blob: fae1fc3962f8c3caeb587ad457657b622a75bad3 [file] [log] [blame]
Jason Wessel5d5314d2010-05-20 21:04:20 -05001/*
2 * Kernel Debugger Architecture Independent Main Code
3 *
4 * This file is subject to the terms and conditions of the GNU General Public
5 * License. See the file "COPYING" in the main directory of this archive
6 * for more details.
7 *
8 * Copyright (C) 1999-2004 Silicon Graphics, Inc. All Rights Reserved.
9 * Copyright (C) 2000 Stephane Eranian <eranian@hpl.hp.com>
10 * Xscale (R) modifications copyright (C) 2003 Intel Corporation.
11 * Copyright (c) 2009 Wind River Systems, Inc. All Rights Reserved.
12 */
13
14#include <linux/ctype.h>
15#include <linux/string.h>
16#include <linux/kernel.h>
Anton Vorontsovbc792e62012-07-20 17:27:37 -070017#include <linux/kmsg_dump.h>
Jason Wessel5d5314d2010-05-20 21:04:20 -050018#include <linux/reboot.h>
19#include <linux/sched.h>
20#include <linux/sysrq.h>
21#include <linux/smp.h>
22#include <linux/utsname.h>
23#include <linux/vmalloc.h>
Anton Vorontsovad394f62012-09-24 14:27:51 -070024#include <linux/atomic.h>
Jason Wessel5d5314d2010-05-20 21:04:20 -050025#include <linux/module.h>
26#include <linux/mm.h>
27#include <linux/init.h>
28#include <linux/kallsyms.h>
29#include <linux/kgdb.h>
30#include <linux/kdb.h>
31#include <linux/notifier.h>
32#include <linux/interrupt.h>
33#include <linux/delay.h>
34#include <linux/nmi.h>
35#include <linux/time.h>
36#include <linux/ptrace.h>
37#include <linux/sysctl.h>
38#include <linux/cpu.h>
39#include <linux/kdebug.h>
40#include <linux/proc_fs.h>
41#include <linux/uaccess.h>
42#include <linux/slab.h>
43#include "kdb_private.h"
44
45#define GREP_LEN 256
46char kdb_grep_string[GREP_LEN];
47int kdb_grepping_flag;
48EXPORT_SYMBOL(kdb_grepping_flag);
49int kdb_grep_leading;
50int kdb_grep_trailing;
51
52/*
53 * Kernel debugger state flags
54 */
55int kdb_flags;
56atomic_t kdb_event;
57
58/*
59 * kdb_lock protects updates to kdb_initial_cpu. Used to
60 * single thread processors through the kernel debugger.
61 */
62int kdb_initial_cpu = -1; /* cpu number that owns kdb */
63int kdb_nextline = 1;
64int kdb_state; /* General KDB state */
65
66struct task_struct *kdb_current_task;
67EXPORT_SYMBOL(kdb_current_task);
68struct pt_regs *kdb_current_regs;
69
70const char *kdb_diemsg;
71static int kdb_go_count;
72#ifdef CONFIG_KDB_CONTINUE_CATASTROPHIC
73static unsigned int kdb_continue_catastrophic =
74 CONFIG_KDB_CONTINUE_CATASTROPHIC;
75#else
76static unsigned int kdb_continue_catastrophic;
77#endif
78
79/* kdb_commands describes the available commands. */
80static kdbtab_t *kdb_commands;
81#define KDB_BASE_CMD_MAX 50
82static int kdb_max_commands = KDB_BASE_CMD_MAX;
Jovi Zhang27029c32010-03-15 07:28:00 -050083static kdbtab_t kdb_base_commands[KDB_BASE_CMD_MAX];
Jason Wessel5d5314d2010-05-20 21:04:20 -050084#define for_each_kdbcmd(cmd, num) \
85 for ((cmd) = kdb_base_commands, (num) = 0; \
86 num < kdb_max_commands; \
Jovi Zhang5450d902010-11-10 07:22:18 -060087 num++, num == KDB_BASE_CMD_MAX ? cmd = kdb_commands : cmd++)
Jason Wessel5d5314d2010-05-20 21:04:20 -050088
89typedef struct _kdbmsg {
90 int km_diag; /* kdb diagnostic */
91 char *km_msg; /* Corresponding message text */
92} kdbmsg_t;
93
94#define KDBMSG(msgnum, text) \
95 { KDB_##msgnum, text }
96
97static kdbmsg_t kdbmsgs[] = {
98 KDBMSG(NOTFOUND, "Command Not Found"),
99 KDBMSG(ARGCOUNT, "Improper argument count, see usage."),
100 KDBMSG(BADWIDTH, "Illegal value for BYTESPERWORD use 1, 2, 4 or 8, "
101 "8 is only allowed on 64 bit systems"),
102 KDBMSG(BADRADIX, "Illegal value for RADIX use 8, 10 or 16"),
103 KDBMSG(NOTENV, "Cannot find environment variable"),
104 KDBMSG(NOENVVALUE, "Environment variable should have value"),
105 KDBMSG(NOTIMP, "Command not implemented"),
106 KDBMSG(ENVFULL, "Environment full"),
107 KDBMSG(ENVBUFFULL, "Environment buffer full"),
108 KDBMSG(TOOMANYBPT, "Too many breakpoints defined"),
109#ifdef CONFIG_CPU_XSCALE
110 KDBMSG(TOOMANYDBREGS, "More breakpoints than ibcr registers defined"),
111#else
112 KDBMSG(TOOMANYDBREGS, "More breakpoints than db registers defined"),
113#endif
114 KDBMSG(DUPBPT, "Duplicate breakpoint address"),
115 KDBMSG(BPTNOTFOUND, "Breakpoint not found"),
116 KDBMSG(BADMODE, "Invalid IDMODE"),
117 KDBMSG(BADINT, "Illegal numeric value"),
118 KDBMSG(INVADDRFMT, "Invalid symbolic address format"),
119 KDBMSG(BADREG, "Invalid register name"),
120 KDBMSG(BADCPUNUM, "Invalid cpu number"),
121 KDBMSG(BADLENGTH, "Invalid length field"),
122 KDBMSG(NOBP, "No Breakpoint exists"),
123 KDBMSG(BADADDR, "Invalid address"),
124};
125#undef KDBMSG
126
Sasha Levin5f784f72012-12-20 14:11:27 -0500127static const int __nkdb_err = ARRAY_SIZE(kdbmsgs);
Jason Wessel5d5314d2010-05-20 21:04:20 -0500128
129
130/*
131 * Initial environment. This is all kept static and local to
132 * this file. We don't want to rely on the memory allocation
133 * mechanisms in the kernel, so we use a very limited allocate-only
134 * heap for new and altered environment variables. The entire
135 * environment is limited to a fixed number of entries (add more
136 * to __env[] if required) and a fixed amount of heap (add more to
137 * KDB_ENVBUFSIZE if required).
138 */
139
140static char *__env[] = {
141#if defined(CONFIG_SMP)
142 "PROMPT=[%d]kdb> ",
Jason Wessel5d5314d2010-05-20 21:04:20 -0500143#else
144 "PROMPT=kdb> ",
Jason Wessel5d5314d2010-05-20 21:04:20 -0500145#endif
Jason Wessel0f26d0e2012-07-30 22:44:41 -0500146 "MOREPROMPT=more> ",
Jason Wessel5d5314d2010-05-20 21:04:20 -0500147 "RADIX=16",
148 "MDCOUNT=8", /* lines of md output */
Jason Wessel5d5314d2010-05-20 21:04:20 -0500149 KDB_PLATFORM_ENV,
150 "DTABCOUNT=30",
151 "NOSECT=1",
152 (char *)0,
153 (char *)0,
154 (char *)0,
155 (char *)0,
156 (char *)0,
157 (char *)0,
158 (char *)0,
159 (char *)0,
160 (char *)0,
161 (char *)0,
162 (char *)0,
163 (char *)0,
164 (char *)0,
165 (char *)0,
166 (char *)0,
167 (char *)0,
168 (char *)0,
169 (char *)0,
170 (char *)0,
171 (char *)0,
172 (char *)0,
173 (char *)0,
174 (char *)0,
Jason Wessel3bdb65e2011-06-30 14:12:00 -0500175 (char *)0,
Jason Wessel5d5314d2010-05-20 21:04:20 -0500176};
177
Sasha Levin5f784f72012-12-20 14:11:27 -0500178static const int __nenv = ARRAY_SIZE(__env);
Jason Wessel5d5314d2010-05-20 21:04:20 -0500179
180struct task_struct *kdb_curr_task(int cpu)
181{
182 struct task_struct *p = curr_task(cpu);
183#ifdef _TIF_MCA_INIT
184 if ((task_thread_info(p)->flags & _TIF_MCA_INIT) && KDB_TSK(cpu))
185 p = krp->p;
186#endif
187 return p;
188}
189
190/*
Daniel Thompson9452e972014-11-06 14:36:45 +0000191 * Check whether the flags of the current command and the permissions
192 * of the kdb console has allow a command to be run.
193 */
194static inline bool kdb_check_flags(kdb_cmdflags_t flags, int permissions,
195 bool no_args)
196{
197 /* permissions comes from userspace so needs massaging slightly */
198 permissions &= KDB_ENABLE_MASK;
199 permissions |= KDB_ENABLE_ALWAYS_SAFE;
200
201 /* some commands change group when launched with no arguments */
202 if (no_args)
203 permissions |= permissions << KDB_ENABLE_NO_ARGS_SHIFT;
204
205 flags |= KDB_ENABLE_ALL;
206
207 return permissions & flags;
208}
209
210/*
Jason Wessel5d5314d2010-05-20 21:04:20 -0500211 * kdbgetenv - This function will return the character string value of
212 * an environment variable.
213 * Parameters:
214 * match A character string representing an environment variable.
215 * Returns:
216 * NULL No environment variable matches 'match'
217 * char* Pointer to string value of environment variable.
218 */
219char *kdbgetenv(const char *match)
220{
221 char **ep = __env;
222 int matchlen = strlen(match);
223 int i;
224
225 for (i = 0; i < __nenv; i++) {
226 char *e = *ep++;
227
228 if (!e)
229 continue;
230
231 if ((strncmp(match, e, matchlen) == 0)
232 && ((e[matchlen] == '\0')
233 || (e[matchlen] == '='))) {
234 char *cp = strchr(e, '=');
235 return cp ? ++cp : "";
236 }
237 }
238 return NULL;
239}
240
241/*
242 * kdballocenv - This function is used to allocate bytes for
243 * environment entries.
244 * Parameters:
245 * match A character string representing a numeric value
246 * Outputs:
247 * *value the unsigned long representation of the env variable 'match'
248 * Returns:
249 * Zero on success, a kdb diagnostic on failure.
250 * Remarks:
251 * We use a static environment buffer (envbuffer) to hold the values
252 * of dynamically generated environment variables (see kdb_set). Buffer
253 * space once allocated is never free'd, so over time, the amount of space
254 * (currently 512 bytes) will be exhausted if env variables are changed
255 * frequently.
256 */
257static char *kdballocenv(size_t bytes)
258{
259#define KDB_ENVBUFSIZE 512
260 static char envbuffer[KDB_ENVBUFSIZE];
261 static int envbufsize;
262 char *ep = NULL;
263
264 if ((KDB_ENVBUFSIZE - envbufsize) >= bytes) {
265 ep = &envbuffer[envbufsize];
266 envbufsize += bytes;
267 }
268 return ep;
269}
270
271/*
272 * kdbgetulenv - This function will return the value of an unsigned
273 * long-valued environment variable.
274 * Parameters:
275 * match A character string representing a numeric value
276 * Outputs:
277 * *value the unsigned long represntation of the env variable 'match'
278 * Returns:
279 * Zero on success, a kdb diagnostic on failure.
280 */
281static int kdbgetulenv(const char *match, unsigned long *value)
282{
283 char *ep;
284
285 ep = kdbgetenv(match);
286 if (!ep)
287 return KDB_NOTENV;
288 if (strlen(ep) == 0)
289 return KDB_NOENVVALUE;
290
291 *value = simple_strtoul(ep, NULL, 0);
292
293 return 0;
294}
295
296/*
297 * kdbgetintenv - This function will return the value of an
298 * integer-valued environment variable.
299 * Parameters:
300 * match A character string representing an integer-valued env variable
301 * Outputs:
302 * *value the integer representation of the environment variable 'match'
303 * Returns:
304 * Zero on success, a kdb diagnostic on failure.
305 */
306int kdbgetintenv(const char *match, int *value)
307{
308 unsigned long val;
309 int diag;
310
311 diag = kdbgetulenv(match, &val);
312 if (!diag)
313 *value = (int) val;
314 return diag;
315}
316
317/*
318 * kdbgetularg - This function will convert a numeric string into an
319 * unsigned long value.
320 * Parameters:
321 * arg A character string representing a numeric value
322 * Outputs:
323 * *value the unsigned long represntation of arg.
324 * Returns:
325 * Zero on success, a kdb diagnostic on failure.
326 */
327int kdbgetularg(const char *arg, unsigned long *value)
328{
329 char *endp;
330 unsigned long val;
331
332 val = simple_strtoul(arg, &endp, 0);
333
334 if (endp == arg) {
335 /*
Jason Wessel534af102010-08-05 09:22:20 -0500336 * Also try base 16, for us folks too lazy to type the
Jason Wessel5d5314d2010-05-20 21:04:20 -0500337 * leading 0x...
338 */
339 val = simple_strtoul(arg, &endp, 16);
340 if (endp == arg)
341 return KDB_BADINT;
342 }
343
344 *value = val;
345
346 return 0;
347}
348
Jason Wessel534af102010-08-05 09:22:20 -0500349int kdbgetu64arg(const char *arg, u64 *value)
350{
351 char *endp;
352 u64 val;
353
354 val = simple_strtoull(arg, &endp, 0);
355
356 if (endp == arg) {
357
358 val = simple_strtoull(arg, &endp, 16);
359 if (endp == arg)
360 return KDB_BADINT;
361 }
362
363 *value = val;
364
365 return 0;
366}
367
Jason Wessel5d5314d2010-05-20 21:04:20 -0500368/*
369 * kdb_set - This function implements the 'set' command. Alter an
370 * existing environment variable or create a new one.
371 */
372int kdb_set(int argc, const char **argv)
373{
374 int i;
375 char *ep;
376 size_t varlen, vallen;
377
378 /*
379 * we can be invoked two ways:
380 * set var=value argv[1]="var", argv[2]="value"
381 * set var = value argv[1]="var", argv[2]="=", argv[3]="value"
382 * - if the latter, shift 'em down.
383 */
384 if (argc == 3) {
385 argv[2] = argv[3];
386 argc--;
387 }
388
389 if (argc != 2)
390 return KDB_ARGCOUNT;
391
392 /*
393 * Check for internal variables
394 */
395 if (strcmp(argv[1], "KDBDEBUG") == 0) {
396 unsigned int debugflags;
397 char *cp;
398
399 debugflags = simple_strtoul(argv[2], &cp, 0);
400 if (cp == argv[2] || debugflags & ~KDB_DEBUG_FLAG_MASK) {
401 kdb_printf("kdb: illegal debug flags '%s'\n",
402 argv[2]);
403 return 0;
404 }
405 kdb_flags = (kdb_flags &
406 ~(KDB_DEBUG_FLAG_MASK << KDB_DEBUG_FLAG_SHIFT))
407 | (debugflags << KDB_DEBUG_FLAG_SHIFT);
408
409 return 0;
410 }
411
412 /*
413 * Tokenizer squashed the '=' sign. argv[1] is variable
414 * name, argv[2] = value.
415 */
416 varlen = strlen(argv[1]);
417 vallen = strlen(argv[2]);
418 ep = kdballocenv(varlen + vallen + 2);
419 if (ep == (char *)0)
420 return KDB_ENVBUFFULL;
421
422 sprintf(ep, "%s=%s", argv[1], argv[2]);
423
424 ep[varlen+vallen+1] = '\0';
425
426 for (i = 0; i < __nenv; i++) {
427 if (__env[i]
428 && ((strncmp(__env[i], argv[1], varlen) == 0)
429 && ((__env[i][varlen] == '\0')
430 || (__env[i][varlen] == '=')))) {
431 __env[i] = ep;
432 return 0;
433 }
434 }
435
436 /*
437 * Wasn't existing variable. Fit into slot.
438 */
439 for (i = 0; i < __nenv-1; i++) {
440 if (__env[i] == (char *)0) {
441 __env[i] = ep;
442 return 0;
443 }
444 }
445
446 return KDB_ENVFULL;
447}
448
449static int kdb_check_regs(void)
450{
451 if (!kdb_current_regs) {
452 kdb_printf("No current kdb registers."
453 " You may need to select another task\n");
454 return KDB_BADREG;
455 }
456 return 0;
457}
458
459/*
460 * kdbgetaddrarg - This function is responsible for parsing an
461 * address-expression and returning the value of the expression,
462 * symbol name, and offset to the caller.
463 *
464 * The argument may consist of a numeric value (decimal or
Lucas De Marchi25985ed2011-03-30 22:57:33 -0300465 * hexidecimal), a symbol name, a register name (preceded by the
Jason Wessel5d5314d2010-05-20 21:04:20 -0500466 * percent sign), an environment variable with a numeric value
Lucas De Marchi25985ed2011-03-30 22:57:33 -0300467 * (preceded by a dollar sign) or a simple arithmetic expression
Jason Wessel5d5314d2010-05-20 21:04:20 -0500468 * consisting of a symbol name, +/-, and a numeric constant value
469 * (offset).
470 * Parameters:
471 * argc - count of arguments in argv
472 * argv - argument vector
473 * *nextarg - index to next unparsed argument in argv[]
474 * regs - Register state at time of KDB entry
475 * Outputs:
476 * *value - receives the value of the address-expression
477 * *offset - receives the offset specified, if any
478 * *name - receives the symbol name, if any
479 * *nextarg - index to next unparsed argument in argv[]
480 * Returns:
481 * zero is returned on success, a kdb diagnostic code is
482 * returned on error.
483 */
484int kdbgetaddrarg(int argc, const char **argv, int *nextarg,
485 unsigned long *value, long *offset,
486 char **name)
487{
488 unsigned long addr;
489 unsigned long off = 0;
490 int positive;
491 int diag;
492 int found = 0;
493 char *symname;
494 char symbol = '\0';
495 char *cp;
496 kdb_symtab_t symtab;
497
498 /*
499 * Process arguments which follow the following syntax:
500 *
501 * symbol | numeric-address [+/- numeric-offset]
502 * %register
503 * $environment-variable
504 */
505
506 if (*nextarg > argc)
507 return KDB_ARGCOUNT;
508
509 symname = (char *)argv[*nextarg];
510
511 /*
512 * If there is no whitespace between the symbol
513 * or address and the '+' or '-' symbols, we
514 * remember the character and replace it with a
515 * null so the symbol/value can be properly parsed
516 */
517 cp = strpbrk(symname, "+-");
518 if (cp != NULL) {
519 symbol = *cp;
520 *cp++ = '\0';
521 }
522
523 if (symname[0] == '$') {
524 diag = kdbgetulenv(&symname[1], &addr);
525 if (diag)
526 return diag;
527 } else if (symname[0] == '%') {
528 diag = kdb_check_regs();
529 if (diag)
530 return diag;
531 /* Implement register values with % at a later time as it is
532 * arch optional.
533 */
534 return KDB_NOTIMP;
535 } else {
536 found = kdbgetsymval(symname, &symtab);
537 if (found) {
538 addr = symtab.sym_start;
539 } else {
540 diag = kdbgetularg(argv[*nextarg], &addr);
541 if (diag)
542 return diag;
543 }
544 }
545
546 if (!found)
547 found = kdbnearsym(addr, &symtab);
548
549 (*nextarg)++;
550
551 if (name)
552 *name = symname;
553 if (value)
554 *value = addr;
555 if (offset && name && *name)
556 *offset = addr - symtab.sym_start;
557
558 if ((*nextarg > argc)
559 && (symbol == '\0'))
560 return 0;
561
562 /*
563 * check for +/- and offset
564 */
565
566 if (symbol == '\0') {
567 if ((argv[*nextarg][0] != '+')
568 && (argv[*nextarg][0] != '-')) {
569 /*
570 * Not our argument. Return.
571 */
572 return 0;
573 } else {
574 positive = (argv[*nextarg][0] == '+');
575 (*nextarg)++;
576 }
577 } else
578 positive = (symbol == '+');
579
580 /*
581 * Now there must be an offset!
582 */
583 if ((*nextarg > argc)
584 && (symbol == '\0')) {
585 return KDB_INVADDRFMT;
586 }
587
588 if (!symbol) {
589 cp = (char *)argv[*nextarg];
590 (*nextarg)++;
591 }
592
593 diag = kdbgetularg(cp, &off);
594 if (diag)
595 return diag;
596
597 if (!positive)
598 off = -off;
599
600 if (offset)
601 *offset += off;
602
603 if (value)
604 *value += off;
605
606 return 0;
607}
608
609static void kdb_cmderror(int diag)
610{
611 int i;
612
613 if (diag >= 0) {
614 kdb_printf("no error detected (diagnostic is %d)\n", diag);
615 return;
616 }
617
618 for (i = 0; i < __nkdb_err; i++) {
619 if (kdbmsgs[i].km_diag == diag) {
620 kdb_printf("diag: %d: %s\n", diag, kdbmsgs[i].km_msg);
621 return;
622 }
623 }
624
625 kdb_printf("Unknown diag %d\n", -diag);
626}
627
628/*
629 * kdb_defcmd, kdb_defcmd2 - This function implements the 'defcmd'
630 * command which defines one command as a set of other commands,
631 * terminated by endefcmd. kdb_defcmd processes the initial
632 * 'defcmd' command, kdb_defcmd2 is invoked from kdb_parse for
633 * the following commands until 'endefcmd'.
634 * Inputs:
635 * argc argument count
636 * argv argument vector
637 * Returns:
638 * zero for success, a kdb diagnostic if error
639 */
640struct defcmd_set {
641 int count;
642 int usable;
643 char *name;
644 char *usage;
645 char *help;
646 char **command;
647};
648static struct defcmd_set *defcmd_set;
649static int defcmd_set_count;
650static int defcmd_in_progress;
651
652/* Forward references */
653static int kdb_exec_defcmd(int argc, const char **argv);
654
655static int kdb_defcmd2(const char *cmdstr, const char *argv0)
656{
657 struct defcmd_set *s = defcmd_set + defcmd_set_count - 1;
658 char **save_command = s->command;
659 if (strcmp(argv0, "endefcmd") == 0) {
660 defcmd_in_progress = 0;
661 if (!s->count)
662 s->usable = 0;
663 if (s->usable)
Daniel Thompson9452e972014-11-06 14:36:45 +0000664 /* macros are always safe because when executed each
665 * internal command re-enters kdb_parse() and is
666 * safety checked individually.
667 */
668 kdb_register_flags(s->name, kdb_exec_defcmd, s->usage,
669 s->help, 0,
670 KDB_ENABLE_ALWAYS_SAFE);
Jason Wessel5d5314d2010-05-20 21:04:20 -0500671 return 0;
672 }
673 if (!s->usable)
674 return KDB_NOTIMP;
Jovi Zhang5450d902010-11-10 07:22:18 -0600675 s->command = kzalloc((s->count + 1) * sizeof(*(s->command)), GFP_KDB);
Jason Wessel5d5314d2010-05-20 21:04:20 -0500676 if (!s->command) {
677 kdb_printf("Could not allocate new kdb_defcmd table for %s\n",
678 cmdstr);
679 s->usable = 0;
680 return KDB_NOTIMP;
681 }
682 memcpy(s->command, save_command, s->count * sizeof(*(s->command)));
683 s->command[s->count++] = kdb_strdup(cmdstr, GFP_KDB);
684 kfree(save_command);
685 return 0;
686}
687
688static int kdb_defcmd(int argc, const char **argv)
689{
690 struct defcmd_set *save_defcmd_set = defcmd_set, *s;
691 if (defcmd_in_progress) {
692 kdb_printf("kdb: nested defcmd detected, assuming missing "
693 "endefcmd\n");
694 kdb_defcmd2("endefcmd", "endefcmd");
695 }
696 if (argc == 0) {
697 int i;
698 for (s = defcmd_set; s < defcmd_set + defcmd_set_count; ++s) {
699 kdb_printf("defcmd %s \"%s\" \"%s\"\n", s->name,
700 s->usage, s->help);
701 for (i = 0; i < s->count; ++i)
702 kdb_printf("%s", s->command[i]);
703 kdb_printf("endefcmd\n");
704 }
705 return 0;
706 }
707 if (argc != 3)
708 return KDB_ARGCOUNT;
Jason Wessela37372f2013-02-04 10:35:33 -0600709 if (in_dbg_master()) {
710 kdb_printf("Command only available during kdb_init()\n");
711 return KDB_NOTIMP;
712 }
Jason Wessel5d5314d2010-05-20 21:04:20 -0500713 defcmd_set = kmalloc((defcmd_set_count + 1) * sizeof(*defcmd_set),
714 GFP_KDB);
Jason Wessel4eb7a662013-02-03 09:32:28 -0600715 if (!defcmd_set)
716 goto fail_defcmd;
Jason Wessel5d5314d2010-05-20 21:04:20 -0500717 memcpy(defcmd_set, save_defcmd_set,
718 defcmd_set_count * sizeof(*defcmd_set));
Jason Wessel5d5314d2010-05-20 21:04:20 -0500719 s = defcmd_set + defcmd_set_count;
720 memset(s, 0, sizeof(*s));
721 s->usable = 1;
722 s->name = kdb_strdup(argv[1], GFP_KDB);
Jason Wessel4eb7a662013-02-03 09:32:28 -0600723 if (!s->name)
724 goto fail_name;
Jason Wessel5d5314d2010-05-20 21:04:20 -0500725 s->usage = kdb_strdup(argv[2], GFP_KDB);
Jason Wessel4eb7a662013-02-03 09:32:28 -0600726 if (!s->usage)
727 goto fail_usage;
Jason Wessel5d5314d2010-05-20 21:04:20 -0500728 s->help = kdb_strdup(argv[3], GFP_KDB);
Jason Wessel4eb7a662013-02-03 09:32:28 -0600729 if (!s->help)
730 goto fail_help;
Jason Wessel5d5314d2010-05-20 21:04:20 -0500731 if (s->usage[0] == '"') {
Jason Wessel4eb7a662013-02-03 09:32:28 -0600732 strcpy(s->usage, argv[2]+1);
Jason Wessel5d5314d2010-05-20 21:04:20 -0500733 s->usage[strlen(s->usage)-1] = '\0';
734 }
735 if (s->help[0] == '"') {
Jason Wessel4eb7a662013-02-03 09:32:28 -0600736 strcpy(s->help, argv[3]+1);
Jason Wessel5d5314d2010-05-20 21:04:20 -0500737 s->help[strlen(s->help)-1] = '\0';
738 }
739 ++defcmd_set_count;
740 defcmd_in_progress = 1;
Jason Wessel4eb7a662013-02-03 09:32:28 -0600741 kfree(save_defcmd_set);
Jason Wessel5d5314d2010-05-20 21:04:20 -0500742 return 0;
Jason Wessel4eb7a662013-02-03 09:32:28 -0600743fail_help:
744 kfree(s->usage);
745fail_usage:
746 kfree(s->name);
747fail_name:
748 kfree(defcmd_set);
749fail_defcmd:
750 kdb_printf("Could not allocate new defcmd_set entry for %s\n", argv[1]);
751 defcmd_set = save_defcmd_set;
752 return KDB_NOTIMP;
Jason Wessel5d5314d2010-05-20 21:04:20 -0500753}
754
755/*
756 * kdb_exec_defcmd - Execute the set of commands associated with this
757 * defcmd name.
758 * Inputs:
759 * argc argument count
760 * argv argument vector
761 * Returns:
762 * zero for success, a kdb diagnostic if error
763 */
764static int kdb_exec_defcmd(int argc, const char **argv)
765{
766 int i, ret;
767 struct defcmd_set *s;
768 if (argc != 0)
769 return KDB_ARGCOUNT;
770 for (s = defcmd_set, i = 0; i < defcmd_set_count; ++i, ++s) {
771 if (strcmp(s->name, argv[0]) == 0)
772 break;
773 }
774 if (i == defcmd_set_count) {
775 kdb_printf("kdb_exec_defcmd: could not find commands for %s\n",
776 argv[0]);
777 return KDB_NOTIMP;
778 }
779 for (i = 0; i < s->count; ++i) {
780 /* Recursive use of kdb_parse, do not use argv after
781 * this point */
782 argv = NULL;
783 kdb_printf("[%s]kdb> %s\n", s->name, s->command[i]);
784 ret = kdb_parse(s->command[i]);
785 if (ret)
786 return ret;
787 }
788 return 0;
789}
790
791/* Command history */
792#define KDB_CMD_HISTORY_COUNT 32
793#define CMD_BUFLEN 200 /* kdb_printf: max printline
794 * size == 256 */
795static unsigned int cmd_head, cmd_tail;
796static unsigned int cmdptr;
797static char cmd_hist[KDB_CMD_HISTORY_COUNT][CMD_BUFLEN];
798static char cmd_cur[CMD_BUFLEN];
799
800/*
801 * The "str" argument may point to something like | grep xyz
802 */
803static void parse_grep(const char *str)
804{
805 int len;
806 char *cp = (char *)str, *cp2;
807
808 /* sanity check: we should have been called with the \ first */
809 if (*cp != '|')
810 return;
811 cp++;
812 while (isspace(*cp))
813 cp++;
814 if (strncmp(cp, "grep ", 5)) {
815 kdb_printf("invalid 'pipe', see grephelp\n");
816 return;
817 }
818 cp += 5;
819 while (isspace(*cp))
820 cp++;
821 cp2 = strchr(cp, '\n');
822 if (cp2)
823 *cp2 = '\0'; /* remove the trailing newline */
824 len = strlen(cp);
825 if (len == 0) {
826 kdb_printf("invalid 'pipe', see grephelp\n");
827 return;
828 }
829 /* now cp points to a nonzero length search string */
830 if (*cp == '"') {
831 /* allow it be "x y z" by removing the "'s - there must
832 be two of them */
833 cp++;
834 cp2 = strchr(cp, '"');
835 if (!cp2) {
836 kdb_printf("invalid quoted string, see grephelp\n");
837 return;
838 }
839 *cp2 = '\0'; /* end the string where the 2nd " was */
840 }
841 kdb_grep_leading = 0;
842 if (*cp == '^') {
843 kdb_grep_leading = 1;
844 cp++;
845 }
846 len = strlen(cp);
847 kdb_grep_trailing = 0;
848 if (*(cp+len-1) == '$') {
849 kdb_grep_trailing = 1;
850 *(cp+len-1) = '\0';
851 }
852 len = strlen(cp);
853 if (!len)
854 return;
855 if (len >= GREP_LEN) {
856 kdb_printf("search string too long\n");
857 return;
858 }
859 strcpy(kdb_grep_string, cp);
860 kdb_grepping_flag++;
861 return;
862}
863
864/*
865 * kdb_parse - Parse the command line, search the command table for a
866 * matching command and invoke the command function. This
867 * function may be called recursively, if it is, the second call
868 * will overwrite argv and cbuf. It is the caller's
869 * responsibility to save their argv if they recursively call
870 * kdb_parse().
871 * Parameters:
872 * cmdstr The input command line to be parsed.
873 * regs The registers at the time kdb was entered.
874 * Returns:
875 * Zero for success, a kdb diagnostic if failure.
876 * Remarks:
877 * Limited to 20 tokens.
878 *
879 * Real rudimentary tokenization. Basically only whitespace
880 * is considered a token delimeter (but special consideration
881 * is taken of the '=' sign as used by the 'set' command).
882 *
883 * The algorithm used to tokenize the input string relies on
884 * there being at least one whitespace (or otherwise useless)
885 * character between tokens as the character immediately following
886 * the token is altered in-place to a null-byte to terminate the
887 * token string.
888 */
889
890#define MAXARGC 20
891
892int kdb_parse(const char *cmdstr)
893{
894 static char *argv[MAXARGC];
895 static int argc;
896 static char cbuf[CMD_BUFLEN+2];
897 char *cp;
898 char *cpp, quoted;
899 kdbtab_t *tp;
900 int i, escaped, ignore_errors = 0, check_grep;
901
902 /*
903 * First tokenize the command string.
904 */
905 cp = (char *)cmdstr;
906 kdb_grepping_flag = check_grep = 0;
907
908 if (KDB_FLAG(CMD_INTERRUPT)) {
909 /* Previous command was interrupted, newline must not
910 * repeat the command */
911 KDB_FLAG_CLEAR(CMD_INTERRUPT);
912 KDB_STATE_SET(PAGER);
913 argc = 0; /* no repeat */
914 }
915
916 if (*cp != '\n' && *cp != '\0') {
917 argc = 0;
918 cpp = cbuf;
919 while (*cp) {
920 /* skip whitespace */
921 while (isspace(*cp))
922 cp++;
923 if ((*cp == '\0') || (*cp == '\n') ||
924 (*cp == '#' && !defcmd_in_progress))
925 break;
926 /* special case: check for | grep pattern */
927 if (*cp == '|') {
928 check_grep++;
929 break;
930 }
931 if (cpp >= cbuf + CMD_BUFLEN) {
932 kdb_printf("kdb_parse: command buffer "
933 "overflow, command ignored\n%s\n",
934 cmdstr);
935 return KDB_NOTFOUND;
936 }
937 if (argc >= MAXARGC - 1) {
938 kdb_printf("kdb_parse: too many arguments, "
939 "command ignored\n%s\n", cmdstr);
940 return KDB_NOTFOUND;
941 }
942 argv[argc++] = cpp;
943 escaped = 0;
944 quoted = '\0';
945 /* Copy to next unquoted and unescaped
946 * whitespace or '=' */
947 while (*cp && *cp != '\n' &&
948 (escaped || quoted || !isspace(*cp))) {
949 if (cpp >= cbuf + CMD_BUFLEN)
950 break;
951 if (escaped) {
952 escaped = 0;
953 *cpp++ = *cp++;
954 continue;
955 }
956 if (*cp == '\\') {
957 escaped = 1;
958 ++cp;
959 continue;
960 }
961 if (*cp == quoted)
962 quoted = '\0';
963 else if (*cp == '\'' || *cp == '"')
964 quoted = *cp;
965 *cpp = *cp++;
966 if (*cpp == '=' && !quoted)
967 break;
968 ++cpp;
969 }
970 *cpp++ = '\0'; /* Squash a ws or '=' character */
971 }
972 }
973 if (!argc)
974 return 0;
975 if (check_grep)
976 parse_grep(cp);
977 if (defcmd_in_progress) {
978 int result = kdb_defcmd2(cmdstr, argv[0]);
979 if (!defcmd_in_progress) {
980 argc = 0; /* avoid repeat on endefcmd */
981 *(argv[0]) = '\0';
982 }
983 return result;
984 }
985 if (argv[0][0] == '-' && argv[0][1] &&
986 (argv[0][1] < '0' || argv[0][1] > '9')) {
987 ignore_errors = 1;
988 ++argv[0];
989 }
990
991 for_each_kdbcmd(tp, i) {
992 if (tp->cmd_name) {
993 /*
994 * If this command is allowed to be abbreviated,
995 * check to see if this is it.
996 */
997
998 if (tp->cmd_minlen
999 && (strlen(argv[0]) <= tp->cmd_minlen)) {
1000 if (strncmp(argv[0],
1001 tp->cmd_name,
1002 tp->cmd_minlen) == 0) {
1003 break;
1004 }
1005 }
1006
1007 if (strcmp(argv[0], tp->cmd_name) == 0)
1008 break;
1009 }
1010 }
1011
1012 /*
1013 * If we don't find a command by this name, see if the first
1014 * few characters of this match any of the known commands.
1015 * e.g., md1c20 should match md.
1016 */
1017 if (i == kdb_max_commands) {
1018 for_each_kdbcmd(tp, i) {
1019 if (tp->cmd_name) {
1020 if (strncmp(argv[0],
1021 tp->cmd_name,
1022 strlen(tp->cmd_name)) == 0) {
1023 break;
1024 }
1025 }
1026 }
1027 }
1028
1029 if (i < kdb_max_commands) {
1030 int result;
1031 KDB_STATE_SET(CMD);
1032 result = (*tp->cmd_func)(argc-1, (const char **)argv);
1033 if (result && ignore_errors && result > KDB_CMD_GO)
1034 result = 0;
1035 KDB_STATE_CLEAR(CMD);
Anton Vorontsov04bb171e2014-11-06 14:36:43 +00001036
1037 if (tp->cmd_flags & KDB_REPEAT_WITH_ARGS)
1038 return result;
1039
1040 argc = tp->cmd_flags & KDB_REPEAT_NO_ARGS ? 1 : 0;
1041 if (argv[argc])
1042 *(argv[argc]) = '\0';
Jason Wessel5d5314d2010-05-20 21:04:20 -05001043 return result;
1044 }
1045
1046 /*
1047 * If the input with which we were presented does not
1048 * map to an existing command, attempt to parse it as an
1049 * address argument and display the result. Useful for
1050 * obtaining the address of a variable, or the nearest symbol
1051 * to an address contained in a register.
1052 */
1053 {
1054 unsigned long value;
1055 char *name = NULL;
1056 long offset;
1057 int nextarg = 0;
1058
1059 if (kdbgetaddrarg(0, (const char **)argv, &nextarg,
1060 &value, &offset, &name)) {
1061 return KDB_NOTFOUND;
1062 }
1063
1064 kdb_printf("%s = ", argv[0]);
1065 kdb_symbol_print(value, NULL, KDB_SP_DEFAULT);
1066 kdb_printf("\n");
1067 return 0;
1068 }
1069}
1070
1071
1072static int handle_ctrl_cmd(char *cmd)
1073{
1074#define CTRL_P 16
1075#define CTRL_N 14
1076
1077 /* initial situation */
1078 if (cmd_head == cmd_tail)
1079 return 0;
1080 switch (*cmd) {
1081 case CTRL_P:
1082 if (cmdptr != cmd_tail)
1083 cmdptr = (cmdptr-1) % KDB_CMD_HISTORY_COUNT;
1084 strncpy(cmd_cur, cmd_hist[cmdptr], CMD_BUFLEN);
1085 return 1;
1086 case CTRL_N:
1087 if (cmdptr != cmd_head)
1088 cmdptr = (cmdptr+1) % KDB_CMD_HISTORY_COUNT;
1089 strncpy(cmd_cur, cmd_hist[cmdptr], CMD_BUFLEN);
1090 return 1;
1091 }
1092 return 0;
1093}
1094
1095/*
1096 * kdb_reboot - This function implements the 'reboot' command. Reboot
1097 * the system immediately, or loop for ever on failure.
1098 */
1099static int kdb_reboot(int argc, const char **argv)
1100{
1101 emergency_restart();
1102 kdb_printf("Hmm, kdb_reboot did not reboot, spinning here\n");
1103 while (1)
1104 cpu_relax();
1105 /* NOTREACHED */
1106 return 0;
1107}
1108
1109static void kdb_dumpregs(struct pt_regs *regs)
1110{
1111 int old_lvl = console_loglevel;
Borislav Petkova8fe19e2014-06-04 16:11:46 -07001112 console_loglevel = CONSOLE_LOGLEVEL_MOTORMOUTH;
Jason Wesseld37d39a2010-05-20 21:04:27 -05001113 kdb_trap_printk++;
Jason Wessel5d5314d2010-05-20 21:04:20 -05001114 show_regs(regs);
Jason Wesseld37d39a2010-05-20 21:04:27 -05001115 kdb_trap_printk--;
Jason Wessel5d5314d2010-05-20 21:04:20 -05001116 kdb_printf("\n");
1117 console_loglevel = old_lvl;
1118}
1119
1120void kdb_set_current_task(struct task_struct *p)
1121{
1122 kdb_current_task = p;
1123
1124 if (kdb_task_has_cpu(p)) {
1125 kdb_current_regs = KDB_TSKREGS(kdb_process_cpu(p));
1126 return;
1127 }
1128 kdb_current_regs = NULL;
1129}
1130
1131/*
1132 * kdb_local - The main code for kdb. This routine is invoked on a
1133 * specific processor, it is not global. The main kdb() routine
1134 * ensures that only one processor at a time is in this routine.
1135 * This code is called with the real reason code on the first
1136 * entry to a kdb session, thereafter it is called with reason
1137 * SWITCH, even if the user goes back to the original cpu.
1138 * Inputs:
1139 * reason The reason KDB was invoked
1140 * error The hardware-defined error code
1141 * regs The exception frame at time of fault/breakpoint.
1142 * db_result Result code from the break or debug point.
1143 * Returns:
1144 * 0 KDB was invoked for an event which it wasn't responsible
1145 * 1 KDB handled the event for which it was invoked.
1146 * KDB_CMD_GO User typed 'go'.
1147 * KDB_CMD_CPU User switched to another cpu.
1148 * KDB_CMD_SS Single step.
Jason Wessel5d5314d2010-05-20 21:04:20 -05001149 */
1150static int kdb_local(kdb_reason_t reason, int error, struct pt_regs *regs,
1151 kdb_dbtrap_t db_result)
1152{
1153 char *cmdbuf;
1154 int diag;
1155 struct task_struct *kdb_current =
1156 kdb_curr_task(raw_smp_processor_id());
1157
1158 KDB_DEBUG_STATE("kdb_local 1", reason);
1159 kdb_go_count = 0;
1160 if (reason == KDB_REASON_DEBUG) {
1161 /* special case below */
1162 } else {
1163 kdb_printf("\nEntering kdb (current=0x%p, pid %d) ",
Jason Wessel578bd4d2010-10-29 13:14:41 -05001164 kdb_current, kdb_current ? kdb_current->pid : 0);
Jason Wessel5d5314d2010-05-20 21:04:20 -05001165#if defined(CONFIG_SMP)
1166 kdb_printf("on processor %d ", raw_smp_processor_id());
1167#endif
1168 }
1169
1170 switch (reason) {
1171 case KDB_REASON_DEBUG:
1172 {
1173 /*
1174 * If re-entering kdb after a single step
1175 * command, don't print the message.
1176 */
1177 switch (db_result) {
1178 case KDB_DB_BPT:
1179 kdb_printf("\nEntering kdb (0x%p, pid %d) ",
1180 kdb_current, kdb_current->pid);
1181#if defined(CONFIG_SMP)
1182 kdb_printf("on processor %d ", raw_smp_processor_id());
1183#endif
1184 kdb_printf("due to Debug @ " kdb_machreg_fmt "\n",
1185 instruction_pointer(regs));
1186 break;
Jason Wessel5d5314d2010-05-20 21:04:20 -05001187 case KDB_DB_SS:
1188 break;
1189 case KDB_DB_SSBPT:
1190 KDB_DEBUG_STATE("kdb_local 4", reason);
1191 return 1; /* kdba_db_trap did the work */
1192 default:
1193 kdb_printf("kdb: Bad result from kdba_db_trap: %d\n",
1194 db_result);
1195 break;
1196 }
1197
1198 }
1199 break;
1200 case KDB_REASON_ENTER:
1201 if (KDB_STATE(KEYBOARD))
1202 kdb_printf("due to Keyboard Entry\n");
1203 else
1204 kdb_printf("due to KDB_ENTER()\n");
1205 break;
1206 case KDB_REASON_KEYBOARD:
1207 KDB_STATE_SET(KEYBOARD);
1208 kdb_printf("due to Keyboard Entry\n");
1209 break;
1210 case KDB_REASON_ENTER_SLAVE:
1211 /* drop through, slaves only get released via cpu switch */
1212 case KDB_REASON_SWITCH:
1213 kdb_printf("due to cpu switch\n");
1214 break;
1215 case KDB_REASON_OOPS:
1216 kdb_printf("Oops: %s\n", kdb_diemsg);
1217 kdb_printf("due to oops @ " kdb_machreg_fmt "\n",
1218 instruction_pointer(regs));
1219 kdb_dumpregs(regs);
1220 break;
Mike Travis8daaa5f2013-10-02 10:14:18 -05001221 case KDB_REASON_SYSTEM_NMI:
1222 kdb_printf("due to System NonMaskable Interrupt\n");
1223 break;
Jason Wessel5d5314d2010-05-20 21:04:20 -05001224 case KDB_REASON_NMI:
1225 kdb_printf("due to NonMaskable Interrupt @ "
1226 kdb_machreg_fmt "\n",
1227 instruction_pointer(regs));
1228 kdb_dumpregs(regs);
1229 break;
1230 case KDB_REASON_SSTEP:
1231 case KDB_REASON_BREAK:
1232 kdb_printf("due to %s @ " kdb_machreg_fmt "\n",
1233 reason == KDB_REASON_BREAK ?
1234 "Breakpoint" : "SS trap", instruction_pointer(regs));
1235 /*
1236 * Determine if this breakpoint is one that we
1237 * are interested in.
1238 */
1239 if (db_result != KDB_DB_BPT) {
1240 kdb_printf("kdb: error return from kdba_bp_trap: %d\n",
1241 db_result);
1242 KDB_DEBUG_STATE("kdb_local 6", reason);
1243 return 0; /* Not for us, dismiss it */
1244 }
1245 break;
1246 case KDB_REASON_RECURSE:
1247 kdb_printf("due to Recursion @ " kdb_machreg_fmt "\n",
1248 instruction_pointer(regs));
1249 break;
1250 default:
1251 kdb_printf("kdb: unexpected reason code: %d\n", reason);
1252 KDB_DEBUG_STATE("kdb_local 8", reason);
1253 return 0; /* Not for us, dismiss it */
1254 }
1255
1256 while (1) {
1257 /*
1258 * Initialize pager context.
1259 */
1260 kdb_nextline = 1;
1261 KDB_STATE_CLEAR(SUPPRESS);
1262
1263 cmdbuf = cmd_cur;
1264 *cmdbuf = '\0';
1265 *(cmd_hist[cmd_head]) = '\0';
1266
Jason Wessel5d5314d2010-05-20 21:04:20 -05001267do_full_getstr:
1268#if defined(CONFIG_SMP)
1269 snprintf(kdb_prompt_str, CMD_BUFLEN, kdbgetenv("PROMPT"),
1270 raw_smp_processor_id());
1271#else
1272 snprintf(kdb_prompt_str, CMD_BUFLEN, kdbgetenv("PROMPT"));
1273#endif
1274 if (defcmd_in_progress)
1275 strncat(kdb_prompt_str, "[defcmd]", CMD_BUFLEN);
1276
1277 /*
1278 * Fetch command from keyboard
1279 */
1280 cmdbuf = kdb_getstr(cmdbuf, CMD_BUFLEN, kdb_prompt_str);
1281 if (*cmdbuf != '\n') {
1282 if (*cmdbuf < 32) {
1283 if (cmdptr == cmd_head) {
1284 strncpy(cmd_hist[cmd_head], cmd_cur,
1285 CMD_BUFLEN);
1286 *(cmd_hist[cmd_head] +
1287 strlen(cmd_hist[cmd_head])-1) = '\0';
1288 }
1289 if (!handle_ctrl_cmd(cmdbuf))
1290 *(cmd_cur+strlen(cmd_cur)-1) = '\0';
1291 cmdbuf = cmd_cur;
1292 goto do_full_getstr;
1293 } else {
1294 strncpy(cmd_hist[cmd_head], cmd_cur,
1295 CMD_BUFLEN);
1296 }
1297
1298 cmd_head = (cmd_head+1) % KDB_CMD_HISTORY_COUNT;
1299 if (cmd_head == cmd_tail)
1300 cmd_tail = (cmd_tail+1) % KDB_CMD_HISTORY_COUNT;
1301 }
1302
1303 cmdptr = cmd_head;
1304 diag = kdb_parse(cmdbuf);
1305 if (diag == KDB_NOTFOUND) {
1306 kdb_printf("Unknown kdb command: '%s'\n", cmdbuf);
1307 diag = 0;
1308 }
1309 if (diag == KDB_CMD_GO
1310 || diag == KDB_CMD_CPU
1311 || diag == KDB_CMD_SS
Jason Wessel5d5314d2010-05-20 21:04:20 -05001312 || diag == KDB_CMD_KGDB)
1313 break;
1314
1315 if (diag)
1316 kdb_cmderror(diag);
1317 }
1318 KDB_DEBUG_STATE("kdb_local 9", diag);
1319 return diag;
1320}
1321
1322
1323/*
1324 * kdb_print_state - Print the state data for the current processor
1325 * for debugging.
1326 * Inputs:
1327 * text Identifies the debug point
1328 * value Any integer value to be printed, e.g. reason code.
1329 */
1330void kdb_print_state(const char *text, int value)
1331{
1332 kdb_printf("state: %s cpu %d value %d initial %d state %x\n",
1333 text, raw_smp_processor_id(), value, kdb_initial_cpu,
1334 kdb_state);
1335}
1336
1337/*
1338 * kdb_main_loop - After initial setup and assignment of the
1339 * controlling cpu, all cpus are in this loop. One cpu is in
1340 * control and will issue the kdb prompt, the others will spin
1341 * until 'go' or cpu switch.
1342 *
1343 * To get a consistent view of the kernel stacks for all
1344 * processes, this routine is invoked from the main kdb code via
1345 * an architecture specific routine. kdba_main_loop is
1346 * responsible for making the kernel stacks consistent for all
1347 * processes, there should be no difference between a blocked
1348 * process and a running process as far as kdb is concerned.
1349 * Inputs:
1350 * reason The reason KDB was invoked
1351 * error The hardware-defined error code
1352 * reason2 kdb's current reason code.
1353 * Initially error but can change
Lucas De Marchi25985ed2011-03-30 22:57:33 -03001354 * according to kdb state.
Jason Wessel5d5314d2010-05-20 21:04:20 -05001355 * db_result Result code from break or debug point.
1356 * regs The exception frame at time of fault/breakpoint.
1357 * should always be valid.
1358 * Returns:
1359 * 0 KDB was invoked for an event which it wasn't responsible
1360 * 1 KDB handled the event for which it was invoked.
1361 */
1362int kdb_main_loop(kdb_reason_t reason, kdb_reason_t reason2, int error,
1363 kdb_dbtrap_t db_result, struct pt_regs *regs)
1364{
1365 int result = 1;
1366 /* Stay in kdb() until 'go', 'ss[b]' or an error */
1367 while (1) {
1368 /*
1369 * All processors except the one that is in control
1370 * will spin here.
1371 */
1372 KDB_DEBUG_STATE("kdb_main_loop 1", reason);
1373 while (KDB_STATE(HOLD_CPU)) {
1374 /* state KDB is turned off by kdb_cpu to see if the
1375 * other cpus are still live, each cpu in this loop
1376 * turns it back on.
1377 */
1378 if (!KDB_STATE(KDB))
1379 KDB_STATE_SET(KDB);
1380 }
1381
1382 KDB_STATE_CLEAR(SUPPRESS);
1383 KDB_DEBUG_STATE("kdb_main_loop 2", reason);
1384 if (KDB_STATE(LEAVING))
1385 break; /* Another cpu said 'go' */
1386 /* Still using kdb, this processor is in control */
1387 result = kdb_local(reason2, error, regs, db_result);
1388 KDB_DEBUG_STATE("kdb_main_loop 3", result);
1389
1390 if (result == KDB_CMD_CPU)
1391 break;
1392
1393 if (result == KDB_CMD_SS) {
1394 KDB_STATE_SET(DOING_SS);
1395 break;
1396 }
1397
Jason Wessel5d5314d2010-05-20 21:04:20 -05001398 if (result == KDB_CMD_KGDB) {
Jason Wesseld613d822011-05-23 13:22:54 -05001399 if (!KDB_STATE(DOING_KGDB))
Jason Wessel5d5314d2010-05-20 21:04:20 -05001400 kdb_printf("Entering please attach debugger "
1401 "or use $D#44+ or $3#33\n");
1402 break;
1403 }
1404 if (result && result != 1 && result != KDB_CMD_GO)
1405 kdb_printf("\nUnexpected kdb_local return code %d\n",
1406 result);
1407 KDB_DEBUG_STATE("kdb_main_loop 4", reason);
1408 break;
1409 }
1410 if (KDB_STATE(DOING_SS))
1411 KDB_STATE_CLEAR(SSBPT);
1412
Andrei Warkentin8f30d412012-02-28 06:55:05 -06001413 /* Clean up any keyboard devices before leaving */
1414 kdb_kbd_cleanup_state();
1415
Jason Wessel5d5314d2010-05-20 21:04:20 -05001416 return result;
1417}
1418
1419/*
1420 * kdb_mdr - This function implements the guts of the 'mdr', memory
1421 * read command.
1422 * mdr <addr arg>,<byte count>
1423 * Inputs:
1424 * addr Start address
1425 * count Number of bytes
1426 * Returns:
1427 * Always 0. Any errors are detected and printed by kdb_getarea.
1428 */
1429static int kdb_mdr(unsigned long addr, unsigned int count)
1430{
1431 unsigned char c;
1432 while (count--) {
1433 if (kdb_getarea(c, addr))
1434 return 0;
1435 kdb_printf("%02x", c);
1436 addr++;
1437 }
1438 kdb_printf("\n");
1439 return 0;
1440}
1441
1442/*
1443 * kdb_md - This function implements the 'md', 'md1', 'md2', 'md4',
1444 * 'md8' 'mdr' and 'mds' commands.
1445 *
1446 * md|mds [<addr arg> [<line count> [<radix>]]]
1447 * mdWcN [<addr arg> [<line count> [<radix>]]]
1448 * where W = is the width (1, 2, 4 or 8) and N is the count.
1449 * for eg., md1c20 reads 20 bytes, 1 at a time.
1450 * mdr <addr arg>,<byte count>
1451 */
1452static void kdb_md_line(const char *fmtstr, unsigned long addr,
1453 int symbolic, int nosect, int bytesperword,
1454 int num, int repeat, int phys)
1455{
1456 /* print just one line of data */
1457 kdb_symtab_t symtab;
1458 char cbuf[32];
1459 char *c = cbuf;
1460 int i;
1461 unsigned long word;
1462
1463 memset(cbuf, '\0', sizeof(cbuf));
1464 if (phys)
1465 kdb_printf("phys " kdb_machreg_fmt0 " ", addr);
1466 else
1467 kdb_printf(kdb_machreg_fmt0 " ", addr);
1468
1469 for (i = 0; i < num && repeat--; i++) {
1470 if (phys) {
1471 if (kdb_getphysword(&word, addr, bytesperword))
1472 break;
1473 } else if (kdb_getword(&word, addr, bytesperword))
1474 break;
1475 kdb_printf(fmtstr, word);
1476 if (symbolic)
1477 kdbnearsym(word, &symtab);
1478 else
1479 memset(&symtab, 0, sizeof(symtab));
1480 if (symtab.sym_name) {
1481 kdb_symbol_print(word, &symtab, 0);
1482 if (!nosect) {
1483 kdb_printf("\n");
1484 kdb_printf(" %s %s "
1485 kdb_machreg_fmt " "
1486 kdb_machreg_fmt " "
1487 kdb_machreg_fmt, symtab.mod_name,
1488 symtab.sec_name, symtab.sec_start,
1489 symtab.sym_start, symtab.sym_end);
1490 }
1491 addr += bytesperword;
1492 } else {
1493 union {
1494 u64 word;
1495 unsigned char c[8];
1496 } wc;
1497 unsigned char *cp;
1498#ifdef __BIG_ENDIAN
1499 cp = wc.c + 8 - bytesperword;
1500#else
1501 cp = wc.c;
1502#endif
1503 wc.word = word;
1504#define printable_char(c) \
1505 ({unsigned char __c = c; isascii(__c) && isprint(__c) ? __c : '.'; })
1506 switch (bytesperword) {
1507 case 8:
1508 *c++ = printable_char(*cp++);
1509 *c++ = printable_char(*cp++);
1510 *c++ = printable_char(*cp++);
1511 *c++ = printable_char(*cp++);
1512 addr += 4;
1513 case 4:
1514 *c++ = printable_char(*cp++);
1515 *c++ = printable_char(*cp++);
1516 addr += 2;
1517 case 2:
1518 *c++ = printable_char(*cp++);
1519 addr++;
1520 case 1:
1521 *c++ = printable_char(*cp++);
1522 addr++;
1523 break;
1524 }
1525#undef printable_char
1526 }
1527 }
1528 kdb_printf("%*s %s\n", (int)((num-i)*(2*bytesperword + 1)+1),
1529 " ", cbuf);
1530}
1531
1532static int kdb_md(int argc, const char **argv)
1533{
1534 static unsigned long last_addr;
1535 static int last_radix, last_bytesperword, last_repeat;
1536 int radix = 16, mdcount = 8, bytesperword = KDB_WORD_SIZE, repeat;
1537 int nosect = 0;
1538 char fmtchar, fmtstr[64];
1539 unsigned long addr;
1540 unsigned long word;
1541 long offset = 0;
1542 int symbolic = 0;
1543 int valid = 0;
1544 int phys = 0;
1545
1546 kdbgetintenv("MDCOUNT", &mdcount);
1547 kdbgetintenv("RADIX", &radix);
1548 kdbgetintenv("BYTESPERWORD", &bytesperword);
1549
1550 /* Assume 'md <addr>' and start with environment values */
1551 repeat = mdcount * 16 / bytesperword;
1552
1553 if (strcmp(argv[0], "mdr") == 0) {
1554 if (argc != 2)
1555 return KDB_ARGCOUNT;
1556 valid = 1;
1557 } else if (isdigit(argv[0][2])) {
1558 bytesperword = (int)(argv[0][2] - '0');
1559 if (bytesperword == 0) {
1560 bytesperword = last_bytesperword;
1561 if (bytesperword == 0)
1562 bytesperword = 4;
1563 }
1564 last_bytesperword = bytesperword;
1565 repeat = mdcount * 16 / bytesperword;
1566 if (!argv[0][3])
1567 valid = 1;
1568 else if (argv[0][3] == 'c' && argv[0][4]) {
1569 char *p;
1570 repeat = simple_strtoul(argv[0] + 4, &p, 10);
1571 mdcount = ((repeat * bytesperword) + 15) / 16;
1572 valid = !*p;
1573 }
1574 last_repeat = repeat;
1575 } else if (strcmp(argv[0], "md") == 0)
1576 valid = 1;
1577 else if (strcmp(argv[0], "mds") == 0)
1578 valid = 1;
1579 else if (strcmp(argv[0], "mdp") == 0) {
1580 phys = valid = 1;
1581 }
1582 if (!valid)
1583 return KDB_NOTFOUND;
1584
1585 if (argc == 0) {
1586 if (last_addr == 0)
1587 return KDB_ARGCOUNT;
1588 addr = last_addr;
1589 radix = last_radix;
1590 bytesperword = last_bytesperword;
1591 repeat = last_repeat;
1592 mdcount = ((repeat * bytesperword) + 15) / 16;
1593 }
1594
1595 if (argc) {
1596 unsigned long val;
1597 int diag, nextarg = 1;
1598 diag = kdbgetaddrarg(argc, argv, &nextarg, &addr,
1599 &offset, NULL);
1600 if (diag)
1601 return diag;
1602 if (argc > nextarg+2)
1603 return KDB_ARGCOUNT;
1604
1605 if (argc >= nextarg) {
1606 diag = kdbgetularg(argv[nextarg], &val);
1607 if (!diag) {
1608 mdcount = (int) val;
1609 repeat = mdcount * 16 / bytesperword;
1610 }
1611 }
1612 if (argc >= nextarg+1) {
1613 diag = kdbgetularg(argv[nextarg+1], &val);
1614 if (!diag)
1615 radix = (int) val;
1616 }
1617 }
1618
1619 if (strcmp(argv[0], "mdr") == 0)
1620 return kdb_mdr(addr, mdcount);
1621
1622 switch (radix) {
1623 case 10:
1624 fmtchar = 'd';
1625 break;
1626 case 16:
1627 fmtchar = 'x';
1628 break;
1629 case 8:
1630 fmtchar = 'o';
1631 break;
1632 default:
1633 return KDB_BADRADIX;
1634 }
1635
1636 last_radix = radix;
1637
1638 if (bytesperword > KDB_WORD_SIZE)
1639 return KDB_BADWIDTH;
1640
1641 switch (bytesperword) {
1642 case 8:
1643 sprintf(fmtstr, "%%16.16l%c ", fmtchar);
1644 break;
1645 case 4:
1646 sprintf(fmtstr, "%%8.8l%c ", fmtchar);
1647 break;
1648 case 2:
1649 sprintf(fmtstr, "%%4.4l%c ", fmtchar);
1650 break;
1651 case 1:
1652 sprintf(fmtstr, "%%2.2l%c ", fmtchar);
1653 break;
1654 default:
1655 return KDB_BADWIDTH;
1656 }
1657
1658 last_repeat = repeat;
1659 last_bytesperword = bytesperword;
1660
1661 if (strcmp(argv[0], "mds") == 0) {
1662 symbolic = 1;
1663 /* Do not save these changes as last_*, they are temporary mds
1664 * overrides.
1665 */
1666 bytesperword = KDB_WORD_SIZE;
1667 repeat = mdcount;
1668 kdbgetintenv("NOSECT", &nosect);
1669 }
1670
1671 /* Round address down modulo BYTESPERWORD */
1672
1673 addr &= ~(bytesperword-1);
1674
1675 while (repeat > 0) {
1676 unsigned long a;
1677 int n, z, num = (symbolic ? 1 : (16 / bytesperword));
1678
1679 if (KDB_FLAG(CMD_INTERRUPT))
1680 return 0;
1681 for (a = addr, z = 0; z < repeat; a += bytesperword, ++z) {
1682 if (phys) {
1683 if (kdb_getphysword(&word, a, bytesperword)
1684 || word)
1685 break;
1686 } else if (kdb_getword(&word, a, bytesperword) || word)
1687 break;
1688 }
1689 n = min(num, repeat);
1690 kdb_md_line(fmtstr, addr, symbolic, nosect, bytesperword,
1691 num, repeat, phys);
1692 addr += bytesperword * n;
1693 repeat -= n;
1694 z = (z + num - 1) / num;
1695 if (z > 2) {
1696 int s = num * (z-2);
1697 kdb_printf(kdb_machreg_fmt0 "-" kdb_machreg_fmt0
1698 " zero suppressed\n",
1699 addr, addr + bytesperword * s - 1);
1700 addr += bytesperword * s;
1701 repeat -= s;
1702 }
1703 }
1704 last_addr = addr;
1705
1706 return 0;
1707}
1708
1709/*
1710 * kdb_mm - This function implements the 'mm' command.
1711 * mm address-expression new-value
1712 * Remarks:
1713 * mm works on machine words, mmW works on bytes.
1714 */
1715static int kdb_mm(int argc, const char **argv)
1716{
1717 int diag;
1718 unsigned long addr;
1719 long offset = 0;
1720 unsigned long contents;
1721 int nextarg;
1722 int width;
1723
1724 if (argv[0][2] && !isdigit(argv[0][2]))
1725 return KDB_NOTFOUND;
1726
1727 if (argc < 2)
1728 return KDB_ARGCOUNT;
1729
1730 nextarg = 1;
1731 diag = kdbgetaddrarg(argc, argv, &nextarg, &addr, &offset, NULL);
1732 if (diag)
1733 return diag;
1734
1735 if (nextarg > argc)
1736 return KDB_ARGCOUNT;
1737 diag = kdbgetaddrarg(argc, argv, &nextarg, &contents, NULL, NULL);
1738 if (diag)
1739 return diag;
1740
1741 if (nextarg != argc + 1)
1742 return KDB_ARGCOUNT;
1743
1744 width = argv[0][2] ? (argv[0][2] - '0') : (KDB_WORD_SIZE);
1745 diag = kdb_putword(addr, contents, width);
1746 if (diag)
1747 return diag;
1748
1749 kdb_printf(kdb_machreg_fmt " = " kdb_machreg_fmt "\n", addr, contents);
1750
1751 return 0;
1752}
1753
1754/*
1755 * kdb_go - This function implements the 'go' command.
1756 * go [address-expression]
1757 */
1758static int kdb_go(int argc, const char **argv)
1759{
1760 unsigned long addr;
1761 int diag;
1762 int nextarg;
1763 long offset;
1764
Jason Wessel495363d2010-05-21 08:46:00 -05001765 if (raw_smp_processor_id() != kdb_initial_cpu) {
1766 kdb_printf("go must execute on the entry cpu, "
1767 "please use \"cpu %d\" and then execute go\n",
1768 kdb_initial_cpu);
1769 return KDB_BADCPUNUM;
1770 }
Jason Wessel5d5314d2010-05-20 21:04:20 -05001771 if (argc == 1) {
Jason Wessel5d5314d2010-05-20 21:04:20 -05001772 nextarg = 1;
1773 diag = kdbgetaddrarg(argc, argv, &nextarg,
1774 &addr, &offset, NULL);
1775 if (diag)
1776 return diag;
1777 } else if (argc) {
1778 return KDB_ARGCOUNT;
1779 }
1780
1781 diag = KDB_CMD_GO;
1782 if (KDB_FLAG(CATASTROPHIC)) {
1783 kdb_printf("Catastrophic error detected\n");
1784 kdb_printf("kdb_continue_catastrophic=%d, ",
1785 kdb_continue_catastrophic);
1786 if (kdb_continue_catastrophic == 0 && kdb_go_count++ == 0) {
1787 kdb_printf("type go a second time if you really want "
1788 "to continue\n");
1789 return 0;
1790 }
1791 if (kdb_continue_catastrophic == 2) {
1792 kdb_printf("forcing reboot\n");
1793 kdb_reboot(0, NULL);
1794 }
1795 kdb_printf("attempting to continue\n");
1796 }
1797 return diag;
1798}
1799
1800/*
1801 * kdb_rd - This function implements the 'rd' command.
1802 */
1803static int kdb_rd(int argc, const char **argv)
1804{
Jason Wessel534af102010-08-05 09:22:20 -05001805 int len = kdb_check_regs();
1806#if DBG_MAX_REG_NUM > 0
1807 int i;
1808 char *rname;
1809 int rsize;
1810 u64 reg64;
1811 u32 reg32;
1812 u16 reg16;
1813 u8 reg8;
1814
1815 if (len)
1816 return len;
1817
1818 for (i = 0; i < DBG_MAX_REG_NUM; i++) {
1819 rsize = dbg_reg_def[i].size * 2;
1820 if (rsize > 16)
1821 rsize = 2;
1822 if (len + strlen(dbg_reg_def[i].name) + 4 + rsize > 80) {
1823 len = 0;
1824 kdb_printf("\n");
1825 }
1826 if (len)
1827 len += kdb_printf(" ");
1828 switch(dbg_reg_def[i].size * 8) {
1829 case 8:
1830 rname = dbg_get_reg(i, &reg8, kdb_current_regs);
1831 if (!rname)
1832 break;
1833 len += kdb_printf("%s: %02x", rname, reg8);
1834 break;
1835 case 16:
1836 rname = dbg_get_reg(i, &reg16, kdb_current_regs);
1837 if (!rname)
1838 break;
1839 len += kdb_printf("%s: %04x", rname, reg16);
1840 break;
1841 case 32:
1842 rname = dbg_get_reg(i, &reg32, kdb_current_regs);
1843 if (!rname)
1844 break;
1845 len += kdb_printf("%s: %08x", rname, reg32);
1846 break;
1847 case 64:
1848 rname = dbg_get_reg(i, &reg64, kdb_current_regs);
1849 if (!rname)
1850 break;
1851 len += kdb_printf("%s: %016llx", rname, reg64);
1852 break;
1853 default:
1854 len += kdb_printf("%s: ??", dbg_reg_def[i].name);
1855 }
1856 }
1857 kdb_printf("\n");
1858#else
1859 if (len)
1860 return len;
Jason Wessel5d5314d2010-05-20 21:04:20 -05001861
1862 kdb_dumpregs(kdb_current_regs);
Jason Wessel534af102010-08-05 09:22:20 -05001863#endif
Jason Wessel5d5314d2010-05-20 21:04:20 -05001864 return 0;
1865}
1866
1867/*
1868 * kdb_rm - This function implements the 'rm' (register modify) command.
1869 * rm register-name new-contents
1870 * Remarks:
Jason Wessel534af102010-08-05 09:22:20 -05001871 * Allows register modification with the same restrictions as gdb
Jason Wessel5d5314d2010-05-20 21:04:20 -05001872 */
1873static int kdb_rm(int argc, const char **argv)
1874{
Jason Wessel534af102010-08-05 09:22:20 -05001875#if DBG_MAX_REG_NUM > 0
Jason Wessel5d5314d2010-05-20 21:04:20 -05001876 int diag;
Jason Wessel534af102010-08-05 09:22:20 -05001877 const char *rname;
1878 int i;
1879 u64 reg64;
1880 u32 reg32;
1881 u16 reg16;
1882 u8 reg8;
Jason Wessel5d5314d2010-05-20 21:04:20 -05001883
1884 if (argc != 2)
1885 return KDB_ARGCOUNT;
1886 /*
1887 * Allow presence or absence of leading '%' symbol.
1888 */
Jason Wessel534af102010-08-05 09:22:20 -05001889 rname = argv[1];
1890 if (*rname == '%')
1891 rname++;
Jason Wessel5d5314d2010-05-20 21:04:20 -05001892
Jason Wessel534af102010-08-05 09:22:20 -05001893 diag = kdbgetu64arg(argv[2], &reg64);
Jason Wessel5d5314d2010-05-20 21:04:20 -05001894 if (diag)
1895 return diag;
1896
1897 diag = kdb_check_regs();
1898 if (diag)
1899 return diag;
Jason Wessel534af102010-08-05 09:22:20 -05001900
1901 diag = KDB_BADREG;
1902 for (i = 0; i < DBG_MAX_REG_NUM; i++) {
1903 if (strcmp(rname, dbg_reg_def[i].name) == 0) {
1904 diag = 0;
1905 break;
1906 }
1907 }
1908 if (!diag) {
1909 switch(dbg_reg_def[i].size * 8) {
1910 case 8:
1911 reg8 = reg64;
1912 dbg_set_reg(i, &reg8, kdb_current_regs);
1913 break;
1914 case 16:
1915 reg16 = reg64;
1916 dbg_set_reg(i, &reg16, kdb_current_regs);
1917 break;
1918 case 32:
1919 reg32 = reg64;
1920 dbg_set_reg(i, &reg32, kdb_current_regs);
1921 break;
1922 case 64:
1923 dbg_set_reg(i, &reg64, kdb_current_regs);
1924 break;
1925 }
1926 }
1927 return diag;
1928#else
Jason Wessel5d5314d2010-05-20 21:04:20 -05001929 kdb_printf("ERROR: Register set currently not implemented\n");
Jason Wessel534af102010-08-05 09:22:20 -05001930 return 0;
1931#endif
Jason Wessel5d5314d2010-05-20 21:04:20 -05001932}
1933
1934#if defined(CONFIG_MAGIC_SYSRQ)
1935/*
1936 * kdb_sr - This function implements the 'sr' (SYSRQ key) command
1937 * which interfaces to the soi-disant MAGIC SYSRQ functionality.
1938 * sr <magic-sysrq-code>
1939 */
1940static int kdb_sr(int argc, const char **argv)
1941{
1942 if (argc != 1)
1943 return KDB_ARGCOUNT;
Jason Wesseld37d39a2010-05-20 21:04:27 -05001944 kdb_trap_printk++;
Dmitry Torokhovf3353972010-08-17 21:15:47 -07001945 __handle_sysrq(*argv[1], false);
Jason Wesseld37d39a2010-05-20 21:04:27 -05001946 kdb_trap_printk--;
Jason Wessel5d5314d2010-05-20 21:04:20 -05001947
1948 return 0;
1949}
1950#endif /* CONFIG_MAGIC_SYSRQ */
1951
1952/*
1953 * kdb_ef - This function implements the 'regs' (display exception
1954 * frame) command. This command takes an address and expects to
1955 * find an exception frame at that address, formats and prints
1956 * it.
1957 * regs address-expression
1958 * Remarks:
1959 * Not done yet.
1960 */
1961static int kdb_ef(int argc, const char **argv)
1962{
1963 int diag;
1964 unsigned long addr;
1965 long offset;
1966 int nextarg;
1967
1968 if (argc != 1)
1969 return KDB_ARGCOUNT;
1970
1971 nextarg = 1;
1972 diag = kdbgetaddrarg(argc, argv, &nextarg, &addr, &offset, NULL);
1973 if (diag)
1974 return diag;
1975 show_regs((struct pt_regs *)addr);
1976 return 0;
1977}
1978
1979#if defined(CONFIG_MODULES)
Jason Wessel5d5314d2010-05-20 21:04:20 -05001980/*
1981 * kdb_lsmod - This function implements the 'lsmod' command. Lists
1982 * currently loaded kernel modules.
1983 * Mostly taken from userland lsmod.
1984 */
1985static int kdb_lsmod(int argc, const char **argv)
1986{
1987 struct module *mod;
1988
1989 if (argc != 0)
1990 return KDB_ARGCOUNT;
1991
1992 kdb_printf("Module Size modstruct Used by\n");
1993 list_for_each_entry(mod, kdb_modules, list) {
Rusty Russell0d21b0e2013-01-12 11:38:44 +10301994 if (mod->state == MODULE_STATE_UNFORMED)
1995 continue;
Jason Wessel5d5314d2010-05-20 21:04:20 -05001996
1997 kdb_printf("%-20s%8u 0x%p ", mod->name,
1998 mod->core_size, (void *)mod);
1999#ifdef CONFIG_MODULE_UNLOAD
Eric Dumazetbd77c042012-01-13 09:32:14 +10302000 kdb_printf("%4ld ", module_refcount(mod));
Jason Wessel5d5314d2010-05-20 21:04:20 -05002001#endif
2002 if (mod->state == MODULE_STATE_GOING)
2003 kdb_printf(" (Unloading)");
2004 else if (mod->state == MODULE_STATE_COMING)
2005 kdb_printf(" (Loading)");
2006 else
2007 kdb_printf(" (Live)");
Jason Wessel9e8b6242010-07-21 19:27:06 -05002008 kdb_printf(" 0x%p", mod->module_core);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002009
2010#ifdef CONFIG_MODULE_UNLOAD
2011 {
2012 struct module_use *use;
2013 kdb_printf(" [ ");
Rusty Russellc8e21ce2010-06-05 11:17:35 -06002014 list_for_each_entry(use, &mod->source_list,
2015 source_list)
2016 kdb_printf("%s ", use->target->name);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002017 kdb_printf("]\n");
2018 }
2019#endif
2020 }
2021
2022 return 0;
2023}
2024
2025#endif /* CONFIG_MODULES */
2026
2027/*
2028 * kdb_env - This function implements the 'env' command. Display the
2029 * current environment variables.
2030 */
2031
2032static int kdb_env(int argc, const char **argv)
2033{
2034 int i;
2035
2036 for (i = 0; i < __nenv; i++) {
2037 if (__env[i])
2038 kdb_printf("%s\n", __env[i]);
2039 }
2040
2041 if (KDB_DEBUG(MASK))
2042 kdb_printf("KDBFLAGS=0x%x\n", kdb_flags);
2043
2044 return 0;
2045}
2046
2047#ifdef CONFIG_PRINTK
2048/*
2049 * kdb_dmesg - This function implements the 'dmesg' command to display
2050 * the contents of the syslog buffer.
2051 * dmesg [lines] [adjust]
2052 */
2053static int kdb_dmesg(int argc, const char **argv)
2054{
Anton Vorontsovbc792e62012-07-20 17:27:37 -07002055 int diag;
2056 int logging;
2057 int lines = 0;
2058 int adjust = 0;
2059 int n = 0;
2060 int skip = 0;
2061 struct kmsg_dumper dumper = { .active = 1 };
2062 size_t len;
2063 char buf[201];
Jason Wessel5d5314d2010-05-20 21:04:20 -05002064
2065 if (argc > 2)
2066 return KDB_ARGCOUNT;
2067 if (argc) {
2068 char *cp;
2069 lines = simple_strtol(argv[1], &cp, 0);
2070 if (*cp)
2071 lines = 0;
2072 if (argc > 1) {
2073 adjust = simple_strtoul(argv[2], &cp, 0);
2074 if (*cp || adjust < 0)
2075 adjust = 0;
2076 }
2077 }
2078
2079 /* disable LOGGING if set */
2080 diag = kdbgetintenv("LOGGING", &logging);
2081 if (!diag && logging) {
2082 const char *setargs[] = { "set", "LOGGING", "0" };
2083 kdb_set(2, setargs);
2084 }
2085
Anton Vorontsovc064da42012-07-20 17:28:25 -07002086 kmsg_dump_rewind_nolock(&dumper);
2087 while (kmsg_dump_get_line_nolock(&dumper, 1, NULL, 0, NULL))
Anton Vorontsovbc792e62012-07-20 17:27:37 -07002088 n++;
2089
Jason Wessel5d5314d2010-05-20 21:04:20 -05002090 if (lines < 0) {
2091 if (adjust >= n)
2092 kdb_printf("buffer only contains %d lines, nothing "
2093 "printed\n", n);
2094 else if (adjust - lines >= n)
2095 kdb_printf("buffer only contains %d lines, last %d "
2096 "lines printed\n", n, n - adjust);
Anton Vorontsovbc792e62012-07-20 17:27:37 -07002097 skip = adjust;
2098 lines = abs(lines);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002099 } else if (lines > 0) {
Anton Vorontsovbc792e62012-07-20 17:27:37 -07002100 skip = n - lines - adjust;
2101 lines = abs(lines);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002102 if (adjust >= n) {
2103 kdb_printf("buffer only contains %d lines, "
2104 "nothing printed\n", n);
2105 skip = n;
2106 } else if (skip < 0) {
2107 lines += skip;
2108 skip = 0;
2109 kdb_printf("buffer only contains %d lines, first "
2110 "%d lines printed\n", n, lines);
2111 }
Anton Vorontsovbc792e62012-07-20 17:27:37 -07002112 } else {
2113 lines = n;
Jason Wessel5d5314d2010-05-20 21:04:20 -05002114 }
Anton Vorontsovbc792e62012-07-20 17:27:37 -07002115
2116 if (skip >= n || skip < 0)
2117 return 0;
2118
Anton Vorontsovc064da42012-07-20 17:28:25 -07002119 kmsg_dump_rewind_nolock(&dumper);
2120 while (kmsg_dump_get_line_nolock(&dumper, 1, buf, sizeof(buf), &len)) {
Anton Vorontsovbc792e62012-07-20 17:27:37 -07002121 if (skip) {
2122 skip--;
2123 continue;
Jason Wessel5d5314d2010-05-20 21:04:20 -05002124 }
Anton Vorontsovbc792e62012-07-20 17:27:37 -07002125 if (!lines--)
2126 break;
Jason Wesseld1871b32012-08-26 21:43:12 -05002127 if (KDB_FLAG(CMD_INTERRUPT))
2128 return 0;
Anton Vorontsovbc792e62012-07-20 17:27:37 -07002129
2130 kdb_printf("%.*s\n", (int)len - 1, buf);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002131 }
Jason Wessel5d5314d2010-05-20 21:04:20 -05002132
2133 return 0;
2134}
2135#endif /* CONFIG_PRINTK */
Anton Vorontsovad394f62012-09-24 14:27:51 -07002136
2137/* Make sure we balance enable/disable calls, must disable first. */
2138static atomic_t kdb_nmi_disabled;
2139
2140static int kdb_disable_nmi(int argc, const char *argv[])
2141{
2142 if (atomic_read(&kdb_nmi_disabled))
2143 return 0;
2144 atomic_set(&kdb_nmi_disabled, 1);
2145 arch_kgdb_ops.enable_nmi(0);
2146 return 0;
2147}
2148
2149static int kdb_param_enable_nmi(const char *val, const struct kernel_param *kp)
2150{
2151 if (!atomic_add_unless(&kdb_nmi_disabled, -1, 0))
2152 return -EINVAL;
2153 arch_kgdb_ops.enable_nmi(1);
2154 return 0;
2155}
2156
2157static const struct kernel_param_ops kdb_param_ops_enable_nmi = {
2158 .set = kdb_param_enable_nmi,
2159};
2160module_param_cb(enable_nmi, &kdb_param_ops_enable_nmi, NULL, 0600);
2161
Jason Wessel5d5314d2010-05-20 21:04:20 -05002162/*
2163 * kdb_cpu - This function implements the 'cpu' command.
2164 * cpu [<cpunum>]
2165 * Returns:
2166 * KDB_CMD_CPU for success, a kdb diagnostic if error
2167 */
2168static void kdb_cpu_status(void)
2169{
2170 int i, start_cpu, first_print = 1;
2171 char state, prev_state = '?';
2172
2173 kdb_printf("Currently on cpu %d\n", raw_smp_processor_id());
2174 kdb_printf("Available cpus: ");
2175 for (start_cpu = -1, i = 0; i < NR_CPUS; i++) {
2176 if (!cpu_online(i)) {
2177 state = 'F'; /* cpu is offline */
2178 } else {
2179 state = ' '; /* cpu is responding to kdb */
2180 if (kdb_task_state_char(KDB_TSK(i)) == 'I')
2181 state = 'I'; /* idle task */
2182 }
2183 if (state != prev_state) {
2184 if (prev_state != '?') {
2185 if (!first_print)
2186 kdb_printf(", ");
2187 first_print = 0;
2188 kdb_printf("%d", start_cpu);
2189 if (start_cpu < i-1)
2190 kdb_printf("-%d", i-1);
2191 if (prev_state != ' ')
2192 kdb_printf("(%c)", prev_state);
2193 }
2194 prev_state = state;
2195 start_cpu = i;
2196 }
2197 }
2198 /* print the trailing cpus, ignoring them if they are all offline */
2199 if (prev_state != 'F') {
2200 if (!first_print)
2201 kdb_printf(", ");
2202 kdb_printf("%d", start_cpu);
2203 if (start_cpu < i-1)
2204 kdb_printf("-%d", i-1);
2205 if (prev_state != ' ')
2206 kdb_printf("(%c)", prev_state);
2207 }
2208 kdb_printf("\n");
2209}
2210
2211static int kdb_cpu(int argc, const char **argv)
2212{
2213 unsigned long cpunum;
2214 int diag;
2215
2216 if (argc == 0) {
2217 kdb_cpu_status();
2218 return 0;
2219 }
2220
2221 if (argc != 1)
2222 return KDB_ARGCOUNT;
2223
2224 diag = kdbgetularg(argv[1], &cpunum);
2225 if (diag)
2226 return diag;
2227
2228 /*
2229 * Validate cpunum
2230 */
2231 if ((cpunum > NR_CPUS) || !cpu_online(cpunum))
2232 return KDB_BADCPUNUM;
2233
2234 dbg_switch_cpu = cpunum;
2235
2236 /*
2237 * Switch to other cpu
2238 */
2239 return KDB_CMD_CPU;
2240}
2241
2242/* The user may not realize that ps/bta with no parameters does not print idle
2243 * or sleeping system daemon processes, so tell them how many were suppressed.
2244 */
2245void kdb_ps_suppressed(void)
2246{
2247 int idle = 0, daemon = 0;
2248 unsigned long mask_I = kdb_task_state_string("I"),
2249 mask_M = kdb_task_state_string("M");
2250 unsigned long cpu;
2251 const struct task_struct *p, *g;
2252 for_each_online_cpu(cpu) {
2253 p = kdb_curr_task(cpu);
2254 if (kdb_task_state(p, mask_I))
2255 ++idle;
2256 }
2257 kdb_do_each_thread(g, p) {
2258 if (kdb_task_state(p, mask_M))
2259 ++daemon;
2260 } kdb_while_each_thread(g, p);
2261 if (idle || daemon) {
2262 if (idle)
2263 kdb_printf("%d idle process%s (state I)%s\n",
2264 idle, idle == 1 ? "" : "es",
2265 daemon ? " and " : "");
2266 if (daemon)
2267 kdb_printf("%d sleeping system daemon (state M) "
2268 "process%s", daemon,
2269 daemon == 1 ? "" : "es");
2270 kdb_printf(" suppressed,\nuse 'ps A' to see all.\n");
2271 }
2272}
2273
2274/*
2275 * kdb_ps - This function implements the 'ps' command which shows a
2276 * list of the active processes.
2277 * ps [DRSTCZEUIMA] All processes, optionally filtered by state
2278 */
2279void kdb_ps1(const struct task_struct *p)
2280{
2281 int cpu;
2282 unsigned long tmp;
2283
2284 if (!p || probe_kernel_read(&tmp, (char *)p, sizeof(unsigned long)))
2285 return;
2286
2287 cpu = kdb_process_cpu(p);
2288 kdb_printf("0x%p %8d %8d %d %4d %c 0x%p %c%s\n",
2289 (void *)p, p->pid, p->parent->pid,
2290 kdb_task_has_cpu(p), kdb_process_cpu(p),
2291 kdb_task_state_char(p),
2292 (void *)(&p->thread),
2293 p == kdb_curr_task(raw_smp_processor_id()) ? '*' : ' ',
2294 p->comm);
2295 if (kdb_task_has_cpu(p)) {
2296 if (!KDB_TSK(cpu)) {
2297 kdb_printf(" Error: no saved data for this cpu\n");
2298 } else {
2299 if (KDB_TSK(cpu) != p)
2300 kdb_printf(" Error: does not match running "
2301 "process table (0x%p)\n", KDB_TSK(cpu));
2302 }
2303 }
2304}
2305
2306static int kdb_ps(int argc, const char **argv)
2307{
2308 struct task_struct *g, *p;
2309 unsigned long mask, cpu;
2310
2311 if (argc == 0)
2312 kdb_ps_suppressed();
2313 kdb_printf("%-*s Pid Parent [*] cpu State %-*s Command\n",
2314 (int)(2*sizeof(void *))+2, "Task Addr",
2315 (int)(2*sizeof(void *))+2, "Thread");
2316 mask = kdb_task_state_string(argc ? argv[1] : NULL);
2317 /* Run the active tasks first */
2318 for_each_online_cpu(cpu) {
2319 if (KDB_FLAG(CMD_INTERRUPT))
2320 return 0;
2321 p = kdb_curr_task(cpu);
2322 if (kdb_task_state(p, mask))
2323 kdb_ps1(p);
2324 }
2325 kdb_printf("\n");
2326 /* Now the real tasks */
2327 kdb_do_each_thread(g, p) {
2328 if (KDB_FLAG(CMD_INTERRUPT))
2329 return 0;
2330 if (kdb_task_state(p, mask))
2331 kdb_ps1(p);
2332 } kdb_while_each_thread(g, p);
2333
2334 return 0;
2335}
2336
2337/*
2338 * kdb_pid - This function implements the 'pid' command which switches
2339 * the currently active process.
2340 * pid [<pid> | R]
2341 */
2342static int kdb_pid(int argc, const char **argv)
2343{
2344 struct task_struct *p;
2345 unsigned long val;
2346 int diag;
2347
2348 if (argc > 1)
2349 return KDB_ARGCOUNT;
2350
2351 if (argc) {
2352 if (strcmp(argv[1], "R") == 0) {
2353 p = KDB_TSK(kdb_initial_cpu);
2354 } else {
2355 diag = kdbgetularg(argv[1], &val);
2356 if (diag)
2357 return KDB_BADINT;
2358
2359 p = find_task_by_pid_ns((pid_t)val, &init_pid_ns);
2360 if (!p) {
2361 kdb_printf("No task with pid=%d\n", (pid_t)val);
2362 return 0;
2363 }
2364 }
2365 kdb_set_current_task(p);
2366 }
2367 kdb_printf("KDB current process is %s(pid=%d)\n",
2368 kdb_current_task->comm,
2369 kdb_current_task->pid);
2370
2371 return 0;
2372}
2373
Jason Wessel5d5314d2010-05-20 21:04:20 -05002374static int kdb_kgdb(int argc, const char **argv)
2375{
2376 return KDB_CMD_KGDB;
2377}
2378
2379/*
2380 * kdb_help - This function implements the 'help' and '?' commands.
2381 */
2382static int kdb_help(int argc, const char **argv)
2383{
2384 kdbtab_t *kt;
2385 int i;
2386
2387 kdb_printf("%-15.15s %-20.20s %s\n", "Command", "Usage", "Description");
2388 kdb_printf("-----------------------------"
2389 "-----------------------------\n");
2390 for_each_kdbcmd(kt, i) {
Jason Wessel074604a2013-02-04 09:52:14 -06002391 char *space = "";
Jason Wessel5d5314d2010-05-20 21:04:20 -05002392 if (KDB_FLAG(CMD_INTERRUPT))
2393 return 0;
Jason Wessel074604a2013-02-04 09:52:14 -06002394 if (!kt->cmd_name)
2395 continue;
2396 if (strlen(kt->cmd_usage) > 20)
2397 space = "\n ";
2398 kdb_printf("%-15.15s %-20s%s%s\n", kt->cmd_name,
2399 kt->cmd_usage, space, kt->cmd_help);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002400 }
2401 return 0;
2402}
2403
2404/*
2405 * kdb_kill - This function implements the 'kill' commands.
2406 */
2407static int kdb_kill(int argc, const char **argv)
2408{
2409 long sig, pid;
2410 char *endp;
2411 struct task_struct *p;
2412 struct siginfo info;
2413
2414 if (argc != 2)
2415 return KDB_ARGCOUNT;
2416
2417 sig = simple_strtol(argv[1], &endp, 0);
2418 if (*endp)
2419 return KDB_BADINT;
2420 if (sig >= 0) {
2421 kdb_printf("Invalid signal parameter.<-signal>\n");
2422 return 0;
2423 }
2424 sig = -sig;
2425
2426 pid = simple_strtol(argv[2], &endp, 0);
2427 if (*endp)
2428 return KDB_BADINT;
2429 if (pid <= 0) {
2430 kdb_printf("Process ID must be large than 0.\n");
2431 return 0;
2432 }
2433
2434 /* Find the process. */
2435 p = find_task_by_pid_ns(pid, &init_pid_ns);
2436 if (!p) {
2437 kdb_printf("The specified process isn't found.\n");
2438 return 0;
2439 }
2440 p = p->group_leader;
2441 info.si_signo = sig;
2442 info.si_errno = 0;
2443 info.si_code = SI_USER;
2444 info.si_pid = pid; /* same capabilities as process being signalled */
2445 info.si_uid = 0; /* kdb has root authority */
2446 kdb_send_sig_info(p, &info);
2447 return 0;
2448}
2449
2450struct kdb_tm {
2451 int tm_sec; /* seconds */
2452 int tm_min; /* minutes */
2453 int tm_hour; /* hours */
2454 int tm_mday; /* day of the month */
2455 int tm_mon; /* month */
2456 int tm_year; /* year */
2457};
2458
2459static void kdb_gmtime(struct timespec *tv, struct kdb_tm *tm)
2460{
2461 /* This will work from 1970-2099, 2100 is not a leap year */
2462 static int mon_day[] = { 31, 29, 31, 30, 31, 30, 31,
2463 31, 30, 31, 30, 31 };
2464 memset(tm, 0, sizeof(*tm));
2465 tm->tm_sec = tv->tv_sec % (24 * 60 * 60);
2466 tm->tm_mday = tv->tv_sec / (24 * 60 * 60) +
2467 (2 * 365 + 1); /* shift base from 1970 to 1968 */
2468 tm->tm_min = tm->tm_sec / 60 % 60;
2469 tm->tm_hour = tm->tm_sec / 60 / 60;
2470 tm->tm_sec = tm->tm_sec % 60;
2471 tm->tm_year = 68 + 4*(tm->tm_mday / (4*365+1));
2472 tm->tm_mday %= (4*365+1);
2473 mon_day[1] = 29;
2474 while (tm->tm_mday >= mon_day[tm->tm_mon]) {
2475 tm->tm_mday -= mon_day[tm->tm_mon];
2476 if (++tm->tm_mon == 12) {
2477 tm->tm_mon = 0;
2478 ++tm->tm_year;
2479 mon_day[1] = 28;
2480 }
2481 }
2482 ++tm->tm_mday;
2483}
2484
2485/*
2486 * Most of this code has been lifted from kernel/timer.c::sys_sysinfo().
2487 * I cannot call that code directly from kdb, it has an unconditional
2488 * cli()/sti() and calls routines that take locks which can stop the debugger.
2489 */
2490static void kdb_sysinfo(struct sysinfo *val)
2491{
2492 struct timespec uptime;
Thomas Gleixnera9821c72014-06-11 23:59:16 +00002493 ktime_get_ts(&uptime);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002494 memset(val, 0, sizeof(*val));
2495 val->uptime = uptime.tv_sec;
2496 val->loads[0] = avenrun[0];
2497 val->loads[1] = avenrun[1];
2498 val->loads[2] = avenrun[2];
2499 val->procs = nr_threads-1;
2500 si_meminfo(val);
2501
2502 return;
2503}
2504
2505/*
2506 * kdb_summary - This function implements the 'summary' command.
2507 */
2508static int kdb_summary(int argc, const char **argv)
2509{
Thomas Gleixner157b1a22010-07-29 10:22:48 +02002510 struct timespec now;
Jason Wessel5d5314d2010-05-20 21:04:20 -05002511 struct kdb_tm tm;
2512 struct sysinfo val;
2513
2514 if (argc)
2515 return KDB_ARGCOUNT;
2516
2517 kdb_printf("sysname %s\n", init_uts_ns.name.sysname);
2518 kdb_printf("release %s\n", init_uts_ns.name.release);
2519 kdb_printf("version %s\n", init_uts_ns.name.version);
2520 kdb_printf("machine %s\n", init_uts_ns.name.machine);
2521 kdb_printf("nodename %s\n", init_uts_ns.name.nodename);
2522 kdb_printf("domainname %s\n", init_uts_ns.name.domainname);
2523 kdb_printf("ccversion %s\n", __stringify(CCVERSION));
2524
Thomas Gleixner157b1a22010-07-29 10:22:48 +02002525 now = __current_kernel_time();
2526 kdb_gmtime(&now, &tm);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002527 kdb_printf("date %04d-%02d-%02d %02d:%02d:%02d "
2528 "tz_minuteswest %d\n",
2529 1900+tm.tm_year, tm.tm_mon+1, tm.tm_mday,
2530 tm.tm_hour, tm.tm_min, tm.tm_sec,
2531 sys_tz.tz_minuteswest);
2532
2533 kdb_sysinfo(&val);
2534 kdb_printf("uptime ");
2535 if (val.uptime > (24*60*60)) {
2536 int days = val.uptime / (24*60*60);
2537 val.uptime %= (24*60*60);
2538 kdb_printf("%d day%s ", days, days == 1 ? "" : "s");
2539 }
2540 kdb_printf("%02ld:%02ld\n", val.uptime/(60*60), (val.uptime/60)%60);
2541
2542 /* lifted from fs/proc/proc_misc.c::loadavg_read_proc() */
2543
2544#define LOAD_INT(x) ((x) >> FSHIFT)
2545#define LOAD_FRAC(x) LOAD_INT(((x) & (FIXED_1-1)) * 100)
2546 kdb_printf("load avg %ld.%02ld %ld.%02ld %ld.%02ld\n",
2547 LOAD_INT(val.loads[0]), LOAD_FRAC(val.loads[0]),
2548 LOAD_INT(val.loads[1]), LOAD_FRAC(val.loads[1]),
2549 LOAD_INT(val.loads[2]), LOAD_FRAC(val.loads[2]));
2550#undef LOAD_INT
2551#undef LOAD_FRAC
2552 /* Display in kilobytes */
2553#define K(x) ((x) << (PAGE_SHIFT - 10))
2554 kdb_printf("\nMemTotal: %8lu kB\nMemFree: %8lu kB\n"
2555 "Buffers: %8lu kB\n",
2556 val.totalram, val.freeram, val.bufferram);
2557 return 0;
2558}
2559
2560/*
2561 * kdb_per_cpu - This function implements the 'per_cpu' command.
2562 */
2563static int kdb_per_cpu(int argc, const char **argv)
2564{
Jason Wessel931ea242010-10-29 08:04:16 -05002565 char fmtstr[64];
2566 int cpu, diag, nextarg = 1;
2567 unsigned long addr, symaddr, val, bytesperword = 0, whichcpu = ~0UL;
Jason Wessel5d5314d2010-05-20 21:04:20 -05002568
2569 if (argc < 1 || argc > 3)
2570 return KDB_ARGCOUNT;
2571
Jason Wessel931ea242010-10-29 08:04:16 -05002572 diag = kdbgetaddrarg(argc, argv, &nextarg, &symaddr, NULL, NULL);
2573 if (diag)
2574 return diag;
2575
Jason Wessel5d5314d2010-05-20 21:04:20 -05002576 if (argc >= 2) {
2577 diag = kdbgetularg(argv[2], &bytesperword);
2578 if (diag)
2579 return diag;
2580 }
2581 if (!bytesperword)
2582 bytesperword = KDB_WORD_SIZE;
2583 else if (bytesperword > KDB_WORD_SIZE)
2584 return KDB_BADWIDTH;
2585 sprintf(fmtstr, "%%0%dlx ", (int)(2*bytesperword));
2586 if (argc >= 3) {
2587 diag = kdbgetularg(argv[3], &whichcpu);
2588 if (diag)
2589 return diag;
2590 if (!cpu_online(whichcpu)) {
2591 kdb_printf("cpu %ld is not online\n", whichcpu);
2592 return KDB_BADCPUNUM;
2593 }
2594 }
2595
2596 /* Most architectures use __per_cpu_offset[cpu], some use
2597 * __per_cpu_offset(cpu), smp has no __per_cpu_offset.
2598 */
2599#ifdef __per_cpu_offset
2600#define KDB_PCU(cpu) __per_cpu_offset(cpu)
2601#else
2602#ifdef CONFIG_SMP
2603#define KDB_PCU(cpu) __per_cpu_offset[cpu]
2604#else
2605#define KDB_PCU(cpu) 0
2606#endif
2607#endif
Jason Wessel5d5314d2010-05-20 21:04:20 -05002608 for_each_online_cpu(cpu) {
Jason Wessel931ea242010-10-29 08:04:16 -05002609 if (KDB_FLAG(CMD_INTERRUPT))
2610 return 0;
2611
Jason Wessel5d5314d2010-05-20 21:04:20 -05002612 if (whichcpu != ~0UL && whichcpu != cpu)
2613 continue;
Jason Wessel931ea242010-10-29 08:04:16 -05002614 addr = symaddr + KDB_PCU(cpu);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002615 diag = kdb_getword(&val, addr, bytesperword);
2616 if (diag) {
2617 kdb_printf("%5d " kdb_bfd_vma_fmt0 " - unable to "
2618 "read, diag=%d\n", cpu, addr, diag);
2619 continue;
2620 }
Jason Wessel5d5314d2010-05-20 21:04:20 -05002621 kdb_printf("%5d ", cpu);
2622 kdb_md_line(fmtstr, addr,
2623 bytesperword == KDB_WORD_SIZE,
2624 1, bytesperword, 1, 1, 0);
2625 }
Jason Wessel5d5314d2010-05-20 21:04:20 -05002626#undef KDB_PCU
Jason Wessel5d5314d2010-05-20 21:04:20 -05002627 return 0;
2628}
2629
2630/*
2631 * display help for the use of cmd | grep pattern
2632 */
2633static int kdb_grep_help(int argc, const char **argv)
2634{
2635 kdb_printf("Usage of cmd args | grep pattern:\n");
2636 kdb_printf(" Any command's output may be filtered through an ");
2637 kdb_printf("emulated 'pipe'.\n");
2638 kdb_printf(" 'grep' is just a key word.\n");
2639 kdb_printf(" The pattern may include a very limited set of "
2640 "metacharacters:\n");
2641 kdb_printf(" pattern or ^pattern or pattern$ or ^pattern$\n");
2642 kdb_printf(" And if there are spaces in the pattern, you may "
2643 "quote it:\n");
2644 kdb_printf(" \"pat tern\" or \"^pat tern\" or \"pat tern$\""
2645 " or \"^pat tern$\"\n");
2646 return 0;
2647}
2648
2649/*
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002650 * kdb_register_flags - This function is used to register a kernel
Jason Wessel5d5314d2010-05-20 21:04:20 -05002651 * debugger command.
2652 * Inputs:
2653 * cmd Command name
2654 * func Function to execute the command
2655 * usage A simple usage string showing arguments
2656 * help A simple help string describing command
2657 * repeat Does the command auto repeat on enter?
2658 * Returns:
2659 * zero for success, one if a duplicate command.
2660 */
2661#define kdb_command_extend 50 /* arbitrary */
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002662int kdb_register_flags(char *cmd,
2663 kdb_func_t func,
2664 char *usage,
2665 char *help,
2666 short minlen,
2667 kdb_cmdflags_t flags)
Jason Wessel5d5314d2010-05-20 21:04:20 -05002668{
2669 int i;
2670 kdbtab_t *kp;
2671
2672 /*
2673 * Brute force method to determine duplicates
2674 */
2675 for_each_kdbcmd(kp, i) {
2676 if (kp->cmd_name && (strcmp(kp->cmd_name, cmd) == 0)) {
2677 kdb_printf("Duplicate kdb command registered: "
2678 "%s, func %p help %s\n", cmd, func, help);
2679 return 1;
2680 }
2681 }
2682
2683 /*
2684 * Insert command into first available location in table
2685 */
2686 for_each_kdbcmd(kp, i) {
2687 if (kp->cmd_name == NULL)
2688 break;
2689 }
2690
2691 if (i >= kdb_max_commands) {
2692 kdbtab_t *new = kmalloc((kdb_max_commands - KDB_BASE_CMD_MAX +
2693 kdb_command_extend) * sizeof(*new), GFP_KDB);
2694 if (!new) {
2695 kdb_printf("Could not allocate new kdb_command "
2696 "table\n");
2697 return 1;
2698 }
2699 if (kdb_commands) {
2700 memcpy(new, kdb_commands,
Jovi Zhang5450d902010-11-10 07:22:18 -06002701 (kdb_max_commands - KDB_BASE_CMD_MAX) * sizeof(*new));
Jason Wessel5d5314d2010-05-20 21:04:20 -05002702 kfree(kdb_commands);
2703 }
John Blackwoodf7c82d52012-12-10 15:37:22 -06002704 memset(new + kdb_max_commands - KDB_BASE_CMD_MAX, 0,
Jason Wessel5d5314d2010-05-20 21:04:20 -05002705 kdb_command_extend * sizeof(*new));
2706 kdb_commands = new;
Jovi Zhang5450d902010-11-10 07:22:18 -06002707 kp = kdb_commands + kdb_max_commands - KDB_BASE_CMD_MAX;
Jason Wessel5d5314d2010-05-20 21:04:20 -05002708 kdb_max_commands += kdb_command_extend;
2709 }
2710
2711 kp->cmd_name = cmd;
2712 kp->cmd_func = func;
2713 kp->cmd_usage = usage;
2714 kp->cmd_help = help;
Jason Wessel5d5314d2010-05-20 21:04:20 -05002715 kp->cmd_minlen = minlen;
Anton Vorontsov15a42a92014-11-06 14:36:41 +00002716 kp->cmd_flags = flags;
Jason Wessel5d5314d2010-05-20 21:04:20 -05002717
2718 return 0;
2719}
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002720EXPORT_SYMBOL_GPL(kdb_register_flags);
Jason Wesself7030bb2010-10-11 10:20:14 -05002721
Jason Wessel5d5314d2010-05-20 21:04:20 -05002722
2723/*
2724 * kdb_register - Compatibility register function for commands that do
2725 * not need to specify a repeat state. Equivalent to
Anton Vorontsove8ab24d2014-11-06 14:36:44 +00002726 * kdb_register_flags with flags set to 0.
Jason Wessel5d5314d2010-05-20 21:04:20 -05002727 * Inputs:
2728 * cmd Command name
2729 * func Function to execute the command
2730 * usage A simple usage string showing arguments
2731 * help A simple help string describing command
2732 * Returns:
2733 * zero for success, one if a duplicate command.
2734 */
2735int kdb_register(char *cmd,
2736 kdb_func_t func,
2737 char *usage,
2738 char *help,
2739 short minlen)
2740{
Anton Vorontsove8ab24d2014-11-06 14:36:44 +00002741 return kdb_register_flags(cmd, func, usage, help, minlen, 0);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002742}
Jason Wesself7030bb2010-10-11 10:20:14 -05002743EXPORT_SYMBOL_GPL(kdb_register);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002744
2745/*
2746 * kdb_unregister - This function is used to unregister a kernel
2747 * debugger command. It is generally called when a module which
2748 * implements kdb commands is unloaded.
2749 * Inputs:
2750 * cmd Command name
2751 * Returns:
2752 * zero for success, one command not registered.
2753 */
2754int kdb_unregister(char *cmd)
2755{
2756 int i;
2757 kdbtab_t *kp;
2758
2759 /*
2760 * find the command.
2761 */
Jason Wessel75d14ed2010-10-11 10:20:14 -05002762 for_each_kdbcmd(kp, i) {
Jason Wessel5d5314d2010-05-20 21:04:20 -05002763 if (kp->cmd_name && (strcmp(kp->cmd_name, cmd) == 0)) {
2764 kp->cmd_name = NULL;
2765 return 0;
2766 }
2767 }
2768
2769 /* Couldn't find it. */
2770 return 1;
2771}
Jason Wesself7030bb2010-10-11 10:20:14 -05002772EXPORT_SYMBOL_GPL(kdb_unregister);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002773
2774/* Initialize the kdb command table. */
2775static void __init kdb_inittab(void)
2776{
2777 int i;
2778 kdbtab_t *kp;
2779
2780 for_each_kdbcmd(kp, i)
2781 kp->cmd_name = NULL;
2782
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002783 kdb_register_flags("md", kdb_md, "<vaddr>",
Jason Wessel5d5314d2010-05-20 21:04:20 -05002784 "Display Memory Contents, also mdWcN, e.g. md8c1", 1,
Daniel Thompson9452e972014-11-06 14:36:45 +00002785 KDB_ENABLE_MEM_READ | KDB_REPEAT_NO_ARGS);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002786 kdb_register_flags("mdr", kdb_md, "<vaddr> <bytes>",
Daniel Thompson9452e972014-11-06 14:36:45 +00002787 "Display Raw Memory", 0,
2788 KDB_ENABLE_MEM_READ | KDB_REPEAT_NO_ARGS);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002789 kdb_register_flags("mdp", kdb_md, "<paddr> <bytes>",
Daniel Thompson9452e972014-11-06 14:36:45 +00002790 "Display Physical Memory", 0,
2791 KDB_ENABLE_MEM_READ | KDB_REPEAT_NO_ARGS);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002792 kdb_register_flags("mds", kdb_md, "<vaddr>",
Daniel Thompson9452e972014-11-06 14:36:45 +00002793 "Display Memory Symbolically", 0,
2794 KDB_ENABLE_MEM_READ | KDB_REPEAT_NO_ARGS);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002795 kdb_register_flags("mm", kdb_mm, "<vaddr> <contents>",
Daniel Thompson9452e972014-11-06 14:36:45 +00002796 "Modify Memory Contents", 0,
2797 KDB_ENABLE_MEM_WRITE | KDB_REPEAT_NO_ARGS);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002798 kdb_register_flags("go", kdb_go, "[<vaddr>]",
Daniel Thompson9452e972014-11-06 14:36:45 +00002799 "Continue Execution", 1,
2800 KDB_ENABLE_REG_WRITE | KDB_ENABLE_ALWAYS_SAFE_NO_ARGS);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002801 kdb_register_flags("rd", kdb_rd, "",
Daniel Thompson9452e972014-11-06 14:36:45 +00002802 "Display Registers", 0,
2803 KDB_ENABLE_REG_READ);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002804 kdb_register_flags("rm", kdb_rm, "<reg> <contents>",
Daniel Thompson9452e972014-11-06 14:36:45 +00002805 "Modify Registers", 0,
2806 KDB_ENABLE_REG_WRITE);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002807 kdb_register_flags("ef", kdb_ef, "<vaddr>",
Daniel Thompson9452e972014-11-06 14:36:45 +00002808 "Display exception frame", 0,
2809 KDB_ENABLE_MEM_READ);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002810 kdb_register_flags("bt", kdb_bt, "[<vaddr>]",
Daniel Thompson9452e972014-11-06 14:36:45 +00002811 "Stack traceback", 1,
2812 KDB_ENABLE_MEM_READ | KDB_ENABLE_INSPECT_NO_ARGS);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002813 kdb_register_flags("btp", kdb_bt, "<pid>",
Daniel Thompson9452e972014-11-06 14:36:45 +00002814 "Display stack for process <pid>", 0,
2815 KDB_ENABLE_INSPECT);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002816 kdb_register_flags("bta", kdb_bt, "[D|R|S|T|C|Z|E|U|I|M|A]",
Daniel Thompson9452e972014-11-06 14:36:45 +00002817 "Backtrace all processes matching state flag", 0,
2818 KDB_ENABLE_INSPECT);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002819 kdb_register_flags("btc", kdb_bt, "",
Daniel Thompson9452e972014-11-06 14:36:45 +00002820 "Backtrace current process on each cpu", 0,
2821 KDB_ENABLE_INSPECT);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002822 kdb_register_flags("btt", kdb_bt, "<vaddr>",
Jason Wessel5d5314d2010-05-20 21:04:20 -05002823 "Backtrace process given its struct task address", 0,
Daniel Thompson9452e972014-11-06 14:36:45 +00002824 KDB_ENABLE_MEM_READ | KDB_ENABLE_INSPECT_NO_ARGS);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002825 kdb_register_flags("env", kdb_env, "",
Daniel Thompson9452e972014-11-06 14:36:45 +00002826 "Show environment variables", 0,
2827 KDB_ENABLE_ALWAYS_SAFE);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002828 kdb_register_flags("set", kdb_set, "",
Daniel Thompson9452e972014-11-06 14:36:45 +00002829 "Set environment variables", 0,
2830 KDB_ENABLE_ALWAYS_SAFE);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002831 kdb_register_flags("help", kdb_help, "",
Daniel Thompson9452e972014-11-06 14:36:45 +00002832 "Display Help Message", 1,
2833 KDB_ENABLE_ALWAYS_SAFE);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002834 kdb_register_flags("?", kdb_help, "",
Daniel Thompson9452e972014-11-06 14:36:45 +00002835 "Display Help Message", 0,
2836 KDB_ENABLE_ALWAYS_SAFE);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002837 kdb_register_flags("cpu", kdb_cpu, "<cpunum>",
Daniel Thompson9452e972014-11-06 14:36:45 +00002838 "Switch to new cpu", 0,
2839 KDB_ENABLE_ALWAYS_SAFE_NO_ARGS);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002840 kdb_register_flags("kgdb", kdb_kgdb, "",
Anton Vorontsove8ab24d2014-11-06 14:36:44 +00002841 "Enter kgdb mode", 0, 0);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002842 kdb_register_flags("ps", kdb_ps, "[<flags>|A]",
Daniel Thompson9452e972014-11-06 14:36:45 +00002843 "Display active task list", 0,
2844 KDB_ENABLE_INSPECT);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002845 kdb_register_flags("pid", kdb_pid, "<pidnum>",
Daniel Thompson9452e972014-11-06 14:36:45 +00002846 "Switch to another task", 0,
2847 KDB_ENABLE_INSPECT);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002848 kdb_register_flags("reboot", kdb_reboot, "",
Daniel Thompson9452e972014-11-06 14:36:45 +00002849 "Reboot the machine immediately", 0,
2850 KDB_ENABLE_REBOOT);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002851#if defined(CONFIG_MODULES)
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002852 kdb_register_flags("lsmod", kdb_lsmod, "",
Daniel Thompson9452e972014-11-06 14:36:45 +00002853 "List loaded kernel modules", 0,
2854 KDB_ENABLE_INSPECT);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002855#endif
2856#if defined(CONFIG_MAGIC_SYSRQ)
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002857 kdb_register_flags("sr", kdb_sr, "<key>",
Daniel Thompson9452e972014-11-06 14:36:45 +00002858 "Magic SysRq key", 0,
2859 KDB_ENABLE_ALWAYS_SAFE);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002860#endif
2861#if defined(CONFIG_PRINTK)
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002862 kdb_register_flags("dmesg", kdb_dmesg, "[lines]",
Daniel Thompson9452e972014-11-06 14:36:45 +00002863 "Display syslog buffer", 0,
2864 KDB_ENABLE_ALWAYS_SAFE);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002865#endif
Anton Vorontsovad394f62012-09-24 14:27:51 -07002866 if (arch_kgdb_ops.enable_nmi) {
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002867 kdb_register_flags("disable_nmi", kdb_disable_nmi, "",
Daniel Thompson9452e972014-11-06 14:36:45 +00002868 "Disable NMI entry to KDB", 0,
2869 KDB_ENABLE_ALWAYS_SAFE);
Anton Vorontsovad394f62012-09-24 14:27:51 -07002870 }
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002871 kdb_register_flags("defcmd", kdb_defcmd, "name \"usage\" \"help\"",
Daniel Thompson9452e972014-11-06 14:36:45 +00002872 "Define a set of commands, down to endefcmd", 0,
2873 KDB_ENABLE_ALWAYS_SAFE);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002874 kdb_register_flags("kill", kdb_kill, "<-signal> <pid>",
Daniel Thompson9452e972014-11-06 14:36:45 +00002875 "Send a signal to a process", 0,
2876 KDB_ENABLE_SIGNAL);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002877 kdb_register_flags("summary", kdb_summary, "",
Daniel Thompson9452e972014-11-06 14:36:45 +00002878 "Summarize the system", 4,
2879 KDB_ENABLE_ALWAYS_SAFE);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002880 kdb_register_flags("per_cpu", kdb_per_cpu, "<sym> [<bytes>] [<cpu>]",
Daniel Thompson9452e972014-11-06 14:36:45 +00002881 "Display per_cpu variables", 3,
2882 KDB_ENABLE_MEM_READ);
Anton Vorontsov42c884c2014-11-06 14:36:42 +00002883 kdb_register_flags("grephelp", kdb_grep_help, "",
Daniel Thompson9452e972014-11-06 14:36:45 +00002884 "Display help on | grep", 0,
2885 KDB_ENABLE_ALWAYS_SAFE);
Jason Wessel5d5314d2010-05-20 21:04:20 -05002886}
2887
2888/* Execute any commands defined in kdb_cmds. */
2889static void __init kdb_cmd_init(void)
2890{
2891 int i, diag;
2892 for (i = 0; kdb_cmds[i]; ++i) {
2893 diag = kdb_parse(kdb_cmds[i]);
2894 if (diag)
2895 kdb_printf("kdb command %s failed, kdb diag %d\n",
2896 kdb_cmds[i], diag);
2897 }
2898 if (defcmd_in_progress) {
2899 kdb_printf("Incomplete 'defcmd' set, forcing endefcmd\n");
2900 kdb_parse("endefcmd");
2901 }
2902}
2903
Uwe Kleine-Königb5950762010-11-01 15:38:34 -04002904/* Initialize kdb_printf, breakpoint tables and kdb state */
Jason Wessel5d5314d2010-05-20 21:04:20 -05002905void __init kdb_init(int lvl)
2906{
2907 static int kdb_init_lvl = KDB_NOT_INITIALIZED;
2908 int i;
2909
2910 if (kdb_init_lvl == KDB_INIT_FULL || lvl <= kdb_init_lvl)
2911 return;
2912 for (i = kdb_init_lvl; i < lvl; i++) {
2913 switch (i) {
2914 case KDB_NOT_INITIALIZED:
2915 kdb_inittab(); /* Initialize Command Table */
2916 kdb_initbptab(); /* Initialize Breakpoints */
2917 break;
2918 case KDB_INIT_EARLY:
2919 kdb_cmd_init(); /* Build kdb_cmds tables */
2920 break;
2921 }
2922 }
2923 kdb_init_lvl = lvl;
2924}