Upgrade GDB from 7.4.1 to 7.6.1 on the vendor branch
[dragonfly.git] / contrib / gdb-7 / gdb / remote.c
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CommitLineData
1/* Remote target communications for serial-line targets in custom GDB protocol
2
3 Copyright (C) 1988-2013 Free Software Foundation, Inc.
4
5 This file is part of GDB.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
19
20/* See the GDB User Guide for details of the GDB remote protocol. */
21
22#include "defs.h"
23#include "gdb_string.h"
24#include <ctype.h>
25#include <fcntl.h>
26#include "inferior.h"
27#include "bfd.h"
28#include "symfile.h"
29#include "exceptions.h"
30#include "target.h"
31/*#include "terminal.h" */
32#include "gdbcmd.h"
33#include "objfiles.h"
34#include "gdb-stabs.h"
35#include "gdbthread.h"
36#include "remote.h"
37#include "remote-notif.h"
38#include "regcache.h"
39#include "value.h"
40#include "gdb_assert.h"
41#include "observer.h"
42#include "solib.h"
43#include "cli/cli-decode.h"
44#include "cli/cli-setshow.h"
45#include "target-descriptions.h"
46#include "gdb_bfd.h"
47
48#include <ctype.h>
49#include <sys/time.h>
50
51#include "event-loop.h"
52#include "event-top.h"
53#include "inf-loop.h"
54
55#include <signal.h>
56#include "serial.h"
57
58#include "gdbcore.h" /* for exec_bfd */
59
60#include "remote-fileio.h"
61#include "gdb/fileio.h"
62#include "gdb_stat.h"
63#include "xml-support.h"
64
65#include "memory-map.h"
66
67#include "tracepoint.h"
68#include "ax.h"
69#include "ax-gdb.h"
70#include "agent.h"
71#include "btrace.h"
72
73/* Temp hacks for tracepoint encoding migration. */
74static char *target_buf;
75static long target_buf_size;
76
77/* The size to align memory write packets, when practical. The protocol
78 does not guarantee any alignment, and gdb will generate short
79 writes and unaligned writes, but even as a best-effort attempt this
80 can improve bulk transfers. For instance, if a write is misaligned
81 relative to the target's data bus, the stub may need to make an extra
82 round trip fetching data from the target. This doesn't make a
83 huge difference, but it's easy to do, so we try to be helpful.
84
85 The alignment chosen is arbitrary; usually data bus width is
86 important here, not the possibly larger cache line size. */
87enum { REMOTE_ALIGN_WRITES = 16 };
88
89/* Prototypes for local functions. */
90static void cleanup_sigint_signal_handler (void *dummy);
91static void initialize_sigint_signal_handler (void);
92static int getpkt_sane (char **buf, long *sizeof_buf, int forever);
93static int getpkt_or_notif_sane (char **buf, long *sizeof_buf,
94 int forever, int *is_notif);
95
96static void handle_remote_sigint (int);
97static void handle_remote_sigint_twice (int);
98static void async_remote_interrupt (gdb_client_data);
99void async_remote_interrupt_twice (gdb_client_data);
100
101static void remote_files_info (struct target_ops *ignore);
102
103static void remote_prepare_to_store (struct regcache *regcache);
104
105static void remote_open (char *name, int from_tty);
106
107static void extended_remote_open (char *name, int from_tty);
108
109static void remote_open_1 (char *, int, struct target_ops *, int extended_p);
110
111static void remote_close (int quitting);
112
113static void remote_mourn (struct target_ops *ops);
114
115static void extended_remote_restart (void);
116
117static void extended_remote_mourn (struct target_ops *);
118
119static void remote_mourn_1 (struct target_ops *);
120
121static void remote_send (char **buf, long *sizeof_buf_p);
122
123static int readchar (int timeout);
124
125static void remote_serial_write (const char *str, int len);
126
127static void remote_kill (struct target_ops *ops);
128
129static int tohex (int nib);
130
131static int remote_can_async_p (void);
132
133static int remote_is_async_p (void);
134
135static void remote_async (void (*callback) (enum inferior_event_type event_type,
136 void *context), void *context);
137
138static void remote_detach (struct target_ops *ops, char *args, int from_tty);
139
140static void remote_interrupt (int signo);
141
142static void remote_interrupt_twice (int signo);
143
144static void interrupt_query (void);
145
146static void set_general_thread (struct ptid ptid);
147static void set_continue_thread (struct ptid ptid);
148
149static void get_offsets (void);
150
151static void skip_frame (void);
152
153static long read_frame (char **buf_p, long *sizeof_buf);
154
155static int hexnumlen (ULONGEST num);
156
157static void init_remote_ops (void);
158
159static void init_extended_remote_ops (void);
160
161static void remote_stop (ptid_t);
162
163static int ishex (int ch, int *val);
164
165static int stubhex (int ch);
166
167static int hexnumstr (char *, ULONGEST);
168
169static int hexnumnstr (char *, ULONGEST, int);
170
171static CORE_ADDR remote_address_masked (CORE_ADDR);
172
173static void print_packet (char *);
174
175static void compare_sections_command (char *, int);
176
177static void packet_command (char *, int);
178
179static int stub_unpack_int (char *buff, int fieldlength);
180
181static ptid_t remote_current_thread (ptid_t oldptid);
182
183static void remote_find_new_threads (void);
184
185static void record_currthread (ptid_t currthread);
186
187static int fromhex (int a);
188
189static int putpkt_binary (char *buf, int cnt);
190
191static void check_binary_download (CORE_ADDR addr);
192
193struct packet_config;
194
195static void show_packet_config_cmd (struct packet_config *config);
196
197static void update_packet_config (struct packet_config *config);
198
199static void set_remote_protocol_packet_cmd (char *args, int from_tty,
200 struct cmd_list_element *c);
201
202static void show_remote_protocol_packet_cmd (struct ui_file *file,
203 int from_tty,
204 struct cmd_list_element *c,
205 const char *value);
206
207static char *write_ptid (char *buf, const char *endbuf, ptid_t ptid);
208static ptid_t read_ptid (char *buf, char **obuf);
209
210static void remote_set_permissions (void);
211
212struct remote_state;
213static int remote_get_trace_status (struct trace_status *ts);
214
215static int remote_upload_tracepoints (struct uploaded_tp **utpp);
216
217static int remote_upload_trace_state_variables (struct uploaded_tsv **utsvp);
218
219static void remote_query_supported (void);
220
221static void remote_check_symbols (struct objfile *objfile);
222
223void _initialize_remote (void);
224
225struct stop_reply;
226static void stop_reply_xfree (struct stop_reply *);
227static void remote_parse_stop_reply (char *, struct stop_reply *);
228static void push_stop_reply (struct stop_reply *);
229static void discard_pending_stop_replies (struct inferior *);
230static int peek_stop_reply (ptid_t ptid);
231
232static void remote_async_inferior_event_handler (gdb_client_data);
233
234static void remote_terminal_ours (void);
235
236static int remote_read_description_p (struct target_ops *target);
237
238static void remote_console_output (char *msg);
239
240static int remote_supports_cond_breakpoints (void);
241
242static int remote_can_run_breakpoint_commands (void);
243
244/* For "remote". */
245
246static struct cmd_list_element *remote_cmdlist;
247
248/* For "set remote" and "show remote". */
249
250static struct cmd_list_element *remote_set_cmdlist;
251static struct cmd_list_element *remote_show_cmdlist;
252
253/* Description of the remote protocol state for the currently
254 connected target. This is per-target state, and independent of the
255 selected architecture. */
256
257struct remote_state
258{
259 /* A buffer to use for incoming packets, and its current size. The
260 buffer is grown dynamically for larger incoming packets.
261 Outgoing packets may also be constructed in this buffer.
262 BUF_SIZE is always at least REMOTE_PACKET_SIZE;
263 REMOTE_PACKET_SIZE should be used to limit the length of outgoing
264 packets. */
265 char *buf;
266 long buf_size;
267
268 /* True if we're going through initial connection setup (finding out
269 about the remote side's threads, relocating symbols, etc.). */
270 int starting_up;
271
272 /* If we negotiated packet size explicitly (and thus can bypass
273 heuristics for the largest packet size that will not overflow
274 a buffer in the stub), this will be set to that packet size.
275 Otherwise zero, meaning to use the guessed size. */
276 long explicit_packet_size;
277
278 /* remote_wait is normally called when the target is running and
279 waits for a stop reply packet. But sometimes we need to call it
280 when the target is already stopped. We can send a "?" packet
281 and have remote_wait read the response. Or, if we already have
282 the response, we can stash it in BUF and tell remote_wait to
283 skip calling getpkt. This flag is set when BUF contains a
284 stop reply packet and the target is not waiting. */
285 int cached_wait_status;
286
287 /* True, if in no ack mode. That is, neither GDB nor the stub will
288 expect acks from each other. The connection is assumed to be
289 reliable. */
290 int noack_mode;
291
292 /* True if we're connected in extended remote mode. */
293 int extended;
294
295 /* True if the stub reported support for multi-process
296 extensions. */
297 int multi_process_aware;
298
299 /* True if we resumed the target and we're waiting for the target to
300 stop. In the mean time, we can't start another command/query.
301 The remote server wouldn't be ready to process it, so we'd
302 timeout waiting for a reply that would never come and eventually
303 we'd close the connection. This can happen in asynchronous mode
304 because we allow GDB commands while the target is running. */
305 int waiting_for_stop_reply;
306
307 /* True if the stub reports support for non-stop mode. */
308 int non_stop_aware;
309
310 /* True if the stub reports support for vCont;t. */
311 int support_vCont_t;
312
313 /* True if the stub reports support for conditional tracepoints. */
314 int cond_tracepoints;
315
316 /* True if the stub reports support for target-side breakpoint
317 conditions. */
318 int cond_breakpoints;
319
320 /* True if the stub reports support for target-side breakpoint
321 commands. */
322 int breakpoint_commands;
323
324 /* True if the stub reports support for fast tracepoints. */
325 int fast_tracepoints;
326
327 /* True if the stub reports support for static tracepoints. */
328 int static_tracepoints;
329
330 /* True if the stub reports support for installing tracepoint while
331 tracing. */
332 int install_in_trace;
333
334 /* True if the stub can continue running a trace while GDB is
335 disconnected. */
336 int disconnected_tracing;
337
338 /* True if the stub reports support for enabling and disabling
339 tracepoints while a trace experiment is running. */
340 int enable_disable_tracepoints;
341
342 /* True if the stub can collect strings using tracenz bytecode. */
343 int string_tracing;
344
345 /* Nonzero if the user has pressed Ctrl-C, but the target hasn't
346 responded to that. */
347 int ctrlc_pending_p;
348};
349
350/* Private data that we'll store in (struct thread_info)->private. */
351struct private_thread_info
352{
353 char *extra;
354 int core;
355};
356
357static void
358free_private_thread_info (struct private_thread_info *info)
359{
360 xfree (info->extra);
361 xfree (info);
362}
363
364/* Returns true if the multi-process extensions are in effect. */
365static int
366remote_multi_process_p (struct remote_state *rs)
367{
368 return rs->multi_process_aware;
369}
370
371/* This data could be associated with a target, but we do not always
372 have access to the current target when we need it, so for now it is
373 static. This will be fine for as long as only one target is in use
374 at a time. */
375static struct remote_state remote_state;
376
377static struct remote_state *
378get_remote_state_raw (void)
379{
380 return &remote_state;
381}
382
383/* Description of the remote protocol for a given architecture. */
384
385struct packet_reg
386{
387 long offset; /* Offset into G packet. */
388 long regnum; /* GDB's internal register number. */
389 LONGEST pnum; /* Remote protocol register number. */
390 int in_g_packet; /* Always part of G packet. */
391 /* long size in bytes; == register_size (target_gdbarch (), regnum);
392 at present. */
393 /* char *name; == gdbarch_register_name (target_gdbarch (), regnum);
394 at present. */
395};
396
397struct remote_arch_state
398{
399 /* Description of the remote protocol registers. */
400 long sizeof_g_packet;
401
402 /* Description of the remote protocol registers indexed by REGNUM
403 (making an array gdbarch_num_regs in size). */
404 struct packet_reg *regs;
405
406 /* This is the size (in chars) of the first response to the ``g''
407 packet. It is used as a heuristic when determining the maximum
408 size of memory-read and memory-write packets. A target will
409 typically only reserve a buffer large enough to hold the ``g''
410 packet. The size does not include packet overhead (headers and
411 trailers). */
412 long actual_register_packet_size;
413
414 /* This is the maximum size (in chars) of a non read/write packet.
415 It is also used as a cap on the size of read/write packets. */
416 long remote_packet_size;
417};
418
419long sizeof_pkt = 2000;
420
421/* Utility: generate error from an incoming stub packet. */
422static void
423trace_error (char *buf)
424{
425 if (*buf++ != 'E')
426 return; /* not an error msg */
427 switch (*buf)
428 {
429 case '1': /* malformed packet error */
430 if (*++buf == '0') /* general case: */
431 error (_("remote.c: error in outgoing packet."));
432 else
433 error (_("remote.c: error in outgoing packet at field #%ld."),
434 strtol (buf, NULL, 16));
435 default:
436 error (_("Target returns error code '%s'."), buf);
437 }
438}
439
440/* Utility: wait for reply from stub, while accepting "O" packets. */
441static char *
442remote_get_noisy_reply (char **buf_p,
443 long *sizeof_buf)
444{
445 do /* Loop on reply from remote stub. */
446 {
447 char *buf;
448
449 QUIT; /* Allow user to bail out with ^C. */
450 getpkt (buf_p, sizeof_buf, 0);
451 buf = *buf_p;
452 if (buf[0] == 'E')
453 trace_error (buf);
454 else if (strncmp (buf, "qRelocInsn:", strlen ("qRelocInsn:")) == 0)
455 {
456 ULONGEST ul;
457 CORE_ADDR from, to, org_to;
458 char *p, *pp;
459 int adjusted_size = 0;
460 volatile struct gdb_exception ex;
461
462 p = buf + strlen ("qRelocInsn:");
463 pp = unpack_varlen_hex (p, &ul);
464 if (*pp != ';')
465 error (_("invalid qRelocInsn packet: %s"), buf);
466 from = ul;
467
468 p = pp + 1;
469 unpack_varlen_hex (p, &ul);
470 to = ul;
471
472 org_to = to;
473
474 TRY_CATCH (ex, RETURN_MASK_ALL)
475 {
476 gdbarch_relocate_instruction (target_gdbarch (), &to, from);
477 }
478 if (ex.reason >= 0)
479 {
480 adjusted_size = to - org_to;
481
482 xsnprintf (buf, *sizeof_buf, "qRelocInsn:%x", adjusted_size);
483 putpkt (buf);
484 }
485 else if (ex.reason < 0 && ex.error == MEMORY_ERROR)
486 {
487 /* Propagate memory errors silently back to the target.
488 The stub may have limited the range of addresses we
489 can write to, for example. */
490 putpkt ("E01");
491 }
492 else
493 {
494 /* Something unexpectedly bad happened. Be verbose so
495 we can tell what, and propagate the error back to the
496 stub, so it doesn't get stuck waiting for a
497 response. */
498 exception_fprintf (gdb_stderr, ex,
499 _("warning: relocating instruction: "));
500 putpkt ("E01");
501 }
502 }
503 else if (buf[0] == 'O' && buf[1] != 'K')
504 remote_console_output (buf + 1); /* 'O' message from stub */
505 else
506 return buf; /* Here's the actual reply. */
507 }
508 while (1);
509}
510
511/* Handle for retreving the remote protocol data from gdbarch. */
512static struct gdbarch_data *remote_gdbarch_data_handle;
513
514static struct remote_arch_state *
515get_remote_arch_state (void)
516{
517 return gdbarch_data (target_gdbarch (), remote_gdbarch_data_handle);
518}
519
520/* Fetch the global remote target state. */
521
522static struct remote_state *
523get_remote_state (void)
524{
525 /* Make sure that the remote architecture state has been
526 initialized, because doing so might reallocate rs->buf. Any
527 function which calls getpkt also needs to be mindful of changes
528 to rs->buf, but this call limits the number of places which run
529 into trouble. */
530 get_remote_arch_state ();
531
532 return get_remote_state_raw ();
533}
534
535static int
536compare_pnums (const void *lhs_, const void *rhs_)
537{
538 const struct packet_reg * const *lhs = lhs_;
539 const struct packet_reg * const *rhs = rhs_;
540
541 if ((*lhs)->pnum < (*rhs)->pnum)
542 return -1;
543 else if ((*lhs)->pnum == (*rhs)->pnum)
544 return 0;
545 else
546 return 1;
547}
548
549static int
550map_regcache_remote_table (struct gdbarch *gdbarch, struct packet_reg *regs)
551{
552 int regnum, num_remote_regs, offset;
553 struct packet_reg **remote_regs;
554
555 for (regnum = 0; regnum < gdbarch_num_regs (gdbarch); regnum++)
556 {
557 struct packet_reg *r = &regs[regnum];
558
559 if (register_size (gdbarch, regnum) == 0)
560 /* Do not try to fetch zero-sized (placeholder) registers. */
561 r->pnum = -1;
562 else
563 r->pnum = gdbarch_remote_register_number (gdbarch, regnum);
564
565 r->regnum = regnum;
566 }
567
568 /* Define the g/G packet format as the contents of each register
569 with a remote protocol number, in order of ascending protocol
570 number. */
571
572 remote_regs = alloca (gdbarch_num_regs (gdbarch)
573 * sizeof (struct packet_reg *));
574 for (num_remote_regs = 0, regnum = 0;
575 regnum < gdbarch_num_regs (gdbarch);
576 regnum++)
577 if (regs[regnum].pnum != -1)
578 remote_regs[num_remote_regs++] = &regs[regnum];
579
580 qsort (remote_regs, num_remote_regs, sizeof (struct packet_reg *),
581 compare_pnums);
582
583 for (regnum = 0, offset = 0; regnum < num_remote_regs; regnum++)
584 {
585 remote_regs[regnum]->in_g_packet = 1;
586 remote_regs[regnum]->offset = offset;
587 offset += register_size (gdbarch, remote_regs[regnum]->regnum);
588 }
589
590 return offset;
591}
592
593/* Given the architecture described by GDBARCH, return the remote
594 protocol register's number and the register's offset in the g/G
595 packets of GDB register REGNUM, in PNUM and POFFSET respectively.
596 If the target does not have a mapping for REGNUM, return false,
597 otherwise, return true. */
598
599int
600remote_register_number_and_offset (struct gdbarch *gdbarch, int regnum,
601 int *pnum, int *poffset)
602{
603 int sizeof_g_packet;
604 struct packet_reg *regs;
605 struct cleanup *old_chain;
606
607 gdb_assert (regnum < gdbarch_num_regs (gdbarch));
608
609 regs = xcalloc (gdbarch_num_regs (gdbarch), sizeof (struct packet_reg));
610 old_chain = make_cleanup (xfree, regs);
611
612 sizeof_g_packet = map_regcache_remote_table (gdbarch, regs);
613
614 *pnum = regs[regnum].pnum;
615 *poffset = regs[regnum].offset;
616
617 do_cleanups (old_chain);
618
619 return *pnum != -1;
620}
621
622static void *
623init_remote_state (struct gdbarch *gdbarch)
624{
625 struct remote_state *rs = get_remote_state_raw ();
626 struct remote_arch_state *rsa;
627
628 rsa = GDBARCH_OBSTACK_ZALLOC (gdbarch, struct remote_arch_state);
629
630 /* Use the architecture to build a regnum<->pnum table, which will be
631 1:1 unless a feature set specifies otherwise. */
632 rsa->regs = GDBARCH_OBSTACK_CALLOC (gdbarch,
633 gdbarch_num_regs (gdbarch),
634 struct packet_reg);
635
636 /* Record the maximum possible size of the g packet - it may turn out
637 to be smaller. */
638 rsa->sizeof_g_packet = map_regcache_remote_table (gdbarch, rsa->regs);
639
640 /* Default maximum number of characters in a packet body. Many
641 remote stubs have a hardwired buffer size of 400 bytes
642 (c.f. BUFMAX in m68k-stub.c and i386-stub.c). BUFMAX-1 is used
643 as the maximum packet-size to ensure that the packet and an extra
644 NUL character can always fit in the buffer. This stops GDB
645 trashing stubs that try to squeeze an extra NUL into what is
646 already a full buffer (As of 1999-12-04 that was most stubs). */
647 rsa->remote_packet_size = 400 - 1;
648
649 /* This one is filled in when a ``g'' packet is received. */
650 rsa->actual_register_packet_size = 0;
651
652 /* Should rsa->sizeof_g_packet needs more space than the
653 default, adjust the size accordingly. Remember that each byte is
654 encoded as two characters. 32 is the overhead for the packet
655 header / footer. NOTE: cagney/1999-10-26: I suspect that 8
656 (``$NN:G...#NN'') is a better guess, the below has been padded a
657 little. */
658 if (rsa->sizeof_g_packet > ((rsa->remote_packet_size - 32) / 2))
659 rsa->remote_packet_size = (rsa->sizeof_g_packet * 2 + 32);
660
661 /* Make sure that the packet buffer is plenty big enough for
662 this architecture. */
663 if (rs->buf_size < rsa->remote_packet_size)
664 {
665 rs->buf_size = 2 * rsa->remote_packet_size;
666 rs->buf = xrealloc (rs->buf, rs->buf_size);
667 }
668
669 return rsa;
670}
671
672/* Return the current allowed size of a remote packet. This is
673 inferred from the current architecture, and should be used to
674 limit the length of outgoing packets. */
675static long
676get_remote_packet_size (void)
677{
678 struct remote_state *rs = get_remote_state ();
679 struct remote_arch_state *rsa = get_remote_arch_state ();
680
681 if (rs->explicit_packet_size)
682 return rs->explicit_packet_size;
683
684 return rsa->remote_packet_size;
685}
686
687static struct packet_reg *
688packet_reg_from_regnum (struct remote_arch_state *rsa, long regnum)
689{
690 if (regnum < 0 && regnum >= gdbarch_num_regs (target_gdbarch ()))
691 return NULL;
692 else
693 {
694 struct packet_reg *r = &rsa->regs[regnum];
695
696 gdb_assert (r->regnum == regnum);
697 return r;
698 }
699}
700
701static struct packet_reg *
702packet_reg_from_pnum (struct remote_arch_state *rsa, LONGEST pnum)
703{
704 int i;
705
706 for (i = 0; i < gdbarch_num_regs (target_gdbarch ()); i++)
707 {
708 struct packet_reg *r = &rsa->regs[i];
709
710 if (r->pnum == pnum)
711 return r;
712 }
713 return NULL;
714}
715
716/* FIXME: graces/2002-08-08: These variables should eventually be
717 bound to an instance of the target object (as in gdbarch-tdep()),
718 when such a thing exists. */
719
720/* This is set to the data address of the access causing the target
721 to stop for a watchpoint. */
722static CORE_ADDR remote_watch_data_address;
723
724/* This is non-zero if target stopped for a watchpoint. */
725static int remote_stopped_by_watchpoint_p;
726
727static struct target_ops remote_ops;
728
729static struct target_ops extended_remote_ops;
730
731/* FIXME: cagney/1999-09-23: Even though getpkt was called with
732 ``forever'' still use the normal timeout mechanism. This is
733 currently used by the ASYNC code to guarentee that target reads
734 during the initial connect always time-out. Once getpkt has been
735 modified to return a timeout indication and, in turn
736 remote_wait()/wait_for_inferior() have gained a timeout parameter
737 this can go away. */
738static int wait_forever_enabled_p = 1;
739
740/* Allow the user to specify what sequence to send to the remote
741 when he requests a program interruption: Although ^C is usually
742 what remote systems expect (this is the default, here), it is
743 sometimes preferable to send a break. On other systems such
744 as the Linux kernel, a break followed by g, which is Magic SysRq g
745 is required in order to interrupt the execution. */
746const char interrupt_sequence_control_c[] = "Ctrl-C";
747const char interrupt_sequence_break[] = "BREAK";
748const char interrupt_sequence_break_g[] = "BREAK-g";
749static const char *const interrupt_sequence_modes[] =
750 {
751 interrupt_sequence_control_c,
752 interrupt_sequence_break,
753 interrupt_sequence_break_g,
754 NULL
755 };
756static const char *interrupt_sequence_mode = interrupt_sequence_control_c;
757
758static void
759show_interrupt_sequence (struct ui_file *file, int from_tty,
760 struct cmd_list_element *c,
761 const char *value)
762{
763 if (interrupt_sequence_mode == interrupt_sequence_control_c)
764 fprintf_filtered (file,
765 _("Send the ASCII ETX character (Ctrl-c) "
766 "to the remote target to interrupt the "
767 "execution of the program.\n"));
768 else if (interrupt_sequence_mode == interrupt_sequence_break)
769 fprintf_filtered (file,
770 _("send a break signal to the remote target "
771 "to interrupt the execution of the program.\n"));
772 else if (interrupt_sequence_mode == interrupt_sequence_break_g)
773 fprintf_filtered (file,
774 _("Send a break signal and 'g' a.k.a. Magic SysRq g to "
775 "the remote target to interrupt the execution "
776 "of Linux kernel.\n"));
777 else
778 internal_error (__FILE__, __LINE__,
779 _("Invalid value for interrupt_sequence_mode: %s."),
780 interrupt_sequence_mode);
781}
782
783/* This boolean variable specifies whether interrupt_sequence is sent
784 to the remote target when gdb connects to it.
785 This is mostly needed when you debug the Linux kernel: The Linux kernel
786 expects BREAK g which is Magic SysRq g for connecting gdb. */
787static int interrupt_on_connect = 0;
788
789/* This variable is used to implement the "set/show remotebreak" commands.
790 Since these commands are now deprecated in favor of "set/show remote
791 interrupt-sequence", it no longer has any effect on the code. */
792static int remote_break;
793
794static void
795set_remotebreak (char *args, int from_tty, struct cmd_list_element *c)
796{
797 if (remote_break)
798 interrupt_sequence_mode = interrupt_sequence_break;
799 else
800 interrupt_sequence_mode = interrupt_sequence_control_c;
801}
802
803static void
804show_remotebreak (struct ui_file *file, int from_tty,
805 struct cmd_list_element *c,
806 const char *value)
807{
808}
809
810/* Descriptor for I/O to remote machine. Initialize it to NULL so that
811 remote_open knows that we don't have a file open when the program
812 starts. */
813static struct serial *remote_desc = NULL;
814
815/* This variable sets the number of bits in an address that are to be
816 sent in a memory ("M" or "m") packet. Normally, after stripping
817 leading zeros, the entire address would be sent. This variable
818 restricts the address to REMOTE_ADDRESS_SIZE bits. HISTORY: The
819 initial implementation of remote.c restricted the address sent in
820 memory packets to ``host::sizeof long'' bytes - (typically 32
821 bits). Consequently, for 64 bit targets, the upper 32 bits of an
822 address was never sent. Since fixing this bug may cause a break in
823 some remote targets this variable is principly provided to
824 facilitate backward compatibility. */
825
826static unsigned int remote_address_size;
827
828/* Temporary to track who currently owns the terminal. See
829 remote_terminal_* for more details. */
830
831static int remote_async_terminal_ours_p;
832
833/* The executable file to use for "run" on the remote side. */
834
835static char *remote_exec_file = "";
836
837\f
838/* User configurable variables for the number of characters in a
839 memory read/write packet. MIN (rsa->remote_packet_size,
840 rsa->sizeof_g_packet) is the default. Some targets need smaller
841 values (fifo overruns, et.al.) and some users need larger values
842 (speed up transfers). The variables ``preferred_*'' (the user
843 request), ``current_*'' (what was actually set) and ``forced_*''
844 (Positive - a soft limit, negative - a hard limit). */
845
846struct memory_packet_config
847{
848 char *name;
849 long size;
850 int fixed_p;
851};
852
853/* Compute the current size of a read/write packet. Since this makes
854 use of ``actual_register_packet_size'' the computation is dynamic. */
855
856static long
857get_memory_packet_size (struct memory_packet_config *config)
858{
859 struct remote_state *rs = get_remote_state ();
860 struct remote_arch_state *rsa = get_remote_arch_state ();
861
862 /* NOTE: The somewhat arbitrary 16k comes from the knowledge (folk
863 law?) that some hosts don't cope very well with large alloca()
864 calls. Eventually the alloca() code will be replaced by calls to
865 xmalloc() and make_cleanups() allowing this restriction to either
866 be lifted or removed. */
867#ifndef MAX_REMOTE_PACKET_SIZE
868#define MAX_REMOTE_PACKET_SIZE 16384
869#endif
870 /* NOTE: 20 ensures we can write at least one byte. */
871#ifndef MIN_REMOTE_PACKET_SIZE
872#define MIN_REMOTE_PACKET_SIZE 20
873#endif
874 long what_they_get;
875 if (config->fixed_p)
876 {
877 if (config->size <= 0)
878 what_they_get = MAX_REMOTE_PACKET_SIZE;
879 else
880 what_they_get = config->size;
881 }
882 else
883 {
884 what_they_get = get_remote_packet_size ();
885 /* Limit the packet to the size specified by the user. */
886 if (config->size > 0
887 && what_they_get > config->size)
888 what_they_get = config->size;
889
890 /* Limit it to the size of the targets ``g'' response unless we have
891 permission from the stub to use a larger packet size. */
892 if (rs->explicit_packet_size == 0
893 && rsa->actual_register_packet_size > 0
894 && what_they_get > rsa->actual_register_packet_size)
895 what_they_get = rsa->actual_register_packet_size;
896 }
897 if (what_they_get > MAX_REMOTE_PACKET_SIZE)
898 what_they_get = MAX_REMOTE_PACKET_SIZE;
899 if (what_they_get < MIN_REMOTE_PACKET_SIZE)
900 what_they_get = MIN_REMOTE_PACKET_SIZE;
901
902 /* Make sure there is room in the global buffer for this packet
903 (including its trailing NUL byte). */
904 if (rs->buf_size < what_they_get + 1)
905 {
906 rs->buf_size = 2 * what_they_get;
907 rs->buf = xrealloc (rs->buf, 2 * what_they_get);
908 }
909
910 return what_they_get;
911}
912
913/* Update the size of a read/write packet. If they user wants
914 something really big then do a sanity check. */
915
916static void
917set_memory_packet_size (char *args, struct memory_packet_config *config)
918{
919 int fixed_p = config->fixed_p;
920 long size = config->size;
921
922 if (args == NULL)
923 error (_("Argument required (integer, `fixed' or `limited')."));
924 else if (strcmp (args, "hard") == 0
925 || strcmp (args, "fixed") == 0)
926 fixed_p = 1;
927 else if (strcmp (args, "soft") == 0
928 || strcmp (args, "limit") == 0)
929 fixed_p = 0;
930 else
931 {
932 char *end;
933
934 size = strtoul (args, &end, 0);
935 if (args == end)
936 error (_("Invalid %s (bad syntax)."), config->name);
937#if 0
938 /* Instead of explicitly capping the size of a packet to
939 MAX_REMOTE_PACKET_SIZE or dissallowing it, the user is
940 instead allowed to set the size to something arbitrarily
941 large. */
942 if (size > MAX_REMOTE_PACKET_SIZE)
943 error (_("Invalid %s (too large)."), config->name);
944#endif
945 }
946 /* Extra checks? */
947 if (fixed_p && !config->fixed_p)
948 {
949 if (! query (_("The target may not be able to correctly handle a %s\n"
950 "of %ld bytes. Change the packet size? "),
951 config->name, size))
952 error (_("Packet size not changed."));
953 }
954 /* Update the config. */
955 config->fixed_p = fixed_p;
956 config->size = size;
957}
958
959static void
960show_memory_packet_size (struct memory_packet_config *config)
961{
962 printf_filtered (_("The %s is %ld. "), config->name, config->size);
963 if (config->fixed_p)
964 printf_filtered (_("Packets are fixed at %ld bytes.\n"),
965 get_memory_packet_size (config));
966 else
967 printf_filtered (_("Packets are limited to %ld bytes.\n"),
968 get_memory_packet_size (config));
969}
970
971static struct memory_packet_config memory_write_packet_config =
972{
973 "memory-write-packet-size",
974};
975
976static void
977set_memory_write_packet_size (char *args, int from_tty)
978{
979 set_memory_packet_size (args, &memory_write_packet_config);
980}
981
982static void
983show_memory_write_packet_size (char *args, int from_tty)
984{
985 show_memory_packet_size (&memory_write_packet_config);
986}
987
988static long
989get_memory_write_packet_size (void)
990{
991 return get_memory_packet_size (&memory_write_packet_config);
992}
993
994static struct memory_packet_config memory_read_packet_config =
995{
996 "memory-read-packet-size",
997};
998
999static void
1000set_memory_read_packet_size (char *args, int from_tty)
1001{
1002 set_memory_packet_size (args, &memory_read_packet_config);
1003}
1004
1005static void
1006show_memory_read_packet_size (char *args, int from_tty)
1007{
1008 show_memory_packet_size (&memory_read_packet_config);
1009}
1010
1011static long
1012get_memory_read_packet_size (void)
1013{
1014 long size = get_memory_packet_size (&memory_read_packet_config);
1015
1016 /* FIXME: cagney/1999-11-07: Functions like getpkt() need to get an
1017 extra buffer size argument before the memory read size can be
1018 increased beyond this. */
1019 if (size > get_remote_packet_size ())
1020 size = get_remote_packet_size ();
1021 return size;
1022}
1023
1024\f
1025/* Generic configuration support for packets the stub optionally
1026 supports. Allows the user to specify the use of the packet as well
1027 as allowing GDB to auto-detect support in the remote stub. */
1028
1029enum packet_support
1030 {
1031 PACKET_SUPPORT_UNKNOWN = 0,
1032 PACKET_ENABLE,
1033 PACKET_DISABLE
1034 };
1035
1036struct packet_config
1037 {
1038 const char *name;
1039 const char *title;
1040 enum auto_boolean detect;
1041 enum packet_support support;
1042 };
1043
1044/* Analyze a packet's return value and update the packet config
1045 accordingly. */
1046
1047enum packet_result
1048{
1049 PACKET_ERROR,
1050 PACKET_OK,
1051 PACKET_UNKNOWN
1052};
1053
1054static void
1055update_packet_config (struct packet_config *config)
1056{
1057 switch (config->detect)
1058 {
1059 case AUTO_BOOLEAN_TRUE:
1060 config->support = PACKET_ENABLE;
1061 break;
1062 case AUTO_BOOLEAN_FALSE:
1063 config->support = PACKET_DISABLE;
1064 break;
1065 case AUTO_BOOLEAN_AUTO:
1066 config->support = PACKET_SUPPORT_UNKNOWN;
1067 break;
1068 }
1069}
1070
1071static void
1072show_packet_config_cmd (struct packet_config *config)
1073{
1074 char *support = "internal-error";
1075
1076 switch (config->support)
1077 {
1078 case PACKET_ENABLE:
1079 support = "enabled";
1080 break;
1081 case PACKET_DISABLE:
1082 support = "disabled";
1083 break;
1084 case PACKET_SUPPORT_UNKNOWN:
1085 support = "unknown";
1086 break;
1087 }
1088 switch (config->detect)
1089 {
1090 case AUTO_BOOLEAN_AUTO:
1091 printf_filtered (_("Support for the `%s' packet "
1092 "is auto-detected, currently %s.\n"),
1093 config->name, support);
1094 break;
1095 case AUTO_BOOLEAN_TRUE:
1096 case AUTO_BOOLEAN_FALSE:
1097 printf_filtered (_("Support for the `%s' packet is currently %s.\n"),
1098 config->name, support);
1099 break;
1100 }
1101}
1102
1103static void
1104add_packet_config_cmd (struct packet_config *config, const char *name,
1105 const char *title, int legacy)
1106{
1107 char *set_doc;
1108 char *show_doc;
1109 char *cmd_name;
1110
1111 config->name = name;
1112 config->title = title;
1113 config->detect = AUTO_BOOLEAN_AUTO;
1114 config->support = PACKET_SUPPORT_UNKNOWN;
1115 set_doc = xstrprintf ("Set use of remote protocol `%s' (%s) packet",
1116 name, title);
1117 show_doc = xstrprintf ("Show current use of remote "
1118 "protocol `%s' (%s) packet",
1119 name, title);
1120 /* set/show TITLE-packet {auto,on,off} */
1121 cmd_name = xstrprintf ("%s-packet", title);
1122 add_setshow_auto_boolean_cmd (cmd_name, class_obscure,
1123 &config->detect, set_doc,
1124 show_doc, NULL, /* help_doc */
1125 set_remote_protocol_packet_cmd,
1126 show_remote_protocol_packet_cmd,
1127 &remote_set_cmdlist, &remote_show_cmdlist);
1128 /* The command code copies the documentation strings. */
1129 xfree (set_doc);
1130 xfree (show_doc);
1131 /* set/show remote NAME-packet {auto,on,off} -- legacy. */
1132 if (legacy)
1133 {
1134 char *legacy_name;
1135
1136 legacy_name = xstrprintf ("%s-packet", name);
1137 add_alias_cmd (legacy_name, cmd_name, class_obscure, 0,
1138 &remote_set_cmdlist);
1139 add_alias_cmd (legacy_name, cmd_name, class_obscure, 0,
1140 &remote_show_cmdlist);
1141 }
1142}
1143
1144static enum packet_result
1145packet_check_result (const char *buf)
1146{
1147 if (buf[0] != '\0')
1148 {
1149 /* The stub recognized the packet request. Check that the
1150 operation succeeded. */
1151 if (buf[0] == 'E'
1152 && isxdigit (buf[1]) && isxdigit (buf[2])
1153 && buf[3] == '\0')
1154 /* "Enn" - definitly an error. */
1155 return PACKET_ERROR;
1156
1157 /* Always treat "E." as an error. This will be used for
1158 more verbose error messages, such as E.memtypes. */
1159 if (buf[0] == 'E' && buf[1] == '.')
1160 return PACKET_ERROR;
1161
1162 /* The packet may or may not be OK. Just assume it is. */
1163 return PACKET_OK;
1164 }
1165 else
1166 /* The stub does not support the packet. */
1167 return PACKET_UNKNOWN;
1168}
1169
1170static enum packet_result
1171packet_ok (const char *buf, struct packet_config *config)
1172{
1173 enum packet_result result;
1174
1175 result = packet_check_result (buf);
1176 switch (result)
1177 {
1178 case PACKET_OK:
1179 case PACKET_ERROR:
1180 /* The stub recognized the packet request. */
1181 switch (config->support)
1182 {
1183 case PACKET_SUPPORT_UNKNOWN:
1184 if (remote_debug)
1185 fprintf_unfiltered (gdb_stdlog,
1186 "Packet %s (%s) is supported\n",
1187 config->name, config->title);
1188 config->support = PACKET_ENABLE;
1189 break;
1190 case PACKET_DISABLE:
1191 internal_error (__FILE__, __LINE__,
1192 _("packet_ok: attempt to use a disabled packet"));
1193 break;
1194 case PACKET_ENABLE:
1195 break;
1196 }
1197 break;
1198 case PACKET_UNKNOWN:
1199 /* The stub does not support the packet. */
1200 switch (config->support)
1201 {
1202 case PACKET_ENABLE:
1203 if (config->detect == AUTO_BOOLEAN_AUTO)
1204 /* If the stub previously indicated that the packet was
1205 supported then there is a protocol error.. */
1206 error (_("Protocol error: %s (%s) conflicting enabled responses."),
1207 config->name, config->title);
1208 else
1209 /* The user set it wrong. */
1210 error (_("Enabled packet %s (%s) not recognized by stub"),
1211 config->name, config->title);
1212 break;
1213 case PACKET_SUPPORT_UNKNOWN:
1214 if (remote_debug)
1215 fprintf_unfiltered (gdb_stdlog,
1216 "Packet %s (%s) is NOT supported\n",
1217 config->name, config->title);
1218 config->support = PACKET_DISABLE;
1219 break;
1220 case PACKET_DISABLE:
1221 break;
1222 }
1223 break;
1224 }
1225
1226 return result;
1227}
1228
1229enum {
1230 PACKET_vCont = 0,
1231 PACKET_X,
1232 PACKET_qSymbol,
1233 PACKET_P,
1234 PACKET_p,
1235 PACKET_Z0,
1236 PACKET_Z1,
1237 PACKET_Z2,
1238 PACKET_Z3,
1239 PACKET_Z4,
1240 PACKET_vFile_open,
1241 PACKET_vFile_pread,
1242 PACKET_vFile_pwrite,
1243 PACKET_vFile_close,
1244 PACKET_vFile_unlink,
1245 PACKET_vFile_readlink,
1246 PACKET_qXfer_auxv,
1247 PACKET_qXfer_features,
1248 PACKET_qXfer_libraries,
1249 PACKET_qXfer_libraries_svr4,
1250 PACKET_qXfer_memory_map,
1251 PACKET_qXfer_spu_read,
1252 PACKET_qXfer_spu_write,
1253 PACKET_qXfer_osdata,
1254 PACKET_qXfer_threads,
1255 PACKET_qXfer_statictrace_read,
1256 PACKET_qXfer_traceframe_info,
1257 PACKET_qXfer_uib,
1258 PACKET_qGetTIBAddr,
1259 PACKET_qGetTLSAddr,
1260 PACKET_qSupported,
1261 PACKET_QPassSignals,
1262 PACKET_QProgramSignals,
1263 PACKET_qSearch_memory,
1264 PACKET_vAttach,
1265 PACKET_vRun,
1266 PACKET_QStartNoAckMode,
1267 PACKET_vKill,
1268 PACKET_qXfer_siginfo_read,
1269 PACKET_qXfer_siginfo_write,
1270 PACKET_qAttached,
1271 PACKET_ConditionalTracepoints,
1272 PACKET_ConditionalBreakpoints,
1273 PACKET_BreakpointCommands,
1274 PACKET_FastTracepoints,
1275 PACKET_StaticTracepoints,
1276 PACKET_InstallInTrace,
1277 PACKET_bc,
1278 PACKET_bs,
1279 PACKET_TracepointSource,
1280 PACKET_QAllow,
1281 PACKET_qXfer_fdpic,
1282 PACKET_QDisableRandomization,
1283 PACKET_QAgent,
1284 PACKET_QTBuffer_size,
1285 PACKET_Qbtrace_off,
1286 PACKET_Qbtrace_bts,
1287 PACKET_qXfer_btrace,
1288 PACKET_MAX
1289};
1290
1291static struct packet_config remote_protocol_packets[PACKET_MAX];
1292
1293static void
1294set_remote_protocol_packet_cmd (char *args, int from_tty,
1295 struct cmd_list_element *c)
1296{
1297 struct packet_config *packet;
1298
1299 for (packet = remote_protocol_packets;
1300 packet < &remote_protocol_packets[PACKET_MAX];
1301 packet++)
1302 {
1303 if (&packet->detect == c->var)
1304 {
1305 update_packet_config (packet);
1306 return;
1307 }
1308 }
1309 internal_error (__FILE__, __LINE__, _("Could not find config for %s"),
1310 c->name);
1311}
1312
1313static void
1314show_remote_protocol_packet_cmd (struct ui_file *file, int from_tty,
1315 struct cmd_list_element *c,
1316 const char *value)
1317{
1318 struct packet_config *packet;
1319
1320 for (packet = remote_protocol_packets;
1321 packet < &remote_protocol_packets[PACKET_MAX];
1322 packet++)
1323 {
1324 if (&packet->detect == c->var)
1325 {
1326 show_packet_config_cmd (packet);
1327 return;
1328 }
1329 }
1330 internal_error (__FILE__, __LINE__, _("Could not find config for %s"),
1331 c->name);
1332}
1333
1334/* Should we try one of the 'Z' requests? */
1335
1336enum Z_packet_type
1337{
1338 Z_PACKET_SOFTWARE_BP,
1339 Z_PACKET_HARDWARE_BP,
1340 Z_PACKET_WRITE_WP,
1341 Z_PACKET_READ_WP,
1342 Z_PACKET_ACCESS_WP,
1343 NR_Z_PACKET_TYPES
1344};
1345
1346/* For compatibility with older distributions. Provide a ``set remote
1347 Z-packet ...'' command that updates all the Z packet types. */
1348
1349static enum auto_boolean remote_Z_packet_detect;
1350
1351static void
1352set_remote_protocol_Z_packet_cmd (char *args, int from_tty,
1353 struct cmd_list_element *c)
1354{
1355 int i;
1356
1357 for (i = 0; i < NR_Z_PACKET_TYPES; i++)
1358 {
1359 remote_protocol_packets[PACKET_Z0 + i].detect = remote_Z_packet_detect;
1360 update_packet_config (&remote_protocol_packets[PACKET_Z0 + i]);
1361 }
1362}
1363
1364static void
1365show_remote_protocol_Z_packet_cmd (struct ui_file *file, int from_tty,
1366 struct cmd_list_element *c,
1367 const char *value)
1368{
1369 int i;
1370
1371 for (i = 0; i < NR_Z_PACKET_TYPES; i++)
1372 {
1373 show_packet_config_cmd (&remote_protocol_packets[PACKET_Z0 + i]);
1374 }
1375}
1376
1377/* Should we try the 'ThreadInfo' query packet?
1378
1379 This variable (NOT available to the user: auto-detect only!)
1380 determines whether GDB will use the new, simpler "ThreadInfo"
1381 query or the older, more complex syntax for thread queries.
1382 This is an auto-detect variable (set to true at each connect,
1383 and set to false when the target fails to recognize it). */
1384
1385static int use_threadinfo_query;
1386static int use_threadextra_query;
1387
1388/* Tokens for use by the asynchronous signal handlers for SIGINT. */
1389static struct async_signal_handler *sigint_remote_twice_token;
1390static struct async_signal_handler *sigint_remote_token;
1391
1392\f
1393/* Asynchronous signal handle registered as event loop source for
1394 when we have pending events ready to be passed to the core. */
1395
1396static struct async_event_handler *remote_async_inferior_event_token;
1397
1398\f
1399
1400static ptid_t magic_null_ptid;
1401static ptid_t not_sent_ptid;
1402static ptid_t any_thread_ptid;
1403
1404/* These are the threads which we last sent to the remote system. The
1405 TID member will be -1 for all or -2 for not sent yet. */
1406
1407static ptid_t general_thread;
1408static ptid_t continue_thread;
1409
1410/* This is the traceframe which we last selected on the remote system.
1411 It will be -1 if no traceframe is selected. */
1412static int remote_traceframe_number = -1;
1413
1414/* Find out if the stub attached to PID (and hence GDB should offer to
1415 detach instead of killing it when bailing out). */
1416
1417static int
1418remote_query_attached (int pid)
1419{
1420 struct remote_state *rs = get_remote_state ();
1421 size_t size = get_remote_packet_size ();
1422
1423 if (remote_protocol_packets[PACKET_qAttached].support == PACKET_DISABLE)
1424 return 0;
1425
1426 if (remote_multi_process_p (rs))
1427 xsnprintf (rs->buf, size, "qAttached:%x", pid);
1428 else
1429 xsnprintf (rs->buf, size, "qAttached");
1430
1431 putpkt (rs->buf);
1432 getpkt (&rs->buf, &rs->buf_size, 0);
1433
1434 switch (packet_ok (rs->buf,
1435 &remote_protocol_packets[PACKET_qAttached]))
1436 {
1437 case PACKET_OK:
1438 if (strcmp (rs->buf, "1") == 0)
1439 return 1;
1440 break;
1441 case PACKET_ERROR:
1442 warning (_("Remote failure reply: %s"), rs->buf);
1443 break;
1444 case PACKET_UNKNOWN:
1445 break;
1446 }
1447
1448 return 0;
1449}
1450
1451/* Add PID to GDB's inferior table. If FAKE_PID_P is true, then PID
1452 has been invented by GDB, instead of reported by the target. Since
1453 we can be connected to a remote system before before knowing about
1454 any inferior, mark the target with execution when we find the first
1455 inferior. If ATTACHED is 1, then we had just attached to this
1456 inferior. If it is 0, then we just created this inferior. If it
1457 is -1, then try querying the remote stub to find out if it had
1458 attached to the inferior or not. */
1459
1460static struct inferior *
1461remote_add_inferior (int fake_pid_p, int pid, int attached)
1462{
1463 struct inferior *inf;
1464
1465 /* Check whether this process we're learning about is to be
1466 considered attached, or if is to be considered to have been
1467 spawned by the stub. */
1468 if (attached == -1)
1469 attached = remote_query_attached (pid);
1470
1471 if (gdbarch_has_global_solist (target_gdbarch ()))
1472 {
1473 /* If the target shares code across all inferiors, then every
1474 attach adds a new inferior. */
1475 inf = add_inferior (pid);
1476
1477 /* ... and every inferior is bound to the same program space.
1478 However, each inferior may still have its own address
1479 space. */
1480 inf->aspace = maybe_new_address_space ();
1481 inf->pspace = current_program_space;
1482 }
1483 else
1484 {
1485 /* In the traditional debugging scenario, there's a 1-1 match
1486 between program/address spaces. We simply bind the inferior
1487 to the program space's address space. */
1488 inf = current_inferior ();
1489 inferior_appeared (inf, pid);
1490 }
1491
1492 inf->attach_flag = attached;
1493 inf->fake_pid_p = fake_pid_p;
1494
1495 return inf;
1496}
1497
1498/* Add thread PTID to GDB's thread list. Tag it as executing/running
1499 according to RUNNING. */
1500
1501static void
1502remote_add_thread (ptid_t ptid, int running)
1503{
1504 add_thread (ptid);
1505
1506 set_executing (ptid, running);
1507 set_running (ptid, running);
1508}
1509
1510/* Come here when we learn about a thread id from the remote target.
1511 It may be the first time we hear about such thread, so take the
1512 opportunity to add it to GDB's thread list. In case this is the
1513 first time we're noticing its corresponding inferior, add it to
1514 GDB's inferior list as well. */
1515
1516static void
1517remote_notice_new_inferior (ptid_t currthread, int running)
1518{
1519 /* If this is a new thread, add it to GDB's thread list.
1520 If we leave it up to WFI to do this, bad things will happen. */
1521
1522 if (in_thread_list (currthread) && is_exited (currthread))
1523 {
1524 /* We're seeing an event on a thread id we knew had exited.
1525 This has to be a new thread reusing the old id. Add it. */
1526 remote_add_thread (currthread, running);
1527 return;
1528 }
1529
1530 if (!in_thread_list (currthread))
1531 {
1532 struct inferior *inf = NULL;
1533 int pid = ptid_get_pid (currthread);
1534
1535 if (ptid_is_pid (inferior_ptid)
1536 && pid == ptid_get_pid (inferior_ptid))
1537 {
1538 /* inferior_ptid has no thread member yet. This can happen
1539 with the vAttach -> remote_wait,"TAAthread:" path if the
1540 stub doesn't support qC. This is the first stop reported
1541 after an attach, so this is the main thread. Update the
1542 ptid in the thread list. */
1543 if (in_thread_list (pid_to_ptid (pid)))
1544 thread_change_ptid (inferior_ptid, currthread);
1545 else
1546 {
1547 remote_add_thread (currthread, running);
1548 inferior_ptid = currthread;
1549 }
1550 return;
1551 }
1552
1553 if (ptid_equal (magic_null_ptid, inferior_ptid))
1554 {
1555 /* inferior_ptid is not set yet. This can happen with the
1556 vRun -> remote_wait,"TAAthread:" path if the stub
1557 doesn't support qC. This is the first stop reported
1558 after an attach, so this is the main thread. Update the
1559 ptid in the thread list. */
1560 thread_change_ptid (inferior_ptid, currthread);
1561 return;
1562 }
1563
1564 /* When connecting to a target remote, or to a target
1565 extended-remote which already was debugging an inferior, we
1566 may not know about it yet. Add it before adding its child
1567 thread, so notifications are emitted in a sensible order. */
1568 if (!in_inferior_list (ptid_get_pid (currthread)))
1569 {
1570 struct remote_state *rs = get_remote_state ();
1571 int fake_pid_p = !remote_multi_process_p (rs);
1572
1573 inf = remote_add_inferior (fake_pid_p,
1574 ptid_get_pid (currthread), -1);
1575 }
1576
1577 /* This is really a new thread. Add it. */
1578 remote_add_thread (currthread, running);
1579
1580 /* If we found a new inferior, let the common code do whatever
1581 it needs to with it (e.g., read shared libraries, insert
1582 breakpoints). */
1583 if (inf != NULL)
1584 notice_new_inferior (currthread, running, 0);
1585 }
1586}
1587
1588/* Return the private thread data, creating it if necessary. */
1589
1590static struct private_thread_info *
1591demand_private_info (ptid_t ptid)
1592{
1593 struct thread_info *info = find_thread_ptid (ptid);
1594
1595 gdb_assert (info);
1596
1597 if (!info->private)
1598 {
1599 info->private = xmalloc (sizeof (*(info->private)));
1600 info->private_dtor = free_private_thread_info;
1601 info->private->core = -1;
1602 info->private->extra = 0;
1603 }
1604
1605 return info->private;
1606}
1607
1608/* Call this function as a result of
1609 1) A halt indication (T packet) containing a thread id
1610 2) A direct query of currthread
1611 3) Successful execution of set thread */
1612
1613static void
1614record_currthread (ptid_t currthread)
1615{
1616 general_thread = currthread;
1617}
1618
1619static char *last_pass_packet;
1620
1621/* If 'QPassSignals' is supported, tell the remote stub what signals
1622 it can simply pass through to the inferior without reporting. */
1623
1624static void
1625remote_pass_signals (int numsigs, unsigned char *pass_signals)
1626{
1627 if (remote_protocol_packets[PACKET_QPassSignals].support != PACKET_DISABLE)
1628 {
1629 char *pass_packet, *p;
1630 int count = 0, i;
1631
1632 gdb_assert (numsigs < 256);
1633 for (i = 0; i < numsigs; i++)
1634 {
1635 if (pass_signals[i])
1636 count++;
1637 }
1638 pass_packet = xmalloc (count * 3 + strlen ("QPassSignals:") + 1);
1639 strcpy (pass_packet, "QPassSignals:");
1640 p = pass_packet + strlen (pass_packet);
1641 for (i = 0; i < numsigs; i++)
1642 {
1643 if (pass_signals[i])
1644 {
1645 if (i >= 16)
1646 *p++ = tohex (i >> 4);
1647 *p++ = tohex (i & 15);
1648 if (count)
1649 *p++ = ';';
1650 else
1651 break;
1652 count--;
1653 }
1654 }
1655 *p = 0;
1656 if (!last_pass_packet || strcmp (last_pass_packet, pass_packet))
1657 {
1658 struct remote_state *rs = get_remote_state ();
1659 char *buf = rs->buf;
1660
1661 putpkt (pass_packet);
1662 getpkt (&rs->buf, &rs->buf_size, 0);
1663 packet_ok (buf, &remote_protocol_packets[PACKET_QPassSignals]);
1664 if (last_pass_packet)
1665 xfree (last_pass_packet);
1666 last_pass_packet = pass_packet;
1667 }
1668 else
1669 xfree (pass_packet);
1670 }
1671}
1672
1673/* The last QProgramSignals packet sent to the target. We bypass
1674 sending a new program signals list down to the target if the new
1675 packet is exactly the same as the last we sent. IOW, we only let
1676 the target know about program signals list changes. */
1677
1678static char *last_program_signals_packet;
1679
1680/* If 'QProgramSignals' is supported, tell the remote stub what
1681 signals it should pass through to the inferior when detaching. */
1682
1683static void
1684remote_program_signals (int numsigs, unsigned char *signals)
1685{
1686 if (remote_protocol_packets[PACKET_QProgramSignals].support != PACKET_DISABLE)
1687 {
1688 char *packet, *p;
1689 int count = 0, i;
1690
1691 gdb_assert (numsigs < 256);
1692 for (i = 0; i < numsigs; i++)
1693 {
1694 if (signals[i])
1695 count++;
1696 }
1697 packet = xmalloc (count * 3 + strlen ("QProgramSignals:") + 1);
1698 strcpy (packet, "QProgramSignals:");
1699 p = packet + strlen (packet);
1700 for (i = 0; i < numsigs; i++)
1701 {
1702 if (signal_pass_state (i))
1703 {
1704 if (i >= 16)
1705 *p++ = tohex (i >> 4);
1706 *p++ = tohex (i & 15);
1707 if (count)
1708 *p++ = ';';
1709 else
1710 break;
1711 count--;
1712 }
1713 }
1714 *p = 0;
1715 if (!last_program_signals_packet
1716 || strcmp (last_program_signals_packet, packet) != 0)
1717 {
1718 struct remote_state *rs = get_remote_state ();
1719 char *buf = rs->buf;
1720
1721 putpkt (packet);
1722 getpkt (&rs->buf, &rs->buf_size, 0);
1723 packet_ok (buf, &remote_protocol_packets[PACKET_QProgramSignals]);
1724 xfree (last_program_signals_packet);
1725 last_program_signals_packet = packet;
1726 }
1727 else
1728 xfree (packet);
1729 }
1730}
1731
1732/* If PTID is MAGIC_NULL_PTID, don't set any thread. If PTID is
1733 MINUS_ONE_PTID, set the thread to -1, so the stub returns the
1734 thread. If GEN is set, set the general thread, if not, then set
1735 the step/continue thread. */
1736static void
1737set_thread (struct ptid ptid, int gen)
1738{
1739 struct remote_state *rs = get_remote_state ();
1740 ptid_t state = gen ? general_thread : continue_thread;
1741 char *buf = rs->buf;
1742 char *endbuf = rs->buf + get_remote_packet_size ();
1743
1744 if (ptid_equal (state, ptid))
1745 return;
1746
1747 *buf++ = 'H';
1748 *buf++ = gen ? 'g' : 'c';
1749 if (ptid_equal (ptid, magic_null_ptid))
1750 xsnprintf (buf, endbuf - buf, "0");
1751 else if (ptid_equal (ptid, any_thread_ptid))
1752 xsnprintf (buf, endbuf - buf, "0");
1753 else if (ptid_equal (ptid, minus_one_ptid))
1754 xsnprintf (buf, endbuf - buf, "-1");
1755 else
1756 write_ptid (buf, endbuf, ptid);
1757 putpkt (rs->buf);
1758 getpkt (&rs->buf, &rs->buf_size, 0);
1759 if (gen)
1760 general_thread = ptid;
1761 else
1762 continue_thread = ptid;
1763}
1764
1765static void
1766set_general_thread (struct ptid ptid)
1767{
1768 set_thread (ptid, 1);
1769}
1770
1771static void
1772set_continue_thread (struct ptid ptid)
1773{
1774 set_thread (ptid, 0);
1775}
1776
1777/* Change the remote current process. Which thread within the process
1778 ends up selected isn't important, as long as it is the same process
1779 as what INFERIOR_PTID points to.
1780
1781 This comes from that fact that there is no explicit notion of
1782 "selected process" in the protocol. The selected process for
1783 general operations is the process the selected general thread
1784 belongs to. */
1785
1786static void
1787set_general_process (void)
1788{
1789 struct remote_state *rs = get_remote_state ();
1790
1791 /* If the remote can't handle multiple processes, don't bother. */
1792 if (!rs->extended || !remote_multi_process_p (rs))
1793 return;
1794
1795 /* We only need to change the remote current thread if it's pointing
1796 at some other process. */
1797 if (ptid_get_pid (general_thread) != ptid_get_pid (inferior_ptid))
1798 set_general_thread (inferior_ptid);
1799}
1800
1801\f
1802/* Return nonzero if the thread PTID is still alive on the remote
1803 system. */
1804
1805static int
1806remote_thread_alive (struct target_ops *ops, ptid_t ptid)
1807{
1808 struct remote_state *rs = get_remote_state ();
1809 char *p, *endp;
1810
1811 if (ptid_equal (ptid, magic_null_ptid))
1812 /* The main thread is always alive. */
1813 return 1;
1814
1815 if (ptid_get_pid (ptid) != 0 && ptid_get_tid (ptid) == 0)
1816 /* The main thread is always alive. This can happen after a
1817 vAttach, if the remote side doesn't support
1818 multi-threading. */
1819 return 1;
1820
1821 p = rs->buf;
1822 endp = rs->buf + get_remote_packet_size ();
1823
1824 *p++ = 'T';
1825 write_ptid (p, endp, ptid);
1826
1827 putpkt (rs->buf);
1828 getpkt (&rs->buf, &rs->buf_size, 0);
1829 return (rs->buf[0] == 'O' && rs->buf[1] == 'K');
1830}
1831
1832/* About these extended threadlist and threadinfo packets. They are
1833 variable length packets but, the fields within them are often fixed
1834 length. They are redundent enough to send over UDP as is the
1835 remote protocol in general. There is a matching unit test module
1836 in libstub. */
1837
1838#define OPAQUETHREADBYTES 8
1839
1840/* a 64 bit opaque identifier */
1841typedef unsigned char threadref[OPAQUETHREADBYTES];
1842
1843/* WARNING: This threadref data structure comes from the remote O.S.,
1844 libstub protocol encoding, and remote.c. It is not particularly
1845 changable. */
1846
1847/* Right now, the internal structure is int. We want it to be bigger.
1848 Plan to fix this. */
1849
1850typedef int gdb_threadref; /* Internal GDB thread reference. */
1851
1852/* gdb_ext_thread_info is an internal GDB data structure which is
1853 equivalent to the reply of the remote threadinfo packet. */
1854
1855struct gdb_ext_thread_info
1856 {
1857 threadref threadid; /* External form of thread reference. */
1858 int active; /* Has state interesting to GDB?
1859 regs, stack. */
1860 char display[256]; /* Brief state display, name,
1861 blocked/suspended. */
1862 char shortname[32]; /* To be used to name threads. */
1863 char more_display[256]; /* Long info, statistics, queue depth,
1864 whatever. */
1865 };
1866
1867/* The volume of remote transfers can be limited by submitting
1868 a mask containing bits specifying the desired information.
1869 Use a union of these values as the 'selection' parameter to
1870 get_thread_info. FIXME: Make these TAG names more thread specific. */
1871
1872#define TAG_THREADID 1
1873#define TAG_EXISTS 2
1874#define TAG_DISPLAY 4
1875#define TAG_THREADNAME 8
1876#define TAG_MOREDISPLAY 16
1877
1878#define BUF_THREAD_ID_SIZE (OPAQUETHREADBYTES * 2)
1879
1880char *unpack_varlen_hex (char *buff, ULONGEST *result);
1881
1882static char *unpack_nibble (char *buf, int *val);
1883
1884static char *pack_nibble (char *buf, int nibble);
1885
1886static char *pack_hex_byte (char *pkt, int /* unsigned char */ byte);
1887
1888static char *unpack_byte (char *buf, int *value);
1889
1890static char *pack_int (char *buf, int value);
1891
1892static char *unpack_int (char *buf, int *value);
1893
1894static char *unpack_string (char *src, char *dest, int length);
1895
1896static char *pack_threadid (char *pkt, threadref *id);
1897
1898static char *unpack_threadid (char *inbuf, threadref *id);
1899
1900void int_to_threadref (threadref *id, int value);
1901
1902static int threadref_to_int (threadref *ref);
1903
1904static void copy_threadref (threadref *dest, threadref *src);
1905
1906static int threadmatch (threadref *dest, threadref *src);
1907
1908static char *pack_threadinfo_request (char *pkt, int mode,
1909 threadref *id);
1910
1911static int remote_unpack_thread_info_response (char *pkt,
1912 threadref *expectedref,
1913 struct gdb_ext_thread_info
1914 *info);
1915
1916
1917static int remote_get_threadinfo (threadref *threadid,
1918 int fieldset, /*TAG mask */
1919 struct gdb_ext_thread_info *info);
1920
1921static char *pack_threadlist_request (char *pkt, int startflag,
1922 int threadcount,
1923 threadref *nextthread);
1924
1925static int parse_threadlist_response (char *pkt,
1926 int result_limit,
1927 threadref *original_echo,
1928 threadref *resultlist,
1929 int *doneflag);
1930
1931static int remote_get_threadlist (int startflag,
1932 threadref *nextthread,
1933 int result_limit,
1934 int *done,
1935 int *result_count,
1936 threadref *threadlist);
1937
1938typedef int (*rmt_thread_action) (threadref *ref, void *context);
1939
1940static int remote_threadlist_iterator (rmt_thread_action stepfunction,
1941 void *context, int looplimit);
1942
1943static int remote_newthread_step (threadref *ref, void *context);
1944
1945
1946/* Write a PTID to BUF. ENDBUF points to one-passed-the-end of the
1947 buffer we're allowed to write to. Returns
1948 BUF+CHARACTERS_WRITTEN. */
1949
1950static char *
1951write_ptid (char *buf, const char *endbuf, ptid_t ptid)
1952{
1953 int pid, tid;
1954 struct remote_state *rs = get_remote_state ();
1955
1956 if (remote_multi_process_p (rs))
1957 {
1958 pid = ptid_get_pid (ptid);
1959 if (pid < 0)
1960 buf += xsnprintf (buf, endbuf - buf, "p-%x.", -pid);
1961 else
1962 buf += xsnprintf (buf, endbuf - buf, "p%x.", pid);
1963 }
1964 tid = ptid_get_tid (ptid);
1965 if (tid < 0)
1966 buf += xsnprintf (buf, endbuf - buf, "-%x", -tid);
1967 else
1968 buf += xsnprintf (buf, endbuf - buf, "%x", tid);
1969
1970 return buf;
1971}
1972
1973/* Extract a PTID from BUF. If non-null, OBUF is set to the to one
1974 passed the last parsed char. Returns null_ptid on error. */
1975
1976static ptid_t
1977read_ptid (char *buf, char **obuf)
1978{
1979 char *p = buf;
1980 char *pp;
1981 ULONGEST pid = 0, tid = 0;
1982
1983 if (*p == 'p')
1984 {
1985 /* Multi-process ptid. */
1986 pp = unpack_varlen_hex (p + 1, &pid);
1987 if (*pp != '.')
1988 error (_("invalid remote ptid: %s"), p);
1989
1990 p = pp;
1991 pp = unpack_varlen_hex (p + 1, &tid);
1992 if (obuf)
1993 *obuf = pp;
1994 return ptid_build (pid, 0, tid);
1995 }
1996
1997 /* No multi-process. Just a tid. */
1998 pp = unpack_varlen_hex (p, &tid);
1999
2000 /* Since the stub is not sending a process id, then default to
2001 what's in inferior_ptid, unless it's null at this point. If so,
2002 then since there's no way to know the pid of the reported
2003 threads, use the magic number. */
2004 if (ptid_equal (inferior_ptid, null_ptid))
2005 pid = ptid_get_pid (magic_null_ptid);
2006 else
2007 pid = ptid_get_pid (inferior_ptid);
2008
2009 if (obuf)
2010 *obuf = pp;
2011 return ptid_build (pid, 0, tid);
2012}
2013
2014/* Encode 64 bits in 16 chars of hex. */
2015
2016static const char hexchars[] = "0123456789abcdef";
2017
2018static int
2019ishex (int ch, int *val)
2020{
2021 if ((ch >= 'a') && (ch <= 'f'))
2022 {
2023 *val = ch - 'a' + 10;
2024 return 1;
2025 }
2026 if ((ch >= 'A') && (ch <= 'F'))
2027 {
2028 *val = ch - 'A' + 10;
2029 return 1;
2030 }
2031 if ((ch >= '0') && (ch <= '9'))
2032 {
2033 *val = ch - '0';
2034 return 1;
2035 }
2036 return 0;
2037}
2038
2039static int
2040stubhex (int ch)
2041{
2042 if (ch >= 'a' && ch <= 'f')
2043 return ch - 'a' + 10;
2044 if (ch >= '0' && ch <= '9')
2045 return ch - '0';
2046 if (ch >= 'A' && ch <= 'F')
2047 return ch - 'A' + 10;
2048 return -1;
2049}
2050
2051static int
2052stub_unpack_int (char *buff, int fieldlength)
2053{
2054 int nibble;
2055 int retval = 0;
2056
2057 while (fieldlength)
2058 {
2059 nibble = stubhex (*buff++);
2060 retval |= nibble;
2061 fieldlength--;
2062 if (fieldlength)
2063 retval = retval << 4;
2064 }
2065 return retval;
2066}
2067
2068char *
2069unpack_varlen_hex (char *buff, /* packet to parse */
2070 ULONGEST *result)
2071{
2072 int nibble;
2073 ULONGEST retval = 0;
2074
2075 while (ishex (*buff, &nibble))
2076 {
2077 buff++;
2078 retval = retval << 4;
2079 retval |= nibble & 0x0f;
2080 }
2081 *result = retval;
2082 return buff;
2083}
2084
2085static char *
2086unpack_nibble (char *buf, int *val)
2087{
2088 *val = fromhex (*buf++);
2089 return buf;
2090}
2091
2092static char *
2093pack_nibble (char *buf, int nibble)
2094{
2095 *buf++ = hexchars[(nibble & 0x0f)];
2096 return buf;
2097}
2098
2099static char *
2100pack_hex_byte (char *pkt, int byte)
2101{
2102 *pkt++ = hexchars[(byte >> 4) & 0xf];
2103 *pkt++ = hexchars[(byte & 0xf)];
2104 return pkt;
2105}
2106
2107static char *
2108unpack_byte (char *buf, int *value)
2109{
2110 *value = stub_unpack_int (buf, 2);
2111 return buf + 2;
2112}
2113
2114static char *
2115pack_int (char *buf, int value)
2116{
2117 buf = pack_hex_byte (buf, (value >> 24) & 0xff);
2118 buf = pack_hex_byte (buf, (value >> 16) & 0xff);
2119 buf = pack_hex_byte (buf, (value >> 8) & 0x0ff);
2120 buf = pack_hex_byte (buf, (value & 0xff));
2121 return buf;
2122}
2123
2124static char *
2125unpack_int (char *buf, int *value)
2126{
2127 *value = stub_unpack_int (buf, 8);
2128 return buf + 8;
2129}
2130
2131#if 0 /* Currently unused, uncomment when needed. */
2132static char *pack_string (char *pkt, char *string);
2133
2134static char *
2135pack_string (char *pkt, char *string)
2136{
2137 char ch;
2138 int len;
2139
2140 len = strlen (string);
2141 if (len > 200)
2142 len = 200; /* Bigger than most GDB packets, junk??? */
2143 pkt = pack_hex_byte (pkt, len);
2144 while (len-- > 0)
2145 {
2146 ch = *string++;
2147 if ((ch == '\0') || (ch == '#'))
2148 ch = '*'; /* Protect encapsulation. */
2149 *pkt++ = ch;
2150 }
2151 return pkt;
2152}
2153#endif /* 0 (unused) */
2154
2155static char *
2156unpack_string (char *src, char *dest, int length)
2157{
2158 while (length--)
2159 *dest++ = *src++;
2160 *dest = '\0';
2161 return src;
2162}
2163
2164static char *
2165pack_threadid (char *pkt, threadref *id)
2166{
2167 char *limit;
2168 unsigned char *altid;
2169
2170 altid = (unsigned char *) id;
2171 limit = pkt + BUF_THREAD_ID_SIZE;
2172 while (pkt < limit)
2173 pkt = pack_hex_byte (pkt, *altid++);
2174 return pkt;
2175}
2176
2177
2178static char *
2179unpack_threadid (char *inbuf, threadref *id)
2180{
2181 char *altref;
2182 char *limit = inbuf + BUF_THREAD_ID_SIZE;
2183 int x, y;
2184
2185 altref = (char *) id;
2186
2187 while (inbuf < limit)
2188 {
2189 x = stubhex (*inbuf++);
2190 y = stubhex (*inbuf++);
2191 *altref++ = (x << 4) | y;
2192 }
2193 return inbuf;
2194}
2195
2196/* Externally, threadrefs are 64 bits but internally, they are still
2197 ints. This is due to a mismatch of specifications. We would like
2198 to use 64bit thread references internally. This is an adapter
2199 function. */
2200
2201void
2202int_to_threadref (threadref *id, int value)
2203{
2204 unsigned char *scan;
2205
2206 scan = (unsigned char *) id;
2207 {
2208 int i = 4;
2209 while (i--)
2210 *scan++ = 0;
2211 }
2212 *scan++ = (value >> 24) & 0xff;
2213 *scan++ = (value >> 16) & 0xff;
2214 *scan++ = (value >> 8) & 0xff;
2215 *scan++ = (value & 0xff);
2216}
2217
2218static int
2219threadref_to_int (threadref *ref)
2220{
2221 int i, value = 0;
2222 unsigned char *scan;
2223
2224 scan = *ref;
2225 scan += 4;
2226 i = 4;
2227 while (i-- > 0)
2228 value = (value << 8) | ((*scan++) & 0xff);
2229 return value;
2230}
2231
2232static void
2233copy_threadref (threadref *dest, threadref *src)
2234{
2235 int i;
2236 unsigned char *csrc, *cdest;
2237
2238 csrc = (unsigned char *) src;
2239 cdest = (unsigned char *) dest;
2240 i = 8;
2241 while (i--)
2242 *cdest++ = *csrc++;
2243}
2244
2245static int
2246threadmatch (threadref *dest, threadref *src)
2247{
2248 /* Things are broken right now, so just assume we got a match. */
2249#if 0
2250 unsigned char *srcp, *destp;
2251 int i, result;
2252 srcp = (char *) src;
2253 destp = (char *) dest;
2254
2255 result = 1;
2256 while (i-- > 0)
2257 result &= (*srcp++ == *destp++) ? 1 : 0;
2258 return result;
2259#endif
2260 return 1;
2261}
2262
2263/*
2264 threadid:1, # always request threadid
2265 context_exists:2,
2266 display:4,
2267 unique_name:8,
2268 more_display:16
2269 */
2270
2271/* Encoding: 'Q':8,'P':8,mask:32,threadid:64 */
2272
2273static char *
2274pack_threadinfo_request (char *pkt, int mode, threadref *id)
2275{
2276 *pkt++ = 'q'; /* Info Query */
2277 *pkt++ = 'P'; /* process or thread info */
2278 pkt = pack_int (pkt, mode); /* mode */
2279 pkt = pack_threadid (pkt, id); /* threadid */
2280 *pkt = '\0'; /* terminate */
2281 return pkt;
2282}
2283
2284/* These values tag the fields in a thread info response packet. */
2285/* Tagging the fields allows us to request specific fields and to
2286 add more fields as time goes by. */
2287
2288#define TAG_THREADID 1 /* Echo the thread identifier. */
2289#define TAG_EXISTS 2 /* Is this process defined enough to
2290 fetch registers and its stack? */
2291#define TAG_DISPLAY 4 /* A short thing maybe to put on a window */
2292#define TAG_THREADNAME 8 /* string, maps 1-to-1 with a thread is. */
2293#define TAG_MOREDISPLAY 16 /* Whatever the kernel wants to say about
2294 the process. */
2295
2296static int
2297remote_unpack_thread_info_response (char *pkt, threadref *expectedref,
2298 struct gdb_ext_thread_info *info)
2299{
2300 struct remote_state *rs = get_remote_state ();
2301 int mask, length;
2302 int tag;
2303 threadref ref;
2304 char *limit = pkt + rs->buf_size; /* Plausible parsing limit. */
2305 int retval = 1;
2306
2307 /* info->threadid = 0; FIXME: implement zero_threadref. */
2308 info->active = 0;
2309 info->display[0] = '\0';
2310 info->shortname[0] = '\0';
2311 info->more_display[0] = '\0';
2312
2313 /* Assume the characters indicating the packet type have been
2314 stripped. */
2315 pkt = unpack_int (pkt, &mask); /* arg mask */
2316 pkt = unpack_threadid (pkt, &ref);
2317
2318 if (mask == 0)
2319 warning (_("Incomplete response to threadinfo request."));
2320 if (!threadmatch (&ref, expectedref))
2321 { /* This is an answer to a different request. */
2322 warning (_("ERROR RMT Thread info mismatch."));
2323 return 0;
2324 }
2325 copy_threadref (&info->threadid, &ref);
2326
2327 /* Loop on tagged fields , try to bail if somthing goes wrong. */
2328
2329 /* Packets are terminated with nulls. */
2330 while ((pkt < limit) && mask && *pkt)
2331 {
2332 pkt = unpack_int (pkt, &tag); /* tag */
2333 pkt = unpack_byte (pkt, &length); /* length */
2334 if (!(tag & mask)) /* Tags out of synch with mask. */
2335 {
2336 warning (_("ERROR RMT: threadinfo tag mismatch."));
2337 retval = 0;
2338 break;
2339 }
2340 if (tag == TAG_THREADID)
2341 {
2342 if (length != 16)
2343 {
2344 warning (_("ERROR RMT: length of threadid is not 16."));
2345 retval = 0;
2346 break;
2347 }
2348 pkt = unpack_threadid (pkt, &ref);
2349 mask = mask & ~TAG_THREADID;
2350 continue;
2351 }
2352 if (tag == TAG_EXISTS)
2353 {
2354 info->active = stub_unpack_int (pkt, length);
2355 pkt += length;
2356 mask = mask & ~(TAG_EXISTS);
2357 if (length > 8)
2358 {
2359 warning (_("ERROR RMT: 'exists' length too long."));
2360 retval = 0;
2361 break;
2362 }
2363 continue;
2364 }
2365 if (tag == TAG_THREADNAME)
2366 {
2367 pkt = unpack_string (pkt, &info->shortname[0], length);
2368 mask = mask & ~TAG_THREADNAME;
2369 continue;
2370 }
2371 if (tag == TAG_DISPLAY)
2372 {
2373 pkt = unpack_string (pkt, &info->display[0], length);
2374 mask = mask & ~TAG_DISPLAY;
2375 continue;
2376 }
2377 if (tag == TAG_MOREDISPLAY)
2378 {
2379 pkt = unpack_string (pkt, &info->more_display[0], length);
2380 mask = mask & ~TAG_MOREDISPLAY;
2381 continue;
2382 }
2383 warning (_("ERROR RMT: unknown thread info tag."));
2384 break; /* Not a tag we know about. */
2385 }
2386 return retval;
2387}
2388
2389static int
2390remote_get_threadinfo (threadref *threadid, int fieldset, /* TAG mask */
2391 struct gdb_ext_thread_info *info)
2392{
2393 struct remote_state *rs = get_remote_state ();
2394 int result;
2395
2396 pack_threadinfo_request (rs->buf, fieldset, threadid);
2397 putpkt (rs->buf);
2398 getpkt (&rs->buf, &rs->buf_size, 0);
2399
2400 if (rs->buf[0] == '\0')
2401 return 0;
2402
2403 result = remote_unpack_thread_info_response (rs->buf + 2,
2404 threadid, info);
2405 return result;
2406}
2407
2408/* Format: i'Q':8,i"L":8,initflag:8,batchsize:16,lastthreadid:32 */
2409
2410static char *
2411pack_threadlist_request (char *pkt, int startflag, int threadcount,
2412 threadref *nextthread)
2413{
2414 *pkt++ = 'q'; /* info query packet */
2415 *pkt++ = 'L'; /* Process LIST or threadLIST request */
2416 pkt = pack_nibble (pkt, startflag); /* initflag 1 bytes */
2417 pkt = pack_hex_byte (pkt, threadcount); /* threadcount 2 bytes */
2418 pkt = pack_threadid (pkt, nextthread); /* 64 bit thread identifier */
2419 *pkt = '\0';
2420 return pkt;
2421}
2422
2423/* Encoding: 'q':8,'M':8,count:16,done:8,argthreadid:64,(threadid:64)* */
2424
2425static int
2426parse_threadlist_response (char *pkt, int result_limit,
2427 threadref *original_echo, threadref *resultlist,
2428 int *doneflag)
2429{
2430 struct remote_state *rs = get_remote_state ();
2431 char *limit;
2432 int count, resultcount, done;
2433
2434 resultcount = 0;
2435 /* Assume the 'q' and 'M chars have been stripped. */
2436 limit = pkt + (rs->buf_size - BUF_THREAD_ID_SIZE);
2437 /* done parse past here */
2438 pkt = unpack_byte (pkt, &count); /* count field */
2439 pkt = unpack_nibble (pkt, &done);
2440 /* The first threadid is the argument threadid. */
2441 pkt = unpack_threadid (pkt, original_echo); /* should match query packet */
2442 while ((count-- > 0) && (pkt < limit))
2443 {
2444 pkt = unpack_threadid (pkt, resultlist++);
2445 if (resultcount++ >= result_limit)
2446 break;
2447 }
2448 if (doneflag)
2449 *doneflag = done;
2450 return resultcount;
2451}
2452
2453static int
2454remote_get_threadlist (int startflag, threadref *nextthread, int result_limit,
2455 int *done, int *result_count, threadref *threadlist)
2456{
2457 struct remote_state *rs = get_remote_state ();
2458 static threadref echo_nextthread;
2459 int result = 1;
2460
2461 /* Trancate result limit to be smaller than the packet size. */
2462 if ((((result_limit + 1) * BUF_THREAD_ID_SIZE) + 10)
2463 >= get_remote_packet_size ())
2464 result_limit = (get_remote_packet_size () / BUF_THREAD_ID_SIZE) - 2;
2465
2466 pack_threadlist_request (rs->buf, startflag, result_limit, nextthread);
2467 putpkt (rs->buf);
2468 getpkt (&rs->buf, &rs->buf_size, 0);
2469
2470 if (*rs->buf == '\0')
2471 return 0;
2472 else
2473 *result_count =
2474 parse_threadlist_response (rs->buf + 2, result_limit, &echo_nextthread,
2475 threadlist, done);
2476
2477 if (!threadmatch (&echo_nextthread, nextthread))
2478 {
2479 /* FIXME: This is a good reason to drop the packet. */
2480 /* Possably, there is a duplicate response. */
2481 /* Possabilities :
2482 retransmit immediatly - race conditions
2483 retransmit after timeout - yes
2484 exit
2485 wait for packet, then exit
2486 */
2487 warning (_("HMM: threadlist did not echo arg thread, dropping it."));
2488 return 0; /* I choose simply exiting. */
2489 }
2490 if (*result_count <= 0)
2491 {
2492 if (*done != 1)
2493 {
2494 warning (_("RMT ERROR : failed to get remote thread list."));
2495 result = 0;
2496 }
2497 return result; /* break; */
2498 }
2499 if (*result_count > result_limit)
2500 {
2501 *result_count = 0;
2502 warning (_("RMT ERROR: threadlist response longer than requested."));
2503 return 0;
2504 }
2505 return result;
2506}
2507
2508/* This is the interface between remote and threads, remotes upper
2509 interface. */
2510
2511/* remote_find_new_threads retrieves the thread list and for each
2512 thread in the list, looks up the thread in GDB's internal list,
2513 adding the thread if it does not already exist. This involves
2514 getting partial thread lists from the remote target so, polling the
2515 quit_flag is required. */
2516
2517
2518/* About this many threadisds fit in a packet. */
2519
2520#define MAXTHREADLISTRESULTS 32
2521
2522static int
2523remote_threadlist_iterator (rmt_thread_action stepfunction, void *context,
2524 int looplimit)
2525{
2526 int done, i, result_count;
2527 int startflag = 1;
2528 int result = 1;
2529 int loopcount = 0;
2530 static threadref nextthread;
2531 static threadref resultthreadlist[MAXTHREADLISTRESULTS];
2532
2533 done = 0;
2534 while (!done)
2535 {
2536 if (loopcount++ > looplimit)
2537 {
2538 result = 0;
2539 warning (_("Remote fetch threadlist -infinite loop-."));
2540 break;
2541 }
2542 if (!remote_get_threadlist (startflag, &nextthread, MAXTHREADLISTRESULTS,
2543 &done, &result_count, resultthreadlist))
2544 {
2545 result = 0;
2546 break;
2547 }
2548 /* Clear for later iterations. */
2549 startflag = 0;
2550 /* Setup to resume next batch of thread references, set nextthread. */
2551 if (result_count >= 1)
2552 copy_threadref (&nextthread, &resultthreadlist[result_count - 1]);
2553 i = 0;
2554 while (result_count--)
2555 if (!(result = (*stepfunction) (&resultthreadlist[i++], context)))
2556 break;
2557 }
2558 return result;
2559}
2560
2561static int
2562remote_newthread_step (threadref *ref, void *context)
2563{
2564 int pid = ptid_get_pid (inferior_ptid);
2565 ptid_t ptid = ptid_build (pid, 0, threadref_to_int (ref));
2566
2567 if (!in_thread_list (ptid))
2568 add_thread (ptid);
2569 return 1; /* continue iterator */
2570}
2571
2572#define CRAZY_MAX_THREADS 1000
2573
2574static ptid_t
2575remote_current_thread (ptid_t oldpid)
2576{
2577 struct remote_state *rs = get_remote_state ();
2578
2579 putpkt ("qC");
2580 getpkt (&rs->buf, &rs->buf_size, 0);
2581 if (rs->buf[0] == 'Q' && rs->buf[1] == 'C')
2582 return read_ptid (&rs->buf[2], NULL);
2583 else
2584 return oldpid;
2585}
2586
2587/* Find new threads for info threads command.
2588 * Original version, using John Metzler's thread protocol.
2589 */
2590
2591static void
2592remote_find_new_threads (void)
2593{
2594 remote_threadlist_iterator (remote_newthread_step, 0,
2595 CRAZY_MAX_THREADS);
2596}
2597
2598#if defined(HAVE_LIBEXPAT)
2599
2600typedef struct thread_item
2601{
2602 ptid_t ptid;
2603 char *extra;
2604 int core;
2605} thread_item_t;
2606DEF_VEC_O(thread_item_t);
2607
2608struct threads_parsing_context
2609{
2610 VEC (thread_item_t) *items;
2611};
2612
2613static void
2614start_thread (struct gdb_xml_parser *parser,
2615 const struct gdb_xml_element *element,
2616 void *user_data, VEC(gdb_xml_value_s) *attributes)
2617{
2618 struct threads_parsing_context *data = user_data;
2619
2620 struct thread_item item;
2621 char *id;
2622 struct gdb_xml_value *attr;
2623
2624 id = xml_find_attribute (attributes, "id")->value;
2625 item.ptid = read_ptid (id, NULL);
2626
2627 attr = xml_find_attribute (attributes, "core");
2628 if (attr != NULL)
2629 item.core = *(ULONGEST *) attr->value;
2630 else
2631 item.core = -1;
2632
2633 item.extra = 0;
2634
2635 VEC_safe_push (thread_item_t, data->items, &item);
2636}
2637
2638static void
2639end_thread (struct gdb_xml_parser *parser,
2640 const struct gdb_xml_element *element,
2641 void *user_data, const char *body_text)
2642{
2643 struct threads_parsing_context *data = user_data;
2644
2645 if (body_text && *body_text)
2646 VEC_last (thread_item_t, data->items)->extra = xstrdup (body_text);
2647}
2648
2649const struct gdb_xml_attribute thread_attributes[] = {
2650 { "id", GDB_XML_AF_NONE, NULL, NULL },
2651 { "core", GDB_XML_AF_OPTIONAL, gdb_xml_parse_attr_ulongest, NULL },
2652 { NULL, GDB_XML_AF_NONE, NULL, NULL }
2653};
2654
2655const struct gdb_xml_element thread_children[] = {
2656 { NULL, NULL, NULL, GDB_XML_EF_NONE, NULL, NULL }
2657};
2658
2659const struct gdb_xml_element threads_children[] = {
2660 { "thread", thread_attributes, thread_children,
2661 GDB_XML_EF_REPEATABLE | GDB_XML_EF_OPTIONAL,
2662 start_thread, end_thread },
2663 { NULL, NULL, NULL, GDB_XML_EF_NONE, NULL, NULL }
2664};
2665
2666const struct gdb_xml_element threads_elements[] = {
2667 { "threads", NULL, threads_children,
2668 GDB_XML_EF_NONE, NULL, NULL },
2669 { NULL, NULL, NULL, GDB_XML_EF_NONE, NULL, NULL }
2670};
2671
2672/* Discard the contents of the constructed thread info context. */
2673
2674static void
2675clear_threads_parsing_context (void *p)
2676{
2677 struct threads_parsing_context *context = p;
2678 int i;
2679 struct thread_item *item;
2680
2681 for (i = 0; VEC_iterate (thread_item_t, context->items, i, item); ++i)
2682 xfree (item->extra);
2683
2684 VEC_free (thread_item_t, context->items);
2685}
2686
2687#endif
2688
2689/*
2690 * Find all threads for info threads command.
2691 * Uses new thread protocol contributed by Cisco.
2692 * Falls back and attempts to use the older method (above)
2693 * if the target doesn't respond to the new method.
2694 */
2695
2696static void
2697remote_threads_info (struct target_ops *ops)
2698{
2699 struct remote_state *rs = get_remote_state ();
2700 char *bufp;
2701 ptid_t new_thread;
2702
2703 if (remote_desc == 0) /* paranoia */
2704 error (_("Command can only be used when connected to the remote target."));
2705
2706#if defined(HAVE_LIBEXPAT)
2707 if (remote_protocol_packets[PACKET_qXfer_threads].support == PACKET_ENABLE)
2708 {
2709 char *xml = target_read_stralloc (&current_target,
2710 TARGET_OBJECT_THREADS, NULL);
2711
2712 struct cleanup *back_to = make_cleanup (xfree, xml);
2713
2714 if (xml && *xml)
2715 {
2716 struct threads_parsing_context context;
2717
2718 context.items = NULL;
2719 make_cleanup (clear_threads_parsing_context, &context);
2720
2721 if (gdb_xml_parse_quick (_("threads"), "threads.dtd",
2722 threads_elements, xml, &context) == 0)
2723 {
2724 int i;
2725 struct thread_item *item;
2726
2727 for (i = 0;
2728 VEC_iterate (thread_item_t, context.items, i, item);
2729 ++i)
2730 {
2731 if (!ptid_equal (item->ptid, null_ptid))
2732 {
2733 struct private_thread_info *info;
2734 /* In non-stop mode, we assume new found threads
2735 are running until proven otherwise with a
2736 stop reply. In all-stop, we can only get
2737 here if all threads are stopped. */
2738 int running = non_stop ? 1 : 0;
2739
2740 remote_notice_new_inferior (item->ptid, running);
2741
2742 info = demand_private_info (item->ptid);
2743 info->core = item->core;
2744 info->extra = item->extra;
2745 item->extra = NULL;
2746 }
2747 }
2748 }
2749 }
2750
2751 do_cleanups (back_to);
2752 return;
2753 }
2754#endif
2755
2756 if (use_threadinfo_query)
2757 {
2758 putpkt ("qfThreadInfo");
2759 getpkt (&rs->buf, &rs->buf_size, 0);
2760 bufp = rs->buf;
2761 if (bufp[0] != '\0') /* q packet recognized */
2762 {
2763 struct cleanup *old_chain;
2764 char *saved_reply;
2765
2766 /* remote_notice_new_inferior (in the loop below) may make
2767 new RSP calls, which clobber rs->buf. Work with a
2768 copy. */
2769 bufp = saved_reply = xstrdup (rs->buf);
2770 old_chain = make_cleanup (free_current_contents, &saved_reply);
2771
2772 while (*bufp++ == 'm') /* reply contains one or more TID */
2773 {
2774 do
2775 {
2776 new_thread = read_ptid (bufp, &bufp);
2777 if (!ptid_equal (new_thread, null_ptid))
2778 {
2779 /* In non-stop mode, we assume new found threads
2780 are running until proven otherwise with a
2781 stop reply. In all-stop, we can only get
2782 here if all threads are stopped. */
2783 int running = non_stop ? 1 : 0;
2784
2785 remote_notice_new_inferior (new_thread, running);
2786 }
2787 }
2788 while (*bufp++ == ','); /* comma-separated list */
2789 free_current_contents (&saved_reply);
2790 putpkt ("qsThreadInfo");
2791 getpkt (&rs->buf, &rs->buf_size, 0);
2792 bufp = saved_reply = xstrdup (rs->buf);
2793 }
2794 do_cleanups (old_chain);
2795 return; /* done */
2796 }
2797 }
2798
2799 /* Only qfThreadInfo is supported in non-stop mode. */
2800 if (non_stop)
2801 return;
2802
2803 /* Else fall back to old method based on jmetzler protocol. */
2804 use_threadinfo_query = 0;
2805 remote_find_new_threads ();
2806 return;
2807}
2808
2809/*
2810 * Collect a descriptive string about the given thread.
2811 * The target may say anything it wants to about the thread
2812 * (typically info about its blocked / runnable state, name, etc.).
2813 * This string will appear in the info threads display.
2814 *
2815 * Optional: targets are not required to implement this function.
2816 */
2817
2818static char *
2819remote_threads_extra_info (struct thread_info *tp)
2820{
2821 struct remote_state *rs = get_remote_state ();
2822 int result;
2823 int set;
2824 threadref id;
2825 struct gdb_ext_thread_info threadinfo;
2826 static char display_buf[100]; /* arbitrary... */
2827 int n = 0; /* position in display_buf */
2828
2829 if (remote_desc == 0) /* paranoia */
2830 internal_error (__FILE__, __LINE__,
2831 _("remote_threads_extra_info"));
2832
2833 if (ptid_equal (tp->ptid, magic_null_ptid)
2834 || (ptid_get_pid (tp->ptid) != 0 && ptid_get_tid (tp->ptid) == 0))
2835 /* This is the main thread which was added by GDB. The remote
2836 server doesn't know about it. */
2837 return NULL;
2838
2839 if (remote_protocol_packets[PACKET_qXfer_threads].support == PACKET_ENABLE)
2840 {
2841 struct thread_info *info = find_thread_ptid (tp->ptid);
2842
2843 if (info && info->private)
2844 return info->private->extra;
2845 else
2846 return NULL;
2847 }
2848
2849 if (use_threadextra_query)
2850 {
2851 char *b = rs->buf;
2852 char *endb = rs->buf + get_remote_packet_size ();
2853
2854 xsnprintf (b, endb - b, "qThreadExtraInfo,");
2855 b += strlen (b);
2856 write_ptid (b, endb, tp->ptid);
2857
2858 putpkt (rs->buf);
2859 getpkt (&rs->buf, &rs->buf_size, 0);
2860 if (rs->buf[0] != 0)
2861 {
2862 n = min (strlen (rs->buf) / 2, sizeof (display_buf));
2863 result = hex2bin (rs->buf, (gdb_byte *) display_buf, n);
2864 display_buf [result] = '\0';
2865 return display_buf;
2866 }
2867 }
2868
2869 /* If the above query fails, fall back to the old method. */
2870 use_threadextra_query = 0;
2871 set = TAG_THREADID | TAG_EXISTS | TAG_THREADNAME
2872 | TAG_MOREDISPLAY | TAG_DISPLAY;
2873 int_to_threadref (&id, ptid_get_tid (tp->ptid));
2874 if (remote_get_threadinfo (&id, set, &threadinfo))
2875 if (threadinfo.active)
2876 {
2877 if (*threadinfo.shortname)
2878 n += xsnprintf (&display_buf[0], sizeof (display_buf) - n,
2879 " Name: %s,", threadinfo.shortname);
2880 if (*threadinfo.display)
2881 n += xsnprintf (&display_buf[n], sizeof (display_buf) - n,
2882 " State: %s,", threadinfo.display);
2883 if (*threadinfo.more_display)
2884 n += xsnprintf (&display_buf[n], sizeof (display_buf) - n,
2885 " Priority: %s", threadinfo.more_display);
2886
2887 if (n > 0)
2888 {
2889 /* For purely cosmetic reasons, clear up trailing commas. */
2890 if (',' == display_buf[n-1])
2891 display_buf[n-1] = ' ';
2892 return display_buf;
2893 }
2894 }
2895 return NULL;
2896}
2897\f
2898
2899static int
2900remote_static_tracepoint_marker_at (CORE_ADDR addr,
2901 struct static_tracepoint_marker *marker)
2902{
2903 struct remote_state *rs = get_remote_state ();
2904 char *p = rs->buf;
2905
2906 xsnprintf (p, get_remote_packet_size (), "qTSTMat:");
2907 p += strlen (p);
2908 p += hexnumstr (p, addr);
2909 putpkt (rs->buf);
2910 getpkt (&rs->buf, &rs->buf_size, 0);
2911 p = rs->buf;
2912
2913 if (*p == 'E')
2914 error (_("Remote failure reply: %s"), p);
2915
2916 if (*p++ == 'm')
2917 {
2918 parse_static_tracepoint_marker_definition (p, &p, marker);
2919 return 1;
2920 }
2921
2922 return 0;
2923}
2924
2925static VEC(static_tracepoint_marker_p) *
2926remote_static_tracepoint_markers_by_strid (const char *strid)
2927{
2928 struct remote_state *rs = get_remote_state ();
2929 VEC(static_tracepoint_marker_p) *markers = NULL;
2930 struct static_tracepoint_marker *marker = NULL;
2931 struct cleanup *old_chain;
2932 char *p;
2933
2934 /* Ask for a first packet of static tracepoint marker
2935 definition. */
2936 putpkt ("qTfSTM");
2937 getpkt (&rs->buf, &rs->buf_size, 0);
2938 p = rs->buf;
2939 if (*p == 'E')
2940 error (_("Remote failure reply: %s"), p);
2941
2942 old_chain = make_cleanup (free_current_marker, &marker);
2943
2944 while (*p++ == 'm')
2945 {
2946 if (marker == NULL)
2947 marker = XCNEW (struct static_tracepoint_marker);
2948
2949 do
2950 {
2951 parse_static_tracepoint_marker_definition (p, &p, marker);
2952
2953 if (strid == NULL || strcmp (strid, marker->str_id) == 0)
2954 {
2955 VEC_safe_push (static_tracepoint_marker_p,
2956 markers, marker);
2957 marker = NULL;
2958 }
2959 else
2960 {
2961 release_static_tracepoint_marker (marker);
2962 memset (marker, 0, sizeof (*marker));
2963 }
2964 }
2965 while (*p++ == ','); /* comma-separated list */
2966 /* Ask for another packet of static tracepoint definition. */
2967 putpkt ("qTsSTM");
2968 getpkt (&rs->buf, &rs->buf_size, 0);
2969 p = rs->buf;
2970 }
2971
2972 do_cleanups (old_chain);
2973 return markers;
2974}
2975
2976\f
2977/* Implement the to_get_ada_task_ptid function for the remote targets. */
2978
2979static ptid_t
2980remote_get_ada_task_ptid (long lwp, long thread)
2981{
2982 return ptid_build (ptid_get_pid (inferior_ptid), 0, lwp);
2983}
2984\f
2985
2986/* Restart the remote side; this is an extended protocol operation. */
2987
2988static void
2989extended_remote_restart (void)
2990{
2991 struct remote_state *rs = get_remote_state ();
2992
2993 /* Send the restart command; for reasons I don't understand the
2994 remote side really expects a number after the "R". */
2995 xsnprintf (rs->buf, get_remote_packet_size (), "R%x", 0);
2996 putpkt (rs->buf);
2997
2998 remote_fileio_reset ();
2999}
3000\f
3001/* Clean up connection to a remote debugger. */
3002
3003static void
3004remote_close (int quitting)
3005{
3006 if (remote_desc == NULL)
3007 return; /* already closed */
3008
3009 /* Make sure we leave stdin registered in the event loop, and we
3010 don't leave the async SIGINT signal handler installed. */
3011 remote_terminal_ours ();
3012
3013 serial_close (remote_desc);
3014 remote_desc = NULL;
3015
3016 /* We don't have a connection to the remote stub anymore. Get rid
3017 of all the inferiors and their threads we were controlling.
3018 Reset inferior_ptid to null_ptid first, as otherwise has_stack_frame
3019 will be unable to find the thread corresponding to (pid, 0, 0). */
3020 inferior_ptid = null_ptid;
3021 discard_all_inferiors ();
3022
3023 /* Stop replies may from inferiors which are still unknown to GDB.
3024 We are closing the remote target, so we should discard
3025 everything, including the stop replies from GDB-unknown
3026 inferiors. */
3027 discard_pending_stop_replies (NULL);
3028
3029 if (remote_async_inferior_event_token)
3030 delete_async_event_handler (&remote_async_inferior_event_token);
3031
3032 remote_notif_unregister_async_event_handler ();
3033}
3034
3035/* Query the remote side for the text, data and bss offsets. */
3036
3037static void
3038get_offsets (void)
3039{
3040 struct remote_state *rs = get_remote_state ();
3041 char *buf;
3042 char *ptr;
3043 int lose, num_segments = 0, do_sections, do_segments;
3044 CORE_ADDR text_addr, data_addr, bss_addr, segments[2];
3045 struct section_offsets *offs;
3046 struct symfile_segment_data *data;
3047
3048 if (symfile_objfile == NULL)
3049 return;
3050
3051 putpkt ("qOffsets");
3052 getpkt (&rs->buf, &rs->buf_size, 0);
3053 buf = rs->buf;
3054
3055 if (buf[0] == '\000')
3056 return; /* Return silently. Stub doesn't support
3057 this command. */
3058 if (buf[0] == 'E')
3059 {
3060 warning (_("Remote failure reply: %s"), buf);
3061 return;
3062 }
3063
3064 /* Pick up each field in turn. This used to be done with scanf, but
3065 scanf will make trouble if CORE_ADDR size doesn't match
3066 conversion directives correctly. The following code will work
3067 with any size of CORE_ADDR. */
3068 text_addr = data_addr = bss_addr = 0;
3069 ptr = buf;
3070 lose = 0;
3071
3072 if (strncmp (ptr, "Text=", 5) == 0)
3073 {
3074 ptr += 5;
3075 /* Don't use strtol, could lose on big values. */
3076 while (*ptr && *ptr != ';')
3077 text_addr = (text_addr << 4) + fromhex (*ptr++);
3078
3079 if (strncmp (ptr, ";Data=", 6) == 0)
3080 {
3081 ptr += 6;
3082 while (*ptr && *ptr != ';')
3083 data_addr = (data_addr << 4) + fromhex (*ptr++);
3084 }
3085 else
3086 lose = 1;
3087
3088 if (!lose && strncmp (ptr, ";Bss=", 5) == 0)
3089 {
3090 ptr += 5;
3091 while (*ptr && *ptr != ';')
3092 bss_addr = (bss_addr << 4) + fromhex (*ptr++);
3093
3094 if (bss_addr != data_addr)
3095 warning (_("Target reported unsupported offsets: %s"), buf);
3096 }
3097 else
3098 lose = 1;
3099 }
3100 else if (strncmp (ptr, "TextSeg=", 8) == 0)
3101 {
3102 ptr += 8;
3103 /* Don't use strtol, could lose on big values. */
3104 while (*ptr && *ptr != ';')
3105 text_addr = (text_addr << 4) + fromhex (*ptr++);
3106 num_segments = 1;
3107
3108 if (strncmp (ptr, ";DataSeg=", 9) == 0)
3109 {
3110 ptr += 9;
3111 while (*ptr && *ptr != ';')
3112 data_addr = (data_addr << 4) + fromhex (*ptr++);
3113 num_segments++;
3114 }
3115 }
3116 else
3117 lose = 1;
3118
3119 if (lose)
3120 error (_("Malformed response to offset query, %s"), buf);
3121 else if (*ptr != '\0')
3122 warning (_("Target reported unsupported offsets: %s"), buf);
3123
3124 offs = ((struct section_offsets *)
3125 alloca (SIZEOF_N_SECTION_OFFSETS (symfile_objfile->num_sections)));
3126 memcpy (offs, symfile_objfile->section_offsets,
3127 SIZEOF_N_SECTION_OFFSETS (symfile_objfile->num_sections));
3128
3129 data = get_symfile_segment_data (symfile_objfile->obfd);
3130 do_segments = (data != NULL);
3131 do_sections = num_segments == 0;
3132
3133 if (num_segments > 0)
3134 {
3135 segments[0] = text_addr;
3136 segments[1] = data_addr;
3137 }
3138 /* If we have two segments, we can still try to relocate everything
3139 by assuming that the .text and .data offsets apply to the whole
3140 text and data segments. Convert the offsets given in the packet
3141 to base addresses for symfile_map_offsets_to_segments. */
3142 else if (data && data->num_segments == 2)
3143 {
3144 segments[0] = data->segment_bases[0] + text_addr;
3145 segments[1] = data->segment_bases[1] + data_addr;
3146 num_segments = 2;
3147 }
3148 /* If the object file has only one segment, assume that it is text
3149 rather than data; main programs with no writable data are rare,
3150 but programs with no code are useless. Of course the code might
3151 have ended up in the data segment... to detect that we would need
3152 the permissions here. */
3153 else if (data && data->num_segments == 1)
3154 {
3155 segments[0] = data->segment_bases[0] + text_addr;
3156 num_segments = 1;
3157 }
3158 /* There's no way to relocate by segment. */
3159 else
3160 do_segments = 0;
3161
3162 if (do_segments)
3163 {
3164 int ret = symfile_map_offsets_to_segments (symfile_objfile->obfd, data,
3165 offs, num_segments, segments);
3166
3167 if (ret == 0 && !do_sections)
3168 error (_("Can not handle qOffsets TextSeg "
3169 "response with this symbol file"));
3170
3171 if (ret > 0)
3172 do_sections = 0;
3173 }
3174
3175 if (data)
3176 free_symfile_segment_data (data);
3177
3178 if (do_sections)
3179 {
3180 offs->offsets[SECT_OFF_TEXT (symfile_objfile)] = text_addr;
3181
3182 /* This is a temporary kludge to force data and bss to use the
3183 same offsets because that's what nlmconv does now. The real
3184 solution requires changes to the stub and remote.c that I
3185 don't have time to do right now. */
3186
3187 offs->offsets[SECT_OFF_DATA (symfile_objfile)] = data_addr;
3188 offs->offsets[SECT_OFF_BSS (symfile_objfile)] = data_addr;
3189 }
3190
3191 objfile_relocate (symfile_objfile, offs);
3192}
3193
3194/* Callback for iterate_over_threads. Set the STOP_REQUESTED flags in
3195 threads we know are stopped already. This is used during the
3196 initial remote connection in non-stop mode --- threads that are
3197 reported as already being stopped are left stopped. */
3198
3199static int
3200set_stop_requested_callback (struct thread_info *thread, void *data)
3201{
3202 /* If we have a stop reply for this thread, it must be stopped. */
3203 if (peek_stop_reply (thread->ptid))
3204 set_stop_requested (thread->ptid, 1);
3205
3206 return 0;
3207}
3208
3209/* Send interrupt_sequence to remote target. */
3210static void
3211send_interrupt_sequence (void)
3212{
3213 if (interrupt_sequence_mode == interrupt_sequence_control_c)
3214 remote_serial_write ("\x03", 1);
3215 else if (interrupt_sequence_mode == interrupt_sequence_break)
3216 serial_send_break (remote_desc);
3217 else if (interrupt_sequence_mode == interrupt_sequence_break_g)
3218 {
3219 serial_send_break (remote_desc);
3220 remote_serial_write ("g", 1);
3221 }
3222 else
3223 internal_error (__FILE__, __LINE__,
3224 _("Invalid value for interrupt_sequence_mode: %s."),
3225 interrupt_sequence_mode);
3226}
3227
3228
3229/* If STOP_REPLY is a T stop reply, look for the "thread" register,
3230 and extract the PTID. Returns NULL_PTID if not found. */
3231
3232static ptid_t
3233stop_reply_extract_thread (char *stop_reply)
3234{
3235 if (stop_reply[0] == 'T' && strlen (stop_reply) > 3)
3236 {
3237 char *p;
3238
3239 /* Txx r:val ; r:val (...) */
3240 p = &stop_reply[3];
3241
3242 /* Look for "register" named "thread". */
3243 while (*p != '\0')
3244 {
3245 char *p1;
3246
3247 p1 = strchr (p, ':');
3248 if (p1 == NULL)
3249 return null_ptid;
3250
3251 if (strncmp (p, "thread", p1 - p) == 0)
3252 return read_ptid (++p1, &p);
3253
3254 p1 = strchr (p, ';');
3255 if (p1 == NULL)
3256 return null_ptid;
3257 p1++;
3258
3259 p = p1;
3260 }
3261 }
3262
3263 return null_ptid;
3264}
3265
3266/* Query the remote target for which is the current thread/process,
3267 add it to our tables, and update INFERIOR_PTID. The caller is
3268 responsible for setting the state such that the remote end is ready
3269 to return the current thread.
3270
3271 This function is called after handling the '?' or 'vRun' packets,
3272 whose response is a stop reply from which we can also try
3273 extracting the thread. If the target doesn't support the explicit
3274 qC query, we infer the current thread from that stop reply, passed
3275 in in WAIT_STATUS, which may be NULL. */
3276
3277static void
3278add_current_inferior_and_thread (char *wait_status)
3279{
3280 struct remote_state *rs = get_remote_state ();
3281 int fake_pid_p = 0;
3282 ptid_t ptid = null_ptid;
3283
3284 inferior_ptid = null_ptid;
3285
3286 /* Now, if we have thread information, update inferior_ptid. First
3287 if we have a stop reply handy, maybe it's a T stop reply with a
3288 "thread" register we can extract the current thread from. If
3289 not, ask the remote which is the current thread, with qC. The
3290 former method avoids a roundtrip. Note we don't use
3291 remote_parse_stop_reply as that makes use of the target
3292 architecture, which we haven't yet fully determined at this
3293 point. */
3294 if (wait_status != NULL)
3295 ptid = stop_reply_extract_thread (wait_status);
3296 if (ptid_equal (ptid, null_ptid))
3297 ptid = remote_current_thread (inferior_ptid);
3298
3299 if (!ptid_equal (ptid, null_ptid))
3300 {
3301 if (!remote_multi_process_p (rs))
3302 fake_pid_p = 1;
3303
3304 inferior_ptid = ptid;
3305 }
3306 else
3307 {
3308 /* Without this, some commands which require an active target
3309 (such as kill) won't work. This variable serves (at least)
3310 double duty as both the pid of the target process (if it has
3311 such), and as a flag indicating that a target is active. */
3312 inferior_ptid = magic_null_ptid;
3313 fake_pid_p = 1;
3314 }
3315
3316 remote_add_inferior (fake_pid_p, ptid_get_pid (inferior_ptid), -1);
3317
3318 /* Add the main thread. */
3319 add_thread_silent (inferior_ptid);
3320}
3321
3322static void
3323remote_start_remote (int from_tty, struct target_ops *target, int extended_p)
3324{
3325 struct remote_state *rs = get_remote_state ();
3326 struct packet_config *noack_config;
3327 char *wait_status = NULL;
3328
3329 immediate_quit++; /* Allow user to interrupt it. */
3330 QUIT;
3331
3332 if (interrupt_on_connect)
3333 send_interrupt_sequence ();
3334
3335 /* Ack any packet which the remote side has already sent. */
3336 serial_write (remote_desc, "+", 1);
3337
3338 /* Signal other parts that we're going through the initial setup,
3339 and so things may not be stable yet. */
3340 rs->starting_up = 1;
3341
3342 /* The first packet we send to the target is the optional "supported
3343 packets" request. If the target can answer this, it will tell us
3344 which later probes to skip. */
3345 remote_query_supported ();
3346
3347 /* If the stub wants to get a QAllow, compose one and send it. */
3348 if (remote_protocol_packets[PACKET_QAllow].support != PACKET_DISABLE)
3349 remote_set_permissions ();
3350
3351 /* Next, we possibly activate noack mode.
3352
3353 If the QStartNoAckMode packet configuration is set to AUTO,
3354 enable noack mode if the stub reported a wish for it with
3355 qSupported.
3356
3357 If set to TRUE, then enable noack mode even if the stub didn't
3358 report it in qSupported. If the stub doesn't reply OK, the
3359 session ends with an error.
3360
3361 If FALSE, then don't activate noack mode, regardless of what the
3362 stub claimed should be the default with qSupported. */
3363
3364 noack_config = &remote_protocol_packets[PACKET_QStartNoAckMode];
3365
3366 if (noack_config->detect == AUTO_BOOLEAN_TRUE
3367 || (noack_config->detect == AUTO_BOOLEAN_AUTO
3368 && noack_config->support == PACKET_ENABLE))
3369 {
3370 putpkt ("QStartNoAckMode");
3371 getpkt (&rs->buf, &rs->buf_size, 0);
3372 if (packet_ok (rs->buf, noack_config) == PACKET_OK)
3373 rs->noack_mode = 1;
3374 }
3375
3376 if (extended_p)
3377 {
3378 /* Tell the remote that we are using the extended protocol. */
3379 putpkt ("!");
3380 getpkt (&rs->buf, &rs->buf_size, 0);
3381 }
3382
3383 /* Let the target know which signals it is allowed to pass down to
3384 the program. */
3385 update_signals_program_target ();
3386
3387 /* Next, if the target can specify a description, read it. We do
3388 this before anything involving memory or registers. */
3389 target_find_description ();
3390
3391 /* Next, now that we know something about the target, update the
3392 address spaces in the program spaces. */
3393 update_address_spaces ();
3394
3395 /* On OSs where the list of libraries is global to all
3396 processes, we fetch them early. */
3397 if (gdbarch_has_global_solist (target_gdbarch ()))
3398 solib_add (NULL, from_tty, target, auto_solib_add);
3399
3400 if (non_stop)
3401 {
3402 if (!rs->non_stop_aware)
3403 error (_("Non-stop mode requested, but remote "
3404 "does not support non-stop"));
3405
3406 putpkt ("QNonStop:1");
3407 getpkt (&rs->buf, &rs->buf_size, 0);
3408
3409 if (strcmp (rs->buf, "OK") != 0)
3410 error (_("Remote refused setting non-stop mode with: %s"), rs->buf);
3411
3412 /* Find about threads and processes the stub is already
3413 controlling. We default to adding them in the running state.
3414 The '?' query below will then tell us about which threads are
3415 stopped. */
3416 remote_threads_info (target);
3417 }
3418 else if (rs->non_stop_aware)
3419 {
3420 /* Don't assume that the stub can operate in all-stop mode.
3421 Request it explicitly. */
3422 putpkt ("QNonStop:0");
3423 getpkt (&rs->buf, &rs->buf_size, 0);
3424
3425 if (strcmp (rs->buf, "OK") != 0)
3426 error (_("Remote refused setting all-stop mode with: %s"), rs->buf);
3427 }
3428
3429 /* Check whether the target is running now. */
3430 putpkt ("?");
3431 getpkt (&rs->buf, &rs->buf_size, 0);
3432
3433 if (!non_stop)
3434 {
3435 ptid_t ptid;
3436 int fake_pid_p = 0;
3437 struct inferior *inf;
3438
3439 if (rs->buf[0] == 'W' || rs->buf[0] == 'X')
3440 {
3441 if (!extended_p)
3442 error (_("The target is not running (try extended-remote?)"));
3443
3444 /* We're connected, but not running. Drop out before we
3445 call start_remote. */
3446 rs->starting_up = 0;
3447 return;
3448 }
3449 else
3450 {
3451 /* Save the reply for later. */
3452 wait_status = alloca (strlen (rs->buf) + 1);
3453 strcpy (wait_status, rs->buf);
3454 }
3455
3456 /* Let the stub know that we want it to return the thread. */
3457 set_continue_thread (minus_one_ptid);
3458
3459 add_current_inferior_and_thread (wait_status);
3460
3461 /* init_wait_for_inferior should be called before get_offsets in order
3462 to manage `inserted' flag in bp loc in a correct state.
3463 breakpoint_init_inferior, called from init_wait_for_inferior, set
3464 `inserted' flag to 0, while before breakpoint_re_set, called from
3465 start_remote, set `inserted' flag to 1. In the initialization of
3466 inferior, breakpoint_init_inferior should be called first, and then
3467 breakpoint_re_set can be called. If this order is broken, state of
3468 `inserted' flag is wrong, and cause some problems on breakpoint
3469 manipulation. */
3470 init_wait_for_inferior ();
3471
3472 get_offsets (); /* Get text, data & bss offsets. */
3473
3474 /* If we could not find a description using qXfer, and we know
3475 how to do it some other way, try again. This is not
3476 supported for non-stop; it could be, but it is tricky if
3477 there are no stopped threads when we connect. */
3478 if (remote_read_description_p (target)
3479 && gdbarch_target_desc (target_gdbarch ()) == NULL)
3480 {
3481 target_clear_description ();
3482 target_find_description ();
3483 }
3484
3485 /* Use the previously fetched status. */
3486 gdb_assert (wait_status != NULL);
3487 strcpy (rs->buf, wait_status);
3488 rs->cached_wait_status = 1;
3489
3490 immediate_quit--;
3491 start_remote (from_tty); /* Initialize gdb process mechanisms. */
3492 }
3493 else
3494 {
3495 /* Clear WFI global state. Do this before finding about new
3496 threads and inferiors, and setting the current inferior.
3497 Otherwise we would clear the proceed status of the current
3498 inferior when we want its stop_soon state to be preserved
3499 (see notice_new_inferior). */
3500 init_wait_for_inferior ();
3501
3502 /* In non-stop, we will either get an "OK", meaning that there
3503 are no stopped threads at this time; or, a regular stop
3504 reply. In the latter case, there may be more than one thread
3505 stopped --- we pull them all out using the vStopped
3506 mechanism. */
3507 if (strcmp (rs->buf, "OK") != 0)
3508 {
3509 struct notif_client *notif = &notif_client_stop;
3510
3511 /* remote_notif_get_pending_replies acks this one, and gets
3512 the rest out. */
3513 notif_client_stop.pending_event
3514 = remote_notif_parse (notif, rs->buf);
3515 remote_notif_get_pending_events (notif);
3516
3517 /* Make sure that threads that were stopped remain
3518 stopped. */
3519 iterate_over_threads (set_stop_requested_callback, NULL);
3520 }
3521
3522 if (target_can_async_p ())
3523 target_async (inferior_event_handler, 0);
3524
3525 if (thread_count () == 0)
3526 {
3527 if (!extended_p)
3528 error (_("The target is not running (try extended-remote?)"));
3529
3530 /* We're connected, but not running. Drop out before we
3531 call start_remote. */
3532 rs->starting_up = 0;
3533 return;
3534 }
3535
3536 /* Let the stub know that we want it to return the thread. */
3537
3538 /* Force the stub to choose a thread. */
3539 set_general_thread (null_ptid);
3540
3541 /* Query it. */
3542 inferior_ptid = remote_current_thread (minus_one_ptid);
3543 if (ptid_equal (inferior_ptid, minus_one_ptid))
3544 error (_("remote didn't report the current thread in non-stop mode"));
3545
3546 get_offsets (); /* Get text, data & bss offsets. */
3547
3548 /* In non-stop mode, any cached wait status will be stored in
3549 the stop reply queue. */
3550 gdb_assert (wait_status == NULL);
3551
3552 /* Report all signals during attach/startup. */
3553 remote_pass_signals (0, NULL);
3554 }
3555
3556 /* If we connected to a live target, do some additional setup. */
3557 if (target_has_execution)
3558 {
3559 if (exec_bfd) /* No use without an exec file. */
3560 remote_check_symbols (symfile_objfile);
3561 }
3562
3563 /* Possibly the target has been engaged in a trace run started
3564 previously; find out where things are at. */
3565 if (remote_get_trace_status (current_trace_status ()) != -1)
3566 {
3567 struct uploaded_tp *uploaded_tps = NULL;
3568 struct uploaded_tsv *uploaded_tsvs = NULL;
3569
3570 if (current_trace_status ()->running)
3571 printf_filtered (_("Trace is already running on the target.\n"));
3572
3573 /* Get trace state variables first, they may be checked when
3574 parsing uploaded commands. */
3575
3576 remote_upload_trace_state_variables (&uploaded_tsvs);
3577
3578 merge_uploaded_trace_state_variables (&uploaded_tsvs);
3579
3580 remote_upload_tracepoints (&uploaded_tps);
3581
3582 merge_uploaded_tracepoints (&uploaded_tps);
3583 }
3584
3585 /* The thread and inferior lists are now synchronized with the
3586 target, our symbols have been relocated, and we're merged the
3587 target's tracepoints with ours. We're done with basic start
3588 up. */
3589 rs->starting_up = 0;
3590
3591 /* If breakpoints are global, insert them now. */
3592 if (gdbarch_has_global_breakpoints (target_gdbarch ())
3593 && breakpoints_always_inserted_mode ())
3594 insert_breakpoints ();
3595}
3596
3597/* Open a connection to a remote debugger.
3598 NAME is the filename used for communication. */
3599
3600static void
3601remote_open (char *name, int from_tty)
3602{
3603 remote_open_1 (name, from_tty, &remote_ops, 0);
3604}
3605
3606/* Open a connection to a remote debugger using the extended
3607 remote gdb protocol. NAME is the filename used for communication. */
3608
3609static void
3610extended_remote_open (char *name, int from_tty)
3611{
3612 remote_open_1 (name, from_tty, &extended_remote_ops, 1 /*extended_p */);
3613}
3614
3615/* Generic code for opening a connection to a remote target. */
3616
3617static void
3618init_all_packet_configs (void)
3619{
3620 int i;
3621
3622 for (i = 0; i < PACKET_MAX; i++)
3623 update_packet_config (&remote_protocol_packets[i]);
3624}
3625
3626/* Symbol look-up. */
3627
3628static void
3629remote_check_symbols (struct objfile *objfile)
3630{
3631 struct remote_state *rs = get_remote_state ();
3632 char *msg, *reply, *tmp;
3633 struct minimal_symbol *sym;
3634 int end;
3635
3636 /* The remote side has no concept of inferiors that aren't running
3637 yet, it only knows about running processes. If we're connected
3638 but our current inferior is not running, we should not invite the
3639 remote target to request symbol lookups related to its
3640 (unrelated) current process. */
3641 if (!target_has_execution)
3642 return;
3643
3644 if (remote_protocol_packets[PACKET_qSymbol].support == PACKET_DISABLE)
3645 return;
3646
3647 /* Make sure the remote is pointing at the right process. Note
3648 there's no way to select "no process". */
3649 set_general_process ();
3650
3651 /* Allocate a message buffer. We can't reuse the input buffer in RS,
3652 because we need both at the same time. */
3653 msg = alloca (get_remote_packet_size ());
3654
3655 /* Invite target to request symbol lookups. */
3656
3657 putpkt ("qSymbol::");
3658 getpkt (&rs->buf, &rs->buf_size, 0);
3659 packet_ok (rs->buf, &remote_protocol_packets[PACKET_qSymbol]);
3660 reply = rs->buf;
3661
3662 while (strncmp (reply, "qSymbol:", 8) == 0)
3663 {
3664 tmp = &reply[8];
3665 end = hex2bin (tmp, (gdb_byte *) msg, strlen (tmp) / 2);
3666 msg[end] = '\0';
3667 sym = lookup_minimal_symbol (msg, NULL, NULL);
3668 if (sym == NULL)
3669 xsnprintf (msg, get_remote_packet_size (), "qSymbol::%s", &reply[8]);
3670 else
3671 {
3672 int addr_size = gdbarch_addr_bit (target_gdbarch ()) / 8;
3673 CORE_ADDR sym_addr = SYMBOL_VALUE_ADDRESS (sym);
3674
3675 /* If this is a function address, return the start of code
3676 instead of any data function descriptor. */
3677 sym_addr = gdbarch_convert_from_func_ptr_addr (target_gdbarch (),
3678 sym_addr,
3679 &current_target);
3680
3681 xsnprintf (msg, get_remote_packet_size (), "qSymbol:%s:%s",
3682 phex_nz (sym_addr, addr_size), &reply[8]);
3683 }
3684
3685 putpkt (msg);
3686 getpkt (&rs->buf, &rs->buf_size, 0);
3687 reply = rs->buf;
3688 }
3689}
3690
3691static struct serial *
3692remote_serial_open (char *name)
3693{
3694 static int udp_warning = 0;
3695
3696 /* FIXME: Parsing NAME here is a hack. But we want to warn here instead
3697 of in ser-tcp.c, because it is the remote protocol assuming that the
3698 serial connection is reliable and not the serial connection promising
3699 to be. */
3700 if (!udp_warning && strncmp (name, "udp:", 4) == 0)
3701 {
3702 warning (_("The remote protocol may be unreliable over UDP.\n"
3703 "Some events may be lost, rendering further debugging "
3704 "impossible."));
3705 udp_warning = 1;
3706 }
3707
3708 return serial_open (name);
3709}
3710
3711/* Inform the target of our permission settings. The permission flags
3712 work without this, but if the target knows the settings, it can do
3713 a couple things. First, it can add its own check, to catch cases
3714 that somehow manage to get by the permissions checks in target
3715 methods. Second, if the target is wired to disallow particular
3716 settings (for instance, a system in the field that is not set up to
3717 be able to stop at a breakpoint), it can object to any unavailable
3718 permissions. */
3719
3720void
3721remote_set_permissions (void)
3722{
3723 struct remote_state *rs = get_remote_state ();
3724
3725 xsnprintf (rs->buf, get_remote_packet_size (), "QAllow:"
3726 "WriteReg:%x;WriteMem:%x;"
3727 "InsertBreak:%x;InsertTrace:%x;"
3728 "InsertFastTrace:%x;Stop:%x",
3729 may_write_registers, may_write_memory,
3730 may_insert_breakpoints, may_insert_tracepoints,
3731 may_insert_fast_tracepoints, may_stop);
3732 putpkt (rs->buf);
3733 getpkt (&rs->buf, &rs->buf_size, 0);
3734
3735 /* If the target didn't like the packet, warn the user. Do not try
3736 to undo the user's settings, that would just be maddening. */
3737 if (strcmp (rs->buf, "OK") != 0)
3738 warning (_("Remote refused setting permissions with: %s"), rs->buf);
3739}
3740
3741/* This type describes each known response to the qSupported
3742 packet. */
3743struct protocol_feature
3744{
3745 /* The name of this protocol feature. */
3746 const char *name;
3747
3748 /* The default for this protocol feature. */
3749 enum packet_support default_support;
3750
3751 /* The function to call when this feature is reported, or after
3752 qSupported processing if the feature is not supported.
3753 The first argument points to this structure. The second
3754 argument indicates whether the packet requested support be
3755 enabled, disabled, or probed (or the default, if this function
3756 is being called at the end of processing and this feature was
3757 not reported). The third argument may be NULL; if not NULL, it
3758 is a NUL-terminated string taken from the packet following
3759 this feature's name and an equals sign. */
3760 void (*func) (const struct protocol_feature *, enum packet_support,
3761 const char *);
3762
3763 /* The corresponding packet for this feature. Only used if
3764 FUNC is remote_supported_packet. */
3765 int packet;
3766};
3767
3768static void
3769remote_supported_packet (const struct protocol_feature *feature,
3770 enum packet_support support,
3771 const char *argument)
3772{
3773 if (argument)
3774 {
3775 warning (_("Remote qSupported response supplied an unexpected value for"
3776 " \"%s\"."), feature->name);
3777 return;
3778 }
3779
3780 if (remote_protocol_packets[feature->packet].support
3781 == PACKET_SUPPORT_UNKNOWN)
3782 remote_protocol_packets[feature->packet].support = support;
3783}
3784
3785static void
3786remote_packet_size (const struct protocol_feature *feature,
3787 enum packet_support support, const char *value)
3788{
3789 struct remote_state *rs = get_remote_state ();
3790
3791 int packet_size;
3792 char *value_end;
3793
3794 if (support != PACKET_ENABLE)
3795 return;
3796
3797 if (value == NULL || *value == '\0')
3798 {
3799 warning (_("Remote target reported \"%s\" without a size."),
3800 feature->name);
3801 return;
3802 }
3803
3804 errno = 0;
3805 packet_size = strtol (value, &value_end, 16);
3806 if (errno != 0 || *value_end != '\0' || packet_size < 0)
3807 {
3808 warning (_("Remote target reported \"%s\" with a bad size: \"%s\"."),
3809 feature->name, value);
3810 return;
3811 }
3812
3813 if (packet_size > MAX_REMOTE_PACKET_SIZE)
3814 {
3815 warning (_("limiting remote suggested packet size (%d bytes) to %d"),
3816 packet_size, MAX_REMOTE_PACKET_SIZE);
3817 packet_size = MAX_REMOTE_PACKET_SIZE;
3818 }
3819
3820 /* Record the new maximum packet size. */
3821 rs->explicit_packet_size = packet_size;
3822}
3823
3824static void
3825remote_multi_process_feature (const struct protocol_feature *feature,
3826 enum packet_support support, const char *value)
3827{
3828 struct remote_state *rs = get_remote_state ();
3829
3830 rs->multi_process_aware = (support == PACKET_ENABLE);
3831}
3832
3833static void
3834remote_non_stop_feature (const struct protocol_feature *feature,
3835 enum packet_support support, const char *value)
3836{
3837 struct remote_state *rs = get_remote_state ();
3838
3839 rs->non_stop_aware = (support == PACKET_ENABLE);
3840}
3841
3842static void
3843remote_cond_tracepoint_feature (const struct protocol_feature *feature,
3844 enum packet_support support,
3845 const char *value)
3846{
3847 struct remote_state *rs = get_remote_state ();
3848
3849 rs->cond_tracepoints = (support == PACKET_ENABLE);
3850}
3851
3852static void
3853remote_cond_breakpoint_feature (const struct protocol_feature *feature,
3854 enum packet_support support,
3855 const char *value)
3856{
3857 struct remote_state *rs = get_remote_state ();
3858
3859 rs->cond_breakpoints = (support == PACKET_ENABLE);
3860}
3861
3862static void
3863remote_breakpoint_commands_feature (const struct protocol_feature *feature,
3864 enum packet_support support,
3865 const char *value)
3866{
3867 struct remote_state *rs = get_remote_state ();
3868
3869 rs->breakpoint_commands = (support == PACKET_ENABLE);
3870}
3871
3872static void
3873remote_fast_tracepoint_feature (const struct protocol_feature *feature,
3874 enum packet_support support,
3875 const char *value)
3876{
3877 struct remote_state *rs = get_remote_state ();
3878
3879 rs->fast_tracepoints = (support == PACKET_ENABLE);
3880}
3881
3882static void
3883remote_static_tracepoint_feature (const struct protocol_feature *feature,
3884 enum packet_support support,
3885 const char *value)
3886{
3887 struct remote_state *rs = get_remote_state ();
3888
3889 rs->static_tracepoints = (support == PACKET_ENABLE);
3890}
3891
3892static void
3893remote_install_in_trace_feature (const struct protocol_feature *feature,
3894 enum packet_support support,
3895 const char *value)
3896{
3897 struct remote_state *rs = get_remote_state ();
3898
3899 rs->install_in_trace = (support == PACKET_ENABLE);
3900}
3901
3902static void
3903remote_disconnected_tracing_feature (const struct protocol_feature *feature,
3904 enum packet_support support,
3905 const char *value)
3906{
3907 struct remote_state *rs = get_remote_state ();
3908
3909 rs->disconnected_tracing = (support == PACKET_ENABLE);
3910}
3911
3912static void
3913remote_enable_disable_tracepoint_feature (const struct protocol_feature *feature,
3914 enum packet_support support,
3915 const char *value)
3916{
3917 struct remote_state *rs = get_remote_state ();
3918
3919 rs->enable_disable_tracepoints = (support == PACKET_ENABLE);
3920}
3921
3922static void
3923remote_string_tracing_feature (const struct protocol_feature *feature,
3924 enum packet_support support,
3925 const char *value)
3926{
3927 struct remote_state *rs = get_remote_state ();
3928
3929 rs->string_tracing = (support == PACKET_ENABLE);
3930}
3931
3932static struct protocol_feature remote_protocol_features[] = {
3933 { "PacketSize", PACKET_DISABLE, remote_packet_size, -1 },
3934 { "qXfer:auxv:read", PACKET_DISABLE, remote_supported_packet,
3935 PACKET_qXfer_auxv },
3936 { "qXfer:features:read", PACKET_DISABLE, remote_supported_packet,
3937 PACKET_qXfer_features },
3938 { "qXfer:libraries:read", PACKET_DISABLE, remote_supported_packet,
3939 PACKET_qXfer_libraries },
3940 { "qXfer:libraries-svr4:read", PACKET_DISABLE, remote_supported_packet,
3941 PACKET_qXfer_libraries_svr4 },
3942 { "qXfer:memory-map:read", PACKET_DISABLE, remote_supported_packet,
3943 PACKET_qXfer_memory_map },
3944 { "qXfer:spu:read", PACKET_DISABLE, remote_supported_packet,
3945 PACKET_qXfer_spu_read },
3946 { "qXfer:spu:write", PACKET_DISABLE, remote_supported_packet,
3947 PACKET_qXfer_spu_write },
3948 { "qXfer:osdata:read", PACKET_DISABLE, remote_supported_packet,
3949 PACKET_qXfer_osdata },
3950 { "qXfer:threads:read", PACKET_DISABLE, remote_supported_packet,
3951 PACKET_qXfer_threads },
3952 { "qXfer:traceframe-info:read", PACKET_DISABLE, remote_supported_packet,
3953 PACKET_qXfer_traceframe_info },
3954 { "QPassSignals", PACKET_DISABLE, remote_supported_packet,
3955 PACKET_QPassSignals },
3956 { "QProgramSignals", PACKET_DISABLE, remote_supported_packet,
3957 PACKET_QProgramSignals },
3958 { "QStartNoAckMode", PACKET_DISABLE, remote_supported_packet,
3959 PACKET_QStartNoAckMode },
3960 { "multiprocess", PACKET_DISABLE, remote_multi_process_feature, -1 },
3961 { "QNonStop", PACKET_DISABLE, remote_non_stop_feature, -1 },
3962 { "qXfer:siginfo:read", PACKET_DISABLE, remote_supported_packet,
3963 PACKET_qXfer_siginfo_read },
3964 { "qXfer:siginfo:write", PACKET_DISABLE, remote_supported_packet,
3965 PACKET_qXfer_siginfo_write },
3966 { "ConditionalTracepoints", PACKET_DISABLE, remote_cond_tracepoint_feature,
3967 PACKET_ConditionalTracepoints },
3968 { "ConditionalBreakpoints", PACKET_DISABLE, remote_cond_breakpoint_feature,
3969 PACKET_ConditionalBreakpoints },
3970 { "BreakpointCommands", PACKET_DISABLE, remote_breakpoint_commands_feature,
3971 PACKET_BreakpointCommands },
3972 { "FastTracepoints", PACKET_DISABLE, remote_fast_tracepoint_feature,
3973 PACKET_FastTracepoints },
3974 { "StaticTracepoints", PACKET_DISABLE, remote_static_tracepoint_feature,
3975 PACKET_StaticTracepoints },
3976 {"InstallInTrace", PACKET_DISABLE, remote_install_in_trace_feature,
3977 PACKET_InstallInTrace},
3978 { "DisconnectedTracing", PACKET_DISABLE, remote_disconnected_tracing_feature,
3979 -1 },
3980 { "ReverseContinue", PACKET_DISABLE, remote_supported_packet,
3981 PACKET_bc },
3982 { "ReverseStep", PACKET_DISABLE, remote_supported_packet,
3983 PACKET_bs },
3984 { "TracepointSource", PACKET_DISABLE, remote_supported_packet,
3985 PACKET_TracepointSource },
3986 { "QAllow", PACKET_DISABLE, remote_supported_packet,
3987 PACKET_QAllow },
3988 { "EnableDisableTracepoints", PACKET_DISABLE,
3989 remote_enable_disable_tracepoint_feature, -1 },
3990 { "qXfer:fdpic:read", PACKET_DISABLE, remote_supported_packet,
3991 PACKET_qXfer_fdpic },
3992 { "qXfer:uib:read", PACKET_DISABLE, remote_supported_packet,
3993 PACKET_qXfer_uib },
3994 { "QDisableRandomization", PACKET_DISABLE, remote_supported_packet,
3995 PACKET_QDisableRandomization },
3996 { "QAgent", PACKET_DISABLE, remote_supported_packet, PACKET_QAgent},
3997 { "QTBuffer:size", PACKET_DISABLE,
3998 remote_supported_packet, PACKET_QTBuffer_size},
3999 { "tracenz", PACKET_DISABLE,
4000 remote_string_tracing_feature, -1 },
4001 { "Qbtrace:off", PACKET_DISABLE, remote_supported_packet, PACKET_Qbtrace_off },
4002 { "Qbtrace:bts", PACKET_DISABLE, remote_supported_packet, PACKET_Qbtrace_bts },
4003 { "qXfer:btrace:read", PACKET_DISABLE, remote_supported_packet,
4004 PACKET_qXfer_btrace }
4005};
4006
4007static char *remote_support_xml;
4008
4009/* Register string appended to "xmlRegisters=" in qSupported query. */
4010
4011void
4012register_remote_support_xml (const char *xml)
4013{
4014#if defined(HAVE_LIBEXPAT)
4015 if (remote_support_xml == NULL)
4016 remote_support_xml = concat ("xmlRegisters=", xml, (char *) NULL);
4017 else
4018 {
4019 char *copy = xstrdup (remote_support_xml + 13);
4020 char *p = strtok (copy, ",");
4021
4022 do
4023 {
4024 if (strcmp (p, xml) == 0)
4025 {
4026 /* already there */
4027 xfree (copy);
4028 return;
4029 }
4030 }
4031 while ((p = strtok (NULL, ",")) != NULL);
4032 xfree (copy);
4033
4034 remote_support_xml = reconcat (remote_support_xml,
4035 remote_support_xml, ",", xml,
4036 (char *) NULL);
4037 }
4038#endif
4039}
4040
4041static char *
4042remote_query_supported_append (char *msg, const char *append)
4043{
4044 if (msg)
4045 return reconcat (msg, msg, ";", append, (char *) NULL);
4046 else
4047 return xstrdup (append);
4048}
4049
4050static void
4051remote_query_supported (void)
4052{
4053 struct remote_state *rs = get_remote_state ();
4054 char *next;
4055 int i;
4056 unsigned char seen [ARRAY_SIZE (remote_protocol_features)];
4057
4058 /* The packet support flags are handled differently for this packet
4059 than for most others. We treat an error, a disabled packet, and
4060 an empty response identically: any features which must be reported
4061 to be used will be automatically disabled. An empty buffer
4062 accomplishes this, since that is also the representation for a list
4063 containing no features. */
4064
4065 rs->buf[0] = 0;
4066 if (remote_protocol_packets[PACKET_qSupported].support != PACKET_DISABLE)
4067 {
4068 char *q = NULL;
4069 struct cleanup *old_chain = make_cleanup (free_current_contents, &q);
4070
4071 q = remote_query_supported_append (q, "multiprocess+");
4072
4073 if (remote_support_xml)
4074 q = remote_query_supported_append (q, remote_support_xml);
4075
4076 q = remote_query_supported_append (q, "qRelocInsn+");
4077
4078 q = reconcat (q, "qSupported:", q, (char *) NULL);
4079 putpkt (q);
4080
4081 do_cleanups (old_chain);
4082
4083 getpkt (&rs->buf, &rs->buf_size, 0);
4084
4085 /* If an error occured, warn, but do not return - just reset the
4086 buffer to empty and go on to disable features. */
4087 if (packet_ok (rs->buf, &remote_protocol_packets[PACKET_qSupported])
4088 == PACKET_ERROR)
4089 {
4090 warning (_("Remote failure reply: %s"), rs->buf);
4091 rs->buf[0] = 0;
4092 }
4093 }
4094
4095 memset (seen, 0, sizeof (seen));
4096
4097 next = rs->buf;
4098 while (*next)
4099 {
4100 enum packet_support is_supported;
4101 char *p, *end, *name_end, *value;
4102
4103 /* First separate out this item from the rest of the packet. If
4104 there's another item after this, we overwrite the separator
4105 (terminated strings are much easier to work with). */
4106 p = next;
4107 end = strchr (p, ';');
4108 if (end == NULL)
4109 {
4110 end = p + strlen (p);
4111 next = end;
4112 }
4113 else
4114 {
4115 *end = '\0';
4116 next = end + 1;
4117
4118 if (end == p)
4119 {
4120 warning (_("empty item in \"qSupported\" response"));
4121 continue;
4122 }
4123 }
4124
4125 name_end = strchr (p, '=');
4126 if (name_end)
4127 {
4128 /* This is a name=value entry. */
4129 is_supported = PACKET_ENABLE;
4130 value = name_end + 1;
4131 *name_end = '\0';
4132 }
4133 else
4134 {
4135 value = NULL;
4136 switch (end[-1])
4137 {
4138 case '+':
4139 is_supported = PACKET_ENABLE;
4140 break;
4141
4142 case '-':
4143 is_supported = PACKET_DISABLE;
4144 break;
4145
4146 case '?':
4147 is_supported = PACKET_SUPPORT_UNKNOWN;
4148 break;
4149
4150 default:
4151 warning (_("unrecognized item \"%s\" "
4152 "in \"qSupported\" response"), p);
4153 continue;
4154 }
4155 end[-1] = '\0';
4156 }
4157
4158 for (i = 0; i < ARRAY_SIZE (remote_protocol_features); i++)
4159 if (strcmp (remote_protocol_features[i].name, p) == 0)
4160 {
4161 const struct protocol_feature *feature;
4162
4163 seen[i] = 1;
4164 feature = &remote_protocol_features[i];
4165 feature->func (feature, is_supported, value);
4166 break;
4167 }
4168 }
4169
4170 /* If we increased the packet size, make sure to increase the global
4171 buffer size also. We delay this until after parsing the entire
4172 qSupported packet, because this is the same buffer we were
4173 parsing. */
4174 if (rs->buf_size < rs->explicit_packet_size)
4175 {
4176 rs->buf_size = rs->explicit_packet_size;
4177 rs->buf = xrealloc (rs->buf, rs->buf_size);
4178 }
4179
4180 /* Handle the defaults for unmentioned features. */
4181 for (i = 0; i < ARRAY_SIZE (remote_protocol_features); i++)
4182 if (!seen[i])
4183 {
4184 const struct protocol_feature *feature;
4185
4186 feature = &remote_protocol_features[i];
4187 feature->func (feature, feature->default_support, NULL);
4188 }
4189}
4190
4191/* Remove any of the remote.c targets from target stack. Upper targets depend
4192 on it so remove them first. */
4193
4194static void
4195remote_unpush_target (void)
4196{
4197 pop_all_targets_above (process_stratum - 1, 0);
4198}
4199
4200static void
4201remote_open_1 (char *name, int from_tty,
4202 struct target_ops *target, int extended_p)
4203{
4204 struct remote_state *rs = get_remote_state ();
4205
4206 if (name == 0)
4207 error (_("To open a remote debug connection, you need to specify what\n"
4208 "serial device is attached to the remote system\n"
4209 "(e.g. /dev/ttyS0, /dev/ttya, COM1, etc.)."));
4210
4211 /* See FIXME above. */
4212 if (!target_async_permitted)
4213 wait_forever_enabled_p = 1;
4214
4215 /* If we're connected to a running target, target_preopen will kill it.
4216 Ask this question first, before target_preopen has a chance to kill
4217 anything. */
4218 if (remote_desc != NULL && !have_inferiors ())
4219 {
4220 if (from_tty
4221 && !query (_("Already connected to a remote target. Disconnect? ")))
4222 error (_("Still connected."));
4223 }
4224
4225 /* Here the possibly existing remote target gets unpushed. */
4226 target_preopen (from_tty);
4227
4228 /* Make sure we send the passed signals list the next time we resume. */
4229 xfree (last_pass_packet);
4230 last_pass_packet = NULL;
4231
4232 /* Make sure we send the program signals list the next time we
4233 resume. */
4234 xfree (last_program_signals_packet);
4235 last_program_signals_packet = NULL;
4236
4237 remote_fileio_reset ();
4238 reopen_exec_file ();
4239 reread_symbols ();
4240
4241 remote_desc = remote_serial_open (name);
4242 if (!remote_desc)
4243 perror_with_name (name);
4244
4245 if (baud_rate != -1)
4246 {
4247 if (serial_setbaudrate (remote_desc, baud_rate))
4248 {
4249 /* The requested speed could not be set. Error out to
4250 top level after closing remote_desc. Take care to
4251 set remote_desc to NULL to avoid closing remote_desc
4252 more than once. */
4253 serial_close (remote_desc);
4254 remote_desc = NULL;
4255 perror_with_name (name);
4256 }
4257 }
4258
4259 serial_raw (remote_desc);
4260
4261 /* If there is something sitting in the buffer we might take it as a
4262 response to a command, which would be bad. */
4263 serial_flush_input (remote_desc);
4264
4265 if (from_tty)
4266 {
4267 puts_filtered ("Remote debugging using ");
4268 puts_filtered (name);
4269 puts_filtered ("\n");
4270 }
4271 push_target (target); /* Switch to using remote target now. */
4272
4273 /* Register extra event sources in the event loop. */
4274 remote_async_inferior_event_token
4275 = create_async_event_handler (remote_async_inferior_event_handler,
4276 NULL);
4277 remote_notif_register_async_event_handler ();
4278
4279 /* Reset the target state; these things will be queried either by
4280 remote_query_supported or as they are needed. */
4281 init_all_packet_configs ();
4282 rs->cached_wait_status = 0;
4283 rs->explicit_packet_size = 0;
4284 rs->noack_mode = 0;
4285 rs->multi_process_aware = 0;
4286 rs->extended = extended_p;
4287 rs->non_stop_aware = 0;
4288 rs->waiting_for_stop_reply = 0;
4289 rs->ctrlc_pending_p = 0;
4290
4291 general_thread = not_sent_ptid;
4292 continue_thread = not_sent_ptid;
4293 remote_traceframe_number = -1;
4294
4295 /* Probe for ability to use "ThreadInfo" query, as required. */
4296 use_threadinfo_query = 1;
4297 use_threadextra_query = 1;
4298
4299 if (target_async_permitted)
4300 {
4301 /* With this target we start out by owning the terminal. */
4302 remote_async_terminal_ours_p = 1;
4303
4304 /* FIXME: cagney/1999-09-23: During the initial connection it is
4305 assumed that the target is already ready and able to respond to
4306 requests. Unfortunately remote_start_remote() eventually calls
4307 wait_for_inferior() with no timeout. wait_forever_enabled_p gets
4308 around this. Eventually a mechanism that allows
4309 wait_for_inferior() to expect/get timeouts will be
4310 implemented. */
4311 wait_forever_enabled_p = 0;
4312 }
4313
4314 /* First delete any symbols previously loaded from shared libraries. */
4315 no_shared_libraries (NULL, 0);
4316
4317 /* Start afresh. */
4318 init_thread_list ();
4319
4320 /* Start the remote connection. If error() or QUIT, discard this
4321 target (we'd otherwise be in an inconsistent state) and then
4322 propogate the error on up the exception chain. This ensures that
4323 the caller doesn't stumble along blindly assuming that the
4324 function succeeded. The CLI doesn't have this problem but other
4325 UI's, such as MI do.
4326
4327 FIXME: cagney/2002-05-19: Instead of re-throwing the exception,
4328 this function should return an error indication letting the
4329 caller restore the previous state. Unfortunately the command
4330 ``target remote'' is directly wired to this function making that
4331 impossible. On a positive note, the CLI side of this problem has
4332 been fixed - the function set_cmd_context() makes it possible for
4333 all the ``target ....'' commands to share a common callback
4334 function. See cli-dump.c. */
4335 {
4336 volatile struct gdb_exception ex;
4337
4338 TRY_CATCH (ex, RETURN_MASK_ALL)
4339 {
4340 remote_start_remote (from_tty, target, extended_p);
4341 }
4342 if (ex.reason < 0)
4343 {
4344 /* Pop the partially set up target - unless something else did
4345 already before throwing the exception. */
4346 if (remote_desc != NULL)
4347 remote_unpush_target ();
4348 if (target_async_permitted)
4349 wait_forever_enabled_p = 1;
4350 throw_exception (ex);
4351 }
4352 }
4353
4354 if (target_async_permitted)
4355 wait_forever_enabled_p = 1;
4356}
4357
4358/* This takes a program previously attached to and detaches it. After
4359 this is done, GDB can be used to debug some other program. We
4360 better not have left any breakpoints in the target program or it'll
4361 die when it hits one. */
4362
4363static void
4364remote_detach_1 (char *args, int from_tty, int extended)
4365{
4366 int pid = ptid_get_pid (inferior_ptid);
4367 struct remote_state *rs = get_remote_state ();
4368
4369 if (args)
4370 error (_("Argument given to \"detach\" when remotely debugging."));
4371
4372 if (!target_has_execution)
4373 error (_("No process to detach from."));
4374
4375 if (from_tty)
4376 {
4377 char *exec_file = get_exec_file (0);
4378 if (exec_file == NULL)
4379 exec_file = "";
4380 printf_unfiltered (_("Detaching from program: %s, %s\n"), exec_file,
4381 target_pid_to_str (pid_to_ptid (pid)));
4382 gdb_flush (gdb_stdout);
4383 }
4384
4385 /* Tell the remote target to detach. */
4386 if (remote_multi_process_p (rs))
4387 xsnprintf (rs->buf, get_remote_packet_size (), "D;%x", pid);
4388 else
4389 strcpy (rs->buf, "D");
4390
4391 putpkt (rs->buf);
4392 getpkt (&rs->buf, &rs->buf_size, 0);
4393
4394 if (rs->buf[0] == 'O' && rs->buf[1] == 'K')
4395 ;
4396 else if (rs->buf[0] == '\0')
4397 error (_("Remote doesn't know how to detach"));
4398 else
4399 error (_("Can't detach process."));
4400
4401 if (from_tty && !extended)
4402 puts_filtered (_("Ending remote debugging.\n"));
4403
4404 target_mourn_inferior ();
4405}
4406
4407static void
4408remote_detach (struct target_ops *ops, char *args, int from_tty)
4409{
4410 remote_detach_1 (args, from_tty, 0);
4411}
4412
4413static void
4414extended_remote_detach (struct target_ops *ops, char *args, int from_tty)
4415{
4416 remote_detach_1 (args, from_tty, 1);
4417}
4418
4419/* Same as remote_detach, but don't send the "D" packet; just disconnect. */
4420
4421static void
4422remote_disconnect (struct target_ops *target, char *args, int from_tty)
4423{
4424 if (args)
4425 error (_("Argument given to \"disconnect\" when remotely debugging."));
4426
4427 /* Make sure we unpush even the extended remote targets; mourn
4428 won't do it. So call remote_mourn_1 directly instead of
4429 target_mourn_inferior. */
4430 remote_mourn_1 (target);
4431
4432 if (from_tty)
4433 puts_filtered ("Ending remote debugging.\n");
4434}
4435
4436/* Attach to the process specified by ARGS. If FROM_TTY is non-zero,
4437 be chatty about it. */
4438
4439static void
4440extended_remote_attach_1 (struct target_ops *target, char *args, int from_tty)
4441{
4442 struct remote_state *rs = get_remote_state ();
4443 int pid;
4444 char *wait_status = NULL;
4445
4446 pid = parse_pid_to_attach (args);
4447
4448 /* Remote PID can be freely equal to getpid, do not check it here the same
4449 way as in other targets. */
4450
4451 if (remote_protocol_packets[PACKET_vAttach].support == PACKET_DISABLE)
4452 error (_("This target does not support attaching to a process"));
4453
4454 if (from_tty)
4455 {
4456 char *exec_file = get_exec_file (0);
4457
4458 if (exec_file)
4459 printf_unfiltered (_("Attaching to program: %s, %s\n"), exec_file,
4460 target_pid_to_str (pid_to_ptid (pid)));
4461 else
4462 printf_unfiltered (_("Attaching to %s\n"),
4463 target_pid_to_str (pid_to_ptid (pid)));
4464
4465 gdb_flush (gdb_stdout);
4466 }
4467
4468 xsnprintf (rs->buf, get_remote_packet_size (), "vAttach;%x", pid);
4469 putpkt (rs->buf);
4470 getpkt (&rs->buf, &rs->buf_size, 0);
4471
4472 if (packet_ok (rs->buf,
4473 &remote_protocol_packets[PACKET_vAttach]) == PACKET_OK)
4474 {
4475 if (!non_stop)
4476 {
4477 /* Save the reply for later. */
4478 wait_status = alloca (strlen (rs->buf) + 1);
4479 strcpy (wait_status, rs->buf);
4480 }
4481 else if (strcmp (rs->buf, "OK") != 0)
4482 error (_("Attaching to %s failed with: %s"),
4483 target_pid_to_str (pid_to_ptid (pid)),
4484 rs->buf);
4485 }
4486 else if (remote_protocol_packets[PACKET_vAttach].support == PACKET_DISABLE)
4487 error (_("This target does not support attaching to a process"));
4488 else
4489 error (_("Attaching to %s failed"),
4490 target_pid_to_str (pid_to_ptid (pid)));
4491
4492 set_current_inferior (remote_add_inferior (0, pid, 1));
4493
4494 inferior_ptid = pid_to_ptid (pid);
4495
4496 if (non_stop)
4497 {
4498 struct thread_info *thread;
4499
4500 /* Get list of threads. */
4501 remote_threads_info (target);
4502
4503 thread = first_thread_of_process (pid);
4504 if (thread)
4505 inferior_ptid = thread->ptid;
4506 else
4507 inferior_ptid = pid_to_ptid (pid);
4508
4509 /* Invalidate our notion of the remote current thread. */
4510 record_currthread (minus_one_ptid);
4511 }
4512 else
4513 {
4514 /* Now, if we have thread information, update inferior_ptid. */
4515 inferior_ptid = remote_current_thread (inferior_ptid);
4516
4517 /* Add the main thread to the thread list. */
4518 add_thread_silent (inferior_ptid);
4519 }
4520
4521 /* Next, if the target can specify a description, read it. We do
4522 this before anything involving memory or registers. */
4523 target_find_description ();
4524
4525 if (!non_stop)
4526 {
4527 /* Use the previously fetched status. */
4528 gdb_assert (wait_status != NULL);
4529
4530 if (target_can_async_p ())
4531 {
4532 struct notif_event *reply
4533 = remote_notif_parse (&notif_client_stop, wait_status);
4534
4535 push_stop_reply ((struct stop_reply *) reply);
4536
4537 target_async (inferior_event_handler, 0);
4538 }
4539 else
4540 {
4541 gdb_assert (wait_status != NULL);
4542 strcpy (rs->buf, wait_status);
4543 rs->cached_wait_status = 1;
4544 }
4545 }
4546 else
4547 gdb_assert (wait_status == NULL);
4548}
4549
4550static void
4551extended_remote_attach (struct target_ops *ops, char *args, int from_tty)
4552{
4553 extended_remote_attach_1 (ops, args, from_tty);
4554}
4555
4556/* Convert hex digit A to a number. */
4557
4558static int
4559fromhex (int a)
4560{
4561 if (a >= '0' && a <= '9')
4562 return a - '0';
4563 else if (a >= 'a' && a <= 'f')
4564 return a - 'a' + 10;
4565 else if (a >= 'A' && a <= 'F')
4566 return a - 'A' + 10;
4567 else
4568 error (_("Reply contains invalid hex digit %d"), a);
4569}
4570
4571int
4572hex2bin (const char *hex, gdb_byte *bin, int count)
4573{
4574 int i;
4575
4576 for (i = 0; i < count; i++)
4577 {
4578 if (hex[0] == 0 || hex[1] == 0)
4579 {
4580 /* Hex string is short, or of uneven length.
4581 Return the count that has been converted so far. */
4582 return i;
4583 }
4584 *bin++ = fromhex (hex[0]) * 16 + fromhex (hex[1]);
4585 hex += 2;
4586 }
4587 return i;
4588}
4589
4590/* Convert number NIB to a hex digit. */
4591
4592static int
4593tohex (int nib)
4594{
4595 if (nib < 10)
4596 return '0' + nib;
4597 else
4598 return 'a' + nib - 10;
4599}
4600
4601int
4602bin2hex (const gdb_byte *bin, char *hex, int count)
4603{
4604 int i;
4605
4606 /* May use a length, or a nul-terminated string as input. */
4607 if (count == 0)
4608 count = strlen ((char *) bin);
4609
4610 for (i = 0; i < count; i++)
4611 {
4612 *hex++ = tohex ((*bin >> 4) & 0xf);
4613 *hex++ = tohex (*bin++ & 0xf);
4614 }
4615 *hex = 0;
4616 return i;
4617}
4618\f
4619/* Check for the availability of vCont. This function should also check
4620 the response. */
4621
4622static void
4623remote_vcont_probe (struct remote_state *rs)
4624{
4625 char *buf;
4626
4627 strcpy (rs->buf, "vCont?");
4628 putpkt (rs->buf);
4629 getpkt (&rs->buf, &rs->buf_size, 0);
4630 buf = rs->buf;
4631
4632 /* Make sure that the features we assume are supported. */
4633 if (strncmp (buf, "vCont", 5) == 0)
4634 {
4635 char *p = &buf[5];
4636 int support_s, support_S, support_c, support_C;
4637
4638 support_s = 0;
4639 support_S = 0;
4640 support_c = 0;
4641 support_C = 0;
4642 rs->support_vCont_t = 0;
4643 while (p && *p == ';')
4644 {
4645 p++;
4646 if (*p == 's' && (*(p + 1) == ';' || *(p + 1) == 0))
4647 support_s = 1;
4648 else if (*p == 'S' && (*(p + 1) == ';' || *(p + 1) == 0))
4649 support_S = 1;
4650 else if (*p == 'c' && (*(p + 1) == ';' || *(p + 1) == 0))
4651 support_c = 1;
4652 else if (*p == 'C' && (*(p + 1) == ';' || *(p + 1) == 0))
4653 support_C = 1;
4654 else if (*p == 't' && (*(p + 1) == ';' || *(p + 1) == 0))
4655 rs->support_vCont_t = 1;
4656
4657 p = strchr (p, ';');
4658 }
4659
4660 /* If s, S, c, and C are not all supported, we can't use vCont. Clearing
4661 BUF will make packet_ok disable the packet. */
4662 if (!support_s || !support_S || !support_c || !support_C)
4663 buf[0] = 0;
4664 }
4665
4666 packet_ok (buf, &remote_protocol_packets[PACKET_vCont]);
4667}
4668
4669/* Helper function for building "vCont" resumptions. Write a
4670 resumption to P. ENDP points to one-passed-the-end of the buffer
4671 we're allowed to write to. Returns BUF+CHARACTERS_WRITTEN. The
4672 thread to be resumed is PTID; STEP and SIGGNAL indicate whether the
4673 resumed thread should be single-stepped and/or signalled. If PTID
4674 equals minus_one_ptid, then all threads are resumed; if PTID
4675 represents a process, then all threads of the process are resumed;
4676 the thread to be stepped and/or signalled is given in the global
4677 INFERIOR_PTID. */
4678
4679static char *
4680append_resumption (char *p, char *endp,
4681 ptid_t ptid, int step, enum gdb_signal siggnal)
4682{
4683 struct remote_state *rs = get_remote_state ();
4684
4685 if (step && siggnal != GDB_SIGNAL_0)
4686 p += xsnprintf (p, endp - p, ";S%02x", siggnal);
4687 else if (step)
4688 p += xsnprintf (p, endp - p, ";s");
4689 else if (siggnal != GDB_SIGNAL_0)
4690 p += xsnprintf (p, endp - p, ";C%02x", siggnal);
4691 else
4692 p += xsnprintf (p, endp - p, ";c");
4693
4694 if (remote_multi_process_p (rs) && ptid_is_pid (ptid))
4695 {
4696 ptid_t nptid;
4697
4698 /* All (-1) threads of process. */
4699 nptid = ptid_build (ptid_get_pid (ptid), 0, -1);
4700
4701 p += xsnprintf (p, endp - p, ":");
4702 p = write_ptid (p, endp, nptid);
4703 }
4704 else if (!ptid_equal (ptid, minus_one_ptid))
4705 {
4706 p += xsnprintf (p, endp - p, ":");
4707 p = write_ptid (p, endp, ptid);
4708 }
4709
4710 return p;
4711}
4712
4713/* Append a vCont continue-with-signal action for threads that have a
4714 non-zero stop signal. */
4715
4716static char *
4717append_pending_thread_resumptions (char *p, char *endp, ptid_t ptid)
4718{
4719 struct thread_info *thread;
4720
4721 ALL_THREADS (thread)
4722 if (ptid_match (thread->ptid, ptid)
4723 && !ptid_equal (inferior_ptid, thread->ptid)
4724 && thread->suspend.stop_signal != GDB_SIGNAL_0
4725 && signal_pass_state (thread->suspend.stop_signal))
4726 {
4727 p = append_resumption (p, endp, thread->ptid,
4728 0, thread->suspend.stop_signal);
4729 thread->suspend.stop_signal = GDB_SIGNAL_0;
4730 }
4731
4732 return p;
4733}
4734
4735/* Resume the remote inferior by using a "vCont" packet. The thread
4736 to be resumed is PTID; STEP and SIGGNAL indicate whether the
4737 resumed thread should be single-stepped and/or signalled. If PTID
4738 equals minus_one_ptid, then all threads are resumed; the thread to
4739 be stepped and/or signalled is given in the global INFERIOR_PTID.
4740 This function returns non-zero iff it resumes the inferior.
4741
4742 This function issues a strict subset of all possible vCont commands at the
4743 moment. */
4744
4745static int
4746remote_vcont_resume (ptid_t ptid, int step, enum gdb_signal siggnal)
4747{
4748 struct remote_state *rs = get_remote_state ();
4749 char *p;
4750 char *endp;
4751
4752 if (remote_protocol_packets[PACKET_vCont].support == PACKET_SUPPORT_UNKNOWN)
4753 remote_vcont_probe (rs);
4754
4755 if (remote_protocol_packets[PACKET_vCont].support == PACKET_DISABLE)
4756 return 0;
4757
4758 p = rs->buf;
4759 endp = rs->buf + get_remote_packet_size ();
4760
4761 /* If we could generate a wider range of packets, we'd have to worry
4762 about overflowing BUF. Should there be a generic
4763 "multi-part-packet" packet? */
4764
4765 p += xsnprintf (p, endp - p, "vCont");
4766
4767 if (ptid_equal (ptid, magic_null_ptid))
4768 {
4769 /* MAGIC_NULL_PTID means that we don't have any active threads,
4770 so we don't have any TID numbers the inferior will
4771 understand. Make sure to only send forms that do not specify
4772 a TID. */
4773 append_resumption (p, endp, minus_one_ptid, step, siggnal);
4774 }
4775 else if (ptid_equal (ptid, minus_one_ptid) || ptid_is_pid (ptid))
4776 {
4777 /* Resume all threads (of all processes, or of a single
4778 process), with preference for INFERIOR_PTID. This assumes
4779 inferior_ptid belongs to the set of all threads we are about
4780 to resume. */
4781 if (step || siggnal != GDB_SIGNAL_0)
4782 {
4783 /* Step inferior_ptid, with or without signal. */
4784 p = append_resumption (p, endp, inferior_ptid, step, siggnal);
4785 }
4786
4787 /* Also pass down any pending signaled resumption for other
4788 threads not the current. */
4789 p = append_pending_thread_resumptions (p, endp, ptid);
4790
4791 /* And continue others without a signal. */
4792 append_resumption (p, endp, ptid, /*step=*/ 0, GDB_SIGNAL_0);
4793 }
4794 else
4795 {
4796 /* Scheduler locking; resume only PTID. */
4797 append_resumption (p, endp, ptid, step, siggnal);
4798 }
4799
4800 gdb_assert (strlen (rs->buf) < get_remote_packet_size ());
4801 putpkt (rs->buf);
4802
4803 if (non_stop)
4804 {
4805 /* In non-stop, the stub replies to vCont with "OK". The stop
4806 reply will be reported asynchronously by means of a `%Stop'
4807 notification. */
4808 getpkt (&rs->buf, &rs->buf_size, 0);
4809 if (strcmp (rs->buf, "OK") != 0)
4810 error (_("Unexpected vCont reply in non-stop mode: %s"), rs->buf);
4811 }
4812
4813 return 1;
4814}
4815
4816/* Tell the remote machine to resume. */
4817
4818static enum gdb_signal last_sent_signal = GDB_SIGNAL_0;
4819
4820static int last_sent_step;
4821
4822static void
4823remote_resume (struct target_ops *ops,
4824 ptid_t ptid, int step, enum gdb_signal siggnal)
4825{
4826 struct remote_state *rs = get_remote_state ();
4827 char *buf;
4828
4829 /* In all-stop, we can't mark REMOTE_ASYNC_GET_PENDING_EVENTS_TOKEN
4830 (explained in remote-notif.c:handle_notification) so
4831 remote_notif_process is not called. We need find a place where
4832 it is safe to start a 'vNotif' sequence. It is good to do it
4833 before resuming inferior, because inferior was stopped and no RSP
4834 traffic at that moment. */
4835 if (!non_stop)
4836 remote_notif_process (&notif_client_stop);
4837
4838 last_sent_signal = siggnal;
4839 last_sent_step = step;
4840
4841 /* The vCont packet doesn't need to specify threads via Hc. */
4842 /* No reverse support (yet) for vCont. */
4843 if (execution_direction != EXEC_REVERSE)
4844 if (remote_vcont_resume (ptid, step, siggnal))
4845 goto done;
4846
4847 /* All other supported resume packets do use Hc, so set the continue
4848 thread. */
4849 if (ptid_equal (ptid, minus_one_ptid))
4850 set_continue_thread (any_thread_ptid);
4851 else
4852 set_continue_thread (ptid);
4853
4854 buf = rs->buf;
4855 if (execution_direction == EXEC_REVERSE)
4856 {
4857 /* We don't pass signals to the target in reverse exec mode. */
4858 if (info_verbose && siggnal != GDB_SIGNAL_0)
4859 warning (_(" - Can't pass signal %d to target in reverse: ignored."),
4860 siggnal);
4861
4862 if (step
4863 && remote_protocol_packets[PACKET_bs].support == PACKET_DISABLE)
4864 error (_("Remote reverse-step not supported."));
4865 if (!step
4866 && remote_protocol_packets[PACKET_bc].support == PACKET_DISABLE)
4867 error (_("Remote reverse-continue not supported."));
4868
4869 strcpy (buf, step ? "bs" : "bc");
4870 }
4871 else if (siggnal != GDB_SIGNAL_0)
4872 {
4873 buf[0] = step ? 'S' : 'C';
4874 buf[1] = tohex (((int) siggnal >> 4) & 0xf);
4875 buf[2] = tohex (((int) siggnal) & 0xf);
4876 buf[3] = '\0';
4877 }
4878 else
4879 strcpy (buf, step ? "s" : "c");
4880
4881 putpkt (buf);
4882
4883 done:
4884 /* We are about to start executing the inferior, let's register it
4885 with the event loop. NOTE: this is the one place where all the
4886 execution commands end up. We could alternatively do this in each
4887 of the execution commands in infcmd.c. */
4888 /* FIXME: ezannoni 1999-09-28: We may need to move this out of here
4889 into infcmd.c in order to allow inferior function calls to work
4890 NOT asynchronously. */
4891 if (target_can_async_p ())
4892 target_async (inferior_event_handler, 0);
4893
4894 /* We've just told the target to resume. The remote server will
4895 wait for the inferior to stop, and then send a stop reply. In
4896 the mean time, we can't start another command/query ourselves
4897 because the stub wouldn't be ready to process it. This applies
4898 only to the base all-stop protocol, however. In non-stop (which
4899 only supports vCont), the stub replies with an "OK", and is
4900 immediate able to process further serial input. */
4901 if (!non_stop)
4902 rs->waiting_for_stop_reply = 1;
4903}
4904\f
4905
4906/* Set up the signal handler for SIGINT, while the target is
4907 executing, ovewriting the 'regular' SIGINT signal handler. */
4908static void
4909initialize_sigint_signal_handler (void)
4910{
4911 signal (SIGINT, handle_remote_sigint);
4912}
4913
4914/* Signal handler for SIGINT, while the target is executing. */
4915static void
4916handle_remote_sigint (int sig)
4917{
4918 signal (sig, handle_remote_sigint_twice);
4919 mark_async_signal_handler (sigint_remote_token);
4920}
4921
4922/* Signal handler for SIGINT, installed after SIGINT has already been
4923 sent once. It will take effect the second time that the user sends
4924 a ^C. */
4925static void
4926handle_remote_sigint_twice (int sig)
4927{
4928 signal (sig, handle_remote_sigint);
4929 mark_async_signal_handler (sigint_remote_twice_token);
4930}
4931
4932/* Perform the real interruption of the target execution, in response
4933 to a ^C. */
4934static void
4935async_remote_interrupt (gdb_client_data arg)
4936{
4937 if (remote_debug)
4938 fprintf_unfiltered (gdb_stdlog, "async_remote_interrupt called\n");
4939
4940 target_stop (inferior_ptid);
4941}
4942
4943/* Perform interrupt, if the first attempt did not succeed. Just give
4944 up on the target alltogether. */
4945void
4946async_remote_interrupt_twice (gdb_client_data arg)
4947{
4948 if (remote_debug)
4949 fprintf_unfiltered (gdb_stdlog, "async_remote_interrupt_twice called\n");
4950
4951 interrupt_query ();
4952}
4953
4954/* Reinstall the usual SIGINT handlers, after the target has
4955 stopped. */
4956static void
4957cleanup_sigint_signal_handler (void *dummy)
4958{
4959 signal (SIGINT, handle_sigint);
4960}
4961
4962/* Send ^C to target to halt it. Target will respond, and send us a
4963 packet. */
4964static void (*ofunc) (int);
4965
4966/* The command line interface's stop routine. This function is installed
4967 as a signal handler for SIGINT. The first time a user requests a
4968 stop, we call remote_stop to send a break or ^C. If there is no
4969 response from the target (it didn't stop when the user requested it),
4970 we ask the user if he'd like to detach from the target. */
4971static void
4972remote_interrupt (int signo)
4973{
4974 /* If this doesn't work, try more severe steps. */
4975 signal (signo, remote_interrupt_twice);
4976
4977 gdb_call_async_signal_handler (sigint_remote_token, 1);
4978}
4979
4980/* The user typed ^C twice. */
4981
4982static void
4983remote_interrupt_twice (int signo)
4984{
4985 signal (signo, ofunc);
4986 gdb_call_async_signal_handler (sigint_remote_twice_token, 1);
4987 signal (signo, remote_interrupt);
4988}
4989
4990/* Non-stop version of target_stop. Uses `vCont;t' to stop a remote
4991 thread, all threads of a remote process, or all threads of all
4992 processes. */
4993
4994static void
4995remote_stop_ns (ptid_t ptid)
4996{
4997 struct remote_state *rs = get_remote_state ();
4998 char *p = rs->buf;
4999 char *endp = rs->buf + get_remote_packet_size ();
5000
5001 if (remote_protocol_packets[PACKET_vCont].support == PACKET_SUPPORT_UNKNOWN)
5002 remote_vcont_probe (rs);
5003
5004 if (!rs->support_vCont_t)
5005 error (_("Remote server does not support stopping threads"));
5006
5007 if (ptid_equal (ptid, minus_one_ptid)
5008 || (!remote_multi_process_p (rs) && ptid_is_pid (ptid)))
5009 p += xsnprintf (p, endp - p, "vCont;t");
5010 else
5011 {
5012 ptid_t nptid;
5013
5014 p += xsnprintf (p, endp - p, "vCont;t:");
5015
5016 if (ptid_is_pid (ptid))
5017 /* All (-1) threads of process. */
5018 nptid = ptid_build (ptid_get_pid (ptid), 0, -1);
5019 else
5020 {
5021 /* Small optimization: if we already have a stop reply for
5022 this thread, no use in telling the stub we want this
5023 stopped. */
5024 if (peek_stop_reply (ptid))
5025 return;
5026
5027 nptid = ptid;
5028 }
5029
5030 write_ptid (p, endp, nptid);
5031 }
5032
5033 /* In non-stop, we get an immediate OK reply. The stop reply will
5034 come in asynchronously by notification. */
5035 putpkt (rs->buf);
5036 getpkt (&rs->buf, &rs->buf_size, 0);
5037 if (strcmp (rs->buf, "OK") != 0)
5038 error (_("Stopping %s failed: %s"), target_pid_to_str (ptid), rs->buf);
5039}
5040
5041/* All-stop version of target_stop. Sends a break or a ^C to stop the
5042 remote target. It is undefined which thread of which process
5043 reports the stop. */
5044
5045static void
5046remote_stop_as (ptid_t ptid)
5047{
5048 struct remote_state *rs = get_remote_state ();
5049
5050 rs->ctrlc_pending_p = 1;
5051
5052 /* If the inferior is stopped already, but the core didn't know
5053 about it yet, just ignore the request. The cached wait status
5054 will be collected in remote_wait. */
5055 if (rs->cached_wait_status)
5056 return;
5057
5058 /* Send interrupt_sequence to remote target. */
5059 send_interrupt_sequence ();
5060}
5061
5062/* This is the generic stop called via the target vector. When a target
5063 interrupt is requested, either by the command line or the GUI, we
5064 will eventually end up here. */
5065
5066static void
5067remote_stop (ptid_t ptid)
5068{
5069 if (remote_debug)
5070 fprintf_unfiltered (gdb_stdlog, "remote_stop called\n");
5071
5072 if (non_stop)
5073 remote_stop_ns (ptid);
5074 else
5075 remote_stop_as (ptid);
5076}
5077
5078/* Ask the user what to do when an interrupt is received. */
5079
5080static void
5081interrupt_query (void)
5082{
5083 target_terminal_ours ();
5084
5085 if (target_can_async_p ())
5086 {
5087 signal (SIGINT, handle_sigint);
5088 deprecated_throw_reason (RETURN_QUIT);
5089 }
5090 else
5091 {
5092 if (query (_("Interrupted while waiting for the program.\n\
5093Give up (and stop debugging it)? ")))
5094 {
5095 remote_unpush_target ();
5096 deprecated_throw_reason (RETURN_QUIT);
5097 }
5098 }
5099
5100 target_terminal_inferior ();
5101}
5102
5103/* Enable/disable target terminal ownership. Most targets can use
5104 terminal groups to control terminal ownership. Remote targets are
5105 different in that explicit transfer of ownership to/from GDB/target
5106 is required. */
5107
5108static void
5109remote_terminal_inferior (void)
5110{
5111 if (!target_async_permitted)
5112 /* Nothing to do. */
5113 return;
5114
5115 /* FIXME: cagney/1999-09-27: Make calls to target_terminal_*()
5116 idempotent. The event-loop GDB talking to an asynchronous target
5117 with a synchronous command calls this function from both
5118 event-top.c and infrun.c/infcmd.c. Once GDB stops trying to
5119 transfer the terminal to the target when it shouldn't this guard
5120 can go away. */
5121 if (!remote_async_terminal_ours_p)
5122 return;
5123 delete_file_handler (input_fd);
5124 remote_async_terminal_ours_p = 0;
5125 initialize_sigint_signal_handler ();
5126 /* NOTE: At this point we could also register our selves as the
5127 recipient of all input. Any characters typed could then be
5128 passed on down to the target. */
5129}
5130
5131static void
5132remote_terminal_ours (void)
5133{
5134 if (!target_async_permitted)
5135 /* Nothing to do. */
5136 return;
5137
5138 /* See FIXME in remote_terminal_inferior. */
5139 if (remote_async_terminal_ours_p)
5140 return;
5141 cleanup_sigint_signal_handler (NULL);
5142 add_file_handler (input_fd, stdin_event_handler, 0);
5143 remote_async_terminal_ours_p = 1;
5144}
5145
5146static void
5147remote_console_output (char *msg)
5148{
5149 char *p;
5150
5151 for (p = msg; p[0] && p[1]; p += 2)
5152 {
5153 char tb[2];
5154 char c = fromhex (p[0]) * 16 + fromhex (p[1]);
5155
5156 tb[0] = c;
5157 tb[1] = 0;
5158 fputs_unfiltered (tb, gdb_stdtarg);
5159 }
5160 gdb_flush (gdb_stdtarg);
5161}
5162
5163typedef struct cached_reg
5164{
5165 int num;
5166 gdb_byte data[MAX_REGISTER_SIZE];
5167} cached_reg_t;
5168
5169DEF_VEC_O(cached_reg_t);
5170
5171typedef struct stop_reply
5172{
5173 struct notif_event base;
5174
5175 /* The identifier of the thread about this event */
5176 ptid_t ptid;
5177
5178 struct target_waitstatus ws;
5179
5180 /* Expedited registers. This makes remote debugging a bit more
5181 efficient for those targets that provide critical registers as
5182 part of their normal status mechanism (as another roundtrip to
5183 fetch them is avoided). */
5184 VEC(cached_reg_t) *regcache;
5185
5186 int stopped_by_watchpoint_p;
5187 CORE_ADDR watch_data_address;
5188
5189 int solibs_changed;
5190 int replay_event;
5191
5192 int core;
5193} *stop_reply_p;
5194
5195DECLARE_QUEUE_P (stop_reply_p);
5196DEFINE_QUEUE_P (stop_reply_p);
5197/* The list of already fetched and acknowledged stop events. This
5198 queue is used for notification Stop, and other notifications
5199 don't need queue for their events, because the notification events
5200 of Stop can't be consumed immediately, so that events should be
5201 queued first, and be consumed by remote_wait_{ns,as} one per
5202 time. Other notifications can consume their events immediately,
5203 so queue is not needed for them. */
5204static QUEUE (stop_reply_p) *stop_reply_queue;
5205
5206static void
5207stop_reply_xfree (struct stop_reply *r)
5208{
5209 if (r != NULL)
5210 {
5211 VEC_free (cached_reg_t, r->regcache);
5212 xfree (r);
5213 }
5214}
5215
5216static void
5217remote_notif_stop_parse (struct notif_client *self, char *buf,
5218 struct notif_event *event)
5219{
5220 remote_parse_stop_reply (buf, (struct stop_reply *) event);
5221}
5222
5223static void
5224remote_notif_stop_ack (struct notif_client *self, char *buf,
5225 struct notif_event *event)
5226{
5227 struct stop_reply *stop_reply = (struct stop_reply *) event;
5228
5229 /* acknowledge */
5230 putpkt ((char *) self->ack_command);
5231
5232 if (stop_reply->ws.kind == TARGET_WAITKIND_IGNORE)
5233 /* We got an unknown stop reply. */
5234 error (_("Unknown stop reply"));
5235
5236 push_stop_reply (stop_reply);
5237}
5238
5239static int
5240remote_notif_stop_can_get_pending_events (struct notif_client *self)
5241{
5242 /* We can't get pending events in remote_notif_process for
5243 notification stop, and we have to do this in remote_wait_ns
5244 instead. If we fetch all queued events from stub, remote stub
5245 may exit and we have no chance to process them back in
5246 remote_wait_ns. */
5247 mark_async_event_handler (remote_async_inferior_event_token);
5248 return 0;
5249}
5250
5251static void
5252stop_reply_dtr (struct notif_event *event)
5253{
5254 struct stop_reply *r = (struct stop_reply *) event;
5255
5256 VEC_free (cached_reg_t, r->regcache);
5257}
5258
5259static struct notif_event *
5260remote_notif_stop_alloc_reply (void)
5261{
5262 struct notif_event *r
5263 = (struct notif_event *) XMALLOC (struct stop_reply);
5264
5265 r->dtr = stop_reply_dtr;
5266
5267 return r;
5268}
5269
5270/* A client of notification Stop. */
5271
5272struct notif_client notif_client_stop =
5273{
5274 "Stop",
5275 "vStopped",
5276 remote_notif_stop_parse,
5277 remote_notif_stop_ack,
5278 remote_notif_stop_can_get_pending_events,
5279 remote_notif_stop_alloc_reply,
5280 NULL,
5281};
5282
5283/* A parameter to pass data in and out. */
5284
5285struct queue_iter_param
5286{
5287 void *input;
5288 struct stop_reply *output;
5289};
5290
5291/* Remove all queue elements meet the condition it checks. */
5292
5293static int
5294remote_notif_remove_all (QUEUE (stop_reply_p) *q,
5295 QUEUE_ITER (stop_reply_p) *iter,
5296 stop_reply_p event,
5297 void *data)
5298{
5299 struct queue_iter_param *param = data;
5300 struct inferior *inf = param->input;
5301
5302 if (inf == NULL || ptid_get_pid (event->ptid) == inf->pid)
5303 {
5304 stop_reply_xfree (event);
5305 QUEUE_remove_elem (stop_reply_p, q, iter);
5306 }
5307
5308 return 1;
5309}
5310
5311/* Discard all pending stop replies of inferior INF. If INF is NULL,
5312 discard everything. */
5313
5314static void
5315discard_pending_stop_replies (struct inferior *inf)
5316{
5317 int i;
5318 struct queue_iter_param param;
5319 struct stop_reply *reply
5320 = (struct stop_reply *) notif_client_stop.pending_event;
5321
5322 /* Discard the in-flight notification. */
5323 if (reply != NULL
5324 && (inf == NULL
5325 || ptid_get_pid (reply->ptid) == inf->pid))
5326 {
5327 stop_reply_xfree (reply);
5328 notif_client_stop.pending_event = NULL;
5329 }
5330
5331 param.input = inf;
5332 param.output = NULL;
5333 /* Discard the stop replies we have already pulled with
5334 vStopped. */
5335 QUEUE_iterate (stop_reply_p, stop_reply_queue,
5336 remote_notif_remove_all, &param);
5337}
5338
5339/* A parameter to pass data in and out. */
5340
5341static int
5342remote_notif_remove_once_on_match (QUEUE (stop_reply_p) *q,
5343 QUEUE_ITER (stop_reply_p) *iter,
5344 stop_reply_p event,
5345 void *data)
5346{
5347 struct queue_iter_param *param = data;
5348 ptid_t *ptid = param->input;
5349
5350 if (ptid_match (event->ptid, *ptid))
5351 {
5352 param->output = event;
5353 QUEUE_remove_elem (stop_reply_p, q, iter);
5354 return 0;
5355 }
5356
5357 return 1;
5358}
5359
5360/* Remove the first reply in 'stop_reply_queue' which matches
5361 PTID. */
5362
5363static struct stop_reply *
5364remote_notif_remove_queued_reply (ptid_t ptid)
5365{
5366 struct queue_iter_param param;
5367
5368 param.input = &ptid;
5369 param.output = NULL;
5370
5371 QUEUE_iterate (stop_reply_p, stop_reply_queue,
5372 remote_notif_remove_once_on_match, &param);
5373 if (notif_debug)
5374 fprintf_unfiltered (gdb_stdlog,
5375 "notif: discard queued event: 'Stop' in %s\n",
5376 target_pid_to_str (ptid));
5377
5378 return param.output;
5379}
5380
5381/* Look for a queued stop reply belonging to PTID. If one is found,
5382 remove it from the queue, and return it. Returns NULL if none is
5383 found. If there are still queued events left to process, tell the
5384 event loop to get back to target_wait soon. */
5385
5386static struct stop_reply *
5387queued_stop_reply (ptid_t ptid)
5388{
5389 struct stop_reply *r = remote_notif_remove_queued_reply (ptid);
5390
5391 if (!QUEUE_is_empty (stop_reply_p, stop_reply_queue))
5392 /* There's still at least an event left. */
5393 mark_async_event_handler (remote_async_inferior_event_token);
5394
5395 return r;
5396}
5397
5398/* Push a fully parsed stop reply in the stop reply queue. Since we
5399 know that we now have at least one queued event left to pass to the
5400 core side, tell the event loop to get back to target_wait soon. */
5401
5402static void
5403push_stop_reply (struct stop_reply *new_event)
5404{
5405 QUEUE_enque (stop_reply_p, stop_reply_queue, new_event);
5406
5407 if (notif_debug)
5408 fprintf_unfiltered (gdb_stdlog,
5409 "notif: push 'Stop' %s to queue %d\n",
5410 target_pid_to_str (new_event->ptid),
5411 QUEUE_length (stop_reply_p,
5412 stop_reply_queue));
5413
5414 mark_async_event_handler (remote_async_inferior_event_token);
5415}
5416
5417static int
5418stop_reply_match_ptid_and_ws (QUEUE (stop_reply_p) *q,
5419 QUEUE_ITER (stop_reply_p) *iter,
5420 struct stop_reply *event,
5421 void *data)
5422{
5423 ptid_t *ptid = data;
5424
5425 return !(ptid_equal (*ptid, event->ptid)
5426 && event->ws.kind == TARGET_WAITKIND_STOPPED);
5427}
5428
5429/* Returns true if we have a stop reply for PTID. */
5430
5431static int
5432peek_stop_reply (ptid_t ptid)
5433{
5434 return !QUEUE_iterate (stop_reply_p, stop_reply_queue,
5435 stop_reply_match_ptid_and_ws, &ptid);
5436}
5437
5438/* Parse the stop reply in BUF. Either the function succeeds, and the
5439 result is stored in EVENT, or throws an error. */
5440
5441static void
5442remote_parse_stop_reply (char *buf, struct stop_reply *event)
5443{
5444 struct remote_arch_state *rsa = get_remote_arch_state ();
5445 ULONGEST addr;
5446 char *p;
5447
5448 event->ptid = null_ptid;
5449 event->ws.kind = TARGET_WAITKIND_IGNORE;
5450 event->ws.value.integer = 0;
5451 event->solibs_changed = 0;
5452 event->replay_event = 0;
5453 event->stopped_by_watchpoint_p = 0;
5454 event->regcache = NULL;
5455 event->core = -1;
5456
5457 switch (buf[0])
5458 {
5459 case 'T': /* Status with PC, SP, FP, ... */
5460 /* Expedited reply, containing Signal, {regno, reg} repeat. */
5461 /* format is: 'Tssn...:r...;n...:r...;n...:r...;#cc', where
5462 ss = signal number
5463 n... = register number
5464 r... = register contents
5465 */
5466
5467 p = &buf[3]; /* after Txx */
5468 while (*p)
5469 {
5470 char *p1;
5471 char *p_temp;
5472 int fieldsize;
5473 LONGEST pnum = 0;
5474
5475 /* If the packet contains a register number, save it in
5476 pnum and set p1 to point to the character following it.
5477 Otherwise p1 points to p. */
5478
5479 /* If this packet is an awatch packet, don't parse the 'a'
5480 as a register number. */
5481
5482 if (strncmp (p, "awatch", strlen("awatch")) != 0
5483 && strncmp (p, "core", strlen ("core") != 0))
5484 {
5485 /* Read the ``P'' register number. */
5486 pnum = strtol (p, &p_temp, 16);
5487 p1 = p_temp;
5488 }
5489 else
5490 p1 = p;
5491
5492 if (p1 == p) /* No register number present here. */
5493 {
5494 p1 = strchr (p, ':');
5495 if (p1 == NULL)
5496 error (_("Malformed packet(a) (missing colon): %s\n\
5497Packet: '%s'\n"),
5498 p, buf);
5499 if (strncmp (p, "thread", p1 - p) == 0)
5500 event->ptid = read_ptid (++p1, &p);
5501 else if ((strncmp (p, "watch", p1 - p) == 0)
5502 || (strncmp (p, "rwatch", p1 - p) == 0)
5503 || (strncmp (p, "awatch", p1 - p) == 0))
5504 {
5505 event->stopped_by_watchpoint_p = 1;
5506 p = unpack_varlen_hex (++p1, &addr);
5507 event->watch_data_address = (CORE_ADDR) addr;
5508 }
5509 else if (strncmp (p, "library", p1 - p) == 0)
5510 {
5511 p1++;
5512 p_temp = p1;
5513 while (*p_temp && *p_temp != ';')
5514 p_temp++;
5515
5516 event->solibs_changed = 1;
5517 p = p_temp;
5518 }
5519 else if (strncmp (p, "replaylog", p1 - p) == 0)
5520 {
5521 /* NO_HISTORY event.
5522 p1 will indicate "begin" or "end", but
5523 it makes no difference for now, so ignore it. */
5524 event->replay_event = 1;
5525 p_temp = strchr (p1 + 1, ';');
5526 if (p_temp)
5527 p = p_temp;
5528 }
5529 else if (strncmp (p, "core", p1 - p) == 0)
5530 {
5531 ULONGEST c;
5532
5533 p = unpack_varlen_hex (++p1, &c);
5534 event->core = c;
5535 }
5536 else
5537 {
5538 /* Silently skip unknown optional info. */
5539 p_temp = strchr (p1 + 1, ';');
5540 if (p_temp)
5541 p = p_temp;
5542 }
5543 }
5544 else
5545 {
5546 struct packet_reg *reg = packet_reg_from_pnum (rsa, pnum);
5547 cached_reg_t cached_reg;
5548
5549 p = p1;
5550
5551 if (*p != ':')
5552 error (_("Malformed packet(b) (missing colon): %s\n\
5553Packet: '%s'\n"),
5554 p, buf);
5555 ++p;
5556
5557 if (reg == NULL)
5558 error (_("Remote sent bad register number %s: %s\n\
5559Packet: '%s'\n"),
5560 hex_string (pnum), p, buf);
5561
5562 cached_reg.num = reg->regnum;
5563
5564 fieldsize = hex2bin (p, cached_reg.data,
5565 register_size (target_gdbarch (),
5566 reg->regnum));
5567 p += 2 * fieldsize;
5568 if (fieldsize < register_size (target_gdbarch (),
5569 reg->regnum))
5570 warning (_("Remote reply is too short: %s"), buf);
5571
5572 VEC_safe_push (cached_reg_t, event->regcache, &cached_reg);
5573 }
5574
5575 if (*p != ';')
5576 error (_("Remote register badly formatted: %s\nhere: %s"),
5577 buf, p);
5578 ++p;
5579 }
5580 /* fall through */
5581 case 'S': /* Old style status, just signal only. */
5582 if (event->solibs_changed)
5583 event->ws.kind = TARGET_WAITKIND_LOADED;
5584 else if (event->replay_event)
5585 event->ws.kind = TARGET_WAITKIND_NO_HISTORY;
5586 else
5587 {
5588 event->ws.kind = TARGET_WAITKIND_STOPPED;
5589 event->ws.value.sig = (enum gdb_signal)
5590 (((fromhex (buf[1])) << 4) + (fromhex (buf[2])));
5591 }
5592 break;
5593 case 'W': /* Target exited. */
5594 case 'X':
5595 {
5596 char *p;
5597 int pid;
5598 ULONGEST value;
5599
5600 /* GDB used to accept only 2 hex chars here. Stubs should
5601 only send more if they detect GDB supports multi-process
5602 support. */
5603 p = unpack_varlen_hex (&buf[1], &value);
5604
5605 if (buf[0] == 'W')
5606 {
5607 /* The remote process exited. */
5608 event->ws.kind = TARGET_WAITKIND_EXITED;
5609 event->ws.value.integer = value;
5610 }
5611 else
5612 {
5613 /* The remote process exited with a signal. */
5614 event->ws.kind = TARGET_WAITKIND_SIGNALLED;
5615 event->ws.value.sig = (enum gdb_signal) value;
5616 }
5617
5618 /* If no process is specified, assume inferior_ptid. */
5619 pid = ptid_get_pid (inferior_ptid);
5620 if (*p == '\0')
5621 ;
5622 else if (*p == ';')
5623 {
5624 p++;
5625
5626 if (p == '\0')
5627 ;
5628 else if (strncmp (p,
5629 "process:", sizeof ("process:") - 1) == 0)
5630 {
5631 ULONGEST upid;
5632
5633 p += sizeof ("process:") - 1;
5634 unpack_varlen_hex (p, &upid);
5635 pid = upid;
5636 }
5637 else
5638 error (_("unknown stop reply packet: %s"), buf);
5639 }
5640 else
5641 error (_("unknown stop reply packet: %s"), buf);
5642 event->ptid = pid_to_ptid (pid);
5643 }
5644 break;
5645 }
5646
5647 if (non_stop && ptid_equal (event->ptid, null_ptid))
5648 error (_("No process or thread specified in stop reply: %s"), buf);
5649}
5650
5651/* When the stub wants to tell GDB about a new notification reply, it
5652 sends a notification (%Stop, for example). Those can come it at
5653 any time, hence, we have to make sure that any pending
5654 putpkt/getpkt sequence we're making is finished, before querying
5655 the stub for more events with the corresponding ack command
5656 (vStopped, for example). E.g., if we started a vStopped sequence
5657 immediately upon receiving the notification, something like this
5658 could happen:
5659
5660 1.1) --> Hg 1
5661 1.2) <-- OK
5662 1.3) --> g
5663 1.4) <-- %Stop
5664 1.5) --> vStopped
5665 1.6) <-- (registers reply to step #1.3)
5666
5667 Obviously, the reply in step #1.6 would be unexpected to a vStopped
5668 query.
5669
5670 To solve this, whenever we parse a %Stop notification successfully,
5671 we mark the REMOTE_ASYNC_GET_PENDING_EVENTS_TOKEN, and carry on
5672 doing whatever we were doing:
5673
5674 2.1) --> Hg 1
5675 2.2) <-- OK
5676 2.3) --> g
5677 2.4) <-- %Stop
5678 <GDB marks the REMOTE_ASYNC_GET_PENDING_EVENTS_TOKEN>
5679 2.5) <-- (registers reply to step #2.3)
5680
5681 Eventualy after step #2.5, we return to the event loop, which
5682 notices there's an event on the
5683 REMOTE_ASYNC_GET_PENDING_EVENTS_TOKEN event and calls the
5684 associated callback --- the function below. At this point, we're
5685 always safe to start a vStopped sequence. :
5686
5687 2.6) --> vStopped
5688 2.7) <-- T05 thread:2
5689 2.8) --> vStopped
5690 2.9) --> OK
5691*/
5692
5693void
5694remote_notif_get_pending_events (struct notif_client *nc)
5695{
5696 struct remote_state *rs = get_remote_state ();
5697
5698 if (nc->pending_event)
5699 {
5700 if (notif_debug)
5701 fprintf_unfiltered (gdb_stdlog,
5702 "notif: process: '%s' ack pending event\n",
5703 nc->name);
5704
5705 /* acknowledge */
5706 nc->ack (nc, rs->buf, nc->pending_event);
5707 nc->pending_event = NULL;
5708
5709 while (1)
5710 {
5711 getpkt (&rs->buf, &rs->buf_size, 0);
5712 if (strcmp (rs->buf, "OK") == 0)
5713 break;
5714 else
5715 remote_notif_ack (nc, rs->buf);
5716 }
5717 }
5718 else
5719 {
5720 if (notif_debug)
5721 fprintf_unfiltered (gdb_stdlog,
5722 "notif: process: '%s' no pending reply\n",
5723 nc->name);
5724 }
5725}
5726
5727/* Called when it is decided that STOP_REPLY holds the info of the
5728 event that is to be returned to the core. This function always
5729 destroys STOP_REPLY. */
5730
5731static ptid_t
5732process_stop_reply (struct stop_reply *stop_reply,
5733 struct target_waitstatus *status)
5734{
5735 ptid_t ptid;
5736
5737 *status = stop_reply->ws;
5738 ptid = stop_reply->ptid;
5739
5740 /* If no thread/process was reported by the stub, assume the current
5741 inferior. */
5742 if (ptid_equal (ptid, null_ptid))
5743 ptid = inferior_ptid;
5744
5745 if (status->kind != TARGET_WAITKIND_EXITED
5746 && status->kind != TARGET_WAITKIND_SIGNALLED)
5747 {
5748 /* Expedited registers. */
5749 if (stop_reply->regcache)
5750 {
5751 struct regcache *regcache
5752 = get_thread_arch_regcache (ptid, target_gdbarch ());
5753 cached_reg_t *reg;
5754 int ix;
5755
5756 for (ix = 0;
5757 VEC_iterate(cached_reg_t, stop_reply->regcache, ix, reg);
5758 ix++)
5759 regcache_raw_supply (regcache, reg->num, reg->data);
5760 VEC_free (cached_reg_t, stop_reply->regcache);
5761 }
5762
5763 remote_stopped_by_watchpoint_p = stop_reply->stopped_by_watchpoint_p;
5764 remote_watch_data_address = stop_reply->watch_data_address;
5765
5766 remote_notice_new_inferior (ptid, 0);
5767 demand_private_info (ptid)->core = stop_reply->core;
5768 }
5769
5770 stop_reply_xfree (stop_reply);
5771 return ptid;
5772}
5773
5774/* The non-stop mode version of target_wait. */
5775
5776static ptid_t
5777remote_wait_ns (ptid_t ptid, struct target_waitstatus *status, int options)
5778{
5779 struct remote_state *rs = get_remote_state ();
5780 struct stop_reply *stop_reply;
5781 int ret;
5782 int is_notif = 0;
5783
5784 /* If in non-stop mode, get out of getpkt even if a
5785 notification is received. */
5786
5787 ret = getpkt_or_notif_sane (&rs->buf, &rs->buf_size,
5788 0 /* forever */, &is_notif);
5789 while (1)
5790 {
5791 if (ret != -1 && !is_notif)
5792 switch (rs->buf[0])
5793 {
5794 case 'E': /* Error of some sort. */
5795 /* We're out of sync with the target now. Did it continue
5796 or not? We can't tell which thread it was in non-stop,
5797 so just ignore this. */
5798 warning (_("Remote failure reply: %s"), rs->buf);
5799 break;
5800 case 'O': /* Console output. */
5801 remote_console_output (rs->buf + 1);
5802 break;
5803 default:
5804 warning (_("Invalid remote reply: %s"), rs->buf);
5805 break;
5806 }
5807
5808 /* Acknowledge a pending stop reply that may have arrived in the
5809 mean time. */
5810 if (notif_client_stop.pending_event != NULL)
5811 remote_notif_get_pending_events (&notif_client_stop);
5812
5813 /* If indeed we noticed a stop reply, we're done. */
5814 stop_reply = queued_stop_reply (ptid);
5815 if (stop_reply != NULL)
5816 return process_stop_reply (stop_reply, status);
5817
5818 /* Still no event. If we're just polling for an event, then
5819 return to the event loop. */
5820 if (options & TARGET_WNOHANG)
5821 {
5822 status->kind = TARGET_WAITKIND_IGNORE;
5823 return minus_one_ptid;
5824 }
5825
5826 /* Otherwise do a blocking wait. */
5827 ret = getpkt_or_notif_sane (&rs->buf, &rs->buf_size,
5828 1 /* forever */, &is_notif);
5829 }
5830}
5831
5832/* Wait until the remote machine stops, then return, storing status in
5833 STATUS just as `wait' would. */
5834
5835static ptid_t
5836remote_wait_as (ptid_t ptid, struct target_waitstatus *status, int options)
5837{
5838 struct remote_state *rs = get_remote_state ();
5839 ptid_t event_ptid = null_ptid;
5840 char *buf;
5841 struct stop_reply *stop_reply;
5842
5843 again:
5844
5845 status->kind = TARGET_WAITKIND_IGNORE;
5846 status->value.integer = 0;
5847
5848 stop_reply = queued_stop_reply (ptid);
5849 if (stop_reply != NULL)
5850 return process_stop_reply (stop_reply, status);
5851
5852 if (rs->cached_wait_status)
5853 /* Use the cached wait status, but only once. */
5854 rs->cached_wait_status = 0;
5855 else
5856 {
5857 int ret;
5858 int is_notif;
5859
5860 if (!target_is_async_p ())
5861 {
5862 ofunc = signal (SIGINT, remote_interrupt);
5863 /* If the user hit C-c before this packet, or between packets,
5864 pretend that it was hit right here. */
5865 if (check_quit_flag ())
5866 {
5867 clear_quit_flag ();
5868 remote_interrupt (SIGINT);
5869 }
5870 }
5871
5872 /* FIXME: cagney/1999-09-27: If we're in async mode we should
5873 _never_ wait for ever -> test on target_is_async_p().
5874 However, before we do that we need to ensure that the caller
5875 knows how to take the target into/out of async mode. */
5876 ret = getpkt_or_notif_sane (&rs->buf, &rs->buf_size,
5877 wait_forever_enabled_p, &is_notif);
5878
5879 /* GDB gets a notification. Return to core as this event is
5880 not interesting. */
5881 if (ret != -1 && is_notif)
5882 return minus_one_ptid;
5883
5884 if (!target_is_async_p ())
5885 signal (SIGINT, ofunc);
5886 }
5887
5888 buf = rs->buf;
5889
5890 remote_stopped_by_watchpoint_p = 0;
5891
5892 /* We got something. */
5893 rs->waiting_for_stop_reply = 0;
5894
5895 /* Assume that the target has acknowledged Ctrl-C unless we receive
5896 an 'F' or 'O' packet. */
5897 if (buf[0] != 'F' && buf[0] != 'O')
5898 rs->ctrlc_pending_p = 0;
5899
5900 switch (buf[0])
5901 {
5902 case 'E': /* Error of some sort. */
5903 /* We're out of sync with the target now. Did it continue or
5904 not? Not is more likely, so report a stop. */
5905 warning (_("Remote failure reply: %s"), buf);
5906 status->kind = TARGET_WAITKIND_STOPPED;
5907 status->value.sig = GDB_SIGNAL_0;
5908 break;
5909 case 'F': /* File-I/O request. */
5910 remote_fileio_request (buf, rs->ctrlc_pending_p);
5911 rs->ctrlc_pending_p = 0;
5912 break;
5913 case 'T': case 'S': case 'X': case 'W':
5914 {
5915 struct stop_reply *stop_reply
5916 = (struct stop_reply *) remote_notif_parse (&notif_client_stop,
5917 rs->buf);
5918
5919 event_ptid = process_stop_reply (stop_reply, status);
5920 break;
5921 }
5922 case 'O': /* Console output. */
5923 remote_console_output (buf + 1);
5924
5925 /* The target didn't really stop; keep waiting. */
5926 rs->waiting_for_stop_reply = 1;
5927
5928 break;
5929 case '\0':
5930 if (last_sent_signal != GDB_SIGNAL_0)
5931 {
5932 /* Zero length reply means that we tried 'S' or 'C' and the
5933 remote system doesn't support it. */
5934 target_terminal_ours_for_output ();
5935 printf_filtered
5936 ("Can't send signals to this remote system. %s not sent.\n",
5937 gdb_signal_to_name (last_sent_signal));
5938 last_sent_signal = GDB_SIGNAL_0;
5939 target_terminal_inferior ();
5940
5941 strcpy ((char *) buf, last_sent_step ? "s" : "c");
5942 putpkt ((char *) buf);
5943
5944 /* We just told the target to resume, so a stop reply is in
5945 order. */
5946 rs->waiting_for_stop_reply = 1;
5947 break;
5948 }
5949 /* else fallthrough */
5950 default:
5951 warning (_("Invalid remote reply: %s"), buf);
5952 /* Keep waiting. */
5953 rs->waiting_for_stop_reply = 1;
5954 break;
5955 }
5956
5957 if (status->kind == TARGET_WAITKIND_IGNORE)
5958 {
5959 /* Nothing interesting happened. If we're doing a non-blocking
5960 poll, we're done. Otherwise, go back to waiting. */
5961 if (options & TARGET_WNOHANG)
5962 return minus_one_ptid;
5963 else
5964 goto again;
5965 }
5966 else if (status->kind != TARGET_WAITKIND_EXITED
5967 && status->kind != TARGET_WAITKIND_SIGNALLED)
5968 {
5969 if (!ptid_equal (event_ptid, null_ptid))
5970 record_currthread (event_ptid);
5971 else
5972 event_ptid = inferior_ptid;
5973 }
5974 else
5975 /* A process exit. Invalidate our notion of current thread. */
5976 record_currthread (minus_one_ptid);
5977
5978 return event_ptid;
5979}
5980
5981/* Wait until the remote machine stops, then return, storing status in
5982 STATUS just as `wait' would. */
5983
5984static ptid_t
5985remote_wait (struct target_ops *ops,
5986 ptid_t ptid, struct target_waitstatus *status, int options)
5987{
5988 ptid_t event_ptid;
5989
5990 if (non_stop)
5991 event_ptid = remote_wait_ns (ptid, status, options);
5992 else
5993 event_ptid = remote_wait_as (ptid, status, options);
5994
5995 if (target_can_async_p ())
5996 {
5997 /* If there are are events left in the queue tell the event loop
5998 to return here. */
5999 if (!QUEUE_is_empty (stop_reply_p, stop_reply_queue))
6000 mark_async_event_handler (remote_async_inferior_event_token);
6001 }
6002
6003 return event_ptid;
6004}
6005
6006/* Fetch a single register using a 'p' packet. */
6007
6008static int
6009fetch_register_using_p (struct regcache *regcache, struct packet_reg *reg)
6010{
6011 struct remote_state *rs = get_remote_state ();
6012 char *buf, *p;
6013 char regp[MAX_REGISTER_SIZE];
6014 int i;
6015
6016 if (remote_protocol_packets[PACKET_p].support == PACKET_DISABLE)
6017 return 0;
6018
6019 if (reg->pnum == -1)
6020 return 0;
6021
6022 p = rs->buf;
6023 *p++ = 'p';
6024 p += hexnumstr (p, reg->pnum);
6025 *p++ = '\0';
6026 putpkt (rs->buf);
6027 getpkt (&rs->buf, &rs->buf_size, 0);
6028
6029 buf = rs->buf;
6030
6031 switch (packet_ok (buf, &remote_protocol_packets[PACKET_p]))
6032 {
6033 case PACKET_OK:
6034 break;
6035 case PACKET_UNKNOWN:
6036 return 0;
6037 case PACKET_ERROR:
6038 error (_("Could not fetch register \"%s\"; remote failure reply '%s'"),
6039 gdbarch_register_name (get_regcache_arch (regcache),
6040 reg->regnum),
6041 buf);
6042 }
6043
6044 /* If this register is unfetchable, tell the regcache. */
6045 if (buf[0] == 'x')
6046 {
6047 regcache_raw_supply (regcache, reg->regnum, NULL);
6048 return 1;
6049 }
6050
6051 /* Otherwise, parse and supply the value. */
6052 p = buf;
6053 i = 0;
6054 while (p[0] != 0)
6055 {
6056 if (p[1] == 0)
6057 error (_("fetch_register_using_p: early buf termination"));
6058
6059 regp[i++] = fromhex (p[0]) * 16 + fromhex (p[1]);
6060 p += 2;
6061 }
6062 regcache_raw_supply (regcache, reg->regnum, regp);
6063 return 1;
6064}
6065
6066/* Fetch the registers included in the target's 'g' packet. */
6067
6068static int
6069send_g_packet (void)
6070{
6071 struct remote_state *rs = get_remote_state ();
6072 int buf_len;
6073
6074 xsnprintf (rs->buf, get_remote_packet_size (), "g");
6075 remote_send (&rs->buf, &rs->buf_size);
6076
6077 /* We can get out of synch in various cases. If the first character
6078 in the buffer is not a hex character, assume that has happened
6079 and try to fetch another packet to read. */
6080 while ((rs->buf[0] < '0' || rs->buf[0] > '9')
6081 && (rs->buf[0] < 'A' || rs->buf[0] > 'F')
6082 && (rs->buf[0] < 'a' || rs->buf[0] > 'f')
6083 && rs->buf[0] != 'x') /* New: unavailable register value. */
6084 {
6085 if (remote_debug)
6086 fprintf_unfiltered (gdb_stdlog,
6087 "Bad register packet; fetching a new packet\n");
6088 getpkt (&rs->buf, &rs->buf_size, 0);
6089 }
6090
6091 buf_len = strlen (rs->buf);
6092
6093 /* Sanity check the received packet. */
6094 if (buf_len % 2 != 0)
6095 error (_("Remote 'g' packet reply is of odd length: %s"), rs->buf);
6096
6097 return buf_len / 2;
6098}
6099
6100static void
6101process_g_packet (struct regcache *regcache)
6102{
6103 struct gdbarch *gdbarch = get_regcache_arch (regcache);
6104 struct remote_state *rs = get_remote_state ();
6105 struct remote_arch_state *rsa = get_remote_arch_state ();
6106 int i, buf_len;
6107 char *p;
6108 char *regs;
6109
6110 buf_len = strlen (rs->buf);
6111
6112 /* Further sanity checks, with knowledge of the architecture. */
6113 if (buf_len > 2 * rsa->sizeof_g_packet)
6114 error (_("Remote 'g' packet reply is too long: %s"), rs->buf);
6115
6116 /* Save the size of the packet sent to us by the target. It is used
6117 as a heuristic when determining the max size of packets that the
6118 target can safely receive. */
6119 if (rsa->actual_register_packet_size == 0)
6120 rsa->actual_register_packet_size = buf_len;
6121
6122 /* If this is smaller than we guessed the 'g' packet would be,
6123 update our records. A 'g' reply that doesn't include a register's
6124 value implies either that the register is not available, or that
6125 the 'p' packet must be used. */
6126 if (buf_len < 2 * rsa->sizeof_g_packet)
6127 {
6128 rsa->sizeof_g_packet = buf_len / 2;
6129
6130 for (i = 0; i < gdbarch_num_regs (gdbarch); i++)
6131 {
6132 if (rsa->regs[i].pnum == -1)
6133 continue;
6134
6135 if (rsa->regs[i].offset >= rsa->sizeof_g_packet)
6136 rsa->regs[i].in_g_packet = 0;
6137 else
6138 rsa->regs[i].in_g_packet = 1;
6139 }
6140 }
6141
6142 regs = alloca (rsa->sizeof_g_packet);
6143
6144 /* Unimplemented registers read as all bits zero. */
6145 memset (regs, 0, rsa->sizeof_g_packet);
6146
6147 /* Reply describes registers byte by byte, each byte encoded as two
6148 hex characters. Suck them all up, then supply them to the
6149 register cacheing/storage mechanism. */
6150
6151 p = rs->buf;
6152 for (i = 0; i < rsa->sizeof_g_packet; i++)
6153 {
6154 if (p[0] == 0 || p[1] == 0)
6155 /* This shouldn't happen - we adjusted sizeof_g_packet above. */
6156 internal_error (__FILE__, __LINE__,
6157 _("unexpected end of 'g' packet reply"));
6158
6159 if (p[0] == 'x' && p[1] == 'x')
6160 regs[i] = 0; /* 'x' */
6161 else
6162 regs[i] = fromhex (p[0]) * 16 + fromhex (p[1]);
6163 p += 2;
6164 }
6165
6166 for (i = 0; i < gdbarch_num_regs (gdbarch); i++)
6167 {
6168 struct packet_reg *r = &rsa->regs[i];
6169
6170 if (r->in_g_packet)
6171 {
6172 if (r->offset * 2 >= strlen (rs->buf))
6173 /* This shouldn't happen - we adjusted in_g_packet above. */
6174 internal_error (__FILE__, __LINE__,
6175 _("unexpected end of 'g' packet reply"));
6176 else if (rs->buf[r->offset * 2] == 'x')
6177 {
6178 gdb_assert (r->offset * 2 < strlen (rs->buf));
6179 /* The register isn't available, mark it as such (at
6180 the same time setting the value to zero). */
6181 regcache_raw_supply (regcache, r->regnum, NULL);
6182 }
6183 else
6184 regcache_raw_supply (regcache, r->regnum,
6185 regs + r->offset);
6186 }
6187 }
6188}
6189
6190static void
6191fetch_registers_using_g (struct regcache *regcache)
6192{
6193 send_g_packet ();
6194 process_g_packet (regcache);
6195}
6196
6197/* Make the remote selected traceframe match GDB's selected
6198 traceframe. */
6199
6200static void
6201set_remote_traceframe (void)
6202{
6203 int newnum;
6204
6205 if (remote_traceframe_number == get_traceframe_number ())
6206 return;
6207
6208 /* Avoid recursion, remote_trace_find calls us again. */
6209 remote_traceframe_number = get_traceframe_number ();
6210
6211 newnum = target_trace_find (tfind_number,
6212 get_traceframe_number (), 0, 0, NULL);
6213
6214 /* Should not happen. If it does, all bets are off. */
6215 if (newnum != get_traceframe_number ())
6216 warning (_("could not set remote traceframe"));
6217}
6218
6219static void
6220remote_fetch_registers (struct target_ops *ops,
6221 struct regcache *regcache, int regnum)
6222{
6223 struct remote_arch_state *rsa = get_remote_arch_state ();
6224 int i;
6225
6226 set_remote_traceframe ();
6227 set_general_thread (inferior_ptid);
6228
6229 if (regnum >= 0)
6230 {
6231 struct packet_reg *reg = packet_reg_from_regnum (rsa, regnum);
6232
6233 gdb_assert (reg != NULL);
6234
6235 /* If this register might be in the 'g' packet, try that first -
6236 we are likely to read more than one register. If this is the
6237 first 'g' packet, we might be overly optimistic about its
6238 contents, so fall back to 'p'. */
6239 if (reg->in_g_packet)
6240 {
6241 fetch_registers_using_g (regcache);
6242 if (reg->in_g_packet)
6243 return;
6244 }
6245
6246 if (fetch_register_using_p (regcache, reg))
6247 return;
6248
6249 /* This register is not available. */
6250 regcache_raw_supply (regcache, reg->regnum, NULL);
6251
6252 return;
6253 }
6254
6255 fetch_registers_using_g (regcache);
6256
6257 for (i = 0; i < gdbarch_num_regs (get_regcache_arch (regcache)); i++)
6258 if (!rsa->regs[i].in_g_packet)
6259 if (!fetch_register_using_p (regcache, &rsa->regs[i]))
6260 {
6261 /* This register is not available. */
6262 regcache_raw_supply (regcache, i, NULL);
6263 }
6264}
6265
6266/* Prepare to store registers. Since we may send them all (using a
6267 'G' request), we have to read out the ones we don't want to change
6268 first. */
6269
6270static void
6271remote_prepare_to_store (struct regcache *regcache)
6272{
6273 struct remote_arch_state *rsa = get_remote_arch_state ();
6274 int i;
6275 gdb_byte buf[MAX_REGISTER_SIZE];
6276
6277 /* Make sure the entire registers array is valid. */
6278 switch (remote_protocol_packets[PACKET_P].support)
6279 {
6280 case PACKET_DISABLE:
6281 case PACKET_SUPPORT_UNKNOWN:
6282 /* Make sure all the necessary registers are cached. */
6283 for (i = 0; i < gdbarch_num_regs (get_regcache_arch (regcache)); i++)
6284 if (rsa->regs[i].in_g_packet)
6285 regcache_raw_read (regcache, rsa->regs[i].regnum, buf);
6286 break;
6287 case PACKET_ENABLE:
6288 break;
6289 }
6290}
6291
6292/* Helper: Attempt to store REGNUM using the P packet. Return fail IFF
6293 packet was not recognized. */
6294
6295static int
6296store_register_using_P (const struct regcache *regcache,
6297 struct packet_reg *reg)
6298{
6299 struct gdbarch *gdbarch = get_regcache_arch (regcache);
6300 struct remote_state *rs = get_remote_state ();
6301 /* Try storing a single register. */
6302 char *buf = rs->buf;
6303 gdb_byte regp[MAX_REGISTER_SIZE];
6304 char *p;
6305
6306 if (remote_protocol_packets[PACKET_P].support == PACKET_DISABLE)
6307 return 0;
6308
6309 if (reg->pnum == -1)
6310 return 0;
6311
6312 xsnprintf (buf, get_remote_packet_size (), "P%s=", phex_nz (reg->pnum, 0));
6313 p = buf + strlen (buf);
6314 regcache_raw_collect (regcache, reg->regnum, regp);
6315 bin2hex (regp, p, register_size (gdbarch, reg->regnum));
6316 putpkt (rs->buf);
6317 getpkt (&rs->buf, &rs->buf_size, 0);
6318
6319 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_P]))
6320 {
6321 case PACKET_OK:
6322 return 1;
6323 case PACKET_ERROR:
6324 error (_("Could not write register \"%s\"; remote failure reply '%s'"),
6325 gdbarch_register_name (gdbarch, reg->regnum), rs->buf);
6326 case PACKET_UNKNOWN:
6327 return 0;
6328 default:
6329 internal_error (__FILE__, __LINE__, _("Bad result from packet_ok"));
6330 }
6331}
6332
6333/* Store register REGNUM, or all registers if REGNUM == -1, from the
6334 contents of the register cache buffer. FIXME: ignores errors. */
6335
6336static void
6337store_registers_using_G (const struct regcache *regcache)
6338{
6339 struct remote_state *rs = get_remote_state ();
6340 struct remote_arch_state *rsa = get_remote_arch_state ();
6341 gdb_byte *regs;
6342 char *p;
6343
6344 /* Extract all the registers in the regcache copying them into a
6345 local buffer. */
6346 {
6347 int i;
6348
6349 regs = alloca (rsa->sizeof_g_packet);
6350 memset (regs, 0, rsa->sizeof_g_packet);
6351 for (i = 0; i < gdbarch_num_regs (get_regcache_arch (regcache)); i++)
6352 {
6353 struct packet_reg *r = &rsa->regs[i];
6354
6355 if (r->in_g_packet)
6356 regcache_raw_collect (regcache, r->regnum, regs + r->offset);
6357 }
6358 }
6359
6360 /* Command describes registers byte by byte,
6361 each byte encoded as two hex characters. */
6362 p = rs->buf;
6363 *p++ = 'G';
6364 /* remote_prepare_to_store insures that rsa->sizeof_g_packet gets
6365 updated. */
6366 bin2hex (regs, p, rsa->sizeof_g_packet);
6367 putpkt (rs->buf);
6368 getpkt (&rs->buf, &rs->buf_size, 0);
6369 if (packet_check_result (rs->buf) == PACKET_ERROR)
6370 error (_("Could not write registers; remote failure reply '%s'"),
6371 rs->buf);
6372}
6373
6374/* Store register REGNUM, or all registers if REGNUM == -1, from the contents
6375 of the register cache buffer. FIXME: ignores errors. */
6376
6377static void
6378remote_store_registers (struct target_ops *ops,
6379 struct regcache *regcache, int regnum)
6380{
6381 struct remote_arch_state *rsa = get_remote_arch_state ();
6382 int i;
6383
6384 set_remote_traceframe ();
6385 set_general_thread (inferior_ptid);
6386
6387 if (regnum >= 0)
6388 {
6389 struct packet_reg *reg = packet_reg_from_regnum (rsa, regnum);
6390
6391 gdb_assert (reg != NULL);
6392
6393 /* Always prefer to store registers using the 'P' packet if
6394 possible; we often change only a small number of registers.
6395 Sometimes we change a larger number; we'd need help from a
6396 higher layer to know to use 'G'. */
6397 if (store_register_using_P (regcache, reg))
6398 return;
6399
6400 /* For now, don't complain if we have no way to write the
6401 register. GDB loses track of unavailable registers too
6402 easily. Some day, this may be an error. We don't have
6403 any way to read the register, either... */
6404 if (!reg->in_g_packet)
6405 return;
6406
6407 store_registers_using_G (regcache);
6408 return;
6409 }
6410
6411 store_registers_using_G (regcache);
6412
6413 for (i = 0; i < gdbarch_num_regs (get_regcache_arch (regcache)); i++)
6414 if (!rsa->regs[i].in_g_packet)
6415 if (!store_register_using_P (regcache, &rsa->regs[i]))
6416 /* See above for why we do not issue an error here. */
6417 continue;
6418}
6419\f
6420
6421/* Return the number of hex digits in num. */
6422
6423static int
6424hexnumlen (ULONGEST num)
6425{
6426 int i;
6427
6428 for (i = 0; num != 0; i++)
6429 num >>= 4;
6430
6431 return max (i, 1);
6432}
6433
6434/* Set BUF to the minimum number of hex digits representing NUM. */
6435
6436static int
6437hexnumstr (char *buf, ULONGEST num)
6438{
6439 int len = hexnumlen (num);
6440
6441 return hexnumnstr (buf, num, len);
6442}
6443
6444
6445/* Set BUF to the hex digits representing NUM, padded to WIDTH characters. */
6446
6447static int
6448hexnumnstr (char *buf, ULONGEST num, int width)
6449{
6450 int i;
6451
6452 buf[width] = '\0';
6453
6454 for (i = width - 1; i >= 0; i--)
6455 {
6456 buf[i] = "0123456789abcdef"[(num & 0xf)];
6457 num >>= 4;
6458 }
6459
6460 return width;
6461}
6462
6463/* Mask all but the least significant REMOTE_ADDRESS_SIZE bits. */
6464
6465static CORE_ADDR
6466remote_address_masked (CORE_ADDR addr)
6467{
6468 unsigned int address_size = remote_address_size;
6469
6470 /* If "remoteaddresssize" was not set, default to target address size. */
6471 if (!address_size)
6472 address_size = gdbarch_addr_bit (target_gdbarch ());
6473
6474 if (address_size > 0
6475 && address_size < (sizeof (ULONGEST) * 8))
6476 {
6477 /* Only create a mask when that mask can safely be constructed
6478 in a ULONGEST variable. */
6479 ULONGEST mask = 1;
6480
6481 mask = (mask << address_size) - 1;
6482 addr &= mask;
6483 }
6484 return addr;
6485}
6486
6487/* Convert BUFFER, binary data at least LEN bytes long, into escaped
6488 binary data in OUT_BUF. Set *OUT_LEN to the length of the data
6489 encoded in OUT_BUF, and return the number of bytes in OUT_BUF
6490 (which may be more than *OUT_LEN due to escape characters). The
6491 total number of bytes in the output buffer will be at most
6492 OUT_MAXLEN. */
6493
6494static int
6495remote_escape_output (const gdb_byte *buffer, int len,
6496 gdb_byte *out_buf, int *out_len,
6497 int out_maxlen)
6498{
6499 int input_index, output_index;
6500
6501 output_index = 0;
6502 for (input_index = 0; input_index < len; input_index++)
6503 {
6504 gdb_byte b = buffer[input_index];
6505
6506 if (b == '$' || b == '#' || b == '}')
6507 {
6508 /* These must be escaped. */
6509 if (output_index + 2 > out_maxlen)
6510 break;
6511 out_buf[output_index++] = '}';
6512 out_buf[output_index++] = b ^ 0x20;
6513 }
6514 else
6515 {
6516 if (output_index + 1 > out_maxlen)
6517 break;
6518 out_buf[output_index++] = b;
6519 }
6520 }
6521
6522 *out_len = input_index;
6523 return output_index;
6524}
6525
6526/* Convert BUFFER, escaped data LEN bytes long, into binary data
6527 in OUT_BUF. Return the number of bytes written to OUT_BUF.
6528 Raise an error if the total number of bytes exceeds OUT_MAXLEN.
6529
6530 This function reverses remote_escape_output. It allows more
6531 escaped characters than that function does, in particular because
6532 '*' must be escaped to avoid the run-length encoding processing
6533 in reading packets. */
6534
6535static int
6536remote_unescape_input (const gdb_byte *buffer, int len,
6537 gdb_byte *out_buf, int out_maxlen)
6538{
6539 int input_index, output_index;
6540 int escaped;
6541
6542 output_index = 0;
6543 escaped = 0;
6544 for (input_index = 0; input_index < len; input_index++)
6545 {
6546 gdb_byte b = buffer[input_index];
6547
6548 if (output_index + 1 > out_maxlen)
6549 {
6550 warning (_("Received too much data from remote target;"
6551 " ignoring overflow."));
6552 return output_index;
6553 }
6554
6555 if (escaped)
6556 {
6557 out_buf[output_index++] = b ^ 0x20;
6558 escaped = 0;
6559 }
6560 else if (b == '}')
6561 escaped = 1;
6562 else
6563 out_buf[output_index++] = b;
6564 }
6565
6566 if (escaped)
6567 error (_("Unmatched escape character in target response."));
6568
6569 return output_index;
6570}
6571
6572/* Determine whether the remote target supports binary downloading.
6573 This is accomplished by sending a no-op memory write of zero length
6574 to the target at the specified address. It does not suffice to send
6575 the whole packet, since many stubs strip the eighth bit and
6576 subsequently compute a wrong checksum, which causes real havoc with
6577 remote_write_bytes.
6578
6579 NOTE: This can still lose if the serial line is not eight-bit
6580 clean. In cases like this, the user should clear "remote
6581 X-packet". */
6582
6583static void
6584check_binary_download (CORE_ADDR addr)
6585{
6586 struct remote_state *rs = get_remote_state ();
6587
6588 switch (remote_protocol_packets[PACKET_X].support)
6589 {
6590 case PACKET_DISABLE:
6591 break;
6592 case PACKET_ENABLE:
6593 break;
6594 case PACKET_SUPPORT_UNKNOWN:
6595 {
6596 char *p;
6597
6598 p = rs->buf;
6599 *p++ = 'X';
6600 p += hexnumstr (p, (ULONGEST) addr);
6601 *p++ = ',';
6602 p += hexnumstr (p, (ULONGEST) 0);
6603 *p++ = ':';
6604 *p = '\0';
6605
6606 putpkt_binary (rs->buf, (int) (p - rs->buf));
6607 getpkt (&rs->buf, &rs->buf_size, 0);
6608
6609 if (rs->buf[0] == '\0')
6610 {
6611 if (remote_debug)
6612 fprintf_unfiltered (gdb_stdlog,
6613 "binary downloading NOT "
6614 "supported by target\n");
6615 remote_protocol_packets[PACKET_X].support = PACKET_DISABLE;
6616 }
6617 else
6618 {
6619 if (remote_debug)
6620 fprintf_unfiltered (gdb_stdlog,
6621 "binary downloading supported by target\n");
6622 remote_protocol_packets[PACKET_X].support = PACKET_ENABLE;
6623 }
6624 break;
6625 }
6626 }
6627}
6628
6629/* Write memory data directly to the remote machine.
6630 This does not inform the data cache; the data cache uses this.
6631 HEADER is the starting part of the packet.
6632 MEMADDR is the address in the remote memory space.
6633 MYADDR is the address of the buffer in our space.
6634 LEN is the number of bytes.
6635 PACKET_FORMAT should be either 'X' or 'M', and indicates if we
6636 should send data as binary ('X'), or hex-encoded ('M').
6637
6638 The function creates packet of the form
6639 <HEADER><ADDRESS>,<LENGTH>:<DATA>
6640
6641 where encoding of <DATA> is termined by PACKET_FORMAT.
6642
6643 If USE_LENGTH is 0, then the <LENGTH> field and the preceding comma
6644 are omitted.
6645
6646 Returns the number of bytes transferred, or 0 (setting errno) for
6647 error. Only transfer a single packet. */
6648
6649static int
6650remote_write_bytes_aux (const char *header, CORE_ADDR memaddr,
6651 const gdb_byte *myaddr, ssize_t len,
6652 char packet_format, int use_length)
6653{
6654 struct remote_state *rs = get_remote_state ();
6655 char *p;
6656 char *plen = NULL;
6657 int plenlen = 0;
6658 int todo;
6659 int nr_bytes;
6660 int payload_size;
6661 int payload_length;
6662 int header_length;
6663
6664 if (packet_format != 'X' && packet_format != 'M')
6665 internal_error (__FILE__, __LINE__,
6666 _("remote_write_bytes_aux: bad packet format"));
6667
6668 if (len <= 0)
6669 return 0;
6670
6671 payload_size = get_memory_write_packet_size ();
6672
6673 /* The packet buffer will be large enough for the payload;
6674 get_memory_packet_size ensures this. */
6675 rs->buf[0] = '\0';
6676
6677 /* Compute the size of the actual payload by subtracting out the
6678 packet header and footer overhead: "$M<memaddr>,<len>:...#nn". */
6679
6680 payload_size -= strlen ("$,:#NN");
6681 if (!use_length)
6682 /* The comma won't be used. */
6683 payload_size += 1;
6684 header_length = strlen (header);
6685 payload_size -= header_length;
6686 payload_size -= hexnumlen (memaddr);
6687
6688 /* Construct the packet excluding the data: "<header><memaddr>,<len>:". */
6689
6690 strcat (rs->buf, header);
6691 p = rs->buf + strlen (header);
6692
6693 /* Compute a best guess of the number of bytes actually transfered. */
6694 if (packet_format == 'X')
6695 {
6696 /* Best guess at number of bytes that will fit. */
6697 todo = min (len, payload_size);
6698 if (use_length)
6699 payload_size -= hexnumlen (todo);
6700 todo = min (todo, payload_size);
6701 }
6702 else
6703 {
6704 /* Num bytes that will fit. */
6705 todo = min (len, payload_size / 2);
6706 if (use_length)
6707 payload_size -= hexnumlen (todo);
6708 todo = min (todo, payload_size / 2);
6709 }
6710
6711 if (todo <= 0)
6712 internal_error (__FILE__, __LINE__,
6713 _("minimum packet size too small to write data"));
6714
6715 /* If we already need another packet, then try to align the end
6716 of this packet to a useful boundary. */
6717 if (todo > 2 * REMOTE_ALIGN_WRITES && todo < len)
6718 todo = ((memaddr + todo) & ~(REMOTE_ALIGN_WRITES - 1)) - memaddr;
6719
6720 /* Append "<memaddr>". */
6721 memaddr = remote_address_masked (memaddr);
6722 p += hexnumstr (p, (ULONGEST) memaddr);
6723
6724 if (use_length)
6725 {
6726 /* Append ",". */
6727 *p++ = ',';
6728
6729 /* Append <len>. Retain the location/size of <len>. It may need to
6730 be adjusted once the packet body has been created. */
6731 plen = p;
6732 plenlen = hexnumstr (p, (ULONGEST) todo);
6733 p += plenlen;
6734 }
6735
6736 /* Append ":". */
6737 *p++ = ':';
6738 *p = '\0';
6739
6740 /* Append the packet body. */
6741 if (packet_format == 'X')
6742 {
6743 /* Binary mode. Send target system values byte by byte, in
6744 increasing byte addresses. Only escape certain critical
6745 characters. */
6746 payload_length = remote_escape_output (myaddr, todo, p, &nr_bytes,
6747 payload_size);
6748
6749 /* If not all TODO bytes fit, then we'll need another packet. Make
6750 a second try to keep the end of the packet aligned. Don't do
6751 this if the packet is tiny. */
6752 if (nr_bytes < todo && nr_bytes > 2 * REMOTE_ALIGN_WRITES)
6753 {
6754 int new_nr_bytes;
6755
6756 new_nr_bytes = (((memaddr + nr_bytes) & ~(REMOTE_ALIGN_WRITES - 1))
6757 - memaddr);
6758 if (new_nr_bytes != nr_bytes)
6759 payload_length = remote_escape_output (myaddr, new_nr_bytes,
6760 p, &nr_bytes,
6761 payload_size);
6762 }
6763
6764 p += payload_length;
6765 if (use_length && nr_bytes < todo)
6766 {
6767 /* Escape chars have filled up the buffer prematurely,
6768 and we have actually sent fewer bytes than planned.
6769 Fix-up the length field of the packet. Use the same
6770 number of characters as before. */
6771 plen += hexnumnstr (plen, (ULONGEST) nr_bytes, plenlen);
6772 *plen = ':'; /* overwrite \0 from hexnumnstr() */
6773 }
6774 }
6775 else
6776 {
6777 /* Normal mode: Send target system values byte by byte, in
6778 increasing byte addresses. Each byte is encoded as a two hex
6779 value. */
6780 nr_bytes = bin2hex (myaddr, p, todo);
6781 p += 2 * nr_bytes;
6782 }
6783
6784 putpkt_binary (rs->buf, (int) (p - rs->buf));
6785 getpkt (&rs->buf, &rs->buf_size, 0);
6786
6787 if (rs->buf[0] == 'E')
6788 {
6789 /* There is no correspondance between what the remote protocol
6790 uses for errors and errno codes. We would like a cleaner way
6791 of representing errors (big enough to include errno codes,
6792 bfd_error codes, and others). But for now just return EIO. */
6793 errno = EIO;
6794 return 0;
6795 }
6796
6797 /* Return NR_BYTES, not TODO, in case escape chars caused us to send
6798 fewer bytes than we'd planned. */
6799 return nr_bytes;
6800}
6801
6802/* Write memory data directly to the remote machine.
6803 This does not inform the data cache; the data cache uses this.
6804 MEMADDR is the address in the remote memory space.
6805 MYADDR is the address of the buffer in our space.
6806 LEN is the number of bytes.
6807
6808 Returns number of bytes transferred, or 0 (setting errno) for
6809 error. Only transfer a single packet. */
6810
6811static int
6812remote_write_bytes (CORE_ADDR memaddr, const gdb_byte *myaddr, ssize_t len)
6813{
6814 char *packet_format = 0;
6815
6816 /* Check whether the target supports binary download. */
6817 check_binary_download (memaddr);
6818
6819 switch (remote_protocol_packets[PACKET_X].support)
6820 {
6821 case PACKET_ENABLE:
6822 packet_format = "X";
6823 break;
6824 case PACKET_DISABLE:
6825 packet_format = "M";
6826 break;
6827 case PACKET_SUPPORT_UNKNOWN:
6828 internal_error (__FILE__, __LINE__,
6829 _("remote_write_bytes: bad internal state"));
6830 default:
6831 internal_error (__FILE__, __LINE__, _("bad switch"));
6832 }
6833
6834 return remote_write_bytes_aux (packet_format,
6835 memaddr, myaddr, len, packet_format[0], 1);
6836}
6837
6838/* Read memory data directly from the remote machine.
6839 This does not use the data cache; the data cache uses this.
6840 MEMADDR is the address in the remote memory space.
6841 MYADDR is the address of the buffer in our space.
6842 LEN is the number of bytes.
6843
6844 Returns number of bytes transferred, or 0 for error. */
6845
6846static int
6847remote_read_bytes (CORE_ADDR memaddr, gdb_byte *myaddr, int len)
6848{
6849 struct remote_state *rs = get_remote_state ();
6850 int max_buf_size; /* Max size of packet output buffer. */
6851 char *p;
6852 int todo;
6853 int i;
6854
6855 if (len <= 0)
6856 return 0;
6857
6858 max_buf_size = get_memory_read_packet_size ();
6859 /* The packet buffer will be large enough for the payload;
6860 get_memory_packet_size ensures this. */
6861
6862 /* Number if bytes that will fit. */
6863 todo = min (len, max_buf_size / 2);
6864
6865 /* Construct "m"<memaddr>","<len>". */
6866 memaddr = remote_address_masked (memaddr);
6867 p = rs->buf;
6868 *p++ = 'm';
6869 p += hexnumstr (p, (ULONGEST) memaddr);
6870 *p++ = ',';
6871 p += hexnumstr (p, (ULONGEST) todo);
6872 *p = '\0';
6873 putpkt (rs->buf);
6874 getpkt (&rs->buf, &rs->buf_size, 0);
6875 if (rs->buf[0] == 'E'
6876 && isxdigit (rs->buf[1]) && isxdigit (rs->buf[2])
6877 && rs->buf[3] == '\0')
6878 {
6879 /* There is no correspondance between what the remote protocol
6880 uses for errors and errno codes. We would like a cleaner way
6881 of representing errors (big enough to include errno codes,
6882 bfd_error codes, and others). But for now just return
6883 EIO. */
6884 errno = EIO;
6885 return 0;
6886 }
6887 /* Reply describes memory byte by byte, each byte encoded as two hex
6888 characters. */
6889 p = rs->buf;
6890 i = hex2bin (p, myaddr, todo);
6891 /* Return what we have. Let higher layers handle partial reads. */
6892 return i;
6893}
6894
6895\f
6896/* Read or write LEN bytes from inferior memory at MEMADDR,
6897 transferring to or from debugger address BUFFER. Write to inferior
6898 if SHOULD_WRITE is nonzero. Returns length of data written or
6899 read; 0 for error. TARGET is unused. */
6900
6901static int
6902remote_xfer_memory (CORE_ADDR mem_addr, gdb_byte *buffer, int mem_len,
6903 int should_write, struct mem_attrib *attrib,
6904 struct target_ops *target)
6905{
6906 int res;
6907
6908 set_remote_traceframe ();
6909 set_general_thread (inferior_ptid);
6910
6911 if (should_write)
6912 res = remote_write_bytes (mem_addr, buffer, mem_len);
6913 else
6914 res = remote_read_bytes (mem_addr, buffer, mem_len);
6915
6916 return res;
6917}
6918
6919/* Sends a packet with content determined by the printf format string
6920 FORMAT and the remaining arguments, then gets the reply. Returns
6921 whether the packet was a success, a failure, or unknown. */
6922
6923static enum packet_result
6924remote_send_printf (const char *format, ...)
6925{
6926 struct remote_state *rs = get_remote_state ();
6927 int max_size = get_remote_packet_size ();
6928 va_list ap;
6929
6930 va_start (ap, format);
6931
6932 rs->buf[0] = '\0';
6933 if (vsnprintf (rs->buf, max_size, format, ap) >= max_size)
6934 internal_error (__FILE__, __LINE__, _("Too long remote packet."));
6935
6936 if (putpkt (rs->buf) < 0)
6937 error (_("Communication problem with target."));
6938
6939 rs->buf[0] = '\0';
6940 getpkt (&rs->buf, &rs->buf_size, 0);
6941
6942 return packet_check_result (rs->buf);
6943}
6944
6945static void
6946restore_remote_timeout (void *p)
6947{
6948 int value = *(int *)p;
6949
6950 remote_timeout = value;
6951}
6952
6953/* Flash writing can take quite some time. We'll set
6954 effectively infinite timeout for flash operations.
6955 In future, we'll need to decide on a better approach. */
6956static const int remote_flash_timeout = 1000;
6957
6958static void
6959remote_flash_erase (struct target_ops *ops,
6960 ULONGEST address, LONGEST length)
6961{
6962 int addr_size = gdbarch_addr_bit (target_gdbarch ()) / 8;
6963 int saved_remote_timeout = remote_timeout;
6964 enum packet_result ret;
6965 struct cleanup *back_to = make_cleanup (restore_remote_timeout,
6966 &saved_remote_timeout);
6967
6968 remote_timeout = remote_flash_timeout;
6969
6970 ret = remote_send_printf ("vFlashErase:%s,%s",
6971 phex (address, addr_size),
6972 phex (length, 4));
6973 switch (ret)
6974 {
6975 case PACKET_UNKNOWN:
6976 error (_("Remote target does not support flash erase"));
6977 case PACKET_ERROR:
6978 error (_("Error erasing flash with vFlashErase packet"));
6979 default:
6980 break;
6981 }
6982
6983 do_cleanups (back_to);
6984}
6985
6986static LONGEST
6987remote_flash_write (struct target_ops *ops,
6988 ULONGEST address, LONGEST length,
6989 const gdb_byte *data)
6990{
6991 int saved_remote_timeout = remote_timeout;
6992 int ret;
6993 struct cleanup *back_to = make_cleanup (restore_remote_timeout,
6994 &saved_remote_timeout);
6995
6996 remote_timeout = remote_flash_timeout;
6997 ret = remote_write_bytes_aux ("vFlashWrite:", address, data, length, 'X', 0);
6998 do_cleanups (back_to);
6999
7000 return ret;
7001}
7002
7003static void
7004remote_flash_done (struct target_ops *ops)
7005{
7006 int saved_remote_timeout = remote_timeout;
7007 int ret;
7008 struct cleanup *back_to = make_cleanup (restore_remote_timeout,
7009 &saved_remote_timeout);
7010
7011 remote_timeout = remote_flash_timeout;
7012 ret = remote_send_printf ("vFlashDone");
7013 do_cleanups (back_to);
7014
7015 switch (ret)
7016 {
7017 case PACKET_UNKNOWN:
7018 error (_("Remote target does not support vFlashDone"));
7019 case PACKET_ERROR:
7020 error (_("Error finishing flash operation"));
7021 default:
7022 break;
7023 }
7024}
7025
7026static void
7027remote_files_info (struct target_ops *ignore)
7028{
7029 puts_filtered ("Debugging a target over a serial line.\n");
7030}
7031\f
7032/* Stuff for dealing with the packets which are part of this protocol.
7033 See comment at top of file for details. */
7034
7035/* Read a single character from the remote end. */
7036
7037static int
7038readchar (int timeout)
7039{
7040 int ch;
7041
7042 ch = serial_readchar (remote_desc, timeout);
7043
7044 if (ch >= 0)
7045 return ch;
7046
7047 switch ((enum serial_rc) ch)
7048 {
7049 case SERIAL_EOF:
7050 remote_unpush_target ();
7051 throw_error (TARGET_CLOSE_ERROR, _("Remote connection closed"));
7052 /* no return */
7053 case SERIAL_ERROR:
7054 remote_unpush_target ();
7055 throw_perror_with_name (TARGET_CLOSE_ERROR,
7056 _("Remote communication error. "
7057 "Target disconnected."));
7058 /* no return */
7059 case SERIAL_TIMEOUT:
7060 break;
7061 }
7062 return ch;
7063}
7064
7065/* Wrapper for serial_write that closes the target and throws if
7066 writing fails. */
7067
7068static void
7069remote_serial_write (const char *str, int len)
7070{
7071 if (serial_write (remote_desc, str, len))
7072 {
7073 remote_unpush_target ();
7074 throw_perror_with_name (TARGET_CLOSE_ERROR,
7075 _("Remote communication error. "
7076 "Target disconnected."));
7077 }
7078}
7079
7080/* Send the command in *BUF to the remote machine, and read the reply
7081 into *BUF. Report an error if we get an error reply. Resize
7082 *BUF using xrealloc if necessary to hold the result, and update
7083 *SIZEOF_BUF. */
7084
7085static void
7086remote_send (char **buf,
7087 long *sizeof_buf)
7088{
7089 putpkt (*buf);
7090 getpkt (buf, sizeof_buf, 0);
7091
7092 if ((*buf)[0] == 'E')
7093 error (_("Remote failure reply: %s"), *buf);
7094}
7095
7096/* Return a pointer to an xmalloc'ed string representing an escaped
7097 version of BUF, of len N. E.g. \n is converted to \\n, \t to \\t,
7098 etc. The caller is responsible for releasing the returned
7099 memory. */
7100
7101static char *
7102escape_buffer (const char *buf, int n)
7103{
7104 struct cleanup *old_chain;
7105 struct ui_file *stb;
7106 char *str;
7107
7108 stb = mem_fileopen ();
7109 old_chain = make_cleanup_ui_file_delete (stb);
7110
7111 fputstrn_unfiltered (buf, n, 0, stb);
7112 str = ui_file_xstrdup (stb, NULL);
7113 do_cleanups (old_chain);
7114 return str;
7115}
7116
7117/* Display a null-terminated packet on stdout, for debugging, using C
7118 string notation. */
7119
7120static void
7121print_packet (char *buf)
7122{
7123 puts_filtered ("\"");
7124 fputstr_filtered (buf, '"', gdb_stdout);
7125 puts_filtered ("\"");
7126}
7127
7128int
7129putpkt (char *buf)
7130{
7131 return putpkt_binary (buf, strlen (buf));
7132}
7133
7134/* Send a packet to the remote machine, with error checking. The data
7135 of the packet is in BUF. The string in BUF can be at most
7136 get_remote_packet_size () - 5 to account for the $, # and checksum,
7137 and for a possible /0 if we are debugging (remote_debug) and want
7138 to print the sent packet as a string. */
7139
7140static int
7141putpkt_binary (char *buf, int cnt)
7142{
7143 struct remote_state *rs = get_remote_state ();
7144 int i;
7145 unsigned char csum = 0;
7146 char *buf2 = alloca (cnt + 6);
7147
7148 int ch;
7149 int tcount = 0;
7150 char *p;
7151 char *message;
7152
7153 /* Catch cases like trying to read memory or listing threads while
7154 we're waiting for a stop reply. The remote server wouldn't be
7155 ready to handle this request, so we'd hang and timeout. We don't
7156 have to worry about this in synchronous mode, because in that
7157 case it's not possible to issue a command while the target is
7158 running. This is not a problem in non-stop mode, because in that
7159 case, the stub is always ready to process serial input. */
7160 if (!non_stop && target_can_async_p () && rs->waiting_for_stop_reply)
7161 error (_("Cannot execute this command while the target is running."));
7162
7163 /* We're sending out a new packet. Make sure we don't look at a
7164 stale cached response. */
7165 rs->cached_wait_status = 0;
7166
7167 /* Copy the packet into buffer BUF2, encapsulating it
7168 and giving it a checksum. */
7169
7170 p = buf2;
7171 *p++ = '$';
7172
7173 for (i = 0; i < cnt; i++)
7174 {
7175 csum += buf[i];
7176 *p++ = buf[i];
7177 }
7178 *p++ = '#';
7179 *p++ = tohex ((csum >> 4) & 0xf);
7180 *p++ = tohex (csum & 0xf);
7181
7182 /* Send it over and over until we get a positive ack. */
7183
7184 while (1)
7185 {
7186 int started_error_output = 0;
7187
7188 if (remote_debug)
7189 {
7190 struct cleanup *old_chain;
7191 char *str;
7192
7193 *p = '\0';
7194 str = escape_buffer (buf2, p - buf2);
7195 old_chain = make_cleanup (xfree, str);
7196 fprintf_unfiltered (gdb_stdlog, "Sending packet: %s...", str);
7197 gdb_flush (gdb_stdlog);
7198 do_cleanups (old_chain);
7199 }
7200 remote_serial_write (buf2, p - buf2);
7201
7202 /* If this is a no acks version of the remote protocol, send the
7203 packet and move on. */
7204 if (rs->noack_mode)
7205 break;
7206
7207 /* Read until either a timeout occurs (-2) or '+' is read.
7208 Handle any notification that arrives in the mean time. */
7209 while (1)
7210 {
7211 ch = readchar (remote_timeout);
7212
7213 if (remote_debug)
7214 {
7215 switch (ch)
7216 {
7217 case '+':
7218 case '-':
7219 case SERIAL_TIMEOUT:
7220 case '$':
7221 case '%':
7222 if (started_error_output)
7223 {
7224 putchar_unfiltered ('\n');
7225 started_error_output = 0;
7226 }
7227 }
7228 }
7229
7230 switch (ch)
7231 {
7232 case '+':
7233 if (remote_debug)
7234 fprintf_unfiltered (gdb_stdlog, "Ack\n");
7235 return 1;
7236 case '-':
7237 if (remote_debug)
7238 fprintf_unfiltered (gdb_stdlog, "Nak\n");
7239 /* FALLTHROUGH */
7240 case SERIAL_TIMEOUT:
7241 tcount++;
7242 if (tcount > 3)
7243 return 0;
7244 break; /* Retransmit buffer. */
7245 case '$':
7246 {
7247 if (remote_debug)
7248 fprintf_unfiltered (gdb_stdlog,
7249 "Packet instead of Ack, ignoring it\n");
7250 /* It's probably an old response sent because an ACK
7251 was lost. Gobble up the packet and ack it so it
7252 doesn't get retransmitted when we resend this
7253 packet. */
7254 skip_frame ();
7255 remote_serial_write ("+", 1);
7256 continue; /* Now, go look for +. */
7257 }
7258
7259 case '%':
7260 {
7261 int val;
7262
7263 /* If we got a notification, handle it, and go back to looking
7264 for an ack. */
7265 /* We've found the start of a notification. Now
7266 collect the data. */
7267 val = read_frame (&rs->buf, &rs->buf_size);
7268 if (val >= 0)
7269 {
7270 if (remote_debug)
7271 {
7272 struct cleanup *old_chain;
7273 char *str;
7274
7275 str = escape_buffer (rs->buf, val);
7276 old_chain = make_cleanup (xfree, str);
7277 fprintf_unfiltered (gdb_stdlog,
7278 " Notification received: %s\n",
7279 str);
7280 do_cleanups (old_chain);
7281 }
7282 handle_notification (rs->buf);
7283 /* We're in sync now, rewait for the ack. */
7284 tcount = 0;
7285 }
7286 else
7287 {
7288 if (remote_debug)
7289 {
7290 if (!started_error_output)
7291 {
7292 started_error_output = 1;
7293 fprintf_unfiltered (gdb_stdlog, "putpkt: Junk: ");
7294 }
7295 fputc_unfiltered (ch & 0177, gdb_stdlog);
7296 fprintf_unfiltered (gdb_stdlog, "%s", rs->buf);
7297 }
7298 }
7299 continue;
7300 }
7301 /* fall-through */
7302 default:
7303 if (remote_debug)
7304 {
7305 if (!started_error_output)
7306 {
7307 started_error_output = 1;
7308 fprintf_unfiltered (gdb_stdlog, "putpkt: Junk: ");
7309 }
7310 fputc_unfiltered (ch & 0177, gdb_stdlog);
7311 }
7312 continue;
7313 }
7314 break; /* Here to retransmit. */
7315 }
7316
7317#if 0
7318 /* This is wrong. If doing a long backtrace, the user should be
7319 able to get out next time we call QUIT, without anything as
7320 violent as interrupt_query. If we want to provide a way out of
7321 here without getting to the next QUIT, it should be based on
7322 hitting ^C twice as in remote_wait. */
7323 if (quit_flag)
7324 {
7325 quit_flag = 0;
7326 interrupt_query ();
7327 }
7328#endif
7329 }
7330 return 0;
7331}
7332
7333/* Come here after finding the start of a frame when we expected an
7334 ack. Do our best to discard the rest of this packet. */
7335
7336static void
7337skip_frame (void)
7338{
7339 int c;
7340
7341 while (1)
7342 {
7343 c = readchar (remote_timeout);
7344 switch (c)
7345 {
7346 case SERIAL_TIMEOUT:
7347 /* Nothing we can do. */
7348 return;
7349 case '#':
7350 /* Discard the two bytes of checksum and stop. */
7351 c = readchar (remote_timeout);
7352 if (c >= 0)
7353 c = readchar (remote_timeout);
7354
7355 return;
7356 case '*': /* Run length encoding. */
7357 /* Discard the repeat count. */
7358 c = readchar (remote_timeout);
7359 if (c < 0)
7360 return;
7361 break;
7362 default:
7363 /* A regular character. */
7364 break;
7365 }
7366 }
7367}
7368
7369/* Come here after finding the start of the frame. Collect the rest
7370 into *BUF, verifying the checksum, length, and handling run-length
7371 compression. NUL terminate the buffer. If there is not enough room,
7372 expand *BUF using xrealloc.
7373
7374 Returns -1 on error, number of characters in buffer (ignoring the
7375 trailing NULL) on success. (could be extended to return one of the
7376 SERIAL status indications). */
7377
7378static long
7379read_frame (char **buf_p,
7380 long *sizeof_buf)
7381{
7382 unsigned char csum;
7383 long bc;
7384 int c;
7385 char *buf = *buf_p;
7386 struct remote_state *rs = get_remote_state ();
7387
7388 csum = 0;
7389 bc = 0;
7390
7391 while (1)
7392 {
7393 c = readchar (remote_timeout);
7394 switch (c)
7395 {
7396 case SERIAL_TIMEOUT:
7397 if (remote_debug)
7398 fputs_filtered ("Timeout in mid-packet, retrying\n", gdb_stdlog);
7399 return -1;
7400 case '$':
7401 if (remote_debug)
7402 fputs_filtered ("Saw new packet start in middle of old one\n",
7403 gdb_stdlog);
7404 return -1; /* Start a new packet, count retries. */
7405 case '#':
7406 {
7407 unsigned char pktcsum;
7408 int check_0 = 0;
7409 int check_1 = 0;
7410
7411 buf[bc] = '\0';
7412
7413 check_0 = readchar (remote_timeout);
7414 if (check_0 >= 0)
7415 check_1 = readchar (remote_timeout);
7416
7417 if (check_0 == SERIAL_TIMEOUT || check_1 == SERIAL_TIMEOUT)
7418 {
7419 if (remote_debug)
7420 fputs_filtered ("Timeout in checksum, retrying\n",
7421 gdb_stdlog);
7422 return -1;
7423 }
7424 else if (check_0 < 0 || check_1 < 0)
7425 {
7426 if (remote_debug)
7427 fputs_filtered ("Communication error in checksum\n",
7428 gdb_stdlog);
7429 return -1;
7430 }
7431
7432 /* Don't recompute the checksum; with no ack packets we
7433 don't have any way to indicate a packet retransmission
7434 is necessary. */
7435 if (rs->noack_mode)
7436 return bc;
7437
7438 pktcsum = (fromhex (check_0) << 4) | fromhex (check_1);
7439 if (csum == pktcsum)
7440 return bc;
7441
7442 if (remote_debug)
7443 {
7444 struct cleanup *old_chain;
7445 char *str;
7446
7447 str = escape_buffer (buf, bc);
7448 old_chain = make_cleanup (xfree, str);
7449 fprintf_unfiltered (gdb_stdlog,
7450 "Bad checksum, sentsum=0x%x, "
7451 "csum=0x%x, buf=%s\n",
7452 pktcsum, csum, str);
7453 do_cleanups (old_chain);
7454 }
7455 /* Number of characters in buffer ignoring trailing
7456 NULL. */
7457 return -1;
7458 }
7459 case '*': /* Run length encoding. */
7460 {
7461 int repeat;
7462
7463 csum += c;
7464 c = readchar (remote_timeout);
7465 csum += c;
7466 repeat = c - ' ' + 3; /* Compute repeat count. */
7467
7468 /* The character before ``*'' is repeated. */
7469
7470 if (repeat > 0 && repeat <= 255 && bc > 0)
7471 {
7472 if (bc + repeat - 1 >= *sizeof_buf - 1)
7473 {
7474 /* Make some more room in the buffer. */
7475 *sizeof_buf += repeat;
7476 *buf_p = xrealloc (*buf_p, *sizeof_buf);
7477 buf = *buf_p;
7478 }
7479
7480 memset (&buf[bc], buf[bc - 1], repeat);
7481 bc += repeat;
7482 continue;
7483 }
7484
7485 buf[bc] = '\0';
7486 printf_filtered (_("Invalid run length encoding: %s\n"), buf);
7487 return -1;
7488 }
7489 default:
7490 if (bc >= *sizeof_buf - 1)
7491 {
7492 /* Make some more room in the buffer. */
7493 *sizeof_buf *= 2;
7494 *buf_p = xrealloc (*buf_p, *sizeof_buf);
7495 buf = *buf_p;
7496 }
7497
7498 buf[bc++] = c;
7499 csum += c;
7500 continue;
7501 }
7502 }
7503}
7504
7505/* Read a packet from the remote machine, with error checking, and
7506 store it in *BUF. Resize *BUF using xrealloc if necessary to hold
7507 the result, and update *SIZEOF_BUF. If FOREVER, wait forever
7508 rather than timing out; this is used (in synchronous mode) to wait
7509 for a target that is is executing user code to stop. */
7510/* FIXME: ezannoni 2000-02-01 this wrapper is necessary so that we
7511 don't have to change all the calls to getpkt to deal with the
7512 return value, because at the moment I don't know what the right
7513 thing to do it for those. */
7514void
7515getpkt (char **buf,
7516 long *sizeof_buf,
7517 int forever)
7518{
7519 int timed_out;
7520
7521 timed_out = getpkt_sane (buf, sizeof_buf, forever);
7522}
7523
7524
7525/* Read a packet from the remote machine, with error checking, and
7526 store it in *BUF. Resize *BUF using xrealloc if necessary to hold
7527 the result, and update *SIZEOF_BUF. If FOREVER, wait forever
7528 rather than timing out; this is used (in synchronous mode) to wait
7529 for a target that is is executing user code to stop. If FOREVER ==
7530 0, this function is allowed to time out gracefully and return an
7531 indication of this to the caller. Otherwise return the number of
7532 bytes read. If EXPECTING_NOTIF, consider receiving a notification
7533 enough reason to return to the caller. *IS_NOTIF is an output
7534 boolean that indicates whether *BUF holds a notification or not
7535 (a regular packet). */
7536
7537static int
7538getpkt_or_notif_sane_1 (char **buf, long *sizeof_buf, int forever,
7539 int expecting_notif, int *is_notif)
7540{
7541 struct remote_state *rs = get_remote_state ();
7542 int c;
7543 int tries;
7544 int timeout;
7545 int val = -1;
7546
7547 /* We're reading a new response. Make sure we don't look at a
7548 previously cached response. */
7549 rs->cached_wait_status = 0;
7550
7551 strcpy (*buf, "timeout");
7552
7553 if (forever)
7554 timeout = watchdog > 0 ? watchdog : -1;
7555 else if (expecting_notif)
7556 timeout = 0; /* There should already be a char in the buffer. If
7557 not, bail out. */
7558 else
7559 timeout = remote_timeout;
7560
7561#define MAX_TRIES 3
7562
7563 /* Process any number of notifications, and then return when
7564 we get a packet. */
7565 for (;;)
7566 {
7567 /* If we get a timeout or bad checksm, retry up to MAX_TRIES
7568 times. */
7569 for (tries = 1; tries <= MAX_TRIES; tries++)
7570 {
7571 /* This can loop forever if the remote side sends us
7572 characters continuously, but if it pauses, we'll get
7573 SERIAL_TIMEOUT from readchar because of timeout. Then
7574 we'll count that as a retry.
7575
7576 Note that even when forever is set, we will only wait
7577 forever prior to the start of a packet. After that, we
7578 expect characters to arrive at a brisk pace. They should
7579 show up within remote_timeout intervals. */
7580 do
7581 c = readchar (timeout);
7582 while (c != SERIAL_TIMEOUT && c != '$' && c != '%');
7583
7584 if (c == SERIAL_TIMEOUT)
7585 {
7586 if (expecting_notif)
7587 return -1; /* Don't complain, it's normal to not get
7588 anything in this case. */
7589
7590 if (forever) /* Watchdog went off? Kill the target. */
7591 {
7592 QUIT;
7593 remote_unpush_target ();
7594 throw_error (TARGET_CLOSE_ERROR,
7595 _("Watchdog timeout has expired. "
7596 "Target detached."));
7597 }
7598 if (remote_debug)
7599 fputs_filtered ("Timed out.\n", gdb_stdlog);
7600 }
7601 else
7602 {
7603 /* We've found the start of a packet or notification.
7604 Now collect the data. */
7605 val = read_frame (buf, sizeof_buf);
7606 if (val >= 0)
7607 break;
7608 }
7609
7610 remote_serial_write ("-", 1);
7611 }
7612
7613 if (tries > MAX_TRIES)
7614 {
7615 /* We have tried hard enough, and just can't receive the
7616 packet/notification. Give up. */
7617 printf_unfiltered (_("Ignoring packet error, continuing...\n"));
7618
7619 /* Skip the ack char if we're in no-ack mode. */
7620 if (!rs->noack_mode)
7621 remote_serial_write ("+", 1);
7622 return -1;
7623 }
7624
7625 /* If we got an ordinary packet, return that to our caller. */
7626 if (c == '$')
7627 {
7628 if (remote_debug)
7629 {
7630 struct cleanup *old_chain;
7631 char *str;
7632
7633 str = escape_buffer (*buf, val);
7634 old_chain = make_cleanup (xfree, str);
7635 fprintf_unfiltered (gdb_stdlog, "Packet received: %s\n", str);
7636 do_cleanups (old_chain);
7637 }
7638
7639 /* Skip the ack char if we're in no-ack mode. */
7640 if (!rs->noack_mode)
7641 remote_serial_write ("+", 1);
7642 if (is_notif != NULL)
7643 *is_notif = 0;
7644 return val;
7645 }
7646
7647 /* If we got a notification, handle it, and go back to looking
7648 for a packet. */
7649 else
7650 {
7651 gdb_assert (c == '%');
7652
7653 if (remote_debug)
7654 {
7655 struct cleanup *old_chain;
7656 char *str;
7657
7658 str = escape_buffer (*buf, val);
7659 old_chain = make_cleanup (xfree, str);
7660 fprintf_unfiltered (gdb_stdlog,
7661 " Notification received: %s\n",
7662 str);
7663 do_cleanups (old_chain);
7664 }
7665 if (is_notif != NULL)
7666 *is_notif = 1;
7667
7668 handle_notification (*buf);
7669
7670 /* Notifications require no acknowledgement. */
7671
7672 if (expecting_notif)
7673 return val;
7674 }
7675 }
7676}
7677
7678static int
7679getpkt_sane (char **buf, long *sizeof_buf, int forever)
7680{
7681 return getpkt_or_notif_sane_1 (buf, sizeof_buf, forever, 0, NULL);
7682}
7683
7684static int
7685getpkt_or_notif_sane (char **buf, long *sizeof_buf, int forever,
7686 int *is_notif)
7687{
7688 return getpkt_or_notif_sane_1 (buf, sizeof_buf, forever, 1,
7689 is_notif);
7690}
7691
7692\f
7693/* A helper function that just calls putpkt; for type correctness. */
7694
7695static int
7696putpkt_for_catch_errors (void *arg)
7697{
7698 return putpkt (arg);
7699}
7700
7701static void
7702remote_kill (struct target_ops *ops)
7703{
7704 /* Use catch_errors so the user can quit from gdb even when we
7705 aren't on speaking terms with the remote system. */
7706 catch_errors (putpkt_for_catch_errors, "k", "", RETURN_MASK_ERROR);
7707
7708 /* Don't wait for it to die. I'm not really sure it matters whether
7709 we do or not. For the existing stubs, kill is a noop. */
7710 target_mourn_inferior ();
7711}
7712
7713static int
7714remote_vkill (int pid, struct remote_state *rs)
7715{
7716 if (remote_protocol_packets[PACKET_vKill].support == PACKET_DISABLE)
7717 return -1;
7718
7719 /* Tell the remote target to detach. */
7720 xsnprintf (rs->buf, get_remote_packet_size (), "vKill;%x", pid);
7721 putpkt (rs->buf);
7722 getpkt (&rs->buf, &rs->buf_size, 0);
7723
7724 if (packet_ok (rs->buf,
7725 &remote_protocol_packets[PACKET_vKill]) == PACKET_OK)
7726 return 0;
7727 else if (remote_protocol_packets[PACKET_vKill].support == PACKET_DISABLE)
7728 return -1;
7729 else
7730 return 1;
7731}
7732
7733static void
7734extended_remote_kill (struct target_ops *ops)
7735{
7736 int res;
7737 int pid = ptid_get_pid (inferior_ptid);
7738 struct remote_state *rs = get_remote_state ();
7739
7740 res = remote_vkill (pid, rs);
7741 if (res == -1 && !(rs->extended && remote_multi_process_p (rs)))
7742 {
7743 /* Don't try 'k' on a multi-process aware stub -- it has no way
7744 to specify the pid. */
7745
7746 putpkt ("k");
7747#if 0
7748 getpkt (&rs->buf, &rs->buf_size, 0);
7749 if (rs->buf[0] != 'O' || rs->buf[0] != 'K')
7750 res = 1;
7751#else
7752 /* Don't wait for it to die. I'm not really sure it matters whether
7753 we do or not. For the existing stubs, kill is a noop. */
7754 res = 0;
7755#endif
7756 }
7757
7758 if (res != 0)
7759 error (_("Can't kill process"));
7760
7761 target_mourn_inferior ();
7762}
7763
7764static void
7765remote_mourn (struct target_ops *ops)
7766{
7767 remote_mourn_1 (ops);
7768}
7769
7770/* Worker function for remote_mourn. */
7771static void
7772remote_mourn_1 (struct target_ops *target)
7773{
7774 unpush_target (target);
7775
7776 /* remote_close takes care of doing most of the clean up. */
7777 generic_mourn_inferior ();
7778}
7779
7780static void
7781extended_remote_mourn_1 (struct target_ops *target)
7782{
7783 struct remote_state *rs = get_remote_state ();
7784
7785 /* In case we got here due to an error, but we're going to stay
7786 connected. */
7787 rs->waiting_for_stop_reply = 0;
7788
7789 /* If the current general thread belonged to the process we just
7790 detached from or has exited, the remote side current general
7791 thread becomes undefined. Considering a case like this:
7792
7793 - We just got here due to a detach.
7794 - The process that we're detaching from happens to immediately
7795 report a global breakpoint being hit in non-stop mode, in the
7796 same thread we had selected before.
7797 - GDB attaches to this process again.
7798 - This event happens to be the next event we handle.
7799
7800 GDB would consider that the current general thread didn't need to
7801 be set on the stub side (with Hg), since for all it knew,
7802 GENERAL_THREAD hadn't changed.
7803
7804 Notice that although in all-stop mode, the remote server always
7805 sets the current thread to the thread reporting the stop event,
7806 that doesn't happen in non-stop mode; in non-stop, the stub *must
7807 not* change the current thread when reporting a breakpoint hit,
7808 due to the decoupling of event reporting and event handling.
7809
7810 To keep things simple, we always invalidate our notion of the
7811 current thread. */
7812 record_currthread (minus_one_ptid);
7813
7814 /* Unlike "target remote", we do not want to unpush the target; then
7815 the next time the user says "run", we won't be connected. */
7816
7817 /* Call common code to mark the inferior as not running. */
7818 generic_mourn_inferior ();
7819
7820 if (!have_inferiors ())
7821 {
7822 if (!remote_multi_process_p (rs))
7823 {
7824 /* Check whether the target is running now - some remote stubs
7825 automatically restart after kill. */
7826 putpkt ("?");
7827 getpkt (&rs->buf, &rs->buf_size, 0);
7828
7829 if (rs->buf[0] == 'S' || rs->buf[0] == 'T')
7830 {
7831 /* Assume that the target has been restarted. Set
7832 inferior_ptid so that bits of core GDB realizes
7833 there's something here, e.g., so that the user can
7834 say "kill" again. */
7835 inferior_ptid = magic_null_ptid;
7836 }
7837 }
7838 }
7839}
7840
7841static void
7842extended_remote_mourn (struct target_ops *ops)
7843{
7844 extended_remote_mourn_1 (ops);
7845}
7846
7847static int
7848extended_remote_supports_disable_randomization (void)
7849{
7850 return (remote_protocol_packets[PACKET_QDisableRandomization].support
7851 == PACKET_ENABLE);
7852}
7853
7854static void
7855extended_remote_disable_randomization (int val)
7856{
7857 struct remote_state *rs = get_remote_state ();
7858 char *reply;
7859
7860 xsnprintf (rs->buf, get_remote_packet_size (), "QDisableRandomization:%x",
7861 val);
7862 putpkt (rs->buf);
7863 reply = remote_get_noisy_reply (&target_buf, &target_buf_size);
7864 if (*reply == '\0')
7865 error (_("Target does not support QDisableRandomization."));
7866 if (strcmp (reply, "OK") != 0)
7867 error (_("Bogus QDisableRandomization reply from target: %s"), reply);
7868}
7869
7870static int
7871extended_remote_run (char *args)
7872{
7873 struct remote_state *rs = get_remote_state ();
7874 int len;
7875
7876 /* If the user has disabled vRun support, or we have detected that
7877 support is not available, do not try it. */
7878 if (remote_protocol_packets[PACKET_vRun].support == PACKET_DISABLE)
7879 return -1;
7880
7881 strcpy (rs->buf, "vRun;");
7882 len = strlen (rs->buf);
7883
7884 if (strlen (remote_exec_file) * 2 + len >= get_remote_packet_size ())
7885 error (_("Remote file name too long for run packet"));
7886 len += 2 * bin2hex ((gdb_byte *) remote_exec_file, rs->buf + len, 0);
7887
7888 gdb_assert (args != NULL);
7889 if (*args)
7890 {
7891 struct cleanup *back_to;
7892 int i;
7893 char **argv;
7894
7895 argv = gdb_buildargv (args);
7896 back_to = make_cleanup ((void (*) (void *)) freeargv, argv);
7897 for (i = 0; argv[i] != NULL; i++)
7898 {
7899 if (strlen (argv[i]) * 2 + 1 + len >= get_remote_packet_size ())
7900 error (_("Argument list too long for run packet"));
7901 rs->buf[len++] = ';';
7902 len += 2 * bin2hex ((gdb_byte *) argv[i], rs->buf + len, 0);
7903 }
7904 do_cleanups (back_to);
7905 }
7906
7907 rs->buf[len++] = '\0';
7908
7909 putpkt (rs->buf);
7910 getpkt (&rs->buf, &rs->buf_size, 0);
7911
7912 if (packet_ok (rs->buf, &remote_protocol_packets[PACKET_vRun]) == PACKET_OK)
7913 {
7914 /* We have a wait response. All is well. */
7915 return 0;
7916 }
7917 else if (remote_protocol_packets[PACKET_vRun].support == PACKET_DISABLE)
7918 /* It wasn't disabled before, but it is now. */
7919 return -1;
7920 else
7921 {
7922 if (remote_exec_file[0] == '\0')
7923 error (_("Running the default executable on the remote target failed; "
7924 "try \"set remote exec-file\"?"));
7925 else
7926 error (_("Running \"%s\" on the remote target failed"),
7927 remote_exec_file);
7928 }
7929}
7930
7931/* In the extended protocol we want to be able to do things like
7932 "run" and have them basically work as expected. So we need
7933 a special create_inferior function. We support changing the
7934 executable file and the command line arguments, but not the
7935 environment. */
7936
7937static void
7938extended_remote_create_inferior_1 (char *exec_file, char *args,
7939 char **env, int from_tty)
7940{
7941 int run_worked;
7942 char *stop_reply;
7943 struct remote_state *rs = get_remote_state ();
7944
7945 /* If running asynchronously, register the target file descriptor
7946 with the event loop. */
7947 if (target_can_async_p ())
7948 target_async (inferior_event_handler, 0);
7949
7950 /* Disable address space randomization if requested (and supported). */
7951 if (extended_remote_supports_disable_randomization ())
7952 extended_remote_disable_randomization (disable_randomization);
7953
7954 /* Now restart the remote server. */
7955 run_worked = extended_remote_run (args) != -1;
7956 if (!run_worked)
7957 {
7958 /* vRun was not supported. Fail if we need it to do what the
7959 user requested. */
7960 if (remote_exec_file[0])
7961 error (_("Remote target does not support \"set remote exec-file\""));
7962 if (args[0])
7963 error (_("Remote target does not support \"set args\" or run <ARGS>"));
7964
7965 /* Fall back to "R". */
7966 extended_remote_restart ();
7967 }
7968
7969 if (!have_inferiors ())
7970 {
7971 /* Clean up from the last time we ran, before we mark the target
7972 running again. This will mark breakpoints uninserted, and
7973 get_offsets may insert breakpoints. */
7974 init_thread_list ();
7975 init_wait_for_inferior ();
7976 }
7977
7978 /* vRun's success return is a stop reply. */
7979 stop_reply = run_worked ? rs->buf : NULL;
7980 add_current_inferior_and_thread (stop_reply);
7981
7982 /* Get updated offsets, if the stub uses qOffsets. */
7983 get_offsets ();
7984}
7985
7986static void
7987extended_remote_create_inferior (struct target_ops *ops,
7988 char *exec_file, char *args,
7989 char **env, int from_tty)
7990{
7991 extended_remote_create_inferior_1 (exec_file, args, env, from_tty);
7992}
7993\f
7994
7995/* Given a location's target info BP_TGT and the packet buffer BUF, output
7996 the list of conditions (in agent expression bytecode format), if any, the
7997 target needs to evaluate. The output is placed into the packet buffer
7998 started from BUF and ended at BUF_END. */
7999
8000static int
8001remote_add_target_side_condition (struct gdbarch *gdbarch,
8002 struct bp_target_info *bp_tgt, char *buf,
8003 char *buf_end)
8004{
8005 struct agent_expr *aexpr = NULL;
8006 int i, ix;
8007 char *pkt;
8008 char *buf_start = buf;
8009
8010 if (VEC_empty (agent_expr_p, bp_tgt->conditions))
8011 return 0;
8012
8013 buf += strlen (buf);
8014 xsnprintf (buf, buf_end - buf, "%s", ";");
8015 buf++;
8016
8017 /* Send conditions to the target and free the vector. */
8018 for (ix = 0;
8019 VEC_iterate (agent_expr_p, bp_tgt->conditions, ix, aexpr);
8020 ix++)
8021 {
8022 xsnprintf (buf, buf_end - buf, "X%x,", aexpr->len);
8023 buf += strlen (buf);
8024 for (i = 0; i < aexpr->len; ++i)
8025 buf = pack_hex_byte (buf, aexpr->buf[i]);
8026 *buf = '\0';
8027 }
8028
8029 VEC_free (agent_expr_p, bp_tgt->conditions);
8030 return 0;
8031}
8032
8033static void
8034remote_add_target_side_commands (struct gdbarch *gdbarch,
8035 struct bp_target_info *bp_tgt, char *buf)
8036{
8037 struct agent_expr *aexpr = NULL;
8038 int i, ix;
8039
8040 if (VEC_empty (agent_expr_p, bp_tgt->tcommands))
8041 return;
8042
8043 buf += strlen (buf);
8044
8045 sprintf (buf, ";cmds:%x,", bp_tgt->persist);
8046 buf += strlen (buf);
8047
8048 /* Concatenate all the agent expressions that are commands into the
8049 cmds parameter. */
8050 for (ix = 0;
8051 VEC_iterate (agent_expr_p, bp_tgt->tcommands, ix, aexpr);
8052 ix++)
8053 {
8054 sprintf (buf, "X%x,", aexpr->len);
8055 buf += strlen (buf);
8056 for (i = 0; i < aexpr->len; ++i)
8057 buf = pack_hex_byte (buf, aexpr->buf[i]);
8058 *buf = '\0';
8059 }
8060
8061 VEC_free (agent_expr_p, bp_tgt->tcommands);
8062}
8063
8064/* Insert a breakpoint. On targets that have software breakpoint
8065 support, we ask the remote target to do the work; on targets
8066 which don't, we insert a traditional memory breakpoint. */
8067
8068static int
8069remote_insert_breakpoint (struct gdbarch *gdbarch,
8070 struct bp_target_info *bp_tgt)
8071{
8072 /* Try the "Z" s/w breakpoint packet if it is not already disabled.
8073 If it succeeds, then set the support to PACKET_ENABLE. If it
8074 fails, and the user has explicitly requested the Z support then
8075 report an error, otherwise, mark it disabled and go on. */
8076
8077 if (remote_protocol_packets[PACKET_Z0].support != PACKET_DISABLE)
8078 {
8079 CORE_ADDR addr = bp_tgt->placed_address;
8080 struct remote_state *rs;
8081 char *p, *endbuf;
8082 int bpsize;
8083 struct condition_list *cond = NULL;
8084
8085 gdbarch_remote_breakpoint_from_pc (gdbarch, &addr, &bpsize);
8086
8087 rs = get_remote_state ();
8088 p = rs->buf;
8089 endbuf = rs->buf + get_remote_packet_size ();
8090
8091 *(p++) = 'Z';
8092 *(p++) = '0';
8093 *(p++) = ',';
8094 addr = (ULONGEST) remote_address_masked (addr);
8095 p += hexnumstr (p, addr);
8096 xsnprintf (p, endbuf - p, ",%d", bpsize);
8097
8098 if (remote_supports_cond_breakpoints ())
8099 remote_add_target_side_condition (gdbarch, bp_tgt, p, endbuf);
8100
8101 if (remote_can_run_breakpoint_commands ())
8102 remote_add_target_side_commands (gdbarch, bp_tgt, p);
8103
8104 putpkt (rs->buf);
8105 getpkt (&rs->buf, &rs->buf_size, 0);
8106
8107 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z0]))
8108 {
8109 case PACKET_ERROR:
8110 return -1;
8111 case PACKET_OK:
8112 bp_tgt->placed_address = addr;
8113 bp_tgt->placed_size = bpsize;
8114 return 0;
8115 case PACKET_UNKNOWN:
8116 break;
8117 }
8118 }
8119
8120 return memory_insert_breakpoint (gdbarch, bp_tgt);
8121}
8122
8123static int
8124remote_remove_breakpoint (struct gdbarch *gdbarch,
8125 struct bp_target_info *bp_tgt)
8126{
8127 CORE_ADDR addr = bp_tgt->placed_address;
8128 struct remote_state *rs = get_remote_state ();
8129
8130 if (remote_protocol_packets[PACKET_Z0].support != PACKET_DISABLE)
8131 {
8132 char *p = rs->buf;
8133 char *endbuf = rs->buf + get_remote_packet_size ();
8134
8135 *(p++) = 'z';
8136 *(p++) = '0';
8137 *(p++) = ',';
8138
8139 addr = (ULONGEST) remote_address_masked (bp_tgt->placed_address);
8140 p += hexnumstr (p, addr);
8141 xsnprintf (p, endbuf - p, ",%d", bp_tgt->placed_size);
8142
8143 putpkt (rs->buf);
8144 getpkt (&rs->buf, &rs->buf_size, 0);
8145
8146 return (rs->buf[0] == 'E');
8147 }
8148
8149 return memory_remove_breakpoint (gdbarch, bp_tgt);
8150}
8151
8152static int
8153watchpoint_to_Z_packet (int type)
8154{
8155 switch (type)
8156 {
8157 case hw_write:
8158 return Z_PACKET_WRITE_WP;
8159 break;
8160 case hw_read:
8161 return Z_PACKET_READ_WP;
8162 break;
8163 case hw_access:
8164 return Z_PACKET_ACCESS_WP;
8165 break;
8166 default:
8167 internal_error (__FILE__, __LINE__,
8168 _("hw_bp_to_z: bad watchpoint type %d"), type);
8169 }
8170}
8171
8172static int
8173remote_insert_watchpoint (CORE_ADDR addr, int len, int type,
8174 struct expression *cond)
8175{
8176 struct remote_state *rs = get_remote_state ();
8177 char *endbuf = rs->buf + get_remote_packet_size ();
8178 char *p;
8179 enum Z_packet_type packet = watchpoint_to_Z_packet (type);
8180
8181 if (remote_protocol_packets[PACKET_Z0 + packet].support == PACKET_DISABLE)
8182 return 1;
8183
8184 xsnprintf (rs->buf, endbuf - rs->buf, "Z%x,", packet);
8185 p = strchr (rs->buf, '\0');
8186 addr = remote_address_masked (addr);
8187 p += hexnumstr (p, (ULONGEST) addr);
8188 xsnprintf (p, endbuf - p, ",%x", len);
8189
8190 putpkt (rs->buf);
8191 getpkt (&rs->buf, &rs->buf_size, 0);
8192
8193 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z0 + packet]))
8194 {
8195 case PACKET_ERROR:
8196 return -1;
8197 case PACKET_UNKNOWN:
8198 return 1;
8199 case PACKET_OK:
8200 return 0;
8201 }
8202 internal_error (__FILE__, __LINE__,
8203 _("remote_insert_watchpoint: reached end of function"));
8204}
8205
8206static int
8207remote_watchpoint_addr_within_range (struct target_ops *target, CORE_ADDR addr,
8208 CORE_ADDR start, int length)
8209{
8210 CORE_ADDR diff = remote_address_masked (addr - start);
8211
8212 return diff < length;
8213}
8214
8215
8216static int
8217remote_remove_watchpoint (CORE_ADDR addr, int len, int type,
8218 struct expression *cond)
8219{
8220 struct remote_state *rs = get_remote_state ();
8221 char *endbuf = rs->buf + get_remote_packet_size ();
8222 char *p;
8223 enum Z_packet_type packet = watchpoint_to_Z_packet (type);
8224
8225 if (remote_protocol_packets[PACKET_Z0 + packet].support == PACKET_DISABLE)
8226 return -1;
8227
8228 xsnprintf (rs->buf, endbuf - rs->buf, "z%x,", packet);
8229 p = strchr (rs->buf, '\0');
8230 addr = remote_address_masked (addr);
8231 p += hexnumstr (p, (ULONGEST) addr);
8232 xsnprintf (p, endbuf - p, ",%x", len);
8233 putpkt (rs->buf);
8234 getpkt (&rs->buf, &rs->buf_size, 0);
8235
8236 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z0 + packet]))
8237 {
8238 case PACKET_ERROR:
8239 case PACKET_UNKNOWN:
8240 return -1;
8241 case PACKET_OK:
8242 return 0;
8243 }
8244 internal_error (__FILE__, __LINE__,
8245 _("remote_remove_watchpoint: reached end of function"));
8246}
8247
8248
8249int remote_hw_watchpoint_limit = -1;
8250int remote_hw_watchpoint_length_limit = -1;
8251int remote_hw_breakpoint_limit = -1;
8252
8253static int
8254remote_region_ok_for_hw_watchpoint (CORE_ADDR addr, int len)
8255{
8256 if (remote_hw_watchpoint_length_limit == 0)
8257 return 0;
8258 else if (remote_hw_watchpoint_length_limit < 0)
8259 return 1;
8260 else if (len <= remote_hw_watchpoint_length_limit)
8261 return 1;
8262 else
8263 return 0;
8264}
8265
8266static int
8267remote_check_watch_resources (int type, int cnt, int ot)
8268{
8269 if (type == bp_hardware_breakpoint)
8270 {
8271 if (remote_hw_breakpoint_limit == 0)
8272 return 0;
8273 else if (remote_hw_breakpoint_limit < 0)
8274 return 1;
8275 else if (cnt <= remote_hw_breakpoint_limit)
8276 return 1;
8277 }
8278 else
8279 {
8280 if (remote_hw_watchpoint_limit == 0)
8281 return 0;
8282 else if (remote_hw_watchpoint_limit < 0)
8283 return 1;
8284 else if (ot)
8285 return -1;
8286 else if (cnt <= remote_hw_watchpoint_limit)
8287 return 1;
8288 }
8289 return -1;
8290}
8291
8292static int
8293remote_stopped_by_watchpoint (void)
8294{
8295 return remote_stopped_by_watchpoint_p;
8296}
8297
8298static int
8299remote_stopped_data_address (struct target_ops *target, CORE_ADDR *addr_p)
8300{
8301 int rc = 0;
8302
8303 if (remote_stopped_by_watchpoint ())
8304 {
8305 *addr_p = remote_watch_data_address;
8306 rc = 1;
8307 }
8308
8309 return rc;
8310}
8311
8312
8313static int
8314remote_insert_hw_breakpoint (struct gdbarch *gdbarch,
8315 struct bp_target_info *bp_tgt)
8316{
8317 CORE_ADDR addr;
8318 struct remote_state *rs;
8319 char *p, *endbuf;
8320 char *message;
8321
8322 /* The length field should be set to the size of a breakpoint
8323 instruction, even though we aren't inserting one ourselves. */
8324
8325 gdbarch_remote_breakpoint_from_pc
8326 (gdbarch, &bp_tgt->placed_address, &bp_tgt->placed_size);
8327
8328 if (remote_protocol_packets[PACKET_Z1].support == PACKET_DISABLE)
8329 return -1;
8330
8331 rs = get_remote_state ();
8332 p = rs->buf;
8333 endbuf = rs->buf + get_remote_packet_size ();
8334
8335 *(p++) = 'Z';
8336 *(p++) = '1';
8337 *(p++) = ',';
8338
8339 addr = remote_address_masked (bp_tgt->placed_address);
8340 p += hexnumstr (p, (ULONGEST) addr);
8341 xsnprintf (p, endbuf - p, ",%x", bp_tgt->placed_size);
8342
8343 if (remote_supports_cond_breakpoints ())
8344 remote_add_target_side_condition (gdbarch, bp_tgt, p, endbuf);
8345
8346 if (remote_can_run_breakpoint_commands ())
8347 remote_add_target_side_commands (gdbarch, bp_tgt, p);
8348
8349 putpkt (rs->buf);
8350 getpkt (&rs->buf, &rs->buf_size, 0);
8351
8352 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z1]))
8353 {
8354 case PACKET_ERROR:
8355 if (rs->buf[1] == '.')
8356 {
8357 message = strchr (rs->buf + 2, '.');
8358 if (message)
8359 error (_("Remote failure reply: %s"), message + 1);
8360 }
8361 return -1;
8362 case PACKET_UNKNOWN:
8363 return -1;
8364 case PACKET_OK:
8365 return 0;
8366 }
8367 internal_error (__FILE__, __LINE__,
8368 _("remote_insert_hw_breakpoint: reached end of function"));
8369}
8370
8371
8372static int
8373remote_remove_hw_breakpoint (struct gdbarch *gdbarch,
8374 struct bp_target_info *bp_tgt)
8375{
8376 CORE_ADDR addr;
8377 struct remote_state *rs = get_remote_state ();
8378 char *p = rs->buf;
8379 char *endbuf = rs->buf + get_remote_packet_size ();
8380
8381 if (remote_protocol_packets[PACKET_Z1].support == PACKET_DISABLE)
8382 return -1;
8383
8384 *(p++) = 'z';
8385 *(p++) = '1';
8386 *(p++) = ',';
8387
8388 addr = remote_address_masked (bp_tgt->placed_address);
8389 p += hexnumstr (p, (ULONGEST) addr);
8390 xsnprintf (p, endbuf - p, ",%x", bp_tgt->placed_size);
8391
8392 putpkt (rs->buf);
8393 getpkt (&rs->buf, &rs->buf_size, 0);
8394
8395 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z1]))
8396 {
8397 case PACKET_ERROR:
8398 case PACKET_UNKNOWN:
8399 return -1;
8400 case PACKET_OK:
8401 return 0;
8402 }
8403 internal_error (__FILE__, __LINE__,
8404 _("remote_remove_hw_breakpoint: reached end of function"));
8405}
8406
8407/* Table used by the crc32 function to calcuate the checksum. */
8408
8409static unsigned long crc32_table[256] =
8410{0, 0};
8411
8412static unsigned long
8413crc32 (const unsigned char *buf, int len, unsigned int crc)
8414{
8415 if (!crc32_table[1])
8416 {
8417 /* Initialize the CRC table and the decoding table. */
8418 int i, j;
8419 unsigned int c;
8420
8421 for (i = 0; i < 256; i++)
8422 {
8423 for (c = i << 24, j = 8; j > 0; --j)
8424 c = c & 0x80000000 ? (c << 1) ^ 0x04c11db7 : (c << 1);
8425 crc32_table[i] = c;
8426 }
8427 }
8428
8429 while (len--)
8430 {
8431 crc = (crc << 8) ^ crc32_table[((crc >> 24) ^ *buf) & 255];
8432 buf++;
8433 }
8434 return crc;
8435}
8436
8437/* Verify memory using the "qCRC:" request. */
8438
8439static int
8440remote_verify_memory (struct target_ops *ops,
8441 const gdb_byte *data, CORE_ADDR lma, ULONGEST size)
8442{
8443 struct remote_state *rs = get_remote_state ();
8444 unsigned long host_crc, target_crc;
8445 char *tmp;
8446
8447 /* FIXME: assumes lma can fit into long. */
8448 xsnprintf (rs->buf, get_remote_packet_size (), "qCRC:%lx,%lx",
8449 (long) lma, (long) size);
8450 putpkt (rs->buf);
8451
8452 /* Be clever; compute the host_crc before waiting for target
8453 reply. */
8454 host_crc = crc32 (data, size, 0xffffffff);
8455
8456 getpkt (&rs->buf, &rs->buf_size, 0);
8457 if (rs->buf[0] == 'E')
8458 return -1;
8459
8460 if (rs->buf[0] != 'C')
8461 error (_("remote target does not support this operation"));
8462
8463 for (target_crc = 0, tmp = &rs->buf[1]; *tmp; tmp++)
8464 target_crc = target_crc * 16 + fromhex (*tmp);
8465
8466 return (host_crc == target_crc);
8467}
8468
8469/* compare-sections command
8470
8471 With no arguments, compares each loadable section in the exec bfd
8472 with the same memory range on the target, and reports mismatches.
8473 Useful for verifying the image on the target against the exec file. */
8474
8475static void
8476compare_sections_command (char *args, int from_tty)
8477{
8478 asection *s;
8479 struct cleanup *old_chain;
8480 char *sectdata;
8481 const char *sectname;
8482 bfd_size_type size;
8483 bfd_vma lma;
8484 int matched = 0;
8485 int mismatched = 0;
8486 int res;
8487
8488 if (!exec_bfd)
8489 error (_("command cannot be used without an exec file"));
8490
8491 for (s = exec_bfd->sections; s; s = s->next)
8492 {
8493 if (!(s->flags & SEC_LOAD))
8494 continue; /* Skip non-loadable section. */
8495
8496 size = bfd_get_section_size (s);
8497 if (size == 0)
8498 continue; /* Skip zero-length section. */
8499
8500 sectname = bfd_get_section_name (exec_bfd, s);
8501 if (args && strcmp (args, sectname) != 0)
8502 continue; /* Not the section selected by user. */
8503
8504 matched = 1; /* Do this section. */
8505 lma = s->lma;
8506
8507 sectdata = xmalloc (size);
8508 old_chain = make_cleanup (xfree, sectdata);
8509 bfd_get_section_contents (exec_bfd, s, sectdata, 0, size);
8510
8511 res = target_verify_memory (sectdata, lma, size);
8512
8513 if (res == -1)
8514 error (_("target memory fault, section %s, range %s -- %s"), sectname,
8515 paddress (target_gdbarch (), lma),
8516 paddress (target_gdbarch (), lma + size));
8517
8518 printf_filtered ("Section %s, range %s -- %s: ", sectname,
8519 paddress (target_gdbarch (), lma),
8520 paddress (target_gdbarch (), lma + size));
8521 if (res)
8522 printf_filtered ("matched.\n");
8523 else
8524 {
8525 printf_filtered ("MIS-MATCHED!\n");
8526 mismatched++;
8527 }
8528
8529 do_cleanups (old_chain);
8530 }
8531 if (mismatched > 0)
8532 warning (_("One or more sections of the remote executable does not match\n\
8533the loaded file\n"));
8534 if (args && !matched)
8535 printf_filtered (_("No loaded section named '%s'.\n"), args);
8536}
8537
8538/* Write LEN bytes from WRITEBUF into OBJECT_NAME/ANNEX at OFFSET
8539 into remote target. The number of bytes written to the remote
8540 target is returned, or -1 for error. */
8541
8542static LONGEST
8543remote_write_qxfer (struct target_ops *ops, const char *object_name,
8544 const char *annex, const gdb_byte *writebuf,
8545 ULONGEST offset, LONGEST len,
8546 struct packet_config *packet)
8547{
8548 int i, buf_len;
8549 ULONGEST n;
8550 struct remote_state *rs = get_remote_state ();
8551 int max_size = get_memory_write_packet_size ();
8552
8553 if (packet->support == PACKET_DISABLE)
8554 return -1;
8555
8556 /* Insert header. */
8557 i = snprintf (rs->buf, max_size,
8558 "qXfer:%s:write:%s:%s:",
8559 object_name, annex ? annex : "",
8560 phex_nz (offset, sizeof offset));
8561 max_size -= (i + 1);
8562
8563 /* Escape as much data as fits into rs->buf. */
8564 buf_len = remote_escape_output
8565 (writebuf, len, (rs->buf + i), &max_size, max_size);
8566
8567 if (putpkt_binary (rs->buf, i + buf_len) < 0
8568 || getpkt_sane (&rs->buf, &rs->buf_size, 0) < 0
8569 || packet_ok (rs->buf, packet) != PACKET_OK)
8570 return -1;
8571
8572 unpack_varlen_hex (rs->buf, &n);
8573 return n;
8574}
8575
8576/* Read OBJECT_NAME/ANNEX from the remote target using a qXfer packet.
8577 Data at OFFSET, of up to LEN bytes, is read into READBUF; the
8578 number of bytes read is returned, or 0 for EOF, or -1 for error.
8579 The number of bytes read may be less than LEN without indicating an
8580 EOF. PACKET is checked and updated to indicate whether the remote
8581 target supports this object. */
8582
8583static LONGEST
8584remote_read_qxfer (struct target_ops *ops, const char *object_name,
8585 const char *annex,
8586 gdb_byte *readbuf, ULONGEST offset, LONGEST len,
8587 struct packet_config *packet)
8588{
8589 static char *finished_object;
8590 static char *finished_annex;
8591 static ULONGEST finished_offset;
8592
8593 struct remote_state *rs = get_remote_state ();
8594 LONGEST i, n, packet_len;
8595
8596 if (packet->support == PACKET_DISABLE)
8597 return -1;
8598
8599 /* Check whether we've cached an end-of-object packet that matches
8600 this request. */
8601 if (finished_object)
8602 {
8603 if (strcmp (object_name, finished_object) == 0
8604 && strcmp (annex ? annex : "", finished_annex) == 0
8605 && offset == finished_offset)
8606 return 0;
8607
8608 /* Otherwise, we're now reading something different. Discard
8609 the cache. */
8610 xfree (finished_object);
8611 xfree (finished_annex);
8612 finished_object = NULL;
8613 finished_annex = NULL;
8614 }
8615
8616 /* Request only enough to fit in a single packet. The actual data
8617 may not, since we don't know how much of it will need to be escaped;
8618 the target is free to respond with slightly less data. We subtract
8619 five to account for the response type and the protocol frame. */
8620 n = min (get_remote_packet_size () - 5, len);
8621 snprintf (rs->buf, get_remote_packet_size () - 4, "qXfer:%s:read:%s:%s,%s",
8622 object_name, annex ? annex : "",
8623 phex_nz (offset, sizeof offset),
8624 phex_nz (n, sizeof n));
8625 i = putpkt (rs->buf);
8626 if (i < 0)
8627 return -1;
8628
8629 rs->buf[0] = '\0';
8630 packet_len = getpkt_sane (&rs->buf, &rs->buf_size, 0);
8631 if (packet_len < 0 || packet_ok (rs->buf, packet) != PACKET_OK)
8632 return -1;
8633
8634 if (rs->buf[0] != 'l' && rs->buf[0] != 'm')
8635 error (_("Unknown remote qXfer reply: %s"), rs->buf);
8636
8637 /* 'm' means there is (or at least might be) more data after this
8638 batch. That does not make sense unless there's at least one byte
8639 of data in this reply. */
8640 if (rs->buf[0] == 'm' && packet_len == 1)
8641 error (_("Remote qXfer reply contained no data."));
8642
8643 /* Got some data. */
8644 i = remote_unescape_input (rs->buf + 1, packet_len - 1, readbuf, n);
8645
8646 /* 'l' is an EOF marker, possibly including a final block of data,
8647 or possibly empty. If we have the final block of a non-empty
8648 object, record this fact to bypass a subsequent partial read. */
8649 if (rs->buf[0] == 'l' && offset + i > 0)
8650 {
8651 finished_object = xstrdup (object_name);
8652 finished_annex = xstrdup (annex ? annex : "");
8653 finished_offset = offset + i;
8654 }
8655
8656 return i;
8657}
8658
8659static LONGEST
8660remote_xfer_partial (struct target_ops *ops, enum target_object object,
8661 const char *annex, gdb_byte *readbuf,
8662 const gdb_byte *writebuf, ULONGEST offset, LONGEST len)
8663{
8664 struct remote_state *rs;
8665 int i;
8666 char *p2;
8667 char query_type;
8668
8669 set_remote_traceframe ();
8670 set_general_thread (inferior_ptid);
8671
8672 rs = get_remote_state ();
8673
8674 /* Handle memory using the standard memory routines. */
8675 if (object == TARGET_OBJECT_MEMORY)
8676 {
8677 int xfered;
8678
8679 errno = 0;
8680
8681 /* If the remote target is connected but not running, we should
8682 pass this request down to a lower stratum (e.g. the executable
8683 file). */
8684 if (!target_has_execution)
8685 return 0;
8686
8687 if (writebuf != NULL)
8688 xfered = remote_write_bytes (offset, writebuf, len);
8689 else
8690 xfered = remote_read_bytes (offset, readbuf, len);
8691
8692 if (xfered > 0)
8693 return xfered;
8694 else if (xfered == 0 && errno == 0)
8695 return 0;
8696 else
8697 return -1;
8698 }
8699
8700 /* Handle SPU memory using qxfer packets. */
8701 if (object == TARGET_OBJECT_SPU)
8702 {
8703 if (readbuf)
8704 return remote_read_qxfer (ops, "spu", annex, readbuf, offset, len,
8705 &remote_protocol_packets
8706 [PACKET_qXfer_spu_read]);
8707 else
8708 return remote_write_qxfer (ops, "spu", annex, writebuf, offset, len,
8709 &remote_protocol_packets
8710 [PACKET_qXfer_spu_write]);
8711 }
8712
8713 /* Handle extra signal info using qxfer packets. */
8714 if (object == TARGET_OBJECT_SIGNAL_INFO)
8715 {
8716 if (readbuf)
8717 return remote_read_qxfer (ops, "siginfo", annex, readbuf, offset, len,
8718 &remote_protocol_packets
8719 [PACKET_qXfer_siginfo_read]);
8720 else
8721 return remote_write_qxfer (ops, "siginfo", annex,
8722 writebuf, offset, len,
8723 &remote_protocol_packets
8724 [PACKET_qXfer_siginfo_write]);
8725 }
8726
8727 if (object == TARGET_OBJECT_STATIC_TRACE_DATA)
8728 {
8729 if (readbuf)
8730 return remote_read_qxfer (ops, "statictrace", annex,
8731 readbuf, offset, len,
8732 &remote_protocol_packets
8733 [PACKET_qXfer_statictrace_read]);
8734 else
8735 return -1;
8736 }
8737
8738 /* Only handle flash writes. */
8739 if (writebuf != NULL)
8740 {
8741 LONGEST xfered;
8742
8743 switch (object)
8744 {
8745 case TARGET_OBJECT_FLASH:
8746 xfered = remote_flash_write (ops, offset, len, writebuf);
8747
8748 if (xfered > 0)
8749 return xfered;
8750 else if (xfered == 0 && errno == 0)
8751 return 0;
8752 else
8753 return -1;
8754
8755 default:
8756 return -1;
8757 }
8758 }
8759
8760 /* Map pre-existing objects onto letters. DO NOT do this for new
8761 objects!!! Instead specify new query packets. */
8762 switch (object)
8763 {
8764 case TARGET_OBJECT_AVR:
8765 query_type = 'R';
8766 break;
8767
8768 case TARGET_OBJECT_AUXV:
8769 gdb_assert (annex == NULL);
8770 return remote_read_qxfer (ops, "auxv", annex, readbuf, offset, len,
8771 &remote_protocol_packets[PACKET_qXfer_auxv]);
8772
8773 case TARGET_OBJECT_AVAILABLE_FEATURES:
8774 return remote_read_qxfer
8775 (ops, "features", annex, readbuf, offset, len,
8776 &remote_protocol_packets[PACKET_qXfer_features]);
8777
8778 case TARGET_OBJECT_LIBRARIES:
8779 return remote_read_qxfer
8780 (ops, "libraries", annex, readbuf, offset, len,
8781 &remote_protocol_packets[PACKET_qXfer_libraries]);
8782
8783 case TARGET_OBJECT_LIBRARIES_SVR4:
8784 return remote_read_qxfer
8785 (ops, "libraries-svr4", annex, readbuf, offset, len,
8786 &remote_protocol_packets[PACKET_qXfer_libraries_svr4]);
8787
8788 case TARGET_OBJECT_MEMORY_MAP:
8789 gdb_assert (annex == NULL);
8790 return remote_read_qxfer (ops, "memory-map", annex, readbuf, offset, len,
8791 &remote_protocol_packets[PACKET_qXfer_memory_map]);
8792
8793 case TARGET_OBJECT_OSDATA:
8794 /* Should only get here if we're connected. */
8795 gdb_assert (remote_desc);
8796 return remote_read_qxfer
8797 (ops, "osdata", annex, readbuf, offset, len,
8798 &remote_protocol_packets[PACKET_qXfer_osdata]);
8799
8800 case TARGET_OBJECT_THREADS:
8801 gdb_assert (annex == NULL);
8802 return remote_read_qxfer (ops, "threads", annex, readbuf, offset, len,
8803 &remote_protocol_packets[PACKET_qXfer_threads]);
8804
8805 case TARGET_OBJECT_TRACEFRAME_INFO:
8806 gdb_assert (annex == NULL);
8807 return remote_read_qxfer
8808 (ops, "traceframe-info", annex, readbuf, offset, len,
8809 &remote_protocol_packets[PACKET_qXfer_traceframe_info]);
8810
8811 case TARGET_OBJECT_FDPIC:
8812 return remote_read_qxfer (ops, "fdpic", annex, readbuf, offset, len,
8813 &remote_protocol_packets[PACKET_qXfer_fdpic]);
8814
8815 case TARGET_OBJECT_OPENVMS_UIB:
8816 return remote_read_qxfer (ops, "uib", annex, readbuf, offset, len,
8817 &remote_protocol_packets[PACKET_qXfer_uib]);
8818
8819 case TARGET_OBJECT_BTRACE:
8820 return remote_read_qxfer (ops, "btrace", annex, readbuf, offset, len,
8821 &remote_protocol_packets[PACKET_qXfer_btrace]);
8822
8823 default:
8824 return -1;
8825 }
8826
8827 /* Note: a zero OFFSET and LEN can be used to query the minimum
8828 buffer size. */
8829 if (offset == 0 && len == 0)
8830 return (get_remote_packet_size ());
8831 /* Minimum outbuf size is get_remote_packet_size (). If LEN is not
8832 large enough let the caller deal with it. */
8833 if (len < get_remote_packet_size ())
8834 return -1;
8835 len = get_remote_packet_size ();
8836
8837 /* Except for querying the minimum buffer size, target must be open. */
8838 if (!remote_desc)
8839 error (_("remote query is only available after target open"));
8840
8841 gdb_assert (annex != NULL);
8842 gdb_assert (readbuf != NULL);
8843
8844 p2 = rs->buf;
8845 *p2++ = 'q';
8846 *p2++ = query_type;
8847
8848 /* We used one buffer char for the remote protocol q command and
8849 another for the query type. As the remote protocol encapsulation
8850 uses 4 chars plus one extra in case we are debugging
8851 (remote_debug), we have PBUFZIZ - 7 left to pack the query
8852 string. */
8853 i = 0;
8854 while (annex[i] && (i < (get_remote_packet_size () - 8)))
8855 {
8856 /* Bad caller may have sent forbidden characters. */
8857 gdb_assert (isprint (annex[i]) && annex[i] != '$' && annex[i] != '#');
8858 *p2++ = annex[i];
8859 i++;
8860 }
8861 *p2 = '\0';
8862 gdb_assert (annex[i] == '\0');
8863
8864 i = putpkt (rs->buf);
8865 if (i < 0)
8866 return i;
8867
8868 getpkt (&rs->buf, &rs->buf_size, 0);
8869 strcpy ((char *) readbuf, rs->buf);
8870
8871 return strlen ((char *) readbuf);
8872}
8873
8874static int
8875remote_search_memory (struct target_ops* ops,
8876 CORE_ADDR start_addr, ULONGEST search_space_len,
8877 const gdb_byte *pattern, ULONGEST pattern_len,
8878 CORE_ADDR *found_addrp)
8879{
8880 int addr_size = gdbarch_addr_bit (target_gdbarch ()) / 8;
8881 struct remote_state *rs = get_remote_state ();
8882 int max_size = get_memory_write_packet_size ();
8883 struct packet_config *packet =
8884 &remote_protocol_packets[PACKET_qSearch_memory];
8885 /* Number of packet bytes used to encode the pattern;
8886 this could be more than PATTERN_LEN due to escape characters. */
8887 int escaped_pattern_len;
8888 /* Amount of pattern that was encodable in the packet. */
8889 int used_pattern_len;
8890 int i;
8891 int found;
8892 ULONGEST found_addr;
8893
8894 /* Don't go to the target if we don't have to.
8895 This is done before checking packet->support to avoid the possibility that
8896 a success for this edge case means the facility works in general. */
8897 if (pattern_len > search_space_len)
8898 return 0;
8899 if (pattern_len == 0)
8900 {
8901 *found_addrp = start_addr;
8902 return 1;
8903 }
8904
8905 /* If we already know the packet isn't supported, fall back to the simple
8906 way of searching memory. */
8907
8908 if (packet->support == PACKET_DISABLE)
8909 {
8910 /* Target doesn't provided special support, fall back and use the
8911 standard support (copy memory and do the search here). */
8912 return simple_search_memory (ops, start_addr, search_space_len,
8913 pattern, pattern_len, found_addrp);
8914 }
8915
8916 /* Insert header. */
8917 i = snprintf (rs->buf, max_size,
8918 "qSearch:memory:%s;%s;",
8919 phex_nz (start_addr, addr_size),
8920 phex_nz (search_space_len, sizeof (search_space_len)));
8921 max_size -= (i + 1);
8922
8923 /* Escape as much data as fits into rs->buf. */
8924 escaped_pattern_len =
8925 remote_escape_output (pattern, pattern_len, (rs->buf + i),
8926 &used_pattern_len, max_size);
8927
8928 /* Bail if the pattern is too large. */
8929 if (used_pattern_len != pattern_len)
8930 error (_("Pattern is too large to transmit to remote target."));
8931
8932 if (putpkt_binary (rs->buf, i + escaped_pattern_len) < 0
8933 || getpkt_sane (&rs->buf, &rs->buf_size, 0) < 0
8934 || packet_ok (rs->buf, packet) != PACKET_OK)
8935 {
8936 /* The request may not have worked because the command is not
8937 supported. If so, fall back to the simple way. */
8938 if (packet->support == PACKET_DISABLE)
8939 {
8940 return simple_search_memory (ops, start_addr, search_space_len,
8941 pattern, pattern_len, found_addrp);
8942 }
8943 return -1;
8944 }
8945
8946 if (rs->buf[0] == '0')
8947 found = 0;
8948 else if (rs->buf[0] == '1')
8949 {
8950 found = 1;
8951 if (rs->buf[1] != ',')
8952 error (_("Unknown qSearch:memory reply: %s"), rs->buf);
8953 unpack_varlen_hex (rs->buf + 2, &found_addr);
8954 *found_addrp = found_addr;
8955 }
8956 else
8957 error (_("Unknown qSearch:memory reply: %s"), rs->buf);
8958
8959 return found;
8960}
8961
8962static void
8963remote_rcmd (char *command,
8964 struct ui_file *outbuf)
8965{
8966 struct remote_state *rs = get_remote_state ();
8967 char *p = rs->buf;
8968
8969 if (!remote_desc)
8970 error (_("remote rcmd is only available after target open"));
8971
8972 /* Send a NULL command across as an empty command. */
8973 if (command == NULL)
8974 command = "";
8975
8976 /* The query prefix. */
8977 strcpy (rs->buf, "qRcmd,");
8978 p = strchr (rs->buf, '\0');
8979
8980 if ((strlen (rs->buf) + strlen (command) * 2 + 8/*misc*/)
8981 > get_remote_packet_size ())
8982 error (_("\"monitor\" command ``%s'' is too long."), command);
8983
8984 /* Encode the actual command. */
8985 bin2hex ((gdb_byte *) command, p, 0);
8986
8987 if (putpkt (rs->buf) < 0)
8988 error (_("Communication problem with target."));
8989
8990 /* get/display the response */
8991 while (1)
8992 {
8993 char *buf;
8994
8995 /* XXX - see also remote_get_noisy_reply(). */
8996 QUIT; /* Allow user to bail out with ^C. */
8997 rs->buf[0] = '\0';
8998 if (getpkt_sane (&rs->buf, &rs->buf_size, 0) == -1)
8999 {
9000 /* Timeout. Continue to (try to) read responses.
9001 This is better than stopping with an error, assuming the stub
9002 is still executing the (long) monitor command.
9003 If needed, the user can interrupt gdb using C-c, obtaining
9004 an effect similar to stop on timeout. */
9005 continue;
9006 }
9007 buf = rs->buf;
9008 if (buf[0] == '\0')
9009 error (_("Target does not support this command."));
9010 if (buf[0] == 'O' && buf[1] != 'K')
9011 {
9012 remote_console_output (buf + 1); /* 'O' message from stub. */
9013 continue;
9014 }
9015 if (strcmp (buf, "OK") == 0)
9016 break;
9017 if (strlen (buf) == 3 && buf[0] == 'E'
9018 && isdigit (buf[1]) && isdigit (buf[2]))
9019 {
9020 error (_("Protocol error with Rcmd"));
9021 }
9022 for (p = buf; p[0] != '\0' && p[1] != '\0'; p += 2)
9023 {
9024 char c = (fromhex (p[0]) << 4) + fromhex (p[1]);
9025
9026 fputc_unfiltered (c, outbuf);
9027 }
9028 break;
9029 }
9030}
9031
9032static VEC(mem_region_s) *
9033remote_memory_map (struct target_ops *ops)
9034{
9035 VEC(mem_region_s) *result = NULL;
9036 char *text = target_read_stralloc (&current_target,
9037 TARGET_OBJECT_MEMORY_MAP, NULL);
9038
9039 if (text)
9040 {
9041 struct cleanup *back_to = make_cleanup (xfree, text);
9042
9043 result = parse_memory_map (text);
9044 do_cleanups (back_to);
9045 }
9046
9047 return result;
9048}
9049
9050static void
9051packet_command (char *args, int from_tty)
9052{
9053 struct remote_state *rs = get_remote_state ();
9054
9055 if (!remote_desc)
9056 error (_("command can only be used with remote target"));
9057
9058 if (!args)
9059 error (_("remote-packet command requires packet text as argument"));
9060
9061 puts_filtered ("sending: ");
9062 print_packet (args);
9063 puts_filtered ("\n");
9064 putpkt (args);
9065
9066 getpkt (&rs->buf, &rs->buf_size, 0);
9067 puts_filtered ("received: ");
9068 print_packet (rs->buf);
9069 puts_filtered ("\n");
9070}
9071
9072#if 0
9073/* --------- UNIT_TEST for THREAD oriented PACKETS ------------------- */
9074
9075static void display_thread_info (struct gdb_ext_thread_info *info);
9076
9077static void threadset_test_cmd (char *cmd, int tty);
9078
9079static void threadalive_test (char *cmd, int tty);
9080
9081static void threadlist_test_cmd (char *cmd, int tty);
9082
9083int get_and_display_threadinfo (threadref *ref);
9084
9085static void threadinfo_test_cmd (char *cmd, int tty);
9086
9087static int thread_display_step (threadref *ref, void *context);
9088
9089static void threadlist_update_test_cmd (char *cmd, int tty);
9090
9091static void init_remote_threadtests (void);
9092
9093#define SAMPLE_THREAD 0x05060708 /* Truncated 64 bit threadid. */
9094
9095static void
9096threadset_test_cmd (char *cmd, int tty)
9097{
9098 int sample_thread = SAMPLE_THREAD;
9099
9100 printf_filtered (_("Remote threadset test\n"));
9101 set_general_thread (sample_thread);
9102}
9103
9104
9105static void
9106threadalive_test (char *cmd, int tty)
9107{
9108 int sample_thread = SAMPLE_THREAD;
9109 int pid = ptid_get_pid (inferior_ptid);
9110 ptid_t ptid = ptid_build (pid, 0, sample_thread);
9111
9112 if (remote_thread_alive (ptid))
9113 printf_filtered ("PASS: Thread alive test\n");
9114 else
9115 printf_filtered ("FAIL: Thread alive test\n");
9116}
9117
9118void output_threadid (char *title, threadref *ref);
9119
9120void
9121output_threadid (char *title, threadref *ref)
9122{
9123 char hexid[20];
9124
9125 pack_threadid (&hexid[0], ref); /* Convert threead id into hex. */
9126 hexid[16] = 0;
9127 printf_filtered ("%s %s\n", title, (&hexid[0]));
9128}
9129
9130static void
9131threadlist_test_cmd (char *cmd, int tty)
9132{
9133 int startflag = 1;
9134 threadref nextthread;
9135 int done, result_count;
9136 threadref threadlist[3];
9137
9138 printf_filtered ("Remote Threadlist test\n");
9139 if (!remote_get_threadlist (startflag, &nextthread, 3, &done,
9140 &result_count, &threadlist[0]))
9141 printf_filtered ("FAIL: threadlist test\n");
9142 else
9143 {
9144 threadref *scan = threadlist;
9145 threadref *limit = scan + result_count;
9146
9147 while (scan < limit)
9148 output_threadid (" thread ", scan++);
9149 }
9150}
9151
9152void
9153display_thread_info (struct gdb_ext_thread_info *info)
9154{
9155 output_threadid ("Threadid: ", &info->threadid);
9156 printf_filtered ("Name: %s\n ", info->shortname);
9157 printf_filtered ("State: %s\n", info->display);
9158 printf_filtered ("other: %s\n\n", info->more_display);
9159}
9160
9161int
9162get_and_display_threadinfo (threadref *ref)
9163{
9164 int result;
9165 int set;
9166 struct gdb_ext_thread_info threadinfo;
9167
9168 set = TAG_THREADID | TAG_EXISTS | TAG_THREADNAME
9169 | TAG_MOREDISPLAY | TAG_DISPLAY;
9170 if (0 != (result = remote_get_threadinfo (ref, set, &threadinfo)))
9171 display_thread_info (&threadinfo);
9172 return result;
9173}
9174
9175static void
9176threadinfo_test_cmd (char *cmd, int tty)
9177{
9178 int athread = SAMPLE_THREAD;
9179 threadref thread;
9180 int set;
9181
9182 int_to_threadref (&thread, athread);
9183 printf_filtered ("Remote Threadinfo test\n");
9184 if (!get_and_display_threadinfo (&thread))
9185 printf_filtered ("FAIL cannot get thread info\n");
9186}
9187
9188static int
9189thread_display_step (threadref *ref, void *context)
9190{
9191 /* output_threadid(" threadstep ",ref); *//* simple test */
9192 return get_and_display_threadinfo (ref);
9193}
9194
9195static void
9196threadlist_update_test_cmd (char *cmd, int tty)
9197{
9198 printf_filtered ("Remote Threadlist update test\n");
9199 remote_threadlist_iterator (thread_display_step, 0, CRAZY_MAX_THREADS);
9200}
9201
9202static void
9203init_remote_threadtests (void)
9204{
9205 add_com ("tlist", class_obscure, threadlist_test_cmd,
9206 _("Fetch and print the remote list of "
9207 "thread identifiers, one pkt only"));
9208 add_com ("tinfo", class_obscure, threadinfo_test_cmd,
9209 _("Fetch and display info about one thread"));
9210 add_com ("tset", class_obscure, threadset_test_cmd,
9211 _("Test setting to a different thread"));
9212 add_com ("tupd", class_obscure, threadlist_update_test_cmd,
9213 _("Iterate through updating all remote thread info"));
9214 add_com ("talive", class_obscure, threadalive_test,
9215 _(" Remote thread alive test "));
9216}
9217
9218#endif /* 0 */
9219
9220/* Convert a thread ID to a string. Returns the string in a static
9221 buffer. */
9222
9223static char *
9224remote_pid_to_str (struct target_ops *ops, ptid_t ptid)
9225{
9226 static char buf[64];
9227 struct remote_state *rs = get_remote_state ();
9228
9229 if (ptid_equal (ptid, null_ptid))
9230 return normal_pid_to_str (ptid);
9231 else if (ptid_is_pid (ptid))
9232 {
9233 /* Printing an inferior target id. */
9234
9235 /* When multi-process extensions are off, there's no way in the
9236 remote protocol to know the remote process id, if there's any
9237 at all. There's one exception --- when we're connected with
9238 target extended-remote, and we manually attached to a process
9239 with "attach PID". We don't record anywhere a flag that
9240 allows us to distinguish that case from the case of
9241 connecting with extended-remote and the stub already being
9242 attached to a process, and reporting yes to qAttached, hence
9243 no smart special casing here. */
9244 if (!remote_multi_process_p (rs))
9245 {
9246 xsnprintf (buf, sizeof buf, "Remote target");
9247 return buf;
9248 }
9249
9250 return normal_pid_to_str (ptid);
9251 }
9252 else
9253 {
9254 if (ptid_equal (magic_null_ptid, ptid))
9255 xsnprintf (buf, sizeof buf, "Thread <main>");
9256 else if (rs->extended && remote_multi_process_p (rs))
9257 xsnprintf (buf, sizeof buf, "Thread %d.%ld",
9258 ptid_get_pid (ptid), ptid_get_tid (ptid));
9259 else
9260 xsnprintf (buf, sizeof buf, "Thread %ld",
9261 ptid_get_tid (ptid));
9262 return buf;
9263 }
9264}
9265
9266/* Get the address of the thread local variable in OBJFILE which is
9267 stored at OFFSET within the thread local storage for thread PTID. */
9268
9269static CORE_ADDR
9270remote_get_thread_local_address (struct target_ops *ops,
9271 ptid_t ptid, CORE_ADDR lm, CORE_ADDR offset)
9272{
9273 if (remote_protocol_packets[PACKET_qGetTLSAddr].support != PACKET_DISABLE)
9274 {
9275 struct remote_state *rs = get_remote_state ();
9276 char *p = rs->buf;
9277 char *endp = rs->buf + get_remote_packet_size ();
9278 enum packet_result result;
9279
9280 strcpy (p, "qGetTLSAddr:");
9281 p += strlen (p);
9282 p = write_ptid (p, endp, ptid);
9283 *p++ = ',';
9284 p += hexnumstr (p, offset);
9285 *p++ = ',';
9286 p += hexnumstr (p, lm);
9287 *p++ = '\0';
9288
9289 putpkt (rs->buf);
9290 getpkt (&rs->buf, &rs->buf_size, 0);
9291 result = packet_ok (rs->buf,
9292 &remote_protocol_packets[PACKET_qGetTLSAddr]);
9293 if (result == PACKET_OK)
9294 {
9295 ULONGEST result;
9296
9297 unpack_varlen_hex (rs->buf, &result);
9298 return result;
9299 }
9300 else if (result == PACKET_UNKNOWN)
9301 throw_error (TLS_GENERIC_ERROR,
9302 _("Remote target doesn't support qGetTLSAddr packet"));
9303 else
9304 throw_error (TLS_GENERIC_ERROR,
9305 _("Remote target failed to process qGetTLSAddr request"));
9306 }
9307 else
9308 throw_error (TLS_GENERIC_ERROR,
9309 _("TLS not supported or disabled on this target"));
9310 /* Not reached. */
9311 return 0;
9312}
9313
9314/* Provide thread local base, i.e. Thread Information Block address.
9315 Returns 1 if ptid is found and thread_local_base is non zero. */
9316
9317static int
9318remote_get_tib_address (ptid_t ptid, CORE_ADDR *addr)
9319{
9320 if (remote_protocol_packets[PACKET_qGetTIBAddr].support != PACKET_DISABLE)
9321 {
9322 struct remote_state *rs = get_remote_state ();
9323 char *p = rs->buf;
9324 char *endp = rs->buf + get_remote_packet_size ();
9325 enum packet_result result;
9326
9327 strcpy (p, "qGetTIBAddr:");
9328 p += strlen (p);
9329 p = write_ptid (p, endp, ptid);
9330 *p++ = '\0';
9331
9332 putpkt (rs->buf);
9333 getpkt (&rs->buf, &rs->buf_size, 0);
9334 result = packet_ok (rs->buf,
9335 &remote_protocol_packets[PACKET_qGetTIBAddr]);
9336 if (result == PACKET_OK)
9337 {
9338 ULONGEST result;
9339
9340 unpack_varlen_hex (rs->buf, &result);
9341 if (addr)
9342 *addr = (CORE_ADDR) result;
9343 return 1;
9344 }
9345 else if (result == PACKET_UNKNOWN)
9346 error (_("Remote target doesn't support qGetTIBAddr packet"));
9347 else
9348 error (_("Remote target failed to process qGetTIBAddr request"));
9349 }
9350 else
9351 error (_("qGetTIBAddr not supported or disabled on this target"));
9352 /* Not reached. */
9353 return 0;
9354}
9355
9356/* Support for inferring a target description based on the current
9357 architecture and the size of a 'g' packet. While the 'g' packet
9358 can have any size (since optional registers can be left off the
9359 end), some sizes are easily recognizable given knowledge of the
9360 approximate architecture. */
9361
9362struct remote_g_packet_guess
9363{
9364 int bytes;
9365 const struct target_desc *tdesc;
9366};
9367typedef struct remote_g_packet_guess remote_g_packet_guess_s;
9368DEF_VEC_O(remote_g_packet_guess_s);
9369
9370struct remote_g_packet_data
9371{
9372 VEC(remote_g_packet_guess_s) *guesses;
9373};
9374
9375static struct gdbarch_data *remote_g_packet_data_handle;
9376
9377static void *
9378remote_g_packet_data_init (struct obstack *obstack)
9379{
9380 return OBSTACK_ZALLOC (obstack, struct remote_g_packet_data);
9381}
9382
9383void
9384register_remote_g_packet_guess (struct gdbarch *gdbarch, int bytes,
9385 const struct target_desc *tdesc)
9386{
9387 struct remote_g_packet_data *data
9388 = gdbarch_data (gdbarch, remote_g_packet_data_handle);
9389 struct remote_g_packet_guess new_guess, *guess;
9390 int ix;
9391
9392 gdb_assert (tdesc != NULL);
9393
9394 for (ix = 0;
9395 VEC_iterate (remote_g_packet_guess_s, data->guesses, ix, guess);
9396 ix++)
9397 if (guess->bytes == bytes)
9398 internal_error (__FILE__, __LINE__,
9399 _("Duplicate g packet description added for size %d"),
9400 bytes);
9401
9402 new_guess.bytes = bytes;
9403 new_guess.tdesc = tdesc;
9404 VEC_safe_push (remote_g_packet_guess_s, data->guesses, &new_guess);
9405}
9406
9407/* Return 1 if remote_read_description would do anything on this target
9408 and architecture, 0 otherwise. */
9409
9410static int
9411remote_read_description_p (struct target_ops *target)
9412{
9413 struct remote_g_packet_data *data
9414 = gdbarch_data (target_gdbarch (), remote_g_packet_data_handle);
9415
9416 if (!VEC_empty (remote_g_packet_guess_s, data->guesses))
9417 return 1;
9418
9419 return 0;
9420}
9421
9422static const struct target_desc *
9423remote_read_description (struct target_ops *target)
9424{
9425 struct remote_g_packet_data *data
9426 = gdbarch_data (target_gdbarch (), remote_g_packet_data_handle);
9427
9428 /* Do not try this during initial connection, when we do not know
9429 whether there is a running but stopped thread. */
9430 if (!target_has_execution || ptid_equal (inferior_ptid, null_ptid))
9431 return NULL;
9432
9433 if (!VEC_empty (remote_g_packet_guess_s, data->guesses))
9434 {
9435 struct remote_g_packet_guess *guess;
9436 int ix;
9437 int bytes = send_g_packet ();
9438
9439 for (ix = 0;
9440 VEC_iterate (remote_g_packet_guess_s, data->guesses, ix, guess);
9441 ix++)
9442 if (guess->bytes == bytes)
9443 return guess->tdesc;
9444
9445 /* We discard the g packet. A minor optimization would be to
9446 hold on to it, and fill the register cache once we have selected
9447 an architecture, but it's too tricky to do safely. */
9448 }
9449
9450 return NULL;
9451}
9452
9453/* Remote file transfer support. This is host-initiated I/O, not
9454 target-initiated; for target-initiated, see remote-fileio.c. */
9455
9456/* If *LEFT is at least the length of STRING, copy STRING to
9457 *BUFFER, update *BUFFER to point to the new end of the buffer, and
9458 decrease *LEFT. Otherwise raise an error. */
9459
9460static void
9461remote_buffer_add_string (char **buffer, int *left, char *string)
9462{
9463 int len = strlen (string);
9464
9465 if (len > *left)
9466 error (_("Packet too long for target."));
9467
9468 memcpy (*buffer, string, len);
9469 *buffer += len;
9470 *left -= len;
9471
9472 /* NUL-terminate the buffer as a convenience, if there is
9473 room. */
9474 if (*left)
9475 **buffer = '\0';
9476}
9477
9478/* If *LEFT is large enough, hex encode LEN bytes from BYTES into
9479 *BUFFER, update *BUFFER to point to the new end of the buffer, and
9480 decrease *LEFT. Otherwise raise an error. */
9481
9482static void
9483remote_buffer_add_bytes (char **buffer, int *left, const gdb_byte *bytes,
9484 int len)
9485{
9486 if (2 * len > *left)
9487 error (_("Packet too long for target."));
9488
9489 bin2hex (bytes, *buffer, len);
9490 *buffer += 2 * len;
9491 *left -= 2 * len;
9492
9493 /* NUL-terminate the buffer as a convenience, if there is
9494 room. */
9495 if (*left)
9496 **buffer = '\0';
9497}
9498
9499/* If *LEFT is large enough, convert VALUE to hex and add it to
9500 *BUFFER, update *BUFFER to point to the new end of the buffer, and
9501 decrease *LEFT. Otherwise raise an error. */
9502
9503static void
9504remote_buffer_add_int (char **buffer, int *left, ULONGEST value)
9505{
9506 int len = hexnumlen (value);
9507
9508 if (len > *left)
9509 error (_("Packet too long for target."));
9510
9511 hexnumstr (*buffer, value);
9512 *buffer += len;
9513 *left -= len;
9514
9515 /* NUL-terminate the buffer as a convenience, if there is
9516 room. */
9517 if (*left)
9518 **buffer = '\0';
9519}
9520
9521/* Parse an I/O result packet from BUFFER. Set RETCODE to the return
9522 value, *REMOTE_ERRNO to the remote error number or zero if none
9523 was included, and *ATTACHMENT to point to the start of the annex
9524 if any. The length of the packet isn't needed here; there may
9525 be NUL bytes in BUFFER, but they will be after *ATTACHMENT.
9526
9527 Return 0 if the packet could be parsed, -1 if it could not. If
9528 -1 is returned, the other variables may not be initialized. */
9529
9530static int
9531remote_hostio_parse_result (char *buffer, int *retcode,
9532 int *remote_errno, char **attachment)
9533{
9534 char *p, *p2;
9535
9536 *remote_errno = 0;
9537 *attachment = NULL;
9538
9539 if (buffer[0] != 'F')
9540 return -1;
9541
9542 errno = 0;
9543 *retcode = strtol (&buffer[1], &p, 16);
9544 if (errno != 0 || p == &buffer[1])
9545 return -1;
9546
9547 /* Check for ",errno". */
9548 if (*p == ',')
9549 {
9550 errno = 0;
9551 *remote_errno = strtol (p + 1, &p2, 16);
9552 if (errno != 0 || p + 1 == p2)
9553 return -1;
9554 p = p2;
9555 }
9556
9557 /* Check for ";attachment". If there is no attachment, the
9558 packet should end here. */
9559 if (*p == ';')
9560 {
9561 *attachment = p + 1;
9562 return 0;
9563 }
9564 else if (*p == '\0')
9565 return 0;
9566 else
9567 return -1;
9568}
9569
9570/* Send a prepared I/O packet to the target and read its response.
9571 The prepared packet is in the global RS->BUF before this function
9572 is called, and the answer is there when we return.
9573
9574 COMMAND_BYTES is the length of the request to send, which may include
9575 binary data. WHICH_PACKET is the packet configuration to check
9576 before attempting a packet. If an error occurs, *REMOTE_ERRNO
9577 is set to the error number and -1 is returned. Otherwise the value
9578 returned by the function is returned.
9579
9580 ATTACHMENT and ATTACHMENT_LEN should be non-NULL if and only if an
9581 attachment is expected; an error will be reported if there's a
9582 mismatch. If one is found, *ATTACHMENT will be set to point into
9583 the packet buffer and *ATTACHMENT_LEN will be set to the
9584 attachment's length. */
9585
9586static int
9587remote_hostio_send_command (int command_bytes, int which_packet,
9588 int *remote_errno, char **attachment,
9589 int *attachment_len)
9590{
9591 struct remote_state *rs = get_remote_state ();
9592 int ret, bytes_read;
9593 char *attachment_tmp;
9594
9595 if (!remote_desc
9596 || remote_protocol_packets[which_packet].support == PACKET_DISABLE)
9597 {
9598 *remote_errno = FILEIO_ENOSYS;
9599 return -1;
9600 }
9601
9602 putpkt_binary (rs->buf, command_bytes);
9603 bytes_read = getpkt_sane (&rs->buf, &rs->buf_size, 0);
9604
9605 /* If it timed out, something is wrong. Don't try to parse the
9606 buffer. */
9607 if (bytes_read < 0)
9608 {
9609 *remote_errno = FILEIO_EINVAL;
9610 return -1;
9611 }
9612
9613 switch (packet_ok (rs->buf, &remote_protocol_packets[which_packet]))
9614 {
9615 case PACKET_ERROR:
9616 *remote_errno = FILEIO_EINVAL;
9617 return -1;
9618 case PACKET_UNKNOWN:
9619 *remote_errno = FILEIO_ENOSYS;
9620 return -1;
9621 case PACKET_OK:
9622 break;
9623 }
9624
9625 if (remote_hostio_parse_result (rs->buf, &ret, remote_errno,
9626 &attachment_tmp))
9627 {
9628 *remote_errno = FILEIO_EINVAL;
9629 return -1;
9630 }
9631
9632 /* Make sure we saw an attachment if and only if we expected one. */
9633 if ((attachment_tmp == NULL && attachment != NULL)
9634 || (attachment_tmp != NULL && attachment == NULL))
9635 {
9636 *remote_errno = FILEIO_EINVAL;
9637 return -1;
9638 }
9639
9640 /* If an attachment was found, it must point into the packet buffer;
9641 work out how many bytes there were. */
9642 if (attachment_tmp != NULL)
9643 {
9644 *attachment = attachment_tmp;
9645 *attachment_len = bytes_read - (*attachment - rs->buf);
9646 }
9647
9648 return ret;
9649}
9650
9651/* Open FILENAME on the remote target, using FLAGS and MODE. Return a
9652 remote file descriptor, or -1 if an error occurs (and set
9653 *REMOTE_ERRNO). */
9654
9655static int
9656remote_hostio_open (const char *filename, int flags, int mode,
9657 int *remote_errno)
9658{
9659 struct remote_state *rs = get_remote_state ();
9660 char *p = rs->buf;
9661 int left = get_remote_packet_size () - 1;
9662
9663 remote_buffer_add_string (&p, &left, "vFile:open:");
9664
9665 remote_buffer_add_bytes (&p, &left, (const gdb_byte *) filename,
9666 strlen (filename));
9667 remote_buffer_add_string (&p, &left, ",");
9668
9669 remote_buffer_add_int (&p, &left, flags);
9670 remote_buffer_add_string (&p, &left, ",");
9671
9672 remote_buffer_add_int (&p, &left, mode);
9673
9674 return remote_hostio_send_command (p - rs->buf, PACKET_vFile_open,
9675 remote_errno, NULL, NULL);
9676}
9677
9678/* Write up to LEN bytes from WRITE_BUF to FD on the remote target.
9679 Return the number of bytes written, or -1 if an error occurs (and
9680 set *REMOTE_ERRNO). */
9681
9682static int
9683remote_hostio_pwrite (int fd, const gdb_byte *write_buf, int len,
9684 ULONGEST offset, int *remote_errno)
9685{
9686 struct remote_state *rs = get_remote_state ();
9687 char *p = rs->buf;
9688 int left = get_remote_packet_size ();
9689 int out_len;
9690
9691 remote_buffer_add_string (&p, &left, "vFile:pwrite:");
9692
9693 remote_buffer_add_int (&p, &left, fd);
9694 remote_buffer_add_string (&p, &left, ",");
9695
9696 remote_buffer_add_int (&p, &left, offset);
9697 remote_buffer_add_string (&p, &left, ",");
9698
9699 p += remote_escape_output (write_buf, len, p, &out_len,
9700 get_remote_packet_size () - (p - rs->buf));
9701
9702 return remote_hostio_send_command (p - rs->buf, PACKET_vFile_pwrite,
9703 remote_errno, NULL, NULL);
9704}
9705
9706/* Read up to LEN bytes FD on the remote target into READ_BUF
9707 Return the number of bytes read, or -1 if an error occurs (and
9708 set *REMOTE_ERRNO). */
9709
9710static int
9711remote_hostio_pread (int fd, gdb_byte *read_buf, int len,
9712 ULONGEST offset, int *remote_errno)
9713{
9714 struct remote_state *rs = get_remote_state ();
9715 char *p = rs->buf;
9716 char *attachment;
9717 int left = get_remote_packet_size ();
9718 int ret, attachment_len;
9719 int read_len;
9720
9721 remote_buffer_add_string (&p, &left, "vFile:pread:");
9722
9723 remote_buffer_add_int (&p, &left, fd);
9724 remote_buffer_add_string (&p, &left, ",");
9725
9726 remote_buffer_add_int (&p, &left, len);
9727 remote_buffer_add_string (&p, &left, ",");
9728
9729 remote_buffer_add_int (&p, &left, offset);
9730
9731 ret = remote_hostio_send_command (p - rs->buf, PACKET_vFile_pread,
9732 remote_errno, &attachment,
9733 &attachment_len);
9734
9735 if (ret < 0)
9736 return ret;
9737
9738 read_len = remote_unescape_input (attachment, attachment_len,
9739 read_buf, len);
9740 if (read_len != ret)
9741 error (_("Read returned %d, but %d bytes."), ret, (int) read_len);
9742
9743 return ret;
9744}
9745
9746/* Close FD on the remote target. Return 0, or -1 if an error occurs
9747 (and set *REMOTE_ERRNO). */
9748
9749static int
9750remote_hostio_close (int fd, int *remote_errno)
9751{
9752 struct remote_state *rs = get_remote_state ();
9753 char *p = rs->buf;
9754 int left = get_remote_packet_size () - 1;
9755
9756 remote_buffer_add_string (&p, &left, "vFile:close:");
9757
9758 remote_buffer_add_int (&p, &left, fd);
9759
9760 return remote_hostio_send_command (p - rs->buf, PACKET_vFile_close,
9761 remote_errno, NULL, NULL);
9762}
9763
9764/* Unlink FILENAME on the remote target. Return 0, or -1 if an error
9765 occurs (and set *REMOTE_ERRNO). */
9766
9767static int
9768remote_hostio_unlink (const char *filename, int *remote_errno)
9769{
9770 struct remote_state *rs = get_remote_state ();
9771 char *p = rs->buf;
9772 int left = get_remote_packet_size () - 1;
9773
9774 remote_buffer_add_string (&p, &left, "vFile:unlink:");
9775
9776 remote_buffer_add_bytes (&p, &left, (const gdb_byte *) filename,
9777 strlen (filename));
9778
9779 return remote_hostio_send_command (p - rs->buf, PACKET_vFile_unlink,
9780 remote_errno, NULL, NULL);
9781}
9782
9783/* Read value of symbolic link FILENAME on the remote target. Return
9784 a null-terminated string allocated via xmalloc, or NULL if an error
9785 occurs (and set *REMOTE_ERRNO). */
9786
9787static char *
9788remote_hostio_readlink (const char *filename, int *remote_errno)
9789{
9790 struct remote_state *rs = get_remote_state ();
9791 char *p = rs->buf;
9792 char *attachment;
9793 int left = get_remote_packet_size ();
9794 int len, attachment_len;
9795 int read_len;
9796 char *ret;
9797
9798 remote_buffer_add_string (&p, &left, "vFile:readlink:");
9799
9800 remote_buffer_add_bytes (&p, &left, (const gdb_byte *) filename,
9801 strlen (filename));
9802
9803 len = remote_hostio_send_command (p - rs->buf, PACKET_vFile_readlink,
9804 remote_errno, &attachment,
9805 &attachment_len);
9806
9807 if (len < 0)
9808 return NULL;
9809
9810 ret = xmalloc (len + 1);
9811
9812 read_len = remote_unescape_input (attachment, attachment_len,
9813 ret, len);
9814 if (read_len != len)
9815 error (_("Readlink returned %d, but %d bytes."), len, read_len);
9816
9817 ret[len] = '\0';
9818 return ret;
9819}
9820
9821static int
9822remote_fileio_errno_to_host (int errnum)
9823{
9824 switch (errnum)
9825 {
9826 case FILEIO_EPERM:
9827 return EPERM;
9828 case FILEIO_ENOENT:
9829 return ENOENT;
9830 case FILEIO_EINTR:
9831 return EINTR;
9832 case FILEIO_EIO:
9833 return EIO;
9834 case FILEIO_EBADF:
9835 return EBADF;
9836 case FILEIO_EACCES:
9837 return EACCES;
9838 case FILEIO_EFAULT:
9839 return EFAULT;
9840 case FILEIO_EBUSY:
9841 return EBUSY;
9842 case FILEIO_EEXIST:
9843 return EEXIST;
9844 case FILEIO_ENODEV:
9845 return ENODEV;
9846 case FILEIO_ENOTDIR:
9847 return ENOTDIR;
9848 case FILEIO_EISDIR:
9849 return EISDIR;
9850 case FILEIO_EINVAL:
9851 return EINVAL;
9852 case FILEIO_ENFILE:
9853 return ENFILE;
9854 case FILEIO_EMFILE:
9855 return EMFILE;
9856 case FILEIO_EFBIG:
9857 return EFBIG;
9858 case FILEIO_ENOSPC:
9859 return ENOSPC;
9860 case FILEIO_ESPIPE:
9861 return ESPIPE;
9862 case FILEIO_EROFS:
9863 return EROFS;
9864 case FILEIO_ENOSYS:
9865 return ENOSYS;
9866 case FILEIO_ENAMETOOLONG:
9867 return ENAMETOOLONG;
9868 }
9869 return -1;
9870}
9871
9872static char *
9873remote_hostio_error (int errnum)
9874{
9875 int host_error = remote_fileio_errno_to_host (errnum);
9876
9877 if (host_error == -1)
9878 error (_("Unknown remote I/O error %d"), errnum);
9879 else
9880 error (_("Remote I/O error: %s"), safe_strerror (host_error));
9881}
9882
9883static void
9884remote_hostio_close_cleanup (void *opaque)
9885{
9886 int fd = *(int *) opaque;
9887 int remote_errno;
9888
9889 remote_hostio_close (fd, &remote_errno);
9890}
9891
9892
9893static void *
9894remote_bfd_iovec_open (struct bfd *abfd, void *open_closure)
9895{
9896 const char *filename = bfd_get_filename (abfd);
9897 int fd, remote_errno;
9898 int *stream;
9899
9900 gdb_assert (remote_filename_p (filename));
9901
9902 fd = remote_hostio_open (filename + 7, FILEIO_O_RDONLY, 0, &remote_errno);
9903 if (fd == -1)
9904 {
9905 errno = remote_fileio_errno_to_host (remote_errno);
9906 bfd_set_error (bfd_error_system_call);
9907 return NULL;
9908 }
9909
9910 stream = xmalloc (sizeof (int));
9911 *stream = fd;
9912 return stream;
9913}
9914
9915static int
9916remote_bfd_iovec_close (struct bfd *abfd, void *stream)
9917{
9918 int fd = *(int *)stream;
9919 int remote_errno;
9920
9921 xfree (stream);
9922
9923 /* Ignore errors on close; these may happen if the remote
9924 connection was already torn down. */
9925 remote_hostio_close (fd, &remote_errno);
9926
9927 /* Zero means success. */
9928 return 0;
9929}
9930
9931static file_ptr
9932remote_bfd_iovec_pread (struct bfd *abfd, void *stream, void *buf,
9933 file_ptr nbytes, file_ptr offset)
9934{
9935 int fd = *(int *)stream;
9936 int remote_errno;
9937 file_ptr pos, bytes;
9938
9939 pos = 0;
9940 while (nbytes > pos)
9941 {
9942 bytes = remote_hostio_pread (fd, (char *)buf + pos, nbytes - pos,
9943 offset + pos, &remote_errno);
9944 if (bytes == 0)
9945 /* Success, but no bytes, means end-of-file. */
9946 break;
9947 if (bytes == -1)
9948 {
9949 errno = remote_fileio_errno_to_host (remote_errno);
9950 bfd_set_error (bfd_error_system_call);
9951 return -1;
9952 }
9953
9954 pos += bytes;
9955 }
9956
9957 return pos;
9958}
9959
9960static int
9961remote_bfd_iovec_stat (struct bfd *abfd, void *stream, struct stat *sb)
9962{
9963 /* FIXME: We should probably implement remote_hostio_stat. */
9964 sb->st_size = INT_MAX;
9965 return 0;
9966}
9967
9968int
9969remote_filename_p (const char *filename)
9970{
9971 return strncmp (filename, "remote:", 7) == 0;
9972}
9973
9974bfd *
9975remote_bfd_open (const char *remote_file, const char *target)
9976{
9977 bfd *abfd = gdb_bfd_openr_iovec (remote_file, target,
9978 remote_bfd_iovec_open, NULL,
9979 remote_bfd_iovec_pread,
9980 remote_bfd_iovec_close,
9981 remote_bfd_iovec_stat);
9982
9983 return abfd;
9984}
9985
9986void
9987remote_file_put (const char *local_file, const char *remote_file, int from_tty)
9988{
9989 struct cleanup *back_to, *close_cleanup;
9990 int retcode, fd, remote_errno, bytes, io_size;
9991 FILE *file;
9992 gdb_byte *buffer;
9993 int bytes_in_buffer;
9994 int saw_eof;
9995 ULONGEST offset;
9996
9997 if (!remote_desc)
9998 error (_("command can only be used with remote target"));
9999
10000 file = fopen (local_file, "rb");
10001 if (file == NULL)
10002 perror_with_name (local_file);
10003 back_to = make_cleanup_fclose (file);
10004
10005 fd = remote_hostio_open (remote_file, (FILEIO_O_WRONLY | FILEIO_O_CREAT
10006 | FILEIO_O_TRUNC),
10007 0700, &remote_errno);
10008 if (fd == -1)
10009 remote_hostio_error (remote_errno);
10010
10011 /* Send up to this many bytes at once. They won't all fit in the
10012 remote packet limit, so we'll transfer slightly fewer. */
10013 io_size = get_remote_packet_size ();
10014 buffer = xmalloc (io_size);
10015 make_cleanup (xfree, buffer);
10016
10017 close_cleanup = make_cleanup (remote_hostio_close_cleanup, &fd);
10018
10019 bytes_in_buffer = 0;
10020 saw_eof = 0;
10021 offset = 0;
10022 while (bytes_in_buffer || !saw_eof)
10023 {
10024 if (!saw_eof)
10025 {
10026 bytes = fread (buffer + bytes_in_buffer, 1,
10027 io_size - bytes_in_buffer,
10028 file);
10029 if (bytes == 0)
10030 {
10031 if (ferror (file))
10032 error (_("Error reading %s."), local_file);
10033 else
10034 {
10035 /* EOF. Unless there is something still in the
10036 buffer from the last iteration, we are done. */
10037 saw_eof = 1;
10038 if (bytes_in_buffer == 0)
10039 break;
10040 }
10041 }
10042 }
10043 else
10044 bytes = 0;
10045
10046 bytes += bytes_in_buffer;
10047 bytes_in_buffer = 0;
10048
10049 retcode = remote_hostio_pwrite (fd, buffer, bytes,
10050 offset, &remote_errno);
10051
10052 if (retcode < 0)
10053 remote_hostio_error (remote_errno);
10054 else if (retcode == 0)
10055 error (_("Remote write of %d bytes returned 0!"), bytes);
10056 else if (retcode < bytes)
10057 {
10058 /* Short write. Save the rest of the read data for the next
10059 write. */
10060 bytes_in_buffer = bytes - retcode;
10061 memmove (buffer, buffer + retcode, bytes_in_buffer);
10062 }
10063
10064 offset += retcode;
10065 }
10066
10067 discard_cleanups (close_cleanup);
10068 if (remote_hostio_close (fd, &remote_errno))
10069 remote_hostio_error (remote_errno);
10070
10071 if (from_tty)
10072 printf_filtered (_("Successfully sent file \"%s\".\n"), local_file);
10073 do_cleanups (back_to);
10074}
10075
10076void
10077remote_file_get (const char *remote_file, const char *local_file, int from_tty)
10078{
10079 struct cleanup *back_to, *close_cleanup;
10080 int fd, remote_errno, bytes, io_size;
10081 FILE *file;
10082 gdb_byte *buffer;
10083 ULONGEST offset;
10084
10085 if (!remote_desc)
10086 error (_("command can only be used with remote target"));
10087
10088 fd = remote_hostio_open (remote_file, FILEIO_O_RDONLY, 0, &remote_errno);
10089 if (fd == -1)
10090 remote_hostio_error (remote_errno);
10091
10092 file = fopen (local_file, "wb");
10093 if (file == NULL)
10094 perror_with_name (local_file);
10095 back_to = make_cleanup_fclose (file);
10096
10097 /* Send up to this many bytes at once. They won't all fit in the
10098 remote packet limit, so we'll transfer slightly fewer. */
10099 io_size = get_remote_packet_size ();
10100 buffer = xmalloc (io_size);
10101 make_cleanup (xfree, buffer);
10102
10103 close_cleanup = make_cleanup (remote_hostio_close_cleanup, &fd);
10104
10105 offset = 0;
10106 while (1)
10107 {
10108 bytes = remote_hostio_pread (fd, buffer, io_size, offset, &remote_errno);
10109 if (bytes == 0)
10110 /* Success, but no bytes, means end-of-file. */
10111 break;
10112 if (bytes == -1)
10113 remote_hostio_error (remote_errno);
10114
10115 offset += bytes;
10116
10117 bytes = fwrite (buffer, 1, bytes, file);
10118 if (bytes == 0)
10119 perror_with_name (local_file);
10120 }
10121
10122 discard_cleanups (close_cleanup);
10123 if (remote_hostio_close (fd, &remote_errno))
10124 remote_hostio_error (remote_errno);
10125
10126 if (from_tty)
10127 printf_filtered (_("Successfully fetched file \"%s\".\n"), remote_file);
10128 do_cleanups (back_to);
10129}
10130
10131void
10132remote_file_delete (const char *remote_file, int from_tty)
10133{
10134 int retcode, remote_errno;
10135
10136 if (!remote_desc)
10137 error (_("command can only be used with remote target"));
10138
10139 retcode = remote_hostio_unlink (remote_file, &remote_errno);
10140 if (retcode == -1)
10141 remote_hostio_error (remote_errno);
10142
10143 if (from_tty)
10144 printf_filtered (_("Successfully deleted file \"%s\".\n"), remote_file);
10145}
10146
10147static void
10148remote_put_command (char *args, int from_tty)
10149{
10150 struct cleanup *back_to;
10151 char **argv;
10152
10153 if (args == NULL)
10154 error_no_arg (_("file to put"));
10155
10156 argv = gdb_buildargv (args);
10157 back_to = make_cleanup_freeargv (argv);
10158 if (argv[0] == NULL || argv[1] == NULL || argv[2] != NULL)
10159 error (_("Invalid parameters to remote put"));
10160
10161 remote_file_put (argv[0], argv[1], from_tty);
10162
10163 do_cleanups (back_to);
10164}
10165
10166static void
10167remote_get_command (char *args, int from_tty)
10168{
10169 struct cleanup *back_to;
10170 char **argv;
10171
10172 if (args == NULL)
10173 error_no_arg (_("file to get"));
10174
10175 argv = gdb_buildargv (args);
10176 back_to = make_cleanup_freeargv (argv);
10177 if (argv[0] == NULL || argv[1] == NULL || argv[2] != NULL)
10178 error (_("Invalid parameters to remote get"));
10179
10180 remote_file_get (argv[0], argv[1], from_tty);
10181
10182 do_cleanups (back_to);
10183}
10184
10185static void
10186remote_delete_command (char *args, int from_tty)
10187{
10188 struct cleanup *back_to;
10189 char **argv;
10190
10191 if (args == NULL)
10192 error_no_arg (_("file to delete"));
10193
10194 argv = gdb_buildargv (args);
10195 back_to = make_cleanup_freeargv (argv);
10196 if (argv[0] == NULL || argv[1] != NULL)
10197 error (_("Invalid parameters to remote delete"));
10198
10199 remote_file_delete (argv[0], from_tty);
10200
10201 do_cleanups (back_to);
10202}
10203
10204static void
10205remote_command (char *args, int from_tty)
10206{
10207 help_list (remote_cmdlist, "remote ", -1, gdb_stdout);
10208}
10209
10210static int
10211remote_can_execute_reverse (void)
10212{
10213 if (remote_protocol_packets[PACKET_bs].support == PACKET_ENABLE
10214 || remote_protocol_packets[PACKET_bc].support == PACKET_ENABLE)
10215 return 1;
10216 else
10217 return 0;
10218}
10219
10220static int
10221remote_supports_non_stop (void)
10222{
10223 return 1;
10224}
10225
10226static int
10227remote_supports_disable_randomization (void)
10228{
10229 /* Only supported in extended mode. */
10230 return 0;
10231}
10232
10233static int
10234remote_supports_multi_process (void)
10235{
10236 struct remote_state *rs = get_remote_state ();
10237
10238 /* Only extended-remote handles being attached to multiple
10239 processes, even though plain remote can use the multi-process
10240 thread id extensions, so that GDB knows the target process's
10241 PID. */
10242 return rs->extended && remote_multi_process_p (rs);
10243}
10244
10245static int
10246remote_supports_cond_tracepoints (void)
10247{
10248 struct remote_state *rs = get_remote_state ();
10249
10250 return rs->cond_tracepoints;
10251}
10252
10253static int
10254remote_supports_cond_breakpoints (void)
10255{
10256 struct remote_state *rs = get_remote_state ();
10257
10258 return rs->cond_breakpoints;
10259}
10260
10261static int
10262remote_supports_fast_tracepoints (void)
10263{
10264 struct remote_state *rs = get_remote_state ();
10265
10266 return rs->fast_tracepoints;
10267}
10268
10269static int
10270remote_supports_static_tracepoints (void)
10271{
10272 struct remote_state *rs = get_remote_state ();
10273
10274 return rs->static_tracepoints;
10275}
10276
10277static int
10278remote_supports_install_in_trace (void)
10279{
10280 struct remote_state *rs = get_remote_state ();
10281
10282 return rs->install_in_trace;
10283}
10284
10285static int
10286remote_supports_enable_disable_tracepoint (void)
10287{
10288 struct remote_state *rs = get_remote_state ();
10289
10290 return rs->enable_disable_tracepoints;
10291}
10292
10293static int
10294remote_supports_string_tracing (void)
10295{
10296 struct remote_state *rs = get_remote_state ();
10297
10298 return rs->string_tracing;
10299}
10300
10301static int
10302remote_can_run_breakpoint_commands (void)
10303{
10304 struct remote_state *rs = get_remote_state ();
10305
10306 return rs->breakpoint_commands;
10307}
10308
10309static void
10310remote_trace_init (void)
10311{
10312 putpkt ("QTinit");
10313 remote_get_noisy_reply (&target_buf, &target_buf_size);
10314 if (strcmp (target_buf, "OK") != 0)
10315 error (_("Target does not support this command."));
10316}
10317
10318static void free_actions_list (char **actions_list);
10319static void free_actions_list_cleanup_wrapper (void *);
10320static void
10321free_actions_list_cleanup_wrapper (void *al)
10322{
10323 free_actions_list (al);
10324}
10325
10326static void
10327free_actions_list (char **actions_list)
10328{
10329 int ndx;
10330
10331 if (actions_list == 0)
10332 return;
10333
10334 for (ndx = 0; actions_list[ndx]; ndx++)
10335 xfree (actions_list[ndx]);
10336
10337 xfree (actions_list);
10338}
10339
10340/* Recursive routine to walk through command list including loops, and
10341 download packets for each command. */
10342
10343static void
10344remote_download_command_source (int num, ULONGEST addr,
10345 struct command_line *cmds)
10346{
10347 struct remote_state *rs = get_remote_state ();
10348 struct command_line *cmd;
10349
10350 for (cmd = cmds; cmd; cmd = cmd->next)
10351 {
10352 QUIT; /* Allow user to bail out with ^C. */
10353 strcpy (rs->buf, "QTDPsrc:");
10354 encode_source_string (num, addr, "cmd", cmd->line,
10355 rs->buf + strlen (rs->buf),
10356 rs->buf_size - strlen (rs->buf));
10357 putpkt (rs->buf);
10358 remote_get_noisy_reply (&target_buf, &target_buf_size);
10359 if (strcmp (target_buf, "OK"))
10360 warning (_("Target does not support source download."));
10361
10362 if (cmd->control_type == while_control
10363 || cmd->control_type == while_stepping_control)
10364 {
10365 remote_download_command_source (num, addr, *cmd->body_list);
10366
10367 QUIT; /* Allow user to bail out with ^C. */
10368 strcpy (rs->buf, "QTDPsrc:");
10369 encode_source_string (num, addr, "cmd", "end",
10370 rs->buf + strlen (rs->buf),
10371 rs->buf_size - strlen (rs->buf));
10372 putpkt (rs->buf);
10373 remote_get_noisy_reply (&target_buf, &target_buf_size);
10374 if (strcmp (target_buf, "OK"))
10375 warning (_("Target does not support source download."));
10376 }
10377 }
10378}
10379
10380static void
10381remote_download_tracepoint (struct bp_location *loc)
10382{
10383#define BUF_SIZE 2048
10384
10385 CORE_ADDR tpaddr;
10386 char addrbuf[40];
10387 char buf[BUF_SIZE];
10388 char **tdp_actions;
10389 char **stepping_actions;
10390 int ndx;
10391 struct cleanup *old_chain = NULL;
10392 struct agent_expr *aexpr;
10393 struct cleanup *aexpr_chain = NULL;
10394 char *pkt;
10395 struct breakpoint *b = loc->owner;
10396 struct tracepoint *t = (struct tracepoint *) b;
10397
10398 encode_actions (loc->owner, loc, &tdp_actions, &stepping_actions);
10399 old_chain = make_cleanup (free_actions_list_cleanup_wrapper,
10400 tdp_actions);
10401 (void) make_cleanup (free_actions_list_cleanup_wrapper,
10402 stepping_actions);
10403
10404 tpaddr = loc->address;
10405 sprintf_vma (addrbuf, tpaddr);
10406 xsnprintf (buf, BUF_SIZE, "QTDP:%x:%s:%c:%lx:%x", b->number,
10407 addrbuf, /* address */
10408 (b->enable_state == bp_enabled ? 'E' : 'D'),
10409 t->step_count, t->pass_count);
10410 /* Fast tracepoints are mostly handled by the target, but we can
10411 tell the target how big of an instruction block should be moved
10412 around. */
10413 if (b->type == bp_fast_tracepoint)
10414 {
10415 /* Only test for support at download time; we may not know
10416 target capabilities at definition time. */
10417 if (remote_supports_fast_tracepoints ())
10418 {
10419 int isize;
10420
10421 if (gdbarch_fast_tracepoint_valid_at (target_gdbarch (),
10422 tpaddr, &isize, NULL))
10423 xsnprintf (buf + strlen (buf), BUF_SIZE - strlen (buf), ":F%x",
10424 isize);
10425 else
10426 /* If it passed validation at definition but fails now,
10427 something is very wrong. */
10428 internal_error (__FILE__, __LINE__,
10429 _("Fast tracepoint not "
10430 "valid during download"));
10431 }
10432 else
10433 /* Fast tracepoints are functionally identical to regular
10434 tracepoints, so don't take lack of support as a reason to
10435 give up on the trace run. */
10436 warning (_("Target does not support fast tracepoints, "
10437 "downloading %d as regular tracepoint"), b->number);
10438 }
10439 else if (b->type == bp_static_tracepoint)
10440 {
10441 /* Only test for support at download time; we may not know
10442 target capabilities at definition time. */
10443 if (remote_supports_static_tracepoints ())
10444 {
10445 struct static_tracepoint_marker marker;
10446
10447 if (target_static_tracepoint_marker_at (tpaddr, &marker))
10448 strcat (buf, ":S");
10449 else
10450 error (_("Static tracepoint not valid during download"));
10451 }
10452 else
10453 /* Fast tracepoints are functionally identical to regular
10454 tracepoints, so don't take lack of support as a reason
10455 to give up on the trace run. */
10456 error (_("Target does not support static tracepoints"));
10457 }
10458 /* If the tracepoint has a conditional, make it into an agent
10459 expression and append to the definition. */
10460 if (loc->cond)
10461 {
10462 /* Only test support at download time, we may not know target
10463 capabilities at definition time. */
10464 if (remote_supports_cond_tracepoints ())
10465 {
10466 aexpr = gen_eval_for_expr (tpaddr, loc->cond);
10467 aexpr_chain = make_cleanup_free_agent_expr (aexpr);
10468 xsnprintf (buf + strlen (buf), BUF_SIZE - strlen (buf), ":X%x,",
10469 aexpr->len);
10470 pkt = buf + strlen (buf);
10471 for (ndx = 0; ndx < aexpr->len; ++ndx)
10472 pkt = pack_hex_byte (pkt, aexpr->buf[ndx]);
10473 *pkt = '\0';
10474 do_cleanups (aexpr_chain);
10475 }
10476 else
10477 warning (_("Target does not support conditional tracepoints, "
10478 "ignoring tp %d cond"), b->number);
10479 }
10480
10481 if (b->commands || *default_collect)
10482 strcat (buf, "-");
10483 putpkt (buf);
10484 remote_get_noisy_reply (&target_buf, &target_buf_size);
10485 if (strcmp (target_buf, "OK"))
10486 error (_("Target does not support tracepoints."));
10487
10488 /* do_single_steps (t); */
10489 if (tdp_actions)
10490 {
10491 for (ndx = 0; tdp_actions[ndx]; ndx++)
10492 {
10493 QUIT; /* Allow user to bail out with ^C. */
10494 xsnprintf (buf, BUF_SIZE, "QTDP:-%x:%s:%s%c",
10495 b->number, addrbuf, /* address */
10496 tdp_actions[ndx],
10497 ((tdp_actions[ndx + 1] || stepping_actions)
10498 ? '-' : 0));
10499 putpkt (buf);
10500 remote_get_noisy_reply (&target_buf,
10501 &target_buf_size);
10502 if (strcmp (target_buf, "OK"))
10503 error (_("Error on target while setting tracepoints."));
10504 }
10505 }
10506 if (stepping_actions)
10507 {
10508 for (ndx = 0; stepping_actions[ndx]; ndx++)
10509 {
10510 QUIT; /* Allow user to bail out with ^C. */
10511 xsnprintf (buf, BUF_SIZE, "QTDP:-%x:%s:%s%s%s",
10512 b->number, addrbuf, /* address */
10513 ((ndx == 0) ? "S" : ""),
10514 stepping_actions[ndx],
10515 (stepping_actions[ndx + 1] ? "-" : ""));
10516 putpkt (buf);
10517 remote_get_noisy_reply (&target_buf,
10518 &target_buf_size);
10519 if (strcmp (target_buf, "OK"))
10520 error (_("Error on target while setting tracepoints."));
10521 }
10522 }
10523
10524 if (remote_protocol_packets[PACKET_TracepointSource].support
10525 == PACKET_ENABLE)
10526 {
10527 if (b->addr_string)
10528 {
10529 strcpy (buf, "QTDPsrc:");
10530 encode_source_string (b->number, loc->address,
10531 "at", b->addr_string, buf + strlen (buf),
10532 2048 - strlen (buf));
10533
10534 putpkt (buf);
10535 remote_get_noisy_reply (&target_buf, &target_buf_size);
10536 if (strcmp (target_buf, "OK"))
10537 warning (_("Target does not support source download."));
10538 }
10539 if (b->cond_string)
10540 {
10541 strcpy (buf, "QTDPsrc:");
10542 encode_source_string (b->number, loc->address,
10543 "cond", b->cond_string, buf + strlen (buf),
10544 2048 - strlen (buf));
10545 putpkt (buf);
10546 remote_get_noisy_reply (&target_buf, &target_buf_size);
10547 if (strcmp (target_buf, "OK"))
10548 warning (_("Target does not support source download."));
10549 }
10550 remote_download_command_source (b->number, loc->address,
10551 breakpoint_commands (b));
10552 }
10553
10554 do_cleanups (old_chain);
10555}
10556
10557static int
10558remote_can_download_tracepoint (void)
10559{
10560 struct remote_state *rs = get_remote_state ();
10561 struct trace_status *ts;
10562 int status;
10563
10564 /* Don't try to install tracepoints until we've relocated our
10565 symbols, and fetched and merged the target's tracepoint list with
10566 ours. */
10567 if (rs->starting_up)
10568 return 0;
10569
10570 ts = current_trace_status ();
10571 status = remote_get_trace_status (ts);
10572
10573 if (status == -1 || !ts->running_known || !ts->running)
10574 return 0;
10575
10576 /* If we are in a tracing experiment, but remote stub doesn't support
10577 installing tracepoint in trace, we have to return. */
10578 if (!remote_supports_install_in_trace ())
10579 return 0;
10580
10581 return 1;
10582}
10583
10584
10585static void
10586remote_download_trace_state_variable (struct trace_state_variable *tsv)
10587{
10588 struct remote_state *rs = get_remote_state ();
10589 char *p;
10590
10591 xsnprintf (rs->buf, get_remote_packet_size (), "QTDV:%x:%s:%x:",
10592 tsv->number, phex ((ULONGEST) tsv->initial_value, 8),
10593 tsv->builtin);
10594 p = rs->buf + strlen (rs->buf);
10595 if ((p - rs->buf) + strlen (tsv->name) * 2 >= get_remote_packet_size ())
10596 error (_("Trace state variable name too long for tsv definition packet"));
10597 p += 2 * bin2hex ((gdb_byte *) (tsv->name), p, 0);
10598 *p++ = '\0';
10599 putpkt (rs->buf);
10600 remote_get_noisy_reply (&target_buf, &target_buf_size);
10601 if (*target_buf == '\0')
10602 error (_("Target does not support this command."));
10603 if (strcmp (target_buf, "OK") != 0)
10604 error (_("Error on target while downloading trace state variable."));
10605}
10606
10607static void
10608remote_enable_tracepoint (struct bp_location *location)
10609{
10610 struct remote_state *rs = get_remote_state ();
10611 char addr_buf[40];
10612
10613 sprintf_vma (addr_buf, location->address);
10614 xsnprintf (rs->buf, get_remote_packet_size (), "QTEnable:%x:%s",
10615 location->owner->number, addr_buf);
10616 putpkt (rs->buf);
10617 remote_get_noisy_reply (&rs->buf, &rs->buf_size);
10618 if (*rs->buf == '\0')
10619 error (_("Target does not support enabling tracepoints while a trace run is ongoing."));
10620 if (strcmp (rs->buf, "OK") != 0)
10621 error (_("Error on target while enabling tracepoint."));
10622}
10623
10624static void
10625remote_disable_tracepoint (struct bp_location *location)
10626{
10627 struct remote_state *rs = get_remote_state ();
10628 char addr_buf[40];
10629
10630 sprintf_vma (addr_buf, location->address);
10631 xsnprintf (rs->buf, get_remote_packet_size (), "QTDisable:%x:%s",
10632 location->owner->number, addr_buf);
10633 putpkt (rs->buf);
10634 remote_get_noisy_reply (&rs->buf, &rs->buf_size);
10635 if (*rs->buf == '\0')
10636 error (_("Target does not support disabling tracepoints while a trace run is ongoing."));
10637 if (strcmp (rs->buf, "OK") != 0)
10638 error (_("Error on target while disabling tracepoint."));
10639}
10640
10641static void
10642remote_trace_set_readonly_regions (void)
10643{
10644 asection *s;
10645 bfd *abfd = NULL;
10646 bfd_size_type size;
10647 bfd_vma vma;
10648 int anysecs = 0;
10649 int offset = 0;
10650
10651 if (!exec_bfd)
10652 return; /* No information to give. */
10653
10654 strcpy (target_buf, "QTro");
10655 offset = strlen (target_buf);
10656 for (s = exec_bfd->sections; s; s = s->next)
10657 {
10658 char tmp1[40], tmp2[40];
10659 int sec_length;
10660
10661 if ((s->flags & SEC_LOAD) == 0 ||
10662 /* (s->flags & SEC_CODE) == 0 || */
10663 (s->flags & SEC_READONLY) == 0)
10664 continue;
10665
10666 anysecs = 1;
10667 vma = bfd_get_section_vma (abfd, s);
10668 size = bfd_get_section_size (s);
10669 sprintf_vma (tmp1, vma);
10670 sprintf_vma (tmp2, vma + size);
10671 sec_length = 1 + strlen (tmp1) + 1 + strlen (tmp2);
10672 if (offset + sec_length + 1 > target_buf_size)
10673 {
10674 if (remote_protocol_packets[PACKET_qXfer_traceframe_info].support
10675 != PACKET_ENABLE)
10676 warning (_("\
10677Too many sections for read-only sections definition packet."));
10678 break;
10679 }
10680 xsnprintf (target_buf + offset, target_buf_size - offset, ":%s,%s",
10681 tmp1, tmp2);
10682 offset += sec_length;
10683 }
10684 if (anysecs)
10685 {
10686 putpkt (target_buf);
10687 getpkt (&target_buf, &target_buf_size, 0);
10688 }
10689}
10690
10691static void
10692remote_trace_start (void)
10693{
10694 putpkt ("QTStart");
10695 remote_get_noisy_reply (&target_buf, &target_buf_size);
10696 if (*target_buf == '\0')
10697 error (_("Target does not support this command."));
10698 if (strcmp (target_buf, "OK") != 0)
10699 error (_("Bogus reply from target: %s"), target_buf);
10700}
10701
10702static int
10703remote_get_trace_status (struct trace_status *ts)
10704{
10705 /* Initialize it just to avoid a GCC false warning. */
10706 char *p = NULL;
10707 /* FIXME we need to get register block size some other way. */
10708 extern int trace_regblock_size;
10709 volatile struct gdb_exception ex;
10710
10711 trace_regblock_size = get_remote_arch_state ()->sizeof_g_packet;
10712
10713 putpkt ("qTStatus");
10714
10715 TRY_CATCH (ex, RETURN_MASK_ERROR)
10716 {
10717 p = remote_get_noisy_reply (&target_buf, &target_buf_size);
10718 }
10719 if (ex.reason < 0)
10720 {
10721 if (ex.error != TARGET_CLOSE_ERROR)
10722 {
10723 exception_fprintf (gdb_stderr, ex, "qTStatus: ");
10724 return -1;
10725 }
10726 throw_exception (ex);
10727 }
10728
10729 /* If the remote target doesn't do tracing, flag it. */
10730 if (*p == '\0')
10731 return -1;
10732
10733 /* We're working with a live target. */
10734 ts->filename = NULL;
10735
10736 if (*p++ != 'T')
10737 error (_("Bogus trace status reply from target: %s"), target_buf);
10738
10739 /* Function 'parse_trace_status' sets default value of each field of
10740 'ts' at first, so we don't have to do it here. */
10741 parse_trace_status (p, ts);
10742
10743 return ts->running;
10744}
10745
10746static void
10747remote_get_tracepoint_status (struct breakpoint *bp,
10748 struct uploaded_tp *utp)
10749{
10750 struct remote_state *rs = get_remote_state ();
10751 char *reply;
10752 struct bp_location *loc;
10753 struct tracepoint *tp = (struct tracepoint *) bp;
10754 size_t size = get_remote_packet_size ();
10755
10756 if (tp)
10757 {
10758 tp->base.hit_count = 0;
10759 tp->traceframe_usage = 0;
10760 for (loc = tp->base.loc; loc; loc = loc->next)
10761 {
10762 /* If the tracepoint was never downloaded, don't go asking for
10763 any status. */
10764 if (tp->number_on_target == 0)
10765 continue;
10766 xsnprintf (rs->buf, size, "qTP:%x:%s", tp->number_on_target,
10767 phex_nz (loc->address, 0));
10768 putpkt (rs->buf);
10769 reply = remote_get_noisy_reply (&target_buf, &target_buf_size);
10770 if (reply && *reply)
10771 {
10772 if (*reply == 'V')
10773 parse_tracepoint_status (reply + 1, bp, utp);
10774 }
10775 }
10776 }
10777 else if (utp)
10778 {
10779 utp->hit_count = 0;
10780 utp->traceframe_usage = 0;
10781 xsnprintf (rs->buf, size, "qTP:%x:%s", utp->number,
10782 phex_nz (utp->addr, 0));
10783 putpkt (rs->buf);
10784 reply = remote_get_noisy_reply (&target_buf, &target_buf_size);
10785 if (reply && *reply)
10786 {
10787 if (*reply == 'V')
10788 parse_tracepoint_status (reply + 1, bp, utp);
10789 }
10790 }
10791}
10792
10793static void
10794remote_trace_stop (void)
10795{
10796 putpkt ("QTStop");
10797 remote_get_noisy_reply (&target_buf, &target_buf_size);
10798 if (*target_buf == '\0')
10799 error (_("Target does not support this command."));
10800 if (strcmp (target_buf, "OK") != 0)
10801 error (_("Bogus reply from target: %s"), target_buf);
10802}
10803
10804static int
10805remote_trace_find (enum trace_find_type type, int num,
10806 ULONGEST addr1, ULONGEST addr2,
10807 int *tpp)
10808{
10809 struct remote_state *rs = get_remote_state ();
10810 char *endbuf = rs->buf + get_remote_packet_size ();
10811 char *p, *reply;
10812 int target_frameno = -1, target_tracept = -1;
10813
10814 /* Lookups other than by absolute frame number depend on the current
10815 trace selected, so make sure it is correct on the remote end
10816 first. */
10817 if (type != tfind_number)
10818 set_remote_traceframe ();
10819
10820 p = rs->buf;
10821 strcpy (p, "QTFrame:");
10822 p = strchr (p, '\0');
10823 switch (type)
10824 {
10825 case tfind_number:
10826 xsnprintf (p, endbuf - p, "%x", num);
10827 break;
10828 case tfind_pc:
10829 xsnprintf (p, endbuf - p, "pc:%s", phex_nz (addr1, 0));
10830 break;
10831 case tfind_tp:
10832 xsnprintf (p, endbuf - p, "tdp:%x", num);
10833 break;
10834 case tfind_range:
10835 xsnprintf (p, endbuf - p, "range:%s:%s", phex_nz (addr1, 0),
10836 phex_nz (addr2, 0));
10837 break;
10838 case tfind_outside:
10839 xsnprintf (p, endbuf - p, "outside:%s:%s", phex_nz (addr1, 0),
10840 phex_nz (addr2, 0));
10841 break;
10842 default:
10843 error (_("Unknown trace find type %d"), type);
10844 }
10845
10846 putpkt (rs->buf);
10847 reply = remote_get_noisy_reply (&(rs->buf), &sizeof_pkt);
10848 if (*reply == '\0')
10849 error (_("Target does not support this command."));
10850
10851 while (reply && *reply)
10852 switch (*reply)
10853 {
10854 case 'F':
10855 p = ++reply;
10856 target_frameno = (int) strtol (p, &reply, 16);
10857 if (reply == p)
10858 error (_("Unable to parse trace frame number"));
10859 /* Don't update our remote traceframe number cache on failure
10860 to select a remote traceframe. */
10861 if (target_frameno == -1)
10862 return -1;
10863 break;
10864 case 'T':
10865 p = ++reply;
10866 target_tracept = (int) strtol (p, &reply, 16);
10867 if (reply == p)
10868 error (_("Unable to parse tracepoint number"));
10869 break;
10870 case 'O': /* "OK"? */
10871 if (reply[1] == 'K' && reply[2] == '\0')
10872 reply += 2;
10873 else
10874 error (_("Bogus reply from target: %s"), reply);
10875 break;
10876 default:
10877 error (_("Bogus reply from target: %s"), reply);
10878 }
10879 if (tpp)
10880 *tpp = target_tracept;
10881
10882 remote_traceframe_number = target_frameno;
10883 return target_frameno;
10884}
10885
10886static int
10887remote_get_trace_state_variable_value (int tsvnum, LONGEST *val)
10888{
10889 struct remote_state *rs = get_remote_state ();
10890 char *reply;
10891 ULONGEST uval;
10892
10893 set_remote_traceframe ();
10894
10895 xsnprintf (rs->buf, get_remote_packet_size (), "qTV:%x", tsvnum);
10896 putpkt (rs->buf);
10897 reply = remote_get_noisy_reply (&target_buf, &target_buf_size);
10898 if (reply && *reply)
10899 {
10900 if (*reply == 'V')
10901 {
10902 unpack_varlen_hex (reply + 1, &uval);
10903 *val = (LONGEST) uval;
10904 return 1;
10905 }
10906 }
10907 return 0;
10908}
10909
10910static int
10911remote_save_trace_data (const char *filename)
10912{
10913 struct remote_state *rs = get_remote_state ();
10914 char *p, *reply;
10915
10916 p = rs->buf;
10917 strcpy (p, "QTSave:");
10918 p += strlen (p);
10919 if ((p - rs->buf) + strlen (filename) * 2 >= get_remote_packet_size ())
10920 error (_("Remote file name too long for trace save packet"));
10921 p += 2 * bin2hex ((gdb_byte *) filename, p, 0);
10922 *p++ = '\0';
10923 putpkt (rs->buf);
10924 reply = remote_get_noisy_reply (&target_buf, &target_buf_size);
10925 if (*reply == '\0')
10926 error (_("Target does not support this command."));
10927 if (strcmp (reply, "OK") != 0)
10928 error (_("Bogus reply from target: %s"), reply);
10929 return 0;
10930}
10931
10932/* This is basically a memory transfer, but needs to be its own packet
10933 because we don't know how the target actually organizes its trace
10934 memory, plus we want to be able to ask for as much as possible, but
10935 not be unhappy if we don't get as much as we ask for. */
10936
10937static LONGEST
10938remote_get_raw_trace_data (gdb_byte *buf, ULONGEST offset, LONGEST len)
10939{
10940 struct remote_state *rs = get_remote_state ();
10941 char *reply;
10942 char *p;
10943 int rslt;
10944
10945 p = rs->buf;
10946 strcpy (p, "qTBuffer:");
10947 p += strlen (p);
10948 p += hexnumstr (p, offset);
10949 *p++ = ',';
10950 p += hexnumstr (p, len);
10951 *p++ = '\0';
10952
10953 putpkt (rs->buf);
10954 reply = remote_get_noisy_reply (&target_buf, &target_buf_size);
10955 if (reply && *reply)
10956 {
10957 /* 'l' by itself means we're at the end of the buffer and
10958 there is nothing more to get. */
10959 if (*reply == 'l')
10960 return 0;
10961
10962 /* Convert the reply into binary. Limit the number of bytes to
10963 convert according to our passed-in buffer size, rather than
10964 what was returned in the packet; if the target is
10965 unexpectedly generous and gives us a bigger reply than we
10966 asked for, we don't want to crash. */
10967 rslt = hex2bin (target_buf, buf, len);
10968 return rslt;
10969 }
10970
10971 /* Something went wrong, flag as an error. */
10972 return -1;
10973}
10974
10975static void
10976remote_set_disconnected_tracing (int val)
10977{
10978 struct remote_state *rs = get_remote_state ();
10979
10980 if (rs->disconnected_tracing)
10981 {
10982 char *reply;
10983
10984 xsnprintf (rs->buf, get_remote_packet_size (), "QTDisconnected:%x", val);
10985 putpkt (rs->buf);
10986 reply = remote_get_noisy_reply (&target_buf, &target_buf_size);
10987 if (*reply == '\0')
10988 error (_("Target does not support this command."));
10989 if (strcmp (reply, "OK") != 0)
10990 error (_("Bogus reply from target: %s"), reply);
10991 }
10992 else if (val)
10993 warning (_("Target does not support disconnected tracing."));
10994}
10995
10996static int
10997remote_core_of_thread (struct target_ops *ops, ptid_t ptid)
10998{
10999 struct thread_info *info = find_thread_ptid (ptid);
11000
11001 if (info && info->private)
11002 return info->private->core;
11003 return -1;
11004}
11005
11006static void
11007remote_set_circular_trace_buffer (int val)
11008{
11009 struct remote_state *rs = get_remote_state ();
11010 char *reply;
11011
11012 xsnprintf (rs->buf, get_remote_packet_size (), "QTBuffer:circular:%x", val);
11013 putpkt (rs->buf);
11014 reply = remote_get_noisy_reply (&target_buf, &target_buf_size);
11015 if (*reply == '\0')
11016 error (_("Target does not support this command."));
11017 if (strcmp (reply, "OK") != 0)
11018 error (_("Bogus reply from target: %s"), reply);
11019}
11020
11021static struct traceframe_info *
11022remote_traceframe_info (void)
11023{
11024 char *text;
11025
11026 text = target_read_stralloc (&current_target,
11027 TARGET_OBJECT_TRACEFRAME_INFO, NULL);
11028 if (text != NULL)
11029 {
11030 struct traceframe_info *info;
11031 struct cleanup *back_to = make_cleanup (xfree, text);
11032
11033 info = parse_traceframe_info (text);
11034 do_cleanups (back_to);
11035 return info;
11036 }
11037
11038 return NULL;
11039}
11040
11041/* Handle the qTMinFTPILen packet. Returns the minimum length of
11042 instruction on which a fast tracepoint may be placed. Returns -1
11043 if the packet is not supported, and 0 if the minimum instruction
11044 length is unknown. */
11045
11046static int
11047remote_get_min_fast_tracepoint_insn_len (void)
11048{
11049 struct remote_state *rs = get_remote_state ();
11050 char *reply;
11051
11052 /* If we're not debugging a process yet, the IPA can't be
11053 loaded. */
11054 if (!target_has_execution)
11055 return 0;
11056
11057 /* Make sure the remote is pointing at the right process. */
11058 set_general_process ();
11059
11060 xsnprintf (rs->buf, get_remote_packet_size (), "qTMinFTPILen");
11061 putpkt (rs->buf);
11062 reply = remote_get_noisy_reply (&target_buf, &target_buf_size);
11063 if (*reply == '\0')
11064 return -1;
11065 else
11066 {
11067 ULONGEST min_insn_len;
11068
11069 unpack_varlen_hex (reply, &min_insn_len);
11070
11071 return (int) min_insn_len;
11072 }
11073}
11074
11075static void
11076remote_set_trace_buffer_size (LONGEST val)
11077{
11078 if (remote_protocol_packets[PACKET_QTBuffer_size].support
11079 != PACKET_DISABLE)
11080 {
11081 struct remote_state *rs = get_remote_state ();
11082 char *buf = rs->buf;
11083 char *endbuf = rs->buf + get_remote_packet_size ();
11084 enum packet_result result;
11085
11086 gdb_assert (val >= 0 || val == -1);
11087 buf += xsnprintf (buf, endbuf - buf, "QTBuffer:size:");
11088 /* Send -1 as literal "-1" to avoid host size dependency. */
11089 if (val < 0)
11090 {
11091 *buf++ = '-';
11092 buf += hexnumstr (buf, (ULONGEST) -val);
11093 }
11094 else
11095 buf += hexnumstr (buf, (ULONGEST) val);
11096
11097 putpkt (rs->buf);
11098 remote_get_noisy_reply (&rs->buf, &rs->buf_size);
11099 result = packet_ok (rs->buf,
11100 &remote_protocol_packets[PACKET_QTBuffer_size]);
11101
11102 if (result != PACKET_OK)
11103 warning (_("Bogus reply from target: %s"), rs->buf);
11104 }
11105}
11106
11107static int
11108remote_set_trace_notes (char *user, char *notes, char *stop_notes)
11109{
11110 struct remote_state *rs = get_remote_state ();
11111 char *reply;
11112 char *buf = rs->buf;
11113 char *endbuf = rs->buf + get_remote_packet_size ();
11114 int nbytes;
11115
11116 buf += xsnprintf (buf, endbuf - buf, "QTNotes:");
11117 if (user)
11118 {
11119 buf += xsnprintf (buf, endbuf - buf, "user:");
11120 nbytes = bin2hex (user, buf, 0);
11121 buf += 2 * nbytes;
11122 *buf++ = ';';
11123 }
11124 if (notes)
11125 {
11126 buf += xsnprintf (buf, endbuf - buf, "notes:");
11127 nbytes = bin2hex (notes, buf, 0);
11128 buf += 2 * nbytes;
11129 *buf++ = ';';
11130 }
11131 if (stop_notes)
11132 {
11133 buf += xsnprintf (buf, endbuf - buf, "tstop:");
11134 nbytes = bin2hex (stop_notes, buf, 0);
11135 buf += 2 * nbytes;
11136 *buf++ = ';';
11137 }
11138 /* Ensure the buffer is terminated. */
11139 *buf = '\0';
11140
11141 putpkt (rs->buf);
11142 reply = remote_get_noisy_reply (&target_buf, &target_buf_size);
11143 if (*reply == '\0')
11144 return 0;
11145
11146 if (strcmp (reply, "OK") != 0)
11147 error (_("Bogus reply from target: %s"), reply);
11148
11149 return 1;
11150}
11151
11152static int
11153remote_use_agent (int use)
11154{
11155 if (remote_protocol_packets[PACKET_QAgent].support != PACKET_DISABLE)
11156 {
11157 struct remote_state *rs = get_remote_state ();
11158
11159 /* If the stub supports QAgent. */
11160 xsnprintf (rs->buf, get_remote_packet_size (), "QAgent:%d", use);
11161 putpkt (rs->buf);
11162 getpkt (&rs->buf, &rs->buf_size, 0);
11163
11164 if (strcmp (rs->buf, "OK") == 0)
11165 {
11166 use_agent = use;
11167 return 1;
11168 }
11169 }
11170
11171 return 0;
11172}
11173
11174static int
11175remote_can_use_agent (void)
11176{
11177 return (remote_protocol_packets[PACKET_QAgent].support != PACKET_DISABLE);
11178}
11179
11180struct btrace_target_info
11181{
11182 /* The ptid of the traced thread. */
11183 ptid_t ptid;
11184};
11185
11186/* Check whether the target supports branch tracing. */
11187
11188static int
11189remote_supports_btrace (void)
11190{
11191 if (remote_protocol_packets[PACKET_Qbtrace_off].support != PACKET_ENABLE)
11192 return 0;
11193 if (remote_protocol_packets[PACKET_Qbtrace_bts].support != PACKET_ENABLE)
11194 return 0;
11195 if (remote_protocol_packets[PACKET_qXfer_btrace].support != PACKET_ENABLE)
11196 return 0;
11197
11198 return 1;
11199}
11200
11201/* Enable branch tracing. */
11202
11203static struct btrace_target_info *
11204remote_enable_btrace (ptid_t ptid)
11205{
11206 struct btrace_target_info *tinfo = NULL;
11207 struct packet_config *packet = &remote_protocol_packets[PACKET_Qbtrace_bts];
11208 struct remote_state *rs = get_remote_state ();
11209 char *buf = rs->buf;
11210 char *endbuf = rs->buf + get_remote_packet_size ();
11211
11212 if (packet->support != PACKET_ENABLE)
11213 error (_("Target does not support branch tracing."));
11214
11215 set_general_thread (ptid);
11216
11217 buf += xsnprintf (buf, endbuf - buf, "%s", packet->name);
11218 putpkt (rs->buf);
11219 getpkt (&rs->buf, &rs->buf_size, 0);
11220
11221 if (packet_ok (rs->buf, packet) == PACKET_ERROR)
11222 {
11223 if (rs->buf[0] == 'E' && rs->buf[1] == '.')
11224 error (_("Could not enable branch tracing for %s: %s"),
11225 target_pid_to_str (ptid), rs->buf + 2);
11226 else
11227 error (_("Could not enable branch tracing for %s."),
11228 target_pid_to_str (ptid));
11229 }
11230
11231 tinfo = xzalloc (sizeof (*tinfo));
11232 tinfo->ptid = ptid;
11233
11234 return tinfo;
11235}
11236
11237/* Disable branch tracing. */
11238
11239static void
11240remote_disable_btrace (struct btrace_target_info *tinfo)
11241{
11242 struct packet_config *packet = &remote_protocol_packets[PACKET_Qbtrace_off];
11243 struct remote_state *rs = get_remote_state ();
11244 char *buf = rs->buf;
11245 char *endbuf = rs->buf + get_remote_packet_size ();
11246
11247 if (packet->support != PACKET_ENABLE)
11248 error (_("Target does not support branch tracing."));
11249
11250 set_general_thread (tinfo->ptid);
11251
11252 buf += xsnprintf (buf, endbuf - buf, "%s", packet->name);
11253 putpkt (rs->buf);
11254 getpkt (&rs->buf, &rs->buf_size, 0);
11255
11256 if (packet_ok (rs->buf, packet) == PACKET_ERROR)
11257 {
11258 if (rs->buf[0] == 'E' && rs->buf[1] == '.')
11259 error (_("Could not disable branch tracing for %s: %s"),
11260 target_pid_to_str (tinfo->ptid), rs->buf + 2);
11261 else
11262 error (_("Could not disable branch tracing for %s."),
11263 target_pid_to_str (tinfo->ptid));
11264 }
11265
11266 xfree (tinfo);
11267}
11268
11269/* Teardown branch tracing. */
11270
11271static void
11272remote_teardown_btrace (struct btrace_target_info *tinfo)
11273{
11274 /* We must not talk to the target during teardown. */
11275 xfree (tinfo);
11276}
11277
11278/* Read the branch trace. */
11279
11280static VEC (btrace_block_s) *
11281remote_read_btrace (struct btrace_target_info *tinfo,
11282 enum btrace_read_type type)
11283{
11284 struct packet_config *packet = &remote_protocol_packets[PACKET_qXfer_btrace];
11285 struct remote_state *rs = get_remote_state ();
11286 VEC (btrace_block_s) *btrace = NULL;
11287 const char *annex;
11288 char *xml;
11289
11290 if (packet->support != PACKET_ENABLE)
11291 error (_("Target does not support branch tracing."));
11292
11293#if !defined(HAVE_LIBEXPAT)
11294 error (_("Cannot process branch tracing result. XML parsing not supported."));
11295#endif
11296
11297 switch (type)
11298 {
11299 case btrace_read_all:
11300 annex = "all";
11301 break;
11302 case btrace_read_new:
11303 annex = "new";
11304 break;
11305 default:
11306 internal_error (__FILE__, __LINE__,
11307 _("Bad branch tracing read type: %u."),
11308 (unsigned int) type);
11309 }
11310
11311 xml = target_read_stralloc (&current_target,
11312 TARGET_OBJECT_BTRACE, annex);
11313 if (xml != NULL)
11314 {
11315 struct cleanup *cleanup = make_cleanup (xfree, xml);
11316
11317 btrace = parse_xml_btrace (xml);
11318 do_cleanups (cleanup);
11319 }
11320
11321 return btrace;
11322}
11323
11324static void
11325init_remote_ops (void)
11326{
11327 remote_ops.to_shortname = "remote";
11328 remote_ops.to_longname = "Remote serial target in gdb-specific protocol";
11329 remote_ops.to_doc =
11330 "Use a remote computer via a serial line, using a gdb-specific protocol.\n\
11331Specify the serial device it is connected to\n\
11332(e.g. /dev/ttyS0, /dev/ttya, COM1, etc.).";
11333 remote_ops.to_open = remote_open;
11334 remote_ops.to_close = remote_close;
11335 remote_ops.to_detach = remote_detach;
11336 remote_ops.to_disconnect = remote_disconnect;
11337 remote_ops.to_resume = remote_resume;
11338 remote_ops.to_wait = remote_wait;
11339 remote_ops.to_fetch_registers = remote_fetch_registers;
11340 remote_ops.to_store_registers = remote_store_registers;
11341 remote_ops.to_prepare_to_store = remote_prepare_to_store;
11342 remote_ops.deprecated_xfer_memory = remote_xfer_memory;
11343 remote_ops.to_files_info = remote_files_info;
11344 remote_ops.to_insert_breakpoint = remote_insert_breakpoint;
11345 remote_ops.to_remove_breakpoint = remote_remove_breakpoint;
11346 remote_ops.to_stopped_by_watchpoint = remote_stopped_by_watchpoint;
11347 remote_ops.to_stopped_data_address = remote_stopped_data_address;
11348 remote_ops.to_watchpoint_addr_within_range =
11349 remote_watchpoint_addr_within_range;
11350 remote_ops.to_can_use_hw_breakpoint = remote_check_watch_resources;
11351 remote_ops.to_insert_hw_breakpoint = remote_insert_hw_breakpoint;
11352 remote_ops.to_remove_hw_breakpoint = remote_remove_hw_breakpoint;
11353 remote_ops.to_region_ok_for_hw_watchpoint
11354 = remote_region_ok_for_hw_watchpoint;
11355 remote_ops.to_insert_watchpoint = remote_insert_watchpoint;
11356 remote_ops.to_remove_watchpoint = remote_remove_watchpoint;
11357 remote_ops.to_kill = remote_kill;
11358 remote_ops.to_load = generic_load;
11359 remote_ops.to_mourn_inferior = remote_mourn;
11360 remote_ops.to_pass_signals = remote_pass_signals;
11361 remote_ops.to_program_signals = remote_program_signals;
11362 remote_ops.to_thread_alive = remote_thread_alive;
11363 remote_ops.to_find_new_threads = remote_threads_info;
11364 remote_ops.to_pid_to_str = remote_pid_to_str;
11365 remote_ops.to_extra_thread_info = remote_threads_extra_info;
11366 remote_ops.to_get_ada_task_ptid = remote_get_ada_task_ptid;
11367 remote_ops.to_stop = remote_stop;
11368 remote_ops.to_xfer_partial = remote_xfer_partial;
11369 remote_ops.to_rcmd = remote_rcmd;
11370 remote_ops.to_log_command = serial_log_command;
11371 remote_ops.to_get_thread_local_address = remote_get_thread_local_address;
11372 remote_ops.to_stratum = process_stratum;
11373 remote_ops.to_has_all_memory = default_child_has_all_memory;
11374 remote_ops.to_has_memory = default_child_has_memory;
11375 remote_ops.to_has_stack = default_child_has_stack;
11376 remote_ops.to_has_registers = default_child_has_registers;
11377 remote_ops.to_has_execution = default_child_has_execution;
11378 remote_ops.to_has_thread_control = tc_schedlock; /* can lock scheduler */
11379 remote_ops.to_can_execute_reverse = remote_can_execute_reverse;
11380 remote_ops.to_magic = OPS_MAGIC;
11381 remote_ops.to_memory_map = remote_memory_map;
11382 remote_ops.to_flash_erase = remote_flash_erase;
11383 remote_ops.to_flash_done = remote_flash_done;
11384 remote_ops.to_read_description = remote_read_description;
11385 remote_ops.to_search_memory = remote_search_memory;
11386 remote_ops.to_can_async_p = remote_can_async_p;
11387 remote_ops.to_is_async_p = remote_is_async_p;
11388 remote_ops.to_async = remote_async;
11389 remote_ops.to_terminal_inferior = remote_terminal_inferior;
11390 remote_ops.to_terminal_ours = remote_terminal_ours;
11391 remote_ops.to_supports_non_stop = remote_supports_non_stop;
11392 remote_ops.to_supports_multi_process = remote_supports_multi_process;
11393 remote_ops.to_supports_disable_randomization
11394 = remote_supports_disable_randomization;
11395 remote_ops.to_fileio_open = remote_hostio_open;
11396 remote_ops.to_fileio_pwrite = remote_hostio_pwrite;
11397 remote_ops.to_fileio_pread = remote_hostio_pread;
11398 remote_ops.to_fileio_close = remote_hostio_close;
11399 remote_ops.to_fileio_unlink = remote_hostio_unlink;
11400 remote_ops.to_fileio_readlink = remote_hostio_readlink;
11401 remote_ops.to_supports_enable_disable_tracepoint = remote_supports_enable_disable_tracepoint;
11402 remote_ops.to_supports_string_tracing = remote_supports_string_tracing;
11403 remote_ops.to_supports_evaluation_of_breakpoint_conditions = remote_supports_cond_breakpoints;
11404 remote_ops.to_can_run_breakpoint_commands = remote_can_run_breakpoint_commands;
11405 remote_ops.to_trace_init = remote_trace_init;
11406 remote_ops.to_download_tracepoint = remote_download_tracepoint;
11407 remote_ops.to_can_download_tracepoint = remote_can_download_tracepoint;
11408 remote_ops.to_download_trace_state_variable
11409 = remote_download_trace_state_variable;
11410 remote_ops.to_enable_tracepoint = remote_enable_tracepoint;
11411 remote_ops.to_disable_tracepoint = remote_disable_tracepoint;
11412 remote_ops.to_trace_set_readonly_regions = remote_trace_set_readonly_regions;
11413 remote_ops.to_trace_start = remote_trace_start;
11414 remote_ops.to_get_trace_status = remote_get_trace_status;
11415 remote_ops.to_get_tracepoint_status = remote_get_tracepoint_status;
11416 remote_ops.to_trace_stop = remote_trace_stop;
11417 remote_ops.to_trace_find = remote_trace_find;
11418 remote_ops.to_get_trace_state_variable_value
11419 = remote_get_trace_state_variable_value;
11420 remote_ops.to_save_trace_data = remote_save_trace_data;
11421 remote_ops.to_upload_tracepoints = remote_upload_tracepoints;
11422 remote_ops.to_upload_trace_state_variables
11423 = remote_upload_trace_state_variables;
11424 remote_ops.to_get_raw_trace_data = remote_get_raw_trace_data;
11425 remote_ops.to_get_min_fast_tracepoint_insn_len = remote_get_min_fast_tracepoint_insn_len;
11426 remote_ops.to_set_disconnected_tracing = remote_set_disconnected_tracing;
11427 remote_ops.to_set_circular_trace_buffer = remote_set_circular_trace_buffer;
11428 remote_ops.to_set_trace_buffer_size = remote_set_trace_buffer_size;
11429 remote_ops.to_set_trace_notes = remote_set_trace_notes;
11430 remote_ops.to_core_of_thread = remote_core_of_thread;
11431 remote_ops.to_verify_memory = remote_verify_memory;
11432 remote_ops.to_get_tib_address = remote_get_tib_address;
11433 remote_ops.to_set_permissions = remote_set_permissions;
11434 remote_ops.to_static_tracepoint_marker_at
11435 = remote_static_tracepoint_marker_at;
11436 remote_ops.to_static_tracepoint_markers_by_strid
11437 = remote_static_tracepoint_markers_by_strid;
11438 remote_ops.to_traceframe_info = remote_traceframe_info;
11439 remote_ops.to_use_agent = remote_use_agent;
11440 remote_ops.to_can_use_agent = remote_can_use_agent;
11441 remote_ops.to_supports_btrace = remote_supports_btrace;
11442 remote_ops.to_enable_btrace = remote_enable_btrace;
11443 remote_ops.to_disable_btrace = remote_disable_btrace;
11444 remote_ops.to_teardown_btrace = remote_teardown_btrace;
11445 remote_ops.to_read_btrace = remote_read_btrace;
11446}
11447
11448/* Set up the extended remote vector by making a copy of the standard
11449 remote vector and adding to it. */
11450
11451static void
11452init_extended_remote_ops (void)
11453{
11454 extended_remote_ops = remote_ops;
11455
11456 extended_remote_ops.to_shortname = "extended-remote";
11457 extended_remote_ops.to_longname =
11458 "Extended remote serial target in gdb-specific protocol";
11459 extended_remote_ops.to_doc =
11460 "Use a remote computer via a serial line, using a gdb-specific protocol.\n\
11461Specify the serial device it is connected to (e.g. /dev/ttya).";
11462 extended_remote_ops.to_open = extended_remote_open;
11463 extended_remote_ops.to_create_inferior = extended_remote_create_inferior;
11464 extended_remote_ops.to_mourn_inferior = extended_remote_mourn;
11465 extended_remote_ops.to_detach = extended_remote_detach;
11466 extended_remote_ops.to_attach = extended_remote_attach;
11467 extended_remote_ops.to_kill = extended_remote_kill;
11468 extended_remote_ops.to_supports_disable_randomization
11469 = extended_remote_supports_disable_randomization;
11470}
11471
11472static int
11473remote_can_async_p (void)
11474{
11475 if (!target_async_permitted)
11476 /* We only enable async when the user specifically asks for it. */
11477 return 0;
11478
11479 /* We're async whenever the serial device is. */
11480 return serial_can_async_p (remote_desc);
11481}
11482
11483static int
11484remote_is_async_p (void)
11485{
11486 if (!target_async_permitted)
11487 /* We only enable async when the user specifically asks for it. */
11488 return 0;
11489
11490 /* We're async whenever the serial device is. */
11491 return serial_is_async_p (remote_desc);
11492}
11493
11494/* Pass the SERIAL event on and up to the client. One day this code
11495 will be able to delay notifying the client of an event until the
11496 point where an entire packet has been received. */
11497
11498static void (*async_client_callback) (enum inferior_event_type event_type,
11499 void *context);
11500static void *async_client_context;
11501static serial_event_ftype remote_async_serial_handler;
11502
11503static void
11504remote_async_serial_handler (struct serial *scb, void *context)
11505{
11506 /* Don't propogate error information up to the client. Instead let
11507 the client find out about the error by querying the target. */
11508 async_client_callback (INF_REG_EVENT, async_client_context);
11509}
11510
11511static void
11512remote_async_inferior_event_handler (gdb_client_data data)
11513{
11514 inferior_event_handler (INF_REG_EVENT, NULL);
11515}
11516
11517static void
11518remote_async (void (*callback) (enum inferior_event_type event_type,
11519 void *context), void *context)
11520{
11521 if (callback != NULL)
11522 {
11523 serial_async (remote_desc, remote_async_serial_handler, NULL);
11524 async_client_callback = callback;
11525 async_client_context = context;
11526 }
11527 else
11528 serial_async (remote_desc, NULL, NULL);
11529}
11530
11531static void
11532set_remote_cmd (char *args, int from_tty)
11533{
11534 help_list (remote_set_cmdlist, "set remote ", -1, gdb_stdout);
11535}
11536
11537static void
11538show_remote_cmd (char *args, int from_tty)
11539{
11540 /* We can't just use cmd_show_list here, because we want to skip
11541 the redundant "show remote Z-packet" and the legacy aliases. */
11542 struct cleanup *showlist_chain;
11543 struct cmd_list_element *list = remote_show_cmdlist;
11544 struct ui_out *uiout = current_uiout;
11545
11546 showlist_chain = make_cleanup_ui_out_tuple_begin_end (uiout, "showlist");
11547 for (; list != NULL; list = list->next)
11548 if (strcmp (list->name, "Z-packet") == 0)
11549 continue;
11550 else if (list->type == not_set_cmd)
11551 /* Alias commands are exactly like the original, except they
11552 don't have the normal type. */
11553 continue;
11554 else
11555 {
11556 struct cleanup *option_chain
11557 = make_cleanup_ui_out_tuple_begin_end (uiout, "option");
11558
11559 ui_out_field_string (uiout, "name", list->name);
11560 ui_out_text (uiout, ": ");
11561 if (list->type == show_cmd)
11562 do_show_command ((char *) NULL, from_tty, list);
11563 else
11564 cmd_func (list, NULL, from_tty);
11565 /* Close the tuple. */
11566 do_cleanups (option_chain);
11567 }
11568
11569 /* Close the tuple. */
11570 do_cleanups (showlist_chain);
11571}
11572
11573
11574/* Function to be called whenever a new objfile (shlib) is detected. */
11575static void
11576remote_new_objfile (struct objfile *objfile)
11577{
11578 if (remote_desc != 0) /* Have a remote connection. */
11579 remote_check_symbols (objfile);
11580}
11581
11582/* Pull all the tracepoints defined on the target and create local
11583 data structures representing them. We don't want to create real
11584 tracepoints yet, we don't want to mess up the user's existing
11585 collection. */
11586
11587static int
11588remote_upload_tracepoints (struct uploaded_tp **utpp)
11589{
11590 struct remote_state *rs = get_remote_state ();
11591 char *p;
11592
11593 /* Ask for a first packet of tracepoint definition. */
11594 putpkt ("qTfP");
11595 getpkt (&rs->buf, &rs->buf_size, 0);
11596 p = rs->buf;
11597 while (*p && *p != 'l')
11598 {
11599 parse_tracepoint_definition (p, utpp);
11600 /* Ask for another packet of tracepoint definition. */
11601 putpkt ("qTsP");
11602 getpkt (&rs->buf, &rs->buf_size, 0);
11603 p = rs->buf;
11604 }
11605 return 0;
11606}
11607
11608static int
11609remote_upload_trace_state_variables (struct uploaded_tsv **utsvp)
11610{
11611 struct remote_state *rs = get_remote_state ();
11612 char *p;
11613
11614 /* Ask for a first packet of variable definition. */
11615 putpkt ("qTfV");
11616 getpkt (&rs->buf, &rs->buf_size, 0);
11617 p = rs->buf;
11618 while (*p && *p != 'l')
11619 {
11620 parse_tsv_definition (p, utsvp);
11621 /* Ask for another packet of variable definition. */
11622 putpkt ("qTsV");
11623 getpkt (&rs->buf, &rs->buf_size, 0);
11624 p = rs->buf;
11625 }
11626 return 0;
11627}
11628
11629void
11630_initialize_remote (void)
11631{
11632 struct remote_state *rs;
11633 struct cmd_list_element *cmd;
11634 char *cmd_name;
11635
11636 /* architecture specific data */
11637 remote_gdbarch_data_handle =
11638 gdbarch_data_register_post_init (init_remote_state);
11639 remote_g_packet_data_handle =
11640 gdbarch_data_register_pre_init (remote_g_packet_data_init);
11641
11642 /* Initialize the per-target state. At the moment there is only one
11643 of these, not one per target. Only one target is active at a
11644 time. The default buffer size is unimportant; it will be expanded
11645 whenever a larger buffer is needed. */
11646 rs = get_remote_state_raw ();
11647 rs->buf_size = 400;
11648 rs->buf = xmalloc (rs->buf_size);
11649
11650 init_remote_ops ();
11651 add_target (&remote_ops);
11652
11653 init_extended_remote_ops ();
11654 add_target (&extended_remote_ops);
11655
11656 /* Hook into new objfile notification. */
11657 observer_attach_new_objfile (remote_new_objfile);
11658 /* We're no longer interested in notification events of an inferior
11659 when it exits. */
11660 observer_attach_inferior_exit (discard_pending_stop_replies);
11661
11662 /* Set up signal handlers. */
11663 sigint_remote_token =
11664 create_async_signal_handler (async_remote_interrupt, NULL);
11665 sigint_remote_twice_token =
11666 create_async_signal_handler (async_remote_interrupt_twice, NULL);
11667
11668#if 0
11669 init_remote_threadtests ();
11670#endif
11671
11672 stop_reply_queue = QUEUE_alloc (stop_reply_p, stop_reply_xfree);
11673 /* set/show remote ... */
11674
11675 add_prefix_cmd ("remote", class_maintenance, set_remote_cmd, _("\
11676Remote protocol specific variables\n\
11677Configure various remote-protocol specific variables such as\n\
11678the packets being used"),
11679 &remote_set_cmdlist, "set remote ",
11680 0 /* allow-unknown */, &setlist);
11681 add_prefix_cmd ("remote", class_maintenance, show_remote_cmd, _("\
11682Remote protocol specific variables\n\
11683Configure various remote-protocol specific variables such as\n\
11684the packets being used"),
11685 &remote_show_cmdlist, "show remote ",
11686 0 /* allow-unknown */, &showlist);
11687
11688 add_cmd ("compare-sections", class_obscure, compare_sections_command, _("\
11689Compare section data on target to the exec file.\n\
11690Argument is a single section name (default: all loaded sections)."),
11691 &cmdlist);
11692
11693 add_cmd ("packet", class_maintenance, packet_command, _("\
11694Send an arbitrary packet to a remote target.\n\
11695 maintenance packet TEXT\n\
11696If GDB is talking to an inferior via the GDB serial protocol, then\n\
11697this command sends the string TEXT to the inferior, and displays the\n\
11698response packet. GDB supplies the initial `$' character, and the\n\
11699terminating `#' character and checksum."),
11700 &maintenancelist);
11701
11702 add_setshow_boolean_cmd ("remotebreak", no_class, &remote_break, _("\
11703Set whether to send break if interrupted."), _("\
11704Show whether to send break if interrupted."), _("\
11705If set, a break, instead of a cntrl-c, is sent to the remote target."),
11706 set_remotebreak, show_remotebreak,
11707 &setlist, &showlist);
11708 cmd_name = "remotebreak";
11709 cmd = lookup_cmd (&cmd_name, setlist, "", -1, 1);
11710 deprecate_cmd (cmd, "set remote interrupt-sequence");
11711 cmd_name = "remotebreak"; /* needed because lookup_cmd updates the pointer */
11712 cmd = lookup_cmd (&cmd_name, showlist, "", -1, 1);
11713 deprecate_cmd (cmd, "show remote interrupt-sequence");
11714
11715 add_setshow_enum_cmd ("interrupt-sequence", class_support,
11716 interrupt_sequence_modes, &interrupt_sequence_mode,
11717 _("\
11718Set interrupt sequence to remote target."), _("\
11719Show interrupt sequence to remote target."), _("\
11720Valid value is \"Ctrl-C\", \"BREAK\" or \"BREAK-g\". The default is \"Ctrl-C\"."),
11721 NULL, show_interrupt_sequence,
11722 &remote_set_cmdlist,
11723 &remote_show_cmdlist);
11724
11725 add_setshow_boolean_cmd ("interrupt-on-connect", class_support,
11726 &interrupt_on_connect, _("\
11727Set whether interrupt-sequence is sent to remote target when gdb connects to."), _(" \
11728Show whether interrupt-sequence is sent to remote target when gdb connects to."), _(" \
11729If set, interrupt sequence is sent to remote target."),
11730 NULL, NULL,
11731 &remote_set_cmdlist, &remote_show_cmdlist);
11732
11733 /* Install commands for configuring memory read/write packets. */
11734
11735 add_cmd ("remotewritesize", no_class, set_memory_write_packet_size, _("\
11736Set the maximum number of bytes per memory write packet (deprecated)."),
11737 &setlist);
11738 add_cmd ("remotewritesize", no_class, show_memory_write_packet_size, _("\
11739Show the maximum number of bytes per memory write packet (deprecated)."),
11740 &showlist);
11741 add_cmd ("memory-write-packet-size", no_class,
11742 set_memory_write_packet_size, _("\
11743Set the maximum number of bytes per memory-write packet.\n\
11744Specify the number of bytes in a packet or 0 (zero) for the\n\
11745default packet size. The actual limit is further reduced\n\
11746dependent on the target. Specify ``fixed'' to disable the\n\
11747further restriction and ``limit'' to enable that restriction."),
11748 &remote_set_cmdlist);
11749 add_cmd ("memory-read-packet-size", no_class,
11750 set_memory_read_packet_size, _("\
11751Set the maximum number of bytes per memory-read packet.\n\
11752Specify the number of bytes in a packet or 0 (zero) for the\n\
11753default packet size. The actual limit is further reduced\n\
11754dependent on the target. Specify ``fixed'' to disable the\n\
11755further restriction and ``limit'' to enable that restriction."),
11756 &remote_set_cmdlist);
11757 add_cmd ("memory-write-packet-size", no_class,
11758 show_memory_write_packet_size,
11759 _("Show the maximum number of bytes per memory-write packet."),
11760 &remote_show_cmdlist);
11761 add_cmd ("memory-read-packet-size", no_class,
11762 show_memory_read_packet_size,
11763 _("Show the maximum number of bytes per memory-read packet."),
11764 &remote_show_cmdlist);
11765
11766 add_setshow_zinteger_cmd ("hardware-watchpoint-limit", no_class,
11767 &remote_hw_watchpoint_limit, _("\
11768Set the maximum number of target hardware watchpoints."), _("\
11769Show the maximum number of target hardware watchpoints."), _("\
11770Specify a negative limit for unlimited."),
11771 NULL, NULL, /* FIXME: i18n: The maximum
11772 number of target hardware
11773 watchpoints is %s. */
11774 &remote_set_cmdlist, &remote_show_cmdlist);
11775 add_setshow_zinteger_cmd ("hardware-watchpoint-length-limit", no_class,
11776 &remote_hw_watchpoint_length_limit, _("\
11777Set the maximum length (in bytes) of a target hardware watchpoint."), _("\
11778Show the maximum length (in bytes) of a target hardware watchpoint."), _("\
11779Specify a negative limit for unlimited."),
11780 NULL, NULL, /* FIXME: i18n: The maximum
11781 length (in bytes) of a target
11782 hardware watchpoint is %s. */
11783 &remote_set_cmdlist, &remote_show_cmdlist);
11784 add_setshow_zinteger_cmd ("hardware-breakpoint-limit", no_class,
11785 &remote_hw_breakpoint_limit, _("\
11786Set the maximum number of target hardware breakpoints."), _("\
11787Show the maximum number of target hardware breakpoints."), _("\
11788Specify a negative limit for unlimited."),
11789 NULL, NULL, /* FIXME: i18n: The maximum
11790 number of target hardware
11791 breakpoints is %s. */
11792 &remote_set_cmdlist, &remote_show_cmdlist);
11793
11794 add_setshow_uinteger_cmd ("remoteaddresssize", class_obscure,
11795 &remote_address_size, _("\
11796Set the maximum size of the address (in bits) in a memory packet."), _("\
11797Show the maximum size of the address (in bits) in a memory packet."), NULL,
11798 NULL,
11799 NULL, /* FIXME: i18n: */
11800 &setlist, &showlist);
11801
11802 add_packet_config_cmd (&remote_protocol_packets[PACKET_X],
11803 "X", "binary-download", 1);
11804
11805 add_packet_config_cmd (&remote_protocol_packets[PACKET_vCont],
11806 "vCont", "verbose-resume", 0);
11807
11808 add_packet_config_cmd (&remote_protocol_packets[PACKET_QPassSignals],
11809 "QPassSignals", "pass-signals", 0);
11810
11811 add_packet_config_cmd (&remote_protocol_packets[PACKET_QProgramSignals],
11812 "QProgramSignals", "program-signals", 0);
11813
11814 add_packet_config_cmd (&remote_protocol_packets[PACKET_qSymbol],
11815 "qSymbol", "symbol-lookup", 0);
11816
11817 add_packet_config_cmd (&remote_protocol_packets[PACKET_P],
11818 "P", "set-register", 1);
11819
11820 add_packet_config_cmd (&remote_protocol_packets[PACKET_p],
11821 "p", "fetch-register", 1);
11822
11823 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z0],
11824 "Z0", "software-breakpoint", 0);
11825
11826 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z1],
11827 "Z1", "hardware-breakpoint", 0);
11828
11829 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z2],
11830 "Z2", "write-watchpoint", 0);
11831
11832 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z3],
11833 "Z3", "read-watchpoint", 0);
11834
11835 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z4],
11836 "Z4", "access-watchpoint", 0);
11837
11838 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_auxv],
11839 "qXfer:auxv:read", "read-aux-vector", 0);
11840
11841 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_features],
11842 "qXfer:features:read", "target-features", 0);
11843
11844 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_libraries],
11845 "qXfer:libraries:read", "library-info", 0);
11846
11847 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_libraries_svr4],
11848 "qXfer:libraries-svr4:read", "library-info-svr4", 0);
11849
11850 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_memory_map],
11851 "qXfer:memory-map:read", "memory-map", 0);
11852
11853 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_spu_read],
11854 "qXfer:spu:read", "read-spu-object", 0);
11855
11856 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_spu_write],
11857 "qXfer:spu:write", "write-spu-object", 0);
11858
11859 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_osdata],
11860 "qXfer:osdata:read", "osdata", 0);
11861
11862 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_threads],
11863 "qXfer:threads:read", "threads", 0);
11864
11865 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_siginfo_read],
11866 "qXfer:siginfo:read", "read-siginfo-object", 0);
11867
11868 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_siginfo_write],
11869 "qXfer:siginfo:write", "write-siginfo-object", 0);
11870
11871 add_packet_config_cmd
11872 (&remote_protocol_packets[PACKET_qXfer_traceframe_info],
11873 "qXfer:trace-frame-info:read", "traceframe-info", 0);
11874
11875 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_uib],
11876 "qXfer:uib:read", "unwind-info-block", 0);
11877
11878 add_packet_config_cmd (&remote_protocol_packets[PACKET_qGetTLSAddr],
11879 "qGetTLSAddr", "get-thread-local-storage-address",
11880 0);
11881
11882 add_packet_config_cmd (&remote_protocol_packets[PACKET_qGetTIBAddr],
11883 "qGetTIBAddr", "get-thread-information-block-address",
11884 0);
11885
11886 add_packet_config_cmd (&remote_protocol_packets[PACKET_bc],
11887 "bc", "reverse-continue", 0);
11888
11889 add_packet_config_cmd (&remote_protocol_packets[PACKET_bs],
11890 "bs", "reverse-step", 0);
11891
11892 add_packet_config_cmd (&remote_protocol_packets[PACKET_qSupported],
11893 "qSupported", "supported-packets", 0);
11894
11895 add_packet_config_cmd (&remote_protocol_packets[PACKET_qSearch_memory],
11896 "qSearch:memory", "search-memory", 0);
11897
11898 add_packet_config_cmd (&remote_protocol_packets[PACKET_vFile_open],
11899 "vFile:open", "hostio-open", 0);
11900
11901 add_packet_config_cmd (&remote_protocol_packets[PACKET_vFile_pread],
11902 "vFile:pread", "hostio-pread", 0);
11903
11904 add_packet_config_cmd (&remote_protocol_packets[PACKET_vFile_pwrite],
11905 "vFile:pwrite", "hostio-pwrite", 0);
11906
11907 add_packet_config_cmd (&remote_protocol_packets[PACKET_vFile_close],
11908 "vFile:close", "hostio-close", 0);
11909
11910 add_packet_config_cmd (&remote_protocol_packets[PACKET_vFile_unlink],
11911 "vFile:unlink", "hostio-unlink", 0);
11912
11913 add_packet_config_cmd (&remote_protocol_packets[PACKET_vFile_readlink],
11914 "vFile:readlink", "hostio-readlink", 0);
11915
11916 add_packet_config_cmd (&remote_protocol_packets[PACKET_vAttach],
11917 "vAttach", "attach", 0);
11918
11919 add_packet_config_cmd (&remote_protocol_packets[PACKET_vRun],
11920 "vRun", "run", 0);
11921
11922 add_packet_config_cmd (&remote_protocol_packets[PACKET_QStartNoAckMode],
11923 "QStartNoAckMode", "noack", 0);
11924
11925 add_packet_config_cmd (&remote_protocol_packets[PACKET_vKill],
11926 "vKill", "kill", 0);
11927
11928 add_packet_config_cmd (&remote_protocol_packets[PACKET_qAttached],
11929 "qAttached", "query-attached", 0);
11930
11931 add_packet_config_cmd (&remote_protocol_packets[PACKET_ConditionalTracepoints],
11932 "ConditionalTracepoints",
11933 "conditional-tracepoints", 0);
11934
11935 add_packet_config_cmd (&remote_protocol_packets[PACKET_ConditionalBreakpoints],
11936 "ConditionalBreakpoints",
11937 "conditional-breakpoints", 0);
11938
11939 add_packet_config_cmd (&remote_protocol_packets[PACKET_BreakpointCommands],
11940 "BreakpointCommands",
11941 "breakpoint-commands", 0);
11942
11943 add_packet_config_cmd (&remote_protocol_packets[PACKET_FastTracepoints],
11944 "FastTracepoints", "fast-tracepoints", 0);
11945
11946 add_packet_config_cmd (&remote_protocol_packets[PACKET_TracepointSource],
11947 "TracepointSource", "TracepointSource", 0);
11948
11949 add_packet_config_cmd (&remote_protocol_packets[PACKET_QAllow],
11950 "QAllow", "allow", 0);
11951
11952 add_packet_config_cmd (&remote_protocol_packets[PACKET_StaticTracepoints],
11953 "StaticTracepoints", "static-tracepoints", 0);
11954
11955 add_packet_config_cmd (&remote_protocol_packets[PACKET_InstallInTrace],
11956 "InstallInTrace", "install-in-trace", 0);
11957
11958 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_statictrace_read],
11959 "qXfer:statictrace:read", "read-sdata-object", 0);
11960
11961 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_fdpic],
11962 "qXfer:fdpic:read", "read-fdpic-loadmap", 0);
11963
11964 add_packet_config_cmd (&remote_protocol_packets[PACKET_QDisableRandomization],
11965 "QDisableRandomization", "disable-randomization", 0);
11966
11967 add_packet_config_cmd (&remote_protocol_packets[PACKET_QAgent],
11968 "QAgent", "agent", 0);
11969
11970 add_packet_config_cmd (&remote_protocol_packets[PACKET_QTBuffer_size],
11971 "QTBuffer:size", "trace-buffer-size", 0);
11972
11973 add_packet_config_cmd (&remote_protocol_packets[PACKET_Qbtrace_off],
11974 "Qbtrace:off", "disable-btrace", 0);
11975
11976 add_packet_config_cmd (&remote_protocol_packets[PACKET_Qbtrace_bts],
11977 "Qbtrace:bts", "enable-btrace", 0);
11978
11979 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_btrace],
11980 "qXfer:btrace", "read-btrace", 0);
11981
11982 /* Keep the old ``set remote Z-packet ...'' working. Each individual
11983 Z sub-packet has its own set and show commands, but users may
11984 have sets to this variable in their .gdbinit files (or in their
11985 documentation). */
11986 add_setshow_auto_boolean_cmd ("Z-packet", class_obscure,
11987 &remote_Z_packet_detect, _("\
11988Set use of remote protocol `Z' packets"), _("\
11989Show use of remote protocol `Z' packets "), _("\
11990When set, GDB will attempt to use the remote breakpoint and watchpoint\n\
11991packets."),
11992 set_remote_protocol_Z_packet_cmd,
11993 show_remote_protocol_Z_packet_cmd,
11994 /* FIXME: i18n: Use of remote protocol
11995 `Z' packets is %s. */
11996 &remote_set_cmdlist, &remote_show_cmdlist);
11997
11998 add_prefix_cmd ("remote", class_files, remote_command, _("\
11999Manipulate files on the remote system\n\
12000Transfer files to and from the remote target system."),
12001 &remote_cmdlist, "remote ",
12002 0 /* allow-unknown */, &cmdlist);
12003
12004 add_cmd ("put", class_files, remote_put_command,
12005 _("Copy a local file to the remote system."),
12006 &remote_cmdlist);
12007
12008 add_cmd ("get", class_files, remote_get_command,
12009 _("Copy a remote file to the local system."),
12010 &remote_cmdlist);
12011
12012 add_cmd ("delete", class_files, remote_delete_command,
12013 _("Delete a remote file."),
12014 &remote_cmdlist);
12015
12016 remote_exec_file = xstrdup ("");
12017 add_setshow_string_noescape_cmd ("exec-file", class_files,
12018 &remote_exec_file, _("\
12019Set the remote pathname for \"run\""), _("\
12020Show the remote pathname for \"run\""), NULL, NULL, NULL,
12021 &remote_set_cmdlist, &remote_show_cmdlist);
12022
12023 /* Eventually initialize fileio. See fileio.c */
12024 initialize_remote_fileio (remote_set_cmdlist, remote_show_cmdlist);
12025
12026 /* Take advantage of the fact that the LWP field is not used, to tag
12027 special ptids with it set to != 0. */
12028 magic_null_ptid = ptid_build (42000, 1, -1);
12029 not_sent_ptid = ptid_build (42000, 1, -2);
12030 any_thread_ptid = ptid_build (42000, 1, 0);
12031
12032 target_buf_size = 2048;
12033 target_buf = xmalloc (target_buf_size);
12034}
12035