kgdb_stub.c revision 1.10 1 1.10 lukem /* $NetBSD: kgdb_stub.c,v 1.10 2001/11/12 15:25:19 lukem Exp $ */
2 1.1 gwr
3 1.1 gwr /*
4 1.1 gwr * Copyright (c) 1990, 1993
5 1.1 gwr * The Regents of the University of California. All rights reserved.
6 1.1 gwr *
7 1.1 gwr * This software was developed by the Computer Systems Engineering group
8 1.1 gwr * at Lawrence Berkeley Laboratory under DARPA contract BG 91-66 and
9 1.1 gwr * contributed to Berkeley.
10 1.1 gwr *
11 1.1 gwr * All advertising materials mentioning features or use of this software
12 1.1 gwr * must display the following acknowledgement:
13 1.1 gwr * This product includes software developed by the University of
14 1.1 gwr * California, Lawrence Berkeley Laboratories.
15 1.1 gwr *
16 1.1 gwr * Redistribution and use in source and binary forms, with or without
17 1.1 gwr * modification, are permitted provided that the following conditions
18 1.1 gwr * are met:
19 1.1 gwr * 1. Redistributions of source code must retain the above copyright
20 1.1 gwr * notice, this list of conditions and the following disclaimer.
21 1.1 gwr * 2. Redistributions in binary form must reproduce the above copyright
22 1.1 gwr * notice, this list of conditions and the following disclaimer in the
23 1.1 gwr * documentation and/or other materials provided with the distribution.
24 1.1 gwr * 3. All advertising materials mentioning features or use of this software
25 1.1 gwr * must display the following acknowledgement:
26 1.1 gwr * This product includes software developed by the University of
27 1.1 gwr * California, Berkeley and its contributors.
28 1.1 gwr * 4. Neither the name of the University nor the names of its contributors
29 1.1 gwr * may be used to endorse or promote products derived from this software
30 1.1 gwr * without specific prior written permission.
31 1.1 gwr *
32 1.1 gwr * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
33 1.1 gwr * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
34 1.1 gwr * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
35 1.1 gwr * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
36 1.1 gwr * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
37 1.1 gwr * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
38 1.1 gwr * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
39 1.1 gwr * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
40 1.1 gwr * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
41 1.1 gwr * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
42 1.1 gwr * SUCH DAMAGE.
43 1.1 gwr *
44 1.1 gwr * @(#)kgdb_stub.c 8.4 (Berkeley) 1/12/94
45 1.1 gwr */
46 1.1 gwr
47 1.1 gwr /*
48 1.1 gwr * "Stub" to allow remote cpu to debug over a serial line using gdb.
49 1.1 gwr */
50 1.10 lukem
51 1.10 lukem #include <sys/cdefs.h>
52 1.10 lukem __KERNEL_RCSID(0, "$NetBSD: kgdb_stub.c,v 1.10 2001/11/12 15:25:19 lukem Exp $");
53 1.1 gwr
54 1.1 gwr #include <sys/param.h>
55 1.1 gwr #include <sys/systm.h>
56 1.1 gwr #include <sys/kgdb.h>
57 1.1 gwr
58 1.1 gwr /* #define DEBUG_KGDB XXX */
59 1.1 gwr
60 1.1 gwr /* XXX: Maybe these should be in the MD files? */
61 1.1 gwr #ifndef KGDBDEV
62 1.1 gwr #define KGDBDEV -1
63 1.1 gwr #endif
64 1.1 gwr #ifndef KGDBRATE
65 1.1 gwr #define KGDBRATE 19200
66 1.1 gwr #endif
67 1.1 gwr
68 1.1 gwr int kgdb_dev = KGDBDEV; /* remote debugging device (-1 if none) */
69 1.1 gwr int kgdb_rate = KGDBRATE; /* remote debugging baud rate */
70 1.1 gwr int kgdb_active = 0; /* remote debugging active if != 0 */
71 1.1 gwr int kgdb_debug_init = 0; /* != 0 waits for remote at system init */
72 1.1 gwr int kgdb_debug_panic = 0; /* != 0 waits for remote on panic */
73 1.1 gwr label_t *kgdb_recover = 0;
74 1.1 gwr
75 1.1 gwr static void kgdb_copy __P((void *, void *, int));
76 1.1 gwr /* static void kgdb_zero __P((void *, int)); */
77 1.1 gwr static void kgdb_send __P((u_char *));
78 1.1 gwr static int kgdb_recv __P((u_char *, int));
79 1.1 gwr static int digit2i __P((u_char));
80 1.1 gwr static u_char i2digit __P((int));
81 1.1 gwr static void mem2hex __P((void *, void *, int));
82 1.1 gwr static u_char *hex2mem __P((void *, u_char *, int));
83 1.5 eeh static vaddr_t hex2i __P((u_char **));
84 1.1 gwr
85 1.1 gwr static int (*kgdb_getc) __P((void *));
86 1.1 gwr static void (*kgdb_putc) __P((void *, int));
87 1.1 gwr static void *kgdb_ioarg;
88 1.1 gwr
89 1.1 gwr static u_char buffer[KGDB_BUFLEN];
90 1.1 gwr static kgdb_reg_t gdb_regs[KGDB_NUMREGS];
91 1.1 gwr
92 1.1 gwr #define GETC() ((*kgdb_getc)(kgdb_ioarg))
93 1.1 gwr #define PUTC(c) ((*kgdb_putc)(kgdb_ioarg, c))
94 1.1 gwr
95 1.1 gwr /*
96 1.7 jeffs * db_trap_callback can be hooked by MD port code to handle special
97 1.7 jeffs * cases such as disabling hardware watchdogs while in kgdb. Name
98 1.7 jeffs * is shared with DDB.
99 1.7 jeffs */
100 1.7 jeffs void (*db_trap_callback)(int);
101 1.7 jeffs
102 1.7 jeffs /*
103 1.1 gwr * This little routine exists simply so that bcopy() can be debugged.
104 1.1 gwr */
105 1.1 gwr static void
106 1.1 gwr kgdb_copy(vsrc, vdst, len)
107 1.1 gwr void *vsrc, *vdst;
108 1.1 gwr int len;
109 1.1 gwr {
110 1.1 gwr char *src = vsrc;
111 1.1 gwr char *dst = vdst;
112 1.1 gwr
113 1.1 gwr while (--len >= 0)
114 1.1 gwr *dst++ = *src++;
115 1.1 gwr }
116 1.1 gwr
117 1.1 gwr #if 0
118 1.1 gwr /* ditto for bzero */
119 1.1 gwr static void
120 1.1 gwr kgdb_zero(vptr, len)
121 1.1 gwr void *vptr;
122 1.1 gwr int len;
123 1.1 gwr {
124 1.1 gwr char *ptr = vptr;
125 1.1 gwr
126 1.1 gwr while (--len >= 0)
127 1.1 gwr *ptr++ = (char) 0;
128 1.1 gwr }
129 1.1 gwr #endif
130 1.1 gwr
131 1.1 gwr /*
132 1.1 gwr * Convert a hex digit into an integer.
133 1.1 gwr * This returns -1 if the argument passed is no
134 1.1 gwr * valid hex digit.
135 1.1 gwr */
136 1.1 gwr static int
137 1.1 gwr digit2i(c)
138 1.1 gwr u_char c;
139 1.1 gwr {
140 1.1 gwr if (c >= '0' && c <= '9')
141 1.6 scottr return (c - '0');
142 1.1 gwr else if (c >= 'a' && c <= 'f')
143 1.6 scottr return (c - 'a' + 10);
144 1.1 gwr else if (c >= 'A' && c <= 'F')
145 1.1 gwr
146 1.6 scottr return (c - 'A' + 10);
147 1.1 gwr else
148 1.6 scottr return (-1);
149 1.1 gwr }
150 1.1 gwr
151 1.1 gwr /*
152 1.1 gwr * Convert the low 4 bits of an integer into
153 1.1 gwr * an hex digit.
154 1.1 gwr */
155 1.1 gwr static u_char
156 1.1 gwr i2digit(n)
157 1.1 gwr int n;
158 1.1 gwr {
159 1.6 scottr return ("0123456789abcdef"[n & 0x0f]);
160 1.1 gwr }
161 1.1 gwr
162 1.1 gwr /*
163 1.1 gwr * Convert a byte array into an hex string.
164 1.1 gwr */
165 1.1 gwr static void
166 1.1 gwr mem2hex(vdst, vsrc, len)
167 1.1 gwr void *vdst, *vsrc;
168 1.1 gwr int len;
169 1.1 gwr {
170 1.1 gwr u_char *dst = vdst;
171 1.1 gwr u_char *src = vsrc;
172 1.1 gwr
173 1.1 gwr while (len--) {
174 1.1 gwr *dst++ = i2digit(*src >> 4);
175 1.1 gwr *dst++ = i2digit(*src++);
176 1.1 gwr }
177 1.1 gwr *dst = '\0';
178 1.1 gwr }
179 1.1 gwr
180 1.1 gwr /*
181 1.1 gwr * Convert an hex string into a byte array.
182 1.1 gwr * This returns a pointer to the character following
183 1.1 gwr * the last valid hex digit. If the string ends in
184 1.1 gwr * the middle of a byte, NULL is returned.
185 1.1 gwr */
186 1.1 gwr static u_char *
187 1.1 gwr hex2mem(vdst, src, maxlen)
188 1.1 gwr void *vdst;
189 1.1 gwr u_char *src;
190 1.1 gwr int maxlen;
191 1.1 gwr {
192 1.1 gwr u_char *dst = vdst;
193 1.1 gwr int msb, lsb;
194 1.1 gwr
195 1.1 gwr while (*src && maxlen--) {
196 1.1 gwr msb = digit2i(*src++);
197 1.1 gwr if (msb < 0)
198 1.6 scottr return (src - 1);
199 1.1 gwr lsb = digit2i(*src++);
200 1.1 gwr if (lsb < 0)
201 1.6 scottr return (NULL);
202 1.1 gwr *dst++ = (msb << 4) | lsb;
203 1.1 gwr }
204 1.6 scottr return (src);
205 1.1 gwr }
206 1.1 gwr
207 1.1 gwr /*
208 1.1 gwr * Convert an hex string into an integer.
209 1.1 gwr * This returns a pointer to the character following
210 1.1 gwr * the last valid hex digit.
211 1.1 gwr */
212 1.5 eeh static vaddr_t
213 1.1 gwr hex2i(srcp)
214 1.1 gwr u_char **srcp;
215 1.1 gwr {
216 1.1 gwr char *src = *srcp;
217 1.5 eeh vaddr_t r = 0;
218 1.1 gwr int nibble;
219 1.1 gwr
220 1.1 gwr while ((nibble = digit2i(*src)) >= 0) {
221 1.1 gwr r *= 16;
222 1.1 gwr r += nibble;
223 1.1 gwr src++;
224 1.1 gwr }
225 1.1 gwr *srcp = src;
226 1.6 scottr return (r);
227 1.1 gwr }
228 1.1 gwr
229 1.1 gwr /*
230 1.1 gwr * Send a packet.
231 1.1 gwr */
232 1.1 gwr static void
233 1.1 gwr kgdb_send(bp)
234 1.1 gwr u_char *bp;
235 1.1 gwr {
236 1.1 gwr u_char *p;
237 1.1 gwr u_char csum, c;
238 1.1 gwr
239 1.1 gwr #ifdef DEBUG_KGDB
240 1.1 gwr printf("kgdb_send: %s\n", bp);
241 1.1 gwr #endif
242 1.1 gwr do {
243 1.1 gwr p = bp;
244 1.1 gwr PUTC(KGDB_START);
245 1.1 gwr for (csum = 0; (c = *p); p++) {
246 1.1 gwr PUTC(c);
247 1.1 gwr csum += c;
248 1.1 gwr }
249 1.1 gwr PUTC(KGDB_END);
250 1.1 gwr PUTC(i2digit(csum >> 4));
251 1.1 gwr PUTC(i2digit(csum));
252 1.1 gwr } while ((c = GETC() & 0x7f) == KGDB_BADP);
253 1.1 gwr }
254 1.1 gwr
255 1.1 gwr /*
256 1.1 gwr * Receive a packet.
257 1.1 gwr */
258 1.1 gwr static int
259 1.1 gwr kgdb_recv(bp, maxlen)
260 1.1 gwr u_char *bp;
261 1.1 gwr int maxlen;
262 1.1 gwr {
263 1.1 gwr u_char *p;
264 1.1 gwr int c, csum;
265 1.1 gwr int len;
266 1.1 gwr
267 1.1 gwr do {
268 1.1 gwr p = bp;
269 1.1 gwr csum = len = 0;
270 1.1 gwr while ((c = GETC()) != KGDB_START)
271 1.1 gwr ;
272 1.1 gwr
273 1.1 gwr while ((c = GETC()) != KGDB_END && len < maxlen) {
274 1.1 gwr c &= 0x7f;
275 1.1 gwr csum += c;
276 1.1 gwr *p++ = c;
277 1.1 gwr len++;
278 1.1 gwr }
279 1.1 gwr csum &= 0xff;
280 1.1 gwr *p = '\0';
281 1.1 gwr
282 1.1 gwr if (len >= maxlen) {
283 1.1 gwr PUTC(KGDB_BADP);
284 1.1 gwr continue;
285 1.1 gwr }
286 1.1 gwr
287 1.1 gwr csum -= digit2i(GETC()) * 16;
288 1.1 gwr csum -= digit2i(GETC());
289 1.1 gwr
290 1.1 gwr if (csum == 0) {
291 1.1 gwr PUTC(KGDB_GOODP);
292 1.1 gwr /* Sequence present? */
293 1.1 gwr if (bp[2] == ':') {
294 1.1 gwr PUTC(bp[0]);
295 1.1 gwr PUTC(bp[1]);
296 1.1 gwr len -= 3;
297 1.1 gwr kgdb_copy(bp + 3, bp, len);
298 1.1 gwr }
299 1.1 gwr break;
300 1.1 gwr }
301 1.1 gwr PUTC(KGDB_BADP);
302 1.1 gwr } while (1);
303 1.1 gwr #ifdef DEBUG_KGDB
304 1.1 gwr printf("kgdb_recv: %s\n", bp);
305 1.1 gwr #endif
306 1.6 scottr return (len);
307 1.1 gwr }
308 1.1 gwr
309 1.1 gwr /*
310 1.6 scottr * This is called by the appropriate tty driver.
311 1.1 gwr */
312 1.1 gwr void
313 1.1 gwr kgdb_attach(getfn, putfn, ioarg)
314 1.1 gwr int (*getfn) __P((void *));
315 1.1 gwr void (*putfn) __P((void *, int));
316 1.1 gwr void *ioarg;
317 1.1 gwr {
318 1.1 gwr kgdb_getc = getfn;
319 1.1 gwr kgdb_putc = putfn;
320 1.1 gwr kgdb_ioarg = ioarg;
321 1.1 gwr }
322 1.1 gwr
323 1.1 gwr /*
324 1.6 scottr * This function does all command processing for interfacing to
325 1.1 gwr * a remote gdb. Note that the error codes are ignored by gdb
326 1.1 gwr * at present, but might eventually become meaningful. (XXX)
327 1.1 gwr * It might makes sense to use POSIX errno values, because
328 1.1 gwr * that is what the gdb/remote.c functions want to return.
329 1.1 gwr */
330 1.1 gwr int
331 1.1 gwr kgdb_trap(type, regs)
332 1.1 gwr int type;
333 1.1 gwr db_regs_t *regs;
334 1.1 gwr {
335 1.1 gwr label_t jmpbuf;
336 1.5 eeh vaddr_t addr;
337 1.1 gwr size_t len;
338 1.1 gwr u_char *p;
339 1.1 gwr
340 1.1 gwr if (kgdb_dev < 0 || kgdb_getc == NULL) {
341 1.1 gwr /* not debugging */
342 1.1 gwr return (0);
343 1.1 gwr }
344 1.8 wdk
345 1.8 wdk db_clear_single_step(regs);
346 1.1 gwr
347 1.7 jeffs if (db_trap_callback) db_trap_callback(1);
348 1.7 jeffs
349 1.1 gwr /* Detect and recover from unexpected traps. */
350 1.1 gwr if (kgdb_recover != 0) {
351 1.1 gwr printf("kgdb: caught trap 0x%x at %p\n",
352 1.1 gwr type, (void*)PC_REGS(regs));
353 1.1 gwr kgdb_send("E0E"); /* 14==EFAULT */
354 1.1 gwr longjmp(kgdb_recover);
355 1.1 gwr }
356 1.1 gwr
357 1.1 gwr /*
358 1.2 gwr * The first entry to this function is normally through
359 1.2 gwr * a breakpoint trap in kgdb_connect(), in which case we
360 1.2 gwr * must advance past the breakpoint because gdb will not.
361 1.2 gwr *
362 1.2 gwr * Machines vary as to where they leave the PC after a
363 1.2 gwr * breakpoint trap. Those that leave the PC set to the
364 1.2 gwr * address of the trap instruction (i.e. pc532) will not
365 1.2 gwr * define FIXUP_PC_AFTER_BREAK(), and therefore will just
366 1.2 gwr * advance the PC. On machines that leave the PC set to
367 1.2 gwr * the instruction after the trap, FIXUP_PC_AFTER_BREAK
368 1.2 gwr * will be defined to back-up the PC, so that after the
369 1.2 gwr * "first-time" part of the if statement below has run,
370 1.2 gwr * the PC will be the same as it was on entry.
371 1.2 gwr *
372 1.1 gwr * On the first entry here, we expect that gdb is not yet
373 1.1 gwr * listening to us, so just enter the interaction loop.
374 1.2 gwr * After the debugger is "active" (connected) it will be
375 1.1 gwr * waiting for a "signaled" message from us.
376 1.1 gwr */
377 1.1 gwr if (kgdb_active == 0) {
378 1.1 gwr if (!IS_BREAKPOINT_TRAP(type, 0)) {
379 1.1 gwr /* No debugger active -- let trap handle this. */
380 1.7 jeffs if (db_trap_callback) db_trap_callback(0);
381 1.1 gwr return (0);
382 1.1 gwr }
383 1.2 gwr /* Make the PC point at the breakpoint... */
384 1.2 gwr #ifdef FIXUP_PC_AFTER_BREAK
385 1.2 gwr FIXUP_PC_AFTER_BREAK(regs);
386 1.2 gwr #endif
387 1.2 gwr /* ... and then advance past it. */
388 1.4 pk #ifdef PC_ADVANCE
389 1.4 pk PC_ADVANCE(regs);
390 1.4 pk #else
391 1.2 gwr PC_REGS(regs) += BKPT_SIZE;
392 1.4 pk #endif
393 1.1 gwr kgdb_active = 1;
394 1.1 gwr } else {
395 1.9 wiz /* Tell remote host that an exception has occurred. */
396 1.1 gwr sprintf(buffer, "S%02x", kgdb_signal(type));
397 1.1 gwr kgdb_send(buffer);
398 1.1 gwr }
399 1.1 gwr
400 1.1 gwr /* Stick frame regs into our reg cache. */
401 1.1 gwr kgdb_getregs(regs, gdb_regs);
402 1.1 gwr
403 1.1 gwr /*
404 1.1 gwr * Interact with gdb until it lets us go.
405 1.1 gwr * If we cause a trap, resume here.
406 1.1 gwr */
407 1.6 scottr (void)setjmp((kgdb_recover = &jmpbuf));
408 1.1 gwr for (;;) {
409 1.1 gwr kgdb_recv(buffer, sizeof(buffer));
410 1.1 gwr switch (buffer[0]) {
411 1.1 gwr
412 1.1 gwr default:
413 1.1 gwr /* Unknown command. */
414 1.1 gwr kgdb_send("");
415 1.1 gwr continue;
416 1.1 gwr
417 1.1 gwr case KGDB_SIGNAL:
418 1.1 gwr /*
419 1.1 gwr * if this command came from a running gdb,
420 1.1 gwr * answer it -- the other guy has no way of
421 1.1 gwr * knowing if we're in or out of this loop
422 1.1 gwr * when he issues a "remote-signal".
423 1.1 gwr */
424 1.1 gwr sprintf(buffer, "S%02x", kgdb_signal(type));
425 1.1 gwr kgdb_send(buffer);
426 1.1 gwr continue;
427 1.1 gwr
428 1.1 gwr case KGDB_REG_R:
429 1.1 gwr mem2hex(buffer, gdb_regs, sizeof(gdb_regs));
430 1.1 gwr kgdb_send(buffer);
431 1.1 gwr continue;
432 1.1 gwr
433 1.1 gwr case KGDB_REG_W:
434 1.1 gwr p = hex2mem(gdb_regs, buffer + 1, sizeof(gdb_regs));
435 1.1 gwr if (p == NULL || *p != '\0')
436 1.1 gwr kgdb_send("E01");
437 1.1 gwr else {
438 1.1 gwr kgdb_setregs(regs, gdb_regs);
439 1.1 gwr kgdb_send("OK");
440 1.1 gwr }
441 1.1 gwr continue;
442 1.1 gwr
443 1.1 gwr case KGDB_MEM_R:
444 1.1 gwr p = buffer + 1;
445 1.1 gwr addr = hex2i(&p);
446 1.1 gwr if (*p++ != ',') {
447 1.1 gwr kgdb_send("E02");
448 1.1 gwr continue;
449 1.1 gwr }
450 1.1 gwr len = hex2i(&p);
451 1.1 gwr if (*p != '\0') {
452 1.1 gwr kgdb_send("E03");
453 1.1 gwr continue;
454 1.1 gwr }
455 1.1 gwr if (len > sizeof(buffer) / 2) {
456 1.1 gwr kgdb_send("E04");
457 1.1 gwr continue;
458 1.1 gwr }
459 1.1 gwr if (kgdb_acc(addr, len) == 0) {
460 1.1 gwr kgdb_send("E05");
461 1.1 gwr continue;
462 1.1 gwr }
463 1.1 gwr db_read_bytes(addr, (size_t)len,
464 1.1 gwr (char *)buffer + sizeof(buffer) / 2);
465 1.1 gwr mem2hex(buffer, buffer + sizeof(buffer) / 2, len);
466 1.1 gwr kgdb_send(buffer);
467 1.1 gwr continue;
468 1.1 gwr
469 1.1 gwr case KGDB_MEM_W:
470 1.1 gwr p = buffer + 1;
471 1.1 gwr addr = hex2i(&p);
472 1.1 gwr if (*p++ != ',') {
473 1.1 gwr kgdb_send("E06");
474 1.1 gwr continue;
475 1.1 gwr }
476 1.1 gwr len = hex2i(&p);
477 1.1 gwr if (*p++ != ':') {
478 1.1 gwr kgdb_send("E07");
479 1.1 gwr continue;
480 1.1 gwr }
481 1.1 gwr if (len > (sizeof(buffer) - (p - buffer))) {
482 1.1 gwr kgdb_send("E08");
483 1.1 gwr continue;
484 1.1 gwr }
485 1.1 gwr p = hex2mem(buffer, p, sizeof(buffer));
486 1.1 gwr if (p == NULL) {
487 1.1 gwr kgdb_send("E09");
488 1.1 gwr continue;
489 1.1 gwr }
490 1.1 gwr if (kgdb_acc(addr, len) == 0) {
491 1.1 gwr kgdb_send("E0A");
492 1.1 gwr continue;
493 1.1 gwr }
494 1.1 gwr db_write_bytes(addr, (size_t)len, (char *)buffer);
495 1.1 gwr kgdb_send("OK");
496 1.1 gwr continue;
497 1.1 gwr
498 1.1 gwr case KGDB_KILL:
499 1.1 gwr kgdb_active = 0;
500 1.1 gwr printf("kgdb detached\n");
501 1.1 gwr db_clear_single_step(regs);
502 1.1 gwr goto out;
503 1.1 gwr
504 1.1 gwr case KGDB_CONT:
505 1.1 gwr if (buffer[1]) {
506 1.1 gwr p = buffer + 1;
507 1.1 gwr addr = hex2i(&p);
508 1.1 gwr if (*p) {
509 1.1 gwr kgdb_send("E0B");
510 1.1 gwr continue;
511 1.1 gwr }
512 1.1 gwr PC_REGS(regs) = addr;
513 1.1 gwr }
514 1.1 gwr db_clear_single_step(regs);
515 1.1 gwr goto out;
516 1.1 gwr
517 1.1 gwr case KGDB_STEP:
518 1.1 gwr if (buffer[1]) {
519 1.1 gwr p = buffer + 1;
520 1.1 gwr addr = hex2i(&p);
521 1.1 gwr if (*p) {
522 1.1 gwr kgdb_send("E0B");
523 1.1 gwr continue;
524 1.1 gwr }
525 1.1 gwr PC_REGS(regs) = addr;
526 1.1 gwr }
527 1.1 gwr db_set_single_step(regs);
528 1.1 gwr goto out;
529 1.1 gwr }
530 1.1 gwr }
531 1.1 gwr out:
532 1.7 jeffs if (db_trap_callback) db_trap_callback(0);
533 1.1 gwr kgdb_recover = 0;
534 1.1 gwr return (1);
535 1.1 gwr }
536