b57365e53343e55831b56cc7cfb68e5e60bae58b
[deliverable/binutils-gdb.git] / gdb / monitor.c
1 /* Remote debugging interface for boot monitors, for GDB.
2 Copyright 1990-1993, 1995-1997, 1999-2000 Free Software Foundation, Inc.
3 Contributed by Cygnus Support. Written by Rob Savoye for Cygnus.
4 Resurrected from the ashes by Stu Grossman.
5
6 This file is part of GDB.
7
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 2 of the License, or
11 (at your option) any later version.
12
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with this program; if not, write to the Free Software
20 Foundation, Inc., 59 Temple Place - Suite 330,
21 Boston, MA 02111-1307, USA. */
22
23 /* This file was derived from various remote-* modules. It is a collection
24 of generic support functions so GDB can talk directly to a ROM based
25 monitor. This saves use from having to hack an exception based handler
26 into existance, and makes for quick porting.
27
28 This module talks to a debug monitor called 'MONITOR', which
29 We communicate with MONITOR via either a direct serial line, or a TCP
30 (or possibly TELNET) stream to a terminal multiplexor,
31 which in turn talks to the target board. */
32
33 /* FIXME 32x64: This code assumes that registers and addresses are at
34 most 32 bits long. If they can be larger, you will need to declare
35 values as LONGEST and use %llx or some such to print values when
36 building commands to send to the monitor. Since we don't know of
37 any actual 64-bit targets with ROM monitors that use this code,
38 it's not an issue right now. -sts 4/18/96 */
39
40 #include "defs.h"
41 #include "gdbcore.h"
42 #include "target.h"
43 #include "gdb_wait.h"
44 #include <signal.h>
45 #include <ctype.h>
46 #include "gdb_string.h"
47 #include <sys/types.h>
48 #include "command.h"
49 #include "serial.h"
50 #include "monitor.h"
51 #include "gdbcmd.h"
52 #include "inferior.h"
53 #include "gdb_regex.h"
54 #include "dcache.h"
55 #include "srec.h"
56
57 static char *dev_name;
58 static struct target_ops *targ_ops;
59
60 static void monitor_vsprintf (char *sndbuf, char *pattern, va_list args);
61
62 static int readchar (int timeout);
63
64 static void monitor_fetch_register (int regno);
65 static void monitor_store_register (int regno);
66
67 static void monitor_printable_string (char *newstr, char *oldstr, int len);
68 static void monitor_error (char *function, char *message, CORE_ADDR memaddr, int len, char *string, int final_char);
69 static void monitor_detach (char *args, int from_tty);
70 static void monitor_resume (int pid, int step, enum target_signal sig);
71 static void monitor_interrupt (int signo);
72 static void monitor_interrupt_twice (int signo);
73 static void monitor_interrupt_query (void);
74 static void monitor_wait_cleanup (void *old_timeout);
75
76 static int monitor_wait (int pid, struct target_waitstatus *status);
77 static void monitor_fetch_registers (int regno);
78 static void monitor_store_registers (int regno);
79 static void monitor_prepare_to_store (void);
80 static int monitor_xfer_memory (CORE_ADDR memaddr, char *myaddr, int len,
81 int write, struct target_ops *target);
82 static void monitor_files_info (struct target_ops *ops);
83 static int monitor_insert_breakpoint (CORE_ADDR addr, char *shadow);
84 static int monitor_remove_breakpoint (CORE_ADDR addr, char *shadow);
85 static void monitor_kill (void);
86 static void monitor_load (char *file, int from_tty);
87 static void monitor_mourn_inferior (void);
88 static void monitor_stop (void);
89
90 static int monitor_read_memory (CORE_ADDR addr, char *myaddr, int len);
91 static int monitor_write_memory (CORE_ADDR addr, char *myaddr, int len);
92 static int monitor_write_memory_bytes (CORE_ADDR addr, char *myaddr, int len);
93 static int monitor_write_memory_block (CORE_ADDR memaddr,
94 char *myaddr, int len);
95 static int monitor_expect_regexp (struct re_pattern_buffer *pat,
96 char *buf, int buflen);
97 static void monitor_dump_regs (void);
98 #if 0
99 static int from_hex (int a);
100 static unsigned long get_hex_word (void);
101 #endif
102 static void parse_register_dump (char *, int);
103
104 static struct monitor_ops *current_monitor;
105
106 static int hashmark; /* flag set by "set hash" */
107
108 static int timeout = 30;
109
110 static int in_monitor_wait = 0; /* Non-zero means we are in monitor_wait() */
111
112 static void (*ofunc) (); /* Old SIGINT signal handler */
113
114 static CORE_ADDR *breakaddr;
115
116 /* Descriptor for I/O to remote machine. Initialize it to NULL so
117 that monitor_open knows that we don't have a file open when the
118 program starts. */
119
120 static serial_t monitor_desc = NULL;
121
122 /* Pointer to regexp pattern matching data */
123
124 static struct re_pattern_buffer register_pattern;
125 static char register_fastmap[256];
126
127 static struct re_pattern_buffer getmem_resp_delim_pattern;
128 static char getmem_resp_delim_fastmap[256];
129
130 static int dump_reg_flag; /* Non-zero means do a dump_registers cmd when
131 monitor_wait wakes up. */
132
133 static DCACHE *remote_dcache;
134 static int first_time = 0; /* is this the first time we're executing after
135 gaving created the child proccess? */
136
137 #define TARGET_BUF_SIZE 2048
138
139 /* Monitor specific debugging information. Typically only useful to
140 the developer of a new monitor interface. */
141
142 static void monitor_debug (const char *fmt, ...) ATTR_FORMAT(printf, 1, 2);
143
144 static int monitor_debug_p = 0;
145
146 /* NOTE: This file alternates between monitor_debug_p and remote_debug
147 when determining if debug information is printed. Perhaphs this
148 could be simplified. */
149
150 static void
151 monitor_debug (const char *fmt, ...)
152 {
153 if (monitor_debug_p)
154 {
155 va_list args;
156 va_start (args, fmt);
157 vfprintf_filtered (gdb_stdlog, fmt, args);
158 va_end (args);
159 }
160 }
161
162
163 /* Convert a string into a printable representation, Return # byte in
164 the new string. When LEN is >0 it specifies the size of the
165 string. Otherwize strlen(oldstr) is used. */
166
167 static void
168 monitor_printable_string (char *newstr, char *oldstr, int len)
169 {
170 int ch;
171 int i;
172
173 if (len <= 0)
174 len = strlen (oldstr);
175
176 for (i = 0; i < len; i++)
177 {
178 ch = oldstr[i];
179 switch (ch)
180 {
181 default:
182 if (isprint (ch))
183 *newstr++ = ch;
184
185 else
186 {
187 sprintf (newstr, "\\x%02x", ch & 0xff);
188 newstr += 4;
189 }
190 break;
191
192 case '\\':
193 *newstr++ = '\\';
194 *newstr++ = '\\';
195 break;
196 case '\b':
197 *newstr++ = '\\';
198 *newstr++ = 'b';
199 break;
200 case '\f':
201 *newstr++ = '\\';
202 *newstr++ = 't';
203 break;
204 case '\n':
205 *newstr++ = '\\';
206 *newstr++ = 'n';
207 break;
208 case '\r':
209 *newstr++ = '\\';
210 *newstr++ = 'r';
211 break;
212 case '\t':
213 *newstr++ = '\\';
214 *newstr++ = 't';
215 break;
216 case '\v':
217 *newstr++ = '\\';
218 *newstr++ = 'v';
219 break;
220 }
221 }
222
223 *newstr++ = '\0';
224 }
225
226 /* Print monitor errors with a string, converting the string to printable
227 representation. */
228
229 static void
230 monitor_error (char *function, char *message,
231 CORE_ADDR memaddr, int len, char *string, int final_char)
232 {
233 int real_len = (len == 0 && string != (char *) 0) ? strlen (string) : len;
234 char *safe_string = alloca ((real_len * 4) + 1);
235 monitor_printable_string (safe_string, string, real_len);
236
237 if (final_char)
238 error ("%s (0x%s): %s: %s%c", function, paddr_nz (memaddr), message, safe_string, final_char);
239 else
240 error ("%s (0x%s): %s: %s", function, paddr_nz (memaddr), message, safe_string);
241 }
242
243 /* Convert hex digit A to a number. */
244
245 static int
246 fromhex (int a)
247 {
248 if (a >= '0' && a <= '9')
249 return a - '0';
250 else if (a >= 'a' && a <= 'f')
251 return a - 'a' + 10;
252 else if (a >= 'A' && a <= 'F')
253 return a - 'A' + 10;
254 else
255 error ("Invalid hex digit %d", a);
256 }
257
258 /* monitor_vsprintf - similar to vsprintf but handles 64-bit addresses
259
260 This function exists to get around the problem that many host platforms
261 don't have a printf that can print 64-bit addresses. The %A format
262 specification is recognized as a special case, and causes the argument
263 to be printed as a 64-bit hexadecimal address.
264
265 Only format specifiers of the form "[0-9]*[a-z]" are recognized.
266 If it is a '%s' format, the argument is a string; otherwise the
267 argument is assumed to be a long integer.
268
269 %% is also turned into a single %.
270 */
271
272 static void
273 monitor_vsprintf (char *sndbuf, char *pattern, va_list args)
274 {
275 char format[10];
276 char fmt;
277 char *p;
278 int i;
279 long arg_int;
280 CORE_ADDR arg_addr;
281 char *arg_string;
282
283 for (p = pattern; *p; p++)
284 {
285 if (*p == '%')
286 {
287 /* Copy the format specifier to a separate buffer. */
288 format[0] = *p++;
289 for (i = 1; *p >= '0' && *p <= '9' && i < (int) sizeof (format) - 2;
290 i++, p++)
291 format[i] = *p;
292 format[i] = fmt = *p;
293 format[i + 1] = '\0';
294
295 /* Fetch the next argument and print it. */
296 switch (fmt)
297 {
298 case '%':
299 strcpy (sndbuf, "%");
300 break;
301 case 'A':
302 arg_addr = va_arg (args, CORE_ADDR);
303 strcpy (sndbuf, paddr_nz (arg_addr));
304 break;
305 case 's':
306 arg_string = va_arg (args, char *);
307 sprintf (sndbuf, format, arg_string);
308 break;
309 default:
310 arg_int = va_arg (args, long);
311 sprintf (sndbuf, format, arg_int);
312 break;
313 }
314 sndbuf += strlen (sndbuf);
315 }
316 else
317 *sndbuf++ = *p;
318 }
319 *sndbuf = '\0';
320 }
321
322
323 /* monitor_printf_noecho -- Send data to monitor, but don't expect an echo.
324 Works just like printf. */
325
326 void
327 monitor_printf_noecho (char *pattern,...)
328 {
329 va_list args;
330 char sndbuf[2000];
331 int len;
332
333 va_start (args, pattern);
334
335 monitor_vsprintf (sndbuf, pattern, args);
336
337 len = strlen (sndbuf);
338 if (len + 1 > sizeof sndbuf)
339 abort ();
340
341 if (monitor_debug_p)
342 {
343 char *safe_string = (char *) alloca ((strlen (sndbuf) * 4) + 1);
344 monitor_printable_string (safe_string, sndbuf, 0);
345 fprintf_unfiltered (gdb_stdlog, "sent[%s]\n", safe_string);
346 }
347
348 monitor_write (sndbuf, len);
349 }
350
351 /* monitor_printf -- Send data to monitor and check the echo. Works just like
352 printf. */
353
354 void
355 monitor_printf (char *pattern,...)
356 {
357 va_list args;
358 char sndbuf[2000];
359 int len;
360
361 va_start (args, pattern);
362
363 monitor_vsprintf (sndbuf, pattern, args);
364
365 len = strlen (sndbuf);
366 if (len + 1 > sizeof sndbuf)
367 abort ();
368
369 if (monitor_debug_p)
370 {
371 char *safe_string = (char *) alloca ((len * 4) + 1);
372 monitor_printable_string (safe_string, sndbuf, 0);
373 fprintf_unfiltered (gdb_stdlog, "sent[%s]\n", safe_string);
374 }
375
376 monitor_write (sndbuf, len);
377
378 /* We used to expect that the next immediate output was the characters we
379 just output, but sometimes some extra junk appeared before the characters
380 we expected, like an extra prompt, or a portmaster sending telnet negotiations.
381 So, just start searching for what we sent, and skip anything unknown. */
382 monitor_debug ("ExpectEcho\n");
383 monitor_expect (sndbuf, (char *) 0, 0);
384 }
385
386
387 /* Write characters to the remote system. */
388
389 void
390 monitor_write (char *buf, int buflen)
391 {
392 if (SERIAL_WRITE (monitor_desc, buf, buflen))
393 fprintf_unfiltered (gdb_stderr, "SERIAL_WRITE failed: %s\n",
394 safe_strerror (errno));
395 }
396
397
398 /* Read a binary character from the remote system, doing all the fancy
399 timeout stuff, but without interpreting the character in any way,
400 and without printing remote debug information. */
401
402 int
403 monitor_readchar (void)
404 {
405 int c;
406 int looping;
407
408 do
409 {
410 looping = 0;
411 c = SERIAL_READCHAR (monitor_desc, timeout);
412
413 if (c >= 0)
414 c &= 0xff; /* don't lose bit 7 */
415 }
416 while (looping);
417
418 if (c >= 0)
419 return c;
420
421 if (c == SERIAL_TIMEOUT)
422 error ("Timeout reading from remote system.");
423
424 perror_with_name ("remote-monitor");
425 }
426
427
428 /* Read a character from the remote system, doing all the fancy
429 timeout stuff. */
430
431 static int
432 readchar (int timeout)
433 {
434 int c;
435 static enum
436 {
437 last_random, last_nl, last_cr, last_crnl
438 }
439 state = last_random;
440 int looping;
441
442 do
443 {
444 looping = 0;
445 c = SERIAL_READCHAR (monitor_desc, timeout);
446
447 if (c >= 0)
448 {
449 c &= 0x7f;
450 /* This seems to interfere with proper function of the
451 input stream */
452 if (monitor_debug_p || remote_debug)
453 {
454 char buf[2];
455 buf[0] = c;
456 buf[1] = '\0';
457 puts_debug ("read -->", buf, "<--");
458 }
459
460 }
461
462 /* Canonicialize \n\r combinations into one \r */
463 if ((current_monitor->flags & MO_HANDLE_NL) != 0)
464 {
465 if ((c == '\r' && state == last_nl)
466 || (c == '\n' && state == last_cr))
467 {
468 state = last_crnl;
469 looping = 1;
470 }
471 else if (c == '\r')
472 state = last_cr;
473 else if (c != '\n')
474 state = last_random;
475 else
476 {
477 state = last_nl;
478 c = '\r';
479 }
480 }
481 }
482 while (looping);
483
484 if (c >= 0)
485 return c;
486
487 if (c == SERIAL_TIMEOUT)
488 #if 0
489 /* I fail to see how detaching here can be useful */
490 if (in_monitor_wait) /* Watchdog went off */
491 {
492 target_mourn_inferior ();
493 error ("GDB serial timeout has expired. Target detached.\n");
494 }
495 else
496 #endif
497 error ("Timeout reading from remote system.");
498
499 perror_with_name ("remote-monitor");
500 }
501
502 /* Scan input from the remote system, until STRING is found. If BUF is non-
503 zero, then collect input until we have collected either STRING or BUFLEN-1
504 chars. In either case we terminate BUF with a 0. If input overflows BUF
505 because STRING can't be found, return -1, else return number of chars in BUF
506 (minus the terminating NUL). Note that in the non-overflow case, STRING
507 will be at the end of BUF. */
508
509 int
510 monitor_expect (char *string, char *buf, int buflen)
511 {
512 char *p = string;
513 int obuflen = buflen;
514 int c;
515 extern struct target_ops *targ_ops;
516
517 if (monitor_debug_p)
518 {
519 char *safe_string = (char *) alloca ((strlen (string) * 4) + 1);
520 monitor_printable_string (safe_string, string, 0);
521 fprintf_unfiltered (gdb_stdlog, "MON Expecting '%s'\n", safe_string);
522 }
523
524 immediate_quit = 1;
525 while (1)
526 {
527 if (buf)
528 {
529 if (buflen < 2)
530 {
531 *buf = '\000';
532 immediate_quit = 0;
533 return -1;
534 }
535
536 c = readchar (timeout);
537 if (c == '\000')
538 continue;
539 *buf++ = c;
540 buflen--;
541 }
542 else
543 c = readchar (timeout);
544
545 /* Don't expect any ^C sent to be echoed */
546
547 if (*p == '\003' || c == *p)
548 {
549 p++;
550 if (*p == '\0')
551 {
552 immediate_quit = 0;
553
554 if (buf)
555 {
556 *buf++ = '\000';
557 return obuflen - buflen;
558 }
559 else
560 return 0;
561 }
562 }
563 else if ((c == '\021' || c == '\023') &&
564 (STREQ (targ_ops->to_shortname, "m32r")
565 || STREQ (targ_ops->to_shortname, "mon2000")))
566 { /* m32r monitor emits random DC1/DC3 chars */
567 continue;
568 }
569 else
570 {
571 /* We got a character that doesn't match the string. We need to
572 back up p, but how far? If we're looking for "..howdy" and the
573 monitor sends "...howdy"? There's certainly a match in there,
574 but when we receive the third ".", we won't find it if we just
575 restart the matching at the beginning of the string.
576
577 This is a Boyer-Moore kind of situation. We want to reset P to
578 the end of the longest prefix of STRING that is a suffix of
579 what we've read so far. In the example above, that would be
580 ".." --- the longest prefix of "..howdy" that is a suffix of
581 "...". This longest prefix could be the empty string, if C
582 is nowhere to be found in STRING.
583
584 If this longest prefix is not the empty string, it must contain
585 C, so let's search from the end of STRING for instances of C,
586 and see if the portion of STRING before that is a suffix of
587 what we read before C. Actually, we can search backwards from
588 p, since we know no prefix can be longer than that.
589
590 Note that we can use STRING itself, along with C, as a record
591 of what we've received so far. :) */
592 int i;
593
594 for (i = (p - string) - 1; i >= 0; i--)
595 if (string[i] == c)
596 {
597 /* Is this prefix a suffix of what we've read so far?
598 In other words, does
599 string[0 .. i-1] == string[p - i, p - 1]? */
600 if (! memcmp (string, p - i, i))
601 {
602 p = string + i + 1;
603 break;
604 }
605 }
606 if (i < 0)
607 p = string;
608 }
609 }
610 }
611
612 /* Search for a regexp. */
613
614 static int
615 monitor_expect_regexp (struct re_pattern_buffer *pat, char *buf, int buflen)
616 {
617 char *mybuf;
618 char *p;
619 monitor_debug ("MON Expecting regexp\n");
620 if (buf)
621 mybuf = buf;
622 else
623 {
624 mybuf = alloca (TARGET_BUF_SIZE);
625 buflen = TARGET_BUF_SIZE;
626 }
627
628 p = mybuf;
629 while (1)
630 {
631 int retval;
632
633 if (p - mybuf >= buflen)
634 { /* Buffer about to overflow */
635
636 /* On overflow, we copy the upper half of the buffer to the lower half. Not
637 great, but it usually works... */
638
639 memcpy (mybuf, mybuf + buflen / 2, buflen / 2);
640 p = mybuf + buflen / 2;
641 }
642
643 *p++ = readchar (timeout);
644
645 retval = re_search (pat, mybuf, p - mybuf, 0, p - mybuf, NULL);
646 if (retval >= 0)
647 return 1;
648 }
649 }
650
651 /* Keep discarding input until we see the MONITOR prompt.
652
653 The convention for dealing with the prompt is that you
654 o give your command
655 o *then* wait for the prompt.
656
657 Thus the last thing that a procedure does with the serial line will
658 be an monitor_expect_prompt(). Exception: monitor_resume does not
659 wait for the prompt, because the terminal is being handed over to
660 the inferior. However, the next thing which happens after that is
661 a monitor_wait which does wait for the prompt. Note that this
662 includes abnormal exit, e.g. error(). This is necessary to prevent
663 getting into states from which we can't recover. */
664
665 int
666 monitor_expect_prompt (char *buf, int buflen)
667 {
668 monitor_debug ("MON Expecting prompt\n");
669 return monitor_expect (current_monitor->prompt, buf, buflen);
670 }
671
672 /* Get N 32-bit words from remote, each preceded by a space, and put
673 them in registers starting at REGNO. */
674
675 #if 0
676 static unsigned long
677 get_hex_word (void)
678 {
679 unsigned long val;
680 int i;
681 int ch;
682
683 do
684 ch = readchar (timeout);
685 while (isspace (ch));
686
687 val = from_hex (ch);
688
689 for (i = 7; i >= 1; i--)
690 {
691 ch = readchar (timeout);
692 if (!isxdigit (ch))
693 break;
694 val = (val << 4) | from_hex (ch);
695 }
696
697 return val;
698 }
699 #endif
700
701 static void
702 compile_pattern (char *pattern, struct re_pattern_buffer *compiled_pattern,
703 char *fastmap)
704 {
705 int tmp;
706 const char *val;
707
708 compiled_pattern->fastmap = fastmap;
709
710 tmp = re_set_syntax (RE_SYNTAX_EMACS);
711 val = re_compile_pattern (pattern,
712 strlen (pattern),
713 compiled_pattern);
714 re_set_syntax (tmp);
715
716 if (val)
717 error ("compile_pattern: Can't compile pattern string `%s': %s!", pattern, val);
718
719 if (fastmap)
720 re_compile_fastmap (compiled_pattern);
721 }
722
723 /* Open a connection to a remote debugger. NAME is the filename used
724 for communication. */
725
726 void
727 monitor_open (char *args, struct monitor_ops *mon_ops, int from_tty)
728 {
729 char *name;
730 char **p;
731
732 if (mon_ops->magic != MONITOR_OPS_MAGIC)
733 error ("Magic number of monitor_ops struct wrong.");
734
735 targ_ops = mon_ops->target;
736 name = targ_ops->to_shortname;
737
738 if (!args)
739 error ("Use `target %s DEVICE-NAME' to use a serial port, or \n\
740 `target %s HOST-NAME:PORT-NUMBER' to use a network connection.", name, name);
741
742 target_preopen (from_tty);
743
744 /* Setup pattern for register dump */
745
746 if (mon_ops->register_pattern)
747 compile_pattern (mon_ops->register_pattern, &register_pattern,
748 register_fastmap);
749
750 if (mon_ops->getmem.resp_delim)
751 compile_pattern (mon_ops->getmem.resp_delim, &getmem_resp_delim_pattern,
752 getmem_resp_delim_fastmap);
753
754 unpush_target (targ_ops);
755
756 if (dev_name)
757 free (dev_name);
758 dev_name = strsave (args);
759
760 monitor_desc = SERIAL_OPEN (dev_name);
761
762 if (!monitor_desc)
763 perror_with_name (dev_name);
764
765 if (baud_rate != -1)
766 {
767 if (SERIAL_SETBAUDRATE (monitor_desc, baud_rate))
768 {
769 SERIAL_CLOSE (monitor_desc);
770 perror_with_name (dev_name);
771 }
772 }
773
774 SERIAL_RAW (monitor_desc);
775
776 SERIAL_FLUSH_INPUT (monitor_desc);
777
778 /* some systems only work with 2 stop bits */
779
780 SERIAL_SETSTOPBITS (monitor_desc, mon_ops->stopbits);
781
782 current_monitor = mon_ops;
783
784 /* See if we can wake up the monitor. First, try sending a stop sequence,
785 then send the init strings. Last, remove all breakpoints. */
786
787 if (current_monitor->stop)
788 {
789 monitor_stop ();
790 if ((current_monitor->flags & MO_NO_ECHO_ON_OPEN) == 0)
791 {
792 monitor_debug ("EXP Open echo\n");
793 monitor_expect_prompt (NULL, 0);
794 }
795 }
796
797 /* wake up the monitor and see if it's alive */
798 for (p = mon_ops->init; *p != NULL; p++)
799 {
800 /* Some of the characters we send may not be echoed,
801 but we hope to get a prompt at the end of it all. */
802
803 if ((current_monitor->flags & MO_NO_ECHO_ON_OPEN) == 0)
804 monitor_printf (*p);
805 else
806 monitor_printf_noecho (*p);
807 monitor_expect_prompt (NULL, 0);
808 }
809
810 SERIAL_FLUSH_INPUT (monitor_desc);
811
812 /* Alloc breakpoints */
813 if (mon_ops->set_break != NULL)
814 {
815 if (mon_ops->num_breakpoints == 0)
816 mon_ops->num_breakpoints = 8;
817
818 breakaddr = (CORE_ADDR *) xmalloc (mon_ops->num_breakpoints * sizeof (CORE_ADDR));
819 memset (breakaddr, 0, mon_ops->num_breakpoints * sizeof (CORE_ADDR));
820 }
821
822 /* Remove all breakpoints */
823
824 if (mon_ops->clr_all_break)
825 {
826 monitor_printf (mon_ops->clr_all_break);
827 monitor_expect_prompt (NULL, 0);
828 }
829
830 if (from_tty)
831 printf_unfiltered ("Remote target %s connected to %s\n", name, dev_name);
832
833 push_target (targ_ops);
834
835 inferior_pid = 42000; /* Make run command think we are busy... */
836
837 /* Give monitor_wait something to read */
838
839 monitor_printf (current_monitor->line_term);
840
841 if (!remote_dcache)
842 {
843 if (current_monitor->flags & MO_HAS_BLOCKWRITES)
844 remote_dcache = dcache_init (monitor_read_memory,
845 monitor_write_memory_block);
846 else
847 remote_dcache = dcache_init (monitor_read_memory, monitor_write_memory);
848 }
849 else
850 dcache_flush (remote_dcache);
851
852 start_remote ();
853 }
854
855 /* Close out all files and local state before this target loses
856 control. */
857
858 void
859 monitor_close (int quitting)
860 {
861 if (monitor_desc)
862 SERIAL_CLOSE (monitor_desc);
863
864 /* Free breakpoint memory */
865 if (breakaddr != NULL)
866 {
867 free (breakaddr);
868 breakaddr = NULL;
869 }
870
871 monitor_desc = NULL;
872 }
873
874 /* Terminate the open connection to the remote debugger. Use this
875 when you want to detach and do something else with your gdb. */
876
877 static void
878 monitor_detach (char *args, int from_tty)
879 {
880 pop_target (); /* calls monitor_close to do the real work */
881 if (from_tty)
882 printf_unfiltered ("Ending remote %s debugging\n", target_shortname);
883 }
884
885 /* Convert VALSTR into the target byte-ordered value of REGNO and store it. */
886
887 char *
888 monitor_supply_register (int regno, char *valstr)
889 {
890 ULONGEST val;
891 unsigned char regbuf[MAX_REGISTER_RAW_SIZE];
892 char *p;
893
894 val = 0;
895 p = valstr;
896 while (p && *p != '\0')
897 {
898 if (*p == '\r' || *p == '\n')
899 {
900 while (*p != '\0')
901 p++;
902 break;
903 }
904 if (isspace (*p))
905 {
906 p++;
907 continue;
908 }
909 if (!isxdigit (*p) && *p != 'x')
910 {
911 break;
912 }
913
914 val <<= 4;
915 val += fromhex (*p++);
916 }
917 monitor_debug ("Supplying Register %d %s\n", regno, valstr);
918
919 if (*p != '\0')
920 error ("monitor_supply_register (%d): bad value from monitor: %s.",
921 regno, valstr);
922
923 /* supply register stores in target byte order, so swap here */
924
925 store_unsigned_integer (regbuf, REGISTER_RAW_SIZE (regno), val);
926
927 supply_register (regno, regbuf);
928
929 return p;
930 }
931
932 /* Tell the remote machine to resume. */
933
934 void
935 flush_monitor_dcache (void)
936 {
937 dcache_flush (remote_dcache);
938 }
939
940 static void
941 monitor_resume (int pid, int step, enum target_signal sig)
942 {
943 /* Some monitors require a different command when starting a program */
944 monitor_debug ("MON resume\n");
945 if (current_monitor->flags & MO_RUN_FIRST_TIME && first_time == 1)
946 {
947 first_time = 0;
948 monitor_printf ("run\r");
949 if (current_monitor->flags & MO_NEED_REGDUMP_AFTER_CONT)
950 dump_reg_flag = 1;
951 return;
952 }
953 dcache_flush (remote_dcache);
954 if (step)
955 monitor_printf (current_monitor->step);
956 else
957 {
958 if (current_monitor->continue_hook)
959 (*current_monitor->continue_hook) ();
960 else
961 monitor_printf (current_monitor->cont);
962 if (current_monitor->flags & MO_NEED_REGDUMP_AFTER_CONT)
963 dump_reg_flag = 1;
964 }
965 }
966
967 /* Parse the output of a register dump command. A monitor specific
968 regexp is used to extract individual register descriptions of the
969 form REG=VAL. Each description is split up into a name and a value
970 string which are passed down to monitor specific code. */
971
972 static void
973 parse_register_dump (char *buf, int len)
974 {
975 monitor_debug ("MON Parsing register dump\n");
976 while (1)
977 {
978 int regnamelen, vallen;
979 char *regname, *val;
980 /* Element 0 points to start of register name, and element 1
981 points to the start of the register value. */
982 struct re_registers register_strings;
983
984 memset (&register_strings, 0, sizeof (struct re_registers));
985
986 if (re_search (&register_pattern, buf, len, 0, len,
987 &register_strings) == -1)
988 break;
989
990 regnamelen = register_strings.end[1] - register_strings.start[1];
991 regname = buf + register_strings.start[1];
992 vallen = register_strings.end[2] - register_strings.start[2];
993 val = buf + register_strings.start[2];
994
995 current_monitor->supply_register (regname, regnamelen, val, vallen);
996
997 buf += register_strings.end[0];
998 len -= register_strings.end[0];
999 }
1000 }
1001
1002 /* Send ^C to target to halt it. Target will respond, and send us a
1003 packet. */
1004
1005 static void
1006 monitor_interrupt (int signo)
1007 {
1008 /* If this doesn't work, try more severe steps. */
1009 signal (signo, monitor_interrupt_twice);
1010
1011 if (monitor_debug_p || remote_debug)
1012 fprintf_unfiltered (gdb_stdlog, "monitor_interrupt called\n");
1013
1014 target_stop ();
1015 }
1016
1017 /* The user typed ^C twice. */
1018
1019 static void
1020 monitor_interrupt_twice (int signo)
1021 {
1022 signal (signo, ofunc);
1023
1024 monitor_interrupt_query ();
1025
1026 signal (signo, monitor_interrupt);
1027 }
1028
1029 /* Ask the user what to do when an interrupt is received. */
1030
1031 static void
1032 monitor_interrupt_query (void)
1033 {
1034 target_terminal_ours ();
1035
1036 if (query ("Interrupted while waiting for the program.\n\
1037 Give up (and stop debugging it)? "))
1038 {
1039 target_mourn_inferior ();
1040 return_to_top_level (RETURN_QUIT);
1041 }
1042
1043 target_terminal_inferior ();
1044 }
1045
1046 static void
1047 monitor_wait_cleanup (void *old_timeout)
1048 {
1049 timeout = *(int *) old_timeout;
1050 signal (SIGINT, ofunc);
1051 in_monitor_wait = 0;
1052 }
1053
1054
1055
1056 void
1057 monitor_wait_filter (char *buf,
1058 int bufmax,
1059 int *ext_resp_len,
1060 struct target_waitstatus *status
1061 )
1062 {
1063 int resp_len;
1064 do
1065 {
1066 resp_len = monitor_expect_prompt (buf, bufmax);
1067 *ext_resp_len = resp_len;
1068
1069 if (resp_len <= 0)
1070 fprintf_unfiltered (gdb_stderr, "monitor_wait: excessive response from monitor: %s.", buf);
1071 }
1072 while (resp_len < 0);
1073
1074 /* Print any output characters that were preceded by ^O. */
1075 /* FIXME - This would be great as a user settabgle flag */
1076 if (monitor_debug_p || remote_debug
1077 || current_monitor->flags & MO_PRINT_PROGRAM_OUTPUT)
1078 {
1079 int i;
1080
1081 for (i = 0; i < resp_len - 1; i++)
1082 if (buf[i] == 0x0f)
1083 putchar_unfiltered (buf[++i]);
1084 }
1085 }
1086
1087
1088
1089 /* Wait until the remote machine stops, then return, storing status in
1090 status just as `wait' would. */
1091
1092 static int
1093 monitor_wait (int pid, struct target_waitstatus *status)
1094 {
1095 int old_timeout = timeout;
1096 char buf[TARGET_BUF_SIZE];
1097 int resp_len;
1098 struct cleanup *old_chain;
1099
1100 status->kind = TARGET_WAITKIND_EXITED;
1101 status->value.integer = 0;
1102
1103 old_chain = make_cleanup (monitor_wait_cleanup, &old_timeout);
1104 monitor_debug ("MON wait\n");
1105
1106 #if 0
1107 /* This is somthing other than a maintenance command */
1108 in_monitor_wait = 1;
1109 timeout = watchdog > 0 ? watchdog : -1;
1110 #else
1111 timeout = -1; /* Don't time out -- user program is running. */
1112 #endif
1113
1114 ofunc = (void (*)()) signal (SIGINT, monitor_interrupt);
1115
1116 if (current_monitor->wait_filter)
1117 (*current_monitor->wait_filter) (buf, sizeof (buf), &resp_len, status);
1118 else
1119 monitor_wait_filter (buf, sizeof (buf), &resp_len, status);
1120
1121 #if 0 /* Transferred to monitor wait filter */
1122 do
1123 {
1124 resp_len = monitor_expect_prompt (buf, sizeof (buf));
1125
1126 if (resp_len <= 0)
1127 fprintf_unfiltered (gdb_stderr, "monitor_wait: excessive response from monitor: %s.", buf);
1128 }
1129 while (resp_len < 0);
1130
1131 /* Print any output characters that were preceded by ^O. */
1132 /* FIXME - This would be great as a user settabgle flag */
1133 if (monitor_debug_p || remote_debug
1134 || current_monitor->flags & MO_PRINT_PROGRAM_OUTPUT)
1135 {
1136 int i;
1137
1138 for (i = 0; i < resp_len - 1; i++)
1139 if (buf[i] == 0x0f)
1140 putchar_unfiltered (buf[++i]);
1141 }
1142 #endif
1143
1144 signal (SIGINT, ofunc);
1145
1146 timeout = old_timeout;
1147 #if 0
1148 if (dump_reg_flag && current_monitor->dump_registers)
1149 {
1150 dump_reg_flag = 0;
1151 monitor_printf (current_monitor->dump_registers);
1152 resp_len = monitor_expect_prompt (buf, sizeof (buf));
1153 }
1154
1155 if (current_monitor->register_pattern)
1156 parse_register_dump (buf, resp_len);
1157 #else
1158 monitor_debug ("Wait fetching registers after stop\n");
1159 monitor_dump_regs ();
1160 #endif
1161
1162 status->kind = TARGET_WAITKIND_STOPPED;
1163 status->value.sig = TARGET_SIGNAL_TRAP;
1164
1165 discard_cleanups (old_chain);
1166
1167 in_monitor_wait = 0;
1168
1169 return inferior_pid;
1170 }
1171
1172 /* Fetch register REGNO, or all registers if REGNO is -1. Returns
1173 errno value. */
1174
1175 static void
1176 monitor_fetch_register (int regno)
1177 {
1178 char *name;
1179 char *zerobuf;
1180 char *regbuf;
1181 int i;
1182
1183 regbuf = alloca (MAX_REGISTER_RAW_SIZE * 2 + 1);
1184 zerobuf = alloca (MAX_REGISTER_RAW_SIZE);
1185 memset (zerobuf, 0, MAX_REGISTER_RAW_SIZE);
1186
1187 name = current_monitor->regnames[regno];
1188 monitor_debug ("MON fetchreg %d '%s'\n", regno, name ? name : "(null name)");
1189
1190 if (!name || (*name == '\0'))
1191 {
1192 monitor_debug ("No register known for %d\n", regno);
1193 supply_register (regno, zerobuf);
1194 return;
1195 }
1196
1197 /* send the register examine command */
1198
1199 monitor_printf (current_monitor->getreg.cmd, name);
1200
1201 /* If RESP_DELIM is specified, we search for that as a leading
1202 delimiter for the register value. Otherwise, we just start
1203 searching from the start of the buf. */
1204
1205 if (current_monitor->getreg.resp_delim)
1206 {
1207 monitor_debug ("EXP getreg.resp_delim\n");
1208 monitor_expect (current_monitor->getreg.resp_delim, NULL, 0);
1209 /* Handle case of first 32 registers listed in pairs. */
1210 if (current_monitor->flags & MO_32_REGS_PAIRED
1211 && (regno & 1) != 0 && regno < 32)
1212 {
1213 monitor_debug ("EXP getreg.resp_delim\n");
1214 monitor_expect (current_monitor->getreg.resp_delim, NULL, 0);
1215 }
1216 }
1217
1218 /* Skip leading spaces and "0x" if MO_HEX_PREFIX flag is set */
1219 if (current_monitor->flags & MO_HEX_PREFIX)
1220 {
1221 int c;
1222 c = readchar (timeout);
1223 while (c == ' ')
1224 c = readchar (timeout);
1225 if ((c == '0') && ((c = readchar (timeout)) == 'x'))
1226 ;
1227 else
1228 error ("Bad value returned from monitor while fetching register %x.",
1229 regno);
1230 }
1231
1232 /* Read upto the maximum number of hex digits for this register, skipping
1233 spaces, but stop reading if something else is seen. Some monitors
1234 like to drop leading zeros. */
1235
1236 for (i = 0; i < REGISTER_RAW_SIZE (regno) * 2; i++)
1237 {
1238 int c;
1239 c = readchar (timeout);
1240 while (c == ' ')
1241 c = readchar (timeout);
1242
1243 if (!isxdigit (c))
1244 break;
1245
1246 regbuf[i] = c;
1247 }
1248
1249 regbuf[i] = '\000'; /* terminate the number */
1250 monitor_debug ("REGVAL '%s'\n", regbuf);
1251
1252 /* If TERM is present, we wait for that to show up. Also, (if TERM
1253 is present), we will send TERM_CMD if that is present. In any
1254 case, we collect all of the output into buf, and then wait for
1255 the normal prompt. */
1256
1257 if (current_monitor->getreg.term)
1258 {
1259 monitor_debug ("EXP getreg.term\n");
1260 monitor_expect (current_monitor->getreg.term, NULL, 0); /* get response */
1261 }
1262
1263 if (current_monitor->getreg.term_cmd)
1264 {
1265 monitor_debug ("EMIT getreg.term.cmd\n");
1266 monitor_printf (current_monitor->getreg.term_cmd);
1267 }
1268 if (!current_monitor->getreg.term || /* Already expected or */
1269 current_monitor->getreg.term_cmd) /* ack expected */
1270 monitor_expect_prompt (NULL, 0); /* get response */
1271
1272 monitor_supply_register (regno, regbuf);
1273 }
1274
1275 /* Sometimes, it takes several commands to dump the registers */
1276 /* This is a primitive for use by variations of monitor interfaces in
1277 case they need to compose the operation.
1278 */
1279 int
1280 monitor_dump_reg_block (char *block_cmd)
1281 {
1282 char buf[TARGET_BUF_SIZE];
1283 int resp_len;
1284 monitor_printf (block_cmd);
1285 resp_len = monitor_expect_prompt (buf, sizeof (buf));
1286 parse_register_dump (buf, resp_len);
1287 return 1;
1288 }
1289
1290
1291 /* Read the remote registers into the block regs. */
1292 /* Call the specific function if it has been provided */
1293
1294 static void
1295 monitor_dump_regs (void)
1296 {
1297 char buf[TARGET_BUF_SIZE];
1298 int resp_len;
1299 if (current_monitor->dumpregs)
1300 (*(current_monitor->dumpregs)) (); /* call supplied function */
1301 else if (current_monitor->dump_registers) /* default version */
1302 {
1303 monitor_printf (current_monitor->dump_registers);
1304 resp_len = monitor_expect_prompt (buf, sizeof (buf));
1305 parse_register_dump (buf, resp_len);
1306 }
1307 else
1308 abort (); /* Need some way to read registers */
1309 }
1310
1311 static void
1312 monitor_fetch_registers (int regno)
1313 {
1314 monitor_debug ("MON fetchregs\n");
1315 if (current_monitor->getreg.cmd)
1316 {
1317 if (regno >= 0)
1318 {
1319 monitor_fetch_register (regno);
1320 return;
1321 }
1322
1323 for (regno = 0; regno < NUM_REGS; regno++)
1324 monitor_fetch_register (regno);
1325 }
1326 else
1327 {
1328 monitor_dump_regs ();
1329 }
1330 }
1331
1332 /* Store register REGNO, or all if REGNO == 0. Return errno value. */
1333
1334 static void
1335 monitor_store_register (int regno)
1336 {
1337 char *name;
1338 ULONGEST val;
1339
1340 name = current_monitor->regnames[regno];
1341 if (!name || (*name == '\0'))
1342 {
1343 monitor_debug ("MON Cannot store unknown register\n");
1344 return;
1345 }
1346
1347 val = read_register (regno);
1348 monitor_debug ("MON storeg %d %s\n", regno,
1349 phex (val, REGISTER_RAW_SIZE (regno)));
1350
1351 /* send the register deposit command */
1352
1353 if (current_monitor->flags & MO_REGISTER_VALUE_FIRST)
1354 monitor_printf (current_monitor->setreg.cmd, val, name);
1355 else if (current_monitor->flags & MO_SETREG_INTERACTIVE)
1356 monitor_printf (current_monitor->setreg.cmd, name);
1357 else
1358 monitor_printf (current_monitor->setreg.cmd, name, val);
1359
1360 if (current_monitor->setreg.term)
1361 {
1362 monitor_debug ("EXP setreg.term\n");
1363 monitor_expect (current_monitor->setreg.term, NULL, 0);
1364 if (current_monitor->flags & MO_SETREG_INTERACTIVE)
1365 monitor_printf ("%s\r", paddr_nz (val));
1366 monitor_expect_prompt (NULL, 0);
1367 }
1368 else
1369 monitor_expect_prompt (NULL, 0);
1370 if (current_monitor->setreg.term_cmd) /* Mode exit required */
1371 {
1372 monitor_debug ("EXP setreg_termcmd\n");
1373 monitor_printf ("%s", current_monitor->setreg.term_cmd);
1374 monitor_expect_prompt (NULL, 0);
1375 }
1376 } /* monitor_store_register */
1377
1378 /* Store the remote registers. */
1379
1380 static void
1381 monitor_store_registers (int regno)
1382 {
1383 if (regno >= 0)
1384 {
1385 monitor_store_register (regno);
1386 return;
1387 }
1388
1389 for (regno = 0; regno < NUM_REGS; regno++)
1390 monitor_store_register (regno);
1391 }
1392
1393 /* Get ready to modify the registers array. On machines which store
1394 individual registers, this doesn't need to do anything. On machines
1395 which store all the registers in one fell swoop, this makes sure
1396 that registers contains all the registers from the program being
1397 debugged. */
1398
1399 static void
1400 monitor_prepare_to_store (void)
1401 {
1402 /* Do nothing, since we can store individual regs */
1403 }
1404
1405 static void
1406 monitor_files_info (struct target_ops *ops)
1407 {
1408 printf_unfiltered ("\tAttached to %s at %d baud.\n", dev_name, baud_rate);
1409 }
1410
1411 static int
1412 monitor_write_memory (CORE_ADDR memaddr, char *myaddr, int len)
1413 {
1414 unsigned int val, hostval;
1415 char *cmd;
1416 int i;
1417
1418 monitor_debug ("MON write %d %s\n", len, paddr (memaddr));
1419
1420 if (current_monitor->flags & MO_ADDR_BITS_REMOVE)
1421 memaddr = ADDR_BITS_REMOVE (memaddr);
1422
1423 /* Use memory fill command for leading 0 bytes. */
1424
1425 if (current_monitor->fill)
1426 {
1427 for (i = 0; i < len; i++)
1428 if (myaddr[i] != 0)
1429 break;
1430
1431 if (i > 4) /* More than 4 zeros is worth doing */
1432 {
1433 monitor_debug ("MON FILL %d\n", i);
1434 if (current_monitor->flags & MO_FILL_USES_ADDR)
1435 monitor_printf (current_monitor->fill, memaddr, (memaddr + i) - 1, 0);
1436 else
1437 monitor_printf (current_monitor->fill, memaddr, i, 0);
1438
1439 monitor_expect_prompt (NULL, 0);
1440
1441 return i;
1442 }
1443 }
1444
1445 #if 0
1446 /* Can't actually use long longs if VAL is an int (nice idea, though). */
1447 if ((memaddr & 0x7) == 0 && len >= 8 && current_monitor->setmem.cmdll)
1448 {
1449 len = 8;
1450 cmd = current_monitor->setmem.cmdll;
1451 }
1452 else
1453 #endif
1454 if ((memaddr & 0x3) == 0 && len >= 4 && current_monitor->setmem.cmdl)
1455 {
1456 len = 4;
1457 cmd = current_monitor->setmem.cmdl;
1458 }
1459 else if ((memaddr & 0x1) == 0 && len >= 2 && current_monitor->setmem.cmdw)
1460 {
1461 len = 2;
1462 cmd = current_monitor->setmem.cmdw;
1463 }
1464 else
1465 {
1466 len = 1;
1467 cmd = current_monitor->setmem.cmdb;
1468 }
1469
1470 val = extract_unsigned_integer (myaddr, len);
1471
1472 if (len == 4)
1473 {
1474 hostval = *(unsigned int *) myaddr;
1475 monitor_debug ("Hostval(%08x) val(%08x)\n", hostval, val);
1476 }
1477
1478
1479 if (current_monitor->flags & MO_NO_ECHO_ON_SETMEM)
1480 monitor_printf_noecho (cmd, memaddr, val);
1481 else if (current_monitor->flags & MO_SETMEM_INTERACTIVE)
1482 {
1483
1484 monitor_printf_noecho (cmd, memaddr);
1485
1486 if (current_monitor->setmem.term)
1487 {
1488 monitor_debug ("EXP setmem.term");
1489 monitor_expect (current_monitor->setmem.term, NULL, 0);
1490 monitor_printf ("%x\r", val);
1491 }
1492 if (current_monitor->setmem.term_cmd)
1493 { /* Emit this to get out of the memory editing state */
1494 monitor_printf ("%s", current_monitor->setmem.term_cmd);
1495 /* Drop through to expecting a prompt */
1496 }
1497 }
1498 else
1499 monitor_printf (cmd, memaddr, val);
1500
1501 monitor_expect_prompt (NULL, 0);
1502
1503 return len;
1504 }
1505
1506
1507 static int
1508 monitor_write_even_block (CORE_ADDR memaddr, char *myaddr, int len)
1509 {
1510 unsigned int val;
1511 int written = 0;;
1512 /* Enter the sub mode */
1513 monitor_printf (current_monitor->setmem.cmdl, memaddr);
1514 monitor_expect_prompt (NULL, 0);
1515
1516 while (len)
1517 {
1518 val = extract_unsigned_integer (myaddr, 4); /* REALLY */
1519 monitor_printf ("%x\r", val);
1520 myaddr += 4;
1521 memaddr += 4;
1522 written += 4;
1523 monitor_debug (" @ %s\n", paddr (memaddr));
1524 /* If we wanted to, here we could validate the address */
1525 monitor_expect_prompt (NULL, 0);
1526 }
1527 /* Now exit the sub mode */
1528 monitor_printf (current_monitor->getreg.term_cmd);
1529 monitor_expect_prompt (NULL, 0);
1530 return written;
1531 }
1532
1533
1534 static int
1535 monitor_write_memory_bytes (CORE_ADDR memaddr, char *myaddr, int len)
1536 {
1537 unsigned char val;
1538 int written = 0;
1539 if (len == 0)
1540 return 0;
1541 /* Enter the sub mode */
1542 monitor_printf (current_monitor->setmem.cmdb, memaddr);
1543 monitor_expect_prompt (NULL, 0);
1544 while (len)
1545 {
1546 val = *myaddr;
1547 monitor_printf ("%x\r", val);
1548 myaddr++;
1549 memaddr++;
1550 written++;
1551 /* If we wanted to, here we could validate the address */
1552 monitor_expect_prompt (NULL, 0);
1553 len--;
1554 }
1555 /* Now exit the sub mode */
1556 monitor_printf (current_monitor->getreg.term_cmd);
1557 monitor_expect_prompt (NULL, 0);
1558 return written;
1559 }
1560
1561
1562 static void
1563 longlongendswap (unsigned char *a)
1564 {
1565 int i, j;
1566 unsigned char x;
1567 i = 0;
1568 j = 7;
1569 while (i < 4)
1570 {
1571 x = *(a + i);
1572 *(a + i) = *(a + j);
1573 *(a + j) = x;
1574 i++, j--;
1575 }
1576 }
1577 /* Format 32 chars of long long value, advance the pointer */
1578 static char *hexlate = "0123456789abcdef";
1579 static char *
1580 longlong_hexchars (unsigned long long value,
1581 char *outbuff)
1582 {
1583 if (value == 0)
1584 {
1585 *outbuff++ = '0';
1586 return outbuff;
1587 }
1588 else
1589 {
1590 static unsigned char disbuf[8]; /* disassembly buffer */
1591 unsigned char *scan, *limit; /* loop controls */
1592 unsigned char c, nib;
1593 int leadzero = 1;
1594 scan = disbuf;
1595 limit = scan + 8;
1596 {
1597 unsigned long long *dp;
1598 dp = (unsigned long long *) scan;
1599 *dp = value;
1600 }
1601 longlongendswap (disbuf); /* FIXME: ONly on big endian hosts */
1602 while (scan < limit)
1603 {
1604 c = *scan++; /* a byte of our long long value */
1605 if (leadzero)
1606 {
1607 if (c == 0)
1608 continue;
1609 else
1610 leadzero = 0; /* henceforth we print even zeroes */
1611 }
1612 nib = c >> 4; /* high nibble bits */
1613 *outbuff++ = hexlate[nib];
1614 nib = c & 0x0f; /* low nibble bits */
1615 *outbuff++ = hexlate[nib];
1616 }
1617 return outbuff;
1618 }
1619 } /* longlong_hexchars */
1620
1621
1622
1623 /* I am only going to call this when writing virtual byte streams.
1624 Which possably entails endian conversions
1625 */
1626 static int
1627 monitor_write_memory_longlongs (CORE_ADDR memaddr, char *myaddr, int len)
1628 {
1629 static char hexstage[20]; /* At least 16 digits required, plus null */
1630 char *endstring;
1631 long long *llptr;
1632 long long value;
1633 int written = 0;
1634 llptr = (unsigned long long *) myaddr;
1635 if (len == 0)
1636 return 0;
1637 monitor_printf (current_monitor->setmem.cmdll, memaddr);
1638 monitor_expect_prompt (NULL, 0);
1639 while (len >= 8)
1640 {
1641 value = *llptr;
1642 endstring = longlong_hexchars (*llptr, hexstage);
1643 *endstring = '\0'; /* NUll terminate for printf */
1644 monitor_printf ("%s\r", hexstage);
1645 llptr++;
1646 memaddr += 8;
1647 written += 8;
1648 /* If we wanted to, here we could validate the address */
1649 monitor_expect_prompt (NULL, 0);
1650 len -= 8;
1651 }
1652 /* Now exit the sub mode */
1653 monitor_printf (current_monitor->getreg.term_cmd);
1654 monitor_expect_prompt (NULL, 0);
1655 return written;
1656 } /* */
1657
1658
1659
1660 /* ----- MONITOR_WRITE_MEMORY_BLOCK ---------------------------- */
1661 /* This is for the large blocks of memory which may occur in downloading.
1662 And for monitors which use interactive entry,
1663 And for monitors which do not have other downloading methods.
1664 Without this, we will end up calling monitor_write_memory many times
1665 and do the entry and exit of the sub mode many times
1666 This currently assumes...
1667 MO_SETMEM_INTERACTIVE
1668 ! MO_NO_ECHO_ON_SETMEM
1669 To use this, the you have to patch the monitor_cmds block with
1670 this function. Otherwise, its not tuned up for use by all
1671 monitor variations.
1672 */
1673
1674 static int
1675 monitor_write_memory_block (CORE_ADDR memaddr, char *myaddr, int len)
1676 {
1677 int written;
1678 written = 0;
1679 /* FIXME: This would be a good place to put the zero test */
1680 #if 1
1681 if ((len > 8) && (((len & 0x07)) == 0) && current_monitor->setmem.cmdll)
1682 {
1683 return monitor_write_memory_longlongs (memaddr, myaddr, len);
1684 }
1685 #endif
1686 #if 0
1687 if (len > 4)
1688 {
1689 int sublen;
1690 written = monitor_write_even_block (memaddr, myaddr, len);
1691 /* Adjust calling parameters by written amount */
1692 memaddr += written;
1693 myaddr += written;
1694 len -= written;
1695 }
1696 #endif
1697 written = monitor_write_memory_bytes (memaddr, myaddr, len);
1698 return written;
1699 }
1700
1701 /* This is an alternate form of monitor_read_memory which is used for monitors
1702 which can only read a single byte/word/etc. at a time. */
1703
1704 static int
1705 monitor_read_memory_single (CORE_ADDR memaddr, char *myaddr, int len)
1706 {
1707 unsigned int val;
1708 char membuf[sizeof (int) * 2 + 1];
1709 char *p;
1710 char *cmd;
1711 int i;
1712
1713 monitor_debug ("MON read single\n");
1714 #if 0
1715 /* Can't actually use long longs (nice idea, though). In fact, the
1716 call to strtoul below will fail if it tries to convert a value
1717 that's too big to fit in a long. */
1718 if ((memaddr & 0x7) == 0 && len >= 8 && current_monitor->getmem.cmdll)
1719 {
1720 len = 8;
1721 cmd = current_monitor->getmem.cmdll;
1722 }
1723 else
1724 #endif
1725 if ((memaddr & 0x3) == 0 && len >= 4 && current_monitor->getmem.cmdl)
1726 {
1727 len = 4;
1728 cmd = current_monitor->getmem.cmdl;
1729 }
1730 else if ((memaddr & 0x1) == 0 && len >= 2 && current_monitor->getmem.cmdw)
1731 {
1732 len = 2;
1733 cmd = current_monitor->getmem.cmdw;
1734 }
1735 else
1736 {
1737 len = 1;
1738 cmd = current_monitor->getmem.cmdb;
1739 }
1740
1741 /* Send the examine command. */
1742
1743 monitor_printf (cmd, memaddr);
1744
1745 /* If RESP_DELIM is specified, we search for that as a leading
1746 delimiter for the memory value. Otherwise, we just start
1747 searching from the start of the buf. */
1748
1749 if (current_monitor->getmem.resp_delim)
1750 {
1751 monitor_debug ("EXP getmem.resp_delim\n");
1752 monitor_expect_regexp (&getmem_resp_delim_pattern, NULL, 0);
1753 }
1754
1755 /* Now, read the appropriate number of hex digits for this loc,
1756 skipping spaces. */
1757
1758 /* Skip leading spaces and "0x" if MO_HEX_PREFIX flag is set. */
1759 if (current_monitor->flags & MO_HEX_PREFIX)
1760 {
1761 int c;
1762
1763 c = readchar (timeout);
1764 while (c == ' ')
1765 c = readchar (timeout);
1766 if ((c == '0') && ((c = readchar (timeout)) == 'x'))
1767 ;
1768 else
1769 monitor_error ("monitor_read_memory_single",
1770 "bad response from monitor",
1771 memaddr, i, membuf, c);
1772 }
1773 for (i = 0; i < len * 2; i++)
1774 {
1775 int c;
1776
1777 while (1)
1778 {
1779 c = readchar (timeout);
1780 if (isxdigit (c))
1781 break;
1782 if (c == ' ')
1783 continue;
1784
1785 monitor_error ("monitor_read_memory_single",
1786 "bad response from monitor",
1787 memaddr, i, membuf, c);
1788 }
1789
1790 membuf[i] = c;
1791 }
1792
1793 membuf[i] = '\000'; /* terminate the number */
1794
1795 /* If TERM is present, we wait for that to show up. Also, (if TERM is
1796 present), we will send TERM_CMD if that is present. In any case, we collect
1797 all of the output into buf, and then wait for the normal prompt. */
1798
1799 if (current_monitor->getmem.term)
1800 {
1801 monitor_expect (current_monitor->getmem.term, NULL, 0); /* get response */
1802
1803 if (current_monitor->getmem.term_cmd)
1804 {
1805 monitor_printf (current_monitor->getmem.term_cmd);
1806 monitor_expect_prompt (NULL, 0);
1807 }
1808 }
1809 else
1810 monitor_expect_prompt (NULL, 0); /* get response */
1811
1812 p = membuf;
1813 val = strtoul (membuf, &p, 16);
1814
1815 if (val == 0 && membuf == p)
1816 monitor_error ("monitor_read_memory_single",
1817 "bad value from monitor",
1818 memaddr, 0, membuf, 0);
1819
1820 /* supply register stores in target byte order, so swap here */
1821
1822 store_unsigned_integer (myaddr, len, val);
1823
1824 return len;
1825 }
1826
1827 /* Copy LEN bytes of data from debugger memory at MYADDR to inferior's
1828 memory at MEMADDR. Returns length moved. Currently, we do no more
1829 than 16 bytes at a time. */
1830
1831 static int
1832 monitor_read_memory (CORE_ADDR memaddr, char *myaddr, int len)
1833 {
1834 unsigned int val;
1835 char buf[512];
1836 char *p, *p1;
1837 int resp_len;
1838 int i;
1839 CORE_ADDR dumpaddr;
1840
1841 if (len <= 0)
1842 {
1843 monitor_debug ("Zero length call to monitor_read_memory\n");
1844 return 0;
1845 }
1846
1847 monitor_debug ("MON read block ta(%s) ha(%lx) %d\n",
1848 paddr_nz (memaddr), (long) myaddr, len);
1849
1850 if (current_monitor->flags & MO_ADDR_BITS_REMOVE)
1851 memaddr = ADDR_BITS_REMOVE (memaddr);
1852
1853 if (current_monitor->flags & MO_GETMEM_READ_SINGLE)
1854 return monitor_read_memory_single (memaddr, myaddr, len);
1855
1856 len = min (len, 16);
1857
1858 /* Some dumpers align the first data with the preceeding 16
1859 byte boundary. Some print blanks and start at the
1860 requested boundary. EXACT_DUMPADDR
1861 */
1862
1863 dumpaddr = (current_monitor->flags & MO_EXACT_DUMPADDR)
1864 ? memaddr : memaddr & ~0x0f;
1865
1866 /* See if xfer would cross a 16 byte boundary. If so, clip it. */
1867 if (((memaddr ^ (memaddr + len - 1)) & ~0xf) != 0)
1868 len = ((memaddr + len) & ~0xf) - memaddr;
1869
1870 /* send the memory examine command */
1871
1872 if (current_monitor->flags & MO_GETMEM_NEEDS_RANGE)
1873 monitor_printf (current_monitor->getmem.cmdb, memaddr, memaddr + len);
1874 else if (current_monitor->flags & MO_GETMEM_16_BOUNDARY)
1875 monitor_printf (current_monitor->getmem.cmdb, dumpaddr);
1876 else
1877 monitor_printf (current_monitor->getmem.cmdb, memaddr, len);
1878
1879 /* If TERM is present, we wait for that to show up. Also, (if TERM
1880 is present), we will send TERM_CMD if that is present. In any
1881 case, we collect all of the output into buf, and then wait for
1882 the normal prompt. */
1883
1884 if (current_monitor->getmem.term)
1885 {
1886 resp_len = monitor_expect (current_monitor->getmem.term, buf, sizeof buf); /* get response */
1887
1888 if (resp_len <= 0)
1889 monitor_error ("monitor_read_memory",
1890 "excessive response from monitor",
1891 memaddr, resp_len, buf, 0);
1892
1893 if (current_monitor->getmem.term_cmd)
1894 {
1895 SERIAL_WRITE (monitor_desc, current_monitor->getmem.term_cmd,
1896 strlen (current_monitor->getmem.term_cmd));
1897 monitor_expect_prompt (NULL, 0);
1898 }
1899 }
1900 else
1901 resp_len = monitor_expect_prompt (buf, sizeof buf); /* get response */
1902
1903 p = buf;
1904
1905 /* If RESP_DELIM is specified, we search for that as a leading
1906 delimiter for the values. Otherwise, we just start searching
1907 from the start of the buf. */
1908
1909 if (current_monitor->getmem.resp_delim)
1910 {
1911 int retval, tmp;
1912 struct re_registers resp_strings;
1913 monitor_debug ("MON getmem.resp_delim %s\n", current_monitor->getmem.resp_delim);
1914
1915 memset (&resp_strings, 0, sizeof (struct re_registers));
1916 tmp = strlen (p);
1917 retval = re_search (&getmem_resp_delim_pattern, p, tmp, 0, tmp,
1918 &resp_strings);
1919
1920 if (retval < 0)
1921 monitor_error ("monitor_read_memory",
1922 "bad response from monitor",
1923 memaddr, resp_len, buf, 0);
1924
1925 p += resp_strings.end[0];
1926 #if 0
1927 p = strstr (p, current_monitor->getmem.resp_delim);
1928 if (!p)
1929 monitor_error ("monitor_read_memory",
1930 "bad response from monitor",
1931 memaddr, resp_len, buf, 0);
1932 p += strlen (current_monitor->getmem.resp_delim);
1933 #endif
1934 }
1935 monitor_debug ("MON scanning %d ,%lx '%s'\n", len, (long) p, p);
1936 if (current_monitor->flags & MO_GETMEM_16_BOUNDARY)
1937 {
1938 char c;
1939 int fetched = 0;
1940 i = len;
1941 c = *p;
1942
1943
1944 while (!(c == '\000' || c == '\n' || c == '\r') && i > 0)
1945 {
1946 if (isxdigit (c))
1947 {
1948 if ((dumpaddr >= memaddr) && (i > 0))
1949 {
1950 val = fromhex (c) * 16 + fromhex (*(p + 1));
1951 *myaddr++ = val;
1952 if (monitor_debug_p || remote_debug)
1953 fprintf_unfiltered (gdb_stdlog, "[%02x]", val);
1954 --i;
1955 fetched++;
1956 }
1957 ++dumpaddr;
1958 ++p;
1959 }
1960 ++p; /* skip a blank or other non hex char */
1961 c = *p;
1962 }
1963 if (fetched == 0)
1964 error ("Failed to read via monitor");
1965 if (monitor_debug_p || remote_debug)
1966 fprintf_unfiltered (gdb_stdlog, "\n");
1967 return fetched; /* Return the number of bytes actually read */
1968 }
1969 monitor_debug ("MON scanning bytes\n");
1970
1971 for (i = len; i > 0; i--)
1972 {
1973 /* Skip non-hex chars, but bomb on end of string and newlines */
1974
1975 while (1)
1976 {
1977 if (isxdigit (*p))
1978 break;
1979
1980 if (*p == '\000' || *p == '\n' || *p == '\r')
1981 monitor_error ("monitor_read_memory",
1982 "badly terminated response from monitor",
1983 memaddr, resp_len, buf, 0);
1984 p++;
1985 }
1986
1987 val = strtoul (p, &p1, 16);
1988
1989 if (val == 0 && p == p1)
1990 monitor_error ("monitor_read_memory",
1991 "bad value from monitor",
1992 memaddr, resp_len, buf, 0);
1993
1994 *myaddr++ = val;
1995
1996 if (i == 1)
1997 break;
1998
1999 p = p1;
2000 }
2001
2002 return len;
2003 }
2004
2005 static int
2006 monitor_xfer_memory (memaddr, myaddr, len, write, target)
2007 CORE_ADDR memaddr;
2008 char *myaddr;
2009 int len;
2010 int write;
2011 struct target_ops *target; /* ignored */
2012 {
2013 return dcache_xfer_memory (remote_dcache, memaddr, myaddr, len, write);
2014 }
2015
2016 static void
2017 monitor_kill (void)
2018 {
2019 return; /* ignore attempts to kill target system */
2020 }
2021
2022 /* All we actually do is set the PC to the start address of exec_bfd, and start
2023 the program at that point. */
2024
2025 static void
2026 monitor_create_inferior (char *exec_file, char *args, char **env)
2027 {
2028 if (args && (*args != '\000'))
2029 error ("Args are not supported by the monitor.");
2030
2031 first_time = 1;
2032 clear_proceed_status ();
2033 proceed (bfd_get_start_address (exec_bfd), TARGET_SIGNAL_0, 0);
2034 }
2035
2036 /* Clean up when a program exits.
2037 The program actually lives on in the remote processor's RAM, and may be
2038 run again without a download. Don't leave it full of breakpoint
2039 instructions. */
2040
2041 static void
2042 monitor_mourn_inferior (void)
2043 {
2044 unpush_target (targ_ops);
2045 generic_mourn_inferior (); /* Do all the proper things now */
2046 }
2047
2048 /* Tell the monitor to add a breakpoint. */
2049
2050 static int
2051 monitor_insert_breakpoint (CORE_ADDR addr, char *shadow)
2052 {
2053 int i;
2054 unsigned char *bp;
2055 int bplen;
2056
2057 monitor_debug ("MON inst bkpt %s\n", paddr (addr));
2058 if (current_monitor->set_break == NULL)
2059 error ("No set_break defined for this monitor");
2060
2061 if (current_monitor->flags & MO_ADDR_BITS_REMOVE)
2062 addr = ADDR_BITS_REMOVE (addr);
2063
2064 /* Determine appropriate breakpoint size for this address. */
2065 bp = memory_breakpoint_from_pc (&addr, &bplen);
2066
2067 for (i = 0; i < current_monitor->num_breakpoints; i++)
2068 {
2069 if (breakaddr[i] == 0)
2070 {
2071 breakaddr[i] = addr;
2072 monitor_read_memory (addr, shadow, bplen);
2073 monitor_printf (current_monitor->set_break, addr);
2074 monitor_expect_prompt (NULL, 0);
2075 return 0;
2076 }
2077 }
2078
2079 error ("Too many breakpoints (> %d) for monitor.", current_monitor->num_breakpoints);
2080 }
2081
2082 /* Tell the monitor to remove a breakpoint. */
2083
2084 static int
2085 monitor_remove_breakpoint (CORE_ADDR addr, char *shadow)
2086 {
2087 int i;
2088
2089 monitor_debug ("MON rmbkpt %s\n", paddr (addr));
2090 if (current_monitor->clr_break == NULL)
2091 error ("No clr_break defined for this monitor");
2092
2093 if (current_monitor->flags & MO_ADDR_BITS_REMOVE)
2094 addr = ADDR_BITS_REMOVE (addr);
2095
2096 for (i = 0; i < current_monitor->num_breakpoints; i++)
2097 {
2098 if (breakaddr[i] == addr)
2099 {
2100 breakaddr[i] = 0;
2101 /* some monitors remove breakpoints based on the address */
2102 if (current_monitor->flags & MO_CLR_BREAK_USES_ADDR)
2103 monitor_printf (current_monitor->clr_break, addr);
2104 else if (current_monitor->flags & MO_CLR_BREAK_1_BASED)
2105 monitor_printf (current_monitor->clr_break, i + 1);
2106 else
2107 monitor_printf (current_monitor->clr_break, i);
2108 monitor_expect_prompt (NULL, 0);
2109 return 0;
2110 }
2111 }
2112 fprintf_unfiltered (gdb_stderr,
2113 "Can't find breakpoint associated with 0x%s\n",
2114 paddr_nz (addr));
2115 return 1;
2116 }
2117
2118 /* monitor_wait_srec_ack -- wait for the target to send an acknowledgement for
2119 an S-record. Return non-zero if the ACK is received properly. */
2120
2121 static int
2122 monitor_wait_srec_ack (void)
2123 {
2124 int ch;
2125
2126 if (current_monitor->flags & MO_SREC_ACK_PLUS)
2127 {
2128 return (readchar (timeout) == '+');
2129 }
2130 else if (current_monitor->flags & MO_SREC_ACK_ROTATE)
2131 {
2132 /* Eat two backspaces, a "rotating" char (|/-\), and a space. */
2133 if ((ch = readchar (1)) < 0)
2134 return 0;
2135 if ((ch = readchar (1)) < 0)
2136 return 0;
2137 if ((ch = readchar (1)) < 0)
2138 return 0;
2139 if ((ch = readchar (1)) < 0)
2140 return 0;
2141 }
2142 return 1;
2143 }
2144
2145 /* monitor_load -- download a file. */
2146
2147 static void
2148 monitor_load (char *file, int from_tty)
2149 {
2150 dcache_flush (remote_dcache);
2151 monitor_debug ("MON load\n");
2152
2153 if (current_monitor->load_routine)
2154 current_monitor->load_routine (monitor_desc, file, hashmark);
2155 else
2156 { /* The default is ascii S-records */
2157 int n;
2158 unsigned long load_offset;
2159 char buf[128];
2160
2161 /* enable user to specify address for downloading as 2nd arg to load */
2162 n = sscanf (file, "%s 0x%lx", buf, &load_offset);
2163 if (n > 1)
2164 file = buf;
2165 else
2166 load_offset = 0;
2167
2168 monitor_printf (current_monitor->load);
2169 if (current_monitor->loadresp)
2170 monitor_expect (current_monitor->loadresp, NULL, 0);
2171
2172 load_srec (monitor_desc, file, (bfd_vma) load_offset,
2173 32, SREC_ALL, hashmark,
2174 current_monitor->flags & MO_SREC_ACK ?
2175 monitor_wait_srec_ack : NULL);
2176
2177 monitor_expect_prompt (NULL, 0);
2178 }
2179
2180 /* Finally, make the PC point at the start address */
2181
2182 if (exec_bfd)
2183 write_pc (bfd_get_start_address (exec_bfd));
2184
2185 inferior_pid = 0; /* No process now */
2186
2187 /* This is necessary because many things were based on the PC at the time that
2188 we attached to the monitor, which is no longer valid now that we have loaded
2189 new code (and just changed the PC). Another way to do this might be to call
2190 normal_stop, except that the stack may not be valid, and things would get
2191 horribly confused... */
2192
2193 clear_symtab_users ();
2194 }
2195
2196 static void
2197 monitor_stop (void)
2198 {
2199 monitor_debug ("MON stop\n");
2200 if ((current_monitor->flags & MO_SEND_BREAK_ON_STOP) != 0)
2201 SERIAL_SEND_BREAK (monitor_desc);
2202 if (current_monitor->stop)
2203 monitor_printf_noecho (current_monitor->stop);
2204 }
2205
2206 /* Put a COMMAND string out to MONITOR. Output from MONITOR is placed
2207 in OUTPUT until the prompt is seen. FIXME: We read the characters
2208 ourseleves here cause of a nasty echo. */
2209
2210 static void
2211 monitor_rcmd (char *command,
2212 struct ui_file *outbuf)
2213 {
2214 char *p;
2215 int resp_len;
2216 char buf[1000];
2217
2218 if (monitor_desc == NULL)
2219 error ("monitor target not open.");
2220
2221 p = current_monitor->prompt;
2222
2223 /* Send the command. Note that if no args were supplied, then we're
2224 just sending the monitor a newline, which is sometimes useful. */
2225
2226 monitor_printf ("%s\r", (command ? command : ""));
2227
2228 resp_len = monitor_expect_prompt (buf, sizeof buf);
2229
2230 fputs_unfiltered (buf, outbuf); /* Output the response */
2231 }
2232
2233 /* Convert hex digit A to a number. */
2234
2235 #if 0
2236 static int
2237 from_hex (int a)
2238 {
2239 if (a >= '0' && a <= '9')
2240 return a - '0';
2241 if (a >= 'a' && a <= 'f')
2242 return a - 'a' + 10;
2243 if (a >= 'A' && a <= 'F')
2244 return a - 'A' + 10;
2245
2246 error ("Reply contains invalid hex digit 0x%x", a);
2247 }
2248 #endif
2249
2250 char *
2251 monitor_get_dev_name (void)
2252 {
2253 return dev_name;
2254 }
2255
2256 static struct target_ops monitor_ops;
2257
2258 static void
2259 init_base_monitor_ops (void)
2260 {
2261 monitor_ops.to_shortname = NULL;
2262 monitor_ops.to_longname = NULL;
2263 monitor_ops.to_doc = NULL;
2264 monitor_ops.to_open = NULL;
2265 monitor_ops.to_close = monitor_close;
2266 monitor_ops.to_attach = NULL;
2267 monitor_ops.to_post_attach = NULL;
2268 monitor_ops.to_require_attach = NULL;
2269 monitor_ops.to_detach = monitor_detach;
2270 monitor_ops.to_require_detach = NULL;
2271 monitor_ops.to_resume = monitor_resume;
2272 monitor_ops.to_wait = monitor_wait;
2273 monitor_ops.to_post_wait = NULL;
2274 monitor_ops.to_fetch_registers = monitor_fetch_registers;
2275 monitor_ops.to_store_registers = monitor_store_registers;
2276 monitor_ops.to_prepare_to_store = monitor_prepare_to_store;
2277 monitor_ops.to_xfer_memory = monitor_xfer_memory;
2278 monitor_ops.to_files_info = monitor_files_info;
2279 monitor_ops.to_insert_breakpoint = monitor_insert_breakpoint;
2280 monitor_ops.to_remove_breakpoint = monitor_remove_breakpoint;
2281 monitor_ops.to_terminal_init = 0;
2282 monitor_ops.to_terminal_inferior = 0;
2283 monitor_ops.to_terminal_ours_for_output = 0;
2284 monitor_ops.to_terminal_ours = 0;
2285 monitor_ops.to_terminal_info = 0;
2286 monitor_ops.to_kill = monitor_kill;
2287 monitor_ops.to_load = monitor_load;
2288 monitor_ops.to_lookup_symbol = 0;
2289 monitor_ops.to_create_inferior = monitor_create_inferior;
2290 monitor_ops.to_post_startup_inferior = NULL;
2291 monitor_ops.to_acknowledge_created_inferior = NULL;
2292 monitor_ops.to_clone_and_follow_inferior = NULL;
2293 monitor_ops.to_post_follow_inferior_by_clone = NULL;
2294 monitor_ops.to_insert_fork_catchpoint = NULL;
2295 monitor_ops.to_remove_fork_catchpoint = NULL;
2296 monitor_ops.to_insert_vfork_catchpoint = NULL;
2297 monitor_ops.to_remove_vfork_catchpoint = NULL;
2298 monitor_ops.to_has_forked = NULL;
2299 monitor_ops.to_has_vforked = NULL;
2300 monitor_ops.to_can_follow_vfork_prior_to_exec = NULL;
2301 monitor_ops.to_post_follow_vfork = NULL;
2302 monitor_ops.to_insert_exec_catchpoint = NULL;
2303 monitor_ops.to_remove_exec_catchpoint = NULL;
2304 monitor_ops.to_has_execd = NULL;
2305 monitor_ops.to_reported_exec_events_per_exec_call = NULL;
2306 monitor_ops.to_has_exited = NULL;
2307 monitor_ops.to_mourn_inferior = monitor_mourn_inferior;
2308 monitor_ops.to_can_run = 0;
2309 monitor_ops.to_notice_signals = 0;
2310 monitor_ops.to_thread_alive = 0;
2311 monitor_ops.to_stop = monitor_stop;
2312 monitor_ops.to_rcmd = monitor_rcmd;
2313 monitor_ops.to_pid_to_exec_file = NULL;
2314 monitor_ops.to_core_file_to_sym_file = NULL;
2315 monitor_ops.to_stratum = process_stratum;
2316 monitor_ops.DONT_USE = 0;
2317 monitor_ops.to_has_all_memory = 1;
2318 monitor_ops.to_has_memory = 1;
2319 monitor_ops.to_has_stack = 1;
2320 monitor_ops.to_has_registers = 1;
2321 monitor_ops.to_has_execution = 1;
2322 monitor_ops.to_sections = 0;
2323 monitor_ops.to_sections_end = 0;
2324 monitor_ops.to_magic = OPS_MAGIC;
2325 } /* init_base_monitor_ops */
2326
2327 /* Init the target_ops structure pointed at by OPS */
2328
2329 void
2330 init_monitor_ops (struct target_ops *ops)
2331 {
2332 if (monitor_ops.to_magic != OPS_MAGIC)
2333 init_base_monitor_ops ();
2334
2335 memcpy (ops, &monitor_ops, sizeof monitor_ops);
2336 }
2337
2338 /* Define additional commands that are usually only used by monitors. */
2339
2340 void
2341 _initialize_remote_monitors (void)
2342 {
2343 init_base_monitor_ops ();
2344 add_show_from_set (add_set_cmd ("hash", no_class, var_boolean,
2345 (char *) &hashmark,
2346 "Set display of activity while downloading a file.\n\
2347 When enabled, a hashmark \'#\' is displayed.",
2348 &setlist),
2349 &showlist);
2350
2351 add_show_from_set
2352 (add_set_cmd ("monitor", no_class, var_zinteger,
2353 (char *) &monitor_debug_p,
2354 "Set debugging of remote monitor communication.\n\
2355 When enabled, communication between GDB and the remote monitor\n\
2356 is displayed.", &setdebuglist),
2357 &showdebuglist);
2358 }
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