Remove some explicit memory management from dwarf2read.c
[deliverable/binutils-gdb.git] / gdb / gdbserver / tracepoint.c
1 /* Tracepoint code for remote server for GDB.
2 Copyright (C) 2009-2020 Free Software Foundation, Inc.
3
4 This file is part of GDB.
5
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 3 of the License, or
9 (at your option) any later version.
10
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with this program. If not, see <http://www.gnu.org/licenses/>. */
18
19 #include "server.h"
20 #include "tracepoint.h"
21 #include "gdbthread.h"
22 #include "gdbsupport/rsp-low.h"
23
24 #include <ctype.h>
25 #include <fcntl.h>
26 #include <unistd.h>
27 #include <chrono>
28 #include <inttypes.h>
29 #include "ax.h"
30 #include "tdesc.h"
31
32 #define IPA_SYM_STRUCT_NAME ipa_sym_addresses
33 #include "gdbsupport/agent.h"
34
35 #define DEFAULT_TRACE_BUFFER_SIZE 5242880 /* 5*1024*1024 */
36
37 /* This file is built for both GDBserver, and the in-process
38 agent (IPA), a shared library that includes a tracing agent that is
39 loaded by the inferior to support fast tracepoints. Fast
40 tracepoints (or more accurately, jump based tracepoints) are
41 implemented by patching the tracepoint location with a jump into a
42 small trampoline function whose job is to save the register state,
43 call the in-process tracing agent, and then execute the original
44 instruction that was under the tracepoint jump (possibly adjusted,
45 if PC-relative, or some such).
46
47 The current synchronization design is pull based. That means,
48 GDBserver does most of the work, by peeking/poking at the inferior
49 agent's memory directly for downloading tracepoint and associated
50 objects, and for uploading trace frames. Whenever the IPA needs
51 something from GDBserver (trace buffer is full, tracing stopped for
52 some reason, etc.) the IPA calls a corresponding hook function
53 where GDBserver has placed a breakpoint.
54
55 Each of the agents has its own trace buffer. When browsing the
56 trace frames built from slow and fast tracepoints from GDB (tfind
57 mode), there's no guarantee the user is seeing the trace frames in
58 strict chronological creation order, although, GDBserver tries to
59 keep the order relatively reasonable, by syncing the trace buffers
60 at appropriate times.
61
62 */
63
64 #ifdef IN_PROCESS_AGENT
65
66 static void trace_vdebug (const char *, ...) ATTRIBUTE_PRINTF (1, 2);
67
68 static void
69 trace_vdebug (const char *fmt, ...)
70 {
71 char buf[1024];
72 va_list ap;
73
74 va_start (ap, fmt);
75 vsprintf (buf, fmt, ap);
76 fprintf (stderr, PROG "/tracepoint: %s\n", buf);
77 va_end (ap);
78 }
79
80 #define trace_debug_1(level, fmt, args...) \
81 do { \
82 if (level <= debug_threads) \
83 trace_vdebug ((fmt), ##args); \
84 } while (0)
85
86 #else
87
88 #define trace_debug_1(level, fmt, args...) \
89 do { \
90 if (level <= debug_threads) \
91 { \
92 debug_printf ((fmt), ##args); \
93 debug_printf ("\n"); \
94 } \
95 } while (0)
96
97 #endif
98
99 #define trace_debug(FMT, args...) \
100 trace_debug_1 (1, FMT, ##args)
101
102 /* Prefix exported symbols, for good citizenship. All the symbols
103 that need exporting are defined in this module. Note that all
104 these symbols must be tagged with IP_AGENT_EXPORT_*. */
105 #ifdef IN_PROCESS_AGENT
106 # define gdb_tp_heap_buffer IPA_SYM_EXPORTED_NAME (gdb_tp_heap_buffer)
107 # define gdb_jump_pad_buffer IPA_SYM_EXPORTED_NAME (gdb_jump_pad_buffer)
108 # define gdb_jump_pad_buffer_end IPA_SYM_EXPORTED_NAME (gdb_jump_pad_buffer_end)
109 # define gdb_trampoline_buffer IPA_SYM_EXPORTED_NAME (gdb_trampoline_buffer)
110 # define gdb_trampoline_buffer_end IPA_SYM_EXPORTED_NAME (gdb_trampoline_buffer_end)
111 # define gdb_trampoline_buffer_error IPA_SYM_EXPORTED_NAME (gdb_trampoline_buffer_error)
112 # define collecting IPA_SYM_EXPORTED_NAME (collecting)
113 # define gdb_collect_ptr IPA_SYM_EXPORTED_NAME (gdb_collect_ptr)
114 # define stop_tracing IPA_SYM_EXPORTED_NAME (stop_tracing)
115 # define flush_trace_buffer IPA_SYM_EXPORTED_NAME (flush_trace_buffer)
116 # define about_to_request_buffer_space IPA_SYM_EXPORTED_NAME (about_to_request_buffer_space)
117 # define trace_buffer_is_full IPA_SYM_EXPORTED_NAME (trace_buffer_is_full)
118 # define stopping_tracepoint IPA_SYM_EXPORTED_NAME (stopping_tracepoint)
119 # define expr_eval_result IPA_SYM_EXPORTED_NAME (expr_eval_result)
120 # define error_tracepoint IPA_SYM_EXPORTED_NAME (error_tracepoint)
121 # define tracepoints IPA_SYM_EXPORTED_NAME (tracepoints)
122 # define tracing IPA_SYM_EXPORTED_NAME (tracing)
123 # define trace_buffer_ctrl IPA_SYM_EXPORTED_NAME (trace_buffer_ctrl)
124 # define trace_buffer_ctrl_curr IPA_SYM_EXPORTED_NAME (trace_buffer_ctrl_curr)
125 # define trace_buffer_lo IPA_SYM_EXPORTED_NAME (trace_buffer_lo)
126 # define trace_buffer_hi IPA_SYM_EXPORTED_NAME (trace_buffer_hi)
127 # define traceframe_read_count IPA_SYM_EXPORTED_NAME (traceframe_read_count)
128 # define traceframe_write_count IPA_SYM_EXPORTED_NAME (traceframe_write_count)
129 # define traceframes_created IPA_SYM_EXPORTED_NAME (traceframes_created)
130 # define trace_state_variables IPA_SYM_EXPORTED_NAME (trace_state_variables)
131 # define get_raw_reg_ptr IPA_SYM_EXPORTED_NAME (get_raw_reg_ptr)
132 # define get_trace_state_variable_value_ptr \
133 IPA_SYM_EXPORTED_NAME (get_trace_state_variable_value_ptr)
134 # define set_trace_state_variable_value_ptr \
135 IPA_SYM_EXPORTED_NAME (set_trace_state_variable_value_ptr)
136 # define ust_loaded IPA_SYM_EXPORTED_NAME (ust_loaded)
137 # define helper_thread_id IPA_SYM_EXPORTED_NAME (helper_thread_id)
138 # define cmd_buf IPA_SYM_EXPORTED_NAME (cmd_buf)
139 # define ipa_tdesc_idx IPA_SYM_EXPORTED_NAME (ipa_tdesc_idx)
140 #endif
141
142 #ifndef IN_PROCESS_AGENT
143
144 /* Addresses of in-process agent's symbols GDBserver cares about. */
145
146 struct ipa_sym_addresses
147 {
148 CORE_ADDR addr_gdb_tp_heap_buffer;
149 CORE_ADDR addr_gdb_jump_pad_buffer;
150 CORE_ADDR addr_gdb_jump_pad_buffer_end;
151 CORE_ADDR addr_gdb_trampoline_buffer;
152 CORE_ADDR addr_gdb_trampoline_buffer_end;
153 CORE_ADDR addr_gdb_trampoline_buffer_error;
154 CORE_ADDR addr_collecting;
155 CORE_ADDR addr_gdb_collect_ptr;
156 CORE_ADDR addr_stop_tracing;
157 CORE_ADDR addr_flush_trace_buffer;
158 CORE_ADDR addr_about_to_request_buffer_space;
159 CORE_ADDR addr_trace_buffer_is_full;
160 CORE_ADDR addr_stopping_tracepoint;
161 CORE_ADDR addr_expr_eval_result;
162 CORE_ADDR addr_error_tracepoint;
163 CORE_ADDR addr_tracepoints;
164 CORE_ADDR addr_tracing;
165 CORE_ADDR addr_trace_buffer_ctrl;
166 CORE_ADDR addr_trace_buffer_ctrl_curr;
167 CORE_ADDR addr_trace_buffer_lo;
168 CORE_ADDR addr_trace_buffer_hi;
169 CORE_ADDR addr_traceframe_read_count;
170 CORE_ADDR addr_traceframe_write_count;
171 CORE_ADDR addr_traceframes_created;
172 CORE_ADDR addr_trace_state_variables;
173 CORE_ADDR addr_get_raw_reg_ptr;
174 CORE_ADDR addr_get_trace_state_variable_value_ptr;
175 CORE_ADDR addr_set_trace_state_variable_value_ptr;
176 CORE_ADDR addr_ust_loaded;
177 CORE_ADDR addr_ipa_tdesc_idx;
178 };
179
180 static struct
181 {
182 const char *name;
183 int offset;
184 } symbol_list[] = {
185 IPA_SYM(gdb_tp_heap_buffer),
186 IPA_SYM(gdb_jump_pad_buffer),
187 IPA_SYM(gdb_jump_pad_buffer_end),
188 IPA_SYM(gdb_trampoline_buffer),
189 IPA_SYM(gdb_trampoline_buffer_end),
190 IPA_SYM(gdb_trampoline_buffer_error),
191 IPA_SYM(collecting),
192 IPA_SYM(gdb_collect_ptr),
193 IPA_SYM(stop_tracing),
194 IPA_SYM(flush_trace_buffer),
195 IPA_SYM(about_to_request_buffer_space),
196 IPA_SYM(trace_buffer_is_full),
197 IPA_SYM(stopping_tracepoint),
198 IPA_SYM(expr_eval_result),
199 IPA_SYM(error_tracepoint),
200 IPA_SYM(tracepoints),
201 IPA_SYM(tracing),
202 IPA_SYM(trace_buffer_ctrl),
203 IPA_SYM(trace_buffer_ctrl_curr),
204 IPA_SYM(trace_buffer_lo),
205 IPA_SYM(trace_buffer_hi),
206 IPA_SYM(traceframe_read_count),
207 IPA_SYM(traceframe_write_count),
208 IPA_SYM(traceframes_created),
209 IPA_SYM(trace_state_variables),
210 IPA_SYM(get_raw_reg_ptr),
211 IPA_SYM(get_trace_state_variable_value_ptr),
212 IPA_SYM(set_trace_state_variable_value_ptr),
213 IPA_SYM(ust_loaded),
214 IPA_SYM(ipa_tdesc_idx),
215 };
216
217 static struct ipa_sym_addresses ipa_sym_addrs;
218
219 static int read_inferior_integer (CORE_ADDR symaddr, int *val);
220
221 /* Returns true if both the in-process agent library and the static
222 tracepoints libraries are loaded in the inferior, and agent has
223 capability on static tracepoints. */
224
225 static int
226 in_process_agent_supports_ust (void)
227 {
228 int loaded = 0;
229
230 if (!agent_loaded_p ())
231 {
232 warning ("In-process agent not loaded");
233 return 0;
234 }
235
236 if (agent_capability_check (AGENT_CAPA_STATIC_TRACE))
237 {
238 /* Agent understands static tracepoint, then check whether UST is in
239 fact loaded in the inferior. */
240 if (read_inferior_integer (ipa_sym_addrs.addr_ust_loaded, &loaded))
241 {
242 warning ("Error reading ust_loaded in lib");
243 return 0;
244 }
245
246 return loaded;
247 }
248 else
249 return 0;
250 }
251
252 static void
253 write_e_ipa_not_loaded (char *buffer)
254 {
255 sprintf (buffer,
256 "E.In-process agent library not loaded in process. "
257 "Fast and static tracepoints unavailable.");
258 }
259
260 /* Write an error to BUFFER indicating that UST isn't loaded in the
261 inferior. */
262
263 static void
264 write_e_ust_not_loaded (char *buffer)
265 {
266 #ifdef HAVE_UST
267 sprintf (buffer,
268 "E.UST library not loaded in process. "
269 "Static tracepoints unavailable.");
270 #else
271 sprintf (buffer, "E.GDBserver was built without static tracepoints support");
272 #endif
273 }
274
275 /* If the in-process agent library isn't loaded in the inferior, write
276 an error to BUFFER, and return 1. Otherwise, return 0. */
277
278 static int
279 maybe_write_ipa_not_loaded (char *buffer)
280 {
281 if (!agent_loaded_p ())
282 {
283 write_e_ipa_not_loaded (buffer);
284 return 1;
285 }
286 return 0;
287 }
288
289 /* If the in-process agent library and the ust (static tracepoints)
290 library aren't loaded in the inferior, write an error to BUFFER,
291 and return 1. Otherwise, return 0. */
292
293 static int
294 maybe_write_ipa_ust_not_loaded (char *buffer)
295 {
296 if (!agent_loaded_p ())
297 {
298 write_e_ipa_not_loaded (buffer);
299 return 1;
300 }
301 else if (!in_process_agent_supports_ust ())
302 {
303 write_e_ust_not_loaded (buffer);
304 return 1;
305 }
306 return 0;
307 }
308
309 /* Cache all future symbols that the tracepoints module might request.
310 We can not request symbols at arbitrary states in the remote
311 protocol, only when the client tells us that new symbols are
312 available. So when we load the in-process library, make sure to
313 check the entire list. */
314
315 void
316 tracepoint_look_up_symbols (void)
317 {
318 int i;
319
320 if (agent_loaded_p ())
321 return;
322
323 for (i = 0; i < sizeof (symbol_list) / sizeof (symbol_list[0]); i++)
324 {
325 CORE_ADDR *addrp =
326 (CORE_ADDR *) ((char *) &ipa_sym_addrs + symbol_list[i].offset);
327
328 if (look_up_one_symbol (symbol_list[i].name, addrp, 1) == 0)
329 {
330 if (debug_threads)
331 debug_printf ("symbol `%s' not found\n", symbol_list[i].name);
332 return;
333 }
334 }
335
336 agent_look_up_symbols (NULL);
337 }
338
339 #endif
340
341 /* GDBserver places a breakpoint on the IPA's version (which is a nop)
342 of the "stop_tracing" function. When this breakpoint is hit,
343 tracing stopped in the IPA for some reason. E.g., due to
344 tracepoint reaching the pass count, hitting conditional expression
345 evaluation error, etc.
346
347 The IPA's trace buffer is never in circular tracing mode: instead,
348 GDBserver's is, and whenever the in-process buffer fills, it calls
349 "flush_trace_buffer", which triggers an internal breakpoint.
350 GDBserver reacts to this breakpoint by pulling the meanwhile
351 collected data. Old frames discarding is always handled on the
352 GDBserver side. */
353
354 #ifdef IN_PROCESS_AGENT
355 int
356 read_inferior_memory (CORE_ADDR memaddr, unsigned char *myaddr, int len)
357 {
358 memcpy (myaddr, (void *) (uintptr_t) memaddr, len);
359 return 0;
360 }
361
362 /* Call this in the functions where GDBserver places a breakpoint, so
363 that the compiler doesn't try to be clever and skip calling the
364 function at all. This is necessary, even if we tell the compiler
365 to not inline said functions. */
366
367 #if defined(__GNUC__)
368 # define UNKNOWN_SIDE_EFFECTS() asm ("")
369 #else
370 # define UNKNOWN_SIDE_EFFECTS() do {} while (0)
371 #endif
372
373 IP_AGENT_EXPORT_FUNC void
374 stop_tracing (void)
375 {
376 /* GDBserver places breakpoint here. */
377 UNKNOWN_SIDE_EFFECTS();
378 }
379
380 IP_AGENT_EXPORT_FUNC void
381 flush_trace_buffer (void)
382 {
383 /* GDBserver places breakpoint here. */
384 UNKNOWN_SIDE_EFFECTS();
385 }
386
387 #endif
388
389 #ifndef IN_PROCESS_AGENT
390 static int
391 tracepoint_handler (CORE_ADDR address)
392 {
393 trace_debug ("tracepoint_handler: tracepoint at 0x%s hit",
394 paddress (address));
395 return 0;
396 }
397
398 /* Breakpoint at "stop_tracing" in the inferior lib. */
399 struct breakpoint *stop_tracing_bkpt;
400 static int stop_tracing_handler (CORE_ADDR);
401
402 /* Breakpoint at "flush_trace_buffer" in the inferior lib. */
403 struct breakpoint *flush_trace_buffer_bkpt;
404 static int flush_trace_buffer_handler (CORE_ADDR);
405
406 static void download_trace_state_variables (void);
407 static void upload_fast_traceframes (void);
408
409 static int run_inferior_command (char *cmd, int len);
410
411 static int
412 read_inferior_integer (CORE_ADDR symaddr, int *val)
413 {
414 return read_inferior_memory (symaddr, (unsigned char *) val,
415 sizeof (*val));
416 }
417
418 struct tracepoint;
419 static int tracepoint_send_agent (struct tracepoint *tpoint);
420
421 static int
422 read_inferior_uinteger (CORE_ADDR symaddr, unsigned int *val)
423 {
424 return read_inferior_memory (symaddr, (unsigned char *) val,
425 sizeof (*val));
426 }
427
428 static int
429 read_inferior_data_pointer (CORE_ADDR symaddr, CORE_ADDR *val)
430 {
431 void *pval = (void *) (uintptr_t) val;
432 int ret;
433
434 ret = read_inferior_memory (symaddr, (unsigned char *) &pval, sizeof (pval));
435 *val = (uintptr_t) pval;
436 return ret;
437 }
438
439 static int
440 write_inferior_data_pointer (CORE_ADDR symaddr, CORE_ADDR val)
441 {
442 void *pval = (void *) (uintptr_t) val;
443 return target_write_memory (symaddr,
444 (unsigned char *) &pval, sizeof (pval));
445 }
446
447 static int
448 write_inferior_integer (CORE_ADDR symaddr, int val)
449 {
450 return target_write_memory (symaddr, (unsigned char *) &val, sizeof (val));
451 }
452
453 static int
454 write_inferior_int8 (CORE_ADDR symaddr, int8_t val)
455 {
456 return target_write_memory (symaddr, (unsigned char *) &val, sizeof (val));
457 }
458
459 static int
460 write_inferior_uinteger (CORE_ADDR symaddr, unsigned int val)
461 {
462 return target_write_memory (symaddr, (unsigned char *) &val, sizeof (val));
463 }
464
465 static CORE_ADDR target_malloc (ULONGEST size);
466
467 #define COPY_FIELD_TO_BUF(BUF, OBJ, FIELD) \
468 do { \
469 memcpy (BUF, &(OBJ)->FIELD, sizeof ((OBJ)->FIELD)); \
470 BUF += sizeof ((OBJ)->FIELD); \
471 } while (0)
472
473 #endif
474
475 /* Base action. Concrete actions inherit this. */
476
477 struct tracepoint_action
478 {
479 char type;
480 };
481
482 /* An 'M' (collect memory) action. */
483 struct collect_memory_action
484 {
485 struct tracepoint_action base;
486
487 ULONGEST addr;
488 ULONGEST len;
489 int32_t basereg;
490 };
491
492 /* An 'R' (collect registers) action. */
493
494 struct collect_registers_action
495 {
496 struct tracepoint_action base;
497 };
498
499 /* An 'X' (evaluate expression) action. */
500
501 struct eval_expr_action
502 {
503 struct tracepoint_action base;
504
505 struct agent_expr *expr;
506 };
507
508 /* An 'L' (collect static trace data) action. */
509 struct collect_static_trace_data_action
510 {
511 struct tracepoint_action base;
512 };
513
514 #ifndef IN_PROCESS_AGENT
515 static CORE_ADDR
516 m_tracepoint_action_download (const struct tracepoint_action *action)
517 {
518 CORE_ADDR ipa_action = target_malloc (sizeof (struct collect_memory_action));
519
520 target_write_memory (ipa_action, (unsigned char *) action,
521 sizeof (struct collect_memory_action));
522
523 return ipa_action;
524 }
525 static char *
526 m_tracepoint_action_send (char *buffer, const struct tracepoint_action *action)
527 {
528 struct collect_memory_action *maction
529 = (struct collect_memory_action *) action;
530
531 COPY_FIELD_TO_BUF (buffer, maction, addr);
532 COPY_FIELD_TO_BUF (buffer, maction, len);
533 COPY_FIELD_TO_BUF (buffer, maction, basereg);
534
535 return buffer;
536 }
537
538 static CORE_ADDR
539 r_tracepoint_action_download (const struct tracepoint_action *action)
540 {
541 CORE_ADDR ipa_action = target_malloc (sizeof (struct collect_registers_action));
542
543 target_write_memory (ipa_action, (unsigned char *) action,
544 sizeof (struct collect_registers_action));
545
546 return ipa_action;
547 }
548
549 static char *
550 r_tracepoint_action_send (char *buffer, const struct tracepoint_action *action)
551 {
552 return buffer;
553 }
554
555 static CORE_ADDR download_agent_expr (struct agent_expr *expr);
556
557 static CORE_ADDR
558 x_tracepoint_action_download (const struct tracepoint_action *action)
559 {
560 CORE_ADDR ipa_action = target_malloc (sizeof (struct eval_expr_action));
561 CORE_ADDR expr;
562
563 target_write_memory (ipa_action, (unsigned char *) action,
564 sizeof (struct eval_expr_action));
565 expr = download_agent_expr (((struct eval_expr_action *) action)->expr);
566 write_inferior_data_pointer (ipa_action
567 + offsetof (struct eval_expr_action, expr),
568 expr);
569
570 return ipa_action;
571 }
572
573 /* Copy agent expression AEXPR to buffer pointed by P. If AEXPR is NULL,
574 copy 0 to P. Return updated header of buffer. */
575
576 static char *
577 agent_expr_send (char *p, const struct agent_expr *aexpr)
578 {
579 /* Copy the length of condition first, and then copy its
580 content. */
581 if (aexpr == NULL)
582 {
583 memset (p, 0, 4);
584 p += 4;
585 }
586 else
587 {
588 memcpy (p, &aexpr->length, 4);
589 p +=4;
590
591 memcpy (p, aexpr->bytes, aexpr->length);
592 p += aexpr->length;
593 }
594 return p;
595 }
596
597 static char *
598 x_tracepoint_action_send ( char *buffer, const struct tracepoint_action *action)
599 {
600 struct eval_expr_action *eaction = (struct eval_expr_action *) action;
601
602 return agent_expr_send (buffer, eaction->expr);
603 }
604
605 static CORE_ADDR
606 l_tracepoint_action_download (const struct tracepoint_action *action)
607 {
608 CORE_ADDR ipa_action
609 = target_malloc (sizeof (struct collect_static_trace_data_action));
610
611 target_write_memory (ipa_action, (unsigned char *) action,
612 sizeof (struct collect_static_trace_data_action));
613
614 return ipa_action;
615 }
616
617 static char *
618 l_tracepoint_action_send (char *buffer, const struct tracepoint_action *action)
619 {
620 return buffer;
621 }
622
623 static char *
624 tracepoint_action_send (char *buffer, const struct tracepoint_action *action)
625 {
626 switch (action->type)
627 {
628 case 'M':
629 return m_tracepoint_action_send (buffer, action);
630 case 'R':
631 return r_tracepoint_action_send (buffer, action);
632 case 'X':
633 return x_tracepoint_action_send (buffer, action);
634 case 'L':
635 return l_tracepoint_action_send (buffer, action);
636 }
637 error ("Unknown trace action '%c'.", action->type);
638 }
639
640 static CORE_ADDR
641 tracepoint_action_download (const struct tracepoint_action *action)
642 {
643 switch (action->type)
644 {
645 case 'M':
646 return m_tracepoint_action_download (action);
647 case 'R':
648 return r_tracepoint_action_download (action);
649 case 'X':
650 return x_tracepoint_action_download (action);
651 case 'L':
652 return l_tracepoint_action_download (action);
653 }
654 error ("Unknown trace action '%c'.", action->type);
655 }
656 #endif
657
658 /* This structure describes a piece of the source-level definition of
659 the tracepoint. The contents are not interpreted by the target,
660 but preserved verbatim for uploading upon reconnection. */
661
662 struct source_string
663 {
664 /* The type of string, such as "cond" for a conditional. */
665 char *type;
666
667 /* The source-level string itself. For the sake of target
668 debugging, we store it in plaintext, even though it is always
669 transmitted in hex. */
670 char *str;
671
672 /* Link to the next one in the list. We link them in the order
673 received, in case some make up an ordered list of commands or
674 some such. */
675 struct source_string *next;
676 };
677
678 enum tracepoint_type
679 {
680 /* Trap based tracepoint. */
681 trap_tracepoint,
682
683 /* A fast tracepoint implemented with a jump instead of a trap. */
684 fast_tracepoint,
685
686 /* A static tracepoint, implemented by a program call into a tracing
687 library. */
688 static_tracepoint
689 };
690
691 struct tracepoint_hit_ctx;
692
693 typedef enum eval_result_type (*condfn) (unsigned char *,
694 ULONGEST *);
695
696 /* The definition of a tracepoint. */
697
698 /* Tracepoints may have multiple locations, each at a different
699 address. This can occur with optimizations, template
700 instantiation, etc. Since the locations may be in different
701 scopes, the conditions and actions may be different for each
702 location. Our target version of tracepoints is more like GDB's
703 notion of "breakpoint locations", but we have almost nothing that
704 is not per-location, so we bother having two kinds of objects. The
705 key consequence is that numbers are not unique, and that it takes
706 both number and address to identify a tracepoint uniquely. */
707
708 struct tracepoint
709 {
710 /* The number of the tracepoint, as specified by GDB. Several
711 tracepoint objects here may share a number. */
712 uint32_t number;
713
714 /* Address at which the tracepoint is supposed to trigger. Several
715 tracepoints may share an address. */
716 CORE_ADDR address;
717
718 /* Tracepoint type. */
719 enum tracepoint_type type;
720
721 /* True if the tracepoint is currently enabled. */
722 int8_t enabled;
723
724 /* The number of single steps that will be performed after each
725 tracepoint hit. */
726 uint64_t step_count;
727
728 /* The number of times the tracepoint may be hit before it will
729 terminate the entire tracing run. */
730 uint64_t pass_count;
731
732 /* Pointer to the agent expression that is the tracepoint's
733 conditional, or NULL if the tracepoint is unconditional. */
734 struct agent_expr *cond;
735
736 /* The list of actions to take when the tracepoint triggers. */
737 uint32_t numactions;
738 struct tracepoint_action **actions;
739
740 /* Count of the times we've hit this tracepoint during the run.
741 Note that while-stepping steps are not counted as "hits". */
742 uint64_t hit_count;
743
744 /* Cached sum of the sizes of traceframes created by this point. */
745 uint64_t traceframe_usage;
746
747 CORE_ADDR compiled_cond;
748
749 /* Link to the next tracepoint in the list. */
750 struct tracepoint *next;
751
752 #ifndef IN_PROCESS_AGENT
753 /* The list of actions to take when the tracepoint triggers, in
754 string/packet form. */
755 char **actions_str;
756
757 /* The collection of strings that describe the tracepoint as it was
758 entered into GDB. These are not used by the target, but are
759 reported back to GDB upon reconnection. */
760 struct source_string *source_strings;
761
762 /* The number of bytes displaced by fast tracepoints. It may subsume
763 multiple instructions, for multi-byte fast tracepoints. This
764 field is only valid for fast tracepoints. */
765 uint32_t orig_size;
766
767 /* Only for fast tracepoints. */
768 CORE_ADDR obj_addr_on_target;
769
770 /* Address range where the original instruction under a fast
771 tracepoint was relocated to. (_end is actually one byte past
772 the end). */
773 CORE_ADDR adjusted_insn_addr;
774 CORE_ADDR adjusted_insn_addr_end;
775
776 /* The address range of the piece of the jump pad buffer that was
777 assigned to this fast tracepoint. (_end is actually one byte
778 past the end).*/
779 CORE_ADDR jump_pad;
780 CORE_ADDR jump_pad_end;
781
782 /* The address range of the piece of the trampoline buffer that was
783 assigned to this fast tracepoint. (_end is actually one byte
784 past the end). */
785 CORE_ADDR trampoline;
786 CORE_ADDR trampoline_end;
787
788 /* The list of actions to take while in a stepping loop. These
789 fields are only valid for patch-based tracepoints. */
790 int num_step_actions;
791 struct tracepoint_action **step_actions;
792 /* Same, but in string/packet form. */
793 char **step_actions_str;
794
795 /* Handle returned by the breakpoint or tracepoint module when we
796 inserted the trap or jump, or hooked into a static tracepoint.
797 NULL if we haven't inserted it yet. */
798 void *handle;
799 #endif
800
801 };
802
803 #ifndef IN_PROCESS_AGENT
804
805 /* Given `while-stepping', a thread may be collecting data for more
806 than one tracepoint simultaneously. On the other hand, the same
807 tracepoint with a while-stepping action may be hit by more than one
808 thread simultaneously (but not quite, each thread could be handling
809 a different step). Each thread holds a list of these objects,
810 representing the current step of each while-stepping action being
811 collected. */
812
813 struct wstep_state
814 {
815 struct wstep_state *next;
816
817 /* The tracepoint number. */
818 int tp_number;
819 /* The tracepoint's address. */
820 CORE_ADDR tp_address;
821
822 /* The number of the current step in this 'while-stepping'
823 action. */
824 long current_step;
825 };
826
827 #endif
828
829 EXTERN_C_PUSH
830
831 /* The linked list of all tracepoints. Marked explicitly as used as
832 the in-process library doesn't use it for the fast tracepoints
833 support. */
834 IP_AGENT_EXPORT_VAR struct tracepoint *tracepoints;
835
836 /* The first tracepoint to exceed its pass count. */
837
838 IP_AGENT_EXPORT_VAR struct tracepoint *stopping_tracepoint;
839
840 /* True if the trace buffer is full or otherwise no longer usable. */
841
842 IP_AGENT_EXPORT_VAR int trace_buffer_is_full;
843
844 /* The first error that occurred during expression evaluation. */
845
846 /* Stored as an int to avoid the IPA ABI being dependent on whatever
847 the compiler decides to use for the enum's underlying type. Holds
848 enum eval_result_type values. */
849 IP_AGENT_EXPORT_VAR int expr_eval_result = expr_eval_no_error;
850
851 EXTERN_C_POP
852
853 #ifndef IN_PROCESS_AGENT
854
855 /* Pointer to the last tracepoint in the list, new tracepoints are
856 linked in at the end. */
857
858 static struct tracepoint *last_tracepoint;
859
860 static const char *eval_result_names[] =
861 {
862 "terror:in the attic", /* this should never be reported */
863 "terror:empty expression",
864 "terror:empty stack",
865 "terror:stack overflow",
866 "terror:stack underflow",
867 "terror:unhandled opcode",
868 "terror:unrecognized opcode",
869 "terror:divide by zero"
870 };
871
872 #endif
873
874 /* The tracepoint in which the error occurred. */
875
876 EXTERN_C_PUSH
877 IP_AGENT_EXPORT_VAR struct tracepoint *error_tracepoint;
878 EXTERN_C_POP
879
880 struct trace_state_variable
881 {
882 /* This is the name of the variable as used in GDB. The target
883 doesn't use the name, but needs to have it for saving and
884 reconnection purposes. */
885 char *name;
886
887 /* This number identifies the variable uniquely. Numbers may be
888 assigned either by the target (in the case of builtin variables),
889 or by GDB, and are presumed unique during the course of a trace
890 experiment. */
891 int number;
892
893 /* The variable's initial value, a 64-bit signed integer always. */
894 LONGEST initial_value;
895
896 /* The variable's value, a 64-bit signed integer always. */
897 LONGEST value;
898
899 /* Pointer to a getter function, used to supply computed values. */
900 LONGEST (*getter) (void);
901
902 /* Link to the next variable. */
903 struct trace_state_variable *next;
904 };
905
906 /* Linked list of all trace state variables. */
907
908 #ifdef IN_PROCESS_AGENT
909 struct trace_state_variable *alloced_trace_state_variables;
910 #endif
911
912 IP_AGENT_EXPORT_VAR struct trace_state_variable *trace_state_variables;
913
914 /* The results of tracing go into a fixed-size space known as the
915 "trace buffer". Because usage follows a limited number of
916 patterns, we manage it ourselves rather than with malloc. Basic
917 rules are that we create only one trace frame at a time, each is
918 variable in size, they are never moved once created, and we only
919 discard if we are doing a circular buffer, and then only the oldest
920 ones. Each trace frame includes its own size, so we don't need to
921 link them together, and the trace frame number is relative to the
922 first one, so we don't need to record numbers. A trace frame also
923 records the number of the tracepoint that created it. The data
924 itself is a series of blocks, each introduced by a single character
925 and with a defined format. Each type of block has enough
926 type/length info to allow scanners to jump quickly from one block
927 to the next without reading each byte in the block. */
928
929 /* Trace buffer management would be simple - advance a free pointer
930 from beginning to end, then stop - were it not for the circular
931 buffer option, which is a useful way to prevent a trace run from
932 stopping prematurely because the buffer filled up. In the circular
933 case, the location of the first trace frame (trace_buffer_start)
934 moves as old trace frames are discarded. Also, since we grow trace
935 frames incrementally as actions are performed, we wrap around to
936 the beginning of the trace buffer. This is per-block, so each
937 block within a trace frame remains contiguous. Things get messy
938 when the wrapped-around trace frame is the one being discarded; the
939 free space ends up in two parts at opposite ends of the buffer. */
940
941 #ifndef ATTR_PACKED
942 # if defined(__GNUC__)
943 # define ATTR_PACKED __attribute__ ((packed))
944 # else
945 # define ATTR_PACKED /* nothing */
946 # endif
947 #endif
948
949 /* The data collected at a tracepoint hit. This object should be as
950 small as possible, since there may be a great many of them. We do
951 not need to keep a frame number, because they are all sequential
952 and there are no deletions; so the Nth frame in the buffer is
953 always frame number N. */
954
955 struct traceframe
956 {
957 /* Number of the tracepoint that collected this traceframe. A value
958 of 0 indicates the current end of the trace buffer. We make this
959 a 16-bit field because it's never going to happen that GDB's
960 numbering of tracepoints reaches 32,000. */
961 int tpnum : 16;
962
963 /* The size of the data in this trace frame. We limit this to 32
964 bits, even on a 64-bit target, because it's just implausible that
965 one is validly going to collect 4 gigabytes of data at a single
966 tracepoint hit. */
967 unsigned int data_size : 32;
968
969 /* The base of the trace data, which is contiguous from this point. */
970 unsigned char data[0];
971
972 } ATTR_PACKED;
973
974 /* The size of the EOB marker, in bytes. A traceframe with zeroed
975 fields (and no data) marks the end of trace data. */
976 #define TRACEFRAME_EOB_MARKER_SIZE offsetof (struct traceframe, data)
977
978 /* This flag is true if the trace buffer is circular, meaning that
979 when it fills, the oldest trace frames are discarded in order to
980 make room. */
981
982 #ifndef IN_PROCESS_AGENT
983 static int circular_trace_buffer;
984 #endif
985
986 /* Size of the trace buffer. */
987
988 static LONGEST trace_buffer_size;
989
990 EXTERN_C_PUSH
991
992 /* Pointer to the block of memory that traceframes all go into. */
993
994 IP_AGENT_EXPORT_VAR unsigned char *trace_buffer_lo;
995
996 /* Pointer to the end of the trace buffer, more precisely to the byte
997 after the end of the buffer. */
998
999 IP_AGENT_EXPORT_VAR unsigned char *trace_buffer_hi;
1000
1001 EXTERN_C_POP
1002
1003 /* Control structure holding the read/write/etc. pointers into the
1004 trace buffer. We need more than one of these to implement a
1005 transaction-like mechanism to guarantees that both GDBserver and the
1006 in-process agent can try to change the trace buffer
1007 simultaneously. */
1008
1009 struct trace_buffer_control
1010 {
1011 /* Pointer to the first trace frame in the buffer. In the
1012 non-circular case, this is equal to trace_buffer_lo, otherwise it
1013 moves around in the buffer. */
1014 unsigned char *start;
1015
1016 /* Pointer to the free part of the trace buffer. Note that we clear
1017 several bytes at and after this pointer, so that traceframe
1018 scans/searches terminate properly. */
1019 unsigned char *free;
1020
1021 /* Pointer to the byte after the end of the free part. Note that
1022 this may be smaller than trace_buffer_free in the circular case,
1023 and means that the free part is in two pieces. Initially it is
1024 equal to trace_buffer_hi, then is generally equivalent to
1025 trace_buffer_start. */
1026 unsigned char *end_free;
1027
1028 /* Pointer to the wraparound. If not equal to trace_buffer_hi, then
1029 this is the point at which the trace data breaks, and resumes at
1030 trace_buffer_lo. */
1031 unsigned char *wrap;
1032 };
1033
1034 /* Same as above, to be used by GDBserver when updating the in-process
1035 agent. */
1036 struct ipa_trace_buffer_control
1037 {
1038 uintptr_t start;
1039 uintptr_t free;
1040 uintptr_t end_free;
1041 uintptr_t wrap;
1042 };
1043
1044
1045 /* We have possibly both GDBserver and an inferior thread accessing
1046 the same IPA trace buffer memory. The IPA is the producer (tries
1047 to put new frames in the buffer), while GDBserver occasionally
1048 consumes them, that is, flushes the IPA's buffer into its own
1049 buffer. Both sides need to update the trace buffer control
1050 pointers (current head, tail, etc.). We can't use a global lock to
1051 synchronize the accesses, as otherwise we could deadlock GDBserver
1052 (if the thread holding the lock stops for a signal, say). So
1053 instead of that, we use a transaction scheme where GDBserver writes
1054 always prevail over the IPAs writes, and, we have the IPA detect
1055 the commit failure/overwrite, and retry the whole attempt. This is
1056 mainly implemented by having a global token object that represents
1057 who wrote last to the buffer control structure. We need to freeze
1058 any inferior writing to the buffer while GDBserver touches memory,
1059 so that the inferior can correctly detect that GDBserver had been
1060 there, otherwise, it could mistakingly think its commit was
1061 successful; that's implemented by simply having GDBserver set a
1062 breakpoint the inferior hits if it is the critical region.
1063
1064 There are three cycling trace buffer control structure copies
1065 (buffer head, tail, etc.), with the token object including an index
1066 indicating which is current live copy. The IPA tentatively builds
1067 an updated copy in a non-current control structure, while GDBserver
1068 always clobbers the current version directly. The IPA then tries
1069 to atomically "commit" its version; if GDBserver clobbered the
1070 structure meanwhile, that will fail, and the IPA restarts the
1071 allocation process.
1072
1073 Listing the step in further detail, we have:
1074
1075 In-process agent (producer):
1076
1077 - passes by `about_to_request_buffer_space' breakpoint/lock
1078
1079 - reads current token, extracts current trace buffer control index,
1080 and starts tentatively updating the rightmost one (0->1, 1->2,
1081 2->0). Note that only one inferior thread is executing this code
1082 at any given time, due to an outer lock in the jump pads.
1083
1084 - updates counters, and tries to commit the token.
1085
1086 - passes by second `about_to_request_buffer_space' breakpoint/lock,
1087 leaving the sync region.
1088
1089 - checks if the update was effective.
1090
1091 - if trace buffer was found full, hits flush_trace_buffer
1092 breakpoint, and restarts later afterwards.
1093
1094 GDBserver (consumer):
1095
1096 - sets `about_to_request_buffer_space' breakpoint/lock.
1097
1098 - updates the token unconditionally, using the current buffer
1099 control index, since it knows that the IP agent always writes to
1100 the rightmost, and due to the breakpoint, at most one IP thread
1101 can try to update the trace buffer concurrently to GDBserver, so
1102 there will be no danger of trace buffer control index wrap making
1103 the IPA write to the same index as GDBserver.
1104
1105 - flushes the IP agent's trace buffer completely, and updates the
1106 current trace buffer control structure. GDBserver *always* wins.
1107
1108 - removes the `about_to_request_buffer_space' breakpoint.
1109
1110 The token is stored in the `trace_buffer_ctrl_curr' variable.
1111 Internally, it's bits are defined as:
1112
1113 |-------------+-----+-------------+--------+-------------+--------------|
1114 | Bit offsets | 31 | 30 - 20 | 19 | 18-8 | 7-0 |
1115 |-------------+-----+-------------+--------+-------------+--------------|
1116 | What | GSB | PC (11-bit) | unused | CC (11-bit) | TBCI (8-bit) |
1117 |-------------+-----+-------------+--------+-------------+--------------|
1118
1119 GSB - GDBserver Stamp Bit
1120 PC - Previous Counter
1121 CC - Current Counter
1122 TBCI - Trace Buffer Control Index
1123
1124
1125 An IPA update of `trace_buffer_ctrl_curr' does:
1126
1127 - read CC from the current token, save as PC.
1128 - updates pointers
1129 - atomically tries to write PC+1,CC
1130
1131 A GDBserver update of `trace_buffer_ctrl_curr' does:
1132
1133 - reads PC and CC from the current token.
1134 - updates pointers
1135 - writes GSB,PC,CC
1136 */
1137
1138 /* These are the bits of `trace_buffer_ctrl_curr' that are reserved
1139 for the counters described below. The cleared bits are used to
1140 hold the index of the items of the `trace_buffer_ctrl' array that
1141 is "current". */
1142 #define GDBSERVER_FLUSH_COUNT_MASK 0xfffffff0
1143
1144 /* `trace_buffer_ctrl_curr' contains two counters. The `previous'
1145 counter, and the `current' counter. */
1146
1147 #define GDBSERVER_FLUSH_COUNT_MASK_PREV 0x7ff00000
1148 #define GDBSERVER_FLUSH_COUNT_MASK_CURR 0x0007ff00
1149
1150 /* When GDBserver update the IP agent's `trace_buffer_ctrl_curr', it
1151 always stamps this bit as set. */
1152 #define GDBSERVER_UPDATED_FLUSH_COUNT_BIT 0x80000000
1153
1154 #ifdef IN_PROCESS_AGENT
1155 IP_AGENT_EXPORT_VAR struct trace_buffer_control trace_buffer_ctrl[3];
1156 IP_AGENT_EXPORT_VAR unsigned int trace_buffer_ctrl_curr;
1157
1158 # define TRACE_BUFFER_CTRL_CURR \
1159 (trace_buffer_ctrl_curr & ~GDBSERVER_FLUSH_COUNT_MASK)
1160
1161 #else
1162
1163 /* The GDBserver side agent only needs one instance of this object, as
1164 it doesn't need to sync with itself. Define it as array anyway so
1165 that the rest of the code base doesn't need to care for the
1166 difference. */
1167 struct trace_buffer_control trace_buffer_ctrl[1];
1168 # define TRACE_BUFFER_CTRL_CURR 0
1169 #endif
1170
1171 /* These are convenience macros used to access the current trace
1172 buffer control in effect. */
1173 #define trace_buffer_start (trace_buffer_ctrl[TRACE_BUFFER_CTRL_CURR].start)
1174 #define trace_buffer_free (trace_buffer_ctrl[TRACE_BUFFER_CTRL_CURR].free)
1175 #define trace_buffer_end_free \
1176 (trace_buffer_ctrl[TRACE_BUFFER_CTRL_CURR].end_free)
1177 #define trace_buffer_wrap (trace_buffer_ctrl[TRACE_BUFFER_CTRL_CURR].wrap)
1178
1179
1180 /* Macro that returns a pointer to the first traceframe in the buffer. */
1181
1182 #define FIRST_TRACEFRAME() ((struct traceframe *) trace_buffer_start)
1183
1184 /* Macro that returns a pointer to the next traceframe in the buffer.
1185 If the computed location is beyond the wraparound point, subtract
1186 the offset of the wraparound. */
1187
1188 #define NEXT_TRACEFRAME_1(TF) \
1189 (((unsigned char *) (TF)) + sizeof (struct traceframe) + (TF)->data_size)
1190
1191 #define NEXT_TRACEFRAME(TF) \
1192 ((struct traceframe *) (NEXT_TRACEFRAME_1 (TF) \
1193 - ((NEXT_TRACEFRAME_1 (TF) >= trace_buffer_wrap) \
1194 ? (trace_buffer_wrap - trace_buffer_lo) \
1195 : 0)))
1196
1197 /* The difference between these counters represents the total number
1198 of complete traceframes present in the trace buffer. The IP agent
1199 writes to the write count, GDBserver writes to read count. */
1200
1201 IP_AGENT_EXPORT_VAR unsigned int traceframe_write_count;
1202 IP_AGENT_EXPORT_VAR unsigned int traceframe_read_count;
1203
1204 /* Convenience macro. */
1205
1206 #define traceframe_count \
1207 ((unsigned int) (traceframe_write_count - traceframe_read_count))
1208
1209 /* The count of all traceframes created in the current run, including
1210 ones that were discarded to make room. */
1211
1212 IP_AGENT_EXPORT_VAR int traceframes_created;
1213
1214 #ifndef IN_PROCESS_AGENT
1215
1216 /* Read-only regions are address ranges whose contents don't change,
1217 and so can be read from target memory even while looking at a trace
1218 frame. Without these, disassembly for instance will likely fail,
1219 because the program code is not usually collected into a trace
1220 frame. This data structure does not need to be very complicated or
1221 particularly efficient, it's only going to be used occasionally,
1222 and only by some commands. */
1223
1224 struct readonly_region
1225 {
1226 /* The bounds of the region. */
1227 CORE_ADDR start, end;
1228
1229 /* Link to the next one. */
1230 struct readonly_region *next;
1231 };
1232
1233 /* Linked list of readonly regions. This list stays in effect from
1234 one tstart to the next. */
1235
1236 static struct readonly_region *readonly_regions;
1237
1238 #endif
1239
1240 /* The global that controls tracing overall. */
1241
1242 IP_AGENT_EXPORT_VAR int tracing;
1243
1244 #ifndef IN_PROCESS_AGENT
1245
1246 /* Controls whether tracing should continue after GDB disconnects. */
1247
1248 int disconnected_tracing;
1249
1250 /* The reason for the last tracing run to have stopped. We initialize
1251 to a distinct string so that GDB can distinguish between "stopped
1252 after running" and "stopped because never run" cases. */
1253
1254 static const char *tracing_stop_reason = "tnotrun";
1255
1256 static int tracing_stop_tpnum;
1257
1258 /* 64-bit timestamps for the trace run's start and finish, expressed
1259 in microseconds from the Unix epoch. */
1260
1261 LONGEST tracing_start_time;
1262 LONGEST tracing_stop_time;
1263
1264 /* The (optional) user-supplied name of the user that started the run.
1265 This is an arbitrary string, and may be NULL. */
1266
1267 char *tracing_user_name;
1268
1269 /* Optional user-supplied text describing the run. This is
1270 an arbitrary string, and may be NULL. */
1271
1272 char *tracing_notes;
1273
1274 /* Optional user-supplied text explaining a tstop command. This is an
1275 arbitrary string, and may be NULL. */
1276
1277 char *tracing_stop_note;
1278
1279 #endif
1280
1281 /* Functions local to this file. */
1282
1283 /* Base "class" for tracepoint type specific data to be passed down to
1284 collect_data_at_tracepoint. */
1285 struct tracepoint_hit_ctx
1286 {
1287 enum tracepoint_type type;
1288 };
1289
1290 #ifdef IN_PROCESS_AGENT
1291
1292 /* Fast/jump tracepoint specific data to be passed down to
1293 collect_data_at_tracepoint. */
1294 struct fast_tracepoint_ctx
1295 {
1296 struct tracepoint_hit_ctx base;
1297
1298 struct regcache regcache;
1299 int regcache_initted;
1300 unsigned char *regspace;
1301
1302 unsigned char *regs;
1303 struct tracepoint *tpoint;
1304 };
1305
1306 /* Static tracepoint specific data to be passed down to
1307 collect_data_at_tracepoint. */
1308 struct static_tracepoint_ctx
1309 {
1310 struct tracepoint_hit_ctx base;
1311
1312 /* The regcache corresponding to the registers state at the time of
1313 the tracepoint hit. Initialized lazily, from REGS. */
1314 struct regcache regcache;
1315 int regcache_initted;
1316
1317 /* The buffer space REGCACHE above uses. We use a separate buffer
1318 instead of letting the regcache malloc for both signal safety and
1319 performance reasons; this is allocated on the stack instead. */
1320 unsigned char *regspace;
1321
1322 /* The register buffer as passed on by lttng/ust. */
1323 struct registers *regs;
1324
1325 /* The "printf" formatter and the args the user passed to the marker
1326 call. We use this to be able to collect "static trace data"
1327 ($_sdata). */
1328 const char *fmt;
1329 va_list *args;
1330
1331 /* The GDB tracepoint matching the probed marker that was "hit". */
1332 struct tracepoint *tpoint;
1333 };
1334
1335 #else
1336
1337 /* Static tracepoint specific data to be passed down to
1338 collect_data_at_tracepoint. */
1339 struct trap_tracepoint_ctx
1340 {
1341 struct tracepoint_hit_ctx base;
1342
1343 struct regcache *regcache;
1344 };
1345
1346 #endif
1347
1348 #ifndef IN_PROCESS_AGENT
1349 static CORE_ADDR traceframe_get_pc (struct traceframe *tframe);
1350 static int traceframe_read_tsv (int num, LONGEST *val);
1351 #endif
1352
1353 static int condition_true_at_tracepoint (struct tracepoint_hit_ctx *ctx,
1354 struct tracepoint *tpoint);
1355
1356 #ifndef IN_PROCESS_AGENT
1357 static void clear_readonly_regions (void);
1358 static void clear_installed_tracepoints (void);
1359 #endif
1360
1361 static void collect_data_at_tracepoint (struct tracepoint_hit_ctx *ctx,
1362 CORE_ADDR stop_pc,
1363 struct tracepoint *tpoint);
1364 #ifndef IN_PROCESS_AGENT
1365 static void collect_data_at_step (struct tracepoint_hit_ctx *ctx,
1366 CORE_ADDR stop_pc,
1367 struct tracepoint *tpoint, int current_step);
1368 static void compile_tracepoint_condition (struct tracepoint *tpoint,
1369 CORE_ADDR *jump_entry);
1370 #endif
1371 static void do_action_at_tracepoint (struct tracepoint_hit_ctx *ctx,
1372 CORE_ADDR stop_pc,
1373 struct tracepoint *tpoint,
1374 struct traceframe *tframe,
1375 struct tracepoint_action *taction);
1376
1377 #ifndef IN_PROCESS_AGENT
1378 static struct tracepoint *fast_tracepoint_from_ipa_tpoint_address (CORE_ADDR);
1379
1380 static void install_tracepoint (struct tracepoint *, char *own_buf);
1381 static void download_tracepoint (struct tracepoint *);
1382 static int install_fast_tracepoint (struct tracepoint *, char *errbuf);
1383 static void clone_fast_tracepoint (struct tracepoint *to,
1384 const struct tracepoint *from);
1385 #endif
1386
1387 static LONGEST get_timestamp (void);
1388
1389 #if defined(__GNUC__)
1390 # define memory_barrier() asm volatile ("" : : : "memory")
1391 #else
1392 # define memory_barrier() do {} while (0)
1393 #endif
1394
1395 /* We only build the IPA if this builtin is supported, and there are
1396 no uses of this in GDBserver itself, so we're safe in defining this
1397 unconditionally. */
1398 #define cmpxchg(mem, oldval, newval) \
1399 __sync_val_compare_and_swap (mem, oldval, newval)
1400
1401 /* Record that an error occurred during expression evaluation. */
1402
1403 static void
1404 record_tracepoint_error (struct tracepoint *tpoint, const char *which,
1405 enum eval_result_type rtype)
1406 {
1407 trace_debug ("Tracepoint %d at %s %s eval reports error %d",
1408 tpoint->number, paddress (tpoint->address), which, rtype);
1409
1410 #ifdef IN_PROCESS_AGENT
1411 /* Only record the first error we get. */
1412 if (cmpxchg (&expr_eval_result,
1413 expr_eval_no_error,
1414 rtype) != expr_eval_no_error)
1415 return;
1416 #else
1417 if (expr_eval_result != expr_eval_no_error)
1418 return;
1419 #endif
1420
1421 error_tracepoint = tpoint;
1422 }
1423
1424 /* Trace buffer management. */
1425
1426 static void
1427 clear_trace_buffer (void)
1428 {
1429 trace_buffer_start = trace_buffer_lo;
1430 trace_buffer_free = trace_buffer_lo;
1431 trace_buffer_end_free = trace_buffer_hi;
1432 trace_buffer_wrap = trace_buffer_hi;
1433 /* A traceframe with zeroed fields marks the end of trace data. */
1434 ((struct traceframe *) trace_buffer_free)->tpnum = 0;
1435 ((struct traceframe *) trace_buffer_free)->data_size = 0;
1436 traceframe_read_count = traceframe_write_count = 0;
1437 traceframes_created = 0;
1438 }
1439
1440 #ifndef IN_PROCESS_AGENT
1441
1442 static void
1443 clear_inferior_trace_buffer (void)
1444 {
1445 CORE_ADDR ipa_trace_buffer_lo;
1446 CORE_ADDR ipa_trace_buffer_hi;
1447 struct traceframe ipa_traceframe = { 0 };
1448 struct ipa_trace_buffer_control ipa_trace_buffer_ctrl;
1449
1450 read_inferior_data_pointer (ipa_sym_addrs.addr_trace_buffer_lo,
1451 &ipa_trace_buffer_lo);
1452 read_inferior_data_pointer (ipa_sym_addrs.addr_trace_buffer_hi,
1453 &ipa_trace_buffer_hi);
1454
1455 ipa_trace_buffer_ctrl.start = ipa_trace_buffer_lo;
1456 ipa_trace_buffer_ctrl.free = ipa_trace_buffer_lo;
1457 ipa_trace_buffer_ctrl.end_free = ipa_trace_buffer_hi;
1458 ipa_trace_buffer_ctrl.wrap = ipa_trace_buffer_hi;
1459
1460 /* A traceframe with zeroed fields marks the end of trace data. */
1461 target_write_memory (ipa_sym_addrs.addr_trace_buffer_ctrl,
1462 (unsigned char *) &ipa_trace_buffer_ctrl,
1463 sizeof (ipa_trace_buffer_ctrl));
1464
1465 write_inferior_uinteger (ipa_sym_addrs.addr_trace_buffer_ctrl_curr, 0);
1466
1467 /* A traceframe with zeroed fields marks the end of trace data. */
1468 target_write_memory (ipa_trace_buffer_lo,
1469 (unsigned char *) &ipa_traceframe,
1470 sizeof (ipa_traceframe));
1471
1472 write_inferior_uinteger (ipa_sym_addrs.addr_traceframe_write_count, 0);
1473 write_inferior_uinteger (ipa_sym_addrs.addr_traceframe_read_count, 0);
1474 write_inferior_integer (ipa_sym_addrs.addr_traceframes_created, 0);
1475 }
1476
1477 #endif
1478
1479 static void
1480 init_trace_buffer (LONGEST bufsize)
1481 {
1482 size_t alloc_size;
1483
1484 trace_buffer_size = bufsize;
1485
1486 /* Make sure to internally allocate at least space for the EOB
1487 marker. */
1488 alloc_size = (bufsize < TRACEFRAME_EOB_MARKER_SIZE
1489 ? TRACEFRAME_EOB_MARKER_SIZE : bufsize);
1490 trace_buffer_lo = (unsigned char *) xrealloc (trace_buffer_lo, alloc_size);
1491
1492 trace_buffer_hi = trace_buffer_lo + trace_buffer_size;
1493
1494 clear_trace_buffer ();
1495 }
1496
1497 #ifdef IN_PROCESS_AGENT
1498
1499 IP_AGENT_EXPORT_FUNC void
1500 about_to_request_buffer_space (void)
1501 {
1502 /* GDBserver places breakpoint here while it goes about to flush
1503 data at random times. */
1504 UNKNOWN_SIDE_EFFECTS();
1505 }
1506
1507 #endif
1508
1509 /* Carve out a piece of the trace buffer, returning NULL in case of
1510 failure. */
1511
1512 static void *
1513 trace_buffer_alloc (size_t amt)
1514 {
1515 unsigned char *rslt;
1516 struct trace_buffer_control *tbctrl;
1517 unsigned int curr;
1518 #ifdef IN_PROCESS_AGENT
1519 unsigned int prev, prev_filtered;
1520 unsigned int commit_count;
1521 unsigned int commit;
1522 unsigned int readout;
1523 #else
1524 struct traceframe *oldest;
1525 unsigned char *new_start;
1526 #endif
1527
1528 trace_debug ("Want to allocate %ld+%ld bytes in trace buffer",
1529 (long) amt, (long) sizeof (struct traceframe));
1530
1531 /* Account for the EOB marker. */
1532 amt += TRACEFRAME_EOB_MARKER_SIZE;
1533
1534 #ifdef IN_PROCESS_AGENT
1535 again:
1536 memory_barrier ();
1537
1538 /* Read the current token and extract the index to try to write to,
1539 storing it in CURR. */
1540 prev = trace_buffer_ctrl_curr;
1541 prev_filtered = prev & ~GDBSERVER_FLUSH_COUNT_MASK;
1542 curr = prev_filtered + 1;
1543 if (curr > 2)
1544 curr = 0;
1545
1546 about_to_request_buffer_space ();
1547
1548 /* Start out with a copy of the current state. GDBserver may be
1549 midway writing to the PREV_FILTERED TBC, but, that's OK, we won't
1550 be able to commit anyway if that happens. */
1551 trace_buffer_ctrl[curr]
1552 = trace_buffer_ctrl[prev_filtered];
1553 trace_debug ("trying curr=%u", curr);
1554 #else
1555 /* The GDBserver's agent doesn't need all that syncing, and always
1556 updates TCB 0 (there's only one, mind you). */
1557 curr = 0;
1558 #endif
1559 tbctrl = &trace_buffer_ctrl[curr];
1560
1561 /* Offsets are easier to grok for debugging than raw addresses,
1562 especially for the small trace buffer sizes that are useful for
1563 testing. */
1564 trace_debug ("Trace buffer [%d] start=%d free=%d endfree=%d wrap=%d hi=%d",
1565 curr,
1566 (int) (tbctrl->start - trace_buffer_lo),
1567 (int) (tbctrl->free - trace_buffer_lo),
1568 (int) (tbctrl->end_free - trace_buffer_lo),
1569 (int) (tbctrl->wrap - trace_buffer_lo),
1570 (int) (trace_buffer_hi - trace_buffer_lo));
1571
1572 /* The algorithm here is to keep trying to get a contiguous block of
1573 the requested size, possibly discarding older traceframes to free
1574 up space. Since free space might come in one or two pieces,
1575 depending on whether discarded traceframes wrapped around at the
1576 high end of the buffer, we test both pieces after each
1577 discard. */
1578 while (1)
1579 {
1580 /* First, if we have two free parts, try the upper one first. */
1581 if (tbctrl->end_free < tbctrl->free)
1582 {
1583 if (tbctrl->free + amt <= trace_buffer_hi)
1584 /* We have enough in the upper part. */
1585 break;
1586 else
1587 {
1588 /* Our high part of free space wasn't enough. Give up
1589 on it for now, set wraparound. We will recover the
1590 space later, if/when the wrapped-around traceframe is
1591 discarded. */
1592 trace_debug ("Upper part too small, setting wraparound");
1593 tbctrl->wrap = tbctrl->free;
1594 tbctrl->free = trace_buffer_lo;
1595 }
1596 }
1597
1598 /* The normal case. */
1599 if (tbctrl->free + amt <= tbctrl->end_free)
1600 break;
1601
1602 #ifdef IN_PROCESS_AGENT
1603 /* The IP Agent's buffer is always circular. It isn't used
1604 currently, but `circular_trace_buffer' could represent
1605 GDBserver's mode. If we didn't find space, ask GDBserver to
1606 flush. */
1607
1608 flush_trace_buffer ();
1609 memory_barrier ();
1610 if (tracing)
1611 {
1612 trace_debug ("gdbserver flushed buffer, retrying");
1613 goto again;
1614 }
1615
1616 /* GDBserver cancelled the tracing. Bail out as well. */
1617 return NULL;
1618 #else
1619 /* If we're here, then neither part is big enough, and
1620 non-circular trace buffers are now full. */
1621 if (!circular_trace_buffer)
1622 {
1623 trace_debug ("Not enough space in the trace buffer");
1624 return NULL;
1625 }
1626
1627 trace_debug ("Need more space in the trace buffer");
1628
1629 /* If we have a circular buffer, we can try discarding the
1630 oldest traceframe and see if that helps. */
1631 oldest = FIRST_TRACEFRAME ();
1632 if (oldest->tpnum == 0)
1633 {
1634 /* Not good; we have no traceframes to free. Perhaps we're
1635 asking for a block that is larger than the buffer? In
1636 any case, give up. */
1637 trace_debug ("No traceframes to discard");
1638 return NULL;
1639 }
1640
1641 /* We don't run this code in the in-process agent currently.
1642 E.g., we could leave the in-process agent in autonomous
1643 circular mode if we only have fast tracepoints. If we do
1644 that, then this bit becomes racy with GDBserver, which also
1645 writes to this counter. */
1646 --traceframe_write_count;
1647
1648 new_start = (unsigned char *) NEXT_TRACEFRAME (oldest);
1649 /* If we freed the traceframe that wrapped around, go back
1650 to the non-wrap case. */
1651 if (new_start < tbctrl->start)
1652 {
1653 trace_debug ("Discarding past the wraparound");
1654 tbctrl->wrap = trace_buffer_hi;
1655 }
1656 tbctrl->start = new_start;
1657 tbctrl->end_free = tbctrl->start;
1658
1659 trace_debug ("Discarded a traceframe\n"
1660 "Trace buffer [%d], start=%d free=%d "
1661 "endfree=%d wrap=%d hi=%d",
1662 curr,
1663 (int) (tbctrl->start - trace_buffer_lo),
1664 (int) (tbctrl->free - trace_buffer_lo),
1665 (int) (tbctrl->end_free - trace_buffer_lo),
1666 (int) (tbctrl->wrap - trace_buffer_lo),
1667 (int) (trace_buffer_hi - trace_buffer_lo));
1668
1669 /* Now go back around the loop. The discard might have resulted
1670 in either one or two pieces of free space, so we want to try
1671 both before freeing any more traceframes. */
1672 #endif
1673 }
1674
1675 /* If we get here, we know we can provide the asked-for space. */
1676
1677 rslt = tbctrl->free;
1678
1679 /* Adjust the request back down, now that we know we have space for
1680 the marker, but don't commit to AMT yet, we may still need to
1681 restart the operation if GDBserver touches the trace buffer
1682 (obviously only important in the in-process agent's version). */
1683 tbctrl->free += (amt - sizeof (struct traceframe));
1684
1685 /* Or not. If GDBserver changed the trace buffer behind our back,
1686 we get to restart a new allocation attempt. */
1687
1688 #ifdef IN_PROCESS_AGENT
1689 /* Build the tentative token. */
1690 commit_count = (((prev & GDBSERVER_FLUSH_COUNT_MASK_CURR) + 0x100)
1691 & GDBSERVER_FLUSH_COUNT_MASK_CURR);
1692 commit = (((prev & GDBSERVER_FLUSH_COUNT_MASK_CURR) << 12)
1693 | commit_count
1694 | curr);
1695
1696 /* Try to commit it. */
1697 readout = cmpxchg (&trace_buffer_ctrl_curr, prev, commit);
1698 if (readout != prev)
1699 {
1700 trace_debug ("GDBserver has touched the trace buffer, restarting."
1701 " (prev=%08x, commit=%08x, readout=%08x)",
1702 prev, commit, readout);
1703 goto again;
1704 }
1705
1706 /* Hold your horses here. Even if that change was committed,
1707 GDBserver could come in, and clobber it. We need to hold to be
1708 able to tell if GDBserver clobbers before or after we committed
1709 the change. Whenever GDBserver goes about touching the IPA
1710 buffer, it sets a breakpoint in this routine, so we have a sync
1711 point here. */
1712 about_to_request_buffer_space ();
1713
1714 /* Check if the change has been effective, even if GDBserver stopped
1715 us at the breakpoint. */
1716
1717 {
1718 unsigned int refetch;
1719
1720 memory_barrier ();
1721
1722 refetch = trace_buffer_ctrl_curr;
1723
1724 if (refetch == commit
1725 || ((refetch & GDBSERVER_FLUSH_COUNT_MASK_PREV) >> 12) == commit_count)
1726 {
1727 /* effective */
1728 trace_debug ("change is effective: (prev=%08x, commit=%08x, "
1729 "readout=%08x, refetch=%08x)",
1730 prev, commit, readout, refetch);
1731 }
1732 else
1733 {
1734 trace_debug ("GDBserver has touched the trace buffer, not effective."
1735 " (prev=%08x, commit=%08x, readout=%08x, refetch=%08x)",
1736 prev, commit, readout, refetch);
1737 goto again;
1738 }
1739 }
1740 #endif
1741
1742 /* We have a new piece of the trace buffer. Hurray! */
1743
1744 /* Add an EOB marker just past this allocation. */
1745 ((struct traceframe *) tbctrl->free)->tpnum = 0;
1746 ((struct traceframe *) tbctrl->free)->data_size = 0;
1747
1748 /* Adjust the request back down, now that we know we have space for
1749 the marker. */
1750 amt -= sizeof (struct traceframe);
1751
1752 if (debug_threads)
1753 {
1754 trace_debug ("Allocated %d bytes", (int) amt);
1755 trace_debug ("Trace buffer [%d] start=%d free=%d "
1756 "endfree=%d wrap=%d hi=%d",
1757 curr,
1758 (int) (tbctrl->start - trace_buffer_lo),
1759 (int) (tbctrl->free - trace_buffer_lo),
1760 (int) (tbctrl->end_free - trace_buffer_lo),
1761 (int) (tbctrl->wrap - trace_buffer_lo),
1762 (int) (trace_buffer_hi - trace_buffer_lo));
1763 }
1764
1765 return rslt;
1766 }
1767
1768 #ifndef IN_PROCESS_AGENT
1769
1770 /* Return the total free space. This is not necessarily the largest
1771 block we can allocate, because of the two-part case. */
1772
1773 static int
1774 free_space (void)
1775 {
1776 if (trace_buffer_free <= trace_buffer_end_free)
1777 return trace_buffer_end_free - trace_buffer_free;
1778 else
1779 return ((trace_buffer_end_free - trace_buffer_lo)
1780 + (trace_buffer_hi - trace_buffer_free));
1781 }
1782
1783 /* An 'S' in continuation packets indicates remainder are for
1784 while-stepping. */
1785
1786 static int seen_step_action_flag;
1787
1788 /* Create a tracepoint (location) with given number and address. Add this
1789 new tracepoint to list and sort this list. */
1790
1791 static struct tracepoint *
1792 add_tracepoint (int num, CORE_ADDR addr)
1793 {
1794 struct tracepoint *tpoint, **tp_next;
1795
1796 tpoint = XNEW (struct tracepoint);
1797 tpoint->number = num;
1798 tpoint->address = addr;
1799 tpoint->numactions = 0;
1800 tpoint->actions = NULL;
1801 tpoint->actions_str = NULL;
1802 tpoint->cond = NULL;
1803 tpoint->num_step_actions = 0;
1804 tpoint->step_actions = NULL;
1805 tpoint->step_actions_str = NULL;
1806 /* Start all off as regular (slow) tracepoints. */
1807 tpoint->type = trap_tracepoint;
1808 tpoint->orig_size = -1;
1809 tpoint->source_strings = NULL;
1810 tpoint->compiled_cond = 0;
1811 tpoint->handle = NULL;
1812 tpoint->next = NULL;
1813
1814 /* Find a place to insert this tracepoint into list in order to keep
1815 the tracepoint list still in the ascending order. There may be
1816 multiple tracepoints at the same address as TPOINT's, and this
1817 guarantees TPOINT is inserted after all the tracepoints which are
1818 set at the same address. For example, fast tracepoints A, B, C are
1819 set at the same address, and D is to be insert at the same place as
1820 well,
1821
1822 -->| A |--> | B |-->| C |->...
1823
1824 One jump pad was created for tracepoint A, B, and C, and the target
1825 address of A is referenced/used in jump pad. So jump pad will let
1826 inferior jump to A. If D is inserted in front of A, like this,
1827
1828 -->| D |-->| A |--> | B |-->| C |->...
1829
1830 without updating jump pad, D is not reachable during collect, which
1831 is wrong. As we can see, the order of B, C and D doesn't matter, but
1832 A should always be the `first' one. */
1833 for (tp_next = &tracepoints;
1834 (*tp_next) != NULL && (*tp_next)->address <= tpoint->address;
1835 tp_next = &(*tp_next)->next)
1836 ;
1837 tpoint->next = *tp_next;
1838 *tp_next = tpoint;
1839 last_tracepoint = tpoint;
1840
1841 seen_step_action_flag = 0;
1842
1843 return tpoint;
1844 }
1845
1846 #ifndef IN_PROCESS_AGENT
1847
1848 /* Return the tracepoint with the given number and address, or NULL. */
1849
1850 static struct tracepoint *
1851 find_tracepoint (int id, CORE_ADDR addr)
1852 {
1853 struct tracepoint *tpoint;
1854
1855 for (tpoint = tracepoints; tpoint; tpoint = tpoint->next)
1856 if (tpoint->number == id && tpoint->address == addr)
1857 return tpoint;
1858
1859 return NULL;
1860 }
1861
1862 /* Remove TPOINT from global list. */
1863
1864 static void
1865 remove_tracepoint (struct tracepoint *tpoint)
1866 {
1867 struct tracepoint *tp, *tp_prev;
1868
1869 for (tp = tracepoints, tp_prev = NULL; tp && tp != tpoint;
1870 tp_prev = tp, tp = tp->next)
1871 ;
1872
1873 if (tp)
1874 {
1875 if (tp_prev)
1876 tp_prev->next = tp->next;
1877 else
1878 tracepoints = tp->next;
1879
1880 xfree (tp);
1881 }
1882 }
1883
1884 /* There may be several tracepoints with the same number (because they
1885 are "locations", in GDB parlance); return the next one after the
1886 given tracepoint, or search from the beginning of the list if the
1887 first argument is NULL. */
1888
1889 static struct tracepoint *
1890 find_next_tracepoint_by_number (struct tracepoint *prev_tp, int num)
1891 {
1892 struct tracepoint *tpoint;
1893
1894 if (prev_tp)
1895 tpoint = prev_tp->next;
1896 else
1897 tpoint = tracepoints;
1898 for (; tpoint; tpoint = tpoint->next)
1899 if (tpoint->number == num)
1900 return tpoint;
1901
1902 return NULL;
1903 }
1904
1905 #endif
1906
1907 /* Append another action to perform when the tracepoint triggers. */
1908
1909 static void
1910 add_tracepoint_action (struct tracepoint *tpoint, const char *packet)
1911 {
1912 const char *act;
1913
1914 if (*packet == 'S')
1915 {
1916 seen_step_action_flag = 1;
1917 ++packet;
1918 }
1919
1920 act = packet;
1921
1922 while (*act)
1923 {
1924 const char *act_start = act;
1925 struct tracepoint_action *action = NULL;
1926
1927 switch (*act)
1928 {
1929 case 'M':
1930 {
1931 struct collect_memory_action *maction =
1932 XNEW (struct collect_memory_action);
1933 ULONGEST basereg;
1934 int is_neg;
1935
1936 maction->base.type = *act;
1937 action = &maction->base;
1938
1939 ++act;
1940 is_neg = (*act == '-');
1941 if (*act == '-')
1942 ++act;
1943 act = unpack_varlen_hex (act, &basereg);
1944 ++act;
1945 act = unpack_varlen_hex (act, &maction->addr);
1946 ++act;
1947 act = unpack_varlen_hex (act, &maction->len);
1948 maction->basereg = (is_neg
1949 ? - (int) basereg
1950 : (int) basereg);
1951 trace_debug ("Want to collect %s bytes at 0x%s (basereg %d)",
1952 pulongest (maction->len),
1953 paddress (maction->addr), maction->basereg);
1954 break;
1955 }
1956 case 'R':
1957 {
1958 struct collect_registers_action *raction =
1959 XNEW (struct collect_registers_action);
1960
1961 raction->base.type = *act;
1962 action = &raction->base;
1963
1964 trace_debug ("Want to collect registers");
1965 ++act;
1966 /* skip past hex digits of mask for now */
1967 while (isxdigit(*act))
1968 ++act;
1969 break;
1970 }
1971 case 'L':
1972 {
1973 struct collect_static_trace_data_action *raction =
1974 XNEW (struct collect_static_trace_data_action);
1975
1976 raction->base.type = *act;
1977 action = &raction->base;
1978
1979 trace_debug ("Want to collect static trace data");
1980 ++act;
1981 break;
1982 }
1983 case 'S':
1984 trace_debug ("Unexpected step action, ignoring");
1985 ++act;
1986 break;
1987 case 'X':
1988 {
1989 struct eval_expr_action *xaction = XNEW (struct eval_expr_action);
1990
1991 xaction->base.type = *act;
1992 action = &xaction->base;
1993
1994 trace_debug ("Want to evaluate expression");
1995 xaction->expr = gdb_parse_agent_expr (&act);
1996 break;
1997 }
1998 default:
1999 trace_debug ("unknown trace action '%c', ignoring...", *act);
2000 break;
2001 case '-':
2002 break;
2003 }
2004
2005 if (action == NULL)
2006 break;
2007
2008 if (seen_step_action_flag)
2009 {
2010 tpoint->num_step_actions++;
2011
2012 tpoint->step_actions
2013 = XRESIZEVEC (struct tracepoint_action *, tpoint->step_actions,
2014 tpoint->num_step_actions);
2015 tpoint->step_actions_str
2016 = XRESIZEVEC (char *, tpoint->step_actions_str,
2017 tpoint->num_step_actions);
2018 tpoint->step_actions[tpoint->num_step_actions - 1] = action;
2019 tpoint->step_actions_str[tpoint->num_step_actions - 1]
2020 = savestring (act_start, act - act_start);
2021 }
2022 else
2023 {
2024 tpoint->numactions++;
2025 tpoint->actions
2026 = XRESIZEVEC (struct tracepoint_action *, tpoint->actions,
2027 tpoint->numactions);
2028 tpoint->actions_str
2029 = XRESIZEVEC (char *, tpoint->actions_str, tpoint->numactions);
2030 tpoint->actions[tpoint->numactions - 1] = action;
2031 tpoint->actions_str[tpoint->numactions - 1]
2032 = savestring (act_start, act - act_start);
2033 }
2034 }
2035 }
2036
2037 #endif
2038
2039 /* Find or create a trace state variable with the given number. */
2040
2041 static struct trace_state_variable *
2042 get_trace_state_variable (int num)
2043 {
2044 struct trace_state_variable *tsv;
2045
2046 #ifdef IN_PROCESS_AGENT
2047 /* Search for an existing variable. */
2048 for (tsv = alloced_trace_state_variables; tsv; tsv = tsv->next)
2049 if (tsv->number == num)
2050 return tsv;
2051 #endif
2052
2053 /* Search for an existing variable. */
2054 for (tsv = trace_state_variables; tsv; tsv = tsv->next)
2055 if (tsv->number == num)
2056 return tsv;
2057
2058 return NULL;
2059 }
2060
2061 /* Find or create a trace state variable with the given number. */
2062
2063 static struct trace_state_variable *
2064 create_trace_state_variable (int num, int gdb)
2065 {
2066 struct trace_state_variable *tsv;
2067
2068 tsv = get_trace_state_variable (num);
2069 if (tsv != NULL)
2070 return tsv;
2071
2072 /* Create a new variable. */
2073 tsv = XNEW (struct trace_state_variable);
2074 tsv->number = num;
2075 tsv->initial_value = 0;
2076 tsv->value = 0;
2077 tsv->getter = NULL;
2078 tsv->name = NULL;
2079 #ifdef IN_PROCESS_AGENT
2080 if (!gdb)
2081 {
2082 tsv->next = alloced_trace_state_variables;
2083 alloced_trace_state_variables = tsv;
2084 }
2085 else
2086 #endif
2087 {
2088 tsv->next = trace_state_variables;
2089 trace_state_variables = tsv;
2090 }
2091 return tsv;
2092 }
2093
2094 IP_AGENT_EXPORT_FUNC LONGEST
2095 get_trace_state_variable_value (int num)
2096 {
2097 struct trace_state_variable *tsv;
2098
2099 tsv = get_trace_state_variable (num);
2100
2101 if (!tsv)
2102 {
2103 trace_debug ("No trace state variable %d, skipping value get", num);
2104 return 0;
2105 }
2106
2107 /* Call a getter function if we have one. While it's tempting to
2108 set up something to only call the getter once per tracepoint hit,
2109 it could run afoul of thread races. Better to let the getter
2110 handle it directly, if necessary to worry about it. */
2111 if (tsv->getter)
2112 tsv->value = (tsv->getter) ();
2113
2114 trace_debug ("get_trace_state_variable_value(%d) ==> %s",
2115 num, plongest (tsv->value));
2116
2117 return tsv->value;
2118 }
2119
2120 IP_AGENT_EXPORT_FUNC void
2121 set_trace_state_variable_value (int num, LONGEST val)
2122 {
2123 struct trace_state_variable *tsv;
2124
2125 tsv = get_trace_state_variable (num);
2126
2127 if (!tsv)
2128 {
2129 trace_debug ("No trace state variable %d, skipping value set", num);
2130 return;
2131 }
2132
2133 tsv->value = val;
2134 }
2135
2136 LONGEST
2137 agent_get_trace_state_variable_value (int num)
2138 {
2139 return get_trace_state_variable_value (num);
2140 }
2141
2142 void
2143 agent_set_trace_state_variable_value (int num, LONGEST val)
2144 {
2145 set_trace_state_variable_value (num, val);
2146 }
2147
2148 static void
2149 set_trace_state_variable_name (int num, const char *name)
2150 {
2151 struct trace_state_variable *tsv;
2152
2153 tsv = get_trace_state_variable (num);
2154
2155 if (!tsv)
2156 {
2157 trace_debug ("No trace state variable %d, skipping name set", num);
2158 return;
2159 }
2160
2161 tsv->name = (char *) name;
2162 }
2163
2164 static void
2165 set_trace_state_variable_getter (int num, LONGEST (*getter) (void))
2166 {
2167 struct trace_state_variable *tsv;
2168
2169 tsv = get_trace_state_variable (num);
2170
2171 if (!tsv)
2172 {
2173 trace_debug ("No trace state variable %d, skipping getter set", num);
2174 return;
2175 }
2176
2177 tsv->getter = getter;
2178 }
2179
2180 /* Add a raw traceframe for the given tracepoint. */
2181
2182 static struct traceframe *
2183 add_traceframe (struct tracepoint *tpoint)
2184 {
2185 struct traceframe *tframe;
2186
2187 tframe
2188 = (struct traceframe *) trace_buffer_alloc (sizeof (struct traceframe));
2189
2190 if (tframe == NULL)
2191 return NULL;
2192
2193 tframe->tpnum = tpoint->number;
2194 tframe->data_size = 0;
2195
2196 return tframe;
2197 }
2198
2199 /* Add a block to the traceframe currently being worked on. */
2200
2201 static unsigned char *
2202 add_traceframe_block (struct traceframe *tframe,
2203 struct tracepoint *tpoint, int amt)
2204 {
2205 unsigned char *block;
2206
2207 if (!tframe)
2208 return NULL;
2209
2210 block = (unsigned char *) trace_buffer_alloc (amt);
2211
2212 if (!block)
2213 return NULL;
2214
2215 gdb_assert (tframe->tpnum == tpoint->number);
2216
2217 tframe->data_size += amt;
2218 tpoint->traceframe_usage += amt;
2219
2220 return block;
2221 }
2222
2223 /* Flag that the current traceframe is finished. */
2224
2225 static void
2226 finish_traceframe (struct traceframe *tframe)
2227 {
2228 ++traceframe_write_count;
2229 ++traceframes_created;
2230 }
2231
2232 #ifndef IN_PROCESS_AGENT
2233
2234 /* Given a traceframe number NUM, find the NUMth traceframe in the
2235 buffer. */
2236
2237 static struct traceframe *
2238 find_traceframe (int num)
2239 {
2240 struct traceframe *tframe;
2241 int tfnum = 0;
2242
2243 for (tframe = FIRST_TRACEFRAME ();
2244 tframe->tpnum != 0;
2245 tframe = NEXT_TRACEFRAME (tframe))
2246 {
2247 if (tfnum == num)
2248 return tframe;
2249 ++tfnum;
2250 }
2251
2252 return NULL;
2253 }
2254
2255 static CORE_ADDR
2256 get_traceframe_address (struct traceframe *tframe)
2257 {
2258 CORE_ADDR addr;
2259 struct tracepoint *tpoint;
2260
2261 addr = traceframe_get_pc (tframe);
2262
2263 if (addr)
2264 return addr;
2265
2266 /* Fallback strategy, will be incorrect for while-stepping frames
2267 and multi-location tracepoints. */
2268 tpoint = find_next_tracepoint_by_number (NULL, tframe->tpnum);
2269 return tpoint->address;
2270 }
2271
2272 /* Search for the next traceframe whose address is inside or outside
2273 the given range. */
2274
2275 static struct traceframe *
2276 find_next_traceframe_in_range (CORE_ADDR lo, CORE_ADDR hi, int inside_p,
2277 int *tfnump)
2278 {
2279 client_state &cs = get_client_state ();
2280 struct traceframe *tframe;
2281 CORE_ADDR tfaddr;
2282
2283 *tfnump = cs.current_traceframe + 1;
2284 tframe = find_traceframe (*tfnump);
2285 /* The search is not supposed to wrap around. */
2286 if (!tframe)
2287 {
2288 *tfnump = -1;
2289 return NULL;
2290 }
2291
2292 for (; tframe->tpnum != 0; tframe = NEXT_TRACEFRAME (tframe))
2293 {
2294 tfaddr = get_traceframe_address (tframe);
2295 if (inside_p
2296 ? (lo <= tfaddr && tfaddr <= hi)
2297 : (lo > tfaddr || tfaddr > hi))
2298 return tframe;
2299 ++*tfnump;
2300 }
2301
2302 *tfnump = -1;
2303 return NULL;
2304 }
2305
2306 /* Search for the next traceframe recorded by the given tracepoint.
2307 Note that for multi-location tracepoints, this will find whatever
2308 location appears first. */
2309
2310 static struct traceframe *
2311 find_next_traceframe_by_tracepoint (int num, int *tfnump)
2312 {
2313 client_state &cs = get_client_state ();
2314 struct traceframe *tframe;
2315
2316 *tfnump = cs.current_traceframe + 1;
2317 tframe = find_traceframe (*tfnump);
2318 /* The search is not supposed to wrap around. */
2319 if (!tframe)
2320 {
2321 *tfnump = -1;
2322 return NULL;
2323 }
2324
2325 for (; tframe->tpnum != 0; tframe = NEXT_TRACEFRAME (tframe))
2326 {
2327 if (tframe->tpnum == num)
2328 return tframe;
2329 ++*tfnump;
2330 }
2331
2332 *tfnump = -1;
2333 return NULL;
2334 }
2335
2336 #endif
2337
2338 #ifndef IN_PROCESS_AGENT
2339
2340 /* Clear all past trace state. */
2341
2342 static void
2343 cmd_qtinit (char *packet)
2344 {
2345 client_state &cs = get_client_state ();
2346 struct trace_state_variable *tsv, *prev, *next;
2347
2348 /* Can't do this command without a pid attached. */
2349 if (current_thread == NULL)
2350 {
2351 write_enn (packet);
2352 return;
2353 }
2354
2355 /* Make sure we don't try to read from a trace frame. */
2356 cs.current_traceframe = -1;
2357
2358 stop_tracing ();
2359
2360 trace_debug ("Initializing the trace");
2361
2362 clear_installed_tracepoints ();
2363 clear_readonly_regions ();
2364
2365 tracepoints = NULL;
2366 last_tracepoint = NULL;
2367
2368 /* Clear out any leftover trace state variables. Ones with target
2369 defined getters should be kept however. */
2370 prev = NULL;
2371 tsv = trace_state_variables;
2372 while (tsv)
2373 {
2374 trace_debug ("Looking at var %d", tsv->number);
2375 if (tsv->getter == NULL)
2376 {
2377 next = tsv->next;
2378 if (prev)
2379 prev->next = next;
2380 else
2381 trace_state_variables = next;
2382 trace_debug ("Deleting var %d", tsv->number);
2383 free (tsv);
2384 tsv = next;
2385 }
2386 else
2387 {
2388 prev = tsv;
2389 tsv = tsv->next;
2390 }
2391 }
2392
2393 clear_trace_buffer ();
2394 clear_inferior_trace_buffer ();
2395
2396 write_ok (packet);
2397 }
2398
2399 /* Unprobe the UST marker at ADDRESS. */
2400
2401 static void
2402 unprobe_marker_at (CORE_ADDR address)
2403 {
2404 char cmd[IPA_CMD_BUF_SIZE];
2405
2406 sprintf (cmd, "unprobe_marker_at:%s", paddress (address));
2407 run_inferior_command (cmd, strlen (cmd) + 1);
2408 }
2409
2410 /* Restore the program to its pre-tracing state. This routine may be called
2411 in error situations, so it needs to be careful about only restoring
2412 from known-valid bits. */
2413
2414 static void
2415 clear_installed_tracepoints (void)
2416 {
2417 struct tracepoint *tpoint;
2418 struct tracepoint *prev_stpoint;
2419
2420 pause_all (1);
2421
2422 prev_stpoint = NULL;
2423
2424 /* Restore any bytes overwritten by tracepoints. */
2425 for (tpoint = tracepoints; tpoint; tpoint = tpoint->next)
2426 {
2427 /* Catch the case where we might try to remove a tracepoint that
2428 was never actually installed. */
2429 if (tpoint->handle == NULL)
2430 {
2431 trace_debug ("Tracepoint %d at 0x%s was "
2432 "never installed, nothing to clear",
2433 tpoint->number, paddress (tpoint->address));
2434 continue;
2435 }
2436
2437 switch (tpoint->type)
2438 {
2439 case trap_tracepoint:
2440 {
2441 struct breakpoint *bp
2442 = (struct breakpoint *) tpoint->handle;
2443
2444 delete_breakpoint (bp);
2445 }
2446 break;
2447 case fast_tracepoint:
2448 {
2449 struct fast_tracepoint_jump *jump
2450 = (struct fast_tracepoint_jump *) tpoint->handle;
2451
2452 delete_fast_tracepoint_jump (jump);
2453 }
2454 break;
2455 case static_tracepoint:
2456 if (prev_stpoint != NULL
2457 && prev_stpoint->address == tpoint->address)
2458 /* Nothing to do. We already unprobed a tracepoint set at
2459 this marker address (and there can only be one probe
2460 per marker). */
2461 ;
2462 else
2463 {
2464 unprobe_marker_at (tpoint->address);
2465 prev_stpoint = tpoint;
2466 }
2467 break;
2468 }
2469
2470 tpoint->handle = NULL;
2471 }
2472
2473 unpause_all (1);
2474 }
2475
2476 /* Parse a packet that defines a tracepoint. */
2477
2478 static void
2479 cmd_qtdp (char *own_buf)
2480 {
2481 int tppacket;
2482 /* Whether there is a trailing hyphen at the end of the QTDP packet. */
2483 int trail_hyphen = 0;
2484 ULONGEST num;
2485 ULONGEST addr;
2486 ULONGEST count;
2487 struct tracepoint *tpoint;
2488 const char *packet = own_buf;
2489
2490 packet += strlen ("QTDP:");
2491
2492 /* A hyphen at the beginning marks a packet specifying actions for a
2493 tracepoint already supplied. */
2494 tppacket = 1;
2495 if (*packet == '-')
2496 {
2497 tppacket = 0;
2498 ++packet;
2499 }
2500 packet = unpack_varlen_hex (packet, &num);
2501 ++packet; /* skip a colon */
2502 packet = unpack_varlen_hex (packet, &addr);
2503 ++packet; /* skip a colon */
2504
2505 /* See if we already have this tracepoint. */
2506 tpoint = find_tracepoint (num, addr);
2507
2508 if (tppacket)
2509 {
2510 /* Duplicate tracepoints are never allowed. */
2511 if (tpoint)
2512 {
2513 trace_debug ("Tracepoint error: tracepoint %d"
2514 " at 0x%s already exists",
2515 (int) num, paddress (addr));
2516 write_enn (own_buf);
2517 return;
2518 }
2519
2520 tpoint = add_tracepoint (num, addr);
2521
2522 tpoint->enabled = (*packet == 'E');
2523 ++packet; /* skip 'E' */
2524 ++packet; /* skip a colon */
2525 packet = unpack_varlen_hex (packet, &count);
2526 tpoint->step_count = count;
2527 ++packet; /* skip a colon */
2528 packet = unpack_varlen_hex (packet, &count);
2529 tpoint->pass_count = count;
2530 /* See if we have any of the additional optional fields. */
2531 while (*packet == ':')
2532 {
2533 ++packet;
2534 if (*packet == 'F')
2535 {
2536 tpoint->type = fast_tracepoint;
2537 ++packet;
2538 packet = unpack_varlen_hex (packet, &count);
2539 tpoint->orig_size = count;
2540 }
2541 else if (*packet == 'S')
2542 {
2543 tpoint->type = static_tracepoint;
2544 ++packet;
2545 }
2546 else if (*packet == 'X')
2547 {
2548 tpoint->cond = gdb_parse_agent_expr (&packet);
2549 }
2550 else if (*packet == '-')
2551 break;
2552 else if (*packet == '\0')
2553 break;
2554 else
2555 trace_debug ("Unknown optional tracepoint field");
2556 }
2557 if (*packet == '-')
2558 {
2559 trail_hyphen = 1;
2560 trace_debug ("Also has actions\n");
2561 }
2562
2563 trace_debug ("Defined %stracepoint %d at 0x%s, "
2564 "enabled %d step %" PRIu64 " pass %" PRIu64,
2565 tpoint->type == fast_tracepoint ? "fast "
2566 : tpoint->type == static_tracepoint ? "static " : "",
2567 tpoint->number, paddress (tpoint->address), tpoint->enabled,
2568 tpoint->step_count, tpoint->pass_count);
2569 }
2570 else if (tpoint)
2571 add_tracepoint_action (tpoint, packet);
2572 else
2573 {
2574 trace_debug ("Tracepoint error: tracepoint %d at 0x%s not found",
2575 (int) num, paddress (addr));
2576 write_enn (own_buf);
2577 return;
2578 }
2579
2580 /* Install tracepoint during tracing only once for each tracepoint location.
2581 For each tracepoint loc, GDB may send multiple QTDP packets, and we can
2582 determine the last QTDP packet for one tracepoint location by checking
2583 trailing hyphen in QTDP packet. */
2584 if (tracing && !trail_hyphen)
2585 {
2586 struct tracepoint *tp = NULL;
2587
2588 /* Pause all threads temporarily while we patch tracepoints. */
2589 pause_all (0);
2590
2591 /* download_tracepoint will update global `tracepoints'
2592 list, so it is unsafe to leave threads in jump pad. */
2593 stabilize_threads ();
2594
2595 /* Freeze threads. */
2596 pause_all (1);
2597
2598
2599 if (tpoint->type != trap_tracepoint)
2600 {
2601 /* Find another fast or static tracepoint at the same address. */
2602 for (tp = tracepoints; tp; tp = tp->next)
2603 {
2604 if (tp->address == tpoint->address && tp->type == tpoint->type
2605 && tp->number != tpoint->number)
2606 break;
2607 }
2608
2609 /* TPOINT is installed at the same address as TP. */
2610 if (tp)
2611 {
2612 if (tpoint->type == fast_tracepoint)
2613 clone_fast_tracepoint (tpoint, tp);
2614 else if (tpoint->type == static_tracepoint)
2615 tpoint->handle = (void *) -1;
2616 }
2617 }
2618
2619 if (use_agent && tpoint->type == fast_tracepoint
2620 && agent_capability_check (AGENT_CAPA_FAST_TRACE))
2621 {
2622 /* Download and install fast tracepoint by agent. */
2623 if (tracepoint_send_agent (tpoint) == 0)
2624 write_ok (own_buf);
2625 else
2626 {
2627 write_enn (own_buf);
2628 remove_tracepoint (tpoint);
2629 }
2630 }
2631 else
2632 {
2633 download_tracepoint (tpoint);
2634
2635 if (tpoint->type == trap_tracepoint || tp == NULL)
2636 {
2637 install_tracepoint (tpoint, own_buf);
2638 if (strcmp (own_buf, "OK") != 0)
2639 remove_tracepoint (tpoint);
2640 }
2641 else
2642 write_ok (own_buf);
2643 }
2644
2645 unpause_all (1);
2646 return;
2647 }
2648
2649 write_ok (own_buf);
2650 }
2651
2652 static void
2653 cmd_qtdpsrc (char *own_buf)
2654 {
2655 ULONGEST num, addr, start, slen;
2656 struct tracepoint *tpoint;
2657 const char *packet = own_buf;
2658 const char *saved;
2659 char *srctype, *src;
2660 size_t nbytes;
2661 struct source_string *last, *newlast;
2662
2663 packet += strlen ("QTDPsrc:");
2664
2665 packet = unpack_varlen_hex (packet, &num);
2666 ++packet; /* skip a colon */
2667 packet = unpack_varlen_hex (packet, &addr);
2668 ++packet; /* skip a colon */
2669
2670 /* See if we already have this tracepoint. */
2671 tpoint = find_tracepoint (num, addr);
2672
2673 if (!tpoint)
2674 {
2675 trace_debug ("Tracepoint error: tracepoint %d at 0x%s not found",
2676 (int) num, paddress (addr));
2677 write_enn (own_buf);
2678 return;
2679 }
2680
2681 saved = packet;
2682 packet = strchr (packet, ':');
2683 srctype = (char *) xmalloc (packet - saved + 1);
2684 memcpy (srctype, saved, packet - saved);
2685 srctype[packet - saved] = '\0';
2686 ++packet;
2687 packet = unpack_varlen_hex (packet, &start);
2688 ++packet; /* skip a colon */
2689 packet = unpack_varlen_hex (packet, &slen);
2690 ++packet; /* skip a colon */
2691 src = (char *) xmalloc (slen + 1);
2692 nbytes = hex2bin (packet, (gdb_byte *) src, strlen (packet) / 2);
2693 src[nbytes] = '\0';
2694
2695 newlast = XNEW (struct source_string);
2696 newlast->type = srctype;
2697 newlast->str = src;
2698 newlast->next = NULL;
2699 /* Always add a source string to the end of the list;
2700 this keeps sequences of actions/commands in the right
2701 order. */
2702 if (tpoint->source_strings)
2703 {
2704 for (last = tpoint->source_strings; last->next; last = last->next)
2705 ;
2706 last->next = newlast;
2707 }
2708 else
2709 tpoint->source_strings = newlast;
2710
2711 write_ok (own_buf);
2712 }
2713
2714 static void
2715 cmd_qtdv (char *own_buf)
2716 {
2717 ULONGEST num, val, builtin;
2718 char *varname;
2719 size_t nbytes;
2720 struct trace_state_variable *tsv;
2721 const char *packet = own_buf;
2722
2723 packet += strlen ("QTDV:");
2724
2725 packet = unpack_varlen_hex (packet, &num);
2726 ++packet; /* skip a colon */
2727 packet = unpack_varlen_hex (packet, &val);
2728 ++packet; /* skip a colon */
2729 packet = unpack_varlen_hex (packet, &builtin);
2730 ++packet; /* skip a colon */
2731
2732 nbytes = strlen (packet) / 2;
2733 varname = (char *) xmalloc (nbytes + 1);
2734 nbytes = hex2bin (packet, (gdb_byte *) varname, nbytes);
2735 varname[nbytes] = '\0';
2736
2737 tsv = create_trace_state_variable (num, 1);
2738 tsv->initial_value = (LONGEST) val;
2739 tsv->name = varname;
2740
2741 set_trace_state_variable_value (num, (LONGEST) val);
2742
2743 write_ok (own_buf);
2744 }
2745
2746 static void
2747 cmd_qtenable_disable (char *own_buf, int enable)
2748 {
2749 const char *packet = own_buf;
2750 ULONGEST num, addr;
2751 struct tracepoint *tp;
2752
2753 packet += strlen (enable ? "QTEnable:" : "QTDisable:");
2754 packet = unpack_varlen_hex (packet, &num);
2755 ++packet; /* skip a colon */
2756 packet = unpack_varlen_hex (packet, &addr);
2757
2758 tp = find_tracepoint (num, addr);
2759
2760 if (tp)
2761 {
2762 if ((enable && tp->enabled) || (!enable && !tp->enabled))
2763 {
2764 trace_debug ("Tracepoint %d at 0x%s is already %s",
2765 (int) num, paddress (addr),
2766 enable ? "enabled" : "disabled");
2767 write_ok (own_buf);
2768 return;
2769 }
2770
2771 trace_debug ("%s tracepoint %d at 0x%s",
2772 enable ? "Enabling" : "Disabling",
2773 (int) num, paddress (addr));
2774
2775 tp->enabled = enable;
2776
2777 if (tp->type == fast_tracepoint || tp->type == static_tracepoint)
2778 {
2779 int ret;
2780 int offset = offsetof (struct tracepoint, enabled);
2781 CORE_ADDR obj_addr = tp->obj_addr_on_target + offset;
2782
2783 ret = prepare_to_access_memory ();
2784 if (ret)
2785 {
2786 trace_debug ("Failed to temporarily stop inferior threads");
2787 write_enn (own_buf);
2788 return;
2789 }
2790
2791 ret = write_inferior_int8 (obj_addr, enable);
2792 done_accessing_memory ();
2793
2794 if (ret)
2795 {
2796 trace_debug ("Cannot write enabled flag into "
2797 "inferior process memory");
2798 write_enn (own_buf);
2799 return;
2800 }
2801 }
2802
2803 write_ok (own_buf);
2804 }
2805 else
2806 {
2807 trace_debug ("Tracepoint %d at 0x%s not found",
2808 (int) num, paddress (addr));
2809 write_enn (own_buf);
2810 }
2811 }
2812
2813 static void
2814 cmd_qtv (char *own_buf)
2815 {
2816 client_state &cs = get_client_state ();
2817 ULONGEST num;
2818 LONGEST val = 0;
2819 int err;
2820 char *packet = own_buf;
2821
2822 packet += strlen ("qTV:");
2823 unpack_varlen_hex (packet, &num);
2824
2825 if (cs.current_traceframe >= 0)
2826 {
2827 err = traceframe_read_tsv ((int) num, &val);
2828 if (err)
2829 {
2830 strcpy (own_buf, "U");
2831 return;
2832 }
2833 }
2834 /* Only make tsv's be undefined before the first trace run. After a
2835 trace run is over, the user might want to see the last value of
2836 the tsv, and it might not be available in a traceframe. */
2837 else if (!tracing && strcmp (tracing_stop_reason, "tnotrun") == 0)
2838 {
2839 strcpy (own_buf, "U");
2840 return;
2841 }
2842 else
2843 val = get_trace_state_variable_value (num);
2844
2845 sprintf (own_buf, "V%s", phex_nz (val, 0));
2846 }
2847
2848 /* Clear out the list of readonly regions. */
2849
2850 static void
2851 clear_readonly_regions (void)
2852 {
2853 struct readonly_region *roreg;
2854
2855 while (readonly_regions)
2856 {
2857 roreg = readonly_regions;
2858 readonly_regions = readonly_regions->next;
2859 free (roreg);
2860 }
2861 }
2862
2863 /* Parse the collection of address ranges whose contents GDB believes
2864 to be unchanging and so can be read directly from target memory
2865 even while looking at a traceframe. */
2866
2867 static void
2868 cmd_qtro (char *own_buf)
2869 {
2870 ULONGEST start, end;
2871 struct readonly_region *roreg;
2872 const char *packet = own_buf;
2873
2874 trace_debug ("Want to mark readonly regions");
2875
2876 clear_readonly_regions ();
2877
2878 packet += strlen ("QTro");
2879
2880 while (*packet == ':')
2881 {
2882 ++packet; /* skip a colon */
2883 packet = unpack_varlen_hex (packet, &start);
2884 ++packet; /* skip a comma */
2885 packet = unpack_varlen_hex (packet, &end);
2886
2887 roreg = XNEW (struct readonly_region);
2888 roreg->start = start;
2889 roreg->end = end;
2890 roreg->next = readonly_regions;
2891 readonly_regions = roreg;
2892 trace_debug ("Added readonly region from 0x%s to 0x%s",
2893 paddress (roreg->start), paddress (roreg->end));
2894 }
2895
2896 write_ok (own_buf);
2897 }
2898
2899 /* Test to see if the given range is in our list of readonly ranges.
2900 We only test for being entirely within a range, GDB is not going to
2901 send a single memory packet that spans multiple regions. */
2902
2903 int
2904 in_readonly_region (CORE_ADDR addr, ULONGEST length)
2905 {
2906 struct readonly_region *roreg;
2907
2908 for (roreg = readonly_regions; roreg; roreg = roreg->next)
2909 if (roreg->start <= addr && (addr + length - 1) <= roreg->end)
2910 return 1;
2911
2912 return 0;
2913 }
2914
2915 static CORE_ADDR gdb_jump_pad_head;
2916
2917 /* Return the address of the next free jump space. */
2918
2919 static CORE_ADDR
2920 get_jump_space_head (void)
2921 {
2922 if (gdb_jump_pad_head == 0)
2923 {
2924 if (read_inferior_data_pointer (ipa_sym_addrs.addr_gdb_jump_pad_buffer,
2925 &gdb_jump_pad_head))
2926 {
2927 internal_error (__FILE__, __LINE__,
2928 "error extracting jump_pad_buffer");
2929 }
2930 }
2931
2932 return gdb_jump_pad_head;
2933 }
2934
2935 /* Reserve USED bytes from the jump space. */
2936
2937 static void
2938 claim_jump_space (ULONGEST used)
2939 {
2940 trace_debug ("claim_jump_space reserves %s bytes at %s",
2941 pulongest (used), paddress (gdb_jump_pad_head));
2942 gdb_jump_pad_head += used;
2943 }
2944
2945 static CORE_ADDR trampoline_buffer_head = 0;
2946 static CORE_ADDR trampoline_buffer_tail;
2947
2948 /* Reserve USED bytes from the trampoline buffer and return the
2949 address of the start of the reserved space in TRAMPOLINE. Returns
2950 non-zero if the space is successfully claimed. */
2951
2952 int
2953 claim_trampoline_space (ULONGEST used, CORE_ADDR *trampoline)
2954 {
2955 if (!trampoline_buffer_head)
2956 {
2957 if (read_inferior_data_pointer (ipa_sym_addrs.addr_gdb_trampoline_buffer,
2958 &trampoline_buffer_tail))
2959 {
2960 internal_error (__FILE__, __LINE__,
2961 "error extracting trampoline_buffer");
2962 }
2963
2964 if (read_inferior_data_pointer (ipa_sym_addrs.addr_gdb_trampoline_buffer_end,
2965 &trampoline_buffer_head))
2966 {
2967 internal_error (__FILE__, __LINE__,
2968 "error extracting trampoline_buffer_end");
2969 }
2970 }
2971
2972 /* Start claiming space from the top of the trampoline space. If
2973 the space is located at the bottom of the virtual address space,
2974 this reduces the possibility that corruption will occur if a null
2975 pointer is used to write to memory. */
2976 if (trampoline_buffer_head - trampoline_buffer_tail < used)
2977 {
2978 trace_debug ("claim_trampoline_space failed to reserve %s bytes",
2979 pulongest (used));
2980 return 0;
2981 }
2982
2983 trampoline_buffer_head -= used;
2984
2985 trace_debug ("claim_trampoline_space reserves %s bytes at %s",
2986 pulongest (used), paddress (trampoline_buffer_head));
2987
2988 *trampoline = trampoline_buffer_head;
2989 return 1;
2990 }
2991
2992 /* Returns non-zero if there is space allocated for use in trampolines
2993 for fast tracepoints. */
2994
2995 int
2996 have_fast_tracepoint_trampoline_buffer (char *buf)
2997 {
2998 CORE_ADDR trampoline_end, errbuf;
2999
3000 if (read_inferior_data_pointer (ipa_sym_addrs.addr_gdb_trampoline_buffer_end,
3001 &trampoline_end))
3002 {
3003 internal_error (__FILE__, __LINE__,
3004 "error extracting trampoline_buffer_end");
3005 }
3006
3007 if (buf)
3008 {
3009 buf[0] = '\0';
3010 strcpy (buf, "was claiming");
3011 if (read_inferior_data_pointer (ipa_sym_addrs.addr_gdb_trampoline_buffer_error,
3012 &errbuf))
3013 {
3014 internal_error (__FILE__, __LINE__,
3015 "error extracting errbuf");
3016 }
3017
3018 read_inferior_memory (errbuf, (unsigned char *) buf, 100);
3019 }
3020
3021 return trampoline_end != 0;
3022 }
3023
3024 /* Ask the IPA to probe the marker at ADDRESS. Returns -1 if running
3025 the command fails, or 0 otherwise. If the command ran
3026 successfully, but probing the marker failed, ERROUT will be filled
3027 with the error to reply to GDB, and -1 is also returned. This
3028 allows directly passing IPA errors to GDB. */
3029
3030 static int
3031 probe_marker_at (CORE_ADDR address, char *errout)
3032 {
3033 char cmd[IPA_CMD_BUF_SIZE];
3034 int err;
3035
3036 sprintf (cmd, "probe_marker_at:%s", paddress (address));
3037 err = run_inferior_command (cmd, strlen (cmd) + 1);
3038
3039 if (err == 0)
3040 {
3041 if (*cmd == 'E')
3042 {
3043 strcpy (errout, cmd);
3044 return -1;
3045 }
3046 }
3047
3048 return err;
3049 }
3050
3051 static void
3052 clone_fast_tracepoint (struct tracepoint *to, const struct tracepoint *from)
3053 {
3054 to->jump_pad = from->jump_pad;
3055 to->jump_pad_end = from->jump_pad_end;
3056 to->trampoline = from->trampoline;
3057 to->trampoline_end = from->trampoline_end;
3058 to->adjusted_insn_addr = from->adjusted_insn_addr;
3059 to->adjusted_insn_addr_end = from->adjusted_insn_addr_end;
3060 to->handle = from->handle;
3061
3062 gdb_assert (from->handle);
3063 inc_ref_fast_tracepoint_jump ((struct fast_tracepoint_jump *) from->handle);
3064 }
3065
3066 #define MAX_JUMP_SIZE 20
3067
3068 /* Install fast tracepoint. Return 0 if successful, otherwise return
3069 non-zero. */
3070
3071 static int
3072 install_fast_tracepoint (struct tracepoint *tpoint, char *errbuf)
3073 {
3074 CORE_ADDR jentry, jump_entry;
3075 CORE_ADDR trampoline;
3076 CORE_ADDR collect;
3077 ULONGEST trampoline_size;
3078 int err = 0;
3079 /* The jump to the jump pad of the last fast tracepoint
3080 installed. */
3081 unsigned char fjump[MAX_JUMP_SIZE];
3082 ULONGEST fjump_size;
3083
3084 if (tpoint->orig_size < target_get_min_fast_tracepoint_insn_len ())
3085 {
3086 trace_debug ("Requested a fast tracepoint on an instruction "
3087 "that is of less than the minimum length.");
3088 return 0;
3089 }
3090
3091 if (read_inferior_data_pointer (ipa_sym_addrs.addr_gdb_collect_ptr,
3092 &collect))
3093 {
3094 error ("error extracting gdb_collect_ptr");
3095 return 1;
3096 }
3097
3098 jentry = jump_entry = get_jump_space_head ();
3099
3100 trampoline = 0;
3101 trampoline_size = 0;
3102
3103 /* Install the jump pad. */
3104 err = install_fast_tracepoint_jump_pad (tpoint->obj_addr_on_target,
3105 tpoint->address,
3106 collect,
3107 ipa_sym_addrs.addr_collecting,
3108 tpoint->orig_size,
3109 &jentry,
3110 &trampoline, &trampoline_size,
3111 fjump, &fjump_size,
3112 &tpoint->adjusted_insn_addr,
3113 &tpoint->adjusted_insn_addr_end,
3114 errbuf);
3115
3116 if (err)
3117 return 1;
3118
3119 /* Wire it in. */
3120 tpoint->handle = set_fast_tracepoint_jump (tpoint->address, fjump,
3121 fjump_size);
3122
3123 if (tpoint->handle != NULL)
3124 {
3125 tpoint->jump_pad = jump_entry;
3126 tpoint->jump_pad_end = jentry;
3127 tpoint->trampoline = trampoline;
3128 tpoint->trampoline_end = trampoline + trampoline_size;
3129
3130 /* Pad to 8-byte alignment. */
3131 jentry = ((jentry + 7) & ~0x7);
3132 claim_jump_space (jentry - jump_entry);
3133 }
3134
3135 return 0;
3136 }
3137
3138
3139 /* Install tracepoint TPOINT, and write reply message in OWN_BUF. */
3140
3141 static void
3142 install_tracepoint (struct tracepoint *tpoint, char *own_buf)
3143 {
3144 tpoint->handle = NULL;
3145 *own_buf = '\0';
3146
3147 if (tpoint->type == trap_tracepoint)
3148 {
3149 /* Tracepoints are installed as memory breakpoints. Just go
3150 ahead and install the trap. The breakpoints module
3151 handles duplicated breakpoints, and the memory read
3152 routine handles un-patching traps from memory reads. */
3153 tpoint->handle = set_breakpoint_at (tpoint->address,
3154 tracepoint_handler);
3155 }
3156 else if (tpoint->type == fast_tracepoint || tpoint->type == static_tracepoint)
3157 {
3158 if (!agent_loaded_p ())
3159 {
3160 trace_debug ("Requested a %s tracepoint, but fast "
3161 "tracepoints aren't supported.",
3162 tpoint->type == static_tracepoint ? "static" : "fast");
3163 write_e_ipa_not_loaded (own_buf);
3164 return;
3165 }
3166 if (tpoint->type == static_tracepoint
3167 && !in_process_agent_supports_ust ())
3168 {
3169 trace_debug ("Requested a static tracepoint, but static "
3170 "tracepoints are not supported.");
3171 write_e_ust_not_loaded (own_buf);
3172 return;
3173 }
3174
3175 if (tpoint->type == fast_tracepoint)
3176 install_fast_tracepoint (tpoint, own_buf);
3177 else
3178 {
3179 if (probe_marker_at (tpoint->address, own_buf) == 0)
3180 tpoint->handle = (void *) -1;
3181 }
3182
3183 }
3184 else
3185 internal_error (__FILE__, __LINE__, "Unknown tracepoint type");
3186
3187 if (tpoint->handle == NULL)
3188 {
3189 if (*own_buf == '\0')
3190 write_enn (own_buf);
3191 }
3192 else
3193 write_ok (own_buf);
3194 }
3195
3196 static void download_tracepoint_1 (struct tracepoint *tpoint);
3197
3198 static void
3199 cmd_qtstart (char *packet)
3200 {
3201 struct tracepoint *tpoint, *prev_ftpoint, *prev_stpoint;
3202 CORE_ADDR tpptr = 0, prev_tpptr = 0;
3203
3204 trace_debug ("Starting the trace");
3205
3206 /* Pause all threads temporarily while we patch tracepoints. */
3207 pause_all (0);
3208
3209 /* Get threads out of jump pads. Safe to do here, since this is a
3210 top level command. And, required to do here, since we're
3211 deleting/rewriting jump pads. */
3212
3213 stabilize_threads ();
3214
3215 /* Freeze threads. */
3216 pause_all (1);
3217
3218 /* Sync the fast tracepoints list in the inferior ftlib. */
3219 if (agent_loaded_p ())
3220 download_trace_state_variables ();
3221
3222 /* No previous fast tpoint yet. */
3223 prev_ftpoint = NULL;
3224
3225 /* No previous static tpoint yet. */
3226 prev_stpoint = NULL;
3227
3228 *packet = '\0';
3229
3230 if (agent_loaded_p ())
3231 {
3232 /* Tell IPA about the correct tdesc. */
3233 if (write_inferior_integer (ipa_sym_addrs.addr_ipa_tdesc_idx,
3234 target_get_ipa_tdesc_idx ()))
3235 error ("Error setting ipa_tdesc_idx variable in lib");
3236 }
3237
3238 /* Start out empty. */
3239 if (agent_loaded_p ())
3240 write_inferior_data_pointer (ipa_sym_addrs.addr_tracepoints, 0);
3241
3242 /* Download and install tracepoints. */
3243 for (tpoint = tracepoints; tpoint; tpoint = tpoint->next)
3244 {
3245 /* Ensure all the hit counts start at zero. */
3246 tpoint->hit_count = 0;
3247 tpoint->traceframe_usage = 0;
3248
3249 if (tpoint->type == trap_tracepoint)
3250 {
3251 /* Tracepoints are installed as memory breakpoints. Just go
3252 ahead and install the trap. The breakpoints module
3253 handles duplicated breakpoints, and the memory read
3254 routine handles un-patching traps from memory reads. */
3255 tpoint->handle = set_breakpoint_at (tpoint->address,
3256 tracepoint_handler);
3257 }
3258 else if (tpoint->type == fast_tracepoint
3259 || tpoint->type == static_tracepoint)
3260 {
3261 if (maybe_write_ipa_not_loaded (packet))
3262 {
3263 trace_debug ("Requested a %s tracepoint, but fast "
3264 "tracepoints aren't supported.",
3265 tpoint->type == static_tracepoint
3266 ? "static" : "fast");
3267 break;
3268 }
3269
3270 if (tpoint->type == fast_tracepoint)
3271 {
3272 int use_agent_p
3273 = use_agent && agent_capability_check (AGENT_CAPA_FAST_TRACE);
3274
3275 if (prev_ftpoint != NULL
3276 && prev_ftpoint->address == tpoint->address)
3277 {
3278 if (use_agent_p)
3279 tracepoint_send_agent (tpoint);
3280 else
3281 download_tracepoint_1 (tpoint);
3282
3283 clone_fast_tracepoint (tpoint, prev_ftpoint);
3284 }
3285 else
3286 {
3287 /* Tracepoint is installed successfully? */
3288 int installed = 0;
3289
3290 /* Download and install fast tracepoint by agent. */
3291 if (use_agent_p)
3292 installed = !tracepoint_send_agent (tpoint);
3293 else
3294 {
3295 download_tracepoint_1 (tpoint);
3296 installed = !install_fast_tracepoint (tpoint, packet);
3297 }
3298
3299 if (installed)
3300 prev_ftpoint = tpoint;
3301 }
3302 }
3303 else
3304 {
3305 if (!in_process_agent_supports_ust ())
3306 {
3307 trace_debug ("Requested a static tracepoint, but static "
3308 "tracepoints are not supported.");
3309 break;
3310 }
3311
3312 download_tracepoint_1 (tpoint);
3313 /* Can only probe a given marker once. */
3314 if (prev_stpoint != NULL
3315 && prev_stpoint->address == tpoint->address)
3316 tpoint->handle = (void *) -1;
3317 else
3318 {
3319 if (probe_marker_at (tpoint->address, packet) == 0)
3320 {
3321 tpoint->handle = (void *) -1;
3322
3323 /* So that we can handle multiple static tracepoints
3324 at the same address easily. */
3325 prev_stpoint = tpoint;
3326 }
3327 }
3328 }
3329
3330 prev_tpptr = tpptr;
3331 tpptr = tpoint->obj_addr_on_target;
3332
3333 if (tpoint == tracepoints)
3334 /* First object in list, set the head pointer in the
3335 inferior. */
3336 write_inferior_data_pointer (ipa_sym_addrs.addr_tracepoints, tpptr);
3337 else
3338 write_inferior_data_pointer (prev_tpptr
3339 + offsetof (struct tracepoint, next),
3340 tpptr);
3341 }
3342
3343 /* Any failure in the inner loop is sufficient cause to give
3344 up. */
3345 if (tpoint->handle == NULL)
3346 break;
3347 }
3348
3349 /* Any error in tracepoint insertion is unacceptable; better to
3350 address the problem now, than end up with a useless or misleading
3351 trace run. */
3352 if (tpoint != NULL)
3353 {
3354 clear_installed_tracepoints ();
3355 if (*packet == '\0')
3356 write_enn (packet);
3357 unpause_all (1);
3358 return;
3359 }
3360
3361 stopping_tracepoint = NULL;
3362 trace_buffer_is_full = 0;
3363 expr_eval_result = expr_eval_no_error;
3364 error_tracepoint = NULL;
3365 tracing_start_time = get_timestamp ();
3366
3367 /* Tracing is now active, hits will now start being logged. */
3368 tracing = 1;
3369
3370 if (agent_loaded_p ())
3371 {
3372 if (write_inferior_integer (ipa_sym_addrs.addr_tracing, 1))
3373 {
3374 internal_error (__FILE__, __LINE__,
3375 "Error setting tracing variable in lib");
3376 }
3377
3378 if (write_inferior_data_pointer (ipa_sym_addrs.addr_stopping_tracepoint,
3379 0))
3380 {
3381 internal_error (__FILE__, __LINE__,
3382 "Error clearing stopping_tracepoint variable"
3383 " in lib");
3384 }
3385
3386 if (write_inferior_integer (ipa_sym_addrs.addr_trace_buffer_is_full, 0))
3387 {
3388 internal_error (__FILE__, __LINE__,
3389 "Error clearing trace_buffer_is_full variable"
3390 " in lib");
3391 }
3392
3393 stop_tracing_bkpt = set_breakpoint_at (ipa_sym_addrs.addr_stop_tracing,
3394 stop_tracing_handler);
3395 if (stop_tracing_bkpt == NULL)
3396 error ("Error setting stop_tracing breakpoint");
3397
3398 flush_trace_buffer_bkpt
3399 = set_breakpoint_at (ipa_sym_addrs.addr_flush_trace_buffer,
3400 flush_trace_buffer_handler);
3401 if (flush_trace_buffer_bkpt == NULL)
3402 error ("Error setting flush_trace_buffer breakpoint");
3403 }
3404
3405 unpause_all (1);
3406
3407 write_ok (packet);
3408 }
3409
3410 /* End a tracing run, filling in a stop reason to report back to GDB,
3411 and removing the tracepoints from the code. */
3412
3413 void
3414 stop_tracing (void)
3415 {
3416 if (!tracing)
3417 {
3418 trace_debug ("Tracing is already off, ignoring");
3419 return;
3420 }
3421
3422 trace_debug ("Stopping the trace");
3423
3424 /* Pause all threads before removing fast jumps from memory,
3425 breakpoints, and touching IPA state variables (inferior memory).
3426 Some thread may hit the internal tracing breakpoints, or be
3427 collecting this moment, but that's ok, we don't release the
3428 tpoint object's memory or the jump pads here (we only do that
3429 when we're sure we can move all threads out of the jump pads).
3430 We can't now, since we may be getting here due to the inferior
3431 agent calling us. */
3432 pause_all (1);
3433
3434 /* Stop logging. Tracepoints can still be hit, but they will not be
3435 recorded. */
3436 tracing = 0;
3437 if (agent_loaded_p ())
3438 {
3439 if (write_inferior_integer (ipa_sym_addrs.addr_tracing, 0))
3440 {
3441 internal_error (__FILE__, __LINE__,
3442 "Error clearing tracing variable in lib");
3443 }
3444 }
3445
3446 tracing_stop_time = get_timestamp ();
3447 tracing_stop_reason = "t???";
3448 tracing_stop_tpnum = 0;
3449 if (stopping_tracepoint)
3450 {
3451 trace_debug ("Stopping the trace because "
3452 "tracepoint %d was hit %" PRIu64 " times",
3453 stopping_tracepoint->number,
3454 stopping_tracepoint->pass_count);
3455 tracing_stop_reason = "tpasscount";
3456 tracing_stop_tpnum = stopping_tracepoint->number;
3457 }
3458 else if (trace_buffer_is_full)
3459 {
3460 trace_debug ("Stopping the trace because the trace buffer is full");
3461 tracing_stop_reason = "tfull";
3462 }
3463 else if (expr_eval_result != expr_eval_no_error)
3464 {
3465 trace_debug ("Stopping the trace because of an expression eval error");
3466 tracing_stop_reason = eval_result_names[expr_eval_result];
3467 tracing_stop_tpnum = error_tracepoint->number;
3468 }
3469 #ifndef IN_PROCESS_AGENT
3470 else if (!gdb_connected ())
3471 {
3472 trace_debug ("Stopping the trace because GDB disconnected");
3473 tracing_stop_reason = "tdisconnected";
3474 }
3475 #endif
3476 else
3477 {
3478 trace_debug ("Stopping the trace because of a tstop command");
3479 tracing_stop_reason = "tstop";
3480 }
3481
3482 stopping_tracepoint = NULL;
3483 error_tracepoint = NULL;
3484
3485 /* Clear out the tracepoints. */
3486 clear_installed_tracepoints ();
3487
3488 if (agent_loaded_p ())
3489 {
3490 /* Pull in fast tracepoint trace frames from the inferior lib
3491 buffer into our buffer, even if our buffer is already full,
3492 because we want to present the full number of created frames
3493 in addition to what fit in the trace buffer. */
3494 upload_fast_traceframes ();
3495 }
3496
3497 if (stop_tracing_bkpt != NULL)
3498 {
3499 delete_breakpoint (stop_tracing_bkpt);
3500 stop_tracing_bkpt = NULL;
3501 }
3502
3503 if (flush_trace_buffer_bkpt != NULL)
3504 {
3505 delete_breakpoint (flush_trace_buffer_bkpt);
3506 flush_trace_buffer_bkpt = NULL;
3507 }
3508
3509 unpause_all (1);
3510 }
3511
3512 static int
3513 stop_tracing_handler (CORE_ADDR addr)
3514 {
3515 trace_debug ("lib hit stop_tracing");
3516
3517 /* Don't actually handle it here. When we stop tracing we remove
3518 breakpoints from the inferior, and that is not allowed in a
3519 breakpoint handler (as the caller is walking the breakpoint
3520 list). */
3521 return 0;
3522 }
3523
3524 static int
3525 flush_trace_buffer_handler (CORE_ADDR addr)
3526 {
3527 trace_debug ("lib hit flush_trace_buffer");
3528 return 0;
3529 }
3530
3531 static void
3532 cmd_qtstop (char *packet)
3533 {
3534 stop_tracing ();
3535 write_ok (packet);
3536 }
3537
3538 static void
3539 cmd_qtdisconnected (char *own_buf)
3540 {
3541 ULONGEST setting;
3542 char *packet = own_buf;
3543
3544 packet += strlen ("QTDisconnected:");
3545
3546 unpack_varlen_hex (packet, &setting);
3547
3548 write_ok (own_buf);
3549
3550 disconnected_tracing = setting;
3551 }
3552
3553 static void
3554 cmd_qtframe (char *own_buf)
3555 {
3556 client_state &cs = get_client_state ();
3557 ULONGEST frame, pc, lo, hi, num;
3558 int tfnum, tpnum;
3559 struct traceframe *tframe;
3560 const char *packet = own_buf;
3561
3562 packet += strlen ("QTFrame:");
3563
3564 if (startswith (packet, "pc:"))
3565 {
3566 packet += strlen ("pc:");
3567 unpack_varlen_hex (packet, &pc);
3568 trace_debug ("Want to find next traceframe at pc=0x%s", paddress (pc));
3569 tframe = find_next_traceframe_in_range (pc, pc, 1, &tfnum);
3570 }
3571 else if (startswith (packet, "range:"))
3572 {
3573 packet += strlen ("range:");
3574 packet = unpack_varlen_hex (packet, &lo);
3575 ++packet;
3576 unpack_varlen_hex (packet, &hi);
3577 trace_debug ("Want to find next traceframe in the range 0x%s to 0x%s",
3578 paddress (lo), paddress (hi));
3579 tframe = find_next_traceframe_in_range (lo, hi, 1, &tfnum);
3580 }
3581 else if (startswith (packet, "outside:"))
3582 {
3583 packet += strlen ("outside:");
3584 packet = unpack_varlen_hex (packet, &lo);
3585 ++packet;
3586 unpack_varlen_hex (packet, &hi);
3587 trace_debug ("Want to find next traceframe "
3588 "outside the range 0x%s to 0x%s",
3589 paddress (lo), paddress (hi));
3590 tframe = find_next_traceframe_in_range (lo, hi, 0, &tfnum);
3591 }
3592 else if (startswith (packet, "tdp:"))
3593 {
3594 packet += strlen ("tdp:");
3595 unpack_varlen_hex (packet, &num);
3596 tpnum = (int) num;
3597 trace_debug ("Want to find next traceframe for tracepoint %d", tpnum);
3598 tframe = find_next_traceframe_by_tracepoint (tpnum, &tfnum);
3599 }
3600 else
3601 {
3602 unpack_varlen_hex (packet, &frame);
3603 tfnum = (int) frame;
3604 if (tfnum == -1)
3605 {
3606 trace_debug ("Want to stop looking at traceframes");
3607 cs.current_traceframe = -1;
3608 write_ok (own_buf);
3609 return;
3610 }
3611 trace_debug ("Want to look at traceframe %d", tfnum);
3612 tframe = find_traceframe (tfnum);
3613 }
3614
3615 if (tframe)
3616 {
3617 cs.current_traceframe = tfnum;
3618 sprintf (own_buf, "F%xT%x", tfnum, tframe->tpnum);
3619 }
3620 else
3621 sprintf (own_buf, "F-1");
3622 }
3623
3624 static void
3625 cmd_qtstatus (char *packet)
3626 {
3627 char *stop_reason_rsp = NULL;
3628 char *buf1, *buf2, *buf3;
3629 const char *str;
3630 int slen;
3631
3632 /* Translate the plain text of the notes back into hex for
3633 transmission. */
3634
3635 str = (tracing_user_name ? tracing_user_name : "");
3636 slen = strlen (str);
3637 buf1 = (char *) alloca (slen * 2 + 1);
3638 bin2hex ((gdb_byte *) str, buf1, slen);
3639
3640 str = (tracing_notes ? tracing_notes : "");
3641 slen = strlen (str);
3642 buf2 = (char *) alloca (slen * 2 + 1);
3643 bin2hex ((gdb_byte *) str, buf2, slen);
3644
3645 str = (tracing_stop_note ? tracing_stop_note : "");
3646 slen = strlen (str);
3647 buf3 = (char *) alloca (slen * 2 + 1);
3648 bin2hex ((gdb_byte *) str, buf3, slen);
3649
3650 trace_debug ("Returning trace status as %d, stop reason %s",
3651 tracing, tracing_stop_reason);
3652
3653 if (agent_loaded_p ())
3654 {
3655 pause_all (1);
3656
3657 upload_fast_traceframes ();
3658
3659 unpause_all (1);
3660 }
3661
3662 stop_reason_rsp = (char *) tracing_stop_reason;
3663
3664 /* The user visible error string in terror needs to be hex encoded.
3665 We leave it as plain string in `tracing_stop_reason' to ease
3666 debugging. */
3667 if (startswith (stop_reason_rsp, "terror:"))
3668 {
3669 const char *result_name;
3670 int hexstr_len;
3671 char *p;
3672
3673 result_name = stop_reason_rsp + strlen ("terror:");
3674 hexstr_len = strlen (result_name) * 2;
3675 p = stop_reason_rsp
3676 = (char *) alloca (strlen ("terror:") + hexstr_len + 1);
3677 strcpy (p, "terror:");
3678 p += strlen (p);
3679 bin2hex ((gdb_byte *) result_name, p, strlen (result_name));
3680 }
3681
3682 /* If this was a forced stop, include any stop note that was supplied. */
3683 if (strcmp (stop_reason_rsp, "tstop") == 0)
3684 {
3685 stop_reason_rsp = (char *) alloca (strlen ("tstop:") + strlen (buf3) + 1);
3686 strcpy (stop_reason_rsp, "tstop:");
3687 strcat (stop_reason_rsp, buf3);
3688 }
3689
3690 sprintf (packet,
3691 "T%d;"
3692 "%s:%x;"
3693 "tframes:%x;tcreated:%x;"
3694 "tfree:%x;tsize:%s;"
3695 "circular:%d;"
3696 "disconn:%d;"
3697 "starttime:%s;stoptime:%s;"
3698 "username:%s;notes:%s:",
3699 tracing ? 1 : 0,
3700 stop_reason_rsp, tracing_stop_tpnum,
3701 traceframe_count, traceframes_created,
3702 free_space (), phex_nz (trace_buffer_hi - trace_buffer_lo, 0),
3703 circular_trace_buffer,
3704 disconnected_tracing,
3705 phex_nz (tracing_start_time, sizeof (tracing_start_time)),
3706 phex_nz (tracing_stop_time, sizeof (tracing_stop_time)),
3707 buf1, buf2);
3708 }
3709
3710 static void
3711 cmd_qtp (char *own_buf)
3712 {
3713 ULONGEST num, addr;
3714 struct tracepoint *tpoint;
3715 const char *packet = own_buf;
3716
3717 packet += strlen ("qTP:");
3718
3719 packet = unpack_varlen_hex (packet, &num);
3720 ++packet; /* skip a colon */
3721 packet = unpack_varlen_hex (packet, &addr);
3722
3723 /* See if we already have this tracepoint. */
3724 tpoint = find_tracepoint (num, addr);
3725
3726 if (!tpoint)
3727 {
3728 trace_debug ("Tracepoint error: tracepoint %d at 0x%s not found",
3729 (int) num, paddress (addr));
3730 write_enn (own_buf);
3731 return;
3732 }
3733
3734 sprintf (own_buf, "V%" PRIu64 ":%" PRIu64 "", tpoint->hit_count,
3735 tpoint->traceframe_usage);
3736 }
3737
3738 /* State variables to help return all the tracepoint bits. */
3739 static struct tracepoint *cur_tpoint;
3740 static unsigned int cur_action;
3741 static unsigned int cur_step_action;
3742 static struct source_string *cur_source_string;
3743 static struct trace_state_variable *cur_tsv;
3744
3745 /* Compose a response that is an imitation of the syntax by which the
3746 tracepoint was originally downloaded. */
3747
3748 static void
3749 response_tracepoint (char *packet, struct tracepoint *tpoint)
3750 {
3751 char *buf;
3752
3753 sprintf (packet, "T%x:%s:%c:%" PRIx64 ":%" PRIx64, tpoint->number,
3754 paddress (tpoint->address),
3755 (tpoint->enabled ? 'E' : 'D'), tpoint->step_count,
3756 tpoint->pass_count);
3757 if (tpoint->type == fast_tracepoint)
3758 sprintf (packet + strlen (packet), ":F%x", tpoint->orig_size);
3759 else if (tpoint->type == static_tracepoint)
3760 sprintf (packet + strlen (packet), ":S");
3761
3762 if (tpoint->cond)
3763 {
3764 buf = gdb_unparse_agent_expr (tpoint->cond);
3765 sprintf (packet + strlen (packet), ":X%x,%s",
3766 tpoint->cond->length, buf);
3767 free (buf);
3768 }
3769 }
3770
3771 /* Compose a response that is an imitation of the syntax by which the
3772 tracepoint action was originally downloaded (with the difference
3773 that due to the way we store the actions, this will output a packet
3774 per action, while GDB could have combined more than one action
3775 per-packet. */
3776
3777 static void
3778 response_action (char *packet, struct tracepoint *tpoint,
3779 char *taction, int step)
3780 {
3781 sprintf (packet, "%c%x:%s:%s",
3782 (step ? 'S' : 'A'), tpoint->number, paddress (tpoint->address),
3783 taction);
3784 }
3785
3786 /* Compose a response that is an imitation of the syntax by which the
3787 tracepoint source piece was originally downloaded. */
3788
3789 static void
3790 response_source (char *packet,
3791 struct tracepoint *tpoint, struct source_string *src)
3792 {
3793 char *buf;
3794 int len;
3795
3796 len = strlen (src->str);
3797 buf = (char *) alloca (len * 2 + 1);
3798 bin2hex ((gdb_byte *) src->str, buf, len);
3799
3800 sprintf (packet, "Z%x:%s:%s:%x:%x:%s",
3801 tpoint->number, paddress (tpoint->address),
3802 src->type, 0, len, buf);
3803 }
3804
3805 /* Return the first piece of tracepoint definition, and initialize the
3806 state machine that will iterate through all the tracepoint
3807 bits. */
3808
3809 static void
3810 cmd_qtfp (char *packet)
3811 {
3812 trace_debug ("Returning first tracepoint definition piece");
3813
3814 cur_tpoint = tracepoints;
3815 cur_action = cur_step_action = 0;
3816 cur_source_string = NULL;
3817
3818 if (cur_tpoint)
3819 response_tracepoint (packet, cur_tpoint);
3820 else
3821 strcpy (packet, "l");
3822 }
3823
3824 /* Return additional pieces of tracepoint definition. Each action and
3825 stepping action must go into its own packet, because of packet size
3826 limits, and so we use state variables to deliver one piece at a
3827 time. */
3828
3829 static void
3830 cmd_qtsp (char *packet)
3831 {
3832 trace_debug ("Returning subsequent tracepoint definition piece");
3833
3834 if (!cur_tpoint)
3835 {
3836 /* This case would normally never occur, but be prepared for
3837 GDB misbehavior. */
3838 strcpy (packet, "l");
3839 }
3840 else if (cur_action < cur_tpoint->numactions)
3841 {
3842 response_action (packet, cur_tpoint,
3843 cur_tpoint->actions_str[cur_action], 0);
3844 ++cur_action;
3845 }
3846 else if (cur_step_action < cur_tpoint->num_step_actions)
3847 {
3848 response_action (packet, cur_tpoint,
3849 cur_tpoint->step_actions_str[cur_step_action], 1);
3850 ++cur_step_action;
3851 }
3852 else if ((cur_source_string
3853 ? cur_source_string->next
3854 : cur_tpoint->source_strings))
3855 {
3856 if (cur_source_string)
3857 cur_source_string = cur_source_string->next;
3858 else
3859 cur_source_string = cur_tpoint->source_strings;
3860 response_source (packet, cur_tpoint, cur_source_string);
3861 }
3862 else
3863 {
3864 cur_tpoint = cur_tpoint->next;
3865 cur_action = cur_step_action = 0;
3866 cur_source_string = NULL;
3867 if (cur_tpoint)
3868 response_tracepoint (packet, cur_tpoint);
3869 else
3870 strcpy (packet, "l");
3871 }
3872 }
3873
3874 /* Compose a response that is an imitation of the syntax by which the
3875 trace state variable was originally downloaded. */
3876
3877 static void
3878 response_tsv (char *packet, struct trace_state_variable *tsv)
3879 {
3880 char *buf = (char *) "";
3881 int namelen;
3882
3883 if (tsv->name)
3884 {
3885 namelen = strlen (tsv->name);
3886 buf = (char *) alloca (namelen * 2 + 1);
3887 bin2hex ((gdb_byte *) tsv->name, buf, namelen);
3888 }
3889
3890 sprintf (packet, "%x:%s:%x:%s", tsv->number, phex_nz (tsv->initial_value, 0),
3891 tsv->getter ? 1 : 0, buf);
3892 }
3893
3894 /* Return the first trace state variable definition, and initialize
3895 the state machine that will iterate through all the tsv bits. */
3896
3897 static void
3898 cmd_qtfv (char *packet)
3899 {
3900 trace_debug ("Returning first trace state variable definition");
3901
3902 cur_tsv = trace_state_variables;
3903
3904 if (cur_tsv)
3905 response_tsv (packet, cur_tsv);
3906 else
3907 strcpy (packet, "l");
3908 }
3909
3910 /* Return additional trace state variable definitions. */
3911
3912 static void
3913 cmd_qtsv (char *packet)
3914 {
3915 trace_debug ("Returning additional trace state variable definition");
3916
3917 if (cur_tsv)
3918 {
3919 cur_tsv = cur_tsv->next;
3920 if (cur_tsv)
3921 response_tsv (packet, cur_tsv);
3922 else
3923 strcpy (packet, "l");
3924 }
3925 else
3926 strcpy (packet, "l");
3927 }
3928
3929 /* Return the first static tracepoint marker, and initialize the state
3930 machine that will iterate through all the static tracepoints
3931 markers. */
3932
3933 static void
3934 cmd_qtfstm (char *packet)
3935 {
3936 if (!maybe_write_ipa_ust_not_loaded (packet))
3937 run_inferior_command (packet, strlen (packet) + 1);
3938 }
3939
3940 /* Return additional static tracepoints markers. */
3941
3942 static void
3943 cmd_qtsstm (char *packet)
3944 {
3945 if (!maybe_write_ipa_ust_not_loaded (packet))
3946 run_inferior_command (packet, strlen (packet) + 1);
3947 }
3948
3949 /* Return the definition of the static tracepoint at a given address.
3950 Result packet is the same as qTsST's. */
3951
3952 static void
3953 cmd_qtstmat (char *packet)
3954 {
3955 if (!maybe_write_ipa_ust_not_loaded (packet))
3956 run_inferior_command (packet, strlen (packet) + 1);
3957 }
3958
3959 /* Sent the agent a command to close it. */
3960
3961 void
3962 gdb_agent_about_to_close (int pid)
3963 {
3964 char buf[IPA_CMD_BUF_SIZE];
3965
3966 if (!maybe_write_ipa_not_loaded (buf))
3967 {
3968 struct thread_info *saved_thread;
3969
3970 saved_thread = current_thread;
3971
3972 /* Find any thread which belongs to process PID. */
3973 current_thread = find_any_thread_of_pid (pid);
3974
3975 strcpy (buf, "close");
3976
3977 run_inferior_command (buf, strlen (buf) + 1);
3978
3979 current_thread = saved_thread;
3980 }
3981 }
3982
3983 /* Return the minimum instruction size needed for fast tracepoints as a
3984 hexadecimal number. */
3985
3986 static void
3987 cmd_qtminftpilen (char *packet)
3988 {
3989 if (current_thread == NULL)
3990 {
3991 /* Indicate that the minimum length is currently unknown. */
3992 strcpy (packet, "0");
3993 return;
3994 }
3995
3996 sprintf (packet, "%x", target_get_min_fast_tracepoint_insn_len ());
3997 }
3998
3999 /* Respond to qTBuffer packet with a block of raw data from the trace
4000 buffer. GDB may ask for a lot, but we are allowed to reply with
4001 only as much as will fit within packet limits or whatever. */
4002
4003 static void
4004 cmd_qtbuffer (char *own_buf)
4005 {
4006 ULONGEST offset, num, tot;
4007 unsigned char *tbp;
4008 const char *packet = own_buf;
4009
4010 packet += strlen ("qTBuffer:");
4011
4012 packet = unpack_varlen_hex (packet, &offset);
4013 ++packet; /* skip a comma */
4014 unpack_varlen_hex (packet, &num);
4015
4016 trace_debug ("Want to get trace buffer, %d bytes at offset 0x%s",
4017 (int) num, phex_nz (offset, 0));
4018
4019 tot = (trace_buffer_hi - trace_buffer_lo) - free_space ();
4020
4021 /* If we're right at the end, reply specially that we're done. */
4022 if (offset == tot)
4023 {
4024 strcpy (own_buf, "l");
4025 return;
4026 }
4027
4028 /* Object to any other out-of-bounds request. */
4029 if (offset > tot)
4030 {
4031 write_enn (own_buf);
4032 return;
4033 }
4034
4035 /* Compute the pointer corresponding to the given offset, accounting
4036 for wraparound. */
4037 tbp = trace_buffer_start + offset;
4038 if (tbp >= trace_buffer_wrap)
4039 tbp -= (trace_buffer_wrap - trace_buffer_lo);
4040
4041 /* Trim to the remaining bytes if we're close to the end. */
4042 if (num > tot - offset)
4043 num = tot - offset;
4044
4045 /* Trim to available packet size. */
4046 if (num >= (PBUFSIZ - 16) / 2 )
4047 num = (PBUFSIZ - 16) / 2;
4048
4049 bin2hex (tbp, own_buf, num);
4050 }
4051
4052 static void
4053 cmd_bigqtbuffer_circular (char *own_buf)
4054 {
4055 ULONGEST val;
4056 char *packet = own_buf;
4057
4058 packet += strlen ("QTBuffer:circular:");
4059
4060 unpack_varlen_hex (packet, &val);
4061 circular_trace_buffer = val;
4062 trace_debug ("Trace buffer is now %s",
4063 circular_trace_buffer ? "circular" : "linear");
4064 write_ok (own_buf);
4065 }
4066
4067 static void
4068 cmd_bigqtbuffer_size (char *own_buf)
4069 {
4070 ULONGEST val;
4071 LONGEST sval;
4072 char *packet = own_buf;
4073
4074 /* Can't change the size during a tracing run. */
4075 if (tracing)
4076 {
4077 write_enn (own_buf);
4078 return;
4079 }
4080
4081 packet += strlen ("QTBuffer:size:");
4082
4083 /* -1 is sent as literal "-1". */
4084 if (strcmp (packet, "-1") == 0)
4085 sval = DEFAULT_TRACE_BUFFER_SIZE;
4086 else
4087 {
4088 unpack_varlen_hex (packet, &val);
4089 sval = (LONGEST) val;
4090 }
4091
4092 init_trace_buffer (sval);
4093 trace_debug ("Trace buffer is now %s bytes",
4094 plongest (trace_buffer_size));
4095 write_ok (own_buf);
4096 }
4097
4098 static void
4099 cmd_qtnotes (char *own_buf)
4100 {
4101 size_t nbytes;
4102 char *saved, *user, *notes, *stopnote;
4103 char *packet = own_buf;
4104
4105 packet += strlen ("QTNotes:");
4106
4107 while (*packet)
4108 {
4109 if (startswith (packet, "user:"))
4110 {
4111 packet += strlen ("user:");
4112 saved = packet;
4113 packet = strchr (packet, ';');
4114 nbytes = (packet - saved) / 2;
4115 user = (char *) xmalloc (nbytes + 1);
4116 nbytes = hex2bin (saved, (gdb_byte *) user, nbytes);
4117 user[nbytes] = '\0';
4118 ++packet; /* skip the semicolon */
4119 trace_debug ("User is '%s'", user);
4120 xfree (tracing_user_name);
4121 tracing_user_name = user;
4122 }
4123 else if (startswith (packet, "notes:"))
4124 {
4125 packet += strlen ("notes:");
4126 saved = packet;
4127 packet = strchr (packet, ';');
4128 nbytes = (packet - saved) / 2;
4129 notes = (char *) xmalloc (nbytes + 1);
4130 nbytes = hex2bin (saved, (gdb_byte *) notes, nbytes);
4131 notes[nbytes] = '\0';
4132 ++packet; /* skip the semicolon */
4133 trace_debug ("Notes is '%s'", notes);
4134 xfree (tracing_notes);
4135 tracing_notes = notes;
4136 }
4137 else if (startswith (packet, "tstop:"))
4138 {
4139 packet += strlen ("tstop:");
4140 saved = packet;
4141 packet = strchr (packet, ';');
4142 nbytes = (packet - saved) / 2;
4143 stopnote = (char *) xmalloc (nbytes + 1);
4144 nbytes = hex2bin (saved, (gdb_byte *) stopnote, nbytes);
4145 stopnote[nbytes] = '\0';
4146 ++packet; /* skip the semicolon */
4147 trace_debug ("tstop note is '%s'", stopnote);
4148 xfree (tracing_stop_note);
4149 tracing_stop_note = stopnote;
4150 }
4151 else
4152 break;
4153 }
4154
4155 write_ok (own_buf);
4156 }
4157
4158 int
4159 handle_tracepoint_general_set (char *packet)
4160 {
4161 if (strcmp ("QTinit", packet) == 0)
4162 {
4163 cmd_qtinit (packet);
4164 return 1;
4165 }
4166 else if (startswith (packet, "QTDP:"))
4167 {
4168 cmd_qtdp (packet);
4169 return 1;
4170 }
4171 else if (startswith (packet, "QTDPsrc:"))
4172 {
4173 cmd_qtdpsrc (packet);
4174 return 1;
4175 }
4176 else if (startswith (packet, "QTEnable:"))
4177 {
4178 cmd_qtenable_disable (packet, 1);
4179 return 1;
4180 }
4181 else if (startswith (packet, "QTDisable:"))
4182 {
4183 cmd_qtenable_disable (packet, 0);
4184 return 1;
4185 }
4186 else if (startswith (packet, "QTDV:"))
4187 {
4188 cmd_qtdv (packet);
4189 return 1;
4190 }
4191 else if (startswith (packet, "QTro:"))
4192 {
4193 cmd_qtro (packet);
4194 return 1;
4195 }
4196 else if (strcmp ("QTStart", packet) == 0)
4197 {
4198 cmd_qtstart (packet);
4199 return 1;
4200 }
4201 else if (strcmp ("QTStop", packet) == 0)
4202 {
4203 cmd_qtstop (packet);
4204 return 1;
4205 }
4206 else if (startswith (packet, "QTDisconnected:"))
4207 {
4208 cmd_qtdisconnected (packet);
4209 return 1;
4210 }
4211 else if (startswith (packet, "QTFrame:"))
4212 {
4213 cmd_qtframe (packet);
4214 return 1;
4215 }
4216 else if (startswith (packet, "QTBuffer:circular:"))
4217 {
4218 cmd_bigqtbuffer_circular (packet);
4219 return 1;
4220 }
4221 else if (startswith (packet, "QTBuffer:size:"))
4222 {
4223 cmd_bigqtbuffer_size (packet);
4224 return 1;
4225 }
4226 else if (startswith (packet, "QTNotes:"))
4227 {
4228 cmd_qtnotes (packet);
4229 return 1;
4230 }
4231
4232 return 0;
4233 }
4234
4235 int
4236 handle_tracepoint_query (char *packet)
4237 {
4238 if (strcmp ("qTStatus", packet) == 0)
4239 {
4240 cmd_qtstatus (packet);
4241 return 1;
4242 }
4243 else if (startswith (packet, "qTP:"))
4244 {
4245 cmd_qtp (packet);
4246 return 1;
4247 }
4248 else if (strcmp ("qTfP", packet) == 0)
4249 {
4250 cmd_qtfp (packet);
4251 return 1;
4252 }
4253 else if (strcmp ("qTsP", packet) == 0)
4254 {
4255 cmd_qtsp (packet);
4256 return 1;
4257 }
4258 else if (strcmp ("qTfV", packet) == 0)
4259 {
4260 cmd_qtfv (packet);
4261 return 1;
4262 }
4263 else if (strcmp ("qTsV", packet) == 0)
4264 {
4265 cmd_qtsv (packet);
4266 return 1;
4267 }
4268 else if (startswith (packet, "qTV:"))
4269 {
4270 cmd_qtv (packet);
4271 return 1;
4272 }
4273 else if (startswith (packet, "qTBuffer:"))
4274 {
4275 cmd_qtbuffer (packet);
4276 return 1;
4277 }
4278 else if (strcmp ("qTfSTM", packet) == 0)
4279 {
4280 cmd_qtfstm (packet);
4281 return 1;
4282 }
4283 else if (strcmp ("qTsSTM", packet) == 0)
4284 {
4285 cmd_qtsstm (packet);
4286 return 1;
4287 }
4288 else if (startswith (packet, "qTSTMat:"))
4289 {
4290 cmd_qtstmat (packet);
4291 return 1;
4292 }
4293 else if (strcmp ("qTMinFTPILen", packet) == 0)
4294 {
4295 cmd_qtminftpilen (packet);
4296 return 1;
4297 }
4298
4299 return 0;
4300 }
4301
4302 #endif
4303 #ifndef IN_PROCESS_AGENT
4304
4305 /* Call this when thread TINFO has hit the tracepoint defined by
4306 TP_NUMBER and TP_ADDRESS, and that tracepoint has a while-stepping
4307 action. This adds a while-stepping collecting state item to the
4308 threads' collecting state list, so that we can keep track of
4309 multiple simultaneous while-stepping actions being collected by the
4310 same thread. This can happen in cases like:
4311
4312 ff0001 INSN1 <-- TP1, while-stepping 10 collect $regs
4313 ff0002 INSN2
4314 ff0003 INSN3 <-- TP2, collect $regs
4315 ff0004 INSN4 <-- TP3, while-stepping 10 collect $regs
4316 ff0005 INSN5
4317
4318 Notice that when instruction INSN5 is reached, the while-stepping
4319 actions of both TP1 and TP3 are still being collected, and that TP2
4320 had been collected meanwhile. The whole range of ff0001-ff0005
4321 should be single-stepped, due to at least TP1's while-stepping
4322 action covering the whole range. */
4323
4324 static void
4325 add_while_stepping_state (struct thread_info *tinfo,
4326 int tp_number, CORE_ADDR tp_address)
4327 {
4328 struct wstep_state *wstep = XNEW (struct wstep_state);
4329
4330 wstep->next = tinfo->while_stepping;
4331
4332 wstep->tp_number = tp_number;
4333 wstep->tp_address = tp_address;
4334 wstep->current_step = 0;
4335
4336 tinfo->while_stepping = wstep;
4337 }
4338
4339 /* Release the while-stepping collecting state WSTEP. */
4340
4341 static void
4342 release_while_stepping_state (struct wstep_state *wstep)
4343 {
4344 free (wstep);
4345 }
4346
4347 /* Release all while-stepping collecting states currently associated
4348 with thread TINFO. */
4349
4350 void
4351 release_while_stepping_state_list (struct thread_info *tinfo)
4352 {
4353 struct wstep_state *head;
4354
4355 while (tinfo->while_stepping)
4356 {
4357 head = tinfo->while_stepping;
4358 tinfo->while_stepping = head->next;
4359 release_while_stepping_state (head);
4360 }
4361 }
4362
4363 /* If TINFO was handling a 'while-stepping' action, the step has
4364 finished, so collect any step data needed, and check if any more
4365 steps are required. Return true if the thread was indeed
4366 collecting tracepoint data, false otherwise. */
4367
4368 int
4369 tracepoint_finished_step (struct thread_info *tinfo, CORE_ADDR stop_pc)
4370 {
4371 struct tracepoint *tpoint;
4372 struct wstep_state *wstep;
4373 struct wstep_state **wstep_link;
4374 struct trap_tracepoint_ctx ctx;
4375
4376 /* Pull in fast tracepoint trace frames from the inferior lib buffer into
4377 our buffer. */
4378 if (agent_loaded_p ())
4379 upload_fast_traceframes ();
4380
4381 /* Check if we were indeed collecting data for one of more
4382 tracepoints with a 'while-stepping' count. */
4383 if (tinfo->while_stepping == NULL)
4384 return 0;
4385
4386 if (!tracing)
4387 {
4388 /* We're not even tracing anymore. Stop this thread from
4389 collecting. */
4390 release_while_stepping_state_list (tinfo);
4391
4392 /* The thread had stopped due to a single-step request indeed
4393 explained by a tracepoint. */
4394 return 1;
4395 }
4396
4397 wstep = tinfo->while_stepping;
4398 wstep_link = &tinfo->while_stepping;
4399
4400 trace_debug ("Thread %s finished a single-step for tracepoint %d at 0x%s",
4401 target_pid_to_str (tinfo->id),
4402 wstep->tp_number, paddress (wstep->tp_address));
4403
4404 ctx.base.type = trap_tracepoint;
4405 ctx.regcache = get_thread_regcache (tinfo, 1);
4406
4407 while (wstep != NULL)
4408 {
4409 tpoint = find_tracepoint (wstep->tp_number, wstep->tp_address);
4410 if (tpoint == NULL)
4411 {
4412 trace_debug ("NO TRACEPOINT %d at 0x%s FOR THREAD %s!",
4413 wstep->tp_number, paddress (wstep->tp_address),
4414 target_pid_to_str (tinfo->id));
4415
4416 /* Unlink. */
4417 *wstep_link = wstep->next;
4418 release_while_stepping_state (wstep);
4419 wstep = *wstep_link;
4420 continue;
4421 }
4422
4423 /* We've just finished one step. */
4424 ++wstep->current_step;
4425
4426 /* Collect data. */
4427 collect_data_at_step ((struct tracepoint_hit_ctx *) &ctx,
4428 stop_pc, tpoint, wstep->current_step);
4429
4430 if (wstep->current_step >= tpoint->step_count)
4431 {
4432 /* The requested numbers of steps have occurred. */
4433 trace_debug ("Thread %s done stepping for tracepoint %d at 0x%s",
4434 target_pid_to_str (tinfo->id),
4435 wstep->tp_number, paddress (wstep->tp_address));
4436
4437 /* Unlink the wstep. */
4438 *wstep_link = wstep->next;
4439 release_while_stepping_state (wstep);
4440 wstep = *wstep_link;
4441
4442 /* Only check the hit count now, which ensure that we do all
4443 our stepping before stopping the run. */
4444 if (tpoint->pass_count > 0
4445 && tpoint->hit_count >= tpoint->pass_count
4446 && stopping_tracepoint == NULL)
4447 stopping_tracepoint = tpoint;
4448 }
4449 else
4450 {
4451 /* Keep single-stepping until the requested numbers of steps
4452 have occurred. */
4453 wstep_link = &wstep->next;
4454 wstep = *wstep_link;
4455 }
4456
4457 if (stopping_tracepoint
4458 || trace_buffer_is_full
4459 || expr_eval_result != expr_eval_no_error)
4460 {
4461 stop_tracing ();
4462 break;
4463 }
4464 }
4465
4466 return 1;
4467 }
4468
4469 /* Handle any internal tracing control breakpoint hits. That means,
4470 pull traceframes from the IPA to our buffer, and syncing both
4471 tracing agents when the IPA's tracing stops for some reason. */
4472
4473 int
4474 handle_tracepoint_bkpts (struct thread_info *tinfo, CORE_ADDR stop_pc)
4475 {
4476 /* Pull in fast tracepoint trace frames from the inferior in-process
4477 agent's buffer into our buffer. */
4478
4479 if (!agent_loaded_p ())
4480 return 0;
4481
4482 upload_fast_traceframes ();
4483
4484 /* Check if the in-process agent had decided we should stop
4485 tracing. */
4486 if (stop_pc == ipa_sym_addrs.addr_stop_tracing)
4487 {
4488 int ipa_trace_buffer_is_full;
4489 CORE_ADDR ipa_stopping_tracepoint;
4490 int ipa_expr_eval_result;
4491 CORE_ADDR ipa_error_tracepoint;
4492
4493 trace_debug ("lib stopped at stop_tracing");
4494
4495 read_inferior_integer (ipa_sym_addrs.addr_trace_buffer_is_full,
4496 &ipa_trace_buffer_is_full);
4497
4498 read_inferior_data_pointer (ipa_sym_addrs.addr_stopping_tracepoint,
4499 &ipa_stopping_tracepoint);
4500 write_inferior_data_pointer (ipa_sym_addrs.addr_stopping_tracepoint, 0);
4501
4502 read_inferior_data_pointer (ipa_sym_addrs.addr_error_tracepoint,
4503 &ipa_error_tracepoint);
4504 write_inferior_data_pointer (ipa_sym_addrs.addr_error_tracepoint, 0);
4505
4506 read_inferior_integer (ipa_sym_addrs.addr_expr_eval_result,
4507 &ipa_expr_eval_result);
4508 write_inferior_integer (ipa_sym_addrs.addr_expr_eval_result, 0);
4509
4510 trace_debug ("lib: trace_buffer_is_full: %d, "
4511 "stopping_tracepoint: %s, "
4512 "ipa_expr_eval_result: %d, "
4513 "error_tracepoint: %s, ",
4514 ipa_trace_buffer_is_full,
4515 paddress (ipa_stopping_tracepoint),
4516 ipa_expr_eval_result,
4517 paddress (ipa_error_tracepoint));
4518
4519 if (debug_threads)
4520 {
4521 if (ipa_trace_buffer_is_full)
4522 trace_debug ("lib stopped due to full buffer.");
4523 if (ipa_stopping_tracepoint)
4524 trace_debug ("lib stopped due to tpoint");
4525 if (ipa_error_tracepoint)
4526 trace_debug ("lib stopped due to error");
4527 }
4528
4529 if (ipa_stopping_tracepoint != 0)
4530 {
4531 stopping_tracepoint
4532 = fast_tracepoint_from_ipa_tpoint_address (ipa_stopping_tracepoint);
4533 }
4534 else if (ipa_expr_eval_result != expr_eval_no_error)
4535 {
4536 expr_eval_result = ipa_expr_eval_result;
4537 error_tracepoint
4538 = fast_tracepoint_from_ipa_tpoint_address (ipa_error_tracepoint);
4539 }
4540 stop_tracing ();
4541 return 1;
4542 }
4543 else if (stop_pc == ipa_sym_addrs.addr_flush_trace_buffer)
4544 {
4545 trace_debug ("lib stopped at flush_trace_buffer");
4546 return 1;
4547 }
4548
4549 return 0;
4550 }
4551
4552 /* Return true if TINFO just hit a tracepoint. Collect data if
4553 so. */
4554
4555 int
4556 tracepoint_was_hit (struct thread_info *tinfo, CORE_ADDR stop_pc)
4557 {
4558 struct tracepoint *tpoint;
4559 int ret = 0;
4560 struct trap_tracepoint_ctx ctx;
4561
4562 /* Not tracing, don't handle. */
4563 if (!tracing)
4564 return 0;
4565
4566 ctx.base.type = trap_tracepoint;
4567 ctx.regcache = get_thread_regcache (tinfo, 1);
4568
4569 for (tpoint = tracepoints; tpoint; tpoint = tpoint->next)
4570 {
4571 /* Note that we collect fast tracepoints here as well. We'll
4572 step over the fast tracepoint jump later, which avoids the
4573 double collect. However, we don't collect for static
4574 tracepoints here, because UST markers are compiled in program,
4575 and probes will be executed in program. So static tracepoints
4576 are collected there. */
4577 if (tpoint->enabled && stop_pc == tpoint->address
4578 && tpoint->type != static_tracepoint)
4579 {
4580 trace_debug ("Thread %s at address of tracepoint %d at 0x%s",
4581 target_pid_to_str (tinfo->id),
4582 tpoint->number, paddress (tpoint->address));
4583
4584 /* Test the condition if present, and collect if true. */
4585 if (!tpoint->cond
4586 || (condition_true_at_tracepoint
4587 ((struct tracepoint_hit_ctx *) &ctx, tpoint)))
4588 collect_data_at_tracepoint ((struct tracepoint_hit_ctx *) &ctx,
4589 stop_pc, tpoint);
4590
4591 if (stopping_tracepoint
4592 || trace_buffer_is_full
4593 || expr_eval_result != expr_eval_no_error)
4594 {
4595 stop_tracing ();
4596 }
4597 /* If the tracepoint had a 'while-stepping' action, then set
4598 the thread to collect this tracepoint on the following
4599 single-steps. */
4600 else if (tpoint->step_count > 0)
4601 {
4602 add_while_stepping_state (tinfo,
4603 tpoint->number, tpoint->address);
4604 }
4605
4606 ret = 1;
4607 }
4608 }
4609
4610 return ret;
4611 }
4612
4613 #endif
4614
4615 #if defined IN_PROCESS_AGENT && defined HAVE_UST
4616 struct ust_marker_data;
4617 static void collect_ust_data_at_tracepoint (struct tracepoint_hit_ctx *ctx,
4618 struct traceframe *tframe);
4619 #endif
4620
4621 /* Create a trace frame for the hit of the given tracepoint in the
4622 given thread. */
4623
4624 static void
4625 collect_data_at_tracepoint (struct tracepoint_hit_ctx *ctx, CORE_ADDR stop_pc,
4626 struct tracepoint *tpoint)
4627 {
4628 struct traceframe *tframe;
4629 int acti;
4630
4631 /* Only count it as a hit when we actually collect data. */
4632 tpoint->hit_count++;
4633
4634 /* If we've exceeded a defined pass count, record the event for
4635 later, and finish the collection for this hit. This test is only
4636 for nonstepping tracepoints, stepping tracepoints test at the end
4637 of their while-stepping loop. */
4638 if (tpoint->pass_count > 0
4639 && tpoint->hit_count >= tpoint->pass_count
4640 && tpoint->step_count == 0
4641 && stopping_tracepoint == NULL)
4642 stopping_tracepoint = tpoint;
4643
4644 trace_debug ("Making new traceframe for tracepoint %d at 0x%s, hit %" PRIu64,
4645 tpoint->number, paddress (tpoint->address), tpoint->hit_count);
4646
4647 tframe = add_traceframe (tpoint);
4648
4649 if (tframe)
4650 {
4651 for (acti = 0; acti < tpoint->numactions; ++acti)
4652 {
4653 #ifndef IN_PROCESS_AGENT
4654 trace_debug ("Tracepoint %d at 0x%s about to do action '%s'",
4655 tpoint->number, paddress (tpoint->address),
4656 tpoint->actions_str[acti]);
4657 #endif
4658
4659 do_action_at_tracepoint (ctx, stop_pc, tpoint, tframe,
4660 tpoint->actions[acti]);
4661 }
4662
4663 finish_traceframe (tframe);
4664 }
4665
4666 if (tframe == NULL && tracing)
4667 trace_buffer_is_full = 1;
4668 }
4669
4670 #ifndef IN_PROCESS_AGENT
4671
4672 static void
4673 collect_data_at_step (struct tracepoint_hit_ctx *ctx,
4674 CORE_ADDR stop_pc,
4675 struct tracepoint *tpoint, int current_step)
4676 {
4677 struct traceframe *tframe;
4678 int acti;
4679
4680 trace_debug ("Making new step traceframe for "
4681 "tracepoint %d at 0x%s, step %d of %" PRIu64 ", hit %" PRIu64,
4682 tpoint->number, paddress (tpoint->address),
4683 current_step, tpoint->step_count,
4684 tpoint->hit_count);
4685
4686 tframe = add_traceframe (tpoint);
4687
4688 if (tframe)
4689 {
4690 for (acti = 0; acti < tpoint->num_step_actions; ++acti)
4691 {
4692 trace_debug ("Tracepoint %d at 0x%s about to do step action '%s'",
4693 tpoint->number, paddress (tpoint->address),
4694 tpoint->step_actions_str[acti]);
4695
4696 do_action_at_tracepoint (ctx, stop_pc, tpoint, tframe,
4697 tpoint->step_actions[acti]);
4698 }
4699
4700 finish_traceframe (tframe);
4701 }
4702
4703 if (tframe == NULL && tracing)
4704 trace_buffer_is_full = 1;
4705 }
4706
4707 #endif
4708
4709 #ifdef IN_PROCESS_AGENT
4710 /* The target description index for IPA. Passed from gdbserver, used
4711 to select ipa_tdesc. */
4712 EXTERN_C_PUSH
4713 IP_AGENT_EXPORT_VAR int ipa_tdesc_idx;
4714 EXTERN_C_POP
4715 #endif
4716
4717 static struct regcache *
4718 get_context_regcache (struct tracepoint_hit_ctx *ctx)
4719 {
4720 struct regcache *regcache = NULL;
4721 #ifdef IN_PROCESS_AGENT
4722 const struct target_desc *ipa_tdesc = get_ipa_tdesc (ipa_tdesc_idx);
4723
4724 if (ctx->type == fast_tracepoint)
4725 {
4726 struct fast_tracepoint_ctx *fctx = (struct fast_tracepoint_ctx *) ctx;
4727 if (!fctx->regcache_initted)
4728 {
4729 fctx->regcache_initted = 1;
4730 init_register_cache (&fctx->regcache, ipa_tdesc, fctx->regspace);
4731 supply_regblock (&fctx->regcache, NULL);
4732 supply_fast_tracepoint_registers (&fctx->regcache, fctx->regs);
4733 }
4734 regcache = &fctx->regcache;
4735 }
4736 #ifdef HAVE_UST
4737 if (ctx->type == static_tracepoint)
4738 {
4739 struct static_tracepoint_ctx *sctx
4740 = (struct static_tracepoint_ctx *) ctx;
4741
4742 if (!sctx->regcache_initted)
4743 {
4744 sctx->regcache_initted = 1;
4745 init_register_cache (&sctx->regcache, ipa_tdesc, sctx->regspace);
4746 supply_regblock (&sctx->regcache, NULL);
4747 /* Pass down the tracepoint address, because REGS doesn't
4748 include the PC, but we know what it must have been. */
4749 supply_static_tracepoint_registers (&sctx->regcache,
4750 (const unsigned char *)
4751 sctx->regs,
4752 sctx->tpoint->address);
4753 }
4754 regcache = &sctx->regcache;
4755 }
4756 #endif
4757 #else
4758 if (ctx->type == trap_tracepoint)
4759 {
4760 struct trap_tracepoint_ctx *tctx = (struct trap_tracepoint_ctx *) ctx;
4761 regcache = tctx->regcache;
4762 }
4763 #endif
4764
4765 gdb_assert (regcache != NULL);
4766
4767 return regcache;
4768 }
4769
4770 static void
4771 do_action_at_tracepoint (struct tracepoint_hit_ctx *ctx,
4772 CORE_ADDR stop_pc,
4773 struct tracepoint *tpoint,
4774 struct traceframe *tframe,
4775 struct tracepoint_action *taction)
4776 {
4777 enum eval_result_type err;
4778
4779 switch (taction->type)
4780 {
4781 case 'M':
4782 {
4783 struct collect_memory_action *maction;
4784 struct eval_agent_expr_context ax_ctx;
4785
4786 maction = (struct collect_memory_action *) taction;
4787 ax_ctx.regcache = NULL;
4788 ax_ctx.tframe = tframe;
4789 ax_ctx.tpoint = tpoint;
4790
4791 trace_debug ("Want to collect %s bytes at 0x%s (basereg %d)",
4792 pulongest (maction->len),
4793 paddress (maction->addr), maction->basereg);
4794 /* (should use basereg) */
4795 agent_mem_read (&ax_ctx, NULL, (CORE_ADDR) maction->addr,
4796 maction->len);
4797 break;
4798 }
4799 case 'R':
4800 {
4801 unsigned char *regspace;
4802 struct regcache tregcache;
4803 struct regcache *context_regcache;
4804 int regcache_size;
4805
4806 trace_debug ("Want to collect registers");
4807
4808 context_regcache = get_context_regcache (ctx);
4809 regcache_size = register_cache_size (context_regcache->tdesc);
4810
4811 /* Collect all registers for now. */
4812 regspace = add_traceframe_block (tframe, tpoint, 1 + regcache_size);
4813 if (regspace == NULL)
4814 {
4815 trace_debug ("Trace buffer block allocation failed, skipping");
4816 break;
4817 }
4818 /* Identify a register block. */
4819 *regspace = 'R';
4820
4821 /* Wrap the regblock in a register cache (in the stack, we
4822 don't want to malloc here). */
4823 init_register_cache (&tregcache, context_regcache->tdesc,
4824 regspace + 1);
4825
4826 /* Copy the register data to the regblock. */
4827 regcache_cpy (&tregcache, context_regcache);
4828
4829 #ifndef IN_PROCESS_AGENT
4830 /* On some platforms, trap-based tracepoints will have the PC
4831 pointing to the next instruction after the trap, but we
4832 don't want the user or GDB trying to guess whether the
4833 saved PC needs adjusting; so always record the adjusted
4834 stop_pc. Note that we can't use tpoint->address instead,
4835 since it will be wrong for while-stepping actions. This
4836 adjustment is a nop for fast tracepoints collected from the
4837 in-process lib (but not if GDBserver is collecting one
4838 preemptively), since the PC had already been adjusted to
4839 contain the tracepoint's address by the jump pad. */
4840 trace_debug ("Storing stop pc (0x%s) in regblock",
4841 paddress (stop_pc));
4842
4843 /* This changes the regblock, not the thread's
4844 regcache. */
4845 regcache_write_pc (&tregcache, stop_pc);
4846 #endif
4847 }
4848 break;
4849 case 'X':
4850 {
4851 struct eval_expr_action *eaction;
4852 struct eval_agent_expr_context ax_ctx;
4853
4854 eaction = (struct eval_expr_action *) taction;
4855 ax_ctx.regcache = get_context_regcache (ctx);
4856 ax_ctx.tframe = tframe;
4857 ax_ctx.tpoint = tpoint;
4858
4859 trace_debug ("Want to evaluate expression");
4860
4861 err = gdb_eval_agent_expr (&ax_ctx, eaction->expr, NULL);
4862
4863 if (err != expr_eval_no_error)
4864 {
4865 record_tracepoint_error (tpoint, "action expression", err);
4866 return;
4867 }
4868 }
4869 break;
4870 case 'L':
4871 {
4872 #if defined IN_PROCESS_AGENT && defined HAVE_UST
4873 trace_debug ("Want to collect static trace data");
4874 collect_ust_data_at_tracepoint (ctx, tframe);
4875 #else
4876 trace_debug ("warning: collecting static trace data, "
4877 "but static tracepoints are not supported");
4878 #endif
4879 }
4880 break;
4881 default:
4882 trace_debug ("unknown trace action '%c', ignoring", taction->type);
4883 break;
4884 }
4885 }
4886
4887 static int
4888 condition_true_at_tracepoint (struct tracepoint_hit_ctx *ctx,
4889 struct tracepoint *tpoint)
4890 {
4891 ULONGEST value = 0;
4892 enum eval_result_type err;
4893
4894 /* Presently, gdbserver doesn't run compiled conditions, only the
4895 IPA does. If the program stops at a fast tracepoint's address
4896 (e.g., due to a breakpoint, trap tracepoint, or stepping),
4897 gdbserver preemptively collect the fast tracepoint. Later, on
4898 resume, gdbserver steps over the fast tracepoint like it steps
4899 over breakpoints, so that the IPA doesn't see that fast
4900 tracepoint. This avoids double collects of fast tracepoints in
4901 that stopping scenario. Having gdbserver itself handle the fast
4902 tracepoint gives the user a consistent view of when fast or trap
4903 tracepoints are collected, compared to an alternative where only
4904 trap tracepoints are collected on stop, and fast tracepoints on
4905 resume. When a fast tracepoint is being processed by gdbserver,
4906 it is always the non-compiled condition expression that is
4907 used. */
4908 #ifdef IN_PROCESS_AGENT
4909 if (tpoint->compiled_cond)
4910 {
4911 struct fast_tracepoint_ctx *fctx = (struct fast_tracepoint_ctx *) ctx;
4912 err = ((condfn) (uintptr_t) (tpoint->compiled_cond)) (fctx->regs, &value);
4913 }
4914 else
4915 #endif
4916 {
4917 struct eval_agent_expr_context ax_ctx;
4918
4919 ax_ctx.regcache = get_context_regcache (ctx);
4920 ax_ctx.tframe = NULL;
4921 ax_ctx.tpoint = tpoint;
4922
4923 err = gdb_eval_agent_expr (&ax_ctx, tpoint->cond, &value);
4924 }
4925 if (err != expr_eval_no_error)
4926 {
4927 record_tracepoint_error (tpoint, "condition", err);
4928 /* The error case must return false. */
4929 return 0;
4930 }
4931
4932 trace_debug ("Tracepoint %d at 0x%s condition evals to %s",
4933 tpoint->number, paddress (tpoint->address),
4934 pulongest (value));
4935 return (value ? 1 : 0);
4936 }
4937
4938 /* Do memory copies for bytecodes. */
4939 /* Do the recording of memory blocks for actions and bytecodes. */
4940
4941 int
4942 agent_mem_read (struct eval_agent_expr_context *ctx,
4943 unsigned char *to, CORE_ADDR from, ULONGEST len)
4944 {
4945 unsigned char *mspace;
4946 ULONGEST remaining = len;
4947 unsigned short blocklen;
4948
4949 /* If a 'to' buffer is specified, use it. */
4950 if (to != NULL)
4951 {
4952 read_inferior_memory (from, to, len);
4953 return 0;
4954 }
4955
4956 /* Otherwise, create a new memory block in the trace buffer. */
4957 while (remaining > 0)
4958 {
4959 size_t sp;
4960
4961 blocklen = (remaining > 65535 ? 65535 : remaining);
4962 sp = 1 + sizeof (from) + sizeof (blocklen) + blocklen;
4963 mspace = add_traceframe_block (ctx->tframe, ctx->tpoint, sp);
4964 if (mspace == NULL)
4965 return 1;
4966 /* Identify block as a memory block. */
4967 *mspace = 'M';
4968 ++mspace;
4969 /* Record address and size. */
4970 memcpy (mspace, &from, sizeof (from));
4971 mspace += sizeof (from);
4972 memcpy (mspace, &blocklen, sizeof (blocklen));
4973 mspace += sizeof (blocklen);
4974 /* Record the memory block proper. */
4975 read_inferior_memory (from, mspace, blocklen);
4976 trace_debug ("%d bytes recorded", blocklen);
4977 remaining -= blocklen;
4978 from += blocklen;
4979 }
4980 return 0;
4981 }
4982
4983 int
4984 agent_mem_read_string (struct eval_agent_expr_context *ctx,
4985 unsigned char *to, CORE_ADDR from, ULONGEST len)
4986 {
4987 unsigned char *buf, *mspace;
4988 ULONGEST remaining = len;
4989 unsigned short blocklen, i;
4990
4991 /* To save a bit of space, block lengths are 16-bit, so break large
4992 requests into multiple blocks. Bordering on overkill for strings,
4993 but it could happen that someone specifies a large max length. */
4994 while (remaining > 0)
4995 {
4996 size_t sp;
4997
4998 blocklen = (remaining > 65535 ? 65535 : remaining);
4999 /* We want working space to accumulate nonzero bytes, since
5000 traceframes must have a predecided size (otherwise it gets
5001 harder to wrap correctly for the circular case, etc). */
5002 buf = (unsigned char *) xmalloc (blocklen + 1);
5003 for (i = 0; i < blocklen; ++i)
5004 {
5005 /* Read the string one byte at a time, in case the string is
5006 at the end of a valid memory area - we don't want a
5007 correctly-terminated string to engender segvio
5008 complaints. */
5009 read_inferior_memory (from + i, buf + i, 1);
5010
5011 if (buf[i] == '\0')
5012 {
5013 blocklen = i + 1;
5014 /* Make sure outer loop stops now too. */
5015 remaining = blocklen;
5016 break;
5017 }
5018 }
5019 sp = 1 + sizeof (from) + sizeof (blocklen) + blocklen;
5020 mspace = add_traceframe_block (ctx->tframe, ctx->tpoint, sp);
5021 if (mspace == NULL)
5022 {
5023 xfree (buf);
5024 return 1;
5025 }
5026 /* Identify block as a memory block. */
5027 *mspace = 'M';
5028 ++mspace;
5029 /* Record address and size. */
5030 memcpy ((void *) mspace, (void *) &from, sizeof (from));
5031 mspace += sizeof (from);
5032 memcpy ((void *) mspace, (void *) &blocklen, sizeof (blocklen));
5033 mspace += sizeof (blocklen);
5034 /* Copy the string contents. */
5035 memcpy ((void *) mspace, (void *) buf, blocklen);
5036 remaining -= blocklen;
5037 from += blocklen;
5038 xfree (buf);
5039 }
5040 return 0;
5041 }
5042
5043 /* Record the value of a trace state variable. */
5044
5045 int
5046 agent_tsv_read (struct eval_agent_expr_context *ctx, int n)
5047 {
5048 unsigned char *vspace;
5049 LONGEST val;
5050
5051 vspace = add_traceframe_block (ctx->tframe, ctx->tpoint,
5052 1 + sizeof (n) + sizeof (LONGEST));
5053 if (vspace == NULL)
5054 return 1;
5055 /* Identify block as a variable. */
5056 *vspace = 'V';
5057 /* Record variable's number and value. */
5058 memcpy (vspace + 1, &n, sizeof (n));
5059 val = get_trace_state_variable_value (n);
5060 memcpy (vspace + 1 + sizeof (n), &val, sizeof (val));
5061 trace_debug ("Variable %d recorded", n);
5062 return 0;
5063 }
5064
5065 #ifndef IN_PROCESS_AGENT
5066
5067 /* Callback for traceframe_walk_blocks, used to find a given block
5068 type in a traceframe. */
5069
5070 static int
5071 match_blocktype (char blocktype, unsigned char *dataptr, void *data)
5072 {
5073 char *wantedp = (char *) data;
5074
5075 if (*wantedp == blocktype)
5076 return 1;
5077
5078 return 0;
5079 }
5080
5081 /* Walk over all traceframe blocks of the traceframe buffer starting
5082 at DATABASE, of DATASIZE bytes long, and call CALLBACK for each
5083 block found, passing in DATA unmodified. If CALLBACK returns true,
5084 this returns a pointer to where the block is found. Returns NULL
5085 if no callback call returned true, indicating that all blocks have
5086 been walked. */
5087
5088 static unsigned char *
5089 traceframe_walk_blocks (unsigned char *database, unsigned int datasize,
5090 int tfnum,
5091 int (*callback) (char blocktype,
5092 unsigned char *dataptr,
5093 void *data),
5094 void *data)
5095 {
5096 unsigned char *dataptr;
5097
5098 if (datasize == 0)
5099 {
5100 trace_debug ("traceframe %d has no data", tfnum);
5101 return NULL;
5102 }
5103
5104 /* Iterate through a traceframe's blocks, looking for a block of the
5105 requested type. */
5106 for (dataptr = database;
5107 dataptr < database + datasize;
5108 /* nothing */)
5109 {
5110 char blocktype;
5111 unsigned short mlen;
5112
5113 if (dataptr == trace_buffer_wrap)
5114 {
5115 /* Adjust to reflect wrapping part of the frame around to
5116 the beginning. */
5117 datasize = dataptr - database;
5118 dataptr = database = trace_buffer_lo;
5119 }
5120
5121 blocktype = *dataptr++;
5122
5123 if ((*callback) (blocktype, dataptr, data))
5124 return dataptr;
5125
5126 switch (blocktype)
5127 {
5128 case 'R':
5129 /* Skip over the registers block. */
5130 dataptr += current_target_desc ()->registers_size;
5131 break;
5132 case 'M':
5133 /* Skip over the memory block. */
5134 dataptr += sizeof (CORE_ADDR);
5135 memcpy (&mlen, dataptr, sizeof (mlen));
5136 dataptr += (sizeof (mlen) + mlen);
5137 break;
5138 case 'V':
5139 /* Skip over the TSV block. */
5140 dataptr += (sizeof (int) + sizeof (LONGEST));
5141 break;
5142 case 'S':
5143 /* Skip over the static trace data block. */
5144 memcpy (&mlen, dataptr, sizeof (mlen));
5145 dataptr += (sizeof (mlen) + mlen);
5146 break;
5147 default:
5148 trace_debug ("traceframe %d has unknown block type 0x%x",
5149 tfnum, blocktype);
5150 return NULL;
5151 }
5152 }
5153
5154 return NULL;
5155 }
5156
5157 /* Look for the block of type TYPE_WANTED in the traceframe starting
5158 at DATABASE of DATASIZE bytes long. TFNUM is the traceframe
5159 number. */
5160
5161 static unsigned char *
5162 traceframe_find_block_type (unsigned char *database, unsigned int datasize,
5163 int tfnum, char type_wanted)
5164 {
5165 return traceframe_walk_blocks (database, datasize, tfnum,
5166 match_blocktype, &type_wanted);
5167 }
5168
5169 static unsigned char *
5170 traceframe_find_regblock (struct traceframe *tframe, int tfnum)
5171 {
5172 unsigned char *regblock;
5173
5174 regblock = traceframe_find_block_type (tframe->data,
5175 tframe->data_size,
5176 tfnum, 'R');
5177
5178 if (regblock == NULL)
5179 trace_debug ("traceframe %d has no register data", tfnum);
5180
5181 return regblock;
5182 }
5183
5184 /* Get registers from a traceframe. */
5185
5186 int
5187 fetch_traceframe_registers (int tfnum, struct regcache *regcache, int regnum)
5188 {
5189 unsigned char *dataptr;
5190 struct tracepoint *tpoint;
5191 struct traceframe *tframe;
5192
5193 tframe = find_traceframe (tfnum);
5194
5195 if (tframe == NULL)
5196 {
5197 trace_debug ("traceframe %d not found", tfnum);
5198 return 1;
5199 }
5200
5201 dataptr = traceframe_find_regblock (tframe, tfnum);
5202 if (dataptr == NULL)
5203 {
5204 /* Mark registers unavailable. */
5205 supply_regblock (regcache, NULL);
5206
5207 /* We can generally guess at a PC, although this will be
5208 misleading for while-stepping frames and multi-location
5209 tracepoints. */
5210 tpoint = find_next_tracepoint_by_number (NULL, tframe->tpnum);
5211 if (tpoint != NULL)
5212 regcache_write_pc (regcache, tpoint->address);
5213 }
5214 else
5215 supply_regblock (regcache, dataptr);
5216
5217 return 0;
5218 }
5219
5220 static CORE_ADDR
5221 traceframe_get_pc (struct traceframe *tframe)
5222 {
5223 struct regcache regcache;
5224 unsigned char *dataptr;
5225 const struct target_desc *tdesc = current_target_desc ();
5226
5227 dataptr = traceframe_find_regblock (tframe, -1);
5228 if (dataptr == NULL)
5229 return 0;
5230
5231 init_register_cache (&regcache, tdesc, dataptr);
5232 return regcache_read_pc (&regcache);
5233 }
5234
5235 /* Read a requested block of memory from a trace frame. */
5236
5237 int
5238 traceframe_read_mem (int tfnum, CORE_ADDR addr,
5239 unsigned char *buf, ULONGEST length,
5240 ULONGEST *nbytes)
5241 {
5242 struct traceframe *tframe;
5243 unsigned char *database, *dataptr;
5244 unsigned int datasize;
5245 CORE_ADDR maddr;
5246 unsigned short mlen;
5247
5248 trace_debug ("traceframe_read_mem");
5249
5250 tframe = find_traceframe (tfnum);
5251
5252 if (!tframe)
5253 {
5254 trace_debug ("traceframe %d not found", tfnum);
5255 return 1;
5256 }
5257
5258 datasize = tframe->data_size;
5259 database = dataptr = &tframe->data[0];
5260
5261 /* Iterate through a traceframe's blocks, looking for memory. */
5262 while ((dataptr = traceframe_find_block_type (dataptr,
5263 datasize
5264 - (dataptr - database),
5265 tfnum, 'M')) != NULL)
5266 {
5267 memcpy (&maddr, dataptr, sizeof (maddr));
5268 dataptr += sizeof (maddr);
5269 memcpy (&mlen, dataptr, sizeof (mlen));
5270 dataptr += sizeof (mlen);
5271 trace_debug ("traceframe %d has %d bytes at %s",
5272 tfnum, mlen, paddress (maddr));
5273
5274 /* If the block includes the first part of the desired range,
5275 return as much it has; GDB will re-request the remainder,
5276 which might be in a different block of this trace frame. */
5277 if (maddr <= addr && addr < (maddr + mlen))
5278 {
5279 ULONGEST amt = (maddr + mlen) - addr;
5280 if (amt > length)
5281 amt = length;
5282
5283 memcpy (buf, dataptr + (addr - maddr), amt);
5284 *nbytes = amt;
5285 return 0;
5286 }
5287
5288 /* Skip over this block. */
5289 dataptr += mlen;
5290 }
5291
5292 trace_debug ("traceframe %d has no memory data for the desired region",
5293 tfnum);
5294
5295 *nbytes = 0;
5296 return 0;
5297 }
5298
5299 static int
5300 traceframe_read_tsv (int tsvnum, LONGEST *val)
5301 {
5302 client_state &cs = get_client_state ();
5303 int tfnum;
5304 struct traceframe *tframe;
5305 unsigned char *database, *dataptr;
5306 unsigned int datasize;
5307 int vnum;
5308 int found = 0;
5309
5310 trace_debug ("traceframe_read_tsv");
5311
5312 tfnum = cs.current_traceframe;
5313
5314 if (tfnum < 0)
5315 {
5316 trace_debug ("no current traceframe");
5317 return 1;
5318 }
5319
5320 tframe = find_traceframe (tfnum);
5321
5322 if (tframe == NULL)
5323 {
5324 trace_debug ("traceframe %d not found", tfnum);
5325 return 1;
5326 }
5327
5328 datasize = tframe->data_size;
5329 database = dataptr = &tframe->data[0];
5330
5331 /* Iterate through a traceframe's blocks, looking for the last
5332 matched tsv. */
5333 while ((dataptr = traceframe_find_block_type (dataptr,
5334 datasize
5335 - (dataptr - database),
5336 tfnum, 'V')) != NULL)
5337 {
5338 memcpy (&vnum, dataptr, sizeof (vnum));
5339 dataptr += sizeof (vnum);
5340
5341 trace_debug ("traceframe %d has variable %d", tfnum, vnum);
5342
5343 /* Check that this is the variable we want. */
5344 if (tsvnum == vnum)
5345 {
5346 memcpy (val, dataptr, sizeof (*val));
5347 found = 1;
5348 }
5349
5350 /* Skip over this block. */
5351 dataptr += sizeof (LONGEST);
5352 }
5353
5354 if (!found)
5355 trace_debug ("traceframe %d has no data for variable %d",
5356 tfnum, tsvnum);
5357 return !found;
5358 }
5359
5360 /* Read a requested block of static tracepoint data from a trace
5361 frame. */
5362
5363 int
5364 traceframe_read_sdata (int tfnum, ULONGEST offset,
5365 unsigned char *buf, ULONGEST length,
5366 ULONGEST *nbytes)
5367 {
5368 struct traceframe *tframe;
5369 unsigned char *database, *dataptr;
5370 unsigned int datasize;
5371 unsigned short mlen;
5372
5373 trace_debug ("traceframe_read_sdata");
5374
5375 tframe = find_traceframe (tfnum);
5376
5377 if (!tframe)
5378 {
5379 trace_debug ("traceframe %d not found", tfnum);
5380 return 1;
5381 }
5382
5383 datasize = tframe->data_size;
5384 database = &tframe->data[0];
5385
5386 /* Iterate through a traceframe's blocks, looking for static
5387 tracepoint data. */
5388 dataptr = traceframe_find_block_type (database, datasize,
5389 tfnum, 'S');
5390 if (dataptr != NULL)
5391 {
5392 memcpy (&mlen, dataptr, sizeof (mlen));
5393 dataptr += sizeof (mlen);
5394 if (offset < mlen)
5395 {
5396 if (offset + length > mlen)
5397 length = mlen - offset;
5398
5399 memcpy (buf, dataptr, length);
5400 *nbytes = length;
5401 }
5402 else
5403 *nbytes = 0;
5404 return 0;
5405 }
5406
5407 trace_debug ("traceframe %d has no static trace data", tfnum);
5408
5409 *nbytes = 0;
5410 return 0;
5411 }
5412
5413 /* Callback for traceframe_walk_blocks. Builds a traceframe-info
5414 object. DATA is pointer to a struct buffer holding the
5415 traceframe-info object being built. */
5416
5417 static int
5418 build_traceframe_info_xml (char blocktype, unsigned char *dataptr, void *data)
5419 {
5420 struct buffer *buffer = (struct buffer *) data;
5421
5422 switch (blocktype)
5423 {
5424 case 'M':
5425 {
5426 unsigned short mlen;
5427 CORE_ADDR maddr;
5428
5429 memcpy (&maddr, dataptr, sizeof (maddr));
5430 dataptr += sizeof (maddr);
5431 memcpy (&mlen, dataptr, sizeof (mlen));
5432 dataptr += sizeof (mlen);
5433 buffer_xml_printf (buffer,
5434 "<memory start=\"0x%s\" length=\"0x%s\"/>\n",
5435 paddress (maddr), phex_nz (mlen, sizeof (mlen)));
5436 break;
5437 }
5438 case 'V':
5439 {
5440 int vnum;
5441
5442 memcpy (&vnum, dataptr, sizeof (vnum));
5443 buffer_xml_printf (buffer, "<tvar id=\"%d\"/>\n", vnum);
5444 break;
5445 }
5446 case 'R':
5447 case 'S':
5448 {
5449 break;
5450 }
5451 default:
5452 warning ("Unhandled trace block type (%d) '%c ' "
5453 "while building trace frame info.",
5454 blocktype, blocktype);
5455 break;
5456 }
5457
5458 return 0;
5459 }
5460
5461 /* Build a traceframe-info object for traceframe number TFNUM into
5462 BUFFER. */
5463
5464 int
5465 traceframe_read_info (int tfnum, struct buffer *buffer)
5466 {
5467 struct traceframe *tframe;
5468
5469 trace_debug ("traceframe_read_info");
5470
5471 tframe = find_traceframe (tfnum);
5472
5473 if (!tframe)
5474 {
5475 trace_debug ("traceframe %d not found", tfnum);
5476 return 1;
5477 }
5478
5479 buffer_grow_str (buffer, "<traceframe-info>\n");
5480 traceframe_walk_blocks (tframe->data, tframe->data_size,
5481 tfnum, build_traceframe_info_xml, buffer);
5482 buffer_grow_str0 (buffer, "</traceframe-info>\n");
5483 return 0;
5484 }
5485
5486 /* Return the first fast tracepoint whose jump pad contains PC. */
5487
5488 static struct tracepoint *
5489 fast_tracepoint_from_jump_pad_address (CORE_ADDR pc)
5490 {
5491 struct tracepoint *tpoint;
5492
5493 for (tpoint = tracepoints; tpoint; tpoint = tpoint->next)
5494 if (tpoint->type == fast_tracepoint)
5495 if (tpoint->jump_pad <= pc && pc < tpoint->jump_pad_end)
5496 return tpoint;
5497
5498 return NULL;
5499 }
5500
5501 /* Return the first fast tracepoint whose trampoline contains PC. */
5502
5503 static struct tracepoint *
5504 fast_tracepoint_from_trampoline_address (CORE_ADDR pc)
5505 {
5506 struct tracepoint *tpoint;
5507
5508 for (tpoint = tracepoints; tpoint; tpoint = tpoint->next)
5509 {
5510 if (tpoint->type == fast_tracepoint
5511 && tpoint->trampoline <= pc && pc < tpoint->trampoline_end)
5512 return tpoint;
5513 }
5514
5515 return NULL;
5516 }
5517
5518 /* Return GDBserver's tracepoint that matches the IP Agent's
5519 tracepoint object that lives at IPA_TPOINT_OBJ in the IP Agent's
5520 address space. */
5521
5522 static struct tracepoint *
5523 fast_tracepoint_from_ipa_tpoint_address (CORE_ADDR ipa_tpoint_obj)
5524 {
5525 struct tracepoint *tpoint;
5526
5527 for (tpoint = tracepoints; tpoint; tpoint = tpoint->next)
5528 if (tpoint->type == fast_tracepoint)
5529 if (tpoint->obj_addr_on_target == ipa_tpoint_obj)
5530 return tpoint;
5531
5532 return NULL;
5533 }
5534
5535 #endif
5536
5537 /* The type of the object that is used to synchronize fast tracepoint
5538 collection. */
5539
5540 typedef struct collecting_t
5541 {
5542 /* The fast tracepoint number currently collecting. */
5543 uintptr_t tpoint;
5544
5545 /* A number that GDBserver can use to identify the thread that is
5546 presently holding the collect lock. This need not (and usually
5547 is not) the thread id, as getting the current thread ID usually
5548 requires a system call, which we want to avoid like the plague.
5549 Usually this is thread's TCB, found in the TLS (pseudo-)
5550 register, which is readable with a single insn on several
5551 architectures. */
5552 uintptr_t thread_area;
5553 } collecting_t;
5554
5555 #ifndef IN_PROCESS_AGENT
5556
5557 void
5558 force_unlock_trace_buffer (void)
5559 {
5560 write_inferior_data_pointer (ipa_sym_addrs.addr_collecting, 0);
5561 }
5562
5563 /* Check if the thread identified by THREAD_AREA which is stopped at
5564 STOP_PC, is presently locking the fast tracepoint collection, and
5565 if so, gather some status of said collection. Returns 0 if the
5566 thread isn't collecting or in the jump pad at all. 1, if in the
5567 jump pad (or within gdb_collect) and hasn't executed the adjusted
5568 original insn yet (can set a breakpoint there and run to it). 2,
5569 if presently executing the adjusted original insn --- in which
5570 case, if we want to move the thread out of the jump pad, we need to
5571 single-step it until this function returns 0. */
5572
5573 fast_tpoint_collect_result
5574 fast_tracepoint_collecting (CORE_ADDR thread_area,
5575 CORE_ADDR stop_pc,
5576 struct fast_tpoint_collect_status *status)
5577 {
5578 CORE_ADDR ipa_collecting;
5579 CORE_ADDR ipa_gdb_jump_pad_buffer, ipa_gdb_jump_pad_buffer_end;
5580 CORE_ADDR ipa_gdb_trampoline_buffer;
5581 CORE_ADDR ipa_gdb_trampoline_buffer_end;
5582 struct tracepoint *tpoint;
5583 int needs_breakpoint;
5584
5585 /* The thread THREAD_AREA is either:
5586
5587 0. not collecting at all, not within the jump pad, or within
5588 gdb_collect or one of its callees.
5589
5590 1. in the jump pad and haven't reached gdb_collect
5591
5592 2. within gdb_collect (out of the jump pad) (collect is set)
5593
5594 3. we're in the jump pad, after gdb_collect having returned,
5595 possibly executing the adjusted insns.
5596
5597 For cases 1 and 3, `collecting' may or not be set. The jump pad
5598 doesn't have any complicated jump logic, so we can tell if the
5599 thread is executing the adjust original insn or not by just
5600 matching STOP_PC with known jump pad addresses. If we it isn't
5601 yet executing the original insn, set a breakpoint there, and let
5602 the thread run to it, so to quickly step over a possible (many
5603 insns) gdb_collect call. Otherwise, or when the breakpoint is
5604 hit, only a few (small number of) insns are left to be executed
5605 in the jump pad. Single-step the thread until it leaves the
5606 jump pad. */
5607
5608 again:
5609 tpoint = NULL;
5610 needs_breakpoint = 0;
5611 trace_debug ("fast_tracepoint_collecting");
5612
5613 if (read_inferior_data_pointer (ipa_sym_addrs.addr_gdb_jump_pad_buffer,
5614 &ipa_gdb_jump_pad_buffer))
5615 {
5616 internal_error (__FILE__, __LINE__,
5617 "error extracting `gdb_jump_pad_buffer'");
5618 }
5619 if (read_inferior_data_pointer (ipa_sym_addrs.addr_gdb_jump_pad_buffer_end,
5620 &ipa_gdb_jump_pad_buffer_end))
5621 {
5622 internal_error (__FILE__, __LINE__,
5623 "error extracting `gdb_jump_pad_buffer_end'");
5624 }
5625
5626 if (read_inferior_data_pointer (ipa_sym_addrs.addr_gdb_trampoline_buffer,
5627 &ipa_gdb_trampoline_buffer))
5628 {
5629 internal_error (__FILE__, __LINE__,
5630 "error extracting `gdb_trampoline_buffer'");
5631 }
5632 if (read_inferior_data_pointer (ipa_sym_addrs.addr_gdb_trampoline_buffer_end,
5633 &ipa_gdb_trampoline_buffer_end))
5634 {
5635 internal_error (__FILE__, __LINE__,
5636 "error extracting `gdb_trampoline_buffer_end'");
5637 }
5638
5639 if (ipa_gdb_jump_pad_buffer <= stop_pc
5640 && stop_pc < ipa_gdb_jump_pad_buffer_end)
5641 {
5642 /* We can tell which tracepoint(s) the thread is collecting by
5643 matching the jump pad address back to the tracepoint. */
5644 tpoint = fast_tracepoint_from_jump_pad_address (stop_pc);
5645 if (tpoint == NULL)
5646 {
5647 warning ("in jump pad, but no matching tpoint?");
5648 return fast_tpoint_collect_result::not_collecting;
5649 }
5650 else
5651 {
5652 trace_debug ("in jump pad of tpoint (%d, %s); jump_pad(%s, %s); "
5653 "adj_insn(%s, %s)",
5654 tpoint->number, paddress (tpoint->address),
5655 paddress (tpoint->jump_pad),
5656 paddress (tpoint->jump_pad_end),
5657 paddress (tpoint->adjusted_insn_addr),
5658 paddress (tpoint->adjusted_insn_addr_end));
5659 }
5660
5661 /* Definitely in the jump pad. May or may not need
5662 fast-exit-jump-pad breakpoint. */
5663 if (tpoint->jump_pad <= stop_pc
5664 && stop_pc < tpoint->adjusted_insn_addr)
5665 needs_breakpoint = 1;
5666 }
5667 else if (ipa_gdb_trampoline_buffer <= stop_pc
5668 && stop_pc < ipa_gdb_trampoline_buffer_end)
5669 {
5670 /* We can tell which tracepoint(s) the thread is collecting by
5671 matching the trampoline address back to the tracepoint. */
5672 tpoint = fast_tracepoint_from_trampoline_address (stop_pc);
5673 if (tpoint == NULL)
5674 {
5675 warning ("in trampoline, but no matching tpoint?");
5676 return fast_tpoint_collect_result::not_collecting;
5677 }
5678 else
5679 {
5680 trace_debug ("in trampoline of tpoint (%d, %s); trampoline(%s, %s)",
5681 tpoint->number, paddress (tpoint->address),
5682 paddress (tpoint->trampoline),
5683 paddress (tpoint->trampoline_end));
5684 }
5685
5686 /* Have not reached jump pad yet, but treat the trampoline as a
5687 part of the jump pad that is before the adjusted original
5688 instruction. */
5689 needs_breakpoint = 1;
5690 }
5691 else
5692 {
5693 collecting_t ipa_collecting_obj;
5694
5695 /* If `collecting' is set/locked, then the THREAD_AREA thread
5696 may or not be the one holding the lock. We have to read the
5697 lock to find out. */
5698
5699 if (read_inferior_data_pointer (ipa_sym_addrs.addr_collecting,
5700 &ipa_collecting))
5701 {
5702 trace_debug ("fast_tracepoint_collecting:"
5703 " failed reading 'collecting' in the inferior");
5704 return fast_tpoint_collect_result::not_collecting;
5705 }
5706
5707 if (!ipa_collecting)
5708 {
5709 trace_debug ("fast_tracepoint_collecting: not collecting"
5710 " (and nobody is).");
5711 return fast_tpoint_collect_result::not_collecting;
5712 }
5713
5714 /* Some thread is collecting. Check which. */
5715 if (read_inferior_memory (ipa_collecting,
5716 (unsigned char *) &ipa_collecting_obj,
5717 sizeof (ipa_collecting_obj)) != 0)
5718 goto again;
5719
5720 if (ipa_collecting_obj.thread_area != thread_area)
5721 {
5722 trace_debug ("fast_tracepoint_collecting: not collecting "
5723 "(another thread is)");
5724 return fast_tpoint_collect_result::not_collecting;
5725 }
5726
5727 tpoint
5728 = fast_tracepoint_from_ipa_tpoint_address (ipa_collecting_obj.tpoint);
5729 if (tpoint == NULL)
5730 {
5731 warning ("fast_tracepoint_collecting: collecting, "
5732 "but tpoint %s not found?",
5733 paddress ((CORE_ADDR) ipa_collecting_obj.tpoint));
5734 return fast_tpoint_collect_result::not_collecting;
5735 }
5736
5737 /* The thread is within `gdb_collect', skip over the rest of
5738 fast tracepoint collection quickly using a breakpoint. */
5739 needs_breakpoint = 1;
5740 }
5741
5742 /* The caller wants a bit of status detail. */
5743 if (status != NULL)
5744 {
5745 status->tpoint_num = tpoint->number;
5746 status->tpoint_addr = tpoint->address;
5747 status->adjusted_insn_addr = tpoint->adjusted_insn_addr;
5748 status->adjusted_insn_addr_end = tpoint->adjusted_insn_addr_end;
5749 }
5750
5751 if (needs_breakpoint)
5752 {
5753 /* Hasn't executed the original instruction yet. Set breakpoint
5754 there, and wait till it's hit, then single-step until exiting
5755 the jump pad. */
5756
5757 trace_debug ("\
5758 fast_tracepoint_collecting, returning continue-until-break at %s",
5759 paddress (tpoint->adjusted_insn_addr));
5760
5761 return fast_tpoint_collect_result::before_insn; /* continue */
5762 }
5763 else
5764 {
5765 /* Just single-step until exiting the jump pad. */
5766
5767 trace_debug ("fast_tracepoint_collecting, returning "
5768 "need-single-step (%s-%s)",
5769 paddress (tpoint->adjusted_insn_addr),
5770 paddress (tpoint->adjusted_insn_addr_end));
5771
5772 return fast_tpoint_collect_result::at_insn; /* single-step */
5773 }
5774 }
5775
5776 #endif
5777
5778 #ifdef IN_PROCESS_AGENT
5779
5780 /* The global fast tracepoint collect lock. Points to a collecting_t
5781 object built on the stack by the jump pad, if presently locked;
5782 NULL if it isn't locked. Note that this lock *must* be set while
5783 executing any *function other than the jump pad. See
5784 fast_tracepoint_collecting. */
5785 EXTERN_C_PUSH
5786 IP_AGENT_EXPORT_VAR collecting_t *collecting;
5787 EXTERN_C_POP
5788
5789 /* This routine, called from the jump pad (in asm) is designed to be
5790 called from the jump pads of fast tracepoints, thus it is on the
5791 critical path. */
5792
5793 IP_AGENT_EXPORT_FUNC void
5794 gdb_collect (struct tracepoint *tpoint, unsigned char *regs)
5795 {
5796 struct fast_tracepoint_ctx ctx;
5797 const struct target_desc *ipa_tdesc;
5798
5799 /* Don't do anything until the trace run is completely set up. */
5800 if (!tracing)
5801 return;
5802
5803 ipa_tdesc = get_ipa_tdesc (ipa_tdesc_idx);
5804 ctx.base.type = fast_tracepoint;
5805 ctx.regs = regs;
5806 ctx.regcache_initted = 0;
5807 /* Wrap the regblock in a register cache (in the stack, we don't
5808 want to malloc here). */
5809 ctx.regspace = (unsigned char *) alloca (ipa_tdesc->registers_size);
5810 if (ctx.regspace == NULL)
5811 {
5812 trace_debug ("Trace buffer block allocation failed, skipping");
5813 return;
5814 }
5815
5816 for (ctx.tpoint = tpoint;
5817 ctx.tpoint != NULL && ctx.tpoint->address == tpoint->address;
5818 ctx.tpoint = ctx.tpoint->next)
5819 {
5820 if (!ctx.tpoint->enabled)
5821 continue;
5822
5823 /* Multiple tracepoints of different types, such as fast tracepoint and
5824 static tracepoint, can be set at the same address. */
5825 if (ctx.tpoint->type != tpoint->type)
5826 continue;
5827
5828 /* Test the condition if present, and collect if true. */
5829 if (ctx.tpoint->cond == NULL
5830 || condition_true_at_tracepoint ((struct tracepoint_hit_ctx *) &ctx,
5831 ctx.tpoint))
5832 {
5833 collect_data_at_tracepoint ((struct tracepoint_hit_ctx *) &ctx,
5834 ctx.tpoint->address, ctx.tpoint);
5835
5836 /* Note that this will cause original insns to be written back
5837 to where we jumped from, but that's OK because we're jumping
5838 back to the next whole instruction. This will go badly if
5839 instruction restoration is not atomic though. */
5840 if (stopping_tracepoint
5841 || trace_buffer_is_full
5842 || expr_eval_result != expr_eval_no_error)
5843 {
5844 stop_tracing ();
5845 break;
5846 }
5847 }
5848 else
5849 {
5850 /* If there was a condition and it evaluated to false, the only
5851 way we would stop tracing is if there was an error during
5852 condition expression evaluation. */
5853 if (expr_eval_result != expr_eval_no_error)
5854 {
5855 stop_tracing ();
5856 break;
5857 }
5858 }
5859 }
5860 }
5861
5862 /* These global variables points to the corresponding functions. This is
5863 necessary on powerpc64, where asking for function symbol address from gdb
5864 results in returning the actual code pointer, instead of the descriptor
5865 pointer. */
5866
5867 typedef void (*gdb_collect_ptr_type) (struct tracepoint *, unsigned char *);
5868 typedef ULONGEST (*get_raw_reg_ptr_type) (const unsigned char *, int);
5869 typedef LONGEST (*get_trace_state_variable_value_ptr_type) (int);
5870 typedef void (*set_trace_state_variable_value_ptr_type) (int, LONGEST);
5871
5872 EXTERN_C_PUSH
5873 IP_AGENT_EXPORT_VAR gdb_collect_ptr_type gdb_collect_ptr = gdb_collect;
5874 IP_AGENT_EXPORT_VAR get_raw_reg_ptr_type get_raw_reg_ptr = get_raw_reg;
5875 IP_AGENT_EXPORT_VAR get_trace_state_variable_value_ptr_type
5876 get_trace_state_variable_value_ptr = get_trace_state_variable_value;
5877 IP_AGENT_EXPORT_VAR set_trace_state_variable_value_ptr_type
5878 set_trace_state_variable_value_ptr = set_trace_state_variable_value;
5879 EXTERN_C_POP
5880
5881 #endif
5882
5883 #ifndef IN_PROCESS_AGENT
5884
5885 CORE_ADDR
5886 get_raw_reg_func_addr (void)
5887 {
5888 CORE_ADDR res;
5889 if (read_inferior_data_pointer (ipa_sym_addrs.addr_get_raw_reg_ptr, &res))
5890 {
5891 error ("error extracting get_raw_reg_ptr");
5892 return 0;
5893 }
5894 return res;
5895 }
5896
5897 CORE_ADDR
5898 get_get_tsv_func_addr (void)
5899 {
5900 CORE_ADDR res;
5901 if (read_inferior_data_pointer (
5902 ipa_sym_addrs.addr_get_trace_state_variable_value_ptr, &res))
5903 {
5904 error ("error extracting get_trace_state_variable_value_ptr");
5905 return 0;
5906 }
5907 return res;
5908 }
5909
5910 CORE_ADDR
5911 get_set_tsv_func_addr (void)
5912 {
5913 CORE_ADDR res;
5914 if (read_inferior_data_pointer (
5915 ipa_sym_addrs.addr_set_trace_state_variable_value_ptr, &res))
5916 {
5917 error ("error extracting set_trace_state_variable_value_ptr");
5918 return 0;
5919 }
5920 return res;
5921 }
5922
5923 static void
5924 compile_tracepoint_condition (struct tracepoint *tpoint,
5925 CORE_ADDR *jump_entry)
5926 {
5927 CORE_ADDR entry_point = *jump_entry;
5928 enum eval_result_type err;
5929
5930 trace_debug ("Starting condition compilation for tracepoint %d\n",
5931 tpoint->number);
5932
5933 /* Initialize the global pointer to the code being built. */
5934 current_insn_ptr = *jump_entry;
5935
5936 emit_prologue ();
5937
5938 err = compile_bytecodes (tpoint->cond);
5939
5940 if (err == expr_eval_no_error)
5941 {
5942 emit_epilogue ();
5943
5944 /* Record the beginning of the compiled code. */
5945 tpoint->compiled_cond = entry_point;
5946
5947 trace_debug ("Condition compilation for tracepoint %d complete\n",
5948 tpoint->number);
5949 }
5950 else
5951 {
5952 /* Leave the unfinished code in situ, but don't point to it. */
5953
5954 tpoint->compiled_cond = 0;
5955
5956 trace_debug ("Condition compilation for tracepoint %d failed, "
5957 "error code %d",
5958 tpoint->number, err);
5959 }
5960
5961 /* Update the code pointer passed in. Note that we do this even if
5962 the compile fails, so that we can look at the partial results
5963 instead of letting them be overwritten. */
5964 *jump_entry = current_insn_ptr;
5965
5966 /* Leave a gap, to aid dump decipherment. */
5967 *jump_entry += 16;
5968 }
5969
5970 /* The base pointer of the IPA's heap. This is the only memory the
5971 IPA is allowed to use. The IPA should _not_ call the inferior's
5972 `malloc' during operation. That'd be slow, and, most importantly,
5973 it may not be safe. We may be collecting a tracepoint in a signal
5974 handler, for example. */
5975 static CORE_ADDR target_tp_heap;
5976
5977 /* Allocate at least SIZE bytes of memory from the IPA heap, aligned
5978 to 8 bytes. */
5979
5980 static CORE_ADDR
5981 target_malloc (ULONGEST size)
5982 {
5983 CORE_ADDR ptr;
5984
5985 if (target_tp_heap == 0)
5986 {
5987 /* We have the pointer *address*, need what it points to. */
5988 if (read_inferior_data_pointer (ipa_sym_addrs.addr_gdb_tp_heap_buffer,
5989 &target_tp_heap))
5990 {
5991 internal_error (__FILE__, __LINE__,
5992 "couldn't get target heap head pointer");
5993 }
5994 }
5995
5996 ptr = target_tp_heap;
5997 target_tp_heap += size;
5998
5999 /* Pad to 8-byte alignment. */
6000 target_tp_heap = ((target_tp_heap + 7) & ~0x7);
6001
6002 return ptr;
6003 }
6004
6005 static CORE_ADDR
6006 download_agent_expr (struct agent_expr *expr)
6007 {
6008 CORE_ADDR expr_addr;
6009 CORE_ADDR expr_bytes;
6010
6011 expr_addr = target_malloc (sizeof (*expr));
6012 target_write_memory (expr_addr, (unsigned char *) expr, sizeof (*expr));
6013
6014 expr_bytes = target_malloc (expr->length);
6015 write_inferior_data_pointer (expr_addr + offsetof (struct agent_expr, bytes),
6016 expr_bytes);
6017 target_write_memory (expr_bytes, expr->bytes, expr->length);
6018
6019 return expr_addr;
6020 }
6021
6022 /* Align V up to N bits. */
6023 #define UALIGN(V, N) (((V) + ((N) - 1)) & ~((N) - 1))
6024
6025 /* Sync tracepoint with IPA, but leave maintenance of linked list to caller. */
6026
6027 static void
6028 download_tracepoint_1 (struct tracepoint *tpoint)
6029 {
6030 struct tracepoint target_tracepoint;
6031 CORE_ADDR tpptr = 0;
6032
6033 gdb_assert (tpoint->type == fast_tracepoint
6034 || tpoint->type == static_tracepoint);
6035
6036 if (tpoint->cond != NULL && target_emit_ops () != NULL)
6037 {
6038 CORE_ADDR jentry, jump_entry;
6039
6040 jentry = jump_entry = get_jump_space_head ();
6041
6042 if (tpoint->cond != NULL)
6043 {
6044 /* Pad to 8-byte alignment. (needed?) */
6045 /* Actually this should be left for the target to
6046 decide. */
6047 jentry = UALIGN (jentry, 8);
6048
6049 compile_tracepoint_condition (tpoint, &jentry);
6050 }
6051
6052 /* Pad to 8-byte alignment. */
6053 jentry = UALIGN (jentry, 8);
6054 claim_jump_space (jentry - jump_entry);
6055 }
6056
6057 target_tracepoint = *tpoint;
6058
6059 tpptr = target_malloc (sizeof (*tpoint));
6060 tpoint->obj_addr_on_target = tpptr;
6061
6062 /* Write the whole object. We'll fix up its pointers in a bit.
6063 Assume no next for now. This is fixed up above on the next
6064 iteration, if there's any. */
6065 target_tracepoint.next = NULL;
6066 /* Need to clear this here too, since we're downloading the
6067 tracepoints before clearing our own copy. */
6068 target_tracepoint.hit_count = 0;
6069
6070 target_write_memory (tpptr, (unsigned char *) &target_tracepoint,
6071 sizeof (target_tracepoint));
6072
6073 if (tpoint->cond)
6074 write_inferior_data_pointer (tpptr
6075 + offsetof (struct tracepoint, cond),
6076 download_agent_expr (tpoint->cond));
6077
6078 if (tpoint->numactions)
6079 {
6080 int i;
6081 CORE_ADDR actions_array;
6082
6083 /* The pointers array. */
6084 actions_array
6085 = target_malloc (sizeof (*tpoint->actions) * tpoint->numactions);
6086 write_inferior_data_pointer (tpptr + offsetof (struct tracepoint,
6087 actions),
6088 actions_array);
6089
6090 /* Now for each pointer, download the action. */
6091 for (i = 0; i < tpoint->numactions; i++)
6092 {
6093 struct tracepoint_action *action = tpoint->actions[i];
6094 CORE_ADDR ipa_action = tracepoint_action_download (action);
6095
6096 if (ipa_action != 0)
6097 write_inferior_data_pointer (actions_array
6098 + i * sizeof (*tpoint->actions),
6099 ipa_action);
6100 }
6101 }
6102 }
6103
6104 #define IPA_PROTO_FAST_TRACE_FLAG 0
6105 #define IPA_PROTO_FAST_TRACE_ADDR_ON_TARGET 2
6106 #define IPA_PROTO_FAST_TRACE_JUMP_PAD 10
6107 #define IPA_PROTO_FAST_TRACE_FJUMP_SIZE 18
6108 #define IPA_PROTO_FAST_TRACE_FJUMP_INSN 22
6109
6110 /* Send a command to agent to download and install tracepoint TPOINT. */
6111
6112 static int
6113 tracepoint_send_agent (struct tracepoint *tpoint)
6114 {
6115 char buf[IPA_CMD_BUF_SIZE];
6116 char *p;
6117 int i, ret;
6118
6119 p = buf;
6120 strcpy (p, "FastTrace:");
6121 p += 10;
6122
6123 COPY_FIELD_TO_BUF (p, tpoint, number);
6124 COPY_FIELD_TO_BUF (p, tpoint, address);
6125 COPY_FIELD_TO_BUF (p, tpoint, type);
6126 COPY_FIELD_TO_BUF (p, tpoint, enabled);
6127 COPY_FIELD_TO_BUF (p, tpoint, step_count);
6128 COPY_FIELD_TO_BUF (p, tpoint, pass_count);
6129 COPY_FIELD_TO_BUF (p, tpoint, numactions);
6130 COPY_FIELD_TO_BUF (p, tpoint, hit_count);
6131 COPY_FIELD_TO_BUF (p, tpoint, traceframe_usage);
6132 COPY_FIELD_TO_BUF (p, tpoint, compiled_cond);
6133 COPY_FIELD_TO_BUF (p, tpoint, orig_size);
6134
6135 /* condition */
6136 p = agent_expr_send (p, tpoint->cond);
6137
6138 /* tracepoint_action */
6139 for (i = 0; i < tpoint->numactions; i++)
6140 {
6141 struct tracepoint_action *action = tpoint->actions[i];
6142
6143 p[0] = action->type;
6144 p = tracepoint_action_send (&p[1], action);
6145 }
6146
6147 get_jump_space_head ();
6148 /* Copy the value of GDB_JUMP_PAD_HEAD to command buffer, so that
6149 agent can use jump pad from it. */
6150 if (tpoint->type == fast_tracepoint)
6151 {
6152 memcpy (p, &gdb_jump_pad_head, 8);
6153 p += 8;
6154 }
6155
6156 ret = run_inferior_command (buf, (int) (ptrdiff_t) (p - buf));
6157 if (ret)
6158 return ret;
6159
6160 if (!startswith (buf, "OK"))
6161 return 1;
6162
6163 /* The value of tracepoint's target address is stored in BUF. */
6164 memcpy (&tpoint->obj_addr_on_target,
6165 &buf[IPA_PROTO_FAST_TRACE_ADDR_ON_TARGET], 8);
6166
6167 if (tpoint->type == fast_tracepoint)
6168 {
6169 unsigned char *insn
6170 = (unsigned char *) &buf[IPA_PROTO_FAST_TRACE_FJUMP_INSN];
6171 int fjump_size;
6172
6173 trace_debug ("agent: read from cmd_buf 0x%x 0x%x\n",
6174 (unsigned int) tpoint->obj_addr_on_target,
6175 (unsigned int) gdb_jump_pad_head);
6176
6177 memcpy (&gdb_jump_pad_head, &buf[IPA_PROTO_FAST_TRACE_JUMP_PAD], 8);
6178
6179 /* This has been done in agent. We should also set up record for it. */
6180 memcpy (&fjump_size, &buf[IPA_PROTO_FAST_TRACE_FJUMP_SIZE], 4);
6181 /* Wire it in. */
6182 tpoint->handle
6183 = set_fast_tracepoint_jump (tpoint->address, insn, fjump_size);
6184 }
6185
6186 return 0;
6187 }
6188
6189 static void
6190 download_tracepoint (struct tracepoint *tpoint)
6191 {
6192 struct tracepoint *tp, *tp_prev;
6193
6194 if (tpoint->type != fast_tracepoint
6195 && tpoint->type != static_tracepoint)
6196 return;
6197
6198 download_tracepoint_1 (tpoint);
6199
6200 /* Find the previous entry of TPOINT, which is fast tracepoint or
6201 static tracepoint. */
6202 tp_prev = NULL;
6203 for (tp = tracepoints; tp != tpoint; tp = tp->next)
6204 {
6205 if (tp->type == fast_tracepoint || tp->type == static_tracepoint)
6206 tp_prev = tp;
6207 }
6208
6209 if (tp_prev)
6210 {
6211 CORE_ADDR tp_prev_target_next_addr;
6212
6213 /* Insert TPOINT after TP_PREV in IPA. */
6214 if (read_inferior_data_pointer (tp_prev->obj_addr_on_target
6215 + offsetof (struct tracepoint, next),
6216 &tp_prev_target_next_addr))
6217 {
6218 internal_error (__FILE__, __LINE__,
6219 "error reading `tp_prev->next'");
6220 }
6221
6222 /* tpoint->next = tp_prev->next */
6223 write_inferior_data_pointer (tpoint->obj_addr_on_target
6224 + offsetof (struct tracepoint, next),
6225 tp_prev_target_next_addr);
6226 /* tp_prev->next = tpoint */
6227 write_inferior_data_pointer (tp_prev->obj_addr_on_target
6228 + offsetof (struct tracepoint, next),
6229 tpoint->obj_addr_on_target);
6230 }
6231 else
6232 /* First object in list, set the head pointer in the
6233 inferior. */
6234 write_inferior_data_pointer (ipa_sym_addrs.addr_tracepoints,
6235 tpoint->obj_addr_on_target);
6236
6237 }
6238
6239 static void
6240 download_trace_state_variables (void)
6241 {
6242 CORE_ADDR ptr = 0, prev_ptr = 0;
6243 struct trace_state_variable *tsv;
6244
6245 /* Start out empty. */
6246 write_inferior_data_pointer (ipa_sym_addrs.addr_trace_state_variables, 0);
6247
6248 for (tsv = trace_state_variables; tsv != NULL; tsv = tsv->next)
6249 {
6250 struct trace_state_variable target_tsv;
6251
6252 /* TSV's with a getter have been initialized equally in both the
6253 inferior and GDBserver. Skip them. */
6254 if (tsv->getter != NULL)
6255 continue;
6256
6257 target_tsv = *tsv;
6258
6259 prev_ptr = ptr;
6260 ptr = target_malloc (sizeof (*tsv));
6261
6262 if (tsv == trace_state_variables)
6263 {
6264 /* First object in list, set the head pointer in the
6265 inferior. */
6266
6267 write_inferior_data_pointer (ipa_sym_addrs.addr_trace_state_variables,
6268 ptr);
6269 }
6270 else
6271 {
6272 write_inferior_data_pointer (prev_ptr
6273 + offsetof (struct trace_state_variable,
6274 next),
6275 ptr);
6276 }
6277
6278 /* Write the whole object. We'll fix up its pointers in a bit.
6279 Assume no next, fixup when needed. */
6280 target_tsv.next = NULL;
6281
6282 target_write_memory (ptr, (unsigned char *) &target_tsv,
6283 sizeof (target_tsv));
6284
6285 if (tsv->name != NULL)
6286 {
6287 size_t size = strlen (tsv->name) + 1;
6288 CORE_ADDR name_addr = target_malloc (size);
6289 target_write_memory (name_addr,
6290 (unsigned char *) tsv->name, size);
6291 write_inferior_data_pointer (ptr
6292 + offsetof (struct trace_state_variable,
6293 name),
6294 name_addr);
6295 }
6296
6297 gdb_assert (tsv->getter == NULL);
6298 }
6299
6300 if (prev_ptr != 0)
6301 {
6302 /* Fixup the next pointer in the last item in the list. */
6303 write_inferior_data_pointer (prev_ptr
6304 + offsetof (struct trace_state_variable,
6305 next), 0);
6306 }
6307 }
6308
6309 /* Upload complete trace frames out of the IP Agent's trace buffer
6310 into GDBserver's trace buffer. This always uploads either all or
6311 no trace frames. This is the counter part of
6312 `trace_alloc_trace_buffer'. See its description of the atomic
6313 syncing mechanism. */
6314
6315 static void
6316 upload_fast_traceframes (void)
6317 {
6318 unsigned int ipa_traceframe_read_count, ipa_traceframe_write_count;
6319 unsigned int ipa_traceframe_read_count_racy, ipa_traceframe_write_count_racy;
6320 CORE_ADDR tf;
6321 struct ipa_trace_buffer_control ipa_trace_buffer_ctrl;
6322 unsigned int curr_tbctrl_idx;
6323 unsigned int ipa_trace_buffer_ctrl_curr;
6324 unsigned int ipa_trace_buffer_ctrl_curr_old;
6325 CORE_ADDR ipa_trace_buffer_ctrl_addr;
6326 struct breakpoint *about_to_request_buffer_space_bkpt;
6327 CORE_ADDR ipa_trace_buffer_lo;
6328 CORE_ADDR ipa_trace_buffer_hi;
6329
6330 if (read_inferior_uinteger (ipa_sym_addrs.addr_traceframe_read_count,
6331 &ipa_traceframe_read_count_racy))
6332 {
6333 /* This will happen in most targets if the current thread is
6334 running. */
6335 return;
6336 }
6337
6338 if (read_inferior_uinteger (ipa_sym_addrs.addr_traceframe_write_count,
6339 &ipa_traceframe_write_count_racy))
6340 return;
6341
6342 trace_debug ("ipa_traceframe_count (racy area): %d (w=%d, r=%d)",
6343 ipa_traceframe_write_count_racy
6344 - ipa_traceframe_read_count_racy,
6345 ipa_traceframe_write_count_racy,
6346 ipa_traceframe_read_count_racy);
6347
6348 if (ipa_traceframe_write_count_racy == ipa_traceframe_read_count_racy)
6349 return;
6350
6351 about_to_request_buffer_space_bkpt
6352 = set_breakpoint_at (ipa_sym_addrs.addr_about_to_request_buffer_space,
6353 NULL);
6354
6355 if (read_inferior_uinteger (ipa_sym_addrs.addr_trace_buffer_ctrl_curr,
6356 &ipa_trace_buffer_ctrl_curr))
6357 return;
6358
6359 ipa_trace_buffer_ctrl_curr_old = ipa_trace_buffer_ctrl_curr;
6360
6361 curr_tbctrl_idx = ipa_trace_buffer_ctrl_curr & ~GDBSERVER_FLUSH_COUNT_MASK;
6362
6363 {
6364 unsigned int prev, counter;
6365
6366 /* Update the token, with new counters, and the GDBserver stamp
6367 bit. Alway reuse the current TBC index. */
6368 prev = ipa_trace_buffer_ctrl_curr & GDBSERVER_FLUSH_COUNT_MASK_CURR;
6369 counter = (prev + 0x100) & GDBSERVER_FLUSH_COUNT_MASK_CURR;
6370
6371 ipa_trace_buffer_ctrl_curr = (GDBSERVER_UPDATED_FLUSH_COUNT_BIT
6372 | (prev << 12)
6373 | counter
6374 | curr_tbctrl_idx);
6375 }
6376
6377 if (write_inferior_uinteger (ipa_sym_addrs.addr_trace_buffer_ctrl_curr,
6378 ipa_trace_buffer_ctrl_curr))
6379 return;
6380
6381 trace_debug ("Lib: Committed %08x -> %08x",
6382 ipa_trace_buffer_ctrl_curr_old,
6383 ipa_trace_buffer_ctrl_curr);
6384
6385 /* Re-read these, now that we've installed the
6386 `about_to_request_buffer_space' breakpoint/lock. A thread could
6387 have finished a traceframe between the last read of these
6388 counters and setting the breakpoint above. If we start
6389 uploading, we never want to leave this function with
6390 traceframe_read_count != 0, otherwise, GDBserver could end up
6391 incrementing the counter tokens more than once (due to event loop
6392 nesting), which would break the IP agent's "effective" detection
6393 (see trace_alloc_trace_buffer). */
6394 if (read_inferior_uinteger (ipa_sym_addrs.addr_traceframe_read_count,
6395 &ipa_traceframe_read_count))
6396 return;
6397 if (read_inferior_uinteger (ipa_sym_addrs.addr_traceframe_write_count,
6398 &ipa_traceframe_write_count))
6399 return;
6400
6401 if (debug_threads)
6402 {
6403 trace_debug ("ipa_traceframe_count (blocked area): %d (w=%d, r=%d)",
6404 ipa_traceframe_write_count - ipa_traceframe_read_count,
6405 ipa_traceframe_write_count, ipa_traceframe_read_count);
6406
6407 if (ipa_traceframe_write_count != ipa_traceframe_write_count_racy
6408 || ipa_traceframe_read_count != ipa_traceframe_read_count_racy)
6409 trace_debug ("note that ipa_traceframe_count's parts changed");
6410 }
6411
6412 /* Get the address of the current TBC object (the IP agent has an
6413 array of 3 such objects). The index is stored in the TBC
6414 token. */
6415 ipa_trace_buffer_ctrl_addr = ipa_sym_addrs.addr_trace_buffer_ctrl;
6416 ipa_trace_buffer_ctrl_addr
6417 += sizeof (struct ipa_trace_buffer_control) * curr_tbctrl_idx;
6418
6419 if (read_inferior_memory (ipa_trace_buffer_ctrl_addr,
6420 (unsigned char *) &ipa_trace_buffer_ctrl,
6421 sizeof (struct ipa_trace_buffer_control)))
6422 return;
6423
6424 if (read_inferior_data_pointer (ipa_sym_addrs.addr_trace_buffer_lo,
6425 &ipa_trace_buffer_lo))
6426 return;
6427 if (read_inferior_data_pointer (ipa_sym_addrs.addr_trace_buffer_hi,
6428 &ipa_trace_buffer_hi))
6429 return;
6430
6431 /* Offsets are easier to grok for debugging than raw addresses,
6432 especially for the small trace buffer sizes that are useful for
6433 testing. */
6434 trace_debug ("Lib: Trace buffer [%d] start=%d free=%d "
6435 "endfree=%d wrap=%d hi=%d",
6436 curr_tbctrl_idx,
6437 (int) (ipa_trace_buffer_ctrl.start - ipa_trace_buffer_lo),
6438 (int) (ipa_trace_buffer_ctrl.free - ipa_trace_buffer_lo),
6439 (int) (ipa_trace_buffer_ctrl.end_free - ipa_trace_buffer_lo),
6440 (int) (ipa_trace_buffer_ctrl.wrap - ipa_trace_buffer_lo),
6441 (int) (ipa_trace_buffer_hi - ipa_trace_buffer_lo));
6442
6443 /* Note that the IPA's buffer is always circular. */
6444
6445 #define IPA_FIRST_TRACEFRAME() (ipa_trace_buffer_ctrl.start)
6446
6447 #define IPA_NEXT_TRACEFRAME_1(TF, TFOBJ) \
6448 ((TF) + sizeof (struct traceframe) + (TFOBJ)->data_size)
6449
6450 #define IPA_NEXT_TRACEFRAME(TF, TFOBJ) \
6451 (IPA_NEXT_TRACEFRAME_1 (TF, TFOBJ) \
6452 - ((IPA_NEXT_TRACEFRAME_1 (TF, TFOBJ) >= ipa_trace_buffer_ctrl.wrap) \
6453 ? (ipa_trace_buffer_ctrl.wrap - ipa_trace_buffer_lo) \
6454 : 0))
6455
6456 tf = IPA_FIRST_TRACEFRAME ();
6457
6458 while (ipa_traceframe_write_count - ipa_traceframe_read_count)
6459 {
6460 struct tracepoint *tpoint;
6461 struct traceframe *tframe;
6462 unsigned char *block;
6463 struct traceframe ipa_tframe;
6464
6465 if (read_inferior_memory (tf, (unsigned char *) &ipa_tframe,
6466 offsetof (struct traceframe, data)))
6467 error ("Uploading: couldn't read traceframe at %s\n", paddress (tf));
6468
6469 if (ipa_tframe.tpnum == 0)
6470 {
6471 internal_error (__FILE__, __LINE__,
6472 "Uploading: No (more) fast traceframes, but"
6473 " ipa_traceframe_count == %u??\n",
6474 ipa_traceframe_write_count
6475 - ipa_traceframe_read_count);
6476 }
6477
6478 /* Note that this will be incorrect for multi-location
6479 tracepoints... */
6480 tpoint = find_next_tracepoint_by_number (NULL, ipa_tframe.tpnum);
6481
6482 tframe = add_traceframe (tpoint);
6483 if (tframe == NULL)
6484 {
6485 trace_buffer_is_full = 1;
6486 trace_debug ("Uploading: trace buffer is full");
6487 }
6488 else
6489 {
6490 /* Copy the whole set of blocks in one go for now. FIXME:
6491 split this in smaller blocks. */
6492 block = add_traceframe_block (tframe, tpoint,
6493 ipa_tframe.data_size);
6494 if (block != NULL)
6495 {
6496 if (read_inferior_memory (tf
6497 + offsetof (struct traceframe, data),
6498 block, ipa_tframe.data_size))
6499 error ("Uploading: Couldn't read traceframe data at %s\n",
6500 paddress (tf + offsetof (struct traceframe, data)));
6501 }
6502
6503 trace_debug ("Uploading: traceframe didn't fit");
6504 finish_traceframe (tframe);
6505 }
6506
6507 tf = IPA_NEXT_TRACEFRAME (tf, &ipa_tframe);
6508
6509 /* If we freed the traceframe that wrapped around, go back
6510 to the non-wrap case. */
6511 if (tf < ipa_trace_buffer_ctrl.start)
6512 {
6513 trace_debug ("Lib: Discarding past the wraparound");
6514 ipa_trace_buffer_ctrl.wrap = ipa_trace_buffer_hi;
6515 }
6516 ipa_trace_buffer_ctrl.start = tf;
6517 ipa_trace_buffer_ctrl.end_free = ipa_trace_buffer_ctrl.start;
6518 ++ipa_traceframe_read_count;
6519
6520 if (ipa_trace_buffer_ctrl.start == ipa_trace_buffer_ctrl.free
6521 && ipa_trace_buffer_ctrl.start == ipa_trace_buffer_ctrl.end_free)
6522 {
6523 trace_debug ("Lib: buffer is fully empty. "
6524 "Trace buffer [%d] start=%d free=%d endfree=%d",
6525 curr_tbctrl_idx,
6526 (int) (ipa_trace_buffer_ctrl.start
6527 - ipa_trace_buffer_lo),
6528 (int) (ipa_trace_buffer_ctrl.free
6529 - ipa_trace_buffer_lo),
6530 (int) (ipa_trace_buffer_ctrl.end_free
6531 - ipa_trace_buffer_lo));
6532
6533 ipa_trace_buffer_ctrl.start = ipa_trace_buffer_lo;
6534 ipa_trace_buffer_ctrl.free = ipa_trace_buffer_lo;
6535 ipa_trace_buffer_ctrl.end_free = ipa_trace_buffer_hi;
6536 ipa_trace_buffer_ctrl.wrap = ipa_trace_buffer_hi;
6537 }
6538
6539 trace_debug ("Uploaded a traceframe\n"
6540 "Lib: Trace buffer [%d] start=%d free=%d "
6541 "endfree=%d wrap=%d hi=%d",
6542 curr_tbctrl_idx,
6543 (int) (ipa_trace_buffer_ctrl.start - ipa_trace_buffer_lo),
6544 (int) (ipa_trace_buffer_ctrl.free - ipa_trace_buffer_lo),
6545 (int) (ipa_trace_buffer_ctrl.end_free
6546 - ipa_trace_buffer_lo),
6547 (int) (ipa_trace_buffer_ctrl.wrap - ipa_trace_buffer_lo),
6548 (int) (ipa_trace_buffer_hi - ipa_trace_buffer_lo));
6549 }
6550
6551 if (target_write_memory (ipa_trace_buffer_ctrl_addr,
6552 (unsigned char *) &ipa_trace_buffer_ctrl,
6553 sizeof (struct ipa_trace_buffer_control)))
6554 return;
6555
6556 write_inferior_integer (ipa_sym_addrs.addr_traceframe_read_count,
6557 ipa_traceframe_read_count);
6558
6559 trace_debug ("Done uploading traceframes [%d]\n", curr_tbctrl_idx);
6560
6561 pause_all (1);
6562
6563 delete_breakpoint (about_to_request_buffer_space_bkpt);
6564 about_to_request_buffer_space_bkpt = NULL;
6565
6566 unpause_all (1);
6567
6568 if (trace_buffer_is_full)
6569 stop_tracing ();
6570 }
6571 #endif
6572
6573 #ifdef IN_PROCESS_AGENT
6574
6575 IP_AGENT_EXPORT_VAR int ust_loaded;
6576 IP_AGENT_EXPORT_VAR char cmd_buf[IPA_CMD_BUF_SIZE];
6577
6578 #ifdef HAVE_UST
6579
6580 /* Static tracepoints. */
6581
6582 /* UST puts a "struct tracepoint" in the global namespace, which
6583 conflicts with our tracepoint. Arguably, being a library, it
6584 shouldn't take ownership of such a generic name. We work around it
6585 here. */
6586 #define tracepoint ust_tracepoint
6587 #include <ust/ust.h>
6588 #undef tracepoint
6589
6590 extern int serialize_to_text (char *outbuf, int bufsize,
6591 const char *fmt, va_list ap);
6592
6593 #define GDB_PROBE_NAME "gdb"
6594
6595 /* We dynamically search for the UST symbols instead of linking them
6596 in. This lets the user decide if the application uses static
6597 tracepoints, instead of always pulling libust.so in. This vector
6598 holds pointers to all functions we care about. */
6599
6600 static struct
6601 {
6602 int (*serialize_to_text) (char *outbuf, int bufsize,
6603 const char *fmt, va_list ap);
6604
6605 int (*ltt_probe_register) (struct ltt_available_probe *pdata);
6606 int (*ltt_probe_unregister) (struct ltt_available_probe *pdata);
6607
6608 int (*ltt_marker_connect) (const char *channel, const char *mname,
6609 const char *pname);
6610 int (*ltt_marker_disconnect) (const char *channel, const char *mname,
6611 const char *pname);
6612
6613 void (*marker_iter_start) (struct marker_iter *iter);
6614 void (*marker_iter_next) (struct marker_iter *iter);
6615 void (*marker_iter_stop) (struct marker_iter *iter);
6616 void (*marker_iter_reset) (struct marker_iter *iter);
6617 } ust_ops;
6618
6619 #include <dlfcn.h>
6620
6621 /* Cast through typeof to catch incompatible API changes. Since UST
6622 only builds with gcc, we can freely use gcc extensions here
6623 too. */
6624 #define GET_UST_SYM(SYM) \
6625 do \
6626 { \
6627 if (ust_ops.SYM == NULL) \
6628 ust_ops.SYM = (typeof (&SYM)) dlsym (RTLD_DEFAULT, #SYM); \
6629 if (ust_ops.SYM == NULL) \
6630 return 0; \
6631 } while (0)
6632
6633 #define USTF(SYM) ust_ops.SYM
6634
6635 /* Get pointers to all libust.so functions we care about. */
6636
6637 static int
6638 dlsym_ust (void)
6639 {
6640 GET_UST_SYM (serialize_to_text);
6641
6642 GET_UST_SYM (ltt_probe_register);
6643 GET_UST_SYM (ltt_probe_unregister);
6644 GET_UST_SYM (ltt_marker_connect);
6645 GET_UST_SYM (ltt_marker_disconnect);
6646
6647 GET_UST_SYM (marker_iter_start);
6648 GET_UST_SYM (marker_iter_next);
6649 GET_UST_SYM (marker_iter_stop);
6650 GET_UST_SYM (marker_iter_reset);
6651
6652 ust_loaded = 1;
6653 return 1;
6654 }
6655
6656 /* Given an UST marker, return the matching gdb static tracepoint.
6657 The match is done by address. */
6658
6659 static struct tracepoint *
6660 ust_marker_to_static_tracepoint (const struct marker *mdata)
6661 {
6662 struct tracepoint *tpoint;
6663
6664 for (tpoint = tracepoints; tpoint; tpoint = tpoint->next)
6665 {
6666 if (tpoint->type != static_tracepoint)
6667 continue;
6668
6669 if (tpoint->address == (uintptr_t) mdata->location)
6670 return tpoint;
6671 }
6672
6673 return NULL;
6674 }
6675
6676 /* The probe function we install on lttng/ust markers. Whenever a
6677 probed ust marker is hit, this function is called. This is similar
6678 to gdb_collect, only for static tracepoints, instead of fast
6679 tracepoints. */
6680
6681 static void
6682 gdb_probe (const struct marker *mdata, void *probe_private,
6683 struct registers *regs, void *call_private,
6684 const char *fmt, va_list *args)
6685 {
6686 struct tracepoint *tpoint;
6687 struct static_tracepoint_ctx ctx;
6688 const struct target_desc *ipa_tdesc;
6689
6690 /* Don't do anything until the trace run is completely set up. */
6691 if (!tracing)
6692 {
6693 trace_debug ("gdb_probe: not tracing\n");
6694 return;
6695 }
6696
6697 ipa_tdesc = get_ipa_tdesc (ipa_tdesc_idx);
6698 ctx.base.type = static_tracepoint;
6699 ctx.regcache_initted = 0;
6700 ctx.regs = regs;
6701 ctx.fmt = fmt;
6702 ctx.args = args;
6703
6704 /* Wrap the regblock in a register cache (in the stack, we don't
6705 want to malloc here). */
6706 ctx.regspace = alloca (ipa_tdesc->registers_size);
6707 if (ctx.regspace == NULL)
6708 {
6709 trace_debug ("Trace buffer block allocation failed, skipping");
6710 return;
6711 }
6712
6713 tpoint = ust_marker_to_static_tracepoint (mdata);
6714 if (tpoint == NULL)
6715 {
6716 trace_debug ("gdb_probe: marker not known: "
6717 "loc:0x%p, ch:\"%s\",n:\"%s\",f:\"%s\"",
6718 mdata->location, mdata->channel,
6719 mdata->name, mdata->format);
6720 return;
6721 }
6722
6723 if (!tpoint->enabled)
6724 {
6725 trace_debug ("gdb_probe: tracepoint disabled");
6726 return;
6727 }
6728
6729 ctx.tpoint = tpoint;
6730
6731 trace_debug ("gdb_probe: collecting marker: "
6732 "loc:0x%p, ch:\"%s\",n:\"%s\",f:\"%s\"",
6733 mdata->location, mdata->channel,
6734 mdata->name, mdata->format);
6735
6736 /* Test the condition if present, and collect if true. */
6737 if (tpoint->cond == NULL
6738 || condition_true_at_tracepoint ((struct tracepoint_hit_ctx *) &ctx,
6739 tpoint))
6740 {
6741 collect_data_at_tracepoint ((struct tracepoint_hit_ctx *) &ctx,
6742 tpoint->address, tpoint);
6743
6744 if (stopping_tracepoint
6745 || trace_buffer_is_full
6746 || expr_eval_result != expr_eval_no_error)
6747 stop_tracing ();
6748 }
6749 else
6750 {
6751 /* If there was a condition and it evaluated to false, the only
6752 way we would stop tracing is if there was an error during
6753 condition expression evaluation. */
6754 if (expr_eval_result != expr_eval_no_error)
6755 stop_tracing ();
6756 }
6757 }
6758
6759 /* Called if the gdb static tracepoint requested collecting "$_sdata",
6760 static tracepoint string data. This is a string passed to the
6761 tracing library by the user, at the time of the tracepoint marker
6762 call. E.g., in the UST marker call:
6763
6764 trace_mark (ust, bar33, "str %s", "FOOBAZ");
6765
6766 the collected data is "str FOOBAZ".
6767 */
6768
6769 static void
6770 collect_ust_data_at_tracepoint (struct tracepoint_hit_ctx *ctx,
6771 struct traceframe *tframe)
6772 {
6773 struct static_tracepoint_ctx *umd = (struct static_tracepoint_ctx *) ctx;
6774 unsigned char *bufspace;
6775 int size;
6776 va_list copy;
6777 unsigned short blocklen;
6778
6779 if (umd == NULL)
6780 {
6781 trace_debug ("Wanted to collect static trace data, "
6782 "but there's no static trace data");
6783 return;
6784 }
6785
6786 va_copy (copy, *umd->args);
6787 size = USTF(serialize_to_text) (NULL, 0, umd->fmt, copy);
6788 va_end (copy);
6789
6790 trace_debug ("Want to collect ust data");
6791
6792 /* 'S' + size + string */
6793 bufspace = add_traceframe_block (tframe, umd->tpoint,
6794 1 + sizeof (blocklen) + size + 1);
6795 if (bufspace == NULL)
6796 {
6797 trace_debug ("Trace buffer block allocation failed, skipping");
6798 return;
6799 }
6800
6801 /* Identify a static trace data block. */
6802 *bufspace = 'S';
6803
6804 blocklen = size + 1;
6805 memcpy (bufspace + 1, &blocklen, sizeof (blocklen));
6806
6807 va_copy (copy, *umd->args);
6808 USTF(serialize_to_text) ((char *) bufspace + 1 + sizeof (blocklen),
6809 size + 1, umd->fmt, copy);
6810 va_end (copy);
6811
6812 trace_debug ("Storing static tracepoint data in regblock: %s",
6813 bufspace + 1 + sizeof (blocklen));
6814 }
6815
6816 /* The probe to register with lttng/ust. */
6817 static struct ltt_available_probe gdb_ust_probe =
6818 {
6819 GDB_PROBE_NAME,
6820 NULL,
6821 gdb_probe,
6822 };
6823
6824 #endif /* HAVE_UST */
6825 #endif /* IN_PROCESS_AGENT */
6826
6827 #ifndef IN_PROCESS_AGENT
6828
6829 /* Ask the in-process agent to run a command. Since we don't want to
6830 have to handle the IPA hitting breakpoints while running the
6831 command, we pause all threads, remove all breakpoints, and then set
6832 the helper thread re-running. We communicate with the helper
6833 thread by means of direct memory xfering, and a socket for
6834 synchronization. */
6835
6836 static int
6837 run_inferior_command (char *cmd, int len)
6838 {
6839 int err = -1;
6840 int pid = current_ptid.pid ();
6841
6842 trace_debug ("run_inferior_command: running: %s", cmd);
6843
6844 pause_all (0);
6845 uninsert_all_breakpoints ();
6846
6847 err = agent_run_command (pid, (const char *) cmd, len);
6848
6849 reinsert_all_breakpoints ();
6850 unpause_all (0);
6851
6852 return err;
6853 }
6854
6855 #else /* !IN_PROCESS_AGENT */
6856
6857 #include <sys/socket.h>
6858 #include <sys/un.h>
6859
6860 #ifndef UNIX_PATH_MAX
6861 #define UNIX_PATH_MAX sizeof(((struct sockaddr_un *) NULL)->sun_path)
6862 #endif
6863
6864 /* Where we put the socked used for synchronization. */
6865 #define SOCK_DIR P_tmpdir
6866
6867 /* Thread ID of the helper thread. GDBserver reads this to know which
6868 is the help thread. This is an LWP id on Linux. */
6869 EXTERN_C_PUSH
6870 IP_AGENT_EXPORT_VAR int helper_thread_id;
6871 EXTERN_C_POP
6872
6873 static int
6874 init_named_socket (const char *name)
6875 {
6876 int result, fd;
6877 struct sockaddr_un addr;
6878
6879 result = fd = socket (PF_UNIX, SOCK_STREAM, 0);
6880 if (result == -1)
6881 {
6882 warning ("socket creation failed: %s", safe_strerror (errno));
6883 return -1;
6884 }
6885
6886 addr.sun_family = AF_UNIX;
6887
6888 strncpy (addr.sun_path, name, UNIX_PATH_MAX);
6889 addr.sun_path[UNIX_PATH_MAX - 1] = '\0';
6890
6891 result = access (name, F_OK);
6892 if (result == 0)
6893 {
6894 /* File exists. */
6895 result = unlink (name);
6896 if (result == -1)
6897 {
6898 warning ("unlink failed: %s", safe_strerror (errno));
6899 close (fd);
6900 return -1;
6901 }
6902 warning ("socket %s already exists; overwriting", name);
6903 }
6904
6905 result = bind (fd, (struct sockaddr *) &addr, sizeof (addr));
6906 if (result == -1)
6907 {
6908 warning ("bind failed: %s", safe_strerror (errno));
6909 close (fd);
6910 return -1;
6911 }
6912
6913 result = listen (fd, 1);
6914 if (result == -1)
6915 {
6916 warning ("listen: %s", safe_strerror (errno));
6917 close (fd);
6918 return -1;
6919 }
6920
6921 return fd;
6922 }
6923
6924 static char agent_socket_name[UNIX_PATH_MAX];
6925
6926 static int
6927 gdb_agent_socket_init (void)
6928 {
6929 int result, fd;
6930
6931 result = xsnprintf (agent_socket_name, UNIX_PATH_MAX, "%s/gdb_ust%d",
6932 SOCK_DIR, getpid ());
6933 if (result >= UNIX_PATH_MAX)
6934 {
6935 trace_debug ("string overflow allocating socket name");
6936 return -1;
6937 }
6938
6939 fd = init_named_socket (agent_socket_name);
6940 if (fd < 0)
6941 warning ("Error initializing named socket (%s) for communication with the "
6942 "ust helper thread. Check that directory exists and that it "
6943 "is writable.", agent_socket_name);
6944
6945 return fd;
6946 }
6947
6948 #ifdef HAVE_UST
6949
6950 /* The next marker to be returned on a qTsSTM command. */
6951 static const struct marker *next_st;
6952
6953 /* Returns the first known marker. */
6954
6955 struct marker *
6956 first_marker (void)
6957 {
6958 struct marker_iter iter;
6959
6960 USTF(marker_iter_reset) (&iter);
6961 USTF(marker_iter_start) (&iter);
6962
6963 return iter.marker;
6964 }
6965
6966 /* Returns the marker following M. */
6967
6968 const struct marker *
6969 next_marker (const struct marker *m)
6970 {
6971 struct marker_iter iter;
6972
6973 USTF(marker_iter_reset) (&iter);
6974 USTF(marker_iter_start) (&iter);
6975
6976 for (; iter.marker != NULL; USTF(marker_iter_next) (&iter))
6977 {
6978 if (iter.marker == m)
6979 {
6980 USTF(marker_iter_next) (&iter);
6981 return iter.marker;
6982 }
6983 }
6984
6985 return NULL;
6986 }
6987
6988 /* Return an hexstr version of the STR C string, fit for sending to
6989 GDB. */
6990
6991 static char *
6992 cstr_to_hexstr (const char *str)
6993 {
6994 int len = strlen (str);
6995 char *hexstr = xmalloc (len * 2 + 1);
6996 bin2hex ((gdb_byte *) str, hexstr, len);
6997 return hexstr;
6998 }
6999
7000 /* Compose packet that is the response to the qTsSTM/qTfSTM/qTSTMat
7001 packets. */
7002
7003 static void
7004 response_ust_marker (char *packet, const struct marker *st)
7005 {
7006 char *strid, *format, *tmp;
7007
7008 next_st = next_marker (st);
7009
7010 tmp = xmalloc (strlen (st->channel) + 1 +
7011 strlen (st->name) + 1);
7012 sprintf (tmp, "%s/%s", st->channel, st->name);
7013
7014 strid = cstr_to_hexstr (tmp);
7015 free (tmp);
7016
7017 format = cstr_to_hexstr (st->format);
7018
7019 sprintf (packet, "m%s:%s:%s",
7020 paddress ((uintptr_t) st->location),
7021 strid,
7022 format);
7023
7024 free (strid);
7025 free (format);
7026 }
7027
7028 /* Return the first static tracepoint, and initialize the state
7029 machine that will iterate through all the static tracepoints. */
7030
7031 static void
7032 cmd_qtfstm (char *packet)
7033 {
7034 trace_debug ("Returning first trace state variable definition");
7035
7036 if (first_marker ())
7037 response_ust_marker (packet, first_marker ());
7038 else
7039 strcpy (packet, "l");
7040 }
7041
7042 /* Return additional trace state variable definitions. */
7043
7044 static void
7045 cmd_qtsstm (char *packet)
7046 {
7047 trace_debug ("Returning static tracepoint");
7048
7049 if (next_st)
7050 response_ust_marker (packet, next_st);
7051 else
7052 strcpy (packet, "l");
7053 }
7054
7055 /* Disconnect the GDB probe from a marker at a given address. */
7056
7057 static void
7058 unprobe_marker_at (char *packet)
7059 {
7060 char *p = packet;
7061 ULONGEST address;
7062 struct marker_iter iter;
7063
7064 p += sizeof ("unprobe_marker_at:") - 1;
7065
7066 p = unpack_varlen_hex (p, &address);
7067
7068 USTF(marker_iter_reset) (&iter);
7069 USTF(marker_iter_start) (&iter);
7070 for (; iter.marker != NULL; USTF(marker_iter_next) (&iter))
7071 if ((uintptr_t ) iter.marker->location == address)
7072 {
7073 int result;
7074
7075 result = USTF(ltt_marker_disconnect) (iter.marker->channel,
7076 iter.marker->name,
7077 GDB_PROBE_NAME);
7078 if (result < 0)
7079 warning ("could not disable marker %s/%s",
7080 iter.marker->channel, iter.marker->name);
7081 break;
7082 }
7083 }
7084
7085 /* Connect the GDB probe to a marker at a given address. */
7086
7087 static int
7088 probe_marker_at (char *packet)
7089 {
7090 char *p = packet;
7091 ULONGEST address;
7092 struct marker_iter iter;
7093 struct marker *m;
7094
7095 p += sizeof ("probe_marker_at:") - 1;
7096
7097 p = unpack_varlen_hex (p, &address);
7098
7099 USTF(marker_iter_reset) (&iter);
7100
7101 for (USTF(marker_iter_start) (&iter), m = iter.marker;
7102 m != NULL;
7103 USTF(marker_iter_next) (&iter), m = iter.marker)
7104 if ((uintptr_t ) m->location == address)
7105 {
7106 int result;
7107
7108 trace_debug ("found marker for address. "
7109 "ltt_marker_connect (marker = %s/%s)",
7110 m->channel, m->name);
7111
7112 result = USTF(ltt_marker_connect) (m->channel, m->name,
7113 GDB_PROBE_NAME);
7114 if (result && result != -EEXIST)
7115 trace_debug ("ltt_marker_connect (marker = %s/%s, errno = %d)",
7116 m->channel, m->name, -result);
7117
7118 if (result < 0)
7119 {
7120 sprintf (packet, "E.could not connect marker: channel=%s, name=%s",
7121 m->channel, m->name);
7122 return -1;
7123 }
7124
7125 strcpy (packet, "OK");
7126 return 0;
7127 }
7128
7129 sprintf (packet, "E.no marker found at 0x%s", paddress (address));
7130 return -1;
7131 }
7132
7133 static int
7134 cmd_qtstmat (char *packet)
7135 {
7136 char *p = packet;
7137 ULONGEST address;
7138 struct marker_iter iter;
7139 struct marker *m;
7140
7141 p += sizeof ("qTSTMat:") - 1;
7142
7143 p = unpack_varlen_hex (p, &address);
7144
7145 USTF(marker_iter_reset) (&iter);
7146
7147 for (USTF(marker_iter_start) (&iter), m = iter.marker;
7148 m != NULL;
7149 USTF(marker_iter_next) (&iter), m = iter.marker)
7150 if ((uintptr_t ) m->location == address)
7151 {
7152 response_ust_marker (packet, m);
7153 return 0;
7154 }
7155
7156 strcpy (packet, "l");
7157 return -1;
7158 }
7159
7160 static void
7161 gdb_ust_init (void)
7162 {
7163 if (!dlsym_ust ())
7164 return;
7165
7166 USTF(ltt_probe_register) (&gdb_ust_probe);
7167 }
7168
7169 #endif /* HAVE_UST */
7170
7171 #include <sys/syscall.h>
7172
7173 static void
7174 gdb_agent_remove_socket (void)
7175 {
7176 unlink (agent_socket_name);
7177 }
7178
7179 /* Helper thread of agent. */
7180
7181 static void *
7182 gdb_agent_helper_thread (void *arg)
7183 {
7184 int listen_fd;
7185
7186 atexit (gdb_agent_remove_socket);
7187
7188 while (1)
7189 {
7190 listen_fd = gdb_agent_socket_init ();
7191
7192 if (helper_thread_id == 0)
7193 helper_thread_id = syscall (SYS_gettid);
7194
7195 if (listen_fd == -1)
7196 {
7197 warning ("could not create sync socket");
7198 break;
7199 }
7200
7201 while (1)
7202 {
7203 socklen_t tmp;
7204 struct sockaddr_un sockaddr;
7205 int fd;
7206 char buf[1];
7207 int ret;
7208 int stop_loop = 0;
7209
7210 tmp = sizeof (sockaddr);
7211
7212 do
7213 {
7214 fd = accept (listen_fd, (struct sockaddr *) &sockaddr, &tmp);
7215 }
7216 /* It seems an ERESTARTSYS can escape out of accept. */
7217 while (fd == -512 || (fd == -1 && errno == EINTR));
7218
7219 if (fd < 0)
7220 {
7221 warning ("Accept returned %d, error: %s",
7222 fd, safe_strerror (errno));
7223 break;
7224 }
7225
7226 do
7227 {
7228 ret = read (fd, buf, 1);
7229 } while (ret == -1 && errno == EINTR);
7230
7231 if (ret == -1)
7232 {
7233 warning ("reading socket (fd=%d) failed with %s",
7234 fd, safe_strerror (errno));
7235 close (fd);
7236 break;
7237 }
7238
7239 if (cmd_buf[0])
7240 {
7241 if (startswith (cmd_buf, "close"))
7242 {
7243 stop_loop = 1;
7244 }
7245 #ifdef HAVE_UST
7246 else if (strcmp ("qTfSTM", cmd_buf) == 0)
7247 {
7248 cmd_qtfstm (cmd_buf);
7249 }
7250 else if (strcmp ("qTsSTM", cmd_buf) == 0)
7251 {
7252 cmd_qtsstm (cmd_buf);
7253 }
7254 else if (startswith (cmd_buf, "unprobe_marker_at:"))
7255 {
7256 unprobe_marker_at (cmd_buf);
7257 }
7258 else if (startswith (cmd_buf, "probe_marker_at:"))
7259 {
7260 probe_marker_at (cmd_buf);
7261 }
7262 else if (startswith (cmd_buf, "qTSTMat:"))
7263 {
7264 cmd_qtstmat (cmd_buf);
7265 }
7266 #endif /* HAVE_UST */
7267 }
7268
7269 /* Fix compiler's warning: ignoring return value of 'write'. */
7270 ret = write (fd, buf, 1);
7271 close (fd);
7272
7273 if (stop_loop)
7274 {
7275 close (listen_fd);
7276 unlink (agent_socket_name);
7277
7278 /* Sleep endlessly to wait the whole inferior stops. This
7279 thread can not exit because GDB or GDBserver may still need
7280 'current_thread' (representing this thread) to access
7281 inferior memory. Otherwise, this thread exits earlier than
7282 other threads, and 'current_thread' is set to NULL. */
7283 while (1)
7284 sleep (10);
7285 }
7286 }
7287 }
7288
7289 return NULL;
7290 }
7291
7292 #include <signal.h>
7293 #include <pthread.h>
7294
7295 EXTERN_C_PUSH
7296 IP_AGENT_EXPORT_VAR int gdb_agent_capability = AGENT_CAPA_STATIC_TRACE;
7297 EXTERN_C_POP
7298
7299 static void
7300 gdb_agent_init (void)
7301 {
7302 int res;
7303 pthread_t thread;
7304 sigset_t new_mask;
7305 sigset_t orig_mask;
7306
7307 /* We want the helper thread to be as transparent as possible, so
7308 have it inherit an all-signals-blocked mask. */
7309
7310 sigfillset (&new_mask);
7311 res = pthread_sigmask (SIG_SETMASK, &new_mask, &orig_mask);
7312 if (res)
7313 perror_with_name ("pthread_sigmask (1)");
7314
7315 res = pthread_create (&thread,
7316 NULL,
7317 gdb_agent_helper_thread,
7318 NULL);
7319
7320 res = pthread_sigmask (SIG_SETMASK, &orig_mask, NULL);
7321 if (res)
7322 perror_with_name ("pthread_sigmask (2)");
7323
7324 while (helper_thread_id == 0)
7325 usleep (1);
7326
7327 #ifdef HAVE_UST
7328 gdb_ust_init ();
7329 #endif
7330 }
7331
7332 #include <sys/mman.h>
7333
7334 IP_AGENT_EXPORT_VAR char *gdb_tp_heap_buffer;
7335 IP_AGENT_EXPORT_VAR char *gdb_jump_pad_buffer;
7336 IP_AGENT_EXPORT_VAR char *gdb_jump_pad_buffer_end;
7337 IP_AGENT_EXPORT_VAR char *gdb_trampoline_buffer;
7338 IP_AGENT_EXPORT_VAR char *gdb_trampoline_buffer_end;
7339 IP_AGENT_EXPORT_VAR char *gdb_trampoline_buffer_error;
7340
7341 /* Record the result of getting buffer space for fast tracepoint
7342 trampolines. Any error message is copied, since caller may not be
7343 using persistent storage. */
7344
7345 void
7346 set_trampoline_buffer_space (CORE_ADDR begin, CORE_ADDR end, char *errmsg)
7347 {
7348 gdb_trampoline_buffer = (char *) (uintptr_t) begin;
7349 gdb_trampoline_buffer_end = (char *) (uintptr_t) end;
7350 if (errmsg)
7351 strncpy (gdb_trampoline_buffer_error, errmsg, 99);
7352 else
7353 strcpy (gdb_trampoline_buffer_error, "no buffer passed");
7354 }
7355
7356 static void __attribute__ ((constructor))
7357 initialize_tracepoint_ftlib (void)
7358 {
7359 initialize_tracepoint ();
7360
7361 gdb_agent_init ();
7362 }
7363
7364 #ifndef HAVE_GETAUXVAL
7365 /* Retrieve the value of TYPE from the auxiliary vector. If TYPE is not
7366 found, 0 is returned. This function is provided if glibc is too old. */
7367
7368 unsigned long
7369 getauxval (unsigned long type)
7370 {
7371 unsigned long data[2];
7372 FILE *f = fopen ("/proc/self/auxv", "r");
7373 unsigned long value = 0;
7374
7375 if (f == NULL)
7376 return 0;
7377
7378 while (fread (data, sizeof (data), 1, f) > 0)
7379 {
7380 if (data[0] == type)
7381 {
7382 value = data[1];
7383 break;
7384 }
7385 }
7386
7387 fclose (f);
7388 return value;
7389 }
7390 #endif
7391
7392 #endif /* IN_PROCESS_AGENT */
7393
7394 /* Return a timestamp, expressed as microseconds of the usual Unix
7395 time. (As the result is a 64-bit number, it will not overflow any
7396 time soon.) */
7397
7398 static LONGEST
7399 get_timestamp (void)
7400 {
7401 using namespace std::chrono;
7402
7403 steady_clock::time_point now = steady_clock::now ();
7404 return duration_cast<microseconds> (now.time_since_epoch ()).count ();
7405 }
7406
7407 void
7408 initialize_tracepoint (void)
7409 {
7410 /* Start with the default size. */
7411 init_trace_buffer (DEFAULT_TRACE_BUFFER_SIZE);
7412
7413 /* Wire trace state variable 1 to be the timestamp. This will be
7414 uploaded to GDB upon connection and become one of its trace state
7415 variables. (In case you're wondering, if GDB already has a trace
7416 variable numbered 1, it will be renumbered.) */
7417 create_trace_state_variable (1, 0);
7418 set_trace_state_variable_name (1, "trace_timestamp");
7419 set_trace_state_variable_getter (1, get_timestamp);
7420
7421 #ifdef IN_PROCESS_AGENT
7422 {
7423 int pagesize;
7424 size_t jump_pad_size;
7425
7426 pagesize = sysconf (_SC_PAGE_SIZE);
7427 if (pagesize == -1)
7428 perror_with_name ("sysconf");
7429
7430 #define SCRATCH_BUFFER_NPAGES 20
7431
7432 jump_pad_size = pagesize * SCRATCH_BUFFER_NPAGES;
7433
7434 gdb_tp_heap_buffer = (char *) xmalloc (5 * 1024 * 1024);
7435 gdb_jump_pad_buffer = (char *) alloc_jump_pad_buffer (jump_pad_size);
7436 if (gdb_jump_pad_buffer == NULL)
7437 perror_with_name ("mmap");
7438 gdb_jump_pad_buffer_end = gdb_jump_pad_buffer + jump_pad_size;
7439 }
7440
7441 gdb_trampoline_buffer = gdb_trampoline_buffer_end = 0;
7442
7443 /* It's not a fatal error for something to go wrong with trampoline
7444 buffer setup, but it can be mysterious, so create a channel to
7445 report back on what went wrong, using a fixed size since we may
7446 not be able to allocate space later when the problem occurs. */
7447 gdb_trampoline_buffer_error = (char *) xmalloc (IPA_BUFSIZ);
7448
7449 strcpy (gdb_trampoline_buffer_error, "No errors reported");
7450
7451 initialize_low_tracepoint ();
7452 #endif
7453 }
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