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MFC 303001: Add PTRACE_VFORK to trace vfork events.
[FreeBSD/FreeBSD.git] / sys / kern / sys_process.c
1 /*-
2  * Copyright (c) 1994, Sean Eric Fagan
3  * All rights reserved.
4  *
5  * Redistribution and use in source and binary forms, with or without
6  * modification, are permitted provided that the following conditions
7  * are met:
8  * 1. Redistributions of source code must retain the above copyright
9  *    notice, this list of conditions and the following disclaimer.
10  * 2. Redistributions in binary form must reproduce the above copyright
11  *    notice, this list of conditions and the following disclaimer in the
12  *    documentation and/or other materials provided with the distribution.
13  * 3. All advertising materials mentioning features or use of this software
14  *    must display the following acknowledgement:
15  *      This product includes software developed by Sean Eric Fagan.
16  * 4. The name of the author may not be used to endorse or promote products
17  *    derived from this software without specific prior written permission.
18  *
19  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
20  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
23  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29  * SUCH DAMAGE.
30  */
31
32 #include <sys/cdefs.h>
33 __FBSDID("$FreeBSD$");
34
35 #include "opt_compat.h"
36
37 #include <sys/param.h>
38 #include <sys/systm.h>
39 #include <sys/lock.h>
40 #include <sys/mutex.h>
41 #include <sys/syscallsubr.h>
42 #include <sys/sysent.h>
43 #include <sys/sysproto.h>
44 #include <sys/pioctl.h>
45 #include <sys/priv.h>
46 #include <sys/proc.h>
47 #include <sys/vnode.h>
48 #include <sys/ptrace.h>
49 #include <sys/rwlock.h>
50 #include <sys/sx.h>
51 #include <sys/malloc.h>
52 #include <sys/signalvar.h>
53
54 #include <machine/reg.h>
55
56 #include <security/audit/audit.h>
57
58 #include <vm/vm.h>
59 #include <vm/pmap.h>
60 #include <vm/vm_extern.h>
61 #include <vm/vm_map.h>
62 #include <vm/vm_kern.h>
63 #include <vm/vm_object.h>
64 #include <vm/vm_page.h>
65 #include <vm/vm_param.h>
66
67 #ifdef COMPAT_FREEBSD32
68 #include <sys/procfs.h>
69 #include <compat/freebsd32/freebsd32_signal.h>
70
71 struct ptrace_io_desc32 {
72         int             piod_op;
73         uint32_t        piod_offs;
74         uint32_t        piod_addr;
75         uint32_t        piod_len;
76 };
77
78 struct ptrace_vm_entry32 {
79         int             pve_entry;
80         int             pve_timestamp;
81         uint32_t        pve_start;
82         uint32_t        pve_end;
83         uint32_t        pve_offset;
84         u_int           pve_prot;
85         u_int           pve_pathlen;
86         int32_t         pve_fileid;
87         u_int           pve_fsid;
88         uint32_t        pve_path;
89 };
90
91 struct ptrace_lwpinfo32 {
92         lwpid_t pl_lwpid;       /* LWP described. */
93         int     pl_event;       /* Event that stopped the LWP. */
94         int     pl_flags;       /* LWP flags. */
95         sigset_t        pl_sigmask;     /* LWP signal mask */
96         sigset_t        pl_siglist;     /* LWP pending signal */
97         struct siginfo32 pl_siginfo;    /* siginfo for signal */
98         char    pl_tdname[MAXCOMLEN + 1];       /* LWP name. */
99         pid_t   pl_child_pid;           /* New child pid */
100         u_int           pl_syscall_code;
101         u_int           pl_syscall_narg;
102 };
103
104 #endif
105
106 /*
107  * Functions implemented using PROC_ACTION():
108  *
109  * proc_read_regs(proc, regs)
110  *      Get the current user-visible register set from the process
111  *      and copy it into the regs structure (<machine/reg.h>).
112  *      The process is stopped at the time read_regs is called.
113  *
114  * proc_write_regs(proc, regs)
115  *      Update the current register set from the passed in regs
116  *      structure.  Take care to avoid clobbering special CPU
117  *      registers or privileged bits in the PSL.
118  *      Depending on the architecture this may have fix-up work to do,
119  *      especially if the IAR or PCW are modified.
120  *      The process is stopped at the time write_regs is called.
121  *
122  * proc_read_fpregs, proc_write_fpregs
123  *      deal with the floating point register set, otherwise as above.
124  *
125  * proc_read_dbregs, proc_write_dbregs
126  *      deal with the processor debug register set, otherwise as above.
127  *
128  * proc_sstep(proc)
129  *      Arrange for the process to trap after executing a single instruction.
130  */
131
132 #define PROC_ACTION(action) do {                                        \
133         int error;                                                      \
134                                                                         \
135         PROC_LOCK_ASSERT(td->td_proc, MA_OWNED);                        \
136         if ((td->td_proc->p_flag & P_INMEM) == 0)                       \
137                 error = EIO;                                            \
138         else                                                            \
139                 error = (action);                                       \
140         return (error);                                                 \
141 } while(0)
142
143 int
144 proc_read_regs(struct thread *td, struct reg *regs)
145 {
146
147         PROC_ACTION(fill_regs(td, regs));
148 }
149
150 int
151 proc_write_regs(struct thread *td, struct reg *regs)
152 {
153
154         PROC_ACTION(set_regs(td, regs));
155 }
156
157 int
158 proc_read_dbregs(struct thread *td, struct dbreg *dbregs)
159 {
160
161         PROC_ACTION(fill_dbregs(td, dbregs));
162 }
163
164 int
165 proc_write_dbregs(struct thread *td, struct dbreg *dbregs)
166 {
167
168         PROC_ACTION(set_dbregs(td, dbregs));
169 }
170
171 /*
172  * Ptrace doesn't support fpregs at all, and there are no security holes
173  * or translations for fpregs, so we can just copy them.
174  */
175 int
176 proc_read_fpregs(struct thread *td, struct fpreg *fpregs)
177 {
178
179         PROC_ACTION(fill_fpregs(td, fpregs));
180 }
181
182 int
183 proc_write_fpregs(struct thread *td, struct fpreg *fpregs)
184 {
185
186         PROC_ACTION(set_fpregs(td, fpregs));
187 }
188
189 #ifdef COMPAT_FREEBSD32
190 /* For 32 bit binaries, we need to expose the 32 bit regs layouts. */
191 int
192 proc_read_regs32(struct thread *td, struct reg32 *regs32)
193 {
194
195         PROC_ACTION(fill_regs32(td, regs32));
196 }
197
198 int
199 proc_write_regs32(struct thread *td, struct reg32 *regs32)
200 {
201
202         PROC_ACTION(set_regs32(td, regs32));
203 }
204
205 int
206 proc_read_dbregs32(struct thread *td, struct dbreg32 *dbregs32)
207 {
208
209         PROC_ACTION(fill_dbregs32(td, dbregs32));
210 }
211
212 int
213 proc_write_dbregs32(struct thread *td, struct dbreg32 *dbregs32)
214 {
215
216         PROC_ACTION(set_dbregs32(td, dbregs32));
217 }
218
219 int
220 proc_read_fpregs32(struct thread *td, struct fpreg32 *fpregs32)
221 {
222
223         PROC_ACTION(fill_fpregs32(td, fpregs32));
224 }
225
226 int
227 proc_write_fpregs32(struct thread *td, struct fpreg32 *fpregs32)
228 {
229
230         PROC_ACTION(set_fpregs32(td, fpregs32));
231 }
232 #endif
233
234 int
235 proc_sstep(struct thread *td)
236 {
237
238         PROC_ACTION(ptrace_single_step(td));
239 }
240
241 int
242 proc_rwmem(struct proc *p, struct uio *uio)
243 {
244         vm_map_t map;
245         vm_offset_t pageno;             /* page number */
246         vm_prot_t reqprot;
247         int error, fault_flags, page_offset, writing;
248
249         /*
250          * Assert that someone has locked this vmspace.  (Should be
251          * curthread but we can't assert that.)  This keeps the process
252          * from exiting out from under us until this operation completes.
253          */
254         PROC_ASSERT_HELD(p);
255         PROC_LOCK_ASSERT(p, MA_NOTOWNED);
256
257         /*
258          * The map we want...
259          */
260         map = &p->p_vmspace->vm_map;
261
262         /*
263          * If we are writing, then we request vm_fault() to create a private
264          * copy of each page.  Since these copies will not be writeable by the
265          * process, we must explicity request that they be dirtied.
266          */
267         writing = uio->uio_rw == UIO_WRITE;
268         reqprot = writing ? VM_PROT_COPY | VM_PROT_READ : VM_PROT_READ;
269         fault_flags = writing ? VM_FAULT_DIRTY : VM_FAULT_NORMAL;
270
271         /*
272          * Only map in one page at a time.  We don't have to, but it
273          * makes things easier.  This way is trivial - right?
274          */
275         do {
276                 vm_offset_t uva;
277                 u_int len;
278                 vm_page_t m;
279
280                 uva = (vm_offset_t)uio->uio_offset;
281
282                 /*
283                  * Get the page number of this segment.
284                  */
285                 pageno = trunc_page(uva);
286                 page_offset = uva - pageno;
287
288                 /*
289                  * How many bytes to copy
290                  */
291                 len = min(PAGE_SIZE - page_offset, uio->uio_resid);
292
293                 /*
294                  * Fault and hold the page on behalf of the process.
295                  */
296                 error = vm_fault_hold(map, pageno, reqprot, fault_flags, &m);
297                 if (error != KERN_SUCCESS) {
298                         if (error == KERN_RESOURCE_SHORTAGE)
299                                 error = ENOMEM;
300                         else
301                                 error = EFAULT;
302                         break;
303                 }
304
305                 /*
306                  * Now do the i/o move.
307                  */
308                 error = uiomove_fromphys(&m, page_offset, len, uio);
309
310                 /* Make the I-cache coherent for breakpoints. */
311                 if (writing && error == 0) {
312                         vm_map_lock_read(map);
313                         if (vm_map_check_protection(map, pageno, pageno +
314                             PAGE_SIZE, VM_PROT_EXECUTE))
315                                 vm_sync_icache(map, uva, len);
316                         vm_map_unlock_read(map);
317                 }
318
319                 /*
320                  * Release the page.
321                  */
322                 vm_page_lock(m);
323                 vm_page_unhold(m);
324                 vm_page_unlock(m);
325
326         } while (error == 0 && uio->uio_resid > 0);
327
328         return (error);
329 }
330
331 static ssize_t
332 proc_iop(struct thread *td, struct proc *p, vm_offset_t va, void *buf,
333     size_t len, enum uio_rw rw)
334 {
335         struct iovec iov;
336         struct uio uio;
337         ssize_t slen;
338         int error;
339
340         MPASS(len < SSIZE_MAX);
341         slen = (ssize_t)len;
342
343         iov.iov_base = (caddr_t)buf;
344         iov.iov_len = len;
345         uio.uio_iov = &iov;
346         uio.uio_iovcnt = 1;
347         uio.uio_offset = va;
348         uio.uio_resid = slen;
349         uio.uio_segflg = UIO_SYSSPACE;
350         uio.uio_rw = rw;
351         uio.uio_td = td;
352         error = proc_rwmem(p, &uio);
353         if (uio.uio_resid == slen)
354                 return (-1);
355         return (slen - uio.uio_resid);
356 }
357
358 ssize_t
359 proc_readmem(struct thread *td, struct proc *p, vm_offset_t va, void *buf,
360     size_t len)
361 {
362
363         return (proc_iop(td, p, va, buf, len, UIO_READ));
364 }
365
366 ssize_t
367 proc_writemem(struct thread *td, struct proc *p, vm_offset_t va, void *buf,
368     size_t len)
369 {
370
371         return (proc_iop(td, p, va, buf, len, UIO_WRITE));
372 }
373
374 static int
375 ptrace_vm_entry(struct thread *td, struct proc *p, struct ptrace_vm_entry *pve)
376 {
377         struct vattr vattr;
378         vm_map_t map;
379         vm_map_entry_t entry;
380         vm_object_t obj, tobj, lobj;
381         struct vmspace *vm;
382         struct vnode *vp;
383         char *freepath, *fullpath;
384         u_int pathlen;
385         int error, index;
386
387         error = 0;
388         obj = NULL;
389
390         vm = vmspace_acquire_ref(p);
391         map = &vm->vm_map;
392         vm_map_lock_read(map);
393
394         do {
395                 entry = map->header.next;
396                 index = 0;
397                 while (index < pve->pve_entry && entry != &map->header) {
398                         entry = entry->next;
399                         index++;
400                 }
401                 if (index != pve->pve_entry) {
402                         error = EINVAL;
403                         break;
404                 }
405                 while (entry != &map->header &&
406                     (entry->eflags & MAP_ENTRY_IS_SUB_MAP) != 0) {
407                         entry = entry->next;
408                         index++;
409                 }
410                 if (entry == &map->header) {
411                         error = ENOENT;
412                         break;
413                 }
414
415                 /* We got an entry. */
416                 pve->pve_entry = index + 1;
417                 pve->pve_timestamp = map->timestamp;
418                 pve->pve_start = entry->start;
419                 pve->pve_end = entry->end - 1;
420                 pve->pve_offset = entry->offset;
421                 pve->pve_prot = entry->protection;
422
423                 /* Backing object's path needed? */
424                 if (pve->pve_pathlen == 0)
425                         break;
426
427                 pathlen = pve->pve_pathlen;
428                 pve->pve_pathlen = 0;
429
430                 obj = entry->object.vm_object;
431                 if (obj != NULL)
432                         VM_OBJECT_RLOCK(obj);
433         } while (0);
434
435         vm_map_unlock_read(map);
436
437         pve->pve_fsid = VNOVAL;
438         pve->pve_fileid = VNOVAL;
439
440         if (error == 0 && obj != NULL) {
441                 lobj = obj;
442                 for (tobj = obj; tobj != NULL; tobj = tobj->backing_object) {
443                         if (tobj != obj)
444                                 VM_OBJECT_RLOCK(tobj);
445                         if (lobj != obj)
446                                 VM_OBJECT_RUNLOCK(lobj);
447                         lobj = tobj;
448                         pve->pve_offset += tobj->backing_object_offset;
449                 }
450                 vp = vm_object_vnode(lobj);
451                 if (vp != NULL)
452                         vref(vp);
453                 if (lobj != obj)
454                         VM_OBJECT_RUNLOCK(lobj);
455                 VM_OBJECT_RUNLOCK(obj);
456
457                 if (vp != NULL) {
458                         freepath = NULL;
459                         fullpath = NULL;
460                         vn_fullpath(td, vp, &fullpath, &freepath);
461                         vn_lock(vp, LK_SHARED | LK_RETRY);
462                         if (VOP_GETATTR(vp, &vattr, td->td_ucred) == 0) {
463                                 pve->pve_fileid = vattr.va_fileid;
464                                 pve->pve_fsid = vattr.va_fsid;
465                         }
466                         vput(vp);
467
468                         if (fullpath != NULL) {
469                                 pve->pve_pathlen = strlen(fullpath) + 1;
470                                 if (pve->pve_pathlen <= pathlen) {
471                                         error = copyout(fullpath, pve->pve_path,
472                                             pve->pve_pathlen);
473                                 } else
474                                         error = ENAMETOOLONG;
475                         }
476                         if (freepath != NULL)
477                                 free(freepath, M_TEMP);
478                 }
479         }
480         vmspace_free(vm);
481         if (error == 0)
482                 CTR3(KTR_PTRACE, "PT_VM_ENTRY: pid %d, entry %d, start %p",
483                     p->p_pid, pve->pve_entry, pve->pve_start);
484
485         return (error);
486 }
487
488 #ifdef COMPAT_FREEBSD32
489 static int
490 ptrace_vm_entry32(struct thread *td, struct proc *p,
491     struct ptrace_vm_entry32 *pve32)
492 {
493         struct ptrace_vm_entry pve;
494         int error;
495
496         pve.pve_entry = pve32->pve_entry;
497         pve.pve_pathlen = pve32->pve_pathlen;
498         pve.pve_path = (void *)(uintptr_t)pve32->pve_path;
499
500         error = ptrace_vm_entry(td, p, &pve);
501         if (error == 0) {
502                 pve32->pve_entry = pve.pve_entry;
503                 pve32->pve_timestamp = pve.pve_timestamp;
504                 pve32->pve_start = pve.pve_start;
505                 pve32->pve_end = pve.pve_end;
506                 pve32->pve_offset = pve.pve_offset;
507                 pve32->pve_prot = pve.pve_prot;
508                 pve32->pve_fileid = pve.pve_fileid;
509                 pve32->pve_fsid = pve.pve_fsid;
510         }
511
512         pve32->pve_pathlen = pve.pve_pathlen;
513         return (error);
514 }
515
516 static void
517 ptrace_lwpinfo_to32(const struct ptrace_lwpinfo *pl,
518     struct ptrace_lwpinfo32 *pl32)
519 {
520
521         pl32->pl_lwpid = pl->pl_lwpid;
522         pl32->pl_event = pl->pl_event;
523         pl32->pl_flags = pl->pl_flags;
524         pl32->pl_sigmask = pl->pl_sigmask;
525         pl32->pl_siglist = pl->pl_siglist;
526         siginfo_to_siginfo32(&pl->pl_siginfo, &pl32->pl_siginfo);
527         strcpy(pl32->pl_tdname, pl->pl_tdname);
528         pl32->pl_child_pid = pl->pl_child_pid;
529         pl32->pl_syscall_code = pl->pl_syscall_code;
530         pl32->pl_syscall_narg = pl->pl_syscall_narg;
531 }
532 #endif /* COMPAT_FREEBSD32 */
533
534 /*
535  * Process debugging system call.
536  */
537 #ifndef _SYS_SYSPROTO_H_
538 struct ptrace_args {
539         int     req;
540         pid_t   pid;
541         caddr_t addr;
542         int     data;
543 };
544 #endif
545
546 #ifdef COMPAT_FREEBSD32
547 /*
548  * This CPP subterfuge is to try and reduce the number of ifdefs in
549  * the body of the code.
550  *   COPYIN(uap->addr, &r.reg, sizeof r.reg);
551  * becomes either:
552  *   copyin(uap->addr, &r.reg, sizeof r.reg);
553  * or
554  *   copyin(uap->addr, &r.reg32, sizeof r.reg32);
555  * .. except this is done at runtime.
556  */
557 #define COPYIN(u, k, s)         wrap32 ? \
558         copyin(u, k ## 32, s ## 32) : \
559         copyin(u, k, s)
560 #define COPYOUT(k, u, s)        wrap32 ? \
561         copyout(k ## 32, u, s ## 32) : \
562         copyout(k, u, s)
563 #else
564 #define COPYIN(u, k, s)         copyin(u, k, s)
565 #define COPYOUT(k, u, s)        copyout(k, u, s)
566 #endif
567 int
568 sys_ptrace(struct thread *td, struct ptrace_args *uap)
569 {
570         /*
571          * XXX this obfuscation is to reduce stack usage, but the register
572          * structs may be too large to put on the stack anyway.
573          */
574         union {
575                 struct ptrace_io_desc piod;
576                 struct ptrace_lwpinfo pl;
577                 struct ptrace_vm_entry pve;
578                 struct dbreg dbreg;
579                 struct fpreg fpreg;
580                 struct reg reg;
581 #ifdef COMPAT_FREEBSD32
582                 struct dbreg32 dbreg32;
583                 struct fpreg32 fpreg32;
584                 struct reg32 reg32;
585                 struct ptrace_io_desc32 piod32;
586                 struct ptrace_lwpinfo32 pl32;
587                 struct ptrace_vm_entry32 pve32;
588 #endif
589                 int ptevents;
590         } r;
591         void *addr;
592         int error = 0;
593 #ifdef COMPAT_FREEBSD32
594         int wrap32 = 0;
595
596         if (SV_CURPROC_FLAG(SV_ILP32))
597                 wrap32 = 1;
598 #endif
599         AUDIT_ARG_PID(uap->pid);
600         AUDIT_ARG_CMD(uap->req);
601         AUDIT_ARG_VALUE(uap->data);
602         addr = &r;
603         switch (uap->req) {
604         case PT_GET_EVENT_MASK:
605         case PT_GETREGS:
606         case PT_GETFPREGS:
607         case PT_GETDBREGS:
608         case PT_LWPINFO:
609                 break;
610         case PT_SETREGS:
611                 error = COPYIN(uap->addr, &r.reg, sizeof r.reg);
612                 break;
613         case PT_SETFPREGS:
614                 error = COPYIN(uap->addr, &r.fpreg, sizeof r.fpreg);
615                 break;
616         case PT_SETDBREGS:
617                 error = COPYIN(uap->addr, &r.dbreg, sizeof r.dbreg);
618                 break;
619         case PT_SET_EVENT_MASK:
620                 if (uap->data != sizeof(r.ptevents))
621                         error = EINVAL;
622                 else
623                         error = copyin(uap->addr, &r.ptevents, uap->data);
624                 break;
625         case PT_IO:
626                 error = COPYIN(uap->addr, &r.piod, sizeof r.piod);
627                 break;
628         case PT_VM_ENTRY:
629                 error = COPYIN(uap->addr, &r.pve, sizeof r.pve);
630                 break;
631         default:
632                 addr = uap->addr;
633                 break;
634         }
635         if (error)
636                 return (error);
637
638         error = kern_ptrace(td, uap->req, uap->pid, addr, uap->data);
639         if (error)
640                 return (error);
641
642         switch (uap->req) {
643         case PT_VM_ENTRY:
644                 error = COPYOUT(&r.pve, uap->addr, sizeof r.pve);
645                 break;
646         case PT_IO:
647                 error = COPYOUT(&r.piod, uap->addr, sizeof r.piod);
648                 break;
649         case PT_GETREGS:
650                 error = COPYOUT(&r.reg, uap->addr, sizeof r.reg);
651                 break;
652         case PT_GETFPREGS:
653                 error = COPYOUT(&r.fpreg, uap->addr, sizeof r.fpreg);
654                 break;
655         case PT_GETDBREGS:
656                 error = COPYOUT(&r.dbreg, uap->addr, sizeof r.dbreg);
657                 break;
658         case PT_GET_EVENT_MASK:
659                 /* NB: The size in uap->data is validated in kern_ptrace(). */
660                 error = copyout(&r.ptevents, uap->addr, uap->data);
661                 break;
662         case PT_LWPINFO:
663                 /* NB: The size in uap->data is validated in kern_ptrace(). */
664                 error = copyout(&r.pl, uap->addr, uap->data);
665                 break;
666         }
667
668         return (error);
669 }
670 #undef COPYIN
671 #undef COPYOUT
672
673 #ifdef COMPAT_FREEBSD32
674 /*
675  *   PROC_READ(regs, td2, addr);
676  * becomes either:
677  *   proc_read_regs(td2, addr);
678  * or
679  *   proc_read_regs32(td2, addr);
680  * .. except this is done at runtime.  There is an additional
681  * complication in that PROC_WRITE disallows 32 bit consumers
682  * from writing to 64 bit address space targets.
683  */
684 #define PROC_READ(w, t, a)      wrap32 ? \
685         proc_read_ ## w ## 32(t, a) : \
686         proc_read_ ## w (t, a)
687 #define PROC_WRITE(w, t, a)     wrap32 ? \
688         (safe ? proc_write_ ## w ## 32(t, a) : EINVAL ) : \
689         proc_write_ ## w (t, a)
690 #else
691 #define PROC_READ(w, t, a)      proc_read_ ## w (t, a)
692 #define PROC_WRITE(w, t, a)     proc_write_ ## w (t, a)
693 #endif
694
695 void
696 proc_set_traced(struct proc *p)
697 {
698
699         PROC_LOCK_ASSERT(p, MA_OWNED);
700         p->p_flag |= P_TRACED;
701         p->p_flag2 |= P2_PTRACE_FSTP;
702         p->p_ptevents = PTRACE_DEFAULT;
703         p->p_oppid = p->p_pptr->p_pid;
704 }
705
706 int
707 kern_ptrace(struct thread *td, int req, pid_t pid, void *addr, int data)
708 {
709         struct iovec iov;
710         struct uio uio;
711         struct proc *curp, *p, *pp;
712         struct thread *td2 = NULL, *td3;
713         struct ptrace_io_desc *piod = NULL;
714         struct ptrace_lwpinfo *pl;
715         int error, num, tmp;
716         int proctree_locked = 0;
717         lwpid_t tid = 0, *buf;
718 #ifdef COMPAT_FREEBSD32
719         int wrap32 = 0, safe = 0;
720         struct ptrace_io_desc32 *piod32 = NULL;
721         struct ptrace_lwpinfo32 *pl32 = NULL;
722         struct ptrace_lwpinfo plr;
723 #endif
724
725         curp = td->td_proc;
726
727         /* Lock proctree before locking the process. */
728         switch (req) {
729         case PT_TRACE_ME:
730         case PT_ATTACH:
731         case PT_STEP:
732         case PT_CONTINUE:
733         case PT_TO_SCE:
734         case PT_TO_SCX:
735         case PT_SYSCALL:
736         case PT_FOLLOW_FORK:
737         case PT_LWP_EVENTS:
738         case PT_GET_EVENT_MASK:
739         case PT_SET_EVENT_MASK:
740         case PT_DETACH:
741                 sx_xlock(&proctree_lock);
742                 proctree_locked = 1;
743                 break;
744         default:
745                 break;
746         }
747
748         if (req == PT_TRACE_ME) {
749                 p = td->td_proc;
750                 PROC_LOCK(p);
751         } else {
752                 if (pid <= PID_MAX) {
753                         if ((p = pfind(pid)) == NULL) {
754                                 if (proctree_locked)
755                                         sx_xunlock(&proctree_lock);
756                                 return (ESRCH);
757                         }
758                 } else {
759                         td2 = tdfind(pid, -1);
760                         if (td2 == NULL) {
761                                 if (proctree_locked)
762                                         sx_xunlock(&proctree_lock);
763                                 return (ESRCH);
764                         }
765                         p = td2->td_proc;
766                         tid = pid;
767                         pid = p->p_pid;
768                 }
769         }
770         AUDIT_ARG_PROCESS(p);
771
772         if ((p->p_flag & P_WEXIT) != 0) {
773                 error = ESRCH;
774                 goto fail;
775         }
776         if ((error = p_cansee(td, p)) != 0)
777                 goto fail;
778
779         if ((error = p_candebug(td, p)) != 0)
780                 goto fail;
781
782         /*
783          * System processes can't be debugged.
784          */
785         if ((p->p_flag & P_SYSTEM) != 0) {
786                 error = EINVAL;
787                 goto fail;
788         }
789
790         if (tid == 0) {
791                 if ((p->p_flag & P_STOPPED_TRACE) != 0) {
792                         KASSERT(p->p_xthread != NULL, ("NULL p_xthread"));
793                         td2 = p->p_xthread;
794                 } else {
795                         td2 = FIRST_THREAD_IN_PROC(p);
796                 }
797                 tid = td2->td_tid;
798         }
799
800 #ifdef COMPAT_FREEBSD32
801         /*
802          * Test if we're a 32 bit client and what the target is.
803          * Set the wrap controls accordingly.
804          */
805         if (SV_CURPROC_FLAG(SV_ILP32)) {
806                 if (SV_PROC_FLAG(td2->td_proc, SV_ILP32))
807                         safe = 1;
808                 wrap32 = 1;
809         }
810 #endif
811         /*
812          * Permissions check
813          */
814         switch (req) {
815         case PT_TRACE_ME:
816                 /*
817                  * Always legal, when there is a parent process which
818                  * could trace us.  Otherwise, reject.
819                  */
820                 if ((p->p_flag & P_TRACED) != 0) {
821                         error = EBUSY;
822                         goto fail;
823                 }
824                 if (p->p_pptr == initproc) {
825                         error = EPERM;
826                         goto fail;
827                 }
828                 break;
829
830         case PT_ATTACH:
831                 /* Self */
832                 if (p == td->td_proc) {
833                         error = EINVAL;
834                         goto fail;
835                 }
836
837                 /* Already traced */
838                 if (p->p_flag & P_TRACED) {
839                         error = EBUSY;
840                         goto fail;
841                 }
842
843                 /* Can't trace an ancestor if you're being traced. */
844                 if (curp->p_flag & P_TRACED) {
845                         for (pp = curp->p_pptr; pp != NULL; pp = pp->p_pptr) {
846                                 if (pp == p) {
847                                         error = EINVAL;
848                                         goto fail;
849                                 }
850                         }
851                 }
852
853
854                 /* OK */
855                 break;
856
857         case PT_CLEARSTEP:
858                 /* Allow thread to clear single step for itself */
859                 if (td->td_tid == tid)
860                         break;
861
862                 /* FALLTHROUGH */
863         default:
864                 /* not being traced... */
865                 if ((p->p_flag & P_TRACED) == 0) {
866                         error = EPERM;
867                         goto fail;
868                 }
869
870                 /* not being traced by YOU */
871                 if (p->p_pptr != td->td_proc) {
872                         error = EBUSY;
873                         goto fail;
874                 }
875
876                 /* not currently stopped */
877                 if ((p->p_flag & (P_STOPPED_SIG | P_STOPPED_TRACE)) == 0 ||
878                     p->p_suspcount != p->p_numthreads  ||
879                     (p->p_flag & P_WAITED) == 0) {
880                         error = EBUSY;
881                         goto fail;
882                 }
883
884                 if ((p->p_flag & P_STOPPED_TRACE) == 0) {
885                         static int count = 0;
886                         if (count++ == 0)
887                                 printf("P_STOPPED_TRACE not set.\n");
888                 }
889
890                 /* OK */
891                 break;
892         }
893
894         /* Keep this process around until we finish this request. */
895         _PHOLD(p);
896
897 #ifdef FIX_SSTEP
898         /*
899          * Single step fixup ala procfs
900          */
901         FIX_SSTEP(td2);
902 #endif
903
904         /*
905          * Actually do the requests
906          */
907
908         td->td_retval[0] = 0;
909
910         switch (req) {
911         case PT_TRACE_ME:
912                 /* set my trace flag and "owner" so it can read/write me */
913                 proc_set_traced(p);
914                 if (p->p_flag & P_PPWAIT)
915                         p->p_flag |= P_PPTRACE;
916                 CTR1(KTR_PTRACE, "PT_TRACE_ME: pid %d", p->p_pid);
917                 break;
918
919         case PT_ATTACH:
920                 /* security check done above */
921                 /*
922                  * It would be nice if the tracing relationship was separate
923                  * from the parent relationship but that would require
924                  * another set of links in the proc struct or for "wait"
925                  * to scan the entire proc table.  To make life easier,
926                  * we just re-parent the process we're trying to trace.
927                  * The old parent is remembered so we can put things back
928                  * on a "detach".
929                  */
930                 proc_set_traced(p);
931                 if (p->p_pptr != td->td_proc) {
932                         proc_reparent(p, td->td_proc);
933                 }
934                 data = SIGSTOP;
935                 CTR2(KTR_PTRACE, "PT_ATTACH: pid %d, oppid %d", p->p_pid,
936                     p->p_oppid);
937                 goto sendsig;   /* in PT_CONTINUE below */
938
939         case PT_CLEARSTEP:
940                 CTR2(KTR_PTRACE, "PT_CLEARSTEP: tid %d (pid %d)", td2->td_tid,
941                     p->p_pid);
942                 error = ptrace_clear_single_step(td2);
943                 break;
944
945         case PT_SETSTEP:
946                 CTR2(KTR_PTRACE, "PT_SETSTEP: tid %d (pid %d)", td2->td_tid,
947                     p->p_pid);
948                 error = ptrace_single_step(td2);
949                 break;
950
951         case PT_SUSPEND:
952                 CTR2(KTR_PTRACE, "PT_SUSPEND: tid %d (pid %d)", td2->td_tid,
953                     p->p_pid);
954                 td2->td_dbgflags |= TDB_SUSPEND;
955                 thread_lock(td2);
956                 td2->td_flags |= TDF_NEEDSUSPCHK;
957                 thread_unlock(td2);
958                 break;
959
960         case PT_RESUME:
961                 CTR2(KTR_PTRACE, "PT_RESUME: tid %d (pid %d)", td2->td_tid,
962                     p->p_pid);
963                 td2->td_dbgflags &= ~TDB_SUSPEND;
964                 break;
965
966         case PT_FOLLOW_FORK:
967                 CTR3(KTR_PTRACE, "PT_FOLLOW_FORK: pid %d %s -> %s", p->p_pid,
968                     p->p_ptevents & PTRACE_FORK ? "enabled" : "disabled",
969                     data ? "enabled" : "disabled");
970                 if (data)
971                         p->p_ptevents |= PTRACE_FORK;
972                 else
973                         p->p_ptevents &= ~PTRACE_FORK;
974                 break;
975
976         case PT_LWP_EVENTS:
977                 CTR3(KTR_PTRACE, "PT_LWP_EVENTS: pid %d %s -> %s", p->p_pid,
978                     p->p_ptevents & PTRACE_LWP ? "enabled" : "disabled",
979                     data ? "enabled" : "disabled");
980                 if (data)
981                         p->p_ptevents |= PTRACE_LWP;
982                 else
983                         p->p_ptevents &= ~PTRACE_LWP;
984                 break;
985
986         case PT_GET_EVENT_MASK:
987                 if (data != sizeof(p->p_ptevents)) {
988                         error = EINVAL;
989                         break;
990                 }
991                 CTR2(KTR_PTRACE, "PT_GET_EVENT_MASK: pid %d mask %#x", p->p_pid,
992                     p->p_ptevents);
993                 *(int *)addr = p->p_ptevents;
994                 break;
995
996         case PT_SET_EVENT_MASK:
997                 if (data != sizeof(p->p_ptevents)) {
998                         error = EINVAL;
999                         break;
1000                 }
1001                 tmp = *(int *)addr;
1002                 if ((tmp & ~(PTRACE_EXEC | PTRACE_SCE | PTRACE_SCX |
1003                     PTRACE_FORK | PTRACE_LWP | PTRACE_VFORK)) != 0) {
1004                         error = EINVAL;
1005                         break;
1006                 }
1007                 CTR3(KTR_PTRACE, "PT_SET_EVENT_MASK: pid %d mask %#x -> %#x",
1008                     p->p_pid, p->p_ptevents, tmp);
1009                 p->p_ptevents = tmp;
1010                 break;
1011                 
1012         case PT_STEP:
1013         case PT_CONTINUE:
1014         case PT_TO_SCE:
1015         case PT_TO_SCX:
1016         case PT_SYSCALL:
1017         case PT_DETACH:
1018                 /* Zero means do not send any signal */
1019                 if (data < 0 || data > _SIG_MAXSIG) {
1020                         error = EINVAL;
1021                         break;
1022                 }
1023
1024                 switch (req) {
1025                 case PT_STEP:
1026                         CTR2(KTR_PTRACE, "PT_STEP: tid %d (pid %d)",
1027                             td2->td_tid, p->p_pid);
1028                         error = ptrace_single_step(td2);
1029                         if (error)
1030                                 goto out;
1031                         break;
1032                 case PT_CONTINUE:
1033                 case PT_TO_SCE:
1034                 case PT_TO_SCX:
1035                 case PT_SYSCALL:
1036                         if (addr != (void *)1) {
1037                                 error = ptrace_set_pc(td2,
1038                                     (u_long)(uintfptr_t)addr);
1039                                 if (error)
1040                                         goto out;
1041                         }
1042                         switch (req) {
1043                         case PT_TO_SCE:
1044                                 p->p_ptevents |= PTRACE_SCE;
1045                                 CTR4(KTR_PTRACE,
1046                     "PT_TO_SCE: pid %d, events = %#x, PC = %#lx, sig = %d",
1047                                     p->p_pid, p->p_ptevents,
1048                                     (u_long)(uintfptr_t)addr, data);
1049                                 break;
1050                         case PT_TO_SCX:
1051                                 p->p_ptevents |= PTRACE_SCX;
1052                                 CTR4(KTR_PTRACE,
1053                     "PT_TO_SCX: pid %d, events = %#x, PC = %#lx, sig = %d",
1054                                     p->p_pid, p->p_ptevents,
1055                                     (u_long)(uintfptr_t)addr, data);
1056                                 break;
1057                         case PT_SYSCALL:
1058                                 p->p_ptevents |= PTRACE_SYSCALL;
1059                                 CTR4(KTR_PTRACE,
1060                     "PT_SYSCALL: pid %d, events = %#x, PC = %#lx, sig = %d",
1061                                     p->p_pid, p->p_ptevents,
1062                                     (u_long)(uintfptr_t)addr, data);
1063                                 break;
1064                         case PT_CONTINUE:
1065                                 CTR3(KTR_PTRACE,
1066                                     "PT_CONTINUE: pid %d, PC = %#lx, sig = %d",
1067                                     p->p_pid, (u_long)(uintfptr_t)addr, data);
1068                                 break;
1069                         }
1070                         break;
1071                 case PT_DETACH:
1072                         /*
1073                          * Reset the process parent.
1074                          *
1075                          * NB: This clears P_TRACED before reparenting
1076                          * a detached process back to its original
1077                          * parent.  Otherwise the debugee will be set
1078                          * as an orphan of the debugger.
1079                          */
1080                         p->p_flag &= ~(P_TRACED | P_WAITED);
1081                         if (p->p_oppid != p->p_pptr->p_pid) {
1082                                 PROC_LOCK(p->p_pptr);
1083                                 sigqueue_take(p->p_ksi);
1084                                 PROC_UNLOCK(p->p_pptr);
1085
1086                                 pp = proc_realparent(p);
1087                                 proc_reparent(p, pp);
1088                                 if (pp == initproc)
1089                                         p->p_sigparent = SIGCHLD;
1090                                 CTR3(KTR_PTRACE,
1091                             "PT_DETACH: pid %d reparented to pid %d, sig %d",
1092                                     p->p_pid, pp->p_pid, data);
1093                         } else
1094                                 CTR2(KTR_PTRACE, "PT_DETACH: pid %d, sig %d",
1095                                     p->p_pid, data);
1096                         p->p_oppid = 0;
1097                         p->p_ptevents = 0;
1098                         FOREACH_THREAD_IN_PROC(p, td3) {
1099                                 if ((td3->td_dbgflags & TDB_FSTP) != 0) {
1100                                         sigqueue_delete(&td3->td_sigqueue,
1101                                             SIGSTOP);
1102                                 }
1103                                 td3->td_dbgflags &= ~(TDB_XSIG | TDB_FSTP);
1104                         }
1105                         if ((p->p_flag2 & P2_PTRACE_FSTP) != 0) {
1106                                 sigqueue_delete(&p->p_sigqueue, SIGSTOP);
1107                                 p->p_flag2 &= ~P2_PTRACE_FSTP;
1108                         }
1109
1110                         /* should we send SIGCHLD? */
1111                         /* childproc_continued(p); */
1112                         break;
1113                 }
1114
1115         sendsig:
1116                 if (proctree_locked) {
1117                         sx_xunlock(&proctree_lock);
1118                         proctree_locked = 0;
1119                 }
1120                 p->p_xsig = data;
1121                 p->p_xthread = NULL;
1122                 if ((p->p_flag & (P_STOPPED_SIG | P_STOPPED_TRACE)) != 0) {
1123                         /* deliver or queue signal */
1124                         td2->td_dbgflags &= ~TDB_XSIG;
1125                         td2->td_xsig = data;
1126
1127                         if (req == PT_DETACH) {
1128                                 FOREACH_THREAD_IN_PROC(p, td3)
1129                                         td3->td_dbgflags &= ~TDB_SUSPEND;
1130                         }
1131                         /*
1132                          * unsuspend all threads, to not let a thread run,
1133                          * you should use PT_SUSPEND to suspend it before
1134                          * continuing process.
1135                          */
1136                         PROC_SLOCK(p);
1137                         p->p_flag &= ~(P_STOPPED_TRACE|P_STOPPED_SIG|P_WAITED);
1138                         thread_unsuspend(p);
1139                         PROC_SUNLOCK(p);
1140                         if (req == PT_ATTACH)
1141                                 kern_psignal(p, data);
1142                 } else {
1143                         if (data)
1144                                 kern_psignal(p, data);
1145                 }
1146                 break;
1147
1148         case PT_WRITE_I:
1149         case PT_WRITE_D:
1150                 td2->td_dbgflags |= TDB_USERWR;
1151                 PROC_UNLOCK(p);
1152                 error = 0;
1153                 if (proc_writemem(td, p, (off_t)(uintptr_t)addr, &data,
1154                     sizeof(int)) != sizeof(int))
1155                         error = ENOMEM;
1156                 else
1157                         CTR3(KTR_PTRACE, "PT_WRITE: pid %d: %p <= %#x",
1158                             p->p_pid, addr, data);
1159                 PROC_LOCK(p);
1160                 break;
1161
1162         case PT_READ_I:
1163         case PT_READ_D:
1164                 PROC_UNLOCK(p);
1165                 error = tmp = 0;
1166                 if (proc_readmem(td, p, (off_t)(uintptr_t)addr, &tmp,
1167                     sizeof(int)) != sizeof(int))
1168                         error = ENOMEM;
1169                 else
1170                         CTR3(KTR_PTRACE, "PT_READ: pid %d: %p >= %#x",
1171                             p->p_pid, addr, tmp);
1172                 td->td_retval[0] = tmp;
1173                 PROC_LOCK(p);
1174                 break;
1175
1176         case PT_IO:
1177 #ifdef COMPAT_FREEBSD32
1178                 if (wrap32) {
1179                         piod32 = addr;
1180                         iov.iov_base = (void *)(uintptr_t)piod32->piod_addr;
1181                         iov.iov_len = piod32->piod_len;
1182                         uio.uio_offset = (off_t)(uintptr_t)piod32->piod_offs;
1183                         uio.uio_resid = piod32->piod_len;
1184                 } else
1185 #endif
1186                 {
1187                         piod = addr;
1188                         iov.iov_base = piod->piod_addr;
1189                         iov.iov_len = piod->piod_len;
1190                         uio.uio_offset = (off_t)(uintptr_t)piod->piod_offs;
1191                         uio.uio_resid = piod->piod_len;
1192                 }
1193                 uio.uio_iov = &iov;
1194                 uio.uio_iovcnt = 1;
1195                 uio.uio_segflg = UIO_USERSPACE;
1196                 uio.uio_td = td;
1197 #ifdef COMPAT_FREEBSD32
1198                 tmp = wrap32 ? piod32->piod_op : piod->piod_op;
1199 #else
1200                 tmp = piod->piod_op;
1201 #endif
1202                 switch (tmp) {
1203                 case PIOD_READ_D:
1204                 case PIOD_READ_I:
1205                         CTR3(KTR_PTRACE, "PT_IO: pid %d: READ (%p, %#x)",
1206                             p->p_pid, (uintptr_t)uio.uio_offset, uio.uio_resid);
1207                         uio.uio_rw = UIO_READ;
1208                         break;
1209                 case PIOD_WRITE_D:
1210                 case PIOD_WRITE_I:
1211                         CTR3(KTR_PTRACE, "PT_IO: pid %d: WRITE (%p, %#x)",
1212                             p->p_pid, (uintptr_t)uio.uio_offset, uio.uio_resid);
1213                         td2->td_dbgflags |= TDB_USERWR;
1214                         uio.uio_rw = UIO_WRITE;
1215                         break;
1216                 default:
1217                         error = EINVAL;
1218                         goto out;
1219                 }
1220                 PROC_UNLOCK(p);
1221                 error = proc_rwmem(p, &uio);
1222 #ifdef COMPAT_FREEBSD32
1223                 if (wrap32)
1224                         piod32->piod_len -= uio.uio_resid;
1225                 else
1226 #endif
1227                         piod->piod_len -= uio.uio_resid;
1228                 PROC_LOCK(p);
1229                 break;
1230
1231         case PT_KILL:
1232                 CTR1(KTR_PTRACE, "PT_KILL: pid %d", p->p_pid);
1233                 data = SIGKILL;
1234                 goto sendsig;   /* in PT_CONTINUE above */
1235
1236         case PT_SETREGS:
1237                 CTR2(KTR_PTRACE, "PT_SETREGS: tid %d (pid %d)", td2->td_tid,
1238                     p->p_pid);
1239                 td2->td_dbgflags |= TDB_USERWR;
1240                 error = PROC_WRITE(regs, td2, addr);
1241                 break;
1242
1243         case PT_GETREGS:
1244                 CTR2(KTR_PTRACE, "PT_GETREGS: tid %d (pid %d)", td2->td_tid,
1245                     p->p_pid);
1246                 error = PROC_READ(regs, td2, addr);
1247                 break;
1248
1249         case PT_SETFPREGS:
1250                 CTR2(KTR_PTRACE, "PT_SETFPREGS: tid %d (pid %d)", td2->td_tid,
1251                     p->p_pid);
1252                 td2->td_dbgflags |= TDB_USERWR;
1253                 error = PROC_WRITE(fpregs, td2, addr);
1254                 break;
1255
1256         case PT_GETFPREGS:
1257                 CTR2(KTR_PTRACE, "PT_GETFPREGS: tid %d (pid %d)", td2->td_tid,
1258                     p->p_pid);
1259                 error = PROC_READ(fpregs, td2, addr);
1260                 break;
1261
1262         case PT_SETDBREGS:
1263                 CTR2(KTR_PTRACE, "PT_SETDBREGS: tid %d (pid %d)", td2->td_tid,
1264                     p->p_pid);
1265                 td2->td_dbgflags |= TDB_USERWR;
1266                 error = PROC_WRITE(dbregs, td2, addr);
1267                 break;
1268
1269         case PT_GETDBREGS:
1270                 CTR2(KTR_PTRACE, "PT_GETDBREGS: tid %d (pid %d)", td2->td_tid,
1271                     p->p_pid);
1272                 error = PROC_READ(dbregs, td2, addr);
1273                 break;
1274
1275         case PT_LWPINFO:
1276                 if (data <= 0 ||
1277 #ifdef COMPAT_FREEBSD32
1278                     (!wrap32 && data > sizeof(*pl)) ||
1279                     (wrap32 && data > sizeof(*pl32))) {
1280 #else
1281                     data > sizeof(*pl)) {
1282 #endif
1283                         error = EINVAL;
1284                         break;
1285                 }
1286 #ifdef COMPAT_FREEBSD32
1287                 if (wrap32) {
1288                         pl = &plr;
1289                         pl32 = addr;
1290                 } else
1291 #endif
1292                 pl = addr;
1293                 pl->pl_lwpid = td2->td_tid;
1294                 pl->pl_event = PL_EVENT_NONE;
1295                 pl->pl_flags = 0;
1296                 if (td2->td_dbgflags & TDB_XSIG) {
1297                         pl->pl_event = PL_EVENT_SIGNAL;
1298                         if (td2->td_dbgksi.ksi_signo != 0 &&
1299 #ifdef COMPAT_FREEBSD32
1300                             ((!wrap32 && data >= offsetof(struct ptrace_lwpinfo,
1301                             pl_siginfo) + sizeof(pl->pl_siginfo)) ||
1302                             (wrap32 && data >= offsetof(struct ptrace_lwpinfo32,
1303                             pl_siginfo) + sizeof(struct siginfo32)))
1304 #else
1305                             data >= offsetof(struct ptrace_lwpinfo, pl_siginfo)
1306                             + sizeof(pl->pl_siginfo)
1307 #endif
1308                         ){
1309                                 pl->pl_flags |= PL_FLAG_SI;
1310                                 pl->pl_siginfo = td2->td_dbgksi.ksi_info;
1311                         }
1312                 }
1313                 if ((pl->pl_flags & PL_FLAG_SI) == 0)
1314                         bzero(&pl->pl_siginfo, sizeof(pl->pl_siginfo));
1315                 if (td2->td_dbgflags & TDB_SCE)
1316                         pl->pl_flags |= PL_FLAG_SCE;
1317                 else if (td2->td_dbgflags & TDB_SCX)
1318                         pl->pl_flags |= PL_FLAG_SCX;
1319                 if (td2->td_dbgflags & TDB_EXEC)
1320                         pl->pl_flags |= PL_FLAG_EXEC;
1321                 if (td2->td_dbgflags & TDB_FORK) {
1322                         pl->pl_flags |= PL_FLAG_FORKED;
1323                         pl->pl_child_pid = td2->td_dbg_forked;
1324                         if (td2->td_dbgflags & TDB_VFORK)
1325                                 pl->pl_flags |= PL_FLAG_VFORKED;
1326                 } else if ((td2->td_dbgflags & (TDB_SCX | TDB_VFORK)) ==
1327                     TDB_VFORK)
1328                         pl->pl_flags |= PL_FLAG_VFORK_DONE;
1329                 if (td2->td_dbgflags & TDB_CHILD)
1330                         pl->pl_flags |= PL_FLAG_CHILD;
1331                 if (td2->td_dbgflags & TDB_BORN)
1332                         pl->pl_flags |= PL_FLAG_BORN;
1333                 if (td2->td_dbgflags & TDB_EXIT)
1334                         pl->pl_flags |= PL_FLAG_EXITED;
1335                 pl->pl_sigmask = td2->td_sigmask;
1336                 pl->pl_siglist = td2->td_siglist;
1337                 strcpy(pl->pl_tdname, td2->td_name);
1338                 if ((td2->td_dbgflags & (TDB_SCE | TDB_SCX)) != 0) {
1339                         pl->pl_syscall_code = td2->td_dbg_sc_code;
1340                         pl->pl_syscall_narg = td2->td_dbg_sc_narg;
1341                 } else {
1342                         pl->pl_syscall_code = 0;
1343                         pl->pl_syscall_narg = 0;
1344                 }
1345 #ifdef COMPAT_FREEBSD32
1346                 if (wrap32)
1347                         ptrace_lwpinfo_to32(pl, pl32);
1348 #endif
1349                 CTR6(KTR_PTRACE,
1350     "PT_LWPINFO: tid %d (pid %d) event %d flags %#x child pid %d syscall %d",
1351                     td2->td_tid, p->p_pid, pl->pl_event, pl->pl_flags,
1352                     pl->pl_child_pid, pl->pl_syscall_code);
1353                 break;
1354
1355         case PT_GETNUMLWPS:
1356                 CTR2(KTR_PTRACE, "PT_GETNUMLWPS: pid %d: %d threads", p->p_pid,
1357                     p->p_numthreads);
1358                 td->td_retval[0] = p->p_numthreads;
1359                 break;
1360
1361         case PT_GETLWPLIST:
1362                 CTR3(KTR_PTRACE, "PT_GETLWPLIST: pid %d: data %d, actual %d",
1363                     p->p_pid, data, p->p_numthreads);
1364                 if (data <= 0) {
1365                         error = EINVAL;
1366                         break;
1367                 }
1368                 num = imin(p->p_numthreads, data);
1369                 PROC_UNLOCK(p);
1370                 buf = malloc(num * sizeof(lwpid_t), M_TEMP, M_WAITOK);
1371                 tmp = 0;
1372                 PROC_LOCK(p);
1373                 FOREACH_THREAD_IN_PROC(p, td2) {
1374                         if (tmp >= num)
1375                                 break;
1376                         buf[tmp++] = td2->td_tid;
1377                 }
1378                 PROC_UNLOCK(p);
1379                 error = copyout(buf, addr, tmp * sizeof(lwpid_t));
1380                 free(buf, M_TEMP);
1381                 if (!error)
1382                         td->td_retval[0] = tmp;
1383                 PROC_LOCK(p);
1384                 break;
1385
1386         case PT_VM_TIMESTAMP:
1387                 CTR2(KTR_PTRACE, "PT_VM_TIMESTAMP: pid %d: timestamp %d",
1388                     p->p_pid, p->p_vmspace->vm_map.timestamp);
1389                 td->td_retval[0] = p->p_vmspace->vm_map.timestamp;
1390                 break;
1391
1392         case PT_VM_ENTRY:
1393                 PROC_UNLOCK(p);
1394 #ifdef COMPAT_FREEBSD32
1395                 if (wrap32)
1396                         error = ptrace_vm_entry32(td, p, addr);
1397                 else
1398 #endif
1399                 error = ptrace_vm_entry(td, p, addr);
1400                 PROC_LOCK(p);
1401                 break;
1402
1403         default:
1404 #ifdef __HAVE_PTRACE_MACHDEP
1405                 if (req >= PT_FIRSTMACH) {
1406                         PROC_UNLOCK(p);
1407                         error = cpu_ptrace(td2, req, addr, data);
1408                         PROC_LOCK(p);
1409                 } else
1410 #endif
1411                         /* Unknown request. */
1412                         error = EINVAL;
1413                 break;
1414         }
1415
1416 out:
1417         /* Drop our hold on this process now that the request has completed. */
1418         _PRELE(p);
1419 fail:
1420         PROC_UNLOCK(p);
1421         if (proctree_locked)
1422                 sx_xunlock(&proctree_lock);
1423         return (error);
1424 }
1425 #undef PROC_READ
1426 #undef PROC_WRITE
1427
1428 /*
1429  * Stop a process because of a debugging event;
1430  * stay stopped until p->p_step is cleared
1431  * (cleared by PIOCCONT in procfs).
1432  */
1433 void
1434 stopevent(struct proc *p, unsigned int event, unsigned int val)
1435 {
1436
1437         PROC_LOCK_ASSERT(p, MA_OWNED);
1438         p->p_step = 1;
1439         CTR3(KTR_PTRACE, "stopevent: pid %d event %u val %u", p->p_pid, event,
1440             val);
1441         do {
1442                 if (event != S_EXIT)
1443                         p->p_xsig = val;
1444                 p->p_xthread = NULL;
1445                 p->p_stype = event;     /* Which event caused the stop? */
1446                 wakeup(&p->p_stype);    /* Wake up any PIOCWAIT'ing procs */
1447                 msleep(&p->p_step, &p->p_mtx, PWAIT, "stopevent", 0);
1448         } while (p->p_step);
1449 }