si_sm_handlers *handlers; 138 spinlock_t si_lock; 139 struct ipmi_smi_msg *waiting_msg; 140 struct ipmi_smi_msg *curr_msg; 141 enum si_intf_state si_state; 142 143 /* 144 * Used to handle the various types of I/O that can occur with 145 * IPMI 146 */ 147 struct si_sm_io io; 148 149 /* 150 * Per-OEM handler, called from handle_flags(). Returns 1 151 * when handle_flags() needs to be re-run or 0 indicating it 152 * set si_state itself. 153 */ 154 int (*oem_data_avail_handler)(struct smi_info *smi_info); 155 156 /* 157 * Flags from the last GET_MSG_FLAGS command, used when an ATTN 158 * is set to hold the flags until we are done handling everything 159 * from the flags. 160 */ 161 #define RECEIVE_MSG_AVAIL 0x01 162 #define EVENT_MSG_BUFFER_FULL 0x02 163 #define WDT_PRE_TIMEOUT_INT 0x08 164 #define OEM0_DATA_AVAIL 0x20 165 #define OEM1_DATA_AVAIL 0x40 166 #define OEM2_DATA_AVAIL 0x80 167 #define OEM_DATA_AVAIL (OEM0_DATA_AVAIL | \ 168 OEM1_DATA_AVAIL | \ 169 OEM2_DATA_AVAIL) 170 unsigned char msg_flags; 171 172 /* When requesting events and messages, don't do it forever. */ 173 unsigned int num_requests_in_a_row; 174 bool last_was_flag_fetch; 175 176 /* Does the BMC have an event buffer? */ 177 bool has_event_buffer; 178 179 /* 180 * If set to true, this will request events the next time the 181 * state machine is idle. 182 */ 183 atomic_t req_events; 184 185 /* 186 * If true, run the state machine to completion on every send 187 * call. Generally used after a panic to make sure stuff goes 188 * out. 189 */ 190 bool run_to_completion; 191 192 /* The timer for this si. */ 193 struct timer_list si_timer; 194 195 /* This flag is set, if the timer can be set */ 196 bool timer_can_start; 197 198 /* This flag is set, if the timer is running (timer_pending() isn't enough) */ 199 bool timer_running; 200 201 /* The time (in jiffies) the last timeout occurred at. */ 202 unsigned long last_timeout_jiffies; 203 204 /* Are we waiting for the events, pretimeouts, received msgs? */ 205 atomic_t need_watch; 206 207 /* 208 * The driver will disable interrupts when it gets into a 209 * situation where it cannot handle messages due to lack of 210 * memory. Once that situation clears up, it will re-enable 211 * interrupts. 212 */ 213 bool interrupt_disabled; 214 215 /* 216 * Does the BMC support events? 217 */ 218 bool supports_event_msg_buff; 219 220 /* 221 * Can we disable interrupts the global enables receive irq 222 * bit? There are currently two forms of brokenness, some 223 * systems cannot disable the bit (which is technically within 224 * the spec but a bad idea) and some systems have the bit 225 * forced to zero even though interrupts work (which is 226 * clearly outside the spec). The next bool tells which form 227 * of brokenness is present. 228 */ 229 bool cannot_disable_irq; 230 231 /* 232 * Some systems are broken and cannot set the irq enable 233 * bit, even if they support interrupts. 234 */ 235 bool irq_enable_broken; 236 237 /* Is the driver in maintenance mode? */ 238 bool in_maintenance_mode; 239 240 /* 241 * Did we get an attention that we did not handle? 242 */ 243 bool got_attn; 244 245 /* From the get device id response... */ 246 struct ipmi_device_id device_id; 247 248 /* Have we added the device group to the device? */ 249 bool dev_group_added; 250 251 /* Counters and things for the proc filesystem. */ 252 atomic_t stats[SI_NUM_STATS]; 253 254 struct task_struct *thread; 255 256 struct work_struct init_work; 257 258 struct list_head link; 259 }; 260 261 #define smi_inc_stat(smi, stat) \ 262 atomic_inc(&(smi)->stats[SI_STAT_ ## stat]) 263 #define smi_get_stat(smi, stat) \ 264 ((unsigned int) atomic_read(&(smi)->stats[SI_STAT_ ## stat])) 265 266 #define IPMI_MAX_INTFS 4 267 static int force_kipmid[IPMI_MAX_INTFS]; 268 static int num_force_kipmid; 269 270 static unsigned int kipmid_max_busy_us[IPMI_MAX_INTFS]; 271 static int num_max_busy_us; 272 273 static bool unload_when_empty = true; 274 275 static int try_smi_init(struct smi_info *smi); 276 static void cleanup_one_si(struct smi_info *smi_info); 277 static void cleanup_ipmi_si(void); 278 static void smi_init_work_fn(struct work_struct *work); 279 280 #ifdef DEBUG_TIMING 281 void debug_timestamp(struct smi_info *smi_info, char *msg) 282 { 283 struct timespec64 t; 284 285 ktime_get_ts64(&t); 286 dev_dbg(smi_info->io.dev, "**%s: %ptSp\n", msg, &t); 287 } 288 #else 289 #define debug_timestamp(smi_info, x) 290 #endif 291 292 static ATOMIC_NOTIFIER_HEAD(xaction_notifier_list); 293 static int register_xaction_notifier(struct notifier_block *nb) 294 { 295 return atomic_notifier_chain_register(&xaction_notifier_list, nb); 296 } 297 298 static void deliver_recv_msg(struct smi_info *smi_info, 299 struct ipmi_smi_msg *msg) 300 { 301 /* Deliver the message to the upper layer. */ 302 ipmi_smi_msg_received(smi_info->intf, msg); 303 } 304 305 static void return_hosed_msg(struct smi_info *smi_info, int cCode) 306 { 307 struct ipmi_smi_msg *msg = smi_info->curr_msg; 308 309 if (cCode < 0 || cCode > IPMI_ERR_UNSPECIFIED) 310 cCode = IPMI_ERR_UNSPECIFIED; 311 /* else use it as is */ 312 313 /* Make it a response */ 314 msg->rsp[0] = msg->data[0] | 4; 315 msg->rsp[1] = msg->data[1]; 316 msg->rsp[2] = cCode; 317 msg->rsp_size = 3; 318 319 smi_info->curr_msg = NULL; 320 deliver_recv_msg(smi_info, msg); 321 } 322 323 static enum si_sm_result start_next_msg(struct smi_info *smi_info) 324 { 325 int rv; 326 327 if (!smi_info->waiting_msg) { 328 smi_info->curr_msg = NULL; 329 rv = SI_SM_IDLE; 330 } else { 331 int err; 332 333 smi_info->curr_msg = smi_info->waiting_msg; 334 smi_info->waiting_msg = NULL; 335 debug_timestamp(smi_info, "Start2"); 336 err = atomic_notifier_call_chain(&xaction_notifier_list, 337 0, smi_info); 338 if (err & NOTIFY_STOP_MASK) { 339 rv = SI_SM_CALL_WITHOUT_DELAY; 340 goto out; 341 } 342 err = smi_info->handlers->start_transaction( 343 smi_info->si_sm, 344 smi_info->curr_msg->data, 345 smi_info->curr_msg->data_size); 346 if (err) 347 return_hosed_msg(smi_info, err); 348 349 rv = SI_SM_CALL_WITHOUT_DELAY; 350 } 351 out: 352 return rv; 353 } 354 355 static void smi_mod_timer(struct smi_info *smi_info, unsigned long new_val) 356 { 357 if (!smi_info->timer_can_start) 358 return; 359 smi_info->last_timeout_jiffies = jiffies; 360 mod_timer(&smi_info->si_timer, new_val); 361 smi_info->timer_running = true; 362 } 363 364 /* 365 * Start a new message and (re)start the timer and thread. 366 */ 367 static void start_new_msg(struct smi_info *smi_info, unsigned char *msg, 368 unsigned int size) 369 { 370 smi_mod_timer(smi_info, jiffies + SI_TIMEOUT_JIFFIES); 371 372 if (smi_info->thread) 373 wake_up_process(smi_info->thread); 374 375 smi_info->handlers->start_transaction(smi_info->si_sm, msg, size); 376 } 377 378 static void start_check_enables(struct smi_info *smi_info) 379 { 380 unsigned char msg[2]; 381 382 msg[0] = (IPMI_NETFN_APP_REQUEST << 2); 383 msg[1] = IPMI_GET_BMC_GLOBAL_ENABLES_CMD; 384 385 start_new_msg(smi_info, msg, 2); 386 smi_info->si_state = SI_CHECKING_ENABLES; 387 } 388 389 static void start_clear_flags(struct smi_info *smi_info) 390 { 391 unsigned char msg[3]; 392 393 /* Make sure the watchdog pre-timeout flag is not set at startup. */ 394 msg[0] = (IPMI_NETFN_APP_REQUEST << 2); 395 msg[1] = IPMI_CLEAR_MSG_FLAGS_CMD; 396 msg[2] = WDT_PRE_TIMEOUT_INT; 397 398 start_new_msg(smi_info, msg, 3); 399 smi_info->si_state = SI_CLEARING_FLAGS; 400 } 401 402 static void start_get_flags(struct smi_info *smi_info) 403 { 404 unsigned char msg[2]; 405 406 msg[0] = (IPMI_NETFN_APP_REQUEST << 2); 407 msg[1] = IPMI_GET_MSG_FLAGS_CMD; 408 409 start_new_msg(smi_info, msg, 2); 410 smi_info->si_state = SI_GETTING_FLAGS; 411 } 412 413 static void start_getting_msg_queue(struct smi_info *smi_info) 414 { 415 smi_info->curr_msg->data[0] = (IPMI_NETFN_APP_REQUEST << 2); 416 smi_info->curr_msg->data[1] = IPMI_GET_MSG_CMD; 417 smi_info->curr_msg->data_size = 2; 418 419 start_new_msg(smi_info, smi_info->curr_msg->data, 420 smi_info->curr_msg->data_size); 421 if (smi_info->si_state != SI_GETTING_MESSAGES) { 422 smi_info->num_requests_in_a_row = 0; 423 smi_info->si_state = SI_GETTING_MESSAGES; 424 } 425 } 426 427 static void start_getting_events(struct smi_info *smi_info) 428 { 429 smi_info->curr_msg->data[0] = (IPMI_NETFN_APP_REQUEST << 2); 430 smi_info->curr_msg->data[1] = IPMI_READ_EVENT_MSG_BUFFER_CMD; 431 smi_info->curr_msg->data_size = 2; 432 433 start_new_msg(smi_info, smi_info->curr_msg->data, 434 smi_info->curr_msg->data_size); 435 if (smi_info->si_state != SI_GETTING_EVENTS) { 436 smi_info->num_requests_in_a_row = 0; 437 smi_info->si_state = SI_GETTING_EVENTS; 438 } 439 } 440 441 /* 442 * When we have a situtaion where we run out of memory and cannot 443 * allocate messages, we just leave them in the BMC and run the system 444 * polled until we can allocate some memory. Once we have some 445 * memory, we will re-enable the interrupt. 446 * 447 * Note that we cannot just use disable_irq(), since the interrupt may 448 * be shared. 449 */ 450 static inline bool disable_si_irq(struct smi_info *smi_info) 451 { 452 if ((smi_info->io.irq) && (!smi_info->interrupt_disabled)) { 453 smi_info->interrupt_disabled = true; 454 start_check_enables(smi_info); 455 return true; 456 } 457 return false; 458 } 459 460 static inline bool enable_si_irq(struct smi_info *smi_info) 461 { 462 if ((smi_info->io.irq) && (smi_info->interrupt_disabled)) { 463 smi_info->interrupt_disabled = false; 464 start_check_enables(smi_info); 465 return true; 466 } 467 return false; 468 } 469 470 /* 471 * Allocate a message. If unable to allocate, start the interrupt 472 * disable process and return NULL. If able to allocate but 473 * interrupts are disabled, free the message and return NULL after 474 * starting the interrupt enable process. 475 */ 476 static struct ipmi_smi_msg *alloc_msg_handle_irq(struct smi_info *smi_info) 477 { 478 struct ipmi_smi_msg *msg; 479 480 msg = ipmi_alloc_smi_msg(); 481 if (!msg) { 482 if (!disable_si_irq(smi_info)) 483 smi_info->si_state = SI_NORMAL; 484 } else if (enable_si_irq(smi_info)) { 485 ipmi_free_smi_msg(msg); 486 msg = NULL; 487 } 488 return msg; 489 } 490 491 static void handle_flags(struct smi_info *smi_info) 492 { 493 retry: 494 if (smi_info->msg_flags & WDT_PRE_TIMEOUT_INT) { 495 /* Watchdog pre-timeout */ 496 smi_inc_stat(smi_info, watchdog_pretimeouts); 497 498 start_clear_flags(smi_info); 499 smi_info->msg_flags &= ~WDT_PRE_TIMEOUT_INT; 500 ipmi_smi_watchdog_pretimeout(smi_info->intf); 501 } else if (smi_info->msg_flags & RECEIVE_MSG_AVAIL) { 502 /* Messages available. */ 503 smi_info->curr_msg = alloc_msg_handle_irq(smi_info); 504 if (!smi_info->curr_msg) { 505 smi_info->si_state = SI_NORMAL; 506 return; 507 } 508 509 start_getting_msg_queue(smi_info); 510 } else if (smi_info->msg_flags & EVENT_MSG_BUFFER_FULL) { 511 /* Events available. */ 512 smi_info->curr_msg = alloc_msg_handle_irq(smi_info); 513 if (!smi_info->curr_msg) { 514 smi_info->si_state = SI_NORMAL; 515 return; 516 } 517 518 start_getting_events(smi_info); 519 } else if (smi_info->msg_flags & OEM_DATA_AVAIL && 520 smi_info->oem_data_avail_handler) { 521 if (smi_info->oem_data_avail_handler(smi_info)) 522 goto retry; 523 } else 524 smi_info->si_state = SI_NORMAL; 525 } 526 527 /* 528 * Global enables we care about. 529 */ 530 #define GLOBAL_ENABLES_MASK (IPMI_BMC_EVT_MSG_BUFF | IPMI_BMC_RCV_MSG_INTR | \ 531 IPMI_BMC_EVT_MSG_INTR) 532 533 static u8 current_global_enables(struct smi_info *smi_info, u8 base, 534 bool *irq_on) 535 { 536 u8 enables = 0; 537 538 if (smi_info->supports_event_msg_buff) 539 enables |= IPMI_BMC_EVT_MSG_BUFF; 540 541 if (((smi_info->io.irq && !smi_info->interrupt_disabled) || 542 smi_info->cannot_disable_irq) && 543 !smi_info->irq_enable_broken) 544 enables |= IPMI_BMC_RCV_MSG_INTR; 545 546 if (smi_info->supports_event_msg_buff && 547 smi_info->io.irq && !smi_info->interrupt_disabled && 548 !smi_info->irq_enable_broken) 549 enables |= IPMI_BMC_EVT_MSG_INTR; 550 551 *irq_on = enables & (IPMI_BMC_EVT_MSG_INTR | IPMI_BMC_RCV_MSG_INTR); 552 553 return enables; 554 } 555 556 static void check_bt_irq(struct smi_info *smi_info, bool irq_on) 557 { 558 u8 irqstate = smi_info->io.inputb(&smi_info->io, IPMI_BT_INTMASK_REG); 559 560 irqstate &= IPMI_BT_INTMASK_ENABLE_IRQ_BIT; 561 562 if ((bool)irqstate == irq_on) 563 return; 564 565 if (irq_on) 566 smi_info->io.outputb(&smi_info->io, IPMI_BT_INTMASK_REG, 567 IPMI_BT_INTMASK_ENABLE_IRQ_BIT); 568 else 569 smi_info->io.outputb(&smi_info->io, IPMI_BT_INTMASK_REG, 0); 570 } 571 572 static void handle_transaction_done(struct smi_info *smi_info) 573 { 574 struct ipmi_smi_msg *msg; 575 576 debug_timestamp(smi_info, "Done"); 577 switch (smi_info->si_state) { 578 case SI_NORMAL: 579 if (!smi_info->curr_msg) 580 break; 581 582 smi_info->curr_msg->rsp_size 583 = smi_info->handlers->get_result( 584 smi_info->si_sm, 585 smi_info->curr_msg->rsp, 586 IPMI_MAX_MSG_LENGTH); 587 588 /* 589 * Do this here becase deliver_recv_msg() releases the 590 * lock, and a new message can be put in during the 591 * time the lock is released. 592 */ 593 msg = smi_info->curr_msg; 594 smi_info->curr_msg = NULL; 595 deliver_recv_msg(smi_info, msg); 596 break; 597 598 case SI_GETTING_FLAGS: 599 { 600 unsigned char msg[4]; 601 unsigned int len; 602 603 /* We got the flags from the SMI, now handle them. */ 604 len = smi_info->handlers->get_result(smi_info->si_sm, msg, 4); 605 if (msg[2] != 0) { 606 /* Error fetching flags, just give up for now. */ 607 smi_info->si_state = SI_NORMAL; 608 } else if (len < 4) { 609 /* 610 * Hmm, no flags. That's technically illegal, but 611 * don't use uninitialized data. 612 */ 613 smi_info->si_state = SI_NORMAL; 614 } else { 615 smi_info->msg_flags = msg[3]; 616 smi_info->last_was_flag_fetch = true; 617 handle_flags(smi_info); 618 } 619 break; 620 } 621 622 case SI_CLEARING_FLAGS: 623 { 624 unsigned char msg[3]; 625 626 /* We cleared the flags. */ 627 smi_info->handlers->get_result(smi_info->si_sm, msg, 3); 628 if (msg[2] != 0) { 629 /* Error clearing flags */ 630 dev_warn_ratelimited(smi_info->io.dev, 631 "Error clearing flags: %2.2x\n", msg[2]); 632 } 633 smi_info->si_state = SI_NORMAL; 634 break; 635 } 636 637 case SI_GETTING_EVENTS: 638 { 639 smi_info->curr_msg->rsp_size 640 = smi_info->handlers->get_result( 641 smi_info->si_sm, 642 smi_info->curr_msg->rsp, 643 IPMI_MAX_MSG_LENGTH); 644 645 /* 646 * Do this here becase deliver_recv_msg() releases the 647 * lock, and a new message can be put in during the 648 * time the lock is released. 649 */ 650 msg = smi_info->curr_msg; 651 smi_info->curr_msg = NULL; 652 /* 653 * It appears some BMCs, with no event data, return no 654 * data in the message and not a 0x80 error as the 655 * spec says they should. Shut down processing if 656 * the data is not the right length. 657 */ 658 if (msg->rsp[2] != 0 || msg->rsp_size != 19) { 659 /* Error getting event, probably done. */ 660 msg->done(msg); 661 662 /* Take off the event flag. */ 663 smi_info->msg_flags &= ~EVENT_MSG_BUFFER_FULL; 664 handle_flags(smi_info); 665 } else { 666 smi_inc_stat(smi_info, events); 667 668 smi_info->num_requests_in_a_row++; 669 if (smi_info->num_requests_in_a_row > 10) 670 /* Stop if we do this too many times. */ 671 smi_info->msg_flags &= ~EVENT_MSG_BUFFER_FULL; 672 673 /* 674 * Do this before we deliver the message 675 * because delivering the message releases the 676 * lock and something else can mess with the 677 * state. 678 */ 679 handle_flags(smi_info); 680 681 deliver_recv_msg(smi_info, msg); 682 } 683 break; 684 } 685 686 case SI_GETTING_MESSAGES: 687 { 688 smi_info->curr_msg->rsp_size 689 = smi_info->handlers->get_result( 690 smi_info->si_sm, 691 smi_info->curr_msg->rsp, 692 IPMI_MAX_MSG_LENGTH); 693 694 /* 695 * Do this here becase deliver_recv_msg() releases the 696 * lock, and a new message can be put in during the 697 * time the lock is released. 698 */ 699 msg = smi_info->curr_msg; 700 smi_info->curr_msg = NULL; 701 if (msg->rsp[2] != 0) { 702 /* Error getting event, probably done. */ 703 msg->done(msg); 704 705 /* Take off the msg flag. */ 706 smi_info->msg_flags &= ~RECEIVE_MSG_AVAIL; 707 handle_flags(smi_info); 708 } else { 709 smi_inc_stat(smi_info, incoming_messages); 710 711 smi_info->num_requests_in_a_row++; 712 if (smi_info->num_requests_in_a_row > 10) 713 /* Stop if we do this too many times. */ 714 smi_info->msg_flags &= ~RECEIVE_MSG_AVAIL; 715 716 /* 717 * Do this before we deliver the message 718 * because delivering the message releases the 719 * lock and something else can mess with the 720 * state. 721 */ 722 handle_flags(smi_info); 723 724 deliver_recv_msg(smi_info, msg); 725 } 726 break; 727 } 728 729 case SI_CHECKING_ENABLES: 730 { 731 unsigned char msg[4]; 732 u8 enables; 733 bool irq_on; 734 735 /* We got the flags from the SMI, now handle them. */ 736 smi_info->handlers->get_result(smi_info->si_sm, msg, 4); 737 if (msg[2] != 0) { 738 dev_warn_ratelimited(smi_info->io.dev, 739 "Couldn't get irq info: %x,\n" 740 "Maybe ok, but ipmi might run very slowly.\n", 741 msg[2]); 742 smi_info->si_state = SI_NORMAL; 743 break; 744 } 745 enables = current_global_enables(smi_info, 0, &irq_on); 746 if (smi_info->io.si_info->type == SI_BT) 747 /* BT has its own interrupt enable bit. */ 748 check_bt_irq(smi_info, irq_on); 749 if (enables != (msg[3] & GLOBAL_ENABLES_MASK)) { 750 /* Enables are not correct, fix them. */ 751 msg[0] = (IPMI_NETFN_APP_REQUEST << 2); 752 msg[1] = IPMI_SET_BMC_GLOBAL_ENABLES_CMD; 753 msg[2] = enables | (msg[3] & ~GLOBAL_ENABLES_MASK); 754 smi_info->handlers->start_transaction( 755 smi_info->si_sm, msg, 3); 756 smi_info->si_state = SI_SETTING_ENABLES; 757 } else if (smi_info->supports_event_msg_buff) { 758 smi_info->curr_msg = ipmi_alloc_smi_msg(); 759 if (!smi_info->curr_msg) { 760 smi_info->si_state = SI_NORMAL; 761 break; 762 } 763 start_getting_events(smi_info); 764 } else { 765 smi_info->si_state = SI_NORMAL; 766 } 767 break; 768 } 769 770 case SI_SETTING_ENABLES: 771 { 772 unsigned char msg[4]; 773 774 smi_info->handlers->get_result(smi_info->si_sm, msg, 4); 775 if (msg[2] != 0) 776 dev_warn_ratelimited(smi_info->io.dev, 777 "Could not set the global enables: 0x%x.\n", 778 msg[2]); 779 780 if (smi_info->supports_event_msg_buff) { 781 smi_info->curr_msg = ipmi_alloc_smi_msg(); 782 if (!smi_info->curr_msg) { 783 smi_info->si_state = SI_NORMAL; 784 break; 785 } 786 start_getting_events(smi_info); 787 } else { 788 smi_info->si_state = SI_NORMAL; 789 } 790 break; 791 } 792 case SI_HOSED: /* Shouldn't happen. */ 793 break; 794 } 795 } 796 797 /* 798 * Called on timeouts and events. Timeouts should pass the elapsed 799 * time, interrupts should pass in zero. Must be called with 800 * si_lock held and interrupts disabled. 801 */ 802 static enum si_sm_result smi_event_handler(struct smi_info *smi_info, 803 int time) 804 { 805 enum si_sm_result si_sm_result; 806 807 restart: 808 if (smi_info->si_state == SI_HOSED) 809 /* Just in case, hosed state is only left from the timeout. */ 810 return SI_SM_HOSED; 811 812 /* 813 * There used to be a loop here that waited a little while 814 * (around 25us) before giving up. That turned out to be 815 * pointless, the minimum delays I was seeing were in the 300us 816 * range, which is far too long to wait in an interrupt. So 817 * we just run until the state machine tells us something 818 * happened or it needs a delay. 819 */ 820 si_sm_result = smi_info->handlers->event(smi_info->si_sm, time); 821 time = 0; 822 while (si_sm_result == SI_SM_CALL_WITHOUT_DELAY) 823 si_sm_result = smi_info->handlers->event(smi_info->si_sm, 0); 824 825 if (si_sm_result == SI_SM_TRANSACTION_COMPLETE) { 826 smi_inc_stat(smi_info, complete_transactions); 827 828 handle_transaction_done(smi_info); 829 goto restart; 830 } else if (si_sm_result == SI_SM_HOSED) { 831 smi_inc_stat(smi_info, hosed_count); 832 833 /* 834 * Do the before return_hosed_msg, because that 835 * releases the lock. We just disable operations for 836 * a while and retry in hosed state. 837 */ 838 smi_info->si_state = SI_HOSED; 839 if (smi_info->curr_msg != NULL) { 840 /* 841 * If we were handling a user message, format 842 * a response to send to the upper layer to 843 * tell it about the error. 844 */ 845 return_hosed_msg(smi_info, IPMI_BUS_ERR); 846 } 847 if (smi_info->waiting_msg != NULL) { 848 /* Also handle if there was a message waiting. */ 849 smi_info->curr_msg = smi_info->waiting_msg; 850 smi_info->waiting_msg = NULL; 851 return_hosed_msg(smi_info, IPMI_BUS_ERR); 852 } 853 smi_mod_timer(smi_info, jiffies + SI_TIMEOUT_HOSED); 854 goto out; 855 } 856 857 /* 858 * If we are currently idle, or if the last thing that was 859 * done was a flag fetch and there is a message pending, try 860 * to start the next message. 861 * 862 * We do the waiting message check to avoid a stuck flag 863 * completely wedging the driver. Let a message through 864 * in between flag operations if that happens. 865 */ 866 if (si_sm_result == SI_SM_IDLE || 867 (si_sm_result == SI_SM_ATTN && smi_info->waiting_msg && 868 smi_info->last_was_flag_fetch)) { 869 smi_info->last_was_flag_fetch = false; 870 smi_inc_stat(smi_info, idles); 871 872 si_sm_result = start_next_msg(smi_info); 873 if (si_sm_result != SI_SM_IDLE) 874 goto restart; 875 } 876 877 /* 878 * We prefer handling attn over new messages. But don't do 879 * this if there is not yet an upper layer to handle anything. 880 */ 881 if (si_sm_result == SI_SM_ATTN || smi_info->got_attn) { 882 if (smi_info->si_state != SI_NORMAL) { 883 /* 884 * We got an ATTN, but we are doing something else. 885 * Handle the ATTN later. 886 */ 887 smi_info->got_attn = true; 888 } else { 889 smi_info->got_attn = false; 890 smi_inc_stat(smi_info, attentions); 891 892 /* 893 * Got a attn, send down a get message flags to see 894 * what's causing it. It would be better to handle 895 * this in the upper layer, but due to the way 896 * interrupts work with the SMI, that's not really 897 * possible. 898 */ 899 start_get_flags(smi_info); 900 goto restart; 901 } 902 } 903 904 if ((si_sm_result == SI_SM_IDLE) 905 && (atomic_read(&smi_info->req_events))) { 906 /* 907 * We are idle and the upper layer requested that I fetch 908 * events, so do so. 909 */ 910 atomic_set(&smi_info->req_events, 0); 911 912 /* 913 * Take this opportunity to check the interrupt and 914 * message enable state for the BMC. The BMC can be 915 * asynchronously reset, and may thus get interrupts 916 * disable and messages disabled. 917 */ 918 if (smi_info->supports_event_msg_buff || smi_info->io.irq) { 919 start_check_enables(smi_info); 920 } else { 921 smi_info->curr_msg = alloc_msg_handle_irq(smi_info); 922 if (!smi_info->curr_msg) 923 goto out; 924 925 start_getting_events(smi_info); 926 } 927 goto restart; 928 } 929 930 if (si_sm_result == SI_SM_IDLE && smi_info->timer_running) { 931 /* Ok it if fails, the timer will just go off. */ 932 if (timer_delete(&smi_info->si_timer)) 933 smi_info->timer_running = false; 934 } 935 936 out: 937 return si_sm_result; 938 } 939 940 static void check_start_timer_thread(struct smi_info *smi_info) 941 { 942 if (smi_info->si_state == SI_NORMAL && smi_info->curr_msg == NULL) { 943 smi_mod_timer(smi_info, jiffies + SI_TIMEOUT_JIFFIES); 944 945 if (smi_info->thread) 946 wake_up_process(smi_info->thread); 947 948 start_next_msg(smi_info); 949 smi_event_handler(smi_info, 0); 950 } 951 } 952 953 static void flush_messages(void *send_info) 954 { 955 struct smi_info *smi_info = send_info; 956 enum si_sm_result result; 957 958 /* 959 * Currently, this function is called only in run-to-completion 960 * mode. This means we are single-threaded, no need for locks. 961 */ 962 result = smi_event_handler(smi_info, 0); 963 while (result != SI_SM_IDLE && result != SI_SM_HOSED) { 964 udelay(SI_SHORT_TIMEOUT_USEC); 965 result = smi_event_handler(smi_info, SI_SHORT_TIMEOUT_USEC); 966 } 967 } 968 969 static int sender(void *send_info, struct ipmi_smi_msg *msg) 970 { 971 struct smi_info *smi_info = send_info; 972 unsigned long flags; 973 int rv = IPMI_CC_NO_ERROR; 974 975 debug_timestamp(smi_info, "Enqueue"); 976 977 /* 978 * Check here for run to completion mode. A check under lock is 979 * later. 980 */ 981 if (smi_info->si_state == SI_HOSED) 982 return IPMI_BUS_ERR; 983 984 if (smi_info->run_to_completion) { 985 /* 986 * If we are running to completion, start it. Upper 987 * layer will call flush_messages to clear it out. 988 */ 989 smi_info->waiting_msg = msg; 990 return IPMI_CC_NO_ERROR; 991 } 992 993 spin_lock_irqsave(&smi_info->si_lock, flags); 994 if (smi_info->si_state == SI_HOSED) { 995 rv = IPMI_BUS_ERR; 996 } else { 997 BUG_ON(smi_info->waiting_msg); 998 smi_info->waiting_msg = msg; 999 check_start_timer_thread(smi_info); 1000 } 1001 spin_unlock_irqrestore(&smi_info->si_lock, flags); 1002 return rv; 1003 } 1004 1005 static void set_run_to_completion(void *send_info, bool i_run_to_completion) 1006 { 1007 struct smi_info *smi_info = send_info; 1008 1009 smi_info->run_to_completion = i_run_to_completion; 1010 if (i_run_to_completion) 1011 flush_messages(smi_info); 1012 } 1013 1014 /* 1015 * Use -1 as a special constant to tell that we are spinning in kipmid 1016 * looking for something and not delaying between checks 1017 */ 1018 #define IPMI_TIME_NOT_BUSY ns_to_ktime(-1ull) 1019 static inline bool ipmi_thread_busy_wait(enum si_sm_result smi_result, 1020 const struct smi_info *smi_info, 1021 ktime_t *busy_until) 1022 { 1023 unsigned int max_busy_us = 0; 1024 1025 if (smi_info->si_num < num_max_busy_us) 1026 max_busy_us = kipmid_max_busy_us[smi_info->si_num]; 1027 if (max_busy_us == 0 || smi_result != SI_SM_CALL_WITH_DELAY) 1028 *busy_until = IPMI_TIME_NOT_BUSY; 1029 else if (*busy_until == IPMI_TIME_NOT_BUSY) { 1030 *busy_until = ktime_get() + max_busy_us * NSEC_PER_USEC; 1031 } else { 1032 if (unlikely(ktime_get() > *busy_until)) { 1033 *busy_until = IPMI_TIME_NOT_BUSY; 1034 return false; 1035 } 1036 } 1037 return true; 1038 } 1039 1040 1041 /* 1042 * A busy-waiting loop for speeding up IPMI operation. 1043 * 1044 * Lousy hardware makes this hard. This is only enabled for systems 1045 * that are not BT and do not have interrupts. It starts spinning 1046 * when an operation is complete or until max_busy tells it to stop 1047 * (if that is enabled). See the paragraph on kimid_max_busy_us in 1048 * Documentation/driver-api/ipmi.rst for details. 1049 */ 1050 static int ipmi_thread(void *data) 1051 { 1052 struct smi_info *smi_info = data; 1053 unsigned long flags; 1054 enum si_sm_result smi_result; 1055 ktime_t busy_until = IPMI_TIME_NOT_BUSY; 1056 1057 set_user_nice(current, MAX_NICE); 1058 while (!kthread_should_stop()) { 1059 int busy_wait; 1060 1061 spin_lock_irqsave(&(smi_info->si_lock), flags); 1062 smi_result = smi_event_handler(smi_info, 0); 1063 1064 /* 1065 * If the driver is doing something, there is a possible 1066 * race with the timer. If the timer handler see idle, 1067 * and the thread here sees something else, the timer 1068 * handler won't restart the timer even though it is 1069 * required. So start it here if necessary. 1070 */ 1071 if (smi_result != SI_SM_IDLE && !smi_info->timer_running) 1072 smi_mod_timer(smi_info, jiffies + SI_TIMEOUT_JIFFIES); 1073 1074 spin_unlock_irqrestore(&(smi_info->si_lock), flags); 1075 busy_wait = ipmi_thread_busy_wait(smi_result, smi_info, 1076 &busy_until); 1077 if (smi_result == SI_SM_CALL_WITHOUT_DELAY) { 1078 ; /* do nothing */ 1079 } else if (smi_result == SI_SM_CALL_WITH_DELAY && busy_wait) { 1080 /* 1081 * In maintenance mode we run as fast as 1082 * possible to allow firmware updates to 1083 * complete as fast as possible, but normally 1084 * don't bang on the scheduler. 1085 */ 1086 if (smi_info->in_maintenance_mode) 1087 schedule(); 1088 else 1089 usleep_range(100, 200); 1090 } else if (smi_result == SI_SM_IDLE) { 1091 if (atomic_read(&smi_info->need_watch)) { 1092 schedule_timeout_interruptible(100); 1093 } else { 1094 /* Wait to be woken up when we are needed. */ 1095 __set_current_state(TASK_INTERRUPTIBLE); 1096 schedule(); 1097 } 1098 } else { 1099 schedule_timeout_interruptible(1); 1100 } 1101 } 1102 return 0; 1103 } 1104 1105 1106 static void poll(void *send_info) 1107 { 1108 struct smi_info *smi_info = send_info; 1109 unsigned long flags = 0; 1110 bool run_to_completion = smi_info->run_to_completion; 1111 1112 /* 1113 * Make sure there is some delay in the poll loop so we can 1114 * drive time forward and timeout things. 1115 */ 1116 udelay(10); 1117 if (!run_to_completion) 1118 spin_lock_irqsave(&smi_info->si_lock, flags); 1119 smi_event_handler(smi_info, 10); 1120 if (!run_to_completion) 1121 spin_unlock_irqrestore(&smi_info->si_lock, flags); 1122 } 1123 1124 static void request_events(void *send_info) 1125 { 1126 struct smi_info *smi_info = send_info; 1127 1128 if (!smi_info->has_event_buffer) 1129 return; 1130 1131 atomic_set(&smi_info->req_events, 1); 1132 } 1133 1134 static void set_need_watch(void *send_info, unsigned int watch_mask) 1135 { 1136 struct smi_info *smi_info = send_info; 1137 unsigned long flags; 1138 int enable; 1139 1140 enable = !!watch_mask; 1141 1142 atomic_set(&smi_info->need_watch, enable); 1143 spin_lock_irqsave(&smi_info->si_lock, flags); 1144 check_start_timer_thread(smi_info); 1145 spin_unlock_irqrestore(&smi_info->si_lock, flags); 1146 } 1147 1148 static void smi_timeout(struct timer_list *t) 1149 { 1150 struct smi_info *smi_info = timer_container_of(smi_info, t, 1151 si_timer); 1152 enum si_sm_result smi_result; 1153 unsigned long flags; 1154 unsigned long jiffies_now; 1155 long time_diff; 1156 long timeout; 1157 1158 spin_lock_irqsave(&(smi_info->si_lock), flags); 1159 debug_timestamp(smi_info, "Timer"); 1160 1161 if (smi_info->si_state == SI_HOSED) 1162 /* Try something to see if the BMC is now operational. */ 1163 start_get_flags(smi_info); 1164 1165 jiffies_now = jiffies; 1166 time_diff = (((long)jiffies_now - (long)smi_info->last_timeout_jiffies) 1167 * SI_USEC_PER_JIFFY); 1168 smi_result = smi_event_handler(smi_info, time_diff); 1169 1170 if (smi_info->si_state == SI_HOSED) { 1171 timeout = jiffies + SI_TIMEOUT_HOSED; 1172 } else if ((smi_info->io.irq) && (!smi_info->interrupt_disabled)) { 1173 /* Running with interrupts, only do long timeouts. */ 1174 timeout = jiffies + SI_TIMEOUT_JIFFIES; 1175 smi_inc_stat(smi_info, long_timeouts); 1176 } else if (smi_result == SI_SM_CALL_WITH_DELAY) { 1177 /* 1178 * If the state machine asks for a short delay, then shorten 1179 * the timer timeout. 1180 */ 1181 smi_inc_stat(smi_info, short_timeouts); 1182 timeout = jiffies + 1; 1183 } else { 1184 smi_inc_stat(smi_info, long_timeouts); 1185 timeout = jiffies + SI_TIMEOUT_JIFFIES; 1186 } 1187 1188 if (smi_result != SI_SM_IDLE) 1189 smi_mod_timer(smi_info, timeout); 1190 else 1191 smi_info->timer_running = false; 1192 spin_unlock_irqrestore(&(smi_info->si_lock), flags); 1193 } 1194 1195 irqreturn_t ipmi_si_irq_handler(int irq, void *data) 1196 { 1197 struct smi_info *smi_info = data; 1198 unsigned long flags; 1199 1200 if (smi_info->io.si_info->type == SI_BT) 1201 /* We need to clear the IRQ flag for the BT interface. */ 1202 smi_info->io.outputb(&smi_info->io, IPMI_BT_INTMASK_REG, 1203 IPMI_BT_INTMASK_CLEAR_IRQ_BIT 1204 | IPMI_BT_INTMASK_ENABLE_IRQ_BIT); 1205 1206 spin_lock_irqsave(&(smi_info->si_lock), flags); 1207 1208 smi_inc_stat(smi_info, interrupts); 1209 1210 debug_timestamp(smi_info, "Interrupt"); 1211 1212 smi_event_handler(smi_info, 0); 1213 spin_unlock_irqrestore(&(smi_info->si_lock), flags); 1214 return IRQ_HANDLED; 1215 } 1216 1217 static int smi_start_processing(void *send_info, 1218 struct ipmi_smi *intf) 1219 { 1220 struct smi_info *new_smi = send_info; 1221 int enable = 0; 1222 1223 new_smi->intf = intf; 1224 1225 /* Set up the timer that drives the interface. */ 1226 timer_setup(&new_smi->si_timer, smi_timeout, 0); 1227 new_smi->timer_can_start = true; 1228 smi_mod_timer(new_smi, jiffies + SI_TIMEOUT_JIFFIES); 1229 1230 /* Try to claim any interrupts. */ 1231 if (new_smi->io.irq_setup) { 1232 new_smi->io.irq_handler_data = new_smi; 1233 new_smi->io.irq_setup(&new_smi->io); 1234 } 1235 1236 /* 1237 * Check if the user forcefully enabled the daemon. 1238 */ 1239 if (new_smi->si_num < num_force_kipmid) 1240 enable = force_kipmid[new_smi->si_num]; 1241 /* 1242 * The BT interface is efficient enough to not need a thread, 1243 * and there is no need for a thread if we have interrupts. 1244 */ 1245 else if (new_smi->io.si_info->type != SI_BT && !new_smi->io.irq) 1246 enable = 1; 1247 1248 if (enable) { 1249 new_smi->thread = kthread_run(ipmi_thread, new_smi, 1250 "kipmi%d", new_smi->si_num); 1251 if (IS_ERR(new_smi->thread)) { 1252 dev_notice(new_smi->io.dev, 1253 "Could not start kernel thread due to error %ld, only using timers to drive the interface\n", 1254 PTR_ERR(new_smi->thread)); 1255 new_smi->thread = NULL; 1256 } 1257 } 1258 1259 return 0; 1260 } 1261 1262 static int get_smi_info(void *send_info, struct ipmi_smi_info *data) 1263 { 1264 struct smi_info *smi = send_info; 1265 1266 data->addr_src = smi->io.addr_source; 1267 data->dev = smi->io.dev; 1268 data->addr_info = smi->io.addr_info; 1269 get_device(smi->io.dev); 1270 1271 return 0; 1272 } 1273 1274 static void set_maintenance_mode(void *send_info, bool enable) 1275 { 1276 struct smi_info *smi_info = send_info; 1277 1278 if (!enable) 1279 atomic_set(&smi_info->req_events, 0); 1280 smi_info->in_maintenance_mode = enable; 1281 } 1282 1283 static void shutdown_smi(void *send_info); 1284 static const struct ipmi_smi_handlers handlers = { 1285 .owner = THIS_MODULE, 1286 .start_processing = smi_start_processing, 1287 .shutdown = shutdown_smi, 1288 .get_smi_info = get_smi_info, 1289 .sender = sender, 1290 .request_events = request_events, 1291 .set_need_watch = set_need_watch, 1292 .set_maintenance_mode = set_maintenance_mode, 1293 .set_run_to_completion = set_run_to_completion, 1294 .flush_messages = flush_messages, 1295 .poll = poll, 1296 }; 1297 1298 static LIST_HEAD(smi_infos); 1299 static DEFINE_MUTEX(smi_infos_lock); 1300 static int smi_num; /* Used to sequence the SMIs */ 1301 1302 static const char * const addr_space_to_str[] = { "i/o", "mem" }; 1303 1304 module_param_array(force_kipmid, int, &num_force_kipmid, 0); 1305 MODULE_PARM_DESC(force_kipmid, 1306 "Force the kipmi daemon to be enabled (1) or disabled(0). Normally the IPMI driver auto-detects this, but the value may be overridden by this parm."); 1307 module_param(unload_when_empty, bool, 0); 1308 MODULE_PARM_DESC(unload_when_empty, 1309 "Unload the module if no interfaces are specified or found, default is 1. Setting to 0 is useful for hot add of devices using hotmod."); 1310 module_param_array(kipmid_max_busy_us, uint, &num_max_busy_us, 0644); 1311 MODULE_PARM_DESC(kipmid_max_busy_us, 1312 "Max time (in microseconds) to busy-wait for IPMI data before sleeping. 0 (default) means to wait forever. Set to 100-500 if kipmid is using up a lot of CPU time."); 1313 1314 void ipmi_irq_finish_setup(struct si_sm_io *io) 1315 { 1316 if (io->si_info->type == SI_BT) 1317 /* Enable the interrupt in the BT interface. */ 1318 io->outputb(io, IPMI_BT_INTMASK_REG, 1319 IPMI_BT_INTMASK_ENABLE_IRQ_BIT); 1320 } 1321 1322 void ipmi_irq_start_cleanup(struct si_sm_io *io) 1323 { 1324 if (io->si_info->type == SI_BT) 1325 /* Disable the interrupt in the BT interface. */ 1326 io->outputb(io, IPMI_BT_INTMASK_REG, 0); 1327 } 1328 1329 static void std_irq_cleanup(struct si_sm_io *io) 1330 { 1331 ipmi_irq_start_cleanup(io); 1332 free_irq(io->irq, io->irq_handler_data); 1333 } 1334 1335 int ipmi_std_irq_setup(struct si_sm_io *io) 1336 { 1337 int rv; 1338 1339 if (!io->irq) 1340 return 0; 1341 1342 rv = request_irq(io->irq, 1343 ipmi_si_irq_handler, 1344 IRQF_SHARED, 1345 SI_DEVICE_NAME, 1346 io->irq_handler_data); 1347 if (rv) { 1348 dev_warn(io->dev, "%s unable to claim interrupt %d, running polled\n", 1349 SI_DEVICE_NAME, io->irq); 1350 io->irq = 0; 1351 } else { 1352 io->irq_cleanup = std_irq_cleanup; 1353 ipmi_irq_finish_setup(io); 1354 dev_info(io->dev, "Using irq %d\n", io->irq); 1355 } 1356 1357 return rv; 1358 } 1359 1360 static int wait_for_msg_done(struct smi_info *smi_info) 1361 { 1362 enum si_sm_result smi_result; 1363 1364 smi_result = smi_info->handlers->event(smi_info->si_sm, 0); 1365 for (;;) { 1366 if (smi_result == SI_SM_CALL_WITH_DELAY || 1367 smi_result == SI_SM_CALL_WITH_TICK_DELAY) { 1368 schedule_timeout_uninterruptible(1); 1369 smi_result = smi_info->handlers->event( 1370 smi_info->si_sm, jiffies_to_usecs(1)); 1371 } else if (smi_result == SI_SM_CALL_WITHOUT_DELAY) { 1372 smi_result = smi_info->handlers->event( 1373 smi_info->si_sm, 0); 1374 } else 1375 break; 1376 } 1377 if (smi_result == SI_SM_HOSED) 1378 /* 1379 * We couldn't get the state machine to run, so whatever's at 1380 * the port is probably not an IPMI SMI interface. 1381 */ 1382 return -ENODEV; 1383 1384 return 0; 1385 } 1386 1387 static int try_get_dev_id(struct smi_info *smi_info) 1388 { 1389 unsigned char msg[2]; 1390 unsigned char *resp; 1391 unsigned long resp_len; 1392 int rv = 0; 1393 unsigned int retry_count = 0; 1394 1395 resp = kmalloc(IPMI_MAX_MSG_LENGTH, GFP_KERNEL); 1396 if (!resp) 1397 return -ENOMEM; 1398 1399 /* 1400 * Do a Get Device ID command, since it comes back with some 1401 * useful info. 1402 */ 1403 msg[0] = IPMI_NETFN_APP_REQUEST << 2; 1404 msg[1] = IPMI_GET_DEVICE_ID_CMD; 1405 1406 retry: 1407 smi_info->handlers->start_transaction(smi_info->si_sm, msg, 2); 1408 1409 rv = wait_for_msg_done(smi_info); 1410 if (rv) 1411 goto out; 1412 1413 resp_len = smi_info->handlers->get_result(smi_info->si_sm, 1414 resp, IPMI_MAX_MSG_LENGTH); 1415 1416 /* Check and record info from the get device id, in case we need it. */ 1417 rv = ipmi_demangle_device_id(resp[0] >> 2, resp[1], 1418 resp + 2, resp_len - 2, &smi_info->device_id); 1419 if (rv) { 1420 /* record completion code */ 1421 unsigned char cc = *(resp + 2); 1422 1423 if (cc != IPMI_CC_NO_ERROR && 1424 ++retry_count <= GET_DEVICE_ID_MAX_RETRY) { 1425 dev_warn_ratelimited(smi_info->io.dev, 1426 "BMC returned 0x%2.2x, retry get bmc device id\n", 1427 cc); 1428 goto retry; 1429 } 1430 } 1431 1432 out: 1433 kfree(resp); 1434 return rv; 1435 } 1436 1437 static int get_global_enables(struct smi_info *smi_info, u8 *enables) 1438 { 1439 unsigned char msg[3]; 1440 unsigned char *resp; 1441 unsigned long resp_len; 1442 int rv; 1443 1444 resp = kmalloc(IPMI_MAX_MSG_LENGTH, GFP_KERNEL); 1445 if (!resp) 1446 return -ENOMEM; 1447 1448 msg[0] = IPMI_NETFN_APP_REQUEST << 2; 1449 msg[1] = IPMI_GET_BMC_GLOBAL_ENABLES_CMD; 1450 smi_info->handlers->start_transaction(smi_info->si_sm, msg, 2); 1451 1452 rv = wait_for_msg_done(smi_info); 1453 if (rv) { 1454 dev_warn(smi_info->io.dev, 1455 "Error getting response from get global enables command: %d\n", 1456 rv); 1457 goto out; 1458 } 1459 1460 resp_len = smi_info->handlers->get_result(smi_info->si_sm, 1461 resp, IPMI_MAX_MSG_LENGTH); 1462 1463 if (resp_len < 4 || 1464 resp[0] != (IPMI_NETFN_APP_REQUEST | 1) << 2 || 1465 resp[1] != IPMI_GET_BMC_GLOBAL_ENABLES_CMD || 1466 resp[2] != 0) { 1467 dev_warn(smi_info->io.dev, 1468 "Invalid return from get global enables command: %ld %x %x %x\n", 1469 resp_len, resp[0], resp[1], resp[2]); 1470 rv = -EINVAL; 1471 goto out; 1472 } else { 1473 *enables = resp[3]; 1474 } 1475 1476 out: 1477 kfree(resp); 1478 return rv; 1479 } 1480 1481 /* 1482 * Returns 1 if it gets an error from the command. 1483 */ 1484 static int set_global_enables(struct smi_info *smi_info, u8 enables) 1485 { 1486 unsigned char msg[3]; 1487 unsigned char *resp; 1488 unsigned long resp_len; 1489 int rv; 1490 1491 resp = kmalloc(IPMI_MAX_MSG_LENGTH, GFP_KERNEL); 1492 if (!resp) 1493 return -ENOMEM; 1494 1495 msg[0] = IPMI_NETFN_APP_REQUEST << 2; 1496 msg[1] = IPMI_SET_BMC_GLOBAL_ENABLES_CMD; 1497 msg[2] = enables; 1498 smi_info->handlers->start_transaction(smi_info->si_sm, msg, 3); 1499 1500 rv = wait_for_msg_done(smi_info); 1501 if (rv) { 1502 dev_warn(smi_info->io.dev, 1503 "Error getting response from set global enables command: %d\n", 1504 rv); 1505 goto out; 1506 } 1507 1508 resp_len = smi_info->handlers->get_result(smi_info->si_sm, 1509 resp, IPMI_MAX_MSG_LENGTH); 1510 1511 if (resp_len < 3 || 1512 resp[0] != (IPMI_NETFN_APP_REQUEST | 1) << 2 || 1513 resp[1] != IPMI_SET_BMC_GLOBAL_ENABLES_CMD) { 1514 dev_warn(smi_info->io.dev, 1515 "Invalid return from set global enables command: %ld %x %x\n", 1516 resp_len, resp[0], resp[1]); 1517 rv = -EINVAL; 1518 goto out; 1519 } 1520 1521 if (resp[2] != 0) 1522 rv = 1; 1523 1524 out: 1525 kfree(resp); 1526 return rv; 1527 } 1528 1529 /* 1530 * Some BMCs do not support clearing the receive irq bit in the global 1531 * enables (even if they don't support interrupts on the BMC). Check 1532 * for this and handle it properly. 1533 */ 1534 static void check_clr_rcv_irq(struct smi_info *smi_info) 1535 { 1536 u8 enables = 0; 1537 int rv; 1538 1539 rv = get_global_enables(smi_info, &enables); 1540 if (!rv) { 1541 if ((enables & IPMI_BMC_RCV_MSG_INTR) == 0) 1542 /* Already clear, should work ok. */ 1543 return; 1544 1545 enables &= ~IPMI_BMC_RCV_MSG_INTR; 1546 rv = set_global_enables(smi_info, enables); 1547 } 1548 1549 if (rv < 0) { 1550 dev_err(smi_info->io.dev, 1551 "Cannot check clearing the rcv irq: %d\n", rv); 1552 return; 1553 } 1554 1555 if (rv) { 1556 /* 1557 * An error when setting the event buffer bit means 1558 * clearing the bit is not supported. 1559 */ 1560 dev_warn(smi_info->io.dev, 1561 "The BMC does not support clearing the recv irq bit, compensating, but the BMC needs to be fixed.\n"); 1562 smi_info->cannot_disable_irq = true; 1563 } 1564 } 1565 1566 /* 1567 * Some BMCs do not support setting the interrupt bits in the global 1568 * enables even if they support interrupts. Clearly bad, but we can 1569 * compensate. 1570 */ 1571 static void check_set_rcv_irq(struct smi_info *smi_info) 1572 { 1573 u8 enables = 0; 1574 int rv; 1575 1576 if (!smi_info->io.irq) 1577 return; 1578 1579 rv = get_global_enables(smi_info, &enables); 1580 if (!rv) { 1581 enables |= IPMI_BMC_RCV_MSG_INTR; 1582 rv = set_global_enables(smi_info, enables); 1583 } 1584 1585 if (rv < 0) { 1586 dev_err(smi_info->io.dev, 1587 "Cannot check setting the rcv irq: %d\n", rv); 1588 return; 1589 } 1590 1591 if (rv) { 1592 /* 1593 * An error when setting the event buffer bit means 1594 * setting the bit is not supported. 1595 */ 1596 dev_warn(smi_info->io.dev, 1597 "The BMC does not support setting the recv irq bit, compensating, but the BMC needs to be fixed.\n"); 1598 smi_info->cannot_disable_irq = true; 1599 smi_info->irq_enable_broken = true; 1600 } 1601 } 1602 1603 static int try_enable_event_buffer(struct smi_info *smi_info) 1604 { 1605 unsigned char msg[3]; 1606 unsigned char *resp; 1607 unsigned long resp_len; 1608 int rv = 0; 1609 1610 resp = kmalloc(IPMI_MAX_MSG_LENGTH, GFP_KERNEL); 1611 if (!resp) 1612 return -ENOMEM; 1613 1614 msg[0] = IPMI_NETFN_APP_REQUEST << 2; 1615 msg[1] = IPMI_GET_BMC_GLOBAL_ENABLES_CMD; 1616 smi_info->handlers->start_transaction(smi_info->si_sm, msg, 2); 1617 1618 rv = wait_for_msg_done(smi_info); 1619 if (rv) { 1620 pr_warn("Error getting response from get global enables command, the event buffer is not enabled\n"); 1621 goto out; 1622 } 1623 1624 resp_len = smi_info->handlers->get_result(smi_info->si_sm, 1625 resp, IPMI_MAX_MSG_LENGTH); 1626 1627 if (resp_len < 4 || 1628 resp[0] != (IPMI_NETFN_APP_REQUEST | 1) << 2 || 1629 resp[1] != IPMI_GET_BMC_GLOBAL_ENABLES_CMD || 1630 resp[2] != 0) { 1631 pr_warn("Invalid return from get global enables command, cannot enable the event buffer\n"); 1632 rv = -EINVAL; 1633 goto out; 1634 } 1635 1636 if (resp[3] & IPMI_BMC_EVT_MSG_BUFF) { 1637 /* buffer is already enabled, nothing to do. */ 1638 smi_info->supports_event_msg_buff = true; 1639 goto out; 1640 } 1641 1642 msg[0] = IPMI_NETFN_APP_REQUEST << 2; 1643 msg[1] = IPMI_SET_BMC_GLOBAL_ENABLES_CMD; 1644 msg[2] = resp[3] | IPMI_BMC_EVT_MSG_BUFF; 1645 smi_info->handlers->start_transaction(smi_info->si_sm, msg, 3); 1646 1647 rv = wait_for_msg_done(smi_info); 1648 if (rv) { 1649 pr_warn("Error getting response from set global, enables command, the event buffer is not enabled\n"); 1650 goto out; 1651 } 1652 1653 resp_len = smi_info->handlers->get_result(smi_info->si_sm, 1654 resp, IPMI_MAX_MSG_LENGTH); 1655 1656 if (resp_len < 3 || 1657 resp[0] != (IPMI_NETFN_APP_REQUEST | 1) << 2 || 1658 resp[1] != IPMI_SET_BMC_GLOBAL_ENABLES_CMD) { 1659 pr_warn("Invalid return from get global, enables command, not enable the event buffer\n"); 1660 rv = -EINVAL; 1661 goto out; 1662 } 1663 1664 if (resp[2] != 0) 1665 /* 1666 * An error when setting the event buffer bit means 1667 * that the event buffer is not supported. 1668 */ 1669 rv = -ENOENT; 1670 else 1671 smi_info->supports_event_msg_buff = true; 1672 1673 out: 1674 kfree(resp); 1675 return rv; 1676 } 1677 1678 #define IPMI_SI_ATTR(name) \ 1679 static ssize_t name##_show(struct device *dev, \ 1680 struct device_attribute *attr, \ 1681 char *buf) \ 1682 { \ 1683 struct smi_info *smi_info = dev_get_drvdata(dev); \ 1684 \ 1685 return sysfs_emit(buf, "%u\n", smi_get_stat(smi_info, name)); \ 1686 } \ 1687 static DEVICE_ATTR_RO(name) 1688 1689 static ssize_t type_show(struct device *dev, 1690 struct device_attribute *attr, 1691 char *buf) 1692 { 1693 struct smi_info *smi_info = dev_get_drvdata(dev); 1694 1695 return sysfs_emit(buf, "%s\n", si_to_str[smi_info->io.si_info->type]); 1696 } 1697 static DEVICE_ATTR_RO(type); 1698 1699 static ssize_t interrupts_enabled_show(struct device *dev, 1700 struct device_attribute *attr, 1701 char *buf) 1702 { 1703 struct smi_info *smi_info = dev_get_drvdata(dev); 1704 int enabled = smi_info->io.irq && !smi_info->interrupt_disabled; 1705 1706 return sysfs_emit(buf, "%d\n", enabled); 1707 } 1708 static DEVICE_ATTR_RO(interrupts_enabled); 1709 1710 IPMI_SI_ATTR(short_timeouts); 1711 IPMI_SI_ATTR(long_timeouts); 1712 IPMI_SI_ATTR(idles); 1713 IPMI_SI_ATTR(interrupts); 1714 IPMI_SI_ATTR(attentions); 1715 IPMI_SI_ATTR(flag_fetches); 1716 IPMI_SI_ATTR(hosed_count); 1717 IPMI_SI_ATTR(complete_transactions); 1718 IPMI_SI_ATTR(events); 1719 IPMI_SI_ATTR(watchdog_pretimeouts); 1720 IPMI_SI_ATTR(incoming_messages); 1721 1722 static ssize_t params_show(struct device *dev, 1723 struct device_attribute *attr, 1724 char *buf) 1725 { 1726 struct smi_info *smi_info = dev_get_drvdata(dev); 1727 1728 return sysfs_emit(buf, 1729 "%s,%s,0x%lx,rsp=%d,rsi=%d,rsh=%d,irq=%d,ipmb=%d\n", 1730 si_to_str[smi_info->io.si_info->type], 1731 addr_space_to_str[smi_info->io.addr_space], 1732 smi_info->io.addr_data, 1733 smi_info->io.regspacing, 1734 smi_info->io.regsize, 1735 smi_info->io.regshift, 1736 smi_info->io.irq, 1737 smi_info->io.slave_addr); 1738 } 1739 static DEVICE_ATTR_RO(params); 1740 1741 static struct attribute *ipmi_si_dev_attrs[] = { 1742 &dev_attr_type.attr, 1743 &dev_attr_interrupts_enabled.attr, 1744 &dev_attr_short_timeouts.attr, 1745 &dev_attr_long_timeouts.attr, 1746 &dev_attr_idles.attr, 1747 &dev_attr_interrupts.attr, 1748 &dev_attr_attentions.attr, 1749 &dev_attr_flag_fetches.attr, 1750 &dev_attr_hosed_count.attr, 1751 &dev_attr_complete_transactions.attr, 1752 &dev_attr_events.attr, 1753 &dev_attr_watchdog_pretimeouts.attr, 1754 &dev_attr_incoming_messages.attr, 1755 &dev_attr_params.attr, 1756 NULL 1757 }; 1758 1759 static const struct attribute_group ipmi_si_dev_attr_group = { 1760 .attrs = ipmi_si_dev_attrs, 1761 }; 1762 1763 /* 1764 * oem_data_avail_to_receive_msg_avail 1765 * @info - smi_info structure with msg_flags set 1766 * 1767 * Converts flags from OEM_DATA_AVAIL to RECEIVE_MSG_AVAIL 1768 * Returns 1 indicating need to re-run handle_flags(). 1769 */ 1770 static int oem_data_avail_to_receive_msg_avail(struct smi_info *smi_info) 1771 { 1772 smi_info->msg_flags = ((smi_info->msg_flags & ~OEM_DATA_AVAIL) | 1773 RECEIVE_MSG_AVAIL); 1774 return 1; 1775 } 1776 1777 /* 1778 * setup_dell_poweredge_oem_data_handler 1779 * @info - smi_info.device_id must be populated 1780 * 1781 * Systems that match, but have firmware version < 1.40 may assert 1782 * OEM0_DATA_AVAIL on their own, without being told via Set Flags that 1783 * it's safe to do so. Such systems will de-assert OEM1_DATA_AVAIL 1784 * upon receipt of IPMI_GET_MSG_CMD, so we should treat these flags 1785 * as RECEIVE_MSG_AVAIL instead. 1786 * 1787 * As Dell has no plans to release IPMI 1.5 firmware that *ever* 1788 * assert the OEM[012] bits, and if it did, the driver would have to 1789 * change to handle that properly, we don't actually check for the 1790 * firmware version. 1791 * Device ID = 0x20 BMC on PowerEdge 8G servers 1792 * Device Revision = 0x80 1793 * Firmware Revision1 = 0x01 BMC version 1.40 1794 * Firmware Revision2 = 0x40 BCD encoded 1795 * IPMI Version = 0x51 IPMI 1.5 1796 * Manufacturer ID = A2 02 00 Dell IANA 1797 * 1798 * Additionally, PowerEdge systems with IPMI < 1.5 may also assert 1799 * OEM0_DATA_AVAIL and needs to be treated as RECEIVE_MSG_AVAIL. 1800 * 1801 */ 1802 #define DELL_POWEREDGE_8G_BMC_DEVICE_ID 0x20 1803 #define DELL_POWEREDGE_8G_BMC_DEVICE_REV 0x80 1804 #define DELL_POWEREDGE_8G_BMC_IPMI_VERSION 0x51 1805 #define DELL_IANA_MFR_ID 0x0002a2 1806 static void setup_dell_poweredge_oem_data_handler(struct smi_info *smi_info) 1807 { 1808 struct ipmi_device_id *id = &smi_info->device_id; 1809 if (id->manufacturer_id == DELL_IANA_MFR_ID) { 1810 if (id->device_id == DELL_POWEREDGE_8G_BMC_DEVICE_ID && 1811 id->device_revision == DELL_POWEREDGE_8G_BMC_DEVICE_REV && 1812 id->ipmi_version == DELL_POWEREDGE_8G_BMC_IPMI_VERSION) { 1813 smi_info->oem_data_avail_handler = 1814 oem_data_avail_to_receive_msg_avail; 1815 } else if (ipmi_version_major(id) < 1 || 1816 (ipmi_version_major(id) == 1 && 1817 ipmi_version_minor(id) < 5)) { 1818 smi_info->oem_data_avail_handler = 1819 oem_data_avail_to_receive_msg_avail; 1820 } 1821 } 1822 } 1823 1824 #define CANNOT_RETURN_REQUESTED_LENGTH 0xCA 1825 static void return_hosed_msg_badsize(struct smi_info *smi_info) 1826 { 1827 struct ipmi_smi_msg *msg = smi_info->curr_msg; 1828 1829 /* Make it a response */ 1830 msg->rsp[0] = msg->data[0] | 4; 1831 msg->rsp[1] = msg->data[1]; 1832 msg->rsp[2] = CANNOT_RETURN_REQUESTED_LENGTH; 1833 msg->rsp_size = 3; 1834 smi_info->curr_msg = NULL; 1835 deliver_recv_msg(smi_info, msg); 1836 } 1837 1838 /* 1839 * dell_poweredge_bt_xaction_handler 1840 * @info - smi_info.device_id must be populated 1841 * 1842 * Dell PowerEdge servers with the BT interface (x6xx and 1750) will 1843 * not respond to a Get SDR command if the length of the data 1844 * requested is exactly 0x3A, which leads to command timeouts and no 1845 * data returned. This intercepts such commands, and causes userspace 1846 * callers to try again with a different-sized buffer, which succeeds. 1847 */ 1848 1849 #define STORAGE_NETFN 0x0A 1850 #define STORAGE_CMD_GET_SDR 0x23 1851 static int dell_poweredge_bt_xaction_handler(struct notifier_block *self, 1852 unsigned long unused, 1853 void *in) 1854 { 1855 struct smi_info *smi_info = in; 1856 unsigned char *data = smi_info->curr_msg->data; 1857 unsigned int size = smi_info->curr_msg->data_size; 1858 if (size >= 8 && 1859 (data[0]>>2) == STORAGE_NETFN && 1860 data[1] == STORAGE_CMD_GET_SDR && 1861 data[7] == 0x3A) { 1862 return_hosed_msg_badsize(smi_info); 1863 return NOTIFY_STOP; 1864 } 1865 return NOTIFY_DONE; 1866 } 1867 1868 static struct notifier_block dell_poweredge_bt_xaction_notifier = { 1869 .notifier_call = dell_poweredge_bt_xaction_handler, 1870 }; 1871 1872 /* 1873 * setup_dell_poweredge_bt_xaction_handler 1874 * @info - smi_info.device_id must be filled in already 1875 * 1876 * Fills in smi_info.device_id.start_transaction_pre_hook 1877 * when we know what function to use there. 1878 */ 1879 static void 1880 setup_dell_poweredge_bt_xaction_handler(struct smi_info *smi_info) 1881 { 1882 struct ipmi_device_id *id = &smi_info->device_id; 1883 if (id->manufacturer_id == DELL_IANA_MFR_ID && 1884 smi_info->io.si_info->type == SI_BT) 1885 register_xaction_notifier(&dell_poweredge_bt_xaction_notifier); 1886 } 1887 1888 /* 1889 * setup_oem_data_handler 1890 * @info - smi_info.device_id must be filled in already 1891 * 1892 * Fills in smi_info.device_id.oem_data_available_handler 1893 * when we know what function to use there. 1894 */ 1895 1896 static void setup_oem_data_handler(struct smi_info *smi_info) 1897 { 1898 setup_dell_poweredge_oem_data_handler(smi_info); 1899 } 1900 1901 static void setup_xaction_handlers(struct smi_info *smi_info) 1902 { 1903 setup_dell_poweredge_bt_xaction_handler(smi_info); 1904 } 1905 1906 static void check_for_broken_irqs(struct smi_info *smi_info) 1907 { 1908 check_clr_rcv_irq(smi_info); 1909 check_set_rcv_irq(smi_info); 1910 } 1911 1912 static inline void stop_timer_and_thread(struct smi_info *smi_info) 1913 { 1914 if (smi_info->thread != NULL) { 1915 kthread_stop(smi_info->thread); 1916 smi_info->thread = NULL; 1917 } 1918 1919 smi_info->timer_can_start = false; 1920 timer_delete_sync(&smi_info->si_timer); 1921 } 1922 1923 static struct smi_info *find_dup_si(struct smi_info *info) 1924 { 1925 struct smi_info *e; 1926 1927 list_for_each_entry(e, &smi_infos, link) { 1928 if (e->io.addr_space != info->io.addr_space) 1929 continue; 1930 if (e->io.addr_data == info->io.addr_data) { 1931 /* 1932 * This is a cheap hack, ACPI doesn't have a defined 1933 * slave address but SMBIOS does. Pick it up from 1934 * any source that has it available. 1935 */ 1936 if (info->io.slave_addr && !e->io.slave_addr) 1937 e->io.slave_addr = info->io.slave_addr; 1938 return e; 1939 } 1940 } 1941 1942 return NULL; 1943 } 1944 1945 int ipmi_si_add_smi(struct si_sm_io *io) 1946 { 1947 int rv = 0; 1948 struct smi_info *new_smi, *dup; 1949 1950 /* 1951 * If the user gave us a hard-coded device at the same 1952 * address, they presumably want us to use it and not what is 1953 * in the firmware. 1954 */ 1955 if (io->addr_source != SI_HARDCODED && io->addr_source != SI_HOTMOD && 1956 ipmi_si_hardcode_match(io->addr_space, io->addr_data)) { 1957 dev_info(io->dev, 1958 "Hard-coded device at this address already exists"); 1959 return -ENODEV; 1960 } 1961 1962 if (!io->io_setup) { 1963 if (IS_ENABLED(CONFIG_HAS_IOPORT) && 1964 io->addr_space == IPMI_IO_ADDR_SPACE) { 1965 io->io_setup = ipmi_si_port_setup; 1966 } else if (io->addr_space == IPMI_MEM_ADDR_SPACE) { 1967 io->io_setup = ipmi_si_mem_setup; 1968 } else { 1969 return -EINVAL; 1970 } 1971 } 1972 1973 new_smi = kzalloc_obj(*new_smi); 1974 if (!new_smi) 1975 return -ENOMEM; 1976 spin_lock_init(&new_smi->si_lock); 1977 INIT_WORK(&new_smi->init_work, smi_init_work_fn); 1978 1979 new_smi->io = *io; 1980 1981 mutex_lock(&smi_infos_lock); 1982 dup = find_dup_si(new_smi); 1983 if (dup) { 1984 if (new_smi->io.addr_source == SI_ACPI && 1985 dup->io.addr_source == SI_SMBIOS) { 1986 /* We prefer ACPI over SMBIOS. */ 1987 dev_info(dup->io.dev, 1988 "Removing SMBIOS-specified %s state machine in favor of ACPI\n", 1989 si_to_str[new_smi->io.si_info->type]); 1990 list_del(&dup->link); 1991 mutex_unlock(&smi_infos_lock); 1992 1993 cleanup_one_si(dup); 1994 1995 mutex_lock(&smi_infos_lock); 1996 } else { 1997 dev_info(new_smi->io.dev, 1998 "%s-specified %s state machine: duplicate\n", 1999 ipmi_addr_src_to_str(new_smi->io.addr_source), 2000 si_to_str[new_smi->io.si_info->type]); 2001 rv = -EBUSY; 2002 kfree(new_smi); 2003 goto out_err; 2004 } 2005 } 2006 2007 pr_info("Adding %s-specified %s state machine\n", 2008 ipmi_addr_src_to_str(new_smi->io.addr_source), 2009 si_to_str[new_smi->io.si_info->type]); 2010 2011 list_add_tail(&new_smi->link, &smi_infos); 2012 2013 if (initialized) { 2014 if (IS_ENABLED(CONFIG_IPMI_SI_ASYNC_INIT)) 2015 queue_work(system_dfl_wq, &new_smi->init_work); 2016 else 2017 rv = try_smi_init(new_smi); 2018 } 2019 out_err: 2020 mutex_unlock(&smi_infos_lock); 2021 return rv; 2022 } 2023 2024 /* 2025 * Try to start up an interface. Must be called with smi_infos_lock 2026 * held, primarily to keep smi_num consistent, we only one to do these 2027 * one at a time. 2028 */ 2029 static int try_smi_init(struct smi_info *new_smi) 2030 { 2031 int rv = 0; 2032 int i; 2033 2034 pr_info("Trying %s-specified %s state machine at %s address 0x%lx, slave address 0x%x, irq %d\n", 2035 ipmi_addr_src_to_str(new_smi->io.addr_source), 2036 si_to_str[new_smi->io.si_info->type], 2037 addr_space_to_str[new_smi->io.addr_space], 2038 new_smi->io.addr_data, 2039 new_smi->io.slave_addr, new_smi->io.irq); 2040 2041 switch (new_smi->io.si_info->type) { 2042 case SI_KCS: 2043 new_smi->handlers = &kcs_smi_handlers; 2044 break; 2045 2046 case SI_SMIC: 2047 new_smi->handlers = &smic_smi_handlers; 2048 break; 2049 2050 case SI_BT: 2051 new_smi->handlers = &bt_smi_handlers; 2052 break; 2053 2054 default: 2055 /* No support for anything else yet. */ 2056 rv = -EIO; 2057 goto out_err; 2058 } 2059 2060 new_smi->si_num = smi_num; 2061 2062 /* Do this early so it's available for logs. */ 2063 if (!new_smi->io.dev) { 2064 pr_err("IPMI interface added with no device\n"); 2065 rv = -EIO; 2066 goto out_err; 2067 } 2068 2069 /* Allocate the state machine's data and initialize it. */ 2070 new_smi->si_sm = kmalloc(new_smi->handlers->size(), GFP_KERNEL); 2071 if (!new_smi->si_sm) { 2072 rv = -ENOMEM; 2073 goto out_err; 2074 } 2075 new_smi->io.io_size = new_smi->handlers->init_data(new_smi->si_sm, 2076 &new_smi->io); 2077 2078 /* Now that we know the I/O size, we can set up the I/O. */ 2079 rv = new_smi->io.io_setup(&new_smi->io); 2080 if (rv) { 2081 dev_err(new_smi->io.dev, "Could not set up I/O space\n"); 2082 goto out_err; 2083 } 2084 2085 /* Do low-level detection first. */ 2086 if (new_smi->handlers->detect(new_smi->si_sm)) { 2087 if (new_smi->io.addr_source) 2088 dev_err(new_smi->io.dev, 2089 "Interface detection failed\n"); 2090 rv = -ENODEV; 2091 goto out_err; 2092 } 2093 2094 /* 2095 * Attempt a get device id command. If it fails, we probably 2096 * don't have a BMC here. 2097 */ 2098 rv = try_get_dev_id(new_smi); 2099 if (rv) { 2100 if (new_smi->io.addr_source) 2101 dev_err(new_smi->io.dev, 2102 "There appears to be no BMC at this location\n"); 2103 goto out_err; 2104 } 2105 2106 setup_oem_data_handler(new_smi); 2107 setup_xaction_handlers(new_smi); 2108 check_for_broken_irqs(new_smi); 2109 2110 new_smi->waiting_msg = NULL; 2111 new_smi->curr_msg = NULL; 2112 atomic_set(&new_smi->req_events, 0); 2113 new_smi->run_to_completion = false; 2114 for (i = 0; i < SI_NUM_STATS; i++) 2115 atomic_set(&new_smi->stats[i], 0); 2116 2117 new_smi->interrupt_disabled = true; 2118 atomic_set(&new_smi->need_watch, 0); 2119 2120 rv = try_enable_event_buffer(new_smi); 2121 if (rv == 0) 2122 new_smi->has_event_buffer = true; 2123 2124 /* 2125 * Start clearing the flags before we enable interrupts or the 2126 * timer to avoid racing with the timer. 2127 */ 2128 start_clear_flags(new_smi); 2129 2130 /* 2131 * IRQ is defined to be set when non-zero. req_events will 2132 * cause a global flags check that will enable interrupts. 2133 */ 2134 if (new_smi->io.irq) { 2135 new_smi->interrupt_disabled = false; 2136 atomic_set(&new_smi->req_events, 1); 2137 } 2138 2139 dev_set_drvdata(new_smi->io.dev, new_smi); 2140 rv = device_add_group(new_smi->io.dev, &ipmi_si_dev_attr_group); 2141 if (rv) { 2142 dev_err(new_smi->io.dev, 2143 "Unable to add device attributes: error %d\n", 2144 rv); 2145 goto out_err; 2146 } 2147 new_smi->dev_group_added = true; 2148 2149 rv = ipmi_register_smi(&handlers, 2150 new_smi, 2151 new_smi->io.dev, 2152 new_smi->io.slave_addr); 2153 if (rv) { 2154 dev_err(new_smi->io.dev, 2155 "Unable to register device: error %d\n", 2156 rv); 2157 goto out_err; 2158 } 2159 2160 /* Don't increment till we know we have succeeded. */ 2161 smi_num++; 2162 2163 dev_info(new_smi->io.dev, "IPMI %s interface initialized\n", 2164 si_to_str[new_smi->io.si_info->type]); 2165 2166 WARN_ON(new_smi->io.dev->init_name != NULL); 2167 2168 out_err: 2169 if (rv && new_smi->io.io_cleanup) { 2170 new_smi->io.io_cleanup(&new_smi->io); 2171 new_smi->io.io_cleanup = NULL; 2172 } 2173 2174 if (rv && new_smi->si_sm) { 2175 kfree(new_smi->si_sm); 2176 new_smi->si_sm = NULL; 2177 } 2178 2179 return rv; 2180 } 2181 2182 /* 2183 * Devices in the same address space at the same address are the same. 2184 */ 2185 static bool __init ipmi_smi_info_same(struct smi_info *e1, struct smi_info *e2) 2186 { 2187 return (e1->io.addr_space == e2->io.addr_space && 2188 e1->io.addr_data == e2->io.addr_data); 2189 } 2190 2191 static void smi_init_work_fn(struct work_struct *work) 2192 { 2193 struct smi_info *smi = container_of(work, struct smi_info, init_work); 2194 2195 mutex_lock(&smi_infos_lock); 2196 try_smi_init(smi); 2197 mutex_unlock(&smi_infos_lock); 2198 } 2199 2200 static int __init init_ipmi_si(void) 2201 { 2202 struct smi_info *e, *e2; 2203 2204 if (initialized) 2205 return 0; 2206 2207 ipmi_hardcode_init(); 2208 2209 pr_info("IPMI System Interface driver\n"); 2210 2211 ipmi_si_platform_init(); 2212 2213 ipmi_si_pci_init(); 2214 2215 ipmi_si_ls2k_init(); 2216 2217 ipmi_si_parisc_init(); 2218 2219 mutex_lock(&smi_infos_lock); 2220 2221 /* 2222 * Scan through all the devices. We prefer devices with 2223 * interrupts, so go through those first in case there are any 2224 * duplicates that don't have the interrupt set. 2225 */ 2226 list_for_each_entry(e, &smi_infos, link) { 2227 bool dup = false; 2228 2229 /* Register ones with interrupts first. */ 2230 if (!e->io.irq) 2231 continue; 2232 2233 /* 2234 * Go through the ones we have already seen to see if this 2235 * is a dup. 2236 */ 2237 list_for_each_entry(e2, &smi_infos, link) { 2238 if (e2 == e) 2239 break; 2240 if (e2->io.irq && ipmi_smi_info_same(e, e2)) { 2241 dup = true; 2242 break; 2243 } 2244 } 2245 if (!dup) { 2246 if (IS_ENABLED(CONFIG_IPMI_SI_ASYNC_INIT)) 2247 queue_work(system_unbound_wq, &e->init_work); 2248 else 2249 try_smi_init(e); 2250 } 2251 } 2252 2253 /* 2254 * Now try devices without interrupts. 2255 */ 2256 list_for_each_entry(e, &smi_infos, link) { 2257 bool dup = false; 2258 2259 if (e->io.irq) 2260 continue; 2261 2262 /* 2263 * Go through the ones we have already seen to see if 2264 * this is a dup. We have already looked at the ones 2265 * with interrupts. 2266 */ 2267 list_for_each_entry(e2, &smi_infos, link) { 2268 if (!e2->io.irq) 2269 continue; 2270 if (ipmi_smi_info_same(e, e2)) { 2271 dup = true; 2272 break; 2273 } 2274 } 2275 list_for_each_entry(e2, &smi_infos, link) { 2276 if (e2 == e) 2277 break; 2278 if (ipmi_smi_info_same(e, e2)) { 2279 dup = true; 2280 break; 2281 } 2282 } 2283 if (!dup) { 2284 if (IS_ENABLED(CONFIG_IPMI_SI_ASYNC_INIT)) 2285 queue_work(system_unbound_wq, &e->init_work); 2286 else 2287 try_smi_init(e); 2288 } 2289 } 2290 2291 initialized = true; 2292 mutex_unlock(&smi_infos_lock); 2293 2294 mutex_lock(&smi_infos_lock); 2295 if (unload_when_empty && list_empty(&smi_infos)) { 2296 mutex_unlock(&smi_infos_lock); 2297 cleanup_ipmi_si(); 2298 pr_warn("Unable to find any System Interface(s)\n"); 2299 return -ENODEV; 2300 } else { 2301 mutex_unlock(&smi_infos_lock); 2302 return 0; 2303 } 2304 } 2305 module_init(init_ipmi_si); 2306 2307 static void wait_msg_processed(struct smi_info *smi_info) 2308 { 2309 unsigned long jiffies_now; 2310 long time_diff; 2311 2312 while (smi_info->si_state != SI_HOSED && 2313 (smi_info->curr_msg || (smi_info->si_state != SI_NORMAL))) { 2314 jiffies_now = jiffies; 2315 time_diff = (((long)jiffies_now - (long)smi_info->last_timeout_jiffies) 2316 * SI_USEC_PER_JIFFY); 2317 smi_event_handler(smi_info, time_diff); 2318 schedule_timeout_uninterruptible(1); 2319 } 2320 } 2321 2322 static void shutdown_smi(void *send_info) 2323 { 2324 struct smi_info *smi_info = send_info; 2325 2326 if (smi_info->dev_group_added) { 2327 device_remove_group(smi_info->io.dev, &ipmi_si_dev_attr_group); 2328 smi_info->dev_group_added = false; 2329 } 2330 if (smi_info->io.dev) 2331 dev_set_drvdata(smi_info->io.dev, NULL); 2332 2333 /* 2334 * Make sure that interrupts, the timer and the thread are 2335 * stopped and will not run again. 2336 */ 2337 smi_info->interrupt_disabled = true; 2338 if (smi_info->io.irq_cleanup) { 2339 smi_info->io.irq_cleanup(&smi_info->io); 2340 smi_info->io.irq_cleanup = NULL; 2341 } 2342 stop_timer_and_thread(smi_info); 2343 2344 /* 2345 * Wait until we know that we are out of any interrupt 2346 * handlers might have been running before we freed the 2347 * interrupt. 2348 */ 2349 synchronize_rcu(); 2350 2351 /* 2352 * Timeouts are stopped, now make sure the interrupts are off 2353 * in the BMC. Note that timers and CPU interrupts are off, 2354 * so no need for locks. 2355 */ 2356 wait_msg_processed(smi_info); 2357 2358 if (smi_info->handlers) 2359 disable_si_irq(smi_info); 2360 2361 wait_msg_processed(smi_info); 2362 2363 if (smi_info->handlers) 2364 smi_info->handlers->cleanup(smi_info->si_sm); 2365 2366 if (smi_info->io.io_cleanup) { 2367 smi_info->io.io_cleanup(&smi_info->io); 2368 smi_info->io.io_cleanup = NULL; 2369 } 2370 2371 kfree(smi_info->si_sm); 2372 smi_info->si_sm = NULL; 2373 2374 smi_info->intf = NULL; 2375 } 2376 2377 /* 2378 * Must be called with smi_info unlinked from smi_infos and smi_infos_lock released. 2379 */ 2380 static void cleanup_one_si(struct smi_info *smi_info) 2381 { 2382 if (!smi_info) 2383 return; 2384 2385 if (IS_ENABLED(CONFIG_IPMI_SI_ASYNC_INIT)) 2386 cancel_work_sync(&smi_info->init_work); 2387 2388 ipmi_unregister_smi(smi_info->intf); 2389 kfree(smi_info); 2390 } 2391 2392 void ipmi_si_remove_by_dev(struct device *dev) 2393 { 2394 struct smi_info *e = NULL, *tmp; 2395 2396 mutex_lock(&smi_infos_lock); 2397 list_for_each_entry(tmp, &smi_infos, link) { 2398 if (tmp->io.dev == dev) { 2399 e = tmp; 2400 list_del(&e->link); 2401 break; 2402 } 2403 } 2404 mutex_unlock(&smi_infos_lock); 2405 2406 if (e) 2407 cleanup_one_si(e); 2408 } 2409 2410 struct device *ipmi_si_remove_by_data(int addr_space, enum si_type si_type, 2411 unsigned long addr) 2412 { 2413 /* remove */ 2414 struct smi_info *e, *tmp_e; 2415 struct device *dev = NULL; 2416 LIST_HEAD(to_clean); 2417 2418 mutex_lock(&smi_infos_lock); 2419 list_for_each_entry_safe(e, tmp_e, &smi_infos, link) { 2420 if (e->io.addr_space != addr_space) 2421 continue; 2422 if (e->io.si_info->type != si_type) 2423 continue; 2424 if (e->io.addr_data == addr) { 2425 dev = get_device(e->io.dev); 2426 list_move_tail(&e->link, &to_clean); 2427 } 2428 } 2429 mutex_unlock(&smi_infos_lock); 2430 2431 list_for_each_entry_safe(e, tmp_e, &to_clean, link) { 2432 list_del(&e->link); 2433 cleanup_one_si(e); 2434 } 2435 2436 return dev; 2437 } 2438 2439 static void cleanup_ipmi_si(void) 2440 { 2441 struct smi_info *e, *tmp_e; 2442 LIST_HEAD(to_clean); 2443 2444 if (!initialized) 2445 return; 2446 2447 ipmi_si_pci_shutdown(); 2448 2449 ipmi_si_ls2k_shutdown(); 2450 2451 ipmi_si_parisc_shutdown(); 2452 2453 ipmi_si_platform_shutdown(); 2454 2455 mutex_lock(&smi_infos_lock); 2456 list_splice_init(&smi_infos, &to_clean); 2457 mutex_unlock(&smi_infos_lock); 2458 2459 list_for_each_entry_safe(e, tmp_e, &to_clean, link) { 2460 list_del(&e->link); 2461 cleanup_one_si(e); 2462 } 2463 2464 ipmi_si_hardcode_exit(); 2465 ipmi_si_hotmod_exit(); 2466 } 2467 module_exit(cleanup_ipmi_si); 2468 2469 MODULE_ALIAS("platform:dmi-ipmi-si"); 2470 MODULE_LICENSE("GPL"); 2471 MODULE_AUTHOR("Corey Minyard <minyard@mvista.com>"); 2472 MODULE_DESCRIPTION("Interface to the IPMI driver for the KCS, SMIC, and BT system interfaces."); 2473