* target.h (struct regcache): Add forward declaration.
[deliverable/binutils-gdb.git] / gdb / remote.c
CommitLineData
c906108c 1/* Remote target communications for serial-line targets in custom GDB protocol
8926118c 2
6aba47ca
DJ
3 Copyright (C) 1988, 1989, 1990, 1991, 1992, 1993, 1994, 1995, 1996, 1997,
4 1998, 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007
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
11 the Free Software Foundation; either version 2 of the License, or
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
20 along with this program; if not, write to the Free Software
197e01b6
EZ
21 Foundation, Inc., 51 Franklin Street, Fifth Floor,
22 Boston, MA 02110-1301, USA. */
c5aa993b 23
23860348 24/* See the GDB User Guide for details of the GDB remote protocol. */
c5aa993b 25
c906108c
SS
26#include "defs.h"
27#include "gdb_string.h"
28#include <ctype.h>
29#include <fcntl.h>
c906108c
SS
30#include "inferior.h"
31#include "bfd.h"
32#include "symfile.h"
60250e8b 33#include "exceptions.h"
c906108c 34#include "target.h"
c5aa993b 35/*#include "terminal.h" */
c906108c
SS
36#include "gdbcmd.h"
37#include "objfiles.h"
38#include "gdb-stabs.h"
39#include "gdbthread.h"
c2c6d25f 40#include "remote.h"
4e052eda 41#include "regcache.h"
fd0407d6 42#include "value.h"
1ff9c3d6 43#include "gdb_assert.h"
6867ae3e 44#include "observer.h"
a77053c2 45#include "solib.h"
37a105a1
DJ
46#include "cli/cli-decode.h"
47#include "cli/cli-setshow.h"
424163ea 48#include "target-descriptions.h"
c906108c 49
7a292a7a 50#include <ctype.h>
9846de1b 51#include <sys/time.h>
c906108c 52
43ff13b4 53#include "event-loop.h"
c2c6d25f 54#include "event-top.h"
2acceee2 55#include "inf-loop.h"
43ff13b4 56
c906108c
SS
57#include <signal.h>
58#include "serial.h"
59
6240bebf
MS
60#include "gdbcore.h" /* for exec_bfd */
61
449092f6
CV
62#include "remote-fileio.h"
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);
6426a772 82
a14ed312
KB
83static void handle_remote_sigint (int);
84static void handle_remote_sigint_twice (int);
85static void async_remote_interrupt (gdb_client_data);
86void async_remote_interrupt_twice (gdb_client_data);
43ff13b4 87
a14ed312 88static void build_remote_gdbarch_data (void);
0f71a2f6 89
a14ed312 90static void remote_files_info (struct target_ops *ignore);
c906108c 91
a14ed312 92static void remote_prepare_to_store (void);
c906108c 93
56be3814 94static void remote_fetch_registers (struct regcache *regcache, int regno);
c906108c 95
39f77062
KB
96static void remote_resume (ptid_t ptid, int step,
97 enum target_signal siggnal);
98static void remote_async_resume (ptid_t ptid, int step,
a14ed312 99 enum target_signal siggnal);
a14ed312
KB
100static void remote_open (char *name, int from_tty);
101static void remote_async_open (char *name, int from_tty);
c906108c 102
a14ed312
KB
103static void extended_remote_open (char *name, int from_tty);
104static void extended_remote_async_open (char *name, int from_tty);
c906108c 105
92d1e331
DJ
106static void remote_open_1 (char *, int, struct target_ops *, int extended_p,
107 int async_p);
c906108c 108
a14ed312 109static void remote_close (int quitting);
c906108c 110
56be3814 111static void remote_store_registers (struct regcache *regcache, int regno);
c906108c 112
a14ed312
KB
113static void remote_mourn (void);
114static void remote_async_mourn (void);
c906108c 115
a14ed312 116static void extended_remote_restart (void);
c906108c 117
a14ed312 118static void extended_remote_mourn (void);
c906108c 119
a14ed312 120static void remote_mourn_1 (struct target_ops *);
c906108c 121
6d820c5c 122static void remote_send (char **buf, long *sizeof_buf_p);
c906108c 123
a14ed312 124static int readchar (int timeout);
c906108c 125
39f77062
KB
126static ptid_t remote_wait (ptid_t ptid,
127 struct target_waitstatus *status);
128static ptid_t remote_async_wait (ptid_t ptid,
129 struct target_waitstatus *status);
c906108c 130
a14ed312
KB
131static void remote_kill (void);
132static void remote_async_kill (void);
c906108c 133
a14ed312 134static int tohex (int nib);
c906108c 135
a14ed312 136static void remote_detach (char *args, int from_tty);
c906108c 137
a14ed312 138static void remote_interrupt (int signo);
c906108c 139
a14ed312 140static void remote_interrupt_twice (int signo);
7a292a7a 141
a14ed312 142static void interrupt_query (void);
c906108c 143
a14ed312 144static void set_thread (int, int);
c906108c 145
39f77062 146static int remote_thread_alive (ptid_t);
c906108c 147
a14ed312 148static void get_offsets (void);
c906108c 149
6d820c5c
DJ
150static void skip_frame (void);
151
152static long read_frame (char **buf_p, long *sizeof_buf);
c906108c 153
a14ed312 154static int hexnumlen (ULONGEST num);
c906108c 155
a14ed312 156static void init_remote_ops (void);
c906108c 157
a14ed312 158static void init_extended_remote_ops (void);
c906108c 159
a14ed312 160static void remote_stop (void);
c906108c 161
a14ed312 162static int ishex (int ch, int *val);
c906108c 163
a14ed312 164static int stubhex (int ch);
c906108c 165
a14ed312 166static int hexnumstr (char *, ULONGEST);
c906108c 167
a14ed312 168static int hexnumnstr (char *, ULONGEST, int);
2df3850c 169
a14ed312 170static CORE_ADDR remote_address_masked (CORE_ADDR);
c906108c 171
a14ed312 172static void print_packet (char *);
c906108c 173
a14ed312 174static unsigned long crc32 (unsigned char *, int, unsigned int);
c906108c 175
a14ed312 176static void compare_sections_command (char *, int);
c906108c 177
a14ed312 178static void packet_command (char *, int);
c906108c 179
a14ed312 180static int stub_unpack_int (char *buff, int fieldlength);
c906108c 181
39f77062 182static ptid_t remote_current_thread (ptid_t oldptid);
c906108c 183
a14ed312 184static void remote_find_new_threads (void);
c906108c 185
a14ed312 186static void record_currthread (int currthread);
c906108c 187
30559e10 188static int fromhex (int a);
c906108c 189
cfd77fa1 190static int hex2bin (const char *hex, gdb_byte *bin, int count);
c906108c 191
cfd77fa1 192static int bin2hex (const gdb_byte *bin, char *hex, int count);
234fa6d1 193
a14ed312 194static int putpkt_binary (char *buf, int cnt);
c906108c 195
a14ed312 196static void check_binary_download (CORE_ADDR addr);
c906108c 197
5a2468f5 198struct packet_config;
5a2468f5 199
a14ed312 200static void show_packet_config_cmd (struct packet_config *config);
5a2468f5 201
d471ea57 202static void update_packet_config (struct packet_config *config);
5a2468f5 203
bb572ddd
DJ
204static void set_remote_protocol_packet_cmd (char *args, int from_tty,
205 struct cmd_list_element *c);
206
207static void show_remote_protocol_packet_cmd (struct ui_file *file,
208 int from_tty,
209 struct cmd_list_element *c,
210 const char *value);
211
a14ed312 212void _initialize_remote (void);
c906108c 213
bb572ddd
DJ
214/* For "set remote" and "show remote". */
215
216static struct cmd_list_element *remote_set_cmdlist;
217static struct cmd_list_element *remote_show_cmdlist;
218
ea9c271d
DJ
219/* Description of the remote protocol state for the currently
220 connected target. This is per-target state, and independent of the
221 selected architecture. */
222
223struct remote_state
224{
225 /* A buffer to use for incoming packets, and its current size. The
226 buffer is grown dynamically for larger incoming packets.
227 Outgoing packets may also be constructed in this buffer.
228 BUF_SIZE is always at least REMOTE_PACKET_SIZE;
229 REMOTE_PACKET_SIZE should be used to limit the length of outgoing
230 packets. */
231 char *buf;
232 long buf_size;
be2a5f71
DJ
233
234 /* If we negotiated packet size explicitly (and thus can bypass
235 heuristics for the largest packet size that will not overflow
236 a buffer in the stub), this will be set to that packet size.
237 Otherwise zero, meaning to use the guessed size. */
238 long explicit_packet_size;
ea9c271d
DJ
239};
240
241/* This data could be associated with a target, but we do not always
242 have access to the current target when we need it, so for now it is
243 static. This will be fine for as long as only one target is in use
244 at a time. */
245static struct remote_state remote_state;
246
247static struct remote_state *
0b83947e 248get_remote_state_raw (void)
ea9c271d
DJ
249{
250 return &remote_state;
251}
252
253/* Description of the remote protocol for a given architecture. */
d01949b6 254
ad10f812
AC
255struct packet_reg
256{
257 long offset; /* Offset into G packet. */
258 long regnum; /* GDB's internal register number. */
259 LONGEST pnum; /* Remote protocol register number. */
b323314b 260 int in_g_packet; /* Always part of G packet. */
2bc416ba 261 /* long size in bytes; == register_size (current_gdbarch, regnum);
23860348 262 at present. */
ad10f812
AC
263 /* char *name; == REGISTER_NAME (regnum); at present. */
264};
265
ea9c271d 266struct remote_arch_state
d01949b6 267{
ad10f812
AC
268 /* Description of the remote protocol registers. */
269 long sizeof_g_packet;
b323314b
AC
270
271 /* Description of the remote protocol registers indexed by REGNUM
74ca34ce 272 (making an array NUM_REGS in size). */
b323314b 273 struct packet_reg *regs;
ad10f812 274
d01949b6
AC
275 /* This is the size (in chars) of the first response to the ``g''
276 packet. It is used as a heuristic when determining the maximum
277 size of memory-read and memory-write packets. A target will
278 typically only reserve a buffer large enough to hold the ``g''
279 packet. The size does not include packet overhead (headers and
23860348 280 trailers). */
d01949b6
AC
281 long actual_register_packet_size;
282
283 /* This is the maximum size (in chars) of a non read/write packet.
23860348 284 It is also used as a cap on the size of read/write packets. */
d01949b6
AC
285 long remote_packet_size;
286};
287
3c3bea1c 288
d01949b6
AC
289/* Handle for retreving the remote protocol data from gdbarch. */
290static struct gdbarch_data *remote_gdbarch_data_handle;
291
ea9c271d
DJ
292static struct remote_arch_state *
293get_remote_arch_state (void)
d01949b6 294{
451fbdda 295 return gdbarch_data (current_gdbarch, remote_gdbarch_data_handle);
d01949b6
AC
296}
297
0b83947e
DJ
298/* Fetch the global remote target state. */
299
300static struct remote_state *
301get_remote_state (void)
302{
303 /* Make sure that the remote architecture state has been
304 initialized, because doing so might reallocate rs->buf. Any
305 function which calls getpkt also needs to be mindful of changes
306 to rs->buf, but this call limits the number of places which run
307 into trouble. */
308 get_remote_arch_state ();
309
310 return get_remote_state_raw ();
311}
312
74ca34ce
DJ
313static int
314compare_pnums (const void *lhs_, const void *rhs_)
315{
316 const struct packet_reg * const *lhs = lhs_;
317 const struct packet_reg * const *rhs = rhs_;
318
319 if ((*lhs)->pnum < (*rhs)->pnum)
320 return -1;
321 else if ((*lhs)->pnum == (*rhs)->pnum)
322 return 0;
323 else
324 return 1;
325}
326
d01949b6
AC
327static void *
328init_remote_state (struct gdbarch *gdbarch)
329{
74ca34ce 330 int regnum, num_remote_regs, offset;
0b83947e 331 struct remote_state *rs = get_remote_state_raw ();
ea9c271d 332 struct remote_arch_state *rsa;
74ca34ce 333 struct packet_reg **remote_regs;
ea9c271d
DJ
334
335 rsa = GDBARCH_OBSTACK_ZALLOC (gdbarch, struct remote_arch_state);
d01949b6 336
123dc839
DJ
337 /* Use the architecture to build a regnum<->pnum table, which will be
338 1:1 unless a feature set specifies otherwise. */
74ca34ce
DJ
339 rsa->regs = GDBARCH_OBSTACK_CALLOC (gdbarch, NUM_REGS, struct packet_reg);
340 for (regnum = 0; regnum < NUM_REGS; regnum++)
ad10f812 341 {
ea9c271d 342 struct packet_reg *r = &rsa->regs[regnum];
baef701f
DJ
343
344 if (register_size (current_gdbarch, regnum) == 0)
345 /* Do not try to fetch zero-sized (placeholder) registers. */
346 r->pnum = -1;
347 else
348 r->pnum = gdbarch_remote_register_number (gdbarch, regnum);
349
b323314b 350 r->regnum = regnum;
74ca34ce
DJ
351 }
352
353 /* Define the g/G packet format as the contents of each register
354 with a remote protocol number, in order of ascending protocol
355 number. */
356
357 remote_regs = alloca (NUM_REGS * sizeof (struct packet_reg *));
358 for (num_remote_regs = 0, regnum = 0; regnum < NUM_REGS; regnum++)
359 if (rsa->regs[regnum].pnum != -1)
360 remote_regs[num_remote_regs++] = &rsa->regs[regnum];
7d58c67d 361
74ca34ce
DJ
362 qsort (remote_regs, num_remote_regs, sizeof (struct packet_reg *),
363 compare_pnums);
364
365 for (regnum = 0, offset = 0; regnum < num_remote_regs; regnum++)
366 {
367 remote_regs[regnum]->in_g_packet = 1;
368 remote_regs[regnum]->offset = offset;
369 offset += register_size (current_gdbarch, remote_regs[regnum]->regnum);
ad10f812
AC
370 }
371
74ca34ce
DJ
372 /* Record the maximum possible size of the g packet - it may turn out
373 to be smaller. */
374 rsa->sizeof_g_packet = offset;
375
d01949b6
AC
376 /* Default maximum number of characters in a packet body. Many
377 remote stubs have a hardwired buffer size of 400 bytes
378 (c.f. BUFMAX in m68k-stub.c and i386-stub.c). BUFMAX-1 is used
379 as the maximum packet-size to ensure that the packet and an extra
380 NUL character can always fit in the buffer. This stops GDB
381 trashing stubs that try to squeeze an extra NUL into what is
ea9c271d
DJ
382 already a full buffer (As of 1999-12-04 that was most stubs). */
383 rsa->remote_packet_size = 400 - 1;
d01949b6 384
ea9c271d
DJ
385 /* This one is filled in when a ``g'' packet is received. */
386 rsa->actual_register_packet_size = 0;
387
388 /* Should rsa->sizeof_g_packet needs more space than the
ad10f812
AC
389 default, adjust the size accordingly. Remember that each byte is
390 encoded as two characters. 32 is the overhead for the packet
391 header / footer. NOTE: cagney/1999-10-26: I suspect that 8
d01949b6 392 (``$NN:G...#NN'') is a better guess, the below has been padded a
23860348 393 little. */
ea9c271d
DJ
394 if (rsa->sizeof_g_packet > ((rsa->remote_packet_size - 32) / 2))
395 rsa->remote_packet_size = (rsa->sizeof_g_packet * 2 + 32);
802188a7 396
ea9c271d
DJ
397 /* Make sure that the packet buffer is plenty big enough for
398 this architecture. */
399 if (rs->buf_size < rsa->remote_packet_size)
400 {
401 rs->buf_size = 2 * rsa->remote_packet_size;
7fca722e 402 rs->buf = xrealloc (rs->buf, rs->buf_size);
ea9c271d 403 }
6d820c5c 404
ea9c271d
DJ
405 return rsa;
406}
407
408/* Return the current allowed size of a remote packet. This is
409 inferred from the current architecture, and should be used to
410 limit the length of outgoing packets. */
411static long
412get_remote_packet_size (void)
413{
be2a5f71 414 struct remote_state *rs = get_remote_state ();
ea9c271d
DJ
415 struct remote_arch_state *rsa = get_remote_arch_state ();
416
be2a5f71
DJ
417 if (rs->explicit_packet_size)
418 return rs->explicit_packet_size;
419
ea9c271d 420 return rsa->remote_packet_size;
d01949b6
AC
421}
422
ad10f812 423static struct packet_reg *
ea9c271d 424packet_reg_from_regnum (struct remote_arch_state *rsa, long regnum)
ad10f812 425{
74ca34ce 426 if (regnum < 0 && regnum >= NUM_REGS)
b323314b
AC
427 return NULL;
428 else
ad10f812 429 {
ea9c271d 430 struct packet_reg *r = &rsa->regs[regnum];
b323314b
AC
431 gdb_assert (r->regnum == regnum);
432 return r;
ad10f812 433 }
ad10f812
AC
434}
435
436static struct packet_reg *
ea9c271d 437packet_reg_from_pnum (struct remote_arch_state *rsa, LONGEST pnum)
ad10f812 438{
b323314b 439 int i;
74ca34ce 440 for (i = 0; i < NUM_REGS; i++)
ad10f812 441 {
ea9c271d 442 struct packet_reg *r = &rsa->regs[i];
b323314b
AC
443 if (r->pnum == pnum)
444 return r;
ad10f812
AC
445 }
446 return NULL;
d01949b6
AC
447}
448
3c3bea1c
GS
449/* FIXME: graces/2002-08-08: These variables should eventually be
450 bound to an instance of the target object (as in gdbarch-tdep()),
451 when such a thing exists. */
452
453/* This is set to the data address of the access causing the target
454 to stop for a watchpoint. */
455static CORE_ADDR remote_watch_data_address;
456
94e08568 457/* This is non-zero if target stopped for a watchpoint. */
3c3bea1c
GS
458static int remote_stopped_by_watchpoint_p;
459
c906108c
SS
460static struct target_ops remote_ops;
461
462static struct target_ops extended_remote_ops;
463
43ff13b4 464/* Temporary target ops. Just like the remote_ops and
23860348 465 extended_remote_ops, but with asynchronous support. */
43ff13b4
JM
466static struct target_ops remote_async_ops;
467
468static struct target_ops extended_async_remote_ops;
469
6426a772
JM
470/* FIXME: cagney/1999-09-23: Even though getpkt was called with
471 ``forever'' still use the normal timeout mechanism. This is
472 currently used by the ASYNC code to guarentee that target reads
473 during the initial connect always time-out. Once getpkt has been
474 modified to return a timeout indication and, in turn
475 remote_wait()/wait_for_inferior() have gained a timeout parameter
23860348 476 this can go away. */
6426a772
JM
477static int wait_forever_enabled_p = 1;
478
479
c906108c
SS
480/* This variable chooses whether to send a ^C or a break when the user
481 requests program interruption. Although ^C is usually what remote
482 systems expect, and that is the default here, sometimes a break is
483 preferable instead. */
484
485static int remote_break;
486
c906108c
SS
487/* Descriptor for I/O to remote machine. Initialize it to NULL so that
488 remote_open knows that we don't have a file open when the program
489 starts. */
819cc324 490static struct serial *remote_desc = NULL;
c906108c 491
c906108c
SS
492/* This variable sets the number of bits in an address that are to be
493 sent in a memory ("M" or "m") packet. Normally, after stripping
494 leading zeros, the entire address would be sent. This variable
495 restricts the address to REMOTE_ADDRESS_SIZE bits. HISTORY: The
496 initial implementation of remote.c restricted the address sent in
497 memory packets to ``host::sizeof long'' bytes - (typically 32
498 bits). Consequently, for 64 bit targets, the upper 32 bits of an
499 address was never sent. Since fixing this bug may cause a break in
500 some remote targets this variable is principly provided to
23860348 501 facilitate backward compatibility. */
c906108c
SS
502
503static int remote_address_size;
504
6426a772
JM
505/* Tempoary to track who currently owns the terminal. See
506 target_async_terminal_* for more details. */
507
508static int remote_async_terminal_ours_p;
509
11cf8741 510\f
11cf8741 511/* User configurable variables for the number of characters in a
ea9c271d
DJ
512 memory read/write packet. MIN (rsa->remote_packet_size,
513 rsa->sizeof_g_packet) is the default. Some targets need smaller
24b06219 514 values (fifo overruns, et.al.) and some users need larger values
ad10f812
AC
515 (speed up transfers). The variables ``preferred_*'' (the user
516 request), ``current_*'' (what was actually set) and ``forced_*''
23860348 517 (Positive - a soft limit, negative - a hard limit). */
11cf8741
JM
518
519struct memory_packet_config
520{
521 char *name;
522 long size;
523 int fixed_p;
524};
525
526/* Compute the current size of a read/write packet. Since this makes
527 use of ``actual_register_packet_size'' the computation is dynamic. */
528
529static long
530get_memory_packet_size (struct memory_packet_config *config)
531{
d01949b6 532 struct remote_state *rs = get_remote_state ();
ea9c271d
DJ
533 struct remote_arch_state *rsa = get_remote_arch_state ();
534
11cf8741
JM
535 /* NOTE: The somewhat arbitrary 16k comes from the knowledge (folk
536 law?) that some hosts don't cope very well with large alloca()
537 calls. Eventually the alloca() code will be replaced by calls to
538 xmalloc() and make_cleanups() allowing this restriction to either
23860348 539 be lifted or removed. */
11cf8741
JM
540#ifndef MAX_REMOTE_PACKET_SIZE
541#define MAX_REMOTE_PACKET_SIZE 16384
542#endif
3de11b2e 543 /* NOTE: 20 ensures we can write at least one byte. */
11cf8741 544#ifndef MIN_REMOTE_PACKET_SIZE
3de11b2e 545#define MIN_REMOTE_PACKET_SIZE 20
11cf8741
JM
546#endif
547 long what_they_get;
548 if (config->fixed_p)
549 {
550 if (config->size <= 0)
551 what_they_get = MAX_REMOTE_PACKET_SIZE;
552 else
553 what_they_get = config->size;
554 }
555 else
556 {
ea9c271d 557 what_they_get = get_remote_packet_size ();
23860348 558 /* Limit the packet to the size specified by the user. */
11cf8741
JM
559 if (config->size > 0
560 && what_they_get > config->size)
561 what_they_get = config->size;
be2a5f71
DJ
562
563 /* Limit it to the size of the targets ``g'' response unless we have
564 permission from the stub to use a larger packet size. */
565 if (rs->explicit_packet_size == 0
566 && rsa->actual_register_packet_size > 0
567 && what_they_get > rsa->actual_register_packet_size)
568 what_they_get = rsa->actual_register_packet_size;
11cf8741
JM
569 }
570 if (what_they_get > MAX_REMOTE_PACKET_SIZE)
571 what_they_get = MAX_REMOTE_PACKET_SIZE;
572 if (what_they_get < MIN_REMOTE_PACKET_SIZE)
573 what_they_get = MIN_REMOTE_PACKET_SIZE;
6d820c5c
DJ
574
575 /* Make sure there is room in the global buffer for this packet
576 (including its trailing NUL byte). */
577 if (rs->buf_size < what_they_get + 1)
578 {
579 rs->buf_size = 2 * what_they_get;
580 rs->buf = xrealloc (rs->buf, 2 * what_they_get);
581 }
582
11cf8741
JM
583 return what_they_get;
584}
585
586/* Update the size of a read/write packet. If they user wants
23860348 587 something really big then do a sanity check. */
11cf8741
JM
588
589static void
590set_memory_packet_size (char *args, struct memory_packet_config *config)
591{
592 int fixed_p = config->fixed_p;
593 long size = config->size;
594 if (args == NULL)
8a3fe4f8 595 error (_("Argument required (integer, `fixed' or `limited')."));
11cf8741
JM
596 else if (strcmp (args, "hard") == 0
597 || strcmp (args, "fixed") == 0)
598 fixed_p = 1;
599 else if (strcmp (args, "soft") == 0
600 || strcmp (args, "limit") == 0)
601 fixed_p = 0;
602 else
603 {
604 char *end;
605 size = strtoul (args, &end, 0);
606 if (args == end)
8a3fe4f8 607 error (_("Invalid %s (bad syntax)."), config->name);
11cf8741
JM
608#if 0
609 /* Instead of explicitly capping the size of a packet to
610 MAX_REMOTE_PACKET_SIZE or dissallowing it, the user is
611 instead allowed to set the size to something arbitrarily
23860348 612 large. */
11cf8741 613 if (size > MAX_REMOTE_PACKET_SIZE)
8a3fe4f8 614 error (_("Invalid %s (too large)."), config->name);
11cf8741
JM
615#endif
616 }
23860348 617 /* Extra checks? */
11cf8741
JM
618 if (fixed_p && !config->fixed_p)
619 {
e2e0b3e5
AC
620 if (! query (_("The target may not be able to correctly handle a %s\n"
621 "of %ld bytes. Change the packet size? "),
11cf8741 622 config->name, size))
8a3fe4f8 623 error (_("Packet size not changed."));
11cf8741 624 }
23860348 625 /* Update the config. */
11cf8741
JM
626 config->fixed_p = fixed_p;
627 config->size = size;
628}
629
630static void
631show_memory_packet_size (struct memory_packet_config *config)
632{
a3f17187 633 printf_filtered (_("The %s is %ld. "), config->name, config->size);
11cf8741 634 if (config->fixed_p)
a3f17187 635 printf_filtered (_("Packets are fixed at %ld bytes.\n"),
11cf8741
JM
636 get_memory_packet_size (config));
637 else
a3f17187 638 printf_filtered (_("Packets are limited to %ld bytes.\n"),
11cf8741
JM
639 get_memory_packet_size (config));
640}
641
642static struct memory_packet_config memory_write_packet_config =
643{
644 "memory-write-packet-size",
645};
646
647static void
648set_memory_write_packet_size (char *args, int from_tty)
649{
650 set_memory_packet_size (args, &memory_write_packet_config);
651}
652
653static void
654show_memory_write_packet_size (char *args, int from_tty)
655{
656 show_memory_packet_size (&memory_write_packet_config);
657}
658
659static long
660get_memory_write_packet_size (void)
661{
662 return get_memory_packet_size (&memory_write_packet_config);
663}
664
665static struct memory_packet_config memory_read_packet_config =
666{
667 "memory-read-packet-size",
668};
669
670static void
671set_memory_read_packet_size (char *args, int from_tty)
672{
673 set_memory_packet_size (args, &memory_read_packet_config);
674}
675
676static void
677show_memory_read_packet_size (char *args, int from_tty)
678{
679 show_memory_packet_size (&memory_read_packet_config);
680}
681
682static long
683get_memory_read_packet_size (void)
684{
685 long size = get_memory_packet_size (&memory_read_packet_config);
686 /* FIXME: cagney/1999-11-07: Functions like getpkt() need to get an
687 extra buffer size argument before the memory read size can be
ea9c271d
DJ
688 increased beyond this. */
689 if (size > get_remote_packet_size ())
690 size = get_remote_packet_size ();
11cf8741
JM
691 return size;
692}
693
11cf8741 694\f
5a2468f5
JM
695/* Generic configuration support for packets the stub optionally
696 supports. Allows the user to specify the use of the packet as well
23860348 697 as allowing GDB to auto-detect support in the remote stub. */
5a2468f5
JM
698
699enum packet_support
700 {
701 PACKET_SUPPORT_UNKNOWN = 0,
702 PACKET_ENABLE,
703 PACKET_DISABLE
704 };
705
5a2468f5
JM
706struct packet_config
707 {
bb572ddd
DJ
708 const char *name;
709 const char *title;
7f19b9a2 710 enum auto_boolean detect;
5a2468f5
JM
711 enum packet_support support;
712 };
713
d471ea57 714/* Analyze a packet's return value and update the packet config
23860348 715 accordingly. */
d471ea57
AC
716
717enum packet_result
718{
719 PACKET_ERROR,
720 PACKET_OK,
721 PACKET_UNKNOWN
722};
723
5a2468f5 724static void
d471ea57 725update_packet_config (struct packet_config *config)
5a2468f5 726{
d471ea57
AC
727 switch (config->detect)
728 {
7f19b9a2 729 case AUTO_BOOLEAN_TRUE:
d471ea57
AC
730 config->support = PACKET_ENABLE;
731 break;
7f19b9a2 732 case AUTO_BOOLEAN_FALSE:
d471ea57
AC
733 config->support = PACKET_DISABLE;
734 break;
7f19b9a2 735 case AUTO_BOOLEAN_AUTO:
d471ea57
AC
736 config->support = PACKET_SUPPORT_UNKNOWN;
737 break;
738 }
5a2468f5
JM
739}
740
741static void
fba45db2 742show_packet_config_cmd (struct packet_config *config)
5a2468f5
JM
743{
744 char *support = "internal-error";
745 switch (config->support)
746 {
747 case PACKET_ENABLE:
748 support = "enabled";
749 break;
750 case PACKET_DISABLE:
751 support = "disabled";
752 break;
753 case PACKET_SUPPORT_UNKNOWN:
754 support = "unknown";
755 break;
756 }
757 switch (config->detect)
758 {
7f19b9a2 759 case AUTO_BOOLEAN_AUTO:
37a105a1
DJ
760 printf_filtered (_("Support for the `%s' packet is auto-detected, currently %s.\n"),
761 config->name, support);
5a2468f5 762 break;
7f19b9a2
AC
763 case AUTO_BOOLEAN_TRUE:
764 case AUTO_BOOLEAN_FALSE:
37a105a1
DJ
765 printf_filtered (_("Support for the `%s' packet is currently %s.\n"),
766 config->name, support);
8e248173 767 break;
5a2468f5
JM
768 }
769}
770
771static void
bb572ddd
DJ
772add_packet_config_cmd (struct packet_config *config, const char *name,
773 const char *title, int legacy)
d471ea57 774{
5a2468f5
JM
775 char *set_doc;
776 char *show_doc;
d471ea57 777 char *cmd_name;
3ed07be4 778
5a2468f5
JM
779 config->name = name;
780 config->title = title;
7f19b9a2 781 config->detect = AUTO_BOOLEAN_AUTO;
8e248173 782 config->support = PACKET_SUPPORT_UNKNOWN;
b435e160
AC
783 set_doc = xstrprintf ("Set use of remote protocol `%s' (%s) packet",
784 name, title);
785 show_doc = xstrprintf ("Show current use of remote protocol `%s' (%s) packet",
786 name, title);
d471ea57 787 /* set/show TITLE-packet {auto,on,off} */
b435e160 788 cmd_name = xstrprintf ("%s-packet", title);
e9e68a56 789 add_setshow_auto_boolean_cmd (cmd_name, class_obscure,
2c5b56ce 790 &config->detect, set_doc, show_doc, NULL, /* help_doc */
bb572ddd
DJ
791 set_remote_protocol_packet_cmd,
792 show_remote_protocol_packet_cmd,
793 &remote_set_cmdlist, &remote_show_cmdlist);
23860348 794 /* set/show remote NAME-packet {auto,on,off} -- legacy. */
d471ea57
AC
795 if (legacy)
796 {
797 char *legacy_name;
b435e160 798 legacy_name = xstrprintf ("%s-packet", name);
d471ea57 799 add_alias_cmd (legacy_name, cmd_name, class_obscure, 0,
bb572ddd 800 &remote_set_cmdlist);
d471ea57 801 add_alias_cmd (legacy_name, cmd_name, class_obscure, 0,
bb572ddd 802 &remote_show_cmdlist);
d471ea57 803 }
5a2468f5
JM
804}
805
d471ea57 806static enum packet_result
a76d924d 807packet_check_result (const char *buf)
5a2468f5 808{
d471ea57 809 if (buf[0] != '\0')
5a2468f5 810 {
d471ea57 811 /* The stub recognized the packet request. Check that the
23860348 812 operation succeeded. */
a76d924d
DJ
813 if (buf[0] == 'E'
814 && isxdigit (buf[1]) && isxdigit (buf[2])
815 && buf[3] == '\0')
816 /* "Enn" - definitly an error. */
817 return PACKET_ERROR;
818
819 /* Always treat "E." as an error. This will be used for
820 more verbose error messages, such as E.memtypes. */
821 if (buf[0] == 'E' && buf[1] == '.')
822 return PACKET_ERROR;
823
824 /* The packet may or may not be OK. Just assume it is. */
825 return PACKET_OK;
826 }
827 else
828 /* The stub does not support the packet. */
829 return PACKET_UNKNOWN;
830}
831
832static enum packet_result
833packet_ok (const char *buf, struct packet_config *config)
834{
835 enum packet_result result;
836
837 result = packet_check_result (buf);
838 switch (result)
839 {
840 case PACKET_OK:
841 case PACKET_ERROR:
842 /* The stub recognized the packet request. */
d471ea57
AC
843 switch (config->support)
844 {
845 case PACKET_SUPPORT_UNKNOWN:
846 if (remote_debug)
847 fprintf_unfiltered (gdb_stdlog,
848 "Packet %s (%s) is supported\n",
849 config->name, config->title);
850 config->support = PACKET_ENABLE;
851 break;
852 case PACKET_DISABLE:
8e65ff28 853 internal_error (__FILE__, __LINE__,
e2e0b3e5 854 _("packet_ok: attempt to use a disabled packet"));
d471ea57
AC
855 break;
856 case PACKET_ENABLE:
857 break;
858 }
a76d924d
DJ
859 break;
860 case PACKET_UNKNOWN:
23860348 861 /* The stub does not support the packet. */
d471ea57
AC
862 switch (config->support)
863 {
864 case PACKET_ENABLE:
7f19b9a2 865 if (config->detect == AUTO_BOOLEAN_AUTO)
d471ea57 866 /* If the stub previously indicated that the packet was
23860348 867 supported then there is a protocol error.. */
8a3fe4f8 868 error (_("Protocol error: %s (%s) conflicting enabled responses."),
d471ea57
AC
869 config->name, config->title);
870 else
23860348 871 /* The user set it wrong. */
8a3fe4f8 872 error (_("Enabled packet %s (%s) not recognized by stub"),
d471ea57
AC
873 config->name, config->title);
874 break;
875 case PACKET_SUPPORT_UNKNOWN:
876 if (remote_debug)
877 fprintf_unfiltered (gdb_stdlog,
878 "Packet %s (%s) is NOT supported\n",
879 config->name, config->title);
880 config->support = PACKET_DISABLE;
881 break;
882 case PACKET_DISABLE:
883 break;
884 }
a76d924d 885 break;
5a2468f5 886 }
a76d924d
DJ
887
888 return result;
5a2468f5
JM
889}
890
444abaca
DJ
891enum {
892 PACKET_vCont = 0,
893 PACKET_X,
894 PACKET_qSymbol,
895 PACKET_P,
896 PACKET_p,
897 PACKET_Z0,
898 PACKET_Z1,
899 PACKET_Z2,
900 PACKET_Z3,
901 PACKET_Z4,
0876f84a 902 PACKET_qXfer_auxv,
23181151 903 PACKET_qXfer_features,
fd79ecee 904 PACKET_qXfer_memory_map,
444abaca 905 PACKET_qGetTLSAddr,
be2a5f71 906 PACKET_qSupported,
89be2091 907 PACKET_QPassSignals,
444abaca
DJ
908 PACKET_MAX
909};
506fb367 910
444abaca 911static struct packet_config remote_protocol_packets[PACKET_MAX];
dc8acb97
MS
912
913static void
444abaca
DJ
914set_remote_protocol_packet_cmd (char *args, int from_tty,
915 struct cmd_list_element *c)
dc8acb97 916{
444abaca 917 struct packet_config *packet;
dc8acb97 918
444abaca
DJ
919 for (packet = remote_protocol_packets;
920 packet < &remote_protocol_packets[PACKET_MAX];
921 packet++)
922 {
923 if (&packet->detect == c->var)
924 {
925 update_packet_config (packet);
926 return;
927 }
928 }
929 internal_error (__FILE__, __LINE__, "Could not find config for %s",
930 c->name);
dc8acb97
MS
931}
932
5a2468f5 933static void
444abaca
DJ
934show_remote_protocol_packet_cmd (struct ui_file *file, int from_tty,
935 struct cmd_list_element *c,
936 const char *value)
5a2468f5 937{
444abaca 938 struct packet_config *packet;
5a2468f5 939
444abaca
DJ
940 for (packet = remote_protocol_packets;
941 packet < &remote_protocol_packets[PACKET_MAX];
942 packet++)
943 {
944 if (&packet->detect == c->var)
945 {
946 show_packet_config_cmd (packet);
947 return;
948 }
949 }
950 internal_error (__FILE__, __LINE__, "Could not find config for %s",
951 c->name);
5a2468f5
JM
952}
953
d471ea57
AC
954/* Should we try one of the 'Z' requests? */
955
956enum Z_packet_type
957{
958 Z_PACKET_SOFTWARE_BP,
959 Z_PACKET_HARDWARE_BP,
960 Z_PACKET_WRITE_WP,
961 Z_PACKET_READ_WP,
962 Z_PACKET_ACCESS_WP,
963 NR_Z_PACKET_TYPES
964};
96baa820 965
d471ea57 966/* For compatibility with older distributions. Provide a ``set remote
23860348 967 Z-packet ...'' command that updates all the Z packet types. */
d471ea57 968
7f19b9a2 969static enum auto_boolean remote_Z_packet_detect;
96baa820
JM
970
971static void
fba45db2
KB
972set_remote_protocol_Z_packet_cmd (char *args, int from_tty,
973 struct cmd_list_element *c)
96baa820 974{
d471ea57
AC
975 int i;
976 for (i = 0; i < NR_Z_PACKET_TYPES; i++)
977 {
444abaca
DJ
978 remote_protocol_packets[PACKET_Z0 + i].detect = remote_Z_packet_detect;
979 update_packet_config (&remote_protocol_packets[PACKET_Z0 + i]);
d471ea57 980 }
96baa820
JM
981}
982
983static void
08546159
AC
984show_remote_protocol_Z_packet_cmd (struct ui_file *file, int from_tty,
985 struct cmd_list_element *c,
986 const char *value)
96baa820 987{
d471ea57
AC
988 int i;
989 for (i = 0; i < NR_Z_PACKET_TYPES; i++)
990 {
444abaca 991 show_packet_config_cmd (&remote_protocol_packets[PACKET_Z0 + i]);
d471ea57 992 }
96baa820
JM
993}
994
9d1f7ab2
MS
995/* Should we try the 'ThreadInfo' query packet?
996
997 This variable (NOT available to the user: auto-detect only!)
998 determines whether GDB will use the new, simpler "ThreadInfo"
999 query or the older, more complex syntax for thread queries.
802188a7 1000 This is an auto-detect variable (set to true at each connect,
9d1f7ab2
MS
1001 and set to false when the target fails to recognize it). */
1002
1003static int use_threadinfo_query;
1004static int use_threadextra_query;
1005
23860348 1006/* Tokens for use by the asynchronous signal handlers for SIGINT. */
d5d6fca5
DJ
1007static struct async_signal_handler *sigint_remote_twice_token;
1008static struct async_signal_handler *sigint_remote_token;
43ff13b4 1009
c906108c
SS
1010/* These are pointers to hook functions that may be set in order to
1011 modify resume/wait behavior for a particular architecture. */
1012
9a4105ab
AC
1013void (*deprecated_target_resume_hook) (void);
1014void (*deprecated_target_wait_loop_hook) (void);
c906108c
SS
1015\f
1016
c5aa993b 1017
c906108c
SS
1018/* These are the threads which we last sent to the remote system.
1019 -1 for all or -2 for not sent yet. */
1020static int general_thread;
cce74817 1021static int continue_thread;
c906108c
SS
1022
1023/* Call this function as a result of
1024 1) A halt indication (T packet) containing a thread id
1025 2) A direct query of currthread
1026 3) Successful execution of set thread
1027 */
1028
1029static void
fba45db2 1030record_currthread (int currthread)
c906108c 1031{
c906108c 1032 general_thread = currthread;
cce74817 1033
c906108c
SS
1034 /* If this is a new thread, add it to GDB's thread list.
1035 If we leave it up to WFI to do this, bad things will happen. */
39f77062 1036 if (!in_thread_list (pid_to_ptid (currthread)))
0f71a2f6 1037 {
39f77062 1038 add_thread (pid_to_ptid (currthread));
8b93c638 1039 ui_out_text (uiout, "[New ");
39f77062 1040 ui_out_text (uiout, target_pid_to_str (pid_to_ptid (currthread)));
8b93c638 1041 ui_out_text (uiout, "]\n");
0f71a2f6 1042 }
c906108c
SS
1043}
1044
89be2091
DJ
1045static char *last_pass_packet;
1046
1047/* If 'QPassSignals' is supported, tell the remote stub what signals
1048 it can simply pass through to the inferior without reporting. */
1049
1050static void
1051remote_pass_signals (void)
1052{
1053 if (remote_protocol_packets[PACKET_QPassSignals].support != PACKET_DISABLE)
1054 {
1055 char *pass_packet, *p;
1056 int numsigs = (int) TARGET_SIGNAL_LAST;
1057 int count = 0, i;
1058
1059 gdb_assert (numsigs < 256);
1060 for (i = 0; i < numsigs; i++)
1061 {
1062 if (signal_stop_state (i) == 0
1063 && signal_print_state (i) == 0
1064 && signal_pass_state (i) == 1)
1065 count++;
1066 }
1067 pass_packet = xmalloc (count * 3 + strlen ("QPassSignals:") + 1);
1068 strcpy (pass_packet, "QPassSignals:");
1069 p = pass_packet + strlen (pass_packet);
1070 for (i = 0; i < numsigs; i++)
1071 {
1072 if (signal_stop_state (i) == 0
1073 && signal_print_state (i) == 0
1074 && signal_pass_state (i) == 1)
1075 {
1076 if (i >= 16)
1077 *p++ = tohex (i >> 4);
1078 *p++ = tohex (i & 15);
1079 if (count)
1080 *p++ = ';';
1081 else
1082 break;
1083 count--;
1084 }
1085 }
1086 *p = 0;
1087 if (!last_pass_packet || strcmp (last_pass_packet, pass_packet))
1088 {
1089 struct remote_state *rs = get_remote_state ();
1090 char *buf = rs->buf;
1091
1092 putpkt (pass_packet);
1093 getpkt (&rs->buf, &rs->buf_size, 0);
1094 packet_ok (buf, &remote_protocol_packets[PACKET_QPassSignals]);
1095 if (last_pass_packet)
1096 xfree (last_pass_packet);
1097 last_pass_packet = pass_packet;
1098 }
1099 else
1100 xfree (pass_packet);
1101 }
1102}
1103
c906108c
SS
1104#define MAGIC_NULL_PID 42000
1105
1106static void
fba45db2 1107set_thread (int th, int gen)
c906108c 1108{
d01949b6 1109 struct remote_state *rs = get_remote_state ();
6d820c5c 1110 char *buf = rs->buf;
cce74817 1111 int state = gen ? general_thread : continue_thread;
c906108c
SS
1112
1113 if (state == th)
1114 return;
1115
1116 buf[0] = 'H';
1117 buf[1] = gen ? 'g' : 'c';
1118 if (th == MAGIC_NULL_PID)
1119 {
1120 buf[2] = '0';
1121 buf[3] = '\0';
1122 }
1123 else if (th < 0)
ea9c271d 1124 xsnprintf (&buf[2], get_remote_packet_size () - 2, "-%x", -th);
c906108c 1125 else
ea9c271d 1126 xsnprintf (&buf[2], get_remote_packet_size () - 2, "%x", th);
c906108c 1127 putpkt (buf);
6d820c5c 1128 getpkt (&rs->buf, &rs->buf_size, 0);
c906108c 1129 if (gen)
c5aa993b 1130 general_thread = th;
c906108c 1131 else
cce74817 1132 continue_thread = th;
c906108c
SS
1133}
1134\f
1135/* Return nonzero if the thread TH is still alive on the remote system. */
1136
1137static int
39f77062 1138remote_thread_alive (ptid_t ptid)
c906108c 1139{
6d820c5c 1140 struct remote_state *rs = get_remote_state ();
39f77062 1141 int tid = PIDGET (ptid);
c906108c 1142
cce74817 1143 if (tid < 0)
2e9f7625 1144 xsnprintf (rs->buf, get_remote_packet_size (), "T-%08x", -tid);
c906108c 1145 else
2e9f7625
DJ
1146 xsnprintf (rs->buf, get_remote_packet_size (), "T%08x", tid);
1147 putpkt (rs->buf);
6d820c5c 1148 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 1149 return (rs->buf[0] == 'O' && rs->buf[1] == 'K');
c906108c
SS
1150}
1151
1152/* About these extended threadlist and threadinfo packets. They are
1153 variable length packets but, the fields within them are often fixed
1154 length. They are redundent enough to send over UDP as is the
1155 remote protocol in general. There is a matching unit test module
1156 in libstub. */
1157
cce74817
JM
1158#define OPAQUETHREADBYTES 8
1159
1160/* a 64 bit opaque identifier */
1161typedef unsigned char threadref[OPAQUETHREADBYTES];
1162
23860348
MS
1163/* WARNING: This threadref data structure comes from the remote O.S.,
1164 libstub protocol encoding, and remote.c. it is not particularly
1165 changable. */
cce74817
JM
1166
1167/* Right now, the internal structure is int. We want it to be bigger.
1168 Plan to fix this.
c5aa993b 1169 */
cce74817 1170
23860348 1171typedef int gdb_threadref; /* Internal GDB thread reference. */
cce74817 1172
9d1f7ab2 1173/* gdb_ext_thread_info is an internal GDB data structure which is
cfde0993 1174 equivalent to the reply of the remote threadinfo packet. */
cce74817
JM
1175
1176struct gdb_ext_thread_info
c5aa993b 1177 {
23860348 1178 threadref threadid; /* External form of thread reference. */
2bc416ba 1179 int active; /* Has state interesting to GDB?
23860348 1180 regs, stack. */
2bc416ba 1181 char display[256]; /* Brief state display, name,
cedea757 1182 blocked/suspended. */
23860348 1183 char shortname[32]; /* To be used to name threads. */
2bc416ba 1184 char more_display[256]; /* Long info, statistics, queue depth,
23860348 1185 whatever. */
c5aa993b 1186 };
cce74817
JM
1187
1188/* The volume of remote transfers can be limited by submitting
1189 a mask containing bits specifying the desired information.
1190 Use a union of these values as the 'selection' parameter to
1191 get_thread_info. FIXME: Make these TAG names more thread specific.
c5aa993b 1192 */
cce74817
JM
1193
1194#define TAG_THREADID 1
1195#define TAG_EXISTS 2
1196#define TAG_DISPLAY 4
1197#define TAG_THREADNAME 8
c5aa993b 1198#define TAG_MOREDISPLAY 16
cce74817 1199
23860348 1200#define BUF_THREAD_ID_SIZE (OPAQUETHREADBYTES * 2)
c906108c 1201
b2dd6311 1202char *unpack_varlen_hex (char *buff, ULONGEST *result);
cce74817 1203
a14ed312 1204static char *unpack_nibble (char *buf, int *val);
cce74817 1205
a14ed312 1206static char *pack_nibble (char *buf, int nibble);
cce74817 1207
23860348 1208static char *pack_hex_byte (char *pkt, int /* unsigned char */ byte);
cce74817 1209
a14ed312 1210static char *unpack_byte (char *buf, int *value);
cce74817 1211
a14ed312 1212static char *pack_int (char *buf, int value);
cce74817 1213
a14ed312 1214static char *unpack_int (char *buf, int *value);
cce74817 1215
a14ed312 1216static char *unpack_string (char *src, char *dest, int length);
cce74817 1217
23860348 1218static char *pack_threadid (char *pkt, threadref *id);
cce74817 1219
23860348 1220static char *unpack_threadid (char *inbuf, threadref *id);
cce74817 1221
23860348 1222void int_to_threadref (threadref *id, int value);
cce74817 1223
23860348 1224static int threadref_to_int (threadref *ref);
cce74817 1225
23860348 1226static void copy_threadref (threadref *dest, threadref *src);
cce74817 1227
23860348 1228static int threadmatch (threadref *dest, threadref *src);
cce74817 1229
2bc416ba 1230static char *pack_threadinfo_request (char *pkt, int mode,
23860348 1231 threadref *id);
cce74817 1232
a14ed312 1233static int remote_unpack_thread_info_response (char *pkt,
23860348 1234 threadref *expectedref,
a14ed312
KB
1235 struct gdb_ext_thread_info
1236 *info);
cce74817
JM
1237
1238
2bc416ba 1239static int remote_get_threadinfo (threadref *threadid,
23860348 1240 int fieldset, /*TAG mask */
a14ed312 1241 struct gdb_ext_thread_info *info);
cce74817 1242
a14ed312
KB
1243static char *pack_threadlist_request (char *pkt, int startflag,
1244 int threadcount,
23860348 1245 threadref *nextthread);
cce74817 1246
a14ed312
KB
1247static int parse_threadlist_response (char *pkt,
1248 int result_limit,
23860348 1249 threadref *original_echo,
2bc416ba 1250 threadref *resultlist,
23860348 1251 int *doneflag);
cce74817 1252
a14ed312 1253static int remote_get_threadlist (int startflag,
23860348 1254 threadref *nextthread,
a14ed312
KB
1255 int result_limit,
1256 int *done,
2bc416ba 1257 int *result_count,
23860348 1258 threadref *threadlist);
cce74817 1259
23860348 1260typedef int (*rmt_thread_action) (threadref *ref, void *context);
cce74817 1261
a14ed312
KB
1262static int remote_threadlist_iterator (rmt_thread_action stepfunction,
1263 void *context, int looplimit);
cce74817 1264
23860348 1265static int remote_newthread_step (threadref *ref, void *context);
cce74817 1266
23860348 1267/* Encode 64 bits in 16 chars of hex. */
c906108c
SS
1268
1269static const char hexchars[] = "0123456789abcdef";
1270
1271static int
fba45db2 1272ishex (int ch, int *val)
c906108c
SS
1273{
1274 if ((ch >= 'a') && (ch <= 'f'))
1275 {
1276 *val = ch - 'a' + 10;
1277 return 1;
1278 }
1279 if ((ch >= 'A') && (ch <= 'F'))
1280 {
1281 *val = ch - 'A' + 10;
1282 return 1;
1283 }
1284 if ((ch >= '0') && (ch <= '9'))
1285 {
1286 *val = ch - '0';
1287 return 1;
1288 }
1289 return 0;
1290}
1291
1292static int
fba45db2 1293stubhex (int ch)
c906108c
SS
1294{
1295 if (ch >= 'a' && ch <= 'f')
1296 return ch - 'a' + 10;
1297 if (ch >= '0' && ch <= '9')
1298 return ch - '0';
1299 if (ch >= 'A' && ch <= 'F')
1300 return ch - 'A' + 10;
1301 return -1;
1302}
1303
1304static int
fba45db2 1305stub_unpack_int (char *buff, int fieldlength)
c906108c
SS
1306{
1307 int nibble;
1308 int retval = 0;
1309
1310 while (fieldlength)
1311 {
1312 nibble = stubhex (*buff++);
1313 retval |= nibble;
1314 fieldlength--;
1315 if (fieldlength)
1316 retval = retval << 4;
1317 }
1318 return retval;
1319}
1320
1321char *
fba45db2 1322unpack_varlen_hex (char *buff, /* packet to parse */
b2dd6311 1323 ULONGEST *result)
c906108c
SS
1324{
1325 int nibble;
d49c44d5 1326 ULONGEST retval = 0;
c906108c
SS
1327
1328 while (ishex (*buff, &nibble))
1329 {
1330 buff++;
1331 retval = retval << 4;
1332 retval |= nibble & 0x0f;
1333 }
1334 *result = retval;
1335 return buff;
1336}
1337
1338static char *
fba45db2 1339unpack_nibble (char *buf, int *val)
c906108c
SS
1340{
1341 ishex (*buf++, val);
1342 return buf;
1343}
1344
1345static char *
fba45db2 1346pack_nibble (char *buf, int nibble)
c906108c
SS
1347{
1348 *buf++ = hexchars[(nibble & 0x0f)];
1349 return buf;
1350}
1351
1352static char *
fba45db2 1353pack_hex_byte (char *pkt, int byte)
c906108c
SS
1354{
1355 *pkt++ = hexchars[(byte >> 4) & 0xf];
1356 *pkt++ = hexchars[(byte & 0xf)];
1357 return pkt;
1358}
1359
1360static char *
fba45db2 1361unpack_byte (char *buf, int *value)
c906108c
SS
1362{
1363 *value = stub_unpack_int (buf, 2);
1364 return buf + 2;
1365}
1366
1367static char *
fba45db2 1368pack_int (char *buf, int value)
c906108c
SS
1369{
1370 buf = pack_hex_byte (buf, (value >> 24) & 0xff);
1371 buf = pack_hex_byte (buf, (value >> 16) & 0xff);
1372 buf = pack_hex_byte (buf, (value >> 8) & 0x0ff);
1373 buf = pack_hex_byte (buf, (value & 0xff));
1374 return buf;
1375}
1376
1377static char *
fba45db2 1378unpack_int (char *buf, int *value)
c906108c
SS
1379{
1380 *value = stub_unpack_int (buf, 8);
1381 return buf + 8;
1382}
1383
23860348 1384#if 0 /* Currently unused, uncomment when needed. */
a14ed312 1385static char *pack_string (char *pkt, char *string);
c906108c
SS
1386
1387static char *
fba45db2 1388pack_string (char *pkt, char *string)
c906108c
SS
1389{
1390 char ch;
1391 int len;
1392
1393 len = strlen (string);
1394 if (len > 200)
23860348 1395 len = 200; /* Bigger than most GDB packets, junk??? */
c906108c
SS
1396 pkt = pack_hex_byte (pkt, len);
1397 while (len-- > 0)
1398 {
1399 ch = *string++;
1400 if ((ch == '\0') || (ch == '#'))
23860348 1401 ch = '*'; /* Protect encapsulation. */
c906108c
SS
1402 *pkt++ = ch;
1403 }
1404 return pkt;
1405}
1406#endif /* 0 (unused) */
1407
1408static char *
fba45db2 1409unpack_string (char *src, char *dest, int length)
c906108c
SS
1410{
1411 while (length--)
1412 *dest++ = *src++;
1413 *dest = '\0';
1414 return src;
1415}
1416
1417static char *
fba45db2 1418pack_threadid (char *pkt, threadref *id)
c906108c
SS
1419{
1420 char *limit;
1421 unsigned char *altid;
1422
1423 altid = (unsigned char *) id;
1424 limit = pkt + BUF_THREAD_ID_SIZE;
1425 while (pkt < limit)
1426 pkt = pack_hex_byte (pkt, *altid++);
1427 return pkt;
1428}
1429
1430
1431static char *
fba45db2 1432unpack_threadid (char *inbuf, threadref *id)
c906108c
SS
1433{
1434 char *altref;
1435 char *limit = inbuf + BUF_THREAD_ID_SIZE;
1436 int x, y;
1437
1438 altref = (char *) id;
1439
1440 while (inbuf < limit)
1441 {
1442 x = stubhex (*inbuf++);
1443 y = stubhex (*inbuf++);
1444 *altref++ = (x << 4) | y;
1445 }
1446 return inbuf;
1447}
1448
1449/* Externally, threadrefs are 64 bits but internally, they are still
1450 ints. This is due to a mismatch of specifications. We would like
1451 to use 64bit thread references internally. This is an adapter
1452 function. */
1453
1454void
fba45db2 1455int_to_threadref (threadref *id, int value)
c906108c
SS
1456{
1457 unsigned char *scan;
1458
1459 scan = (unsigned char *) id;
1460 {
1461 int i = 4;
1462 while (i--)
1463 *scan++ = 0;
1464 }
1465 *scan++ = (value >> 24) & 0xff;
1466 *scan++ = (value >> 16) & 0xff;
1467 *scan++ = (value >> 8) & 0xff;
1468 *scan++ = (value & 0xff);
1469}
1470
1471static int
fba45db2 1472threadref_to_int (threadref *ref)
c906108c
SS
1473{
1474 int i, value = 0;
1475 unsigned char *scan;
1476
cfd77fa1 1477 scan = *ref;
c906108c
SS
1478 scan += 4;
1479 i = 4;
1480 while (i-- > 0)
1481 value = (value << 8) | ((*scan++) & 0xff);
1482 return value;
1483}
1484
1485static void
fba45db2 1486copy_threadref (threadref *dest, threadref *src)
c906108c
SS
1487{
1488 int i;
1489 unsigned char *csrc, *cdest;
1490
1491 csrc = (unsigned char *) src;
1492 cdest = (unsigned char *) dest;
1493 i = 8;
1494 while (i--)
1495 *cdest++ = *csrc++;
1496}
1497
1498static int
fba45db2 1499threadmatch (threadref *dest, threadref *src)
c906108c 1500{
23860348 1501 /* Things are broken right now, so just assume we got a match. */
c906108c
SS
1502#if 0
1503 unsigned char *srcp, *destp;
1504 int i, result;
1505 srcp = (char *) src;
1506 destp = (char *) dest;
1507
1508 result = 1;
1509 while (i-- > 0)
1510 result &= (*srcp++ == *destp++) ? 1 : 0;
1511 return result;
1512#endif
1513 return 1;
1514}
1515
1516/*
c5aa993b
JM
1517 threadid:1, # always request threadid
1518 context_exists:2,
1519 display:4,
1520 unique_name:8,
1521 more_display:16
1522 */
c906108c
SS
1523
1524/* Encoding: 'Q':8,'P':8,mask:32,threadid:64 */
1525
1526static char *
fba45db2 1527pack_threadinfo_request (char *pkt, int mode, threadref *id)
c906108c 1528{
23860348
MS
1529 *pkt++ = 'q'; /* Info Query */
1530 *pkt++ = 'P'; /* process or thread info */
1531 pkt = pack_int (pkt, mode); /* mode */
c906108c 1532 pkt = pack_threadid (pkt, id); /* threadid */
23860348 1533 *pkt = '\0'; /* terminate */
c906108c
SS
1534 return pkt;
1535}
1536
23860348 1537/* These values tag the fields in a thread info response packet. */
c906108c 1538/* Tagging the fields allows us to request specific fields and to
23860348 1539 add more fields as time goes by. */
c906108c 1540
23860348 1541#define TAG_THREADID 1 /* Echo the thread identifier. */
c5aa993b 1542#define TAG_EXISTS 2 /* Is this process defined enough to
23860348 1543 fetch registers and its stack? */
c5aa993b 1544#define TAG_DISPLAY 4 /* A short thing maybe to put on a window */
23860348 1545#define TAG_THREADNAME 8 /* string, maps 1-to-1 with a thread is. */
802188a7 1546#define TAG_MOREDISPLAY 16 /* Whatever the kernel wants to say about
23860348 1547 the process. */
c906108c
SS
1548
1549static int
fba45db2
KB
1550remote_unpack_thread_info_response (char *pkt, threadref *expectedref,
1551 struct gdb_ext_thread_info *info)
c906108c 1552{
d01949b6 1553 struct remote_state *rs = get_remote_state ();
c906108c 1554 int mask, length;
cfd77fa1 1555 int tag;
c906108c 1556 threadref ref;
6d820c5c 1557 char *limit = pkt + rs->buf_size; /* Plausible parsing limit. */
c906108c
SS
1558 int retval = 1;
1559
23860348 1560 /* info->threadid = 0; FIXME: implement zero_threadref. */
c906108c
SS
1561 info->active = 0;
1562 info->display[0] = '\0';
1563 info->shortname[0] = '\0';
1564 info->more_display[0] = '\0';
1565
23860348
MS
1566 /* Assume the characters indicating the packet type have been
1567 stripped. */
c906108c
SS
1568 pkt = unpack_int (pkt, &mask); /* arg mask */
1569 pkt = unpack_threadid (pkt, &ref);
1570
1571 if (mask == 0)
8a3fe4f8 1572 warning (_("Incomplete response to threadinfo request."));
c906108c 1573 if (!threadmatch (&ref, expectedref))
23860348 1574 { /* This is an answer to a different request. */
8a3fe4f8 1575 warning (_("ERROR RMT Thread info mismatch."));
c906108c
SS
1576 return 0;
1577 }
1578 copy_threadref (&info->threadid, &ref);
1579
23860348 1580 /* Loop on tagged fields , try to bail if somthing goes wrong. */
c906108c 1581
23860348
MS
1582 /* Packets are terminated with nulls. */
1583 while ((pkt < limit) && mask && *pkt)
c906108c
SS
1584 {
1585 pkt = unpack_int (pkt, &tag); /* tag */
23860348
MS
1586 pkt = unpack_byte (pkt, &length); /* length */
1587 if (!(tag & mask)) /* Tags out of synch with mask. */
c906108c 1588 {
8a3fe4f8 1589 warning (_("ERROR RMT: threadinfo tag mismatch."));
c906108c
SS
1590 retval = 0;
1591 break;
1592 }
1593 if (tag == TAG_THREADID)
1594 {
1595 if (length != 16)
1596 {
8a3fe4f8 1597 warning (_("ERROR RMT: length of threadid is not 16."));
c906108c
SS
1598 retval = 0;
1599 break;
1600 }
1601 pkt = unpack_threadid (pkt, &ref);
1602 mask = mask & ~TAG_THREADID;
1603 continue;
1604 }
1605 if (tag == TAG_EXISTS)
1606 {
1607 info->active = stub_unpack_int (pkt, length);
1608 pkt += length;
1609 mask = mask & ~(TAG_EXISTS);
1610 if (length > 8)
1611 {
8a3fe4f8 1612 warning (_("ERROR RMT: 'exists' length too long."));
c906108c
SS
1613 retval = 0;
1614 break;
1615 }
1616 continue;
1617 }
1618 if (tag == TAG_THREADNAME)
1619 {
1620 pkt = unpack_string (pkt, &info->shortname[0], length);
1621 mask = mask & ~TAG_THREADNAME;
1622 continue;
1623 }
1624 if (tag == TAG_DISPLAY)
1625 {
1626 pkt = unpack_string (pkt, &info->display[0], length);
1627 mask = mask & ~TAG_DISPLAY;
1628 continue;
1629 }
1630 if (tag == TAG_MOREDISPLAY)
1631 {
1632 pkt = unpack_string (pkt, &info->more_display[0], length);
1633 mask = mask & ~TAG_MOREDISPLAY;
1634 continue;
1635 }
8a3fe4f8 1636 warning (_("ERROR RMT: unknown thread info tag."));
23860348 1637 break; /* Not a tag we know about. */
c906108c
SS
1638 }
1639 return retval;
1640}
1641
1642static int
fba45db2
KB
1643remote_get_threadinfo (threadref *threadid, int fieldset, /* TAG mask */
1644 struct gdb_ext_thread_info *info)
c906108c 1645{
d01949b6 1646 struct remote_state *rs = get_remote_state ();
c906108c 1647 int result;
c906108c 1648
2e9f7625
DJ
1649 pack_threadinfo_request (rs->buf, fieldset, threadid);
1650 putpkt (rs->buf);
6d820c5c 1651 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 1652 result = remote_unpack_thread_info_response (rs->buf + 2,
23860348 1653 threadid, info);
c906108c
SS
1654 return result;
1655}
1656
c906108c
SS
1657/* Format: i'Q':8,i"L":8,initflag:8,batchsize:16,lastthreadid:32 */
1658
1659static char *
fba45db2
KB
1660pack_threadlist_request (char *pkt, int startflag, int threadcount,
1661 threadref *nextthread)
c906108c
SS
1662{
1663 *pkt++ = 'q'; /* info query packet */
1664 *pkt++ = 'L'; /* Process LIST or threadLIST request */
23860348 1665 pkt = pack_nibble (pkt, startflag); /* initflag 1 bytes */
c906108c
SS
1666 pkt = pack_hex_byte (pkt, threadcount); /* threadcount 2 bytes */
1667 pkt = pack_threadid (pkt, nextthread); /* 64 bit thread identifier */
1668 *pkt = '\0';
1669 return pkt;
1670}
1671
1672/* Encoding: 'q':8,'M':8,count:16,done:8,argthreadid:64,(threadid:64)* */
1673
1674static int
fba45db2
KB
1675parse_threadlist_response (char *pkt, int result_limit,
1676 threadref *original_echo, threadref *resultlist,
1677 int *doneflag)
c906108c 1678{
d01949b6 1679 struct remote_state *rs = get_remote_state ();
c906108c
SS
1680 char *limit;
1681 int count, resultcount, done;
1682
1683 resultcount = 0;
1684 /* Assume the 'q' and 'M chars have been stripped. */
6d820c5c 1685 limit = pkt + (rs->buf_size - BUF_THREAD_ID_SIZE);
23860348 1686 /* done parse past here */
c906108c
SS
1687 pkt = unpack_byte (pkt, &count); /* count field */
1688 pkt = unpack_nibble (pkt, &done);
1689 /* The first threadid is the argument threadid. */
1690 pkt = unpack_threadid (pkt, original_echo); /* should match query packet */
1691 while ((count-- > 0) && (pkt < limit))
1692 {
1693 pkt = unpack_threadid (pkt, resultlist++);
1694 if (resultcount++ >= result_limit)
1695 break;
1696 }
1697 if (doneflag)
1698 *doneflag = done;
1699 return resultcount;
1700}
1701
1702static int
fba45db2
KB
1703remote_get_threadlist (int startflag, threadref *nextthread, int result_limit,
1704 int *done, int *result_count, threadref *threadlist)
c906108c 1705{
d01949b6 1706 struct remote_state *rs = get_remote_state ();
c906108c 1707 static threadref echo_nextthread;
c906108c
SS
1708 int result = 1;
1709
23860348 1710 /* Trancate result limit to be smaller than the packet size. */
ea9c271d
DJ
1711 if ((((result_limit + 1) * BUF_THREAD_ID_SIZE) + 10) >= get_remote_packet_size ())
1712 result_limit = (get_remote_packet_size () / BUF_THREAD_ID_SIZE) - 2;
c906108c 1713
6d820c5c
DJ
1714 pack_threadlist_request (rs->buf, startflag, result_limit, nextthread);
1715 putpkt (rs->buf);
1716 getpkt (&rs->buf, &rs->buf_size, 0);
c906108c
SS
1717
1718 *result_count =
6d820c5c 1719 parse_threadlist_response (rs->buf + 2, result_limit, &echo_nextthread,
c906108c
SS
1720 threadlist, done);
1721
1722 if (!threadmatch (&echo_nextthread, nextthread))
1723 {
23860348
MS
1724 /* FIXME: This is a good reason to drop the packet. */
1725 /* Possably, there is a duplicate response. */
c906108c
SS
1726 /* Possabilities :
1727 retransmit immediatly - race conditions
1728 retransmit after timeout - yes
1729 exit
1730 wait for packet, then exit
1731 */
8a3fe4f8 1732 warning (_("HMM: threadlist did not echo arg thread, dropping it."));
23860348 1733 return 0; /* I choose simply exiting. */
c906108c
SS
1734 }
1735 if (*result_count <= 0)
1736 {
1737 if (*done != 1)
1738 {
8a3fe4f8 1739 warning (_("RMT ERROR : failed to get remote thread list."));
c906108c
SS
1740 result = 0;
1741 }
1742 return result; /* break; */
1743 }
1744 if (*result_count > result_limit)
1745 {
1746 *result_count = 0;
8a3fe4f8 1747 warning (_("RMT ERROR: threadlist response longer than requested."));
c906108c
SS
1748 return 0;
1749 }
1750 return result;
1751}
1752
23860348
MS
1753/* This is the interface between remote and threads, remotes upper
1754 interface. */
c906108c
SS
1755
1756/* remote_find_new_threads retrieves the thread list and for each
1757 thread in the list, looks up the thread in GDB's internal list,
1758 ading the thread if it does not already exist. This involves
1759 getting partial thread lists from the remote target so, polling the
1760 quit_flag is required. */
1761
1762
23860348 1763/* About this many threadisds fit in a packet. */
c906108c
SS
1764
1765#define MAXTHREADLISTRESULTS 32
1766
1767static int
fba45db2
KB
1768remote_threadlist_iterator (rmt_thread_action stepfunction, void *context,
1769 int looplimit)
c906108c
SS
1770{
1771 int done, i, result_count;
1772 int startflag = 1;
1773 int result = 1;
1774 int loopcount = 0;
1775 static threadref nextthread;
1776 static threadref resultthreadlist[MAXTHREADLISTRESULTS];
1777
1778 done = 0;
1779 while (!done)
1780 {
1781 if (loopcount++ > looplimit)
1782 {
1783 result = 0;
8a3fe4f8 1784 warning (_("Remote fetch threadlist -infinite loop-."));
c906108c
SS
1785 break;
1786 }
1787 if (!remote_get_threadlist (startflag, &nextthread, MAXTHREADLISTRESULTS,
1788 &done, &result_count, resultthreadlist))
1789 {
1790 result = 0;
1791 break;
1792 }
23860348 1793 /* Clear for later iterations. */
c906108c
SS
1794 startflag = 0;
1795 /* Setup to resume next batch of thread references, set nextthread. */
1796 if (result_count >= 1)
1797 copy_threadref (&nextthread, &resultthreadlist[result_count - 1]);
1798 i = 0;
1799 while (result_count--)
1800 if (!(result = (*stepfunction) (&resultthreadlist[i++], context)))
1801 break;
1802 }
1803 return result;
1804}
1805
1806static int
fba45db2 1807remote_newthread_step (threadref *ref, void *context)
c906108c 1808{
39f77062 1809 ptid_t ptid;
c906108c 1810
39f77062
KB
1811 ptid = pid_to_ptid (threadref_to_int (ref));
1812
1813 if (!in_thread_list (ptid))
1814 add_thread (ptid);
c906108c
SS
1815 return 1; /* continue iterator */
1816}
1817
1818#define CRAZY_MAX_THREADS 1000
1819
39f77062
KB
1820static ptid_t
1821remote_current_thread (ptid_t oldpid)
c906108c 1822{
d01949b6 1823 struct remote_state *rs = get_remote_state ();
c906108c
SS
1824
1825 putpkt ("qC");
6d820c5c 1826 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 1827 if (rs->buf[0] == 'Q' && rs->buf[1] == 'C')
c273b20f
JB
1828 /* Use strtoul here, so we'll correctly parse values whose highest
1829 bit is set. The protocol carries them as a simple series of
1830 hex digits; in the absence of a sign, strtol will see such
1831 values as positive numbers out of range for signed 'long', and
1832 return LONG_MAX to indicate an overflow. */
2e9f7625 1833 return pid_to_ptid (strtoul (&rs->buf[2], NULL, 16));
c906108c
SS
1834 else
1835 return oldpid;
1836}
1837
802188a7
RM
1838/* Find new threads for info threads command.
1839 * Original version, using John Metzler's thread protocol.
9d1f7ab2 1840 */
cce74817
JM
1841
1842static void
fba45db2 1843remote_find_new_threads (void)
c906108c 1844{
c5aa993b
JM
1845 remote_threadlist_iterator (remote_newthread_step, 0,
1846 CRAZY_MAX_THREADS);
39f77062
KB
1847 if (PIDGET (inferior_ptid) == MAGIC_NULL_PID) /* ack ack ack */
1848 inferior_ptid = remote_current_thread (inferior_ptid);
c906108c
SS
1849}
1850
9d1f7ab2
MS
1851/*
1852 * Find all threads for info threads command.
1853 * Uses new thread protocol contributed by Cisco.
1854 * Falls back and attempts to use the older method (above)
1855 * if the target doesn't respond to the new method.
1856 */
1857
0f71a2f6
JM
1858static void
1859remote_threads_info (void)
1860{
d01949b6 1861 struct remote_state *rs = get_remote_state ();
085dd6e6 1862 char *bufp;
0f71a2f6
JM
1863 int tid;
1864
1865 if (remote_desc == 0) /* paranoia */
8a3fe4f8 1866 error (_("Command can only be used when connected to the remote target."));
0f71a2f6 1867
9d1f7ab2
MS
1868 if (use_threadinfo_query)
1869 {
1870 putpkt ("qfThreadInfo");
6d820c5c 1871 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 1872 bufp = rs->buf;
9d1f7ab2 1873 if (bufp[0] != '\0') /* q packet recognized */
802188a7 1874 {
9d1f7ab2
MS
1875 while (*bufp++ == 'm') /* reply contains one or more TID */
1876 {
1877 do
1878 {
c273b20f
JB
1879 /* Use strtoul here, so we'll correctly parse values
1880 whose highest bit is set. The protocol carries
1881 them as a simple series of hex digits; in the
1882 absence of a sign, strtol will see such values as
1883 positive numbers out of range for signed 'long',
1884 and return LONG_MAX to indicate an overflow. */
1885 tid = strtoul (bufp, &bufp, 16);
39f77062
KB
1886 if (tid != 0 && !in_thread_list (pid_to_ptid (tid)))
1887 add_thread (pid_to_ptid (tid));
9d1f7ab2
MS
1888 }
1889 while (*bufp++ == ','); /* comma-separated list */
1890 putpkt ("qsThreadInfo");
6d820c5c 1891 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 1892 bufp = rs->buf;
9d1f7ab2
MS
1893 }
1894 return; /* done */
1895 }
1896 }
1897
23860348 1898 /* Else fall back to old method based on jmetzler protocol. */
9d1f7ab2
MS
1899 use_threadinfo_query = 0;
1900 remote_find_new_threads ();
1901 return;
1902}
1903
802188a7 1904/*
9d1f7ab2
MS
1905 * Collect a descriptive string about the given thread.
1906 * The target may say anything it wants to about the thread
1907 * (typically info about its blocked / runnable state, name, etc.).
1908 * This string will appear in the info threads display.
802188a7 1909 *
9d1f7ab2
MS
1910 * Optional: targets are not required to implement this function.
1911 */
1912
1913static char *
1914remote_threads_extra_info (struct thread_info *tp)
1915{
d01949b6 1916 struct remote_state *rs = get_remote_state ();
9d1f7ab2
MS
1917 int result;
1918 int set;
1919 threadref id;
1920 struct gdb_ext_thread_info threadinfo;
23860348 1921 static char display_buf[100]; /* arbitrary... */
9d1f7ab2
MS
1922 int n = 0; /* position in display_buf */
1923
1924 if (remote_desc == 0) /* paranoia */
8e65ff28 1925 internal_error (__FILE__, __LINE__,
e2e0b3e5 1926 _("remote_threads_extra_info"));
9d1f7ab2
MS
1927
1928 if (use_threadextra_query)
1929 {
2e9f7625 1930 xsnprintf (rs->buf, get_remote_packet_size (), "qThreadExtraInfo,%x",
ecbc58df 1931 PIDGET (tp->ptid));
2e9f7625 1932 putpkt (rs->buf);
6d820c5c 1933 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 1934 if (rs->buf[0] != 0)
9d1f7ab2 1935 {
2e9f7625
DJ
1936 n = min (strlen (rs->buf) / 2, sizeof (display_buf));
1937 result = hex2bin (rs->buf, (gdb_byte *) display_buf, n);
30559e10 1938 display_buf [result] = '\0';
9d1f7ab2
MS
1939 return display_buf;
1940 }
0f71a2f6 1941 }
9d1f7ab2
MS
1942
1943 /* If the above query fails, fall back to the old method. */
1944 use_threadextra_query = 0;
1945 set = TAG_THREADID | TAG_EXISTS | TAG_THREADNAME
1946 | TAG_MOREDISPLAY | TAG_DISPLAY;
39f77062 1947 int_to_threadref (&id, PIDGET (tp->ptid));
9d1f7ab2
MS
1948 if (remote_get_threadinfo (&id, set, &threadinfo))
1949 if (threadinfo.active)
0f71a2f6 1950 {
9d1f7ab2 1951 if (*threadinfo.shortname)
2bc416ba 1952 n += xsnprintf (&display_buf[0], sizeof (display_buf) - n,
ecbc58df 1953 " Name: %s,", threadinfo.shortname);
9d1f7ab2 1954 if (*threadinfo.display)
2bc416ba 1955 n += xsnprintf (&display_buf[n], sizeof (display_buf) - n,
ecbc58df 1956 " State: %s,", threadinfo.display);
9d1f7ab2 1957 if (*threadinfo.more_display)
2bc416ba 1958 n += xsnprintf (&display_buf[n], sizeof (display_buf) - n,
ecbc58df 1959 " Priority: %s", threadinfo.more_display);
9d1f7ab2
MS
1960
1961 if (n > 0)
c5aa993b 1962 {
23860348 1963 /* For purely cosmetic reasons, clear up trailing commas. */
9d1f7ab2
MS
1964 if (',' == display_buf[n-1])
1965 display_buf[n-1] = ' ';
1966 return display_buf;
c5aa993b 1967 }
0f71a2f6 1968 }
9d1f7ab2 1969 return NULL;
0f71a2f6 1970}
c906108c 1971\f
c5aa993b 1972
24b06219 1973/* Restart the remote side; this is an extended protocol operation. */
c906108c
SS
1974
1975static void
fba45db2 1976extended_remote_restart (void)
c906108c 1977{
d01949b6 1978 struct remote_state *rs = get_remote_state ();
c906108c
SS
1979
1980 /* Send the restart command; for reasons I don't understand the
1981 remote side really expects a number after the "R". */
ea9c271d 1982 xsnprintf (rs->buf, get_remote_packet_size (), "R%x", 0);
6d820c5c 1983 putpkt (rs->buf);
c906108c 1984
ad9a8f3f 1985 remote_fileio_reset ();
2bc416ba 1986
c906108c
SS
1987 /* Now query for status so this looks just like we restarted
1988 gdbserver from scratch. */
1989 putpkt ("?");
01d3a6ce 1990 getpkt (&rs->buf, &rs->buf_size, 0);
c906108c
SS
1991}
1992\f
1993/* Clean up connection to a remote debugger. */
1994
c906108c 1995static void
fba45db2 1996remote_close (int quitting)
c906108c
SS
1997{
1998 if (remote_desc)
2cd58942 1999 serial_close (remote_desc);
c906108c
SS
2000 remote_desc = NULL;
2001}
2002
23860348 2003/* Query the remote side for the text, data and bss offsets. */
c906108c
SS
2004
2005static void
fba45db2 2006get_offsets (void)
c906108c 2007{
d01949b6 2008 struct remote_state *rs = get_remote_state ();
2e9f7625 2009 char *buf;
085dd6e6 2010 char *ptr;
c906108c
SS
2011 int lose;
2012 CORE_ADDR text_addr, data_addr, bss_addr;
2013 struct section_offsets *offs;
2014
2015 putpkt ("qOffsets");
6d820c5c 2016 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 2017 buf = rs->buf;
c906108c
SS
2018
2019 if (buf[0] == '\000')
2020 return; /* Return silently. Stub doesn't support
23860348 2021 this command. */
c906108c
SS
2022 if (buf[0] == 'E')
2023 {
8a3fe4f8 2024 warning (_("Remote failure reply: %s"), buf);
c906108c
SS
2025 return;
2026 }
2027
2028 /* Pick up each field in turn. This used to be done with scanf, but
2029 scanf will make trouble if CORE_ADDR size doesn't match
2030 conversion directives correctly. The following code will work
2031 with any size of CORE_ADDR. */
2032 text_addr = data_addr = bss_addr = 0;
2033 ptr = buf;
2034 lose = 0;
2035
2036 if (strncmp (ptr, "Text=", 5) == 0)
2037 {
2038 ptr += 5;
2039 /* Don't use strtol, could lose on big values. */
2040 while (*ptr && *ptr != ';')
2041 text_addr = (text_addr << 4) + fromhex (*ptr++);
2042 }
2043 else
2044 lose = 1;
2045
2046 if (!lose && strncmp (ptr, ";Data=", 6) == 0)
2047 {
2048 ptr += 6;
2049 while (*ptr && *ptr != ';')
2050 data_addr = (data_addr << 4) + fromhex (*ptr++);
2051 }
2052 else
2053 lose = 1;
2054
2055 if (!lose && strncmp (ptr, ";Bss=", 5) == 0)
2056 {
2057 ptr += 5;
2058 while (*ptr && *ptr != ';')
2059 bss_addr = (bss_addr << 4) + fromhex (*ptr++);
2060 }
2061 else
2062 lose = 1;
2063
2064 if (lose)
8a3fe4f8 2065 error (_("Malformed response to offset query, %s"), buf);
c906108c
SS
2066
2067 if (symfile_objfile == NULL)
2068 return;
2069
802188a7 2070 offs = ((struct section_offsets *)
a39a16c4 2071 alloca (SIZEOF_N_SECTION_OFFSETS (symfile_objfile->num_sections)));
802188a7 2072 memcpy (offs, symfile_objfile->section_offsets,
a39a16c4 2073 SIZEOF_N_SECTION_OFFSETS (symfile_objfile->num_sections));
c906108c 2074
a4c8257b 2075 offs->offsets[SECT_OFF_TEXT (symfile_objfile)] = text_addr;
c906108c
SS
2076
2077 /* This is a temporary kludge to force data and bss to use the same offsets
2078 because that's what nlmconv does now. The real solution requires changes
2079 to the stub and remote.c that I don't have time to do right now. */
2080
a4c8257b
EZ
2081 offs->offsets[SECT_OFF_DATA (symfile_objfile)] = data_addr;
2082 offs->offsets[SECT_OFF_BSS (symfile_objfile)] = data_addr;
c906108c
SS
2083
2084 objfile_relocate (symfile_objfile, offs);
2085}
2086
8621d6a9 2087/* Stub for catch_exception. */
0f71a2f6 2088
9cbc821d 2089static void
8621d6a9 2090remote_start_remote (struct ui_out *uiout, void *from_tty_p)
c906108c 2091{
8621d6a9
DJ
2092 int from_tty = * (int *) from_tty_p;
2093
23860348 2094 immediate_quit++; /* Allow user to interrupt it. */
c906108c
SS
2095
2096 /* Ack any packet which the remote side has already sent. */
2cd58942 2097 serial_write (remote_desc, "+", 1);
c906108c
SS
2098
2099 /* Let the stub know that we want it to return the thread. */
2100 set_thread (-1, 0);
2101
39f77062 2102 inferior_ptid = remote_current_thread (inferior_ptid);
c906108c 2103
23860348 2104 get_offsets (); /* Get text, data & bss offsets. */
c906108c 2105
23860348 2106 putpkt ("?"); /* Initiate a query from remote machine. */
8edbea78 2107 immediate_quit--;
c906108c 2108
8621d6a9 2109 start_remote (from_tty); /* Initialize gdb process mechanisms. */
c906108c
SS
2110}
2111
2112/* Open a connection to a remote debugger.
2113 NAME is the filename used for communication. */
2114
2115static void
fba45db2 2116remote_open (char *name, int from_tty)
c906108c 2117{
92d1e331 2118 remote_open_1 (name, from_tty, &remote_ops, 0, 0);
c906108c
SS
2119}
2120
23860348 2121/* Just like remote_open, but with asynchronous support. */
43ff13b4 2122static void
fba45db2 2123remote_async_open (char *name, int from_tty)
43ff13b4 2124{
92d1e331 2125 remote_open_1 (name, from_tty, &remote_async_ops, 0, 1);
43ff13b4
JM
2126}
2127
c906108c
SS
2128/* Open a connection to a remote debugger using the extended
2129 remote gdb protocol. NAME is the filename used for communication. */
2130
2131static void
fba45db2 2132extended_remote_open (char *name, int from_tty)
c906108c 2133{
92d1e331
DJ
2134 remote_open_1 (name, from_tty, &extended_remote_ops, 1 /*extended_p */,
2135 0 /* async_p */);
c906108c
SS
2136}
2137
23860348 2138/* Just like extended_remote_open, but with asynchronous support. */
43ff13b4 2139static void
fba45db2 2140extended_remote_async_open (char *name, int from_tty)
43ff13b4 2141{
92d1e331
DJ
2142 remote_open_1 (name, from_tty, &extended_async_remote_ops,
2143 1 /*extended_p */, 1 /* async_p */);
43ff13b4
JM
2144}
2145
c906108c
SS
2146/* Generic code for opening a connection to a remote target. */
2147
d471ea57
AC
2148static void
2149init_all_packet_configs (void)
2150{
2151 int i;
444abaca
DJ
2152 for (i = 0; i < PACKET_MAX; i++)
2153 update_packet_config (&remote_protocol_packets[i]);
d471ea57
AC
2154}
2155
23860348 2156/* Symbol look-up. */
dc8acb97
MS
2157
2158static void
2159remote_check_symbols (struct objfile *objfile)
2160{
d01949b6 2161 struct remote_state *rs = get_remote_state ();
dc8acb97
MS
2162 char *msg, *reply, *tmp;
2163 struct minimal_symbol *sym;
2164 int end;
2165
444abaca 2166 if (remote_protocol_packets[PACKET_qSymbol].support == PACKET_DISABLE)
dc8acb97
MS
2167 return;
2168
6d820c5c
DJ
2169 /* Allocate a message buffer. We can't reuse the input buffer in RS,
2170 because we need both at the same time. */
ea9c271d 2171 msg = alloca (get_remote_packet_size ());
6d820c5c 2172
23860348 2173 /* Invite target to request symbol lookups. */
dc8acb97
MS
2174
2175 putpkt ("qSymbol::");
6d820c5c
DJ
2176 getpkt (&rs->buf, &rs->buf_size, 0);
2177 packet_ok (rs->buf, &remote_protocol_packets[PACKET_qSymbol]);
2e9f7625 2178 reply = rs->buf;
dc8acb97
MS
2179
2180 while (strncmp (reply, "qSymbol:", 8) == 0)
2181 {
2182 tmp = &reply[8];
cfd77fa1 2183 end = hex2bin (tmp, (gdb_byte *) msg, strlen (tmp) / 2);
dc8acb97
MS
2184 msg[end] = '\0';
2185 sym = lookup_minimal_symbol (msg, NULL, NULL);
2186 if (sym == NULL)
ea9c271d 2187 xsnprintf (msg, get_remote_packet_size (), "qSymbol::%s", &reply[8]);
dc8acb97 2188 else
ea9c271d 2189 xsnprintf (msg, get_remote_packet_size (), "qSymbol:%s:%s",
ecbc58df
WZ
2190 paddr_nz (SYMBOL_VALUE_ADDRESS (sym)),
2191 &reply[8]);
dc8acb97 2192 putpkt (msg);
6d820c5c 2193 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 2194 reply = rs->buf;
dc8acb97
MS
2195 }
2196}
2197
9db8d71f
DJ
2198static struct serial *
2199remote_serial_open (char *name)
2200{
2201 static int udp_warning = 0;
2202
2203 /* FIXME: Parsing NAME here is a hack. But we want to warn here instead
2204 of in ser-tcp.c, because it is the remote protocol assuming that the
2205 serial connection is reliable and not the serial connection promising
2206 to be. */
2207 if (!udp_warning && strncmp (name, "udp:", 4) == 0)
2208 {
8a3fe4f8
AC
2209 warning (_("\
2210The remote protocol may be unreliable over UDP.\n\
2211Some events may be lost, rendering further debugging impossible."));
9db8d71f
DJ
2212 udp_warning = 1;
2213 }
2214
2215 return serial_open (name);
2216}
2217
be2a5f71
DJ
2218/* This type describes each known response to the qSupported
2219 packet. */
2220struct protocol_feature
2221{
2222 /* The name of this protocol feature. */
2223 const char *name;
2224
2225 /* The default for this protocol feature. */
2226 enum packet_support default_support;
2227
2228 /* The function to call when this feature is reported, or after
2229 qSupported processing if the feature is not supported.
2230 The first argument points to this structure. The second
2231 argument indicates whether the packet requested support be
2232 enabled, disabled, or probed (or the default, if this function
2233 is being called at the end of processing and this feature was
2234 not reported). The third argument may be NULL; if not NULL, it
2235 is a NUL-terminated string taken from the packet following
2236 this feature's name and an equals sign. */
2237 void (*func) (const struct protocol_feature *, enum packet_support,
2238 const char *);
2239
2240 /* The corresponding packet for this feature. Only used if
2241 FUNC is remote_supported_packet. */
2242 int packet;
2243};
2244
be2a5f71
DJ
2245static void
2246remote_supported_packet (const struct protocol_feature *feature,
2247 enum packet_support support,
2248 const char *argument)
2249{
2250 if (argument)
2251 {
2252 warning (_("Remote qSupported response supplied an unexpected value for"
2253 " \"%s\"."), feature->name);
2254 return;
2255 }
2256
2257 if (remote_protocol_packets[feature->packet].support
2258 == PACKET_SUPPORT_UNKNOWN)
2259 remote_protocol_packets[feature->packet].support = support;
2260}
be2a5f71
DJ
2261
2262static void
2263remote_packet_size (const struct protocol_feature *feature,
2264 enum packet_support support, const char *value)
2265{
2266 struct remote_state *rs = get_remote_state ();
2267
2268 int packet_size;
2269 char *value_end;
2270
2271 if (support != PACKET_ENABLE)
2272 return;
2273
2274 if (value == NULL || *value == '\0')
2275 {
2276 warning (_("Remote target reported \"%s\" without a size."),
2277 feature->name);
2278 return;
2279 }
2280
2281 errno = 0;
2282 packet_size = strtol (value, &value_end, 16);
2283 if (errno != 0 || *value_end != '\0' || packet_size < 0)
2284 {
2285 warning (_("Remote target reported \"%s\" with a bad size: \"%s\"."),
2286 feature->name, value);
2287 return;
2288 }
2289
2290 if (packet_size > MAX_REMOTE_PACKET_SIZE)
2291 {
2292 warning (_("limiting remote suggested packet size (%d bytes) to %d"),
2293 packet_size, MAX_REMOTE_PACKET_SIZE);
2294 packet_size = MAX_REMOTE_PACKET_SIZE;
2295 }
2296
2297 /* Record the new maximum packet size. */
2298 rs->explicit_packet_size = packet_size;
2299}
2300
2301static struct protocol_feature remote_protocol_features[] = {
0876f84a 2302 { "PacketSize", PACKET_DISABLE, remote_packet_size, -1 },
40e57cf2 2303 { "qXfer:auxv:read", PACKET_DISABLE, remote_supported_packet,
fd79ecee 2304 PACKET_qXfer_auxv },
23181151
DJ
2305 { "qXfer:features:read", PACKET_DISABLE, remote_supported_packet,
2306 PACKET_qXfer_features },
fd79ecee 2307 { "qXfer:memory-map:read", PACKET_DISABLE, remote_supported_packet,
89be2091
DJ
2308 PACKET_qXfer_memory_map },
2309 { "QPassSignals", PACKET_DISABLE, remote_supported_packet,
2310 PACKET_QPassSignals },
be2a5f71
DJ
2311};
2312
2313static void
2314remote_query_supported (void)
2315{
2316 struct remote_state *rs = get_remote_state ();
2317 char *next;
2318 int i;
2319 unsigned char seen [ARRAY_SIZE (remote_protocol_features)];
2320
2321 /* The packet support flags are handled differently for this packet
2322 than for most others. We treat an error, a disabled packet, and
2323 an empty response identically: any features which must be reported
2324 to be used will be automatically disabled. An empty buffer
2325 accomplishes this, since that is also the representation for a list
2326 containing no features. */
2327
2328 rs->buf[0] = 0;
2329 if (remote_protocol_packets[PACKET_qSupported].support != PACKET_DISABLE)
2330 {
2331 putpkt ("qSupported");
2332 getpkt (&rs->buf, &rs->buf_size, 0);
2333
2334 /* If an error occured, warn, but do not return - just reset the
2335 buffer to empty and go on to disable features. */
2336 if (packet_ok (rs->buf, &remote_protocol_packets[PACKET_qSupported])
2337 == PACKET_ERROR)
2338 {
2339 warning (_("Remote failure reply: %s"), rs->buf);
2340 rs->buf[0] = 0;
2341 }
2342 }
2343
2344 memset (seen, 0, sizeof (seen));
2345
2346 next = rs->buf;
2347 while (*next)
2348 {
2349 enum packet_support is_supported;
2350 char *p, *end, *name_end, *value;
2351
2352 /* First separate out this item from the rest of the packet. If
2353 there's another item after this, we overwrite the separator
2354 (terminated strings are much easier to work with). */
2355 p = next;
2356 end = strchr (p, ';');
2357 if (end == NULL)
2358 {
2359 end = p + strlen (p);
2360 next = end;
2361 }
2362 else
2363 {
89be2091
DJ
2364 *end = '\0';
2365 next = end + 1;
2366
be2a5f71
DJ
2367 if (end == p)
2368 {
2369 warning (_("empty item in \"qSupported\" response"));
2370 continue;
2371 }
be2a5f71
DJ
2372 }
2373
2374 name_end = strchr (p, '=');
2375 if (name_end)
2376 {
2377 /* This is a name=value entry. */
2378 is_supported = PACKET_ENABLE;
2379 value = name_end + 1;
2380 *name_end = '\0';
2381 }
2382 else
2383 {
2384 value = NULL;
2385 switch (end[-1])
2386 {
2387 case '+':
2388 is_supported = PACKET_ENABLE;
2389 break;
2390
2391 case '-':
2392 is_supported = PACKET_DISABLE;
2393 break;
2394
2395 case '?':
2396 is_supported = PACKET_SUPPORT_UNKNOWN;
2397 break;
2398
2399 default:
2400 warning (_("unrecognized item \"%s\" in \"qSupported\" response"), p);
2401 continue;
2402 }
2403 end[-1] = '\0';
2404 }
2405
2406 for (i = 0; i < ARRAY_SIZE (remote_protocol_features); i++)
2407 if (strcmp (remote_protocol_features[i].name, p) == 0)
2408 {
2409 const struct protocol_feature *feature;
2410
2411 seen[i] = 1;
2412 feature = &remote_protocol_features[i];
2413 feature->func (feature, is_supported, value);
2414 break;
2415 }
2416 }
2417
2418 /* If we increased the packet size, make sure to increase the global
2419 buffer size also. We delay this until after parsing the entire
2420 qSupported packet, because this is the same buffer we were
2421 parsing. */
2422 if (rs->buf_size < rs->explicit_packet_size)
2423 {
2424 rs->buf_size = rs->explicit_packet_size;
2425 rs->buf = xrealloc (rs->buf, rs->buf_size);
2426 }
2427
2428 /* Handle the defaults for unmentioned features. */
2429 for (i = 0; i < ARRAY_SIZE (remote_protocol_features); i++)
2430 if (!seen[i])
2431 {
2432 const struct protocol_feature *feature;
2433
2434 feature = &remote_protocol_features[i];
2435 feature->func (feature, feature->default_support, NULL);
2436 }
2437}
2438
2439
c906108c 2440static void
fba45db2 2441remote_open_1 (char *name, int from_tty, struct target_ops *target,
92d1e331 2442 int extended_p, int async_p)
c906108c 2443{
d01949b6 2444 struct remote_state *rs = get_remote_state ();
c906108c 2445 if (name == 0)
8a3fe4f8 2446 error (_("To open a remote debug connection, you need to specify what\n"
22e04375 2447 "serial device is attached to the remote system\n"
8a3fe4f8 2448 "(e.g. /dev/ttyS0, /dev/ttya, COM1, etc.)."));
c906108c 2449
23860348 2450 /* See FIXME above. */
92d1e331
DJ
2451 if (!async_p)
2452 wait_forever_enabled_p = 1;
6426a772 2453
c906108c
SS
2454 target_preopen (from_tty);
2455
2456 unpush_target (target);
2457
89be2091
DJ
2458 /* Make sure we send the passed signals list the next time we resume. */
2459 xfree (last_pass_packet);
2460 last_pass_packet = NULL;
2461
ad9a8f3f 2462 remote_fileio_reset ();
1dd41f16
NS
2463 reopen_exec_file ();
2464 reread_symbols ();
2465
9db8d71f 2466 remote_desc = remote_serial_open (name);
c906108c
SS
2467 if (!remote_desc)
2468 perror_with_name (name);
2469
2470 if (baud_rate != -1)
2471 {
2cd58942 2472 if (serial_setbaudrate (remote_desc, baud_rate))
c906108c 2473 {
9b74d5d3
KB
2474 /* The requested speed could not be set. Error out to
2475 top level after closing remote_desc. Take care to
2476 set remote_desc to NULL to avoid closing remote_desc
2477 more than once. */
2cd58942 2478 serial_close (remote_desc);
9b74d5d3 2479 remote_desc = NULL;
c906108c
SS
2480 perror_with_name (name);
2481 }
2482 }
2483
2cd58942 2484 serial_raw (remote_desc);
c906108c
SS
2485
2486 /* If there is something sitting in the buffer we might take it as a
2487 response to a command, which would be bad. */
2cd58942 2488 serial_flush_input (remote_desc);
c906108c
SS
2489
2490 if (from_tty)
2491 {
2492 puts_filtered ("Remote debugging using ");
2493 puts_filtered (name);
2494 puts_filtered ("\n");
2495 }
23860348 2496 push_target (target); /* Switch to using remote target now. */
c906108c 2497
be2a5f71
DJ
2498 /* Reset the target state; these things will be queried either by
2499 remote_query_supported or as they are needed. */
d471ea57 2500 init_all_packet_configs ();
be2a5f71 2501 rs->explicit_packet_size = 0;
802188a7 2502
c5aa993b 2503 general_thread = -2;
cce74817 2504 continue_thread = -2;
c906108c 2505
9d1f7ab2
MS
2506 /* Probe for ability to use "ThreadInfo" query, as required. */
2507 use_threadinfo_query = 1;
2508 use_threadextra_query = 1;
2509
be2a5f71
DJ
2510 /* The first packet we send to the target is the optional "supported
2511 packets" request. If the target can answer this, it will tell us
2512 which later probes to skip. */
2513 remote_query_supported ();
2514
424163ea
DJ
2515 /* Next, if the target can specify a description, read it. We do
2516 this before anything involving memory or registers. */
2517 target_find_description ();
2518
c906108c
SS
2519 /* Without this, some commands which require an active target (such
2520 as kill) won't work. This variable serves (at least) double duty
2521 as both the pid of the target process (if it has such), and as a
2522 flag indicating that a target is active. These functions should
2523 be split out into seperate variables, especially since GDB will
2524 someday have a notion of debugging several processes. */
2525
39f77062 2526 inferior_ptid = pid_to_ptid (MAGIC_NULL_PID);
92d1e331
DJ
2527
2528 if (async_p)
2529 {
23860348 2530 /* With this target we start out by owning the terminal. */
92d1e331
DJ
2531 remote_async_terminal_ours_p = 1;
2532
2533 /* FIXME: cagney/1999-09-23: During the initial connection it is
2534 assumed that the target is already ready and able to respond to
2535 requests. Unfortunately remote_start_remote() eventually calls
2536 wait_for_inferior() with no timeout. wait_forever_enabled_p gets
2537 around this. Eventually a mechanism that allows
2538 wait_for_inferior() to expect/get timeouts will be
23860348 2539 implemented. */
92d1e331
DJ
2540 wait_forever_enabled_p = 0;
2541 }
2542
23860348 2543 /* First delete any symbols previously loaded from shared libraries. */
f78f6cf1 2544 no_shared_libraries (NULL, 0);
f78f6cf1 2545
36918e70 2546 /* Start the remote connection. If error() or QUIT, discard this
165b8e33
AC
2547 target (we'd otherwise be in an inconsistent state) and then
2548 propogate the error on up the exception chain. This ensures that
2549 the caller doesn't stumble along blindly assuming that the
2550 function succeeded. The CLI doesn't have this problem but other
2551 UI's, such as MI do.
36918e70
AC
2552
2553 FIXME: cagney/2002-05-19: Instead of re-throwing the exception,
2554 this function should return an error indication letting the
ce2826aa 2555 caller restore the previous state. Unfortunately the command
36918e70
AC
2556 ``target remote'' is directly wired to this function making that
2557 impossible. On a positive note, the CLI side of this problem has
2558 been fixed - the function set_cmd_context() makes it possible for
2559 all the ``target ....'' commands to share a common callback
2560 function. See cli-dump.c. */
109c3e39
AC
2561 {
2562 struct gdb_exception ex
8621d6a9
DJ
2563 = catch_exception (uiout, remote_start_remote, &from_tty,
2564 RETURN_MASK_ALL);
109c3e39
AC
2565 if (ex.reason < 0)
2566 {
2567 pop_target ();
2568 if (async_p)
2569 wait_forever_enabled_p = 1;
2570 throw_exception (ex);
2571 }
2572 }
c906108c 2573
92d1e331
DJ
2574 if (async_p)
2575 wait_forever_enabled_p = 1;
6426a772
JM
2576
2577 if (extended_p)
43ff13b4 2578 {
6240bebf 2579 /* Tell the remote that we are using the extended protocol. */
6426a772 2580 putpkt ("!");
6d820c5c 2581 getpkt (&rs->buf, &rs->buf_size, 0);
43ff13b4 2582 }
a77053c2 2583
23860348 2584 if (exec_bfd) /* No use without an exec file. */
9353355f 2585 remote_check_symbols (symfile_objfile);
43ff13b4
JM
2586}
2587
c906108c
SS
2588/* This takes a program previously attached to and detaches it. After
2589 this is done, GDB can be used to debug some other program. We
2590 better not have left any breakpoints in the target program or it'll
2591 die when it hits one. */
2592
2593static void
fba45db2 2594remote_detach (char *args, int from_tty)
c906108c 2595{
d01949b6 2596 struct remote_state *rs = get_remote_state ();
c906108c
SS
2597
2598 if (args)
8a3fe4f8 2599 error (_("Argument given to \"detach\" when remotely debugging."));
c906108c
SS
2600
2601 /* Tell the remote target to detach. */
6d820c5c
DJ
2602 strcpy (rs->buf, "D");
2603 remote_send (&rs->buf, &rs->buf_size);
c906108c 2604
23860348 2605 /* Unregister the file descriptor from the event loop. */
6ad8ae5c
DJ
2606 if (target_is_async_p ())
2607 serial_async (remote_desc, NULL, 0);
2608
cca728d0 2609 target_mourn_inferior ();
c906108c
SS
2610 if (from_tty)
2611 puts_filtered ("Ending remote debugging.\n");
2612}
2613
6ad8ae5c
DJ
2614/* Same as remote_detach, but don't send the "D" packet; just disconnect. */
2615
43ff13b4 2616static void
597320e7 2617remote_disconnect (struct target_ops *target, char *args, int from_tty)
43ff13b4 2618{
43ff13b4 2619 if (args)
8a3fe4f8 2620 error (_("Argument given to \"detach\" when remotely debugging."));
43ff13b4 2621
23860348 2622 /* Unregister the file descriptor from the event loop. */
ed9a39eb 2623 if (target_is_async_p ())
2cd58942 2624 serial_async (remote_desc, NULL, 0);
43ff13b4 2625
cca728d0 2626 target_mourn_inferior ();
43ff13b4
JM
2627 if (from_tty)
2628 puts_filtered ("Ending remote debugging.\n");
2629}
2630
c906108c
SS
2631/* Convert hex digit A to a number. */
2632
30559e10 2633static int
fba45db2 2634fromhex (int a)
c906108c
SS
2635{
2636 if (a >= '0' && a <= '9')
2637 return a - '0';
2638 else if (a >= 'a' && a <= 'f')
2639 return a - 'a' + 10;
2640 else if (a >= 'A' && a <= 'F')
2641 return a - 'A' + 10;
c5aa993b 2642 else
8a3fe4f8 2643 error (_("Reply contains invalid hex digit %d"), a);
c906108c
SS
2644}
2645
30559e10 2646static int
cfd77fa1 2647hex2bin (const char *hex, gdb_byte *bin, int count)
30559e10
MS
2648{
2649 int i;
2650
30559e10
MS
2651 for (i = 0; i < count; i++)
2652 {
2653 if (hex[0] == 0 || hex[1] == 0)
2654 {
2655 /* Hex string is short, or of uneven length.
23860348 2656 Return the count that has been converted so far. */
30559e10
MS
2657 return i;
2658 }
2659 *bin++ = fromhex (hex[0]) * 16 + fromhex (hex[1]);
2660 hex += 2;
2661 }
2662 return i;
2663}
2664
c906108c
SS
2665/* Convert number NIB to a hex digit. */
2666
2667static int
fba45db2 2668tohex (int nib)
c906108c
SS
2669{
2670 if (nib < 10)
c5aa993b 2671 return '0' + nib;
c906108c 2672 else
c5aa993b 2673 return 'a' + nib - 10;
c906108c 2674}
30559e10
MS
2675
2676static int
cfd77fa1 2677bin2hex (const gdb_byte *bin, char *hex, int count)
30559e10
MS
2678{
2679 int i;
23860348 2680 /* May use a length, or a nul-terminated string as input. */
30559e10 2681 if (count == 0)
cfd77fa1 2682 count = strlen ((char *) bin);
30559e10
MS
2683
2684 for (i = 0; i < count; i++)
2685 {
2686 *hex++ = tohex ((*bin >> 4) & 0xf);
2687 *hex++ = tohex (*bin++ & 0xf);
2688 }
2689 *hex = 0;
2690 return i;
2691}
c906108c 2692\f
506fb367
DJ
2693/* Check for the availability of vCont. This function should also check
2694 the response. */
c906108c
SS
2695
2696static void
6d820c5c 2697remote_vcont_probe (struct remote_state *rs)
c906108c 2698{
2e9f7625 2699 char *buf;
6d820c5c 2700
2e9f7625
DJ
2701 strcpy (rs->buf, "vCont?");
2702 putpkt (rs->buf);
6d820c5c 2703 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 2704 buf = rs->buf;
c906108c 2705
506fb367
DJ
2706 /* Make sure that the features we assume are supported. */
2707 if (strncmp (buf, "vCont", 5) == 0)
2708 {
2709 char *p = &buf[5];
2710 int support_s, support_S, support_c, support_C;
2711
2712 support_s = 0;
2713 support_S = 0;
2714 support_c = 0;
2715 support_C = 0;
2716 while (p && *p == ';')
2717 {
2718 p++;
2719 if (*p == 's' && (*(p + 1) == ';' || *(p + 1) == 0))
2720 support_s = 1;
2721 else if (*p == 'S' && (*(p + 1) == ';' || *(p + 1) == 0))
2722 support_S = 1;
2723 else if (*p == 'c' && (*(p + 1) == ';' || *(p + 1) == 0))
2724 support_c = 1;
2725 else if (*p == 'C' && (*(p + 1) == ';' || *(p + 1) == 0))
2726 support_C = 1;
2727
2728 p = strchr (p, ';');
2729 }
c906108c 2730
506fb367
DJ
2731 /* If s, S, c, and C are not all supported, we can't use vCont. Clearing
2732 BUF will make packet_ok disable the packet. */
2733 if (!support_s || !support_S || !support_c || !support_C)
2734 buf[0] = 0;
2735 }
c906108c 2736
444abaca 2737 packet_ok (buf, &remote_protocol_packets[PACKET_vCont]);
506fb367 2738}
c906108c 2739
506fb367
DJ
2740/* Resume the remote inferior by using a "vCont" packet. The thread
2741 to be resumed is PTID; STEP and SIGGNAL indicate whether the
2742 resumed thread should be single-stepped and/or signalled. If PTID's
2743 PID is -1, then all threads are resumed; the thread to be stepped and/or
2744 signalled is given in the global INFERIOR_PTID. This function returns
2745 non-zero iff it resumes the inferior.
44eaed12 2746
506fb367
DJ
2747 This function issues a strict subset of all possible vCont commands at the
2748 moment. */
44eaed12 2749
506fb367
DJ
2750static int
2751remote_vcont_resume (ptid_t ptid, int step, enum target_signal siggnal)
2752{
2753 struct remote_state *rs = get_remote_state ();
2754 int pid = PIDGET (ptid);
2963ee1d 2755 char *buf = NULL, *outbuf;
506fb367 2756 struct cleanup *old_cleanup;
44eaed12 2757
444abaca 2758 if (remote_protocol_packets[PACKET_vCont].support == PACKET_SUPPORT_UNKNOWN)
6d820c5c 2759 remote_vcont_probe (rs);
44eaed12 2760
444abaca 2761 if (remote_protocol_packets[PACKET_vCont].support == PACKET_DISABLE)
6d820c5c 2762 return 0;
44eaed12 2763
506fb367
DJ
2764 /* If we could generate a wider range of packets, we'd have to worry
2765 about overflowing BUF. Should there be a generic
2766 "multi-part-packet" packet? */
2767
2768 if (PIDGET (inferior_ptid) == MAGIC_NULL_PID)
c906108c 2769 {
506fb367
DJ
2770 /* MAGIC_NULL_PTID means that we don't have any active threads, so we
2771 don't have any PID numbers the inferior will understand. Make sure
2772 to only send forms that do not specify a PID. */
2773 if (step && siggnal != TARGET_SIGNAL_0)
2963ee1d 2774 outbuf = xstrprintf ("vCont;S%02x", siggnal);
506fb367 2775 else if (step)
2963ee1d 2776 outbuf = xstrprintf ("vCont;s");
506fb367 2777 else if (siggnal != TARGET_SIGNAL_0)
2963ee1d 2778 outbuf = xstrprintf ("vCont;C%02x", siggnal);
506fb367 2779 else
2963ee1d 2780 outbuf = xstrprintf ("vCont;c");
506fb367
DJ
2781 }
2782 else if (pid == -1)
2783 {
2784 /* Resume all threads, with preference for INFERIOR_PTID. */
2785 if (step && siggnal != TARGET_SIGNAL_0)
2963ee1d
DJ
2786 outbuf = xstrprintf ("vCont;S%02x:%x;c", siggnal,
2787 PIDGET (inferior_ptid));
506fb367 2788 else if (step)
2963ee1d 2789 outbuf = xstrprintf ("vCont;s:%x;c", PIDGET (inferior_ptid));
506fb367 2790 else if (siggnal != TARGET_SIGNAL_0)
2963ee1d
DJ
2791 outbuf = xstrprintf ("vCont;C%02x:%x;c", siggnal,
2792 PIDGET (inferior_ptid));
506fb367 2793 else
2963ee1d 2794 outbuf = xstrprintf ("vCont;c");
c906108c
SS
2795 }
2796 else
506fb367
DJ
2797 {
2798 /* Scheduler locking; resume only PTID. */
2799 if (step && siggnal != TARGET_SIGNAL_0)
2963ee1d 2800 outbuf = xstrprintf ("vCont;S%02x:%x", siggnal, pid);
506fb367 2801 else if (step)
2963ee1d 2802 outbuf = xstrprintf ("vCont;s:%x", pid);
506fb367 2803 else if (siggnal != TARGET_SIGNAL_0)
2963ee1d 2804 outbuf = xstrprintf ("vCont;C%02x:%x", siggnal, pid);
506fb367 2805 else
2963ee1d 2806 outbuf = xstrprintf ("vCont;c:%x", pid);
506fb367 2807 }
c906108c 2808
ea9c271d 2809 gdb_assert (outbuf && strlen (outbuf) < get_remote_packet_size ());
6d820c5c 2810 old_cleanup = make_cleanup (xfree, outbuf);
2963ee1d
DJ
2811
2812 putpkt (outbuf);
506fb367
DJ
2813
2814 do_cleanups (old_cleanup);
2815
2816 return 1;
c906108c 2817}
43ff13b4 2818
506fb367
DJ
2819/* Tell the remote machine to resume. */
2820
2821static enum target_signal last_sent_signal = TARGET_SIGNAL_0;
2822
2823static int last_sent_step;
2824
43ff13b4 2825static void
506fb367 2826remote_resume (ptid_t ptid, int step, enum target_signal siggnal)
43ff13b4 2827{
d01949b6 2828 struct remote_state *rs = get_remote_state ();
2e9f7625 2829 char *buf;
39f77062 2830 int pid = PIDGET (ptid);
43ff13b4 2831
43ff13b4
JM
2832 last_sent_signal = siggnal;
2833 last_sent_step = step;
2834
2835 /* A hook for when we need to do something at the last moment before
2836 resumption. */
9a4105ab
AC
2837 if (deprecated_target_resume_hook)
2838 (*deprecated_target_resume_hook) ();
43ff13b4 2839
89be2091
DJ
2840 /* Update the inferior on signals to silently pass, if they've changed. */
2841 remote_pass_signals ();
2842
506fb367
DJ
2843 /* The vCont packet doesn't need to specify threads via Hc. */
2844 if (remote_vcont_resume (ptid, step, siggnal))
2845 return;
2846
2847 /* All other supported resume packets do use Hc, so call set_thread. */
2848 if (pid == -1)
23860348 2849 set_thread (0, 0); /* Run any thread. */
506fb367 2850 else
23860348 2851 set_thread (pid, 0); /* Run this thread. */
506fb367 2852
2e9f7625 2853 buf = rs->buf;
43ff13b4
JM
2854 if (siggnal != TARGET_SIGNAL_0)
2855 {
2856 buf[0] = step ? 'S' : 'C';
c5aa993b 2857 buf[1] = tohex (((int) siggnal >> 4) & 0xf);
506fb367 2858 buf[2] = tohex (((int) siggnal) & 0xf);
43ff13b4
JM
2859 buf[3] = '\0';
2860 }
2861 else
c5aa993b 2862 strcpy (buf, step ? "s" : "c");
506fb367 2863
44eaed12 2864 putpkt (buf);
506fb367
DJ
2865}
2866
23860348 2867/* Same as remote_resume, but with async support. */
506fb367
DJ
2868static void
2869remote_async_resume (ptid_t ptid, int step, enum target_signal siggnal)
2870{
2871 remote_resume (ptid, step, siggnal);
43ff13b4 2872
2acceee2
JM
2873 /* We are about to start executing the inferior, let's register it
2874 with the event loop. NOTE: this is the one place where all the
2875 execution commands end up. We could alternatively do this in each
23860348 2876 of the execution commands in infcmd.c. */
2acceee2
JM
2877 /* FIXME: ezannoni 1999-09-28: We may need to move this out of here
2878 into infcmd.c in order to allow inferior function calls to work
23860348 2879 NOT asynchronously. */
362646f5 2880 if (target_can_async_p ())
2acceee2 2881 target_async (inferior_event_handler, 0);
23860348 2882 /* Tell the world that the target is now executing. */
2acceee2
JM
2883 /* FIXME: cagney/1999-09-23: Is it the targets responsibility to set
2884 this? Instead, should the client of target just assume (for
2885 async targets) that the target is going to start executing? Is
2886 this information already found in the continuation block? */
ed9a39eb 2887 if (target_is_async_p ())
2acceee2 2888 target_executing = 1;
43ff13b4 2889}
c906108c 2890\f
43ff13b4
JM
2891
2892/* Set up the signal handler for SIGINT, while the target is
23860348 2893 executing, ovewriting the 'regular' SIGINT signal handler. */
43ff13b4 2894static void
fba45db2 2895initialize_sigint_signal_handler (void)
43ff13b4 2896{
c5aa993b 2897 sigint_remote_token =
43ff13b4
JM
2898 create_async_signal_handler (async_remote_interrupt, NULL);
2899 signal (SIGINT, handle_remote_sigint);
2900}
2901
23860348 2902/* Signal handler for SIGINT, while the target is executing. */
43ff13b4 2903static void
fba45db2 2904handle_remote_sigint (int sig)
43ff13b4
JM
2905{
2906 signal (sig, handle_remote_sigint_twice);
c5aa993b 2907 sigint_remote_twice_token =
43ff13b4
JM
2908 create_async_signal_handler (async_remote_interrupt_twice, NULL);
2909 mark_async_signal_handler_wrapper (sigint_remote_token);
2910}
2911
2912/* Signal handler for SIGINT, installed after SIGINT has already been
2913 sent once. It will take effect the second time that the user sends
23860348 2914 a ^C. */
43ff13b4 2915static void
fba45db2 2916handle_remote_sigint_twice (int sig)
43ff13b4
JM
2917{
2918 signal (sig, handle_sigint);
c5aa993b 2919 sigint_remote_twice_token =
2df3850c 2920 create_async_signal_handler (inferior_event_handler_wrapper, NULL);
43ff13b4
JM
2921 mark_async_signal_handler_wrapper (sigint_remote_twice_token);
2922}
2923
6426a772 2924/* Perform the real interruption of the target execution, in response
23860348 2925 to a ^C. */
c5aa993b 2926static void
fba45db2 2927async_remote_interrupt (gdb_client_data arg)
43ff13b4
JM
2928{
2929 if (remote_debug)
2930 fprintf_unfiltered (gdb_stdlog, "remote_interrupt called\n");
2931
2932 target_stop ();
2933}
2934
2935/* Perform interrupt, if the first attempt did not succeed. Just give
23860348 2936 up on the target alltogether. */
2df3850c 2937void
fba45db2 2938async_remote_interrupt_twice (gdb_client_data arg)
43ff13b4 2939{
2df3850c
JM
2940 if (remote_debug)
2941 fprintf_unfiltered (gdb_stdlog, "remote_interrupt_twice called\n");
6426a772 2942 /* Do something only if the target was not killed by the previous
23860348 2943 cntl-C. */
6426a772
JM
2944 if (target_executing)
2945 {
2946 interrupt_query ();
2947 signal (SIGINT, handle_remote_sigint);
2948 }
43ff13b4
JM
2949}
2950
2951/* Reinstall the usual SIGINT handlers, after the target has
23860348 2952 stopped. */
6426a772
JM
2953static void
2954cleanup_sigint_signal_handler (void *dummy)
43ff13b4
JM
2955{
2956 signal (SIGINT, handle_sigint);
2957 if (sigint_remote_twice_token)
d5d6fca5 2958 delete_async_signal_handler (&sigint_remote_twice_token);
43ff13b4 2959 if (sigint_remote_token)
d5d6fca5 2960 delete_async_signal_handler (&sigint_remote_token);
43ff13b4
JM
2961}
2962
c906108c
SS
2963/* Send ^C to target to halt it. Target will respond, and send us a
2964 packet. */
507f3c78 2965static void (*ofunc) (int);
c906108c 2966
7a292a7a
SS
2967/* The command line interface's stop routine. This function is installed
2968 as a signal handler for SIGINT. The first time a user requests a
2969 stop, we call remote_stop to send a break or ^C. If there is no
2970 response from the target (it didn't stop when the user requested it),
23860348 2971 we ask the user if he'd like to detach from the target. */
c906108c 2972static void
fba45db2 2973remote_interrupt (int signo)
c906108c 2974{
23860348 2975 /* If this doesn't work, try more severe steps. */
7a292a7a
SS
2976 signal (signo, remote_interrupt_twice);
2977
2978 if (remote_debug)
0f71a2f6 2979 fprintf_unfiltered (gdb_stdlog, "remote_interrupt called\n");
7a292a7a
SS
2980
2981 target_stop ();
2982}
2983
2984/* The user typed ^C twice. */
2985
2986static void
fba45db2 2987remote_interrupt_twice (int signo)
7a292a7a
SS
2988{
2989 signal (signo, ofunc);
2990 interrupt_query ();
c906108c
SS
2991 signal (signo, remote_interrupt);
2992}
7a292a7a
SS
2993
2994/* This is the generic stop called via the target vector. When a target
2995 interrupt is requested, either by the command line or the GUI, we
23860348 2996 will eventually end up here. */
c906108c 2997static void
fba45db2 2998remote_stop (void)
c906108c 2999{
7a292a7a
SS
3000 /* Send a break or a ^C, depending on user preference. */
3001 if (remote_debug)
0f71a2f6 3002 fprintf_unfiltered (gdb_stdlog, "remote_stop called\n");
c906108c 3003
7a292a7a 3004 if (remote_break)
2cd58942 3005 serial_send_break (remote_desc);
c906108c 3006 else
2cd58942 3007 serial_write (remote_desc, "\003", 1);
c906108c
SS
3008}
3009
3010/* Ask the user what to do when an interrupt is received. */
3011
3012static void
fba45db2 3013interrupt_query (void)
c906108c
SS
3014{
3015 target_terminal_ours ();
3016
3017 if (query ("Interrupted while waiting for the program.\n\
3018Give up (and stop debugging it)? "))
3019 {
3020 target_mourn_inferior ();
315a522e 3021 deprecated_throw_reason (RETURN_QUIT);
c906108c
SS
3022 }
3023
3024 target_terminal_inferior ();
3025}
3026
6426a772
JM
3027/* Enable/disable target terminal ownership. Most targets can use
3028 terminal groups to control terminal ownership. Remote targets are
3029 different in that explicit transfer of ownership to/from GDB/target
23860348 3030 is required. */
6426a772
JM
3031
3032static void
3033remote_async_terminal_inferior (void)
3034{
3035 /* FIXME: cagney/1999-09-27: Shouldn't need to test for
3036 sync_execution here. This function should only be called when
3037 GDB is resuming the inferior in the forground. A background
3038 resume (``run&'') should leave GDB in control of the terminal and
23860348 3039 consequently should not call this code. */
6426a772
JM
3040 if (!sync_execution)
3041 return;
3042 /* FIXME: cagney/1999-09-27: Closely related to the above. Make
3043 calls target_terminal_*() idenpotent. The event-loop GDB talking
3044 to an asynchronous target with a synchronous command calls this
3045 function from both event-top.c and infrun.c/infcmd.c. Once GDB
3046 stops trying to transfer the terminal to the target when it
3047 shouldn't this guard can go away. */
3048 if (!remote_async_terminal_ours_p)
3049 return;
3050 delete_file_handler (input_fd);
3051 remote_async_terminal_ours_p = 0;
3052 initialize_sigint_signal_handler ();
3053 /* NOTE: At this point we could also register our selves as the
3054 recipient of all input. Any characters typed could then be
23860348 3055 passed on down to the target. */
6426a772
JM
3056}
3057
3058static void
3059remote_async_terminal_ours (void)
3060{
23860348 3061 /* See FIXME in remote_async_terminal_inferior. */
6426a772
JM
3062 if (!sync_execution)
3063 return;
23860348 3064 /* See FIXME in remote_async_terminal_inferior. */
6426a772
JM
3065 if (remote_async_terminal_ours_p)
3066 return;
3067 cleanup_sigint_signal_handler (NULL);
3068 add_file_handler (input_fd, stdin_event_handler, 0);
3069 remote_async_terminal_ours_p = 1;
3070}
3071
c906108c
SS
3072/* If nonzero, ignore the next kill. */
3073
3074int kill_kludge;
3075
3076void
917317f4 3077remote_console_output (char *msg)
c906108c
SS
3078{
3079 char *p;
3080
c5aa993b 3081 for (p = msg; p[0] && p[1]; p += 2)
c906108c
SS
3082 {
3083 char tb[2];
3084 char c = fromhex (p[0]) * 16 + fromhex (p[1]);
3085 tb[0] = c;
3086 tb[1] = 0;
43ff13b4 3087 fputs_unfiltered (tb, gdb_stdtarg);
c906108c 3088 }
917317f4 3089 gdb_flush (gdb_stdtarg);
c906108c
SS
3090}
3091
0f71a2f6
JM
3092/* Wait until the remote machine stops, then return,
3093 storing status in STATUS just as `wait' would.
802188a7 3094 Returns "pid", which in the case of a multi-threaded
0f71a2f6 3095 remote OS, is the thread-id. */
c906108c 3096
39f77062
KB
3097static ptid_t
3098remote_wait (ptid_t ptid, struct target_waitstatus *status)
c906108c 3099{
d01949b6 3100 struct remote_state *rs = get_remote_state ();
ea9c271d 3101 struct remote_arch_state *rsa = get_remote_arch_state ();
b2dd6311 3102 ULONGEST thread_num = -1;
3c3bea1c 3103 ULONGEST addr;
c906108c
SS
3104
3105 status->kind = TARGET_WAITKIND_EXITED;
3106 status->value.integer = 0;
3107
3108 while (1)
3109 {
2e9f7625 3110 char *buf, *p;
c906108c 3111
c906108c 3112 ofunc = signal (SIGINT, remote_interrupt);
6d820c5c 3113 getpkt (&rs->buf, &rs->buf_size, 1);
c906108c
SS
3114 signal (SIGINT, ofunc);
3115
2e9f7625
DJ
3116 buf = rs->buf;
3117
c906108c 3118 /* This is a hook for when we need to do something (perhaps the
c5aa993b 3119 collection of trace data) every time the target stops. */
9a4105ab
AC
3120 if (deprecated_target_wait_loop_hook)
3121 (*deprecated_target_wait_loop_hook) ();
c906108c 3122
3c3bea1c
GS
3123 remote_stopped_by_watchpoint_p = 0;
3124
c906108c
SS
3125 switch (buf[0])
3126 {
23860348 3127 case 'E': /* Error of some sort. */
8a3fe4f8 3128 warning (_("Remote failure reply: %s"), buf);
c906108c 3129 continue;
23860348 3130 case 'F': /* File-I/O request. */
449092f6
CV
3131 remote_fileio_request (buf);
3132 continue;
23860348 3133 case 'T': /* Status with PC, SP, FP, ... */
c906108c 3134 {
cfd77fa1 3135 gdb_byte regs[MAX_REGISTER_SIZE];
c906108c 3136
23860348 3137 /* Expedited reply, containing Signal, {regno, reg} repeat. */
c906108c 3138 /* format is: 'Tssn...:r...;n...:r...;n...:r...;#cc', where
c5aa993b
JM
3139 ss = signal number
3140 n... = register number
3141 r... = register contents
3142 */
c906108c
SS
3143 p = &buf[3]; /* after Txx */
3144
3145 while (*p)
3146 {
cfd77fa1 3147 char *p1;
c906108c 3148 char *p_temp;
97345198 3149 int fieldsize;
3c3bea1c
GS
3150 LONGEST pnum = 0;
3151
23860348
MS
3152 /* If the packet contains a register number save it in
3153 pnum and set p1 to point to the character following
3154 it. Otherwise p1 points to p. */
c906108c 3155
23860348
MS
3156 /* If this packet is an awatch packet, don't parse the
3157 'a' as a register number. */
3c3bea1c
GS
3158
3159 if (strncmp (p, "awatch", strlen("awatch")) != 0)
3160 {
3161 /* Read the ``P'' register number. */
3162 pnum = strtol (p, &p_temp, 16);
cfd77fa1 3163 p1 = p_temp;
3c3bea1c 3164 }
802188a7 3165 else
3c3bea1c 3166 p1 = p;
c906108c 3167
23860348 3168 if (p1 == p) /* No register number present here. */
c906108c 3169 {
cfd77fa1 3170 p1 = strchr (p, ':');
c906108c 3171 if (p1 == NULL)
670aa98f 3172 error (_("Malformed packet(a) (missing colon): %s\n\
8a3fe4f8 3173Packet: '%s'\n"),
670aa98f 3174 p, buf);
3c3bea1c 3175 if (strncmp (p, "thread", p1 - p) == 0)
c906108c
SS
3176 {
3177 p_temp = unpack_varlen_hex (++p1, &thread_num);
3178 record_currthread (thread_num);
cfd77fa1 3179 p = p_temp;
c906108c 3180 }
3c3bea1c
GS
3181 else if ((strncmp (p, "watch", p1 - p) == 0)
3182 || (strncmp (p, "rwatch", p1 - p) == 0)
3183 || (strncmp (p, "awatch", p1 - p) == 0))
3184 {
3185 remote_stopped_by_watchpoint_p = 1;
3186 p = unpack_varlen_hex (++p1, &addr);
3187 remote_watch_data_address = (CORE_ADDR)addr;
3188 }
3189 else
3190 {
3191 /* Silently skip unknown optional info. */
3192 p_temp = strchr (p1 + 1, ';');
3193 if (p_temp)
cfd77fa1 3194 p = p_temp;
3c3bea1c 3195 }
c906108c
SS
3196 }
3197 else
3198 {
ea9c271d 3199 struct packet_reg *reg = packet_reg_from_pnum (rsa, pnum);
c906108c
SS
3200 p = p1;
3201
3202 if (*p++ != ':')
8a3fe4f8
AC
3203 error (_("Malformed packet(b) (missing colon): %s\n\
3204Packet: '%s'\n"),
3fcb8548 3205 p, buf);
c906108c 3206
ad10f812 3207 if (reg == NULL)
8a3fe4f8
AC
3208 error (_("Remote sent bad register number %s: %s\n\
3209Packet: '%s'\n"),
3fcb8548 3210 phex_nz (pnum, 0), p, buf);
c906108c 3211
cfd77fa1 3212 fieldsize = hex2bin (p, regs,
2bc416ba 3213 register_size (current_gdbarch,
23860348 3214 reg->regnum));
97345198 3215 p += 2 * fieldsize;
2bc416ba 3216 if (fieldsize < register_size (current_gdbarch,
23860348 3217 reg->regnum))
8a3fe4f8 3218 warning (_("Remote reply is too short: %s"), buf);
2bc416ba 3219 regcache_raw_supply (current_regcache,
23860348 3220 reg->regnum, regs);
c906108c
SS
3221 }
3222
3223 if (*p++ != ';')
2bc416ba 3224 error (_("Remote register badly formatted: %s\nhere: %s"),
23860348 3225 buf, p);
c906108c
SS
3226 }
3227 }
3228 /* fall through */
23860348 3229 case 'S': /* Old style status, just signal only. */
c906108c
SS
3230 status->kind = TARGET_WAITKIND_STOPPED;
3231 status->value.sig = (enum target_signal)
3232 (((fromhex (buf[1])) << 4) + (fromhex (buf[2])));
3233
0f71a2f6
JM
3234 if (buf[3] == 'p')
3235 {
0f71a2f6
JM
3236 thread_num = strtol ((const char *) &buf[4], NULL, 16);
3237 record_currthread (thread_num);
3238 }
c906108c 3239 goto got_status;
23860348 3240 case 'W': /* Target exited. */
c906108c
SS
3241 {
3242 /* The remote process exited. */
3243 status->kind = TARGET_WAITKIND_EXITED;
3244 status->value.integer = (fromhex (buf[1]) << 4) + fromhex (buf[2]);
3245 goto got_status;
3246 }
3247 case 'X':
3248 status->kind = TARGET_WAITKIND_SIGNALLED;
3249 status->value.sig = (enum target_signal)
3250 (((fromhex (buf[1])) << 4) + (fromhex (buf[2])));
3251 kill_kludge = 1;
3252
3253 goto got_status;
23860348 3254 case 'O': /* Console output. */
c906108c
SS
3255 remote_console_output (buf + 1);
3256 continue;
3257 case '\0':
3258 if (last_sent_signal != TARGET_SIGNAL_0)
3259 {
3260 /* Zero length reply means that we tried 'S' or 'C' and
c5aa993b 3261 the remote system doesn't support it. */
c906108c
SS
3262 target_terminal_ours_for_output ();
3263 printf_filtered
3264 ("Can't send signals to this remote system. %s not sent.\n",
3265 target_signal_to_name (last_sent_signal));
3266 last_sent_signal = TARGET_SIGNAL_0;
3267 target_terminal_inferior ();
3268
3269 strcpy ((char *) buf, last_sent_step ? "s" : "c");
3270 putpkt ((char *) buf);
3271 continue;
3272 }
3273 /* else fallthrough */
3274 default:
8a3fe4f8 3275 warning (_("Invalid remote reply: %s"), buf);
c906108c
SS
3276 continue;
3277 }
3278 }
c5aa993b 3279got_status:
c906108c
SS
3280 if (thread_num != -1)
3281 {
39f77062 3282 return pid_to_ptid (thread_num);
c906108c 3283 }
39f77062 3284 return inferior_ptid;
c906108c
SS
3285}
3286
23860348 3287/* Async version of remote_wait. */
39f77062
KB
3288static ptid_t
3289remote_async_wait (ptid_t ptid, struct target_waitstatus *status)
43ff13b4 3290{
d01949b6 3291 struct remote_state *rs = get_remote_state ();
ea9c271d 3292 struct remote_arch_state *rsa = get_remote_arch_state ();
b2dd6311 3293 ULONGEST thread_num = -1;
3c3bea1c 3294 ULONGEST addr;
43ff13b4
JM
3295
3296 status->kind = TARGET_WAITKIND_EXITED;
3297 status->value.integer = 0;
3298
3c3bea1c
GS
3299 remote_stopped_by_watchpoint_p = 0;
3300
43ff13b4
JM
3301 while (1)
3302 {
2e9f7625 3303 char *buf, *p;
c5aa993b 3304
ed9a39eb 3305 if (!target_is_async_p ())
43ff13b4 3306 ofunc = signal (SIGINT, remote_interrupt);
6426a772
JM
3307 /* FIXME: cagney/1999-09-27: If we're in async mode we should
3308 _never_ wait for ever -> test on target_is_async_p().
3309 However, before we do that we need to ensure that the caller
23860348 3310 knows how to take the target into/out of async mode. */
6d820c5c 3311 getpkt (&rs->buf, &rs->buf_size, wait_forever_enabled_p);
ed9a39eb 3312 if (!target_is_async_p ())
43ff13b4
JM
3313 signal (SIGINT, ofunc);
3314
2e9f7625
DJ
3315 buf = rs->buf;
3316
43ff13b4 3317 /* This is a hook for when we need to do something (perhaps the
c5aa993b 3318 collection of trace data) every time the target stops. */
9a4105ab
AC
3319 if (deprecated_target_wait_loop_hook)
3320 (*deprecated_target_wait_loop_hook) ();
43ff13b4
JM
3321
3322 switch (buf[0])
3323 {
23860348 3324 case 'E': /* Error of some sort. */
8a3fe4f8 3325 warning (_("Remote failure reply: %s"), buf);
43ff13b4 3326 continue;
23860348 3327 case 'F': /* File-I/O request. */
449092f6
CV
3328 remote_fileio_request (buf);
3329 continue;
23860348 3330 case 'T': /* Status with PC, SP, FP, ... */
43ff13b4 3331 {
cfd77fa1 3332 gdb_byte regs[MAX_REGISTER_SIZE];
43ff13b4 3333
23860348 3334 /* Expedited reply, containing Signal, {regno, reg} repeat. */
43ff13b4 3335 /* format is: 'Tssn...:r...;n...:r...;n...:r...;#cc', where
c5aa993b
JM
3336 ss = signal number
3337 n... = register number
3338 r... = register contents
3339 */
43ff13b4
JM
3340 p = &buf[3]; /* after Txx */
3341
3342 while (*p)
3343 {
cfd77fa1 3344 char *p1;
43ff13b4 3345 char *p_temp;
6c3f2dbf 3346 int fieldsize;
3c3bea1c 3347 long pnum = 0;
43ff13b4 3348
23860348
MS
3349 /* If the packet contains a register number, save it
3350 in pnum and set p1 to point to the character
3351 following it. Otherwise p1 points to p. */
3c3bea1c
GS
3352
3353 /* If this packet is an awatch packet, don't parse the 'a'
3354 as a register number. */
802188a7 3355
3c3bea1c
GS
3356 if (!strncmp (p, "awatch", strlen ("awatch")) != 0)
3357 {
3358 /* Read the register number. */
3359 pnum = strtol (p, &p_temp, 16);
cfd77fa1 3360 p1 = p_temp;
3c3bea1c 3361 }
802188a7 3362 else
3c3bea1c 3363 p1 = p;
43ff13b4 3364
23860348 3365 if (p1 == p) /* No register number present here. */
43ff13b4 3366 {
cfd77fa1 3367 p1 = strchr (p, ':');
43ff13b4 3368 if (p1 == NULL)
8a3fe4f8
AC
3369 error (_("Malformed packet(a) (missing colon): %s\n\
3370Packet: '%s'\n"),
3fcb8548 3371 p, buf);
3c3bea1c 3372 if (strncmp (p, "thread", p1 - p) == 0)
43ff13b4
JM
3373 {
3374 p_temp = unpack_varlen_hex (++p1, &thread_num);
3375 record_currthread (thread_num);
cfd77fa1 3376 p = p_temp;
43ff13b4 3377 }
3c3bea1c
GS
3378 else if ((strncmp (p, "watch", p1 - p) == 0)
3379 || (strncmp (p, "rwatch", p1 - p) == 0)
3380 || (strncmp (p, "awatch", p1 - p) == 0))
3381 {
3382 remote_stopped_by_watchpoint_p = 1;
3383 p = unpack_varlen_hex (++p1, &addr);
3384 remote_watch_data_address = (CORE_ADDR)addr;
3385 }
3386 else
3387 {
3388 /* Silently skip unknown optional info. */
cfd77fa1 3389 p_temp = strchr (p1 + 1, ';');
3c3bea1c
GS
3390 if (p_temp)
3391 p = p_temp;
3392 }
43ff13b4 3393 }
802188a7 3394
43ff13b4
JM
3395 else
3396 {
ea9c271d 3397 struct packet_reg *reg = packet_reg_from_pnum (rsa, pnum);
43ff13b4 3398 p = p1;
43ff13b4 3399 if (*p++ != ':')
8a3fe4f8
AC
3400 error (_("Malformed packet(b) (missing colon): %s\n\
3401Packet: '%s'\n"),
3fcb8548 3402 p, buf);
43ff13b4 3403
ad10f812 3404 if (reg == NULL)
8a3fe4f8
AC
3405 error (_("Remote sent bad register number %ld: %s\n\
3406Packet: '%s'\n"),
3fcb8548 3407 pnum, p, buf);
43ff13b4 3408
cfd77fa1 3409 fieldsize = hex2bin (p, regs,
2bc416ba 3410 register_size (current_gdbarch,
23860348 3411 reg->regnum));
6c3f2dbf 3412 p += 2 * fieldsize;
2bc416ba 3413 if (fieldsize < register_size (current_gdbarch,
23860348 3414 reg->regnum))
8a3fe4f8 3415 warning (_("Remote reply is too short: %s"), buf);
23a6d369 3416 regcache_raw_supply (current_regcache, reg->regnum, regs);
43ff13b4
JM
3417 }
3418
3419 if (*p++ != ';')
8a3fe4f8 3420 error (_("Remote register badly formatted: %s\nhere: %s"),
0a2cfde4 3421 buf, p);
43ff13b4
JM
3422 }
3423 }
3424 /* fall through */
23860348 3425 case 'S': /* Old style status, just signal only. */
43ff13b4
JM
3426 status->kind = TARGET_WAITKIND_STOPPED;
3427 status->value.sig = (enum target_signal)
3428 (((fromhex (buf[1])) << 4) + (fromhex (buf[2])));
3429
3430 if (buf[3] == 'p')
3431 {
43ff13b4
JM
3432 thread_num = strtol ((const char *) &buf[4], NULL, 16);
3433 record_currthread (thread_num);
3434 }
43ff13b4 3435 goto got_status;
23860348 3436 case 'W': /* Target exited. */
43ff13b4
JM
3437 {
3438 /* The remote process exited. */
3439 status->kind = TARGET_WAITKIND_EXITED;
3440 status->value.integer = (fromhex (buf[1]) << 4) + fromhex (buf[2]);
3441 goto got_status;
3442 }
3443 case 'X':
3444 status->kind = TARGET_WAITKIND_SIGNALLED;
3445 status->value.sig = (enum target_signal)
3446 (((fromhex (buf[1])) << 4) + (fromhex (buf[2])));
3447 kill_kludge = 1;
3448
3449 goto got_status;
23860348 3450 case 'O': /* Console output. */
43ff13b4 3451 remote_console_output (buf + 1);
c4093a6a 3452 /* Return immediately to the event loop. The event loop will
23860348 3453 still be waiting on the inferior afterwards. */
c4093a6a
JM
3454 status->kind = TARGET_WAITKIND_IGNORE;
3455 goto got_status;
43ff13b4
JM
3456 case '\0':
3457 if (last_sent_signal != TARGET_SIGNAL_0)
3458 {
3459 /* Zero length reply means that we tried 'S' or 'C' and
c5aa993b 3460 the remote system doesn't support it. */
43ff13b4
JM
3461 target_terminal_ours_for_output ();
3462 printf_filtered
3463 ("Can't send signals to this remote system. %s not sent.\n",
3464 target_signal_to_name (last_sent_signal));
3465 last_sent_signal = TARGET_SIGNAL_0;
3466 target_terminal_inferior ();
3467
3468 strcpy ((char *) buf, last_sent_step ? "s" : "c");
3469 putpkt ((char *) buf);
3470 continue;
3471 }
3472 /* else fallthrough */
3473 default:
8a3fe4f8 3474 warning (_("Invalid remote reply: %s"), buf);
43ff13b4
JM
3475 continue;
3476 }
3477 }
c5aa993b 3478got_status:
43ff13b4
JM
3479 if (thread_num != -1)
3480 {
39f77062 3481 return pid_to_ptid (thread_num);
43ff13b4 3482 }
39f77062 3483 return inferior_ptid;
43ff13b4
JM
3484}
3485
74ca34ce 3486/* Fetch a single register using a 'p' packet. */
c906108c 3487
b96ec7ac 3488static int
56be3814 3489fetch_register_using_p (struct regcache *regcache, struct packet_reg *reg)
b96ec7ac
AC
3490{
3491 struct remote_state *rs = get_remote_state ();
2e9f7625 3492 char *buf, *p;
b96ec7ac
AC
3493 char regp[MAX_REGISTER_SIZE];
3494 int i;
3495
74ca34ce
DJ
3496 if (remote_protocol_packets[PACKET_p].support == PACKET_DISABLE)
3497 return 0;
3498
3499 if (reg->pnum == -1)
3500 return 0;
3501
2e9f7625 3502 p = rs->buf;
fcad0fa4 3503 *p++ = 'p';
74ca34ce 3504 p += hexnumstr (p, reg->pnum);
fcad0fa4 3505 *p++ = '\0';
6d820c5c 3506 remote_send (&rs->buf, &rs->buf_size);
3f9a994c 3507
2e9f7625
DJ
3508 buf = rs->buf;
3509
74ca34ce
DJ
3510 switch (packet_ok (buf, &remote_protocol_packets[PACKET_p]))
3511 {
3512 case PACKET_OK:
3513 break;
3514 case PACKET_UNKNOWN:
3515 return 0;
3516 case PACKET_ERROR:
3517 error (_("Could not fetch register \"%s\""),
3518 gdbarch_register_name (current_gdbarch, reg->regnum));
3519 }
3f9a994c
JB
3520
3521 /* If this register is unfetchable, tell the regcache. */
3522 if (buf[0] == 'x')
8480adf2 3523 {
56be3814 3524 regcache_raw_supply (regcache, reg->regnum, NULL);
74ca34ce 3525 set_register_cached (reg->regnum, -1);
8480adf2 3526 return 1;
b96ec7ac 3527 }
b96ec7ac 3528
3f9a994c
JB
3529 /* Otherwise, parse and supply the value. */
3530 p = buf;
3531 i = 0;
3532 while (p[0] != 0)
3533 {
3534 if (p[1] == 0)
74ca34ce 3535 error (_("fetch_register_using_p: early buf termination"));
3f9a994c
JB
3536
3537 regp[i++] = fromhex (p[0]) * 16 + fromhex (p[1]);
3538 p += 2;
3539 }
56be3814 3540 regcache_raw_supply (regcache, reg->regnum, regp);
3f9a994c 3541 return 1;
b96ec7ac
AC
3542}
3543
74ca34ce
DJ
3544/* Fetch the registers included in the target's 'g' packet. */
3545
29709017
DJ
3546static int
3547send_g_packet (void)
c906108c 3548{
d01949b6 3549 struct remote_state *rs = get_remote_state ();
74ca34ce 3550 int i, buf_len;
c906108c 3551 char *p;
74ca34ce 3552 char *regs;
c906108c 3553
74ca34ce
DJ
3554 sprintf (rs->buf, "g");
3555 remote_send (&rs->buf, &rs->buf_size);
c906108c 3556
29709017
DJ
3557 /* We can get out of synch in various cases. If the first character
3558 in the buffer is not a hex character, assume that has happened
3559 and try to fetch another packet to read. */
3560 while ((rs->buf[0] < '0' || rs->buf[0] > '9')
3561 && (rs->buf[0] < 'A' || rs->buf[0] > 'F')
3562 && (rs->buf[0] < 'a' || rs->buf[0] > 'f')
3563 && rs->buf[0] != 'x') /* New: unavailable register value. */
3564 {
3565 if (remote_debug)
3566 fprintf_unfiltered (gdb_stdlog,
3567 "Bad register packet; fetching a new packet\n");
3568 getpkt (&rs->buf, &rs->buf_size, 0);
3569 }
3570
74ca34ce
DJ
3571 buf_len = strlen (rs->buf);
3572
3573 /* Sanity check the received packet. */
3574 if (buf_len % 2 != 0)
3575 error (_("Remote 'g' packet reply is of odd length: %s"), rs->buf);
29709017
DJ
3576
3577 return buf_len / 2;
3578}
3579
3580static void
56be3814 3581process_g_packet (struct regcache *regcache)
29709017
DJ
3582{
3583 struct remote_state *rs = get_remote_state ();
3584 struct remote_arch_state *rsa = get_remote_arch_state ();
3585 int i, buf_len;
3586 char *p;
3587 char *regs;
3588
3589 buf_len = strlen (rs->buf);
3590
3591 /* Further sanity checks, with knowledge of the architecture. */
74ca34ce
DJ
3592 if (REGISTER_BYTES_OK_P () && !REGISTER_BYTES_OK (buf_len / 2))
3593 error (_("Remote 'g' packet reply is wrong length: %s"), rs->buf);
3594 if (buf_len > 2 * rsa->sizeof_g_packet)
3595 error (_("Remote 'g' packet reply is too long: %s"), rs->buf);
3596
3597 /* Save the size of the packet sent to us by the target. It is used
3598 as a heuristic when determining the max size of packets that the
3599 target can safely receive. */
3600 if (rsa->actual_register_packet_size == 0)
3601 rsa->actual_register_packet_size = buf_len;
3602
3603 /* If this is smaller than we guessed the 'g' packet would be,
3604 update our records. A 'g' reply that doesn't include a register's
3605 value implies either that the register is not available, or that
3606 the 'p' packet must be used. */
3607 if (buf_len < 2 * rsa->sizeof_g_packet)
b323314b 3608 {
74ca34ce
DJ
3609 rsa->sizeof_g_packet = buf_len / 2;
3610
3611 for (i = 0; i < NUM_REGS; i++)
b96ec7ac 3612 {
74ca34ce
DJ
3613 if (rsa->regs[i].pnum == -1)
3614 continue;
3615
3616 if (rsa->regs[i].offset >= rsa->sizeof_g_packet)
3617 rsa->regs[i].in_g_packet = 0;
b96ec7ac 3618 else
74ca34ce 3619 rsa->regs[i].in_g_packet = 1;
b96ec7ac 3620 }
74ca34ce 3621 }
b323314b 3622
74ca34ce 3623 regs = alloca (rsa->sizeof_g_packet);
c906108c
SS
3624
3625 /* Unimplemented registers read as all bits zero. */
ea9c271d 3626 memset (regs, 0, rsa->sizeof_g_packet);
c906108c 3627
c906108c
SS
3628 /* Reply describes registers byte by byte, each byte encoded as two
3629 hex characters. Suck them all up, then supply them to the
3630 register cacheing/storage mechanism. */
3631
74ca34ce 3632 p = rs->buf;
ea9c271d 3633 for (i = 0; i < rsa->sizeof_g_packet; i++)
c906108c 3634 {
74ca34ce
DJ
3635 if (p[0] == 0 || p[1] == 0)
3636 /* This shouldn't happen - we adjusted sizeof_g_packet above. */
3637 internal_error (__FILE__, __LINE__,
3638 "unexpected end of 'g' packet reply");
3639
c906108c 3640 if (p[0] == 'x' && p[1] == 'x')
c5aa993b 3641 regs[i] = 0; /* 'x' */
c906108c
SS
3642 else
3643 regs[i] = fromhex (p[0]) * 16 + fromhex (p[1]);
3644 p += 2;
3645 }
3646
ad10f812 3647 {
b323314b 3648 int i;
74ca34ce 3649 for (i = 0; i < NUM_REGS; i++)
ad10f812 3650 {
ea9c271d 3651 struct packet_reg *r = &rsa->regs[i];
b323314b
AC
3652 if (r->in_g_packet)
3653 {
74ca34ce
DJ
3654 if (r->offset * 2 >= strlen (rs->buf))
3655 /* This shouldn't happen - we adjusted in_g_packet above. */
3656 internal_error (__FILE__, __LINE__,
3657 "unexpected end of 'g' packet reply");
3658 else if (rs->buf[r->offset * 2] == 'x')
8ccc1287 3659 {
74ca34ce 3660 gdb_assert (r->offset * 2 < strlen (rs->buf));
8ccc1287
AC
3661 /* The register isn't available, mark it as such (at
3662 the same time setting the value to zero). */
56be3814 3663 regcache_raw_supply (regcache, r->regnum, NULL);
8ccc1287
AC
3664 set_register_cached (i, -1);
3665 }
3666 else
56be3814 3667 regcache_raw_supply (regcache, r->regnum,
8ccc1287 3668 regs + r->offset);
b323314b 3669 }
ad10f812
AC
3670 }
3671 }
c906108c
SS
3672}
3673
29709017 3674static void
56be3814 3675fetch_registers_using_g (struct regcache *regcache)
29709017
DJ
3676{
3677 send_g_packet ();
56be3814 3678 process_g_packet (regcache);
29709017
DJ
3679}
3680
74ca34ce 3681static void
56be3814 3682remote_fetch_registers (struct regcache *regcache, int regnum)
74ca34ce
DJ
3683{
3684 struct remote_state *rs = get_remote_state ();
3685 struct remote_arch_state *rsa = get_remote_arch_state ();
3686 int i;
3687
3688 set_thread (PIDGET (inferior_ptid), 1);
3689
3690 if (regnum >= 0)
3691 {
3692 struct packet_reg *reg = packet_reg_from_regnum (rsa, regnum);
3693 gdb_assert (reg != NULL);
3694
3695 /* If this register might be in the 'g' packet, try that first -
3696 we are likely to read more than one register. If this is the
3697 first 'g' packet, we might be overly optimistic about its
3698 contents, so fall back to 'p'. */
3699 if (reg->in_g_packet)
3700 {
56be3814 3701 fetch_registers_using_g (regcache);
74ca34ce
DJ
3702 if (reg->in_g_packet)
3703 return;
3704 }
3705
56be3814 3706 if (fetch_register_using_p (regcache, reg))
74ca34ce
DJ
3707 return;
3708
3709 /* This register is not available. */
56be3814 3710 regcache_raw_supply (regcache, reg->regnum, NULL);
74ca34ce
DJ
3711 set_register_cached (reg->regnum, -1);
3712
3713 return;
3714 }
3715
56be3814 3716 fetch_registers_using_g (regcache);
74ca34ce
DJ
3717
3718 for (i = 0; i < NUM_REGS; i++)
3719 if (!rsa->regs[i].in_g_packet)
56be3814 3720 if (!fetch_register_using_p (regcache, &rsa->regs[i]))
74ca34ce
DJ
3721 {
3722 /* This register is not available. */
56be3814 3723 regcache_raw_supply (regcache, i, NULL);
74ca34ce
DJ
3724 set_register_cached (i, -1);
3725 }
3726}
3727
c906108c
SS
3728/* Prepare to store registers. Since we may send them all (using a
3729 'G' request), we have to read out the ones we don't want to change
3730 first. */
3731
c5aa993b 3732static void
fba45db2 3733remote_prepare_to_store (void)
c906108c 3734{
ea9c271d 3735 struct remote_arch_state *rsa = get_remote_arch_state ();
cf0e1e0d 3736 int i;
cfd77fa1 3737 gdb_byte buf[MAX_REGISTER_SIZE];
cf0e1e0d 3738
c906108c 3739 /* Make sure the entire registers array is valid. */
444abaca 3740 switch (remote_protocol_packets[PACKET_P].support)
5a2468f5
JM
3741 {
3742 case PACKET_DISABLE:
3743 case PACKET_SUPPORT_UNKNOWN:
cf0e1e0d
DJ
3744 /* Make sure all the necessary registers are cached. */
3745 for (i = 0; i < NUM_REGS; i++)
ea9c271d
DJ
3746 if (rsa->regs[i].in_g_packet)
3747 regcache_raw_read (current_regcache, rsa->regs[i].regnum, buf);
5a2468f5
JM
3748 break;
3749 case PACKET_ENABLE:
3750 break;
3751 }
3752}
3753
ad10f812 3754/* Helper: Attempt to store REGNUM using the P packet. Return fail IFF
23860348 3755 packet was not recognized. */
5a2468f5
JM
3756
3757static int
56be3814 3758store_register_using_P (const struct regcache *regcache, struct packet_reg *reg)
5a2468f5 3759{
d01949b6 3760 struct remote_state *rs = get_remote_state ();
ea9c271d 3761 struct remote_arch_state *rsa = get_remote_arch_state ();
5a2468f5 3762 /* Try storing a single register. */
6d820c5c 3763 char *buf = rs->buf;
cfd77fa1 3764 gdb_byte regp[MAX_REGISTER_SIZE];
5a2468f5 3765 char *p;
5a2468f5 3766
74ca34ce
DJ
3767 if (remote_protocol_packets[PACKET_P].support == PACKET_DISABLE)
3768 return 0;
3769
3770 if (reg->pnum == -1)
3771 return 0;
3772
ea9c271d 3773 xsnprintf (buf, get_remote_packet_size (), "P%s=", phex_nz (reg->pnum, 0));
5a2468f5 3774 p = buf + strlen (buf);
56be3814 3775 regcache_raw_collect (regcache, reg->regnum, regp);
3acba339 3776 bin2hex (regp, p, register_size (current_gdbarch, reg->regnum));
6d820c5c 3777 remote_send (&rs->buf, &rs->buf_size);
5a2468f5 3778
74ca34ce
DJ
3779 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_P]))
3780 {
3781 case PACKET_OK:
3782 return 1;
3783 case PACKET_ERROR:
3784 error (_("Could not write register \"%s\""),
3785 gdbarch_register_name (current_gdbarch, reg->regnum));
3786 case PACKET_UNKNOWN:
3787 return 0;
3788 default:
3789 internal_error (__FILE__, __LINE__, _("Bad result from packet_ok"));
3790 }
c906108c
SS
3791}
3792
23860348
MS
3793/* Store register REGNUM, or all registers if REGNUM == -1, from the
3794 contents of the register cache buffer. FIXME: ignores errors. */
c906108c
SS
3795
3796static void
56be3814 3797store_registers_using_G (const struct regcache *regcache)
c906108c 3798{
d01949b6 3799 struct remote_state *rs = get_remote_state ();
ea9c271d 3800 struct remote_arch_state *rsa = get_remote_arch_state ();
cfd77fa1 3801 gdb_byte *regs;
c906108c
SS
3802 char *p;
3803
193cb69f
AC
3804 /* Extract all the registers in the regcache copying them into a
3805 local buffer. */
3806 {
b323314b 3807 int i;
ea9c271d
DJ
3808 regs = alloca (rsa->sizeof_g_packet);
3809 memset (regs, 0, rsa->sizeof_g_packet);
74ca34ce 3810 for (i = 0; i < NUM_REGS; i++)
193cb69f 3811 {
ea9c271d 3812 struct packet_reg *r = &rsa->regs[i];
b323314b 3813 if (r->in_g_packet)
56be3814 3814 regcache_raw_collect (regcache, r->regnum, regs + r->offset);
193cb69f
AC
3815 }
3816 }
c906108c
SS
3817
3818 /* Command describes registers byte by byte,
3819 each byte encoded as two hex characters. */
6d820c5c 3820 p = rs->buf;
193cb69f 3821 *p++ = 'G';
74ca34ce
DJ
3822 /* remote_prepare_to_store insures that rsa->sizeof_g_packet gets
3823 updated. */
3824 bin2hex (regs, p, rsa->sizeof_g_packet);
6d820c5c 3825 remote_send (&rs->buf, &rs->buf_size);
c906108c 3826}
74ca34ce
DJ
3827
3828/* Store register REGNUM, or all registers if REGNUM == -1, from the contents
3829 of the register cache buffer. FIXME: ignores errors. */
3830
3831static void
56be3814 3832remote_store_registers (struct regcache *regcache, int regnum)
74ca34ce
DJ
3833{
3834 struct remote_state *rs = get_remote_state ();
3835 struct remote_arch_state *rsa = get_remote_arch_state ();
3836 int i;
3837
3838 set_thread (PIDGET (inferior_ptid), 1);
3839
3840 if (regnum >= 0)
3841 {
3842 struct packet_reg *reg = packet_reg_from_regnum (rsa, regnum);
3843 gdb_assert (reg != NULL);
3844
3845 /* Always prefer to store registers using the 'P' packet if
3846 possible; we often change only a small number of registers.
3847 Sometimes we change a larger number; we'd need help from a
3848 higher layer to know to use 'G'. */
56be3814 3849 if (store_register_using_P (regcache, reg))
74ca34ce
DJ
3850 return;
3851
3852 /* For now, don't complain if we have no way to write the
3853 register. GDB loses track of unavailable registers too
3854 easily. Some day, this may be an error. We don't have
3855 any way to read the register, either... */
3856 if (!reg->in_g_packet)
3857 return;
3858
56be3814 3859 store_registers_using_G (regcache);
74ca34ce
DJ
3860 return;
3861 }
3862
56be3814 3863 store_registers_using_G (regcache);
74ca34ce
DJ
3864
3865 for (i = 0; i < NUM_REGS; i++)
3866 if (!rsa->regs[i].in_g_packet)
56be3814 3867 if (!store_register_using_P (regcache, &rsa->regs[i]))
74ca34ce
DJ
3868 /* See above for why we do not issue an error here. */
3869 continue;
3870}
c906108c
SS
3871\f
3872
3873/* Return the number of hex digits in num. */
3874
3875static int
fba45db2 3876hexnumlen (ULONGEST num)
c906108c
SS
3877{
3878 int i;
3879
3880 for (i = 0; num != 0; i++)
3881 num >>= 4;
3882
3883 return max (i, 1);
3884}
3885
2df3850c 3886/* Set BUF to the minimum number of hex digits representing NUM. */
c906108c
SS
3887
3888static int
fba45db2 3889hexnumstr (char *buf, ULONGEST num)
c906108c 3890{
c906108c 3891 int len = hexnumlen (num);
2df3850c
JM
3892 return hexnumnstr (buf, num, len);
3893}
3894
c906108c 3895
2df3850c 3896/* Set BUF to the hex digits representing NUM, padded to WIDTH characters. */
c906108c 3897
2df3850c 3898static int
fba45db2 3899hexnumnstr (char *buf, ULONGEST num, int width)
2df3850c
JM
3900{
3901 int i;
3902
3903 buf[width] = '\0';
3904
3905 for (i = width - 1; i >= 0; i--)
c906108c 3906 {
c5aa993b 3907 buf[i] = "0123456789abcdef"[(num & 0xf)];
c906108c
SS
3908 num >>= 4;
3909 }
3910
2df3850c 3911 return width;
c906108c
SS
3912}
3913
23860348 3914/* Mask all but the least significant REMOTE_ADDRESS_SIZE bits. */
c906108c
SS
3915
3916static CORE_ADDR
fba45db2 3917remote_address_masked (CORE_ADDR addr)
c906108c
SS
3918{
3919 if (remote_address_size > 0
3920 && remote_address_size < (sizeof (ULONGEST) * 8))
3921 {
3922 /* Only create a mask when that mask can safely be constructed
23860348 3923 in a ULONGEST variable. */
c906108c
SS
3924 ULONGEST mask = 1;
3925 mask = (mask << remote_address_size) - 1;
3926 addr &= mask;
3927 }
3928 return addr;
3929}
3930
a31ea83d
DJ
3931/* Convert BUFFER, binary data at least LEN bytes long, into escaped
3932 binary data in OUT_BUF. Set *OUT_LEN to the length of the data
3933 encoded in OUT_BUF, and return the number of bytes in OUT_BUF
3934 (which may be more than *OUT_LEN due to escape characters). The
3935 total number of bytes in the output buffer will be at most
3936 OUT_MAXLEN. */
3937
3938static int
3939remote_escape_output (const gdb_byte *buffer, int len,
3940 gdb_byte *out_buf, int *out_len,
3941 int out_maxlen)
3942{
3943 int input_index, output_index;
3944
3945 output_index = 0;
3946 for (input_index = 0; input_index < len; input_index++)
3947 {
3948 gdb_byte b = buffer[input_index];
3949
3950 if (b == '$' || b == '#' || b == '}')
3951 {
3952 /* These must be escaped. */
3953 if (output_index + 2 > out_maxlen)
3954 break;
3955 out_buf[output_index++] = '}';
3956 out_buf[output_index++] = b ^ 0x20;
3957 }
3958 else
3959 {
3960 if (output_index + 1 > out_maxlen)
3961 break;
3962 out_buf[output_index++] = b;
3963 }
3964 }
3965
3966 *out_len = input_index;
3967 return output_index;
3968}
3969
0876f84a
DJ
3970/* Convert BUFFER, escaped data LEN bytes long, into binary data
3971 in OUT_BUF. Return the number of bytes written to OUT_BUF.
3972 Raise an error if the total number of bytes exceeds OUT_MAXLEN.
3973
3974 This function reverses remote_escape_output. It allows more
3975 escaped characters than that function does, in particular because
3976 '*' must be escaped to avoid the run-length encoding processing
3977 in reading packets. */
3978
3979static int
3980remote_unescape_input (const gdb_byte *buffer, int len,
3981 gdb_byte *out_buf, int out_maxlen)
3982{
3983 int input_index, output_index;
3984 int escaped;
3985
3986 output_index = 0;
3987 escaped = 0;
3988 for (input_index = 0; input_index < len; input_index++)
3989 {
3990 gdb_byte b = buffer[input_index];
3991
3992 if (output_index + 1 > out_maxlen)
3993 {
3994 warning (_("Received too much data from remote target;"
3995 " ignoring overflow."));
3996 return output_index;
3997 }
3998
3999 if (escaped)
4000 {
4001 out_buf[output_index++] = b ^ 0x20;
4002 escaped = 0;
4003 }
4004 else if (b == '}')
4005 escaped = 1;
4006 else
4007 out_buf[output_index++] = b;
4008 }
4009
4010 if (escaped)
4011 error (_("Unmatched escape character in target response."));
4012
4013 return output_index;
4014}
4015
c906108c
SS
4016/* Determine whether the remote target supports binary downloading.
4017 This is accomplished by sending a no-op memory write of zero length
4018 to the target at the specified address. It does not suffice to send
23860348
MS
4019 the whole packet, since many stubs strip the eighth bit and
4020 subsequently compute a wrong checksum, which causes real havoc with
4021 remote_write_bytes.
7a292a7a 4022
96baa820
JM
4023 NOTE: This can still lose if the serial line is not eight-bit
4024 clean. In cases like this, the user should clear "remote
23860348 4025 X-packet". */
96baa820 4026
c906108c 4027static void
fba45db2 4028check_binary_download (CORE_ADDR addr)
c906108c 4029{
d01949b6 4030 struct remote_state *rs = get_remote_state ();
24b06219 4031
444abaca 4032 switch (remote_protocol_packets[PACKET_X].support)
c906108c 4033 {
96baa820
JM
4034 case PACKET_DISABLE:
4035 break;
4036 case PACKET_ENABLE:
4037 break;
4038 case PACKET_SUPPORT_UNKNOWN:
4039 {
96baa820 4040 char *p;
802188a7 4041
2e9f7625 4042 p = rs->buf;
96baa820
JM
4043 *p++ = 'X';
4044 p += hexnumstr (p, (ULONGEST) addr);
4045 *p++ = ',';
4046 p += hexnumstr (p, (ULONGEST) 0);
4047 *p++ = ':';
4048 *p = '\0';
802188a7 4049
2e9f7625 4050 putpkt_binary (rs->buf, (int) (p - rs->buf));
6d820c5c 4051 getpkt (&rs->buf, &rs->buf_size, 0);
c906108c 4052
2e9f7625 4053 if (rs->buf[0] == '\0')
96baa820
JM
4054 {
4055 if (remote_debug)
4056 fprintf_unfiltered (gdb_stdlog,
4057 "binary downloading NOT suppported by target\n");
444abaca 4058 remote_protocol_packets[PACKET_X].support = PACKET_DISABLE;
96baa820
JM
4059 }
4060 else
4061 {
4062 if (remote_debug)
4063 fprintf_unfiltered (gdb_stdlog,
4064 "binary downloading suppported by target\n");
444abaca 4065 remote_protocol_packets[PACKET_X].support = PACKET_ENABLE;
96baa820
JM
4066 }
4067 break;
4068 }
c906108c
SS
4069 }
4070}
4071
4072/* Write memory data directly to the remote machine.
4073 This does not inform the data cache; the data cache uses this.
a76d924d 4074 HEADER is the starting part of the packet.
c906108c
SS
4075 MEMADDR is the address in the remote memory space.
4076 MYADDR is the address of the buffer in our space.
4077 LEN is the number of bytes.
a76d924d
DJ
4078 PACKET_FORMAT should be either 'X' or 'M', and indicates if we
4079 should send data as binary ('X'), or hex-encoded ('M').
4080
4081 The function creates packet of the form
4082 <HEADER><ADDRESS>,<LENGTH>:<DATA>
4083
4084 where encoding of <DATA> is termined by PACKET_FORMAT.
4085
4086 If USE_LENGTH is 0, then the <LENGTH> field and the preceding comma
4087 are omitted.
4088
4089 Returns the number of bytes transferred, or 0 (setting errno) for
23860348 4090 error. Only transfer a single packet. */
c906108c 4091
a76d924d
DJ
4092static int
4093remote_write_bytes_aux (const char *header, CORE_ADDR memaddr,
4094 const gdb_byte *myaddr, int len,
4095 char packet_format, int use_length)
c906108c 4096{
6d820c5c 4097 struct remote_state *rs = get_remote_state ();
cfd77fa1 4098 char *p;
a76d924d
DJ
4099 char *plen = NULL;
4100 int plenlen = 0;
917317f4
JM
4101 int todo;
4102 int nr_bytes;
a257b5bb 4103 int payload_size;
6765f3e5 4104 int payload_length;
a76d924d
DJ
4105 int header_length;
4106
4107 if (packet_format != 'X' && packet_format != 'M')
4108 internal_error (__FILE__, __LINE__,
4109 "remote_write_bytes_aux: bad packet format");
c906108c 4110
b2182ed2
DJ
4111 /* Should this be the selected frame? */
4112 gdbarch_remote_translate_xfer_address (current_gdbarch,
4113 current_regcache,
4114 memaddr, len,
4115 &memaddr, &len);
4116
4117 if (len <= 0)
4118 return 0;
4119
3de11b2e 4120 payload_size = get_memory_write_packet_size ();
2bc416ba 4121
6d820c5c
DJ
4122 /* The packet buffer will be large enough for the payload;
4123 get_memory_packet_size ensures this. */
a76d924d 4124 rs->buf[0] = '\0';
c906108c 4125
a257b5bb 4126 /* Compute the size of the actual payload by subtracting out the
3de11b2e
NS
4127 packet header and footer overhead: "$M<memaddr>,<len>:...#nn".
4128 */
a76d924d
DJ
4129 payload_size -= strlen ("$,:#NN");
4130 if (!use_length)
4131 /* The comma won't be used. */
4132 payload_size += 1;
4133 header_length = strlen (header);
4134 payload_size -= header_length;
3de11b2e 4135 payload_size -= hexnumlen (memaddr);
c906108c 4136
a76d924d 4137 /* Construct the packet excluding the data: "<header><memaddr>,<len>:". */
917317f4 4138
a76d924d
DJ
4139 strcat (rs->buf, header);
4140 p = rs->buf + strlen (header);
4141
4142 /* Compute a best guess of the number of bytes actually transfered. */
4143 if (packet_format == 'X')
c906108c 4144 {
23860348 4145 /* Best guess at number of bytes that will fit. */
a257b5bb 4146 todo = min (len, payload_size);
a76d924d
DJ
4147 if (use_length)
4148 payload_size -= hexnumlen (todo);
3de11b2e 4149 todo = min (todo, payload_size);
a76d924d
DJ
4150 }
4151 else
4152 {
23860348 4153 /* Num bytes that will fit. */
a257b5bb 4154 todo = min (len, payload_size / 2);
a76d924d
DJ
4155 if (use_length)
4156 payload_size -= hexnumlen (todo);
3de11b2e 4157 todo = min (todo, payload_size / 2);
917317f4 4158 }
a76d924d 4159
3de11b2e
NS
4160 if (todo <= 0)
4161 internal_error (__FILE__, __LINE__,
4162 _("minumum packet size too small to write data"));
802188a7 4163
6765f3e5
DJ
4164 /* If we already need another packet, then try to align the end
4165 of this packet to a useful boundary. */
4166 if (todo > 2 * REMOTE_ALIGN_WRITES && todo < len)
4167 todo = ((memaddr + todo) & ~(REMOTE_ALIGN_WRITES - 1)) - memaddr;
4168
a257b5bb 4169 /* Append "<memaddr>". */
917317f4
JM
4170 memaddr = remote_address_masked (memaddr);
4171 p += hexnumstr (p, (ULONGEST) memaddr);
a257b5bb 4172
a76d924d
DJ
4173 if (use_length)
4174 {
4175 /* Append ",". */
4176 *p++ = ',';
802188a7 4177
a76d924d
DJ
4178 /* Append <len>. Retain the location/size of <len>. It may need to
4179 be adjusted once the packet body has been created. */
4180 plen = p;
4181 plenlen = hexnumstr (p, (ULONGEST) todo);
4182 p += plenlen;
4183 }
a257b5bb
AC
4184
4185 /* Append ":". */
917317f4
JM
4186 *p++ = ':';
4187 *p = '\0';
802188a7 4188
a257b5bb 4189 /* Append the packet body. */
a76d924d 4190 if (packet_format == 'X')
917317f4 4191 {
917317f4
JM
4192 /* Binary mode. Send target system values byte by byte, in
4193 increasing byte addresses. Only escape certain critical
4194 characters. */
6765f3e5
DJ
4195 payload_length = remote_escape_output (myaddr, todo, p, &nr_bytes,
4196 payload_size);
4197
4198 /* If not all TODO bytes fit, then we'll need another packet. Make
9b7194bc
DJ
4199 a second try to keep the end of the packet aligned. Don't do
4200 this if the packet is tiny. */
4201 if (nr_bytes < todo && nr_bytes > 2 * REMOTE_ALIGN_WRITES)
6765f3e5
DJ
4202 {
4203 int new_nr_bytes;
4204
4205 new_nr_bytes = (((memaddr + nr_bytes) & ~(REMOTE_ALIGN_WRITES - 1))
4206 - memaddr);
4207 if (new_nr_bytes != nr_bytes)
4208 payload_length = remote_escape_output (myaddr, new_nr_bytes,
4209 p, &nr_bytes,
4210 payload_size);
4211 }
4212
4213 p += payload_length;
a76d924d 4214 if (use_length && nr_bytes < todo)
c906108c 4215 {
802188a7 4216 /* Escape chars have filled up the buffer prematurely,
917317f4
JM
4217 and we have actually sent fewer bytes than planned.
4218 Fix-up the length field of the packet. Use the same
4219 number of characters as before. */
917317f4
JM
4220 plen += hexnumnstr (plen, (ULONGEST) nr_bytes, plenlen);
4221 *plen = ':'; /* overwrite \0 from hexnumnstr() */
c906108c 4222 }
a76d924d
DJ
4223 }
4224 else
4225 {
917317f4
JM
4226 /* Normal mode: Send target system values byte by byte, in
4227 increasing byte addresses. Each byte is encoded as a two hex
4228 value. */
2644f393 4229 nr_bytes = bin2hex (myaddr, p, todo);
aa6c0017 4230 p += 2 * nr_bytes;
c906108c 4231 }
802188a7 4232
2e9f7625 4233 putpkt_binary (rs->buf, (int) (p - rs->buf));
6d820c5c 4234 getpkt (&rs->buf, &rs->buf_size, 0);
802188a7 4235
2e9f7625 4236 if (rs->buf[0] == 'E')
917317f4
JM
4237 {
4238 /* There is no correspondance between what the remote protocol
4239 uses for errors and errno codes. We would like a cleaner way
4240 of representing errors (big enough to include errno codes,
4241 bfd_error codes, and others). But for now just return EIO. */
4242 errno = EIO;
4243 return 0;
4244 }
802188a7 4245
23860348
MS
4246 /* Return NR_BYTES, not TODO, in case escape chars caused us to send
4247 fewer bytes than we'd planned. */
917317f4 4248 return nr_bytes;
c906108c
SS
4249}
4250
a76d924d
DJ
4251/* Write memory data directly to the remote machine.
4252 This does not inform the data cache; the data cache uses this.
4253 MEMADDR is the address in the remote memory space.
4254 MYADDR is the address of the buffer in our space.
4255 LEN is the number of bytes.
4256
4257 Returns number of bytes transferred, or 0 (setting errno) for
4258 error. Only transfer a single packet. */
4259
4260int
4261remote_write_bytes (CORE_ADDR memaddr, const gdb_byte *myaddr, int len)
4262{
4263 char *packet_format = 0;
4264
4265 /* Check whether the target supports binary download. */
4266 check_binary_download (memaddr);
4267
4268 switch (remote_protocol_packets[PACKET_X].support)
4269 {
4270 case PACKET_ENABLE:
4271 packet_format = "X";
4272 break;
4273 case PACKET_DISABLE:
4274 packet_format = "M";
4275 break;
4276 case PACKET_SUPPORT_UNKNOWN:
4277 internal_error (__FILE__, __LINE__,
4278 _("remote_write_bytes: bad internal state"));
4279 default:
4280 internal_error (__FILE__, __LINE__, _("bad switch"));
4281 }
4282
4283 return remote_write_bytes_aux (packet_format,
4284 memaddr, myaddr, len, packet_format[0], 1);
4285}
4286
c906108c
SS
4287/* Read memory data directly from the remote machine.
4288 This does not use the data cache; the data cache uses this.
4289 MEMADDR is the address in the remote memory space.
4290 MYADDR is the address of the buffer in our space.
4291 LEN is the number of bytes.
4292
4293 Returns number of bytes transferred, or 0 for error. */
4294
917317f4
JM
4295/* NOTE: cagney/1999-10-18: This function (and its siblings in other
4296 remote targets) shouldn't attempt to read the entire buffer.
4297 Instead it should read a single packet worth of data and then
4298 return the byte size of that packet to the caller. The caller (its
4299 caller and its callers caller ;-) already contains code for
23860348 4300 handling partial reads. */
917317f4 4301
449092f6 4302int
cfd77fa1 4303remote_read_bytes (CORE_ADDR memaddr, gdb_byte *myaddr, int len)
c906108c 4304{
6d820c5c 4305 struct remote_state *rs = get_remote_state ();
23860348 4306 int max_buf_size; /* Max size of packet output buffer. */
c906108c
SS
4307 int origlen;
4308
b2182ed2
DJ
4309 /* Should this be the selected frame? */
4310 gdbarch_remote_translate_xfer_address (current_gdbarch,
4311 current_regcache,
4312 memaddr, len,
4313 &memaddr, &len);
4314
4315 if (len <= 0)
4316 return 0;
4317
11cf8741 4318 max_buf_size = get_memory_read_packet_size ();
6d820c5c
DJ
4319 /* The packet buffer will be large enough for the payload;
4320 get_memory_packet_size ensures this. */
c906108c
SS
4321
4322 origlen = len;
4323 while (len > 0)
4324 {
c906108c
SS
4325 char *p;
4326 int todo;
4327 int i;
4328
c5aa993b 4329 todo = min (len, max_buf_size / 2); /* num bytes that will fit */
c906108c
SS
4330
4331 /* construct "m"<memaddr>","<len>" */
2e9f7625 4332 /* sprintf (rs->buf, "m%lx,%x", (unsigned long) memaddr, todo); */
c906108c 4333 memaddr = remote_address_masked (memaddr);
2e9f7625 4334 p = rs->buf;
c906108c
SS
4335 *p++ = 'm';
4336 p += hexnumstr (p, (ULONGEST) memaddr);
4337 *p++ = ',';
4338 p += hexnumstr (p, (ULONGEST) todo);
4339 *p = '\0';
4340
2e9f7625 4341 putpkt (rs->buf);
6d820c5c 4342 getpkt (&rs->buf, &rs->buf_size, 0);
c906108c 4343
2e9f7625
DJ
4344 if (rs->buf[0] == 'E'
4345 && isxdigit (rs->buf[1]) && isxdigit (rs->buf[2])
4346 && rs->buf[3] == '\0')
c906108c 4347 {
23860348
MS
4348 /* There is no correspondance between what the remote
4349 protocol uses for errors and errno codes. We would like
4350 a cleaner way of representing errors (big enough to
4351 include errno codes, bfd_error codes, and others). But
4352 for now just return EIO. */
c906108c
SS
4353 errno = EIO;
4354 return 0;
4355 }
4356
c5aa993b
JM
4357 /* Reply describes memory byte by byte,
4358 each byte encoded as two hex characters. */
c906108c 4359
2e9f7625 4360 p = rs->buf;
30559e10 4361 if ((i = hex2bin (p, myaddr, todo)) < todo)
c906108c 4362 {
30559e10 4363 /* Reply is short. This means that we were able to read
23860348 4364 only part of what we wanted to. */
30559e10 4365 return i + (origlen - len);
c906108c
SS
4366 }
4367 myaddr += todo;
4368 memaddr += todo;
4369 len -= todo;
4370 }
4371 return origlen;
4372}
4373\f
4374/* Read or write LEN bytes from inferior memory at MEMADDR,
23860348
MS
4375 transferring to or from debugger address BUFFER. Write to inferior
4376 if SHOULD_WRITE is nonzero. Returns length of data written or
4377 read; 0 for error. TARGET is unused. */
392a587b 4378
c906108c 4379static int
961cb7b5 4380remote_xfer_memory (CORE_ADDR mem_addr, gdb_byte *buffer, int mem_len,
0a65a603 4381 int should_write, struct mem_attrib *attrib,
29e57380 4382 struct target_ops *target)
c906108c 4383{
4930751a
C
4384 int res;
4385
4930751a 4386 if (should_write)
b2182ed2 4387 res = remote_write_bytes (mem_addr, buffer, mem_len);
4930751a 4388 else
b2182ed2 4389 res = remote_read_bytes (mem_addr, buffer, mem_len);
4930751a
C
4390
4391 return res;
c906108c
SS
4392}
4393
a76d924d
DJ
4394/* Sends a packet with content determined by the printf format string
4395 FORMAT and the remaining arguments, then gets the reply. Returns
4396 whether the packet was a success, a failure, or unknown. */
4397
4398enum packet_result
4399remote_send_printf (const char *format, ...)
4400{
4401 struct remote_state *rs = get_remote_state ();
4402 int max_size = get_remote_packet_size ();
4403
4404 va_list ap;
4405 va_start (ap, format);
4406
4407 rs->buf[0] = '\0';
4408 if (vsnprintf (rs->buf, max_size, format, ap) >= max_size)
4409 internal_error (__FILE__, __LINE__, "Too long remote packet.");
4410
4411 if (putpkt (rs->buf) < 0)
4412 error (_("Communication problem with target."));
4413
4414 rs->buf[0] = '\0';
4415 getpkt (&rs->buf, &rs->buf_size, 0);
4416
4417 return packet_check_result (rs->buf);
4418}
4419
4420static void
4421restore_remote_timeout (void *p)
4422{
4423 int value = *(int *)p;
4424 remote_timeout = value;
4425}
4426
4427/* Flash writing can take quite some time. We'll set
4428 effectively infinite timeout for flash operations.
4429 In future, we'll need to decide on a better approach. */
4430static const int remote_flash_timeout = 1000;
4431
4432static void
4433remote_flash_erase (struct target_ops *ops,
4434 ULONGEST address, LONGEST length)
4435{
4436 int saved_remote_timeout = remote_timeout;
4437 enum packet_result ret;
4438
4439 struct cleanup *back_to = make_cleanup (restore_remote_timeout,
4440 &saved_remote_timeout);
4441 remote_timeout = remote_flash_timeout;
4442
4443 ret = remote_send_printf ("vFlashErase:%s,%s",
4444 paddr (address),
4445 phex (length, 4));
4446 switch (ret)
4447 {
4448 case PACKET_UNKNOWN:
4449 error (_("Remote target does not support flash erase"));
4450 case PACKET_ERROR:
4451 error (_("Error erasing flash with vFlashErase packet"));
4452 default:
4453 break;
4454 }
4455
4456 do_cleanups (back_to);
4457}
4458
4459static LONGEST
4460remote_flash_write (struct target_ops *ops,
4461 ULONGEST address, LONGEST length,
4462 const gdb_byte *data)
4463{
4464 int saved_remote_timeout = remote_timeout;
4465 int ret;
4466 struct cleanup *back_to = make_cleanup (restore_remote_timeout,
4467 &saved_remote_timeout);
4468
4469 remote_timeout = remote_flash_timeout;
4470 ret = remote_write_bytes_aux ("vFlashWrite:", address, data, length, 'X', 0);
4471 do_cleanups (back_to);
4472
4473 return ret;
4474}
4475
4476static void
4477remote_flash_done (struct target_ops *ops)
4478{
4479 int saved_remote_timeout = remote_timeout;
4480 int ret;
4481 struct cleanup *back_to = make_cleanup (restore_remote_timeout,
4482 &saved_remote_timeout);
4483
4484 remote_timeout = remote_flash_timeout;
4485 ret = remote_send_printf ("vFlashDone");
4486 do_cleanups (back_to);
4487
4488 switch (ret)
4489 {
4490 case PACKET_UNKNOWN:
4491 error (_("Remote target does not support vFlashDone"));
4492 case PACKET_ERROR:
4493 error (_("Error finishing flash operation"));
4494 default:
4495 break;
4496 }
4497}
4498
c906108c 4499static void
fba45db2 4500remote_files_info (struct target_ops *ignore)
c906108c
SS
4501{
4502 puts_filtered ("Debugging a target over a serial line.\n");
4503}
4504\f
4505/* Stuff for dealing with the packets which are part of this protocol.
4506 See comment at top of file for details. */
4507
0876f84a 4508/* Read a single character from the remote end. */
c906108c
SS
4509
4510static int
fba45db2 4511readchar (int timeout)
c906108c
SS
4512{
4513 int ch;
4514
2cd58942 4515 ch = serial_readchar (remote_desc, timeout);
c906108c 4516
2acceee2 4517 if (ch >= 0)
0876f84a 4518 return ch;
2acceee2
JM
4519
4520 switch ((enum serial_rc) ch)
c906108c
SS
4521 {
4522 case SERIAL_EOF:
2acceee2 4523 target_mourn_inferior ();
8a3fe4f8 4524 error (_("Remote connection closed"));
2acceee2 4525 /* no return */
c906108c 4526 case SERIAL_ERROR:
e2e0b3e5 4527 perror_with_name (_("Remote communication error"));
2acceee2 4528 /* no return */
c906108c 4529 case SERIAL_TIMEOUT:
2acceee2 4530 break;
c906108c 4531 }
2acceee2 4532 return ch;
c906108c
SS
4533}
4534
6d820c5c
DJ
4535/* Send the command in *BUF to the remote machine, and read the reply
4536 into *BUF. Report an error if we get an error reply. Resize
4537 *BUF using xrealloc if necessary to hold the result, and update
4538 *SIZEOF_BUF. */
c906108c
SS
4539
4540static void
6d820c5c
DJ
4541remote_send (char **buf,
4542 long *sizeof_buf)
c906108c 4543{
6d820c5c 4544 putpkt (*buf);
c2d11a7d 4545 getpkt (buf, sizeof_buf, 0);
c906108c 4546
6d820c5c
DJ
4547 if ((*buf)[0] == 'E')
4548 error (_("Remote failure reply: %s"), *buf);
c906108c
SS
4549}
4550
4551/* Display a null-terminated packet on stdout, for debugging, using C
4552 string notation. */
4553
4554static void
fba45db2 4555print_packet (char *buf)
c906108c
SS
4556{
4557 puts_filtered ("\"");
43e526b9 4558 fputstr_filtered (buf, '"', gdb_stdout);
c906108c
SS
4559 puts_filtered ("\"");
4560}
4561
4562int
fba45db2 4563putpkt (char *buf)
c906108c
SS
4564{
4565 return putpkt_binary (buf, strlen (buf));
4566}
4567
4568/* Send a packet to the remote machine, with error checking. The data
23860348 4569 of the packet is in BUF. The string in BUF can be at most
ea9c271d 4570 get_remote_packet_size () - 5 to account for the $, # and checksum,
23860348
MS
4571 and for a possible /0 if we are debugging (remote_debug) and want
4572 to print the sent packet as a string. */
c906108c
SS
4573
4574static int
fba45db2 4575putpkt_binary (char *buf, int cnt)
c906108c
SS
4576{
4577 int i;
4578 unsigned char csum = 0;
11cf8741 4579 char *buf2 = alloca (cnt + 6);
085dd6e6 4580
c906108c
SS
4581 int ch;
4582 int tcount = 0;
4583 char *p;
4584
4585 /* Copy the packet into buffer BUF2, encapsulating it
4586 and giving it a checksum. */
4587
c906108c
SS
4588 p = buf2;
4589 *p++ = '$';
4590
4591 for (i = 0; i < cnt; i++)
4592 {
4593 csum += buf[i];
4594 *p++ = buf[i];
4595 }
4596 *p++ = '#';
4597 *p++ = tohex ((csum >> 4) & 0xf);
4598 *p++ = tohex (csum & 0xf);
4599
4600 /* Send it over and over until we get a positive ack. */
4601
4602 while (1)
4603 {
4604 int started_error_output = 0;
4605
4606 if (remote_debug)
4607 {
4608 *p = '\0';
43e526b9
JM
4609 fprintf_unfiltered (gdb_stdlog, "Sending packet: ");
4610 fputstrn_unfiltered (buf2, p - buf2, 0, gdb_stdlog);
d4f3574e 4611 fprintf_unfiltered (gdb_stdlog, "...");
0f71a2f6 4612 gdb_flush (gdb_stdlog);
c906108c 4613 }
2cd58942 4614 if (serial_write (remote_desc, buf2, p - buf2))
e2e0b3e5 4615 perror_with_name (_("putpkt: write failed"));
c906108c 4616
23860348 4617 /* Read until either a timeout occurs (-2) or '+' is read. */
c906108c
SS
4618 while (1)
4619 {
4620 ch = readchar (remote_timeout);
4621
c5aa993b 4622 if (remote_debug)
c906108c
SS
4623 {
4624 switch (ch)
4625 {
4626 case '+':
1216fa2c 4627 case '-':
c906108c
SS
4628 case SERIAL_TIMEOUT:
4629 case '$':
4630 if (started_error_output)
4631 {
4632 putchar_unfiltered ('\n');
4633 started_error_output = 0;
4634 }
4635 }
4636 }
4637
4638 switch (ch)
4639 {
4640 case '+':
4641 if (remote_debug)
0f71a2f6 4642 fprintf_unfiltered (gdb_stdlog, "Ack\n");
c906108c 4643 return 1;
1216fa2c
AC
4644 case '-':
4645 if (remote_debug)
4646 fprintf_unfiltered (gdb_stdlog, "Nak\n");
c906108c 4647 case SERIAL_TIMEOUT:
c5aa993b 4648 tcount++;
c906108c
SS
4649 if (tcount > 3)
4650 return 0;
23860348 4651 break; /* Retransmit buffer. */
c906108c
SS
4652 case '$':
4653 {
40e3f985 4654 if (remote_debug)
2bc416ba 4655 fprintf_unfiltered (gdb_stdlog,
23860348 4656 "Packet instead of Ack, ignoring it\n");
d6f7abdf
AC
4657 /* It's probably an old response sent because an ACK
4658 was lost. Gobble up the packet and ack it so it
4659 doesn't get retransmitted when we resend this
4660 packet. */
6d820c5c 4661 skip_frame ();
d6f7abdf 4662 serial_write (remote_desc, "+", 1);
23860348 4663 continue; /* Now, go look for +. */
c906108c
SS
4664 }
4665 default:
4666 if (remote_debug)
4667 {
4668 if (!started_error_output)
4669 {
4670 started_error_output = 1;
0f71a2f6 4671 fprintf_unfiltered (gdb_stdlog, "putpkt: Junk: ");
c906108c 4672 }
0f71a2f6 4673 fputc_unfiltered (ch & 0177, gdb_stdlog);
c906108c
SS
4674 }
4675 continue;
4676 }
23860348 4677 break; /* Here to retransmit. */
c906108c
SS
4678 }
4679
4680#if 0
4681 /* This is wrong. If doing a long backtrace, the user should be
c5aa993b
JM
4682 able to get out next time we call QUIT, without anything as
4683 violent as interrupt_query. If we want to provide a way out of
4684 here without getting to the next QUIT, it should be based on
4685 hitting ^C twice as in remote_wait. */
c906108c
SS
4686 if (quit_flag)
4687 {
4688 quit_flag = 0;
4689 interrupt_query ();
4690 }
4691#endif
4692 }
4693}
4694
6d820c5c
DJ
4695/* Come here after finding the start of a frame when we expected an
4696 ack. Do our best to discard the rest of this packet. */
4697
4698static void
4699skip_frame (void)
4700{
4701 int c;
4702
4703 while (1)
4704 {
4705 c = readchar (remote_timeout);
4706 switch (c)
4707 {
4708 case SERIAL_TIMEOUT:
4709 /* Nothing we can do. */
4710 return;
4711 case '#':
4712 /* Discard the two bytes of checksum and stop. */
4713 c = readchar (remote_timeout);
4714 if (c >= 0)
4715 c = readchar (remote_timeout);
4716
4717 return;
4718 case '*': /* Run length encoding. */
4719 /* Discard the repeat count. */
4720 c = readchar (remote_timeout);
4721 if (c < 0)
4722 return;
4723 break;
4724 default:
4725 /* A regular character. */
4726 break;
4727 }
4728 }
4729}
4730
c906108c 4731/* Come here after finding the start of the frame. Collect the rest
6d820c5c
DJ
4732 into *BUF, verifying the checksum, length, and handling run-length
4733 compression. NUL terminate the buffer. If there is not enough room,
4734 expand *BUF using xrealloc.
c906108c 4735
c2d11a7d
JM
4736 Returns -1 on error, number of characters in buffer (ignoring the
4737 trailing NULL) on success. (could be extended to return one of the
23860348 4738 SERIAL status indications). */
c2d11a7d
JM
4739
4740static long
6d820c5c
DJ
4741read_frame (char **buf_p,
4742 long *sizeof_buf)
c906108c
SS
4743{
4744 unsigned char csum;
c2d11a7d 4745 long bc;
c906108c 4746 int c;
6d820c5c 4747 char *buf = *buf_p;
c906108c
SS
4748
4749 csum = 0;
c2d11a7d 4750 bc = 0;
c906108c
SS
4751
4752 while (1)
4753 {
4754 c = readchar (remote_timeout);
c906108c
SS
4755 switch (c)
4756 {
4757 case SERIAL_TIMEOUT:
4758 if (remote_debug)
0f71a2f6 4759 fputs_filtered ("Timeout in mid-packet, retrying\n", gdb_stdlog);
c2d11a7d 4760 return -1;
c906108c
SS
4761 case '$':
4762 if (remote_debug)
0f71a2f6
JM
4763 fputs_filtered ("Saw new packet start in middle of old one\n",
4764 gdb_stdlog);
23860348 4765 return -1; /* Start a new packet, count retries. */
c906108c
SS
4766 case '#':
4767 {
4768 unsigned char pktcsum;
e1b09194
AC
4769 int check_0 = 0;
4770 int check_1 = 0;
c906108c 4771
c2d11a7d 4772 buf[bc] = '\0';
c906108c 4773
e1b09194
AC
4774 check_0 = readchar (remote_timeout);
4775 if (check_0 >= 0)
4776 check_1 = readchar (remote_timeout);
802188a7 4777
e1b09194
AC
4778 if (check_0 == SERIAL_TIMEOUT || check_1 == SERIAL_TIMEOUT)
4779 {
4780 if (remote_debug)
2bc416ba 4781 fputs_filtered ("Timeout in checksum, retrying\n",
23860348 4782 gdb_stdlog);
e1b09194
AC
4783 return -1;
4784 }
4785 else if (check_0 < 0 || check_1 < 0)
40e3f985
FN
4786 {
4787 if (remote_debug)
2bc416ba 4788 fputs_filtered ("Communication error in checksum\n",
23860348 4789 gdb_stdlog);
40e3f985
FN
4790 return -1;
4791 }
c906108c 4792
e1b09194 4793 pktcsum = (fromhex (check_0) << 4) | fromhex (check_1);
c906108c 4794 if (csum == pktcsum)
c2d11a7d 4795 return bc;
c906108c 4796
c5aa993b 4797 if (remote_debug)
c906108c 4798 {
0f71a2f6 4799 fprintf_filtered (gdb_stdlog,
c5aa993b 4800 "Bad checksum, sentsum=0x%x, csum=0x%x, buf=",
0f71a2f6 4801 pktcsum, csum);
0876f84a 4802 fputstrn_filtered (buf, bc, 0, gdb_stdlog);
0f71a2f6 4803 fputs_filtered ("\n", gdb_stdlog);
c906108c 4804 }
c2d11a7d 4805 /* Number of characters in buffer ignoring trailing
23860348 4806 NULL. */
c2d11a7d 4807 return -1;
c906108c 4808 }
23860348 4809 case '*': /* Run length encoding. */
c2c6d25f
JM
4810 {
4811 int repeat;
4812 csum += c;
c906108c 4813
b4501125
AC
4814 c = readchar (remote_timeout);
4815 csum += c;
23860348 4816 repeat = c - ' ' + 3; /* Compute repeat count. */
c906108c 4817
23860348 4818 /* The character before ``*'' is repeated. */
c2d11a7d 4819
6d820c5c 4820 if (repeat > 0 && repeat <= 255 && bc > 0)
c2c6d25f 4821 {
6d820c5c
DJ
4822 if (bc + repeat - 1 >= *sizeof_buf - 1)
4823 {
4824 /* Make some more room in the buffer. */
4825 *sizeof_buf += repeat;
4826 *buf_p = xrealloc (*buf_p, *sizeof_buf);
4827 buf = *buf_p;
4828 }
4829
c2d11a7d
JM
4830 memset (&buf[bc], buf[bc - 1], repeat);
4831 bc += repeat;
c2c6d25f
JM
4832 continue;
4833 }
4834
c2d11a7d 4835 buf[bc] = '\0';
6d820c5c 4836 printf_filtered (_("Invalid run length encoding: %s\n"), buf);
c2d11a7d 4837 return -1;
c2c6d25f 4838 }
c906108c 4839 default:
6d820c5c 4840 if (bc >= *sizeof_buf - 1)
c906108c 4841 {
6d820c5c
DJ
4842 /* Make some more room in the buffer. */
4843 *sizeof_buf *= 2;
4844 *buf_p = xrealloc (*buf_p, *sizeof_buf);
4845 buf = *buf_p;
c906108c
SS
4846 }
4847
6d820c5c
DJ
4848 buf[bc++] = c;
4849 csum += c;
4850 continue;
c906108c
SS
4851 }
4852 }
4853}
4854
4855/* Read a packet from the remote machine, with error checking, and
6d820c5c
DJ
4856 store it in *BUF. Resize *BUF using xrealloc if necessary to hold
4857 the result, and update *SIZEOF_BUF. If FOREVER, wait forever
4858 rather than timing out; this is used (in synchronous mode) to wait
4859 for a target that is is executing user code to stop. */
d9fcf2fb
JM
4860/* FIXME: ezannoni 2000-02-01 this wrapper is necessary so that we
4861 don't have to change all the calls to getpkt to deal with the
4862 return value, because at the moment I don't know what the right
23860348 4863 thing to do it for those. */
c906108c 4864void
6d820c5c
DJ
4865getpkt (char **buf,
4866 long *sizeof_buf,
c2d11a7d 4867 int forever)
d9fcf2fb
JM
4868{
4869 int timed_out;
4870
4871 timed_out = getpkt_sane (buf, sizeof_buf, forever);
4872}
4873
4874
4875/* Read a packet from the remote machine, with error checking, and
6d820c5c
DJ
4876 store it in *BUF. Resize *BUF using xrealloc if necessary to hold
4877 the result, and update *SIZEOF_BUF. If FOREVER, wait forever
4878 rather than timing out; this is used (in synchronous mode) to wait
4879 for a target that is is executing user code to stop. If FOREVER ==
4880 0, this function is allowed to time out gracefully and return an
0876f84a
DJ
4881 indication of this to the caller. Otherwise return the number
4882 of bytes read. */
3172dc30 4883static int
6d820c5c 4884getpkt_sane (char **buf, long *sizeof_buf, int forever)
c906108c
SS
4885{
4886 int c;
4887 int tries;
4888 int timeout;
4889 int val;
4890
6d820c5c 4891 strcpy (*buf, "timeout");
c906108c
SS
4892
4893 if (forever)
4894 {
c906108c 4895 timeout = watchdog > 0 ? watchdog : -1;
c906108c
SS
4896 }
4897
4898 else
4899 timeout = remote_timeout;
4900
4901#define MAX_TRIES 3
4902
4903 for (tries = 1; tries <= MAX_TRIES; tries++)
4904 {
4905 /* This can loop forever if the remote side sends us characters
23860348
MS
4906 continuously, but if it pauses, we'll get a zero from
4907 readchar because of timeout. Then we'll count that as a
4908 retry. */
c906108c 4909
23860348
MS
4910 /* Note that we will only wait forever prior to the start of a
4911 packet. After that, we expect characters to arrive at a
4912 brisk pace. They should show up within remote_timeout
4913 intervals. */
c906108c
SS
4914
4915 do
4916 {
4917 c = readchar (timeout);
4918
4919 if (c == SERIAL_TIMEOUT)
4920 {
23860348 4921 if (forever) /* Watchdog went off? Kill the target. */
c906108c 4922 {
2acceee2 4923 QUIT;
c906108c 4924 target_mourn_inferior ();
8a3fe4f8 4925 error (_("Watchdog has expired. Target detached."));
c906108c 4926 }
c906108c 4927 if (remote_debug)
0f71a2f6 4928 fputs_filtered ("Timed out.\n", gdb_stdlog);
c906108c
SS
4929 goto retry;
4930 }
4931 }
4932 while (c != '$');
4933
4934 /* We've found the start of a packet, now collect the data. */
4935
c2d11a7d 4936 val = read_frame (buf, sizeof_buf);
c906108c 4937
c2d11a7d 4938 if (val >= 0)
c906108c
SS
4939 {
4940 if (remote_debug)
43e526b9
JM
4941 {
4942 fprintf_unfiltered (gdb_stdlog, "Packet received: ");
0876f84a 4943 fputstrn_unfiltered (*buf, val, 0, gdb_stdlog);
43e526b9
JM
4944 fprintf_unfiltered (gdb_stdlog, "\n");
4945 }
2cd58942 4946 serial_write (remote_desc, "+", 1);
0876f84a 4947 return val;
c906108c
SS
4948 }
4949
4950 /* Try the whole thing again. */
4951 retry:
2cd58942 4952 serial_write (remote_desc, "-", 1);
c906108c
SS
4953 }
4954
2bc416ba 4955 /* We have tried hard enough, and just can't receive the packet.
23860348 4956 Give up. */
c906108c 4957
a3f17187 4958 printf_unfiltered (_("Ignoring packet error, continuing...\n"));
2cd58942 4959 serial_write (remote_desc, "+", 1);
0876f84a 4960 return -1;
c906108c
SS
4961}
4962\f
4963static void
fba45db2 4964remote_kill (void)
c906108c
SS
4965{
4966 /* For some mysterious reason, wait_for_inferior calls kill instead of
4967 mourn after it gets TARGET_WAITKIND_SIGNALLED. Work around it. */
4968 if (kill_kludge)
4969 {
4970 kill_kludge = 0;
4971 target_mourn_inferior ();
4972 return;
4973 }
4974
4975 /* Use catch_errors so the user can quit from gdb even when we aren't on
4976 speaking terms with the remote system. */
c5aa993b 4977 catch_errors ((catch_errors_ftype *) putpkt, "k", "", RETURN_MASK_ERROR);
c906108c
SS
4978
4979 /* Don't wait for it to die. I'm not really sure it matters whether
4980 we do or not. For the existing stubs, kill is a noop. */
4981 target_mourn_inferior ();
4982}
4983
23860348 4984/* Async version of remote_kill. */
43ff13b4 4985static void
fba45db2 4986remote_async_kill (void)
43ff13b4 4987{
23860348 4988 /* Unregister the file descriptor from the event loop. */
ed9a39eb 4989 if (target_is_async_p ())
2cd58942 4990 serial_async (remote_desc, NULL, 0);
43ff13b4
JM
4991
4992 /* For some mysterious reason, wait_for_inferior calls kill instead of
4993 mourn after it gets TARGET_WAITKIND_SIGNALLED. Work around it. */
4994 if (kill_kludge)
4995 {
4996 kill_kludge = 0;
4997 target_mourn_inferior ();
4998 return;
4999 }
5000
23860348
MS
5001 /* Use catch_errors so the user can quit from gdb even when we
5002 aren't on speaking terms with the remote system. */
c5aa993b 5003 catch_errors ((catch_errors_ftype *) putpkt, "k", "", RETURN_MASK_ERROR);
43ff13b4
JM
5004
5005 /* Don't wait for it to die. I'm not really sure it matters whether
5006 we do or not. For the existing stubs, kill is a noop. */
5007 target_mourn_inferior ();
5008}
5009
c906108c 5010static void
fba45db2 5011remote_mourn (void)
c906108c
SS
5012{
5013 remote_mourn_1 (&remote_ops);
5014}
5015
53a5351d 5016static void
fba45db2 5017remote_async_mourn (void)
53a5351d
JM
5018{
5019 remote_mourn_1 (&remote_async_ops);
5020}
5021
c906108c 5022static void
fba45db2 5023extended_remote_mourn (void)
c906108c
SS
5024{
5025 /* We do _not_ want to mourn the target like this; this will
5026 remove the extended remote target from the target stack,
802188a7 5027 and the next time the user says "run" it'll fail.
c906108c
SS
5028
5029 FIXME: What is the right thing to do here? */
5030#if 0
5031 remote_mourn_1 (&extended_remote_ops);
5032#endif
5033}
5034
5035/* Worker function for remote_mourn. */
5036static void
fba45db2 5037remote_mourn_1 (struct target_ops *target)
c906108c
SS
5038{
5039 unpush_target (target);
5040 generic_mourn_inferior ();
5041}
5042
5043/* In the extended protocol we want to be able to do things like
5044 "run" and have them basically work as expected. So we need
802188a7 5045 a special create_inferior function.
c906108c
SS
5046
5047 FIXME: One day add support for changing the exec file
5048 we're debugging, arguments and an environment. */
5049
5050static void
23860348
MS
5051extended_remote_create_inferior (char *exec_file, char *args,
5052 char **env, int from_tty)
c906108c
SS
5053{
5054 /* Rip out the breakpoints; we'll reinsert them after restarting
5055 the remote server. */
5056 remove_breakpoints ();
5057
5058 /* Now restart the remote server. */
5059 extended_remote_restart ();
5060
424163ea
DJ
5061 /* NOTE: We don't need to recheck for a target description here; but
5062 if we gain the ability to switch the remote executable we may
5063 need to, if for instance we are running a process which requested
5064 different emulated hardware from the operating system. A
5065 concrete example of this is ARM GNU/Linux, where some binaries
5066 will have a legacy FPA coprocessor emulated and others may have
5067 access to a hardware VFP unit. */
5068
c906108c
SS
5069 /* Now put the breakpoints back in. This way we're safe if the
5070 restart function works via a unix fork on the remote side. */
5071 insert_breakpoints ();
5072
5073 /* Clean up from the last time we were running. */
5074 clear_proceed_status ();
c906108c
SS
5075}
5076
23860348 5077/* Async version of extended_remote_create_inferior. */
43ff13b4 5078static void
23860348
MS
5079extended_remote_async_create_inferior (char *exec_file, char *args,
5080 char **env, int from_tty)
43ff13b4
JM
5081{
5082 /* Rip out the breakpoints; we'll reinsert them after restarting
5083 the remote server. */
5084 remove_breakpoints ();
5085
5086 /* If running asynchronously, register the target file descriptor
23860348 5087 with the event loop. */
362646f5 5088 if (target_can_async_p ())
2acceee2 5089 target_async (inferior_event_handler, 0);
43ff13b4
JM
5090
5091 /* Now restart the remote server. */
5092 extended_remote_restart ();
5093
424163ea
DJ
5094 /* NOTE: We don't need to recheck for a target description here; but
5095 if we gain the ability to switch the remote executable we may
5096 need to, if for instance we are running a process which requested
5097 different emulated hardware from the operating system. A
5098 concrete example of this is ARM GNU/Linux, where some binaries
5099 will have a legacy FPA coprocessor emulated and others may have
5100 access to a hardware VFP unit. */
5101
43ff13b4
JM
5102 /* Now put the breakpoints back in. This way we're safe if the
5103 restart function works via a unix fork on the remote side. */
5104 insert_breakpoints ();
5105
5106 /* Clean up from the last time we were running. */
5107 clear_proceed_status ();
43ff13b4 5108}
c906108c 5109\f
c5aa993b 5110
8181d85f
DJ
5111/* Insert a breakpoint. On targets that have software breakpoint
5112 support, we ask the remote target to do the work; on targets
5113 which don't, we insert a traditional memory breakpoint. */
c906108c
SS
5114
5115static int
8181d85f 5116remote_insert_breakpoint (struct bp_target_info *bp_tgt)
c906108c 5117{
8181d85f 5118 CORE_ADDR addr = bp_tgt->placed_address;
d01949b6 5119 struct remote_state *rs = get_remote_state ();
96baa820 5120
d471ea57
AC
5121 /* Try the "Z" s/w breakpoint packet if it is not already disabled.
5122 If it succeeds, then set the support to PACKET_ENABLE. If it
5123 fails, and the user has explicitly requested the Z support then
23860348 5124 report an error, otherwise, mark it disabled and go on. */
802188a7 5125
444abaca 5126 if (remote_protocol_packets[PACKET_Z0].support != PACKET_DISABLE)
96baa820 5127 {
6d820c5c 5128 char *p = rs->buf;
802188a7 5129
96baa820
JM
5130 *(p++) = 'Z';
5131 *(p++) = '0';
5132 *(p++) = ',';
8181d85f
DJ
5133 BREAKPOINT_FROM_PC (&bp_tgt->placed_address, &bp_tgt->placed_size);
5134 addr = (ULONGEST) remote_address_masked (bp_tgt->placed_address);
5135 p += hexnumstr (p, addr);
5136 sprintf (p, ",%d", bp_tgt->placed_size);
802188a7 5137
6d820c5c
DJ
5138 putpkt (rs->buf);
5139 getpkt (&rs->buf, &rs->buf_size, 0);
96baa820 5140
6d820c5c 5141 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z0]))
96baa820 5142 {
d471ea57
AC
5143 case PACKET_ERROR:
5144 return -1;
5145 case PACKET_OK:
5146 return 0;
5147 case PACKET_UNKNOWN:
5148 break;
96baa820
JM
5149 }
5150 }
c906108c 5151
8181d85f 5152 return memory_insert_breakpoint (bp_tgt);
c906108c
SS
5153}
5154
5155static int
8181d85f 5156remote_remove_breakpoint (struct bp_target_info *bp_tgt)
c906108c 5157{
8181d85f 5158 CORE_ADDR addr = bp_tgt->placed_address;
d01949b6 5159 struct remote_state *rs = get_remote_state ();
96baa820
JM
5160 int bp_size;
5161
444abaca 5162 if (remote_protocol_packets[PACKET_Z0].support != PACKET_DISABLE)
96baa820 5163 {
6d820c5c 5164 char *p = rs->buf;
802188a7 5165
96baa820
JM
5166 *(p++) = 'z';
5167 *(p++) = '0';
5168 *(p++) = ',';
5169
8181d85f
DJ
5170 addr = (ULONGEST) remote_address_masked (bp_tgt->placed_address);
5171 p += hexnumstr (p, addr);
5172 sprintf (p, ",%d", bp_tgt->placed_size);
802188a7 5173
6d820c5c
DJ
5174 putpkt (rs->buf);
5175 getpkt (&rs->buf, &rs->buf_size, 0);
96baa820 5176
6d820c5c 5177 return (rs->buf[0] == 'E');
96baa820
JM
5178 }
5179
8181d85f 5180 return memory_remove_breakpoint (bp_tgt);
c906108c
SS
5181}
5182
d471ea57
AC
5183static int
5184watchpoint_to_Z_packet (int type)
5185{
5186 switch (type)
5187 {
5188 case hw_write:
bb858e6a 5189 return Z_PACKET_WRITE_WP;
d471ea57
AC
5190 break;
5191 case hw_read:
bb858e6a 5192 return Z_PACKET_READ_WP;
d471ea57
AC
5193 break;
5194 case hw_access:
bb858e6a 5195 return Z_PACKET_ACCESS_WP;
d471ea57
AC
5196 break;
5197 default:
8e65ff28 5198 internal_error (__FILE__, __LINE__,
e2e0b3e5 5199 _("hw_bp_to_z: bad watchpoint type %d"), type);
d471ea57
AC
5200 }
5201}
5202
3c3bea1c 5203static int
fba45db2 5204remote_insert_watchpoint (CORE_ADDR addr, int len, int type)
96baa820 5205{
d01949b6 5206 struct remote_state *rs = get_remote_state ();
e514a9d6 5207 char *p;
d471ea57 5208 enum Z_packet_type packet = watchpoint_to_Z_packet (type);
96baa820 5209
444abaca 5210 if (remote_protocol_packets[PACKET_Z0 + packet].support == PACKET_DISABLE)
5cffb350 5211 return -1;
802188a7 5212
6d820c5c
DJ
5213 sprintf (rs->buf, "Z%x,", packet);
5214 p = strchr (rs->buf, '\0');
96baa820
JM
5215 addr = remote_address_masked (addr);
5216 p += hexnumstr (p, (ULONGEST) addr);
d4f3574e 5217 sprintf (p, ",%x", len);
802188a7 5218
6d820c5c
DJ
5219 putpkt (rs->buf);
5220 getpkt (&rs->buf, &rs->buf_size, 0);
96baa820 5221
6d820c5c 5222 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z0 + packet]))
d471ea57
AC
5223 {
5224 case PACKET_ERROR:
5225 case PACKET_UNKNOWN:
5226 return -1;
5227 case PACKET_OK:
5228 return 0;
5229 }
8e65ff28 5230 internal_error (__FILE__, __LINE__,
e2e0b3e5 5231 _("remote_insert_watchpoint: reached end of function"));
96baa820
JM
5232}
5233
d471ea57 5234
3c3bea1c 5235static int
fba45db2 5236remote_remove_watchpoint (CORE_ADDR addr, int len, int type)
96baa820 5237{
d01949b6 5238 struct remote_state *rs = get_remote_state ();
e514a9d6 5239 char *p;
d471ea57
AC
5240 enum Z_packet_type packet = watchpoint_to_Z_packet (type);
5241
444abaca 5242 if (remote_protocol_packets[PACKET_Z0 + packet].support == PACKET_DISABLE)
5cffb350 5243 return -1;
802188a7 5244
6d820c5c
DJ
5245 sprintf (rs->buf, "z%x,", packet);
5246 p = strchr (rs->buf, '\0');
96baa820
JM
5247 addr = remote_address_masked (addr);
5248 p += hexnumstr (p, (ULONGEST) addr);
d4f3574e 5249 sprintf (p, ",%x", len);
6d820c5c
DJ
5250 putpkt (rs->buf);
5251 getpkt (&rs->buf, &rs->buf_size, 0);
96baa820 5252
6d820c5c 5253 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z0 + packet]))
d471ea57
AC
5254 {
5255 case PACKET_ERROR:
5256 case PACKET_UNKNOWN:
5257 return -1;
5258 case PACKET_OK:
5259 return 0;
5260 }
8e65ff28 5261 internal_error (__FILE__, __LINE__,
e2e0b3e5 5262 _("remote_remove_watchpoint: reached end of function"));
96baa820
JM
5263}
5264
3c3bea1c 5265
501eef12
AC
5266int remote_hw_watchpoint_limit = -1;
5267int remote_hw_breakpoint_limit = -1;
d471ea57 5268
b9362cc7 5269static int
3c3bea1c 5270remote_check_watch_resources (int type, int cnt, int ot)
96baa820 5271{
3c3bea1c
GS
5272 if (type == bp_hardware_breakpoint)
5273 {
5274 if (remote_hw_breakpoint_limit == 0)
5275 return 0;
501eef12
AC
5276 else if (remote_hw_breakpoint_limit < 0)
5277 return 1;
3c3bea1c
GS
5278 else if (cnt <= remote_hw_breakpoint_limit)
5279 return 1;
5280 }
5281 else
5282 {
5283 if (remote_hw_watchpoint_limit == 0)
5284 return 0;
501eef12
AC
5285 else if (remote_hw_watchpoint_limit < 0)
5286 return 1;
3c3bea1c
GS
5287 else if (ot)
5288 return -1;
5289 else if (cnt <= remote_hw_watchpoint_limit)
5290 return 1;
5291 }
5292 return -1;
5293}
5294
b9362cc7 5295static int
3c3bea1c
GS
5296remote_stopped_by_watchpoint (void)
5297{
5298 return remote_stopped_by_watchpoint_p;
5299}
5300
7270d8f2
OF
5301extern int stepped_after_stopped_by_watchpoint;
5302
4aa7a7f5
JJ
5303static int
5304remote_stopped_data_address (struct target_ops *target, CORE_ADDR *addr_p)
3c3bea1c 5305{
4aa7a7f5 5306 int rc = 0;
7270d8f2
OF
5307 if (remote_stopped_by_watchpoint ()
5308 || stepped_after_stopped_by_watchpoint)
4aa7a7f5
JJ
5309 {
5310 *addr_p = remote_watch_data_address;
5311 rc = 1;
5312 }
5313
5314 return rc;
3c3bea1c
GS
5315}
5316
5317
5318static int
8181d85f 5319remote_insert_hw_breakpoint (struct bp_target_info *bp_tgt)
3c3bea1c 5320{
8181d85f 5321 CORE_ADDR addr;
d01949b6 5322 struct remote_state *rs = get_remote_state ();
6d820c5c 5323 char *p = rs->buf;
802188a7 5324
c8189ed1 5325 /* The length field should be set to the size of a breakpoint
8181d85f 5326 instruction, even though we aren't inserting one ourselves. */
c8189ed1 5327
8181d85f 5328 BREAKPOINT_FROM_PC (&bp_tgt->placed_address, &bp_tgt->placed_size);
3c3bea1c 5329
444abaca 5330 if (remote_protocol_packets[PACKET_Z1].support == PACKET_DISABLE)
5cffb350 5331 return -1;
2bc416ba 5332
96baa820
JM
5333 *(p++) = 'Z';
5334 *(p++) = '1';
5335 *(p++) = ',';
802188a7 5336
8181d85f 5337 addr = remote_address_masked (bp_tgt->placed_address);
96baa820 5338 p += hexnumstr (p, (ULONGEST) addr);
8181d85f 5339 sprintf (p, ",%x", bp_tgt->placed_size);
96baa820 5340
6d820c5c
DJ
5341 putpkt (rs->buf);
5342 getpkt (&rs->buf, &rs->buf_size, 0);
96baa820 5343
6d820c5c 5344 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z1]))
d471ea57
AC
5345 {
5346 case PACKET_ERROR:
5347 case PACKET_UNKNOWN:
5348 return -1;
5349 case PACKET_OK:
5350 return 0;
5351 }
8e65ff28 5352 internal_error (__FILE__, __LINE__,
e2e0b3e5 5353 _("remote_insert_hw_breakpoint: reached end of function"));
96baa820
JM
5354}
5355
d471ea57 5356
802188a7 5357static int
8181d85f 5358remote_remove_hw_breakpoint (struct bp_target_info *bp_tgt)
96baa820 5359{
8181d85f 5360 CORE_ADDR addr;
d01949b6 5361 struct remote_state *rs = get_remote_state ();
6d820c5c 5362 char *p = rs->buf;
c8189ed1 5363
444abaca 5364 if (remote_protocol_packets[PACKET_Z1].support == PACKET_DISABLE)
5cffb350 5365 return -1;
802188a7 5366
96baa820
JM
5367 *(p++) = 'z';
5368 *(p++) = '1';
5369 *(p++) = ',';
802188a7 5370
8181d85f 5371 addr = remote_address_masked (bp_tgt->placed_address);
96baa820 5372 p += hexnumstr (p, (ULONGEST) addr);
8181d85f 5373 sprintf (p, ",%x", bp_tgt->placed_size);
96baa820 5374
6d820c5c
DJ
5375 putpkt (rs->buf);
5376 getpkt (&rs->buf, &rs->buf_size, 0);
802188a7 5377
6d820c5c 5378 switch (packet_ok (rs->buf, &remote_protocol_packets[PACKET_Z1]))
d471ea57
AC
5379 {
5380 case PACKET_ERROR:
5381 case PACKET_UNKNOWN:
5382 return -1;
5383 case PACKET_OK:
5384 return 0;
5385 }
8e65ff28 5386 internal_error (__FILE__, __LINE__,
e2e0b3e5 5387 _("remote_remove_hw_breakpoint: reached end of function"));
96baa820 5388}
96baa820 5389
c906108c
SS
5390/* Some targets are only capable of doing downloads, and afterwards
5391 they switch to the remote serial protocol. This function provides
5392 a clean way to get from the download target to the remote target.
5393 It's basically just a wrapper so that we don't have to expose any
5394 of the internal workings of remote.c.
5395
5396 Prior to calling this routine, you should shutdown the current
5397 target code, else you will get the "A program is being debugged
5398 already..." message. Usually a call to pop_target() suffices. */
5399
5400void
fba45db2 5401push_remote_target (char *name, int from_tty)
c906108c 5402{
a3f17187 5403 printf_filtered (_("Switching to remote protocol\n"));
c906108c
SS
5404 remote_open (name, from_tty);
5405}
5406
23860348 5407/* Table used by the crc32 function to calcuate the checksum. */
c906108c 5408
c5aa993b
JM
5409static unsigned long crc32_table[256] =
5410{0, 0};
c906108c
SS
5411
5412static unsigned long
fba45db2 5413crc32 (unsigned char *buf, int len, unsigned int crc)
c906108c 5414{
c5aa993b 5415 if (!crc32_table[1])
c906108c 5416 {
23860348 5417 /* Initialize the CRC table and the decoding table. */
c906108c
SS
5418 int i, j;
5419 unsigned int c;
5420
5421 for (i = 0; i < 256; i++)
c5aa993b
JM
5422 {
5423 for (c = i << 24, j = 8; j > 0; --j)
5424 c = c & 0x80000000 ? (c << 1) ^ 0x04c11db7 : (c << 1);
5425 crc32_table[i] = c;
5426 }
c906108c
SS
5427 }
5428
5429 while (len--)
5430 {
5431 crc = (crc << 8) ^ crc32_table[((crc >> 24) ^ *buf) & 255];
5432 buf++;
5433 }
5434 return crc;
5435}
5436
5437/* compare-sections command
5438
5439 With no arguments, compares each loadable section in the exec bfd
5440 with the same memory range on the target, and reports mismatches.
5441 Useful for verifying the image on the target against the exec file.
5442 Depends on the target understanding the new "qCRC:" request. */
5443
e514a9d6
JM
5444/* FIXME: cagney/1999-10-26: This command should be broken down into a
5445 target method (target verify memory) and generic version of the
5446 actual command. This will allow other high-level code (especially
23860348 5447 generic_load()) to make use of this target functionality. */
e514a9d6 5448
c906108c 5449static void
fba45db2 5450compare_sections_command (char *args, int from_tty)
c906108c 5451{
d01949b6 5452 struct remote_state *rs = get_remote_state ();
c906108c
SS
5453 asection *s;
5454 unsigned long host_crc, target_crc;
5455 extern bfd *exec_bfd;
5456 struct cleanup *old_chain;
085dd6e6
JM
5457 char *tmp;
5458 char *sectdata;
ce359b09 5459 const char *sectname;
c906108c
SS
5460 bfd_size_type size;
5461 bfd_vma lma;
5462 int matched = 0;
5463 int mismatched = 0;
5464
5465 if (!exec_bfd)
8a3fe4f8 5466 error (_("command cannot be used without an exec file"));
c906108c
SS
5467 if (!current_target.to_shortname ||
5468 strcmp (current_target.to_shortname, "remote") != 0)
8a3fe4f8 5469 error (_("command can only be used with remote target"));
c906108c 5470
c5aa993b 5471 for (s = exec_bfd->sections; s; s = s->next)
c906108c
SS
5472 {
5473 if (!(s->flags & SEC_LOAD))
c5aa993b 5474 continue; /* skip non-loadable section */
c906108c 5475
2c500098 5476 size = bfd_get_section_size (s);
c906108c 5477 if (size == 0)
c5aa993b 5478 continue; /* skip zero-length section */
c906108c 5479
ce359b09 5480 sectname = bfd_get_section_name (exec_bfd, s);
c906108c 5481 if (args && strcmp (args, sectname) != 0)
c5aa993b 5482 continue; /* not the section selected by user */
c906108c 5483
c5aa993b 5484 matched = 1; /* do this section */
c906108c 5485 lma = s->lma;
23860348 5486 /* FIXME: assumes lma can fit into long. */
ea9c271d 5487 xsnprintf (rs->buf, get_remote_packet_size (), "qCRC:%lx,%lx",
ecbc58df 5488 (long) lma, (long) size);
6d820c5c 5489 putpkt (rs->buf);
c906108c 5490
23860348
MS
5491 /* Be clever; compute the host_crc before waiting for target
5492 reply. */
c906108c 5493 sectdata = xmalloc (size);
b8c9b27d 5494 old_chain = make_cleanup (xfree, sectdata);
c906108c
SS
5495 bfd_get_section_contents (exec_bfd, s, sectdata, 0, size);
5496 host_crc = crc32 ((unsigned char *) sectdata, size, 0xffffffff);
5497
6d820c5c
DJ
5498 getpkt (&rs->buf, &rs->buf_size, 0);
5499 if (rs->buf[0] == 'E')
8a3fe4f8 5500 error (_("target memory fault, section %s, range 0x%s -- 0x%s"),
823ca731 5501 sectname, paddr (lma), paddr (lma + size));
6d820c5c 5502 if (rs->buf[0] != 'C')
8a3fe4f8 5503 error (_("remote target does not support this operation"));
c906108c 5504
6d820c5c 5505 for (target_crc = 0, tmp = &rs->buf[1]; *tmp; tmp++)
c906108c
SS
5506 target_crc = target_crc * 16 + fromhex (*tmp);
5507
d4f3574e
SS
5508 printf_filtered ("Section %s, range 0x%s -- 0x%s: ",
5509 sectname, paddr (lma), paddr (lma + size));
c906108c
SS
5510 if (host_crc == target_crc)
5511 printf_filtered ("matched.\n");
5512 else
c5aa993b
JM
5513 {
5514 printf_filtered ("MIS-MATCHED!\n");
5515 mismatched++;
5516 }
c906108c
SS
5517
5518 do_cleanups (old_chain);
5519 }
5520 if (mismatched > 0)
8a3fe4f8
AC
5521 warning (_("One or more sections of the remote executable does not match\n\
5522the loaded file\n"));
c906108c 5523 if (args && !matched)
a3f17187 5524 printf_filtered (_("No loaded section named '%s'.\n"), args);
c906108c
SS
5525}
5526
0876f84a
DJ
5527/* Read OBJECT_NAME/ANNEX from the remote target using a qXfer packet.
5528 Data at OFFSET, of up to LEN bytes, is read into READBUF; the
5529 number of bytes read is returned, or 0 for EOF, or -1 for error.
5530 The number of bytes read may be less than LEN without indicating an
5531 EOF. PACKET is checked and updated to indicate whether the remote
5532 target supports this object. */
5533
5534static LONGEST
5535remote_read_qxfer (struct target_ops *ops, const char *object_name,
5536 const char *annex,
5537 gdb_byte *readbuf, ULONGEST offset, LONGEST len,
5538 struct packet_config *packet)
5539{
5540 static char *finished_object;
5541 static char *finished_annex;
5542 static ULONGEST finished_offset;
5543
5544 struct remote_state *rs = get_remote_state ();
5545 unsigned int total = 0;
5546 LONGEST i, n, packet_len;
5547
5548 if (packet->support == PACKET_DISABLE)
5549 return -1;
5550
5551 /* Check whether we've cached an end-of-object packet that matches
5552 this request. */
5553 if (finished_object)
5554 {
5555 if (strcmp (object_name, finished_object) == 0
5556 && strcmp (annex ? annex : "", finished_annex) == 0
5557 && offset == finished_offset)
5558 return 0;
5559
5560 /* Otherwise, we're now reading something different. Discard
5561 the cache. */
5562 xfree (finished_object);
5563 xfree (finished_annex);
5564 finished_object = NULL;
5565 finished_annex = NULL;
5566 }
5567
5568 /* Request only enough to fit in a single packet. The actual data
5569 may not, since we don't know how much of it will need to be escaped;
5570 the target is free to respond with slightly less data. We subtract
5571 five to account for the response type and the protocol frame. */
5572 n = min (get_remote_packet_size () - 5, len);
5573 snprintf (rs->buf, get_remote_packet_size () - 4, "qXfer:%s:read:%s:%s,%s",
5574 object_name, annex ? annex : "",
5575 phex_nz (offset, sizeof offset),
5576 phex_nz (n, sizeof n));
5577 i = putpkt (rs->buf);
5578 if (i < 0)
5579 return -1;
5580
5581 rs->buf[0] = '\0';
5582 packet_len = getpkt_sane (&rs->buf, &rs->buf_size, 0);
5583 if (packet_len < 0 || packet_ok (rs->buf, packet) != PACKET_OK)
5584 return -1;
5585
5586 if (rs->buf[0] != 'l' && rs->buf[0] != 'm')
5587 error (_("Unknown remote qXfer reply: %s"), rs->buf);
5588
5589 /* 'm' means there is (or at least might be) more data after this
5590 batch. That does not make sense unless there's at least one byte
5591 of data in this reply. */
5592 if (rs->buf[0] == 'm' && packet_len == 1)
5593 error (_("Remote qXfer reply contained no data."));
5594
5595 /* Got some data. */
5596 i = remote_unescape_input (rs->buf + 1, packet_len - 1, readbuf, n);
5597
5598 /* 'l' is an EOF marker, possibly including a final block of data,
5599 or possibly empty. Record it to bypass the next read, if one is
5600 issued. */
5601 if (rs->buf[0] == 'l')
5602 {
5603 finished_object = xstrdup (object_name);
5604 finished_annex = xstrdup (annex ? annex : "");
5605 finished_offset = offset + i;
5606 }
5607
5608 return i;
5609}
5610
1e3ff5ad 5611static LONGEST
4b8a223f 5612remote_xfer_partial (struct target_ops *ops, enum target_object object,
961cb7b5
MK
5613 const char *annex, gdb_byte *readbuf,
5614 const gdb_byte *writebuf, ULONGEST offset, LONGEST len)
c906108c 5615{
d01949b6 5616 struct remote_state *rs = get_remote_state ();
c906108c 5617 int i;
6d820c5c 5618 char *p2;
1e3ff5ad 5619 char query_type;
c906108c 5620
b2182ed2 5621 /* Handle memory using the standard memory routines. */
21e3b9b9
DJ
5622 if (object == TARGET_OBJECT_MEMORY)
5623 {
5624 int xfered;
5625 errno = 0;
5626
5627 if (writebuf != NULL)
b2182ed2 5628 xfered = remote_write_bytes (offset, writebuf, len);
21e3b9b9 5629 else
b2182ed2 5630 xfered = remote_read_bytes (offset, readbuf, len);
21e3b9b9
DJ
5631
5632 if (xfered > 0)
5633 return xfered;
5634 else if (xfered == 0 && errno == 0)
5635 return 0;
5636 else
5637 return -1;
5638 }
5639
a76d924d
DJ
5640 /* Only handle flash writes. */
5641 if (writebuf != NULL)
5642 {
5643 LONGEST xfered;
5644
5645 switch (object)
5646 {
5647 case TARGET_OBJECT_FLASH:
5648 xfered = remote_flash_write (ops, offset, len, writebuf);
5649
5650 if (xfered > 0)
5651 return xfered;
5652 else if (xfered == 0 && errno == 0)
5653 return 0;
5654 else
5655 return -1;
5656
5657 default:
5658 return -1;
5659 }
5660 }
4b8a223f 5661
1e3ff5ad
AC
5662 /* Map pre-existing objects onto letters. DO NOT do this for new
5663 objects!!! Instead specify new query packets. */
5664 switch (object)
c906108c 5665 {
1e3ff5ad
AC
5666 case TARGET_OBJECT_AVR:
5667 query_type = 'R';
5668 break;
802188a7
RM
5669
5670 case TARGET_OBJECT_AUXV:
0876f84a
DJ
5671 gdb_assert (annex == NULL);
5672 return remote_read_qxfer (ops, "auxv", annex, readbuf, offset, len,
5673 &remote_protocol_packets[PACKET_qXfer_auxv]);
802188a7 5674
23181151
DJ
5675 case TARGET_OBJECT_AVAILABLE_FEATURES:
5676 return remote_read_qxfer
5677 (ops, "features", annex, readbuf, offset, len,
5678 &remote_protocol_packets[PACKET_qXfer_features]);
5679
fd79ecee
DJ
5680 case TARGET_OBJECT_MEMORY_MAP:
5681 gdb_assert (annex == NULL);
5682 return remote_read_qxfer (ops, "memory-map", annex, readbuf, offset, len,
5683 &remote_protocol_packets[PACKET_qXfer_memory_map]);
5684
1e3ff5ad 5685 default:
c906108c
SS
5686 return -1;
5687 }
5688
4b8a223f 5689 /* Note: a zero OFFSET and LEN can be used to query the minimum
1e3ff5ad 5690 buffer size. */
4b8a223f 5691 if (offset == 0 && len == 0)
ea9c271d
DJ
5692 return (get_remote_packet_size ());
5693 /* Minimum outbuf size is get_remote_packet_size (). If LEN is not
24b06219 5694 large enough let the caller deal with it. */
ea9c271d 5695 if (len < get_remote_packet_size ())
1e3ff5ad 5696 return -1;
ea9c271d 5697 len = get_remote_packet_size ();
1e3ff5ad 5698
23860348 5699 /* Except for querying the minimum buffer size, target must be open. */
c5aa993b 5700 if (!remote_desc)
8a3fe4f8 5701 error (_("remote query is only available after target open"));
c906108c 5702
1e3ff5ad 5703 gdb_assert (annex != NULL);
4b8a223f 5704 gdb_assert (readbuf != NULL);
c906108c 5705
6d820c5c 5706 p2 = rs->buf;
c906108c
SS
5707 *p2++ = 'q';
5708 *p2++ = query_type;
5709
23860348
MS
5710 /* We used one buffer char for the remote protocol q command and
5711 another for the query type. As the remote protocol encapsulation
5712 uses 4 chars plus one extra in case we are debugging
5713 (remote_debug), we have PBUFZIZ - 7 left to pack the query
5714 string. */
c906108c 5715 i = 0;
ea9c271d 5716 while (annex[i] && (i < (get_remote_packet_size () - 8)))
c906108c 5717 {
1e3ff5ad
AC
5718 /* Bad caller may have sent forbidden characters. */
5719 gdb_assert (isprint (annex[i]) && annex[i] != '$' && annex[i] != '#');
5720 *p2++ = annex[i];
c906108c
SS
5721 i++;
5722 }
1e3ff5ad
AC
5723 *p2 = '\0';
5724 gdb_assert (annex[i] == '\0');
c906108c 5725
6d820c5c 5726 i = putpkt (rs->buf);
c5aa993b
JM
5727 if (i < 0)
5728 return i;
c906108c 5729
6d820c5c
DJ
5730 getpkt (&rs->buf, &rs->buf_size, 0);
5731 strcpy ((char *) readbuf, rs->buf);
c906108c 5732
cfd77fa1 5733 return strlen ((char *) readbuf);
c906108c
SS
5734}
5735
96baa820
JM
5736static void
5737remote_rcmd (char *command,
d9fcf2fb 5738 struct ui_file *outbuf)
96baa820 5739{
d01949b6 5740 struct remote_state *rs = get_remote_state ();
2e9f7625 5741 char *p = rs->buf;
96baa820
JM
5742
5743 if (!remote_desc)
8a3fe4f8 5744 error (_("remote rcmd is only available after target open"));
96baa820 5745
23860348 5746 /* Send a NULL command across as an empty command. */
7be570e7
JM
5747 if (command == NULL)
5748 command = "";
5749
23860348 5750 /* The query prefix. */
2e9f7625
DJ
5751 strcpy (rs->buf, "qRcmd,");
5752 p = strchr (rs->buf, '\0');
96baa820 5753
2e9f7625 5754 if ((strlen (rs->buf) + strlen (command) * 2 + 8/*misc*/) > get_remote_packet_size ())
8a3fe4f8 5755 error (_("\"monitor\" command ``%s'' is too long."), command);
96baa820 5756
23860348 5757 /* Encode the actual command. */
cfd77fa1 5758 bin2hex ((gdb_byte *) command, p, 0);
96baa820 5759
6d820c5c 5760 if (putpkt (rs->buf) < 0)
8a3fe4f8 5761 error (_("Communication problem with target."));
96baa820
JM
5762
5763 /* get/display the response */
5764 while (1)
5765 {
2e9f7625
DJ
5766 char *buf;
5767
23860348 5768 /* XXX - see also tracepoint.c:remote_get_noisy_reply(). */
2e9f7625 5769 rs->buf[0] = '\0';
6d820c5c 5770 getpkt (&rs->buf, &rs->buf_size, 0);
2e9f7625 5771 buf = rs->buf;
96baa820 5772 if (buf[0] == '\0')
8a3fe4f8 5773 error (_("Target does not support this command."));
96baa820
JM
5774 if (buf[0] == 'O' && buf[1] != 'K')
5775 {
23860348 5776 remote_console_output (buf + 1); /* 'O' message from stub. */
96baa820
JM
5777 continue;
5778 }
5779 if (strcmp (buf, "OK") == 0)
5780 break;
7be570e7
JM
5781 if (strlen (buf) == 3 && buf[0] == 'E'
5782 && isdigit (buf[1]) && isdigit (buf[2]))
5783 {
8a3fe4f8 5784 error (_("Protocol error with Rcmd"));
7be570e7 5785 }
96baa820
JM
5786 for (p = buf; p[0] != '\0' && p[1] != '\0'; p += 2)
5787 {
5788 char c = (fromhex (p[0]) << 4) + fromhex (p[1]);
5789 fputc_unfiltered (c, outbuf);
5790 }
5791 break;
5792 }
5793}
5794
fd79ecee
DJ
5795static VEC(mem_region_s) *
5796remote_memory_map (struct target_ops *ops)
5797{
5798 VEC(mem_region_s) *result = NULL;
5799 char *text = target_read_stralloc (&current_target,
5800 TARGET_OBJECT_MEMORY_MAP, NULL);
5801
5802 if (text)
5803 {
5804 struct cleanup *back_to = make_cleanup (xfree, text);
5805 result = parse_memory_map (text);
5806 do_cleanups (back_to);
5807 }
5808
5809 return result;
5810}
5811
c906108c 5812static void
fba45db2 5813packet_command (char *args, int from_tty)
c906108c 5814{
d01949b6 5815 struct remote_state *rs = get_remote_state ();
c906108c 5816
c5aa993b 5817 if (!remote_desc)
8a3fe4f8 5818 error (_("command can only be used with remote target"));
c906108c 5819
c5aa993b 5820 if (!args)
8a3fe4f8 5821 error (_("remote-packet command requires packet text as argument"));
c906108c
SS
5822
5823 puts_filtered ("sending: ");
5824 print_packet (args);
5825 puts_filtered ("\n");
5826 putpkt (args);
5827
6d820c5c 5828 getpkt (&rs->buf, &rs->buf_size, 0);
c906108c 5829 puts_filtered ("received: ");
6d820c5c 5830 print_packet (rs->buf);
c906108c
SS
5831 puts_filtered ("\n");
5832}
5833
5834#if 0
23860348 5835/* --------- UNIT_TEST for THREAD oriented PACKETS ------------------- */
c906108c 5836
a14ed312 5837static void display_thread_info (struct gdb_ext_thread_info *info);
c906108c 5838
a14ed312 5839static void threadset_test_cmd (char *cmd, int tty);
c906108c 5840
a14ed312 5841static void threadalive_test (char *cmd, int tty);
c906108c 5842
a14ed312 5843static void threadlist_test_cmd (char *cmd, int tty);
c906108c 5844
23860348 5845int get_and_display_threadinfo (threadref *ref);
c906108c 5846
a14ed312 5847static void threadinfo_test_cmd (char *cmd, int tty);
c906108c 5848
23860348 5849static int thread_display_step (threadref *ref, void *context);
c906108c 5850
a14ed312 5851static void threadlist_update_test_cmd (char *cmd, int tty);
c906108c 5852
a14ed312 5853static void init_remote_threadtests (void);
c906108c 5854
23860348 5855#define SAMPLE_THREAD 0x05060708 /* Truncated 64 bit threadid. */
c906108c
SS
5856
5857static void
fba45db2 5858threadset_test_cmd (char *cmd, int tty)
c906108c
SS
5859{
5860 int sample_thread = SAMPLE_THREAD;
5861
a3f17187 5862 printf_filtered (_("Remote threadset test\n"));
c906108c
SS
5863 set_thread (sample_thread, 1);
5864}
5865
5866
5867static void
fba45db2 5868threadalive_test (char *cmd, int tty)
c906108c
SS
5869{
5870 int sample_thread = SAMPLE_THREAD;
5871
39f77062 5872 if (remote_thread_alive (pid_to_ptid (sample_thread)))
c906108c
SS
5873 printf_filtered ("PASS: Thread alive test\n");
5874 else
5875 printf_filtered ("FAIL: Thread alive test\n");
5876}
5877
23860348 5878void output_threadid (char *title, threadref *ref);
c906108c
SS
5879
5880void
fba45db2 5881output_threadid (char *title, threadref *ref)
c906108c
SS
5882{
5883 char hexid[20];
5884
23860348 5885 pack_threadid (&hexid[0], ref); /* Convert threead id into hex. */
c906108c
SS
5886 hexid[16] = 0;
5887 printf_filtered ("%s %s\n", title, (&hexid[0]));
5888}
5889
5890static void
fba45db2 5891threadlist_test_cmd (char *cmd, int tty)
c906108c
SS
5892{
5893 int startflag = 1;
5894 threadref nextthread;
5895 int done, result_count;
5896 threadref threadlist[3];
5897
5898 printf_filtered ("Remote Threadlist test\n");
5899 if (!remote_get_threadlist (startflag, &nextthread, 3, &done,
5900 &result_count, &threadlist[0]))
5901 printf_filtered ("FAIL: threadlist test\n");
5902 else
5903 {
5904 threadref *scan = threadlist;
5905 threadref *limit = scan + result_count;
5906
5907 while (scan < limit)
5908 output_threadid (" thread ", scan++);
5909 }
5910}
5911
5912void
fba45db2 5913display_thread_info (struct gdb_ext_thread_info *info)
c906108c
SS
5914{
5915 output_threadid ("Threadid: ", &info->threadid);
5916 printf_filtered ("Name: %s\n ", info->shortname);
5917 printf_filtered ("State: %s\n", info->display);
5918 printf_filtered ("other: %s\n\n", info->more_display);
5919}
5920
5921int
fba45db2 5922get_and_display_threadinfo (threadref *ref)
c906108c
SS
5923{
5924 int result;
5925 int set;
5926 struct gdb_ext_thread_info threadinfo;
5927
5928 set = TAG_THREADID | TAG_EXISTS | TAG_THREADNAME
5929 | TAG_MOREDISPLAY | TAG_DISPLAY;
5930 if (0 != (result = remote_get_threadinfo (ref, set, &threadinfo)))
5931 display_thread_info (&threadinfo);
5932 return result;
5933}
5934
5935static void
fba45db2 5936threadinfo_test_cmd (char *cmd, int tty)
c906108c
SS
5937{
5938 int athread = SAMPLE_THREAD;
5939 threadref thread;
5940 int set;
5941
5942 int_to_threadref (&thread, athread);
5943 printf_filtered ("Remote Threadinfo test\n");
5944 if (!get_and_display_threadinfo (&thread))
5945 printf_filtered ("FAIL cannot get thread info\n");
5946}
5947
5948static int
fba45db2 5949thread_display_step (threadref *ref, void *context)
c906108c
SS
5950{
5951 /* output_threadid(" threadstep ",ref); *//* simple test */
5952 return get_and_display_threadinfo (ref);
5953}
5954
5955static void
fba45db2 5956threadlist_update_test_cmd (char *cmd, int tty)
c906108c
SS
5957{
5958 printf_filtered ("Remote Threadlist update test\n");
5959 remote_threadlist_iterator (thread_display_step, 0, CRAZY_MAX_THREADS);
5960}
5961
5962static void
5963init_remote_threadtests (void)
5964{
1bedd215
AC
5965 add_com ("tlist", class_obscure, threadlist_test_cmd, _("\
5966Fetch and print the remote list of thread identifiers, one pkt only"));
c906108c 5967 add_com ("tinfo", class_obscure, threadinfo_test_cmd,
1bedd215 5968 _("Fetch and display info about one thread"));
c906108c 5969 add_com ("tset", class_obscure, threadset_test_cmd,
1bedd215 5970 _("Test setting to a different thread"));
c906108c 5971 add_com ("tupd", class_obscure, threadlist_update_test_cmd,
1bedd215 5972 _("Iterate through updating all remote thread info"));
c906108c 5973 add_com ("talive", class_obscure, threadalive_test,
1bedd215 5974 _(" Remote thread alive test "));
c906108c
SS
5975}
5976
5977#endif /* 0 */
5978
f3fb8c85
MS
5979/* Convert a thread ID to a string. Returns the string in a static
5980 buffer. */
5981
5982static char *
39f77062 5983remote_pid_to_str (ptid_t ptid)
f3fb8c85 5984{
fd0a2a6f 5985 static char buf[32];
f3fb8c85 5986
32a5b2f1 5987 xsnprintf (buf, sizeof buf, "Thread %d", ptid_get_pid (ptid));
f3fb8c85
MS
5988 return buf;
5989}
5990
38691318
KB
5991/* Get the address of the thread local variable in OBJFILE which is
5992 stored at OFFSET within the thread local storage for thread PTID. */
5993
5994static CORE_ADDR
5995remote_get_thread_local_address (ptid_t ptid, CORE_ADDR lm, CORE_ADDR offset)
5996{
444abaca 5997 if (remote_protocol_packets[PACKET_qGetTLSAddr].support != PACKET_DISABLE)
38691318
KB
5998 {
5999 struct remote_state *rs = get_remote_state ();
6d820c5c 6000 char *p = rs->buf;
571dd617 6001 enum packet_result result;
38691318
KB
6002
6003 strcpy (p, "qGetTLSAddr:");
6004 p += strlen (p);
6005 p += hexnumstr (p, PIDGET (ptid));
6006 *p++ = ',';
6007 p += hexnumstr (p, offset);
6008 *p++ = ',';
6009 p += hexnumstr (p, lm);
6010 *p++ = '\0';
6011
6d820c5c
DJ
6012 putpkt (rs->buf);
6013 getpkt (&rs->buf, &rs->buf_size, 0);
6014 result = packet_ok (rs->buf, &remote_protocol_packets[PACKET_qGetTLSAddr]);
571dd617 6015 if (result == PACKET_OK)
38691318
KB
6016 {
6017 ULONGEST result;
6018
6d820c5c 6019 unpack_varlen_hex (rs->buf, &result);
38691318
KB
6020 return result;
6021 }
571dd617 6022 else if (result == PACKET_UNKNOWN)
109c3e39
AC
6023 throw_error (TLS_GENERIC_ERROR,
6024 _("Remote target doesn't support qGetTLSAddr packet"));
38691318 6025 else
109c3e39
AC
6026 throw_error (TLS_GENERIC_ERROR,
6027 _("Remote target failed to process qGetTLSAddr request"));
38691318
KB
6028 }
6029 else
109c3e39
AC
6030 throw_error (TLS_GENERIC_ERROR,
6031 _("TLS not supported or disabled on this target"));
38691318
KB
6032 /* Not reached. */
6033 return 0;
6034}
6035
29709017
DJ
6036/* Support for inferring a target description based on the current
6037 architecture and the size of a 'g' packet. While the 'g' packet
6038 can have any size (since optional registers can be left off the
6039 end), some sizes are easily recognizable given knowledge of the
6040 approximate architecture. */
6041
6042struct remote_g_packet_guess
6043{
6044 int bytes;
6045 const struct target_desc *tdesc;
6046};
6047typedef struct remote_g_packet_guess remote_g_packet_guess_s;
6048DEF_VEC_O(remote_g_packet_guess_s);
6049
6050struct remote_g_packet_data
6051{
6052 VEC(remote_g_packet_guess_s) *guesses;
6053};
6054
6055static struct gdbarch_data *remote_g_packet_data_handle;
6056
6057static void *
6058remote_g_packet_data_init (struct obstack *obstack)
6059{
6060 return OBSTACK_ZALLOC (obstack, struct remote_g_packet_data);
6061}
6062
6063void
6064register_remote_g_packet_guess (struct gdbarch *gdbarch, int bytes,
6065 const struct target_desc *tdesc)
6066{
6067 struct remote_g_packet_data *data
6068 = gdbarch_data (gdbarch, remote_g_packet_data_handle);
6069 struct remote_g_packet_guess new_guess, *guess;
6070 int ix;
6071
6072 gdb_assert (tdesc != NULL);
6073
6074 for (ix = 0;
6075 VEC_iterate (remote_g_packet_guess_s, data->guesses, ix, guess);
6076 ix++)
6077 if (guess->bytes == bytes)
6078 internal_error (__FILE__, __LINE__,
6079 "Duplicate g packet description added for size %d",
6080 bytes);
6081
6082 new_guess.bytes = bytes;
6083 new_guess.tdesc = tdesc;
6084 VEC_safe_push (remote_g_packet_guess_s, data->guesses, &new_guess);
6085}
6086
6087static const struct target_desc *
6088remote_read_description (struct target_ops *target)
6089{
6090 struct remote_g_packet_data *data
6091 = gdbarch_data (current_gdbarch, remote_g_packet_data_handle);
6092
6093 if (!VEC_empty (remote_g_packet_guess_s, data->guesses))
6094 {
6095 struct remote_g_packet_guess *guess;
6096 int ix;
6097 int bytes = send_g_packet ();
6098
6099 for (ix = 0;
6100 VEC_iterate (remote_g_packet_guess_s, data->guesses, ix, guess);
6101 ix++)
6102 if (guess->bytes == bytes)
6103 return guess->tdesc;
6104
6105 /* We discard the g packet. A minor optimization would be to
6106 hold on to it, and fill the register cache once we have selected
6107 an architecture, but it's too tricky to do safely. */
6108 }
6109
6110 return NULL;
6111}
6112
c906108c 6113static void
fba45db2 6114init_remote_ops (void)
c906108c 6115{
c5aa993b 6116 remote_ops.to_shortname = "remote";
c906108c 6117 remote_ops.to_longname = "Remote serial target in gdb-specific protocol";
c5aa993b 6118 remote_ops.to_doc =
c906108c 6119 "Use a remote computer via a serial line, using a gdb-specific protocol.\n\
0d06e24b
JM
6120Specify the serial device it is connected to\n\
6121(e.g. /dev/ttyS0, /dev/ttya, COM1, etc.).";
c5aa993b
JM
6122 remote_ops.to_open = remote_open;
6123 remote_ops.to_close = remote_close;
c906108c 6124 remote_ops.to_detach = remote_detach;
6ad8ae5c 6125 remote_ops.to_disconnect = remote_disconnect;
c5aa993b 6126 remote_ops.to_resume = remote_resume;
c906108c
SS
6127 remote_ops.to_wait = remote_wait;
6128 remote_ops.to_fetch_registers = remote_fetch_registers;
6129 remote_ops.to_store_registers = remote_store_registers;
6130 remote_ops.to_prepare_to_store = remote_prepare_to_store;
c8e73a31 6131 remote_ops.deprecated_xfer_memory = remote_xfer_memory;
c5aa993b 6132 remote_ops.to_files_info = remote_files_info;
c906108c
SS
6133 remote_ops.to_insert_breakpoint = remote_insert_breakpoint;
6134 remote_ops.to_remove_breakpoint = remote_remove_breakpoint;
3c3bea1c
GS
6135 remote_ops.to_stopped_by_watchpoint = remote_stopped_by_watchpoint;
6136 remote_ops.to_stopped_data_address = remote_stopped_data_address;
6137 remote_ops.to_can_use_hw_breakpoint = remote_check_watch_resources;
6138 remote_ops.to_insert_hw_breakpoint = remote_insert_hw_breakpoint;
6139 remote_ops.to_remove_hw_breakpoint = remote_remove_hw_breakpoint;
6140 remote_ops.to_insert_watchpoint = remote_insert_watchpoint;
6141 remote_ops.to_remove_watchpoint = remote_remove_watchpoint;
c5aa993b
JM
6142 remote_ops.to_kill = remote_kill;
6143 remote_ops.to_load = generic_load;
c906108c
SS
6144 remote_ops.to_mourn_inferior = remote_mourn;
6145 remote_ops.to_thread_alive = remote_thread_alive;
0f71a2f6 6146 remote_ops.to_find_new_threads = remote_threads_info;
0caabb7e 6147 remote_ops.to_pid_to_str = remote_pid_to_str;
cf759d3b 6148 remote_ops.to_extra_thread_info = remote_threads_extra_info;
c906108c 6149 remote_ops.to_stop = remote_stop;
4b8a223f 6150 remote_ops.to_xfer_partial = remote_xfer_partial;
96baa820 6151 remote_ops.to_rcmd = remote_rcmd;
38691318 6152 remote_ops.to_get_thread_local_address = remote_get_thread_local_address;
c906108c 6153 remote_ops.to_stratum = process_stratum;
c5aa993b
JM
6154 remote_ops.to_has_all_memory = 1;
6155 remote_ops.to_has_memory = 1;
6156 remote_ops.to_has_stack = 1;
6157 remote_ops.to_has_registers = 1;
6158 remote_ops.to_has_execution = 1;
6159 remote_ops.to_has_thread_control = tc_schedlock; /* can lock scheduler */
6160 remote_ops.to_magic = OPS_MAGIC;
fd79ecee 6161 remote_ops.to_memory_map = remote_memory_map;
a76d924d
DJ
6162 remote_ops.to_flash_erase = remote_flash_erase;
6163 remote_ops.to_flash_done = remote_flash_done;
29709017 6164 remote_ops.to_read_description = remote_read_description;
c906108c
SS
6165}
6166
6167/* Set up the extended remote vector by making a copy of the standard
6168 remote vector and adding to it. */
6169
6170static void
fba45db2 6171init_extended_remote_ops (void)
c906108c
SS
6172{
6173 extended_remote_ops = remote_ops;
6174
0f71a2f6 6175 extended_remote_ops.to_shortname = "extended-remote";
c5aa993b 6176 extended_remote_ops.to_longname =
c906108c 6177 "Extended remote serial target in gdb-specific protocol";
c5aa993b 6178 extended_remote_ops.to_doc =
c906108c
SS
6179 "Use a remote computer via a serial line, using a gdb-specific protocol.\n\
6180Specify the serial device it is connected to (e.g. /dev/ttya).",
c5aa993b 6181 extended_remote_ops.to_open = extended_remote_open;
c906108c
SS
6182 extended_remote_ops.to_create_inferior = extended_remote_create_inferior;
6183 extended_remote_ops.to_mourn_inferior = extended_remote_mourn;
0f71a2f6
JM
6184}
6185
6426a772
JM
6186static int
6187remote_can_async_p (void)
6188{
23860348 6189 /* We're async whenever the serial device is. */
2cd58942 6190 return (current_target.to_async_mask_value) && serial_can_async_p (remote_desc);
6426a772
JM
6191}
6192
6193static int
6194remote_is_async_p (void)
6195{
23860348 6196 /* We're async whenever the serial device is. */
2cd58942 6197 return (current_target.to_async_mask_value) && serial_is_async_p (remote_desc);
6426a772
JM
6198}
6199
2acceee2
JM
6200/* Pass the SERIAL event on and up to the client. One day this code
6201 will be able to delay notifying the client of an event until the
23860348 6202 point where an entire packet has been received. */
2acceee2 6203
2bc416ba 6204static void (*async_client_callback) (enum inferior_event_type event_type,
23860348 6205 void *context);
2acceee2
JM
6206static void *async_client_context;
6207static serial_event_ftype remote_async_serial_handler;
6208
6426a772 6209static void
819cc324 6210remote_async_serial_handler (struct serial *scb, void *context)
6426a772 6211{
2acceee2
JM
6212 /* Don't propogate error information up to the client. Instead let
6213 the client find out about the error by querying the target. */
6214 async_client_callback (INF_REG_EVENT, async_client_context);
6215}
6216
6217static void
2bc416ba 6218remote_async (void (*callback) (enum inferior_event_type event_type,
23860348 6219 void *context), void *context)
2acceee2 6220{
ed9a39eb 6221 if (current_target.to_async_mask_value == 0)
8e65ff28 6222 internal_error (__FILE__, __LINE__,
e2e0b3e5 6223 _("Calling remote_async when async is masked"));
ed9a39eb 6224
2acceee2
JM
6225 if (callback != NULL)
6226 {
2cd58942 6227 serial_async (remote_desc, remote_async_serial_handler, NULL);
2acceee2
JM
6228 async_client_callback = callback;
6229 async_client_context = context;
6230 }
6231 else
2cd58942 6232 serial_async (remote_desc, NULL, NULL);
6426a772
JM
6233}
6234
43ff13b4
JM
6235/* Target async and target extended-async.
6236
6237 This are temporary targets, until it is all tested. Eventually
6238 async support will be incorporated int the usual 'remote'
23860348 6239 target. */
43ff13b4
JM
6240
6241static void
c2d11a7d 6242init_remote_async_ops (void)
43ff13b4
JM
6243{
6244 remote_async_ops.to_shortname = "async";
2bc416ba 6245 remote_async_ops.to_longname =
23860348 6246 "Remote serial target in async version of the gdb-specific protocol";
c5aa993b 6247 remote_async_ops.to_doc =
43ff13b4
JM
6248 "Use a remote computer via a serial line, using a gdb-specific protocol.\n\
6249Specify the serial device it is connected to (e.g. /dev/ttya).";
c5aa993b
JM
6250 remote_async_ops.to_open = remote_async_open;
6251 remote_async_ops.to_close = remote_close;
6ad8ae5c
DJ
6252 remote_async_ops.to_detach = remote_detach;
6253 remote_async_ops.to_disconnect = remote_disconnect;
c5aa993b
JM
6254 remote_async_ops.to_resume = remote_async_resume;
6255 remote_async_ops.to_wait = remote_async_wait;
6256 remote_async_ops.to_fetch_registers = remote_fetch_registers;
6257 remote_async_ops.to_store_registers = remote_store_registers;
6258 remote_async_ops.to_prepare_to_store = remote_prepare_to_store;
c8e73a31 6259 remote_async_ops.deprecated_xfer_memory = remote_xfer_memory;
c5aa993b 6260 remote_async_ops.to_files_info = remote_files_info;
43ff13b4
JM
6261 remote_async_ops.to_insert_breakpoint = remote_insert_breakpoint;
6262 remote_async_ops.to_remove_breakpoint = remote_remove_breakpoint;
3c3bea1c
GS
6263 remote_async_ops.to_can_use_hw_breakpoint = remote_check_watch_resources;
6264 remote_async_ops.to_insert_hw_breakpoint = remote_insert_hw_breakpoint;
6265 remote_async_ops.to_remove_hw_breakpoint = remote_remove_hw_breakpoint;
6266 remote_async_ops.to_insert_watchpoint = remote_insert_watchpoint;
6267 remote_async_ops.to_remove_watchpoint = remote_remove_watchpoint;
6268 remote_async_ops.to_stopped_by_watchpoint = remote_stopped_by_watchpoint;
6269 remote_async_ops.to_stopped_data_address = remote_stopped_data_address;
6426a772
JM
6270 remote_async_ops.to_terminal_inferior = remote_async_terminal_inferior;
6271 remote_async_ops.to_terminal_ours = remote_async_terminal_ours;
c5aa993b
JM
6272 remote_async_ops.to_kill = remote_async_kill;
6273 remote_async_ops.to_load = generic_load;
53a5351d 6274 remote_async_ops.to_mourn_inferior = remote_async_mourn;
c5aa993b
JM
6275 remote_async_ops.to_thread_alive = remote_thread_alive;
6276 remote_async_ops.to_find_new_threads = remote_threads_info;
cf759d3b
ND
6277 remote_async_ops.to_pid_to_str = remote_pid_to_str;
6278 remote_async_ops.to_extra_thread_info = remote_threads_extra_info;
43ff13b4 6279 remote_async_ops.to_stop = remote_stop;
4b8a223f 6280 remote_async_ops.to_xfer_partial = remote_xfer_partial;
96baa820 6281 remote_async_ops.to_rcmd = remote_rcmd;
c5aa993b
JM
6282 remote_async_ops.to_stratum = process_stratum;
6283 remote_async_ops.to_has_all_memory = 1;
6284 remote_async_ops.to_has_memory = 1;
6285 remote_async_ops.to_has_stack = 1;
6286 remote_async_ops.to_has_registers = 1;
6287 remote_async_ops.to_has_execution = 1;
6288 remote_async_ops.to_has_thread_control = tc_schedlock; /* can lock scheduler */
6426a772
JM
6289 remote_async_ops.to_can_async_p = remote_can_async_p;
6290 remote_async_ops.to_is_async_p = remote_is_async_p;
6291 remote_async_ops.to_async = remote_async;
ed9a39eb 6292 remote_async_ops.to_async_mask_value = 1;
c5aa993b 6293 remote_async_ops.to_magic = OPS_MAGIC;
fd79ecee 6294 remote_async_ops.to_memory_map = remote_memory_map;
a76d924d
DJ
6295 remote_async_ops.to_flash_erase = remote_flash_erase;
6296 remote_async_ops.to_flash_done = remote_flash_done;
29709017 6297 remote_ops.to_read_description = remote_read_description;
43ff13b4
JM
6298}
6299
6300/* Set up the async extended remote vector by making a copy of the standard
6301 remote vector and adding to it. */
6302
6303static void
c2d11a7d 6304init_extended_async_remote_ops (void)
43ff13b4
JM
6305{
6306 extended_async_remote_ops = remote_async_ops;
6307
6308 extended_async_remote_ops.to_shortname = "extended-async";
c5aa993b 6309 extended_async_remote_ops.to_longname =
43ff13b4 6310 "Extended remote serial target in async gdb-specific protocol";
c5aa993b 6311 extended_async_remote_ops.to_doc =
43ff13b4
JM
6312 "Use a remote computer via a serial line, using an async gdb-specific protocol.\n\
6313Specify the serial device it is connected to (e.g. /dev/ttya).",
c5aa993b 6314 extended_async_remote_ops.to_open = extended_remote_async_open;
43ff13b4
JM
6315 extended_async_remote_ops.to_create_inferior = extended_remote_async_create_inferior;
6316 extended_async_remote_ops.to_mourn_inferior = extended_remote_mourn;
6317}
6318
5a2468f5 6319static void
c2d11a7d 6320set_remote_cmd (char *args, int from_tty)
5a2468f5 6321{
427c3a89 6322 help_list (remote_set_cmdlist, "set remote ", -1, gdb_stdout);
5a2468f5
JM
6323}
6324
d471ea57
AC
6325static void
6326show_remote_cmd (char *args, int from_tty)
6327{
37a105a1 6328 /* We can't just use cmd_show_list here, because we want to skip
427c3a89 6329 the redundant "show remote Z-packet" and the legacy aliases. */
37a105a1
DJ
6330 struct cleanup *showlist_chain;
6331 struct cmd_list_element *list = remote_show_cmdlist;
6332
6333 showlist_chain = make_cleanup_ui_out_tuple_begin_end (uiout, "showlist");
6334 for (; list != NULL; list = list->next)
6335 if (strcmp (list->name, "Z-packet") == 0)
6336 continue;
427c3a89
DJ
6337 else if (list->type == not_set_cmd)
6338 /* Alias commands are exactly like the original, except they
6339 don't have the normal type. */
6340 continue;
6341 else
37a105a1
DJ
6342 {
6343 struct cleanup *option_chain
6344 = make_cleanup_ui_out_tuple_begin_end (uiout, "option");
6345 ui_out_field_string (uiout, "name", list->name);
6346 ui_out_text (uiout, ": ");
427c3a89
DJ
6347 if (list->type == show_cmd)
6348 do_setshow_command ((char *) NULL, from_tty, list);
6349 else
6350 cmd_func (list, NULL, from_tty);
37a105a1
DJ
6351 /* Close the tuple. */
6352 do_cleanups (option_chain);
6353 }
427c3a89
DJ
6354
6355 /* Close the tuple. */
6356 do_cleanups (showlist_chain);
d471ea57 6357}
5a2468f5 6358
0f71a2f6 6359static void
fba45db2 6360build_remote_gdbarch_data (void)
0f71a2f6 6361{
d696208f 6362 remote_address_size = TARGET_ADDR_BIT;
0f71a2f6
JM
6363}
6364
23860348 6365/* Saved pointer to previous owner of the new_objfile event. */
dc8acb97
MS
6366static void (*remote_new_objfile_chain) (struct objfile *);
6367
23860348 6368/* Function to be called whenever a new objfile (shlib) is detected. */
dc8acb97
MS
6369static void
6370remote_new_objfile (struct objfile *objfile)
6371{
23860348 6372 if (remote_desc != 0) /* Have a remote connection. */
dc8acb97
MS
6373 {
6374 remote_check_symbols (objfile);
6375 }
23860348 6376 /* Call predecessor on chain, if any. */
f86172a5 6377 if (remote_new_objfile_chain)
dc8acb97
MS
6378 remote_new_objfile_chain (objfile);
6379}
6380
c906108c 6381void
fba45db2 6382_initialize_remote (void)
c906108c 6383{
ea9c271d
DJ
6384 struct remote_state *rs;
6385
0f71a2f6 6386 /* architecture specific data */
2bc416ba 6387 remote_gdbarch_data_handle =
23860348 6388 gdbarch_data_register_post_init (init_remote_state);
29709017
DJ
6389 remote_g_packet_data_handle =
6390 gdbarch_data_register_pre_init (remote_g_packet_data_init);
d01949b6
AC
6391
6392 /* Old tacky stuff. NOTE: This comes after the remote protocol so
6393 that the remote protocol has been initialized. */
046a4708
AC
6394 DEPRECATED_REGISTER_GDBARCH_SWAP (remote_address_size);
6395 deprecated_register_gdbarch_swap (NULL, 0, build_remote_gdbarch_data);
0f71a2f6 6396
ea9c271d
DJ
6397 /* Initialize the per-target state. At the moment there is only one
6398 of these, not one per target. Only one target is active at a
6399 time. The default buffer size is unimportant; it will be expanded
6400 whenever a larger buffer is needed. */
0b83947e 6401 rs = get_remote_state_raw ();
ea9c271d
DJ
6402 rs->buf_size = 400;
6403 rs->buf = xmalloc (rs->buf_size);
6404
c906108c
SS
6405 init_remote_ops ();
6406 add_target (&remote_ops);
6407
6408 init_extended_remote_ops ();
6409 add_target (&extended_remote_ops);
cce74817 6410
43ff13b4
JM
6411 init_remote_async_ops ();
6412 add_target (&remote_async_ops);
6413
6414 init_extended_async_remote_ops ();
6415 add_target (&extended_async_remote_ops);
6416
dc8acb97 6417 /* Hook into new objfile notification. */
9a4105ab
AC
6418 remote_new_objfile_chain = deprecated_target_new_objfile_hook;
6419 deprecated_target_new_objfile_hook = remote_new_objfile;
dc8acb97 6420
c906108c
SS
6421#if 0
6422 init_remote_threadtests ();
6423#endif
6424
23860348 6425 /* set/show remote ... */
d471ea57 6426
1bedd215 6427 add_prefix_cmd ("remote", class_maintenance, set_remote_cmd, _("\
5a2468f5
JM
6428Remote protocol specific variables\n\
6429Configure various remote-protocol specific variables such as\n\
1bedd215 6430the packets being used"),
cff3e48b 6431 &remote_set_cmdlist, "set remote ",
23860348 6432 0 /* allow-unknown */, &setlist);
1bedd215 6433 add_prefix_cmd ("remote", class_maintenance, show_remote_cmd, _("\
5a2468f5
JM
6434Remote protocol specific variables\n\
6435Configure various remote-protocol specific variables such as\n\
1bedd215 6436the packets being used"),
cff3e48b 6437 &remote_show_cmdlist, "show remote ",
23860348 6438 0 /* allow-unknown */, &showlist);
5a2468f5 6439
1a966eab
AC
6440 add_cmd ("compare-sections", class_obscure, compare_sections_command, _("\
6441Compare section data on target to the exec file.\n\
6442Argument is a single section name (default: all loaded sections)."),
c906108c
SS
6443 &cmdlist);
6444
1a966eab
AC
6445 add_cmd ("packet", class_maintenance, packet_command, _("\
6446Send an arbitrary packet to a remote target.\n\
c906108c
SS
6447 maintenance packet TEXT\n\
6448If GDB is talking to an inferior via the GDB serial protocol, then\n\
6449this command sends the string TEXT to the inferior, and displays the\n\
6450response packet. GDB supplies the initial `$' character, and the\n\
1a966eab 6451terminating `#' character and checksum."),
c906108c
SS
6452 &maintenancelist);
6453
7915a72c
AC
6454 add_setshow_boolean_cmd ("remotebreak", no_class, &remote_break, _("\
6455Set whether to send break if interrupted."), _("\
6456Show whether to send break if interrupted."), _("\
6457If set, a break, instead of a cntrl-c, is sent to the remote target."),
2c5b56ce 6458 NULL, NULL, /* FIXME: i18n: Whether to send break if interrupted is %s. */
e707bbc2 6459 &setlist, &showlist);
c906108c 6460
23860348 6461 /* Install commands for configuring memory read/write packets. */
11cf8741 6462
1a966eab
AC
6463 add_cmd ("remotewritesize", no_class, set_memory_write_packet_size, _("\
6464Set the maximum number of bytes per memory write packet (deprecated)."),
11cf8741 6465 &setlist);
1a966eab
AC
6466 add_cmd ("remotewritesize", no_class, show_memory_write_packet_size, _("\
6467Show the maximum number of bytes per memory write packet (deprecated)."),
11cf8741
JM
6468 &showlist);
6469 add_cmd ("memory-write-packet-size", no_class,
1a966eab
AC
6470 set_memory_write_packet_size, _("\
6471Set the maximum number of bytes per memory-write packet.\n\
6472Specify the number of bytes in a packet or 0 (zero) for the\n\
6473default packet size. The actual limit is further reduced\n\
6474dependent on the target. Specify ``fixed'' to disable the\n\
6475further restriction and ``limit'' to enable that restriction."),
11cf8741
JM
6476 &remote_set_cmdlist);
6477 add_cmd ("memory-read-packet-size", no_class,
1a966eab
AC
6478 set_memory_read_packet_size, _("\
6479Set the maximum number of bytes per memory-read packet.\n\
6480Specify the number of bytes in a packet or 0 (zero) for the\n\
6481default packet size. The actual limit is further reduced\n\
6482dependent on the target. Specify ``fixed'' to disable the\n\
6483further restriction and ``limit'' to enable that restriction."),
11cf8741
JM
6484 &remote_set_cmdlist);
6485 add_cmd ("memory-write-packet-size", no_class,
6486 show_memory_write_packet_size,
1a966eab 6487 _("Show the maximum number of bytes per memory-write packet."),
11cf8741
JM
6488 &remote_show_cmdlist);
6489 add_cmd ("memory-read-packet-size", no_class,
6490 show_memory_read_packet_size,
1a966eab 6491 _("Show the maximum number of bytes per memory-read packet."),
11cf8741 6492 &remote_show_cmdlist);
c906108c 6493
b3f42336 6494 add_setshow_zinteger_cmd ("hardware-watchpoint-limit", no_class,
7915a72c
AC
6495 &remote_hw_watchpoint_limit, _("\
6496Set the maximum number of target hardware watchpoints."), _("\
6497Show the maximum number of target hardware watchpoints."), _("\
6498Specify a negative limit for unlimited."),
2c5b56ce 6499 NULL, NULL, /* FIXME: i18n: The maximum number of target hardware watchpoints is %s. */
b3f42336
AC
6500 &remote_set_cmdlist, &remote_show_cmdlist);
6501 add_setshow_zinteger_cmd ("hardware-breakpoint-limit", no_class,
7915a72c
AC
6502 &remote_hw_breakpoint_limit, _("\
6503Set the maximum number of target hardware breakpoints."), _("\
6504Show the maximum number of target hardware breakpoints."), _("\
6505Specify a negative limit for unlimited."),
2c5b56ce 6506 NULL, NULL, /* FIXME: i18n: The maximum number of target hardware breakpoints is %s. */
b3f42336 6507 &remote_set_cmdlist, &remote_show_cmdlist);
501eef12 6508
4d28ad1e
AC
6509 add_setshow_integer_cmd ("remoteaddresssize", class_obscure,
6510 &remote_address_size, _("\
6511Set the maximum size of the address (in bits) in a memory packet."), _("\
6512Show the maximum size of the address (in bits) in a memory packet."), NULL,
6513 NULL,
6514 NULL, /* FIXME: i18n: */
6515 &setlist, &showlist);
c906108c 6516
444abaca 6517 add_packet_config_cmd (&remote_protocol_packets[PACKET_X],
bb572ddd 6518 "X", "binary-download", 1);
0f71a2f6 6519
444abaca 6520 add_packet_config_cmd (&remote_protocol_packets[PACKET_vCont],
bb572ddd 6521 "vCont", "verbose-resume", 0);
506fb367 6522
89be2091
DJ
6523 add_packet_config_cmd (&remote_protocol_packets[PACKET_QPassSignals],
6524 "QPassSignals", "pass-signals", 0);
6525
444abaca 6526 add_packet_config_cmd (&remote_protocol_packets[PACKET_qSymbol],
bb572ddd 6527 "qSymbol", "symbol-lookup", 0);
dc8acb97 6528
444abaca 6529 add_packet_config_cmd (&remote_protocol_packets[PACKET_P],
bb572ddd 6530 "P", "set-register", 1);
d471ea57 6531
444abaca 6532 add_packet_config_cmd (&remote_protocol_packets[PACKET_p],
bb572ddd 6533 "p", "fetch-register", 1);
b96ec7ac 6534
444abaca 6535 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z0],
bb572ddd 6536 "Z0", "software-breakpoint", 0);
d471ea57 6537
444abaca 6538 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z1],
bb572ddd 6539 "Z1", "hardware-breakpoint", 0);
d471ea57 6540
444abaca 6541 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z2],
bb572ddd 6542 "Z2", "write-watchpoint", 0);
d471ea57 6543
444abaca 6544 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z3],
bb572ddd 6545 "Z3", "read-watchpoint", 0);
d471ea57 6546
444abaca 6547 add_packet_config_cmd (&remote_protocol_packets[PACKET_Z4],
bb572ddd 6548 "Z4", "access-watchpoint", 0);
d471ea57 6549
0876f84a
DJ
6550 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_auxv],
6551 "qXfer:auxv:read", "read-aux-vector", 0);
802188a7 6552
23181151
DJ
6553 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_features],
6554 "qXfer:features:read", "target-features", 0);
6555
fd79ecee
DJ
6556 add_packet_config_cmd (&remote_protocol_packets[PACKET_qXfer_memory_map],
6557 "qXfer:memory-map:read", "memory-map", 0);
6558
444abaca 6559 add_packet_config_cmd (&remote_protocol_packets[PACKET_qGetTLSAddr],
38691318 6560 "qGetTLSAddr", "get-thread-local-storage-address",
38691318
KB
6561 0);
6562
be2a5f71
DJ
6563 add_packet_config_cmd (&remote_protocol_packets[PACKET_qSupported],
6564 "qSupported", "supported-packets", 0);
6565
37a105a1
DJ
6566 /* Keep the old ``set remote Z-packet ...'' working. Each individual
6567 Z sub-packet has its own set and show commands, but users may
6568 have sets to this variable in their .gdbinit files (or in their
6569 documentation). */
e9e68a56 6570 add_setshow_auto_boolean_cmd ("Z-packet", class_obscure,
7915a72c
AC
6571 &remote_Z_packet_detect, _("\
6572Set use of remote protocol `Z' packets"), _("\
6573Show use of remote protocol `Z' packets "), _("\
3b64bf98 6574When set, GDB will attempt to use the remote breakpoint and watchpoint\n\
7915a72c 6575packets."),
e9e68a56 6576 set_remote_protocol_Z_packet_cmd,
2c5b56ce 6577 show_remote_protocol_Z_packet_cmd, /* FIXME: i18n: Use of remote protocol `Z' packets is %s. */
e9e68a56 6578 &remote_set_cmdlist, &remote_show_cmdlist);
449092f6
CV
6579
6580 /* Eventually initialize fileio. See fileio.c */
6581 initialize_remote_fileio (remote_set_cmdlist, remote_show_cmdlist);
c906108c 6582}
This page took 1.189507 seconds and 4 git commands to generate.