Remove WITH_SIM define
[binutils-gdb.git] / gdbserver / remote-utils.cc
1 /* Remote utility routines for the remote server for GDB.
2 Copyright (C) 1986-2022 Free Software Foundation, Inc.
3
4 This file is part of GDB.
5
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 3 of the License, or
9 (at your option) any later version.
10
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with this program. If not, see <http://www.gnu.org/licenses/>. */
18
19 #include "server.h"
20 #if HAVE_TERMIOS_H
21 #include <termios.h>
22 #endif
23 #include "target.h"
24 #include "gdbthread.h"
25 #include "tdesc.h"
26 #include "debug.h"
27 #include "dll.h"
28 #include "gdbsupport/rsp-low.h"
29 #include "gdbsupport/netstuff.h"
30 #include "gdbsupport/filestuff.h"
31 #include "gdbsupport/gdb-sigmask.h"
32 #include <ctype.h>
33 #if HAVE_SYS_IOCTL_H
34 #include <sys/ioctl.h>
35 #endif
36 #if HAVE_SYS_FILE_H
37 #include <sys/file.h>
38 #endif
39 #if HAVE_NETINET_IN_H
40 #include <netinet/in.h>
41 #endif
42 #if HAVE_SYS_SOCKET_H
43 #include <sys/socket.h>
44 #endif
45 #if HAVE_NETDB_H
46 #include <netdb.h>
47 #endif
48 #if HAVE_NETINET_TCP_H
49 #include <netinet/tcp.h>
50 #endif
51 #if HAVE_SYS_IOCTL_H
52 #include <sys/ioctl.h>
53 #endif
54 #if HAVE_SIGNAL_H
55 #include <signal.h>
56 #endif
57 #if HAVE_FCNTL_H
58 #include <fcntl.h>
59 #endif
60 #include "gdbsupport/gdb_sys_time.h"
61 #include <unistd.h>
62 #if HAVE_ARPA_INET_H
63 #include <arpa/inet.h>
64 #endif
65 #include <sys/stat.h>
66
67 #if USE_WIN32API
68 #include <ws2tcpip.h>
69 #endif
70
71 #ifndef HAVE_SOCKLEN_T
72 typedef int socklen_t;
73 #endif
74
75 #ifndef IN_PROCESS_AGENT
76
77 /* Extra value for readchar_callback. */
78 enum {
79 /* The callback is currently not scheduled. */
80 NOT_SCHEDULED = -1
81 };
82
83 /* Status of the readchar callback.
84 Either NOT_SCHEDULED or the callback id. */
85 static int readchar_callback = NOT_SCHEDULED;
86
87 static int readchar (void);
88 static void reset_readchar (void);
89 static void reschedule (void);
90
91 /* A cache entry for a successfully looked-up symbol. */
92 struct sym_cache
93 {
94 char *name;
95 CORE_ADDR addr;
96 struct sym_cache *next;
97 };
98
99 static int remote_is_stdio = 0;
100
101 static int remote_desc = -1;
102 static int listen_desc = -1;
103
104 #ifdef USE_WIN32API
105 /* gnulib wraps these as macros, undo them. */
106 # undef read
107 # undef write
108
109 # define read(fd, buf, len) recv (fd, (char *) buf, len, 0)
110 # define write(fd, buf, len) send (fd, (char *) buf, len, 0)
111 #endif
112
113 int
114 gdb_connected (void)
115 {
116 return remote_desc != -1;
117 }
118
119 /* Return true if the remote connection is over stdio. */
120
121 int
122 remote_connection_is_stdio (void)
123 {
124 return remote_is_stdio;
125 }
126
127 static void
128 enable_async_notification (int fd)
129 {
130 #if defined(F_SETFL) && defined (FASYNC)
131 int save_fcntl_flags;
132
133 save_fcntl_flags = fcntl (fd, F_GETFL, 0);
134 fcntl (fd, F_SETFL, save_fcntl_flags | FASYNC);
135 #if defined (F_SETOWN)
136 fcntl (fd, F_SETOWN, getpid ());
137 #endif
138 #endif
139 }
140
141 static void
142 handle_accept_event (int err, gdb_client_data client_data)
143 {
144 struct sockaddr_storage sockaddr;
145 socklen_t len = sizeof (sockaddr);
146
147 threads_debug_printf ("handling possible accept event");
148
149 remote_desc = accept (listen_desc, (struct sockaddr *) &sockaddr, &len);
150 if (remote_desc == -1)
151 perror_with_name ("Accept failed");
152
153 /* Enable TCP keep alive process. */
154 socklen_t tmp = 1;
155 setsockopt (remote_desc, SOL_SOCKET, SO_KEEPALIVE,
156 (char *) &tmp, sizeof (tmp));
157
158 /* Tell TCP not to delay small packets. This greatly speeds up
159 interactive response. */
160 tmp = 1;
161 setsockopt (remote_desc, IPPROTO_TCP, TCP_NODELAY,
162 (char *) &tmp, sizeof (tmp));
163
164 #ifndef USE_WIN32API
165 signal (SIGPIPE, SIG_IGN); /* If we don't do this, then gdbserver simply
166 exits when the remote side dies. */
167 #endif
168
169 if (run_once)
170 {
171 #ifndef USE_WIN32API
172 close (listen_desc); /* No longer need this */
173 #else
174 closesocket (listen_desc); /* No longer need this */
175 #endif
176 }
177
178 /* Even if !RUN_ONCE no longer notice new connections. Still keep the
179 descriptor open for add_file_handler to wait for a new connection. */
180 delete_file_handler (listen_desc);
181
182 /* Convert IP address to string. */
183 char orig_host[GDB_NI_MAX_ADDR], orig_port[GDB_NI_MAX_PORT];
184
185 int r = getnameinfo ((struct sockaddr *) &sockaddr, len,
186 orig_host, sizeof (orig_host),
187 orig_port, sizeof (orig_port),
188 NI_NUMERICHOST | NI_NUMERICSERV);
189
190 if (r != 0)
191 fprintf (stderr, _("Could not obtain remote address: %s\n"),
192 gai_strerror (r));
193 else
194 fprintf (stderr, _("Remote debugging from host %s, port %s\n"),
195 orig_host, orig_port);
196
197 enable_async_notification (remote_desc);
198
199 /* Register the event loop handler. */
200 add_file_handler (remote_desc, handle_serial_event, NULL, "remote-net");
201
202 /* We have a new GDB connection now. If we were disconnected
203 tracing, there's a window where the target could report a stop
204 event to the event loop, and since we have a connection now, we'd
205 try to send vStopped notifications to GDB. But, don't do that
206 until GDB as selected all-stop/non-stop, and has queried the
207 threads' status ('?'). */
208 target_async (0);
209 }
210
211 /* Prepare for a later connection to a remote debugger.
212 NAME is the filename used for communication. */
213
214 void
215 remote_prepare (const char *name)
216 {
217 client_state &cs = get_client_state ();
218 #ifdef USE_WIN32API
219 static int winsock_initialized;
220 #endif
221 socklen_t tmp;
222
223 remote_is_stdio = 0;
224 if (strcmp (name, STDIO_CONNECTION_NAME) == 0)
225 {
226 /* We need to record fact that we're using stdio sooner than the
227 call to remote_open so start_inferior knows the connection is
228 via stdio. */
229 remote_is_stdio = 1;
230 cs.transport_is_reliable = 1;
231 return;
232 }
233
234 struct addrinfo hint;
235 struct addrinfo *ainfo;
236
237 memset (&hint, 0, sizeof (hint));
238 /* Assume no prefix will be passed, therefore we should use
239 AF_UNSPEC. */
240 hint.ai_family = AF_UNSPEC;
241 hint.ai_socktype = SOCK_STREAM;
242 hint.ai_protocol = IPPROTO_TCP;
243
244 parsed_connection_spec parsed
245 = parse_connection_spec_without_prefix (name, &hint);
246
247 if (parsed.port_str.empty ())
248 {
249 cs.transport_is_reliable = 0;
250 return;
251 }
252
253 #ifdef USE_WIN32API
254 if (!winsock_initialized)
255 {
256 WSADATA wsad;
257
258 WSAStartup (MAKEWORD (1, 0), &wsad);
259 winsock_initialized = 1;
260 }
261 #endif
262
263 int r = getaddrinfo (parsed.host_str.c_str (), parsed.port_str.c_str (),
264 &hint, &ainfo);
265
266 if (r != 0)
267 error (_("%s: cannot resolve name: %s"), name, gai_strerror (r));
268
269 scoped_free_addrinfo freeaddrinfo (ainfo);
270
271 struct addrinfo *iter;
272
273 for (iter = ainfo; iter != NULL; iter = iter->ai_next)
274 {
275 listen_desc = gdb_socket_cloexec (iter->ai_family, iter->ai_socktype,
276 iter->ai_protocol);
277
278 if (listen_desc >= 0)
279 break;
280 }
281
282 if (iter == NULL)
283 perror_with_name ("Can't open socket");
284
285 /* Allow rapid reuse of this port. */
286 tmp = 1;
287 setsockopt (listen_desc, SOL_SOCKET, SO_REUSEADDR, (char *) &tmp,
288 sizeof (tmp));
289
290 switch (iter->ai_family)
291 {
292 case AF_INET:
293 ((struct sockaddr_in *) iter->ai_addr)->sin_addr.s_addr = INADDR_ANY;
294 break;
295 case AF_INET6:
296 ((struct sockaddr_in6 *) iter->ai_addr)->sin6_addr = in6addr_any;
297 break;
298 default:
299 internal_error (__FILE__, __LINE__,
300 _("Invalid 'ai_family' %d\n"), iter->ai_family);
301 }
302
303 if (bind (listen_desc, iter->ai_addr, iter->ai_addrlen) != 0)
304 perror_with_name ("Can't bind address");
305
306 if (listen (listen_desc, 1) != 0)
307 perror_with_name ("Can't listen on socket");
308
309 cs.transport_is_reliable = 1;
310 }
311
312 /* Open a connection to a remote debugger.
313 NAME is the filename used for communication. */
314
315 void
316 remote_open (const char *name)
317 {
318 const char *port_str;
319
320 port_str = strchr (name, ':');
321 #ifdef USE_WIN32API
322 if (port_str == NULL)
323 error ("Only HOST:PORT is supported on this platform.");
324 #endif
325
326 if (strcmp (name, STDIO_CONNECTION_NAME) == 0)
327 {
328 fprintf (stderr, "Remote debugging using stdio\n");
329
330 /* Use stdin as the handle of the connection.
331 We only select on reads, for example. */
332 remote_desc = fileno (stdin);
333
334 enable_async_notification (remote_desc);
335
336 /* Register the event loop handler. */
337 add_file_handler (remote_desc, handle_serial_event, NULL, "remote-stdio");
338 }
339 #ifndef USE_WIN32API
340 else if (port_str == NULL)
341 {
342 struct stat statbuf;
343
344 if (stat (name, &statbuf) == 0
345 && (S_ISCHR (statbuf.st_mode) || S_ISFIFO (statbuf.st_mode)))
346 remote_desc = open (name, O_RDWR);
347 else
348 {
349 errno = EINVAL;
350 remote_desc = -1;
351 }
352
353 if (remote_desc < 0)
354 perror_with_name ("Could not open remote device");
355
356 #if HAVE_TERMIOS_H
357 {
358 struct termios termios;
359 tcgetattr (remote_desc, &termios);
360
361 termios.c_iflag = 0;
362 termios.c_oflag = 0;
363 termios.c_lflag = 0;
364 termios.c_cflag &= ~(CSIZE | PARENB);
365 termios.c_cflag |= CLOCAL | CS8;
366 termios.c_cc[VMIN] = 1;
367 termios.c_cc[VTIME] = 0;
368
369 tcsetattr (remote_desc, TCSANOW, &termios);
370 }
371 #endif
372
373 fprintf (stderr, "Remote debugging using %s\n", name);
374
375 enable_async_notification (remote_desc);
376
377 /* Register the event loop handler. */
378 add_file_handler (remote_desc, handle_serial_event, NULL,
379 "remote-device");
380 }
381 #endif /* USE_WIN32API */
382 else
383 {
384 char listen_port[GDB_NI_MAX_PORT];
385 struct sockaddr_storage sockaddr;
386 socklen_t len = sizeof (sockaddr);
387
388 if (getsockname (listen_desc, (struct sockaddr *) &sockaddr, &len) < 0)
389 perror_with_name ("Can't determine port");
390
391 int r = getnameinfo ((struct sockaddr *) &sockaddr, len,
392 NULL, 0,
393 listen_port, sizeof (listen_port),
394 NI_NUMERICSERV);
395
396 if (r != 0)
397 fprintf (stderr, _("Can't obtain port where we are listening: %s"),
398 gai_strerror (r));
399 else
400 fprintf (stderr, _("Listening on port %s\n"), listen_port);
401
402 fflush (stderr);
403
404 /* Register the event loop handler. */
405 add_file_handler (listen_desc, handle_accept_event, NULL,
406 "remote-listen");
407 }
408 }
409
410 void
411 remote_close (void)
412 {
413 delete_file_handler (remote_desc);
414
415 disable_async_io ();
416
417 #ifdef USE_WIN32API
418 closesocket (remote_desc);
419 #else
420 if (! remote_connection_is_stdio ())
421 close (remote_desc);
422 #endif
423 remote_desc = -1;
424
425 reset_readchar ();
426 }
427
428 #endif
429
430 #ifndef IN_PROCESS_AGENT
431
432 void
433 decode_address (CORE_ADDR *addrp, const char *start, int len)
434 {
435 CORE_ADDR addr;
436 char ch;
437 int i;
438
439 addr = 0;
440 for (i = 0; i < len; i++)
441 {
442 ch = start[i];
443 addr = addr << 4;
444 addr = addr | (fromhex (ch) & 0x0f);
445 }
446 *addrp = addr;
447 }
448
449 const char *
450 decode_address_to_semicolon (CORE_ADDR *addrp, const char *start)
451 {
452 const char *end;
453
454 end = start;
455 while (*end != '\0' && *end != ';')
456 end++;
457
458 decode_address (addrp, start, end - start);
459
460 if (*end == ';')
461 end++;
462 return end;
463 }
464
465 #endif
466
467 #ifndef IN_PROCESS_AGENT
468
469 /* Look for a sequence of characters which can be run-length encoded.
470 If there are any, update *CSUM and *P. Otherwise, output the
471 single character. Return the number of characters consumed. */
472
473 static int
474 try_rle (char *buf, int remaining, unsigned char *csum, char **p)
475 {
476 int n;
477
478 /* Always output the character. */
479 *csum += buf[0];
480 *(*p)++ = buf[0];
481
482 /* Don't go past '~'. */
483 if (remaining > 97)
484 remaining = 97;
485
486 for (n = 1; n < remaining; n++)
487 if (buf[n] != buf[0])
488 break;
489
490 /* N is the index of the first character not the same as buf[0].
491 buf[0] is counted twice, so by decrementing N, we get the number
492 of characters the RLE sequence will replace. */
493 n--;
494
495 if (n < 3)
496 return 1;
497
498 /* Skip the frame characters. The manual says to skip '+' and '-'
499 also, but there's no reason to. Unfortunately these two unusable
500 characters double the encoded length of a four byte zero
501 value. */
502 while (n + 29 == '$' || n + 29 == '#')
503 n--;
504
505 *csum += '*';
506 *(*p)++ = '*';
507 *csum += n + 29;
508 *(*p)++ = n + 29;
509
510 return n + 1;
511 }
512
513 #endif
514
515 #ifndef IN_PROCESS_AGENT
516
517 /* Write a PTID to BUF. Returns BUF+CHARACTERS_WRITTEN. */
518
519 char *
520 write_ptid (char *buf, ptid_t ptid)
521 {
522 client_state &cs = get_client_state ();
523 int pid, tid;
524
525 if (cs.multi_process)
526 {
527 pid = ptid.pid ();
528 if (pid < 0)
529 buf += sprintf (buf, "p-%x.", -pid);
530 else
531 buf += sprintf (buf, "p%x.", pid);
532 }
533 tid = ptid.lwp ();
534 if (tid < 0)
535 buf += sprintf (buf, "-%x", -tid);
536 else
537 buf += sprintf (buf, "%x", tid);
538
539 return buf;
540 }
541
542 static ULONGEST
543 hex_or_minus_one (const char *buf, const char **obuf)
544 {
545 ULONGEST ret;
546
547 if (startswith (buf, "-1"))
548 {
549 ret = (ULONGEST) -1;
550 buf += 2;
551 }
552 else
553 buf = unpack_varlen_hex (buf, &ret);
554
555 if (obuf)
556 *obuf = buf;
557
558 return ret;
559 }
560
561 /* Extract a PTID from BUF. If non-null, OBUF is set to the to one
562 passed the last parsed char. Returns null_ptid on error. */
563 ptid_t
564 read_ptid (const char *buf, const char **obuf)
565 {
566 const char *p = buf;
567 const char *pp;
568 ULONGEST pid = 0, tid = 0;
569
570 if (*p == 'p')
571 {
572 /* Multi-process ptid. */
573 pp = unpack_varlen_hex (p + 1, &pid);
574 if (*pp != '.')
575 error ("invalid remote ptid: %s\n", p);
576
577 p = pp + 1;
578
579 tid = hex_or_minus_one (p, &pp);
580
581 if (obuf)
582 *obuf = pp;
583 return ptid_t (pid, tid);
584 }
585
586 /* No multi-process. Just a tid. */
587 tid = hex_or_minus_one (p, &pp);
588
589 /* Since GDB is not sending a process id (multi-process extensions
590 are off), then there's only one process. Default to the first in
591 the list. */
592 pid = pid_of (get_first_process ());
593
594 if (obuf)
595 *obuf = pp;
596 return ptid_t (pid, tid);
597 }
598
599 /* Write COUNT bytes in BUF to the client.
600 The result is the number of bytes written or -1 if error.
601 This may return less than COUNT. */
602
603 static int
604 write_prim (const void *buf, int count)
605 {
606 if (remote_connection_is_stdio ())
607 return write (fileno (stdout), buf, count);
608 else
609 return write (remote_desc, buf, count);
610 }
611
612 /* Read COUNT bytes from the client and store in BUF.
613 The result is the number of bytes read or -1 if error.
614 This may return less than COUNT. */
615
616 static int
617 read_prim (void *buf, int count)
618 {
619 if (remote_connection_is_stdio ())
620 return read (fileno (stdin), buf, count);
621 else
622 return read (remote_desc, buf, count);
623 }
624
625 /* Send a packet to the remote machine, with error checking.
626 The data of the packet is in BUF, and the length of the
627 packet is in CNT. Returns >= 0 on success, -1 otherwise. */
628
629 static int
630 putpkt_binary_1 (char *buf, int cnt, int is_notif)
631 {
632 client_state &cs = get_client_state ();
633 int i;
634 unsigned char csum = 0;
635 char *buf2;
636 char *p;
637 int cc;
638
639 buf2 = (char *) xmalloc (strlen ("$") + cnt + strlen ("#nn") + 1);
640
641 /* Copy the packet into buffer BUF2, encapsulating it
642 and giving it a checksum. */
643
644 p = buf2;
645 if (is_notif)
646 *p++ = '%';
647 else
648 *p++ = '$';
649
650 for (i = 0; i < cnt;)
651 i += try_rle (buf + i, cnt - i, &csum, &p);
652
653 *p++ = '#';
654 *p++ = tohex ((csum >> 4) & 0xf);
655 *p++ = tohex (csum & 0xf);
656
657 *p = '\0';
658
659 /* Send it over and over until we get a positive ack. */
660
661 do
662 {
663 if (write_prim (buf2, p - buf2) != p - buf2)
664 {
665 perror ("putpkt(write)");
666 free (buf2);
667 return -1;
668 }
669
670 if (cs.noack_mode || is_notif)
671 {
672 /* Don't expect an ack then. */
673 if (is_notif)
674 remote_debug_printf ("putpkt (\"%s\"); [notif]", buf2);
675 else
676 remote_debug_printf ("putpkt (\"%s\"); [noack mode]", buf2);
677
678 break;
679 }
680
681 remote_debug_printf ("putpkt (\"%s\"); [looking for ack]", buf2);
682
683 cc = readchar ();
684
685 if (cc < 0)
686 {
687 free (buf2);
688 return -1;
689 }
690
691 remote_debug_printf ("[received '%c' (0x%x)]", cc, cc);
692
693 /* Check for an input interrupt while we're here. */
694 if (cc == '\003' && current_thread != NULL)
695 the_target->request_interrupt ();
696 }
697 while (cc != '+');
698
699 free (buf2);
700 return 1; /* Success! */
701 }
702
703 int
704 putpkt_binary (char *buf, int cnt)
705 {
706 return putpkt_binary_1 (buf, cnt, 0);
707 }
708
709 /* Send a packet to the remote machine, with error checking. The data
710 of the packet is in BUF, and the packet should be a NUL-terminated
711 string. Returns >= 0 on success, -1 otherwise. */
712
713 int
714 putpkt (char *buf)
715 {
716 return putpkt_binary (buf, strlen (buf));
717 }
718
719 int
720 putpkt_notif (char *buf)
721 {
722 return putpkt_binary_1 (buf, strlen (buf), 1);
723 }
724
725 /* Come here when we get an input interrupt from the remote side. This
726 interrupt should only be active while we are waiting for the child to do
727 something. Thus this assumes readchar:bufcnt is 0.
728 About the only thing that should come through is a ^C, which
729 will cause us to request child interruption. */
730
731 static void
732 input_interrupt (int unused)
733 {
734 fd_set readset;
735 struct timeval immediate = { 0, 0 };
736
737 /* Protect against spurious interrupts. This has been observed to
738 be a problem under NetBSD 1.4 and 1.5. */
739
740 FD_ZERO (&readset);
741 FD_SET (remote_desc, &readset);
742 if (select (remote_desc + 1, &readset, 0, 0, &immediate) > 0)
743 {
744 int cc;
745 char c = 0;
746
747 cc = read_prim (&c, 1);
748
749 if (cc == 0)
750 {
751 fprintf (stderr, "client connection closed\n");
752 return;
753 }
754 else if (cc != 1 || c != '\003')
755 {
756 fprintf (stderr, "input_interrupt, count = %d c = %d ", cc, c);
757 if (isprint (c))
758 fprintf (stderr, "('%c')\n", c);
759 else
760 fprintf (stderr, "('\\x%02x')\n", c & 0xff);
761 return;
762 }
763
764 the_target->request_interrupt ();
765 }
766 }
767
768 /* Check if the remote side sent us an interrupt request (^C). */
769 void
770 check_remote_input_interrupt_request (void)
771 {
772 /* This function may be called before establishing communications,
773 therefore we need to validate the remote descriptor. */
774
775 if (remote_desc == -1)
776 return;
777
778 input_interrupt (0);
779 }
780
781 /* Asynchronous I/O support. SIGIO must be unblocked when waiting,
782 in order to accept Control-C from the client, and must be blocked
783 when talking to the client. */
784
785 static void
786 block_unblock_async_io (int block)
787 {
788 #ifndef USE_WIN32API
789 sigset_t sigio_set;
790
791 sigemptyset (&sigio_set);
792 sigaddset (&sigio_set, SIGIO);
793 gdb_sigmask (block ? SIG_BLOCK : SIG_UNBLOCK, &sigio_set, NULL);
794 #endif
795 }
796
797 /* Current state of asynchronous I/O. */
798 static int async_io_enabled;
799
800 /* Enable asynchronous I/O. */
801 void
802 enable_async_io (void)
803 {
804 if (async_io_enabled)
805 return;
806
807 block_unblock_async_io (0);
808
809 async_io_enabled = 1;
810 }
811
812 /* Disable asynchronous I/O. */
813 void
814 disable_async_io (void)
815 {
816 if (!async_io_enabled)
817 return;
818
819 block_unblock_async_io (1);
820
821 async_io_enabled = 0;
822 }
823
824 void
825 initialize_async_io (void)
826 {
827 /* Make sure that async I/O starts blocked. */
828 async_io_enabled = 1;
829 disable_async_io ();
830
831 /* Install the signal handler. */
832 #ifndef USE_WIN32API
833 signal (SIGIO, input_interrupt);
834 #endif
835 }
836
837 /* Internal buffer used by readchar.
838 These are global to readchar because reschedule_remote needs to be
839 able to tell whether the buffer is empty. */
840
841 static unsigned char readchar_buf[BUFSIZ];
842 static int readchar_bufcnt = 0;
843 static unsigned char *readchar_bufp;
844
845 /* Returns next char from remote GDB. -1 if error. */
846
847 static int
848 readchar (void)
849 {
850 int ch;
851
852 if (readchar_bufcnt == 0)
853 {
854 readchar_bufcnt = read_prim (readchar_buf, sizeof (readchar_buf));
855
856 if (readchar_bufcnt <= 0)
857 {
858 if (readchar_bufcnt == 0)
859 {
860 remote_debug_printf ("readchar: Got EOF");
861 }
862 else
863 perror ("readchar");
864
865 return -1;
866 }
867
868 readchar_bufp = readchar_buf;
869 }
870
871 readchar_bufcnt--;
872 ch = *readchar_bufp++;
873 reschedule ();
874 return ch;
875 }
876
877 /* Reset the readchar state machine. */
878
879 static void
880 reset_readchar (void)
881 {
882 readchar_bufcnt = 0;
883 if (readchar_callback != NOT_SCHEDULED)
884 {
885 delete_timer (readchar_callback);
886 readchar_callback = NOT_SCHEDULED;
887 }
888 }
889
890 /* Process remaining data in readchar_buf. */
891
892 static void
893 process_remaining (void *context)
894 {
895 /* This is a one-shot event. */
896 readchar_callback = NOT_SCHEDULED;
897
898 if (readchar_bufcnt > 0)
899 handle_serial_event (0, NULL);
900 }
901
902 /* If there is still data in the buffer, queue another event to process it,
903 we can't sleep in select yet. */
904
905 static void
906 reschedule (void)
907 {
908 if (readchar_bufcnt > 0 && readchar_callback == NOT_SCHEDULED)
909 readchar_callback = create_timer (0, process_remaining, NULL);
910 }
911
912 /* Read a packet from the remote machine, with error checking,
913 and store it in BUF. Returns length of packet, or negative if error. */
914
915 int
916 getpkt (char *buf)
917 {
918 client_state &cs = get_client_state ();
919 char *bp;
920 unsigned char csum, c1, c2;
921 int c;
922
923 while (1)
924 {
925 csum = 0;
926
927 while (1)
928 {
929 c = readchar ();
930
931 /* The '\003' may appear before or after each packet, so
932 check for an input interrupt. */
933 if (c == '\003')
934 {
935 the_target->request_interrupt ();
936 continue;
937 }
938
939 if (c == '$')
940 break;
941
942 remote_debug_printf ("[getpkt: discarding char '%c']", c);
943
944 if (c < 0)
945 return -1;
946 }
947
948 bp = buf;
949 while (1)
950 {
951 c = readchar ();
952 if (c < 0)
953 return -1;
954 if (c == '#')
955 break;
956 *bp++ = c;
957 csum += c;
958 }
959 *bp = 0;
960
961 c1 = fromhex (readchar ());
962 c2 = fromhex (readchar ());
963
964 if (csum == (c1 << 4) + c2)
965 break;
966
967 if (cs.noack_mode)
968 {
969 fprintf (stderr,
970 "Bad checksum, sentsum=0x%x, csum=0x%x, "
971 "buf=%s [no-ack-mode, Bad medium?]\n",
972 (c1 << 4) + c2, csum, buf);
973 /* Not much we can do, GDB wasn't expecting an ack/nac. */
974 break;
975 }
976
977 fprintf (stderr, "Bad checksum, sentsum=0x%x, csum=0x%x, buf=%s\n",
978 (c1 << 4) + c2, csum, buf);
979 if (write_prim ("-", 1) != 1)
980 return -1;
981 }
982
983 if (!cs.noack_mode)
984 {
985 remote_debug_printf ("getpkt (\"%s\"); [sending ack]", buf);
986
987 if (write_prim ("+", 1) != 1)
988 return -1;
989
990 remote_debug_printf ("[sent ack]");
991 }
992 else
993 remote_debug_printf ("getpkt (\"%s\"); [no ack sent]", buf);
994
995 /* The readchar above may have already read a '\003' out of the socket
996 and moved it to the local buffer. For example, when GDB sends
997 vCont;c immediately followed by interrupt (see
998 gdb.base/interrupt-noterm.exp). As soon as we see the vCont;c, we'll
999 resume the inferior and wait. Since we've already moved the '\003'
1000 to the local buffer, SIGIO won't help. In that case, if we don't
1001 check for interrupt after the vCont;c packet, the interrupt character
1002 would stay in the buffer unattended until after the next (unrelated)
1003 stop. */
1004 while (readchar_bufcnt > 0 && *readchar_bufp == '\003')
1005 {
1006 /* Consume the interrupt character in the buffer. */
1007 readchar ();
1008 the_target->request_interrupt ();
1009 }
1010
1011 return bp - buf;
1012 }
1013
1014 void
1015 write_ok (char *buf)
1016 {
1017 buf[0] = 'O';
1018 buf[1] = 'K';
1019 buf[2] = '\0';
1020 }
1021
1022 void
1023 write_enn (char *buf)
1024 {
1025 /* Some day, we should define the meanings of the error codes... */
1026 buf[0] = 'E';
1027 buf[1] = '0';
1028 buf[2] = '1';
1029 buf[3] = '\0';
1030 }
1031
1032 #endif
1033
1034 #ifndef IN_PROCESS_AGENT
1035
1036 static char *
1037 outreg (struct regcache *regcache, int regno, char *buf)
1038 {
1039 if ((regno >> 12) != 0)
1040 *buf++ = tohex ((regno >> 12) & 0xf);
1041 if ((regno >> 8) != 0)
1042 *buf++ = tohex ((regno >> 8) & 0xf);
1043 *buf++ = tohex ((regno >> 4) & 0xf);
1044 *buf++ = tohex (regno & 0xf);
1045 *buf++ = ':';
1046 collect_register_as_string (regcache, regno, buf);
1047 buf += 2 * register_size (regcache->tdesc, regno);
1048 *buf++ = ';';
1049
1050 return buf;
1051 }
1052
1053 void
1054 prepare_resume_reply (char *buf, ptid_t ptid, const target_waitstatus &status)
1055 {
1056 client_state &cs = get_client_state ();
1057 threads_debug_printf ("Writing resume reply for %s:%d",
1058 target_pid_to_str (ptid).c_str (), status.kind ());
1059
1060 switch (status.kind ())
1061 {
1062 case TARGET_WAITKIND_STOPPED:
1063 case TARGET_WAITKIND_FORKED:
1064 case TARGET_WAITKIND_VFORKED:
1065 case TARGET_WAITKIND_VFORK_DONE:
1066 case TARGET_WAITKIND_EXECD:
1067 case TARGET_WAITKIND_THREAD_CREATED:
1068 case TARGET_WAITKIND_SYSCALL_ENTRY:
1069 case TARGET_WAITKIND_SYSCALL_RETURN:
1070 {
1071 const char **regp;
1072 struct regcache *regcache;
1073 char *buf_start = buf;
1074
1075 if ((status.kind () == TARGET_WAITKIND_FORKED && cs.report_fork_events)
1076 || (status.kind () == TARGET_WAITKIND_VFORKED
1077 && cs.report_vfork_events))
1078 {
1079 enum gdb_signal signal = GDB_SIGNAL_TRAP;
1080 const char *event = (status.kind () == TARGET_WAITKIND_FORKED
1081 ? "fork" : "vfork");
1082
1083 sprintf (buf, "T%02x%s:", signal, event);
1084 buf += strlen (buf);
1085 buf = write_ptid (buf, status.child_ptid ());
1086 strcat (buf, ";");
1087 }
1088 else if (status.kind () == TARGET_WAITKIND_VFORK_DONE
1089 && cs.report_vfork_events)
1090 {
1091 enum gdb_signal signal = GDB_SIGNAL_TRAP;
1092
1093 sprintf (buf, "T%02xvforkdone:;", signal);
1094 }
1095 else if (status.kind () == TARGET_WAITKIND_EXECD && cs.report_exec_events)
1096 {
1097 enum gdb_signal signal = GDB_SIGNAL_TRAP;
1098 const char *event = "exec";
1099 char hexified_pathname[PATH_MAX * 2];
1100
1101 sprintf (buf, "T%02x%s:", signal, event);
1102 buf += strlen (buf);
1103
1104 /* Encode pathname to hexified format. */
1105 bin2hex ((const gdb_byte *) status.execd_pathname (),
1106 hexified_pathname,
1107 strlen (status.execd_pathname ()));
1108
1109 sprintf (buf, "%s;", hexified_pathname);
1110 buf += strlen (buf);
1111 }
1112 else if (status.kind () == TARGET_WAITKIND_THREAD_CREATED
1113 && cs.report_thread_events)
1114 {
1115 enum gdb_signal signal = GDB_SIGNAL_TRAP;
1116
1117 sprintf (buf, "T%02xcreate:;", signal);
1118 }
1119 else if (status.kind () == TARGET_WAITKIND_SYSCALL_ENTRY
1120 || status.kind () == TARGET_WAITKIND_SYSCALL_RETURN)
1121 {
1122 enum gdb_signal signal = GDB_SIGNAL_TRAP;
1123 const char *event = (status.kind () == TARGET_WAITKIND_SYSCALL_ENTRY
1124 ? "syscall_entry" : "syscall_return");
1125
1126 sprintf (buf, "T%02x%s:%x;", signal, event,
1127 status.syscall_number ());
1128 }
1129 else
1130 sprintf (buf, "T%02x", status.sig ());
1131
1132 if (disable_packet_T)
1133 {
1134 /* This is a bit (OK, a lot) of a kludge, however, this isn't
1135 really a user feature, but exists only so GDB can use the
1136 gdbserver to test handling of the 'S' stop reply packet, so
1137 we would rather this code be as simple as possible.
1138
1139 By this point we've started to build the 'T' stop packet,
1140 and it should look like 'Txx....' where 'x' is a hex digit.
1141 An 'S' stop packet always looks like 'Sxx', so all we do
1142 here is convert the buffer from a T packet to an S packet
1143 and the avoid adding any extra content by breaking out. */
1144 gdb_assert (buf_start[0] == 'T');
1145 gdb_assert (isxdigit (buf_start[1]));
1146 gdb_assert (isxdigit (buf_start[2]));
1147 buf_start[0] = 'S';
1148 buf_start[3] = '\0';
1149 break;
1150 }
1151
1152 buf += strlen (buf);
1153
1154 scoped_restore_current_thread restore_thread;
1155
1156 switch_to_thread (the_target, ptid);
1157
1158 regp = current_target_desc ()->expedite_regs;
1159
1160 regcache = get_thread_regcache (current_thread, 1);
1161
1162 if (the_target->stopped_by_watchpoint ())
1163 {
1164 CORE_ADDR addr;
1165 int i;
1166
1167 memcpy (buf, "watch:", 6);
1168 buf += 6;
1169
1170 addr = the_target->stopped_data_address ();
1171
1172 /* Convert each byte of the address into two hexadecimal
1173 chars. Note that we take sizeof (void *) instead of
1174 sizeof (addr); this is to avoid sending a 64-bit
1175 address to a 32-bit GDB. */
1176 for (i = sizeof (void *) * 2; i > 0; i--)
1177 *buf++ = tohex ((addr >> (i - 1) * 4) & 0xf);
1178 *buf++ = ';';
1179 }
1180 else if (cs.swbreak_feature && target_stopped_by_sw_breakpoint ())
1181 {
1182 sprintf (buf, "swbreak:;");
1183 buf += strlen (buf);
1184 }
1185 else if (cs.hwbreak_feature && target_stopped_by_hw_breakpoint ())
1186 {
1187 sprintf (buf, "hwbreak:;");
1188 buf += strlen (buf);
1189 }
1190
1191 while (*regp)
1192 {
1193 buf = outreg (regcache, find_regno (regcache->tdesc, *regp), buf);
1194 regp ++;
1195 }
1196 *buf = '\0';
1197
1198 /* Formerly, if the debugger had not used any thread features
1199 we would not burden it with a thread status response. This
1200 was for the benefit of GDB 4.13 and older. However, in
1201 recent GDB versions the check (``if (cont_thread != 0)'')
1202 does not have the desired effect because of sillyness in
1203 the way that the remote protocol handles specifying a
1204 thread. Since thread support relies on qSymbol support
1205 anyway, assume GDB can handle threads. */
1206
1207 if (using_threads && !disable_packet_Tthread)
1208 {
1209 /* This if (1) ought to be unnecessary. But remote_wait
1210 in GDB will claim this event belongs to inferior_ptid
1211 if we do not specify a thread, and there's no way for
1212 gdbserver to know what inferior_ptid is. */
1213 if (1 || cs.general_thread != ptid)
1214 {
1215 int core = -1;
1216 /* In non-stop, don't change the general thread behind
1217 GDB's back. */
1218 if (!non_stop)
1219 cs.general_thread = ptid;
1220 sprintf (buf, "thread:");
1221 buf += strlen (buf);
1222 buf = write_ptid (buf, ptid);
1223 strcat (buf, ";");
1224 buf += strlen (buf);
1225
1226 core = target_core_of_thread (ptid);
1227
1228 if (core != -1)
1229 {
1230 sprintf (buf, "core:");
1231 buf += strlen (buf);
1232 sprintf (buf, "%x", core);
1233 strcat (buf, ";");
1234 buf += strlen (buf);
1235 }
1236 }
1237 }
1238
1239 if (current_process ()->dlls_changed)
1240 {
1241 strcpy (buf, "library:;");
1242 buf += strlen (buf);
1243 current_process ()->dlls_changed = false;
1244 }
1245 }
1246 break;
1247 case TARGET_WAITKIND_EXITED:
1248 if (cs.multi_process)
1249 sprintf (buf, "W%x;process:%x",
1250 status.exit_status (), ptid.pid ());
1251 else
1252 sprintf (buf, "W%02x", status.exit_status ());
1253 break;
1254 case TARGET_WAITKIND_SIGNALLED:
1255 if (cs.multi_process)
1256 sprintf (buf, "X%x;process:%x",
1257 status.sig (), ptid.pid ());
1258 else
1259 sprintf (buf, "X%02x", status.sig ());
1260 break;
1261 case TARGET_WAITKIND_THREAD_EXITED:
1262 sprintf (buf, "w%x;", status.exit_status ());
1263 buf += strlen (buf);
1264 buf = write_ptid (buf, ptid);
1265 break;
1266 case TARGET_WAITKIND_NO_RESUMED:
1267 sprintf (buf, "N");
1268 break;
1269 default:
1270 error ("unhandled waitkind");
1271 break;
1272 }
1273 }
1274
1275 /* See remote-utils.h. */
1276
1277 const char *
1278 decode_m_packet_params (const char *from, CORE_ADDR *mem_addr_ptr,
1279 unsigned int *len_ptr, const char end_marker)
1280 {
1281 int i = 0;
1282 char ch;
1283 *mem_addr_ptr = *len_ptr = 0;
1284
1285 while ((ch = from[i++]) != ',')
1286 {
1287 *mem_addr_ptr = *mem_addr_ptr << 4;
1288 *mem_addr_ptr |= fromhex (ch) & 0x0f;
1289 }
1290
1291 while ((ch = from[i++]) != end_marker)
1292 {
1293 *len_ptr = *len_ptr << 4;
1294 *len_ptr |= fromhex (ch) & 0x0f;
1295 }
1296
1297 return from + i;
1298 }
1299
1300 void
1301 decode_m_packet (const char *from, CORE_ADDR *mem_addr_ptr,
1302 unsigned int *len_ptr)
1303 {
1304 decode_m_packet_params (from, mem_addr_ptr, len_ptr, '\0');
1305 }
1306
1307 void
1308 decode_M_packet (const char *from, CORE_ADDR *mem_addr_ptr,
1309 unsigned int *len_ptr, unsigned char **to_p)
1310 {
1311 from = decode_m_packet_params (from, mem_addr_ptr, len_ptr, ':');
1312
1313 if (*to_p == NULL)
1314 *to_p = (unsigned char *) xmalloc (*len_ptr);
1315
1316 hex2bin (from, *to_p, *len_ptr);
1317 }
1318
1319 int
1320 decode_X_packet (char *from, int packet_len, CORE_ADDR *mem_addr_ptr,
1321 unsigned int *len_ptr, unsigned char **to_p)
1322 {
1323 int i = 0;
1324 char ch;
1325 *mem_addr_ptr = *len_ptr = 0;
1326
1327 while ((ch = from[i++]) != ',')
1328 {
1329 *mem_addr_ptr = *mem_addr_ptr << 4;
1330 *mem_addr_ptr |= fromhex (ch) & 0x0f;
1331 }
1332
1333 while ((ch = from[i++]) != ':')
1334 {
1335 *len_ptr = *len_ptr << 4;
1336 *len_ptr |= fromhex (ch) & 0x0f;
1337 }
1338
1339 if (*to_p == NULL)
1340 *to_p = (unsigned char *) xmalloc (*len_ptr);
1341
1342 if (remote_unescape_input ((const gdb_byte *) &from[i], packet_len - i,
1343 *to_p, *len_ptr) != *len_ptr)
1344 return -1;
1345
1346 return 0;
1347 }
1348
1349 /* Decode a qXfer write request. */
1350
1351 int
1352 decode_xfer_write (char *buf, int packet_len, CORE_ADDR *offset,
1353 unsigned int *len, unsigned char *data)
1354 {
1355 char ch;
1356 char *b = buf;
1357
1358 /* Extract the offset. */
1359 *offset = 0;
1360 while ((ch = *buf++) != ':')
1361 {
1362 *offset = *offset << 4;
1363 *offset |= fromhex (ch) & 0x0f;
1364 }
1365
1366 /* Get encoded data. */
1367 packet_len -= buf - b;
1368 *len = remote_unescape_input ((const gdb_byte *) buf, packet_len,
1369 data, packet_len);
1370 return 0;
1371 }
1372
1373 /* Decode the parameters of a qSearch:memory packet. */
1374
1375 int
1376 decode_search_memory_packet (const char *buf, int packet_len,
1377 CORE_ADDR *start_addrp,
1378 CORE_ADDR *search_space_lenp,
1379 gdb_byte *pattern, unsigned int *pattern_lenp)
1380 {
1381 const char *p = buf;
1382
1383 p = decode_address_to_semicolon (start_addrp, p);
1384 p = decode_address_to_semicolon (search_space_lenp, p);
1385 packet_len -= p - buf;
1386 *pattern_lenp = remote_unescape_input ((const gdb_byte *) p, packet_len,
1387 pattern, packet_len);
1388 return 0;
1389 }
1390
1391 static void
1392 free_sym_cache (struct sym_cache *sym)
1393 {
1394 if (sym != NULL)
1395 {
1396 free (sym->name);
1397 free (sym);
1398 }
1399 }
1400
1401 void
1402 clear_symbol_cache (struct sym_cache **symcache_p)
1403 {
1404 struct sym_cache *sym, *next;
1405
1406 /* Check the cache first. */
1407 for (sym = *symcache_p; sym; sym = next)
1408 {
1409 next = sym->next;
1410 free_sym_cache (sym);
1411 }
1412
1413 *symcache_p = NULL;
1414 }
1415
1416 /* Get the address of NAME, and return it in ADDRP if found. if
1417 MAY_ASK_GDB is false, assume symbol cache misses are failures.
1418 Returns 1 if the symbol is found, 0 if it is not, -1 on error. */
1419
1420 int
1421 look_up_one_symbol (const char *name, CORE_ADDR *addrp, int may_ask_gdb)
1422 {
1423 client_state &cs = get_client_state ();
1424 char *p, *q;
1425 int len;
1426 struct sym_cache *sym;
1427 struct process_info *proc;
1428
1429 proc = current_process ();
1430
1431 /* Check the cache first. */
1432 for (sym = proc->symbol_cache; sym; sym = sym->next)
1433 if (strcmp (name, sym->name) == 0)
1434 {
1435 *addrp = sym->addr;
1436 return 1;
1437 }
1438
1439 /* It might not be an appropriate time to look up a symbol,
1440 e.g. while we're trying to fetch registers. */
1441 if (!may_ask_gdb)
1442 return 0;
1443
1444 /* Send the request. */
1445 strcpy (cs.own_buf, "qSymbol:");
1446 bin2hex ((const gdb_byte *) name, cs.own_buf + strlen ("qSymbol:"),
1447 strlen (name));
1448 if (putpkt (cs.own_buf) < 0)
1449 return -1;
1450
1451 /* FIXME: Eventually add buffer overflow checking (to getpkt?) */
1452 len = getpkt (cs.own_buf);
1453 if (len < 0)
1454 return -1;
1455
1456 /* We ought to handle pretty much any packet at this point while we
1457 wait for the qSymbol "response". That requires re-entering the
1458 main loop. For now, this is an adequate approximation; allow
1459 GDB to read from memory and handle 'v' packets (for vFile transfers)
1460 while it figures out the address of the symbol. */
1461 while (1)
1462 {
1463 if (cs.own_buf[0] == 'm')
1464 {
1465 CORE_ADDR mem_addr;
1466 unsigned char *mem_buf;
1467 unsigned int mem_len;
1468
1469 decode_m_packet (&cs.own_buf[1], &mem_addr, &mem_len);
1470 mem_buf = (unsigned char *) xmalloc (mem_len);
1471 if (read_inferior_memory (mem_addr, mem_buf, mem_len) == 0)
1472 bin2hex (mem_buf, cs.own_buf, mem_len);
1473 else
1474 write_enn (cs.own_buf);
1475 free (mem_buf);
1476 if (putpkt (cs.own_buf) < 0)
1477 return -1;
1478 }
1479 else if (cs.own_buf[0] == 'v')
1480 {
1481 int new_len = -1;
1482 handle_v_requests (cs.own_buf, len, &new_len);
1483 if (new_len != -1)
1484 putpkt_binary (cs.own_buf, new_len);
1485 else
1486 putpkt (cs.own_buf);
1487 }
1488 else
1489 break;
1490 len = getpkt (cs.own_buf);
1491 if (len < 0)
1492 return -1;
1493 }
1494
1495 if (!startswith (cs.own_buf, "qSymbol:"))
1496 {
1497 warning ("Malformed response to qSymbol, ignoring: %s", cs.own_buf);
1498 return -1;
1499 }
1500
1501 p = cs.own_buf + strlen ("qSymbol:");
1502 q = p;
1503 while (*q && *q != ':')
1504 q++;
1505
1506 /* Make sure we found a value for the symbol. */
1507 if (p == q || *q == '\0')
1508 return 0;
1509
1510 decode_address (addrp, p, q - p);
1511
1512 /* Save the symbol in our cache. */
1513 sym = XNEW (struct sym_cache);
1514 sym->name = xstrdup (name);
1515 sym->addr = *addrp;
1516 sym->next = proc->symbol_cache;
1517 proc->symbol_cache = sym;
1518
1519 return 1;
1520 }
1521
1522 /* Relocate an instruction to execute at a different address. OLDLOC
1523 is the address in the inferior memory where the instruction to
1524 relocate is currently at. On input, TO points to the destination
1525 where we want the instruction to be copied (and possibly adjusted)
1526 to. On output, it points to one past the end of the resulting
1527 instruction(s). The effect of executing the instruction at TO
1528 shall be the same as if executing it at OLDLOC. For example, call
1529 instructions that implicitly push the return address on the stack
1530 should be adjusted to return to the instruction after OLDLOC;
1531 relative branches, and other PC-relative instructions need the
1532 offset adjusted; etc. Returns 0 on success, -1 on failure. */
1533
1534 int
1535 relocate_instruction (CORE_ADDR *to, CORE_ADDR oldloc)
1536 {
1537 client_state &cs = get_client_state ();
1538 int len;
1539 ULONGEST written = 0;
1540
1541 /* Send the request. */
1542 sprintf (cs.own_buf, "qRelocInsn:%s;%s", paddress (oldloc),
1543 paddress (*to));
1544 if (putpkt (cs.own_buf) < 0)
1545 return -1;
1546
1547 /* FIXME: Eventually add buffer overflow checking (to getpkt?) */
1548 len = getpkt (cs.own_buf);
1549 if (len < 0)
1550 return -1;
1551
1552 /* We ought to handle pretty much any packet at this point while we
1553 wait for the qRelocInsn "response". That requires re-entering
1554 the main loop. For now, this is an adequate approximation; allow
1555 GDB to access memory. */
1556 while (cs.own_buf[0] == 'm' || cs.own_buf[0] == 'M' || cs.own_buf[0] == 'X')
1557 {
1558 CORE_ADDR mem_addr;
1559 unsigned char *mem_buf = NULL;
1560 unsigned int mem_len;
1561
1562 if (cs.own_buf[0] == 'm')
1563 {
1564 decode_m_packet (&cs.own_buf[1], &mem_addr, &mem_len);
1565 mem_buf = (unsigned char *) xmalloc (mem_len);
1566 if (read_inferior_memory (mem_addr, mem_buf, mem_len) == 0)
1567 bin2hex (mem_buf, cs.own_buf, mem_len);
1568 else
1569 write_enn (cs.own_buf);
1570 }
1571 else if (cs.own_buf[0] == 'X')
1572 {
1573 if (decode_X_packet (&cs.own_buf[1], len - 1, &mem_addr,
1574 &mem_len, &mem_buf) < 0
1575 || target_write_memory (mem_addr, mem_buf, mem_len) != 0)
1576 write_enn (cs.own_buf);
1577 else
1578 write_ok (cs.own_buf);
1579 }
1580 else
1581 {
1582 decode_M_packet (&cs.own_buf[1], &mem_addr, &mem_len, &mem_buf);
1583 if (target_write_memory (mem_addr, mem_buf, mem_len) == 0)
1584 write_ok (cs.own_buf);
1585 else
1586 write_enn (cs.own_buf);
1587 }
1588 free (mem_buf);
1589 if (putpkt (cs.own_buf) < 0)
1590 return -1;
1591 len = getpkt (cs.own_buf);
1592 if (len < 0)
1593 return -1;
1594 }
1595
1596 if (cs.own_buf[0] == 'E')
1597 {
1598 warning ("An error occurred while relocating an instruction: %s",
1599 cs.own_buf);
1600 return -1;
1601 }
1602
1603 if (!startswith (cs.own_buf, "qRelocInsn:"))
1604 {
1605 warning ("Malformed response to qRelocInsn, ignoring: %s",
1606 cs.own_buf);
1607 return -1;
1608 }
1609
1610 unpack_varlen_hex (cs.own_buf + strlen ("qRelocInsn:"), &written);
1611
1612 *to += written;
1613 return 0;
1614 }
1615
1616 void
1617 monitor_output (const char *msg)
1618 {
1619 int len = strlen (msg);
1620 char *buf = (char *) xmalloc (len * 2 + 2);
1621
1622 buf[0] = 'O';
1623 bin2hex ((const gdb_byte *) msg, buf + 1, len);
1624
1625 putpkt (buf);
1626 free (buf);
1627 }
1628
1629 #endif