* linux-nat.c (linux_nat_terminal_inferior)
[deliverable/binutils-gdb.git] / gdb / remote.c
CommitLineData
c906108c 1/* Remote target communications for serial-line targets in custom GDB protocol
8926118c 2
6aba47ca 3 Copyright (C) 1988, 1989, 1990, 1991, 1992, 1993, 1994, 1995, 1996, 1997,
0fb0cc75 4 1998, 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007, 2008, 2009
29182b13 5 Free Software Foundation, Inc.
c906108c 6
c5aa993b
JM
7 This file is part of GDB.
8
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
a9762ec7 11 the Free Software Foundation; either version 3 of the License, or
c5aa993b
JM
12 (at your option) any later version.
13
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
18
19 You should have received a copy of the GNU General Public License
a9762ec7 20 along with this program. If not, see <http://www.gnu.org/licenses/>. */
c5aa993b 21
23860348 22/* See the GDB User Guide for details of the GDB remote protocol. */
c5aa993b 23
c906108c
SS
24#include "defs.h"
25#include "gdb_string.h"
26#include <ctype.h>
27#include <fcntl.h>
c906108c
SS
28#include "inferior.h"
29#include "bfd.h"
30#include "symfile.h"
60250e8b 31#include "exceptions.h"
c906108c 32#include "target.h"
c5aa993b 33/*#include "terminal.h" */
c906108c
SS
34#include "gdbcmd.h"
35#include "objfiles.h"
36#include "gdb-stabs.h"
37#include "gdbthread.h"
c2c6d25f 38#include "remote.h"
4e052eda 39#include "regcache.h"
fd0407d6 40#include "value.h"
1ff9c3d6 41#include "gdb_assert.h"
6867ae3e 42#include "observer.h"
a77053c2 43#include "solib.h"
37a105a1
DJ
44#include "cli/cli-decode.h"
45#include "cli/cli-setshow.h"
424163ea 46#include "target-descriptions.h"
c906108c 47
7a292a7a 48#include <ctype.h>
9846de1b 49#include <sys/time.h>
c906108c 50
43ff13b4 51#include "event-loop.h"
c2c6d25f 52#include "event-top.h"
2acceee2 53#include "inf-loop.h"
43ff13b4 54
c906108c
SS
55#include <signal.h>
56#include "serial.h"
57
6240bebf
MS
58#include "gdbcore.h" /* for exec_bfd */
59
449092f6 60#include "remote-fileio.h"
a6b151f1 61#include "gdb/fileio.h"
3e88cf8d 62#include "gdb_stat.h"
449092f6 63
fd79ecee
DJ
64#include "memory-map.h"
65
6765f3e5
DJ
66/* The size to align memory write packets, when practical. The protocol
67 does not guarantee any alignment, and gdb will generate short
68 writes and unaligned writes, but even as a best-effort attempt this
69 can improve bulk transfers. For instance, if a write is misaligned
70 relative to the target's data bus, the stub may need to make an extra
71 round trip fetching data from the target. This doesn't make a
72 huge difference, but it's easy to do, so we try to be helpful.
73
74 The alignment chosen is arbitrary; usually data bus width is
75 important here, not the possibly larger cache line size. */
76enum { REMOTE_ALIGN_WRITES = 16 };
77
23860348 78/* Prototypes for local functions. */
6426a772
JM
79static void cleanup_sigint_signal_handler (void *dummy);
80static void initialize_sigint_signal_handler (void);
6d820c5c 81static int getpkt_sane (char **buf, long *sizeof_buf, int forever);
74531fed
PA
82static int getpkt_or_notif_sane (char **buf, long *sizeof_buf,
83 int forever);
6426a772 84
a14ed312
KB
85static void handle_remote_sigint (int);
86static void handle_remote_sigint_twice (int);
87static void async_remote_interrupt (gdb_client_data);
88void async_remote_interrupt_twice (gdb_client_data);
43ff13b4 89
a14ed312 90static void remote_files_info (struct target_ops *ignore);
c906108c 91
316f2060 92static void remote_prepare_to_store (struct regcache *regcache);
c906108c 93
a14ed312 94static void remote_open (char *name, int from_tty);
c906108c 95
a14ed312 96static void extended_remote_open (char *name, int from_tty);
c906108c 97
75c99385 98static void remote_open_1 (char *, int, struct target_ops *, int extended_p);
c906108c 99
a14ed312 100static void remote_close (int quitting);
c906108c 101
136d6dae 102static void remote_mourn (struct target_ops *ops);
c906108c 103
a14ed312 104static void extended_remote_restart (void);
c906108c 105
136d6dae 106static void extended_remote_mourn (struct target_ops *);
c906108c 107
a14ed312 108static void remote_mourn_1 (struct target_ops *);
c906108c 109
6d820c5c 110static void remote_send (char **buf, long *sizeof_buf_p);
c906108c 111
a14ed312 112static int readchar (int timeout);
c906108c 113
7d85a9c0 114static void remote_kill (struct target_ops *ops);
c906108c 115
a14ed312 116static int tohex (int nib);
c906108c 117
75c99385
PA
118static int remote_can_async_p (void);
119
120static int remote_is_async_p (void);
121
122static void remote_async (void (*callback) (enum inferior_event_type event_type,
123 void *context), void *context);
124
125static int remote_async_mask (int new_mask);
126
136d6dae 127static void remote_detach (struct target_ops *ops, char *args, int from_tty);
c906108c 128
a14ed312 129static void remote_interrupt (int signo);
c906108c 130
a14ed312 131static void remote_interrupt_twice (int signo);
7a292a7a 132
a14ed312 133static void interrupt_query (void);
c906108c 134
79d7f229
PA
135static void set_general_thread (struct ptid ptid);
136static void set_continue_thread (struct ptid ptid);
c906108c 137
a14ed312 138static void get_offsets (void);
c906108c 139
6d820c5c
DJ
140static void skip_frame (void);
141
142static long read_frame (char **buf_p, long *sizeof_buf);
c906108c 143
a14ed312 144static int hexnumlen (ULONGEST num);
c906108c 145
a14ed312 146static void init_remote_ops (void);
c906108c 147
a14ed312 148static void init_extended_remote_ops (void);
c906108c 149
94cc34af 150static void remote_stop (ptid_t);
c906108c 151
a14ed312 152static int ishex (int ch, int *val);
c906108c 153
a14ed312 154static int stubhex (int ch);
c906108c 155
a14ed312 156static int hexnumstr (char *, ULONGEST);
c906108c 157
a14ed312 158static int hexnumnstr (char *, ULONGEST, int);
2df3850c 159
a14ed312 160static CORE_ADDR remote_address_masked (CORE_ADDR);
c906108c 161
a14ed312 162static void print_packet (char *);
c906108c 163
a14ed312 164static unsigned long crc32 (unsigned char *, int, unsigned int);
c906108c 165
a14ed312 166static void compare_sections_command (char *, int);
c906108c 167
a14ed312 168static void packet_command (char *, int);
c906108c 169
a14ed312 170static int stub_unpack_int (char *buff, int fieldlength);
c906108c 171
39f77062 172static ptid_t remote_current_thread (ptid_t oldptid);
c906108c 173
a14ed312 174static void remote_find_new_threads (void);
c906108c 175
79d7f229 176static void record_currthread (ptid_t currthread);
c906108c 177
30559e10 178static int fromhex (int a);
c906108c 179
cfd77fa1 180static int hex2bin (const char *hex, gdb_byte *bin, int count);
c906108c 181
cfd77fa1 182static int bin2hex (const gdb_byte *bin, char *hex, int count);
234fa6d1 183
a14ed312 184static int putpkt_binary (char *buf, int cnt);
c906108c 185
a14ed312 186static void check_binary_download (CORE_ADDR addr);
c906108c 187
5a2468f5 188struct packet_config;
5a2468f5 189
a14ed312 190static void show_packet_config_cmd (struct packet_config *config);
5a2468f5 191
d471ea57 192static void update_packet_config (struct packet_config *config);
5a2468f5 193
bb572ddd
DJ
194static void set_remote_protocol_packet_cmd (char *args, int from_tty,
195 struct cmd_list_element *c);
196
197static void show_remote_protocol_packet_cmd (struct ui_file *file,
198 int from_tty,
199 struct cmd_list_element *c,
200 const char *value);
201
82f73884
PA
202static char *write_ptid (char *buf, const char *endbuf, ptid_t ptid);
203static ptid_t read_ptid (char *buf, char **obuf);
204
c8d104ad
PA
205static void remote_query_supported (void);
206
207static void remote_check_symbols (struct objfile *objfile);
208
a14ed312 209void _initialize_remote (void);
c906108c 210
74531fed
PA
211struct stop_reply;
212static struct stop_reply *stop_reply_xmalloc (void);
213static void stop_reply_xfree (struct stop_reply *);
214static void do_stop_reply_xfree (void *arg);
215static void remote_parse_stop_reply (char *buf, struct stop_reply *);
216static void push_stop_reply (struct stop_reply *);
217static void remote_get_pending_stop_replies (void);
218static void discard_pending_stop_replies (int pid);
219static int peek_stop_reply (ptid_t ptid);
220
221static void remote_async_inferior_event_handler (gdb_client_data);
222static void remote_async_get_pending_events_handler (gdb_client_data);
223
d3fd5342
PA
224static void remote_terminal_ours (void);
225
d962ef82
DJ
226static int remote_read_description_p (struct target_ops *target);
227
74531fed
PA
228/* The non-stop remote protocol provisions for one pending stop reply.
229 This is where we keep it until it is acknowledged. */
230
231static struct stop_reply *pending_stop_reply = NULL;
232
a6b151f1
DJ
233/* For "remote". */
234
235static struct cmd_list_element *remote_cmdlist;
236
bb572ddd
DJ
237/* For "set remote" and "show remote". */
238
239static struct cmd_list_element *remote_set_cmdlist;
240static struct cmd_list_element *remote_show_cmdlist;
241
ea9c271d
DJ
242/* Description of the remote protocol state for the currently
243 connected target. This is per-target state, and independent of the
244 selected architecture. */
245
246struct remote_state
247{
248 /* A buffer to use for incoming packets, and its current size. The
249 buffer is grown dynamically for larger incoming packets.
250 Outgoing packets may also be constructed in this buffer.
251 BUF_SIZE is always at least REMOTE_PACKET_SIZE;
252 REMOTE_PACKET_SIZE should be used to limit the length of outgoing
253 packets. */
254 char *buf;
255 long buf_size;
be2a5f71
DJ
256
257 /* If we negotiated packet size explicitly (and thus can bypass
258 heuristics for the largest packet size that will not overflow
259 a buffer in the stub), this will be set to that packet size.
260 Otherwise zero, meaning to use the guessed size. */
261 long explicit_packet_size;
2d717e4f
DJ
262
263 /* remote_wait is normally called when the target is running and
264 waits for a stop reply packet. But sometimes we need to call it
265 when the target is already stopped. We can send a "?" packet
266 and have remote_wait read the response. Or, if we already have
267 the response, we can stash it in BUF and tell remote_wait to
268 skip calling getpkt. This flag is set when BUF contains a
269 stop reply packet and the target is not waiting. */
270 int cached_wait_status;
a6f3e723
SL
271
272 /* True, if in no ack mode. That is, neither GDB nor the stub will
273 expect acks from each other. The connection is assumed to be
274 reliable. */
275 int noack_mode;
82f73884
PA
276
277 /* True if we're connected in extended remote mode. */
278 int extended;
279
280 /* True if the stub reported support for multi-process
281 extensions. */
282 int multi_process_aware;
e24a49d8
PA
283
284 /* True if we resumed the target and we're waiting for the target to
285 stop. In the mean time, we can't start another command/query.
286 The remote server wouldn't be ready to process it, so we'd
287 timeout waiting for a reply that would never come and eventually
288 we'd close the connection. This can happen in asynchronous mode
289 because we allow GDB commands while the target is running. */
290 int waiting_for_stop_reply;
74531fed
PA
291
292 /* True if the stub reports support for non-stop mode. */
293 int non_stop_aware;
294
295 /* True if the stub reports support for vCont;t. */
296 int support_vCont_t;
ea9c271d
DJ
297};
298
82f73884
PA
299/* Returns true if the multi-process extensions are in effect. */
300static int
301remote_multi_process_p (struct remote_state *rs)
302{
303 return rs->extended && rs->multi_process_aware;
304}
305
ea9c271d
DJ
306/* This data could be associated with a target, but we do not always
307 have access to the current target when we need it, so for now it is
308 static. This will be fine for as long as only one target is in use
309 at a time. */
310static struct remote_state remote_state;
311
312static struct remote_state *
0b83947e 313get_remote_state_raw (void)
ea9c271d
DJ
314{
315 return &remote_state;
316}
317
318/* Description of the remote protocol for a given architecture. */
d01949b6 319
ad10f812
AC
320struct packet_reg
321{
322 long offset; /* Offset into G packet. */
323 long regnum; /* GDB's internal register number. */
324 LONGEST pnum; /* Remote protocol register number. */
b323314b 325 int in_g_packet; /* Always part of G packet. */
1cf3db46 326 /* long size in bytes; == register_size (target_gdbarch, regnum);
23860348 327 at present. */
1cf3db46 328 /* char *name; == gdbarch_register_name (target_gdbarch, regnum);
c9f4d572 329 at present. */
ad10f812
AC
330};
331
ea9c271d 332struct remote_arch_state
d01949b6 333{
ad10f812
AC
334 /* Description of the remote protocol registers. */
335 long sizeof_g_packet;
b323314b
AC
336
337 /* Description of the remote protocol registers indexed by REGNUM
f57d151a 338 (making an array gdbarch_num_regs in size). */
b323314b 339 struct packet_reg *regs;
ad10f812 340
d01949b6
AC
341 /* This is the size (in chars) of the first response to the ``g''
342 packet. It is used as a heuristic when determining the maximum
343 size of memory-read and memory-write packets. A target will
344 typically only reserve a buffer large enough to hold the ``g''
345 packet. The size does not include packet overhead (headers and
23860348 346 trailers). */
d01949b6
AC
347 long actual_register_packet_size;
348
349 /* This is the maximum size (in chars) of a non read/write packet.
23860348 350 It is also used as a cap on the size of read/write packets. */
d01949b6
AC
351 long remote_packet_size;
352};
353
3c3bea1c 354
d01949b6
AC
355/* Handle for retreving the remote protocol data from gdbarch. */
356static struct gdbarch_data *remote_gdbarch_data_handle;
357
ea9c271d
DJ
358static struct remote_arch_state *
359get_remote_arch_state (void)
d01949b6 360{
1cf3db46 361 return gdbarch_data (target_gdbarch, remote_gdbarch_data_handle);
d01949b6
AC
362}
363
0b83947e
DJ
364/* Fetch the global remote target state. */
365
366static struct remote_state *
367get_remote_state (void)
368{
369 /* Make sure that the remote architecture state has been
370 initialized, because doing so might reallocate rs->buf. Any
371 function which calls getpkt also needs to be mindful of changes
372 to rs->buf, but this call limits the number of places which run
373 into trouble. */
374 get_remote_arch_state ();
375
376 return get_remote_state_raw ();
377}
378
74ca34ce
DJ
379static int
380compare_pnums (const void *lhs_, const void *rhs_)
381{
382 const struct packet_reg * const *lhs = lhs_;
383 const struct packet_reg * const *rhs = rhs_;
384
385 if ((*lhs)->pnum < (*rhs)->pnum)
386 return -1;
387 else if ((*lhs)->pnum == (*rhs)->pnum)
388 return 0;
389 else
390 return 1;
391}
392
d01949b6
AC
393static void *
394init_remote_state (struct gdbarch *gdbarch)
395{
74ca34ce 396 int regnum, num_remote_regs, offset;
0b83947e 397 struct remote_state *rs = get_remote_state_raw ();
ea9c271d 398 struct remote_arch_state *rsa;
74ca34ce 399 struct packet_reg **remote_regs;
ea9c271d
DJ
400
401 rsa = GDBARCH_OBSTACK_ZALLOC (gdbarch, struct remote_arch_state);
d01949b6 402
123dc839
DJ
403 /* Use the architecture to build a regnum<->pnum table, which will be
404 1:1 unless a feature set specifies otherwise. */
f57d151a 405 rsa->regs = GDBARCH_OBSTACK_CALLOC (gdbarch,
4a22f64d 406 gdbarch_num_regs (gdbarch),
f57d151a 407 struct packet_reg);
4a22f64d 408 for (regnum = 0; regnum < gdbarch_num_regs (gdbarch); regnum++)
ad10f812 409 {
ea9c271d 410 struct packet_reg *r = &rsa->regs[regnum];
baef701f 411
4a22f64d 412 if (register_size (gdbarch, regnum) == 0)
baef701f
DJ
413 /* Do not try to fetch zero-sized (placeholder) registers. */
414 r->pnum = -1;
415 else
416 r->pnum = gdbarch_remote_register_number (gdbarch, regnum);
417
b323314b 418 r->regnum = regnum;
74ca34ce
DJ
419 }
420
421 /* Define the g/G packet format as the contents of each register
422 with a remote protocol number, in order of ascending protocol
423 number. */
424
4a22f64d
UW
425 remote_regs = alloca (gdbarch_num_regs (gdbarch)
426 * sizeof (struct packet_reg *));
f57d151a 427 for (num_remote_regs = 0, regnum = 0;
4a22f64d 428 regnum < gdbarch_num_regs (gdbarch);
f57d151a 429 regnum++)
74ca34ce
DJ
430 if (rsa->regs[regnum].pnum != -1)
431 remote_regs[num_remote_regs++] = &rsa->regs[regnum];
7d58c67d 432
74ca34ce
DJ
433 qsort (remote_regs, num_remote_regs, sizeof (struct packet_reg *),
434 compare_pnums);
435
436 for (regnum = 0, offset = 0; regnum < num_remote_regs; regnum++)
437 {
438 remote_regs[regnum]->in_g_packet = 1;
439 remote_regs[regnum]->offset = offset;
4a22f64d 440 offset += register_size (gdbarch, remote_regs[regnum]->regnum);
ad10f812
AC
441 }
442
74ca34ce
DJ
443 /* Record the maximum possible size of the g packet - it may turn out
444 to be smaller. */
445 rsa->sizeof_g_packet = offset;
446
d01949b6
AC
447 /* Default maximum number of characters in a packet body. Many
448 remote stubs have a hardwired buffer size of 400 bytes
449 (c.f. BUFMAX in m68k-stub.c and i386-stub.c). BUFMAX-1 is used
450 as the maximum packet-size to ensure that the packet and an extra
451 NUL character can always fit in the buffer. This stops GDB
452 trashing stubs that try to squeeze an extra NUL into what is
ea9c271d
DJ
453 already a full buffer (As of 1999-12-04 that was most stubs). */
454 rsa->remote_packet_size = 400 - 1;
d01949b6 455
ea9c271d
DJ
456 /* This one is filled in when a ``g'' packet is received. */
457 rsa->actual_register_packet_size = 0;
458
459 /* Should rsa->sizeof_g_packet needs more space than the
ad10f812
AC
460 default, adjust the size accordingly. Remember that each byte is
461 encoded as two characters. 32 is the overhead for the packet
462 header / footer. NOTE: cagney/1999-10-26: I suspect that 8
d01949b6 463 (``$NN:G...#NN'') is a better guess, the below has been padded a
23860348 464 little. */
ea9c271d
DJ
465 if (rsa->sizeof_g_packet > ((rsa->remote_packet_size - 32) / 2))
466 rsa->remote_packet_size = (rsa->sizeof_g_packet * 2 + 32);
802188a7 467
ea9c271d
DJ
468 /* Make sure that the packet buffer is plenty big enough for
469 this architecture. */
470 if (rs->buf_size < rsa->remote_packet_size)
471 {
472 rs->buf_size = 2 * rsa->remote_packet_size;
7fca722e 473 rs->buf = xrealloc (rs->buf, rs->buf_size);
ea9c271d 474 }
6d820c5c 475
ea9c271d
DJ
476 return rsa;
477}
478
479/* Return the current allowed size of a remote packet. This is
480 inferred from the current architecture, and should be used to
481 limit the length of outgoing packets. */
482static long
483get_remote_packet_size (void)
484{
be2a5f71 485 struct remote_state *rs = get_remote_state ();
ea9c271d
DJ
486 struct remote_arch_state *rsa = get_remote_arch_state ();
487
be2a5f71
DJ
488 if (rs->explicit_packet_size)
489 return rs->explicit_packet_size;
490
ea9c271d 491 return rsa->remote_packet_size;
d01949b6
AC
492}
493
ad10f812 494static struct packet_reg *
ea9c271d 495packet_reg_from_regnum (struct remote_arch_state *rsa, long regnum)
ad10f812 496{
1cf3db46 497 if (regnum < 0 && regnum >= gdbarch_num_regs (target_gdbarch))
b323314b
AC
498 return NULL;
499 else
ad10f812 500 {
ea9c271d 501 struct packet_reg *r = &rsa->regs[regnum];
b323314b
AC
502 gdb_assert (r->regnum == regnum);
503 return r;
ad10f812 504 }
ad10f812
AC
505}
506
507static struct packet_reg *
ea9c271d 508packet_reg_from_pnum (struct remote_arch_state *rsa, LONGEST pnum)
ad10f812 509{
b323314b 510 int i;
1cf3db46 511 for (i = 0; i < gdbarch_num_regs (target_gdbarch); i++)
ad10f812 512 {
ea9c271d 513 struct packet_reg *r = &rsa->regs[i];
b323314b
AC
514 if (r->pnum == pnum)
515 return r;
ad10f812
AC
516 }
517 return NULL;
d01949b6
AC
518}
519
3c3bea1c
GS
520/* FIXME: graces/2002-08-08: These variables should eventually be
521 bound to an instance of the target object (as in gdbarch-tdep()),
522 when such a thing exists. */
523
524/* This is set to the data address of the access causing the target
525 to stop for a watchpoint. */
526static CORE_ADDR remote_watch_data_address;
527
94e08568 528/* This is non-zero if target stopped for a watchpoint. */
3c3bea1c
GS
529static int remote_stopped_by_watchpoint_p;
530
c906108c
SS
531static struct target_ops remote_ops;
532
533static struct target_ops extended_remote_ops;
534
b84876c2
PA
535static int remote_async_mask_value = 1;
536
6426a772
JM
537/* FIXME: cagney/1999-09-23: Even though getpkt was called with
538 ``forever'' still use the normal timeout mechanism. This is
539 currently used by the ASYNC code to guarentee that target reads
540 during the initial connect always time-out. Once getpkt has been
541 modified to return a timeout indication and, in turn
542 remote_wait()/wait_for_inferior() have gained a timeout parameter
23860348 543 this can go away. */
6426a772
JM
544static int wait_forever_enabled_p = 1;
545
546
c906108c
SS
547/* This variable chooses whether to send a ^C or a break when the user
548 requests program interruption. Although ^C is usually what remote
549 systems expect, and that is the default here, sometimes a break is
550 preferable instead. */
551
552static int remote_break;
553
c906108c
SS
554/* Descriptor for I/O to remote machine. Initialize it to NULL so that
555 remote_open knows that we don't have a file open when the program
556 starts. */
819cc324 557static struct serial *remote_desc = NULL;
c906108c 558
c906108c
SS
559/* This variable sets the number of bits in an address that are to be
560 sent in a memory ("M" or "m") packet. Normally, after stripping
561 leading zeros, the entire address would be sent. This variable
562 restricts the address to REMOTE_ADDRESS_SIZE bits. HISTORY: The
563 initial implementation of remote.c restricted the address sent in
564 memory packets to ``host::sizeof long'' bytes - (typically 32
565 bits). Consequently, for 64 bit targets, the upper 32 bits of an
566 address was never sent. Since fixing this bug may cause a break in
567 some remote targets this variable is principly provided to
23860348 568 facilitate backward compatibility. */
c906108c
SS
569
570static int remote_address_size;
571
75c99385
PA
572/* Temporary to track who currently owns the terminal. See
573 remote_terminal_* for more details. */
6426a772
JM
574
575static int remote_async_terminal_ours_p;
576
2d717e4f
DJ
577/* The executable file to use for "run" on the remote side. */
578
579static char *remote_exec_file = "";
580
11cf8741 581\f
11cf8741 582/* User configurable variables for the number of characters in a
ea9c271d
DJ
583 memory read/write packet. MIN (rsa->remote_packet_size,
584 rsa->sizeof_g_packet) is the default. Some targets need smaller
24b06219 585 values (fifo overruns, et.al.) and some users need larger values
ad10f812
AC
586 (speed up transfers). The variables ``preferred_*'' (the user
587 request), ``current_*'' (what was actually set) and ``forced_*''
23860348 588 (Positive - a soft limit, negative - a hard limit). */
11cf8741
JM
589
590struct memory_packet_config
591{
592 char *name;
593 long size;
594 int fixed_p;
595};
596
597/* Compute the current size of a read/write packet. Since this makes
598 use of ``actual_register_packet_size'' the computation is dynamic. */
599
600static long
601get_memory_packet_size (struct memory_packet_config *config)
602{
d01949b6 603 struct remote_state *rs = get_remote_state ();
ea9c271d
DJ
604 struct remote_arch_state *rsa = get_remote_arch_state ();
605
11cf8741
JM
606 /* NOTE: The somewhat arbitrary 16k comes from the knowledge (folk
607 law?) that some hosts don't cope very well with large alloca()
608 calls. Eventually the alloca() code will be replaced by calls to
609 xmalloc() and make_cleanups() allowing this restriction to either
23860348 610 be lifted or removed. */
11cf8741
JM
611#ifndef MAX_REMOTE_PACKET_SIZE
612#define MAX_REMOTE_PACKET_SIZE 16384
613#endif
3de11b2e 614 /* NOTE: 20 ensures we can write at least one byte. */
11cf8741 615#ifndef MIN_REMOTE_PACKET_SIZE
3de11b2e 616#define MIN_REMOTE_PACKET_SIZE 20
11cf8741
JM
617#endif
618 long what_they_get;
619 if (config->fixed_p)
620 {
621 if (config->size <= 0)
622 what_they_get = MAX_REMOTE_PACKET_SIZE;
623 else
624 what_they_get = config->size;
625 }
626 else
627 {
ea9c271d 628 what_they_get = get_remote_packet_size ();
23860348 629 /* Limit the packet to the size specified by the user. */
11cf8741
JM
630 if (config->size > 0
631 && what_they_get > config->size)
632 what_they_get = config->size;
be2a5f71
DJ
633
634 /* Limit it to the size of the targets ``g'' response unless we have
635 permission from the stub to use a larger packet size. */
636 if (rs->explicit_packet_size == 0
637 && rsa->actual_register_packet_size > 0
638 && what_they_get > rsa->actual_register_packet_size)
639 what_they_get = rsa->actual_register_packet_size;
11cf8741
JM
640 }
641 if (what_they_get > MAX_REMOTE_PACKET_SIZE)
642 what_they_get = MAX_REMOTE_PACKET_SIZE;
643 if (what_they_get < MIN_REMOTE_PACKET_SIZE)
644 what_they_get = MIN_REMOTE_PACKET_SIZE;
6d820c5c
DJ
645
646 /* Make sure there is room in the global buffer for this packet
647 (including its trailing NUL byte). */
648 if (rs->buf_size < what_they_get + 1)
649 {
650 rs->buf_size = 2 * what_they_get;
651 rs->buf = xrealloc (rs->buf, 2 * what_they_get);
652 }
653
11cf8741
JM
654 return what_they_get;
655}
656
657/* Update the size of a read/write packet. If they user wants
23860348 658 something really big then do a sanity check. */
11cf8741
JM
659
660static void
661set_memory_packet_size (char *args, struct memory_packet_config *config)
662{
663 int fixed_p = config->fixed_p;
664 long size = config->size;
665 if (args == NULL)
8a3fe4f8 666 error (_("Argument required (integer, `fixed' or `limited')."));
11cf8741
JM
667 else if (strcmp (args, "hard") == 0
668 || strcmp (args, "fixed") == 0)
669 fixed_p = 1;
670 else if (strcmp (args, "soft") == 0
671 || strcmp (args, "limit") == 0)
672 fixed_p = 0;
673 else
674 {
675 char *end;
676 size = strtoul (args, &end, 0);
677 if (args == end)
8a3fe4f8 678 error (_("Invalid %s (bad syntax)."), config->name);
11cf8741
JM
679#if 0
680 /* Instead of explicitly capping the size of a packet to
681 MAX_REMOTE_PACKET_SIZE or dissallowing it, the user is
682 instead allowed to set the size to something arbitrarily
23860348 683 large. */
11cf8741 684 if (size > MAX_REMOTE_PACKET_SIZE)
8a3fe4f8 685 error (_("Invalid %s (too large)."), config->name);
11cf8741
JM
686#endif
687 }
23860348 688 /* Extra checks? */
11cf8741
JM
689 if (fixed_p && !config->fixed_p)
690 {
e2e0b3e5
AC
691 if (! query (_("The target may not be able to correctly handle a %s\n"
692 "of %ld bytes. Change the packet size? "),
11cf8741 693 config->name, size))
8a3fe4f8 694 error (_("Packet size not changed."));
11cf8741 695 }
23860348 696 /* Update the config. */
11cf8741
JM
697 config->fixed_p = fixed_p;
698 config->size = size;
699}
700
701static void
702show_memory_packet_size (struct memory_packet_config *config)
703{
a3f17187 704 printf_filtered (_("The %s is %ld. "), config->name, config->size);
11cf8741 705 if (config->fixed_p)
a3f17187 706 printf_filtered (_("Packets are fixed at %ld bytes.\n"),
11cf8741
JM
707 get_memory_packet_size (config));
708 else
a3f17187 709 printf_filtered (_("Packets are limited to %ld bytes.\n"),
11cf8741
JM
710 get_memory_packet_size (config));
711}
712
713static struct memory_packet_config memory_write_packet_config =
714{
715 "memory-write-packet-size",
716};
717
718static void
719set_memory_write_packet_size (char *args, int from_tty)
720{
721 set_memory_packet_size (args, &memory_write_packet_config);
722}
723
724static void
725show_memory_write_packet_size (char *args, int from_tty)
726{
727 show_memory_packet_size (&memory_write_packet_config);
728}
729
730static long
731get_memory_write_packet_size (void)
732{
733 return get_memory_packet_size (&memory_write_packet_config);
734}
735
736static struct memory_packet_config memory_read_packet_config =
737{
738 "memory-read-packet-size",
739};
740
741static void
742set_memory_read_packet_size (char *args, int from_tty)
743{
744 set_memory_packet_size (args, &memory_read_packet_config);
745}
746
747static void
748show_memory_read_packet_size (char *args, int from_tty)
749{
750 show_memory_packet_size (&memory_read_packet_config);
751}
752
753static long
754get_memory_read_packet_size (void)
755{
756 long size = get_memory_packet_size (&memory_read_packet_config);
757 /* FIXME: cagney/1999-11-07: Functions like getpkt() need to get an
758 extra buffer size argument before the memory read size can be
ea9c271d
DJ
759 increased beyond this. */
760 if (size > get_remote_packet_size ())
761 size = get_remote_packet_size ();
11cf8741
JM
762 return size;
763}
764
11cf8741 765\f
5a2468f5
JM
766/* Generic configuration support for packets the stub optionally
767 supports. Allows the user to specify the use of the packet as well
23860348 768 as allowing GDB to auto-detect support in the remote stub. */
5a2468f5
JM
769
770enum packet_support
771 {
772 PACKET_SUPPORT_UNKNOWN = 0,
773 PACKET_ENABLE,
774 PACKET_DISABLE
775 };
776
5a2468f5
JM
777struct packet_config
778 {
bb572ddd
DJ
779 const char *name;
780 const char *title;
7f19b9a2 781 enum auto_boolean detect;
5a2468f5
JM
782 enum packet_support support;
783 };
784
d471ea57 785/* Analyze a packet's return value and update the packet config
23860348 786 accordingly. */
d471ea57
AC
787
788enum packet_result
789{
790 PACKET_ERROR,
791 PACKET_OK,
792 PACKET_UNKNOWN
793};
794
5a2468f5 795static void
d471ea57 796update_packet_config (struct packet_config *config)
5a2468f5 797{
d471ea57
AC
798 switch (config->detect)
799 {
7f19b9a2 800 case AUTO_BOOLEAN_TRUE:
d471ea57
AC
801 config->support = PACKET_ENABLE;
802 break;
7f19b9a2 803 case AUTO_BOOLEAN_FALSE:
d471ea57
AC
804 config->support = PACKET_DISABLE;
805 break;
7f19b9a2 806 case AUTO_BOOLEAN_AUTO:
d471ea57
AC
807 config->support = PACKET_SUPPORT_UNKNOWN;
808 break;
809 }
5a2468f5
JM
810}
811
812static void
fba45db2 813show_packet_config_cmd (struct packet_config *config)
5a2468f5
JM
814{
815 char *support = "internal-error";
816 switch (config->support)
817 {
818 case PACKET_ENABLE:
819 support = "enabled";
820 break;
821 case PACKET_DISABLE:
822 support = "disabled";
823 break;
824 case PACKET_SUPPORT_UNKNOWN:
825 support = "unknown";
826 break;
827 }
828 switch (config->detect)
829 {
7f19b9a2 830 case AUTO_BOOLEAN_AUTO:
37a105a1
DJ
831 printf_filtered (_("Support for the `%s' packet is auto-detected, currently %s.\n"),
832 config->name, support);
5a2468f5 833 break;
7f19b9a2
AC
834 case AUTO_BOOLEAN_TRUE:
835 case AUTO_BOOLEAN_FALSE:
37a105a1
DJ
836 printf_filtered (_("Support for the `%s' packet is currently %s.\n"),
837 config->name, support);
8e248173 838 break;
5a2468f5
JM
839 }
840}
841
842static void
bb572ddd
DJ
843add_packet_config_cmd (struct packet_config *config, const char *name,
844 const char *title, int legacy)
d471ea57 845{
5a2468f5
JM
846 char *set_doc;
847 char *show_doc;
d471ea57 848 char *cmd_name;
3ed07be4 849
5a2468f5
JM
850 config->name = name;
851 config->title = title;
7f19b9a2 852 config->detect = AUTO_BOOLEAN_AUTO;
8e248173 853 config->support = PACKET_SUPPORT_UNKNOWN;
b435e160
AC
854 set_doc = xstrprintf ("Set use of remote protocol `%s' (%s) packet",
855 name, title);
856 show_doc = xstrprintf ("Show current use of remote protocol `%s' (%s) packet",
857 name, title);
d471ea57 858 /* set/show TITLE-packet {auto,on,off} */
b435e160 859 cmd_name = xstrprintf ("%s-packet", title);
e9e68a56 860 add_setshow_auto_boolean_cmd (cmd_name, class_obscure,
2c5b56ce 861 &config->detect, set_doc, show_doc, NULL, /* help_doc */
bb572ddd
DJ
862 set_remote_protocol_packet_cmd,
863 show_remote_protocol_packet_cmd,
864 &remote_set_cmdlist, &remote_show_cmdlist);
23860348 865 /* set/show remote NAME-packet {auto,on,off} -- legacy. */
d471ea57
AC
866 if (legacy)
867 {
868 char *legacy_name;
b435e160 869 legacy_name = xstrprintf ("%s-packet", name);
d471ea57 870 add_alias_cmd (legacy_name, cmd_name, class_obscure, 0,
bb572ddd 871 &remote_set_cmdlist);
d471ea57 872 add_alias_cmd (legacy_name, cmd_name, class_obscure, 0,
bb572ddd 873 &remote_show_cmdlist);
d471ea57 874 }
5a2468f5
JM
875}
876
d471ea57 877static enum packet_result
a76d924d 878packet_check_result (const char *buf)
5a2468f5 879{
d471ea57 880 if (buf[0] != '\0')
5a2468f5 881 {
d471ea57 882 /* The stub recognized the packet request. Check that the
23860348 883 operation succeeded. */
a76d924d
DJ
884 if (buf[0] == 'E'
885 && isxdigit (buf[1]) && isxdigit (buf[2])
886 && buf[3] == '\0')
887 /* "Enn" - definitly an error. */
888 return PACKET_ERROR;
889
890 /* Always treat "E." as an error. This will be used for
891 more verbose error messages, such as E.memtypes. */
892 if (buf[0] == 'E' && buf[1] == '.')
893 return PACKET_ERROR;
894
895 /* The packet may or may not be OK. Just assume it is. */
896 return PACKET_OK;
897 }
898 else
899 /* The stub does not support the packet. */
900 return PACKET_UNKNOWN;
901}
902
903static enum packet_result
904packet_ok (const char *buf, struct packet_config *config)
905{
906 enum packet_result result;
907
908 result = packet_check_result (buf);
909 switch (result)
910 {
911 case PACKET_OK:
912 case PACKET_ERROR:
913 /* The stub recognized the packet request. */
d471ea57
AC
914 switch (config->support)
915 {
916 case PACKET_SUPPORT_UNKNOWN:
917 if (remote_debug)
918 fprintf_unfiltered (gdb_stdlog,
919 "Packet %s (%s) is supported\n",
920 config->name, config->title);
921 config->support = PACKET_ENABLE;
922 break;
923 case PACKET_DISABLE:
8e65ff28 924 internal_error (__FILE__, __LINE__,
e2e0b3e5 925 _("packet_ok: attempt to use a disabled packet"));
d471ea57
AC
926 break;
927 case PACKET_ENABLE:
928 break;
929 }
a76d924d
DJ
930 break;
931 case PACKET_UNKNOWN:
23860348 932 /* The stub does not support the packet. */
d471ea57
AC
933 switch (config->support)
934 {
935 case PACKET_ENABLE:
7f19b9a2 936 if (config->detect == AUTO_BOOLEAN_AUTO)
d471ea57 937 /* If the stub previously indicated that the packet was
23860348 938 supported then there is a protocol error.. */
8a3fe4f8 939 error (_("Protocol error: %s (%s) conflicting enabled responses."),
d471ea57
AC
940 config->name, config->title);
941 else
23860348 942 /* The user set it wrong. */
8a3fe4f8 943 error (_("Enabled packet %s (%s) not recognized by stub"),
d471ea57
AC
944 config->name, config->title);
945 break;
946 case PACKET_SUPPORT_UNKNOWN:
947 if (remote_debug)
948 fprintf_unfiltered (gdb_stdlog,
949 "Packet %s (%s) is NOT supported\n",
950 config->name, config->title);
951 config->support = PACKET_DISABLE;
952 break;
953 case PACKET_DISABLE:
954 break;
955 }
a76d924d 956 break;
5a2468f5 957 }
a76d924d
DJ
958
959 return result;
5a2468f5
JM
960}
961
444abaca
DJ
962enum {
963 PACKET_vCont = 0,
964 PACKET_X,
965 PACKET_qSymbol,
966 PACKET_P,
967 PACKET_p,
968 PACKET_Z0,
969 PACKET_Z1,
970 PACKET_Z2,
971 PACKET_Z3,
972 PACKET_Z4,
a6b151f1
DJ
973 PACKET_vFile_open,
974 PACKET_vFile_pread,
975 PACKET_vFile_pwrite,
976 PACKET_vFile_close,
977 PACKET_vFile_unlink,
0876f84a 978 PACKET_qXfer_auxv,
23181151 979 PACKET_qXfer_features,
cfa9d6d9 980 PACKET_qXfer_libraries,
fd79ecee 981 PACKET_qXfer_memory_map,
0e7f50da
UW
982 PACKET_qXfer_spu_read,
983 PACKET_qXfer_spu_write,
07e059b5 984 PACKET_qXfer_osdata,
444abaca 985 PACKET_qGetTLSAddr,
be2a5f71 986 PACKET_qSupported,
89be2091 987 PACKET_QPassSignals,
08388c79 988 PACKET_qSearch_memory,
2d717e4f
DJ
989 PACKET_vAttach,
990 PACKET_vRun,
a6f3e723 991 PACKET_QStartNoAckMode,
82f73884 992 PACKET_vKill,
4aa995e1
PA
993 PACKET_qXfer_siginfo_read,
994 PACKET_qXfer_siginfo_write,
0b16c5cf 995 PACKET_qAttached,
444abaca
DJ
996 PACKET_MAX
997};
506fb367 998
444abaca 999static struct packet_config remote_protocol_packets[PACKET_MAX];
dc8acb97
MS
1000
1001static void
444abaca
DJ
1002set_remote_protocol_packet_cmd (char *args, int from_tty,
1003 struct cmd_list_element *c)
dc8acb97 1004{
444abaca 1005 struct packet_config *packet;
dc8acb97 1006
444abaca
DJ
1007 for (packet = remote_protocol_packets;
1008 packet < &remote_protocol_packets[PACKET_MAX];
1009 packet++)
1010 {
1011 if (&packet->detect == c->var)
1012 {
1013 update_packet_config (packet);
1014 return;
1015 }
1016 }
1017 internal_error (__FILE__, __LINE__, "Could not find config for %s",
1018 c->name);
dc8acb97
MS
1019}
1020
5a2468f5 1021static void
444abaca
DJ
1022show_remote_protocol_packet_cmd (struct ui_file *file, int from_tty,
1023 struct cmd_list_element *c,
1024 const char *value)
5a2468f5 1025{
444abaca 1026 struct packet_config *packet;
5a2468f5 1027
444abaca
DJ
1028 for (packet = remote_protocol_packets;
1029 packet < &remote_protocol_packets[PACKET_MAX];
1030 packet++)
1031 {
1032 if (&packet->detect == c->var)
1033 {
1034 show_packet_config_cmd (packet);
1035 return;
1036 }
1037 }
1038 internal_error (__FILE__, __LINE__, "Could not find config for %s",
1039 c->name);
5a2468f5
JM
1040}
1041
d471ea57
AC
1042/* Should we try one of the 'Z' requests? */
1043
1044enum Z_packet_type
1045{
1046 Z_PACKET_SOFTWARE_BP,
1047 Z_PACKET_HARDWARE_BP,
1048 Z_PACKET_WRITE_WP,
1049 Z_PACKET_READ_WP,
1050 Z_PACKET_ACCESS_WP,
1051 NR_Z_PACKET_TYPES
1052};
96baa820 1053
d471ea57 1054/* For compatibility with older distributions. Provide a ``set remote
23860348 1055 Z-packet ...'' command that updates all the Z packet types. */
d471ea57 1056
7f19b9a2 1057static enum auto_boolean remote_Z_packet_detect;
96baa820
JM
1058
1059static void
fba45db2
KB
1060set_remote_protocol_Z_packet_cmd (char *args, int from_tty,
1061 struct cmd_list_element *c)
96baa820 1062{
d471ea57
AC
1063 int i;
1064 for (i = 0; i < NR_Z_PACKET_TYPES; i++)
1065 {
444abaca
DJ
1066 remote_protocol_packets[PACKET_Z0 + i].detect = remote_Z_packet_detect;
1067 update_packet_config (&remote_protocol_packets[PACKET_Z0 + i]);
d471ea57 1068 }
96baa820
JM
1069}
1070
1071static void
08546159
AC
1072show_remote_protocol_Z_packet_cmd (struct ui_file *file, int from_tty,
1073 struct cmd_list_element *c,
1074 const char *value)
96baa820 1075{
d471ea57
AC
1076 int i;
1077 for (i = 0; i < NR_Z_PACKET_TYPES; i++)
1078 {
444abaca 1079 show_packet_config_cmd (&remote_protocol_packets[PACKET_Z0 + i]);
d471ea57 1080 }
96baa820
JM
1081}
1082
9d1f7ab2
MS
1083/* Should we try the 'ThreadInfo' query packet?
1084
1085 This variable (NOT available to the user: auto-detect only!)
1086 determines whether GDB will use the new, simpler "ThreadInfo"
1087 query or the older, more complex syntax for thread queries.
802188a7 1088 This is an auto-detect variable (set to true at each connect,
9d1f7ab2
MS
1089 and set to false when the target fails to recognize it). */
1090
1091static int use_threadinfo_query;
1092static int use_threadextra_query;
1093
23860348 1094/* Tokens for use by the asynchronous signal handlers for SIGINT. */
d5d6fca5
DJ
1095static struct async_signal_handler *sigint_remote_twice_token;
1096static struct async_signal_handler *sigint_remote_token;
43ff13b4 1097
74531fed
PA
1098\f
1099/* Asynchronous signal handle registered as event loop source for
1100 when we have pending events ready to be passed to the core. */
1101
1102static struct async_event_handler *remote_async_inferior_event_token;
1103
1104/* Asynchronous signal handle registered as event loop source for when
1105 the remote sent us a %Stop notification. The registered callback
1106 will do a vStopped sequence to pull the rest of the events out of
1107 the remote side into our event queue. */
1108
1109static struct async_event_handler *remote_async_get_pending_events_token;
c906108c
SS
1110\f
1111
79d7f229
PA
1112static ptid_t magic_null_ptid;
1113static ptid_t not_sent_ptid;
1114static ptid_t any_thread_ptid;
1115
1116/* These are the threads which we last sent to the remote system. The
1117 TID member will be -1 for all or -2 for not sent yet. */
1118
1119static ptid_t general_thread;
1120static ptid_t continue_thread;
c5aa993b 1121
0b16c5cf
PA
1122/* Find out if the stub attached to PID (and hence GDB should offer to
1123 detach instead of killing it when bailing out). */
1124
1125static int
1126remote_query_attached (int pid)
1127{
1128 struct remote_state *rs = get_remote_state ();
1129
1130 if (remote_protocol_packets[PACKET_qAttached].support == PACKET_DISABLE)
1131 return 0;
1132
1133 if (remote_multi_process_p (rs))
1134 sprintf (rs->buf, "qAttached:%x", pid);
1135 else
1136 sprintf (rs->buf, "qAttached");
1137
1138 putpkt (rs->buf);
1139 getpkt (&rs->buf, &rs->buf_size, 0);
1140
1141 switch (packet_ok (rs->buf,
1554e9be 1142 &remote_protocol_packets[PACKET_qAttached]))
0b16c5cf
PA
1143 {
1144 case PACKET_OK:
1145 if (strcmp (rs->buf, "1") == 0)
1146 return 1;
1147 break;
1148 case PACKET_ERROR:
1149 warning (_("Remote failure reply: %s"), rs->buf);
1150 break;
1151 case PACKET_UNKNOWN:
1152 break;
1153 }
1154
1155 return 0;
1156}
1157
1941c569
PA
1158/* Add PID to GDB's inferior table. Since we can be connected to a
1159 remote system before before knowing about any inferior, mark the
0b16c5cf
PA
1160 target with execution when we find the first inferior. If ATTACHED
1161 is 1, then we had just attached to this inferior. If it is 0, then
1162 we just created this inferior. If it is -1, then try querying the
1163 remote stub to find out if it had attached to the inferior or
1164 not. */
1941c569
PA
1165
1166static struct inferior *
0b16c5cf 1167remote_add_inferior (int pid, int attached)
1941c569
PA
1168{
1169 struct remote_state *rs = get_remote_state ();
1170 struct inferior *inf;
1171
0b16c5cf
PA
1172 /* Check whether this process we're learning about is to be
1173 considered attached, or if is to be considered to have been
1174 spawned by the stub. */
1175 if (attached == -1)
1176 attached = remote_query_attached (pid);
1177
1941c569
PA
1178 inf = add_inferior (pid);
1179
0b16c5cf
PA
1180 inf->attach_flag = attached;
1181
1941c569
PA
1182 /* This may be the first inferior we hear about. */
1183 if (!target_has_execution)
1184 {
1185 if (rs->extended)
1186 target_mark_running (&extended_remote_ops);
1187 else
1188 target_mark_running (&remote_ops);
1189 }
1190
1191 return inf;
1192}
1193
1194/* Add thread PTID to GDB's thread list. Tag it as executing/running
1195 according to RUNNING. */
1196
c906108c 1197static void
1941c569 1198remote_add_thread (ptid_t ptid, int running)
c906108c 1199{
1941c569
PA
1200 add_thread (ptid);
1201
1202 set_executing (ptid, running);
1203 set_running (ptid, running);
1204}
1205
1206/* Come here when we learn about a thread id from the remote target.
1207 It may be the first time we hear about such thread, so take the
1208 opportunity to add it to GDB's thread list. In case this is the
1209 first time we're noticing its corresponding inferior, add it to
1210 GDB's inferior list as well. */
1211
1212static void
1213remote_notice_new_inferior (ptid_t currthread, int running)
1214{
1215 struct remote_state *rs = get_remote_state ();
1216
c906108c
SS
1217 /* If this is a new thread, add it to GDB's thread list.
1218 If we leave it up to WFI to do this, bad things will happen. */
82f73884
PA
1219
1220 if (in_thread_list (currthread) && is_exited (currthread))
1221 {
1222 /* We're seeing an event on a thread id we knew had exited.
1223 This has to be a new thread reusing the old id. Add it. */
1941c569 1224 remote_add_thread (currthread, running);
82f73884
PA
1225 return;
1226 }
1227
79d7f229 1228 if (!in_thread_list (currthread))
c0a2216e 1229 {
1941c569 1230 struct inferior *inf = NULL;
bad34192 1231 int pid = ptid_get_pid (currthread);
1941c569 1232
bad34192
PA
1233 if (ptid_is_pid (inferior_ptid)
1234 && pid == ptid_get_pid (inferior_ptid))
c0a2216e
PA
1235 {
1236 /* inferior_ptid has no thread member yet. This can happen
1237 with the vAttach -> remote_wait,"TAAthread:" path if the
1238 stub doesn't support qC. This is the first stop reported
1239 after an attach, so this is the main thread. Update the
1240 ptid in the thread list. */
bad34192
PA
1241 if (in_thread_list (pid_to_ptid (pid)))
1242 thread_change_ptid (inferior_ptid, currthread);
1243 else
1244 {
1245 remote_add_thread (currthread, running);
1246 inferior_ptid = currthread;
1247 }
82f73884 1248 return;
c0a2216e 1249 }
82f73884
PA
1250
1251 if (ptid_equal (magic_null_ptid, inferior_ptid))
c0a2216e
PA
1252 {
1253 /* inferior_ptid is not set yet. This can happen with the
1254 vRun -> remote_wait,"TAAthread:" path if the stub
1255 doesn't support qC. This is the first stop reported
1256 after an attach, so this is the main thread. Update the
1257 ptid in the thread list. */
82f73884
PA
1258 thread_change_ptid (inferior_ptid, currthread);
1259 return;
c0a2216e 1260 }
82f73884 1261
29c87f7f
PA
1262 /* When connecting to a target remote, or to a target
1263 extended-remote which already was debugging an inferior, we
1264 may not know about it yet. Add it before adding its child
1265 thread, so notifications are emitted in a sensible order. */
1266 if (!in_inferior_list (ptid_get_pid (currthread)))
0b16c5cf 1267 inf = remote_add_inferior (ptid_get_pid (currthread), -1);
29c87f7f 1268
82f73884 1269 /* This is really a new thread. Add it. */
1941c569
PA
1270 remote_add_thread (currthread, running);
1271
1272 /* If we found a new inferior, let the common code do whatever
1273 it needs to with it (e.g., read shared libraries, insert
1274 breakpoints). */
1275 if (inf != NULL)
1276 notice_new_inferior (currthread, running, 0);
c0a2216e 1277 }
c906108c
SS
1278}
1279
74531fed
PA
1280/* Call this function as a result of
1281 1) A halt indication (T packet) containing a thread id
1282 2) A direct query of currthread
1283 3) Successful execution of set thread
1284 */
1285
1286static void
1287record_currthread (ptid_t currthread)
1288{
1289 general_thread = currthread;
1290
1291 if (ptid_equal (currthread, minus_one_ptid))
1292 /* We're just invalidating the local thread mirror. */
1293 return;
1294
1941c569 1295 remote_notice_new_inferior (currthread, 0);
74531fed
PA
1296}
1297
89be2091
DJ
1298static char *last_pass_packet;
1299
1300/* If 'QPassSignals' is supported, tell the remote stub what signals
1301 it can simply pass through to the inferior without reporting. */
1302
1303static void
1304remote_pass_signals (void)
1305{
1306 if (remote_protocol_packets[PACKET_QPassSignals].support != PACKET_DISABLE)
1307 {
1308 char *pass_packet, *p;
1309 int numsigs = (int) TARGET_SIGNAL_LAST;
1310 int count = 0, i;
1311
1312 gdb_assert (numsigs < 256);
1313 for (i = 0; i < numsigs; i++)
1314 {
1315 if (signal_stop_state (i) == 0
1316 && signal_print_state (i) == 0
1317 && signal_pass_state (i) == 1)
1318 count++;
1319 }
1320 pass_packet = xmalloc (count * 3 + strlen ("QPassSignals:") + 1);
1321 strcpy (pass_packet, "QPassSignals:");
1322 p = pass_packet + strlen (pass_packet);
1323 for (i = 0; i < numsigs; i++)
1324 {
1325 if (signal_stop_state (i) == 0
1326 && signal_print_state (i) == 0
1327 && signal_pass_state (i) == 1)
1328 {
1329 if (i >= 16)
1330 *p++ = tohex (i >> 4);
1331 *p++ = tohex (i & 15);
1332 if (count)
1333 *p++ = ';';
1334 else
1335 break;
1336 count--;
1337 }
1338 }
1339 *p = 0;
1340 if (!last_pass_packet || strcmp (last_pass_packet, pass_packet))
1341 {
1342 struct remote_state *rs = get_remote_state ();
1343 char *buf = rs->buf;
1344
1345 putpkt (pass_packet);
1346 getpkt (&rs->buf, &rs->buf_size, 0);
1347 packet_ok (buf, &remote_protocol_packets[PACKET_QPassSignals]);
1348 if (last_pass_packet)
1349 xfree (last_pass_packet);
1350 last_pass_packet = pass_packet;
1351 }
1352 else
1353 xfree (pass_packet);
1354 }
1355}
1356
79d7f229
PA
1357/* If PTID is MAGIC_NULL_PTID, don't set any thread. If PTID is
1358 MINUS_ONE_PTID, set the thread to -1, so the stub returns the
1359 thread. If GEN is set, set the general thread, if not, then set
1360 the step/continue thread. */
c906108c 1361static void
79d7f229 1362set_thread (struct ptid ptid, int gen)
c906108c 1363{
d01949b6 1364 struct remote_state *rs = get_remote_state ();
79d7f229 1365 ptid_t state = gen ? general_thread : continue_thread;
6d820c5c 1366 char *buf = rs->buf;
79d7f229 1367 char *endbuf = rs->buf + get_remote_packet_size ();
c906108c 1368
79d7f229 1369 if (ptid_equal (state, ptid))
c906108c
SS
1370 return;
1371
79d7f229
PA
1372 *buf++ = 'H';
1373 *buf++ = gen ? 'g' : 'c';
1374 if (ptid_equal (ptid, magic_null_ptid))
1375 xsnprintf (buf, endbuf - buf, "0");
1376 else if (ptid_equal (ptid, any_thread_ptid))
1377 xsnprintf (buf, endbuf - buf, "0");
1378 else if (ptid_equal (ptid, minus_one_ptid))
1379 xsnprintf (buf, endbuf - buf, "-1");
1380 else
82f73884 1381 write_ptid (buf, endbuf, ptid);
79d7f229 1382 putpkt (rs->buf);
6d820c5c 1383 getpkt (&rs->buf, &rs->buf_size, 0);
c906108c 1384 if (gen)
79d7f229 1385 general_thread = ptid;
c906108c 1386 else
79d7f229 1387 continue_thread = ptid;
c906108c 1388}
79d7f229
PA
1389
1390static void
1391set_general_thread (struct ptid ptid)
1392{
1393 set_thread (ptid, 1);
1394}
1395
1396static void
1397set_continue_thread (struct ptid ptid)
1398{
1399 set_thread (ptid, 0);
1400}
1401
3c9c4b83
PA
1402/* Change the remote current process. Which thread within the process
1403 ends up selected isn't important, as long as it is the same process
1404 as what INFERIOR_PTID points to.
1405
1406 This comes from that fact that there is no explicit notion of
1407 "selected process" in the protocol. The selected process for
1408 general operations is the process the selected general thread
1409 belongs to. */
1410
1411static void
1412set_general_process (void)
1413{
1414 struct remote_state *rs = get_remote_state ();
1415
1416 /* If the remote can't handle multiple processes, don't bother. */
1417 if (!remote_multi_process_p (rs))
1418 return;
1419
1420 /* We only need to change the remote current thread if it's pointing
1421 at some other process. */
1422 if (ptid_get_pid (general_thread) != ptid_get_pid (inferior_ptid))
1423 set_general_thread (inferior_ptid);
1424}
1425
c906108c 1426\f
79d7f229
PA
1427/* Return nonzero if the thread PTID is still alive on the remote
1428 system. */
c906108c
SS
1429
1430static int
28439f5e 1431remote_thread_alive (struct target_ops *ops, ptid_t ptid)
c906108c 1432{
6d820c5c 1433 struct remote_state *rs = get_remote_state ();
79d7f229 1434 int tid = ptid_get_tid (ptid);
82f73884 1435 char *p, *endp;
c906108c 1436
c0a2216e
PA
1437 if (ptid_equal (ptid, magic_null_ptid))
1438 /* The main thread is always alive. */
1439 return 1;
1440
1441 if (ptid_get_pid (ptid) != 0 && ptid_get_tid (ptid) == 0)
1442 /* The main thread is always alive. This can happen after a
1443 vAttach, if the remote side doesn't support
1444 multi-threading. */
1445 return 1;
1446
82f73884
PA
1447 p = rs->buf;
1448 endp = rs->buf + get_remote_packet_size ();
1449
1450 *p++ = 'T';
1451 write_ptid (p, endp, ptid);
1452
2e9f7625 1453 putpkt (rs->buf);
6d820c5c 1454 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 1455 return (rs->buf[0] == 'O' && rs->buf[1] == 'K');
c906108c
SS
1456}
1457
1458/* About these extended threadlist and threadinfo packets. They are
1459 variable length packets but, the fields within them are often fixed
1460 length. They are redundent enough to send over UDP as is the
1461 remote protocol in general. There is a matching unit test module
1462 in libstub. */
1463
cce74817
JM
1464#define OPAQUETHREADBYTES 8
1465
1466/* a 64 bit opaque identifier */
1467typedef unsigned char threadref[OPAQUETHREADBYTES];
1468
23860348
MS
1469/* WARNING: This threadref data structure comes from the remote O.S.,
1470 libstub protocol encoding, and remote.c. it is not particularly
1471 changable. */
cce74817
JM
1472
1473/* Right now, the internal structure is int. We want it to be bigger.
1474 Plan to fix this.
c5aa993b 1475 */
cce74817 1476
23860348 1477typedef int gdb_threadref; /* Internal GDB thread reference. */
cce74817 1478
9d1f7ab2 1479/* gdb_ext_thread_info is an internal GDB data structure which is
cfde0993 1480 equivalent to the reply of the remote threadinfo packet. */
cce74817
JM
1481
1482struct gdb_ext_thread_info
c5aa993b 1483 {
23860348 1484 threadref threadid; /* External form of thread reference. */
2bc416ba 1485 int active; /* Has state interesting to GDB?
23860348 1486 regs, stack. */
2bc416ba 1487 char display[256]; /* Brief state display, name,
cedea757 1488 blocked/suspended. */
23860348 1489 char shortname[32]; /* To be used to name threads. */
2bc416ba 1490 char more_display[256]; /* Long info, statistics, queue depth,
23860348 1491 whatever. */
c5aa993b 1492 };
cce74817
JM
1493
1494/* The volume of remote transfers can be limited by submitting
1495 a mask containing bits specifying the desired information.
1496 Use a union of these values as the 'selection' parameter to
1497 get_thread_info. FIXME: Make these TAG names more thread specific.
c5aa993b 1498 */
cce74817
JM
1499
1500#define TAG_THREADID 1
1501#define TAG_EXISTS 2
1502#define TAG_DISPLAY 4
1503#define TAG_THREADNAME 8
c5aa993b 1504#define TAG_MOREDISPLAY 16
cce74817 1505
23860348 1506#define BUF_THREAD_ID_SIZE (OPAQUETHREADBYTES * 2)
c906108c 1507
b2dd6311 1508char *unpack_varlen_hex (char *buff, ULONGEST *result);
cce74817 1509
a14ed312 1510static char *unpack_nibble (char *buf, int *val);
cce74817 1511
a14ed312 1512static char *pack_nibble (char *buf, int nibble);
cce74817 1513
23860348 1514static char *pack_hex_byte (char *pkt, int /* unsigned char */ byte);
cce74817 1515
a14ed312 1516static char *unpack_byte (char *buf, int *value);
cce74817 1517
a14ed312 1518static char *pack_int (char *buf, int value);
cce74817 1519
a14ed312 1520static char *unpack_int (char *buf, int *value);
cce74817 1521
a14ed312 1522static char *unpack_string (char *src, char *dest, int length);
cce74817 1523
23860348 1524static char *pack_threadid (char *pkt, threadref *id);
cce74817 1525
23860348 1526static char *unpack_threadid (char *inbuf, threadref *id);
cce74817 1527
23860348 1528void int_to_threadref (threadref *id, int value);
cce74817 1529
23860348 1530static int threadref_to_int (threadref *ref);
cce74817 1531
23860348 1532static void copy_threadref (threadref *dest, threadref *src);
cce74817 1533
23860348 1534static int threadmatch (threadref *dest, threadref *src);
cce74817 1535
2bc416ba 1536static char *pack_threadinfo_request (char *pkt, int mode,
23860348 1537 threadref *id);
cce74817 1538
a14ed312 1539static int remote_unpack_thread_info_response (char *pkt,
23860348 1540 threadref *expectedref,
a14ed312
KB
1541 struct gdb_ext_thread_info
1542 *info);
cce74817
JM
1543
1544
2bc416ba 1545static int remote_get_threadinfo (threadref *threadid,
23860348 1546 int fieldset, /*TAG mask */
a14ed312 1547 struct gdb_ext_thread_info *info);
cce74817 1548
a14ed312
KB
1549static char *pack_threadlist_request (char *pkt, int startflag,
1550 int threadcount,
23860348 1551 threadref *nextthread);
cce74817 1552
a14ed312
KB
1553static int parse_threadlist_response (char *pkt,
1554 int result_limit,
23860348 1555 threadref *original_echo,
2bc416ba 1556 threadref *resultlist,
23860348 1557 int *doneflag);
cce74817 1558
a14ed312 1559static int remote_get_threadlist (int startflag,
23860348 1560 threadref *nextthread,
a14ed312
KB
1561 int result_limit,
1562 int *done,
2bc416ba 1563 int *result_count,
23860348 1564 threadref *threadlist);
cce74817 1565
23860348 1566typedef int (*rmt_thread_action) (threadref *ref, void *context);
cce74817 1567
a14ed312
KB
1568static int remote_threadlist_iterator (rmt_thread_action stepfunction,
1569 void *context, int looplimit);
cce74817 1570
23860348 1571static int remote_newthread_step (threadref *ref, void *context);
cce74817 1572
82f73884
PA
1573
1574/* Write a PTID to BUF. ENDBUF points to one-passed-the-end of the
1575 buffer we're allowed to write to. Returns
1576 BUF+CHARACTERS_WRITTEN. */
1577
1578static char *
1579write_ptid (char *buf, const char *endbuf, ptid_t ptid)
1580{
1581 int pid, tid;
1582 struct remote_state *rs = get_remote_state ();
1583
1584 if (remote_multi_process_p (rs))
1585 {
1586 pid = ptid_get_pid (ptid);
1587 if (pid < 0)
1588 buf += xsnprintf (buf, endbuf - buf, "p-%x.", -pid);
1589 else
1590 buf += xsnprintf (buf, endbuf - buf, "p%x.", pid);
1591 }
1592 tid = ptid_get_tid (ptid);
1593 if (tid < 0)
1594 buf += xsnprintf (buf, endbuf - buf, "-%x", -tid);
1595 else
1596 buf += xsnprintf (buf, endbuf - buf, "%x", tid);
1597
1598 return buf;
1599}
1600
1601/* Extract a PTID from BUF. If non-null, OBUF is set to the to one
1602 passed the last parsed char. Returns null_ptid on error. */
1603
1604static ptid_t
1605read_ptid (char *buf, char **obuf)
1606{
1607 char *p = buf;
1608 char *pp;
1609 ULONGEST pid = 0, tid = 0;
1610 ptid_t ptid;
1611
1612 if (*p == 'p')
1613 {
1614 /* Multi-process ptid. */
1615 pp = unpack_varlen_hex (p + 1, &pid);
1616 if (*pp != '.')
1617 error (_("invalid remote ptid: %s\n"), p);
1618
1619 p = pp;
1620 pp = unpack_varlen_hex (p + 1, &tid);
1621 if (obuf)
1622 *obuf = pp;
1623 return ptid_build (pid, 0, tid);
1624 }
1625
1626 /* No multi-process. Just a tid. */
1627 pp = unpack_varlen_hex (p, &tid);
1628
1629 /* Since the stub is not sending a process id, then default to
ca19bf23
PA
1630 what's in inferior_ptid, unless it's null at this point. If so,
1631 then since there's no way to know the pid of the reported
1632 threads, use the magic number. */
1633 if (ptid_equal (inferior_ptid, null_ptid))
1634 pid = ptid_get_pid (magic_null_ptid);
1635 else
1636 pid = ptid_get_pid (inferior_ptid);
82f73884
PA
1637
1638 if (obuf)
1639 *obuf = pp;
1640 return ptid_build (pid, 0, tid);
1641}
1642
23860348 1643/* Encode 64 bits in 16 chars of hex. */
c906108c
SS
1644
1645static const char hexchars[] = "0123456789abcdef";
1646
1647static int
fba45db2 1648ishex (int ch, int *val)
c906108c
SS
1649{
1650 if ((ch >= 'a') && (ch <= 'f'))
1651 {
1652 *val = ch - 'a' + 10;
1653 return 1;
1654 }
1655 if ((ch >= 'A') && (ch <= 'F'))
1656 {
1657 *val = ch - 'A' + 10;
1658 return 1;
1659 }
1660 if ((ch >= '0') && (ch <= '9'))
1661 {
1662 *val = ch - '0';
1663 return 1;
1664 }
1665 return 0;
1666}
1667
1668static int
fba45db2 1669stubhex (int ch)
c906108c
SS
1670{
1671 if (ch >= 'a' && ch <= 'f')
1672 return ch - 'a' + 10;
1673 if (ch >= '0' && ch <= '9')
1674 return ch - '0';
1675 if (ch >= 'A' && ch <= 'F')
1676 return ch - 'A' + 10;
1677 return -1;
1678}
1679
1680static int
fba45db2 1681stub_unpack_int (char *buff, int fieldlength)
c906108c
SS
1682{
1683 int nibble;
1684 int retval = 0;
1685
1686 while (fieldlength)
1687 {
1688 nibble = stubhex (*buff++);
1689 retval |= nibble;
1690 fieldlength--;
1691 if (fieldlength)
1692 retval = retval << 4;
1693 }
1694 return retval;
1695}
1696
1697char *
fba45db2 1698unpack_varlen_hex (char *buff, /* packet to parse */
b2dd6311 1699 ULONGEST *result)
c906108c
SS
1700{
1701 int nibble;
d49c44d5 1702 ULONGEST retval = 0;
c906108c
SS
1703
1704 while (ishex (*buff, &nibble))
1705 {
1706 buff++;
1707 retval = retval << 4;
1708 retval |= nibble & 0x0f;
1709 }
1710 *result = retval;
1711 return buff;
1712}
1713
1714static char *
fba45db2 1715unpack_nibble (char *buf, int *val)
c906108c 1716{
b7589f7d 1717 *val = fromhex (*buf++);
c906108c
SS
1718 return buf;
1719}
1720
1721static char *
fba45db2 1722pack_nibble (char *buf, int nibble)
c906108c
SS
1723{
1724 *buf++ = hexchars[(nibble & 0x0f)];
1725 return buf;
1726}
1727
1728static char *
fba45db2 1729pack_hex_byte (char *pkt, int byte)
c906108c
SS
1730{
1731 *pkt++ = hexchars[(byte >> 4) & 0xf];
1732 *pkt++ = hexchars[(byte & 0xf)];
1733 return pkt;
1734}
1735
1736static char *
fba45db2 1737unpack_byte (char *buf, int *value)
c906108c
SS
1738{
1739 *value = stub_unpack_int (buf, 2);
1740 return buf + 2;
1741}
1742
1743static char *
fba45db2 1744pack_int (char *buf, int value)
c906108c
SS
1745{
1746 buf = pack_hex_byte (buf, (value >> 24) & 0xff);
1747 buf = pack_hex_byte (buf, (value >> 16) & 0xff);
1748 buf = pack_hex_byte (buf, (value >> 8) & 0x0ff);
1749 buf = pack_hex_byte (buf, (value & 0xff));
1750 return buf;
1751}
1752
1753static char *
fba45db2 1754unpack_int (char *buf, int *value)
c906108c
SS
1755{
1756 *value = stub_unpack_int (buf, 8);
1757 return buf + 8;
1758}
1759
23860348 1760#if 0 /* Currently unused, uncomment when needed. */
a14ed312 1761static char *pack_string (char *pkt, char *string);
c906108c
SS
1762
1763static char *
fba45db2 1764pack_string (char *pkt, char *string)
c906108c
SS
1765{
1766 char ch;
1767 int len;
1768
1769 len = strlen (string);
1770 if (len > 200)
23860348 1771 len = 200; /* Bigger than most GDB packets, junk??? */
c906108c
SS
1772 pkt = pack_hex_byte (pkt, len);
1773 while (len-- > 0)
1774 {
1775 ch = *string++;
1776 if ((ch == '\0') || (ch == '#'))
23860348 1777 ch = '*'; /* Protect encapsulation. */
c906108c
SS
1778 *pkt++ = ch;
1779 }
1780 return pkt;
1781}
1782#endif /* 0 (unused) */
1783
1784static char *
fba45db2 1785unpack_string (char *src, char *dest, int length)
c906108c
SS
1786{
1787 while (length--)
1788 *dest++ = *src++;
1789 *dest = '\0';
1790 return src;
1791}
1792
1793static char *
fba45db2 1794pack_threadid (char *pkt, threadref *id)
c906108c
SS
1795{
1796 char *limit;
1797 unsigned char *altid;
1798
1799 altid = (unsigned char *) id;
1800 limit = pkt + BUF_THREAD_ID_SIZE;
1801 while (pkt < limit)
1802 pkt = pack_hex_byte (pkt, *altid++);
1803 return pkt;
1804}
1805
1806
1807static char *
fba45db2 1808unpack_threadid (char *inbuf, threadref *id)
c906108c
SS
1809{
1810 char *altref;
1811 char *limit = inbuf + BUF_THREAD_ID_SIZE;
1812 int x, y;
1813
1814 altref = (char *) id;
1815
1816 while (inbuf < limit)
1817 {
1818 x = stubhex (*inbuf++);
1819 y = stubhex (*inbuf++);
1820 *altref++ = (x << 4) | y;
1821 }
1822 return inbuf;
1823}
1824
1825/* Externally, threadrefs are 64 bits but internally, they are still
1826 ints. This is due to a mismatch of specifications. We would like
1827 to use 64bit thread references internally. This is an adapter
1828 function. */
1829
1830void
fba45db2 1831int_to_threadref (threadref *id, int value)
c906108c
SS
1832{
1833 unsigned char *scan;
1834
1835 scan = (unsigned char *) id;
1836 {
1837 int i = 4;
1838 while (i--)
1839 *scan++ = 0;
1840 }
1841 *scan++ = (value >> 24) & 0xff;
1842 *scan++ = (value >> 16) & 0xff;
1843 *scan++ = (value >> 8) & 0xff;
1844 *scan++ = (value & 0xff);
1845}
1846
1847static int
fba45db2 1848threadref_to_int (threadref *ref)
c906108c
SS
1849{
1850 int i, value = 0;
1851 unsigned char *scan;
1852
cfd77fa1 1853 scan = *ref;
c906108c
SS
1854 scan += 4;
1855 i = 4;
1856 while (i-- > 0)
1857 value = (value << 8) | ((*scan++) & 0xff);
1858 return value;
1859}
1860
1861static void
fba45db2 1862copy_threadref (threadref *dest, threadref *src)
c906108c
SS
1863{
1864 int i;
1865 unsigned char *csrc, *cdest;
1866
1867 csrc = (unsigned char *) src;
1868 cdest = (unsigned char *) dest;
1869 i = 8;
1870 while (i--)
1871 *cdest++ = *csrc++;
1872}
1873
1874static int
fba45db2 1875threadmatch (threadref *dest, threadref *src)
c906108c 1876{
23860348 1877 /* Things are broken right now, so just assume we got a match. */
c906108c
SS
1878#if 0
1879 unsigned char *srcp, *destp;
1880 int i, result;
1881 srcp = (char *) src;
1882 destp = (char *) dest;
1883
1884 result = 1;
1885 while (i-- > 0)
1886 result &= (*srcp++ == *destp++) ? 1 : 0;
1887 return result;
1888#endif
1889 return 1;
1890}
1891
1892/*
c5aa993b
JM
1893 threadid:1, # always request threadid
1894 context_exists:2,
1895 display:4,
1896 unique_name:8,
1897 more_display:16
1898 */
c906108c
SS
1899
1900/* Encoding: 'Q':8,'P':8,mask:32,threadid:64 */
1901
1902static char *
fba45db2 1903pack_threadinfo_request (char *pkt, int mode, threadref *id)
c906108c 1904{
23860348
MS
1905 *pkt++ = 'q'; /* Info Query */
1906 *pkt++ = 'P'; /* process or thread info */
1907 pkt = pack_int (pkt, mode); /* mode */
c906108c 1908 pkt = pack_threadid (pkt, id); /* threadid */
23860348 1909 *pkt = '\0'; /* terminate */
c906108c
SS
1910 return pkt;
1911}
1912
23860348 1913/* These values tag the fields in a thread info response packet. */
c906108c 1914/* Tagging the fields allows us to request specific fields and to
23860348 1915 add more fields as time goes by. */
c906108c 1916
23860348 1917#define TAG_THREADID 1 /* Echo the thread identifier. */
c5aa993b 1918#define TAG_EXISTS 2 /* Is this process defined enough to
23860348 1919 fetch registers and its stack? */
c5aa993b 1920#define TAG_DISPLAY 4 /* A short thing maybe to put on a window */
23860348 1921#define TAG_THREADNAME 8 /* string, maps 1-to-1 with a thread is. */
802188a7 1922#define TAG_MOREDISPLAY 16 /* Whatever the kernel wants to say about
23860348 1923 the process. */
c906108c
SS
1924
1925static int
fba45db2
KB
1926remote_unpack_thread_info_response (char *pkt, threadref *expectedref,
1927 struct gdb_ext_thread_info *info)
c906108c 1928{
d01949b6 1929 struct remote_state *rs = get_remote_state ();
c906108c 1930 int mask, length;
cfd77fa1 1931 int tag;
c906108c 1932 threadref ref;
6d820c5c 1933 char *limit = pkt + rs->buf_size; /* Plausible parsing limit. */
c906108c
SS
1934 int retval = 1;
1935
23860348 1936 /* info->threadid = 0; FIXME: implement zero_threadref. */
c906108c
SS
1937 info->active = 0;
1938 info->display[0] = '\0';
1939 info->shortname[0] = '\0';
1940 info->more_display[0] = '\0';
1941
23860348
MS
1942 /* Assume the characters indicating the packet type have been
1943 stripped. */
c906108c
SS
1944 pkt = unpack_int (pkt, &mask); /* arg mask */
1945 pkt = unpack_threadid (pkt, &ref);
1946
1947 if (mask == 0)
8a3fe4f8 1948 warning (_("Incomplete response to threadinfo request."));
c906108c 1949 if (!threadmatch (&ref, expectedref))
23860348 1950 { /* This is an answer to a different request. */
8a3fe4f8 1951 warning (_("ERROR RMT Thread info mismatch."));
c906108c
SS
1952 return 0;
1953 }
1954 copy_threadref (&info->threadid, &ref);
1955
23860348 1956 /* Loop on tagged fields , try to bail if somthing goes wrong. */
c906108c 1957
23860348
MS
1958 /* Packets are terminated with nulls. */
1959 while ((pkt < limit) && mask && *pkt)
c906108c
SS
1960 {
1961 pkt = unpack_int (pkt, &tag); /* tag */
23860348
MS
1962 pkt = unpack_byte (pkt, &length); /* length */
1963 if (!(tag & mask)) /* Tags out of synch with mask. */
c906108c 1964 {
8a3fe4f8 1965 warning (_("ERROR RMT: threadinfo tag mismatch."));
c906108c
SS
1966 retval = 0;
1967 break;
1968 }
1969 if (tag == TAG_THREADID)
1970 {
1971 if (length != 16)
1972 {
8a3fe4f8 1973 warning (_("ERROR RMT: length of threadid is not 16."));
c906108c
SS
1974 retval = 0;
1975 break;
1976 }
1977 pkt = unpack_threadid (pkt, &ref);
1978 mask = mask & ~TAG_THREADID;
1979 continue;
1980 }
1981 if (tag == TAG_EXISTS)
1982 {
1983 info->active = stub_unpack_int (pkt, length);
1984 pkt += length;
1985 mask = mask & ~(TAG_EXISTS);
1986 if (length > 8)
1987 {
8a3fe4f8 1988 warning (_("ERROR RMT: 'exists' length too long."));
c906108c
SS
1989 retval = 0;
1990 break;
1991 }
1992 continue;
1993 }
1994 if (tag == TAG_THREADNAME)
1995 {
1996 pkt = unpack_string (pkt, &info->shortname[0], length);
1997 mask = mask & ~TAG_THREADNAME;
1998 continue;
1999 }
2000 if (tag == TAG_DISPLAY)
2001 {
2002 pkt = unpack_string (pkt, &info->display[0], length);
2003 mask = mask & ~TAG_DISPLAY;
2004 continue;
2005 }
2006 if (tag == TAG_MOREDISPLAY)
2007 {
2008 pkt = unpack_string (pkt, &info->more_display[0], length);
2009 mask = mask & ~TAG_MOREDISPLAY;
2010 continue;
2011 }
8a3fe4f8 2012 warning (_("ERROR RMT: unknown thread info tag."));
23860348 2013 break; /* Not a tag we know about. */
c906108c
SS
2014 }
2015 return retval;
2016}
2017
2018static int
fba45db2
KB
2019remote_get_threadinfo (threadref *threadid, int fieldset, /* TAG mask */
2020 struct gdb_ext_thread_info *info)
c906108c 2021{
d01949b6 2022 struct remote_state *rs = get_remote_state ();
c906108c 2023 int result;
c906108c 2024
2e9f7625
DJ
2025 pack_threadinfo_request (rs->buf, fieldset, threadid);
2026 putpkt (rs->buf);
6d820c5c 2027 getpkt (&rs->buf, &rs->buf_size, 0);
3084dd77
PA
2028
2029 if (rs->buf[0] == '\0')
2030 return 0;
2031
2e9f7625 2032 result = remote_unpack_thread_info_response (rs->buf + 2,
23860348 2033 threadid, info);
c906108c
SS
2034 return result;
2035}
2036
c906108c
SS
2037/* Format: i'Q':8,i"L":8,initflag:8,batchsize:16,lastthreadid:32 */
2038
2039static char *
fba45db2
KB
2040pack_threadlist_request (char *pkt, int startflag, int threadcount,
2041 threadref *nextthread)
c906108c
SS
2042{
2043 *pkt++ = 'q'; /* info query packet */
2044 *pkt++ = 'L'; /* Process LIST or threadLIST request */
23860348 2045 pkt = pack_nibble (pkt, startflag); /* initflag 1 bytes */
c906108c
SS
2046 pkt = pack_hex_byte (pkt, threadcount); /* threadcount 2 bytes */
2047 pkt = pack_threadid (pkt, nextthread); /* 64 bit thread identifier */
2048 *pkt = '\0';
2049 return pkt;
2050}
2051
2052/* Encoding: 'q':8,'M':8,count:16,done:8,argthreadid:64,(threadid:64)* */
2053
2054static int
fba45db2
KB
2055parse_threadlist_response (char *pkt, int result_limit,
2056 threadref *original_echo, threadref *resultlist,
2057 int *doneflag)
c906108c 2058{
d01949b6 2059 struct remote_state *rs = get_remote_state ();
c906108c
SS
2060 char *limit;
2061 int count, resultcount, done;
2062
2063 resultcount = 0;
2064 /* Assume the 'q' and 'M chars have been stripped. */
6d820c5c 2065 limit = pkt + (rs->buf_size - BUF_THREAD_ID_SIZE);
23860348 2066 /* done parse past here */
c906108c
SS
2067 pkt = unpack_byte (pkt, &count); /* count field */
2068 pkt = unpack_nibble (pkt, &done);
2069 /* The first threadid is the argument threadid. */
2070 pkt = unpack_threadid (pkt, original_echo); /* should match query packet */
2071 while ((count-- > 0) && (pkt < limit))
2072 {
2073 pkt = unpack_threadid (pkt, resultlist++);
2074 if (resultcount++ >= result_limit)
2075 break;
2076 }
2077 if (doneflag)
2078 *doneflag = done;
2079 return resultcount;
2080}
2081
2082static int
fba45db2
KB
2083remote_get_threadlist (int startflag, threadref *nextthread, int result_limit,
2084 int *done, int *result_count, threadref *threadlist)
c906108c 2085{
d01949b6 2086 struct remote_state *rs = get_remote_state ();
c906108c 2087 static threadref echo_nextthread;
c906108c
SS
2088 int result = 1;
2089
23860348 2090 /* Trancate result limit to be smaller than the packet size. */
ea9c271d
DJ
2091 if ((((result_limit + 1) * BUF_THREAD_ID_SIZE) + 10) >= get_remote_packet_size ())
2092 result_limit = (get_remote_packet_size () / BUF_THREAD_ID_SIZE) - 2;
c906108c 2093
6d820c5c
DJ
2094 pack_threadlist_request (rs->buf, startflag, result_limit, nextthread);
2095 putpkt (rs->buf);
2096 getpkt (&rs->buf, &rs->buf_size, 0);
c906108c 2097
d8f2712d
VP
2098 if (*rs->buf == '\0')
2099 *result_count = 0;
2100 else
2101 *result_count =
2102 parse_threadlist_response (rs->buf + 2, result_limit, &echo_nextthread,
2103 threadlist, done);
c906108c
SS
2104
2105 if (!threadmatch (&echo_nextthread, nextthread))
2106 {
23860348
MS
2107 /* FIXME: This is a good reason to drop the packet. */
2108 /* Possably, there is a duplicate response. */
c906108c
SS
2109 /* Possabilities :
2110 retransmit immediatly - race conditions
2111 retransmit after timeout - yes
2112 exit
2113 wait for packet, then exit
2114 */
8a3fe4f8 2115 warning (_("HMM: threadlist did not echo arg thread, dropping it."));
23860348 2116 return 0; /* I choose simply exiting. */
c906108c
SS
2117 }
2118 if (*result_count <= 0)
2119 {
2120 if (*done != 1)
2121 {
8a3fe4f8 2122 warning (_("RMT ERROR : failed to get remote thread list."));
c906108c
SS
2123 result = 0;
2124 }
2125 return result; /* break; */
2126 }
2127 if (*result_count > result_limit)
2128 {
2129 *result_count = 0;
8a3fe4f8 2130 warning (_("RMT ERROR: threadlist response longer than requested."));
c906108c
SS
2131 return 0;
2132 }
2133 return result;
2134}
2135
23860348
MS
2136/* This is the interface between remote and threads, remotes upper
2137 interface. */
c906108c
SS
2138
2139/* remote_find_new_threads retrieves the thread list and for each
2140 thread in the list, looks up the thread in GDB's internal list,
79d7f229 2141 adding the thread if it does not already exist. This involves
c906108c
SS
2142 getting partial thread lists from the remote target so, polling the
2143 quit_flag is required. */
2144
2145
23860348 2146/* About this many threadisds fit in a packet. */
c906108c
SS
2147
2148#define MAXTHREADLISTRESULTS 32
2149
2150static int
fba45db2
KB
2151remote_threadlist_iterator (rmt_thread_action stepfunction, void *context,
2152 int looplimit)
c906108c
SS
2153{
2154 int done, i, result_count;
2155 int startflag = 1;
2156 int result = 1;
2157 int loopcount = 0;
2158 static threadref nextthread;
2159 static threadref resultthreadlist[MAXTHREADLISTRESULTS];
2160
2161 done = 0;
2162 while (!done)
2163 {
2164 if (loopcount++ > looplimit)
2165 {
2166 result = 0;
8a3fe4f8 2167 warning (_("Remote fetch threadlist -infinite loop-."));
c906108c
SS
2168 break;
2169 }
2170 if (!remote_get_threadlist (startflag, &nextthread, MAXTHREADLISTRESULTS,
2171 &done, &result_count, resultthreadlist))
2172 {
2173 result = 0;
2174 break;
2175 }
23860348 2176 /* Clear for later iterations. */
c906108c
SS
2177 startflag = 0;
2178 /* Setup to resume next batch of thread references, set nextthread. */
2179 if (result_count >= 1)
2180 copy_threadref (&nextthread, &resultthreadlist[result_count - 1]);
2181 i = 0;
2182 while (result_count--)
2183 if (!(result = (*stepfunction) (&resultthreadlist[i++], context)))
2184 break;
2185 }
2186 return result;
2187}
2188
2189static int
fba45db2 2190remote_newthread_step (threadref *ref, void *context)
c906108c 2191{
79d7f229
PA
2192 int pid = ptid_get_pid (inferior_ptid);
2193 ptid_t ptid = ptid_build (pid, 0, threadref_to_int (ref));
39f77062
KB
2194
2195 if (!in_thread_list (ptid))
2196 add_thread (ptid);
c906108c
SS
2197 return 1; /* continue iterator */
2198}
2199
2200#define CRAZY_MAX_THREADS 1000
2201
39f77062
KB
2202static ptid_t
2203remote_current_thread (ptid_t oldpid)
c906108c 2204{
d01949b6 2205 struct remote_state *rs = get_remote_state ();
79d7f229
PA
2206 char *p = rs->buf;
2207 int tid;
2208 int pid;
c906108c
SS
2209
2210 putpkt ("qC");
6d820c5c 2211 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 2212 if (rs->buf[0] == 'Q' && rs->buf[1] == 'C')
82f73884 2213 return read_ptid (&rs->buf[2], NULL);
c906108c
SS
2214 else
2215 return oldpid;
2216}
2217
802188a7
RM
2218/* Find new threads for info threads command.
2219 * Original version, using John Metzler's thread protocol.
9d1f7ab2 2220 */
cce74817
JM
2221
2222static void
fba45db2 2223remote_find_new_threads (void)
c906108c 2224{
c5aa993b
JM
2225 remote_threadlist_iterator (remote_newthread_step, 0,
2226 CRAZY_MAX_THREADS);
c906108c
SS
2227}
2228
9d1f7ab2
MS
2229/*
2230 * Find all threads for info threads command.
2231 * Uses new thread protocol contributed by Cisco.
2232 * Falls back and attempts to use the older method (above)
2233 * if the target doesn't respond to the new method.
2234 */
2235
0f71a2f6 2236static void
28439f5e 2237remote_threads_info (struct target_ops *ops)
0f71a2f6 2238{
d01949b6 2239 struct remote_state *rs = get_remote_state ();
085dd6e6 2240 char *bufp;
79d7f229 2241 ptid_t new_thread;
0f71a2f6
JM
2242
2243 if (remote_desc == 0) /* paranoia */
8a3fe4f8 2244 error (_("Command can only be used when connected to the remote target."));
0f71a2f6 2245
9d1f7ab2
MS
2246 if (use_threadinfo_query)
2247 {
2248 putpkt ("qfThreadInfo");
6d820c5c 2249 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 2250 bufp = rs->buf;
9d1f7ab2 2251 if (bufp[0] != '\0') /* q packet recognized */
802188a7 2252 {
9d1f7ab2
MS
2253 while (*bufp++ == 'm') /* reply contains one or more TID */
2254 {
2255 do
2256 {
82f73884 2257 new_thread = read_ptid (bufp, &bufp);
1941c569 2258 if (!ptid_equal (new_thread, null_ptid))
82f73884 2259 {
74531fed 2260 /* In non-stop mode, we assume new found threads
1941c569 2261 are running until proven otherwise with a
74531fed
PA
2262 stop reply. In all-stop, we can only get
2263 here if all threads are stopped. */
1941c569
PA
2264 int running = non_stop ? 1 : 0;
2265
2266 remote_notice_new_inferior (new_thread, running);
82f73884 2267 }
9d1f7ab2
MS
2268 }
2269 while (*bufp++ == ','); /* comma-separated list */
2270 putpkt ("qsThreadInfo");
6d820c5c 2271 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 2272 bufp = rs->buf;
9d1f7ab2
MS
2273 }
2274 return; /* done */
2275 }
2276 }
2277
74531fed
PA
2278 /* Only qfThreadInfo is supported in non-stop mode. */
2279 if (non_stop)
2280 return;
2281
23860348 2282 /* Else fall back to old method based on jmetzler protocol. */
9d1f7ab2
MS
2283 use_threadinfo_query = 0;
2284 remote_find_new_threads ();
2285 return;
2286}
2287
802188a7 2288/*
9d1f7ab2
MS
2289 * Collect a descriptive string about the given thread.
2290 * The target may say anything it wants to about the thread
2291 * (typically info about its blocked / runnable state, name, etc.).
2292 * This string will appear in the info threads display.
802188a7 2293 *
9d1f7ab2
MS
2294 * Optional: targets are not required to implement this function.
2295 */
2296
2297static char *
2298remote_threads_extra_info (struct thread_info *tp)
2299{
d01949b6 2300 struct remote_state *rs = get_remote_state ();
9d1f7ab2
MS
2301 int result;
2302 int set;
2303 threadref id;
2304 struct gdb_ext_thread_info threadinfo;
23860348 2305 static char display_buf[100]; /* arbitrary... */
9d1f7ab2
MS
2306 int n = 0; /* position in display_buf */
2307
2308 if (remote_desc == 0) /* paranoia */
8e65ff28 2309 internal_error (__FILE__, __LINE__,
e2e0b3e5 2310 _("remote_threads_extra_info"));
9d1f7ab2 2311
60e569b9
PA
2312 if (ptid_equal (tp->ptid, magic_null_ptid)
2313 || (ptid_get_pid (tp->ptid) != 0 && ptid_get_tid (tp->ptid) == 0))
2314 /* This is the main thread which was added by GDB. The remote
2315 server doesn't know about it. */
2316 return NULL;
2317
9d1f7ab2
MS
2318 if (use_threadextra_query)
2319 {
82f73884
PA
2320 char *b = rs->buf;
2321 char *endb = rs->buf + get_remote_packet_size ();
2322
2323 xsnprintf (b, endb - b, "qThreadExtraInfo,");
2324 b += strlen (b);
2325 write_ptid (b, endb, tp->ptid);
2326
2e9f7625 2327 putpkt (rs->buf);
6d820c5c 2328 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 2329 if (rs->buf[0] != 0)
9d1f7ab2 2330 {
2e9f7625
DJ
2331 n = min (strlen (rs->buf) / 2, sizeof (display_buf));
2332 result = hex2bin (rs->buf, (gdb_byte *) display_buf, n);
30559e10 2333 display_buf [result] = '\0';
9d1f7ab2
MS
2334 return display_buf;
2335 }
0f71a2f6 2336 }
9d1f7ab2
MS
2337
2338 /* If the above query fails, fall back to the old method. */
2339 use_threadextra_query = 0;
2340 set = TAG_THREADID | TAG_EXISTS | TAG_THREADNAME
2341 | TAG_MOREDISPLAY | TAG_DISPLAY;
79d7f229 2342 int_to_threadref (&id, ptid_get_tid (tp->ptid));
9d1f7ab2
MS
2343 if (remote_get_threadinfo (&id, set, &threadinfo))
2344 if (threadinfo.active)
0f71a2f6 2345 {
9d1f7ab2 2346 if (*threadinfo.shortname)
2bc416ba 2347 n += xsnprintf (&display_buf[0], sizeof (display_buf) - n,
ecbc58df 2348 " Name: %s,", threadinfo.shortname);
9d1f7ab2 2349 if (*threadinfo.display)
2bc416ba 2350 n += xsnprintf (&display_buf[n], sizeof (display_buf) - n,
ecbc58df 2351 " State: %s,", threadinfo.display);
9d1f7ab2 2352 if (*threadinfo.more_display)
2bc416ba 2353 n += xsnprintf (&display_buf[n], sizeof (display_buf) - n,
ecbc58df 2354 " Priority: %s", threadinfo.more_display);
9d1f7ab2
MS
2355
2356 if (n > 0)
c5aa993b 2357 {
23860348 2358 /* For purely cosmetic reasons, clear up trailing commas. */
9d1f7ab2
MS
2359 if (',' == display_buf[n-1])
2360 display_buf[n-1] = ' ';
2361 return display_buf;
c5aa993b 2362 }
0f71a2f6 2363 }
9d1f7ab2 2364 return NULL;
0f71a2f6 2365}
c906108c 2366\f
c5aa993b 2367
24b06219 2368/* Restart the remote side; this is an extended protocol operation. */
c906108c
SS
2369
2370static void
fba45db2 2371extended_remote_restart (void)
c906108c 2372{
d01949b6 2373 struct remote_state *rs = get_remote_state ();
c906108c
SS
2374
2375 /* Send the restart command; for reasons I don't understand the
2376 remote side really expects a number after the "R". */
ea9c271d 2377 xsnprintf (rs->buf, get_remote_packet_size (), "R%x", 0);
6d820c5c 2378 putpkt (rs->buf);
c906108c 2379
ad9a8f3f 2380 remote_fileio_reset ();
c906108c
SS
2381}
2382\f
2383/* Clean up connection to a remote debugger. */
2384
c906108c 2385static void
fba45db2 2386remote_close (int quitting)
c906108c 2387{
d3fd5342
PA
2388 if (remote_desc == NULL)
2389 return; /* already closed */
2390
2391 /* Make sure we leave stdin registered in the event loop, and we
2392 don't leave the async SIGINT signal handler installed. */
2393 remote_terminal_ours ();
ce5ce7ed 2394
d3fd5342
PA
2395 serial_close (remote_desc);
2396 remote_desc = NULL;
ce5ce7ed
PA
2397
2398 /* We don't have a connection to the remote stub anymore. Get rid
2399 of all the inferiors and their threads we were controlling. */
2400 discard_all_inferiors ();
2401
74531fed
PA
2402 /* We're no longer interested in any of these events. */
2403 discard_pending_stop_replies (-1);
2404
2405 if (remote_async_inferior_event_token)
2406 delete_async_event_handler (&remote_async_inferior_event_token);
2407 if (remote_async_get_pending_events_token)
2408 delete_async_event_handler (&remote_async_get_pending_events_token);
c906108c
SS
2409}
2410
23860348 2411/* Query the remote side for the text, data and bss offsets. */
c906108c
SS
2412
2413static void
fba45db2 2414get_offsets (void)
c906108c 2415{
d01949b6 2416 struct remote_state *rs = get_remote_state ();
2e9f7625 2417 char *buf;
085dd6e6 2418 char *ptr;
31d99776
DJ
2419 int lose, num_segments = 0, do_sections, do_segments;
2420 CORE_ADDR text_addr, data_addr, bss_addr, segments[2];
c906108c 2421 struct section_offsets *offs;
31d99776
DJ
2422 struct symfile_segment_data *data;
2423
2424 if (symfile_objfile == NULL)
2425 return;
c906108c
SS
2426
2427 putpkt ("qOffsets");
6d820c5c 2428 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 2429 buf = rs->buf;
c906108c
SS
2430
2431 if (buf[0] == '\000')
2432 return; /* Return silently. Stub doesn't support
23860348 2433 this command. */
c906108c
SS
2434 if (buf[0] == 'E')
2435 {
8a3fe4f8 2436 warning (_("Remote failure reply: %s"), buf);
c906108c
SS
2437 return;
2438 }
2439
2440 /* Pick up each field in turn. This used to be done with scanf, but
2441 scanf will make trouble if CORE_ADDR size doesn't match
2442 conversion directives correctly. The following code will work
2443 with any size of CORE_ADDR. */
2444 text_addr = data_addr = bss_addr = 0;
2445 ptr = buf;
2446 lose = 0;
2447
2448 if (strncmp (ptr, "Text=", 5) == 0)
2449 {
2450 ptr += 5;
2451 /* Don't use strtol, could lose on big values. */
2452 while (*ptr && *ptr != ';')
2453 text_addr = (text_addr << 4) + fromhex (*ptr++);
c906108c 2454
31d99776
DJ
2455 if (strncmp (ptr, ";Data=", 6) == 0)
2456 {
2457 ptr += 6;
2458 while (*ptr && *ptr != ';')
2459 data_addr = (data_addr << 4) + fromhex (*ptr++);
2460 }
2461 else
2462 lose = 1;
2463
2464 if (!lose && strncmp (ptr, ";Bss=", 5) == 0)
2465 {
2466 ptr += 5;
2467 while (*ptr && *ptr != ';')
2468 bss_addr = (bss_addr << 4) + fromhex (*ptr++);
c906108c 2469
31d99776
DJ
2470 if (bss_addr != data_addr)
2471 warning (_("Target reported unsupported offsets: %s"), buf);
2472 }
2473 else
2474 lose = 1;
2475 }
2476 else if (strncmp (ptr, "TextSeg=", 8) == 0)
c906108c 2477 {
31d99776
DJ
2478 ptr += 8;
2479 /* Don't use strtol, could lose on big values. */
c906108c 2480 while (*ptr && *ptr != ';')
31d99776
DJ
2481 text_addr = (text_addr << 4) + fromhex (*ptr++);
2482 num_segments = 1;
2483
2484 if (strncmp (ptr, ";DataSeg=", 9) == 0)
2485 {
2486 ptr += 9;
2487 while (*ptr && *ptr != ';')
2488 data_addr = (data_addr << 4) + fromhex (*ptr++);
2489 num_segments++;
2490 }
c906108c
SS
2491 }
2492 else
2493 lose = 1;
2494
2495 if (lose)
8a3fe4f8 2496 error (_("Malformed response to offset query, %s"), buf);
31d99776
DJ
2497 else if (*ptr != '\0')
2498 warning (_("Target reported unsupported offsets: %s"), buf);
c906108c 2499
802188a7 2500 offs = ((struct section_offsets *)
a39a16c4 2501 alloca (SIZEOF_N_SECTION_OFFSETS (symfile_objfile->num_sections)));
802188a7 2502 memcpy (offs, symfile_objfile->section_offsets,
a39a16c4 2503 SIZEOF_N_SECTION_OFFSETS (symfile_objfile->num_sections));
c906108c 2504
31d99776
DJ
2505 data = get_symfile_segment_data (symfile_objfile->obfd);
2506 do_segments = (data != NULL);
2507 do_sections = num_segments == 0;
c906108c 2508
28c32713 2509 if (num_segments > 0)
31d99776 2510 {
31d99776
DJ
2511 segments[0] = text_addr;
2512 segments[1] = data_addr;
2513 }
28c32713
JB
2514 /* If we have two segments, we can still try to relocate everything
2515 by assuming that the .text and .data offsets apply to the whole
2516 text and data segments. Convert the offsets given in the packet
2517 to base addresses for symfile_map_offsets_to_segments. */
2518 else if (data && data->num_segments == 2)
2519 {
2520 segments[0] = data->segment_bases[0] + text_addr;
2521 segments[1] = data->segment_bases[1] + data_addr;
2522 num_segments = 2;
2523 }
8d385431
DJ
2524 /* If the object file has only one segment, assume that it is text
2525 rather than data; main programs with no writable data are rare,
2526 but programs with no code are useless. Of course the code might
2527 have ended up in the data segment... to detect that we would need
2528 the permissions here. */
2529 else if (data && data->num_segments == 1)
2530 {
2531 segments[0] = data->segment_bases[0] + text_addr;
2532 num_segments = 1;
2533 }
28c32713
JB
2534 /* There's no way to relocate by segment. */
2535 else
2536 do_segments = 0;
31d99776
DJ
2537
2538 if (do_segments)
2539 {
2540 int ret = symfile_map_offsets_to_segments (symfile_objfile->obfd, data,
2541 offs, num_segments, segments);
2542
2543 if (ret == 0 && !do_sections)
2544 error (_("Can not handle qOffsets TextSeg response with this symbol file"));
2545
2546 if (ret > 0)
2547 do_sections = 0;
2548 }
c906108c 2549
9ef895d6
DJ
2550 if (data)
2551 free_symfile_segment_data (data);
31d99776
DJ
2552
2553 if (do_sections)
2554 {
2555 offs->offsets[SECT_OFF_TEXT (symfile_objfile)] = text_addr;
2556
2557 /* This is a temporary kludge to force data and bss to use the same offsets
2558 because that's what nlmconv does now. The real solution requires changes
2559 to the stub and remote.c that I don't have time to do right now. */
2560
2561 offs->offsets[SECT_OFF_DATA (symfile_objfile)] = data_addr;
2562 offs->offsets[SECT_OFF_BSS (symfile_objfile)] = data_addr;
2563 }
c906108c
SS
2564
2565 objfile_relocate (symfile_objfile, offs);
2566}
2567
74531fed
PA
2568/* Callback for iterate_over_threads. Set the STOP_REQUESTED flags in
2569 threads we know are stopped already. This is used during the
2570 initial remote connection in non-stop mode --- threads that are
2571 reported as already being stopped are left stopped. */
2572
2573static int
2574set_stop_requested_callback (struct thread_info *thread, void *data)
2575{
2576 /* If we have a stop reply for this thread, it must be stopped. */
2577 if (peek_stop_reply (thread->ptid))
2578 set_stop_requested (thread->ptid, 1);
2579
2580 return 0;
2581}
2582
8621d6a9 2583/* Stub for catch_exception. */
0f71a2f6 2584
2d717e4f
DJ
2585struct start_remote_args
2586{
2587 int from_tty;
2588
2589 /* The current target. */
2590 struct target_ops *target;
2591
2592 /* Non-zero if this is an extended-remote target. */
2593 int extended_p;
2594};
2595
9cbc821d 2596static void
2d717e4f 2597remote_start_remote (struct ui_out *uiout, void *opaque)
c906108c 2598{
2d717e4f 2599 struct start_remote_args *args = opaque;
c8d104ad
PA
2600 struct remote_state *rs = get_remote_state ();
2601 struct packet_config *noack_config;
2d717e4f 2602 char *wait_status = NULL;
8621d6a9 2603
23860348 2604 immediate_quit++; /* Allow user to interrupt it. */
c906108c 2605
c8d104ad
PA
2606 /* Ack any packet which the remote side has already sent. */
2607 serial_write (remote_desc, "+", 1);
2608
2609 /* The first packet we send to the target is the optional "supported
2610 packets" request. If the target can answer this, it will tell us
2611 which later probes to skip. */
2612 remote_query_supported ();
2613
2614 /* Next, we possibly activate noack mode.
2615
2616 If the QStartNoAckMode packet configuration is set to AUTO,
2617 enable noack mode if the stub reported a wish for it with
2618 qSupported.
2619
2620 If set to TRUE, then enable noack mode even if the stub didn't
2621 report it in qSupported. If the stub doesn't reply OK, the
2622 session ends with an error.
2623
2624 If FALSE, then don't activate noack mode, regardless of what the
2625 stub claimed should be the default with qSupported. */
2626
2627 noack_config = &remote_protocol_packets[PACKET_QStartNoAckMode];
2628
2629 if (noack_config->detect == AUTO_BOOLEAN_TRUE
2630 || (noack_config->detect == AUTO_BOOLEAN_AUTO
2631 && noack_config->support == PACKET_ENABLE))
2632 {
2633 putpkt ("QStartNoAckMode");
2634 getpkt (&rs->buf, &rs->buf_size, 0);
2635 if (packet_ok (rs->buf, noack_config) == PACKET_OK)
2636 rs->noack_mode = 1;
2637 }
2638
5fe04517
PA
2639 if (args->extended_p)
2640 {
2641 /* Tell the remote that we are using the extended protocol. */
2642 putpkt ("!");
2643 getpkt (&rs->buf, &rs->buf_size, 0);
2644 }
2645
d962ef82
DJ
2646 /* Next, if the target can specify a description, read it. We do
2647 this before anything involving memory or registers. */
2648 target_find_description ();
2649
50c71eaf
PA
2650 /* On OSs where the list of libraries is global to all
2651 processes, we fetch them early. */
2652 if (gdbarch_has_global_solist (target_gdbarch))
2653 solib_add (NULL, args->from_tty, args->target, auto_solib_add);
2654
74531fed
PA
2655 if (non_stop)
2656 {
2657 if (!rs->non_stop_aware)
2658 error (_("Non-stop mode requested, but remote does not support non-stop"));
2659
2660 putpkt ("QNonStop:1");
2661 getpkt (&rs->buf, &rs->buf_size, 0);
2662
2663 if (strcmp (rs->buf, "OK") != 0)
2664 error ("Remote refused setting non-stop mode with: %s", rs->buf);
2665
2666 /* Find about threads and processes the stub is already
2667 controlling. We default to adding them in the running state.
2668 The '?' query below will then tell us about which threads are
2669 stopped. */
28439f5e 2670 remote_threads_info (args->target);
74531fed
PA
2671 }
2672 else if (rs->non_stop_aware)
2673 {
2674 /* Don't assume that the stub can operate in all-stop mode.
2675 Request it explicitely. */
2676 putpkt ("QNonStop:0");
2677 getpkt (&rs->buf, &rs->buf_size, 0);
2678
2679 if (strcmp (rs->buf, "OK") != 0)
2680 error ("Remote refused setting all-stop mode with: %s", rs->buf);
2681 }
2682
2d717e4f
DJ
2683 /* Check whether the target is running now. */
2684 putpkt ("?");
2685 getpkt (&rs->buf, &rs->buf_size, 0);
2686
74531fed 2687 if (!non_stop)
2d717e4f 2688 {
74531fed 2689 if (rs->buf[0] == 'W' || rs->buf[0] == 'X')
2d717e4f 2690 {
74531fed
PA
2691 if (args->extended_p)
2692 {
2693 /* We're connected, but not running. Drop out before we
2694 call start_remote. */
2695 target_mark_exited (args->target);
2696 return;
2697 }
2698 else
2699 error (_("The target is not running (try extended-remote?)"));
2d717e4f
DJ
2700 }
2701 else
74531fed 2702 {
74531fed
PA
2703 /* Save the reply for later. */
2704 wait_status = alloca (strlen (rs->buf) + 1);
2705 strcpy (wait_status, rs->buf);
2706 }
2707
2708 /* Let the stub know that we want it to return the thread. */
2709 set_continue_thread (minus_one_ptid);
2710
2711 /* Without this, some commands which require an active target
2712 (such as kill) won't work. This variable serves (at least)
2713 double duty as both the pid of the target process (if it has
2714 such), and as a flag indicating that a target is active.
2715 These functions should be split out into seperate variables,
2716 especially since GDB will someday have a notion of debugging
2717 several processes. */
2718 inferior_ptid = magic_null_ptid;
2719
2720 /* Now, if we have thread information, update inferior_ptid. */
2721 inferior_ptid = remote_current_thread (inferior_ptid);
2722
0b16c5cf 2723 remote_add_inferior (ptid_get_pid (inferior_ptid), -1);
74531fed
PA
2724
2725 /* Always add the main thread. */
2726 add_thread_silent (inferior_ptid);
2727
2728 get_offsets (); /* Get text, data & bss offsets. */
2729
d962ef82
DJ
2730 /* If we could not find a description using qXfer, and we know
2731 how to do it some other way, try again. This is not
2732 supported for non-stop; it could be, but it is tricky if
2733 there are no stopped threads when we connect. */
2734 if (remote_read_description_p (args->target)
2735 && gdbarch_target_desc (target_gdbarch) == NULL)
2736 {
2737 target_clear_description ();
2738 target_find_description ();
2739 }
2740
74531fed
PA
2741 /* Use the previously fetched status. */
2742 gdb_assert (wait_status != NULL);
2743 strcpy (rs->buf, wait_status);
2744 rs->cached_wait_status = 1;
2745
2746 immediate_quit--;
2747 start_remote (args->from_tty); /* Initialize gdb process mechanisms. */
2d717e4f
DJ
2748 }
2749 else
2750 {
68c97600
PA
2751 /* Clear WFI global state. Do this before finding about new
2752 threads and inferiors, and setting the current inferior.
2753 Otherwise we would clear the proceed status of the current
2754 inferior when we want its stop_soon state to be preserved
2755 (see notice_new_inferior). */
2756 init_wait_for_inferior ();
2757
74531fed
PA
2758 /* In non-stop, we will either get an "OK", meaning that there
2759 are no stopped threads at this time; or, a regular stop
2760 reply. In the latter case, there may be more than one thread
2761 stopped --- we pull them all out using the vStopped
2762 mechanism. */
2763 if (strcmp (rs->buf, "OK") != 0)
2764 {
2765 struct stop_reply *stop_reply;
2766 struct cleanup *old_chain;
2d717e4f 2767
74531fed
PA
2768 stop_reply = stop_reply_xmalloc ();
2769 old_chain = make_cleanup (do_stop_reply_xfree, stop_reply);
2d717e4f 2770
74531fed
PA
2771 remote_parse_stop_reply (rs->buf, stop_reply);
2772 discard_cleanups (old_chain);
c0a2216e 2773
74531fed
PA
2774 /* get_pending_stop_replies acks this one, and gets the rest
2775 out. */
2776 pending_stop_reply = stop_reply;
2777 remote_get_pending_stop_replies ();
c906108c 2778
74531fed
PA
2779 /* Make sure that threads that were stopped remain
2780 stopped. */
2781 iterate_over_threads (set_stop_requested_callback, NULL);
2782 }
2d717e4f 2783
74531fed
PA
2784 if (target_can_async_p ())
2785 target_async (inferior_event_handler, 0);
c906108c 2786
74531fed
PA
2787 if (thread_count () == 0)
2788 {
2789 if (args->extended_p)
2790 {
2791 /* We're connected, but not running. Drop out before we
2792 call start_remote. */
2793 target_mark_exited (args->target);
2794 return;
2795 }
2796 else
2797 error (_("The target is not running (try extended-remote?)"));
2798 }
82f73884 2799
74531fed
PA
2800 if (args->extended_p)
2801 target_mark_running (args->target);
2802
2803 /* Let the stub know that we want it to return the thread. */
c0a2216e 2804
74531fed
PA
2805 /* Force the stub to choose a thread. */
2806 set_general_thread (null_ptid);
c906108c 2807
74531fed
PA
2808 /* Query it. */
2809 inferior_ptid = remote_current_thread (minus_one_ptid);
2810 if (ptid_equal (inferior_ptid, minus_one_ptid))
2811 error (_("remote didn't report the current thread in non-stop mode"));
c906108c 2812
74531fed
PA
2813 get_offsets (); /* Get text, data & bss offsets. */
2814
2815 /* In non-stop mode, any cached wait status will be stored in
2816 the stop reply queue. */
2817 gdb_assert (wait_status == NULL);
2818 }
c8d104ad 2819
c8d104ad
PA
2820 /* If we connected to a live target, do some additional setup. */
2821 if (target_has_execution)
2822 {
2823 if (exec_bfd) /* No use without an exec file. */
2824 remote_check_symbols (symfile_objfile);
2825 }
50c71eaf 2826
2567c7d9
PA
2827 /* If breakpoints are global, insert them now. */
2828 if (gdbarch_has_global_breakpoints (target_gdbarch)
50c71eaf
PA
2829 && breakpoints_always_inserted_mode ())
2830 insert_breakpoints ();
c906108c
SS
2831}
2832
2833/* Open a connection to a remote debugger.
2834 NAME is the filename used for communication. */
2835
2836static void
fba45db2 2837remote_open (char *name, int from_tty)
c906108c 2838{
75c99385 2839 remote_open_1 (name, from_tty, &remote_ops, 0);
43ff13b4
JM
2840}
2841
c906108c
SS
2842/* Open a connection to a remote debugger using the extended
2843 remote gdb protocol. NAME is the filename used for communication. */
2844
2845static void
fba45db2 2846extended_remote_open (char *name, int from_tty)
c906108c 2847{
75c99385 2848 remote_open_1 (name, from_tty, &extended_remote_ops, 1 /*extended_p */);
43ff13b4
JM
2849}
2850
c906108c
SS
2851/* Generic code for opening a connection to a remote target. */
2852
d471ea57
AC
2853static void
2854init_all_packet_configs (void)
2855{
2856 int i;
444abaca
DJ
2857 for (i = 0; i < PACKET_MAX; i++)
2858 update_packet_config (&remote_protocol_packets[i]);
d471ea57
AC
2859}
2860
23860348 2861/* Symbol look-up. */
dc8acb97
MS
2862
2863static void
2864remote_check_symbols (struct objfile *objfile)
2865{
d01949b6 2866 struct remote_state *rs = get_remote_state ();
dc8acb97
MS
2867 char *msg, *reply, *tmp;
2868 struct minimal_symbol *sym;
2869 int end;
2870
444abaca 2871 if (remote_protocol_packets[PACKET_qSymbol].support == PACKET_DISABLE)
dc8acb97
MS
2872 return;
2873
3c9c4b83
PA
2874 /* Make sure the remote is pointing at the right process. */
2875 set_general_process ();
2876
6d820c5c
DJ
2877 /* Allocate a message buffer. We can't reuse the input buffer in RS,
2878 because we need both at the same time. */
ea9c271d 2879 msg = alloca (get_remote_packet_size ());
6d820c5c 2880
23860348 2881 /* Invite target to request symbol lookups. */
dc8acb97
MS
2882
2883 putpkt ("qSymbol::");
6d820c5c
DJ
2884 getpkt (&rs->buf, &rs->buf_size, 0);
2885 packet_ok (rs->buf, &remote_protocol_packets[PACKET_qSymbol]);
2e9f7625 2886 reply = rs->buf;
dc8acb97
MS
2887
2888 while (strncmp (reply, "qSymbol:", 8) == 0)
2889 {
2890 tmp = &reply[8];
cfd77fa1 2891 end = hex2bin (tmp, (gdb_byte *) msg, strlen (tmp) / 2);
dc8acb97
MS
2892 msg[end] = '\0';
2893 sym = lookup_minimal_symbol (msg, NULL, NULL);
2894 if (sym == NULL)
ea9c271d 2895 xsnprintf (msg, get_remote_packet_size (), "qSymbol::%s", &reply[8]);
dc8acb97 2896 else
2bbe3cc1
DJ
2897 {
2898 CORE_ADDR sym_addr = SYMBOL_VALUE_ADDRESS (sym);
2899
2900 /* If this is a function address, return the start of code
2901 instead of any data function descriptor. */
1cf3db46 2902 sym_addr = gdbarch_convert_from_func_ptr_addr (target_gdbarch,
2bbe3cc1
DJ
2903 sym_addr,
2904 &current_target);
2905
2906 xsnprintf (msg, get_remote_packet_size (), "qSymbol:%s:%s",
2907 paddr_nz (sym_addr), &reply[8]);
2908 }
2909
dc8acb97 2910 putpkt (msg);
6d820c5c 2911 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 2912 reply = rs->buf;
dc8acb97
MS
2913 }
2914}
2915
9db8d71f
DJ
2916static struct serial *
2917remote_serial_open (char *name)
2918{
2919 static int udp_warning = 0;
2920
2921 /* FIXME: Parsing NAME here is a hack. But we want to warn here instead
2922 of in ser-tcp.c, because it is the remote protocol assuming that the
2923 serial connection is reliable and not the serial connection promising
2924 to be. */
2925 if (!udp_warning && strncmp (name, "udp:", 4) == 0)
2926 {
8a3fe4f8
AC
2927 warning (_("\
2928The remote protocol may be unreliable over UDP.\n\
2929Some events may be lost, rendering further debugging impossible."));
9db8d71f
DJ
2930 udp_warning = 1;
2931 }
2932
2933 return serial_open (name);
2934}
2935
be2a5f71
DJ
2936/* This type describes each known response to the qSupported
2937 packet. */
2938struct protocol_feature
2939{
2940 /* The name of this protocol feature. */
2941 const char *name;
2942
2943 /* The default for this protocol feature. */
2944 enum packet_support default_support;
2945
2946 /* The function to call when this feature is reported, or after
2947 qSupported processing if the feature is not supported.
2948 The first argument points to this structure. The second
2949 argument indicates whether the packet requested support be
2950 enabled, disabled, or probed (or the default, if this function
2951 is being called at the end of processing and this feature was
2952 not reported). The third argument may be NULL; if not NULL, it
2953 is a NUL-terminated string taken from the packet following
2954 this feature's name and an equals sign. */
2955 void (*func) (const struct protocol_feature *, enum packet_support,
2956 const char *);
2957
2958 /* The corresponding packet for this feature. Only used if
2959 FUNC is remote_supported_packet. */
2960 int packet;
2961};
2962
be2a5f71
DJ
2963static void
2964remote_supported_packet (const struct protocol_feature *feature,
2965 enum packet_support support,
2966 const char *argument)
2967{
2968 if (argument)
2969 {
2970 warning (_("Remote qSupported response supplied an unexpected value for"
2971 " \"%s\"."), feature->name);
2972 return;
2973 }
2974
2975 if (remote_protocol_packets[feature->packet].support
2976 == PACKET_SUPPORT_UNKNOWN)
2977 remote_protocol_packets[feature->packet].support = support;
2978}
be2a5f71
DJ
2979
2980static void
2981remote_packet_size (const struct protocol_feature *feature,
2982 enum packet_support support, const char *value)
2983{
2984 struct remote_state *rs = get_remote_state ();
2985
2986 int packet_size;
2987 char *value_end;
2988
2989 if (support != PACKET_ENABLE)
2990 return;
2991
2992 if (value == NULL || *value == '\0')
2993 {
2994 warning (_("Remote target reported \"%s\" without a size."),
2995 feature->name);
2996 return;
2997 }
2998
2999 errno = 0;
3000 packet_size = strtol (value, &value_end, 16);
3001 if (errno != 0 || *value_end != '\0' || packet_size < 0)
3002 {
3003 warning (_("Remote target reported \"%s\" with a bad size: \"%s\"."),
3004 feature->name, value);
3005 return;
3006 }
3007
3008 if (packet_size > MAX_REMOTE_PACKET_SIZE)
3009 {
3010 warning (_("limiting remote suggested packet size (%d bytes) to %d"),
3011 packet_size, MAX_REMOTE_PACKET_SIZE);
3012 packet_size = MAX_REMOTE_PACKET_SIZE;
3013 }
3014
3015 /* Record the new maximum packet size. */
3016 rs->explicit_packet_size = packet_size;
3017}
3018
82f73884
PA
3019static void
3020remote_multi_process_feature (const struct protocol_feature *feature,
3021 enum packet_support support, const char *value)
3022{
3023 struct remote_state *rs = get_remote_state ();
3024 rs->multi_process_aware = (support == PACKET_ENABLE);
3025}
3026
74531fed
PA
3027static void
3028remote_non_stop_feature (const struct protocol_feature *feature,
3029 enum packet_support support, const char *value)
3030{
3031 struct remote_state *rs = get_remote_state ();
3032 rs->non_stop_aware = (support == PACKET_ENABLE);
3033}
3034
be2a5f71 3035static struct protocol_feature remote_protocol_features[] = {
0876f84a 3036 { "PacketSize", PACKET_DISABLE, remote_packet_size, -1 },
40e57cf2 3037 { "qXfer:auxv:read", PACKET_DISABLE, remote_supported_packet,
fd79ecee 3038 PACKET_qXfer_auxv },
23181151
DJ
3039 { "qXfer:features:read", PACKET_DISABLE, remote_supported_packet,
3040 PACKET_qXfer_features },
cfa9d6d9
DJ
3041 { "qXfer:libraries:read", PACKET_DISABLE, remote_supported_packet,
3042 PACKET_qXfer_libraries },
fd79ecee 3043 { "qXfer:memory-map:read", PACKET_DISABLE, remote_supported_packet,
89be2091 3044 PACKET_qXfer_memory_map },
4de6483e
UW
3045 { "qXfer:spu:read", PACKET_DISABLE, remote_supported_packet,
3046 PACKET_qXfer_spu_read },
3047 { "qXfer:spu:write", PACKET_DISABLE, remote_supported_packet,
3048 PACKET_qXfer_spu_write },
07e059b5
VP
3049 { "qXfer:osdata:read", PACKET_DISABLE, remote_supported_packet,
3050 PACKET_qXfer_osdata },
89be2091
DJ
3051 { "QPassSignals", PACKET_DISABLE, remote_supported_packet,
3052 PACKET_QPassSignals },
a6f3e723
SL
3053 { "QStartNoAckMode", PACKET_DISABLE, remote_supported_packet,
3054 PACKET_QStartNoAckMode },
82f73884 3055 { "multiprocess", PACKET_DISABLE, remote_multi_process_feature, -1 },
74531fed 3056 { "QNonStop", PACKET_DISABLE, remote_non_stop_feature, -1 },
4aa995e1
PA
3057 { "qXfer:siginfo:read", PACKET_DISABLE, remote_supported_packet,
3058 PACKET_qXfer_siginfo_read },
3059 { "qXfer:siginfo:write", PACKET_DISABLE, remote_supported_packet,
3060 PACKET_qXfer_siginfo_write },
be2a5f71
DJ
3061};
3062
3063static void
3064remote_query_supported (void)
3065{
3066 struct remote_state *rs = get_remote_state ();
3067 char *next;
3068 int i;
3069 unsigned char seen [ARRAY_SIZE (remote_protocol_features)];
3070
3071 /* The packet support flags are handled differently for this packet
3072 than for most others. We treat an error, a disabled packet, and
3073 an empty response identically: any features which must be reported
3074 to be used will be automatically disabled. An empty buffer
3075 accomplishes this, since that is also the representation for a list
3076 containing no features. */
3077
3078 rs->buf[0] = 0;
3079 if (remote_protocol_packets[PACKET_qSupported].support != PACKET_DISABLE)
3080 {
82f73884
PA
3081 if (rs->extended)
3082 putpkt ("qSupported:multiprocess+");
3083 else
3084 putpkt ("qSupported");
3085
be2a5f71
DJ
3086 getpkt (&rs->buf, &rs->buf_size, 0);
3087
3088 /* If an error occured, warn, but do not return - just reset the
3089 buffer to empty and go on to disable features. */
3090 if (packet_ok (rs->buf, &remote_protocol_packets[PACKET_qSupported])
3091 == PACKET_ERROR)
3092 {
3093 warning (_("Remote failure reply: %s"), rs->buf);
3094 rs->buf[0] = 0;
3095 }
3096 }
3097
3098 memset (seen, 0, sizeof (seen));
3099
3100 next = rs->buf;
3101 while (*next)
3102 {
3103 enum packet_support is_supported;
3104 char *p, *end, *name_end, *value;
3105
3106 /* First separate out this item from the rest of the packet. If
3107 there's another item after this, we overwrite the separator
3108 (terminated strings are much easier to work with). */
3109 p = next;
3110 end = strchr (p, ';');
3111 if (end == NULL)
3112 {
3113 end = p + strlen (p);
3114 next = end;
3115 }
3116 else
3117 {
89be2091
DJ
3118 *end = '\0';
3119 next = end + 1;
3120
be2a5f71
DJ
3121 if (end == p)
3122 {
3123 warning (_("empty item in \"qSupported\" response"));
3124 continue;
3125 }
be2a5f71
DJ
3126 }
3127
3128 name_end = strchr (p, '=');
3129 if (name_end)
3130 {
3131 /* This is a name=value entry. */
3132 is_supported = PACKET_ENABLE;
3133 value = name_end + 1;
3134 *name_end = '\0';
3135 }
3136 else
3137 {
3138 value = NULL;
3139 switch (end[-1])
3140 {
3141 case '+':
3142 is_supported = PACKET_ENABLE;
3143 break;
3144
3145 case '-':
3146 is_supported = PACKET_DISABLE;
3147 break;
3148
3149 case '?':
3150 is_supported = PACKET_SUPPORT_UNKNOWN;
3151 break;
3152
3153 default:
3154 warning (_("unrecognized item \"%s\" in \"qSupported\" response"), p);
3155 continue;
3156 }
3157 end[-1] = '\0';
3158 }
3159
3160 for (i = 0; i < ARRAY_SIZE (remote_protocol_features); i++)
3161 if (strcmp (remote_protocol_features[i].name, p) == 0)
3162 {
3163 const struct protocol_feature *feature;
3164
3165 seen[i] = 1;
3166 feature = &remote_protocol_features[i];
3167 feature->func (feature, is_supported, value);
3168 break;
3169 }
3170 }
3171
3172 /* If we increased the packet size, make sure to increase the global
3173 buffer size also. We delay this until after parsing the entire
3174 qSupported packet, because this is the same buffer we were
3175 parsing. */
3176 if (rs->buf_size < rs->explicit_packet_size)
3177 {
3178 rs->buf_size = rs->explicit_packet_size;
3179 rs->buf = xrealloc (rs->buf, rs->buf_size);
3180 }
3181
3182 /* Handle the defaults for unmentioned features. */
3183 for (i = 0; i < ARRAY_SIZE (remote_protocol_features); i++)
3184 if (!seen[i])
3185 {
3186 const struct protocol_feature *feature;
3187
3188 feature = &remote_protocol_features[i];
3189 feature->func (feature, feature->default_support, NULL);
3190 }
3191}
3192
3193
c906108c 3194static void
75c99385 3195remote_open_1 (char *name, int from_tty, struct target_ops *target, int extended_p)
c906108c 3196{
d01949b6 3197 struct remote_state *rs = get_remote_state ();
a6f3e723 3198
c906108c 3199 if (name == 0)
8a3fe4f8 3200 error (_("To open a remote debug connection, you need to specify what\n"
22e04375 3201 "serial device is attached to the remote system\n"
8a3fe4f8 3202 "(e.g. /dev/ttyS0, /dev/ttya, COM1, etc.)."));
c906108c 3203
23860348 3204 /* See FIXME above. */
c6ebd6cf 3205 if (!target_async_permitted)
92d1e331 3206 wait_forever_enabled_p = 1;
6426a772 3207
2d717e4f
DJ
3208 /* If we're connected to a running target, target_preopen will kill it.
3209 But if we're connected to a target system with no running process,
3210 then we will still be connected when it returns. Ask this question
3211 first, before target_preopen has a chance to kill anything. */
3212 if (remote_desc != NULL && !target_has_execution)
3213 {
3214 if (!from_tty
3215 || query (_("Already connected to a remote target. Disconnect? ")))
3216 pop_target ();
3217 else
3218 error (_("Still connected."));
3219 }
3220
c906108c
SS
3221 target_preopen (from_tty);
3222
3223 unpush_target (target);
3224
2d717e4f
DJ
3225 /* This time without a query. If we were connected to an
3226 extended-remote target and target_preopen killed the running
3227 process, we may still be connected. If we are starting "target
3228 remote" now, the extended-remote target will not have been
3229 removed by unpush_target. */
3230 if (remote_desc != NULL && !target_has_execution)
3231 pop_target ();
3232
89be2091
DJ
3233 /* Make sure we send the passed signals list the next time we resume. */
3234 xfree (last_pass_packet);
3235 last_pass_packet = NULL;
3236
ad9a8f3f 3237 remote_fileio_reset ();
1dd41f16
NS
3238 reopen_exec_file ();
3239 reread_symbols ();
3240
9db8d71f 3241 remote_desc = remote_serial_open (name);
c906108c
SS
3242 if (!remote_desc)
3243 perror_with_name (name);
3244
3245 if (baud_rate != -1)
3246 {
2cd58942 3247 if (serial_setbaudrate (remote_desc, baud_rate))
c906108c 3248 {
9b74d5d3
KB
3249 /* The requested speed could not be set. Error out to
3250 top level after closing remote_desc. Take care to
3251 set remote_desc to NULL to avoid closing remote_desc
3252 more than once. */
2cd58942 3253 serial_close (remote_desc);
9b74d5d3 3254 remote_desc = NULL;
c906108c
SS
3255 perror_with_name (name);
3256 }
3257 }
3258
2cd58942 3259 serial_raw (remote_desc);
c906108c
SS
3260
3261 /* If there is something sitting in the buffer we might take it as a
3262 response to a command, which would be bad. */
2cd58942 3263 serial_flush_input (remote_desc);
c906108c
SS
3264
3265 if (from_tty)
3266 {
3267 puts_filtered ("Remote debugging using ");
3268 puts_filtered (name);
3269 puts_filtered ("\n");
3270 }
23860348 3271 push_target (target); /* Switch to using remote target now. */
c906108c 3272
d962ef82
DJ
3273 /* Assume that the target is not running, until we learn otherwise. */
3274 if (extended_p)
3275 target_mark_exited (target);
2d717e4f 3276
74531fed
PA
3277 /* Register extra event sources in the event loop. */
3278 remote_async_inferior_event_token
3279 = create_async_event_handler (remote_async_inferior_event_handler,
3280 NULL);
3281 remote_async_get_pending_events_token
3282 = create_async_event_handler (remote_async_get_pending_events_handler,
3283 NULL);
3284
be2a5f71
DJ
3285 /* Reset the target state; these things will be queried either by
3286 remote_query_supported or as they are needed. */
d471ea57 3287 init_all_packet_configs ();
74531fed 3288 rs->cached_wait_status = 0;
be2a5f71 3289 rs->explicit_packet_size = 0;
a6f3e723 3290 rs->noack_mode = 0;
82f73884
PA
3291 rs->multi_process_aware = 0;
3292 rs->extended = extended_p;
74531fed 3293 rs->non_stop_aware = 0;
e24a49d8 3294 rs->waiting_for_stop_reply = 0;
802188a7 3295
79d7f229
PA
3296 general_thread = not_sent_ptid;
3297 continue_thread = not_sent_ptid;
c906108c 3298
9d1f7ab2
MS
3299 /* Probe for ability to use "ThreadInfo" query, as required. */
3300 use_threadinfo_query = 1;
3301 use_threadextra_query = 1;
3302
c6ebd6cf 3303 if (target_async_permitted)
92d1e331 3304 {
23860348 3305 /* With this target we start out by owning the terminal. */
92d1e331
DJ
3306 remote_async_terminal_ours_p = 1;
3307
3308 /* FIXME: cagney/1999-09-23: During the initial connection it is
3309 assumed that the target is already ready and able to respond to
3310 requests. Unfortunately remote_start_remote() eventually calls
3311 wait_for_inferior() with no timeout. wait_forever_enabled_p gets
3312 around this. Eventually a mechanism that allows
3313 wait_for_inferior() to expect/get timeouts will be
23860348 3314 implemented. */
92d1e331
DJ
3315 wait_forever_enabled_p = 0;
3316 }
3317
23860348 3318 /* First delete any symbols previously loaded from shared libraries. */
f78f6cf1 3319 no_shared_libraries (NULL, 0);
f78f6cf1 3320
74531fed
PA
3321 /* Start afresh. */
3322 init_thread_list ();
3323
36918e70 3324 /* Start the remote connection. If error() or QUIT, discard this
165b8e33
AC
3325 target (we'd otherwise be in an inconsistent state) and then
3326 propogate the error on up the exception chain. This ensures that
3327 the caller doesn't stumble along blindly assuming that the
3328 function succeeded. The CLI doesn't have this problem but other
3329 UI's, such as MI do.
36918e70
AC
3330
3331 FIXME: cagney/2002-05-19: Instead of re-throwing the exception,
3332 this function should return an error indication letting the
ce2826aa 3333 caller restore the previous state. Unfortunately the command
36918e70
AC
3334 ``target remote'' is directly wired to this function making that
3335 impossible. On a positive note, the CLI side of this problem has
3336 been fixed - the function set_cmd_context() makes it possible for
3337 all the ``target ....'' commands to share a common callback
3338 function. See cli-dump.c. */
109c3e39 3339 {
2d717e4f
DJ
3340 struct gdb_exception ex;
3341 struct start_remote_args args;
3342
3343 args.from_tty = from_tty;
3344 args.target = target;
3345 args.extended_p = extended_p;
3346
3347 ex = catch_exception (uiout, remote_start_remote, &args, RETURN_MASK_ALL);
109c3e39
AC
3348 if (ex.reason < 0)
3349 {
c8d104ad
PA
3350 /* Pop the partially set up target - unless something else did
3351 already before throwing the exception. */
3352 if (remote_desc != NULL)
3353 pop_target ();
c6ebd6cf 3354 if (target_async_permitted)
109c3e39
AC
3355 wait_forever_enabled_p = 1;
3356 throw_exception (ex);
3357 }
3358 }
c906108c 3359
c6ebd6cf 3360 if (target_async_permitted)
92d1e331 3361 wait_forever_enabled_p = 1;
43ff13b4
JM
3362}
3363
c906108c
SS
3364/* This takes a program previously attached to and detaches it. After
3365 this is done, GDB can be used to debug some other program. We
3366 better not have left any breakpoints in the target program or it'll
3367 die when it hits one. */
3368
3369static void
2d717e4f 3370remote_detach_1 (char *args, int from_tty, int extended)
c906108c 3371{
82f73884 3372 int pid = ptid_get_pid (inferior_ptid);
d01949b6 3373 struct remote_state *rs = get_remote_state ();
c906108c
SS
3374
3375 if (args)
8a3fe4f8 3376 error (_("Argument given to \"detach\" when remotely debugging."));
c906108c 3377
2d717e4f
DJ
3378 if (!target_has_execution)
3379 error (_("No process to detach from."));
3380
c906108c 3381 /* Tell the remote target to detach. */
82f73884
PA
3382 if (remote_multi_process_p (rs))
3383 sprintf (rs->buf, "D;%x", pid);
3384 else
3385 strcpy (rs->buf, "D");
3386
4ddda9b5
PA
3387 putpkt (rs->buf);
3388 getpkt (&rs->buf, &rs->buf_size, 0);
3389
82f73884
PA
3390 if (rs->buf[0] == 'O' && rs->buf[1] == 'K')
3391 ;
3392 else if (rs->buf[0] == '\0')
3393 error (_("Remote doesn't know how to detach"));
3394 else
4ddda9b5 3395 error (_("Can't detach process."));
c906108c 3396
c906108c 3397 if (from_tty)
2d717e4f 3398 {
82f73884
PA
3399 if (remote_multi_process_p (rs))
3400 printf_filtered (_("Detached from remote %s.\n"),
3401 target_pid_to_str (pid_to_ptid (pid)));
2d717e4f 3402 else
82f73884
PA
3403 {
3404 if (extended)
3405 puts_filtered (_("Detached from remote process.\n"));
3406 else
3407 puts_filtered (_("Ending remote debugging.\n"));
3408 }
2d717e4f 3409 }
82f73884 3410
74531fed 3411 discard_pending_stop_replies (pid);
82f73884 3412 target_mourn_inferior ();
2d717e4f
DJ
3413}
3414
3415static void
136d6dae 3416remote_detach (struct target_ops *ops, char *args, int from_tty)
2d717e4f
DJ
3417{
3418 remote_detach_1 (args, from_tty, 0);
3419}
3420
3421static void
136d6dae 3422extended_remote_detach (struct target_ops *ops, char *args, int from_tty)
2d717e4f
DJ
3423{
3424 remote_detach_1 (args, from_tty, 1);
c906108c
SS
3425}
3426
6ad8ae5c
DJ
3427/* Same as remote_detach, but don't send the "D" packet; just disconnect. */
3428
43ff13b4 3429static void
597320e7 3430remote_disconnect (struct target_ops *target, char *args, int from_tty)
43ff13b4 3431{
43ff13b4 3432 if (args)
2d717e4f 3433 error (_("Argument given to \"disconnect\" when remotely debugging."));
43ff13b4 3434
2d717e4f
DJ
3435 /* Make sure we unpush even the extended remote targets; mourn
3436 won't do it. So call remote_mourn_1 directly instead of
3437 target_mourn_inferior. */
3438 remote_mourn_1 (target);
3439
43ff13b4
JM
3440 if (from_tty)
3441 puts_filtered ("Ending remote debugging.\n");
3442}
3443
2d717e4f
DJ
3444/* Attach to the process specified by ARGS. If FROM_TTY is non-zero,
3445 be chatty about it. */
3446
3447static void
3448extended_remote_attach_1 (struct target_ops *target, char *args, int from_tty)
3449{
3450 struct remote_state *rs = get_remote_state ();
be86555c 3451 int pid;
2d717e4f 3452 char *dummy;
96ef3384 3453 char *wait_status = NULL;
2d717e4f
DJ
3454
3455 if (!args)
3456 error_no_arg (_("process-id to attach"));
3457
3458 dummy = args;
3459 pid = strtol (args, &dummy, 0);
3460 /* Some targets don't set errno on errors, grrr! */
3461 if (pid == 0 && args == dummy)
3462 error (_("Illegal process-id: %s."), args);
3463
3464 if (remote_protocol_packets[PACKET_vAttach].support == PACKET_DISABLE)
3465 error (_("This target does not support attaching to a process"));
3466
3467 sprintf (rs->buf, "vAttach;%x", pid);
3468 putpkt (rs->buf);
3469 getpkt (&rs->buf, &rs->buf_size, 0);
3470
3471 if (packet_ok (rs->buf, &remote_protocol_packets[PACKET_vAttach]) == PACKET_OK)
3472 {
3473 if (from_tty)
3474 printf_unfiltered (_("Attached to %s\n"),
3475 target_pid_to_str (pid_to_ptid (pid)));
3476
74531fed
PA
3477 if (!non_stop)
3478 {
3479 /* Save the reply for later. */
3480 wait_status = alloca (strlen (rs->buf) + 1);
3481 strcpy (wait_status, rs->buf);
3482 }
3483 else if (strcmp (rs->buf, "OK") != 0)
3484 error (_("Attaching to %s failed with: %s"),
3485 target_pid_to_str (pid_to_ptid (pid)),
3486 rs->buf);
2d717e4f
DJ
3487 }
3488 else if (remote_protocol_packets[PACKET_vAttach].support == PACKET_DISABLE)
3489 error (_("This target does not support attaching to a process"));
3490 else
3491 error (_("Attaching to %s failed"),
3492 target_pid_to_str (pid_to_ptid (pid)));
3493
bad34192
PA
3494 remote_add_inferior (pid, 1);
3495
2d717e4f 3496 inferior_ptid = pid_to_ptid (pid);
79d7f229 3497
bad34192
PA
3498 if (non_stop)
3499 {
3500 struct thread_info *thread;
79d7f229 3501
bad34192
PA
3502 /* Get list of threads. */
3503 remote_threads_info (target);
82f73884 3504
bad34192
PA
3505 thread = first_thread_of_process (pid);
3506 if (thread)
3507 inferior_ptid = thread->ptid;
3508 else
3509 inferior_ptid = pid_to_ptid (pid);
3510
3511 /* Invalidate our notion of the remote current thread. */
3512 record_currthread (minus_one_ptid);
3513 }
74531fed 3514 else
bad34192
PA
3515 {
3516 /* Now, if we have thread information, update inferior_ptid. */
3517 inferior_ptid = remote_current_thread (inferior_ptid);
3518
3519 /* Add the main thread to the thread list. */
3520 add_thread_silent (inferior_ptid);
3521 }
c0a2216e 3522
96ef3384
UW
3523 /* Next, if the target can specify a description, read it. We do
3524 this before anything involving memory or registers. */
3525 target_find_description ();
3526
74531fed
PA
3527 if (!non_stop)
3528 {
3529 /* Use the previously fetched status. */
3530 gdb_assert (wait_status != NULL);
3531
3532 if (target_can_async_p ())
3533 {
3534 struct stop_reply *stop_reply;
3535 struct cleanup *old_chain;
3536
3537 stop_reply = stop_reply_xmalloc ();
3538 old_chain = make_cleanup (do_stop_reply_xfree, stop_reply);
3539 remote_parse_stop_reply (wait_status, stop_reply);
3540 discard_cleanups (old_chain);
3541 push_stop_reply (stop_reply);
3542
3543 target_async (inferior_event_handler, 0);
3544 }
3545 else
3546 {
3547 gdb_assert (wait_status != NULL);
3548 strcpy (rs->buf, wait_status);
3549 rs->cached_wait_status = 1;
3550 }
3551 }
3552 else
3553 gdb_assert (wait_status == NULL);
2d717e4f
DJ
3554}
3555
3556static void
136d6dae 3557extended_remote_attach (struct target_ops *ops, char *args, int from_tty)
2d717e4f 3558{
136d6dae 3559 extended_remote_attach_1 (ops, args, from_tty);
2d717e4f
DJ
3560}
3561
c906108c
SS
3562/* Convert hex digit A to a number. */
3563
30559e10 3564static int
fba45db2 3565fromhex (int a)
c906108c
SS
3566{
3567 if (a >= '0' && a <= '9')
3568 return a - '0';
3569 else if (a >= 'a' && a <= 'f')
3570 return a - 'a' + 10;
3571 else if (a >= 'A' && a <= 'F')
3572 return a - 'A' + 10;
c5aa993b 3573 else
8a3fe4f8 3574 error (_("Reply contains invalid hex digit %d"), a);
c906108c
SS
3575}
3576
30559e10 3577static int
cfd77fa1 3578hex2bin (const char *hex, gdb_byte *bin, int count)
30559e10
MS
3579{
3580 int i;
3581
30559e10
MS
3582 for (i = 0; i < count; i++)
3583 {
3584 if (hex[0] == 0 || hex[1] == 0)
3585 {
3586 /* Hex string is short, or of uneven length.
23860348 3587 Return the count that has been converted so far. */
30559e10
MS
3588 return i;
3589 }
3590 *bin++ = fromhex (hex[0]) * 16 + fromhex (hex[1]);
3591 hex += 2;
3592 }
3593 return i;
3594}
3595
c906108c
SS
3596/* Convert number NIB to a hex digit. */
3597
3598static int
fba45db2 3599tohex (int nib)
c906108c
SS
3600{
3601 if (nib < 10)
c5aa993b 3602 return '0' + nib;
c906108c 3603 else
c5aa993b 3604 return 'a' + nib - 10;
c906108c 3605}
30559e10
MS
3606
3607static int
cfd77fa1 3608bin2hex (const gdb_byte *bin, char *hex, int count)
30559e10
MS
3609{
3610 int i;
23860348 3611 /* May use a length, or a nul-terminated string as input. */
30559e10 3612 if (count == 0)
cfd77fa1 3613 count = strlen ((char *) bin);
30559e10
MS
3614
3615 for (i = 0; i < count; i++)
3616 {
3617 *hex++ = tohex ((*bin >> 4) & 0xf);
3618 *hex++ = tohex (*bin++ & 0xf);
3619 }
3620 *hex = 0;
3621 return i;
3622}
c906108c 3623\f
506fb367
DJ
3624/* Check for the availability of vCont. This function should also check
3625 the response. */
c906108c
SS
3626
3627static void
6d820c5c 3628remote_vcont_probe (struct remote_state *rs)
c906108c 3629{
2e9f7625 3630 char *buf;
6d820c5c 3631
2e9f7625
DJ
3632 strcpy (rs->buf, "vCont?");
3633 putpkt (rs->buf);
6d820c5c 3634 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 3635 buf = rs->buf;
c906108c 3636
506fb367
DJ
3637 /* Make sure that the features we assume are supported. */
3638 if (strncmp (buf, "vCont", 5) == 0)
3639 {
3640 char *p = &buf[5];
3641 int support_s, support_S, support_c, support_C;
3642
3643 support_s = 0;
3644 support_S = 0;
3645 support_c = 0;
3646 support_C = 0;
74531fed 3647 rs->support_vCont_t = 0;
506fb367
DJ
3648 while (p && *p == ';')
3649 {
3650 p++;
3651 if (*p == 's' && (*(p + 1) == ';' || *(p + 1) == 0))
3652 support_s = 1;
3653 else if (*p == 'S' && (*(p + 1) == ';' || *(p + 1) == 0))
3654 support_S = 1;
3655 else if (*p == 'c' && (*(p + 1) == ';' || *(p + 1) == 0))
3656 support_c = 1;
3657 else if (*p == 'C' && (*(p + 1) == ';' || *(p + 1) == 0))
3658 support_C = 1;
74531fed
PA
3659 else if (*p == 't' && (*(p + 1) == ';' || *(p + 1) == 0))
3660 rs->support_vCont_t = 1;
506fb367
DJ
3661
3662 p = strchr (p, ';');
3663 }
c906108c 3664
506fb367
DJ
3665 /* If s, S, c, and C are not all supported, we can't use vCont. Clearing
3666 BUF will make packet_ok disable the packet. */
3667 if (!support_s || !support_S || !support_c || !support_C)
3668 buf[0] = 0;
3669 }
c906108c 3670
444abaca 3671 packet_ok (buf, &remote_protocol_packets[PACKET_vCont]);
506fb367 3672}
c906108c 3673
0d8f58ca
PA
3674/* Helper function for building "vCont" resumptions. Write a
3675 resumption to P. ENDP points to one-passed-the-end of the buffer
3676 we're allowed to write to. Returns BUF+CHARACTERS_WRITTEN. The
3677 thread to be resumed is PTID; STEP and SIGGNAL indicate whether the
3678 resumed thread should be single-stepped and/or signalled. If PTID
3679 equals minus_one_ptid, then all threads are resumed; if PTID
3680 represents a process, then all threads of the process are resumed;
3681 the thread to be stepped and/or signalled is given in the global
3682 INFERIOR_PTID. */
3683
3684static char *
3685append_resumption (char *p, char *endp,
3686 ptid_t ptid, int step, enum target_signal siggnal)
3687{
3688 struct remote_state *rs = get_remote_state ();
3689
3690 if (step && siggnal != TARGET_SIGNAL_0)
3691 p += xsnprintf (p, endp - p, ";S%02x", siggnal);
3692 else if (step)
3693 p += xsnprintf (p, endp - p, ";s");
3694 else if (siggnal != TARGET_SIGNAL_0)
3695 p += xsnprintf (p, endp - p, ";C%02x", siggnal);
3696 else
3697 p += xsnprintf (p, endp - p, ";c");
3698
3699 if (remote_multi_process_p (rs) && ptid_is_pid (ptid))
3700 {
3701 ptid_t nptid;
3702
3703 /* All (-1) threads of process. */
3704 nptid = ptid_build (ptid_get_pid (ptid), 0, -1);
3705
3706 p += xsnprintf (p, endp - p, ":");
3707 p = write_ptid (p, endp, nptid);
3708 }
3709 else if (!ptid_equal (ptid, minus_one_ptid))
3710 {
3711 p += xsnprintf (p, endp - p, ":");
3712 p = write_ptid (p, endp, ptid);
3713 }
3714
3715 return p;
3716}
3717
506fb367
DJ
3718/* Resume the remote inferior by using a "vCont" packet. The thread
3719 to be resumed is PTID; STEP and SIGGNAL indicate whether the
79d7f229
PA
3720 resumed thread should be single-stepped and/or signalled. If PTID
3721 equals minus_one_ptid, then all threads are resumed; the thread to
3722 be stepped and/or signalled is given in the global INFERIOR_PTID.
3723 This function returns non-zero iff it resumes the inferior.
44eaed12 3724
506fb367
DJ
3725 This function issues a strict subset of all possible vCont commands at the
3726 moment. */
44eaed12 3727
506fb367
DJ
3728static int
3729remote_vcont_resume (ptid_t ptid, int step, enum target_signal siggnal)
3730{
3731 struct remote_state *rs = get_remote_state ();
82f73884
PA
3732 char *p;
3733 char *endp;
44eaed12 3734
444abaca 3735 if (remote_protocol_packets[PACKET_vCont].support == PACKET_SUPPORT_UNKNOWN)
6d820c5c 3736 remote_vcont_probe (rs);
44eaed12 3737
444abaca 3738 if (remote_protocol_packets[PACKET_vCont].support == PACKET_DISABLE)
6d820c5c 3739 return 0;
44eaed12 3740
82f73884
PA
3741 p = rs->buf;
3742 endp = rs->buf + get_remote_packet_size ();
3743
506fb367
DJ
3744 /* If we could generate a wider range of packets, we'd have to worry
3745 about overflowing BUF. Should there be a generic
3746 "multi-part-packet" packet? */
3747
0d8f58ca
PA
3748 p += xsnprintf (p, endp - p, "vCont");
3749
79d7f229 3750 if (ptid_equal (ptid, magic_null_ptid))
c906108c 3751 {
79d7f229
PA
3752 /* MAGIC_NULL_PTID means that we don't have any active threads,
3753 so we don't have any TID numbers the inferior will
3754 understand. Make sure to only send forms that do not specify
3755 a TID. */
0d8f58ca 3756 p = append_resumption (p, endp, minus_one_ptid, step, siggnal);
506fb367 3757 }
0d8f58ca 3758 else if (ptid_equal (ptid, minus_one_ptid) || ptid_is_pid (ptid))
506fb367 3759 {
0d8f58ca
PA
3760 /* Resume all threads (of all processes, or of a single
3761 process), with preference for INFERIOR_PTID. This assumes
3762 inferior_ptid belongs to the set of all threads we are about
3763 to resume. */
3764 if (step || siggnal != TARGET_SIGNAL_0)
82f73884 3765 {
0d8f58ca
PA
3766 /* Step inferior_ptid, with or without signal. */
3767 p = append_resumption (p, endp, inferior_ptid, step, siggnal);
82f73884 3768 }
0d8f58ca
PA
3769
3770 /* And continue others without a signal. */
3771 p = append_resumption (p, endp, ptid, /*step=*/ 0, TARGET_SIGNAL_0);
c906108c
SS
3772 }
3773 else
506fb367
DJ
3774 {
3775 /* Scheduler locking; resume only PTID. */
0d8f58ca 3776 p = append_resumption (p, endp, ptid, step, siggnal);
506fb367 3777 }
c906108c 3778
82f73884
PA
3779 gdb_assert (strlen (rs->buf) < get_remote_packet_size ());
3780 putpkt (rs->buf);
506fb367 3781
74531fed
PA
3782 if (non_stop)
3783 {
3784 /* In non-stop, the stub replies to vCont with "OK". The stop
3785 reply will be reported asynchronously by means of a `%Stop'
3786 notification. */
3787 getpkt (&rs->buf, &rs->buf_size, 0);
3788 if (strcmp (rs->buf, "OK") != 0)
3789 error (_("Unexpected vCont reply in non-stop mode: %s"), rs->buf);
3790 }
3791
506fb367 3792 return 1;
c906108c 3793}
43ff13b4 3794
506fb367
DJ
3795/* Tell the remote machine to resume. */
3796
3797static enum target_signal last_sent_signal = TARGET_SIGNAL_0;
3798
3799static int last_sent_step;
3800
43ff13b4 3801static void
28439f5e
PA
3802remote_resume (struct target_ops *ops,
3803 ptid_t ptid, int step, enum target_signal siggnal)
43ff13b4 3804{
d01949b6 3805 struct remote_state *rs = get_remote_state ();
2e9f7625 3806 char *buf;
43ff13b4 3807
43ff13b4
JM
3808 last_sent_signal = siggnal;
3809 last_sent_step = step;
3810
89be2091
DJ
3811 /* Update the inferior on signals to silently pass, if they've changed. */
3812 remote_pass_signals ();
3813
506fb367
DJ
3814 /* The vCont packet doesn't need to specify threads via Hc. */
3815 if (remote_vcont_resume (ptid, step, siggnal))
75c99385 3816 goto done;
506fb367 3817
79d7f229
PA
3818 /* All other supported resume packets do use Hc, so set the continue
3819 thread. */
3820 if (ptid_equal (ptid, minus_one_ptid))
3821 set_continue_thread (any_thread_ptid);
506fb367 3822 else
79d7f229 3823 set_continue_thread (ptid);
506fb367 3824
2e9f7625 3825 buf = rs->buf;
b2175913
MS
3826 if (execution_direction == EXEC_REVERSE)
3827 {
3828 /* We don't pass signals to the target in reverse exec mode. */
3829 if (info_verbose && siggnal != TARGET_SIGNAL_0)
3830 warning (" - Can't pass signal %d to target in reverse: ignored.\n",
3831 siggnal);
3832 strcpy (buf, step ? "bs" : "bc");
3833 }
3834 else if (siggnal != TARGET_SIGNAL_0)
43ff13b4
JM
3835 {
3836 buf[0] = step ? 'S' : 'C';
c5aa993b 3837 buf[1] = tohex (((int) siggnal >> 4) & 0xf);
506fb367 3838 buf[2] = tohex (((int) siggnal) & 0xf);
43ff13b4
JM
3839 buf[3] = '\0';
3840 }
3841 else
c5aa993b 3842 strcpy (buf, step ? "s" : "c");
506fb367 3843
44eaed12 3844 putpkt (buf);
43ff13b4 3845
75c99385 3846 done:
2acceee2
JM
3847 /* We are about to start executing the inferior, let's register it
3848 with the event loop. NOTE: this is the one place where all the
3849 execution commands end up. We could alternatively do this in each
23860348 3850 of the execution commands in infcmd.c. */
2acceee2
JM
3851 /* FIXME: ezannoni 1999-09-28: We may need to move this out of here
3852 into infcmd.c in order to allow inferior function calls to work
23860348 3853 NOT asynchronously. */
362646f5 3854 if (target_can_async_p ())
2acceee2 3855 target_async (inferior_event_handler, 0);
e24a49d8
PA
3856
3857 /* We've just told the target to resume. The remote server will
3858 wait for the inferior to stop, and then send a stop reply. In
3859 the mean time, we can't start another command/query ourselves
74531fed
PA
3860 because the stub wouldn't be ready to process it. This applies
3861 only to the base all-stop protocol, however. In non-stop (which
3862 only supports vCont), the stub replies with an "OK", and is
3863 immediate able to process further serial input. */
3864 if (!non_stop)
3865 rs->waiting_for_stop_reply = 1;
43ff13b4 3866}
c906108c 3867\f
43ff13b4
JM
3868
3869/* Set up the signal handler for SIGINT, while the target is
23860348 3870 executing, ovewriting the 'regular' SIGINT signal handler. */
43ff13b4 3871static void
fba45db2 3872initialize_sigint_signal_handler (void)
43ff13b4 3873{
43ff13b4
JM
3874 signal (SIGINT, handle_remote_sigint);
3875}
3876
23860348 3877/* Signal handler for SIGINT, while the target is executing. */
43ff13b4 3878static void
fba45db2 3879handle_remote_sigint (int sig)
43ff13b4
JM
3880{
3881 signal (sig, handle_remote_sigint_twice);
43ff13b4
JM
3882 mark_async_signal_handler_wrapper (sigint_remote_token);
3883}
3884
3885/* Signal handler for SIGINT, installed after SIGINT has already been
3886 sent once. It will take effect the second time that the user sends
23860348 3887 a ^C. */
43ff13b4 3888static void
fba45db2 3889handle_remote_sigint_twice (int sig)
43ff13b4 3890{
b803fb0f 3891 signal (sig, handle_remote_sigint);
43ff13b4
JM
3892 mark_async_signal_handler_wrapper (sigint_remote_twice_token);
3893}
3894
6426a772 3895/* Perform the real interruption of the target execution, in response
23860348 3896 to a ^C. */
c5aa993b 3897static void
fba45db2 3898async_remote_interrupt (gdb_client_data arg)
43ff13b4
JM
3899{
3900 if (remote_debug)
3901 fprintf_unfiltered (gdb_stdlog, "remote_interrupt called\n");
3902
94cc34af 3903 target_stop (inferior_ptid);
43ff13b4
JM
3904}
3905
3906/* Perform interrupt, if the first attempt did not succeed. Just give
23860348 3907 up on the target alltogether. */
2df3850c 3908void
fba45db2 3909async_remote_interrupt_twice (gdb_client_data arg)
43ff13b4 3910{
2df3850c
JM
3911 if (remote_debug)
3912 fprintf_unfiltered (gdb_stdlog, "remote_interrupt_twice called\n");
b803fb0f
DJ
3913
3914 interrupt_query ();
43ff13b4
JM
3915}
3916
3917/* Reinstall the usual SIGINT handlers, after the target has
23860348 3918 stopped. */
6426a772
JM
3919static void
3920cleanup_sigint_signal_handler (void *dummy)
43ff13b4
JM
3921{
3922 signal (SIGINT, handle_sigint);
43ff13b4
JM
3923}
3924
c906108c
SS
3925/* Send ^C to target to halt it. Target will respond, and send us a
3926 packet. */
507f3c78 3927static void (*ofunc) (int);
c906108c 3928
7a292a7a
SS
3929/* The command line interface's stop routine. This function is installed
3930 as a signal handler for SIGINT. The first time a user requests a
3931 stop, we call remote_stop to send a break or ^C. If there is no
3932 response from the target (it didn't stop when the user requested it),
23860348 3933 we ask the user if he'd like to detach from the target. */
c906108c 3934static void
fba45db2 3935remote_interrupt (int signo)
c906108c 3936{
23860348 3937 /* If this doesn't work, try more severe steps. */
7a292a7a
SS
3938 signal (signo, remote_interrupt_twice);
3939
b803fb0f 3940 gdb_call_async_signal_handler (sigint_remote_token, 1);
7a292a7a
SS
3941}
3942
3943/* The user typed ^C twice. */
3944
3945static void
fba45db2 3946remote_interrupt_twice (int signo)
7a292a7a
SS
3947{
3948 signal (signo, ofunc);
b803fb0f 3949 gdb_call_async_signal_handler (sigint_remote_twice_token, 1);
c906108c
SS
3950 signal (signo, remote_interrupt);
3951}
7a292a7a 3952
74531fed
PA
3953/* Non-stop version of target_stop. Uses `vCont;t' to stop a remote
3954 thread, all threads of a remote process, or all threads of all
3955 processes. */
3956
3957static void
3958remote_stop_ns (ptid_t ptid)
3959{
3960 struct remote_state *rs = get_remote_state ();
3961 char *p = rs->buf;
3962 char *endp = rs->buf + get_remote_packet_size ();
3963 struct stop_reply *reply, *next;
3964
3965 if (remote_protocol_packets[PACKET_vCont].support == PACKET_SUPPORT_UNKNOWN)
3966 remote_vcont_probe (rs);
3967
3968 if (!rs->support_vCont_t)
3969 error (_("Remote server does not support stopping threads"));
3970
f91d3df5
PA
3971 if (ptid_equal (ptid, minus_one_ptid)
3972 || (!remote_multi_process_p (rs) && ptid_is_pid (ptid)))
74531fed
PA
3973 p += xsnprintf (p, endp - p, "vCont;t");
3974 else
3975 {
3976 ptid_t nptid;
3977
74531fed
PA
3978 p += xsnprintf (p, endp - p, "vCont;t:");
3979
3980 if (ptid_is_pid (ptid))
3981 /* All (-1) threads of process. */
3982 nptid = ptid_build (ptid_get_pid (ptid), 0, -1);
3983 else
3984 {
3985 /* Small optimization: if we already have a stop reply for
3986 this thread, no use in telling the stub we want this
3987 stopped. */
3988 if (peek_stop_reply (ptid))
3989 return;
3990
3991 nptid = ptid;
3992 }
3993
3994 p = write_ptid (p, endp, nptid);
3995 }
3996
3997 /* In non-stop, we get an immediate OK reply. The stop reply will
3998 come in asynchronously by notification. */
3999 putpkt (rs->buf);
4000 getpkt (&rs->buf, &rs->buf_size, 0);
4001 if (strcmp (rs->buf, "OK") != 0)
4002 error (_("Stopping %s failed: %s"), target_pid_to_str (ptid), rs->buf);
4003}
4004
4005/* All-stop version of target_stop. Sends a break or a ^C to stop the
4006 remote target. It is undefined which thread of which process
4007 reports the stop. */
4008
4009static void
4010remote_stop_as (ptid_t ptid)
4011{
4012 struct remote_state *rs = get_remote_state ();
4013
4014 /* If the inferior is stopped already, but the core didn't know
4015 about it yet, just ignore the request. The cached wait status
4016 will be collected in remote_wait. */
4017 if (rs->cached_wait_status)
4018 return;
4019
4020 /* Send a break or a ^C, depending on user preference. */
4021
4022 if (remote_break)
4023 serial_send_break (remote_desc);
4024 else
4025 serial_write (remote_desc, "\003", 1);
4026}
4027
7a292a7a
SS
4028/* This is the generic stop called via the target vector. When a target
4029 interrupt is requested, either by the command line or the GUI, we
23860348 4030 will eventually end up here. */
74531fed 4031
c906108c 4032static void
94cc34af 4033remote_stop (ptid_t ptid)
c906108c 4034{
7a292a7a 4035 if (remote_debug)
0f71a2f6 4036 fprintf_unfiltered (gdb_stdlog, "remote_stop called\n");
c906108c 4037
74531fed
PA
4038 if (non_stop)
4039 remote_stop_ns (ptid);
c906108c 4040 else
74531fed 4041 remote_stop_as (ptid);
c906108c
SS
4042}
4043
4044/* Ask the user what to do when an interrupt is received. */
4045
4046static void
fba45db2 4047interrupt_query (void)
c906108c
SS
4048{
4049 target_terminal_ours ();
4050
74531fed 4051 if (target_can_async_p ())
c906108c 4052 {
74531fed 4053 signal (SIGINT, handle_sigint);
315a522e 4054 deprecated_throw_reason (RETURN_QUIT);
c906108c 4055 }
74531fed
PA
4056 else
4057 {
9e2f0ad4
HZ
4058 if (query (_("Interrupted while waiting for the program.\n\
4059Give up (and stop debugging it)? ")))
74531fed
PA
4060 {
4061 pop_target ();
4062 deprecated_throw_reason (RETURN_QUIT);
4063 }
4064 }
c906108c
SS
4065
4066 target_terminal_inferior ();
4067}
4068
6426a772
JM
4069/* Enable/disable target terminal ownership. Most targets can use
4070 terminal groups to control terminal ownership. Remote targets are
4071 different in that explicit transfer of ownership to/from GDB/target
23860348 4072 is required. */
6426a772
JM
4073
4074static void
75c99385 4075remote_terminal_inferior (void)
6426a772 4076{
c6ebd6cf 4077 if (!target_async_permitted)
75c99385
PA
4078 /* Nothing to do. */
4079 return;
4080
d9d2d8b6
PA
4081 /* FIXME: cagney/1999-09-27: Make calls to target_terminal_*()
4082 idempotent. The event-loop GDB talking to an asynchronous target
4083 with a synchronous command calls this function from both
4084 event-top.c and infrun.c/infcmd.c. Once GDB stops trying to
4085 transfer the terminal to the target when it shouldn't this guard
4086 can go away. */
6426a772
JM
4087 if (!remote_async_terminal_ours_p)
4088 return;
4089 delete_file_handler (input_fd);
4090 remote_async_terminal_ours_p = 0;
4091 initialize_sigint_signal_handler ();
4092 /* NOTE: At this point we could also register our selves as the
4093 recipient of all input. Any characters typed could then be
23860348 4094 passed on down to the target. */
6426a772
JM
4095}
4096
4097static void
75c99385 4098remote_terminal_ours (void)
6426a772 4099{
c6ebd6cf 4100 if (!target_async_permitted)
75c99385
PA
4101 /* Nothing to do. */
4102 return;
4103
4104 /* See FIXME in remote_terminal_inferior. */
6426a772
JM
4105 if (remote_async_terminal_ours_p)
4106 return;
4107 cleanup_sigint_signal_handler (NULL);
4108 add_file_handler (input_fd, stdin_event_handler, 0);
4109 remote_async_terminal_ours_p = 1;
4110}
4111
c906108c 4112void
917317f4 4113remote_console_output (char *msg)
c906108c
SS
4114{
4115 char *p;
4116
c5aa993b 4117 for (p = msg; p[0] && p[1]; p += 2)
c906108c
SS
4118 {
4119 char tb[2];
4120 char c = fromhex (p[0]) * 16 + fromhex (p[1]);
4121 tb[0] = c;
4122 tb[1] = 0;
43ff13b4 4123 fputs_unfiltered (tb, gdb_stdtarg);
c906108c 4124 }
74531fed
PA
4125 gdb_flush (gdb_stdtarg);
4126 }
4127
4128typedef struct cached_reg
4129{
4130 int num;
4131 gdb_byte data[MAX_REGISTER_SIZE];
4132} cached_reg_t;
4133
4134DEF_VEC_O(cached_reg_t);
4135
4136struct stop_reply
4137{
4138 struct stop_reply *next;
4139
4140 ptid_t ptid;
4141
4142 struct target_waitstatus ws;
4143
4144 VEC(cached_reg_t) *regcache;
4145
4146 int stopped_by_watchpoint_p;
4147 CORE_ADDR watch_data_address;
4148
4149 int solibs_changed;
4150 int replay_event;
4151};
4152
4153/* The list of already fetched and acknowledged stop events. */
4154static struct stop_reply *stop_reply_queue;
4155
4156static struct stop_reply *
4157stop_reply_xmalloc (void)
4158{
4159 struct stop_reply *r = XMALLOC (struct stop_reply);
4160 r->next = NULL;
4161 return r;
4162}
4163
4164static void
4165stop_reply_xfree (struct stop_reply *r)
4166{
4167 if (r != NULL)
4168 {
4169 VEC_free (cached_reg_t, r->regcache);
4170 xfree (r);
4171 }
c906108c
SS
4172}
4173
74531fed
PA
4174/* Discard all pending stop replies of inferior PID. If PID is -1,
4175 discard everything. */
c906108c 4176
74531fed
PA
4177static void
4178discard_pending_stop_replies (int pid)
c906108c 4179{
74531fed 4180 struct stop_reply *prev = NULL, *reply, *next;
c906108c 4181
74531fed
PA
4182 /* Discard the in-flight notification. */
4183 if (pending_stop_reply != NULL
4184 && (pid == -1
4185 || ptid_get_pid (pending_stop_reply->ptid) == pid))
4186 {
4187 stop_reply_xfree (pending_stop_reply);
4188 pending_stop_reply = NULL;
4189 }
c906108c 4190
74531fed
PA
4191 /* Discard the stop replies we have already pulled with
4192 vStopped. */
4193 for (reply = stop_reply_queue; reply; reply = next)
43ff13b4 4194 {
74531fed
PA
4195 next = reply->next;
4196 if (pid == -1
4197 || ptid_get_pid (reply->ptid) == pid)
9fa2223d 4198 {
74531fed
PA
4199 if (reply == stop_reply_queue)
4200 stop_reply_queue = reply->next;
4201 else
4202 prev->next = reply->next;
4203
4204 stop_reply_xfree (reply);
9fa2223d 4205 }
74531fed
PA
4206 else
4207 prev = reply;
c8e38a49 4208 }
74531fed 4209}
43ff13b4 4210
74531fed 4211/* Cleanup wrapper. */
2e9f7625 4212
74531fed
PA
4213static void
4214do_stop_reply_xfree (void *arg)
4215{
4216 struct stop_reply *r = arg;
4217 stop_reply_xfree (r);
4218}
75c99385 4219
74531fed
PA
4220/* Look for a queued stop reply belonging to PTID. If one is found,
4221 remove it from the queue, and return it. Returns NULL if none is
4222 found. If there are still queued events left to process, tell the
4223 event loop to get back to target_wait soon. */
e24a49d8 4224
74531fed
PA
4225static struct stop_reply *
4226queued_stop_reply (ptid_t ptid)
4227{
4228 struct stop_reply *it, *prev;
4229 struct stop_reply head;
4230
4231 head.next = stop_reply_queue;
4232 prev = &head;
4233
4234 it = head.next;
4235
4236 if (!ptid_equal (ptid, minus_one_ptid))
4237 for (; it; prev = it, it = it->next)
4238 if (ptid_equal (ptid, it->ptid))
4239 break;
4240
4241 if (it)
c8e38a49 4242 {
74531fed
PA
4243 prev->next = it->next;
4244 it->next = NULL;
4245 }
e24a49d8 4246
74531fed
PA
4247 stop_reply_queue = head.next;
4248
4249 if (stop_reply_queue)
4250 /* There's still at least an event left. */
4251 mark_async_event_handler (remote_async_inferior_event_token);
4252
4253 return it;
4254}
4255
4256/* Push a fully parsed stop reply in the stop reply queue. Since we
4257 know that we now have at least one queued event left to pass to the
4258 core side, tell the event loop to get back to target_wait soon. */
4259
4260static void
4261push_stop_reply (struct stop_reply *new_event)
4262{
4263 struct stop_reply *event;
4264
4265 if (stop_reply_queue)
4266 {
4267 for (event = stop_reply_queue;
4268 event && event->next;
4269 event = event->next)
4270 ;
4271
4272 event->next = new_event;
4273 }
4274 else
4275 stop_reply_queue = new_event;
4276
4277 mark_async_event_handler (remote_async_inferior_event_token);
4278}
4279
4280/* Returns true if we have a stop reply for PTID. */
4281
4282static int
4283peek_stop_reply (ptid_t ptid)
4284{
4285 struct stop_reply *it;
4286
4287 for (it = stop_reply_queue; it; it = it->next)
4288 if (ptid_equal (ptid, it->ptid))
4289 {
4290 if (it->ws.kind == TARGET_WAITKIND_STOPPED)
4291 return 1;
4292 }
4293
4294 return 0;
4295}
4296
4297/* Parse the stop reply in BUF. Either the function succeeds, and the
4298 result is stored in EVENT, or throws an error. */
4299
4300static void
4301remote_parse_stop_reply (char *buf, struct stop_reply *event)
4302{
4303 struct remote_arch_state *rsa = get_remote_arch_state ();
4304 ULONGEST addr;
4305 char *p;
4306
4307 event->ptid = null_ptid;
4308 event->ws.kind = TARGET_WAITKIND_IGNORE;
4309 event->ws.value.integer = 0;
4310 event->solibs_changed = 0;
4311 event->replay_event = 0;
4312 event->stopped_by_watchpoint_p = 0;
4313 event->regcache = NULL;
4314
4315 switch (buf[0])
4316 {
4317 case 'T': /* Status with PC, SP, FP, ... */
c8e38a49
PA
4318 {
4319 gdb_byte regs[MAX_REGISTER_SIZE];
43ff13b4 4320
c8e38a49
PA
4321 /* Expedited reply, containing Signal, {regno, reg} repeat. */
4322 /* format is: 'Tssn...:r...;n...:r...;n...:r...;#cc', where
74531fed
PA
4323 ss = signal number
4324 n... = register number
4325 r... = register contents
c8e38a49 4326 */
43ff13b4 4327
74531fed 4328 p = &buf[3]; /* after Txx */
c8e38a49
PA
4329 while (*p)
4330 {
4331 char *p1;
4332 char *p_temp;
4333 int fieldsize;
4334 LONGEST pnum = 0;
43ff13b4 4335
c8e38a49
PA
4336 /* If the packet contains a register number, save it in
4337 pnum and set p1 to point to the character following it.
4338 Otherwise p1 points to p. */
3c3bea1c 4339
74531fed
PA
4340 /* If this packet is an awatch packet, don't parse the 'a'
4341 as a register number. */
c8e38a49
PA
4342
4343 if (strncmp (p, "awatch", strlen("awatch")) != 0)
4344 {
4345 /* Read the ``P'' register number. */
4346 pnum = strtol (p, &p_temp, 16);
4347 p1 = p_temp;
4348 }
4349 else
4350 p1 = p;
802188a7 4351
c8e38a49
PA
4352 if (p1 == p) /* No register number present here. */
4353 {
4354 p1 = strchr (p, ':');
4355 if (p1 == NULL)
4356 error (_("Malformed packet(a) (missing colon): %s\n\
4357Packet: '%s'\n"),
4358 p, buf);
4359 if (strncmp (p, "thread", p1 - p) == 0)
74531fed 4360 event->ptid = read_ptid (++p1, &p);
c8e38a49
PA
4361 else if ((strncmp (p, "watch", p1 - p) == 0)
4362 || (strncmp (p, "rwatch", p1 - p) == 0)
4363 || (strncmp (p, "awatch", p1 - p) == 0))
3c3bea1c 4364 {
74531fed 4365 event->stopped_by_watchpoint_p = 1;
c8e38a49 4366 p = unpack_varlen_hex (++p1, &addr);
74531fed 4367 event->watch_data_address = (CORE_ADDR) addr;
3c3bea1c 4368 }
c8e38a49 4369 else if (strncmp (p, "library", p1 - p) == 0)
43ff13b4 4370 {
c8e38a49
PA
4371 p1++;
4372 p_temp = p1;
4373 while (*p_temp && *p_temp != ';')
4374 p_temp++;
4375
74531fed 4376 event->solibs_changed = 1;
c8e38a49 4377 p = p_temp;
43ff13b4 4378 }
b2175913
MS
4379 else if (strncmp (p, "replaylog", p1 - p) == 0)
4380 {
4381 /* NO_HISTORY event.
4382 p1 will indicate "begin" or "end", but
4383 it makes no difference for now, so ignore it. */
74531fed 4384 event->replay_event = 1;
b2175913
MS
4385 p_temp = strchr (p1 + 1, ';');
4386 if (p_temp)
4387 p = p_temp;
4388 }
43ff13b4
JM
4389 else
4390 {
c8e38a49
PA
4391 /* Silently skip unknown optional info. */
4392 p_temp = strchr (p1 + 1, ';');
4393 if (p_temp)
4394 p = p_temp;
4395 }
4396 }
4397 else
4398 {
4399 struct packet_reg *reg = packet_reg_from_pnum (rsa, pnum);
74531fed
PA
4400 cached_reg_t cached_reg;
4401
c8e38a49 4402 p = p1;
75c99385 4403
c8e38a49
PA
4404 if (*p != ':')
4405 error (_("Malformed packet(b) (missing colon): %s\n\
8a3fe4f8 4406Packet: '%s'\n"),
c8e38a49
PA
4407 p, buf);
4408 ++p;
43ff13b4 4409
c8e38a49
PA
4410 if (reg == NULL)
4411 error (_("Remote sent bad register number %s: %s\n\
8a3fe4f8 4412Packet: '%s'\n"),
c8e38a49
PA
4413 phex_nz (pnum, 0), p, buf);
4414
4100683b
JK
4415 cached_reg.num = reg->regnum;
4416
74531fed 4417 fieldsize = hex2bin (p, cached_reg.data,
c8e38a49
PA
4418 register_size (target_gdbarch,
4419 reg->regnum));
4420 p += 2 * fieldsize;
4421 if (fieldsize < register_size (target_gdbarch,
4422 reg->regnum))
4423 warning (_("Remote reply is too short: %s"), buf);
74531fed
PA
4424
4425 VEC_safe_push (cached_reg_t, event->regcache, &cached_reg);
43ff13b4 4426 }
c8e38a49
PA
4427
4428 if (*p != ';')
4429 error (_("Remote register badly formatted: %s\nhere: %s"),
4430 buf, p);
4431 ++p;
43ff13b4 4432 }
c8e38a49
PA
4433 }
4434 /* fall through */
4435 case 'S': /* Old style status, just signal only. */
74531fed
PA
4436 if (event->solibs_changed)
4437 event->ws.kind = TARGET_WAITKIND_LOADED;
4438 else if (event->replay_event)
4439 event->ws.kind = TARGET_WAITKIND_NO_HISTORY;
c8e38a49
PA
4440 else
4441 {
74531fed
PA
4442 event->ws.kind = TARGET_WAITKIND_STOPPED;
4443 event->ws.value.sig = (enum target_signal)
c8e38a49
PA
4444 (((fromhex (buf[1])) << 4) + (fromhex (buf[2])));
4445 }
4446 break;
4447 case 'W': /* Target exited. */
4448 case 'X':
4449 {
4450 char *p;
4451 int pid;
4452 ULONGEST value;
82f73884 4453
c8e38a49
PA
4454 /* GDB used to accept only 2 hex chars here. Stubs should
4455 only send more if they detect GDB supports multi-process
4456 support. */
4457 p = unpack_varlen_hex (&buf[1], &value);
82f73884 4458
c8e38a49
PA
4459 if (buf[0] == 'W')
4460 {
4461 /* The remote process exited. */
74531fed
PA
4462 event->ws.kind = TARGET_WAITKIND_EXITED;
4463 event->ws.value.integer = value;
c8e38a49
PA
4464 }
4465 else
4466 {
4467 /* The remote process exited with a signal. */
74531fed
PA
4468 event->ws.kind = TARGET_WAITKIND_SIGNALLED;
4469 event->ws.value.sig = (enum target_signal) value;
c8e38a49 4470 }
82f73884 4471
c8e38a49
PA
4472 /* If no process is specified, assume inferior_ptid. */
4473 pid = ptid_get_pid (inferior_ptid);
4474 if (*p == '\0')
4475 ;
4476 else if (*p == ';')
4477 {
4478 p++;
4479
4480 if (p == '\0')
82f73884 4481 ;
c8e38a49
PA
4482 else if (strncmp (p,
4483 "process:", sizeof ("process:") - 1) == 0)
82f73884 4484 {
c8e38a49
PA
4485 ULONGEST upid;
4486 p += sizeof ("process:") - 1;
4487 unpack_varlen_hex (p, &upid);
4488 pid = upid;
82f73884
PA
4489 }
4490 else
4491 error (_("unknown stop reply packet: %s"), buf);
43ff13b4 4492 }
c8e38a49
PA
4493 else
4494 error (_("unknown stop reply packet: %s"), buf);
74531fed
PA
4495 event->ptid = pid_to_ptid (pid);
4496 }
4497 break;
4498 }
4499
4500 if (non_stop && ptid_equal (event->ptid, null_ptid))
4501 error (_("No process or thread specified in stop reply: %s"), buf);
4502}
4503
4504/* When the stub wants to tell GDB about a new stop reply, it sends a
4505 stop notification (%Stop). Those can come it at any time, hence,
4506 we have to make sure that any pending putpkt/getpkt sequence we're
4507 making is finished, before querying the stub for more events with
4508 vStopped. E.g., if we started a vStopped sequence immediatelly
4509 upon receiving the %Stop notification, something like this could
4510 happen:
4511
4512 1.1) --> Hg 1
4513 1.2) <-- OK
4514 1.3) --> g
4515 1.4) <-- %Stop
4516 1.5) --> vStopped
4517 1.6) <-- (registers reply to step #1.3)
4518
4519 Obviously, the reply in step #1.6 would be unexpected to a vStopped
4520 query.
4521
4522 To solve this, whenever we parse a %Stop notification sucessfully,
4523 we mark the REMOTE_ASYNC_GET_PENDING_EVENTS_TOKEN, and carry on
4524 doing whatever we were doing:
4525
4526 2.1) --> Hg 1
4527 2.2) <-- OK
4528 2.3) --> g
4529 2.4) <-- %Stop
4530 <GDB marks the REMOTE_ASYNC_GET_PENDING_EVENTS_TOKEN>
4531 2.5) <-- (registers reply to step #2.3)
4532
4533 Eventualy after step #2.5, we return to the event loop, which
4534 notices there's an event on the
4535 REMOTE_ASYNC_GET_PENDING_EVENTS_TOKEN event and calls the
4536 associated callback --- the function below. At this point, we're
4537 always safe to start a vStopped sequence. :
4538
4539 2.6) --> vStopped
4540 2.7) <-- T05 thread:2
4541 2.8) --> vStopped
4542 2.9) --> OK
4543*/
4544
4545static void
4546remote_get_pending_stop_replies (void)
4547{
4548 struct remote_state *rs = get_remote_state ();
4549 int ret;
4550
4551 if (pending_stop_reply)
4552 {
4553 /* acknowledge */
4554 putpkt ("vStopped");
4555
4556 /* Now we can rely on it. */
4557 push_stop_reply (pending_stop_reply);
4558 pending_stop_reply = NULL;
4559
4560 while (1)
4561 {
4562 getpkt (&rs->buf, &rs->buf_size, 0);
4563 if (strcmp (rs->buf, "OK") == 0)
4564 break;
4565 else
4566 {
4567 struct cleanup *old_chain;
4568 struct stop_reply *stop_reply = stop_reply_xmalloc ();
4569
4570 old_chain = make_cleanup (do_stop_reply_xfree, stop_reply);
4571 remote_parse_stop_reply (rs->buf, stop_reply);
4572
4573 /* acknowledge */
4574 putpkt ("vStopped");
4575
4576 if (stop_reply->ws.kind != TARGET_WAITKIND_IGNORE)
4577 {
4578 /* Now we can rely on it. */
4579 discard_cleanups (old_chain);
4580 push_stop_reply (stop_reply);
4581 }
4582 else
4583 /* We got an unknown stop reply. */
4584 do_cleanups (old_chain);
4585 }
4586 }
4587 }
4588}
4589
4590
4591/* Called when it is decided that STOP_REPLY holds the info of the
4592 event that is to be returned to the core. This function always
4593 destroys STOP_REPLY. */
4594
4595static ptid_t
4596process_stop_reply (struct stop_reply *stop_reply,
4597 struct target_waitstatus *status)
4598{
4599 ptid_t ptid;
4600
4601 *status = stop_reply->ws;
4602 ptid = stop_reply->ptid;
4603
4604 /* If no thread/process was reported by the stub, assume the current
4605 inferior. */
4606 if (ptid_equal (ptid, null_ptid))
4607 ptid = inferior_ptid;
4608
5f3563ea
PA
4609 if (status->kind != TARGET_WAITKIND_EXITED
4610 && status->kind != TARGET_WAITKIND_SIGNALLED)
74531fed 4611 {
5f3563ea
PA
4612 /* Expedited registers. */
4613 if (stop_reply->regcache)
4614 {
4615 cached_reg_t *reg;
4616 int ix;
4617
4618 for (ix = 0;
4619 VEC_iterate(cached_reg_t, stop_reply->regcache, ix, reg);
4620 ix++)
4621 regcache_raw_supply (get_thread_regcache (ptid),
4622 reg->num, reg->data);
4623 VEC_free (cached_reg_t, stop_reply->regcache);
4624 }
74531fed 4625
5f3563ea
PA
4626 remote_stopped_by_watchpoint_p = stop_reply->stopped_by_watchpoint_p;
4627 remote_watch_data_address = stop_reply->watch_data_address;
1941c569
PA
4628
4629 remote_notice_new_inferior (ptid, 0);
74531fed
PA
4630 }
4631
74531fed
PA
4632 stop_reply_xfree (stop_reply);
4633 return ptid;
4634}
4635
4636/* The non-stop mode version of target_wait. */
4637
4638static ptid_t
47608cb1 4639remote_wait_ns (ptid_t ptid, struct target_waitstatus *status, int options)
74531fed
PA
4640{
4641 struct remote_state *rs = get_remote_state ();
4642 struct remote_arch_state *rsa = get_remote_arch_state ();
4643 ptid_t event_ptid = null_ptid;
4644 struct stop_reply *stop_reply;
4645 int ret;
4646
4647 /* If in non-stop mode, get out of getpkt even if a
4648 notification is received. */
4649
4650 ret = getpkt_or_notif_sane (&rs->buf, &rs->buf_size,
4651 0 /* forever */);
4652 while (1)
4653 {
4654 if (ret != -1)
4655 switch (rs->buf[0])
4656 {
4657 case 'E': /* Error of some sort. */
4658 /* We're out of sync with the target now. Did it continue
4659 or not? We can't tell which thread it was in non-stop,
4660 so just ignore this. */
4661 warning (_("Remote failure reply: %s"), rs->buf);
4662 break;
4663 case 'O': /* Console output. */
4664 remote_console_output (rs->buf + 1);
4665 break;
4666 default:
4667 warning (_("Invalid remote reply: %s"), rs->buf);
4668 break;
4669 }
4670
4671 /* Acknowledge a pending stop reply that may have arrived in the
4672 mean time. */
4673 if (pending_stop_reply != NULL)
4674 remote_get_pending_stop_replies ();
4675
4676 /* If indeed we noticed a stop reply, we're done. */
4677 stop_reply = queued_stop_reply (ptid);
4678 if (stop_reply != NULL)
4679 return process_stop_reply (stop_reply, status);
4680
47608cb1 4681 /* Still no event. If we're just polling for an event, then
74531fed 4682 return to the event loop. */
47608cb1 4683 if (options & TARGET_WNOHANG)
74531fed
PA
4684 {
4685 status->kind = TARGET_WAITKIND_IGNORE;
4686 return minus_one_ptid;
4687 }
4688
47608cb1 4689 /* Otherwise do a blocking wait. */
74531fed
PA
4690 ret = getpkt_or_notif_sane (&rs->buf, &rs->buf_size,
4691 1 /* forever */);
4692 }
4693}
4694
4695/* Wait until the remote machine stops, then return, storing status in
4696 STATUS just as `wait' would. */
4697
4698static ptid_t
47608cb1 4699remote_wait_as (ptid_t ptid, struct target_waitstatus *status, int options)
74531fed
PA
4700{
4701 struct remote_state *rs = get_remote_state ();
4702 struct remote_arch_state *rsa = get_remote_arch_state ();
4703 ptid_t event_ptid = null_ptid;
4704 ULONGEST addr;
4705 int solibs_changed = 0;
4706 char *buf, *p;
4707 struct stop_reply *stop_reply;
4708
47608cb1
PA
4709 again:
4710
74531fed
PA
4711 status->kind = TARGET_WAITKIND_IGNORE;
4712 status->value.integer = 0;
4713
4714 stop_reply = queued_stop_reply (ptid);
4715 if (stop_reply != NULL)
4716 return process_stop_reply (stop_reply, status);
4717
4718 if (rs->cached_wait_status)
4719 /* Use the cached wait status, but only once. */
4720 rs->cached_wait_status = 0;
4721 else
4722 {
4723 int ret;
4724
4725 if (!target_is_async_p ())
4726 {
4727 ofunc = signal (SIGINT, remote_interrupt);
4728 /* If the user hit C-c before this packet, or between packets,
4729 pretend that it was hit right here. */
4730 if (quit_flag)
4731 {
4732 quit_flag = 0;
4733 remote_interrupt (SIGINT);
4734 }
4735 }
4736
4737 /* FIXME: cagney/1999-09-27: If we're in async mode we should
4738 _never_ wait for ever -> test on target_is_async_p().
4739 However, before we do that we need to ensure that the caller
4740 knows how to take the target into/out of async mode. */
4741 ret = getpkt_sane (&rs->buf, &rs->buf_size, wait_forever_enabled_p);
4742 if (!target_is_async_p ())
4743 signal (SIGINT, ofunc);
4744 }
4745
4746 buf = rs->buf;
4747
4748 remote_stopped_by_watchpoint_p = 0;
4749
4750 /* We got something. */
4751 rs->waiting_for_stop_reply = 0;
4752
4753 switch (buf[0])
4754 {
4755 case 'E': /* Error of some sort. */
4756 /* We're out of sync with the target now. Did it continue or
4757 not? Not is more likely, so report a stop. */
4758 warning (_("Remote failure reply: %s"), buf);
4759 status->kind = TARGET_WAITKIND_STOPPED;
4760 status->value.sig = TARGET_SIGNAL_0;
4761 break;
4762 case 'F': /* File-I/O request. */
4763 remote_fileio_request (buf);
4764 break;
4765 case 'T': case 'S': case 'X': case 'W':
4766 {
4767 struct stop_reply *stop_reply;
4768 struct cleanup *old_chain;
4769
4770 stop_reply = stop_reply_xmalloc ();
4771 old_chain = make_cleanup (do_stop_reply_xfree, stop_reply);
4772 remote_parse_stop_reply (buf, stop_reply);
4773 discard_cleanups (old_chain);
4774 event_ptid = process_stop_reply (stop_reply, status);
c8e38a49
PA
4775 break;
4776 }
4777 case 'O': /* Console output. */
4778 remote_console_output (buf + 1);
e24a49d8 4779
c8e38a49
PA
4780 /* The target didn't really stop; keep waiting. */
4781 rs->waiting_for_stop_reply = 1;
e24a49d8 4782
c8e38a49
PA
4783 break;
4784 case '\0':
4785 if (last_sent_signal != TARGET_SIGNAL_0)
4786 {
4787 /* Zero length reply means that we tried 'S' or 'C' and the
4788 remote system doesn't support it. */
4789 target_terminal_ours_for_output ();
4790 printf_filtered
4791 ("Can't send signals to this remote system. %s not sent.\n",
4792 target_signal_to_name (last_sent_signal));
4793 last_sent_signal = TARGET_SIGNAL_0;
4794 target_terminal_inferior ();
4795
4796 strcpy ((char *) buf, last_sent_step ? "s" : "c");
4797 putpkt ((char *) buf);
4798
4799 /* We just told the target to resume, so a stop reply is in
4800 order. */
e24a49d8 4801 rs->waiting_for_stop_reply = 1;
c8e38a49 4802 break;
43ff13b4 4803 }
c8e38a49
PA
4804 /* else fallthrough */
4805 default:
4806 warning (_("Invalid remote reply: %s"), buf);
4807 /* Keep waiting. */
4808 rs->waiting_for_stop_reply = 1;
4809 break;
43ff13b4 4810 }
c8e38a49 4811
c8e38a49 4812 if (status->kind == TARGET_WAITKIND_IGNORE)
47608cb1
PA
4813 {
4814 /* Nothing interesting happened. If we're doing a non-blocking
4815 poll, we're done. Otherwise, go back to waiting. */
4816 if (options & TARGET_WNOHANG)
4817 return minus_one_ptid;
4818 else
4819 goto again;
4820 }
74531fed
PA
4821 else if (status->kind != TARGET_WAITKIND_EXITED
4822 && status->kind != TARGET_WAITKIND_SIGNALLED)
82f73884
PA
4823 {
4824 if (!ptid_equal (event_ptid, null_ptid))
4825 record_currthread (event_ptid);
4826 else
4827 event_ptid = inferior_ptid;
43ff13b4 4828 }
74531fed
PA
4829 else
4830 /* A process exit. Invalidate our notion of current thread. */
4831 record_currthread (minus_one_ptid);
79d7f229 4832
82f73884 4833 return event_ptid;
43ff13b4
JM
4834}
4835
74531fed
PA
4836/* Wait until the remote machine stops, then return, storing status in
4837 STATUS just as `wait' would. */
4838
c8e38a49 4839static ptid_t
117de6a9 4840remote_wait (struct target_ops *ops,
47608cb1 4841 ptid_t ptid, struct target_waitstatus *status, int options)
c8e38a49
PA
4842{
4843 ptid_t event_ptid;
4844
74531fed 4845 if (non_stop)
47608cb1 4846 event_ptid = remote_wait_ns (ptid, status, options);
74531fed 4847 else
47608cb1 4848 event_ptid = remote_wait_as (ptid, status, options);
c8e38a49 4849
74531fed 4850 if (target_can_async_p ())
c8e38a49 4851 {
74531fed
PA
4852 /* If there are are events left in the queue tell the event loop
4853 to return here. */
4854 if (stop_reply_queue)
4855 mark_async_event_handler (remote_async_inferior_event_token);
c8e38a49 4856 }
c8e38a49
PA
4857
4858 return event_ptid;
4859}
4860
74ca34ce 4861/* Fetch a single register using a 'p' packet. */
c906108c 4862
b96ec7ac 4863static int
56be3814 4864fetch_register_using_p (struct regcache *regcache, struct packet_reg *reg)
b96ec7ac
AC
4865{
4866 struct remote_state *rs = get_remote_state ();
2e9f7625 4867 char *buf, *p;
b96ec7ac
AC
4868 char regp[MAX_REGISTER_SIZE];
4869 int i;
4870
74ca34ce
DJ
4871 if (remote_protocol_packets[PACKET_p].support == PACKET_DISABLE)
4872 return 0;
4873
4874 if (reg->pnum == -1)
4875 return 0;
4876
2e9f7625 4877 p = rs->buf;
fcad0fa4 4878 *p++ = 'p';
74ca34ce 4879 p += hexnumstr (p, reg->pnum);
fcad0fa4 4880 *p++ = '\0';
6d820c5c 4881 remote_send (&rs->buf, &rs->buf_size);
3f9a994c 4882
2e9f7625
DJ
4883 buf = rs->buf;
4884
74ca34ce
DJ
4885 switch (packet_ok (buf, &remote_protocol_packets[PACKET_p]))
4886 {
4887 case PACKET_OK:
4888 break;
4889 case PACKET_UNKNOWN:
4890 return 0;
4891 case PACKET_ERROR:
4892 error (_("Could not fetch register \"%s\""),
4a22f64d 4893 gdbarch_register_name (get_regcache_arch (regcache), reg->regnum));
74ca34ce 4894 }
3f9a994c
JB
4895
4896 /* If this register is unfetchable, tell the regcache. */
4897 if (buf[0] == 'x')
8480adf2 4898 {
56be3814 4899 regcache_raw_supply (regcache, reg->regnum, NULL);
8480adf2 4900 return 1;
b96ec7ac 4901 }
b96ec7ac 4902
3f9a994c
JB
4903 /* Otherwise, parse and supply the value. */
4904 p = buf;
4905 i = 0;
4906 while (p[0] != 0)
4907 {
4908 if (p[1] == 0)
74ca34ce 4909 error (_("fetch_register_using_p: early buf termination"));
3f9a994c
JB
4910
4911 regp[i++] = fromhex (p[0]) * 16 + fromhex (p[1]);
4912 p += 2;
4913 }
56be3814 4914 regcache_raw_supply (regcache, reg->regnum, regp);
3f9a994c 4915 return 1;
b96ec7ac
AC
4916}
4917
74ca34ce
DJ
4918/* Fetch the registers included in the target's 'g' packet. */
4919
29709017
DJ
4920static int
4921send_g_packet (void)
c906108c 4922{
d01949b6 4923 struct remote_state *rs = get_remote_state ();
74ca34ce 4924 int i, buf_len;
c906108c 4925 char *p;
74ca34ce 4926 char *regs;
c906108c 4927
74ca34ce
DJ
4928 sprintf (rs->buf, "g");
4929 remote_send (&rs->buf, &rs->buf_size);
c906108c 4930
29709017
DJ
4931 /* We can get out of synch in various cases. If the first character
4932 in the buffer is not a hex character, assume that has happened
4933 and try to fetch another packet to read. */
4934 while ((rs->buf[0] < '0' || rs->buf[0] > '9')
4935 && (rs->buf[0] < 'A' || rs->buf[0] > 'F')
4936 && (rs->buf[0] < 'a' || rs->buf[0] > 'f')
4937 && rs->buf[0] != 'x') /* New: unavailable register value. */
4938 {
4939 if (remote_debug)
4940 fprintf_unfiltered (gdb_stdlog,
4941 "Bad register packet; fetching a new packet\n");
4942 getpkt (&rs->buf, &rs->buf_size, 0);
4943 }
4944
74ca34ce
DJ
4945 buf_len = strlen (rs->buf);
4946
4947 /* Sanity check the received packet. */
4948 if (buf_len % 2 != 0)
4949 error (_("Remote 'g' packet reply is of odd length: %s"), rs->buf);
29709017
DJ
4950
4951 return buf_len / 2;
4952}
4953
4954static void
56be3814 4955process_g_packet (struct regcache *regcache)
29709017 4956{
4a22f64d 4957 struct gdbarch *gdbarch = get_regcache_arch (regcache);
29709017
DJ
4958 struct remote_state *rs = get_remote_state ();
4959 struct remote_arch_state *rsa = get_remote_arch_state ();
4960 int i, buf_len;
4961 char *p;
4962 char *regs;
4963
4964 buf_len = strlen (rs->buf);
4965
4966 /* Further sanity checks, with knowledge of the architecture. */
74ca34ce
DJ
4967 if (buf_len > 2 * rsa->sizeof_g_packet)
4968 error (_("Remote 'g' packet reply is too long: %s"), rs->buf);
4969
4970 /* Save the size of the packet sent to us by the target. It is used
4971 as a heuristic when determining the max size of packets that the
4972 target can safely receive. */
4973 if (rsa->actual_register_packet_size == 0)
4974 rsa->actual_register_packet_size = buf_len;
4975
4976 /* If this is smaller than we guessed the 'g' packet would be,
4977 update our records. A 'g' reply that doesn't include a register's
4978 value implies either that the register is not available, or that
4979 the 'p' packet must be used. */
4980 if (buf_len < 2 * rsa->sizeof_g_packet)
b323314b 4981 {
74ca34ce
DJ
4982 rsa->sizeof_g_packet = buf_len / 2;
4983
4a22f64d 4984 for (i = 0; i < gdbarch_num_regs (gdbarch); i++)
b96ec7ac 4985 {
74ca34ce
DJ
4986 if (rsa->regs[i].pnum == -1)
4987 continue;
4988
4989 if (rsa->regs[i].offset >= rsa->sizeof_g_packet)
4990 rsa->regs[i].in_g_packet = 0;
b96ec7ac 4991 else
74ca34ce 4992 rsa->regs[i].in_g_packet = 1;
b96ec7ac 4993 }
74ca34ce 4994 }
b323314b 4995
74ca34ce 4996 regs = alloca (rsa->sizeof_g_packet);
c906108c
SS
4997
4998 /* Unimplemented registers read as all bits zero. */
ea9c271d 4999 memset (regs, 0, rsa->sizeof_g_packet);
c906108c 5000
c906108c
SS
5001 /* Reply describes registers byte by byte, each byte encoded as two
5002 hex characters. Suck them all up, then supply them to the
5003 register cacheing/storage mechanism. */
5004
74ca34ce 5005 p = rs->buf;
ea9c271d 5006 for (i = 0; i < rsa->sizeof_g_packet; i++)
c906108c 5007 {
74ca34ce
DJ
5008 if (p[0] == 0 || p[1] == 0)
5009 /* This shouldn't happen - we adjusted sizeof_g_packet above. */
5010 internal_error (__FILE__, __LINE__,
5011 "unexpected end of 'g' packet reply");
5012
c906108c 5013 if (p[0] == 'x' && p[1] == 'x')
c5aa993b 5014 regs[i] = 0; /* 'x' */
c906108c
SS
5015 else
5016 regs[i] = fromhex (p[0]) * 16 + fromhex (p[1]);
5017 p += 2;
5018 }
5019
ad10f812 5020 {
b323314b 5021 int i;
4a22f64d 5022 for (i = 0; i < gdbarch_num_regs (gdbarch); i++)
ad10f812 5023 {
ea9c271d 5024 struct packet_reg *r = &rsa->regs[i];
b323314b
AC
5025 if (r->in_g_packet)
5026 {
74ca34ce
DJ
5027 if (r->offset * 2 >= strlen (rs->buf))
5028 /* This shouldn't happen - we adjusted in_g_packet above. */
5029 internal_error (__FILE__, __LINE__,
5030 "unexpected end of 'g' packet reply");
5031 else if (rs->buf[r->offset * 2] == 'x')
8ccc1287 5032 {
74ca34ce 5033 gdb_assert (r->offset * 2 < strlen (rs->buf));
8ccc1287
AC
5034 /* The register isn't available, mark it as such (at
5035 the same time setting the value to zero). */
56be3814 5036 regcache_raw_supply (regcache, r->regnum, NULL);
8ccc1287
AC
5037 }
5038 else
56be3814 5039 regcache_raw_supply (regcache, r->regnum,
8ccc1287 5040 regs + r->offset);
b323314b 5041 }
ad10f812
AC
5042 }
5043 }
c906108c
SS
5044}
5045
29709017 5046static void
56be3814 5047fetch_registers_using_g (struct regcache *regcache)
29709017
DJ
5048{
5049 send_g_packet ();
56be3814 5050 process_g_packet (regcache);
29709017
DJ
5051}
5052
74ca34ce 5053static void
28439f5e
PA
5054remote_fetch_registers (struct target_ops *ops,
5055 struct regcache *regcache, int regnum)
74ca34ce
DJ
5056{
5057 struct remote_state *rs = get_remote_state ();
5058 struct remote_arch_state *rsa = get_remote_arch_state ();
5059 int i;
5060
79d7f229 5061 set_general_thread (inferior_ptid);
74ca34ce
DJ
5062
5063 if (regnum >= 0)
5064 {
5065 struct packet_reg *reg = packet_reg_from_regnum (rsa, regnum);
5066 gdb_assert (reg != NULL);
5067
5068 /* If this register might be in the 'g' packet, try that first -
5069 we are likely to read more than one register. If this is the
5070 first 'g' packet, we might be overly optimistic about its
5071 contents, so fall back to 'p'. */
5072 if (reg->in_g_packet)
5073 {
56be3814 5074 fetch_registers_using_g (regcache);
74ca34ce
DJ
5075 if (reg->in_g_packet)
5076 return;
5077 }
5078
56be3814 5079 if (fetch_register_using_p (regcache, reg))
74ca34ce
DJ
5080 return;
5081
5082 /* This register is not available. */
56be3814 5083 regcache_raw_supply (regcache, reg->regnum, NULL);
74ca34ce
DJ
5084
5085 return;
5086 }
5087
56be3814 5088 fetch_registers_using_g (regcache);
74ca34ce 5089
4a22f64d 5090 for (i = 0; i < gdbarch_num_regs (get_regcache_arch (regcache)); i++)
74ca34ce 5091 if (!rsa->regs[i].in_g_packet)
56be3814 5092 if (!fetch_register_using_p (regcache, &rsa->regs[i]))
74ca34ce
DJ
5093 {
5094 /* This register is not available. */
56be3814 5095 regcache_raw_supply (regcache, i, NULL);
74ca34ce
DJ
5096 }
5097}
5098
c906108c
SS
5099/* Prepare to store registers. Since we may send them all (using a
5100 'G' request), we have to read out the ones we don't want to change
5101 first. */
5102
c5aa993b 5103static void
316f2060 5104remote_prepare_to_store (struct regcache *regcache)
c906108c 5105{
ea9c271d 5106 struct remote_arch_state *rsa = get_remote_arch_state ();
cf0e1e0d 5107 int i;
cfd77fa1 5108 gdb_byte buf[MAX_REGISTER_SIZE];
cf0e1e0d 5109
c906108c 5110 /* Make sure the entire registers array is valid. */
444abaca 5111 switch (remote_protocol_packets[PACKET_P].support)
5a2468f5
JM
5112 {
5113 case PACKET_DISABLE:
5114 case PACKET_SUPPORT_UNKNOWN:
cf0e1e0d 5115 /* Make sure all the necessary registers are cached. */
4a22f64d 5116 for (i = 0; i < gdbarch_num_regs (get_regcache_arch (regcache)); i++)
ea9c271d 5117 if (rsa->regs[i].in_g_packet)
316f2060 5118 regcache_raw_read (regcache, rsa->regs[i].regnum, buf);
5a2468f5
JM
5119 break;
5120 case PACKET_ENABLE:
5121 break;
5122 }
5123}
5124
ad10f812 5125/* Helper: Attempt to store REGNUM using the P packet. Return fail IFF
23860348 5126 packet was not recognized. */
5a2468f5
JM
5127
5128static int
56be3814 5129store_register_using_P (const struct regcache *regcache, struct packet_reg *reg)
5a2468f5 5130{
4a22f64d 5131 struct gdbarch *gdbarch = get_regcache_arch (regcache);
d01949b6 5132 struct remote_state *rs = get_remote_state ();
ea9c271d 5133 struct remote_arch_state *rsa = get_remote_arch_state ();
5a2468f5 5134 /* Try storing a single register. */
6d820c5c 5135 char *buf = rs->buf;
cfd77fa1 5136 gdb_byte regp[MAX_REGISTER_SIZE];
5a2468f5 5137 char *p;
5a2468f5 5138
74ca34ce
DJ
5139 if (remote_protocol_packets[PACKET_P].support == PACKET_DISABLE)
5140 return 0;
5141
5142 if (reg->pnum == -1)
5143 return 0;
5144
ea9c271d 5145 xsnprintf (buf, get_remote_packet_size (), "P%s=", phex_nz (reg->pnum, 0));
5a2468f5 5146 p = buf + strlen (buf);
56be3814 5147 regcache_raw_collect (regcache, reg->regnum, regp);
4a22f64d 5148 bin2hex (regp, p, register_size (gdbarch, reg->regnum));
6d820c5c 5149 remote_send (&rs->buf, &rs->buf_size);
5a2468f5 5150
74ca34ce
DJ
5151 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_P]))
5152 {
5153 case PACKET_OK:
5154 return 1;
5155 case PACKET_ERROR:
5156 error (_("Could not write register \"%s\""),
4a22f64d 5157 gdbarch_register_name (gdbarch, reg->regnum));
74ca34ce
DJ
5158 case PACKET_UNKNOWN:
5159 return 0;
5160 default:
5161 internal_error (__FILE__, __LINE__, _("Bad result from packet_ok"));
5162 }
c906108c
SS
5163}
5164
23860348
MS
5165/* Store register REGNUM, or all registers if REGNUM == -1, from the
5166 contents of the register cache buffer. FIXME: ignores errors. */
c906108c
SS
5167
5168static void
56be3814 5169store_registers_using_G (const struct regcache *regcache)
c906108c 5170{
d01949b6 5171 struct remote_state *rs = get_remote_state ();
ea9c271d 5172 struct remote_arch_state *rsa = get_remote_arch_state ();
cfd77fa1 5173 gdb_byte *regs;
c906108c
SS
5174 char *p;
5175
193cb69f
AC
5176 /* Extract all the registers in the regcache copying them into a
5177 local buffer. */
5178 {
b323314b 5179 int i;
ea9c271d
DJ
5180 regs = alloca (rsa->sizeof_g_packet);
5181 memset (regs, 0, rsa->sizeof_g_packet);
4a22f64d 5182 for (i = 0; i < gdbarch_num_regs (get_regcache_arch (regcache)); i++)
193cb69f 5183 {
ea9c271d 5184 struct packet_reg *r = &rsa->regs[i];
b323314b 5185 if (r->in_g_packet)
56be3814 5186 regcache_raw_collect (regcache, r->regnum, regs + r->offset);
193cb69f
AC
5187 }
5188 }
c906108c
SS
5189
5190 /* Command describes registers byte by byte,
5191 each byte encoded as two hex characters. */
6d820c5c 5192 p = rs->buf;
193cb69f 5193 *p++ = 'G';
74ca34ce
DJ
5194 /* remote_prepare_to_store insures that rsa->sizeof_g_packet gets
5195 updated. */
5196 bin2hex (regs, p, rsa->sizeof_g_packet);
6d820c5c 5197 remote_send (&rs->buf, &rs->buf_size);
c906108c 5198}
74ca34ce
DJ
5199
5200/* Store register REGNUM, or all registers if REGNUM == -1, from the contents
5201 of the register cache buffer. FIXME: ignores errors. */
5202
5203static void
28439f5e
PA
5204remote_store_registers (struct target_ops *ops,
5205 struct regcache *regcache, int regnum)
74ca34ce
DJ
5206{
5207 struct remote_state *rs = get_remote_state ();
5208 struct remote_arch_state *rsa = get_remote_arch_state ();
5209 int i;
5210
79d7f229 5211 set_general_thread (inferior_ptid);
74ca34ce
DJ
5212
5213 if (regnum >= 0)
5214 {
5215 struct packet_reg *reg = packet_reg_from_regnum (rsa, regnum);
5216 gdb_assert (reg != NULL);
5217
5218 /* Always prefer to store registers using the 'P' packet if
5219 possible; we often change only a small number of registers.
5220 Sometimes we change a larger number; we'd need help from a
5221 higher layer to know to use 'G'. */
56be3814 5222 if (store_register_using_P (regcache, reg))
74ca34ce
DJ
5223 return;
5224
5225 /* For now, don't complain if we have no way to write the
5226 register. GDB loses track of unavailable registers too
5227 easily. Some day, this may be an error. We don't have
5228 any way to read the register, either... */
5229 if (!reg->in_g_packet)
5230 return;
5231
56be3814 5232 store_registers_using_G (regcache);
74ca34ce
DJ
5233 return;
5234 }
5235
56be3814 5236 store_registers_using_G (regcache);
74ca34ce 5237
4a22f64d 5238 for (i = 0; i < gdbarch_num_regs (get_regcache_arch (regcache)); i++)
74ca34ce 5239 if (!rsa->regs[i].in_g_packet)
56be3814 5240 if (!store_register_using_P (regcache, &rsa->regs[i]))
74ca34ce
DJ
5241 /* See above for why we do not issue an error here. */
5242 continue;
5243}
c906108c
SS
5244\f
5245
5246/* Return the number of hex digits in num. */
5247
5248static int
fba45db2 5249hexnumlen (ULONGEST num)
c906108c
SS
5250{
5251 int i;
5252
5253 for (i = 0; num != 0; i++)
5254 num >>= 4;
5255
5256 return max (i, 1);
5257}
5258
2df3850c 5259/* Set BUF to the minimum number of hex digits representing NUM. */
c906108c
SS
5260
5261static int
fba45db2 5262hexnumstr (char *buf, ULONGEST num)
c906108c 5263{
c906108c 5264 int len = hexnumlen (num);
2df3850c
JM
5265 return hexnumnstr (buf, num, len);
5266}
5267
c906108c 5268
2df3850c 5269/* Set BUF to the hex digits representing NUM, padded to WIDTH characters. */
c906108c 5270
2df3850c 5271static int
fba45db2 5272hexnumnstr (char *buf, ULONGEST num, int width)
2df3850c
JM
5273{
5274 int i;
5275
5276 buf[width] = '\0';
5277
5278 for (i = width - 1; i >= 0; i--)
c906108c 5279 {
c5aa993b 5280 buf[i] = "0123456789abcdef"[(num & 0xf)];
c906108c
SS
5281 num >>= 4;
5282 }
5283
2df3850c 5284 return width;
c906108c
SS
5285}
5286
23860348 5287/* Mask all but the least significant REMOTE_ADDRESS_SIZE bits. */
c906108c
SS
5288
5289static CORE_ADDR
fba45db2 5290remote_address_masked (CORE_ADDR addr)
c906108c 5291{
911c95a5
UW
5292 int address_size = remote_address_size;
5293 /* If "remoteaddresssize" was not set, default to target address size. */
5294 if (!address_size)
1cf3db46 5295 address_size = gdbarch_addr_bit (target_gdbarch);
911c95a5
UW
5296
5297 if (address_size > 0
5298 && address_size < (sizeof (ULONGEST) * 8))
c906108c
SS
5299 {
5300 /* Only create a mask when that mask can safely be constructed
23860348 5301 in a ULONGEST variable. */
c906108c 5302 ULONGEST mask = 1;
911c95a5 5303 mask = (mask << address_size) - 1;
c906108c
SS
5304 addr &= mask;
5305 }
5306 return addr;
5307}
5308
a31ea83d
DJ
5309/* Convert BUFFER, binary data at least LEN bytes long, into escaped
5310 binary data in OUT_BUF. Set *OUT_LEN to the length of the data
5311 encoded in OUT_BUF, and return the number of bytes in OUT_BUF
5312 (which may be more than *OUT_LEN due to escape characters). The
5313 total number of bytes in the output buffer will be at most
5314 OUT_MAXLEN. */
5315
5316static int
5317remote_escape_output (const gdb_byte *buffer, int len,
5318 gdb_byte *out_buf, int *out_len,
5319 int out_maxlen)
5320{
5321 int input_index, output_index;
5322
5323 output_index = 0;
5324 for (input_index = 0; input_index < len; input_index++)
5325 {
5326 gdb_byte b = buffer[input_index];
5327
5328 if (b == '$' || b == '#' || b == '}')
5329 {
5330 /* These must be escaped. */
5331 if (output_index + 2 > out_maxlen)
5332 break;
5333 out_buf[output_index++] = '}';
5334 out_buf[output_index++] = b ^ 0x20;
5335 }
5336 else
5337 {
5338 if (output_index + 1 > out_maxlen)
5339 break;
5340 out_buf[output_index++] = b;
5341 }
5342 }
5343
5344 *out_len = input_index;
5345 return output_index;
5346}
5347
0876f84a
DJ
5348/* Convert BUFFER, escaped data LEN bytes long, into binary data
5349 in OUT_BUF. Return the number of bytes written to OUT_BUF.
5350 Raise an error if the total number of bytes exceeds OUT_MAXLEN.
5351
5352 This function reverses remote_escape_output. It allows more
5353 escaped characters than that function does, in particular because
5354 '*' must be escaped to avoid the run-length encoding processing
5355 in reading packets. */
5356
5357static int
5358remote_unescape_input (const gdb_byte *buffer, int len,
5359 gdb_byte *out_buf, int out_maxlen)
5360{
5361 int input_index, output_index;
5362 int escaped;
5363
5364 output_index = 0;
5365 escaped = 0;
5366 for (input_index = 0; input_index < len; input_index++)
5367 {
5368 gdb_byte b = buffer[input_index];
5369
5370 if (output_index + 1 > out_maxlen)
5371 {
5372 warning (_("Received too much data from remote target;"
5373 " ignoring overflow."));
5374 return output_index;
5375 }
5376
5377 if (escaped)
5378 {
5379 out_buf[output_index++] = b ^ 0x20;
5380 escaped = 0;
5381 }
5382 else if (b == '}')
5383 escaped = 1;
5384 else
5385 out_buf[output_index++] = b;
5386 }
5387
5388 if (escaped)
5389 error (_("Unmatched escape character in target response."));
5390
5391 return output_index;
5392}
5393
c906108c
SS
5394/* Determine whether the remote target supports binary downloading.
5395 This is accomplished by sending a no-op memory write of zero length
5396 to the target at the specified address. It does not suffice to send
23860348
MS
5397 the whole packet, since many stubs strip the eighth bit and
5398 subsequently compute a wrong checksum, which causes real havoc with
5399 remote_write_bytes.
7a292a7a 5400
96baa820
JM
5401 NOTE: This can still lose if the serial line is not eight-bit
5402 clean. In cases like this, the user should clear "remote
23860348 5403 X-packet". */
96baa820 5404
c906108c 5405static void
fba45db2 5406check_binary_download (CORE_ADDR addr)
c906108c 5407{
d01949b6 5408 struct remote_state *rs = get_remote_state ();
24b06219 5409
444abaca 5410 switch (remote_protocol_packets[PACKET_X].support)
c906108c 5411 {
96baa820
JM
5412 case PACKET_DISABLE:
5413 break;
5414 case PACKET_ENABLE:
5415 break;
5416 case PACKET_SUPPORT_UNKNOWN:
5417 {
96baa820 5418 char *p;
802188a7 5419
2e9f7625 5420 p = rs->buf;
96baa820
JM
5421 *p++ = 'X';
5422 p += hexnumstr (p, (ULONGEST) addr);
5423 *p++ = ',';
5424 p += hexnumstr (p, (ULONGEST) 0);
5425 *p++ = ':';
5426 *p = '\0';
802188a7 5427
2e9f7625 5428 putpkt_binary (rs->buf, (int) (p - rs->buf));
6d820c5c 5429 getpkt (&rs->buf, &rs->buf_size, 0);
c906108c 5430
2e9f7625 5431 if (rs->buf[0] == '\0')
96baa820
JM
5432 {
5433 if (remote_debug)
5434 fprintf_unfiltered (gdb_stdlog,
5435 "binary downloading NOT suppported by target\n");
444abaca 5436 remote_protocol_packets[PACKET_X].support = PACKET_DISABLE;
96baa820
JM
5437 }
5438 else
5439 {
5440 if (remote_debug)
5441 fprintf_unfiltered (gdb_stdlog,
5442 "binary downloading suppported by target\n");
444abaca 5443 remote_protocol_packets[PACKET_X].support = PACKET_ENABLE;
96baa820
JM
5444 }
5445 break;
5446 }
c906108c
SS
5447 }
5448}
5449
5450/* Write memory data directly to the remote machine.
5451 This does not inform the data cache; the data cache uses this.
a76d924d 5452 HEADER is the starting part of the packet.
c906108c
SS
5453 MEMADDR is the address in the remote memory space.
5454 MYADDR is the address of the buffer in our space.
5455 LEN is the number of bytes.
a76d924d
DJ
5456 PACKET_FORMAT should be either 'X' or 'M', and indicates if we
5457 should send data as binary ('X'), or hex-encoded ('M').
5458
5459 The function creates packet of the form
5460 <HEADER><ADDRESS>,<LENGTH>:<DATA>
5461
5462 where encoding of <DATA> is termined by PACKET_FORMAT.
5463
5464 If USE_LENGTH is 0, then the <LENGTH> field and the preceding comma
5465 are omitted.
5466
5467 Returns the number of bytes transferred, or 0 (setting errno) for
23860348 5468 error. Only transfer a single packet. */
c906108c 5469
a76d924d
DJ
5470static int
5471remote_write_bytes_aux (const char *header, CORE_ADDR memaddr,
5472 const gdb_byte *myaddr, int len,
5473 char packet_format, int use_length)
c906108c 5474{
6d820c5c 5475 struct remote_state *rs = get_remote_state ();
cfd77fa1 5476 char *p;
a76d924d
DJ
5477 char *plen = NULL;
5478 int plenlen = 0;
917317f4
JM
5479 int todo;
5480 int nr_bytes;
a257b5bb 5481 int payload_size;
6765f3e5 5482 int payload_length;
a76d924d
DJ
5483 int header_length;
5484
5485 if (packet_format != 'X' && packet_format != 'M')
5486 internal_error (__FILE__, __LINE__,
5487 "remote_write_bytes_aux: bad packet format");
c906108c 5488
b2182ed2
DJ
5489 if (len <= 0)
5490 return 0;
5491
3de11b2e 5492 payload_size = get_memory_write_packet_size ();
2bc416ba 5493
6d820c5c
DJ
5494 /* The packet buffer will be large enough for the payload;
5495 get_memory_packet_size ensures this. */
a76d924d 5496 rs->buf[0] = '\0';
c906108c 5497
a257b5bb 5498 /* Compute the size of the actual payload by subtracting out the
3de11b2e
NS
5499 packet header and footer overhead: "$M<memaddr>,<len>:...#nn".
5500 */
a76d924d
DJ
5501 payload_size -= strlen ("$,:#NN");
5502 if (!use_length)
5503 /* The comma won't be used. */
5504 payload_size += 1;
5505 header_length = strlen (header);
5506 payload_size -= header_length;
3de11b2e 5507 payload_size -= hexnumlen (memaddr);
c906108c 5508
a76d924d 5509 /* Construct the packet excluding the data: "<header><memaddr>,<len>:". */
917317f4 5510
a76d924d
DJ
5511 strcat (rs->buf, header);
5512 p = rs->buf + strlen (header);
5513
5514 /* Compute a best guess of the number of bytes actually transfered. */
5515 if (packet_format == 'X')
c906108c 5516 {
23860348 5517 /* Best guess at number of bytes that will fit. */
a257b5bb 5518 todo = min (len, payload_size);
a76d924d
DJ
5519 if (use_length)
5520 payload_size -= hexnumlen (todo);
3de11b2e 5521 todo = min (todo, payload_size);
a76d924d
DJ
5522 }
5523 else
5524 {
23860348 5525 /* Num bytes that will fit. */
a257b5bb 5526 todo = min (len, payload_size / 2);
a76d924d
DJ
5527 if (use_length)
5528 payload_size -= hexnumlen (todo);
3de11b2e 5529 todo = min (todo, payload_size / 2);
917317f4 5530 }
a76d924d 5531
3de11b2e
NS
5532 if (todo <= 0)
5533 internal_error (__FILE__, __LINE__,
5534 _("minumum packet size too small to write data"));
802188a7 5535
6765f3e5
DJ
5536 /* If we already need another packet, then try to align the end
5537 of this packet to a useful boundary. */
5538 if (todo > 2 * REMOTE_ALIGN_WRITES && todo < len)
5539 todo = ((memaddr + todo) & ~(REMOTE_ALIGN_WRITES - 1)) - memaddr;
5540
a257b5bb 5541 /* Append "<memaddr>". */
917317f4
JM
5542 memaddr = remote_address_masked (memaddr);
5543 p += hexnumstr (p, (ULONGEST) memaddr);
a257b5bb 5544
a76d924d
DJ
5545 if (use_length)
5546 {
5547 /* Append ",". */
5548 *p++ = ',';
802188a7 5549
a76d924d
DJ
5550 /* Append <len>. Retain the location/size of <len>. It may need to
5551 be adjusted once the packet body has been created. */
5552 plen = p;
5553 plenlen = hexnumstr (p, (ULONGEST) todo);
5554 p += plenlen;
5555 }
a257b5bb
AC
5556
5557 /* Append ":". */
917317f4
JM
5558 *p++ = ':';
5559 *p = '\0';
802188a7 5560
a257b5bb 5561 /* Append the packet body. */
a76d924d 5562 if (packet_format == 'X')
917317f4 5563 {
917317f4
JM
5564 /* Binary mode. Send target system values byte by byte, in
5565 increasing byte addresses. Only escape certain critical
5566 characters. */
6765f3e5
DJ
5567 payload_length = remote_escape_output (myaddr, todo, p, &nr_bytes,
5568 payload_size);
5569
5570 /* If not all TODO bytes fit, then we'll need another packet. Make
9b7194bc
DJ
5571 a second try to keep the end of the packet aligned. Don't do
5572 this if the packet is tiny. */
5573 if (nr_bytes < todo && nr_bytes > 2 * REMOTE_ALIGN_WRITES)
6765f3e5
DJ
5574 {
5575 int new_nr_bytes;
5576
5577 new_nr_bytes = (((memaddr + nr_bytes) & ~(REMOTE_ALIGN_WRITES - 1))
5578 - memaddr);
5579 if (new_nr_bytes != nr_bytes)
5580 payload_length = remote_escape_output (myaddr, new_nr_bytes,
5581 p, &nr_bytes,
5582 payload_size);
5583 }
5584
5585 p += payload_length;
a76d924d 5586 if (use_length && nr_bytes < todo)
c906108c 5587 {
802188a7 5588 /* Escape chars have filled up the buffer prematurely,
917317f4
JM
5589 and we have actually sent fewer bytes than planned.
5590 Fix-up the length field of the packet. Use the same
5591 number of characters as before. */
917317f4
JM
5592 plen += hexnumnstr (plen, (ULONGEST) nr_bytes, plenlen);
5593 *plen = ':'; /* overwrite \0 from hexnumnstr() */
c906108c 5594 }
a76d924d
DJ
5595 }
5596 else
5597 {
917317f4
JM
5598 /* Normal mode: Send target system values byte by byte, in
5599 increasing byte addresses. Each byte is encoded as a two hex
5600 value. */
2644f393 5601 nr_bytes = bin2hex (myaddr, p, todo);
aa6c0017 5602 p += 2 * nr_bytes;
c906108c 5603 }
802188a7 5604
2e9f7625 5605 putpkt_binary (rs->buf, (int) (p - rs->buf));
6d820c5c 5606 getpkt (&rs->buf, &rs->buf_size, 0);
802188a7 5607
2e9f7625 5608 if (rs->buf[0] == 'E')
917317f4
JM
5609 {
5610 /* There is no correspondance between what the remote protocol
5611 uses for errors and errno codes. We would like a cleaner way
5612 of representing errors (big enough to include errno codes,
5613 bfd_error codes, and others). But for now just return EIO. */
5614 errno = EIO;
5615 return 0;
5616 }
802188a7 5617
23860348
MS
5618 /* Return NR_BYTES, not TODO, in case escape chars caused us to send
5619 fewer bytes than we'd planned. */
917317f4 5620 return nr_bytes;
c906108c
SS
5621}
5622
a76d924d
DJ
5623/* Write memory data directly to the remote machine.
5624 This does not inform the data cache; the data cache uses this.
5625 MEMADDR is the address in the remote memory space.
5626 MYADDR is the address of the buffer in our space.
5627 LEN is the number of bytes.
5628
5629 Returns number of bytes transferred, or 0 (setting errno) for
5630 error. Only transfer a single packet. */
5631
5632int
5633remote_write_bytes (CORE_ADDR memaddr, const gdb_byte *myaddr, int len)
5634{
5635 char *packet_format = 0;
5636
5637 /* Check whether the target supports binary download. */
5638 check_binary_download (memaddr);
5639
5640 switch (remote_protocol_packets[PACKET_X].support)
5641 {
5642 case PACKET_ENABLE:
5643 packet_format = "X";
5644 break;
5645 case PACKET_DISABLE:
5646 packet_format = "M";
5647 break;
5648 case PACKET_SUPPORT_UNKNOWN:
5649 internal_error (__FILE__, __LINE__,
5650 _("remote_write_bytes: bad internal state"));
5651 default:
5652 internal_error (__FILE__, __LINE__, _("bad switch"));
5653 }
5654
5655 return remote_write_bytes_aux (packet_format,
5656 memaddr, myaddr, len, packet_format[0], 1);
5657}
5658
c906108c
SS
5659/* Read memory data directly from the remote machine.
5660 This does not use the data cache; the data cache uses this.
5661 MEMADDR is the address in the remote memory space.
5662 MYADDR is the address of the buffer in our space.
5663 LEN is the number of bytes.
5664
5665 Returns number of bytes transferred, or 0 for error. */
5666
917317f4
JM
5667/* NOTE: cagney/1999-10-18: This function (and its siblings in other
5668 remote targets) shouldn't attempt to read the entire buffer.
5669 Instead it should read a single packet worth of data and then
5670 return the byte size of that packet to the caller. The caller (its
5671 caller and its callers caller ;-) already contains code for
23860348 5672 handling partial reads. */
917317f4 5673
449092f6 5674int
cfd77fa1 5675remote_read_bytes (CORE_ADDR memaddr, gdb_byte *myaddr, int len)
c906108c 5676{
6d820c5c 5677 struct remote_state *rs = get_remote_state ();
23860348 5678 int max_buf_size; /* Max size of packet output buffer. */
c906108c
SS
5679 int origlen;
5680
b2182ed2
DJ
5681 if (len <= 0)
5682 return 0;
5683
11cf8741 5684 max_buf_size = get_memory_read_packet_size ();
6d820c5c
DJ
5685 /* The packet buffer will be large enough for the payload;
5686 get_memory_packet_size ensures this. */
c906108c
SS
5687
5688 origlen = len;
5689 while (len > 0)
5690 {
c906108c
SS
5691 char *p;
5692 int todo;
5693 int i;
5694
c5aa993b 5695 todo = min (len, max_buf_size / 2); /* num bytes that will fit */
c906108c
SS
5696
5697 /* construct "m"<memaddr>","<len>" */
2e9f7625 5698 /* sprintf (rs->buf, "m%lx,%x", (unsigned long) memaddr, todo); */
c906108c 5699 memaddr = remote_address_masked (memaddr);
2e9f7625 5700 p = rs->buf;
c906108c
SS
5701 *p++ = 'm';
5702 p += hexnumstr (p, (ULONGEST) memaddr);
5703 *p++ = ',';
5704 p += hexnumstr (p, (ULONGEST) todo);
5705 *p = '\0';
5706
2e9f7625 5707 putpkt (rs->buf);
6d820c5c 5708 getpkt (&rs->buf, &rs->buf_size, 0);
c906108c 5709
2e9f7625
DJ
5710 if (rs->buf[0] == 'E'
5711 && isxdigit (rs->buf[1]) && isxdigit (rs->buf[2])
5712 && rs->buf[3] == '\0')
c906108c 5713 {
23860348
MS
5714 /* There is no correspondance between what the remote
5715 protocol uses for errors and errno codes. We would like
5716 a cleaner way of representing errors (big enough to
5717 include errno codes, bfd_error codes, and others). But
5718 for now just return EIO. */
c906108c
SS
5719 errno = EIO;
5720 return 0;
5721 }
5722
c5aa993b
JM
5723 /* Reply describes memory byte by byte,
5724 each byte encoded as two hex characters. */
c906108c 5725
2e9f7625 5726 p = rs->buf;
30559e10 5727 if ((i = hex2bin (p, myaddr, todo)) < todo)
c906108c 5728 {
30559e10 5729 /* Reply is short. This means that we were able to read
23860348 5730 only part of what we wanted to. */
30559e10 5731 return i + (origlen - len);
c906108c
SS
5732 }
5733 myaddr += todo;
5734 memaddr += todo;
5735 len -= todo;
5736 }
5737 return origlen;
5738}
74531fed
PA
5739\f
5740
5741/* Remote notification handler. */
5742
5743static void
5744handle_notification (char *buf, size_t length)
5745{
5746 if (strncmp (buf, "Stop:", 5) == 0)
5747 {
5748 if (pending_stop_reply)
5749 /* We've already parsed the in-flight stop-reply, but the stub
5750 for some reason thought we didn't, possibly due to timeout
5751 on its side. Just ignore it. */
5752 ;
5753 else
5754 {
5755 struct cleanup *old_chain;
5756 struct stop_reply *reply = stop_reply_xmalloc ();
5757 old_chain = make_cleanup (do_stop_reply_xfree, reply);
5758
5759 remote_parse_stop_reply (buf + 5, reply);
5760
5761 discard_cleanups (old_chain);
5762
5763 /* Be careful to only set it after parsing, since an error
5764 may be thrown then. */
5765 pending_stop_reply = reply;
5766
5767 /* Notify the event loop there's a stop reply to acknowledge
5768 and that there may be more events to fetch. */
5769 mark_async_event_handler (remote_async_get_pending_events_token);
5770 }
5771 }
5772 else
5773 /* We ignore notifications we don't recognize, for compatibility
5774 with newer stubs. */
5775 ;
5776}
5777
c906108c
SS
5778\f
5779/* Read or write LEN bytes from inferior memory at MEMADDR,
23860348
MS
5780 transferring to or from debugger address BUFFER. Write to inferior
5781 if SHOULD_WRITE is nonzero. Returns length of data written or
5782 read; 0 for error. TARGET is unused. */
392a587b 5783
c906108c 5784static int
961cb7b5 5785remote_xfer_memory (CORE_ADDR mem_addr, gdb_byte *buffer, int mem_len,
0a65a603 5786 int should_write, struct mem_attrib *attrib,
29e57380 5787 struct target_ops *target)
c906108c 5788{
4930751a
C
5789 int res;
5790
82f73884
PA
5791 set_general_thread (inferior_ptid);
5792
4930751a 5793 if (should_write)
b2182ed2 5794 res = remote_write_bytes (mem_addr, buffer, mem_len);
4930751a 5795 else
b2182ed2 5796 res = remote_read_bytes (mem_addr, buffer, mem_len);
4930751a
C
5797
5798 return res;
c906108c
SS
5799}
5800
a76d924d
DJ
5801/* Sends a packet with content determined by the printf format string
5802 FORMAT and the remaining arguments, then gets the reply. Returns
5803 whether the packet was a success, a failure, or unknown. */
5804
2c0b251b 5805static enum packet_result
a76d924d
DJ
5806remote_send_printf (const char *format, ...)
5807{
5808 struct remote_state *rs = get_remote_state ();
5809 int max_size = get_remote_packet_size ();
5810
5811 va_list ap;
5812 va_start (ap, format);
5813
5814 rs->buf[0] = '\0';
5815 if (vsnprintf (rs->buf, max_size, format, ap) >= max_size)
5816 internal_error (__FILE__, __LINE__, "Too long remote packet.");
5817
5818 if (putpkt (rs->buf) < 0)
5819 error (_("Communication problem with target."));
5820
5821 rs->buf[0] = '\0';
5822 getpkt (&rs->buf, &rs->buf_size, 0);
5823
5824 return packet_check_result (rs->buf);
5825}
5826
5827static void
5828restore_remote_timeout (void *p)
5829{
5830 int value = *(int *)p;
5831 remote_timeout = value;
5832}
5833
5834/* Flash writing can take quite some time. We'll set
5835 effectively infinite timeout for flash operations.
5836 In future, we'll need to decide on a better approach. */
5837static const int remote_flash_timeout = 1000;
5838
5839static void
5840remote_flash_erase (struct target_ops *ops,
5841 ULONGEST address, LONGEST length)
5842{
5843 int saved_remote_timeout = remote_timeout;
5844 enum packet_result ret;
5845
5846 struct cleanup *back_to = make_cleanup (restore_remote_timeout,
5847 &saved_remote_timeout);
5848 remote_timeout = remote_flash_timeout;
5849
5850 ret = remote_send_printf ("vFlashErase:%s,%s",
5851 paddr (address),
5852 phex (length, 4));
5853 switch (ret)
5854 {
5855 case PACKET_UNKNOWN:
5856 error (_("Remote target does not support flash erase"));
5857 case PACKET_ERROR:
5858 error (_("Error erasing flash with vFlashErase packet"));
5859 default:
5860 break;
5861 }
5862
5863 do_cleanups (back_to);
5864}
5865
5866static LONGEST
5867remote_flash_write (struct target_ops *ops,
5868 ULONGEST address, LONGEST length,
5869 const gdb_byte *data)
5870{
5871 int saved_remote_timeout = remote_timeout;
5872 int ret;
5873 struct cleanup *back_to = make_cleanup (restore_remote_timeout,
5874 &saved_remote_timeout);
5875
5876 remote_timeout = remote_flash_timeout;
5877 ret = remote_write_bytes_aux ("vFlashWrite:", address, data, length, 'X', 0);
5878 do_cleanups (back_to);
5879
5880 return ret;
5881}
5882
5883static void
5884remote_flash_done (struct target_ops *ops)
5885{
5886 int saved_remote_timeout = remote_timeout;
5887 int ret;
5888 struct cleanup *back_to = make_cleanup (restore_remote_timeout,
5889 &saved_remote_timeout);
5890
5891 remote_timeout = remote_flash_timeout;
5892 ret = remote_send_printf ("vFlashDone");
5893 do_cleanups (back_to);
5894
5895 switch (ret)
5896 {
5897 case PACKET_UNKNOWN:
5898 error (_("Remote target does not support vFlashDone"));
5899 case PACKET_ERROR:
5900 error (_("Error finishing flash operation"));
5901 default:
5902 break;
5903 }
5904}
5905
c906108c 5906static void
fba45db2 5907remote_files_info (struct target_ops *ignore)
c906108c
SS
5908{
5909 puts_filtered ("Debugging a target over a serial line.\n");
5910}
5911\f
5912/* Stuff for dealing with the packets which are part of this protocol.
5913 See comment at top of file for details. */
5914
0876f84a 5915/* Read a single character from the remote end. */
c906108c
SS
5916
5917static int
fba45db2 5918readchar (int timeout)
c906108c
SS
5919{
5920 int ch;
5921
2cd58942 5922 ch = serial_readchar (remote_desc, timeout);
c906108c 5923
2acceee2 5924 if (ch >= 0)
0876f84a 5925 return ch;
2acceee2
JM
5926
5927 switch ((enum serial_rc) ch)
c906108c
SS
5928 {
5929 case SERIAL_EOF:
ce5ce7ed 5930 pop_target ();
8a3fe4f8 5931 error (_("Remote connection closed"));
2acceee2 5932 /* no return */
c906108c 5933 case SERIAL_ERROR:
e2e0b3e5 5934 perror_with_name (_("Remote communication error"));
2acceee2 5935 /* no return */
c906108c 5936 case SERIAL_TIMEOUT:
2acceee2 5937 break;
c906108c 5938 }
2acceee2 5939 return ch;
c906108c
SS
5940}
5941
6d820c5c
DJ
5942/* Send the command in *BUF to the remote machine, and read the reply
5943 into *BUF. Report an error if we get an error reply. Resize
5944 *BUF using xrealloc if necessary to hold the result, and update
5945 *SIZEOF_BUF. */
c906108c
SS
5946
5947static void
6d820c5c
DJ
5948remote_send (char **buf,
5949 long *sizeof_buf)
c906108c 5950{
6d820c5c 5951 putpkt (*buf);
c2d11a7d 5952 getpkt (buf, sizeof_buf, 0);
c906108c 5953
6d820c5c
DJ
5954 if ((*buf)[0] == 'E')
5955 error (_("Remote failure reply: %s"), *buf);
c906108c
SS
5956}
5957
6e5abd65
PA
5958/* Return a pointer to an xmalloc'ed string representing an escaped
5959 version of BUF, of len N. E.g. \n is converted to \\n, \t to \\t,
5960 etc. The caller is responsible for releasing the returned
5961 memory. */
5962
5963static char *
5964escape_buffer (const char *buf, int n)
5965{
5966 struct cleanup *old_chain;
5967 struct ui_file *stb;
5968 char *str;
5969 long length;
5970
5971 stb = mem_fileopen ();
5972 old_chain = make_cleanup_ui_file_delete (stb);
5973
5974 fputstrn_unfiltered (buf, n, 0, stb);
5975 str = ui_file_xstrdup (stb, &length);
5976 do_cleanups (old_chain);
5977 return str;
5978}
5979
c906108c
SS
5980/* Display a null-terminated packet on stdout, for debugging, using C
5981 string notation. */
5982
5983static void
fba45db2 5984print_packet (char *buf)
c906108c
SS
5985{
5986 puts_filtered ("\"");
43e526b9 5987 fputstr_filtered (buf, '"', gdb_stdout);
c906108c
SS
5988 puts_filtered ("\"");
5989}
5990
5991int
fba45db2 5992putpkt (char *buf)
c906108c
SS
5993{
5994 return putpkt_binary (buf, strlen (buf));
5995}
5996
5997/* Send a packet to the remote machine, with error checking. The data
23860348 5998 of the packet is in BUF. The string in BUF can be at most
ea9c271d 5999 get_remote_packet_size () - 5 to account for the $, # and checksum,
23860348
MS
6000 and for a possible /0 if we are debugging (remote_debug) and want
6001 to print the sent packet as a string. */
c906108c
SS
6002
6003static int
fba45db2 6004putpkt_binary (char *buf, int cnt)
c906108c 6005{
2d717e4f 6006 struct remote_state *rs = get_remote_state ();
c906108c
SS
6007 int i;
6008 unsigned char csum = 0;
11cf8741 6009 char *buf2 = alloca (cnt + 6);
085dd6e6 6010
c906108c
SS
6011 int ch;
6012 int tcount = 0;
6013 char *p;
6014
e24a49d8
PA
6015 /* Catch cases like trying to read memory or listing threads while
6016 we're waiting for a stop reply. The remote server wouldn't be
6017 ready to handle this request, so we'd hang and timeout. We don't
6018 have to worry about this in synchronous mode, because in that
6019 case it's not possible to issue a command while the target is
74531fed
PA
6020 running. This is not a problem in non-stop mode, because in that
6021 case, the stub is always ready to process serial input. */
6022 if (!non_stop && target_can_async_p () && rs->waiting_for_stop_reply)
e24a49d8
PA
6023 error (_("Cannot execute this command while the target is running."));
6024
2d717e4f
DJ
6025 /* We're sending out a new packet. Make sure we don't look at a
6026 stale cached response. */
6027 rs->cached_wait_status = 0;
6028
c906108c
SS
6029 /* Copy the packet into buffer BUF2, encapsulating it
6030 and giving it a checksum. */
6031
c906108c
SS
6032 p = buf2;
6033 *p++ = '$';
6034
6035 for (i = 0; i < cnt; i++)
6036 {
6037 csum += buf[i];
6038 *p++ = buf[i];
6039 }
6040 *p++ = '#';
6041 *p++ = tohex ((csum >> 4) & 0xf);
6042 *p++ = tohex (csum & 0xf);
6043
6044 /* Send it over and over until we get a positive ack. */
6045
6046 while (1)
6047 {
6048 int started_error_output = 0;
6049
6050 if (remote_debug)
6051 {
6e5abd65
PA
6052 struct cleanup *old_chain;
6053 char *str;
6054
c906108c 6055 *p = '\0';
6e5abd65
PA
6056 str = escape_buffer (buf2, p - buf2);
6057 old_chain = make_cleanup (xfree, str);
6058 fprintf_unfiltered (gdb_stdlog, "Sending packet: %s...", str);
0f71a2f6 6059 gdb_flush (gdb_stdlog);
6e5abd65 6060 do_cleanups (old_chain);
c906108c 6061 }
2cd58942 6062 if (serial_write (remote_desc, buf2, p - buf2))
e2e0b3e5 6063 perror_with_name (_("putpkt: write failed"));
c906108c 6064
a6f3e723
SL
6065 /* If this is a no acks version of the remote protocol, send the
6066 packet and move on. */
6067 if (rs->noack_mode)
6068 break;
6069
74531fed
PA
6070 /* Read until either a timeout occurs (-2) or '+' is read.
6071 Handle any notification that arrives in the mean time. */
c906108c
SS
6072 while (1)
6073 {
6074 ch = readchar (remote_timeout);
6075
c5aa993b 6076 if (remote_debug)
c906108c
SS
6077 {
6078 switch (ch)
6079 {
6080 case '+':
1216fa2c 6081 case '-':
c906108c
SS
6082 case SERIAL_TIMEOUT:
6083 case '$':
74531fed 6084 case '%':
c906108c
SS
6085 if (started_error_output)
6086 {
6087 putchar_unfiltered ('\n');
6088 started_error_output = 0;
6089 }
6090 }
6091 }
6092
6093 switch (ch)
6094 {
6095 case '+':
6096 if (remote_debug)
0f71a2f6 6097 fprintf_unfiltered (gdb_stdlog, "Ack\n");
c906108c 6098 return 1;
1216fa2c
AC
6099 case '-':
6100 if (remote_debug)
6101 fprintf_unfiltered (gdb_stdlog, "Nak\n");
c906108c 6102 case SERIAL_TIMEOUT:
c5aa993b 6103 tcount++;
c906108c
SS
6104 if (tcount > 3)
6105 return 0;
23860348 6106 break; /* Retransmit buffer. */
c906108c
SS
6107 case '$':
6108 {
40e3f985 6109 if (remote_debug)
2bc416ba 6110 fprintf_unfiltered (gdb_stdlog,
23860348 6111 "Packet instead of Ack, ignoring it\n");
d6f7abdf
AC
6112 /* It's probably an old response sent because an ACK
6113 was lost. Gobble up the packet and ack it so it
6114 doesn't get retransmitted when we resend this
6115 packet. */
6d820c5c 6116 skip_frame ();
d6f7abdf 6117 serial_write (remote_desc, "+", 1);
23860348 6118 continue; /* Now, go look for +. */
c906108c 6119 }
74531fed
PA
6120
6121 case '%':
6122 {
6123 int val;
6124
6125 /* If we got a notification, handle it, and go back to looking
6126 for an ack. */
6127 /* We've found the start of a notification. Now
6128 collect the data. */
6129 val = read_frame (&rs->buf, &rs->buf_size);
6130 if (val >= 0)
6131 {
6132 if (remote_debug)
6133 {
6e5abd65
PA
6134 struct cleanup *old_chain;
6135 char *str;
6136
6137 str = escape_buffer (rs->buf, val);
6138 old_chain = make_cleanup (xfree, str);
6139 fprintf_unfiltered (gdb_stdlog,
6140 " Notification received: %s\n",
6141 str);
6142 do_cleanups (old_chain);
74531fed
PA
6143 }
6144 handle_notification (rs->buf, val);
6145 /* We're in sync now, rewait for the ack. */
6146 tcount = 0;
6147 }
6148 else
6149 {
6150 if (remote_debug)
6151 {
6152 if (!started_error_output)
6153 {
6154 started_error_output = 1;
6155 fprintf_unfiltered (gdb_stdlog, "putpkt: Junk: ");
6156 }
6157 fputc_unfiltered (ch & 0177, gdb_stdlog);
6158 fprintf_unfiltered (gdb_stdlog, "%s", rs->buf);
6159 }
6160 }
6161 continue;
6162 }
6163 /* fall-through */
c906108c
SS
6164 default:
6165 if (remote_debug)
6166 {
6167 if (!started_error_output)
6168 {
6169 started_error_output = 1;
0f71a2f6 6170 fprintf_unfiltered (gdb_stdlog, "putpkt: Junk: ");
c906108c 6171 }
0f71a2f6 6172 fputc_unfiltered (ch & 0177, gdb_stdlog);
c906108c
SS
6173 }
6174 continue;
6175 }
23860348 6176 break; /* Here to retransmit. */
c906108c
SS
6177 }
6178
6179#if 0
6180 /* This is wrong. If doing a long backtrace, the user should be
c5aa993b
JM
6181 able to get out next time we call QUIT, without anything as
6182 violent as interrupt_query. If we want to provide a way out of
6183 here without getting to the next QUIT, it should be based on
6184 hitting ^C twice as in remote_wait. */
c906108c
SS
6185 if (quit_flag)
6186 {
6187 quit_flag = 0;
6188 interrupt_query ();
6189 }
6190#endif
6191 }
a6f3e723 6192 return 0;
c906108c
SS
6193}
6194
6d820c5c
DJ
6195/* Come here after finding the start of a frame when we expected an
6196 ack. Do our best to discard the rest of this packet. */
6197
6198static void
6199skip_frame (void)
6200{
6201 int c;
6202
6203 while (1)
6204 {
6205 c = readchar (remote_timeout);
6206 switch (c)
6207 {
6208 case SERIAL_TIMEOUT:
6209 /* Nothing we can do. */
6210 return;
6211 case '#':
6212 /* Discard the two bytes of checksum and stop. */
6213 c = readchar (remote_timeout);
6214 if (c >= 0)
6215 c = readchar (remote_timeout);
6216
6217 return;
6218 case '*': /* Run length encoding. */
6219 /* Discard the repeat count. */
6220 c = readchar (remote_timeout);
6221 if (c < 0)
6222 return;
6223 break;
6224 default:
6225 /* A regular character. */
6226 break;
6227 }
6228 }
6229}
6230
c906108c 6231/* Come here after finding the start of the frame. Collect the rest
6d820c5c
DJ
6232 into *BUF, verifying the checksum, length, and handling run-length
6233 compression. NUL terminate the buffer. If there is not enough room,
6234 expand *BUF using xrealloc.
c906108c 6235
c2d11a7d
JM
6236 Returns -1 on error, number of characters in buffer (ignoring the
6237 trailing NULL) on success. (could be extended to return one of the
23860348 6238 SERIAL status indications). */
c2d11a7d
JM
6239
6240static long
6d820c5c
DJ
6241read_frame (char **buf_p,
6242 long *sizeof_buf)
c906108c
SS
6243{
6244 unsigned char csum;
c2d11a7d 6245 long bc;
c906108c 6246 int c;
6d820c5c 6247 char *buf = *buf_p;
a6f3e723 6248 struct remote_state *rs = get_remote_state ();
c906108c
SS
6249
6250 csum = 0;
c2d11a7d 6251 bc = 0;
c906108c
SS
6252
6253 while (1)
6254 {
6255 c = readchar (remote_timeout);
c906108c
SS
6256 switch (c)
6257 {
6258 case SERIAL_TIMEOUT:
6259 if (remote_debug)
0f71a2f6 6260 fputs_filtered ("Timeout in mid-packet, retrying\n", gdb_stdlog);
c2d11a7d 6261 return -1;
c906108c
SS
6262 case '$':
6263 if (remote_debug)
0f71a2f6
JM
6264 fputs_filtered ("Saw new packet start in middle of old one\n",
6265 gdb_stdlog);
23860348 6266 return -1; /* Start a new packet, count retries. */
c906108c
SS
6267 case '#':
6268 {
6269 unsigned char pktcsum;
e1b09194
AC
6270 int check_0 = 0;
6271 int check_1 = 0;
c906108c 6272
c2d11a7d 6273 buf[bc] = '\0';
c906108c 6274
e1b09194
AC
6275 check_0 = readchar (remote_timeout);
6276 if (check_0 >= 0)
6277 check_1 = readchar (remote_timeout);
802188a7 6278
e1b09194
AC
6279 if (check_0 == SERIAL_TIMEOUT || check_1 == SERIAL_TIMEOUT)
6280 {
6281 if (remote_debug)
2bc416ba 6282 fputs_filtered ("Timeout in checksum, retrying\n",
23860348 6283 gdb_stdlog);
e1b09194
AC
6284 return -1;
6285 }
6286 else if (check_0 < 0 || check_1 < 0)
40e3f985
FN
6287 {
6288 if (remote_debug)
2bc416ba 6289 fputs_filtered ("Communication error in checksum\n",
23860348 6290 gdb_stdlog);
40e3f985
FN
6291 return -1;
6292 }
c906108c 6293
a6f3e723
SL
6294 /* Don't recompute the checksum; with no ack packets we
6295 don't have any way to indicate a packet retransmission
6296 is necessary. */
6297 if (rs->noack_mode)
6298 return bc;
6299
e1b09194 6300 pktcsum = (fromhex (check_0) << 4) | fromhex (check_1);
c906108c 6301 if (csum == pktcsum)
c2d11a7d 6302 return bc;
c906108c 6303
c5aa993b 6304 if (remote_debug)
c906108c 6305 {
6e5abd65
PA
6306 struct cleanup *old_chain;
6307 char *str;
6308
6309 str = escape_buffer (buf, bc);
6310 old_chain = make_cleanup (xfree, str);
6311 fprintf_unfiltered (gdb_stdlog,
6312 "\
6313Bad checksum, sentsum=0x%x, csum=0x%x, buf=%s\n",
6314 pktcsum, csum, str);
6315 do_cleanups (old_chain);
c906108c 6316 }
c2d11a7d 6317 /* Number of characters in buffer ignoring trailing
23860348 6318 NULL. */
c2d11a7d 6319 return -1;
c906108c 6320 }
23860348 6321 case '*': /* Run length encoding. */
c2c6d25f
JM
6322 {
6323 int repeat;
6324 csum += c;
c906108c 6325
b4501125
AC
6326 c = readchar (remote_timeout);
6327 csum += c;
23860348 6328 repeat = c - ' ' + 3; /* Compute repeat count. */
c906108c 6329
23860348 6330 /* The character before ``*'' is repeated. */
c2d11a7d 6331
6d820c5c 6332 if (repeat > 0 && repeat <= 255 && bc > 0)
c2c6d25f 6333 {
6d820c5c
DJ
6334 if (bc + repeat - 1 >= *sizeof_buf - 1)
6335 {
6336 /* Make some more room in the buffer. */
6337 *sizeof_buf += repeat;
6338 *buf_p = xrealloc (*buf_p, *sizeof_buf);
6339 buf = *buf_p;
6340 }
6341
c2d11a7d
JM
6342 memset (&buf[bc], buf[bc - 1], repeat);
6343 bc += repeat;
c2c6d25f
JM
6344 continue;
6345 }
6346
c2d11a7d 6347 buf[bc] = '\0';
6d820c5c 6348 printf_filtered (_("Invalid run length encoding: %s\n"), buf);
c2d11a7d 6349 return -1;
c2c6d25f 6350 }
c906108c 6351 default:
6d820c5c 6352 if (bc >= *sizeof_buf - 1)
c906108c 6353 {
6d820c5c
DJ
6354 /* Make some more room in the buffer. */
6355 *sizeof_buf *= 2;
6356 *buf_p = xrealloc (*buf_p, *sizeof_buf);
6357 buf = *buf_p;
c906108c
SS
6358 }
6359
6d820c5c
DJ
6360 buf[bc++] = c;
6361 csum += c;
6362 continue;
c906108c
SS
6363 }
6364 }
6365}
6366
6367/* Read a packet from the remote machine, with error checking, and
6d820c5c
DJ
6368 store it in *BUF. Resize *BUF using xrealloc if necessary to hold
6369 the result, and update *SIZEOF_BUF. If FOREVER, wait forever
6370 rather than timing out; this is used (in synchronous mode) to wait
6371 for a target that is is executing user code to stop. */
d9fcf2fb
JM
6372/* FIXME: ezannoni 2000-02-01 this wrapper is necessary so that we
6373 don't have to change all the calls to getpkt to deal with the
6374 return value, because at the moment I don't know what the right
23860348 6375 thing to do it for those. */
c906108c 6376void
6d820c5c
DJ
6377getpkt (char **buf,
6378 long *sizeof_buf,
c2d11a7d 6379 int forever)
d9fcf2fb
JM
6380{
6381 int timed_out;
6382
6383 timed_out = getpkt_sane (buf, sizeof_buf, forever);
6384}
6385
6386
6387/* Read a packet from the remote machine, with error checking, and
6d820c5c
DJ
6388 store it in *BUF. Resize *BUF using xrealloc if necessary to hold
6389 the result, and update *SIZEOF_BUF. If FOREVER, wait forever
6390 rather than timing out; this is used (in synchronous mode) to wait
6391 for a target that is is executing user code to stop. If FOREVER ==
6392 0, this function is allowed to time out gracefully and return an
74531fed
PA
6393 indication of this to the caller. Otherwise return the number of
6394 bytes read. If EXPECTING_NOTIF, consider receiving a notification
6395 enough reason to return to the caller. */
6396
3172dc30 6397static int
74531fed
PA
6398getpkt_or_notif_sane_1 (char **buf, long *sizeof_buf, int forever,
6399 int expecting_notif)
c906108c 6400{
2d717e4f 6401 struct remote_state *rs = get_remote_state ();
c906108c
SS
6402 int c;
6403 int tries;
6404 int timeout;
6405 int val;
6406
2d717e4f
DJ
6407 /* We're reading a new response. Make sure we don't look at a
6408 previously cached response. */
6409 rs->cached_wait_status = 0;
6410
6d820c5c 6411 strcpy (*buf, "timeout");
c906108c
SS
6412
6413 if (forever)
74531fed
PA
6414 timeout = watchdog > 0 ? watchdog : -1;
6415 else if (expecting_notif)
6416 timeout = 0; /* There should already be a char in the buffer. If
6417 not, bail out. */
c906108c
SS
6418 else
6419 timeout = remote_timeout;
6420
6421#define MAX_TRIES 3
6422
74531fed
PA
6423 /* Process any number of notifications, and then return when
6424 we get a packet. */
6425 for (;;)
c906108c 6426 {
74531fed
PA
6427 /* If we get a timeout or bad checksm, retry up to MAX_TRIES
6428 times. */
6429 for (tries = 1; tries <= MAX_TRIES; tries++)
c906108c 6430 {
74531fed
PA
6431 /* This can loop forever if the remote side sends us
6432 characters continuously, but if it pauses, we'll get
6433 SERIAL_TIMEOUT from readchar because of timeout. Then
6434 we'll count that as a retry.
6435
6436 Note that even when forever is set, we will only wait
6437 forever prior to the start of a packet. After that, we
6438 expect characters to arrive at a brisk pace. They should
6439 show up within remote_timeout intervals. */
6440 do
6441 c = readchar (timeout);
6442 while (c != SERIAL_TIMEOUT && c != '$' && c != '%');
c906108c
SS
6443
6444 if (c == SERIAL_TIMEOUT)
6445 {
74531fed
PA
6446 if (expecting_notif)
6447 return -1; /* Don't complain, it's normal to not get
6448 anything in this case. */
6449
23860348 6450 if (forever) /* Watchdog went off? Kill the target. */
c906108c 6451 {
2acceee2 6452 QUIT;
ce5ce7ed 6453 pop_target ();
489eaeba 6454 error (_("Watchdog timeout has expired. Target detached."));
c906108c 6455 }
c906108c 6456 if (remote_debug)
0f71a2f6 6457 fputs_filtered ("Timed out.\n", gdb_stdlog);
c906108c 6458 }
74531fed
PA
6459 else
6460 {
6461 /* We've found the start of a packet or notification.
6462 Now collect the data. */
6463 val = read_frame (buf, sizeof_buf);
6464 if (val >= 0)
6465 break;
6466 }
6467
6468 serial_write (remote_desc, "-", 1);
c906108c 6469 }
c906108c 6470
74531fed
PA
6471 if (tries > MAX_TRIES)
6472 {
6473 /* We have tried hard enough, and just can't receive the
6474 packet/notification. Give up. */
6475 printf_unfiltered (_("Ignoring packet error, continuing...\n"));
c906108c 6476
74531fed
PA
6477 /* Skip the ack char if we're in no-ack mode. */
6478 if (!rs->noack_mode)
6479 serial_write (remote_desc, "+", 1);
6480 return -1;
6481 }
c906108c 6482
74531fed
PA
6483 /* If we got an ordinary packet, return that to our caller. */
6484 if (c == '$')
c906108c
SS
6485 {
6486 if (remote_debug)
43e526b9 6487 {
6e5abd65
PA
6488 struct cleanup *old_chain;
6489 char *str;
6490
6491 str = escape_buffer (*buf, val);
6492 old_chain = make_cleanup (xfree, str);
6493 fprintf_unfiltered (gdb_stdlog, "Packet received: %s\n", str);
6494 do_cleanups (old_chain);
43e526b9 6495 }
a6f3e723
SL
6496
6497 /* Skip the ack char if we're in no-ack mode. */
6498 if (!rs->noack_mode)
6499 serial_write (remote_desc, "+", 1);
0876f84a 6500 return val;
c906108c
SS
6501 }
6502
74531fed
PA
6503 /* If we got a notification, handle it, and go back to looking
6504 for a packet. */
6505 else
6506 {
6507 gdb_assert (c == '%');
6508
6509 if (remote_debug)
6510 {
6e5abd65
PA
6511 struct cleanup *old_chain;
6512 char *str;
6513
6514 str = escape_buffer (*buf, val);
6515 old_chain = make_cleanup (xfree, str);
6516 fprintf_unfiltered (gdb_stdlog,
6517 " Notification received: %s\n",
6518 str);
6519 do_cleanups (old_chain);
74531fed 6520 }
c906108c 6521
74531fed 6522 handle_notification (*buf, val);
c906108c 6523
74531fed 6524 /* Notifications require no acknowledgement. */
a6f3e723 6525
74531fed
PA
6526 if (expecting_notif)
6527 return -1;
6528 }
6529 }
6530}
6531
6532static int
6533getpkt_sane (char **buf, long *sizeof_buf, int forever)
6534{
6535 return getpkt_or_notif_sane_1 (buf, sizeof_buf, forever, 0);
6536}
6537
6538static int
6539getpkt_or_notif_sane (char **buf, long *sizeof_buf, int forever)
6540{
6541 return getpkt_or_notif_sane_1 (buf, sizeof_buf, forever, 1);
c906108c 6542}
74531fed 6543
c906108c
SS
6544\f
6545static void
7d85a9c0 6546remote_kill (struct target_ops *ops)
43ff13b4 6547{
23860348
MS
6548 /* Use catch_errors so the user can quit from gdb even when we
6549 aren't on speaking terms with the remote system. */
c5aa993b 6550 catch_errors ((catch_errors_ftype *) putpkt, "k", "", RETURN_MASK_ERROR);
43ff13b4
JM
6551
6552 /* Don't wait for it to die. I'm not really sure it matters whether
6553 we do or not. For the existing stubs, kill is a noop. */
6554 target_mourn_inferior ();
6555}
6556
82f73884
PA
6557static int
6558remote_vkill (int pid, struct remote_state *rs)
6559{
6560 if (remote_protocol_packets[PACKET_vKill].support == PACKET_DISABLE)
6561 return -1;
6562
6563 /* Tell the remote target to detach. */
6564 sprintf (rs->buf, "vKill;%x", pid);
6565 putpkt (rs->buf);
6566 getpkt (&rs->buf, &rs->buf_size, 0);
6567
6568 if (packet_ok (rs->buf,
6569 &remote_protocol_packets[PACKET_vKill]) == PACKET_OK)
6570 return 0;
6571 else if (remote_protocol_packets[PACKET_vKill].support == PACKET_DISABLE)
6572 return -1;
6573 else
6574 return 1;
6575}
6576
6577static void
7d85a9c0 6578extended_remote_kill (struct target_ops *ops)
82f73884
PA
6579{
6580 int res;
6581 int pid = ptid_get_pid (inferior_ptid);
6582 struct remote_state *rs = get_remote_state ();
6583
6584 res = remote_vkill (pid, rs);
6585 if (res == -1 && !remote_multi_process_p (rs))
6586 {
6587 /* Don't try 'k' on a multi-process aware stub -- it has no way
6588 to specify the pid. */
6589
6590 putpkt ("k");
6591#if 0
6592 getpkt (&rs->buf, &rs->buf_size, 0);
6593 if (rs->buf[0] != 'O' || rs->buf[0] != 'K')
6594 res = 1;
6595#else
6596 /* Don't wait for it to die. I'm not really sure it matters whether
6597 we do or not. For the existing stubs, kill is a noop. */
6598 res = 0;
6599#endif
6600 }
6601
6602 if (res != 0)
6603 error (_("Can't kill process"));
6604
82f73884
PA
6605 target_mourn_inferior ();
6606}
6607
c906108c 6608static void
136d6dae 6609remote_mourn (struct target_ops *ops)
c906108c 6610{
136d6dae 6611 remote_mourn_1 (ops);
c906108c
SS
6612}
6613
c906108c
SS
6614/* Worker function for remote_mourn. */
6615static void
fba45db2 6616remote_mourn_1 (struct target_ops *target)
c906108c
SS
6617{
6618 unpush_target (target);
ce5ce7ed 6619
8a2492ee
PA
6620 /* remote_close takes care of doing most of the clean up. */
6621 generic_mourn_inferior ();
c906108c
SS
6622}
6623
2d717e4f
DJ
6624static void
6625extended_remote_mourn_1 (struct target_ops *target)
6626{
6627 struct remote_state *rs = get_remote_state ();
c906108c 6628
e24a49d8
PA
6629 /* In case we got here due to an error, but we're going to stay
6630 connected. */
6631 rs->waiting_for_stop_reply = 0;
6632
74531fed
PA
6633 /* We're no longer interested in these events. */
6634 discard_pending_stop_replies (ptid_get_pid (inferior_ptid));
6635
dc1981d7
PA
6636 /* If the current general thread belonged to the process we just
6637 detached from or has exited, the remote side current general
6638 thread becomes undefined. Considering a case like this:
6639
6640 - We just got here due to a detach.
6641 - The process that we're detaching from happens to immediately
6642 report a global breakpoint being hit in non-stop mode, in the
6643 same thread we had selected before.
6644 - GDB attaches to this process again.
6645 - This event happens to be the next event we handle.
6646
6647 GDB would consider that the current general thread didn't need to
6648 be set on the stub side (with Hg), since for all it knew,
6649 GENERAL_THREAD hadn't changed.
6650
6651 Notice that although in all-stop mode, the remote server always
6652 sets the current thread to the thread reporting the stop event,
6653 that doesn't happen in non-stop mode; in non-stop, the stub *must
6654 not* change the current thread when reporting a breakpoint hit,
6655 due to the decoupling of event reporting and event handling.
6656
6657 To keep things simple, we always invalidate our notion of the
6658 current thread. */
6659 record_currthread (minus_one_ptid);
6660
2d717e4f
DJ
6661 /* Unlike "target remote", we do not want to unpush the target; then
6662 the next time the user says "run", we won't be connected. */
6663
48aa3c27
PA
6664 /* Call common code to mark the inferior as not running. */
6665 generic_mourn_inferior ();
6666
d729566a 6667 if (!have_inferiors ())
2d717e4f 6668 {
82f73884
PA
6669 if (!remote_multi_process_p (rs))
6670 {
6671 /* Check whether the target is running now - some remote stubs
6672 automatically restart after kill. */
6673 putpkt ("?");
6674 getpkt (&rs->buf, &rs->buf_size, 0);
6675
6676 if (rs->buf[0] == 'S' || rs->buf[0] == 'T')
6677 {
6678 /* Assume that the target has been restarted. Set inferior_ptid
6679 so that bits of core GDB realizes there's something here, e.g.,
6680 so that the user can say "kill" again. */
6681 inferior_ptid = magic_null_ptid;
6682 }
6683 else
6684 {
6685 /* Mark this (still pushed) target as not executable until we
6686 restart it. */
6687 target_mark_exited (target);
6688 }
6689 }
6690 else
6691 /* Always remove execution if this was the last process. */
6692 target_mark_exited (target);
2d717e4f
DJ
6693 }
6694}
c906108c
SS
6695
6696static void
136d6dae 6697extended_remote_mourn (struct target_ops *ops)
c906108c 6698{
136d6dae 6699 extended_remote_mourn_1 (ops);
2d717e4f 6700}
c906108c 6701
2d717e4f
DJ
6702static int
6703extended_remote_run (char *args)
6704{
6705 struct remote_state *rs = get_remote_state ();
6706 char *p;
6707 int len;
c906108c 6708
2d717e4f
DJ
6709 /* If the user has disabled vRun support, or we have detected that
6710 support is not available, do not try it. */
6711 if (remote_protocol_packets[PACKET_vRun].support == PACKET_DISABLE)
6712 return -1;
424163ea 6713
2d717e4f
DJ
6714 strcpy (rs->buf, "vRun;");
6715 len = strlen (rs->buf);
c906108c 6716
2d717e4f
DJ
6717 if (strlen (remote_exec_file) * 2 + len >= get_remote_packet_size ())
6718 error (_("Remote file name too long for run packet"));
6719 len += 2 * bin2hex ((gdb_byte *) remote_exec_file, rs->buf + len, 0);
6720
d1a41061 6721 gdb_assert (args != NULL);
2d717e4f
DJ
6722 if (*args)
6723 {
6724 struct cleanup *back_to;
6725 int i;
6726 char **argv;
6727
d1a41061 6728 argv = gdb_buildargv (args);
2d717e4f
DJ
6729 back_to = make_cleanup ((void (*) (void *)) freeargv, argv);
6730 for (i = 0; argv[i] != NULL; i++)
6731 {
6732 if (strlen (argv[i]) * 2 + 1 + len >= get_remote_packet_size ())
6733 error (_("Argument list too long for run packet"));
6734 rs->buf[len++] = ';';
6735 len += 2 * bin2hex ((gdb_byte *) argv[i], rs->buf + len, 0);
6736 }
6737 do_cleanups (back_to);
6738 }
6739
6740 rs->buf[len++] = '\0';
6741
6742 putpkt (rs->buf);
6743 getpkt (&rs->buf, &rs->buf_size, 0);
6744
6745 if (packet_ok (rs->buf, &remote_protocol_packets[PACKET_vRun]) == PACKET_OK)
6746 {
6747 /* We have a wait response; we don't need it, though. All is well. */
6748 return 0;
6749 }
6750 else if (remote_protocol_packets[PACKET_vRun].support == PACKET_DISABLE)
6751 /* It wasn't disabled before, but it is now. */
6752 return -1;
6753 else
6754 {
6755 if (remote_exec_file[0] == '\0')
6756 error (_("Running the default executable on the remote target failed; "
6757 "try \"set remote exec-file\"?"));
6758 else
6759 error (_("Running \"%s\" on the remote target failed"),
6760 remote_exec_file);
6761 }
c906108c
SS
6762}
6763
2d717e4f
DJ
6764/* In the extended protocol we want to be able to do things like
6765 "run" and have them basically work as expected. So we need
6766 a special create_inferior function. We support changing the
6767 executable file and the command line arguments, but not the
6768 environment. */
6769
43ff13b4 6770static void
2d717e4f 6771extended_remote_create_inferior_1 (char *exec_file, char *args,
75c99385 6772 char **env, int from_tty)
43ff13b4 6773{
43ff13b4 6774 /* If running asynchronously, register the target file descriptor
23860348 6775 with the event loop. */
75c99385 6776 if (target_can_async_p ())
2acceee2 6777 target_async (inferior_event_handler, 0);
43ff13b4
JM
6778
6779 /* Now restart the remote server. */
2d717e4f
DJ
6780 if (extended_remote_run (args) == -1)
6781 {
6782 /* vRun was not supported. Fail if we need it to do what the
6783 user requested. */
6784 if (remote_exec_file[0])
6785 error (_("Remote target does not support \"set remote exec-file\""));
6786 if (args[0])
6787 error (_("Remote target does not support \"set args\" or run <ARGS>"));
43ff13b4 6788
2d717e4f
DJ
6789 /* Fall back to "R". */
6790 extended_remote_restart ();
6791 }
424163ea 6792
45280a52
DJ
6793 /* Clean up from the last time we ran, before we mark the target
6794 running again. This will mark breakpoints uninserted, and
6795 get_offsets may insert breakpoints. */
6796 init_thread_list ();
6797 init_wait_for_inferior ();
6798
2d717e4f 6799 /* Now mark the inferior as running before we do anything else. */
79d7f229 6800 inferior_ptid = magic_null_ptid;
c0a2216e 6801
74531fed
PA
6802 /* Now, if we have thread information, update inferior_ptid. */
6803 inferior_ptid = remote_current_thread (inferior_ptid);
6804
0b16c5cf 6805 remote_add_inferior (ptid_get_pid (inferior_ptid), 0);
c0a2216e
PA
6806 add_thread_silent (inferior_ptid);
6807
2d717e4f
DJ
6808 /* Get updated offsets, if the stub uses qOffsets. */
6809 get_offsets ();
2d717e4f
DJ
6810}
6811
6812static void
136d6dae
VP
6813extended_remote_create_inferior (struct target_ops *ops,
6814 char *exec_file, char *args,
2d717e4f
DJ
6815 char **env, int from_tty)
6816{
75c99385 6817 extended_remote_create_inferior_1 (exec_file, args, env, from_tty);
43ff13b4 6818}
c906108c 6819\f
c5aa993b 6820
8181d85f
DJ
6821/* Insert a breakpoint. On targets that have software breakpoint
6822 support, we ask the remote target to do the work; on targets
6823 which don't, we insert a traditional memory breakpoint. */
c906108c
SS
6824
6825static int
8181d85f 6826remote_insert_breakpoint (struct bp_target_info *bp_tgt)
c906108c 6827{
d471ea57
AC
6828 /* Try the "Z" s/w breakpoint packet if it is not already disabled.
6829 If it succeeds, then set the support to PACKET_ENABLE. If it
6830 fails, and the user has explicitly requested the Z support then
23860348 6831 report an error, otherwise, mark it disabled and go on. */
802188a7 6832
444abaca 6833 if (remote_protocol_packets[PACKET_Z0].support != PACKET_DISABLE)
96baa820 6834 {
7c0f6dcc 6835 CORE_ADDR addr = bp_tgt->placed_address;
4fff2411
JZ
6836 struct remote_state *rs;
6837 char *p;
7c0f6dcc 6838 int bpsize;
4fff2411 6839
1cf3db46 6840 gdbarch_breakpoint_from_pc (target_gdbarch, &addr, &bpsize);
4fff2411
JZ
6841
6842 rs = get_remote_state ();
6843 p = rs->buf;
802188a7 6844
96baa820
JM
6845 *(p++) = 'Z';
6846 *(p++) = '0';
6847 *(p++) = ',';
7c0f6dcc 6848 addr = (ULONGEST) remote_address_masked (addr);
8181d85f 6849 p += hexnumstr (p, addr);
7c0f6dcc 6850 sprintf (p, ",%d", bpsize);
802188a7 6851
6d820c5c
DJ
6852 putpkt (rs->buf);
6853 getpkt (&rs->buf, &rs->buf_size, 0);
96baa820 6854
6d820c5c 6855 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z0]))
96baa820 6856 {
d471ea57
AC
6857 case PACKET_ERROR:
6858 return -1;
6859 case PACKET_OK:
7c0f6dcc
JL
6860 bp_tgt->placed_address = addr;
6861 bp_tgt->placed_size = bpsize;
d471ea57
AC
6862 return 0;
6863 case PACKET_UNKNOWN:
6864 break;
96baa820
JM
6865 }
6866 }
c906108c 6867
8181d85f 6868 return memory_insert_breakpoint (bp_tgt);
c906108c
SS
6869}
6870
6871static int
8181d85f 6872remote_remove_breakpoint (struct bp_target_info *bp_tgt)
c906108c 6873{
8181d85f 6874 CORE_ADDR addr = bp_tgt->placed_address;
d01949b6 6875 struct remote_state *rs = get_remote_state ();
96baa820
JM
6876 int bp_size;
6877
444abaca 6878 if (remote_protocol_packets[PACKET_Z0].support != PACKET_DISABLE)
96baa820 6879 {
6d820c5c 6880 char *p = rs->buf;
802188a7 6881
96baa820
JM
6882 *(p++) = 'z';
6883 *(p++) = '0';
6884 *(p++) = ',';
6885
8181d85f
DJ
6886 addr = (ULONGEST) remote_address_masked (bp_tgt->placed_address);
6887 p += hexnumstr (p, addr);
6888 sprintf (p, ",%d", bp_tgt->placed_size);
802188a7 6889
6d820c5c
DJ
6890 putpkt (rs->buf);
6891 getpkt (&rs->buf, &rs->buf_size, 0);
96baa820 6892
6d820c5c 6893 return (rs->buf[0] == 'E');
96baa820
JM
6894 }
6895
8181d85f 6896 return memory_remove_breakpoint (bp_tgt);
c906108c
SS
6897}
6898
d471ea57
AC
6899static int
6900watchpoint_to_Z_packet (int type)
6901{
6902 switch (type)
6903 {
6904 case hw_write:
bb858e6a 6905 return Z_PACKET_WRITE_WP;
d471ea57
AC
6906 break;
6907 case hw_read:
bb858e6a 6908 return Z_PACKET_READ_WP;
d471ea57
AC
6909 break;
6910 case hw_access:
bb858e6a 6911 return Z_PACKET_ACCESS_WP;
d471ea57
AC
6912 break;
6913 default:
8e65ff28 6914 internal_error (__FILE__, __LINE__,
e2e0b3e5 6915 _("hw_bp_to_z: bad watchpoint type %d"), type);
d471ea57
AC
6916 }
6917}
6918
3c3bea1c 6919static int
fba45db2 6920remote_insert_watchpoint (CORE_ADDR addr, int len, int type)
96baa820 6921{
d01949b6 6922 struct remote_state *rs = get_remote_state ();
e514a9d6 6923 char *p;
d471ea57 6924 enum Z_packet_type packet = watchpoint_to_Z_packet (type);
96baa820 6925
444abaca 6926 if (remote_protocol_packets[PACKET_Z0 + packet].support == PACKET_DISABLE)
5cffb350 6927 return -1;
802188a7 6928
6d820c5c
DJ
6929 sprintf (rs->buf, "Z%x,", packet);
6930 p = strchr (rs->buf, '\0');
96baa820
JM
6931 addr = remote_address_masked (addr);
6932 p += hexnumstr (p, (ULONGEST) addr);
d4f3574e 6933 sprintf (p, ",%x", len);
802188a7 6934
6d820c5c
DJ
6935 putpkt (rs->buf);
6936 getpkt (&rs->buf, &rs->buf_size, 0);
96baa820 6937
6d820c5c 6938 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z0 + packet]))
d471ea57
AC
6939 {
6940 case PACKET_ERROR:
6941 case PACKET_UNKNOWN:
6942 return -1;
6943 case PACKET_OK:
6944 return 0;
6945 }
8e65ff28 6946 internal_error (__FILE__, __LINE__,
e2e0b3e5 6947 _("remote_insert_watchpoint: reached end of function"));
96baa820
JM
6948}
6949
d471ea57 6950
3c3bea1c 6951static int
fba45db2 6952remote_remove_watchpoint (CORE_ADDR addr, int len, int type)
96baa820 6953{
d01949b6 6954 struct remote_state *rs = get_remote_state ();
e514a9d6 6955 char *p;
d471ea57
AC
6956 enum Z_packet_type packet = watchpoint_to_Z_packet (type);
6957
444abaca 6958 if (remote_protocol_packets[PACKET_Z0 + packet].support == PACKET_DISABLE)
5cffb350 6959 return -1;
802188a7 6960
6d820c5c
DJ
6961 sprintf (rs->buf, "z%x,", packet);
6962 p = strchr (rs->buf, '\0');
96baa820
JM
6963 addr = remote_address_masked (addr);
6964 p += hexnumstr (p, (ULONGEST) addr);
d4f3574e 6965 sprintf (p, ",%x", len);
6d820c5c
DJ
6966 putpkt (rs->buf);
6967 getpkt (&rs->buf, &rs->buf_size, 0);
96baa820 6968
6d820c5c 6969 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z0 + packet]))
d471ea57
AC
6970 {
6971 case PACKET_ERROR:
6972 case PACKET_UNKNOWN:
6973 return -1;
6974 case PACKET_OK:
6975 return 0;
6976 }
8e65ff28 6977 internal_error (__FILE__, __LINE__,
e2e0b3e5 6978 _("remote_remove_watchpoint: reached end of function"));
96baa820
JM
6979}
6980
3c3bea1c 6981
501eef12
AC
6982int remote_hw_watchpoint_limit = -1;
6983int remote_hw_breakpoint_limit = -1;
d471ea57 6984
b9362cc7 6985static int
3c3bea1c 6986remote_check_watch_resources (int type, int cnt, int ot)
96baa820 6987{
3c3bea1c
GS
6988 if (type == bp_hardware_breakpoint)
6989 {
6990 if (remote_hw_breakpoint_limit == 0)
6991 return 0;
501eef12
AC
6992 else if (remote_hw_breakpoint_limit < 0)
6993 return 1;
3c3bea1c
GS
6994 else if (cnt <= remote_hw_breakpoint_limit)
6995 return 1;
6996 }
6997 else
6998 {
6999 if (remote_hw_watchpoint_limit == 0)
7000 return 0;
501eef12
AC
7001 else if (remote_hw_watchpoint_limit < 0)
7002 return 1;
3c3bea1c
GS
7003 else if (ot)
7004 return -1;
7005 else if (cnt <= remote_hw_watchpoint_limit)
7006 return 1;
7007 }
7008 return -1;
7009}
7010
b9362cc7 7011static int
3c3bea1c
GS
7012remote_stopped_by_watchpoint (void)
7013{
82f73884 7014 return remote_stopped_by_watchpoint_p;
3c3bea1c
GS
7015}
7016
4aa7a7f5
JJ
7017static int
7018remote_stopped_data_address (struct target_ops *target, CORE_ADDR *addr_p)
3c3bea1c 7019{
4aa7a7f5 7020 int rc = 0;
d983da9c 7021 if (remote_stopped_by_watchpoint ())
4aa7a7f5
JJ
7022 {
7023 *addr_p = remote_watch_data_address;
7024 rc = 1;
7025 }
7026
7027 return rc;
3c3bea1c
GS
7028}
7029
7030
7031static int
8181d85f 7032remote_insert_hw_breakpoint (struct bp_target_info *bp_tgt)
3c3bea1c 7033{
8181d85f 7034 CORE_ADDR addr;
4fff2411
JZ
7035 struct remote_state *rs;
7036 char *p;
802188a7 7037
c8189ed1 7038 /* The length field should be set to the size of a breakpoint
8181d85f 7039 instruction, even though we aren't inserting one ourselves. */
c8189ed1 7040
3b3b875c 7041 gdbarch_breakpoint_from_pc
1cf3db46 7042 (target_gdbarch, &bp_tgt->placed_address, &bp_tgt->placed_size);
3c3bea1c 7043
444abaca 7044 if (remote_protocol_packets[PACKET_Z1].support == PACKET_DISABLE)
5cffb350 7045 return -1;
2bc416ba 7046
4fff2411
JZ
7047 rs = get_remote_state ();
7048 p = rs->buf;
7049
96baa820
JM
7050 *(p++) = 'Z';
7051 *(p++) = '1';
7052 *(p++) = ',';
802188a7 7053
8181d85f 7054 addr = remote_address_masked (bp_tgt->placed_address);
96baa820 7055 p += hexnumstr (p, (ULONGEST) addr);
8181d85f 7056 sprintf (p, ",%x", bp_tgt->placed_size);
96baa820 7057
6d820c5c
DJ
7058 putpkt (rs->buf);
7059 getpkt (&rs->buf, &rs->buf_size, 0);
96baa820 7060
6d820c5c 7061 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z1]))
d471ea57
AC
7062 {
7063 case PACKET_ERROR:
7064 case PACKET_UNKNOWN:
7065 return -1;
7066 case PACKET_OK:
7067 return 0;
7068 }
8e65ff28 7069 internal_error (__FILE__, __LINE__,
e2e0b3e5 7070 _("remote_insert_hw_breakpoint: reached end of function"));
96baa820
JM
7071}
7072
d471ea57 7073
802188a7 7074static int
8181d85f 7075remote_remove_hw_breakpoint (struct bp_target_info *bp_tgt)
96baa820 7076{
8181d85f 7077 CORE_ADDR addr;
d01949b6 7078 struct remote_state *rs = get_remote_state ();
6d820c5c 7079 char *p = rs->buf;
c8189ed1 7080
444abaca 7081 if (remote_protocol_packets[PACKET_Z1].support == PACKET_DISABLE)
5cffb350 7082 return -1;
802188a7 7083
96baa820
JM
7084 *(p++) = 'z';
7085 *(p++) = '1';
7086 *(p++) = ',';
802188a7 7087
8181d85f 7088 addr = remote_address_masked (bp_tgt->placed_address);
96baa820 7089 p += hexnumstr (p, (ULONGEST) addr);
8181d85f 7090 sprintf (p, ",%x", bp_tgt->placed_size);
96baa820 7091
6d820c5c
DJ
7092 putpkt (rs->buf);
7093 getpkt (&rs->buf, &rs->buf_size, 0);
802188a7 7094
6d820c5c 7095 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z1]))
d471ea57
AC
7096 {
7097 case PACKET_ERROR:
7098 case PACKET_UNKNOWN:
7099 return -1;
7100 case PACKET_OK:
7101 return 0;
7102 }
8e65ff28 7103 internal_error (__FILE__, __LINE__,
e2e0b3e5 7104 _("remote_remove_hw_breakpoint: reached end of function"));
96baa820 7105}
96baa820 7106
23860348 7107/* Table used by the crc32 function to calcuate the checksum. */
c906108c 7108
c5aa993b
JM
7109static unsigned long crc32_table[256] =
7110{0, 0};
c906108c
SS
7111
7112static unsigned long
fba45db2 7113crc32 (unsigned char *buf, int len, unsigned int crc)
c906108c 7114{
c5aa993b 7115 if (!crc32_table[1])
c906108c 7116 {
23860348 7117 /* Initialize the CRC table and the decoding table. */
c906108c
SS
7118 int i, j;
7119 unsigned int c;
7120
7121 for (i = 0; i < 256; i++)
c5aa993b
JM
7122 {
7123 for (c = i << 24, j = 8; j > 0; --j)
7124 c = c & 0x80000000 ? (c << 1) ^ 0x04c11db7 : (c << 1);
7125 crc32_table[i] = c;
7126 }
c906108c
SS
7127 }
7128
7129 while (len--)
7130 {
7131 crc = (crc << 8) ^ crc32_table[((crc >> 24) ^ *buf) & 255];
7132 buf++;
7133 }
7134 return crc;
7135}
7136
7137/* compare-sections command
7138
7139 With no arguments, compares each loadable section in the exec bfd
7140 with the same memory range on the target, and reports mismatches.
7141 Useful for verifying the image on the target against the exec file.
7142 Depends on the target understanding the new "qCRC:" request. */
7143
e514a9d6
JM
7144/* FIXME: cagney/1999-10-26: This command should be broken down into a
7145 target method (target verify memory) and generic version of the
7146 actual command. This will allow other high-level code (especially
23860348 7147 generic_load()) to make use of this target functionality. */
e514a9d6 7148
c906108c 7149static void
fba45db2 7150compare_sections_command (char *args, int from_tty)
c906108c 7151{
d01949b6 7152 struct remote_state *rs = get_remote_state ();
c906108c
SS
7153 asection *s;
7154 unsigned long host_crc, target_crc;
7155 extern bfd *exec_bfd;
7156 struct cleanup *old_chain;
085dd6e6
JM
7157 char *tmp;
7158 char *sectdata;
ce359b09 7159 const char *sectname;
c906108c
SS
7160 bfd_size_type size;
7161 bfd_vma lma;
7162 int matched = 0;
7163 int mismatched = 0;
7164
7165 if (!exec_bfd)
8a3fe4f8 7166 error (_("command cannot be used without an exec file"));
c906108c
SS
7167 if (!current_target.to_shortname ||
7168 strcmp (current_target.to_shortname, "remote") != 0)
8a3fe4f8 7169 error (_("command can only be used with remote target"));
c906108c 7170
c5aa993b 7171 for (s = exec_bfd->sections; s; s = s->next)
c906108c
SS
7172 {
7173 if (!(s->flags & SEC_LOAD))
c5aa993b 7174 continue; /* skip non-loadable section */
c906108c 7175
2c500098 7176 size = bfd_get_section_size (s);
c906108c 7177 if (size == 0)
c5aa993b 7178 continue; /* skip zero-length section */
c906108c 7179
ce359b09 7180 sectname = bfd_get_section_name (exec_bfd, s);
c906108c 7181 if (args && strcmp (args, sectname) != 0)
c5aa993b 7182 continue; /* not the section selected by user */
c906108c 7183
c5aa993b 7184 matched = 1; /* do this section */
c906108c 7185 lma = s->lma;
23860348 7186 /* FIXME: assumes lma can fit into long. */
ea9c271d 7187 xsnprintf (rs->buf, get_remote_packet_size (), "qCRC:%lx,%lx",
ecbc58df 7188 (long) lma, (long) size);
6d820c5c 7189 putpkt (rs->buf);
c906108c 7190
23860348
MS
7191 /* Be clever; compute the host_crc before waiting for target
7192 reply. */
c906108c 7193 sectdata = xmalloc (size);
b8c9b27d 7194 old_chain = make_cleanup (xfree, sectdata);
c906108c
SS
7195 bfd_get_section_contents (exec_bfd, s, sectdata, 0, size);
7196 host_crc = crc32 ((unsigned char *) sectdata, size, 0xffffffff);
7197
6d820c5c
DJ
7198 getpkt (&rs->buf, &rs->buf_size, 0);
7199 if (rs->buf[0] == 'E')
8a3fe4f8 7200 error (_("target memory fault, section %s, range 0x%s -- 0x%s"),
823ca731 7201 sectname, paddr (lma), paddr (lma + size));
6d820c5c 7202 if (rs->buf[0] != 'C')
8a3fe4f8 7203 error (_("remote target does not support this operation"));
c906108c 7204
6d820c5c 7205 for (target_crc = 0, tmp = &rs->buf[1]; *tmp; tmp++)
c906108c
SS
7206 target_crc = target_crc * 16 + fromhex (*tmp);
7207
d4f3574e
SS
7208 printf_filtered ("Section %s, range 0x%s -- 0x%s: ",
7209 sectname, paddr (lma), paddr (lma + size));
c906108c
SS
7210 if (host_crc == target_crc)
7211 printf_filtered ("matched.\n");
7212 else
c5aa993b
JM
7213 {
7214 printf_filtered ("MIS-MATCHED!\n");
7215 mismatched++;
7216 }
c906108c
SS
7217
7218 do_cleanups (old_chain);
7219 }
7220 if (mismatched > 0)
8a3fe4f8
AC
7221 warning (_("One or more sections of the remote executable does not match\n\
7222the loaded file\n"));
c906108c 7223 if (args && !matched)
a3f17187 7224 printf_filtered (_("No loaded section named '%s'.\n"), args);
c906108c
SS
7225}
7226
0e7f50da
UW
7227/* Write LEN bytes from WRITEBUF into OBJECT_NAME/ANNEX at OFFSET
7228 into remote target. The number of bytes written to the remote
7229 target is returned, or -1 for error. */
7230
7231static LONGEST
7232remote_write_qxfer (struct target_ops *ops, const char *object_name,
7233 const char *annex, const gdb_byte *writebuf,
7234 ULONGEST offset, LONGEST len,
7235 struct packet_config *packet)
7236{
7237 int i, buf_len;
7238 ULONGEST n;
7239 gdb_byte *wbuf;
7240 struct remote_state *rs = get_remote_state ();
7241 int max_size = get_memory_write_packet_size ();
7242
7243 if (packet->support == PACKET_DISABLE)
7244 return -1;
7245
7246 /* Insert header. */
7247 i = snprintf (rs->buf, max_size,
7248 "qXfer:%s:write:%s:%s:",
7249 object_name, annex ? annex : "",
7250 phex_nz (offset, sizeof offset));
7251 max_size -= (i + 1);
7252
7253 /* Escape as much data as fits into rs->buf. */
7254 buf_len = remote_escape_output
7255 (writebuf, len, (rs->buf + i), &max_size, max_size);
7256
7257 if (putpkt_binary (rs->buf, i + buf_len) < 0
7258 || getpkt_sane (&rs->buf, &rs->buf_size, 0) < 0
7259 || packet_ok (rs->buf, packet) != PACKET_OK)
7260 return -1;
7261
7262 unpack_varlen_hex (rs->buf, &n);
7263 return n;
7264}
7265
0876f84a
DJ
7266/* Read OBJECT_NAME/ANNEX from the remote target using a qXfer packet.
7267 Data at OFFSET, of up to LEN bytes, is read into READBUF; the
7268 number of bytes read is returned, or 0 for EOF, or -1 for error.
7269 The number of bytes read may be less than LEN without indicating an
7270 EOF. PACKET is checked and updated to indicate whether the remote
7271 target supports this object. */
7272
7273static LONGEST
7274remote_read_qxfer (struct target_ops *ops, const char *object_name,
7275 const char *annex,
7276 gdb_byte *readbuf, ULONGEST offset, LONGEST len,
7277 struct packet_config *packet)
7278{
7279 static char *finished_object;
7280 static char *finished_annex;
7281 static ULONGEST finished_offset;
7282
7283 struct remote_state *rs = get_remote_state ();
7284 unsigned int total = 0;
7285 LONGEST i, n, packet_len;
7286
7287 if (packet->support == PACKET_DISABLE)
7288 return -1;
7289
7290 /* Check whether we've cached an end-of-object packet that matches
7291 this request. */
7292 if (finished_object)
7293 {
7294 if (strcmp (object_name, finished_object) == 0
7295 && strcmp (annex ? annex : "", finished_annex) == 0
7296 && offset == finished_offset)
7297 return 0;
7298
7299 /* Otherwise, we're now reading something different. Discard
7300 the cache. */
7301 xfree (finished_object);
7302 xfree (finished_annex);
7303 finished_object = NULL;
7304 finished_annex = NULL;
7305 }
7306
7307 /* Request only enough to fit in a single packet. The actual data
7308 may not, since we don't know how much of it will need to be escaped;
7309 the target is free to respond with slightly less data. We subtract
7310 five to account for the response type and the protocol frame. */
7311 n = min (get_remote_packet_size () - 5, len);
7312 snprintf (rs->buf, get_remote_packet_size () - 4, "qXfer:%s:read:%s:%s,%s",
7313 object_name, annex ? annex : "",
7314 phex_nz (offset, sizeof offset),
7315 phex_nz (n, sizeof n));
7316 i = putpkt (rs->buf);
7317 if (i < 0)
7318 return -1;
7319
7320 rs->buf[0] = '\0';
7321 packet_len = getpkt_sane (&rs->buf, &rs->buf_size, 0);
7322 if (packet_len < 0 || packet_ok (rs->buf, packet) != PACKET_OK)
7323 return -1;
7324
7325 if (rs->buf[0] != 'l' && rs->buf[0] != 'm')
7326 error (_("Unknown remote qXfer reply: %s"), rs->buf);
7327
7328 /* 'm' means there is (or at least might be) more data after this
7329 batch. That does not make sense unless there's at least one byte
7330 of data in this reply. */
7331 if (rs->buf[0] == 'm' && packet_len == 1)
7332 error (_("Remote qXfer reply contained no data."));
7333
7334 /* Got some data. */
7335 i = remote_unescape_input (rs->buf + 1, packet_len - 1, readbuf, n);
7336
7337 /* 'l' is an EOF marker, possibly including a final block of data,
0e7f50da
UW
7338 or possibly empty. If we have the final block of a non-empty
7339 object, record this fact to bypass a subsequent partial read. */
7340 if (rs->buf[0] == 'l' && offset + i > 0)
0876f84a
DJ
7341 {
7342 finished_object = xstrdup (object_name);
7343 finished_annex = xstrdup (annex ? annex : "");
7344 finished_offset = offset + i;
7345 }
7346
7347 return i;
7348}
7349
1e3ff5ad 7350static LONGEST
4b8a223f 7351remote_xfer_partial (struct target_ops *ops, enum target_object object,
961cb7b5
MK
7352 const char *annex, gdb_byte *readbuf,
7353 const gdb_byte *writebuf, ULONGEST offset, LONGEST len)
c906108c 7354{
82f73884 7355 struct remote_state *rs;
c906108c 7356 int i;
6d820c5c 7357 char *p2;
1e3ff5ad 7358 char query_type;
c906108c 7359
82f73884
PA
7360 set_general_thread (inferior_ptid);
7361
7362 rs = get_remote_state ();
7363
b2182ed2 7364 /* Handle memory using the standard memory routines. */
21e3b9b9
DJ
7365 if (object == TARGET_OBJECT_MEMORY)
7366 {
7367 int xfered;
7368 errno = 0;
7369
2d717e4f
DJ
7370 /* If the remote target is connected but not running, we should
7371 pass this request down to a lower stratum (e.g. the executable
7372 file). */
7373 if (!target_has_execution)
7374 return 0;
7375
21e3b9b9 7376 if (writebuf != NULL)
b2182ed2 7377 xfered = remote_write_bytes (offset, writebuf, len);
21e3b9b9 7378 else
b2182ed2 7379 xfered = remote_read_bytes (offset, readbuf, len);
21e3b9b9
DJ
7380
7381 if (xfered > 0)
7382 return xfered;
7383 else if (xfered == 0 && errno == 0)
7384 return 0;
7385 else
7386 return -1;
7387 }
7388
0e7f50da
UW
7389 /* Handle SPU memory using qxfer packets. */
7390 if (object == TARGET_OBJECT_SPU)
7391 {
7392 if (readbuf)
7393 return remote_read_qxfer (ops, "spu", annex, readbuf, offset, len,
7394 &remote_protocol_packets
7395 [PACKET_qXfer_spu_read]);
7396 else
7397 return remote_write_qxfer (ops, "spu", annex, writebuf, offset, len,
7398 &remote_protocol_packets
7399 [PACKET_qXfer_spu_write]);
7400 }
7401
4aa995e1
PA
7402 /* Handle extra signal info using qxfer packets. */
7403 if (object == TARGET_OBJECT_SIGNAL_INFO)
7404 {
7405 if (readbuf)
7406 return remote_read_qxfer (ops, "siginfo", annex, readbuf, offset, len,
7407 &remote_protocol_packets
7408 [PACKET_qXfer_siginfo_read]);
7409 else
7410 return remote_write_qxfer (ops, "siginfo", annex, writebuf, offset, len,
7411 &remote_protocol_packets
7412 [PACKET_qXfer_siginfo_write]);
7413 }
7414
a76d924d
DJ
7415 /* Only handle flash writes. */
7416 if (writebuf != NULL)
7417 {
7418 LONGEST xfered;
7419
7420 switch (object)
7421 {
7422 case TARGET_OBJECT_FLASH:
7423 xfered = remote_flash_write (ops, offset, len, writebuf);
7424
7425 if (xfered > 0)
7426 return xfered;
7427 else if (xfered == 0 && errno == 0)
7428 return 0;
7429 else
7430 return -1;
7431
7432 default:
7433 return -1;
7434 }
7435 }
4b8a223f 7436
1e3ff5ad
AC
7437 /* Map pre-existing objects onto letters. DO NOT do this for new
7438 objects!!! Instead specify new query packets. */
7439 switch (object)
c906108c 7440 {
1e3ff5ad
AC
7441 case TARGET_OBJECT_AVR:
7442 query_type = 'R';
7443 break;
802188a7
RM
7444
7445 case TARGET_OBJECT_AUXV:
0876f84a
DJ
7446 gdb_assert (annex == NULL);
7447 return remote_read_qxfer (ops, "auxv", annex, readbuf, offset, len,
7448 &remote_protocol_packets[PACKET_qXfer_auxv]);
802188a7 7449
23181151
DJ
7450 case TARGET_OBJECT_AVAILABLE_FEATURES:
7451 return remote_read_qxfer
7452 (ops, "features", annex, readbuf, offset, len,
7453 &remote_protocol_packets[PACKET_qXfer_features]);
7454
cfa9d6d9
DJ
7455 case TARGET_OBJECT_LIBRARIES:
7456 return remote_read_qxfer
7457 (ops, "libraries", annex, readbuf, offset, len,
7458 &remote_protocol_packets[PACKET_qXfer_libraries]);
7459
fd79ecee
DJ
7460 case TARGET_OBJECT_MEMORY_MAP:
7461 gdb_assert (annex == NULL);
7462 return remote_read_qxfer (ops, "memory-map", annex, readbuf, offset, len,
7463 &remote_protocol_packets[PACKET_qXfer_memory_map]);
7464
07e059b5
VP
7465 case TARGET_OBJECT_OSDATA:
7466 /* Should only get here if we're connected. */
7467 gdb_assert (remote_desc);
7468 return remote_read_qxfer
7469 (ops, "osdata", annex, readbuf, offset, len,
7470 &remote_protocol_packets[PACKET_qXfer_osdata]);
7471
1e3ff5ad 7472 default:
c906108c
SS
7473 return -1;
7474 }
7475
4b8a223f 7476 /* Note: a zero OFFSET and LEN can be used to query the minimum
1e3ff5ad 7477 buffer size. */
4b8a223f 7478 if (offset == 0 && len == 0)
ea9c271d
DJ
7479 return (get_remote_packet_size ());
7480 /* Minimum outbuf size is get_remote_packet_size (). If LEN is not
24b06219 7481 large enough let the caller deal with it. */
ea9c271d 7482 if (len < get_remote_packet_size ())
1e3ff5ad 7483 return -1;
ea9c271d 7484 len = get_remote_packet_size ();
1e3ff5ad 7485
23860348 7486 /* Except for querying the minimum buffer size, target must be open. */
c5aa993b 7487 if (!remote_desc)
8a3fe4f8 7488 error (_("remote query is only available after target open"));
c906108c 7489
1e3ff5ad 7490 gdb_assert (annex != NULL);
4b8a223f 7491 gdb_assert (readbuf != NULL);
c906108c 7492
6d820c5c 7493 p2 = rs->buf;
c906108c
SS
7494 *p2++ = 'q';
7495 *p2++ = query_type;
7496
23860348
MS
7497 /* We used one buffer char for the remote protocol q command and
7498 another for the query type. As the remote protocol encapsulation
7499 uses 4 chars plus one extra in case we are debugging
7500 (remote_debug), we have PBUFZIZ - 7 left to pack the query
7501 string. */
c906108c 7502 i = 0;
ea9c271d 7503 while (annex[i] && (i < (get_remote_packet_size () - 8)))
c906108c 7504 {
1e3ff5ad
AC
7505 /* Bad caller may have sent forbidden characters. */
7506 gdb_assert (isprint (annex[i]) && annex[i] != '$' && annex[i] != '#');
7507 *p2++ = annex[i];
c906108c
SS
7508 i++;
7509 }
1e3ff5ad
AC
7510 *p2 = '\0';
7511 gdb_assert (annex[i] == '\0');
c906108c 7512
6d820c5c 7513 i = putpkt (rs->buf);
c5aa993b
JM
7514 if (i < 0)
7515 return i;
c906108c 7516
6d820c5c
DJ
7517 getpkt (&rs->buf, &rs->buf_size, 0);
7518 strcpy ((char *) readbuf, rs->buf);
c906108c 7519
cfd77fa1 7520 return strlen ((char *) readbuf);
c906108c
SS
7521}
7522
08388c79
DE
7523static int
7524remote_search_memory (struct target_ops* ops,
7525 CORE_ADDR start_addr, ULONGEST search_space_len,
7526 const gdb_byte *pattern, ULONGEST pattern_len,
7527 CORE_ADDR *found_addrp)
7528{
7529 struct remote_state *rs = get_remote_state ();
7530 int max_size = get_memory_write_packet_size ();
7531 struct packet_config *packet =
7532 &remote_protocol_packets[PACKET_qSearch_memory];
7533 /* number of packet bytes used to encode the pattern,
7534 this could be more than PATTERN_LEN due to escape characters */
7535 int escaped_pattern_len;
7536 /* amount of pattern that was encodable in the packet */
7537 int used_pattern_len;
7538 int i;
7539 int found;
7540 ULONGEST found_addr;
7541
7542 /* Don't go to the target if we don't have to.
7543 This is done before checking packet->support to avoid the possibility that
7544 a success for this edge case means the facility works in general. */
7545 if (pattern_len > search_space_len)
7546 return 0;
7547 if (pattern_len == 0)
7548 {
7549 *found_addrp = start_addr;
7550 return 1;
7551 }
7552
7553 /* If we already know the packet isn't supported, fall back to the simple
7554 way of searching memory. */
7555
7556 if (packet->support == PACKET_DISABLE)
7557 {
7558 /* Target doesn't provided special support, fall back and use the
7559 standard support (copy memory and do the search here). */
7560 return simple_search_memory (ops, start_addr, search_space_len,
7561 pattern, pattern_len, found_addrp);
7562 }
7563
7564 /* Insert header. */
7565 i = snprintf (rs->buf, max_size,
7566 "qSearch:memory:%s;%s;",
7567 paddr_nz (start_addr),
7568 phex_nz (search_space_len, sizeof (search_space_len)));
7569 max_size -= (i + 1);
7570
7571 /* Escape as much data as fits into rs->buf. */
7572 escaped_pattern_len =
7573 remote_escape_output (pattern, pattern_len, (rs->buf + i),
7574 &used_pattern_len, max_size);
7575
7576 /* Bail if the pattern is too large. */
7577 if (used_pattern_len != pattern_len)
10e0fa18 7578 error ("Pattern is too large to transmit to remote target.");
08388c79
DE
7579
7580 if (putpkt_binary (rs->buf, i + escaped_pattern_len) < 0
7581 || getpkt_sane (&rs->buf, &rs->buf_size, 0) < 0
7582 || packet_ok (rs->buf, packet) != PACKET_OK)
7583 {
7584 /* The request may not have worked because the command is not
7585 supported. If so, fall back to the simple way. */
7586 if (packet->support == PACKET_DISABLE)
7587 {
7588 return simple_search_memory (ops, start_addr, search_space_len,
7589 pattern, pattern_len, found_addrp);
7590 }
7591 return -1;
7592 }
7593
7594 if (rs->buf[0] == '0')
7595 found = 0;
7596 else if (rs->buf[0] == '1')
7597 {
7598 found = 1;
7599 if (rs->buf[1] != ',')
10e0fa18 7600 error (_("Unknown qSearch:memory reply: %s"), rs->buf);
08388c79
DE
7601 unpack_varlen_hex (rs->buf + 2, &found_addr);
7602 *found_addrp = found_addr;
7603 }
7604 else
10e0fa18 7605 error (_("Unknown qSearch:memory reply: %s"), rs->buf);
08388c79
DE
7606
7607 return found;
7608}
7609
96baa820
JM
7610static void
7611remote_rcmd (char *command,
d9fcf2fb 7612 struct ui_file *outbuf)
96baa820 7613{
d01949b6 7614 struct remote_state *rs = get_remote_state ();
2e9f7625 7615 char *p = rs->buf;
96baa820
JM
7616
7617 if (!remote_desc)
8a3fe4f8 7618 error (_("remote rcmd is only available after target open"));
96baa820 7619
23860348 7620 /* Send a NULL command across as an empty command. */
7be570e7
JM
7621 if (command == NULL)
7622 command = "";
7623
23860348 7624 /* The query prefix. */
2e9f7625
DJ
7625 strcpy (rs->buf, "qRcmd,");
7626 p = strchr (rs->buf, '\0');
96baa820 7627
2e9f7625 7628 if ((strlen (rs->buf) + strlen (command) * 2 + 8/*misc*/) > get_remote_packet_size ())
8a3fe4f8 7629 error (_("\"monitor\" command ``%s'' is too long."), command);
96baa820 7630
23860348 7631 /* Encode the actual command. */
cfd77fa1 7632 bin2hex ((gdb_byte *) command, p, 0);
96baa820 7633
6d820c5c 7634 if (putpkt (rs->buf) < 0)
8a3fe4f8 7635 error (_("Communication problem with target."));
96baa820
JM
7636
7637 /* get/display the response */
7638 while (1)
7639 {
2e9f7625
DJ
7640 char *buf;
7641
23860348 7642 /* XXX - see also tracepoint.c:remote_get_noisy_reply(). */
2e9f7625 7643 rs->buf[0] = '\0';
6d820c5c 7644 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 7645 buf = rs->buf;
96baa820 7646 if (buf[0] == '\0')
8a3fe4f8 7647 error (_("Target does not support this command."));
96baa820
JM
7648 if (buf[0] == 'O' && buf[1] != 'K')
7649 {
23860348 7650 remote_console_output (buf + 1); /* 'O' message from stub. */
96baa820
JM
7651 continue;
7652 }
7653 if (strcmp (buf, "OK") == 0)
7654 break;
7be570e7
JM
7655 if (strlen (buf) == 3 && buf[0] == 'E'
7656 && isdigit (buf[1]) && isdigit (buf[2]))
7657 {
8a3fe4f8 7658 error (_("Protocol error with Rcmd"));
7be570e7 7659 }
96baa820
JM
7660 for (p = buf; p[0] != '\0' && p[1] != '\0'; p += 2)
7661 {
7662 char c = (fromhex (p[0]) << 4) + fromhex (p[1]);
7663 fputc_unfiltered (c, outbuf);
7664 }
7665 break;
7666 }
7667}
7668
fd79ecee
DJ
7669static VEC(mem_region_s) *
7670remote_memory_map (struct target_ops *ops)
7671{
7672 VEC(mem_region_s) *result = NULL;
7673 char *text = target_read_stralloc (&current_target,
7674 TARGET_OBJECT_MEMORY_MAP, NULL);
7675
7676 if (text)
7677 {
7678 struct cleanup *back_to = make_cleanup (xfree, text);
7679 result = parse_memory_map (text);
7680 do_cleanups (back_to);
7681 }
7682
7683 return result;
7684}
7685
c906108c 7686static void
fba45db2 7687packet_command (char *args, int from_tty)
c906108c 7688{
d01949b6 7689 struct remote_state *rs = get_remote_state ();
c906108c 7690
c5aa993b 7691 if (!remote_desc)
8a3fe4f8 7692 error (_("command can only be used with remote target"));
c906108c 7693
c5aa993b 7694 if (!args)
8a3fe4f8 7695 error (_("remote-packet command requires packet text as argument"));
c906108c
SS
7696
7697 puts_filtered ("sending: ");
7698 print_packet (args);
7699 puts_filtered ("\n");
7700 putpkt (args);
7701
6d820c5c 7702 getpkt (&rs->buf, &rs->buf_size, 0);
c906108c 7703 puts_filtered ("received: ");
6d820c5c 7704 print_packet (rs->buf);
c906108c
SS
7705 puts_filtered ("\n");
7706}
7707
7708#if 0
23860348 7709/* --------- UNIT_TEST for THREAD oriented PACKETS ------------------- */
c906108c 7710
a14ed312 7711static void display_thread_info (struct gdb_ext_thread_info *info);
c906108c 7712
a14ed312 7713static void threadset_test_cmd (char *cmd, int tty);
c906108c 7714
a14ed312 7715static void threadalive_test (char *cmd, int tty);
c906108c 7716
a14ed312 7717static void threadlist_test_cmd (char *cmd, int tty);
c906108c 7718
23860348 7719int get_and_display_threadinfo (threadref *ref);
c906108c 7720
a14ed312 7721static void threadinfo_test_cmd (char *cmd, int tty);
c906108c 7722
23860348 7723static int thread_display_step (threadref *ref, void *context);
c906108c 7724
a14ed312 7725static void threadlist_update_test_cmd (char *cmd, int tty);
c906108c 7726
a14ed312 7727static void init_remote_threadtests (void);
c906108c 7728
23860348 7729#define SAMPLE_THREAD 0x05060708 /* Truncated 64 bit threadid. */
c906108c
SS
7730
7731static void
fba45db2 7732threadset_test_cmd (char *cmd, int tty)
c906108c
SS
7733{
7734 int sample_thread = SAMPLE_THREAD;
7735
a3f17187 7736 printf_filtered (_("Remote threadset test\n"));
79d7f229 7737 set_general_thread (sample_thread);
c906108c
SS
7738}
7739
7740
7741static void
fba45db2 7742threadalive_test (char *cmd, int tty)
c906108c
SS
7743{
7744 int sample_thread = SAMPLE_THREAD;
79d7f229
PA
7745 int pid = ptid_get_pid (inferior_ptid);
7746 ptid_t ptid = ptid_build (pid, 0, sample_thread);
c906108c 7747
79d7f229 7748 if (remote_thread_alive (ptid))
c906108c
SS
7749 printf_filtered ("PASS: Thread alive test\n");
7750 else
7751 printf_filtered ("FAIL: Thread alive test\n");
7752}
7753
23860348 7754void output_threadid (char *title, threadref *ref);
c906108c
SS
7755
7756void
fba45db2 7757output_threadid (char *title, threadref *ref)
c906108c
SS
7758{
7759 char hexid[20];
7760
23860348 7761 pack_threadid (&hexid[0], ref); /* Convert threead id into hex. */
c906108c
SS
7762 hexid[16] = 0;
7763 printf_filtered ("%s %s\n", title, (&hexid[0]));
7764}
7765
7766static void
fba45db2 7767threadlist_test_cmd (char *cmd, int tty)
c906108c
SS
7768{
7769 int startflag = 1;
7770 threadref nextthread;
7771 int done, result_count;
7772 threadref threadlist[3];
7773
7774 printf_filtered ("Remote Threadlist test\n");
7775 if (!remote_get_threadlist (startflag, &nextthread, 3, &done,
7776 &result_count, &threadlist[0]))
7777 printf_filtered ("FAIL: threadlist test\n");
7778 else
7779 {
7780 threadref *scan = threadlist;
7781 threadref *limit = scan + result_count;
7782
7783 while (scan < limit)
7784 output_threadid (" thread ", scan++);
7785 }
7786}
7787
7788void
fba45db2 7789display_thread_info (struct gdb_ext_thread_info *info)
c906108c
SS
7790{
7791 output_threadid ("Threadid: ", &info->threadid);
7792 printf_filtered ("Name: %s\n ", info->shortname);
7793 printf_filtered ("State: %s\n", info->display);
7794 printf_filtered ("other: %s\n\n", info->more_display);
7795}
7796
7797int
fba45db2 7798get_and_display_threadinfo (threadref *ref)
c906108c
SS
7799{
7800 int result;
7801 int set;
7802 struct gdb_ext_thread_info threadinfo;
7803
7804 set = TAG_THREADID | TAG_EXISTS | TAG_THREADNAME
7805 | TAG_MOREDISPLAY | TAG_DISPLAY;
7806 if (0 != (result = remote_get_threadinfo (ref, set, &threadinfo)))
7807 display_thread_info (&threadinfo);
7808 return result;
7809}
7810
7811static void
fba45db2 7812threadinfo_test_cmd (char *cmd, int tty)
c906108c
SS
7813{
7814 int athread = SAMPLE_THREAD;
7815 threadref thread;
7816 int set;
7817
7818 int_to_threadref (&thread, athread);
7819 printf_filtered ("Remote Threadinfo test\n");
7820 if (!get_and_display_threadinfo (&thread))
7821 printf_filtered ("FAIL cannot get thread info\n");
7822}
7823
7824static int
fba45db2 7825thread_display_step (threadref *ref, void *context)
c906108c
SS
7826{
7827 /* output_threadid(" threadstep ",ref); *//* simple test */
7828 return get_and_display_threadinfo (ref);
7829}
7830
7831static void
fba45db2 7832threadlist_update_test_cmd (char *cmd, int tty)
c906108c
SS
7833{
7834 printf_filtered ("Remote Threadlist update test\n");
7835 remote_threadlist_iterator (thread_display_step, 0, CRAZY_MAX_THREADS);
7836}
7837
7838static void
7839init_remote_threadtests (void)
7840{
1bedd215
AC
7841 add_com ("tlist", class_obscure, threadlist_test_cmd, _("\
7842Fetch and print the remote list of thread identifiers, one pkt only"));
c906108c 7843 add_com ("tinfo", class_obscure, threadinfo_test_cmd,
1bedd215 7844 _("Fetch and display info about one thread"));
c906108c 7845 add_com ("tset", class_obscure, threadset_test_cmd,
1bedd215 7846 _("Test setting to a different thread"));
c906108c 7847 add_com ("tupd", class_obscure, threadlist_update_test_cmd,
1bedd215 7848 _("Iterate through updating all remote thread info"));
c906108c 7849 add_com ("talive", class_obscure, threadalive_test,
1bedd215 7850 _(" Remote thread alive test "));
c906108c
SS
7851}
7852
7853#endif /* 0 */
7854
f3fb8c85
MS
7855/* Convert a thread ID to a string. Returns the string in a static
7856 buffer. */
7857
7858static char *
117de6a9 7859remote_pid_to_str (struct target_ops *ops, ptid_t ptid)
f3fb8c85 7860{
79d7f229 7861 static char buf[64];
82f73884 7862 struct remote_state *rs = get_remote_state ();
f3fb8c85 7863
79d7f229
PA
7864 if (ptid_equal (magic_null_ptid, ptid))
7865 {
7866 xsnprintf (buf, sizeof buf, "Thread <main>");
7867 return buf;
7868 }
82f73884
PA
7869 else if (remote_multi_process_p (rs)
7870 && ptid_get_tid (ptid) != 0 && ptid_get_pid (ptid) != 0)
7871 {
7872 xsnprintf (buf, sizeof buf, "Thread %d.%ld",
7873 ptid_get_pid (ptid), ptid_get_tid (ptid));
7874 return buf;
7875 }
79d7f229
PA
7876 else if (ptid_get_tid (ptid) != 0)
7877 {
7878 xsnprintf (buf, sizeof buf, "Thread %ld",
7879 ptid_get_tid (ptid));
7880 return buf;
7881 }
7882
7883 return normal_pid_to_str (ptid);
f3fb8c85
MS
7884}
7885
38691318
KB
7886/* Get the address of the thread local variable in OBJFILE which is
7887 stored at OFFSET within the thread local storage for thread PTID. */
7888
7889static CORE_ADDR
117de6a9
PA
7890remote_get_thread_local_address (struct target_ops *ops,
7891 ptid_t ptid, CORE_ADDR lm, CORE_ADDR offset)
38691318 7892{
444abaca 7893 if (remote_protocol_packets[PACKET_qGetTLSAddr].support != PACKET_DISABLE)
38691318
KB
7894 {
7895 struct remote_state *rs = get_remote_state ();
6d820c5c 7896 char *p = rs->buf;
82f73884 7897 char *endp = rs->buf + get_remote_packet_size ();
571dd617 7898 enum packet_result result;
38691318
KB
7899
7900 strcpy (p, "qGetTLSAddr:");
7901 p += strlen (p);
82f73884 7902 p = write_ptid (p, endp, ptid);
38691318
KB
7903 *p++ = ',';
7904 p += hexnumstr (p, offset);
7905 *p++ = ',';
7906 p += hexnumstr (p, lm);
7907 *p++ = '\0';
7908
6d820c5c
DJ
7909 putpkt (rs->buf);
7910 getpkt (&rs->buf, &rs->buf_size, 0);
7911 result = packet_ok (rs->buf, &remote_protocol_packets[PACKET_qGetTLSAddr]);
571dd617 7912 if (result == PACKET_OK)
38691318
KB
7913 {
7914 ULONGEST result;
7915
6d820c5c 7916 unpack_varlen_hex (rs->buf, &result);
38691318
KB
7917 return result;
7918 }
571dd617 7919 else if (result == PACKET_UNKNOWN)
109c3e39
AC
7920 throw_error (TLS_GENERIC_ERROR,
7921 _("Remote target doesn't support qGetTLSAddr packet"));
38691318 7922 else
109c3e39
AC
7923 throw_error (TLS_GENERIC_ERROR,
7924 _("Remote target failed to process qGetTLSAddr request"));
38691318
KB
7925 }
7926 else
109c3e39
AC
7927 throw_error (TLS_GENERIC_ERROR,
7928 _("TLS not supported or disabled on this target"));
38691318
KB
7929 /* Not reached. */
7930 return 0;
7931}
7932
29709017
DJ
7933/* Support for inferring a target description based on the current
7934 architecture and the size of a 'g' packet. While the 'g' packet
7935 can have any size (since optional registers can be left off the
7936 end), some sizes are easily recognizable given knowledge of the
7937 approximate architecture. */
7938
7939struct remote_g_packet_guess
7940{
7941 int bytes;
7942 const struct target_desc *tdesc;
7943};
7944typedef struct remote_g_packet_guess remote_g_packet_guess_s;
7945DEF_VEC_O(remote_g_packet_guess_s);
7946
7947struct remote_g_packet_data
7948{
7949 VEC(remote_g_packet_guess_s) *guesses;
7950};
7951
7952static struct gdbarch_data *remote_g_packet_data_handle;
7953
7954static void *
7955remote_g_packet_data_init (struct obstack *obstack)
7956{
7957 return OBSTACK_ZALLOC (obstack, struct remote_g_packet_data);
7958}
7959
7960void
7961register_remote_g_packet_guess (struct gdbarch *gdbarch, int bytes,
7962 const struct target_desc *tdesc)
7963{
7964 struct remote_g_packet_data *data
7965 = gdbarch_data (gdbarch, remote_g_packet_data_handle);
7966 struct remote_g_packet_guess new_guess, *guess;
7967 int ix;
7968
7969 gdb_assert (tdesc != NULL);
7970
7971 for (ix = 0;
7972 VEC_iterate (remote_g_packet_guess_s, data->guesses, ix, guess);
7973 ix++)
7974 if (guess->bytes == bytes)
7975 internal_error (__FILE__, __LINE__,
7976 "Duplicate g packet description added for size %d",
7977 bytes);
7978
7979 new_guess.bytes = bytes;
7980 new_guess.tdesc = tdesc;
7981 VEC_safe_push (remote_g_packet_guess_s, data->guesses, &new_guess);
7982}
7983
d962ef82
DJ
7984/* Return 1 if remote_read_description would do anything on this target
7985 and architecture, 0 otherwise. */
7986
7987static int
7988remote_read_description_p (struct target_ops *target)
7989{
7990 struct remote_g_packet_data *data
7991 = gdbarch_data (target_gdbarch, remote_g_packet_data_handle);
7992
7993 if (!VEC_empty (remote_g_packet_guess_s, data->guesses))
7994 return 1;
7995
7996 return 0;
7997}
7998
29709017
DJ
7999static const struct target_desc *
8000remote_read_description (struct target_ops *target)
8001{
8002 struct remote_g_packet_data *data
1cf3db46 8003 = gdbarch_data (target_gdbarch, remote_g_packet_data_handle);
29709017 8004
d962ef82
DJ
8005 /* Do not try this during initial connection, when we do not know
8006 whether there is a running but stopped thread. */
8007 if (!target_has_execution || ptid_equal (inferior_ptid, null_ptid))
8008 return NULL;
8009
29709017
DJ
8010 if (!VEC_empty (remote_g_packet_guess_s, data->guesses))
8011 {
8012 struct remote_g_packet_guess *guess;
8013 int ix;
8014 int bytes = send_g_packet ();
8015
8016 for (ix = 0;
8017 VEC_iterate (remote_g_packet_guess_s, data->guesses, ix, guess);
8018 ix++)
8019 if (guess->bytes == bytes)
8020 return guess->tdesc;
8021
8022 /* We discard the g packet. A minor optimization would be to
8023 hold on to it, and fill the register cache once we have selected
8024 an architecture, but it's too tricky to do safely. */
8025 }
8026
8027 return NULL;
8028}
8029
a6b151f1
DJ
8030/* Remote file transfer support. This is host-initiated I/O, not
8031 target-initiated; for target-initiated, see remote-fileio.c. */
8032
8033/* If *LEFT is at least the length of STRING, copy STRING to
8034 *BUFFER, update *BUFFER to point to the new end of the buffer, and
8035 decrease *LEFT. Otherwise raise an error. */
8036
8037static void
8038remote_buffer_add_string (char **buffer, int *left, char *string)
8039{
8040 int len = strlen (string);
8041
8042 if (len > *left)
8043 error (_("Packet too long for target."));
8044
8045 memcpy (*buffer, string, len);
8046 *buffer += len;
8047 *left -= len;
8048
8049 /* NUL-terminate the buffer as a convenience, if there is
8050 room. */
8051 if (*left)
8052 **buffer = '\0';
8053}
8054
8055/* If *LEFT is large enough, hex encode LEN bytes from BYTES into
8056 *BUFFER, update *BUFFER to point to the new end of the buffer, and
8057 decrease *LEFT. Otherwise raise an error. */
8058
8059static void
8060remote_buffer_add_bytes (char **buffer, int *left, const gdb_byte *bytes,
8061 int len)
8062{
8063 if (2 * len > *left)
8064 error (_("Packet too long for target."));
8065
8066 bin2hex (bytes, *buffer, len);
8067 *buffer += 2 * len;
8068 *left -= 2 * len;
8069
8070 /* NUL-terminate the buffer as a convenience, if there is
8071 room. */
8072 if (*left)
8073 **buffer = '\0';
8074}
8075
8076/* If *LEFT is large enough, convert VALUE to hex and add it to
8077 *BUFFER, update *BUFFER to point to the new end of the buffer, and
8078 decrease *LEFT. Otherwise raise an error. */
8079
8080static void
8081remote_buffer_add_int (char **buffer, int *left, ULONGEST value)
8082{
8083 int len = hexnumlen (value);
8084
8085 if (len > *left)
8086 error (_("Packet too long for target."));
8087
8088 hexnumstr (*buffer, value);
8089 *buffer += len;
8090 *left -= len;
8091
8092 /* NUL-terminate the buffer as a convenience, if there is
8093 room. */
8094 if (*left)
8095 **buffer = '\0';
8096}
8097
8098/* Parse an I/O result packet from BUFFER. Set RETCODE to the return
8099 value, *REMOTE_ERRNO to the remote error number or zero if none
8100 was included, and *ATTACHMENT to point to the start of the annex
8101 if any. The length of the packet isn't needed here; there may
8102 be NUL bytes in BUFFER, but they will be after *ATTACHMENT.
8103
8104 Return 0 if the packet could be parsed, -1 if it could not. If
8105 -1 is returned, the other variables may not be initialized. */
8106
8107static int
8108remote_hostio_parse_result (char *buffer, int *retcode,
8109 int *remote_errno, char **attachment)
8110{
8111 char *p, *p2;
8112
8113 *remote_errno = 0;
8114 *attachment = NULL;
8115
8116 if (buffer[0] != 'F')
8117 return -1;
8118
8119 errno = 0;
8120 *retcode = strtol (&buffer[1], &p, 16);
8121 if (errno != 0 || p == &buffer[1])
8122 return -1;
8123
8124 /* Check for ",errno". */
8125 if (*p == ',')
8126 {
8127 errno = 0;
8128 *remote_errno = strtol (p + 1, &p2, 16);
8129 if (errno != 0 || p + 1 == p2)
8130 return -1;
8131 p = p2;
8132 }
8133
8134 /* Check for ";attachment". If there is no attachment, the
8135 packet should end here. */
8136 if (*p == ';')
8137 {
8138 *attachment = p + 1;
8139 return 0;
8140 }
8141 else if (*p == '\0')
8142 return 0;
8143 else
8144 return -1;
8145}
8146
8147/* Send a prepared I/O packet to the target and read its response.
8148 The prepared packet is in the global RS->BUF before this function
8149 is called, and the answer is there when we return.
8150
8151 COMMAND_BYTES is the length of the request to send, which may include
8152 binary data. WHICH_PACKET is the packet configuration to check
8153 before attempting a packet. If an error occurs, *REMOTE_ERRNO
8154 is set to the error number and -1 is returned. Otherwise the value
8155 returned by the function is returned.
8156
8157 ATTACHMENT and ATTACHMENT_LEN should be non-NULL if and only if an
8158 attachment is expected; an error will be reported if there's a
8159 mismatch. If one is found, *ATTACHMENT will be set to point into
8160 the packet buffer and *ATTACHMENT_LEN will be set to the
8161 attachment's length. */
8162
8163static int
8164remote_hostio_send_command (int command_bytes, int which_packet,
8165 int *remote_errno, char **attachment,
8166 int *attachment_len)
8167{
8168 struct remote_state *rs = get_remote_state ();
8169 int ret, bytes_read;
8170 char *attachment_tmp;
8171
f1838a98
UW
8172 if (!remote_desc
8173 || remote_protocol_packets[which_packet].support == PACKET_DISABLE)
a6b151f1
DJ
8174 {
8175 *remote_errno = FILEIO_ENOSYS;
8176 return -1;
8177 }
8178
8179 putpkt_binary (rs->buf, command_bytes);
8180 bytes_read = getpkt_sane (&rs->buf, &rs->buf_size, 0);
8181
8182 /* If it timed out, something is wrong. Don't try to parse the
8183 buffer. */
8184 if (bytes_read < 0)
8185 {
8186 *remote_errno = FILEIO_EINVAL;
8187 return -1;
8188 }
8189
8190 switch (packet_ok (rs->buf, &remote_protocol_packets[which_packet]))
8191 {
8192 case PACKET_ERROR:
8193 *remote_errno = FILEIO_EINVAL;
8194 return -1;
8195 case PACKET_UNKNOWN:
8196 *remote_errno = FILEIO_ENOSYS;
8197 return -1;
8198 case PACKET_OK:
8199 break;
8200 }
8201
8202 if (remote_hostio_parse_result (rs->buf, &ret, remote_errno,
8203 &attachment_tmp))
8204 {
8205 *remote_errno = FILEIO_EINVAL;
8206 return -1;
8207 }
8208
8209 /* Make sure we saw an attachment if and only if we expected one. */
8210 if ((attachment_tmp == NULL && attachment != NULL)
8211 || (attachment_tmp != NULL && attachment == NULL))
8212 {
8213 *remote_errno = FILEIO_EINVAL;
8214 return -1;
8215 }
8216
8217 /* If an attachment was found, it must point into the packet buffer;
8218 work out how many bytes there were. */
8219 if (attachment_tmp != NULL)
8220 {
8221 *attachment = attachment_tmp;
8222 *attachment_len = bytes_read - (*attachment - rs->buf);
8223 }
8224
8225 return ret;
8226}
8227
8228/* Open FILENAME on the remote target, using FLAGS and MODE. Return a
8229 remote file descriptor, or -1 if an error occurs (and set
8230 *REMOTE_ERRNO). */
8231
8232static int
8233remote_hostio_open (const char *filename, int flags, int mode,
8234 int *remote_errno)
8235{
8236 struct remote_state *rs = get_remote_state ();
8237 char *p = rs->buf;
8238 int left = get_remote_packet_size () - 1;
8239
8240 remote_buffer_add_string (&p, &left, "vFile:open:");
8241
8242 remote_buffer_add_bytes (&p, &left, (const gdb_byte *) filename,
8243 strlen (filename));
8244 remote_buffer_add_string (&p, &left, ",");
8245
8246 remote_buffer_add_int (&p, &left, flags);
8247 remote_buffer_add_string (&p, &left, ",");
8248
8249 remote_buffer_add_int (&p, &left, mode);
8250
8251 return remote_hostio_send_command (p - rs->buf, PACKET_vFile_open,
8252 remote_errno, NULL, NULL);
8253}
8254
8255/* Write up to LEN bytes from WRITE_BUF to FD on the remote target.
8256 Return the number of bytes written, or -1 if an error occurs (and
8257 set *REMOTE_ERRNO). */
8258
8259static int
8260remote_hostio_pwrite (int fd, const gdb_byte *write_buf, int len,
8261 ULONGEST offset, int *remote_errno)
8262{
8263 struct remote_state *rs = get_remote_state ();
8264 char *p = rs->buf;
8265 int left = get_remote_packet_size ();
8266 int out_len;
8267
8268 remote_buffer_add_string (&p, &left, "vFile:pwrite:");
8269
8270 remote_buffer_add_int (&p, &left, fd);
8271 remote_buffer_add_string (&p, &left, ",");
8272
8273 remote_buffer_add_int (&p, &left, offset);
8274 remote_buffer_add_string (&p, &left, ",");
8275
8276 p += remote_escape_output (write_buf, len, p, &out_len,
8277 get_remote_packet_size () - (p - rs->buf));
8278
8279 return remote_hostio_send_command (p - rs->buf, PACKET_vFile_pwrite,
8280 remote_errno, NULL, NULL);
8281}
8282
8283/* Read up to LEN bytes FD on the remote target into READ_BUF
8284 Return the number of bytes read, or -1 if an error occurs (and
8285 set *REMOTE_ERRNO). */
8286
8287static int
8288remote_hostio_pread (int fd, gdb_byte *read_buf, int len,
8289 ULONGEST offset, int *remote_errno)
8290{
8291 struct remote_state *rs = get_remote_state ();
8292 char *p = rs->buf;
8293 char *attachment;
8294 int left = get_remote_packet_size ();
8295 int ret, attachment_len;
8296 int read_len;
8297
8298 remote_buffer_add_string (&p, &left, "vFile:pread:");
8299
8300 remote_buffer_add_int (&p, &left, fd);
8301 remote_buffer_add_string (&p, &left, ",");
8302
8303 remote_buffer_add_int (&p, &left, len);
8304 remote_buffer_add_string (&p, &left, ",");
8305
8306 remote_buffer_add_int (&p, &left, offset);
8307
8308 ret = remote_hostio_send_command (p - rs->buf, PACKET_vFile_pread,
8309 remote_errno, &attachment,
8310 &attachment_len);
8311
8312 if (ret < 0)
8313 return ret;
8314
8315 read_len = remote_unescape_input (attachment, attachment_len,
8316 read_buf, len);
8317 if (read_len != ret)
8318 error (_("Read returned %d, but %d bytes."), ret, (int) read_len);
8319
8320 return ret;
8321}
8322
8323/* Close FD on the remote target. Return 0, or -1 if an error occurs
8324 (and set *REMOTE_ERRNO). */
8325
8326static int
8327remote_hostio_close (int fd, int *remote_errno)
8328{
8329 struct remote_state *rs = get_remote_state ();
8330 char *p = rs->buf;
8331 int left = get_remote_packet_size () - 1;
8332
8333 remote_buffer_add_string (&p, &left, "vFile:close:");
8334
8335 remote_buffer_add_int (&p, &left, fd);
8336
8337 return remote_hostio_send_command (p - rs->buf, PACKET_vFile_close,
8338 remote_errno, NULL, NULL);
8339}
8340
8341/* Unlink FILENAME on the remote target. Return 0, or -1 if an error
8342 occurs (and set *REMOTE_ERRNO). */
8343
8344static int
8345remote_hostio_unlink (const char *filename, int *remote_errno)
8346{
8347 struct remote_state *rs = get_remote_state ();
8348 char *p = rs->buf;
8349 int left = get_remote_packet_size () - 1;
8350
8351 remote_buffer_add_string (&p, &left, "vFile:unlink:");
8352
8353 remote_buffer_add_bytes (&p, &left, (const gdb_byte *) filename,
8354 strlen (filename));
8355
8356 return remote_hostio_send_command (p - rs->buf, PACKET_vFile_unlink,
8357 remote_errno, NULL, NULL);
8358}
8359
8360static int
8361remote_fileio_errno_to_host (int errnum)
8362{
8363 switch (errnum)
8364 {
8365 case FILEIO_EPERM:
8366 return EPERM;
8367 case FILEIO_ENOENT:
8368 return ENOENT;
8369 case FILEIO_EINTR:
8370 return EINTR;
8371 case FILEIO_EIO:
8372 return EIO;
8373 case FILEIO_EBADF:
8374 return EBADF;
8375 case FILEIO_EACCES:
8376 return EACCES;
8377 case FILEIO_EFAULT:
8378 return EFAULT;
8379 case FILEIO_EBUSY:
8380 return EBUSY;
8381 case FILEIO_EEXIST:
8382 return EEXIST;
8383 case FILEIO_ENODEV:
8384 return ENODEV;
8385 case FILEIO_ENOTDIR:
8386 return ENOTDIR;
8387 case FILEIO_EISDIR:
8388 return EISDIR;
8389 case FILEIO_EINVAL:
8390 return EINVAL;
8391 case FILEIO_ENFILE:
8392 return ENFILE;
8393 case FILEIO_EMFILE:
8394 return EMFILE;
8395 case FILEIO_EFBIG:
8396 return EFBIG;
8397 case FILEIO_ENOSPC:
8398 return ENOSPC;
8399 case FILEIO_ESPIPE:
8400 return ESPIPE;
8401 case FILEIO_EROFS:
8402 return EROFS;
8403 case FILEIO_ENOSYS:
8404 return ENOSYS;
8405 case FILEIO_ENAMETOOLONG:
8406 return ENAMETOOLONG;
8407 }
8408 return -1;
8409}
8410
8411static char *
8412remote_hostio_error (int errnum)
8413{
8414 int host_error = remote_fileio_errno_to_host (errnum);
8415
8416 if (host_error == -1)
8417 error (_("Unknown remote I/O error %d"), errnum);
8418 else
8419 error (_("Remote I/O error: %s"), safe_strerror (host_error));
8420}
8421
a6b151f1
DJ
8422static void
8423remote_hostio_close_cleanup (void *opaque)
8424{
8425 int fd = *(int *) opaque;
8426 int remote_errno;
8427
8428 remote_hostio_close (fd, &remote_errno);
8429}
8430
f1838a98
UW
8431
8432static void *
8433remote_bfd_iovec_open (struct bfd *abfd, void *open_closure)
8434{
8435 const char *filename = bfd_get_filename (abfd);
8436 int fd, remote_errno;
8437 int *stream;
8438
8439 gdb_assert (remote_filename_p (filename));
8440
8441 fd = remote_hostio_open (filename + 7, FILEIO_O_RDONLY, 0, &remote_errno);
8442 if (fd == -1)
8443 {
8444 errno = remote_fileio_errno_to_host (remote_errno);
8445 bfd_set_error (bfd_error_system_call);
8446 return NULL;
8447 }
8448
8449 stream = xmalloc (sizeof (int));
8450 *stream = fd;
8451 return stream;
8452}
8453
8454static int
8455remote_bfd_iovec_close (struct bfd *abfd, void *stream)
8456{
8457 int fd = *(int *)stream;
8458 int remote_errno;
8459
8460 xfree (stream);
8461
8462 /* Ignore errors on close; these may happen if the remote
8463 connection was already torn down. */
8464 remote_hostio_close (fd, &remote_errno);
8465
8466 return 1;
8467}
8468
8469static file_ptr
8470remote_bfd_iovec_pread (struct bfd *abfd, void *stream, void *buf,
8471 file_ptr nbytes, file_ptr offset)
8472{
8473 int fd = *(int *)stream;
8474 int remote_errno;
8475 file_ptr pos, bytes;
8476
8477 pos = 0;
8478 while (nbytes > pos)
8479 {
8480 bytes = remote_hostio_pread (fd, (char *)buf + pos, nbytes - pos,
8481 offset + pos, &remote_errno);
8482 if (bytes == 0)
8483 /* Success, but no bytes, means end-of-file. */
8484 break;
8485 if (bytes == -1)
8486 {
8487 errno = remote_fileio_errno_to_host (remote_errno);
8488 bfd_set_error (bfd_error_system_call);
8489 return -1;
8490 }
8491
8492 pos += bytes;
8493 }
8494
8495 return pos;
8496}
8497
8498static int
8499remote_bfd_iovec_stat (struct bfd *abfd, void *stream, struct stat *sb)
8500{
8501 /* FIXME: We should probably implement remote_hostio_stat. */
8502 sb->st_size = INT_MAX;
8503 return 0;
8504}
8505
8506int
8507remote_filename_p (const char *filename)
8508{
8509 return strncmp (filename, "remote:", 7) == 0;
8510}
8511
8512bfd *
8513remote_bfd_open (const char *remote_file, const char *target)
8514{
8515 return bfd_openr_iovec (remote_file, target,
8516 remote_bfd_iovec_open, NULL,
8517 remote_bfd_iovec_pread,
8518 remote_bfd_iovec_close,
8519 remote_bfd_iovec_stat);
8520}
8521
a6b151f1
DJ
8522void
8523remote_file_put (const char *local_file, const char *remote_file, int from_tty)
8524{
8525 struct cleanup *back_to, *close_cleanup;
8526 int retcode, fd, remote_errno, bytes, io_size;
8527 FILE *file;
8528 gdb_byte *buffer;
8529 int bytes_in_buffer;
8530 int saw_eof;
8531 ULONGEST offset;
8532
8533 if (!remote_desc)
8534 error (_("command can only be used with remote target"));
8535
8536 file = fopen (local_file, "rb");
8537 if (file == NULL)
8538 perror_with_name (local_file);
7c8a8b04 8539 back_to = make_cleanup_fclose (file);
a6b151f1
DJ
8540
8541 fd = remote_hostio_open (remote_file, (FILEIO_O_WRONLY | FILEIO_O_CREAT
8542 | FILEIO_O_TRUNC),
8543 0700, &remote_errno);
8544 if (fd == -1)
8545 remote_hostio_error (remote_errno);
8546
8547 /* Send up to this many bytes at once. They won't all fit in the
8548 remote packet limit, so we'll transfer slightly fewer. */
8549 io_size = get_remote_packet_size ();
8550 buffer = xmalloc (io_size);
8551 make_cleanup (xfree, buffer);
8552
8553 close_cleanup = make_cleanup (remote_hostio_close_cleanup, &fd);
8554
8555 bytes_in_buffer = 0;
8556 saw_eof = 0;
8557 offset = 0;
8558 while (bytes_in_buffer || !saw_eof)
8559 {
8560 if (!saw_eof)
8561 {
8562 bytes = fread (buffer + bytes_in_buffer, 1, io_size - bytes_in_buffer,
8563 file);
8564 if (bytes == 0)
8565 {
8566 if (ferror (file))
8567 error (_("Error reading %s."), local_file);
8568 else
8569 {
8570 /* EOF. Unless there is something still in the
8571 buffer from the last iteration, we are done. */
8572 saw_eof = 1;
8573 if (bytes_in_buffer == 0)
8574 break;
8575 }
8576 }
8577 }
8578 else
8579 bytes = 0;
8580
8581 bytes += bytes_in_buffer;
8582 bytes_in_buffer = 0;
8583
8584 retcode = remote_hostio_pwrite (fd, buffer, bytes, offset, &remote_errno);
8585
8586 if (retcode < 0)
8587 remote_hostio_error (remote_errno);
8588 else if (retcode == 0)
8589 error (_("Remote write of %d bytes returned 0!"), bytes);
8590 else if (retcode < bytes)
8591 {
8592 /* Short write. Save the rest of the read data for the next
8593 write. */
8594 bytes_in_buffer = bytes - retcode;
8595 memmove (buffer, buffer + retcode, bytes_in_buffer);
8596 }
8597
8598 offset += retcode;
8599 }
8600
8601 discard_cleanups (close_cleanup);
8602 if (remote_hostio_close (fd, &remote_errno))
8603 remote_hostio_error (remote_errno);
8604
8605 if (from_tty)
8606 printf_filtered (_("Successfully sent file \"%s\".\n"), local_file);
8607 do_cleanups (back_to);
8608}
8609
8610void
8611remote_file_get (const char *remote_file, const char *local_file, int from_tty)
8612{
8613 struct cleanup *back_to, *close_cleanup;
8614 int retcode, fd, remote_errno, bytes, io_size;
8615 FILE *file;
8616 gdb_byte *buffer;
8617 ULONGEST offset;
8618
8619 if (!remote_desc)
8620 error (_("command can only be used with remote target"));
8621
8622 fd = remote_hostio_open (remote_file, FILEIO_O_RDONLY, 0, &remote_errno);
8623 if (fd == -1)
8624 remote_hostio_error (remote_errno);
8625
8626 file = fopen (local_file, "wb");
8627 if (file == NULL)
8628 perror_with_name (local_file);
7c8a8b04 8629 back_to = make_cleanup_fclose (file);
a6b151f1
DJ
8630
8631 /* Send up to this many bytes at once. They won't all fit in the
8632 remote packet limit, so we'll transfer slightly fewer. */
8633 io_size = get_remote_packet_size ();
8634 buffer = xmalloc (io_size);
8635 make_cleanup (xfree, buffer);
8636
8637 close_cleanup = make_cleanup (remote_hostio_close_cleanup, &fd);
8638
8639 offset = 0;
8640 while (1)
8641 {
8642 bytes = remote_hostio_pread (fd, buffer, io_size, offset, &remote_errno);
8643 if (bytes == 0)
8644 /* Success, but no bytes, means end-of-file. */
8645 break;
8646 if (bytes == -1)
8647 remote_hostio_error (remote_errno);
8648
8649 offset += bytes;
8650
8651 bytes = fwrite (buffer, 1, bytes, file);
8652 if (bytes == 0)
8653 perror_with_name (local_file);
8654 }
8655
8656 discard_cleanups (close_cleanup);
8657 if (remote_hostio_close (fd, &remote_errno))
8658 remote_hostio_error (remote_errno);
8659
8660 if (from_tty)
8661 printf_filtered (_("Successfully fetched file \"%s\".\n"), remote_file);
8662 do_cleanups (back_to);
8663}
8664
8665void
8666remote_file_delete (const char *remote_file, int from_tty)
8667{
8668 int retcode, remote_errno;
8669
8670 if (!remote_desc)
8671 error (_("command can only be used with remote target"));
8672
8673 retcode = remote_hostio_unlink (remote_file, &remote_errno);
8674 if (retcode == -1)
8675 remote_hostio_error (remote_errno);
8676
8677 if (from_tty)
8678 printf_filtered (_("Successfully deleted file \"%s\".\n"), remote_file);
8679}
8680
8681static void
8682remote_put_command (char *args, int from_tty)
8683{
8684 struct cleanup *back_to;
8685 char **argv;
8686
d1a41061
PP
8687 if (args == NULL)
8688 error_no_arg (_("file to put"));
8689
8690 argv = gdb_buildargv (args);
a6b151f1
DJ
8691 back_to = make_cleanup_freeargv (argv);
8692 if (argv[0] == NULL || argv[1] == NULL || argv[2] != NULL)
8693 error (_("Invalid parameters to remote put"));
8694
8695 remote_file_put (argv[0], argv[1], from_tty);
8696
8697 do_cleanups (back_to);
8698}
8699
8700static void
8701remote_get_command (char *args, int from_tty)
8702{
8703 struct cleanup *back_to;
8704 char **argv;
8705
d1a41061
PP
8706 if (args == NULL)
8707 error_no_arg (_("file to get"));
8708
8709 argv = gdb_buildargv (args);
a6b151f1
DJ
8710 back_to = make_cleanup_freeargv (argv);
8711 if (argv[0] == NULL || argv[1] == NULL || argv[2] != NULL)
8712 error (_("Invalid parameters to remote get"));
8713
8714 remote_file_get (argv[0], argv[1], from_tty);
8715
8716 do_cleanups (back_to);
8717}
8718
8719static void
8720remote_delete_command (char *args, int from_tty)
8721{
8722 struct cleanup *back_to;
8723 char **argv;
8724
d1a41061
PP
8725 if (args == NULL)
8726 error_no_arg (_("file to delete"));
8727
8728 argv = gdb_buildargv (args);
a6b151f1
DJ
8729 back_to = make_cleanup_freeargv (argv);
8730 if (argv[0] == NULL || argv[1] != NULL)
8731 error (_("Invalid parameters to remote delete"));
8732
8733 remote_file_delete (argv[0], from_tty);
8734
8735 do_cleanups (back_to);
8736}
8737
8738static void
8739remote_command (char *args, int from_tty)
8740{
8741 help_list (remote_cmdlist, "remote ", -1, gdb_stdout);
8742}
8743
b2175913
MS
8744static int remote_target_can_reverse = 1;
8745
8746static int
8747remote_can_execute_reverse (void)
8748{
8749 return remote_target_can_reverse;
8750}
8751
74531fed
PA
8752static int
8753remote_supports_non_stop (void)
8754{
8755 return 1;
8756}
8757
8a305172
PA
8758static int
8759remote_supports_multi_process (void)
8760{
8761 struct remote_state *rs = get_remote_state ();
8762 return remote_multi_process_p (rs);
8763}
8764
c906108c 8765static void
fba45db2 8766init_remote_ops (void)
c906108c 8767{
c5aa993b 8768 remote_ops.to_shortname = "remote";
c906108c 8769 remote_ops.to_longname = "Remote serial target in gdb-specific protocol";
c5aa993b 8770 remote_ops.to_doc =
c906108c 8771 "Use a remote computer via a serial line, using a gdb-specific protocol.\n\
0d06e24b
JM
8772Specify the serial device it is connected to\n\
8773(e.g. /dev/ttyS0, /dev/ttya, COM1, etc.).";
c5aa993b
JM
8774 remote_ops.to_open = remote_open;
8775 remote_ops.to_close = remote_close;
c906108c 8776 remote_ops.to_detach = remote_detach;
6ad8ae5c 8777 remote_ops.to_disconnect = remote_disconnect;
c5aa993b 8778 remote_ops.to_resume = remote_resume;
c906108c
SS
8779 remote_ops.to_wait = remote_wait;
8780 remote_ops.to_fetch_registers = remote_fetch_registers;
8781 remote_ops.to_store_registers = remote_store_registers;
8782 remote_ops.to_prepare_to_store = remote_prepare_to_store;
c8e73a31 8783 remote_ops.deprecated_xfer_memory = remote_xfer_memory;
c5aa993b 8784 remote_ops.to_files_info = remote_files_info;
c906108c
SS
8785 remote_ops.to_insert_breakpoint = remote_insert_breakpoint;
8786 remote_ops.to_remove_breakpoint = remote_remove_breakpoint;
3c3bea1c
GS
8787 remote_ops.to_stopped_by_watchpoint = remote_stopped_by_watchpoint;
8788 remote_ops.to_stopped_data_address = remote_stopped_data_address;
8789 remote_ops.to_can_use_hw_breakpoint = remote_check_watch_resources;
8790 remote_ops.to_insert_hw_breakpoint = remote_insert_hw_breakpoint;
8791 remote_ops.to_remove_hw_breakpoint = remote_remove_hw_breakpoint;
8792 remote_ops.to_insert_watchpoint = remote_insert_watchpoint;
8793 remote_ops.to_remove_watchpoint = remote_remove_watchpoint;
c5aa993b
JM
8794 remote_ops.to_kill = remote_kill;
8795 remote_ops.to_load = generic_load;
c906108c
SS
8796 remote_ops.to_mourn_inferior = remote_mourn;
8797 remote_ops.to_thread_alive = remote_thread_alive;
0f71a2f6 8798 remote_ops.to_find_new_threads = remote_threads_info;
0caabb7e 8799 remote_ops.to_pid_to_str = remote_pid_to_str;
cf759d3b 8800 remote_ops.to_extra_thread_info = remote_threads_extra_info;
c906108c 8801 remote_ops.to_stop = remote_stop;
4b8a223f 8802 remote_ops.to_xfer_partial = remote_xfer_partial;
96baa820 8803 remote_ops.to_rcmd = remote_rcmd;
49d03eab 8804 remote_ops.to_log_command = serial_log_command;
38691318 8805 remote_ops.to_get_thread_local_address = remote_get_thread_local_address;
c906108c 8806 remote_ops.to_stratum = process_stratum;
c5aa993b
JM
8807 remote_ops.to_has_all_memory = 1;
8808 remote_ops.to_has_memory = 1;
8809 remote_ops.to_has_stack = 1;
8810 remote_ops.to_has_registers = 1;
8811 remote_ops.to_has_execution = 1;
8812 remote_ops.to_has_thread_control = tc_schedlock; /* can lock scheduler */
b2175913 8813 remote_ops.to_can_execute_reverse = remote_can_execute_reverse;
c5aa993b 8814 remote_ops.to_magic = OPS_MAGIC;
fd79ecee 8815 remote_ops.to_memory_map = remote_memory_map;
a76d924d
DJ
8816 remote_ops.to_flash_erase = remote_flash_erase;
8817 remote_ops.to_flash_done = remote_flash_done;
29709017 8818 remote_ops.to_read_description = remote_read_description;
08388c79 8819 remote_ops.to_search_memory = remote_search_memory;
75c99385
PA
8820 remote_ops.to_can_async_p = remote_can_async_p;
8821 remote_ops.to_is_async_p = remote_is_async_p;
8822 remote_ops.to_async = remote_async;
8823 remote_ops.to_async_mask = remote_async_mask;
8824 remote_ops.to_terminal_inferior = remote_terminal_inferior;
8825 remote_ops.to_terminal_ours = remote_terminal_ours;
74531fed 8826 remote_ops.to_supports_non_stop = remote_supports_non_stop;
8a305172 8827 remote_ops.to_supports_multi_process = remote_supports_multi_process;
c906108c
SS
8828}
8829
8830/* Set up the extended remote vector by making a copy of the standard
8831 remote vector and adding to it. */
8832
8833static void
fba45db2 8834init_extended_remote_ops (void)
c906108c
SS
8835{
8836 extended_remote_ops = remote_ops;
8837
0f71a2f6 8838 extended_remote_ops.to_shortname = "extended-remote";
c5aa993b 8839 extended_remote_ops.to_longname =
c906108c 8840 "Extended remote serial target in gdb-specific protocol";
c5aa993b 8841 extended_remote_ops.to_doc =
c906108c 8842 "Use a remote computer via a serial line, using a gdb-specific protocol.\n\
39237dd1
PA
8843Specify the serial device it is connected to (e.g. /dev/ttya).";
8844 extended_remote_ops.to_open = extended_remote_open;
c906108c
SS
8845 extended_remote_ops.to_create_inferior = extended_remote_create_inferior;
8846 extended_remote_ops.to_mourn_inferior = extended_remote_mourn;
2d717e4f
DJ
8847 extended_remote_ops.to_detach = extended_remote_detach;
8848 extended_remote_ops.to_attach = extended_remote_attach;
82f73884 8849 extended_remote_ops.to_kill = extended_remote_kill;
0f71a2f6
JM
8850}
8851
6426a772
JM
8852static int
8853remote_can_async_p (void)
8854{
c6ebd6cf 8855 if (!target_async_permitted)
75c99385
PA
8856 /* We only enable async when the user specifically asks for it. */
8857 return 0;
8858
23860348 8859 /* We're async whenever the serial device is. */
b84876c2 8860 return remote_async_mask_value && serial_can_async_p (remote_desc);
6426a772
JM
8861}
8862
8863static int
8864remote_is_async_p (void)
8865{
c6ebd6cf 8866 if (!target_async_permitted)
75c99385
PA
8867 /* We only enable async when the user specifically asks for it. */
8868 return 0;
8869
23860348 8870 /* We're async whenever the serial device is. */
b84876c2 8871 return remote_async_mask_value && serial_is_async_p (remote_desc);
6426a772
JM
8872}
8873
2acceee2
JM
8874/* Pass the SERIAL event on and up to the client. One day this code
8875 will be able to delay notifying the client of an event until the
23860348 8876 point where an entire packet has been received. */
2acceee2 8877
2bc416ba 8878static void (*async_client_callback) (enum inferior_event_type event_type,
23860348 8879 void *context);
2acceee2
JM
8880static void *async_client_context;
8881static serial_event_ftype remote_async_serial_handler;
8882
6426a772 8883static void
819cc324 8884remote_async_serial_handler (struct serial *scb, void *context)
6426a772 8885{
2acceee2
JM
8886 /* Don't propogate error information up to the client. Instead let
8887 the client find out about the error by querying the target. */
8888 async_client_callback (INF_REG_EVENT, async_client_context);
8889}
8890
74531fed
PA
8891static void
8892remote_async_inferior_event_handler (gdb_client_data data)
8893{
8894 inferior_event_handler (INF_REG_EVENT, NULL);
8895}
8896
8897static void
8898remote_async_get_pending_events_handler (gdb_client_data data)
8899{
8900 remote_get_pending_stop_replies ();
8901}
8902
2acceee2 8903static void
2bc416ba 8904remote_async (void (*callback) (enum inferior_event_type event_type,
23860348 8905 void *context), void *context)
2acceee2 8906{
b84876c2 8907 if (remote_async_mask_value == 0)
8e65ff28 8908 internal_error (__FILE__, __LINE__,
e2e0b3e5 8909 _("Calling remote_async when async is masked"));
ed9a39eb 8910
2acceee2
JM
8911 if (callback != NULL)
8912 {
2cd58942 8913 serial_async (remote_desc, remote_async_serial_handler, NULL);
2acceee2
JM
8914 async_client_callback = callback;
8915 async_client_context = context;
8916 }
8917 else
2cd58942 8918 serial_async (remote_desc, NULL, NULL);
6426a772
JM
8919}
8920
b84876c2
PA
8921static int
8922remote_async_mask (int new_mask)
8923{
8924 int curr_mask = remote_async_mask_value;
8925 remote_async_mask_value = new_mask;
8926 return curr_mask;
8927}
8928
5a2468f5 8929static void
c2d11a7d 8930set_remote_cmd (char *args, int from_tty)
5a2468f5 8931{
427c3a89 8932 help_list (remote_set_cmdlist, "set remote ", -1, gdb_stdout);
5a2468f5
JM
8933}
8934
d471ea57
AC
8935static void
8936show_remote_cmd (char *args, int from_tty)
8937{
37a105a1 8938 /* We can't just use cmd_show_list here, because we want to skip
427c3a89 8939 the redundant "show remote Z-packet" and the legacy aliases. */
37a105a1
DJ
8940 struct cleanup *showlist_chain;
8941 struct cmd_list_element *list = remote_show_cmdlist;
8942
8943 showlist_chain = make_cleanup_ui_out_tuple_begin_end (uiout, "showlist");
8944 for (; list != NULL; list = list->next)
8945 if (strcmp (list->name, "Z-packet") == 0)
8946 continue;
427c3a89
DJ
8947 else if (list->type == not_set_cmd)
8948 /* Alias commands are exactly like the original, except they
8949 don't have the normal type. */
8950 continue;
8951 else
37a105a1
DJ
8952 {
8953 struct cleanup *option_chain
8954 = make_cleanup_ui_out_tuple_begin_end (uiout, "option");
8955 ui_out_field_string (uiout, "name", list->name);
8956 ui_out_text (uiout, ": ");
427c3a89
DJ
8957 if (list->type == show_cmd)
8958 do_setshow_command ((char *) NULL, from_tty, list);
8959 else
8960 cmd_func (list, NULL, from_tty);
37a105a1
DJ
8961 /* Close the tuple. */
8962 do_cleanups (option_chain);
8963 }
427c3a89
DJ
8964
8965 /* Close the tuple. */
8966 do_cleanups (showlist_chain);
d471ea57 8967}
5a2468f5 8968
0f71a2f6 8969
23860348 8970/* Function to be called whenever a new objfile (shlib) is detected. */
dc8acb97
MS
8971static void
8972remote_new_objfile (struct objfile *objfile)
8973{
23860348 8974 if (remote_desc != 0) /* Have a remote connection. */
06d3b283 8975 remote_check_symbols (objfile);
dc8acb97
MS
8976}
8977
c906108c 8978void
fba45db2 8979_initialize_remote (void)
c906108c 8980{
ea9c271d
DJ
8981 struct remote_state *rs;
8982
0f71a2f6 8983 /* architecture specific data */
2bc416ba 8984 remote_gdbarch_data_handle =
23860348 8985 gdbarch_data_register_post_init (init_remote_state);
29709017
DJ
8986 remote_g_packet_data_handle =
8987 gdbarch_data_register_pre_init (remote_g_packet_data_init);
d01949b6 8988
ea9c271d
DJ
8989 /* Initialize the per-target state. At the moment there is only one
8990 of these, not one per target. Only one target is active at a
8991 time. The default buffer size is unimportant; it will be expanded
8992 whenever a larger buffer is needed. */
0b83947e 8993 rs = get_remote_state_raw ();
ea9c271d
DJ
8994 rs->buf_size = 400;
8995 rs->buf = xmalloc (rs->buf_size);
8996
c906108c
SS
8997 init_remote_ops ();
8998 add_target (&remote_ops);
8999
9000 init_extended_remote_ops ();
9001 add_target (&extended_remote_ops);
cce74817 9002
dc8acb97 9003 /* Hook into new objfile notification. */
06d3b283 9004 observer_attach_new_objfile (remote_new_objfile);
dc8acb97 9005
b803fb0f
DJ
9006 /* Set up signal handlers. */
9007 sigint_remote_token =
9008 create_async_signal_handler (async_remote_interrupt, NULL);
9009 sigint_remote_twice_token =
9010 create_async_signal_handler (inferior_event_handler_wrapper, NULL);
9011
c906108c
SS
9012#if 0
9013 init_remote_threadtests ();
9014#endif
9015
23860348 9016 /* set/show remote ... */
d471ea57 9017
1bedd215 9018 add_prefix_cmd ("remote", class_maintenance, set_remote_cmd, _("\
5a2468f5
JM
9019Remote protocol specific variables\n\
9020Configure various remote-protocol specific variables such as\n\
1bedd215 9021the packets being used"),
cff3e48b 9022 &remote_set_cmdlist, "set remote ",
23860348 9023 0 /* allow-unknown */, &setlist);
1bedd215 9024 add_prefix_cmd ("remote", class_maintenance, show_remote_cmd, _("\
5a2468f5
JM
9025Remote protocol specific variables\n\
9026Configure various remote-protocol specific variables such as\n\
1bedd215 9027the packets being used"),
cff3e48b 9028 &remote_show_cmdlist, "show remote ",
23860348 9029 0 /* allow-unknown */, &showlist);
5a2468f5 9030
1a966eab
AC
9031 add_cmd ("compare-sections", class_obscure, compare_sections_command, _("\
9032Compare section data on target to the exec file.\n\
9033Argument is a single section name (default: all loaded sections)."),
c906108c
SS
9034 &cmdlist);
9035
1a966eab
AC
9036 add_cmd ("packet", class_maintenance, packet_command, _("\
9037Send an arbitrary packet to a remote target.\n\
c906108c
SS
9038 maintenance packet TEXT\n\
9039If GDB is talking to an inferior via the GDB serial protocol, then\n\
9040this command sends the string TEXT to the inferior, and displays the\n\
9041response packet. GDB supplies the initial `$' character, and the\n\
1a966eab 9042terminating `#' character and checksum."),
c906108c
SS
9043 &maintenancelist);
9044
7915a72c
AC
9045 add_setshow_boolean_cmd ("remotebreak", no_class, &remote_break, _("\
9046Set whether to send break if interrupted."), _("\
9047Show whether to send break if interrupted."), _("\
9048If set, a break, instead of a cntrl-c, is sent to the remote target."),
2c5b56ce 9049 NULL, NULL, /* FIXME: i18n: Whether to send break if interrupted is %s. */
e707bbc2 9050 &setlist, &showlist);
c906108c 9051
23860348 9052 /* Install commands for configuring memory read/write packets. */
11cf8741 9053
1a966eab
AC
9054 add_cmd ("remotewritesize", no_class, set_memory_write_packet_size, _("\
9055Set the maximum number of bytes per memory write packet (deprecated)."),
11cf8741 9056 &setlist);
1a966eab
AC
9057 add_cmd ("remotewritesize", no_class, show_memory_write_packet_size, _("\
9058Show the maximum number of bytes per memory write packet (deprecated)."),
11cf8741
JM
9059 &showlist);
9060 add_cmd ("memory-write-packet-size", no_class,
1a966eab
AC
9061 set_memory_write_packet_size, _("\
9062Set the maximum number of bytes per memory-write packet.\n\
9063Specify the number of bytes in a packet or 0 (zero) for the\n\
9064default packet size. The actual limit is further reduced\n\
9065dependent on the target. Specify ``fixed'' to disable the\n\
9066further restriction and ``limit'' to enable that restriction."),
11cf8741
JM
9067 &remote_set_cmdlist);
9068 add_cmd ("memory-read-packet-size", no_class,
1a966eab
AC
9069 set_memory_read_packet_size, _("\
9070Set the maximum number of bytes per memory-read packet.\n\
9071Specify the number of bytes in a packet or 0 (zero) for the\n\
9072default packet size. The actual limit is further reduced\n\
9073dependent on the target. Specify ``fixed'' to disable the\n\
9074further restriction and ``limit'' to enable that restriction."),
11cf8741
JM
9075 &remote_set_cmdlist);
9076 add_cmd ("memory-write-packet-size", no_class,
9077 show_memory_write_packet_size,
1a966eab 9078 _("Show the maximum number of bytes per memory-write packet."),
11cf8741
JM
9079 &remote_show_cmdlist);
9080 add_cmd ("memory-read-packet-size", no_class,
9081 show_memory_read_packet_size,
1a966eab 9082 _("Show the maximum number of bytes per memory-read packet."),
11cf8741 9083 &remote_show_cmdlist);
c906108c 9084
b3f42336 9085 add_setshow_zinteger_cmd ("hardware-watchpoint-limit", no_class,
7915a72c
AC
9086 &remote_hw_watchpoint_limit, _("\
9087Set the maximum number of target hardware watchpoints."), _("\
9088Show the maximum number of target hardware watchpoints."), _("\
9089Specify a negative limit for unlimited."),
2c5b56ce 9090 NULL, NULL, /* FIXME: i18n: The maximum number of target hardware watchpoints is %s. */
b3f42336
AC
9091 &remote_set_cmdlist, &remote_show_cmdlist);
9092 add_setshow_zinteger_cmd ("hardware-breakpoint-limit", no_class,
7915a72c
AC
9093 &remote_hw_breakpoint_limit, _("\
9094Set the maximum number of target hardware breakpoints."), _("\
9095Show the maximum number of target hardware breakpoints."), _("\
9096Specify a negative limit for unlimited."),
2c5b56ce 9097 NULL, NULL, /* FIXME: i18n: The maximum number of target hardware breakpoints is %s. */
b3f42336 9098 &remote_set_cmdlist, &remote_show_cmdlist);
501eef12 9099
4d28ad1e
AC
9100 add_setshow_integer_cmd ("remoteaddresssize", class_obscure,
9101 &remote_address_size, _("\
9102Set the maximum size of the address (in bits) in a memory packet."), _("\
9103Show the maximum size of the address (in bits) in a memory packet."), NULL,
9104 NULL,
9105 NULL, /* FIXME: i18n: */
9106 &setlist, &showlist);
c906108c 9107
444abaca 9108 add_packet_config_cmd (&remote_protocol_packets[PACKET_X],
bb572ddd 9109 "X", "binary-download", 1);
0f71a2f6 9110
444abaca 9111 add_packet_config_cmd (&remote_protocol_packets[PACKET_vCont],
bb572ddd 9112 "vCont", "verbose-resume", 0);
506fb367 9113
89be2091
DJ
9114 add_packet_config_cmd (&remote_protocol_packets[PACKET_QPassSignals],
9115 "QPassSignals", "pass-signals", 0);
9116
444abaca 9117 add_packet_config_cmd (&remote_protocol_packets[PACKET_qSymbol],
bb572ddd 9118 "qSymbol", "symbol-lookup", 0);
dc8acb97 9119
444abaca 9120 add_packet_config_cmd (&remote_protocol_packets[PACKET_P],
bb572ddd 9121 "P", "set-register", 1);
d471ea57 9122
444abaca 9123 add_packet_config_cmd (&remote_protocol_packets[PACKET_p],
bb572ddd 9124 "p", "fetch-register", 1);
b96ec7ac 9125
444abaca 9126 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z0],
bb572ddd 9127 "Z0", "software-breakpoint", 0);
d471ea57 9128
444abaca 9129 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z1],
bb572ddd 9130 "Z1", "hardware-breakpoint", 0);
d471ea57 9131
444abaca 9132 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z2],
bb572ddd 9133 "Z2", "write-watchpoint", 0);
d471ea57 9134
444abaca 9135 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z3],
bb572ddd 9136 "Z3", "read-watchpoint", 0);
d471ea57 9137
444abaca 9138 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z4],
bb572ddd 9139 "Z4", "access-watchpoint", 0);
d471ea57 9140
0876f84a
DJ
9141 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_auxv],
9142 "qXfer:auxv:read", "read-aux-vector", 0);
802188a7 9143
23181151
DJ
9144 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_features],
9145 "qXfer:features:read", "target-features", 0);
9146
cfa9d6d9
DJ
9147 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_libraries],
9148 "qXfer:libraries:read", "library-info", 0);
9149
fd79ecee
DJ
9150 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_memory_map],
9151 "qXfer:memory-map:read", "memory-map", 0);
9152
0e7f50da
UW
9153 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_spu_read],
9154 "qXfer:spu:read", "read-spu-object", 0);
9155
9156 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_spu_write],
9157 "qXfer:spu:write", "write-spu-object", 0);
9158
07e059b5
VP
9159 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_osdata],
9160 "qXfer:osdata:read", "osdata", 0);
9161
4aa995e1
PA
9162 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_siginfo_read],
9163 "qXfer:siginfo:read", "read-siginfo-object", 0);
9164
9165 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_siginfo_write],
9166 "qXfer:siginfo:write", "write-siginfo-object", 0);
9167
444abaca 9168 add_packet_config_cmd (&remote_protocol_packets[PACKET_qGetTLSAddr],
38691318 9169 "qGetTLSAddr", "get-thread-local-storage-address",
38691318
KB
9170 0);
9171
be2a5f71
DJ
9172 add_packet_config_cmd (&remote_protocol_packets[PACKET_qSupported],
9173 "qSupported", "supported-packets", 0);
9174
08388c79
DE
9175 add_packet_config_cmd (&remote_protocol_packets[PACKET_qSearch_memory],
9176 "qSearch:memory", "search-memory", 0);
9177
a6b151f1
DJ
9178 add_packet_config_cmd (&remote_protocol_packets[PACKET_vFile_open],
9179 "vFile:open", "hostio-open", 0);
9180
9181 add_packet_config_cmd (&remote_protocol_packets[PACKET_vFile_pread],
9182 "vFile:pread", "hostio-pread", 0);
9183
9184 add_packet_config_cmd (&remote_protocol_packets[PACKET_vFile_pwrite],
9185 "vFile:pwrite", "hostio-pwrite", 0);
9186
9187 add_packet_config_cmd (&remote_protocol_packets[PACKET_vFile_close],
9188 "vFile:close", "hostio-close", 0);
9189
9190 add_packet_config_cmd (&remote_protocol_packets[PACKET_vFile_unlink],
9191 "vFile:unlink", "hostio-unlink", 0);
9192
2d717e4f
DJ
9193 add_packet_config_cmd (&remote_protocol_packets[PACKET_vAttach],
9194 "vAttach", "attach", 0);
9195
9196 add_packet_config_cmd (&remote_protocol_packets[PACKET_vRun],
9197 "vRun", "run", 0);
9198
a6f3e723
SL
9199 add_packet_config_cmd (&remote_protocol_packets[PACKET_QStartNoAckMode],
9200 "QStartNoAckMode", "noack", 0);
9201
82f73884
PA
9202 add_packet_config_cmd (&remote_protocol_packets[PACKET_vKill],
9203 "vKill", "kill", 0);
9204
0b16c5cf
PA
9205 add_packet_config_cmd (&remote_protocol_packets[PACKET_qAttached],
9206 "qAttached", "query-attached", 0);
9207
37a105a1
DJ
9208 /* Keep the old ``set remote Z-packet ...'' working. Each individual
9209 Z sub-packet has its own set and show commands, but users may
9210 have sets to this variable in their .gdbinit files (or in their
9211 documentation). */
e9e68a56 9212 add_setshow_auto_boolean_cmd ("Z-packet", class_obscure,
7915a72c
AC
9213 &remote_Z_packet_detect, _("\
9214Set use of remote protocol `Z' packets"), _("\
9215Show use of remote protocol `Z' packets "), _("\
3b64bf98 9216When set, GDB will attempt to use the remote breakpoint and watchpoint\n\
7915a72c 9217packets."),
e9e68a56 9218 set_remote_protocol_Z_packet_cmd,
2c5b56ce 9219 show_remote_protocol_Z_packet_cmd, /* FIXME: i18n: Use of remote protocol `Z' packets is %s. */
e9e68a56 9220 &remote_set_cmdlist, &remote_show_cmdlist);
449092f6 9221
a6b151f1
DJ
9222 add_prefix_cmd ("remote", class_files, remote_command, _("\
9223Manipulate files on the remote system\n\
9224Transfer files to and from the remote target system."),
9225 &remote_cmdlist, "remote ",
9226 0 /* allow-unknown */, &cmdlist);
9227
9228 add_cmd ("put", class_files, remote_put_command,
9229 _("Copy a local file to the remote system."),
9230 &remote_cmdlist);
9231
9232 add_cmd ("get", class_files, remote_get_command,
9233 _("Copy a remote file to the local system."),
9234 &remote_cmdlist);
9235
9236 add_cmd ("delete", class_files, remote_delete_command,
9237 _("Delete a remote file."),
9238 &remote_cmdlist);
9239
2d717e4f
DJ
9240 remote_exec_file = xstrdup ("");
9241 add_setshow_string_noescape_cmd ("exec-file", class_files,
9242 &remote_exec_file, _("\
9243Set the remote pathname for \"run\""), _("\
9244Show the remote pathname for \"run\""), NULL, NULL, NULL,
9245 &remote_set_cmdlist, &remote_show_cmdlist);
9246
449092f6
CV
9247 /* Eventually initialize fileio. See fileio.c */
9248 initialize_remote_fileio (remote_set_cmdlist, remote_show_cmdlist);
79d7f229
PA
9249
9250 /* Take advantage of the fact that the LWP field is not used, to tag
9251 special ptids with it set to != 0. */
82f73884
PA
9252 magic_null_ptid = ptid_build (42000, 1, -1);
9253 not_sent_ptid = ptid_build (42000, 1, -2);
9254 any_thread_ptid = ptid_build (42000, 1, 0);
c906108c 9255}
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