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CommitLineData
1da177e4 1/*
1da177e4
LT
2 * Written for linux by Johan Myreen as a translation from
3 * the assembly version by Linus (with diacriticals added)
4 *
5 * Some additional features added by Christoph Niemann (ChN), March 1993
6 *
7 * Loadable keymaps by Risto Kankkunen, May 1993
8 *
9 * Diacriticals redone & other small changes, aeb@cwi.nl, June 1993
10 * Added decr/incr_console, dynamic keymaps, Unicode support,
11 * dynamic function/string keys, led setting, Sept 1994
12 * `Sticky' modifier keys, 951006.
13 *
14 * 11-11-96: SAK should now work in the raw mode (Martin Mares)
fe1e8604 15 *
1da177e4
LT
16 * Modified to provide 'generic' keyboard support by Hamish Macdonald
17 * Merge with the m68k keyboard driver and split-off of the PC low-level
18 * parts by Geert Uytterhoeven, May 1997
19 *
20 * 27-05-97: Added support for the Magic SysRq Key (Martin Mares)
21 * 30-07-98: Dead keys redone, aeb@cwi.nl.
22 * 21-08-02: Converted to input API, major cleanup. (Vojtech Pavlik)
23 */
24
9272e9a2
DT
25#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
26
759448f4 27#include <linux/consolemap.h>
1da177e4
LT
28#include <linux/module.h>
29#include <linux/sched.h>
30#include <linux/tty.h>
31#include <linux/tty_flip.h>
32#include <linux/mm.h>
33#include <linux/string.h>
34#include <linux/init.h>
35#include <linux/slab.h>
52355522 36#include <linux/leds.h>
1da177e4
LT
37
38#include <linux/kbd_kern.h>
39#include <linux/kbd_diacr.h>
40#include <linux/vt_kern.h>
1da177e4 41#include <linux/input.h>
83cc5ed3 42#include <linux/reboot.h>
41ab4396 43#include <linux/notifier.h>
b39b0440 44#include <linux/jiffies.h>
6623d640 45#include <linux/uaccess.h>
1da177e4 46
98c2b373
GU
47#include <asm/irq_regs.h>
48
1da177e4
LT
49extern void ctrl_alt_del(void);
50
51/*
52 * Exported functions/variables
53 */
54
55#define KBD_DEFMODE ((1 << VC_REPEAT) | (1 << VC_META))
56
b2d0b7a0
JC
57#if defined(CONFIG_X86) || defined(CONFIG_PARISC)
58#include <asm/kbdleds.h>
1da177e4 59#else
b2d0b7a0
JC
60static inline int kbd_defleds(void)
61{
62 return 0;
63}
1da177e4
LT
64#endif
65
66#define KBD_DEFLOCK 0
67
1da177e4
LT
68/*
69 * Handler Tables.
70 */
71
72#define K_HANDLERS\
73 k_self, k_fn, k_spec, k_pad,\
74 k_dead, k_cons, k_cur, k_shift,\
75 k_meta, k_ascii, k_lock, k_lowercase,\
b9ec4e10 76 k_slock, k_dead2, k_brl, k_ignore
1da177e4 77
fe1e8604 78typedef void (k_handler_fn)(struct vc_data *vc, unsigned char value,
7d12e780 79 char up_flag);
1da177e4 80static k_handler_fn K_HANDLERS;
97f5f0cd 81static k_handler_fn *k_handler[16] = { K_HANDLERS };
1da177e4
LT
82
83#define FN_HANDLERS\
fe1e8604
DT
84 fn_null, fn_enter, fn_show_ptregs, fn_show_mem,\
85 fn_show_state, fn_send_intr, fn_lastcons, fn_caps_toggle,\
86 fn_num, fn_hold, fn_scroll_forw, fn_scroll_back,\
87 fn_boot_it, fn_caps_on, fn_compose, fn_SAK,\
88 fn_dec_console, fn_inc_console, fn_spawn_con, fn_bare_num
1da177e4 89
7d12e780 90typedef void (fn_handler_fn)(struct vc_data *vc);
1da177e4
LT
91static fn_handler_fn FN_HANDLERS;
92static fn_handler_fn *fn_handler[] = { FN_HANDLERS };
93
94/*
95 * Variables exported for vt_ioctl.c
96 */
97
81af8d67 98struct vt_spawn_console vt_spawn_con = {
ccc94256 99 .lock = __SPIN_LOCK_UNLOCKED(vt_spawn_con.lock),
81af8d67
EB
100 .pid = NULL,
101 .sig = 0,
102};
1da177e4 103
1da177e4
LT
104
105/*
106 * Internal Data.
107 */
108
079c9534
AC
109static struct kbd_struct kbd_table[MAX_NR_CONSOLES];
110static struct kbd_struct *kbd = kbd_table;
111
112/* maximum values each key_handler can handle */
113static const int max_vals[] = {
114 255, ARRAY_SIZE(func_table) - 1, ARRAY_SIZE(fn_handler) - 1, NR_PAD - 1,
115 NR_DEAD - 1, 255, 3, NR_SHIFT - 1, 255, NR_ASCII - 1, NR_LOCK - 1,
116 255, NR_LOCK - 1, 255, NR_BRL - 1
117};
118
119static const int NR_TYPES = ARRAY_SIZE(max_vals);
120
1da177e4 121static struct input_handler kbd_handler;
21cea58e 122static DEFINE_SPINLOCK(kbd_event_lock);
3db1ddb7 123static DEFINE_SPINLOCK(led_lock);
7b19ada2 124static unsigned long key_down[BITS_TO_LONGS(KEY_CNT)]; /* keyboard key bitmap */
1da177e4 125static unsigned char shift_down[NR_SHIFT]; /* shift state counters.. */
e0785572 126static bool dead_key_next;
1da177e4 127static int npadch = -1; /* -1 or number assembled on pad */
b9ec4e10 128static unsigned int diacr;
1da177e4
LT
129static char rep; /* flag telling character repeat */
130
079c9534
AC
131static int shift_state = 0;
132
1da177e4
LT
133static unsigned char ledstate = 0xff; /* undefined */
134static unsigned char ledioctl;
135
41ab4396
ST
136/*
137 * Notifier list for console keyboard events
138 */
139static ATOMIC_NOTIFIER_HEAD(keyboard_notifier_list);
140
141int register_keyboard_notifier(struct notifier_block *nb)
142{
143 return atomic_notifier_chain_register(&keyboard_notifier_list, nb);
144}
145EXPORT_SYMBOL_GPL(register_keyboard_notifier);
146
147int unregister_keyboard_notifier(struct notifier_block *nb)
148{
149 return atomic_notifier_chain_unregister(&keyboard_notifier_list, nb);
150}
151EXPORT_SYMBOL_GPL(unregister_keyboard_notifier);
152
1da177e4 153/*
c8e4c772
MR
154 * Translation of scancodes to keycodes. We set them on only the first
155 * keyboard in the list that accepts the scancode and keycode.
156 * Explanation for not choosing the first attached keyboard anymore:
157 * USB keyboards for example have two event devices: one for all "normal"
158 * keys and one for extra function keys (like "volume up", "make coffee",
159 * etc.). So this means that scancodes for the extra function keys won't
160 * be valid for the first event device, but will be for the second.
1da177e4 161 */
66d2a595
DT
162
163struct getset_keycode_data {
8613e4c2 164 struct input_keymap_entry ke;
66d2a595
DT
165 int error;
166};
167
168static int getkeycode_helper(struct input_handle *handle, void *data)
169{
170 struct getset_keycode_data *d = data;
171
8613e4c2 172 d->error = input_get_keycode(handle->dev, &d->ke);
66d2a595
DT
173
174 return d->error == 0; /* stop as soon as we successfully get one */
175}
176
079c9534 177static int getkeycode(unsigned int scancode)
1da177e4 178{
8613e4c2
MCC
179 struct getset_keycode_data d = {
180 .ke = {
181 .flags = 0,
182 .len = sizeof(scancode),
183 .keycode = 0,
184 },
185 .error = -ENODEV,
186 };
187
188 memcpy(d.ke.scancode, &scancode, sizeof(scancode));
c8e4c772 189
66d2a595 190 input_handler_for_each_handle(&kbd_handler, &d, getkeycode_helper);
1da177e4 191
8613e4c2 192 return d.error ?: d.ke.keycode;
66d2a595
DT
193}
194
195static int setkeycode_helper(struct input_handle *handle, void *data)
196{
197 struct getset_keycode_data *d = data;
198
8613e4c2 199 d->error = input_set_keycode(handle->dev, &d->ke);
66d2a595
DT
200
201 return d->error == 0; /* stop as soon as we successfully set one */
1da177e4
LT
202}
203
079c9534 204static int setkeycode(unsigned int scancode, unsigned int keycode)
1da177e4 205{
8613e4c2
MCC
206 struct getset_keycode_data d = {
207 .ke = {
208 .flags = 0,
209 .len = sizeof(scancode),
210 .keycode = keycode,
211 },
212 .error = -ENODEV,
213 };
214
215 memcpy(d.ke.scancode, &scancode, sizeof(scancode));
c8e4c772 216
66d2a595 217 input_handler_for_each_handle(&kbd_handler, &d, setkeycode_helper);
1da177e4 218
66d2a595 219 return d.error;
1da177e4
LT
220}
221
222/*
18f7ad59
DT
223 * Making beeps and bells. Note that we prefer beeps to bells, but when
224 * shutting the sound off we do both.
1da177e4 225 */
66d2a595
DT
226
227static int kd_sound_helper(struct input_handle *handle, void *data)
1da177e4 228{
66d2a595
DT
229 unsigned int *hz = data;
230 struct input_dev *dev = handle->dev;
1da177e4 231
66d2a595 232 if (test_bit(EV_SND, dev->evbit)) {
18f7ad59 233 if (test_bit(SND_TONE, dev->sndbit)) {
66d2a595 234 input_inject_event(handle, EV_SND, SND_TONE, *hz);
18f7ad59
DT
235 if (*hz)
236 return 0;
237 }
238 if (test_bit(SND_BELL, dev->sndbit))
66d2a595 239 input_inject_event(handle, EV_SND, SND_BELL, *hz ? 1 : 0);
1da177e4 240 }
66d2a595
DT
241
242 return 0;
243}
244
245static void kd_nosound(unsigned long ignored)
246{
247 static unsigned int zero;
248
249 input_handler_for_each_handle(&kbd_handler, &zero, kd_sound_helper);
1da177e4
LT
250}
251
8d06afab 252static DEFINE_TIMER(kd_mksound_timer, kd_nosound, 0, 0);
1da177e4
LT
253
254void kd_mksound(unsigned int hz, unsigned int ticks)
255{
66d2a595 256 del_timer_sync(&kd_mksound_timer);
1da177e4 257
66d2a595 258 input_handler_for_each_handle(&kbd_handler, &hz, kd_sound_helper);
1da177e4 259
66d2a595
DT
260 if (hz && ticks)
261 mod_timer(&kd_mksound_timer, jiffies + ticks);
1da177e4 262}
f7511d5f 263EXPORT_SYMBOL(kd_mksound);
1da177e4
LT
264
265/*
266 * Setting the keyboard rate.
267 */
268
66d2a595 269static int kbd_rate_helper(struct input_handle *handle, void *data)
1da177e4 270{
66d2a595 271 struct input_dev *dev = handle->dev;
9d329c1c 272 struct kbd_repeat *rpt = data;
66d2a595
DT
273
274 if (test_bit(EV_REP, dev->evbit)) {
275
9d329c1c 276 if (rpt[0].delay > 0)
66d2a595 277 input_inject_event(handle,
9d329c1c
MR
278 EV_REP, REP_DELAY, rpt[0].delay);
279 if (rpt[0].period > 0)
66d2a595 280 input_inject_event(handle,
9d329c1c 281 EV_REP, REP_PERIOD, rpt[0].period);
66d2a595 282
9d329c1c
MR
283 rpt[1].delay = dev->rep[REP_DELAY];
284 rpt[1].period = dev->rep[REP_PERIOD];
1da177e4 285 }
66d2a595
DT
286
287 return 0;
288}
289
9d329c1c 290int kbd_rate(struct kbd_repeat *rpt)
66d2a595 291{
9d329c1c 292 struct kbd_repeat data[2] = { *rpt };
66d2a595
DT
293
294 input_handler_for_each_handle(&kbd_handler, data, kbd_rate_helper);
9d329c1c 295 *rpt = data[1]; /* Copy currently used settings */
66d2a595 296
1da177e4
LT
297 return 0;
298}
299
300/*
301 * Helper Functions.
302 */
303static void put_queue(struct vc_data *vc, int ch)
304{
92a19f9c 305 tty_insert_flip_char(&vc->port, ch, 0);
6732c8bb 306 tty_schedule_flip(&vc->port);
1da177e4
LT
307}
308
309static void puts_queue(struct vc_data *vc, char *cp)
310{
1da177e4 311 while (*cp) {
92a19f9c 312 tty_insert_flip_char(&vc->port, *cp, 0);
1da177e4
LT
313 cp++;
314 }
6732c8bb 315 tty_schedule_flip(&vc->port);
1da177e4
LT
316}
317
318static void applkey(struct vc_data *vc, int key, char mode)
319{
320 static char buf[] = { 0x1b, 'O', 0x00, 0x00 };
321
322 buf[1] = (mode ? 'O' : '[');
323 buf[2] = key;
324 puts_queue(vc, buf);
325}
326
327/*
328 * Many other routines do put_queue, but I think either
329 * they produce ASCII, or they produce some user-assigned
330 * string, and in both cases we might assume that it is
759448f4 331 * in utf-8 already.
1da177e4 332 */
759448f4 333static void to_utf8(struct vc_data *vc, uint c)
1da177e4
LT
334{
335 if (c < 0x80)
336 /* 0******* */
337 put_queue(vc, c);
fe1e8604 338 else if (c < 0x800) {
1da177e4 339 /* 110***** 10****** */
fe1e8604 340 put_queue(vc, 0xc0 | (c >> 6));
1da177e4 341 put_queue(vc, 0x80 | (c & 0x3f));
e0785572
DT
342 } else if (c < 0x10000) {
343 if (c >= 0xD800 && c < 0xE000)
759448f4
JE
344 return;
345 if (c == 0xFFFF)
346 return;
1da177e4
LT
347 /* 1110**** 10****** 10****** */
348 put_queue(vc, 0xe0 | (c >> 12));
349 put_queue(vc, 0x80 | ((c >> 6) & 0x3f));
350 put_queue(vc, 0x80 | (c & 0x3f));
e0785572 351 } else if (c < 0x110000) {
759448f4
JE
352 /* 11110*** 10****** 10****** 10****** */
353 put_queue(vc, 0xf0 | (c >> 18));
354 put_queue(vc, 0x80 | ((c >> 12) & 0x3f));
355 put_queue(vc, 0x80 | ((c >> 6) & 0x3f));
356 put_queue(vc, 0x80 | (c & 0x3f));
fe1e8604 357 }
1da177e4
LT
358}
359
fe1e8604 360/*
1da177e4
LT
361 * Called after returning from RAW mode or when changing consoles - recompute
362 * shift_down[] and shift_state from key_down[] maybe called when keymap is
079c9534
AC
363 * undefined, so that shiftkey release is seen. The caller must hold the
364 * kbd_event_lock.
1da177e4 365 */
079c9534
AC
366
367static void do_compute_shiftstate(void)
1da177e4
LT
368{
369 unsigned int i, j, k, sym, val;
370
371 shift_state = 0;
372 memset(shift_down, 0, sizeof(shift_down));
fe1e8604 373
1da177e4
LT
374 for (i = 0; i < ARRAY_SIZE(key_down); i++) {
375
376 if (!key_down[i])
377 continue;
378
379 k = i * BITS_PER_LONG;
380
381 for (j = 0; j < BITS_PER_LONG; j++, k++) {
382
383 if (!test_bit(k, key_down))
384 continue;
385
386 sym = U(key_maps[0][k]);
387 if (KTYP(sym) != KT_SHIFT && KTYP(sym) != KT_SLOCK)
388 continue;
389
390 val = KVAL(sym);
391 if (val == KVAL(K_CAPSSHIFT))
392 val = KVAL(K_SHIFT);
393
394 shift_down[val]++;
395 shift_state |= (1 << val);
396 }
397 }
398}
399
079c9534
AC
400/* We still have to export this method to vt.c */
401void compute_shiftstate(void)
402{
403 unsigned long flags;
404 spin_lock_irqsave(&kbd_event_lock, flags);
405 do_compute_shiftstate();
406 spin_unlock_irqrestore(&kbd_event_lock, flags);
407}
408
1da177e4
LT
409/*
410 * We have a combining character DIACR here, followed by the character CH.
411 * If the combination occurs in the table, return the corresponding value.
412 * Otherwise, if CH is a space or equals DIACR, return DIACR.
413 * Otherwise, conclude that DIACR was not combining after all,
414 * queue it and return CH.
415 */
b9ec4e10 416static unsigned int handle_diacr(struct vc_data *vc, unsigned int ch)
1da177e4 417{
b9ec4e10 418 unsigned int d = diacr;
1da177e4
LT
419 unsigned int i;
420
421 diacr = 0;
422
b9ec4e10
ST
423 if ((d & ~0xff) == BRL_UC_ROW) {
424 if ((ch & ~0xff) == BRL_UC_ROW)
425 return d | ch;
426 } else {
427 for (i = 0; i < accent_table_size; i++)
428 if (accent_table[i].diacr == d && accent_table[i].base == ch)
429 return accent_table[i].result;
1da177e4
LT
430 }
431
b9ec4e10 432 if (ch == ' ' || ch == (BRL_UC_ROW|0) || ch == d)
1da177e4
LT
433 return d;
434
b9ec4e10 435 if (kbd->kbdmode == VC_UNICODE)
04c71976
ST
436 to_utf8(vc, d);
437 else {
438 int c = conv_uni_to_8bit(d);
439 if (c != -1)
440 put_queue(vc, c);
441 }
b9ec4e10 442
1da177e4
LT
443 return ch;
444}
445
446/*
447 * Special function handlers
448 */
7d12e780 449static void fn_enter(struct vc_data *vc)
1da177e4
LT
450{
451 if (diacr) {
b9ec4e10 452 if (kbd->kbdmode == VC_UNICODE)
04c71976
ST
453 to_utf8(vc, diacr);
454 else {
455 int c = conv_uni_to_8bit(diacr);
456 if (c != -1)
457 put_queue(vc, c);
458 }
1da177e4
LT
459 diacr = 0;
460 }
e0785572 461
1da177e4
LT
462 put_queue(vc, 13);
463 if (vc_kbd_mode(kbd, VC_CRLF))
464 put_queue(vc, 10);
465}
466
7d12e780 467static void fn_caps_toggle(struct vc_data *vc)
1da177e4
LT
468{
469 if (rep)
470 return;
e0785572 471
1da177e4
LT
472 chg_vc_kbd_led(kbd, VC_CAPSLOCK);
473}
474
7d12e780 475static void fn_caps_on(struct vc_data *vc)
1da177e4
LT
476{
477 if (rep)
478 return;
e0785572 479
1da177e4
LT
480 set_vc_kbd_led(kbd, VC_CAPSLOCK);
481}
482
7d12e780 483static void fn_show_ptregs(struct vc_data *vc)
1da177e4 484{
7d12e780 485 struct pt_regs *regs = get_irq_regs();
e0785572 486
1da177e4
LT
487 if (regs)
488 show_regs(regs);
489}
490
7d12e780 491static void fn_hold(struct vc_data *vc)
1da177e4 492{
8ce73264 493 struct tty_struct *tty = vc->port.tty;
1da177e4
LT
494
495 if (rep || !tty)
496 return;
497
498 /*
499 * Note: SCROLLOCK will be set (cleared) by stop_tty (start_tty);
500 * these routines are also activated by ^S/^Q.
501 * (And SCROLLOCK can also be set by the ioctl KDSKBLED.)
502 */
503 if (tty->stopped)
504 start_tty(tty);
505 else
506 stop_tty(tty);
507}
508
7d12e780 509static void fn_num(struct vc_data *vc)
1da177e4 510{
e0785572 511 if (vc_kbd_mode(kbd, VC_APPLIC))
1da177e4
LT
512 applkey(vc, 'P', 1);
513 else
7d12e780 514 fn_bare_num(vc);
1da177e4
LT
515}
516
517/*
518 * Bind this to Shift-NumLock if you work in application keypad mode
519 * but want to be able to change the NumLock flag.
520 * Bind this to NumLock if you prefer that the NumLock key always
521 * changes the NumLock flag.
522 */
7d12e780 523static void fn_bare_num(struct vc_data *vc)
1da177e4
LT
524{
525 if (!rep)
526 chg_vc_kbd_led(kbd, VC_NUMLOCK);
527}
528
7d12e780 529static void fn_lastcons(struct vc_data *vc)
1da177e4
LT
530{
531 /* switch to the last used console, ChN */
532 set_console(last_console);
533}
534
7d12e780 535static void fn_dec_console(struct vc_data *vc)
1da177e4
LT
536{
537 int i, cur = fg_console;
538
539 /* Currently switching? Queue this next switch relative to that. */
540 if (want_console != -1)
541 cur = want_console;
542
fe1e8604 543 for (i = cur - 1; i != cur; i--) {
1da177e4 544 if (i == -1)
fe1e8604 545 i = MAX_NR_CONSOLES - 1;
1da177e4
LT
546 if (vc_cons_allocated(i))
547 break;
548 }
549 set_console(i);
550}
551
7d12e780 552static void fn_inc_console(struct vc_data *vc)
1da177e4
LT
553{
554 int i, cur = fg_console;
555
556 /* Currently switching? Queue this next switch relative to that. */
557 if (want_console != -1)
558 cur = want_console;
559
560 for (i = cur+1; i != cur; i++) {
561 if (i == MAX_NR_CONSOLES)
562 i = 0;
563 if (vc_cons_allocated(i))
564 break;
565 }
566 set_console(i);
567}
568
7d12e780 569static void fn_send_intr(struct vc_data *vc)
1da177e4 570{
92a19f9c 571 tty_insert_flip_char(&vc->port, 0, TTY_BREAK);
6732c8bb 572 tty_schedule_flip(&vc->port);
1da177e4
LT
573}
574
7d12e780 575static void fn_scroll_forw(struct vc_data *vc)
1da177e4
LT
576{
577 scrollfront(vc, 0);
578}
579
7d12e780 580static void fn_scroll_back(struct vc_data *vc)
1da177e4
LT
581{
582 scrollback(vc, 0);
583}
584
7d12e780 585static void fn_show_mem(struct vc_data *vc)
1da177e4 586{
b2b755b5 587 show_mem(0);
1da177e4
LT
588}
589
7d12e780 590static void fn_show_state(struct vc_data *vc)
1da177e4
LT
591{
592 show_state();
593}
594
7d12e780 595static void fn_boot_it(struct vc_data *vc)
1da177e4
LT
596{
597 ctrl_alt_del();
598}
599
7d12e780 600static void fn_compose(struct vc_data *vc)
1da177e4 601{
e0785572 602 dead_key_next = true;
1da177e4
LT
603}
604
7d12e780 605static void fn_spawn_con(struct vc_data *vc)
1da177e4 606{
81af8d67
EB
607 spin_lock(&vt_spawn_con.lock);
608 if (vt_spawn_con.pid)
609 if (kill_pid(vt_spawn_con.pid, vt_spawn_con.sig, 1)) {
610 put_pid(vt_spawn_con.pid);
611 vt_spawn_con.pid = NULL;
612 }
613 spin_unlock(&vt_spawn_con.lock);
1da177e4
LT
614}
615
7d12e780 616static void fn_SAK(struct vc_data *vc)
1da177e4 617{
8b6312f4 618 struct work_struct *SAK_work = &vc_cons[fg_console].SAK_work;
8b6312f4 619 schedule_work(SAK_work);
1da177e4
LT
620}
621
7d12e780 622static void fn_null(struct vc_data *vc)
1da177e4 623{
079c9534 624 do_compute_shiftstate();
1da177e4
LT
625}
626
627/*
628 * Special key handlers
629 */
7d12e780 630static void k_ignore(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4
LT
631{
632}
633
7d12e780 634static void k_spec(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4
LT
635{
636 if (up_flag)
637 return;
638 if (value >= ARRAY_SIZE(fn_handler))
639 return;
fe1e8604 640 if ((kbd->kbdmode == VC_RAW ||
9fc3de9c
AT
641 kbd->kbdmode == VC_MEDIUMRAW ||
642 kbd->kbdmode == VC_OFF) &&
1da177e4
LT
643 value != KVAL(K_SAK))
644 return; /* SAK is allowed even in raw mode */
7d12e780 645 fn_handler[value](vc);
1da177e4
LT
646}
647
7d12e780 648static void k_lowercase(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4 649{
9272e9a2 650 pr_err("k_lowercase was called - impossible\n");
1da177e4
LT
651}
652
7d12e780 653static void k_unicode(struct vc_data *vc, unsigned int value, char up_flag)
1da177e4
LT
654{
655 if (up_flag)
656 return; /* no action, if this is a key release */
657
658 if (diacr)
659 value = handle_diacr(vc, value);
660
661 if (dead_key_next) {
e0785572 662 dead_key_next = false;
1da177e4
LT
663 diacr = value;
664 return;
665 }
b9ec4e10 666 if (kbd->kbdmode == VC_UNICODE)
04c71976
ST
667 to_utf8(vc, value);
668 else {
669 int c = conv_uni_to_8bit(value);
670 if (c != -1)
671 put_queue(vc, c);
672 }
1da177e4
LT
673}
674
675/*
676 * Handle dead key. Note that we now may have several
677 * dead keys modifying the same character. Very useful
678 * for Vietnamese.
679 */
7d12e780 680static void k_deadunicode(struct vc_data *vc, unsigned int value, char up_flag)
1da177e4
LT
681{
682 if (up_flag)
683 return;
e0785572 684
1da177e4
LT
685 diacr = (diacr ? handle_diacr(vc, value) : value);
686}
687
7d12e780 688static void k_self(struct vc_data *vc, unsigned char value, char up_flag)
b9ec4e10 689{
d2187ebd 690 k_unicode(vc, conv_8bit_to_uni(value), up_flag);
b9ec4e10
ST
691}
692
7d12e780 693static void k_dead2(struct vc_data *vc, unsigned char value, char up_flag)
b9ec4e10 694{
7d12e780 695 k_deadunicode(vc, value, up_flag);
b9ec4e10
ST
696}
697
1da177e4
LT
698/*
699 * Obsolete - for backwards compatibility only
700 */
7d12e780 701static void k_dead(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4 702{
0f5e560e 703 static const unsigned char ret_diacr[NR_DEAD] = {'`', '\'', '^', '~', '"', ',' };
e0785572
DT
704
705 k_deadunicode(vc, ret_diacr[value], up_flag);
1da177e4
LT
706}
707
7d12e780 708static void k_cons(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4
LT
709{
710 if (up_flag)
711 return;
e0785572 712
1da177e4
LT
713 set_console(value);
714}
715
7d12e780 716static void k_fn(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4 717{
1da177e4
LT
718 if (up_flag)
719 return;
e0785572
DT
720
721 if ((unsigned)value < ARRAY_SIZE(func_table)) {
1da177e4
LT
722 if (func_table[value])
723 puts_queue(vc, func_table[value]);
724 } else
9272e9a2 725 pr_err("k_fn called with value=%d\n", value);
1da177e4
LT
726}
727
7d12e780 728static void k_cur(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4 729{
e52b29c2 730 static const char cur_chars[] = "BDCA";
1da177e4
LT
731
732 if (up_flag)
733 return;
e0785572 734
1da177e4
LT
735 applkey(vc, cur_chars[value], vc_kbd_mode(kbd, VC_CKMODE));
736}
737
7d12e780 738static void k_pad(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4 739{
0f5e560e
AM
740 static const char pad_chars[] = "0123456789+-*/\015,.?()#";
741 static const char app_map[] = "pqrstuvwxylSRQMnnmPQS";
1da177e4
LT
742
743 if (up_flag)
744 return; /* no action, if this is a key release */
745
746 /* kludge... shift forces cursor/number keys */
747 if (vc_kbd_mode(kbd, VC_APPLIC) && !shift_down[KG_SHIFT]) {
748 applkey(vc, app_map[value], 1);
749 return;
750 }
751
e0785572
DT
752 if (!vc_kbd_led(kbd, VC_NUMLOCK)) {
753
1da177e4 754 switch (value) {
e0785572
DT
755 case KVAL(K_PCOMMA):
756 case KVAL(K_PDOT):
757 k_fn(vc, KVAL(K_REMOVE), 0);
758 return;
759 case KVAL(K_P0):
760 k_fn(vc, KVAL(K_INSERT), 0);
761 return;
762 case KVAL(K_P1):
763 k_fn(vc, KVAL(K_SELECT), 0);
764 return;
765 case KVAL(K_P2):
766 k_cur(vc, KVAL(K_DOWN), 0);
767 return;
768 case KVAL(K_P3):
769 k_fn(vc, KVAL(K_PGDN), 0);
770 return;
771 case KVAL(K_P4):
772 k_cur(vc, KVAL(K_LEFT), 0);
773 return;
774 case KVAL(K_P6):
775 k_cur(vc, KVAL(K_RIGHT), 0);
776 return;
777 case KVAL(K_P7):
778 k_fn(vc, KVAL(K_FIND), 0);
779 return;
780 case KVAL(K_P8):
781 k_cur(vc, KVAL(K_UP), 0);
782 return;
783 case KVAL(K_P9):
784 k_fn(vc, KVAL(K_PGUP), 0);
785 return;
786 case KVAL(K_P5):
787 applkey(vc, 'G', vc_kbd_mode(kbd, VC_APPLIC));
788 return;
1da177e4 789 }
e0785572 790 }
1da177e4
LT
791
792 put_queue(vc, pad_chars[value]);
793 if (value == KVAL(K_PENTER) && vc_kbd_mode(kbd, VC_CRLF))
794 put_queue(vc, 10);
795}
796
7d12e780 797static void k_shift(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4
LT
798{
799 int old_state = shift_state;
800
801 if (rep)
802 return;
803 /*
804 * Mimic typewriter:
805 * a CapsShift key acts like Shift but undoes CapsLock
806 */
807 if (value == KVAL(K_CAPSSHIFT)) {
808 value = KVAL(K_SHIFT);
809 if (!up_flag)
810 clr_vc_kbd_led(kbd, VC_CAPSLOCK);
811 }
812
813 if (up_flag) {
814 /*
815 * handle the case that two shift or control
816 * keys are depressed simultaneously
817 */
818 if (shift_down[value])
819 shift_down[value]--;
820 } else
821 shift_down[value]++;
822
823 if (shift_down[value])
824 shift_state |= (1 << value);
825 else
826 shift_state &= ~(1 << value);
827
828 /* kludge */
829 if (up_flag && shift_state != old_state && npadch != -1) {
830 if (kbd->kbdmode == VC_UNICODE)
759448f4 831 to_utf8(vc, npadch);
1da177e4
LT
832 else
833 put_queue(vc, npadch & 0xff);
834 npadch = -1;
835 }
836}
837
7d12e780 838static void k_meta(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4
LT
839{
840 if (up_flag)
841 return;
842
843 if (vc_kbd_mode(kbd, VC_META)) {
844 put_queue(vc, '\033');
845 put_queue(vc, value);
846 } else
847 put_queue(vc, value | 0x80);
848}
849
7d12e780 850static void k_ascii(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4
LT
851{
852 int base;
853
854 if (up_flag)
855 return;
856
857 if (value < 10) {
858 /* decimal input of code, while Alt depressed */
859 base = 10;
860 } else {
861 /* hexadecimal input of code, while AltGr depressed */
862 value -= 10;
863 base = 16;
864 }
865
866 if (npadch == -1)
867 npadch = value;
868 else
869 npadch = npadch * base + value;
870}
871
7d12e780 872static void k_lock(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4
LT
873{
874 if (up_flag || rep)
875 return;
e0785572 876
1da177e4
LT
877 chg_vc_kbd_lock(kbd, value);
878}
879
7d12e780 880static void k_slock(struct vc_data *vc, unsigned char value, char up_flag)
1da177e4 881{
7d12e780 882 k_shift(vc, value, up_flag);
1da177e4
LT
883 if (up_flag || rep)
884 return;
e0785572 885
1da177e4
LT
886 chg_vc_kbd_slock(kbd, value);
887 /* try to make Alt, oops, AltGr and such work */
888 if (!key_maps[kbd->lockstate ^ kbd->slockstate]) {
889 kbd->slockstate = 0;
890 chg_vc_kbd_slock(kbd, value);
891 }
892}
893
b9ec4e10 894/* by default, 300ms interval for combination release */
77426d72
ST
895static unsigned brl_timeout = 300;
896MODULE_PARM_DESC(brl_timeout, "Braille keys release delay in ms (0 for commit on first key release)");
897module_param(brl_timeout, uint, 0644);
898
899static unsigned brl_nbchords = 1;
900MODULE_PARM_DESC(brl_nbchords, "Number of chords that produce a braille pattern (0 for dead chords)");
901module_param(brl_nbchords, uint, 0644);
902
7d12e780 903static void k_brlcommit(struct vc_data *vc, unsigned int pattern, char up_flag)
77426d72
ST
904{
905 static unsigned long chords;
906 static unsigned committed;
907
908 if (!brl_nbchords)
7d12e780 909 k_deadunicode(vc, BRL_UC_ROW | pattern, up_flag);
77426d72
ST
910 else {
911 committed |= pattern;
912 chords++;
913 if (chords == brl_nbchords) {
7d12e780 914 k_unicode(vc, BRL_UC_ROW | committed, up_flag);
77426d72
ST
915 chords = 0;
916 committed = 0;
917 }
918 }
919}
920
7d12e780 921static void k_brl(struct vc_data *vc, unsigned char value, char up_flag)
b9ec4e10 922{
e0785572 923 static unsigned pressed, committing;
b9ec4e10
ST
924 static unsigned long releasestart;
925
926 if (kbd->kbdmode != VC_UNICODE) {
927 if (!up_flag)
e620e548 928 pr_warn("keyboard mode must be unicode for braille patterns\n");
b9ec4e10
ST
929 return;
930 }
931
932 if (!value) {
7d12e780 933 k_unicode(vc, BRL_UC_ROW, up_flag);
b9ec4e10
ST
934 return;
935 }
936
937 if (value > 8)
938 return;
939
e0785572 940 if (!up_flag) {
b9ec4e10
ST
941 pressed |= 1 << (value - 1);
942 if (!brl_timeout)
943 committing = pressed;
e0785572
DT
944 } else if (brl_timeout) {
945 if (!committing ||
946 time_after(jiffies,
947 releasestart + msecs_to_jiffies(brl_timeout))) {
948 committing = pressed;
949 releasestart = jiffies;
950 }
951 pressed &= ~(1 << (value - 1));
952 if (!pressed && committing) {
953 k_brlcommit(vc, committing, 0);
954 committing = 0;
955 }
956 } else {
957 if (committing) {
958 k_brlcommit(vc, committing, 0);
959 committing = 0;
960 }
961 pressed &= ~(1 << (value - 1));
b9ec4e10
ST
962 }
963}
964
52355522
ST
965#if IS_ENABLED(CONFIG_INPUT_LEDS) && IS_ENABLED(CONFIG_LEDS_TRIGGERS)
966
967struct kbd_led_trigger {
968 struct led_trigger trigger;
969 unsigned int mask;
970};
971
972static void kbd_led_trigger_activate(struct led_classdev *cdev)
973{
974 struct kbd_led_trigger *trigger =
975 container_of(cdev->trigger, struct kbd_led_trigger, trigger);
976
977 tasklet_disable(&keyboard_tasklet);
978 if (ledstate != 0xff)
979 led_trigger_event(&trigger->trigger,
980 ledstate & trigger->mask ?
981 LED_FULL : LED_OFF);
982 tasklet_enable(&keyboard_tasklet);
983}
984
985#define KBD_LED_TRIGGER(_led_bit, _name) { \
986 .trigger = { \
987 .name = _name, \
988 .activate = kbd_led_trigger_activate, \
989 }, \
990 .mask = BIT(_led_bit), \
991 }
992
993static struct kbd_led_trigger kbd_led_triggers[] = {
994 KBD_LED_TRIGGER(VC_SCROLLOCK, "kbd-scrollock"),
995 KBD_LED_TRIGGER(VC_NUMLOCK, "kbd-numlock"),
996 KBD_LED_TRIGGER(VC_CAPSLOCK, "kbd-capslock"),
997 KBD_LED_TRIGGER(VC_KANALOCK, "kbd-kanalock"),
998};
999
1000static void kbd_propagate_led_state(unsigned int old_state,
1001 unsigned int new_state)
1002{
1003 struct kbd_led_trigger *trigger;
1004 unsigned int changed = old_state ^ new_state;
1005 int i;
1006
1007 for (i = 0; i < ARRAY_SIZE(kbd_led_triggers); i++) {
1008 trigger = &kbd_led_triggers[i];
1009
1010 if (changed & trigger->mask)
1011 led_trigger_event(&trigger->trigger,
1012 new_state & trigger->mask ?
1013 LED_FULL : LED_OFF);
1014 }
1015}
1016
1017static int kbd_update_leds_helper(struct input_handle *handle, void *data)
1018{
1019 unsigned int led_state = *(unsigned int *)data;
1020
1021 if (test_bit(EV_LED, handle->dev->evbit))
1022 kbd_propagate_led_state(~led_state, led_state);
1023
1024 return 0;
1025}
1026
1027static void kbd_init_leds(void)
1028{
1029 int error;
1030 int i;
1031
1032 for (i = 0; i < ARRAY_SIZE(kbd_led_triggers); i++) {
1033 error = led_trigger_register(&kbd_led_triggers[i].trigger);
1034 if (error)
1035 pr_err("error %d while registering trigger %s\n",
1036 error, kbd_led_triggers[i].trigger.name);
1037 }
1038}
1039
1040#else
1041
1042static int kbd_update_leds_helper(struct input_handle *handle, void *data)
1043{
1044 unsigned int leds = *(unsigned int *)data;
1045
1046 if (test_bit(EV_LED, handle->dev->evbit)) {
1047 input_inject_event(handle, EV_LED, LED_SCROLLL, !!(leds & 0x01));
1048 input_inject_event(handle, EV_LED, LED_NUML, !!(leds & 0x02));
1049 input_inject_event(handle, EV_LED, LED_CAPSL, !!(leds & 0x04));
1050 input_inject_event(handle, EV_SYN, SYN_REPORT, 0);
1051 }
1052
1053 return 0;
1054}
1055
1056static void kbd_propagate_led_state(unsigned int old_state,
1057 unsigned int new_state)
1058{
1059 input_handler_for_each_handle(&kbd_handler, &new_state,
1060 kbd_update_leds_helper);
1061}
1062
1063static void kbd_init_leds(void)
1064{
1065}
1066
1067#endif
1068
1da177e4
LT
1069/*
1070 * The leds display either (i) the status of NumLock, CapsLock, ScrollLock,
1071 * or (ii) whatever pattern of lights people want to show using KDSETLED,
1072 * or (iii) specified bits of specified words in kernel memory.
1073 */
3db1ddb7 1074static unsigned char getledstate(void)
1da177e4
LT
1075{
1076 return ledstate;
1077}
1078
9d329c1c 1079void setledstate(struct kbd_struct *kb, unsigned int led)
1da177e4 1080{
079c9534 1081 unsigned long flags;
3db1ddb7 1082 spin_lock_irqsave(&led_lock, flags);
1da177e4
LT
1083 if (!(led & ~7)) {
1084 ledioctl = led;
9d329c1c 1085 kb->ledmode = LED_SHOW_IOCTL;
1da177e4 1086 } else
9d329c1c 1087 kb->ledmode = LED_SHOW_FLAGS;
e0785572 1088
1da177e4 1089 set_leds();
3db1ddb7 1090 spin_unlock_irqrestore(&led_lock, flags);
1da177e4
LT
1091}
1092
1093static inline unsigned char getleds(void)
1094{
9d329c1c 1095 struct kbd_struct *kb = kbd_table + fg_console;
1da177e4 1096
9d329c1c 1097 if (kb->ledmode == LED_SHOW_IOCTL)
1da177e4
LT
1098 return ledioctl;
1099
9d329c1c 1100 return kb->ledflagstate;
1da177e4
LT
1101}
1102
079c9534
AC
1103/**
1104 * vt_get_leds - helper for braille console
1105 * @console: console to read
1106 * @flag: flag we want to check
1107 *
1108 * Check the status of a keyboard led flag and report it back
1109 */
1110int vt_get_leds(int console, int flag)
1111{
9d329c1c 1112 struct kbd_struct *kb = kbd_table + console;
079c9534 1113 int ret;
3db1ddb7 1114 unsigned long flags;
079c9534 1115
3db1ddb7 1116 spin_lock_irqsave(&led_lock, flags);
9d329c1c 1117 ret = vc_kbd_led(kb, flag);
3db1ddb7 1118 spin_unlock_irqrestore(&led_lock, flags);
079c9534
AC
1119
1120 return ret;
1121}
1122EXPORT_SYMBOL_GPL(vt_get_leds);
1123
1124/**
1125 * vt_set_led_state - set LED state of a console
1126 * @console: console to set
1127 * @leds: LED bits
1128 *
1129 * Set the LEDs on a console. This is a wrapper for the VT layer
1130 * so that we can keep kbd knowledge internal
1131 */
1132void vt_set_led_state(int console, int leds)
1133{
9d329c1c
MR
1134 struct kbd_struct *kb = kbd_table + console;
1135 setledstate(kb, leds);
079c9534
AC
1136}
1137
1138/**
1139 * vt_kbd_con_start - Keyboard side of console start
1140 * @console: console
1141 *
1142 * Handle console start. This is a wrapper for the VT layer
1143 * so that we can keep kbd knowledge internal
84f904ec
AC
1144 *
1145 * FIXME: We eventually need to hold the kbd lock here to protect
1146 * the LED updating. We can't do it yet because fn_hold calls stop_tty
1147 * and start_tty under the kbd_event_lock, while normal tty paths
1148 * don't hold the lock. We probably need to split out an LED lock
1149 * but not during an -rc release!
079c9534
AC
1150 */
1151void vt_kbd_con_start(int console)
1152{
9d329c1c 1153 struct kbd_struct *kb = kbd_table + console;
3db1ddb7
AC
1154 unsigned long flags;
1155 spin_lock_irqsave(&led_lock, flags);
9d329c1c 1156 clr_vc_kbd_led(kb, VC_SCROLLOCK);
079c9534 1157 set_leds();
3db1ddb7 1158 spin_unlock_irqrestore(&led_lock, flags);
079c9534
AC
1159}
1160
1161/**
1162 * vt_kbd_con_stop - Keyboard side of console stop
1163 * @console: console
1164 *
1165 * Handle console stop. This is a wrapper for the VT layer
1166 * so that we can keep kbd knowledge internal
1167 */
1168void vt_kbd_con_stop(int console)
1169{
9d329c1c 1170 struct kbd_struct *kb = kbd_table + console;
3db1ddb7
AC
1171 unsigned long flags;
1172 spin_lock_irqsave(&led_lock, flags);
9d329c1c 1173 set_vc_kbd_led(kb, VC_SCROLLOCK);
079c9534 1174 set_leds();
3db1ddb7 1175 spin_unlock_irqrestore(&led_lock, flags);
079c9534
AC
1176}
1177
1da177e4 1178/*
52355522
ST
1179 * This is the tasklet that updates LED state of LEDs using standard
1180 * keyboard triggers. The reason we use tasklet is that we need to
1181 * handle the scenario when keyboard handler is not registered yet
1182 * but we already getting updates from the VT to update led state.
1da177e4 1183 */
1da177e4
LT
1184static void kbd_bh(unsigned long dummy)
1185{
3db1ddb7
AC
1186 unsigned char leds;
1187 unsigned long flags;
52355522 1188
3db1ddb7
AC
1189 spin_lock_irqsave(&led_lock, flags);
1190 leds = getleds();
1191 spin_unlock_irqrestore(&led_lock, flags);
1da177e4
LT
1192
1193 if (leds != ledstate) {
52355522 1194 kbd_propagate_led_state(ledstate, leds);
66d2a595 1195 ledstate = leds;
1da177e4 1196 }
1da177e4
LT
1197}
1198
1199DECLARE_TASKLET_DISABLED(keyboard_tasklet, kbd_bh, 0);
1200
1da177e4 1201#if defined(CONFIG_X86) || defined(CONFIG_IA64) || defined(CONFIG_ALPHA) ||\
0b57ee9e
AB
1202 defined(CONFIG_MIPS) || defined(CONFIG_PPC) || defined(CONFIG_SPARC) ||\
1203 defined(CONFIG_PARISC) || defined(CONFIG_SUPERH) ||\
3a4e832c
HCE
1204 (defined(CONFIG_ARM) && defined(CONFIG_KEYBOARD_ATKBD) && !defined(CONFIG_ARCH_RPC)) ||\
1205 defined(CONFIG_AVR32)
1da177e4
LT
1206
1207#define HW_RAW(dev) (test_bit(EV_MSC, dev->evbit) && test_bit(MSC_RAW, dev->mscbit) &&\
1208 ((dev)->id.bustype == BUS_I8042) && ((dev)->id.vendor == 0x0001) && ((dev)->id.product == 0x0001))
1209
0f5e560e 1210static const unsigned short x86_keycodes[256] =
1da177e4
LT
1211 { 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15,
1212 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31,
1213 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47,
1214 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63,
1215 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79,
1216 80, 81, 82, 83, 84,118, 86, 87, 88,115,120,119,121,112,123, 92,
896cdc7b 1217 284,285,309, 0,312, 91,327,328,329,331,333,335,336,337,338,339,
1da177e4
LT
1218 367,288,302,304,350, 89,334,326,267,126,268,269,125,347,348,349,
1219 360,261,262,263,268,376,100,101,321,316,373,286,289,102,351,355,
72a42f24
HG
1220 103,104,105,275,287,279,258,106,274,107,294,364,358,363,362,361,
1221 291,108,381,281,290,272,292,305,280, 99,112,257,306,359,113,114,
1da177e4
LT
1222 264,117,271,374,379,265,266, 93, 94, 95, 85,259,375,260, 90,116,
1223 377,109,111,277,278,282,283,295,296,297,299,300,301,293,303,307,
1224 308,310,313,314,315,317,318,319,320,357,322,323,324,325,276,330,
1225 332,340,365,342,343,344,345,346,356,270,341,368,369,370,371,372 };
1226
0b57ee9e 1227#ifdef CONFIG_SPARC
e0785572 1228static int sparc_l1_a_state;
1da177e4
LT
1229extern void sun_do_break(void);
1230#endif
1231
fe1e8604 1232static int emulate_raw(struct vc_data *vc, unsigned int keycode,
1da177e4
LT
1233 unsigned char up_flag)
1234{
896cdc7b 1235 int code;
1da177e4
LT
1236
1237 switch (keycode) {
896cdc7b 1238
e0785572
DT
1239 case KEY_PAUSE:
1240 put_queue(vc, 0xe1);
1241 put_queue(vc, 0x1d | up_flag);
1242 put_queue(vc, 0x45 | up_flag);
1243 break;
896cdc7b 1244
e0785572
DT
1245 case KEY_HANGEUL:
1246 if (!up_flag)
1247 put_queue(vc, 0xf2);
1248 break;
1da177e4 1249
e0785572
DT
1250 case KEY_HANJA:
1251 if (!up_flag)
1252 put_queue(vc, 0xf1);
1253 break;
896cdc7b 1254
e0785572
DT
1255 case KEY_SYSRQ:
1256 /*
1257 * Real AT keyboards (that's what we're trying
1258 * to emulate here emit 0xe0 0x2a 0xe0 0x37 when
1259 * pressing PrtSc/SysRq alone, but simply 0x54
1260 * when pressing Alt+PrtSc/SysRq.
1261 */
1262 if (test_bit(KEY_LEFTALT, key_down) ||
1263 test_bit(KEY_RIGHTALT, key_down)) {
1264 put_queue(vc, 0x54 | up_flag);
1265 } else {
1266 put_queue(vc, 0xe0);
1267 put_queue(vc, 0x2a | up_flag);
1268 put_queue(vc, 0xe0);
1269 put_queue(vc, 0x37 | up_flag);
1270 }
1271 break;
1da177e4 1272
e0785572
DT
1273 default:
1274 if (keycode > 255)
1275 return -1;
1da177e4 1276
e0785572
DT
1277 code = x86_keycodes[keycode];
1278 if (!code)
1279 return -1;
1da177e4 1280
e0785572
DT
1281 if (code & 0x100)
1282 put_queue(vc, 0xe0);
1283 put_queue(vc, (code & 0x7f) | up_flag);
1284
1285 break;
1da177e4
LT
1286 }
1287
1288 return 0;
1289}
1290
1291#else
1292
1293#define HW_RAW(dev) 0
1294
1da177e4
LT
1295static int emulate_raw(struct vc_data *vc, unsigned int keycode, unsigned char up_flag)
1296{
1297 if (keycode > 127)
1298 return -1;
1299
1300 put_queue(vc, keycode | up_flag);
1301 return 0;
1302}
1303#endif
1304
1305static void kbd_rawcode(unsigned char data)
1306{
1307 struct vc_data *vc = vc_cons[fg_console].d;
e0785572 1308
0c09b2ac 1309 kbd = kbd_table + vc->vc_num;
1da177e4
LT
1310 if (kbd->kbdmode == VC_RAW)
1311 put_queue(vc, data);
1312}
1313
7d12e780 1314static void kbd_keycode(unsigned int keycode, int down, int hw_raw)
1da177e4
LT
1315{
1316 struct vc_data *vc = vc_cons[fg_console].d;
1317 unsigned short keysym, *key_map;
e0785572
DT
1318 unsigned char type;
1319 bool raw_mode;
1da177e4
LT
1320 struct tty_struct *tty;
1321 int shift_final;
41ab4396 1322 struct keyboard_notifier_param param = { .vc = vc, .value = keycode, .down = down };
e0785572 1323 int rc;
1da177e4 1324
8ce73264 1325 tty = vc->port.tty;
1da177e4
LT
1326
1327 if (tty && (!tty->driver_data)) {
1328 /* No driver data? Strange. Okay we fix it then. */
1329 tty->driver_data = vc;
1330 }
1331
0c09b2ac 1332 kbd = kbd_table + vc->vc_num;
1da177e4 1333
0b57ee9e 1334#ifdef CONFIG_SPARC
1da177e4
LT
1335 if (keycode == KEY_STOP)
1336 sparc_l1_a_state = down;
1337#endif
1338
1339 rep = (down == 2);
1340
e0785572
DT
1341 raw_mode = (kbd->kbdmode == VC_RAW);
1342 if (raw_mode && !hw_raw)
1da177e4 1343 if (emulate_raw(vc, keycode, !down << 7))
9e35d206 1344 if (keycode < BTN_MISC && printk_ratelimit())
e620e548
JP
1345 pr_warn("can't emulate rawmode for keycode %d\n",
1346 keycode);
1da177e4 1347
0b57ee9e 1348#ifdef CONFIG_SPARC
1da177e4 1349 if (keycode == KEY_A && sparc_l1_a_state) {
e0785572 1350 sparc_l1_a_state = false;
1da177e4
LT
1351 sun_do_break();
1352 }
1353#endif
1354
1355 if (kbd->kbdmode == VC_MEDIUMRAW) {
1356 /*
1357 * This is extended medium raw mode, with keys above 127
1358 * encoded as 0, high 7 bits, low 7 bits, with the 0 bearing
1359 * the 'up' flag if needed. 0 is reserved, so this shouldn't
1360 * interfere with anything else. The two bytes after 0 will
1361 * always have the up flag set not to interfere with older
1362 * applications. This allows for 16384 different keycodes,
1363 * which should be enough.
1364 */
1365 if (keycode < 128) {
1366 put_queue(vc, keycode | (!down << 7));
1367 } else {
1368 put_queue(vc, !down << 7);
1369 put_queue(vc, (keycode >> 7) | 0x80);
1370 put_queue(vc, keycode | 0x80);
1371 }
e0785572 1372 raw_mode = true;
1da177e4
LT
1373 }
1374
1375 if (down)
1376 set_bit(keycode, key_down);
1377 else
1378 clear_bit(keycode, key_down);
1379
fe1e8604
DT
1380 if (rep &&
1381 (!vc_kbd_mode(kbd, VC_REPEAT) ||
f34d7a5b 1382 (tty && !L_ECHO(tty) && tty_chars_in_buffer(tty)))) {
1da177e4
LT
1383 /*
1384 * Don't repeat a key if the input buffers are not empty and the
fe1e8604 1385 * characters get aren't echoed locally. This makes key repeat
1da177e4
LT
1386 * usable with slow applications and under heavy loads.
1387 */
1388 return;
1389 }
1390
41ab4396 1391 param.shift = shift_final = (shift_state | kbd->slockstate) ^ kbd->lockstate;
0beb4f6f 1392 param.ledstate = kbd->ledflagstate;
1da177e4
LT
1393 key_map = key_maps[shift_final];
1394
e0785572
DT
1395 rc = atomic_notifier_call_chain(&keyboard_notifier_list,
1396 KBD_KEYCODE, &param);
1397 if (rc == NOTIFY_STOP || !key_map) {
1398 atomic_notifier_call_chain(&keyboard_notifier_list,
1399 KBD_UNBOUND_KEYCODE, &param);
079c9534 1400 do_compute_shiftstate();
1da177e4
LT
1401 kbd->slockstate = 0;
1402 return;
1403 }
1404
e0785572 1405 if (keycode < NR_KEYS)
b9ec4e10 1406 keysym = key_map[keycode];
e0785572
DT
1407 else if (keycode >= KEY_BRL_DOT1 && keycode <= KEY_BRL_DOT8)
1408 keysym = U(K(KT_BRL, keycode - KEY_BRL_DOT1 + 1));
1409 else
1410 return;
1da177e4 1411
1da177e4
LT
1412 type = KTYP(keysym);
1413
1414 if (type < 0xf0) {
41ab4396 1415 param.value = keysym;
e0785572
DT
1416 rc = atomic_notifier_call_chain(&keyboard_notifier_list,
1417 KBD_UNICODE, &param);
1418 if (rc != NOTIFY_STOP)
1419 if (down && !raw_mode)
1420 to_utf8(vc, keysym);
1da177e4
LT
1421 return;
1422 }
1423
1424 type -= 0xf0;
1425
1da177e4
LT
1426 if (type == KT_LETTER) {
1427 type = KT_LATIN;
1428 if (vc_kbd_led(kbd, VC_CAPSLOCK)) {
1429 key_map = key_maps[shift_final ^ (1 << KG_SHIFT)];
1430 if (key_map)
1431 keysym = key_map[keycode];
1432 }
1433 }
41ab4396 1434
e0785572
DT
1435 param.value = keysym;
1436 rc = atomic_notifier_call_chain(&keyboard_notifier_list,
1437 KBD_KEYSYM, &param);
1438 if (rc == NOTIFY_STOP)
41ab4396
ST
1439 return;
1440
9fc3de9c 1441 if ((raw_mode || kbd->kbdmode == VC_OFF) && type != KT_SPEC && type != KT_SHIFT)
41ab4396 1442 return;
1da177e4 1443
7d12e780 1444 (*k_handler[type])(vc, keysym & 0xff, !down);
1da177e4 1445
0beb4f6f 1446 param.ledstate = kbd->ledflagstate;
41ab4396
ST
1447 atomic_notifier_call_chain(&keyboard_notifier_list, KBD_POST_KEYSYM, &param);
1448
1da177e4
LT
1449 if (type != KT_SLOCK)
1450 kbd->slockstate = 0;
1451}
1452
fe1e8604 1453static void kbd_event(struct input_handle *handle, unsigned int event_type,
1da177e4
LT
1454 unsigned int event_code, int value)
1455{
21cea58e
DT
1456 /* We are called with interrupts disabled, just take the lock */
1457 spin_lock(&kbd_event_lock);
1458
1da177e4
LT
1459 if (event_type == EV_MSC && event_code == MSC_RAW && HW_RAW(handle->dev))
1460 kbd_rawcode(value);
1461 if (event_type == EV_KEY)
7d12e780 1462 kbd_keycode(event_code, value, HW_RAW(handle->dev));
21cea58e
DT
1463
1464 spin_unlock(&kbd_event_lock);
1465
1da177e4
LT
1466 tasklet_schedule(&keyboard_tasklet);
1467 do_poke_blanked_console = 1;
1468 schedule_console_callback();
1469}
1470
0b7024ac
DT
1471static bool kbd_match(struct input_handler *handler, struct input_dev *dev)
1472{
1473 int i;
1474
1475 if (test_bit(EV_SND, dev->evbit))
1476 return true;
1477
53c1f764 1478 if (test_bit(EV_KEY, dev->evbit)) {
0b7024ac
DT
1479 for (i = KEY_RESERVED; i < BTN_MISC; i++)
1480 if (test_bit(i, dev->keybit))
1481 return true;
53c1f764
ST
1482 for (i = KEY_BRL_DOT1; i <= KEY_BRL_DOT10; i++)
1483 if (test_bit(i, dev->keybit))
1484 return true;
1485 }
0b7024ac
DT
1486
1487 return false;
1488}
1489
1da177e4
LT
1490/*
1491 * When a keyboard (or other input device) is found, the kbd_connect
1492 * function is called. The function then looks at the device, and if it
1493 * likes it, it can open it and get events from it. In this (kbd_connect)
1494 * function, we should decide which VT to bind that keyboard to initially.
1495 */
5b2a0826
DT
1496static int kbd_connect(struct input_handler *handler, struct input_dev *dev,
1497 const struct input_device_id *id)
1da177e4
LT
1498{
1499 struct input_handle *handle;
5b2a0826 1500 int error;
1da177e4 1501
22479e1c
DT
1502 handle = kzalloc(sizeof(struct input_handle), GFP_KERNEL);
1503 if (!handle)
5b2a0826 1504 return -ENOMEM;
1da177e4
LT
1505
1506 handle->dev = dev;
1507 handle->handler = handler;
fe1e8604 1508 handle->name = "kbd";
1da177e4 1509
5b2a0826
DT
1510 error = input_register_handle(handle);
1511 if (error)
1512 goto err_free_handle;
1da177e4 1513
5b2a0826
DT
1514 error = input_open_device(handle);
1515 if (error)
1516 goto err_unregister_handle;
1517
1518 return 0;
1519
1520 err_unregister_handle:
1521 input_unregister_handle(handle);
1522 err_free_handle:
1523 kfree(handle);
1524 return error;
1da177e4
LT
1525}
1526
1527static void kbd_disconnect(struct input_handle *handle)
1528{
1529 input_close_device(handle);
5b2a0826 1530 input_unregister_handle(handle);
1da177e4
LT
1531 kfree(handle);
1532}
1533
c7e8dc6e
DT
1534/*
1535 * Start keyboard handler on the new keyboard by refreshing LED state to
1536 * match the rest of the system.
1537 */
1538static void kbd_start(struct input_handle *handle)
1539{
c7e8dc6e 1540 tasklet_disable(&keyboard_tasklet);
66d2a595 1541
52355522
ST
1542 if (ledstate != 0xff) {
1543 unsigned int state = ledstate;
1544 kbd_update_leds_helper(handle, &state);
1545 }
66d2a595 1546
c7e8dc6e
DT
1547 tasklet_enable(&keyboard_tasklet);
1548}
1549
66e66118 1550static const struct input_device_id kbd_ids[] = {
1da177e4 1551 {
6aeed479
AC
1552 .flags = INPUT_DEVICE_ID_MATCH_EVBIT,
1553 .evbit = { BIT_MASK(EV_KEY) },
1554 },
fe1e8604 1555
1da177e4 1556 {
6aeed479
AC
1557 .flags = INPUT_DEVICE_ID_MATCH_EVBIT,
1558 .evbit = { BIT_MASK(EV_SND) },
1559 },
1da177e4
LT
1560
1561 { }, /* Terminating entry */
1562};
1563
1564MODULE_DEVICE_TABLE(input, kbd_ids);
1565
1566static struct input_handler kbd_handler = {
1567 .event = kbd_event,
0b7024ac 1568 .match = kbd_match,
1da177e4
LT
1569 .connect = kbd_connect,
1570 .disconnect = kbd_disconnect,
c7e8dc6e 1571 .start = kbd_start,
1da177e4
LT
1572 .name = "kbd",
1573 .id_table = kbd_ids,
1574};
1575
1576int __init kbd_init(void)
1577{
1578 int i;
4263cf0f 1579 int error;
1da177e4 1580
6aeed479 1581 for (i = 0; i < MAX_NR_CONSOLES; i++) {
b2d0b7a0
JC
1582 kbd_table[i].ledflagstate = kbd_defleds();
1583 kbd_table[i].default_ledflagstate = kbd_defleds();
2b192908
DT
1584 kbd_table[i].ledmode = LED_SHOW_FLAGS;
1585 kbd_table[i].lockstate = KBD_DEFLOCK;
1586 kbd_table[i].slockstate = 0;
1587 kbd_table[i].modeflags = KBD_DEFMODE;
2e8ecb9d 1588 kbd_table[i].kbdmode = default_utf8 ? VC_UNICODE : VC_XLATE;
2b192908 1589 }
1da177e4 1590
52355522
ST
1591 kbd_init_leds();
1592
4263cf0f
DT
1593 error = input_register_handler(&kbd_handler);
1594 if (error)
1595 return error;
1da177e4
LT
1596
1597 tasklet_enable(&keyboard_tasklet);
1598 tasklet_schedule(&keyboard_tasklet);
1599
1600 return 0;
1601}
247ff8e6
AC
1602
1603/* Ioctl support code */
1604
1605/**
1606 * vt_do_diacrit - diacritical table updates
1607 * @cmd: ioctl request
9d329c1c 1608 * @udp: pointer to user data for ioctl
247ff8e6
AC
1609 * @perm: permissions check computed by caller
1610 *
1611 * Update the diacritical tables atomically and safely. Lock them
1612 * against simultaneous keypresses
1613 */
9d329c1c 1614int vt_do_diacrit(unsigned int cmd, void __user *udp, int perm)
247ff8e6 1615{
247ff8e6
AC
1616 unsigned long flags;
1617 int asize;
1618 int ret = 0;
1619
1620 switch (cmd) {
1621 case KDGKBDIACR:
1622 {
9d329c1c
MR
1623 struct kbdiacrs __user *a = udp;
1624 struct kbdiacr *dia;
247ff8e6
AC
1625 int i;
1626
9d329c1c 1627 dia = kmalloc(MAX_DIACR * sizeof(struct kbdiacr),
247ff8e6 1628 GFP_KERNEL);
9d329c1c 1629 if (!dia)
247ff8e6
AC
1630 return -ENOMEM;
1631
1632 /* Lock the diacriticals table, make a copy and then
1633 copy it after we unlock */
1634 spin_lock_irqsave(&kbd_event_lock, flags);
1635
1636 asize = accent_table_size;
1637 for (i = 0; i < asize; i++) {
9d329c1c 1638 dia[i].diacr = conv_uni_to_8bit(
247ff8e6 1639 accent_table[i].diacr);
9d329c1c 1640 dia[i].base = conv_uni_to_8bit(
247ff8e6 1641 accent_table[i].base);
9d329c1c 1642 dia[i].result = conv_uni_to_8bit(
247ff8e6
AC
1643 accent_table[i].result);
1644 }
1645 spin_unlock_irqrestore(&kbd_event_lock, flags);
1646
1647 if (put_user(asize, &a->kb_cnt))
1648 ret = -EFAULT;
9d329c1c 1649 else if (copy_to_user(a->kbdiacr, dia,
247ff8e6
AC
1650 asize * sizeof(struct kbdiacr)))
1651 ret = -EFAULT;
9d329c1c 1652 kfree(dia);
247ff8e6
AC
1653 return ret;
1654 }
1655 case KDGKBDIACRUC:
1656 {
9d329c1c 1657 struct kbdiacrsuc __user *a = udp;
247ff8e6
AC
1658 void *buf;
1659
1660 buf = kmalloc(MAX_DIACR * sizeof(struct kbdiacruc),
1661 GFP_KERNEL);
1662 if (buf == NULL)
1663 return -ENOMEM;
1664
1665 /* Lock the diacriticals table, make a copy and then
1666 copy it after we unlock */
1667 spin_lock_irqsave(&kbd_event_lock, flags);
1668
1669 asize = accent_table_size;
1670 memcpy(buf, accent_table, asize * sizeof(struct kbdiacruc));
1671
1672 spin_unlock_irqrestore(&kbd_event_lock, flags);
1673
1674 if (put_user(asize, &a->kb_cnt))
1675 ret = -EFAULT;
1676 else if (copy_to_user(a->kbdiacruc, buf,
1677 asize*sizeof(struct kbdiacruc)))
1678 ret = -EFAULT;
1679 kfree(buf);
1680 return ret;
1681 }
1682
1683 case KDSKBDIACR:
1684 {
9d329c1c
MR
1685 struct kbdiacrs __user *a = udp;
1686 struct kbdiacr *dia = NULL;
247ff8e6
AC
1687 unsigned int ct;
1688 int i;
1689
1690 if (!perm)
1691 return -EPERM;
1692 if (get_user(ct, &a->kb_cnt))
1693 return -EFAULT;
1694 if (ct >= MAX_DIACR)
1695 return -EINVAL;
1696
1697 if (ct) {
9d329c1c 1698 dia = kmalloc(sizeof(struct kbdiacr) * ct,
247ff8e6 1699 GFP_KERNEL);
9d329c1c 1700 if (!dia)
247ff8e6
AC
1701 return -ENOMEM;
1702
9d329c1c 1703 if (copy_from_user(dia, a->kbdiacr,
247ff8e6 1704 sizeof(struct kbdiacr) * ct)) {
9d329c1c 1705 kfree(dia);
247ff8e6
AC
1706 return -EFAULT;
1707 }
1708 }
1709
1710 spin_lock_irqsave(&kbd_event_lock, flags);
1711 accent_table_size = ct;
1712 for (i = 0; i < ct; i++) {
1713 accent_table[i].diacr =
9d329c1c 1714 conv_8bit_to_uni(dia[i].diacr);
247ff8e6 1715 accent_table[i].base =
9d329c1c 1716 conv_8bit_to_uni(dia[i].base);
247ff8e6 1717 accent_table[i].result =
9d329c1c 1718 conv_8bit_to_uni(dia[i].result);
247ff8e6
AC
1719 }
1720 spin_unlock_irqrestore(&kbd_event_lock, flags);
9d329c1c 1721 kfree(dia);
247ff8e6
AC
1722 return 0;
1723 }
1724
1725 case KDSKBDIACRUC:
1726 {
9d329c1c 1727 struct kbdiacrsuc __user *a = udp;
247ff8e6
AC
1728 unsigned int ct;
1729 void *buf = NULL;
1730
1731 if (!perm)
1732 return -EPERM;
1733
1734 if (get_user(ct, &a->kb_cnt))
1735 return -EFAULT;
1736
1737 if (ct >= MAX_DIACR)
1738 return -EINVAL;
1739
1740 if (ct) {
1741 buf = kmalloc(ct * sizeof(struct kbdiacruc),
1742 GFP_KERNEL);
1743 if (buf == NULL)
1744 return -ENOMEM;
1745
1746 if (copy_from_user(buf, a->kbdiacruc,
1747 ct * sizeof(struct kbdiacruc))) {
1748 kfree(buf);
1749 return -EFAULT;
1750 }
1751 }
1752 spin_lock_irqsave(&kbd_event_lock, flags);
1753 if (ct)
1754 memcpy(accent_table, buf,
1755 ct * sizeof(struct kbdiacruc));
1756 accent_table_size = ct;
1757 spin_unlock_irqrestore(&kbd_event_lock, flags);
1758 kfree(buf);
1759 return 0;
1760 }
1761 }
1762 return ret;
1763}
079c9534
AC
1764
1765/**
1766 * vt_do_kdskbmode - set keyboard mode ioctl
1767 * @console: the console to use
1768 * @arg: the requested mode
1769 *
1770 * Update the keyboard mode bits while holding the correct locks.
1771 * Return 0 for success or an error code.
1772 */
1773int vt_do_kdskbmode(int console, unsigned int arg)
1774{
9d329c1c 1775 struct kbd_struct *kb = kbd_table + console;
079c9534
AC
1776 int ret = 0;
1777 unsigned long flags;
1778
1779 spin_lock_irqsave(&kbd_event_lock, flags);
1780 switch(arg) {
1781 case K_RAW:
9d329c1c 1782 kb->kbdmode = VC_RAW;
079c9534
AC
1783 break;
1784 case K_MEDIUMRAW:
9d329c1c 1785 kb->kbdmode = VC_MEDIUMRAW;
079c9534
AC
1786 break;
1787 case K_XLATE:
9d329c1c 1788 kb->kbdmode = VC_XLATE;
079c9534
AC
1789 do_compute_shiftstate();
1790 break;
1791 case K_UNICODE:
9d329c1c 1792 kb->kbdmode = VC_UNICODE;
079c9534
AC
1793 do_compute_shiftstate();
1794 break;
1795 case K_OFF:
9d329c1c 1796 kb->kbdmode = VC_OFF;
079c9534
AC
1797 break;
1798 default:
1799 ret = -EINVAL;
1800 }
1801 spin_unlock_irqrestore(&kbd_event_lock, flags);
1802 return ret;
1803}
1804
1805/**
1806 * vt_do_kdskbmeta - set keyboard meta state
1807 * @console: the console to use
1808 * @arg: the requested meta state
1809 *
1810 * Update the keyboard meta bits while holding the correct locks.
1811 * Return 0 for success or an error code.
1812 */
1813int vt_do_kdskbmeta(int console, unsigned int arg)
1814{
9d329c1c 1815 struct kbd_struct *kb = kbd_table + console;
079c9534
AC
1816 int ret = 0;
1817 unsigned long flags;
1818
1819 spin_lock_irqsave(&kbd_event_lock, flags);
1820 switch(arg) {
1821 case K_METABIT:
9d329c1c 1822 clr_vc_kbd_mode(kb, VC_META);
079c9534
AC
1823 break;
1824 case K_ESCPREFIX:
9d329c1c 1825 set_vc_kbd_mode(kb, VC_META);
079c9534
AC
1826 break;
1827 default:
1828 ret = -EINVAL;
1829 }
1830 spin_unlock_irqrestore(&kbd_event_lock, flags);
1831 return ret;
1832}
1833
1834int vt_do_kbkeycode_ioctl(int cmd, struct kbkeycode __user *user_kbkc,
1835 int perm)
1836{
1837 struct kbkeycode tmp;
1838 int kc = 0;
1839
1840 if (copy_from_user(&tmp, user_kbkc, sizeof(struct kbkeycode)))
1841 return -EFAULT;
1842 switch (cmd) {
1843 case KDGETKEYCODE:
1844 kc = getkeycode(tmp.scancode);
1845 if (kc >= 0)
1846 kc = put_user(kc, &user_kbkc->keycode);
1847 break;
1848 case KDSETKEYCODE:
1849 if (!perm)
1850 return -EPERM;
1851 kc = setkeycode(tmp.scancode, tmp.keycode);
1852 break;
1853 }
1854 return kc;
1855}
1856
1857#define i (tmp.kb_index)
1858#define s (tmp.kb_table)
1859#define v (tmp.kb_value)
1860
1861int vt_do_kdsk_ioctl(int cmd, struct kbentry __user *user_kbe, int perm,
1862 int console)
1863{
9d329c1c 1864 struct kbd_struct *kb = kbd_table + console;
079c9534
AC
1865 struct kbentry tmp;
1866 ushort *key_map, *new_map, val, ov;
1867 unsigned long flags;
1868
1869 if (copy_from_user(&tmp, user_kbe, sizeof(struct kbentry)))
1870 return -EFAULT;
1871
1872 if (!capable(CAP_SYS_TTY_CONFIG))
1873 perm = 0;
1874
1875 switch (cmd) {
1876 case KDGKBENT:
1877 /* Ensure another thread doesn't free it under us */
1878 spin_lock_irqsave(&kbd_event_lock, flags);
1879 key_map = key_maps[s];
1880 if (key_map) {
1881 val = U(key_map[i]);
9d329c1c 1882 if (kb->kbdmode != VC_UNICODE && KTYP(val) >= NR_TYPES)
079c9534
AC
1883 val = K_HOLE;
1884 } else
1885 val = (i ? K_HOLE : K_NOSUCHMAP);
1886 spin_unlock_irqrestore(&kbd_event_lock, flags);
1887 return put_user(val, &user_kbe->kb_value);
1888 case KDSKBENT:
1889 if (!perm)
1890 return -EPERM;
1891 if (!i && v == K_NOSUCHMAP) {
1892 spin_lock_irqsave(&kbd_event_lock, flags);
1893 /* deallocate map */
1894 key_map = key_maps[s];
1895 if (s && key_map) {
1896 key_maps[s] = NULL;
1897 if (key_map[0] == U(K_ALLOCATED)) {
1898 kfree(key_map);
1899 keymap_count--;
1900 }
1901 }
1902 spin_unlock_irqrestore(&kbd_event_lock, flags);
1903 break;
1904 }
1905
1906 if (KTYP(v) < NR_TYPES) {
1907 if (KVAL(v) > max_vals[KTYP(v)])
1908 return -EINVAL;
1909 } else
9d329c1c 1910 if (kb->kbdmode != VC_UNICODE)
079c9534
AC
1911 return -EINVAL;
1912
1913 /* ++Geert: non-PC keyboards may generate keycode zero */
1914#if !defined(__mc68000__) && !defined(__powerpc__)
1915 /* assignment to entry 0 only tests validity of args */
1916 if (!i)
1917 break;
1918#endif
1919
1920 new_map = kmalloc(sizeof(plain_map), GFP_KERNEL);
1921 if (!new_map)
1922 return -ENOMEM;
1923 spin_lock_irqsave(&kbd_event_lock, flags);
1924 key_map = key_maps[s];
1925 if (key_map == NULL) {
1926 int j;
1927
1928 if (keymap_count >= MAX_NR_OF_USER_KEYMAPS &&
1929 !capable(CAP_SYS_RESOURCE)) {
1930 spin_unlock_irqrestore(&kbd_event_lock, flags);
1931 kfree(new_map);
1932 return -EPERM;
1933 }
1934 key_maps[s] = new_map;
82896210 1935 key_map = new_map;
079c9534
AC
1936 key_map[0] = U(K_ALLOCATED);
1937 for (j = 1; j < NR_KEYS; j++)
1938 key_map[j] = U(K_HOLE);
1939 keymap_count++;
1940 } else
1941 kfree(new_map);
1942
1943 ov = U(key_map[i]);
1944 if (v == ov)
1945 goto out;
1946 /*
1947 * Attention Key.
1948 */
1949 if (((ov == K_SAK) || (v == K_SAK)) && !capable(CAP_SYS_ADMIN)) {
1950 spin_unlock_irqrestore(&kbd_event_lock, flags);
1951 return -EPERM;
1952 }
1953 key_map[i] = U(v);
1954 if (!s && (KTYP(ov) == KT_SHIFT || KTYP(v) == KT_SHIFT))
1955 do_compute_shiftstate();
1956out:
1957 spin_unlock_irqrestore(&kbd_event_lock, flags);
1958 break;
1959 }
1960 return 0;
1961}
1962#undef i
1963#undef s
1964#undef v
1965
1966/* FIXME: This one needs untangling and locking */
1967int vt_do_kdgkb_ioctl(int cmd, struct kbsentry __user *user_kdgkb, int perm)
1968{
1969 struct kbsentry *kbs;
1970 char *p;
1971 u_char *q;
1972 u_char __user *up;
1973 int sz;
1974 int delta;
1975 char *first_free, *fj, *fnw;
1976 int i, j, k;
1977 int ret;
1978
1979 if (!capable(CAP_SYS_TTY_CONFIG))
1980 perm = 0;
1981
1982 kbs = kmalloc(sizeof(*kbs), GFP_KERNEL);
1983 if (!kbs) {
1984 ret = -ENOMEM;
1985 goto reterr;
1986 }
1987
1988 /* we mostly copy too much here (512bytes), but who cares ;) */
1989 if (copy_from_user(kbs, user_kdgkb, sizeof(struct kbsentry))) {
1990 ret = -EFAULT;
1991 goto reterr;
1992 }
1993 kbs->kb_string[sizeof(kbs->kb_string)-1] = '\0';
1994 i = kbs->kb_func;
1995
1996 switch (cmd) {
1997 case KDGKBSENT:
1998 sz = sizeof(kbs->kb_string) - 1; /* sz should have been
1999 a struct member */
2000 up = user_kdgkb->kb_string;
2001 p = func_table[i];
2002 if(p)
2003 for ( ; *p && sz; p++, sz--)
2004 if (put_user(*p, up++)) {
2005 ret = -EFAULT;
2006 goto reterr;
2007 }
2008 if (put_user('\0', up)) {
2009 ret = -EFAULT;
2010 goto reterr;
2011 }
2012 kfree(kbs);
2013 return ((p && *p) ? -EOVERFLOW : 0);
2014 case KDSKBSENT:
2015 if (!perm) {
2016 ret = -EPERM;
2017 goto reterr;
2018 }
2019
2020 q = func_table[i];
2021 first_free = funcbufptr + (funcbufsize - funcbufleft);
2022 for (j = i+1; j < MAX_NR_FUNC && !func_table[j]; j++)
2023 ;
2024 if (j < MAX_NR_FUNC)
2025 fj = func_table[j];
2026 else
2027 fj = first_free;
2028
2029 delta = (q ? -strlen(q) : 1) + strlen(kbs->kb_string);
2030 if (delta <= funcbufleft) { /* it fits in current buf */
2031 if (j < MAX_NR_FUNC) {
2032 memmove(fj + delta, fj, first_free - fj);
2033 for (k = j; k < MAX_NR_FUNC; k++)
2034 if (func_table[k])
2035 func_table[k] += delta;
2036 }
2037 if (!q)
2038 func_table[i] = fj;
2039 funcbufleft -= delta;
2040 } else { /* allocate a larger buffer */
2041 sz = 256;
2042 while (sz < funcbufsize - funcbufleft + delta)
2043 sz <<= 1;
2044 fnw = kmalloc(sz, GFP_KERNEL);
2045 if(!fnw) {
2046 ret = -ENOMEM;
2047 goto reterr;
2048 }
2049
2050 if (!q)
2051 func_table[i] = fj;
2052 if (fj > funcbufptr)
2053 memmove(fnw, funcbufptr, fj - funcbufptr);
2054 for (k = 0; k < j; k++)
2055 if (func_table[k])
2056 func_table[k] = fnw + (func_table[k] - funcbufptr);
2057
2058 if (first_free > fj) {
2059 memmove(fnw + (fj - funcbufptr) + delta, fj, first_free - fj);
2060 for (k = j; k < MAX_NR_FUNC; k++)
2061 if (func_table[k])
2062 func_table[k] = fnw + (func_table[k] - funcbufptr) + delta;
2063 }
2064 if (funcbufptr != func_buf)
2065 kfree(funcbufptr);
2066 funcbufptr = fnw;
2067 funcbufleft = funcbufleft - delta + sz - funcbufsize;
2068 funcbufsize = sz;
2069 }
2070 strcpy(func_table[i], kbs->kb_string);
2071 break;
2072 }
2073 ret = 0;
2074reterr:
2075 kfree(kbs);
2076 return ret;
2077}
2078
2079int vt_do_kdskled(int console, int cmd, unsigned long arg, int perm)
2080{
9d329c1c 2081 struct kbd_struct *kb = kbd_table + console;
079c9534
AC
2082 unsigned long flags;
2083 unsigned char ucval;
2084
2085 switch(cmd) {
2086 /* the ioctls below read/set the flags usually shown in the leds */
2087 /* don't use them - they will go away without warning */
2088 case KDGKBLED:
2089 spin_lock_irqsave(&kbd_event_lock, flags);
9d329c1c 2090 ucval = kb->ledflagstate | (kb->default_ledflagstate << 4);
079c9534
AC
2091 spin_unlock_irqrestore(&kbd_event_lock, flags);
2092 return put_user(ucval, (char __user *)arg);
2093
2094 case KDSKBLED:
2095 if (!perm)
2096 return -EPERM;
2097 if (arg & ~0x77)
2098 return -EINVAL;
3db1ddb7 2099 spin_lock_irqsave(&led_lock, flags);
9d329c1c
MR
2100 kb->ledflagstate = (arg & 7);
2101 kb->default_ledflagstate = ((arg >> 4) & 7);
079c9534 2102 set_leds();
3db1ddb7 2103 spin_unlock_irqrestore(&led_lock, flags);
eea41aee 2104 return 0;
079c9534
AC
2105
2106 /* the ioctls below only set the lights, not the functions */
2107 /* for those, see KDGKBLED and KDSKBLED above */
2108 case KDGETLED:
2109 ucval = getledstate();
2110 return put_user(ucval, (char __user *)arg);
2111
2112 case KDSETLED:
2113 if (!perm)
2114 return -EPERM;
9d329c1c 2115 setledstate(kb, arg);
079c9534
AC
2116 return 0;
2117 }
2118 return -ENOIOCTLCMD;
2119}
2120
2121int vt_do_kdgkbmode(int console)
2122{
9d329c1c 2123 struct kbd_struct *kb = kbd_table + console;
079c9534 2124 /* This is a spot read so needs no locking */
9d329c1c 2125 switch (kb->kbdmode) {
079c9534
AC
2126 case VC_RAW:
2127 return K_RAW;
2128 case VC_MEDIUMRAW:
2129 return K_MEDIUMRAW;
2130 case VC_UNICODE:
2131 return K_UNICODE;
2132 case VC_OFF:
2133 return K_OFF;
2134 default:
2135 return K_XLATE;
2136 }
2137}
2138
2139/**
2140 * vt_do_kdgkbmeta - report meta status
2141 * @console: console to report
2142 *
2143 * Report the meta flag status of this console
2144 */
2145int vt_do_kdgkbmeta(int console)
2146{
9d329c1c 2147 struct kbd_struct *kb = kbd_table + console;
079c9534 2148 /* Again a spot read so no locking */
9d329c1c 2149 return vc_kbd_mode(kb, VC_META) ? K_ESCPREFIX : K_METABIT;
079c9534
AC
2150}
2151
2152/**
2153 * vt_reset_unicode - reset the unicode status
2154 * @console: console being reset
2155 *
2156 * Restore the unicode console state to its default
2157 */
2158void vt_reset_unicode(int console)
2159{
2160 unsigned long flags;
2161
2162 spin_lock_irqsave(&kbd_event_lock, flags);
2163 kbd_table[console].kbdmode = default_utf8 ? VC_UNICODE : VC_XLATE;
2164 spin_unlock_irqrestore(&kbd_event_lock, flags);
2165}
2166
2167/**
2168 * vt_get_shiftstate - shift bit state
2169 *
2170 * Report the shift bits from the keyboard state. We have to export
2171 * this to support some oddities in the vt layer.
2172 */
2173int vt_get_shift_state(void)
2174{
2175 /* Don't lock as this is a transient report */
2176 return shift_state;
2177}
2178
2179/**
2180 * vt_reset_keyboard - reset keyboard state
2181 * @console: console to reset
2182 *
2183 * Reset the keyboard bits for a console as part of a general console
2184 * reset event
2185 */
2186void vt_reset_keyboard(int console)
2187{
9d329c1c 2188 struct kbd_struct *kb = kbd_table + console;
079c9534
AC
2189 unsigned long flags;
2190
2191 spin_lock_irqsave(&kbd_event_lock, flags);
9d329c1c
MR
2192 set_vc_kbd_mode(kb, VC_REPEAT);
2193 clr_vc_kbd_mode(kb, VC_CKMODE);
2194 clr_vc_kbd_mode(kb, VC_APPLIC);
2195 clr_vc_kbd_mode(kb, VC_CRLF);
2196 kb->lockstate = 0;
2197 kb->slockstate = 0;
3db1ddb7 2198 spin_lock(&led_lock);
9d329c1c
MR
2199 kb->ledmode = LED_SHOW_FLAGS;
2200 kb->ledflagstate = kb->default_ledflagstate;
3db1ddb7 2201 spin_unlock(&led_lock);
079c9534
AC
2202 /* do not do set_leds here because this causes an endless tasklet loop
2203 when the keyboard hasn't been initialized yet */
2204 spin_unlock_irqrestore(&kbd_event_lock, flags);
2205}
2206
2207/**
2208 * vt_get_kbd_mode_bit - read keyboard status bits
2209 * @console: console to read from
2210 * @bit: mode bit to read
2211 *
2212 * Report back a vt mode bit. We do this without locking so the
2213 * caller must be sure that there are no synchronization needs
2214 */
2215
2216int vt_get_kbd_mode_bit(int console, int bit)
2217{
9d329c1c
MR
2218 struct kbd_struct *kb = kbd_table + console;
2219 return vc_kbd_mode(kb, bit);
079c9534
AC
2220}
2221
2222/**
2223 * vt_set_kbd_mode_bit - read keyboard status bits
2224 * @console: console to read from
2225 * @bit: mode bit to read
2226 *
2227 * Set a vt mode bit. We do this without locking so the
2228 * caller must be sure that there are no synchronization needs
2229 */
2230
2231void vt_set_kbd_mode_bit(int console, int bit)
2232{
9d329c1c 2233 struct kbd_struct *kb = kbd_table + console;
079c9534
AC
2234 unsigned long flags;
2235
2236 spin_lock_irqsave(&kbd_event_lock, flags);
9d329c1c 2237 set_vc_kbd_mode(kb, bit);
079c9534
AC
2238 spin_unlock_irqrestore(&kbd_event_lock, flags);
2239}
2240
2241/**
2242 * vt_clr_kbd_mode_bit - read keyboard status bits
2243 * @console: console to read from
2244 * @bit: mode bit to read
2245 *
2246 * Report back a vt mode bit. We do this without locking so the
2247 * caller must be sure that there are no synchronization needs
2248 */
2249
2250void vt_clr_kbd_mode_bit(int console, int bit)
2251{
9d329c1c 2252 struct kbd_struct *kb = kbd_table + console;
079c9534
AC
2253 unsigned long flags;
2254
2255 spin_lock_irqsave(&kbd_event_lock, flags);
9d329c1c 2256 clr_vc_kbd_mode(kb, bit);
079c9534
AC
2257 spin_unlock_irqrestore(&kbd_event_lock, flags);
2258}