1 // SPDX-License-Identifier: LGPL-2.1
2 /*
3 * Copyright (C) 2009, 2010 Red Hat Inc, Steven Rostedt <srostedt@redhat.com>
4 *
5 *
6 * The parts for function graph printing was taken and modified from the
7 * Linux Kernel that were written by
8 * - Copyright (C) 2009 Frederic Weisbecker,
9 * Frederic Weisbecker gave his permission to relicense the code to
10 * the Lesser General Public License.
11 */
12 #include <inttypes.h>
13 #include <stdio.h>
14 #include <stdlib.h>
15 #include <string.h>
16 #include <stdarg.h>
17 #include <ctype.h>
18 #include <errno.h>
19 #include <stdint.h>
20 #include <limits.h>
21 #include <linux/string.h>
22 #include <linux/time64.h>
23
24 #include <netinet/in.h>
25 #include "event-parse.h"
26 #include "event-utils.h"
27
28 static const char *input_buf;
29 static unsigned long long input_buf_ptr;
30 static unsigned long long input_buf_siz;
31
32 static int is_flag_field;
33 static int is_symbolic_field;
34
35 static int show_warning = 1;
36
37 #define do_warning(fmt, ...) \
38 do { \
39 if (show_warning) \
40 warning(fmt, ##__VA_ARGS__); \
41 } while (0)
42
43 #define do_warning_event(event, fmt, ...) \
44 do { \
45 if (!show_warning) \
46 continue; \
47 \
48 if (event) \
49 warning("[%s:%s] " fmt, event->system, \
50 event->name, ##__VA_ARGS__); \
51 else \
52 warning(fmt, ##__VA_ARGS__); \
53 } while (0)
54
init_input_buf(const char * buf,unsigned long long size)55 static void init_input_buf(const char *buf, unsigned long long size)
56 {
57 input_buf = buf;
58 input_buf_siz = size;
59 input_buf_ptr = 0;
60 }
61
tep_get_input_buf(void)62 const char *tep_get_input_buf(void)
63 {
64 return input_buf;
65 }
66
tep_get_input_buf_ptr(void)67 unsigned long long tep_get_input_buf_ptr(void)
68 {
69 return input_buf_ptr;
70 }
71
72 struct event_handler {
73 struct event_handler *next;
74 int id;
75 const char *sys_name;
76 const char *event_name;
77 tep_event_handler_func func;
78 void *context;
79 };
80
81 struct func_params {
82 struct func_params *next;
83 enum tep_func_arg_type type;
84 };
85
86 struct tep_function_handler {
87 struct tep_function_handler *next;
88 enum tep_func_arg_type ret_type;
89 char *name;
90 tep_func_handler func;
91 struct func_params *params;
92 int nr_args;
93 };
94
95 static unsigned long long
96 process_defined_func(struct trace_seq *s, void *data, int size,
97 struct event_format *event, struct print_arg *arg);
98
99 static void free_func_handle(struct tep_function_handler *func);
100
101 /**
102 * tep_buffer_init - init buffer for parsing
103 * @buf: buffer to parse
104 * @size: the size of the buffer
105 *
106 * For use with tep_read_token(), this initializes the internal
107 * buffer that tep_read_token() will parse.
108 */
tep_buffer_init(const char * buf,unsigned long long size)109 void tep_buffer_init(const char *buf, unsigned long long size)
110 {
111 init_input_buf(buf, size);
112 }
113
breakpoint(void)114 void breakpoint(void)
115 {
116 static int x;
117 x++;
118 }
119
alloc_arg(void)120 struct print_arg *alloc_arg(void)
121 {
122 return calloc(1, sizeof(struct print_arg));
123 }
124
125 struct cmdline {
126 char *comm;
127 int pid;
128 };
129
cmdline_cmp(const void * a,const void * b)130 static int cmdline_cmp(const void *a, const void *b)
131 {
132 const struct cmdline *ca = a;
133 const struct cmdline *cb = b;
134
135 if (ca->pid < cb->pid)
136 return -1;
137 if (ca->pid > cb->pid)
138 return 1;
139
140 return 0;
141 }
142
143 struct cmdline_list {
144 struct cmdline_list *next;
145 char *comm;
146 int pid;
147 };
148
cmdline_init(struct tep_handle * pevent)149 static int cmdline_init(struct tep_handle *pevent)
150 {
151 struct cmdline_list *cmdlist = pevent->cmdlist;
152 struct cmdline_list *item;
153 struct cmdline *cmdlines;
154 int i;
155
156 cmdlines = malloc(sizeof(*cmdlines) * pevent->cmdline_count);
157 if (!cmdlines)
158 return -1;
159
160 i = 0;
161 while (cmdlist) {
162 cmdlines[i].pid = cmdlist->pid;
163 cmdlines[i].comm = cmdlist->comm;
164 i++;
165 item = cmdlist;
166 cmdlist = cmdlist->next;
167 free(item);
168 }
169
170 qsort(cmdlines, pevent->cmdline_count, sizeof(*cmdlines), cmdline_cmp);
171
172 pevent->cmdlines = cmdlines;
173 pevent->cmdlist = NULL;
174
175 return 0;
176 }
177
find_cmdline(struct tep_handle * pevent,int pid)178 static const char *find_cmdline(struct tep_handle *pevent, int pid)
179 {
180 const struct cmdline *comm;
181 struct cmdline key;
182
183 if (!pid)
184 return "<idle>";
185
186 if (!pevent->cmdlines && cmdline_init(pevent))
187 return "<not enough memory for cmdlines!>";
188
189 key.pid = pid;
190
191 comm = bsearch(&key, pevent->cmdlines, pevent->cmdline_count,
192 sizeof(*pevent->cmdlines), cmdline_cmp);
193
194 if (comm)
195 return comm->comm;
196 return "<...>";
197 }
198
199 /**
200 * tep_pid_is_registered - return if a pid has a cmdline registered
201 * @pevent: handle for the pevent
202 * @pid: The pid to check if it has a cmdline registered with.
203 *
204 * Returns 1 if the pid has a cmdline mapped to it
205 * 0 otherwise.
206 */
tep_pid_is_registered(struct tep_handle * pevent,int pid)207 int tep_pid_is_registered(struct tep_handle *pevent, int pid)
208 {
209 const struct cmdline *comm;
210 struct cmdline key;
211
212 if (!pid)
213 return 1;
214
215 if (!pevent->cmdlines && cmdline_init(pevent))
216 return 0;
217
218 key.pid = pid;
219
220 comm = bsearch(&key, pevent->cmdlines, pevent->cmdline_count,
221 sizeof(*pevent->cmdlines), cmdline_cmp);
222
223 if (comm)
224 return 1;
225 return 0;
226 }
227
228 /*
229 * If the command lines have been converted to an array, then
230 * we must add this pid. This is much slower than when cmdlines
231 * are added before the array is initialized.
232 */
add_new_comm(struct tep_handle * pevent,const char * comm,int pid)233 static int add_new_comm(struct tep_handle *pevent, const char *comm, int pid)
234 {
235 struct cmdline *cmdlines = pevent->cmdlines;
236 const struct cmdline *cmdline;
237 struct cmdline key;
238
239 if (!pid)
240 return 0;
241
242 /* avoid duplicates */
243 key.pid = pid;
244
245 cmdline = bsearch(&key, pevent->cmdlines, pevent->cmdline_count,
246 sizeof(*pevent->cmdlines), cmdline_cmp);
247 if (cmdline) {
248 errno = EEXIST;
249 return -1;
250 }
251
252 cmdlines = realloc(cmdlines, sizeof(*cmdlines) * (pevent->cmdline_count + 1));
253 if (!cmdlines) {
254 errno = ENOMEM;
255 return -1;
256 }
257 pevent->cmdlines = cmdlines;
258
259 cmdlines[pevent->cmdline_count].comm = strdup(comm);
260 if (!cmdlines[pevent->cmdline_count].comm) {
261 errno = ENOMEM;
262 return -1;
263 }
264
265 cmdlines[pevent->cmdline_count].pid = pid;
266
267 if (cmdlines[pevent->cmdline_count].comm)
268 pevent->cmdline_count++;
269
270 qsort(cmdlines, pevent->cmdline_count, sizeof(*cmdlines), cmdline_cmp);
271
272 return 0;
273 }
274
275 /**
276 * tep_register_comm - register a pid / comm mapping
277 * @pevent: handle for the pevent
278 * @comm: the command line to register
279 * @pid: the pid to map the command line to
280 *
281 * This adds a mapping to search for command line names with
282 * a given pid. The comm is duplicated.
283 */
tep_register_comm(struct tep_handle * pevent,const char * comm,int pid)284 int tep_register_comm(struct tep_handle *pevent, const char *comm, int pid)
285 {
286 struct cmdline_list *item;
287
288 if (pevent->cmdlines)
289 return add_new_comm(pevent, comm, pid);
290
291 item = malloc(sizeof(*item));
292 if (!item)
293 return -1;
294
295 if (comm)
296 item->comm = strdup(comm);
297 else
298 item->comm = strdup("<...>");
299 if (!item->comm) {
300 free(item);
301 return -1;
302 }
303 item->pid = pid;
304 item->next = pevent->cmdlist;
305
306 pevent->cmdlist = item;
307 pevent->cmdline_count++;
308
309 return 0;
310 }
311
tep_register_trace_clock(struct tep_handle * pevent,const char * trace_clock)312 int tep_register_trace_clock(struct tep_handle *pevent, const char *trace_clock)
313 {
314 pevent->trace_clock = strdup(trace_clock);
315 if (!pevent->trace_clock) {
316 errno = ENOMEM;
317 return -1;
318 }
319 return 0;
320 }
321
322 struct func_map {
323 unsigned long long addr;
324 char *func;
325 char *mod;
326 };
327
328 struct func_list {
329 struct func_list *next;
330 unsigned long long addr;
331 char *func;
332 char *mod;
333 };
334
func_cmp(const void * a,const void * b)335 static int func_cmp(const void *a, const void *b)
336 {
337 const struct func_map *fa = a;
338 const struct func_map *fb = b;
339
340 if (fa->addr < fb->addr)
341 return -1;
342 if (fa->addr > fb->addr)
343 return 1;
344
345 return 0;
346 }
347
348 /*
349 * We are searching for a record in between, not an exact
350 * match.
351 */
func_bcmp(const void * a,const void * b)352 static int func_bcmp(const void *a, const void *b)
353 {
354 const struct func_map *fa = a;
355 const struct func_map *fb = b;
356
357 if ((fa->addr == fb->addr) ||
358
359 (fa->addr > fb->addr &&
360 fa->addr < (fb+1)->addr))
361 return 0;
362
363 if (fa->addr < fb->addr)
364 return -1;
365
366 return 1;
367 }
368
func_map_init(struct tep_handle * pevent)369 static int func_map_init(struct tep_handle *pevent)
370 {
371 struct func_list *funclist;
372 struct func_list *item;
373 struct func_map *func_map;
374 int i;
375
376 func_map = malloc(sizeof(*func_map) * (pevent->func_count + 1));
377 if (!func_map)
378 return -1;
379
380 funclist = pevent->funclist;
381
382 i = 0;
383 while (funclist) {
384 func_map[i].func = funclist->func;
385 func_map[i].addr = funclist->addr;
386 func_map[i].mod = funclist->mod;
387 i++;
388 item = funclist;
389 funclist = funclist->next;
390 free(item);
391 }
392
393 qsort(func_map, pevent->func_count, sizeof(*func_map), func_cmp);
394
395 /*
396 * Add a special record at the end.
397 */
398 func_map[pevent->func_count].func = NULL;
399 func_map[pevent->func_count].addr = 0;
400 func_map[pevent->func_count].mod = NULL;
401
402 pevent->func_map = func_map;
403 pevent->funclist = NULL;
404
405 return 0;
406 }
407
408 static struct func_map *
__find_func(struct tep_handle * pevent,unsigned long long addr)409 __find_func(struct tep_handle *pevent, unsigned long long addr)
410 {
411 struct func_map *func;
412 struct func_map key;
413
414 if (!pevent->func_map)
415 func_map_init(pevent);
416
417 key.addr = addr;
418
419 func = bsearch(&key, pevent->func_map, pevent->func_count,
420 sizeof(*pevent->func_map), func_bcmp);
421
422 return func;
423 }
424
425 struct func_resolver {
426 tep_func_resolver_t *func;
427 void *priv;
428 struct func_map map;
429 };
430
431 /**
432 * tep_set_function_resolver - set an alternative function resolver
433 * @pevent: handle for the pevent
434 * @resolver: function to be used
435 * @priv: resolver function private state.
436 *
437 * Some tools may have already a way to resolve kernel functions, allow them to
438 * keep using it instead of duplicating all the entries inside
439 * pevent->funclist.
440 */
tep_set_function_resolver(struct tep_handle * pevent,tep_func_resolver_t * func,void * priv)441 int tep_set_function_resolver(struct tep_handle *pevent,
442 tep_func_resolver_t *func, void *priv)
443 {
444 struct func_resolver *resolver = malloc(sizeof(*resolver));
445
446 if (resolver == NULL)
447 return -1;
448
449 resolver->func = func;
450 resolver->priv = priv;
451
452 free(pevent->func_resolver);
453 pevent->func_resolver = resolver;
454
455 return 0;
456 }
457
458 /**
459 * tep_reset_function_resolver - reset alternative function resolver
460 * @pevent: handle for the pevent
461 *
462 * Stop using whatever alternative resolver was set, use the default
463 * one instead.
464 */
tep_reset_function_resolver(struct tep_handle * pevent)465 void tep_reset_function_resolver(struct tep_handle *pevent)
466 {
467 free(pevent->func_resolver);
468 pevent->func_resolver = NULL;
469 }
470
471 static struct func_map *
find_func(struct tep_handle * pevent,unsigned long long addr)472 find_func(struct tep_handle *pevent, unsigned long long addr)
473 {
474 struct func_map *map;
475
476 if (!pevent->func_resolver)
477 return __find_func(pevent, addr);
478
479 map = &pevent->func_resolver->map;
480 map->mod = NULL;
481 map->addr = addr;
482 map->func = pevent->func_resolver->func(pevent->func_resolver->priv,
483 &map->addr, &map->mod);
484 if (map->func == NULL)
485 return NULL;
486
487 return map;
488 }
489
490 /**
491 * tep_find_function - find a function by a given address
492 * @pevent: handle for the pevent
493 * @addr: the address to find the function with
494 *
495 * Returns a pointer to the function stored that has the given
496 * address. Note, the address does not have to be exact, it
497 * will select the function that would contain the address.
498 */
tep_find_function(struct tep_handle * pevent,unsigned long long addr)499 const char *tep_find_function(struct tep_handle *pevent, unsigned long long addr)
500 {
501 struct func_map *map;
502
503 map = find_func(pevent, addr);
504 if (!map)
505 return NULL;
506
507 return map->func;
508 }
509
510 /**
511 * tep_find_function_address - find a function address by a given address
512 * @pevent: handle for the pevent
513 * @addr: the address to find the function with
514 *
515 * Returns the address the function starts at. This can be used in
516 * conjunction with tep_find_function to print both the function
517 * name and the function offset.
518 */
519 unsigned long long
tep_find_function_address(struct tep_handle * pevent,unsigned long long addr)520 tep_find_function_address(struct tep_handle *pevent, unsigned long long addr)
521 {
522 struct func_map *map;
523
524 map = find_func(pevent, addr);
525 if (!map)
526 return 0;
527
528 return map->addr;
529 }
530
531 /**
532 * tep_register_function - register a function with a given address
533 * @pevent: handle for the pevent
534 * @function: the function name to register
535 * @addr: the address the function starts at
536 * @mod: the kernel module the function may be in (NULL for none)
537 *
538 * This registers a function name with an address and module.
539 * The @func passed in is duplicated.
540 */
tep_register_function(struct tep_handle * pevent,char * func,unsigned long long addr,char * mod)541 int tep_register_function(struct tep_handle *pevent, char *func,
542 unsigned long long addr, char *mod)
543 {
544 struct func_list *item = malloc(sizeof(*item));
545
546 if (!item)
547 return -1;
548
549 item->next = pevent->funclist;
550 item->func = strdup(func);
551 if (!item->func)
552 goto out_free;
553
554 if (mod) {
555 item->mod = strdup(mod);
556 if (!item->mod)
557 goto out_free_func;
558 } else
559 item->mod = NULL;
560 item->addr = addr;
561
562 pevent->funclist = item;
563 pevent->func_count++;
564
565 return 0;
566
567 out_free_func:
568 free(item->func);
569 item->func = NULL;
570 out_free:
571 free(item);
572 errno = ENOMEM;
573 return -1;
574 }
575
576 /**
577 * tep_print_funcs - print out the stored functions
578 * @pevent: handle for the pevent
579 *
580 * This prints out the stored functions.
581 */
tep_print_funcs(struct tep_handle * pevent)582 void tep_print_funcs(struct tep_handle *pevent)
583 {
584 int i;
585
586 if (!pevent->func_map)
587 func_map_init(pevent);
588
589 for (i = 0; i < (int)pevent->func_count; i++) {
590 printf("%016llx %s",
591 pevent->func_map[i].addr,
592 pevent->func_map[i].func);
593 if (pevent->func_map[i].mod)
594 printf(" [%s]\n", pevent->func_map[i].mod);
595 else
596 printf("\n");
597 }
598 }
599
600 struct printk_map {
601 unsigned long long addr;
602 char *printk;
603 };
604
605 struct printk_list {
606 struct printk_list *next;
607 unsigned long long addr;
608 char *printk;
609 };
610
printk_cmp(const void * a,const void * b)611 static int printk_cmp(const void *a, const void *b)
612 {
613 const struct printk_map *pa = a;
614 const struct printk_map *pb = b;
615
616 if (pa->addr < pb->addr)
617 return -1;
618 if (pa->addr > pb->addr)
619 return 1;
620
621 return 0;
622 }
623
printk_map_init(struct tep_handle * pevent)624 static int printk_map_init(struct tep_handle *pevent)
625 {
626 struct printk_list *printklist;
627 struct printk_list *item;
628 struct printk_map *printk_map;
629 int i;
630
631 printk_map = malloc(sizeof(*printk_map) * (pevent->printk_count + 1));
632 if (!printk_map)
633 return -1;
634
635 printklist = pevent->printklist;
636
637 i = 0;
638 while (printklist) {
639 printk_map[i].printk = printklist->printk;
640 printk_map[i].addr = printklist->addr;
641 i++;
642 item = printklist;
643 printklist = printklist->next;
644 free(item);
645 }
646
647 qsort(printk_map, pevent->printk_count, sizeof(*printk_map), printk_cmp);
648
649 pevent->printk_map = printk_map;
650 pevent->printklist = NULL;
651
652 return 0;
653 }
654
655 static struct printk_map *
find_printk(struct tep_handle * pevent,unsigned long long addr)656 find_printk(struct tep_handle *pevent, unsigned long long addr)
657 {
658 struct printk_map *printk;
659 struct printk_map key;
660
661 if (!pevent->printk_map && printk_map_init(pevent))
662 return NULL;
663
664 key.addr = addr;
665
666 printk = bsearch(&key, pevent->printk_map, pevent->printk_count,
667 sizeof(*pevent->printk_map), printk_cmp);
668
669 return printk;
670 }
671
672 /**
673 * tep_register_print_string - register a string by its address
674 * @pevent: handle for the pevent
675 * @fmt: the string format to register
676 * @addr: the address the string was located at
677 *
678 * This registers a string by the address it was stored in the kernel.
679 * The @fmt passed in is duplicated.
680 */
tep_register_print_string(struct tep_handle * pevent,const char * fmt,unsigned long long addr)681 int tep_register_print_string(struct tep_handle *pevent, const char *fmt,
682 unsigned long long addr)
683 {
684 struct printk_list *item = malloc(sizeof(*item));
685 char *p;
686
687 if (!item)
688 return -1;
689
690 item->next = pevent->printklist;
691 item->addr = addr;
692
693 /* Strip off quotes and '\n' from the end */
694 if (fmt[0] == '"')
695 fmt++;
696 item->printk = strdup(fmt);
697 if (!item->printk)
698 goto out_free;
699
700 p = item->printk + strlen(item->printk) - 1;
701 if (*p == '"')
702 *p = 0;
703
704 p -= 2;
705 if (strcmp(p, "\\n") == 0)
706 *p = 0;
707
708 pevent->printklist = item;
709 pevent->printk_count++;
710
711 return 0;
712
713 out_free:
714 free(item);
715 errno = ENOMEM;
716 return -1;
717 }
718
719 /**
720 * tep_print_printk - print out the stored strings
721 * @pevent: handle for the pevent
722 *
723 * This prints the string formats that were stored.
724 */
tep_print_printk(struct tep_handle * pevent)725 void tep_print_printk(struct tep_handle *pevent)
726 {
727 int i;
728
729 if (!pevent->printk_map)
730 printk_map_init(pevent);
731
732 for (i = 0; i < (int)pevent->printk_count; i++) {
733 printf("%016llx %s\n",
734 pevent->printk_map[i].addr,
735 pevent->printk_map[i].printk);
736 }
737 }
738
alloc_event(void)739 static struct event_format *alloc_event(void)
740 {
741 return calloc(1, sizeof(struct event_format));
742 }
743
add_event(struct tep_handle * pevent,struct event_format * event)744 static int add_event(struct tep_handle *pevent, struct event_format *event)
745 {
746 int i;
747 struct event_format **events = realloc(pevent->events, sizeof(event) *
748 (pevent->nr_events + 1));
749 if (!events)
750 return -1;
751
752 pevent->events = events;
753
754 for (i = 0; i < pevent->nr_events; i++) {
755 if (pevent->events[i]->id > event->id)
756 break;
757 }
758 if (i < pevent->nr_events)
759 memmove(&pevent->events[i + 1],
760 &pevent->events[i],
761 sizeof(event) * (pevent->nr_events - i));
762
763 pevent->events[i] = event;
764 pevent->nr_events++;
765
766 event->pevent = pevent;
767
768 return 0;
769 }
770
event_item_type(enum event_type type)771 static int event_item_type(enum event_type type)
772 {
773 switch (type) {
774 case EVENT_ITEM ... EVENT_SQUOTE:
775 return 1;
776 case EVENT_ERROR ... EVENT_DELIM:
777 default:
778 return 0;
779 }
780 }
781
free_flag_sym(struct print_flag_sym * fsym)782 static void free_flag_sym(struct print_flag_sym *fsym)
783 {
784 struct print_flag_sym *next;
785
786 while (fsym) {
787 next = fsym->next;
788 free(fsym->value);
789 free(fsym->str);
790 free(fsym);
791 fsym = next;
792 }
793 }
794
free_arg(struct print_arg * arg)795 static void free_arg(struct print_arg *arg)
796 {
797 struct print_arg *farg;
798
799 if (!arg)
800 return;
801
802 switch (arg->type) {
803 case PRINT_ATOM:
804 free(arg->atom.atom);
805 break;
806 case PRINT_FIELD:
807 free(arg->field.name);
808 break;
809 case PRINT_FLAGS:
810 free_arg(arg->flags.field);
811 free(arg->flags.delim);
812 free_flag_sym(arg->flags.flags);
813 break;
814 case PRINT_SYMBOL:
815 free_arg(arg->symbol.field);
816 free_flag_sym(arg->symbol.symbols);
817 break;
818 case PRINT_HEX:
819 case PRINT_HEX_STR:
820 free_arg(arg->hex.field);
821 free_arg(arg->hex.size);
822 break;
823 case PRINT_INT_ARRAY:
824 free_arg(arg->int_array.field);
825 free_arg(arg->int_array.count);
826 free_arg(arg->int_array.el_size);
827 break;
828 case PRINT_TYPE:
829 free(arg->typecast.type);
830 free_arg(arg->typecast.item);
831 break;
832 case PRINT_STRING:
833 case PRINT_BSTRING:
834 free(arg->string.string);
835 break;
836 case PRINT_BITMASK:
837 free(arg->bitmask.bitmask);
838 break;
839 case PRINT_DYNAMIC_ARRAY:
840 case PRINT_DYNAMIC_ARRAY_LEN:
841 free(arg->dynarray.index);
842 break;
843 case PRINT_OP:
844 free(arg->op.op);
845 free_arg(arg->op.left);
846 free_arg(arg->op.right);
847 break;
848 case PRINT_FUNC:
849 while (arg->func.args) {
850 farg = arg->func.args;
851 arg->func.args = farg->next;
852 free_arg(farg);
853 }
854 break;
855
856 case PRINT_NULL:
857 default:
858 break;
859 }
860
861 free(arg);
862 }
863
get_type(int ch)864 static enum event_type get_type(int ch)
865 {
866 if (ch == '\n')
867 return EVENT_NEWLINE;
868 if (isspace(ch))
869 return EVENT_SPACE;
870 if (isalnum(ch) || ch == '_')
871 return EVENT_ITEM;
872 if (ch == '\'')
873 return EVENT_SQUOTE;
874 if (ch == '"')
875 return EVENT_DQUOTE;
876 if (!isprint(ch))
877 return EVENT_NONE;
878 if (ch == '(' || ch == ')' || ch == ',')
879 return EVENT_DELIM;
880
881 return EVENT_OP;
882 }
883
__read_char(void)884 static int __read_char(void)
885 {
886 if (input_buf_ptr >= input_buf_siz)
887 return -1;
888
889 return input_buf[input_buf_ptr++];
890 }
891
__peek_char(void)892 static int __peek_char(void)
893 {
894 if (input_buf_ptr >= input_buf_siz)
895 return -1;
896
897 return input_buf[input_buf_ptr];
898 }
899
900 /**
901 * tep_peek_char - peek at the next character that will be read
902 *
903 * Returns the next character read, or -1 if end of buffer.
904 */
tep_peek_char(void)905 int tep_peek_char(void)
906 {
907 return __peek_char();
908 }
909
extend_token(char ** tok,char * buf,int size)910 static int extend_token(char **tok, char *buf, int size)
911 {
912 char *newtok = realloc(*tok, size);
913
914 if (!newtok) {
915 free(*tok);
916 *tok = NULL;
917 return -1;
918 }
919
920 if (!*tok)
921 strcpy(newtok, buf);
922 else
923 strcat(newtok, buf);
924 *tok = newtok;
925
926 return 0;
927 }
928
929 static enum event_type force_token(const char *str, char **tok);
930
__read_token(char ** tok)931 static enum event_type __read_token(char **tok)
932 {
933 char buf[BUFSIZ];
934 int ch, last_ch, quote_ch, next_ch;
935 int i = 0;
936 int tok_size = 0;
937 enum event_type type;
938
939 *tok = NULL;
940
941
942 ch = __read_char();
943 if (ch < 0)
944 return EVENT_NONE;
945
946 type = get_type(ch);
947 if (type == EVENT_NONE)
948 return type;
949
950 buf[i++] = ch;
951
952 switch (type) {
953 case EVENT_NEWLINE:
954 case EVENT_DELIM:
955 if (asprintf(tok, "%c", ch) < 0)
956 return EVENT_ERROR;
957
958 return type;
959
960 case EVENT_OP:
961 switch (ch) {
962 case '-':
963 next_ch = __peek_char();
964 if (next_ch == '>') {
965 buf[i++] = __read_char();
966 break;
967 }
968 /* fall through */
969 case '+':
970 case '|':
971 case '&':
972 case '>':
973 case '<':
974 last_ch = ch;
975 ch = __peek_char();
976 if (ch != last_ch)
977 goto test_equal;
978 buf[i++] = __read_char();
979 switch (last_ch) {
980 case '>':
981 case '<':
982 goto test_equal;
983 default:
984 break;
985 }
986 break;
987 case '!':
988 case '=':
989 goto test_equal;
990 default: /* what should we do instead? */
991 break;
992 }
993 buf[i] = 0;
994 *tok = strdup(buf);
995 return type;
996
997 test_equal:
998 ch = __peek_char();
999 if (ch == '=')
1000 buf[i++] = __read_char();
1001 goto out;
1002
1003 case EVENT_DQUOTE:
1004 case EVENT_SQUOTE:
1005 /* don't keep quotes */
1006 i--;
1007 quote_ch = ch;
1008 last_ch = 0;
1009 concat:
1010 do {
1011 if (i == (BUFSIZ - 1)) {
1012 buf[i] = 0;
1013 tok_size += BUFSIZ;
1014
1015 if (extend_token(tok, buf, tok_size) < 0)
1016 return EVENT_NONE;
1017 i = 0;
1018 }
1019 last_ch = ch;
1020 ch = __read_char();
1021 buf[i++] = ch;
1022 /* the '\' '\' will cancel itself */
1023 if (ch == '\\' && last_ch == '\\')
1024 last_ch = 0;
1025 } while (ch != quote_ch || last_ch == '\\');
1026 /* remove the last quote */
1027 i--;
1028
1029 /*
1030 * For strings (double quotes) check the next token.
1031 * If it is another string, concatinate the two.
1032 */
1033 if (type == EVENT_DQUOTE) {
1034 unsigned long long save_input_buf_ptr = input_buf_ptr;
1035
1036 do {
1037 ch = __read_char();
1038 } while (isspace(ch));
1039 if (ch == '"')
1040 goto concat;
1041 input_buf_ptr = save_input_buf_ptr;
1042 }
1043
1044 goto out;
1045
1046 case EVENT_ERROR ... EVENT_SPACE:
1047 case EVENT_ITEM:
1048 default:
1049 break;
1050 }
1051
1052 while (get_type(__peek_char()) == type) {
1053 if (i == (BUFSIZ - 1)) {
1054 buf[i] = 0;
1055 tok_size += BUFSIZ;
1056
1057 if (extend_token(tok, buf, tok_size) < 0)
1058 return EVENT_NONE;
1059 i = 0;
1060 }
1061 ch = __read_char();
1062 buf[i++] = ch;
1063 }
1064
1065 out:
1066 buf[i] = 0;
1067 if (extend_token(tok, buf, tok_size + i + 1) < 0)
1068 return EVENT_NONE;
1069
1070 if (type == EVENT_ITEM) {
1071 /*
1072 * Older versions of the kernel has a bug that
1073 * creates invalid symbols and will break the mac80211
1074 * parsing. This is a work around to that bug.
1075 *
1076 * See Linux kernel commit:
1077 * 811cb50baf63461ce0bdb234927046131fc7fa8b
1078 */
1079 if (strcmp(*tok, "LOCAL_PR_FMT") == 0) {
1080 free(*tok);
1081 *tok = NULL;
1082 return force_token("\"%s\" ", tok);
1083 } else if (strcmp(*tok, "STA_PR_FMT") == 0) {
1084 free(*tok);
1085 *tok = NULL;
1086 return force_token("\" sta:%pM\" ", tok);
1087 } else if (strcmp(*tok, "VIF_PR_FMT") == 0) {
1088 free(*tok);
1089 *tok = NULL;
1090 return force_token("\" vif:%p(%d)\" ", tok);
1091 }
1092 }
1093
1094 return type;
1095 }
1096
force_token(const char * str,char ** tok)1097 static enum event_type force_token(const char *str, char **tok)
1098 {
1099 const char *save_input_buf;
1100 unsigned long long save_input_buf_ptr;
1101 unsigned long long save_input_buf_siz;
1102 enum event_type type;
1103
1104 /* save off the current input pointers */
1105 save_input_buf = input_buf;
1106 save_input_buf_ptr = input_buf_ptr;
1107 save_input_buf_siz = input_buf_siz;
1108
1109 init_input_buf(str, strlen(str));
1110
1111 type = __read_token(tok);
1112
1113 /* reset back to original token */
1114 input_buf = save_input_buf;
1115 input_buf_ptr = save_input_buf_ptr;
1116 input_buf_siz = save_input_buf_siz;
1117
1118 return type;
1119 }
1120
free_token(char * tok)1121 static void free_token(char *tok)
1122 {
1123 if (tok)
1124 free(tok);
1125 }
1126
read_token(char ** tok)1127 static enum event_type read_token(char **tok)
1128 {
1129 enum event_type type;
1130
1131 for (;;) {
1132 type = __read_token(tok);
1133 if (type != EVENT_SPACE)
1134 return type;
1135
1136 free_token(*tok);
1137 }
1138
1139 /* not reached */
1140 *tok = NULL;
1141 return EVENT_NONE;
1142 }
1143
1144 /**
1145 * tep_read_token - access to utilites to use the pevent parser
1146 * @tok: The token to return
1147 *
1148 * This will parse tokens from the string given by
1149 * tep_init_data().
1150 *
1151 * Returns the token type.
1152 */
tep_read_token(char ** tok)1153 enum event_type tep_read_token(char **tok)
1154 {
1155 return read_token(tok);
1156 }
1157
1158 /**
1159 * tep_free_token - free a token returned by tep_read_token
1160 * @token: the token to free
1161 */
tep_free_token(char * token)1162 void tep_free_token(char *token)
1163 {
1164 free_token(token);
1165 }
1166
1167 /* no newline */
read_token_item(char ** tok)1168 static enum event_type read_token_item(char **tok)
1169 {
1170 enum event_type type;
1171
1172 for (;;) {
1173 type = __read_token(tok);
1174 if (type != EVENT_SPACE && type != EVENT_NEWLINE)
1175 return type;
1176 free_token(*tok);
1177 *tok = NULL;
1178 }
1179
1180 /* not reached */
1181 *tok = NULL;
1182 return EVENT_NONE;
1183 }
1184
test_type(enum event_type type,enum event_type expect)1185 static int test_type(enum event_type type, enum event_type expect)
1186 {
1187 if (type != expect) {
1188 do_warning("Error: expected type %d but read %d",
1189 expect, type);
1190 return -1;
1191 }
1192 return 0;
1193 }
1194
test_type_token(enum event_type type,const char * token,enum event_type expect,const char * expect_tok)1195 static int test_type_token(enum event_type type, const char *token,
1196 enum event_type expect, const char *expect_tok)
1197 {
1198 if (type != expect) {
1199 do_warning("Error: expected type %d but read %d",
1200 expect, type);
1201 return -1;
1202 }
1203
1204 if (strcmp(token, expect_tok) != 0) {
1205 do_warning("Error: expected '%s' but read '%s'",
1206 expect_tok, token);
1207 return -1;
1208 }
1209 return 0;
1210 }
1211
__read_expect_type(enum event_type expect,char ** tok,int newline_ok)1212 static int __read_expect_type(enum event_type expect, char **tok, int newline_ok)
1213 {
1214 enum event_type type;
1215
1216 if (newline_ok)
1217 type = read_token(tok);
1218 else
1219 type = read_token_item(tok);
1220 return test_type(type, expect);
1221 }
1222
read_expect_type(enum event_type expect,char ** tok)1223 static int read_expect_type(enum event_type expect, char **tok)
1224 {
1225 return __read_expect_type(expect, tok, 1);
1226 }
1227
__read_expected(enum event_type expect,const char * str,int newline_ok)1228 static int __read_expected(enum event_type expect, const char *str,
1229 int newline_ok)
1230 {
1231 enum event_type type;
1232 char *token;
1233 int ret;
1234
1235 if (newline_ok)
1236 type = read_token(&token);
1237 else
1238 type = read_token_item(&token);
1239
1240 ret = test_type_token(type, token, expect, str);
1241
1242 free_token(token);
1243
1244 return ret;
1245 }
1246
read_expected(enum event_type expect,const char * str)1247 static int read_expected(enum event_type expect, const char *str)
1248 {
1249 return __read_expected(expect, str, 1);
1250 }
1251
read_expected_item(enum event_type expect,const char * str)1252 static int read_expected_item(enum event_type expect, const char *str)
1253 {
1254 return __read_expected(expect, str, 0);
1255 }
1256
event_read_name(void)1257 static char *event_read_name(void)
1258 {
1259 char *token;
1260
1261 if (read_expected(EVENT_ITEM, "name") < 0)
1262 return NULL;
1263
1264 if (read_expected(EVENT_OP, ":") < 0)
1265 return NULL;
1266
1267 if (read_expect_type(EVENT_ITEM, &token) < 0)
1268 goto fail;
1269
1270 return token;
1271
1272 fail:
1273 free_token(token);
1274 return NULL;
1275 }
1276
event_read_id(void)1277 static int event_read_id(void)
1278 {
1279 char *token;
1280 int id;
1281
1282 if (read_expected_item(EVENT_ITEM, "ID") < 0)
1283 return -1;
1284
1285 if (read_expected(EVENT_OP, ":") < 0)
1286 return -1;
1287
1288 if (read_expect_type(EVENT_ITEM, &token) < 0)
1289 goto fail;
1290
1291 id = strtoul(token, NULL, 0);
1292 free_token(token);
1293 return id;
1294
1295 fail:
1296 free_token(token);
1297 return -1;
1298 }
1299
field_is_string(struct format_field * field)1300 static int field_is_string(struct format_field *field)
1301 {
1302 if ((field->flags & FIELD_IS_ARRAY) &&
1303 (strstr(field->type, "char") || strstr(field->type, "u8") ||
1304 strstr(field->type, "s8")))
1305 return 1;
1306
1307 return 0;
1308 }
1309
field_is_dynamic(struct format_field * field)1310 static int field_is_dynamic(struct format_field *field)
1311 {
1312 if (strncmp(field->type, "__data_loc", 10) == 0)
1313 return 1;
1314
1315 return 0;
1316 }
1317
field_is_long(struct format_field * field)1318 static int field_is_long(struct format_field *field)
1319 {
1320 /* includes long long */
1321 if (strstr(field->type, "long"))
1322 return 1;
1323
1324 return 0;
1325 }
1326
type_size(const char * name)1327 static unsigned int type_size(const char *name)
1328 {
1329 /* This covers all FIELD_IS_STRING types. */
1330 static struct {
1331 const char *type;
1332 unsigned int size;
1333 } table[] = {
1334 { "u8", 1 },
1335 { "u16", 2 },
1336 { "u32", 4 },
1337 { "u64", 8 },
1338 { "s8", 1 },
1339 { "s16", 2 },
1340 { "s32", 4 },
1341 { "s64", 8 },
1342 { "char", 1 },
1343 { },
1344 };
1345 int i;
1346
1347 for (i = 0; table[i].type; i++) {
1348 if (!strcmp(table[i].type, name))
1349 return table[i].size;
1350 }
1351
1352 return 0;
1353 }
1354
event_read_fields(struct event_format * event,struct format_field ** fields)1355 static int event_read_fields(struct event_format *event, struct format_field **fields)
1356 {
1357 struct format_field *field = NULL;
1358 enum event_type type;
1359 char *token;
1360 char *last_token;
1361 int count = 0;
1362
1363 do {
1364 unsigned int size_dynamic = 0;
1365
1366 type = read_token(&token);
1367 if (type == EVENT_NEWLINE) {
1368 free_token(token);
1369 return count;
1370 }
1371
1372 count++;
1373
1374 if (test_type_token(type, token, EVENT_ITEM, "field"))
1375 goto fail;
1376 free_token(token);
1377
1378 type = read_token(&token);
1379 /*
1380 * The ftrace fields may still use the "special" name.
1381 * Just ignore it.
1382 */
1383 if (event->flags & EVENT_FL_ISFTRACE &&
1384 type == EVENT_ITEM && strcmp(token, "special") == 0) {
1385 free_token(token);
1386 type = read_token(&token);
1387 }
1388
1389 if (test_type_token(type, token, EVENT_OP, ":") < 0)
1390 goto fail;
1391
1392 free_token(token);
1393 if (read_expect_type(EVENT_ITEM, &token) < 0)
1394 goto fail;
1395
1396 last_token = token;
1397
1398 field = calloc(1, sizeof(*field));
1399 if (!field)
1400 goto fail;
1401
1402 field->event = event;
1403
1404 /* read the rest of the type */
1405 for (;;) {
1406 type = read_token(&token);
1407 if (type == EVENT_ITEM ||
1408 (type == EVENT_OP && strcmp(token, "*") == 0) ||
1409 /*
1410 * Some of the ftrace fields are broken and have
1411 * an illegal "." in them.
1412 */
1413 (event->flags & EVENT_FL_ISFTRACE &&
1414 type == EVENT_OP && strcmp(token, ".") == 0)) {
1415
1416 if (strcmp(token, "*") == 0)
1417 field->flags |= FIELD_IS_POINTER;
1418
1419 if (field->type) {
1420 char *new_type;
1421 new_type = realloc(field->type,
1422 strlen(field->type) +
1423 strlen(last_token) + 2);
1424 if (!new_type) {
1425 free(last_token);
1426 goto fail;
1427 }
1428 field->type = new_type;
1429 strcat(field->type, " ");
1430 strcat(field->type, last_token);
1431 free(last_token);
1432 } else
1433 field->type = last_token;
1434 last_token = token;
1435 continue;
1436 }
1437
1438 break;
1439 }
1440
1441 if (!field->type) {
1442 do_warning_event(event, "%s: no type found", __func__);
1443 goto fail;
1444 }
1445 field->name = field->alias = last_token;
1446
1447 if (test_type(type, EVENT_OP))
1448 goto fail;
1449
1450 if (strcmp(token, "[") == 0) {
1451 enum event_type last_type = type;
1452 char *brackets = token;
1453 char *new_brackets;
1454 int len;
1455
1456 field->flags |= FIELD_IS_ARRAY;
1457
1458 type = read_token(&token);
1459
1460 if (type == EVENT_ITEM)
1461 field->arraylen = strtoul(token, NULL, 0);
1462 else
1463 field->arraylen = 0;
1464
1465 while (strcmp(token, "]") != 0) {
1466 if (last_type == EVENT_ITEM &&
1467 type == EVENT_ITEM)
1468 len = 2;
1469 else
1470 len = 1;
1471 last_type = type;
1472
1473 new_brackets = realloc(brackets,
1474 strlen(brackets) +
1475 strlen(token) + len);
1476 if (!new_brackets) {
1477 free(brackets);
1478 goto fail;
1479 }
1480 brackets = new_brackets;
1481 if (len == 2)
1482 strcat(brackets, " ");
1483 strcat(brackets, token);
1484 /* We only care about the last token */
1485 field->arraylen = strtoul(token, NULL, 0);
1486 free_token(token);
1487 type = read_token(&token);
1488 if (type == EVENT_NONE) {
1489 do_warning_event(event, "failed to find token");
1490 goto fail;
1491 }
1492 }
1493
1494 free_token(token);
1495
1496 new_brackets = realloc(brackets, strlen(brackets) + 2);
1497 if (!new_brackets) {
1498 free(brackets);
1499 goto fail;
1500 }
1501 brackets = new_brackets;
1502 strcat(brackets, "]");
1503
1504 /* add brackets to type */
1505
1506 type = read_token(&token);
1507 /*
1508 * If the next token is not an OP, then it is of
1509 * the format: type [] item;
1510 */
1511 if (type == EVENT_ITEM) {
1512 char *new_type;
1513 new_type = realloc(field->type,
1514 strlen(field->type) +
1515 strlen(field->name) +
1516 strlen(brackets) + 2);
1517 if (!new_type) {
1518 free(brackets);
1519 goto fail;
1520 }
1521 field->type = new_type;
1522 strcat(field->type, " ");
1523 strcat(field->type, field->name);
1524 size_dynamic = type_size(field->name);
1525 free_token(field->name);
1526 strcat(field->type, brackets);
1527 field->name = field->alias = token;
1528 type = read_token(&token);
1529 } else {
1530 char *new_type;
1531 new_type = realloc(field->type,
1532 strlen(field->type) +
1533 strlen(brackets) + 1);
1534 if (!new_type) {
1535 free(brackets);
1536 goto fail;
1537 }
1538 field->type = new_type;
1539 strcat(field->type, brackets);
1540 }
1541 free(brackets);
1542 }
1543
1544 if (field_is_string(field))
1545 field->flags |= FIELD_IS_STRING;
1546 if (field_is_dynamic(field))
1547 field->flags |= FIELD_IS_DYNAMIC;
1548 if (field_is_long(field))
1549 field->flags |= FIELD_IS_LONG;
1550
1551 if (test_type_token(type, token, EVENT_OP, ";"))
1552 goto fail;
1553 free_token(token);
1554
1555 if (read_expected(EVENT_ITEM, "offset") < 0)
1556 goto fail_expect;
1557
1558 if (read_expected(EVENT_OP, ":") < 0)
1559 goto fail_expect;
1560
1561 if (read_expect_type(EVENT_ITEM, &token))
1562 goto fail;
1563 field->offset = strtoul(token, NULL, 0);
1564 free_token(token);
1565
1566 if (read_expected(EVENT_OP, ";") < 0)
1567 goto fail_expect;
1568
1569 if (read_expected(EVENT_ITEM, "size") < 0)
1570 goto fail_expect;
1571
1572 if (read_expected(EVENT_OP, ":") < 0)
1573 goto fail_expect;
1574
1575 if (read_expect_type(EVENT_ITEM, &token))
1576 goto fail;
1577 field->size = strtoul(token, NULL, 0);
1578 free_token(token);
1579
1580 if (read_expected(EVENT_OP, ";") < 0)
1581 goto fail_expect;
1582
1583 type = read_token(&token);
1584 if (type != EVENT_NEWLINE) {
1585 /* newer versions of the kernel have a "signed" type */
1586 if (test_type_token(type, token, EVENT_ITEM, "signed"))
1587 goto fail;
1588
1589 free_token(token);
1590
1591 if (read_expected(EVENT_OP, ":") < 0)
1592 goto fail_expect;
1593
1594 if (read_expect_type(EVENT_ITEM, &token))
1595 goto fail;
1596
1597 if (strtoul(token, NULL, 0))
1598 field->flags |= FIELD_IS_SIGNED;
1599
1600 free_token(token);
1601 if (read_expected(EVENT_OP, ";") < 0)
1602 goto fail_expect;
1603
1604 if (read_expect_type(EVENT_NEWLINE, &token))
1605 goto fail;
1606 }
1607
1608 free_token(token);
1609
1610 if (field->flags & FIELD_IS_ARRAY) {
1611 if (field->arraylen)
1612 field->elementsize = field->size / field->arraylen;
1613 else if (field->flags & FIELD_IS_DYNAMIC)
1614 field->elementsize = size_dynamic;
1615 else if (field->flags & FIELD_IS_STRING)
1616 field->elementsize = 1;
1617 else if (field->flags & FIELD_IS_LONG)
1618 field->elementsize = event->pevent ?
1619 event->pevent->long_size :
1620 sizeof(long);
1621 } else
1622 field->elementsize = field->size;
1623
1624 *fields = field;
1625 fields = &field->next;
1626
1627 } while (1);
1628
1629 return 0;
1630
1631 fail:
1632 free_token(token);
1633 fail_expect:
1634 if (field) {
1635 free(field->type);
1636 free(field->name);
1637 free(field);
1638 }
1639 return -1;
1640 }
1641
event_read_format(struct event_format * event)1642 static int event_read_format(struct event_format *event)
1643 {
1644 char *token;
1645 int ret;
1646
1647 if (read_expected_item(EVENT_ITEM, "format") < 0)
1648 return -1;
1649
1650 if (read_expected(EVENT_OP, ":") < 0)
1651 return -1;
1652
1653 if (read_expect_type(EVENT_NEWLINE, &token))
1654 goto fail;
1655 free_token(token);
1656
1657 ret = event_read_fields(event, &event->format.common_fields);
1658 if (ret < 0)
1659 return ret;
1660 event->format.nr_common = ret;
1661
1662 ret = event_read_fields(event, &event->format.fields);
1663 if (ret < 0)
1664 return ret;
1665 event->format.nr_fields = ret;
1666
1667 return 0;
1668
1669 fail:
1670 free_token(token);
1671 return -1;
1672 }
1673
1674 static enum event_type
1675 process_arg_token(struct event_format *event, struct print_arg *arg,
1676 char **tok, enum event_type type);
1677
1678 static enum event_type
process_arg(struct event_format * event,struct print_arg * arg,char ** tok)1679 process_arg(struct event_format *event, struct print_arg *arg, char **tok)
1680 {
1681 enum event_type type;
1682 char *token;
1683
1684 type = read_token(&token);
1685 *tok = token;
1686
1687 return process_arg_token(event, arg, tok, type);
1688 }
1689
1690 static enum event_type
1691 process_op(struct event_format *event, struct print_arg *arg, char **tok);
1692
1693 /*
1694 * For __print_symbolic() and __print_flags, we need to completely
1695 * evaluate the first argument, which defines what to print next.
1696 */
1697 static enum event_type
process_field_arg(struct event_format * event,struct print_arg * arg,char ** tok)1698 process_field_arg(struct event_format *event, struct print_arg *arg, char **tok)
1699 {
1700 enum event_type type;
1701
1702 type = process_arg(event, arg, tok);
1703
1704 while (type == EVENT_OP) {
1705 type = process_op(event, arg, tok);
1706 }
1707
1708 return type;
1709 }
1710
1711 static enum event_type
process_cond(struct event_format * event,struct print_arg * top,char ** tok)1712 process_cond(struct event_format *event, struct print_arg *top, char **tok)
1713 {
1714 struct print_arg *arg, *left, *right;
1715 enum event_type type;
1716 char *token = NULL;
1717
1718 arg = alloc_arg();
1719 left = alloc_arg();
1720 right = alloc_arg();
1721
1722 if (!arg || !left || !right) {
1723 do_warning_event(event, "%s: not enough memory!", __func__);
1724 /* arg will be freed at out_free */
1725 free_arg(left);
1726 free_arg(right);
1727 goto out_free;
1728 }
1729
1730 arg->type = PRINT_OP;
1731 arg->op.left = left;
1732 arg->op.right = right;
1733
1734 *tok = NULL;
1735 type = process_arg(event, left, &token);
1736
1737 again:
1738 if (type == EVENT_ERROR)
1739 goto out_free;
1740
1741 /* Handle other operations in the arguments */
1742 if (type == EVENT_OP && strcmp(token, ":") != 0) {
1743 type = process_op(event, left, &token);
1744 goto again;
1745 }
1746
1747 if (test_type_token(type, token, EVENT_OP, ":"))
1748 goto out_free;
1749
1750 arg->op.op = token;
1751
1752 type = process_arg(event, right, &token);
1753
1754 top->op.right = arg;
1755
1756 *tok = token;
1757 return type;
1758
1759 out_free:
1760 /* Top may point to itself */
1761 top->op.right = NULL;
1762 free_token(token);
1763 free_arg(arg);
1764 return EVENT_ERROR;
1765 }
1766
1767 static enum event_type
process_array(struct event_format * event,struct print_arg * top,char ** tok)1768 process_array(struct event_format *event, struct print_arg *top, char **tok)
1769 {
1770 struct print_arg *arg;
1771 enum event_type type;
1772 char *token = NULL;
1773
1774 arg = alloc_arg();
1775 if (!arg) {
1776 do_warning_event(event, "%s: not enough memory!", __func__);
1777 /* '*tok' is set to top->op.op. No need to free. */
1778 *tok = NULL;
1779 return EVENT_ERROR;
1780 }
1781
1782 *tok = NULL;
1783 type = process_arg(event, arg, &token);
1784 if (test_type_token(type, token, EVENT_OP, "]"))
1785 goto out_free;
1786
1787 top->op.right = arg;
1788
1789 free_token(token);
1790 type = read_token_item(&token);
1791 *tok = token;
1792
1793 return type;
1794
1795 out_free:
1796 free_token(token);
1797 free_arg(arg);
1798 return EVENT_ERROR;
1799 }
1800
get_op_prio(char * op)1801 static int get_op_prio(char *op)
1802 {
1803 if (!op[1]) {
1804 switch (op[0]) {
1805 case '~':
1806 case '!':
1807 return 4;
1808 case '*':
1809 case '/':
1810 case '%':
1811 return 6;
1812 case '+':
1813 case '-':
1814 return 7;
1815 /* '>>' and '<<' are 8 */
1816 case '<':
1817 case '>':
1818 return 9;
1819 /* '==' and '!=' are 10 */
1820 case '&':
1821 return 11;
1822 case '^':
1823 return 12;
1824 case '|':
1825 return 13;
1826 case '?':
1827 return 16;
1828 default:
1829 do_warning("unknown op '%c'", op[0]);
1830 return -1;
1831 }
1832 } else {
1833 if (strcmp(op, "++") == 0 ||
1834 strcmp(op, "--") == 0) {
1835 return 3;
1836 } else if (strcmp(op, ">>") == 0 ||
1837 strcmp(op, "<<") == 0) {
1838 return 8;
1839 } else if (strcmp(op, ">=") == 0 ||
1840 strcmp(op, "<=") == 0) {
1841 return 9;
1842 } else if (strcmp(op, "==") == 0 ||
1843 strcmp(op, "!=") == 0) {
1844 return 10;
1845 } else if (strcmp(op, "&&") == 0) {
1846 return 14;
1847 } else if (strcmp(op, "||") == 0) {
1848 return 15;
1849 } else {
1850 do_warning("unknown op '%s'", op);
1851 return -1;
1852 }
1853 }
1854 }
1855
set_op_prio(struct print_arg * arg)1856 static int set_op_prio(struct print_arg *arg)
1857 {
1858
1859 /* single ops are the greatest */
1860 if (!arg->op.left || arg->op.left->type == PRINT_NULL)
1861 arg->op.prio = 0;
1862 else
1863 arg->op.prio = get_op_prio(arg->op.op);
1864
1865 return arg->op.prio;
1866 }
1867
1868 /* Note, *tok does not get freed, but will most likely be saved */
1869 static enum event_type
process_op(struct event_format * event,struct print_arg * arg,char ** tok)1870 process_op(struct event_format *event, struct print_arg *arg, char **tok)
1871 {
1872 struct print_arg *left, *right = NULL;
1873 enum event_type type;
1874 char *token;
1875
1876 /* the op is passed in via tok */
1877 token = *tok;
1878
1879 if (arg->type == PRINT_OP && !arg->op.left) {
1880 /* handle single op */
1881 if (token[1]) {
1882 do_warning_event(event, "bad op token %s", token);
1883 goto out_free;
1884 }
1885 switch (token[0]) {
1886 case '~':
1887 case '!':
1888 case '+':
1889 case '-':
1890 break;
1891 default:
1892 do_warning_event(event, "bad op token %s", token);
1893 goto out_free;
1894
1895 }
1896
1897 /* make an empty left */
1898 left = alloc_arg();
1899 if (!left)
1900 goto out_warn_free;
1901
1902 left->type = PRINT_NULL;
1903 arg->op.left = left;
1904
1905 right = alloc_arg();
1906 if (!right)
1907 goto out_warn_free;
1908
1909 arg->op.right = right;
1910
1911 /* do not free the token, it belongs to an op */
1912 *tok = NULL;
1913 type = process_arg(event, right, tok);
1914
1915 } else if (strcmp(token, "?") == 0) {
1916
1917 left = alloc_arg();
1918 if (!left)
1919 goto out_warn_free;
1920
1921 /* copy the top arg to the left */
1922 *left = *arg;
1923
1924 arg->type = PRINT_OP;
1925 arg->op.op = token;
1926 arg->op.left = left;
1927 arg->op.prio = 0;
1928
1929 /* it will set arg->op.right */
1930 type = process_cond(event, arg, tok);
1931
1932 } else if (strcmp(token, ">>") == 0 ||
1933 strcmp(token, "<<") == 0 ||
1934 strcmp(token, "&") == 0 ||
1935 strcmp(token, "|") == 0 ||
1936 strcmp(token, "&&") == 0 ||
1937 strcmp(token, "||") == 0 ||
1938 strcmp(token, "-") == 0 ||
1939 strcmp(token, "+") == 0 ||
1940 strcmp(token, "*") == 0 ||
1941 strcmp(token, "^") == 0 ||
1942 strcmp(token, "/") == 0 ||
1943 strcmp(token, "%") == 0 ||
1944 strcmp(token, "<") == 0 ||
1945 strcmp(token, ">") == 0 ||
1946 strcmp(token, "<=") == 0 ||
1947 strcmp(token, ">=") == 0 ||
1948 strcmp(token, "==") == 0 ||
1949 strcmp(token, "!=") == 0) {
1950
1951 left = alloc_arg();
1952 if (!left)
1953 goto out_warn_free;
1954
1955 /* copy the top arg to the left */
1956 *left = *arg;
1957
1958 arg->type = PRINT_OP;
1959 arg->op.op = token;
1960 arg->op.left = left;
1961 arg->op.right = NULL;
1962
1963 if (set_op_prio(arg) == -1) {
1964 event->flags |= EVENT_FL_FAILED;
1965 /* arg->op.op (= token) will be freed at out_free */
1966 arg->op.op = NULL;
1967 goto out_free;
1968 }
1969
1970 type = read_token_item(&token);
1971 *tok = token;
1972
1973 /* could just be a type pointer */
1974 if ((strcmp(arg->op.op, "*") == 0) &&
1975 type == EVENT_DELIM && (strcmp(token, ")") == 0)) {
1976 char *new_atom;
1977
1978 if (left->type != PRINT_ATOM) {
1979 do_warning_event(event, "bad pointer type");
1980 goto out_free;
1981 }
1982 new_atom = realloc(left->atom.atom,
1983 strlen(left->atom.atom) + 3);
1984 if (!new_atom)
1985 goto out_warn_free;
1986
1987 left->atom.atom = new_atom;
1988 strcat(left->atom.atom, " *");
1989 free(arg->op.op);
1990 *arg = *left;
1991 free(left);
1992
1993 return type;
1994 }
1995
1996 right = alloc_arg();
1997 if (!right)
1998 goto out_warn_free;
1999
2000 type = process_arg_token(event, right, tok, type);
2001 if (type == EVENT_ERROR) {
2002 free_arg(right);
2003 /* token was freed in process_arg_token() via *tok */
2004 token = NULL;
2005 goto out_free;
2006 }
2007
2008 if (right->type == PRINT_OP &&
2009 get_op_prio(arg->op.op) < get_op_prio(right->op.op)) {
2010 struct print_arg tmp;
2011
2012 /* rotate ops according to the priority */
2013 arg->op.right = right->op.left;
2014
2015 tmp = *arg;
2016 *arg = *right;
2017 *right = tmp;
2018
2019 arg->op.left = right;
2020 } else {
2021 arg->op.right = right;
2022 }
2023
2024 } else if (strcmp(token, "[") == 0) {
2025
2026 left = alloc_arg();
2027 if (!left)
2028 goto out_warn_free;
2029
2030 *left = *arg;
2031
2032 arg->type = PRINT_OP;
2033 arg->op.op = token;
2034 arg->op.left = left;
2035
2036 arg->op.prio = 0;
2037
2038 /* it will set arg->op.right */
2039 type = process_array(event, arg, tok);
2040
2041 } else {
2042 do_warning_event(event, "unknown op '%s'", token);
2043 event->flags |= EVENT_FL_FAILED;
2044 /* the arg is now the left side */
2045 goto out_free;
2046 }
2047
2048 if (type == EVENT_OP && strcmp(*tok, ":") != 0) {
2049 int prio;
2050
2051 /* higher prios need to be closer to the root */
2052 prio = get_op_prio(*tok);
2053
2054 if (prio > arg->op.prio)
2055 return process_op(event, arg, tok);
2056
2057 return process_op(event, right, tok);
2058 }
2059
2060 return type;
2061
2062 out_warn_free:
2063 do_warning_event(event, "%s: not enough memory!", __func__);
2064 out_free:
2065 free_token(token);
2066 *tok = NULL;
2067 return EVENT_ERROR;
2068 }
2069
2070 static enum event_type
process_entry(struct event_format * event __maybe_unused,struct print_arg * arg,char ** tok)2071 process_entry(struct event_format *event __maybe_unused, struct print_arg *arg,
2072 char **tok)
2073 {
2074 enum event_type type;
2075 char *field;
2076 char *token;
2077
2078 if (read_expected(EVENT_OP, "->") < 0)
2079 goto out_err;
2080
2081 if (read_expect_type(EVENT_ITEM, &token) < 0)
2082 goto out_free;
2083 field = token;
2084
2085 arg->type = PRINT_FIELD;
2086 arg->field.name = field;
2087
2088 if (is_flag_field) {
2089 arg->field.field = tep_find_any_field(event, arg->field.name);
2090 arg->field.field->flags |= FIELD_IS_FLAG;
2091 is_flag_field = 0;
2092 } else if (is_symbolic_field) {
2093 arg->field.field = tep_find_any_field(event, arg->field.name);
2094 arg->field.field->flags |= FIELD_IS_SYMBOLIC;
2095 is_symbolic_field = 0;
2096 }
2097
2098 type = read_token(&token);
2099 *tok = token;
2100
2101 return type;
2102
2103 out_free:
2104 free_token(token);
2105 out_err:
2106 *tok = NULL;
2107 return EVENT_ERROR;
2108 }
2109
alloc_and_process_delim(struct event_format * event,char * next_token,struct print_arg ** print_arg)2110 static int alloc_and_process_delim(struct event_format *event, char *next_token,
2111 struct print_arg **print_arg)
2112 {
2113 struct print_arg *field;
2114 enum event_type type;
2115 char *token;
2116 int ret = 0;
2117
2118 field = alloc_arg();
2119 if (!field) {
2120 do_warning_event(event, "%s: not enough memory!", __func__);
2121 errno = ENOMEM;
2122 return -1;
2123 }
2124
2125 type = process_arg(event, field, &token);
2126
2127 if (test_type_token(type, token, EVENT_DELIM, next_token)) {
2128 errno = EINVAL;
2129 ret = -1;
2130 free_arg(field);
2131 goto out_free_token;
2132 }
2133
2134 *print_arg = field;
2135
2136 out_free_token:
2137 free_token(token);
2138
2139 return ret;
2140 }
2141
2142 static char *arg_eval (struct print_arg *arg);
2143
2144 static unsigned long long
eval_type_str(unsigned long long val,const char * type,int pointer)2145 eval_type_str(unsigned long long val, const char *type, int pointer)
2146 {
2147 int sign = 0;
2148 char *ref;
2149 int len;
2150
2151 len = strlen(type);
2152
2153 if (pointer) {
2154
2155 if (type[len-1] != '*') {
2156 do_warning("pointer expected with non pointer type");
2157 return val;
2158 }
2159
2160 ref = malloc(len);
2161 if (!ref) {
2162 do_warning("%s: not enough memory!", __func__);
2163 return val;
2164 }
2165 memcpy(ref, type, len);
2166
2167 /* chop off the " *" */
2168 ref[len - 2] = 0;
2169
2170 val = eval_type_str(val, ref, 0);
2171 free(ref);
2172 return val;
2173 }
2174
2175 /* check if this is a pointer */
2176 if (type[len - 1] == '*')
2177 return val;
2178
2179 /* Try to figure out the arg size*/
2180 if (strncmp(type, "struct", 6) == 0)
2181 /* all bets off */
2182 return val;
2183
2184 if (strcmp(type, "u8") == 0)
2185 return val & 0xff;
2186
2187 if (strcmp(type, "u16") == 0)
2188 return val & 0xffff;
2189
2190 if (strcmp(type, "u32") == 0)
2191 return val & 0xffffffff;
2192
2193 if (strcmp(type, "u64") == 0 ||
2194 strcmp(type, "s64") == 0)
2195 return val;
2196
2197 if (strcmp(type, "s8") == 0)
2198 return (unsigned long long)(char)val & 0xff;
2199
2200 if (strcmp(type, "s16") == 0)
2201 return (unsigned long long)(short)val & 0xffff;
2202
2203 if (strcmp(type, "s32") == 0)
2204 return (unsigned long long)(int)val & 0xffffffff;
2205
2206 if (strncmp(type, "unsigned ", 9) == 0) {
2207 sign = 0;
2208 type += 9;
2209 }
2210
2211 if (strcmp(type, "char") == 0) {
2212 if (sign)
2213 return (unsigned long long)(char)val & 0xff;
2214 else
2215 return val & 0xff;
2216 }
2217
2218 if (strcmp(type, "short") == 0) {
2219 if (sign)
2220 return (unsigned long long)(short)val & 0xffff;
2221 else
2222 return val & 0xffff;
2223 }
2224
2225 if (strcmp(type, "int") == 0) {
2226 if (sign)
2227 return (unsigned long long)(int)val & 0xffffffff;
2228 else
2229 return val & 0xffffffff;
2230 }
2231
2232 return val;
2233 }
2234
2235 /*
2236 * Try to figure out the type.
2237 */
2238 static unsigned long long
eval_type(unsigned long long val,struct print_arg * arg,int pointer)2239 eval_type(unsigned long long val, struct print_arg *arg, int pointer)
2240 {
2241 if (arg->type != PRINT_TYPE) {
2242 do_warning("expected type argument");
2243 return 0;
2244 }
2245
2246 return eval_type_str(val, arg->typecast.type, pointer);
2247 }
2248
arg_num_eval(struct print_arg * arg,long long * val)2249 static int arg_num_eval(struct print_arg *arg, long long *val)
2250 {
2251 long long left, right;
2252 int ret = 1;
2253
2254 switch (arg->type) {
2255 case PRINT_ATOM:
2256 *val = strtoll(arg->atom.atom, NULL, 0);
2257 break;
2258 case PRINT_TYPE:
2259 ret = arg_num_eval(arg->typecast.item, val);
2260 if (!ret)
2261 break;
2262 *val = eval_type(*val, arg, 0);
2263 break;
2264 case PRINT_OP:
2265 switch (arg->op.op[0]) {
2266 case '|':
2267 ret = arg_num_eval(arg->op.left, &left);
2268 if (!ret)
2269 break;
2270 ret = arg_num_eval(arg->op.right, &right);
2271 if (!ret)
2272 break;
2273 if (arg->op.op[1])
2274 *val = left || right;
2275 else
2276 *val = left | right;
2277 break;
2278 case '&':
2279 ret = arg_num_eval(arg->op.left, &left);
2280 if (!ret)
2281 break;
2282 ret = arg_num_eval(arg->op.right, &right);
2283 if (!ret)
2284 break;
2285 if (arg->op.op[1])
2286 *val = left && right;
2287 else
2288 *val = left & right;
2289 break;
2290 case '<':
2291 ret = arg_num_eval(arg->op.left, &left);
2292 if (!ret)
2293 break;
2294 ret = arg_num_eval(arg->op.right, &right);
2295 if (!ret)
2296 break;
2297 switch (arg->op.op[1]) {
2298 case 0:
2299 *val = left < right;
2300 break;
2301 case '<':
2302 *val = left << right;
2303 break;
2304 case '=':
2305 *val = left <= right;
2306 break;
2307 default:
2308 do_warning("unknown op '%s'", arg->op.op);
2309 ret = 0;
2310 }
2311 break;
2312 case '>':
2313 ret = arg_num_eval(arg->op.left, &left);
2314 if (!ret)
2315 break;
2316 ret = arg_num_eval(arg->op.right, &right);
2317 if (!ret)
2318 break;
2319 switch (arg->op.op[1]) {
2320 case 0:
2321 *val = left > right;
2322 break;
2323 case '>':
2324 *val = left >> right;
2325 break;
2326 case '=':
2327 *val = left >= right;
2328 break;
2329 default:
2330 do_warning("unknown op '%s'", arg->op.op);
2331 ret = 0;
2332 }
2333 break;
2334 case '=':
2335 ret = arg_num_eval(arg->op.left, &left);
2336 if (!ret)
2337 break;
2338 ret = arg_num_eval(arg->op.right, &right);
2339 if (!ret)
2340 break;
2341
2342 if (arg->op.op[1] != '=') {
2343 do_warning("unknown op '%s'", arg->op.op);
2344 ret = 0;
2345 } else
2346 *val = left == right;
2347 break;
2348 case '!':
2349 ret = arg_num_eval(arg->op.left, &left);
2350 if (!ret)
2351 break;
2352 ret = arg_num_eval(arg->op.right, &right);
2353 if (!ret)
2354 break;
2355
2356 switch (arg->op.op[1]) {
2357 case '=':
2358 *val = left != right;
2359 break;
2360 default:
2361 do_warning("unknown op '%s'", arg->op.op);
2362 ret = 0;
2363 }
2364 break;
2365 case '-':
2366 /* check for negative */
2367 if (arg->op.left->type == PRINT_NULL)
2368 left = 0;
2369 else
2370 ret = arg_num_eval(arg->op.left, &left);
2371 if (!ret)
2372 break;
2373 ret = arg_num_eval(arg->op.right, &right);
2374 if (!ret)
2375 break;
2376 *val = left - right;
2377 break;
2378 case '+':
2379 if (arg->op.left->type == PRINT_NULL)
2380 left = 0;
2381 else
2382 ret = arg_num_eval(arg->op.left, &left);
2383 if (!ret)
2384 break;
2385 ret = arg_num_eval(arg->op.right, &right);
2386 if (!ret)
2387 break;
2388 *val = left + right;
2389 break;
2390 case '~':
2391 ret = arg_num_eval(arg->op.right, &right);
2392 if (!ret)
2393 break;
2394 *val = ~right;
2395 break;
2396 default:
2397 do_warning("unknown op '%s'", arg->op.op);
2398 ret = 0;
2399 }
2400 break;
2401
2402 case PRINT_NULL:
2403 case PRINT_FIELD ... PRINT_SYMBOL:
2404 case PRINT_STRING:
2405 case PRINT_BSTRING:
2406 case PRINT_BITMASK:
2407 default:
2408 do_warning("invalid eval type %d", arg->type);
2409 ret = 0;
2410
2411 }
2412 return ret;
2413 }
2414
arg_eval(struct print_arg * arg)2415 static char *arg_eval (struct print_arg *arg)
2416 {
2417 long long val;
2418 static char buf[24];
2419
2420 switch (arg->type) {
2421 case PRINT_ATOM:
2422 return arg->atom.atom;
2423 case PRINT_TYPE:
2424 return arg_eval(arg->typecast.item);
2425 case PRINT_OP:
2426 if (!arg_num_eval(arg, &val))
2427 break;
2428 sprintf(buf, "%lld", val);
2429 return buf;
2430
2431 case PRINT_NULL:
2432 case PRINT_FIELD ... PRINT_SYMBOL:
2433 case PRINT_STRING:
2434 case PRINT_BSTRING:
2435 case PRINT_BITMASK:
2436 default:
2437 do_warning("invalid eval type %d", arg->type);
2438 break;
2439 }
2440
2441 return NULL;
2442 }
2443
2444 static enum event_type
process_fields(struct event_format * event,struct print_flag_sym ** list,char ** tok)2445 process_fields(struct event_format *event, struct print_flag_sym **list, char **tok)
2446 {
2447 enum event_type type;
2448 struct print_arg *arg = NULL;
2449 struct print_flag_sym *field;
2450 char *token = *tok;
2451 char *value;
2452
2453 do {
2454 free_token(token);
2455 type = read_token_item(&token);
2456 if (test_type_token(type, token, EVENT_OP, "{"))
2457 break;
2458
2459 arg = alloc_arg();
2460 if (!arg)
2461 goto out_free;
2462
2463 free_token(token);
2464 type = process_arg(event, arg, &token);
2465
2466 if (type == EVENT_OP)
2467 type = process_op(event, arg, &token);
2468
2469 if (type == EVENT_ERROR)
2470 goto out_free;
2471
2472 if (test_type_token(type, token, EVENT_DELIM, ","))
2473 goto out_free;
2474
2475 field = calloc(1, sizeof(*field));
2476 if (!field)
2477 goto out_free;
2478
2479 value = arg_eval(arg);
2480 if (value == NULL)
2481 goto out_free_field;
2482 field->value = strdup(value);
2483 if (field->value == NULL)
2484 goto out_free_field;
2485
2486 free_arg(arg);
2487 arg = alloc_arg();
2488 if (!arg)
2489 goto out_free;
2490
2491 free_token(token);
2492 type = process_arg(event, arg, &token);
2493 if (test_type_token(type, token, EVENT_OP, "}"))
2494 goto out_free_field;
2495
2496 value = arg_eval(arg);
2497 if (value == NULL)
2498 goto out_free_field;
2499 field->str = strdup(value);
2500 if (field->str == NULL)
2501 goto out_free_field;
2502 free_arg(arg);
2503 arg = NULL;
2504
2505 *list = field;
2506 list = &field->next;
2507
2508 free_token(token);
2509 type = read_token_item(&token);
2510 } while (type == EVENT_DELIM && strcmp(token, ",") == 0);
2511
2512 *tok = token;
2513 return type;
2514
2515 out_free_field:
2516 free_flag_sym(field);
2517 out_free:
2518 free_arg(arg);
2519 free_token(token);
2520 *tok = NULL;
2521
2522 return EVENT_ERROR;
2523 }
2524
2525 static enum event_type
process_flags(struct event_format * event,struct print_arg * arg,char ** tok)2526 process_flags(struct event_format *event, struct print_arg *arg, char **tok)
2527 {
2528 struct print_arg *field;
2529 enum event_type type;
2530 char *token = NULL;
2531
2532 memset(arg, 0, sizeof(*arg));
2533 arg->type = PRINT_FLAGS;
2534
2535 field = alloc_arg();
2536 if (!field) {
2537 do_warning_event(event, "%s: not enough memory!", __func__);
2538 goto out_free;
2539 }
2540
2541 type = process_field_arg(event, field, &token);
2542
2543 /* Handle operations in the first argument */
2544 while (type == EVENT_OP)
2545 type = process_op(event, field, &token);
2546
2547 if (test_type_token(type, token, EVENT_DELIM, ","))
2548 goto out_free_field;
2549 free_token(token);
2550
2551 arg->flags.field = field;
2552
2553 type = read_token_item(&token);
2554 if (event_item_type(type)) {
2555 arg->flags.delim = token;
2556 type = read_token_item(&token);
2557 }
2558
2559 if (test_type_token(type, token, EVENT_DELIM, ","))
2560 goto out_free;
2561
2562 type = process_fields(event, &arg->flags.flags, &token);
2563 if (test_type_token(type, token, EVENT_DELIM, ")"))
2564 goto out_free;
2565
2566 free_token(token);
2567 type = read_token_item(tok);
2568 return type;
2569
2570 out_free_field:
2571 free_arg(field);
2572 out_free:
2573 free_token(token);
2574 *tok = NULL;
2575 return EVENT_ERROR;
2576 }
2577
2578 static enum event_type
process_symbols(struct event_format * event,struct print_arg * arg,char ** tok)2579 process_symbols(struct event_format *event, struct print_arg *arg, char **tok)
2580 {
2581 struct print_arg *field;
2582 enum event_type type;
2583 char *token = NULL;
2584
2585 memset(arg, 0, sizeof(*arg));
2586 arg->type = PRINT_SYMBOL;
2587
2588 field = alloc_arg();
2589 if (!field) {
2590 do_warning_event(event, "%s: not enough memory!", __func__);
2591 goto out_free;
2592 }
2593
2594 type = process_field_arg(event, field, &token);
2595
2596 if (test_type_token(type, token, EVENT_DELIM, ","))
2597 goto out_free_field;
2598
2599 arg->symbol.field = field;
2600
2601 type = process_fields(event, &arg->symbol.symbols, &token);
2602 if (test_type_token(type, token, EVENT_DELIM, ")"))
2603 goto out_free;
2604
2605 free_token(token);
2606 type = read_token_item(tok);
2607 return type;
2608
2609 out_free_field:
2610 free_arg(field);
2611 out_free:
2612 free_token(token);
2613 *tok = NULL;
2614 return EVENT_ERROR;
2615 }
2616
2617 static enum event_type
process_hex_common(struct event_format * event,struct print_arg * arg,char ** tok,enum print_arg_type type)2618 process_hex_common(struct event_format *event, struct print_arg *arg,
2619 char **tok, enum print_arg_type type)
2620 {
2621 memset(arg, 0, sizeof(*arg));
2622 arg->type = type;
2623
2624 if (alloc_and_process_delim(event, ",", &arg->hex.field))
2625 goto out;
2626
2627 if (alloc_and_process_delim(event, ")", &arg->hex.size))
2628 goto free_field;
2629
2630 return read_token_item(tok);
2631
2632 free_field:
2633 free_arg(arg->hex.field);
2634 arg->hex.field = NULL;
2635 out:
2636 *tok = NULL;
2637 return EVENT_ERROR;
2638 }
2639
2640 static enum event_type
process_hex(struct event_format * event,struct print_arg * arg,char ** tok)2641 process_hex(struct event_format *event, struct print_arg *arg, char **tok)
2642 {
2643 return process_hex_common(event, arg, tok, PRINT_HEX);
2644 }
2645
2646 static enum event_type
process_hex_str(struct event_format * event,struct print_arg * arg,char ** tok)2647 process_hex_str(struct event_format *event, struct print_arg *arg,
2648 char **tok)
2649 {
2650 return process_hex_common(event, arg, tok, PRINT_HEX_STR);
2651 }
2652
2653 static enum event_type
process_int_array(struct event_format * event,struct print_arg * arg,char ** tok)2654 process_int_array(struct event_format *event, struct print_arg *arg, char **tok)
2655 {
2656 memset(arg, 0, sizeof(*arg));
2657 arg->type = PRINT_INT_ARRAY;
2658
2659 if (alloc_and_process_delim(event, ",", &arg->int_array.field))
2660 goto out;
2661
2662 if (alloc_and_process_delim(event, ",", &arg->int_array.count))
2663 goto free_field;
2664
2665 if (alloc_and_process_delim(event, ")", &arg->int_array.el_size))
2666 goto free_size;
2667
2668 return read_token_item(tok);
2669
2670 free_size:
2671 free_arg(arg->int_array.count);
2672 arg->int_array.count = NULL;
2673 free_field:
2674 free_arg(arg->int_array.field);
2675 arg->int_array.field = NULL;
2676 out:
2677 *tok = NULL;
2678 return EVENT_ERROR;
2679 }
2680
2681 static enum event_type
process_dynamic_array(struct event_format * event,struct print_arg * arg,char ** tok)2682 process_dynamic_array(struct event_format *event, struct print_arg *arg, char **tok)
2683 {
2684 struct format_field *field;
2685 enum event_type type;
2686 char *token;
2687
2688 memset(arg, 0, sizeof(*arg));
2689 arg->type = PRINT_DYNAMIC_ARRAY;
2690
2691 /*
2692 * The item within the parenthesis is another field that holds
2693 * the index into where the array starts.
2694 */
2695 type = read_token(&token);
2696 *tok = token;
2697 if (type != EVENT_ITEM)
2698 goto out_free;
2699
2700 /* Find the field */
2701
2702 field = tep_find_field(event, token);
2703 if (!field)
2704 goto out_free;
2705
2706 arg->dynarray.field = field;
2707 arg->dynarray.index = 0;
2708
2709 if (read_expected(EVENT_DELIM, ")") < 0)
2710 goto out_free;
2711
2712 free_token(token);
2713 type = read_token_item(&token);
2714 *tok = token;
2715 if (type != EVENT_OP || strcmp(token, "[") != 0)
2716 return type;
2717
2718 free_token(token);
2719 arg = alloc_arg();
2720 if (!arg) {
2721 do_warning_event(event, "%s: not enough memory!", __func__);
2722 *tok = NULL;
2723 return EVENT_ERROR;
2724 }
2725
2726 type = process_arg(event, arg, &token);
2727 if (type == EVENT_ERROR)
2728 goto out_free_arg;
2729
2730 if (!test_type_token(type, token, EVENT_OP, "]"))
2731 goto out_free_arg;
2732
2733 free_token(token);
2734 type = read_token_item(tok);
2735 return type;
2736
2737 out_free_arg:
2738 free_arg(arg);
2739 out_free:
2740 free_token(token);
2741 *tok = NULL;
2742 return EVENT_ERROR;
2743 }
2744
2745 static enum event_type
process_dynamic_array_len(struct event_format * event,struct print_arg * arg,char ** tok)2746 process_dynamic_array_len(struct event_format *event, struct print_arg *arg,
2747 char **tok)
2748 {
2749 struct format_field *field;
2750 enum event_type type;
2751 char *token;
2752
2753 if (read_expect_type(EVENT_ITEM, &token) < 0)
2754 goto out_free;
2755
2756 arg->type = PRINT_DYNAMIC_ARRAY_LEN;
2757
2758 /* Find the field */
2759 field = tep_find_field(event, token);
2760 if (!field)
2761 goto out_free;
2762
2763 arg->dynarray.field = field;
2764 arg->dynarray.index = 0;
2765
2766 if (read_expected(EVENT_DELIM, ")") < 0)
2767 goto out_err;
2768
2769 free_token(token);
2770 type = read_token(&token);
2771 *tok = token;
2772
2773 return type;
2774
2775 out_free:
2776 free_token(token);
2777 out_err:
2778 *tok = NULL;
2779 return EVENT_ERROR;
2780 }
2781
2782 static enum event_type
process_paren(struct event_format * event,struct print_arg * arg,char ** tok)2783 process_paren(struct event_format *event, struct print_arg *arg, char **tok)
2784 {
2785 struct print_arg *item_arg;
2786 enum event_type type;
2787 char *token;
2788
2789 type = process_arg(event, arg, &token);
2790
2791 if (type == EVENT_ERROR)
2792 goto out_free;
2793
2794 if (type == EVENT_OP)
2795 type = process_op(event, arg, &token);
2796
2797 if (type == EVENT_ERROR)
2798 goto out_free;
2799
2800 if (test_type_token(type, token, EVENT_DELIM, ")"))
2801 goto out_free;
2802
2803 free_token(token);
2804 type = read_token_item(&token);
2805
2806 /*
2807 * If the next token is an item or another open paren, then
2808 * this was a typecast.
2809 */
2810 if (event_item_type(type) ||
2811 (type == EVENT_DELIM && strcmp(token, "(") == 0)) {
2812
2813 /* make this a typecast and contine */
2814
2815 /* prevous must be an atom */
2816 if (arg->type != PRINT_ATOM) {
2817 do_warning_event(event, "previous needed to be PRINT_ATOM");
2818 goto out_free;
2819 }
2820
2821 item_arg = alloc_arg();
2822 if (!item_arg) {
2823 do_warning_event(event, "%s: not enough memory!",
2824 __func__);
2825 goto out_free;
2826 }
2827
2828 arg->type = PRINT_TYPE;
2829 arg->typecast.type = arg->atom.atom;
2830 arg->typecast.item = item_arg;
2831 type = process_arg_token(event, item_arg, &token, type);
2832
2833 }
2834
2835 *tok = token;
2836 return type;
2837
2838 out_free:
2839 free_token(token);
2840 *tok = NULL;
2841 return EVENT_ERROR;
2842 }
2843
2844
2845 static enum event_type
process_str(struct event_format * event __maybe_unused,struct print_arg * arg,char ** tok)2846 process_str(struct event_format *event __maybe_unused, struct print_arg *arg,
2847 char **tok)
2848 {
2849 enum event_type type;
2850 char *token;
2851
2852 if (read_expect_type(EVENT_ITEM, &token) < 0)
2853 goto out_free;
2854
2855 arg->type = PRINT_STRING;
2856 arg->string.string = token;
2857 arg->string.offset = -1;
2858
2859 if (read_expected(EVENT_DELIM, ")") < 0)
2860 goto out_err;
2861
2862 type = read_token(&token);
2863 *tok = token;
2864
2865 return type;
2866
2867 out_free:
2868 free_token(token);
2869 out_err:
2870 *tok = NULL;
2871 return EVENT_ERROR;
2872 }
2873
2874 static enum event_type
process_bitmask(struct event_format * event __maybe_unused,struct print_arg * arg,char ** tok)2875 process_bitmask(struct event_format *event __maybe_unused, struct print_arg *arg,
2876 char **tok)
2877 {
2878 enum event_type type;
2879 char *token;
2880
2881 if (read_expect_type(EVENT_ITEM, &token) < 0)
2882 goto out_free;
2883
2884 arg->type = PRINT_BITMASK;
2885 arg->bitmask.bitmask = token;
2886 arg->bitmask.offset = -1;
2887
2888 if (read_expected(EVENT_DELIM, ")") < 0)
2889 goto out_err;
2890
2891 type = read_token(&token);
2892 *tok = token;
2893
2894 return type;
2895
2896 out_free:
2897 free_token(token);
2898 out_err:
2899 *tok = NULL;
2900 return EVENT_ERROR;
2901 }
2902
2903 static struct tep_function_handler *
find_func_handler(struct tep_handle * pevent,char * func_name)2904 find_func_handler(struct tep_handle *pevent, char *func_name)
2905 {
2906 struct tep_function_handler *func;
2907
2908 if (!pevent)
2909 return NULL;
2910
2911 for (func = pevent->func_handlers; func; func = func->next) {
2912 if (strcmp(func->name, func_name) == 0)
2913 break;
2914 }
2915
2916 return func;
2917 }
2918
remove_func_handler(struct tep_handle * pevent,char * func_name)2919 static void remove_func_handler(struct tep_handle *pevent, char *func_name)
2920 {
2921 struct tep_function_handler *func;
2922 struct tep_function_handler **next;
2923
2924 next = &pevent->func_handlers;
2925 while ((func = *next)) {
2926 if (strcmp(func->name, func_name) == 0) {
2927 *next = func->next;
2928 free_func_handle(func);
2929 break;
2930 }
2931 next = &func->next;
2932 }
2933 }
2934
2935 static enum event_type
process_func_handler(struct event_format * event,struct tep_function_handler * func,struct print_arg * arg,char ** tok)2936 process_func_handler(struct event_format *event, struct tep_function_handler *func,
2937 struct print_arg *arg, char **tok)
2938 {
2939 struct print_arg **next_arg;
2940 struct print_arg *farg;
2941 enum event_type type;
2942 char *token;
2943 int i;
2944
2945 arg->type = PRINT_FUNC;
2946 arg->func.func = func;
2947
2948 *tok = NULL;
2949
2950 next_arg = &(arg->func.args);
2951 for (i = 0; i < func->nr_args; i++) {
2952 farg = alloc_arg();
2953 if (!farg) {
2954 do_warning_event(event, "%s: not enough memory!",
2955 __func__);
2956 return EVENT_ERROR;
2957 }
2958
2959 type = process_arg(event, farg, &token);
2960 if (i < (func->nr_args - 1)) {
2961 if (type != EVENT_DELIM || strcmp(token, ",") != 0) {
2962 do_warning_event(event,
2963 "Error: function '%s()' expects %d arguments but event %s only uses %d",
2964 func->name, func->nr_args,
2965 event->name, i + 1);
2966 goto err;
2967 }
2968 } else {
2969 if (type != EVENT_DELIM || strcmp(token, ")") != 0) {
2970 do_warning_event(event,
2971 "Error: function '%s()' only expects %d arguments but event %s has more",
2972 func->name, func->nr_args, event->name);
2973 goto err;
2974 }
2975 }
2976
2977 *next_arg = farg;
2978 next_arg = &(farg->next);
2979 free_token(token);
2980 }
2981
2982 type = read_token(&token);
2983 *tok = token;
2984
2985 return type;
2986
2987 err:
2988 free_arg(farg);
2989 free_token(token);
2990 return EVENT_ERROR;
2991 }
2992
2993 static enum event_type
process_function(struct event_format * event,struct print_arg * arg,char * token,char ** tok)2994 process_function(struct event_format *event, struct print_arg *arg,
2995 char *token, char **tok)
2996 {
2997 struct tep_function_handler *func;
2998
2999 if (strcmp(token, "__print_flags") == 0) {
3000 free_token(token);
3001 is_flag_field = 1;
3002 return process_flags(event, arg, tok);
3003 }
3004 if (strcmp(token, "__print_symbolic") == 0) {
3005 free_token(token);
3006 is_symbolic_field = 1;
3007 return process_symbols(event, arg, tok);
3008 }
3009 if (strcmp(token, "__print_hex") == 0) {
3010 free_token(token);
3011 return process_hex(event, arg, tok);
3012 }
3013 if (strcmp(token, "__print_hex_str") == 0) {
3014 free_token(token);
3015 return process_hex_str(event, arg, tok);
3016 }
3017 if (strcmp(token, "__print_array") == 0) {
3018 free_token(token);
3019 return process_int_array(event, arg, tok);
3020 }
3021 if (strcmp(token, "__get_str") == 0) {
3022 free_token(token);
3023 return process_str(event, arg, tok);
3024 }
3025 if (strcmp(token, "__get_bitmask") == 0) {
3026 free_token(token);
3027 return process_bitmask(event, arg, tok);
3028 }
3029 if (strcmp(token, "__get_dynamic_array") == 0) {
3030 free_token(token);
3031 return process_dynamic_array(event, arg, tok);
3032 }
3033 if (strcmp(token, "__get_dynamic_array_len") == 0) {
3034 free_token(token);
3035 return process_dynamic_array_len(event, arg, tok);
3036 }
3037
3038 func = find_func_handler(event->pevent, token);
3039 if (func) {
3040 free_token(token);
3041 return process_func_handler(event, func, arg, tok);
3042 }
3043
3044 do_warning_event(event, "function %s not defined", token);
3045 free_token(token);
3046 return EVENT_ERROR;
3047 }
3048
3049 static enum event_type
process_arg_token(struct event_format * event,struct print_arg * arg,char ** tok,enum event_type type)3050 process_arg_token(struct event_format *event, struct print_arg *arg,
3051 char **tok, enum event_type type)
3052 {
3053 char *token;
3054 char *atom;
3055
3056 token = *tok;
3057
3058 switch (type) {
3059 case EVENT_ITEM:
3060 if (strcmp(token, "REC") == 0) {
3061 free_token(token);
3062 type = process_entry(event, arg, &token);
3063 break;
3064 }
3065 atom = token;
3066 /* test the next token */
3067 type = read_token_item(&token);
3068
3069 /*
3070 * If the next token is a parenthesis, then this
3071 * is a function.
3072 */
3073 if (type == EVENT_DELIM && strcmp(token, "(") == 0) {
3074 free_token(token);
3075 token = NULL;
3076 /* this will free atom. */
3077 type = process_function(event, arg, atom, &token);
3078 break;
3079 }
3080 /* atoms can be more than one token long */
3081 while (type == EVENT_ITEM) {
3082 char *new_atom;
3083 new_atom = realloc(atom,
3084 strlen(atom) + strlen(token) + 2);
3085 if (!new_atom) {
3086 free(atom);
3087 *tok = NULL;
3088 free_token(token);
3089 return EVENT_ERROR;
3090 }
3091 atom = new_atom;
3092 strcat(atom, " ");
3093 strcat(atom, token);
3094 free_token(token);
3095 type = read_token_item(&token);
3096 }
3097
3098 arg->type = PRINT_ATOM;
3099 arg->atom.atom = atom;
3100 break;
3101
3102 case EVENT_DQUOTE:
3103 case EVENT_SQUOTE:
3104 arg->type = PRINT_ATOM;
3105 arg->atom.atom = token;
3106 type = read_token_item(&token);
3107 break;
3108 case EVENT_DELIM:
3109 if (strcmp(token, "(") == 0) {
3110 free_token(token);
3111 type = process_paren(event, arg, &token);
3112 break;
3113 }
3114 case EVENT_OP:
3115 /* handle single ops */
3116 arg->type = PRINT_OP;
3117 arg->op.op = token;
3118 arg->op.left = NULL;
3119 type = process_op(event, arg, &token);
3120
3121 /* On error, the op is freed */
3122 if (type == EVENT_ERROR)
3123 arg->op.op = NULL;
3124
3125 /* return error type if errored */
3126 break;
3127
3128 case EVENT_ERROR ... EVENT_NEWLINE:
3129 default:
3130 do_warning_event(event, "unexpected type %d", type);
3131 return EVENT_ERROR;
3132 }
3133 *tok = token;
3134
3135 return type;
3136 }
3137
event_read_print_args(struct event_format * event,struct print_arg ** list)3138 static int event_read_print_args(struct event_format *event, struct print_arg **list)
3139 {
3140 enum event_type type = EVENT_ERROR;
3141 struct print_arg *arg;
3142 char *token;
3143 int args = 0;
3144
3145 do {
3146 if (type == EVENT_NEWLINE) {
3147 type = read_token_item(&token);
3148 continue;
3149 }
3150
3151 arg = alloc_arg();
3152 if (!arg) {
3153 do_warning_event(event, "%s: not enough memory!",
3154 __func__);
3155 return -1;
3156 }
3157
3158 type = process_arg(event, arg, &token);
3159
3160 if (type == EVENT_ERROR) {
3161 free_token(token);
3162 free_arg(arg);
3163 return -1;
3164 }
3165
3166 *list = arg;
3167 args++;
3168
3169 if (type == EVENT_OP) {
3170 type = process_op(event, arg, &token);
3171 free_token(token);
3172 if (type == EVENT_ERROR) {
3173 *list = NULL;
3174 free_arg(arg);
3175 return -1;
3176 }
3177 list = &arg->next;
3178 continue;
3179 }
3180
3181 if (type == EVENT_DELIM && strcmp(token, ",") == 0) {
3182 free_token(token);
3183 *list = arg;
3184 list = &arg->next;
3185 continue;
3186 }
3187 break;
3188 } while (type != EVENT_NONE);
3189
3190 if (type != EVENT_NONE && type != EVENT_ERROR)
3191 free_token(token);
3192
3193 return args;
3194 }
3195
event_read_print(struct event_format * event)3196 static int event_read_print(struct event_format *event)
3197 {
3198 enum event_type type;
3199 char *token;
3200 int ret;
3201
3202 if (read_expected_item(EVENT_ITEM, "print") < 0)
3203 return -1;
3204
3205 if (read_expected(EVENT_ITEM, "fmt") < 0)
3206 return -1;
3207
3208 if (read_expected(EVENT_OP, ":") < 0)
3209 return -1;
3210
3211 if (read_expect_type(EVENT_DQUOTE, &token) < 0)
3212 goto fail;
3213
3214 concat:
3215 event->print_fmt.format = token;
3216 event->print_fmt.args = NULL;
3217
3218 /* ok to have no arg */
3219 type = read_token_item(&token);
3220
3221 if (type == EVENT_NONE)
3222 return 0;
3223
3224 /* Handle concatenation of print lines */
3225 if (type == EVENT_DQUOTE) {
3226 char *cat;
3227
3228 if (asprintf(&cat, "%s%s", event->print_fmt.format, token) < 0)
3229 goto fail;
3230 free_token(token);
3231 free_token(event->print_fmt.format);
3232 event->print_fmt.format = NULL;
3233 token = cat;
3234 goto concat;
3235 }
3236
3237 if (test_type_token(type, token, EVENT_DELIM, ","))
3238 goto fail;
3239
3240 free_token(token);
3241
3242 ret = event_read_print_args(event, &event->print_fmt.args);
3243 if (ret < 0)
3244 return -1;
3245
3246 return ret;
3247
3248 fail:
3249 free_token(token);
3250 return -1;
3251 }
3252
3253 /**
3254 * tep_find_common_field - return a common field by event
3255 * @event: handle for the event
3256 * @name: the name of the common field to return
3257 *
3258 * Returns a common field from the event by the given @name.
3259 * This only searchs the common fields and not all field.
3260 */
3261 struct format_field *
tep_find_common_field(struct event_format * event,const char * name)3262 tep_find_common_field(struct event_format *event, const char *name)
3263 {
3264 struct format_field *format;
3265
3266 for (format = event->format.common_fields;
3267 format; format = format->next) {
3268 if (strcmp(format->name, name) == 0)
3269 break;
3270 }
3271
3272 return format;
3273 }
3274
3275 /**
3276 * tep_find_field - find a non-common field
3277 * @event: handle for the event
3278 * @name: the name of the non-common field
3279 *
3280 * Returns a non-common field by the given @name.
3281 * This does not search common fields.
3282 */
3283 struct format_field *
tep_find_field(struct event_format * event,const char * name)3284 tep_find_field(struct event_format *event, const char *name)
3285 {
3286 struct format_field *format;
3287
3288 for (format = event->format.fields;
3289 format; format = format->next) {
3290 if (strcmp(format->name, name) == 0)
3291 break;
3292 }
3293
3294 return format;
3295 }
3296
3297 /**
3298 * tep_find_any_field - find any field by name
3299 * @event: handle for the event
3300 * @name: the name of the field
3301 *
3302 * Returns a field by the given @name.
3303 * This searchs the common field names first, then
3304 * the non-common ones if a common one was not found.
3305 */
3306 struct format_field *
tep_find_any_field(struct event_format * event,const char * name)3307 tep_find_any_field(struct event_format *event, const char *name)
3308 {
3309 struct format_field *format;
3310
3311 format = tep_find_common_field(event, name);
3312 if (format)
3313 return format;
3314 return tep_find_field(event, name);
3315 }
3316
3317 /**
3318 * tep_read_number - read a number from data
3319 * @pevent: handle for the pevent
3320 * @ptr: the raw data
3321 * @size: the size of the data that holds the number
3322 *
3323 * Returns the number (converted to host) from the
3324 * raw data.
3325 */
tep_read_number(struct tep_handle * pevent,const void * ptr,int size)3326 unsigned long long tep_read_number(struct tep_handle *pevent,
3327 const void *ptr, int size)
3328 {
3329 switch (size) {
3330 case 1:
3331 return *(unsigned char *)ptr;
3332 case 2:
3333 return data2host2(pevent, ptr);
3334 case 4:
3335 return data2host4(pevent, ptr);
3336 case 8:
3337 return data2host8(pevent, ptr);
3338 default:
3339 /* BUG! */
3340 return 0;
3341 }
3342 }
3343
3344 /**
3345 * tep_read_number_field - read a number from data
3346 * @field: a handle to the field
3347 * @data: the raw data to read
3348 * @value: the value to place the number in
3349 *
3350 * Reads raw data according to a field offset and size,
3351 * and translates it into @value.
3352 *
3353 * Returns 0 on success, -1 otherwise.
3354 */
tep_read_number_field(struct format_field * field,const void * data,unsigned long long * value)3355 int tep_read_number_field(struct format_field *field, const void *data,
3356 unsigned long long *value)
3357 {
3358 if (!field)
3359 return -1;
3360 switch (field->size) {
3361 case 1:
3362 case 2:
3363 case 4:
3364 case 8:
3365 *value = tep_read_number(field->event->pevent,
3366 data + field->offset, field->size);
3367 return 0;
3368 default:
3369 return -1;
3370 }
3371 }
3372
get_common_info(struct tep_handle * pevent,const char * type,int * offset,int * size)3373 static int get_common_info(struct tep_handle *pevent,
3374 const char *type, int *offset, int *size)
3375 {
3376 struct event_format *event;
3377 struct format_field *field;
3378
3379 /*
3380 * All events should have the same common elements.
3381 * Pick any event to find where the type is;
3382 */
3383 if (!pevent->events) {
3384 do_warning("no event_list!");
3385 return -1;
3386 }
3387
3388 event = pevent->events[0];
3389 field = tep_find_common_field(event, type);
3390 if (!field)
3391 return -1;
3392
3393 *offset = field->offset;
3394 *size = field->size;
3395
3396 return 0;
3397 }
3398
__parse_common(struct tep_handle * pevent,void * data,int * size,int * offset,const char * name)3399 static int __parse_common(struct tep_handle *pevent, void *data,
3400 int *size, int *offset, const char *name)
3401 {
3402 int ret;
3403
3404 if (!*size) {
3405 ret = get_common_info(pevent, name, offset, size);
3406 if (ret < 0)
3407 return ret;
3408 }
3409 return tep_read_number(pevent, data + *offset, *size);
3410 }
3411
trace_parse_common_type(struct tep_handle * pevent,void * data)3412 static int trace_parse_common_type(struct tep_handle *pevent, void *data)
3413 {
3414 return __parse_common(pevent, data,
3415 &pevent->type_size, &pevent->type_offset,
3416 "common_type");
3417 }
3418
parse_common_pid(struct tep_handle * pevent,void * data)3419 static int parse_common_pid(struct tep_handle *pevent, void *data)
3420 {
3421 return __parse_common(pevent, data,
3422 &pevent->pid_size, &pevent->pid_offset,
3423 "common_pid");
3424 }
3425
parse_common_pc(struct tep_handle * pevent,void * data)3426 static int parse_common_pc(struct tep_handle *pevent, void *data)
3427 {
3428 return __parse_common(pevent, data,
3429 &pevent->pc_size, &pevent->pc_offset,
3430 "common_preempt_count");
3431 }
3432
parse_common_flags(struct tep_handle * pevent,void * data)3433 static int parse_common_flags(struct tep_handle *pevent, void *data)
3434 {
3435 return __parse_common(pevent, data,
3436 &pevent->flags_size, &pevent->flags_offset,
3437 "common_flags");
3438 }
3439
parse_common_lock_depth(struct tep_handle * pevent,void * data)3440 static int parse_common_lock_depth(struct tep_handle *pevent, void *data)
3441 {
3442 return __parse_common(pevent, data,
3443 &pevent->ld_size, &pevent->ld_offset,
3444 "common_lock_depth");
3445 }
3446
parse_common_migrate_disable(struct tep_handle * pevent,void * data)3447 static int parse_common_migrate_disable(struct tep_handle *pevent, void *data)
3448 {
3449 return __parse_common(pevent, data,
3450 &pevent->ld_size, &pevent->ld_offset,
3451 "common_migrate_disable");
3452 }
3453
3454 static int events_id_cmp(const void *a, const void *b);
3455
3456 /**
3457 * tep_find_event - find an event by given id
3458 * @pevent: a handle to the pevent
3459 * @id: the id of the event
3460 *
3461 * Returns an event that has a given @id.
3462 */
tep_find_event(struct tep_handle * pevent,int id)3463 struct event_format *tep_find_event(struct tep_handle *pevent, int id)
3464 {
3465 struct event_format **eventptr;
3466 struct event_format key;
3467 struct event_format *pkey = &key;
3468
3469 /* Check cache first */
3470 if (pevent->last_event && pevent->last_event->id == id)
3471 return pevent->last_event;
3472
3473 key.id = id;
3474
3475 eventptr = bsearch(&pkey, pevent->events, pevent->nr_events,
3476 sizeof(*pevent->events), events_id_cmp);
3477
3478 if (eventptr) {
3479 pevent->last_event = *eventptr;
3480 return *eventptr;
3481 }
3482
3483 return NULL;
3484 }
3485
3486 /**
3487 * tep_find_event_by_name - find an event by given name
3488 * @pevent: a handle to the pevent
3489 * @sys: the system name to search for
3490 * @name: the name of the event to search for
3491 *
3492 * This returns an event with a given @name and under the system
3493 * @sys. If @sys is NULL the first event with @name is returned.
3494 */
3495 struct event_format *
tep_find_event_by_name(struct tep_handle * pevent,const char * sys,const char * name)3496 tep_find_event_by_name(struct tep_handle *pevent,
3497 const char *sys, const char *name)
3498 {
3499 struct event_format *event;
3500 int i;
3501
3502 if (pevent->last_event &&
3503 strcmp(pevent->last_event->name, name) == 0 &&
3504 (!sys || strcmp(pevent->last_event->system, sys) == 0))
3505 return pevent->last_event;
3506
3507 for (i = 0; i < pevent->nr_events; i++) {
3508 event = pevent->events[i];
3509 if (strcmp(event->name, name) == 0) {
3510 if (!sys)
3511 break;
3512 if (strcmp(event->system, sys) == 0)
3513 break;
3514 }
3515 }
3516 if (i == pevent->nr_events)
3517 event = NULL;
3518
3519 pevent->last_event = event;
3520 return event;
3521 }
3522
3523 static unsigned long long
eval_num_arg(void * data,int size,struct event_format * event,struct print_arg * arg)3524 eval_num_arg(void *data, int size, struct event_format *event, struct print_arg *arg)
3525 {
3526 struct tep_handle *pevent = event->pevent;
3527 unsigned long long val = 0;
3528 unsigned long long left, right;
3529 struct print_arg *typearg = NULL;
3530 struct print_arg *larg;
3531 unsigned long offset;
3532 unsigned int field_size;
3533
3534 switch (arg->type) {
3535 case PRINT_NULL:
3536 /* ?? */
3537 return 0;
3538 case PRINT_ATOM:
3539 return strtoull(arg->atom.atom, NULL, 0);
3540 case PRINT_FIELD:
3541 if (!arg->field.field) {
3542 arg->field.field = tep_find_any_field(event, arg->field.name);
3543 if (!arg->field.field)
3544 goto out_warning_field;
3545
3546 }
3547 /* must be a number */
3548 val = tep_read_number(pevent, data + arg->field.field->offset,
3549 arg->field.field->size);
3550 break;
3551 case PRINT_FLAGS:
3552 case PRINT_SYMBOL:
3553 case PRINT_INT_ARRAY:
3554 case PRINT_HEX:
3555 case PRINT_HEX_STR:
3556 break;
3557 case PRINT_TYPE:
3558 val = eval_num_arg(data, size, event, arg->typecast.item);
3559 return eval_type(val, arg, 0);
3560 case PRINT_STRING:
3561 case PRINT_BSTRING:
3562 case PRINT_BITMASK:
3563 return 0;
3564 case PRINT_FUNC: {
3565 struct trace_seq s;
3566 trace_seq_init(&s);
3567 val = process_defined_func(&s, data, size, event, arg);
3568 trace_seq_destroy(&s);
3569 return val;
3570 }
3571 case PRINT_OP:
3572 if (strcmp(arg->op.op, "[") == 0) {
3573 /*
3574 * Arrays are special, since we don't want
3575 * to read the arg as is.
3576 */
3577 right = eval_num_arg(data, size, event, arg->op.right);
3578
3579 /* handle typecasts */
3580 larg = arg->op.left;
3581 while (larg->type == PRINT_TYPE) {
3582 if (!typearg)
3583 typearg = larg;
3584 larg = larg->typecast.item;
3585 }
3586
3587 /* Default to long size */
3588 field_size = pevent->long_size;
3589
3590 switch (larg->type) {
3591 case PRINT_DYNAMIC_ARRAY:
3592 offset = tep_read_number(pevent,
3593 data + larg->dynarray.field->offset,
3594 larg->dynarray.field->size);
3595 if (larg->dynarray.field->elementsize)
3596 field_size = larg->dynarray.field->elementsize;
3597 /*
3598 * The actual length of the dynamic array is stored
3599 * in the top half of the field, and the offset
3600 * is in the bottom half of the 32 bit field.
3601 */
3602 offset &= 0xffff;
3603 offset += right;
3604 break;
3605 case PRINT_FIELD:
3606 if (!larg->field.field) {
3607 larg->field.field =
3608 tep_find_any_field(event, larg->field.name);
3609 if (!larg->field.field) {
3610 arg = larg;
3611 goto out_warning_field;
3612 }
3613 }
3614 field_size = larg->field.field->elementsize;
3615 offset = larg->field.field->offset +
3616 right * larg->field.field->elementsize;
3617 break;
3618 default:
3619 goto default_op; /* oops, all bets off */
3620 }
3621 val = tep_read_number(pevent,
3622 data + offset, field_size);
3623 if (typearg)
3624 val = eval_type(val, typearg, 1);
3625 break;
3626 } else if (strcmp(arg->op.op, "?") == 0) {
3627 left = eval_num_arg(data, size, event, arg->op.left);
3628 arg = arg->op.right;
3629 if (left)
3630 val = eval_num_arg(data, size, event, arg->op.left);
3631 else
3632 val = eval_num_arg(data, size, event, arg->op.right);
3633 break;
3634 }
3635 default_op:
3636 left = eval_num_arg(data, size, event, arg->op.left);
3637 right = eval_num_arg(data, size, event, arg->op.right);
3638 switch (arg->op.op[0]) {
3639 case '!':
3640 switch (arg->op.op[1]) {
3641 case 0:
3642 val = !right;
3643 break;
3644 case '=':
3645 val = left != right;
3646 break;
3647 default:
3648 goto out_warning_op;
3649 }
3650 break;
3651 case '~':
3652 val = ~right;
3653 break;
3654 case '|':
3655 if (arg->op.op[1])
3656 val = left || right;
3657 else
3658 val = left | right;
3659 break;
3660 case '&':
3661 if (arg->op.op[1])
3662 val = left && right;
3663 else
3664 val = left & right;
3665 break;
3666 case '<':
3667 switch (arg->op.op[1]) {
3668 case 0:
3669 val = left < right;
3670 break;
3671 case '<':
3672 val = left << right;
3673 break;
3674 case '=':
3675 val = left <= right;
3676 break;
3677 default:
3678 goto out_warning_op;
3679 }
3680 break;
3681 case '>':
3682 switch (arg->op.op[1]) {
3683 case 0:
3684 val = left > right;
3685 break;
3686 case '>':
3687 val = left >> right;
3688 break;
3689 case '=':
3690 val = left >= right;
3691 break;
3692 default:
3693 goto out_warning_op;
3694 }
3695 break;
3696 case '=':
3697 if (arg->op.op[1] != '=')
3698 goto out_warning_op;
3699
3700 val = left == right;
3701 break;
3702 case '-':
3703 val = left - right;
3704 break;
3705 case '+':
3706 val = left + right;
3707 break;
3708 case '/':
3709 val = left / right;
3710 break;
3711 case '%':
3712 val = left % right;
3713 break;
3714 case '*':
3715 val = left * right;
3716 break;
3717 default:
3718 goto out_warning_op;
3719 }
3720 break;
3721 case PRINT_DYNAMIC_ARRAY_LEN:
3722 offset = tep_read_number(pevent,
3723 data + arg->dynarray.field->offset,
3724 arg->dynarray.field->size);
3725 /*
3726 * The total allocated length of the dynamic array is
3727 * stored in the top half of the field, and the offset
3728 * is in the bottom half of the 32 bit field.
3729 */
3730 val = (unsigned long long)(offset >> 16);
3731 break;
3732 case PRINT_DYNAMIC_ARRAY:
3733 /* Without [], we pass the address to the dynamic data */
3734 offset = tep_read_number(pevent,
3735 data + arg->dynarray.field->offset,
3736 arg->dynarray.field->size);
3737 /*
3738 * The total allocated length of the dynamic array is
3739 * stored in the top half of the field, and the offset
3740 * is in the bottom half of the 32 bit field.
3741 */
3742 offset &= 0xffff;
3743 val = (unsigned long long)((unsigned long)data + offset);
3744 break;
3745 default: /* not sure what to do there */
3746 return 0;
3747 }
3748 return val;
3749
3750 out_warning_op:
3751 do_warning_event(event, "%s: unknown op '%s'", __func__, arg->op.op);
3752 return 0;
3753
3754 out_warning_field:
3755 do_warning_event(event, "%s: field %s not found",
3756 __func__, arg->field.name);
3757 return 0;
3758 }
3759
3760 struct flag {
3761 const char *name;
3762 unsigned long long value;
3763 };
3764
3765 static const struct flag flags[] = {
3766 { "HI_SOFTIRQ", 0 },
3767 { "TIMER_SOFTIRQ", 1 },
3768 { "NET_TX_SOFTIRQ", 2 },
3769 { "NET_RX_SOFTIRQ", 3 },
3770 { "BLOCK_SOFTIRQ", 4 },
3771 { "IRQ_POLL_SOFTIRQ", 5 },
3772 { "TASKLET_SOFTIRQ", 6 },
3773 { "SCHED_SOFTIRQ", 7 },
3774 { "HRTIMER_SOFTIRQ", 8 },
3775 { "RCU_SOFTIRQ", 9 },
3776
3777 { "HRTIMER_NORESTART", 0 },
3778 { "HRTIMER_RESTART", 1 },
3779 };
3780
eval_flag(const char * flag)3781 static long long eval_flag(const char *flag)
3782 {
3783 int i;
3784
3785 /*
3786 * Some flags in the format files do not get converted.
3787 * If the flag is not numeric, see if it is something that
3788 * we already know about.
3789 */
3790 if (isdigit(flag[0]))
3791 return strtoull(flag, NULL, 0);
3792
3793 for (i = 0; i < (int)(sizeof(flags)/sizeof(flags[0])); i++)
3794 if (strcmp(flags[i].name, flag) == 0)
3795 return flags[i].value;
3796
3797 return -1LL;
3798 }
3799
print_str_to_seq(struct trace_seq * s,const char * format,int len_arg,const char * str)3800 static void print_str_to_seq(struct trace_seq *s, const char *format,
3801 int len_arg, const char *str)
3802 {
3803 if (len_arg >= 0)
3804 trace_seq_printf(s, format, len_arg, str);
3805 else
3806 trace_seq_printf(s, format, str);
3807 }
3808
print_bitmask_to_seq(struct tep_handle * pevent,struct trace_seq * s,const char * format,int len_arg,const void * data,int size)3809 static void print_bitmask_to_seq(struct tep_handle *pevent,
3810 struct trace_seq *s, const char *format,
3811 int len_arg, const void *data, int size)
3812 {
3813 int nr_bits = size * 8;
3814 int str_size = (nr_bits + 3) / 4;
3815 int len = 0;
3816 char buf[3];
3817 char *str;
3818 int index;
3819 int i;
3820
3821 /*
3822 * The kernel likes to put in commas every 32 bits, we
3823 * can do the same.
3824 */
3825 str_size += (nr_bits - 1) / 32;
3826
3827 str = malloc(str_size + 1);
3828 if (!str) {
3829 do_warning("%s: not enough memory!", __func__);
3830 return;
3831 }
3832 str[str_size] = 0;
3833
3834 /* Start out with -2 for the two chars per byte */
3835 for (i = str_size - 2; i >= 0; i -= 2) {
3836 /*
3837 * data points to a bit mask of size bytes.
3838 * In the kernel, this is an array of long words, thus
3839 * endianess is very important.
3840 */
3841 if (pevent->file_bigendian)
3842 index = size - (len + 1);
3843 else
3844 index = len;
3845
3846 snprintf(buf, 3, "%02x", *((unsigned char *)data + index));
3847 memcpy(str + i, buf, 2);
3848 len++;
3849 if (!(len & 3) && i > 0) {
3850 i--;
3851 str[i] = ',';
3852 }
3853 }
3854
3855 if (len_arg >= 0)
3856 trace_seq_printf(s, format, len_arg, str);
3857 else
3858 trace_seq_printf(s, format, str);
3859
3860 free(str);
3861 }
3862
print_str_arg(struct trace_seq * s,void * data,int size,struct event_format * event,const char * format,int len_arg,struct print_arg * arg)3863 static void print_str_arg(struct trace_seq *s, void *data, int size,
3864 struct event_format *event, const char *format,
3865 int len_arg, struct print_arg *arg)
3866 {
3867 struct tep_handle *pevent = event->pevent;
3868 struct print_flag_sym *flag;
3869 struct format_field *field;
3870 struct printk_map *printk;
3871 long long val, fval;
3872 unsigned long long addr;
3873 char *str;
3874 unsigned char *hex;
3875 int print;
3876 int i, len;
3877
3878 switch (arg->type) {
3879 case PRINT_NULL:
3880 /* ?? */
3881 return;
3882 case PRINT_ATOM:
3883 print_str_to_seq(s, format, len_arg, arg->atom.atom);
3884 return;
3885 case PRINT_FIELD:
3886 field = arg->field.field;
3887 if (!field) {
3888 field = tep_find_any_field(event, arg->field.name);
3889 if (!field) {
3890 str = arg->field.name;
3891 goto out_warning_field;
3892 }
3893 arg->field.field = field;
3894 }
3895 /* Zero sized fields, mean the rest of the data */
3896 len = field->size ? : size - field->offset;
3897
3898 /*
3899 * Some events pass in pointers. If this is not an array
3900 * and the size is the same as long_size, assume that it
3901 * is a pointer.
3902 */
3903 if (!(field->flags & FIELD_IS_ARRAY) &&
3904 field->size == pevent->long_size) {
3905
3906 /* Handle heterogeneous recording and processing
3907 * architectures
3908 *
3909 * CASE I:
3910 * Traces recorded on 32-bit devices (32-bit
3911 * addressing) and processed on 64-bit devices:
3912 * In this case, only 32 bits should be read.
3913 *
3914 * CASE II:
3915 * Traces recorded on 64 bit devices and processed
3916 * on 32-bit devices:
3917 * In this case, 64 bits must be read.
3918 */
3919 addr = (pevent->long_size == 8) ?
3920 *(unsigned long long *)(data + field->offset) :
3921 (unsigned long long)*(unsigned int *)(data + field->offset);
3922
3923 /* Check if it matches a print format */
3924 printk = find_printk(pevent, addr);
3925 if (printk)
3926 trace_seq_puts(s, printk->printk);
3927 else
3928 trace_seq_printf(s, "%llx", addr);
3929 break;
3930 }
3931 str = malloc(len + 1);
3932 if (!str) {
3933 do_warning_event(event, "%s: not enough memory!",
3934 __func__);
3935 return;
3936 }
3937 memcpy(str, data + field->offset, len);
3938 str[len] = 0;
3939 print_str_to_seq(s, format, len_arg, str);
3940 free(str);
3941 break;
3942 case PRINT_FLAGS:
3943 val = eval_num_arg(data, size, event, arg->flags.field);
3944 print = 0;
3945 for (flag = arg->flags.flags; flag; flag = flag->next) {
3946 fval = eval_flag(flag->value);
3947 if (!val && fval < 0) {
3948 print_str_to_seq(s, format, len_arg, flag->str);
3949 break;
3950 }
3951 if (fval > 0 && (val & fval) == fval) {
3952 if (print && arg->flags.delim)
3953 trace_seq_puts(s, arg->flags.delim);
3954 print_str_to_seq(s, format, len_arg, flag->str);
3955 print = 1;
3956 val &= ~fval;
3957 }
3958 }
3959 if (val) {
3960 if (print && arg->flags.delim)
3961 trace_seq_puts(s, arg->flags.delim);
3962 trace_seq_printf(s, "0x%llx", val);
3963 }
3964 break;
3965 case PRINT_SYMBOL:
3966 val = eval_num_arg(data, size, event, arg->symbol.field);
3967 for (flag = arg->symbol.symbols; flag; flag = flag->next) {
3968 fval = eval_flag(flag->value);
3969 if (val == fval) {
3970 print_str_to_seq(s, format, len_arg, flag->str);
3971 break;
3972 }
3973 }
3974 if (!flag)
3975 trace_seq_printf(s, "0x%llx", val);
3976 break;
3977 case PRINT_HEX:
3978 case PRINT_HEX_STR:
3979 if (arg->hex.field->type == PRINT_DYNAMIC_ARRAY) {
3980 unsigned long offset;
3981 offset = tep_read_number(pevent,
3982 data + arg->hex.field->dynarray.field->offset,
3983 arg->hex.field->dynarray.field->size);
3984 hex = data + (offset & 0xffff);
3985 } else {
3986 field = arg->hex.field->field.field;
3987 if (!field) {
3988 str = arg->hex.field->field.name;
3989 field = tep_find_any_field(event, str);
3990 if (!field)
3991 goto out_warning_field;
3992 arg->hex.field->field.field = field;
3993 }
3994 hex = data + field->offset;
3995 }
3996 len = eval_num_arg(data, size, event, arg->hex.size);
3997 for (i = 0; i < len; i++) {
3998 if (i && arg->type == PRINT_HEX)
3999 trace_seq_putc(s, ' ');
4000 trace_seq_printf(s, "%02x", hex[i]);
4001 }
4002 break;
4003
4004 case PRINT_INT_ARRAY: {
4005 void *num;
4006 int el_size;
4007
4008 if (arg->int_array.field->type == PRINT_DYNAMIC_ARRAY) {
4009 unsigned long offset;
4010 struct format_field *field =
4011 arg->int_array.field->dynarray.field;
4012 offset = tep_read_number(pevent,
4013 data + field->offset,
4014 field->size);
4015 num = data + (offset & 0xffff);
4016 } else {
4017 field = arg->int_array.field->field.field;
4018 if (!field) {
4019 str = arg->int_array.field->field.name;
4020 field = tep_find_any_field(event, str);
4021 if (!field)
4022 goto out_warning_field;
4023 arg->int_array.field->field.field = field;
4024 }
4025 num = data + field->offset;
4026 }
4027 len = eval_num_arg(data, size, event, arg->int_array.count);
4028 el_size = eval_num_arg(data, size, event,
4029 arg->int_array.el_size);
4030 for (i = 0; i < len; i++) {
4031 if (i)
4032 trace_seq_putc(s, ' ');
4033
4034 if (el_size == 1) {
4035 trace_seq_printf(s, "%u", *(uint8_t *)num);
4036 } else if (el_size == 2) {
4037 trace_seq_printf(s, "%u", *(uint16_t *)num);
4038 } else if (el_size == 4) {
4039 trace_seq_printf(s, "%u", *(uint32_t *)num);
4040 } else if (el_size == 8) {
4041 trace_seq_printf(s, "%"PRIu64, *(uint64_t *)num);
4042 } else {
4043 trace_seq_printf(s, "BAD SIZE:%d 0x%x",
4044 el_size, *(uint8_t *)num);
4045 el_size = 1;
4046 }
4047
4048 num += el_size;
4049 }
4050 break;
4051 }
4052 case PRINT_TYPE:
4053 break;
4054 case PRINT_STRING: {
4055 int str_offset;
4056
4057 if (arg->string.offset == -1) {
4058 struct format_field *f;
4059
4060 f = tep_find_any_field(event, arg->string.string);
4061 arg->string.offset = f->offset;
4062 }
4063 str_offset = data2host4(pevent, data + arg->string.offset);
4064 str_offset &= 0xffff;
4065 print_str_to_seq(s, format, len_arg, ((char *)data) + str_offset);
4066 break;
4067 }
4068 case PRINT_BSTRING:
4069 print_str_to_seq(s, format, len_arg, arg->string.string);
4070 break;
4071 case PRINT_BITMASK: {
4072 int bitmask_offset;
4073 int bitmask_size;
4074
4075 if (arg->bitmask.offset == -1) {
4076 struct format_field *f;
4077
4078 f = tep_find_any_field(event, arg->bitmask.bitmask);
4079 arg->bitmask.offset = f->offset;
4080 }
4081 bitmask_offset = data2host4(pevent, data + arg->bitmask.offset);
4082 bitmask_size = bitmask_offset >> 16;
4083 bitmask_offset &= 0xffff;
4084 print_bitmask_to_seq(pevent, s, format, len_arg,
4085 data + bitmask_offset, bitmask_size);
4086 break;
4087 }
4088 case PRINT_OP:
4089 /*
4090 * The only op for string should be ? :
4091 */
4092 if (arg->op.op[0] != '?')
4093 return;
4094 val = eval_num_arg(data, size, event, arg->op.left);
4095 if (val)
4096 print_str_arg(s, data, size, event,
4097 format, len_arg, arg->op.right->op.left);
4098 else
4099 print_str_arg(s, data, size, event,
4100 format, len_arg, arg->op.right->op.right);
4101 break;
4102 case PRINT_FUNC:
4103 process_defined_func(s, data, size, event, arg);
4104 break;
4105 default:
4106 /* well... */
4107 break;
4108 }
4109
4110 return;
4111
4112 out_warning_field:
4113 do_warning_event(event, "%s: field %s not found",
4114 __func__, arg->field.name);
4115 }
4116
4117 static unsigned long long
process_defined_func(struct trace_seq * s,void * data,int size,struct event_format * event,struct print_arg * arg)4118 process_defined_func(struct trace_seq *s, void *data, int size,
4119 struct event_format *event, struct print_arg *arg)
4120 {
4121 struct tep_function_handler *func_handle = arg->func.func;
4122 struct func_params *param;
4123 unsigned long long *args;
4124 unsigned long long ret;
4125 struct print_arg *farg;
4126 struct trace_seq str;
4127 struct save_str {
4128 struct save_str *next;
4129 char *str;
4130 } *strings = NULL, *string;
4131 int i;
4132
4133 if (!func_handle->nr_args) {
4134 ret = (*func_handle->func)(s, NULL);
4135 goto out;
4136 }
4137
4138 farg = arg->func.args;
4139 param = func_handle->params;
4140
4141 ret = ULLONG_MAX;
4142 args = malloc(sizeof(*args) * func_handle->nr_args);
4143 if (!args)
4144 goto out;
4145
4146 for (i = 0; i < func_handle->nr_args; i++) {
4147 switch (param->type) {
4148 case TEP_FUNC_ARG_INT:
4149 case TEP_FUNC_ARG_LONG:
4150 case TEP_FUNC_ARG_PTR:
4151 args[i] = eval_num_arg(data, size, event, farg);
4152 break;
4153 case TEP_FUNC_ARG_STRING:
4154 trace_seq_init(&str);
4155 print_str_arg(&str, data, size, event, "%s", -1, farg);
4156 trace_seq_terminate(&str);
4157 string = malloc(sizeof(*string));
4158 if (!string) {
4159 do_warning_event(event, "%s(%d): malloc str",
4160 __func__, __LINE__);
4161 goto out_free;
4162 }
4163 string->next = strings;
4164 string->str = strdup(str.buffer);
4165 if (!string->str) {
4166 free(string);
4167 do_warning_event(event, "%s(%d): malloc str",
4168 __func__, __LINE__);
4169 goto out_free;
4170 }
4171 args[i] = (uintptr_t)string->str;
4172 strings = string;
4173 trace_seq_destroy(&str);
4174 break;
4175 default:
4176 /*
4177 * Something went totally wrong, this is not
4178 * an input error, something in this code broke.
4179 */
4180 do_warning_event(event, "Unexpected end of arguments\n");
4181 goto out_free;
4182 }
4183 farg = farg->next;
4184 param = param->next;
4185 }
4186
4187 ret = (*func_handle->func)(s, args);
4188 out_free:
4189 free(args);
4190 while (strings) {
4191 string = strings;
4192 strings = string->next;
4193 free(string->str);
4194 free(string);
4195 }
4196
4197 out:
4198 /* TBD : handle return type here */
4199 return ret;
4200 }
4201
free_args(struct print_arg * args)4202 static void free_args(struct print_arg *args)
4203 {
4204 struct print_arg *next;
4205
4206 while (args) {
4207 next = args->next;
4208
4209 free_arg(args);
4210 args = next;
4211 }
4212 }
4213
make_bprint_args(char * fmt,void * data,int size,struct event_format * event)4214 static struct print_arg *make_bprint_args(char *fmt, void *data, int size, struct event_format *event)
4215 {
4216 struct tep_handle *pevent = event->pevent;
4217 struct format_field *field, *ip_field;
4218 struct print_arg *args, *arg, **next;
4219 unsigned long long ip, val;
4220 char *ptr;
4221 void *bptr;
4222 int vsize;
4223
4224 field = pevent->bprint_buf_field;
4225 ip_field = pevent->bprint_ip_field;
4226
4227 if (!field) {
4228 field = tep_find_field(event, "buf");
4229 if (!field) {
4230 do_warning_event(event, "can't find buffer field for binary printk");
4231 return NULL;
4232 }
4233 ip_field = tep_find_field(event, "ip");
4234 if (!ip_field) {
4235 do_warning_event(event, "can't find ip field for binary printk");
4236 return NULL;
4237 }
4238 pevent->bprint_buf_field = field;
4239 pevent->bprint_ip_field = ip_field;
4240 }
4241
4242 ip = tep_read_number(pevent, data + ip_field->offset, ip_field->size);
4243
4244 /*
4245 * The first arg is the IP pointer.
4246 */
4247 args = alloc_arg();
4248 if (!args) {
4249 do_warning_event(event, "%s(%d): not enough memory!",
4250 __func__, __LINE__);
4251 return NULL;
4252 }
4253 arg = args;
4254 arg->next = NULL;
4255 next = &arg->next;
4256
4257 arg->type = PRINT_ATOM;
4258
4259 if (asprintf(&arg->atom.atom, "%lld", ip) < 0)
4260 goto out_free;
4261
4262 /* skip the first "%ps: " */
4263 for (ptr = fmt + 5, bptr = data + field->offset;
4264 bptr < data + size && *ptr; ptr++) {
4265 int ls = 0;
4266
4267 if (*ptr == '%') {
4268 process_again:
4269 ptr++;
4270 switch (*ptr) {
4271 case '%':
4272 break;
4273 case 'l':
4274 ls++;
4275 goto process_again;
4276 case 'L':
4277 ls = 2;
4278 goto process_again;
4279 case '0' ... '9':
4280 goto process_again;
4281 case '.':
4282 goto process_again;
4283 case 'z':
4284 case 'Z':
4285 ls = 1;
4286 goto process_again;
4287 case 'p':
4288 ls = 1;
4289 if (isalnum(ptr[1])) {
4290 ptr++;
4291 /* Check for special pointers */
4292 switch (*ptr) {
4293 case 's':
4294 case 'S':
4295 case 'f':
4296 case 'F':
4297 break;
4298 default:
4299 /*
4300 * Older kernels do not process
4301 * dereferenced pointers.
4302 * Only process if the pointer
4303 * value is a printable.
4304 */
4305 if (isprint(*(char *)bptr))
4306 goto process_string;
4307 }
4308 }
4309 /* fall through */
4310 case 'd':
4311 case 'u':
4312 case 'x':
4313 case 'i':
4314 switch (ls) {
4315 case 0:
4316 vsize = 4;
4317 break;
4318 case 1:
4319 vsize = pevent->long_size;
4320 break;
4321 case 2:
4322 vsize = 8;
4323 break;
4324 default:
4325 vsize = ls; /* ? */
4326 break;
4327 }
4328 /* fall through */
4329 case '*':
4330 if (*ptr == '*')
4331 vsize = 4;
4332
4333 /* the pointers are always 4 bytes aligned */
4334 bptr = (void *)(((unsigned long)bptr + 3) &
4335 ~3);
4336 val = tep_read_number(pevent, bptr, vsize);
4337 bptr += vsize;
4338 arg = alloc_arg();
4339 if (!arg) {
4340 do_warning_event(event, "%s(%d): not enough memory!",
4341 __func__, __LINE__);
4342 goto out_free;
4343 }
4344 arg->next = NULL;
4345 arg->type = PRINT_ATOM;
4346 if (asprintf(&arg->atom.atom, "%lld", val) < 0) {
4347 free(arg);
4348 goto out_free;
4349 }
4350 *next = arg;
4351 next = &arg->next;
4352 /*
4353 * The '*' case means that an arg is used as the length.
4354 * We need to continue to figure out for what.
4355 */
4356 if (*ptr == '*')
4357 goto process_again;
4358
4359 break;
4360 case 's':
4361 process_string:
4362 arg = alloc_arg();
4363 if (!arg) {
4364 do_warning_event(event, "%s(%d): not enough memory!",
4365 __func__, __LINE__);
4366 goto out_free;
4367 }
4368 arg->next = NULL;
4369 arg->type = PRINT_BSTRING;
4370 arg->string.string = strdup(bptr);
4371 if (!arg->string.string)
4372 goto out_free;
4373 bptr += strlen(bptr) + 1;
4374 *next = arg;
4375 next = &arg->next;
4376 default:
4377 break;
4378 }
4379 }
4380 }
4381
4382 return args;
4383
4384 out_free:
4385 free_args(args);
4386 return NULL;
4387 }
4388
4389 static char *
get_bprint_format(void * data,int size __maybe_unused,struct event_format * event)4390 get_bprint_format(void *data, int size __maybe_unused,
4391 struct event_format *event)
4392 {
4393 struct tep_handle *pevent = event->pevent;
4394 unsigned long long addr;
4395 struct format_field *field;
4396 struct printk_map *printk;
4397 char *format;
4398
4399 field = pevent->bprint_fmt_field;
4400
4401 if (!field) {
4402 field = tep_find_field(event, "fmt");
4403 if (!field) {
4404 do_warning_event(event, "can't find format field for binary printk");
4405 return NULL;
4406 }
4407 pevent->bprint_fmt_field = field;
4408 }
4409
4410 addr = tep_read_number(pevent, data + field->offset, field->size);
4411
4412 printk = find_printk(pevent, addr);
4413 if (!printk) {
4414 if (asprintf(&format, "%%pf: (NO FORMAT FOUND at %llx)\n", addr) < 0)
4415 return NULL;
4416 return format;
4417 }
4418
4419 if (asprintf(&format, "%s: %s", "%pf", printk->printk) < 0)
4420 return NULL;
4421
4422 return format;
4423 }
4424
print_mac_arg(struct trace_seq * s,int mac,void * data,int size,struct event_format * event,struct print_arg * arg)4425 static void print_mac_arg(struct trace_seq *s, int mac, void *data, int size,
4426 struct event_format *event, struct print_arg *arg)
4427 {
4428 unsigned char *buf;
4429 const char *fmt = "%.2x:%.2x:%.2x:%.2x:%.2x:%.2x";
4430
4431 if (arg->type == PRINT_FUNC) {
4432 process_defined_func(s, data, size, event, arg);
4433 return;
4434 }
4435
4436 if (arg->type != PRINT_FIELD) {
4437 trace_seq_printf(s, "ARG TYPE NOT FIELD BUT %d",
4438 arg->type);
4439 return;
4440 }
4441
4442 if (mac == 'm')
4443 fmt = "%.2x%.2x%.2x%.2x%.2x%.2x";
4444 if (!arg->field.field) {
4445 arg->field.field =
4446 tep_find_any_field(event, arg->field.name);
4447 if (!arg->field.field) {
4448 do_warning_event(event, "%s: field %s not found",
4449 __func__, arg->field.name);
4450 return;
4451 }
4452 }
4453 if (arg->field.field->size != 6) {
4454 trace_seq_printf(s, "INVALIDMAC");
4455 return;
4456 }
4457 buf = data + arg->field.field->offset;
4458 trace_seq_printf(s, fmt, buf[0], buf[1], buf[2], buf[3], buf[4], buf[5]);
4459 }
4460
print_ip4_addr(struct trace_seq * s,char i,unsigned char * buf)4461 static void print_ip4_addr(struct trace_seq *s, char i, unsigned char *buf)
4462 {
4463 const char *fmt;
4464
4465 if (i == 'i')
4466 fmt = "%03d.%03d.%03d.%03d";
4467 else
4468 fmt = "%d.%d.%d.%d";
4469
4470 trace_seq_printf(s, fmt, buf[0], buf[1], buf[2], buf[3]);
4471 }
4472
ipv6_addr_v4mapped(const struct in6_addr * a)4473 static inline bool ipv6_addr_v4mapped(const struct in6_addr *a)
4474 {
4475 return ((unsigned long)(a->s6_addr32[0] | a->s6_addr32[1]) |
4476 (unsigned long)(a->s6_addr32[2] ^ htonl(0x0000ffff))) == 0UL;
4477 }
4478
ipv6_addr_is_isatap(const struct in6_addr * addr)4479 static inline bool ipv6_addr_is_isatap(const struct in6_addr *addr)
4480 {
4481 return (addr->s6_addr32[2] | htonl(0x02000000)) == htonl(0x02005EFE);
4482 }
4483
print_ip6c_addr(struct trace_seq * s,unsigned char * addr)4484 static void print_ip6c_addr(struct trace_seq *s, unsigned char *addr)
4485 {
4486 int i, j, range;
4487 unsigned char zerolength[8];
4488 int longest = 1;
4489 int colonpos = -1;
4490 uint16_t word;
4491 uint8_t hi, lo;
4492 bool needcolon = false;
4493 bool useIPv4;
4494 struct in6_addr in6;
4495
4496 memcpy(&in6, addr, sizeof(struct in6_addr));
4497
4498 useIPv4 = ipv6_addr_v4mapped(&in6) || ipv6_addr_is_isatap(&in6);
4499
4500 memset(zerolength, 0, sizeof(zerolength));
4501
4502 if (useIPv4)
4503 range = 6;
4504 else
4505 range = 8;
4506
4507 /* find position of longest 0 run */
4508 for (i = 0; i < range; i++) {
4509 for (j = i; j < range; j++) {
4510 if (in6.s6_addr16[j] != 0)
4511 break;
4512 zerolength[i]++;
4513 }
4514 }
4515 for (i = 0; i < range; i++) {
4516 if (zerolength[i] > longest) {
4517 longest = zerolength[i];
4518 colonpos = i;
4519 }
4520 }
4521 if (longest == 1) /* don't compress a single 0 */
4522 colonpos = -1;
4523
4524 /* emit address */
4525 for (i = 0; i < range; i++) {
4526 if (i == colonpos) {
4527 if (needcolon || i == 0)
4528 trace_seq_printf(s, ":");
4529 trace_seq_printf(s, ":");
4530 needcolon = false;
4531 i += longest - 1;
4532 continue;
4533 }
4534 if (needcolon) {
4535 trace_seq_printf(s, ":");
4536 needcolon = false;
4537 }
4538 /* hex u16 without leading 0s */
4539 word = ntohs(in6.s6_addr16[i]);
4540 hi = word >> 8;
4541 lo = word & 0xff;
4542 if (hi)
4543 trace_seq_printf(s, "%x%02x", hi, lo);
4544 else
4545 trace_seq_printf(s, "%x", lo);
4546
4547 needcolon = true;
4548 }
4549
4550 if (useIPv4) {
4551 if (needcolon)
4552 trace_seq_printf(s, ":");
4553 print_ip4_addr(s, 'I', &in6.s6_addr[12]);
4554 }
4555
4556 return;
4557 }
4558
print_ip6_addr(struct trace_seq * s,char i,unsigned char * buf)4559 static void print_ip6_addr(struct trace_seq *s, char i, unsigned char *buf)
4560 {
4561 int j;
4562
4563 for (j = 0; j < 16; j += 2) {
4564 trace_seq_printf(s, "%02x%02x", buf[j], buf[j+1]);
4565 if (i == 'I' && j < 14)
4566 trace_seq_printf(s, ":");
4567 }
4568 }
4569
4570 /*
4571 * %pi4 print an IPv4 address with leading zeros
4572 * %pI4 print an IPv4 address without leading zeros
4573 * %pi6 print an IPv6 address without colons
4574 * %pI6 print an IPv6 address with colons
4575 * %pI6c print an IPv6 address in compressed form with colons
4576 * %pISpc print an IP address based on sockaddr; p adds port.
4577 */
print_ipv4_arg(struct trace_seq * s,const char * ptr,char i,void * data,int size,struct event_format * event,struct print_arg * arg)4578 static int print_ipv4_arg(struct trace_seq *s, const char *ptr, char i,
4579 void *data, int size, struct event_format *event,
4580 struct print_arg *arg)
4581 {
4582 unsigned char *buf;
4583
4584 if (arg->type == PRINT_FUNC) {
4585 process_defined_func(s, data, size, event, arg);
4586 return 0;
4587 }
4588
4589 if (arg->type != PRINT_FIELD) {
4590 trace_seq_printf(s, "ARG TYPE NOT FIELD BUT %d", arg->type);
4591 return 0;
4592 }
4593
4594 if (!arg->field.field) {
4595 arg->field.field =
4596 tep_find_any_field(event, arg->field.name);
4597 if (!arg->field.field) {
4598 do_warning("%s: field %s not found",
4599 __func__, arg->field.name);
4600 return 0;
4601 }
4602 }
4603
4604 buf = data + arg->field.field->offset;
4605
4606 if (arg->field.field->size != 4) {
4607 trace_seq_printf(s, "INVALIDIPv4");
4608 return 0;
4609 }
4610 print_ip4_addr(s, i, buf);
4611
4612 return 0;
4613 }
4614
print_ipv6_arg(struct trace_seq * s,const char * ptr,char i,void * data,int size,struct event_format * event,struct print_arg * arg)4615 static int print_ipv6_arg(struct trace_seq *s, const char *ptr, char i,
4616 void *data, int size, struct event_format *event,
4617 struct print_arg *arg)
4618 {
4619 char have_c = 0;
4620 unsigned char *buf;
4621 int rc = 0;
4622
4623 /* pI6c */
4624 if (i == 'I' && *ptr == 'c') {
4625 have_c = 1;
4626 ptr++;
4627 rc++;
4628 }
4629
4630 if (arg->type == PRINT_FUNC) {
4631 process_defined_func(s, data, size, event, arg);
4632 return rc;
4633 }
4634
4635 if (arg->type != PRINT_FIELD) {
4636 trace_seq_printf(s, "ARG TYPE NOT FIELD BUT %d", arg->type);
4637 return rc;
4638 }
4639
4640 if (!arg->field.field) {
4641 arg->field.field =
4642 tep_find_any_field(event, arg->field.name);
4643 if (!arg->field.field) {
4644 do_warning("%s: field %s not found",
4645 __func__, arg->field.name);
4646 return rc;
4647 }
4648 }
4649
4650 buf = data + arg->field.field->offset;
4651
4652 if (arg->field.field->size != 16) {
4653 trace_seq_printf(s, "INVALIDIPv6");
4654 return rc;
4655 }
4656
4657 if (have_c)
4658 print_ip6c_addr(s, buf);
4659 else
4660 print_ip6_addr(s, i, buf);
4661
4662 return rc;
4663 }
4664
print_ipsa_arg(struct trace_seq * s,const char * ptr,char i,void * data,int size,struct event_format * event,struct print_arg * arg)4665 static int print_ipsa_arg(struct trace_seq *s, const char *ptr, char i,
4666 void *data, int size, struct event_format *event,
4667 struct print_arg *arg)
4668 {
4669 char have_c = 0, have_p = 0;
4670 unsigned char *buf;
4671 struct sockaddr_storage *sa;
4672 int rc = 0;
4673
4674 /* pISpc */
4675 if (i == 'I') {
4676 if (*ptr == 'p') {
4677 have_p = 1;
4678 ptr++;
4679 rc++;
4680 }
4681 if (*ptr == 'c') {
4682 have_c = 1;
4683 ptr++;
4684 rc++;
4685 }
4686 }
4687
4688 if (arg->type == PRINT_FUNC) {
4689 process_defined_func(s, data, size, event, arg);
4690 return rc;
4691 }
4692
4693 if (arg->type != PRINT_FIELD) {
4694 trace_seq_printf(s, "ARG TYPE NOT FIELD BUT %d", arg->type);
4695 return rc;
4696 }
4697
4698 if (!arg->field.field) {
4699 arg->field.field =
4700 tep_find_any_field(event, arg->field.name);
4701 if (!arg->field.field) {
4702 do_warning("%s: field %s not found",
4703 __func__, arg->field.name);
4704 return rc;
4705 }
4706 }
4707
4708 sa = (struct sockaddr_storage *) (data + arg->field.field->offset);
4709
4710 if (sa->ss_family == AF_INET) {
4711 struct sockaddr_in *sa4 = (struct sockaddr_in *) sa;
4712
4713 if (arg->field.field->size < sizeof(struct sockaddr_in)) {
4714 trace_seq_printf(s, "INVALIDIPv4");
4715 return rc;
4716 }
4717
4718 print_ip4_addr(s, i, (unsigned char *) &sa4->sin_addr);
4719 if (have_p)
4720 trace_seq_printf(s, ":%d", ntohs(sa4->sin_port));
4721
4722
4723 } else if (sa->ss_family == AF_INET6) {
4724 struct sockaddr_in6 *sa6 = (struct sockaddr_in6 *) sa;
4725
4726 if (arg->field.field->size < sizeof(struct sockaddr_in6)) {
4727 trace_seq_printf(s, "INVALIDIPv6");
4728 return rc;
4729 }
4730
4731 if (have_p)
4732 trace_seq_printf(s, "[");
4733
4734 buf = (unsigned char *) &sa6->sin6_addr;
4735 if (have_c)
4736 print_ip6c_addr(s, buf);
4737 else
4738 print_ip6_addr(s, i, buf);
4739
4740 if (have_p)
4741 trace_seq_printf(s, "]:%d", ntohs(sa6->sin6_port));
4742 }
4743
4744 return rc;
4745 }
4746
print_ip_arg(struct trace_seq * s,const char * ptr,void * data,int size,struct event_format * event,struct print_arg * arg)4747 static int print_ip_arg(struct trace_seq *s, const char *ptr,
4748 void *data, int size, struct event_format *event,
4749 struct print_arg *arg)
4750 {
4751 char i = *ptr; /* 'i' or 'I' */
4752 char ver;
4753 int rc = 0;
4754
4755 ptr++;
4756 rc++;
4757
4758 ver = *ptr;
4759 ptr++;
4760 rc++;
4761
4762 switch (ver) {
4763 case '4':
4764 rc += print_ipv4_arg(s, ptr, i, data, size, event, arg);
4765 break;
4766 case '6':
4767 rc += print_ipv6_arg(s, ptr, i, data, size, event, arg);
4768 break;
4769 case 'S':
4770 rc += print_ipsa_arg(s, ptr, i, data, size, event, arg);
4771 break;
4772 default:
4773 return 0;
4774 }
4775
4776 return rc;
4777 }
4778
is_printable_array(char * p,unsigned int len)4779 static int is_printable_array(char *p, unsigned int len)
4780 {
4781 unsigned int i;
4782
4783 for (i = 0; i < len && p[i]; i++)
4784 if (!isprint(p[i]) && !isspace(p[i]))
4785 return 0;
4786 return 1;
4787 }
4788
tep_print_field(struct trace_seq * s,void * data,struct format_field * field)4789 void tep_print_field(struct trace_seq *s, void *data,
4790 struct format_field *field)
4791 {
4792 unsigned long long val;
4793 unsigned int offset, len, i;
4794 struct tep_handle *pevent = field->event->pevent;
4795
4796 if (field->flags & FIELD_IS_ARRAY) {
4797 offset = field->offset;
4798 len = field->size;
4799 if (field->flags & FIELD_IS_DYNAMIC) {
4800 val = tep_read_number(pevent, data + offset, len);
4801 offset = val;
4802 len = offset >> 16;
4803 offset &= 0xffff;
4804 }
4805 if (field->flags & FIELD_IS_STRING &&
4806 is_printable_array(data + offset, len)) {
4807 trace_seq_printf(s, "%s", (char *)data + offset);
4808 } else {
4809 trace_seq_puts(s, "ARRAY[");
4810 for (i = 0; i < len; i++) {
4811 if (i)
4812 trace_seq_puts(s, ", ");
4813 trace_seq_printf(s, "%02x",
4814 *((unsigned char *)data + offset + i));
4815 }
4816 trace_seq_putc(s, ']');
4817 field->flags &= ~FIELD_IS_STRING;
4818 }
4819 } else {
4820 val = tep_read_number(pevent, data + field->offset,
4821 field->size);
4822 if (field->flags & FIELD_IS_POINTER) {
4823 trace_seq_printf(s, "0x%llx", val);
4824 } else if (field->flags & FIELD_IS_SIGNED) {
4825 switch (field->size) {
4826 case 4:
4827 /*
4828 * If field is long then print it in hex.
4829 * A long usually stores pointers.
4830 */
4831 if (field->flags & FIELD_IS_LONG)
4832 trace_seq_printf(s, "0x%x", (int)val);
4833 else
4834 trace_seq_printf(s, "%d", (int)val);
4835 break;
4836 case 2:
4837 trace_seq_printf(s, "%2d", (short)val);
4838 break;
4839 case 1:
4840 trace_seq_printf(s, "%1d", (char)val);
4841 break;
4842 default:
4843 trace_seq_printf(s, "%lld", val);
4844 }
4845 } else {
4846 if (field->flags & FIELD_IS_LONG)
4847 trace_seq_printf(s, "0x%llx", val);
4848 else
4849 trace_seq_printf(s, "%llu", val);
4850 }
4851 }
4852 }
4853
tep_print_fields(struct trace_seq * s,void * data,int size __maybe_unused,struct event_format * event)4854 void tep_print_fields(struct trace_seq *s, void *data,
4855 int size __maybe_unused, struct event_format *event)
4856 {
4857 struct format_field *field;
4858
4859 field = event->format.fields;
4860 while (field) {
4861 trace_seq_printf(s, " %s=", field->name);
4862 tep_print_field(s, data, field);
4863 field = field->next;
4864 }
4865 }
4866
pretty_print(struct trace_seq * s,void * data,int size,struct event_format * event)4867 static void pretty_print(struct trace_seq *s, void *data, int size, struct event_format *event)
4868 {
4869 struct tep_handle *pevent = event->pevent;
4870 struct print_fmt *print_fmt = &event->print_fmt;
4871 struct print_arg *arg = print_fmt->args;
4872 struct print_arg *args = NULL;
4873 const char *ptr = print_fmt->format;
4874 unsigned long long val;
4875 struct func_map *func;
4876 const char *saveptr;
4877 struct trace_seq p;
4878 char *bprint_fmt = NULL;
4879 char format[32];
4880 int show_func;
4881 int len_as_arg;
4882 int len_arg;
4883 int len;
4884 int ls;
4885
4886 if (event->flags & EVENT_FL_FAILED) {
4887 trace_seq_printf(s, "[FAILED TO PARSE]");
4888 tep_print_fields(s, data, size, event);
4889 return;
4890 }
4891
4892 if (event->flags & EVENT_FL_ISBPRINT) {
4893 bprint_fmt = get_bprint_format(data, size, event);
4894 args = make_bprint_args(bprint_fmt, data, size, event);
4895 arg = args;
4896 ptr = bprint_fmt;
4897 }
4898
4899 for (; *ptr; ptr++) {
4900 ls = 0;
4901 if (*ptr == '\\') {
4902 ptr++;
4903 switch (*ptr) {
4904 case 'n':
4905 trace_seq_putc(s, '\n');
4906 break;
4907 case 't':
4908 trace_seq_putc(s, '\t');
4909 break;
4910 case 'r':
4911 trace_seq_putc(s, '\r');
4912 break;
4913 case '\\':
4914 trace_seq_putc(s, '\\');
4915 break;
4916 default:
4917 trace_seq_putc(s, *ptr);
4918 break;
4919 }
4920
4921 } else if (*ptr == '%') {
4922 saveptr = ptr;
4923 show_func = 0;
4924 len_as_arg = 0;
4925 cont_process:
4926 ptr++;
4927 switch (*ptr) {
4928 case '%':
4929 trace_seq_putc(s, '%');
4930 break;
4931 case '#':
4932 /* FIXME: need to handle properly */
4933 goto cont_process;
4934 case 'h':
4935 ls--;
4936 goto cont_process;
4937 case 'l':
4938 ls++;
4939 goto cont_process;
4940 case 'L':
4941 ls = 2;
4942 goto cont_process;
4943 case '*':
4944 /* The argument is the length. */
4945 if (!arg) {
4946 do_warning_event(event, "no argument match");
4947 event->flags |= EVENT_FL_FAILED;
4948 goto out_failed;
4949 }
4950 len_arg = eval_num_arg(data, size, event, arg);
4951 len_as_arg = 1;
4952 arg = arg->next;
4953 goto cont_process;
4954 case '.':
4955 case 'z':
4956 case 'Z':
4957 case '0' ... '9':
4958 case '-':
4959 goto cont_process;
4960 case 'p':
4961 if (pevent->long_size == 4)
4962 ls = 1;
4963 else
4964 ls = 2;
4965
4966 if (isalnum(ptr[1]))
4967 ptr++;
4968
4969 if (arg->type == PRINT_BSTRING) {
4970 trace_seq_puts(s, arg->string.string);
4971 arg = arg->next;
4972 break;
4973 }
4974
4975 if (*ptr == 'F' || *ptr == 'f' ||
4976 *ptr == 'S' || *ptr == 's') {
4977 show_func = *ptr;
4978 } else if (*ptr == 'M' || *ptr == 'm') {
4979 print_mac_arg(s, *ptr, data, size, event, arg);
4980 arg = arg->next;
4981 break;
4982 } else if (*ptr == 'I' || *ptr == 'i') {
4983 int n;
4984
4985 n = print_ip_arg(s, ptr, data, size, event, arg);
4986 if (n > 0) {
4987 ptr += n - 1;
4988 arg = arg->next;
4989 break;
4990 }
4991 }
4992
4993 /* fall through */
4994 case 'd':
4995 case 'i':
4996 case 'x':
4997 case 'X':
4998 case 'u':
4999 if (!arg) {
5000 do_warning_event(event, "no argument match");
5001 event->flags |= EVENT_FL_FAILED;
5002 goto out_failed;
5003 }
5004
5005 len = ((unsigned long)ptr + 1) -
5006 (unsigned long)saveptr;
5007
5008 /* should never happen */
5009 if (len > 31) {
5010 do_warning_event(event, "bad format!");
5011 event->flags |= EVENT_FL_FAILED;
5012 len = 31;
5013 }
5014
5015 memcpy(format, saveptr, len);
5016 format[len] = 0;
5017
5018 val = eval_num_arg(data, size, event, arg);
5019 arg = arg->next;
5020
5021 if (show_func) {
5022 func = find_func(pevent, val);
5023 if (func) {
5024 trace_seq_puts(s, func->func);
5025 if (show_func == 'F')
5026 trace_seq_printf(s,
5027 "+0x%llx",
5028 val - func->addr);
5029 break;
5030 }
5031 }
5032 if (pevent->long_size == 8 && ls == 1 &&
5033 sizeof(long) != 8) {
5034 char *p;
5035
5036 /* make %l into %ll */
5037 if (ls == 1 && (p = strchr(format, 'l')))
5038 memmove(p+1, p, strlen(p)+1);
5039 else if (strcmp(format, "%p") == 0)
5040 strcpy(format, "0x%llx");
5041 ls = 2;
5042 }
5043 switch (ls) {
5044 case -2:
5045 if (len_as_arg)
5046 trace_seq_printf(s, format, len_arg, (char)val);
5047 else
5048 trace_seq_printf(s, format, (char)val);
5049 break;
5050 case -1:
5051 if (len_as_arg)
5052 trace_seq_printf(s, format, len_arg, (short)val);
5053 else
5054 trace_seq_printf(s, format, (short)val);
5055 break;
5056 case 0:
5057 if (len_as_arg)
5058 trace_seq_printf(s, format, len_arg, (int)val);
5059 else
5060 trace_seq_printf(s, format, (int)val);
5061 break;
5062 case 1:
5063 if (len_as_arg)
5064 trace_seq_printf(s, format, len_arg, (long)val);
5065 else
5066 trace_seq_printf(s, format, (long)val);
5067 break;
5068 case 2:
5069 if (len_as_arg)
5070 trace_seq_printf(s, format, len_arg,
5071 (long long)val);
5072 else
5073 trace_seq_printf(s, format, (long long)val);
5074 break;
5075 default:
5076 do_warning_event(event, "bad count (%d)", ls);
5077 event->flags |= EVENT_FL_FAILED;
5078 }
5079 break;
5080 case 's':
5081 if (!arg) {
5082 do_warning_event(event, "no matching argument");
5083 event->flags |= EVENT_FL_FAILED;
5084 goto out_failed;
5085 }
5086
5087 len = ((unsigned long)ptr + 1) -
5088 (unsigned long)saveptr;
5089
5090 /* should never happen */
5091 if (len > 31) {
5092 do_warning_event(event, "bad format!");
5093 event->flags |= EVENT_FL_FAILED;
5094 len = 31;
5095 }
5096
5097 memcpy(format, saveptr, len);
5098 format[len] = 0;
5099 if (!len_as_arg)
5100 len_arg = -1;
5101 /* Use helper trace_seq */
5102 trace_seq_init(&p);
5103 print_str_arg(&p, data, size, event,
5104 format, len_arg, arg);
5105 trace_seq_terminate(&p);
5106 trace_seq_puts(s, p.buffer);
5107 trace_seq_destroy(&p);
5108 arg = arg->next;
5109 break;
5110 default:
5111 trace_seq_printf(s, ">%c<", *ptr);
5112
5113 }
5114 } else
5115 trace_seq_putc(s, *ptr);
5116 }
5117
5118 if (event->flags & EVENT_FL_FAILED) {
5119 out_failed:
5120 trace_seq_printf(s, "[FAILED TO PARSE]");
5121 }
5122
5123 if (args) {
5124 free_args(args);
5125 free(bprint_fmt);
5126 }
5127 }
5128
5129 /**
5130 * tep_data_lat_fmt - parse the data for the latency format
5131 * @pevent: a handle to the pevent
5132 * @s: the trace_seq to write to
5133 * @record: the record to read from
5134 *
5135 * This parses out the Latency format (interrupts disabled,
5136 * need rescheduling, in hard/soft interrupt, preempt count
5137 * and lock depth) and places it into the trace_seq.
5138 */
tep_data_lat_fmt(struct tep_handle * pevent,struct trace_seq * s,struct tep_record * record)5139 void tep_data_lat_fmt(struct tep_handle *pevent,
5140 struct trace_seq *s, struct tep_record *record)
5141 {
5142 static int check_lock_depth = 1;
5143 static int check_migrate_disable = 1;
5144 static int lock_depth_exists;
5145 static int migrate_disable_exists;
5146 unsigned int lat_flags;
5147 unsigned int pc;
5148 int lock_depth;
5149 int migrate_disable;
5150 int hardirq;
5151 int softirq;
5152 void *data = record->data;
5153
5154 lat_flags = parse_common_flags(pevent, data);
5155 pc = parse_common_pc(pevent, data);
5156 /* lock_depth may not always exist */
5157 if (lock_depth_exists)
5158 lock_depth = parse_common_lock_depth(pevent, data);
5159 else if (check_lock_depth) {
5160 lock_depth = parse_common_lock_depth(pevent, data);
5161 if (lock_depth < 0)
5162 check_lock_depth = 0;
5163 else
5164 lock_depth_exists = 1;
5165 }
5166
5167 /* migrate_disable may not always exist */
5168 if (migrate_disable_exists)
5169 migrate_disable = parse_common_migrate_disable(pevent, data);
5170 else if (check_migrate_disable) {
5171 migrate_disable = parse_common_migrate_disable(pevent, data);
5172 if (migrate_disable < 0)
5173 check_migrate_disable = 0;
5174 else
5175 migrate_disable_exists = 1;
5176 }
5177
5178 hardirq = lat_flags & TRACE_FLAG_HARDIRQ;
5179 softirq = lat_flags & TRACE_FLAG_SOFTIRQ;
5180
5181 trace_seq_printf(s, "%c%c%c",
5182 (lat_flags & TRACE_FLAG_IRQS_OFF) ? 'd' :
5183 (lat_flags & TRACE_FLAG_IRQS_NOSUPPORT) ?
5184 'X' : '.',
5185 (lat_flags & TRACE_FLAG_NEED_RESCHED) ?
5186 'N' : '.',
5187 (hardirq && softirq) ? 'H' :
5188 hardirq ? 'h' : softirq ? 's' : '.');
5189
5190 if (pc)
5191 trace_seq_printf(s, "%x", pc);
5192 else
5193 trace_seq_putc(s, '.');
5194
5195 if (migrate_disable_exists) {
5196 if (migrate_disable < 0)
5197 trace_seq_putc(s, '.');
5198 else
5199 trace_seq_printf(s, "%d", migrate_disable);
5200 }
5201
5202 if (lock_depth_exists) {
5203 if (lock_depth < 0)
5204 trace_seq_putc(s, '.');
5205 else
5206 trace_seq_printf(s, "%d", lock_depth);
5207 }
5208
5209 trace_seq_terminate(s);
5210 }
5211
5212 /**
5213 * tep_data_type - parse out the given event type
5214 * @pevent: a handle to the pevent
5215 * @rec: the record to read from
5216 *
5217 * This returns the event id from the @rec.
5218 */
tep_data_type(struct tep_handle * pevent,struct tep_record * rec)5219 int tep_data_type(struct tep_handle *pevent, struct tep_record *rec)
5220 {
5221 return trace_parse_common_type(pevent, rec->data);
5222 }
5223
5224 /**
5225 * tep_data_event_from_type - find the event by a given type
5226 * @pevent: a handle to the pevent
5227 * @type: the type of the event.
5228 *
5229 * This returns the event form a given @type;
5230 */
tep_data_event_from_type(struct tep_handle * pevent,int type)5231 struct event_format *tep_data_event_from_type(struct tep_handle *pevent, int type)
5232 {
5233 return tep_find_event(pevent, type);
5234 }
5235
5236 /**
5237 * tep_data_pid - parse the PID from record
5238 * @pevent: a handle to the pevent
5239 * @rec: the record to parse
5240 *
5241 * This returns the PID from a record.
5242 */
tep_data_pid(struct tep_handle * pevent,struct tep_record * rec)5243 int tep_data_pid(struct tep_handle *pevent, struct tep_record *rec)
5244 {
5245 return parse_common_pid(pevent, rec->data);
5246 }
5247
5248 /**
5249 * tep_data_preempt_count - parse the preempt count from the record
5250 * @pevent: a handle to the pevent
5251 * @rec: the record to parse
5252 *
5253 * This returns the preempt count from a record.
5254 */
tep_data_preempt_count(struct tep_handle * pevent,struct tep_record * rec)5255 int tep_data_preempt_count(struct tep_handle *pevent, struct tep_record *rec)
5256 {
5257 return parse_common_pc(pevent, rec->data);
5258 }
5259
5260 /**
5261 * tep_data_flags - parse the latency flags from the record
5262 * @pevent: a handle to the pevent
5263 * @rec: the record to parse
5264 *
5265 * This returns the latency flags from a record.
5266 *
5267 * Use trace_flag_type enum for the flags (see event-parse.h).
5268 */
tep_data_flags(struct tep_handle * pevent,struct tep_record * rec)5269 int tep_data_flags(struct tep_handle *pevent, struct tep_record *rec)
5270 {
5271 return parse_common_flags(pevent, rec->data);
5272 }
5273
5274 /**
5275 * tep_data_comm_from_pid - return the command line from PID
5276 * @pevent: a handle to the pevent
5277 * @pid: the PID of the task to search for
5278 *
5279 * This returns a pointer to the command line that has the given
5280 * @pid.
5281 */
tep_data_comm_from_pid(struct tep_handle * pevent,int pid)5282 const char *tep_data_comm_from_pid(struct tep_handle *pevent, int pid)
5283 {
5284 const char *comm;
5285
5286 comm = find_cmdline(pevent, pid);
5287 return comm;
5288 }
5289
5290 static struct cmdline *
pid_from_cmdlist(struct tep_handle * pevent,const char * comm,struct cmdline * next)5291 pid_from_cmdlist(struct tep_handle *pevent, const char *comm, struct cmdline *next)
5292 {
5293 struct cmdline_list *cmdlist = (struct cmdline_list *)next;
5294
5295 if (cmdlist)
5296 cmdlist = cmdlist->next;
5297 else
5298 cmdlist = pevent->cmdlist;
5299
5300 while (cmdlist && strcmp(cmdlist->comm, comm) != 0)
5301 cmdlist = cmdlist->next;
5302
5303 return (struct cmdline *)cmdlist;
5304 }
5305
5306 /**
5307 * tep_data_pid_from_comm - return the pid from a given comm
5308 * @pevent: a handle to the pevent
5309 * @comm: the cmdline to find the pid from
5310 * @next: the cmdline structure to find the next comm
5311 *
5312 * This returns the cmdline structure that holds a pid for a given
5313 * comm, or NULL if none found. As there may be more than one pid for
5314 * a given comm, the result of this call can be passed back into
5315 * a recurring call in the @next paramater, and then it will find the
5316 * next pid.
5317 * Also, it does a linear seach, so it may be slow.
5318 */
tep_data_pid_from_comm(struct tep_handle * pevent,const char * comm,struct cmdline * next)5319 struct cmdline *tep_data_pid_from_comm(struct tep_handle *pevent, const char *comm,
5320 struct cmdline *next)
5321 {
5322 struct cmdline *cmdline;
5323
5324 /*
5325 * If the cmdlines have not been converted yet, then use
5326 * the list.
5327 */
5328 if (!pevent->cmdlines)
5329 return pid_from_cmdlist(pevent, comm, next);
5330
5331 if (next) {
5332 /*
5333 * The next pointer could have been still from
5334 * a previous call before cmdlines were created
5335 */
5336 if (next < pevent->cmdlines ||
5337 next >= pevent->cmdlines + pevent->cmdline_count)
5338 next = NULL;
5339 else
5340 cmdline = next++;
5341 }
5342
5343 if (!next)
5344 cmdline = pevent->cmdlines;
5345
5346 while (cmdline < pevent->cmdlines + pevent->cmdline_count) {
5347 if (strcmp(cmdline->comm, comm) == 0)
5348 return cmdline;
5349 cmdline++;
5350 }
5351 return NULL;
5352 }
5353
5354 /**
5355 * tep_cmdline_pid - return the pid associated to a given cmdline
5356 * @cmdline: The cmdline structure to get the pid from
5357 *
5358 * Returns the pid for a give cmdline. If @cmdline is NULL, then
5359 * -1 is returned.
5360 */
tep_cmdline_pid(struct tep_handle * pevent,struct cmdline * cmdline)5361 int tep_cmdline_pid(struct tep_handle *pevent, struct cmdline *cmdline)
5362 {
5363 struct cmdline_list *cmdlist = (struct cmdline_list *)cmdline;
5364
5365 if (!cmdline)
5366 return -1;
5367
5368 /*
5369 * If cmdlines have not been created yet, or cmdline is
5370 * not part of the array, then treat it as a cmdlist instead.
5371 */
5372 if (!pevent->cmdlines ||
5373 cmdline < pevent->cmdlines ||
5374 cmdline >= pevent->cmdlines + pevent->cmdline_count)
5375 return cmdlist->pid;
5376
5377 return cmdline->pid;
5378 }
5379
5380 /**
5381 * tep_event_info - parse the data into the print format
5382 * @s: the trace_seq to write to
5383 * @event: the handle to the event
5384 * @record: the record to read from
5385 *
5386 * This parses the raw @data using the given @event information and
5387 * writes the print format into the trace_seq.
5388 */
tep_event_info(struct trace_seq * s,struct event_format * event,struct tep_record * record)5389 void tep_event_info(struct trace_seq *s, struct event_format *event,
5390 struct tep_record *record)
5391 {
5392 int print_pretty = 1;
5393
5394 if (event->pevent->print_raw || (event->flags & EVENT_FL_PRINTRAW))
5395 tep_print_fields(s, record->data, record->size, event);
5396 else {
5397
5398 if (event->handler && !(event->flags & EVENT_FL_NOHANDLE))
5399 print_pretty = event->handler(s, record, event,
5400 event->context);
5401
5402 if (print_pretty)
5403 pretty_print(s, record->data, record->size, event);
5404 }
5405
5406 trace_seq_terminate(s);
5407 }
5408
is_timestamp_in_us(char * trace_clock,bool use_trace_clock)5409 static bool is_timestamp_in_us(char *trace_clock, bool use_trace_clock)
5410 {
5411 if (!use_trace_clock)
5412 return true;
5413
5414 if (!strcmp(trace_clock, "local") || !strcmp(trace_clock, "global")
5415 || !strcmp(trace_clock, "uptime") || !strcmp(trace_clock, "perf"))
5416 return true;
5417
5418 /* trace_clock is setting in tsc or counter mode */
5419 return false;
5420 }
5421
5422 /**
5423 * tep_find_event_by_record - return the event from a given record
5424 * @pevent: a handle to the pevent
5425 * @record: The record to get the event from
5426 *
5427 * Returns the associated event for a given record, or NULL if non is
5428 * is found.
5429 */
5430 struct event_format *
tep_find_event_by_record(struct tep_handle * pevent,struct tep_record * record)5431 tep_find_event_by_record(struct tep_handle *pevent, struct tep_record *record)
5432 {
5433 int type;
5434
5435 if (record->size < 0) {
5436 do_warning("ug! negative record size %d", record->size);
5437 return NULL;
5438 }
5439
5440 type = trace_parse_common_type(pevent, record->data);
5441
5442 return tep_find_event(pevent, type);
5443 }
5444
5445 /**
5446 * tep_print_event_task - Write the event task comm, pid and CPU
5447 * @pevent: a handle to the pevent
5448 * @s: the trace_seq to write to
5449 * @event: the handle to the record's event
5450 * @record: The record to get the event from
5451 *
5452 * Writes the tasks comm, pid and CPU to @s.
5453 */
tep_print_event_task(struct tep_handle * pevent,struct trace_seq * s,struct event_format * event,struct tep_record * record)5454 void tep_print_event_task(struct tep_handle *pevent, struct trace_seq *s,
5455 struct event_format *event,
5456 struct tep_record *record)
5457 {
5458 void *data = record->data;
5459 const char *comm;
5460 int pid;
5461
5462 pid = parse_common_pid(pevent, data);
5463 comm = find_cmdline(pevent, pid);
5464
5465 if (pevent->latency_format) {
5466 trace_seq_printf(s, "%8.8s-%-5d %3d",
5467 comm, pid, record->cpu);
5468 } else
5469 trace_seq_printf(s, "%16s-%-5d [%03d]", comm, pid, record->cpu);
5470 }
5471
5472 /**
5473 * tep_print_event_time - Write the event timestamp
5474 * @pevent: a handle to the pevent
5475 * @s: the trace_seq to write to
5476 * @event: the handle to the record's event
5477 * @record: The record to get the event from
5478 * @use_trace_clock: Set to parse according to the @pevent->trace_clock
5479 *
5480 * Writes the timestamp of the record into @s.
5481 */
tep_print_event_time(struct tep_handle * pevent,struct trace_seq * s,struct event_format * event,struct tep_record * record,bool use_trace_clock)5482 void tep_print_event_time(struct tep_handle *pevent, struct trace_seq *s,
5483 struct event_format *event,
5484 struct tep_record *record,
5485 bool use_trace_clock)
5486 {
5487 unsigned long secs;
5488 unsigned long usecs;
5489 unsigned long nsecs;
5490 int p;
5491 bool use_usec_format;
5492
5493 use_usec_format = is_timestamp_in_us(pevent->trace_clock,
5494 use_trace_clock);
5495 if (use_usec_format) {
5496 secs = record->ts / NSEC_PER_SEC;
5497 nsecs = record->ts - secs * NSEC_PER_SEC;
5498 }
5499
5500 if (pevent->latency_format) {
5501 tep_data_lat_fmt(pevent, s, record);
5502 }
5503
5504 if (use_usec_format) {
5505 if (pevent->flags & TEP_NSEC_OUTPUT) {
5506 usecs = nsecs;
5507 p = 9;
5508 } else {
5509 usecs = (nsecs + 500) / NSEC_PER_USEC;
5510 /* To avoid usecs larger than 1 sec */
5511 if (usecs >= USEC_PER_SEC) {
5512 usecs -= USEC_PER_SEC;
5513 secs++;
5514 }
5515 p = 6;
5516 }
5517
5518 trace_seq_printf(s, " %5lu.%0*lu:", secs, p, usecs);
5519 } else
5520 trace_seq_printf(s, " %12llu:", record->ts);
5521 }
5522
5523 /**
5524 * tep_print_event_data - Write the event data section
5525 * @pevent: a handle to the pevent
5526 * @s: the trace_seq to write to
5527 * @event: the handle to the record's event
5528 * @record: The record to get the event from
5529 *
5530 * Writes the parsing of the record's data to @s.
5531 */
tep_print_event_data(struct tep_handle * pevent,struct trace_seq * s,struct event_format * event,struct tep_record * record)5532 void tep_print_event_data(struct tep_handle *pevent, struct trace_seq *s,
5533 struct event_format *event,
5534 struct tep_record *record)
5535 {
5536 static const char *spaces = " "; /* 20 spaces */
5537 int len;
5538
5539 trace_seq_printf(s, " %s: ", event->name);
5540
5541 /* Space out the event names evenly. */
5542 len = strlen(event->name);
5543 if (len < 20)
5544 trace_seq_printf(s, "%.*s", 20 - len, spaces);
5545
5546 tep_event_info(s, event, record);
5547 }
5548
tep_print_event(struct tep_handle * pevent,struct trace_seq * s,struct tep_record * record,bool use_trace_clock)5549 void tep_print_event(struct tep_handle *pevent, struct trace_seq *s,
5550 struct tep_record *record, bool use_trace_clock)
5551 {
5552 struct event_format *event;
5553
5554 event = tep_find_event_by_record(pevent, record);
5555 if (!event) {
5556 int i;
5557 int type = trace_parse_common_type(pevent, record->data);
5558
5559 do_warning("ug! no event found for type %d", type);
5560 trace_seq_printf(s, "[UNKNOWN TYPE %d]", type);
5561 for (i = 0; i < record->size; i++)
5562 trace_seq_printf(s, " %02x",
5563 ((unsigned char *)record->data)[i]);
5564 return;
5565 }
5566
5567 tep_print_event_task(pevent, s, event, record);
5568 tep_print_event_time(pevent, s, event, record, use_trace_clock);
5569 tep_print_event_data(pevent, s, event, record);
5570 }
5571
events_id_cmp(const void * a,const void * b)5572 static int events_id_cmp(const void *a, const void *b)
5573 {
5574 struct event_format * const * ea = a;
5575 struct event_format * const * eb = b;
5576
5577 if ((*ea)->id < (*eb)->id)
5578 return -1;
5579
5580 if ((*ea)->id > (*eb)->id)
5581 return 1;
5582
5583 return 0;
5584 }
5585
events_name_cmp(const void * a,const void * b)5586 static int events_name_cmp(const void *a, const void *b)
5587 {
5588 struct event_format * const * ea = a;
5589 struct event_format * const * eb = b;
5590 int res;
5591
5592 res = strcmp((*ea)->name, (*eb)->name);
5593 if (res)
5594 return res;
5595
5596 res = strcmp((*ea)->system, (*eb)->system);
5597 if (res)
5598 return res;
5599
5600 return events_id_cmp(a, b);
5601 }
5602
events_system_cmp(const void * a,const void * b)5603 static int events_system_cmp(const void *a, const void *b)
5604 {
5605 struct event_format * const * ea = a;
5606 struct event_format * const * eb = b;
5607 int res;
5608
5609 res = strcmp((*ea)->system, (*eb)->system);
5610 if (res)
5611 return res;
5612
5613 res = strcmp((*ea)->name, (*eb)->name);
5614 if (res)
5615 return res;
5616
5617 return events_id_cmp(a, b);
5618 }
5619
tep_list_events(struct tep_handle * pevent,enum event_sort_type sort_type)5620 struct event_format **tep_list_events(struct tep_handle *pevent, enum event_sort_type sort_type)
5621 {
5622 struct event_format **events;
5623 int (*sort)(const void *a, const void *b);
5624
5625 events = pevent->sort_events;
5626
5627 if (events && pevent->last_type == sort_type)
5628 return events;
5629
5630 if (!events) {
5631 events = malloc(sizeof(*events) * (pevent->nr_events + 1));
5632 if (!events)
5633 return NULL;
5634
5635 memcpy(events, pevent->events, sizeof(*events) * pevent->nr_events);
5636 events[pevent->nr_events] = NULL;
5637
5638 pevent->sort_events = events;
5639
5640 /* the internal events are sorted by id */
5641 if (sort_type == EVENT_SORT_ID) {
5642 pevent->last_type = sort_type;
5643 return events;
5644 }
5645 }
5646
5647 switch (sort_type) {
5648 case EVENT_SORT_ID:
5649 sort = events_id_cmp;
5650 break;
5651 case EVENT_SORT_NAME:
5652 sort = events_name_cmp;
5653 break;
5654 case EVENT_SORT_SYSTEM:
5655 sort = events_system_cmp;
5656 break;
5657 default:
5658 return events;
5659 }
5660
5661 qsort(events, pevent->nr_events, sizeof(*events), sort);
5662 pevent->last_type = sort_type;
5663
5664 return events;
5665 }
5666
5667 static struct format_field **
get_event_fields(const char * type,const char * name,int count,struct format_field * list)5668 get_event_fields(const char *type, const char *name,
5669 int count, struct format_field *list)
5670 {
5671 struct format_field **fields;
5672 struct format_field *field;
5673 int i = 0;
5674
5675 fields = malloc(sizeof(*fields) * (count + 1));
5676 if (!fields)
5677 return NULL;
5678
5679 for (field = list; field; field = field->next) {
5680 fields[i++] = field;
5681 if (i == count + 1) {
5682 do_warning("event %s has more %s fields than specified",
5683 name, type);
5684 i--;
5685 break;
5686 }
5687 }
5688
5689 if (i != count)
5690 do_warning("event %s has less %s fields than specified",
5691 name, type);
5692
5693 fields[i] = NULL;
5694
5695 return fields;
5696 }
5697
5698 /**
5699 * tep_event_common_fields - return a list of common fields for an event
5700 * @event: the event to return the common fields of.
5701 *
5702 * Returns an allocated array of fields. The last item in the array is NULL.
5703 * The array must be freed with free().
5704 */
tep_event_common_fields(struct event_format * event)5705 struct format_field **tep_event_common_fields(struct event_format *event)
5706 {
5707 return get_event_fields("common", event->name,
5708 event->format.nr_common,
5709 event->format.common_fields);
5710 }
5711
5712 /**
5713 * tep_event_fields - return a list of event specific fields for an event
5714 * @event: the event to return the fields of.
5715 *
5716 * Returns an allocated array of fields. The last item in the array is NULL.
5717 * The array must be freed with free().
5718 */
tep_event_fields(struct event_format * event)5719 struct format_field **tep_event_fields(struct event_format *event)
5720 {
5721 return get_event_fields("event", event->name,
5722 event->format.nr_fields,
5723 event->format.fields);
5724 }
5725
print_fields(struct trace_seq * s,struct print_flag_sym * field)5726 static void print_fields(struct trace_seq *s, struct print_flag_sym *field)
5727 {
5728 trace_seq_printf(s, "{ %s, %s }", field->value, field->str);
5729 if (field->next) {
5730 trace_seq_puts(s, ", ");
5731 print_fields(s, field->next);
5732 }
5733 }
5734
5735 /* for debugging */
print_args(struct print_arg * args)5736 static void print_args(struct print_arg *args)
5737 {
5738 int print_paren = 1;
5739 struct trace_seq s;
5740
5741 switch (args->type) {
5742 case PRINT_NULL:
5743 printf("null");
5744 break;
5745 case PRINT_ATOM:
5746 printf("%s", args->atom.atom);
5747 break;
5748 case PRINT_FIELD:
5749 printf("REC->%s", args->field.name);
5750 break;
5751 case PRINT_FLAGS:
5752 printf("__print_flags(");
5753 print_args(args->flags.field);
5754 printf(", %s, ", args->flags.delim);
5755 trace_seq_init(&s);
5756 print_fields(&s, args->flags.flags);
5757 trace_seq_do_printf(&s);
5758 trace_seq_destroy(&s);
5759 printf(")");
5760 break;
5761 case PRINT_SYMBOL:
5762 printf("__print_symbolic(");
5763 print_args(args->symbol.field);
5764 printf(", ");
5765 trace_seq_init(&s);
5766 print_fields(&s, args->symbol.symbols);
5767 trace_seq_do_printf(&s);
5768 trace_seq_destroy(&s);
5769 printf(")");
5770 break;
5771 case PRINT_HEX:
5772 printf("__print_hex(");
5773 print_args(args->hex.field);
5774 printf(", ");
5775 print_args(args->hex.size);
5776 printf(")");
5777 break;
5778 case PRINT_HEX_STR:
5779 printf("__print_hex_str(");
5780 print_args(args->hex.field);
5781 printf(", ");
5782 print_args(args->hex.size);
5783 printf(")");
5784 break;
5785 case PRINT_INT_ARRAY:
5786 printf("__print_array(");
5787 print_args(args->int_array.field);
5788 printf(", ");
5789 print_args(args->int_array.count);
5790 printf(", ");
5791 print_args(args->int_array.el_size);
5792 printf(")");
5793 break;
5794 case PRINT_STRING:
5795 case PRINT_BSTRING:
5796 printf("__get_str(%s)", args->string.string);
5797 break;
5798 case PRINT_BITMASK:
5799 printf("__get_bitmask(%s)", args->bitmask.bitmask);
5800 break;
5801 case PRINT_TYPE:
5802 printf("(%s)", args->typecast.type);
5803 print_args(args->typecast.item);
5804 break;
5805 case PRINT_OP:
5806 if (strcmp(args->op.op, ":") == 0)
5807 print_paren = 0;
5808 if (print_paren)
5809 printf("(");
5810 print_args(args->op.left);
5811 printf(" %s ", args->op.op);
5812 print_args(args->op.right);
5813 if (print_paren)
5814 printf(")");
5815 break;
5816 default:
5817 /* we should warn... */
5818 return;
5819 }
5820 if (args->next) {
5821 printf("\n");
5822 print_args(args->next);
5823 }
5824 }
5825
parse_header_field(const char * field,int * offset,int * size,int mandatory)5826 static void parse_header_field(const char *field,
5827 int *offset, int *size, int mandatory)
5828 {
5829 unsigned long long save_input_buf_ptr;
5830 unsigned long long save_input_buf_siz;
5831 char *token;
5832 int type;
5833
5834 save_input_buf_ptr = input_buf_ptr;
5835 save_input_buf_siz = input_buf_siz;
5836
5837 if (read_expected(EVENT_ITEM, "field") < 0)
5838 return;
5839 if (read_expected(EVENT_OP, ":") < 0)
5840 return;
5841
5842 /* type */
5843 if (read_expect_type(EVENT_ITEM, &token) < 0)
5844 goto fail;
5845 free_token(token);
5846
5847 /*
5848 * If this is not a mandatory field, then test it first.
5849 */
5850 if (mandatory) {
5851 if (read_expected(EVENT_ITEM, field) < 0)
5852 return;
5853 } else {
5854 if (read_expect_type(EVENT_ITEM, &token) < 0)
5855 goto fail;
5856 if (strcmp(token, field) != 0)
5857 goto discard;
5858 free_token(token);
5859 }
5860
5861 if (read_expected(EVENT_OP, ";") < 0)
5862 return;
5863 if (read_expected(EVENT_ITEM, "offset") < 0)
5864 return;
5865 if (read_expected(EVENT_OP, ":") < 0)
5866 return;
5867 if (read_expect_type(EVENT_ITEM, &token) < 0)
5868 goto fail;
5869 *offset = atoi(token);
5870 free_token(token);
5871 if (read_expected(EVENT_OP, ";") < 0)
5872 return;
5873 if (read_expected(EVENT_ITEM, "size") < 0)
5874 return;
5875 if (read_expected(EVENT_OP, ":") < 0)
5876 return;
5877 if (read_expect_type(EVENT_ITEM, &token) < 0)
5878 goto fail;
5879 *size = atoi(token);
5880 free_token(token);
5881 if (read_expected(EVENT_OP, ";") < 0)
5882 return;
5883 type = read_token(&token);
5884 if (type != EVENT_NEWLINE) {
5885 /* newer versions of the kernel have a "signed" type */
5886 if (type != EVENT_ITEM)
5887 goto fail;
5888
5889 if (strcmp(token, "signed") != 0)
5890 goto fail;
5891
5892 free_token(token);
5893
5894 if (read_expected(EVENT_OP, ":") < 0)
5895 return;
5896
5897 if (read_expect_type(EVENT_ITEM, &token))
5898 goto fail;
5899
5900 free_token(token);
5901 if (read_expected(EVENT_OP, ";") < 0)
5902 return;
5903
5904 if (read_expect_type(EVENT_NEWLINE, &token))
5905 goto fail;
5906 }
5907 fail:
5908 free_token(token);
5909 return;
5910
5911 discard:
5912 input_buf_ptr = save_input_buf_ptr;
5913 input_buf_siz = save_input_buf_siz;
5914 *offset = 0;
5915 *size = 0;
5916 free_token(token);
5917 }
5918
5919 /**
5920 * tep_parse_header_page - parse the data stored in the header page
5921 * @pevent: the handle to the pevent
5922 * @buf: the buffer storing the header page format string
5923 * @size: the size of @buf
5924 * @long_size: the long size to use if there is no header
5925 *
5926 * This parses the header page format for information on the
5927 * ring buffer used. The @buf should be copied from
5928 *
5929 * /sys/kernel/debug/tracing/events/header_page
5930 */
tep_parse_header_page(struct tep_handle * pevent,char * buf,unsigned long size,int long_size)5931 int tep_parse_header_page(struct tep_handle *pevent, char *buf, unsigned long size,
5932 int long_size)
5933 {
5934 int ignore;
5935
5936 if (!size) {
5937 /*
5938 * Old kernels did not have header page info.
5939 * Sorry but we just use what we find here in user space.
5940 */
5941 pevent->header_page_ts_size = sizeof(long long);
5942 pevent->header_page_size_size = long_size;
5943 pevent->header_page_data_offset = sizeof(long long) + long_size;
5944 pevent->old_format = 1;
5945 return -1;
5946 }
5947 init_input_buf(buf, size);
5948
5949 parse_header_field("timestamp", &pevent->header_page_ts_offset,
5950 &pevent->header_page_ts_size, 1);
5951 parse_header_field("commit", &pevent->header_page_size_offset,
5952 &pevent->header_page_size_size, 1);
5953 parse_header_field("overwrite", &pevent->header_page_overwrite,
5954 &ignore, 0);
5955 parse_header_field("data", &pevent->header_page_data_offset,
5956 &pevent->header_page_data_size, 1);
5957
5958 return 0;
5959 }
5960
event_matches(struct event_format * event,int id,const char * sys_name,const char * event_name)5961 static int event_matches(struct event_format *event,
5962 int id, const char *sys_name,
5963 const char *event_name)
5964 {
5965 if (id >= 0 && id != event->id)
5966 return 0;
5967
5968 if (event_name && (strcmp(event_name, event->name) != 0))
5969 return 0;
5970
5971 if (sys_name && (strcmp(sys_name, event->system) != 0))
5972 return 0;
5973
5974 return 1;
5975 }
5976
free_handler(struct event_handler * handle)5977 static void free_handler(struct event_handler *handle)
5978 {
5979 free((void *)handle->sys_name);
5980 free((void *)handle->event_name);
5981 free(handle);
5982 }
5983
find_event_handle(struct tep_handle * pevent,struct event_format * event)5984 static int find_event_handle(struct tep_handle *pevent, struct event_format *event)
5985 {
5986 struct event_handler *handle, **next;
5987
5988 for (next = &pevent->handlers; *next;
5989 next = &(*next)->next) {
5990 handle = *next;
5991 if (event_matches(event, handle->id,
5992 handle->sys_name,
5993 handle->event_name))
5994 break;
5995 }
5996
5997 if (!(*next))
5998 return 0;
5999
6000 pr_stat("overriding event (%d) %s:%s with new print handler",
6001 event->id, event->system, event->name);
6002
6003 event->handler = handle->func;
6004 event->context = handle->context;
6005
6006 *next = handle->next;
6007 free_handler(handle);
6008
6009 return 1;
6010 }
6011
6012 /**
6013 * __tep_parse_format - parse the event format
6014 * @buf: the buffer storing the event format string
6015 * @size: the size of @buf
6016 * @sys: the system the event belongs to
6017 *
6018 * This parses the event format and creates an event structure
6019 * to quickly parse raw data for a given event.
6020 *
6021 * These files currently come from:
6022 *
6023 * /sys/kernel/debug/tracing/events/.../.../format
6024 */
__tep_parse_format(struct event_format ** eventp,struct tep_handle * pevent,const char * buf,unsigned long size,const char * sys)6025 enum tep_errno __tep_parse_format(struct event_format **eventp,
6026 struct tep_handle *pevent, const char *buf,
6027 unsigned long size, const char *sys)
6028 {
6029 struct event_format *event;
6030 int ret;
6031
6032 init_input_buf(buf, size);
6033
6034 *eventp = event = alloc_event();
6035 if (!event)
6036 return TEP_ERRNO__MEM_ALLOC_FAILED;
6037
6038 event->name = event_read_name();
6039 if (!event->name) {
6040 /* Bad event? */
6041 ret = TEP_ERRNO__MEM_ALLOC_FAILED;
6042 goto event_alloc_failed;
6043 }
6044
6045 if (strcmp(sys, "ftrace") == 0) {
6046 event->flags |= EVENT_FL_ISFTRACE;
6047
6048 if (strcmp(event->name, "bprint") == 0)
6049 event->flags |= EVENT_FL_ISBPRINT;
6050 }
6051
6052 event->id = event_read_id();
6053 if (event->id < 0) {
6054 ret = TEP_ERRNO__READ_ID_FAILED;
6055 /*
6056 * This isn't an allocation error actually.
6057 * But as the ID is critical, just bail out.
6058 */
6059 goto event_alloc_failed;
6060 }
6061
6062 event->system = strdup(sys);
6063 if (!event->system) {
6064 ret = TEP_ERRNO__MEM_ALLOC_FAILED;
6065 goto event_alloc_failed;
6066 }
6067
6068 /* Add pevent to event so that it can be referenced */
6069 event->pevent = pevent;
6070
6071 ret = event_read_format(event);
6072 if (ret < 0) {
6073 ret = TEP_ERRNO__READ_FORMAT_FAILED;
6074 goto event_parse_failed;
6075 }
6076
6077 /*
6078 * If the event has an override, don't print warnings if the event
6079 * print format fails to parse.
6080 */
6081 if (pevent && find_event_handle(pevent, event))
6082 show_warning = 0;
6083
6084 ret = event_read_print(event);
6085 show_warning = 1;
6086
6087 if (ret < 0) {
6088 ret = TEP_ERRNO__READ_PRINT_FAILED;
6089 goto event_parse_failed;
6090 }
6091
6092 if (!ret && (event->flags & EVENT_FL_ISFTRACE)) {
6093 struct format_field *field;
6094 struct print_arg *arg, **list;
6095
6096 /* old ftrace had no args */
6097 list = &event->print_fmt.args;
6098 for (field = event->format.fields; field; field = field->next) {
6099 arg = alloc_arg();
6100 if (!arg) {
6101 event->flags |= EVENT_FL_FAILED;
6102 return TEP_ERRNO__OLD_FTRACE_ARG_FAILED;
6103 }
6104 arg->type = PRINT_FIELD;
6105 arg->field.name = strdup(field->name);
6106 if (!arg->field.name) {
6107 event->flags |= EVENT_FL_FAILED;
6108 free_arg(arg);
6109 return TEP_ERRNO__OLD_FTRACE_ARG_FAILED;
6110 }
6111 arg->field.field = field;
6112 *list = arg;
6113 list = &arg->next;
6114 }
6115 return 0;
6116 }
6117
6118 return 0;
6119
6120 event_parse_failed:
6121 event->flags |= EVENT_FL_FAILED;
6122 return ret;
6123
6124 event_alloc_failed:
6125 free(event->system);
6126 free(event->name);
6127 free(event);
6128 *eventp = NULL;
6129 return ret;
6130 }
6131
6132 static enum tep_errno
__parse_event(struct tep_handle * pevent,struct event_format ** eventp,const char * buf,unsigned long size,const char * sys)6133 __parse_event(struct tep_handle *pevent,
6134 struct event_format **eventp,
6135 const char *buf, unsigned long size,
6136 const char *sys)
6137 {
6138 int ret = __tep_parse_format(eventp, pevent, buf, size, sys);
6139 struct event_format *event = *eventp;
6140
6141 if (event == NULL)
6142 return ret;
6143
6144 if (pevent && add_event(pevent, event)) {
6145 ret = TEP_ERRNO__MEM_ALLOC_FAILED;
6146 goto event_add_failed;
6147 }
6148
6149 #define PRINT_ARGS 0
6150 if (PRINT_ARGS && event->print_fmt.args)
6151 print_args(event->print_fmt.args);
6152
6153 return 0;
6154
6155 event_add_failed:
6156 tep_free_format(event);
6157 return ret;
6158 }
6159
6160 /**
6161 * tep_parse_format - parse the event format
6162 * @pevent: the handle to the pevent
6163 * @eventp: returned format
6164 * @buf: the buffer storing the event format string
6165 * @size: the size of @buf
6166 * @sys: the system the event belongs to
6167 *
6168 * This parses the event format and creates an event structure
6169 * to quickly parse raw data for a given event.
6170 *
6171 * These files currently come from:
6172 *
6173 * /sys/kernel/debug/tracing/events/.../.../format
6174 */
tep_parse_format(struct tep_handle * pevent,struct event_format ** eventp,const char * buf,unsigned long size,const char * sys)6175 enum tep_errno tep_parse_format(struct tep_handle *pevent,
6176 struct event_format **eventp,
6177 const char *buf,
6178 unsigned long size, const char *sys)
6179 {
6180 return __parse_event(pevent, eventp, buf, size, sys);
6181 }
6182
6183 /**
6184 * tep_parse_event - parse the event format
6185 * @pevent: the handle to the pevent
6186 * @buf: the buffer storing the event format string
6187 * @size: the size of @buf
6188 * @sys: the system the event belongs to
6189 *
6190 * This parses the event format and creates an event structure
6191 * to quickly parse raw data for a given event.
6192 *
6193 * These files currently come from:
6194 *
6195 * /sys/kernel/debug/tracing/events/.../.../format
6196 */
tep_parse_event(struct tep_handle * pevent,const char * buf,unsigned long size,const char * sys)6197 enum tep_errno tep_parse_event(struct tep_handle *pevent, const char *buf,
6198 unsigned long size, const char *sys)
6199 {
6200 struct event_format *event = NULL;
6201 return __parse_event(pevent, &event, buf, size, sys);
6202 }
6203
6204 #undef _PE
6205 #define _PE(code, str) str
6206 static const char * const tep_error_str[] = {
6207 TEP_ERRORS
6208 };
6209 #undef _PE
6210
tep_strerror(struct tep_handle * pevent __maybe_unused,enum tep_errno errnum,char * buf,size_t buflen)6211 int tep_strerror(struct tep_handle *pevent __maybe_unused,
6212 enum tep_errno errnum, char *buf, size_t buflen)
6213 {
6214 int idx;
6215 const char *msg;
6216
6217 if (errnum >= 0) {
6218 str_error_r(errnum, buf, buflen);
6219 return 0;
6220 }
6221
6222 if (errnum <= __TEP_ERRNO__START ||
6223 errnum >= __TEP_ERRNO__END)
6224 return -1;
6225
6226 idx = errnum - __TEP_ERRNO__START - 1;
6227 msg = tep_error_str[idx];
6228 snprintf(buf, buflen, "%s", msg);
6229
6230 return 0;
6231 }
6232
get_field_val(struct trace_seq * s,struct format_field * field,const char * name,struct tep_record * record,unsigned long long * val,int err)6233 int get_field_val(struct trace_seq *s, struct format_field *field,
6234 const char *name, struct tep_record *record,
6235 unsigned long long *val, int err)
6236 {
6237 if (!field) {
6238 if (err)
6239 trace_seq_printf(s, "<CANT FIND FIELD %s>", name);
6240 return -1;
6241 }
6242
6243 if (tep_read_number_field(field, record->data, val)) {
6244 if (err)
6245 trace_seq_printf(s, " %s=INVALID", name);
6246 return -1;
6247 }
6248
6249 return 0;
6250 }
6251
6252 /**
6253 * tep_get_field_raw - return the raw pointer into the data field
6254 * @s: The seq to print to on error
6255 * @event: the event that the field is for
6256 * @name: The name of the field
6257 * @record: The record with the field name.
6258 * @len: place to store the field length.
6259 * @err: print default error if failed.
6260 *
6261 * Returns a pointer into record->data of the field and places
6262 * the length of the field in @len.
6263 *
6264 * On failure, it returns NULL.
6265 */
tep_get_field_raw(struct trace_seq * s,struct event_format * event,const char * name,struct tep_record * record,int * len,int err)6266 void *tep_get_field_raw(struct trace_seq *s, struct event_format *event,
6267 const char *name, struct tep_record *record,
6268 int *len, int err)
6269 {
6270 struct format_field *field;
6271 void *data = record->data;
6272 unsigned offset;
6273 int dummy;
6274
6275 if (!event)
6276 return NULL;
6277
6278 field = tep_find_field(event, name);
6279
6280 if (!field) {
6281 if (err)
6282 trace_seq_printf(s, "<CANT FIND FIELD %s>", name);
6283 return NULL;
6284 }
6285
6286 /* Allow @len to be NULL */
6287 if (!len)
6288 len = &dummy;
6289
6290 offset = field->offset;
6291 if (field->flags & FIELD_IS_DYNAMIC) {
6292 offset = tep_read_number(event->pevent,
6293 data + offset, field->size);
6294 *len = offset >> 16;
6295 offset &= 0xffff;
6296 } else
6297 *len = field->size;
6298
6299 return data + offset;
6300 }
6301
6302 /**
6303 * tep_get_field_val - find a field and return its value
6304 * @s: The seq to print to on error
6305 * @event: the event that the field is for
6306 * @name: The name of the field
6307 * @record: The record with the field name.
6308 * @val: place to store the value of the field.
6309 * @err: print default error if failed.
6310 *
6311 * Returns 0 on success -1 on field not found.
6312 */
tep_get_field_val(struct trace_seq * s,struct event_format * event,const char * name,struct tep_record * record,unsigned long long * val,int err)6313 int tep_get_field_val(struct trace_seq *s, struct event_format *event,
6314 const char *name, struct tep_record *record,
6315 unsigned long long *val, int err)
6316 {
6317 struct format_field *field;
6318
6319 if (!event)
6320 return -1;
6321
6322 field = tep_find_field(event, name);
6323
6324 return get_field_val(s, field, name, record, val, err);
6325 }
6326
6327 /**
6328 * tep_get_common_field_val - find a common field and return its value
6329 * @s: The seq to print to on error
6330 * @event: the event that the field is for
6331 * @name: The name of the field
6332 * @record: The record with the field name.
6333 * @val: place to store the value of the field.
6334 * @err: print default error if failed.
6335 *
6336 * Returns 0 on success -1 on field not found.
6337 */
tep_get_common_field_val(struct trace_seq * s,struct event_format * event,const char * name,struct tep_record * record,unsigned long long * val,int err)6338 int tep_get_common_field_val(struct trace_seq *s, struct event_format *event,
6339 const char *name, struct tep_record *record,
6340 unsigned long long *val, int err)
6341 {
6342 struct format_field *field;
6343
6344 if (!event)
6345 return -1;
6346
6347 field = tep_find_common_field(event, name);
6348
6349 return get_field_val(s, field, name, record, val, err);
6350 }
6351
6352 /**
6353 * tep_get_any_field_val - find a any field and return its value
6354 * @s: The seq to print to on error
6355 * @event: the event that the field is for
6356 * @name: The name of the field
6357 * @record: The record with the field name.
6358 * @val: place to store the value of the field.
6359 * @err: print default error if failed.
6360 *
6361 * Returns 0 on success -1 on field not found.
6362 */
tep_get_any_field_val(struct trace_seq * s,struct event_format * event,const char * name,struct tep_record * record,unsigned long long * val,int err)6363 int tep_get_any_field_val(struct trace_seq *s, struct event_format *event,
6364 const char *name, struct tep_record *record,
6365 unsigned long long *val, int err)
6366 {
6367 struct format_field *field;
6368
6369 if (!event)
6370 return -1;
6371
6372 field = tep_find_any_field(event, name);
6373
6374 return get_field_val(s, field, name, record, val, err);
6375 }
6376
6377 /**
6378 * tep_print_num_field - print a field and a format
6379 * @s: The seq to print to
6380 * @fmt: The printf format to print the field with.
6381 * @event: the event that the field is for
6382 * @name: The name of the field
6383 * @record: The record with the field name.
6384 * @err: print default error if failed.
6385 *
6386 * Returns: 0 on success, -1 field not found, or 1 if buffer is full.
6387 */
tep_print_num_field(struct trace_seq * s,const char * fmt,struct event_format * event,const char * name,struct tep_record * record,int err)6388 int tep_print_num_field(struct trace_seq *s, const char *fmt,
6389 struct event_format *event, const char *name,
6390 struct tep_record *record, int err)
6391 {
6392 struct format_field *field = tep_find_field(event, name);
6393 unsigned long long val;
6394
6395 if (!field)
6396 goto failed;
6397
6398 if (tep_read_number_field(field, record->data, &val))
6399 goto failed;
6400
6401 return trace_seq_printf(s, fmt, val);
6402
6403 failed:
6404 if (err)
6405 trace_seq_printf(s, "CAN'T FIND FIELD \"%s\"", name);
6406 return -1;
6407 }
6408
6409 /**
6410 * tep_print_func_field - print a field and a format for function pointers
6411 * @s: The seq to print to
6412 * @fmt: The printf format to print the field with.
6413 * @event: the event that the field is for
6414 * @name: The name of the field
6415 * @record: The record with the field name.
6416 * @err: print default error if failed.
6417 *
6418 * Returns: 0 on success, -1 field not found, or 1 if buffer is full.
6419 */
tep_print_func_field(struct trace_seq * s,const char * fmt,struct event_format * event,const char * name,struct tep_record * record,int err)6420 int tep_print_func_field(struct trace_seq *s, const char *fmt,
6421 struct event_format *event, const char *name,
6422 struct tep_record *record, int err)
6423 {
6424 struct format_field *field = tep_find_field(event, name);
6425 struct tep_handle *pevent = event->pevent;
6426 unsigned long long val;
6427 struct func_map *func;
6428 char tmp[128];
6429
6430 if (!field)
6431 goto failed;
6432
6433 if (tep_read_number_field(field, record->data, &val))
6434 goto failed;
6435
6436 func = find_func(pevent, val);
6437
6438 if (func)
6439 snprintf(tmp, 128, "%s/0x%llx", func->func, func->addr - val);
6440 else
6441 sprintf(tmp, "0x%08llx", val);
6442
6443 return trace_seq_printf(s, fmt, tmp);
6444
6445 failed:
6446 if (err)
6447 trace_seq_printf(s, "CAN'T FIND FIELD \"%s\"", name);
6448 return -1;
6449 }
6450
free_func_handle(struct tep_function_handler * func)6451 static void free_func_handle(struct tep_function_handler *func)
6452 {
6453 struct func_params *params;
6454
6455 free(func->name);
6456
6457 while (func->params) {
6458 params = func->params;
6459 func->params = params->next;
6460 free(params);
6461 }
6462
6463 free(func);
6464 }
6465
6466 /**
6467 * tep_register_print_function - register a helper function
6468 * @pevent: the handle to the pevent
6469 * @func: the function to process the helper function
6470 * @ret_type: the return type of the helper function
6471 * @name: the name of the helper function
6472 * @parameters: A list of enum tep_func_arg_type
6473 *
6474 * Some events may have helper functions in the print format arguments.
6475 * This allows a plugin to dynamically create a way to process one
6476 * of these functions.
6477 *
6478 * The @parameters is a variable list of tep_func_arg_type enums that
6479 * must end with TEP_FUNC_ARG_VOID.
6480 */
tep_register_print_function(struct tep_handle * pevent,tep_func_handler func,enum tep_func_arg_type ret_type,char * name,...)6481 int tep_register_print_function(struct tep_handle *pevent,
6482 tep_func_handler func,
6483 enum tep_func_arg_type ret_type,
6484 char *name, ...)
6485 {
6486 struct tep_function_handler *func_handle;
6487 struct func_params **next_param;
6488 struct func_params *param;
6489 enum tep_func_arg_type type;
6490 va_list ap;
6491 int ret;
6492
6493 func_handle = find_func_handler(pevent, name);
6494 if (func_handle) {
6495 /*
6496 * This is most like caused by the users own
6497 * plugins updating the function. This overrides the
6498 * system defaults.
6499 */
6500 pr_stat("override of function helper '%s'", name);
6501 remove_func_handler(pevent, name);
6502 }
6503
6504 func_handle = calloc(1, sizeof(*func_handle));
6505 if (!func_handle) {
6506 do_warning("Failed to allocate function handler");
6507 return TEP_ERRNO__MEM_ALLOC_FAILED;
6508 }
6509
6510 func_handle->ret_type = ret_type;
6511 func_handle->name = strdup(name);
6512 func_handle->func = func;
6513 if (!func_handle->name) {
6514 do_warning("Failed to allocate function name");
6515 free(func_handle);
6516 return TEP_ERRNO__MEM_ALLOC_FAILED;
6517 }
6518
6519 next_param = &(func_handle->params);
6520 va_start(ap, name);
6521 for (;;) {
6522 type = va_arg(ap, enum tep_func_arg_type);
6523 if (type == TEP_FUNC_ARG_VOID)
6524 break;
6525
6526 if (type >= TEP_FUNC_ARG_MAX_TYPES) {
6527 do_warning("Invalid argument type %d", type);
6528 ret = TEP_ERRNO__INVALID_ARG_TYPE;
6529 goto out_free;
6530 }
6531
6532 param = malloc(sizeof(*param));
6533 if (!param) {
6534 do_warning("Failed to allocate function param");
6535 ret = TEP_ERRNO__MEM_ALLOC_FAILED;
6536 goto out_free;
6537 }
6538 param->type = type;
6539 param->next = NULL;
6540
6541 *next_param = param;
6542 next_param = &(param->next);
6543
6544 func_handle->nr_args++;
6545 }
6546 va_end(ap);
6547
6548 func_handle->next = pevent->func_handlers;
6549 pevent->func_handlers = func_handle;
6550
6551 return 0;
6552 out_free:
6553 va_end(ap);
6554 free_func_handle(func_handle);
6555 return ret;
6556 }
6557
6558 /**
6559 * tep_unregister_print_function - unregister a helper function
6560 * @pevent: the handle to the pevent
6561 * @func: the function to process the helper function
6562 * @name: the name of the helper function
6563 *
6564 * This function removes existing print handler for function @name.
6565 *
6566 * Returns 0 if the handler was removed successully, -1 otherwise.
6567 */
tep_unregister_print_function(struct tep_handle * pevent,tep_func_handler func,char * name)6568 int tep_unregister_print_function(struct tep_handle *pevent,
6569 tep_func_handler func, char *name)
6570 {
6571 struct tep_function_handler *func_handle;
6572
6573 func_handle = find_func_handler(pevent, name);
6574 if (func_handle && func_handle->func == func) {
6575 remove_func_handler(pevent, name);
6576 return 0;
6577 }
6578 return -1;
6579 }
6580
search_event(struct tep_handle * pevent,int id,const char * sys_name,const char * event_name)6581 static struct event_format *search_event(struct tep_handle *pevent, int id,
6582 const char *sys_name,
6583 const char *event_name)
6584 {
6585 struct event_format *event;
6586
6587 if (id >= 0) {
6588 /* search by id */
6589 event = tep_find_event(pevent, id);
6590 if (!event)
6591 return NULL;
6592 if (event_name && (strcmp(event_name, event->name) != 0))
6593 return NULL;
6594 if (sys_name && (strcmp(sys_name, event->system) != 0))
6595 return NULL;
6596 } else {
6597 event = tep_find_event_by_name(pevent, sys_name, event_name);
6598 if (!event)
6599 return NULL;
6600 }
6601 return event;
6602 }
6603
6604 /**
6605 * tep_register_event_handler - register a way to parse an event
6606 * @pevent: the handle to the pevent
6607 * @id: the id of the event to register
6608 * @sys_name: the system name the event belongs to
6609 * @event_name: the name of the event
6610 * @func: the function to call to parse the event information
6611 * @context: the data to be passed to @func
6612 *
6613 * This function allows a developer to override the parsing of
6614 * a given event. If for some reason the default print format
6615 * is not sufficient, this function will register a function
6616 * for an event to be used to parse the data instead.
6617 *
6618 * If @id is >= 0, then it is used to find the event.
6619 * else @sys_name and @event_name are used.
6620 */
tep_register_event_handler(struct tep_handle * pevent,int id,const char * sys_name,const char * event_name,tep_event_handler_func func,void * context)6621 int tep_register_event_handler(struct tep_handle *pevent, int id,
6622 const char *sys_name, const char *event_name,
6623 tep_event_handler_func func, void *context)
6624 {
6625 struct event_format *event;
6626 struct event_handler *handle;
6627
6628 event = search_event(pevent, id, sys_name, event_name);
6629 if (event == NULL)
6630 goto not_found;
6631
6632 pr_stat("overriding event (%d) %s:%s with new print handler",
6633 event->id, event->system, event->name);
6634
6635 event->handler = func;
6636 event->context = context;
6637 return 0;
6638
6639 not_found:
6640 /* Save for later use. */
6641 handle = calloc(1, sizeof(*handle));
6642 if (!handle) {
6643 do_warning("Failed to allocate event handler");
6644 return TEP_ERRNO__MEM_ALLOC_FAILED;
6645 }
6646
6647 handle->id = id;
6648 if (event_name)
6649 handle->event_name = strdup(event_name);
6650 if (sys_name)
6651 handle->sys_name = strdup(sys_name);
6652
6653 if ((event_name && !handle->event_name) ||
6654 (sys_name && !handle->sys_name)) {
6655 do_warning("Failed to allocate event/sys name");
6656 free((void *)handle->event_name);
6657 free((void *)handle->sys_name);
6658 free(handle);
6659 return TEP_ERRNO__MEM_ALLOC_FAILED;
6660 }
6661
6662 handle->func = func;
6663 handle->next = pevent->handlers;
6664 pevent->handlers = handle;
6665 handle->context = context;
6666
6667 return -1;
6668 }
6669
handle_matches(struct event_handler * handler,int id,const char * sys_name,const char * event_name,tep_event_handler_func func,void * context)6670 static int handle_matches(struct event_handler *handler, int id,
6671 const char *sys_name, const char *event_name,
6672 tep_event_handler_func func, void *context)
6673 {
6674 if (id >= 0 && id != handler->id)
6675 return 0;
6676
6677 if (event_name && (strcmp(event_name, handler->event_name) != 0))
6678 return 0;
6679
6680 if (sys_name && (strcmp(sys_name, handler->sys_name) != 0))
6681 return 0;
6682
6683 if (func != handler->func || context != handler->context)
6684 return 0;
6685
6686 return 1;
6687 }
6688
6689 /**
6690 * tep_unregister_event_handler - unregister an existing event handler
6691 * @pevent: the handle to the pevent
6692 * @id: the id of the event to unregister
6693 * @sys_name: the system name the handler belongs to
6694 * @event_name: the name of the event handler
6695 * @func: the function to call to parse the event information
6696 * @context: the data to be passed to @func
6697 *
6698 * This function removes existing event handler (parser).
6699 *
6700 * If @id is >= 0, then it is used to find the event.
6701 * else @sys_name and @event_name are used.
6702 *
6703 * Returns 0 if handler was removed successfully, -1 if event was not found.
6704 */
tep_unregister_event_handler(struct tep_handle * pevent,int id,const char * sys_name,const char * event_name,tep_event_handler_func func,void * context)6705 int tep_unregister_event_handler(struct tep_handle *pevent, int id,
6706 const char *sys_name, const char *event_name,
6707 tep_event_handler_func func, void *context)
6708 {
6709 struct event_format *event;
6710 struct event_handler *handle;
6711 struct event_handler **next;
6712
6713 event = search_event(pevent, id, sys_name, event_name);
6714 if (event == NULL)
6715 goto not_found;
6716
6717 if (event->handler == func && event->context == context) {
6718 pr_stat("removing override handler for event (%d) %s:%s. Going back to default handler.",
6719 event->id, event->system, event->name);
6720
6721 event->handler = NULL;
6722 event->context = NULL;
6723 return 0;
6724 }
6725
6726 not_found:
6727 for (next = &pevent->handlers; *next; next = &(*next)->next) {
6728 handle = *next;
6729 if (handle_matches(handle, id, sys_name, event_name,
6730 func, context))
6731 break;
6732 }
6733
6734 if (!(*next))
6735 return -1;
6736
6737 *next = handle->next;
6738 free_handler(handle);
6739
6740 return 0;
6741 }
6742
6743 /**
6744 * tep_alloc - create a pevent handle
6745 */
tep_alloc(void)6746 struct tep_handle *tep_alloc(void)
6747 {
6748 struct tep_handle *pevent = calloc(1, sizeof(*pevent));
6749
6750 if (pevent)
6751 pevent->ref_count = 1;
6752
6753 return pevent;
6754 }
6755
tep_ref(struct tep_handle * pevent)6756 void tep_ref(struct tep_handle *pevent)
6757 {
6758 pevent->ref_count++;
6759 }
6760
tep_free_format_field(struct format_field * field)6761 void tep_free_format_field(struct format_field *field)
6762 {
6763 free(field->type);
6764 if (field->alias != field->name)
6765 free(field->alias);
6766 free(field->name);
6767 free(field);
6768 }
6769
free_format_fields(struct format_field * field)6770 static void free_format_fields(struct format_field *field)
6771 {
6772 struct format_field *next;
6773
6774 while (field) {
6775 next = field->next;
6776 tep_free_format_field(field);
6777 field = next;
6778 }
6779 }
6780
free_formats(struct format * format)6781 static void free_formats(struct format *format)
6782 {
6783 free_format_fields(format->common_fields);
6784 free_format_fields(format->fields);
6785 }
6786
tep_free_format(struct event_format * event)6787 void tep_free_format(struct event_format *event)
6788 {
6789 free(event->name);
6790 free(event->system);
6791
6792 free_formats(&event->format);
6793
6794 free(event->print_fmt.format);
6795 free_args(event->print_fmt.args);
6796
6797 free(event);
6798 }
6799
6800 /**
6801 * tep_free - free a pevent handle
6802 * @pevent: the pevent handle to free
6803 */
tep_free(struct tep_handle * pevent)6804 void tep_free(struct tep_handle *pevent)
6805 {
6806 struct cmdline_list *cmdlist, *cmdnext;
6807 struct func_list *funclist, *funcnext;
6808 struct printk_list *printklist, *printknext;
6809 struct tep_function_handler *func_handler;
6810 struct event_handler *handle;
6811 int i;
6812
6813 if (!pevent)
6814 return;
6815
6816 cmdlist = pevent->cmdlist;
6817 funclist = pevent->funclist;
6818 printklist = pevent->printklist;
6819
6820 pevent->ref_count--;
6821 if (pevent->ref_count)
6822 return;
6823
6824 if (pevent->cmdlines) {
6825 for (i = 0; i < pevent->cmdline_count; i++)
6826 free(pevent->cmdlines[i].comm);
6827 free(pevent->cmdlines);
6828 }
6829
6830 while (cmdlist) {
6831 cmdnext = cmdlist->next;
6832 free(cmdlist->comm);
6833 free(cmdlist);
6834 cmdlist = cmdnext;
6835 }
6836
6837 if (pevent->func_map) {
6838 for (i = 0; i < (int)pevent->func_count; i++) {
6839 free(pevent->func_map[i].func);
6840 free(pevent->func_map[i].mod);
6841 }
6842 free(pevent->func_map);
6843 }
6844
6845 while (funclist) {
6846 funcnext = funclist->next;
6847 free(funclist->func);
6848 free(funclist->mod);
6849 free(funclist);
6850 funclist = funcnext;
6851 }
6852
6853 while (pevent->func_handlers) {
6854 func_handler = pevent->func_handlers;
6855 pevent->func_handlers = func_handler->next;
6856 free_func_handle(func_handler);
6857 }
6858
6859 if (pevent->printk_map) {
6860 for (i = 0; i < (int)pevent->printk_count; i++)
6861 free(pevent->printk_map[i].printk);
6862 free(pevent->printk_map);
6863 }
6864
6865 while (printklist) {
6866 printknext = printklist->next;
6867 free(printklist->printk);
6868 free(printklist);
6869 printklist = printknext;
6870 }
6871
6872 for (i = 0; i < pevent->nr_events; i++)
6873 tep_free_format(pevent->events[i]);
6874
6875 while (pevent->handlers) {
6876 handle = pevent->handlers;
6877 pevent->handlers = handle->next;
6878 free_handler(handle);
6879 }
6880
6881 free(pevent->trace_clock);
6882 free(pevent->events);
6883 free(pevent->sort_events);
6884 free(pevent->func_resolver);
6885
6886 free(pevent);
6887 }
6888
tep_unref(struct tep_handle * pevent)6889 void tep_unref(struct tep_handle *pevent)
6890 {
6891 tep_free(pevent);
6892 }
6893