fix uninialized tracefile.event.tracefile field
[lttv.git] / ltt / branches / poly / ltt / tracefile.c
1 /* This file is part of the Linux Trace Toolkit viewer
2 * Copyright (C) 2005 Mathieu Desnoyers
3 *
4 * Complete rewrite from the original version made by XangXiu Yang.
5 *
6 * This library is free software; you can redistribute it and/or
7 * modify it under the terms of the GNU Lesser General Public
8 * License Version 2.1 as published by the Free Software Foundation.
9 *
10 * This library is distributed in the hope that it will be useful,
11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
13 * Lesser General Public License for more details.
14 *
15 * You should have received a copy of the GNU Lesser General Public
16 * License along with this library; if not, write to the
17 * Free Software Foundation, Inc., 59 Temple Place - Suite 330,
18 * Boston, MA 02111-1307, USA.
19 */
20
21 #ifdef HAVE_CONFIG_H
22 #include <config.h>
23 #endif
24
25 #include <stdio.h>
26 #include <fcntl.h>
27 #include <string.h>
28 #include <dirent.h>
29 #include <sys/stat.h>
30 #include <sys/types.h>
31 #include <errno.h>
32 #include <unistd.h>
33 #include <math.h>
34 #include <glib.h>
35 #include <malloc.h>
36 #include <sys/mman.h>
37 #include <string.h>
38
39 // For realpath
40 #include <limits.h>
41 #include <stdlib.h>
42
43
44 #include "parser.h"
45 #include <ltt/ltt.h>
46 #include "ltt-private.h"
47 #include <ltt/trace.h>
48 #include <ltt/event.h>
49 //#include <ltt/type.h>
50 #include <ltt/ltt-types.h>
51 #include <ltt/marker.h>
52
53 /* Facility names used in this file */
54
55 GQuark LTT_FACILITY_NAME_HEARTBEAT,
56 LTT_EVENT_NAME_HEARTBEAT,
57 LTT_EVENT_NAME_HEARTBEAT_FULL;
58 GQuark LTT_TRACEFILE_NAME_FACILITIES;
59
60 #ifndef g_open
61 #define g_open open
62 #endif
63
64
65 #define __UNUSED__ __attribute__((__unused__))
66
67 #define g_info(format...) g_log (G_LOG_DOMAIN, G_LOG_LEVEL_INFO, format)
68
69 #ifndef g_debug
70 #define g_debug(format...) g_log (G_LOG_DOMAIN, G_LOG_LEVEL_DEBUG, format)
71 #endif
72
73 #define g_close close
74
75 /* Those macros must be called from within a function where page_size is a known
76 * variable */
77 #define PAGE_MASK (~(page_size-1))
78 #define PAGE_ALIGN(addr) (((addr)+page_size-1)&PAGE_MASK)
79
80 /* set the offset of the fields belonging to the event,
81 need the information of the archecture */
82 //void set_fields_offsets(LttTracefile *tf, LttEventType *event_type);
83 //size_t get_fields_offsets(LttTracefile *tf, LttEventType *event_type, void *data);
84
85 /* get the size of the field type according to
86 * The facility size information. */
87 #if 0
88 static inline void preset_field_type_size(LttTracefile *tf,
89 LttEventType *event_type,
90 off_t offset_root, off_t offset_parent,
91 enum field_status *fixed_root, enum field_status *fixed_parent,
92 LttField *field);
93 #endif //0
94
95 /* map a fixed size or a block information from the file (fd) */
96 static gint map_block(LttTracefile * tf, guint block_num);
97
98 /* calculate nsec per cycles for current block */
99 #if 0
100 static guint32 calc_nsecs_per_cycle(LttTracefile * t);
101 static guint64 cycles_2_ns(LttTracefile *tf, guint64 cycles);
102 #endif //0
103
104 /* go to the next event */
105 static int ltt_seek_next_event(LttTracefile *tf);
106
107 //void ltt_update_event_size(LttTracefile *tf);
108
109 static int open_tracefiles(LttTrace *trace, gchar *root_path,
110 gchar *relative_path);
111 static int ltt_process_facility_tracefile(LttTracefile *tf);
112 static void ltt_tracefile_time_span_get(LttTracefile *tf,
113 LttTime *start, LttTime *end);
114 static void group_time_span_get(GQuark name, gpointer data, gpointer user_data);
115 static gint map_block(LttTracefile * tf, guint block_num);
116 static int ltt_seek_next_event(LttTracefile *tf);
117 static void __attribute__((constructor)) init(void);
118 static void ltt_update_event_size(LttTracefile *tf);
119
120 /* Enable event debugging */
121 static int a_event_debug = 0;
122
123 void ltt_event_debug(int state)
124 {
125 a_event_debug = state;
126 }
127
128 //void precompute_offsets(LttFacility *fac, LttEventType *event);
129
130 #if 0
131 /* Functions to parse system.xml file (using glib xml parser) */
132 static void parser_start_element (GMarkupParseContext __UNUSED__ *context,
133 const gchar *element_name,
134 const gchar **attribute_names,
135 const gchar **attribute_values,
136 gpointer user_data,
137 GError **error)
138 {
139 int i=0;
140 LttSystemDescription* des = (LttSystemDescription* )user_data;
141 if(strcmp("system", element_name)){
142 *error = g_error_new(G_MARKUP_ERROR,
143 G_LOG_LEVEL_WARNING,
144 "This is not system.xml file");
145 return;
146 }
147
148 while(attribute_names[i]){
149 if(strcmp("node_name", attribute_names[i])==0){
150 des->node_name = g_strdup(attribute_values[i]);
151 }else if(strcmp("domainname", attribute_names[i])==0){
152 des->domain_name = g_strdup(attribute_values[i]);
153 }else if(strcmp("cpu", attribute_names[i])==0){
154 des->nb_cpu = atoi(attribute_values[i]);
155 }else if(strcmp("arch_size", attribute_names[i])==0){
156 if(strcmp(attribute_values[i],"LP32") == 0) des->size = LTT_LP32;
157 else if(strcmp(attribute_values[i],"ILP32") == 0) des->size = LTT_ILP32;
158 else if(strcmp(attribute_values[i],"LP64") == 0) des->size = LTT_LP64;
159 else if(strcmp(attribute_values[i],"ILP64") == 0) des->size = LTT_ILP64;
160 else if(strcmp(attribute_values[i],"UNKNOWN") == 0) des->size = LTT_UNKNOWN;
161 }else if(strcmp("endian", attribute_names[i])==0){
162 if(strcmp(attribute_values[i],"LITTLE_ENDIAN") == 0)
163 des->endian = LTT_LITTLE_ENDIAN;
164 else if(strcmp(attribute_values[i],"BIG_ENDIAN") == 0)
165 des->endian = LTT_BIG_ENDIAN;
166 }else if(strcmp("kernel_name", attribute_names[i])==0){
167 des->kernel_name = g_strdup(attribute_values[i]);
168 }else if(strcmp("kernel_release", attribute_names[i])==0){
169 des->kernel_release = g_strdup(attribute_values[i]);
170 }else if(strcmp("kernel_version", attribute_names[i])==0){
171 des->kernel_version = g_strdup(attribute_values[i]);
172 }else if(strcmp("machine", attribute_names[i])==0){
173 des->machine = g_strdup(attribute_values[i]);
174 }else if(strcmp("processor", attribute_names[i])==0){
175 des->processor = g_strdup(attribute_values[i]);
176 }else if(strcmp("hardware_platform", attribute_names[i])==0){
177 des->hardware_platform = g_strdup(attribute_values[i]);
178 }else if(strcmp("operating_system", attribute_names[i])==0){
179 des->operating_system = g_strdup(attribute_values[i]);
180 }else if(strcmp("ltt_major_version", attribute_names[i])==0){
181 des->ltt_major_version = atoi(attribute_values[i]);
182 }else if(strcmp("ltt_minor_version", attribute_names[i])==0){
183 des->ltt_minor_version = atoi(attribute_values[i]);
184 }else if(strcmp("ltt_block_size", attribute_names[i])==0){
185 des->ltt_block_size = atoi(attribute_values[i]);
186 }else{
187 *error = g_error_new(G_MARKUP_ERROR,
188 G_LOG_LEVEL_WARNING,
189 "Not a valid attribute");
190 return;
191 }
192 i++;
193 }
194 }
195
196 static void parser_characters (GMarkupParseContext __UNUSED__ *context,
197 const gchar *text,
198 gsize __UNUSED__ text_len,
199 gpointer user_data,
200 GError __UNUSED__ **error)
201 {
202 LttSystemDescription* des = (LttSystemDescription* )user_data;
203 des->description = g_strdup(text);
204 }
205 #endif //0
206
207 #if 0
208 LttFacility *ltt_trace_get_facility_by_num(LttTrace *t,
209 guint num)
210 {
211 g_assert(num < t->facilities_by_num->len);
212
213 return &g_array_index(t->facilities_by_num, LttFacility, num);
214
215 }
216 #endif //0
217
218 guint ltt_trace_get_num_cpu(LttTrace *t)
219 {
220 return t->num_cpu;
221 }
222
223
224 /* trace can be NULL
225 *
226 * Return value : 0 success, 1 bad tracefile
227 */
228 int parse_trace_header(void *header, LttTracefile *tf, LttTrace *t)
229 {
230 guint32 *magic_number = (guint32*)header;
231 struct ltt_trace_header_any *any = (struct ltt_trace_header_any *)header;
232
233 if(*magic_number == LTT_MAGIC_NUMBER)
234 tf->reverse_bo = 0;
235 else if(*magic_number == LTT_REV_MAGIC_NUMBER)
236 tf->reverse_bo = 1;
237 else /* invalid magic number, bad tracefile ! */
238 return 1;
239
240 /* Get float byte order : might be different from int byte order
241 * (or is set to 0 if the trace has no float (kernel trace)) */
242 tf->float_word_order = any->float_word_order;
243 tf->alignment = any->alignment;
244 tf->has_heartbeat = any->has_heartbeat;
245
246 if(t) {
247 t->arch_type = ltt_get_uint32(LTT_GET_BO(tf),
248 &any->arch_type);
249 t->arch_variant = ltt_get_uint32(LTT_GET_BO(tf),
250 &any->arch_variant);
251 t->arch_size = any->arch_size;
252 t->ltt_major_version = any->major_version;
253 t->ltt_minor_version = any->minor_version;
254 t->flight_recorder = any->flight_recorder;
255 // t->compact_facilities = NULL;
256 }
257
258 switch(any->major_version) {
259
260 case 0:
261 g_warning("Unsupported trace version : %hhu.%hhu",
262 any->major_version, any->minor_version);
263 return 1;
264 break;
265 case 1:
266 switch(any->minor_version) {
267 case 0:
268 {
269 struct ltt_trace_header_1_0 *vheader =
270 (struct ltt_trace_header_1_0 *)header;
271 tf->buffer_header_size =
272 sizeof(struct ltt_block_start_header)
273 + sizeof(struct ltt_trace_header_1_0);
274 tf->tsc_lsb_truncate = vheader->tsc_lsb_truncate;
275 tf->tscbits = vheader->tscbits;
276 tf->tsc_msb_cutoff = 32 - tf->tsc_lsb_truncate - tf->tscbits;
277 tf->tsc_mask = ((1ULL << (tf->tscbits))-1);
278 tf->tsc_mask = tf->tsc_mask << tf->tsc_lsb_truncate;
279 tf->tsc_mask_next_bit = (1ULL<<(tf->tscbits));
280 tf->tsc_mask_next_bit = tf->tsc_mask_next_bit << tf->tsc_lsb_truncate;
281 if(t) {
282 t->start_freq = ltt_get_uint64(LTT_GET_BO(tf),
283 &vheader->start_freq);
284 t->freq_scale = ltt_get_uint32(LTT_GET_BO(tf),
285 &vheader->freq_scale);
286 t->start_tsc = ltt_get_uint64(LTT_GET_BO(tf),
287 &vheader->start_tsc);
288 t->start_monotonic = ltt_get_uint64(LTT_GET_BO(tf),
289 &vheader->start_monotonic);
290 t->start_time.tv_sec = ltt_get_uint64(LTT_GET_BO(tf),
291 &vheader->start_time_sec);
292 t->start_time.tv_nsec = ltt_get_uint64(LTT_GET_BO(tf),
293 &vheader->start_time_usec);
294 t->start_time.tv_nsec *= 1000; /* microsec to nanosec */
295
296 t->start_time_from_tsc = ltt_time_from_uint64(
297 (double)t->start_tsc
298 * (1000000000.0 / tf->trace->freq_scale)
299 / (double)t->start_freq);
300 t->compact_event_bits = 0;
301 }
302 }
303 break;
304 default:
305 g_warning("Unsupported trace version : %hhu.%hhu",
306 any->major_version, any->minor_version);
307 return 1;
308 }
309 break;
310 default:
311 g_warning("Unsupported trace version : %hhu.%hhu",
312 any->major_version, any->minor_version);
313 return 1;
314 }
315
316
317 return 0;
318 }
319
320
321
322 /*****************************************************************************
323 *Function name
324 * ltt_tracefile_open : open a trace file, construct a LttTracefile
325 *Input params
326 * t : the trace containing the tracefile
327 * fileName : path name of the trace file
328 * tf : the tracefile structure
329 *Return value
330 * : 0 for success, -1 otherwise.
331 ****************************************************************************/
332
333 gint ltt_tracefile_open(LttTrace *t, gchar * fileName, LttTracefile *tf)
334 {
335 struct stat lTDFStat; /* Trace data file status */
336 struct ltt_block_start_header *header;
337 int page_size = getpagesize();
338
339 //open the file
340 tf->long_name = g_quark_from_string(fileName);
341 tf->trace = t;
342 tf->fd = open(fileName, O_RDONLY);
343 if(tf->fd < 0){
344 g_warning("Unable to open input data file %s\n", fileName);
345 goto end;
346 }
347
348 // Get the file's status
349 if(fstat(tf->fd, &lTDFStat) < 0){
350 g_warning("Unable to get the status of the input data file %s\n", fileName);
351 goto close_file;
352 }
353
354 // Is the file large enough to contain a trace
355 if(lTDFStat.st_size <
356 (off_t)(sizeof(struct ltt_block_start_header)
357 + sizeof(struct ltt_trace_header_any))){
358 g_print("The input data file %s does not contain a trace\n", fileName);
359 goto close_file;
360 }
361
362 /* Temporarily map the buffer start header to get trace information */
363 /* Multiple of pages aligned head */
364 tf->buffer.head = mmap(0,
365 PAGE_ALIGN(sizeof(struct ltt_block_start_header)
366 + sizeof(struct ltt_trace_header_any)), PROT_READ,
367 MAP_PRIVATE, tf->fd, 0);
368 if(tf->buffer.head == MAP_FAILED) {
369 perror("Error in allocating memory for buffer of tracefile");
370 goto close_file;
371 }
372 g_assert( ( (guint)tf->buffer.head&(8-1) ) == 0); // make sure it's aligned.
373
374 header = (struct ltt_block_start_header*)tf->buffer.head;
375
376 if(parse_trace_header(header->trace, tf, NULL)) {
377 g_warning("parse_trace_header error");
378 goto unmap_file;
379 }
380
381 //store the size of the file
382 tf->file_size = lTDFStat.st_size;
383 tf->buf_size = ltt_get_uint32(LTT_GET_BO(tf), &header->buf_size);
384 tf->num_blocks = tf->file_size / tf->buf_size;
385
386 if(munmap(tf->buffer.head,
387 PAGE_ALIGN(sizeof(struct ltt_block_start_header)
388 + sizeof(struct ltt_trace_header_any)))) {
389 g_warning("unmap size : %u\n",
390 PAGE_ALIGN(sizeof(struct ltt_block_start_header)
391 + sizeof(struct ltt_trace_header_any)));
392 perror("munmap error");
393 g_assert(0);
394 }
395 tf->buffer.head = NULL;
396
397 //read the first block
398 if(map_block(tf,0)) {
399 perror("Cannot map block for tracefile");
400 goto close_file;
401 }
402
403 return 0;
404
405 /* Error */
406 unmap_file:
407 if(munmap(tf->buffer.head,
408 PAGE_ALIGN(sizeof(struct ltt_block_start_header)
409 + sizeof(struct ltt_trace_header_any)))) {
410 g_warning("unmap size : %u\n",
411 PAGE_ALIGN(sizeof(struct ltt_block_start_header)
412 + sizeof(struct ltt_trace_header_any)));
413 perror("munmap error");
414 g_assert(0);
415 }
416 close_file:
417 close(tf->fd);
418 end:
419 return -1;
420 }
421
422 LttTrace *ltt_tracefile_get_trace(LttTracefile *tf)
423 {
424 return tf->trace;
425 }
426
427 #if 0
428 /*****************************************************************************
429 *Open control and per cpu tracefiles
430 ****************************************************************************/
431
432 void ltt_tracefile_open_cpu(LttTrace *t, gchar * tracefile_name)
433 {
434 LttTracefile * tf;
435 tf = ltt_tracefile_open(t,tracefile_name);
436 if(!tf) return;
437 t->per_cpu_tracefile_number++;
438 g_ptr_array_add(t->per_cpu_tracefiles, tf);
439 }
440
441 gint ltt_tracefile_open_control(LttTrace *t, gchar * control_name)
442 {
443 LttTracefile * tf;
444 LttEvent ev;
445 LttFacility * f;
446 void * pos;
447 FacilityLoad fLoad;
448 unsigned int i;
449
450 tf = ltt_tracefile_open(t,control_name);
451 if(!tf) {
452 g_warning("ltt_tracefile_open_control : bad file descriptor");
453 return -1;
454 }
455 t->control_tracefile_number++;
456 g_ptr_array_add(t->control_tracefiles,tf);
457
458 //parse facilities tracefile to get base_id
459 if(strcmp(&control_name[strlen(control_name)-10],"facilities") ==0){
460 while(1){
461 if(!ltt_tracefile_read(tf,&ev)) return 0; // end of file
462
463 if(ev.event_id == TRACE_FACILITY_LOAD){
464 pos = ev.data;
465 fLoad.name = (gchar*)pos;
466 fLoad.checksum = *(LttChecksum*)(pos + strlen(fLoad.name));
467 fLoad.base_code = *(guint32 *)(pos + strlen(fLoad.name) + sizeof(LttChecksum));
468
469 for(i=0;i<t->facility_number;i++){
470 f = (LttFacility*)g_ptr_array_index(t->facilities,i);
471 if(strcmp(f->name,fLoad.name)==0 && fLoad.checksum==f->checksum){
472 f->base_id = fLoad.base_code;
473 break;
474 }
475 }
476 if(i==t->facility_number) {
477 g_warning("Facility: %s, checksum: %u is not found",
478 fLoad.name,(unsigned int)fLoad.checksum);
479 return -1;
480 }
481 }else if(ev.event_id == TRACE_BLOCK_START){
482 continue;
483 }else if(ev.event_id == TRACE_BLOCK_END){
484 break;
485 }else {
486 g_warning("Not valid facilities trace file");
487 return -1;
488 }
489 }
490 }
491 return 0;
492 }
493 #endif //0
494
495 /*****************************************************************************
496 *Function name
497 * ltt_tracefile_close: close a trace file,
498 *Input params
499 * t : tracefile which will be closed
500 ****************************************************************************/
501
502 void ltt_tracefile_close(LttTracefile *t)
503 {
504 int page_size = getpagesize();
505
506 if(t->buffer.head != NULL)
507 if(munmap(t->buffer.head, PAGE_ALIGN(t->buf_size))) {
508 g_warning("unmap size : %u\n",
509 PAGE_ALIGN(t->buf_size));
510 perror("munmap error");
511 g_assert(0);
512 }
513
514 close(t->fd);
515 }
516
517
518 /*****************************************************************************
519 *Get system information
520 ****************************************************************************/
521 #if 0
522 gint getSystemInfo(LttSystemDescription* des, gchar * pathname)
523 {
524 int fd;
525 GIOChannel *iochan;
526 gchar *buf = NULL;
527 gsize length;
528
529 GMarkupParseContext * context;
530 GError * error = NULL;
531 GMarkupParser markup_parser =
532 {
533 parser_start_element,
534 NULL,
535 parser_characters,
536 NULL, /* passthrough */
537 NULL /* error */
538 };
539
540 fd = g_open(pathname, O_RDONLY, 0);
541 if(fd == -1){
542 g_warning("Can not open file : %s\n", pathname);
543 return -1;
544 }
545
546 iochan = g_io_channel_unix_new(fd);
547
548 context = g_markup_parse_context_new(&markup_parser, 0, des,NULL);
549
550 //while(fgets(buf,DIR_NAME_SIZE, fp) != NULL){
551 while(g_io_channel_read_line(iochan, &buf, &length, NULL, &error)
552 != G_IO_STATUS_EOF) {
553
554 if(error != NULL) {
555 g_warning("Can not read xml file: \n%s\n", error->message);
556 g_error_free(error);
557 }
558 if(!g_markup_parse_context_parse(context, buf, length, &error)){
559 if(error != NULL) {
560 g_warning("Can not parse xml file: \n%s\n", error->message);
561 g_error_free(error);
562 }
563 g_markup_parse_context_free(context);
564
565 g_io_channel_shutdown(iochan, FALSE, &error); /* No flush */
566 if(error != NULL) {
567 g_warning("Can not close file: \n%s\n", error->message);
568 g_error_free(error);
569 }
570
571 close(fd);
572 return -1;
573 }
574 }
575 g_markup_parse_context_free(context);
576
577 g_io_channel_shutdown(iochan, FALSE, &error); /* No flush */
578 if(error != NULL) {
579 g_warning("Can not close file: \n%s\n", error->message);
580 g_error_free(error);
581 }
582
583 g_close(fd);
584
585 g_free(buf);
586 return 0;
587 }
588 #endif //0
589
590 /*****************************************************************************
591 *The following functions get facility/tracefile information
592 ****************************************************************************/
593 #if 0
594 gint getFacilityInfo(LttTrace *t, gchar* eventdefs)
595 {
596 GDir * dir;
597 const gchar * name;
598 unsigned int i,j;
599 LttFacility * f;
600 LttEventType * et;
601 gchar fullname[DIR_NAME_SIZE];
602 GError * error = NULL;
603
604 dir = g_dir_open(eventdefs, 0, &error);
605
606 if(error != NULL) {
607 g_warning("Can not open directory: %s, %s\n", eventdefs, error->message);
608 g_error_free(error);
609 return -1;
610 }
611
612 while((name = g_dir_read_name(dir)) != NULL){
613 if(!g_pattern_match_simple("*.xml", name)) continue;
614 strcpy(fullname,eventdefs);
615 strcat(fullname,name);
616 ltt_facility_open(t,fullname);
617 }
618 g_dir_close(dir);
619
620 for(j=0;j<t->facility_number;j++){
621 f = (LttFacility*)g_ptr_array_index(t->facilities, j);
622 for(i=0; i<f->event_number; i++){
623 et = f->events[i];
624 setFieldsOffset(NULL, et, NULL, t);
625 }
626 }
627 return 0;
628 }
629 #endif //0
630
631 /*****************************************************************************
632 *A trace is specified as a pathname to the directory containing all the
633 *associated data (control tracefiles, per cpu tracefiles, event
634 *descriptions...).
635 *
636 *When a trace is closed, all the associated facilities, types and fields
637 *are released as well.
638 */
639
640
641 /****************************************************************************
642 * get_absolute_pathname
643 *
644 * return the unique pathname in the system
645 *
646 * MD : Fixed this function so it uses realpath, dealing well with
647 * forgotten cases (.. were not used correctly before).
648 *
649 ****************************************************************************/
650 void get_absolute_pathname(const gchar *pathname, gchar * abs_pathname)
651 {
652 abs_pathname[0] = '\0';
653
654 if ( realpath (pathname, abs_pathname) != NULL)
655 return;
656 else
657 {
658 /* error, return the original path unmodified */
659 strcpy(abs_pathname, pathname);
660 return;
661 }
662 return;
663 }
664
665 /* Search for something like : .*_.*
666 *
667 * The left side is the name, the right side is the number.
668 */
669
670 int get_tracefile_name_number(gchar *raw_name,
671 GQuark *name,
672 guint *num,
673 guint *tid,
674 guint *pgid,
675 guint64 *creation)
676 {
677 guint raw_name_len = strlen(raw_name);
678 gchar char_name[PATH_MAX];
679 int i;
680 int underscore_pos;
681 long int cpu_num;
682 gchar *endptr;
683 gchar *tmpptr;
684
685 for(i=raw_name_len-1;i>=0;i--) {
686 if(raw_name[i] == '_') break;
687 }
688 if(i==-1) { /* Either not found or name length is 0 */
689 /* This is a userspace tracefile */
690 strncpy(char_name, raw_name, raw_name_len);
691 char_name[raw_name_len] = '\0';
692 *name = g_quark_from_string(char_name);
693 *num = 0; /* unknown cpu */
694 for(i=0;i<raw_name_len;i++) {
695 if(raw_name[i] == '/') {
696 break;
697 }
698 }
699 i++;
700 for(;i<raw_name_len;i++) {
701 if(raw_name[i] == '/') {
702 break;
703 }
704 }
705 i++;
706 for(;i<raw_name_len;i++) {
707 if(raw_name[i] == '-') {
708 break;
709 }
710 }
711 if(i == raw_name_len) return -1;
712 i++;
713 tmpptr = &raw_name[i];
714 for(;i<raw_name_len;i++) {
715 if(raw_name[i] == '.') {
716 raw_name[i] = ' ';
717 break;
718 }
719 }
720 *tid = strtoul(tmpptr, &endptr, 10);
721 if(endptr == tmpptr)
722 return -1; /* No digit */
723 if(*tid == ULONG_MAX)
724 return -1; /* underflow / overflow */
725 i++;
726 tmpptr = &raw_name[i];
727 for(;i<raw_name_len;i++) {
728 if(raw_name[i] == '.') {
729 raw_name[i] = ' ';
730 break;
731 }
732 }
733 *pgid = strtoul(tmpptr, &endptr, 10);
734 if(endptr == tmpptr)
735 return -1; /* No digit */
736 if(*pgid == ULONG_MAX)
737 return -1; /* underflow / overflow */
738 i++;
739 tmpptr = &raw_name[i];
740 *creation = strtoull(tmpptr, &endptr, 10);
741 if(endptr == tmpptr)
742 return -1; /* No digit */
743 if(*creation == G_MAXUINT64)
744 return -1; /* underflow / overflow */
745 } else {
746 underscore_pos = i;
747
748 cpu_num = strtol(raw_name+underscore_pos+1, &endptr, 10);
749
750 if(endptr == raw_name+underscore_pos+1)
751 return -1; /* No digit */
752 if(cpu_num == LONG_MIN || cpu_num == LONG_MAX)
753 return -1; /* underflow / overflow */
754
755 strncpy(char_name, raw_name, underscore_pos);
756 char_name[underscore_pos] = '\0';
757
758 *name = g_quark_from_string(char_name);
759 *num = cpu_num;
760 }
761
762
763 return 0;
764 }
765
766
767 GData **ltt_trace_get_tracefiles_groups(LttTrace *trace)
768 {
769 return &trace->tracefiles;
770 }
771
772
773 void compute_tracefile_group(GQuark key_id,
774 GArray *group,
775 struct compute_tracefile_group_args *args)
776 {
777 int i;
778 LttTracefile *tf;
779
780 for(i=0; i<group->len; i++) {
781 tf = &g_array_index (group, LttTracefile, i);
782 if(tf->cpu_online)
783 args->func(tf, args->func_args);
784 }
785 }
786
787
788 void ltt_tracefile_group_destroy(gpointer data)
789 {
790 GArray *group = (GArray *)data;
791 int i;
792 LttTracefile *tf;
793
794 for(i=0; i<group->len; i++) {
795 tf = &g_array_index (group, LttTracefile, i);
796 if(tf->cpu_online)
797 ltt_tracefile_close(tf);
798 }
799 g_array_free(group, TRUE);
800 }
801
802 gboolean ltt_tracefile_group_has_cpu_online(gpointer data)
803 {
804 GArray *group = (GArray *)data;
805 int i;
806 LttTracefile *tf;
807
808 for(i=0; i<group->len; i++) {
809 tf = &g_array_index (group, LttTracefile, i);
810 if(tf->cpu_online)
811 return 1;
812 }
813 return 0;
814 }
815
816
817 /* Open each tracefile under a specific directory. Put them in a
818 * GData : permits to access them using their tracefile group pathname.
819 * i.e. access control/modules tracefile group by index :
820 * "control/module".
821 *
822 * relative path is the path relative to the trace root
823 * root path is the full path
824 *
825 * A tracefile group is simply an array where all the per cpu tracefiles sit.
826 */
827
828 int open_tracefiles(LttTrace *trace, gchar *root_path, gchar *relative_path)
829 {
830 DIR *dir = opendir(root_path);
831 struct dirent *entry;
832 struct stat stat_buf;
833 int ret;
834
835 gchar path[PATH_MAX];
836 int path_len;
837 gchar *path_ptr;
838
839 int rel_path_len;
840 gchar rel_path[PATH_MAX];
841 gchar *rel_path_ptr;
842 LttTracefile tmp_tf;
843
844 if(dir == NULL) {
845 perror(root_path);
846 return ENOENT;
847 }
848
849 strncpy(path, root_path, PATH_MAX-1);
850 path_len = strlen(path);
851 path[path_len] = '/';
852 path_len++;
853 path_ptr = path + path_len;
854
855 strncpy(rel_path, relative_path, PATH_MAX-1);
856 rel_path_len = strlen(rel_path);
857 rel_path[rel_path_len] = '/';
858 rel_path_len++;
859 rel_path_ptr = rel_path + rel_path_len;
860
861 while((entry = readdir(dir)) != NULL) {
862
863 if(entry->d_name[0] == '.') continue;
864
865 strncpy(path_ptr, entry->d_name, PATH_MAX - path_len);
866 strncpy(rel_path_ptr, entry->d_name, PATH_MAX - rel_path_len);
867
868 ret = stat(path, &stat_buf);
869 if(ret == -1) {
870 perror(path);
871 continue;
872 }
873
874 g_debug("Tracefile file or directory : %s\n", path);
875
876 if(strcmp(rel_path, "/eventdefs") == 0) continue;
877
878 if(S_ISDIR(stat_buf.st_mode)) {
879
880 g_debug("Entering subdirectory...\n");
881 ret = open_tracefiles(trace, path, rel_path);
882 if(ret < 0) continue;
883 } else if(S_ISREG(stat_buf.st_mode)) {
884 GQuark name;
885 guint num, tid, pgid;
886 guint64 creation;
887 GArray *group;
888 num = tid = pgid = 0;
889 creation = 0;
890 if(get_tracefile_name_number(rel_path, &name, &num, &tid, &pgid, &creation))
891 continue; /* invalid name */
892
893 g_debug("Opening file.\n");
894 if(ltt_tracefile_open(trace, path, &tmp_tf)) {
895 g_info("Error opening tracefile %s", path);
896
897 continue; /* error opening the tracefile : bad magic number ? */
898 }
899
900 g_debug("Tracefile name is %s and number is %u",
901 g_quark_to_string(name), num);
902
903 tmp_tf.cpu_online = 1;
904 tmp_tf.cpu_num = num;
905 tmp_tf.name = name;
906 tmp_tf.tid = tid;
907 tmp_tf.pgid = pgid;
908 tmp_tf.creation = creation;
909 if(tmp_tf.name == g_quark_from_string("/compact")
910 || tmp_tf.name == g_quark_from_string("/flight-compact"))
911 tmp_tf.compact = 1;
912 else
913 tmp_tf.compact = 0;
914 group = g_datalist_id_get_data(&trace->tracefiles, name);
915 if(group == NULL) {
916 /* Elements are automatically cleared when the array is allocated.
917 * It makes the cpu_online variable set to 0 : cpu offline, by default.
918 */
919 group = g_array_sized_new (FALSE, TRUE, sizeof(LttTracefile), 10);
920 g_datalist_id_set_data_full(&trace->tracefiles, name,
921 group, ltt_tracefile_group_destroy);
922 }
923
924 /* Add the per cpu tracefile to the named group */
925 unsigned int old_len = group->len;
926 if(num+1 > old_len)
927 group = g_array_set_size(group, num+1);
928 g_array_index (group, LttTracefile, num) = tmp_tf;
929 g_array_index (group, LttTracefile, num).event.tracefile =
930 &g_array_index (group, LttTracefile, num);
931 }
932 }
933
934 closedir(dir);
935
936 return 0;
937 }
938
939 /* ltt_get_facility_description
940 *
941 * Opens the file corresponding to the requested facility (identified by fac_id
942 * and checksum).
943 *
944 * The name searched is : %trace root%/eventdefs/facname_checksum.xml
945 *
946 * Returns 0 on success, or 1 on failure.
947 */
948 #if 0
949 static int ltt_get_facility_description(LttFacility *f,
950 LttTrace *t,
951 LttTracefile *fac_tf)
952 {
953 char desc_file_name[PATH_MAX];
954 const gchar *text;
955 guint textlen;
956 gint err;
957 gint arch_spec;
958 gint fac_name_len;
959
960 text = g_quark_to_string(t->pathname);
961 textlen = strlen(text);
962
963 if(textlen >= PATH_MAX) goto name_error;
964 strcpy(desc_file_name, text);
965
966 text = "/eventdefs/";
967 textlen+=strlen(text);
968 if(textlen >= PATH_MAX) goto name_error;
969 strcat(desc_file_name, text);
970
971 text = g_quark_to_string(f->name);
972 fac_name_len = strlen(text);
973 textlen+=fac_name_len;
974 if(textlen >= PATH_MAX) goto name_error;
975 strcat(desc_file_name, text);
976
977 /* arch specific facilities are named like this : name_arch */
978 if(fac_name_len+1 < sizeof("_arch"))
979 arch_spec = 0;
980 else {
981 if(!strcmp(&text[fac_name_len+1-sizeof("_arch")], "_arch"))
982 arch_spec = 1;
983 else
984 arch_spec = 0;
985 }
986
987 #if 0
988 text = "_";
989 textlen+=strlen(text);
990 if(textlen >= PATH_MAX) goto name_error;
991 strcat(desc_file_name, text);
992
993 err = snprintf(desc_file_name+textlen, PATH_MAX-textlen-1,
994 "%u", f->checksum);
995 if(err < 0) goto name_error;
996
997 textlen=strlen(desc_file_name);
998
999 #endif //0
1000
1001 if(arch_spec) {
1002 switch(t->arch_type) {
1003 case LTT_ARCH_TYPE_I386:
1004 text = "_i386";
1005 break;
1006 case LTT_ARCH_TYPE_PPC:
1007 text = "_ppc";
1008 break;
1009 case LTT_ARCH_TYPE_SH:
1010 text = "_sh";
1011 break;
1012 case LTT_ARCH_TYPE_S390:
1013 text = "_s390";
1014 break;
1015 case LTT_ARCH_TYPE_MIPS:
1016 text = "_mips";
1017 break;
1018 case LTT_ARCH_TYPE_ARM:
1019 text = "_arm";
1020 break;
1021 case LTT_ARCH_TYPE_PPC64:
1022 text = "_ppc64";
1023 break;
1024 case LTT_ARCH_TYPE_X86_64:
1025 text = "_x86_64";
1026 break;
1027 case LTT_ARCH_TYPE_C2:
1028 text = "_c2";
1029 break;
1030 case LTT_ARCH_TYPE_POWERPC:
1031 text = "_powerpc";
1032 break;
1033 default:
1034 g_error("Trace from unsupported architecture.");
1035 }
1036 textlen+=strlen(text);
1037 if(textlen >= PATH_MAX) goto name_error;
1038 strcat(desc_file_name, text);
1039 }
1040
1041 text = ".xml";
1042 textlen+=strlen(text);
1043 if(textlen >= PATH_MAX) goto name_error;
1044 strcat(desc_file_name, text);
1045
1046 err = ltt_facility_open(f, t, desc_file_name);
1047 if(err) goto facility_error;
1048
1049 return 0;
1050
1051 facility_error:
1052 name_error:
1053 return 1;
1054 }
1055
1056 static void ltt_fac_ids_destroy(gpointer data)
1057 {
1058 GArray *fac_ids = (GArray *)data;
1059
1060 g_array_free(fac_ids, TRUE);
1061 }
1062 #endif //0
1063
1064 /* Presumes the tracefile is already seeked at the beginning. It makes sense,
1065 * because it must be done just after the opening */
1066 int ltt_process_facility_tracefile(LttTracefile *tf)
1067 {
1068 int err;
1069 //LttFacility *fac;
1070 //GArray *fac_ids;
1071 guint i;
1072 //LttEventType *et;
1073
1074 while(1) {
1075 err = ltt_tracefile_read_seek(tf);
1076 if(err == EPERM) goto seek_error;
1077 else if(err == ERANGE) break; /* End of tracefile */
1078
1079 err = ltt_tracefile_read_update_event(tf);
1080 if(err) goto update_error;
1081
1082 /* We are on a facility load/or facility unload/ or heartbeat event */
1083 /* The rules are :
1084 * * facility 0 is hardcoded : this is the core facility. It will be shown
1085 * in the facility array though, and is shown as "loaded builtin" in the
1086 * trace.
1087 * It contains event :
1088 * 0 : facility load
1089 * 1 : facility unload
1090 * 2 : state dump facility load
1091 * 3 : heartbeat
1092 */
1093 if(tf->event.event_id >= MARKER_CORE_IDS) {
1094 /* Should only contain core facility */
1095 g_warning("Error in processing facility file %s, "
1096 "should not contain event id %u.", g_quark_to_string(tf->name),
1097 tf->event.event_id);
1098 err = EPERM;
1099 goto event_id_error;
1100 } else {
1101
1102 char *pos;
1103 const char *marker_name, *format;
1104 uint16_t id;
1105 guint8 int_size, long_size, pointer_size, size_t_size, alignment;
1106
1107 // FIXME align
1108 switch((enum marker_id)tf->event.event_id) {
1109 case MARKER_ID_SET_MARKER_ID:
1110 marker_name = pos = tf->event.data;
1111 g_debug("Doing MARKER_ID_SET_MARKER_ID of marker %s", marker_name);
1112 pos += strlen(marker_name) + 1;
1113 //remove genevent compatibility
1114 //pos += ltt_align((size_t)pos, tf->trace->arch_size, tf->alignment);
1115 pos += ltt_align((size_t)pos, sizeof(uint16_t), tf->alignment);
1116 id = ltt_get_uint16(LTT_GET_BO(tf), pos);
1117 g_debug("In MARKER_ID_SET_MARKER_ID of marker %s id %hu",
1118 marker_name, id);
1119 pos += sizeof(guint16);
1120 int_size = *(guint8*)pos;
1121 pos += sizeof(guint8);
1122 long_size = *(guint8*)pos;
1123 pos += sizeof(guint8);
1124 pointer_size = *(guint8*)pos;
1125 pos += sizeof(guint8);
1126 size_t_size = *(guint8*)pos;
1127 pos += sizeof(guint8);
1128 alignment = *(guint8*)pos;
1129 pos += sizeof(guint8);
1130 marker_id_event(tf->trace, g_quark_from_string(marker_name),
1131 id, int_size, long_size,
1132 pointer_size, size_t_size, alignment);
1133 break;
1134 case MARKER_ID_SET_MARKER_FORMAT:
1135 marker_name = pos = tf->event.data;
1136 g_debug("Doing MARKER_ID_SET_MARKER_FORMAT of marker %s",
1137 marker_name);
1138 pos += strlen(marker_name) + 1;
1139 //break genevent.
1140 //pos += ltt_align((size_t)pos, tf->trace->arch_size, tf->alignment);
1141 format = pos;
1142 pos += strlen(format) + 1;
1143 //break genevent
1144 //pos += ltt_align((size_t)pos, tf->trace->arch_size, tf->alignment);
1145 marker_format_event(tf->trace, g_quark_from_string(marker_name),
1146 format);
1147 /* get information from dictionnary TODO */
1148 break;
1149 case MARKER_ID_HEARTBEAT_32:
1150 case MARKER_ID_HEARTBEAT_64:
1151 break;
1152 default:
1153 g_warning("Error in processing facility file %s, "
1154 "unknown event id %hhu.",
1155 g_quark_to_string(tf->name),
1156 tf->event.event_id);
1157 err = EPERM;
1158 goto event_id_error;
1159 }
1160 }
1161 }
1162 return 0;
1163
1164 /* Error handling */
1165 event_id_error:
1166 update_error:
1167 seek_error:
1168 g_warning("An error occured in facility tracefile parsing");
1169 return err;
1170 }
1171
1172
1173 LttTrace *ltt_trace_open(const gchar *pathname)
1174 {
1175 gchar abs_path[PATH_MAX];
1176 LttTrace * t;
1177 LttTracefile *tf;
1178 GArray *group;
1179 int i, ret;
1180 struct ltt_block_start_header *header;
1181 DIR *dir;
1182 struct dirent *entry;
1183 guint control_found = 0;
1184 guint eventdefs_found = 0;
1185 struct stat stat_buf;
1186 gchar path[PATH_MAX];
1187
1188 t = g_new(LttTrace, 1);
1189 if(!t) goto alloc_error;
1190
1191 get_absolute_pathname(pathname, abs_path);
1192 t->pathname = g_quark_from_string(abs_path);
1193
1194 g_datalist_init(&t->tracefiles);
1195
1196 /* Test to see if it looks like a trace */
1197 dir = opendir(abs_path);
1198 if(dir == NULL) {
1199 perror(abs_path);
1200 goto open_error;
1201 }
1202 while((entry = readdir(dir)) != NULL) {
1203 strcpy(path, abs_path);
1204 strcat(path, "/");
1205 strcat(path, entry->d_name);
1206 ret = stat(path, &stat_buf);
1207 if(ret == -1) {
1208 perror(path);
1209 continue;
1210 }
1211 if(S_ISDIR(stat_buf.st_mode)) {
1212 if(strcmp(entry->d_name, "control") == 0) {
1213 control_found = 1;
1214 }
1215 if(strcmp(entry->d_name, "eventdefs") == 0) {
1216 eventdefs_found = 1;
1217 }
1218 }
1219 }
1220 closedir(dir);
1221
1222 if(!control_found || !eventdefs_found) goto find_error;
1223
1224 /* Open all the tracefiles */
1225 if(open_tracefiles(t, abs_path, "")) {
1226 g_warning("Error opening tracefile %s", abs_path);
1227 goto find_error;
1228 }
1229
1230 /* Parse each trace control/facilitiesN files : get runtime fac. info */
1231 group = g_datalist_id_get_data(&t->tracefiles, LTT_TRACEFILE_NAME_FACILITIES);
1232 if(group == NULL) {
1233 g_error("Trace %s has no facility tracefile", abs_path);
1234 g_assert(0);
1235 goto facilities_error;
1236 }
1237
1238 /* Get the trace information for the control/facility 0 tracefile */
1239 g_assert(group->len > 0);
1240 tf = &g_array_index (group, LttTracefile, 0);
1241 header = (struct ltt_block_start_header*)tf->buffer.head;
1242 g_assert(parse_trace_header(header->trace,
1243 tf, t) == 0);
1244
1245 t->num_cpu = group->len;
1246
1247 ret = allocate_marker_data(t);
1248 if (ret)
1249 g_error("Error in allocating marker data");
1250
1251 for(i=0; i<group->len; i++) {
1252 tf = &g_array_index (group, LttTracefile, i);
1253 if(ltt_process_facility_tracefile(tf))
1254 goto facilities_error;
1255 }
1256
1257 return t;
1258
1259 /* Error handling */
1260 facilities_error:
1261 destroy_marker_data(t);
1262 find_error:
1263 g_datalist_clear(&t->tracefiles);
1264 open_error:
1265 g_free(t);
1266 alloc_error:
1267 return NULL;
1268
1269 }
1270
1271 GQuark ltt_trace_name(const LttTrace *t)
1272 {
1273 return t->pathname;
1274 }
1275
1276
1277 /******************************************************************************
1278 * When we copy a trace, we want all the opening actions to happen again :
1279 * the trace will be reopened and totally independant from the original.
1280 * That's why we call ltt_trace_open.
1281 *****************************************************************************/
1282 LttTrace *ltt_trace_copy(LttTrace *self)
1283 {
1284 return ltt_trace_open(g_quark_to_string(self->pathname));
1285 }
1286
1287 void ltt_trace_close(LttTrace *t)
1288 {
1289 g_datalist_clear(&t->tracefiles);
1290 g_free(t);
1291 }
1292
1293
1294 /*****************************************************************************
1295 *Get the system description of the trace
1296 ****************************************************************************/
1297 #if 0
1298 LttFacility *ltt_trace_facility_by_id(LttTrace *t, guint8 id)
1299 {
1300 g_assert(id < t->facilities_by_num->len);
1301 return &g_array_index(t->facilities_by_num, LttFacility, id);
1302 }
1303
1304 /* ltt_trace_facility_get_by_name
1305 *
1306 * Returns the GArray of facility indexes. All the fac_ids that matches the
1307 * requested facility name.
1308 *
1309 * If name is not found, returns NULL.
1310 */
1311 GArray *ltt_trace_facility_get_by_name(LttTrace *t, GQuark name)
1312 {
1313 return g_datalist_id_get_data(&t->facilities_by_name, name);
1314 }
1315 #endif //0
1316
1317 /*****************************************************************************
1318 * Functions to discover all the event types in the trace
1319 ****************************************************************************/
1320
1321 #if 0
1322 unsigned ltt_trace_eventtype_number(LttTrace *t)
1323 {
1324 unsigned int i;
1325 unsigned count = 0;
1326 unsigned int num = t->facility_number;
1327 LttFacility * f;
1328
1329 for(i=0;i<num;i++){
1330 f = (LttFacility*)g_ptr_array_index(t->facilities, i);
1331 count += f->event_number;
1332 }
1333 return count;
1334 }
1335 #endif //0
1336
1337 #if 0
1338 //use an iteration on all the trace facilities, and inside iteration on all the
1339 //event types in each facilities instead.
1340 LttEventType *ltt_trace_eventtype_get(LttTrace *t, unsigned evId)
1341 {
1342 LttEventType *event_type;
1343
1344 LttFacility * f;
1345 f = ltt_trace_facility_by_id(t,evId);
1346
1347 if(unlikely(!f)) event_type = NULL;
1348 else event_type = f->events[evId - f->base_id];
1349
1350 return event_type;
1351 }
1352 #endif //0
1353
1354 #if 0
1355 /*****************************************************************************
1356 * ltt_trace_find_tracefile
1357 *
1358 * Find a tracefile by name and index in the group.
1359 *
1360 * Returns a pointer to the tracefiles, else NULL.
1361 ****************************************************************************/
1362
1363 LttTracefile *ltt_trace_find_tracefile(LttTrace *t, const gchar *name)
1364 {
1365 }
1366 #endif //0
1367
1368 /*****************************************************************************
1369 * Get the start time and end time of the trace
1370 ****************************************************************************/
1371
1372 void ltt_tracefile_time_span_get(LttTracefile *tf,
1373 LttTime *start, LttTime *end)
1374 {
1375 int err;
1376
1377 err = map_block(tf, 0);
1378 if(unlikely(err)) {
1379 g_error("Can not map block");
1380 *start = ltt_time_infinite;
1381 } else
1382 *start = tf->buffer.begin.timestamp;
1383
1384 err = map_block(tf, tf->num_blocks - 1); /* Last block */
1385 if(unlikely(err)) {
1386 g_error("Can not map block");
1387 *end = ltt_time_zero;
1388 } else
1389 *end = tf->buffer.end.timestamp;
1390 }
1391
1392 struct tracefile_time_span_get_args {
1393 LttTrace *t;
1394 LttTime *start;
1395 LttTime *end;
1396 };
1397
1398 void group_time_span_get(GQuark name, gpointer data, gpointer user_data)
1399 {
1400 struct tracefile_time_span_get_args *args =
1401 (struct tracefile_time_span_get_args*)user_data;
1402
1403 GArray *group = (GArray *)data;
1404 int i;
1405 LttTracefile *tf;
1406 LttTime tmp_start;
1407 LttTime tmp_end;
1408
1409 for(i=0; i<group->len; i++) {
1410 tf = &g_array_index (group, LttTracefile, i);
1411 if(tf->cpu_online) {
1412 ltt_tracefile_time_span_get(tf, &tmp_start, &tmp_end);
1413 if(ltt_time_compare(*args->start, tmp_start)>0) *args->start = tmp_start;
1414 if(ltt_time_compare(*args->end, tmp_end)<0) *args->end = tmp_end;
1415 }
1416 }
1417 }
1418
1419 void ltt_trace_time_span_get(LttTrace *t, LttTime *start, LttTime *end)
1420 {
1421 LttTime min_start = ltt_time_infinite;
1422 LttTime max_end = ltt_time_zero;
1423 struct tracefile_time_span_get_args args = { t, &min_start, &max_end };
1424
1425 g_datalist_foreach(&t->tracefiles, &group_time_span_get, &args);
1426
1427 if(start != NULL) *start = min_start;
1428 if(end != NULL) *end = max_end;
1429
1430 }
1431
1432
1433 /*****************************************************************************
1434 *Get the name of a tracefile
1435 ****************************************************************************/
1436
1437 GQuark ltt_tracefile_name(const LttTracefile *tf)
1438 {
1439 return tf->name;
1440 }
1441
1442 GQuark ltt_tracefile_long_name(const LttTracefile *tf)
1443 {
1444 return tf->long_name;
1445 }
1446
1447
1448
1449 guint ltt_tracefile_cpu(LttTracefile *tf)
1450 {
1451 return tf->cpu_num;
1452 }
1453
1454 guint ltt_tracefile_tid(LttTracefile *tf)
1455 {
1456 return tf->tid;
1457 }
1458
1459 guint ltt_tracefile_pgid(LttTracefile *tf)
1460 {
1461 return tf->pgid;
1462 }
1463
1464 guint64 ltt_tracefile_creation(LttTracefile *tf)
1465 {
1466 return tf->creation;
1467 }
1468 /*****************************************************************************
1469 * Get the number of blocks in the tracefile
1470 ****************************************************************************/
1471
1472 guint ltt_tracefile_block_number(LttTracefile *tf)
1473 {
1474 return tf->num_blocks;
1475 }
1476
1477
1478 /* Seek to the first event in a tracefile that has a time equal or greater than
1479 * the time passed in parameter.
1480 *
1481 * If the time parameter is outside the tracefile time span, seek to the first
1482 * event or if after, return ERANGE.
1483 *
1484 * If the time parameter is before the first event, we have to seek specially to
1485 * there.
1486 *
1487 * If the time is after the end of the trace, return ERANGE.
1488 *
1489 * Do a binary search to find the right block, then a sequential search in the
1490 * block to find the event.
1491 *
1492 * In the special case where the time requested fits inside a block that has no
1493 * event corresponding to the requested time, the first event of the next block
1494 * will be seeked.
1495 *
1496 * IMPORTANT NOTE : // FIXME everywhere...
1497 *
1498 * You MUST NOT do a ltt_tracefile_read right after a ltt_tracefile_seek_time :
1499 * you will jump over an event if you do.
1500 *
1501 * Return value : 0 : no error, the tf->event can be used
1502 * ERANGE : time if after the last event of the trace
1503 * otherwise : this is an error.
1504 *
1505 * */
1506
1507 int ltt_tracefile_seek_time(LttTracefile *tf, LttTime time)
1508 {
1509 int ret = 0;
1510 int err;
1511 unsigned int block_num, high, low;
1512
1513 /* seek at the beginning of trace */
1514 err = map_block(tf, 0); /* First block */
1515 if(unlikely(err)) {
1516 g_error("Can not map block");
1517 goto fail;
1518 }
1519
1520 /* If the time is lower or equal the beginning of the trace,
1521 * go to the first event. */
1522 if(ltt_time_compare(time, tf->buffer.begin.timestamp) <= 0) {
1523 ret = ltt_tracefile_read(tf);
1524 if(ret == ERANGE) goto range;
1525 else if (ret) goto fail;
1526 goto found; /* There is either no event in the trace or the event points
1527 to the first event in the trace */
1528 }
1529
1530 err = map_block(tf, tf->num_blocks - 1); /* Last block */
1531 if(unlikely(err)) {
1532 g_error("Can not map block");
1533 goto fail;
1534 }
1535
1536 /* If the time is after the end of the trace, return ERANGE. */
1537 if(ltt_time_compare(time, tf->buffer.end.timestamp) > 0) {
1538 goto range;
1539 }
1540
1541 /* Binary search the block */
1542 high = tf->num_blocks - 1;
1543 low = 0;
1544
1545 while(1) {
1546 block_num = ((high-low) / 2) + low;
1547
1548 err = map_block(tf, block_num);
1549 if(unlikely(err)) {
1550 g_error("Can not map block");
1551 goto fail;
1552 }
1553 if(high == low) {
1554 /* We cannot divide anymore : this is what would happen if the time
1555 * requested was exactly between two consecutive buffers'end and start
1556 * timestamps. This is also what would happend if we didn't deal with out
1557 * of span cases prior in this function. */
1558 /* The event is right in the buffer!
1559 * (or in the next buffer first event) */
1560 while(1) {
1561 ret = ltt_tracefile_read(tf);
1562 if(ret == ERANGE) goto range; /* ERANGE or EPERM */
1563 else if(ret) goto fail;
1564
1565 if(ltt_time_compare(time, tf->event.event_time) <= 0)
1566 goto found;
1567 }
1568
1569 } else if(ltt_time_compare(time, tf->buffer.begin.timestamp) < 0) {
1570 /* go to lower part */
1571 high = block_num - 1;
1572 } else if(ltt_time_compare(time, tf->buffer.end.timestamp) > 0) {
1573 /* go to higher part */
1574 low = block_num + 1;
1575 } else {/* The event is right in the buffer!
1576 (or in the next buffer first event) */
1577 while(1) {
1578 ret = ltt_tracefile_read(tf);
1579 if(ret == ERANGE) goto range; /* ERANGE or EPERM */
1580 else if(ret) goto fail;
1581
1582 if(ltt_time_compare(time, tf->event.event_time) <= 0)
1583 break;
1584 }
1585 goto found;
1586 }
1587 }
1588
1589 found:
1590 return 0;
1591 range:
1592 return ERANGE;
1593
1594 /* Error handling */
1595 fail:
1596 g_error("ltt_tracefile_seek_time failed on tracefile %s",
1597 g_quark_to_string(tf->name));
1598 return EPERM;
1599 }
1600
1601
1602 int ltt_tracefile_seek_position(LttTracefile *tf, const LttEventPosition *ep) {
1603
1604 int err;
1605
1606 if(ep->tracefile != tf) {
1607 goto fail;
1608 }
1609
1610 err = map_block(tf, ep->block);
1611 if(unlikely(err)) {
1612 g_error("Can not map block");
1613 goto fail;
1614 }
1615
1616 tf->event.offset = ep->offset;
1617
1618 /* Put back the event real tsc */
1619 tf->event.tsc = ep->tsc;
1620 tf->buffer.tsc = ep->tsc;
1621
1622 err = ltt_tracefile_read_update_event(tf);
1623 if(err) goto fail;
1624 err = ltt_tracefile_read_op(tf);
1625 if(err) goto fail;
1626
1627 return 0;
1628
1629 fail:
1630 g_error("ltt_tracefile_seek_time failed on tracefile %s",
1631 g_quark_to_string(tf->name));
1632 return 1;
1633 }
1634
1635 LttTime ltt_interpolate_time_from_tsc(LttTracefile *tf, guint64 tsc)
1636 {
1637 LttTime time;
1638
1639 if(tsc > tf->trace->start_tsc) {
1640 time = ltt_time_from_uint64(
1641 (double)(tsc - tf->trace->start_tsc)
1642 * (1000000000.0 / tf->trace->freq_scale)
1643 / (double)tf->trace->start_freq);
1644 time = ltt_time_add(tf->trace->start_time_from_tsc, time);
1645 } else {
1646 time = ltt_time_from_uint64(
1647 (double)(tf->trace->start_tsc - tsc)
1648 * (1000000000.0 / tf->trace->freq_scale)
1649 / (double)tf->trace->start_freq);
1650 time = ltt_time_sub(tf->trace->start_time_from_tsc, time);
1651 }
1652 return time;
1653 }
1654
1655 /* Calculate the real event time based on the buffer boundaries */
1656 LttTime ltt_interpolate_time(LttTracefile *tf, LttEvent *event)
1657 {
1658 return ltt_interpolate_time_from_tsc(tf, tf->buffer.tsc);
1659 }
1660
1661
1662 /* Get the current event of the tracefile : valid until the next read */
1663 LttEvent *ltt_tracefile_get_event(LttTracefile *tf)
1664 {
1665 return &tf->event;
1666 }
1667
1668
1669
1670 /*****************************************************************************
1671 *Function name
1672 * ltt_tracefile_read : Read the next event in the tracefile
1673 *Input params
1674 * t : tracefile
1675 *Return value
1676 *
1677 * Returns 0 if an event can be used in tf->event.
1678 * Returns ERANGE on end of trace. The event in tf->event still can be used
1679 * (if the last block was not empty).
1680 * Returns EPERM on error.
1681 *
1682 * This function does make the tracefile event structure point to the event
1683 * currently pointed to by the tf->event.
1684 *
1685 * Note : you must call a ltt_tracefile_seek to the beginning of the trace to
1686 * reinitialize it after an error if you want results to be coherent.
1687 * It would be the case if a end of trace last buffer has no event : the end
1688 * of trace wouldn't be returned, but an error.
1689 * We make the assumption there is at least one event per buffer.
1690 ****************************************************************************/
1691
1692 int ltt_tracefile_read(LttTracefile *tf)
1693 {
1694 int err;
1695
1696 err = ltt_tracefile_read_seek(tf);
1697 if(err) return err;
1698 err = ltt_tracefile_read_update_event(tf);
1699 if(err) return err;
1700 err = ltt_tracefile_read_op(tf);
1701 if(err) return err;
1702
1703 return 0;
1704 }
1705
1706 int ltt_tracefile_read_seek(LttTracefile *tf)
1707 {
1708 int err;
1709
1710 /* Get next buffer until we finally have an event, or end of trace */
1711 while(1) {
1712 err = ltt_seek_next_event(tf);
1713 if(unlikely(err == ENOPROTOOPT)) {
1714 return EPERM;
1715 }
1716
1717 /* Are we at the end of the buffer ? */
1718 if(err == ERANGE) {
1719 if(unlikely(tf->buffer.index == tf->num_blocks-1)){ /* end of trace ? */
1720 return ERANGE;
1721 } else {
1722 /* get next block */
1723 err = map_block(tf, tf->buffer.index + 1);
1724 if(unlikely(err)) {
1725 g_error("Can not map block");
1726 return EPERM;
1727 }
1728 }
1729 } else break; /* We found an event ! */
1730 }
1731
1732 return 0;
1733 }
1734
1735
1736 /* do specific operation on events */
1737 int ltt_tracefile_read_op(LttTracefile *tf)
1738 {
1739 LttEvent *event;
1740
1741 event = &tf->event;
1742
1743 /* do event specific operation */
1744
1745 /* do something if its an heartbeat event : increment the heartbeat count */
1746 //if(event->facility_id == LTT_FACILITY_CORE)
1747 // if(event->event_id == LTT_EVENT_HEARTBEAT)
1748 // tf->cur_heart_beat_number++;
1749
1750 return 0;
1751 }
1752
1753 static void print_debug_event_header(LttEvent *ev, void *start_pos, void *end_pos)
1754 {
1755 unsigned int offset = 0;
1756 int i, j;
1757
1758 g_printf("Event header (tracefile %s offset %llx):\n",
1759 g_quark_to_string(ev->tracefile->long_name),
1760 ((uint64_t)ev->tracefile->buffer.index * ev->tracefile->buf_size)
1761 + (long)start_pos - (long)ev->tracefile->buffer.head);
1762
1763 while (offset < (long)end_pos - (long)start_pos) {
1764 g_printf("%8lx", (long)start_pos - (long)ev->tracefile->buffer.head + offset);
1765 g_printf(" ");
1766
1767 for (i = 0; i < 4 ; i++) {
1768 for (j = 0; j < 4; j++) {
1769 if (offset + ((i * 4) + j) <
1770 (long)end_pos - (long)start_pos)
1771 g_printf("%02hhX",
1772 ((char*)ev->tracefile->buffer.head)[ev->offset + offset + ((i * 4) + j)]);
1773 else
1774 g_printf(" ");
1775 g_printf(" ");
1776 }
1777 if (i < 4)
1778 g_printf(" ");
1779 }
1780 offset+=16;
1781 g_printf("\n");
1782 }
1783 }
1784
1785
1786 /* same as ltt_tracefile_read, but does not seek to the next event nor call
1787 * event specific operation. */
1788 int ltt_tracefile_read_update_event(LttTracefile *tf)
1789 {
1790 void * pos;
1791 LttEvent *event;
1792 void *pos_aligned;
1793
1794 event = &tf->event;
1795 pos = tf->buffer.head + event->offset;
1796
1797 /* Read event header */
1798
1799 /* Align the head */
1800 if(!tf->compact)
1801 pos += ltt_align((size_t)pos, tf->trace->arch_size, tf->alignment);
1802 else {
1803 g_assert(tf->has_heartbeat);
1804 pos += ltt_align((size_t)pos, sizeof(uint32_t), tf->alignment);
1805 }
1806 pos_aligned = pos;
1807
1808 if(tf->has_heartbeat) {
1809 event->timestamp = ltt_get_uint32(LTT_GET_BO(tf),
1810 pos);
1811 if(!tf->compact) {
1812 /* 32 bits -> 64 bits tsc */
1813 /* note : still works for seek and non seek cases. */
1814 if(event->timestamp < (0xFFFFFFFFULL&tf->buffer.tsc)) {
1815 tf->buffer.tsc = ((tf->buffer.tsc&0xFFFFFFFF00000000ULL)
1816 + 0x100000000ULL)
1817 | (guint64)event->timestamp;
1818 event->tsc = tf->buffer.tsc;
1819 } else {
1820 /* no overflow */
1821 tf->buffer.tsc = (tf->buffer.tsc&0xFFFFFFFF00000000ULL)
1822 | (guint64)event->timestamp;
1823 event->tsc = tf->buffer.tsc;
1824 event->compact_data = 0;
1825 }
1826 } else {
1827 /* Compact header */
1828 /* We keep the LSB of the previous timestamp, to make sure
1829 * we never go back */
1830 event->event_id = event->timestamp >> tf->tscbits;
1831 event->event_id = event->event_id & ((1 << tf->trace->compact_event_bits) - 1);
1832 event->compact_data = event->timestamp >>
1833 (tf->trace->compact_event_bits + tf->tscbits);
1834 //printf("tsc bits %u, ev bits %u init data %u\n",
1835 // tf->tscbits, tf->trace->compact_event_bits, event->compact_data);
1836 /* Put the compact data back in original endianness */
1837 event->compact_data = ltt_get_uint32(LTT_GET_BO(tf), &event->compact_data);
1838 event->event_size = 0xFFFF;
1839 //printf("Found compact event %d\n", event->event_id);
1840 //printf("Compact data %d\n", event->compact_data);
1841 event->timestamp = event->timestamp << tf->tsc_lsb_truncate;
1842 event->timestamp = event->timestamp & tf->tsc_mask;
1843 //printf("timestamp 0x%lX\n", event->timestamp);
1844 //printf("mask 0x%llX\n", tf->tsc_mask);
1845 //printf("mask_next 0x%llX\n", tf->tsc_mask_next_bit);
1846 //printf("previous tsc 0x%llX\n", tf->buffer.tsc);
1847 //printf("previous tsc&mask 0x%llX\n", tf->tsc_mask&tf->buffer.tsc);
1848 //printf("previous tsc&(~mask) 0x%llX\n", tf->buffer.tsc&(~tf->tsc_mask));
1849 if(event->timestamp < (tf->tsc_mask&tf->buffer.tsc)) {
1850 //printf("wrap\n");
1851 tf->buffer.tsc = ((tf->buffer.tsc&(~tf->tsc_mask))
1852 + tf->tsc_mask_next_bit)
1853 | (guint64)event->timestamp;
1854 event->tsc = tf->buffer.tsc;
1855 } else {
1856 //printf("no wrap\n");
1857 /* no overflow */
1858 tf->buffer.tsc = (tf->buffer.tsc&(~tf->tsc_mask))
1859 | (guint64)event->timestamp;
1860 event->tsc = tf->buffer.tsc;
1861 }
1862 //printf("current tsc 0x%llX\n", tf->buffer.tsc);
1863 }
1864 pos += sizeof(guint32);
1865 } else {
1866 event->tsc = ltt_get_uint64(LTT_GET_BO(tf), pos);
1867 tf->buffer.tsc = event->tsc;
1868 event->compact_data = 0;
1869 pos += sizeof(guint64);
1870 }
1871 event->event_time = ltt_interpolate_time(tf, event);
1872
1873 if(!tf->compact) {
1874 event->event_id = *(guint16*)pos;
1875 pos += sizeof(guint16);
1876
1877 event->event_size = ltt_get_uint16(LTT_GET_BO(tf), pos);
1878 pos += sizeof(guint16);
1879 } else {
1880 /* Compact event */
1881 }
1882
1883 if (a_event_debug)
1884 print_debug_event_header(event, pos_aligned, pos);
1885
1886 /* Align the head */
1887 if(!tf->compact)
1888 pos += ltt_align((size_t)pos, tf->trace->arch_size, tf->alignment);
1889
1890 event->data = pos;
1891
1892 /* get the data size and update the event fields with the current
1893 * information. Also update the time if a heartbeat_full event is found. */
1894 ltt_update_event_size(tf);
1895
1896 return 0;
1897 }
1898
1899
1900 /****************************************************************************
1901 *Function name
1902 * map_block : map a block from the file
1903 *Input Params
1904 * lttdes : ltt trace file
1905 * whichBlock : the block which will be read
1906 *return value
1907 * 0 : success
1908 * EINVAL : lseek fail
1909 * EIO : can not read from the file
1910 ****************************************************************************/
1911
1912 gint map_block(LttTracefile * tf, guint block_num)
1913 {
1914 int page_size = getpagesize();
1915 struct ltt_block_start_header *header;
1916
1917 g_assert(block_num < tf->num_blocks);
1918
1919 if(tf->buffer.head != NULL) {
1920 if(munmap(tf->buffer.head, PAGE_ALIGN(tf->buf_size))) {
1921 g_warning("unmap size : %u\n",
1922 PAGE_ALIGN(tf->buf_size));
1923 perror("munmap error");
1924 g_assert(0);
1925 }
1926 }
1927
1928
1929 /* Multiple of pages aligned head */
1930 tf->buffer.head = mmap(0,
1931 PAGE_ALIGN(tf->buf_size),
1932 PROT_READ, MAP_PRIVATE, tf->fd,
1933 PAGE_ALIGN((off_t)tf->buf_size * (off_t)block_num));
1934
1935 if(tf->buffer.head == MAP_FAILED) {
1936 perror("Error in allocating memory for buffer of tracefile");
1937 g_assert(0);
1938 goto map_error;
1939 }
1940 g_assert( ( (guint)tf->buffer.head&(8-1) ) == 0); // make sure it's aligned.
1941
1942
1943 tf->buffer.index = block_num;
1944
1945 header = (struct ltt_block_start_header*)tf->buffer.head;
1946
1947 #if 0
1948 tf->buffer.begin.timestamp = ltt_time_add(
1949 ltt_time_from_uint64(
1950 ltt_get_uint64(LTT_GET_BO(tf),
1951 &header->begin.timestamp)
1952 - tf->trace->start_monotonic),
1953 tf->trace->start_time);
1954 #endif //0
1955 //g_debug("block %u begin : %lu.%lu", block_num,
1956 // tf->buffer.begin.timestamp.tv_sec, tf->buffer.begin.timestamp.tv_nsec);
1957 tf->buffer.begin.cycle_count = ltt_get_uint64(LTT_GET_BO(tf),
1958 &header->begin.cycle_count);
1959 tf->buffer.begin.freq = ltt_get_uint64(LTT_GET_BO(tf),
1960 &header->begin.freq);
1961 if(tf->buffer.begin.freq == 0)
1962 tf->buffer.begin.freq = tf->trace->start_freq;
1963
1964 tf->buffer.begin.timestamp = ltt_interpolate_time_from_tsc(tf,
1965 tf->buffer.begin.cycle_count);
1966 #if 0
1967 ltt_time_add(
1968 ltt_time_from_uint64(
1969 (double)(tf->buffer.begin.cycle_count
1970 - tf->trace->start_tsc) * 1000000.0
1971 / (double)tf->trace->start_freq),
1972 tf->trace->start_time_from_tsc);
1973 #endif //0
1974 #if 0
1975
1976 tf->buffer.end.timestamp = ltt_time_add(
1977 ltt_time_from_uint64(
1978 ltt_get_uint64(LTT_GET_BO(tf),
1979 &header->end.timestamp)
1980 - tf->trace->start_monotonic),
1981 tf->trace->start_time);
1982 #endif //0
1983 //g_debug("block %u end : %lu.%lu", block_num,
1984 // tf->buffer.end.timestamp.tv_sec, tf->buffer.end.timestamp.tv_nsec);
1985 tf->buffer.end.cycle_count = ltt_get_uint64(LTT_GET_BO(tf),
1986 &header->end.cycle_count);
1987 tf->buffer.end.freq = ltt_get_uint64(LTT_GET_BO(tf),
1988 &header->end.freq);
1989 if(tf->buffer.end.freq == 0)
1990 tf->buffer.end.freq = tf->trace->start_freq;
1991
1992 tf->buffer.lost_size = ltt_get_uint32(LTT_GET_BO(tf),
1993 &header->lost_size);
1994 tf->buffer.end.timestamp = ltt_interpolate_time_from_tsc(tf,
1995 tf->buffer.end.cycle_count);
1996 #if 0
1997 ltt_time_add(
1998 ltt_time_from_uint64(
1999 (double)(tf->buffer.end.cycle_count
2000 - tf->trace->start_tsc) * 1000000.0
2001 / (double)tf->trace->start_freq),
2002 tf->trace->start_time_from_tsc);
2003 #endif //0
2004 tf->buffer.tsc = tf->buffer.begin.cycle_count;
2005 tf->event.tsc = tf->buffer.tsc;
2006 tf->buffer.freq = tf->buffer.begin.freq;
2007
2008 /* FIXME
2009 * eventually support variable buffer size : will need a partial pre-read of
2010 * the headers to create an index when we open the trace... eventually. */
2011 g_assert(tf->buf_size == ltt_get_uint32(LTT_GET_BO(tf),
2012 &header->buf_size));
2013
2014 /* Now that the buffer is mapped, calculate the time interpolation for the
2015 * block. */
2016
2017 // tf->buffer.nsecs_per_cycle = calc_nsecs_per_cycle(tf);
2018 //tf->buffer.cyc2ns_scale = calc_nsecs_per_cycle(tf);
2019
2020 /* Make the current event point to the beginning of the buffer :
2021 * it means that the event read must get the first event. */
2022 tf->event.tracefile = tf;
2023 tf->event.block = block_num;
2024 tf->event.offset = 0;
2025
2026 return 0;
2027
2028 map_error:
2029 return -errno;
2030
2031 }
2032
2033 static void print_debug_event_data(LttEvent *ev)
2034 {
2035 unsigned int offset = 0;
2036 int i, j;
2037
2038 if (!max(ev->event_size, ev->data_size))
2039 return;
2040
2041 g_printf("Event data (tracefile %s offset %llx):\n",
2042 g_quark_to_string(ev->tracefile->long_name),
2043 ((uint64_t)ev->tracefile->buffer.index * ev->tracefile->buf_size)
2044 + (long)ev->data - (long)ev->tracefile->buffer.head);
2045
2046 while (offset < max(ev->event_size, ev->data_size)) {
2047 g_printf("%8lx", (long)ev->data + offset
2048 - (long)ev->tracefile->buffer.head);
2049 g_printf(" ");
2050
2051 for (i = 0; i < 4 ; i++) {
2052 for (j = 0; j < 4; j++) {
2053 if (offset + ((i * 4) + j) < max(ev->event_size, ev->data_size))
2054 g_printf("%02hhX", ((char*)ev->data)[offset + ((i * 4) + j)]);
2055 else
2056 g_printf(" ");
2057 g_printf(" ");
2058 }
2059 if (i < 4)
2060 g_printf(" ");
2061 }
2062
2063 g_printf(" ");
2064
2065 for (i = 0; i < 4; i++) {
2066 for (j = 0; j < 4; j++) {
2067 if (offset + ((i * 4) + j) < max(ev->event_size, ev->data_size)) {
2068 if (isprint(((char*)ev->data)[offset + ((i * 4) + j)]))
2069 g_printf("%c", ((char*)ev->data)[offset + ((i * 4) + j)]);
2070 else
2071 g_printf(".");
2072 } else
2073 g_printf(" ");
2074 }
2075 }
2076 offset+=16;
2077 g_printf("\n");
2078 }
2079 }
2080
2081 /* It will update the fields offsets too */
2082 void ltt_update_event_size(LttTracefile *tf)
2083 {
2084 off_t size = 0;
2085 char *tscdata;
2086 struct marker_info *info;
2087
2088 switch((enum marker_id)tf->event.event_id) {
2089 case MARKER_ID_SET_MARKER_ID:
2090 size = strlen((char*)tf->event.data) + 1;
2091 g_debug("marker %s id set", (char*)tf->event.data);
2092 size += ltt_align(size, sizeof(guint16), tf->alignment);
2093 size += sizeof(guint16);
2094 size += sizeof(guint8);
2095 size += sizeof(guint8);
2096 size += sizeof(guint8);
2097 size += sizeof(guint8);
2098 size += sizeof(guint8);
2099 break;
2100 case MARKER_ID_SET_MARKER_FORMAT:
2101 g_debug("marker %s format set", (char*)tf->event.data);
2102 size = strlen((char*)tf->event.data) + 1;
2103 size += strlen((char*)tf->event.data + size) + 1;
2104 break;
2105 case MARKER_ID_HEARTBEAT_32:
2106 g_debug("Update Event heartbeat 32 bits");
2107 break;
2108 case MARKER_ID_HEARTBEAT_64:
2109 g_debug("Update Event heartbeat 64 bits");
2110 tscdata = (char*)(tf->event.data);
2111 tf->event.tsc = ltt_get_uint64(LTT_GET_BO(tf), tscdata);
2112 tf->buffer.tsc = tf->event.tsc;
2113 tf->event.event_time = ltt_interpolate_time(tf, &tf->event);
2114 size = ltt_align(size, sizeof(guint64), tf->alignment);
2115 size += sizeof(guint64);
2116 break;
2117 }
2118
2119 info = marker_get_info_from_id(tf->trace, tf->event.event_id);
2120 if (tf->event.event_id >= MARKER_CORE_IDS)
2121 g_assert(info != NULL);
2122
2123 /* Do not update field offsets of core markers when initially reading the
2124 * facility tracefile when the infos about these markers do not exist yet.
2125 */
2126 if (likely(info && info->fields)) {
2127 if (info->size != -1)
2128 size = info->size;
2129 else
2130 size = marker_update_fields_offsets(marker_get_info_from_id(tf->trace,
2131 tf->event.event_id), tf->event.data);
2132 }
2133
2134 tf->event.data_size = size;
2135
2136 /* Check consistency between kernel and LTTV structure sizes */
2137 if(tf->event.event_size == 0xFFFF) {
2138 /* Event size too big to fit in the event size field */
2139 tf->event.event_size = tf->event.data_size;
2140 }
2141
2142 if (a_event_debug)
2143 print_debug_event_data(&tf->event);
2144
2145 if (tf->event.data_size != tf->event.event_size) {
2146 struct marker_info *info = marker_get_info_from_id(tf->trace,
2147 tf->event.event_id);
2148 g_error("Kernel/LTTV event size differs for event %s: kernel %u, LTTV %u",
2149 g_quark_to_string(info->name),
2150 tf->event.event_size, tf->event.data_size);
2151 exit(-1);
2152 }
2153
2154 #if 0
2155 LttEventType *event_type =
2156 ltt_facility_eventtype_get(f, tf->event.event_id);
2157
2158 if(!event_type) {
2159 g_warning("Unknown event id %hhu in facility %s in tracefile %s",
2160 tf->event.event_id,
2161 g_quark_to_string(f->name),
2162 g_quark_to_string(tf->name));
2163 goto event_type_error;
2164 }
2165
2166 /* Compute the dynamic offsets */
2167 compute_offsets(tf, f, event_type, &size, tf->event.data);
2168
2169 //g_debug("Event root field : f.e %hhu.%hhu size %zd",
2170 // tf->event.facility_id,
2171 // tf->event.event_id, size);
2172
2173 no_offset:
2174 tf->event.data_size = size;
2175
2176 /* Check consistency between kernel and LTTV structure sizes */
2177 if(tf->event.event_size == 0xFFFF) {
2178 /* Event size too big to fit in the event size field */
2179 tf->event.event_size = tf->event.data_size;
2180 }
2181 if (tf->event.data_size != tf->event.event_size) {
2182 g_error("Kernel/LTTV event size differs for event %s.%s: kernel %u, LTTV %u",
2183 g_quark_to_string(f->name), g_quark_to_string(event_type->name),
2184 tf->event.event_size, tf->event.data_size);
2185 exit(-1);
2186 }
2187 //g_assert(tf->event.data_size == tf->event.event_size);
2188
2189 return;
2190
2191 event_type_error:
2192 event_id_error:
2193 if(tf->event.event_size == 0xFFFF) {
2194 g_error("Cannot jump over an unknown event bigger than 0xFFFE bytes");
2195 }
2196 /* The facility is unknown : use the kernel information about this event
2197 * to jump over it. */
2198 tf->event.data_size = tf->event.event_size;
2199 #endif //0
2200 }
2201
2202
2203 /* Take the tf current event offset and use the event facility id and event id
2204 * to figure out where is the next event offset.
2205 *
2206 * This is an internal function not aiming at being used elsewhere : it will
2207 * not jump over the current block limits. Please consider using
2208 * ltt_tracefile_read to do this.
2209 *
2210 * Returns 0 on success
2211 * ERANGE if we are at the end of the buffer.
2212 * ENOPROTOOPT if an error occured when getting the current event size.
2213 */
2214 int ltt_seek_next_event(LttTracefile *tf)
2215 {
2216 int ret = 0;
2217 void *pos;
2218
2219 /* seek over the buffer header if we are at the buffer start */
2220 if(tf->event.offset == 0) {
2221 tf->event.offset += tf->buffer_header_size;
2222
2223 if(tf->event.offset == tf->buf_size - tf->buffer.lost_size) {
2224 ret = ERANGE;
2225 }
2226 goto found;
2227 }
2228
2229
2230 pos = tf->event.data;
2231
2232 if(tf->event.data_size < 0) goto error;
2233
2234 pos += (size_t)tf->event.data_size;
2235
2236 tf->event.offset = pos - tf->buffer.head;
2237
2238 if(tf->event.offset == tf->buf_size - tf->buffer.lost_size) {
2239 ret = ERANGE;
2240 goto found;
2241 }
2242 g_assert(tf->event.offset < tf->buf_size - tf->buffer.lost_size);
2243
2244 found:
2245 return ret;
2246
2247 error:
2248 g_error("Error in ltt_seek_next_event for tracefile %s",
2249 g_quark_to_string(tf->name));
2250 return ENOPROTOOPT;
2251 }
2252
2253 #if 0
2254 /*****************************************************************************
2255 *Function name
2256 * calc_nsecs_per_cycle : calculate nsecs per cycle for current block
2257 *
2258 * 1.0 / (freq(khz) *1000) * 1000000000
2259 *Input Params
2260 * t : tracefile
2261 ****************************************************************************/
2262 /* from timer_tsc.c */
2263 #define CYC2NS_SCALE_FACTOR 10
2264 static guint32 calc_nsecs_per_cycle(LttTracefile * tf)
2265 {
2266 //return 1e6 / (double)tf->buffer.freq;
2267 guint32 cpu_mhz = tf->buffer.freq / 1000;
2268 guint32 cyc2ns_scale = (1000 << CYC2NS_SCALE_FACTOR)/cpu_mhz;
2269
2270 return cyc2ns_scale;
2271 // return 1e6 / (double)tf->buffer.freq;
2272 }
2273
2274 static guint64 cycles_2_ns(LttTracefile *tf, guint64 cycles)
2275 {
2276 return (cycles * tf->buffer.cyc2ns_scale) >> CYC2NS_SCALE_FACTOR;
2277 }
2278 #endif //0
2279
2280 #if 0
2281 void setFieldsOffset(LttTracefile *tf, LttEventType *evT,void *evD)
2282 {
2283 LttField * rootFld = evT->root_field;
2284 // rootFld->base_address = evD;
2285
2286 if(likely(rootFld))
2287 rootFld->field_size = getFieldtypeSize(tf, evT->facility,
2288 evT, 0,0,rootFld, evD);
2289 }
2290 #endif //0
2291 #if 0
2292 /*****************************************************************************
2293 *Function name
2294 * set_fields_offsets : set the precomputable offset of the fields
2295 *Input params
2296 * tracefile : opened trace file
2297 * event_type : the event type
2298 ****************************************************************************/
2299
2300 void set_fields_offsets(LttTracefile *tf, LttEventType *event_type)
2301 {
2302 LttField *field = event_type->root_field;
2303 enum field_status fixed_root = FIELD_FIXED, fixed_parent = FIELD_FIXED;
2304
2305 if(likely(field))
2306 preset_field_type_size(tf, event_type, 0, 0,
2307 &fixed_root, &fixed_parent,
2308 field);
2309
2310 }
2311 #endif //0
2312
2313
2314 /*****************************************************************************
2315 *Function name
2316 * get_alignment : Get the alignment needed for a field.
2317 *Input params
2318 * field : field
2319 *
2320 * returns : The size on which it must be aligned.
2321 *
2322 ****************************************************************************/
2323 #if 0
2324 off_t get_alignment(LttField *field)
2325 {
2326 LttType *type = &field->field_type;
2327
2328 switch(type->type_class) {
2329 case LTT_INT_FIXED:
2330 case LTT_UINT_FIXED:
2331 case LTT_POINTER:
2332 case LTT_CHAR:
2333 case LTT_UCHAR:
2334 case LTT_SHORT:
2335 case LTT_USHORT:
2336 case LTT_INT:
2337 case LTT_UINT:
2338 case LTT_LONG:
2339 case LTT_ULONG:
2340 case LTT_SIZE_T:
2341 case LTT_SSIZE_T:
2342 case LTT_OFF_T:
2343 case LTT_FLOAT:
2344 case LTT_ENUM:
2345 /* Align offset on type size */
2346 g_assert(field->field_size != 0);
2347 return field->field_size;
2348 break;
2349 case LTT_STRING:
2350 return 1;
2351 break;
2352 case LTT_ARRAY:
2353 g_assert(type->fields->len == 1);
2354 {
2355 LttField *child = &g_array_index(type->fields, LttField, 0);
2356 return get_alignment(child);
2357 }
2358 break;
2359 case LTT_SEQUENCE:
2360 g_assert(type->fields->len == 2);
2361 {
2362 off_t localign = 1;
2363 LttField *child = &g_array_index(type->fields, LttField, 0);
2364
2365 localign = max(localign, get_alignment(child));
2366
2367 child = &g_array_index(type->fields, LttField, 1);
2368 localign = max(localign, get_alignment(child));
2369
2370 return localign;
2371 }
2372 break;
2373 case LTT_STRUCT:
2374 case LTT_UNION:
2375 {
2376 guint i;
2377 off_t localign = 1;
2378
2379 for(i=0; i<type->fields->len; i++) {
2380 LttField *child = &g_array_index(type->fields, LttField, i);
2381 localign = max(localign, get_alignment(child));
2382 }
2383 return localign;
2384 }
2385 break;
2386 case LTT_NONE:
2387 default:
2388 g_error("get_alignment : unknown type");
2389 return -1;
2390 }
2391 }
2392
2393 #endif //0
2394
2395 /*****************************************************************************
2396 *Function name
2397 * field_compute_static_size : Determine the size of fields known by their
2398 * sole definition. Unions, arrays and struct sizes might be known, but
2399 * the parser does not give that information.
2400 *Input params
2401 * tf : tracefile
2402 * field : field
2403 *
2404 ****************************************************************************/
2405 #if 0
2406 void field_compute_static_size(LttFacility *fac, LttField *field)
2407 {
2408 LttType *type = &field->field_type;
2409
2410 switch(type->type_class) {
2411 case LTT_INT_FIXED:
2412 case LTT_UINT_FIXED:
2413 case LTT_POINTER:
2414 case LTT_CHAR:
2415 case LTT_UCHAR:
2416 case LTT_SHORT:
2417 case LTT_USHORT:
2418 case LTT_INT:
2419 case LTT_UINT:
2420 case LTT_LONG:
2421 case LTT_ULONG:
2422 case LTT_SIZE_T:
2423 case LTT_SSIZE_T:
2424 case LTT_OFF_T:
2425 case LTT_FLOAT:
2426 case LTT_ENUM:
2427 case LTT_STRING:
2428 /* nothing to do */
2429 break;
2430 case LTT_ARRAY:
2431 /* note this : array type size is the number of elements in the array,
2432 * while array field size of the length of the array in bytes */
2433 g_assert(type->fields->len == 1);
2434 {
2435 LttField *child = &g_array_index(type->fields, LttField, 0);
2436 field_compute_static_size(fac, child);
2437
2438 if(child->field_size != 0) {
2439 field->field_size = type->size * child->field_size;
2440 field->dynamic_offsets = g_array_sized_new(FALSE, TRUE,
2441 sizeof(off_t), type->size);
2442 } else {
2443 field->field_size = 0;
2444 }
2445 }
2446 break;
2447 case LTT_SEQUENCE:
2448 g_assert(type->fields->len == 2);
2449 {
2450 off_t local_offset = 0;
2451 LttField *child = &g_array_index(type->fields, LttField, 1);
2452 field_compute_static_size(fac, child);
2453 field->field_size = 0;
2454 type->size = 0;
2455 if(child->field_size != 0) {
2456 field->dynamic_offsets = g_array_sized_new(FALSE, TRUE,
2457 sizeof(off_t), SEQUENCE_AVG_ELEMENTS);
2458 }
2459 }
2460 break;
2461 case LTT_STRUCT:
2462 case LTT_UNION:
2463 {
2464 guint i;
2465 for(i=0;i<type->fields->len;i++) {
2466 LttField *child = &g_array_index(type->fields, LttField, i);
2467 field_compute_static_size(fac, child);
2468 if(child->field_size != 0) {
2469 type->size += ltt_align(type->size, get_alignment(child),
2470 fac->alignment);
2471 type->size += child->field_size;
2472 } else {
2473 /* As soon as we find a child with variable size, we have
2474 * a variable size */
2475 type->size = 0;
2476 break;
2477 }
2478 }
2479 field->field_size = type->size;
2480 }
2481 break;
2482 default:
2483 g_error("field_static_size : unknown type");
2484 }
2485
2486 }
2487 #endif //0
2488
2489
2490 /*****************************************************************************
2491 *Function name
2492 * precompute_fields_offsets : set the precomputable offset of the fields
2493 *Input params
2494 * fac : facility
2495 * field : the field
2496 * offset : pointer to the current offset, must be incremented
2497 *
2498 * return : 1 : found a variable length field, stop the processing.
2499 * 0 otherwise.
2500 ****************************************************************************/
2501
2502 #if 0
2503 gint precompute_fields_offsets(LttFacility *fac, LttField *field, off_t *offset, gint is_compact)
2504 {
2505 LttType *type = &field->field_type;
2506
2507 if(unlikely(is_compact)) {
2508 g_assert(field->field_size != 0);
2509 /* FIXME THIS IS A HUUUUUGE hack :
2510 * offset is between the compact_data field in struct LttEvent
2511 * and the address of the field root in the memory map.
2512 * ark. Both will stay at the same addresses while the event
2513 * is readable, so it's ok.
2514 */
2515 field->offset_root = 0;
2516 field->fixed_root = FIELD_FIXED;
2517 return 0;
2518 }
2519
2520 switch(type->type_class) {
2521 case LTT_INT_FIXED:
2522 case LTT_UINT_FIXED:
2523 case LTT_POINTER:
2524 case LTT_CHAR:
2525 case LTT_UCHAR:
2526 case LTT_SHORT:
2527 case LTT_USHORT:
2528 case LTT_INT:
2529 case LTT_UINT:
2530 case LTT_LONG:
2531 case LTT_ULONG:
2532 case LTT_SIZE_T:
2533 case LTT_SSIZE_T:
2534 case LTT_OFF_T:
2535 case LTT_FLOAT:
2536 case LTT_ENUM:
2537 g_assert(field->field_size != 0);
2538 /* Align offset on type size */
2539 *offset += ltt_align(*offset, get_alignment(field),
2540 fac->alignment);
2541 /* remember offset */
2542 field->offset_root = *offset;
2543 field->fixed_root = FIELD_FIXED;
2544 /* Increment offset */
2545 *offset += field->field_size;
2546 return 0;
2547 break;
2548 case LTT_STRING:
2549 field->offset_root = *offset;
2550 field->fixed_root = FIELD_FIXED;
2551 return 1;
2552 break;
2553 case LTT_ARRAY:
2554 g_assert(type->fields->len == 1);
2555 {
2556 LttField *child = &g_array_index(type->fields, LttField, 0);
2557
2558 *offset += ltt_align(*offset, get_alignment(field),
2559 fac->alignment);
2560
2561 /* remember offset */
2562 field->offset_root = *offset;
2563 field->array_offset = *offset;
2564 field->fixed_root = FIELD_FIXED;
2565
2566 /* Let the child be variable */
2567 //precompute_fields_offsets(tf, child, offset);
2568
2569 if(field->field_size != 0) {
2570 /* Increment offset */
2571 /* field_size is the array size in bytes */
2572 *offset += field->field_size;
2573 return 0;
2574 } else {
2575 return 1;
2576 }
2577 }
2578 break;
2579 case LTT_SEQUENCE:
2580 g_assert(type->fields->len == 2);
2581 {
2582 LttField *child;
2583 guint ret;
2584
2585 *offset += ltt_align(*offset, get_alignment(field),
2586 fac->alignment);
2587
2588 /* remember offset */
2589 field->offset_root = *offset;
2590 field->fixed_root = FIELD_FIXED;
2591
2592 child = &g_array_index(type->fields, LttField, 0);
2593 ret = precompute_fields_offsets(fac, child, offset, is_compact);
2594 g_assert(ret == 0); /* Seq len cannot have variable len */
2595
2596 child = &g_array_index(type->fields, LttField, 1);
2597 *offset += ltt_align(*offset, get_alignment(child),
2598 fac->alignment);
2599 field->array_offset = *offset;
2600 /* Let the child be variable. */
2601 //ret = precompute_fields_offsets(fac, child, offset);
2602
2603 /* Cannot precompute fields offsets of sequence members, and has
2604 * variable length. */
2605 return 1;
2606 }
2607 break;
2608 case LTT_STRUCT:
2609 {
2610 LttField *child;
2611 guint i;
2612 gint ret=0;
2613
2614 *offset += ltt_align(*offset, get_alignment(field),
2615 fac->alignment);
2616 /* remember offset */
2617 field->offset_root = *offset;
2618 field->fixed_root = FIELD_FIXED;
2619
2620 for(i=0; i< type->fields->len; i++) {
2621 child = &g_array_index(type->fields, LttField, i);
2622 ret = precompute_fields_offsets(fac, child, offset, is_compact);
2623
2624 if(ret) break;
2625 }
2626 return ret;
2627 }
2628 break;
2629 case LTT_UNION:
2630 {
2631 LttField *child;
2632 guint i;
2633 gint ret=0;
2634
2635 *offset += ltt_align(*offset, get_alignment(field),
2636 fac->alignment);
2637 /* remember offset */
2638 field->offset_root = *offset;
2639 field->fixed_root = FIELD_FIXED;
2640
2641 for(i=0; i< type->fields->len; i++) {
2642 *offset = field->offset_root;
2643 child = &g_array_index(type->fields, LttField, i);
2644 ret = precompute_fields_offsets(fac, child, offset, is_compact);
2645
2646 if(ret) break;
2647 }
2648 *offset = field->offset_root + field->field_size;
2649 return ret;
2650 }
2651
2652 break;
2653 case LTT_NONE:
2654 default:
2655 g_error("precompute_fields_offsets : unknown type");
2656 return 1;
2657 }
2658
2659 }
2660
2661 #endif //0
2662
2663 #if 0
2664 /*****************************************************************************
2665 *Function name
2666 * precompute_offsets : set the precomputable offset of an event type
2667 *Input params
2668 * tf : tracefile
2669 * event : event type
2670 *
2671 ****************************************************************************/
2672 void precompute_offsets(LttFacility *fac, LttEventType *event)
2673 {
2674 guint i;
2675 off_t offset = 0;
2676 gint ret;
2677
2678 /* First, compute the size of fixed size fields. Will determine size for
2679 * arrays, struct and unions, which is not done by the parser */
2680 for(i=0; i<event->fields->len; i++) {
2681 LttField *field = &g_array_index(event->fields, LttField, i);
2682 field_compute_static_size(fac, field);
2683 }
2684
2685 /* Precompute all known offsets */
2686 for(i=0; i<event->fields->len; i++) {
2687 LttField *field = &g_array_index(event->fields, LttField, i);
2688 if(event->has_compact_data && i == 0)
2689 ret = precompute_fields_offsets(fac, field, &offset, 1);
2690 else
2691 ret = precompute_fields_offsets(fac, field, &offset, 0);
2692 if(ret) break;
2693 }
2694 }
2695 #endif //0
2696
2697
2698
2699 /*****************************************************************************
2700 *Function name
2701 * preset_field_type_size : set the fixed sizes of the field type
2702 *Input params
2703 * tf : tracefile
2704 * event_type : event type
2705 * offset_root : offset from the root
2706 * offset_parent : offset from the parent
2707 * fixed_root : Do we know a fixed offset to the root ?
2708 * fixed_parent : Do we know a fixed offset to the parent ?
2709 * field : field
2710 ****************************************************************************/
2711
2712
2713
2714 // preset the fixed size offsets. Calculate them just like genevent-new : an
2715 // increment of a *to value that represents the offset from the start of the
2716 // event data.
2717 // The preset information is : offsets up to (and including) the first element
2718 // of variable size. All subsequent fields must be flagged "VARIABLE OFFSET".
2719 #if 0
2720 void preset_field_type_size(LttTracefile *tf, LttEventType *event_type,
2721 off_t offset_root, off_t offset_parent,
2722 enum field_status *fixed_root, enum field_status *fixed_parent,
2723 LttField *field)
2724 {
2725 enum field_status local_fixed_root, local_fixed_parent;
2726 guint i;
2727 LttType *type;
2728
2729 g_assert(field->fixed_root == FIELD_UNKNOWN);
2730 g_assert(field->fixed_parent == FIELD_UNKNOWN);
2731 g_assert(field->fixed_size == FIELD_UNKNOWN);
2732
2733 type = field->field_type;
2734
2735 field->fixed_root = *fixed_root;
2736 if(field->fixed_root == FIELD_FIXED)
2737 field->offset_root = offset_root;
2738 else
2739 field->offset_root = 0;
2740
2741 field->fixed_parent = *fixed_parent;
2742 if(field->fixed_parent == FIELD_FIXED)
2743 field->offset_parent = offset_parent;
2744 else
2745 field->offset_parent = 0;
2746
2747 size_t current_root_offset;
2748 size_t current_offset;
2749 enum field_status current_child_status, final_child_status;
2750 size_t max_size;
2751
2752 switch(type->type_class) {
2753 case LTT_INT_FIXED:
2754 case LTT_UINT_FIXED:
2755 case LTT_CHAR:
2756 case LTT_UCHAR:
2757 case LTT_SHORT:
2758 case LTT_USHORT:
2759 case LTT_INT:
2760 case LTT_UINT:
2761 case LTT_FLOAT:
2762 case LTT_ENUM:
2763 field->field_size = ltt_type_size(tf->trace, type);
2764 field->fixed_size = FIELD_FIXED;
2765 break;
2766 case LTT_POINTER:
2767 field->field_size = (off_t)event_type->facility->pointer_size;
2768 field->fixed_size = FIELD_FIXED;
2769 break;
2770 case LTT_LONG:
2771 case LTT_ULONG:
2772 field->field_size = (off_t)event_type->facility->long_size;
2773 field->fixed_size = FIELD_FIXED;
2774 break;
2775 case LTT_SIZE_T:
2776 case LTT_SSIZE_T:
2777 case LTT_OFF_T:
2778 field->field_size = (off_t)event_type->facility->size_t_size;
2779 field->fixed_size = FIELD_FIXED;
2780 break;
2781 case LTT_SEQUENCE:
2782 local_fixed_root = FIELD_VARIABLE;
2783 local_fixed_parent = FIELD_VARIABLE;
2784 preset_field_type_size(tf, event_type,
2785 0, 0,
2786 &local_fixed_root, &local_fixed_parent,
2787 field->child[0]);
2788 field->fixed_size = FIELD_VARIABLE;
2789 field->field_size = 0;
2790 *fixed_root = FIELD_VARIABLE;
2791 *fixed_parent = FIELD_VARIABLE;
2792 break;
2793 case LTT_STRING:
2794 field->fixed_size = FIELD_VARIABLE;
2795 field->field_size = 0;
2796 *fixed_root = FIELD_VARIABLE;
2797 *fixed_parent = FIELD_VARIABLE;
2798 break;
2799 case LTT_ARRAY:
2800 local_fixed_root = FIELD_VARIABLE;
2801 local_fixed_parent = FIELD_VARIABLE;
2802 preset_field_type_size(tf, event_type,
2803 0, 0,
2804 &local_fixed_root, &local_fixed_parent,
2805 field->child[0]);
2806 field->fixed_size = field->child[0]->fixed_size;
2807 if(field->fixed_size == FIELD_FIXED) {
2808 field->field_size = type->element_number * field->child[0]->field_size;
2809 } else {
2810 field->field_size = 0;
2811 *fixed_root = FIELD_VARIABLE;
2812 *fixed_parent = FIELD_VARIABLE;
2813 }
2814 break;
2815 case LTT_STRUCT:
2816 current_root_offset = field->offset_root;
2817 current_offset = 0;
2818 current_child_status = FIELD_FIXED;
2819 for(i=0;i<type->element_number;i++) {
2820 preset_field_type_size(tf, event_type,
2821 current_root_offset, current_offset,
2822 fixed_root, &current_child_status,
2823 field->child[i]);
2824 if(current_child_status == FIELD_FIXED) {
2825 current_root_offset += field->child[i]->field_size;
2826 current_offset += field->child[i]->field_size;
2827 } else {
2828 current_root_offset = 0;
2829 current_offset = 0;
2830 }
2831 }
2832 if(current_child_status != FIELD_FIXED) {
2833 *fixed_parent = current_child_status;
2834 field->field_size = 0;
2835 field->fixed_size = current_child_status;
2836 } else {
2837 field->field_size = current_offset;
2838 field->fixed_size = FIELD_FIXED;
2839 }
2840 break;
2841 case LTT_UNION:
2842 current_root_offset = field->offset_root;
2843 current_offset = 0;
2844 max_size = 0;
2845 final_child_status = FIELD_FIXED;
2846 for(i=0;i<type->element_number;i++) {
2847 enum field_status current_root_child_status = FIELD_FIXED;
2848 enum field_status current_child_status = FIELD_FIXED;
2849 preset_field_type_size(tf, event_type,
2850 current_root_offset, current_offset,
2851 &current_root_child_status, &current_child_status,
2852 field->child[i]);
2853 if(current_child_status != FIELD_FIXED)
2854 final_child_status = current_child_status;
2855 else
2856 max_size = max(max_size, field->child[i]->field_size);
2857 }
2858 if(final_child_status != FIELD_FIXED) {
2859 g_error("LTTV does not support variable size fields in unions.");
2860 /* This will stop the application. */
2861 *fixed_root = final_child_status;
2862 *fixed_parent = final_child_status;
2863 field->field_size = 0;
2864 field->fixed_size = current_child_status;
2865 } else {
2866 field->field_size = max_size;
2867 field->fixed_size = FIELD_FIXED;
2868 }
2869 break;
2870 case LTT_NONE:
2871 g_error("unexpected type NONE");
2872 break;
2873 }
2874
2875 }
2876 #endif //0
2877
2878 /*****************************************************************************
2879 *Function name
2880 * check_fields_compatibility : Check for compatibility between two fields :
2881 * do they use the same inner structure ?
2882 *Input params
2883 * event_type1 : event type
2884 * event_type2 : event type
2885 * field1 : field
2886 * field2 : field
2887 *Returns : 0 if identical
2888 * 1 if not.
2889 ****************************************************************************/
2890 // this function checks for equality of field types. Therefore, it does not use
2891 // per se offsets. For instance, an aligned version of a structure is
2892 // compatible with an unaligned version of the same structure.
2893 #if 0
2894 gint check_fields_compatibility(LttEventType *event_type1,
2895 LttEventType *event_type2,
2896 LttField *field1, LttField *field2)
2897 {
2898 guint different = 0;
2899 LttType *type1;
2900 LttType *type2;
2901
2902 if(field1 == NULL) {
2903 if(field2 == NULL) goto end;
2904 else {
2905 different = 1;
2906 goto end;
2907 }
2908 } else if(field2 == NULL) {
2909 different = 1;
2910 goto end;
2911 }
2912
2913 type1 = &field1->field_type;
2914 type2 = &field2->field_type;
2915
2916 if(type1->type_class != type2->type_class) {
2917 different = 1;
2918 goto end;
2919 }
2920 if(type1->network != type2->network) {
2921 different = 1;
2922 goto end;
2923 }
2924
2925 switch(type1->type_class) {
2926 case LTT_INT_FIXED:
2927 case LTT_UINT_FIXED:
2928 case LTT_POINTER:
2929 case LTT_CHAR:
2930 case LTT_UCHAR:
2931 case LTT_SHORT:
2932 case LTT_USHORT:
2933 case LTT_INT:
2934 case LTT_UINT:
2935 case LTT_LONG:
2936 case LTT_ULONG:
2937 case LTT_SIZE_T:
2938 case LTT_SSIZE_T:
2939 case LTT_OFF_T:
2940 case LTT_FLOAT:
2941 case LTT_ENUM:
2942 if(field1->field_size != field2->field_size)
2943 different = 1;
2944 break;
2945 case LTT_STRING:
2946 break;
2947 case LTT_ARRAY:
2948 {
2949 LttField *child1 = &g_array_index(type1->fields, LttField, 0);
2950 LttField *child2 = &g_array_index(type2->fields, LttField, 0);
2951
2952 if(type1->size != type2->size)
2953 different = 1;
2954 if(check_fields_compatibility(event_type1, event_type2, child1, child2))
2955 different = 1;
2956 }
2957 break;
2958 case LTT_SEQUENCE:
2959 {
2960 LttField *child1 = &g_array_index(type1->fields, LttField, 1);
2961 LttField *child2 = &g_array_index(type2->fields, LttField, 1);
2962
2963 if(check_fields_compatibility(event_type1, event_type2, child1, child2))
2964 different = 1;
2965 }
2966 break;
2967 case LTT_STRUCT:
2968 case LTT_UNION:
2969 {
2970 LttField *child;
2971 guint i;
2972
2973 if(type1->fields->len != type2->fields->len) {
2974 different = 1;
2975 goto end;
2976 }
2977
2978 for(i=0; i< type1->fields->len; i++) {
2979 LttField *child1;
2980 LttField *child2;
2981 child1 = &g_array_index(type1->fields, LttField, i);
2982 child2 = &g_array_index(type2->fields, LttField, i);
2983 different = check_fields_compatibility(event_type1,
2984 event_type2, child1, child2);
2985
2986 if(different) break;
2987 }
2988 }
2989 break;
2990 case LTT_NONE:
2991 default:
2992 g_error("check_fields_compatibility : unknown type");
2993 }
2994
2995 end:
2996 return different;
2997 }
2998 #endif //0
2999
3000 #if 0
3001 gint check_fields_compatibility(LttEventType *event_type1,
3002 LttEventType *event_type2,
3003 LttField *field1, LttField *field2)
3004 {
3005 guint different = 0;
3006 guint i;
3007 LttType *type1;
3008 LttType *type2;
3009
3010 if(field1 == NULL) {
3011 if(field2 == NULL) goto end;
3012 else {
3013 different = 1;
3014 goto end;
3015 }
3016 } else if(field2 == NULL) {
3017 different = 1;
3018 goto end;
3019 }
3020
3021 g_assert(field1->fixed_root != FIELD_UNKNOWN);
3022 g_assert(field2->fixed_root != FIELD_UNKNOWN);
3023 g_assert(field1->fixed_parent != FIELD_UNKNOWN);
3024 g_assert(field2->fixed_parent != FIELD_UNKNOWN);
3025 g_assert(field1->fixed_size != FIELD_UNKNOWN);
3026 g_assert(field2->fixed_size != FIELD_UNKNOWN);
3027
3028 type1 = field1->field_type;
3029 type2 = field2->field_type;
3030
3031 if(type1->type_class != type2->type_class) {
3032 different = 1;
3033 goto end;
3034 }
3035 if(type1->element_name != type2->element_name) {
3036 different = 1;
3037 goto end;
3038 }
3039
3040 switch(type1->type_class) {
3041 case LTT_INT_FIXED:
3042 case LTT_UINT_FIXED:
3043 case LTT_POINTER:
3044 case LTT_CHAR:
3045 case LTT_UCHAR:
3046 case LTT_SHORT:
3047 case LTT_USHORT:
3048 case LTT_INT:
3049 case LTT_UINT:
3050 case LTT_FLOAT:
3051 case LTT_POINTER:
3052 case LTT_LONG:
3053 case LTT_ULONG:
3054 case LTT_SIZE_T:
3055 case LTT_SSIZE_T:
3056 case LTT_OFF_T:
3057 if(field1->field_size != field2->field_size) {
3058 different = 1;
3059 goto end;
3060 }
3061 break;
3062 case LTT_ENUM:
3063 if(type1->element_number != type2->element_number) {
3064 different = 1;
3065 goto end;
3066 }
3067 for(i=0;i<type1->element_number;i++) {
3068 if(type1->enum_strings[i] != type2->enum_strings[i]) {
3069 different = 1;
3070 goto end;
3071 }
3072 }
3073 break;
3074 case LTT_SEQUENCE:
3075 /* Two elements : size and child */
3076 g_assert(type1->element_number != type2->element_number);
3077 for(i=0;i<type1->element_number;i++) {
3078 if(check_fields_compatibility(event_type1, event_type2,
3079 field1->child[0], field2->child[0])) {
3080 different = 1;
3081 goto end;
3082 }
3083 }
3084 break;
3085 case LTT_STRING:
3086 break;
3087 case LTT_ARRAY:
3088 if(field1->field_size != field2->field_size) {
3089 different = 1;
3090 goto end;
3091 }
3092 /* Two elements : size and child */
3093 g_assert(type1->element_number != type2->element_number);
3094 for(i=0;i<type1->element_number;i++) {
3095 if(check_fields_compatibility(event_type1, event_type2,
3096 field1->child[0], field2->child[0])) {
3097 different = 1;
3098 goto end;
3099 }
3100 }
3101 break;
3102 case LTT_STRUCT:
3103 case LTT_UNION:
3104 if(type1->element_number != type2->element_number) {
3105 different = 1;
3106 break;
3107 }
3108 for(i=0;i<type1->element_number;i++) {
3109 if(check_fields_compatibility(event_type1, event_type2,
3110 field1->child[0], field2->child[0])) {
3111 different = 1;
3112 goto end;
3113 }
3114 }
3115 break;
3116 }
3117 end:
3118 return different;
3119 }
3120 #endif //0
3121
3122
3123 /*****************************************************************************
3124 *Function name
3125 * ltt_get_int : get an integer number
3126 *Input params
3127 * reverse_byte_order: must we reverse the byte order ?
3128 * size : the size of the integer
3129 * ptr : the data pointer
3130 *Return value
3131 * gint64 : a 64 bits integer
3132 ****************************************************************************/
3133
3134 gint64 ltt_get_int(gboolean reverse_byte_order, gint size, void *data)
3135 {
3136 gint64 val;
3137
3138 switch(size) {
3139 case 1: val = *((gint8*)data); break;
3140 case 2: val = ltt_get_int16(reverse_byte_order, data); break;
3141 case 4: val = ltt_get_int32(reverse_byte_order, data); break;
3142 case 8: val = ltt_get_int64(reverse_byte_order, data); break;
3143 default: val = ltt_get_int64(reverse_byte_order, data);
3144 g_critical("get_int : integer size %d unknown", size);
3145 break;
3146 }
3147
3148 return val;
3149 }
3150
3151 /*****************************************************************************
3152 *Function name
3153 * ltt_get_uint : get an unsigned integer number
3154 *Input params
3155 * reverse_byte_order: must we reverse the byte order ?
3156 * size : the size of the integer
3157 * ptr : the data pointer
3158 *Return value
3159 * guint64 : a 64 bits unsigned integer
3160 ****************************************************************************/
3161
3162 guint64 ltt_get_uint(gboolean reverse_byte_order, gint size, void *data)
3163 {
3164 guint64 val;
3165
3166 switch(size) {
3167 case 1: val = *((gint8*)data); break;
3168 case 2: val = ltt_get_uint16(reverse_byte_order, data); break;
3169 case 4: val = ltt_get_uint32(reverse_byte_order, data); break;
3170 case 8: val = ltt_get_uint64(reverse_byte_order, data); break;
3171 default: val = ltt_get_uint64(reverse_byte_order, data);
3172 g_critical("get_uint : unsigned integer size %d unknown",
3173 size);
3174 break;
3175 }
3176
3177 return val;
3178 }
3179
3180
3181 /* get the node name of the system */
3182
3183 char * ltt_trace_system_description_node_name (LttSystemDescription * s)
3184 {
3185 return s->node_name;
3186 }
3187
3188
3189 /* get the domain name of the system */
3190
3191 char * ltt_trace_system_description_domain_name (LttSystemDescription * s)
3192 {
3193 return s->domain_name;
3194 }
3195
3196
3197 /* get the description of the system */
3198
3199 char * ltt_trace_system_description_description (LttSystemDescription * s)
3200 {
3201 return s->description;
3202 }
3203
3204
3205 /* get the NTP corrected start time of the trace */
3206 LttTime ltt_trace_start_time(LttTrace *t)
3207 {
3208 return t->start_time;
3209 }
3210
3211 /* get the monotonic start time of the trace */
3212 LttTime ltt_trace_start_time_monotonic(LttTrace *t)
3213 {
3214 return t->start_time_from_tsc;
3215 }
3216
3217 LttTracefile *ltt_tracefile_new()
3218 {
3219 LttTracefile *tf;
3220 tf = g_new(LttTracefile, 1);
3221 tf->event.tracefile = tf;
3222 return tf;
3223 }
3224
3225 void ltt_tracefile_destroy(LttTracefile *tf)
3226 {
3227 g_free(tf);
3228 }
3229
3230 void ltt_tracefile_copy(LttTracefile *dest, const LttTracefile *src)
3231 {
3232 *dest = *src;
3233 }
3234
3235 /* Before library loading... */
3236
3237 void init(void)
3238 {
3239 LTT_FACILITY_NAME_HEARTBEAT = g_quark_from_string("heartbeat");
3240 LTT_EVENT_NAME_HEARTBEAT = g_quark_from_string("heartbeat");
3241 LTT_EVENT_NAME_HEARTBEAT_FULL = g_quark_from_string("heartbeat_full");
3242
3243 LTT_TRACEFILE_NAME_FACILITIES = g_quark_from_string("/control/facilities");
3244 }
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