printk boot_delay: rename printk_delay_msec to loops_per_msec
[GitHub/mt8127/android_kernel_alcatel_ttab.git] / kernel / printk.c
1 /*
2 * linux/kernel/printk.c
3 *
4 * Copyright (C) 1991, 1992 Linus Torvalds
5 *
6 * Modified to make sys_syslog() more flexible: added commands to
7 * return the last 4k of kernel messages, regardless of whether
8 * they've been read or not. Added option to suppress kernel printk's
9 * to the console. Added hook for sending the console messages
10 * elsewhere, in preparation for a serial line console (someday).
11 * Ted Ts'o, 2/11/93.
12 * Modified for sysctl support, 1/8/97, Chris Horn.
13 * Fixed SMP synchronization, 08/08/99, Manfred Spraul
14 * manfred@colorfullife.com
15 * Rewrote bits to get rid of console_lock
16 * 01Mar01 Andrew Morton
17 */
18
19 #include <linux/kernel.h>
20 #include <linux/mm.h>
21 #include <linux/tty.h>
22 #include <linux/tty_driver.h>
23 #include <linux/console.h>
24 #include <linux/init.h>
25 #include <linux/jiffies.h>
26 #include <linux/nmi.h>
27 #include <linux/module.h>
28 #include <linux/moduleparam.h>
29 #include <linux/interrupt.h> /* For in_interrupt() */
30 #include <linux/delay.h>
31 #include <linux/smp.h>
32 #include <linux/security.h>
33 #include <linux/bootmem.h>
34 #include <linux/syscalls.h>
35 #include <linux/kexec.h>
36
37 #include <asm/uaccess.h>
38
39 /*
40 * for_each_console() allows you to iterate on each console
41 */
42 #define for_each_console(con) \
43 for (con = console_drivers; con != NULL; con = con->next)
44
45 /*
46 * Architectures can override it:
47 */
48 void asmlinkage __attribute__((weak)) early_printk(const char *fmt, ...)
49 {
50 }
51
52 #define __LOG_BUF_LEN (1 << CONFIG_LOG_BUF_SHIFT)
53
54 /* printk's without a loglevel use this.. */
55 #define DEFAULT_MESSAGE_LOGLEVEL 4 /* KERN_WARNING */
56
57 /* We show everything that is MORE important than this.. */
58 #define MINIMUM_CONSOLE_LOGLEVEL 1 /* Minimum loglevel we let people use */
59 #define DEFAULT_CONSOLE_LOGLEVEL 7 /* anything MORE serious than KERN_DEBUG */
60
61 DECLARE_WAIT_QUEUE_HEAD(log_wait);
62
63 int console_printk[4] = {
64 DEFAULT_CONSOLE_LOGLEVEL, /* console_loglevel */
65 DEFAULT_MESSAGE_LOGLEVEL, /* default_message_loglevel */
66 MINIMUM_CONSOLE_LOGLEVEL, /* minimum_console_loglevel */
67 DEFAULT_CONSOLE_LOGLEVEL, /* default_console_loglevel */
68 };
69
70 static int saved_console_loglevel = -1;
71
72 /*
73 * Low level drivers may need that to know if they can schedule in
74 * their unblank() callback or not. So let's export it.
75 */
76 int oops_in_progress;
77 EXPORT_SYMBOL(oops_in_progress);
78
79 /*
80 * console_sem protects the console_drivers list, and also
81 * provides serialisation for access to the entire console
82 * driver system.
83 */
84 static DECLARE_MUTEX(console_sem);
85 struct console *console_drivers;
86 EXPORT_SYMBOL_GPL(console_drivers);
87
88 /*
89 * This is used for debugging the mess that is the VT code by
90 * keeping track if we have the console semaphore held. It's
91 * definitely not the perfect debug tool (we don't know if _WE_
92 * hold it are racing, but it helps tracking those weird code
93 * path in the console code where we end up in places I want
94 * locked without the console sempahore held
95 */
96 static int console_locked, console_suspended;
97
98 /*
99 * logbuf_lock protects log_buf, log_start, log_end, con_start and logged_chars
100 * It is also used in interesting ways to provide interlocking in
101 * release_console_sem().
102 */
103 static DEFINE_SPINLOCK(logbuf_lock);
104
105 #define LOG_BUF_MASK (log_buf_len-1)
106 #define LOG_BUF(idx) (log_buf[(idx) & LOG_BUF_MASK])
107
108 /*
109 * The indices into log_buf are not constrained to log_buf_len - they
110 * must be masked before subscripting
111 */
112 static unsigned log_start; /* Index into log_buf: next char to be read by syslog() */
113 static unsigned con_start; /* Index into log_buf: next char to be sent to consoles */
114 static unsigned log_end; /* Index into log_buf: most-recently-written-char + 1 */
115
116 /*
117 * Array of consoles built from command line options (console=)
118 */
119 struct console_cmdline
120 {
121 char name[8]; /* Name of the driver */
122 int index; /* Minor dev. to use */
123 char *options; /* Options for the driver */
124 #ifdef CONFIG_A11Y_BRAILLE_CONSOLE
125 char *brl_options; /* Options for braille driver */
126 #endif
127 };
128
129 #define MAX_CMDLINECONSOLES 8
130
131 static struct console_cmdline console_cmdline[MAX_CMDLINECONSOLES];
132 static int selected_console = -1;
133 static int preferred_console = -1;
134 int console_set_on_cmdline;
135 EXPORT_SYMBOL(console_set_on_cmdline);
136
137 /* Flag: console code may call schedule() */
138 static int console_may_schedule;
139
140 #ifdef CONFIG_PRINTK
141
142 static char __log_buf[__LOG_BUF_LEN];
143 static char *log_buf = __log_buf;
144 static int log_buf_len = __LOG_BUF_LEN;
145 static unsigned logged_chars; /* Number of chars produced since last read+clear operation */
146
147 #ifdef CONFIG_KEXEC
148 /*
149 * This appends the listed symbols to /proc/vmcoreinfo
150 *
151 * /proc/vmcoreinfo is used by various utiilties, like crash and makedumpfile to
152 * obtain access to symbols that are otherwise very difficult to locate. These
153 * symbols are specifically used so that utilities can access and extract the
154 * dmesg log from a vmcore file after a crash.
155 */
156 void log_buf_kexec_setup(void)
157 {
158 VMCOREINFO_SYMBOL(log_buf);
159 VMCOREINFO_SYMBOL(log_end);
160 VMCOREINFO_SYMBOL(log_buf_len);
161 VMCOREINFO_SYMBOL(logged_chars);
162 }
163 #endif
164
165 static int __init log_buf_len_setup(char *str)
166 {
167 unsigned size = memparse(str, &str);
168 unsigned long flags;
169
170 if (size)
171 size = roundup_pow_of_two(size);
172 if (size > log_buf_len) {
173 unsigned start, dest_idx, offset;
174 char *new_log_buf;
175
176 new_log_buf = alloc_bootmem(size);
177 if (!new_log_buf) {
178 printk(KERN_WARNING "log_buf_len: allocation failed\n");
179 goto out;
180 }
181
182 spin_lock_irqsave(&logbuf_lock, flags);
183 log_buf_len = size;
184 log_buf = new_log_buf;
185
186 offset = start = min(con_start, log_start);
187 dest_idx = 0;
188 while (start != log_end) {
189 log_buf[dest_idx] = __log_buf[start & (__LOG_BUF_LEN - 1)];
190 start++;
191 dest_idx++;
192 }
193 log_start -= offset;
194 con_start -= offset;
195 log_end -= offset;
196 spin_unlock_irqrestore(&logbuf_lock, flags);
197
198 printk(KERN_NOTICE "log_buf_len: %d\n", log_buf_len);
199 }
200 out:
201 return 1;
202 }
203
204 __setup("log_buf_len=", log_buf_len_setup);
205
206 #ifdef CONFIG_BOOT_PRINTK_DELAY
207
208 static unsigned int boot_delay; /* msecs delay after each printk during bootup */
209 static unsigned long long loops_per_msec; /* based on boot_delay */
210
211 static int __init boot_delay_setup(char *str)
212 {
213 unsigned long lpj;
214
215 lpj = preset_lpj ? preset_lpj : 1000000; /* some guess */
216 loops_per_msec = (unsigned long long)lpj / 1000 * HZ;
217
218 get_option(&str, &boot_delay);
219 if (boot_delay > 10 * 1000)
220 boot_delay = 0;
221
222 pr_debug("boot_delay: %u, preset_lpj: %ld, lpj: %lu, "
223 "HZ: %d, loops_per_msec: %llu\n",
224 boot_delay, preset_lpj, lpj, HZ, loops_per_msec);
225 return 1;
226 }
227 __setup("boot_delay=", boot_delay_setup);
228
229 static void boot_delay_msec(void)
230 {
231 unsigned long long k;
232 unsigned long timeout;
233
234 if (boot_delay == 0 || system_state != SYSTEM_BOOTING)
235 return;
236
237 k = (unsigned long long)loops_per_msec * boot_delay;
238
239 timeout = jiffies + msecs_to_jiffies(boot_delay);
240 while (k) {
241 k--;
242 cpu_relax();
243 /*
244 * use (volatile) jiffies to prevent
245 * compiler reduction; loop termination via jiffies
246 * is secondary and may or may not happen.
247 */
248 if (time_after(jiffies, timeout))
249 break;
250 touch_nmi_watchdog();
251 }
252 }
253 #else
254 static inline void boot_delay_msec(void)
255 {
256 }
257 #endif
258
259 /*
260 * Commands to do_syslog:
261 *
262 * 0 -- Close the log. Currently a NOP.
263 * 1 -- Open the log. Currently a NOP.
264 * 2 -- Read from the log.
265 * 3 -- Read all messages remaining in the ring buffer.
266 * 4 -- Read and clear all messages remaining in the ring buffer
267 * 5 -- Clear ring buffer.
268 * 6 -- Disable printk's to console
269 * 7 -- Enable printk's to console
270 * 8 -- Set level of messages printed to console
271 * 9 -- Return number of unread characters in the log buffer
272 * 10 -- Return size of the log buffer
273 */
274 int do_syslog(int type, char __user *buf, int len)
275 {
276 unsigned i, j, limit, count;
277 int do_clear = 0;
278 char c;
279 int error = 0;
280
281 error = security_syslog(type);
282 if (error)
283 return error;
284
285 switch (type) {
286 case 0: /* Close log */
287 break;
288 case 1: /* Open log */
289 break;
290 case 2: /* Read from log */
291 error = -EINVAL;
292 if (!buf || len < 0)
293 goto out;
294 error = 0;
295 if (!len)
296 goto out;
297 if (!access_ok(VERIFY_WRITE, buf, len)) {
298 error = -EFAULT;
299 goto out;
300 }
301 error = wait_event_interruptible(log_wait,
302 (log_start - log_end));
303 if (error)
304 goto out;
305 i = 0;
306 spin_lock_irq(&logbuf_lock);
307 while (!error && (log_start != log_end) && i < len) {
308 c = LOG_BUF(log_start);
309 log_start++;
310 spin_unlock_irq(&logbuf_lock);
311 error = __put_user(c,buf);
312 buf++;
313 i++;
314 cond_resched();
315 spin_lock_irq(&logbuf_lock);
316 }
317 spin_unlock_irq(&logbuf_lock);
318 if (!error)
319 error = i;
320 break;
321 case 4: /* Read/clear last kernel messages */
322 do_clear = 1;
323 /* FALL THRU */
324 case 3: /* Read last kernel messages */
325 error = -EINVAL;
326 if (!buf || len < 0)
327 goto out;
328 error = 0;
329 if (!len)
330 goto out;
331 if (!access_ok(VERIFY_WRITE, buf, len)) {
332 error = -EFAULT;
333 goto out;
334 }
335 count = len;
336 if (count > log_buf_len)
337 count = log_buf_len;
338 spin_lock_irq(&logbuf_lock);
339 if (count > logged_chars)
340 count = logged_chars;
341 if (do_clear)
342 logged_chars = 0;
343 limit = log_end;
344 /*
345 * __put_user() could sleep, and while we sleep
346 * printk() could overwrite the messages
347 * we try to copy to user space. Therefore
348 * the messages are copied in reverse. <manfreds>
349 */
350 for (i = 0; i < count && !error; i++) {
351 j = limit-1-i;
352 if (j + log_buf_len < log_end)
353 break;
354 c = LOG_BUF(j);
355 spin_unlock_irq(&logbuf_lock);
356 error = __put_user(c,&buf[count-1-i]);
357 cond_resched();
358 spin_lock_irq(&logbuf_lock);
359 }
360 spin_unlock_irq(&logbuf_lock);
361 if (error)
362 break;
363 error = i;
364 if (i != count) {
365 int offset = count-error;
366 /* buffer overflow during copy, correct user buffer. */
367 for (i = 0; i < error; i++) {
368 if (__get_user(c,&buf[i+offset]) ||
369 __put_user(c,&buf[i])) {
370 error = -EFAULT;
371 break;
372 }
373 cond_resched();
374 }
375 }
376 break;
377 case 5: /* Clear ring buffer */
378 logged_chars = 0;
379 break;
380 case 6: /* Disable logging to console */
381 if (saved_console_loglevel == -1)
382 saved_console_loglevel = console_loglevel;
383 console_loglevel = minimum_console_loglevel;
384 break;
385 case 7: /* Enable logging to console */
386 if (saved_console_loglevel != -1) {
387 console_loglevel = saved_console_loglevel;
388 saved_console_loglevel = -1;
389 }
390 break;
391 case 8: /* Set level of messages printed to console */
392 error = -EINVAL;
393 if (len < 1 || len > 8)
394 goto out;
395 if (len < minimum_console_loglevel)
396 len = minimum_console_loglevel;
397 console_loglevel = len;
398 /* Implicitly re-enable logging to console */
399 saved_console_loglevel = -1;
400 error = 0;
401 break;
402 case 9: /* Number of chars in the log buffer */
403 error = log_end - log_start;
404 break;
405 case 10: /* Size of the log buffer */
406 error = log_buf_len;
407 break;
408 default:
409 error = -EINVAL;
410 break;
411 }
412 out:
413 return error;
414 }
415
416 SYSCALL_DEFINE3(syslog, int, type, char __user *, buf, int, len)
417 {
418 return do_syslog(type, buf, len);
419 }
420
421 /*
422 * Call the console drivers on a range of log_buf
423 */
424 static void __call_console_drivers(unsigned start, unsigned end)
425 {
426 struct console *con;
427
428 for_each_console(con) {
429 if ((con->flags & CON_ENABLED) && con->write &&
430 (cpu_online(smp_processor_id()) ||
431 (con->flags & CON_ANYTIME)))
432 con->write(con, &LOG_BUF(start), end - start);
433 }
434 }
435
436 static int __read_mostly ignore_loglevel;
437
438 static int __init ignore_loglevel_setup(char *str)
439 {
440 ignore_loglevel = 1;
441 printk(KERN_INFO "debug: ignoring loglevel setting.\n");
442
443 return 0;
444 }
445
446 early_param("ignore_loglevel", ignore_loglevel_setup);
447
448 /*
449 * Write out chars from start to end - 1 inclusive
450 */
451 static void _call_console_drivers(unsigned start,
452 unsigned end, int msg_log_level)
453 {
454 if ((msg_log_level < console_loglevel || ignore_loglevel) &&
455 console_drivers && start != end) {
456 if ((start & LOG_BUF_MASK) > (end & LOG_BUF_MASK)) {
457 /* wrapped write */
458 __call_console_drivers(start & LOG_BUF_MASK,
459 log_buf_len);
460 __call_console_drivers(0, end & LOG_BUF_MASK);
461 } else {
462 __call_console_drivers(start, end);
463 }
464 }
465 }
466
467 /*
468 * Call the console drivers, asking them to write out
469 * log_buf[start] to log_buf[end - 1].
470 * The console_sem must be held.
471 */
472 static void call_console_drivers(unsigned start, unsigned end)
473 {
474 unsigned cur_index, start_print;
475 static int msg_level = -1;
476
477 BUG_ON(((int)(start - end)) > 0);
478
479 cur_index = start;
480 start_print = start;
481 while (cur_index != end) {
482 if (msg_level < 0 && ((end - cur_index) > 2) &&
483 LOG_BUF(cur_index + 0) == '<' &&
484 LOG_BUF(cur_index + 1) >= '0' &&
485 LOG_BUF(cur_index + 1) <= '7' &&
486 LOG_BUF(cur_index + 2) == '>') {
487 msg_level = LOG_BUF(cur_index + 1) - '0';
488 cur_index += 3;
489 start_print = cur_index;
490 }
491 while (cur_index != end) {
492 char c = LOG_BUF(cur_index);
493
494 cur_index++;
495 if (c == '\n') {
496 if (msg_level < 0) {
497 /*
498 * printk() has already given us loglevel tags in
499 * the buffer. This code is here in case the
500 * log buffer has wrapped right round and scribbled
501 * on those tags
502 */
503 msg_level = default_message_loglevel;
504 }
505 _call_console_drivers(start_print, cur_index, msg_level);
506 msg_level = -1;
507 start_print = cur_index;
508 break;
509 }
510 }
511 }
512 _call_console_drivers(start_print, end, msg_level);
513 }
514
515 static void emit_log_char(char c)
516 {
517 LOG_BUF(log_end) = c;
518 log_end++;
519 if (log_end - log_start > log_buf_len)
520 log_start = log_end - log_buf_len;
521 if (log_end - con_start > log_buf_len)
522 con_start = log_end - log_buf_len;
523 if (logged_chars < log_buf_len)
524 logged_chars++;
525 }
526
527 /*
528 * Zap console related locks when oopsing. Only zap at most once
529 * every 10 seconds, to leave time for slow consoles to print a
530 * full oops.
531 */
532 static void zap_locks(void)
533 {
534 static unsigned long oops_timestamp;
535
536 if (time_after_eq(jiffies, oops_timestamp) &&
537 !time_after(jiffies, oops_timestamp + 30 * HZ))
538 return;
539
540 oops_timestamp = jiffies;
541
542 /* If a crash is occurring, make sure we can't deadlock */
543 spin_lock_init(&logbuf_lock);
544 /* And make sure that we print immediately */
545 init_MUTEX(&console_sem);
546 }
547
548 #if defined(CONFIG_PRINTK_TIME)
549 static int printk_time = 1;
550 #else
551 static int printk_time = 0;
552 #endif
553 module_param_named(time, printk_time, bool, S_IRUGO | S_IWUSR);
554
555 /* Check if we have any console registered that can be called early in boot. */
556 static int have_callable_console(void)
557 {
558 struct console *con;
559
560 for_each_console(con)
561 if (con->flags & CON_ANYTIME)
562 return 1;
563
564 return 0;
565 }
566
567 /**
568 * printk - print a kernel message
569 * @fmt: format string
570 *
571 * This is printk(). It can be called from any context. We want it to work.
572 *
573 * We try to grab the console_sem. If we succeed, it's easy - we log the output and
574 * call the console drivers. If we fail to get the semaphore we place the output
575 * into the log buffer and return. The current holder of the console_sem will
576 * notice the new output in release_console_sem() and will send it to the
577 * consoles before releasing the semaphore.
578 *
579 * One effect of this deferred printing is that code which calls printk() and
580 * then changes console_loglevel may break. This is because console_loglevel
581 * is inspected when the actual printing occurs.
582 *
583 * See also:
584 * printf(3)
585 *
586 * See the vsnprintf() documentation for format string extensions over C99.
587 */
588
589 asmlinkage int printk(const char *fmt, ...)
590 {
591 va_list args;
592 int r;
593
594 va_start(args, fmt);
595 r = vprintk(fmt, args);
596 va_end(args);
597
598 return r;
599 }
600
601 /* cpu currently holding logbuf_lock */
602 static volatile unsigned int printk_cpu = UINT_MAX;
603
604 /*
605 * Can we actually use the console at this time on this cpu?
606 *
607 * Console drivers may assume that per-cpu resources have
608 * been allocated. So unless they're explicitly marked as
609 * being able to cope (CON_ANYTIME) don't call them until
610 * this CPU is officially up.
611 */
612 static inline int can_use_console(unsigned int cpu)
613 {
614 return cpu_online(cpu) || have_callable_console();
615 }
616
617 /*
618 * Try to get console ownership to actually show the kernel
619 * messages from a 'printk'. Return true (and with the
620 * console_semaphore held, and 'console_locked' set) if it
621 * is successful, false otherwise.
622 *
623 * This gets called with the 'logbuf_lock' spinlock held and
624 * interrupts disabled. It should return with 'lockbuf_lock'
625 * released but interrupts still disabled.
626 */
627 static int acquire_console_semaphore_for_printk(unsigned int cpu)
628 {
629 int retval = 0;
630
631 if (!try_acquire_console_sem()) {
632 retval = 1;
633
634 /*
635 * If we can't use the console, we need to release
636 * the console semaphore by hand to avoid flushing
637 * the buffer. We need to hold the console semaphore
638 * in order to do this test safely.
639 */
640 if (!can_use_console(cpu)) {
641 console_locked = 0;
642 up(&console_sem);
643 retval = 0;
644 }
645 }
646 printk_cpu = UINT_MAX;
647 spin_unlock(&logbuf_lock);
648 return retval;
649 }
650 static const char recursion_bug_msg [] =
651 KERN_CRIT "BUG: recent printk recursion!\n";
652 static int recursion_bug;
653 static int new_text_line = 1;
654 static char printk_buf[1024];
655
656 asmlinkage int vprintk(const char *fmt, va_list args)
657 {
658 int printed_len = 0;
659 int current_log_level = default_message_loglevel;
660 unsigned long flags;
661 int this_cpu;
662 char *p;
663
664 boot_delay_msec();
665
666 preempt_disable();
667 /* This stops the holder of console_sem just where we want him */
668 raw_local_irq_save(flags);
669 this_cpu = smp_processor_id();
670
671 /*
672 * Ouch, printk recursed into itself!
673 */
674 if (unlikely(printk_cpu == this_cpu)) {
675 /*
676 * If a crash is occurring during printk() on this CPU,
677 * then try to get the crash message out but make sure
678 * we can't deadlock. Otherwise just return to avoid the
679 * recursion and return - but flag the recursion so that
680 * it can be printed at the next appropriate moment:
681 */
682 if (!oops_in_progress) {
683 recursion_bug = 1;
684 goto out_restore_irqs;
685 }
686 zap_locks();
687 }
688
689 lockdep_off();
690 spin_lock(&logbuf_lock);
691 printk_cpu = this_cpu;
692
693 if (recursion_bug) {
694 recursion_bug = 0;
695 strcpy(printk_buf, recursion_bug_msg);
696 printed_len = strlen(recursion_bug_msg);
697 }
698 /* Emit the output into the temporary buffer */
699 printed_len += vscnprintf(printk_buf + printed_len,
700 sizeof(printk_buf) - printed_len, fmt, args);
701
702
703 p = printk_buf;
704
705 /* Do we have a loglevel in the string? */
706 if (p[0] == '<') {
707 unsigned char c = p[1];
708 if (c && p[2] == '>') {
709 switch (c) {
710 case '0' ... '7': /* loglevel */
711 current_log_level = c - '0';
712 /* Fallthrough - make sure we're on a new line */
713 case 'd': /* KERN_DEFAULT */
714 if (!new_text_line) {
715 emit_log_char('\n');
716 new_text_line = 1;
717 }
718 /* Fallthrough - skip the loglevel */
719 case 'c': /* KERN_CONT */
720 p += 3;
721 break;
722 }
723 }
724 }
725
726 /*
727 * Copy the output into log_buf. If the caller didn't provide
728 * appropriate log level tags, we insert them here
729 */
730 for ( ; *p; p++) {
731 if (new_text_line) {
732 /* Always output the token */
733 emit_log_char('<');
734 emit_log_char(current_log_level + '0');
735 emit_log_char('>');
736 printed_len += 3;
737 new_text_line = 0;
738
739 if (printk_time) {
740 /* Follow the token with the time */
741 char tbuf[50], *tp;
742 unsigned tlen;
743 unsigned long long t;
744 unsigned long nanosec_rem;
745
746 t = cpu_clock(printk_cpu);
747 nanosec_rem = do_div(t, 1000000000);
748 tlen = sprintf(tbuf, "[%5lu.%06lu] ",
749 (unsigned long) t,
750 nanosec_rem / 1000);
751
752 for (tp = tbuf; tp < tbuf + tlen; tp++)
753 emit_log_char(*tp);
754 printed_len += tlen;
755 }
756
757 if (!*p)
758 break;
759 }
760
761 emit_log_char(*p);
762 if (*p == '\n')
763 new_text_line = 1;
764 }
765
766 /*
767 * Try to acquire and then immediately release the
768 * console semaphore. The release will do all the
769 * actual magic (print out buffers, wake up klogd,
770 * etc).
771 *
772 * The acquire_console_semaphore_for_printk() function
773 * will release 'logbuf_lock' regardless of whether it
774 * actually gets the semaphore or not.
775 */
776 if (acquire_console_semaphore_for_printk(this_cpu))
777 release_console_sem();
778
779 lockdep_on();
780 out_restore_irqs:
781 raw_local_irq_restore(flags);
782
783 preempt_enable();
784 return printed_len;
785 }
786 EXPORT_SYMBOL(printk);
787 EXPORT_SYMBOL(vprintk);
788
789 #else
790
791 static void call_console_drivers(unsigned start, unsigned end)
792 {
793 }
794
795 #endif
796
797 static int __add_preferred_console(char *name, int idx, char *options,
798 char *brl_options)
799 {
800 struct console_cmdline *c;
801 int i;
802
803 /*
804 * See if this tty is not yet registered, and
805 * if we have a slot free.
806 */
807 for (i = 0; i < MAX_CMDLINECONSOLES && console_cmdline[i].name[0]; i++)
808 if (strcmp(console_cmdline[i].name, name) == 0 &&
809 console_cmdline[i].index == idx) {
810 if (!brl_options)
811 selected_console = i;
812 return 0;
813 }
814 if (i == MAX_CMDLINECONSOLES)
815 return -E2BIG;
816 if (!brl_options)
817 selected_console = i;
818 c = &console_cmdline[i];
819 strlcpy(c->name, name, sizeof(c->name));
820 c->options = options;
821 #ifdef CONFIG_A11Y_BRAILLE_CONSOLE
822 c->brl_options = brl_options;
823 #endif
824 c->index = idx;
825 return 0;
826 }
827 /*
828 * Set up a list of consoles. Called from init/main.c
829 */
830 static int __init console_setup(char *str)
831 {
832 char buf[sizeof(console_cmdline[0].name) + 4]; /* 4 for index */
833 char *s, *options, *brl_options = NULL;
834 int idx;
835
836 #ifdef CONFIG_A11Y_BRAILLE_CONSOLE
837 if (!memcmp(str, "brl,", 4)) {
838 brl_options = "";
839 str += 4;
840 } else if (!memcmp(str, "brl=", 4)) {
841 brl_options = str + 4;
842 str = strchr(brl_options, ',');
843 if (!str) {
844 printk(KERN_ERR "need port name after brl=\n");
845 return 1;
846 }
847 *(str++) = 0;
848 }
849 #endif
850
851 /*
852 * Decode str into name, index, options.
853 */
854 if (str[0] >= '0' && str[0] <= '9') {
855 strcpy(buf, "ttyS");
856 strncpy(buf + 4, str, sizeof(buf) - 5);
857 } else {
858 strncpy(buf, str, sizeof(buf) - 1);
859 }
860 buf[sizeof(buf) - 1] = 0;
861 if ((options = strchr(str, ',')) != NULL)
862 *(options++) = 0;
863 #ifdef __sparc__
864 if (!strcmp(str, "ttya"))
865 strcpy(buf, "ttyS0");
866 if (!strcmp(str, "ttyb"))
867 strcpy(buf, "ttyS1");
868 #endif
869 for (s = buf; *s; s++)
870 if ((*s >= '0' && *s <= '9') || *s == ',')
871 break;
872 idx = simple_strtoul(s, NULL, 10);
873 *s = 0;
874
875 __add_preferred_console(buf, idx, options, brl_options);
876 console_set_on_cmdline = 1;
877 return 1;
878 }
879 __setup("console=", console_setup);
880
881 /**
882 * add_preferred_console - add a device to the list of preferred consoles.
883 * @name: device name
884 * @idx: device index
885 * @options: options for this console
886 *
887 * The last preferred console added will be used for kernel messages
888 * and stdin/out/err for init. Normally this is used by console_setup
889 * above to handle user-supplied console arguments; however it can also
890 * be used by arch-specific code either to override the user or more
891 * commonly to provide a default console (ie from PROM variables) when
892 * the user has not supplied one.
893 */
894 int add_preferred_console(char *name, int idx, char *options)
895 {
896 return __add_preferred_console(name, idx, options, NULL);
897 }
898
899 int update_console_cmdline(char *name, int idx, char *name_new, int idx_new, char *options)
900 {
901 struct console_cmdline *c;
902 int i;
903
904 for (i = 0; i < MAX_CMDLINECONSOLES && console_cmdline[i].name[0]; i++)
905 if (strcmp(console_cmdline[i].name, name) == 0 &&
906 console_cmdline[i].index == idx) {
907 c = &console_cmdline[i];
908 strlcpy(c->name, name_new, sizeof(c->name));
909 c->name[sizeof(c->name) - 1] = 0;
910 c->options = options;
911 c->index = idx_new;
912 return i;
913 }
914 /* not found */
915 return -1;
916 }
917
918 int console_suspend_enabled = 1;
919 EXPORT_SYMBOL(console_suspend_enabled);
920
921 static int __init console_suspend_disable(char *str)
922 {
923 console_suspend_enabled = 0;
924 return 1;
925 }
926 __setup("no_console_suspend", console_suspend_disable);
927
928 /**
929 * suspend_console - suspend the console subsystem
930 *
931 * This disables printk() while we go into suspend states
932 */
933 void suspend_console(void)
934 {
935 if (!console_suspend_enabled)
936 return;
937 printk("Suspending console(s) (use no_console_suspend to debug)\n");
938 acquire_console_sem();
939 console_suspended = 1;
940 up(&console_sem);
941 }
942
943 void resume_console(void)
944 {
945 if (!console_suspend_enabled)
946 return;
947 down(&console_sem);
948 console_suspended = 0;
949 release_console_sem();
950 }
951
952 /**
953 * acquire_console_sem - lock the console system for exclusive use.
954 *
955 * Acquires a semaphore which guarantees that the caller has
956 * exclusive access to the console system and the console_drivers list.
957 *
958 * Can sleep, returns nothing.
959 */
960 void acquire_console_sem(void)
961 {
962 BUG_ON(in_interrupt());
963 down(&console_sem);
964 if (console_suspended)
965 return;
966 console_locked = 1;
967 console_may_schedule = 1;
968 }
969 EXPORT_SYMBOL(acquire_console_sem);
970
971 int try_acquire_console_sem(void)
972 {
973 if (down_trylock(&console_sem))
974 return -1;
975 if (console_suspended) {
976 up(&console_sem);
977 return -1;
978 }
979 console_locked = 1;
980 console_may_schedule = 0;
981 return 0;
982 }
983 EXPORT_SYMBOL(try_acquire_console_sem);
984
985 int is_console_locked(void)
986 {
987 return console_locked;
988 }
989
990 static DEFINE_PER_CPU(int, printk_pending);
991
992 void printk_tick(void)
993 {
994 if (__get_cpu_var(printk_pending)) {
995 __get_cpu_var(printk_pending) = 0;
996 wake_up_interruptible(&log_wait);
997 }
998 }
999
1000 int printk_needs_cpu(int cpu)
1001 {
1002 return per_cpu(printk_pending, cpu);
1003 }
1004
1005 void wake_up_klogd(void)
1006 {
1007 if (waitqueue_active(&log_wait))
1008 __raw_get_cpu_var(printk_pending) = 1;
1009 }
1010
1011 /**
1012 * release_console_sem - unlock the console system
1013 *
1014 * Releases the semaphore which the caller holds on the console system
1015 * and the console driver list.
1016 *
1017 * While the semaphore was held, console output may have been buffered
1018 * by printk(). If this is the case, release_console_sem() emits
1019 * the output prior to releasing the semaphore.
1020 *
1021 * If there is output waiting for klogd, we wake it up.
1022 *
1023 * release_console_sem() may be called from any context.
1024 */
1025 void release_console_sem(void)
1026 {
1027 unsigned long flags;
1028 unsigned _con_start, _log_end;
1029 unsigned wake_klogd = 0;
1030
1031 if (console_suspended) {
1032 up(&console_sem);
1033 return;
1034 }
1035
1036 console_may_schedule = 0;
1037
1038 for ( ; ; ) {
1039 spin_lock_irqsave(&logbuf_lock, flags);
1040 wake_klogd |= log_start - log_end;
1041 if (con_start == log_end)
1042 break; /* Nothing to print */
1043 _con_start = con_start;
1044 _log_end = log_end;
1045 con_start = log_end; /* Flush */
1046 spin_unlock(&logbuf_lock);
1047 stop_critical_timings(); /* don't trace print latency */
1048 call_console_drivers(_con_start, _log_end);
1049 start_critical_timings();
1050 local_irq_restore(flags);
1051 }
1052 console_locked = 0;
1053 up(&console_sem);
1054 spin_unlock_irqrestore(&logbuf_lock, flags);
1055 if (wake_klogd)
1056 wake_up_klogd();
1057 }
1058 EXPORT_SYMBOL(release_console_sem);
1059
1060 /**
1061 * console_conditional_schedule - yield the CPU if required
1062 *
1063 * If the console code is currently allowed to sleep, and
1064 * if this CPU should yield the CPU to another task, do
1065 * so here.
1066 *
1067 * Must be called within acquire_console_sem().
1068 */
1069 void __sched console_conditional_schedule(void)
1070 {
1071 if (console_may_schedule)
1072 cond_resched();
1073 }
1074 EXPORT_SYMBOL(console_conditional_schedule);
1075
1076 void console_unblank(void)
1077 {
1078 struct console *c;
1079
1080 /*
1081 * console_unblank can no longer be called in interrupt context unless
1082 * oops_in_progress is set to 1..
1083 */
1084 if (oops_in_progress) {
1085 if (down_trylock(&console_sem) != 0)
1086 return;
1087 } else
1088 acquire_console_sem();
1089
1090 console_locked = 1;
1091 console_may_schedule = 0;
1092 for_each_console(c)
1093 if ((c->flags & CON_ENABLED) && c->unblank)
1094 c->unblank();
1095 release_console_sem();
1096 }
1097
1098 /*
1099 * Return the console tty driver structure and its associated index
1100 */
1101 struct tty_driver *console_device(int *index)
1102 {
1103 struct console *c;
1104 struct tty_driver *driver = NULL;
1105
1106 acquire_console_sem();
1107 for_each_console(c) {
1108 if (!c->device)
1109 continue;
1110 driver = c->device(c, index);
1111 if (driver)
1112 break;
1113 }
1114 release_console_sem();
1115 return driver;
1116 }
1117
1118 /*
1119 * Prevent further output on the passed console device so that (for example)
1120 * serial drivers can disable console output before suspending a port, and can
1121 * re-enable output afterwards.
1122 */
1123 void console_stop(struct console *console)
1124 {
1125 acquire_console_sem();
1126 console->flags &= ~CON_ENABLED;
1127 release_console_sem();
1128 }
1129 EXPORT_SYMBOL(console_stop);
1130
1131 void console_start(struct console *console)
1132 {
1133 acquire_console_sem();
1134 console->flags |= CON_ENABLED;
1135 release_console_sem();
1136 }
1137 EXPORT_SYMBOL(console_start);
1138
1139 /*
1140 * The console driver calls this routine during kernel initialization
1141 * to register the console printing procedure with printk() and to
1142 * print any messages that were printed by the kernel before the
1143 * console driver was initialized.
1144 *
1145 * This can happen pretty early during the boot process (because of
1146 * early_printk) - sometimes before setup_arch() completes - be careful
1147 * of what kernel features are used - they may not be initialised yet.
1148 *
1149 * There are two types of consoles - bootconsoles (early_printk) and
1150 * "real" consoles (everything which is not a bootconsole) which are
1151 * handled differently.
1152 * - Any number of bootconsoles can be registered at any time.
1153 * - As soon as a "real" console is registered, all bootconsoles
1154 * will be unregistered automatically.
1155 * - Once a "real" console is registered, any attempt to register a
1156 * bootconsoles will be rejected
1157 */
1158 void register_console(struct console *newcon)
1159 {
1160 int i;
1161 unsigned long flags;
1162 struct console *bcon = NULL;
1163
1164 /*
1165 * before we register a new CON_BOOT console, make sure we don't
1166 * already have a valid console
1167 */
1168 if (console_drivers && newcon->flags & CON_BOOT) {
1169 /* find the last or real console */
1170 for_each_console(bcon) {
1171 if (!(bcon->flags & CON_BOOT)) {
1172 printk(KERN_INFO "Too late to register bootconsole %s%d\n",
1173 newcon->name, newcon->index);
1174 return;
1175 }
1176 }
1177 }
1178
1179 if (console_drivers && console_drivers->flags & CON_BOOT)
1180 bcon = console_drivers;
1181
1182 if (preferred_console < 0 || bcon || !console_drivers)
1183 preferred_console = selected_console;
1184
1185 if (newcon->early_setup)
1186 newcon->early_setup();
1187
1188 /*
1189 * See if we want to use this console driver. If we
1190 * didn't select a console we take the first one
1191 * that registers here.
1192 */
1193 if (preferred_console < 0) {
1194 if (newcon->index < 0)
1195 newcon->index = 0;
1196 if (newcon->setup == NULL ||
1197 newcon->setup(newcon, NULL) == 0) {
1198 newcon->flags |= CON_ENABLED;
1199 if (newcon->device) {
1200 newcon->flags |= CON_CONSDEV;
1201 preferred_console = 0;
1202 }
1203 }
1204 }
1205
1206 /*
1207 * See if this console matches one we selected on
1208 * the command line.
1209 */
1210 for (i = 0; i < MAX_CMDLINECONSOLES && console_cmdline[i].name[0];
1211 i++) {
1212 if (strcmp(console_cmdline[i].name, newcon->name) != 0)
1213 continue;
1214 if (newcon->index >= 0 &&
1215 newcon->index != console_cmdline[i].index)
1216 continue;
1217 if (newcon->index < 0)
1218 newcon->index = console_cmdline[i].index;
1219 #ifdef CONFIG_A11Y_BRAILLE_CONSOLE
1220 if (console_cmdline[i].brl_options) {
1221 newcon->flags |= CON_BRL;
1222 braille_register_console(newcon,
1223 console_cmdline[i].index,
1224 console_cmdline[i].options,
1225 console_cmdline[i].brl_options);
1226 return;
1227 }
1228 #endif
1229 if (newcon->setup &&
1230 newcon->setup(newcon, console_cmdline[i].options) != 0)
1231 break;
1232 newcon->flags |= CON_ENABLED;
1233 newcon->index = console_cmdline[i].index;
1234 if (i == selected_console) {
1235 newcon->flags |= CON_CONSDEV;
1236 preferred_console = selected_console;
1237 }
1238 break;
1239 }
1240
1241 if (!(newcon->flags & CON_ENABLED))
1242 return;
1243
1244 /*
1245 * If we have a bootconsole, and are switching to a real console,
1246 * don't print everything out again, since when the boot console, and
1247 * the real console are the same physical device, it's annoying to
1248 * see the beginning boot messages twice
1249 */
1250 if (bcon && ((newcon->flags & (CON_CONSDEV | CON_BOOT)) == CON_CONSDEV))
1251 newcon->flags &= ~CON_PRINTBUFFER;
1252
1253 /*
1254 * Put this console in the list - keep the
1255 * preferred driver at the head of the list.
1256 */
1257 acquire_console_sem();
1258 if ((newcon->flags & CON_CONSDEV) || console_drivers == NULL) {
1259 newcon->next = console_drivers;
1260 console_drivers = newcon;
1261 if (newcon->next)
1262 newcon->next->flags &= ~CON_CONSDEV;
1263 } else {
1264 newcon->next = console_drivers->next;
1265 console_drivers->next = newcon;
1266 }
1267 if (newcon->flags & CON_PRINTBUFFER) {
1268 /*
1269 * release_console_sem() will print out the buffered messages
1270 * for us.
1271 */
1272 spin_lock_irqsave(&logbuf_lock, flags);
1273 con_start = log_start;
1274 spin_unlock_irqrestore(&logbuf_lock, flags);
1275 }
1276 release_console_sem();
1277
1278 /*
1279 * By unregistering the bootconsoles after we enable the real console
1280 * we get the "console xxx enabled" message on all the consoles -
1281 * boot consoles, real consoles, etc - this is to ensure that end
1282 * users know there might be something in the kernel's log buffer that
1283 * went to the bootconsole (that they do not see on the real console)
1284 */
1285 if (bcon && ((newcon->flags & (CON_CONSDEV | CON_BOOT)) == CON_CONSDEV)) {
1286 /* we need to iterate through twice, to make sure we print
1287 * everything out, before we unregister the console(s)
1288 */
1289 printk(KERN_INFO "console [%s%d] enabled, bootconsole disabled\n",
1290 newcon->name, newcon->index);
1291 for_each_console(bcon)
1292 if (bcon->flags & CON_BOOT)
1293 unregister_console(bcon);
1294 } else {
1295 printk(KERN_INFO "%sconsole [%s%d] enabled\n",
1296 (newcon->flags & CON_BOOT) ? "boot" : "" ,
1297 newcon->name, newcon->index);
1298 }
1299 }
1300 EXPORT_SYMBOL(register_console);
1301
1302 int unregister_console(struct console *console)
1303 {
1304 struct console *a, *b;
1305 int res = 1;
1306
1307 #ifdef CONFIG_A11Y_BRAILLE_CONSOLE
1308 if (console->flags & CON_BRL)
1309 return braille_unregister_console(console);
1310 #endif
1311
1312 acquire_console_sem();
1313 if (console_drivers == console) {
1314 console_drivers=console->next;
1315 res = 0;
1316 } else if (console_drivers) {
1317 for (a=console_drivers->next, b=console_drivers ;
1318 a; b=a, a=b->next) {
1319 if (a == console) {
1320 b->next = a->next;
1321 res = 0;
1322 break;
1323 }
1324 }
1325 }
1326
1327 /*
1328 * If this isn't the last console and it has CON_CONSDEV set, we
1329 * need to set it on the next preferred console.
1330 */
1331 if (console_drivers != NULL && console->flags & CON_CONSDEV)
1332 console_drivers->flags |= CON_CONSDEV;
1333
1334 release_console_sem();
1335 return res;
1336 }
1337 EXPORT_SYMBOL(unregister_console);
1338
1339 static int __init disable_boot_consoles(void)
1340 {
1341 struct console *con;
1342
1343 for_each_console(con) {
1344 if (con->flags & CON_BOOT) {
1345 printk(KERN_INFO "turn off boot console %s%d\n",
1346 con->name, con->index);
1347 unregister_console(con);
1348 }
1349 }
1350 return 0;
1351 }
1352 late_initcall(disable_boot_consoles);
1353
1354 #if defined CONFIG_PRINTK
1355
1356 /*
1357 * printk rate limiting, lifted from the networking subsystem.
1358 *
1359 * This enforces a rate limit: not more than 10 kernel messages
1360 * every 5s to make a denial-of-service attack impossible.
1361 */
1362 DEFINE_RATELIMIT_STATE(printk_ratelimit_state, 5 * HZ, 10);
1363
1364 int printk_ratelimit(void)
1365 {
1366 return __ratelimit(&printk_ratelimit_state);
1367 }
1368 EXPORT_SYMBOL(printk_ratelimit);
1369
1370 /**
1371 * printk_timed_ratelimit - caller-controlled printk ratelimiting
1372 * @caller_jiffies: pointer to caller's state
1373 * @interval_msecs: minimum interval between prints
1374 *
1375 * printk_timed_ratelimit() returns true if more than @interval_msecs
1376 * milliseconds have elapsed since the last time printk_timed_ratelimit()
1377 * returned true.
1378 */
1379 bool printk_timed_ratelimit(unsigned long *caller_jiffies,
1380 unsigned int interval_msecs)
1381 {
1382 if (*caller_jiffies == 0
1383 || !time_in_range(jiffies, *caller_jiffies,
1384 *caller_jiffies
1385 + msecs_to_jiffies(interval_msecs))) {
1386 *caller_jiffies = jiffies;
1387 return true;
1388 }
1389 return false;
1390 }
1391 EXPORT_SYMBOL(printk_timed_ratelimit);
1392 #endif