2001-05-15 John S Kallal <jskallal@home.com>
[binutils-gdb.git] / gdb / remote.c
1 /* Remote target communications for serial-line targets in custom GDB protocol
2 Copyright 1988, 1989, 1990, 1991, 1992, 1993, 1994, 1995, 1996, 1997,
3 1998, 1999, 2000, 2001 Free Software Foundation, Inc.
4
5 This file is part of GDB.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 2 of the License, or
10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with this program; if not, write to the Free Software
19 Foundation, Inc., 59 Temple Place - Suite 330,
20 Boston, MA 02111-1307, USA. */
21
22 /* See the GDB User Guide for details of the GDB remote protocol. */
23
24 #include "defs.h"
25 #include "gdb_string.h"
26 #include <ctype.h>
27 #include <fcntl.h>
28 #include "inferior.h"
29 #include "bfd.h"
30 #include "symfile.h"
31 #include "target.h"
32 /*#include "terminal.h" */
33 #include "gdbcmd.h"
34 #include "objfiles.h"
35 #include "gdb-stabs.h"
36 #include "gdbthread.h"
37 #include "remote.h"
38 #include "regcache.h"
39
40 #include <ctype.h>
41 #include <sys/time.h>
42 #ifdef USG
43 #include <sys/types.h>
44 #endif
45
46 #include "event-loop.h"
47 #include "event-top.h"
48 #include "inf-loop.h"
49
50 #include <signal.h>
51 #include "serial.h"
52
53 #include "gdbcore.h" /* for exec_bfd */
54
55 /* Prototypes for local functions */
56 static void cleanup_sigint_signal_handler (void *dummy);
57 static void initialize_sigint_signal_handler (void);
58 static int getpkt_sane (char *buf, long sizeof_buf, int forever);
59
60 static void handle_remote_sigint (int);
61 static void handle_remote_sigint_twice (int);
62 static void async_remote_interrupt (gdb_client_data);
63 void async_remote_interrupt_twice (gdb_client_data);
64
65 static void build_remote_gdbarch_data (void);
66
67 static int remote_write_bytes (CORE_ADDR memaddr, char *myaddr, int len);
68
69 static int remote_read_bytes (CORE_ADDR memaddr, char *myaddr, int len);
70
71 static void remote_files_info (struct target_ops *ignore);
72
73 static int remote_xfer_memory (CORE_ADDR memaddr, char *myaddr,
74 int len, int should_write,
75 struct mem_attrib *attrib,
76 struct target_ops *target);
77
78 static void remote_prepare_to_store (void);
79
80 static void remote_fetch_registers (int regno);
81
82 static void remote_resume (ptid_t ptid, int step,
83 enum target_signal siggnal);
84 static void remote_async_resume (ptid_t ptid, int step,
85 enum target_signal siggnal);
86 static int remote_start_remote (PTR);
87
88 static void remote_open (char *name, int from_tty);
89 static void remote_async_open (char *name, int from_tty);
90
91 static void extended_remote_open (char *name, int from_tty);
92 static void extended_remote_async_open (char *name, int from_tty);
93
94 static void remote_open_1 (char *, int, struct target_ops *, int extended_p);
95 static void remote_async_open_1 (char *, int, struct target_ops *,
96 int extended_p);
97
98 static void remote_close (int quitting);
99
100 static void remote_store_registers (int regno);
101
102 static void remote_mourn (void);
103 static void remote_async_mourn (void);
104
105 static void extended_remote_restart (void);
106
107 static void extended_remote_mourn (void);
108
109 static void extended_remote_create_inferior (char *, char *, char **);
110 static void extended_remote_async_create_inferior (char *, char *, char **);
111
112 static void remote_mourn_1 (struct target_ops *);
113
114 static void remote_send (char *buf, long sizeof_buf);
115
116 static int readchar (int timeout);
117
118 static ptid_t remote_wait (ptid_t ptid,
119 struct target_waitstatus *status);
120 static ptid_t remote_async_wait (ptid_t ptid,
121 struct target_waitstatus *status);
122
123 static void remote_kill (void);
124 static void remote_async_kill (void);
125
126 static int tohex (int nib);
127
128 static void remote_detach (char *args, int from_tty);
129 static void remote_async_detach (char *args, int from_tty);
130
131 static void remote_interrupt (int signo);
132
133 static void remote_interrupt_twice (int signo);
134
135 static void interrupt_query (void);
136
137 static void set_thread (int, int);
138
139 static int remote_thread_alive (ptid_t);
140
141 static void get_offsets (void);
142
143 static long read_frame (char *buf, long sizeof_buf);
144
145 static int remote_insert_breakpoint (CORE_ADDR, char *);
146
147 static int remote_remove_breakpoint (CORE_ADDR, char *);
148
149 static int hexnumlen (ULONGEST num);
150
151 static void init_remote_ops (void);
152
153 static void init_extended_remote_ops (void);
154
155 static void init_remote_cisco_ops (void);
156
157 static struct target_ops remote_cisco_ops;
158
159 static void remote_stop (void);
160
161 static int ishex (int ch, int *val);
162
163 static int stubhex (int ch);
164
165 static int remote_query (int /*char */ , char *, char *, int *);
166
167 static int hexnumstr (char *, ULONGEST);
168
169 static int hexnumnstr (char *, ULONGEST, int);
170
171 static CORE_ADDR remote_address_masked (CORE_ADDR);
172
173 static void print_packet (char *);
174
175 static unsigned long crc32 (unsigned char *, int, unsigned int);
176
177 static void compare_sections_command (char *, int);
178
179 static void packet_command (char *, int);
180
181 static int stub_unpack_int (char *buff, int fieldlength);
182
183 static ptid_t remote_current_thread (ptid_t oldptid);
184
185 static void remote_find_new_threads (void);
186
187 static void record_currthread (int currthread);
188
189 static int fromhex (int a);
190
191 static int hex2bin (const char *hex, char *bin, int);
192
193 static int bin2hex (const char *bin, char *hex, int);
194
195 static int putpkt_binary (char *buf, int cnt);
196
197 static void check_binary_download (CORE_ADDR addr);
198
199 struct packet_config;
200
201 static void show_packet_config_cmd (struct packet_config *config);
202
203 static void update_packet_config (struct packet_config *config);
204
205 /* Define the target subroutine names */
206
207 void open_remote_target (char *, int, struct target_ops *, int);
208
209 void _initialize_remote (void);
210
211 /* */
212
213 static struct target_ops remote_ops;
214
215 static struct target_ops extended_remote_ops;
216
217 /* Temporary target ops. Just like the remote_ops and
218 extended_remote_ops, but with asynchronous support. */
219 static struct target_ops remote_async_ops;
220
221 static struct target_ops extended_async_remote_ops;
222
223 /* FIXME: cagney/1999-09-23: Even though getpkt was called with
224 ``forever'' still use the normal timeout mechanism. This is
225 currently used by the ASYNC code to guarentee that target reads
226 during the initial connect always time-out. Once getpkt has been
227 modified to return a timeout indication and, in turn
228 remote_wait()/wait_for_inferior() have gained a timeout parameter
229 this can go away. */
230 static int wait_forever_enabled_p = 1;
231
232
233 /* This variable chooses whether to send a ^C or a break when the user
234 requests program interruption. Although ^C is usually what remote
235 systems expect, and that is the default here, sometimes a break is
236 preferable instead. */
237
238 static int remote_break;
239
240 /* Descriptor for I/O to remote machine. Initialize it to NULL so that
241 remote_open knows that we don't have a file open when the program
242 starts. */
243 static serial_t remote_desc = NULL;
244
245 /* This is set by the target (thru the 'S' message)
246 to denote that the target is in kernel mode. */
247 static int cisco_kernel_mode = 0;
248
249 /* This variable sets the number of bits in an address that are to be
250 sent in a memory ("M" or "m") packet. Normally, after stripping
251 leading zeros, the entire address would be sent. This variable
252 restricts the address to REMOTE_ADDRESS_SIZE bits. HISTORY: The
253 initial implementation of remote.c restricted the address sent in
254 memory packets to ``host::sizeof long'' bytes - (typically 32
255 bits). Consequently, for 64 bit targets, the upper 32 bits of an
256 address was never sent. Since fixing this bug may cause a break in
257 some remote targets this variable is principly provided to
258 facilitate backward compatibility. */
259
260 static int remote_address_size;
261
262 /* Tempoary to track who currently owns the terminal. See
263 target_async_terminal_* for more details. */
264
265 static int remote_async_terminal_ours_p;
266
267 \f
268 /* This is the size (in chars) of the first response to the ``g''
269 packet. It is used as a heuristic when determining the maximum
270 size of memory-read and memory-write packets. A target will
271 typically only reserve a buffer large enough to hold the ``g''
272 packet. The size does not include packet overhead (headers and
273 trailers). */
274
275 static long actual_register_packet_size;
276
277 /* This is the maximum size (in chars) of a non read/write packet. It
278 is also used as a cap on the size of read/write packets. */
279
280 static long remote_packet_size;
281 /* compatibility. */
282 #define PBUFSIZ (remote_packet_size)
283
284 /* User configurable variables for the number of characters in a
285 memory read/write packet. MIN (PBUFSIZ, g-packet-size) is the
286 default. Some targets need smaller values (fifo overruns, et.al.)
287 and some users need larger values (speed up transfers). The
288 variables ``preferred_*'' (the user request), ``current_*'' (what
289 was actually set) and ``forced_*'' (Positive - a soft limit,
290 negative - a hard limit). */
291
292 struct memory_packet_config
293 {
294 char *name;
295 long size;
296 int fixed_p;
297 };
298
299 /* Compute the current size of a read/write packet. Since this makes
300 use of ``actual_register_packet_size'' the computation is dynamic. */
301
302 static long
303 get_memory_packet_size (struct memory_packet_config *config)
304 {
305 /* NOTE: The somewhat arbitrary 16k comes from the knowledge (folk
306 law?) that some hosts don't cope very well with large alloca()
307 calls. Eventually the alloca() code will be replaced by calls to
308 xmalloc() and make_cleanups() allowing this restriction to either
309 be lifted or removed. */
310 #ifndef MAX_REMOTE_PACKET_SIZE
311 #define MAX_REMOTE_PACKET_SIZE 16384
312 #endif
313 /* NOTE: 16 is just chosen at random. */
314 #ifndef MIN_REMOTE_PACKET_SIZE
315 #define MIN_REMOTE_PACKET_SIZE 16
316 #endif
317 long what_they_get;
318 if (config->fixed_p)
319 {
320 if (config->size <= 0)
321 what_they_get = MAX_REMOTE_PACKET_SIZE;
322 else
323 what_they_get = config->size;
324 }
325 else
326 {
327 what_they_get = remote_packet_size;
328 /* Limit the packet to the size specified by the user. */
329 if (config->size > 0
330 && what_they_get > config->size)
331 what_they_get = config->size;
332 /* Limit it to the size of the targets ``g'' response. */
333 if (actual_register_packet_size > 0
334 && what_they_get > actual_register_packet_size)
335 what_they_get = actual_register_packet_size;
336 }
337 if (what_they_get > MAX_REMOTE_PACKET_SIZE)
338 what_they_get = MAX_REMOTE_PACKET_SIZE;
339 if (what_they_get < MIN_REMOTE_PACKET_SIZE)
340 what_they_get = MIN_REMOTE_PACKET_SIZE;
341 return what_they_get;
342 }
343
344 /* Update the size of a read/write packet. If they user wants
345 something really big then do a sanity check. */
346
347 static void
348 set_memory_packet_size (char *args, struct memory_packet_config *config)
349 {
350 int fixed_p = config->fixed_p;
351 long size = config->size;
352 if (args == NULL)
353 error ("Argument required (integer, `fixed' or `limited').");
354 else if (strcmp (args, "hard") == 0
355 || strcmp (args, "fixed") == 0)
356 fixed_p = 1;
357 else if (strcmp (args, "soft") == 0
358 || strcmp (args, "limit") == 0)
359 fixed_p = 0;
360 else
361 {
362 char *end;
363 size = strtoul (args, &end, 0);
364 if (args == end)
365 error ("Invalid %s (bad syntax).", config->name);
366 #if 0
367 /* Instead of explicitly capping the size of a packet to
368 MAX_REMOTE_PACKET_SIZE or dissallowing it, the user is
369 instead allowed to set the size to something arbitrarily
370 large. */
371 if (size > MAX_REMOTE_PACKET_SIZE)
372 error ("Invalid %s (too large).", config->name);
373 #endif
374 }
375 /* Extra checks? */
376 if (fixed_p && !config->fixed_p)
377 {
378 if (! query ("The target may not be able to correctly handle a %s\n"
379 "of %ld bytes. Change the packet size? ",
380 config->name, size))
381 error ("Packet size not changed.");
382 }
383 /* Update the config. */
384 config->fixed_p = fixed_p;
385 config->size = size;
386 }
387
388 static void
389 show_memory_packet_size (struct memory_packet_config *config)
390 {
391 printf_filtered ("The %s is %ld. ", config->name, config->size);
392 if (config->fixed_p)
393 printf_filtered ("Packets are fixed at %ld bytes.\n",
394 get_memory_packet_size (config));
395 else
396 printf_filtered ("Packets are limited to %ld bytes.\n",
397 get_memory_packet_size (config));
398 }
399
400 static struct memory_packet_config memory_write_packet_config =
401 {
402 "memory-write-packet-size",
403 };
404
405 static void
406 set_memory_write_packet_size (char *args, int from_tty)
407 {
408 set_memory_packet_size (args, &memory_write_packet_config);
409 }
410
411 static void
412 show_memory_write_packet_size (char *args, int from_tty)
413 {
414 show_memory_packet_size (&memory_write_packet_config);
415 }
416
417 static long
418 get_memory_write_packet_size (void)
419 {
420 return get_memory_packet_size (&memory_write_packet_config);
421 }
422
423 static struct memory_packet_config memory_read_packet_config =
424 {
425 "memory-read-packet-size",
426 };
427
428 static void
429 set_memory_read_packet_size (char *args, int from_tty)
430 {
431 set_memory_packet_size (args, &memory_read_packet_config);
432 }
433
434 static void
435 show_memory_read_packet_size (char *args, int from_tty)
436 {
437 show_memory_packet_size (&memory_read_packet_config);
438 }
439
440 static long
441 get_memory_read_packet_size (void)
442 {
443 long size = get_memory_packet_size (&memory_read_packet_config);
444 /* FIXME: cagney/1999-11-07: Functions like getpkt() need to get an
445 extra buffer size argument before the memory read size can be
446 increased beyond PBUFSIZ. */
447 if (size > PBUFSIZ)
448 size = PBUFSIZ;
449 return size;
450 }
451
452 /* Register packet size initialization. Since the bounds change when
453 the architecture changes (namely REGISTER_BYTES) this all needs to
454 be multi-arched. */
455
456 static void
457 register_remote_packet_sizes (void)
458 {
459 REGISTER_GDBARCH_SWAP (remote_packet_size);
460 REGISTER_GDBARCH_SWAP (actual_register_packet_size);
461 }
462
463 static void
464 build_remote_packet_sizes (void)
465 {
466 /* Default maximum number of characters in a packet body. Many
467 remote stubs have a hardwired buffer size of 400 bytes
468 (c.f. BUFMAX in m68k-stub.c and i386-stub.c). BUFMAX-1 is used
469 as the maximum packet-size to ensure that the packet and an extra
470 NUL character can always fit in the buffer. This stops GDB
471 trashing stubs that try to squeeze an extra NUL into what is
472 already a full buffer (As of 1999-12-04 that was most stubs. */
473 remote_packet_size = 400 - 1;
474 /* Should REGISTER_BYTES needs more space than the default, adjust
475 the size accordingly. Remember that each byte is encoded as two
476 characters. 32 is the overhead for the packet header /
477 footer. NOTE: cagney/1999-10-26: I suspect that 8
478 (``$NN:G...#NN'') is a better guess, the below has been padded a
479 little. */
480 if (REGISTER_BYTES > ((remote_packet_size - 32) / 2))
481 remote_packet_size = (REGISTER_BYTES * 2 + 32);
482
483 /* This one is filled in when a ``g'' packet is received. */
484 actual_register_packet_size = 0;
485 }
486 \f
487 /* Generic configuration support for packets the stub optionally
488 supports. Allows the user to specify the use of the packet as well
489 as allowing GDB to auto-detect support in the remote stub. */
490
491 enum packet_support
492 {
493 PACKET_SUPPORT_UNKNOWN = 0,
494 PACKET_ENABLE,
495 PACKET_DISABLE
496 };
497
498 struct packet_config
499 {
500 char *name;
501 char *title;
502 enum cmd_auto_boolean detect;
503 enum packet_support support;
504 };
505
506 /* Analyze a packet's return value and update the packet config
507 accordingly. */
508
509 enum packet_result
510 {
511 PACKET_ERROR,
512 PACKET_OK,
513 PACKET_UNKNOWN
514 };
515
516 static void
517 update_packet_config (struct packet_config *config)
518 {
519 switch (config->detect)
520 {
521 case CMD_AUTO_BOOLEAN_TRUE:
522 config->support = PACKET_ENABLE;
523 break;
524 case CMD_AUTO_BOOLEAN_FALSE:
525 config->support = PACKET_DISABLE;
526 break;
527 case CMD_AUTO_BOOLEAN_AUTO:
528 config->support = PACKET_SUPPORT_UNKNOWN;
529 break;
530 }
531 }
532
533 static void
534 show_packet_config_cmd (struct packet_config *config)
535 {
536 char *support = "internal-error";
537 switch (config->support)
538 {
539 case PACKET_ENABLE:
540 support = "enabled";
541 break;
542 case PACKET_DISABLE:
543 support = "disabled";
544 break;
545 case PACKET_SUPPORT_UNKNOWN:
546 support = "unknown";
547 break;
548 }
549 switch (config->detect)
550 {
551 case CMD_AUTO_BOOLEAN_AUTO:
552 printf_filtered ("Support for remote protocol `%s' (%s) packet is auto-detected, currently %s.\n",
553 config->name, config->title, support);
554 break;
555 case CMD_AUTO_BOOLEAN_TRUE:
556 case CMD_AUTO_BOOLEAN_FALSE:
557 printf_filtered ("Support for remote protocol `%s' (%s) packet is currently %s.\n",
558 config->name, config->title, support);
559 break;
560 }
561 }
562
563 static void
564 add_packet_config_cmd (struct packet_config *config,
565 char *name,
566 char *title,
567 void (*set_func) (char *args, int from_tty,
568 struct cmd_list_element *
569 c),
570 void (*show_func) (char *name,
571 int from_tty),
572 struct cmd_list_element **set_remote_list,
573 struct cmd_list_element **show_remote_list,
574 int legacy)
575 {
576 struct cmd_list_element *set_cmd;
577 struct cmd_list_element *show_cmd;
578 char *set_doc;
579 char *show_doc;
580 char *cmd_name;
581 config->name = name;
582 config->title = title;
583 config->detect = CMD_AUTO_BOOLEAN_AUTO;
584 config->support = PACKET_SUPPORT_UNKNOWN;
585 xasprintf (&set_doc, "Set use of remote protocol `%s' (%s) packet",
586 name, title);
587 xasprintf (&show_doc, "Show current use of remote protocol `%s' (%s) packet",
588 name, title);
589 /* set/show TITLE-packet {auto,on,off} */
590 xasprintf (&cmd_name, "%s-packet", title);
591 set_cmd = add_set_auto_boolean_cmd (cmd_name, class_obscure,
592 &config->detect, set_doc,
593 set_remote_list);
594 set_cmd->function.sfunc = set_func;
595 show_cmd = add_cmd (cmd_name, class_obscure, show_func, show_doc,
596 show_remote_list);
597 /* set/show remote NAME-packet {auto,on,off} -- legacy */
598 if (legacy)
599 {
600 char *legacy_name;
601 xasprintf (&legacy_name, "%s-packet", name);
602 add_alias_cmd (legacy_name, cmd_name, class_obscure, 0,
603 set_remote_list);
604 add_alias_cmd (legacy_name, cmd_name, class_obscure, 0,
605 show_remote_list);
606 }
607 }
608
609 static enum packet_result
610 packet_ok (const char *buf, struct packet_config *config)
611 {
612 if (buf[0] != '\0')
613 {
614 /* The stub recognized the packet request. Check that the
615 operation succeeded. */
616 switch (config->support)
617 {
618 case PACKET_SUPPORT_UNKNOWN:
619 if (remote_debug)
620 fprintf_unfiltered (gdb_stdlog,
621 "Packet %s (%s) is supported\n",
622 config->name, config->title);
623 config->support = PACKET_ENABLE;
624 break;
625 case PACKET_DISABLE:
626 internal_error (__FILE__, __LINE__,
627 "packet_ok: attempt to use a disabled packet");
628 break;
629 case PACKET_ENABLE:
630 break;
631 }
632 if (buf[0] == 'O' && buf[1] == 'K' && buf[2] == '\0')
633 /* "OK" - definitly OK. */
634 return PACKET_OK;
635 if (buf[0] == 'E'
636 && isxdigit (buf[1]) && isxdigit (buf[2])
637 && buf[3] == '\0')
638 /* "Enn" - definitly an error. */
639 return PACKET_ERROR;
640 /* The packet may or may not be OK. Just assume it is */
641 return PACKET_OK;
642 }
643 else
644 {
645 /* The stub does not support the packet. */
646 switch (config->support)
647 {
648 case PACKET_ENABLE:
649 if (config->detect == CMD_AUTO_BOOLEAN_AUTO)
650 /* If the stub previously indicated that the packet was
651 supported then there is a protocol error.. */
652 error ("Protocol error: %s (%s) conflicting enabled responses.",
653 config->name, config->title);
654 else
655 /* The user set it wrong. */
656 error ("Enabled packet %s (%s) not recognized by stub",
657 config->name, config->title);
658 break;
659 case PACKET_SUPPORT_UNKNOWN:
660 if (remote_debug)
661 fprintf_unfiltered (gdb_stdlog,
662 "Packet %s (%s) is NOT supported\n",
663 config->name, config->title);
664 config->support = PACKET_DISABLE;
665 break;
666 case PACKET_DISABLE:
667 break;
668 }
669 return PACKET_UNKNOWN;
670 }
671 }
672
673 /* Should we try the 'e' (step over range) request? */
674 static struct packet_config remote_protocol_e;
675
676 static void
677 set_remote_protocol_e_packet_cmd (char *args, int from_tty,
678 struct cmd_list_element *c)
679 {
680 update_packet_config (&remote_protocol_e);
681 }
682
683 static void
684 show_remote_protocol_e_packet_cmd (char *args, int from_tty)
685 {
686 show_packet_config_cmd (&remote_protocol_e);
687 }
688
689
690 /* Should we try the 'E' (step over range / w signal #) request? */
691 static struct packet_config remote_protocol_E;
692
693 static void
694 set_remote_protocol_E_packet_cmd (char *args, int from_tty,
695 struct cmd_list_element *c)
696 {
697 update_packet_config (&remote_protocol_E);
698 }
699
700 static void
701 show_remote_protocol_E_packet_cmd (char *args, int from_tty)
702 {
703 show_packet_config_cmd (&remote_protocol_E);
704 }
705
706
707 /* Should we try the 'P' (set register) request? */
708
709 static struct packet_config remote_protocol_P;
710
711 static void
712 set_remote_protocol_P_packet_cmd (char *args, int from_tty,
713 struct cmd_list_element *c)
714 {
715 update_packet_config (&remote_protocol_P);
716 }
717
718 static void
719 show_remote_protocol_P_packet_cmd (char *args, int from_tty)
720 {
721 show_packet_config_cmd (&remote_protocol_P);
722 }
723
724 /* Should we try one of the 'Z' requests? */
725
726 enum Z_packet_type
727 {
728 Z_PACKET_SOFTWARE_BP,
729 Z_PACKET_HARDWARE_BP,
730 Z_PACKET_WRITE_WP,
731 Z_PACKET_READ_WP,
732 Z_PACKET_ACCESS_WP,
733 NR_Z_PACKET_TYPES
734 };
735
736 static struct packet_config remote_protocol_Z[NR_Z_PACKET_TYPES];
737
738 /* FIXME: Instead of having all these boiler plate functions, the
739 command callback should include a context argument. */
740
741 static void
742 set_remote_protocol_Z_software_bp_packet_cmd (char *args, int from_tty,
743 struct cmd_list_element *c)
744 {
745 update_packet_config (&remote_protocol_Z[Z_PACKET_SOFTWARE_BP]);
746 }
747
748 static void
749 show_remote_protocol_Z_software_bp_packet_cmd (char *args, int from_tty)
750 {
751 show_packet_config_cmd (&remote_protocol_Z[Z_PACKET_SOFTWARE_BP]);
752 }
753
754 static void
755 set_remote_protocol_Z_hardware_bp_packet_cmd (char *args, int from_tty,
756 struct cmd_list_element *c)
757 {
758 update_packet_config (&remote_protocol_Z[Z_PACKET_HARDWARE_BP]);
759 }
760
761 static void
762 show_remote_protocol_Z_hardware_bp_packet_cmd (char *args, int from_tty)
763 {
764 show_packet_config_cmd (&remote_protocol_Z[Z_PACKET_HARDWARE_BP]);
765 }
766
767 static void
768 set_remote_protocol_Z_write_wp_packet_cmd (char *args, int from_tty,
769 struct cmd_list_element *c)
770 {
771 update_packet_config (&remote_protocol_Z[Z_PACKET_WRITE_WP]);
772 }
773
774 static void
775 show_remote_protocol_Z_write_wp_packet_cmd (char *args, int from_tty)
776 {
777 show_packet_config_cmd (&remote_protocol_Z[Z_PACKET_WRITE_WP]);
778 }
779
780 static void
781 set_remote_protocol_Z_read_wp_packet_cmd (char *args, int from_tty,
782 struct cmd_list_element *c)
783 {
784 update_packet_config (&remote_protocol_Z[Z_PACKET_READ_WP]);
785 }
786
787 static void
788 show_remote_protocol_Z_read_wp_packet_cmd (char *args, int from_tty)
789 {
790 show_packet_config_cmd (&remote_protocol_Z[Z_PACKET_READ_WP]);
791 }
792
793 static void
794 set_remote_protocol_Z_access_wp_packet_cmd (char *args, int from_tty,
795 struct cmd_list_element *c)
796 {
797 update_packet_config (&remote_protocol_Z[Z_PACKET_ACCESS_WP]);
798 }
799
800 static void
801 show_remote_protocol_Z_access_wp_packet_cmd (char *args, int from_tty)
802 {
803 show_packet_config_cmd (&remote_protocol_Z[Z_PACKET_ACCESS_WP]);
804 }
805
806 /* For compatibility with older distributions. Provide a ``set remote
807 Z-packet ...'' command that updates all the Z packet types. */
808
809 static enum cmd_auto_boolean remote_Z_packet_detect;
810
811 static void
812 set_remote_protocol_Z_packet_cmd (char *args, int from_tty,
813 struct cmd_list_element *c)
814 {
815 int i;
816 for (i = 0; i < NR_Z_PACKET_TYPES; i++)
817 {
818 remote_protocol_Z[i].detect = remote_Z_packet_detect;
819 update_packet_config (&remote_protocol_Z[i]);
820 }
821 }
822
823 static void
824 show_remote_protocol_Z_packet_cmd (char *args, int from_tty)
825 {
826 int i;
827 for (i = 0; i < NR_Z_PACKET_TYPES; i++)
828 {
829 show_packet_config_cmd (&remote_protocol_Z[i]);
830 }
831 }
832
833 /* Should we try the 'X' (remote binary download) packet?
834
835 This variable (available to the user via "set remote X-packet")
836 dictates whether downloads are sent in binary (via the 'X' packet).
837 We assume that the stub can, and attempt to do it. This will be
838 cleared if the stub does not understand it. This switch is still
839 needed, though in cases when the packet is supported in the stub,
840 but the connection does not allow it (i.e., 7-bit serial connection
841 only). */
842
843 static struct packet_config remote_protocol_binary_download;
844
845 /* Should we try the 'ThreadInfo' query packet?
846
847 This variable (NOT available to the user: auto-detect only!)
848 determines whether GDB will use the new, simpler "ThreadInfo"
849 query or the older, more complex syntax for thread queries.
850 This is an auto-detect variable (set to true at each connect,
851 and set to false when the target fails to recognize it). */
852
853 static int use_threadinfo_query;
854 static int use_threadextra_query;
855
856 static void
857 set_remote_protocol_binary_download_cmd (char *args,
858 int from_tty,
859 struct cmd_list_element *c)
860 {
861 update_packet_config (&remote_protocol_binary_download);
862 }
863
864 static void
865 show_remote_protocol_binary_download_cmd (char *args,
866 int from_tty)
867 {
868 show_packet_config_cmd (&remote_protocol_binary_download);
869 }
870
871
872 /* Tokens for use by the asynchronous signal handlers for SIGINT */
873 PTR sigint_remote_twice_token;
874 PTR sigint_remote_token;
875
876 /* These are pointers to hook functions that may be set in order to
877 modify resume/wait behavior for a particular architecture. */
878
879 void (*target_resume_hook) (void);
880 void (*target_wait_loop_hook) (void);
881 \f
882
883
884 /* These are the threads which we last sent to the remote system.
885 -1 for all or -2 for not sent yet. */
886 static int general_thread;
887 static int continue_thread;
888
889 /* Call this function as a result of
890 1) A halt indication (T packet) containing a thread id
891 2) A direct query of currthread
892 3) Successful execution of set thread
893 */
894
895 static void
896 record_currthread (int currthread)
897 {
898 general_thread = currthread;
899
900 /* If this is a new thread, add it to GDB's thread list.
901 If we leave it up to WFI to do this, bad things will happen. */
902 if (!in_thread_list (pid_to_ptid (currthread)))
903 {
904 add_thread (pid_to_ptid (currthread));
905 #ifdef UI_OUT
906 ui_out_text (uiout, "[New ");
907 ui_out_text (uiout, target_pid_to_str (pid_to_ptid (currthread)));
908 ui_out_text (uiout, "]\n");
909 #else
910 printf_filtered ("[New %s]\n",
911 target_pid_to_str (pid_to_ptid (currthread)));
912 #endif
913 }
914 }
915
916 #define MAGIC_NULL_PID 42000
917
918 static void
919 set_thread (int th, int gen)
920 {
921 char *buf = alloca (PBUFSIZ);
922 int state = gen ? general_thread : continue_thread;
923
924 if (state == th)
925 return;
926
927 buf[0] = 'H';
928 buf[1] = gen ? 'g' : 'c';
929 if (th == MAGIC_NULL_PID)
930 {
931 buf[2] = '0';
932 buf[3] = '\0';
933 }
934 else if (th < 0)
935 sprintf (&buf[2], "-%x", -th);
936 else
937 sprintf (&buf[2], "%x", th);
938 putpkt (buf);
939 getpkt (buf, PBUFSIZ, 0);
940 if (gen)
941 general_thread = th;
942 else
943 continue_thread = th;
944 }
945 \f
946 /* Return nonzero if the thread TH is still alive on the remote system. */
947
948 static int
949 remote_thread_alive (ptid_t ptid)
950 {
951 int tid = PIDGET (ptid);
952 char buf[16];
953
954 if (tid < 0)
955 sprintf (buf, "T-%08x", -tid);
956 else
957 sprintf (buf, "T%08x", tid);
958 putpkt (buf);
959 getpkt (buf, sizeof (buf), 0);
960 return (buf[0] == 'O' && buf[1] == 'K');
961 }
962
963 /* About these extended threadlist and threadinfo packets. They are
964 variable length packets but, the fields within them are often fixed
965 length. They are redundent enough to send over UDP as is the
966 remote protocol in general. There is a matching unit test module
967 in libstub. */
968
969 #define OPAQUETHREADBYTES 8
970
971 /* a 64 bit opaque identifier */
972 typedef unsigned char threadref[OPAQUETHREADBYTES];
973
974 /* WARNING: This threadref data structure comes from the remote O.S., libstub
975 protocol encoding, and remote.c. it is not particularly changable */
976
977 /* Right now, the internal structure is int. We want it to be bigger.
978 Plan to fix this.
979 */
980
981 typedef int gdb_threadref; /* internal GDB thread reference */
982
983 /* gdb_ext_thread_info is an internal GDB data structure which is
984 equivalint to the reply of the remote threadinfo packet */
985
986 struct gdb_ext_thread_info
987 {
988 threadref threadid; /* External form of thread reference */
989 int active; /* Has state interesting to GDB? , regs, stack */
990 char display[256]; /* Brief state display, name, blocked/syspended */
991 char shortname[32]; /* To be used to name threads */
992 char more_display[256]; /* Long info, statistics, queue depth, whatever */
993 };
994
995 /* The volume of remote transfers can be limited by submitting
996 a mask containing bits specifying the desired information.
997 Use a union of these values as the 'selection' parameter to
998 get_thread_info. FIXME: Make these TAG names more thread specific.
999 */
1000
1001 #define TAG_THREADID 1
1002 #define TAG_EXISTS 2
1003 #define TAG_DISPLAY 4
1004 #define TAG_THREADNAME 8
1005 #define TAG_MOREDISPLAY 16
1006
1007 #define BUF_THREAD_ID_SIZE (OPAQUETHREADBYTES*2)
1008
1009 char *unpack_varlen_hex (char *buff, int *result);
1010
1011 static char *unpack_nibble (char *buf, int *val);
1012
1013 static char *pack_nibble (char *buf, int nibble);
1014
1015 static char *pack_hex_byte (char *pkt, int /*unsigned char */ byte);
1016
1017 static char *unpack_byte (char *buf, int *value);
1018
1019 static char *pack_int (char *buf, int value);
1020
1021 static char *unpack_int (char *buf, int *value);
1022
1023 static char *unpack_string (char *src, char *dest, int length);
1024
1025 static char *pack_threadid (char *pkt, threadref * id);
1026
1027 static char *unpack_threadid (char *inbuf, threadref * id);
1028
1029 void int_to_threadref (threadref * id, int value);
1030
1031 static int threadref_to_int (threadref * ref);
1032
1033 static void copy_threadref (threadref * dest, threadref * src);
1034
1035 static int threadmatch (threadref * dest, threadref * src);
1036
1037 static char *pack_threadinfo_request (char *pkt, int mode, threadref * id);
1038
1039 static int remote_unpack_thread_info_response (char *pkt,
1040 threadref * expectedref,
1041 struct gdb_ext_thread_info
1042 *info);
1043
1044
1045 static int remote_get_threadinfo (threadref * threadid, int fieldset, /*TAG mask */
1046 struct gdb_ext_thread_info *info);
1047
1048 static int adapt_remote_get_threadinfo (gdb_threadref * ref,
1049 int selection,
1050 struct gdb_ext_thread_info *info);
1051
1052 static char *pack_threadlist_request (char *pkt, int startflag,
1053 int threadcount,
1054 threadref * nextthread);
1055
1056 static int parse_threadlist_response (char *pkt,
1057 int result_limit,
1058 threadref * original_echo,
1059 threadref * resultlist, int *doneflag);
1060
1061 static int remote_get_threadlist (int startflag,
1062 threadref * nextthread,
1063 int result_limit,
1064 int *done,
1065 int *result_count, threadref * threadlist);
1066
1067 typedef int (*rmt_thread_action) (threadref * ref, void *context);
1068
1069 static int remote_threadlist_iterator (rmt_thread_action stepfunction,
1070 void *context, int looplimit);
1071
1072 static int remote_newthread_step (threadref * ref, void *context);
1073
1074 /* encode 64 bits in 16 chars of hex */
1075
1076 static const char hexchars[] = "0123456789abcdef";
1077
1078 static int
1079 ishex (int ch, int *val)
1080 {
1081 if ((ch >= 'a') && (ch <= 'f'))
1082 {
1083 *val = ch - 'a' + 10;
1084 return 1;
1085 }
1086 if ((ch >= 'A') && (ch <= 'F'))
1087 {
1088 *val = ch - 'A' + 10;
1089 return 1;
1090 }
1091 if ((ch >= '0') && (ch <= '9'))
1092 {
1093 *val = ch - '0';
1094 return 1;
1095 }
1096 return 0;
1097 }
1098
1099 static int
1100 stubhex (int ch)
1101 {
1102 if (ch >= 'a' && ch <= 'f')
1103 return ch - 'a' + 10;
1104 if (ch >= '0' && ch <= '9')
1105 return ch - '0';
1106 if (ch >= 'A' && ch <= 'F')
1107 return ch - 'A' + 10;
1108 return -1;
1109 }
1110
1111 static int
1112 stub_unpack_int (char *buff, int fieldlength)
1113 {
1114 int nibble;
1115 int retval = 0;
1116
1117 while (fieldlength)
1118 {
1119 nibble = stubhex (*buff++);
1120 retval |= nibble;
1121 fieldlength--;
1122 if (fieldlength)
1123 retval = retval << 4;
1124 }
1125 return retval;
1126 }
1127
1128 char *
1129 unpack_varlen_hex (char *buff, /* packet to parse */
1130 int *result)
1131 {
1132 int nibble;
1133 int retval = 0;
1134
1135 while (ishex (*buff, &nibble))
1136 {
1137 buff++;
1138 retval = retval << 4;
1139 retval |= nibble & 0x0f;
1140 }
1141 *result = retval;
1142 return buff;
1143 }
1144
1145 static char *
1146 unpack_nibble (char *buf, int *val)
1147 {
1148 ishex (*buf++, val);
1149 return buf;
1150 }
1151
1152 static char *
1153 pack_nibble (char *buf, int nibble)
1154 {
1155 *buf++ = hexchars[(nibble & 0x0f)];
1156 return buf;
1157 }
1158
1159 static char *
1160 pack_hex_byte (char *pkt, int byte)
1161 {
1162 *pkt++ = hexchars[(byte >> 4) & 0xf];
1163 *pkt++ = hexchars[(byte & 0xf)];
1164 return pkt;
1165 }
1166
1167 static char *
1168 unpack_byte (char *buf, int *value)
1169 {
1170 *value = stub_unpack_int (buf, 2);
1171 return buf + 2;
1172 }
1173
1174 static char *
1175 pack_int (char *buf, int value)
1176 {
1177 buf = pack_hex_byte (buf, (value >> 24) & 0xff);
1178 buf = pack_hex_byte (buf, (value >> 16) & 0xff);
1179 buf = pack_hex_byte (buf, (value >> 8) & 0x0ff);
1180 buf = pack_hex_byte (buf, (value & 0xff));
1181 return buf;
1182 }
1183
1184 static char *
1185 unpack_int (char *buf, int *value)
1186 {
1187 *value = stub_unpack_int (buf, 8);
1188 return buf + 8;
1189 }
1190
1191 #if 0 /* currently unused, uncomment when needed */
1192 static char *pack_string (char *pkt, char *string);
1193
1194 static char *
1195 pack_string (char *pkt, char *string)
1196 {
1197 char ch;
1198 int len;
1199
1200 len = strlen (string);
1201 if (len > 200)
1202 len = 200; /* Bigger than most GDB packets, junk??? */
1203 pkt = pack_hex_byte (pkt, len);
1204 while (len-- > 0)
1205 {
1206 ch = *string++;
1207 if ((ch == '\0') || (ch == '#'))
1208 ch = '*'; /* Protect encapsulation */
1209 *pkt++ = ch;
1210 }
1211 return pkt;
1212 }
1213 #endif /* 0 (unused) */
1214
1215 static char *
1216 unpack_string (char *src, char *dest, int length)
1217 {
1218 while (length--)
1219 *dest++ = *src++;
1220 *dest = '\0';
1221 return src;
1222 }
1223
1224 static char *
1225 pack_threadid (char *pkt, threadref *id)
1226 {
1227 char *limit;
1228 unsigned char *altid;
1229
1230 altid = (unsigned char *) id;
1231 limit = pkt + BUF_THREAD_ID_SIZE;
1232 while (pkt < limit)
1233 pkt = pack_hex_byte (pkt, *altid++);
1234 return pkt;
1235 }
1236
1237
1238 static char *
1239 unpack_threadid (char *inbuf, threadref *id)
1240 {
1241 char *altref;
1242 char *limit = inbuf + BUF_THREAD_ID_SIZE;
1243 int x, y;
1244
1245 altref = (char *) id;
1246
1247 while (inbuf < limit)
1248 {
1249 x = stubhex (*inbuf++);
1250 y = stubhex (*inbuf++);
1251 *altref++ = (x << 4) | y;
1252 }
1253 return inbuf;
1254 }
1255
1256 /* Externally, threadrefs are 64 bits but internally, they are still
1257 ints. This is due to a mismatch of specifications. We would like
1258 to use 64bit thread references internally. This is an adapter
1259 function. */
1260
1261 void
1262 int_to_threadref (threadref *id, int value)
1263 {
1264 unsigned char *scan;
1265
1266 scan = (unsigned char *) id;
1267 {
1268 int i = 4;
1269 while (i--)
1270 *scan++ = 0;
1271 }
1272 *scan++ = (value >> 24) & 0xff;
1273 *scan++ = (value >> 16) & 0xff;
1274 *scan++ = (value >> 8) & 0xff;
1275 *scan++ = (value & 0xff);
1276 }
1277
1278 static int
1279 threadref_to_int (threadref *ref)
1280 {
1281 int i, value = 0;
1282 unsigned char *scan;
1283
1284 scan = (char *) ref;
1285 scan += 4;
1286 i = 4;
1287 while (i-- > 0)
1288 value = (value << 8) | ((*scan++) & 0xff);
1289 return value;
1290 }
1291
1292 static void
1293 copy_threadref (threadref *dest, threadref *src)
1294 {
1295 int i;
1296 unsigned char *csrc, *cdest;
1297
1298 csrc = (unsigned char *) src;
1299 cdest = (unsigned char *) dest;
1300 i = 8;
1301 while (i--)
1302 *cdest++ = *csrc++;
1303 }
1304
1305 static int
1306 threadmatch (threadref *dest, threadref *src)
1307 {
1308 /* things are broken right now, so just assume we got a match */
1309 #if 0
1310 unsigned char *srcp, *destp;
1311 int i, result;
1312 srcp = (char *) src;
1313 destp = (char *) dest;
1314
1315 result = 1;
1316 while (i-- > 0)
1317 result &= (*srcp++ == *destp++) ? 1 : 0;
1318 return result;
1319 #endif
1320 return 1;
1321 }
1322
1323 /*
1324 threadid:1, # always request threadid
1325 context_exists:2,
1326 display:4,
1327 unique_name:8,
1328 more_display:16
1329 */
1330
1331 /* Encoding: 'Q':8,'P':8,mask:32,threadid:64 */
1332
1333 static char *
1334 pack_threadinfo_request (char *pkt, int mode, threadref *id)
1335 {
1336 *pkt++ = 'q'; /* Info Query */
1337 *pkt++ = 'P'; /* process or thread info */
1338 pkt = pack_int (pkt, mode); /* mode */
1339 pkt = pack_threadid (pkt, id); /* threadid */
1340 *pkt = '\0'; /* terminate */
1341 return pkt;
1342 }
1343
1344 /* These values tag the fields in a thread info response packet */
1345 /* Tagging the fields allows us to request specific fields and to
1346 add more fields as time goes by */
1347
1348 #define TAG_THREADID 1 /* Echo the thread identifier */
1349 #define TAG_EXISTS 2 /* Is this process defined enough to
1350 fetch registers and its stack */
1351 #define TAG_DISPLAY 4 /* A short thing maybe to put on a window */
1352 #define TAG_THREADNAME 8 /* string, maps 1-to-1 with a thread is */
1353 #define TAG_MOREDISPLAY 16 /* Whatever the kernel wants to say about
1354 the process */
1355
1356 static int
1357 remote_unpack_thread_info_response (char *pkt, threadref *expectedref,
1358 struct gdb_ext_thread_info *info)
1359 {
1360 int mask, length;
1361 unsigned int tag;
1362 threadref ref;
1363 char *limit = pkt + PBUFSIZ; /* plausable parsing limit */
1364 int retval = 1;
1365
1366 /* info->threadid = 0; FIXME: implement zero_threadref */
1367 info->active = 0;
1368 info->display[0] = '\0';
1369 info->shortname[0] = '\0';
1370 info->more_display[0] = '\0';
1371
1372 /* Assume the characters indicating the packet type have been stripped */
1373 pkt = unpack_int (pkt, &mask); /* arg mask */
1374 pkt = unpack_threadid (pkt, &ref);
1375
1376 if (mask == 0)
1377 warning ("Incomplete response to threadinfo request\n");
1378 if (!threadmatch (&ref, expectedref))
1379 { /* This is an answer to a different request */
1380 warning ("ERROR RMT Thread info mismatch\n");
1381 return 0;
1382 }
1383 copy_threadref (&info->threadid, &ref);
1384
1385 /* Loop on tagged fields , try to bail if somthing goes wrong */
1386
1387 while ((pkt < limit) && mask && *pkt) /* packets are terminated with nulls */
1388 {
1389 pkt = unpack_int (pkt, &tag); /* tag */
1390 pkt = unpack_byte (pkt, &length); /* length */
1391 if (!(tag & mask)) /* tags out of synch with mask */
1392 {
1393 warning ("ERROR RMT: threadinfo tag mismatch\n");
1394 retval = 0;
1395 break;
1396 }
1397 if (tag == TAG_THREADID)
1398 {
1399 if (length != 16)
1400 {
1401 warning ("ERROR RMT: length of threadid is not 16\n");
1402 retval = 0;
1403 break;
1404 }
1405 pkt = unpack_threadid (pkt, &ref);
1406 mask = mask & ~TAG_THREADID;
1407 continue;
1408 }
1409 if (tag == TAG_EXISTS)
1410 {
1411 info->active = stub_unpack_int (pkt, length);
1412 pkt += length;
1413 mask = mask & ~(TAG_EXISTS);
1414 if (length > 8)
1415 {
1416 warning ("ERROR RMT: 'exists' length too long\n");
1417 retval = 0;
1418 break;
1419 }
1420 continue;
1421 }
1422 if (tag == TAG_THREADNAME)
1423 {
1424 pkt = unpack_string (pkt, &info->shortname[0], length);
1425 mask = mask & ~TAG_THREADNAME;
1426 continue;
1427 }
1428 if (tag == TAG_DISPLAY)
1429 {
1430 pkt = unpack_string (pkt, &info->display[0], length);
1431 mask = mask & ~TAG_DISPLAY;
1432 continue;
1433 }
1434 if (tag == TAG_MOREDISPLAY)
1435 {
1436 pkt = unpack_string (pkt, &info->more_display[0], length);
1437 mask = mask & ~TAG_MOREDISPLAY;
1438 continue;
1439 }
1440 warning ("ERROR RMT: unknown thread info tag\n");
1441 break; /* Not a tag we know about */
1442 }
1443 return retval;
1444 }
1445
1446 static int
1447 remote_get_threadinfo (threadref *threadid, int fieldset, /* TAG mask */
1448 struct gdb_ext_thread_info *info)
1449 {
1450 int result;
1451 char *threadinfo_pkt = alloca (PBUFSIZ);
1452
1453 pack_threadinfo_request (threadinfo_pkt, fieldset, threadid);
1454 putpkt (threadinfo_pkt);
1455 getpkt (threadinfo_pkt, PBUFSIZ, 0);
1456 result = remote_unpack_thread_info_response (threadinfo_pkt + 2, threadid,
1457 info);
1458 return result;
1459 }
1460
1461 /* Unfortunately, 61 bit thread-ids are bigger than the internal
1462 representation of a threadid. */
1463
1464 static int
1465 adapt_remote_get_threadinfo (gdb_threadref *ref, int selection,
1466 struct gdb_ext_thread_info *info)
1467 {
1468 threadref lclref;
1469
1470 int_to_threadref (&lclref, *ref);
1471 return remote_get_threadinfo (&lclref, selection, info);
1472 }
1473
1474 /* Format: i'Q':8,i"L":8,initflag:8,batchsize:16,lastthreadid:32 */
1475
1476 static char *
1477 pack_threadlist_request (char *pkt, int startflag, int threadcount,
1478 threadref *nextthread)
1479 {
1480 *pkt++ = 'q'; /* info query packet */
1481 *pkt++ = 'L'; /* Process LIST or threadLIST request */
1482 pkt = pack_nibble (pkt, startflag); /* initflag 1 bytes */
1483 pkt = pack_hex_byte (pkt, threadcount); /* threadcount 2 bytes */
1484 pkt = pack_threadid (pkt, nextthread); /* 64 bit thread identifier */
1485 *pkt = '\0';
1486 return pkt;
1487 }
1488
1489 /* Encoding: 'q':8,'M':8,count:16,done:8,argthreadid:64,(threadid:64)* */
1490
1491 static int
1492 parse_threadlist_response (char *pkt, int result_limit,
1493 threadref *original_echo, threadref *resultlist,
1494 int *doneflag)
1495 {
1496 char *limit;
1497 int count, resultcount, done;
1498
1499 resultcount = 0;
1500 /* Assume the 'q' and 'M chars have been stripped. */
1501 limit = pkt + (PBUFSIZ - BUF_THREAD_ID_SIZE); /* done parse past here */
1502 pkt = unpack_byte (pkt, &count); /* count field */
1503 pkt = unpack_nibble (pkt, &done);
1504 /* The first threadid is the argument threadid. */
1505 pkt = unpack_threadid (pkt, original_echo); /* should match query packet */
1506 while ((count-- > 0) && (pkt < limit))
1507 {
1508 pkt = unpack_threadid (pkt, resultlist++);
1509 if (resultcount++ >= result_limit)
1510 break;
1511 }
1512 if (doneflag)
1513 *doneflag = done;
1514 return resultcount;
1515 }
1516
1517 static int
1518 remote_get_threadlist (int startflag, threadref *nextthread, int result_limit,
1519 int *done, int *result_count, threadref *threadlist)
1520 {
1521 static threadref echo_nextthread;
1522 char *threadlist_packet = alloca (PBUFSIZ);
1523 char *t_response = alloca (PBUFSIZ);
1524 int result = 1;
1525
1526 /* Trancate result limit to be smaller than the packet size */
1527 if ((((result_limit + 1) * BUF_THREAD_ID_SIZE) + 10) >= PBUFSIZ)
1528 result_limit = (PBUFSIZ / BUF_THREAD_ID_SIZE) - 2;
1529
1530 pack_threadlist_request (threadlist_packet,
1531 startflag, result_limit, nextthread);
1532 putpkt (threadlist_packet);
1533 getpkt (t_response, PBUFSIZ, 0);
1534
1535 *result_count =
1536 parse_threadlist_response (t_response + 2, result_limit, &echo_nextthread,
1537 threadlist, done);
1538
1539 if (!threadmatch (&echo_nextthread, nextthread))
1540 {
1541 /* FIXME: This is a good reason to drop the packet */
1542 /* Possably, there is a duplicate response */
1543 /* Possabilities :
1544 retransmit immediatly - race conditions
1545 retransmit after timeout - yes
1546 exit
1547 wait for packet, then exit
1548 */
1549 warning ("HMM: threadlist did not echo arg thread, dropping it\n");
1550 return 0; /* I choose simply exiting */
1551 }
1552 if (*result_count <= 0)
1553 {
1554 if (*done != 1)
1555 {
1556 warning ("RMT ERROR : failed to get remote thread list\n");
1557 result = 0;
1558 }
1559 return result; /* break; */
1560 }
1561 if (*result_count > result_limit)
1562 {
1563 *result_count = 0;
1564 warning ("RMT ERROR: threadlist response longer than requested\n");
1565 return 0;
1566 }
1567 return result;
1568 }
1569
1570 /* This is the interface between remote and threads, remotes upper interface */
1571
1572 /* remote_find_new_threads retrieves the thread list and for each
1573 thread in the list, looks up the thread in GDB's internal list,
1574 ading the thread if it does not already exist. This involves
1575 getting partial thread lists from the remote target so, polling the
1576 quit_flag is required. */
1577
1578
1579 /* About this many threadisds fit in a packet. */
1580
1581 #define MAXTHREADLISTRESULTS 32
1582
1583 static int
1584 remote_threadlist_iterator (rmt_thread_action stepfunction, void *context,
1585 int looplimit)
1586 {
1587 int done, i, result_count;
1588 int startflag = 1;
1589 int result = 1;
1590 int loopcount = 0;
1591 static threadref nextthread;
1592 static threadref resultthreadlist[MAXTHREADLISTRESULTS];
1593
1594 done = 0;
1595 while (!done)
1596 {
1597 if (loopcount++ > looplimit)
1598 {
1599 result = 0;
1600 warning ("Remote fetch threadlist -infinite loop-\n");
1601 break;
1602 }
1603 if (!remote_get_threadlist (startflag, &nextthread, MAXTHREADLISTRESULTS,
1604 &done, &result_count, resultthreadlist))
1605 {
1606 result = 0;
1607 break;
1608 }
1609 /* clear for later iterations */
1610 startflag = 0;
1611 /* Setup to resume next batch of thread references, set nextthread. */
1612 if (result_count >= 1)
1613 copy_threadref (&nextthread, &resultthreadlist[result_count - 1]);
1614 i = 0;
1615 while (result_count--)
1616 if (!(result = (*stepfunction) (&resultthreadlist[i++], context)))
1617 break;
1618 }
1619 return result;
1620 }
1621
1622 static int
1623 remote_newthread_step (threadref *ref, void *context)
1624 {
1625 ptid_t ptid;
1626
1627 ptid = pid_to_ptid (threadref_to_int (ref));
1628
1629 if (!in_thread_list (ptid))
1630 add_thread (ptid);
1631 return 1; /* continue iterator */
1632 }
1633
1634 #define CRAZY_MAX_THREADS 1000
1635
1636 static ptid_t
1637 remote_current_thread (ptid_t oldpid)
1638 {
1639 char *buf = alloca (PBUFSIZ);
1640
1641 putpkt ("qC");
1642 getpkt (buf, PBUFSIZ, 0);
1643 if (buf[0] == 'Q' && buf[1] == 'C')
1644 return pid_to_ptid (strtol (&buf[2], NULL, 16));
1645 else
1646 return oldpid;
1647 }
1648
1649 /* Find new threads for info threads command.
1650 * Original version, using John Metzler's thread protocol.
1651 */
1652
1653 static void
1654 remote_find_new_threads (void)
1655 {
1656 remote_threadlist_iterator (remote_newthread_step, 0,
1657 CRAZY_MAX_THREADS);
1658 if (PIDGET (inferior_ptid) == MAGIC_NULL_PID) /* ack ack ack */
1659 inferior_ptid = remote_current_thread (inferior_ptid);
1660 }
1661
1662 /*
1663 * Find all threads for info threads command.
1664 * Uses new thread protocol contributed by Cisco.
1665 * Falls back and attempts to use the older method (above)
1666 * if the target doesn't respond to the new method.
1667 */
1668
1669 static void
1670 remote_threads_info (void)
1671 {
1672 char *buf = alloca (PBUFSIZ);
1673 char *bufp;
1674 int tid;
1675
1676 if (remote_desc == 0) /* paranoia */
1677 error ("Command can only be used when connected to the remote target.");
1678
1679 if (use_threadinfo_query)
1680 {
1681 putpkt ("qfThreadInfo");
1682 bufp = buf;
1683 getpkt (bufp, PBUFSIZ, 0);
1684 if (bufp[0] != '\0') /* q packet recognized */
1685 {
1686 while (*bufp++ == 'm') /* reply contains one or more TID */
1687 {
1688 do
1689 {
1690 tid = strtol (bufp, &bufp, 16);
1691 if (tid != 0 && !in_thread_list (pid_to_ptid (tid)))
1692 add_thread (pid_to_ptid (tid));
1693 }
1694 while (*bufp++ == ','); /* comma-separated list */
1695 putpkt ("qsThreadInfo");
1696 bufp = buf;
1697 getpkt (bufp, PBUFSIZ, 0);
1698 }
1699 return; /* done */
1700 }
1701 }
1702
1703 /* Else fall back to old method based on jmetzler protocol. */
1704 use_threadinfo_query = 0;
1705 remote_find_new_threads ();
1706 return;
1707 }
1708
1709 /*
1710 * Collect a descriptive string about the given thread.
1711 * The target may say anything it wants to about the thread
1712 * (typically info about its blocked / runnable state, name, etc.).
1713 * This string will appear in the info threads display.
1714 *
1715 * Optional: targets are not required to implement this function.
1716 */
1717
1718 static char *
1719 remote_threads_extra_info (struct thread_info *tp)
1720 {
1721 int result;
1722 int set;
1723 threadref id;
1724 struct gdb_ext_thread_info threadinfo;
1725 static char display_buf[100]; /* arbitrary... */
1726 char *bufp = alloca (PBUFSIZ);
1727 int n = 0; /* position in display_buf */
1728
1729 if (remote_desc == 0) /* paranoia */
1730 internal_error (__FILE__, __LINE__,
1731 "remote_threads_extra_info");
1732
1733 if (use_threadextra_query)
1734 {
1735 sprintf (bufp, "qThreadExtraInfo,%x", PIDGET (tp->ptid));
1736 putpkt (bufp);
1737 getpkt (bufp, PBUFSIZ, 0);
1738 if (bufp[0] != 0)
1739 {
1740 n = min (strlen (bufp) / 2, sizeof (display_buf));
1741 result = hex2bin (bufp, display_buf, n);
1742 display_buf [result] = '\0';
1743 return display_buf;
1744 }
1745 }
1746
1747 /* If the above query fails, fall back to the old method. */
1748 use_threadextra_query = 0;
1749 set = TAG_THREADID | TAG_EXISTS | TAG_THREADNAME
1750 | TAG_MOREDISPLAY | TAG_DISPLAY;
1751 int_to_threadref (&id, PIDGET (tp->ptid));
1752 if (remote_get_threadinfo (&id, set, &threadinfo))
1753 if (threadinfo.active)
1754 {
1755 if (*threadinfo.shortname)
1756 n += sprintf(&display_buf[0], " Name: %s,", threadinfo.shortname);
1757 if (*threadinfo.display)
1758 n += sprintf(&display_buf[n], " State: %s,", threadinfo.display);
1759 if (*threadinfo.more_display)
1760 n += sprintf(&display_buf[n], " Priority: %s",
1761 threadinfo.more_display);
1762
1763 if (n > 0)
1764 {
1765 /* for purely cosmetic reasons, clear up trailing commas */
1766 if (',' == display_buf[n-1])
1767 display_buf[n-1] = ' ';
1768 return display_buf;
1769 }
1770 }
1771 return NULL;
1772 }
1773
1774 \f
1775
1776 /* Restart the remote side; this is an extended protocol operation. */
1777
1778 static void
1779 extended_remote_restart (void)
1780 {
1781 char *buf = alloca (PBUFSIZ);
1782
1783 /* Send the restart command; for reasons I don't understand the
1784 remote side really expects a number after the "R". */
1785 buf[0] = 'R';
1786 sprintf (&buf[1], "%x", 0);
1787 putpkt (buf);
1788
1789 /* Now query for status so this looks just like we restarted
1790 gdbserver from scratch. */
1791 putpkt ("?");
1792 getpkt (buf, PBUFSIZ, 0);
1793 }
1794 \f
1795 /* Clean up connection to a remote debugger. */
1796
1797 /* ARGSUSED */
1798 static void
1799 remote_close (int quitting)
1800 {
1801 if (remote_desc)
1802 SERIAL_CLOSE (remote_desc);
1803 remote_desc = NULL;
1804 }
1805
1806 /* Query the remote side for the text, data and bss offsets. */
1807
1808 static void
1809 get_offsets (void)
1810 {
1811 char *buf = alloca (PBUFSIZ);
1812 char *ptr;
1813 int lose;
1814 CORE_ADDR text_addr, data_addr, bss_addr;
1815 struct section_offsets *offs;
1816
1817 putpkt ("qOffsets");
1818
1819 getpkt (buf, PBUFSIZ, 0);
1820
1821 if (buf[0] == '\000')
1822 return; /* Return silently. Stub doesn't support
1823 this command. */
1824 if (buf[0] == 'E')
1825 {
1826 warning ("Remote failure reply: %s", buf);
1827 return;
1828 }
1829
1830 /* Pick up each field in turn. This used to be done with scanf, but
1831 scanf will make trouble if CORE_ADDR size doesn't match
1832 conversion directives correctly. The following code will work
1833 with any size of CORE_ADDR. */
1834 text_addr = data_addr = bss_addr = 0;
1835 ptr = buf;
1836 lose = 0;
1837
1838 if (strncmp (ptr, "Text=", 5) == 0)
1839 {
1840 ptr += 5;
1841 /* Don't use strtol, could lose on big values. */
1842 while (*ptr && *ptr != ';')
1843 text_addr = (text_addr << 4) + fromhex (*ptr++);
1844 }
1845 else
1846 lose = 1;
1847
1848 if (!lose && strncmp (ptr, ";Data=", 6) == 0)
1849 {
1850 ptr += 6;
1851 while (*ptr && *ptr != ';')
1852 data_addr = (data_addr << 4) + fromhex (*ptr++);
1853 }
1854 else
1855 lose = 1;
1856
1857 if (!lose && strncmp (ptr, ";Bss=", 5) == 0)
1858 {
1859 ptr += 5;
1860 while (*ptr && *ptr != ';')
1861 bss_addr = (bss_addr << 4) + fromhex (*ptr++);
1862 }
1863 else
1864 lose = 1;
1865
1866 if (lose)
1867 error ("Malformed response to offset query, %s", buf);
1868
1869 if (symfile_objfile == NULL)
1870 return;
1871
1872 offs = (struct section_offsets *) alloca (SIZEOF_SECTION_OFFSETS);
1873 memcpy (offs, symfile_objfile->section_offsets, SIZEOF_SECTION_OFFSETS);
1874
1875 offs->offsets[SECT_OFF_TEXT (symfile_objfile)] = text_addr;
1876
1877 /* This is a temporary kludge to force data and bss to use the same offsets
1878 because that's what nlmconv does now. The real solution requires changes
1879 to the stub and remote.c that I don't have time to do right now. */
1880
1881 offs->offsets[SECT_OFF_DATA (symfile_objfile)] = data_addr;
1882 offs->offsets[SECT_OFF_BSS (symfile_objfile)] = data_addr;
1883
1884 objfile_relocate (symfile_objfile, offs);
1885 }
1886
1887 /*
1888 * Cisco version of section offsets:
1889 *
1890 * Instead of having GDB query the target for the section offsets,
1891 * Cisco lets the target volunteer the information! It's also in
1892 * a different format, so here are the functions that will decode
1893 * a section offset packet from a Cisco target.
1894 */
1895
1896 /*
1897 * Function: remote_cisco_section_offsets
1898 *
1899 * Returns: zero for success, non-zero for failure
1900 */
1901
1902 static int
1903 remote_cisco_section_offsets (bfd_vma text_addr,
1904 bfd_vma data_addr,
1905 bfd_vma bss_addr,
1906 bfd_signed_vma *text_offs,
1907 bfd_signed_vma *data_offs,
1908 bfd_signed_vma *bss_offs)
1909 {
1910 bfd_vma text_base, data_base, bss_base;
1911 struct minimal_symbol *start;
1912 asection *sect;
1913 bfd *abfd;
1914 int len;
1915
1916 if (symfile_objfile == NULL)
1917 return -1; /* no can do nothin' */
1918
1919 start = lookup_minimal_symbol ("_start", NULL, NULL);
1920 if (start == NULL)
1921 return -1; /* Can't find "_start" symbol */
1922
1923 data_base = bss_base = 0;
1924 text_base = SYMBOL_VALUE_ADDRESS (start);
1925
1926 abfd = symfile_objfile->obfd;
1927 for (sect = abfd->sections;
1928 sect != 0;
1929 sect = sect->next)
1930 {
1931 const char *p = bfd_get_section_name (abfd, sect);
1932 len = strlen (p);
1933 if (strcmp (p + len - 4, "data") == 0) /* ends in "data" */
1934 if (data_base == 0 ||
1935 data_base > bfd_get_section_vma (abfd, sect))
1936 data_base = bfd_get_section_vma (abfd, sect);
1937 if (strcmp (p + len - 3, "bss") == 0) /* ends in "bss" */
1938 if (bss_base == 0 ||
1939 bss_base > bfd_get_section_vma (abfd, sect))
1940 bss_base = bfd_get_section_vma (abfd, sect);
1941 }
1942 *text_offs = text_addr - text_base;
1943 *data_offs = data_addr - data_base;
1944 *bss_offs = bss_addr - bss_base;
1945 if (remote_debug)
1946 {
1947 char tmp[128];
1948
1949 sprintf (tmp, "VMA: text = 0x");
1950 sprintf_vma (tmp + strlen (tmp), text_addr);
1951 sprintf (tmp + strlen (tmp), " data = 0x");
1952 sprintf_vma (tmp + strlen (tmp), data_addr);
1953 sprintf (tmp + strlen (tmp), " bss = 0x");
1954 sprintf_vma (tmp + strlen (tmp), bss_addr);
1955 fprintf_filtered (gdb_stdlog, tmp);
1956 fprintf_filtered (gdb_stdlog,
1957 "Reloc offset: text = 0x%s data = 0x%s bss = 0x%s\n",
1958 paddr_nz (*text_offs),
1959 paddr_nz (*data_offs),
1960 paddr_nz (*bss_offs));
1961 }
1962
1963 return 0;
1964 }
1965
1966 /*
1967 * Function: remote_cisco_objfile_relocate
1968 *
1969 * Relocate the symbol file for a remote target.
1970 */
1971
1972 void
1973 remote_cisco_objfile_relocate (bfd_signed_vma text_off, bfd_signed_vma data_off,
1974 bfd_signed_vma bss_off)
1975 {
1976 struct section_offsets *offs;
1977
1978 if (text_off != 0 || data_off != 0 || bss_off != 0)
1979 {
1980 /* FIXME: This code assumes gdb-stabs.h is being used; it's
1981 broken for xcoff, dwarf, sdb-coff, etc. But there is no
1982 simple canonical representation for this stuff. */
1983
1984 offs = (struct section_offsets *) alloca (SIZEOF_SECTION_OFFSETS);
1985 memcpy (offs, symfile_objfile->section_offsets, SIZEOF_SECTION_OFFSETS);
1986
1987 offs->offsets[SECT_OFF_TEXT (symfile_objfile)] = text_off;
1988 offs->offsets[SECT_OFF_DATA (symfile_objfile)] = data_off;
1989 offs->offsets[SECT_OFF_BSS (symfile_objfile)] = bss_off;
1990
1991 /* First call the standard objfile_relocate. */
1992 objfile_relocate (symfile_objfile, offs);
1993
1994 /* Now we need to fix up the section entries already attached to
1995 the exec target. These entries will control memory transfers
1996 from the exec file. */
1997
1998 exec_set_section_offsets (text_off, data_off, bss_off);
1999 }
2000 }
2001
2002 /* Stub for catch_errors. */
2003
2004 static int
2005 remote_start_remote_dummy (void *dummy)
2006 {
2007 start_remote (); /* Initialize gdb process mechanisms */
2008 return 1;
2009 }
2010
2011 static int
2012 remote_start_remote (PTR dummy)
2013 {
2014 immediate_quit++; /* Allow user to interrupt it */
2015
2016 /* Ack any packet which the remote side has already sent. */
2017 SERIAL_WRITE (remote_desc, "+", 1);
2018
2019 /* Let the stub know that we want it to return the thread. */
2020 set_thread (-1, 0);
2021
2022 inferior_ptid = remote_current_thread (inferior_ptid);
2023
2024 get_offsets (); /* Get text, data & bss offsets */
2025
2026 putpkt ("?"); /* initiate a query from remote machine */
2027 immediate_quit--;
2028
2029 return remote_start_remote_dummy (dummy);
2030 }
2031
2032 /* Open a connection to a remote debugger.
2033 NAME is the filename used for communication. */
2034
2035 static void
2036 remote_open (char *name, int from_tty)
2037 {
2038 remote_open_1 (name, from_tty, &remote_ops, 0);
2039 }
2040
2041 /* Just like remote_open, but with asynchronous support. */
2042 static void
2043 remote_async_open (char *name, int from_tty)
2044 {
2045 remote_async_open_1 (name, from_tty, &remote_async_ops, 0);
2046 }
2047
2048 /* Open a connection to a remote debugger using the extended
2049 remote gdb protocol. NAME is the filename used for communication. */
2050
2051 static void
2052 extended_remote_open (char *name, int from_tty)
2053 {
2054 remote_open_1 (name, from_tty, &extended_remote_ops, 1 /*extended_p */ );
2055 }
2056
2057 /* Just like extended_remote_open, but with asynchronous support. */
2058 static void
2059 extended_remote_async_open (char *name, int from_tty)
2060 {
2061 remote_async_open_1 (name, from_tty, &extended_async_remote_ops, 1 /*extended_p */ );
2062 }
2063
2064 /* Generic code for opening a connection to a remote target. */
2065
2066 static void
2067 init_all_packet_configs (void)
2068 {
2069 int i;
2070 update_packet_config (&remote_protocol_e);
2071 update_packet_config (&remote_protocol_E);
2072 update_packet_config (&remote_protocol_P);
2073 for (i = 0; i < NR_Z_PACKET_TYPES; i++)
2074 update_packet_config (&remote_protocol_Z[i]);
2075 /* Force remote_write_bytes to check whether target supports binary
2076 downloading. */
2077 update_packet_config (&remote_protocol_binary_download);
2078 }
2079
2080 static void
2081 remote_open_1 (char *name, int from_tty, struct target_ops *target,
2082 int extended_p)
2083 {
2084 if (name == 0)
2085 error ("To open a remote debug connection, you need to specify what\n\
2086 serial device is attached to the remote system\n\
2087 (e.g. /dev/ttyS0, /dev/ttya, COM1, etc.).");
2088
2089 /* See FIXME above */
2090 wait_forever_enabled_p = 1;
2091
2092 target_preopen (from_tty);
2093
2094 unpush_target (target);
2095
2096 remote_desc = SERIAL_OPEN (name);
2097 if (!remote_desc)
2098 perror_with_name (name);
2099
2100 if (baud_rate != -1)
2101 {
2102 if (SERIAL_SETBAUDRATE (remote_desc, baud_rate))
2103 {
2104 SERIAL_CLOSE (remote_desc);
2105 perror_with_name (name);
2106 }
2107 }
2108
2109 SERIAL_RAW (remote_desc);
2110
2111 /* If there is something sitting in the buffer we might take it as a
2112 response to a command, which would be bad. */
2113 SERIAL_FLUSH_INPUT (remote_desc);
2114
2115 if (from_tty)
2116 {
2117 puts_filtered ("Remote debugging using ");
2118 puts_filtered (name);
2119 puts_filtered ("\n");
2120 }
2121 push_target (target); /* Switch to using remote target now */
2122
2123 init_all_packet_configs ();
2124
2125 general_thread = -2;
2126 continue_thread = -2;
2127
2128 /* Probe for ability to use "ThreadInfo" query, as required. */
2129 use_threadinfo_query = 1;
2130 use_threadextra_query = 1;
2131
2132 /* Without this, some commands which require an active target (such
2133 as kill) won't work. This variable serves (at least) double duty
2134 as both the pid of the target process (if it has such), and as a
2135 flag indicating that a target is active. These functions should
2136 be split out into seperate variables, especially since GDB will
2137 someday have a notion of debugging several processes. */
2138
2139 inferior_ptid = pid_to_ptid (MAGIC_NULL_PID);
2140 #ifdef SOLIB_CREATE_INFERIOR_HOOK
2141 /* First delete any symbols previously loaded from shared libraries. */
2142 no_shared_libraries (NULL, 0);
2143 #endif
2144
2145 /* Start the remote connection; if error (0), discard this target.
2146 In particular, if the user quits, be sure to discard it
2147 (we'd be in an inconsistent state otherwise). */
2148 if (!catch_errors (remote_start_remote, NULL,
2149 "Couldn't establish connection to remote target\n",
2150 RETURN_MASK_ALL))
2151 {
2152 pop_target ();
2153 return;
2154 }
2155
2156 if (extended_p)
2157 {
2158 /* Tell the remote that we are using the extended protocol. */
2159 char *buf = alloca (PBUFSIZ);
2160 putpkt ("!");
2161 getpkt (buf, PBUFSIZ, 0);
2162 }
2163 #ifdef SOLIB_CREATE_INFERIOR_HOOK
2164 /* FIXME: need a master target_open vector from which all
2165 remote_opens can be called, so that stuff like this can
2166 go there. Failing that, the following code must be copied
2167 to the open function for any remote target that wants to
2168 support svr4 shared libraries. */
2169
2170 /* Set up to detect and load shared libraries. */
2171 if (exec_bfd) /* No use without an exec file. */
2172 SOLIB_CREATE_INFERIOR_HOOK (PIDGET (inferior_ptid));
2173 #endif
2174 }
2175
2176 /* Just like remote_open but with asynchronous support. */
2177 static void
2178 remote_async_open_1 (char *name, int from_tty, struct target_ops *target,
2179 int extended_p)
2180 {
2181 if (name == 0)
2182 error ("To open a remote debug connection, you need to specify what\n\
2183 serial device is attached to the remote system\n\
2184 (e.g. /dev/ttyS0, /dev/ttya, COM1, etc.).");
2185
2186 target_preopen (from_tty);
2187
2188 unpush_target (target);
2189
2190 remote_desc = SERIAL_OPEN (name);
2191 if (!remote_desc)
2192 perror_with_name (name);
2193
2194 if (baud_rate != -1)
2195 {
2196 if (SERIAL_SETBAUDRATE (remote_desc, baud_rate))
2197 {
2198 SERIAL_CLOSE (remote_desc);
2199 perror_with_name (name);
2200 }
2201 }
2202
2203 SERIAL_RAW (remote_desc);
2204
2205 /* If there is something sitting in the buffer we might take it as a
2206 response to a command, which would be bad. */
2207 SERIAL_FLUSH_INPUT (remote_desc);
2208
2209 if (from_tty)
2210 {
2211 puts_filtered ("Remote debugging using ");
2212 puts_filtered (name);
2213 puts_filtered ("\n");
2214 }
2215
2216 push_target (target); /* Switch to using remote target now */
2217
2218 init_all_packet_configs ();
2219
2220 general_thread = -2;
2221 continue_thread = -2;
2222
2223 /* Probe for ability to use "ThreadInfo" query, as required. */
2224 use_threadinfo_query = 1;
2225 use_threadextra_query = 1;
2226
2227 /* Without this, some commands which require an active target (such
2228 as kill) won't work. This variable serves (at least) double duty
2229 as both the pid of the target process (if it has such), and as a
2230 flag indicating that a target is active. These functions should
2231 be split out into seperate variables, especially since GDB will
2232 someday have a notion of debugging several processes. */
2233 inferior_ptid = pid_to_ptid (MAGIC_NULL_PID);
2234
2235 /* With this target we start out by owning the terminal. */
2236 remote_async_terminal_ours_p = 1;
2237
2238 /* FIXME: cagney/1999-09-23: During the initial connection it is
2239 assumed that the target is already ready and able to respond to
2240 requests. Unfortunately remote_start_remote() eventually calls
2241 wait_for_inferior() with no timeout. wait_forever_enabled_p gets
2242 around this. Eventually a mechanism that allows
2243 wait_for_inferior() to expect/get timeouts will be
2244 implemented. */
2245 wait_forever_enabled_p = 0;
2246
2247 #ifdef SOLIB_CREATE_INFERIOR_HOOK
2248 /* First delete any symbols previously loaded from shared libraries. */
2249 no_shared_libraries (NULL, 0);
2250 #endif
2251
2252 /* Start the remote connection; if error (0), discard this target.
2253 In particular, if the user quits, be sure to discard it
2254 (we'd be in an inconsistent state otherwise). */
2255 if (!catch_errors (remote_start_remote, NULL,
2256 "Couldn't establish connection to remote target\n",
2257 RETURN_MASK_ALL))
2258 {
2259 pop_target ();
2260 wait_forever_enabled_p = 1;
2261 return;
2262 }
2263
2264 wait_forever_enabled_p = 1;
2265
2266 if (extended_p)
2267 {
2268 /* Tell the remote that we are using the extended protocol. */
2269 char *buf = alloca (PBUFSIZ);
2270 putpkt ("!");
2271 getpkt (buf, PBUFSIZ, 0);
2272 }
2273 #ifdef SOLIB_CREATE_INFERIOR_HOOK
2274 /* FIXME: need a master target_open vector from which all
2275 remote_opens can be called, so that stuff like this can
2276 go there. Failing that, the following code must be copied
2277 to the open function for any remote target that wants to
2278 support svr4 shared libraries. */
2279
2280 /* Set up to detect and load shared libraries. */
2281 if (exec_bfd) /* No use without an exec file. */
2282 SOLIB_CREATE_INFERIOR_HOOK (PIDGET (inferior_ptid));
2283 #endif
2284 }
2285
2286 /* This takes a program previously attached to and detaches it. After
2287 this is done, GDB can be used to debug some other program. We
2288 better not have left any breakpoints in the target program or it'll
2289 die when it hits one. */
2290
2291 static void
2292 remote_detach (char *args, int from_tty)
2293 {
2294 char *buf = alloca (PBUFSIZ);
2295
2296 if (args)
2297 error ("Argument given to \"detach\" when remotely debugging.");
2298
2299 /* Tell the remote target to detach. */
2300 strcpy (buf, "D");
2301 remote_send (buf, PBUFSIZ);
2302
2303 target_mourn_inferior ();
2304 if (from_tty)
2305 puts_filtered ("Ending remote debugging.\n");
2306
2307 }
2308
2309 /* Same as remote_detach, but with async support. */
2310 static void
2311 remote_async_detach (char *args, int from_tty)
2312 {
2313 char *buf = alloca (PBUFSIZ);
2314
2315 if (args)
2316 error ("Argument given to \"detach\" when remotely debugging.");
2317
2318 /* Tell the remote target to detach. */
2319 strcpy (buf, "D");
2320 remote_send (buf, PBUFSIZ);
2321
2322 /* Unregister the file descriptor from the event loop. */
2323 if (target_is_async_p ())
2324 SERIAL_ASYNC (remote_desc, NULL, 0);
2325
2326 target_mourn_inferior ();
2327 if (from_tty)
2328 puts_filtered ("Ending remote debugging.\n");
2329 }
2330
2331 /* Convert hex digit A to a number. */
2332
2333 static int
2334 fromhex (int a)
2335 {
2336 if (a >= '0' && a <= '9')
2337 return a - '0';
2338 else if (a >= 'a' && a <= 'f')
2339 return a - 'a' + 10;
2340 else if (a >= 'A' && a <= 'F')
2341 return a - 'A' + 10;
2342 else
2343 error ("Reply contains invalid hex digit %d", a);
2344 }
2345
2346 static int
2347 hex2bin (const char *hex, char *bin, int count)
2348 {
2349 int i;
2350
2351 for (i = 0; i < count; i++)
2352 {
2353 if (hex[0] == 0 || hex[1] == 0)
2354 {
2355 /* Hex string is short, or of uneven length.
2356 Return the count that has been converted so far. */
2357 return i;
2358 }
2359 *bin++ = fromhex (hex[0]) * 16 + fromhex (hex[1]);
2360 hex += 2;
2361 }
2362 return i;
2363 }
2364
2365 /* Convert number NIB to a hex digit. */
2366
2367 static int
2368 tohex (int nib)
2369 {
2370 if (nib < 10)
2371 return '0' + nib;
2372 else
2373 return 'a' + nib - 10;
2374 }
2375
2376 static int
2377 bin2hex (const char *bin, char *hex, int count)
2378 {
2379 int i;
2380 /* May use a length, or a nul-terminated string as input. */
2381 if (count == 0)
2382 count = strlen (bin);
2383
2384 for (i = 0; i < count; i++)
2385 {
2386 *hex++ = tohex ((*bin >> 4) & 0xf);
2387 *hex++ = tohex (*bin++ & 0xf);
2388 }
2389 *hex = 0;
2390 return i;
2391 }
2392 \f
2393 /* Tell the remote machine to resume. */
2394
2395 static enum target_signal last_sent_signal = TARGET_SIGNAL_0;
2396
2397 static int last_sent_step;
2398
2399 static void
2400 remote_resume (ptid_t ptid, int step, enum target_signal siggnal)
2401 {
2402 char *buf = alloca (PBUFSIZ);
2403 int pid = PIDGET (ptid);
2404 char *p;
2405
2406 if (pid == -1)
2407 set_thread (0, 0); /* run any thread */
2408 else
2409 set_thread (pid, 0); /* run this thread */
2410
2411 last_sent_signal = siggnal;
2412 last_sent_step = step;
2413
2414 /* A hook for when we need to do something at the last moment before
2415 resumption. */
2416 if (target_resume_hook)
2417 (*target_resume_hook) ();
2418
2419
2420 /* The s/S/c/C packets do not return status. So if the target does
2421 not support the S or C packets, the debug agent returns an empty
2422 string which is detected in remote_wait(). This protocol defect
2423 is fixed in the e/E packets. */
2424
2425 if (step && step_range_end)
2426 {
2427 /* If the target does not support the 'E' packet, we try the 'S'
2428 packet. Ideally we would fall back to the 'e' packet if that
2429 too is not supported. But that would require another copy of
2430 the code to issue the 'e' packet (and fall back to 's' if not
2431 supported) in remote_wait(). */
2432
2433 if (siggnal != TARGET_SIGNAL_0)
2434 {
2435 if (remote_protocol_E.support != PACKET_DISABLE)
2436 {
2437 p = buf;
2438 *p++ = 'E';
2439 *p++ = tohex (((int) siggnal >> 4) & 0xf);
2440 *p++ = tohex (((int) siggnal) & 0xf);
2441 *p++ = ',';
2442 p += hexnumstr (p, (ULONGEST) step_range_start);
2443 *p++ = ',';
2444 p += hexnumstr (p, (ULONGEST) step_range_end);
2445 *p++ = 0;
2446
2447 putpkt (buf);
2448 getpkt (buf, PBUFSIZ, 0);
2449
2450 if (packet_ok (buf, &remote_protocol_E) == PACKET_OK)
2451 return;
2452 }
2453 }
2454 else
2455 {
2456 if (remote_protocol_e.support != PACKET_DISABLE)
2457 {
2458 p = buf;
2459 *p++ = 'e';
2460 p += hexnumstr (p, (ULONGEST) step_range_start);
2461 *p++ = ',';
2462 p += hexnumstr (p, (ULONGEST) step_range_end);
2463 *p++ = 0;
2464
2465 putpkt (buf);
2466 getpkt (buf, PBUFSIZ, 0);
2467
2468 if (packet_ok (buf, &remote_protocol_e) == PACKET_OK)
2469 return;
2470 }
2471 }
2472 }
2473
2474 if (siggnal != TARGET_SIGNAL_0)
2475 {
2476 buf[0] = step ? 'S' : 'C';
2477 buf[1] = tohex (((int) siggnal >> 4) & 0xf);
2478 buf[2] = tohex (((int) siggnal) & 0xf);
2479 buf[3] = '\0';
2480 }
2481 else
2482 strcpy (buf, step ? "s" : "c");
2483
2484 putpkt (buf);
2485 }
2486
2487 /* Same as remote_resume, but with async support. */
2488 static void
2489 remote_async_resume (ptid_t ptid, int step, enum target_signal siggnal)
2490 {
2491 char *buf = alloca (PBUFSIZ);
2492 int pid = PIDGET (ptid);
2493 char *p;
2494
2495 if (pid == -1)
2496 set_thread (0, 0); /* run any thread */
2497 else
2498 set_thread (pid, 0); /* run this thread */
2499
2500 last_sent_signal = siggnal;
2501 last_sent_step = step;
2502
2503 /* A hook for when we need to do something at the last moment before
2504 resumption. */
2505 if (target_resume_hook)
2506 (*target_resume_hook) ();
2507
2508 /* The s/S/c/C packets do not return status. So if the target does
2509 not support the S or C packets, the debug agent returns an empty
2510 string which is detected in remote_wait(). This protocol defect
2511 is fixed in the e/E packets. */
2512
2513 if (step && step_range_end)
2514 {
2515 /* If the target does not support the 'E' packet, we try the 'S'
2516 packet. Ideally we would fall back to the 'e' packet if that
2517 too is not supported. But that would require another copy of
2518 the code to issue the 'e' packet (and fall back to 's' if not
2519 supported) in remote_wait(). */
2520
2521 if (siggnal != TARGET_SIGNAL_0)
2522 {
2523 if (remote_protocol_E.support != PACKET_DISABLE)
2524 {
2525 p = buf;
2526 *p++ = 'E';
2527 *p++ = tohex (((int) siggnal >> 4) & 0xf);
2528 *p++ = tohex (((int) siggnal) & 0xf);
2529 *p++ = ',';
2530 p += hexnumstr (p, (ULONGEST) step_range_start);
2531 *p++ = ',';
2532 p += hexnumstr (p, (ULONGEST) step_range_end);
2533 *p++ = 0;
2534
2535 putpkt (buf);
2536 getpkt (buf, PBUFSIZ, 0);
2537
2538 if (packet_ok (buf, &remote_protocol_E) == PACKET_OK)
2539 goto register_event_loop;
2540 }
2541 }
2542 else
2543 {
2544 if (remote_protocol_e.support != PACKET_DISABLE)
2545 {
2546 p = buf;
2547 *p++ = 'e';
2548 p += hexnumstr (p, (ULONGEST) step_range_start);
2549 *p++ = ',';
2550 p += hexnumstr (p, (ULONGEST) step_range_end);
2551 *p++ = 0;
2552
2553 putpkt (buf);
2554 getpkt (buf, PBUFSIZ, 0);
2555
2556 if (packet_ok (buf, &remote_protocol_e) == PACKET_OK)
2557 goto register_event_loop;
2558 }
2559 }
2560 }
2561
2562 if (siggnal != TARGET_SIGNAL_0)
2563 {
2564 buf[0] = step ? 'S' : 'C';
2565 buf[1] = tohex (((int) siggnal >> 4) & 0xf);
2566 buf[2] = tohex ((int) siggnal & 0xf);
2567 buf[3] = '\0';
2568 }
2569 else
2570 strcpy (buf, step ? "s" : "c");
2571
2572 putpkt (buf);
2573
2574 register_event_loop:
2575 /* We are about to start executing the inferior, let's register it
2576 with the event loop. NOTE: this is the one place where all the
2577 execution commands end up. We could alternatively do this in each
2578 of the execution commands in infcmd.c.*/
2579 /* FIXME: ezannoni 1999-09-28: We may need to move this out of here
2580 into infcmd.c in order to allow inferior function calls to work
2581 NOT asynchronously. */
2582 if (event_loop_p && target_can_async_p ())
2583 target_async (inferior_event_handler, 0);
2584 /* Tell the world that the target is now executing. */
2585 /* FIXME: cagney/1999-09-23: Is it the targets responsibility to set
2586 this? Instead, should the client of target just assume (for
2587 async targets) that the target is going to start executing? Is
2588 this information already found in the continuation block? */
2589 if (target_is_async_p ())
2590 target_executing = 1;
2591 }
2592 \f
2593
2594 /* Set up the signal handler for SIGINT, while the target is
2595 executing, ovewriting the 'regular' SIGINT signal handler. */
2596 static void
2597 initialize_sigint_signal_handler (void)
2598 {
2599 sigint_remote_token =
2600 create_async_signal_handler (async_remote_interrupt, NULL);
2601 signal (SIGINT, handle_remote_sigint);
2602 }
2603
2604 /* Signal handler for SIGINT, while the target is executing. */
2605 static void
2606 handle_remote_sigint (int sig)
2607 {
2608 signal (sig, handle_remote_sigint_twice);
2609 sigint_remote_twice_token =
2610 create_async_signal_handler (async_remote_interrupt_twice, NULL);
2611 mark_async_signal_handler_wrapper (sigint_remote_token);
2612 }
2613
2614 /* Signal handler for SIGINT, installed after SIGINT has already been
2615 sent once. It will take effect the second time that the user sends
2616 a ^C. */
2617 static void
2618 handle_remote_sigint_twice (int sig)
2619 {
2620 signal (sig, handle_sigint);
2621 sigint_remote_twice_token =
2622 create_async_signal_handler (inferior_event_handler_wrapper, NULL);
2623 mark_async_signal_handler_wrapper (sigint_remote_twice_token);
2624 }
2625
2626 /* Perform the real interruption of the target execution, in response
2627 to a ^C. */
2628 static void
2629 async_remote_interrupt (gdb_client_data arg)
2630 {
2631 if (remote_debug)
2632 fprintf_unfiltered (gdb_stdlog, "remote_interrupt called\n");
2633
2634 target_stop ();
2635 }
2636
2637 /* Perform interrupt, if the first attempt did not succeed. Just give
2638 up on the target alltogether. */
2639 void
2640 async_remote_interrupt_twice (gdb_client_data arg)
2641 {
2642 if (remote_debug)
2643 fprintf_unfiltered (gdb_stdlog, "remote_interrupt_twice called\n");
2644 /* Do something only if the target was not killed by the previous
2645 cntl-C. */
2646 if (target_executing)
2647 {
2648 interrupt_query ();
2649 signal (SIGINT, handle_remote_sigint);
2650 }
2651 }
2652
2653 /* Reinstall the usual SIGINT handlers, after the target has
2654 stopped. */
2655 static void
2656 cleanup_sigint_signal_handler (void *dummy)
2657 {
2658 signal (SIGINT, handle_sigint);
2659 if (sigint_remote_twice_token)
2660 delete_async_signal_handler ((struct async_signal_handler **) & sigint_remote_twice_token);
2661 if (sigint_remote_token)
2662 delete_async_signal_handler ((struct async_signal_handler **) & sigint_remote_token);
2663 }
2664
2665 /* Send ^C to target to halt it. Target will respond, and send us a
2666 packet. */
2667 static void (*ofunc) (int);
2668
2669 /* The command line interface's stop routine. This function is installed
2670 as a signal handler for SIGINT. The first time a user requests a
2671 stop, we call remote_stop to send a break or ^C. If there is no
2672 response from the target (it didn't stop when the user requested it),
2673 we ask the user if he'd like to detach from the target. */
2674 static void
2675 remote_interrupt (int signo)
2676 {
2677 /* If this doesn't work, try more severe steps. */
2678 signal (signo, remote_interrupt_twice);
2679
2680 if (remote_debug)
2681 fprintf_unfiltered (gdb_stdlog, "remote_interrupt called\n");
2682
2683 target_stop ();
2684 }
2685
2686 /* The user typed ^C twice. */
2687
2688 static void
2689 remote_interrupt_twice (int signo)
2690 {
2691 signal (signo, ofunc);
2692 interrupt_query ();
2693 signal (signo, remote_interrupt);
2694 }
2695
2696 /* This is the generic stop called via the target vector. When a target
2697 interrupt is requested, either by the command line or the GUI, we
2698 will eventually end up here. */
2699 static void
2700 remote_stop (void)
2701 {
2702 /* Send a break or a ^C, depending on user preference. */
2703 if (remote_debug)
2704 fprintf_unfiltered (gdb_stdlog, "remote_stop called\n");
2705
2706 if (remote_break)
2707 SERIAL_SEND_BREAK (remote_desc);
2708 else
2709 SERIAL_WRITE (remote_desc, "\003", 1);
2710 }
2711
2712 /* Ask the user what to do when an interrupt is received. */
2713
2714 static void
2715 interrupt_query (void)
2716 {
2717 target_terminal_ours ();
2718
2719 if (query ("Interrupted while waiting for the program.\n\
2720 Give up (and stop debugging it)? "))
2721 {
2722 target_mourn_inferior ();
2723 return_to_top_level (RETURN_QUIT);
2724 }
2725
2726 target_terminal_inferior ();
2727 }
2728
2729 /* Enable/disable target terminal ownership. Most targets can use
2730 terminal groups to control terminal ownership. Remote targets are
2731 different in that explicit transfer of ownership to/from GDB/target
2732 is required. */
2733
2734 static void
2735 remote_async_terminal_inferior (void)
2736 {
2737 /* FIXME: cagney/1999-09-27: Shouldn't need to test for
2738 sync_execution here. This function should only be called when
2739 GDB is resuming the inferior in the forground. A background
2740 resume (``run&'') should leave GDB in control of the terminal and
2741 consequently should not call this code. */
2742 if (!sync_execution)
2743 return;
2744 /* FIXME: cagney/1999-09-27: Closely related to the above. Make
2745 calls target_terminal_*() idenpotent. The event-loop GDB talking
2746 to an asynchronous target with a synchronous command calls this
2747 function from both event-top.c and infrun.c/infcmd.c. Once GDB
2748 stops trying to transfer the terminal to the target when it
2749 shouldn't this guard can go away. */
2750 if (!remote_async_terminal_ours_p)
2751 return;
2752 delete_file_handler (input_fd);
2753 remote_async_terminal_ours_p = 0;
2754 initialize_sigint_signal_handler ();
2755 /* NOTE: At this point we could also register our selves as the
2756 recipient of all input. Any characters typed could then be
2757 passed on down to the target. */
2758 }
2759
2760 static void
2761 remote_async_terminal_ours (void)
2762 {
2763 /* See FIXME in remote_async_terminal_inferior. */
2764 if (!sync_execution)
2765 return;
2766 /* See FIXME in remote_async_terminal_inferior. */
2767 if (remote_async_terminal_ours_p)
2768 return;
2769 cleanup_sigint_signal_handler (NULL);
2770 add_file_handler (input_fd, stdin_event_handler, 0);
2771 remote_async_terminal_ours_p = 1;
2772 }
2773
2774 /* If nonzero, ignore the next kill. */
2775
2776 int kill_kludge;
2777
2778 void
2779 remote_console_output (char *msg)
2780 {
2781 char *p;
2782
2783 for (p = msg; p[0] && p[1]; p += 2)
2784 {
2785 char tb[2];
2786 char c = fromhex (p[0]) * 16 + fromhex (p[1]);
2787 tb[0] = c;
2788 tb[1] = 0;
2789 fputs_unfiltered (tb, gdb_stdtarg);
2790 }
2791 gdb_flush (gdb_stdtarg);
2792 }
2793
2794 /* Wait until the remote machine stops, then return,
2795 storing status in STATUS just as `wait' would.
2796 Returns "pid", which in the case of a multi-threaded
2797 remote OS, is the thread-id. */
2798
2799 static ptid_t
2800 remote_wait (ptid_t ptid, struct target_waitstatus *status)
2801 {
2802 unsigned char *buf = alloca (PBUFSIZ);
2803 int thread_num = -1;
2804
2805 status->kind = TARGET_WAITKIND_EXITED;
2806 status->value.integer = 0;
2807
2808 while (1)
2809 {
2810 unsigned char *p;
2811
2812 ofunc = signal (SIGINT, remote_interrupt);
2813 getpkt (buf, PBUFSIZ, 1);
2814 signal (SIGINT, ofunc);
2815
2816 /* This is a hook for when we need to do something (perhaps the
2817 collection of trace data) every time the target stops. */
2818 if (target_wait_loop_hook)
2819 (*target_wait_loop_hook) ();
2820
2821 switch (buf[0])
2822 {
2823 case 'E': /* Error of some sort */
2824 warning ("Remote failure reply: %s", buf);
2825 continue;
2826 case 'T': /* Status with PC, SP, FP, ... */
2827 {
2828 int i;
2829 long regno;
2830 char* regs = (char*) alloca (MAX_REGISTER_RAW_SIZE);
2831
2832 /* Expedited reply, containing Signal, {regno, reg} repeat */
2833 /* format is: 'Tssn...:r...;n...:r...;n...:r...;#cc', where
2834 ss = signal number
2835 n... = register number
2836 r... = register contents
2837 */
2838 p = &buf[3]; /* after Txx */
2839
2840 while (*p)
2841 {
2842 unsigned char *p1;
2843 char *p_temp;
2844 int fieldsize;
2845
2846 /* Read the register number */
2847 regno = strtol ((const char *) p, &p_temp, 16);
2848 p1 = (unsigned char *) p_temp;
2849
2850 if (p1 == p) /* No register number present here */
2851 {
2852 p1 = (unsigned char *) strchr ((const char *) p, ':');
2853 if (p1 == NULL)
2854 warning ("Malformed packet(a) (missing colon): %s\n\
2855 Packet: '%s'\n",
2856 p, buf);
2857 if (strncmp ((const char *) p, "thread", p1 - p) == 0)
2858 {
2859 p_temp = unpack_varlen_hex (++p1, &thread_num);
2860 record_currthread (thread_num);
2861 p = (unsigned char *) p_temp;
2862 }
2863 }
2864 else
2865 {
2866 p = p1;
2867
2868 if (*p++ != ':')
2869 warning ("Malformed packet(b) (missing colon): %s\n\
2870 Packet: '%s'\n",
2871 p, buf);
2872
2873 if (regno >= NUM_REGS)
2874 warning ("Remote sent bad register number %ld: %s\n\
2875 Packet: '%s'\n",
2876 regno, p, buf);
2877
2878 fieldsize = hex2bin (p, regs, REGISTER_RAW_SIZE (regno));
2879 p += 2 * fieldsize;
2880 if (fieldsize < REGISTER_RAW_SIZE (regno))
2881 warning ("Remote reply is too short: %s", buf);
2882 supply_register (regno, regs);
2883 }
2884
2885 if (*p++ != ';')
2886 {
2887 warning ("Remote register badly formatted: %s", buf);
2888 warning (" here: %s", p);
2889 }
2890 }
2891 }
2892 /* fall through */
2893 case 'S': /* Old style status, just signal only */
2894 status->kind = TARGET_WAITKIND_STOPPED;
2895 status->value.sig = (enum target_signal)
2896 (((fromhex (buf[1])) << 4) + (fromhex (buf[2])));
2897
2898 if (buf[3] == 'p')
2899 {
2900 /* Export Cisco kernel mode as a convenience variable
2901 (so that it can be used in the GDB prompt if desired). */
2902
2903 if (cisco_kernel_mode == 1)
2904 set_internalvar (lookup_internalvar ("cisco_kernel_mode"),
2905 value_from_string ("PDEBUG-"));
2906 cisco_kernel_mode = 0;
2907 thread_num = strtol ((const char *) &buf[4], NULL, 16);
2908 record_currthread (thread_num);
2909 }
2910 else if (buf[3] == 'k')
2911 {
2912 /* Export Cisco kernel mode as a convenience variable
2913 (so that it can be used in the GDB prompt if desired). */
2914
2915 if (cisco_kernel_mode == 1)
2916 set_internalvar (lookup_internalvar ("cisco_kernel_mode"),
2917 value_from_string ("KDEBUG-"));
2918 cisco_kernel_mode = 1;
2919 }
2920 goto got_status;
2921 case 'N': /* Cisco special: status and offsets */
2922 {
2923 bfd_vma text_addr, data_addr, bss_addr;
2924 bfd_signed_vma text_off, data_off, bss_off;
2925 unsigned char *p1;
2926
2927 status->kind = TARGET_WAITKIND_STOPPED;
2928 status->value.sig = (enum target_signal)
2929 (((fromhex (buf[1])) << 4) + (fromhex (buf[2])));
2930
2931 if (symfile_objfile == NULL)
2932 {
2933 warning ("Relocation packet received with no symbol file. \
2934 Packet Dropped");
2935 goto got_status;
2936 }
2937
2938 /* Relocate object file. Buffer format is NAATT;DD;BB
2939 * where AA is the signal number, TT is the new text
2940 * address, DD * is the new data address, and BB is the
2941 * new bss address. */
2942
2943 p = &buf[3];
2944 text_addr = strtoul (p, (char **) &p1, 16);
2945 if (p1 == p || *p1 != ';')
2946 warning ("Malformed relocation packet: Packet '%s'", buf);
2947 p = p1 + 1;
2948 data_addr = strtoul (p, (char **) &p1, 16);
2949 if (p1 == p || *p1 != ';')
2950 warning ("Malformed relocation packet: Packet '%s'", buf);
2951 p = p1 + 1;
2952 bss_addr = strtoul (p, (char **) &p1, 16);
2953 if (p1 == p)
2954 warning ("Malformed relocation packet: Packet '%s'", buf);
2955
2956 if (remote_cisco_section_offsets (text_addr, data_addr, bss_addr,
2957 &text_off, &data_off, &bss_off)
2958 == 0)
2959 if (text_off != 0 || data_off != 0 || bss_off != 0)
2960 remote_cisco_objfile_relocate (text_off, data_off, bss_off);
2961
2962 goto got_status;
2963 }
2964 case 'W': /* Target exited */
2965 {
2966 /* The remote process exited. */
2967 status->kind = TARGET_WAITKIND_EXITED;
2968 status->value.integer = (fromhex (buf[1]) << 4) + fromhex (buf[2]);
2969 goto got_status;
2970 }
2971 case 'X':
2972 status->kind = TARGET_WAITKIND_SIGNALLED;
2973 status->value.sig = (enum target_signal)
2974 (((fromhex (buf[1])) << 4) + (fromhex (buf[2])));
2975 kill_kludge = 1;
2976
2977 goto got_status;
2978 case 'O': /* Console output */
2979 remote_console_output (buf + 1);
2980 continue;
2981 case '\0':
2982 if (last_sent_signal != TARGET_SIGNAL_0)
2983 {
2984 /* Zero length reply means that we tried 'S' or 'C' and
2985 the remote system doesn't support it. */
2986 target_terminal_ours_for_output ();
2987 printf_filtered
2988 ("Can't send signals to this remote system. %s not sent.\n",
2989 target_signal_to_name (last_sent_signal));
2990 last_sent_signal = TARGET_SIGNAL_0;
2991 target_terminal_inferior ();
2992
2993 strcpy ((char *) buf, last_sent_step ? "s" : "c");
2994 putpkt ((char *) buf);
2995 continue;
2996 }
2997 /* else fallthrough */
2998 default:
2999 warning ("Invalid remote reply: %s", buf);
3000 continue;
3001 }
3002 }
3003 got_status:
3004 if (thread_num != -1)
3005 {
3006 return pid_to_ptid (thread_num);
3007 }
3008 return inferior_ptid;
3009 }
3010
3011 /* Async version of remote_wait. */
3012 static ptid_t
3013 remote_async_wait (ptid_t ptid, struct target_waitstatus *status)
3014 {
3015 unsigned char *buf = alloca (PBUFSIZ);
3016 int thread_num = -1;
3017
3018 status->kind = TARGET_WAITKIND_EXITED;
3019 status->value.integer = 0;
3020
3021 while (1)
3022 {
3023 unsigned char *p;
3024
3025 if (!target_is_async_p ())
3026 ofunc = signal (SIGINT, remote_interrupt);
3027 /* FIXME: cagney/1999-09-27: If we're in async mode we should
3028 _never_ wait for ever -> test on target_is_async_p().
3029 However, before we do that we need to ensure that the caller
3030 knows how to take the target into/out of async mode. */
3031 getpkt (buf, PBUFSIZ, wait_forever_enabled_p);
3032 if (!target_is_async_p ())
3033 signal (SIGINT, ofunc);
3034
3035 /* This is a hook for when we need to do something (perhaps the
3036 collection of trace data) every time the target stops. */
3037 if (target_wait_loop_hook)
3038 (*target_wait_loop_hook) ();
3039
3040 switch (buf[0])
3041 {
3042 case 'E': /* Error of some sort */
3043 warning ("Remote failure reply: %s", buf);
3044 continue;
3045 case 'T': /* Status with PC, SP, FP, ... */
3046 {
3047 int i;
3048 long regno;
3049 char* regs = (char*) alloca (MAX_REGISTER_RAW_SIZE);
3050
3051 /* Expedited reply, containing Signal, {regno, reg} repeat */
3052 /* format is: 'Tssn...:r...;n...:r...;n...:r...;#cc', where
3053 ss = signal number
3054 n... = register number
3055 r... = register contents
3056 */
3057 p = &buf[3]; /* after Txx */
3058
3059 while (*p)
3060 {
3061 unsigned char *p1;
3062 char *p_temp;
3063
3064 /* Read the register number */
3065 regno = strtol ((const char *) p, &p_temp, 16);
3066 p1 = (unsigned char *) p_temp;
3067
3068 if (p1 == p) /* No register number present here */
3069 {
3070 p1 = (unsigned char *) strchr ((const char *) p, ':');
3071 if (p1 == NULL)
3072 warning ("Malformed packet(a) (missing colon): %s\n\
3073 Packet: '%s'\n",
3074 p, buf);
3075 if (strncmp ((const char *) p, "thread", p1 - p) == 0)
3076 {
3077 p_temp = unpack_varlen_hex (++p1, &thread_num);
3078 record_currthread (thread_num);
3079 p = (unsigned char *) p_temp;
3080 }
3081 }
3082 else
3083 {
3084 p = p1;
3085
3086 if (*p++ != ':')
3087 warning ("Malformed packet(b) (missing colon): %s\n\
3088 Packet: '%s'\n",
3089 p, buf);
3090
3091 if (regno >= NUM_REGS)
3092 warning ("Remote sent bad register number %ld: %s\n\
3093 Packet: '%s'\n",
3094 regno, p, buf);
3095
3096 if (hex2bin (p, regs, REGISTER_RAW_SIZE (regno))
3097 < REGISTER_RAW_SIZE (regno))
3098 warning ("Remote reply is too short: %s", buf);
3099 supply_register (regno, regs);
3100 }
3101
3102 if (*p++ != ';')
3103 {
3104 warning ("Remote register badly formatted: %s", buf);
3105 warning (" here: %s", p);
3106 }
3107 }
3108 }
3109 /* fall through */
3110 case 'S': /* Old style status, just signal only */
3111 status->kind = TARGET_WAITKIND_STOPPED;
3112 status->value.sig = (enum target_signal)
3113 (((fromhex (buf[1])) << 4) + (fromhex (buf[2])));
3114
3115 if (buf[3] == 'p')
3116 {
3117 /* Export Cisco kernel mode as a convenience variable
3118 (so that it can be used in the GDB prompt if desired). */
3119
3120 if (cisco_kernel_mode == 1)
3121 set_internalvar (lookup_internalvar ("cisco_kernel_mode"),
3122 value_from_string ("PDEBUG-"));
3123 cisco_kernel_mode = 0;
3124 thread_num = strtol ((const char *) &buf[4], NULL, 16);
3125 record_currthread (thread_num);
3126 }
3127 else if (buf[3] == 'k')
3128 {
3129 /* Export Cisco kernel mode as a convenience variable
3130 (so that it can be used in the GDB prompt if desired). */
3131
3132 if (cisco_kernel_mode == 1)
3133 set_internalvar (lookup_internalvar ("cisco_kernel_mode"),
3134 value_from_string ("KDEBUG-"));
3135 cisco_kernel_mode = 1;
3136 }
3137 goto got_status;
3138 case 'N': /* Cisco special: status and offsets */
3139 {
3140 bfd_vma text_addr, data_addr, bss_addr;
3141 bfd_signed_vma text_off, data_off, bss_off;
3142 unsigned char *p1;
3143
3144 status->kind = TARGET_WAITKIND_STOPPED;
3145 status->value.sig = (enum target_signal)
3146 (((fromhex (buf[1])) << 4) + (fromhex (buf[2])));
3147
3148 if (symfile_objfile == NULL)
3149 {
3150 warning ("Relocation packet recieved with no symbol file. \
3151 Packet Dropped");
3152 goto got_status;
3153 }
3154
3155 /* Relocate object file. Buffer format is NAATT;DD;BB
3156 * where AA is the signal number, TT is the new text
3157 * address, DD * is the new data address, and BB is the
3158 * new bss address. */
3159
3160 p = &buf[3];
3161 text_addr = strtoul (p, (char **) &p1, 16);
3162 if (p1 == p || *p1 != ';')
3163 warning ("Malformed relocation packet: Packet '%s'", buf);
3164 p = p1 + 1;
3165 data_addr = strtoul (p, (char **) &p1, 16);
3166 if (p1 == p || *p1 != ';')
3167 warning ("Malformed relocation packet: Packet '%s'", buf);
3168 p = p1 + 1;
3169 bss_addr = strtoul (p, (char **) &p1, 16);
3170 if (p1 == p)
3171 warning ("Malformed relocation packet: Packet '%s'", buf);
3172
3173 if (remote_cisco_section_offsets (text_addr, data_addr, bss_addr,
3174 &text_off, &data_off, &bss_off)
3175 == 0)
3176 if (text_off != 0 || data_off != 0 || bss_off != 0)
3177 remote_cisco_objfile_relocate (text_off, data_off, bss_off);
3178
3179 goto got_status;
3180 }
3181 case 'W': /* Target exited */
3182 {
3183 /* The remote process exited. */
3184 status->kind = TARGET_WAITKIND_EXITED;
3185 status->value.integer = (fromhex (buf[1]) << 4) + fromhex (buf[2]);
3186 goto got_status;
3187 }
3188 case 'X':
3189 status->kind = TARGET_WAITKIND_SIGNALLED;
3190 status->value.sig = (enum target_signal)
3191 (((fromhex (buf[1])) << 4) + (fromhex (buf[2])));
3192 kill_kludge = 1;
3193
3194 goto got_status;
3195 case 'O': /* Console output */
3196 remote_console_output (buf + 1);
3197 /* Return immediately to the event loop. The event loop will
3198 still be waiting on the inferior afterwards. */
3199 status->kind = TARGET_WAITKIND_IGNORE;
3200 goto got_status;
3201 case '\0':
3202 if (last_sent_signal != TARGET_SIGNAL_0)
3203 {
3204 /* Zero length reply means that we tried 'S' or 'C' and
3205 the remote system doesn't support it. */
3206 target_terminal_ours_for_output ();
3207 printf_filtered
3208 ("Can't send signals to this remote system. %s not sent.\n",
3209 target_signal_to_name (last_sent_signal));
3210 last_sent_signal = TARGET_SIGNAL_0;
3211 target_terminal_inferior ();
3212
3213 strcpy ((char *) buf, last_sent_step ? "s" : "c");
3214 putpkt ((char *) buf);
3215 continue;
3216 }
3217 /* else fallthrough */
3218 default:
3219 warning ("Invalid remote reply: %s", buf);
3220 continue;
3221 }
3222 }
3223 got_status:
3224 if (thread_num != -1)
3225 {
3226 return pid_to_ptid (thread_num);
3227 }
3228 return inferior_ptid;
3229 }
3230
3231 /* Number of bytes of registers this stub implements. */
3232
3233 static int register_bytes_found;
3234
3235 /* Read the remote registers into the block REGS. */
3236 /* Currently we just read all the registers, so we don't use regno. */
3237
3238 /* ARGSUSED */
3239 static void
3240 remote_fetch_registers (int regno)
3241 {
3242 char *buf = alloca (PBUFSIZ);
3243 int i;
3244 char *p;
3245 char *regs = alloca (REGISTER_BYTES);
3246
3247 set_thread (PIDGET (inferior_ptid), 1);
3248
3249 sprintf (buf, "g");
3250 remote_send (buf, PBUFSIZ);
3251
3252 /* Save the size of the packet sent to us by the target. Its used
3253 as a heuristic when determining the max size of packets that the
3254 target can safely receive. */
3255 if (actual_register_packet_size == 0)
3256 actual_register_packet_size = strlen (buf);
3257
3258 /* Unimplemented registers read as all bits zero. */
3259 memset (regs, 0, REGISTER_BYTES);
3260
3261 /* We can get out of synch in various cases. If the first character
3262 in the buffer is not a hex character, assume that has happened
3263 and try to fetch another packet to read. */
3264 while ((buf[0] < '0' || buf[0] > '9')
3265 && (buf[0] < 'a' || buf[0] > 'f')
3266 && buf[0] != 'x') /* New: unavailable register value */
3267 {
3268 if (remote_debug)
3269 fprintf_unfiltered (gdb_stdlog,
3270 "Bad register packet; fetching a new packet\n");
3271 getpkt (buf, PBUFSIZ, 0);
3272 }
3273
3274 /* Reply describes registers byte by byte, each byte encoded as two
3275 hex characters. Suck them all up, then supply them to the
3276 register cacheing/storage mechanism. */
3277
3278 p = buf;
3279 for (i = 0; i < REGISTER_BYTES; i++)
3280 {
3281 if (p[0] == 0)
3282 break;
3283 if (p[1] == 0)
3284 {
3285 warning ("Remote reply is of odd length: %s", buf);
3286 /* Don't change register_bytes_found in this case, and don't
3287 print a second warning. */
3288 goto supply_them;
3289 }
3290 if (p[0] == 'x' && p[1] == 'x')
3291 regs[i] = 0; /* 'x' */
3292 else
3293 regs[i] = fromhex (p[0]) * 16 + fromhex (p[1]);
3294 p += 2;
3295 }
3296
3297 if (i != register_bytes_found)
3298 {
3299 register_bytes_found = i;
3300 if (REGISTER_BYTES_OK_P ()
3301 && !REGISTER_BYTES_OK (i))
3302 warning ("Remote reply is too short: %s", buf);
3303 }
3304
3305 supply_them:
3306 for (i = 0; i < NUM_REGS; i++)
3307 {
3308 supply_register (i, &regs[REGISTER_BYTE (i)]);
3309 if (buf[REGISTER_BYTE (i) * 2] == 'x')
3310 set_register_cached (i, -1);
3311 }
3312 }
3313
3314 /* Prepare to store registers. Since we may send them all (using a
3315 'G' request), we have to read out the ones we don't want to change
3316 first. */
3317
3318 static void
3319 remote_prepare_to_store (void)
3320 {
3321 /* Make sure the entire registers array is valid. */
3322 switch (remote_protocol_P.support)
3323 {
3324 case PACKET_DISABLE:
3325 case PACKET_SUPPORT_UNKNOWN:
3326 read_register_bytes (0, (char *) NULL, REGISTER_BYTES);
3327 break;
3328 case PACKET_ENABLE:
3329 break;
3330 }
3331 }
3332
3333 /* Helper: Attempt to store REGNO using the P packet. Return fail IFF
3334 packet was not recognized. */
3335
3336 static int
3337 store_register_using_P (int regno)
3338 {
3339 /* Try storing a single register. */
3340 char *buf = alloca (PBUFSIZ);
3341 char *regp;
3342 char *p;
3343 int i;
3344
3345 sprintf (buf, "P%x=", regno);
3346 p = buf + strlen (buf);
3347 regp = register_buffer (regno);
3348 bin2hex (regp, p, REGISTER_RAW_SIZE (regno));
3349 remote_send (buf, PBUFSIZ);
3350
3351 return buf[0] != '\0';
3352 }
3353
3354
3355 /* Store register REGNO, or all registers if REGNO == -1, from the contents
3356 of the register cache buffer. FIXME: ignores errors. */
3357
3358 static void
3359 remote_store_registers (int regno)
3360 {
3361 char *buf = alloca (PBUFSIZ);
3362 int i;
3363 char *p;
3364 char *regs;
3365
3366 set_thread (PIDGET (inferior_ptid), 1);
3367
3368 if (regno >= 0)
3369 {
3370 switch (remote_protocol_P.support)
3371 {
3372 case PACKET_DISABLE:
3373 break;
3374 case PACKET_ENABLE:
3375 if (store_register_using_P (regno))
3376 return;
3377 else
3378 error ("Protocol error: P packet not recognized by stub");
3379 case PACKET_SUPPORT_UNKNOWN:
3380 if (store_register_using_P (regno))
3381 {
3382 /* The stub recognized the 'P' packet. Remember this. */
3383 remote_protocol_P.support = PACKET_ENABLE;
3384 return;
3385 }
3386 else
3387 {
3388 /* The stub does not support the 'P' packet. Use 'G'
3389 instead, and don't try using 'P' in the future (it
3390 will just waste our time). */
3391 remote_protocol_P.support = PACKET_DISABLE;
3392 break;
3393 }
3394 }
3395 }
3396
3397 buf[0] = 'G';
3398
3399 /* Command describes registers byte by byte,
3400 each byte encoded as two hex characters. */
3401
3402 regs = register_buffer (-1);
3403 p = buf + 1;
3404 /* remote_prepare_to_store insures that register_bytes_found gets set. */
3405 bin2hex (regs, p, register_bytes_found);
3406 remote_send (buf, PBUFSIZ);
3407 }
3408 \f
3409
3410 /* Return the number of hex digits in num. */
3411
3412 static int
3413 hexnumlen (ULONGEST num)
3414 {
3415 int i;
3416
3417 for (i = 0; num != 0; i++)
3418 num >>= 4;
3419
3420 return max (i, 1);
3421 }
3422
3423 /* Set BUF to the minimum number of hex digits representing NUM. */
3424
3425 static int
3426 hexnumstr (char *buf, ULONGEST num)
3427 {
3428 int len = hexnumlen (num);
3429 return hexnumnstr (buf, num, len);
3430 }
3431
3432
3433 /* Set BUF to the hex digits representing NUM, padded to WIDTH characters. */
3434
3435 static int
3436 hexnumnstr (char *buf, ULONGEST num, int width)
3437 {
3438 int i;
3439
3440 buf[width] = '\0';
3441
3442 for (i = width - 1; i >= 0; i--)
3443 {
3444 buf[i] = "0123456789abcdef"[(num & 0xf)];
3445 num >>= 4;
3446 }
3447
3448 return width;
3449 }
3450
3451 /* Mask all but the least significant REMOTE_ADDRESS_SIZE bits. */
3452
3453 static CORE_ADDR
3454 remote_address_masked (CORE_ADDR addr)
3455 {
3456 if (remote_address_size > 0
3457 && remote_address_size < (sizeof (ULONGEST) * 8))
3458 {
3459 /* Only create a mask when that mask can safely be constructed
3460 in a ULONGEST variable. */
3461 ULONGEST mask = 1;
3462 mask = (mask << remote_address_size) - 1;
3463 addr &= mask;
3464 }
3465 return addr;
3466 }
3467
3468 /* Determine whether the remote target supports binary downloading.
3469 This is accomplished by sending a no-op memory write of zero length
3470 to the target at the specified address. It does not suffice to send
3471 the whole packet, since many stubs strip the eighth bit and subsequently
3472 compute a wrong checksum, which causes real havoc with remote_write_bytes.
3473
3474 NOTE: This can still lose if the serial line is not eight-bit
3475 clean. In cases like this, the user should clear "remote
3476 X-packet". */
3477
3478 static void
3479 check_binary_download (CORE_ADDR addr)
3480 {
3481 switch (remote_protocol_binary_download.support)
3482 {
3483 case PACKET_DISABLE:
3484 break;
3485 case PACKET_ENABLE:
3486 break;
3487 case PACKET_SUPPORT_UNKNOWN:
3488 {
3489 char *buf = alloca (PBUFSIZ);
3490 char *p;
3491
3492 p = buf;
3493 *p++ = 'X';
3494 p += hexnumstr (p, (ULONGEST) addr);
3495 *p++ = ',';
3496 p += hexnumstr (p, (ULONGEST) 0);
3497 *p++ = ':';
3498 *p = '\0';
3499
3500 putpkt_binary (buf, (int) (p - buf));
3501 getpkt (buf, PBUFSIZ, 0);
3502
3503 if (buf[0] == '\0')
3504 {
3505 if (remote_debug)
3506 fprintf_unfiltered (gdb_stdlog,
3507 "binary downloading NOT suppported by target\n");
3508 remote_protocol_binary_download.support = PACKET_DISABLE;
3509 }
3510 else
3511 {
3512 if (remote_debug)
3513 fprintf_unfiltered (gdb_stdlog,
3514 "binary downloading suppported by target\n");
3515 remote_protocol_binary_download.support = PACKET_ENABLE;
3516 }
3517 break;
3518 }
3519 }
3520 }
3521
3522 /* Write memory data directly to the remote machine.
3523 This does not inform the data cache; the data cache uses this.
3524 MEMADDR is the address in the remote memory space.
3525 MYADDR is the address of the buffer in our space.
3526 LEN is the number of bytes.
3527
3528 Returns number of bytes transferred, or 0 (setting errno) for
3529 error. Only transfer a single packet. */
3530
3531 static int
3532 remote_write_bytes (CORE_ADDR memaddr, char *myaddr, int len)
3533 {
3534 unsigned char *buf;
3535 int max_buf_size; /* Max size of packet output buffer */
3536 unsigned char *p;
3537 unsigned char *plen;
3538 long sizeof_buf;
3539 int plenlen;
3540 int todo;
3541 int nr_bytes;
3542
3543 /* Verify that the target can support a binary download */
3544 check_binary_download (memaddr);
3545
3546 /* Determine the max packet size. */
3547 max_buf_size = get_memory_write_packet_size ();
3548 sizeof_buf = max_buf_size + 1; /* Space for trailing NUL */
3549 buf = alloca (sizeof_buf);
3550
3551 /* Subtract header overhead from max payload size - $M<memaddr>,<len>:#nn */
3552 max_buf_size -= 2 + hexnumlen (memaddr + len - 1) + 1 + hexnumlen (len) + 4;
3553
3554 /* construct "M"<memaddr>","<len>":" */
3555 /* sprintf (buf, "M%lx,%x:", (unsigned long) memaddr, todo); */
3556 p = buf;
3557
3558 /* Append [XM]. Compute a best guess of the number of bytes
3559 actually transfered. */
3560 switch (remote_protocol_binary_download.support)
3561 {
3562 case PACKET_ENABLE:
3563 *p++ = 'X';
3564 /* Best guess at number of bytes that will fit. */
3565 todo = min (len, max_buf_size);
3566 break;
3567 case PACKET_DISABLE:
3568 *p++ = 'M';
3569 /* num bytes that will fit */
3570 todo = min (len, max_buf_size / 2);
3571 break;
3572 case PACKET_SUPPORT_UNKNOWN:
3573 internal_error (__FILE__, __LINE__,
3574 "remote_write_bytes: bad internal state");
3575 default:
3576 internal_error (__FILE__, __LINE__, "bad switch");
3577 }
3578
3579 /* Append <memaddr> */
3580 memaddr = remote_address_masked (memaddr);
3581 p += hexnumstr (p, (ULONGEST) memaddr);
3582 *p++ = ',';
3583
3584 /* Append <len>. Retain the location/size of <len>. It may
3585 need to be adjusted once the packet body has been created. */
3586 plen = p;
3587 plenlen = hexnumstr (p, (ULONGEST) todo);
3588 p += plenlen;
3589 *p++ = ':';
3590 *p = '\0';
3591
3592 /* Append the packet body. */
3593 switch (remote_protocol_binary_download.support)
3594 {
3595 case PACKET_ENABLE:
3596 /* Binary mode. Send target system values byte by byte, in
3597 increasing byte addresses. Only escape certain critical
3598 characters. */
3599 for (nr_bytes = 0;
3600 (nr_bytes < todo) && (p - buf) < (max_buf_size - 2);
3601 nr_bytes++)
3602 {
3603 switch (myaddr[nr_bytes] & 0xff)
3604 {
3605 case '$':
3606 case '#':
3607 case 0x7d:
3608 /* These must be escaped */
3609 *p++ = 0x7d;
3610 *p++ = (myaddr[nr_bytes] & 0xff) ^ 0x20;
3611 break;
3612 default:
3613 *p++ = myaddr[nr_bytes] & 0xff;
3614 break;
3615 }
3616 }
3617 if (nr_bytes < todo)
3618 {
3619 /* Escape chars have filled up the buffer prematurely,
3620 and we have actually sent fewer bytes than planned.
3621 Fix-up the length field of the packet. Use the same
3622 number of characters as before. */
3623
3624 plen += hexnumnstr (plen, (ULONGEST) nr_bytes, plenlen);
3625 *plen = ':'; /* overwrite \0 from hexnumnstr() */
3626 }
3627 break;
3628 case PACKET_DISABLE:
3629 /* Normal mode: Send target system values byte by byte, in
3630 increasing byte addresses. Each byte is encoded as a two hex
3631 value. */
3632 nr_bytes = bin2hex (myaddr, p, todo);
3633 break;
3634 case PACKET_SUPPORT_UNKNOWN:
3635 internal_error (__FILE__, __LINE__,
3636 "remote_write_bytes: bad internal state");
3637 default:
3638 internal_error (__FILE__, __LINE__, "bad switch");
3639 }
3640
3641 putpkt_binary (buf, (int) (p - buf));
3642 getpkt (buf, sizeof_buf, 0);
3643
3644 if (buf[0] == 'E')
3645 {
3646 /* There is no correspondance between what the remote protocol
3647 uses for errors and errno codes. We would like a cleaner way
3648 of representing errors (big enough to include errno codes,
3649 bfd_error codes, and others). But for now just return EIO. */
3650 errno = EIO;
3651 return 0;
3652 }
3653
3654 /* Return NR_BYTES, not TODO, in case escape chars caused us to send fewer
3655 bytes than we'd planned. */
3656 return nr_bytes;
3657 }
3658
3659 /* Read memory data directly from the remote machine.
3660 This does not use the data cache; the data cache uses this.
3661 MEMADDR is the address in the remote memory space.
3662 MYADDR is the address of the buffer in our space.
3663 LEN is the number of bytes.
3664
3665 Returns number of bytes transferred, or 0 for error. */
3666
3667 /* NOTE: cagney/1999-10-18: This function (and its siblings in other
3668 remote targets) shouldn't attempt to read the entire buffer.
3669 Instead it should read a single packet worth of data and then
3670 return the byte size of that packet to the caller. The caller (its
3671 caller and its callers caller ;-) already contains code for
3672 handling partial reads. */
3673
3674 static int
3675 remote_read_bytes (CORE_ADDR memaddr, char *myaddr, int len)
3676 {
3677 char *buf;
3678 int max_buf_size; /* Max size of packet output buffer */
3679 long sizeof_buf;
3680 int origlen;
3681
3682 /* Create a buffer big enough for this packet. */
3683 max_buf_size = get_memory_read_packet_size ();
3684 sizeof_buf = max_buf_size + 1; /* Space for trailing NUL */
3685 buf = alloca (sizeof_buf);
3686
3687 origlen = len;
3688 while (len > 0)
3689 {
3690 char *p;
3691 int todo;
3692 int i;
3693
3694 todo = min (len, max_buf_size / 2); /* num bytes that will fit */
3695
3696 /* construct "m"<memaddr>","<len>" */
3697 /* sprintf (buf, "m%lx,%x", (unsigned long) memaddr, todo); */
3698 memaddr = remote_address_masked (memaddr);
3699 p = buf;
3700 *p++ = 'm';
3701 p += hexnumstr (p, (ULONGEST) memaddr);
3702 *p++ = ',';
3703 p += hexnumstr (p, (ULONGEST) todo);
3704 *p = '\0';
3705
3706 putpkt (buf);
3707 getpkt (buf, sizeof_buf, 0);
3708
3709 if (buf[0] == 'E')
3710 {
3711 /* There is no correspondance between what the remote protocol uses
3712 for errors and errno codes. We would like a cleaner way of
3713 representing errors (big enough to include errno codes, bfd_error
3714 codes, and others). But for now just return EIO. */
3715 errno = EIO;
3716 return 0;
3717 }
3718
3719 /* Reply describes memory byte by byte,
3720 each byte encoded as two hex characters. */
3721
3722 p = buf;
3723 if ((i = hex2bin (p, myaddr, todo)) < todo)
3724 {
3725 /* Reply is short. This means that we were able to read
3726 only part of what we wanted to. */
3727 return i + (origlen - len);
3728 }
3729 myaddr += todo;
3730 memaddr += todo;
3731 len -= todo;
3732 }
3733 return origlen;
3734 }
3735 \f
3736 /* Read or write LEN bytes from inferior memory at MEMADDR,
3737 transferring to or from debugger address BUFFER. Write to inferior if
3738 SHOULD_WRITE is nonzero. Returns length of data written or read; 0
3739 for error. TARGET is unused. */
3740
3741 /* ARGSUSED */
3742 static int
3743 remote_xfer_memory (CORE_ADDR mem_addr, char *buffer, int mem_len,
3744 int should_write,
3745 struct mem_attrib *attrib ATTRIBUTE_UNUSED,
3746 struct target_ops *target)
3747 {
3748 CORE_ADDR targ_addr;
3749 int targ_len;
3750 int res;
3751
3752 REMOTE_TRANSLATE_XFER_ADDRESS (mem_addr, mem_len, &targ_addr, &targ_len);
3753 if (targ_len <= 0)
3754 return 0;
3755
3756 if (should_write)
3757 res = remote_write_bytes (targ_addr, buffer, targ_len);
3758 else
3759 res = remote_read_bytes (targ_addr, buffer, targ_len);
3760
3761 return res;
3762 }
3763
3764
3765 #if 0
3766 /* Enable after 4.12. */
3767
3768 void
3769 remote_search (int len, char *data, char *mask, CORE_ADDR startaddr,
3770 int increment, CORE_ADDR lorange, CORE_ADDR hirange,
3771 CORE_ADDR *addr_found, char *data_found)
3772 {
3773 if (increment == -4 && len == 4)
3774 {
3775 long mask_long, data_long;
3776 long data_found_long;
3777 CORE_ADDR addr_we_found;
3778 char *buf = alloca (PBUFSIZ);
3779 long returned_long[2];
3780 char *p;
3781
3782 mask_long = extract_unsigned_integer (mask, len);
3783 data_long = extract_unsigned_integer (data, len);
3784 sprintf (buf, "t%x:%x,%x", startaddr, data_long, mask_long);
3785 putpkt (buf);
3786 getpkt (buf, PBUFSIZ, 0);
3787 if (buf[0] == '\0')
3788 {
3789 /* The stub doesn't support the 't' request. We might want to
3790 remember this fact, but on the other hand the stub could be
3791 switched on us. Maybe we should remember it only until
3792 the next "target remote". */
3793 generic_search (len, data, mask, startaddr, increment, lorange,
3794 hirange, addr_found, data_found);
3795 return;
3796 }
3797
3798 if (buf[0] == 'E')
3799 /* There is no correspondance between what the remote protocol uses
3800 for errors and errno codes. We would like a cleaner way of
3801 representing errors (big enough to include errno codes, bfd_error
3802 codes, and others). But for now just use EIO. */
3803 memory_error (EIO, startaddr);
3804 p = buf;
3805 addr_we_found = 0;
3806 while (*p != '\0' && *p != ',')
3807 addr_we_found = (addr_we_found << 4) + fromhex (*p++);
3808 if (*p == '\0')
3809 error ("Protocol error: short return for search");
3810
3811 data_found_long = 0;
3812 while (*p != '\0' && *p != ',')
3813 data_found_long = (data_found_long << 4) + fromhex (*p++);
3814 /* Ignore anything after this comma, for future extensions. */
3815
3816 if (addr_we_found < lorange || addr_we_found >= hirange)
3817 {
3818 *addr_found = 0;
3819 return;
3820 }
3821
3822 *addr_found = addr_we_found;
3823 *data_found = store_unsigned_integer (data_we_found, len);
3824 return;
3825 }
3826 generic_search (len, data, mask, startaddr, increment, lorange,
3827 hirange, addr_found, data_found);
3828 }
3829 #endif /* 0 */
3830 \f
3831 static void
3832 remote_files_info (struct target_ops *ignore)
3833 {
3834 puts_filtered ("Debugging a target over a serial line.\n");
3835 }
3836 \f
3837 /* Stuff for dealing with the packets which are part of this protocol.
3838 See comment at top of file for details. */
3839
3840 /* Read a single character from the remote end, masking it down to 7 bits. */
3841
3842 static int
3843 readchar (int timeout)
3844 {
3845 int ch;
3846
3847 ch = SERIAL_READCHAR (remote_desc, timeout);
3848
3849 if (ch >= 0)
3850 return (ch & 0x7f);
3851
3852 switch ((enum serial_rc) ch)
3853 {
3854 case SERIAL_EOF:
3855 target_mourn_inferior ();
3856 error ("Remote connection closed");
3857 /* no return */
3858 case SERIAL_ERROR:
3859 perror_with_name ("Remote communication error");
3860 /* no return */
3861 case SERIAL_TIMEOUT:
3862 break;
3863 }
3864 return ch;
3865 }
3866
3867 /* Send the command in BUF to the remote machine, and read the reply
3868 into BUF. Report an error if we get an error reply. */
3869
3870 static void
3871 remote_send (char *buf,
3872 long sizeof_buf)
3873 {
3874 putpkt (buf);
3875 getpkt (buf, sizeof_buf, 0);
3876
3877 if (buf[0] == 'E')
3878 error ("Remote failure reply: %s", buf);
3879 }
3880
3881 /* Display a null-terminated packet on stdout, for debugging, using C
3882 string notation. */
3883
3884 static void
3885 print_packet (char *buf)
3886 {
3887 puts_filtered ("\"");
3888 fputstr_filtered (buf, '"', gdb_stdout);
3889 puts_filtered ("\"");
3890 }
3891
3892 int
3893 putpkt (char *buf)
3894 {
3895 return putpkt_binary (buf, strlen (buf));
3896 }
3897
3898 /* Send a packet to the remote machine, with error checking. The data
3899 of the packet is in BUF. The string in BUF can be at most PBUFSIZ - 5
3900 to account for the $, # and checksum, and for a possible /0 if we are
3901 debugging (remote_debug) and want to print the sent packet as a string */
3902
3903 static int
3904 putpkt_binary (char *buf, int cnt)
3905 {
3906 int i;
3907 unsigned char csum = 0;
3908 char *buf2 = alloca (cnt + 6);
3909 long sizeof_junkbuf = PBUFSIZ;
3910 char *junkbuf = alloca (sizeof_junkbuf);
3911
3912 int ch;
3913 int tcount = 0;
3914 char *p;
3915
3916 /* Copy the packet into buffer BUF2, encapsulating it
3917 and giving it a checksum. */
3918
3919 p = buf2;
3920 *p++ = '$';
3921
3922 for (i = 0; i < cnt; i++)
3923 {
3924 csum += buf[i];
3925 *p++ = buf[i];
3926 }
3927 *p++ = '#';
3928 *p++ = tohex ((csum >> 4) & 0xf);
3929 *p++ = tohex (csum & 0xf);
3930
3931 /* Send it over and over until we get a positive ack. */
3932
3933 while (1)
3934 {
3935 int started_error_output = 0;
3936
3937 if (remote_debug)
3938 {
3939 *p = '\0';
3940 fprintf_unfiltered (gdb_stdlog, "Sending packet: ");
3941 fputstrn_unfiltered (buf2, p - buf2, 0, gdb_stdlog);
3942 fprintf_unfiltered (gdb_stdlog, "...");
3943 gdb_flush (gdb_stdlog);
3944 }
3945 if (SERIAL_WRITE (remote_desc, buf2, p - buf2))
3946 perror_with_name ("putpkt: write failed");
3947
3948 /* read until either a timeout occurs (-2) or '+' is read */
3949 while (1)
3950 {
3951 ch = readchar (remote_timeout);
3952
3953 if (remote_debug)
3954 {
3955 switch (ch)
3956 {
3957 case '+':
3958 case '-':
3959 case SERIAL_TIMEOUT:
3960 case '$':
3961 if (started_error_output)
3962 {
3963 putchar_unfiltered ('\n');
3964 started_error_output = 0;
3965 }
3966 }
3967 }
3968
3969 switch (ch)
3970 {
3971 case '+':
3972 if (remote_debug)
3973 fprintf_unfiltered (gdb_stdlog, "Ack\n");
3974 return 1;
3975 case '-':
3976 if (remote_debug)
3977 fprintf_unfiltered (gdb_stdlog, "Nak\n");
3978 case SERIAL_TIMEOUT:
3979 tcount++;
3980 if (tcount > 3)
3981 return 0;
3982 break; /* Retransmit buffer */
3983 case '$':
3984 {
3985 if (remote_debug)
3986 fprintf_unfiltered (gdb_stdlog, "Packet instead of Ack, ignoring it\n");
3987 /* It's probably an old response, and we're out of sync.
3988 Just gobble up the packet and ignore it. */
3989 read_frame (junkbuf, sizeof_junkbuf);
3990 continue; /* Now, go look for + */
3991 }
3992 default:
3993 if (remote_debug)
3994 {
3995 if (!started_error_output)
3996 {
3997 started_error_output = 1;
3998 fprintf_unfiltered (gdb_stdlog, "putpkt: Junk: ");
3999 }
4000 fputc_unfiltered (ch & 0177, gdb_stdlog);
4001 }
4002 continue;
4003 }
4004 break; /* Here to retransmit */
4005 }
4006
4007 #if 0
4008 /* This is wrong. If doing a long backtrace, the user should be
4009 able to get out next time we call QUIT, without anything as
4010 violent as interrupt_query. If we want to provide a way out of
4011 here without getting to the next QUIT, it should be based on
4012 hitting ^C twice as in remote_wait. */
4013 if (quit_flag)
4014 {
4015 quit_flag = 0;
4016 interrupt_query ();
4017 }
4018 #endif
4019 }
4020 }
4021
4022 static int remote_cisco_mode;
4023
4024 /* Come here after finding the start of the frame. Collect the rest
4025 into BUF, verifying the checksum, length, and handling run-length
4026 compression. No more than sizeof_buf-1 characters are read so that
4027 the buffer can be NUL terminated.
4028
4029 Returns -1 on error, number of characters in buffer (ignoring the
4030 trailing NULL) on success. (could be extended to return one of the
4031 SERIAL status indications). */
4032
4033 static long
4034 read_frame (char *buf,
4035 long sizeof_buf)
4036 {
4037 unsigned char csum;
4038 long bc;
4039 int c;
4040
4041 csum = 0;
4042 bc = 0;
4043
4044 while (1)
4045 {
4046 /* ASSERT (bc < sizeof_buf - 1) - space for trailing NUL */
4047 c = readchar (remote_timeout);
4048 switch (c)
4049 {
4050 case SERIAL_TIMEOUT:
4051 if (remote_debug)
4052 fputs_filtered ("Timeout in mid-packet, retrying\n", gdb_stdlog);
4053 return -1;
4054 case '$':
4055 if (remote_debug)
4056 fputs_filtered ("Saw new packet start in middle of old one\n",
4057 gdb_stdlog);
4058 return -1; /* Start a new packet, count retries */
4059 case '#':
4060 {
4061 unsigned char pktcsum;
4062 int check_0 = 0;
4063 int check_1 = 0;
4064
4065 buf[bc] = '\0';
4066
4067 check_0 = readchar (remote_timeout);
4068 if (check_0 >= 0)
4069 check_1 = readchar (remote_timeout);
4070
4071 if (check_0 == SERIAL_TIMEOUT || check_1 == SERIAL_TIMEOUT)
4072 {
4073 if (remote_debug)
4074 fputs_filtered ("Timeout in checksum, retrying\n", gdb_stdlog);
4075 return -1;
4076 }
4077 else if (check_0 < 0 || check_1 < 0)
4078 {
4079 if (remote_debug)
4080 fputs_filtered ("Communication error in checksum\n", gdb_stdlog);
4081 return -1;
4082 }
4083
4084 pktcsum = (fromhex (check_0) << 4) | fromhex (check_1);
4085 if (csum == pktcsum)
4086 return bc;
4087
4088 if (remote_debug)
4089 {
4090 fprintf_filtered (gdb_stdlog,
4091 "Bad checksum, sentsum=0x%x, csum=0x%x, buf=",
4092 pktcsum, csum);
4093 fputs_filtered (buf, gdb_stdlog);
4094 fputs_filtered ("\n", gdb_stdlog);
4095 }
4096 /* Number of characters in buffer ignoring trailing
4097 NUL. */
4098 return -1;
4099 }
4100 case '*': /* Run length encoding */
4101 {
4102 int repeat;
4103 csum += c;
4104
4105 if (remote_cisco_mode == 0)
4106 {
4107 c = readchar (remote_timeout);
4108 csum += c;
4109 repeat = c - ' ' + 3; /* Compute repeat count */
4110 }
4111 else
4112 {
4113 /* Cisco's run-length encoding variant uses two
4114 hex chars to represent the repeat count. */
4115
4116 c = readchar (remote_timeout);
4117 csum += c;
4118 repeat = fromhex (c) << 4;
4119 c = readchar (remote_timeout);
4120 csum += c;
4121 repeat += fromhex (c);
4122 }
4123
4124 /* The character before ``*'' is repeated. */
4125
4126 if (repeat > 0 && repeat <= 255
4127 && bc > 0
4128 && bc + repeat < sizeof_buf - 1)
4129 {
4130 memset (&buf[bc], buf[bc - 1], repeat);
4131 bc += repeat;
4132 continue;
4133 }
4134
4135 buf[bc] = '\0';
4136 printf_filtered ("Repeat count %d too large for buffer: ", repeat);
4137 puts_filtered (buf);
4138 puts_filtered ("\n");
4139 return -1;
4140 }
4141 default:
4142 if (bc < sizeof_buf - 1)
4143 {
4144 buf[bc++] = c;
4145 csum += c;
4146 continue;
4147 }
4148
4149 buf[bc] = '\0';
4150 puts_filtered ("Remote packet too long: ");
4151 puts_filtered (buf);
4152 puts_filtered ("\n");
4153
4154 return -1;
4155 }
4156 }
4157 }
4158
4159 /* Read a packet from the remote machine, with error checking, and
4160 store it in BUF. If FOREVER, wait forever rather than timing out;
4161 this is used (in synchronous mode) to wait for a target that is is
4162 executing user code to stop. */
4163 /* FIXME: ezannoni 2000-02-01 this wrapper is necessary so that we
4164 don't have to change all the calls to getpkt to deal with the
4165 return value, because at the moment I don't know what the right
4166 thing to do it for those. */
4167 void
4168 getpkt (char *buf,
4169 long sizeof_buf,
4170 int forever)
4171 {
4172 int timed_out;
4173
4174 timed_out = getpkt_sane (buf, sizeof_buf, forever);
4175 }
4176
4177
4178 /* Read a packet from the remote machine, with error checking, and
4179 store it in BUF. If FOREVER, wait forever rather than timing out;
4180 this is used (in synchronous mode) to wait for a target that is is
4181 executing user code to stop. If FOREVER == 0, this function is
4182 allowed to time out gracefully and return an indication of this to
4183 the caller. */
4184 static int
4185 getpkt_sane (char *buf,
4186 long sizeof_buf,
4187 int forever)
4188 {
4189 int c;
4190 int tries;
4191 int timeout;
4192 int val;
4193
4194 strcpy (buf, "timeout");
4195
4196 if (forever)
4197 {
4198 timeout = watchdog > 0 ? watchdog : -1;
4199 }
4200
4201 else
4202 timeout = remote_timeout;
4203
4204 #define MAX_TRIES 3
4205
4206 for (tries = 1; tries <= MAX_TRIES; tries++)
4207 {
4208 /* This can loop forever if the remote side sends us characters
4209 continuously, but if it pauses, we'll get a zero from readchar
4210 because of timeout. Then we'll count that as a retry. */
4211
4212 /* Note that we will only wait forever prior to the start of a packet.
4213 After that, we expect characters to arrive at a brisk pace. They
4214 should show up within remote_timeout intervals. */
4215
4216 do
4217 {
4218 c = readchar (timeout);
4219
4220 if (c == SERIAL_TIMEOUT)
4221 {
4222 if (forever) /* Watchdog went off? Kill the target. */
4223 {
4224 QUIT;
4225 target_mourn_inferior ();
4226 error ("Watchdog has expired. Target detached.\n");
4227 }
4228 if (remote_debug)
4229 fputs_filtered ("Timed out.\n", gdb_stdlog);
4230 goto retry;
4231 }
4232 }
4233 while (c != '$');
4234
4235 /* We've found the start of a packet, now collect the data. */
4236
4237 val = read_frame (buf, sizeof_buf);
4238
4239 if (val >= 0)
4240 {
4241 if (remote_debug)
4242 {
4243 fprintf_unfiltered (gdb_stdlog, "Packet received: ");
4244 fputstr_unfiltered (buf, 0, gdb_stdlog);
4245 fprintf_unfiltered (gdb_stdlog, "\n");
4246 }
4247 SERIAL_WRITE (remote_desc, "+", 1);
4248 return 0;
4249 }
4250
4251 /* Try the whole thing again. */
4252 retry:
4253 SERIAL_WRITE (remote_desc, "-", 1);
4254 }
4255
4256 /* We have tried hard enough, and just can't receive the packet. Give up. */
4257
4258 printf_unfiltered ("Ignoring packet error, continuing...\n");
4259 SERIAL_WRITE (remote_desc, "+", 1);
4260 return 1;
4261 }
4262 \f
4263 static void
4264 remote_kill (void)
4265 {
4266 /* For some mysterious reason, wait_for_inferior calls kill instead of
4267 mourn after it gets TARGET_WAITKIND_SIGNALLED. Work around it. */
4268 if (kill_kludge)
4269 {
4270 kill_kludge = 0;
4271 target_mourn_inferior ();
4272 return;
4273 }
4274
4275 /* Use catch_errors so the user can quit from gdb even when we aren't on
4276 speaking terms with the remote system. */
4277 catch_errors ((catch_errors_ftype *) putpkt, "k", "", RETURN_MASK_ERROR);
4278
4279 /* Don't wait for it to die. I'm not really sure it matters whether
4280 we do or not. For the existing stubs, kill is a noop. */
4281 target_mourn_inferior ();
4282 }
4283
4284 /* Async version of remote_kill. */
4285 static void
4286 remote_async_kill (void)
4287 {
4288 /* Unregister the file descriptor from the event loop. */
4289 if (target_is_async_p ())
4290 SERIAL_ASYNC (remote_desc, NULL, 0);
4291
4292 /* For some mysterious reason, wait_for_inferior calls kill instead of
4293 mourn after it gets TARGET_WAITKIND_SIGNALLED. Work around it. */
4294 if (kill_kludge)
4295 {
4296 kill_kludge = 0;
4297 target_mourn_inferior ();
4298 return;
4299 }
4300
4301 /* Use catch_errors so the user can quit from gdb even when we aren't on
4302 speaking terms with the remote system. */
4303 catch_errors ((catch_errors_ftype *) putpkt, "k", "", RETURN_MASK_ERROR);
4304
4305 /* Don't wait for it to die. I'm not really sure it matters whether
4306 we do or not. For the existing stubs, kill is a noop. */
4307 target_mourn_inferior ();
4308 }
4309
4310 static void
4311 remote_mourn (void)
4312 {
4313 remote_mourn_1 (&remote_ops);
4314 }
4315
4316 static void
4317 remote_async_mourn (void)
4318 {
4319 remote_mourn_1 (&remote_async_ops);
4320 }
4321
4322 static void
4323 extended_remote_mourn (void)
4324 {
4325 /* We do _not_ want to mourn the target like this; this will
4326 remove the extended remote target from the target stack,
4327 and the next time the user says "run" it'll fail.
4328
4329 FIXME: What is the right thing to do here? */
4330 #if 0
4331 remote_mourn_1 (&extended_remote_ops);
4332 #endif
4333 }
4334
4335 /* Worker function for remote_mourn. */
4336 static void
4337 remote_mourn_1 (struct target_ops *target)
4338 {
4339 unpush_target (target);
4340 generic_mourn_inferior ();
4341 }
4342
4343 /* In the extended protocol we want to be able to do things like
4344 "run" and have them basically work as expected. So we need
4345 a special create_inferior function.
4346
4347 FIXME: One day add support for changing the exec file
4348 we're debugging, arguments and an environment. */
4349
4350 static void
4351 extended_remote_create_inferior (char *exec_file, char *args, char **env)
4352 {
4353 /* Rip out the breakpoints; we'll reinsert them after restarting
4354 the remote server. */
4355 remove_breakpoints ();
4356
4357 /* Now restart the remote server. */
4358 extended_remote_restart ();
4359
4360 /* Now put the breakpoints back in. This way we're safe if the
4361 restart function works via a unix fork on the remote side. */
4362 insert_breakpoints ();
4363
4364 /* Clean up from the last time we were running. */
4365 clear_proceed_status ();
4366
4367 /* Let the remote process run. */
4368 proceed (-1, TARGET_SIGNAL_0, 0);
4369 }
4370
4371 /* Async version of extended_remote_create_inferior. */
4372 static void
4373 extended_remote_async_create_inferior (char *exec_file, char *args, char **env)
4374 {
4375 /* Rip out the breakpoints; we'll reinsert them after restarting
4376 the remote server. */
4377 remove_breakpoints ();
4378
4379 /* If running asynchronously, register the target file descriptor
4380 with the event loop. */
4381 if (event_loop_p && target_can_async_p ())
4382 target_async (inferior_event_handler, 0);
4383
4384 /* Now restart the remote server. */
4385 extended_remote_restart ();
4386
4387 /* Now put the breakpoints back in. This way we're safe if the
4388 restart function works via a unix fork on the remote side. */
4389 insert_breakpoints ();
4390
4391 /* Clean up from the last time we were running. */
4392 clear_proceed_status ();
4393
4394 /* Let the remote process run. */
4395 proceed (-1, TARGET_SIGNAL_0, 0);
4396 }
4397 \f
4398
4399 /* On some machines, e.g. 68k, we may use a different breakpoint instruction
4400 than other targets; in those use REMOTE_BREAKPOINT instead of just
4401 BREAKPOINT. Also, bi-endian targets may define LITTLE_REMOTE_BREAKPOINT
4402 and BIG_REMOTE_BREAKPOINT. If none of these are defined, we just call
4403 the standard routines that are in mem-break.c. */
4404
4405 /* FIXME, these ought to be done in a more dynamic fashion. For instance,
4406 the choice of breakpoint instruction affects target program design and
4407 vice versa, and by making it user-tweakable, the special code here
4408 goes away and we need fewer special GDB configurations. */
4409
4410 #if defined (LITTLE_REMOTE_BREAKPOINT) && defined (BIG_REMOTE_BREAKPOINT) && !defined(REMOTE_BREAKPOINT)
4411 #define REMOTE_BREAKPOINT
4412 #endif
4413
4414 #ifdef REMOTE_BREAKPOINT
4415
4416 /* If the target isn't bi-endian, just pretend it is. */
4417 #if !defined (LITTLE_REMOTE_BREAKPOINT) && !defined (BIG_REMOTE_BREAKPOINT)
4418 #define LITTLE_REMOTE_BREAKPOINT REMOTE_BREAKPOINT
4419 #define BIG_REMOTE_BREAKPOINT REMOTE_BREAKPOINT
4420 #endif
4421
4422 static unsigned char big_break_insn[] = BIG_REMOTE_BREAKPOINT;
4423 static unsigned char little_break_insn[] = LITTLE_REMOTE_BREAKPOINT;
4424
4425 #endif /* REMOTE_BREAKPOINT */
4426
4427 /* Insert a breakpoint on targets that don't have any better breakpoint
4428 support. We read the contents of the target location and stash it,
4429 then overwrite it with a breakpoint instruction. ADDR is the target
4430 location in the target machine. CONTENTS_CACHE is a pointer to
4431 memory allocated for saving the target contents. It is guaranteed
4432 by the caller to be long enough to save sizeof BREAKPOINT bytes (this
4433 is accomplished via BREAKPOINT_MAX). */
4434
4435 static int
4436 remote_insert_breakpoint (CORE_ADDR addr, char *contents_cache)
4437 {
4438 #ifdef REMOTE_BREAKPOINT
4439 int val;
4440 #endif
4441 int bp_size;
4442
4443 /* Try the "Z" s/w breakpoint packet if it is not already disabled.
4444 If it succeeds, then set the support to PACKET_ENABLE. If it
4445 fails, and the user has explicitly requested the Z support then
4446 report an error, otherwise, mark it disabled and go on. */
4447
4448 if (remote_protocol_Z[Z_PACKET_SOFTWARE_BP].support != PACKET_DISABLE)
4449 {
4450 char *buf = alloca (PBUFSIZ);
4451 char *p = buf;
4452
4453 addr = remote_address_masked (addr);
4454 *(p++) = 'Z';
4455 *(p++) = '0';
4456 *(p++) = ',';
4457 p += hexnumstr (p, (ULONGEST) addr);
4458 BREAKPOINT_FROM_PC (&addr, &bp_size);
4459 sprintf (p, ",%d", bp_size);
4460
4461 putpkt (buf);
4462 getpkt (buf, PBUFSIZ, 0);
4463
4464 switch (packet_ok (buf, &remote_protocol_Z[Z_PACKET_SOFTWARE_BP]))
4465 {
4466 case PACKET_ERROR:
4467 return -1;
4468 case PACKET_OK:
4469 return 0;
4470 case PACKET_UNKNOWN:
4471 break;
4472 }
4473 }
4474
4475 #ifdef REMOTE_BREAKPOINT
4476 val = target_read_memory (addr, contents_cache, sizeof big_break_insn);
4477
4478 if (val == 0)
4479 {
4480 if (TARGET_BYTE_ORDER == BIG_ENDIAN)
4481 val = target_write_memory (addr, (char *) big_break_insn,
4482 sizeof big_break_insn);
4483 else
4484 val = target_write_memory (addr, (char *) little_break_insn,
4485 sizeof little_break_insn);
4486 }
4487
4488 return val;
4489 #else
4490 return memory_insert_breakpoint (addr, contents_cache);
4491 #endif /* REMOTE_BREAKPOINT */
4492 }
4493
4494 static int
4495 remote_remove_breakpoint (CORE_ADDR addr, char *contents_cache)
4496 {
4497 int bp_size;
4498
4499 if (remote_protocol_Z[Z_PACKET_SOFTWARE_BP].support != PACKET_DISABLE)
4500 {
4501 char *buf = alloca (PBUFSIZ);
4502 char *p = buf;
4503
4504 *(p++) = 'z';
4505 *(p++) = '0';
4506 *(p++) = ',';
4507
4508 addr = remote_address_masked (addr);
4509 p += hexnumstr (p, (ULONGEST) addr);
4510 BREAKPOINT_FROM_PC (&addr, &bp_size);
4511 sprintf (p, ",%d", bp_size);
4512
4513 putpkt (buf);
4514 getpkt (buf, PBUFSIZ, 0);
4515
4516 return (buf[0] == 'E');
4517 }
4518
4519 #ifdef REMOTE_BREAKPOINT
4520 return target_write_memory (addr, contents_cache, sizeof big_break_insn);
4521 #else
4522 return memory_remove_breakpoint (addr, contents_cache);
4523 #endif /* REMOTE_BREAKPOINT */
4524 }
4525
4526 static int
4527 watchpoint_to_Z_packet (int type)
4528 {
4529 switch (type)
4530 {
4531 case hw_write:
4532 return 2;
4533 break;
4534 case hw_read:
4535 return 3;
4536 break;
4537 case hw_access:
4538 return 4;
4539 break;
4540 default:
4541 internal_error (__FILE__, __LINE__,
4542 "hw_bp_to_z: bad watchpoint type %d", type);
4543 }
4544 }
4545
4546 /* FIXME: This function should be static and a member of the remote
4547 target vector. */
4548
4549 int
4550 remote_insert_watchpoint (CORE_ADDR addr, int len, int type)
4551 {
4552 char *buf = alloca (PBUFSIZ);
4553 char *p;
4554 enum Z_packet_type packet = watchpoint_to_Z_packet (type);
4555
4556 if (remote_protocol_Z[packet].support == PACKET_DISABLE)
4557 error ("Can't set hardware watchpoints without the '%s' (%s) packet\n",
4558 remote_protocol_Z[packet].name,
4559 remote_protocol_Z[packet].title);
4560
4561 sprintf (buf, "Z%x,", packet);
4562 p = strchr (buf, '\0');
4563 addr = remote_address_masked (addr);
4564 p += hexnumstr (p, (ULONGEST) addr);
4565 sprintf (p, ",%x", len);
4566
4567 putpkt (buf);
4568 getpkt (buf, PBUFSIZ, 0);
4569
4570 switch (packet_ok (buf, &remote_protocol_Z[packet]))
4571 {
4572 case PACKET_ERROR:
4573 case PACKET_UNKNOWN:
4574 return -1;
4575 case PACKET_OK:
4576 return 0;
4577 }
4578 internal_error (__FILE__, __LINE__,
4579 "remote_insert_watchpoint: reached end of function");
4580 }
4581
4582 /* FIXME: This function should be static and a member of the remote
4583 target vector. */
4584
4585 int
4586 remote_remove_watchpoint (CORE_ADDR addr, int len, int type)
4587 {
4588 char *buf = alloca (PBUFSIZ);
4589 char *p;
4590 enum Z_packet_type packet = watchpoint_to_Z_packet (type);
4591
4592 if (remote_protocol_Z[packet].support == PACKET_DISABLE)
4593 error ("Can't clear hardware watchpoints without the '%s' (%s) packet\n",
4594 remote_protocol_Z[packet].name,
4595 remote_protocol_Z[packet].title);
4596
4597 sprintf (buf, "z%x,", packet);
4598 p = strchr (buf, '\0');
4599 addr = remote_address_masked (addr);
4600 p += hexnumstr (p, (ULONGEST) addr);
4601 sprintf (p, ",%x", len);
4602 putpkt (buf);
4603 getpkt (buf, PBUFSIZ, 0);
4604
4605 switch (packet_ok (buf, &remote_protocol_Z[packet]))
4606 {
4607 case PACKET_ERROR:
4608 case PACKET_UNKNOWN:
4609 return -1;
4610 case PACKET_OK:
4611 return 0;
4612 }
4613 internal_error (__FILE__, __LINE__,
4614 "remote_remove_watchpoint: reached end of function");
4615 }
4616
4617 /* FIXME: This function should be static and a member of the remote
4618 target vector. */
4619
4620 int
4621 remote_insert_hw_breakpoint (CORE_ADDR addr, int len)
4622 {
4623 char *buf = alloca (PBUFSIZ);
4624 char *p = buf;
4625
4626 if (remote_protocol_Z[Z_PACKET_HARDWARE_BP].support == PACKET_DISABLE)
4627 error ("Can't set hardware breakpoint without the '%s' (%s) packet\n",
4628 remote_protocol_Z[Z_PACKET_HARDWARE_BP].name,
4629 remote_protocol_Z[Z_PACKET_HARDWARE_BP].title);
4630
4631 *(p++) = 'Z';
4632 *(p++) = '1';
4633 *(p++) = ',';
4634
4635 addr = remote_address_masked (addr);
4636 p += hexnumstr (p, (ULONGEST) addr);
4637 sprintf (p, ",%x", len);
4638
4639 putpkt (buf);
4640 getpkt (buf, PBUFSIZ, 0);
4641
4642 switch (packet_ok (buf, &remote_protocol_Z[Z_PACKET_HARDWARE_BP]))
4643 {
4644 case PACKET_ERROR:
4645 case PACKET_UNKNOWN:
4646 return -1;
4647 case PACKET_OK:
4648 return 0;
4649 }
4650 internal_error (__FILE__, __LINE__,
4651 "remote_remove_watchpoint: reached end of function");
4652 }
4653
4654 /* FIXME: This function should be static and a member of the remote
4655 target vector. */
4656
4657 int
4658 remote_remove_hw_breakpoint (CORE_ADDR addr, int len)
4659 {
4660 char *buf = alloca (PBUFSIZ);
4661 char *p = buf;
4662
4663 if (remote_protocol_Z[Z_PACKET_HARDWARE_BP].support == PACKET_DISABLE)
4664 error ("Can't clear hardware breakpoint without the '%s' (%s) packet\n",
4665 remote_protocol_Z[Z_PACKET_HARDWARE_BP].name,
4666 remote_protocol_Z[Z_PACKET_HARDWARE_BP].title);
4667
4668 *(p++) = 'z';
4669 *(p++) = '1';
4670 *(p++) = ',';
4671
4672 addr = remote_address_masked (addr);
4673 p += hexnumstr (p, (ULONGEST) addr);
4674 sprintf (p, ",%x", len);
4675
4676 putpkt(buf);
4677 getpkt (buf, PBUFSIZ, 0);
4678
4679 switch (packet_ok (buf, &remote_protocol_Z[Z_PACKET_HARDWARE_BP]))
4680 {
4681 case PACKET_ERROR:
4682 case PACKET_UNKNOWN:
4683 return -1;
4684 case PACKET_OK:
4685 return 0;
4686 }
4687 internal_error (__FILE__, __LINE__,
4688 "remote_remove_watchpoint: reached end of function");
4689 }
4690
4691 /* Some targets are only capable of doing downloads, and afterwards
4692 they switch to the remote serial protocol. This function provides
4693 a clean way to get from the download target to the remote target.
4694 It's basically just a wrapper so that we don't have to expose any
4695 of the internal workings of remote.c.
4696
4697 Prior to calling this routine, you should shutdown the current
4698 target code, else you will get the "A program is being debugged
4699 already..." message. Usually a call to pop_target() suffices. */
4700
4701 void
4702 push_remote_target (char *name, int from_tty)
4703 {
4704 printf_filtered ("Switching to remote protocol\n");
4705 remote_open (name, from_tty);
4706 }
4707
4708 /* Other targets want to use the entire remote serial module but with
4709 certain remote_ops overridden. */
4710
4711 void
4712 open_remote_target (char *name, int from_tty, struct target_ops *target,
4713 int extended_p)
4714 {
4715 printf_filtered ("Selecting the %sremote protocol\n",
4716 (extended_p ? "extended-" : ""));
4717 remote_open_1 (name, from_tty, target, extended_p);
4718 }
4719
4720 /* Table used by the crc32 function to calcuate the checksum. */
4721
4722 static unsigned long crc32_table[256] =
4723 {0, 0};
4724
4725 static unsigned long
4726 crc32 (unsigned char *buf, int len, unsigned int crc)
4727 {
4728 if (!crc32_table[1])
4729 {
4730 /* Initialize the CRC table and the decoding table. */
4731 int i, j;
4732 unsigned int c;
4733
4734 for (i = 0; i < 256; i++)
4735 {
4736 for (c = i << 24, j = 8; j > 0; --j)
4737 c = c & 0x80000000 ? (c << 1) ^ 0x04c11db7 : (c << 1);
4738 crc32_table[i] = c;
4739 }
4740 }
4741
4742 while (len--)
4743 {
4744 crc = (crc << 8) ^ crc32_table[((crc >> 24) ^ *buf) & 255];
4745 buf++;
4746 }
4747 return crc;
4748 }
4749
4750 /* compare-sections command
4751
4752 With no arguments, compares each loadable section in the exec bfd
4753 with the same memory range on the target, and reports mismatches.
4754 Useful for verifying the image on the target against the exec file.
4755 Depends on the target understanding the new "qCRC:" request. */
4756
4757 /* FIXME: cagney/1999-10-26: This command should be broken down into a
4758 target method (target verify memory) and generic version of the
4759 actual command. This will allow other high-level code (especially
4760 generic_load()) to make use of this target functionality. */
4761
4762 static void
4763 compare_sections_command (char *args, int from_tty)
4764 {
4765 asection *s;
4766 unsigned long host_crc, target_crc;
4767 extern bfd *exec_bfd;
4768 struct cleanup *old_chain;
4769 char *tmp;
4770 char *sectdata;
4771 const char *sectname;
4772 char *buf = alloca (PBUFSIZ);
4773 bfd_size_type size;
4774 bfd_vma lma;
4775 int matched = 0;
4776 int mismatched = 0;
4777
4778 if (!exec_bfd)
4779 error ("command cannot be used without an exec file");
4780 if (!current_target.to_shortname ||
4781 strcmp (current_target.to_shortname, "remote") != 0)
4782 error ("command can only be used with remote target");
4783
4784 for (s = exec_bfd->sections; s; s = s->next)
4785 {
4786 if (!(s->flags & SEC_LOAD))
4787 continue; /* skip non-loadable section */
4788
4789 size = bfd_get_section_size_before_reloc (s);
4790 if (size == 0)
4791 continue; /* skip zero-length section */
4792
4793 sectname = bfd_get_section_name (exec_bfd, s);
4794 if (args && strcmp (args, sectname) != 0)
4795 continue; /* not the section selected by user */
4796
4797 matched = 1; /* do this section */
4798 lma = s->lma;
4799 /* FIXME: assumes lma can fit into long */
4800 sprintf (buf, "qCRC:%lx,%lx", (long) lma, (long) size);
4801 putpkt (buf);
4802
4803 /* be clever; compute the host_crc before waiting for target reply */
4804 sectdata = xmalloc (size);
4805 old_chain = make_cleanup (xfree, sectdata);
4806 bfd_get_section_contents (exec_bfd, s, sectdata, 0, size);
4807 host_crc = crc32 ((unsigned char *) sectdata, size, 0xffffffff);
4808
4809 getpkt (buf, PBUFSIZ, 0);
4810 if (buf[0] == 'E')
4811 error ("target memory fault, section %s, range 0x%08x -- 0x%08x",
4812 sectname, lma, lma + size);
4813 if (buf[0] != 'C')
4814 error ("remote target does not support this operation");
4815
4816 for (target_crc = 0, tmp = &buf[1]; *tmp; tmp++)
4817 target_crc = target_crc * 16 + fromhex (*tmp);
4818
4819 printf_filtered ("Section %s, range 0x%s -- 0x%s: ",
4820 sectname, paddr (lma), paddr (lma + size));
4821 if (host_crc == target_crc)
4822 printf_filtered ("matched.\n");
4823 else
4824 {
4825 printf_filtered ("MIS-MATCHED!\n");
4826 mismatched++;
4827 }
4828
4829 do_cleanups (old_chain);
4830 }
4831 if (mismatched > 0)
4832 warning ("One or more sections of the remote executable does not match\n\
4833 the loaded file\n");
4834 if (args && !matched)
4835 printf_filtered ("No loaded section named '%s'.\n", args);
4836 }
4837
4838 static int
4839 remote_query (int query_type, char *buf, char *outbuf, int *bufsiz)
4840 {
4841 int i;
4842 char *buf2 = alloca (PBUFSIZ);
4843 char *p2 = &buf2[0];
4844
4845 if (!bufsiz)
4846 error ("null pointer to remote bufer size specified");
4847
4848 /* minimum outbuf size is PBUFSIZ - if bufsiz is not large enough let
4849 the caller know and return what the minimum size is */
4850 /* Note: a zero bufsiz can be used to query the minimum buffer size */
4851 if (*bufsiz < PBUFSIZ)
4852 {
4853 *bufsiz = PBUFSIZ;
4854 return -1;
4855 }
4856
4857 /* except for querying the minimum buffer size, target must be open */
4858 if (!remote_desc)
4859 error ("remote query is only available after target open");
4860
4861 /* we only take uppercase letters as query types, at least for now */
4862 if ((query_type < 'A') || (query_type > 'Z'))
4863 error ("invalid remote query type");
4864
4865 if (!buf)
4866 error ("null remote query specified");
4867
4868 if (!outbuf)
4869 error ("remote query requires a buffer to receive data");
4870
4871 outbuf[0] = '\0';
4872
4873 *p2++ = 'q';
4874 *p2++ = query_type;
4875
4876 /* we used one buffer char for the remote protocol q command and another
4877 for the query type. As the remote protocol encapsulation uses 4 chars
4878 plus one extra in case we are debugging (remote_debug),
4879 we have PBUFZIZ - 7 left to pack the query string */
4880 i = 0;
4881 while (buf[i] && (i < (PBUFSIZ - 8)))
4882 {
4883 /* bad caller may have sent forbidden characters */
4884 if ((!isprint (buf[i])) || (buf[i] == '$') || (buf[i] == '#'))
4885 error ("illegal characters in query string");
4886
4887 *p2++ = buf[i];
4888 i++;
4889 }
4890 *p2 = buf[i];
4891
4892 if (buf[i])
4893 error ("query larger than available buffer");
4894
4895 i = putpkt (buf2);
4896 if (i < 0)
4897 return i;
4898
4899 getpkt (outbuf, *bufsiz, 0);
4900
4901 return 0;
4902 }
4903
4904 static void
4905 remote_rcmd (char *command,
4906 struct ui_file *outbuf)
4907 {
4908 int i;
4909 char *buf = alloca (PBUFSIZ);
4910 char *p = buf;
4911
4912 if (!remote_desc)
4913 error ("remote rcmd is only available after target open");
4914
4915 /* Send a NULL command across as an empty command */
4916 if (command == NULL)
4917 command = "";
4918
4919 /* The query prefix */
4920 strcpy (buf, "qRcmd,");
4921 p = strchr (buf, '\0');
4922
4923 if ((strlen (buf) + strlen (command) * 2 + 8/*misc*/) > PBUFSIZ)
4924 error ("\"monitor\" command ``%s'' is too long\n", command);
4925
4926 /* Encode the actual command */
4927 bin2hex (command, p, 0);
4928
4929 if (putpkt (buf) < 0)
4930 error ("Communication problem with target\n");
4931
4932 /* get/display the response */
4933 while (1)
4934 {
4935 /* XXX - see also tracepoint.c:remote_get_noisy_reply() */
4936 buf[0] = '\0';
4937 getpkt (buf, PBUFSIZ, 0);
4938 if (buf[0] == '\0')
4939 error ("Target does not support this command\n");
4940 if (buf[0] == 'O' && buf[1] != 'K')
4941 {
4942 remote_console_output (buf + 1); /* 'O' message from stub */
4943 continue;
4944 }
4945 if (strcmp (buf, "OK") == 0)
4946 break;
4947 if (strlen (buf) == 3 && buf[0] == 'E'
4948 && isdigit (buf[1]) && isdigit (buf[2]))
4949 {
4950 error ("Protocol error with Rcmd");
4951 }
4952 for (p = buf; p[0] != '\0' && p[1] != '\0'; p += 2)
4953 {
4954 char c = (fromhex (p[0]) << 4) + fromhex (p[1]);
4955 fputc_unfiltered (c, outbuf);
4956 }
4957 break;
4958 }
4959 }
4960
4961 static void
4962 packet_command (char *args, int from_tty)
4963 {
4964 char *buf = alloca (PBUFSIZ);
4965
4966 if (!remote_desc)
4967 error ("command can only be used with remote target");
4968
4969 if (!args)
4970 error ("remote-packet command requires packet text as argument");
4971
4972 puts_filtered ("sending: ");
4973 print_packet (args);
4974 puts_filtered ("\n");
4975 putpkt (args);
4976
4977 getpkt (buf, PBUFSIZ, 0);
4978 puts_filtered ("received: ");
4979 print_packet (buf);
4980 puts_filtered ("\n");
4981 }
4982
4983 #if 0
4984 /* --------- UNIT_TEST for THREAD oriented PACKETS ------------------------- */
4985
4986 static void display_thread_info (struct gdb_ext_thread_info *info);
4987
4988 static void threadset_test_cmd (char *cmd, int tty);
4989
4990 static void threadalive_test (char *cmd, int tty);
4991
4992 static void threadlist_test_cmd (char *cmd, int tty);
4993
4994 int get_and_display_threadinfo (threadref * ref);
4995
4996 static void threadinfo_test_cmd (char *cmd, int tty);
4997
4998 static int thread_display_step (threadref * ref, void *context);
4999
5000 static void threadlist_update_test_cmd (char *cmd, int tty);
5001
5002 static void init_remote_threadtests (void);
5003
5004 #define SAMPLE_THREAD 0x05060708 /* Truncated 64 bit threadid */
5005
5006 static void
5007 threadset_test_cmd (char *cmd, int tty)
5008 {
5009 int sample_thread = SAMPLE_THREAD;
5010
5011 printf_filtered ("Remote threadset test\n");
5012 set_thread (sample_thread, 1);
5013 }
5014
5015
5016 static void
5017 threadalive_test (char *cmd, int tty)
5018 {
5019 int sample_thread = SAMPLE_THREAD;
5020
5021 if (remote_thread_alive (pid_to_ptid (sample_thread)))
5022 printf_filtered ("PASS: Thread alive test\n");
5023 else
5024 printf_filtered ("FAIL: Thread alive test\n");
5025 }
5026
5027 void output_threadid (char *title, threadref * ref);
5028
5029 void
5030 output_threadid (char *title, threadref *ref)
5031 {
5032 char hexid[20];
5033
5034 pack_threadid (&hexid[0], ref); /* Convert threead id into hex */
5035 hexid[16] = 0;
5036 printf_filtered ("%s %s\n", title, (&hexid[0]));
5037 }
5038
5039 static void
5040 threadlist_test_cmd (char *cmd, int tty)
5041 {
5042 int startflag = 1;
5043 threadref nextthread;
5044 int done, result_count;
5045 threadref threadlist[3];
5046
5047 printf_filtered ("Remote Threadlist test\n");
5048 if (!remote_get_threadlist (startflag, &nextthread, 3, &done,
5049 &result_count, &threadlist[0]))
5050 printf_filtered ("FAIL: threadlist test\n");
5051 else
5052 {
5053 threadref *scan = threadlist;
5054 threadref *limit = scan + result_count;
5055
5056 while (scan < limit)
5057 output_threadid (" thread ", scan++);
5058 }
5059 }
5060
5061 void
5062 display_thread_info (struct gdb_ext_thread_info *info)
5063 {
5064 output_threadid ("Threadid: ", &info->threadid);
5065 printf_filtered ("Name: %s\n ", info->shortname);
5066 printf_filtered ("State: %s\n", info->display);
5067 printf_filtered ("other: %s\n\n", info->more_display);
5068 }
5069
5070 int
5071 get_and_display_threadinfo (threadref *ref)
5072 {
5073 int result;
5074 int set;
5075 struct gdb_ext_thread_info threadinfo;
5076
5077 set = TAG_THREADID | TAG_EXISTS | TAG_THREADNAME
5078 | TAG_MOREDISPLAY | TAG_DISPLAY;
5079 if (0 != (result = remote_get_threadinfo (ref, set, &threadinfo)))
5080 display_thread_info (&threadinfo);
5081 return result;
5082 }
5083
5084 static void
5085 threadinfo_test_cmd (char *cmd, int tty)
5086 {
5087 int athread = SAMPLE_THREAD;
5088 threadref thread;
5089 int set;
5090
5091 int_to_threadref (&thread, athread);
5092 printf_filtered ("Remote Threadinfo test\n");
5093 if (!get_and_display_threadinfo (&thread))
5094 printf_filtered ("FAIL cannot get thread info\n");
5095 }
5096
5097 static int
5098 thread_display_step (threadref *ref, void *context)
5099 {
5100 /* output_threadid(" threadstep ",ref); *//* simple test */
5101 return get_and_display_threadinfo (ref);
5102 }
5103
5104 static void
5105 threadlist_update_test_cmd (char *cmd, int tty)
5106 {
5107 printf_filtered ("Remote Threadlist update test\n");
5108 remote_threadlist_iterator (thread_display_step, 0, CRAZY_MAX_THREADS);
5109 }
5110
5111 static void
5112 init_remote_threadtests (void)
5113 {
5114 add_com ("tlist", class_obscure, threadlist_test_cmd,
5115 "Fetch and print the remote list of thread identifiers, one pkt only");
5116 add_com ("tinfo", class_obscure, threadinfo_test_cmd,
5117 "Fetch and display info about one thread");
5118 add_com ("tset", class_obscure, threadset_test_cmd,
5119 "Test setting to a different thread");
5120 add_com ("tupd", class_obscure, threadlist_update_test_cmd,
5121 "Iterate through updating all remote thread info");
5122 add_com ("talive", class_obscure, threadalive_test,
5123 " Remote thread alive test ");
5124 }
5125
5126 #endif /* 0 */
5127
5128 /* Convert a thread ID to a string. Returns the string in a static
5129 buffer. */
5130
5131 static char *
5132 remote_pid_to_str (ptid_t ptid)
5133 {
5134 static char buf[30];
5135
5136 sprintf (buf, "Thread %d", PIDGET (ptid));
5137 return buf;
5138 }
5139
5140 static void
5141 init_remote_ops (void)
5142 {
5143 remote_ops.to_shortname = "remote";
5144 remote_ops.to_longname = "Remote serial target in gdb-specific protocol";
5145 remote_ops.to_doc =
5146 "Use a remote computer via a serial line, using a gdb-specific protocol.\n\
5147 Specify the serial device it is connected to\n\
5148 (e.g. /dev/ttyS0, /dev/ttya, COM1, etc.).";
5149 remote_ops.to_open = remote_open;
5150 remote_ops.to_close = remote_close;
5151 remote_ops.to_detach = remote_detach;
5152 remote_ops.to_resume = remote_resume;
5153 remote_ops.to_wait = remote_wait;
5154 remote_ops.to_fetch_registers = remote_fetch_registers;
5155 remote_ops.to_store_registers = remote_store_registers;
5156 remote_ops.to_prepare_to_store = remote_prepare_to_store;
5157 remote_ops.to_xfer_memory = remote_xfer_memory;
5158 remote_ops.to_files_info = remote_files_info;
5159 remote_ops.to_insert_breakpoint = remote_insert_breakpoint;
5160 remote_ops.to_remove_breakpoint = remote_remove_breakpoint;
5161 remote_ops.to_kill = remote_kill;
5162 remote_ops.to_load = generic_load;
5163 remote_ops.to_mourn_inferior = remote_mourn;
5164 remote_ops.to_thread_alive = remote_thread_alive;
5165 remote_ops.to_find_new_threads = remote_threads_info;
5166 remote_ops.to_extra_thread_info = remote_threads_extra_info;
5167 remote_ops.to_pid_to_str = remote_pid_to_str;
5168 remote_ops.to_stop = remote_stop;
5169 remote_ops.to_query = remote_query;
5170 remote_ops.to_rcmd = remote_rcmd;
5171 remote_ops.to_stratum = process_stratum;
5172 remote_ops.to_has_all_memory = 1;
5173 remote_ops.to_has_memory = 1;
5174 remote_ops.to_has_stack = 1;
5175 remote_ops.to_has_registers = 1;
5176 remote_ops.to_has_execution = 1;
5177 remote_ops.to_has_thread_control = tc_schedlock; /* can lock scheduler */
5178 remote_ops.to_magic = OPS_MAGIC;
5179 }
5180
5181 /* Set up the extended remote vector by making a copy of the standard
5182 remote vector and adding to it. */
5183
5184 static void
5185 init_extended_remote_ops (void)
5186 {
5187 extended_remote_ops = remote_ops;
5188
5189 extended_remote_ops.to_shortname = "extended-remote";
5190 extended_remote_ops.to_longname =
5191 "Extended remote serial target in gdb-specific protocol";
5192 extended_remote_ops.to_doc =
5193 "Use a remote computer via a serial line, using a gdb-specific protocol.\n\
5194 Specify the serial device it is connected to (e.g. /dev/ttya).",
5195 extended_remote_ops.to_open = extended_remote_open;
5196 extended_remote_ops.to_create_inferior = extended_remote_create_inferior;
5197 extended_remote_ops.to_mourn_inferior = extended_remote_mourn;
5198 }
5199
5200 /*
5201 * Command: info remote-process
5202 *
5203 * This implements Cisco's version of the "info proc" command.
5204 *
5205 * This query allows the target stub to return an arbitrary string
5206 * (or strings) giving arbitrary information about the target process.
5207 * This is optional; the target stub isn't required to implement it.
5208 *
5209 * Syntax: qfProcessInfo request first string
5210 * qsProcessInfo request subsequent string
5211 * reply: 'O'<hex-encoded-string>
5212 * 'l' last reply (empty)
5213 */
5214
5215 static void
5216 remote_info_process (char *args, int from_tty)
5217 {
5218 char *buf = alloca (PBUFSIZ);
5219
5220 if (remote_desc == 0)
5221 error ("Command can only be used when connected to the remote target.");
5222
5223 putpkt ("qfProcessInfo");
5224 getpkt (buf, PBUFSIZ, 0);
5225 if (buf[0] == 0)
5226 return; /* Silently: target does not support this feature. */
5227
5228 if (buf[0] == 'E')
5229 error ("info proc: target error.");
5230
5231 while (buf[0] == 'O') /* Capitol-O packet */
5232 {
5233 remote_console_output (&buf[1]);
5234 putpkt ("qsProcessInfo");
5235 getpkt (buf, PBUFSIZ, 0);
5236 }
5237 }
5238
5239 /*
5240 * Target Cisco
5241 */
5242
5243 static void
5244 remote_cisco_open (char *name, int from_tty)
5245 {
5246 if (name == 0)
5247 error (
5248 "To open a remote debug connection, you need to specify what \n\
5249 device is attached to the remote system (e.g. host:port).");
5250
5251 /* See FIXME above */
5252 wait_forever_enabled_p = 1;
5253
5254 target_preopen (from_tty);
5255
5256 unpush_target (&remote_cisco_ops);
5257
5258 remote_desc = SERIAL_OPEN (name);
5259 if (!remote_desc)
5260 perror_with_name (name);
5261
5262 /*
5263 * If a baud rate was specified on the gdb command line it will
5264 * be greater than the initial value of -1. If it is, use it otherwise
5265 * default to 9600
5266 */
5267
5268 baud_rate = (baud_rate > 0) ? baud_rate : 9600;
5269 if (SERIAL_SETBAUDRATE (remote_desc, baud_rate))
5270 {
5271 SERIAL_CLOSE (remote_desc);
5272 perror_with_name (name);
5273 }
5274
5275 SERIAL_RAW (remote_desc);
5276
5277 /* If there is something sitting in the buffer we might take it as a
5278 response to a command, which would be bad. */
5279 SERIAL_FLUSH_INPUT (remote_desc);
5280
5281 if (from_tty)
5282 {
5283 puts_filtered ("Remote debugging using ");
5284 puts_filtered (name);
5285 puts_filtered ("\n");
5286 }
5287
5288 remote_cisco_mode = 1;
5289
5290 push_target (&remote_cisco_ops); /* Switch to using cisco target now */
5291
5292 init_all_packet_configs ();
5293
5294 general_thread = -2;
5295 continue_thread = -2;
5296
5297 /* Probe for ability to use "ThreadInfo" query, as required. */
5298 use_threadinfo_query = 1;
5299 use_threadextra_query = 1;
5300
5301 /* Without this, some commands which require an active target (such
5302 as kill) won't work. This variable serves (at least) double duty
5303 as both the pid of the target process (if it has such), and as a
5304 flag indicating that a target is active. These functions should
5305 be split out into seperate variables, especially since GDB will
5306 someday have a notion of debugging several processes. */
5307 inferior_ptid = pid_to_ptid (MAGIC_NULL_PID);
5308
5309 /* Start the remote connection; if error (0), discard this target. */
5310
5311 if (!catch_errors (remote_start_remote_dummy, (char *) 0,
5312 "Couldn't establish connection to remote target\n",
5313 RETURN_MASK_ALL))
5314 {
5315 pop_target ();
5316 return;
5317 }
5318 }
5319
5320 static void
5321 remote_cisco_close (int quitting)
5322 {
5323 remote_cisco_mode = 0;
5324 remote_close (quitting);
5325 }
5326
5327 static void
5328 remote_cisco_mourn (void)
5329 {
5330 remote_mourn_1 (&remote_cisco_ops);
5331 }
5332
5333 enum
5334 {
5335 READ_MORE,
5336 FATAL_ERROR,
5337 ENTER_DEBUG,
5338 DISCONNECT_TELNET
5339 }
5340 minitelnet_return;
5341
5342 /* shared between readsocket() and readtty() */
5343 static char *tty_input;
5344
5345 static int escape_count;
5346 static int echo_check;
5347 extern int quit_flag;
5348
5349 static int
5350 readsocket (void)
5351 {
5352 int data;
5353
5354 /* Loop until the socket doesn't have any more data */
5355
5356 while ((data = readchar (0)) >= 0)
5357 {
5358 /* Check for the escape sequence */
5359 if (data == '|')
5360 {
5361 /* If this is the fourth escape, get out */
5362 if (++escape_count == 4)
5363 {
5364 return ENTER_DEBUG;
5365 }
5366 else
5367 { /* This is a '|', but not the fourth in a row.
5368 Continue without echoing it. If it isn't actually
5369 one of four in a row, it'll be echoed later. */
5370 continue;
5371 }
5372 }
5373 else
5374 /* Not a '|' */
5375 {
5376 /* Ensure any pending '|'s are flushed. */
5377
5378 for (; escape_count > 0; escape_count--)
5379 putchar ('|');
5380 }
5381
5382 if (data == '\r') /* If this is a return character, */
5383 continue; /* - just supress it. */
5384
5385 if (echo_check != -1) /* Check for echo of user input. */
5386 {
5387 if (tty_input[echo_check] == data)
5388 {
5389 echo_check++; /* Character matched user input: */
5390 continue; /* Continue without echoing it. */
5391 }
5392 else if ((data == '\n') && (tty_input[echo_check] == '\r'))
5393 { /* End of the line (and of echo checking). */
5394 echo_check = -1; /* No more echo supression */
5395 continue; /* Continue without echoing. */
5396 }
5397 else
5398 { /* Failed check for echo of user input.
5399 We now have some suppressed output to flush! */
5400 int j;
5401
5402 for (j = 0; j < echo_check; j++)
5403 putchar (tty_input[j]);
5404 echo_check = -1;
5405 }
5406 }
5407 putchar (data); /* Default case: output the char. */
5408 }
5409
5410 if (data == SERIAL_TIMEOUT) /* Timeout returned from readchar. */
5411 return READ_MORE; /* Try to read some more */
5412 else
5413 return FATAL_ERROR; /* Trouble, bail out */
5414 }
5415
5416 static int
5417 readtty (void)
5418 {
5419 int tty_bytecount;
5420
5421 /* First, read a buffer full from the terminal */
5422 tty_bytecount = read (fileno (stdin), tty_input, sizeof (tty_input) - 1);
5423 if (tty_bytecount == -1)
5424 {
5425 perror ("readtty: read failed");
5426 return FATAL_ERROR;
5427 }
5428
5429 /* Remove a quoted newline. */
5430 if (tty_input[tty_bytecount - 1] == '\n' &&
5431 tty_input[tty_bytecount - 2] == '\\') /* line ending in backslash */
5432 {
5433 tty_input[--tty_bytecount] = 0; /* remove newline */
5434 tty_input[--tty_bytecount] = 0; /* remove backslash */
5435 }
5436
5437 /* Turn trailing newlines into returns */
5438 if (tty_input[tty_bytecount - 1] == '\n')
5439 tty_input[tty_bytecount - 1] = '\r';
5440
5441 /* If the line consists of a ~, enter debugging mode. */
5442 if ((tty_input[0] == '~') && (tty_bytecount == 2))
5443 return ENTER_DEBUG;
5444
5445 /* Make this a zero terminated string and write it out */
5446 tty_input[tty_bytecount] = 0;
5447 if (SERIAL_WRITE (remote_desc, tty_input, tty_bytecount))
5448 {
5449 perror_with_name ("readtty: write failed");
5450 return FATAL_ERROR;
5451 }
5452
5453 return READ_MORE;
5454 }
5455
5456 static int
5457 minitelnet (void)
5458 {
5459 fd_set input; /* file descriptors for select */
5460 int tablesize; /* max number of FDs for select */
5461 int status;
5462 int quit_count = 0;
5463
5464 extern int escape_count; /* global shared by readsocket */
5465 extern int echo_check; /* ditto */
5466
5467 escape_count = 0;
5468 echo_check = -1;
5469
5470 tablesize = 8 * sizeof (input);
5471
5472 for (;;)
5473 {
5474 /* Check for anything from our socket - doesn't block. Note that
5475 this must be done *before* the select as there may be
5476 buffered I/O waiting to be processed. */
5477
5478 if ((status = readsocket ()) == FATAL_ERROR)
5479 {
5480 error ("Debugging terminated by communications error");
5481 }
5482 else if (status != READ_MORE)
5483 {
5484 return (status);
5485 }
5486
5487 fflush (stdout); /* Flush output before blocking */
5488
5489 /* Now block on more socket input or TTY input */
5490
5491 FD_ZERO (&input);
5492 FD_SET (fileno (stdin), &input);
5493 FD_SET (DEPRECATED_SERIAL_FD (remote_desc), &input);
5494
5495 status = select (tablesize, &input, 0, 0, 0);
5496 if ((status == -1) && (errno != EINTR))
5497 {
5498 error ("Communications error on select %d", errno);
5499 }
5500
5501 /* Handle Control-C typed */
5502
5503 if (quit_flag)
5504 {
5505 if ((++quit_count) == 2)
5506 {
5507 if (query ("Interrupt GDB? "))
5508 {
5509 printf_filtered ("Interrupted by user.\n");
5510 return_to_top_level (RETURN_QUIT);
5511 }
5512 quit_count = 0;
5513 }
5514 quit_flag = 0;
5515
5516 if (remote_break)
5517 SERIAL_SEND_BREAK (remote_desc);
5518 else
5519 SERIAL_WRITE (remote_desc, "\003", 1);
5520
5521 continue;
5522 }
5523
5524 /* Handle console input */
5525
5526 if (FD_ISSET (fileno (stdin), &input))
5527 {
5528 quit_count = 0;
5529 echo_check = 0;
5530 status = readtty ();
5531 if (status == READ_MORE)
5532 continue;
5533
5534 return status; /* telnet session ended */
5535 }
5536 }
5537 }
5538
5539 static ptid_t
5540 remote_cisco_wait (ptid_t ptid, struct target_waitstatus *status)
5541 {
5542 if (minitelnet () != ENTER_DEBUG)
5543 {
5544 error ("Debugging session terminated by protocol error");
5545 }
5546 putpkt ("?");
5547 return remote_wait (ptid, status);
5548 }
5549
5550 static void
5551 init_remote_cisco_ops (void)
5552 {
5553 remote_cisco_ops.to_shortname = "cisco";
5554 remote_cisco_ops.to_longname = "Remote serial target in cisco-specific protocol";
5555 remote_cisco_ops.to_doc =
5556 "Use a remote machine via TCP, using a cisco-specific protocol.\n\
5557 Specify the serial device it is connected to (e.g. host:2020).";
5558 remote_cisco_ops.to_open = remote_cisco_open;
5559 remote_cisco_ops.to_close = remote_cisco_close;
5560 remote_cisco_ops.to_detach = remote_detach;
5561 remote_cisco_ops.to_resume = remote_resume;
5562 remote_cisco_ops.to_wait = remote_cisco_wait;
5563 remote_cisco_ops.to_fetch_registers = remote_fetch_registers;
5564 remote_cisco_ops.to_store_registers = remote_store_registers;
5565 remote_cisco_ops.to_prepare_to_store = remote_prepare_to_store;
5566 remote_cisco_ops.to_xfer_memory = remote_xfer_memory;
5567 remote_cisco_ops.to_files_info = remote_files_info;
5568 remote_cisco_ops.to_insert_breakpoint = remote_insert_breakpoint;
5569 remote_cisco_ops.to_remove_breakpoint = remote_remove_breakpoint;
5570 remote_cisco_ops.to_kill = remote_kill;
5571 remote_cisco_ops.to_load = generic_load;
5572 remote_cisco_ops.to_mourn_inferior = remote_cisco_mourn;
5573 remote_cisco_ops.to_thread_alive = remote_thread_alive;
5574 remote_cisco_ops.to_find_new_threads = remote_threads_info;
5575 remote_ops.to_extra_thread_info = remote_threads_extra_info;
5576 remote_cisco_ops.to_stratum = process_stratum;
5577 remote_cisco_ops.to_has_all_memory = 1;
5578 remote_cisco_ops.to_has_memory = 1;
5579 remote_cisco_ops.to_has_stack = 1;
5580 remote_cisco_ops.to_has_registers = 1;
5581 remote_cisco_ops.to_has_execution = 1;
5582 remote_cisco_ops.to_magic = OPS_MAGIC;
5583 }
5584
5585 static int
5586 remote_can_async_p (void)
5587 {
5588 /* We're async whenever the serial device is. */
5589 return (current_target.to_async_mask_value) && SERIAL_CAN_ASYNC_P (remote_desc);
5590 }
5591
5592 static int
5593 remote_is_async_p (void)
5594 {
5595 /* We're async whenever the serial device is. */
5596 return (current_target.to_async_mask_value) && SERIAL_IS_ASYNC_P (remote_desc);
5597 }
5598
5599 /* Pass the SERIAL event on and up to the client. One day this code
5600 will be able to delay notifying the client of an event until the
5601 point where an entire packet has been received. */
5602
5603 static void (*async_client_callback) (enum inferior_event_type event_type, void *context);
5604 static void *async_client_context;
5605 static serial_event_ftype remote_async_serial_handler;
5606
5607 static void
5608 remote_async_serial_handler (serial_t scb, void *context)
5609 {
5610 /* Don't propogate error information up to the client. Instead let
5611 the client find out about the error by querying the target. */
5612 async_client_callback (INF_REG_EVENT, async_client_context);
5613 }
5614
5615 static void
5616 remote_async (void (*callback) (enum inferior_event_type event_type, void *context), void *context)
5617 {
5618 if (current_target.to_async_mask_value == 0)
5619 internal_error (__FILE__, __LINE__,
5620 "Calling remote_async when async is masked");
5621
5622 if (callback != NULL)
5623 {
5624 SERIAL_ASYNC (remote_desc, remote_async_serial_handler, NULL);
5625 async_client_callback = callback;
5626 async_client_context = context;
5627 }
5628 else
5629 SERIAL_ASYNC (remote_desc, NULL, NULL);
5630 }
5631
5632 /* Target async and target extended-async.
5633
5634 This are temporary targets, until it is all tested. Eventually
5635 async support will be incorporated int the usual 'remote'
5636 target. */
5637
5638 static void
5639 init_remote_async_ops (void)
5640 {
5641 remote_async_ops.to_shortname = "async";
5642 remote_async_ops.to_longname = "Remote serial target in async version of the gdb-specific protocol";
5643 remote_async_ops.to_doc =
5644 "Use a remote computer via a serial line, using a gdb-specific protocol.\n\
5645 Specify the serial device it is connected to (e.g. /dev/ttya).";
5646 remote_async_ops.to_open = remote_async_open;
5647 remote_async_ops.to_close = remote_close;
5648 remote_async_ops.to_detach = remote_async_detach;
5649 remote_async_ops.to_resume = remote_async_resume;
5650 remote_async_ops.to_wait = remote_async_wait;
5651 remote_async_ops.to_fetch_registers = remote_fetch_registers;
5652 remote_async_ops.to_store_registers = remote_store_registers;
5653 remote_async_ops.to_prepare_to_store = remote_prepare_to_store;
5654 remote_async_ops.to_xfer_memory = remote_xfer_memory;
5655 remote_async_ops.to_files_info = remote_files_info;
5656 remote_async_ops.to_insert_breakpoint = remote_insert_breakpoint;
5657 remote_async_ops.to_remove_breakpoint = remote_remove_breakpoint;
5658 remote_async_ops.to_terminal_inferior = remote_async_terminal_inferior;
5659 remote_async_ops.to_terminal_ours = remote_async_terminal_ours;
5660 remote_async_ops.to_kill = remote_async_kill;
5661 remote_async_ops.to_load = generic_load;
5662 remote_async_ops.to_mourn_inferior = remote_async_mourn;
5663 remote_async_ops.to_thread_alive = remote_thread_alive;
5664 remote_async_ops.to_find_new_threads = remote_threads_info;
5665 remote_ops.to_extra_thread_info = remote_threads_extra_info;
5666 remote_async_ops.to_stop = remote_stop;
5667 remote_async_ops.to_query = remote_query;
5668 remote_async_ops.to_rcmd = remote_rcmd;
5669 remote_async_ops.to_stratum = process_stratum;
5670 remote_async_ops.to_has_all_memory = 1;
5671 remote_async_ops.to_has_memory = 1;
5672 remote_async_ops.to_has_stack = 1;
5673 remote_async_ops.to_has_registers = 1;
5674 remote_async_ops.to_has_execution = 1;
5675 remote_async_ops.to_has_thread_control = tc_schedlock; /* can lock scheduler */
5676 remote_async_ops.to_can_async_p = remote_can_async_p;
5677 remote_async_ops.to_is_async_p = remote_is_async_p;
5678 remote_async_ops.to_async = remote_async;
5679 remote_async_ops.to_async_mask_value = 1;
5680 remote_async_ops.to_magic = OPS_MAGIC;
5681 }
5682
5683 /* Set up the async extended remote vector by making a copy of the standard
5684 remote vector and adding to it. */
5685
5686 static void
5687 init_extended_async_remote_ops (void)
5688 {
5689 extended_async_remote_ops = remote_async_ops;
5690
5691 extended_async_remote_ops.to_shortname = "extended-async";
5692 extended_async_remote_ops.to_longname =
5693 "Extended remote serial target in async gdb-specific protocol";
5694 extended_async_remote_ops.to_doc =
5695 "Use a remote computer via a serial line, using an async gdb-specific protocol.\n\
5696 Specify the serial device it is connected to (e.g. /dev/ttya).",
5697 extended_async_remote_ops.to_open = extended_remote_async_open;
5698 extended_async_remote_ops.to_create_inferior = extended_remote_async_create_inferior;
5699 extended_async_remote_ops.to_mourn_inferior = extended_remote_mourn;
5700 }
5701
5702 static void
5703 set_remote_cmd (char *args, int from_tty)
5704 {
5705
5706 }
5707
5708 static void
5709 show_remote_cmd (char *args, int from_tty)
5710 {
5711
5712 show_remote_protocol_Z_packet_cmd (args, from_tty);
5713 show_remote_protocol_e_packet_cmd (args, from_tty);
5714 show_remote_protocol_E_packet_cmd (args, from_tty);
5715 show_remote_protocol_P_packet_cmd (args, from_tty);
5716 show_remote_protocol_binary_download_cmd (args, from_tty);
5717 }
5718
5719 static void
5720 build_remote_gdbarch_data (void)
5721 {
5722 build_remote_packet_sizes ();
5723
5724 /* Cisco stuff */
5725 tty_input = xmalloc (PBUFSIZ);
5726 remote_address_size = TARGET_ADDR_BIT;
5727 }
5728
5729 void
5730 _initialize_remote (void)
5731 {
5732 static struct cmd_list_element *remote_set_cmdlist;
5733 static struct cmd_list_element *remote_show_cmdlist;
5734 struct cmd_list_element *tmpcmd;
5735
5736 /* architecture specific data */
5737 build_remote_gdbarch_data ();
5738 register_gdbarch_swap (&tty_input, sizeof (&tty_input), NULL);
5739 register_remote_packet_sizes ();
5740 register_gdbarch_swap (&remote_address_size,
5741 sizeof (&remote_address_size), NULL);
5742 register_gdbarch_swap (NULL, 0, build_remote_gdbarch_data);
5743
5744 init_remote_ops ();
5745 add_target (&remote_ops);
5746
5747 init_extended_remote_ops ();
5748 add_target (&extended_remote_ops);
5749
5750 init_remote_async_ops ();
5751 add_target (&remote_async_ops);
5752
5753 init_extended_async_remote_ops ();
5754 add_target (&extended_async_remote_ops);
5755
5756 init_remote_cisco_ops ();
5757 add_target (&remote_cisco_ops);
5758
5759 #if 0
5760 init_remote_threadtests ();
5761 #endif
5762
5763 /* set/show remote ... */
5764
5765 add_prefix_cmd ("remote", class_maintenance, set_remote_cmd, "\
5766 Remote protocol specific variables\n\
5767 Configure various remote-protocol specific variables such as\n\
5768 the packets being used",
5769 &remote_set_cmdlist, "set remote ",
5770 0/*allow-unknown*/, &setlist);
5771 add_prefix_cmd ("remote", class_maintenance, show_remote_cmd, "\
5772 Remote protocol specific variables\n\
5773 Configure various remote-protocol specific variables such as\n\
5774 the packets being used",
5775 &remote_show_cmdlist, "show remote ",
5776 0/*allow-unknown*/, &showlist);
5777
5778 add_cmd ("compare-sections", class_obscure, compare_sections_command,
5779 "Compare section data on target to the exec file.\n\
5780 Argument is a single section name (default: all loaded sections).",
5781 &cmdlist);
5782
5783 add_cmd ("packet", class_maintenance, packet_command,
5784 "Send an arbitrary packet to a remote target.\n\
5785 maintenance packet TEXT\n\
5786 If GDB is talking to an inferior via the GDB serial protocol, then\n\
5787 this command sends the string TEXT to the inferior, and displays the\n\
5788 response packet. GDB supplies the initial `$' character, and the\n\
5789 terminating `#' character and checksum.",
5790 &maintenancelist);
5791
5792 add_show_from_set
5793 (add_set_cmd ("remotebreak", no_class,
5794 var_boolean, (char *) &remote_break,
5795 "Set whether to send break if interrupted.\n",
5796 &setlist),
5797 &showlist);
5798
5799 /* Install commands for configuring memory read/write packets. */
5800
5801 add_cmd ("remotewritesize", no_class, set_memory_write_packet_size,
5802 "Set the maximum number of bytes per memory write packet (deprecated).\n",
5803 &setlist);
5804 add_cmd ("remotewritesize", no_class, show_memory_write_packet_size,
5805 "Show the maximum number of bytes per memory write packet (deprecated).\n",
5806 &showlist);
5807 add_cmd ("memory-write-packet-size", no_class,
5808 set_memory_write_packet_size,
5809 "Set the maximum number of bytes per memory-write packet.\n"
5810 "Specify the number of bytes in a packet or 0 (zero) for the\n"
5811 "default packet size. The actual limit is further reduced\n"
5812 "dependent on the target. Specify ``fixed'' to disable the\n"
5813 "further restriction and ``limit'' to enable that restriction\n",
5814 &remote_set_cmdlist);
5815 add_cmd ("memory-read-packet-size", no_class,
5816 set_memory_read_packet_size,
5817 "Set the maximum number of bytes per memory-read packet.\n"
5818 "Specify the number of bytes in a packet or 0 (zero) for the\n"
5819 "default packet size. The actual limit is further reduced\n"
5820 "dependent on the target. Specify ``fixed'' to disable the\n"
5821 "further restriction and ``limit'' to enable that restriction\n",
5822 &remote_set_cmdlist);
5823 add_cmd ("memory-write-packet-size", no_class,
5824 show_memory_write_packet_size,
5825 "Show the maximum number of bytes per memory-write packet.\n",
5826 &remote_show_cmdlist);
5827 add_cmd ("memory-read-packet-size", no_class,
5828 show_memory_read_packet_size,
5829 "Show the maximum number of bytes per memory-read packet.\n",
5830 &remote_show_cmdlist);
5831
5832 add_show_from_set
5833 (add_set_cmd ("remoteaddresssize", class_obscure,
5834 var_integer, (char *) &remote_address_size,
5835 "Set the maximum size of the address (in bits) \
5836 in a memory packet.\n",
5837 &setlist),
5838 &showlist);
5839
5840 add_packet_config_cmd (&remote_protocol_binary_download,
5841 "X", "binary-download",
5842 set_remote_protocol_binary_download_cmd,
5843 show_remote_protocol_binary_download_cmd,
5844 &remote_set_cmdlist, &remote_show_cmdlist,
5845 1);
5846 #if 0
5847 /* XXXX - should ``set remotebinarydownload'' be retained for
5848 compatibility. */
5849 add_show_from_set
5850 (add_set_cmd ("remotebinarydownload", no_class,
5851 var_boolean, (char *) &remote_binary_download,
5852 "Set binary downloads.\n", &setlist),
5853 &showlist);
5854 #endif
5855
5856 add_info ("remote-process", remote_info_process,
5857 "Query the remote system for process info.");
5858
5859 add_packet_config_cmd (&remote_protocol_e,
5860 "e", "step-over-range",
5861 set_remote_protocol_e_packet_cmd,
5862 show_remote_protocol_e_packet_cmd,
5863 &remote_set_cmdlist, &remote_show_cmdlist,
5864 0);
5865
5866 add_packet_config_cmd (&remote_protocol_E,
5867 "E", "step-over-range-w-signal",
5868 set_remote_protocol_E_packet_cmd,
5869 show_remote_protocol_E_packet_cmd,
5870 &remote_set_cmdlist, &remote_show_cmdlist,
5871 0);
5872
5873 add_packet_config_cmd (&remote_protocol_P,
5874 "P", "set-register",
5875 set_remote_protocol_P_packet_cmd,
5876 show_remote_protocol_P_packet_cmd,
5877 &remote_set_cmdlist, &remote_show_cmdlist,
5878 1);
5879
5880 add_packet_config_cmd (&remote_protocol_Z[Z_PACKET_SOFTWARE_BP],
5881 "Z0", "software-breakpoint",
5882 set_remote_protocol_Z_software_bp_packet_cmd,
5883 show_remote_protocol_Z_software_bp_packet_cmd,
5884 &remote_set_cmdlist, &remote_show_cmdlist,
5885 0);
5886
5887 add_packet_config_cmd (&remote_protocol_Z[Z_PACKET_HARDWARE_BP],
5888 "Z1", "hardware-breakpoint",
5889 set_remote_protocol_Z_hardware_bp_packet_cmd,
5890 show_remote_protocol_Z_hardware_bp_packet_cmd,
5891 &remote_set_cmdlist, &remote_show_cmdlist,
5892 0);
5893
5894 add_packet_config_cmd (&remote_protocol_Z[Z_PACKET_WRITE_WP],
5895 "Z2", "write-watchpoint",
5896 set_remote_protocol_Z_write_wp_packet_cmd,
5897 show_remote_protocol_Z_write_wp_packet_cmd,
5898 &remote_set_cmdlist, &remote_show_cmdlist,
5899 0);
5900
5901 add_packet_config_cmd (&remote_protocol_Z[Z_PACKET_READ_WP],
5902 "Z3", "read-watchpoint",
5903 set_remote_protocol_Z_read_wp_packet_cmd,
5904 show_remote_protocol_Z_read_wp_packet_cmd,
5905 &remote_set_cmdlist, &remote_show_cmdlist,
5906 0);
5907
5908 add_packet_config_cmd (&remote_protocol_Z[Z_PACKET_ACCESS_WP],
5909 "Z4", "access-watchpoint",
5910 set_remote_protocol_Z_access_wp_packet_cmd,
5911 show_remote_protocol_Z_access_wp_packet_cmd,
5912 &remote_set_cmdlist, &remote_show_cmdlist,
5913 0);
5914
5915 /* Keep the old ``set remote Z-packet ...'' working. */
5916 tmpcmd = add_set_auto_boolean_cmd ("Z-packet", class_obscure,
5917 &remote_Z_packet_detect,
5918 "\
5919 Set use of remote protocol `Z' packets", &remote_set_cmdlist);
5920 tmpcmd->function.sfunc = set_remote_protocol_Z_packet_cmd;
5921 add_cmd ("Z-packet", class_obscure, show_remote_protocol_Z_packet_cmd,
5922 "Show use of remote protocol `Z' packets ",
5923 &remote_show_cmdlist);
5924 }