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bd5635a1 | 1 | /* Low level Unix child interface to ptrace, for GDB when running under Unix. |
2b576293 C |
2 | Copyright 1988, 1989, 1990, 1991, 1992, 1993, 1994, 1995 |
3 | Free Software Foundation, Inc. | |
bd5635a1 RP |
4 | |
5 | This file is part of GDB. | |
6 | ||
b6de2014 | 7 | This program is free software; you can redistribute it and/or modify |
bd5635a1 | 8 | it under the terms of the GNU General Public License as published by |
b6de2014 JG |
9 | the Free Software Foundation; either version 2 of the License, or |
10 | (at your option) any later version. | |
bd5635a1 | 11 | |
b6de2014 | 12 | This program is distributed in the hope that it will be useful, |
bd5635a1 RP |
13 | but WITHOUT ANY WARRANTY; without even the implied warranty of |
14 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the | |
15 | GNU General Public License for more details. | |
16 | ||
17 | You should have received a copy of the GNU General Public License | |
b6de2014 JG |
18 | along with this program; if not, write to the Free Software |
19 | Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */ | |
bd5635a1 | 20 | |
bd5635a1 | 21 | #include "defs.h" |
bd5635a1 RP |
22 | #include "frame.h" |
23 | #include "inferior.h" | |
24 | #include "target.h" | |
2b576293 | 25 | #include "gdb_string.h" |
bd5635a1 RP |
26 | |
27 | #ifdef USG | |
28 | #include <sys/types.h> | |
29 | #endif | |
30 | ||
31 | #include <sys/param.h> | |
32 | #include <sys/dir.h> | |
33 | #include <signal.h> | |
34 | #include <sys/ioctl.h> | |
ef6f3a8b | 35 | |
0626f40d | 36 | #ifndef NO_PTRACE_H |
a0f9783e SG |
37 | #ifdef PTRACE_IN_WRONG_PLACE |
38 | #include <ptrace.h> | |
39 | #else | |
bd5635a1 | 40 | #include <sys/ptrace.h> |
8ffd75c8 | 41 | #endif |
0626f40d | 42 | #endif /* NO_PTRACE_H */ |
8ffd75c8 | 43 | |
bd5635a1 RP |
44 | #if !defined (PT_KILL) |
45 | #define PT_KILL 8 | |
5090e82c SG |
46 | #endif |
47 | ||
48 | #if !defined (PT_STEP) | |
bd5635a1 RP |
49 | #define PT_STEP 9 |
50 | #define PT_CONTINUE 7 | |
51 | #define PT_READ_U 3 | |
52 | #define PT_WRITE_U 6 | |
53 | #define PT_READ_I 1 | |
8ffd75c8 | 54 | #define PT_READ_D 2 |
bd5635a1 | 55 | #define PT_WRITE_I 4 |
8ffd75c8 | 56 | #define PT_WRITE_D 5 |
5090e82c | 57 | #endif /* No PT_STEP. */ |
bd5635a1 RP |
58 | |
59 | #ifndef PT_ATTACH | |
60 | #define PT_ATTACH PTRACE_ATTACH | |
61 | #endif | |
62 | #ifndef PT_DETACH | |
63 | #define PT_DETACH PTRACE_DETACH | |
64 | #endif | |
65 | ||
66 | #include "gdbcore.h" | |
ee0613d1 | 67 | #ifndef NO_SYS_FILE |
bd5635a1 | 68 | #include <sys/file.h> |
ee0613d1 | 69 | #endif |
5090e82c SG |
70 | #if 0 |
71 | /* Don't think this is used anymore. On the sequent (not sure whether it's | |
72 | dynix or ptx or both), it is included unconditionally by sys/user.h and | |
73 | not protected against multiple inclusion. */ | |
2b576293 | 74 | #include "gdb_stat.h" |
0626f40d JK |
75 | #endif |
76 | ||
44ff4c96 JG |
77 | #if !defined (FETCH_INFERIOR_REGISTERS) |
78 | #include <sys/user.h> /* Probably need to poke the user structure */ | |
79 | #if defined (KERNEL_U_ADDR_BSD) | |
80 | #include <a.out.h> /* For struct nlist */ | |
81 | #endif /* KERNEL_U_ADDR_BSD. */ | |
82 | #endif /* !FETCH_INFERIOR_REGISTERS */ | |
e676a15f | 83 | |
bd5635a1 RP |
84 | \f |
85 | /* This function simply calls ptrace with the given arguments. | |
86 | It exists so that all calls to ptrace are isolated in this | |
87 | machine-dependent file. */ | |
88 | int | |
89 | call_ptrace (request, pid, addr, data) | |
e676a15f FF |
90 | int request, pid; |
91 | PTRACE_ARG3_TYPE addr; | |
92 | int data; | |
bd5635a1 | 93 | { |
5090e82c SG |
94 | return ptrace (request, pid, addr, data |
95 | #if defined (FIVE_ARG_PTRACE) | |
96 | /* Deal with HPUX 8.0 braindamage. We never use the | |
97 | calls which require the fifth argument. */ | |
98 | , 0 | |
99 | #endif | |
100 | ); | |
bd5635a1 RP |
101 | } |
102 | ||
5090e82c | 103 | #if defined (DEBUG_PTRACE) || defined (FIVE_ARG_PTRACE) |
bd5635a1 RP |
104 | /* For the rest of the file, use an extra level of indirection */ |
105 | /* This lets us breakpoint usefully on call_ptrace. */ | |
106 | #define ptrace call_ptrace | |
107 | #endif | |
108 | ||
bd5635a1 | 109 | void |
c9c23412 | 110 | kill_inferior () |
bd5635a1 RP |
111 | { |
112 | if (inferior_pid == 0) | |
113 | return; | |
c9c23412 | 114 | /* ptrace PT_KILL only works if process is stopped!!! So stop it with |
2b576293 C |
115 | a real signal first, if we can. FIXME: This is bogus. When the inferior |
116 | is not stopped, GDB should just be waiting for it. Either the following | |
117 | line is unecessary, or there is some problem elsewhere in GDB which | |
118 | causes us to get here when the inferior is not stopped. */ | |
c9c23412 | 119 | kill (inferior_pid, SIGKILL); |
e676a15f | 120 | ptrace (PT_KILL, inferior_pid, (PTRACE_ARG3_TYPE) 0, 0); |
bd5635a1 | 121 | wait ((int *)0); |
bd5635a1 RP |
122 | target_mourn_inferior (); |
123 | } | |
124 | ||
2b576293 C |
125 | #ifndef CHILD_RESUME |
126 | ||
bd5635a1 RP |
127 | /* Resume execution of the inferior process. |
128 | If STEP is nonzero, single-step it. | |
129 | If SIGNAL is nonzero, give it that signal. */ | |
130 | ||
131 | void | |
5090e82c SG |
132 | child_resume (pid, step, signal) |
133 | int pid; | |
bd5635a1 | 134 | int step; |
918fea3e | 135 | enum target_signal signal; |
bd5635a1 RP |
136 | { |
137 | errno = 0; | |
d11c44f1 | 138 | |
5090e82c | 139 | if (pid == -1) |
918fea3e | 140 | /* Resume all threads. */ |
918fea3e JL |
141 | /* I think this only gets used in the non-threaded case, where "resume |
142 | all threads" and "resume inferior_pid" are the same. */ | |
5090e82c | 143 | pid = inferior_pid; |
5090e82c | 144 | |
e676a15f FF |
145 | /* An address of (PTRACE_ARG3_TYPE)1 tells ptrace to continue from where |
146 | it was. (If GDB wanted it to start some other way, we have already | |
997cc2c0 JG |
147 | written a new PC value to the child.) |
148 | ||
149 | If this system does not support PT_STEP, a higher level function will | |
150 | have called single_step() to transmute the step request into a | |
151 | continue request (by setting breakpoints on all possible successor | |
152 | instructions), so we don't have to worry about that here. */ | |
d11c44f1 | 153 | |
bd5635a1 | 154 | if (step) |
918fea3e JL |
155 | ptrace (PT_STEP, pid, (PTRACE_ARG3_TYPE) 1, |
156 | target_signal_to_host (signal)); | |
bd5635a1 | 157 | else |
918fea3e JL |
158 | ptrace (PT_CONTINUE, pid, (PTRACE_ARG3_TYPE) 1, |
159 | target_signal_to_host (signal)); | |
d11c44f1 | 160 | |
bd5635a1 RP |
161 | if (errno) |
162 | perror_with_name ("ptrace"); | |
163 | } | |
2b576293 C |
164 | #endif /* CHILD_RESUME */ |
165 | ||
bd5635a1 RP |
166 | \f |
167 | #ifdef ATTACH_DETACH | |
bd5635a1 RP |
168 | /* Start debugging the process whose number is PID. */ |
169 | int | |
170 | attach (pid) | |
171 | int pid; | |
172 | { | |
173 | errno = 0; | |
e676a15f | 174 | ptrace (PT_ATTACH, pid, (PTRACE_ARG3_TYPE) 0, 0); |
bd5635a1 RP |
175 | if (errno) |
176 | perror_with_name ("ptrace"); | |
177 | attach_flag = 1; | |
178 | return pid; | |
179 | } | |
180 | ||
181 | /* Stop debugging the process whose number is PID | |
182 | and continue it with signal number SIGNAL. | |
183 | SIGNAL = 0 means just continue it. */ | |
184 | ||
185 | void | |
186 | detach (signal) | |
187 | int signal; | |
188 | { | |
189 | errno = 0; | |
e676a15f | 190 | ptrace (PT_DETACH, inferior_pid, (PTRACE_ARG3_TYPE) 1, signal); |
bd5635a1 RP |
191 | if (errno) |
192 | perror_with_name ("ptrace"); | |
193 | attach_flag = 0; | |
194 | } | |
195 | #endif /* ATTACH_DETACH */ | |
196 | \f | |
5090e82c SG |
197 | /* Default the type of the ptrace transfer to int. */ |
198 | #ifndef PTRACE_XFER_TYPE | |
199 | #define PTRACE_XFER_TYPE int | |
200 | #endif | |
bd5635a1 RP |
201 | |
202 | /* KERNEL_U_ADDR is the amount to subtract from u.u_ar0 | |
203 | to get the offset in the core file of the register values. */ | |
5090e82c | 204 | #if defined (KERNEL_U_ADDR_BSD) && !defined (FETCH_INFERIOR_REGISTERS) |
bd5635a1 RP |
205 | /* Get kernel_u_addr using BSD-style nlist(). */ |
206 | CORE_ADDR kernel_u_addr; | |
5090e82c | 207 | #endif /* KERNEL_U_ADDR_BSD. */ |
bd5635a1 RP |
208 | |
209 | void | |
210 | _initialize_kernel_u_addr () | |
211 | { | |
5090e82c | 212 | #if defined (KERNEL_U_ADDR_BSD) && !defined (FETCH_INFERIOR_REGISTERS) |
bd5635a1 RP |
213 | struct nlist names[2]; |
214 | ||
215 | names[0].n_un.n_name = "_u"; | |
216 | names[1].n_un.n_name = NULL; | |
217 | if (nlist ("/vmunix", names) == 0) | |
218 | kernel_u_addr = names[0].n_value; | |
219 | else | |
220 | fatal ("Unable to get kernel u area address."); | |
bd5635a1 | 221 | #endif /* KERNEL_U_ADDR_BSD. */ |
bd5635a1 | 222 | } |
5090e82c SG |
223 | |
224 | #if !defined (FETCH_INFERIOR_REGISTERS) | |
bd5635a1 RP |
225 | |
226 | #if !defined (offsetof) | |
227 | #define offsetof(TYPE, MEMBER) ((unsigned long) &((TYPE *)0)->MEMBER) | |
228 | #endif | |
229 | ||
230 | /* U_REGS_OFFSET is the offset of the registers within the u area. */ | |
231 | #if !defined (U_REGS_OFFSET) | |
232 | #define U_REGS_OFFSET \ | |
233 | ptrace (PT_READ_U, inferior_pid, \ | |
e676a15f FF |
234 | (PTRACE_ARG3_TYPE) (offsetof (struct user, u_ar0)), 0) \ |
235 | - KERNEL_U_ADDR | |
bd5635a1 RP |
236 | #endif |
237 | ||
44ff4c96 JG |
238 | /* Registers we shouldn't try to fetch. */ |
239 | #if !defined (CANNOT_FETCH_REGISTER) | |
240 | #define CANNOT_FETCH_REGISTER(regno) 0 | |
241 | #endif | |
242 | ||
bd5635a1 | 243 | /* Fetch one register. */ |
44ff4c96 | 244 | |
bd5635a1 RP |
245 | static void |
246 | fetch_register (regno) | |
247 | int regno; | |
248 | { | |
2b576293 C |
249 | /* This isn't really an address. But ptrace thinks of it as one. */ |
250 | CORE_ADDR regaddr; | |
bd5635a1 | 251 | char buf[MAX_REGISTER_RAW_SIZE]; |
44ff4c96 | 252 | char mess[128]; /* For messages */ |
bd5635a1 RP |
253 | register int i; |
254 | ||
255 | /* Offset of registers within the u area. */ | |
44ff4c96 JG |
256 | unsigned int offset; |
257 | ||
258 | if (CANNOT_FETCH_REGISTER (regno)) | |
259 | { | |
5090e82c | 260 | memset (buf, '\0', REGISTER_RAW_SIZE (regno)); /* Supply zeroes */ |
44ff4c96 JG |
261 | supply_register (regno, buf); |
262 | return; | |
263 | } | |
264 | ||
265 | offset = U_REGS_OFFSET; | |
bd5635a1 RP |
266 | |
267 | regaddr = register_addr (regno, offset); | |
5090e82c | 268 | for (i = 0; i < REGISTER_RAW_SIZE (regno); i += sizeof (PTRACE_XFER_TYPE)) |
bd5635a1 | 269 | { |
44ff4c96 | 270 | errno = 0; |
5090e82c SG |
271 | *(PTRACE_XFER_TYPE *) &buf[i] = ptrace (PT_READ_U, inferior_pid, |
272 | (PTRACE_ARG3_TYPE) regaddr, 0); | |
273 | regaddr += sizeof (PTRACE_XFER_TYPE); | |
44ff4c96 JG |
274 | if (errno != 0) |
275 | { | |
276 | sprintf (mess, "reading register %s (#%d)", reg_names[regno], regno); | |
277 | perror_with_name (mess); | |
278 | } | |
bd5635a1 RP |
279 | } |
280 | supply_register (regno, buf); | |
281 | } | |
282 | ||
44ff4c96 | 283 | |
5594d534 | 284 | /* Fetch all registers, or just one, from the child process. */ |
bd5635a1 | 285 | |
5594d534 | 286 | void |
bd5635a1 RP |
287 | fetch_inferior_registers (regno) |
288 | int regno; | |
289 | { | |
2b576293 C |
290 | int numregs; |
291 | ||
bd5635a1 | 292 | if (regno == -1) |
2b576293 C |
293 | { |
294 | numregs = ARCH_NUM_REGS; | |
295 | for (regno = 0; regno < numregs; regno++) | |
296 | fetch_register (regno); | |
297 | } | |
bd5635a1 RP |
298 | else |
299 | fetch_register (regno); | |
bd5635a1 RP |
300 | } |
301 | ||
302 | /* Registers we shouldn't try to store. */ | |
303 | #if !defined (CANNOT_STORE_REGISTER) | |
304 | #define CANNOT_STORE_REGISTER(regno) 0 | |
305 | #endif | |
306 | ||
307 | /* Store our register values back into the inferior. | |
308 | If REGNO is -1, do this for all registers. | |
309 | Otherwise, REGNO specifies which register (so we can save time). */ | |
310 | ||
e676a15f | 311 | void |
bd5635a1 RP |
312 | store_inferior_registers (regno) |
313 | int regno; | |
314 | { | |
2b576293 C |
315 | /* This isn't really an address. But ptrace thinks of it as one. */ |
316 | CORE_ADDR regaddr; | |
bd5635a1 | 317 | char buf[80]; |
2b576293 | 318 | register int i, numregs; |
bd5635a1 RP |
319 | |
320 | unsigned int offset = U_REGS_OFFSET; | |
321 | ||
322 | if (regno >= 0) | |
323 | { | |
324 | regaddr = register_addr (regno, offset); | |
5090e82c | 325 | for (i = 0; i < REGISTER_RAW_SIZE (regno); i += sizeof(PTRACE_XFER_TYPE)) |
bd5635a1 RP |
326 | { |
327 | errno = 0; | |
e676a15f | 328 | ptrace (PT_WRITE_U, inferior_pid, (PTRACE_ARG3_TYPE) regaddr, |
5090e82c | 329 | *(PTRACE_XFER_TYPE *) ®isters[REGISTER_BYTE (regno) + i]); |
bd5635a1 RP |
330 | if (errno != 0) |
331 | { | |
332 | sprintf (buf, "writing register number %d(%d)", regno, i); | |
333 | perror_with_name (buf); | |
bd5635a1 | 334 | } |
5090e82c | 335 | regaddr += sizeof(PTRACE_XFER_TYPE); |
bd5635a1 RP |
336 | } |
337 | } | |
338 | else | |
339 | { | |
2b576293 C |
340 | numregs = ARCH_NUM_REGS; |
341 | for (regno = 0; regno < numregs; regno++) | |
bd5635a1 RP |
342 | { |
343 | if (CANNOT_STORE_REGISTER (regno)) | |
344 | continue; | |
345 | regaddr = register_addr (regno, offset); | |
5090e82c | 346 | for (i = 0; i < REGISTER_RAW_SIZE (regno); i += sizeof(PTRACE_XFER_TYPE)) |
bd5635a1 RP |
347 | { |
348 | errno = 0; | |
e676a15f | 349 | ptrace (PT_WRITE_U, inferior_pid, (PTRACE_ARG3_TYPE) regaddr, |
5090e82c | 350 | *(PTRACE_XFER_TYPE *) ®isters[REGISTER_BYTE (regno) + i]); |
bd5635a1 RP |
351 | if (errno != 0) |
352 | { | |
353 | sprintf (buf, "writing register number %d(%d)", regno, i); | |
354 | perror_with_name (buf); | |
bd5635a1 | 355 | } |
5090e82c | 356 | regaddr += sizeof(PTRACE_XFER_TYPE); |
bd5635a1 RP |
357 | } |
358 | } | |
359 | } | |
bd5635a1 RP |
360 | } |
361 | #endif /* !defined (FETCH_INFERIOR_REGISTERS). */ | |
362 | \f | |
918fea3e JL |
363 | |
364 | #if !defined (CHILD_XFER_MEMORY) | |
bd5635a1 RP |
365 | /* NOTE! I tried using PTRACE_READDATA, etc., to read and write memory |
366 | in the NEW_SUN_PTRACE case. | |
367 | It ought to be straightforward. But it appears that writing did | |
368 | not write the data that I specified. I cannot understand where | |
369 | it got the data that it actually did write. */ | |
370 | ||
371 | /* Copy LEN bytes to or from inferior's memory starting at MEMADDR | |
372 | to debugger memory starting at MYADDR. Copy to inferior if | |
373 | WRITE is nonzero. | |
374 | ||
375 | Returns the length copied, which is either the LEN argument or zero. | |
376 | This xfer function does not do partial moves, since child_ops | |
377 | doesn't allow memory operations to cross below us in the target stack | |
378 | anyway. */ | |
379 | ||
380 | int | |
b6de2014 | 381 | child_xfer_memory (memaddr, myaddr, len, write, target) |
bd5635a1 RP |
382 | CORE_ADDR memaddr; |
383 | char *myaddr; | |
384 | int len; | |
385 | int write; | |
ee0613d1 | 386 | struct target_ops *target; /* ignored */ |
bd5635a1 RP |
387 | { |
388 | register int i; | |
389 | /* Round starting address down to longword boundary. */ | |
5090e82c | 390 | register CORE_ADDR addr = memaddr & - sizeof (PTRACE_XFER_TYPE); |
bd5635a1 RP |
391 | /* Round ending address up; get number of longwords that makes. */ |
392 | register int count | |
5090e82c SG |
393 | = (((memaddr + len) - addr) + sizeof (PTRACE_XFER_TYPE) - 1) |
394 | / sizeof (PTRACE_XFER_TYPE); | |
bd5635a1 | 395 | /* Allocate buffer of that many longwords. */ |
5090e82c SG |
396 | register PTRACE_XFER_TYPE *buffer |
397 | = (PTRACE_XFER_TYPE *) alloca (count * sizeof (PTRACE_XFER_TYPE)); | |
bd5635a1 RP |
398 | |
399 | if (write) | |
400 | { | |
401 | /* Fill start and end extra bytes of buffer with existing memory data. */ | |
402 | ||
5090e82c | 403 | if (addr != memaddr || len < (int) sizeof (PTRACE_XFER_TYPE)) { |
bd5635a1 | 404 | /* Need part of initial word -- fetch it. */ |
e676a15f FF |
405 | buffer[0] = ptrace (PT_READ_I, inferior_pid, (PTRACE_ARG3_TYPE) addr, |
406 | 0); | |
bd5635a1 RP |
407 | } |
408 | ||
409 | if (count > 1) /* FIXME, avoid if even boundary */ | |
410 | { | |
411 | buffer[count - 1] | |
412 | = ptrace (PT_READ_I, inferior_pid, | |
5090e82c SG |
413 | ((PTRACE_ARG3_TYPE) |
414 | (addr + (count - 1) * sizeof (PTRACE_XFER_TYPE))), | |
e676a15f | 415 | 0); |
bd5635a1 RP |
416 | } |
417 | ||
418 | /* Copy data to be written over corresponding part of buffer */ | |
419 | ||
5090e82c SG |
420 | memcpy ((char *) buffer + (memaddr & (sizeof (PTRACE_XFER_TYPE) - 1)), |
421 | myaddr, | |
422 | len); | |
bd5635a1 RP |
423 | |
424 | /* Write the entire buffer. */ | |
425 | ||
5090e82c | 426 | for (i = 0; i < count; i++, addr += sizeof (PTRACE_XFER_TYPE)) |
bd5635a1 RP |
427 | { |
428 | errno = 0; | |
e676a15f FF |
429 | ptrace (PT_WRITE_D, inferior_pid, (PTRACE_ARG3_TYPE) addr, |
430 | buffer[i]); | |
bd5635a1 RP |
431 | if (errno) |
432 | { | |
433 | /* Using the appropriate one (I or D) is necessary for | |
434 | Gould NP1, at least. */ | |
435 | errno = 0; | |
e676a15f FF |
436 | ptrace (PT_WRITE_I, inferior_pid, (PTRACE_ARG3_TYPE) addr, |
437 | buffer[i]); | |
bd5635a1 RP |
438 | } |
439 | if (errno) | |
440 | return 0; | |
441 | } | |
442 | } | |
443 | else | |
444 | { | |
445 | /* Read all the longwords */ | |
5090e82c | 446 | for (i = 0; i < count; i++, addr += sizeof (PTRACE_XFER_TYPE)) |
bd5635a1 RP |
447 | { |
448 | errno = 0; | |
e676a15f FF |
449 | buffer[i] = ptrace (PT_READ_I, inferior_pid, |
450 | (PTRACE_ARG3_TYPE) addr, 0); | |
bd5635a1 RP |
451 | if (errno) |
452 | return 0; | |
453 | QUIT; | |
454 | } | |
455 | ||
456 | /* Copy appropriate bytes out of the buffer. */ | |
5090e82c SG |
457 | memcpy (myaddr, |
458 | (char *) buffer + (memaddr & (sizeof (PTRACE_XFER_TYPE) - 1)), | |
459 | len); | |
bd5635a1 RP |
460 | } |
461 | return len; | |
462 | } | |
918fea3e | 463 | #endif /* !defined (CHILD_XFER_MEMORY). */ |