1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * trace_events_synth - synthetic trace events 4 * 5 * Copyright (C) 2015, 2020 Tom Zanussi <tom.zanussi@linux.intel.com> 6 */ 7 8 #include <linux/module.h> 9 #include <linux/kallsyms.h> 10 #include <linux/security.h> 11 #include <linux/mutex.h> 12 #include <linux/slab.h> 13 #include <linux/stacktrace.h> 14 #include <linux/rculist.h> 15 #include <linux/tracefs.h> 16 17 /* for gfp flag names */ 18 #include <linux/trace_events.h> 19 #include <trace/events/mmflags.h> 20 #include "trace_probe.h" 21 #include "trace_probe_kernel.h" 22 23 #include "trace_synth.h" 24 25 #undef ERRORS 26 #define ERRORS \ 27 C(BAD_NAME, "Illegal name"), \ 28 C(INVALID_CMD, "Command must be of the form: <name> field[;field] ..."),\ 29 C(INVALID_DYN_CMD, "Command must be of the form: s or -:[synthetic/]<name> field[;field] ..."),\ 30 C(EVENT_EXISTS, "Event already exists"), \ 31 C(TOO_MANY_FIELDS, "Too many fields"), \ 32 C(INCOMPLETE_TYPE, "Incomplete type"), \ 33 C(INVALID_TYPE, "Invalid type"), \ 34 C(INVALID_FIELD, "Invalid field"), \ 35 C(INVALID_ARRAY_SPEC, "Invalid array specification"), 36 37 #undef C 38 #define C(a, b) SYNTH_ERR_##a 39 40 enum { ERRORS }; 41 42 #undef C 43 #define C(a, b) b 44 45 static const char *err_text[] = { ERRORS }; 46 47 static DEFINE_MUTEX(lastcmd_mutex); 48 static char *last_cmd; 49 50 static int errpos(const char *str) 51 { 52 guard(mutex)(&lastcmd_mutex); 53 if (!str || !last_cmd) 54 return 0; 55 56 return err_pos(last_cmd, str); 57 } 58 59 static void last_cmd_set(const char *str) 60 { 61 if (!str) 62 return; 63 64 mutex_lock(&lastcmd_mutex); 65 kfree(last_cmd); 66 last_cmd = kstrdup(str, GFP_KERNEL); 67 mutex_unlock(&lastcmd_mutex); 68 } 69 70 static void synth_err(u8 err_type, u16 err_pos) 71 { 72 guard(mutex)(&lastcmd_mutex); 73 if (!last_cmd) 74 return; 75 76 tracing_log_err(NULL, "synthetic_events", last_cmd, err_text, 77 err_type, err_pos); 78 } 79 80 static int create_synth_event(const char *raw_command); 81 static int synth_event_show(struct seq_file *m, struct dyn_event *ev); 82 static int synth_event_release(struct dyn_event *ev); 83 static bool synth_event_is_busy(struct dyn_event *ev); 84 static bool synth_event_match(const char *system, const char *event, 85 int argc, const char **argv, struct dyn_event *ev); 86 87 static struct dyn_event_operations synth_event_ops = { 88 .create = create_synth_event, 89 .show = synth_event_show, 90 .is_busy = synth_event_is_busy, 91 .free = synth_event_release, 92 .match = synth_event_match, 93 }; 94 95 static bool is_synth_event(struct dyn_event *ev) 96 { 97 return ev->ops == &synth_event_ops; 98 } 99 100 static struct synth_event *to_synth_event(struct dyn_event *ev) 101 { 102 return container_of(ev, struct synth_event, devent); 103 } 104 105 static bool synth_event_is_busy(struct dyn_event *ev) 106 { 107 struct synth_event *event = to_synth_event(ev); 108 109 return event->ref != 0; 110 } 111 112 static bool synth_event_match(const char *system, const char *event, 113 int argc, const char **argv, struct dyn_event *ev) 114 { 115 struct synth_event *sev = to_synth_event(ev); 116 117 return strcmp(sev->name, event) == 0 && 118 (!system || strcmp(system, SYNTH_SYSTEM) == 0); 119 } 120 121 struct synth_trace_event { 122 struct trace_entry ent; 123 union trace_synth_field fields[]; 124 }; 125 126 static int synth_event_define_fields(struct trace_event_call *call) 127 { 128 struct synth_trace_event trace; 129 int offset = offsetof(typeof(trace), fields); 130 struct synth_event *event = call->data; 131 unsigned int i, size, n_u64; 132 char *name, *type; 133 int filter_type; 134 bool is_signed; 135 bool is_stack; 136 int ret = 0; 137 138 for (i = 0, n_u64 = 0; i < event->n_fields; i++) { 139 size = event->fields[i]->size; 140 is_signed = event->fields[i]->is_signed; 141 type = event->fields[i]->type; 142 name = event->fields[i]->name; 143 is_stack = event->fields[i]->is_stack; 144 145 filter_type = is_stack ? FILTER_STACKTRACE : FILTER_OTHER; 146 147 ret = trace_define_field(call, type, name, offset, size, 148 is_signed, filter_type); 149 if (ret) 150 break; 151 152 event->fields[i]->offset = n_u64; 153 154 if (event->fields[i]->is_string && !event->fields[i]->is_dynamic) { 155 offset += STR_VAR_LEN_MAX; 156 n_u64 += STR_VAR_LEN_MAX / sizeof(u64); 157 } else { 158 offset += sizeof(u64); 159 n_u64++; 160 } 161 } 162 163 event->n_u64 = n_u64; 164 165 return ret; 166 } 167 168 static bool synth_field_signed(char *type) 169 { 170 if (str_has_prefix(type, "u")) 171 return false; 172 if (strcmp(type, "gfp_t") == 0) 173 return false; 174 175 return true; 176 } 177 178 static int synth_field_is_string(char *type) 179 { 180 if (strstr(type, "char[") != NULL) 181 return true; 182 183 return false; 184 } 185 186 static int synth_field_is_stack(char *type) 187 { 188 if (strstr(type, "long[") != NULL) 189 return true; 190 191 return false; 192 } 193 194 static int synth_field_string_size(char *type) 195 { 196 char buf[4], *end, *start; 197 unsigned int len; 198 int size, err; 199 200 start = strstr(type, "char["); 201 if (start == NULL) 202 return -EINVAL; 203 start += sizeof("char[") - 1; 204 205 end = strchr(type, ']'); 206 if (!end || end < start || type + strlen(type) > end + 1) 207 return -EINVAL; 208 209 len = end - start; 210 if (len > 3) 211 return -EINVAL; 212 213 if (len == 0) 214 return 0; /* variable-length string */ 215 216 memcpy(buf, start, len); 217 buf[len] = '\0'; 218 219 err = kstrtouint(buf, 0, &size); 220 if (err) 221 return err; 222 223 if (size > STR_VAR_LEN_MAX) 224 return -EINVAL; 225 226 return size; 227 } 228 229 static int synth_field_size(char *type) 230 { 231 int size = 0; 232 233 if (strcmp(type, "s64") == 0) 234 size = sizeof(s64); 235 else if (strcmp(type, "u64") == 0) 236 size = sizeof(u64); 237 else if (strcmp(type, "s32") == 0) 238 size = sizeof(s32); 239 else if (strcmp(type, "u32") == 0) 240 size = sizeof(u32); 241 else if (strcmp(type, "s16") == 0) 242 size = sizeof(s16); 243 else if (strcmp(type, "u16") == 0) 244 size = sizeof(u16); 245 else if (strcmp(type, "s8") == 0) 246 size = sizeof(s8); 247 else if (strcmp(type, "u8") == 0) 248 size = sizeof(u8); 249 else if (strcmp(type, "char") == 0) 250 size = sizeof(char); 251 else if (strcmp(type, "unsigned char") == 0) 252 size = sizeof(unsigned char); 253 else if (strcmp(type, "int") == 0) 254 size = sizeof(int); 255 else if (strcmp(type, "unsigned int") == 0) 256 size = sizeof(unsigned int); 257 else if (strcmp(type, "long") == 0) 258 size = sizeof(long); 259 else if (strcmp(type, "unsigned long") == 0) 260 size = sizeof(unsigned long); 261 else if (strcmp(type, "bool") == 0) 262 size = sizeof(bool); 263 else if (strcmp(type, "pid_t") == 0) 264 size = sizeof(pid_t); 265 else if (strcmp(type, "gfp_t") == 0) 266 size = sizeof(gfp_t); 267 else if (synth_field_is_string(type)) 268 size = synth_field_string_size(type); 269 else if (synth_field_is_stack(type)) 270 size = 0; 271 272 return size; 273 } 274 275 static const char *synth_field_fmt(char *type) 276 { 277 const char *fmt = "%llu"; 278 279 if (strcmp(type, "s64") == 0) 280 fmt = "%lld"; 281 else if (strcmp(type, "u64") == 0) 282 fmt = "%llu"; 283 else if (strcmp(type, "s32") == 0) 284 fmt = "%d"; 285 else if (strcmp(type, "u32") == 0) 286 fmt = "%u"; 287 else if (strcmp(type, "s16") == 0) 288 fmt = "%d"; 289 else if (strcmp(type, "u16") == 0) 290 fmt = "%u"; 291 else if (strcmp(type, "s8") == 0) 292 fmt = "%d"; 293 else if (strcmp(type, "u8") == 0) 294 fmt = "%u"; 295 else if (strcmp(type, "char") == 0) 296 fmt = "%d"; 297 else if (strcmp(type, "unsigned char") == 0) 298 fmt = "%u"; 299 else if (strcmp(type, "int") == 0) 300 fmt = "%d"; 301 else if (strcmp(type, "unsigned int") == 0) 302 fmt = "%u"; 303 else if (strcmp(type, "long") == 0) 304 fmt = "%ld"; 305 else if (strcmp(type, "unsigned long") == 0) 306 fmt = "%lu"; 307 else if (strcmp(type, "bool") == 0) 308 fmt = "%d"; 309 else if (strcmp(type, "pid_t") == 0) 310 fmt = "%d"; 311 else if (strcmp(type, "gfp_t") == 0) 312 fmt = "%x"; 313 else if (synth_field_is_string(type)) 314 fmt = "%s"; 315 else if (synth_field_is_stack(type)) 316 fmt = "%s"; 317 318 return fmt; 319 } 320 321 static void print_synth_event_num_val(struct trace_seq *s, 322 char *print_fmt, char *name, 323 int size, union trace_synth_field *val, char *space) 324 { 325 switch (size) { 326 case 1: 327 trace_seq_printf(s, print_fmt, name, val->as_u8, space); 328 break; 329 330 case 2: 331 trace_seq_printf(s, print_fmt, name, val->as_u16, space); 332 break; 333 334 case 4: 335 trace_seq_printf(s, print_fmt, name, val->as_u32, space); 336 break; 337 338 default: 339 trace_seq_printf(s, print_fmt, name, val->as_u64, space); 340 break; 341 } 342 } 343 344 static enum print_line_t print_synth_event(struct trace_iterator *iter, 345 int flags, 346 struct trace_event *event) 347 { 348 struct trace_array *tr = iter->tr; 349 struct trace_seq *s = &iter->seq; 350 struct synth_trace_event *entry; 351 struct synth_event *se; 352 unsigned int i, j, n_u64; 353 char print_fmt[32]; 354 const char *fmt; 355 356 entry = (struct synth_trace_event *)iter->ent; 357 se = container_of(event, struct synth_event, call.event); 358 359 trace_seq_printf(s, "%s: ", se->name); 360 361 for (i = 0, n_u64 = 0; i < se->n_fields; i++) { 362 if (trace_seq_has_overflowed(s)) 363 goto end; 364 365 fmt = synth_field_fmt(se->fields[i]->type); 366 367 /* parameter types */ 368 if (tr && tr->trace_flags & TRACE_ITER(VERBOSE)) 369 trace_seq_printf(s, "%s ", fmt); 370 371 snprintf(print_fmt, sizeof(print_fmt), "%%s=%s%%s", fmt); 372 373 /* parameter values */ 374 if (se->fields[i]->is_string) { 375 if (se->fields[i]->is_dynamic) { 376 union trace_synth_field *data = &entry->fields[n_u64]; 377 378 trace_seq_printf(s, print_fmt, se->fields[i]->name, 379 (char *)entry + data->as_dynamic.offset, 380 i == se->n_fields - 1 ? "" : " "); 381 n_u64++; 382 } else { 383 trace_seq_printf(s, print_fmt, se->fields[i]->name, 384 (char *)&entry->fields[n_u64].as_u64, 385 i == se->n_fields - 1 ? "" : " "); 386 n_u64 += STR_VAR_LEN_MAX / sizeof(u64); 387 } 388 } else if (se->fields[i]->is_stack) { 389 union trace_synth_field *data = &entry->fields[n_u64]; 390 unsigned long *p = (void *)entry + data->as_dynamic.offset; 391 392 trace_seq_printf(s, "%s=STACK:\n", se->fields[i]->name); 393 for (j = 1; j < data->as_dynamic.len / sizeof(long); j++) 394 trace_seq_printf(s, "=> %pS\n", (void *)p[j]); 395 n_u64++; 396 } else { 397 struct trace_print_flags __flags[] = { 398 __def_gfpflag_names }; 399 char *space = (i == se->n_fields - 1 ? "" : " "); 400 401 print_synth_event_num_val(s, print_fmt, 402 se->fields[i]->name, 403 se->fields[i]->size, 404 &entry->fields[n_u64], 405 space); 406 407 if (strcmp(se->fields[i]->type, "gfp_t") == 0) { 408 trace_seq_puts(s, " ("); 409 trace_print_flags_seq(s, "|", 410 entry->fields[n_u64].as_u64, 411 __flags, ARRAY_SIZE(__flags)); 412 trace_seq_putc(s, ')'); 413 } 414 n_u64++; 415 } 416 } 417 end: 418 trace_seq_putc(s, '\n'); 419 420 return trace_handle_return(s); 421 } 422 423 static struct trace_event_functions synth_event_funcs = { 424 .trace = print_synth_event 425 }; 426 427 static unsigned int trace_string(struct synth_trace_event *entry, 428 struct synth_event *event, 429 char *str_val, 430 bool is_dynamic, 431 unsigned int data_size, 432 unsigned int *n_u64) 433 { 434 unsigned int len = 0; 435 char *str_field; 436 int ret; 437 438 if (is_dynamic) { 439 union trace_synth_field *data = &entry->fields[*n_u64]; 440 441 len = fetch_store_strlen((unsigned long)str_val); 442 data->as_dynamic.offset = struct_size(entry, fields, event->n_u64) + data_size; 443 data->as_dynamic.len = len; 444 445 ret = fetch_store_string((unsigned long)str_val, &entry->fields[*n_u64], entry); 446 447 (*n_u64)++; 448 } else { 449 str_field = (char *)&entry->fields[*n_u64].as_u64; 450 451 #ifdef CONFIG_ARCH_HAS_NON_OVERLAPPING_ADDRESS_SPACE 452 if ((unsigned long)str_val < TASK_SIZE) 453 ret = strncpy_from_user_nofault(str_field, (const void __user *)str_val, STR_VAR_LEN_MAX); 454 else 455 #endif 456 ret = strncpy_from_kernel_nofault(str_field, str_val, STR_VAR_LEN_MAX); 457 458 if (ret < 0) 459 strcpy(str_field, FAULT_STRING); 460 461 (*n_u64) += STR_VAR_LEN_MAX / sizeof(u64); 462 } 463 464 return len; 465 } 466 467 static unsigned int trace_stack(struct synth_trace_event *entry, 468 struct synth_event *event, 469 long *stack, 470 unsigned int data_size, 471 unsigned int *n_u64) 472 { 473 union trace_synth_field *data = &entry->fields[*n_u64]; 474 unsigned int len; 475 u32 data_offset; 476 void *data_loc; 477 478 data_offset = struct_size(entry, fields, event->n_u64); 479 data_offset += data_size; 480 481 for (len = 0; len < HIST_STACKTRACE_DEPTH; len++) { 482 if (!stack[len]) 483 break; 484 } 485 486 len *= sizeof(long); 487 488 /* Find the dynamic section to copy the stack into. */ 489 data_loc = (void *)entry + data_offset; 490 memcpy(data_loc, stack, len); 491 492 /* Fill in the field that holds the offset/len combo */ 493 494 data->as_dynamic.offset = data_offset; 495 data->as_dynamic.len = len; 496 497 (*n_u64)++; 498 499 return len; 500 } 501 502 static __always_inline int get_field_size(struct synth_event *event, 503 u64 *var_ref_vals, 504 unsigned int *var_ref_idx) 505 { 506 int fields_size; 507 508 fields_size = event->n_u64 * sizeof(u64); 509 510 for (int i = 0; i < event->n_dynamic_fields; i++) { 511 unsigned int field_pos = event->dynamic_fields[i]->field_pos; 512 char *str_val; 513 int val_idx; 514 int len; 515 516 val_idx = var_ref_idx[field_pos]; 517 str_val = (char *)(long)var_ref_vals[val_idx]; 518 519 if (event->dynamic_fields[i]->is_stack) { 520 /* reserve one extra element for size */ 521 len = *((unsigned long *)str_val) + 1; 522 len *= sizeof(unsigned long); 523 } else { 524 len = fetch_store_strlen((unsigned long)str_val); 525 } 526 527 fields_size += len; 528 } 529 return fields_size; 530 } 531 532 static __always_inline void write_synth_entry(struct synth_event *event, 533 struct synth_trace_event *entry, 534 u64 *var_ref_vals, 535 unsigned int *var_ref_idx) 536 { 537 int data_size = 0; 538 int i, n_u64; 539 int val_idx; 540 int len; 541 542 for (i = 0, n_u64 = 0; i < event->n_fields; i++) { 543 val_idx = var_ref_idx[i]; 544 if (event->fields[i]->is_string) { 545 char *str_val = (char *)(long)var_ref_vals[val_idx]; 546 547 len = trace_string(entry, event, str_val, 548 event->fields[i]->is_dynamic, 549 data_size, &n_u64); 550 data_size += len; /* only dynamic string increments */ 551 } else if (event->fields[i]->is_stack) { 552 long *stack = (long *)(long)var_ref_vals[val_idx]; 553 554 len = trace_stack(entry, event, stack, 555 data_size, &n_u64); 556 data_size += len; 557 } else { 558 struct synth_field *field = event->fields[i]; 559 u64 val = var_ref_vals[val_idx]; 560 561 switch (field->size) { 562 case 1: 563 entry->fields[n_u64].as_u8 = (u8)val; 564 break; 565 566 case 2: 567 entry->fields[n_u64].as_u16 = (u16)val; 568 break; 569 570 case 4: 571 entry->fields[n_u64].as_u32 = (u32)val; 572 break; 573 574 default: 575 entry->fields[n_u64].as_u64 = val; 576 break; 577 } 578 n_u64++; 579 } 580 } 581 } 582 583 static void trace_event_raw_event_synth(void *__data, 584 u64 *var_ref_vals, 585 unsigned int *var_ref_idx) 586 { 587 struct trace_event_file *trace_file = __data; 588 struct synth_trace_event *entry; 589 struct trace_event_buffer fbuffer; 590 struct trace_buffer *buffer; 591 struct synth_event *event; 592 int fields_size; 593 594 event = trace_file->event_call->data; 595 596 if (trace_trigger_soft_disabled(trace_file)) 597 return; 598 599 fields_size = get_field_size(event, var_ref_vals, var_ref_idx); 600 601 /* 602 * Avoid ring buffer recursion detection, as this event 603 * is being performed within another event. 604 */ 605 buffer = trace_file->tr->array_buffer.buffer; 606 guard(ring_buffer_nest)(buffer); 607 608 entry = trace_event_buffer_reserve(&fbuffer, trace_file, 609 sizeof(*entry) + fields_size); 610 if (!entry) 611 return; 612 613 write_synth_entry(event, entry, var_ref_vals, var_ref_idx); 614 615 trace_event_buffer_commit(&fbuffer); 616 } 617 618 #ifdef CONFIG_PERF_EVENTS 619 static void perf_event_raw_event_synth(void *__data, 620 u64 *var_ref_vals, 621 unsigned int *var_ref_idx) 622 { 623 struct trace_event_call *call = __data; 624 struct synth_trace_event *entry; 625 struct hlist_head *perf_head; 626 struct synth_event *event; 627 struct pt_regs *regs; 628 int fields_size; 629 size_t size; 630 int context; 631 632 event = call->data; 633 634 perf_head = this_cpu_ptr(call->perf_events); 635 636 if (!perf_head || hlist_empty(perf_head)) 637 return; 638 639 fields_size = get_field_size(event, var_ref_vals, var_ref_idx); 640 641 size = ALIGN(sizeof(*entry) + fields_size, 8); 642 643 entry = perf_trace_buf_alloc(size, ®s, &context); 644 645 if (unlikely(!entry)) 646 return; 647 648 write_synth_entry(event, entry, var_ref_vals, var_ref_idx); 649 650 perf_fetch_caller_regs(regs); 651 652 perf_trace_buf_submit(entry, size, context, 653 call->event.type, 1, regs, 654 perf_head, NULL); 655 } 656 #endif 657 658 static void free_synth_event_print_fmt(struct trace_event_call *call) 659 { 660 if (call) { 661 kfree(call->print_fmt); 662 call->print_fmt = NULL; 663 } 664 } 665 666 static int __set_synth_event_print_fmt(struct synth_event *event, 667 char *buf, int len) 668 { 669 const char *fmt; 670 int pos = 0; 671 int i; 672 673 /* When len=0, we just calculate the needed length */ 674 #define LEN_OR_ZERO (len ? len - pos : 0) 675 676 pos += snprintf(buf + pos, LEN_OR_ZERO, "\""); 677 for (i = 0; i < event->n_fields; i++) { 678 fmt = synth_field_fmt(event->fields[i]->type); 679 pos += snprintf(buf + pos, LEN_OR_ZERO, "%s=%s%s", 680 event->fields[i]->name, fmt, 681 i == event->n_fields - 1 ? "" : " "); 682 } 683 pos += snprintf(buf + pos, LEN_OR_ZERO, "\""); 684 685 for (i = 0; i < event->n_fields; i++) { 686 if (event->fields[i]->is_string && 687 event->fields[i]->is_dynamic) 688 pos += snprintf(buf + pos, LEN_OR_ZERO, 689 ", __get_str(%s)", event->fields[i]->name); 690 else if (event->fields[i]->is_stack) 691 pos += snprintf(buf + pos, LEN_OR_ZERO, 692 ", __get_stacktrace(%s)", event->fields[i]->name); 693 else 694 pos += snprintf(buf + pos, LEN_OR_ZERO, 695 ", REC->%s", event->fields[i]->name); 696 } 697 698 #undef LEN_OR_ZERO 699 700 /* return the length of print_fmt */ 701 return pos; 702 } 703 704 static int set_synth_event_print_fmt(struct trace_event_call *call) 705 { 706 struct synth_event *event = call->data; 707 char *print_fmt; 708 int len; 709 710 /* First: called with 0 length to calculate the needed length */ 711 len = __set_synth_event_print_fmt(event, NULL, 0); 712 713 print_fmt = kmalloc(len + 1, GFP_KERNEL); 714 if (!print_fmt) 715 return -ENOMEM; 716 717 /* Second: actually write the @print_fmt */ 718 __set_synth_event_print_fmt(event, print_fmt, len + 1); 719 call->print_fmt = print_fmt; 720 721 return 0; 722 } 723 724 static void free_synth_field(struct synth_field *field) 725 { 726 kfree(field->type); 727 kfree(field->name); 728 kfree(field); 729 } 730 731 static int check_field_version(const char *prefix, const char *field_type, 732 const char *field_name) 733 { 734 /* 735 * For backward compatibility, the old synthetic event command 736 * format did not require semicolons, and in order to not 737 * break user space, that old format must still work. If a new 738 * feature is added, then the format that uses the new feature 739 * will be required to have semicolons, as nothing that uses 740 * the old format would be using the new, yet to be created, 741 * feature. When a new feature is added, this will detect it, 742 * and return a number greater than 1, and require the format 743 * to use semicolons. 744 */ 745 return 1; 746 } 747 748 static struct synth_field *parse_synth_field(int argc, char **argv, 749 int *consumed, int *field_version) 750 { 751 const char *prefix = NULL, *field_type = argv[0], *field_name, *array; 752 struct synth_field *field; 753 int len, ret = -ENOMEM; 754 struct seq_buf s; 755 ssize_t size; 756 757 if (!strcmp(field_type, "unsigned")) { 758 if (argc < 3) { 759 synth_err(SYNTH_ERR_INCOMPLETE_TYPE, errpos(field_type)); 760 return ERR_PTR(-EINVAL); 761 } 762 prefix = "unsigned "; 763 field_type = argv[1]; 764 field_name = argv[2]; 765 *consumed += 3; 766 } else { 767 field_name = argv[1]; 768 *consumed += 2; 769 } 770 771 if (!field_name) { 772 synth_err(SYNTH_ERR_INVALID_FIELD, errpos(field_type)); 773 return ERR_PTR(-EINVAL); 774 } 775 776 *field_version = check_field_version(prefix, field_type, field_name); 777 778 field = kzalloc_obj(*field); 779 if (!field) 780 return ERR_PTR(-ENOMEM); 781 782 len = strlen(field_name); 783 array = strchr(field_name, '['); 784 if (array) 785 len -= strlen(array); 786 787 field->name = kmemdup_nul(field_name, len, GFP_KERNEL); 788 if (!field->name) 789 goto free; 790 791 if (!is_good_name(field->name)) { 792 synth_err(SYNTH_ERR_BAD_NAME, errpos(field_name)); 793 ret = -EINVAL; 794 goto free; 795 } 796 797 len = strlen(field_type) + 1; 798 799 if (array) 800 len += strlen(array); 801 802 if (prefix) 803 len += strlen(prefix); 804 805 field->type = kzalloc(len, GFP_KERNEL); 806 if (!field->type) 807 goto free; 808 809 seq_buf_init(&s, field->type, len); 810 if (prefix) 811 seq_buf_puts(&s, prefix); 812 seq_buf_puts(&s, field_type); 813 if (array) 814 seq_buf_puts(&s, array); 815 if (WARN_ON_ONCE(!seq_buf_buffer_left(&s))) 816 goto free; 817 818 s.buffer[s.len] = '\0'; 819 820 size = synth_field_size(field->type); 821 if (size < 0) { 822 if (array) 823 synth_err(SYNTH_ERR_INVALID_ARRAY_SPEC, errpos(field_name)); 824 else 825 synth_err(SYNTH_ERR_INVALID_TYPE, errpos(field_type)); 826 ret = -EINVAL; 827 goto free; 828 } else if (size == 0) { 829 if (synth_field_is_string(field->type) || 830 synth_field_is_stack(field->type)) { 831 char *type; 832 833 len = sizeof("__data_loc ") + strlen(field->type) + 1; 834 type = kzalloc(len, GFP_KERNEL); 835 if (!type) 836 goto free; 837 838 seq_buf_init(&s, type, len); 839 seq_buf_puts(&s, "__data_loc "); 840 seq_buf_puts(&s, field->type); 841 842 if (WARN_ON_ONCE(!seq_buf_buffer_left(&s))) { 843 kfree(type); 844 goto free; 845 } 846 s.buffer[s.len] = '\0'; 847 848 kfree(field->type); 849 field->type = type; 850 851 field->is_dynamic = true; 852 size = sizeof(u64); 853 } else { 854 synth_err(SYNTH_ERR_INVALID_TYPE, errpos(field_type)); 855 ret = -EINVAL; 856 goto free; 857 } 858 } 859 field->size = size; 860 861 if (synth_field_is_string(field->type)) 862 field->is_string = true; 863 else if (synth_field_is_stack(field->type)) 864 field->is_stack = true; 865 866 field->is_signed = synth_field_signed(field->type); 867 out: 868 return field; 869 free: 870 free_synth_field(field); 871 field = ERR_PTR(ret); 872 goto out; 873 } 874 875 static void free_synth_tracepoint(struct tracepoint *tp) 876 { 877 if (!tp) 878 return; 879 880 kfree(tp->name); 881 kfree(tp); 882 } 883 884 static struct tracepoint *alloc_synth_tracepoint(char *name) 885 { 886 struct tracepoint *tp; 887 888 tp = kzalloc_obj(*tp); 889 if (!tp) 890 return ERR_PTR(-ENOMEM); 891 892 tp->name = kstrdup(name, GFP_KERNEL); 893 if (!tp->name) { 894 kfree(tp); 895 return ERR_PTR(-ENOMEM); 896 } 897 898 return tp; 899 } 900 901 struct synth_event *find_synth_event(const char *name) 902 { 903 struct dyn_event *pos; 904 struct synth_event *event; 905 906 for_each_dyn_event(pos) { 907 if (!is_synth_event(pos)) 908 continue; 909 event = to_synth_event(pos); 910 if (strcmp(event->name, name) == 0) 911 return event; 912 } 913 914 return NULL; 915 } 916 917 static struct trace_event_fields synth_event_fields_array[] = { 918 { .type = TRACE_FUNCTION_TYPE, 919 .define_fields = synth_event_define_fields }, 920 {} 921 }; 922 923 static int synth_event_reg(struct trace_event_call *call, 924 enum trace_reg type, void *data) 925 { 926 struct synth_event *event = container_of(call, struct synth_event, call); 927 928 switch (type) { 929 #ifdef CONFIG_PERF_EVENTS 930 case TRACE_REG_PERF_REGISTER: 931 #endif 932 case TRACE_REG_REGISTER: 933 if (!try_module_get(event->mod)) 934 return -EBUSY; 935 break; 936 default: 937 break; 938 } 939 940 int ret = trace_event_reg(call, type, data); 941 942 switch (type) { 943 #ifdef CONFIG_PERF_EVENTS 944 case TRACE_REG_PERF_UNREGISTER: 945 #endif 946 case TRACE_REG_UNREGISTER: 947 module_put(event->mod); 948 break; 949 default: 950 break; 951 } 952 return ret; 953 } 954 955 static int register_synth_event(struct synth_event *event) 956 { 957 struct trace_event_call *call = &event->call; 958 int ret = 0; 959 960 event->call.class = &event->class; 961 event->class.system = kstrdup(SYNTH_SYSTEM, GFP_KERNEL); 962 if (!event->class.system) { 963 ret = -ENOMEM; 964 goto out; 965 } 966 967 event->tp = alloc_synth_tracepoint(event->name); 968 if (IS_ERR(event->tp)) { 969 ret = PTR_ERR(event->tp); 970 event->tp = NULL; 971 goto out; 972 } 973 974 INIT_LIST_HEAD(&call->class->fields); 975 call->event.funcs = &synth_event_funcs; 976 call->class->fields_array = synth_event_fields_array; 977 978 ret = register_trace_event(&call->event); 979 if (!ret) { 980 ret = -ENODEV; 981 goto out; 982 } 983 call->flags = TRACE_EVENT_FL_TRACEPOINT; 984 call->class->reg = synth_event_reg; 985 call->class->probe = trace_event_raw_event_synth; 986 #ifdef CONFIG_PERF_EVENTS 987 call->class->perf_probe = perf_event_raw_event_synth; 988 #endif 989 call->data = event; 990 call->tp = event->tp; 991 992 ret = trace_add_event_call(call); 993 if (ret) { 994 pr_warn("Failed to register synthetic event: %s\n", 995 trace_event_name(call)); 996 goto err; 997 } 998 999 ret = set_synth_event_print_fmt(call); 1000 /* unregister_trace_event() will be called inside */ 1001 if (ret < 0) 1002 trace_remove_event_call(call); 1003 out: 1004 return ret; 1005 err: 1006 unregister_trace_event(&call->event); 1007 goto out; 1008 } 1009 1010 static int unregister_synth_event(struct synth_event *event) 1011 { 1012 struct trace_event_call *call = &event->call; 1013 int ret; 1014 1015 ret = trace_remove_event_call(call); 1016 1017 return ret; 1018 } 1019 1020 static void free_synth_event(struct synth_event *event) 1021 { 1022 unsigned int i; 1023 1024 if (!event) 1025 return; 1026 1027 for (i = 0; i < event->n_fields; i++) 1028 free_synth_field(event->fields[i]); 1029 1030 kfree(event->fields); 1031 kfree(event->dynamic_fields); 1032 kfree(event->name); 1033 kfree(event->class.system); 1034 free_synth_tracepoint(event->tp); 1035 free_synth_event_print_fmt(&event->call); 1036 kfree(event); 1037 } 1038 1039 static struct synth_event *alloc_synth_event(const char *name, int n_fields, 1040 struct synth_field **fields) 1041 { 1042 unsigned int i, j, n_dynamic_fields = 0; 1043 struct synth_event *event; 1044 1045 event = kzalloc_obj(*event); 1046 if (!event) { 1047 event = ERR_PTR(-ENOMEM); 1048 goto out; 1049 } 1050 1051 event->name = kstrdup(name, GFP_KERNEL); 1052 if (!event->name) { 1053 kfree(event); 1054 event = ERR_PTR(-ENOMEM); 1055 goto out; 1056 } 1057 1058 event->fields = kzalloc_objs(*event->fields, n_fields); 1059 if (!event->fields) { 1060 free_synth_event(event); 1061 event = ERR_PTR(-ENOMEM); 1062 goto out; 1063 } 1064 1065 for (i = 0; i < n_fields; i++) 1066 if (fields[i]->is_dynamic) 1067 n_dynamic_fields++; 1068 1069 if (n_dynamic_fields) { 1070 event->dynamic_fields = kzalloc_objs(*event->dynamic_fields, 1071 n_dynamic_fields); 1072 if (!event->dynamic_fields) { 1073 free_synth_event(event); 1074 event = ERR_PTR(-ENOMEM); 1075 goto out; 1076 } 1077 } 1078 1079 dyn_event_init(&event->devent, &synth_event_ops); 1080 1081 for (i = 0, j = 0; i < n_fields; i++) { 1082 fields[i]->field_pos = i; 1083 event->fields[i] = fields[i]; 1084 1085 if (fields[i]->is_dynamic) 1086 event->dynamic_fields[j++] = fields[i]; 1087 } 1088 event->n_dynamic_fields = j; 1089 event->n_fields = n_fields; 1090 out: 1091 return event; 1092 } 1093 1094 static int synth_event_check_arg_fn(void *data) 1095 { 1096 struct dynevent_arg_pair *arg_pair = data; 1097 int size; 1098 1099 size = synth_field_size((char *)arg_pair->lhs); 1100 if (size == 0) { 1101 if (strstr((char *)arg_pair->lhs, "[")) 1102 return 0; 1103 } 1104 1105 return size ? 0 : -EINVAL; 1106 } 1107 1108 /** 1109 * synth_event_add_field - Add a new field to a synthetic event cmd 1110 * @cmd: A pointer to the dynevent_cmd struct representing the new event 1111 * @type: The type of the new field to add 1112 * @name: The name of the new field to add 1113 * 1114 * Add a new field to a synthetic event cmd object. Field ordering is in 1115 * the same order the fields are added. 1116 * 1117 * See synth_field_size() for available types. If field_name contains 1118 * [n] the field is considered to be an array. 1119 * 1120 * Return: 0 if successful, error otherwise. 1121 */ 1122 int synth_event_add_field(struct dynevent_cmd *cmd, const char *type, 1123 const char *name) 1124 { 1125 struct dynevent_arg_pair arg_pair; 1126 int ret; 1127 1128 if (cmd->type != DYNEVENT_TYPE_SYNTH) 1129 return -EINVAL; 1130 1131 if (!type || !name) 1132 return -EINVAL; 1133 1134 dynevent_arg_pair_init(&arg_pair, 0, ';'); 1135 1136 arg_pair.lhs = type; 1137 arg_pair.rhs = name; 1138 1139 ret = dynevent_arg_pair_add(cmd, &arg_pair, synth_event_check_arg_fn); 1140 if (ret) 1141 return ret; 1142 1143 if (++cmd->n_fields > SYNTH_FIELDS_MAX) 1144 ret = -EINVAL; 1145 1146 return ret; 1147 } 1148 EXPORT_SYMBOL_GPL(synth_event_add_field); 1149 1150 /** 1151 * synth_event_add_field_str - Add a new field to a synthetic event cmd 1152 * @cmd: A pointer to the dynevent_cmd struct representing the new event 1153 * @type_name: The type and name of the new field to add, as a single string 1154 * 1155 * Add a new field to a synthetic event cmd object, as a single 1156 * string. The @type_name string is expected to be of the form 'type 1157 * name', which will be appended by ';'. No sanity checking is done - 1158 * what's passed in is assumed to already be well-formed. Field 1159 * ordering is in the same order the fields are added. 1160 * 1161 * See synth_field_size() for available types. If field_name contains 1162 * [n] the field is considered to be an array. 1163 * 1164 * Return: 0 if successful, error otherwise. 1165 */ 1166 int synth_event_add_field_str(struct dynevent_cmd *cmd, const char *type_name) 1167 { 1168 struct dynevent_arg arg; 1169 int ret; 1170 1171 if (cmd->type != DYNEVENT_TYPE_SYNTH) 1172 return -EINVAL; 1173 1174 if (!type_name) 1175 return -EINVAL; 1176 1177 dynevent_arg_init(&arg, ';'); 1178 1179 arg.str = type_name; 1180 1181 ret = dynevent_arg_add(cmd, &arg, NULL); 1182 if (ret) 1183 return ret; 1184 1185 if (++cmd->n_fields > SYNTH_FIELDS_MAX) 1186 ret = -EINVAL; 1187 1188 return ret; 1189 } 1190 EXPORT_SYMBOL_GPL(synth_event_add_field_str); 1191 1192 /** 1193 * synth_event_add_fields - Add multiple fields to a synthetic event cmd 1194 * @cmd: A pointer to the dynevent_cmd struct representing the new event 1195 * @fields: An array of type/name field descriptions 1196 * @n_fields: The number of field descriptions contained in the fields array 1197 * 1198 * Add a new set of fields to a synthetic event cmd object. The event 1199 * fields that will be defined for the event should be passed in as an 1200 * array of struct synth_field_desc, and the number of elements in the 1201 * array passed in as n_fields. Field ordering will retain the 1202 * ordering given in the fields array. 1203 * 1204 * See synth_field_size() for available types. If field_name contains 1205 * [n] the field is considered to be an array. 1206 * 1207 * Return: 0 if successful, error otherwise. 1208 */ 1209 int synth_event_add_fields(struct dynevent_cmd *cmd, 1210 struct synth_field_desc *fields, 1211 unsigned int n_fields) 1212 { 1213 unsigned int i; 1214 int ret = 0; 1215 1216 for (i = 0; i < n_fields; i++) { 1217 if (fields[i].type == NULL || fields[i].name == NULL) { 1218 ret = -EINVAL; 1219 break; 1220 } 1221 1222 ret = synth_event_add_field(cmd, fields[i].type, fields[i].name); 1223 if (ret) 1224 break; 1225 } 1226 1227 return ret; 1228 } 1229 EXPORT_SYMBOL_GPL(synth_event_add_fields); 1230 1231 /** 1232 * __synth_event_gen_cmd_start - Start a synthetic event command from arg list 1233 * @cmd: A pointer to the dynevent_cmd struct representing the new event 1234 * @name: The name of the synthetic event 1235 * @mod: The module creating the event, NULL if not created from a module 1236 * @...: Variable number of arg (pairs), one pair for each field 1237 * 1238 * NOTE: Users normally won't want to call this function directly, but 1239 * rather use the synth_event_gen_cmd_start() wrapper, which 1240 * automatically adds a NULL to the end of the arg list. If this 1241 * function is used directly, make sure the last arg in the variable 1242 * arg list is NULL. 1243 * 1244 * Generate a synthetic event command to be executed by 1245 * synth_event_gen_cmd_end(). This function can be used to generate 1246 * the complete command or only the first part of it; in the latter 1247 * case, synth_event_add_field(), synth_event_add_field_str(), or 1248 * synth_event_add_fields() can be used to add more fields following 1249 * this. 1250 * 1251 * There should be an even number variable args, each pair consisting 1252 * of a type followed by a field name. 1253 * 1254 * See synth_field_size() for available types. If field_name contains 1255 * [n] the field is considered to be an array. 1256 * 1257 * Return: 0 if successful, error otherwise. 1258 */ 1259 int __synth_event_gen_cmd_start(struct dynevent_cmd *cmd, const char *name, 1260 struct module *mod, ...) 1261 { 1262 struct dynevent_arg arg; 1263 va_list args; 1264 int ret; 1265 1266 cmd->event_name = name; 1267 cmd->private_data = mod; 1268 1269 if (cmd->type != DYNEVENT_TYPE_SYNTH) 1270 return -EINVAL; 1271 1272 dynevent_arg_init(&arg, 0); 1273 arg.str = name; 1274 ret = dynevent_arg_add(cmd, &arg, NULL); 1275 if (ret) 1276 return ret; 1277 1278 va_start(args, mod); 1279 for (;;) { 1280 const char *type, *name; 1281 1282 type = va_arg(args, const char *); 1283 if (!type) 1284 break; 1285 name = va_arg(args, const char *); 1286 if (!name) 1287 break; 1288 1289 if (++cmd->n_fields > SYNTH_FIELDS_MAX) { 1290 ret = -EINVAL; 1291 break; 1292 } 1293 1294 ret = synth_event_add_field(cmd, type, name); 1295 if (ret) 1296 break; 1297 } 1298 va_end(args); 1299 1300 return ret; 1301 } 1302 EXPORT_SYMBOL_GPL(__synth_event_gen_cmd_start); 1303 1304 /** 1305 * synth_event_gen_cmd_array_start - Start synthetic event command from an array 1306 * @cmd: A pointer to the dynevent_cmd struct representing the new event 1307 * @name: The name of the synthetic event 1308 * @mod: The module creating the event, NULL if not created from a module 1309 * @fields: An array of type/name field descriptions 1310 * @n_fields: The number of field descriptions contained in the fields array 1311 * 1312 * Generate a synthetic event command to be executed by 1313 * synth_event_gen_cmd_end(). This function can be used to generate 1314 * the complete command or only the first part of it; in the latter 1315 * case, synth_event_add_field(), synth_event_add_field_str(), or 1316 * synth_event_add_fields() can be used to add more fields following 1317 * this. 1318 * 1319 * The event fields that will be defined for the event should be 1320 * passed in as an array of struct synth_field_desc, and the number of 1321 * elements in the array passed in as n_fields. Field ordering will 1322 * retain the ordering given in the fields array. 1323 * 1324 * See synth_field_size() for available types. If field_name contains 1325 * [n] the field is considered to be an array. 1326 * 1327 * Return: 0 if successful, error otherwise. 1328 */ 1329 int synth_event_gen_cmd_array_start(struct dynevent_cmd *cmd, const char *name, 1330 struct module *mod, 1331 struct synth_field_desc *fields, 1332 unsigned int n_fields) 1333 { 1334 struct dynevent_arg arg; 1335 unsigned int i; 1336 int ret = 0; 1337 1338 cmd->event_name = name; 1339 cmd->private_data = mod; 1340 1341 if (cmd->type != DYNEVENT_TYPE_SYNTH) 1342 return -EINVAL; 1343 1344 if (n_fields > SYNTH_FIELDS_MAX) 1345 return -EINVAL; 1346 1347 dynevent_arg_init(&arg, 0); 1348 arg.str = name; 1349 ret = dynevent_arg_add(cmd, &arg, NULL); 1350 if (ret) 1351 return ret; 1352 1353 for (i = 0; i < n_fields; i++) { 1354 if (fields[i].type == NULL || fields[i].name == NULL) 1355 return -EINVAL; 1356 1357 ret = synth_event_add_field(cmd, fields[i].type, fields[i].name); 1358 if (ret) 1359 break; 1360 } 1361 1362 return ret; 1363 } 1364 EXPORT_SYMBOL_GPL(synth_event_gen_cmd_array_start); 1365 1366 static int __create_synth_event(const char *name, const char *raw_fields) 1367 { 1368 char **argv, *field_str, *tmp_fields, *saved_fields = NULL; 1369 struct synth_field *field, *fields[SYNTH_FIELDS_MAX]; 1370 int consumed, cmd_version = 1, n_fields_this_loop; 1371 int i, argc, n_fields = 0, ret = 0; 1372 struct synth_event *event = NULL; 1373 1374 /* 1375 * Argument syntax: 1376 * - Add synthetic event: <event_name> field[;field] ... 1377 * - Remove synthetic event: !<event_name> field[;field] ... 1378 * where 'field' = type field_name 1379 */ 1380 1381 if (name[0] == '\0') { 1382 synth_err(SYNTH_ERR_INVALID_CMD, 0); 1383 return -EINVAL; 1384 } 1385 1386 if (!is_good_name(name)) { 1387 synth_err(SYNTH_ERR_BAD_NAME, errpos(name)); 1388 return -EINVAL; 1389 } 1390 1391 mutex_lock(&event_mutex); 1392 1393 event = find_synth_event(name); 1394 if (event) { 1395 synth_err(SYNTH_ERR_EVENT_EXISTS, errpos(name)); 1396 ret = -EEXIST; 1397 goto err; 1398 } 1399 1400 tmp_fields = saved_fields = kstrdup(raw_fields, GFP_KERNEL); 1401 if (!tmp_fields) { 1402 ret = -ENOMEM; 1403 goto err; 1404 } 1405 1406 while ((field_str = strsep(&tmp_fields, ";")) != NULL) { 1407 argv = argv_split(GFP_KERNEL, field_str, &argc); 1408 if (!argv) { 1409 ret = -ENOMEM; 1410 goto err; 1411 } 1412 1413 if (!argc) { 1414 argv_free(argv); 1415 continue; 1416 } 1417 1418 n_fields_this_loop = 0; 1419 consumed = 0; 1420 while (argc > consumed) { 1421 int field_version; 1422 1423 field = parse_synth_field(argc - consumed, 1424 argv + consumed, &consumed, 1425 &field_version); 1426 if (IS_ERR(field)) { 1427 ret = PTR_ERR(field); 1428 goto err_free_arg; 1429 } 1430 1431 /* 1432 * Track the highest version of any field we 1433 * found in the command. 1434 */ 1435 if (field_version > cmd_version) 1436 cmd_version = field_version; 1437 1438 /* 1439 * Now sort out what is and isn't valid for 1440 * each supported version. 1441 * 1442 * If we see more than 1 field per loop, it 1443 * means we have multiple fields between 1444 * semicolons, and that's something we no 1445 * longer support in a version 2 or greater 1446 * command. 1447 */ 1448 if (cmd_version > 1 && n_fields_this_loop >= 1) { 1449 synth_err(SYNTH_ERR_INVALID_CMD, errpos(field_str)); 1450 ret = -EINVAL; 1451 goto err_free_field; 1452 } 1453 1454 if (n_fields == SYNTH_FIELDS_MAX) { 1455 synth_err(SYNTH_ERR_TOO_MANY_FIELDS, 0); 1456 ret = -EINVAL; 1457 goto err_free_field; 1458 } 1459 fields[n_fields++] = field; 1460 1461 n_fields_this_loop++; 1462 } 1463 argv_free(argv); 1464 1465 if (consumed < argc) { 1466 synth_err(SYNTH_ERR_INVALID_CMD, 0); 1467 ret = -EINVAL; 1468 goto err; 1469 } 1470 1471 } 1472 1473 if (n_fields == 0) { 1474 synth_err(SYNTH_ERR_INVALID_CMD, 0); 1475 ret = -EINVAL; 1476 goto err; 1477 } 1478 1479 event = alloc_synth_event(name, n_fields, fields); 1480 if (IS_ERR(event)) { 1481 ret = PTR_ERR(event); 1482 event = NULL; 1483 goto err; 1484 } 1485 ret = register_synth_event(event); 1486 if (!ret) 1487 dyn_event_add(&event->devent, &event->call); 1488 else 1489 free_synth_event(event); 1490 out: 1491 mutex_unlock(&event_mutex); 1492 1493 kfree(saved_fields); 1494 1495 return ret; 1496 err_free_field: 1497 free_synth_field(field); 1498 err_free_arg: 1499 argv_free(argv); 1500 err: 1501 for (i = 0; i < n_fields; i++) 1502 free_synth_field(fields[i]); 1503 1504 goto out; 1505 } 1506 1507 /** 1508 * synth_event_create - Create a new synthetic event 1509 * @name: The name of the new synthetic event 1510 * @fields: An array of type/name field descriptions 1511 * @n_fields: The number of field descriptions contained in the fields array 1512 * @mod: The module creating the event, NULL if not created from a module 1513 * 1514 * Create a new synthetic event with the given name under the 1515 * trace/events/synthetic/ directory. The event fields that will be 1516 * defined for the event should be passed in as an array of struct 1517 * synth_field_desc, and the number elements in the array passed in as 1518 * n_fields. Field ordering will retain the ordering given in the 1519 * fields array. 1520 * 1521 * If the new synthetic event is being created from a module, the mod 1522 * param must be non-NULL. This will ensure that the trace buffer 1523 * won't contain unreadable events. 1524 * 1525 * The new synth event should be deleted using synth_event_delete() 1526 * function. The new synthetic event can be generated from modules or 1527 * other kernel code using trace_synth_event() and related functions. 1528 * 1529 * Return: 0 if successful, error otherwise. 1530 */ 1531 int synth_event_create(const char *name, struct synth_field_desc *fields, 1532 unsigned int n_fields, struct module *mod) 1533 { 1534 struct dynevent_cmd cmd; 1535 char *buf; 1536 int ret; 1537 1538 buf = kzalloc(MAX_DYNEVENT_CMD_LEN, GFP_KERNEL); 1539 if (!buf) 1540 return -ENOMEM; 1541 1542 synth_event_cmd_init(&cmd, buf, MAX_DYNEVENT_CMD_LEN); 1543 1544 ret = synth_event_gen_cmd_array_start(&cmd, name, mod, 1545 fields, n_fields); 1546 if (ret) 1547 goto out; 1548 1549 ret = synth_event_gen_cmd_end(&cmd); 1550 out: 1551 kfree(buf); 1552 1553 return ret; 1554 } 1555 EXPORT_SYMBOL_GPL(synth_event_create); 1556 1557 static int destroy_synth_event(struct synth_event *se) 1558 { 1559 int ret; 1560 1561 if (se->ref) 1562 return -EBUSY; 1563 1564 if (trace_event_dyn_busy(&se->call)) 1565 return -EBUSY; 1566 1567 ret = unregister_synth_event(se); 1568 if (!ret) { 1569 dyn_event_remove(&se->devent); 1570 free_synth_event(se); 1571 } 1572 1573 return ret; 1574 } 1575 1576 /** 1577 * synth_event_delete - Delete a synthetic event 1578 * @event_name: The name of the new synthetic event 1579 * 1580 * Delete a synthetic event that was created with synth_event_create(). 1581 * 1582 * Return: 0 if successful, error otherwise. 1583 */ 1584 int synth_event_delete(const char *event_name) 1585 { 1586 struct synth_event *se = NULL; 1587 struct module *mod = NULL; 1588 int ret = -ENOENT; 1589 1590 mutex_lock(&event_mutex); 1591 se = find_synth_event(event_name); 1592 if (se) { 1593 mod = se->mod; 1594 ret = destroy_synth_event(se); 1595 } 1596 mutex_unlock(&event_mutex); 1597 1598 if (mod) { 1599 /* 1600 * It is safest to reset the ring buffer if the module 1601 * being unloaded registered any events that were 1602 * used. The only worry is if a new module gets 1603 * loaded, and takes on the same id as the events of 1604 * this module. When printing out the buffer, traced 1605 * events left over from this module may be passed to 1606 * the new module events and unexpected results may 1607 * occur. 1608 */ 1609 tracing_reset_all_online_cpus(); 1610 } 1611 1612 return ret; 1613 } 1614 EXPORT_SYMBOL_GPL(synth_event_delete); 1615 1616 static int check_command(const char *raw_command) 1617 { 1618 char **argv = NULL, *cmd, *saved_cmd, *name_and_field; 1619 int argc, ret = 0; 1620 1621 cmd = saved_cmd = kstrdup(raw_command, GFP_KERNEL); 1622 if (!cmd) 1623 return -ENOMEM; 1624 1625 name_and_field = strsep(&cmd, ";"); 1626 if (!name_and_field) { 1627 ret = -EINVAL; 1628 goto free; 1629 } 1630 1631 if (name_and_field[0] == '!') 1632 goto free; 1633 1634 argv = argv_split(GFP_KERNEL, name_and_field, &argc); 1635 if (!argv) { 1636 ret = -ENOMEM; 1637 goto free; 1638 } 1639 argv_free(argv); 1640 1641 if (argc < 3) 1642 ret = -EINVAL; 1643 free: 1644 kfree(saved_cmd); 1645 1646 return ret; 1647 } 1648 1649 static int create_or_delete_synth_event(const char *raw_command) 1650 { 1651 char *name = NULL, *fields, *p; 1652 int ret = 0; 1653 1654 raw_command = skip_spaces(raw_command); 1655 if (raw_command[0] == '\0') 1656 return ret; 1657 1658 last_cmd_set(raw_command); 1659 1660 ret = check_command(raw_command); 1661 if (ret) { 1662 synth_err(SYNTH_ERR_INVALID_CMD, 0); 1663 return ret; 1664 } 1665 1666 p = strpbrk(raw_command, " \t"); 1667 if (!p && raw_command[0] != '!') { 1668 synth_err(SYNTH_ERR_INVALID_CMD, 0); 1669 ret = -EINVAL; 1670 goto free; 1671 } 1672 1673 name = kmemdup_nul(raw_command, p ? p - raw_command : strlen(raw_command), GFP_KERNEL); 1674 if (!name) 1675 return -ENOMEM; 1676 1677 if (name[0] == '!') { 1678 ret = synth_event_delete(name + 1); 1679 goto free; 1680 } 1681 1682 fields = skip_spaces(p); 1683 1684 ret = __create_synth_event(name, fields); 1685 free: 1686 kfree(name); 1687 1688 return ret; 1689 } 1690 1691 static int synth_event_run_command(struct dynevent_cmd *cmd) 1692 { 1693 struct synth_event *se; 1694 int ret; 1695 1696 ret = create_or_delete_synth_event(cmd->seq.buffer); 1697 if (ret) 1698 return ret; 1699 1700 se = find_synth_event(cmd->event_name); 1701 if (WARN_ON(!se)) 1702 return -ENOENT; 1703 1704 se->mod = cmd->private_data; 1705 1706 return ret; 1707 } 1708 1709 /** 1710 * synth_event_cmd_init - Initialize a synthetic event command object 1711 * @cmd: A pointer to the dynevent_cmd struct representing the new event 1712 * @buf: A pointer to the buffer used to build the command 1713 * @maxlen: The length of the buffer passed in @buf 1714 * 1715 * Initialize a synthetic event command object. Use this before 1716 * calling any of the other dyenvent_cmd functions. 1717 */ 1718 void synth_event_cmd_init(struct dynevent_cmd *cmd, char *buf, int maxlen) 1719 { 1720 dynevent_cmd_init(cmd, buf, maxlen, DYNEVENT_TYPE_SYNTH, 1721 synth_event_run_command); 1722 } 1723 EXPORT_SYMBOL_GPL(synth_event_cmd_init); 1724 1725 static inline int 1726 __synth_event_trace_init(struct trace_event_file *file, 1727 struct synth_event_trace_state *trace_state) 1728 { 1729 int ret = 0; 1730 1731 memset(trace_state, '\0', sizeof(*trace_state)); 1732 1733 /* 1734 * Normal event tracing doesn't get called at all unless the 1735 * ENABLED bit is set (which attaches the probe thus allowing 1736 * this code to be called, etc). Because this is called 1737 * directly by the user, we don't have that but we still need 1738 * to honor not logging when disabled. For the iterated 1739 * trace case, we save the enabled state upon start and just 1740 * ignore the following data calls. 1741 */ 1742 if (!(file->flags & EVENT_FILE_FL_ENABLED) || 1743 trace_trigger_soft_disabled(file)) { 1744 trace_state->disabled = true; 1745 ret = -ENOENT; 1746 goto out; 1747 } 1748 1749 trace_state->event = file->event_call->data; 1750 out: 1751 return ret; 1752 } 1753 1754 static inline int 1755 __synth_event_trace_start(struct trace_event_file *file, 1756 struct synth_event_trace_state *trace_state, 1757 int dynamic_fields_size) 1758 { 1759 int entry_size, fields_size = 0; 1760 int ret = 0; 1761 1762 fields_size = trace_state->event->n_u64 * sizeof(u64); 1763 fields_size += dynamic_fields_size; 1764 1765 /* 1766 * Avoid ring buffer recursion detection, as this event 1767 * is being performed within another event. 1768 */ 1769 trace_state->buffer = file->tr->array_buffer.buffer; 1770 ring_buffer_nest_start(trace_state->buffer); 1771 1772 entry_size = sizeof(*trace_state->entry) + fields_size; 1773 trace_state->entry = trace_event_buffer_reserve(&trace_state->fbuffer, 1774 file, 1775 entry_size); 1776 if (!trace_state->entry) { 1777 ring_buffer_nest_end(trace_state->buffer); 1778 ret = -EINVAL; 1779 } 1780 1781 return ret; 1782 } 1783 1784 static inline void 1785 __synth_event_trace_end(struct synth_event_trace_state *trace_state) 1786 { 1787 trace_event_buffer_commit(&trace_state->fbuffer); 1788 1789 ring_buffer_nest_end(trace_state->buffer); 1790 } 1791 1792 /** 1793 * synth_event_trace - Trace a synthetic event 1794 * @file: The trace_event_file representing the synthetic event 1795 * @n_vals: The number of values in vals 1796 * @...: Variable number of args containing the event values 1797 * 1798 * Trace a synthetic event using the values passed in the variable 1799 * argument list. 1800 * 1801 * The argument list should be a list 'n_vals' u64 values. The number 1802 * of vals must match the number of field in the synthetic event, and 1803 * must be in the same order as the synthetic event fields. 1804 * 1805 * All vals should be cast to u64, and string vals are just pointers 1806 * to strings, cast to u64. Strings will be copied into space 1807 * reserved in the event for the string, using these pointers. 1808 * 1809 * Return: 0 on success, err otherwise. 1810 */ 1811 int synth_event_trace(struct trace_event_file *file, unsigned int n_vals, ...) 1812 { 1813 unsigned int i, n_u64, len, data_size = 0; 1814 struct synth_event_trace_state state; 1815 va_list args; 1816 int ret; 1817 1818 ret = __synth_event_trace_init(file, &state); 1819 if (ret) { 1820 if (ret == -ENOENT) 1821 ret = 0; /* just disabled, not really an error */ 1822 return ret; 1823 } 1824 1825 if (state.event->n_dynamic_fields) { 1826 va_start(args, n_vals); 1827 1828 for (i = 0; i < state.event->n_fields; i++) { 1829 u64 val = va_arg(args, u64); 1830 1831 if (state.event->fields[i]->is_string && 1832 state.event->fields[i]->is_dynamic) { 1833 char *str_val = (char *)(long)val; 1834 1835 data_size += strlen(str_val) + 1; 1836 } 1837 } 1838 1839 va_end(args); 1840 } 1841 1842 ret = __synth_event_trace_start(file, &state, data_size); 1843 if (ret) 1844 return ret; 1845 1846 if (n_vals != state.event->n_fields) { 1847 ret = -EINVAL; 1848 goto out; 1849 } 1850 1851 data_size = 0; 1852 1853 va_start(args, n_vals); 1854 for (i = 0, n_u64 = 0; i < state.event->n_fields; i++) { 1855 u64 val; 1856 1857 val = va_arg(args, u64); 1858 1859 if (state.event->fields[i]->is_string) { 1860 char *str_val = (char *)(long)val; 1861 1862 len = trace_string(state.entry, state.event, str_val, 1863 state.event->fields[i]->is_dynamic, 1864 data_size, &n_u64); 1865 data_size += len; /* only dynamic string increments */ 1866 } else { 1867 struct synth_field *field = state.event->fields[i]; 1868 1869 switch (field->size) { 1870 case 1: 1871 state.entry->fields[n_u64].as_u8 = (u8)val; 1872 break; 1873 1874 case 2: 1875 state.entry->fields[n_u64].as_u16 = (u16)val; 1876 break; 1877 1878 case 4: 1879 state.entry->fields[n_u64].as_u32 = (u32)val; 1880 break; 1881 1882 default: 1883 state.entry->fields[n_u64].as_u64 = val; 1884 break; 1885 } 1886 n_u64++; 1887 } 1888 } 1889 va_end(args); 1890 out: 1891 __synth_event_trace_end(&state); 1892 1893 return ret; 1894 } 1895 EXPORT_SYMBOL_GPL(synth_event_trace); 1896 1897 /** 1898 * synth_event_trace_array - Trace a synthetic event from an array 1899 * @file: The trace_event_file representing the synthetic event 1900 * @vals: Array of values 1901 * @n_vals: The number of values in vals 1902 * 1903 * Trace a synthetic event using the values passed in as 'vals'. 1904 * 1905 * The 'vals' array is just an array of 'n_vals' u64. The number of 1906 * vals must match the number of field in the synthetic event, and 1907 * must be in the same order as the synthetic event fields. 1908 * 1909 * All vals should be cast to u64, and string vals are just pointers 1910 * to strings, cast to u64. Strings will be copied into space 1911 * reserved in the event for the string, using these pointers. 1912 * 1913 * Return: 0 on success, err otherwise. 1914 */ 1915 int synth_event_trace_array(struct trace_event_file *file, u64 *vals, 1916 unsigned int n_vals) 1917 { 1918 unsigned int i, n_u64, field_pos, len, data_size = 0; 1919 struct synth_event_trace_state state; 1920 char *str_val; 1921 int ret; 1922 1923 ret = __synth_event_trace_init(file, &state); 1924 if (ret) { 1925 if (ret == -ENOENT) 1926 ret = 0; /* just disabled, not really an error */ 1927 return ret; 1928 } 1929 1930 if (state.event->n_dynamic_fields) { 1931 for (i = 0; i < state.event->n_dynamic_fields; i++) { 1932 field_pos = state.event->dynamic_fields[i]->field_pos; 1933 str_val = (char *)(long)vals[field_pos]; 1934 len = strlen(str_val) + 1; 1935 data_size += len; 1936 } 1937 } 1938 1939 ret = __synth_event_trace_start(file, &state, data_size); 1940 if (ret) 1941 return ret; 1942 1943 if (n_vals != state.event->n_fields) { 1944 ret = -EINVAL; 1945 goto out; 1946 } 1947 1948 data_size = 0; 1949 1950 for (i = 0, n_u64 = 0; i < state.event->n_fields; i++) { 1951 if (state.event->fields[i]->is_string) { 1952 char *str_val = (char *)(long)vals[i]; 1953 1954 len = trace_string(state.entry, state.event, str_val, 1955 state.event->fields[i]->is_dynamic, 1956 data_size, &n_u64); 1957 data_size += len; /* only dynamic string increments */ 1958 } else { 1959 struct synth_field *field = state.event->fields[i]; 1960 u64 val = vals[i]; 1961 1962 switch (field->size) { 1963 case 1: 1964 state.entry->fields[n_u64].as_u8 = (u8)val; 1965 break; 1966 1967 case 2: 1968 state.entry->fields[n_u64].as_u16 = (u16)val; 1969 break; 1970 1971 case 4: 1972 state.entry->fields[n_u64].as_u32 = (u32)val; 1973 break; 1974 1975 default: 1976 state.entry->fields[n_u64].as_u64 = val; 1977 break; 1978 } 1979 n_u64++; 1980 } 1981 } 1982 out: 1983 __synth_event_trace_end(&state); 1984 1985 return ret; 1986 } 1987 EXPORT_SYMBOL_GPL(synth_event_trace_array); 1988 1989 /** 1990 * synth_event_trace_start - Start piecewise synthetic event trace 1991 * @file: The trace_event_file representing the synthetic event 1992 * @trace_state: A pointer to object tracking the piecewise trace state 1993 * 1994 * Start the trace of a synthetic event field-by-field rather than all 1995 * at once. 1996 * 1997 * This function 'opens' an event trace, which means space is reserved 1998 * for the event in the trace buffer, after which the event's 1999 * individual field values can be set through either 2000 * synth_event_add_next_val() or synth_event_add_val(). 2001 * 2002 * A pointer to a trace_state object is passed in, which will keep 2003 * track of the current event trace state until the event trace is 2004 * closed (and the event finally traced) using 2005 * synth_event_trace_end(). 2006 * 2007 * Note that synth_event_trace_end() must be called after all values 2008 * have been added for each event trace, regardless of whether adding 2009 * all field values succeeded or not. 2010 * 2011 * Note also that for a given event trace, all fields must be added 2012 * using either synth_event_add_next_val() or synth_event_add_val() 2013 * but not both together or interleaved. 2014 * 2015 * Return: 0 on success, err otherwise. 2016 */ 2017 int synth_event_trace_start(struct trace_event_file *file, 2018 struct synth_event_trace_state *trace_state) 2019 { 2020 int ret; 2021 2022 if (!trace_state) 2023 return -EINVAL; 2024 2025 ret = __synth_event_trace_init(file, trace_state); 2026 if (ret) { 2027 if (ret == -ENOENT) 2028 ret = 0; /* just disabled, not really an error */ 2029 return ret; 2030 } 2031 2032 if (trace_state->event->n_dynamic_fields) 2033 return -ENOTSUPP; 2034 2035 ret = __synth_event_trace_start(file, trace_state, 0); 2036 2037 return ret; 2038 } 2039 EXPORT_SYMBOL_GPL(synth_event_trace_start); 2040 2041 static int __synth_event_add_val(const char *field_name, u64 val, 2042 struct synth_event_trace_state *trace_state) 2043 { 2044 struct synth_field *field = NULL; 2045 struct synth_trace_event *entry; 2046 struct synth_event *event; 2047 int i, ret = 0; 2048 2049 if (!trace_state) { 2050 ret = -EINVAL; 2051 goto out; 2052 } 2053 2054 /* can't mix add_next_synth_val() with add_synth_val() */ 2055 if (field_name) { 2056 if (trace_state->add_next) { 2057 ret = -EINVAL; 2058 goto out; 2059 } 2060 trace_state->add_name = true; 2061 } else { 2062 if (trace_state->add_name) { 2063 ret = -EINVAL; 2064 goto out; 2065 } 2066 trace_state->add_next = true; 2067 } 2068 2069 if (trace_state->disabled) 2070 goto out; 2071 2072 event = trace_state->event; 2073 if (trace_state->add_name) { 2074 for (i = 0; i < event->n_fields; i++) { 2075 field = event->fields[i]; 2076 if (strcmp(field->name, field_name) == 0) 2077 break; 2078 } 2079 if (!field) { 2080 ret = -EINVAL; 2081 goto out; 2082 } 2083 } else { 2084 if (trace_state->cur_field >= event->n_fields) { 2085 ret = -EINVAL; 2086 goto out; 2087 } 2088 field = event->fields[trace_state->cur_field++]; 2089 } 2090 2091 entry = trace_state->entry; 2092 if (field->is_string) { 2093 char *str_val = (char *)(long)val; 2094 char *str_field; 2095 2096 if (field->is_dynamic) { /* add_val can't do dynamic strings */ 2097 ret = -EINVAL; 2098 goto out; 2099 } 2100 2101 if (!str_val) { 2102 ret = -EINVAL; 2103 goto out; 2104 } 2105 2106 str_field = (char *)&entry->fields[field->offset]; 2107 strscpy(str_field, str_val, STR_VAR_LEN_MAX); 2108 } else { 2109 switch (field->size) { 2110 case 1: 2111 trace_state->entry->fields[field->offset].as_u8 = (u8)val; 2112 break; 2113 2114 case 2: 2115 trace_state->entry->fields[field->offset].as_u16 = (u16)val; 2116 break; 2117 2118 case 4: 2119 trace_state->entry->fields[field->offset].as_u32 = (u32)val; 2120 break; 2121 2122 default: 2123 trace_state->entry->fields[field->offset].as_u64 = val; 2124 break; 2125 } 2126 } 2127 out: 2128 return ret; 2129 } 2130 2131 /** 2132 * synth_event_add_next_val - Add the next field's value to an open synth trace 2133 * @val: The value to set the next field to 2134 * @trace_state: A pointer to object tracking the piecewise trace state 2135 * 2136 * Set the value of the next field in an event that's been opened by 2137 * synth_event_trace_start(). 2138 * 2139 * The val param should be the value cast to u64. If the value points 2140 * to a string, the val param should be a char * cast to u64. 2141 * 2142 * This function assumes all the fields in an event are to be set one 2143 * after another - successive calls to this function are made, one for 2144 * each field, in the order of the fields in the event, until all 2145 * fields have been set. If you'd rather set each field individually 2146 * without regard to ordering, synth_event_add_val() can be used 2147 * instead. 2148 * 2149 * Note however that synth_event_add_next_val() and 2150 * synth_event_add_val() can't be intermixed for a given event trace - 2151 * one or the other but not both can be used at the same time. 2152 * 2153 * Note also that synth_event_trace_end() must be called after all 2154 * values have been added for each event trace, regardless of whether 2155 * adding all field values succeeded or not. 2156 * 2157 * Return: 0 on success, err otherwise. 2158 */ 2159 int synth_event_add_next_val(u64 val, 2160 struct synth_event_trace_state *trace_state) 2161 { 2162 return __synth_event_add_val(NULL, val, trace_state); 2163 } 2164 EXPORT_SYMBOL_GPL(synth_event_add_next_val); 2165 2166 /** 2167 * synth_event_add_val - Add a named field's value to an open synth trace 2168 * @field_name: The name of the synthetic event field value to set 2169 * @val: The value to set the named field to 2170 * @trace_state: A pointer to object tracking the piecewise trace state 2171 * 2172 * Set the value of the named field in an event that's been opened by 2173 * synth_event_trace_start(). 2174 * 2175 * The val param should be the value cast to u64. If the value points 2176 * to a string, the val param should be a char * cast to u64. 2177 * 2178 * This function looks up the field name, and if found, sets the field 2179 * to the specified value. This lookup makes this function more 2180 * expensive than synth_event_add_next_val(), so use that or the 2181 * none-piecewise synth_event_trace() instead if efficiency is more 2182 * important. 2183 * 2184 * Note however that synth_event_add_next_val() and 2185 * synth_event_add_val() can't be intermixed for a given event trace - 2186 * one or the other but not both can be used at the same time. 2187 * 2188 * Note also that synth_event_trace_end() must be called after all 2189 * values have been added for each event trace, regardless of whether 2190 * adding all field values succeeded or not. 2191 * 2192 * Return: 0 on success, err otherwise. 2193 */ 2194 int synth_event_add_val(const char *field_name, u64 val, 2195 struct synth_event_trace_state *trace_state) 2196 { 2197 return __synth_event_add_val(field_name, val, trace_state); 2198 } 2199 EXPORT_SYMBOL_GPL(synth_event_add_val); 2200 2201 /** 2202 * synth_event_trace_end - End piecewise synthetic event trace 2203 * @trace_state: A pointer to object tracking the piecewise trace state 2204 * 2205 * End the trace of a synthetic event opened by 2206 * synth_event_trace__start(). 2207 * 2208 * This function 'closes' an event trace, which basically means that 2209 * it commits the reserved event and cleans up other loose ends. 2210 * 2211 * A pointer to a trace_state object is passed in, which will keep 2212 * track of the current event trace state opened with 2213 * synth_event_trace_start(). 2214 * 2215 * Note that this function must be called after all values have been 2216 * added for each event trace, regardless of whether adding all field 2217 * values succeeded or not. 2218 * 2219 * Return: 0 on success, err otherwise. 2220 */ 2221 int synth_event_trace_end(struct synth_event_trace_state *trace_state) 2222 { 2223 if (!trace_state) 2224 return -EINVAL; 2225 2226 __synth_event_trace_end(trace_state); 2227 2228 return 0; 2229 } 2230 EXPORT_SYMBOL_GPL(synth_event_trace_end); 2231 2232 static int create_synth_event(const char *raw_command) 2233 { 2234 char *fields, *p; 2235 const char *name; 2236 int len, ret = 0; 2237 2238 raw_command = skip_spaces(raw_command); 2239 if (raw_command[0] == '\0') 2240 return ret; 2241 2242 last_cmd_set(raw_command); 2243 2244 name = raw_command; 2245 2246 /* Don't try to process if not our system */ 2247 if (name[0] != 's' || name[1] != ':') 2248 return -ECANCELED; 2249 name += 2; 2250 2251 p = strpbrk(raw_command, " \t"); 2252 if (!p) { 2253 synth_err(SYNTH_ERR_INVALID_CMD, 0); 2254 return -EINVAL; 2255 } 2256 2257 fields = skip_spaces(p); 2258 2259 /* This interface accepts group name prefix */ 2260 if (strchr(name, '/')) { 2261 len = str_has_prefix(name, SYNTH_SYSTEM "/"); 2262 if (len == 0) { 2263 synth_err(SYNTH_ERR_INVALID_DYN_CMD, 0); 2264 return -EINVAL; 2265 } 2266 name += len; 2267 } 2268 2269 len = name - raw_command; 2270 2271 ret = check_command(raw_command + len); 2272 if (ret) { 2273 synth_err(SYNTH_ERR_INVALID_CMD, 0); 2274 return ret; 2275 } 2276 2277 name = kmemdup_nul(raw_command + len, p - raw_command - len, GFP_KERNEL); 2278 if (!name) 2279 return -ENOMEM; 2280 2281 ret = __create_synth_event(name, fields); 2282 2283 kfree(name); 2284 2285 return ret; 2286 } 2287 2288 static int synth_event_release(struct dyn_event *ev) 2289 { 2290 struct synth_event *event = to_synth_event(ev); 2291 int ret; 2292 2293 if (event->ref) 2294 return -EBUSY; 2295 2296 if (trace_event_dyn_busy(&event->call)) 2297 return -EBUSY; 2298 2299 ret = unregister_synth_event(event); 2300 if (ret) 2301 return ret; 2302 2303 dyn_event_remove(ev); 2304 free_synth_event(event); 2305 return 0; 2306 } 2307 2308 static int __synth_event_show(struct seq_file *m, struct synth_event *event) 2309 { 2310 struct synth_field *field; 2311 unsigned int i; 2312 char *type, *t; 2313 2314 seq_printf(m, "%s\t", event->name); 2315 2316 for (i = 0; i < event->n_fields; i++) { 2317 field = event->fields[i]; 2318 2319 type = field->type; 2320 t = strstr(type, "__data_loc"); 2321 if (t) { /* __data_loc belongs in format but not event desc */ 2322 t += sizeof("__data_loc"); 2323 type = t; 2324 } 2325 2326 /* parameter values */ 2327 seq_printf(m, "%s %s%s", type, field->name, 2328 i == event->n_fields - 1 ? "" : "; "); 2329 } 2330 2331 seq_putc(m, '\n'); 2332 2333 return 0; 2334 } 2335 2336 static int synth_event_show(struct seq_file *m, struct dyn_event *ev) 2337 { 2338 struct synth_event *event = to_synth_event(ev); 2339 2340 seq_printf(m, "s:%s/", event->class.system); 2341 2342 return __synth_event_show(m, event); 2343 } 2344 2345 static int synth_events_seq_show(struct seq_file *m, void *v) 2346 { 2347 struct dyn_event *ev = v; 2348 2349 if (!is_synth_event(ev)) 2350 return 0; 2351 2352 return __synth_event_show(m, to_synth_event(ev)); 2353 } 2354 2355 static const struct seq_operations synth_events_seq_op = { 2356 .start = dyn_event_seq_start, 2357 .next = dyn_event_seq_next, 2358 .stop = dyn_event_seq_stop, 2359 .show = synth_events_seq_show, 2360 }; 2361 2362 static int synth_events_open(struct inode *inode, struct file *file) 2363 { 2364 int ret; 2365 2366 ret = security_locked_down(LOCKDOWN_TRACEFS); 2367 if (ret) 2368 return ret; 2369 2370 if ((file->f_mode & FMODE_WRITE) && (file->f_flags & O_TRUNC)) { 2371 ret = dyn_events_release_all(&synth_event_ops); 2372 if (ret < 0) 2373 return ret; 2374 } 2375 2376 return seq_open(file, &synth_events_seq_op); 2377 } 2378 2379 static ssize_t synth_events_write(struct file *file, 2380 const char __user *buffer, 2381 size_t count, loff_t *ppos) 2382 { 2383 return trace_parse_run_command(file, buffer, count, ppos, 2384 create_or_delete_synth_event); 2385 } 2386 2387 static const struct file_operations synth_events_fops = { 2388 .open = synth_events_open, 2389 .write = synth_events_write, 2390 .read = seq_read, 2391 .llseek = seq_lseek, 2392 .release = seq_release, 2393 }; 2394 2395 /* 2396 * Register dynevent at core_initcall. This allows kernel to setup kprobe 2397 * events in postcore_initcall without tracefs. 2398 */ 2399 static __init int trace_events_synth_init_early(void) 2400 { 2401 int err = 0; 2402 2403 err = dyn_event_register(&synth_event_ops); 2404 if (err) 2405 pr_warn("Could not register synth_event_ops\n"); 2406 2407 return err; 2408 } 2409 core_initcall(trace_events_synth_init_early); 2410 2411 static __init int trace_events_synth_init(void) 2412 { 2413 struct dentry *entry = NULL; 2414 int err = 0; 2415 err = tracing_init_dentry(); 2416 if (err) 2417 goto err; 2418 2419 entry = tracefs_create_file("synthetic_events", TRACE_MODE_WRITE, 2420 NULL, NULL, &synth_events_fops); 2421 if (!entry) { 2422 err = -ENODEV; 2423 goto err; 2424 } 2425 2426 return err; 2427 err: 2428 pr_warn("Could not create tracefs 'synthetic_events' entry\n"); 2429 2430 return err; 2431 } 2432 2433 fs_initcall(trace_events_synth_init); 2434