1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * ec.c - ACPI Embedded Controller Driver (v3)
4 *
5 * Copyright (C) 2001-2015 Intel Corporation
6 * Author: 2014, 2015 Lv Zheng <lv.zheng@intel.com>
7 * 2006, 2007 Alexey Starikovskiy <alexey.y.starikovskiy@intel.com>
8 * 2006 Denis Sadykov <denis.m.sadykov@intel.com>
9 * 2004 Luming Yu <luming.yu@intel.com>
10 * 2001, 2002 Andy Grover <andrew.grover@intel.com>
11 * 2001, 2002 Paul Diefenbaugh <paul.s.diefenbaugh@intel.com>
12 * Copyright (C) 2008 Alexey Starikovskiy <astarikovskiy@suse.de>
13 */
14
15 /* Uncomment next line to get verbose printout */
16 /* #define DEBUG */
17 #define pr_fmt(fmt) "ACPI: EC: " fmt
18
19 #include <linux/kernel.h>
20 #include <linux/module.h>
21 #include <linux/init.h>
22 #include <linux/types.h>
23 #include <linux/delay.h>
24 #include <linux/interrupt.h>
25 #include <linux/list.h>
26 #include <linux/spinlock.h>
27 #include <linux/slab.h>
28 #include <linux/suspend.h>
29 #include <linux/acpi.h>
30 #include <linux/dmi.h>
31 #include <asm/io.h>
32
33 #include "internal.h"
34
35 #define ACPI_EC_CLASS "embedded_controller"
36 #define ACPI_EC_DEVICE_NAME "Embedded Controller"
37
38 /* EC status register */
39 #define ACPI_EC_FLAG_OBF 0x01 /* Output buffer full */
40 #define ACPI_EC_FLAG_IBF 0x02 /* Input buffer full */
41 #define ACPI_EC_FLAG_CMD 0x08 /* Input buffer contains a command */
42 #define ACPI_EC_FLAG_BURST 0x10 /* burst mode */
43 #define ACPI_EC_FLAG_SCI 0x20 /* EC-SCI occurred */
44
45 /*
46 * The SCI_EVT clearing timing is not defined by the ACPI specification.
47 * This leads to lots of practical timing issues for the host EC driver.
48 * The following variations are defined (from the target EC firmware's
49 * perspective):
50 * STATUS: After indicating SCI_EVT edge triggered IRQ to the host, the
51 * target can clear SCI_EVT at any time so long as the host can see
52 * the indication by reading the status register (EC_SC). So the
53 * host should re-check SCI_EVT after the first time the SCI_EVT
54 * indication is seen, which is the same time the query request
55 * (QR_EC) is written to the command register (EC_CMD). SCI_EVT set
56 * at any later time could indicate another event. Normally such
57 * kind of EC firmware has implemented an event queue and will
58 * return 0x00 to indicate "no outstanding event".
59 * QUERY: After seeing the query request (QR_EC) written to the command
60 * register (EC_CMD) by the host and having prepared the responding
61 * event value in the data register (EC_DATA), the target can safely
62 * clear SCI_EVT because the target can confirm that the current
63 * event is being handled by the host. The host then should check
64 * SCI_EVT right after reading the event response from the data
65 * register (EC_DATA).
66 * EVENT: After seeing the event response read from the data register
67 * (EC_DATA) by the host, the target can clear SCI_EVT. As the
68 * target requires time to notice the change in the data register
69 * (EC_DATA), the host may be required to wait additional guarding
70 * time before checking the SCI_EVT again. Such guarding may not be
71 * necessary if the host is notified via another IRQ.
72 */
73 #define ACPI_EC_EVT_TIMING_STATUS 0x00
74 #define ACPI_EC_EVT_TIMING_QUERY 0x01
75 #define ACPI_EC_EVT_TIMING_EVENT 0x02
76
77 /* EC commands */
78 enum ec_command {
79 ACPI_EC_COMMAND_READ = 0x80,
80 ACPI_EC_COMMAND_WRITE = 0x81,
81 ACPI_EC_BURST_ENABLE = 0x82,
82 ACPI_EC_BURST_DISABLE = 0x83,
83 ACPI_EC_COMMAND_QUERY = 0x84,
84 };
85
86 #define ACPI_EC_DELAY 500 /* Wait 500ms max. during EC ops */
87 #define ACPI_EC_UDELAY_GLK 1000 /* Wait 1ms max. to get global lock */
88 #define ACPI_EC_UDELAY_POLL 550 /* Wait 1ms for EC transaction polling */
89 #define ACPI_EC_CLEAR_MAX 100 /* Maximum number of events to query
90 * when trying to clear the EC */
91 #define ACPI_EC_MAX_QUERIES 16 /* Maximum number of parallel queries */
92
93 enum {
94 EC_FLAGS_QUERY_ENABLED, /* Query is enabled */
95 EC_FLAGS_QUERY_PENDING, /* Query is pending */
96 EC_FLAGS_QUERY_GUARDING, /* Guard for SCI_EVT check */
97 EC_FLAGS_EVENT_HANDLER_INSTALLED, /* Event handler installed */
98 EC_FLAGS_EC_HANDLER_INSTALLED, /* OpReg handler installed */
99 EC_FLAGS_QUERY_METHODS_INSTALLED, /* _Qxx handlers installed */
100 EC_FLAGS_STARTED, /* Driver is started */
101 EC_FLAGS_STOPPED, /* Driver is stopped */
102 EC_FLAGS_EVENTS_MASKED, /* Events masked */
103 };
104
105 #define ACPI_EC_COMMAND_POLL 0x01 /* Available for command byte */
106 #define ACPI_EC_COMMAND_COMPLETE 0x02 /* Completed last byte */
107
108 /* ec.c is compiled in acpi namespace so this shows up as acpi.ec_delay param */
109 static unsigned int ec_delay __read_mostly = ACPI_EC_DELAY;
110 module_param(ec_delay, uint, 0644);
111 MODULE_PARM_DESC(ec_delay, "Timeout(ms) waited until an EC command completes");
112
113 static unsigned int ec_max_queries __read_mostly = ACPI_EC_MAX_QUERIES;
114 module_param(ec_max_queries, uint, 0644);
115 MODULE_PARM_DESC(ec_max_queries, "Maximum parallel _Qxx evaluations");
116
117 static bool ec_busy_polling __read_mostly;
118 module_param(ec_busy_polling, bool, 0644);
119 MODULE_PARM_DESC(ec_busy_polling, "Use busy polling to advance EC transaction");
120
121 static unsigned int ec_polling_guard __read_mostly = ACPI_EC_UDELAY_POLL;
122 module_param(ec_polling_guard, uint, 0644);
123 MODULE_PARM_DESC(ec_polling_guard, "Guard time(us) between EC accesses in polling modes");
124
125 static unsigned int ec_event_clearing __read_mostly = ACPI_EC_EVT_TIMING_QUERY;
126
127 /*
128 * If the number of false interrupts per one transaction exceeds
129 * this threshold, will think there is a GPE storm happened and
130 * will disable the GPE for normal transaction.
131 */
132 static unsigned int ec_storm_threshold __read_mostly = 8;
133 module_param(ec_storm_threshold, uint, 0644);
134 MODULE_PARM_DESC(ec_storm_threshold, "Maxim false GPE numbers not considered as GPE storm");
135
136 static bool ec_freeze_events __read_mostly = false;
137 module_param(ec_freeze_events, bool, 0644);
138 MODULE_PARM_DESC(ec_freeze_events, "Disabling event handling during suspend/resume");
139
140 static bool ec_no_wakeup __read_mostly;
141 module_param(ec_no_wakeup, bool, 0644);
142 MODULE_PARM_DESC(ec_no_wakeup, "Do not wake up from suspend-to-idle");
143
144 struct acpi_ec_query_handler {
145 struct list_head node;
146 acpi_ec_query_func func;
147 acpi_handle handle;
148 void *data;
149 u8 query_bit;
150 struct kref kref;
151 };
152
153 struct transaction {
154 const u8 *wdata;
155 u8 *rdata;
156 unsigned short irq_count;
157 u8 command;
158 u8 wi;
159 u8 ri;
160 u8 wlen;
161 u8 rlen;
162 u8 flags;
163 };
164
165 struct acpi_ec_query {
166 struct transaction transaction;
167 struct work_struct work;
168 struct acpi_ec_query_handler *handler;
169 struct acpi_ec *ec;
170 };
171
172 static int acpi_ec_query(struct acpi_ec *ec, u8 *data);
173 static void advance_transaction(struct acpi_ec *ec);
174 static void acpi_ec_event_handler(struct work_struct *work);
175 static void acpi_ec_event_processor(struct work_struct *work);
176
177 struct acpi_ec *first_ec;
178 EXPORT_SYMBOL(first_ec);
179
180 static struct acpi_ec *boot_ec;
181 static bool boot_ec_is_ecdt = false;
182 static struct workqueue_struct *ec_wq;
183 static struct workqueue_struct *ec_query_wq;
184
185 static int EC_FLAGS_CORRECT_ECDT; /* Needs ECDT port address correction */
186 static int EC_FLAGS_TRUST_DSDT_GPE; /* Needs DSDT GPE as correction setting */
187 static int EC_FLAGS_CLEAR_ON_RESUME; /* Needs acpi_ec_clear() on boot/resume */
188
189 /* --------------------------------------------------------------------------
190 * Logging/Debugging
191 * -------------------------------------------------------------------------- */
192
193 /*
194 * Splitters used by the developers to track the boundary of the EC
195 * handling processes.
196 */
197 #ifdef DEBUG
198 #define EC_DBG_SEP " "
199 #define EC_DBG_DRV "+++++"
200 #define EC_DBG_STM "====="
201 #define EC_DBG_REQ "*****"
202 #define EC_DBG_EVT "#####"
203 #else
204 #define EC_DBG_SEP ""
205 #define EC_DBG_DRV
206 #define EC_DBG_STM
207 #define EC_DBG_REQ
208 #define EC_DBG_EVT
209 #endif
210
211 #define ec_log_raw(fmt, ...) \
212 pr_info(fmt "\n", ##__VA_ARGS__)
213 #define ec_dbg_raw(fmt, ...) \
214 pr_debug(fmt "\n", ##__VA_ARGS__)
215 #define ec_log(filter, fmt, ...) \
216 ec_log_raw(filter EC_DBG_SEP fmt EC_DBG_SEP filter, ##__VA_ARGS__)
217 #define ec_dbg(filter, fmt, ...) \
218 ec_dbg_raw(filter EC_DBG_SEP fmt EC_DBG_SEP filter, ##__VA_ARGS__)
219
220 #define ec_log_drv(fmt, ...) \
221 ec_log(EC_DBG_DRV, fmt, ##__VA_ARGS__)
222 #define ec_dbg_drv(fmt, ...) \
223 ec_dbg(EC_DBG_DRV, fmt, ##__VA_ARGS__)
224 #define ec_dbg_stm(fmt, ...) \
225 ec_dbg(EC_DBG_STM, fmt, ##__VA_ARGS__)
226 #define ec_dbg_req(fmt, ...) \
227 ec_dbg(EC_DBG_REQ, fmt, ##__VA_ARGS__)
228 #define ec_dbg_evt(fmt, ...) \
229 ec_dbg(EC_DBG_EVT, fmt, ##__VA_ARGS__)
230 #define ec_dbg_ref(ec, fmt, ...) \
231 ec_dbg_raw("%lu: " fmt, ec->reference_count, ## __VA_ARGS__)
232
233 /* --------------------------------------------------------------------------
234 * Device Flags
235 * -------------------------------------------------------------------------- */
236
acpi_ec_started(struct acpi_ec * ec)237 static bool acpi_ec_started(struct acpi_ec *ec)
238 {
239 return test_bit(EC_FLAGS_STARTED, &ec->flags) &&
240 !test_bit(EC_FLAGS_STOPPED, &ec->flags);
241 }
242
acpi_ec_event_enabled(struct acpi_ec * ec)243 static bool acpi_ec_event_enabled(struct acpi_ec *ec)
244 {
245 /*
246 * There is an OSPM early stage logic. During the early stages
247 * (boot/resume), OSPMs shouldn't enable the event handling, only
248 * the EC transactions are allowed to be performed.
249 */
250 if (!test_bit(EC_FLAGS_QUERY_ENABLED, &ec->flags))
251 return false;
252 /*
253 * However, disabling the event handling is experimental for late
254 * stage (suspend), and is controlled by the boot parameter of
255 * "ec_freeze_events":
256 * 1. true: The EC event handling is disabled before entering
257 * the noirq stage.
258 * 2. false: The EC event handling is automatically disabled as
259 * soon as the EC driver is stopped.
260 */
261 if (ec_freeze_events)
262 return acpi_ec_started(ec);
263 else
264 return test_bit(EC_FLAGS_STARTED, &ec->flags);
265 }
266
acpi_ec_flushed(struct acpi_ec * ec)267 static bool acpi_ec_flushed(struct acpi_ec *ec)
268 {
269 return ec->reference_count == 1;
270 }
271
272 /* --------------------------------------------------------------------------
273 * EC Registers
274 * -------------------------------------------------------------------------- */
275
acpi_ec_read_status(struct acpi_ec * ec)276 static inline u8 acpi_ec_read_status(struct acpi_ec *ec)
277 {
278 u8 x = inb(ec->command_addr);
279
280 ec_dbg_raw("EC_SC(R) = 0x%2.2x "
281 "SCI_EVT=%d BURST=%d CMD=%d IBF=%d OBF=%d",
282 x,
283 !!(x & ACPI_EC_FLAG_SCI),
284 !!(x & ACPI_EC_FLAG_BURST),
285 !!(x & ACPI_EC_FLAG_CMD),
286 !!(x & ACPI_EC_FLAG_IBF),
287 !!(x & ACPI_EC_FLAG_OBF));
288 return x;
289 }
290
acpi_ec_read_data(struct acpi_ec * ec)291 static inline u8 acpi_ec_read_data(struct acpi_ec *ec)
292 {
293 u8 x = inb(ec->data_addr);
294
295 ec->timestamp = jiffies;
296 ec_dbg_raw("EC_DATA(R) = 0x%2.2x", x);
297 return x;
298 }
299
acpi_ec_write_cmd(struct acpi_ec * ec,u8 command)300 static inline void acpi_ec_write_cmd(struct acpi_ec *ec, u8 command)
301 {
302 ec_dbg_raw("EC_SC(W) = 0x%2.2x", command);
303 outb(command, ec->command_addr);
304 ec->timestamp = jiffies;
305 }
306
acpi_ec_write_data(struct acpi_ec * ec,u8 data)307 static inline void acpi_ec_write_data(struct acpi_ec *ec, u8 data)
308 {
309 ec_dbg_raw("EC_DATA(W) = 0x%2.2x", data);
310 outb(data, ec->data_addr);
311 ec->timestamp = jiffies;
312 }
313
314 #if defined(DEBUG) || defined(CONFIG_DYNAMIC_DEBUG)
acpi_ec_cmd_string(u8 cmd)315 static const char *acpi_ec_cmd_string(u8 cmd)
316 {
317 switch (cmd) {
318 case 0x80:
319 return "RD_EC";
320 case 0x81:
321 return "WR_EC";
322 case 0x82:
323 return "BE_EC";
324 case 0x83:
325 return "BD_EC";
326 case 0x84:
327 return "QR_EC";
328 }
329 return "UNKNOWN";
330 }
331 #else
332 #define acpi_ec_cmd_string(cmd) "UNDEF"
333 #endif
334
335 /* --------------------------------------------------------------------------
336 * GPE Registers
337 * -------------------------------------------------------------------------- */
338
acpi_ec_is_gpe_raised(struct acpi_ec * ec)339 static inline bool acpi_ec_is_gpe_raised(struct acpi_ec *ec)
340 {
341 acpi_event_status gpe_status = 0;
342
343 (void)acpi_get_gpe_status(NULL, ec->gpe, &gpe_status);
344 return (gpe_status & ACPI_EVENT_FLAG_STATUS_SET) ? true : false;
345 }
346
acpi_ec_enable_gpe(struct acpi_ec * ec,bool open)347 static inline void acpi_ec_enable_gpe(struct acpi_ec *ec, bool open)
348 {
349 if (open)
350 acpi_enable_gpe(NULL, ec->gpe);
351 else {
352 BUG_ON(ec->reference_count < 1);
353 acpi_set_gpe(NULL, ec->gpe, ACPI_GPE_ENABLE);
354 }
355 if (acpi_ec_is_gpe_raised(ec)) {
356 /*
357 * On some platforms, EN=1 writes cannot trigger GPE. So
358 * software need to manually trigger a pseudo GPE event on
359 * EN=1 writes.
360 */
361 ec_dbg_raw("Polling quirk");
362 advance_transaction(ec);
363 }
364 }
365
acpi_ec_disable_gpe(struct acpi_ec * ec,bool close)366 static inline void acpi_ec_disable_gpe(struct acpi_ec *ec, bool close)
367 {
368 if (close)
369 acpi_disable_gpe(NULL, ec->gpe);
370 else {
371 BUG_ON(ec->reference_count < 1);
372 acpi_set_gpe(NULL, ec->gpe, ACPI_GPE_DISABLE);
373 }
374 }
375
acpi_ec_clear_gpe(struct acpi_ec * ec)376 static inline void acpi_ec_clear_gpe(struct acpi_ec *ec)
377 {
378 /*
379 * GPE STS is a W1C register, which means:
380 * 1. Software can clear it without worrying about clearing other
381 * GPEs' STS bits when the hardware sets them in parallel.
382 * 2. As long as software can ensure only clearing it when it is
383 * set, hardware won't set it in parallel.
384 * So software can clear GPE in any contexts.
385 * Warning: do not move the check into advance_transaction() as the
386 * EC commands will be sent without GPE raised.
387 */
388 if (!acpi_ec_is_gpe_raised(ec))
389 return;
390 acpi_clear_gpe(NULL, ec->gpe);
391 }
392
393 /* --------------------------------------------------------------------------
394 * Transaction Management
395 * -------------------------------------------------------------------------- */
396
acpi_ec_submit_request(struct acpi_ec * ec)397 static void acpi_ec_submit_request(struct acpi_ec *ec)
398 {
399 ec->reference_count++;
400 if (test_bit(EC_FLAGS_EVENT_HANDLER_INSTALLED, &ec->flags) &&
401 ec->gpe >= 0 && ec->reference_count == 1)
402 acpi_ec_enable_gpe(ec, true);
403 }
404
acpi_ec_complete_request(struct acpi_ec * ec)405 static void acpi_ec_complete_request(struct acpi_ec *ec)
406 {
407 bool flushed = false;
408
409 ec->reference_count--;
410 if (test_bit(EC_FLAGS_EVENT_HANDLER_INSTALLED, &ec->flags) &&
411 ec->gpe >= 0 && ec->reference_count == 0)
412 acpi_ec_disable_gpe(ec, true);
413 flushed = acpi_ec_flushed(ec);
414 if (flushed)
415 wake_up(&ec->wait);
416 }
417
acpi_ec_mask_events(struct acpi_ec * ec)418 static void acpi_ec_mask_events(struct acpi_ec *ec)
419 {
420 if (!test_bit(EC_FLAGS_EVENTS_MASKED, &ec->flags)) {
421 if (ec->gpe >= 0)
422 acpi_ec_disable_gpe(ec, false);
423 else
424 disable_irq_nosync(ec->irq);
425
426 ec_dbg_drv("Polling enabled");
427 set_bit(EC_FLAGS_EVENTS_MASKED, &ec->flags);
428 }
429 }
430
acpi_ec_unmask_events(struct acpi_ec * ec)431 static void acpi_ec_unmask_events(struct acpi_ec *ec)
432 {
433 if (test_bit(EC_FLAGS_EVENTS_MASKED, &ec->flags)) {
434 clear_bit(EC_FLAGS_EVENTS_MASKED, &ec->flags);
435 if (ec->gpe >= 0)
436 acpi_ec_enable_gpe(ec, false);
437 else
438 enable_irq(ec->irq);
439
440 ec_dbg_drv("Polling disabled");
441 }
442 }
443
444 /*
445 * acpi_ec_submit_flushable_request() - Increase the reference count unless
446 * the flush operation is not in
447 * progress
448 * @ec: the EC device
449 *
450 * This function must be used before taking a new action that should hold
451 * the reference count. If this function returns false, then the action
452 * must be discarded or it will prevent the flush operation from being
453 * completed.
454 */
acpi_ec_submit_flushable_request(struct acpi_ec * ec)455 static bool acpi_ec_submit_flushable_request(struct acpi_ec *ec)
456 {
457 if (!acpi_ec_started(ec))
458 return false;
459 acpi_ec_submit_request(ec);
460 return true;
461 }
462
acpi_ec_submit_query(struct acpi_ec * ec)463 static void acpi_ec_submit_query(struct acpi_ec *ec)
464 {
465 acpi_ec_mask_events(ec);
466 if (!acpi_ec_event_enabled(ec))
467 return;
468 if (!test_and_set_bit(EC_FLAGS_QUERY_PENDING, &ec->flags)) {
469 ec_dbg_evt("Command(%s) submitted/blocked",
470 acpi_ec_cmd_string(ACPI_EC_COMMAND_QUERY));
471 ec->nr_pending_queries++;
472 ec->events_in_progress++;
473 queue_work(ec_wq, &ec->work);
474 }
475 }
476
acpi_ec_complete_query(struct acpi_ec * ec)477 static void acpi_ec_complete_query(struct acpi_ec *ec)
478 {
479 if (test_and_clear_bit(EC_FLAGS_QUERY_PENDING, &ec->flags))
480 ec_dbg_evt("Command(%s) unblocked",
481 acpi_ec_cmd_string(ACPI_EC_COMMAND_QUERY));
482 acpi_ec_unmask_events(ec);
483 }
484
__acpi_ec_enable_event(struct acpi_ec * ec)485 static inline void __acpi_ec_enable_event(struct acpi_ec *ec)
486 {
487 if (!test_and_set_bit(EC_FLAGS_QUERY_ENABLED, &ec->flags))
488 ec_log_drv("event unblocked");
489 /*
490 * Unconditionally invoke this once after enabling the event
491 * handling mechanism to detect the pending events.
492 */
493 advance_transaction(ec);
494 }
495
__acpi_ec_disable_event(struct acpi_ec * ec)496 static inline void __acpi_ec_disable_event(struct acpi_ec *ec)
497 {
498 if (test_and_clear_bit(EC_FLAGS_QUERY_ENABLED, &ec->flags))
499 ec_log_drv("event blocked");
500 }
501
502 /*
503 * Process _Q events that might have accumulated in the EC.
504 * Run with locked ec mutex.
505 */
acpi_ec_clear(struct acpi_ec * ec)506 static void acpi_ec_clear(struct acpi_ec *ec)
507 {
508 int i, status;
509 u8 value = 0;
510
511 for (i = 0; i < ACPI_EC_CLEAR_MAX; i++) {
512 status = acpi_ec_query(ec, &value);
513 if (status || !value)
514 break;
515 }
516 if (unlikely(i == ACPI_EC_CLEAR_MAX))
517 pr_warn("Warning: Maximum of %d stale EC events cleared\n", i);
518 else
519 pr_info("%d stale EC events cleared\n", i);
520 }
521
acpi_ec_enable_event(struct acpi_ec * ec)522 static void acpi_ec_enable_event(struct acpi_ec *ec)
523 {
524 unsigned long flags;
525
526 spin_lock_irqsave(&ec->lock, flags);
527 if (acpi_ec_started(ec))
528 __acpi_ec_enable_event(ec);
529 spin_unlock_irqrestore(&ec->lock, flags);
530
531 /* Drain additional events if hardware requires that */
532 if (EC_FLAGS_CLEAR_ON_RESUME)
533 acpi_ec_clear(ec);
534 }
535
536 #ifdef CONFIG_PM_SLEEP
__acpi_ec_flush_work(void)537 static void __acpi_ec_flush_work(void)
538 {
539 flush_workqueue(ec_wq); /* flush ec->work */
540 flush_workqueue(ec_query_wq); /* flush queries */
541 }
542
acpi_ec_disable_event(struct acpi_ec * ec)543 static void acpi_ec_disable_event(struct acpi_ec *ec)
544 {
545 unsigned long flags;
546
547 spin_lock_irqsave(&ec->lock, flags);
548 __acpi_ec_disable_event(ec);
549 spin_unlock_irqrestore(&ec->lock, flags);
550
551 /*
552 * When ec_freeze_events is true, we need to flush events in
553 * the proper position before entering the noirq stage.
554 */
555 __acpi_ec_flush_work();
556 }
557
acpi_ec_flush_work(void)558 void acpi_ec_flush_work(void)
559 {
560 /* Without ec_wq there is nothing to flush. */
561 if (!ec_wq)
562 return;
563
564 __acpi_ec_flush_work();
565 }
566 #endif /* CONFIG_PM_SLEEP */
567
acpi_ec_guard_event(struct acpi_ec * ec)568 static bool acpi_ec_guard_event(struct acpi_ec *ec)
569 {
570 bool guarded = true;
571 unsigned long flags;
572
573 spin_lock_irqsave(&ec->lock, flags);
574 /*
575 * If firmware SCI_EVT clearing timing is "event", we actually
576 * don't know when the SCI_EVT will be cleared by firmware after
577 * evaluating _Qxx, so we need to re-check SCI_EVT after waiting an
578 * acceptable period.
579 *
580 * The guarding period begins when EC_FLAGS_QUERY_PENDING is
581 * flagged, which means SCI_EVT check has just been performed.
582 * But if the current transaction is ACPI_EC_COMMAND_QUERY, the
583 * guarding should have already been performed (via
584 * EC_FLAGS_QUERY_GUARDING) and should not be applied so that the
585 * ACPI_EC_COMMAND_QUERY transaction can be transitioned into
586 * ACPI_EC_COMMAND_POLL state immediately.
587 */
588 if (ec_event_clearing == ACPI_EC_EVT_TIMING_STATUS ||
589 ec_event_clearing == ACPI_EC_EVT_TIMING_QUERY ||
590 !test_bit(EC_FLAGS_QUERY_PENDING, &ec->flags) ||
591 (ec->curr && ec->curr->command == ACPI_EC_COMMAND_QUERY))
592 guarded = false;
593 spin_unlock_irqrestore(&ec->lock, flags);
594 return guarded;
595 }
596
ec_transaction_polled(struct acpi_ec * ec)597 static int ec_transaction_polled(struct acpi_ec *ec)
598 {
599 unsigned long flags;
600 int ret = 0;
601
602 spin_lock_irqsave(&ec->lock, flags);
603 if (ec->curr && (ec->curr->flags & ACPI_EC_COMMAND_POLL))
604 ret = 1;
605 spin_unlock_irqrestore(&ec->lock, flags);
606 return ret;
607 }
608
ec_transaction_completed(struct acpi_ec * ec)609 static int ec_transaction_completed(struct acpi_ec *ec)
610 {
611 unsigned long flags;
612 int ret = 0;
613
614 spin_lock_irqsave(&ec->lock, flags);
615 if (ec->curr && (ec->curr->flags & ACPI_EC_COMMAND_COMPLETE))
616 ret = 1;
617 spin_unlock_irqrestore(&ec->lock, flags);
618 return ret;
619 }
620
ec_transaction_transition(struct acpi_ec * ec,unsigned long flag)621 static inline void ec_transaction_transition(struct acpi_ec *ec, unsigned long flag)
622 {
623 ec->curr->flags |= flag;
624 if (ec->curr->command == ACPI_EC_COMMAND_QUERY) {
625 if (ec_event_clearing == ACPI_EC_EVT_TIMING_STATUS &&
626 flag == ACPI_EC_COMMAND_POLL)
627 acpi_ec_complete_query(ec);
628 if (ec_event_clearing == ACPI_EC_EVT_TIMING_QUERY &&
629 flag == ACPI_EC_COMMAND_COMPLETE)
630 acpi_ec_complete_query(ec);
631 if (ec_event_clearing == ACPI_EC_EVT_TIMING_EVENT &&
632 flag == ACPI_EC_COMMAND_COMPLETE)
633 set_bit(EC_FLAGS_QUERY_GUARDING, &ec->flags);
634 }
635 }
636
advance_transaction(struct acpi_ec * ec)637 static void advance_transaction(struct acpi_ec *ec)
638 {
639 struct transaction *t;
640 u8 status;
641 bool wakeup = false;
642
643 ec_dbg_stm("%s (%d)", in_interrupt() ? "IRQ" : "TASK",
644 smp_processor_id());
645 /*
646 * By always clearing STS before handling all indications, we can
647 * ensure a hardware STS 0->1 change after this clearing can always
648 * trigger a GPE interrupt.
649 */
650 if (ec->gpe >= 0)
651 acpi_ec_clear_gpe(ec);
652
653 status = acpi_ec_read_status(ec);
654 t = ec->curr;
655 /*
656 * Another IRQ or a guarded polling mode advancement is detected,
657 * the next QR_EC submission is then allowed.
658 */
659 if (!t || !(t->flags & ACPI_EC_COMMAND_POLL)) {
660 if (ec_event_clearing == ACPI_EC_EVT_TIMING_EVENT &&
661 (!ec->nr_pending_queries ||
662 test_bit(EC_FLAGS_QUERY_GUARDING, &ec->flags))) {
663 clear_bit(EC_FLAGS_QUERY_GUARDING, &ec->flags);
664 acpi_ec_complete_query(ec);
665 }
666 }
667 if (!t)
668 goto err;
669 if (t->flags & ACPI_EC_COMMAND_POLL) {
670 if (t->wlen > t->wi) {
671 if ((status & ACPI_EC_FLAG_IBF) == 0)
672 acpi_ec_write_data(ec, t->wdata[t->wi++]);
673 else
674 goto err;
675 } else if (t->rlen > t->ri) {
676 if ((status & ACPI_EC_FLAG_OBF) == 1) {
677 t->rdata[t->ri++] = acpi_ec_read_data(ec);
678 if (t->rlen == t->ri) {
679 ec_transaction_transition(ec, ACPI_EC_COMMAND_COMPLETE);
680 if (t->command == ACPI_EC_COMMAND_QUERY)
681 ec_dbg_evt("Command(%s) completed by hardware",
682 acpi_ec_cmd_string(ACPI_EC_COMMAND_QUERY));
683 wakeup = true;
684 }
685 } else
686 goto err;
687 } else if (t->wlen == t->wi &&
688 (status & ACPI_EC_FLAG_IBF) == 0) {
689 ec_transaction_transition(ec, ACPI_EC_COMMAND_COMPLETE);
690 wakeup = true;
691 }
692 goto out;
693 } else if (!(status & ACPI_EC_FLAG_IBF)) {
694 acpi_ec_write_cmd(ec, t->command);
695 ec_transaction_transition(ec, ACPI_EC_COMMAND_POLL);
696 goto out;
697 }
698 err:
699 /*
700 * If SCI bit is set, then don't think it's a false IRQ
701 * otherwise will take a not handled IRQ as a false one.
702 */
703 if (!(status & ACPI_EC_FLAG_SCI)) {
704 if (in_interrupt() && t) {
705 if (t->irq_count < ec_storm_threshold)
706 ++t->irq_count;
707 /* Allow triggering on 0 threshold */
708 if (t->irq_count == ec_storm_threshold)
709 acpi_ec_mask_events(ec);
710 }
711 }
712 out:
713 if (status & ACPI_EC_FLAG_SCI)
714 acpi_ec_submit_query(ec);
715 if (wakeup && in_interrupt())
716 wake_up(&ec->wait);
717 }
718
start_transaction(struct acpi_ec * ec)719 static void start_transaction(struct acpi_ec *ec)
720 {
721 ec->curr->irq_count = ec->curr->wi = ec->curr->ri = 0;
722 ec->curr->flags = 0;
723 }
724
ec_guard(struct acpi_ec * ec)725 static int ec_guard(struct acpi_ec *ec)
726 {
727 unsigned long guard = usecs_to_jiffies(ec->polling_guard);
728 unsigned long timeout = ec->timestamp + guard;
729
730 /* Ensure guarding period before polling EC status */
731 do {
732 if (ec->busy_polling) {
733 /* Perform busy polling */
734 if (ec_transaction_completed(ec))
735 return 0;
736 udelay(jiffies_to_usecs(guard));
737 } else {
738 /*
739 * Perform wait polling
740 * 1. Wait the transaction to be completed by the
741 * GPE handler after the transaction enters
742 * ACPI_EC_COMMAND_POLL state.
743 * 2. A special guarding logic is also required
744 * for event clearing mode "event" before the
745 * transaction enters ACPI_EC_COMMAND_POLL
746 * state.
747 */
748 if (!ec_transaction_polled(ec) &&
749 !acpi_ec_guard_event(ec))
750 break;
751 if (wait_event_timeout(ec->wait,
752 ec_transaction_completed(ec),
753 guard))
754 return 0;
755 }
756 } while (time_before(jiffies, timeout));
757 return -ETIME;
758 }
759
ec_poll(struct acpi_ec * ec)760 static int ec_poll(struct acpi_ec *ec)
761 {
762 unsigned long flags;
763 int repeat = 5; /* number of command restarts */
764
765 while (repeat--) {
766 unsigned long delay = jiffies +
767 msecs_to_jiffies(ec_delay);
768 do {
769 if (!ec_guard(ec))
770 return 0;
771 spin_lock_irqsave(&ec->lock, flags);
772 advance_transaction(ec);
773 spin_unlock_irqrestore(&ec->lock, flags);
774 } while (time_before(jiffies, delay));
775 pr_debug("controller reset, restart transaction\n");
776 spin_lock_irqsave(&ec->lock, flags);
777 start_transaction(ec);
778 spin_unlock_irqrestore(&ec->lock, flags);
779 }
780 return -ETIME;
781 }
782
acpi_ec_transaction_unlocked(struct acpi_ec * ec,struct transaction * t)783 static int acpi_ec_transaction_unlocked(struct acpi_ec *ec,
784 struct transaction *t)
785 {
786 unsigned long tmp;
787 int ret = 0;
788
789 /* start transaction */
790 spin_lock_irqsave(&ec->lock, tmp);
791 /* Enable GPE for command processing (IBF=0/OBF=1) */
792 if (!acpi_ec_submit_flushable_request(ec)) {
793 ret = -EINVAL;
794 goto unlock;
795 }
796 ec_dbg_ref(ec, "Increase command");
797 /* following two actions should be kept atomic */
798 ec->curr = t;
799 ec_dbg_req("Command(%s) started", acpi_ec_cmd_string(t->command));
800 start_transaction(ec);
801 spin_unlock_irqrestore(&ec->lock, tmp);
802
803 ret = ec_poll(ec);
804
805 spin_lock_irqsave(&ec->lock, tmp);
806 if (t->irq_count == ec_storm_threshold)
807 acpi_ec_unmask_events(ec);
808 ec_dbg_req("Command(%s) stopped", acpi_ec_cmd_string(t->command));
809 ec->curr = NULL;
810 /* Disable GPE for command processing (IBF=0/OBF=1) */
811 acpi_ec_complete_request(ec);
812 ec_dbg_ref(ec, "Decrease command");
813 unlock:
814 spin_unlock_irqrestore(&ec->lock, tmp);
815 return ret;
816 }
817
acpi_ec_transaction(struct acpi_ec * ec,struct transaction * t)818 static int acpi_ec_transaction(struct acpi_ec *ec, struct transaction *t)
819 {
820 int status;
821 u32 glk;
822
823 if (!ec || (!t) || (t->wlen && !t->wdata) || (t->rlen && !t->rdata))
824 return -EINVAL;
825 if (t->rdata)
826 memset(t->rdata, 0, t->rlen);
827
828 mutex_lock(&ec->mutex);
829 if (ec->global_lock) {
830 status = acpi_acquire_global_lock(ACPI_EC_UDELAY_GLK, &glk);
831 if (ACPI_FAILURE(status)) {
832 status = -ENODEV;
833 goto unlock;
834 }
835 }
836
837 status = acpi_ec_transaction_unlocked(ec, t);
838
839 if (ec->global_lock)
840 acpi_release_global_lock(glk);
841 unlock:
842 mutex_unlock(&ec->mutex);
843 return status;
844 }
845
acpi_ec_burst_enable(struct acpi_ec * ec)846 static int acpi_ec_burst_enable(struct acpi_ec *ec)
847 {
848 u8 d;
849 struct transaction t = {.command = ACPI_EC_BURST_ENABLE,
850 .wdata = NULL, .rdata = &d,
851 .wlen = 0, .rlen = 1};
852
853 return acpi_ec_transaction(ec, &t);
854 }
855
acpi_ec_burst_disable(struct acpi_ec * ec)856 static int acpi_ec_burst_disable(struct acpi_ec *ec)
857 {
858 struct transaction t = {.command = ACPI_EC_BURST_DISABLE,
859 .wdata = NULL, .rdata = NULL,
860 .wlen = 0, .rlen = 0};
861
862 return (acpi_ec_read_status(ec) & ACPI_EC_FLAG_BURST) ?
863 acpi_ec_transaction(ec, &t) : 0;
864 }
865
acpi_ec_read(struct acpi_ec * ec,u8 address,u8 * data)866 static int acpi_ec_read(struct acpi_ec *ec, u8 address, u8 *data)
867 {
868 int result;
869 u8 d;
870 struct transaction t = {.command = ACPI_EC_COMMAND_READ,
871 .wdata = &address, .rdata = &d,
872 .wlen = 1, .rlen = 1};
873
874 result = acpi_ec_transaction(ec, &t);
875 *data = d;
876 return result;
877 }
878
acpi_ec_write(struct acpi_ec * ec,u8 address,u8 data)879 static int acpi_ec_write(struct acpi_ec *ec, u8 address, u8 data)
880 {
881 u8 wdata[2] = { address, data };
882 struct transaction t = {.command = ACPI_EC_COMMAND_WRITE,
883 .wdata = wdata, .rdata = NULL,
884 .wlen = 2, .rlen = 0};
885
886 return acpi_ec_transaction(ec, &t);
887 }
888
ec_read(u8 addr,u8 * val)889 int ec_read(u8 addr, u8 *val)
890 {
891 int err;
892 u8 temp_data;
893
894 if (!first_ec)
895 return -ENODEV;
896
897 err = acpi_ec_read(first_ec, addr, &temp_data);
898
899 if (!err) {
900 *val = temp_data;
901 return 0;
902 }
903 return err;
904 }
905 EXPORT_SYMBOL(ec_read);
906
ec_write(u8 addr,u8 val)907 int ec_write(u8 addr, u8 val)
908 {
909 int err;
910
911 if (!first_ec)
912 return -ENODEV;
913
914 err = acpi_ec_write(first_ec, addr, val);
915
916 return err;
917 }
918 EXPORT_SYMBOL(ec_write);
919
ec_transaction(u8 command,const u8 * wdata,unsigned wdata_len,u8 * rdata,unsigned rdata_len)920 int ec_transaction(u8 command,
921 const u8 *wdata, unsigned wdata_len,
922 u8 *rdata, unsigned rdata_len)
923 {
924 struct transaction t = {.command = command,
925 .wdata = wdata, .rdata = rdata,
926 .wlen = wdata_len, .rlen = rdata_len};
927
928 if (!first_ec)
929 return -ENODEV;
930
931 return acpi_ec_transaction(first_ec, &t);
932 }
933 EXPORT_SYMBOL(ec_transaction);
934
935 /* Get the handle to the EC device */
ec_get_handle(void)936 acpi_handle ec_get_handle(void)
937 {
938 if (!first_ec)
939 return NULL;
940 return first_ec->handle;
941 }
942 EXPORT_SYMBOL(ec_get_handle);
943
acpi_ec_start(struct acpi_ec * ec,bool resuming)944 static void acpi_ec_start(struct acpi_ec *ec, bool resuming)
945 {
946 unsigned long flags;
947
948 spin_lock_irqsave(&ec->lock, flags);
949 if (!test_and_set_bit(EC_FLAGS_STARTED, &ec->flags)) {
950 ec_dbg_drv("Starting EC");
951 /* Enable GPE for event processing (SCI_EVT=1) */
952 if (!resuming) {
953 acpi_ec_submit_request(ec);
954 ec_dbg_ref(ec, "Increase driver");
955 }
956 ec_log_drv("EC started");
957 }
958 spin_unlock_irqrestore(&ec->lock, flags);
959 }
960
acpi_ec_stopped(struct acpi_ec * ec)961 static bool acpi_ec_stopped(struct acpi_ec *ec)
962 {
963 unsigned long flags;
964 bool flushed;
965
966 spin_lock_irqsave(&ec->lock, flags);
967 flushed = acpi_ec_flushed(ec);
968 spin_unlock_irqrestore(&ec->lock, flags);
969 return flushed;
970 }
971
acpi_ec_stop(struct acpi_ec * ec,bool suspending)972 static void acpi_ec_stop(struct acpi_ec *ec, bool suspending)
973 {
974 unsigned long flags;
975
976 spin_lock_irqsave(&ec->lock, flags);
977 if (acpi_ec_started(ec)) {
978 ec_dbg_drv("Stopping EC");
979 set_bit(EC_FLAGS_STOPPED, &ec->flags);
980 spin_unlock_irqrestore(&ec->lock, flags);
981 wait_event(ec->wait, acpi_ec_stopped(ec));
982 spin_lock_irqsave(&ec->lock, flags);
983 /* Disable GPE for event processing (SCI_EVT=1) */
984 if (!suspending) {
985 acpi_ec_complete_request(ec);
986 ec_dbg_ref(ec, "Decrease driver");
987 } else if (!ec_freeze_events)
988 __acpi_ec_disable_event(ec);
989 clear_bit(EC_FLAGS_STARTED, &ec->flags);
990 clear_bit(EC_FLAGS_STOPPED, &ec->flags);
991 ec_log_drv("EC stopped");
992 }
993 spin_unlock_irqrestore(&ec->lock, flags);
994 }
995
acpi_ec_enter_noirq(struct acpi_ec * ec)996 static void acpi_ec_enter_noirq(struct acpi_ec *ec)
997 {
998 unsigned long flags;
999
1000 spin_lock_irqsave(&ec->lock, flags);
1001 ec->busy_polling = true;
1002 ec->polling_guard = 0;
1003 ec_log_drv("interrupt blocked");
1004 spin_unlock_irqrestore(&ec->lock, flags);
1005 }
1006
acpi_ec_leave_noirq(struct acpi_ec * ec)1007 static void acpi_ec_leave_noirq(struct acpi_ec *ec)
1008 {
1009 unsigned long flags;
1010
1011 spin_lock_irqsave(&ec->lock, flags);
1012 ec->busy_polling = ec_busy_polling;
1013 ec->polling_guard = ec_polling_guard;
1014 ec_log_drv("interrupt unblocked");
1015 spin_unlock_irqrestore(&ec->lock, flags);
1016 }
1017
acpi_ec_block_transactions(void)1018 void acpi_ec_block_transactions(void)
1019 {
1020 struct acpi_ec *ec = first_ec;
1021
1022 if (!ec)
1023 return;
1024
1025 mutex_lock(&ec->mutex);
1026 /* Prevent transactions from being carried out */
1027 acpi_ec_stop(ec, true);
1028 mutex_unlock(&ec->mutex);
1029 }
1030
acpi_ec_unblock_transactions(void)1031 void acpi_ec_unblock_transactions(void)
1032 {
1033 /*
1034 * Allow transactions to happen again (this function is called from
1035 * atomic context during wakeup, so we don't need to acquire the mutex).
1036 */
1037 if (first_ec)
1038 acpi_ec_start(first_ec, true);
1039 }
1040
1041 /* --------------------------------------------------------------------------
1042 Event Management
1043 -------------------------------------------------------------------------- */
1044 static struct acpi_ec_query_handler *
acpi_ec_get_query_handler_by_value(struct acpi_ec * ec,u8 value)1045 acpi_ec_get_query_handler_by_value(struct acpi_ec *ec, u8 value)
1046 {
1047 struct acpi_ec_query_handler *handler;
1048
1049 mutex_lock(&ec->mutex);
1050 list_for_each_entry(handler, &ec->list, node) {
1051 if (value == handler->query_bit) {
1052 kref_get(&handler->kref);
1053 mutex_unlock(&ec->mutex);
1054 return handler;
1055 }
1056 }
1057 mutex_unlock(&ec->mutex);
1058 return NULL;
1059 }
1060
acpi_ec_query_handler_release(struct kref * kref)1061 static void acpi_ec_query_handler_release(struct kref *kref)
1062 {
1063 struct acpi_ec_query_handler *handler =
1064 container_of(kref, struct acpi_ec_query_handler, kref);
1065
1066 kfree(handler);
1067 }
1068
acpi_ec_put_query_handler(struct acpi_ec_query_handler * handler)1069 static void acpi_ec_put_query_handler(struct acpi_ec_query_handler *handler)
1070 {
1071 kref_put(&handler->kref, acpi_ec_query_handler_release);
1072 }
1073
acpi_ec_add_query_handler(struct acpi_ec * ec,u8 query_bit,acpi_handle handle,acpi_ec_query_func func,void * data)1074 int acpi_ec_add_query_handler(struct acpi_ec *ec, u8 query_bit,
1075 acpi_handle handle, acpi_ec_query_func func,
1076 void *data)
1077 {
1078 struct acpi_ec_query_handler *handler =
1079 kzalloc(sizeof(struct acpi_ec_query_handler), GFP_KERNEL);
1080
1081 if (!handler)
1082 return -ENOMEM;
1083
1084 handler->query_bit = query_bit;
1085 handler->handle = handle;
1086 handler->func = func;
1087 handler->data = data;
1088 mutex_lock(&ec->mutex);
1089 kref_init(&handler->kref);
1090 list_add(&handler->node, &ec->list);
1091 mutex_unlock(&ec->mutex);
1092 return 0;
1093 }
1094 EXPORT_SYMBOL_GPL(acpi_ec_add_query_handler);
1095
acpi_ec_remove_query_handlers(struct acpi_ec * ec,bool remove_all,u8 query_bit)1096 static void acpi_ec_remove_query_handlers(struct acpi_ec *ec,
1097 bool remove_all, u8 query_bit)
1098 {
1099 struct acpi_ec_query_handler *handler, *tmp;
1100 LIST_HEAD(free_list);
1101
1102 mutex_lock(&ec->mutex);
1103 list_for_each_entry_safe(handler, tmp, &ec->list, node) {
1104 if (remove_all || query_bit == handler->query_bit) {
1105 list_del_init(&handler->node);
1106 list_add(&handler->node, &free_list);
1107 }
1108 }
1109 mutex_unlock(&ec->mutex);
1110 list_for_each_entry_safe(handler, tmp, &free_list, node)
1111 acpi_ec_put_query_handler(handler);
1112 }
1113
acpi_ec_remove_query_handler(struct acpi_ec * ec,u8 query_bit)1114 void acpi_ec_remove_query_handler(struct acpi_ec *ec, u8 query_bit)
1115 {
1116 acpi_ec_remove_query_handlers(ec, false, query_bit);
1117 }
1118 EXPORT_SYMBOL_GPL(acpi_ec_remove_query_handler);
1119
acpi_ec_create_query(struct acpi_ec * ec,u8 * pval)1120 static struct acpi_ec_query *acpi_ec_create_query(struct acpi_ec *ec, u8 *pval)
1121 {
1122 struct acpi_ec_query *q;
1123 struct transaction *t;
1124
1125 q = kzalloc(sizeof (struct acpi_ec_query), GFP_KERNEL);
1126 if (!q)
1127 return NULL;
1128
1129 INIT_WORK(&q->work, acpi_ec_event_processor);
1130 t = &q->transaction;
1131 t->command = ACPI_EC_COMMAND_QUERY;
1132 t->rdata = pval;
1133 t->rlen = 1;
1134 q->ec = ec;
1135 return q;
1136 }
1137
acpi_ec_delete_query(struct acpi_ec_query * q)1138 static void acpi_ec_delete_query(struct acpi_ec_query *q)
1139 {
1140 if (q) {
1141 if (q->handler)
1142 acpi_ec_put_query_handler(q->handler);
1143 kfree(q);
1144 }
1145 }
1146
acpi_ec_event_processor(struct work_struct * work)1147 static void acpi_ec_event_processor(struct work_struct *work)
1148 {
1149 struct acpi_ec_query *q = container_of(work, struct acpi_ec_query, work);
1150 struct acpi_ec_query_handler *handler = q->handler;
1151 struct acpi_ec *ec = q->ec;
1152
1153 ec_dbg_evt("Query(0x%02x) started", handler->query_bit);
1154
1155 if (handler->func)
1156 handler->func(handler->data);
1157 else if (handler->handle)
1158 acpi_evaluate_object(handler->handle, NULL, NULL, NULL);
1159
1160 ec_dbg_evt("Query(0x%02x) stopped", handler->query_bit);
1161
1162 spin_lock_irq(&ec->lock);
1163 ec->queries_in_progress--;
1164 spin_unlock_irq(&ec->lock);
1165
1166 acpi_ec_delete_query(q);
1167 }
1168
acpi_ec_query(struct acpi_ec * ec,u8 * data)1169 static int acpi_ec_query(struct acpi_ec *ec, u8 *data)
1170 {
1171 u8 value = 0;
1172 int result;
1173 struct acpi_ec_query *q;
1174
1175 q = acpi_ec_create_query(ec, &value);
1176 if (!q)
1177 return -ENOMEM;
1178
1179 /*
1180 * Query the EC to find out which _Qxx method we need to evaluate.
1181 * Note that successful completion of the query causes the ACPI_EC_SCI
1182 * bit to be cleared (and thus clearing the interrupt source).
1183 */
1184 result = acpi_ec_transaction(ec, &q->transaction);
1185 if (!value)
1186 result = -ENODATA;
1187 if (result)
1188 goto err_exit;
1189
1190 q->handler = acpi_ec_get_query_handler_by_value(ec, value);
1191 if (!q->handler) {
1192 result = -ENODATA;
1193 goto err_exit;
1194 }
1195
1196 /*
1197 * It is reported that _Qxx are evaluated in a parallel way on Windows:
1198 * https://bugzilla.kernel.org/show_bug.cgi?id=94411
1199 *
1200 * Put this log entry before queue_work() to make it appear in the log
1201 * before any other messages emitted during workqueue handling.
1202 */
1203 ec_dbg_evt("Query(0x%02x) scheduled", value);
1204
1205 spin_lock_irq(&ec->lock);
1206
1207 ec->queries_in_progress++;
1208 queue_work(ec_query_wq, &q->work);
1209
1210 spin_unlock_irq(&ec->lock);
1211
1212 err_exit:
1213 if (result)
1214 acpi_ec_delete_query(q);
1215 if (data)
1216 *data = value;
1217 return result;
1218 }
1219
acpi_ec_check_event(struct acpi_ec * ec)1220 static void acpi_ec_check_event(struct acpi_ec *ec)
1221 {
1222 unsigned long flags;
1223
1224 if (ec_event_clearing == ACPI_EC_EVT_TIMING_EVENT) {
1225 if (ec_guard(ec)) {
1226 spin_lock_irqsave(&ec->lock, flags);
1227 /*
1228 * Take care of the SCI_EVT unless no one else is
1229 * taking care of it.
1230 */
1231 if (!ec->curr)
1232 advance_transaction(ec);
1233 spin_unlock_irqrestore(&ec->lock, flags);
1234 }
1235 }
1236 }
1237
acpi_ec_event_handler(struct work_struct * work)1238 static void acpi_ec_event_handler(struct work_struct *work)
1239 {
1240 unsigned long flags;
1241 struct acpi_ec *ec = container_of(work, struct acpi_ec, work);
1242
1243 ec_dbg_evt("Event started");
1244
1245 spin_lock_irqsave(&ec->lock, flags);
1246 while (ec->nr_pending_queries) {
1247 spin_unlock_irqrestore(&ec->lock, flags);
1248 (void)acpi_ec_query(ec, NULL);
1249 spin_lock_irqsave(&ec->lock, flags);
1250 ec->nr_pending_queries--;
1251 /*
1252 * Before exit, make sure that this work item can be
1253 * scheduled again. There might be QR_EC failures, leaving
1254 * EC_FLAGS_QUERY_PENDING uncleared and preventing this work
1255 * item from being scheduled again.
1256 */
1257 if (!ec->nr_pending_queries) {
1258 if (ec_event_clearing == ACPI_EC_EVT_TIMING_STATUS ||
1259 ec_event_clearing == ACPI_EC_EVT_TIMING_QUERY)
1260 acpi_ec_complete_query(ec);
1261 }
1262 }
1263 spin_unlock_irqrestore(&ec->lock, flags);
1264
1265 ec_dbg_evt("Event stopped");
1266
1267 acpi_ec_check_event(ec);
1268
1269 spin_lock_irqsave(&ec->lock, flags);
1270 ec->events_in_progress--;
1271 spin_unlock_irqrestore(&ec->lock, flags);
1272 }
1273
acpi_ec_handle_interrupt(struct acpi_ec * ec)1274 static void acpi_ec_handle_interrupt(struct acpi_ec *ec)
1275 {
1276 unsigned long flags;
1277
1278 spin_lock_irqsave(&ec->lock, flags);
1279 advance_transaction(ec);
1280 spin_unlock_irqrestore(&ec->lock, flags);
1281 }
1282
acpi_ec_gpe_handler(acpi_handle gpe_device,u32 gpe_number,void * data)1283 static u32 acpi_ec_gpe_handler(acpi_handle gpe_device,
1284 u32 gpe_number, void *data)
1285 {
1286 acpi_ec_handle_interrupt(data);
1287 return ACPI_INTERRUPT_HANDLED;
1288 }
1289
acpi_ec_irq_handler(int irq,void * data)1290 static irqreturn_t acpi_ec_irq_handler(int irq, void *data)
1291 {
1292 acpi_ec_handle_interrupt(data);
1293 return IRQ_HANDLED;
1294 }
1295
1296 /* --------------------------------------------------------------------------
1297 * Address Space Management
1298 * -------------------------------------------------------------------------- */
1299
1300 static acpi_status
acpi_ec_space_handler(u32 function,acpi_physical_address address,u32 bits,u64 * value64,void * handler_context,void * region_context)1301 acpi_ec_space_handler(u32 function, acpi_physical_address address,
1302 u32 bits, u64 *value64,
1303 void *handler_context, void *region_context)
1304 {
1305 struct acpi_ec *ec = handler_context;
1306 int result = 0, i, bytes = bits / 8;
1307 u8 *value = (u8 *)value64;
1308
1309 if ((address > 0xFF) || !value || !handler_context)
1310 return AE_BAD_PARAMETER;
1311
1312 if (function != ACPI_READ && function != ACPI_WRITE)
1313 return AE_BAD_PARAMETER;
1314
1315 if (ec->busy_polling || bits > 8)
1316 acpi_ec_burst_enable(ec);
1317
1318 for (i = 0; i < bytes; ++i, ++address, ++value)
1319 result = (function == ACPI_READ) ?
1320 acpi_ec_read(ec, address, value) :
1321 acpi_ec_write(ec, address, *value);
1322
1323 if (ec->busy_polling || bits > 8)
1324 acpi_ec_burst_disable(ec);
1325
1326 switch (result) {
1327 case -EINVAL:
1328 return AE_BAD_PARAMETER;
1329 case -ENODEV:
1330 return AE_NOT_FOUND;
1331 case -ETIME:
1332 return AE_TIME;
1333 default:
1334 return AE_OK;
1335 }
1336 }
1337
1338 /* --------------------------------------------------------------------------
1339 * Driver Interface
1340 * -------------------------------------------------------------------------- */
1341
1342 static acpi_status
1343 ec_parse_io_ports(struct acpi_resource *resource, void *context);
1344
acpi_ec_free(struct acpi_ec * ec)1345 static void acpi_ec_free(struct acpi_ec *ec)
1346 {
1347 if (first_ec == ec)
1348 first_ec = NULL;
1349 if (boot_ec == ec)
1350 boot_ec = NULL;
1351 kfree(ec);
1352 }
1353
acpi_ec_alloc(void)1354 static struct acpi_ec *acpi_ec_alloc(void)
1355 {
1356 struct acpi_ec *ec = kzalloc(sizeof(struct acpi_ec), GFP_KERNEL);
1357
1358 if (!ec)
1359 return NULL;
1360 mutex_init(&ec->mutex);
1361 init_waitqueue_head(&ec->wait);
1362 INIT_LIST_HEAD(&ec->list);
1363 spin_lock_init(&ec->lock);
1364 INIT_WORK(&ec->work, acpi_ec_event_handler);
1365 ec->timestamp = jiffies;
1366 ec->busy_polling = true;
1367 ec->polling_guard = 0;
1368 ec->gpe = -1;
1369 ec->irq = -1;
1370 return ec;
1371 }
1372
1373 static acpi_status
acpi_ec_register_query_methods(acpi_handle handle,u32 level,void * context,void ** return_value)1374 acpi_ec_register_query_methods(acpi_handle handle, u32 level,
1375 void *context, void **return_value)
1376 {
1377 char node_name[5];
1378 struct acpi_buffer buffer = { sizeof(node_name), node_name };
1379 struct acpi_ec *ec = context;
1380 int value = 0;
1381 acpi_status status;
1382
1383 status = acpi_get_name(handle, ACPI_SINGLE_NAME, &buffer);
1384
1385 if (ACPI_SUCCESS(status) && sscanf(node_name, "_Q%x", &value) == 1)
1386 acpi_ec_add_query_handler(ec, value, handle, NULL, NULL);
1387 return AE_OK;
1388 }
1389
1390 static acpi_status
ec_parse_device(acpi_handle handle,u32 Level,void * context,void ** retval)1391 ec_parse_device(acpi_handle handle, u32 Level, void *context, void **retval)
1392 {
1393 acpi_status status;
1394 unsigned long long tmp = 0;
1395 struct acpi_ec *ec = context;
1396
1397 /* clear addr values, ec_parse_io_ports depend on it */
1398 ec->command_addr = ec->data_addr = 0;
1399
1400 status = acpi_walk_resources(handle, METHOD_NAME__CRS,
1401 ec_parse_io_ports, ec);
1402 if (ACPI_FAILURE(status))
1403 return status;
1404 if (ec->data_addr == 0 || ec->command_addr == 0)
1405 return AE_OK;
1406
1407 /* Get GPE bit assignment (EC events). */
1408 /* TODO: Add support for _GPE returning a package */
1409 status = acpi_evaluate_integer(handle, "_GPE", NULL, &tmp);
1410 if (ACPI_SUCCESS(status))
1411 ec->gpe = tmp;
1412 /*
1413 * Errors are non-fatal, allowing for ACPI Reduced Hardware
1414 * platforms which use GpioInt instead of GPE.
1415 */
1416
1417 /* Use the global lock for all EC transactions? */
1418 tmp = 0;
1419 acpi_evaluate_integer(handle, "_GLK", NULL, &tmp);
1420 ec->global_lock = tmp;
1421 ec->handle = handle;
1422 return AE_CTRL_TERMINATE;
1423 }
1424
install_gpe_event_handler(struct acpi_ec * ec)1425 static bool install_gpe_event_handler(struct acpi_ec *ec)
1426 {
1427 acpi_status status;
1428
1429 status = acpi_install_gpe_raw_handler(NULL, ec->gpe,
1430 ACPI_GPE_EDGE_TRIGGERED,
1431 &acpi_ec_gpe_handler, ec);
1432 if (ACPI_FAILURE(status))
1433 return false;
1434
1435 if (test_bit(EC_FLAGS_STARTED, &ec->flags) && ec->reference_count >= 1)
1436 acpi_ec_enable_gpe(ec, true);
1437
1438 return true;
1439 }
1440
install_gpio_irq_event_handler(struct acpi_ec * ec)1441 static bool install_gpio_irq_event_handler(struct acpi_ec *ec)
1442 {
1443 return request_irq(ec->irq, acpi_ec_irq_handler, IRQF_SHARED,
1444 "ACPI EC", ec) >= 0;
1445 }
1446
1447 /**
1448 * ec_install_handlers - Install service callbacks and register query methods.
1449 * @ec: Target EC.
1450 * @device: ACPI device object corresponding to @ec.
1451 *
1452 * Install a handler for the EC address space type unless it has been installed
1453 * already. If @device is not NULL, also look for EC query methods in the
1454 * namespace and register them, and install an event (either GPE or GPIO IRQ)
1455 * handler for the EC, if possible.
1456 *
1457 * Return:
1458 * -ENODEV if the address space handler cannot be installed, which means
1459 * "unable to handle transactions",
1460 * -EPROBE_DEFER if GPIO IRQ acquisition needs to be deferred,
1461 * or 0 (success) otherwise.
1462 */
ec_install_handlers(struct acpi_ec * ec,struct acpi_device * device)1463 static int ec_install_handlers(struct acpi_ec *ec, struct acpi_device *device)
1464 {
1465 acpi_status status;
1466
1467 acpi_ec_start(ec, false);
1468
1469 if (!test_bit(EC_FLAGS_EC_HANDLER_INSTALLED, &ec->flags)) {
1470 acpi_ec_enter_noirq(ec);
1471 status = acpi_install_address_space_handler(ec->handle,
1472 ACPI_ADR_SPACE_EC,
1473 &acpi_ec_space_handler,
1474 NULL, ec);
1475 if (ACPI_FAILURE(status)) {
1476 acpi_ec_stop(ec, false);
1477 return -ENODEV;
1478 }
1479 set_bit(EC_FLAGS_EC_HANDLER_INSTALLED, &ec->flags);
1480 }
1481
1482 if (!device)
1483 return 0;
1484
1485 if (ec->gpe < 0) {
1486 /* ACPI reduced hardware platforms use a GpioInt from _CRS. */
1487 int irq = acpi_dev_gpio_irq_get(device, 0);
1488 /*
1489 * Bail out right away for deferred probing or complete the
1490 * initialization regardless of any other errors.
1491 */
1492 if (irq == -EPROBE_DEFER)
1493 return -EPROBE_DEFER;
1494 else if (irq >= 0)
1495 ec->irq = irq;
1496 }
1497
1498 if (!test_bit(EC_FLAGS_QUERY_METHODS_INSTALLED, &ec->flags)) {
1499 /* Find and register all query methods */
1500 acpi_walk_namespace(ACPI_TYPE_METHOD, ec->handle, 1,
1501 acpi_ec_register_query_methods,
1502 NULL, ec, NULL);
1503 set_bit(EC_FLAGS_QUERY_METHODS_INSTALLED, &ec->flags);
1504 }
1505 if (!test_bit(EC_FLAGS_EVENT_HANDLER_INSTALLED, &ec->flags)) {
1506 bool ready = false;
1507
1508 if (ec->gpe >= 0)
1509 ready = install_gpe_event_handler(ec);
1510 else if (ec->irq >= 0)
1511 ready = install_gpio_irq_event_handler(ec);
1512
1513 if (ready) {
1514 set_bit(EC_FLAGS_EVENT_HANDLER_INSTALLED, &ec->flags);
1515 acpi_ec_leave_noirq(ec);
1516 }
1517 /*
1518 * Failures to install an event handler are not fatal, because
1519 * the EC can be polled for events.
1520 */
1521 }
1522 /* EC is fully operational, allow queries */
1523 acpi_ec_enable_event(ec);
1524
1525 return 0;
1526 }
1527
ec_remove_handlers(struct acpi_ec * ec)1528 static void ec_remove_handlers(struct acpi_ec *ec)
1529 {
1530 if (test_bit(EC_FLAGS_EC_HANDLER_INSTALLED, &ec->flags)) {
1531 if (ACPI_FAILURE(acpi_remove_address_space_handler(ec->handle,
1532 ACPI_ADR_SPACE_EC, &acpi_ec_space_handler)))
1533 pr_err("failed to remove space handler\n");
1534 clear_bit(EC_FLAGS_EC_HANDLER_INSTALLED, &ec->flags);
1535 }
1536
1537 /*
1538 * Stops handling the EC transactions after removing the operation
1539 * region handler. This is required because _REG(DISCONNECT)
1540 * invoked during the removal can result in new EC transactions.
1541 *
1542 * Flushes the EC requests and thus disables the GPE before
1543 * removing the GPE handler. This is required by the current ACPICA
1544 * GPE core. ACPICA GPE core will automatically disable a GPE when
1545 * it is indicated but there is no way to handle it. So the drivers
1546 * must disable the GPEs prior to removing the GPE handlers.
1547 */
1548 acpi_ec_stop(ec, false);
1549
1550 if (test_bit(EC_FLAGS_EVENT_HANDLER_INSTALLED, &ec->flags)) {
1551 if (ec->gpe >= 0 &&
1552 ACPI_FAILURE(acpi_remove_gpe_handler(NULL, ec->gpe,
1553 &acpi_ec_gpe_handler)))
1554 pr_err("failed to remove gpe handler\n");
1555
1556 if (ec->irq >= 0)
1557 free_irq(ec->irq, ec);
1558
1559 clear_bit(EC_FLAGS_EVENT_HANDLER_INSTALLED, &ec->flags);
1560 }
1561 if (test_bit(EC_FLAGS_QUERY_METHODS_INSTALLED, &ec->flags)) {
1562 acpi_ec_remove_query_handlers(ec, true, 0);
1563 clear_bit(EC_FLAGS_QUERY_METHODS_INSTALLED, &ec->flags);
1564 }
1565 }
1566
acpi_ec_setup(struct acpi_ec * ec,struct acpi_device * device)1567 static int acpi_ec_setup(struct acpi_ec *ec, struct acpi_device *device)
1568 {
1569 int ret;
1570
1571 ret = ec_install_handlers(ec, device);
1572 if (ret)
1573 return ret;
1574
1575 /* First EC capable of handling transactions */
1576 if (!first_ec)
1577 first_ec = ec;
1578
1579 pr_info("EC_CMD/EC_SC=0x%lx, EC_DATA=0x%lx\n", ec->command_addr,
1580 ec->data_addr);
1581
1582 if (test_bit(EC_FLAGS_EVENT_HANDLER_INSTALLED, &ec->flags)) {
1583 if (ec->gpe >= 0)
1584 pr_info("GPE=0x%x\n", ec->gpe);
1585 else
1586 pr_info("IRQ=%d\n", ec->irq);
1587 }
1588
1589 return ret;
1590 }
1591
acpi_ec_add(struct acpi_device * device)1592 static int acpi_ec_add(struct acpi_device *device)
1593 {
1594 struct acpi_ec *ec;
1595 int ret;
1596
1597 strcpy(acpi_device_name(device), ACPI_EC_DEVICE_NAME);
1598 strcpy(acpi_device_class(device), ACPI_EC_CLASS);
1599
1600 if (boot_ec && (boot_ec->handle == device->handle ||
1601 !strcmp(acpi_device_hid(device), ACPI_ECDT_HID))) {
1602 /* Fast path: this device corresponds to the boot EC. */
1603 ec = boot_ec;
1604 } else {
1605 acpi_status status;
1606
1607 ec = acpi_ec_alloc();
1608 if (!ec)
1609 return -ENOMEM;
1610
1611 status = ec_parse_device(device->handle, 0, ec, NULL);
1612 if (status != AE_CTRL_TERMINATE) {
1613 ret = -EINVAL;
1614 goto err;
1615 }
1616
1617 if (boot_ec && ec->command_addr == boot_ec->command_addr &&
1618 ec->data_addr == boot_ec->data_addr &&
1619 !EC_FLAGS_TRUST_DSDT_GPE) {
1620 /*
1621 * Trust PNP0C09 namespace location rather than
1622 * ECDT ID. But trust ECDT GPE rather than _GPE
1623 * because of ASUS quirks, so do not change
1624 * boot_ec->gpe to ec->gpe.
1625 */
1626 boot_ec->handle = ec->handle;
1627 acpi_handle_debug(ec->handle, "duplicated.\n");
1628 acpi_ec_free(ec);
1629 ec = boot_ec;
1630 }
1631 }
1632
1633 ret = acpi_ec_setup(ec, device);
1634 if (ret)
1635 goto err;
1636
1637 if (ec == boot_ec)
1638 acpi_handle_info(boot_ec->handle,
1639 "Boot %s EC initialization complete\n",
1640 boot_ec_is_ecdt ? "ECDT" : "DSDT");
1641
1642 acpi_handle_info(ec->handle,
1643 "EC: Used to handle transactions and events\n");
1644
1645 device->driver_data = ec;
1646
1647 ret = !!request_region(ec->data_addr, 1, "EC data");
1648 WARN(!ret, "Could not request EC data io port 0x%lx", ec->data_addr);
1649 ret = !!request_region(ec->command_addr, 1, "EC cmd");
1650 WARN(!ret, "Could not request EC cmd io port 0x%lx", ec->command_addr);
1651
1652 /* Reprobe devices depending on the EC */
1653 acpi_walk_dep_device_list(ec->handle);
1654
1655 acpi_handle_debug(ec->handle, "enumerated.\n");
1656 return 0;
1657
1658 err:
1659 if (ec != boot_ec)
1660 acpi_ec_free(ec);
1661
1662 return ret;
1663 }
1664
acpi_ec_remove(struct acpi_device * device)1665 static int acpi_ec_remove(struct acpi_device *device)
1666 {
1667 struct acpi_ec *ec;
1668
1669 if (!device)
1670 return -EINVAL;
1671
1672 ec = acpi_driver_data(device);
1673 release_region(ec->data_addr, 1);
1674 release_region(ec->command_addr, 1);
1675 device->driver_data = NULL;
1676 if (ec != boot_ec) {
1677 ec_remove_handlers(ec);
1678 acpi_ec_free(ec);
1679 }
1680 return 0;
1681 }
1682
1683 static acpi_status
ec_parse_io_ports(struct acpi_resource * resource,void * context)1684 ec_parse_io_ports(struct acpi_resource *resource, void *context)
1685 {
1686 struct acpi_ec *ec = context;
1687
1688 if (resource->type != ACPI_RESOURCE_TYPE_IO)
1689 return AE_OK;
1690
1691 /*
1692 * The first address region returned is the data port, and
1693 * the second address region returned is the status/command
1694 * port.
1695 */
1696 if (ec->data_addr == 0)
1697 ec->data_addr = resource->data.io.minimum;
1698 else if (ec->command_addr == 0)
1699 ec->command_addr = resource->data.io.minimum;
1700 else
1701 return AE_CTRL_TERMINATE;
1702
1703 return AE_OK;
1704 }
1705
1706 static const struct acpi_device_id ec_device_ids[] = {
1707 {"PNP0C09", 0},
1708 {ACPI_ECDT_HID, 0},
1709 {"", 0},
1710 };
1711
1712 /*
1713 * This function is not Windows-compatible as Windows never enumerates the
1714 * namespace EC before the main ACPI device enumeration process. It is
1715 * retained for historical reason and will be deprecated in the future.
1716 */
acpi_ec_dsdt_probe(void)1717 void __init acpi_ec_dsdt_probe(void)
1718 {
1719 struct acpi_ec *ec;
1720 acpi_status status;
1721 int ret;
1722
1723 /*
1724 * If a platform has ECDT, there is no need to proceed as the
1725 * following probe is not a part of the ACPI device enumeration,
1726 * executing _STA is not safe, and thus this probe may risk of
1727 * picking up an invalid EC device.
1728 */
1729 if (boot_ec)
1730 return;
1731
1732 ec = acpi_ec_alloc();
1733 if (!ec)
1734 return;
1735
1736 /*
1737 * At this point, the namespace is initialized, so start to find
1738 * the namespace objects.
1739 */
1740 status = acpi_get_devices(ec_device_ids[0].id, ec_parse_device, ec, NULL);
1741 if (ACPI_FAILURE(status) || !ec->handle) {
1742 acpi_ec_free(ec);
1743 return;
1744 }
1745
1746 /*
1747 * When the DSDT EC is available, always re-configure boot EC to
1748 * have _REG evaluated. _REG can only be evaluated after the
1749 * namespace initialization.
1750 * At this point, the GPE is not fully initialized, so do not to
1751 * handle the events.
1752 */
1753 ret = acpi_ec_setup(ec, NULL);
1754 if (ret) {
1755 acpi_ec_free(ec);
1756 return;
1757 }
1758
1759 boot_ec = ec;
1760
1761 acpi_handle_info(ec->handle,
1762 "Boot DSDT EC used to handle transactions\n");
1763 }
1764
1765 /*
1766 * acpi_ec_ecdt_start - Finalize the boot ECDT EC initialization.
1767 *
1768 * First, look for an ACPI handle for the boot ECDT EC if acpi_ec_add() has not
1769 * found a matching object in the namespace.
1770 *
1771 * Next, in case the DSDT EC is not functioning, it is still necessary to
1772 * provide a functional ECDT EC to handle events, so add an extra device object
1773 * to represent it (see https://bugzilla.kernel.org/show_bug.cgi?id=115021).
1774 *
1775 * This is useful on platforms with valid ECDT and invalid DSDT EC settings,
1776 * like ASUS X550ZE (see https://bugzilla.kernel.org/show_bug.cgi?id=196847).
1777 */
acpi_ec_ecdt_start(void)1778 static void __init acpi_ec_ecdt_start(void)
1779 {
1780 struct acpi_table_ecdt *ecdt_ptr;
1781 acpi_handle handle;
1782 acpi_status status;
1783
1784 /* Bail out if a matching EC has been found in the namespace. */
1785 if (!boot_ec || boot_ec->handle != ACPI_ROOT_OBJECT)
1786 return;
1787
1788 /* Look up the object pointed to from the ECDT in the namespace. */
1789 status = acpi_get_table(ACPI_SIG_ECDT, 1,
1790 (struct acpi_table_header **)&ecdt_ptr);
1791 if (ACPI_FAILURE(status))
1792 return;
1793
1794 status = acpi_get_handle(NULL, ecdt_ptr->id, &handle);
1795 if (ACPI_SUCCESS(status)) {
1796 boot_ec->handle = handle;
1797
1798 /* Add a special ACPI device object to represent the boot EC. */
1799 acpi_bus_register_early_device(ACPI_BUS_TYPE_ECDT_EC);
1800 }
1801
1802 acpi_put_table((struct acpi_table_header *)ecdt_ptr);
1803 }
1804
1805 /*
1806 * On some hardware it is necessary to clear events accumulated by the EC during
1807 * sleep. These ECs stop reporting GPEs until they are manually polled, if too
1808 * many events are accumulated. (e.g. Samsung Series 5/9 notebooks)
1809 *
1810 * https://bugzilla.kernel.org/show_bug.cgi?id=44161
1811 *
1812 * Ideally, the EC should also be instructed NOT to accumulate events during
1813 * sleep (which Windows seems to do somehow), but the interface to control this
1814 * behaviour is not known at this time.
1815 *
1816 * Models known to be affected are Samsung 530Uxx/535Uxx/540Uxx/550Pxx/900Xxx,
1817 * however it is very likely that other Samsung models are affected.
1818 *
1819 * On systems which don't accumulate _Q events during sleep, this extra check
1820 * should be harmless.
1821 */
ec_clear_on_resume(const struct dmi_system_id * id)1822 static int ec_clear_on_resume(const struct dmi_system_id *id)
1823 {
1824 pr_debug("Detected system needing EC poll on resume.\n");
1825 EC_FLAGS_CLEAR_ON_RESUME = 1;
1826 ec_event_clearing = ACPI_EC_EVT_TIMING_STATUS;
1827 return 0;
1828 }
1829
1830 /*
1831 * Some ECDTs contain wrong register addresses.
1832 * MSI MS-171F
1833 * https://bugzilla.kernel.org/show_bug.cgi?id=12461
1834 */
ec_correct_ecdt(const struct dmi_system_id * id)1835 static int ec_correct_ecdt(const struct dmi_system_id *id)
1836 {
1837 pr_debug("Detected system needing ECDT address correction.\n");
1838 EC_FLAGS_CORRECT_ECDT = 1;
1839 return 0;
1840 }
1841
1842 /*
1843 * Some ECDTs contain wrong GPE setting, but they share the same port addresses
1844 * with DSDT EC, don't duplicate the DSDT EC with ECDT EC in this case.
1845 * https://bugzilla.kernel.org/show_bug.cgi?id=209989
1846 */
ec_honor_dsdt_gpe(const struct dmi_system_id * id)1847 static int ec_honor_dsdt_gpe(const struct dmi_system_id *id)
1848 {
1849 pr_debug("Detected system needing DSDT GPE setting.\n");
1850 EC_FLAGS_TRUST_DSDT_GPE = 1;
1851 return 0;
1852 }
1853
1854 static const struct dmi_system_id ec_dmi_table[] __initconst = {
1855 {
1856 ec_correct_ecdt, "MSI MS-171F", {
1857 DMI_MATCH(DMI_SYS_VENDOR, "Micro-Star"),
1858 DMI_MATCH(DMI_PRODUCT_NAME, "MS-171F"),}, NULL},
1859 {
1860 /* https://bugzilla.kernel.org/show_bug.cgi?id=209989 */
1861 ec_honor_dsdt_gpe, "HP Pavilion Gaming Laptop 15-cx0xxx", {
1862 DMI_MATCH(DMI_SYS_VENDOR, "HP"),
1863 DMI_MATCH(DMI_PRODUCT_NAME, "HP Pavilion Gaming Laptop 15-cx0xxx"),}, NULL},
1864 {
1865 ec_clear_on_resume, "Samsung hardware", {
1866 DMI_MATCH(DMI_SYS_VENDOR, "SAMSUNG ELECTRONICS CO., LTD.")}, NULL},
1867 {},
1868 };
1869
acpi_ec_ecdt_probe(void)1870 void __init acpi_ec_ecdt_probe(void)
1871 {
1872 struct acpi_table_ecdt *ecdt_ptr;
1873 struct acpi_ec *ec;
1874 acpi_status status;
1875 int ret;
1876
1877 /* Generate a boot ec context. */
1878 dmi_check_system(ec_dmi_table);
1879 status = acpi_get_table(ACPI_SIG_ECDT, 1,
1880 (struct acpi_table_header **)&ecdt_ptr);
1881 if (ACPI_FAILURE(status))
1882 return;
1883
1884 if (!ecdt_ptr->control.address || !ecdt_ptr->data.address) {
1885 /*
1886 * Asus X50GL:
1887 * https://bugzilla.kernel.org/show_bug.cgi?id=11880
1888 */
1889 goto out;
1890 }
1891
1892 ec = acpi_ec_alloc();
1893 if (!ec)
1894 goto out;
1895
1896 if (EC_FLAGS_CORRECT_ECDT) {
1897 ec->command_addr = ecdt_ptr->data.address;
1898 ec->data_addr = ecdt_ptr->control.address;
1899 } else {
1900 ec->command_addr = ecdt_ptr->control.address;
1901 ec->data_addr = ecdt_ptr->data.address;
1902 }
1903
1904 /*
1905 * Ignore the GPE value on Reduced Hardware platforms.
1906 * Some products have this set to an erroneous value.
1907 */
1908 if (!acpi_gbl_reduced_hardware)
1909 ec->gpe = ecdt_ptr->gpe;
1910
1911 ec->handle = ACPI_ROOT_OBJECT;
1912
1913 /*
1914 * At this point, the namespace is not initialized, so do not find
1915 * the namespace objects, or handle the events.
1916 */
1917 ret = acpi_ec_setup(ec, NULL);
1918 if (ret) {
1919 acpi_ec_free(ec);
1920 goto out;
1921 }
1922
1923 boot_ec = ec;
1924 boot_ec_is_ecdt = true;
1925
1926 pr_info("Boot ECDT EC used to handle transactions\n");
1927
1928 out:
1929 acpi_put_table((struct acpi_table_header *)ecdt_ptr);
1930 }
1931
1932 #ifdef CONFIG_PM_SLEEP
acpi_ec_suspend(struct device * dev)1933 static int acpi_ec_suspend(struct device *dev)
1934 {
1935 struct acpi_ec *ec =
1936 acpi_driver_data(to_acpi_device(dev));
1937
1938 if (!pm_suspend_no_platform() && ec_freeze_events)
1939 acpi_ec_disable_event(ec);
1940 return 0;
1941 }
1942
acpi_ec_suspend_noirq(struct device * dev)1943 static int acpi_ec_suspend_noirq(struct device *dev)
1944 {
1945 struct acpi_ec *ec = acpi_driver_data(to_acpi_device(dev));
1946
1947 /*
1948 * The SCI handler doesn't run at this point, so the GPE can be
1949 * masked at the low level without side effects.
1950 */
1951 if (ec_no_wakeup && test_bit(EC_FLAGS_STARTED, &ec->flags) &&
1952 ec->gpe >= 0 && ec->reference_count >= 1)
1953 acpi_set_gpe(NULL, ec->gpe, ACPI_GPE_DISABLE);
1954
1955 acpi_ec_enter_noirq(ec);
1956
1957 return 0;
1958 }
1959
acpi_ec_resume_noirq(struct device * dev)1960 static int acpi_ec_resume_noirq(struct device *dev)
1961 {
1962 struct acpi_ec *ec = acpi_driver_data(to_acpi_device(dev));
1963
1964 acpi_ec_leave_noirq(ec);
1965
1966 if (ec_no_wakeup && test_bit(EC_FLAGS_STARTED, &ec->flags) &&
1967 ec->gpe >= 0 && ec->reference_count >= 1)
1968 acpi_set_gpe(NULL, ec->gpe, ACPI_GPE_ENABLE);
1969
1970 return 0;
1971 }
1972
acpi_ec_resume(struct device * dev)1973 static int acpi_ec_resume(struct device *dev)
1974 {
1975 struct acpi_ec *ec =
1976 acpi_driver_data(to_acpi_device(dev));
1977
1978 acpi_ec_enable_event(ec);
1979 return 0;
1980 }
1981
acpi_ec_mark_gpe_for_wake(void)1982 void acpi_ec_mark_gpe_for_wake(void)
1983 {
1984 if (first_ec && !ec_no_wakeup)
1985 acpi_mark_gpe_for_wake(NULL, first_ec->gpe);
1986 }
1987 EXPORT_SYMBOL_GPL(acpi_ec_mark_gpe_for_wake);
1988
acpi_ec_set_gpe_wake_mask(u8 action)1989 void acpi_ec_set_gpe_wake_mask(u8 action)
1990 {
1991 if (pm_suspend_no_platform() && first_ec && !ec_no_wakeup)
1992 acpi_set_gpe_wake_mask(NULL, first_ec->gpe, action);
1993 }
1994
acpi_ec_dispatch_gpe(void)1995 bool acpi_ec_dispatch_gpe(void)
1996 {
1997 bool work_in_progress;
1998 u32 ret;
1999
2000 if (!first_ec)
2001 return acpi_any_gpe_status_set(U32_MAX);
2002
2003 /*
2004 * Report wakeup if the status bit is set for any enabled GPE other
2005 * than the EC one.
2006 */
2007 if (acpi_any_gpe_status_set(first_ec->gpe))
2008 return true;
2009
2010 /*
2011 * Dispatch the EC GPE in-band, but do not report wakeup in any case
2012 * to allow the caller to process events properly after that.
2013 */
2014 ret = acpi_dispatch_gpe(NULL, first_ec->gpe);
2015 if (ret == ACPI_INTERRUPT_HANDLED)
2016 pm_pr_dbg("ACPI EC GPE dispatched\n");
2017
2018 /* Drain EC work. */
2019 do {
2020 acpi_ec_flush_work();
2021
2022 pm_pr_dbg("ACPI EC work flushed\n");
2023
2024 spin_lock_irq(&first_ec->lock);
2025
2026 work_in_progress = first_ec->events_in_progress +
2027 first_ec->queries_in_progress > 0;
2028
2029 spin_unlock_irq(&first_ec->lock);
2030 } while (work_in_progress && !pm_wakeup_pending());
2031
2032 return false;
2033 }
2034 #endif /* CONFIG_PM_SLEEP */
2035
2036 static const struct dev_pm_ops acpi_ec_pm = {
2037 SET_NOIRQ_SYSTEM_SLEEP_PM_OPS(acpi_ec_suspend_noirq, acpi_ec_resume_noirq)
2038 SET_SYSTEM_SLEEP_PM_OPS(acpi_ec_suspend, acpi_ec_resume)
2039 };
2040
param_set_event_clearing(const char * val,const struct kernel_param * kp)2041 static int param_set_event_clearing(const char *val,
2042 const struct kernel_param *kp)
2043 {
2044 int result = 0;
2045
2046 if (!strncmp(val, "status", sizeof("status") - 1)) {
2047 ec_event_clearing = ACPI_EC_EVT_TIMING_STATUS;
2048 pr_info("Assuming SCI_EVT clearing on EC_SC accesses\n");
2049 } else if (!strncmp(val, "query", sizeof("query") - 1)) {
2050 ec_event_clearing = ACPI_EC_EVT_TIMING_QUERY;
2051 pr_info("Assuming SCI_EVT clearing on QR_EC writes\n");
2052 } else if (!strncmp(val, "event", sizeof("event") - 1)) {
2053 ec_event_clearing = ACPI_EC_EVT_TIMING_EVENT;
2054 pr_info("Assuming SCI_EVT clearing on event reads\n");
2055 } else
2056 result = -EINVAL;
2057 return result;
2058 }
2059
param_get_event_clearing(char * buffer,const struct kernel_param * kp)2060 static int param_get_event_clearing(char *buffer,
2061 const struct kernel_param *kp)
2062 {
2063 switch (ec_event_clearing) {
2064 case ACPI_EC_EVT_TIMING_STATUS:
2065 return sprintf(buffer, "status\n");
2066 case ACPI_EC_EVT_TIMING_QUERY:
2067 return sprintf(buffer, "query\n");
2068 case ACPI_EC_EVT_TIMING_EVENT:
2069 return sprintf(buffer, "event\n");
2070 default:
2071 return sprintf(buffer, "invalid\n");
2072 }
2073 return 0;
2074 }
2075
2076 module_param_call(ec_event_clearing, param_set_event_clearing, param_get_event_clearing,
2077 NULL, 0644);
2078 MODULE_PARM_DESC(ec_event_clearing, "Assumed SCI_EVT clearing timing");
2079
2080 static struct acpi_driver acpi_ec_driver = {
2081 .name = "ec",
2082 .class = ACPI_EC_CLASS,
2083 .ids = ec_device_ids,
2084 .ops = {
2085 .add = acpi_ec_add,
2086 .remove = acpi_ec_remove,
2087 },
2088 .drv.pm = &acpi_ec_pm,
2089 };
2090
acpi_ec_destroy_workqueues(void)2091 static void acpi_ec_destroy_workqueues(void)
2092 {
2093 if (ec_wq) {
2094 destroy_workqueue(ec_wq);
2095 ec_wq = NULL;
2096 }
2097 if (ec_query_wq) {
2098 destroy_workqueue(ec_query_wq);
2099 ec_query_wq = NULL;
2100 }
2101 }
2102
acpi_ec_init_workqueues(void)2103 static int acpi_ec_init_workqueues(void)
2104 {
2105 if (!ec_wq)
2106 ec_wq = alloc_ordered_workqueue("kec", 0);
2107
2108 if (!ec_query_wq)
2109 ec_query_wq = alloc_workqueue("kec_query", 0, ec_max_queries);
2110
2111 if (!ec_wq || !ec_query_wq) {
2112 acpi_ec_destroy_workqueues();
2113 return -ENODEV;
2114 }
2115 return 0;
2116 }
2117
2118 static const struct dmi_system_id acpi_ec_no_wakeup[] = {
2119 {
2120 .ident = "Thinkpad X1 Carbon 6th",
2121 .matches = {
2122 DMI_MATCH(DMI_SYS_VENDOR, "LENOVO"),
2123 DMI_MATCH(DMI_PRODUCT_FAMILY, "Thinkpad X1 Carbon 6th"),
2124 },
2125 },
2126 {
2127 .ident = "ThinkPad X1 Yoga 3rd",
2128 .matches = {
2129 DMI_MATCH(DMI_SYS_VENDOR, "LENOVO"),
2130 DMI_MATCH(DMI_PRODUCT_FAMILY, "ThinkPad X1 Yoga 3rd"),
2131 },
2132 },
2133 { },
2134 };
2135
acpi_ec_init(void)2136 void __init acpi_ec_init(void)
2137 {
2138 int result;
2139
2140 result = acpi_ec_init_workqueues();
2141 if (result)
2142 return;
2143
2144 /*
2145 * Disable EC wakeup on following systems to prevent periodic
2146 * wakeup from EC GPE.
2147 */
2148 if (dmi_check_system(acpi_ec_no_wakeup)) {
2149 ec_no_wakeup = true;
2150 pr_debug("Disabling EC wakeup on suspend-to-idle\n");
2151 }
2152
2153 /* Driver must be registered after acpi_ec_init_workqueues(). */
2154 acpi_bus_register_driver(&acpi_ec_driver);
2155
2156 acpi_ec_ecdt_start();
2157 }
2158
2159 /* EC driver currently not unloadable */
2160 #if 0
2161 static void __exit acpi_ec_exit(void)
2162 {
2163
2164 acpi_bus_unregister_driver(&acpi_ec_driver);
2165 acpi_ec_destroy_workqueues();
2166 }
2167 #endif /* 0 */
2168