1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * thinkpad_acpi.c - ThinkPad ACPI Extras
4 *
5 * Copyright (C) 2004-2005 Borislav Deianov <borislav@users.sf.net>
6 * Copyright (C) 2006-2009 Henrique de Moraes Holschuh <hmh@hmh.eng.br>
7 */
8
9 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
10
11 #define TPACPI_VERSION "0.26"
12 #define TPACPI_SYSFS_VERSION 0x030000
13
14 /*
15 * Changelog:
16 * 2007-10-20 changelog trimmed down
17 *
18 * 2007-03-27 0.14 renamed to thinkpad_acpi and moved to
19 * drivers/misc.
20 *
21 * 2006-11-22 0.13 new maintainer
22 * changelog now lives in git commit history, and will
23 * not be updated further in-file.
24 *
25 * 2005-03-17 0.11 support for 600e, 770x
26 * thanks to Jamie Lentin <lentinj@dial.pipex.com>
27 *
28 * 2005-01-16 0.9 use MODULE_VERSION
29 * thanks to Henrik Brix Andersen <brix@gentoo.org>
30 * fix parameter passing on module loading
31 * thanks to Rusty Russell <rusty@rustcorp.com.au>
32 * thanks to Jim Radford <radford@blackbean.org>
33 * 2004-11-08 0.8 fix init error case, don't return from a macro
34 * thanks to Chris Wright <chrisw@osdl.org>
35 */
36
37 #include <linux/kernel.h>
38 #include <linux/module.h>
39 #include <linux/init.h>
40 #include <linux/types.h>
41 #include <linux/string.h>
42 #include <linux/list.h>
43 #include <linux/mutex.h>
44 #include <linux/sched.h>
45 #include <linux/sched/signal.h>
46 #include <linux/kthread.h>
47 #include <linux/freezer.h>
48 #include <linux/delay.h>
49 #include <linux/slab.h>
50 #include <linux/nvram.h>
51 #include <linux/proc_fs.h>
52 #include <linux/seq_file.h>
53 #include <linux/sysfs.h>
54 #include <linux/backlight.h>
55 #include <linux/bitops.h>
56 #include <linux/fb.h>
57 #include <linux/platform_device.h>
58 #include <linux/hwmon.h>
59 #include <linux/hwmon-sysfs.h>
60 #include <linux/input.h>
61 #include <linux/leds.h>
62 #include <linux/rfkill.h>
63 #include <linux/dmi.h>
64 #include <linux/jiffies.h>
65 #include <linux/workqueue.h>
66 #include <linux/acpi.h>
67 #include <linux/pci.h>
68 #include <linux/power_supply.h>
69 #include <sound/core.h>
70 #include <sound/control.h>
71 #include <sound/initval.h>
72 #include <linux/uaccess.h>
73 #include <acpi/battery.h>
74 #include <acpi/video.h>
75
76 /* ThinkPad CMOS commands */
77 #define TP_CMOS_VOLUME_DOWN 0
78 #define TP_CMOS_VOLUME_UP 1
79 #define TP_CMOS_VOLUME_MUTE 2
80 #define TP_CMOS_BRIGHTNESS_UP 4
81 #define TP_CMOS_BRIGHTNESS_DOWN 5
82 #define TP_CMOS_THINKLIGHT_ON 12
83 #define TP_CMOS_THINKLIGHT_OFF 13
84
85 /* NVRAM Addresses */
86 enum tp_nvram_addr {
87 TP_NVRAM_ADDR_HK2 = 0x57,
88 TP_NVRAM_ADDR_THINKLIGHT = 0x58,
89 TP_NVRAM_ADDR_VIDEO = 0x59,
90 TP_NVRAM_ADDR_BRIGHTNESS = 0x5e,
91 TP_NVRAM_ADDR_MIXER = 0x60,
92 };
93
94 /* NVRAM bit masks */
95 enum {
96 TP_NVRAM_MASK_HKT_THINKPAD = 0x08,
97 TP_NVRAM_MASK_HKT_ZOOM = 0x20,
98 TP_NVRAM_MASK_HKT_DISPLAY = 0x40,
99 TP_NVRAM_MASK_HKT_HIBERNATE = 0x80,
100 TP_NVRAM_MASK_THINKLIGHT = 0x10,
101 TP_NVRAM_MASK_HKT_DISPEXPND = 0x30,
102 TP_NVRAM_MASK_HKT_BRIGHTNESS = 0x20,
103 TP_NVRAM_MASK_LEVEL_BRIGHTNESS = 0x0f,
104 TP_NVRAM_POS_LEVEL_BRIGHTNESS = 0,
105 TP_NVRAM_MASK_MUTE = 0x40,
106 TP_NVRAM_MASK_HKT_VOLUME = 0x80,
107 TP_NVRAM_MASK_LEVEL_VOLUME = 0x0f,
108 TP_NVRAM_POS_LEVEL_VOLUME = 0,
109 };
110
111 /* Misc NVRAM-related */
112 enum {
113 TP_NVRAM_LEVEL_VOLUME_MAX = 14,
114 };
115
116 /* ACPI HIDs */
117 #define TPACPI_ACPI_IBM_HKEY_HID "IBM0068"
118 #define TPACPI_ACPI_LENOVO_HKEY_HID "LEN0068"
119 #define TPACPI_ACPI_LENOVO_HKEY_V2_HID "LEN0268"
120 #define TPACPI_ACPI_EC_HID "PNP0C09"
121
122 /* Input IDs */
123 #define TPACPI_HKEY_INPUT_PRODUCT 0x5054 /* "TP" */
124 #define TPACPI_HKEY_INPUT_VERSION 0x4101
125
126 /* ACPI \WGSV commands */
127 enum {
128 TP_ACPI_WGSV_GET_STATE = 0x01, /* Get state information */
129 TP_ACPI_WGSV_PWR_ON_ON_RESUME = 0x02, /* Resume WWAN powered on */
130 TP_ACPI_WGSV_PWR_OFF_ON_RESUME = 0x03, /* Resume WWAN powered off */
131 TP_ACPI_WGSV_SAVE_STATE = 0x04, /* Save state for S4/S5 */
132 };
133
134 /* TP_ACPI_WGSV_GET_STATE bits */
135 enum {
136 TP_ACPI_WGSV_STATE_WWANEXIST = 0x0001, /* WWAN hw available */
137 TP_ACPI_WGSV_STATE_WWANPWR = 0x0002, /* WWAN radio enabled */
138 TP_ACPI_WGSV_STATE_WWANPWRRES = 0x0004, /* WWAN state at resume */
139 TP_ACPI_WGSV_STATE_WWANBIOSOFF = 0x0008, /* WWAN disabled in BIOS */
140 TP_ACPI_WGSV_STATE_BLTHEXIST = 0x0001, /* BLTH hw available */
141 TP_ACPI_WGSV_STATE_BLTHPWR = 0x0002, /* BLTH radio enabled */
142 TP_ACPI_WGSV_STATE_BLTHPWRRES = 0x0004, /* BLTH state at resume */
143 TP_ACPI_WGSV_STATE_BLTHBIOSOFF = 0x0008, /* BLTH disabled in BIOS */
144 TP_ACPI_WGSV_STATE_UWBEXIST = 0x0010, /* UWB hw available */
145 TP_ACPI_WGSV_STATE_UWBPWR = 0x0020, /* UWB radio enabled */
146 };
147
148 /* HKEY events */
149 enum tpacpi_hkey_event_t {
150 /* Hotkey-related */
151 TP_HKEY_EV_HOTKEY_BASE = 0x1001, /* first hotkey (FN+F1) */
152 TP_HKEY_EV_BRGHT_UP = 0x1010, /* Brightness up */
153 TP_HKEY_EV_BRGHT_DOWN = 0x1011, /* Brightness down */
154 TP_HKEY_EV_KBD_LIGHT = 0x1012, /* Thinklight/kbd backlight */
155 TP_HKEY_EV_VOL_UP = 0x1015, /* Volume up or unmute */
156 TP_HKEY_EV_VOL_DOWN = 0x1016, /* Volume down or unmute */
157 TP_HKEY_EV_VOL_MUTE = 0x1017, /* Mixer output mute */
158
159 /* Reasons for waking up from S3/S4 */
160 TP_HKEY_EV_WKUP_S3_UNDOCK = 0x2304, /* undock requested, S3 */
161 TP_HKEY_EV_WKUP_S4_UNDOCK = 0x2404, /* undock requested, S4 */
162 TP_HKEY_EV_WKUP_S3_BAYEJ = 0x2305, /* bay ejection req, S3 */
163 TP_HKEY_EV_WKUP_S4_BAYEJ = 0x2405, /* bay ejection req, S4 */
164 TP_HKEY_EV_WKUP_S3_BATLOW = 0x2313, /* battery empty, S3 */
165 TP_HKEY_EV_WKUP_S4_BATLOW = 0x2413, /* battery empty, S4 */
166
167 /* Auto-sleep after eject request */
168 TP_HKEY_EV_BAYEJ_ACK = 0x3003, /* bay ejection complete */
169 TP_HKEY_EV_UNDOCK_ACK = 0x4003, /* undock complete */
170
171 /* Misc bay events */
172 TP_HKEY_EV_OPTDRV_EJ = 0x3006, /* opt. drive tray ejected */
173 TP_HKEY_EV_HOTPLUG_DOCK = 0x4010, /* docked into hotplug dock
174 or port replicator */
175 TP_HKEY_EV_HOTPLUG_UNDOCK = 0x4011, /* undocked from hotplug
176 dock or port replicator */
177
178 /* User-interface events */
179 TP_HKEY_EV_LID_CLOSE = 0x5001, /* laptop lid closed */
180 TP_HKEY_EV_LID_OPEN = 0x5002, /* laptop lid opened */
181 TP_HKEY_EV_TABLET_TABLET = 0x5009, /* tablet swivel up */
182 TP_HKEY_EV_TABLET_NOTEBOOK = 0x500a, /* tablet swivel down */
183 TP_HKEY_EV_TABLET_CHANGED = 0x60c0, /* X1 Yoga (2016):
184 * enter/leave tablet mode
185 */
186 TP_HKEY_EV_PEN_INSERTED = 0x500b, /* tablet pen inserted */
187 TP_HKEY_EV_PEN_REMOVED = 0x500c, /* tablet pen removed */
188 TP_HKEY_EV_BRGHT_CHANGED = 0x5010, /* backlight control event */
189
190 /* Key-related user-interface events */
191 TP_HKEY_EV_KEY_NUMLOCK = 0x6000, /* NumLock key pressed */
192 TP_HKEY_EV_KEY_FN = 0x6005, /* Fn key pressed? E420 */
193 TP_HKEY_EV_KEY_FN_ESC = 0x6060, /* Fn+Esc key pressed X240 */
194
195 /* Thermal events */
196 TP_HKEY_EV_ALARM_BAT_HOT = 0x6011, /* battery too hot */
197 TP_HKEY_EV_ALARM_BAT_XHOT = 0x6012, /* battery critically hot */
198 TP_HKEY_EV_ALARM_SENSOR_HOT = 0x6021, /* sensor too hot */
199 TP_HKEY_EV_ALARM_SENSOR_XHOT = 0x6022, /* sensor critically hot */
200 TP_HKEY_EV_THM_TABLE_CHANGED = 0x6030, /* windows; thermal table changed */
201 TP_HKEY_EV_THM_CSM_COMPLETED = 0x6032, /* windows; thermal control set
202 * command completed. Related to
203 * AML DYTC */
204 TP_HKEY_EV_THM_TRANSFM_CHANGED = 0x60F0, /* windows; thermal transformation
205 * changed. Related to AML GMTS */
206
207 /* AC-related events */
208 TP_HKEY_EV_AC_CHANGED = 0x6040, /* AC status changed */
209
210 /* Further user-interface events */
211 TP_HKEY_EV_PALM_DETECTED = 0x60b0, /* palm hoveres keyboard */
212 TP_HKEY_EV_PALM_UNDETECTED = 0x60b1, /* palm removed */
213
214 /* Misc */
215 TP_HKEY_EV_RFKILL_CHANGED = 0x7000, /* rfkill switch changed */
216 };
217
218 /****************************************************************************
219 * Main driver
220 */
221
222 #define TPACPI_NAME "thinkpad"
223 #define TPACPI_DESC "ThinkPad ACPI Extras"
224 #define TPACPI_FILE TPACPI_NAME "_acpi"
225 #define TPACPI_URL "http://ibm-acpi.sf.net/"
226 #define TPACPI_MAIL "ibm-acpi-devel@lists.sourceforge.net"
227
228 #define TPACPI_PROC_DIR "ibm"
229 #define TPACPI_ACPI_EVENT_PREFIX "ibm"
230 #define TPACPI_DRVR_NAME TPACPI_FILE
231 #define TPACPI_DRVR_SHORTNAME "tpacpi"
232 #define TPACPI_HWMON_DRVR_NAME TPACPI_NAME "_hwmon"
233
234 #define TPACPI_NVRAM_KTHREAD_NAME "ktpacpi_nvramd"
235 #define TPACPI_WORKQUEUE_NAME "ktpacpid"
236
237 #define TPACPI_MAX_ACPI_ARGS 3
238
239 /* Debugging printk groups */
240 #define TPACPI_DBG_ALL 0xffff
241 #define TPACPI_DBG_DISCLOSETASK 0x8000
242 #define TPACPI_DBG_INIT 0x0001
243 #define TPACPI_DBG_EXIT 0x0002
244 #define TPACPI_DBG_RFKILL 0x0004
245 #define TPACPI_DBG_HKEY 0x0008
246 #define TPACPI_DBG_FAN 0x0010
247 #define TPACPI_DBG_BRGHT 0x0020
248 #define TPACPI_DBG_MIXER 0x0040
249
250 #define onoff(status, bit) ((status) & (1 << (bit)) ? "on" : "off")
251 #define enabled(status, bit) ((status) & (1 << (bit)) ? "enabled" : "disabled")
252 #define strlencmp(a, b) (strncmp((a), (b), strlen(b)))
253
254
255 /****************************************************************************
256 * Driver-wide structs and misc. variables
257 */
258
259 struct ibm_struct;
260
261 struct tp_acpi_drv_struct {
262 const struct acpi_device_id *hid;
263 struct acpi_driver *driver;
264
265 void (*notify) (struct ibm_struct *, u32);
266 acpi_handle *handle;
267 u32 type;
268 struct acpi_device *device;
269 };
270
271 struct ibm_struct {
272 char *name;
273
274 int (*read) (struct seq_file *);
275 int (*write) (char *);
276 void (*exit) (void);
277 void (*resume) (void);
278 void (*suspend) (void);
279 void (*shutdown) (void);
280
281 struct list_head all_drivers;
282
283 struct tp_acpi_drv_struct *acpi;
284
285 struct {
286 u8 acpi_driver_registered:1;
287 u8 acpi_notify_installed:1;
288 u8 proc_created:1;
289 u8 init_called:1;
290 u8 experimental:1;
291 } flags;
292 };
293
294 struct ibm_init_struct {
295 char param[32];
296
297 int (*init) (struct ibm_init_struct *);
298 umode_t base_procfs_mode;
299 struct ibm_struct *data;
300 };
301
302 static struct {
303 u32 bluetooth:1;
304 u32 hotkey:1;
305 u32 hotkey_mask:1;
306 u32 hotkey_wlsw:1;
307 enum {
308 TP_HOTKEY_TABLET_NONE = 0,
309 TP_HOTKEY_TABLET_USES_MHKG,
310 TP_HOTKEY_TABLET_USES_GMMS,
311 } hotkey_tablet;
312 u32 kbdlight:1;
313 u32 light:1;
314 u32 light_status:1;
315 u32 bright_acpimode:1;
316 u32 bright_unkfw:1;
317 u32 wan:1;
318 u32 uwb:1;
319 u32 fan_ctrl_status_undef:1;
320 u32 second_fan:1;
321 u32 second_fan_ctl:1;
322 u32 beep_needs_two_args:1;
323 u32 mixer_no_level_control:1;
324 u32 battery_force_primary:1;
325 u32 input_device_registered:1;
326 u32 platform_drv_registered:1;
327 u32 platform_drv_attrs_registered:1;
328 u32 sensors_pdrv_registered:1;
329 u32 sensors_pdrv_attrs_registered:1;
330 u32 sensors_pdev_attrs_registered:1;
331 u32 hotkey_poll_active:1;
332 u32 has_adaptive_kbd:1;
333 } tp_features;
334
335 static struct {
336 u16 hotkey_mask_ff:1;
337 u16 volume_ctrl_forbidden:1;
338 } tp_warned;
339
340 struct thinkpad_id_data {
341 unsigned int vendor; /* ThinkPad vendor:
342 * PCI_VENDOR_ID_IBM/PCI_VENDOR_ID_LENOVO */
343
344 char *bios_version_str; /* Something like 1ZET51WW (1.03z) */
345 char *ec_version_str; /* Something like 1ZHT51WW-1.04a */
346
347 u32 bios_model; /* 1Y = 0x3159, 0 = unknown */
348 u32 ec_model;
349 u16 bios_release; /* 1ZETK1WW = 0x4b31, 0 = unknown */
350 u16 ec_release;
351
352 char *model_str; /* ThinkPad T43 */
353 char *nummodel_str; /* 9384A9C for a 9384-A9C model */
354 };
355 static struct thinkpad_id_data thinkpad_id;
356
357 static enum {
358 TPACPI_LIFE_INIT = 0,
359 TPACPI_LIFE_RUNNING,
360 TPACPI_LIFE_EXITING,
361 } tpacpi_lifecycle;
362
363 static int experimental;
364 static u32 dbg_level;
365
366 static struct workqueue_struct *tpacpi_wq;
367
368 enum led_status_t {
369 TPACPI_LED_OFF = 0,
370 TPACPI_LED_ON,
371 TPACPI_LED_BLINK,
372 };
373
374 /* tpacpi LED class */
375 struct tpacpi_led_classdev {
376 struct led_classdev led_classdev;
377 int led;
378 };
379
380 /* brightness level capabilities */
381 static unsigned int bright_maxlvl; /* 0 = unknown */
382
383 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
384 static int dbg_wlswemul;
385 static bool tpacpi_wlsw_emulstate;
386 static int dbg_bluetoothemul;
387 static bool tpacpi_bluetooth_emulstate;
388 static int dbg_wwanemul;
389 static bool tpacpi_wwan_emulstate;
390 static int dbg_uwbemul;
391 static bool tpacpi_uwb_emulstate;
392 #endif
393
394
395 /*************************************************************************
396 * Debugging helpers
397 */
398
399 #define dbg_printk(a_dbg_level, format, arg...) \
400 do { \
401 if (dbg_level & (a_dbg_level)) \
402 printk(KERN_DEBUG pr_fmt("%s: " format), \
403 __func__, ##arg); \
404 } while (0)
405
406 #ifdef CONFIG_THINKPAD_ACPI_DEBUG
407 #define vdbg_printk dbg_printk
408 static const char *str_supported(int is_supported);
409 #else
str_supported(int is_supported)410 static inline const char *str_supported(int is_supported) { return ""; }
411 #define vdbg_printk(a_dbg_level, format, arg...) \
412 do { if (0) no_printk(format, ##arg); } while (0)
413 #endif
414
tpacpi_log_usertask(const char * const what)415 static void tpacpi_log_usertask(const char * const what)
416 {
417 printk(KERN_DEBUG pr_fmt("%s: access by process with PID %d\n"),
418 what, task_tgid_vnr(current));
419 }
420
421 #define tpacpi_disclose_usertask(what, format, arg...) \
422 do { \
423 if (unlikely((dbg_level & TPACPI_DBG_DISCLOSETASK) && \
424 (tpacpi_lifecycle == TPACPI_LIFE_RUNNING))) { \
425 printk(KERN_DEBUG pr_fmt("%s: PID %d: " format), \
426 what, task_tgid_vnr(current), ## arg); \
427 } \
428 } while (0)
429
430 /*
431 * Quirk handling helpers
432 *
433 * ThinkPad IDs and versions seen in the field so far are
434 * two or three characters from the set [0-9A-Z], i.e. base 36.
435 *
436 * We use values well outside that range as specials.
437 */
438
439 #define TPACPI_MATCH_ANY 0xffffffffU
440 #define TPACPI_MATCH_ANY_VERSION 0xffffU
441 #define TPACPI_MATCH_UNKNOWN 0U
442
443 /* TPID('1', 'Y') == 0x3159 */
444 #define TPID(__c1, __c2) (((__c1) << 8) | (__c2))
445 #define TPID3(__c1, __c2, __c3) (((__c1) << 16) | ((__c2) << 8) | (__c3))
446 #define TPVER TPID
447
448 #define TPACPI_Q_IBM(__id1, __id2, __quirk) \
449 { .vendor = PCI_VENDOR_ID_IBM, \
450 .bios = TPID(__id1, __id2), \
451 .ec = TPACPI_MATCH_ANY, \
452 .quirks = (__quirk) }
453
454 #define TPACPI_Q_LNV(__id1, __id2, __quirk) \
455 { .vendor = PCI_VENDOR_ID_LENOVO, \
456 .bios = TPID(__id1, __id2), \
457 .ec = TPACPI_MATCH_ANY, \
458 .quirks = (__quirk) }
459
460 #define TPACPI_Q_LNV3(__id1, __id2, __id3, __quirk) \
461 { .vendor = PCI_VENDOR_ID_LENOVO, \
462 .bios = TPID3(__id1, __id2, __id3), \
463 .ec = TPACPI_MATCH_ANY, \
464 .quirks = (__quirk) }
465
466 #define TPACPI_QEC_IBM(__id1, __id2, __quirk) \
467 { .vendor = PCI_VENDOR_ID_IBM, \
468 .bios = TPACPI_MATCH_ANY, \
469 .ec = TPID(__id1, __id2), \
470 .quirks = (__quirk) }
471
472 #define TPACPI_QEC_LNV(__id1, __id2, __quirk) \
473 { .vendor = PCI_VENDOR_ID_LENOVO, \
474 .bios = TPACPI_MATCH_ANY, \
475 .ec = TPID(__id1, __id2), \
476 .quirks = (__quirk) }
477
478 struct tpacpi_quirk {
479 unsigned int vendor;
480 u32 bios;
481 u32 ec;
482 unsigned long quirks;
483 };
484
485 /**
486 * tpacpi_check_quirks() - search BIOS/EC version on a list
487 * @qlist: array of &struct tpacpi_quirk
488 * @qlist_size: number of elements in @qlist
489 *
490 * Iterates over a quirks list until one is found that matches the
491 * ThinkPad's vendor, BIOS and EC model.
492 *
493 * Returns 0 if nothing matches, otherwise returns the quirks field of
494 * the matching &struct tpacpi_quirk entry.
495 *
496 * The match criteria is: vendor, ec and bios much match.
497 */
tpacpi_check_quirks( const struct tpacpi_quirk *qlist, unsigned int qlist_size)498 static unsigned long __init tpacpi_check_quirks(
499 const struct tpacpi_quirk *qlist,
500 unsigned int qlist_size)
501 {
502 while (qlist_size) {
503 if ((qlist->vendor == thinkpad_id.vendor ||
504 qlist->vendor == TPACPI_MATCH_ANY) &&
505 (qlist->bios == thinkpad_id.bios_model ||
506 qlist->bios == TPACPI_MATCH_ANY) &&
507 (qlist->ec == thinkpad_id.ec_model ||
508 qlist->ec == TPACPI_MATCH_ANY))
509 return qlist->quirks;
510
511 qlist_size--;
512 qlist++;
513 }
514 return 0;
515 }
516
tpacpi_is_lenovo(void)517 static inline bool __pure __init tpacpi_is_lenovo(void)
518 {
519 return thinkpad_id.vendor == PCI_VENDOR_ID_LENOVO;
520 }
521
tpacpi_is_ibm(void)522 static inline bool __pure __init tpacpi_is_ibm(void)
523 {
524 return thinkpad_id.vendor == PCI_VENDOR_ID_IBM;
525 }
526
527 /****************************************************************************
528 ****************************************************************************
529 *
530 * ACPI Helpers and device model
531 *
532 ****************************************************************************
533 ****************************************************************************/
534
535 /*************************************************************************
536 * ACPI basic handles
537 */
538
539 static acpi_handle root_handle;
540 static acpi_handle ec_handle;
541
542 #define TPACPI_HANDLE(object, parent, paths...) \
543 static acpi_handle object##_handle; \
544 static const acpi_handle * const object##_parent __initconst = \
545 &parent##_handle; \
546 static char *object##_paths[] __initdata = { paths }
547
548 TPACPI_HANDLE(ecrd, ec, "ECRD"); /* 570 */
549 TPACPI_HANDLE(ecwr, ec, "ECWR"); /* 570 */
550
551 TPACPI_HANDLE(cmos, root, "\\UCMS", /* R50, R50e, R50p, R51, */
552 /* T4x, X31, X40 */
553 "\\CMOS", /* A3x, G4x, R32, T23, T30, X22-24, X30 */
554 "\\CMS", /* R40, R40e */
555 ); /* all others */
556
557 TPACPI_HANDLE(hkey, ec, "\\_SB.HKEY", /* 600e/x, 770e, 770x */
558 "^HKEY", /* R30, R31 */
559 "HKEY", /* all others */
560 ); /* 570 */
561
562 /*************************************************************************
563 * ACPI helpers
564 */
565
acpi_evalf(acpi_handle handle, int *res, char *method, char *fmt, ...)566 static int acpi_evalf(acpi_handle handle,
567 int *res, char *method, char *fmt, ...)
568 {
569 char *fmt0 = fmt;
570 struct acpi_object_list params;
571 union acpi_object in_objs[TPACPI_MAX_ACPI_ARGS];
572 struct acpi_buffer result, *resultp;
573 union acpi_object out_obj;
574 acpi_status status;
575 va_list ap;
576 char res_type;
577 int success;
578 int quiet;
579
580 if (!*fmt) {
581 pr_err("acpi_evalf() called with empty format\n");
582 return 0;
583 }
584
585 if (*fmt == 'q') {
586 quiet = 1;
587 fmt++;
588 } else
589 quiet = 0;
590
591 res_type = *(fmt++);
592
593 params.count = 0;
594 params.pointer = &in_objs[0];
595
596 va_start(ap, fmt);
597 while (*fmt) {
598 char c = *(fmt++);
599 switch (c) {
600 case 'd': /* int */
601 in_objs[params.count].integer.value = va_arg(ap, int);
602 in_objs[params.count++].type = ACPI_TYPE_INTEGER;
603 break;
604 /* add more types as needed */
605 default:
606 pr_err("acpi_evalf() called with invalid format character '%c'\n",
607 c);
608 va_end(ap);
609 return 0;
610 }
611 }
612 va_end(ap);
613
614 if (res_type != 'v') {
615 result.length = sizeof(out_obj);
616 result.pointer = &out_obj;
617 resultp = &result;
618 } else
619 resultp = NULL;
620
621 status = acpi_evaluate_object(handle, method, ¶ms, resultp);
622
623 switch (res_type) {
624 case 'd': /* int */
625 success = (status == AE_OK &&
626 out_obj.type == ACPI_TYPE_INTEGER);
627 if (success && res)
628 *res = out_obj.integer.value;
629 break;
630 case 'v': /* void */
631 success = status == AE_OK;
632 break;
633 /* add more types as needed */
634 default:
635 pr_err("acpi_evalf() called with invalid format character '%c'\n",
636 res_type);
637 return 0;
638 }
639
640 if (!success && !quiet)
641 pr_err("acpi_evalf(%s, %s, ...) failed: %s\n",
642 method, fmt0, acpi_format_exception(status));
643
644 return success;
645 }
646
acpi_ec_read(int i, u8 *p)647 static int acpi_ec_read(int i, u8 *p)
648 {
649 int v;
650
651 if (ecrd_handle) {
652 if (!acpi_evalf(ecrd_handle, &v, NULL, "dd", i))
653 return 0;
654 *p = v;
655 } else {
656 if (ec_read(i, p) < 0)
657 return 0;
658 }
659
660 return 1;
661 }
662
acpi_ec_write(int i, u8 v)663 static int acpi_ec_write(int i, u8 v)
664 {
665 if (ecwr_handle) {
666 if (!acpi_evalf(ecwr_handle, NULL, NULL, "vdd", i, v))
667 return 0;
668 } else {
669 if (ec_write(i, v) < 0)
670 return 0;
671 }
672
673 return 1;
674 }
675
issue_thinkpad_cmos_command(int cmos_cmd)676 static int issue_thinkpad_cmos_command(int cmos_cmd)
677 {
678 if (!cmos_handle)
679 return -ENXIO;
680
681 if (!acpi_evalf(cmos_handle, NULL, NULL, "vd", cmos_cmd))
682 return -EIO;
683
684 return 0;
685 }
686
687 /*************************************************************************
688 * ACPI device model
689 */
690
691 #define TPACPI_ACPIHANDLE_INIT(object) \
692 drv_acpi_handle_init(#object, &object##_handle, *object##_parent, \
693 object##_paths, ARRAY_SIZE(object##_paths))
694
drv_acpi_handle_init(const char *name, acpi_handle *handle, const acpi_handle parent, char **paths, const int num_paths)695 static void __init drv_acpi_handle_init(const char *name,
696 acpi_handle *handle, const acpi_handle parent,
697 char **paths, const int num_paths)
698 {
699 int i;
700 acpi_status status;
701
702 vdbg_printk(TPACPI_DBG_INIT, "trying to locate ACPI handle for %s\n",
703 name);
704
705 for (i = 0; i < num_paths; i++) {
706 status = acpi_get_handle(parent, paths[i], handle);
707 if (ACPI_SUCCESS(status)) {
708 dbg_printk(TPACPI_DBG_INIT,
709 "Found ACPI handle %s for %s\n",
710 paths[i], name);
711 return;
712 }
713 }
714
715 vdbg_printk(TPACPI_DBG_INIT, "ACPI handle for %s not found\n",
716 name);
717 *handle = NULL;
718 }
719
tpacpi_acpi_handle_locate_callback(acpi_handle handle, u32 level, void *context, void **return_value)720 static acpi_status __init tpacpi_acpi_handle_locate_callback(acpi_handle handle,
721 u32 level, void *context, void **return_value)
722 {
723 struct acpi_device *dev;
724 if (!strcmp(context, "video")) {
725 if (acpi_bus_get_device(handle, &dev))
726 return AE_OK;
727 if (strcmp(ACPI_VIDEO_HID, acpi_device_hid(dev)))
728 return AE_OK;
729 }
730
731 *(acpi_handle *)return_value = handle;
732
733 return AE_CTRL_TERMINATE;
734 }
735
tpacpi_acpi_handle_locate(const char *name, const char *hid, acpi_handle *handle)736 static void __init tpacpi_acpi_handle_locate(const char *name,
737 const char *hid,
738 acpi_handle *handle)
739 {
740 acpi_status status;
741 acpi_handle device_found;
742
743 BUG_ON(!name || !handle);
744 vdbg_printk(TPACPI_DBG_INIT,
745 "trying to locate ACPI handle for %s, using HID %s\n",
746 name, hid ? hid : "NULL");
747
748 memset(&device_found, 0, sizeof(device_found));
749 status = acpi_get_devices(hid, tpacpi_acpi_handle_locate_callback,
750 (void *)name, &device_found);
751
752 *handle = NULL;
753
754 if (ACPI_SUCCESS(status)) {
755 *handle = device_found;
756 dbg_printk(TPACPI_DBG_INIT,
757 "Found ACPI handle for %s\n", name);
758 } else {
759 vdbg_printk(TPACPI_DBG_INIT,
760 "Could not locate an ACPI handle for %s: %s\n",
761 name, acpi_format_exception(status));
762 }
763 }
764
dispatch_acpi_notify(acpi_handle handle, u32 event, void *data)765 static void dispatch_acpi_notify(acpi_handle handle, u32 event, void *data)
766 {
767 struct ibm_struct *ibm = data;
768
769 if (tpacpi_lifecycle != TPACPI_LIFE_RUNNING)
770 return;
771
772 if (!ibm || !ibm->acpi || !ibm->acpi->notify)
773 return;
774
775 ibm->acpi->notify(ibm, event);
776 }
777
setup_acpi_notify(struct ibm_struct *ibm)778 static int __init setup_acpi_notify(struct ibm_struct *ibm)
779 {
780 acpi_status status;
781 int rc;
782
783 BUG_ON(!ibm->acpi);
784
785 if (!*ibm->acpi->handle)
786 return 0;
787
788 vdbg_printk(TPACPI_DBG_INIT,
789 "setting up ACPI notify for %s\n", ibm->name);
790
791 rc = acpi_bus_get_device(*ibm->acpi->handle, &ibm->acpi->device);
792 if (rc < 0) {
793 pr_err("acpi_bus_get_device(%s) failed: %d\n", ibm->name, rc);
794 return -ENODEV;
795 }
796
797 ibm->acpi->device->driver_data = ibm;
798 sprintf(acpi_device_class(ibm->acpi->device), "%s/%s",
799 TPACPI_ACPI_EVENT_PREFIX,
800 ibm->name);
801
802 status = acpi_install_notify_handler(*ibm->acpi->handle,
803 ibm->acpi->type, dispatch_acpi_notify, ibm);
804 if (ACPI_FAILURE(status)) {
805 if (status == AE_ALREADY_EXISTS) {
806 pr_notice("another device driver is already handling %s events\n",
807 ibm->name);
808 } else {
809 pr_err("acpi_install_notify_handler(%s) failed: %s\n",
810 ibm->name, acpi_format_exception(status));
811 }
812 return -ENODEV;
813 }
814 ibm->flags.acpi_notify_installed = 1;
815 return 0;
816 }
817
tpacpi_device_add(struct acpi_device *device)818 static int __init tpacpi_device_add(struct acpi_device *device)
819 {
820 return 0;
821 }
822
register_tpacpi_subdriver(struct ibm_struct *ibm)823 static int __init register_tpacpi_subdriver(struct ibm_struct *ibm)
824 {
825 int rc;
826
827 dbg_printk(TPACPI_DBG_INIT,
828 "registering %s as an ACPI driver\n", ibm->name);
829
830 BUG_ON(!ibm->acpi);
831
832 ibm->acpi->driver = kzalloc(sizeof(struct acpi_driver), GFP_KERNEL);
833 if (!ibm->acpi->driver) {
834 pr_err("failed to allocate memory for ibm->acpi->driver\n");
835 return -ENOMEM;
836 }
837
838 sprintf(ibm->acpi->driver->name, "%s_%s", TPACPI_NAME, ibm->name);
839 ibm->acpi->driver->ids = ibm->acpi->hid;
840
841 ibm->acpi->driver->ops.add = &tpacpi_device_add;
842
843 rc = acpi_bus_register_driver(ibm->acpi->driver);
844 if (rc < 0) {
845 pr_err("acpi_bus_register_driver(%s) failed: %d\n",
846 ibm->name, rc);
847 kfree(ibm->acpi->driver);
848 ibm->acpi->driver = NULL;
849 } else if (!rc)
850 ibm->flags.acpi_driver_registered = 1;
851
852 return rc;
853 }
854
855
856 /****************************************************************************
857 ****************************************************************************
858 *
859 * Procfs Helpers
860 *
861 ****************************************************************************
862 ****************************************************************************/
863
dispatch_proc_show(struct seq_file *m, void *v)864 static int dispatch_proc_show(struct seq_file *m, void *v)
865 {
866 struct ibm_struct *ibm = m->private;
867
868 if (!ibm || !ibm->read)
869 return -EINVAL;
870 return ibm->read(m);
871 }
872
dispatch_proc_open(struct inode *inode, struct file *file)873 static int dispatch_proc_open(struct inode *inode, struct file *file)
874 {
875 return single_open(file, dispatch_proc_show, PDE_DATA(inode));
876 }
877
dispatch_proc_write(struct file *file, const char __user *userbuf, size_t count, loff_t *pos)878 static ssize_t dispatch_proc_write(struct file *file,
879 const char __user *userbuf,
880 size_t count, loff_t *pos)
881 {
882 struct ibm_struct *ibm = PDE_DATA(file_inode(file));
883 char *kernbuf;
884 int ret;
885
886 if (!ibm || !ibm->write)
887 return -EINVAL;
888 if (count > PAGE_SIZE - 1)
889 return -EINVAL;
890
891 kernbuf = kmalloc(count + 1, GFP_KERNEL);
892 if (!kernbuf)
893 return -ENOMEM;
894
895 if (copy_from_user(kernbuf, userbuf, count)) {
896 kfree(kernbuf);
897 return -EFAULT;
898 }
899
900 kernbuf[count] = 0;
901 ret = ibm->write(kernbuf);
902 if (ret == 0)
903 ret = count;
904
905 kfree(kernbuf);
906
907 return ret;
908 }
909
910 static const struct proc_ops dispatch_proc_ops = {
911 .proc_open = dispatch_proc_open,
912 .proc_read = seq_read,
913 .proc_lseek = seq_lseek,
914 .proc_release = single_release,
915 .proc_write = dispatch_proc_write,
916 };
917
918 /****************************************************************************
919 ****************************************************************************
920 *
921 * Device model: input, hwmon and platform
922 *
923 ****************************************************************************
924 ****************************************************************************/
925
926 static struct platform_device *tpacpi_pdev;
927 static struct platform_device *tpacpi_sensors_pdev;
928 static struct device *tpacpi_hwmon;
929 static struct input_dev *tpacpi_inputdev;
930 static struct mutex tpacpi_inputdev_send_mutex;
931 static LIST_HEAD(tpacpi_all_drivers);
932
933 #ifdef CONFIG_PM_SLEEP
tpacpi_suspend_handler(struct device *dev)934 static int tpacpi_suspend_handler(struct device *dev)
935 {
936 struct ibm_struct *ibm, *itmp;
937
938 list_for_each_entry_safe(ibm, itmp,
939 &tpacpi_all_drivers,
940 all_drivers) {
941 if (ibm->suspend)
942 (ibm->suspend)();
943 }
944
945 return 0;
946 }
947
tpacpi_resume_handler(struct device *dev)948 static int tpacpi_resume_handler(struct device *dev)
949 {
950 struct ibm_struct *ibm, *itmp;
951
952 list_for_each_entry_safe(ibm, itmp,
953 &tpacpi_all_drivers,
954 all_drivers) {
955 if (ibm->resume)
956 (ibm->resume)();
957 }
958
959 return 0;
960 }
961 #endif
962
963 static SIMPLE_DEV_PM_OPS(tpacpi_pm,
964 tpacpi_suspend_handler, tpacpi_resume_handler);
965
tpacpi_shutdown_handler(struct platform_device *pdev)966 static void tpacpi_shutdown_handler(struct platform_device *pdev)
967 {
968 struct ibm_struct *ibm, *itmp;
969
970 list_for_each_entry_safe(ibm, itmp,
971 &tpacpi_all_drivers,
972 all_drivers) {
973 if (ibm->shutdown)
974 (ibm->shutdown)();
975 }
976 }
977
978 static struct platform_driver tpacpi_pdriver = {
979 .driver = {
980 .name = TPACPI_DRVR_NAME,
981 .pm = &tpacpi_pm,
982 },
983 .shutdown = tpacpi_shutdown_handler,
984 };
985
986 static struct platform_driver tpacpi_hwmon_pdriver = {
987 .driver = {
988 .name = TPACPI_HWMON_DRVR_NAME,
989 },
990 };
991
992 /*************************************************************************
993 * sysfs support helpers
994 */
995
996 struct attribute_set {
997 unsigned int members, max_members;
998 struct attribute_group group;
999 };
1000
1001 struct attribute_set_obj {
1002 struct attribute_set s;
1003 struct attribute *a;
1004 } __attribute__((packed));
1005
create_attr_set(unsigned int max_members, const char *name)1006 static struct attribute_set *create_attr_set(unsigned int max_members,
1007 const char *name)
1008 {
1009 struct attribute_set_obj *sobj;
1010
1011 if (max_members == 0)
1012 return NULL;
1013
1014 /* Allocates space for implicit NULL at the end too */
1015 sobj = kzalloc(sizeof(struct attribute_set_obj) +
1016 max_members * sizeof(struct attribute *),
1017 GFP_KERNEL);
1018 if (!sobj)
1019 return NULL;
1020 sobj->s.max_members = max_members;
1021 sobj->s.group.attrs = &sobj->a;
1022 sobj->s.group.name = name;
1023
1024 return &sobj->s;
1025 }
1026
1027 #define destroy_attr_set(_set) \
1028 kfree(_set);
1029
1030 /* not multi-threaded safe, use it in a single thread per set */
add_to_attr_set(struct attribute_set *s, struct attribute *attr)1031 static int add_to_attr_set(struct attribute_set *s, struct attribute *attr)
1032 {
1033 if (!s || !attr)
1034 return -EINVAL;
1035
1036 if (s->members >= s->max_members)
1037 return -ENOMEM;
1038
1039 s->group.attrs[s->members] = attr;
1040 s->members++;
1041
1042 return 0;
1043 }
1044
add_many_to_attr_set(struct attribute_set *s, struct attribute **attr, unsigned int count)1045 static int add_many_to_attr_set(struct attribute_set *s,
1046 struct attribute **attr,
1047 unsigned int count)
1048 {
1049 int i, res;
1050
1051 for (i = 0; i < count; i++) {
1052 res = add_to_attr_set(s, attr[i]);
1053 if (res)
1054 return res;
1055 }
1056
1057 return 0;
1058 }
1059
delete_attr_set(struct attribute_set *s, struct kobject *kobj)1060 static void delete_attr_set(struct attribute_set *s, struct kobject *kobj)
1061 {
1062 sysfs_remove_group(kobj, &s->group);
1063 destroy_attr_set(s);
1064 }
1065
1066 #define register_attr_set_with_sysfs(_attr_set, _kobj) \
1067 sysfs_create_group(_kobj, &_attr_set->group)
1068
parse_strtoul(const char *buf, unsigned long max, unsigned long *value)1069 static int parse_strtoul(const char *buf,
1070 unsigned long max, unsigned long *value)
1071 {
1072 char *endp;
1073
1074 *value = simple_strtoul(skip_spaces(buf), &endp, 0);
1075 endp = skip_spaces(endp);
1076 if (*endp || *value > max)
1077 return -EINVAL;
1078
1079 return 0;
1080 }
1081
tpacpi_disable_brightness_delay(void)1082 static void tpacpi_disable_brightness_delay(void)
1083 {
1084 if (acpi_evalf(hkey_handle, NULL, "PWMS", "qvd", 0))
1085 pr_notice("ACPI backlight control delay disabled\n");
1086 }
1087
printk_deprecated_attribute(const char * const what, const char * const details)1088 static void printk_deprecated_attribute(const char * const what,
1089 const char * const details)
1090 {
1091 tpacpi_log_usertask("deprecated sysfs attribute");
1092 pr_warn("WARNING: sysfs attribute %s is deprecated and will be removed. %s\n",
1093 what, details);
1094 }
1095
1096 /*************************************************************************
1097 * rfkill and radio control support helpers
1098 */
1099
1100 /*
1101 * ThinkPad-ACPI firmware handling model:
1102 *
1103 * WLSW (master wireless switch) is event-driven, and is common to all
1104 * firmware-controlled radios. It cannot be controlled, just monitored,
1105 * as expected. It overrides all radio state in firmware
1106 *
1107 * The kernel, a masked-off hotkey, and WLSW can change the radio state
1108 * (TODO: verify how WLSW interacts with the returned radio state).
1109 *
1110 * The only time there are shadow radio state changes, is when
1111 * masked-off hotkeys are used.
1112 */
1113
1114 /*
1115 * Internal driver API for radio state:
1116 *
1117 * int: < 0 = error, otherwise enum tpacpi_rfkill_state
1118 * bool: true means radio blocked (off)
1119 */
1120 enum tpacpi_rfkill_state {
1121 TPACPI_RFK_RADIO_OFF = 0,
1122 TPACPI_RFK_RADIO_ON
1123 };
1124
1125 /* rfkill switches */
1126 enum tpacpi_rfk_id {
1127 TPACPI_RFK_BLUETOOTH_SW_ID = 0,
1128 TPACPI_RFK_WWAN_SW_ID,
1129 TPACPI_RFK_UWB_SW_ID,
1130 TPACPI_RFK_SW_MAX
1131 };
1132
1133 static const char *tpacpi_rfkill_names[] = {
1134 [TPACPI_RFK_BLUETOOTH_SW_ID] = "bluetooth",
1135 [TPACPI_RFK_WWAN_SW_ID] = "wwan",
1136 [TPACPI_RFK_UWB_SW_ID] = "uwb",
1137 [TPACPI_RFK_SW_MAX] = NULL
1138 };
1139
1140 /* ThinkPad-ACPI rfkill subdriver */
1141 struct tpacpi_rfk {
1142 struct rfkill *rfkill;
1143 enum tpacpi_rfk_id id;
1144 const struct tpacpi_rfk_ops *ops;
1145 };
1146
1147 struct tpacpi_rfk_ops {
1148 /* firmware interface */
1149 int (*get_status)(void);
1150 int (*set_status)(const enum tpacpi_rfkill_state);
1151 };
1152
1153 static struct tpacpi_rfk *tpacpi_rfkill_switches[TPACPI_RFK_SW_MAX];
1154
1155 /* Query FW and update rfkill sw state for a given rfkill switch */
tpacpi_rfk_update_swstate(const struct tpacpi_rfk *tp_rfk)1156 static int tpacpi_rfk_update_swstate(const struct tpacpi_rfk *tp_rfk)
1157 {
1158 int status;
1159
1160 if (!tp_rfk)
1161 return -ENODEV;
1162
1163 status = (tp_rfk->ops->get_status)();
1164 if (status < 0)
1165 return status;
1166
1167 rfkill_set_sw_state(tp_rfk->rfkill,
1168 (status == TPACPI_RFK_RADIO_OFF));
1169
1170 return status;
1171 }
1172
1173 /*
1174 * Sync the HW-blocking state of all rfkill switches,
1175 * do notice it causes the rfkill core to schedule uevents
1176 */
tpacpi_rfk_update_hwblock_state(bool blocked)1177 static void tpacpi_rfk_update_hwblock_state(bool blocked)
1178 {
1179 unsigned int i;
1180 struct tpacpi_rfk *tp_rfk;
1181
1182 for (i = 0; i < TPACPI_RFK_SW_MAX; i++) {
1183 tp_rfk = tpacpi_rfkill_switches[i];
1184 if (tp_rfk) {
1185 if (rfkill_set_hw_state(tp_rfk->rfkill,
1186 blocked)) {
1187 /* ignore -- we track sw block */
1188 }
1189 }
1190 }
1191 }
1192
1193 /* Call to get the WLSW state from the firmware */
1194 static int hotkey_get_wlsw(void);
1195
1196 /* Call to query WLSW state and update all rfkill switches */
tpacpi_rfk_check_hwblock_state(void)1197 static bool tpacpi_rfk_check_hwblock_state(void)
1198 {
1199 int res = hotkey_get_wlsw();
1200 int hw_blocked;
1201
1202 /* When unknown or unsupported, we have to assume it is unblocked */
1203 if (res < 0)
1204 return false;
1205
1206 hw_blocked = (res == TPACPI_RFK_RADIO_OFF);
1207 tpacpi_rfk_update_hwblock_state(hw_blocked);
1208
1209 return hw_blocked;
1210 }
1211
tpacpi_rfk_hook_set_block(void *data, bool blocked)1212 static int tpacpi_rfk_hook_set_block(void *data, bool blocked)
1213 {
1214 struct tpacpi_rfk *tp_rfk = data;
1215 int res;
1216
1217 dbg_printk(TPACPI_DBG_RFKILL,
1218 "request to change radio state to %s\n",
1219 blocked ? "blocked" : "unblocked");
1220
1221 /* try to set radio state */
1222 res = (tp_rfk->ops->set_status)(blocked ?
1223 TPACPI_RFK_RADIO_OFF : TPACPI_RFK_RADIO_ON);
1224
1225 /* and update the rfkill core with whatever the FW really did */
1226 tpacpi_rfk_update_swstate(tp_rfk);
1227
1228 return (res < 0) ? res : 0;
1229 }
1230
1231 static const struct rfkill_ops tpacpi_rfk_rfkill_ops = {
1232 .set_block = tpacpi_rfk_hook_set_block,
1233 };
1234
tpacpi_new_rfkill(const enum tpacpi_rfk_id id, const struct tpacpi_rfk_ops *tp_rfkops, const enum rfkill_type rfktype, const char *name, const bool set_default)1235 static int __init tpacpi_new_rfkill(const enum tpacpi_rfk_id id,
1236 const struct tpacpi_rfk_ops *tp_rfkops,
1237 const enum rfkill_type rfktype,
1238 const char *name,
1239 const bool set_default)
1240 {
1241 struct tpacpi_rfk *atp_rfk;
1242 int res;
1243 bool sw_state = false;
1244 bool hw_state;
1245 int sw_status;
1246
1247 BUG_ON(id >= TPACPI_RFK_SW_MAX || tpacpi_rfkill_switches[id]);
1248
1249 atp_rfk = kzalloc(sizeof(struct tpacpi_rfk), GFP_KERNEL);
1250 if (atp_rfk)
1251 atp_rfk->rfkill = rfkill_alloc(name,
1252 &tpacpi_pdev->dev,
1253 rfktype,
1254 &tpacpi_rfk_rfkill_ops,
1255 atp_rfk);
1256 if (!atp_rfk || !atp_rfk->rfkill) {
1257 pr_err("failed to allocate memory for rfkill class\n");
1258 kfree(atp_rfk);
1259 return -ENOMEM;
1260 }
1261
1262 atp_rfk->id = id;
1263 atp_rfk->ops = tp_rfkops;
1264
1265 sw_status = (tp_rfkops->get_status)();
1266 if (sw_status < 0) {
1267 pr_err("failed to read initial state for %s, error %d\n",
1268 name, sw_status);
1269 } else {
1270 sw_state = (sw_status == TPACPI_RFK_RADIO_OFF);
1271 if (set_default) {
1272 /* try to keep the initial state, since we ask the
1273 * firmware to preserve it across S5 in NVRAM */
1274 rfkill_init_sw_state(atp_rfk->rfkill, sw_state);
1275 }
1276 }
1277 hw_state = tpacpi_rfk_check_hwblock_state();
1278 rfkill_set_hw_state(atp_rfk->rfkill, hw_state);
1279
1280 res = rfkill_register(atp_rfk->rfkill);
1281 if (res < 0) {
1282 pr_err("failed to register %s rfkill switch: %d\n", name, res);
1283 rfkill_destroy(atp_rfk->rfkill);
1284 kfree(atp_rfk);
1285 return res;
1286 }
1287
1288 tpacpi_rfkill_switches[id] = atp_rfk;
1289
1290 pr_info("rfkill switch %s: radio is %sblocked\n",
1291 name, (sw_state || hw_state) ? "" : "un");
1292 return 0;
1293 }
1294
tpacpi_destroy_rfkill(const enum tpacpi_rfk_id id)1295 static void tpacpi_destroy_rfkill(const enum tpacpi_rfk_id id)
1296 {
1297 struct tpacpi_rfk *tp_rfk;
1298
1299 BUG_ON(id >= TPACPI_RFK_SW_MAX);
1300
1301 tp_rfk = tpacpi_rfkill_switches[id];
1302 if (tp_rfk) {
1303 rfkill_unregister(tp_rfk->rfkill);
1304 rfkill_destroy(tp_rfk->rfkill);
1305 tpacpi_rfkill_switches[id] = NULL;
1306 kfree(tp_rfk);
1307 }
1308 }
1309
printk_deprecated_rfkill_attribute(const char * const what)1310 static void printk_deprecated_rfkill_attribute(const char * const what)
1311 {
1312 printk_deprecated_attribute(what,
1313 "Please switch to generic rfkill before year 2010");
1314 }
1315
1316 /* sysfs <radio> enable ------------------------------------------------ */
tpacpi_rfk_sysfs_enable_show(const enum tpacpi_rfk_id id, struct device_attribute *attr, char *buf)1317 static ssize_t tpacpi_rfk_sysfs_enable_show(const enum tpacpi_rfk_id id,
1318 struct device_attribute *attr,
1319 char *buf)
1320 {
1321 int status;
1322
1323 printk_deprecated_rfkill_attribute(attr->attr.name);
1324
1325 /* This is in the ABI... */
1326 if (tpacpi_rfk_check_hwblock_state()) {
1327 status = TPACPI_RFK_RADIO_OFF;
1328 } else {
1329 status = tpacpi_rfk_update_swstate(tpacpi_rfkill_switches[id]);
1330 if (status < 0)
1331 return status;
1332 }
1333
1334 return snprintf(buf, PAGE_SIZE, "%d\n",
1335 (status == TPACPI_RFK_RADIO_ON) ? 1 : 0);
1336 }
1337
tpacpi_rfk_sysfs_enable_store(const enum tpacpi_rfk_id id, struct device_attribute *attr, const char *buf, size_t count)1338 static ssize_t tpacpi_rfk_sysfs_enable_store(const enum tpacpi_rfk_id id,
1339 struct device_attribute *attr,
1340 const char *buf, size_t count)
1341 {
1342 unsigned long t;
1343 int res;
1344
1345 printk_deprecated_rfkill_attribute(attr->attr.name);
1346
1347 if (parse_strtoul(buf, 1, &t))
1348 return -EINVAL;
1349
1350 tpacpi_disclose_usertask(attr->attr.name, "set to %ld\n", t);
1351
1352 /* This is in the ABI... */
1353 if (tpacpi_rfk_check_hwblock_state() && !!t)
1354 return -EPERM;
1355
1356 res = tpacpi_rfkill_switches[id]->ops->set_status((!!t) ?
1357 TPACPI_RFK_RADIO_ON : TPACPI_RFK_RADIO_OFF);
1358 tpacpi_rfk_update_swstate(tpacpi_rfkill_switches[id]);
1359
1360 return (res < 0) ? res : count;
1361 }
1362
1363 /* procfs -------------------------------------------------------------- */
tpacpi_rfk_procfs_read(const enum tpacpi_rfk_id id, struct seq_file *m)1364 static int tpacpi_rfk_procfs_read(const enum tpacpi_rfk_id id, struct seq_file *m)
1365 {
1366 if (id >= TPACPI_RFK_SW_MAX)
1367 seq_printf(m, "status:\t\tnot supported\n");
1368 else {
1369 int status;
1370
1371 /* This is in the ABI... */
1372 if (tpacpi_rfk_check_hwblock_state()) {
1373 status = TPACPI_RFK_RADIO_OFF;
1374 } else {
1375 status = tpacpi_rfk_update_swstate(
1376 tpacpi_rfkill_switches[id]);
1377 if (status < 0)
1378 return status;
1379 }
1380
1381 seq_printf(m, "status:\t\t%s\n",
1382 (status == TPACPI_RFK_RADIO_ON) ?
1383 "enabled" : "disabled");
1384 seq_printf(m, "commands:\tenable, disable\n");
1385 }
1386
1387 return 0;
1388 }
1389
tpacpi_rfk_procfs_write(const enum tpacpi_rfk_id id, char *buf)1390 static int tpacpi_rfk_procfs_write(const enum tpacpi_rfk_id id, char *buf)
1391 {
1392 char *cmd;
1393 int status = -1;
1394 int res = 0;
1395
1396 if (id >= TPACPI_RFK_SW_MAX)
1397 return -ENODEV;
1398
1399 while ((cmd = strsep(&buf, ","))) {
1400 if (strlencmp(cmd, "enable") == 0)
1401 status = TPACPI_RFK_RADIO_ON;
1402 else if (strlencmp(cmd, "disable") == 0)
1403 status = TPACPI_RFK_RADIO_OFF;
1404 else
1405 return -EINVAL;
1406 }
1407
1408 if (status != -1) {
1409 tpacpi_disclose_usertask("procfs", "attempt to %s %s\n",
1410 (status == TPACPI_RFK_RADIO_ON) ?
1411 "enable" : "disable",
1412 tpacpi_rfkill_names[id]);
1413 res = (tpacpi_rfkill_switches[id]->ops->set_status)(status);
1414 tpacpi_rfk_update_swstate(tpacpi_rfkill_switches[id]);
1415 }
1416
1417 return res;
1418 }
1419
1420 /*************************************************************************
1421 * thinkpad-acpi driver attributes
1422 */
1423
1424 /* interface_version --------------------------------------------------- */
interface_version_show(struct device_driver *drv, char *buf)1425 static ssize_t interface_version_show(struct device_driver *drv, char *buf)
1426 {
1427 return snprintf(buf, PAGE_SIZE, "0x%08x\n", TPACPI_SYSFS_VERSION);
1428 }
1429 static DRIVER_ATTR_RO(interface_version);
1430
1431 /* debug_level --------------------------------------------------------- */
debug_level_show(struct device_driver *drv, char *buf)1432 static ssize_t debug_level_show(struct device_driver *drv, char *buf)
1433 {
1434 return snprintf(buf, PAGE_SIZE, "0x%04x\n", dbg_level);
1435 }
1436
debug_level_store(struct device_driver *drv, const char *buf, size_t count)1437 static ssize_t debug_level_store(struct device_driver *drv, const char *buf,
1438 size_t count)
1439 {
1440 unsigned long t;
1441
1442 if (parse_strtoul(buf, 0xffff, &t))
1443 return -EINVAL;
1444
1445 dbg_level = t;
1446
1447 return count;
1448 }
1449 static DRIVER_ATTR_RW(debug_level);
1450
1451 /* version ------------------------------------------------------------- */
version_show(struct device_driver *drv, char *buf)1452 static ssize_t version_show(struct device_driver *drv, char *buf)
1453 {
1454 return snprintf(buf, PAGE_SIZE, "%s v%s\n",
1455 TPACPI_DESC, TPACPI_VERSION);
1456 }
1457 static DRIVER_ATTR_RO(version);
1458
1459 /* --------------------------------------------------------------------- */
1460
1461 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
1462
1463 /* wlsw_emulstate ------------------------------------------------------ */
wlsw_emulstate_show(struct device_driver *drv, char *buf)1464 static ssize_t wlsw_emulstate_show(struct device_driver *drv, char *buf)
1465 {
1466 return snprintf(buf, PAGE_SIZE, "%d\n", !!tpacpi_wlsw_emulstate);
1467 }
1468
wlsw_emulstate_store(struct device_driver *drv, const char *buf, size_t count)1469 static ssize_t wlsw_emulstate_store(struct device_driver *drv, const char *buf,
1470 size_t count)
1471 {
1472 unsigned long t;
1473
1474 if (parse_strtoul(buf, 1, &t))
1475 return -EINVAL;
1476
1477 if (tpacpi_wlsw_emulstate != !!t) {
1478 tpacpi_wlsw_emulstate = !!t;
1479 tpacpi_rfk_update_hwblock_state(!t); /* negative logic */
1480 }
1481
1482 return count;
1483 }
1484 static DRIVER_ATTR_RW(wlsw_emulstate);
1485
1486 /* bluetooth_emulstate ------------------------------------------------- */
bluetooth_emulstate_show(struct device_driver *drv, char *buf)1487 static ssize_t bluetooth_emulstate_show(struct device_driver *drv, char *buf)
1488 {
1489 return snprintf(buf, PAGE_SIZE, "%d\n", !!tpacpi_bluetooth_emulstate);
1490 }
1491
bluetooth_emulstate_store(struct device_driver *drv, const char *buf, size_t count)1492 static ssize_t bluetooth_emulstate_store(struct device_driver *drv,
1493 const char *buf, size_t count)
1494 {
1495 unsigned long t;
1496
1497 if (parse_strtoul(buf, 1, &t))
1498 return -EINVAL;
1499
1500 tpacpi_bluetooth_emulstate = !!t;
1501
1502 return count;
1503 }
1504 static DRIVER_ATTR_RW(bluetooth_emulstate);
1505
1506 /* wwan_emulstate ------------------------------------------------- */
wwan_emulstate_show(struct device_driver *drv, char *buf)1507 static ssize_t wwan_emulstate_show(struct device_driver *drv, char *buf)
1508 {
1509 return snprintf(buf, PAGE_SIZE, "%d\n", !!tpacpi_wwan_emulstate);
1510 }
1511
wwan_emulstate_store(struct device_driver *drv, const char *buf, size_t count)1512 static ssize_t wwan_emulstate_store(struct device_driver *drv, const char *buf,
1513 size_t count)
1514 {
1515 unsigned long t;
1516
1517 if (parse_strtoul(buf, 1, &t))
1518 return -EINVAL;
1519
1520 tpacpi_wwan_emulstate = !!t;
1521
1522 return count;
1523 }
1524 static DRIVER_ATTR_RW(wwan_emulstate);
1525
1526 /* uwb_emulstate ------------------------------------------------- */
uwb_emulstate_show(struct device_driver *drv, char *buf)1527 static ssize_t uwb_emulstate_show(struct device_driver *drv, char *buf)
1528 {
1529 return snprintf(buf, PAGE_SIZE, "%d\n", !!tpacpi_uwb_emulstate);
1530 }
1531
uwb_emulstate_store(struct device_driver *drv, const char *buf, size_t count)1532 static ssize_t uwb_emulstate_store(struct device_driver *drv, const char *buf,
1533 size_t count)
1534 {
1535 unsigned long t;
1536
1537 if (parse_strtoul(buf, 1, &t))
1538 return -EINVAL;
1539
1540 tpacpi_uwb_emulstate = !!t;
1541
1542 return count;
1543 }
1544 static DRIVER_ATTR_RW(uwb_emulstate);
1545 #endif
1546
1547 /* --------------------------------------------------------------------- */
1548
1549 static struct driver_attribute *tpacpi_driver_attributes[] = {
1550 &driver_attr_debug_level, &driver_attr_version,
1551 &driver_attr_interface_version,
1552 };
1553
tpacpi_create_driver_attributes(struct device_driver *drv)1554 static int __init tpacpi_create_driver_attributes(struct device_driver *drv)
1555 {
1556 int i, res;
1557
1558 i = 0;
1559 res = 0;
1560 while (!res && i < ARRAY_SIZE(tpacpi_driver_attributes)) {
1561 res = driver_create_file(drv, tpacpi_driver_attributes[i]);
1562 i++;
1563 }
1564
1565 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
1566 if (!res && dbg_wlswemul)
1567 res = driver_create_file(drv, &driver_attr_wlsw_emulstate);
1568 if (!res && dbg_bluetoothemul)
1569 res = driver_create_file(drv, &driver_attr_bluetooth_emulstate);
1570 if (!res && dbg_wwanemul)
1571 res = driver_create_file(drv, &driver_attr_wwan_emulstate);
1572 if (!res && dbg_uwbemul)
1573 res = driver_create_file(drv, &driver_attr_uwb_emulstate);
1574 #endif
1575
1576 return res;
1577 }
1578
tpacpi_remove_driver_attributes(struct device_driver *drv)1579 static void tpacpi_remove_driver_attributes(struct device_driver *drv)
1580 {
1581 int i;
1582
1583 for (i = 0; i < ARRAY_SIZE(tpacpi_driver_attributes); i++)
1584 driver_remove_file(drv, tpacpi_driver_attributes[i]);
1585
1586 #ifdef THINKPAD_ACPI_DEBUGFACILITIES
1587 driver_remove_file(drv, &driver_attr_wlsw_emulstate);
1588 driver_remove_file(drv, &driver_attr_bluetooth_emulstate);
1589 driver_remove_file(drv, &driver_attr_wwan_emulstate);
1590 driver_remove_file(drv, &driver_attr_uwb_emulstate);
1591 #endif
1592 }
1593
1594 /*************************************************************************
1595 * Firmware Data
1596 */
1597
1598 /*
1599 * Table of recommended minimum BIOS versions
1600 *
1601 * Reasons for listing:
1602 * 1. Stable BIOS, listed because the unknown amount of
1603 * bugs and bad ACPI behaviour on older versions
1604 *
1605 * 2. BIOS or EC fw with known bugs that trigger on Linux
1606 *
1607 * 3. BIOS with known reduced functionality in older versions
1608 *
1609 * We recommend the latest BIOS and EC version.
1610 * We only support the latest BIOS and EC fw version as a rule.
1611 *
1612 * Sources: IBM ThinkPad Public Web Documents (update changelogs),
1613 * Information from users in ThinkWiki
1614 *
1615 * WARNING: we use this table also to detect that the machine is
1616 * a ThinkPad in some cases, so don't remove entries lightly.
1617 */
1618
1619 #define TPV_Q(__v, __id1, __id2, __bv1, __bv2) \
1620 { .vendor = (__v), \
1621 .bios = TPID(__id1, __id2), \
1622 .ec = TPACPI_MATCH_ANY, \
1623 .quirks = TPACPI_MATCH_ANY_VERSION << 16 \
1624 | TPVER(__bv1, __bv2) }
1625
1626 #define TPV_Q_X(__v, __bid1, __bid2, __bv1, __bv2, \
1627 __eid, __ev1, __ev2) \
1628 { .vendor = (__v), \
1629 .bios = TPID(__bid1, __bid2), \
1630 .ec = __eid, \
1631 .quirks = TPVER(__ev1, __ev2) << 16 \
1632 | TPVER(__bv1, __bv2) }
1633
1634 #define TPV_QI0(__id1, __id2, __bv1, __bv2) \
1635 TPV_Q(PCI_VENDOR_ID_IBM, __id1, __id2, __bv1, __bv2)
1636
1637 /* Outdated IBM BIOSes often lack the EC id string */
1638 #define TPV_QI1(__id1, __id2, __bv1, __bv2, __ev1, __ev2) \
1639 TPV_Q_X(PCI_VENDOR_ID_IBM, __id1, __id2, \
1640 __bv1, __bv2, TPID(__id1, __id2), \
1641 __ev1, __ev2), \
1642 TPV_Q_X(PCI_VENDOR_ID_IBM, __id1, __id2, \
1643 __bv1, __bv2, TPACPI_MATCH_UNKNOWN, \
1644 __ev1, __ev2)
1645
1646 /* Outdated IBM BIOSes often lack the EC id string */
1647 #define TPV_QI2(__bid1, __bid2, __bv1, __bv2, \
1648 __eid1, __eid2, __ev1, __ev2) \
1649 TPV_Q_X(PCI_VENDOR_ID_IBM, __bid1, __bid2, \
1650 __bv1, __bv2, TPID(__eid1, __eid2), \
1651 __ev1, __ev2), \
1652 TPV_Q_X(PCI_VENDOR_ID_IBM, __bid1, __bid2, \
1653 __bv1, __bv2, TPACPI_MATCH_UNKNOWN, \
1654 __ev1, __ev2)
1655
1656 #define TPV_QL0(__id1, __id2, __bv1, __bv2) \
1657 TPV_Q(PCI_VENDOR_ID_LENOVO, __id1, __id2, __bv1, __bv2)
1658
1659 #define TPV_QL1(__id1, __id2, __bv1, __bv2, __ev1, __ev2) \
1660 TPV_Q_X(PCI_VENDOR_ID_LENOVO, __id1, __id2, \
1661 __bv1, __bv2, TPID(__id1, __id2), \
1662 __ev1, __ev2)
1663
1664 #define TPV_QL2(__bid1, __bid2, __bv1, __bv2, \
1665 __eid1, __eid2, __ev1, __ev2) \
1666 TPV_Q_X(PCI_VENDOR_ID_LENOVO, __bid1, __bid2, \
1667 __bv1, __bv2, TPID(__eid1, __eid2), \
1668 __ev1, __ev2)
1669
1670 static const struct tpacpi_quirk tpacpi_bios_version_qtable[] __initconst = {
1671 /* Numeric models ------------------ */
1672 /* FW MODEL BIOS VERS */
1673 TPV_QI0('I', 'M', '6', '5'), /* 570 */
1674 TPV_QI0('I', 'U', '2', '6'), /* 570E */
1675 TPV_QI0('I', 'B', '5', '4'), /* 600 */
1676 TPV_QI0('I', 'H', '4', '7'), /* 600E */
1677 TPV_QI0('I', 'N', '3', '6'), /* 600E */
1678 TPV_QI0('I', 'T', '5', '5'), /* 600X */
1679 TPV_QI0('I', 'D', '4', '8'), /* 770, 770E, 770ED */
1680 TPV_QI0('I', 'I', '4', '2'), /* 770X */
1681 TPV_QI0('I', 'O', '2', '3'), /* 770Z */
1682
1683 /* A-series ------------------------- */
1684 /* FW MODEL BIOS VERS EC VERS */
1685 TPV_QI0('I', 'W', '5', '9'), /* A20m */
1686 TPV_QI0('I', 'V', '6', '9'), /* A20p */
1687 TPV_QI0('1', '0', '2', '6'), /* A21e, A22e */
1688 TPV_QI0('K', 'U', '3', '6'), /* A21e */
1689 TPV_QI0('K', 'X', '3', '6'), /* A21m, A22m */
1690 TPV_QI0('K', 'Y', '3', '8'), /* A21p, A22p */
1691 TPV_QI0('1', 'B', '1', '7'), /* A22e */
1692 TPV_QI0('1', '3', '2', '0'), /* A22m */
1693 TPV_QI0('1', 'E', '7', '3'), /* A30/p (0) */
1694 TPV_QI1('1', 'G', '4', '1', '1', '7'), /* A31/p (0) */
1695 TPV_QI1('1', 'N', '1', '6', '0', '7'), /* A31/p (0) */
1696
1697 /* G-series ------------------------- */
1698 /* FW MODEL BIOS VERS */
1699 TPV_QI0('1', 'T', 'A', '6'), /* G40 */
1700 TPV_QI0('1', 'X', '5', '7'), /* G41 */
1701
1702 /* R-series, T-series --------------- */
1703 /* FW MODEL BIOS VERS EC VERS */
1704 TPV_QI0('1', 'C', 'F', '0'), /* R30 */
1705 TPV_QI0('1', 'F', 'F', '1'), /* R31 */
1706 TPV_QI0('1', 'M', '9', '7'), /* R32 */
1707 TPV_QI0('1', 'O', '6', '1'), /* R40 */
1708 TPV_QI0('1', 'P', '6', '5'), /* R40 */
1709 TPV_QI0('1', 'S', '7', '0'), /* R40e */
1710 TPV_QI1('1', 'R', 'D', 'R', '7', '1'), /* R50/p, R51,
1711 T40/p, T41/p, T42/p (1) */
1712 TPV_QI1('1', 'V', '7', '1', '2', '8'), /* R50e, R51 (1) */
1713 TPV_QI1('7', '8', '7', '1', '0', '6'), /* R51e (1) */
1714 TPV_QI1('7', '6', '6', '9', '1', '6'), /* R52 (1) */
1715 TPV_QI1('7', '0', '6', '9', '2', '8'), /* R52, T43 (1) */
1716
1717 TPV_QI0('I', 'Y', '6', '1'), /* T20 */
1718 TPV_QI0('K', 'Z', '3', '4'), /* T21 */
1719 TPV_QI0('1', '6', '3', '2'), /* T22 */
1720 TPV_QI1('1', 'A', '6', '4', '2', '3'), /* T23 (0) */
1721 TPV_QI1('1', 'I', '7', '1', '2', '0'), /* T30 (0) */
1722 TPV_QI1('1', 'Y', '6', '5', '2', '9'), /* T43/p (1) */
1723
1724 TPV_QL1('7', '9', 'E', '3', '5', '0'), /* T60/p */
1725 TPV_QL1('7', 'C', 'D', '2', '2', '2'), /* R60, R60i */
1726 TPV_QL1('7', 'E', 'D', '0', '1', '5'), /* R60e, R60i */
1727
1728 /* BIOS FW BIOS VERS EC FW EC VERS */
1729 TPV_QI2('1', 'W', '9', '0', '1', 'V', '2', '8'), /* R50e (1) */
1730 TPV_QL2('7', 'I', '3', '4', '7', '9', '5', '0'), /* T60/p wide */
1731
1732 /* X-series ------------------------- */
1733 /* FW MODEL BIOS VERS EC VERS */
1734 TPV_QI0('I', 'Z', '9', 'D'), /* X20, X21 */
1735 TPV_QI0('1', 'D', '7', '0'), /* X22, X23, X24 */
1736 TPV_QI1('1', 'K', '4', '8', '1', '8'), /* X30 (0) */
1737 TPV_QI1('1', 'Q', '9', '7', '2', '3'), /* X31, X32 (0) */
1738 TPV_QI1('1', 'U', 'D', '3', 'B', '2'), /* X40 (0) */
1739 TPV_QI1('7', '4', '6', '4', '2', '7'), /* X41 (0) */
1740 TPV_QI1('7', '5', '6', '0', '2', '0'), /* X41t (0) */
1741
1742 TPV_QL1('7', 'B', 'D', '7', '4', '0'), /* X60/s */
1743 TPV_QL1('7', 'J', '3', '0', '1', '3'), /* X60t */
1744
1745 /* (0) - older versions lack DMI EC fw string and functionality */
1746 /* (1) - older versions known to lack functionality */
1747 };
1748
1749 #undef TPV_QL1
1750 #undef TPV_QL0
1751 #undef TPV_QI2
1752 #undef TPV_QI1
1753 #undef TPV_QI0
1754 #undef TPV_Q_X
1755 #undef TPV_Q
1756
tpacpi_check_outdated_fw(void)1757 static void __init tpacpi_check_outdated_fw(void)
1758 {
1759 unsigned long fwvers;
1760 u16 ec_version, bios_version;
1761
1762 fwvers = tpacpi_check_quirks(tpacpi_bios_version_qtable,
1763 ARRAY_SIZE(tpacpi_bios_version_qtable));
1764
1765 if (!fwvers)
1766 return;
1767
1768 bios_version = fwvers & 0xffffU;
1769 ec_version = (fwvers >> 16) & 0xffffU;
1770
1771 /* note that unknown versions are set to 0x0000 and we use that */
1772 if ((bios_version > thinkpad_id.bios_release) ||
1773 (ec_version > thinkpad_id.ec_release &&
1774 ec_version != TPACPI_MATCH_ANY_VERSION)) {
1775 /*
1776 * The changelogs would let us track down the exact
1777 * reason, but it is just too much of a pain to track
1778 * it. We only list BIOSes that are either really
1779 * broken, or really stable to begin with, so it is
1780 * best if the user upgrades the firmware anyway.
1781 */
1782 pr_warn("WARNING: Outdated ThinkPad BIOS/EC firmware\n");
1783 pr_warn("WARNING: This firmware may be missing critical bug fixes and/or important features\n");
1784 }
1785 }
1786
tpacpi_is_fw_known(void)1787 static bool __init tpacpi_is_fw_known(void)
1788 {
1789 return tpacpi_check_quirks(tpacpi_bios_version_qtable,
1790 ARRAY_SIZE(tpacpi_bios_version_qtable)) != 0;
1791 }
1792
1793 /****************************************************************************
1794 ****************************************************************************
1795 *
1796 * Subdrivers
1797 *
1798 ****************************************************************************
1799 ****************************************************************************/
1800
1801 /*************************************************************************
1802 * thinkpad-acpi metadata subdriver
1803 */
1804
thinkpad_acpi_driver_read(struct seq_file *m)1805 static int thinkpad_acpi_driver_read(struct seq_file *m)
1806 {
1807 seq_printf(m, "driver:\t\t%s\n", TPACPI_DESC);
1808 seq_printf(m, "version:\t%s\n", TPACPI_VERSION);
1809 return 0;
1810 }
1811
1812 static struct ibm_struct thinkpad_acpi_driver_data = {
1813 .name = "driver",
1814 .read = thinkpad_acpi_driver_read,
1815 };
1816
1817 /*************************************************************************
1818 * Hotkey subdriver
1819 */
1820
1821 /*
1822 * ThinkPad firmware event model
1823 *
1824 * The ThinkPad firmware has two main event interfaces: normal ACPI
1825 * notifications (which follow the ACPI standard), and a private event
1826 * interface.
1827 *
1828 * The private event interface also issues events for the hotkeys. As
1829 * the driver gained features, the event handling code ended up being
1830 * built around the hotkey subdriver. This will need to be refactored
1831 * to a more formal event API eventually.
1832 *
1833 * Some "hotkeys" are actually supposed to be used as event reports,
1834 * such as "brightness has changed", "volume has changed", depending on
1835 * the ThinkPad model and how the firmware is operating.
1836 *
1837 * Unlike other classes, hotkey-class events have mask/unmask control on
1838 * non-ancient firmware. However, how it behaves changes a lot with the
1839 * firmware model and version.
1840 */
1841
1842 enum { /* hot key scan codes (derived from ACPI DSDT) */
1843 TP_ACPI_HOTKEYSCAN_FNF1 = 0,
1844 TP_ACPI_HOTKEYSCAN_FNF2,
1845 TP_ACPI_HOTKEYSCAN_FNF3,
1846 TP_ACPI_HOTKEYSCAN_FNF4,
1847 TP_ACPI_HOTKEYSCAN_FNF5,
1848 TP_ACPI_HOTKEYSCAN_FNF6,
1849 TP_ACPI_HOTKEYSCAN_FNF7,
1850 TP_ACPI_HOTKEYSCAN_FNF8,
1851 TP_ACPI_HOTKEYSCAN_FNF9,
1852 TP_ACPI_HOTKEYSCAN_FNF10,
1853 TP_ACPI_HOTKEYSCAN_FNF11,
1854 TP_ACPI_HOTKEYSCAN_FNF12,
1855 TP_ACPI_HOTKEYSCAN_FNBACKSPACE,
1856 TP_ACPI_HOTKEYSCAN_FNINSERT,
1857 TP_ACPI_HOTKEYSCAN_FNDELETE,
1858 TP_ACPI_HOTKEYSCAN_FNHOME,
1859 TP_ACPI_HOTKEYSCAN_FNEND,
1860 TP_ACPI_HOTKEYSCAN_FNPAGEUP,
1861 TP_ACPI_HOTKEYSCAN_FNPAGEDOWN,
1862 TP_ACPI_HOTKEYSCAN_FNSPACE,
1863 TP_ACPI_HOTKEYSCAN_VOLUMEUP,
1864 TP_ACPI_HOTKEYSCAN_VOLUMEDOWN,
1865 TP_ACPI_HOTKEYSCAN_MUTE,
1866 TP_ACPI_HOTKEYSCAN_THINKPAD,
1867 TP_ACPI_HOTKEYSCAN_UNK1,
1868 TP_ACPI_HOTKEYSCAN_UNK2,
1869 TP_ACPI_HOTKEYSCAN_UNK3,
1870 TP_ACPI_HOTKEYSCAN_UNK4,
1871 TP_ACPI_HOTKEYSCAN_UNK5,
1872 TP_ACPI_HOTKEYSCAN_UNK6,
1873 TP_ACPI_HOTKEYSCAN_UNK7,
1874 TP_ACPI_HOTKEYSCAN_UNK8,
1875
1876 /* Adaptive keyboard keycodes */
1877 TP_ACPI_HOTKEYSCAN_ADAPTIVE_START,
1878 TP_ACPI_HOTKEYSCAN_MUTE2 = TP_ACPI_HOTKEYSCAN_ADAPTIVE_START,
1879 TP_ACPI_HOTKEYSCAN_BRIGHTNESS_ZERO,
1880 TP_ACPI_HOTKEYSCAN_CLIPPING_TOOL,
1881 TP_ACPI_HOTKEYSCAN_CLOUD,
1882 TP_ACPI_HOTKEYSCAN_UNK9,
1883 TP_ACPI_HOTKEYSCAN_VOICE,
1884 TP_ACPI_HOTKEYSCAN_UNK10,
1885 TP_ACPI_HOTKEYSCAN_GESTURES,
1886 TP_ACPI_HOTKEYSCAN_UNK11,
1887 TP_ACPI_HOTKEYSCAN_UNK12,
1888 TP_ACPI_HOTKEYSCAN_UNK13,
1889 TP_ACPI_HOTKEYSCAN_CONFIG,
1890 TP_ACPI_HOTKEYSCAN_NEW_TAB,
1891 TP_ACPI_HOTKEYSCAN_RELOAD,
1892 TP_ACPI_HOTKEYSCAN_BACK,
1893 TP_ACPI_HOTKEYSCAN_MIC_DOWN,
1894 TP_ACPI_HOTKEYSCAN_MIC_UP,
1895 TP_ACPI_HOTKEYSCAN_MIC_CANCELLATION,
1896 TP_ACPI_HOTKEYSCAN_CAMERA_MODE,
1897 TP_ACPI_HOTKEYSCAN_ROTATE_DISPLAY,
1898
1899 /* Lenovo extended keymap, starting at 0x1300 */
1900 TP_ACPI_HOTKEYSCAN_EXTENDED_START,
1901 /* first new observed key (star, favorites) is 0x1311 */
1902 TP_ACPI_HOTKEYSCAN_STAR = 69,
1903 TP_ACPI_HOTKEYSCAN_CLIPPING_TOOL2,
1904 TP_ACPI_HOTKEYSCAN_CALCULATOR,
1905 TP_ACPI_HOTKEYSCAN_BLUETOOTH,
1906 TP_ACPI_HOTKEYSCAN_KEYBOARD,
1907 TP_ACPI_HOTKEYSCAN_FN_RIGHT_SHIFT, /* Used by "Lenovo Quick Clean" */
1908 TP_ACPI_HOTKEYSCAN_NOTIFICATION_CENTER,
1909 TP_ACPI_HOTKEYSCAN_PICKUP_PHONE,
1910 TP_ACPI_HOTKEYSCAN_HANGUP_PHONE,
1911
1912 /* Hotkey keymap size */
1913 TPACPI_HOTKEY_MAP_LEN
1914 };
1915
1916 enum { /* Keys/events available through NVRAM polling */
1917 TPACPI_HKEY_NVRAM_KNOWN_MASK = 0x00fb88c0U,
1918 TPACPI_HKEY_NVRAM_GOOD_MASK = 0x00fb8000U,
1919 };
1920
1921 enum { /* Positions of some of the keys in hotkey masks */
1922 TP_ACPI_HKEY_DISPSWTCH_MASK = 1 << TP_ACPI_HOTKEYSCAN_FNF7,
1923 TP_ACPI_HKEY_DISPXPAND_MASK = 1 << TP_ACPI_HOTKEYSCAN_FNF8,
1924 TP_ACPI_HKEY_HIBERNATE_MASK = 1 << TP_ACPI_HOTKEYSCAN_FNF12,
1925 TP_ACPI_HKEY_BRGHTUP_MASK = 1 << TP_ACPI_HOTKEYSCAN_FNHOME,
1926 TP_ACPI_HKEY_BRGHTDWN_MASK = 1 << TP_ACPI_HOTKEYSCAN_FNEND,
1927 TP_ACPI_HKEY_KBD_LIGHT_MASK = 1 << TP_ACPI_HOTKEYSCAN_FNPAGEUP,
1928 TP_ACPI_HKEY_ZOOM_MASK = 1 << TP_ACPI_HOTKEYSCAN_FNSPACE,
1929 TP_ACPI_HKEY_VOLUP_MASK = 1 << TP_ACPI_HOTKEYSCAN_VOLUMEUP,
1930 TP_ACPI_HKEY_VOLDWN_MASK = 1 << TP_ACPI_HOTKEYSCAN_VOLUMEDOWN,
1931 TP_ACPI_HKEY_MUTE_MASK = 1 << TP_ACPI_HOTKEYSCAN_MUTE,
1932 TP_ACPI_HKEY_THINKPAD_MASK = 1 << TP_ACPI_HOTKEYSCAN_THINKPAD,
1933 };
1934
1935 enum { /* NVRAM to ACPI HKEY group map */
1936 TP_NVRAM_HKEY_GROUP_HK2 = TP_ACPI_HKEY_THINKPAD_MASK |
1937 TP_ACPI_HKEY_ZOOM_MASK |
1938 TP_ACPI_HKEY_DISPSWTCH_MASK |
1939 TP_ACPI_HKEY_HIBERNATE_MASK,
1940 TP_NVRAM_HKEY_GROUP_BRIGHTNESS = TP_ACPI_HKEY_BRGHTUP_MASK |
1941 TP_ACPI_HKEY_BRGHTDWN_MASK,
1942 TP_NVRAM_HKEY_GROUP_VOLUME = TP_ACPI_HKEY_VOLUP_MASK |
1943 TP_ACPI_HKEY_VOLDWN_MASK |
1944 TP_ACPI_HKEY_MUTE_MASK,
1945 };
1946
1947 #ifdef CONFIG_THINKPAD_ACPI_HOTKEY_POLL
1948 struct tp_nvram_state {
1949 u16 thinkpad_toggle:1;
1950 u16 zoom_toggle:1;
1951 u16 display_toggle:1;
1952 u16 thinklight_toggle:1;
1953 u16 hibernate_toggle:1;
1954 u16 displayexp_toggle:1;
1955 u16 display_state:1;
1956 u16 brightness_toggle:1;
1957 u16 volume_toggle:1;
1958 u16 mute:1;
1959
1960 u8 brightness_level;
1961 u8 volume_level;
1962 };
1963
1964 /* kthread for the hotkey poller */
1965 static struct task_struct *tpacpi_hotkey_task;
1966
1967 /*
1968 * Acquire mutex to write poller control variables as an
1969 * atomic block.
1970 *
1971 * Increment hotkey_config_change when changing them if you
1972 * want the kthread to forget old state.
1973 *
1974 * See HOTKEY_CONFIG_CRITICAL_START/HOTKEY_CONFIG_CRITICAL_END
1975 */
1976 static struct mutex hotkey_thread_data_mutex;
1977 static unsigned int hotkey_config_change;
1978
1979 /*
1980 * hotkey poller control variables
1981 *
1982 * Must be atomic or readers will also need to acquire mutex
1983 *
1984 * HOTKEY_CONFIG_CRITICAL_START/HOTKEY_CONFIG_CRITICAL_END
1985 * should be used only when the changes need to be taken as
1986 * a block, OR when one needs to force the kthread to forget
1987 * old state.
1988 */
1989 static u32 hotkey_source_mask; /* bit mask 0=ACPI,1=NVRAM */
1990 static unsigned int hotkey_poll_freq = 10; /* Hz */
1991
1992 #define HOTKEY_CONFIG_CRITICAL_START \
1993 do { \
1994 mutex_lock(&hotkey_thread_data_mutex); \
1995 hotkey_config_change++; \
1996 } while (0);
1997 #define HOTKEY_CONFIG_CRITICAL_END \
1998 mutex_unlock(&hotkey_thread_data_mutex);
1999
2000 #else /* CONFIG_THINKPAD_ACPI_HOTKEY_POLL */
2001
2002 #define hotkey_source_mask 0U
2003 #define HOTKEY_CONFIG_CRITICAL_START
2004 #define HOTKEY_CONFIG_CRITICAL_END
2005
2006 #endif /* CONFIG_THINKPAD_ACPI_HOTKEY_POLL */
2007
2008 static struct mutex hotkey_mutex;
2009
2010 static enum { /* Reasons for waking up */
2011 TP_ACPI_WAKEUP_NONE = 0, /* None or unknown */
2012 TP_ACPI_WAKEUP_BAYEJ, /* Bay ejection request */
2013 TP_ACPI_WAKEUP_UNDOCK, /* Undock request */
2014 } hotkey_wakeup_reason;
2015
2016 static int hotkey_autosleep_ack;
2017
2018 static u32 hotkey_orig_mask; /* events the BIOS had enabled */
2019 static u32 hotkey_all_mask; /* all events supported in fw */
2020 static u32 hotkey_adaptive_all_mask; /* all adaptive events supported in fw */
2021 static u32 hotkey_reserved_mask; /* events better left disabled */
2022 static u32 hotkey_driver_mask; /* events needed by the driver */
2023 static u32 hotkey_user_mask; /* events visible to userspace */
2024 static u32 hotkey_acpi_mask; /* events enabled in firmware */
2025
2026 static u16 *hotkey_keycode_map;
2027
2028 static struct attribute_set *hotkey_dev_attributes;
2029
2030 static void tpacpi_driver_event(const unsigned int hkey_event);
2031 static void hotkey_driver_event(const unsigned int scancode);
2032 static void hotkey_poll_setup(const bool may_warn);
2033
2034 /* HKEY.MHKG() return bits */
2035 #define TP_HOTKEY_TABLET_MASK (1 << 3)
2036 enum {
2037 TP_ACPI_MULTI_MODE_INVALID = 0,
2038 TP_ACPI_MULTI_MODE_UNKNOWN = 1 << 0,
2039 TP_ACPI_MULTI_MODE_LAPTOP = 1 << 1,
2040 TP_ACPI_MULTI_MODE_TABLET = 1 << 2,
2041 TP_ACPI_MULTI_MODE_FLAT = 1 << 3,
2042 TP_ACPI_MULTI_MODE_STAND = 1 << 4,
2043 TP_ACPI_MULTI_MODE_TENT = 1 << 5,
2044 TP_ACPI_MULTI_MODE_STAND_TENT = 1 << 6,
2045 };
2046
2047 enum {
2048 /* The following modes are considered tablet mode for the purpose of
2049 * reporting the status to userspace. i.e. in all these modes it makes
2050 * sense to disable the laptop input devices such as touchpad and
2051 * keyboard.
2052 */
2053 TP_ACPI_MULTI_MODE_TABLET_LIKE = TP_ACPI_MULTI_MODE_TABLET |
2054 TP_ACPI_MULTI_MODE_STAND |
2055 TP_ACPI_MULTI_MODE_TENT |
2056 TP_ACPI_MULTI_MODE_STAND_TENT,
2057 };
2058
hotkey_get_wlsw(void)2059 static int hotkey_get_wlsw(void)
2060 {
2061 int status;
2062
2063 if (!tp_features.hotkey_wlsw)
2064 return -ENODEV;
2065
2066 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
2067 if (dbg_wlswemul)
2068 return (tpacpi_wlsw_emulstate) ?
2069 TPACPI_RFK_RADIO_ON : TPACPI_RFK_RADIO_OFF;
2070 #endif
2071
2072 if (!acpi_evalf(hkey_handle, &status, "WLSW", "d"))
2073 return -EIO;
2074
2075 return (status) ? TPACPI_RFK_RADIO_ON : TPACPI_RFK_RADIO_OFF;
2076 }
2077
hotkey_gmms_get_tablet_mode(int s, int *has_tablet_mode)2078 static int hotkey_gmms_get_tablet_mode(int s, int *has_tablet_mode)
2079 {
2080 int type = (s >> 16) & 0xffff;
2081 int value = s & 0xffff;
2082 int mode = TP_ACPI_MULTI_MODE_INVALID;
2083 int valid_modes = 0;
2084
2085 if (has_tablet_mode)
2086 *has_tablet_mode = 0;
2087
2088 switch (type) {
2089 case 1:
2090 valid_modes = TP_ACPI_MULTI_MODE_LAPTOP |
2091 TP_ACPI_MULTI_MODE_TABLET |
2092 TP_ACPI_MULTI_MODE_STAND_TENT;
2093 break;
2094 case 2:
2095 valid_modes = TP_ACPI_MULTI_MODE_LAPTOP |
2096 TP_ACPI_MULTI_MODE_FLAT |
2097 TP_ACPI_MULTI_MODE_TABLET |
2098 TP_ACPI_MULTI_MODE_STAND |
2099 TP_ACPI_MULTI_MODE_TENT;
2100 break;
2101 case 3:
2102 valid_modes = TP_ACPI_MULTI_MODE_LAPTOP |
2103 TP_ACPI_MULTI_MODE_FLAT;
2104 break;
2105 case 4:
2106 case 5:
2107 /* In mode 4, FLAT is not specified as a valid mode. However,
2108 * it can be seen at least on the X1 Yoga 2nd Generation.
2109 */
2110 valid_modes = TP_ACPI_MULTI_MODE_LAPTOP |
2111 TP_ACPI_MULTI_MODE_FLAT |
2112 TP_ACPI_MULTI_MODE_TABLET |
2113 TP_ACPI_MULTI_MODE_STAND |
2114 TP_ACPI_MULTI_MODE_TENT;
2115 break;
2116 default:
2117 pr_err("Unknown multi mode status type %d with value 0x%04X, please report this to %s\n",
2118 type, value, TPACPI_MAIL);
2119 return 0;
2120 }
2121
2122 if (has_tablet_mode && (valid_modes & TP_ACPI_MULTI_MODE_TABLET_LIKE))
2123 *has_tablet_mode = 1;
2124
2125 switch (value) {
2126 case 1:
2127 mode = TP_ACPI_MULTI_MODE_LAPTOP;
2128 break;
2129 case 2:
2130 mode = TP_ACPI_MULTI_MODE_FLAT;
2131 break;
2132 case 3:
2133 mode = TP_ACPI_MULTI_MODE_TABLET;
2134 break;
2135 case 4:
2136 if (type == 1)
2137 mode = TP_ACPI_MULTI_MODE_STAND_TENT;
2138 else
2139 mode = TP_ACPI_MULTI_MODE_STAND;
2140 break;
2141 case 5:
2142 mode = TP_ACPI_MULTI_MODE_TENT;
2143 break;
2144 default:
2145 if (type == 5 && value == 0xffff) {
2146 pr_warn("Multi mode status is undetected, assuming laptop\n");
2147 return 0;
2148 }
2149 }
2150
2151 if (!(mode & valid_modes)) {
2152 pr_err("Unknown/reserved multi mode value 0x%04X for type %d, please report this to %s\n",
2153 value, type, TPACPI_MAIL);
2154 return 0;
2155 }
2156
2157 return !!(mode & TP_ACPI_MULTI_MODE_TABLET_LIKE);
2158 }
2159
hotkey_get_tablet_mode(int *status)2160 static int hotkey_get_tablet_mode(int *status)
2161 {
2162 int s;
2163
2164 switch (tp_features.hotkey_tablet) {
2165 case TP_HOTKEY_TABLET_USES_MHKG:
2166 if (!acpi_evalf(hkey_handle, &s, "MHKG", "d"))
2167 return -EIO;
2168
2169 *status = ((s & TP_HOTKEY_TABLET_MASK) != 0);
2170 break;
2171 case TP_HOTKEY_TABLET_USES_GMMS:
2172 if (!acpi_evalf(hkey_handle, &s, "GMMS", "dd", 0))
2173 return -EIO;
2174
2175 *status = hotkey_gmms_get_tablet_mode(s, NULL);
2176 break;
2177 default:
2178 break;
2179 }
2180
2181 return 0;
2182 }
2183
2184 /*
2185 * Reads current event mask from firmware, and updates
2186 * hotkey_acpi_mask accordingly. Also resets any bits
2187 * from hotkey_user_mask that are unavailable to be
2188 * delivered (shadow requirement of the userspace ABI).
2189 *
2190 * Call with hotkey_mutex held
2191 */
hotkey_mask_get(void)2192 static int hotkey_mask_get(void)
2193 {
2194 if (tp_features.hotkey_mask) {
2195 u32 m = 0;
2196
2197 if (!acpi_evalf(hkey_handle, &m, "DHKN", "d"))
2198 return -EIO;
2199
2200 hotkey_acpi_mask = m;
2201 } else {
2202 /* no mask support doesn't mean no event support... */
2203 hotkey_acpi_mask = hotkey_all_mask;
2204 }
2205
2206 /* sync userspace-visible mask */
2207 hotkey_user_mask &= (hotkey_acpi_mask | hotkey_source_mask);
2208
2209 return 0;
2210 }
2211
hotkey_mask_warn_incomplete_mask(void)2212 static void hotkey_mask_warn_incomplete_mask(void)
2213 {
2214 /* log only what the user can fix... */
2215 const u32 wantedmask = hotkey_driver_mask &
2216 ~(hotkey_acpi_mask | hotkey_source_mask) &
2217 (hotkey_all_mask | TPACPI_HKEY_NVRAM_KNOWN_MASK);
2218
2219 if (wantedmask)
2220 pr_notice("required events 0x%08x not enabled!\n", wantedmask);
2221 }
2222
2223 /*
2224 * Set the firmware mask when supported
2225 *
2226 * Also calls hotkey_mask_get to update hotkey_acpi_mask.
2227 *
2228 * NOTE: does not set bits in hotkey_user_mask, but may reset them.
2229 *
2230 * Call with hotkey_mutex held
2231 */
hotkey_mask_set(u32 mask)2232 static int hotkey_mask_set(u32 mask)
2233 {
2234 int i;
2235 int rc = 0;
2236
2237 const u32 fwmask = mask & ~hotkey_source_mask;
2238
2239 if (tp_features.hotkey_mask) {
2240 for (i = 0; i < 32; i++) {
2241 if (!acpi_evalf(hkey_handle,
2242 NULL, "MHKM", "vdd", i + 1,
2243 !!(mask & (1 << i)))) {
2244 rc = -EIO;
2245 break;
2246 }
2247 }
2248 }
2249
2250 /*
2251 * We *must* make an inconditional call to hotkey_mask_get to
2252 * refresh hotkey_acpi_mask and update hotkey_user_mask
2253 *
2254 * Take the opportunity to also log when we cannot _enable_
2255 * a given event.
2256 */
2257 if (!hotkey_mask_get() && !rc && (fwmask & ~hotkey_acpi_mask)) {
2258 pr_notice("asked for hotkey mask 0x%08x, but firmware forced it to 0x%08x\n",
2259 fwmask, hotkey_acpi_mask);
2260 }
2261
2262 if (tpacpi_lifecycle != TPACPI_LIFE_EXITING)
2263 hotkey_mask_warn_incomplete_mask();
2264
2265 return rc;
2266 }
2267
2268 /*
2269 * Sets hotkey_user_mask and tries to set the firmware mask
2270 *
2271 * Call with hotkey_mutex held
2272 */
hotkey_user_mask_set(const u32 mask)2273 static int hotkey_user_mask_set(const u32 mask)
2274 {
2275 int rc;
2276
2277 /* Give people a chance to notice they are doing something that
2278 * is bound to go boom on their users sooner or later */
2279 if (!tp_warned.hotkey_mask_ff &&
2280 (mask == 0xffff || mask == 0xffffff ||
2281 mask == 0xffffffff)) {
2282 tp_warned.hotkey_mask_ff = 1;
2283 pr_notice("setting the hotkey mask to 0x%08x is likely not the best way to go about it\n",
2284 mask);
2285 pr_notice("please consider using the driver defaults, and refer to up-to-date thinkpad-acpi documentation\n");
2286 }
2287
2288 /* Try to enable what the user asked for, plus whatever we need.
2289 * this syncs everything but won't enable bits in hotkey_user_mask */
2290 rc = hotkey_mask_set((mask | hotkey_driver_mask) & ~hotkey_source_mask);
2291
2292 /* Enable the available bits in hotkey_user_mask */
2293 hotkey_user_mask = mask & (hotkey_acpi_mask | hotkey_source_mask);
2294
2295 return rc;
2296 }
2297
2298 /*
2299 * Sets the driver hotkey mask.
2300 *
2301 * Can be called even if the hotkey subdriver is inactive
2302 */
tpacpi_hotkey_driver_mask_set(const u32 mask)2303 static int tpacpi_hotkey_driver_mask_set(const u32 mask)
2304 {
2305 int rc;
2306
2307 /* Do the right thing if hotkey_init has not been called yet */
2308 if (!tp_features.hotkey) {
2309 hotkey_driver_mask = mask;
2310 return 0;
2311 }
2312
2313 mutex_lock(&hotkey_mutex);
2314
2315 HOTKEY_CONFIG_CRITICAL_START
2316 hotkey_driver_mask = mask;
2317 #ifdef CONFIG_THINKPAD_ACPI_HOTKEY_POLL
2318 hotkey_source_mask |= (mask & ~hotkey_all_mask);
2319 #endif
2320 HOTKEY_CONFIG_CRITICAL_END
2321
2322 rc = hotkey_mask_set((hotkey_acpi_mask | hotkey_driver_mask) &
2323 ~hotkey_source_mask);
2324 hotkey_poll_setup(true);
2325
2326 mutex_unlock(&hotkey_mutex);
2327
2328 return rc;
2329 }
2330
hotkey_status_get(int *status)2331 static int hotkey_status_get(int *status)
2332 {
2333 if (!acpi_evalf(hkey_handle, status, "DHKC", "d"))
2334 return -EIO;
2335
2336 return 0;
2337 }
2338
hotkey_status_set(bool enable)2339 static int hotkey_status_set(bool enable)
2340 {
2341 if (!acpi_evalf(hkey_handle, NULL, "MHKC", "vd", enable ? 1 : 0))
2342 return -EIO;
2343
2344 return 0;
2345 }
2346
tpacpi_input_send_tabletsw(void)2347 static void tpacpi_input_send_tabletsw(void)
2348 {
2349 int state;
2350
2351 if (tp_features.hotkey_tablet &&
2352 !hotkey_get_tablet_mode(&state)) {
2353 mutex_lock(&tpacpi_inputdev_send_mutex);
2354
2355 input_report_switch(tpacpi_inputdev,
2356 SW_TABLET_MODE, !!state);
2357 input_sync(tpacpi_inputdev);
2358
2359 mutex_unlock(&tpacpi_inputdev_send_mutex);
2360 }
2361 }
2362
2363 /* Do NOT call without validating scancode first */
tpacpi_input_send_key(const unsigned int scancode)2364 static void tpacpi_input_send_key(const unsigned int scancode)
2365 {
2366 const unsigned int keycode = hotkey_keycode_map[scancode];
2367
2368 if (keycode != KEY_RESERVED) {
2369 mutex_lock(&tpacpi_inputdev_send_mutex);
2370
2371 input_event(tpacpi_inputdev, EV_MSC, MSC_SCAN, scancode);
2372 input_report_key(tpacpi_inputdev, keycode, 1);
2373 input_sync(tpacpi_inputdev);
2374
2375 input_event(tpacpi_inputdev, EV_MSC, MSC_SCAN, scancode);
2376 input_report_key(tpacpi_inputdev, keycode, 0);
2377 input_sync(tpacpi_inputdev);
2378
2379 mutex_unlock(&tpacpi_inputdev_send_mutex);
2380 }
2381 }
2382
2383 /* Do NOT call without validating scancode first */
tpacpi_input_send_key_masked(const unsigned int scancode)2384 static void tpacpi_input_send_key_masked(const unsigned int scancode)
2385 {
2386 hotkey_driver_event(scancode);
2387 if (hotkey_user_mask & (1 << scancode))
2388 tpacpi_input_send_key(scancode);
2389 }
2390
2391 #ifdef CONFIG_THINKPAD_ACPI_HOTKEY_POLL
2392 static struct tp_acpi_drv_struct ibm_hotkey_acpidriver;
2393
2394 /* Do NOT call without validating scancode first */
tpacpi_hotkey_send_key(unsigned int scancode)2395 static void tpacpi_hotkey_send_key(unsigned int scancode)
2396 {
2397 tpacpi_input_send_key_masked(scancode);
2398 }
2399
hotkey_read_nvram(struct tp_nvram_state *n, const u32 m)2400 static void hotkey_read_nvram(struct tp_nvram_state *n, const u32 m)
2401 {
2402 u8 d;
2403
2404 if (m & TP_NVRAM_HKEY_GROUP_HK2) {
2405 d = nvram_read_byte(TP_NVRAM_ADDR_HK2);
2406 n->thinkpad_toggle = !!(d & TP_NVRAM_MASK_HKT_THINKPAD);
2407 n->zoom_toggle = !!(d & TP_NVRAM_MASK_HKT_ZOOM);
2408 n->display_toggle = !!(d & TP_NVRAM_MASK_HKT_DISPLAY);
2409 n->hibernate_toggle = !!(d & TP_NVRAM_MASK_HKT_HIBERNATE);
2410 }
2411 if (m & TP_ACPI_HKEY_KBD_LIGHT_MASK) {
2412 d = nvram_read_byte(TP_NVRAM_ADDR_THINKLIGHT);
2413 n->thinklight_toggle = !!(d & TP_NVRAM_MASK_THINKLIGHT);
2414 }
2415 if (m & TP_ACPI_HKEY_DISPXPAND_MASK) {
2416 d = nvram_read_byte(TP_NVRAM_ADDR_VIDEO);
2417 n->displayexp_toggle =
2418 !!(d & TP_NVRAM_MASK_HKT_DISPEXPND);
2419 }
2420 if (m & TP_NVRAM_HKEY_GROUP_BRIGHTNESS) {
2421 d = nvram_read_byte(TP_NVRAM_ADDR_BRIGHTNESS);
2422 n->brightness_level = (d & TP_NVRAM_MASK_LEVEL_BRIGHTNESS)
2423 >> TP_NVRAM_POS_LEVEL_BRIGHTNESS;
2424 n->brightness_toggle =
2425 !!(d & TP_NVRAM_MASK_HKT_BRIGHTNESS);
2426 }
2427 if (m & TP_NVRAM_HKEY_GROUP_VOLUME) {
2428 d = nvram_read_byte(TP_NVRAM_ADDR_MIXER);
2429 n->volume_level = (d & TP_NVRAM_MASK_LEVEL_VOLUME)
2430 >> TP_NVRAM_POS_LEVEL_VOLUME;
2431 n->mute = !!(d & TP_NVRAM_MASK_MUTE);
2432 n->volume_toggle = !!(d & TP_NVRAM_MASK_HKT_VOLUME);
2433 }
2434 }
2435
2436 #define TPACPI_COMPARE_KEY(__scancode, __member) \
2437 do { \
2438 if ((event_mask & (1 << __scancode)) && \
2439 oldn->__member != newn->__member) \
2440 tpacpi_hotkey_send_key(__scancode); \
2441 } while (0)
2442
2443 #define TPACPI_MAY_SEND_KEY(__scancode) \
2444 do { \
2445 if (event_mask & (1 << __scancode)) \
2446 tpacpi_hotkey_send_key(__scancode); \
2447 } while (0)
2448
issue_volchange(const unsigned int oldvol, const unsigned int newvol, const u32 event_mask)2449 static void issue_volchange(const unsigned int oldvol,
2450 const unsigned int newvol,
2451 const u32 event_mask)
2452 {
2453 unsigned int i = oldvol;
2454
2455 while (i > newvol) {
2456 TPACPI_MAY_SEND_KEY(TP_ACPI_HOTKEYSCAN_VOLUMEDOWN);
2457 i--;
2458 }
2459 while (i < newvol) {
2460 TPACPI_MAY_SEND_KEY(TP_ACPI_HOTKEYSCAN_VOLUMEUP);
2461 i++;
2462 }
2463 }
2464
issue_brightnesschange(const unsigned int oldbrt, const unsigned int newbrt, const u32 event_mask)2465 static void issue_brightnesschange(const unsigned int oldbrt,
2466 const unsigned int newbrt,
2467 const u32 event_mask)
2468 {
2469 unsigned int i = oldbrt;
2470
2471 while (i > newbrt) {
2472 TPACPI_MAY_SEND_KEY(TP_ACPI_HOTKEYSCAN_FNEND);
2473 i--;
2474 }
2475 while (i < newbrt) {
2476 TPACPI_MAY_SEND_KEY(TP_ACPI_HOTKEYSCAN_FNHOME);
2477 i++;
2478 }
2479 }
2480
hotkey_compare_and_issue_event(struct tp_nvram_state *oldn, struct tp_nvram_state *newn, const u32 event_mask)2481 static void hotkey_compare_and_issue_event(struct tp_nvram_state *oldn,
2482 struct tp_nvram_state *newn,
2483 const u32 event_mask)
2484 {
2485
2486 TPACPI_COMPARE_KEY(TP_ACPI_HOTKEYSCAN_THINKPAD, thinkpad_toggle);
2487 TPACPI_COMPARE_KEY(TP_ACPI_HOTKEYSCAN_FNSPACE, zoom_toggle);
2488 TPACPI_COMPARE_KEY(TP_ACPI_HOTKEYSCAN_FNF7, display_toggle);
2489 TPACPI_COMPARE_KEY(TP_ACPI_HOTKEYSCAN_FNF12, hibernate_toggle);
2490
2491 TPACPI_COMPARE_KEY(TP_ACPI_HOTKEYSCAN_FNPAGEUP, thinklight_toggle);
2492
2493 TPACPI_COMPARE_KEY(TP_ACPI_HOTKEYSCAN_FNF8, displayexp_toggle);
2494
2495 /*
2496 * Handle volume
2497 *
2498 * This code is supposed to duplicate the IBM firmware behaviour:
2499 * - Pressing MUTE issues mute hotkey message, even when already mute
2500 * - Pressing Volume up/down issues volume up/down hotkey messages,
2501 * even when already at maximum or minimum volume
2502 * - The act of unmuting issues volume up/down notification,
2503 * depending which key was used to unmute
2504 *
2505 * We are constrained to what the NVRAM can tell us, which is not much
2506 * and certainly not enough if more than one volume hotkey was pressed
2507 * since the last poll cycle.
2508 *
2509 * Just to make our life interesting, some newer Lenovo ThinkPads have
2510 * bugs in the BIOS and may fail to update volume_toggle properly.
2511 */
2512 if (newn->mute) {
2513 /* muted */
2514 if (!oldn->mute ||
2515 oldn->volume_toggle != newn->volume_toggle ||
2516 oldn->volume_level != newn->volume_level) {
2517 /* recently muted, or repeated mute keypress, or
2518 * multiple presses ending in mute */
2519 issue_volchange(oldn->volume_level, newn->volume_level,
2520 event_mask);
2521 TPACPI_MAY_SEND_KEY(TP_ACPI_HOTKEYSCAN_MUTE);
2522 }
2523 } else {
2524 /* unmute */
2525 if (oldn->mute) {
2526 /* recently unmuted, issue 'unmute' keypress */
2527 TPACPI_MAY_SEND_KEY(TP_ACPI_HOTKEYSCAN_VOLUMEUP);
2528 }
2529 if (oldn->volume_level != newn->volume_level) {
2530 issue_volchange(oldn->volume_level, newn->volume_level,
2531 event_mask);
2532 } else if (oldn->volume_toggle != newn->volume_toggle) {
2533 /* repeated vol up/down keypress at end of scale ? */
2534 if (newn->volume_level == 0)
2535 TPACPI_MAY_SEND_KEY(TP_ACPI_HOTKEYSCAN_VOLUMEDOWN);
2536 else if (newn->volume_level >= TP_NVRAM_LEVEL_VOLUME_MAX)
2537 TPACPI_MAY_SEND_KEY(TP_ACPI_HOTKEYSCAN_VOLUMEUP);
2538 }
2539 }
2540
2541 /* handle brightness */
2542 if (oldn->brightness_level != newn->brightness_level) {
2543 issue_brightnesschange(oldn->brightness_level,
2544 newn->brightness_level, event_mask);
2545 } else if (oldn->brightness_toggle != newn->brightness_toggle) {
2546 /* repeated key presses that didn't change state */
2547 if (newn->brightness_level == 0)
2548 TPACPI_MAY_SEND_KEY(TP_ACPI_HOTKEYSCAN_FNEND);
2549 else if (newn->brightness_level >= bright_maxlvl
2550 && !tp_features.bright_unkfw)
2551 TPACPI_MAY_SEND_KEY(TP_ACPI_HOTKEYSCAN_FNHOME);
2552 }
2553
2554 #undef TPACPI_COMPARE_KEY
2555 #undef TPACPI_MAY_SEND_KEY
2556 }
2557
2558 /*
2559 * Polling driver
2560 *
2561 * We track all events in hotkey_source_mask all the time, since
2562 * most of them are edge-based. We only issue those requested by
2563 * hotkey_user_mask or hotkey_driver_mask, though.
2564 */
hotkey_kthread(void *data)2565 static int hotkey_kthread(void *data)
2566 {
2567 struct tp_nvram_state s[2] = { 0 };
2568 u32 poll_mask, event_mask;
2569 unsigned int si, so;
2570 unsigned long t;
2571 unsigned int change_detector;
2572 unsigned int poll_freq;
2573 bool was_frozen;
2574
2575 if (tpacpi_lifecycle == TPACPI_LIFE_EXITING)
2576 goto exit;
2577
2578 set_freezable();
2579
2580 so = 0;
2581 si = 1;
2582 t = 0;
2583
2584 /* Initial state for compares */
2585 mutex_lock(&hotkey_thread_data_mutex);
2586 change_detector = hotkey_config_change;
2587 poll_mask = hotkey_source_mask;
2588 event_mask = hotkey_source_mask &
2589 (hotkey_driver_mask | hotkey_user_mask);
2590 poll_freq = hotkey_poll_freq;
2591 mutex_unlock(&hotkey_thread_data_mutex);
2592 hotkey_read_nvram(&s[so], poll_mask);
2593
2594 while (!kthread_should_stop()) {
2595 if (t == 0) {
2596 if (likely(poll_freq))
2597 t = 1000/poll_freq;
2598 else
2599 t = 100; /* should never happen... */
2600 }
2601 t = msleep_interruptible(t);
2602 if (unlikely(kthread_freezable_should_stop(&was_frozen)))
2603 break;
2604
2605 if (t > 0 && !was_frozen)
2606 continue;
2607
2608 mutex_lock(&hotkey_thread_data_mutex);
2609 if (was_frozen || hotkey_config_change != change_detector) {
2610 /* forget old state on thaw or config change */
2611 si = so;
2612 t = 0;
2613 change_detector = hotkey_config_change;
2614 }
2615 poll_mask = hotkey_source_mask;
2616 event_mask = hotkey_source_mask &
2617 (hotkey_driver_mask | hotkey_user_mask);
2618 poll_freq = hotkey_poll_freq;
2619 mutex_unlock(&hotkey_thread_data_mutex);
2620
2621 if (likely(poll_mask)) {
2622 hotkey_read_nvram(&s[si], poll_mask);
2623 if (likely(si != so)) {
2624 hotkey_compare_and_issue_event(&s[so], &s[si],
2625 event_mask);
2626 }
2627 }
2628
2629 so = si;
2630 si ^= 1;
2631 }
2632
2633 exit:
2634 return 0;
2635 }
2636
2637 /* call with hotkey_mutex held */
hotkey_poll_stop_sync(void)2638 static void hotkey_poll_stop_sync(void)
2639 {
2640 if (tpacpi_hotkey_task) {
2641 kthread_stop(tpacpi_hotkey_task);
2642 tpacpi_hotkey_task = NULL;
2643 }
2644 }
2645
2646 /* call with hotkey_mutex held */
hotkey_poll_setup(const bool may_warn)2647 static void hotkey_poll_setup(const bool may_warn)
2648 {
2649 const u32 poll_driver_mask = hotkey_driver_mask & hotkey_source_mask;
2650 const u32 poll_user_mask = hotkey_user_mask & hotkey_source_mask;
2651
2652 if (hotkey_poll_freq > 0 &&
2653 (poll_driver_mask ||
2654 (poll_user_mask && tpacpi_inputdev->users > 0))) {
2655 if (!tpacpi_hotkey_task) {
2656 tpacpi_hotkey_task = kthread_run(hotkey_kthread,
2657 NULL, TPACPI_NVRAM_KTHREAD_NAME);
2658 if (IS_ERR(tpacpi_hotkey_task)) {
2659 tpacpi_hotkey_task = NULL;
2660 pr_err("could not create kernel thread for hotkey polling\n");
2661 }
2662 }
2663 } else {
2664 hotkey_poll_stop_sync();
2665 if (may_warn && (poll_driver_mask || poll_user_mask) &&
2666 hotkey_poll_freq == 0) {
2667 pr_notice("hot keys 0x%08x and/or events 0x%08x require polling, which is currently disabled\n",
2668 poll_user_mask, poll_driver_mask);
2669 }
2670 }
2671 }
2672
hotkey_poll_setup_safe(const bool may_warn)2673 static void hotkey_poll_setup_safe(const bool may_warn)
2674 {
2675 mutex_lock(&hotkey_mutex);
2676 hotkey_poll_setup(may_warn);
2677 mutex_unlock(&hotkey_mutex);
2678 }
2679
2680 /* call with hotkey_mutex held */
hotkey_poll_set_freq(unsigned int freq)2681 static void hotkey_poll_set_freq(unsigned int freq)
2682 {
2683 if (!freq)
2684 hotkey_poll_stop_sync();
2685
2686 hotkey_poll_freq = freq;
2687 }
2688
2689 #else /* CONFIG_THINKPAD_ACPI_HOTKEY_POLL */
2690
hotkey_poll_setup(const bool __unused)2691 static void hotkey_poll_setup(const bool __unused)
2692 {
2693 }
2694
hotkey_poll_setup_safe(const bool __unused)2695 static void hotkey_poll_setup_safe(const bool __unused)
2696 {
2697 }
2698
2699 #endif /* CONFIG_THINKPAD_ACPI_HOTKEY_POLL */
2700
hotkey_inputdev_open(struct input_dev *dev)2701 static int hotkey_inputdev_open(struct input_dev *dev)
2702 {
2703 switch (tpacpi_lifecycle) {
2704 case TPACPI_LIFE_INIT:
2705 case TPACPI_LIFE_RUNNING:
2706 hotkey_poll_setup_safe(false);
2707 return 0;
2708 case TPACPI_LIFE_EXITING:
2709 return -EBUSY;
2710 }
2711
2712 /* Should only happen if tpacpi_lifecycle is corrupt */
2713 BUG();
2714 return -EBUSY;
2715 }
2716
hotkey_inputdev_close(struct input_dev *dev)2717 static void hotkey_inputdev_close(struct input_dev *dev)
2718 {
2719 /* disable hotkey polling when possible */
2720 if (tpacpi_lifecycle != TPACPI_LIFE_EXITING &&
2721 !(hotkey_source_mask & hotkey_driver_mask))
2722 hotkey_poll_setup_safe(false);
2723 }
2724
2725 /* sysfs hotkey enable ------------------------------------------------- */
hotkey_enable_show(struct device *dev, struct device_attribute *attr, char *buf)2726 static ssize_t hotkey_enable_show(struct device *dev,
2727 struct device_attribute *attr,
2728 char *buf)
2729 {
2730 int res, status;
2731
2732 printk_deprecated_attribute("hotkey_enable",
2733 "Hotkey reporting is always enabled");
2734
2735 res = hotkey_status_get(&status);
2736 if (res)
2737 return res;
2738
2739 return snprintf(buf, PAGE_SIZE, "%d\n", status);
2740 }
2741
hotkey_enable_store(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)2742 static ssize_t hotkey_enable_store(struct device *dev,
2743 struct device_attribute *attr,
2744 const char *buf, size_t count)
2745 {
2746 unsigned long t;
2747
2748 printk_deprecated_attribute("hotkey_enable",
2749 "Hotkeys can be disabled through hotkey_mask");
2750
2751 if (parse_strtoul(buf, 1, &t))
2752 return -EINVAL;
2753
2754 if (t == 0)
2755 return -EPERM;
2756
2757 return count;
2758 }
2759
2760 static DEVICE_ATTR_RW(hotkey_enable);
2761
2762 /* sysfs hotkey mask --------------------------------------------------- */
hotkey_mask_show(struct device *dev, struct device_attribute *attr, char *buf)2763 static ssize_t hotkey_mask_show(struct device *dev,
2764 struct device_attribute *attr,
2765 char *buf)
2766 {
2767 return snprintf(buf, PAGE_SIZE, "0x%08x\n", hotkey_user_mask);
2768 }
2769
hotkey_mask_store(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)2770 static ssize_t hotkey_mask_store(struct device *dev,
2771 struct device_attribute *attr,
2772 const char *buf, size_t count)
2773 {
2774 unsigned long t;
2775 int res;
2776
2777 if (parse_strtoul(buf, 0xffffffffUL, &t))
2778 return -EINVAL;
2779
2780 if (mutex_lock_killable(&hotkey_mutex))
2781 return -ERESTARTSYS;
2782
2783 res = hotkey_user_mask_set(t);
2784
2785 #ifdef CONFIG_THINKPAD_ACPI_HOTKEY_POLL
2786 hotkey_poll_setup(true);
2787 #endif
2788
2789 mutex_unlock(&hotkey_mutex);
2790
2791 tpacpi_disclose_usertask("hotkey_mask", "set to 0x%08lx\n", t);
2792
2793 return (res) ? res : count;
2794 }
2795
2796 static DEVICE_ATTR_RW(hotkey_mask);
2797
2798 /* sysfs hotkey bios_enabled ------------------------------------------- */
hotkey_bios_enabled_show(struct device *dev, struct device_attribute *attr, char *buf)2799 static ssize_t hotkey_bios_enabled_show(struct device *dev,
2800 struct device_attribute *attr,
2801 char *buf)
2802 {
2803 return sprintf(buf, "0\n");
2804 }
2805
2806 static DEVICE_ATTR_RO(hotkey_bios_enabled);
2807
2808 /* sysfs hotkey bios_mask ---------------------------------------------- */
hotkey_bios_mask_show(struct device *dev, struct device_attribute *attr, char *buf)2809 static ssize_t hotkey_bios_mask_show(struct device *dev,
2810 struct device_attribute *attr,
2811 char *buf)
2812 {
2813 printk_deprecated_attribute("hotkey_bios_mask",
2814 "This attribute is useless.");
2815 return snprintf(buf, PAGE_SIZE, "0x%08x\n", hotkey_orig_mask);
2816 }
2817
2818 static DEVICE_ATTR_RO(hotkey_bios_mask);
2819
2820 /* sysfs hotkey all_mask ----------------------------------------------- */
hotkey_all_mask_show(struct device *dev, struct device_attribute *attr, char *buf)2821 static ssize_t hotkey_all_mask_show(struct device *dev,
2822 struct device_attribute *attr,
2823 char *buf)
2824 {
2825 return snprintf(buf, PAGE_SIZE, "0x%08x\n",
2826 hotkey_all_mask | hotkey_source_mask);
2827 }
2828
2829 static DEVICE_ATTR_RO(hotkey_all_mask);
2830
2831 /* sysfs hotkey all_mask ----------------------------------------------- */
hotkey_adaptive_all_mask_show(struct device *dev, struct device_attribute *attr, char *buf)2832 static ssize_t hotkey_adaptive_all_mask_show(struct device *dev,
2833 struct device_attribute *attr,
2834 char *buf)
2835 {
2836 return snprintf(buf, PAGE_SIZE, "0x%08x\n",
2837 hotkey_adaptive_all_mask | hotkey_source_mask);
2838 }
2839
2840 static DEVICE_ATTR_RO(hotkey_adaptive_all_mask);
2841
2842 /* sysfs hotkey recommended_mask --------------------------------------- */
hotkey_recommended_mask_show(struct device *dev, struct device_attribute *attr, char *buf)2843 static ssize_t hotkey_recommended_mask_show(struct device *dev,
2844 struct device_attribute *attr,
2845 char *buf)
2846 {
2847 return snprintf(buf, PAGE_SIZE, "0x%08x\n",
2848 (hotkey_all_mask | hotkey_source_mask)
2849 & ~hotkey_reserved_mask);
2850 }
2851
2852 static DEVICE_ATTR_RO(hotkey_recommended_mask);
2853
2854 #ifdef CONFIG_THINKPAD_ACPI_HOTKEY_POLL
2855
2856 /* sysfs hotkey hotkey_source_mask ------------------------------------- */
hotkey_source_mask_show(struct device *dev, struct device_attribute *attr, char *buf)2857 static ssize_t hotkey_source_mask_show(struct device *dev,
2858 struct device_attribute *attr,
2859 char *buf)
2860 {
2861 return snprintf(buf, PAGE_SIZE, "0x%08x\n", hotkey_source_mask);
2862 }
2863
hotkey_source_mask_store(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)2864 static ssize_t hotkey_source_mask_store(struct device *dev,
2865 struct device_attribute *attr,
2866 const char *buf, size_t count)
2867 {
2868 unsigned long t;
2869 u32 r_ev;
2870 int rc;
2871
2872 if (parse_strtoul(buf, 0xffffffffUL, &t) ||
2873 ((t & ~TPACPI_HKEY_NVRAM_KNOWN_MASK) != 0))
2874 return -EINVAL;
2875
2876 if (mutex_lock_killable(&hotkey_mutex))
2877 return -ERESTARTSYS;
2878
2879 HOTKEY_CONFIG_CRITICAL_START
2880 hotkey_source_mask = t;
2881 HOTKEY_CONFIG_CRITICAL_END
2882
2883 rc = hotkey_mask_set((hotkey_user_mask | hotkey_driver_mask) &
2884 ~hotkey_source_mask);
2885 hotkey_poll_setup(true);
2886
2887 /* check if events needed by the driver got disabled */
2888 r_ev = hotkey_driver_mask & ~(hotkey_acpi_mask & hotkey_all_mask)
2889 & ~hotkey_source_mask & TPACPI_HKEY_NVRAM_KNOWN_MASK;
2890
2891 mutex_unlock(&hotkey_mutex);
2892
2893 if (rc < 0)
2894 pr_err("hotkey_source_mask: failed to update the firmware event mask!\n");
2895
2896 if (r_ev)
2897 pr_notice("hotkey_source_mask: some important events were disabled: 0x%04x\n",
2898 r_ev);
2899
2900 tpacpi_disclose_usertask("hotkey_source_mask", "set to 0x%08lx\n", t);
2901
2902 return (rc < 0) ? rc : count;
2903 }
2904
2905 static DEVICE_ATTR_RW(hotkey_source_mask);
2906
2907 /* sysfs hotkey hotkey_poll_freq --------------------------------------- */
hotkey_poll_freq_show(struct device *dev, struct device_attribute *attr, char *buf)2908 static ssize_t hotkey_poll_freq_show(struct device *dev,
2909 struct device_attribute *attr,
2910 char *buf)
2911 {
2912 return snprintf(buf, PAGE_SIZE, "%d\n", hotkey_poll_freq);
2913 }
2914
hotkey_poll_freq_store(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)2915 static ssize_t hotkey_poll_freq_store(struct device *dev,
2916 struct device_attribute *attr,
2917 const char *buf, size_t count)
2918 {
2919 unsigned long t;
2920
2921 if (parse_strtoul(buf, 25, &t))
2922 return -EINVAL;
2923
2924 if (mutex_lock_killable(&hotkey_mutex))
2925 return -ERESTARTSYS;
2926
2927 hotkey_poll_set_freq(t);
2928 hotkey_poll_setup(true);
2929
2930 mutex_unlock(&hotkey_mutex);
2931
2932 tpacpi_disclose_usertask("hotkey_poll_freq", "set to %lu\n", t);
2933
2934 return count;
2935 }
2936
2937 static DEVICE_ATTR_RW(hotkey_poll_freq);
2938
2939 #endif /* CONFIG_THINKPAD_ACPI_HOTKEY_POLL */
2940
2941 /* sysfs hotkey radio_sw (pollable) ------------------------------------ */
hotkey_radio_sw_show(struct device *dev, struct device_attribute *attr, char *buf)2942 static ssize_t hotkey_radio_sw_show(struct device *dev,
2943 struct device_attribute *attr,
2944 char *buf)
2945 {
2946 int res;
2947 res = hotkey_get_wlsw();
2948 if (res < 0)
2949 return res;
2950
2951 /* Opportunistic update */
2952 tpacpi_rfk_update_hwblock_state((res == TPACPI_RFK_RADIO_OFF));
2953
2954 return snprintf(buf, PAGE_SIZE, "%d\n",
2955 (res == TPACPI_RFK_RADIO_OFF) ? 0 : 1);
2956 }
2957
2958 static DEVICE_ATTR_RO(hotkey_radio_sw);
2959
hotkey_radio_sw_notify_change(void)2960 static void hotkey_radio_sw_notify_change(void)
2961 {
2962 if (tp_features.hotkey_wlsw)
2963 sysfs_notify(&tpacpi_pdev->dev.kobj, NULL,
2964 "hotkey_radio_sw");
2965 }
2966
2967 /* sysfs hotkey tablet mode (pollable) --------------------------------- */
hotkey_tablet_mode_show(struct device *dev, struct device_attribute *attr, char *buf)2968 static ssize_t hotkey_tablet_mode_show(struct device *dev,
2969 struct device_attribute *attr,
2970 char *buf)
2971 {
2972 int res, s;
2973 res = hotkey_get_tablet_mode(&s);
2974 if (res < 0)
2975 return res;
2976
2977 return snprintf(buf, PAGE_SIZE, "%d\n", !!s);
2978 }
2979
2980 static DEVICE_ATTR_RO(hotkey_tablet_mode);
2981
hotkey_tablet_mode_notify_change(void)2982 static void hotkey_tablet_mode_notify_change(void)
2983 {
2984 if (tp_features.hotkey_tablet)
2985 sysfs_notify(&tpacpi_pdev->dev.kobj, NULL,
2986 "hotkey_tablet_mode");
2987 }
2988
2989 /* sysfs wakeup reason (pollable) -------------------------------------- */
hotkey_wakeup_reason_show(struct device *dev, struct device_attribute *attr, char *buf)2990 static ssize_t hotkey_wakeup_reason_show(struct device *dev,
2991 struct device_attribute *attr,
2992 char *buf)
2993 {
2994 return snprintf(buf, PAGE_SIZE, "%d\n", hotkey_wakeup_reason);
2995 }
2996
2997 static DEVICE_ATTR(wakeup_reason, S_IRUGO, hotkey_wakeup_reason_show, NULL);
2998
hotkey_wakeup_reason_notify_change(void)2999 static void hotkey_wakeup_reason_notify_change(void)
3000 {
3001 sysfs_notify(&tpacpi_pdev->dev.kobj, NULL,
3002 "wakeup_reason");
3003 }
3004
3005 /* sysfs wakeup hotunplug_complete (pollable) -------------------------- */
hotkey_wakeup_hotunplug_complete_show(struct device *dev, struct device_attribute *attr, char *buf)3006 static ssize_t hotkey_wakeup_hotunplug_complete_show(struct device *dev,
3007 struct device_attribute *attr,
3008 char *buf)
3009 {
3010 return snprintf(buf, PAGE_SIZE, "%d\n", hotkey_autosleep_ack);
3011 }
3012
3013 static DEVICE_ATTR(wakeup_hotunplug_complete, S_IRUGO,
3014 hotkey_wakeup_hotunplug_complete_show, NULL);
3015
hotkey_wakeup_hotunplug_complete_notify_change(void)3016 static void hotkey_wakeup_hotunplug_complete_notify_change(void)
3017 {
3018 sysfs_notify(&tpacpi_pdev->dev.kobj, NULL,
3019 "wakeup_hotunplug_complete");
3020 }
3021
3022 /* sysfs adaptive kbd mode --------------------------------------------- */
3023
3024 static int adaptive_keyboard_get_mode(void);
3025 static int adaptive_keyboard_set_mode(int new_mode);
3026
3027 enum ADAPTIVE_KEY_MODE {
3028 HOME_MODE,
3029 WEB_BROWSER_MODE,
3030 WEB_CONFERENCE_MODE,
3031 FUNCTION_MODE,
3032 LAYFLAT_MODE
3033 };
3034
adaptive_kbd_mode_show(struct device *dev, struct device_attribute *attr, char *buf)3035 static ssize_t adaptive_kbd_mode_show(struct device *dev,
3036 struct device_attribute *attr,
3037 char *buf)
3038 {
3039 int current_mode;
3040
3041 current_mode = adaptive_keyboard_get_mode();
3042 if (current_mode < 0)
3043 return current_mode;
3044
3045 return snprintf(buf, PAGE_SIZE, "%d\n", current_mode);
3046 }
3047
adaptive_kbd_mode_store(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)3048 static ssize_t adaptive_kbd_mode_store(struct device *dev,
3049 struct device_attribute *attr,
3050 const char *buf, size_t count)
3051 {
3052 unsigned long t;
3053 int res;
3054
3055 if (parse_strtoul(buf, LAYFLAT_MODE, &t))
3056 return -EINVAL;
3057
3058 res = adaptive_keyboard_set_mode(t);
3059 return (res < 0) ? res : count;
3060 }
3061
3062 static DEVICE_ATTR_RW(adaptive_kbd_mode);
3063
3064 static struct attribute *adaptive_kbd_attributes[] = {
3065 &dev_attr_adaptive_kbd_mode.attr,
3066 NULL
3067 };
3068
3069 static const struct attribute_group adaptive_kbd_attr_group = {
3070 .attrs = adaptive_kbd_attributes,
3071 };
3072
3073 /* --------------------------------------------------------------------- */
3074
3075 static struct attribute *hotkey_attributes[] __initdata = {
3076 &dev_attr_hotkey_enable.attr,
3077 &dev_attr_hotkey_bios_enabled.attr,
3078 &dev_attr_hotkey_bios_mask.attr,
3079 &dev_attr_wakeup_reason.attr,
3080 &dev_attr_wakeup_hotunplug_complete.attr,
3081 &dev_attr_hotkey_mask.attr,
3082 &dev_attr_hotkey_all_mask.attr,
3083 &dev_attr_hotkey_adaptive_all_mask.attr,
3084 &dev_attr_hotkey_recommended_mask.attr,
3085 #ifdef CONFIG_THINKPAD_ACPI_HOTKEY_POLL
3086 &dev_attr_hotkey_source_mask.attr,
3087 &dev_attr_hotkey_poll_freq.attr,
3088 #endif
3089 };
3090
3091 /*
3092 * Sync both the hw and sw blocking state of all switches
3093 */
tpacpi_send_radiosw_update(void)3094 static void tpacpi_send_radiosw_update(void)
3095 {
3096 int wlsw;
3097
3098 /*
3099 * We must sync all rfkill controllers *before* issuing any
3100 * rfkill input events, or we will race the rfkill core input
3101 * handler.
3102 *
3103 * tpacpi_inputdev_send_mutex works as a synchronization point
3104 * for the above.
3105 *
3106 * We optimize to avoid numerous calls to hotkey_get_wlsw.
3107 */
3108
3109 wlsw = hotkey_get_wlsw();
3110
3111 /* Sync hw blocking state first if it is hw-blocked */
3112 if (wlsw == TPACPI_RFK_RADIO_OFF)
3113 tpacpi_rfk_update_hwblock_state(true);
3114
3115 /* Sync hw blocking state last if it is hw-unblocked */
3116 if (wlsw == TPACPI_RFK_RADIO_ON)
3117 tpacpi_rfk_update_hwblock_state(false);
3118
3119 /* Issue rfkill input event for WLSW switch */
3120 if (!(wlsw < 0)) {
3121 mutex_lock(&tpacpi_inputdev_send_mutex);
3122
3123 input_report_switch(tpacpi_inputdev,
3124 SW_RFKILL_ALL, (wlsw > 0));
3125 input_sync(tpacpi_inputdev);
3126
3127 mutex_unlock(&tpacpi_inputdev_send_mutex);
3128 }
3129
3130 /*
3131 * this can be unconditional, as we will poll state again
3132 * if userspace uses the notify to read data
3133 */
3134 hotkey_radio_sw_notify_change();
3135 }
3136
hotkey_exit(void)3137 static void hotkey_exit(void)
3138 {
3139 #ifdef CONFIG_THINKPAD_ACPI_HOTKEY_POLL
3140 mutex_lock(&hotkey_mutex);
3141 hotkey_poll_stop_sync();
3142 mutex_unlock(&hotkey_mutex);
3143 #endif
3144
3145 if (hotkey_dev_attributes)
3146 delete_attr_set(hotkey_dev_attributes, &tpacpi_pdev->dev.kobj);
3147
3148 dbg_printk(TPACPI_DBG_EXIT | TPACPI_DBG_HKEY,
3149 "restoring original HKEY status and mask\n");
3150 /* yes, there is a bitwise or below, we want the
3151 * functions to be called even if one of them fail */
3152 if (((tp_features.hotkey_mask &&
3153 hotkey_mask_set(hotkey_orig_mask)) |
3154 hotkey_status_set(false)) != 0)
3155 pr_err("failed to restore hot key mask to BIOS defaults\n");
3156 }
3157
hotkey_unmap(const unsigned int scancode)3158 static void __init hotkey_unmap(const unsigned int scancode)
3159 {
3160 if (hotkey_keycode_map[scancode] != KEY_RESERVED) {
3161 clear_bit(hotkey_keycode_map[scancode],
3162 tpacpi_inputdev->keybit);
3163 hotkey_keycode_map[scancode] = KEY_RESERVED;
3164 }
3165 }
3166
3167 /*
3168 * HKEY quirks:
3169 * TPACPI_HK_Q_INIMASK: Supports FN+F3,FN+F4,FN+F12
3170 */
3171
3172 #define TPACPI_HK_Q_INIMASK 0x0001
3173
3174 static const struct tpacpi_quirk tpacpi_hotkey_qtable[] __initconst = {
3175 TPACPI_Q_IBM('I', 'H', TPACPI_HK_Q_INIMASK), /* 600E */
3176 TPACPI_Q_IBM('I', 'N', TPACPI_HK_Q_INIMASK), /* 600E */
3177 TPACPI_Q_IBM('I', 'D', TPACPI_HK_Q_INIMASK), /* 770, 770E, 770ED */
3178 TPACPI_Q_IBM('I', 'W', TPACPI_HK_Q_INIMASK), /* A20m */
3179 TPACPI_Q_IBM('I', 'V', TPACPI_HK_Q_INIMASK), /* A20p */
3180 TPACPI_Q_IBM('1', '0', TPACPI_HK_Q_INIMASK), /* A21e, A22e */
3181 TPACPI_Q_IBM('K', 'U', TPACPI_HK_Q_INIMASK), /* A21e */
3182 TPACPI_Q_IBM('K', 'X', TPACPI_HK_Q_INIMASK), /* A21m, A22m */
3183 TPACPI_Q_IBM('K', 'Y', TPACPI_HK_Q_INIMASK), /* A21p, A22p */
3184 TPACPI_Q_IBM('1', 'B', TPACPI_HK_Q_INIMASK), /* A22e */
3185 TPACPI_Q_IBM('1', '3', TPACPI_HK_Q_INIMASK), /* A22m */
3186 TPACPI_Q_IBM('1', 'E', TPACPI_HK_Q_INIMASK), /* A30/p (0) */
3187 TPACPI_Q_IBM('1', 'C', TPACPI_HK_Q_INIMASK), /* R30 */
3188 TPACPI_Q_IBM('1', 'F', TPACPI_HK_Q_INIMASK), /* R31 */
3189 TPACPI_Q_IBM('I', 'Y', TPACPI_HK_Q_INIMASK), /* T20 */
3190 TPACPI_Q_IBM('K', 'Z', TPACPI_HK_Q_INIMASK), /* T21 */
3191 TPACPI_Q_IBM('1', '6', TPACPI_HK_Q_INIMASK), /* T22 */
3192 TPACPI_Q_IBM('I', 'Z', TPACPI_HK_Q_INIMASK), /* X20, X21 */
3193 TPACPI_Q_IBM('1', 'D', TPACPI_HK_Q_INIMASK), /* X22, X23, X24 */
3194 };
3195
3196 typedef u16 tpacpi_keymap_entry_t;
3197 typedef tpacpi_keymap_entry_t tpacpi_keymap_t[TPACPI_HOTKEY_MAP_LEN];
3198
hotkey_init_tablet_mode(void)3199 static int hotkey_init_tablet_mode(void)
3200 {
3201 int in_tablet_mode = 0, res;
3202 char *type = NULL;
3203
3204 if (acpi_evalf(hkey_handle, &res, "GMMS", "qdd", 0)) {
3205 int has_tablet_mode;
3206
3207 in_tablet_mode = hotkey_gmms_get_tablet_mode(res,
3208 &has_tablet_mode);
3209 /*
3210 * The Yoga 11e series has 2 accelerometers described by a
3211 * BOSC0200 ACPI node. This setup relies on a Windows service
3212 * which calls special ACPI methods on this node to report
3213 * the laptop/tent/tablet mode to the EC. The bmc150 iio driver
3214 * does not support this, so skip the hotkey on these models.
3215 */
3216 if (has_tablet_mode && !acpi_dev_present("BOSC0200", "1", -1))
3217 tp_features.hotkey_tablet = TP_HOTKEY_TABLET_USES_GMMS;
3218 type = "GMMS";
3219 } else if (acpi_evalf(hkey_handle, &res, "MHKG", "qd")) {
3220 /* For X41t, X60t, X61t Tablets... */
3221 tp_features.hotkey_tablet = TP_HOTKEY_TABLET_USES_MHKG;
3222 in_tablet_mode = !!(res & TP_HOTKEY_TABLET_MASK);
3223 type = "MHKG";
3224 }
3225
3226 if (!tp_features.hotkey_tablet)
3227 return 0;
3228
3229 pr_info("Tablet mode switch found (type: %s), currently in %s mode\n",
3230 type, in_tablet_mode ? "tablet" : "laptop");
3231
3232 res = add_to_attr_set(hotkey_dev_attributes,
3233 &dev_attr_hotkey_tablet_mode.attr);
3234 if (res)
3235 return -1;
3236
3237 return in_tablet_mode;
3238 }
3239
hotkey_init(struct ibm_init_struct *iibm)3240 static int __init hotkey_init(struct ibm_init_struct *iibm)
3241 {
3242 /* Requirements for changing the default keymaps:
3243 *
3244 * 1. Many of the keys are mapped to KEY_RESERVED for very
3245 * good reasons. Do not change them unless you have deep
3246 * knowledge on the IBM and Lenovo ThinkPad firmware for
3247 * the various ThinkPad models. The driver behaves
3248 * differently for KEY_RESERVED: such keys have their
3249 * hot key mask *unset* in mask_recommended, and also
3250 * in the initial hot key mask programmed into the
3251 * firmware at driver load time, which means the firm-
3252 * ware may react very differently if you change them to
3253 * something else;
3254 *
3255 * 2. You must be subscribed to the linux-thinkpad and
3256 * ibm-acpi-devel mailing lists, and you should read the
3257 * list archives since 2007 if you want to change the
3258 * keymaps. This requirement exists so that you will
3259 * know the past history of problems with the thinkpad-
3260 * acpi driver keymaps, and also that you will be
3261 * listening to any bug reports;
3262 *
3263 * 3. Do not send thinkpad-acpi specific patches directly to
3264 * for merging, *ever*. Send them to the linux-acpi
3265 * mailinglist for comments. Merging is to be done only
3266 * through acpi-test and the ACPI maintainer.
3267 *
3268 * If the above is too much to ask, don't change the keymap.
3269 * Ask the thinkpad-acpi maintainer to do it, instead.
3270 */
3271
3272 enum keymap_index {
3273 TPACPI_KEYMAP_IBM_GENERIC = 0,
3274 TPACPI_KEYMAP_LENOVO_GENERIC,
3275 };
3276
3277 static const tpacpi_keymap_t tpacpi_keymaps[] __initconst = {
3278 /* Generic keymap for IBM ThinkPads */
3279 [TPACPI_KEYMAP_IBM_GENERIC] = {
3280 /* Scan Codes 0x00 to 0x0B: ACPI HKEY FN+F1..F12 */
3281 KEY_FN_F1, KEY_BATTERY, KEY_COFFEE, KEY_SLEEP,
3282 KEY_WLAN, KEY_FN_F6, KEY_SWITCHVIDEOMODE, KEY_FN_F8,
3283 KEY_FN_F9, KEY_FN_F10, KEY_FN_F11, KEY_SUSPEND,
3284
3285 /* Scan codes 0x0C to 0x1F: Other ACPI HKEY hot keys */
3286 KEY_UNKNOWN, /* 0x0C: FN+BACKSPACE */
3287 KEY_UNKNOWN, /* 0x0D: FN+INSERT */
3288 KEY_UNKNOWN, /* 0x0E: FN+DELETE */
3289
3290 /* brightness: firmware always reacts to them */
3291 KEY_RESERVED, /* 0x0F: FN+HOME (brightness up) */
3292 KEY_RESERVED, /* 0x10: FN+END (brightness down) */
3293
3294 /* Thinklight: firmware always react to it */
3295 KEY_RESERVED, /* 0x11: FN+PGUP (thinklight toggle) */
3296
3297 KEY_UNKNOWN, /* 0x12: FN+PGDOWN */
3298 KEY_ZOOM, /* 0x13: FN+SPACE (zoom) */
3299
3300 /* Volume: firmware always react to it and reprograms
3301 * the built-in *extra* mixer. Never map it to control
3302 * another mixer by default. */
3303 KEY_RESERVED, /* 0x14: VOLUME UP */
3304 KEY_RESERVED, /* 0x15: VOLUME DOWN */
3305 KEY_RESERVED, /* 0x16: MUTE */
3306
3307 KEY_VENDOR, /* 0x17: Thinkpad/AccessIBM/Lenovo */
3308
3309 /* (assignments unknown, please report if found) */
3310 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3311 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3312
3313 /* No assignments, only used for Adaptive keyboards. */
3314 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3315 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3316 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3317 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3318 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3319
3320 /* No assignment, used for newer Lenovo models */
3321 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3322 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3323 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3324 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3325 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3326 KEY_UNKNOWN, KEY_UNKNOWN
3327
3328 },
3329
3330 /* Generic keymap for Lenovo ThinkPads */
3331 [TPACPI_KEYMAP_LENOVO_GENERIC] = {
3332 /* Scan Codes 0x00 to 0x0B: ACPI HKEY FN+F1..F12 */
3333 KEY_FN_F1, KEY_COFFEE, KEY_BATTERY, KEY_SLEEP,
3334 KEY_WLAN, KEY_CAMERA, KEY_SWITCHVIDEOMODE, KEY_FN_F8,
3335 KEY_FN_F9, KEY_FN_F10, KEY_FN_F11, KEY_SUSPEND,
3336
3337 /* Scan codes 0x0C to 0x1F: Other ACPI HKEY hot keys */
3338 KEY_UNKNOWN, /* 0x0C: FN+BACKSPACE */
3339 KEY_UNKNOWN, /* 0x0D: FN+INSERT */
3340 KEY_UNKNOWN, /* 0x0E: FN+DELETE */
3341
3342 /* These should be enabled --only-- when ACPI video
3343 * is disabled (i.e. in "vendor" mode), and are handled
3344 * in a special way by the init code */
3345 KEY_BRIGHTNESSUP, /* 0x0F: FN+HOME (brightness up) */
3346 KEY_BRIGHTNESSDOWN, /* 0x10: FN+END (brightness down) */
3347
3348 KEY_RESERVED, /* 0x11: FN+PGUP (thinklight toggle) */
3349
3350 KEY_UNKNOWN, /* 0x12: FN+PGDOWN */
3351 KEY_ZOOM, /* 0x13: FN+SPACE (zoom) */
3352
3353 /* Volume: z60/z61, T60 (BIOS version?): firmware always
3354 * react to it and reprograms the built-in *extra* mixer.
3355 * Never map it to control another mixer by default.
3356 *
3357 * T60?, T61, R60?, R61: firmware and EC tries to send
3358 * these over the regular keyboard, so these are no-ops,
3359 * but there are still weird bugs re. MUTE, so do not
3360 * change unless you get test reports from all Lenovo
3361 * models. May cause the BIOS to interfere with the
3362 * HDA mixer.
3363 */
3364 KEY_RESERVED, /* 0x14: VOLUME UP */
3365 KEY_RESERVED, /* 0x15: VOLUME DOWN */
3366 KEY_RESERVED, /* 0x16: MUTE */
3367
3368 KEY_VENDOR, /* 0x17: Thinkpad/AccessIBM/Lenovo */
3369
3370 /* (assignments unknown, please report if found) */
3371 KEY_UNKNOWN, KEY_UNKNOWN,
3372
3373 /*
3374 * The mic mute button only sends 0x1a. It does not
3375 * automatically mute the mic or change the mute light.
3376 */
3377 KEY_MICMUTE, /* 0x1a: Mic mute (since ?400 or so) */
3378
3379 /* (assignments unknown, please report if found) */
3380 KEY_UNKNOWN,
3381
3382 /* Extra keys in use since the X240 / T440 / T540 */
3383 KEY_CONFIG, KEY_SEARCH, KEY_SCALE, KEY_FILE,
3384
3385 /*
3386 * These are the adaptive keyboard keycodes for Carbon X1 2014.
3387 * The first item in this list is the Mute button which is
3388 * emitted with 0x103 through
3389 * adaptive_keyboard_hotkey_notify_hotkey() when the sound
3390 * symbol is held.
3391 * We'll need to offset those by 0x20.
3392 */
3393 KEY_RESERVED, /* Mute held, 0x103 */
3394 KEY_BRIGHTNESS_MIN, /* Backlight off */
3395 KEY_RESERVED, /* Clipping tool */
3396 KEY_RESERVED, /* Cloud */
3397 KEY_RESERVED,
3398 KEY_VOICECOMMAND, /* Voice */
3399 KEY_RESERVED,
3400 KEY_RESERVED, /* Gestures */
3401 KEY_RESERVED,
3402 KEY_RESERVED,
3403 KEY_RESERVED,
3404 KEY_CONFIG, /* Settings */
3405 KEY_RESERVED, /* New tab */
3406 KEY_REFRESH, /* Reload */
3407 KEY_BACK, /* Back */
3408 KEY_RESERVED, /* Microphone down */
3409 KEY_RESERVED, /* Microphone up */
3410 KEY_RESERVED, /* Microphone cancellation */
3411 KEY_RESERVED, /* Camera mode */
3412 KEY_RESERVED, /* Rotate display, 0x116 */
3413
3414 /*
3415 * These are found in 2017 models (e.g. T470s, X270).
3416 * The lowest known value is 0x311, which according to
3417 * the manual should launch a user defined favorite
3418 * application.
3419 *
3420 * The offset for these is TP_ACPI_HOTKEYSCAN_EXTENDED_START,
3421 * corresponding to 0x34.
3422 */
3423
3424 /* (assignments unknown, please report if found) */
3425 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3426 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3427 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3428 KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN, KEY_UNKNOWN,
3429 KEY_UNKNOWN,
3430
3431 KEY_BOOKMARKS, /* Favorite app, 0x311 */
3432 KEY_SELECTIVE_SCREENSHOT, /* Clipping tool */
3433 KEY_CALC, /* Calculator (above numpad, P52) */
3434 KEY_BLUETOOTH, /* Bluetooth */
3435 KEY_KEYBOARD, /* Keyboard, 0x315 */
3436 KEY_FN_RIGHT_SHIFT, /* Fn + right Shift */
3437 KEY_NOTIFICATION_CENTER, /* Notification Center */
3438 KEY_PICKUP_PHONE, /* Answer incoming call */
3439 KEY_HANGUP_PHONE, /* Decline incoming call */
3440 },
3441 };
3442
3443 static const struct tpacpi_quirk tpacpi_keymap_qtable[] __initconst = {
3444 /* Generic maps (fallback) */
3445 {
3446 .vendor = PCI_VENDOR_ID_IBM,
3447 .bios = TPACPI_MATCH_ANY, .ec = TPACPI_MATCH_ANY,
3448 .quirks = TPACPI_KEYMAP_IBM_GENERIC,
3449 },
3450 {
3451 .vendor = PCI_VENDOR_ID_LENOVO,
3452 .bios = TPACPI_MATCH_ANY, .ec = TPACPI_MATCH_ANY,
3453 .quirks = TPACPI_KEYMAP_LENOVO_GENERIC,
3454 },
3455 };
3456
3457 #define TPACPI_HOTKEY_MAP_SIZE sizeof(tpacpi_keymap_t)
3458 #define TPACPI_HOTKEY_MAP_TYPESIZE sizeof(tpacpi_keymap_entry_t)
3459
3460 int res, i;
3461 int status;
3462 int hkeyv;
3463 bool radiosw_state = false;
3464 bool tabletsw_state = false;
3465
3466 unsigned long quirks;
3467 unsigned long keymap_id;
3468
3469 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_HKEY,
3470 "initializing hotkey subdriver\n");
3471
3472 BUG_ON(!tpacpi_inputdev);
3473 BUG_ON(tpacpi_inputdev->open != NULL ||
3474 tpacpi_inputdev->close != NULL);
3475
3476 TPACPI_ACPIHANDLE_INIT(hkey);
3477 mutex_init(&hotkey_mutex);
3478
3479 #ifdef CONFIG_THINKPAD_ACPI_HOTKEY_POLL
3480 mutex_init(&hotkey_thread_data_mutex);
3481 #endif
3482
3483 /* hotkey not supported on 570 */
3484 tp_features.hotkey = hkey_handle != NULL;
3485
3486 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_HKEY,
3487 "hotkeys are %s\n",
3488 str_supported(tp_features.hotkey));
3489
3490 if (!tp_features.hotkey)
3491 return 1;
3492
3493 quirks = tpacpi_check_quirks(tpacpi_hotkey_qtable,
3494 ARRAY_SIZE(tpacpi_hotkey_qtable));
3495
3496 tpacpi_disable_brightness_delay();
3497
3498 /* MUST have enough space for all attributes to be added to
3499 * hotkey_dev_attributes */
3500 hotkey_dev_attributes = create_attr_set(
3501 ARRAY_SIZE(hotkey_attributes) + 2,
3502 NULL);
3503 if (!hotkey_dev_attributes)
3504 return -ENOMEM;
3505 res = add_many_to_attr_set(hotkey_dev_attributes,
3506 hotkey_attributes,
3507 ARRAY_SIZE(hotkey_attributes));
3508 if (res)
3509 goto err_exit;
3510
3511 /* mask not supported on 600e/x, 770e, 770x, A21e, A2xm/p,
3512 A30, R30, R31, T20-22, X20-21, X22-24. Detected by checking
3513 for HKEY interface version 0x100 */
3514 if (acpi_evalf(hkey_handle, &hkeyv, "MHKV", "qd")) {
3515 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_HKEY,
3516 "firmware HKEY interface version: 0x%x\n",
3517 hkeyv);
3518
3519 switch (hkeyv >> 8) {
3520 case 1:
3521 /*
3522 * MHKV 0x100 in A31, R40, R40e,
3523 * T4x, X31, and later
3524 */
3525
3526 /* Paranoia check AND init hotkey_all_mask */
3527 if (!acpi_evalf(hkey_handle, &hotkey_all_mask,
3528 "MHKA", "qd")) {
3529 pr_err("missing MHKA handler, please report this to %s\n",
3530 TPACPI_MAIL);
3531 /* Fallback: pre-init for FN+F3,F4,F12 */
3532 hotkey_all_mask = 0x080cU;
3533 } else {
3534 tp_features.hotkey_mask = 1;
3535 }
3536 break;
3537
3538 case 2:
3539 /*
3540 * MHKV 0x200 in X1, T460s, X260, T560, X1 Tablet (2016)
3541 */
3542
3543 /* Paranoia check AND init hotkey_all_mask */
3544 if (!acpi_evalf(hkey_handle, &hotkey_all_mask,
3545 "MHKA", "dd", 1)) {
3546 pr_err("missing MHKA handler, please report this to %s\n",
3547 TPACPI_MAIL);
3548 /* Fallback: pre-init for FN+F3,F4,F12 */
3549 hotkey_all_mask = 0x080cU;
3550 } else {
3551 tp_features.hotkey_mask = 1;
3552 }
3553
3554 /*
3555 * Check if we have an adaptive keyboard, like on the
3556 * Lenovo Carbon X1 2014 (2nd Gen).
3557 */
3558 if (acpi_evalf(hkey_handle, &hotkey_adaptive_all_mask,
3559 "MHKA", "dd", 2)) {
3560 if (hotkey_adaptive_all_mask != 0) {
3561 tp_features.has_adaptive_kbd = true;
3562 res = sysfs_create_group(
3563 &tpacpi_pdev->dev.kobj,
3564 &adaptive_kbd_attr_group);
3565 if (res)
3566 goto err_exit;
3567 }
3568 } else {
3569 tp_features.has_adaptive_kbd = false;
3570 hotkey_adaptive_all_mask = 0x0U;
3571 }
3572 break;
3573
3574 default:
3575 pr_err("unknown version of the HKEY interface: 0x%x\n",
3576 hkeyv);
3577 pr_err("please report this to %s\n", TPACPI_MAIL);
3578 break;
3579 }
3580 }
3581
3582 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_HKEY,
3583 "hotkey masks are %s\n",
3584 str_supported(tp_features.hotkey_mask));
3585
3586 /* Init hotkey_all_mask if not initialized yet */
3587 if (!tp_features.hotkey_mask && !hotkey_all_mask &&
3588 (quirks & TPACPI_HK_Q_INIMASK))
3589 hotkey_all_mask = 0x080cU; /* FN+F12, FN+F4, FN+F3 */
3590
3591 /* Init hotkey_acpi_mask and hotkey_orig_mask */
3592 if (tp_features.hotkey_mask) {
3593 /* hotkey_source_mask *must* be zero for
3594 * the first hotkey_mask_get to return hotkey_orig_mask */
3595 res = hotkey_mask_get();
3596 if (res)
3597 goto err_exit;
3598
3599 hotkey_orig_mask = hotkey_acpi_mask;
3600 } else {
3601 hotkey_orig_mask = hotkey_all_mask;
3602 hotkey_acpi_mask = hotkey_all_mask;
3603 }
3604
3605 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
3606 if (dbg_wlswemul) {
3607 tp_features.hotkey_wlsw = 1;
3608 radiosw_state = !!tpacpi_wlsw_emulstate;
3609 pr_info("radio switch emulation enabled\n");
3610 } else
3611 #endif
3612 /* Not all thinkpads have a hardware radio switch */
3613 if (acpi_evalf(hkey_handle, &status, "WLSW", "qd")) {
3614 tp_features.hotkey_wlsw = 1;
3615 radiosw_state = !!status;
3616 pr_info("radio switch found; radios are %s\n",
3617 enabled(status, 0));
3618 }
3619 if (tp_features.hotkey_wlsw)
3620 res = add_to_attr_set(hotkey_dev_attributes,
3621 &dev_attr_hotkey_radio_sw.attr);
3622
3623 res = hotkey_init_tablet_mode();
3624 if (res < 0)
3625 goto err_exit;
3626
3627 tabletsw_state = res;
3628
3629 res = register_attr_set_with_sysfs(hotkey_dev_attributes,
3630 &tpacpi_pdev->dev.kobj);
3631 if (res)
3632 goto err_exit;
3633
3634 /* Set up key map */
3635 keymap_id = tpacpi_check_quirks(tpacpi_keymap_qtable,
3636 ARRAY_SIZE(tpacpi_keymap_qtable));
3637 BUG_ON(keymap_id >= ARRAY_SIZE(tpacpi_keymaps));
3638 dbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_HKEY,
3639 "using keymap number %lu\n", keymap_id);
3640
3641 hotkey_keycode_map = kmemdup(&tpacpi_keymaps[keymap_id],
3642 TPACPI_HOTKEY_MAP_SIZE, GFP_KERNEL);
3643 if (!hotkey_keycode_map) {
3644 pr_err("failed to allocate memory for key map\n");
3645 res = -ENOMEM;
3646 goto err_exit;
3647 }
3648
3649 input_set_capability(tpacpi_inputdev, EV_MSC, MSC_SCAN);
3650 tpacpi_inputdev->keycodesize = TPACPI_HOTKEY_MAP_TYPESIZE;
3651 tpacpi_inputdev->keycodemax = TPACPI_HOTKEY_MAP_LEN;
3652 tpacpi_inputdev->keycode = hotkey_keycode_map;
3653 for (i = 0; i < TPACPI_HOTKEY_MAP_LEN; i++) {
3654 if (hotkey_keycode_map[i] != KEY_RESERVED) {
3655 input_set_capability(tpacpi_inputdev, EV_KEY,
3656 hotkey_keycode_map[i]);
3657 } else {
3658 if (i < sizeof(hotkey_reserved_mask)*8)
3659 hotkey_reserved_mask |= 1 << i;
3660 }
3661 }
3662
3663 if (tp_features.hotkey_wlsw) {
3664 input_set_capability(tpacpi_inputdev, EV_SW, SW_RFKILL_ALL);
3665 input_report_switch(tpacpi_inputdev,
3666 SW_RFKILL_ALL, radiosw_state);
3667 }
3668 if (tp_features.hotkey_tablet) {
3669 input_set_capability(tpacpi_inputdev, EV_SW, SW_TABLET_MODE);
3670 input_report_switch(tpacpi_inputdev,
3671 SW_TABLET_MODE, tabletsw_state);
3672 }
3673
3674 /* Do not issue duplicate brightness change events to
3675 * userspace. tpacpi_detect_brightness_capabilities() must have
3676 * been called before this point */
3677 if (acpi_video_get_backlight_type() != acpi_backlight_vendor) {
3678 pr_info("This ThinkPad has standard ACPI backlight brightness control, supported by the ACPI video driver\n");
3679 pr_notice("Disabling thinkpad-acpi brightness events by default...\n");
3680
3681 /* Disable brightness up/down on Lenovo thinkpads when
3682 * ACPI is handling them, otherwise it is plain impossible
3683 * for userspace to do something even remotely sane */
3684 hotkey_reserved_mask |=
3685 (1 << TP_ACPI_HOTKEYSCAN_FNHOME)
3686 | (1 << TP_ACPI_HOTKEYSCAN_FNEND);
3687 hotkey_unmap(TP_ACPI_HOTKEYSCAN_FNHOME);
3688 hotkey_unmap(TP_ACPI_HOTKEYSCAN_FNEND);
3689 }
3690
3691 #ifdef CONFIG_THINKPAD_ACPI_HOTKEY_POLL
3692 hotkey_source_mask = TPACPI_HKEY_NVRAM_GOOD_MASK
3693 & ~hotkey_all_mask
3694 & ~hotkey_reserved_mask;
3695
3696 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_HKEY,
3697 "hotkey source mask 0x%08x, polling freq %u\n",
3698 hotkey_source_mask, hotkey_poll_freq);
3699 #endif
3700
3701 dbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_HKEY,
3702 "enabling firmware HKEY event interface...\n");
3703 res = hotkey_status_set(true);
3704 if (res) {
3705 hotkey_exit();
3706 return res;
3707 }
3708 res = hotkey_mask_set(((hotkey_all_mask & ~hotkey_reserved_mask)
3709 | hotkey_driver_mask)
3710 & ~hotkey_source_mask);
3711 if (res < 0 && res != -ENXIO) {
3712 hotkey_exit();
3713 return res;
3714 }
3715 hotkey_user_mask = (hotkey_acpi_mask | hotkey_source_mask)
3716 & ~hotkey_reserved_mask;
3717 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_HKEY,
3718 "initial masks: user=0x%08x, fw=0x%08x, poll=0x%08x\n",
3719 hotkey_user_mask, hotkey_acpi_mask, hotkey_source_mask);
3720
3721 tpacpi_inputdev->open = &hotkey_inputdev_open;
3722 tpacpi_inputdev->close = &hotkey_inputdev_close;
3723
3724 hotkey_poll_setup_safe(true);
3725
3726 return 0;
3727
3728 err_exit:
3729 delete_attr_set(hotkey_dev_attributes, &tpacpi_pdev->dev.kobj);
3730 sysfs_remove_group(&tpacpi_pdev->dev.kobj,
3731 &adaptive_kbd_attr_group);
3732
3733 hotkey_dev_attributes = NULL;
3734
3735 return (res < 0) ? res : 1;
3736 }
3737
3738 /* Thinkpad X1 Carbon support 5 modes including Home mode, Web browser
3739 * mode, Web conference mode, Function mode and Lay-flat mode.
3740 * We support Home mode and Function mode currently.
3741 *
3742 * Will consider support rest of modes in future.
3743 *
3744 */
3745 static const int adaptive_keyboard_modes[] = {
3746 HOME_MODE,
3747 /* WEB_BROWSER_MODE = 2,
3748 WEB_CONFERENCE_MODE = 3, */
3749 FUNCTION_MODE
3750 };
3751
3752 #define DFR_CHANGE_ROW 0x101
3753 #define DFR_SHOW_QUICKVIEW_ROW 0x102
3754 #define FIRST_ADAPTIVE_KEY 0x103
3755
3756 /* press Fn key a while second, it will switch to Function Mode. Then
3757 * release Fn key, previous mode be restored.
3758 */
3759 static bool adaptive_keyboard_mode_is_saved;
3760 static int adaptive_keyboard_prev_mode;
3761
adaptive_keyboard_get_mode(void)3762 static int adaptive_keyboard_get_mode(void)
3763 {
3764 int mode = 0;
3765
3766 if (!acpi_evalf(hkey_handle, &mode, "GTRW", "dd", 0)) {
3767 pr_err("Cannot read adaptive keyboard mode\n");
3768 return -EIO;
3769 }
3770
3771 return mode;
3772 }
3773
adaptive_keyboard_set_mode(int new_mode)3774 static int adaptive_keyboard_set_mode(int new_mode)
3775 {
3776 if (new_mode < 0 ||
3777 new_mode > LAYFLAT_MODE)
3778 return -EINVAL;
3779
3780 if (!acpi_evalf(hkey_handle, NULL, "STRW", "vd", new_mode)) {
3781 pr_err("Cannot set adaptive keyboard mode\n");
3782 return -EIO;
3783 }
3784
3785 return 0;
3786 }
3787
adaptive_keyboard_get_next_mode(int mode)3788 static int adaptive_keyboard_get_next_mode(int mode)
3789 {
3790 size_t i;
3791 size_t max_mode = ARRAY_SIZE(adaptive_keyboard_modes) - 1;
3792
3793 for (i = 0; i <= max_mode; i++) {
3794 if (adaptive_keyboard_modes[i] == mode)
3795 break;
3796 }
3797
3798 if (i >= max_mode)
3799 i = 0;
3800 else
3801 i++;
3802
3803 return adaptive_keyboard_modes[i];
3804 }
3805
adaptive_keyboard_hotkey_notify_hotkey(unsigned int scancode)3806 static bool adaptive_keyboard_hotkey_notify_hotkey(unsigned int scancode)
3807 {
3808 int current_mode = 0;
3809 int new_mode = 0;
3810 int keycode;
3811
3812 switch (scancode) {
3813 case DFR_CHANGE_ROW:
3814 if (adaptive_keyboard_mode_is_saved) {
3815 new_mode = adaptive_keyboard_prev_mode;
3816 adaptive_keyboard_mode_is_saved = false;
3817 } else {
3818 current_mode = adaptive_keyboard_get_mode();
3819 if (current_mode < 0)
3820 return false;
3821 new_mode = adaptive_keyboard_get_next_mode(
3822 current_mode);
3823 }
3824
3825 if (adaptive_keyboard_set_mode(new_mode) < 0)
3826 return false;
3827
3828 return true;
3829
3830 case DFR_SHOW_QUICKVIEW_ROW:
3831 current_mode = adaptive_keyboard_get_mode();
3832 if (current_mode < 0)
3833 return false;
3834
3835 adaptive_keyboard_prev_mode = current_mode;
3836 adaptive_keyboard_mode_is_saved = true;
3837
3838 if (adaptive_keyboard_set_mode (FUNCTION_MODE) < 0)
3839 return false;
3840 return true;
3841
3842 default:
3843 if (scancode < FIRST_ADAPTIVE_KEY ||
3844 scancode >= FIRST_ADAPTIVE_KEY +
3845 TP_ACPI_HOTKEYSCAN_EXTENDED_START -
3846 TP_ACPI_HOTKEYSCAN_ADAPTIVE_START) {
3847 pr_info("Unhandled adaptive keyboard key: 0x%x\n",
3848 scancode);
3849 return false;
3850 }
3851 keycode = hotkey_keycode_map[scancode - FIRST_ADAPTIVE_KEY +
3852 TP_ACPI_HOTKEYSCAN_ADAPTIVE_START];
3853 if (keycode != KEY_RESERVED) {
3854 mutex_lock(&tpacpi_inputdev_send_mutex);
3855
3856 input_report_key(tpacpi_inputdev, keycode, 1);
3857 input_sync(tpacpi_inputdev);
3858
3859 input_report_key(tpacpi_inputdev, keycode, 0);
3860 input_sync(tpacpi_inputdev);
3861
3862 mutex_unlock(&tpacpi_inputdev_send_mutex);
3863 }
3864 return true;
3865 }
3866 }
3867
hotkey_notify_hotkey(const u32 hkey, bool *send_acpi_ev, bool *ignore_acpi_ev)3868 static bool hotkey_notify_hotkey(const u32 hkey,
3869 bool *send_acpi_ev,
3870 bool *ignore_acpi_ev)
3871 {
3872 /* 0x1000-0x1FFF: key presses */
3873 unsigned int scancode = hkey & 0xfff;
3874 *send_acpi_ev = true;
3875 *ignore_acpi_ev = false;
3876
3877 /*
3878 * Original events are in the 0x10XX range, the adaptive keyboard
3879 * found in 2014 X1 Carbon emits events are of 0x11XX. In 2017
3880 * models, additional keys are emitted through 0x13XX.
3881 */
3882 switch ((hkey >> 8) & 0xf) {
3883 case 0:
3884 if (scancode > 0 &&
3885 scancode <= TP_ACPI_HOTKEYSCAN_ADAPTIVE_START) {
3886 /* HKEY event 0x1001 is scancode 0x00 */
3887 scancode--;
3888 if (!(hotkey_source_mask & (1 << scancode))) {
3889 tpacpi_input_send_key_masked(scancode);
3890 *send_acpi_ev = false;
3891 } else {
3892 *ignore_acpi_ev = true;
3893 }
3894 return true;
3895 }
3896 break;
3897
3898 case 1:
3899 return adaptive_keyboard_hotkey_notify_hotkey(scancode);
3900
3901 case 3:
3902 /* Extended keycodes start at 0x300 and our offset into the map
3903 * TP_ACPI_HOTKEYSCAN_EXTENDED_START. The calculated scancode
3904 * will be positive, but might not be in the correct range.
3905 */
3906 scancode -= (0x300 - TP_ACPI_HOTKEYSCAN_EXTENDED_START);
3907 if (scancode >= TP_ACPI_HOTKEYSCAN_EXTENDED_START &&
3908 scancode < TPACPI_HOTKEY_MAP_LEN) {
3909 tpacpi_input_send_key(scancode);
3910 return true;
3911 }
3912 break;
3913 }
3914
3915 return false;
3916 }
3917
hotkey_notify_wakeup(const u32 hkey, bool *send_acpi_ev, bool *ignore_acpi_ev)3918 static bool hotkey_notify_wakeup(const u32 hkey,
3919 bool *send_acpi_ev,
3920 bool *ignore_acpi_ev)
3921 {
3922 /* 0x2000-0x2FFF: Wakeup reason */
3923 *send_acpi_ev = true;
3924 *ignore_acpi_ev = false;
3925
3926 switch (hkey) {
3927 case TP_HKEY_EV_WKUP_S3_UNDOCK: /* suspend, undock */
3928 case TP_HKEY_EV_WKUP_S4_UNDOCK: /* hibernation, undock */
3929 hotkey_wakeup_reason = TP_ACPI_WAKEUP_UNDOCK;
3930 *ignore_acpi_ev = true;
3931 break;
3932
3933 case TP_HKEY_EV_WKUP_S3_BAYEJ: /* suspend, bay eject */
3934 case TP_HKEY_EV_WKUP_S4_BAYEJ: /* hibernation, bay eject */
3935 hotkey_wakeup_reason = TP_ACPI_WAKEUP_BAYEJ;
3936 *ignore_acpi_ev = true;
3937 break;
3938
3939 case TP_HKEY_EV_WKUP_S3_BATLOW: /* Battery on critical low level/S3 */
3940 case TP_HKEY_EV_WKUP_S4_BATLOW: /* Battery on critical low level/S4 */
3941 pr_alert("EMERGENCY WAKEUP: battery almost empty\n");
3942 /* how to auto-heal: */
3943 /* 2313: woke up from S3, go to S4/S5 */
3944 /* 2413: woke up from S4, go to S5 */
3945 break;
3946
3947 default:
3948 return false;
3949 }
3950
3951 if (hotkey_wakeup_reason != TP_ACPI_WAKEUP_NONE) {
3952 pr_info("woke up due to a hot-unplug request...\n");
3953 hotkey_wakeup_reason_notify_change();
3954 }
3955 return true;
3956 }
3957
hotkey_notify_dockevent(const u32 hkey, bool *send_acpi_ev, bool *ignore_acpi_ev)3958 static bool hotkey_notify_dockevent(const u32 hkey,
3959 bool *send_acpi_ev,
3960 bool *ignore_acpi_ev)
3961 {
3962 /* 0x4000-0x4FFF: dock-related events */
3963 *send_acpi_ev = true;
3964 *ignore_acpi_ev = false;
3965
3966 switch (hkey) {
3967 case TP_HKEY_EV_UNDOCK_ACK:
3968 /* ACPI undock operation completed after wakeup */
3969 hotkey_autosleep_ack = 1;
3970 pr_info("undocked\n");
3971 hotkey_wakeup_hotunplug_complete_notify_change();
3972 return true;
3973
3974 case TP_HKEY_EV_HOTPLUG_DOCK: /* docked to port replicator */
3975 pr_info("docked into hotplug port replicator\n");
3976 return true;
3977 case TP_HKEY_EV_HOTPLUG_UNDOCK: /* undocked from port replicator */
3978 pr_info("undocked from hotplug port replicator\n");
3979 return true;
3980
3981 default:
3982 return false;
3983 }
3984 }
3985
hotkey_notify_usrevent(const u32 hkey, bool *send_acpi_ev, bool *ignore_acpi_ev)3986 static bool hotkey_notify_usrevent(const u32 hkey,
3987 bool *send_acpi_ev,
3988 bool *ignore_acpi_ev)
3989 {
3990 /* 0x5000-0x5FFF: human interface helpers */
3991 *send_acpi_ev = true;
3992 *ignore_acpi_ev = false;
3993
3994 switch (hkey) {
3995 case TP_HKEY_EV_PEN_INSERTED: /* X61t: tablet pen inserted into bay */
3996 case TP_HKEY_EV_PEN_REMOVED: /* X61t: tablet pen removed from bay */
3997 return true;
3998
3999 case TP_HKEY_EV_TABLET_TABLET: /* X41t-X61t: tablet mode */
4000 case TP_HKEY_EV_TABLET_NOTEBOOK: /* X41t-X61t: normal mode */
4001 tpacpi_input_send_tabletsw();
4002 hotkey_tablet_mode_notify_change();
4003 *send_acpi_ev = false;
4004 return true;
4005
4006 case TP_HKEY_EV_LID_CLOSE: /* Lid closed */
4007 case TP_HKEY_EV_LID_OPEN: /* Lid opened */
4008 case TP_HKEY_EV_BRGHT_CHANGED: /* brightness changed */
4009 /* do not propagate these events */
4010 *ignore_acpi_ev = true;
4011 return true;
4012
4013 default:
4014 return false;
4015 }
4016 }
4017
4018 static void thermal_dump_all_sensors(void);
4019
hotkey_notify_6xxx(const u32 hkey, bool *send_acpi_ev, bool *ignore_acpi_ev)4020 static bool hotkey_notify_6xxx(const u32 hkey,
4021 bool *send_acpi_ev,
4022 bool *ignore_acpi_ev)
4023 {
4024 /* 0x6000-0x6FFF: thermal alarms/notices and keyboard events */
4025 *send_acpi_ev = true;
4026 *ignore_acpi_ev = false;
4027
4028 switch (hkey) {
4029 case TP_HKEY_EV_THM_TABLE_CHANGED:
4030 pr_debug("EC reports: Thermal Table has changed\n");
4031 /* recommended action: do nothing, we don't have
4032 * Lenovo ATM information */
4033 return true;
4034 case TP_HKEY_EV_THM_CSM_COMPLETED:
4035 pr_debug("EC reports: Thermal Control Command set completed (DYTC)\n");
4036 /* Thermal event - pass on to event handler */
4037 tpacpi_driver_event(hkey);
4038 return true;
4039 case TP_HKEY_EV_THM_TRANSFM_CHANGED:
4040 pr_debug("EC reports: Thermal Transformation changed (GMTS)\n");
4041 /* recommended action: do nothing, we don't have
4042 * Lenovo ATM information */
4043 return true;
4044 case TP_HKEY_EV_ALARM_BAT_HOT:
4045 pr_crit("THERMAL ALARM: battery is too hot!\n");
4046 /* recommended action: warn user through gui */
4047 break;
4048 case TP_HKEY_EV_ALARM_BAT_XHOT:
4049 pr_alert("THERMAL EMERGENCY: battery is extremely hot!\n");
4050 /* recommended action: immediate sleep/hibernate */
4051 break;
4052 case TP_HKEY_EV_ALARM_SENSOR_HOT:
4053 pr_crit("THERMAL ALARM: a sensor reports something is too hot!\n");
4054 /* recommended action: warn user through gui, that */
4055 /* some internal component is too hot */
4056 break;
4057 case TP_HKEY_EV_ALARM_SENSOR_XHOT:
4058 pr_alert("THERMAL EMERGENCY: a sensor reports something is extremely hot!\n");
4059 /* recommended action: immediate sleep/hibernate */
4060 break;
4061 case TP_HKEY_EV_AC_CHANGED:
4062 /* X120e, X121e, X220, X220i, X220t, X230, T420, T420s, W520:
4063 * AC status changed; can be triggered by plugging or
4064 * unplugging AC adapter, docking or undocking. */
4065
4066 fallthrough;
4067
4068 case TP_HKEY_EV_KEY_NUMLOCK:
4069 case TP_HKEY_EV_KEY_FN:
4070 /* key press events, we just ignore them as long as the EC
4071 * is still reporting them in the normal keyboard stream */
4072 *send_acpi_ev = false;
4073 *ignore_acpi_ev = true;
4074 return true;
4075
4076 case TP_HKEY_EV_KEY_FN_ESC:
4077 /* Get the media key status to foce the status LED to update */
4078 acpi_evalf(hkey_handle, NULL, "GMKS", "v");
4079 *send_acpi_ev = false;
4080 *ignore_acpi_ev = true;
4081 return true;
4082
4083 case TP_HKEY_EV_TABLET_CHANGED:
4084 tpacpi_input_send_tabletsw();
4085 hotkey_tablet_mode_notify_change();
4086 *send_acpi_ev = false;
4087 return true;
4088
4089 case TP_HKEY_EV_PALM_DETECTED:
4090 case TP_HKEY_EV_PALM_UNDETECTED:
4091 /* palm detected hovering the keyboard, forward to user-space
4092 * via netlink for consumption */
4093 return true;
4094
4095 default:
4096 /* report simply as unknown, no sensor dump */
4097 return false;
4098 }
4099
4100 thermal_dump_all_sensors();
4101 return true;
4102 }
4103
hotkey_notify(struct ibm_struct *ibm, u32 event)4104 static void hotkey_notify(struct ibm_struct *ibm, u32 event)
4105 {
4106 u32 hkey;
4107 bool send_acpi_ev;
4108 bool ignore_acpi_ev;
4109 bool known_ev;
4110
4111 if (event != 0x80) {
4112 pr_err("unknown HKEY notification event %d\n", event);
4113 /* forward it to userspace, maybe it knows how to handle it */
4114 acpi_bus_generate_netlink_event(
4115 ibm->acpi->device->pnp.device_class,
4116 dev_name(&ibm->acpi->device->dev),
4117 event, 0);
4118 return;
4119 }
4120
4121 while (1) {
4122 if (!acpi_evalf(hkey_handle, &hkey, "MHKP", "d")) {
4123 pr_err("failed to retrieve HKEY event\n");
4124 return;
4125 }
4126
4127 if (hkey == 0) {
4128 /* queue empty */
4129 return;
4130 }
4131
4132 send_acpi_ev = true;
4133 ignore_acpi_ev = false;
4134
4135 switch (hkey >> 12) {
4136 case 1:
4137 /* 0x1000-0x1FFF: key presses */
4138 known_ev = hotkey_notify_hotkey(hkey, &send_acpi_ev,
4139 &ignore_acpi_ev);
4140 break;
4141 case 2:
4142 /* 0x2000-0x2FFF: Wakeup reason */
4143 known_ev = hotkey_notify_wakeup(hkey, &send_acpi_ev,
4144 &ignore_acpi_ev);
4145 break;
4146 case 3:
4147 /* 0x3000-0x3FFF: bay-related wakeups */
4148 switch (hkey) {
4149 case TP_HKEY_EV_BAYEJ_ACK:
4150 hotkey_autosleep_ack = 1;
4151 pr_info("bay ejected\n");
4152 hotkey_wakeup_hotunplug_complete_notify_change();
4153 known_ev = true;
4154 break;
4155 case TP_HKEY_EV_OPTDRV_EJ:
4156 /* FIXME: kick libata if SATA link offline */
4157 known_ev = true;
4158 break;
4159 default:
4160 known_ev = false;
4161 }
4162 break;
4163 case 4:
4164 /* 0x4000-0x4FFF: dock-related events */
4165 known_ev = hotkey_notify_dockevent(hkey, &send_acpi_ev,
4166 &ignore_acpi_ev);
4167 break;
4168 case 5:
4169 /* 0x5000-0x5FFF: human interface helpers */
4170 known_ev = hotkey_notify_usrevent(hkey, &send_acpi_ev,
4171 &ignore_acpi_ev);
4172 break;
4173 case 6:
4174 /* 0x6000-0x6FFF: thermal alarms/notices and
4175 * keyboard events */
4176 known_ev = hotkey_notify_6xxx(hkey, &send_acpi_ev,
4177 &ignore_acpi_ev);
4178 break;
4179 case 7:
4180 /* 0x7000-0x7FFF: misc */
4181 if (tp_features.hotkey_wlsw &&
4182 hkey == TP_HKEY_EV_RFKILL_CHANGED) {
4183 tpacpi_send_radiosw_update();
4184 send_acpi_ev = 0;
4185 known_ev = true;
4186 break;
4187 }
4188 fallthrough; /* to default */
4189 default:
4190 known_ev = false;
4191 }
4192 if (!known_ev) {
4193 pr_notice("unhandled HKEY event 0x%04x\n", hkey);
4194 pr_notice("please report the conditions when this event happened to %s\n",
4195 TPACPI_MAIL);
4196 }
4197
4198 /* netlink events */
4199 if (!ignore_acpi_ev && send_acpi_ev) {
4200 acpi_bus_generate_netlink_event(
4201 ibm->acpi->device->pnp.device_class,
4202 dev_name(&ibm->acpi->device->dev),
4203 event, hkey);
4204 }
4205 }
4206 }
4207
hotkey_suspend(void)4208 static void hotkey_suspend(void)
4209 {
4210 /* Do these on suspend, we get the events on early resume! */
4211 hotkey_wakeup_reason = TP_ACPI_WAKEUP_NONE;
4212 hotkey_autosleep_ack = 0;
4213
4214 /* save previous mode of adaptive keyboard of X1 Carbon */
4215 if (tp_features.has_adaptive_kbd) {
4216 if (!acpi_evalf(hkey_handle, &adaptive_keyboard_prev_mode,
4217 "GTRW", "dd", 0)) {
4218 pr_err("Cannot read adaptive keyboard mode.\n");
4219 }
4220 }
4221 }
4222
hotkey_resume(void)4223 static void hotkey_resume(void)
4224 {
4225 tpacpi_disable_brightness_delay();
4226
4227 if (hotkey_status_set(true) < 0 ||
4228 hotkey_mask_set(hotkey_acpi_mask) < 0)
4229 pr_err("error while attempting to reset the event firmware interface\n");
4230
4231 tpacpi_send_radiosw_update();
4232 tpacpi_input_send_tabletsw();
4233 hotkey_tablet_mode_notify_change();
4234 hotkey_wakeup_reason_notify_change();
4235 hotkey_wakeup_hotunplug_complete_notify_change();
4236 hotkey_poll_setup_safe(false);
4237
4238 /* restore previous mode of adapive keyboard of X1 Carbon */
4239 if (tp_features.has_adaptive_kbd) {
4240 if (!acpi_evalf(hkey_handle, NULL, "STRW", "vd",
4241 adaptive_keyboard_prev_mode)) {
4242 pr_err("Cannot set adaptive keyboard mode.\n");
4243 }
4244 }
4245 }
4246
4247 /* procfs -------------------------------------------------------------- */
hotkey_read(struct seq_file *m)4248 static int hotkey_read(struct seq_file *m)
4249 {
4250 int res, status;
4251
4252 if (!tp_features.hotkey) {
4253 seq_printf(m, "status:\t\tnot supported\n");
4254 return 0;
4255 }
4256
4257 if (mutex_lock_killable(&hotkey_mutex))
4258 return -ERESTARTSYS;
4259 res = hotkey_status_get(&status);
4260 if (!res)
4261 res = hotkey_mask_get();
4262 mutex_unlock(&hotkey_mutex);
4263 if (res)
4264 return res;
4265
4266 seq_printf(m, "status:\t\t%s\n", enabled(status, 0));
4267 if (hotkey_all_mask) {
4268 seq_printf(m, "mask:\t\t0x%08x\n", hotkey_user_mask);
4269 seq_printf(m, "commands:\tenable, disable, reset, <mask>\n");
4270 } else {
4271 seq_printf(m, "mask:\t\tnot supported\n");
4272 seq_printf(m, "commands:\tenable, disable, reset\n");
4273 }
4274
4275 return 0;
4276 }
4277
hotkey_enabledisable_warn(bool enable)4278 static void hotkey_enabledisable_warn(bool enable)
4279 {
4280 tpacpi_log_usertask("procfs hotkey enable/disable");
4281 if (!WARN((tpacpi_lifecycle == TPACPI_LIFE_RUNNING || !enable),
4282 pr_fmt("hotkey enable/disable functionality has been removed from the driver. Hotkeys are always enabled.\n")))
4283 pr_err("Please remove the hotkey=enable module parameter, it is deprecated. Hotkeys are always enabled.\n");
4284 }
4285
hotkey_write(char *buf)4286 static int hotkey_write(char *buf)
4287 {
4288 int res;
4289 u32 mask;
4290 char *cmd;
4291
4292 if (!tp_features.hotkey)
4293 return -ENODEV;
4294
4295 if (mutex_lock_killable(&hotkey_mutex))
4296 return -ERESTARTSYS;
4297
4298 mask = hotkey_user_mask;
4299
4300 res = 0;
4301 while ((cmd = strsep(&buf, ","))) {
4302 if (strlencmp(cmd, "enable") == 0) {
4303 hotkey_enabledisable_warn(1);
4304 } else if (strlencmp(cmd, "disable") == 0) {
4305 hotkey_enabledisable_warn(0);
4306 res = -EPERM;
4307 } else if (strlencmp(cmd, "reset") == 0) {
4308 mask = (hotkey_all_mask | hotkey_source_mask)
4309 & ~hotkey_reserved_mask;
4310 } else if (sscanf(cmd, "0x%x", &mask) == 1) {
4311 /* mask set */
4312 } else if (sscanf(cmd, "%x", &mask) == 1) {
4313 /* mask set */
4314 } else {
4315 res = -EINVAL;
4316 goto errexit;
4317 }
4318 }
4319
4320 if (!res) {
4321 tpacpi_disclose_usertask("procfs hotkey",
4322 "set mask to 0x%08x\n", mask);
4323 res = hotkey_user_mask_set(mask);
4324 }
4325
4326 errexit:
4327 mutex_unlock(&hotkey_mutex);
4328 return res;
4329 }
4330
4331 static const struct acpi_device_id ibm_htk_device_ids[] = {
4332 {TPACPI_ACPI_IBM_HKEY_HID, 0},
4333 {TPACPI_ACPI_LENOVO_HKEY_HID, 0},
4334 {TPACPI_ACPI_LENOVO_HKEY_V2_HID, 0},
4335 {"", 0},
4336 };
4337
4338 static struct tp_acpi_drv_struct ibm_hotkey_acpidriver = {
4339 .hid = ibm_htk_device_ids,
4340 .notify = hotkey_notify,
4341 .handle = &hkey_handle,
4342 .type = ACPI_DEVICE_NOTIFY,
4343 };
4344
4345 static struct ibm_struct hotkey_driver_data = {
4346 .name = "hotkey",
4347 .read = hotkey_read,
4348 .write = hotkey_write,
4349 .exit = hotkey_exit,
4350 .resume = hotkey_resume,
4351 .suspend = hotkey_suspend,
4352 .acpi = &ibm_hotkey_acpidriver,
4353 };
4354
4355 /*************************************************************************
4356 * Bluetooth subdriver
4357 */
4358
4359 enum {
4360 /* ACPI GBDC/SBDC bits */
4361 TP_ACPI_BLUETOOTH_HWPRESENT = 0x01, /* Bluetooth hw available */
4362 TP_ACPI_BLUETOOTH_RADIOSSW = 0x02, /* Bluetooth radio enabled */
4363 TP_ACPI_BLUETOOTH_RESUMECTRL = 0x04, /* Bluetooth state at resume:
4364 0 = disable, 1 = enable */
4365 };
4366
4367 enum {
4368 /* ACPI \BLTH commands */
4369 TP_ACPI_BLTH_GET_ULTRAPORT_ID = 0x00, /* Get Ultraport BT ID */
4370 TP_ACPI_BLTH_GET_PWR_ON_RESUME = 0x01, /* Get power-on-resume state */
4371 TP_ACPI_BLTH_PWR_ON_ON_RESUME = 0x02, /* Resume powered on */
4372 TP_ACPI_BLTH_PWR_OFF_ON_RESUME = 0x03, /* Resume powered off */
4373 TP_ACPI_BLTH_SAVE_STATE = 0x05, /* Save state for S4/S5 */
4374 };
4375
4376 #define TPACPI_RFK_BLUETOOTH_SW_NAME "tpacpi_bluetooth_sw"
4377
bluetooth_get_status(void)4378 static int bluetooth_get_status(void)
4379 {
4380 int status;
4381
4382 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
4383 if (dbg_bluetoothemul)
4384 return (tpacpi_bluetooth_emulstate) ?
4385 TPACPI_RFK_RADIO_ON : TPACPI_RFK_RADIO_OFF;
4386 #endif
4387
4388 if (!acpi_evalf(hkey_handle, &status, "GBDC", "d"))
4389 return -EIO;
4390
4391 return ((status & TP_ACPI_BLUETOOTH_RADIOSSW) != 0) ?
4392 TPACPI_RFK_RADIO_ON : TPACPI_RFK_RADIO_OFF;
4393 }
4394
bluetooth_set_status(enum tpacpi_rfkill_state state)4395 static int bluetooth_set_status(enum tpacpi_rfkill_state state)
4396 {
4397 int status;
4398
4399 vdbg_printk(TPACPI_DBG_RFKILL,
4400 "will attempt to %s bluetooth\n",
4401 (state == TPACPI_RFK_RADIO_ON) ? "enable" : "disable");
4402
4403 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
4404 if (dbg_bluetoothemul) {
4405 tpacpi_bluetooth_emulstate = (state == TPACPI_RFK_RADIO_ON);
4406 return 0;
4407 }
4408 #endif
4409
4410 if (state == TPACPI_RFK_RADIO_ON)
4411 status = TP_ACPI_BLUETOOTH_RADIOSSW
4412 | TP_ACPI_BLUETOOTH_RESUMECTRL;
4413 else
4414 status = 0;
4415
4416 if (!acpi_evalf(hkey_handle, NULL, "SBDC", "vd", status))
4417 return -EIO;
4418
4419 return 0;
4420 }
4421
4422 /* sysfs bluetooth enable ---------------------------------------------- */
bluetooth_enable_show(struct device *dev, struct device_attribute *attr, char *buf)4423 static ssize_t bluetooth_enable_show(struct device *dev,
4424 struct device_attribute *attr,
4425 char *buf)
4426 {
4427 return tpacpi_rfk_sysfs_enable_show(TPACPI_RFK_BLUETOOTH_SW_ID,
4428 attr, buf);
4429 }
4430
bluetooth_enable_store(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)4431 static ssize_t bluetooth_enable_store(struct device *dev,
4432 struct device_attribute *attr,
4433 const char *buf, size_t count)
4434 {
4435 return tpacpi_rfk_sysfs_enable_store(TPACPI_RFK_BLUETOOTH_SW_ID,
4436 attr, buf, count);
4437 }
4438
4439 static DEVICE_ATTR_RW(bluetooth_enable);
4440
4441 /* --------------------------------------------------------------------- */
4442
4443 static struct attribute *bluetooth_attributes[] = {
4444 &dev_attr_bluetooth_enable.attr,
4445 NULL
4446 };
4447
4448 static const struct attribute_group bluetooth_attr_group = {
4449 .attrs = bluetooth_attributes,
4450 };
4451
4452 static const struct tpacpi_rfk_ops bluetooth_tprfk_ops = {
4453 .get_status = bluetooth_get_status,
4454 .set_status = bluetooth_set_status,
4455 };
4456
bluetooth_shutdown(void)4457 static void bluetooth_shutdown(void)
4458 {
4459 /* Order firmware to save current state to NVRAM */
4460 if (!acpi_evalf(NULL, NULL, "\\BLTH", "vd",
4461 TP_ACPI_BLTH_SAVE_STATE))
4462 pr_notice("failed to save bluetooth state to NVRAM\n");
4463 else
4464 vdbg_printk(TPACPI_DBG_RFKILL,
4465 "bluetooth state saved to NVRAM\n");
4466 }
4467
bluetooth_exit(void)4468 static void bluetooth_exit(void)
4469 {
4470 sysfs_remove_group(&tpacpi_pdev->dev.kobj,
4471 &bluetooth_attr_group);
4472
4473 tpacpi_destroy_rfkill(TPACPI_RFK_BLUETOOTH_SW_ID);
4474
4475 bluetooth_shutdown();
4476 }
4477
4478 static const struct dmi_system_id bt_fwbug_list[] __initconst = {
4479 {
4480 .ident = "ThinkPad E485",
4481 .matches = {
4482 DMI_MATCH(DMI_SYS_VENDOR, "LENOVO"),
4483 DMI_MATCH(DMI_BOARD_NAME, "20KU"),
4484 },
4485 },
4486 {
4487 .ident = "ThinkPad E585",
4488 .matches = {
4489 DMI_MATCH(DMI_SYS_VENDOR, "LENOVO"),
4490 DMI_MATCH(DMI_BOARD_NAME, "20KV"),
4491 },
4492 },
4493 {
4494 .ident = "ThinkPad A285 - 20MW",
4495 .matches = {
4496 DMI_MATCH(DMI_SYS_VENDOR, "LENOVO"),
4497 DMI_MATCH(DMI_BOARD_NAME, "20MW"),
4498 },
4499 },
4500 {
4501 .ident = "ThinkPad A285 - 20MX",
4502 .matches = {
4503 DMI_MATCH(DMI_SYS_VENDOR, "LENOVO"),
4504 DMI_MATCH(DMI_BOARD_NAME, "20MX"),
4505 },
4506 },
4507 {
4508 .ident = "ThinkPad A485 - 20MU",
4509 .matches = {
4510 DMI_MATCH(DMI_SYS_VENDOR, "LENOVO"),
4511 DMI_MATCH(DMI_BOARD_NAME, "20MU"),
4512 },
4513 },
4514 {
4515 .ident = "ThinkPad A485 - 20MV",
4516 .matches = {
4517 DMI_MATCH(DMI_SYS_VENDOR, "LENOVO"),
4518 DMI_MATCH(DMI_BOARD_NAME, "20MV"),
4519 },
4520 },
4521 {}
4522 };
4523
4524 static const struct pci_device_id fwbug_cards_ids[] __initconst = {
4525 { PCI_DEVICE(PCI_VENDOR_ID_INTEL, 0x24F3) },
4526 { PCI_DEVICE(PCI_VENDOR_ID_INTEL, 0x24FD) },
4527 { PCI_DEVICE(PCI_VENDOR_ID_INTEL, 0x2526) },
4528 {}
4529 };
4530
4531
have_bt_fwbug(void)4532 static int __init have_bt_fwbug(void)
4533 {
4534 /*
4535 * Some AMD based ThinkPads have a firmware bug that calling
4536 * "GBDC" will cause bluetooth on Intel wireless cards blocked
4537 */
4538 if (dmi_check_system(bt_fwbug_list) && pci_dev_present(fwbug_cards_ids)) {
4539 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_RFKILL,
4540 FW_BUG "disable bluetooth subdriver for Intel cards\n");
4541 return 1;
4542 } else
4543 return 0;
4544 }
4545
bluetooth_init(struct ibm_init_struct *iibm)4546 static int __init bluetooth_init(struct ibm_init_struct *iibm)
4547 {
4548 int res;
4549 int status = 0;
4550
4551 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_RFKILL,
4552 "initializing bluetooth subdriver\n");
4553
4554 TPACPI_ACPIHANDLE_INIT(hkey);
4555
4556 /* bluetooth not supported on 570, 600e/x, 770e, 770x, A21e, A2xm/p,
4557 G4x, R30, R31, R40e, R50e, T20-22, X20-21 */
4558 tp_features.bluetooth = !have_bt_fwbug() && hkey_handle &&
4559 acpi_evalf(hkey_handle, &status, "GBDC", "qd");
4560
4561 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_RFKILL,
4562 "bluetooth is %s, status 0x%02x\n",
4563 str_supported(tp_features.bluetooth),
4564 status);
4565
4566 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
4567 if (dbg_bluetoothemul) {
4568 tp_features.bluetooth = 1;
4569 pr_info("bluetooth switch emulation enabled\n");
4570 } else
4571 #endif
4572 if (tp_features.bluetooth &&
4573 !(status & TP_ACPI_BLUETOOTH_HWPRESENT)) {
4574 /* no bluetooth hardware present in system */
4575 tp_features.bluetooth = 0;
4576 dbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_RFKILL,
4577 "bluetooth hardware not installed\n");
4578 }
4579
4580 if (!tp_features.bluetooth)
4581 return 1;
4582
4583 res = tpacpi_new_rfkill(TPACPI_RFK_BLUETOOTH_SW_ID,
4584 &bluetooth_tprfk_ops,
4585 RFKILL_TYPE_BLUETOOTH,
4586 TPACPI_RFK_BLUETOOTH_SW_NAME,
4587 true);
4588 if (res)
4589 return res;
4590
4591 res = sysfs_create_group(&tpacpi_pdev->dev.kobj,
4592 &bluetooth_attr_group);
4593 if (res) {
4594 tpacpi_destroy_rfkill(TPACPI_RFK_BLUETOOTH_SW_ID);
4595 return res;
4596 }
4597
4598 return 0;
4599 }
4600
4601 /* procfs -------------------------------------------------------------- */
bluetooth_read(struct seq_file *m)4602 static int bluetooth_read(struct seq_file *m)
4603 {
4604 return tpacpi_rfk_procfs_read(TPACPI_RFK_BLUETOOTH_SW_ID, m);
4605 }
4606
bluetooth_write(char *buf)4607 static int bluetooth_write(char *buf)
4608 {
4609 return tpacpi_rfk_procfs_write(TPACPI_RFK_BLUETOOTH_SW_ID, buf);
4610 }
4611
4612 static struct ibm_struct bluetooth_driver_data = {
4613 .name = "bluetooth",
4614 .read = bluetooth_read,
4615 .write = bluetooth_write,
4616 .exit = bluetooth_exit,
4617 .shutdown = bluetooth_shutdown,
4618 };
4619
4620 /*************************************************************************
4621 * Wan subdriver
4622 */
4623
4624 enum {
4625 /* ACPI GWAN/SWAN bits */
4626 TP_ACPI_WANCARD_HWPRESENT = 0x01, /* Wan hw available */
4627 TP_ACPI_WANCARD_RADIOSSW = 0x02, /* Wan radio enabled */
4628 TP_ACPI_WANCARD_RESUMECTRL = 0x04, /* Wan state at resume:
4629 0 = disable, 1 = enable */
4630 };
4631
4632 #define TPACPI_RFK_WWAN_SW_NAME "tpacpi_wwan_sw"
4633
wan_get_status(void)4634 static int wan_get_status(void)
4635 {
4636 int status;
4637
4638 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
4639 if (dbg_wwanemul)
4640 return (tpacpi_wwan_emulstate) ?
4641 TPACPI_RFK_RADIO_ON : TPACPI_RFK_RADIO_OFF;
4642 #endif
4643
4644 if (!acpi_evalf(hkey_handle, &status, "GWAN", "d"))
4645 return -EIO;
4646
4647 return ((status & TP_ACPI_WANCARD_RADIOSSW) != 0) ?
4648 TPACPI_RFK_RADIO_ON : TPACPI_RFK_RADIO_OFF;
4649 }
4650
wan_set_status(enum tpacpi_rfkill_state state)4651 static int wan_set_status(enum tpacpi_rfkill_state state)
4652 {
4653 int status;
4654
4655 vdbg_printk(TPACPI_DBG_RFKILL,
4656 "will attempt to %s wwan\n",
4657 (state == TPACPI_RFK_RADIO_ON) ? "enable" : "disable");
4658
4659 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
4660 if (dbg_wwanemul) {
4661 tpacpi_wwan_emulstate = (state == TPACPI_RFK_RADIO_ON);
4662 return 0;
4663 }
4664 #endif
4665
4666 if (state == TPACPI_RFK_RADIO_ON)
4667 status = TP_ACPI_WANCARD_RADIOSSW
4668 | TP_ACPI_WANCARD_RESUMECTRL;
4669 else
4670 status = 0;
4671
4672 if (!acpi_evalf(hkey_handle, NULL, "SWAN", "vd", status))
4673 return -EIO;
4674
4675 return 0;
4676 }
4677
4678 /* sysfs wan enable ---------------------------------------------------- */
wan_enable_show(struct device *dev, struct device_attribute *attr, char *buf)4679 static ssize_t wan_enable_show(struct device *dev,
4680 struct device_attribute *attr,
4681 char *buf)
4682 {
4683 return tpacpi_rfk_sysfs_enable_show(TPACPI_RFK_WWAN_SW_ID,
4684 attr, buf);
4685 }
4686
wan_enable_store(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)4687 static ssize_t wan_enable_store(struct device *dev,
4688 struct device_attribute *attr,
4689 const char *buf, size_t count)
4690 {
4691 return tpacpi_rfk_sysfs_enable_store(TPACPI_RFK_WWAN_SW_ID,
4692 attr, buf, count);
4693 }
4694
4695 static DEVICE_ATTR(wwan_enable, S_IWUSR | S_IRUGO,
4696 wan_enable_show, wan_enable_store);
4697
4698 /* --------------------------------------------------------------------- */
4699
4700 static struct attribute *wan_attributes[] = {
4701 &dev_attr_wwan_enable.attr,
4702 NULL
4703 };
4704
4705 static const struct attribute_group wan_attr_group = {
4706 .attrs = wan_attributes,
4707 };
4708
4709 static const struct tpacpi_rfk_ops wan_tprfk_ops = {
4710 .get_status = wan_get_status,
4711 .set_status = wan_set_status,
4712 };
4713
wan_shutdown(void)4714 static void wan_shutdown(void)
4715 {
4716 /* Order firmware to save current state to NVRAM */
4717 if (!acpi_evalf(NULL, NULL, "\\WGSV", "vd",
4718 TP_ACPI_WGSV_SAVE_STATE))
4719 pr_notice("failed to save WWAN state to NVRAM\n");
4720 else
4721 vdbg_printk(TPACPI_DBG_RFKILL,
4722 "WWAN state saved to NVRAM\n");
4723 }
4724
wan_exit(void)4725 static void wan_exit(void)
4726 {
4727 sysfs_remove_group(&tpacpi_pdev->dev.kobj,
4728 &wan_attr_group);
4729
4730 tpacpi_destroy_rfkill(TPACPI_RFK_WWAN_SW_ID);
4731
4732 wan_shutdown();
4733 }
4734
wan_init(struct ibm_init_struct *iibm)4735 static int __init wan_init(struct ibm_init_struct *iibm)
4736 {
4737 int res;
4738 int status = 0;
4739
4740 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_RFKILL,
4741 "initializing wan subdriver\n");
4742
4743 TPACPI_ACPIHANDLE_INIT(hkey);
4744
4745 tp_features.wan = hkey_handle &&
4746 acpi_evalf(hkey_handle, &status, "GWAN", "qd");
4747
4748 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_RFKILL,
4749 "wan is %s, status 0x%02x\n",
4750 str_supported(tp_features.wan),
4751 status);
4752
4753 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
4754 if (dbg_wwanemul) {
4755 tp_features.wan = 1;
4756 pr_info("wwan switch emulation enabled\n");
4757 } else
4758 #endif
4759 if (tp_features.wan &&
4760 !(status & TP_ACPI_WANCARD_HWPRESENT)) {
4761 /* no wan hardware present in system */
4762 tp_features.wan = 0;
4763 dbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_RFKILL,
4764 "wan hardware not installed\n");
4765 }
4766
4767 if (!tp_features.wan)
4768 return 1;
4769
4770 res = tpacpi_new_rfkill(TPACPI_RFK_WWAN_SW_ID,
4771 &wan_tprfk_ops,
4772 RFKILL_TYPE_WWAN,
4773 TPACPI_RFK_WWAN_SW_NAME,
4774 true);
4775 if (res)
4776 return res;
4777
4778 res = sysfs_create_group(&tpacpi_pdev->dev.kobj,
4779 &wan_attr_group);
4780
4781 if (res) {
4782 tpacpi_destroy_rfkill(TPACPI_RFK_WWAN_SW_ID);
4783 return res;
4784 }
4785
4786 return 0;
4787 }
4788
4789 /* procfs -------------------------------------------------------------- */
wan_read(struct seq_file *m)4790 static int wan_read(struct seq_file *m)
4791 {
4792 return tpacpi_rfk_procfs_read(TPACPI_RFK_WWAN_SW_ID, m);
4793 }
4794
wan_write(char *buf)4795 static int wan_write(char *buf)
4796 {
4797 return tpacpi_rfk_procfs_write(TPACPI_RFK_WWAN_SW_ID, buf);
4798 }
4799
4800 static struct ibm_struct wan_driver_data = {
4801 .name = "wan",
4802 .read = wan_read,
4803 .write = wan_write,
4804 .exit = wan_exit,
4805 .shutdown = wan_shutdown,
4806 };
4807
4808 /*************************************************************************
4809 * UWB subdriver
4810 */
4811
4812 enum {
4813 /* ACPI GUWB/SUWB bits */
4814 TP_ACPI_UWB_HWPRESENT = 0x01, /* UWB hw available */
4815 TP_ACPI_UWB_RADIOSSW = 0x02, /* UWB radio enabled */
4816 };
4817
4818 #define TPACPI_RFK_UWB_SW_NAME "tpacpi_uwb_sw"
4819
uwb_get_status(void)4820 static int uwb_get_status(void)
4821 {
4822 int status;
4823
4824 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
4825 if (dbg_uwbemul)
4826 return (tpacpi_uwb_emulstate) ?
4827 TPACPI_RFK_RADIO_ON : TPACPI_RFK_RADIO_OFF;
4828 #endif
4829
4830 if (!acpi_evalf(hkey_handle, &status, "GUWB", "d"))
4831 return -EIO;
4832
4833 return ((status & TP_ACPI_UWB_RADIOSSW) != 0) ?
4834 TPACPI_RFK_RADIO_ON : TPACPI_RFK_RADIO_OFF;
4835 }
4836
uwb_set_status(enum tpacpi_rfkill_state state)4837 static int uwb_set_status(enum tpacpi_rfkill_state state)
4838 {
4839 int status;
4840
4841 vdbg_printk(TPACPI_DBG_RFKILL,
4842 "will attempt to %s UWB\n",
4843 (state == TPACPI_RFK_RADIO_ON) ? "enable" : "disable");
4844
4845 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
4846 if (dbg_uwbemul) {
4847 tpacpi_uwb_emulstate = (state == TPACPI_RFK_RADIO_ON);
4848 return 0;
4849 }
4850 #endif
4851
4852 if (state == TPACPI_RFK_RADIO_ON)
4853 status = TP_ACPI_UWB_RADIOSSW;
4854 else
4855 status = 0;
4856
4857 if (!acpi_evalf(hkey_handle, NULL, "SUWB", "vd", status))
4858 return -EIO;
4859
4860 return 0;
4861 }
4862
4863 /* --------------------------------------------------------------------- */
4864
4865 static const struct tpacpi_rfk_ops uwb_tprfk_ops = {
4866 .get_status = uwb_get_status,
4867 .set_status = uwb_set_status,
4868 };
4869
uwb_exit(void)4870 static void uwb_exit(void)
4871 {
4872 tpacpi_destroy_rfkill(TPACPI_RFK_UWB_SW_ID);
4873 }
4874
uwb_init(struct ibm_init_struct *iibm)4875 static int __init uwb_init(struct ibm_init_struct *iibm)
4876 {
4877 int res;
4878 int status = 0;
4879
4880 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_RFKILL,
4881 "initializing uwb subdriver\n");
4882
4883 TPACPI_ACPIHANDLE_INIT(hkey);
4884
4885 tp_features.uwb = hkey_handle &&
4886 acpi_evalf(hkey_handle, &status, "GUWB", "qd");
4887
4888 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_RFKILL,
4889 "uwb is %s, status 0x%02x\n",
4890 str_supported(tp_features.uwb),
4891 status);
4892
4893 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
4894 if (dbg_uwbemul) {
4895 tp_features.uwb = 1;
4896 pr_info("uwb switch emulation enabled\n");
4897 } else
4898 #endif
4899 if (tp_features.uwb &&
4900 !(status & TP_ACPI_UWB_HWPRESENT)) {
4901 /* no uwb hardware present in system */
4902 tp_features.uwb = 0;
4903 dbg_printk(TPACPI_DBG_INIT,
4904 "uwb hardware not installed\n");
4905 }
4906
4907 if (!tp_features.uwb)
4908 return 1;
4909
4910 res = tpacpi_new_rfkill(TPACPI_RFK_UWB_SW_ID,
4911 &uwb_tprfk_ops,
4912 RFKILL_TYPE_UWB,
4913 TPACPI_RFK_UWB_SW_NAME,
4914 false);
4915 return res;
4916 }
4917
4918 static struct ibm_struct uwb_driver_data = {
4919 .name = "uwb",
4920 .exit = uwb_exit,
4921 .flags.experimental = 1,
4922 };
4923
4924 /*************************************************************************
4925 * Video subdriver
4926 */
4927
4928 #ifdef CONFIG_THINKPAD_ACPI_VIDEO
4929
4930 enum video_access_mode {
4931 TPACPI_VIDEO_NONE = 0,
4932 TPACPI_VIDEO_570, /* 570 */
4933 TPACPI_VIDEO_770, /* 600e/x, 770e, 770x */
4934 TPACPI_VIDEO_NEW, /* all others */
4935 };
4936
4937 enum { /* video status flags, based on VIDEO_570 */
4938 TP_ACPI_VIDEO_S_LCD = 0x01, /* LCD output enabled */
4939 TP_ACPI_VIDEO_S_CRT = 0x02, /* CRT output enabled */
4940 TP_ACPI_VIDEO_S_DVI = 0x08, /* DVI output enabled */
4941 };
4942
4943 enum { /* TPACPI_VIDEO_570 constants */
4944 TP_ACPI_VIDEO_570_PHSCMD = 0x87, /* unknown magic constant :( */
4945 TP_ACPI_VIDEO_570_PHSMASK = 0x03, /* PHS bits that map to
4946 * video_status_flags */
4947 TP_ACPI_VIDEO_570_PHS2CMD = 0x8b, /* unknown magic constant :( */
4948 TP_ACPI_VIDEO_570_PHS2SET = 0x80, /* unknown magic constant :( */
4949 };
4950
4951 static enum video_access_mode video_supported;
4952 static int video_orig_autosw;
4953
4954 static int video_autosw_get(void);
4955 static int video_autosw_set(int enable);
4956
4957 TPACPI_HANDLE(vid, root,
4958 "\\_SB.PCI.AGP.VGA", /* 570 */
4959 "\\_SB.PCI0.AGP0.VID0", /* 600e/x, 770x */
4960 "\\_SB.PCI0.VID0", /* 770e */
4961 "\\_SB.PCI0.VID", /* A21e, G4x, R50e, X30, X40 */
4962 "\\_SB.PCI0.AGP.VGA", /* X100e and a few others */
4963 "\\_SB.PCI0.AGP.VID", /* all others */
4964 ); /* R30, R31 */
4965
4966 TPACPI_HANDLE(vid2, root, "\\_SB.PCI0.AGPB.VID"); /* G41 */
4967
video_init(struct ibm_init_struct *iibm)4968 static int __init video_init(struct ibm_init_struct *iibm)
4969 {
4970 int ivga;
4971
4972 vdbg_printk(TPACPI_DBG_INIT, "initializing video subdriver\n");
4973
4974 TPACPI_ACPIHANDLE_INIT(vid);
4975 if (tpacpi_is_ibm())
4976 TPACPI_ACPIHANDLE_INIT(vid2);
4977
4978 if (vid2_handle && acpi_evalf(NULL, &ivga, "\\IVGA", "d") && ivga)
4979 /* G41, assume IVGA doesn't change */
4980 vid_handle = vid2_handle;
4981
4982 if (!vid_handle)
4983 /* video switching not supported on R30, R31 */
4984 video_supported = TPACPI_VIDEO_NONE;
4985 else if (tpacpi_is_ibm() &&
4986 acpi_evalf(vid_handle, &video_orig_autosw, "SWIT", "qd"))
4987 /* 570 */
4988 video_supported = TPACPI_VIDEO_570;
4989 else if (tpacpi_is_ibm() &&
4990 acpi_evalf(vid_handle, &video_orig_autosw, "^VADL", "qd"))
4991 /* 600e/x, 770e, 770x */
4992 video_supported = TPACPI_VIDEO_770;
4993 else
4994 /* all others */
4995 video_supported = TPACPI_VIDEO_NEW;
4996
4997 vdbg_printk(TPACPI_DBG_INIT, "video is %s, mode %d\n",
4998 str_supported(video_supported != TPACPI_VIDEO_NONE),
4999 video_supported);
5000
5001 return (video_supported != TPACPI_VIDEO_NONE) ? 0 : 1;
5002 }
5003
video_exit(void)5004 static void video_exit(void)
5005 {
5006 dbg_printk(TPACPI_DBG_EXIT,
5007 "restoring original video autoswitch mode\n");
5008 if (video_autosw_set(video_orig_autosw))
5009 pr_err("error while trying to restore original video autoswitch mode\n");
5010 }
5011
video_outputsw_get(void)5012 static int video_outputsw_get(void)
5013 {
5014 int status = 0;
5015 int i;
5016
5017 switch (video_supported) {
5018 case TPACPI_VIDEO_570:
5019 if (!acpi_evalf(NULL, &i, "\\_SB.PHS", "dd",
5020 TP_ACPI_VIDEO_570_PHSCMD))
5021 return -EIO;
5022 status = i & TP_ACPI_VIDEO_570_PHSMASK;
5023 break;
5024 case TPACPI_VIDEO_770:
5025 if (!acpi_evalf(NULL, &i, "\\VCDL", "d"))
5026 return -EIO;
5027 if (i)
5028 status |= TP_ACPI_VIDEO_S_LCD;
5029 if (!acpi_evalf(NULL, &i, "\\VCDC", "d"))
5030 return -EIO;
5031 if (i)
5032 status |= TP_ACPI_VIDEO_S_CRT;
5033 break;
5034 case TPACPI_VIDEO_NEW:
5035 if (!acpi_evalf(NULL, NULL, "\\VUPS", "vd", 1) ||
5036 !acpi_evalf(NULL, &i, "\\VCDC", "d"))
5037 return -EIO;
5038 if (i)
5039 status |= TP_ACPI_VIDEO_S_CRT;
5040
5041 if (!acpi_evalf(NULL, NULL, "\\VUPS", "vd", 0) ||
5042 !acpi_evalf(NULL, &i, "\\VCDL", "d"))
5043 return -EIO;
5044 if (i)
5045 status |= TP_ACPI_VIDEO_S_LCD;
5046 if (!acpi_evalf(NULL, &i, "\\VCDD", "d"))
5047 return -EIO;
5048 if (i)
5049 status |= TP_ACPI_VIDEO_S_DVI;
5050 break;
5051 default:
5052 return -ENOSYS;
5053 }
5054
5055 return status;
5056 }
5057
video_outputsw_set(int status)5058 static int video_outputsw_set(int status)
5059 {
5060 int autosw;
5061 int res = 0;
5062
5063 switch (video_supported) {
5064 case TPACPI_VIDEO_570:
5065 res = acpi_evalf(NULL, NULL,
5066 "\\_SB.PHS2", "vdd",
5067 TP_ACPI_VIDEO_570_PHS2CMD,
5068 status | TP_ACPI_VIDEO_570_PHS2SET);
5069 break;
5070 case TPACPI_VIDEO_770:
5071 autosw = video_autosw_get();
5072 if (autosw < 0)
5073 return autosw;
5074
5075 res = video_autosw_set(1);
5076 if (res)
5077 return res;
5078 res = acpi_evalf(vid_handle, NULL,
5079 "ASWT", "vdd", status * 0x100, 0);
5080 if (!autosw && video_autosw_set(autosw)) {
5081 pr_err("video auto-switch left enabled due to error\n");
5082 return -EIO;
5083 }
5084 break;
5085 case TPACPI_VIDEO_NEW:
5086 res = acpi_evalf(NULL, NULL, "\\VUPS", "vd", 0x80) &&
5087 acpi_evalf(NULL, NULL, "\\VSDS", "vdd", status, 1);
5088 break;
5089 default:
5090 return -ENOSYS;
5091 }
5092
5093 return (res) ? 0 : -EIO;
5094 }
5095
video_autosw_get(void)5096 static int video_autosw_get(void)
5097 {
5098 int autosw = 0;
5099
5100 switch (video_supported) {
5101 case TPACPI_VIDEO_570:
5102 if (!acpi_evalf(vid_handle, &autosw, "SWIT", "d"))
5103 return -EIO;
5104 break;
5105 case TPACPI_VIDEO_770:
5106 case TPACPI_VIDEO_NEW:
5107 if (!acpi_evalf(vid_handle, &autosw, "^VDEE", "d"))
5108 return -EIO;
5109 break;
5110 default:
5111 return -ENOSYS;
5112 }
5113
5114 return autosw & 1;
5115 }
5116
video_autosw_set(int enable)5117 static int video_autosw_set(int enable)
5118 {
5119 if (!acpi_evalf(vid_handle, NULL, "_DOS", "vd", (enable) ? 1 : 0))
5120 return -EIO;
5121 return 0;
5122 }
5123
video_outputsw_cycle(void)5124 static int video_outputsw_cycle(void)
5125 {
5126 int autosw = video_autosw_get();
5127 int res;
5128
5129 if (autosw < 0)
5130 return autosw;
5131
5132 switch (video_supported) {
5133 case TPACPI_VIDEO_570:
5134 res = video_autosw_set(1);
5135 if (res)
5136 return res;
5137 res = acpi_evalf(ec_handle, NULL, "_Q16", "v");
5138 break;
5139 case TPACPI_VIDEO_770:
5140 case TPACPI_VIDEO_NEW:
5141 res = video_autosw_set(1);
5142 if (res)
5143 return res;
5144 res = acpi_evalf(vid_handle, NULL, "VSWT", "v");
5145 break;
5146 default:
5147 return -ENOSYS;
5148 }
5149 if (!autosw && video_autosw_set(autosw)) {
5150 pr_err("video auto-switch left enabled due to error\n");
5151 return -EIO;
5152 }
5153
5154 return (res) ? 0 : -EIO;
5155 }
5156
video_expand_toggle(void)5157 static int video_expand_toggle(void)
5158 {
5159 switch (video_supported) {
5160 case TPACPI_VIDEO_570:
5161 return acpi_evalf(ec_handle, NULL, "_Q17", "v") ?
5162 0 : -EIO;
5163 case TPACPI_VIDEO_770:
5164 return acpi_evalf(vid_handle, NULL, "VEXP", "v") ?
5165 0 : -EIO;
5166 case TPACPI_VIDEO_NEW:
5167 return acpi_evalf(NULL, NULL, "\\VEXP", "v") ?
5168 0 : -EIO;
5169 default:
5170 return -ENOSYS;
5171 }
5172 /* not reached */
5173 }
5174
video_read(struct seq_file *m)5175 static int video_read(struct seq_file *m)
5176 {
5177 int status, autosw;
5178
5179 if (video_supported == TPACPI_VIDEO_NONE) {
5180 seq_printf(m, "status:\t\tnot supported\n");
5181 return 0;
5182 }
5183
5184 /* Even reads can crash X.org, so... */
5185 if (!capable(CAP_SYS_ADMIN))
5186 return -EPERM;
5187
5188 status = video_outputsw_get();
5189 if (status < 0)
5190 return status;
5191
5192 autosw = video_autosw_get();
5193 if (autosw < 0)
5194 return autosw;
5195
5196 seq_printf(m, "status:\t\tsupported\n");
5197 seq_printf(m, "lcd:\t\t%s\n", enabled(status, 0));
5198 seq_printf(m, "crt:\t\t%s\n", enabled(status, 1));
5199 if (video_supported == TPACPI_VIDEO_NEW)
5200 seq_printf(m, "dvi:\t\t%s\n", enabled(status, 3));
5201 seq_printf(m, "auto:\t\t%s\n", enabled(autosw, 0));
5202 seq_printf(m, "commands:\tlcd_enable, lcd_disable\n");
5203 seq_printf(m, "commands:\tcrt_enable, crt_disable\n");
5204 if (video_supported == TPACPI_VIDEO_NEW)
5205 seq_printf(m, "commands:\tdvi_enable, dvi_disable\n");
5206 seq_printf(m, "commands:\tauto_enable, auto_disable\n");
5207 seq_printf(m, "commands:\tvideo_switch, expand_toggle\n");
5208
5209 return 0;
5210 }
5211
video_write(char *buf)5212 static int video_write(char *buf)
5213 {
5214 char *cmd;
5215 int enable, disable, status;
5216 int res;
5217
5218 if (video_supported == TPACPI_VIDEO_NONE)
5219 return -ENODEV;
5220
5221 /* Even reads can crash X.org, let alone writes... */
5222 if (!capable(CAP_SYS_ADMIN))
5223 return -EPERM;
5224
5225 enable = 0;
5226 disable = 0;
5227
5228 while ((cmd = strsep(&buf, ","))) {
5229 if (strlencmp(cmd, "lcd_enable") == 0) {
5230 enable |= TP_ACPI_VIDEO_S_LCD;
5231 } else if (strlencmp(cmd, "lcd_disable") == 0) {
5232 disable |= TP_ACPI_VIDEO_S_LCD;
5233 } else if (strlencmp(cmd, "crt_enable") == 0) {
5234 enable |= TP_ACPI_VIDEO_S_CRT;
5235 } else if (strlencmp(cmd, "crt_disable") == 0) {
5236 disable |= TP_ACPI_VIDEO_S_CRT;
5237 } else if (video_supported == TPACPI_VIDEO_NEW &&
5238 strlencmp(cmd, "dvi_enable") == 0) {
5239 enable |= TP_ACPI_VIDEO_S_DVI;
5240 } else if (video_supported == TPACPI_VIDEO_NEW &&
5241 strlencmp(cmd, "dvi_disable") == 0) {
5242 disable |= TP_ACPI_VIDEO_S_DVI;
5243 } else if (strlencmp(cmd, "auto_enable") == 0) {
5244 res = video_autosw_set(1);
5245 if (res)
5246 return res;
5247 } else if (strlencmp(cmd, "auto_disable") == 0) {
5248 res = video_autosw_set(0);
5249 if (res)
5250 return res;
5251 } else if (strlencmp(cmd, "video_switch") == 0) {
5252 res = video_outputsw_cycle();
5253 if (res)
5254 return res;
5255 } else if (strlencmp(cmd, "expand_toggle") == 0) {
5256 res = video_expand_toggle();
5257 if (res)
5258 return res;
5259 } else
5260 return -EINVAL;
5261 }
5262
5263 if (enable || disable) {
5264 status = video_outputsw_get();
5265 if (status < 0)
5266 return status;
5267 res = video_outputsw_set((status & ~disable) | enable);
5268 if (res)
5269 return res;
5270 }
5271
5272 return 0;
5273 }
5274
5275 static struct ibm_struct video_driver_data = {
5276 .name = "video",
5277 .read = video_read,
5278 .write = video_write,
5279 .exit = video_exit,
5280 };
5281
5282 #endif /* CONFIG_THINKPAD_ACPI_VIDEO */
5283
5284 /*************************************************************************
5285 * Keyboard backlight subdriver
5286 */
5287
5288 static enum led_brightness kbdlight_brightness;
5289 static DEFINE_MUTEX(kbdlight_mutex);
5290
kbdlight_set_level(int level)5291 static int kbdlight_set_level(int level)
5292 {
5293 int ret = 0;
5294
5295 if (!hkey_handle)
5296 return -ENXIO;
5297
5298 mutex_lock(&kbdlight_mutex);
5299
5300 if (!acpi_evalf(hkey_handle, NULL, "MLCS", "dd", level))
5301 ret = -EIO;
5302 else
5303 kbdlight_brightness = level;
5304
5305 mutex_unlock(&kbdlight_mutex);
5306
5307 return ret;
5308 }
5309
kbdlight_get_level(void)5310 static int kbdlight_get_level(void)
5311 {
5312 int status = 0;
5313
5314 if (!hkey_handle)
5315 return -ENXIO;
5316
5317 if (!acpi_evalf(hkey_handle, &status, "MLCG", "dd", 0))
5318 return -EIO;
5319
5320 if (status < 0)
5321 return status;
5322
5323 return status & 0x3;
5324 }
5325
kbdlight_is_supported(void)5326 static bool kbdlight_is_supported(void)
5327 {
5328 int status = 0;
5329
5330 if (!hkey_handle)
5331 return false;
5332
5333 if (!acpi_has_method(hkey_handle, "MLCG")) {
5334 vdbg_printk(TPACPI_DBG_INIT, "kbdlight MLCG is unavailable\n");
5335 return false;
5336 }
5337
5338 if (!acpi_evalf(hkey_handle, &status, "MLCG", "qdd", 0)) {
5339 vdbg_printk(TPACPI_DBG_INIT, "kbdlight MLCG failed\n");
5340 return false;
5341 }
5342
5343 if (status < 0) {
5344 vdbg_printk(TPACPI_DBG_INIT, "kbdlight MLCG err: %d\n", status);
5345 return false;
5346 }
5347
5348 vdbg_printk(TPACPI_DBG_INIT, "kbdlight MLCG returned 0x%x\n", status);
5349 /*
5350 * Guessed test for keyboard backlight:
5351 *
5352 * Machines with backlight keyboard return:
5353 * b010100000010000000XX - ThinkPad X1 Carbon 3rd
5354 * b110100010010000000XX - ThinkPad x230
5355 * b010100000010000000XX - ThinkPad x240
5356 * b010100000010000000XX - ThinkPad W541
5357 * (XX is current backlight level)
5358 *
5359 * Machines without backlight keyboard return:
5360 * b10100001000000000000 - ThinkPad x230
5361 * b10110001000000000000 - ThinkPad E430
5362 * b00000000000000000000 - ThinkPad E450
5363 *
5364 * Candidate BITs for detection test (XOR):
5365 * b01000000001000000000
5366 * ^
5367 */
5368 return status & BIT(9);
5369 }
5370
kbdlight_sysfs_set(struct led_classdev *led_cdev, enum led_brightness brightness)5371 static int kbdlight_sysfs_set(struct led_classdev *led_cdev,
5372 enum led_brightness brightness)
5373 {
5374 return kbdlight_set_level(brightness);
5375 }
5376
kbdlight_sysfs_get(struct led_classdev *led_cdev)5377 static enum led_brightness kbdlight_sysfs_get(struct led_classdev *led_cdev)
5378 {
5379 int level;
5380
5381 level = kbdlight_get_level();
5382 if (level < 0)
5383 return 0;
5384
5385 return level;
5386 }
5387
5388 static struct tpacpi_led_classdev tpacpi_led_kbdlight = {
5389 .led_classdev = {
5390 .name = "tpacpi::kbd_backlight",
5391 .max_brightness = 2,
5392 .flags = LED_BRIGHT_HW_CHANGED,
5393 .brightness_set_blocking = &kbdlight_sysfs_set,
5394 .brightness_get = &kbdlight_sysfs_get,
5395 }
5396 };
5397
kbdlight_init(struct ibm_init_struct *iibm)5398 static int __init kbdlight_init(struct ibm_init_struct *iibm)
5399 {
5400 int rc;
5401
5402 vdbg_printk(TPACPI_DBG_INIT, "initializing kbdlight subdriver\n");
5403
5404 TPACPI_ACPIHANDLE_INIT(hkey);
5405
5406 if (!kbdlight_is_supported()) {
5407 tp_features.kbdlight = 0;
5408 vdbg_printk(TPACPI_DBG_INIT, "kbdlight is unsupported\n");
5409 return 1;
5410 }
5411
5412 kbdlight_brightness = kbdlight_sysfs_get(NULL);
5413 tp_features.kbdlight = 1;
5414
5415 rc = led_classdev_register(&tpacpi_pdev->dev,
5416 &tpacpi_led_kbdlight.led_classdev);
5417 if (rc < 0) {
5418 tp_features.kbdlight = 0;
5419 return rc;
5420 }
5421
5422 tpacpi_hotkey_driver_mask_set(hotkey_driver_mask |
5423 TP_ACPI_HKEY_KBD_LIGHT_MASK);
5424 return 0;
5425 }
5426
kbdlight_exit(void)5427 static void kbdlight_exit(void)
5428 {
5429 led_classdev_unregister(&tpacpi_led_kbdlight.led_classdev);
5430 }
5431
kbdlight_set_level_and_update(int level)5432 static int kbdlight_set_level_and_update(int level)
5433 {
5434 int ret;
5435 struct led_classdev *led_cdev;
5436
5437 ret = kbdlight_set_level(level);
5438 led_cdev = &tpacpi_led_kbdlight.led_classdev;
5439
5440 if (ret == 0 && !(led_cdev->flags & LED_SUSPENDED))
5441 led_cdev->brightness = level;
5442
5443 return ret;
5444 }
5445
kbdlight_read(struct seq_file *m)5446 static int kbdlight_read(struct seq_file *m)
5447 {
5448 int level;
5449
5450 if (!tp_features.kbdlight) {
5451 seq_printf(m, "status:\t\tnot supported\n");
5452 } else {
5453 level = kbdlight_get_level();
5454 if (level < 0)
5455 seq_printf(m, "status:\t\terror %d\n", level);
5456 else
5457 seq_printf(m, "status:\t\t%d\n", level);
5458 seq_printf(m, "commands:\t0, 1, 2\n");
5459 }
5460
5461 return 0;
5462 }
5463
kbdlight_write(char *buf)5464 static int kbdlight_write(char *buf)
5465 {
5466 char *cmd;
5467 int res, level = -EINVAL;
5468
5469 if (!tp_features.kbdlight)
5470 return -ENODEV;
5471
5472 while ((cmd = strsep(&buf, ","))) {
5473 res = kstrtoint(cmd, 10, &level);
5474 if (res < 0)
5475 return res;
5476 }
5477
5478 if (level >= 3 || level < 0)
5479 return -EINVAL;
5480
5481 return kbdlight_set_level_and_update(level);
5482 }
5483
kbdlight_suspend(void)5484 static void kbdlight_suspend(void)
5485 {
5486 struct led_classdev *led_cdev;
5487
5488 if (!tp_features.kbdlight)
5489 return;
5490
5491 led_cdev = &tpacpi_led_kbdlight.led_classdev;
5492 led_update_brightness(led_cdev);
5493 led_classdev_suspend(led_cdev);
5494 }
5495
kbdlight_resume(void)5496 static void kbdlight_resume(void)
5497 {
5498 if (!tp_features.kbdlight)
5499 return;
5500
5501 led_classdev_resume(&tpacpi_led_kbdlight.led_classdev);
5502 }
5503
5504 static struct ibm_struct kbdlight_driver_data = {
5505 .name = "kbdlight",
5506 .read = kbdlight_read,
5507 .write = kbdlight_write,
5508 .suspend = kbdlight_suspend,
5509 .resume = kbdlight_resume,
5510 .exit = kbdlight_exit,
5511 };
5512
5513 /*************************************************************************
5514 * Light (thinklight) subdriver
5515 */
5516
5517 TPACPI_HANDLE(lght, root, "\\LGHT"); /* A21e, A2xm/p, T20-22, X20-21 */
5518 TPACPI_HANDLE(ledb, ec, "LEDB"); /* G4x */
5519
light_get_status(void)5520 static int light_get_status(void)
5521 {
5522 int status = 0;
5523
5524 if (tp_features.light_status) {
5525 if (!acpi_evalf(ec_handle, &status, "KBLT", "d"))
5526 return -EIO;
5527 return (!!status);
5528 }
5529
5530 return -ENXIO;
5531 }
5532
light_set_status(int status)5533 static int light_set_status(int status)
5534 {
5535 int rc;
5536
5537 if (tp_features.light) {
5538 if (cmos_handle) {
5539 rc = acpi_evalf(cmos_handle, NULL, NULL, "vd",
5540 (status) ?
5541 TP_CMOS_THINKLIGHT_ON :
5542 TP_CMOS_THINKLIGHT_OFF);
5543 } else {
5544 rc = acpi_evalf(lght_handle, NULL, NULL, "vd",
5545 (status) ? 1 : 0);
5546 }
5547 return (rc) ? 0 : -EIO;
5548 }
5549
5550 return -ENXIO;
5551 }
5552
light_sysfs_set(struct led_classdev *led_cdev, enum led_brightness brightness)5553 static int light_sysfs_set(struct led_classdev *led_cdev,
5554 enum led_brightness brightness)
5555 {
5556 return light_set_status((brightness != LED_OFF) ?
5557 TPACPI_LED_ON : TPACPI_LED_OFF);
5558 }
5559
light_sysfs_get(struct led_classdev *led_cdev)5560 static enum led_brightness light_sysfs_get(struct led_classdev *led_cdev)
5561 {
5562 return (light_get_status() == 1) ? LED_FULL : LED_OFF;
5563 }
5564
5565 static struct tpacpi_led_classdev tpacpi_led_thinklight = {
5566 .led_classdev = {
5567 .name = "tpacpi::thinklight",
5568 .brightness_set_blocking = &light_sysfs_set,
5569 .brightness_get = &light_sysfs_get,
5570 }
5571 };
5572
light_init(struct ibm_init_struct *iibm)5573 static int __init light_init(struct ibm_init_struct *iibm)
5574 {
5575 int rc;
5576
5577 vdbg_printk(TPACPI_DBG_INIT, "initializing light subdriver\n");
5578
5579 if (tpacpi_is_ibm()) {
5580 TPACPI_ACPIHANDLE_INIT(ledb);
5581 TPACPI_ACPIHANDLE_INIT(lght);
5582 }
5583 TPACPI_ACPIHANDLE_INIT(cmos);
5584
5585 /* light not supported on 570, 600e/x, 770e, 770x, G4x, R30, R31 */
5586 tp_features.light = (cmos_handle || lght_handle) && !ledb_handle;
5587
5588 if (tp_features.light)
5589 /* light status not supported on
5590 570, 600e/x, 770e, 770x, G4x, R30, R31, R32, X20 */
5591 tp_features.light_status =
5592 acpi_evalf(ec_handle, NULL, "KBLT", "qv");
5593
5594 vdbg_printk(TPACPI_DBG_INIT, "light is %s, light status is %s\n",
5595 str_supported(tp_features.light),
5596 str_supported(tp_features.light_status));
5597
5598 if (!tp_features.light)
5599 return 1;
5600
5601 rc = led_classdev_register(&tpacpi_pdev->dev,
5602 &tpacpi_led_thinklight.led_classdev);
5603
5604 if (rc < 0) {
5605 tp_features.light = 0;
5606 tp_features.light_status = 0;
5607 } else {
5608 rc = 0;
5609 }
5610
5611 return rc;
5612 }
5613
light_exit(void)5614 static void light_exit(void)
5615 {
5616 led_classdev_unregister(&tpacpi_led_thinklight.led_classdev);
5617 }
5618
light_read(struct seq_file *m)5619 static int light_read(struct seq_file *m)
5620 {
5621 int status;
5622
5623 if (!tp_features.light) {
5624 seq_printf(m, "status:\t\tnot supported\n");
5625 } else if (!tp_features.light_status) {
5626 seq_printf(m, "status:\t\tunknown\n");
5627 seq_printf(m, "commands:\ton, off\n");
5628 } else {
5629 status = light_get_status();
5630 if (status < 0)
5631 return status;
5632 seq_printf(m, "status:\t\t%s\n", onoff(status, 0));
5633 seq_printf(m, "commands:\ton, off\n");
5634 }
5635
5636 return 0;
5637 }
5638
light_write(char *buf)5639 static int light_write(char *buf)
5640 {
5641 char *cmd;
5642 int newstatus = 0;
5643
5644 if (!tp_features.light)
5645 return -ENODEV;
5646
5647 while ((cmd = strsep(&buf, ","))) {
5648 if (strlencmp(cmd, "on") == 0) {
5649 newstatus = 1;
5650 } else if (strlencmp(cmd, "off") == 0) {
5651 newstatus = 0;
5652 } else
5653 return -EINVAL;
5654 }
5655
5656 return light_set_status(newstatus);
5657 }
5658
5659 static struct ibm_struct light_driver_data = {
5660 .name = "light",
5661 .read = light_read,
5662 .write = light_write,
5663 .exit = light_exit,
5664 };
5665
5666 /*************************************************************************
5667 * CMOS subdriver
5668 */
5669
5670 /* sysfs cmos_command -------------------------------------------------- */
cmos_command_store(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)5671 static ssize_t cmos_command_store(struct device *dev,
5672 struct device_attribute *attr,
5673 const char *buf, size_t count)
5674 {
5675 unsigned long cmos_cmd;
5676 int res;
5677
5678 if (parse_strtoul(buf, 21, &cmos_cmd))
5679 return -EINVAL;
5680
5681 res = issue_thinkpad_cmos_command(cmos_cmd);
5682 return (res) ? res : count;
5683 }
5684
5685 static DEVICE_ATTR_WO(cmos_command);
5686
5687 /* --------------------------------------------------------------------- */
5688
cmos_init(struct ibm_init_struct *iibm)5689 static int __init cmos_init(struct ibm_init_struct *iibm)
5690 {
5691 int res;
5692
5693 vdbg_printk(TPACPI_DBG_INIT,
5694 "initializing cmos commands subdriver\n");
5695
5696 TPACPI_ACPIHANDLE_INIT(cmos);
5697
5698 vdbg_printk(TPACPI_DBG_INIT, "cmos commands are %s\n",
5699 str_supported(cmos_handle != NULL));
5700
5701 res = device_create_file(&tpacpi_pdev->dev, &dev_attr_cmos_command);
5702 if (res)
5703 return res;
5704
5705 return (cmos_handle) ? 0 : 1;
5706 }
5707
cmos_exit(void)5708 static void cmos_exit(void)
5709 {
5710 device_remove_file(&tpacpi_pdev->dev, &dev_attr_cmos_command);
5711 }
5712
cmos_read(struct seq_file *m)5713 static int cmos_read(struct seq_file *m)
5714 {
5715 /* cmos not supported on 570, 600e/x, 770e, 770x, A21e, A2xm/p,
5716 R30, R31, T20-22, X20-21 */
5717 if (!cmos_handle)
5718 seq_printf(m, "status:\t\tnot supported\n");
5719 else {
5720 seq_printf(m, "status:\t\tsupported\n");
5721 seq_printf(m, "commands:\t<cmd> (<cmd> is 0-21)\n");
5722 }
5723
5724 return 0;
5725 }
5726
cmos_write(char *buf)5727 static int cmos_write(char *buf)
5728 {
5729 char *cmd;
5730 int cmos_cmd, res;
5731
5732 while ((cmd = strsep(&buf, ","))) {
5733 if (sscanf(cmd, "%u", &cmos_cmd) == 1 &&
5734 cmos_cmd >= 0 && cmos_cmd <= 21) {
5735 /* cmos_cmd set */
5736 } else
5737 return -EINVAL;
5738
5739 res = issue_thinkpad_cmos_command(cmos_cmd);
5740 if (res)
5741 return res;
5742 }
5743
5744 return 0;
5745 }
5746
5747 static struct ibm_struct cmos_driver_data = {
5748 .name = "cmos",
5749 .read = cmos_read,
5750 .write = cmos_write,
5751 .exit = cmos_exit,
5752 };
5753
5754 /*************************************************************************
5755 * LED subdriver
5756 */
5757
5758 enum led_access_mode {
5759 TPACPI_LED_NONE = 0,
5760 TPACPI_LED_570, /* 570 */
5761 TPACPI_LED_OLD, /* 600e/x, 770e, 770x, A21e, A2xm/p, T20-22, X20-21 */
5762 TPACPI_LED_NEW, /* all others */
5763 };
5764
5765 enum { /* For TPACPI_LED_OLD */
5766 TPACPI_LED_EC_HLCL = 0x0c, /* EC reg to get led to power on */
5767 TPACPI_LED_EC_HLBL = 0x0d, /* EC reg to blink a lit led */
5768 TPACPI_LED_EC_HLMS = 0x0e, /* EC reg to select led to command */
5769 };
5770
5771 static enum led_access_mode led_supported;
5772
5773 static acpi_handle led_handle;
5774
5775 #define TPACPI_LED_NUMLEDS 16
5776 static struct tpacpi_led_classdev *tpacpi_leds;
5777 static enum led_status_t tpacpi_led_state_cache[TPACPI_LED_NUMLEDS];
5778 static const char * const tpacpi_led_names[TPACPI_LED_NUMLEDS] = {
5779 /* there's a limit of 19 chars + NULL before 2.6.26 */
5780 "tpacpi::power",
5781 "tpacpi:orange:batt",
5782 "tpacpi:green:batt",
5783 "tpacpi::dock_active",
5784 "tpacpi::bay_active",
5785 "tpacpi::dock_batt",
5786 "tpacpi::unknown_led",
5787 "tpacpi::standby",
5788 "tpacpi::dock_status1",
5789 "tpacpi::dock_status2",
5790 "tpacpi::unknown_led2",
5791 "tpacpi::unknown_led3",
5792 "tpacpi::thinkvantage",
5793 };
5794 #define TPACPI_SAFE_LEDS 0x1081U
5795
tpacpi_is_led_restricted(const unsigned int led)5796 static inline bool tpacpi_is_led_restricted(const unsigned int led)
5797 {
5798 #ifdef CONFIG_THINKPAD_ACPI_UNSAFE_LEDS
5799 return false;
5800 #else
5801 return (1U & (TPACPI_SAFE_LEDS >> led)) == 0;
5802 #endif
5803 }
5804
led_get_status(const unsigned int led)5805 static int led_get_status(const unsigned int led)
5806 {
5807 int status;
5808 enum led_status_t led_s;
5809
5810 switch (led_supported) {
5811 case TPACPI_LED_570:
5812 if (!acpi_evalf(ec_handle,
5813 &status, "GLED", "dd", 1 << led))
5814 return -EIO;
5815 led_s = (status == 0) ?
5816 TPACPI_LED_OFF :
5817 ((status == 1) ?
5818 TPACPI_LED_ON :
5819 TPACPI_LED_BLINK);
5820 tpacpi_led_state_cache[led] = led_s;
5821 return led_s;
5822 default:
5823 return -ENXIO;
5824 }
5825
5826 /* not reached */
5827 }
5828
led_set_status(const unsigned int led, const enum led_status_t ledstatus)5829 static int led_set_status(const unsigned int led,
5830 const enum led_status_t ledstatus)
5831 {
5832 /* off, on, blink. Index is led_status_t */
5833 static const unsigned int led_sled_arg1[] = { 0, 1, 3 };
5834 static const unsigned int led_led_arg1[] = { 0, 0x80, 0xc0 };
5835
5836 int rc = 0;
5837
5838 switch (led_supported) {
5839 case TPACPI_LED_570:
5840 /* 570 */
5841 if (unlikely(led > 7))
5842 return -EINVAL;
5843 if (unlikely(tpacpi_is_led_restricted(led)))
5844 return -EPERM;
5845 if (!acpi_evalf(led_handle, NULL, NULL, "vdd",
5846 (1 << led), led_sled_arg1[ledstatus]))
5847 return -EIO;
5848 break;
5849 case TPACPI_LED_OLD:
5850 /* 600e/x, 770e, 770x, A21e, A2xm/p, T20-22, X20 */
5851 if (unlikely(led > 7))
5852 return -EINVAL;
5853 if (unlikely(tpacpi_is_led_restricted(led)))
5854 return -EPERM;
5855 rc = ec_write(TPACPI_LED_EC_HLMS, (1 << led));
5856 if (rc >= 0)
5857 rc = ec_write(TPACPI_LED_EC_HLBL,
5858 (ledstatus == TPACPI_LED_BLINK) << led);
5859 if (rc >= 0)
5860 rc = ec_write(TPACPI_LED_EC_HLCL,
5861 (ledstatus != TPACPI_LED_OFF) << led);
5862 break;
5863 case TPACPI_LED_NEW:
5864 /* all others */
5865 if (unlikely(led >= TPACPI_LED_NUMLEDS))
5866 return -EINVAL;
5867 if (unlikely(tpacpi_is_led_restricted(led)))
5868 return -EPERM;
5869 if (!acpi_evalf(led_handle, NULL, NULL, "vdd",
5870 led, led_led_arg1[ledstatus]))
5871 return -EIO;
5872 break;
5873 default:
5874 return -ENXIO;
5875 }
5876
5877 if (!rc)
5878 tpacpi_led_state_cache[led] = ledstatus;
5879
5880 return rc;
5881 }
5882
led_sysfs_set(struct led_classdev *led_cdev, enum led_brightness brightness)5883 static int led_sysfs_set(struct led_classdev *led_cdev,
5884 enum led_brightness brightness)
5885 {
5886 struct tpacpi_led_classdev *data = container_of(led_cdev,
5887 struct tpacpi_led_classdev, led_classdev);
5888 enum led_status_t new_state;
5889
5890 if (brightness == LED_OFF)
5891 new_state = TPACPI_LED_OFF;
5892 else if (tpacpi_led_state_cache[data->led] != TPACPI_LED_BLINK)
5893 new_state = TPACPI_LED_ON;
5894 else
5895 new_state = TPACPI_LED_BLINK;
5896
5897 return led_set_status(data->led, new_state);
5898 }
5899
led_sysfs_blink_set(struct led_classdev *led_cdev, unsigned long *delay_on, unsigned long *delay_off)5900 static int led_sysfs_blink_set(struct led_classdev *led_cdev,
5901 unsigned long *delay_on, unsigned long *delay_off)
5902 {
5903 struct tpacpi_led_classdev *data = container_of(led_cdev,
5904 struct tpacpi_led_classdev, led_classdev);
5905
5906 /* Can we choose the flash rate? */
5907 if (*delay_on == 0 && *delay_off == 0) {
5908 /* yes. set them to the hardware blink rate (1 Hz) */
5909 *delay_on = 500; /* ms */
5910 *delay_off = 500; /* ms */
5911 } else if ((*delay_on != 500) || (*delay_off != 500))
5912 return -EINVAL;
5913
5914 return led_set_status(data->led, TPACPI_LED_BLINK);
5915 }
5916
led_sysfs_get(struct led_classdev *led_cdev)5917 static enum led_brightness led_sysfs_get(struct led_classdev *led_cdev)
5918 {
5919 int rc;
5920
5921 struct tpacpi_led_classdev *data = container_of(led_cdev,
5922 struct tpacpi_led_classdev, led_classdev);
5923
5924 rc = led_get_status(data->led);
5925
5926 if (rc == TPACPI_LED_OFF || rc < 0)
5927 rc = LED_OFF; /* no error handling in led class :( */
5928 else
5929 rc = LED_FULL;
5930
5931 return rc;
5932 }
5933
led_exit(void)5934 static void led_exit(void)
5935 {
5936 unsigned int i;
5937
5938 for (i = 0; i < TPACPI_LED_NUMLEDS; i++)
5939 led_classdev_unregister(&tpacpi_leds[i].led_classdev);
5940
5941 kfree(tpacpi_leds);
5942 }
5943
tpacpi_init_led(unsigned int led)5944 static int __init tpacpi_init_led(unsigned int led)
5945 {
5946 /* LEDs with no name don't get registered */
5947 if (!tpacpi_led_names[led])
5948 return 0;
5949
5950 tpacpi_leds[led].led_classdev.brightness_set_blocking = &led_sysfs_set;
5951 tpacpi_leds[led].led_classdev.blink_set = &led_sysfs_blink_set;
5952 if (led_supported == TPACPI_LED_570)
5953 tpacpi_leds[led].led_classdev.brightness_get = &led_sysfs_get;
5954
5955 tpacpi_leds[led].led_classdev.name = tpacpi_led_names[led];
5956 tpacpi_leds[led].led = led;
5957
5958 return led_classdev_register(&tpacpi_pdev->dev, &tpacpi_leds[led].led_classdev);
5959 }
5960
5961 static const struct tpacpi_quirk led_useful_qtable[] __initconst = {
5962 TPACPI_Q_IBM('1', 'E', 0x009f), /* A30 */
5963 TPACPI_Q_IBM('1', 'N', 0x009f), /* A31 */
5964 TPACPI_Q_IBM('1', 'G', 0x009f), /* A31 */
5965
5966 TPACPI_Q_IBM('1', 'I', 0x0097), /* T30 */
5967 TPACPI_Q_IBM('1', 'R', 0x0097), /* T40, T41, T42, R50, R51 */
5968 TPACPI_Q_IBM('7', '0', 0x0097), /* T43, R52 */
5969 TPACPI_Q_IBM('1', 'Y', 0x0097), /* T43 */
5970 TPACPI_Q_IBM('1', 'W', 0x0097), /* R50e */
5971 TPACPI_Q_IBM('1', 'V', 0x0097), /* R51 */
5972 TPACPI_Q_IBM('7', '8', 0x0097), /* R51e */
5973 TPACPI_Q_IBM('7', '6', 0x0097), /* R52 */
5974
5975 TPACPI_Q_IBM('1', 'K', 0x00bf), /* X30 */
5976 TPACPI_Q_IBM('1', 'Q', 0x00bf), /* X31, X32 */
5977 TPACPI_Q_IBM('1', 'U', 0x00bf), /* X40 */
5978 TPACPI_Q_IBM('7', '4', 0x00bf), /* X41 */
5979 TPACPI_Q_IBM('7', '5', 0x00bf), /* X41t */
5980
5981 TPACPI_Q_IBM('7', '9', 0x1f97), /* T60 (1) */
5982 TPACPI_Q_IBM('7', '7', 0x1f97), /* Z60* (1) */
5983 TPACPI_Q_IBM('7', 'F', 0x1f97), /* Z61* (1) */
5984 TPACPI_Q_IBM('7', 'B', 0x1fb7), /* X60 (1) */
5985
5986 /* (1) - may have excess leds enabled on MSB */
5987
5988 /* Defaults (order matters, keep last, don't reorder!) */
5989 { /* Lenovo */
5990 .vendor = PCI_VENDOR_ID_LENOVO,
5991 .bios = TPACPI_MATCH_ANY, .ec = TPACPI_MATCH_ANY,
5992 .quirks = 0x1fffU,
5993 },
5994 { /* IBM ThinkPads with no EC version string */
5995 .vendor = PCI_VENDOR_ID_IBM,
5996 .bios = TPACPI_MATCH_ANY, .ec = TPACPI_MATCH_UNKNOWN,
5997 .quirks = 0x00ffU,
5998 },
5999 { /* IBM ThinkPads with EC version string */
6000 .vendor = PCI_VENDOR_ID_IBM,
6001 .bios = TPACPI_MATCH_ANY, .ec = TPACPI_MATCH_ANY,
6002 .quirks = 0x00bfU,
6003 },
6004 };
6005
led_init_detect_mode(void)6006 static enum led_access_mode __init led_init_detect_mode(void)
6007 {
6008 acpi_status status;
6009
6010 if (tpacpi_is_ibm()) {
6011 /* 570 */
6012 status = acpi_get_handle(ec_handle, "SLED", &led_handle);
6013 if (ACPI_SUCCESS(status))
6014 return TPACPI_LED_570;
6015
6016 /* 600e/x, 770e, 770x, A21e, A2xm/p, T20-22, X20-21 */
6017 status = acpi_get_handle(ec_handle, "SYSL", &led_handle);
6018 if (ACPI_SUCCESS(status))
6019 return TPACPI_LED_OLD;
6020 }
6021
6022 /* most others */
6023 status = acpi_get_handle(ec_handle, "LED", &led_handle);
6024 if (ACPI_SUCCESS(status))
6025 return TPACPI_LED_NEW;
6026
6027 /* R30, R31, and unknown firmwares */
6028 led_handle = NULL;
6029 return TPACPI_LED_NONE;
6030 }
6031
led_init(struct ibm_init_struct *iibm)6032 static int __init led_init(struct ibm_init_struct *iibm)
6033 {
6034 unsigned int i;
6035 int rc;
6036 unsigned long useful_leds;
6037
6038 vdbg_printk(TPACPI_DBG_INIT, "initializing LED subdriver\n");
6039
6040 led_supported = led_init_detect_mode();
6041
6042 if (led_supported != TPACPI_LED_NONE) {
6043 useful_leds = tpacpi_check_quirks(led_useful_qtable,
6044 ARRAY_SIZE(led_useful_qtable));
6045
6046 if (!useful_leds) {
6047 led_handle = NULL;
6048 led_supported = TPACPI_LED_NONE;
6049 }
6050 }
6051
6052 vdbg_printk(TPACPI_DBG_INIT, "LED commands are %s, mode %d\n",
6053 str_supported(led_supported), led_supported);
6054
6055 if (led_supported == TPACPI_LED_NONE)
6056 return 1;
6057
6058 tpacpi_leds = kcalloc(TPACPI_LED_NUMLEDS, sizeof(*tpacpi_leds),
6059 GFP_KERNEL);
6060 if (!tpacpi_leds) {
6061 pr_err("Out of memory for LED data\n");
6062 return -ENOMEM;
6063 }
6064
6065 for (i = 0; i < TPACPI_LED_NUMLEDS; i++) {
6066 tpacpi_leds[i].led = -1;
6067
6068 if (!tpacpi_is_led_restricted(i) && test_bit(i, &useful_leds)) {
6069 rc = tpacpi_init_led(i);
6070 if (rc < 0) {
6071 led_exit();
6072 return rc;
6073 }
6074 }
6075 }
6076
6077 #ifdef CONFIG_THINKPAD_ACPI_UNSAFE_LEDS
6078 pr_notice("warning: userspace override of important firmware LEDs is enabled\n");
6079 #endif
6080 return 0;
6081 }
6082
6083 #define str_led_status(s) \
6084 ((s) == TPACPI_LED_OFF ? "off" : \
6085 ((s) == TPACPI_LED_ON ? "on" : "blinking"))
6086
led_read(struct seq_file *m)6087 static int led_read(struct seq_file *m)
6088 {
6089 if (!led_supported) {
6090 seq_printf(m, "status:\t\tnot supported\n");
6091 return 0;
6092 }
6093 seq_printf(m, "status:\t\tsupported\n");
6094
6095 if (led_supported == TPACPI_LED_570) {
6096 /* 570 */
6097 int i, status;
6098 for (i = 0; i < 8; i++) {
6099 status = led_get_status(i);
6100 if (status < 0)
6101 return -EIO;
6102 seq_printf(m, "%d:\t\t%s\n",
6103 i, str_led_status(status));
6104 }
6105 }
6106
6107 seq_printf(m, "commands:\t<led> on, <led> off, <led> blink (<led> is 0-15)\n");
6108
6109 return 0;
6110 }
6111
led_write(char *buf)6112 static int led_write(char *buf)
6113 {
6114 char *cmd;
6115 int led, rc;
6116 enum led_status_t s;
6117
6118 if (!led_supported)
6119 return -ENODEV;
6120
6121 while ((cmd = strsep(&buf, ","))) {
6122 if (sscanf(cmd, "%d", &led) != 1)
6123 return -EINVAL;
6124
6125 if (led < 0 || led > (TPACPI_LED_NUMLEDS - 1))
6126 return -ENODEV;
6127
6128 if (tpacpi_leds[led].led < 0)
6129 return -ENODEV;
6130
6131 if (strstr(cmd, "off")) {
6132 s = TPACPI_LED_OFF;
6133 } else if (strstr(cmd, "on")) {
6134 s = TPACPI_LED_ON;
6135 } else if (strstr(cmd, "blink")) {
6136 s = TPACPI_LED_BLINK;
6137 } else {
6138 return -EINVAL;
6139 }
6140
6141 rc = led_set_status(led, s);
6142 if (rc < 0)
6143 return rc;
6144 }
6145
6146 return 0;
6147 }
6148
6149 static struct ibm_struct led_driver_data = {
6150 .name = "led",
6151 .read = led_read,
6152 .write = led_write,
6153 .exit = led_exit,
6154 };
6155
6156 /*************************************************************************
6157 * Beep subdriver
6158 */
6159
6160 TPACPI_HANDLE(beep, ec, "BEEP"); /* all except R30, R31 */
6161
6162 #define TPACPI_BEEP_Q1 0x0001
6163
6164 static const struct tpacpi_quirk beep_quirk_table[] __initconst = {
6165 TPACPI_Q_IBM('I', 'M', TPACPI_BEEP_Q1), /* 570 */
6166 TPACPI_Q_IBM('I', 'U', TPACPI_BEEP_Q1), /* 570E - unverified */
6167 };
6168
beep_init(struct ibm_init_struct *iibm)6169 static int __init beep_init(struct ibm_init_struct *iibm)
6170 {
6171 unsigned long quirks;
6172
6173 vdbg_printk(TPACPI_DBG_INIT, "initializing beep subdriver\n");
6174
6175 TPACPI_ACPIHANDLE_INIT(beep);
6176
6177 vdbg_printk(TPACPI_DBG_INIT, "beep is %s\n",
6178 str_supported(beep_handle != NULL));
6179
6180 quirks = tpacpi_check_quirks(beep_quirk_table,
6181 ARRAY_SIZE(beep_quirk_table));
6182
6183 tp_features.beep_needs_two_args = !!(quirks & TPACPI_BEEP_Q1);
6184
6185 return (beep_handle) ? 0 : 1;
6186 }
6187
beep_read(struct seq_file *m)6188 static int beep_read(struct seq_file *m)
6189 {
6190 if (!beep_handle)
6191 seq_printf(m, "status:\t\tnot supported\n");
6192 else {
6193 seq_printf(m, "status:\t\tsupported\n");
6194 seq_printf(m, "commands:\t<cmd> (<cmd> is 0-17)\n");
6195 }
6196
6197 return 0;
6198 }
6199
beep_write(char *buf)6200 static int beep_write(char *buf)
6201 {
6202 char *cmd;
6203 int beep_cmd;
6204
6205 if (!beep_handle)
6206 return -ENODEV;
6207
6208 while ((cmd = strsep(&buf, ","))) {
6209 if (sscanf(cmd, "%u", &beep_cmd) == 1 &&
6210 beep_cmd >= 0 && beep_cmd <= 17) {
6211 /* beep_cmd set */
6212 } else
6213 return -EINVAL;
6214 if (tp_features.beep_needs_two_args) {
6215 if (!acpi_evalf(beep_handle, NULL, NULL, "vdd",
6216 beep_cmd, 0))
6217 return -EIO;
6218 } else {
6219 if (!acpi_evalf(beep_handle, NULL, NULL, "vd",
6220 beep_cmd))
6221 return -EIO;
6222 }
6223 }
6224
6225 return 0;
6226 }
6227
6228 static struct ibm_struct beep_driver_data = {
6229 .name = "beep",
6230 .read = beep_read,
6231 .write = beep_write,
6232 };
6233
6234 /*************************************************************************
6235 * Thermal subdriver
6236 */
6237
6238 enum thermal_access_mode {
6239 TPACPI_THERMAL_NONE = 0, /* No thermal support */
6240 TPACPI_THERMAL_ACPI_TMP07, /* Use ACPI TMP0-7 */
6241 TPACPI_THERMAL_ACPI_UPDT, /* Use ACPI TMP0-7 with UPDT */
6242 TPACPI_THERMAL_TPEC_8, /* Use ACPI EC regs, 8 sensors */
6243 TPACPI_THERMAL_TPEC_16, /* Use ACPI EC regs, 16 sensors */
6244 };
6245
6246 enum { /* TPACPI_THERMAL_TPEC_* */
6247 TP_EC_THERMAL_TMP0 = 0x78, /* ACPI EC regs TMP 0..7 */
6248 TP_EC_THERMAL_TMP8 = 0xC0, /* ACPI EC regs TMP 8..15 */
6249 TP_EC_FUNCREV = 0xEF, /* ACPI EC Functional revision */
6250 TP_EC_THERMAL_TMP_NA = -128, /* ACPI EC sensor not available */
6251
6252 TPACPI_THERMAL_SENSOR_NA = -128000, /* Sensor not available */
6253 };
6254
6255
6256 #define TPACPI_MAX_THERMAL_SENSORS 16 /* Max thermal sensors supported */
6257 struct ibm_thermal_sensors_struct {
6258 s32 temp[TPACPI_MAX_THERMAL_SENSORS];
6259 };
6260
6261 static enum thermal_access_mode thermal_read_mode;
6262
6263 /* idx is zero-based */
thermal_get_sensor(int idx, s32 *value)6264 static int thermal_get_sensor(int idx, s32 *value)
6265 {
6266 int t;
6267 s8 tmp;
6268 char tmpi[5];
6269
6270 t = TP_EC_THERMAL_TMP0;
6271
6272 switch (thermal_read_mode) {
6273 #if TPACPI_MAX_THERMAL_SENSORS >= 16
6274 case TPACPI_THERMAL_TPEC_16:
6275 if (idx >= 8 && idx <= 15) {
6276 t = TP_EC_THERMAL_TMP8;
6277 idx -= 8;
6278 }
6279 #endif
6280 fallthrough;
6281 case TPACPI_THERMAL_TPEC_8:
6282 if (idx <= 7) {
6283 if (!acpi_ec_read(t + idx, &tmp))
6284 return -EIO;
6285 *value = tmp * 1000;
6286 return 0;
6287 }
6288 break;
6289
6290 case TPACPI_THERMAL_ACPI_UPDT:
6291 if (idx <= 7) {
6292 snprintf(tmpi, sizeof(tmpi), "TMP%c", '0' + idx);
6293 if (!acpi_evalf(ec_handle, NULL, "UPDT", "v"))
6294 return -EIO;
6295 if (!acpi_evalf(ec_handle, &t, tmpi, "d"))
6296 return -EIO;
6297 *value = (t - 2732) * 100;
6298 return 0;
6299 }
6300 break;
6301
6302 case TPACPI_THERMAL_ACPI_TMP07:
6303 if (idx <= 7) {
6304 snprintf(tmpi, sizeof(tmpi), "TMP%c", '0' + idx);
6305 if (!acpi_evalf(ec_handle, &t, tmpi, "d"))
6306 return -EIO;
6307 if (t > 127 || t < -127)
6308 t = TP_EC_THERMAL_TMP_NA;
6309 *value = t * 1000;
6310 return 0;
6311 }
6312 break;
6313
6314 case TPACPI_THERMAL_NONE:
6315 default:
6316 return -ENOSYS;
6317 }
6318
6319 return -EINVAL;
6320 }
6321
thermal_get_sensors(struct ibm_thermal_sensors_struct *s)6322 static int thermal_get_sensors(struct ibm_thermal_sensors_struct *s)
6323 {
6324 int res, i;
6325 int n;
6326
6327 n = 8;
6328 i = 0;
6329
6330 if (!s)
6331 return -EINVAL;
6332
6333 if (thermal_read_mode == TPACPI_THERMAL_TPEC_16)
6334 n = 16;
6335
6336 for (i = 0 ; i < n; i++) {
6337 res = thermal_get_sensor(i, &s->temp[i]);
6338 if (res)
6339 return res;
6340 }
6341
6342 return n;
6343 }
6344
thermal_dump_all_sensors(void)6345 static void thermal_dump_all_sensors(void)
6346 {
6347 int n, i;
6348 struct ibm_thermal_sensors_struct t;
6349
6350 n = thermal_get_sensors(&t);
6351 if (n <= 0)
6352 return;
6353
6354 pr_notice("temperatures (Celsius):");
6355
6356 for (i = 0; i < n; i++) {
6357 if (t.temp[i] != TPACPI_THERMAL_SENSOR_NA)
6358 pr_cont(" %d", (int)(t.temp[i] / 1000));
6359 else
6360 pr_cont(" N/A");
6361 }
6362
6363 pr_cont("\n");
6364 }
6365
6366 /* sysfs temp##_input -------------------------------------------------- */
6367
thermal_temp_input_show(struct device *dev, struct device_attribute *attr, char *buf)6368 static ssize_t thermal_temp_input_show(struct device *dev,
6369 struct device_attribute *attr,
6370 char *buf)
6371 {
6372 struct sensor_device_attribute *sensor_attr =
6373 to_sensor_dev_attr(attr);
6374 int idx = sensor_attr->index;
6375 s32 value;
6376 int res;
6377
6378 res = thermal_get_sensor(idx, &value);
6379 if (res)
6380 return res;
6381 if (value == TPACPI_THERMAL_SENSOR_NA)
6382 return -ENXIO;
6383
6384 return snprintf(buf, PAGE_SIZE, "%d\n", value);
6385 }
6386
6387 #define THERMAL_SENSOR_ATTR_TEMP(_idxA, _idxB) \
6388 SENSOR_ATTR(temp##_idxA##_input, S_IRUGO, \
6389 thermal_temp_input_show, NULL, _idxB)
6390
6391 static struct sensor_device_attribute sensor_dev_attr_thermal_temp_input[] = {
6392 THERMAL_SENSOR_ATTR_TEMP(1, 0),
6393 THERMAL_SENSOR_ATTR_TEMP(2, 1),
6394 THERMAL_SENSOR_ATTR_TEMP(3, 2),
6395 THERMAL_SENSOR_ATTR_TEMP(4, 3),
6396 THERMAL_SENSOR_ATTR_TEMP(5, 4),
6397 THERMAL_SENSOR_ATTR_TEMP(6, 5),
6398 THERMAL_SENSOR_ATTR_TEMP(7, 6),
6399 THERMAL_SENSOR_ATTR_TEMP(8, 7),
6400 THERMAL_SENSOR_ATTR_TEMP(9, 8),
6401 THERMAL_SENSOR_ATTR_TEMP(10, 9),
6402 THERMAL_SENSOR_ATTR_TEMP(11, 10),
6403 THERMAL_SENSOR_ATTR_TEMP(12, 11),
6404 THERMAL_SENSOR_ATTR_TEMP(13, 12),
6405 THERMAL_SENSOR_ATTR_TEMP(14, 13),
6406 THERMAL_SENSOR_ATTR_TEMP(15, 14),
6407 THERMAL_SENSOR_ATTR_TEMP(16, 15),
6408 };
6409
6410 #define THERMAL_ATTRS(X) \
6411 &sensor_dev_attr_thermal_temp_input[X].dev_attr.attr
6412
6413 static struct attribute *thermal_temp_input_attr[] = {
6414 THERMAL_ATTRS(8),
6415 THERMAL_ATTRS(9),
6416 THERMAL_ATTRS(10),
6417 THERMAL_ATTRS(11),
6418 THERMAL_ATTRS(12),
6419 THERMAL_ATTRS(13),
6420 THERMAL_ATTRS(14),
6421 THERMAL_ATTRS(15),
6422 THERMAL_ATTRS(0),
6423 THERMAL_ATTRS(1),
6424 THERMAL_ATTRS(2),
6425 THERMAL_ATTRS(3),
6426 THERMAL_ATTRS(4),
6427 THERMAL_ATTRS(5),
6428 THERMAL_ATTRS(6),
6429 THERMAL_ATTRS(7),
6430 NULL
6431 };
6432
6433 static const struct attribute_group thermal_temp_input16_group = {
6434 .attrs = thermal_temp_input_attr
6435 };
6436
6437 static const struct attribute_group thermal_temp_input8_group = {
6438 .attrs = &thermal_temp_input_attr[8]
6439 };
6440
6441 #undef THERMAL_SENSOR_ATTR_TEMP
6442 #undef THERMAL_ATTRS
6443
6444 /* --------------------------------------------------------------------- */
6445
thermal_init(struct ibm_init_struct *iibm)6446 static int __init thermal_init(struct ibm_init_struct *iibm)
6447 {
6448 u8 t, ta1, ta2, ver = 0;
6449 int i;
6450 int acpi_tmp7;
6451 int res;
6452
6453 vdbg_printk(TPACPI_DBG_INIT, "initializing thermal subdriver\n");
6454
6455 acpi_tmp7 = acpi_evalf(ec_handle, NULL, "TMP7", "qv");
6456
6457 if (thinkpad_id.ec_model) {
6458 /*
6459 * Direct EC access mode: sensors at registers
6460 * 0x78-0x7F, 0xC0-0xC7. Registers return 0x00 for
6461 * non-implemented, thermal sensors return 0x80 when
6462 * not available
6463 * The above rule is unfortunately flawed. This has been seen with
6464 * 0xC2 (power supply ID) causing thermal control problems.
6465 * The EC version can be determined by offset 0xEF and at least for
6466 * version 3 the Lenovo firmware team confirmed that registers 0xC0-0xC7
6467 * are not thermal registers.
6468 */
6469 if (!acpi_ec_read(TP_EC_FUNCREV, &ver))
6470 pr_warn("Thinkpad ACPI EC unable to access EC version\n");
6471
6472 ta1 = ta2 = 0;
6473 for (i = 0; i < 8; i++) {
6474 if (acpi_ec_read(TP_EC_THERMAL_TMP0 + i, &t)) {
6475 ta1 |= t;
6476 } else {
6477 ta1 = 0;
6478 break;
6479 }
6480 if (ver < 3) {
6481 if (acpi_ec_read(TP_EC_THERMAL_TMP8 + i, &t)) {
6482 ta2 |= t;
6483 } else {
6484 ta1 = 0;
6485 break;
6486 }
6487 }
6488 }
6489 if (ta1 == 0) {
6490 /* This is sheer paranoia, but we handle it anyway */
6491 if (acpi_tmp7) {
6492 pr_err("ThinkPad ACPI EC access misbehaving, falling back to ACPI TMPx access mode\n");
6493 thermal_read_mode = TPACPI_THERMAL_ACPI_TMP07;
6494 } else {
6495 pr_err("ThinkPad ACPI EC access misbehaving, disabling thermal sensors access\n");
6496 thermal_read_mode = TPACPI_THERMAL_NONE;
6497 }
6498 } else {
6499 if (ver >= 3)
6500 thermal_read_mode = TPACPI_THERMAL_TPEC_8;
6501 else
6502 thermal_read_mode =
6503 (ta2 != 0) ?
6504 TPACPI_THERMAL_TPEC_16 : TPACPI_THERMAL_TPEC_8;
6505 }
6506 } else if (acpi_tmp7) {
6507 if (tpacpi_is_ibm() &&
6508 acpi_evalf(ec_handle, NULL, "UPDT", "qv")) {
6509 /* 600e/x, 770e, 770x */
6510 thermal_read_mode = TPACPI_THERMAL_ACPI_UPDT;
6511 } else {
6512 /* IBM/LENOVO DSDT EC.TMPx access, max 8 sensors */
6513 thermal_read_mode = TPACPI_THERMAL_ACPI_TMP07;
6514 }
6515 } else {
6516 /* temperatures not supported on 570, G4x, R30, R31, R32 */
6517 thermal_read_mode = TPACPI_THERMAL_NONE;
6518 }
6519
6520 vdbg_printk(TPACPI_DBG_INIT, "thermal is %s, mode %d\n",
6521 str_supported(thermal_read_mode != TPACPI_THERMAL_NONE),
6522 thermal_read_mode);
6523
6524 switch (thermal_read_mode) {
6525 case TPACPI_THERMAL_TPEC_16:
6526 res = sysfs_create_group(&tpacpi_hwmon->kobj,
6527 &thermal_temp_input16_group);
6528 if (res)
6529 return res;
6530 break;
6531 case TPACPI_THERMAL_TPEC_8:
6532 case TPACPI_THERMAL_ACPI_TMP07:
6533 case TPACPI_THERMAL_ACPI_UPDT:
6534 res = sysfs_create_group(&tpacpi_hwmon->kobj,
6535 &thermal_temp_input8_group);
6536 if (res)
6537 return res;
6538 break;
6539 case TPACPI_THERMAL_NONE:
6540 default:
6541 return 1;
6542 }
6543
6544 return 0;
6545 }
6546
thermal_exit(void)6547 static void thermal_exit(void)
6548 {
6549 switch (thermal_read_mode) {
6550 case TPACPI_THERMAL_TPEC_16:
6551 sysfs_remove_group(&tpacpi_hwmon->kobj,
6552 &thermal_temp_input16_group);
6553 break;
6554 case TPACPI_THERMAL_TPEC_8:
6555 case TPACPI_THERMAL_ACPI_TMP07:
6556 case TPACPI_THERMAL_ACPI_UPDT:
6557 sysfs_remove_group(&tpacpi_hwmon->kobj,
6558 &thermal_temp_input8_group);
6559 break;
6560 case TPACPI_THERMAL_NONE:
6561 default:
6562 break;
6563 }
6564 }
6565
thermal_read(struct seq_file *m)6566 static int thermal_read(struct seq_file *m)
6567 {
6568 int n, i;
6569 struct ibm_thermal_sensors_struct t;
6570
6571 n = thermal_get_sensors(&t);
6572 if (unlikely(n < 0))
6573 return n;
6574
6575 seq_printf(m, "temperatures:\t");
6576
6577 if (n > 0) {
6578 for (i = 0; i < (n - 1); i++)
6579 seq_printf(m, "%d ", t.temp[i] / 1000);
6580 seq_printf(m, "%d\n", t.temp[i] / 1000);
6581 } else
6582 seq_printf(m, "not supported\n");
6583
6584 return 0;
6585 }
6586
6587 static struct ibm_struct thermal_driver_data = {
6588 .name = "thermal",
6589 .read = thermal_read,
6590 .exit = thermal_exit,
6591 };
6592
6593 /*************************************************************************
6594 * Backlight/brightness subdriver
6595 */
6596
6597 #define TPACPI_BACKLIGHT_DEV_NAME "thinkpad_screen"
6598
6599 /*
6600 * ThinkPads can read brightness from two places: EC HBRV (0x31), or
6601 * CMOS NVRAM byte 0x5E, bits 0-3.
6602 *
6603 * EC HBRV (0x31) has the following layout
6604 * Bit 7: unknown function
6605 * Bit 6: unknown function
6606 * Bit 5: Z: honour scale changes, NZ: ignore scale changes
6607 * Bit 4: must be set to zero to avoid problems
6608 * Bit 3-0: backlight brightness level
6609 *
6610 * brightness_get_raw returns status data in the HBRV layout
6611 *
6612 * WARNING: The X61 has been verified to use HBRV for something else, so
6613 * this should be used _only_ on IBM ThinkPads, and maybe with some careful
6614 * testing on the very early *60 Lenovo models...
6615 */
6616
6617 enum {
6618 TP_EC_BACKLIGHT = 0x31,
6619
6620 /* TP_EC_BACKLIGHT bitmasks */
6621 TP_EC_BACKLIGHT_LVLMSK = 0x1F,
6622 TP_EC_BACKLIGHT_CMDMSK = 0xE0,
6623 TP_EC_BACKLIGHT_MAPSW = 0x20,
6624 };
6625
6626 enum tpacpi_brightness_access_mode {
6627 TPACPI_BRGHT_MODE_AUTO = 0, /* Not implemented yet */
6628 TPACPI_BRGHT_MODE_EC, /* EC control */
6629 TPACPI_BRGHT_MODE_UCMS_STEP, /* UCMS step-based control */
6630 TPACPI_BRGHT_MODE_ECNVRAM, /* EC control w/ NVRAM store */
6631 TPACPI_BRGHT_MODE_MAX
6632 };
6633
6634 static struct backlight_device *ibm_backlight_device;
6635
6636 static enum tpacpi_brightness_access_mode brightness_mode =
6637 TPACPI_BRGHT_MODE_MAX;
6638
6639 static unsigned int brightness_enable = 2; /* 2 = auto, 0 = no, 1 = yes */
6640
6641 static struct mutex brightness_mutex;
6642
6643 /* NVRAM brightness access,
6644 * call with brightness_mutex held! */
tpacpi_brightness_nvram_get(void)6645 static unsigned int tpacpi_brightness_nvram_get(void)
6646 {
6647 u8 lnvram;
6648
6649 lnvram = (nvram_read_byte(TP_NVRAM_ADDR_BRIGHTNESS)
6650 & TP_NVRAM_MASK_LEVEL_BRIGHTNESS)
6651 >> TP_NVRAM_POS_LEVEL_BRIGHTNESS;
6652 lnvram &= bright_maxlvl;
6653
6654 return lnvram;
6655 }
6656
tpacpi_brightness_checkpoint_nvram(void)6657 static void tpacpi_brightness_checkpoint_nvram(void)
6658 {
6659 u8 lec = 0;
6660 u8 b_nvram;
6661
6662 if (brightness_mode != TPACPI_BRGHT_MODE_ECNVRAM)
6663 return;
6664
6665 vdbg_printk(TPACPI_DBG_BRGHT,
6666 "trying to checkpoint backlight level to NVRAM...\n");
6667
6668 if (mutex_lock_killable(&brightness_mutex) < 0)
6669 return;
6670
6671 if (unlikely(!acpi_ec_read(TP_EC_BACKLIGHT, &lec)))
6672 goto unlock;
6673 lec &= TP_EC_BACKLIGHT_LVLMSK;
6674 b_nvram = nvram_read_byte(TP_NVRAM_ADDR_BRIGHTNESS);
6675
6676 if (lec != ((b_nvram & TP_NVRAM_MASK_LEVEL_BRIGHTNESS)
6677 >> TP_NVRAM_POS_LEVEL_BRIGHTNESS)) {
6678 /* NVRAM needs update */
6679 b_nvram &= ~(TP_NVRAM_MASK_LEVEL_BRIGHTNESS <<
6680 TP_NVRAM_POS_LEVEL_BRIGHTNESS);
6681 b_nvram |= lec;
6682 nvram_write_byte(b_nvram, TP_NVRAM_ADDR_BRIGHTNESS);
6683 dbg_printk(TPACPI_DBG_BRGHT,
6684 "updated NVRAM backlight level to %u (0x%02x)\n",
6685 (unsigned int) lec, (unsigned int) b_nvram);
6686 } else
6687 vdbg_printk(TPACPI_DBG_BRGHT,
6688 "NVRAM backlight level already is %u (0x%02x)\n",
6689 (unsigned int) lec, (unsigned int) b_nvram);
6690
6691 unlock:
6692 mutex_unlock(&brightness_mutex);
6693 }
6694
6695
6696 /* call with brightness_mutex held! */
tpacpi_brightness_get_raw(int *status)6697 static int tpacpi_brightness_get_raw(int *status)
6698 {
6699 u8 lec = 0;
6700
6701 switch (brightness_mode) {
6702 case TPACPI_BRGHT_MODE_UCMS_STEP:
6703 *status = tpacpi_brightness_nvram_get();
6704 return 0;
6705 case TPACPI_BRGHT_MODE_EC:
6706 case TPACPI_BRGHT_MODE_ECNVRAM:
6707 if (unlikely(!acpi_ec_read(TP_EC_BACKLIGHT, &lec)))
6708 return -EIO;
6709 *status = lec;
6710 return 0;
6711 default:
6712 return -ENXIO;
6713 }
6714 }
6715
6716 /* call with brightness_mutex held! */
6717 /* do NOT call with illegal backlight level value */
tpacpi_brightness_set_ec(unsigned int value)6718 static int tpacpi_brightness_set_ec(unsigned int value)
6719 {
6720 u8 lec = 0;
6721
6722 if (unlikely(!acpi_ec_read(TP_EC_BACKLIGHT, &lec)))
6723 return -EIO;
6724
6725 if (unlikely(!acpi_ec_write(TP_EC_BACKLIGHT,
6726 (lec & TP_EC_BACKLIGHT_CMDMSK) |
6727 (value & TP_EC_BACKLIGHT_LVLMSK))))
6728 return -EIO;
6729
6730 return 0;
6731 }
6732
6733 /* call with brightness_mutex held! */
tpacpi_brightness_set_ucmsstep(unsigned int value)6734 static int tpacpi_brightness_set_ucmsstep(unsigned int value)
6735 {
6736 int cmos_cmd, inc;
6737 unsigned int current_value, i;
6738
6739 current_value = tpacpi_brightness_nvram_get();
6740
6741 if (value == current_value)
6742 return 0;
6743
6744 cmos_cmd = (value > current_value) ?
6745 TP_CMOS_BRIGHTNESS_UP :
6746 TP_CMOS_BRIGHTNESS_DOWN;
6747 inc = (value > current_value) ? 1 : -1;
6748
6749 for (i = current_value; i != value; i += inc)
6750 if (issue_thinkpad_cmos_command(cmos_cmd))
6751 return -EIO;
6752
6753 return 0;
6754 }
6755
6756 /* May return EINTR which can always be mapped to ERESTARTSYS */
brightness_set(unsigned int value)6757 static int brightness_set(unsigned int value)
6758 {
6759 int res;
6760
6761 if (value > bright_maxlvl)
6762 return -EINVAL;
6763
6764 vdbg_printk(TPACPI_DBG_BRGHT,
6765 "set backlight level to %d\n", value);
6766
6767 res = mutex_lock_killable(&brightness_mutex);
6768 if (res < 0)
6769 return res;
6770
6771 switch (brightness_mode) {
6772 case TPACPI_BRGHT_MODE_EC:
6773 case TPACPI_BRGHT_MODE_ECNVRAM:
6774 res = tpacpi_brightness_set_ec(value);
6775 break;
6776 case TPACPI_BRGHT_MODE_UCMS_STEP:
6777 res = tpacpi_brightness_set_ucmsstep(value);
6778 break;
6779 default:
6780 res = -ENXIO;
6781 }
6782
6783 mutex_unlock(&brightness_mutex);
6784 return res;
6785 }
6786
6787 /* sysfs backlight class ----------------------------------------------- */
6788
brightness_update_status(struct backlight_device *bd)6789 static int brightness_update_status(struct backlight_device *bd)
6790 {
6791 unsigned int level =
6792 (bd->props.fb_blank == FB_BLANK_UNBLANK &&
6793 bd->props.power == FB_BLANK_UNBLANK) ?
6794 bd->props.brightness : 0;
6795
6796 dbg_printk(TPACPI_DBG_BRGHT,
6797 "backlight: attempt to set level to %d\n",
6798 level);
6799
6800 /* it is the backlight class's job (caller) to handle
6801 * EINTR and other errors properly */
6802 return brightness_set(level);
6803 }
6804
brightness_get(struct backlight_device *bd)6805 static int brightness_get(struct backlight_device *bd)
6806 {
6807 int status, res;
6808
6809 res = mutex_lock_killable(&brightness_mutex);
6810 if (res < 0)
6811 return 0;
6812
6813 res = tpacpi_brightness_get_raw(&status);
6814
6815 mutex_unlock(&brightness_mutex);
6816
6817 if (res < 0)
6818 return 0;
6819
6820 return status & TP_EC_BACKLIGHT_LVLMSK;
6821 }
6822
tpacpi_brightness_notify_change(void)6823 static void tpacpi_brightness_notify_change(void)
6824 {
6825 backlight_force_update(ibm_backlight_device,
6826 BACKLIGHT_UPDATE_HOTKEY);
6827 }
6828
6829 static const struct backlight_ops ibm_backlight_data = {
6830 .get_brightness = brightness_get,
6831 .update_status = brightness_update_status,
6832 };
6833
6834 /* --------------------------------------------------------------------- */
6835
6836 /*
6837 * Call _BCL method of video device. On some ThinkPads this will
6838 * switch the firmware to the ACPI brightness control mode.
6839 */
6840
tpacpi_query_bcl_levels(acpi_handle handle)6841 static int __init tpacpi_query_bcl_levels(acpi_handle handle)
6842 {
6843 struct acpi_buffer buffer = { ACPI_ALLOCATE_BUFFER, NULL };
6844 union acpi_object *obj;
6845 struct acpi_device *device, *child;
6846 int rc;
6847
6848 if (acpi_bus_get_device(handle, &device))
6849 return 0;
6850
6851 rc = 0;
6852 list_for_each_entry(child, &device->children, node) {
6853 acpi_status status = acpi_evaluate_object(child->handle, "_BCL",
6854 NULL, &buffer);
6855 if (ACPI_FAILURE(status)) {
6856 buffer.length = ACPI_ALLOCATE_BUFFER;
6857 continue;
6858 }
6859
6860 obj = (union acpi_object *)buffer.pointer;
6861 if (!obj || (obj->type != ACPI_TYPE_PACKAGE)) {
6862 pr_err("Unknown _BCL data, please report this to %s\n",
6863 TPACPI_MAIL);
6864 rc = 0;
6865 } else {
6866 rc = obj->package.count;
6867 }
6868 break;
6869 }
6870
6871 kfree(buffer.pointer);
6872 return rc;
6873 }
6874
6875
6876 /*
6877 * Returns 0 (no ACPI _BCL or _BCL invalid), or size of brightness map
6878 */
tpacpi_check_std_acpi_brightness_support(void)6879 static unsigned int __init tpacpi_check_std_acpi_brightness_support(void)
6880 {
6881 acpi_handle video_device;
6882 int bcl_levels = 0;
6883
6884 tpacpi_acpi_handle_locate("video", NULL, &video_device);
6885 if (video_device)
6886 bcl_levels = tpacpi_query_bcl_levels(video_device);
6887
6888 tp_features.bright_acpimode = (bcl_levels > 0);
6889
6890 return (bcl_levels > 2) ? (bcl_levels - 2) : 0;
6891 }
6892
6893 /*
6894 * These are only useful for models that have only one possibility
6895 * of GPU. If the BIOS model handles both ATI and Intel, don't use
6896 * these quirks.
6897 */
6898 #define TPACPI_BRGHT_Q_NOEC 0x0001 /* Must NOT use EC HBRV */
6899 #define TPACPI_BRGHT_Q_EC 0x0002 /* Should or must use EC HBRV */
6900 #define TPACPI_BRGHT_Q_ASK 0x8000 /* Ask for user report */
6901
6902 static const struct tpacpi_quirk brightness_quirk_table[] __initconst = {
6903 /* Models with ATI GPUs known to require ECNVRAM mode */
6904 TPACPI_Q_IBM('1', 'Y', TPACPI_BRGHT_Q_EC), /* T43/p ATI */
6905
6906 /* Models with ATI GPUs that can use ECNVRAM */
6907 TPACPI_Q_IBM('1', 'R', TPACPI_BRGHT_Q_EC), /* R50,51 T40-42 */
6908 TPACPI_Q_IBM('1', 'Q', TPACPI_BRGHT_Q_ASK|TPACPI_BRGHT_Q_EC),
6909 TPACPI_Q_IBM('7', '6', TPACPI_BRGHT_Q_EC), /* R52 */
6910 TPACPI_Q_IBM('7', '8', TPACPI_BRGHT_Q_ASK|TPACPI_BRGHT_Q_EC),
6911
6912 /* Models with Intel Extreme Graphics 2 */
6913 TPACPI_Q_IBM('1', 'U', TPACPI_BRGHT_Q_NOEC), /* X40 */
6914 TPACPI_Q_IBM('1', 'V', TPACPI_BRGHT_Q_ASK|TPACPI_BRGHT_Q_EC),
6915 TPACPI_Q_IBM('1', 'W', TPACPI_BRGHT_Q_ASK|TPACPI_BRGHT_Q_EC),
6916
6917 /* Models with Intel GMA900 */
6918 TPACPI_Q_IBM('7', '0', TPACPI_BRGHT_Q_NOEC), /* T43, R52 */
6919 TPACPI_Q_IBM('7', '4', TPACPI_BRGHT_Q_NOEC), /* X41 */
6920 TPACPI_Q_IBM('7', '5', TPACPI_BRGHT_Q_NOEC), /* X41 Tablet */
6921 };
6922
6923 /*
6924 * Returns < 0 for error, otherwise sets tp_features.bright_*
6925 * and bright_maxlvl.
6926 */
tpacpi_detect_brightness_capabilities(void)6927 static void __init tpacpi_detect_brightness_capabilities(void)
6928 {
6929 unsigned int b;
6930
6931 vdbg_printk(TPACPI_DBG_INIT,
6932 "detecting firmware brightness interface capabilities\n");
6933
6934 /* we could run a quirks check here (same table used by
6935 * brightness_init) if needed */
6936
6937 /*
6938 * We always attempt to detect acpi support, so as to switch
6939 * Lenovo Vista BIOS to ACPI brightness mode even if we are not
6940 * going to publish a backlight interface
6941 */
6942 b = tpacpi_check_std_acpi_brightness_support();
6943 switch (b) {
6944 case 16:
6945 bright_maxlvl = 15;
6946 break;
6947 case 8:
6948 case 0:
6949 bright_maxlvl = 7;
6950 break;
6951 default:
6952 tp_features.bright_unkfw = 1;
6953 bright_maxlvl = b - 1;
6954 }
6955 pr_debug("detected %u brightness levels\n", bright_maxlvl + 1);
6956 }
6957
brightness_init(struct ibm_init_struct *iibm)6958 static int __init brightness_init(struct ibm_init_struct *iibm)
6959 {
6960 struct backlight_properties props;
6961 int b;
6962 unsigned long quirks;
6963
6964 vdbg_printk(TPACPI_DBG_INIT, "initializing brightness subdriver\n");
6965
6966 mutex_init(&brightness_mutex);
6967
6968 quirks = tpacpi_check_quirks(brightness_quirk_table,
6969 ARRAY_SIZE(brightness_quirk_table));
6970
6971 /* tpacpi_detect_brightness_capabilities() must have run already */
6972
6973 /* if it is unknown, we don't handle it: it wouldn't be safe */
6974 if (tp_features.bright_unkfw)
6975 return 1;
6976
6977 if (!brightness_enable) {
6978 dbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_BRGHT,
6979 "brightness support disabled by module parameter\n");
6980 return 1;
6981 }
6982
6983 if (acpi_video_get_backlight_type() != acpi_backlight_vendor) {
6984 if (brightness_enable > 1) {
6985 pr_info("Standard ACPI backlight interface available, not loading native one\n");
6986 return 1;
6987 } else if (brightness_enable == 1) {
6988 pr_warn("Cannot enable backlight brightness support, ACPI is already handling it. Refer to the acpi_backlight kernel parameter.\n");
6989 return 1;
6990 }
6991 } else if (!tp_features.bright_acpimode) {
6992 pr_notice("ACPI backlight interface not available\n");
6993 return 1;
6994 }
6995
6996 pr_notice("ACPI native brightness control enabled\n");
6997
6998 /*
6999 * Check for module parameter bogosity, note that we
7000 * init brightness_mode to TPACPI_BRGHT_MODE_MAX in order to be
7001 * able to detect "unspecified"
7002 */
7003 if (brightness_mode > TPACPI_BRGHT_MODE_MAX)
7004 return -EINVAL;
7005
7006 /* TPACPI_BRGHT_MODE_AUTO not implemented yet, just use default */
7007 if (brightness_mode == TPACPI_BRGHT_MODE_AUTO ||
7008 brightness_mode == TPACPI_BRGHT_MODE_MAX) {
7009 if (quirks & TPACPI_BRGHT_Q_EC)
7010 brightness_mode = TPACPI_BRGHT_MODE_ECNVRAM;
7011 else
7012 brightness_mode = TPACPI_BRGHT_MODE_UCMS_STEP;
7013
7014 dbg_printk(TPACPI_DBG_BRGHT,
7015 "driver auto-selected brightness_mode=%d\n",
7016 brightness_mode);
7017 }
7018
7019 /* Safety */
7020 if (!tpacpi_is_ibm() &&
7021 (brightness_mode == TPACPI_BRGHT_MODE_ECNVRAM ||
7022 brightness_mode == TPACPI_BRGHT_MODE_EC))
7023 return -EINVAL;
7024
7025 if (tpacpi_brightness_get_raw(&b) < 0)
7026 return 1;
7027
7028 memset(&props, 0, sizeof(struct backlight_properties));
7029 props.type = BACKLIGHT_PLATFORM;
7030 props.max_brightness = bright_maxlvl;
7031 props.brightness = b & TP_EC_BACKLIGHT_LVLMSK;
7032 ibm_backlight_device = backlight_device_register(TPACPI_BACKLIGHT_DEV_NAME,
7033 NULL, NULL,
7034 &ibm_backlight_data,
7035 &props);
7036 if (IS_ERR(ibm_backlight_device)) {
7037 int rc = PTR_ERR(ibm_backlight_device);
7038 ibm_backlight_device = NULL;
7039 pr_err("Could not register backlight device\n");
7040 return rc;
7041 }
7042 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_BRGHT,
7043 "brightness is supported\n");
7044
7045 if (quirks & TPACPI_BRGHT_Q_ASK) {
7046 pr_notice("brightness: will use unverified default: brightness_mode=%d\n",
7047 brightness_mode);
7048 pr_notice("brightness: please report to %s whether it works well or not on your ThinkPad\n",
7049 TPACPI_MAIL);
7050 }
7051
7052 /* Added by mistake in early 2007. Probably useless, but it could
7053 * be working around some unknown firmware problem where the value
7054 * read at startup doesn't match the real hardware state... so leave
7055 * it in place just in case */
7056 backlight_update_status(ibm_backlight_device);
7057
7058 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_BRGHT,
7059 "brightness: registering brightness hotkeys as change notification\n");
7060 tpacpi_hotkey_driver_mask_set(hotkey_driver_mask
7061 | TP_ACPI_HKEY_BRGHTUP_MASK
7062 | TP_ACPI_HKEY_BRGHTDWN_MASK);
7063 return 0;
7064 }
7065
brightness_suspend(void)7066 static void brightness_suspend(void)
7067 {
7068 tpacpi_brightness_checkpoint_nvram();
7069 }
7070
brightness_shutdown(void)7071 static void brightness_shutdown(void)
7072 {
7073 tpacpi_brightness_checkpoint_nvram();
7074 }
7075
brightness_exit(void)7076 static void brightness_exit(void)
7077 {
7078 if (ibm_backlight_device) {
7079 vdbg_printk(TPACPI_DBG_EXIT | TPACPI_DBG_BRGHT,
7080 "calling backlight_device_unregister()\n");
7081 backlight_device_unregister(ibm_backlight_device);
7082 }
7083
7084 tpacpi_brightness_checkpoint_nvram();
7085 }
7086
brightness_read(struct seq_file *m)7087 static int brightness_read(struct seq_file *m)
7088 {
7089 int level;
7090
7091 level = brightness_get(NULL);
7092 if (level < 0) {
7093 seq_printf(m, "level:\t\tunreadable\n");
7094 } else {
7095 seq_printf(m, "level:\t\t%d\n", level);
7096 seq_printf(m, "commands:\tup, down\n");
7097 seq_printf(m, "commands:\tlevel <level> (<level> is 0-%d)\n",
7098 bright_maxlvl);
7099 }
7100
7101 return 0;
7102 }
7103
brightness_write(char *buf)7104 static int brightness_write(char *buf)
7105 {
7106 int level;
7107 int rc;
7108 char *cmd;
7109
7110 level = brightness_get(NULL);
7111 if (level < 0)
7112 return level;
7113
7114 while ((cmd = strsep(&buf, ","))) {
7115 if (strlencmp(cmd, "up") == 0) {
7116 if (level < bright_maxlvl)
7117 level++;
7118 } else if (strlencmp(cmd, "down") == 0) {
7119 if (level > 0)
7120 level--;
7121 } else if (sscanf(cmd, "level %d", &level) == 1 &&
7122 level >= 0 && level <= bright_maxlvl) {
7123 /* new level set */
7124 } else
7125 return -EINVAL;
7126 }
7127
7128 tpacpi_disclose_usertask("procfs brightness",
7129 "set level to %d\n", level);
7130
7131 /*
7132 * Now we know what the final level should be, so we try to set it.
7133 * Doing it this way makes the syscall restartable in case of EINTR
7134 */
7135 rc = brightness_set(level);
7136 if (!rc && ibm_backlight_device)
7137 backlight_force_update(ibm_backlight_device,
7138 BACKLIGHT_UPDATE_SYSFS);
7139 return (rc == -EINTR) ? -ERESTARTSYS : rc;
7140 }
7141
7142 static struct ibm_struct brightness_driver_data = {
7143 .name = "brightness",
7144 .read = brightness_read,
7145 .write = brightness_write,
7146 .exit = brightness_exit,
7147 .suspend = brightness_suspend,
7148 .shutdown = brightness_shutdown,
7149 };
7150
7151 /*************************************************************************
7152 * Volume subdriver
7153 */
7154
7155 /*
7156 * IBM ThinkPads have a simple volume controller with MUTE gating.
7157 * Very early Lenovo ThinkPads follow the IBM ThinkPad spec.
7158 *
7159 * Since the *61 series (and probably also the later *60 series), Lenovo
7160 * ThinkPads only implement the MUTE gate.
7161 *
7162 * EC register 0x30
7163 * Bit 6: MUTE (1 mutes sound)
7164 * Bit 3-0: Volume
7165 * Other bits should be zero as far as we know.
7166 *
7167 * This is also stored in CMOS NVRAM, byte 0x60, bit 6 (MUTE), and
7168 * bits 3-0 (volume). Other bits in NVRAM may have other functions,
7169 * such as bit 7 which is used to detect repeated presses of MUTE,
7170 * and we leave them unchanged.
7171 *
7172 * On newer Lenovo ThinkPads, the EC can automatically change the volume
7173 * in response to user input. Unfortunately, this rarely works well.
7174 * The laptop changes the state of its internal MUTE gate and, on some
7175 * models, sends KEY_MUTE, causing any user code that responds to the
7176 * mute button to get confused. The hardware MUTE gate is also
7177 * unnecessary, since user code can handle the mute button without
7178 * kernel or EC help.
7179 *
7180 * To avoid confusing userspace, we simply disable all EC-based mute
7181 * and volume controls when possible.
7182 */
7183
7184 #ifdef CONFIG_THINKPAD_ACPI_ALSA_SUPPORT
7185
7186 #define TPACPI_ALSA_DRVNAME "ThinkPad EC"
7187 #define TPACPI_ALSA_SHRTNAME "ThinkPad Console Audio Control"
7188 #define TPACPI_ALSA_MIXERNAME TPACPI_ALSA_SHRTNAME
7189
7190 #if SNDRV_CARDS <= 32
7191 #define DEFAULT_ALSA_IDX ~((1 << (SNDRV_CARDS - 3)) - 1)
7192 #else
7193 #define DEFAULT_ALSA_IDX ~((1 << (32 - 3)) - 1)
7194 #endif
7195 static int alsa_index = DEFAULT_ALSA_IDX; /* last three slots */
7196 static char *alsa_id = "ThinkPadEC";
7197 static bool alsa_enable = SNDRV_DEFAULT_ENABLE1;
7198
7199 struct tpacpi_alsa_data {
7200 struct snd_card *card;
7201 struct snd_ctl_elem_id *ctl_mute_id;
7202 struct snd_ctl_elem_id *ctl_vol_id;
7203 };
7204
7205 static struct snd_card *alsa_card;
7206
7207 enum {
7208 TP_EC_AUDIO = 0x30,
7209
7210 /* TP_EC_AUDIO bits */
7211 TP_EC_AUDIO_MUTESW = 6,
7212
7213 /* TP_EC_AUDIO bitmasks */
7214 TP_EC_AUDIO_LVL_MSK = 0x0F,
7215 TP_EC_AUDIO_MUTESW_MSK = (1 << TP_EC_AUDIO_MUTESW),
7216
7217 /* Maximum volume */
7218 TP_EC_VOLUME_MAX = 14,
7219 };
7220
7221 enum tpacpi_volume_access_mode {
7222 TPACPI_VOL_MODE_AUTO = 0, /* Not implemented yet */
7223 TPACPI_VOL_MODE_EC, /* Pure EC control */
7224 TPACPI_VOL_MODE_UCMS_STEP, /* UCMS step-based control: N/A */
7225 TPACPI_VOL_MODE_ECNVRAM, /* EC control w/ NVRAM store */
7226 TPACPI_VOL_MODE_MAX
7227 };
7228
7229 enum tpacpi_volume_capabilities {
7230 TPACPI_VOL_CAP_AUTO = 0, /* Use white/blacklist */
7231 TPACPI_VOL_CAP_VOLMUTE, /* Output vol and mute */
7232 TPACPI_VOL_CAP_MUTEONLY, /* Output mute only */
7233 TPACPI_VOL_CAP_MAX
7234 };
7235
7236 enum tpacpi_mute_btn_mode {
7237 TP_EC_MUTE_BTN_LATCH = 0, /* Mute mutes; up/down unmutes */
7238 /* We don't know what mode 1 is. */
7239 TP_EC_MUTE_BTN_NONE = 2, /* Mute and up/down are just keys */
7240 TP_EC_MUTE_BTN_TOGGLE = 3, /* Mute toggles; up/down unmutes */
7241 };
7242
7243 static enum tpacpi_volume_access_mode volume_mode =
7244 TPACPI_VOL_MODE_MAX;
7245
7246 static enum tpacpi_volume_capabilities volume_capabilities;
7247 static bool volume_control_allowed;
7248 static bool software_mute_requested = true;
7249 static bool software_mute_active;
7250 static int software_mute_orig_mode;
7251
7252 /*
7253 * Used to syncronize writers to TP_EC_AUDIO and
7254 * TP_NVRAM_ADDR_MIXER, as we need to do read-modify-write
7255 */
7256 static struct mutex volume_mutex;
7257
tpacpi_volume_checkpoint_nvram(void)7258 static void tpacpi_volume_checkpoint_nvram(void)
7259 {
7260 u8 lec = 0;
7261 u8 b_nvram;
7262 u8 ec_mask;
7263
7264 if (volume_mode != TPACPI_VOL_MODE_ECNVRAM)
7265 return;
7266 if (!volume_control_allowed)
7267 return;
7268 if (software_mute_active)
7269 return;
7270
7271 vdbg_printk(TPACPI_DBG_MIXER,
7272 "trying to checkpoint mixer state to NVRAM...\n");
7273
7274 if (tp_features.mixer_no_level_control)
7275 ec_mask = TP_EC_AUDIO_MUTESW_MSK;
7276 else
7277 ec_mask = TP_EC_AUDIO_MUTESW_MSK | TP_EC_AUDIO_LVL_MSK;
7278
7279 if (mutex_lock_killable(&volume_mutex) < 0)
7280 return;
7281
7282 if (unlikely(!acpi_ec_read(TP_EC_AUDIO, &lec)))
7283 goto unlock;
7284 lec &= ec_mask;
7285 b_nvram = nvram_read_byte(TP_NVRAM_ADDR_MIXER);
7286
7287 if (lec != (b_nvram & ec_mask)) {
7288 /* NVRAM needs update */
7289 b_nvram &= ~ec_mask;
7290 b_nvram |= lec;
7291 nvram_write_byte(b_nvram, TP_NVRAM_ADDR_MIXER);
7292 dbg_printk(TPACPI_DBG_MIXER,
7293 "updated NVRAM mixer status to 0x%02x (0x%02x)\n",
7294 (unsigned int) lec, (unsigned int) b_nvram);
7295 } else {
7296 vdbg_printk(TPACPI_DBG_MIXER,
7297 "NVRAM mixer status already is 0x%02x (0x%02x)\n",
7298 (unsigned int) lec, (unsigned int) b_nvram);
7299 }
7300
7301 unlock:
7302 mutex_unlock(&volume_mutex);
7303 }
7304
volume_get_status_ec(u8 *status)7305 static int volume_get_status_ec(u8 *status)
7306 {
7307 u8 s;
7308
7309 if (!acpi_ec_read(TP_EC_AUDIO, &s))
7310 return -EIO;
7311
7312 *status = s;
7313
7314 dbg_printk(TPACPI_DBG_MIXER, "status 0x%02x\n", s);
7315
7316 return 0;
7317 }
7318
volume_get_status(u8 *status)7319 static int volume_get_status(u8 *status)
7320 {
7321 return volume_get_status_ec(status);
7322 }
7323
volume_set_status_ec(const u8 status)7324 static int volume_set_status_ec(const u8 status)
7325 {
7326 if (!acpi_ec_write(TP_EC_AUDIO, status))
7327 return -EIO;
7328
7329 dbg_printk(TPACPI_DBG_MIXER, "set EC mixer to 0x%02x\n", status);
7330
7331 /*
7332 * On X200s, and possibly on others, it can take a while for
7333 * reads to become correct.
7334 */
7335 msleep(1);
7336
7337 return 0;
7338 }
7339
volume_set_status(const u8 status)7340 static int volume_set_status(const u8 status)
7341 {
7342 return volume_set_status_ec(status);
7343 }
7344
7345 /* returns < 0 on error, 0 on no change, 1 on change */
__volume_set_mute_ec(const bool mute)7346 static int __volume_set_mute_ec(const bool mute)
7347 {
7348 int rc;
7349 u8 s, n;
7350
7351 if (mutex_lock_killable(&volume_mutex) < 0)
7352 return -EINTR;
7353
7354 rc = volume_get_status_ec(&s);
7355 if (rc)
7356 goto unlock;
7357
7358 n = (mute) ? s | TP_EC_AUDIO_MUTESW_MSK :
7359 s & ~TP_EC_AUDIO_MUTESW_MSK;
7360
7361 if (n != s) {
7362 rc = volume_set_status_ec(n);
7363 if (!rc)
7364 rc = 1;
7365 }
7366
7367 unlock:
7368 mutex_unlock(&volume_mutex);
7369 return rc;
7370 }
7371
volume_alsa_set_mute(const bool mute)7372 static int volume_alsa_set_mute(const bool mute)
7373 {
7374 dbg_printk(TPACPI_DBG_MIXER, "ALSA: trying to %smute\n",
7375 (mute) ? "" : "un");
7376 return __volume_set_mute_ec(mute);
7377 }
7378
volume_set_mute(const bool mute)7379 static int volume_set_mute(const bool mute)
7380 {
7381 int rc;
7382
7383 dbg_printk(TPACPI_DBG_MIXER, "trying to %smute\n",
7384 (mute) ? "" : "un");
7385
7386 rc = __volume_set_mute_ec(mute);
7387 return (rc < 0) ? rc : 0;
7388 }
7389
7390 /* returns < 0 on error, 0 on no change, 1 on change */
__volume_set_volume_ec(const u8 vol)7391 static int __volume_set_volume_ec(const u8 vol)
7392 {
7393 int rc;
7394 u8 s, n;
7395
7396 if (vol > TP_EC_VOLUME_MAX)
7397 return -EINVAL;
7398
7399 if (mutex_lock_killable(&volume_mutex) < 0)
7400 return -EINTR;
7401
7402 rc = volume_get_status_ec(&s);
7403 if (rc)
7404 goto unlock;
7405
7406 n = (s & ~TP_EC_AUDIO_LVL_MSK) | vol;
7407
7408 if (n != s) {
7409 rc = volume_set_status_ec(n);
7410 if (!rc)
7411 rc = 1;
7412 }
7413
7414 unlock:
7415 mutex_unlock(&volume_mutex);
7416 return rc;
7417 }
7418
volume_set_software_mute(bool startup)7419 static int volume_set_software_mute(bool startup)
7420 {
7421 int result;
7422
7423 if (!tpacpi_is_lenovo())
7424 return -ENODEV;
7425
7426 if (startup) {
7427 if (!acpi_evalf(ec_handle, &software_mute_orig_mode,
7428 "HAUM", "qd"))
7429 return -EIO;
7430
7431 dbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_MIXER,
7432 "Initial HAUM setting was %d\n",
7433 software_mute_orig_mode);
7434 }
7435
7436 if (!acpi_evalf(ec_handle, &result, "SAUM", "qdd",
7437 (int)TP_EC_MUTE_BTN_NONE))
7438 return -EIO;
7439
7440 if (result != TP_EC_MUTE_BTN_NONE)
7441 pr_warn("Unexpected SAUM result %d\n",
7442 result);
7443
7444 /*
7445 * In software mute mode, the standard codec controls take
7446 * precendence, so we unmute the ThinkPad HW switch at
7447 * startup. Just on case there are SAUM-capable ThinkPads
7448 * with level controls, set max HW volume as well.
7449 */
7450 if (tp_features.mixer_no_level_control)
7451 result = volume_set_mute(false);
7452 else
7453 result = volume_set_status(TP_EC_VOLUME_MAX);
7454
7455 if (result != 0)
7456 pr_warn("Failed to unmute the HW mute switch\n");
7457
7458 return 0;
7459 }
7460
volume_exit_software_mute(void)7461 static void volume_exit_software_mute(void)
7462 {
7463 int r;
7464
7465 if (!acpi_evalf(ec_handle, &r, "SAUM", "qdd", software_mute_orig_mode)
7466 || r != software_mute_orig_mode)
7467 pr_warn("Failed to restore mute mode\n");
7468 }
7469
volume_alsa_set_volume(const u8 vol)7470 static int volume_alsa_set_volume(const u8 vol)
7471 {
7472 dbg_printk(TPACPI_DBG_MIXER,
7473 "ALSA: trying to set volume level to %hu\n", vol);
7474 return __volume_set_volume_ec(vol);
7475 }
7476
volume_alsa_notify_change(void)7477 static void volume_alsa_notify_change(void)
7478 {
7479 struct tpacpi_alsa_data *d;
7480
7481 if (alsa_card && alsa_card->private_data) {
7482 d = alsa_card->private_data;
7483 if (d->ctl_mute_id)
7484 snd_ctl_notify(alsa_card,
7485 SNDRV_CTL_EVENT_MASK_VALUE,
7486 d->ctl_mute_id);
7487 if (d->ctl_vol_id)
7488 snd_ctl_notify(alsa_card,
7489 SNDRV_CTL_EVENT_MASK_VALUE,
7490 d->ctl_vol_id);
7491 }
7492 }
7493
volume_alsa_vol_info(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_info *uinfo)7494 static int volume_alsa_vol_info(struct snd_kcontrol *kcontrol,
7495 struct snd_ctl_elem_info *uinfo)
7496 {
7497 uinfo->type = SNDRV_CTL_ELEM_TYPE_INTEGER;
7498 uinfo->count = 1;
7499 uinfo->value.integer.min = 0;
7500 uinfo->value.integer.max = TP_EC_VOLUME_MAX;
7501 return 0;
7502 }
7503
volume_alsa_vol_get(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_value *ucontrol)7504 static int volume_alsa_vol_get(struct snd_kcontrol *kcontrol,
7505 struct snd_ctl_elem_value *ucontrol)
7506 {
7507 u8 s;
7508 int rc;
7509
7510 rc = volume_get_status(&s);
7511 if (rc < 0)
7512 return rc;
7513
7514 ucontrol->value.integer.value[0] = s & TP_EC_AUDIO_LVL_MSK;
7515 return 0;
7516 }
7517
volume_alsa_vol_put(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_value *ucontrol)7518 static int volume_alsa_vol_put(struct snd_kcontrol *kcontrol,
7519 struct snd_ctl_elem_value *ucontrol)
7520 {
7521 tpacpi_disclose_usertask("ALSA", "set volume to %ld\n",
7522 ucontrol->value.integer.value[0]);
7523 return volume_alsa_set_volume(ucontrol->value.integer.value[0]);
7524 }
7525
7526 #define volume_alsa_mute_info snd_ctl_boolean_mono_info
7527
volume_alsa_mute_get(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_value *ucontrol)7528 static int volume_alsa_mute_get(struct snd_kcontrol *kcontrol,
7529 struct snd_ctl_elem_value *ucontrol)
7530 {
7531 u8 s;
7532 int rc;
7533
7534 rc = volume_get_status(&s);
7535 if (rc < 0)
7536 return rc;
7537
7538 ucontrol->value.integer.value[0] =
7539 (s & TP_EC_AUDIO_MUTESW_MSK) ? 0 : 1;
7540 return 0;
7541 }
7542
volume_alsa_mute_put(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_value *ucontrol)7543 static int volume_alsa_mute_put(struct snd_kcontrol *kcontrol,
7544 struct snd_ctl_elem_value *ucontrol)
7545 {
7546 tpacpi_disclose_usertask("ALSA", "%smute\n",
7547 ucontrol->value.integer.value[0] ?
7548 "un" : "");
7549 return volume_alsa_set_mute(!ucontrol->value.integer.value[0]);
7550 }
7551
7552 static struct snd_kcontrol_new volume_alsa_control_vol __initdata = {
7553 .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
7554 .name = "Console Playback Volume",
7555 .index = 0,
7556 .access = SNDRV_CTL_ELEM_ACCESS_READ,
7557 .info = volume_alsa_vol_info,
7558 .get = volume_alsa_vol_get,
7559 };
7560
7561 static struct snd_kcontrol_new volume_alsa_control_mute __initdata = {
7562 .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
7563 .name = "Console Playback Switch",
7564 .index = 0,
7565 .access = SNDRV_CTL_ELEM_ACCESS_READ,
7566 .info = volume_alsa_mute_info,
7567 .get = volume_alsa_mute_get,
7568 };
7569
volume_suspend(void)7570 static void volume_suspend(void)
7571 {
7572 tpacpi_volume_checkpoint_nvram();
7573 }
7574
volume_resume(void)7575 static void volume_resume(void)
7576 {
7577 if (software_mute_active) {
7578 if (volume_set_software_mute(false) < 0)
7579 pr_warn("Failed to restore software mute\n");
7580 } else {
7581 volume_alsa_notify_change();
7582 }
7583 }
7584
volume_shutdown(void)7585 static void volume_shutdown(void)
7586 {
7587 tpacpi_volume_checkpoint_nvram();
7588 }
7589
volume_exit(void)7590 static void volume_exit(void)
7591 {
7592 if (alsa_card) {
7593 snd_card_free(alsa_card);
7594 alsa_card = NULL;
7595 }
7596
7597 tpacpi_volume_checkpoint_nvram();
7598
7599 if (software_mute_active)
7600 volume_exit_software_mute();
7601 }
7602
volume_create_alsa_mixer(void)7603 static int __init volume_create_alsa_mixer(void)
7604 {
7605 struct snd_card *card;
7606 struct tpacpi_alsa_data *data;
7607 struct snd_kcontrol *ctl_vol;
7608 struct snd_kcontrol *ctl_mute;
7609 int rc;
7610
7611 rc = snd_card_new(&tpacpi_pdev->dev,
7612 alsa_index, alsa_id, THIS_MODULE,
7613 sizeof(struct tpacpi_alsa_data), &card);
7614 if (rc < 0 || !card) {
7615 pr_err("Failed to create ALSA card structures: %d\n", rc);
7616 return 1;
7617 }
7618
7619 BUG_ON(!card->private_data);
7620 data = card->private_data;
7621 data->card = card;
7622
7623 strlcpy(card->driver, TPACPI_ALSA_DRVNAME,
7624 sizeof(card->driver));
7625 strlcpy(card->shortname, TPACPI_ALSA_SHRTNAME,
7626 sizeof(card->shortname));
7627 snprintf(card->mixername, sizeof(card->mixername), "ThinkPad EC %s",
7628 (thinkpad_id.ec_version_str) ?
7629 thinkpad_id.ec_version_str : "(unknown)");
7630 snprintf(card->longname, sizeof(card->longname),
7631 "%s at EC reg 0x%02x, fw %s", card->shortname, TP_EC_AUDIO,
7632 (thinkpad_id.ec_version_str) ?
7633 thinkpad_id.ec_version_str : "unknown");
7634
7635 if (volume_control_allowed) {
7636 volume_alsa_control_vol.put = volume_alsa_vol_put;
7637 volume_alsa_control_vol.access =
7638 SNDRV_CTL_ELEM_ACCESS_READWRITE;
7639
7640 volume_alsa_control_mute.put = volume_alsa_mute_put;
7641 volume_alsa_control_mute.access =
7642 SNDRV_CTL_ELEM_ACCESS_READWRITE;
7643 }
7644
7645 if (!tp_features.mixer_no_level_control) {
7646 ctl_vol = snd_ctl_new1(&volume_alsa_control_vol, NULL);
7647 rc = snd_ctl_add(card, ctl_vol);
7648 if (rc < 0) {
7649 pr_err("Failed to create ALSA volume control: %d\n",
7650 rc);
7651 goto err_exit;
7652 }
7653 data->ctl_vol_id = &ctl_vol->id;
7654 }
7655
7656 ctl_mute = snd_ctl_new1(&volume_alsa_control_mute, NULL);
7657 rc = snd_ctl_add(card, ctl_mute);
7658 if (rc < 0) {
7659 pr_err("Failed to create ALSA mute control: %d\n", rc);
7660 goto err_exit;
7661 }
7662 data->ctl_mute_id = &ctl_mute->id;
7663
7664 rc = snd_card_register(card);
7665 if (rc < 0) {
7666 pr_err("Failed to register ALSA card: %d\n", rc);
7667 goto err_exit;
7668 }
7669
7670 alsa_card = card;
7671 return 0;
7672
7673 err_exit:
7674 snd_card_free(card);
7675 return 1;
7676 }
7677
7678 #define TPACPI_VOL_Q_MUTEONLY 0x0001 /* Mute-only control available */
7679 #define TPACPI_VOL_Q_LEVEL 0x0002 /* Volume control available */
7680
7681 static const struct tpacpi_quirk volume_quirk_table[] __initconst = {
7682 /* Whitelist volume level on all IBM by default */
7683 { .vendor = PCI_VENDOR_ID_IBM,
7684 .bios = TPACPI_MATCH_ANY,
7685 .ec = TPACPI_MATCH_ANY,
7686 .quirks = TPACPI_VOL_Q_LEVEL },
7687
7688 /* Lenovo models with volume control (needs confirmation) */
7689 TPACPI_QEC_LNV('7', 'C', TPACPI_VOL_Q_LEVEL), /* R60/i */
7690 TPACPI_QEC_LNV('7', 'E', TPACPI_VOL_Q_LEVEL), /* R60e/i */
7691 TPACPI_QEC_LNV('7', '9', TPACPI_VOL_Q_LEVEL), /* T60/p */
7692 TPACPI_QEC_LNV('7', 'B', TPACPI_VOL_Q_LEVEL), /* X60/s */
7693 TPACPI_QEC_LNV('7', 'J', TPACPI_VOL_Q_LEVEL), /* X60t */
7694 TPACPI_QEC_LNV('7', '7', TPACPI_VOL_Q_LEVEL), /* Z60 */
7695 TPACPI_QEC_LNV('7', 'F', TPACPI_VOL_Q_LEVEL), /* Z61 */
7696
7697 /* Whitelist mute-only on all Lenovo by default */
7698 { .vendor = PCI_VENDOR_ID_LENOVO,
7699 .bios = TPACPI_MATCH_ANY,
7700 .ec = TPACPI_MATCH_ANY,
7701 .quirks = TPACPI_VOL_Q_MUTEONLY }
7702 };
7703
volume_init(struct ibm_init_struct *iibm)7704 static int __init volume_init(struct ibm_init_struct *iibm)
7705 {
7706 unsigned long quirks;
7707 int rc;
7708
7709 vdbg_printk(TPACPI_DBG_INIT, "initializing volume subdriver\n");
7710
7711 mutex_init(&volume_mutex);
7712
7713 /*
7714 * Check for module parameter bogosity, note that we
7715 * init volume_mode to TPACPI_VOL_MODE_MAX in order to be
7716 * able to detect "unspecified"
7717 */
7718 if (volume_mode > TPACPI_VOL_MODE_MAX)
7719 return -EINVAL;
7720
7721 if (volume_mode == TPACPI_VOL_MODE_UCMS_STEP) {
7722 pr_err("UCMS step volume mode not implemented, please contact %s\n",
7723 TPACPI_MAIL);
7724 return 1;
7725 }
7726
7727 if (volume_capabilities >= TPACPI_VOL_CAP_MAX)
7728 return -EINVAL;
7729
7730 /*
7731 * The ALSA mixer is our primary interface.
7732 * When disabled, don't install the subdriver at all
7733 */
7734 if (!alsa_enable) {
7735 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_MIXER,
7736 "ALSA mixer disabled by parameter, not loading volume subdriver...\n");
7737 return 1;
7738 }
7739
7740 quirks = tpacpi_check_quirks(volume_quirk_table,
7741 ARRAY_SIZE(volume_quirk_table));
7742
7743 switch (volume_capabilities) {
7744 case TPACPI_VOL_CAP_AUTO:
7745 if (quirks & TPACPI_VOL_Q_MUTEONLY)
7746 tp_features.mixer_no_level_control = 1;
7747 else if (quirks & TPACPI_VOL_Q_LEVEL)
7748 tp_features.mixer_no_level_control = 0;
7749 else
7750 return 1; /* no mixer */
7751 break;
7752 case TPACPI_VOL_CAP_VOLMUTE:
7753 tp_features.mixer_no_level_control = 0;
7754 break;
7755 case TPACPI_VOL_CAP_MUTEONLY:
7756 tp_features.mixer_no_level_control = 1;
7757 break;
7758 default:
7759 return 1;
7760 }
7761
7762 if (volume_capabilities != TPACPI_VOL_CAP_AUTO)
7763 dbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_MIXER,
7764 "using user-supplied volume_capabilities=%d\n",
7765 volume_capabilities);
7766
7767 if (volume_mode == TPACPI_VOL_MODE_AUTO ||
7768 volume_mode == TPACPI_VOL_MODE_MAX) {
7769 volume_mode = TPACPI_VOL_MODE_ECNVRAM;
7770
7771 dbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_MIXER,
7772 "driver auto-selected volume_mode=%d\n",
7773 volume_mode);
7774 } else {
7775 dbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_MIXER,
7776 "using user-supplied volume_mode=%d\n",
7777 volume_mode);
7778 }
7779
7780 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_MIXER,
7781 "mute is supported, volume control is %s\n",
7782 str_supported(!tp_features.mixer_no_level_control));
7783
7784 if (software_mute_requested && volume_set_software_mute(true) == 0) {
7785 software_mute_active = true;
7786 } else {
7787 rc = volume_create_alsa_mixer();
7788 if (rc) {
7789 pr_err("Could not create the ALSA mixer interface\n");
7790 return rc;
7791 }
7792
7793 pr_info("Console audio control enabled, mode: %s\n",
7794 (volume_control_allowed) ?
7795 "override (read/write)" :
7796 "monitor (read only)");
7797 }
7798
7799 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_MIXER,
7800 "registering volume hotkeys as change notification\n");
7801 tpacpi_hotkey_driver_mask_set(hotkey_driver_mask
7802 | TP_ACPI_HKEY_VOLUP_MASK
7803 | TP_ACPI_HKEY_VOLDWN_MASK
7804 | TP_ACPI_HKEY_MUTE_MASK);
7805
7806 return 0;
7807 }
7808
volume_read(struct seq_file *m)7809 static int volume_read(struct seq_file *m)
7810 {
7811 u8 status;
7812
7813 if (volume_get_status(&status) < 0) {
7814 seq_printf(m, "level:\t\tunreadable\n");
7815 } else {
7816 if (tp_features.mixer_no_level_control)
7817 seq_printf(m, "level:\t\tunsupported\n");
7818 else
7819 seq_printf(m, "level:\t\t%d\n",
7820 status & TP_EC_AUDIO_LVL_MSK);
7821
7822 seq_printf(m, "mute:\t\t%s\n",
7823 onoff(status, TP_EC_AUDIO_MUTESW));
7824
7825 if (volume_control_allowed) {
7826 seq_printf(m, "commands:\tunmute, mute\n");
7827 if (!tp_features.mixer_no_level_control) {
7828 seq_printf(m, "commands:\tup, down\n");
7829 seq_printf(m, "commands:\tlevel <level> (<level> is 0-%d)\n",
7830 TP_EC_VOLUME_MAX);
7831 }
7832 }
7833 }
7834
7835 return 0;
7836 }
7837
volume_write(char *buf)7838 static int volume_write(char *buf)
7839 {
7840 u8 s;
7841 u8 new_level, new_mute;
7842 int l;
7843 char *cmd;
7844 int rc;
7845
7846 /*
7847 * We do allow volume control at driver startup, so that the
7848 * user can set initial state through the volume=... parameter hack.
7849 */
7850 if (!volume_control_allowed && tpacpi_lifecycle != TPACPI_LIFE_INIT) {
7851 if (unlikely(!tp_warned.volume_ctrl_forbidden)) {
7852 tp_warned.volume_ctrl_forbidden = 1;
7853 pr_notice("Console audio control in monitor mode, changes are not allowed\n");
7854 pr_notice("Use the volume_control=1 module parameter to enable volume control\n");
7855 }
7856 return -EPERM;
7857 }
7858
7859 rc = volume_get_status(&s);
7860 if (rc < 0)
7861 return rc;
7862
7863 new_level = s & TP_EC_AUDIO_LVL_MSK;
7864 new_mute = s & TP_EC_AUDIO_MUTESW_MSK;
7865
7866 while ((cmd = strsep(&buf, ","))) {
7867 if (!tp_features.mixer_no_level_control) {
7868 if (strlencmp(cmd, "up") == 0) {
7869 if (new_mute)
7870 new_mute = 0;
7871 else if (new_level < TP_EC_VOLUME_MAX)
7872 new_level++;
7873 continue;
7874 } else if (strlencmp(cmd, "down") == 0) {
7875 if (new_mute)
7876 new_mute = 0;
7877 else if (new_level > 0)
7878 new_level--;
7879 continue;
7880 } else if (sscanf(cmd, "level %u", &l) == 1 &&
7881 l >= 0 && l <= TP_EC_VOLUME_MAX) {
7882 new_level = l;
7883 continue;
7884 }
7885 }
7886 if (strlencmp(cmd, "mute") == 0)
7887 new_mute = TP_EC_AUDIO_MUTESW_MSK;
7888 else if (strlencmp(cmd, "unmute") == 0)
7889 new_mute = 0;
7890 else
7891 return -EINVAL;
7892 }
7893
7894 if (tp_features.mixer_no_level_control) {
7895 tpacpi_disclose_usertask("procfs volume", "%smute\n",
7896 new_mute ? "" : "un");
7897 rc = volume_set_mute(!!new_mute);
7898 } else {
7899 tpacpi_disclose_usertask("procfs volume",
7900 "%smute and set level to %d\n",
7901 new_mute ? "" : "un", new_level);
7902 rc = volume_set_status(new_mute | new_level);
7903 }
7904 volume_alsa_notify_change();
7905
7906 return (rc == -EINTR) ? -ERESTARTSYS : rc;
7907 }
7908
7909 static struct ibm_struct volume_driver_data = {
7910 .name = "volume",
7911 .read = volume_read,
7912 .write = volume_write,
7913 .exit = volume_exit,
7914 .suspend = volume_suspend,
7915 .resume = volume_resume,
7916 .shutdown = volume_shutdown,
7917 };
7918
7919 #else /* !CONFIG_THINKPAD_ACPI_ALSA_SUPPORT */
7920
7921 #define alsa_card NULL
7922
volume_alsa_notify_change(void)7923 static inline void volume_alsa_notify_change(void)
7924 {
7925 }
7926
volume_init(struct ibm_init_struct *iibm)7927 static int __init volume_init(struct ibm_init_struct *iibm)
7928 {
7929 pr_info("volume: disabled as there is no ALSA support in this kernel\n");
7930
7931 return 1;
7932 }
7933
7934 static struct ibm_struct volume_driver_data = {
7935 .name = "volume",
7936 };
7937
7938 #endif /* CONFIG_THINKPAD_ACPI_ALSA_SUPPORT */
7939
7940 /*************************************************************************
7941 * Fan subdriver
7942 */
7943
7944 /*
7945 * FAN ACCESS MODES
7946 *
7947 * TPACPI_FAN_RD_ACPI_GFAN:
7948 * ACPI GFAN method: returns fan level
7949 *
7950 * see TPACPI_FAN_WR_ACPI_SFAN
7951 * EC 0x2f (HFSP) not available if GFAN exists
7952 *
7953 * TPACPI_FAN_WR_ACPI_SFAN:
7954 * ACPI SFAN method: sets fan level, 0 (stop) to 7 (max)
7955 *
7956 * EC 0x2f (HFSP) might be available *for reading*, but do not use
7957 * it for writing.
7958 *
7959 * TPACPI_FAN_WR_TPEC:
7960 * ThinkPad EC register 0x2f (HFSP): fan control loop mode
7961 * Supported on almost all ThinkPads
7962 *
7963 * Fan speed changes of any sort (including those caused by the
7964 * disengaged mode) are usually done slowly by the firmware as the
7965 * maximum amount of fan duty cycle change per second seems to be
7966 * limited.
7967 *
7968 * Reading is not available if GFAN exists.
7969 * Writing is not available if SFAN exists.
7970 *
7971 * Bits
7972 * 7 automatic mode engaged;
7973 * (default operation mode of the ThinkPad)
7974 * fan level is ignored in this mode.
7975 * 6 full speed mode (takes precedence over bit 7);
7976 * not available on all thinkpads. May disable
7977 * the tachometer while the fan controller ramps up
7978 * the speed (which can take up to a few *minutes*).
7979 * Speeds up fan to 100% duty-cycle, which is far above
7980 * the standard RPM levels. It is not impossible that
7981 * it could cause hardware damage.
7982 * 5-3 unused in some models. Extra bits for fan level
7983 * in others, but still useless as all values above
7984 * 7 map to the same speed as level 7 in these models.
7985 * 2-0 fan level (0..7 usually)
7986 * 0x00 = stop
7987 * 0x07 = max (set when temperatures critical)
7988 * Some ThinkPads may have other levels, see
7989 * TPACPI_FAN_WR_ACPI_FANS (X31/X40/X41)
7990 *
7991 * FIRMWARE BUG: on some models, EC 0x2f might not be initialized at
7992 * boot. Apparently the EC does not initialize it, so unless ACPI DSDT
7993 * does so, its initial value is meaningless (0x07).
7994 *
7995 * For firmware bugs, refer to:
7996 * https://thinkwiki.org/wiki/Embedded_Controller_Firmware#Firmware_Issues
7997 *
7998 * ----
7999 *
8000 * ThinkPad EC register 0x84 (LSB), 0x85 (MSB):
8001 * Main fan tachometer reading (in RPM)
8002 *
8003 * This register is present on all ThinkPads with a new-style EC, and
8004 * it is known not to be present on the A21m/e, and T22, as there is
8005 * something else in offset 0x84 according to the ACPI DSDT. Other
8006 * ThinkPads from this same time period (and earlier) probably lack the
8007 * tachometer as well.
8008 *
8009 * Unfortunately a lot of ThinkPads with new-style ECs but whose firmware
8010 * was never fixed by IBM to report the EC firmware version string
8011 * probably support the tachometer (like the early X models), so
8012 * detecting it is quite hard. We need more data to know for sure.
8013 *
8014 * FIRMWARE BUG: always read 0x84 first, otherwise incorrect readings
8015 * might result.
8016 *
8017 * FIRMWARE BUG: may go stale while the EC is switching to full speed
8018 * mode.
8019 *
8020 * For firmware bugs, refer to:
8021 * https://thinkwiki.org/wiki/Embedded_Controller_Firmware#Firmware_Issues
8022 *
8023 * ----
8024 *
8025 * ThinkPad EC register 0x31 bit 0 (only on select models)
8026 *
8027 * When bit 0 of EC register 0x31 is zero, the tachometer registers
8028 * show the speed of the main fan. When bit 0 of EC register 0x31
8029 * is one, the tachometer registers show the speed of the auxiliary
8030 * fan.
8031 *
8032 * Fan control seems to affect both fans, regardless of the state
8033 * of this bit.
8034 *
8035 * So far, only the firmware for the X60/X61 non-tablet versions
8036 * seem to support this (firmware TP-7M).
8037 *
8038 * TPACPI_FAN_WR_ACPI_FANS:
8039 * ThinkPad X31, X40, X41. Not available in the X60.
8040 *
8041 * FANS ACPI handle: takes three arguments: low speed, medium speed,
8042 * high speed. ACPI DSDT seems to map these three speeds to levels
8043 * as follows: STOP LOW LOW MED MED HIGH HIGH HIGH HIGH
8044 * (this map is stored on FAN0..FAN8 as "0,1,1,2,2,3,3,3,3")
8045 *
8046 * The speeds are stored on handles
8047 * (FANA:FAN9), (FANC:FANB), (FANE:FAND).
8048 *
8049 * There are three default speed sets, accessible as handles:
8050 * FS1L,FS1M,FS1H; FS2L,FS2M,FS2H; FS3L,FS3M,FS3H
8051 *
8052 * ACPI DSDT switches which set is in use depending on various
8053 * factors.
8054 *
8055 * TPACPI_FAN_WR_TPEC is also available and should be used to
8056 * command the fan. The X31/X40/X41 seems to have 8 fan levels,
8057 * but the ACPI tables just mention level 7.
8058 */
8059
8060 enum { /* Fan control constants */
8061 fan_status_offset = 0x2f, /* EC register 0x2f */
8062 fan_rpm_offset = 0x84, /* EC register 0x84: LSB, 0x85 MSB (RPM)
8063 * 0x84 must be read before 0x85 */
8064 fan_select_offset = 0x31, /* EC register 0x31 (Firmware 7M)
8065 bit 0 selects which fan is active */
8066
8067 TP_EC_FAN_FULLSPEED = 0x40, /* EC fan mode: full speed */
8068 TP_EC_FAN_AUTO = 0x80, /* EC fan mode: auto fan control */
8069
8070 TPACPI_FAN_LAST_LEVEL = 0x100, /* Use cached last-seen fan level */
8071 };
8072
8073 enum fan_status_access_mode {
8074 TPACPI_FAN_NONE = 0, /* No fan status or control */
8075 TPACPI_FAN_RD_ACPI_GFAN, /* Use ACPI GFAN */
8076 TPACPI_FAN_RD_TPEC, /* Use ACPI EC regs 0x2f, 0x84-0x85 */
8077 };
8078
8079 enum fan_control_access_mode {
8080 TPACPI_FAN_WR_NONE = 0, /* No fan control */
8081 TPACPI_FAN_WR_ACPI_SFAN, /* Use ACPI SFAN */
8082 TPACPI_FAN_WR_TPEC, /* Use ACPI EC reg 0x2f */
8083 TPACPI_FAN_WR_ACPI_FANS, /* Use ACPI FANS and EC reg 0x2f */
8084 };
8085
8086 enum fan_control_commands {
8087 TPACPI_FAN_CMD_SPEED = 0x0001, /* speed command */
8088 TPACPI_FAN_CMD_LEVEL = 0x0002, /* level command */
8089 TPACPI_FAN_CMD_ENABLE = 0x0004, /* enable/disable cmd,
8090 * and also watchdog cmd */
8091 };
8092
8093 static bool fan_control_allowed;
8094
8095 static enum fan_status_access_mode fan_status_access_mode;
8096 static enum fan_control_access_mode fan_control_access_mode;
8097 static enum fan_control_commands fan_control_commands;
8098
8099 static u8 fan_control_initial_status;
8100 static u8 fan_control_desired_level;
8101 static u8 fan_control_resume_level;
8102 static int fan_watchdog_maxinterval;
8103
8104 static struct mutex fan_mutex;
8105
8106 static void fan_watchdog_fire(struct work_struct *ignored);
8107 static DECLARE_DELAYED_WORK(fan_watchdog_task, fan_watchdog_fire);
8108
8109 TPACPI_HANDLE(fans, ec, "FANS"); /* X31, X40, X41 */
8110 TPACPI_HANDLE(gfan, ec, "GFAN", /* 570 */
8111 "\\FSPD", /* 600e/x, 770e, 770x */
8112 ); /* all others */
8113 TPACPI_HANDLE(sfan, ec, "SFAN", /* 570 */
8114 "JFNS", /* 770x-JL */
8115 ); /* all others */
8116
8117 /*
8118 * Unitialized HFSP quirk: ACPI DSDT and EC fail to initialize the
8119 * HFSP register at boot, so it contains 0x07 but the Thinkpad could
8120 * be in auto mode (0x80).
8121 *
8122 * This is corrected by any write to HFSP either by the driver, or
8123 * by the firmware.
8124 *
8125 * We assume 0x07 really means auto mode while this quirk is active,
8126 * as this is far more likely than the ThinkPad being in level 7,
8127 * which is only used by the firmware during thermal emergencies.
8128 *
8129 * Enable for TP-1Y (T43), TP-78 (R51e), TP-76 (R52),
8130 * TP-70 (T43, R52), which are known to be buggy.
8131 */
8132
fan_quirk1_setup(void)8133 static void fan_quirk1_setup(void)
8134 {
8135 if (fan_control_initial_status == 0x07) {
8136 pr_notice("fan_init: initial fan status is unknown, assuming it is in auto mode\n");
8137 tp_features.fan_ctrl_status_undef = 1;
8138 }
8139 }
8140
fan_quirk1_handle(u8 *fan_status)8141 static void fan_quirk1_handle(u8 *fan_status)
8142 {
8143 if (unlikely(tp_features.fan_ctrl_status_undef)) {
8144 if (*fan_status != fan_control_initial_status) {
8145 /* something changed the HFSP regisnter since
8146 * driver init time, so it is not undefined
8147 * anymore */
8148 tp_features.fan_ctrl_status_undef = 0;
8149 } else {
8150 /* Return most likely status. In fact, it
8151 * might be the only possible status */
8152 *fan_status = TP_EC_FAN_AUTO;
8153 }
8154 }
8155 }
8156
8157 /* Select main fan on X60/X61, NOOP on others */
fan_select_fan1(void)8158 static bool fan_select_fan1(void)
8159 {
8160 if (tp_features.second_fan) {
8161 u8 val;
8162
8163 if (ec_read(fan_select_offset, &val) < 0)
8164 return false;
8165 val &= 0xFEU;
8166 if (ec_write(fan_select_offset, val) < 0)
8167 return false;
8168 }
8169 return true;
8170 }
8171
8172 /* Select secondary fan on X60/X61 */
fan_select_fan2(void)8173 static bool fan_select_fan2(void)
8174 {
8175 u8 val;
8176
8177 if (!tp_features.second_fan)
8178 return false;
8179
8180 if (ec_read(fan_select_offset, &val) < 0)
8181 return false;
8182 val |= 0x01U;
8183 if (ec_write(fan_select_offset, val) < 0)
8184 return false;
8185
8186 return true;
8187 }
8188
8189 /*
8190 * Call with fan_mutex held
8191 */
fan_update_desired_level(u8 status)8192 static void fan_update_desired_level(u8 status)
8193 {
8194 if ((status &
8195 (TP_EC_FAN_AUTO | TP_EC_FAN_FULLSPEED)) == 0) {
8196 if (status > 7)
8197 fan_control_desired_level = 7;
8198 else
8199 fan_control_desired_level = status;
8200 }
8201 }
8202
fan_get_status(u8 *status)8203 static int fan_get_status(u8 *status)
8204 {
8205 u8 s;
8206
8207 /* TODO:
8208 * Add TPACPI_FAN_RD_ACPI_FANS ? */
8209
8210 switch (fan_status_access_mode) {
8211 case TPACPI_FAN_RD_ACPI_GFAN: {
8212 /* 570, 600e/x, 770e, 770x */
8213 int res;
8214
8215 if (unlikely(!acpi_evalf(gfan_handle, &res, NULL, "d")))
8216 return -EIO;
8217
8218 if (likely(status))
8219 *status = res & 0x07;
8220
8221 break;
8222 }
8223 case TPACPI_FAN_RD_TPEC:
8224 /* all except 570, 600e/x, 770e, 770x */
8225 if (unlikely(!acpi_ec_read(fan_status_offset, &s)))
8226 return -EIO;
8227
8228 if (likely(status)) {
8229 *status = s;
8230 fan_quirk1_handle(status);
8231 }
8232
8233 break;
8234
8235 default:
8236 return -ENXIO;
8237 }
8238
8239 return 0;
8240 }
8241
fan_get_status_safe(u8 *status)8242 static int fan_get_status_safe(u8 *status)
8243 {
8244 int rc;
8245 u8 s;
8246
8247 if (mutex_lock_killable(&fan_mutex))
8248 return -ERESTARTSYS;
8249 rc = fan_get_status(&s);
8250 if (!rc)
8251 fan_update_desired_level(s);
8252 mutex_unlock(&fan_mutex);
8253
8254 if (rc)
8255 return rc;
8256 if (status)
8257 *status = s;
8258
8259 return 0;
8260 }
8261
fan_get_speed(unsigned int *speed)8262 static int fan_get_speed(unsigned int *speed)
8263 {
8264 u8 hi, lo;
8265
8266 switch (fan_status_access_mode) {
8267 case TPACPI_FAN_RD_TPEC:
8268 /* all except 570, 600e/x, 770e, 770x */
8269 if (unlikely(!fan_select_fan1()))
8270 return -EIO;
8271 if (unlikely(!acpi_ec_read(fan_rpm_offset, &lo) ||
8272 !acpi_ec_read(fan_rpm_offset + 1, &hi)))
8273 return -EIO;
8274
8275 if (likely(speed))
8276 *speed = (hi << 8) | lo;
8277
8278 break;
8279
8280 default:
8281 return -ENXIO;
8282 }
8283
8284 return 0;
8285 }
8286
fan2_get_speed(unsigned int *speed)8287 static int fan2_get_speed(unsigned int *speed)
8288 {
8289 u8 hi, lo;
8290 bool rc;
8291
8292 switch (fan_status_access_mode) {
8293 case TPACPI_FAN_RD_TPEC:
8294 /* all except 570, 600e/x, 770e, 770x */
8295 if (unlikely(!fan_select_fan2()))
8296 return -EIO;
8297 rc = !acpi_ec_read(fan_rpm_offset, &lo) ||
8298 !acpi_ec_read(fan_rpm_offset + 1, &hi);
8299 fan_select_fan1(); /* play it safe */
8300 if (rc)
8301 return -EIO;
8302
8303 if (likely(speed))
8304 *speed = (hi << 8) | lo;
8305
8306 break;
8307
8308 default:
8309 return -ENXIO;
8310 }
8311
8312 return 0;
8313 }
8314
fan_set_level(int level)8315 static int fan_set_level(int level)
8316 {
8317 if (!fan_control_allowed)
8318 return -EPERM;
8319
8320 switch (fan_control_access_mode) {
8321 case TPACPI_FAN_WR_ACPI_SFAN:
8322 if ((level < 0) || (level > 7))
8323 return -EINVAL;
8324
8325 if (tp_features.second_fan_ctl) {
8326 if (!fan_select_fan2() ||
8327 !acpi_evalf(sfan_handle, NULL, NULL, "vd", level)) {
8328 pr_warn("Couldn't set 2nd fan level, disabling support\n");
8329 tp_features.second_fan_ctl = 0;
8330 }
8331 fan_select_fan1();
8332 }
8333 if (!acpi_evalf(sfan_handle, NULL, NULL, "vd", level))
8334 return -EIO;
8335 break;
8336
8337 case TPACPI_FAN_WR_ACPI_FANS:
8338 case TPACPI_FAN_WR_TPEC:
8339 if (!(level & TP_EC_FAN_AUTO) &&
8340 !(level & TP_EC_FAN_FULLSPEED) &&
8341 ((level < 0) || (level > 7)))
8342 return -EINVAL;
8343
8344 /* safety net should the EC not support AUTO
8345 * or FULLSPEED mode bits and just ignore them */
8346 if (level & TP_EC_FAN_FULLSPEED)
8347 level |= 7; /* safety min speed 7 */
8348 else if (level & TP_EC_FAN_AUTO)
8349 level |= 4; /* safety min speed 4 */
8350
8351 if (tp_features.second_fan_ctl) {
8352 if (!fan_select_fan2() ||
8353 !acpi_ec_write(fan_status_offset, level)) {
8354 pr_warn("Couldn't set 2nd fan level, disabling support\n");
8355 tp_features.second_fan_ctl = 0;
8356 }
8357 fan_select_fan1();
8358
8359 }
8360 if (!acpi_ec_write(fan_status_offset, level))
8361 return -EIO;
8362 else
8363 tp_features.fan_ctrl_status_undef = 0;
8364 break;
8365
8366 default:
8367 return -ENXIO;
8368 }
8369
8370 vdbg_printk(TPACPI_DBG_FAN,
8371 "fan control: set fan control register to 0x%02x\n", level);
8372 return 0;
8373 }
8374
fan_set_level_safe(int level)8375 static int fan_set_level_safe(int level)
8376 {
8377 int rc;
8378
8379 if (!fan_control_allowed)
8380 return -EPERM;
8381
8382 if (mutex_lock_killable(&fan_mutex))
8383 return -ERESTARTSYS;
8384
8385 if (level == TPACPI_FAN_LAST_LEVEL)
8386 level = fan_control_desired_level;
8387
8388 rc = fan_set_level(level);
8389 if (!rc)
8390 fan_update_desired_level(level);
8391
8392 mutex_unlock(&fan_mutex);
8393 return rc;
8394 }
8395
fan_set_enable(void)8396 static int fan_set_enable(void)
8397 {
8398 u8 s;
8399 int rc;
8400
8401 if (!fan_control_allowed)
8402 return -EPERM;
8403
8404 if (mutex_lock_killable(&fan_mutex))
8405 return -ERESTARTSYS;
8406
8407 switch (fan_control_access_mode) {
8408 case TPACPI_FAN_WR_ACPI_FANS:
8409 case TPACPI_FAN_WR_TPEC:
8410 rc = fan_get_status(&s);
8411 if (rc < 0)
8412 break;
8413
8414 /* Don't go out of emergency fan mode */
8415 if (s != 7) {
8416 s &= 0x07;
8417 s |= TP_EC_FAN_AUTO | 4; /* min fan speed 4 */
8418 }
8419
8420 if (!acpi_ec_write(fan_status_offset, s))
8421 rc = -EIO;
8422 else {
8423 tp_features.fan_ctrl_status_undef = 0;
8424 rc = 0;
8425 }
8426 break;
8427
8428 case TPACPI_FAN_WR_ACPI_SFAN:
8429 rc = fan_get_status(&s);
8430 if (rc < 0)
8431 break;
8432
8433 s &= 0x07;
8434
8435 /* Set fan to at least level 4 */
8436 s |= 4;
8437
8438 if (!acpi_evalf(sfan_handle, NULL, NULL, "vd", s))
8439 rc = -EIO;
8440 else
8441 rc = 0;
8442 break;
8443
8444 default:
8445 rc = -ENXIO;
8446 }
8447
8448 mutex_unlock(&fan_mutex);
8449
8450 if (!rc)
8451 vdbg_printk(TPACPI_DBG_FAN,
8452 "fan control: set fan control register to 0x%02x\n",
8453 s);
8454 return rc;
8455 }
8456
fan_set_disable(void)8457 static int fan_set_disable(void)
8458 {
8459 int rc;
8460
8461 if (!fan_control_allowed)
8462 return -EPERM;
8463
8464 if (mutex_lock_killable(&fan_mutex))
8465 return -ERESTARTSYS;
8466
8467 rc = 0;
8468 switch (fan_control_access_mode) {
8469 case TPACPI_FAN_WR_ACPI_FANS:
8470 case TPACPI_FAN_WR_TPEC:
8471 if (!acpi_ec_write(fan_status_offset, 0x00))
8472 rc = -EIO;
8473 else {
8474 fan_control_desired_level = 0;
8475 tp_features.fan_ctrl_status_undef = 0;
8476 }
8477 break;
8478
8479 case TPACPI_FAN_WR_ACPI_SFAN:
8480 if (!acpi_evalf(sfan_handle, NULL, NULL, "vd", 0x00))
8481 rc = -EIO;
8482 else
8483 fan_control_desired_level = 0;
8484 break;
8485
8486 default:
8487 rc = -ENXIO;
8488 }
8489
8490 if (!rc)
8491 vdbg_printk(TPACPI_DBG_FAN,
8492 "fan control: set fan control register to 0\n");
8493
8494 mutex_unlock(&fan_mutex);
8495 return rc;
8496 }
8497
fan_set_speed(int speed)8498 static int fan_set_speed(int speed)
8499 {
8500 int rc;
8501
8502 if (!fan_control_allowed)
8503 return -EPERM;
8504
8505 if (mutex_lock_killable(&fan_mutex))
8506 return -ERESTARTSYS;
8507
8508 rc = 0;
8509 switch (fan_control_access_mode) {
8510 case TPACPI_FAN_WR_ACPI_FANS:
8511 if (speed >= 0 && speed <= 65535) {
8512 if (!acpi_evalf(fans_handle, NULL, NULL, "vddd",
8513 speed, speed, speed))
8514 rc = -EIO;
8515 } else
8516 rc = -EINVAL;
8517 break;
8518
8519 default:
8520 rc = -ENXIO;
8521 }
8522
8523 mutex_unlock(&fan_mutex);
8524 return rc;
8525 }
8526
fan_watchdog_reset(void)8527 static void fan_watchdog_reset(void)
8528 {
8529 if (fan_control_access_mode == TPACPI_FAN_WR_NONE)
8530 return;
8531
8532 if (fan_watchdog_maxinterval > 0 &&
8533 tpacpi_lifecycle != TPACPI_LIFE_EXITING)
8534 mod_delayed_work(tpacpi_wq, &fan_watchdog_task,
8535 msecs_to_jiffies(fan_watchdog_maxinterval * 1000));
8536 else
8537 cancel_delayed_work(&fan_watchdog_task);
8538 }
8539
fan_watchdog_fire(struct work_struct *ignored)8540 static void fan_watchdog_fire(struct work_struct *ignored)
8541 {
8542 int rc;
8543
8544 if (tpacpi_lifecycle != TPACPI_LIFE_RUNNING)
8545 return;
8546
8547 pr_notice("fan watchdog: enabling fan\n");
8548 rc = fan_set_enable();
8549 if (rc < 0) {
8550 pr_err("fan watchdog: error %d while enabling fan, will try again later...\n",
8551 rc);
8552 /* reschedule for later */
8553 fan_watchdog_reset();
8554 }
8555 }
8556
8557 /*
8558 * SYSFS fan layout: hwmon compatible (device)
8559 *
8560 * pwm*_enable:
8561 * 0: "disengaged" mode
8562 * 1: manual mode
8563 * 2: native EC "auto" mode (recommended, hardware default)
8564 *
8565 * pwm*: set speed in manual mode, ignored otherwise.
8566 * 0 is level 0; 255 is level 7. Intermediate points done with linear
8567 * interpolation.
8568 *
8569 * fan*_input: tachometer reading, RPM
8570 *
8571 *
8572 * SYSFS fan layout: extensions
8573 *
8574 * fan_watchdog (driver):
8575 * fan watchdog interval in seconds, 0 disables (default), max 120
8576 */
8577
8578 /* sysfs fan pwm1_enable ----------------------------------------------- */
fan_pwm1_enable_show(struct device *dev, struct device_attribute *attr, char *buf)8579 static ssize_t fan_pwm1_enable_show(struct device *dev,
8580 struct device_attribute *attr,
8581 char *buf)
8582 {
8583 int res, mode;
8584 u8 status;
8585
8586 res = fan_get_status_safe(&status);
8587 if (res)
8588 return res;
8589
8590 if (status & TP_EC_FAN_FULLSPEED) {
8591 mode = 0;
8592 } else if (status & TP_EC_FAN_AUTO) {
8593 mode = 2;
8594 } else
8595 mode = 1;
8596
8597 return snprintf(buf, PAGE_SIZE, "%d\n", mode);
8598 }
8599
fan_pwm1_enable_store(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)8600 static ssize_t fan_pwm1_enable_store(struct device *dev,
8601 struct device_attribute *attr,
8602 const char *buf, size_t count)
8603 {
8604 unsigned long t;
8605 int res, level;
8606
8607 if (parse_strtoul(buf, 2, &t))
8608 return -EINVAL;
8609
8610 tpacpi_disclose_usertask("hwmon pwm1_enable",
8611 "set fan mode to %lu\n", t);
8612
8613 switch (t) {
8614 case 0:
8615 level = TP_EC_FAN_FULLSPEED;
8616 break;
8617 case 1:
8618 level = TPACPI_FAN_LAST_LEVEL;
8619 break;
8620 case 2:
8621 level = TP_EC_FAN_AUTO;
8622 break;
8623 case 3:
8624 /* reserved for software-controlled auto mode */
8625 return -ENOSYS;
8626 default:
8627 return -EINVAL;
8628 }
8629
8630 res = fan_set_level_safe(level);
8631 if (res == -ENXIO)
8632 return -EINVAL;
8633 else if (res < 0)
8634 return res;
8635
8636 fan_watchdog_reset();
8637
8638 return count;
8639 }
8640
8641 static DEVICE_ATTR(pwm1_enable, S_IWUSR | S_IRUGO,
8642 fan_pwm1_enable_show, fan_pwm1_enable_store);
8643
8644 /* sysfs fan pwm1 ------------------------------------------------------ */
fan_pwm1_show(struct device *dev, struct device_attribute *attr, char *buf)8645 static ssize_t fan_pwm1_show(struct device *dev,
8646 struct device_attribute *attr,
8647 char *buf)
8648 {
8649 int res;
8650 u8 status;
8651
8652 res = fan_get_status_safe(&status);
8653 if (res)
8654 return res;
8655
8656 if ((status &
8657 (TP_EC_FAN_AUTO | TP_EC_FAN_FULLSPEED)) != 0)
8658 status = fan_control_desired_level;
8659
8660 if (status > 7)
8661 status = 7;
8662
8663 return snprintf(buf, PAGE_SIZE, "%u\n", (status * 255) / 7);
8664 }
8665
fan_pwm1_store(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)8666 static ssize_t fan_pwm1_store(struct device *dev,
8667 struct device_attribute *attr,
8668 const char *buf, size_t count)
8669 {
8670 unsigned long s;
8671 int rc;
8672 u8 status, newlevel;
8673
8674 if (parse_strtoul(buf, 255, &s))
8675 return -EINVAL;
8676
8677 tpacpi_disclose_usertask("hwmon pwm1",
8678 "set fan speed to %lu\n", s);
8679
8680 /* scale down from 0-255 to 0-7 */
8681 newlevel = (s >> 5) & 0x07;
8682
8683 if (mutex_lock_killable(&fan_mutex))
8684 return -ERESTARTSYS;
8685
8686 rc = fan_get_status(&status);
8687 if (!rc && (status &
8688 (TP_EC_FAN_AUTO | TP_EC_FAN_FULLSPEED)) == 0) {
8689 rc = fan_set_level(newlevel);
8690 if (rc == -ENXIO)
8691 rc = -EINVAL;
8692 else if (!rc) {
8693 fan_update_desired_level(newlevel);
8694 fan_watchdog_reset();
8695 }
8696 }
8697
8698 mutex_unlock(&fan_mutex);
8699 return (rc) ? rc : count;
8700 }
8701
8702 static DEVICE_ATTR(pwm1, S_IWUSR | S_IRUGO, fan_pwm1_show, fan_pwm1_store);
8703
8704 /* sysfs fan fan1_input ------------------------------------------------ */
fan_fan1_input_show(struct device *dev, struct device_attribute *attr, char *buf)8705 static ssize_t fan_fan1_input_show(struct device *dev,
8706 struct device_attribute *attr,
8707 char *buf)
8708 {
8709 int res;
8710 unsigned int speed;
8711
8712 res = fan_get_speed(&speed);
8713 if (res < 0)
8714 return res;
8715
8716 return snprintf(buf, PAGE_SIZE, "%u\n", speed);
8717 }
8718
8719 static DEVICE_ATTR(fan1_input, S_IRUGO, fan_fan1_input_show, NULL);
8720
8721 /* sysfs fan fan2_input ------------------------------------------------ */
fan_fan2_input_show(struct device *dev, struct device_attribute *attr, char *buf)8722 static ssize_t fan_fan2_input_show(struct device *dev,
8723 struct device_attribute *attr,
8724 char *buf)
8725 {
8726 int res;
8727 unsigned int speed;
8728
8729 res = fan2_get_speed(&speed);
8730 if (res < 0)
8731 return res;
8732
8733 return snprintf(buf, PAGE_SIZE, "%u\n", speed);
8734 }
8735
8736 static DEVICE_ATTR(fan2_input, S_IRUGO, fan_fan2_input_show, NULL);
8737
8738 /* sysfs fan fan_watchdog (hwmon driver) ------------------------------- */
fan_watchdog_show(struct device_driver *drv, char *buf)8739 static ssize_t fan_watchdog_show(struct device_driver *drv, char *buf)
8740 {
8741 return snprintf(buf, PAGE_SIZE, "%u\n", fan_watchdog_maxinterval);
8742 }
8743
fan_watchdog_store(struct device_driver *drv, const char *buf, size_t count)8744 static ssize_t fan_watchdog_store(struct device_driver *drv, const char *buf,
8745 size_t count)
8746 {
8747 unsigned long t;
8748
8749 if (parse_strtoul(buf, 120, &t))
8750 return -EINVAL;
8751
8752 if (!fan_control_allowed)
8753 return -EPERM;
8754
8755 fan_watchdog_maxinterval = t;
8756 fan_watchdog_reset();
8757
8758 tpacpi_disclose_usertask("fan_watchdog", "set to %lu\n", t);
8759
8760 return count;
8761 }
8762 static DRIVER_ATTR_RW(fan_watchdog);
8763
8764 /* --------------------------------------------------------------------- */
8765 static struct attribute *fan_attributes[] = {
8766 &dev_attr_pwm1_enable.attr, &dev_attr_pwm1.attr,
8767 &dev_attr_fan1_input.attr,
8768 NULL, /* for fan2_input */
8769 NULL
8770 };
8771
8772 static const struct attribute_group fan_attr_group = {
8773 .attrs = fan_attributes,
8774 };
8775
8776 #define TPACPI_FAN_Q1 0x0001 /* Unitialized HFSP */
8777 #define TPACPI_FAN_2FAN 0x0002 /* EC 0x31 bit 0 selects fan2 */
8778 #define TPACPI_FAN_2CTL 0x0004 /* selects fan2 control */
8779
8780 static const struct tpacpi_quirk fan_quirk_table[] __initconst = {
8781 TPACPI_QEC_IBM('1', 'Y', TPACPI_FAN_Q1),
8782 TPACPI_QEC_IBM('7', '8', TPACPI_FAN_Q1),
8783 TPACPI_QEC_IBM('7', '6', TPACPI_FAN_Q1),
8784 TPACPI_QEC_IBM('7', '0', TPACPI_FAN_Q1),
8785 TPACPI_QEC_LNV('7', 'M', TPACPI_FAN_2FAN),
8786 TPACPI_Q_LNV('N', '1', TPACPI_FAN_2FAN),
8787 TPACPI_Q_LNV3('N', '1', 'D', TPACPI_FAN_2CTL), /* P70 */
8788 TPACPI_Q_LNV3('N', '1', 'E', TPACPI_FAN_2CTL), /* P50 */
8789 TPACPI_Q_LNV3('N', '1', 'T', TPACPI_FAN_2CTL), /* P71 */
8790 TPACPI_Q_LNV3('N', '1', 'U', TPACPI_FAN_2CTL), /* P51 */
8791 TPACPI_Q_LNV3('N', '2', 'C', TPACPI_FAN_2CTL), /* P52 / P72 */
8792 TPACPI_Q_LNV3('N', '2', 'N', TPACPI_FAN_2CTL), /* P53 / P73 */
8793 TPACPI_Q_LNV3('N', '2', 'E', TPACPI_FAN_2CTL), /* P1 / X1 Extreme (1st gen) */
8794 TPACPI_Q_LNV3('N', '2', 'O', TPACPI_FAN_2CTL), /* P1 / X1 Extreme (2nd gen) */
8795 TPACPI_Q_LNV3('N', '2', 'V', TPACPI_FAN_2CTL), /* P1 / X1 Extreme (3nd gen) */
8796 TPACPI_Q_LNV3('N', '4', '0', TPACPI_FAN_2CTL), /* P1 / X1 Extreme (4nd gen) */
8797 TPACPI_Q_LNV3('N', '3', '0', TPACPI_FAN_2CTL), /* P15 (1st gen) / P15v (1st gen) */
8798 TPACPI_Q_LNV3('N', '3', '2', TPACPI_FAN_2CTL), /* X1 Carbon (9th gen) */
8799 };
8800
fan_init(struct ibm_init_struct *iibm)8801 static int __init fan_init(struct ibm_init_struct *iibm)
8802 {
8803 int rc;
8804 unsigned long quirks;
8805
8806 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_FAN,
8807 "initializing fan subdriver\n");
8808
8809 mutex_init(&fan_mutex);
8810 fan_status_access_mode = TPACPI_FAN_NONE;
8811 fan_control_access_mode = TPACPI_FAN_WR_NONE;
8812 fan_control_commands = 0;
8813 fan_watchdog_maxinterval = 0;
8814 tp_features.fan_ctrl_status_undef = 0;
8815 tp_features.second_fan = 0;
8816 tp_features.second_fan_ctl = 0;
8817 fan_control_desired_level = 7;
8818
8819 if (tpacpi_is_ibm()) {
8820 TPACPI_ACPIHANDLE_INIT(fans);
8821 TPACPI_ACPIHANDLE_INIT(gfan);
8822 TPACPI_ACPIHANDLE_INIT(sfan);
8823 }
8824
8825 quirks = tpacpi_check_quirks(fan_quirk_table,
8826 ARRAY_SIZE(fan_quirk_table));
8827
8828 if (gfan_handle) {
8829 /* 570, 600e/x, 770e, 770x */
8830 fan_status_access_mode = TPACPI_FAN_RD_ACPI_GFAN;
8831 } else {
8832 /* all other ThinkPads: note that even old-style
8833 * ThinkPad ECs supports the fan control register */
8834 if (likely(acpi_ec_read(fan_status_offset,
8835 &fan_control_initial_status))) {
8836 fan_status_access_mode = TPACPI_FAN_RD_TPEC;
8837 if (quirks & TPACPI_FAN_Q1)
8838 fan_quirk1_setup();
8839 if (quirks & TPACPI_FAN_2FAN) {
8840 tp_features.second_fan = 1;
8841 pr_info("secondary fan support enabled\n");
8842 }
8843 if (quirks & TPACPI_FAN_2CTL) {
8844 tp_features.second_fan = 1;
8845 tp_features.second_fan_ctl = 1;
8846 pr_info("secondary fan control enabled\n");
8847 }
8848 } else {
8849 pr_err("ThinkPad ACPI EC access misbehaving, fan status and control unavailable\n");
8850 return 1;
8851 }
8852 }
8853
8854 if (sfan_handle) {
8855 /* 570, 770x-JL */
8856 fan_control_access_mode = TPACPI_FAN_WR_ACPI_SFAN;
8857 fan_control_commands |=
8858 TPACPI_FAN_CMD_LEVEL | TPACPI_FAN_CMD_ENABLE;
8859 } else {
8860 if (!gfan_handle) {
8861 /* gfan without sfan means no fan control */
8862 /* all other models implement TP EC 0x2f control */
8863
8864 if (fans_handle) {
8865 /* X31, X40, X41 */
8866 fan_control_access_mode =
8867 TPACPI_FAN_WR_ACPI_FANS;
8868 fan_control_commands |=
8869 TPACPI_FAN_CMD_SPEED |
8870 TPACPI_FAN_CMD_LEVEL |
8871 TPACPI_FAN_CMD_ENABLE;
8872 } else {
8873 fan_control_access_mode = TPACPI_FAN_WR_TPEC;
8874 fan_control_commands |=
8875 TPACPI_FAN_CMD_LEVEL |
8876 TPACPI_FAN_CMD_ENABLE;
8877 }
8878 }
8879 }
8880
8881 vdbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_FAN,
8882 "fan is %s, modes %d, %d\n",
8883 str_supported(fan_status_access_mode != TPACPI_FAN_NONE ||
8884 fan_control_access_mode != TPACPI_FAN_WR_NONE),
8885 fan_status_access_mode, fan_control_access_mode);
8886
8887 /* fan control master switch */
8888 if (!fan_control_allowed) {
8889 fan_control_access_mode = TPACPI_FAN_WR_NONE;
8890 fan_control_commands = 0;
8891 dbg_printk(TPACPI_DBG_INIT | TPACPI_DBG_FAN,
8892 "fan control features disabled by parameter\n");
8893 }
8894
8895 /* update fan_control_desired_level */
8896 if (fan_status_access_mode != TPACPI_FAN_NONE)
8897 fan_get_status_safe(NULL);
8898
8899 if (fan_status_access_mode != TPACPI_FAN_NONE ||
8900 fan_control_access_mode != TPACPI_FAN_WR_NONE) {
8901 if (tp_features.second_fan) {
8902 /* attach second fan tachometer */
8903 fan_attributes[ARRAY_SIZE(fan_attributes)-2] =
8904 &dev_attr_fan2_input.attr;
8905 }
8906 rc = sysfs_create_group(&tpacpi_hwmon->kobj,
8907 &fan_attr_group);
8908 if (rc < 0)
8909 return rc;
8910
8911 rc = driver_create_file(&tpacpi_hwmon_pdriver.driver,
8912 &driver_attr_fan_watchdog);
8913 if (rc < 0) {
8914 sysfs_remove_group(&tpacpi_hwmon->kobj,
8915 &fan_attr_group);
8916 return rc;
8917 }
8918 return 0;
8919 } else
8920 return 1;
8921 }
8922
fan_exit(void)8923 static void fan_exit(void)
8924 {
8925 vdbg_printk(TPACPI_DBG_EXIT | TPACPI_DBG_FAN,
8926 "cancelling any pending fan watchdog tasks\n");
8927
8928 /* FIXME: can we really do this unconditionally? */
8929 sysfs_remove_group(&tpacpi_hwmon->kobj, &fan_attr_group);
8930 driver_remove_file(&tpacpi_hwmon_pdriver.driver,
8931 &driver_attr_fan_watchdog);
8932
8933 cancel_delayed_work(&fan_watchdog_task);
8934 flush_workqueue(tpacpi_wq);
8935 }
8936
fan_suspend(void)8937 static void fan_suspend(void)
8938 {
8939 int rc;
8940
8941 if (!fan_control_allowed)
8942 return;
8943
8944 /* Store fan status in cache */
8945 fan_control_resume_level = 0;
8946 rc = fan_get_status_safe(&fan_control_resume_level);
8947 if (rc < 0)
8948 pr_notice("failed to read fan level for later restore during resume: %d\n",
8949 rc);
8950
8951 /* if it is undefined, don't attempt to restore it.
8952 * KEEP THIS LAST */
8953 if (tp_features.fan_ctrl_status_undef)
8954 fan_control_resume_level = 0;
8955 }
8956
fan_resume(void)8957 static void fan_resume(void)
8958 {
8959 u8 current_level = 7;
8960 bool do_set = false;
8961 int rc;
8962
8963 /* DSDT *always* updates status on resume */
8964 tp_features.fan_ctrl_status_undef = 0;
8965
8966 if (!fan_control_allowed ||
8967 !fan_control_resume_level ||
8968 (fan_get_status_safe(¤t_level) < 0))
8969 return;
8970
8971 switch (fan_control_access_mode) {
8972 case TPACPI_FAN_WR_ACPI_SFAN:
8973 /* never decrease fan level */
8974 do_set = (fan_control_resume_level > current_level);
8975 break;
8976 case TPACPI_FAN_WR_ACPI_FANS:
8977 case TPACPI_FAN_WR_TPEC:
8978 /* never decrease fan level, scale is:
8979 * TP_EC_FAN_FULLSPEED > 7 >= TP_EC_FAN_AUTO
8980 *
8981 * We expect the firmware to set either 7 or AUTO, but we
8982 * handle FULLSPEED out of paranoia.
8983 *
8984 * So, we can safely only restore FULLSPEED or 7, anything
8985 * else could slow the fan. Restoring AUTO is useless, at
8986 * best that's exactly what the DSDT already set (it is the
8987 * slower it uses).
8988 *
8989 * Always keep in mind that the DSDT *will* have set the
8990 * fans to what the vendor supposes is the best level. We
8991 * muck with it only to speed the fan up.
8992 */
8993 if (fan_control_resume_level != 7 &&
8994 !(fan_control_resume_level & TP_EC_FAN_FULLSPEED))
8995 return;
8996 else
8997 do_set = !(current_level & TP_EC_FAN_FULLSPEED) &&
8998 (current_level != fan_control_resume_level);
8999 break;
9000 default:
9001 return;
9002 }
9003 if (do_set) {
9004 pr_notice("restoring fan level to 0x%02x\n",
9005 fan_control_resume_level);
9006 rc = fan_set_level_safe(fan_control_resume_level);
9007 if (rc < 0)
9008 pr_notice("failed to restore fan level: %d\n", rc);
9009 }
9010 }
9011
fan_read(struct seq_file *m)9012 static int fan_read(struct seq_file *m)
9013 {
9014 int rc;
9015 u8 status;
9016 unsigned int speed = 0;
9017
9018 switch (fan_status_access_mode) {
9019 case TPACPI_FAN_RD_ACPI_GFAN:
9020 /* 570, 600e/x, 770e, 770x */
9021 rc = fan_get_status_safe(&status);
9022 if (rc < 0)
9023 return rc;
9024
9025 seq_printf(m, "status:\t\t%s\n"
9026 "level:\t\t%d\n",
9027 (status != 0) ? "enabled" : "disabled", status);
9028 break;
9029
9030 case TPACPI_FAN_RD_TPEC:
9031 /* all except 570, 600e/x, 770e, 770x */
9032 rc = fan_get_status_safe(&status);
9033 if (rc < 0)
9034 return rc;
9035
9036 seq_printf(m, "status:\t\t%s\n",
9037 (status != 0) ? "enabled" : "disabled");
9038
9039 rc = fan_get_speed(&speed);
9040 if (rc < 0)
9041 return rc;
9042
9043 seq_printf(m, "speed:\t\t%d\n", speed);
9044
9045 if (status & TP_EC_FAN_FULLSPEED)
9046 /* Disengaged mode takes precedence */
9047 seq_printf(m, "level:\t\tdisengaged\n");
9048 else if (status & TP_EC_FAN_AUTO)
9049 seq_printf(m, "level:\t\tauto\n");
9050 else
9051 seq_printf(m, "level:\t\t%d\n", status);
9052 break;
9053
9054 case TPACPI_FAN_NONE:
9055 default:
9056 seq_printf(m, "status:\t\tnot supported\n");
9057 }
9058
9059 if (fan_control_commands & TPACPI_FAN_CMD_LEVEL) {
9060 seq_printf(m, "commands:\tlevel <level>");
9061
9062 switch (fan_control_access_mode) {
9063 case TPACPI_FAN_WR_ACPI_SFAN:
9064 seq_printf(m, " (<level> is 0-7)\n");
9065 break;
9066
9067 default:
9068 seq_printf(m, " (<level> is 0-7, auto, disengaged, full-speed)\n");
9069 break;
9070 }
9071 }
9072
9073 if (fan_control_commands & TPACPI_FAN_CMD_ENABLE)
9074 seq_printf(m, "commands:\tenable, disable\n"
9075 "commands:\twatchdog <timeout> (<timeout> is 0 (off), 1-120 (seconds))\n");
9076
9077 if (fan_control_commands & TPACPI_FAN_CMD_SPEED)
9078 seq_printf(m, "commands:\tspeed <speed> (<speed> is 0-65535)\n");
9079
9080 return 0;
9081 }
9082
fan_write_cmd_level(const char *cmd, int *rc)9083 static int fan_write_cmd_level(const char *cmd, int *rc)
9084 {
9085 int level;
9086
9087 if (strlencmp(cmd, "level auto") == 0)
9088 level = TP_EC_FAN_AUTO;
9089 else if ((strlencmp(cmd, "level disengaged") == 0) ||
9090 (strlencmp(cmd, "level full-speed") == 0))
9091 level = TP_EC_FAN_FULLSPEED;
9092 else if (sscanf(cmd, "level %d", &level) != 1)
9093 return 0;
9094
9095 *rc = fan_set_level_safe(level);
9096 if (*rc == -ENXIO)
9097 pr_err("level command accepted for unsupported access mode %d\n",
9098 fan_control_access_mode);
9099 else if (!*rc)
9100 tpacpi_disclose_usertask("procfs fan",
9101 "set level to %d\n", level);
9102
9103 return 1;
9104 }
9105
fan_write_cmd_enable(const char *cmd, int *rc)9106 static int fan_write_cmd_enable(const char *cmd, int *rc)
9107 {
9108 if (strlencmp(cmd, "enable") != 0)
9109 return 0;
9110
9111 *rc = fan_set_enable();
9112 if (*rc == -ENXIO)
9113 pr_err("enable command accepted for unsupported access mode %d\n",
9114 fan_control_access_mode);
9115 else if (!*rc)
9116 tpacpi_disclose_usertask("procfs fan", "enable\n");
9117
9118 return 1;
9119 }
9120
fan_write_cmd_disable(const char *cmd, int *rc)9121 static int fan_write_cmd_disable(const char *cmd, int *rc)
9122 {
9123 if (strlencmp(cmd, "disable") != 0)
9124 return 0;
9125
9126 *rc = fan_set_disable();
9127 if (*rc == -ENXIO)
9128 pr_err("disable command accepted for unsupported access mode %d\n",
9129 fan_control_access_mode);
9130 else if (!*rc)
9131 tpacpi_disclose_usertask("procfs fan", "disable\n");
9132
9133 return 1;
9134 }
9135
fan_write_cmd_speed(const char *cmd, int *rc)9136 static int fan_write_cmd_speed(const char *cmd, int *rc)
9137 {
9138 int speed;
9139
9140 /* TODO:
9141 * Support speed <low> <medium> <high> ? */
9142
9143 if (sscanf(cmd, "speed %d", &speed) != 1)
9144 return 0;
9145
9146 *rc = fan_set_speed(speed);
9147 if (*rc == -ENXIO)
9148 pr_err("speed command accepted for unsupported access mode %d\n",
9149 fan_control_access_mode);
9150 else if (!*rc)
9151 tpacpi_disclose_usertask("procfs fan",
9152 "set speed to %d\n", speed);
9153
9154 return 1;
9155 }
9156
fan_write_cmd_watchdog(const char *cmd, int *rc)9157 static int fan_write_cmd_watchdog(const char *cmd, int *rc)
9158 {
9159 int interval;
9160
9161 if (sscanf(cmd, "watchdog %d", &interval) != 1)
9162 return 0;
9163
9164 if (interval < 0 || interval > 120)
9165 *rc = -EINVAL;
9166 else {
9167 fan_watchdog_maxinterval = interval;
9168 tpacpi_disclose_usertask("procfs fan",
9169 "set watchdog timer to %d\n",
9170 interval);
9171 }
9172
9173 return 1;
9174 }
9175
fan_write(char *buf)9176 static int fan_write(char *buf)
9177 {
9178 char *cmd;
9179 int rc = 0;
9180
9181 while (!rc && (cmd = strsep(&buf, ","))) {
9182 if (!((fan_control_commands & TPACPI_FAN_CMD_LEVEL) &&
9183 fan_write_cmd_level(cmd, &rc)) &&
9184 !((fan_control_commands & TPACPI_FAN_CMD_ENABLE) &&
9185 (fan_write_cmd_enable(cmd, &rc) ||
9186 fan_write_cmd_disable(cmd, &rc) ||
9187 fan_write_cmd_watchdog(cmd, &rc))) &&
9188 !((fan_control_commands & TPACPI_FAN_CMD_SPEED) &&
9189 fan_write_cmd_speed(cmd, &rc))
9190 )
9191 rc = -EINVAL;
9192 else if (!rc)
9193 fan_watchdog_reset();
9194 }
9195
9196 return rc;
9197 }
9198
9199 static struct ibm_struct fan_driver_data = {
9200 .name = "fan",
9201 .read = fan_read,
9202 .write = fan_write,
9203 .exit = fan_exit,
9204 .suspend = fan_suspend,
9205 .resume = fan_resume,
9206 };
9207
9208 /*************************************************************************
9209 * Mute LED subdriver
9210 */
9211
9212 #define TPACPI_LED_MAX 2
9213
9214 struct tp_led_table {
9215 acpi_string name;
9216 int on_value;
9217 int off_value;
9218 int state;
9219 };
9220
9221 static struct tp_led_table led_tables[TPACPI_LED_MAX] = {
9222 [LED_AUDIO_MUTE] = {
9223 .name = "SSMS",
9224 .on_value = 1,
9225 .off_value = 0,
9226 },
9227 [LED_AUDIO_MICMUTE] = {
9228 .name = "MMTS",
9229 .on_value = 2,
9230 .off_value = 0,
9231 },
9232 };
9233
mute_led_on_off(struct tp_led_table *t, bool state)9234 static int mute_led_on_off(struct tp_led_table *t, bool state)
9235 {
9236 acpi_handle temp;
9237 int output;
9238
9239 if (ACPI_FAILURE(acpi_get_handle(hkey_handle, t->name, &temp))) {
9240 pr_warn("Thinkpad ACPI has no %s interface.\n", t->name);
9241 return -EIO;
9242 }
9243
9244 if (!acpi_evalf(hkey_handle, &output, t->name, "dd",
9245 state ? t->on_value : t->off_value))
9246 return -EIO;
9247
9248 t->state = state;
9249 return state;
9250 }
9251
tpacpi_led_set(int whichled, bool on)9252 static int tpacpi_led_set(int whichled, bool on)
9253 {
9254 struct tp_led_table *t;
9255
9256 t = &led_tables[whichled];
9257 if (t->state < 0 || t->state == on)
9258 return t->state;
9259 return mute_led_on_off(t, on);
9260 }
9261
tpacpi_led_mute_set(struct led_classdev *led_cdev, enum led_brightness brightness)9262 static int tpacpi_led_mute_set(struct led_classdev *led_cdev,
9263 enum led_brightness brightness)
9264 {
9265 return tpacpi_led_set(LED_AUDIO_MUTE, brightness != LED_OFF);
9266 }
9267
tpacpi_led_micmute_set(struct led_classdev *led_cdev, enum led_brightness brightness)9268 static int tpacpi_led_micmute_set(struct led_classdev *led_cdev,
9269 enum led_brightness brightness)
9270 {
9271 return tpacpi_led_set(LED_AUDIO_MICMUTE, brightness != LED_OFF);
9272 }
9273
9274 static struct led_classdev mute_led_cdev[TPACPI_LED_MAX] = {
9275 [LED_AUDIO_MUTE] = {
9276 .name = "platform::mute",
9277 .max_brightness = 1,
9278 .brightness_set_blocking = tpacpi_led_mute_set,
9279 .default_trigger = "audio-mute",
9280 },
9281 [LED_AUDIO_MICMUTE] = {
9282 .name = "platform::micmute",
9283 .max_brightness = 1,
9284 .brightness_set_blocking = tpacpi_led_micmute_set,
9285 .default_trigger = "audio-micmute",
9286 },
9287 };
9288
mute_led_init(struct ibm_init_struct *iibm)9289 static int mute_led_init(struct ibm_init_struct *iibm)
9290 {
9291 acpi_handle temp;
9292 int i, err;
9293
9294 for (i = 0; i < TPACPI_LED_MAX; i++) {
9295 struct tp_led_table *t = &led_tables[i];
9296 if (ACPI_FAILURE(acpi_get_handle(hkey_handle, t->name, &temp))) {
9297 t->state = -ENODEV;
9298 continue;
9299 }
9300
9301 mute_led_cdev[i].brightness = ledtrig_audio_get(i);
9302 err = led_classdev_register(&tpacpi_pdev->dev, &mute_led_cdev[i]);
9303 if (err < 0) {
9304 while (i--)
9305 led_classdev_unregister(&mute_led_cdev[i]);
9306 return err;
9307 }
9308 }
9309 return 0;
9310 }
9311
mute_led_exit(void)9312 static void mute_led_exit(void)
9313 {
9314 int i;
9315
9316 for (i = 0; i < TPACPI_LED_MAX; i++) {
9317 led_classdev_unregister(&mute_led_cdev[i]);
9318 tpacpi_led_set(i, false);
9319 }
9320 }
9321
mute_led_resume(void)9322 static void mute_led_resume(void)
9323 {
9324 int i;
9325
9326 for (i = 0; i < TPACPI_LED_MAX; i++) {
9327 struct tp_led_table *t = &led_tables[i];
9328 if (t->state >= 0)
9329 mute_led_on_off(t, t->state);
9330 }
9331 }
9332
9333 static struct ibm_struct mute_led_driver_data = {
9334 .name = "mute_led",
9335 .exit = mute_led_exit,
9336 .resume = mute_led_resume,
9337 };
9338
9339 /*
9340 * Battery Wear Control Driver
9341 * Contact: Ognjen Galic <smclt30p@gmail.com>
9342 */
9343
9344 /* Metadata */
9345
9346 #define GET_START "BCTG"
9347 #define SET_START "BCCS"
9348 #define GET_STOP "BCSG"
9349 #define SET_STOP "BCSS"
9350
9351 enum {
9352 BAT_ANY = 0,
9353 BAT_PRIMARY = 1,
9354 BAT_SECONDARY = 2
9355 };
9356
9357 enum {
9358 /* Error condition bit */
9359 METHOD_ERR = BIT(31),
9360 };
9361
9362 enum {
9363 /* This is used in the get/set helpers */
9364 THRESHOLD_START,
9365 THRESHOLD_STOP,
9366 };
9367
9368 struct tpacpi_battery_data {
9369 int charge_start;
9370 int start_support;
9371 int charge_stop;
9372 int stop_support;
9373 };
9374
9375 struct tpacpi_battery_driver_data {
9376 struct tpacpi_battery_data batteries[3];
9377 int individual_addressing;
9378 };
9379
9380 static struct tpacpi_battery_driver_data battery_info;
9381
9382 /* ACPI helpers/functions/probes */
9383
9384 /**
9385 * This evaluates a ACPI method call specific to the battery
9386 * ACPI extension. The specifics are that an error is marked
9387 * in the 32rd bit of the response, so we just check that here.
9388 */
tpacpi_battery_acpi_eval(char *method, int *ret, int param)9389 static acpi_status tpacpi_battery_acpi_eval(char *method, int *ret, int param)
9390 {
9391 int response;
9392
9393 if (!acpi_evalf(hkey_handle, &response, method, "dd", param)) {
9394 acpi_handle_err(hkey_handle, "%s: evaluate failed", method);
9395 return AE_ERROR;
9396 }
9397 if (response & METHOD_ERR) {
9398 acpi_handle_err(hkey_handle,
9399 "%s evaluated but flagged as error", method);
9400 return AE_ERROR;
9401 }
9402 *ret = response;
9403 return AE_OK;
9404 }
9405
tpacpi_battery_get(int what, int battery, int *ret)9406 static int tpacpi_battery_get(int what, int battery, int *ret)
9407 {
9408 switch (what) {
9409 case THRESHOLD_START:
9410 if ACPI_FAILURE(tpacpi_battery_acpi_eval(GET_START, ret, battery))
9411 return -ENODEV;
9412
9413 /* The value is in the low 8 bits of the response */
9414 *ret = *ret & 0xFF;
9415 return 0;
9416 case THRESHOLD_STOP:
9417 if ACPI_FAILURE(tpacpi_battery_acpi_eval(GET_STOP, ret, battery))
9418 return -ENODEV;
9419 /* Value is in lower 8 bits */
9420 *ret = *ret & 0xFF;
9421 /*
9422 * On the stop value, if we return 0 that
9423 * does not make any sense. 0 means Default, which
9424 * means that charging stops at 100%, so we return
9425 * that.
9426 */
9427 if (*ret == 0)
9428 *ret = 100;
9429 return 0;
9430 default:
9431 pr_crit("wrong parameter: %d", what);
9432 return -EINVAL;
9433 }
9434 }
9435
tpacpi_battery_set(int what, int battery, int value)9436 static int tpacpi_battery_set(int what, int battery, int value)
9437 {
9438 int param, ret;
9439 /* The first 8 bits are the value of the threshold */
9440 param = value;
9441 /* The battery ID is in bits 8-9, 2 bits */
9442 param |= battery << 8;
9443
9444 switch (what) {
9445 case THRESHOLD_START:
9446 if ACPI_FAILURE(tpacpi_battery_acpi_eval(SET_START, &ret, param)) {
9447 pr_err("failed to set charge threshold on battery %d",
9448 battery);
9449 return -ENODEV;
9450 }
9451 return 0;
9452 case THRESHOLD_STOP:
9453 if ACPI_FAILURE(tpacpi_battery_acpi_eval(SET_STOP, &ret, param)) {
9454 pr_err("failed to set stop threshold: %d", battery);
9455 return -ENODEV;
9456 }
9457 return 0;
9458 default:
9459 pr_crit("wrong parameter: %d", what);
9460 return -EINVAL;
9461 }
9462 }
9463
tpacpi_battery_probe(int battery)9464 static int tpacpi_battery_probe(int battery)
9465 {
9466 int ret = 0;
9467
9468 memset(&battery_info.batteries[battery], 0,
9469 sizeof(battery_info.batteries[battery]));
9470
9471 /*
9472 * 1) Get the current start threshold
9473 * 2) Check for support
9474 * 3) Get the current stop threshold
9475 * 4) Check for support
9476 */
9477 if (acpi_has_method(hkey_handle, GET_START)) {
9478 if ACPI_FAILURE(tpacpi_battery_acpi_eval(GET_START, &ret, battery)) {
9479 pr_err("Error probing battery %d\n", battery);
9480 return -ENODEV;
9481 }
9482 /* Individual addressing is in bit 9 */
9483 if (ret & BIT(9))
9484 battery_info.individual_addressing = true;
9485 /* Support is marked in bit 8 */
9486 if (ret & BIT(8))
9487 battery_info.batteries[battery].start_support = 1;
9488 else
9489 return -ENODEV;
9490 if (tpacpi_battery_get(THRESHOLD_START, battery,
9491 &battery_info.batteries[battery].charge_start)) {
9492 pr_err("Error probing battery %d\n", battery);
9493 return -ENODEV;
9494 }
9495 }
9496 if (acpi_has_method(hkey_handle, GET_STOP)) {
9497 if ACPI_FAILURE(tpacpi_battery_acpi_eval(GET_STOP, &ret, battery)) {
9498 pr_err("Error probing battery stop; %d\n", battery);
9499 return -ENODEV;
9500 }
9501 /* Support is marked in bit 8 */
9502 if (ret & BIT(8))
9503 battery_info.batteries[battery].stop_support = 1;
9504 else
9505 return -ENODEV;
9506 if (tpacpi_battery_get(THRESHOLD_STOP, battery,
9507 &battery_info.batteries[battery].charge_stop)) {
9508 pr_err("Error probing battery stop: %d\n", battery);
9509 return -ENODEV;
9510 }
9511 }
9512 pr_info("battery %d registered (start %d, stop %d)",
9513 battery,
9514 battery_info.batteries[battery].charge_start,
9515 battery_info.batteries[battery].charge_stop);
9516
9517 return 0;
9518 }
9519
9520 /* General helper functions */
9521
tpacpi_battery_get_id(const char *battery_name)9522 static int tpacpi_battery_get_id(const char *battery_name)
9523 {
9524
9525 if (strcmp(battery_name, "BAT0") == 0 ||
9526 tp_features.battery_force_primary)
9527 return BAT_PRIMARY;
9528 if (strcmp(battery_name, "BAT1") == 0)
9529 return BAT_SECONDARY;
9530 /*
9531 * If for some reason the battery is not BAT0 nor is it
9532 * BAT1, we will assume it's the default, first battery,
9533 * AKA primary.
9534 */
9535 pr_warn("unknown battery %s, assuming primary", battery_name);
9536 return BAT_PRIMARY;
9537 }
9538
9539 /* sysfs interface */
9540
tpacpi_battery_store(int what, struct device *dev, const char *buf, size_t count)9541 static ssize_t tpacpi_battery_store(int what,
9542 struct device *dev,
9543 const char *buf, size_t count)
9544 {
9545 struct power_supply *supply = to_power_supply(dev);
9546 unsigned long value;
9547 int battery, rval;
9548 /*
9549 * Some systems have support for more than
9550 * one battery. If that is the case,
9551 * tpacpi_battery_probe marked that addressing
9552 * them individually is supported, so we do that
9553 * based on the device struct.
9554 *
9555 * On systems that are not supported, we assume
9556 * the primary as most of the ACPI calls fail
9557 * with "Any Battery" as the parameter.
9558 */
9559 if (battery_info.individual_addressing)
9560 /* BAT_PRIMARY or BAT_SECONDARY */
9561 battery = tpacpi_battery_get_id(supply->desc->name);
9562 else
9563 battery = BAT_PRIMARY;
9564
9565 rval = kstrtoul(buf, 10, &value);
9566 if (rval)
9567 return rval;
9568
9569 switch (what) {
9570 case THRESHOLD_START:
9571 if (!battery_info.batteries[battery].start_support)
9572 return -ENODEV;
9573 /* valid values are [0, 99] */
9574 if (value > 99)
9575 return -EINVAL;
9576 if (value > battery_info.batteries[battery].charge_stop)
9577 return -EINVAL;
9578 if (tpacpi_battery_set(THRESHOLD_START, battery, value))
9579 return -ENODEV;
9580 battery_info.batteries[battery].charge_start = value;
9581 return count;
9582
9583 case THRESHOLD_STOP:
9584 if (!battery_info.batteries[battery].stop_support)
9585 return -ENODEV;
9586 /* valid values are [1, 100] */
9587 if (value < 1 || value > 100)
9588 return -EINVAL;
9589 if (value < battery_info.batteries[battery].charge_start)
9590 return -EINVAL;
9591 battery_info.batteries[battery].charge_stop = value;
9592 /*
9593 * When 100 is passed to stop, we need to flip
9594 * it to 0 as that the EC understands that as
9595 * "Default", which will charge to 100%
9596 */
9597 if (value == 100)
9598 value = 0;
9599 if (tpacpi_battery_set(THRESHOLD_STOP, battery, value))
9600 return -EINVAL;
9601 return count;
9602 default:
9603 pr_crit("Wrong parameter: %d", what);
9604 return -EINVAL;
9605 }
9606 return count;
9607 }
9608
tpacpi_battery_show(int what, struct device *dev, char *buf)9609 static ssize_t tpacpi_battery_show(int what,
9610 struct device *dev,
9611 char *buf)
9612 {
9613 struct power_supply *supply = to_power_supply(dev);
9614 int ret, battery;
9615 /*
9616 * Some systems have support for more than
9617 * one battery. If that is the case,
9618 * tpacpi_battery_probe marked that addressing
9619 * them individually is supported, so we;
9620 * based on the device struct.
9621 *
9622 * On systems that are not supported, we assume
9623 * the primary as most of the ACPI calls fail
9624 * with "Any Battery" as the parameter.
9625 */
9626 if (battery_info.individual_addressing)
9627 /* BAT_PRIMARY or BAT_SECONDARY */
9628 battery = tpacpi_battery_get_id(supply->desc->name);
9629 else
9630 battery = BAT_PRIMARY;
9631 if (tpacpi_battery_get(what, battery, &ret))
9632 return -ENODEV;
9633 return sprintf(buf, "%d\n", ret);
9634 }
9635
charge_control_start_threshold_show(struct device *device, struct device_attribute *attr, char *buf)9636 static ssize_t charge_control_start_threshold_show(struct device *device,
9637 struct device_attribute *attr,
9638 char *buf)
9639 {
9640 return tpacpi_battery_show(THRESHOLD_START, device, buf);
9641 }
9642
charge_control_end_threshold_show(struct device *device, struct device_attribute *attr, char *buf)9643 static ssize_t charge_control_end_threshold_show(struct device *device,
9644 struct device_attribute *attr,
9645 char *buf)
9646 {
9647 return tpacpi_battery_show(THRESHOLD_STOP, device, buf);
9648 }
9649
charge_control_start_threshold_store(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)9650 static ssize_t charge_control_start_threshold_store(struct device *dev,
9651 struct device_attribute *attr,
9652 const char *buf, size_t count)
9653 {
9654 return tpacpi_battery_store(THRESHOLD_START, dev, buf, count);
9655 }
9656
charge_control_end_threshold_store(struct device *dev, struct device_attribute *attr, const char *buf, size_t count)9657 static ssize_t charge_control_end_threshold_store(struct device *dev,
9658 struct device_attribute *attr,
9659 const char *buf, size_t count)
9660 {
9661 return tpacpi_battery_store(THRESHOLD_STOP, dev, buf, count);
9662 }
9663
9664 static DEVICE_ATTR_RW(charge_control_start_threshold);
9665 static DEVICE_ATTR_RW(charge_control_end_threshold);
9666 static struct device_attribute dev_attr_charge_start_threshold = __ATTR(
9667 charge_start_threshold,
9668 0644,
9669 charge_control_start_threshold_show,
9670 charge_control_start_threshold_store
9671 );
9672 static struct device_attribute dev_attr_charge_stop_threshold = __ATTR(
9673 charge_stop_threshold,
9674 0644,
9675 charge_control_end_threshold_show,
9676 charge_control_end_threshold_store
9677 );
9678
9679 static struct attribute *tpacpi_battery_attrs[] = {
9680 &dev_attr_charge_control_start_threshold.attr,
9681 &dev_attr_charge_control_end_threshold.attr,
9682 &dev_attr_charge_start_threshold.attr,
9683 &dev_attr_charge_stop_threshold.attr,
9684 NULL,
9685 };
9686
9687 ATTRIBUTE_GROUPS(tpacpi_battery);
9688
9689 /* ACPI battery hooking */
9690
tpacpi_battery_add(struct power_supply *battery)9691 static int tpacpi_battery_add(struct power_supply *battery)
9692 {
9693 int batteryid = tpacpi_battery_get_id(battery->desc->name);
9694
9695 if (tpacpi_battery_probe(batteryid))
9696 return -ENODEV;
9697 if (device_add_groups(&battery->dev, tpacpi_battery_groups))
9698 return -ENODEV;
9699 return 0;
9700 }
9701
tpacpi_battery_remove(struct power_supply *battery)9702 static int tpacpi_battery_remove(struct power_supply *battery)
9703 {
9704 device_remove_groups(&battery->dev, tpacpi_battery_groups);
9705 return 0;
9706 }
9707
9708 static struct acpi_battery_hook battery_hook = {
9709 .add_battery = tpacpi_battery_add,
9710 .remove_battery = tpacpi_battery_remove,
9711 .name = "ThinkPad Battery Extension",
9712 };
9713
9714 /* Subdriver init/exit */
9715
9716 static const struct tpacpi_quirk battery_quirk_table[] __initconst = {
9717 /*
9718 * Individual addressing is broken on models that expose the
9719 * primary battery as BAT1.
9720 */
9721 TPACPI_Q_LNV('8', 'F', true), /* Thinkpad X120e */
9722 TPACPI_Q_LNV('J', '7', true), /* B5400 */
9723 TPACPI_Q_LNV('J', 'I', true), /* Thinkpad 11e */
9724 TPACPI_Q_LNV3('R', '0', 'B', true), /* Thinkpad 11e gen 3 */
9725 TPACPI_Q_LNV3('R', '0', 'C', true), /* Thinkpad 13 */
9726 TPACPI_Q_LNV3('R', '0', 'J', true), /* Thinkpad 13 gen 2 */
9727 TPACPI_Q_LNV3('R', '0', 'K', true), /* Thinkpad 11e gen 4 celeron BIOS */
9728 };
9729
tpacpi_battery_init(struct ibm_init_struct *ibm)9730 static int __init tpacpi_battery_init(struct ibm_init_struct *ibm)
9731 {
9732 memset(&battery_info, 0, sizeof(battery_info));
9733
9734 tp_features.battery_force_primary = tpacpi_check_quirks(
9735 battery_quirk_table,
9736 ARRAY_SIZE(battery_quirk_table));
9737
9738 battery_hook_register(&battery_hook);
9739 return 0;
9740 }
9741
tpacpi_battery_exit(void)9742 static void tpacpi_battery_exit(void)
9743 {
9744 battery_hook_unregister(&battery_hook);
9745 }
9746
9747 static struct ibm_struct battery_driver_data = {
9748 .name = "battery",
9749 .exit = tpacpi_battery_exit,
9750 };
9751
9752 /*************************************************************************
9753 * LCD Shadow subdriver, for the Lenovo PrivacyGuard feature
9754 */
9755
9756 static int lcdshadow_state;
9757
lcdshadow_on_off(bool state)9758 static int lcdshadow_on_off(bool state)
9759 {
9760 acpi_handle set_shadow_handle;
9761 int output;
9762
9763 if (ACPI_FAILURE(acpi_get_handle(hkey_handle, "SSSS", &set_shadow_handle))) {
9764 pr_warn("Thinkpad ACPI has no %s interface.\n", "SSSS");
9765 return -EIO;
9766 }
9767
9768 if (!acpi_evalf(set_shadow_handle, &output, NULL, "dd", (int)state))
9769 return -EIO;
9770
9771 lcdshadow_state = state;
9772 return 0;
9773 }
9774
lcdshadow_set(bool on)9775 static int lcdshadow_set(bool on)
9776 {
9777 if (lcdshadow_state < 0)
9778 return lcdshadow_state;
9779 if (lcdshadow_state == on)
9780 return 0;
9781 return lcdshadow_on_off(on);
9782 }
9783
tpacpi_lcdshadow_init(struct ibm_init_struct *iibm)9784 static int tpacpi_lcdshadow_init(struct ibm_init_struct *iibm)
9785 {
9786 acpi_handle get_shadow_handle;
9787 int output;
9788
9789 if (ACPI_FAILURE(acpi_get_handle(hkey_handle, "GSSS", &get_shadow_handle))) {
9790 lcdshadow_state = -ENODEV;
9791 return 0;
9792 }
9793
9794 if (!acpi_evalf(get_shadow_handle, &output, NULL, "dd", 0)) {
9795 lcdshadow_state = -EIO;
9796 return -EIO;
9797 }
9798 if (!(output & 0x10000)) {
9799 lcdshadow_state = -ENODEV;
9800 return 0;
9801 }
9802 lcdshadow_state = output & 0x1;
9803
9804 return 0;
9805 }
9806
lcdshadow_resume(void)9807 static void lcdshadow_resume(void)
9808 {
9809 if (lcdshadow_state >= 0)
9810 lcdshadow_on_off(lcdshadow_state);
9811 }
9812
lcdshadow_read(struct seq_file *m)9813 static int lcdshadow_read(struct seq_file *m)
9814 {
9815 if (lcdshadow_state < 0) {
9816 seq_puts(m, "status:\t\tnot supported\n");
9817 } else {
9818 seq_printf(m, "status:\t\t%d\n", lcdshadow_state);
9819 seq_puts(m, "commands:\t0, 1\n");
9820 }
9821
9822 return 0;
9823 }
9824
lcdshadow_write(char *buf)9825 static int lcdshadow_write(char *buf)
9826 {
9827 char *cmd;
9828 int res, state = -EINVAL;
9829
9830 if (lcdshadow_state < 0)
9831 return -ENODEV;
9832
9833 while ((cmd = strsep(&buf, ","))) {
9834 res = kstrtoint(cmd, 10, &state);
9835 if (res < 0)
9836 return res;
9837 }
9838
9839 if (state >= 2 || state < 0)
9840 return -EINVAL;
9841
9842 return lcdshadow_set(state);
9843 }
9844
9845 static struct ibm_struct lcdshadow_driver_data = {
9846 .name = "lcdshadow",
9847 .resume = lcdshadow_resume,
9848 .read = lcdshadow_read,
9849 .write = lcdshadow_write,
9850 };
9851
9852 /*************************************************************************
9853 * DYTC subdriver, for the Lenovo lapmode feature
9854 */
9855
9856 #define DYTC_CMD_GET 2 /* To get current IC function and mode */
9857 #define DYTC_GET_LAPMODE_BIT 17 /* Set when in lapmode */
9858
9859 static bool dytc_lapmode;
9860
dytc_lapmode_notify_change(void)9861 static void dytc_lapmode_notify_change(void)
9862 {
9863 sysfs_notify(&tpacpi_pdev->dev.kobj, NULL, "dytc_lapmode");
9864 }
9865
dytc_command(int command, int *output)9866 static int dytc_command(int command, int *output)
9867 {
9868 acpi_handle dytc_handle;
9869
9870 if (ACPI_FAILURE(acpi_get_handle(hkey_handle, "DYTC", &dytc_handle))) {
9871 /* Platform doesn't support DYTC */
9872 return -ENODEV;
9873 }
9874 if (!acpi_evalf(dytc_handle, output, NULL, "dd", command))
9875 return -EIO;
9876 return 0;
9877 }
9878
dytc_lapmode_get(bool *state)9879 static int dytc_lapmode_get(bool *state)
9880 {
9881 int output, err;
9882
9883 err = dytc_command(DYTC_CMD_GET, &output);
9884 if (err)
9885 return err;
9886 *state = output & BIT(DYTC_GET_LAPMODE_BIT) ? true : false;
9887 return 0;
9888 }
9889
dytc_lapmode_refresh(void)9890 static void dytc_lapmode_refresh(void)
9891 {
9892 bool new_state;
9893 int err;
9894
9895 err = dytc_lapmode_get(&new_state);
9896 if (err || (new_state == dytc_lapmode))
9897 return;
9898
9899 dytc_lapmode = new_state;
9900 dytc_lapmode_notify_change();
9901 }
9902
9903 /* sysfs lapmode entry */
dytc_lapmode_show(struct device *dev, struct device_attribute *attr, char *buf)9904 static ssize_t dytc_lapmode_show(struct device *dev,
9905 struct device_attribute *attr,
9906 char *buf)
9907 {
9908 return snprintf(buf, PAGE_SIZE, "%d\n", dytc_lapmode);
9909 }
9910
9911 static DEVICE_ATTR_RO(dytc_lapmode);
9912
9913 static struct attribute *dytc_attributes[] = {
9914 &dev_attr_dytc_lapmode.attr,
9915 NULL,
9916 };
9917
9918 static const struct attribute_group dytc_attr_group = {
9919 .attrs = dytc_attributes,
9920 };
9921
tpacpi_dytc_init(struct ibm_init_struct *iibm)9922 static int tpacpi_dytc_init(struct ibm_init_struct *iibm)
9923 {
9924 int err;
9925
9926 err = dytc_lapmode_get(&dytc_lapmode);
9927 /* If support isn't available (ENODEV) then don't return an error
9928 * but just don't create the sysfs group
9929 */
9930 if (err == -ENODEV)
9931 return 0;
9932 /* For all other errors we can flag the failure */
9933 if (err)
9934 return err;
9935
9936 /* Platform supports this feature - create the group */
9937 err = sysfs_create_group(&tpacpi_pdev->dev.kobj, &dytc_attr_group);
9938 return err;
9939 }
9940
dytc_exit(void)9941 static void dytc_exit(void)
9942 {
9943 sysfs_remove_group(&tpacpi_pdev->dev.kobj, &dytc_attr_group);
9944 }
9945
9946 static struct ibm_struct dytc_driver_data = {
9947 .name = "dytc",
9948 .exit = dytc_exit,
9949 };
9950
9951 /****************************************************************************
9952 ****************************************************************************
9953 *
9954 * Infrastructure
9955 *
9956 ****************************************************************************
9957 ****************************************************************************/
9958
9959 /*
9960 * HKEY event callout for other subdrivers go here
9961 * (yes, it is ugly, but it is quick, safe, and gets the job done
9962 */
tpacpi_driver_event(const unsigned int hkey_event)9963 static void tpacpi_driver_event(const unsigned int hkey_event)
9964 {
9965 if (ibm_backlight_device) {
9966 switch (hkey_event) {
9967 case TP_HKEY_EV_BRGHT_UP:
9968 case TP_HKEY_EV_BRGHT_DOWN:
9969 tpacpi_brightness_notify_change();
9970 }
9971 }
9972 if (alsa_card) {
9973 switch (hkey_event) {
9974 case TP_HKEY_EV_VOL_UP:
9975 case TP_HKEY_EV_VOL_DOWN:
9976 case TP_HKEY_EV_VOL_MUTE:
9977 volume_alsa_notify_change();
9978 }
9979 }
9980 if (tp_features.kbdlight && hkey_event == TP_HKEY_EV_KBD_LIGHT) {
9981 enum led_brightness brightness;
9982
9983 mutex_lock(&kbdlight_mutex);
9984
9985 /*
9986 * Check the brightness actually changed, setting the brightness
9987 * through kbdlight_set_level() also triggers this event.
9988 */
9989 brightness = kbdlight_sysfs_get(NULL);
9990 if (kbdlight_brightness != brightness) {
9991 kbdlight_brightness = brightness;
9992 led_classdev_notify_brightness_hw_changed(
9993 &tpacpi_led_kbdlight.led_classdev, brightness);
9994 }
9995
9996 mutex_unlock(&kbdlight_mutex);
9997 }
9998
9999 if (hkey_event == TP_HKEY_EV_THM_CSM_COMPLETED)
10000 dytc_lapmode_refresh();
10001
10002 }
10003
hotkey_driver_event(const unsigned int scancode)10004 static void hotkey_driver_event(const unsigned int scancode)
10005 {
10006 tpacpi_driver_event(TP_HKEY_EV_HOTKEY_BASE + scancode);
10007 }
10008
10009 /* --------------------------------------------------------------------- */
10010
10011 /* /proc support */
10012 static struct proc_dir_entry *proc_dir;
10013
10014 /*
10015 * Module and infrastructure proble, init and exit handling
10016 */
10017
10018 static bool force_load;
10019
10020 #ifdef CONFIG_THINKPAD_ACPI_DEBUG
str_supported(int is_supported)10021 static const char * __init str_supported(int is_supported)
10022 {
10023 static char text_unsupported[] __initdata = "not supported";
10024
10025 return (is_supported) ? &text_unsupported[4] : &text_unsupported[0];
10026 }
10027 #endif /* CONFIG_THINKPAD_ACPI_DEBUG */
10028
ibm_exit(struct ibm_struct *ibm)10029 static void ibm_exit(struct ibm_struct *ibm)
10030 {
10031 dbg_printk(TPACPI_DBG_EXIT, "removing %s\n", ibm->name);
10032
10033 list_del_init(&ibm->all_drivers);
10034
10035 if (ibm->flags.acpi_notify_installed) {
10036 dbg_printk(TPACPI_DBG_EXIT,
10037 "%s: acpi_remove_notify_handler\n", ibm->name);
10038 BUG_ON(!ibm->acpi);
10039 acpi_remove_notify_handler(*ibm->acpi->handle,
10040 ibm->acpi->type,
10041 dispatch_acpi_notify);
10042 ibm->flags.acpi_notify_installed = 0;
10043 }
10044
10045 if (ibm->flags.proc_created) {
10046 dbg_printk(TPACPI_DBG_EXIT,
10047 "%s: remove_proc_entry\n", ibm->name);
10048 remove_proc_entry(ibm->name, proc_dir);
10049 ibm->flags.proc_created = 0;
10050 }
10051
10052 if (ibm->flags.acpi_driver_registered) {
10053 dbg_printk(TPACPI_DBG_EXIT,
10054 "%s: acpi_bus_unregister_driver\n", ibm->name);
10055 BUG_ON(!ibm->acpi);
10056 acpi_bus_unregister_driver(ibm->acpi->driver);
10057 kfree(ibm->acpi->driver);
10058 ibm->acpi->driver = NULL;
10059 ibm->flags.acpi_driver_registered = 0;
10060 }
10061
10062 if (ibm->flags.init_called && ibm->exit) {
10063 ibm->exit();
10064 ibm->flags.init_called = 0;
10065 }
10066
10067 dbg_printk(TPACPI_DBG_INIT, "finished removing %s\n", ibm->name);
10068 }
10069
ibm_init(struct ibm_init_struct *iibm)10070 static int __init ibm_init(struct ibm_init_struct *iibm)
10071 {
10072 int ret;
10073 struct ibm_struct *ibm = iibm->data;
10074 struct proc_dir_entry *entry;
10075
10076 BUG_ON(ibm == NULL);
10077
10078 INIT_LIST_HEAD(&ibm->all_drivers);
10079
10080 if (ibm->flags.experimental && !experimental)
10081 return 0;
10082
10083 dbg_printk(TPACPI_DBG_INIT,
10084 "probing for %s\n", ibm->name);
10085
10086 if (iibm->init) {
10087 ret = iibm->init(iibm);
10088 if (ret > 0)
10089 return 0; /* probe failed */
10090 if (ret)
10091 return ret;
10092
10093 ibm->flags.init_called = 1;
10094 }
10095
10096 if (ibm->acpi) {
10097 if (ibm->acpi->hid) {
10098 ret = register_tpacpi_subdriver(ibm);
10099 if (ret)
10100 goto err_out;
10101 }
10102
10103 if (ibm->acpi->notify) {
10104 ret = setup_acpi_notify(ibm);
10105 if (ret == -ENODEV) {
10106 pr_notice("disabling subdriver %s\n",
10107 ibm->name);
10108 ret = 0;
10109 goto err_out;
10110 }
10111 if (ret < 0)
10112 goto err_out;
10113 }
10114 }
10115
10116 dbg_printk(TPACPI_DBG_INIT,
10117 "%s installed\n", ibm->name);
10118
10119 if (ibm->read) {
10120 umode_t mode = iibm->base_procfs_mode;
10121
10122 if (!mode)
10123 mode = S_IRUGO;
10124 if (ibm->write)
10125 mode |= S_IWUSR;
10126 entry = proc_create_data(ibm->name, mode, proc_dir,
10127 &dispatch_proc_ops, ibm);
10128 if (!entry) {
10129 pr_err("unable to create proc entry %s\n", ibm->name);
10130 ret = -ENODEV;
10131 goto err_out;
10132 }
10133 ibm->flags.proc_created = 1;
10134 }
10135
10136 list_add_tail(&ibm->all_drivers, &tpacpi_all_drivers);
10137
10138 return 0;
10139
10140 err_out:
10141 dbg_printk(TPACPI_DBG_INIT,
10142 "%s: at error exit path with result %d\n",
10143 ibm->name, ret);
10144
10145 ibm_exit(ibm);
10146 return (ret < 0) ? ret : 0;
10147 }
10148
10149 /* Probing */
10150
tpacpi_parse_fw_id(const char * const s, u32 *model, u16 *release)10151 static char __init tpacpi_parse_fw_id(const char * const s,
10152 u32 *model, u16 *release)
10153 {
10154 int i;
10155
10156 if (!s || strlen(s) < 8)
10157 goto invalid;
10158
10159 for (i = 0; i < 8; i++)
10160 if (!((s[i] >= '0' && s[i] <= '9') ||
10161 (s[i] >= 'A' && s[i] <= 'Z')))
10162 goto invalid;
10163
10164 /*
10165 * Most models: xxyTkkWW (#.##c)
10166 * Ancient 570/600 and -SL lacks (#.##c)
10167 */
10168 if (s[3] == 'T' || s[3] == 'N') {
10169 *model = TPID(s[0], s[1]);
10170 *release = TPVER(s[4], s[5]);
10171 return s[2];
10172
10173 /* New models: xxxyTkkW (#.##c); T550 and some others */
10174 } else if (s[4] == 'T' || s[4] == 'N') {
10175 *model = TPID3(s[0], s[1], s[2]);
10176 *release = TPVER(s[5], s[6]);
10177 return s[3];
10178 }
10179
10180 invalid:
10181 return '\0';
10182 }
10183
find_new_ec_fwstr(const struct dmi_header *dm, void *private)10184 static void find_new_ec_fwstr(const struct dmi_header *dm, void *private)
10185 {
10186 char *ec_fw_string = (char *) private;
10187 const char *dmi_data = (const char *)dm;
10188 /*
10189 * ThinkPad Embedded Controller Program Table on newer models
10190 *
10191 * Offset | Name | Width | Description
10192 * ----------------------------------------------------
10193 * 0x00 | Type | BYTE | 0x8C
10194 * 0x01 | Length | BYTE |
10195 * 0x02 | Handle | WORD | Varies
10196 * 0x04 | Signature | BYTEx6 | ASCII for "LENOVO"
10197 * 0x0A | OEM struct offset | BYTE | 0x0B
10198 * 0x0B | OEM struct number | BYTE | 0x07, for this structure
10199 * 0x0C | OEM struct revision | BYTE | 0x01, for this format
10200 * 0x0D | ECP version ID | STR ID |
10201 * 0x0E | ECP release date | STR ID |
10202 */
10203
10204 /* Return if data structure not match */
10205 if (dm->type != 140 || dm->length < 0x0F ||
10206 memcmp(dmi_data + 4, "LENOVO", 6) != 0 ||
10207 dmi_data[0x0A] != 0x0B || dmi_data[0x0B] != 0x07 ||
10208 dmi_data[0x0C] != 0x01)
10209 return;
10210
10211 /* fwstr is the first 8byte string */
10212 strncpy(ec_fw_string, dmi_data + 0x0F, 8);
10213 }
10214
10215 /* returns 0 - probe ok, or < 0 - probe error.
10216 * Probe ok doesn't mean thinkpad found.
10217 * On error, kfree() cleanup on tp->* is not performed, caller must do it */
get_thinkpad_model_data( struct thinkpad_id_data *tp)10218 static int __must_check __init get_thinkpad_model_data(
10219 struct thinkpad_id_data *tp)
10220 {
10221 const struct dmi_device *dev = NULL;
10222 char ec_fw_string[18] = {0};
10223 char const *s;
10224 char t;
10225
10226 if (!tp)
10227 return -EINVAL;
10228
10229 memset(tp, 0, sizeof(*tp));
10230
10231 if (dmi_name_in_vendors("IBM"))
10232 tp->vendor = PCI_VENDOR_ID_IBM;
10233 else if (dmi_name_in_vendors("LENOVO"))
10234 tp->vendor = PCI_VENDOR_ID_LENOVO;
10235 else
10236 return 0;
10237
10238 s = dmi_get_system_info(DMI_BIOS_VERSION);
10239 tp->bios_version_str = kstrdup(s, GFP_KERNEL);
10240 if (s && !tp->bios_version_str)
10241 return -ENOMEM;
10242
10243 /* Really ancient ThinkPad 240X will fail this, which is fine */
10244 t = tpacpi_parse_fw_id(tp->bios_version_str,
10245 &tp->bios_model, &tp->bios_release);
10246 if (t != 'E' && t != 'C')
10247 return 0;
10248
10249 /*
10250 * ThinkPad T23 or newer, A31 or newer, R50e or newer,
10251 * X32 or newer, all Z series; Some models must have an
10252 * up-to-date BIOS or they will not be detected.
10253 *
10254 * See https://thinkwiki.org/wiki/List_of_DMI_IDs
10255 */
10256 while ((dev = dmi_find_device(DMI_DEV_TYPE_OEM_STRING, NULL, dev))) {
10257 if (sscanf(dev->name,
10258 "IBM ThinkPad Embedded Controller -[%17c",
10259 ec_fw_string) == 1) {
10260 ec_fw_string[sizeof(ec_fw_string) - 1] = 0;
10261 ec_fw_string[strcspn(ec_fw_string, " ]")] = 0;
10262 break;
10263 }
10264 }
10265
10266 /* Newer ThinkPads have different EC program info table */
10267 if (!ec_fw_string[0])
10268 dmi_walk(find_new_ec_fwstr, &ec_fw_string);
10269
10270 if (ec_fw_string[0]) {
10271 tp->ec_version_str = kstrdup(ec_fw_string, GFP_KERNEL);
10272 if (!tp->ec_version_str)
10273 return -ENOMEM;
10274
10275 t = tpacpi_parse_fw_id(ec_fw_string,
10276 &tp->ec_model, &tp->ec_release);
10277 if (t != 'H') {
10278 pr_notice("ThinkPad firmware release %s doesn't match the known patterns\n",
10279 ec_fw_string);
10280 pr_notice("please report this to %s\n", TPACPI_MAIL);
10281 }
10282 }
10283
10284 s = dmi_get_system_info(DMI_PRODUCT_VERSION);
10285 if (s && !(strncasecmp(s, "ThinkPad", 8) && strncasecmp(s, "Lenovo", 6))) {
10286 tp->model_str = kstrdup(s, GFP_KERNEL);
10287 if (!tp->model_str)
10288 return -ENOMEM;
10289 } else {
10290 s = dmi_get_system_info(DMI_BIOS_VENDOR);
10291 if (s && !(strncasecmp(s, "Lenovo", 6))) {
10292 tp->model_str = kstrdup(s, GFP_KERNEL);
10293 if (!tp->model_str)
10294 return -ENOMEM;
10295 }
10296 }
10297
10298 s = dmi_get_system_info(DMI_PRODUCT_NAME);
10299 tp->nummodel_str = kstrdup(s, GFP_KERNEL);
10300 if (s && !tp->nummodel_str)
10301 return -ENOMEM;
10302
10303 return 0;
10304 }
10305
probe_for_thinkpad(void)10306 static int __init probe_for_thinkpad(void)
10307 {
10308 int is_thinkpad;
10309
10310 if (acpi_disabled)
10311 return -ENODEV;
10312
10313 /* It would be dangerous to run the driver in this case */
10314 if (!tpacpi_is_ibm() && !tpacpi_is_lenovo())
10315 return -ENODEV;
10316
10317 /*
10318 * Non-ancient models have better DMI tagging, but very old models
10319 * don't. tpacpi_is_fw_known() is a cheat to help in that case.
10320 */
10321 is_thinkpad = (thinkpad_id.model_str != NULL) ||
10322 (thinkpad_id.ec_model != 0) ||
10323 tpacpi_is_fw_known();
10324
10325 /* The EC handler is required */
10326 tpacpi_acpi_handle_locate("ec", TPACPI_ACPI_EC_HID, &ec_handle);
10327 if (!ec_handle) {
10328 if (is_thinkpad)
10329 pr_err("Not yet supported ThinkPad detected!\n");
10330 return -ENODEV;
10331 }
10332
10333 if (!is_thinkpad && !force_load)
10334 return -ENODEV;
10335
10336 return 0;
10337 }
10338
thinkpad_acpi_init_banner(void)10339 static void __init thinkpad_acpi_init_banner(void)
10340 {
10341 pr_info("%s v%s\n", TPACPI_DESC, TPACPI_VERSION);
10342 pr_info("%s\n", TPACPI_URL);
10343
10344 pr_info("ThinkPad BIOS %s, EC %s\n",
10345 (thinkpad_id.bios_version_str) ?
10346 thinkpad_id.bios_version_str : "unknown",
10347 (thinkpad_id.ec_version_str) ?
10348 thinkpad_id.ec_version_str : "unknown");
10349
10350 BUG_ON(!thinkpad_id.vendor);
10351
10352 if (thinkpad_id.model_str)
10353 pr_info("%s %s, model %s\n",
10354 (thinkpad_id.vendor == PCI_VENDOR_ID_IBM) ?
10355 "IBM" : ((thinkpad_id.vendor ==
10356 PCI_VENDOR_ID_LENOVO) ?
10357 "Lenovo" : "Unknown vendor"),
10358 thinkpad_id.model_str,
10359 (thinkpad_id.nummodel_str) ?
10360 thinkpad_id.nummodel_str : "unknown");
10361 }
10362
10363 /* Module init, exit, parameters */
10364
10365 static struct ibm_init_struct ibms_init[] __initdata = {
10366 {
10367 .data = &thinkpad_acpi_driver_data,
10368 },
10369 {
10370 .init = hotkey_init,
10371 .data = &hotkey_driver_data,
10372 },
10373 {
10374 .init = bluetooth_init,
10375 .data = &bluetooth_driver_data,
10376 },
10377 {
10378 .init = wan_init,
10379 .data = &wan_driver_data,
10380 },
10381 {
10382 .init = uwb_init,
10383 .data = &uwb_driver_data,
10384 },
10385 #ifdef CONFIG_THINKPAD_ACPI_VIDEO
10386 {
10387 .init = video_init,
10388 .base_procfs_mode = S_IRUSR,
10389 .data = &video_driver_data,
10390 },
10391 #endif
10392 {
10393 .init = kbdlight_init,
10394 .data = &kbdlight_driver_data,
10395 },
10396 {
10397 .init = light_init,
10398 .data = &light_driver_data,
10399 },
10400 {
10401 .init = cmos_init,
10402 .data = &cmos_driver_data,
10403 },
10404 {
10405 .init = led_init,
10406 .data = &led_driver_data,
10407 },
10408 {
10409 .init = beep_init,
10410 .data = &beep_driver_data,
10411 },
10412 {
10413 .init = thermal_init,
10414 .data = &thermal_driver_data,
10415 },
10416 {
10417 .init = brightness_init,
10418 .data = &brightness_driver_data,
10419 },
10420 {
10421 .init = volume_init,
10422 .data = &volume_driver_data,
10423 },
10424 {
10425 .init = fan_init,
10426 .data = &fan_driver_data,
10427 },
10428 {
10429 .init = mute_led_init,
10430 .data = &mute_led_driver_data,
10431 },
10432 {
10433 .init = tpacpi_battery_init,
10434 .data = &battery_driver_data,
10435 },
10436 {
10437 .init = tpacpi_lcdshadow_init,
10438 .data = &lcdshadow_driver_data,
10439 },
10440 {
10441 .init = tpacpi_dytc_init,
10442 .data = &dytc_driver_data,
10443 },
10444 };
10445
set_ibm_param(const char *val, const struct kernel_param *kp)10446 static int __init set_ibm_param(const char *val, const struct kernel_param *kp)
10447 {
10448 unsigned int i;
10449 struct ibm_struct *ibm;
10450
10451 if (!kp || !kp->name || !val)
10452 return -EINVAL;
10453
10454 for (i = 0; i < ARRAY_SIZE(ibms_init); i++) {
10455 ibm = ibms_init[i].data;
10456 WARN_ON(ibm == NULL);
10457
10458 if (!ibm || !ibm->name)
10459 continue;
10460
10461 if (strcmp(ibm->name, kp->name) == 0 && ibm->write) {
10462 if (strlen(val) > sizeof(ibms_init[i].param) - 1)
10463 return -ENOSPC;
10464 strcpy(ibms_init[i].param, val);
10465 return 0;
10466 }
10467 }
10468
10469 return -EINVAL;
10470 }
10471
10472 module_param(experimental, int, 0444);
10473 MODULE_PARM_DESC(experimental,
10474 "Enables experimental features when non-zero");
10475
10476 module_param_named(debug, dbg_level, uint, 0);
10477 MODULE_PARM_DESC(debug, "Sets debug level bit-mask");
10478
10479 module_param(force_load, bool, 0444);
10480 MODULE_PARM_DESC(force_load,
10481 "Attempts to load the driver even on a mis-identified ThinkPad when true");
10482
10483 module_param_named(fan_control, fan_control_allowed, bool, 0444);
10484 MODULE_PARM_DESC(fan_control,
10485 "Enables setting fan parameters features when true");
10486
10487 module_param_named(brightness_mode, brightness_mode, uint, 0444);
10488 MODULE_PARM_DESC(brightness_mode,
10489 "Selects brightness control strategy: 0=auto, 1=EC, 2=UCMS, 3=EC+NVRAM");
10490
10491 module_param(brightness_enable, uint, 0444);
10492 MODULE_PARM_DESC(brightness_enable,
10493 "Enables backlight control when 1, disables when 0");
10494
10495 #ifdef CONFIG_THINKPAD_ACPI_ALSA_SUPPORT
10496 module_param_named(volume_mode, volume_mode, uint, 0444);
10497 MODULE_PARM_DESC(volume_mode,
10498 "Selects volume control strategy: 0=auto, 1=EC, 2=N/A, 3=EC+NVRAM");
10499
10500 module_param_named(volume_capabilities, volume_capabilities, uint, 0444);
10501 MODULE_PARM_DESC(volume_capabilities,
10502 "Selects the mixer capabilities: 0=auto, 1=volume and mute, 2=mute only");
10503
10504 module_param_named(volume_control, volume_control_allowed, bool, 0444);
10505 MODULE_PARM_DESC(volume_control,
10506 "Enables software override for the console audio control when true");
10507
10508 module_param_named(software_mute, software_mute_requested, bool, 0444);
10509 MODULE_PARM_DESC(software_mute,
10510 "Request full software mute control");
10511
10512 /* ALSA module API parameters */
10513 module_param_named(index, alsa_index, int, 0444);
10514 MODULE_PARM_DESC(index, "ALSA index for the ACPI EC Mixer");
10515 module_param_named(id, alsa_id, charp, 0444);
10516 MODULE_PARM_DESC(id, "ALSA id for the ACPI EC Mixer");
10517 module_param_named(enable, alsa_enable, bool, 0444);
10518 MODULE_PARM_DESC(enable, "Enable the ALSA interface for the ACPI EC Mixer");
10519 #endif /* CONFIG_THINKPAD_ACPI_ALSA_SUPPORT */
10520
10521 /* The module parameter can't be read back, that's why 0 is used here */
10522 #define TPACPI_PARAM(feature) \
10523 module_param_call(feature, set_ibm_param, NULL, NULL, 0); \
10524 MODULE_PARM_DESC(feature, "Simulates thinkpad-acpi procfs command at module load, see documentation")
10525
10526 TPACPI_PARAM(hotkey);
10527 TPACPI_PARAM(bluetooth);
10528 TPACPI_PARAM(video);
10529 TPACPI_PARAM(light);
10530 TPACPI_PARAM(cmos);
10531 TPACPI_PARAM(led);
10532 TPACPI_PARAM(beep);
10533 TPACPI_PARAM(brightness);
10534 TPACPI_PARAM(volume);
10535 TPACPI_PARAM(fan);
10536
10537 #ifdef CONFIG_THINKPAD_ACPI_DEBUGFACILITIES
10538 module_param(dbg_wlswemul, uint, 0444);
10539 MODULE_PARM_DESC(dbg_wlswemul, "Enables WLSW emulation");
10540 module_param_named(wlsw_state, tpacpi_wlsw_emulstate, bool, 0);
10541 MODULE_PARM_DESC(wlsw_state,
10542 "Initial state of the emulated WLSW switch");
10543
10544 module_param(dbg_bluetoothemul, uint, 0444);
10545 MODULE_PARM_DESC(dbg_bluetoothemul, "Enables bluetooth switch emulation");
10546 module_param_named(bluetooth_state, tpacpi_bluetooth_emulstate, bool, 0);
10547 MODULE_PARM_DESC(bluetooth_state,
10548 "Initial state of the emulated bluetooth switch");
10549
10550 module_param(dbg_wwanemul, uint, 0444);
10551 MODULE_PARM_DESC(dbg_wwanemul, "Enables WWAN switch emulation");
10552 module_param_named(wwan_state, tpacpi_wwan_emulstate, bool, 0);
10553 MODULE_PARM_DESC(wwan_state,
10554 "Initial state of the emulated WWAN switch");
10555
10556 module_param(dbg_uwbemul, uint, 0444);
10557 MODULE_PARM_DESC(dbg_uwbemul, "Enables UWB switch emulation");
10558 module_param_named(uwb_state, tpacpi_uwb_emulstate, bool, 0);
10559 MODULE_PARM_DESC(uwb_state,
10560 "Initial state of the emulated UWB switch");
10561 #endif
10562
thinkpad_acpi_module_exit(void)10563 static void thinkpad_acpi_module_exit(void)
10564 {
10565 struct ibm_struct *ibm, *itmp;
10566
10567 tpacpi_lifecycle = TPACPI_LIFE_EXITING;
10568
10569 list_for_each_entry_safe_reverse(ibm, itmp,
10570 &tpacpi_all_drivers,
10571 all_drivers) {
10572 ibm_exit(ibm);
10573 }
10574
10575 dbg_printk(TPACPI_DBG_INIT, "finished subdriver exit path...\n");
10576
10577 if (tpacpi_inputdev) {
10578 if (tp_features.input_device_registered)
10579 input_unregister_device(tpacpi_inputdev);
10580 else
10581 input_free_device(tpacpi_inputdev);
10582 kfree(hotkey_keycode_map);
10583 }
10584
10585 if (tpacpi_hwmon)
10586 hwmon_device_unregister(tpacpi_hwmon);
10587
10588 if (tpacpi_sensors_pdev)
10589 platform_device_unregister(tpacpi_sensors_pdev);
10590 if (tpacpi_pdev)
10591 platform_device_unregister(tpacpi_pdev);
10592
10593 if (tp_features.sensors_pdrv_attrs_registered)
10594 tpacpi_remove_driver_attributes(&tpacpi_hwmon_pdriver.driver);
10595 if (tp_features.platform_drv_attrs_registered)
10596 tpacpi_remove_driver_attributes(&tpacpi_pdriver.driver);
10597
10598 if (tp_features.sensors_pdrv_registered)
10599 platform_driver_unregister(&tpacpi_hwmon_pdriver);
10600
10601 if (tp_features.platform_drv_registered)
10602 platform_driver_unregister(&tpacpi_pdriver);
10603
10604 if (proc_dir)
10605 remove_proc_entry(TPACPI_PROC_DIR, acpi_root_dir);
10606
10607 if (tpacpi_wq)
10608 destroy_workqueue(tpacpi_wq);
10609
10610 kfree(thinkpad_id.bios_version_str);
10611 kfree(thinkpad_id.ec_version_str);
10612 kfree(thinkpad_id.model_str);
10613 kfree(thinkpad_id.nummodel_str);
10614 }
10615
10616
thinkpad_acpi_module_init(void)10617 static int __init thinkpad_acpi_module_init(void)
10618 {
10619 int ret, i;
10620
10621 tpacpi_lifecycle = TPACPI_LIFE_INIT;
10622
10623 /* Driver-level probe */
10624
10625 ret = get_thinkpad_model_data(&thinkpad_id);
10626 if (ret) {
10627 pr_err("unable to get DMI data: %d\n", ret);
10628 thinkpad_acpi_module_exit();
10629 return ret;
10630 }
10631 ret = probe_for_thinkpad();
10632 if (ret) {
10633 thinkpad_acpi_module_exit();
10634 return ret;
10635 }
10636
10637 /* Driver initialization */
10638
10639 thinkpad_acpi_init_banner();
10640 tpacpi_check_outdated_fw();
10641
10642 TPACPI_ACPIHANDLE_INIT(ecrd);
10643 TPACPI_ACPIHANDLE_INIT(ecwr);
10644
10645 tpacpi_wq = create_singlethread_workqueue(TPACPI_WORKQUEUE_NAME);
10646 if (!tpacpi_wq) {
10647 thinkpad_acpi_module_exit();
10648 return -ENOMEM;
10649 }
10650
10651 proc_dir = proc_mkdir(TPACPI_PROC_DIR, acpi_root_dir);
10652 if (!proc_dir) {
10653 pr_err("unable to create proc dir " TPACPI_PROC_DIR "\n");
10654 thinkpad_acpi_module_exit();
10655 return -ENODEV;
10656 }
10657
10658 ret = platform_driver_register(&tpacpi_pdriver);
10659 if (ret) {
10660 pr_err("unable to register main platform driver\n");
10661 thinkpad_acpi_module_exit();
10662 return ret;
10663 }
10664 tp_features.platform_drv_registered = 1;
10665
10666 ret = platform_driver_register(&tpacpi_hwmon_pdriver);
10667 if (ret) {
10668 pr_err("unable to register hwmon platform driver\n");
10669 thinkpad_acpi_module_exit();
10670 return ret;
10671 }
10672 tp_features.sensors_pdrv_registered = 1;
10673
10674 ret = tpacpi_create_driver_attributes(&tpacpi_pdriver.driver);
10675 if (!ret) {
10676 tp_features.platform_drv_attrs_registered = 1;
10677 ret = tpacpi_create_driver_attributes(
10678 &tpacpi_hwmon_pdriver.driver);
10679 }
10680 if (ret) {
10681 pr_err("unable to create sysfs driver attributes\n");
10682 thinkpad_acpi_module_exit();
10683 return ret;
10684 }
10685 tp_features.sensors_pdrv_attrs_registered = 1;
10686
10687
10688 /* Device initialization */
10689 tpacpi_pdev = platform_device_register_simple(TPACPI_DRVR_NAME, -1,
10690 NULL, 0);
10691 if (IS_ERR(tpacpi_pdev)) {
10692 ret = PTR_ERR(tpacpi_pdev);
10693 tpacpi_pdev = NULL;
10694 pr_err("unable to register platform device\n");
10695 thinkpad_acpi_module_exit();
10696 return ret;
10697 }
10698 tpacpi_sensors_pdev = platform_device_register_simple(
10699 TPACPI_HWMON_DRVR_NAME,
10700 -1, NULL, 0);
10701 if (IS_ERR(tpacpi_sensors_pdev)) {
10702 ret = PTR_ERR(tpacpi_sensors_pdev);
10703 tpacpi_sensors_pdev = NULL;
10704 pr_err("unable to register hwmon platform device\n");
10705 thinkpad_acpi_module_exit();
10706 return ret;
10707 }
10708 tp_features.sensors_pdev_attrs_registered = 1;
10709 tpacpi_hwmon = hwmon_device_register_with_groups(
10710 &tpacpi_sensors_pdev->dev, TPACPI_NAME, NULL, NULL);
10711
10712 if (IS_ERR(tpacpi_hwmon)) {
10713 ret = PTR_ERR(tpacpi_hwmon);
10714 tpacpi_hwmon = NULL;
10715 pr_err("unable to register hwmon device\n");
10716 thinkpad_acpi_module_exit();
10717 return ret;
10718 }
10719 mutex_init(&tpacpi_inputdev_send_mutex);
10720 tpacpi_inputdev = input_allocate_device();
10721 if (!tpacpi_inputdev) {
10722 thinkpad_acpi_module_exit();
10723 return -ENOMEM;
10724 } else {
10725 /* Prepare input device, but don't register */
10726 tpacpi_inputdev->name = "ThinkPad Extra Buttons";
10727 tpacpi_inputdev->phys = TPACPI_DRVR_NAME "/input0";
10728 tpacpi_inputdev->id.bustype = BUS_HOST;
10729 tpacpi_inputdev->id.vendor = thinkpad_id.vendor;
10730 tpacpi_inputdev->id.product = TPACPI_HKEY_INPUT_PRODUCT;
10731 tpacpi_inputdev->id.version = TPACPI_HKEY_INPUT_VERSION;
10732 tpacpi_inputdev->dev.parent = &tpacpi_pdev->dev;
10733 }
10734
10735 /* Init subdriver dependencies */
10736 tpacpi_detect_brightness_capabilities();
10737
10738 /* Init subdrivers */
10739 for (i = 0; i < ARRAY_SIZE(ibms_init); i++) {
10740 ret = ibm_init(&ibms_init[i]);
10741 if (ret >= 0 && *ibms_init[i].param)
10742 ret = ibms_init[i].data->write(ibms_init[i].param);
10743 if (ret < 0) {
10744 thinkpad_acpi_module_exit();
10745 return ret;
10746 }
10747 }
10748
10749 tpacpi_lifecycle = TPACPI_LIFE_RUNNING;
10750
10751 ret = input_register_device(tpacpi_inputdev);
10752 if (ret < 0) {
10753 pr_err("unable to register input device\n");
10754 thinkpad_acpi_module_exit();
10755 return ret;
10756 } else {
10757 tp_features.input_device_registered = 1;
10758 }
10759
10760 return 0;
10761 }
10762
10763 MODULE_ALIAS(TPACPI_DRVR_SHORTNAME);
10764
10765 /*
10766 * This will autoload the driver in almost every ThinkPad
10767 * in widespread use.
10768 *
10769 * Only _VERY_ old models, like the 240, 240x and 570 lack
10770 * the HKEY event interface.
10771 */
10772 MODULE_DEVICE_TABLE(acpi, ibm_htk_device_ids);
10773
10774 /*
10775 * DMI matching for module autoloading
10776 *
10777 * See https://thinkwiki.org/wiki/List_of_DMI_IDs
10778 * See https://thinkwiki.org/wiki/BIOS_Upgrade_Downloads
10779 *
10780 * Only models listed in thinkwiki will be supported, so add yours
10781 * if it is not there yet.
10782 */
10783 #define IBM_BIOS_MODULE_ALIAS(__type) \
10784 MODULE_ALIAS("dmi:bvnIBM:bvr" __type "ET??WW*")
10785
10786 /* Ancient thinkpad BIOSes have to be identified by
10787 * BIOS type or model number, and there are far less
10788 * BIOS types than model numbers... */
10789 IBM_BIOS_MODULE_ALIAS("I[MU]"); /* 570, 570e */
10790
10791 MODULE_AUTHOR("Borislav Deianov <borislav@users.sf.net>");
10792 MODULE_AUTHOR("Henrique de Moraes Holschuh <hmh@hmh.eng.br>");
10793 MODULE_DESCRIPTION(TPACPI_DESC);
10794 MODULE_VERSION(TPACPI_VERSION);
10795 MODULE_LICENSE("GPL");
10796
10797 module_init(thinkpad_acpi_module_init);
10798 module_exit(thinkpad_acpi_module_exit);
10799