printk: Do not miss new messages when replaying the log
[linux-2.6-block.git] / kernel / printk / printk.c
CommitLineData
1da177e4
LT
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.
40dc5651 13 * Fixed SMP synchronization, 08/08/99, Manfred Spraul
624dffcb 14 * manfred@colorfullife.com
1da177e4 15 * Rewrote bits to get rid of console_lock
e1f8e874 16 * 01Mar01 Andrew Morton
1da177e4
LT
17 */
18
19#include <linux/kernel.h>
20#include <linux/mm.h>
21#include <linux/tty.h>
22#include <linux/tty_driver.h>
1da177e4
LT
23#include <linux/console.h>
24#include <linux/init.h>
bfe8df3d
RD
25#include <linux/jiffies.h>
26#include <linux/nmi.h>
1da177e4 27#include <linux/module.h>
3b9c0410 28#include <linux/moduleparam.h>
1da177e4
LT
29#include <linux/delay.h>
30#include <linux/smp.h>
31#include <linux/security.h>
32#include <linux/bootmem.h>
162a7e75 33#include <linux/memblock.h>
1da177e4 34#include <linux/syscalls.h>
692f66f2 35#include <linux/crash_core.h>
d37d39ae 36#include <linux/kdb.h>
3fff4c42 37#include <linux/ratelimit.h>
456b565c 38#include <linux/kmsg_dump.h>
00234592 39#include <linux/syslog.h>
034260d6 40#include <linux/cpu.h>
fb842b00 41#include <linux/rculist.h>
e11fea92 42#include <linux/poll.h>
74876a98 43#include <linux/irq_work.h>
249771b8 44#include <linux/ctype.h>
e2e40f2c 45#include <linux/uio.h>
e6017571 46#include <linux/sched/clock.h>
b17b0153 47#include <linux/sched/debug.h>
68db0cf1 48#include <linux/sched/task_stack.h>
1da177e4 49
7c0f6ba6 50#include <linux/uaccess.h>
40a7d9f5 51#include <asm/sections.h>
1da177e4 52
58eacfff 53#include <trace/events/initcall.h>
95100358
JB
54#define CREATE_TRACE_POINTS
55#include <trace/events/printk.h>
56
d197c43d 57#include "console_cmdline.h"
bbeddf52 58#include "braille.h"
42a0bb3f 59#include "internal.h"
d197c43d 60
1da177e4 61int console_printk[4] = {
a8fe19eb 62 CONSOLE_LOGLEVEL_DEFAULT, /* console_loglevel */
42a9dc0b 63 MESSAGE_LOGLEVEL_DEFAULT, /* default_message_loglevel */
a8fe19eb
BP
64 CONSOLE_LOGLEVEL_MIN, /* minimum_console_loglevel */
65 CONSOLE_LOGLEVEL_DEFAULT, /* default_console_loglevel */
1da177e4
LT
66};
67
56e6c104
TZ
68atomic_t ignore_console_lock_warning __read_mostly = ATOMIC_INIT(0);
69EXPORT_SYMBOL(ignore_console_lock_warning);
70
1da177e4 71/*
0bbfb7c2 72 * Low level drivers may need that to know if they can schedule in
1da177e4
LT
73 * their unblank() callback or not. So let's export it.
74 */
75int oops_in_progress;
76EXPORT_SYMBOL(oops_in_progress);
77
78/*
79 * console_sem protects the console_drivers list, and also
80 * provides serialisation for access to the entire console
81 * driver system.
82 */
5b8c4f23 83static DEFINE_SEMAPHORE(console_sem);
1da177e4 84struct console *console_drivers;
a29d1cfe
IM
85EXPORT_SYMBOL_GPL(console_drivers);
86
daee7797
DV
87#ifdef CONFIG_LOCKDEP
88static struct lockdep_map console_lock_dep_map = {
89 .name = "console_lock"
90};
91#endif
92
750afe7b
BP
93enum devkmsg_log_bits {
94 __DEVKMSG_LOG_BIT_ON = 0,
95 __DEVKMSG_LOG_BIT_OFF,
96 __DEVKMSG_LOG_BIT_LOCK,
97};
98
99enum devkmsg_log_masks {
100 DEVKMSG_LOG_MASK_ON = BIT(__DEVKMSG_LOG_BIT_ON),
101 DEVKMSG_LOG_MASK_OFF = BIT(__DEVKMSG_LOG_BIT_OFF),
102 DEVKMSG_LOG_MASK_LOCK = BIT(__DEVKMSG_LOG_BIT_LOCK),
103};
104
105/* Keep both the 'on' and 'off' bits clear, i.e. ratelimit by default: */
106#define DEVKMSG_LOG_MASK_DEFAULT 0
107
108static unsigned int __read_mostly devkmsg_log = DEVKMSG_LOG_MASK_DEFAULT;
109
110static int __control_devkmsg(char *str)
111{
112 if (!str)
113 return -EINVAL;
114
115 if (!strncmp(str, "on", 2)) {
116 devkmsg_log = DEVKMSG_LOG_MASK_ON;
117 return 2;
118 } else if (!strncmp(str, "off", 3)) {
119 devkmsg_log = DEVKMSG_LOG_MASK_OFF;
120 return 3;
121 } else if (!strncmp(str, "ratelimit", 9)) {
122 devkmsg_log = DEVKMSG_LOG_MASK_DEFAULT;
123 return 9;
124 }
125 return -EINVAL;
126}
127
128static int __init control_devkmsg(char *str)
129{
130 if (__control_devkmsg(str) < 0)
131 return 1;
132
133 /*
134 * Set sysctl string accordingly:
135 */
6fd78a1a
SS
136 if (devkmsg_log == DEVKMSG_LOG_MASK_ON)
137 strcpy(devkmsg_log_str, "on");
138 else if (devkmsg_log == DEVKMSG_LOG_MASK_OFF)
139 strcpy(devkmsg_log_str, "off");
750afe7b
BP
140 /* else "ratelimit" which is set by default. */
141
142 /*
143 * Sysctl cannot change it anymore. The kernel command line setting of
144 * this parameter is to force the setting to be permanent throughout the
145 * runtime of the system. This is a precation measure against userspace
146 * trying to be a smarta** and attempting to change it up on us.
147 */
148 devkmsg_log |= DEVKMSG_LOG_MASK_LOCK;
149
150 return 0;
151}
152__setup("printk.devkmsg=", control_devkmsg);
153
154char devkmsg_log_str[DEVKMSG_STR_MAX_SIZE] = "ratelimit";
155
156int devkmsg_sysctl_set_loglvl(struct ctl_table *table, int write,
157 void __user *buffer, size_t *lenp, loff_t *ppos)
158{
159 char old_str[DEVKMSG_STR_MAX_SIZE];
160 unsigned int old;
161 int err;
162
163 if (write) {
164 if (devkmsg_log & DEVKMSG_LOG_MASK_LOCK)
165 return -EINVAL;
166
167 old = devkmsg_log;
168 strncpy(old_str, devkmsg_log_str, DEVKMSG_STR_MAX_SIZE);
169 }
170
171 err = proc_dostring(table, write, buffer, lenp, ppos);
172 if (err)
173 return err;
174
175 if (write) {
176 err = __control_devkmsg(devkmsg_log_str);
177
178 /*
179 * Do not accept an unknown string OR a known string with
180 * trailing crap...
181 */
182 if (err < 0 || (err + 1 != *lenp)) {
183
184 /* ... and restore old setting. */
185 devkmsg_log = old;
186 strncpy(devkmsg_log_str, old_str, DEVKMSG_STR_MAX_SIZE);
187
188 return -EINVAL;
189 }
190 }
191
192 return 0;
193}
194
6fe29354
TH
195/*
196 * Number of registered extended console drivers.
197 *
198 * If extended consoles are present, in-kernel cont reassembly is disabled
199 * and each fragment is stored as a separate log entry with proper
200 * continuation flag so that every emitted message has full metadata. This
201 * doesn't change the result for regular consoles or /proc/kmsg. For
202 * /dev/kmsg, as long as the reader concatenates messages according to
203 * consecutive continuation flags, the end result should be the same too.
204 */
205static int nr_ext_console_drivers;
206
bd8d7cf5
JK
207/*
208 * Helper macros to handle lockdep when locking/unlocking console_sem. We use
209 * macros instead of functions so that _RET_IP_ contains useful information.
210 */
211#define down_console_sem() do { \
212 down(&console_sem);\
213 mutex_acquire(&console_lock_dep_map, 0, 0, _RET_IP_);\
214} while (0)
215
216static int __down_trylock_console_sem(unsigned long ip)
217{
f975237b
SS
218 int lock_failed;
219 unsigned long flags;
220
221 /*
222 * Here and in __up_console_sem() we need to be in safe mode,
223 * because spindump/WARN/etc from under console ->lock will
224 * deadlock in printk()->down_trylock_console_sem() otherwise.
225 */
226 printk_safe_enter_irqsave(flags);
227 lock_failed = down_trylock(&console_sem);
228 printk_safe_exit_irqrestore(flags);
229
230 if (lock_failed)
bd8d7cf5
JK
231 return 1;
232 mutex_acquire(&console_lock_dep_map, 0, 1, ip);
233 return 0;
234}
235#define down_trylock_console_sem() __down_trylock_console_sem(_RET_IP_)
236
f975237b
SS
237static void __up_console_sem(unsigned long ip)
238{
239 unsigned long flags;
240
241 mutex_release(&console_lock_dep_map, 1, ip);
242
243 printk_safe_enter_irqsave(flags);
244 up(&console_sem);
245 printk_safe_exit_irqrestore(flags);
246}
247#define up_console_sem() __up_console_sem(_RET_IP_)
bd8d7cf5 248
1da177e4
LT
249/*
250 * This is used for debugging the mess that is the VT code by
251 * keeping track if we have the console semaphore held. It's
252 * definitely not the perfect debug tool (we don't know if _WE_
0b90fec3
AE
253 * hold it and are racing, but it helps tracking those weird code
254 * paths in the console code where we end up in places I want
255 * locked without the console sempahore held).
1da177e4 256 */
557240b4 257static int console_locked, console_suspended;
1da177e4 258
fe3d8ad3
FT
259/*
260 * If exclusive_console is non-NULL then only this console is to be printed to.
261 */
262static struct console *exclusive_console;
263
1da177e4
LT
264/*
265 * Array of consoles built from command line options (console=)
266 */
1da177e4
LT
267
268#define MAX_CMDLINECONSOLES 8
269
270static struct console_cmdline console_cmdline[MAX_CMDLINECONSOLES];
d197c43d 271
1da177e4 272static int preferred_console = -1;
9e124fe1
MA
273int console_set_on_cmdline;
274EXPORT_SYMBOL(console_set_on_cmdline);
1da177e4
LT
275
276/* Flag: console code may call schedule() */
277static int console_may_schedule;
278
cca10d58
SS
279enum con_msg_format_flags {
280 MSG_FORMAT_DEFAULT = 0,
281 MSG_FORMAT_SYSLOG = (1 << 0),
282};
283
284static int console_msg_format = MSG_FORMAT_DEFAULT;
285
7ff9554b
KS
286/*
287 * The printk log buffer consists of a chain of concatenated variable
288 * length records. Every record starts with a record header, containing
289 * the overall length of the record.
290 *
291 * The heads to the first and last entry in the buffer, as well as the
0b90fec3
AE
292 * sequence numbers of these entries are maintained when messages are
293 * stored.
7ff9554b
KS
294 *
295 * If the heads indicate available messages, the length in the header
296 * tells the start next message. A length == 0 for the next message
297 * indicates a wrap-around to the beginning of the buffer.
298 *
299 * Every record carries the monotonic timestamp in microseconds, as well as
300 * the standard userspace syslog level and syslog facility. The usual
301 * kernel messages use LOG_KERN; userspace-injected messages always carry
302 * a matching syslog facility, by default LOG_USER. The origin of every
303 * message can be reliably determined that way.
304 *
305 * The human readable log message directly follows the message header. The
306 * length of the message text is stored in the header, the stored message
307 * is not terminated.
308 *
e11fea92
KS
309 * Optionally, a message can carry a dictionary of properties (key/value pairs),
310 * to provide userspace with a machine-readable message context.
311 *
312 * Examples for well-defined, commonly used property names are:
313 * DEVICE=b12:8 device identifier
314 * b12:8 block dev_t
315 * c127:3 char dev_t
316 * n8 netdev ifindex
317 * +sound:card0 subsystem:devname
318 * SUBSYSTEM=pci driver-core subsystem name
319 *
320 * Valid characters in property names are [a-zA-Z0-9.-_]. The plain text value
321 * follows directly after a '=' character. Every property is terminated by
322 * a '\0' character. The last property is not terminated.
323 *
324 * Example of a message structure:
325 * 0000 ff 8f 00 00 00 00 00 00 monotonic time in nsec
326 * 0008 34 00 record is 52 bytes long
327 * 000a 0b 00 text is 11 bytes long
328 * 000c 1f 00 dictionary is 23 bytes long
329 * 000e 03 00 LOG_KERN (facility) LOG_ERR (level)
330 * 0010 69 74 27 73 20 61 20 6c "it's a l"
331 * 69 6e 65 "ine"
332 * 001b 44 45 56 49 43 "DEVIC"
333 * 45 3d 62 38 3a 32 00 44 "E=b8:2\0D"
334 * 52 49 56 45 52 3d 62 75 "RIVER=bu"
335 * 67 "g"
336 * 0032 00 00 00 padding to next message header
337 *
62e32ac3 338 * The 'struct printk_log' buffer header must never be directly exported to
e11fea92
KS
339 * userspace, it is a kernel-private implementation detail that might
340 * need to be changed in the future, when the requirements change.
341 *
342 * /dev/kmsg exports the structured data in the following line format:
b389645f
AO
343 * "<level>,<sequnum>,<timestamp>,<contflag>[,additional_values, ... ];<message text>\n"
344 *
345 * Users of the export format should ignore possible additional values
346 * separated by ',', and find the message after the ';' character.
e11fea92
KS
347 *
348 * The optional key/value pairs are attached as continuation lines starting
349 * with a space character and terminated by a newline. All possible
350 * non-prinatable characters are escaped in the "\xff" notation.
7ff9554b
KS
351 */
352
084681d1 353enum log_flags {
5becfb1d
KS
354 LOG_NEWLINE = 2, /* text ended with a newline */
355 LOG_PREFIX = 4, /* text started with a prefix */
356 LOG_CONT = 8, /* text is a fragment of a continuation line */
084681d1
KS
357};
358
62e32ac3 359struct printk_log {
7ff9554b
KS
360 u64 ts_nsec; /* timestamp in nanoseconds */
361 u16 len; /* length of entire record */
362 u16 text_len; /* length of text buffer */
363 u16 dict_len; /* length of dictionary buffer */
084681d1
KS
364 u8 facility; /* syslog facility */
365 u8 flags:5; /* internal record flags */
366 u8 level:3; /* syslog level */
5c9cf8af
AR
367}
368#ifdef CONFIG_HAVE_EFFICIENT_UNALIGNED_ACCESS
369__packed __aligned(4)
370#endif
371;
7ff9554b
KS
372
373/*
458df9fd
SR
374 * The logbuf_lock protects kmsg buffer, indices, counters. This can be taken
375 * within the scheduler's rq lock. It must be released before calling
376 * console_unlock() or anything else that might wake up a process.
7ff9554b 377 */
cf9b1106 378DEFINE_RAW_SPINLOCK(logbuf_lock);
d59745ce 379
de6fcbdb
SS
380/*
381 * Helper macros to lock/unlock logbuf_lock and switch between
382 * printk-safe/unsafe modes.
383 */
384#define logbuf_lock_irq() \
385 do { \
386 printk_safe_enter_irq(); \
387 raw_spin_lock(&logbuf_lock); \
388 } while (0)
389
390#define logbuf_unlock_irq() \
391 do { \
392 raw_spin_unlock(&logbuf_lock); \
393 printk_safe_exit_irq(); \
394 } while (0)
395
396#define logbuf_lock_irqsave(flags) \
397 do { \
398 printk_safe_enter_irqsave(flags); \
399 raw_spin_lock(&logbuf_lock); \
400 } while (0)
401
402#define logbuf_unlock_irqrestore(flags) \
403 do { \
404 raw_spin_unlock(&logbuf_lock); \
405 printk_safe_exit_irqrestore(flags); \
406 } while (0)
407
96efedf1 408#ifdef CONFIG_PRINTK
dc72c32e 409DECLARE_WAIT_QUEUE_HEAD(log_wait);
7f3a781d
KS
410/* the next printk record to read by syslog(READ) or /proc/kmsg */
411static u64 syslog_seq;
412static u32 syslog_idx;
eb02dac9 413static size_t syslog_partial;
7ff9554b
KS
414
415/* index and sequence number of the first record stored in the buffer */
416static u64 log_first_seq;
417static u32 log_first_idx;
418
419/* index and sequence number of the next record to store in the buffer */
420static u64 log_next_seq;
421static u32 log_next_idx;
422
eab07260
KS
423/* the next printk record to write to the console */
424static u64 console_seq;
425static u32 console_idx;
f92b070f 426static u64 exclusive_console_stop_seq;
eab07260 427
7ff9554b
KS
428/* the next printk record to read after the last 'clear' command */
429static u64 clear_seq;
430static u32 clear_idx;
431
70498253 432#define PREFIX_MAX 32
249771b8 433#define LOG_LINE_MAX (1024 - PREFIX_MAX)
7f3a781d 434
3824657c
MK
435#define LOG_LEVEL(v) ((v) & 0x07)
436#define LOG_FACILITY(v) ((v) >> 3 & 0xff)
437
7f3a781d 438/* record buffer */
62e32ac3 439#define LOG_ALIGN __alignof__(struct printk_log)
7f3a781d 440#define __LOG_BUF_LEN (1 << CONFIG_LOG_BUF_SHIFT)
f8450fca 441static char __log_buf[__LOG_BUF_LEN] __aligned(LOG_ALIGN);
7f3a781d
KS
442static char *log_buf = __log_buf;
443static u32 log_buf_len = __LOG_BUF_LEN;
444
14c4000a
VH
445/* Return log buffer address */
446char *log_buf_addr_get(void)
447{
448 return log_buf;
449}
450
451/* Return log buffer size */
452u32 log_buf_len_get(void)
453{
454 return log_buf_len;
455}
456
7ff9554b 457/* human readable text of the record */
62e32ac3 458static char *log_text(const struct printk_log *msg)
7ff9554b 459{
62e32ac3 460 return (char *)msg + sizeof(struct printk_log);
7ff9554b
KS
461}
462
463/* optional key/value pair dictionary attached to the record */
62e32ac3 464static char *log_dict(const struct printk_log *msg)
7ff9554b 465{
62e32ac3 466 return (char *)msg + sizeof(struct printk_log) + msg->text_len;
7ff9554b
KS
467}
468
469/* get record by index; idx must point to valid msg */
62e32ac3 470static struct printk_log *log_from_idx(u32 idx)
7ff9554b 471{
62e32ac3 472 struct printk_log *msg = (struct printk_log *)(log_buf + idx);
7ff9554b
KS
473
474 /*
475 * A length == 0 record is the end of buffer marker. Wrap around and
476 * read the message at the start of the buffer.
477 */
478 if (!msg->len)
62e32ac3 479 return (struct printk_log *)log_buf;
7ff9554b
KS
480 return msg;
481}
482
483/* get next record; idx must point to valid msg */
484static u32 log_next(u32 idx)
485{
62e32ac3 486 struct printk_log *msg = (struct printk_log *)(log_buf + idx);
7ff9554b
KS
487
488 /* length == 0 indicates the end of the buffer; wrap */
489 /*
490 * A length == 0 record is the end of buffer marker. Wrap around and
491 * read the message at the start of the buffer as *this* one, and
492 * return the one after that.
493 */
494 if (!msg->len) {
62e32ac3 495 msg = (struct printk_log *)log_buf;
7ff9554b
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496 return msg->len;
497 }
498 return idx + msg->len;
499}
500
f40e4b9f
PM
501/*
502 * Check whether there is enough free space for the given message.
503 *
504 * The same values of first_idx and next_idx mean that the buffer
505 * is either empty or full.
506 *
507 * If the buffer is empty, we must respect the position of the indexes.
508 * They cannot be reset to the beginning of the buffer.
509 */
510static int logbuf_has_space(u32 msg_size, bool empty)
0a581694
PM
511{
512 u32 free;
513
f40e4b9f 514 if (log_next_idx > log_first_idx || empty)
0a581694
PM
515 free = max(log_buf_len - log_next_idx, log_first_idx);
516 else
517 free = log_first_idx - log_next_idx;
518
519 /*
520 * We need space also for an empty header that signalizes wrapping
521 * of the buffer.
522 */
523 return free >= msg_size + sizeof(struct printk_log);
524}
525
f40e4b9f 526static int log_make_free_space(u32 msg_size)
0a581694 527{
f468908b
ID
528 while (log_first_seq < log_next_seq &&
529 !logbuf_has_space(msg_size, false)) {
0b90fec3 530 /* drop old messages until we have enough contiguous space */
0a581694
PM
531 log_first_idx = log_next(log_first_idx);
532 log_first_seq++;
533 }
f40e4b9f 534
f468908b
ID
535 if (clear_seq < log_first_seq) {
536 clear_seq = log_first_seq;
537 clear_idx = log_first_idx;
538 }
539
f40e4b9f 540 /* sequence numbers are equal, so the log buffer is empty */
f468908b 541 if (logbuf_has_space(msg_size, log_first_seq == log_next_seq))
f40e4b9f
PM
542 return 0;
543
544 return -ENOMEM;
0a581694
PM
545}
546
85c87043
PM
547/* compute the message size including the padding bytes */
548static u32 msg_used_size(u16 text_len, u16 dict_len, u32 *pad_len)
549{
550 u32 size;
551
552 size = sizeof(struct printk_log) + text_len + dict_len;
553 *pad_len = (-size) & (LOG_ALIGN - 1);
554 size += *pad_len;
555
556 return size;
557}
558
55bd53a4
PM
559/*
560 * Define how much of the log buffer we could take at maximum. The value
561 * must be greater than two. Note that only half of the buffer is available
562 * when the index points to the middle.
563 */
564#define MAX_LOG_TAKE_PART 4
565static const char trunc_msg[] = "<truncated>";
566
567static u32 truncate_msg(u16 *text_len, u16 *trunc_msg_len,
568 u16 *dict_len, u32 *pad_len)
569{
570 /*
571 * The message should not take the whole buffer. Otherwise, it might
572 * get removed too soon.
573 */
574 u32 max_text_len = log_buf_len / MAX_LOG_TAKE_PART;
575 if (*text_len > max_text_len)
576 *text_len = max_text_len;
577 /* enable the warning message */
578 *trunc_msg_len = strlen(trunc_msg);
579 /* disable the "dict" completely */
580 *dict_len = 0;
581 /* compute the size again, count also the warning message */
582 return msg_used_size(*text_len + *trunc_msg_len, 0, pad_len);
583}
584
7ff9554b 585/* insert record into the buffer, discard old ones, update heads */
034633cc
PM
586static int log_store(int facility, int level,
587 enum log_flags flags, u64 ts_nsec,
588 const char *dict, u16 dict_len,
589 const char *text, u16 text_len)
7ff9554b 590{
62e32ac3 591 struct printk_log *msg;
7ff9554b 592 u32 size, pad_len;
55bd53a4 593 u16 trunc_msg_len = 0;
7ff9554b
KS
594
595 /* number of '\0' padding bytes to next message */
85c87043 596 size = msg_used_size(text_len, dict_len, &pad_len);
7ff9554b 597
55bd53a4
PM
598 if (log_make_free_space(size)) {
599 /* truncate the message if it is too long for empty buffer */
600 size = truncate_msg(&text_len, &trunc_msg_len,
601 &dict_len, &pad_len);
602 /* survive when the log buffer is too small for trunc_msg */
603 if (log_make_free_space(size))
034633cc 604 return 0;
55bd53a4 605 }
7ff9554b 606
39b25109 607 if (log_next_idx + size + sizeof(struct printk_log) > log_buf_len) {
7ff9554b
KS
608 /*
609 * This message + an additional empty header does not fit
610 * at the end of the buffer. Add an empty header with len == 0
611 * to signify a wrap around.
612 */
62e32ac3 613 memset(log_buf + log_next_idx, 0, sizeof(struct printk_log));
7ff9554b
KS
614 log_next_idx = 0;
615 }
616
617 /* fill message */
62e32ac3 618 msg = (struct printk_log *)(log_buf + log_next_idx);
7ff9554b
KS
619 memcpy(log_text(msg), text, text_len);
620 msg->text_len = text_len;
55bd53a4
PM
621 if (trunc_msg_len) {
622 memcpy(log_text(msg) + text_len, trunc_msg, trunc_msg_len);
623 msg->text_len += trunc_msg_len;
624 }
7ff9554b
KS
625 memcpy(log_dict(msg), dict, dict_len);
626 msg->dict_len = dict_len;
084681d1
KS
627 msg->facility = facility;
628 msg->level = level & 7;
629 msg->flags = flags & 0x1f;
630 if (ts_nsec > 0)
631 msg->ts_nsec = ts_nsec;
632 else
633 msg->ts_nsec = local_clock();
7ff9554b 634 memset(log_dict(msg) + dict_len, 0, pad_len);
fce6e033 635 msg->len = size;
7ff9554b
KS
636
637 /* insert message */
638 log_next_idx += msg->len;
639 log_next_seq++;
034633cc
PM
640
641 return msg->text_len;
7ff9554b 642}
d59745ce 643
e99aa461 644int dmesg_restrict = IS_ENABLED(CONFIG_SECURITY_DMESG_RESTRICT);
637241a9
KC
645
646static int syslog_action_restricted(int type)
647{
648 if (dmesg_restrict)
649 return 1;
650 /*
651 * Unless restricted, we allow "read all" and "get buffer size"
652 * for everybody.
653 */
654 return type != SYSLOG_ACTION_READ_ALL &&
655 type != SYSLOG_ACTION_SIZE_BUFFER;
656}
657
c71b02e4 658static int check_syslog_permissions(int type, int source)
637241a9
KC
659{
660 /*
661 * If this is from /proc/kmsg and we've already opened it, then we've
662 * already done the capabilities checks at open time.
663 */
3ea4331c 664 if (source == SYSLOG_FROM_PROC && type != SYSLOG_ACTION_OPEN)
d194e5d6 665 goto ok;
637241a9
KC
666
667 if (syslog_action_restricted(type)) {
668 if (capable(CAP_SYSLOG))
d194e5d6 669 goto ok;
637241a9
KC
670 /*
671 * For historical reasons, accept CAP_SYS_ADMIN too, with
672 * a warning.
673 */
674 if (capable(CAP_SYS_ADMIN)) {
675 pr_warn_once("%s (%d): Attempt to access syslog with "
676 "CAP_SYS_ADMIN but no CAP_SYSLOG "
677 "(deprecated).\n",
678 current->comm, task_pid_nr(current));
d194e5d6 679 goto ok;
637241a9
KC
680 }
681 return -EPERM;
682 }
d194e5d6 683ok:
637241a9
KC
684 return security_syslog(type);
685}
686
d43ff430
TH
687static void append_char(char **pp, char *e, char c)
688{
689 if (*pp < e)
690 *(*pp)++ = c;
691}
637241a9 692
0a295e67 693static ssize_t msg_print_ext_header(char *buf, size_t size,
5aa068ea 694 struct printk_log *msg, u64 seq)
0a295e67
TH
695{
696 u64 ts_usec = msg->ts_nsec;
0a295e67
TH
697
698 do_div(ts_usec, 1000);
699
0a295e67 700 return scnprintf(buf, size, "%u,%llu,%llu,%c;",
5aa068ea
LT
701 (msg->facility << 3) | msg->level, seq, ts_usec,
702 msg->flags & LOG_CONT ? 'c' : '-');
0a295e67
TH
703}
704
705static ssize_t msg_print_ext_body(char *buf, size_t size,
706 char *dict, size_t dict_len,
707 char *text, size_t text_len)
708{
709 char *p = buf, *e = buf + size;
710 size_t i;
711
712 /* escape non-printable characters */
713 for (i = 0; i < text_len; i++) {
714 unsigned char c = text[i];
715
716 if (c < ' ' || c >= 127 || c == '\\')
717 p += scnprintf(p, e - p, "\\x%02x", c);
718 else
719 append_char(&p, e, c);
720 }
721 append_char(&p, e, '\n');
722
723 if (dict_len) {
724 bool line = true;
725
726 for (i = 0; i < dict_len; i++) {
727 unsigned char c = dict[i];
728
729 if (line) {
730 append_char(&p, e, ' ');
731 line = false;
732 }
733
734 if (c == '\0') {
735 append_char(&p, e, '\n');
736 line = true;
737 continue;
738 }
739
740 if (c < ' ' || c >= 127 || c == '\\') {
741 p += scnprintf(p, e - p, "\\x%02x", c);
742 continue;
743 }
744
745 append_char(&p, e, c);
746 }
747 append_char(&p, e, '\n');
748 }
749
750 return p - buf;
751}
752
e11fea92
KS
753/* /dev/kmsg - userspace message inject/listen interface */
754struct devkmsg_user {
755 u64 seq;
756 u32 idx;
750afe7b 757 struct ratelimit_state rs;
e11fea92 758 struct mutex lock;
d43ff430 759 char buf[CONSOLE_EXT_LOG_MAX];
e11fea92
KS
760};
761
849f3127 762static ssize_t devkmsg_write(struct kiocb *iocb, struct iov_iter *from)
e11fea92
KS
763{
764 char *buf, *line;
e11fea92
KS
765 int level = default_message_loglevel;
766 int facility = 1; /* LOG_USER */
750afe7b
BP
767 struct file *file = iocb->ki_filp;
768 struct devkmsg_user *user = file->private_data;
66ee59af 769 size_t len = iov_iter_count(from);
e11fea92
KS
770 ssize_t ret = len;
771
750afe7b 772 if (!user || len > LOG_LINE_MAX)
e11fea92 773 return -EINVAL;
750afe7b
BP
774
775 /* Ignore when user logging is disabled. */
776 if (devkmsg_log & DEVKMSG_LOG_MASK_OFF)
777 return len;
778
779 /* Ratelimit when not explicitly enabled. */
780 if (!(devkmsg_log & DEVKMSG_LOG_MASK_ON)) {
781 if (!___ratelimit(&user->rs, current->comm))
782 return ret;
783 }
784
e11fea92
KS
785 buf = kmalloc(len+1, GFP_KERNEL);
786 if (buf == NULL)
787 return -ENOMEM;
788
849f3127 789 buf[len] = '\0';
cbbd26b8 790 if (!copy_from_iter_full(buf, len, from)) {
849f3127
AV
791 kfree(buf);
792 return -EFAULT;
e11fea92
KS
793 }
794
795 /*
796 * Extract and skip the syslog prefix <[0-9]*>. Coming from userspace
797 * the decimal value represents 32bit, the lower 3 bit are the log
798 * level, the rest are the log facility.
799 *
800 * If no prefix or no userspace facility is specified, we
801 * enforce LOG_USER, to be able to reliably distinguish
802 * kernel-generated messages from userspace-injected ones.
803 */
804 line = buf;
805 if (line[0] == '<') {
806 char *endp = NULL;
3824657c 807 unsigned int u;
e11fea92 808
3824657c 809 u = simple_strtoul(line + 1, &endp, 10);
e11fea92 810 if (endp && endp[0] == '>') {
3824657c
MK
811 level = LOG_LEVEL(u);
812 if (LOG_FACILITY(u) != 0)
813 facility = LOG_FACILITY(u);
e11fea92
KS
814 endp++;
815 len -= endp - line;
816 line = endp;
817 }
818 }
e11fea92
KS
819
820 printk_emit(facility, level, NULL, 0, "%s", line);
e11fea92
KS
821 kfree(buf);
822 return ret;
823}
824
825static ssize_t devkmsg_read(struct file *file, char __user *buf,
826 size_t count, loff_t *ppos)
827{
828 struct devkmsg_user *user = file->private_data;
62e32ac3 829 struct printk_log *msg;
e11fea92
KS
830 size_t len;
831 ssize_t ret;
832
833 if (!user)
834 return -EBADF;
835
4a77a5a0
YL
836 ret = mutex_lock_interruptible(&user->lock);
837 if (ret)
838 return ret;
de6fcbdb
SS
839
840 logbuf_lock_irq();
e11fea92
KS
841 while (user->seq == log_next_seq) {
842 if (file->f_flags & O_NONBLOCK) {
843 ret = -EAGAIN;
de6fcbdb 844 logbuf_unlock_irq();
e11fea92
KS
845 goto out;
846 }
847
de6fcbdb 848 logbuf_unlock_irq();
e11fea92
KS
849 ret = wait_event_interruptible(log_wait,
850 user->seq != log_next_seq);
851 if (ret)
852 goto out;
de6fcbdb 853 logbuf_lock_irq();
e11fea92
KS
854 }
855
856 if (user->seq < log_first_seq) {
857 /* our last seen message is gone, return error and reset */
858 user->idx = log_first_idx;
859 user->seq = log_first_seq;
860 ret = -EPIPE;
de6fcbdb 861 logbuf_unlock_irq();
e11fea92
KS
862 goto out;
863 }
864
865 msg = log_from_idx(user->idx);
0a295e67 866 len = msg_print_ext_header(user->buf, sizeof(user->buf),
5aa068ea 867 msg, user->seq);
0a295e67
TH
868 len += msg_print_ext_body(user->buf + len, sizeof(user->buf) - len,
869 log_dict(msg), msg->dict_len,
870 log_text(msg), msg->text_len);
d39f3d77 871
e11fea92
KS
872 user->idx = log_next(user->idx);
873 user->seq++;
de6fcbdb 874 logbuf_unlock_irq();
e11fea92
KS
875
876 if (len > count) {
877 ret = -EINVAL;
878 goto out;
879 }
880
881 if (copy_to_user(buf, user->buf, len)) {
882 ret = -EFAULT;
883 goto out;
884 }
885 ret = len;
886out:
887 mutex_unlock(&user->lock);
888 return ret;
889}
890
891static loff_t devkmsg_llseek(struct file *file, loff_t offset, int whence)
892{
893 struct devkmsg_user *user = file->private_data;
894 loff_t ret = 0;
895
896 if (!user)
897 return -EBADF;
898 if (offset)
899 return -ESPIPE;
900
de6fcbdb 901 logbuf_lock_irq();
e11fea92
KS
902 switch (whence) {
903 case SEEK_SET:
904 /* the first record */
905 user->idx = log_first_idx;
906 user->seq = log_first_seq;
907 break;
908 case SEEK_DATA:
909 /*
910 * The first record after the last SYSLOG_ACTION_CLEAR,
911 * like issued by 'dmesg -c'. Reading /dev/kmsg itself
912 * changes no global state, and does not clear anything.
913 */
914 user->idx = clear_idx;
915 user->seq = clear_seq;
916 break;
917 case SEEK_END:
918 /* after the last record */
919 user->idx = log_next_idx;
920 user->seq = log_next_seq;
921 break;
922 default:
923 ret = -EINVAL;
924 }
de6fcbdb 925 logbuf_unlock_irq();
e11fea92
KS
926 return ret;
927}
928
9dd95748 929static __poll_t devkmsg_poll(struct file *file, poll_table *wait)
e11fea92
KS
930{
931 struct devkmsg_user *user = file->private_data;
9dd95748 932 __poll_t ret = 0;
e11fea92
KS
933
934 if (!user)
a9a08845 935 return EPOLLERR|EPOLLNVAL;
e11fea92
KS
936
937 poll_wait(file, &log_wait, wait);
938
de6fcbdb 939 logbuf_lock_irq();
e11fea92
KS
940 if (user->seq < log_next_seq) {
941 /* return error when data has vanished underneath us */
942 if (user->seq < log_first_seq)
a9a08845 943 ret = EPOLLIN|EPOLLRDNORM|EPOLLERR|EPOLLPRI;
0a285317 944 else
a9a08845 945 ret = EPOLLIN|EPOLLRDNORM;
e11fea92 946 }
de6fcbdb 947 logbuf_unlock_irq();
e11fea92
KS
948
949 return ret;
950}
951
952static int devkmsg_open(struct inode *inode, struct file *file)
953{
954 struct devkmsg_user *user;
955 int err;
956
750afe7b
BP
957 if (devkmsg_log & DEVKMSG_LOG_MASK_OFF)
958 return -EPERM;
e11fea92 959
750afe7b
BP
960 /* write-only does not need any file context */
961 if ((file->f_flags & O_ACCMODE) != O_WRONLY) {
962 err = check_syslog_permissions(SYSLOG_ACTION_READ_ALL,
963 SYSLOG_FROM_READER);
964 if (err)
965 return err;
966 }
e11fea92
KS
967
968 user = kmalloc(sizeof(struct devkmsg_user), GFP_KERNEL);
969 if (!user)
970 return -ENOMEM;
971
750afe7b
BP
972 ratelimit_default_init(&user->rs);
973 ratelimit_set_flags(&user->rs, RATELIMIT_MSG_ON_RELEASE);
974
e11fea92
KS
975 mutex_init(&user->lock);
976
de6fcbdb 977 logbuf_lock_irq();
e11fea92
KS
978 user->idx = log_first_idx;
979 user->seq = log_first_seq;
de6fcbdb 980 logbuf_unlock_irq();
e11fea92
KS
981
982 file->private_data = user;
983 return 0;
984}
985
986static int devkmsg_release(struct inode *inode, struct file *file)
987{
988 struct devkmsg_user *user = file->private_data;
989
990 if (!user)
991 return 0;
992
750afe7b
BP
993 ratelimit_state_exit(&user->rs);
994
e11fea92
KS
995 mutex_destroy(&user->lock);
996 kfree(user);
997 return 0;
998}
999
1000const struct file_operations kmsg_fops = {
1001 .open = devkmsg_open,
1002 .read = devkmsg_read,
849f3127 1003 .write_iter = devkmsg_write,
e11fea92
KS
1004 .llseek = devkmsg_llseek,
1005 .poll = devkmsg_poll,
1006 .release = devkmsg_release,
1007};
1008
692f66f2 1009#ifdef CONFIG_CRASH_CORE
04d491ab 1010/*
4c1ace64 1011 * This appends the listed symbols to /proc/vmcore
04d491ab 1012 *
4c1ace64 1013 * /proc/vmcore is used by various utilities, like crash and makedumpfile to
04d491ab
NH
1014 * obtain access to symbols that are otherwise very difficult to locate. These
1015 * symbols are specifically used so that utilities can access and extract the
1016 * dmesg log from a vmcore file after a crash.
1017 */
692f66f2 1018void log_buf_vmcoreinfo_setup(void)
04d491ab
NH
1019{
1020 VMCOREINFO_SYMBOL(log_buf);
04d491ab 1021 VMCOREINFO_SYMBOL(log_buf_len);
7ff9554b 1022 VMCOREINFO_SYMBOL(log_first_idx);
f468908b 1023 VMCOREINFO_SYMBOL(clear_idx);
7ff9554b 1024 VMCOREINFO_SYMBOL(log_next_idx);
6791457a 1025 /*
62e32ac3 1026 * Export struct printk_log size and field offsets. User space tools can
6791457a
VG
1027 * parse it and detect any changes to structure down the line.
1028 */
62e32ac3
JP
1029 VMCOREINFO_STRUCT_SIZE(printk_log);
1030 VMCOREINFO_OFFSET(printk_log, ts_nsec);
1031 VMCOREINFO_OFFSET(printk_log, len);
1032 VMCOREINFO_OFFSET(printk_log, text_len);
1033 VMCOREINFO_OFFSET(printk_log, dict_len);
04d491ab
NH
1034}
1035#endif
1036
162a7e75
MT
1037/* requested log_buf_len from kernel cmdline */
1038static unsigned long __initdata new_log_buf_len;
1039
c0a318a3
LR
1040/* we practice scaling the ring buffer by powers of 2 */
1041static void __init log_buf_len_update(unsigned size)
1da177e4 1042{
1da177e4
LT
1043 if (size)
1044 size = roundup_pow_of_two(size);
162a7e75
MT
1045 if (size > log_buf_len)
1046 new_log_buf_len = size;
c0a318a3
LR
1047}
1048
1049/* save requested log_buf_len since it's too early to process it */
1050static int __init log_buf_len_setup(char *str)
1051{
1052 unsigned size = memparse(str, &str);
1053
1054 log_buf_len_update(size);
162a7e75
MT
1055
1056 return 0;
1da177e4 1057}
162a7e75
MT
1058early_param("log_buf_len", log_buf_len_setup);
1059
2240a31d
GU
1060#ifdef CONFIG_SMP
1061#define __LOG_CPU_MAX_BUF_LEN (1 << CONFIG_LOG_CPU_MAX_BUF_SHIFT)
1062
23b2899f
LR
1063static void __init log_buf_add_cpu(void)
1064{
1065 unsigned int cpu_extra;
1066
1067 /*
1068 * archs should set up cpu_possible_bits properly with
1069 * set_cpu_possible() after setup_arch() but just in
1070 * case lets ensure this is valid.
1071 */
1072 if (num_possible_cpus() == 1)
1073 return;
1074
1075 cpu_extra = (num_possible_cpus() - 1) * __LOG_CPU_MAX_BUF_LEN;
1076
1077 /* by default this will only continue through for large > 64 CPUs */
1078 if (cpu_extra <= __LOG_BUF_LEN / 2)
1079 return;
1080
1081 pr_info("log_buf_len individual max cpu contribution: %d bytes\n",
1082 __LOG_CPU_MAX_BUF_LEN);
1083 pr_info("log_buf_len total cpu_extra contributions: %d bytes\n",
1084 cpu_extra);
1085 pr_info("log_buf_len min size: %d bytes\n", __LOG_BUF_LEN);
1086
1087 log_buf_len_update(cpu_extra + __LOG_BUF_LEN);
1088}
2240a31d
GU
1089#else /* !CONFIG_SMP */
1090static inline void log_buf_add_cpu(void) {}
1091#endif /* CONFIG_SMP */
23b2899f 1092
162a7e75
MT
1093void __init setup_log_buf(int early)
1094{
1095 unsigned long flags;
162a7e75
MT
1096 char *new_log_buf;
1097 int free;
1098
23b2899f
LR
1099 if (log_buf != __log_buf)
1100 return;
1101
1102 if (!early && !new_log_buf_len)
1103 log_buf_add_cpu();
1104
162a7e75
MT
1105 if (!new_log_buf_len)
1106 return;
1da177e4 1107
162a7e75 1108 if (early) {
9da791df 1109 new_log_buf =
70300177 1110 memblock_virt_alloc(new_log_buf_len, LOG_ALIGN);
162a7e75 1111 } else {
70300177
LR
1112 new_log_buf = memblock_virt_alloc_nopanic(new_log_buf_len,
1113 LOG_ALIGN);
162a7e75
MT
1114 }
1115
1116 if (unlikely(!new_log_buf)) {
1117 pr_err("log_buf_len: %ld bytes not available\n",
1118 new_log_buf_len);
1119 return;
1120 }
1121
de6fcbdb 1122 logbuf_lock_irqsave(flags);
162a7e75
MT
1123 log_buf_len = new_log_buf_len;
1124 log_buf = new_log_buf;
1125 new_log_buf_len = 0;
7ff9554b
KS
1126 free = __LOG_BUF_LEN - log_next_idx;
1127 memcpy(log_buf, __log_buf, __LOG_BUF_LEN);
de6fcbdb 1128 logbuf_unlock_irqrestore(flags);
162a7e75 1129
f5405172 1130 pr_info("log_buf_len: %d bytes\n", log_buf_len);
162a7e75
MT
1131 pr_info("early log buf free: %d(%d%%)\n",
1132 free, (free * 100) / __LOG_BUF_LEN);
1133}
1da177e4 1134
2fa72c8f
AC
1135static bool __read_mostly ignore_loglevel;
1136
1137static int __init ignore_loglevel_setup(char *str)
1138{
d25d9fec 1139 ignore_loglevel = true;
27083bac 1140 pr_info("debug: ignoring loglevel setting.\n");
2fa72c8f
AC
1141
1142 return 0;
1143}
1144
1145early_param("ignore_loglevel", ignore_loglevel_setup);
1146module_param(ignore_loglevel, bool, S_IRUGO | S_IWUSR);
205bd3d2
JP
1147MODULE_PARM_DESC(ignore_loglevel,
1148 "ignore loglevel setting (prints all kernel messages to the console)");
2fa72c8f 1149
cf775444
SS
1150static bool suppress_message_printing(int level)
1151{
1152 return (level >= console_loglevel && !ignore_loglevel);
1153}
1154
bfe8df3d
RD
1155#ifdef CONFIG_BOOT_PRINTK_DELAY
1156
674dff65 1157static int boot_delay; /* msecs delay after each printk during bootup */
3a3b6ed2 1158static unsigned long long loops_per_msec; /* based on boot_delay */
bfe8df3d
RD
1159
1160static int __init boot_delay_setup(char *str)
1161{
1162 unsigned long lpj;
bfe8df3d
RD
1163
1164 lpj = preset_lpj ? preset_lpj : 1000000; /* some guess */
1165 loops_per_msec = (unsigned long long)lpj / 1000 * HZ;
1166
1167 get_option(&str, &boot_delay);
1168 if (boot_delay > 10 * 1000)
1169 boot_delay = 0;
1170
3a3b6ed2
DY
1171 pr_debug("boot_delay: %u, preset_lpj: %ld, lpj: %lu, "
1172 "HZ: %d, loops_per_msec: %llu\n",
1173 boot_delay, preset_lpj, lpj, HZ, loops_per_msec);
29e9d225 1174 return 0;
bfe8df3d 1175}
29e9d225 1176early_param("boot_delay", boot_delay_setup);
bfe8df3d 1177
2fa72c8f 1178static void boot_delay_msec(int level)
bfe8df3d
RD
1179{
1180 unsigned long long k;
1181 unsigned long timeout;
1182
ff48cd26 1183 if ((boot_delay == 0 || system_state >= SYSTEM_RUNNING)
cf775444 1184 || suppress_message_printing(level)) {
bfe8df3d 1185 return;
2fa72c8f 1186 }
bfe8df3d 1187
3a3b6ed2 1188 k = (unsigned long long)loops_per_msec * boot_delay;
bfe8df3d
RD
1189
1190 timeout = jiffies + msecs_to_jiffies(boot_delay);
1191 while (k) {
1192 k--;
1193 cpu_relax();
1194 /*
1195 * use (volatile) jiffies to prevent
1196 * compiler reduction; loop termination via jiffies
1197 * is secondary and may or may not happen.
1198 */
1199 if (time_after(jiffies, timeout))
1200 break;
1201 touch_nmi_watchdog();
1202 }
1203}
1204#else
2fa72c8f 1205static inline void boot_delay_msec(int level)
bfe8df3d
RD
1206{
1207}
1208#endif
1209
e99aa461 1210static bool printk_time = IS_ENABLED(CONFIG_PRINTK_TIME);
7ff9554b
KS
1211module_param_named(time, printk_time, bool, S_IRUGO | S_IWUSR);
1212
084681d1
KS
1213static size_t print_time(u64 ts, char *buf)
1214{
1215 unsigned long rem_nsec;
1216
1217 if (!printk_time)
1218 return 0;
1219
35dac27c
RD
1220 rem_nsec = do_div(ts, 1000000000);
1221
084681d1 1222 if (!buf)
35dac27c 1223 return snprintf(NULL, 0, "[%5lu.000000] ", (unsigned long)ts);
084681d1 1224
084681d1
KS
1225 return sprintf(buf, "[%5lu.%06lu] ",
1226 (unsigned long)ts, rem_nsec / 1000);
1227}
1228
62e32ac3 1229static size_t print_prefix(const struct printk_log *msg, bool syslog, char *buf)
649e6ee3 1230{
3ce9a7c0 1231 size_t len = 0;
43a73a50 1232 unsigned int prefix = (msg->facility << 3) | msg->level;
649e6ee3 1233
3ce9a7c0
KS
1234 if (syslog) {
1235 if (buf) {
43a73a50 1236 len += sprintf(buf, "<%u>", prefix);
3ce9a7c0
KS
1237 } else {
1238 len += 3;
43a73a50
KS
1239 if (prefix > 999)
1240 len += 3;
1241 else if (prefix > 99)
1242 len += 2;
1243 else if (prefix > 9)
3ce9a7c0
KS
1244 len++;
1245 }
1246 }
649e6ee3 1247
084681d1 1248 len += print_time(msg->ts_nsec, buf ? buf + len : NULL);
3ce9a7c0 1249 return len;
649e6ee3
KS
1250}
1251
5aa068ea 1252static size_t msg_print_text(const struct printk_log *msg, bool syslog, char *buf, size_t size)
7ff9554b 1253{
3ce9a7c0
KS
1254 const char *text = log_text(msg);
1255 size_t text_size = msg->text_len;
1256 size_t len = 0;
1257
1258 do {
1259 const char *next = memchr(text, '\n', text_size);
1260 size_t text_len;
1261
1262 if (next) {
1263 text_len = next - text;
1264 next++;
1265 text_size -= next - text;
1266 } else {
1267 text_len = text_size;
1268 }
7ff9554b 1269
3ce9a7c0
KS
1270 if (buf) {
1271 if (print_prefix(msg, syslog, NULL) +
70498253 1272 text_len + 1 >= size - len)
3ce9a7c0 1273 break;
7ff9554b 1274
5aa068ea 1275 len += print_prefix(msg, syslog, buf + len);
3ce9a7c0
KS
1276 memcpy(buf + len, text, text_len);
1277 len += text_len;
5aa068ea 1278 buf[len++] = '\n';
3ce9a7c0
KS
1279 } else {
1280 /* SYSLOG_ACTION_* buffer size only calculation */
5aa068ea 1281 len += print_prefix(msg, syslog, NULL);
5becfb1d 1282 len += text_len;
5aa068ea 1283 len++;
3ce9a7c0 1284 }
7ff9554b 1285
3ce9a7c0
KS
1286 text = next;
1287 } while (text);
7ff9554b 1288
7ff9554b
KS
1289 return len;
1290}
1291
1292static int syslog_print(char __user *buf, int size)
1293{
1294 char *text;
62e32ac3 1295 struct printk_log *msg;
116e90b2 1296 int len = 0;
7ff9554b 1297
70498253 1298 text = kmalloc(LOG_LINE_MAX + PREFIX_MAX, GFP_KERNEL);
7ff9554b
KS
1299 if (!text)
1300 return -ENOMEM;
1301
116e90b2
JB
1302 while (size > 0) {
1303 size_t n;
eb02dac9 1304 size_t skip;
116e90b2 1305
de6fcbdb 1306 logbuf_lock_irq();
116e90b2
JB
1307 if (syslog_seq < log_first_seq) {
1308 /* messages are gone, move to first one */
1309 syslog_seq = log_first_seq;
1310 syslog_idx = log_first_idx;
eb02dac9 1311 syslog_partial = 0;
116e90b2
JB
1312 }
1313 if (syslog_seq == log_next_seq) {
de6fcbdb 1314 logbuf_unlock_irq();
116e90b2
JB
1315 break;
1316 }
eb02dac9
KS
1317
1318 skip = syslog_partial;
116e90b2 1319 msg = log_from_idx(syslog_idx);
5aa068ea 1320 n = msg_print_text(msg, true, text, LOG_LINE_MAX + PREFIX_MAX);
eb02dac9
KS
1321 if (n - syslog_partial <= size) {
1322 /* message fits into buffer, move forward */
116e90b2
JB
1323 syslog_idx = log_next(syslog_idx);
1324 syslog_seq++;
eb02dac9
KS
1325 n -= syslog_partial;
1326 syslog_partial = 0;
1327 } else if (!len){
1328 /* partial read(), remember position */
1329 n = size;
1330 syslog_partial += n;
116e90b2
JB
1331 } else
1332 n = 0;
de6fcbdb 1333 logbuf_unlock_irq();
116e90b2
JB
1334
1335 if (!n)
1336 break;
1337
eb02dac9 1338 if (copy_to_user(buf, text + skip, n)) {
116e90b2
JB
1339 if (!len)
1340 len = -EFAULT;
1341 break;
1342 }
eb02dac9
KS
1343
1344 len += n;
1345 size -= n;
1346 buf += n;
7ff9554b 1347 }
7ff9554b
KS
1348
1349 kfree(text);
1350 return len;
1351}
1352
1353static int syslog_print_all(char __user *buf, int size, bool clear)
1354{
1355 char *text;
1356 int len = 0;
63842c21
NG
1357 u64 next_seq;
1358 u64 seq;
1359 u32 idx;
1360
70498253 1361 text = kmalloc(LOG_LINE_MAX + PREFIX_MAX, GFP_KERNEL);
7ff9554b
KS
1362 if (!text)
1363 return -ENOMEM;
1364
de6fcbdb 1365 logbuf_lock_irq();
63842c21
NG
1366 /*
1367 * Find first record that fits, including all following records,
1368 * into the user-provided buffer for this dump.
1369 */
1370 seq = clear_seq;
1371 idx = clear_idx;
1372 while (seq < log_next_seq) {
1373 struct printk_log *msg = log_from_idx(idx);
1374
1375 len += msg_print_text(msg, true, NULL, 0);
1376 idx = log_next(idx);
1377 seq++;
1378 }
e2ae715d 1379
63842c21
NG
1380 /* move first record forward until length fits into the buffer */
1381 seq = clear_seq;
1382 idx = clear_idx;
1383 while (len > size && seq < log_next_seq) {
1384 struct printk_log *msg = log_from_idx(idx);
3ce9a7c0 1385
63842c21
NG
1386 len -= msg_print_text(msg, true, NULL, 0);
1387 idx = log_next(idx);
1388 seq++;
1389 }
7ff9554b 1390
63842c21
NG
1391 /* last message fitting into this dump */
1392 next_seq = log_next_seq;
7ff9554b 1393
63842c21
NG
1394 len = 0;
1395 while (len >= 0 && seq < next_seq) {
1396 struct printk_log *msg = log_from_idx(idx);
1397 int textlen;
7ff9554b 1398
63842c21
NG
1399 textlen = msg_print_text(msg, true, text,
1400 LOG_LINE_MAX + PREFIX_MAX);
1401 if (textlen < 0) {
1402 len = textlen;
1403 break;
1404 }
1405 idx = log_next(idx);
1406 seq++;
7ff9554b 1407
63842c21
NG
1408 logbuf_unlock_irq();
1409 if (copy_to_user(buf + len, text, textlen))
1410 len = -EFAULT;
1411 else
1412 len += textlen;
1413 logbuf_lock_irq();
7ff9554b 1414
63842c21
NG
1415 if (seq < log_first_seq) {
1416 /* messages are gone, move to next one */
1417 seq = log_first_seq;
1418 idx = log_first_idx;
7ff9554b
KS
1419 }
1420 }
1421
1422 if (clear) {
1423 clear_seq = log_next_seq;
1424 clear_idx = log_next_idx;
1425 }
de6fcbdb 1426 logbuf_unlock_irq();
7ff9554b
KS
1427
1428 kfree(text);
1429 return len;
1430}
1431
8599dc7d
PM
1432static void syslog_clear(void)
1433{
1434 logbuf_lock_irq();
1435 clear_seq = log_next_seq;
1436 clear_idx = log_next_idx;
1437 logbuf_unlock_irq();
1438}
1439
3ea4331c 1440int do_syslog(int type, char __user *buf, int len, int source)
1da177e4 1441{
7ff9554b 1442 bool clear = false;
a39d4a85 1443 static int saved_console_loglevel = LOGLEVEL_DEFAULT;
ee24aebf 1444 int error;
1da177e4 1445
3ea4331c 1446 error = check_syslog_permissions(type, source);
ee24aebf 1447 if (error)
077a1cc0 1448 return error;
12b3052c 1449
1da177e4 1450 switch (type) {
d78ca3cd 1451 case SYSLOG_ACTION_CLOSE: /* Close log */
1da177e4 1452 break;
d78ca3cd 1453 case SYSLOG_ACTION_OPEN: /* Open log */
1da177e4 1454 break;
d78ca3cd 1455 case SYSLOG_ACTION_READ: /* Read from log */
1da177e4 1456 if (!buf || len < 0)
077a1cc0 1457 return -EINVAL;
1da177e4 1458 if (!len)
077a1cc0
NA
1459 return 0;
1460 if (!access_ok(VERIFY_WRITE, buf, len))
1461 return -EFAULT;
40dc5651 1462 error = wait_event_interruptible(log_wait,
7ff9554b 1463 syslog_seq != log_next_seq);
cb424ffe 1464 if (error)
077a1cc0 1465 return error;
7ff9554b 1466 error = syslog_print(buf, len);
1da177e4 1467 break;
d78ca3cd
KC
1468 /* Read/clear last kernel messages */
1469 case SYSLOG_ACTION_READ_CLEAR:
7ff9554b 1470 clear = true;
1da177e4 1471 /* FALL THRU */
d78ca3cd
KC
1472 /* Read last kernel messages */
1473 case SYSLOG_ACTION_READ_ALL:
1da177e4 1474 if (!buf || len < 0)
077a1cc0 1475 return -EINVAL;
1da177e4 1476 if (!len)
077a1cc0
NA
1477 return 0;
1478 if (!access_ok(VERIFY_WRITE, buf, len))
1479 return -EFAULT;
7ff9554b 1480 error = syslog_print_all(buf, len, clear);
1da177e4 1481 break;
d78ca3cd
KC
1482 /* Clear ring buffer */
1483 case SYSLOG_ACTION_CLEAR:
8599dc7d 1484 syslog_clear();
4661e356 1485 break;
d78ca3cd
KC
1486 /* Disable logging to console */
1487 case SYSLOG_ACTION_CONSOLE_OFF:
a39d4a85 1488 if (saved_console_loglevel == LOGLEVEL_DEFAULT)
1aaad49e 1489 saved_console_loglevel = console_loglevel;
1da177e4
LT
1490 console_loglevel = minimum_console_loglevel;
1491 break;
d78ca3cd
KC
1492 /* Enable logging to console */
1493 case SYSLOG_ACTION_CONSOLE_ON:
a39d4a85 1494 if (saved_console_loglevel != LOGLEVEL_DEFAULT) {
1aaad49e 1495 console_loglevel = saved_console_loglevel;
a39d4a85 1496 saved_console_loglevel = LOGLEVEL_DEFAULT;
1aaad49e 1497 }
1da177e4 1498 break;
d78ca3cd
KC
1499 /* Set level of messages printed to console */
1500 case SYSLOG_ACTION_CONSOLE_LEVEL:
1da177e4 1501 if (len < 1 || len > 8)
077a1cc0 1502 return -EINVAL;
1da177e4
LT
1503 if (len < minimum_console_loglevel)
1504 len = minimum_console_loglevel;
1505 console_loglevel = len;
1aaad49e 1506 /* Implicitly re-enable logging to console */
a39d4a85 1507 saved_console_loglevel = LOGLEVEL_DEFAULT;
1da177e4 1508 break;
d78ca3cd
KC
1509 /* Number of chars in the log buffer */
1510 case SYSLOG_ACTION_SIZE_UNREAD:
de6fcbdb 1511 logbuf_lock_irq();
7ff9554b
KS
1512 if (syslog_seq < log_first_seq) {
1513 /* messages are gone, move to first one */
1514 syslog_seq = log_first_seq;
1515 syslog_idx = log_first_idx;
eb02dac9 1516 syslog_partial = 0;
7ff9554b 1517 }
3ea4331c 1518 if (source == SYSLOG_FROM_PROC) {
7ff9554b
KS
1519 /*
1520 * Short-cut for poll(/"proc/kmsg") which simply checks
1521 * for pending data, not the size; return the count of
1522 * records, not the length.
1523 */
e97e1267 1524 error = log_next_seq - syslog_seq;
7ff9554b 1525 } else {
5becfb1d
KS
1526 u64 seq = syslog_seq;
1527 u32 idx = syslog_idx;
7ff9554b 1528
7ff9554b 1529 while (seq < log_next_seq) {
62e32ac3 1530 struct printk_log *msg = log_from_idx(idx);
3ce9a7c0 1531
5aa068ea 1532 error += msg_print_text(msg, true, NULL, 0);
7ff9554b
KS
1533 idx = log_next(idx);
1534 seq++;
1535 }
eb02dac9 1536 error -= syslog_partial;
7ff9554b 1537 }
de6fcbdb 1538 logbuf_unlock_irq();
1da177e4 1539 break;
d78ca3cd
KC
1540 /* Size of the log buffer */
1541 case SYSLOG_ACTION_SIZE_BUFFER:
1da177e4
LT
1542 error = log_buf_len;
1543 break;
1544 default:
1545 error = -EINVAL;
1546 break;
1547 }
077a1cc0 1548
1da177e4
LT
1549 return error;
1550}
1551
1e7bfb21 1552SYSCALL_DEFINE3(syslog, int, type, char __user *, buf, int, len)
1da177e4 1553{
637241a9 1554 return do_syslog(type, buf, len, SYSLOG_FROM_READER);
1da177e4
LT
1555}
1556
c162d5b4
PM
1557/*
1558 * Special console_lock variants that help to reduce the risk of soft-lockups.
1559 * They allow to pass console_lock to another printk() call using a busy wait.
1560 */
1561
1562#ifdef CONFIG_LOCKDEP
1563static struct lockdep_map console_owner_dep_map = {
1564 .name = "console_owner"
1565};
1566#endif
1567
1568static DEFINE_RAW_SPINLOCK(console_owner_lock);
1569static struct task_struct *console_owner;
1570static bool console_waiter;
1571
1572/**
1573 * console_lock_spinning_enable - mark beginning of code where another
1574 * thread might safely busy wait
1575 *
1576 * This basically converts console_lock into a spinlock. This marks
1577 * the section where the console_lock owner can not sleep, because
1578 * there may be a waiter spinning (like a spinlock). Also it must be
1579 * ready to hand over the lock at the end of the section.
1580 */
1581static void console_lock_spinning_enable(void)
1582{
1583 raw_spin_lock(&console_owner_lock);
1584 console_owner = current;
1585 raw_spin_unlock(&console_owner_lock);
1586
1587 /* The waiter may spin on us after setting console_owner */
1588 spin_acquire(&console_owner_dep_map, 0, 0, _THIS_IP_);
1589}
1590
1591/**
1592 * console_lock_spinning_disable_and_check - mark end of code where another
1593 * thread was able to busy wait and check if there is a waiter
1594 *
1595 * This is called at the end of the section where spinning is allowed.
1596 * It has two functions. First, it is a signal that it is no longer
1597 * safe to start busy waiting for the lock. Second, it checks if
1598 * there is a busy waiter and passes the lock rights to her.
1599 *
1600 * Important: Callers lose the lock if there was a busy waiter.
1601 * They must not touch items synchronized by console_lock
1602 * in this case.
1603 *
1604 * Return: 1 if the lock rights were passed, 0 otherwise.
1605 */
1606static int console_lock_spinning_disable_and_check(void)
1607{
1608 int waiter;
1609
1610 raw_spin_lock(&console_owner_lock);
1611 waiter = READ_ONCE(console_waiter);
1612 console_owner = NULL;
1613 raw_spin_unlock(&console_owner_lock);
1614
1615 if (!waiter) {
1616 spin_release(&console_owner_dep_map, 1, _THIS_IP_);
1617 return 0;
1618 }
1619
1620 /* The waiter is now free to continue */
1621 WRITE_ONCE(console_waiter, false);
1622
1623 spin_release(&console_owner_dep_map, 1, _THIS_IP_);
1624
1625 /*
1626 * Hand off console_lock to waiter. The waiter will perform
1627 * the up(). After this, the waiter is the console_lock owner.
1628 */
1629 mutex_release(&console_lock_dep_map, 1, _THIS_IP_);
1630 return 1;
1631}
1632
1633/**
1634 * console_trylock_spinning - try to get console_lock by busy waiting
1635 *
1636 * This allows to busy wait for the console_lock when the current
1637 * owner is running in specially marked sections. It means that
1638 * the current owner is running and cannot reschedule until it
1639 * is ready to lose the lock.
1640 *
1641 * Return: 1 if we got the lock, 0 othrewise
1642 */
1643static int console_trylock_spinning(void)
1644{
1645 struct task_struct *owner = NULL;
1646 bool waiter;
1647 bool spin = false;
1648 unsigned long flags;
1649
1650 if (console_trylock())
1651 return 1;
1652
1653 printk_safe_enter_irqsave(flags);
1654
1655 raw_spin_lock(&console_owner_lock);
1656 owner = READ_ONCE(console_owner);
1657 waiter = READ_ONCE(console_waiter);
1658 if (!waiter && owner && owner != current) {
1659 WRITE_ONCE(console_waiter, true);
1660 spin = true;
1661 }
1662 raw_spin_unlock(&console_owner_lock);
1663
1664 /*
1665 * If there is an active printk() writing to the
1666 * consoles, instead of having it write our data too,
1667 * see if we can offload that load from the active
1668 * printer, and do some printing ourselves.
1669 * Go into a spin only if there isn't already a waiter
1670 * spinning, and there is an active printer, and
1671 * that active printer isn't us (recursive printk?).
1672 */
1673 if (!spin) {
1674 printk_safe_exit_irqrestore(flags);
1675 return 0;
1676 }
1677
1678 /* We spin waiting for the owner to release us */
1679 spin_acquire(&console_owner_dep_map, 0, 0, _THIS_IP_);
1680 /* Owner will clear console_waiter on hand off */
1681 while (READ_ONCE(console_waiter))
1682 cpu_relax();
1683 spin_release(&console_owner_dep_map, 1, _THIS_IP_);
1684
1685 printk_safe_exit_irqrestore(flags);
1686 /*
1687 * The owner passed the console lock to us.
1688 * Since we did not spin on console lock, annotate
1689 * this as a trylock. Otherwise lockdep will
1690 * complain.
1691 */
1692 mutex_acquire(&console_lock_dep_map, 0, 1, _THIS_IP_);
1693
1694 return 1;
1695}
1696
1da177e4
LT
1697/*
1698 * Call the console drivers, asking them to write out
1699 * log_buf[start] to log_buf[end - 1].
ac751efa 1700 * The console_lock must be held.
1da177e4 1701 */
d9c23523 1702static void call_console_drivers(const char *ext_text, size_t ext_len,
6fe29354 1703 const char *text, size_t len)
1da177e4 1704{
7ff9554b 1705 struct console *con;
1da177e4 1706
fc98c3c8 1707 trace_console_rcuidle(text, len);
7ff9554b 1708
7ff9554b
KS
1709 if (!console_drivers)
1710 return;
1711
1712 for_each_console(con) {
1713 if (exclusive_console && con != exclusive_console)
1714 continue;
1715 if (!(con->flags & CON_ENABLED))
1716 continue;
1717 if (!con->write)
1718 continue;
1719 if (!cpu_online(smp_processor_id()) &&
1720 !(con->flags & CON_ANYTIME))
1721 continue;
6fe29354
TH
1722 if (con->flags & CON_EXTENDED)
1723 con->write(con, ext_text, ext_len);
1724 else
1725 con->write(con, text, len);
7ff9554b 1726 }
1da177e4
LT
1727}
1728
af91322e
DY
1729int printk_delay_msec __read_mostly;
1730
1731static inline void printk_delay(void)
1732{
1733 if (unlikely(printk_delay_msec)) {
1734 int m = printk_delay_msec;
1735
1736 while (m--) {
1737 mdelay(1);
1738 touch_nmi_watchdog();
1739 }
1740 }
1741}
1742
084681d1
KS
1743/*
1744 * Continuation lines are buffered, and not committed to the record buffer
1745 * until the line is complete, or a race forces it. The line fragments
1746 * though, are printed immediately to the consoles to ensure everything has
1747 * reached the console in case of a kernel crash.
1748 */
1749static struct cont {
1750 char buf[LOG_LINE_MAX];
1751 size_t len; /* length == 0 means unused buffer */
084681d1
KS
1752 struct task_struct *owner; /* task of first print*/
1753 u64 ts_nsec; /* time of first print */
1754 u8 level; /* log level of first message */
0b90fec3 1755 u8 facility; /* log facility of first message */
eab07260 1756 enum log_flags flags; /* prefix, newline flags */
084681d1
KS
1757} cont;
1758
5e467652 1759static void cont_flush(void)
084681d1 1760{
084681d1
KS
1761 if (cont.len == 0)
1762 return;
5c2992ee
LT
1763
1764 log_store(cont.facility, cont.level, cont.flags, cont.ts_nsec,
1765 NULL, 0, cont.buf, cont.len);
1766 cont.len = 0;
084681d1
KS
1767}
1768
5e467652 1769static bool cont_add(int facility, int level, enum log_flags flags, const char *text, size_t len)
084681d1 1770{
6fe29354
TH
1771 /*
1772 * If ext consoles are present, flush and skip in-kernel
1773 * continuation. See nr_ext_console_drivers definition. Also, if
1774 * the line gets too long, split it up in separate records.
1775 */
1776 if (nr_ext_console_drivers || cont.len + len > sizeof(cont.buf)) {
5e467652 1777 cont_flush();
084681d1
KS
1778 return false;
1779 }
1780
1781 if (!cont.len) {
1782 cont.facility = facility;
1783 cont.level = level;
1784 cont.owner = current;
1785 cont.ts_nsec = local_clock();
5e467652 1786 cont.flags = flags;
084681d1
KS
1787 }
1788
1789 memcpy(cont.buf + cont.len, text, len);
1790 cont.len += len;
eab07260 1791
5e467652
LT
1792 // The original flags come from the first line,
1793 // but later continuations can add a newline.
1794 if (flags & LOG_NEWLINE) {
1795 cont.flags |= LOG_NEWLINE;
1796 cont_flush();
1797 }
1798
eab07260 1799 if (cont.len > (sizeof(cont.buf) * 80) / 100)
5e467652 1800 cont_flush();
eab07260 1801
084681d1
KS
1802 return true;
1803}
1804
c362c7ff
LT
1805static size_t log_output(int facility, int level, enum log_flags lflags, const char *dict, size_t dictlen, char *text, size_t text_len)
1806{
c362c7ff 1807 /*
5e467652
LT
1808 * If an earlier line was buffered, and we're a continuation
1809 * write from the same process, try to add it to the buffer.
c362c7ff
LT
1810 */
1811 if (cont.len) {
5e467652
LT
1812 if (cont.owner == current && (lflags & LOG_CONT)) {
1813 if (cont_add(facility, level, lflags, text, text_len))
1814 return text_len;
1815 }
1816 /* Otherwise, make sure it's flushed */
1817 cont_flush();
1818 }
c362c7ff 1819
8835ca59
LT
1820 /* Skip empty continuation lines that couldn't be added - they just flush */
1821 if (!text_len && (lflags & LOG_CONT))
1822 return 0;
1823
5e467652
LT
1824 /* If it doesn't end in a newline, try to buffer the current line */
1825 if (!(lflags & LOG_NEWLINE)) {
1826 if (cont_add(facility, level, lflags, text, text_len))
c362c7ff
LT
1827 return text_len;
1828 }
1829
5e467652 1830 /* Store it in the record log */
c362c7ff
LT
1831 return log_store(facility, level, lflags, 0, dict, dictlen, text, text_len);
1832}
1833
ba552399
PM
1834/* Must be called under logbuf_lock. */
1835int vprintk_store(int facility, int level,
1836 const char *dict, size_t dictlen,
1837 const char *fmt, va_list args)
1da177e4 1838{
7ff9554b
KS
1839 static char textbuf[LOG_LINE_MAX];
1840 char *text = textbuf;
aec47caa 1841 size_t text_len;
5becfb1d 1842 enum log_flags lflags = 0;
bfe8df3d 1843
7ff9554b
KS
1844 /*
1845 * The printf needs to come first; we need the syslog
1846 * prefix which might be passed-in as a parameter.
1847 */
98e35f58 1848 text_len = vscnprintf(text, sizeof(textbuf), fmt, args);
5fd29d6c 1849
7ff9554b 1850 /* mark and strip a trailing newline */
c313af14
KS
1851 if (text_len && text[text_len-1] == '\n') {
1852 text_len--;
5becfb1d 1853 lflags |= LOG_NEWLINE;
7ff9554b 1854 }
9d90c8d9 1855
088a52aa
JP
1856 /* strip kernel syslog prefix and extract log level or control flags */
1857 if (facility == 0) {
4bcc595c 1858 int kern_level;
088a52aa 1859
4bcc595c 1860 while ((kern_level = printk_get_level(text)) != 0) {
088a52aa
JP
1861 switch (kern_level) {
1862 case '0' ... '7':
a39d4a85 1863 if (level == LOGLEVEL_DEFAULT)
088a52aa 1864 level = kern_level - '0';
a39d4a85 1865 /* fallthrough */
088a52aa
JP
1866 case 'd': /* KERN_DEFAULT */
1867 lflags |= LOG_PREFIX;
4bcc595c
LT
1868 break;
1869 case 'c': /* KERN_CONT */
1870 lflags |= LOG_CONT;
088a52aa 1871 }
4bcc595c
LT
1872
1873 text_len -= 2;
1874 text += 2;
5fd29d6c
LT
1875 }
1876 }
1877
a39d4a85 1878 if (level == LOGLEVEL_DEFAULT)
c313af14 1879 level = default_message_loglevel;
9d90c8d9 1880
5becfb1d
KS
1881 if (dict)
1882 lflags |= LOG_PREFIX|LOG_NEWLINE;
ac60ad74 1883
ba552399
PM
1884 return log_output(facility, level, lflags,
1885 dict, dictlen, text, text_len);
1886}
1da177e4 1887
ba552399
PM
1888asmlinkage int vprintk_emit(int facility, int level,
1889 const char *dict, size_t dictlen,
1890 const char *fmt, va_list args)
1891{
1892 int printed_len;
1893 bool in_sched = false;
1894 unsigned long flags;
1895
1896 if (level == LOGLEVEL_SCHED) {
1897 level = LOGLEVEL_DEFAULT;
1898 in_sched = true;
1899 }
1900
1901 boot_delay_msec(level);
1902 printk_delay();
1903
1904 /* This stops the holder of console_sem just where we want him */
1905 logbuf_lock_irqsave(flags);
1906 printed_len = vprintk_store(facility, level, dict, dictlen, fmt, args);
de6fcbdb 1907 logbuf_unlock_irqrestore(flags);
939f04be 1908
458df9fd 1909 /* If called from the scheduler, we can not call up(). */
d18bbc21 1910 if (!in_sched) {
fd5f7cde
SS
1911 /*
1912 * Disable preemption to avoid being preempted while holding
1913 * console_sem which would prevent anyone from printing to
1914 * console
1915 */
1916 preempt_disable();
d18bbc21
AM
1917 /*
1918 * Try to acquire and then immediately release the console
1919 * semaphore. The release will print out buffers and wake up
1920 * /dev/kmsg and syslog() users.
1921 */
c162d5b4 1922 if (console_trylock_spinning())
d18bbc21 1923 console_unlock();
fd5f7cde 1924 preempt_enable();
d18bbc21 1925 }
76a8ad29 1926
43a17111 1927 wake_up_klogd();
1da177e4
LT
1928 return printed_len;
1929}
7ff9554b
KS
1930EXPORT_SYMBOL(vprintk_emit);
1931
1932asmlinkage int vprintk(const char *fmt, va_list args)
1933{
bd66a892 1934 return vprintk_func(fmt, args);
7ff9554b 1935}
1da177e4
LT
1936EXPORT_SYMBOL(vprintk);
1937
7ff9554b
KS
1938asmlinkage int printk_emit(int facility, int level,
1939 const char *dict, size_t dictlen,
1940 const char *fmt, ...)
1941{
1942 va_list args;
1943 int r;
1944
1945 va_start(args, fmt);
1946 r = vprintk_emit(facility, level, dict, dictlen, fmt, args);
1947 va_end(args);
1948
1949 return r;
1950}
1951EXPORT_SYMBOL(printk_emit);
1952
a0cba217 1953int vprintk_default(const char *fmt, va_list args)
afdc34a3
SRRH
1954{
1955 int r;
1956
1957#ifdef CONFIG_KGDB_KDB
34aaff40
PM
1958 /* Allow to pass printk() to kdb but avoid a recursion. */
1959 if (unlikely(kdb_trap_printk && kdb_printf_cpu < 0)) {
f7d4ca8b 1960 r = vkdb_printf(KDB_MSGSRC_PRINTK, fmt, args);
afdc34a3
SRRH
1961 return r;
1962 }
1963#endif
a0cba217 1964 r = vprintk_emit(0, LOGLEVEL_DEFAULT, NULL, 0, fmt, args);
afdc34a3
SRRH
1965
1966 return r;
1967}
1968EXPORT_SYMBOL_GPL(vprintk_default);
1969
7ff9554b
KS
1970/**
1971 * printk - print a kernel message
1972 * @fmt: format string
1973 *
1974 * This is printk(). It can be called from any context. We want it to work.
1975 *
1976 * We try to grab the console_lock. If we succeed, it's easy - we log the
1977 * output and call the console drivers. If we fail to get the semaphore, we
1978 * place the output into the log buffer and return. The current holder of
1979 * the console_sem will notice the new output in console_unlock(); and will
1980 * send it to the consoles before releasing the lock.
1981 *
1982 * One effect of this deferred printing is that code which calls printk() and
1983 * then changes console_loglevel may break. This is because console_loglevel
1984 * is inspected when the actual printing occurs.
1985 *
1986 * See also:
1987 * printf(3)
1988 *
1989 * See the vsnprintf() documentation for format string extensions over C99.
1990 */
722a9f92 1991asmlinkage __visible int printk(const char *fmt, ...)
7ff9554b
KS
1992{
1993 va_list args;
1994 int r;
1995
7ff9554b 1996 va_start(args, fmt);
a0cba217 1997 r = vprintk_func(fmt, args);
7ff9554b
KS
1998 va_end(args);
1999
2000 return r;
2001}
2002EXPORT_SYMBOL(printk);
7f3a781d 2003
96efedf1 2004#else /* CONFIG_PRINTK */
d59745ce 2005
70498253
KS
2006#define LOG_LINE_MAX 0
2007#define PREFIX_MAX 0
249771b8 2008
96efedf1
KS
2009static u64 syslog_seq;
2010static u32 syslog_idx;
eab07260
KS
2011static u64 console_seq;
2012static u32 console_idx;
f92b070f 2013static u64 exclusive_console_stop_seq;
96efedf1
KS
2014static u64 log_first_seq;
2015static u32 log_first_idx;
2016static u64 log_next_seq;
6fe29354
TH
2017static char *log_text(const struct printk_log *msg) { return NULL; }
2018static char *log_dict(const struct printk_log *msg) { return NULL; }
62e32ac3 2019static struct printk_log *log_from_idx(u32 idx) { return NULL; }
7f3a781d 2020static u32 log_next(u32 idx) { return 0; }
6fe29354 2021static ssize_t msg_print_ext_header(char *buf, size_t size,
5aa068ea
LT
2022 struct printk_log *msg,
2023 u64 seq) { return 0; }
6fe29354
TH
2024static ssize_t msg_print_ext_body(char *buf, size_t size,
2025 char *dict, size_t dict_len,
2026 char *text, size_t text_len) { return 0; }
c162d5b4
PM
2027static void console_lock_spinning_enable(void) { }
2028static int console_lock_spinning_disable_and_check(void) { return 0; }
d9c23523 2029static void call_console_drivers(const char *ext_text, size_t ext_len,
6fe29354 2030 const char *text, size_t len) {}
5aa068ea 2031static size_t msg_print_text(const struct printk_log *msg,
5becfb1d 2032 bool syslog, char *buf, size_t size) { return 0; }
a6ae928c 2033static bool suppress_message_printing(int level) { return false; }
d59745ce 2034
7f3a781d 2035#endif /* CONFIG_PRINTK */
d59745ce 2036
d0380e6c
TG
2037#ifdef CONFIG_EARLY_PRINTK
2038struct console *early_console;
2039
722a9f92 2040asmlinkage __visible void early_printk(const char *fmt, ...)
d0380e6c
TG
2041{
2042 va_list ap;
1dc6244b
JP
2043 char buf[512];
2044 int n;
2045
2046 if (!early_console)
2047 return;
d0380e6c
TG
2048
2049 va_start(ap, fmt);
1dc6244b 2050 n = vscnprintf(buf, sizeof(buf), fmt, ap);
d0380e6c 2051 va_end(ap);
1dc6244b
JP
2052
2053 early_console->write(early_console, buf, n);
d0380e6c
TG
2054}
2055#endif
2056
f7511d5f
ST
2057static int __add_preferred_console(char *name, int idx, char *options,
2058 char *brl_options)
2059{
2060 struct console_cmdline *c;
2061 int i;
2062
2063 /*
2064 * See if this tty is not yet registered, and
2065 * if we have a slot free.
2066 */
dac8bbba
PM
2067 for (i = 0, c = console_cmdline;
2068 i < MAX_CMDLINECONSOLES && c->name[0];
2069 i++, c++) {
23475408 2070 if (strcmp(c->name, name) == 0 && c->index == idx) {
dac8bbba
PM
2071 if (!brl_options)
2072 preferred_console = i;
23475408 2073 return 0;
f7511d5f 2074 }
23475408 2075 }
f7511d5f
ST
2076 if (i == MAX_CMDLINECONSOLES)
2077 return -E2BIG;
2078 if (!brl_options)
ad86ee2b 2079 preferred_console = i;
f7511d5f
ST
2080 strlcpy(c->name, name, sizeof(c->name));
2081 c->options = options;
bbeddf52
JP
2082 braille_set_options(c, brl_options);
2083
f7511d5f
ST
2084 c->index = idx;
2085 return 0;
2086}
cca10d58
SS
2087
2088static int __init console_msg_format_setup(char *str)
2089{
2090 if (!strcmp(str, "syslog"))
2091 console_msg_format = MSG_FORMAT_SYSLOG;
2092 if (!strcmp(str, "default"))
2093 console_msg_format = MSG_FORMAT_DEFAULT;
2094 return 1;
2095}
2096__setup("console_msg_format=", console_msg_format_setup);
2097
2ea1c539 2098/*
0b90fec3
AE
2099 * Set up a console. Called via do_early_param() in init/main.c
2100 * for each "console=" parameter in the boot command line.
2ea1c539
JB
2101 */
2102static int __init console_setup(char *str)
2103{
0b90fec3 2104 char buf[sizeof(console_cmdline[0].name) + 4]; /* 4 for "ttyS" */
f7511d5f 2105 char *s, *options, *brl_options = NULL;
2ea1c539
JB
2106 int idx;
2107
bbeddf52
JP
2108 if (_braille_console_setup(&str, &brl_options))
2109 return 1;
f7511d5f 2110
2ea1c539
JB
2111 /*
2112 * Decode str into name, index, options.
2113 */
2114 if (str[0] >= '0' && str[0] <= '9') {
eaa944af
YL
2115 strcpy(buf, "ttyS");
2116 strncpy(buf + 4, str, sizeof(buf) - 5);
2ea1c539 2117 } else {
eaa944af 2118 strncpy(buf, str, sizeof(buf) - 1);
2ea1c539 2119 }
eaa944af 2120 buf[sizeof(buf) - 1] = 0;
249771b8
AE
2121 options = strchr(str, ',');
2122 if (options)
2ea1c539
JB
2123 *(options++) = 0;
2124#ifdef __sparc__
2125 if (!strcmp(str, "ttya"))
eaa944af 2126 strcpy(buf, "ttyS0");
2ea1c539 2127 if (!strcmp(str, "ttyb"))
eaa944af 2128 strcpy(buf, "ttyS1");
2ea1c539 2129#endif
eaa944af 2130 for (s = buf; *s; s++)
249771b8 2131 if (isdigit(*s) || *s == ',')
2ea1c539
JB
2132 break;
2133 idx = simple_strtoul(s, NULL, 10);
2134 *s = 0;
2135
f7511d5f 2136 __add_preferred_console(buf, idx, options, brl_options);
9e124fe1 2137 console_set_on_cmdline = 1;
2ea1c539
JB
2138 return 1;
2139}
2140__setup("console=", console_setup);
2141
3c0547ba
MM
2142/**
2143 * add_preferred_console - add a device to the list of preferred consoles.
ddad86c2
MW
2144 * @name: device name
2145 * @idx: device index
2146 * @options: options for this console
3c0547ba
MM
2147 *
2148 * The last preferred console added will be used for kernel messages
2149 * and stdin/out/err for init. Normally this is used by console_setup
2150 * above to handle user-supplied console arguments; however it can also
2151 * be used by arch-specific code either to override the user or more
2152 * commonly to provide a default console (ie from PROM variables) when
2153 * the user has not supplied one.
2154 */
fb445ee5 2155int add_preferred_console(char *name, int idx, char *options)
3c0547ba 2156{
f7511d5f 2157 return __add_preferred_console(name, idx, options, NULL);
3c0547ba
MM
2158}
2159
d25d9fec 2160bool console_suspend_enabled = true;
8f4ce8c3
AS
2161EXPORT_SYMBOL(console_suspend_enabled);
2162
2163static int __init console_suspend_disable(char *str)
2164{
d25d9fec 2165 console_suspend_enabled = false;
8f4ce8c3
AS
2166 return 1;
2167}
2168__setup("no_console_suspend", console_suspend_disable);
134620f7
YZ
2169module_param_named(console_suspend, console_suspend_enabled,
2170 bool, S_IRUGO | S_IWUSR);
2171MODULE_PARM_DESC(console_suspend, "suspend console during suspend"
2172 " and hibernate operations");
8f4ce8c3 2173
557240b4
LT
2174/**
2175 * suspend_console - suspend the console subsystem
2176 *
2177 * This disables printk() while we go into suspend states
2178 */
2179void suspend_console(void)
2180{
8f4ce8c3
AS
2181 if (!console_suspend_enabled)
2182 return;
47319f71 2183 pr_info("Suspending console(s) (use no_console_suspend to debug)\n");
ac751efa 2184 console_lock();
557240b4 2185 console_suspended = 1;
bd8d7cf5 2186 up_console_sem();
557240b4
LT
2187}
2188
2189void resume_console(void)
2190{
8f4ce8c3
AS
2191 if (!console_suspend_enabled)
2192 return;
bd8d7cf5 2193 down_console_sem();
557240b4 2194 console_suspended = 0;
ac751efa 2195 console_unlock();
557240b4
LT
2196}
2197
034260d6
KC
2198/**
2199 * console_cpu_notify - print deferred console messages after CPU hotplug
90b14889 2200 * @cpu: unused
034260d6
KC
2201 *
2202 * If printk() is called from a CPU that is not online yet, the messages
64ca752d
SS
2203 * will be printed on the console only if there are CON_ANYTIME consoles.
2204 * This function is called when a new CPU comes online (or fails to come
2205 * up) or goes offline.
034260d6 2206 */
90b14889
SAS
2207static int console_cpu_notify(unsigned int cpu)
2208{
f97960fb 2209 if (!cpuhp_tasks_frozen) {
64ca752d
SS
2210 /* If trylock fails, someone else is doing the printing */
2211 if (console_trylock())
2212 console_unlock();
034260d6 2213 }
90b14889 2214 return 0;
034260d6
KC
2215}
2216
1da177e4 2217/**
ac751efa 2218 * console_lock - lock the console system for exclusive use.
1da177e4 2219 *
ac751efa 2220 * Acquires a lock which guarantees that the caller has
1da177e4
LT
2221 * exclusive access to the console system and the console_drivers list.
2222 *
2223 * Can sleep, returns nothing.
2224 */
ac751efa 2225void console_lock(void)
1da177e4 2226{
6b898c07
DV
2227 might_sleep();
2228
bd8d7cf5 2229 down_console_sem();
403f3075
AH
2230 if (console_suspended)
2231 return;
1da177e4
LT
2232 console_locked = 1;
2233 console_may_schedule = 1;
2234}
ac751efa 2235EXPORT_SYMBOL(console_lock);
1da177e4 2236
ac751efa
TH
2237/**
2238 * console_trylock - try to lock the console system for exclusive use.
2239 *
0b90fec3
AE
2240 * Try to acquire a lock which guarantees that the caller has exclusive
2241 * access to the console system and the console_drivers list.
ac751efa
TH
2242 *
2243 * returns 1 on success, and 0 on failure to acquire the lock.
2244 */
2245int console_trylock(void)
1da177e4 2246{
bd8d7cf5 2247 if (down_trylock_console_sem())
ac751efa 2248 return 0;
403f3075 2249 if (console_suspended) {
bd8d7cf5 2250 up_console_sem();
ac751efa 2251 return 0;
403f3075 2252 }
1da177e4 2253 console_locked = 1;
fd5f7cde 2254 console_may_schedule = 0;
ac751efa 2255 return 1;
1da177e4 2256}
ac751efa 2257EXPORT_SYMBOL(console_trylock);
1da177e4
LT
2258
2259int is_console_locked(void)
2260{
2261 return console_locked;
2262}
d48de54a 2263EXPORT_SYMBOL(is_console_locked);
1da177e4 2264
a8199371
SS
2265/*
2266 * Check if we have any console that is capable of printing while cpu is
2267 * booting or shutting down. Requires console_sem.
2268 */
2269static int have_callable_console(void)
2270{
2271 struct console *con;
2272
2273 for_each_console(con)
adaf6590
SS
2274 if ((con->flags & CON_ENABLED) &&
2275 (con->flags & CON_ANYTIME))
a8199371
SS
2276 return 1;
2277
2278 return 0;
2279}
2280
2281/*
2282 * Can we actually use the console at this time on this cpu?
2283 *
2284 * Console drivers may assume that per-cpu resources have been allocated. So
2285 * unless they're explicitly marked as being able to cope (CON_ANYTIME) don't
2286 * call them until this CPU is officially up.
2287 */
2288static inline int can_use_console(void)
2289{
2290 return cpu_online(raw_smp_processor_id()) || have_callable_console();
2291}
2292
1da177e4 2293/**
ac751efa 2294 * console_unlock - unlock the console system
1da177e4 2295 *
ac751efa 2296 * Releases the console_lock which the caller holds on the console system
1da177e4
LT
2297 * and the console driver list.
2298 *
ac751efa
TH
2299 * While the console_lock was held, console output may have been buffered
2300 * by printk(). If this is the case, console_unlock(); emits
2301 * the output prior to releasing the lock.
1da177e4 2302 *
7f3a781d 2303 * If there is output waiting, we wake /dev/kmsg and syslog() users.
1da177e4 2304 *
ac751efa 2305 * console_unlock(); may be called from any context.
1da177e4 2306 */
ac751efa 2307void console_unlock(void)
1da177e4 2308{
6fe29354 2309 static char ext_text[CONSOLE_EXT_LOG_MAX];
70498253 2310 static char text[LOG_LINE_MAX + PREFIX_MAX];
1da177e4 2311 unsigned long flags;
8d91f8b1 2312 bool do_cond_resched, retry;
1da177e4 2313
557240b4 2314 if (console_suspended) {
bd8d7cf5 2315 up_console_sem();
557240b4
LT
2316 return;
2317 }
78944e54 2318
8d91f8b1 2319 /*
257ab443 2320 * Console drivers are called with interrupts disabled, so
8d91f8b1
TH
2321 * @console_may_schedule should be cleared before; however, we may
2322 * end up dumping a lot of lines, for example, if called from
2323 * console registration path, and should invoke cond_resched()
2324 * between lines if allowable. Not doing so can cause a very long
2325 * scheduling stall on a slow console leading to RCU stall and
2326 * softlockup warnings which exacerbate the issue with more
2327 * messages practically incapacitating the system.
257ab443
PM
2328 *
2329 * console_trylock() is not able to detect the preemptive
2330 * context reliably. Therefore the value must be stored before
2331 * and cleared after the the "again" goto label.
8d91f8b1
TH
2332 */
2333 do_cond_resched = console_may_schedule;
257ab443 2334again:
78944e54
AD
2335 console_may_schedule = 0;
2336
a8199371
SS
2337 /*
2338 * We released the console_sem lock, so we need to recheck if
2339 * cpu is online and (if not) is there at least one CON_ANYTIME
2340 * console.
2341 */
2342 if (!can_use_console()) {
2343 console_locked = 0;
2344 up_console_sem();
2345 return;
2346 }
2347
7ff9554b 2348 for (;;) {
62e32ac3 2349 struct printk_log *msg;
6fe29354 2350 size_t ext_len = 0;
3ce9a7c0 2351 size_t len;
7ff9554b 2352
f975237b
SS
2353 printk_safe_enter_irqsave(flags);
2354 raw_spin_lock(&logbuf_lock);
7ff9554b 2355 if (console_seq < log_first_seq) {
9afe77ed 2356 len = sprintf(text, "** %u printk messages dropped **\n",
84b5ec8a
WD
2357 (unsigned)(log_first_seq - console_seq));
2358
7ff9554b
KS
2359 /* messages are gone, move to first one */
2360 console_seq = log_first_seq;
2361 console_idx = log_first_idx;
84b5ec8a
WD
2362 } else {
2363 len = 0;
7ff9554b 2364 }
084681d1 2365skip:
7ff9554b
KS
2366 if (console_seq == log_next_seq)
2367 break;
2368
2369 msg = log_from_idx(console_idx);
a6ae928c 2370 if (suppress_message_printing(msg->level)) {
084681d1 2371 /*
a6ae928c
PM
2372 * Skip record we have buffered and already printed
2373 * directly to the console when we received it, and
2374 * record that has level above the console loglevel.
084681d1
KS
2375 */
2376 console_idx = log_next(console_idx);
2377 console_seq++;
2378 goto skip;
2379 }
649e6ee3 2380
f92b070f
PM
2381 /* Output to all consoles once old messages replayed. */
2382 if (unlikely(exclusive_console &&
2383 console_seq >= exclusive_console_stop_seq)) {
2384 exclusive_console = NULL;
2385 }
2386
cca10d58
SS
2387 len += msg_print_text(msg,
2388 console_msg_format & MSG_FORMAT_SYSLOG,
2389 text + len,
2390 sizeof(text) - len);
6fe29354
TH
2391 if (nr_ext_console_drivers) {
2392 ext_len = msg_print_ext_header(ext_text,
2393 sizeof(ext_text),
5aa068ea 2394 msg, console_seq);
6fe29354
TH
2395 ext_len += msg_print_ext_body(ext_text + ext_len,
2396 sizeof(ext_text) - ext_len,
2397 log_dict(msg), msg->dict_len,
2398 log_text(msg), msg->text_len);
2399 }
7ff9554b
KS
2400 console_idx = log_next(console_idx);
2401 console_seq++;
07354eb1 2402 raw_spin_unlock(&logbuf_lock);
7ff9554b 2403
dbdda842
SRV
2404 /*
2405 * While actively printing out messages, if another printk()
2406 * were to occur on another CPU, it may wait for this one to
2407 * finish. This task can not be preempted if there is a
2408 * waiter waiting to take over.
2409 */
c162d5b4 2410 console_lock_spinning_enable();
dbdda842 2411
81d68a96 2412 stop_critical_timings(); /* don't trace print latency */
d9c23523 2413 call_console_drivers(ext_text, ext_len, text, len);
81d68a96 2414 start_critical_timings();
dbdda842 2415
c162d5b4
PM
2416 if (console_lock_spinning_disable_and_check()) {
2417 printk_safe_exit_irqrestore(flags);
43a17111 2418 return;
c162d5b4 2419 }
dbdda842 2420
f975237b 2421 printk_safe_exit_irqrestore(flags);
8d91f8b1
TH
2422
2423 if (do_cond_resched)
2424 cond_resched();
1da177e4 2425 }
dbdda842 2426
1da177e4 2427 console_locked = 0;
fe3d8ad3 2428
07354eb1 2429 raw_spin_unlock(&logbuf_lock);
4f2a8d3c 2430
bd8d7cf5 2431 up_console_sem();
4f2a8d3c
PZ
2432
2433 /*
2434 * Someone could have filled up the buffer again, so re-check if there's
2435 * something to flush. In case we cannot trylock the console_sem again,
2436 * there's a new owner and the console_unlock() from them will do the
2437 * flush, no worries.
2438 */
07354eb1 2439 raw_spin_lock(&logbuf_lock);
7ff9554b 2440 retry = console_seq != log_next_seq;
f975237b
SS
2441 raw_spin_unlock(&logbuf_lock);
2442 printk_safe_exit_irqrestore(flags);
09dc3cf9 2443
4f2a8d3c
PZ
2444 if (retry && console_trylock())
2445 goto again;
1da177e4 2446}
ac751efa 2447EXPORT_SYMBOL(console_unlock);
1da177e4 2448
ddad86c2
MW
2449/**
2450 * console_conditional_schedule - yield the CPU if required
1da177e4
LT
2451 *
2452 * If the console code is currently allowed to sleep, and
2453 * if this CPU should yield the CPU to another task, do
2454 * so here.
2455 *
ac751efa 2456 * Must be called within console_lock();.
1da177e4
LT
2457 */
2458void __sched console_conditional_schedule(void)
2459{
2460 if (console_may_schedule)
2461 cond_resched();
2462}
2463EXPORT_SYMBOL(console_conditional_schedule);
2464
1da177e4
LT
2465void console_unblank(void)
2466{
2467 struct console *c;
2468
2469 /*
2470 * console_unblank can no longer be called in interrupt context unless
2471 * oops_in_progress is set to 1..
2472 */
2473 if (oops_in_progress) {
bd8d7cf5 2474 if (down_trylock_console_sem() != 0)
1da177e4
LT
2475 return;
2476 } else
ac751efa 2477 console_lock();
1da177e4
LT
2478
2479 console_locked = 1;
2480 console_may_schedule = 0;
4d091611 2481 for_each_console(c)
1da177e4
LT
2482 if ((c->flags & CON_ENABLED) && c->unblank)
2483 c->unblank();
ac751efa 2484 console_unlock();
1da177e4 2485}
1da177e4 2486
8d91f8b1
TH
2487/**
2488 * console_flush_on_panic - flush console content on panic
2489 *
2490 * Immediately output all pending messages no matter what.
2491 */
2492void console_flush_on_panic(void)
2493{
2494 /*
2495 * If someone else is holding the console lock, trylock will fail
2496 * and may_schedule may be set. Ignore and proceed to unlock so
2497 * that messages are flushed out. As this can be called from any
2498 * context and we don't want to get preempted while flushing,
2499 * ensure may_schedule is cleared.
2500 */
2501 console_trylock();
2502 console_may_schedule = 0;
2503 console_unlock();
2504}
2505
1da177e4
LT
2506/*
2507 * Return the console tty driver structure and its associated index
2508 */
2509struct tty_driver *console_device(int *index)
2510{
2511 struct console *c;
2512 struct tty_driver *driver = NULL;
2513
ac751efa 2514 console_lock();
4d091611 2515 for_each_console(c) {
1da177e4
LT
2516 if (!c->device)
2517 continue;
2518 driver = c->device(c, index);
2519 if (driver)
2520 break;
2521 }
ac751efa 2522 console_unlock();
1da177e4
LT
2523 return driver;
2524}
2525
2526/*
2527 * Prevent further output on the passed console device so that (for example)
2528 * serial drivers can disable console output before suspending a port, and can
2529 * re-enable output afterwards.
2530 */
2531void console_stop(struct console *console)
2532{
ac751efa 2533 console_lock();
1da177e4 2534 console->flags &= ~CON_ENABLED;
ac751efa 2535 console_unlock();
1da177e4
LT
2536}
2537EXPORT_SYMBOL(console_stop);
2538
2539void console_start(struct console *console)
2540{
ac751efa 2541 console_lock();
1da177e4 2542 console->flags |= CON_ENABLED;
ac751efa 2543 console_unlock();
1da177e4
LT
2544}
2545EXPORT_SYMBOL(console_start);
2546
7bf69395
FDN
2547static int __read_mostly keep_bootcon;
2548
2549static int __init keep_bootcon_setup(char *str)
2550{
2551 keep_bootcon = 1;
27083bac 2552 pr_info("debug: skip boot console de-registration.\n");
7bf69395
FDN
2553
2554 return 0;
2555}
2556
2557early_param("keep_bootcon", keep_bootcon_setup);
2558
1da177e4
LT
2559/*
2560 * The console driver calls this routine during kernel initialization
2561 * to register the console printing procedure with printk() and to
2562 * print any messages that were printed by the kernel before the
2563 * console driver was initialized.
4d091611
RG
2564 *
2565 * This can happen pretty early during the boot process (because of
2566 * early_printk) - sometimes before setup_arch() completes - be careful
2567 * of what kernel features are used - they may not be initialised yet.
2568 *
2569 * There are two types of consoles - bootconsoles (early_printk) and
2570 * "real" consoles (everything which is not a bootconsole) which are
2571 * handled differently.
2572 * - Any number of bootconsoles can be registered at any time.
2573 * - As soon as a "real" console is registered, all bootconsoles
2574 * will be unregistered automatically.
2575 * - Once a "real" console is registered, any attempt to register a
2576 * bootconsoles will be rejected
1da177e4 2577 */
4d091611 2578void register_console(struct console *newcon)
1da177e4 2579{
40dc5651 2580 int i;
1da177e4 2581 unsigned long flags;
4d091611 2582 struct console *bcon = NULL;
23475408 2583 struct console_cmdline *c;
b077bafa 2584 static bool has_preferred;
1da177e4 2585
16cf48a6
AB
2586 if (console_drivers)
2587 for_each_console(bcon)
2588 if (WARN(bcon == newcon,
2589 "console '%s%d' already registered\n",
2590 bcon->name, bcon->index))
2591 return;
2592
4d091611
RG
2593 /*
2594 * before we register a new CON_BOOT console, make sure we don't
2595 * already have a valid console
2596 */
2597 if (console_drivers && newcon->flags & CON_BOOT) {
2598 /* find the last or real console */
2599 for_each_console(bcon) {
2600 if (!(bcon->flags & CON_BOOT)) {
27083bac 2601 pr_info("Too late to register bootconsole %s%d\n",
4d091611
RG
2602 newcon->name, newcon->index);
2603 return;
2604 }
2605 }
69331af7
GH
2606 }
2607
4d091611
RG
2608 if (console_drivers && console_drivers->flags & CON_BOOT)
2609 bcon = console_drivers;
2610
b077bafa 2611 if (!has_preferred || bcon || !console_drivers)
ad86ee2b 2612 has_preferred = preferred_console >= 0;
1da177e4
LT
2613
2614 /*
2615 * See if we want to use this console driver. If we
2616 * didn't select a console we take the first one
2617 * that registers here.
2618 */
b077bafa 2619 if (!has_preferred) {
4d091611
RG
2620 if (newcon->index < 0)
2621 newcon->index = 0;
2622 if (newcon->setup == NULL ||
2623 newcon->setup(newcon, NULL) == 0) {
2624 newcon->flags |= CON_ENABLED;
2625 if (newcon->device) {
2626 newcon->flags |= CON_CONSDEV;
b077bafa 2627 has_preferred = true;
cd3a1b85 2628 }
1da177e4
LT
2629 }
2630 }
2631
2632 /*
dac8bbba
PM
2633 * See if this console matches one we selected on
2634 * the command line.
1da177e4 2635 */
dac8bbba
PM
2636 for (i = 0, c = console_cmdline;
2637 i < MAX_CMDLINECONSOLES && c->name[0];
2638 i++, c++) {
c7cef0a8
PH
2639 if (!newcon->match ||
2640 newcon->match(newcon, c->name, c->index, c->options) != 0) {
2641 /* default matching */
2642 BUILD_BUG_ON(sizeof(c->name) != sizeof(newcon->name));
2643 if (strcmp(c->name, newcon->name) != 0)
2644 continue;
2645 if (newcon->index >= 0 &&
2646 newcon->index != c->index)
2647 continue;
2648 if (newcon->index < 0)
2649 newcon->index = c->index;
bbeddf52 2650
c7cef0a8
PH
2651 if (_braille_register_console(newcon, c))
2652 return;
2653
2654 if (newcon->setup &&
2655 newcon->setup(newcon, c->options) != 0)
2656 break;
2657 }
bbeddf52 2658
4d091611 2659 newcon->flags |= CON_ENABLED;
ad86ee2b 2660 if (i == preferred_console) {
4d091611 2661 newcon->flags |= CON_CONSDEV;
b077bafa 2662 has_preferred = true;
ab4af03a 2663 }
1da177e4
LT
2664 break;
2665 }
2666
4d091611 2667 if (!(newcon->flags & CON_ENABLED))
1da177e4
LT
2668 return;
2669
8259cf43
RG
2670 /*
2671 * If we have a bootconsole, and are switching to a real console,
2672 * don't print everything out again, since when the boot console, and
2673 * the real console are the same physical device, it's annoying to
2674 * see the beginning boot messages twice
2675 */
2676 if (bcon && ((newcon->flags & (CON_CONSDEV | CON_BOOT)) == CON_CONSDEV))
4d091611 2677 newcon->flags &= ~CON_PRINTBUFFER;
1da177e4
LT
2678
2679 /*
2680 * Put this console in the list - keep the
2681 * preferred driver at the head of the list.
2682 */
ac751efa 2683 console_lock();
4d091611
RG
2684 if ((newcon->flags & CON_CONSDEV) || console_drivers == NULL) {
2685 newcon->next = console_drivers;
2686 console_drivers = newcon;
2687 if (newcon->next)
2688 newcon->next->flags &= ~CON_CONSDEV;
1da177e4 2689 } else {
4d091611
RG
2690 newcon->next = console_drivers->next;
2691 console_drivers->next = newcon;
1da177e4 2692 }
6fe29354
TH
2693
2694 if (newcon->flags & CON_EXTENDED)
2695 if (!nr_ext_console_drivers++)
2696 pr_info("printk: continuation disabled due to ext consoles, expect more fragments in /dev/kmsg\n");
2697
4d091611 2698 if (newcon->flags & CON_PRINTBUFFER) {
1da177e4 2699 /*
ac751efa 2700 * console_unlock(); will print out the buffered messages
1da177e4
LT
2701 * for us.
2702 */
de6fcbdb 2703 logbuf_lock_irqsave(flags);
7ff9554b
KS
2704 console_seq = syslog_seq;
2705 console_idx = syslog_idx;
de6fcbdb 2706 logbuf_unlock_irqrestore(flags);
fe3d8ad3
FT
2707 /*
2708 * We're about to replay the log buffer. Only do this to the
2709 * just-registered console to avoid excessive message spam to
2710 * the already-registered consoles.
2711 */
2712 exclusive_console = newcon;
f92b070f 2713 exclusive_console_stop_seq = console_seq;
1da177e4 2714 }
ac751efa 2715 console_unlock();
fbc92a34 2716 console_sysfs_notify();
8259cf43
RG
2717
2718 /*
2719 * By unregistering the bootconsoles after we enable the real console
2720 * we get the "console xxx enabled" message on all the consoles -
2721 * boot consoles, real consoles, etc - this is to ensure that end
2722 * users know there might be something in the kernel's log buffer that
2723 * went to the bootconsole (that they do not see on the real console)
2724 */
27083bac 2725 pr_info("%sconsole [%s%d] enabled\n",
6b802394
KC
2726 (newcon->flags & CON_BOOT) ? "boot" : "" ,
2727 newcon->name, newcon->index);
7bf69395
FDN
2728 if (bcon &&
2729 ((newcon->flags & (CON_CONSDEV | CON_BOOT)) == CON_CONSDEV) &&
2730 !keep_bootcon) {
6b802394
KC
2731 /* We need to iterate through all boot consoles, to make
2732 * sure we print everything out, before we unregister them.
8259cf43 2733 */
8259cf43
RG
2734 for_each_console(bcon)
2735 if (bcon->flags & CON_BOOT)
2736 unregister_console(bcon);
8259cf43 2737 }
1da177e4
LT
2738}
2739EXPORT_SYMBOL(register_console);
2740
40dc5651 2741int unregister_console(struct console *console)
1da177e4 2742{
40dc5651 2743 struct console *a, *b;
bbeddf52 2744 int res;
1da177e4 2745
27083bac 2746 pr_info("%sconsole [%s%d] disabled\n",
6b802394
KC
2747 (console->flags & CON_BOOT) ? "boot" : "" ,
2748 console->name, console->index);
2749
bbeddf52
JP
2750 res = _braille_unregister_console(console);
2751 if (res)
2752 return res;
f7511d5f 2753
bbeddf52 2754 res = 1;
ac751efa 2755 console_lock();
1da177e4
LT
2756 if (console_drivers == console) {
2757 console_drivers=console->next;
2758 res = 0;
e9b15b54 2759 } else if (console_drivers) {
1da177e4
LT
2760 for (a=console_drivers->next, b=console_drivers ;
2761 a; b=a, a=b->next) {
2762 if (a == console) {
2763 b->next = a->next;
2764 res = 0;
2765 break;
40dc5651 2766 }
1da177e4
LT
2767 }
2768 }
40dc5651 2769
6fe29354
TH
2770 if (!res && (console->flags & CON_EXTENDED))
2771 nr_ext_console_drivers--;
2772
69331af7 2773 /*
ab4af03a
GE
2774 * If this isn't the last console and it has CON_CONSDEV set, we
2775 * need to set it on the next preferred console.
1da177e4 2776 */
69331af7 2777 if (console_drivers != NULL && console->flags & CON_CONSDEV)
ab4af03a 2778 console_drivers->flags |= CON_CONSDEV;
1da177e4 2779
7fa21dd8 2780 console->flags &= ~CON_ENABLED;
ac751efa 2781 console_unlock();
fbc92a34 2782 console_sysfs_notify();
1da177e4
LT
2783 return res;
2784}
2785EXPORT_SYMBOL(unregister_console);
d59745ce 2786
0c688614
NP
2787/*
2788 * Initialize the console device. This is called *early*, so
2789 * we can't necessarily depend on lots of kernel help here.
2790 * Just do some early initializations, and do the complex setup
2791 * later.
2792 */
2793void __init console_init(void)
2794{
58eacfff 2795 int ret;
1b1eeca7
AB
2796 initcall_t call;
2797 initcall_entry_t *ce;
0c688614
NP
2798
2799 /* Setup the default TTY line discipline. */
2800 n_tty_init();
2801
2802 /*
2803 * set up the console device so that later boot sequences can
2804 * inform about problems etc..
2805 */
1b1eeca7 2806 ce = __con_initcall_start;
58eacfff 2807 trace_initcall_level("console");
1b1eeca7
AB
2808 while (ce < __con_initcall_end) {
2809 call = initcall_from_entry(ce);
2810 trace_initcall_start(call);
2811 ret = call();
2812 trace_initcall_finish(call, ret);
2813 ce++;
0c688614
NP
2814 }
2815}
2816
81cc26f2
TR
2817/*
2818 * Some boot consoles access data that is in the init section and which will
2819 * be discarded after the initcalls have been run. To make sure that no code
2820 * will access this data, unregister the boot consoles in a late initcall.
2821 *
2822 * If for some reason, such as deferred probe or the driver being a loadable
2823 * module, the real console hasn't registered yet at this point, there will
2824 * be a brief interval in which no messages are logged to the console, which
2825 * makes it difficult to diagnose problems that occur during this time.
2826 *
2827 * To mitigate this problem somewhat, only unregister consoles whose memory
2b1be689
MR
2828 * intersects with the init section. Note that all other boot consoles will
2829 * get unregistred when the real preferred console is registered.
81cc26f2 2830 */
034260d6 2831static int __init printk_late_init(void)
0c5564bd 2832{
4d091611 2833 struct console *con;
90b14889 2834 int ret;
4d091611
RG
2835
2836 for_each_console(con) {
5a814231
PM
2837 if (!(con->flags & CON_BOOT))
2838 continue;
2839
2840 /* Check addresses that might be used for enabled consoles. */
2841 if (init_section_intersects(con, sizeof(*con)) ||
2842 init_section_contains(con->write, 0) ||
2843 init_section_contains(con->read, 0) ||
2844 init_section_contains(con->device, 0) ||
2845 init_section_contains(con->unblank, 0) ||
2846 init_section_contains(con->data, 0)) {
81cc26f2 2847 /*
2b1be689
MR
2848 * Please, consider moving the reported consoles out
2849 * of the init section.
81cc26f2 2850 */
2b1be689
MR
2851 pr_warn("bootconsole [%s%d] uses init memory and must be disabled even before the real one is ready\n",
2852 con->name, con->index);
2853 unregister_console(con);
cb00e99c 2854 }
0c5564bd 2855 }
90b14889
SAS
2856 ret = cpuhp_setup_state_nocalls(CPUHP_PRINTK_DEAD, "printk:dead", NULL,
2857 console_cpu_notify);
2858 WARN_ON(ret < 0);
2859 ret = cpuhp_setup_state_nocalls(CPUHP_AP_ONLINE_DYN, "printk:online",
2860 console_cpu_notify, NULL);
2861 WARN_ON(ret < 0);
0c5564bd
RG
2862 return 0;
2863}
034260d6 2864late_initcall(printk_late_init);
0c5564bd 2865
7ef3d2fd 2866#if defined CONFIG_PRINTK
dc72c32e
FW
2867/*
2868 * Delayed printk version, for scheduler-internal messages:
2869 */
dc72c32e 2870#define PRINTK_PENDING_WAKEUP 0x01
458df9fd 2871#define PRINTK_PENDING_OUTPUT 0x02
dc72c32e
FW
2872
2873static DEFINE_PER_CPU(int, printk_pending);
dc72c32e
FW
2874
2875static void wake_up_klogd_work_func(struct irq_work *irq_work)
2876{
2877 int pending = __this_cpu_xchg(printk_pending, 0);
2878
458df9fd
SR
2879 if (pending & PRINTK_PENDING_OUTPUT) {
2880 /* If trylock fails, someone else is doing the printing */
2881 if (console_trylock())
2882 console_unlock();
dc72c32e
FW
2883 }
2884
2885 if (pending & PRINTK_PENDING_WAKEUP)
2886 wake_up_interruptible(&log_wait);
2887}
2888
2889static DEFINE_PER_CPU(struct irq_work, wake_up_klogd_work) = {
2890 .func = wake_up_klogd_work_func,
2891 .flags = IRQ_WORK_LAZY,
2892};
2893
2894void wake_up_klogd(void)
2895{
2896 preempt_disable();
2897 if (waitqueue_active(&log_wait)) {
2898 this_cpu_or(printk_pending, PRINTK_PENDING_WAKEUP);
bb964a92 2899 irq_work_queue(this_cpu_ptr(&wake_up_klogd_work));
dc72c32e
FW
2900 }
2901 preempt_enable();
2902}
717115e1 2903
a338f84d 2904void defer_console_output(void)
600e1458 2905{
719f6a70 2906 preempt_disable();
458df9fd 2907 __this_cpu_or(printk_pending, PRINTK_PENDING_OUTPUT);
bb964a92 2908 irq_work_queue(this_cpu_ptr(&wake_up_klogd_work));
81954606 2909 preempt_enable();
a338f84d
PM
2910}
2911
2912int vprintk_deferred(const char *fmt, va_list args)
2913{
2914 int r;
2915
2916 r = vprintk_emit(0, LOGLEVEL_SCHED, NULL, 0, fmt, args);
2917 defer_console_output();
600e1458
PZ
2918
2919 return r;
2920}
2921
719f6a70
PM
2922int printk_deferred(const char *fmt, ...)
2923{
2924 va_list args;
2925 int r;
2926
2927 va_start(args, fmt);
2928 r = vprintk_deferred(fmt, args);
2929 va_end(args);
2930
2931 return r;
2932}
2933
1da177e4
LT
2934/*
2935 * printk rate limiting, lifted from the networking subsystem.
2936 *
641de9d8
UKK
2937 * This enforces a rate limit: not more than 10 kernel messages
2938 * every 5s to make a denial-of-service attack impossible.
1da177e4 2939 */
641de9d8
UKK
2940DEFINE_RATELIMIT_STATE(printk_ratelimit_state, 5 * HZ, 10);
2941
5c828713 2942int __printk_ratelimit(const char *func)
1da177e4 2943{
5c828713 2944 return ___ratelimit(&printk_ratelimit_state, func);
1da177e4 2945}
5c828713 2946EXPORT_SYMBOL(__printk_ratelimit);
f46c4833
AM
2947
2948/**
2949 * printk_timed_ratelimit - caller-controlled printk ratelimiting
2950 * @caller_jiffies: pointer to caller's state
2951 * @interval_msecs: minimum interval between prints
2952 *
2953 * printk_timed_ratelimit() returns true if more than @interval_msecs
2954 * milliseconds have elapsed since the last time printk_timed_ratelimit()
2955 * returned true.
2956 */
2957bool printk_timed_ratelimit(unsigned long *caller_jiffies,
2958 unsigned int interval_msecs)
2959{
249771b8
AE
2960 unsigned long elapsed = jiffies - *caller_jiffies;
2961
2962 if (*caller_jiffies && elapsed <= msecs_to_jiffies(interval_msecs))
2963 return false;
2964
2965 *caller_jiffies = jiffies;
2966 return true;
f46c4833
AM
2967}
2968EXPORT_SYMBOL(printk_timed_ratelimit);
456b565c
SK
2969
2970static DEFINE_SPINLOCK(dump_list_lock);
2971static LIST_HEAD(dump_list);
2972
2973/**
2974 * kmsg_dump_register - register a kernel log dumper.
6485536b 2975 * @dumper: pointer to the kmsg_dumper structure
456b565c
SK
2976 *
2977 * Adds a kernel log dumper to the system. The dump callback in the
2978 * structure will be called when the kernel oopses or panics and must be
2979 * set. Returns zero on success and %-EINVAL or %-EBUSY otherwise.
2980 */
2981int kmsg_dump_register(struct kmsg_dumper *dumper)
2982{
2983 unsigned long flags;
2984 int err = -EBUSY;
2985
2986 /* The dump callback needs to be set */
2987 if (!dumper->dump)
2988 return -EINVAL;
2989
2990 spin_lock_irqsave(&dump_list_lock, flags);
2991 /* Don't allow registering multiple times */
2992 if (!dumper->registered) {
2993 dumper->registered = 1;
fb842b00 2994 list_add_tail_rcu(&dumper->list, &dump_list);
456b565c
SK
2995 err = 0;
2996 }
2997 spin_unlock_irqrestore(&dump_list_lock, flags);
2998
2999 return err;
3000}
3001EXPORT_SYMBOL_GPL(kmsg_dump_register);
3002
3003/**
3004 * kmsg_dump_unregister - unregister a kmsg dumper.
6485536b 3005 * @dumper: pointer to the kmsg_dumper structure
456b565c
SK
3006 *
3007 * Removes a dump device from the system. Returns zero on success and
3008 * %-EINVAL otherwise.
3009 */
3010int kmsg_dump_unregister(struct kmsg_dumper *dumper)
3011{
3012 unsigned long flags;
3013 int err = -EINVAL;
3014
3015 spin_lock_irqsave(&dump_list_lock, flags);
3016 if (dumper->registered) {
3017 dumper->registered = 0;
fb842b00 3018 list_del_rcu(&dumper->list);
456b565c
SK
3019 err = 0;
3020 }
3021 spin_unlock_irqrestore(&dump_list_lock, flags);
fb842b00 3022 synchronize_rcu();
456b565c
SK
3023
3024 return err;
3025}
3026EXPORT_SYMBOL_GPL(kmsg_dump_unregister);
3027
7ff9554b
KS
3028static bool always_kmsg_dump;
3029module_param_named(always_kmsg_dump, always_kmsg_dump, bool, S_IRUGO | S_IWUSR);
3030
456b565c
SK
3031/**
3032 * kmsg_dump - dump kernel log to kernel message dumpers.
3033 * @reason: the reason (oops, panic etc) for dumping
3034 *
e2ae715d
KS
3035 * Call each of the registered dumper's dump() callback, which can
3036 * retrieve the kmsg records with kmsg_dump_get_line() or
3037 * kmsg_dump_get_buffer().
456b565c
SK
3038 */
3039void kmsg_dump(enum kmsg_dump_reason reason)
3040{
456b565c 3041 struct kmsg_dumper *dumper;
456b565c
SK
3042 unsigned long flags;
3043
c22ab332
MG
3044 if ((reason > KMSG_DUMP_OOPS) && !always_kmsg_dump)
3045 return;
3046
e2ae715d
KS
3047 rcu_read_lock();
3048 list_for_each_entry_rcu(dumper, &dump_list, list) {
3049 if (dumper->max_reason && reason > dumper->max_reason)
3050 continue;
3051
3052 /* initialize iterator with data about the stored records */
3053 dumper->active = true;
3054
de6fcbdb 3055 logbuf_lock_irqsave(flags);
e2ae715d
KS
3056 dumper->cur_seq = clear_seq;
3057 dumper->cur_idx = clear_idx;
3058 dumper->next_seq = log_next_seq;
3059 dumper->next_idx = log_next_idx;
de6fcbdb 3060 logbuf_unlock_irqrestore(flags);
e2ae715d
KS
3061
3062 /* invoke dumper which will iterate over records */
3063 dumper->dump(dumper, reason);
3064
3065 /* reset iterator */
3066 dumper->active = false;
3067 }
3068 rcu_read_unlock();
3069}
3070
3071/**
533827c9 3072 * kmsg_dump_get_line_nolock - retrieve one kmsg log line (unlocked version)
e2ae715d
KS
3073 * @dumper: registered kmsg dumper
3074 * @syslog: include the "<4>" prefixes
3075 * @line: buffer to copy the line to
3076 * @size: maximum size of the buffer
3077 * @len: length of line placed into buffer
3078 *
3079 * Start at the beginning of the kmsg buffer, with the oldest kmsg
3080 * record, and copy one record into the provided buffer.
3081 *
3082 * Consecutive calls will return the next available record moving
3083 * towards the end of the buffer with the youngest messages.
3084 *
3085 * A return value of FALSE indicates that there are no more records to
3086 * read.
533827c9
AV
3087 *
3088 * The function is similar to kmsg_dump_get_line(), but grabs no locks.
e2ae715d 3089 */
533827c9
AV
3090bool kmsg_dump_get_line_nolock(struct kmsg_dumper *dumper, bool syslog,
3091 char *line, size_t size, size_t *len)
e2ae715d 3092{
62e32ac3 3093 struct printk_log *msg;
e2ae715d
KS
3094 size_t l = 0;
3095 bool ret = false;
3096
3097 if (!dumper->active)
3098 goto out;
7ff9554b 3099
e2ae715d
KS
3100 if (dumper->cur_seq < log_first_seq) {
3101 /* messages are gone, move to first available one */
3102 dumper->cur_seq = log_first_seq;
3103 dumper->cur_idx = log_first_idx;
3104 }
456b565c 3105
e2ae715d 3106 /* last entry */
533827c9 3107 if (dumper->cur_seq >= log_next_seq)
e2ae715d 3108 goto out;
456b565c 3109
e2ae715d 3110 msg = log_from_idx(dumper->cur_idx);
5aa068ea 3111 l = msg_print_text(msg, syslog, line, size);
e2ae715d
KS
3112
3113 dumper->cur_idx = log_next(dumper->cur_idx);
3114 dumper->cur_seq++;
3115 ret = true;
e2ae715d
KS
3116out:
3117 if (len)
3118 *len = l;
3119 return ret;
3120}
533827c9
AV
3121
3122/**
3123 * kmsg_dump_get_line - retrieve one kmsg log line
3124 * @dumper: registered kmsg dumper
3125 * @syslog: include the "<4>" prefixes
3126 * @line: buffer to copy the line to
3127 * @size: maximum size of the buffer
3128 * @len: length of line placed into buffer
3129 *
3130 * Start at the beginning of the kmsg buffer, with the oldest kmsg
3131 * record, and copy one record into the provided buffer.
3132 *
3133 * Consecutive calls will return the next available record moving
3134 * towards the end of the buffer with the youngest messages.
3135 *
3136 * A return value of FALSE indicates that there are no more records to
3137 * read.
3138 */
3139bool kmsg_dump_get_line(struct kmsg_dumper *dumper, bool syslog,
3140 char *line, size_t size, size_t *len)
3141{
3142 unsigned long flags;
3143 bool ret;
3144
de6fcbdb 3145 logbuf_lock_irqsave(flags);
533827c9 3146 ret = kmsg_dump_get_line_nolock(dumper, syslog, line, size, len);
de6fcbdb 3147 logbuf_unlock_irqrestore(flags);
533827c9
AV
3148
3149 return ret;
3150}
e2ae715d
KS
3151EXPORT_SYMBOL_GPL(kmsg_dump_get_line);
3152
3153/**
3154 * kmsg_dump_get_buffer - copy kmsg log lines
3155 * @dumper: registered kmsg dumper
3156 * @syslog: include the "<4>" prefixes
4f0f4af5 3157 * @buf: buffer to copy the line to
e2ae715d
KS
3158 * @size: maximum size of the buffer
3159 * @len: length of line placed into buffer
3160 *
3161 * Start at the end of the kmsg buffer and fill the provided buffer
3162 * with as many of the the *youngest* kmsg records that fit into it.
3163 * If the buffer is large enough, all available kmsg records will be
3164 * copied with a single call.
3165 *
3166 * Consecutive calls will fill the buffer with the next block of
3167 * available older records, not including the earlier retrieved ones.
3168 *
3169 * A return value of FALSE indicates that there are no more records to
3170 * read.
3171 */
3172bool kmsg_dump_get_buffer(struct kmsg_dumper *dumper, bool syslog,
3173 char *buf, size_t size, size_t *len)
3174{
3175 unsigned long flags;
3176 u64 seq;
3177 u32 idx;
3178 u64 next_seq;
3179 u32 next_idx;
3180 size_t l = 0;
3181 bool ret = false;
3182
3183 if (!dumper->active)
3184 goto out;
3185
de6fcbdb 3186 logbuf_lock_irqsave(flags);
e2ae715d
KS
3187 if (dumper->cur_seq < log_first_seq) {
3188 /* messages are gone, move to first available one */
3189 dumper->cur_seq = log_first_seq;
3190 dumper->cur_idx = log_first_idx;
3191 }
3192
3193 /* last entry */
3194 if (dumper->cur_seq >= dumper->next_seq) {
de6fcbdb 3195 logbuf_unlock_irqrestore(flags);
e2ae715d
KS
3196 goto out;
3197 }
3198
3199 /* calculate length of entire buffer */
3200 seq = dumper->cur_seq;
3201 idx = dumper->cur_idx;
3202 while (seq < dumper->next_seq) {
62e32ac3 3203 struct printk_log *msg = log_from_idx(idx);
e2ae715d 3204
5aa068ea 3205 l += msg_print_text(msg, true, NULL, 0);
e2ae715d
KS
3206 idx = log_next(idx);
3207 seq++;
3208 }
3209
3210 /* move first record forward until length fits into the buffer */
3211 seq = dumper->cur_seq;
3212 idx = dumper->cur_idx;
3213 while (l > size && seq < dumper->next_seq) {
62e32ac3 3214 struct printk_log *msg = log_from_idx(idx);
456b565c 3215
5aa068ea 3216 l -= msg_print_text(msg, true, NULL, 0);
e2ae715d
KS
3217 idx = log_next(idx);
3218 seq++;
456b565c 3219 }
e2ae715d
KS
3220
3221 /* last message in next interation */
3222 next_seq = seq;
3223 next_idx = idx;
3224
3225 l = 0;
3226 while (seq < dumper->next_seq) {
62e32ac3 3227 struct printk_log *msg = log_from_idx(idx);
e2ae715d 3228
5aa068ea 3229 l += msg_print_text(msg, syslog, buf + l, size - l);
e2ae715d
KS
3230 idx = log_next(idx);
3231 seq++;
3232 }
3233
3234 dumper->next_seq = next_seq;
3235 dumper->next_idx = next_idx;
3236 ret = true;
de6fcbdb 3237 logbuf_unlock_irqrestore(flags);
e2ae715d
KS
3238out:
3239 if (len)
3240 *len = l;
3241 return ret;
3242}
3243EXPORT_SYMBOL_GPL(kmsg_dump_get_buffer);
456b565c 3244
533827c9
AV
3245/**
3246 * kmsg_dump_rewind_nolock - reset the interator (unlocked version)
3247 * @dumper: registered kmsg dumper
3248 *
3249 * Reset the dumper's iterator so that kmsg_dump_get_line() and
3250 * kmsg_dump_get_buffer() can be called again and used multiple
3251 * times within the same dumper.dump() callback.
3252 *
3253 * The function is similar to kmsg_dump_rewind(), but grabs no locks.
3254 */
3255void kmsg_dump_rewind_nolock(struct kmsg_dumper *dumper)
3256{
3257 dumper->cur_seq = clear_seq;
3258 dumper->cur_idx = clear_idx;
3259 dumper->next_seq = log_next_seq;
3260 dumper->next_idx = log_next_idx;
3261}
3262
e2ae715d
KS
3263/**
3264 * kmsg_dump_rewind - reset the interator
3265 * @dumper: registered kmsg dumper
3266 *
3267 * Reset the dumper's iterator so that kmsg_dump_get_line() and
3268 * kmsg_dump_get_buffer() can be called again and used multiple
3269 * times within the same dumper.dump() callback.
3270 */
3271void kmsg_dump_rewind(struct kmsg_dumper *dumper)
3272{
3273 unsigned long flags;
3274
de6fcbdb 3275 logbuf_lock_irqsave(flags);
533827c9 3276 kmsg_dump_rewind_nolock(dumper);
de6fcbdb 3277 logbuf_unlock_irqrestore(flags);
456b565c 3278}
e2ae715d 3279EXPORT_SYMBOL_GPL(kmsg_dump_rewind);
196779b9 3280
7ef3d2fd 3281#endif