gdbserver:prepare_access_memory: pick another thread
[deliverable/binutils-gdb.git] / gdb / gdbserver / remote-utils.c
1 /* Remote utility routines for the remote server for GDB.
2 Copyright (C) 1986-2015 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 #include "terminal.h"
21 #include "target.h"
22 #include "gdbthread.h"
23 #include "tdesc.h"
24 #include "dll.h"
25 #include "rsp-low.h"
26 #include <ctype.h>
27 #if HAVE_SYS_IOCTL_H
28 #include <sys/ioctl.h>
29 #endif
30 #if HAVE_SYS_FILE_H
31 #include <sys/file.h>
32 #endif
33 #if HAVE_NETINET_IN_H
34 #include <netinet/in.h>
35 #endif
36 #if HAVE_SYS_SOCKET_H
37 #include <sys/socket.h>
38 #endif
39 #if HAVE_NETDB_H
40 #include <netdb.h>
41 #endif
42 #if HAVE_NETINET_TCP_H
43 #include <netinet/tcp.h>
44 #endif
45 #if HAVE_SYS_IOCTL_H
46 #include <sys/ioctl.h>
47 #endif
48 #if HAVE_SIGNAL_H
49 #include <signal.h>
50 #endif
51 #if HAVE_FCNTL_H
52 #include <fcntl.h>
53 #endif
54 #include "gdb_sys_time.h"
55 #include <unistd.h>
56 #if HAVE_ARPA_INET_H
57 #include <arpa/inet.h>
58 #endif
59 #include <sys/stat.h>
60
61 #if USE_WIN32API
62 #include <winsock2.h>
63 #endif
64
65 #if __QNX__
66 #include <sys/iomgr.h>
67 #endif /* __QNX__ */
68
69 #ifndef HAVE_SOCKLEN_T
70 typedef int socklen_t;
71 #endif
72
73 #ifndef IN_PROCESS_AGENT
74
75 #if USE_WIN32API
76 # define INVALID_DESCRIPTOR INVALID_SOCKET
77 #else
78 # define INVALID_DESCRIPTOR -1
79 #endif
80
81 /* Extra value for readchar_callback. */
82 enum {
83 /* The callback is currently not scheduled. */
84 NOT_SCHEDULED = -1
85 };
86
87 /* Status of the readchar callback.
88 Either NOT_SCHEDULED or the callback id. */
89 static int readchar_callback = NOT_SCHEDULED;
90
91 static int readchar (void);
92 static void reset_readchar (void);
93 static void reschedule (void);
94
95 /* A cache entry for a successfully looked-up symbol. */
96 struct sym_cache
97 {
98 char *name;
99 CORE_ADDR addr;
100 struct sym_cache *next;
101 };
102
103 int remote_debug = 0;
104 struct ui_file *gdb_stdlog;
105
106 static int remote_is_stdio = 0;
107
108 static gdb_fildes_t remote_desc = INVALID_DESCRIPTOR;
109 static gdb_fildes_t listen_desc = INVALID_DESCRIPTOR;
110
111 /* FIXME headerize? */
112 extern int using_threads;
113 extern int debug_threads;
114
115 /* If true, then GDB has requested noack mode. */
116 int noack_mode = 0;
117 /* If true, then we tell GDB to use noack mode by default. */
118 int transport_is_reliable = 0;
119
120 #ifdef USE_WIN32API
121 # define read(fd, buf, len) recv (fd, (char *) buf, len, 0)
122 # define write(fd, buf, len) send (fd, (char *) buf, len, 0)
123 #endif
124
125 int
126 gdb_connected (void)
127 {
128 return remote_desc != INVALID_DESCRIPTOR;
129 }
130
131 /* Return true if the remote connection is over stdio. */
132
133 int
134 remote_connection_is_stdio (void)
135 {
136 return remote_is_stdio;
137 }
138
139 static void
140 enable_async_notification (int fd)
141 {
142 #if defined(F_SETFL) && defined (FASYNC)
143 int save_fcntl_flags;
144
145 save_fcntl_flags = fcntl (fd, F_GETFL, 0);
146 fcntl (fd, F_SETFL, save_fcntl_flags | FASYNC);
147 #if defined (F_SETOWN)
148 fcntl (fd, F_SETOWN, getpid ());
149 #endif
150 #endif
151 }
152
153 static int
154 handle_accept_event (int err, gdb_client_data client_data)
155 {
156 struct sockaddr_in sockaddr;
157 socklen_t tmp;
158
159 if (debug_threads)
160 debug_printf ("handling possible accept event\n");
161
162 tmp = sizeof (sockaddr);
163 remote_desc = accept (listen_desc, (struct sockaddr *) &sockaddr, &tmp);
164 if (remote_desc == -1)
165 perror_with_name ("Accept failed");
166
167 /* Enable TCP keep alive process. */
168 tmp = 1;
169 setsockopt (remote_desc, SOL_SOCKET, SO_KEEPALIVE,
170 (char *) &tmp, sizeof (tmp));
171
172 /* Tell TCP not to delay small packets. This greatly speeds up
173 interactive response. */
174 tmp = 1;
175 setsockopt (remote_desc, IPPROTO_TCP, TCP_NODELAY,
176 (char *) &tmp, sizeof (tmp));
177
178 #ifndef USE_WIN32API
179 signal (SIGPIPE, SIG_IGN); /* If we don't do this, then gdbserver simply
180 exits when the remote side dies. */
181 #endif
182
183 if (run_once)
184 {
185 #ifndef USE_WIN32API
186 close (listen_desc); /* No longer need this */
187 #else
188 closesocket (listen_desc); /* No longer need this */
189 #endif
190 }
191
192 /* Even if !RUN_ONCE no longer notice new connections. Still keep the
193 descriptor open for add_file_handler to wait for a new connection. */
194 delete_file_handler (listen_desc);
195
196 /* Convert IP address to string. */
197 fprintf (stderr, "Remote debugging from host %s\n",
198 inet_ntoa (sockaddr.sin_addr));
199
200 enable_async_notification (remote_desc);
201
202 /* Register the event loop handler. */
203 add_file_handler (remote_desc, handle_serial_event, NULL);
204
205 /* We have a new GDB connection now. If we were disconnected
206 tracing, there's a window where the target could report a stop
207 event to the event loop, and since we have a connection now, we'd
208 try to send vStopped notifications to GDB. But, don't do that
209 until GDB as selected all-stop/non-stop, and has queried the
210 threads' status ('?'). */
211 target_async (0);
212
213 return 0;
214 }
215
216 /* Prepare for a later connection to a remote debugger.
217 NAME is the filename used for communication. */
218
219 void
220 remote_prepare (char *name)
221 {
222 char *port_str;
223 #ifdef USE_WIN32API
224 static int winsock_initialized;
225 #endif
226 int port;
227 struct sockaddr_in sockaddr;
228 socklen_t tmp;
229 char *port_end;
230
231 remote_is_stdio = 0;
232 if (strcmp (name, STDIO_CONNECTION_NAME) == 0)
233 {
234 /* We need to record fact that we're using stdio sooner than the
235 call to remote_open so start_inferior knows the connection is
236 via stdio. */
237 remote_is_stdio = 1;
238 transport_is_reliable = 1;
239 return;
240 }
241
242 port_str = strchr (name, ':');
243 if (port_str == NULL)
244 {
245 transport_is_reliable = 0;
246 return;
247 }
248
249 port = strtoul (port_str + 1, &port_end, 10);
250 if (port_str[1] == '\0' || *port_end != '\0')
251 error ("Bad port argument: %s", name);
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 listen_desc = socket (PF_INET, SOCK_STREAM, IPPROTO_TCP);
264 if (listen_desc == -1)
265 perror_with_name ("Can't open socket");
266
267 /* Allow rapid reuse of this port. */
268 tmp = 1;
269 setsockopt (listen_desc, SOL_SOCKET, SO_REUSEADDR, (char *) &tmp,
270 sizeof (tmp));
271
272 sockaddr.sin_family = PF_INET;
273 sockaddr.sin_port = htons (port);
274 sockaddr.sin_addr.s_addr = INADDR_ANY;
275
276 if (bind (listen_desc, (struct sockaddr *) &sockaddr, sizeof (sockaddr))
277 || listen (listen_desc, 1))
278 perror_with_name ("Can't bind address");
279
280 transport_is_reliable = 1;
281 }
282
283 /* Open a connection to a remote debugger.
284 NAME is the filename used for communication. */
285
286 void
287 remote_open (char *name)
288 {
289 char *port_str;
290
291 port_str = strchr (name, ':');
292 #ifdef USE_WIN32API
293 if (port_str == NULL)
294 error ("Only <host>:<port> is supported on this platform.");
295 #endif
296
297 if (strcmp (name, STDIO_CONNECTION_NAME) == 0)
298 {
299 fprintf (stderr, "Remote debugging using stdio\n");
300
301 /* Use stdin as the handle of the connection.
302 We only select on reads, for example. */
303 remote_desc = fileno (stdin);
304
305 enable_async_notification (remote_desc);
306
307 /* Register the event loop handler. */
308 add_file_handler (remote_desc, handle_serial_event, NULL);
309 }
310 #ifndef USE_WIN32API
311 else if (port_str == NULL)
312 {
313 struct stat statbuf;
314
315 if (stat (name, &statbuf) == 0
316 && (S_ISCHR (statbuf.st_mode) || S_ISFIFO (statbuf.st_mode)))
317 remote_desc = open (name, O_RDWR);
318 else
319 {
320 errno = EINVAL;
321 remote_desc = -1;
322 }
323
324 if (remote_desc < 0)
325 perror_with_name ("Could not open remote device");
326
327 #ifdef HAVE_TERMIOS
328 {
329 struct termios termios;
330 tcgetattr (remote_desc, &termios);
331
332 termios.c_iflag = 0;
333 termios.c_oflag = 0;
334 termios.c_lflag = 0;
335 termios.c_cflag &= ~(CSIZE | PARENB);
336 termios.c_cflag |= CLOCAL | CS8;
337 termios.c_cc[VMIN] = 1;
338 termios.c_cc[VTIME] = 0;
339
340 tcsetattr (remote_desc, TCSANOW, &termios);
341 }
342 #endif
343
344 #ifdef HAVE_TERMIO
345 {
346 struct termio termio;
347 ioctl (remote_desc, TCGETA, &termio);
348
349 termio.c_iflag = 0;
350 termio.c_oflag = 0;
351 termio.c_lflag = 0;
352 termio.c_cflag &= ~(CSIZE | PARENB);
353 termio.c_cflag |= CLOCAL | CS8;
354 termio.c_cc[VMIN] = 1;
355 termio.c_cc[VTIME] = 0;
356
357 ioctl (remote_desc, TCSETA, &termio);
358 }
359 #endif
360
361 #ifdef HAVE_SGTTY
362 {
363 struct sgttyb sg;
364
365 ioctl (remote_desc, TIOCGETP, &sg);
366 sg.sg_flags = RAW;
367 ioctl (remote_desc, TIOCSETP, &sg);
368 }
369 #endif
370
371 fprintf (stderr, "Remote debugging using %s\n", name);
372
373 enable_async_notification (remote_desc);
374
375 /* Register the event loop handler. */
376 add_file_handler (remote_desc, handle_serial_event, NULL);
377 }
378 #endif /* USE_WIN32API */
379 else
380 {
381 int port;
382 socklen_t len;
383 struct sockaddr_in sockaddr;
384
385 len = sizeof (sockaddr);
386 if (getsockname (listen_desc,
387 (struct sockaddr *) &sockaddr, &len) < 0
388 || len < sizeof (sockaddr))
389 perror_with_name ("Can't determine port");
390 port = ntohs (sockaddr.sin_port);
391
392 fprintf (stderr, "Listening on port %d\n", port);
393 fflush (stderr);
394
395 /* Register the event loop handler. */
396 add_file_handler (listen_desc, handle_accept_event, NULL);
397 }
398 }
399
400 void
401 remote_close (void)
402 {
403 delete_file_handler (remote_desc);
404
405 #ifdef USE_WIN32API
406 closesocket (remote_desc);
407 #else
408 if (! remote_connection_is_stdio ())
409 close (remote_desc);
410 #endif
411 remote_desc = INVALID_DESCRIPTOR;
412
413 reset_readchar ();
414 }
415
416 #endif
417
418 #ifndef IN_PROCESS_AGENT
419
420 void
421 decode_address (CORE_ADDR *addrp, const char *start, int len)
422 {
423 CORE_ADDR addr;
424 char ch;
425 int i;
426
427 addr = 0;
428 for (i = 0; i < len; i++)
429 {
430 ch = start[i];
431 addr = addr << 4;
432 addr = addr | (fromhex (ch) & 0x0f);
433 }
434 *addrp = addr;
435 }
436
437 const char *
438 decode_address_to_semicolon (CORE_ADDR *addrp, const char *start)
439 {
440 const char *end;
441
442 end = start;
443 while (*end != '\0' && *end != ';')
444 end++;
445
446 decode_address (addrp, start, end - start);
447
448 if (*end == ';')
449 end++;
450 return end;
451 }
452
453 #endif
454
455 #ifndef IN_PROCESS_AGENT
456
457 /* Look for a sequence of characters which can be run-length encoded.
458 If there are any, update *CSUM and *P. Otherwise, output the
459 single character. Return the number of characters consumed. */
460
461 static int
462 try_rle (char *buf, int remaining, unsigned char *csum, char **p)
463 {
464 int n;
465
466 /* Always output the character. */
467 *csum += buf[0];
468 *(*p)++ = buf[0];
469
470 /* Don't go past '~'. */
471 if (remaining > 97)
472 remaining = 97;
473
474 for (n = 1; n < remaining; n++)
475 if (buf[n] != buf[0])
476 break;
477
478 /* N is the index of the first character not the same as buf[0].
479 buf[0] is counted twice, so by decrementing N, we get the number
480 of characters the RLE sequence will replace. */
481 n--;
482
483 if (n < 3)
484 return 1;
485
486 /* Skip the frame characters. The manual says to skip '+' and '-'
487 also, but there's no reason to. Unfortunately these two unusable
488 characters double the encoded length of a four byte zero
489 value. */
490 while (n + 29 == '$' || n + 29 == '#')
491 n--;
492
493 *csum += '*';
494 *(*p)++ = '*';
495 *csum += n + 29;
496 *(*p)++ = n + 29;
497
498 return n + 1;
499 }
500
501 #endif
502
503 #ifndef IN_PROCESS_AGENT
504
505 /* Write a PTID to BUF. Returns BUF+CHARACTERS_WRITTEN. */
506
507 char *
508 write_ptid (char *buf, ptid_t ptid)
509 {
510 int pid, tid;
511
512 if (multi_process)
513 {
514 pid = ptid_get_pid (ptid);
515 if (pid < 0)
516 buf += sprintf (buf, "p-%x.", -pid);
517 else
518 buf += sprintf (buf, "p%x.", pid);
519 }
520 tid = ptid_get_lwp (ptid);
521 if (tid < 0)
522 buf += sprintf (buf, "-%x", -tid);
523 else
524 buf += sprintf (buf, "%x", tid);
525
526 return buf;
527 }
528
529 ULONGEST
530 hex_or_minus_one (char *buf, char **obuf)
531 {
532 ULONGEST ret;
533
534 if (startswith (buf, "-1"))
535 {
536 ret = (ULONGEST) -1;
537 buf += 2;
538 }
539 else
540 buf = unpack_varlen_hex (buf, &ret);
541
542 if (obuf)
543 *obuf = buf;
544
545 return ret;
546 }
547
548 /* Extract a PTID from BUF. If non-null, OBUF is set to the to one
549 passed the last parsed char. Returns null_ptid on error. */
550 ptid_t
551 read_ptid (char *buf, char **obuf)
552 {
553 char *p = buf;
554 char *pp;
555 ULONGEST pid = 0, tid = 0;
556
557 if (*p == 'p')
558 {
559 /* Multi-process ptid. */
560 pp = unpack_varlen_hex (p + 1, &pid);
561 if (*pp != '.')
562 error ("invalid remote ptid: %s\n", p);
563
564 p = pp + 1;
565
566 tid = hex_or_minus_one (p, &pp);
567
568 if (obuf)
569 *obuf = pp;
570 return ptid_build (pid, tid, 0);
571 }
572
573 /* No multi-process. Just a tid. */
574 tid = hex_or_minus_one (p, &pp);
575
576 /* Since GDB is not sending a process id (multi-process extensions
577 are off), then there's only one process. Default to the first in
578 the list. */
579 pid = pid_of (get_first_process ());
580
581 if (obuf)
582 *obuf = pp;
583 return ptid_build (pid, tid, 0);
584 }
585
586 /* Write COUNT bytes in BUF to the client.
587 The result is the number of bytes written or -1 if error.
588 This may return less than COUNT. */
589
590 static int
591 write_prim (const void *buf, int count)
592 {
593 if (remote_connection_is_stdio ())
594 return write (fileno (stdout), buf, count);
595 else
596 return write (remote_desc, buf, count);
597 }
598
599 /* Read COUNT bytes from the client and store in BUF.
600 The result is the number of bytes read or -1 if error.
601 This may return less than COUNT. */
602
603 static int
604 read_prim (void *buf, int count)
605 {
606 if (remote_connection_is_stdio ())
607 return read (fileno (stdin), buf, count);
608 else
609 return read (remote_desc, buf, count);
610 }
611
612 /* Send a packet to the remote machine, with error checking.
613 The data of the packet is in BUF, and the length of the
614 packet is in CNT. Returns >= 0 on success, -1 otherwise. */
615
616 static int
617 putpkt_binary_1 (char *buf, int cnt, int is_notif)
618 {
619 int i;
620 unsigned char csum = 0;
621 char *buf2;
622 char *p;
623 int cc;
624
625 buf2 = (char *) xmalloc (strlen ("$") + cnt + strlen ("#nn") + 1);
626
627 /* Copy the packet into buffer BUF2, encapsulating it
628 and giving it a checksum. */
629
630 p = buf2;
631 if (is_notif)
632 *p++ = '%';
633 else
634 *p++ = '$';
635
636 for (i = 0; i < cnt;)
637 i += try_rle (buf + i, cnt - i, &csum, &p);
638
639 *p++ = '#';
640 *p++ = tohex ((csum >> 4) & 0xf);
641 *p++ = tohex (csum & 0xf);
642
643 *p = '\0';
644
645 /* Send it over and over until we get a positive ack. */
646
647 do
648 {
649 if (write_prim (buf2, p - buf2) != p - buf2)
650 {
651 perror ("putpkt(write)");
652 free (buf2);
653 return -1;
654 }
655
656 if (noack_mode || is_notif)
657 {
658 /* Don't expect an ack then. */
659 if (remote_debug)
660 {
661 if (is_notif)
662 fprintf (stderr, "putpkt (\"%s\"); [notif]\n", buf2);
663 else
664 fprintf (stderr, "putpkt (\"%s\"); [noack mode]\n", buf2);
665 fflush (stderr);
666 }
667 break;
668 }
669
670 if (remote_debug)
671 {
672 fprintf (stderr, "putpkt (\"%s\"); [looking for ack]\n", buf2);
673 fflush (stderr);
674 }
675
676 cc = readchar ();
677
678 if (cc < 0)
679 {
680 free (buf2);
681 return -1;
682 }
683
684 if (remote_debug)
685 {
686 fprintf (stderr, "[received '%c' (0x%x)]\n", cc, cc);
687 fflush (stderr);
688 }
689
690 /* Check for an input interrupt while we're here. */
691 if (cc == '\003' && current_thread != NULL)
692 (*the_target->request_interrupt) ();
693 }
694 while (cc != '+');
695
696 free (buf2);
697 return 1; /* Success! */
698 }
699
700 int
701 putpkt_binary (char *buf, int cnt)
702 {
703 return putpkt_binary_1 (buf, cnt, 0);
704 }
705
706 /* Send a packet to the remote machine, with error checking. The data
707 of the packet is in BUF, and the packet should be a NUL-terminated
708 string. Returns >= 0 on success, -1 otherwise. */
709
710 int
711 putpkt (char *buf)
712 {
713 return putpkt_binary (buf, strlen (buf));
714 }
715
716 int
717 putpkt_notif (char *buf)
718 {
719 return putpkt_binary_1 (buf, strlen (buf), 1);
720 }
721
722 /* Come here when we get an input interrupt from the remote side. This
723 interrupt should only be active while we are waiting for the child to do
724 something. Thus this assumes readchar:bufcnt is 0.
725 About the only thing that should come through is a ^C, which
726 will cause us to request child interruption. */
727
728 static void
729 input_interrupt (int unused)
730 {
731 fd_set readset;
732 struct timeval immediate = { 0, 0 };
733
734 /* Protect against spurious interrupts. This has been observed to
735 be a problem under NetBSD 1.4 and 1.5. */
736
737 FD_ZERO (&readset);
738 FD_SET (remote_desc, &readset);
739 if (select (remote_desc + 1, &readset, 0, 0, &immediate) > 0)
740 {
741 int cc;
742 char c = 0;
743
744 cc = read_prim (&c, 1);
745
746 if (cc == 0)
747 {
748 fprintf (stderr, "client connection closed\n");
749 return;
750 }
751 else if (cc != 1 || c != '\003')
752 {
753 fprintf (stderr, "input_interrupt, count = %d c = %d ", cc, c);
754 if (isprint (c))
755 fprintf (stderr, "('%c')\n", c);
756 else
757 fprintf (stderr, "('\\x%02x')\n", c & 0xff);
758 return;
759 }
760
761 (*the_target->request_interrupt) ();
762 }
763 }
764
765 /* Check if the remote side sent us an interrupt request (^C). */
766 void
767 check_remote_input_interrupt_request (void)
768 {
769 /* This function may be called before establishing communications,
770 therefore we need to validate the remote descriptor. */
771
772 if (remote_desc == INVALID_DESCRIPTOR)
773 return;
774
775 input_interrupt (0);
776 }
777
778 /* Asynchronous I/O support. SIGIO must be enabled when waiting, in order to
779 accept Control-C from the client, and must be disabled when talking to
780 the client. */
781
782 static void
783 unblock_async_io (void)
784 {
785 #ifndef USE_WIN32API
786 sigset_t sigio_set;
787
788 sigemptyset (&sigio_set);
789 sigaddset (&sigio_set, SIGIO);
790 sigprocmask (SIG_UNBLOCK, &sigio_set, NULL);
791 #endif
792 }
793
794 #ifdef __QNX__
795 static void
796 nto_comctrl (int enable)
797 {
798 struct sigevent event;
799
800 if (enable)
801 {
802 event.sigev_notify = SIGEV_SIGNAL_THREAD;
803 event.sigev_signo = SIGIO;
804 event.sigev_code = 0;
805 event.sigev_value.sival_ptr = NULL;
806 event.sigev_priority = -1;
807 ionotify (remote_desc, _NOTIFY_ACTION_POLLARM, _NOTIFY_COND_INPUT,
808 &event);
809 }
810 else
811 ionotify (remote_desc, _NOTIFY_ACTION_POLL, _NOTIFY_COND_INPUT, NULL);
812 }
813 #endif /* __QNX__ */
814
815
816 /* Current state of asynchronous I/O. */
817 static int async_io_enabled;
818
819 /* Enable asynchronous I/O. */
820 void
821 enable_async_io (void)
822 {
823 if (async_io_enabled)
824 return;
825
826 #ifndef USE_WIN32API
827 signal (SIGIO, input_interrupt);
828 #endif
829 async_io_enabled = 1;
830 #ifdef __QNX__
831 nto_comctrl (1);
832 #endif /* __QNX__ */
833 }
834
835 /* Disable asynchronous I/O. */
836 void
837 disable_async_io (void)
838 {
839 if (!async_io_enabled)
840 return;
841
842 #ifndef USE_WIN32API
843 signal (SIGIO, SIG_IGN);
844 #endif
845 async_io_enabled = 0;
846 #ifdef __QNX__
847 nto_comctrl (0);
848 #endif /* __QNX__ */
849
850 }
851
852 void
853 initialize_async_io (void)
854 {
855 /* Make sure that async I/O starts disabled. */
856 async_io_enabled = 1;
857 disable_async_io ();
858
859 /* Make sure the signal is unblocked. */
860 unblock_async_io ();
861 }
862
863 /* Internal buffer used by readchar.
864 These are global to readchar because reschedule_remote needs to be
865 able to tell whether the buffer is empty. */
866
867 static unsigned char readchar_buf[BUFSIZ];
868 static int readchar_bufcnt = 0;
869 static unsigned char *readchar_bufp;
870
871 /* Returns next char from remote GDB. -1 if error. */
872
873 static int
874 readchar (void)
875 {
876 int ch;
877
878 if (readchar_bufcnt == 0)
879 {
880 readchar_bufcnt = read_prim (readchar_buf, sizeof (readchar_buf));
881
882 if (readchar_bufcnt <= 0)
883 {
884 if (readchar_bufcnt == 0)
885 fprintf (stderr, "readchar: Got EOF\n");
886 else
887 perror ("readchar");
888
889 return -1;
890 }
891
892 readchar_bufp = readchar_buf;
893 }
894
895 readchar_bufcnt--;
896 ch = *readchar_bufp++;
897 reschedule ();
898 return ch;
899 }
900
901 /* Reset the readchar state machine. */
902
903 static void
904 reset_readchar (void)
905 {
906 readchar_bufcnt = 0;
907 if (readchar_callback != NOT_SCHEDULED)
908 {
909 delete_callback_event (readchar_callback);
910 readchar_callback = NOT_SCHEDULED;
911 }
912 }
913
914 /* Process remaining data in readchar_buf. */
915
916 static int
917 process_remaining (void *context)
918 {
919 int res;
920
921 /* This is a one-shot event. */
922 readchar_callback = NOT_SCHEDULED;
923
924 if (readchar_bufcnt > 0)
925 res = handle_serial_event (0, NULL);
926 else
927 res = 0;
928
929 return res;
930 }
931
932 /* If there is still data in the buffer, queue another event to process it,
933 we can't sleep in select yet. */
934
935 static void
936 reschedule (void)
937 {
938 if (readchar_bufcnt > 0 && readchar_callback == NOT_SCHEDULED)
939 readchar_callback = append_callback_event (process_remaining, NULL);
940 }
941
942 /* Read a packet from the remote machine, with error checking,
943 and store it in BUF. Returns length of packet, or negative if error. */
944
945 int
946 getpkt (char *buf)
947 {
948 char *bp;
949 unsigned char csum, c1, c2;
950 int c;
951
952 while (1)
953 {
954 csum = 0;
955
956 while (1)
957 {
958 c = readchar ();
959 if (c == '$')
960 break;
961 if (remote_debug)
962 {
963 fprintf (stderr, "[getpkt: discarding char '%c']\n", c);
964 fflush (stderr);
965 }
966
967 if (c < 0)
968 return -1;
969 }
970
971 bp = buf;
972 while (1)
973 {
974 c = readchar ();
975 if (c < 0)
976 return -1;
977 if (c == '#')
978 break;
979 *bp++ = c;
980 csum += c;
981 }
982 *bp = 0;
983
984 c1 = fromhex (readchar ());
985 c2 = fromhex (readchar ());
986
987 if (csum == (c1 << 4) + c2)
988 break;
989
990 if (noack_mode)
991 {
992 fprintf (stderr,
993 "Bad checksum, sentsum=0x%x, csum=0x%x, "
994 "buf=%s [no-ack-mode, Bad medium?]\n",
995 (c1 << 4) + c2, csum, buf);
996 /* Not much we can do, GDB wasn't expecting an ack/nac. */
997 break;
998 }
999
1000 fprintf (stderr, "Bad checksum, sentsum=0x%x, csum=0x%x, buf=%s\n",
1001 (c1 << 4) + c2, csum, buf);
1002 if (write_prim ("-", 1) != 1)
1003 return -1;
1004 }
1005
1006 if (!noack_mode)
1007 {
1008 if (remote_debug)
1009 {
1010 fprintf (stderr, "getpkt (\"%s\"); [sending ack] \n", buf);
1011 fflush (stderr);
1012 }
1013
1014 if (write_prim ("+", 1) != 1)
1015 return -1;
1016
1017 if (remote_debug)
1018 {
1019 fprintf (stderr, "[sent ack]\n");
1020 fflush (stderr);
1021 }
1022 }
1023 else
1024 {
1025 if (remote_debug)
1026 {
1027 fprintf (stderr, "getpkt (\"%s\"); [no ack sent] \n", buf);
1028 fflush (stderr);
1029 }
1030 }
1031
1032 return bp - buf;
1033 }
1034
1035 void
1036 write_ok (char *buf)
1037 {
1038 buf[0] = 'O';
1039 buf[1] = 'K';
1040 buf[2] = '\0';
1041 }
1042
1043 void
1044 write_enn (char *buf)
1045 {
1046 /* Some day, we should define the meanings of the error codes... */
1047 buf[0] = 'E';
1048 buf[1] = '0';
1049 buf[2] = '1';
1050 buf[3] = '\0';
1051 }
1052
1053 #endif
1054
1055 #ifndef IN_PROCESS_AGENT
1056
1057 static char *
1058 outreg (struct regcache *regcache, int regno, char *buf)
1059 {
1060 if ((regno >> 12) != 0)
1061 *buf++ = tohex ((regno >> 12) & 0xf);
1062 if ((regno >> 8) != 0)
1063 *buf++ = tohex ((regno >> 8) & 0xf);
1064 *buf++ = tohex ((regno >> 4) & 0xf);
1065 *buf++ = tohex (regno & 0xf);
1066 *buf++ = ':';
1067 collect_register_as_string (regcache, regno, buf);
1068 buf += 2 * register_size (regcache->tdesc, regno);
1069 *buf++ = ';';
1070
1071 return buf;
1072 }
1073
1074 void
1075 new_thread_notify (int id)
1076 {
1077 char own_buf[256];
1078
1079 /* The `n' response is not yet part of the remote protocol. Do nothing. */
1080 if (1)
1081 return;
1082
1083 if (server_waiting == 0)
1084 return;
1085
1086 sprintf (own_buf, "n%x", id);
1087 disable_async_io ();
1088 putpkt (own_buf);
1089 enable_async_io ();
1090 }
1091
1092 void
1093 dead_thread_notify (int id)
1094 {
1095 char own_buf[256];
1096
1097 /* The `x' response is not yet part of the remote protocol. Do nothing. */
1098 if (1)
1099 return;
1100
1101 sprintf (own_buf, "x%x", id);
1102 disable_async_io ();
1103 putpkt (own_buf);
1104 enable_async_io ();
1105 }
1106
1107 void
1108 prepare_resume_reply (char *buf, ptid_t ptid,
1109 struct target_waitstatus *status)
1110 {
1111 if (debug_threads)
1112 debug_printf ("Writing resume reply for %s:%d\n",
1113 target_pid_to_str (ptid), status->kind);
1114
1115 switch (status->kind)
1116 {
1117 case TARGET_WAITKIND_STOPPED:
1118 case TARGET_WAITKIND_FORKED:
1119 case TARGET_WAITKIND_VFORKED:
1120 case TARGET_WAITKIND_VFORK_DONE:
1121 case TARGET_WAITKIND_EXECD:
1122 case TARGET_WAITKIND_THREAD_CREATED:
1123 {
1124 struct thread_info *saved_thread;
1125 const char **regp;
1126 struct regcache *regcache;
1127
1128 if ((status->kind == TARGET_WAITKIND_FORKED && report_fork_events)
1129 || (status->kind == TARGET_WAITKIND_VFORKED && report_vfork_events))
1130 {
1131 enum gdb_signal signal = GDB_SIGNAL_TRAP;
1132 const char *event = (status->kind == TARGET_WAITKIND_FORKED
1133 ? "fork" : "vfork");
1134
1135 sprintf (buf, "T%02x%s:", signal, event);
1136 buf += strlen (buf);
1137 buf = write_ptid (buf, status->value.related_pid);
1138 strcat (buf, ";");
1139 }
1140 else if (status->kind == TARGET_WAITKIND_VFORK_DONE && report_vfork_events)
1141 {
1142 enum gdb_signal signal = GDB_SIGNAL_TRAP;
1143
1144 sprintf (buf, "T%02xvforkdone:;", signal);
1145 }
1146 else if (status->kind == TARGET_WAITKIND_EXECD && report_exec_events)
1147 {
1148 enum gdb_signal signal = GDB_SIGNAL_TRAP;
1149 const char *event = "exec";
1150 char hexified_pathname[PATH_MAX * 2];
1151
1152 sprintf (buf, "T%02x%s:", signal, event);
1153 buf += strlen (buf);
1154
1155 /* Encode pathname to hexified format. */
1156 bin2hex ((const gdb_byte *) status->value.execd_pathname,
1157 hexified_pathname,
1158 strlen (status->value.execd_pathname));
1159
1160 sprintf (buf, "%s;", hexified_pathname);
1161 xfree (status->value.execd_pathname);
1162 status->value.execd_pathname = NULL;
1163 buf += strlen (buf);
1164 }
1165 else if (status->kind == TARGET_WAITKIND_THREAD_CREATED
1166 && report_thread_events)
1167 {
1168 enum gdb_signal signal = GDB_SIGNAL_TRAP;
1169
1170 sprintf (buf, "T%02xcreate:;", signal);
1171 }
1172 else
1173 sprintf (buf, "T%02x", status->value.sig);
1174
1175 buf += strlen (buf);
1176
1177 saved_thread = current_thread;
1178
1179 current_thread = find_thread_ptid (ptid);
1180
1181 regp = current_target_desc ()->expedite_regs;
1182
1183 regcache = get_thread_regcache (current_thread, 1);
1184
1185 if (the_target->stopped_by_watchpoint != NULL
1186 && (*the_target->stopped_by_watchpoint) ())
1187 {
1188 CORE_ADDR addr;
1189 int i;
1190
1191 strncpy (buf, "watch:", 6);
1192 buf += 6;
1193
1194 addr = (*the_target->stopped_data_address) ();
1195
1196 /* Convert each byte of the address into two hexadecimal
1197 chars. Note that we take sizeof (void *) instead of
1198 sizeof (addr); this is to avoid sending a 64-bit
1199 address to a 32-bit GDB. */
1200 for (i = sizeof (void *) * 2; i > 0; i--)
1201 *buf++ = tohex ((addr >> (i - 1) * 4) & 0xf);
1202 *buf++ = ';';
1203 }
1204 else if (swbreak_feature && target_stopped_by_sw_breakpoint ())
1205 {
1206 sprintf (buf, "swbreak:;");
1207 buf += strlen (buf);
1208 }
1209 else if (hwbreak_feature && target_stopped_by_hw_breakpoint ())
1210 {
1211 sprintf (buf, "hwbreak:;");
1212 buf += strlen (buf);
1213 }
1214
1215 while (*regp)
1216 {
1217 buf = outreg (regcache, find_regno (regcache->tdesc, *regp), buf);
1218 regp ++;
1219 }
1220 *buf = '\0';
1221
1222 /* Formerly, if the debugger had not used any thread features
1223 we would not burden it with a thread status response. This
1224 was for the benefit of GDB 4.13 and older. However, in
1225 recent GDB versions the check (``if (cont_thread != 0)'')
1226 does not have the desired effect because of sillyness in
1227 the way that the remote protocol handles specifying a
1228 thread. Since thread support relies on qSymbol support
1229 anyway, assume GDB can handle threads. */
1230
1231 if (using_threads && !disable_packet_Tthread)
1232 {
1233 /* This if (1) ought to be unnecessary. But remote_wait
1234 in GDB will claim this event belongs to inferior_ptid
1235 if we do not specify a thread, and there's no way for
1236 gdbserver to know what inferior_ptid is. */
1237 if (1 || !ptid_equal (general_thread, ptid))
1238 {
1239 int core = -1;
1240 /* In non-stop, don't change the general thread behind
1241 GDB's back. */
1242 if (!non_stop)
1243 general_thread = ptid;
1244 sprintf (buf, "thread:");
1245 buf += strlen (buf);
1246 buf = write_ptid (buf, ptid);
1247 strcat (buf, ";");
1248 buf += strlen (buf);
1249
1250 core = target_core_of_thread (ptid);
1251
1252 if (core != -1)
1253 {
1254 sprintf (buf, "core:");
1255 buf += strlen (buf);
1256 sprintf (buf, "%x", core);
1257 strcat (buf, ";");
1258 buf += strlen (buf);
1259 }
1260 }
1261 }
1262
1263 if (dlls_changed)
1264 {
1265 strcpy (buf, "library:;");
1266 buf += strlen (buf);
1267 dlls_changed = 0;
1268 }
1269
1270 current_thread = saved_thread;
1271 }
1272 break;
1273 case TARGET_WAITKIND_EXITED:
1274 if (multi_process)
1275 sprintf (buf, "W%x;process:%x",
1276 status->value.integer, ptid_get_pid (ptid));
1277 else
1278 sprintf (buf, "W%02x", status->value.integer);
1279 break;
1280 case TARGET_WAITKIND_SIGNALLED:
1281 if (multi_process)
1282 sprintf (buf, "X%x;process:%x",
1283 status->value.sig, ptid_get_pid (ptid));
1284 else
1285 sprintf (buf, "X%02x", status->value.sig);
1286 break;
1287 case TARGET_WAITKIND_THREAD_EXITED:
1288 sprintf (buf, "w%x;", status->value.integer);
1289 buf += strlen (buf);
1290 buf = write_ptid (buf, ptid);
1291 break;
1292 case TARGET_WAITKIND_NO_RESUMED:
1293 sprintf (buf, "N");
1294 break;
1295 default:
1296 error ("unhandled waitkind");
1297 break;
1298 }
1299 }
1300
1301 void
1302 decode_m_packet (char *from, CORE_ADDR *mem_addr_ptr, unsigned int *len_ptr)
1303 {
1304 int i = 0, j = 0;
1305 char ch;
1306 *mem_addr_ptr = *len_ptr = 0;
1307
1308 while ((ch = from[i++]) != ',')
1309 {
1310 *mem_addr_ptr = *mem_addr_ptr << 4;
1311 *mem_addr_ptr |= fromhex (ch) & 0x0f;
1312 }
1313
1314 for (j = 0; j < 4; j++)
1315 {
1316 if ((ch = from[i++]) == 0)
1317 break;
1318 *len_ptr = *len_ptr << 4;
1319 *len_ptr |= fromhex (ch) & 0x0f;
1320 }
1321 }
1322
1323 void
1324 decode_M_packet (char *from, CORE_ADDR *mem_addr_ptr, unsigned int *len_ptr,
1325 unsigned char **to_p)
1326 {
1327 int i = 0;
1328 char ch;
1329 *mem_addr_ptr = *len_ptr = 0;
1330
1331 while ((ch = from[i++]) != ',')
1332 {
1333 *mem_addr_ptr = *mem_addr_ptr << 4;
1334 *mem_addr_ptr |= fromhex (ch) & 0x0f;
1335 }
1336
1337 while ((ch = from[i++]) != ':')
1338 {
1339 *len_ptr = *len_ptr << 4;
1340 *len_ptr |= fromhex (ch) & 0x0f;
1341 }
1342
1343 if (*to_p == NULL)
1344 *to_p = (unsigned char *) xmalloc (*len_ptr);
1345
1346 hex2bin (&from[i++], *to_p, *len_ptr);
1347 }
1348
1349 int
1350 decode_X_packet (char *from, int packet_len, CORE_ADDR *mem_addr_ptr,
1351 unsigned int *len_ptr, unsigned char **to_p)
1352 {
1353 int i = 0;
1354 char ch;
1355 *mem_addr_ptr = *len_ptr = 0;
1356
1357 while ((ch = from[i++]) != ',')
1358 {
1359 *mem_addr_ptr = *mem_addr_ptr << 4;
1360 *mem_addr_ptr |= fromhex (ch) & 0x0f;
1361 }
1362
1363 while ((ch = from[i++]) != ':')
1364 {
1365 *len_ptr = *len_ptr << 4;
1366 *len_ptr |= fromhex (ch) & 0x0f;
1367 }
1368
1369 if (*to_p == NULL)
1370 *to_p = (unsigned char *) xmalloc (*len_ptr);
1371
1372 if (remote_unescape_input ((const gdb_byte *) &from[i], packet_len - i,
1373 *to_p, *len_ptr) != *len_ptr)
1374 return -1;
1375
1376 return 0;
1377 }
1378
1379 /* Decode a qXfer write request. */
1380
1381 int
1382 decode_xfer_write (char *buf, int packet_len, CORE_ADDR *offset,
1383 unsigned int *len, unsigned char *data)
1384 {
1385 char ch;
1386 char *b = buf;
1387
1388 /* Extract the offset. */
1389 *offset = 0;
1390 while ((ch = *buf++) != ':')
1391 {
1392 *offset = *offset << 4;
1393 *offset |= fromhex (ch) & 0x0f;
1394 }
1395
1396 /* Get encoded data. */
1397 packet_len -= buf - b;
1398 *len = remote_unescape_input ((const gdb_byte *) buf, packet_len,
1399 data, packet_len);
1400 return 0;
1401 }
1402
1403 /* Decode the parameters of a qSearch:memory packet. */
1404
1405 int
1406 decode_search_memory_packet (const char *buf, int packet_len,
1407 CORE_ADDR *start_addrp,
1408 CORE_ADDR *search_space_lenp,
1409 gdb_byte *pattern, unsigned int *pattern_lenp)
1410 {
1411 const char *p = buf;
1412
1413 p = decode_address_to_semicolon (start_addrp, p);
1414 p = decode_address_to_semicolon (search_space_lenp, p);
1415 packet_len -= p - buf;
1416 *pattern_lenp = remote_unescape_input ((const gdb_byte *) p, packet_len,
1417 pattern, packet_len);
1418 return 0;
1419 }
1420
1421 static void
1422 free_sym_cache (struct sym_cache *sym)
1423 {
1424 if (sym != NULL)
1425 {
1426 free (sym->name);
1427 free (sym);
1428 }
1429 }
1430
1431 void
1432 clear_symbol_cache (struct sym_cache **symcache_p)
1433 {
1434 struct sym_cache *sym, *next;
1435
1436 /* Check the cache first. */
1437 for (sym = *symcache_p; sym; sym = next)
1438 {
1439 next = sym->next;
1440 free_sym_cache (sym);
1441 }
1442
1443 *symcache_p = NULL;
1444 }
1445
1446 /* Get the address of NAME, and return it in ADDRP if found. if
1447 MAY_ASK_GDB is false, assume symbol cache misses are failures.
1448 Returns 1 if the symbol is found, 0 if it is not, -1 on error. */
1449
1450 int
1451 look_up_one_symbol (const char *name, CORE_ADDR *addrp, int may_ask_gdb)
1452 {
1453 char own_buf[266], *p, *q;
1454 int len;
1455 struct sym_cache *sym;
1456 struct process_info *proc;
1457
1458 proc = current_process ();
1459
1460 /* Check the cache first. */
1461 for (sym = proc->symbol_cache; sym; sym = sym->next)
1462 if (strcmp (name, sym->name) == 0)
1463 {
1464 *addrp = sym->addr;
1465 return 1;
1466 }
1467
1468 /* It might not be an appropriate time to look up a symbol,
1469 e.g. while we're trying to fetch registers. */
1470 if (!may_ask_gdb)
1471 return 0;
1472
1473 /* Send the request. */
1474 strcpy (own_buf, "qSymbol:");
1475 bin2hex ((const gdb_byte *) name, own_buf + strlen ("qSymbol:"),
1476 strlen (name));
1477 if (putpkt (own_buf) < 0)
1478 return -1;
1479
1480 /* FIXME: Eventually add buffer overflow checking (to getpkt?) */
1481 len = getpkt (own_buf);
1482 if (len < 0)
1483 return -1;
1484
1485 /* We ought to handle pretty much any packet at this point while we
1486 wait for the qSymbol "response". That requires re-entering the
1487 main loop. For now, this is an adequate approximation; allow
1488 GDB to read from memory while it figures out the address of the
1489 symbol. */
1490 while (own_buf[0] == 'm')
1491 {
1492 CORE_ADDR mem_addr;
1493 unsigned char *mem_buf;
1494 unsigned int mem_len;
1495
1496 decode_m_packet (&own_buf[1], &mem_addr, &mem_len);
1497 mem_buf = (unsigned char *) xmalloc (mem_len);
1498 if (read_inferior_memory (mem_addr, mem_buf, mem_len) == 0)
1499 bin2hex (mem_buf, own_buf, mem_len);
1500 else
1501 write_enn (own_buf);
1502 free (mem_buf);
1503 if (putpkt (own_buf) < 0)
1504 return -1;
1505 len = getpkt (own_buf);
1506 if (len < 0)
1507 return -1;
1508 }
1509
1510 if (!startswith (own_buf, "qSymbol:"))
1511 {
1512 warning ("Malformed response to qSymbol, ignoring: %s\n", own_buf);
1513 return -1;
1514 }
1515
1516 p = own_buf + strlen ("qSymbol:");
1517 q = p;
1518 while (*q && *q != ':')
1519 q++;
1520
1521 /* Make sure we found a value for the symbol. */
1522 if (p == q || *q == '\0')
1523 return 0;
1524
1525 decode_address (addrp, p, q - p);
1526
1527 /* Save the symbol in our cache. */
1528 sym = XNEW (struct sym_cache);
1529 sym->name = xstrdup (name);
1530 sym->addr = *addrp;
1531 sym->next = proc->symbol_cache;
1532 proc->symbol_cache = sym;
1533
1534 return 1;
1535 }
1536
1537 /* Relocate an instruction to execute at a different address. OLDLOC
1538 is the address in the inferior memory where the instruction to
1539 relocate is currently at. On input, TO points to the destination
1540 where we want the instruction to be copied (and possibly adjusted)
1541 to. On output, it points to one past the end of the resulting
1542 instruction(s). The effect of executing the instruction at TO
1543 shall be the same as if executing it at OLDLOC. For example, call
1544 instructions that implicitly push the return address on the stack
1545 should be adjusted to return to the instruction after OLDLOC;
1546 relative branches, and other PC-relative instructions need the
1547 offset adjusted; etc. Returns 0 on success, -1 on failure. */
1548
1549 int
1550 relocate_instruction (CORE_ADDR *to, CORE_ADDR oldloc)
1551 {
1552 char own_buf[266];
1553 int len;
1554 ULONGEST written = 0;
1555
1556 /* Send the request. */
1557 strcpy (own_buf, "qRelocInsn:");
1558 sprintf (own_buf, "qRelocInsn:%s;%s", paddress (oldloc),
1559 paddress (*to));
1560 if (putpkt (own_buf) < 0)
1561 return -1;
1562
1563 /* FIXME: Eventually add buffer overflow checking (to getpkt?) */
1564 len = getpkt (own_buf);
1565 if (len < 0)
1566 return -1;
1567
1568 /* We ought to handle pretty much any packet at this point while we
1569 wait for the qRelocInsn "response". That requires re-entering
1570 the main loop. For now, this is an adequate approximation; allow
1571 GDB to access memory. */
1572 while (own_buf[0] == 'm' || own_buf[0] == 'M' || own_buf[0] == 'X')
1573 {
1574 CORE_ADDR mem_addr;
1575 unsigned char *mem_buf = NULL;
1576 unsigned int mem_len;
1577
1578 if (own_buf[0] == 'm')
1579 {
1580 decode_m_packet (&own_buf[1], &mem_addr, &mem_len);
1581 mem_buf = (unsigned char *) xmalloc (mem_len);
1582 if (read_inferior_memory (mem_addr, mem_buf, mem_len) == 0)
1583 bin2hex (mem_buf, own_buf, mem_len);
1584 else
1585 write_enn (own_buf);
1586 }
1587 else if (own_buf[0] == 'X')
1588 {
1589 if (decode_X_packet (&own_buf[1], len - 1, &mem_addr,
1590 &mem_len, &mem_buf) < 0
1591 || write_inferior_memory (mem_addr, mem_buf, mem_len) != 0)
1592 write_enn (own_buf);
1593 else
1594 write_ok (own_buf);
1595 }
1596 else
1597 {
1598 decode_M_packet (&own_buf[1], &mem_addr, &mem_len, &mem_buf);
1599 if (write_inferior_memory (mem_addr, mem_buf, mem_len) == 0)
1600 write_ok (own_buf);
1601 else
1602 write_enn (own_buf);
1603 }
1604 free (mem_buf);
1605 if (putpkt (own_buf) < 0)
1606 return -1;
1607 len = getpkt (own_buf);
1608 if (len < 0)
1609 return -1;
1610 }
1611
1612 if (own_buf[0] == 'E')
1613 {
1614 warning ("An error occurred while relocating an instruction: %s\n",
1615 own_buf);
1616 return -1;
1617 }
1618
1619 if (!startswith (own_buf, "qRelocInsn:"))
1620 {
1621 warning ("Malformed response to qRelocInsn, ignoring: %s\n",
1622 own_buf);
1623 return -1;
1624 }
1625
1626 unpack_varlen_hex (own_buf + strlen ("qRelocInsn:"), &written);
1627
1628 *to += written;
1629 return 0;
1630 }
1631
1632 void
1633 monitor_output (const char *msg)
1634 {
1635 int len = strlen (msg);
1636 char *buf = (char *) xmalloc (len * 2 + 2);
1637
1638 buf[0] = 'O';
1639 bin2hex ((const gdb_byte *) msg, buf + 1, len);
1640
1641 putpkt (buf);
1642 free (buf);
1643 }
1644
1645 #endif
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