xref: /freebsd/sys/kern/kern_exec.c (revision 1bee2ec756f2ea5255f9f68dd58c1ceae1a2f56c)
1 /*-
2  * Copyright (c) 1993, David Greenman
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  *
14  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
15  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
16  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
17  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
18  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
19  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
20  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
21  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
22  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
23  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
24  * SUCH DAMAGE.
25  */
26 
27 #include <sys/cdefs.h>
28 __FBSDID("$FreeBSD$");
29 
30 #include "opt_capsicum.h"
31 #include "opt_hwpmc_hooks.h"
32 #include "opt_kdtrace.h"
33 #include "opt_ktrace.h"
34 #include "opt_vm.h"
35 
36 #include <sys/param.h>
37 #include <sys/capability.h>
38 #include <sys/systm.h>
39 #include <sys/capability.h>
40 #include <sys/eventhandler.h>
41 #include <sys/lock.h>
42 #include <sys/mutex.h>
43 #include <sys/sysproto.h>
44 #include <sys/signalvar.h>
45 #include <sys/kernel.h>
46 #include <sys/mount.h>
47 #include <sys/filedesc.h>
48 #include <sys/fcntl.h>
49 #include <sys/acct.h>
50 #include <sys/exec.h>
51 #include <sys/imgact.h>
52 #include <sys/imgact_elf.h>
53 #include <sys/wait.h>
54 #include <sys/malloc.h>
55 #include <sys/priv.h>
56 #include <sys/proc.h>
57 #include <sys/pioctl.h>
58 #include <sys/namei.h>
59 #include <sys/resourcevar.h>
60 #include <sys/sdt.h>
61 #include <sys/sf_buf.h>
62 #include <sys/syscallsubr.h>
63 #include <sys/sysent.h>
64 #include <sys/shm.h>
65 #include <sys/sysctl.h>
66 #include <sys/vnode.h>
67 #include <sys/stat.h>
68 #ifdef KTRACE
69 #include <sys/ktrace.h>
70 #endif
71 
72 #include <vm/vm.h>
73 #include <vm/vm_param.h>
74 #include <vm/pmap.h>
75 #include <vm/vm_page.h>
76 #include <vm/vm_map.h>
77 #include <vm/vm_kern.h>
78 #include <vm/vm_extern.h>
79 #include <vm/vm_object.h>
80 #include <vm/vm_pager.h>
81 
82 #ifdef	HWPMC_HOOKS
83 #include <sys/pmckern.h>
84 #endif
85 
86 #include <machine/reg.h>
87 
88 #include <security/audit/audit.h>
89 #include <security/mac/mac_framework.h>
90 
91 #ifdef KDTRACE_HOOKS
92 #include <sys/dtrace_bsd.h>
93 dtrace_execexit_func_t	dtrace_fasttrap_exec;
94 #endif
95 
96 SDT_PROVIDER_DECLARE(proc);
97 SDT_PROBE_DEFINE(proc, kernel, , exec, exec);
98 SDT_PROBE_ARGTYPE(proc, kernel, , exec, 0, "char *");
99 SDT_PROBE_DEFINE(proc, kernel, , exec_failure, exec-failure);
100 SDT_PROBE_ARGTYPE(proc, kernel, , exec_failure, 0, "int");
101 SDT_PROBE_DEFINE(proc, kernel, , exec_success, exec-success);
102 SDT_PROBE_ARGTYPE(proc, kernel, , exec_success, 0, "char *");
103 
104 MALLOC_DEFINE(M_PARGS, "proc-args", "Process arguments");
105 
106 static int sysctl_kern_ps_strings(SYSCTL_HANDLER_ARGS);
107 static int sysctl_kern_usrstack(SYSCTL_HANDLER_ARGS);
108 static int sysctl_kern_stackprot(SYSCTL_HANDLER_ARGS);
109 static int do_execve(struct thread *td, struct image_args *args,
110     struct mac *mac_p);
111 
112 /* XXX This should be vm_size_t. */
113 SYSCTL_PROC(_kern, KERN_PS_STRINGS, ps_strings, CTLTYPE_ULONG|CTLFLAG_RD,
114     NULL, 0, sysctl_kern_ps_strings, "LU", "");
115 
116 /* XXX This should be vm_size_t. */
117 SYSCTL_PROC(_kern, KERN_USRSTACK, usrstack, CTLTYPE_ULONG|CTLFLAG_RD|
118     CTLFLAG_CAPRD, NULL, 0, sysctl_kern_usrstack, "LU", "");
119 
120 SYSCTL_PROC(_kern, OID_AUTO, stackprot, CTLTYPE_INT|CTLFLAG_RD,
121     NULL, 0, sysctl_kern_stackprot, "I", "");
122 
123 u_long ps_arg_cache_limit = PAGE_SIZE / 16;
124 SYSCTL_ULONG(_kern, OID_AUTO, ps_arg_cache_limit, CTLFLAG_RW,
125     &ps_arg_cache_limit, 0, "");
126 
127 static int map_at_zero = 0;
128 TUNABLE_INT("security.bsd.map_at_zero", &map_at_zero);
129 SYSCTL_INT(_security_bsd, OID_AUTO, map_at_zero, CTLFLAG_RW, &map_at_zero, 0,
130     "Permit processes to map an object at virtual address 0.");
131 
132 static int
133 sysctl_kern_ps_strings(SYSCTL_HANDLER_ARGS)
134 {
135 	struct proc *p;
136 	int error;
137 
138 	p = curproc;
139 #ifdef SCTL_MASK32
140 	if (req->flags & SCTL_MASK32) {
141 		unsigned int val;
142 		val = (unsigned int)p->p_sysent->sv_psstrings;
143 		error = SYSCTL_OUT(req, &val, sizeof(val));
144 	} else
145 #endif
146 		error = SYSCTL_OUT(req, &p->p_sysent->sv_psstrings,
147 		   sizeof(p->p_sysent->sv_psstrings));
148 	return error;
149 }
150 
151 static int
152 sysctl_kern_usrstack(SYSCTL_HANDLER_ARGS)
153 {
154 	struct proc *p;
155 	int error;
156 
157 	p = curproc;
158 #ifdef SCTL_MASK32
159 	if (req->flags & SCTL_MASK32) {
160 		unsigned int val;
161 		val = (unsigned int)p->p_sysent->sv_usrstack;
162 		error = SYSCTL_OUT(req, &val, sizeof(val));
163 	} else
164 #endif
165 		error = SYSCTL_OUT(req, &p->p_sysent->sv_usrstack,
166 		    sizeof(p->p_sysent->sv_usrstack));
167 	return error;
168 }
169 
170 static int
171 sysctl_kern_stackprot(SYSCTL_HANDLER_ARGS)
172 {
173 	struct proc *p;
174 
175 	p = curproc;
176 	return (SYSCTL_OUT(req, &p->p_sysent->sv_stackprot,
177 	    sizeof(p->p_sysent->sv_stackprot)));
178 }
179 
180 /*
181  * Each of the items is a pointer to a `const struct execsw', hence the
182  * double pointer here.
183  */
184 static const struct execsw **execsw;
185 
186 #ifndef _SYS_SYSPROTO_H_
187 struct execve_args {
188 	char    *fname;
189 	char    **argv;
190 	char    **envv;
191 };
192 #endif
193 
194 int
195 execve(td, uap)
196 	struct thread *td;
197 	struct execve_args /* {
198 		char *fname;
199 		char **argv;
200 		char **envv;
201 	} */ *uap;
202 {
203 	int error;
204 	struct image_args args;
205 
206 	error = exec_copyin_args(&args, uap->fname, UIO_USERSPACE,
207 	    uap->argv, uap->envv);
208 	if (error == 0)
209 		error = kern_execve(td, &args, NULL);
210 	return (error);
211 }
212 
213 #ifndef _SYS_SYSPROTO_H_
214 struct fexecve_args {
215 	int	fd;
216 	char	**argv;
217 	char	**envv;
218 }
219 #endif
220 int
221 fexecve(struct thread *td, struct fexecve_args *uap)
222 {
223 	int error;
224 	struct image_args args;
225 
226 	error = exec_copyin_args(&args, NULL, UIO_SYSSPACE,
227 	    uap->argv, uap->envv);
228 	if (error == 0) {
229 		args.fd = uap->fd;
230 		error = kern_execve(td, &args, NULL);
231 	}
232 	return (error);
233 }
234 
235 #ifndef _SYS_SYSPROTO_H_
236 struct __mac_execve_args {
237 	char	*fname;
238 	char	**argv;
239 	char	**envv;
240 	struct mac	*mac_p;
241 };
242 #endif
243 
244 int
245 __mac_execve(td, uap)
246 	struct thread *td;
247 	struct __mac_execve_args /* {
248 		char *fname;
249 		char **argv;
250 		char **envv;
251 		struct mac *mac_p;
252 	} */ *uap;
253 {
254 #ifdef MAC
255 	int error;
256 	struct image_args args;
257 
258 	error = exec_copyin_args(&args, uap->fname, UIO_USERSPACE,
259 	    uap->argv, uap->envv);
260 	if (error == 0)
261 		error = kern_execve(td, &args, uap->mac_p);
262 	return (error);
263 #else
264 	return (ENOSYS);
265 #endif
266 }
267 
268 /*
269  * XXX: kern_execve has the astonishing property of not always returning to
270  * the caller.  If sufficiently bad things happen during the call to
271  * do_execve(), it can end up calling exit1(); as a result, callers must
272  * avoid doing anything which they might need to undo (e.g., allocating
273  * memory).
274  */
275 int
276 kern_execve(td, args, mac_p)
277 	struct thread *td;
278 	struct image_args *args;
279 	struct mac *mac_p;
280 {
281 	struct proc *p = td->td_proc;
282 	int error;
283 
284 	AUDIT_ARG_ARGV(args->begin_argv, args->argc,
285 	    args->begin_envv - args->begin_argv);
286 	AUDIT_ARG_ENVV(args->begin_envv, args->envc,
287 	    args->endp - args->begin_envv);
288 	if (p->p_flag & P_HADTHREADS) {
289 		PROC_LOCK(p);
290 		if (thread_single(SINGLE_BOUNDARY)) {
291 			PROC_UNLOCK(p);
292 	       		exec_free_args(args);
293 			return (ERESTART);	/* Try again later. */
294 		}
295 		PROC_UNLOCK(p);
296 	}
297 
298 	error = do_execve(td, args, mac_p);
299 
300 	if (p->p_flag & P_HADTHREADS) {
301 		PROC_LOCK(p);
302 		/*
303 		 * If success, we upgrade to SINGLE_EXIT state to
304 		 * force other threads to suicide.
305 		 */
306 		if (error == 0)
307 			thread_single(SINGLE_EXIT);
308 		else
309 			thread_single_end();
310 		PROC_UNLOCK(p);
311 	}
312 
313 	return (error);
314 }
315 
316 /*
317  * In-kernel implementation of execve().  All arguments are assumed to be
318  * userspace pointers from the passed thread.
319  */
320 static int
321 do_execve(td, args, mac_p)
322 	struct thread *td;
323 	struct image_args *args;
324 	struct mac *mac_p;
325 {
326 	struct proc *p = td->td_proc;
327 	struct nameidata nd;
328 	struct ucred *newcred = NULL, *oldcred;
329 	struct uidinfo *euip;
330 	register_t *stack_base;
331 	int error, i;
332 	struct image_params image_params, *imgp;
333 	struct vattr attr;
334 	int (*img_first)(struct image_params *);
335 	struct pargs *oldargs = NULL, *newargs = NULL;
336 	struct sigacts *oldsigacts, *newsigacts;
337 #ifdef KTRACE
338 	struct vnode *tracevp = NULL;
339 	struct ucred *tracecred = NULL;
340 #endif
341 	struct vnode *textvp = NULL, *binvp = NULL;
342 	int credential_changing;
343 	int vfslocked;
344 	int textset;
345 #ifdef MAC
346 	struct label *interpvplabel = NULL;
347 	int will_transition;
348 #endif
349 #ifdef HWPMC_HOOKS
350 	struct pmckern_procexec pe;
351 #endif
352 	static const char fexecv_proc_title[] = "(fexecv)";
353 
354 	vfslocked = 0;
355 	imgp = &image_params;
356 
357 	/*
358 	 * Lock the process and set the P_INEXEC flag to indicate that
359 	 * it should be left alone until we're done here.  This is
360 	 * necessary to avoid race conditions - e.g. in ptrace() -
361 	 * that might allow a local user to illicitly obtain elevated
362 	 * privileges.
363 	 */
364 	PROC_LOCK(p);
365 	KASSERT((p->p_flag & P_INEXEC) == 0,
366 	    ("%s(): process already has P_INEXEC flag", __func__));
367 	p->p_flag |= P_INEXEC;
368 	PROC_UNLOCK(p);
369 
370 	/*
371 	 * Initialize part of the common data
372 	 */
373 	imgp->proc = p;
374 	imgp->execlabel = NULL;
375 	imgp->attr = &attr;
376 	imgp->entry_addr = 0;
377 	imgp->reloc_base = 0;
378 	imgp->vmspace_destroyed = 0;
379 	imgp->interpreted = 0;
380 	imgp->opened = 0;
381 	imgp->interpreter_name = NULL;
382 	imgp->auxargs = NULL;
383 	imgp->vp = NULL;
384 	imgp->object = NULL;
385 	imgp->firstpage = NULL;
386 	imgp->ps_strings = 0;
387 	imgp->auxarg_size = 0;
388 	imgp->args = args;
389 	imgp->execpath = imgp->freepath = NULL;
390 	imgp->execpathp = 0;
391 	imgp->canary = 0;
392 	imgp->canarylen = 0;
393 	imgp->pagesizes = 0;
394 	imgp->pagesizeslen = 0;
395 	imgp->stack_prot = 0;
396 
397 #ifdef MAC
398 	error = mac_execve_enter(imgp, mac_p);
399 	if (error)
400 		goto exec_fail;
401 #endif
402 
403 	imgp->image_header = NULL;
404 
405 	/*
406 	 * Translate the file name. namei() returns a vnode pointer
407 	 *	in ni_vp amoung other things.
408 	 *
409 	 * XXXAUDIT: It would be desirable to also audit the name of the
410 	 * interpreter if this is an interpreted binary.
411 	 */
412 	if (args->fname != NULL) {
413 		NDINIT(&nd, LOOKUP, ISOPEN | LOCKLEAF | FOLLOW | SAVENAME
414 		    | MPSAFE | AUDITVNODE1, UIO_SYSSPACE, args->fname, td);
415 	}
416 
417 	SDT_PROBE(proc, kernel, , exec, args->fname, 0, 0, 0, 0 );
418 
419 interpret:
420 	if (args->fname != NULL) {
421 #ifdef CAPABILITY_MODE
422 		/*
423 		 * While capability mode can't reach this point via direct
424 		 * path arguments to execve(), we also don't allow
425 		 * interpreters to be used in capability mode (for now).
426 		 * Catch indirect lookups and return a permissions error.
427 		 */
428 		if (IN_CAPABILITY_MODE(td)) {
429 			error = ECAPMODE;
430 			goto exec_fail;
431 		}
432 #endif
433 		error = namei(&nd);
434 		if (error)
435 			goto exec_fail;
436 
437 		vfslocked = NDHASGIANT(&nd);
438 		binvp  = nd.ni_vp;
439 		imgp->vp = binvp;
440 	} else {
441 		AUDIT_ARG_FD(args->fd);
442 		error = fgetvp(td, args->fd, &binvp);
443 		if (error)
444 			goto exec_fail;
445 		vfslocked = VFS_LOCK_GIANT(binvp->v_mount);
446 		vn_lock(binvp, LK_EXCLUSIVE | LK_RETRY);
447 		AUDIT_ARG_VNODE1(binvp);
448 		imgp->vp = binvp;
449 	}
450 
451 	/*
452 	 * Check file permissions (also 'opens' file)
453 	 */
454 	error = exec_check_permissions(imgp);
455 	if (error)
456 		goto exec_fail_dealloc;
457 
458 	imgp->object = imgp->vp->v_object;
459 	if (imgp->object != NULL)
460 		vm_object_reference(imgp->object);
461 
462 	/*
463 	 * Set VV_TEXT now so no one can write to the executable while we're
464 	 * activating it.
465 	 *
466 	 * Remember if this was set before and unset it in case this is not
467 	 * actually an executable image.
468 	 */
469 	textset = imgp->vp->v_vflag & VV_TEXT;
470 	imgp->vp->v_vflag |= VV_TEXT;
471 
472 	error = exec_map_first_page(imgp);
473 	if (error)
474 		goto exec_fail_dealloc;
475 
476 	imgp->proc->p_osrel = 0;
477 	/*
478 	 *	If the current process has a special image activator it
479 	 *	wants to try first, call it.   For example, emulating shell
480 	 *	scripts differently.
481 	 */
482 	error = -1;
483 	if ((img_first = imgp->proc->p_sysent->sv_imgact_try) != NULL)
484 		error = img_first(imgp);
485 
486 	/*
487 	 *	Loop through the list of image activators, calling each one.
488 	 *	An activator returns -1 if there is no match, 0 on success,
489 	 *	and an error otherwise.
490 	 */
491 	for (i = 0; error == -1 && execsw[i]; ++i) {
492 		if (execsw[i]->ex_imgact == NULL ||
493 		    execsw[i]->ex_imgact == img_first) {
494 			continue;
495 		}
496 		error = (*execsw[i]->ex_imgact)(imgp);
497 	}
498 
499 	if (error) {
500 		if (error == -1) {
501 			if (textset == 0)
502 				imgp->vp->v_vflag &= ~VV_TEXT;
503 			error = ENOEXEC;
504 		}
505 		goto exec_fail_dealloc;
506 	}
507 
508 	/*
509 	 * Special interpreter operation, cleanup and loop up to try to
510 	 * activate the interpreter.
511 	 */
512 	if (imgp->interpreted) {
513 		exec_unmap_first_page(imgp);
514 		/*
515 		 * VV_TEXT needs to be unset for scripts.  There is a short
516 		 * period before we determine that something is a script where
517 		 * VV_TEXT will be set. The vnode lock is held over this
518 		 * entire period so nothing should illegitimately be blocked.
519 		 */
520 		imgp->vp->v_vflag &= ~VV_TEXT;
521 		/* free name buffer and old vnode */
522 		if (args->fname != NULL)
523 			NDFREE(&nd, NDF_ONLY_PNBUF);
524 #ifdef MAC
525 		mac_execve_interpreter_enter(binvp, &interpvplabel);
526 #endif
527 		if (imgp->opened) {
528 			VOP_CLOSE(binvp, FREAD, td->td_ucred, td);
529 			imgp->opened = 0;
530 		}
531 		vput(binvp);
532 		vm_object_deallocate(imgp->object);
533 		imgp->object = NULL;
534 		VFS_UNLOCK_GIANT(vfslocked);
535 		vfslocked = 0;
536 		/* set new name to that of the interpreter */
537 		NDINIT(&nd, LOOKUP, LOCKLEAF | FOLLOW | SAVENAME | MPSAFE,
538 		    UIO_SYSSPACE, imgp->interpreter_name, td);
539 		args->fname = imgp->interpreter_name;
540 		goto interpret;
541 	}
542 
543 	/*
544 	 * NB: We unlock the vnode here because it is believed that none
545 	 * of the sv_copyout_strings/sv_fixup operations require the vnode.
546 	 */
547 	VOP_UNLOCK(imgp->vp, 0);
548 
549 	/*
550 	 * Do the best to calculate the full path to the image file.
551 	 */
552 	if (imgp->auxargs != NULL &&
553 	    ((args->fname != NULL && args->fname[0] == '/') ||
554 	     vn_fullpath(td, imgp->vp, &imgp->execpath, &imgp->freepath) != 0))
555 		imgp->execpath = args->fname;
556 
557 	/*
558 	 * Copy out strings (args and env) and initialize stack base
559 	 */
560 	if (p->p_sysent->sv_copyout_strings)
561 		stack_base = (*p->p_sysent->sv_copyout_strings)(imgp);
562 	else
563 		stack_base = exec_copyout_strings(imgp);
564 
565 	/*
566 	 * If custom stack fixup routine present for this process
567 	 * let it do the stack setup.
568 	 * Else stuff argument count as first item on stack
569 	 */
570 	if (p->p_sysent->sv_fixup != NULL)
571 		(*p->p_sysent->sv_fixup)(&stack_base, imgp);
572 	else
573 		suword(--stack_base, imgp->args->argc);
574 
575 	/*
576 	 * For security and other reasons, the file descriptor table cannot
577 	 * be shared after an exec.
578 	 */
579 	fdunshare(p, td);
580 
581 	/*
582 	 * Malloc things before we need locks.
583 	 */
584 	newcred = crget();
585 	euip = uifind(attr.va_uid);
586 	i = imgp->args->begin_envv - imgp->args->begin_argv;
587 	/* Cache arguments if they fit inside our allowance */
588 	if (ps_arg_cache_limit >= i + sizeof(struct pargs)) {
589 		newargs = pargs_alloc(i);
590 		bcopy(imgp->args->begin_argv, newargs->ar_args, i);
591 	}
592 
593 	/* close files on exec */
594 	fdcloseexec(td);
595 	vn_lock(imgp->vp, LK_EXCLUSIVE | LK_RETRY);
596 
597 	/* Get a reference to the vnode prior to locking the proc */
598 	VREF(binvp);
599 
600 	/*
601 	 * For security and other reasons, signal handlers cannot
602 	 * be shared after an exec. The new process gets a copy of the old
603 	 * handlers. In execsigs(), the new process will have its signals
604 	 * reset.
605 	 */
606 	PROC_LOCK(p);
607 	oldcred = crcopysafe(p, newcred);
608 	if (sigacts_shared(p->p_sigacts)) {
609 		oldsigacts = p->p_sigacts;
610 		PROC_UNLOCK(p);
611 		newsigacts = sigacts_alloc();
612 		sigacts_copy(newsigacts, oldsigacts);
613 		PROC_LOCK(p);
614 		p->p_sigacts = newsigacts;
615 	} else
616 		oldsigacts = NULL;
617 
618 	/* Stop profiling */
619 	stopprofclock(p);
620 
621 	/* reset caught signals */
622 	execsigs(p);
623 
624 	/* name this process - nameiexec(p, ndp) */
625 	bzero(p->p_comm, sizeof(p->p_comm));
626 	if (args->fname)
627 		bcopy(nd.ni_cnd.cn_nameptr, p->p_comm,
628 		    min(nd.ni_cnd.cn_namelen, MAXCOMLEN));
629 	else if (vn_commname(binvp, p->p_comm, sizeof(p->p_comm)) != 0)
630 		bcopy(fexecv_proc_title, p->p_comm, sizeof(fexecv_proc_title));
631 	bcopy(p->p_comm, td->td_name, sizeof(td->td_name));
632 
633 	/*
634 	 * mark as execed, wakeup the process that vforked (if any) and tell
635 	 * it that it now has its own resources back
636 	 */
637 	p->p_flag |= P_EXEC;
638 	if (p->p_pptr && (p->p_flag & P_PPWAIT)) {
639 		p->p_flag &= ~P_PPWAIT;
640 		cv_broadcast(&p->p_pwait);
641 	}
642 
643 	/*
644 	 * Implement image setuid/setgid.
645 	 *
646 	 * Don't honor setuid/setgid if the filesystem prohibits it or if
647 	 * the process is being traced.
648 	 *
649 	 * We disable setuid/setgid/etc in compatibility mode on the basis
650 	 * that most setugid applications are not written with that
651 	 * environment in mind, and will therefore almost certainly operate
652 	 * incorrectly. In principle there's no reason that setugid
653 	 * applications might not be useful in capability mode, so we may want
654 	 * to reconsider this conservative design choice in the future.
655 	 *
656 	 * XXXMAC: For the time being, use NOSUID to also prohibit
657 	 * transitions on the file system.
658 	 */
659 	credential_changing = 0;
660 	credential_changing |= (attr.va_mode & S_ISUID) && oldcred->cr_uid !=
661 	    attr.va_uid;
662 	credential_changing |= (attr.va_mode & S_ISGID) && oldcred->cr_gid !=
663 	    attr.va_gid;
664 #ifdef MAC
665 	will_transition = mac_vnode_execve_will_transition(oldcred, imgp->vp,
666 	    interpvplabel, imgp);
667 	credential_changing |= will_transition;
668 #endif
669 
670 	if (credential_changing &&
671 #ifdef CAPABILITY_MODE
672 	    ((oldcred->cr_flags & CRED_FLAG_CAPMODE) == 0) &&
673 #endif
674 	    (imgp->vp->v_mount->mnt_flag & MNT_NOSUID) == 0 &&
675 	    (p->p_flag & P_TRACED) == 0) {
676 		/*
677 		 * Turn off syscall tracing for set-id programs, except for
678 		 * root.  Record any set-id flags first to make sure that
679 		 * we do not regain any tracing during a possible block.
680 		 */
681 		setsugid(p);
682 
683 #ifdef KTRACE
684 		if (priv_check_cred(oldcred, PRIV_DEBUG_DIFFCRED, 0))
685 			ktrprocexec(p, &tracecred, &tracevp);
686 #endif
687 		/*
688 		 * Close any file descriptors 0..2 that reference procfs,
689 		 * then make sure file descriptors 0..2 are in use.
690 		 *
691 		 * setugidsafety() may call closef() and then pfind()
692 		 * which may grab the process lock.
693 		 * fdcheckstd() may call falloc() which may block to
694 		 * allocate memory, so temporarily drop the process lock.
695 		 */
696 		PROC_UNLOCK(p);
697 		VOP_UNLOCK(imgp->vp, 0);
698 		setugidsafety(td);
699 		error = fdcheckstd(td);
700 		vn_lock(imgp->vp, LK_EXCLUSIVE | LK_RETRY);
701 		if (error != 0)
702 			goto done1;
703 		PROC_LOCK(p);
704 		/*
705 		 * Set the new credentials.
706 		 */
707 		if (attr.va_mode & S_ISUID)
708 			change_euid(newcred, euip);
709 		if (attr.va_mode & S_ISGID)
710 			change_egid(newcred, attr.va_gid);
711 #ifdef MAC
712 		if (will_transition) {
713 			mac_vnode_execve_transition(oldcred, newcred, imgp->vp,
714 			    interpvplabel, imgp);
715 		}
716 #endif
717 		/*
718 		 * Implement correct POSIX saved-id behavior.
719 		 *
720 		 * XXXMAC: Note that the current logic will save the
721 		 * uid and gid if a MAC domain transition occurs, even
722 		 * though maybe it shouldn't.
723 		 */
724 		change_svuid(newcred, newcred->cr_uid);
725 		change_svgid(newcred, newcred->cr_gid);
726 		p->p_ucred = newcred;
727 		newcred = NULL;
728 	} else {
729 		if (oldcred->cr_uid == oldcred->cr_ruid &&
730 		    oldcred->cr_gid == oldcred->cr_rgid)
731 			p->p_flag &= ~P_SUGID;
732 		/*
733 		 * Implement correct POSIX saved-id behavior.
734 		 *
735 		 * XXX: It's not clear that the existing behavior is
736 		 * POSIX-compliant.  A number of sources indicate that the
737 		 * saved uid/gid should only be updated if the new ruid is
738 		 * not equal to the old ruid, or the new euid is not equal
739 		 * to the old euid and the new euid is not equal to the old
740 		 * ruid.  The FreeBSD code always updates the saved uid/gid.
741 		 * Also, this code uses the new (replaced) euid and egid as
742 		 * the source, which may or may not be the right ones to use.
743 		 */
744 		if (oldcred->cr_svuid != oldcred->cr_uid ||
745 		    oldcred->cr_svgid != oldcred->cr_gid) {
746 			change_svuid(newcred, newcred->cr_uid);
747 			change_svgid(newcred, newcred->cr_gid);
748 			p->p_ucred = newcred;
749 			newcred = NULL;
750 		}
751 	}
752 
753 	/*
754 	 * Store the vp for use in procfs.  This vnode was referenced prior
755 	 * to locking the proc lock.
756 	 */
757 	textvp = p->p_textvp;
758 	p->p_textvp = binvp;
759 
760 #ifdef KDTRACE_HOOKS
761 	/*
762 	 * Tell the DTrace fasttrap provider about the exec if it
763 	 * has declared an interest.
764 	 */
765 	if (dtrace_fasttrap_exec)
766 		dtrace_fasttrap_exec(p);
767 #endif
768 
769 	/*
770 	 * Notify others that we exec'd, and clear the P_INEXEC flag
771 	 * as we're now a bona fide freshly-execed process.
772 	 */
773 	KNOTE_LOCKED(&p->p_klist, NOTE_EXEC);
774 	p->p_flag &= ~P_INEXEC;
775 
776 	/*
777 	 * If tracing the process, trap to the debugger so that
778 	 * breakpoints can be set before the program executes.  We
779 	 * have to use tdsignal() to deliver the signal to the current
780 	 * thread since any other threads in this process will exit if
781 	 * execve() succeeds.
782 	 */
783 	if (p->p_flag & P_TRACED)
784 		tdsignal(td, SIGTRAP);
785 
786 	/* clear "fork but no exec" flag, as we _are_ execing */
787 	p->p_acflag &= ~AFORK;
788 
789 	/*
790 	 * Free any previous argument cache and replace it with
791 	 * the new argument cache, if any.
792 	 */
793 	oldargs = p->p_args;
794 	p->p_args = newargs;
795 	newargs = NULL;
796 
797 #ifdef	HWPMC_HOOKS
798 	/*
799 	 * Check if system-wide sampling is in effect or if the
800 	 * current process is using PMCs.  If so, do exec() time
801 	 * processing.  This processing needs to happen AFTER the
802 	 * P_INEXEC flag is cleared.
803 	 *
804 	 * The proc lock needs to be released before taking the PMC
805 	 * SX.
806 	 */
807 	if (PMC_SYSTEM_SAMPLING_ACTIVE() || PMC_PROC_IS_USING_PMCS(p)) {
808 		PROC_UNLOCK(p);
809 		VOP_UNLOCK(imgp->vp, 0);
810 		pe.pm_credentialschanged = credential_changing;
811 		pe.pm_entryaddr = imgp->entry_addr;
812 
813 		PMC_CALL_HOOK_X(td, PMC_FN_PROCESS_EXEC, (void *) &pe);
814 		vn_lock(imgp->vp, LK_EXCLUSIVE | LK_RETRY);
815 	} else
816 		PROC_UNLOCK(p);
817 #else  /* !HWPMC_HOOKS */
818 	PROC_UNLOCK(p);
819 #endif
820 
821 	/* Set values passed into the program in registers. */
822 	if (p->p_sysent->sv_setregs)
823 		(*p->p_sysent->sv_setregs)(td, imgp,
824 		    (u_long)(uintptr_t)stack_base);
825 	else
826 		exec_setregs(td, imgp, (u_long)(uintptr_t)stack_base);
827 
828 	vfs_mark_atime(imgp->vp, td->td_ucred);
829 
830 	SDT_PROBE(proc, kernel, , exec_success, args->fname, 0, 0, 0, 0);
831 
832 done1:
833 	/*
834 	 * Free any resources malloc'd earlier that we didn't use.
835 	 */
836 	uifree(euip);
837 	if (newcred == NULL)
838 		crfree(oldcred);
839 	else
840 		crfree(newcred);
841 	VOP_UNLOCK(imgp->vp, 0);
842 
843 	/*
844 	 * Handle deferred decrement of ref counts.
845 	 */
846 	if (textvp != NULL) {
847 		int tvfslocked;
848 
849 		tvfslocked = VFS_LOCK_GIANT(textvp->v_mount);
850 		vrele(textvp);
851 		VFS_UNLOCK_GIANT(tvfslocked);
852 	}
853 	if (binvp && error != 0)
854 		vrele(binvp);
855 #ifdef KTRACE
856 	if (tracevp != NULL) {
857 		int tvfslocked;
858 
859 		tvfslocked = VFS_LOCK_GIANT(tracevp->v_mount);
860 		vrele(tracevp);
861 		VFS_UNLOCK_GIANT(tvfslocked);
862 	}
863 	if (tracecred != NULL)
864 		crfree(tracecred);
865 #endif
866 	vn_lock(imgp->vp, LK_EXCLUSIVE | LK_RETRY);
867 	pargs_drop(oldargs);
868 	pargs_drop(newargs);
869 	if (oldsigacts != NULL)
870 		sigacts_free(oldsigacts);
871 
872 exec_fail_dealloc:
873 
874 	/*
875 	 * free various allocated resources
876 	 */
877 	if (imgp->firstpage != NULL)
878 		exec_unmap_first_page(imgp);
879 
880 	if (imgp->vp != NULL) {
881 		if (args->fname)
882 			NDFREE(&nd, NDF_ONLY_PNBUF);
883 		if (imgp->opened)
884 			VOP_CLOSE(imgp->vp, FREAD, td->td_ucred, td);
885 		vput(imgp->vp);
886 	}
887 
888 	if (imgp->object != NULL)
889 		vm_object_deallocate(imgp->object);
890 
891 	free(imgp->freepath, M_TEMP);
892 
893 	if (error == 0) {
894 		PROC_LOCK(p);
895 		td->td_dbgflags |= TDB_EXEC;
896 		PROC_UNLOCK(p);
897 
898 		/*
899 		 * Stop the process here if its stop event mask has
900 		 * the S_EXEC bit set.
901 		 */
902 		STOPEVENT(p, S_EXEC, 0);
903 		goto done2;
904 	}
905 
906 exec_fail:
907 	/* we're done here, clear P_INEXEC */
908 	PROC_LOCK(p);
909 	p->p_flag &= ~P_INEXEC;
910 	PROC_UNLOCK(p);
911 
912 	SDT_PROBE(proc, kernel, , exec_failure, error, 0, 0, 0, 0);
913 
914 done2:
915 #ifdef MAC
916 	mac_execve_exit(imgp);
917 	mac_execve_interpreter_exit(interpvplabel);
918 #endif
919 	VFS_UNLOCK_GIANT(vfslocked);
920 	exec_free_args(args);
921 
922 	if (error && imgp->vmspace_destroyed) {
923 		/* sorry, no more process anymore. exit gracefully */
924 		exit1(td, W_EXITCODE(0, SIGABRT));
925 		/* NOT REACHED */
926 	}
927 
928 #ifdef KTRACE
929 	if (error == 0)
930 		ktrprocctor(p);
931 #endif
932 
933 	return (error);
934 }
935 
936 int
937 exec_map_first_page(imgp)
938 	struct image_params *imgp;
939 {
940 	int rv, i;
941 	int initial_pagein;
942 	vm_page_t ma[VM_INITIAL_PAGEIN];
943 	vm_object_t object;
944 
945 	if (imgp->firstpage != NULL)
946 		exec_unmap_first_page(imgp);
947 
948 	object = imgp->vp->v_object;
949 	if (object == NULL)
950 		return (EACCES);
951 	VM_OBJECT_LOCK(object);
952 #if VM_NRESERVLEVEL > 0
953 	if ((object->flags & OBJ_COLORED) == 0) {
954 		object->flags |= OBJ_COLORED;
955 		object->pg_color = 0;
956 	}
957 #endif
958 	ma[0] = vm_page_grab(object, 0, VM_ALLOC_NORMAL | VM_ALLOC_RETRY);
959 	if (ma[0]->valid != VM_PAGE_BITS_ALL) {
960 		initial_pagein = VM_INITIAL_PAGEIN;
961 		if (initial_pagein > object->size)
962 			initial_pagein = object->size;
963 		for (i = 1; i < initial_pagein; i++) {
964 			if ((ma[i] = vm_page_next(ma[i - 1])) != NULL) {
965 				if (ma[i]->valid)
966 					break;
967 				if ((ma[i]->oflags & VPO_BUSY) || ma[i]->busy)
968 					break;
969 				vm_page_busy(ma[i]);
970 			} else {
971 				ma[i] = vm_page_alloc(object, i,
972 				    VM_ALLOC_NORMAL | VM_ALLOC_IFNOTCACHED);
973 				if (ma[i] == NULL)
974 					break;
975 			}
976 		}
977 		initial_pagein = i;
978 		rv = vm_pager_get_pages(object, ma, initial_pagein, 0);
979 		ma[0] = vm_page_lookup(object, 0);
980 		if ((rv != VM_PAGER_OK) || (ma[0] == NULL)) {
981 			if (ma[0] != NULL) {
982 				vm_page_lock(ma[0]);
983 				vm_page_free(ma[0]);
984 				vm_page_unlock(ma[0]);
985 			}
986 			VM_OBJECT_UNLOCK(object);
987 			return (EIO);
988 		}
989 	}
990 	vm_page_lock(ma[0]);
991 	vm_page_hold(ma[0]);
992 	vm_page_unlock(ma[0]);
993 	vm_page_wakeup(ma[0]);
994 	VM_OBJECT_UNLOCK(object);
995 
996 	imgp->firstpage = sf_buf_alloc(ma[0], 0);
997 	imgp->image_header = (char *)sf_buf_kva(imgp->firstpage);
998 
999 	return (0);
1000 }
1001 
1002 void
1003 exec_unmap_first_page(imgp)
1004 	struct image_params *imgp;
1005 {
1006 	vm_page_t m;
1007 
1008 	if (imgp->firstpage != NULL) {
1009 		m = sf_buf_page(imgp->firstpage);
1010 		sf_buf_free(imgp->firstpage);
1011 		imgp->firstpage = NULL;
1012 		vm_page_lock(m);
1013 		vm_page_unhold(m);
1014 		vm_page_unlock(m);
1015 	}
1016 }
1017 
1018 /*
1019  * Destroy old address space, and allocate a new stack
1020  *	The new stack is only SGROWSIZ large because it is grown
1021  *	automatically in trap.c.
1022  */
1023 int
1024 exec_new_vmspace(imgp, sv)
1025 	struct image_params *imgp;
1026 	struct sysentvec *sv;
1027 {
1028 	int error;
1029 	struct proc *p = imgp->proc;
1030 	struct vmspace *vmspace = p->p_vmspace;
1031 	vm_object_t obj;
1032 	vm_offset_t sv_minuser, stack_addr;
1033 	vm_map_t map;
1034 	u_long ssiz;
1035 
1036 	imgp->vmspace_destroyed = 1;
1037 	imgp->sysent = sv;
1038 
1039 	/* May be called with Giant held */
1040 	EVENTHANDLER_INVOKE(process_exec, p, imgp);
1041 
1042 	/*
1043 	 * Blow away entire process VM, if address space not shared,
1044 	 * otherwise, create a new VM space so that other threads are
1045 	 * not disrupted
1046 	 */
1047 	map = &vmspace->vm_map;
1048 	if (map_at_zero)
1049 		sv_minuser = sv->sv_minuser;
1050 	else
1051 		sv_minuser = MAX(sv->sv_minuser, PAGE_SIZE);
1052 	if (vmspace->vm_refcnt == 1 && vm_map_min(map) == sv_minuser &&
1053 	    vm_map_max(map) == sv->sv_maxuser) {
1054 		shmexit(vmspace);
1055 		pmap_remove_pages(vmspace_pmap(vmspace));
1056 		vm_map_remove(map, vm_map_min(map), vm_map_max(map));
1057 	} else {
1058 		error = vmspace_exec(p, sv_minuser, sv->sv_maxuser);
1059 		if (error)
1060 			return (error);
1061 		vmspace = p->p_vmspace;
1062 		map = &vmspace->vm_map;
1063 	}
1064 
1065 	/* Map a shared page */
1066 	obj = sv->sv_shared_page_obj;
1067 	if (obj != NULL) {
1068 		vm_object_reference(obj);
1069 		error = vm_map_fixed(map, obj, 0,
1070 		    sv->sv_shared_page_base, sv->sv_shared_page_len,
1071 		    VM_PROT_READ | VM_PROT_EXECUTE, VM_PROT_ALL,
1072 		    MAP_COPY_ON_WRITE | MAP_ACC_NO_CHARGE);
1073 		if (error) {
1074 			vm_object_deallocate(obj);
1075 			return (error);
1076 		}
1077 	}
1078 
1079 	/* Allocate a new stack */
1080 	if (sv->sv_maxssiz != NULL)
1081 		ssiz = *sv->sv_maxssiz;
1082 	else
1083 		ssiz = maxssiz;
1084 	stack_addr = sv->sv_usrstack - ssiz;
1085 	error = vm_map_stack(map, stack_addr, (vm_size_t)ssiz,
1086 	    obj != NULL && imgp->stack_prot != 0 ? imgp->stack_prot :
1087 		sv->sv_stackprot,
1088 	    VM_PROT_ALL, MAP_STACK_GROWS_DOWN);
1089 	if (error)
1090 		return (error);
1091 
1092 #ifdef __ia64__
1093 	/* Allocate a new register stack */
1094 	stack_addr = IA64_BACKINGSTORE;
1095 	error = vm_map_stack(map, stack_addr, (vm_size_t)ssiz,
1096 	    sv->sv_stackprot, VM_PROT_ALL, MAP_STACK_GROWS_UP);
1097 	if (error)
1098 		return (error);
1099 #endif
1100 
1101 	/* vm_ssize and vm_maxsaddr are somewhat antiquated concepts in the
1102 	 * VM_STACK case, but they are still used to monitor the size of the
1103 	 * process stack so we can check the stack rlimit.
1104 	 */
1105 	vmspace->vm_ssize = sgrowsiz >> PAGE_SHIFT;
1106 	vmspace->vm_maxsaddr = (char *)sv->sv_usrstack - ssiz;
1107 
1108 	return (0);
1109 }
1110 
1111 /*
1112  * Copy out argument and environment strings from the old process address
1113  * space into the temporary string buffer.
1114  */
1115 int
1116 exec_copyin_args(struct image_args *args, char *fname,
1117     enum uio_seg segflg, char **argv, char **envv)
1118 {
1119 	char *argp, *envp;
1120 	int error;
1121 	size_t length;
1122 
1123 	bzero(args, sizeof(*args));
1124 	if (argv == NULL)
1125 		return (EFAULT);
1126 
1127 	/*
1128 	 * Allocate demand-paged memory for the file name, argument, and
1129 	 * environment strings.
1130 	 */
1131 	error = exec_alloc_args(args);
1132 	if (error != 0)
1133 		return (error);
1134 
1135 	/*
1136 	 * Copy the file name.
1137 	 */
1138 	if (fname != NULL) {
1139 		args->fname = args->buf;
1140 		error = (segflg == UIO_SYSSPACE) ?
1141 		    copystr(fname, args->fname, PATH_MAX, &length) :
1142 		    copyinstr(fname, args->fname, PATH_MAX, &length);
1143 		if (error != 0)
1144 			goto err_exit;
1145 	} else
1146 		length = 0;
1147 
1148 	args->begin_argv = args->buf + length;
1149 	args->endp = args->begin_argv;
1150 	args->stringspace = ARG_MAX;
1151 
1152 	/*
1153 	 * extract arguments first
1154 	 */
1155 	while ((argp = (caddr_t) (intptr_t) fuword(argv++))) {
1156 		if (argp == (caddr_t) -1) {
1157 			error = EFAULT;
1158 			goto err_exit;
1159 		}
1160 		if ((error = copyinstr(argp, args->endp,
1161 		    args->stringspace, &length))) {
1162 			if (error == ENAMETOOLONG)
1163 				error = E2BIG;
1164 			goto err_exit;
1165 		}
1166 		args->stringspace -= length;
1167 		args->endp += length;
1168 		args->argc++;
1169 	}
1170 
1171 	args->begin_envv = args->endp;
1172 
1173 	/*
1174 	 * extract environment strings
1175 	 */
1176 	if (envv) {
1177 		while ((envp = (caddr_t)(intptr_t)fuword(envv++))) {
1178 			if (envp == (caddr_t)-1) {
1179 				error = EFAULT;
1180 				goto err_exit;
1181 			}
1182 			if ((error = copyinstr(envp, args->endp,
1183 			    args->stringspace, &length))) {
1184 				if (error == ENAMETOOLONG)
1185 					error = E2BIG;
1186 				goto err_exit;
1187 			}
1188 			args->stringspace -= length;
1189 			args->endp += length;
1190 			args->envc++;
1191 		}
1192 	}
1193 
1194 	return (0);
1195 
1196 err_exit:
1197 	exec_free_args(args);
1198 	return (error);
1199 }
1200 
1201 /*
1202  * Allocate temporary demand-paged, zero-filled memory for the file name,
1203  * argument, and environment strings.  Returns zero if the allocation succeeds
1204  * and ENOMEM otherwise.
1205  */
1206 int
1207 exec_alloc_args(struct image_args *args)
1208 {
1209 
1210 	args->buf = (char *)kmem_alloc_wait(exec_map, PATH_MAX + ARG_MAX);
1211 	return (args->buf != NULL ? 0 : ENOMEM);
1212 }
1213 
1214 void
1215 exec_free_args(struct image_args *args)
1216 {
1217 
1218 	if (args->buf != NULL) {
1219 		kmem_free_wakeup(exec_map, (vm_offset_t)args->buf,
1220 		    PATH_MAX + ARG_MAX);
1221 		args->buf = NULL;
1222 	}
1223 	if (args->fname_buf != NULL) {
1224 		free(args->fname_buf, M_TEMP);
1225 		args->fname_buf = NULL;
1226 	}
1227 }
1228 
1229 /*
1230  * Copy strings out to the new process address space, constructing new arg
1231  * and env vector tables. Return a pointer to the base so that it can be used
1232  * as the initial stack pointer.
1233  */
1234 register_t *
1235 exec_copyout_strings(imgp)
1236 	struct image_params *imgp;
1237 {
1238 	int argc, envc;
1239 	char **vectp;
1240 	char *stringp, *destp;
1241 	register_t *stack_base;
1242 	struct ps_strings *arginfo;
1243 	struct proc *p;
1244 	size_t execpath_len;
1245 	int szsigcode, szps;
1246 	char canary[sizeof(long) * 8];
1247 
1248 	szps = sizeof(pagesizes[0]) * MAXPAGESIZES;
1249 	/*
1250 	 * Calculate string base and vector table pointers.
1251 	 * Also deal with signal trampoline code for this exec type.
1252 	 */
1253 	if (imgp->execpath != NULL && imgp->auxargs != NULL)
1254 		execpath_len = strlen(imgp->execpath) + 1;
1255 	else
1256 		execpath_len = 0;
1257 	p = imgp->proc;
1258 	szsigcode = 0;
1259 	arginfo = (struct ps_strings *)p->p_sysent->sv_psstrings;
1260 	if (p->p_sysent->sv_sigcode_base == 0) {
1261 		if (p->p_sysent->sv_szsigcode != NULL)
1262 			szsigcode = *(p->p_sysent->sv_szsigcode);
1263 	}
1264 	destp =	(caddr_t)arginfo - szsigcode - SPARE_USRSPACE -
1265 	    roundup(execpath_len, sizeof(char *)) -
1266 	    roundup(sizeof(canary), sizeof(char *)) -
1267 	    roundup(szps, sizeof(char *)) -
1268 	    roundup((ARG_MAX - imgp->args->stringspace), sizeof(char *));
1269 
1270 	/*
1271 	 * install sigcode
1272 	 */
1273 	if (szsigcode != 0)
1274 		copyout(p->p_sysent->sv_sigcode, ((caddr_t)arginfo -
1275 		    szsigcode), szsigcode);
1276 
1277 	/*
1278 	 * Copy the image path for the rtld.
1279 	 */
1280 	if (execpath_len != 0) {
1281 		imgp->execpathp = (uintptr_t)arginfo - szsigcode - execpath_len;
1282 		copyout(imgp->execpath, (void *)imgp->execpathp,
1283 		    execpath_len);
1284 	}
1285 
1286 	/*
1287 	 * Prepare the canary for SSP.
1288 	 */
1289 	arc4rand(canary, sizeof(canary), 0);
1290 	imgp->canary = (uintptr_t)arginfo - szsigcode - execpath_len -
1291 	    sizeof(canary);
1292 	copyout(canary, (void *)imgp->canary, sizeof(canary));
1293 	imgp->canarylen = sizeof(canary);
1294 
1295 	/*
1296 	 * Prepare the pagesizes array.
1297 	 */
1298 	imgp->pagesizes = (uintptr_t)arginfo - szsigcode - execpath_len -
1299 	    roundup(sizeof(canary), sizeof(char *)) - szps;
1300 	copyout(pagesizes, (void *)imgp->pagesizes, szps);
1301 	imgp->pagesizeslen = szps;
1302 
1303 	/*
1304 	 * If we have a valid auxargs ptr, prepare some room
1305 	 * on the stack.
1306 	 */
1307 	if (imgp->auxargs) {
1308 		/*
1309 		 * 'AT_COUNT*2' is size for the ELF Auxargs data. This is for
1310 		 * lower compatibility.
1311 		 */
1312 		imgp->auxarg_size = (imgp->auxarg_size) ? imgp->auxarg_size :
1313 		    (AT_COUNT * 2);
1314 		/*
1315 		 * The '+ 2' is for the null pointers at the end of each of
1316 		 * the arg and env vector sets,and imgp->auxarg_size is room
1317 		 * for argument of Runtime loader.
1318 		 */
1319 		vectp = (char **)(destp - (imgp->args->argc +
1320 		    imgp->args->envc + 2 + imgp->auxarg_size)
1321 		    * sizeof(char *));
1322 	} else {
1323 		/*
1324 		 * The '+ 2' is for the null pointers at the end of each of
1325 		 * the arg and env vector sets
1326 		 */
1327 		vectp = (char **)(destp - (imgp->args->argc + imgp->args->envc + 2) *
1328 		    sizeof(char *));
1329 	}
1330 
1331 	/*
1332 	 * vectp also becomes our initial stack base
1333 	 */
1334 	stack_base = (register_t *)vectp;
1335 
1336 	stringp = imgp->args->begin_argv;
1337 	argc = imgp->args->argc;
1338 	envc = imgp->args->envc;
1339 
1340 	/*
1341 	 * Copy out strings - arguments and environment.
1342 	 */
1343 	copyout(stringp, destp, ARG_MAX - imgp->args->stringspace);
1344 
1345 	/*
1346 	 * Fill in "ps_strings" struct for ps, w, etc.
1347 	 */
1348 	suword(&arginfo->ps_argvstr, (long)(intptr_t)vectp);
1349 	suword32(&arginfo->ps_nargvstr, argc);
1350 
1351 	/*
1352 	 * Fill in argument portion of vector table.
1353 	 */
1354 	for (; argc > 0; --argc) {
1355 		suword(vectp++, (long)(intptr_t)destp);
1356 		while (*stringp++ != 0)
1357 			destp++;
1358 		destp++;
1359 	}
1360 
1361 	/* a null vector table pointer separates the argp's from the envp's */
1362 	suword(vectp++, 0);
1363 
1364 	suword(&arginfo->ps_envstr, (long)(intptr_t)vectp);
1365 	suword32(&arginfo->ps_nenvstr, envc);
1366 
1367 	/*
1368 	 * Fill in environment portion of vector table.
1369 	 */
1370 	for (; envc > 0; --envc) {
1371 		suword(vectp++, (long)(intptr_t)destp);
1372 		while (*stringp++ != 0)
1373 			destp++;
1374 		destp++;
1375 	}
1376 
1377 	/* end of vector table is a null pointer */
1378 	suword(vectp, 0);
1379 
1380 	return (stack_base);
1381 }
1382 
1383 /*
1384  * Check permissions of file to execute.
1385  *	Called with imgp->vp locked.
1386  *	Return 0 for success or error code on failure.
1387  */
1388 int
1389 exec_check_permissions(imgp)
1390 	struct image_params *imgp;
1391 {
1392 	struct vnode *vp = imgp->vp;
1393 	struct vattr *attr = imgp->attr;
1394 	struct thread *td;
1395 	int error;
1396 
1397 	td = curthread;
1398 
1399 	/* Get file attributes */
1400 	error = VOP_GETATTR(vp, attr, td->td_ucred);
1401 	if (error)
1402 		return (error);
1403 
1404 #ifdef MAC
1405 	error = mac_vnode_check_exec(td->td_ucred, imgp->vp, imgp);
1406 	if (error)
1407 		return (error);
1408 #endif
1409 
1410 	/*
1411 	 * 1) Check if file execution is disabled for the filesystem that
1412 	 *    this file resides on.
1413 	 * 2) Ensure that at least one execute bit is on. Otherwise, a
1414 	 *    privileged user will always succeed, and we don't want this
1415 	 *    to happen unless the file really is executable.
1416 	 * 3) Ensure that the file is a regular file.
1417 	 */
1418 	if ((vp->v_mount->mnt_flag & MNT_NOEXEC) ||
1419 	    (attr->va_mode & (S_IXUSR | S_IXGRP | S_IXOTH)) == 0 ||
1420 	    (attr->va_type != VREG))
1421 		return (EACCES);
1422 
1423 	/*
1424 	 * Zero length files can't be exec'd
1425 	 */
1426 	if (attr->va_size == 0)
1427 		return (ENOEXEC);
1428 
1429 	/*
1430 	 *  Check for execute permission to file based on current credentials.
1431 	 */
1432 	error = VOP_ACCESS(vp, VEXEC, td->td_ucred, td);
1433 	if (error)
1434 		return (error);
1435 
1436 	/*
1437 	 * Check number of open-for-writes on the file and deny execution
1438 	 * if there are any.
1439 	 */
1440 	if (vp->v_writecount)
1441 		return (ETXTBSY);
1442 
1443 	/*
1444 	 * Call filesystem specific open routine (which does nothing in the
1445 	 * general case).
1446 	 */
1447 	error = VOP_OPEN(vp, FREAD, td->td_ucred, td, NULL);
1448 	if (error == 0)
1449 		imgp->opened = 1;
1450 	return (error);
1451 }
1452 
1453 /*
1454  * Exec handler registration
1455  */
1456 int
1457 exec_register(execsw_arg)
1458 	const struct execsw *execsw_arg;
1459 {
1460 	const struct execsw **es, **xs, **newexecsw;
1461 	int count = 2;	/* New slot and trailing NULL */
1462 
1463 	if (execsw)
1464 		for (es = execsw; *es; es++)
1465 			count++;
1466 	newexecsw = malloc(count * sizeof(*es), M_TEMP, M_WAITOK);
1467 	if (newexecsw == NULL)
1468 		return (ENOMEM);
1469 	xs = newexecsw;
1470 	if (execsw)
1471 		for (es = execsw; *es; es++)
1472 			*xs++ = *es;
1473 	*xs++ = execsw_arg;
1474 	*xs = NULL;
1475 	if (execsw)
1476 		free(execsw, M_TEMP);
1477 	execsw = newexecsw;
1478 	return (0);
1479 }
1480 
1481 int
1482 exec_unregister(execsw_arg)
1483 	const struct execsw *execsw_arg;
1484 {
1485 	const struct execsw **es, **xs, **newexecsw;
1486 	int count = 1;
1487 
1488 	if (execsw == NULL)
1489 		panic("unregister with no handlers left?\n");
1490 
1491 	for (es = execsw; *es; es++) {
1492 		if (*es == execsw_arg)
1493 			break;
1494 	}
1495 	if (*es == NULL)
1496 		return (ENOENT);
1497 	for (es = execsw; *es; es++)
1498 		if (*es != execsw_arg)
1499 			count++;
1500 	newexecsw = malloc(count * sizeof(*es), M_TEMP, M_WAITOK);
1501 	if (newexecsw == NULL)
1502 		return (ENOMEM);
1503 	xs = newexecsw;
1504 	for (es = execsw; *es; es++)
1505 		if (*es != execsw_arg)
1506 			*xs++ = *es;
1507 	*xs = NULL;
1508 	if (execsw)
1509 		free(execsw, M_TEMP);
1510 	execsw = newexecsw;
1511 	return (0);
1512 }
1513 
1514 static vm_object_t shared_page_obj;
1515 static int shared_page_free;
1516 
1517 int
1518 shared_page_fill(int size, int align, const char *data)
1519 {
1520 	vm_page_t m;
1521 	struct sf_buf *s;
1522 	vm_offset_t sk;
1523 	int res;
1524 
1525 	VM_OBJECT_LOCK(shared_page_obj);
1526 	m = vm_page_grab(shared_page_obj, 0, VM_ALLOC_RETRY);
1527 	res = roundup(shared_page_free, align);
1528 	if (res + size >= IDX_TO_OFF(shared_page_obj->size))
1529 		res = -1;
1530 	else {
1531 		VM_OBJECT_UNLOCK(shared_page_obj);
1532 		s = sf_buf_alloc(m, SFB_DEFAULT);
1533 		sk = sf_buf_kva(s);
1534 		bcopy(data, (void *)(sk + res), size);
1535 		shared_page_free = res + size;
1536 		sf_buf_free(s);
1537 		VM_OBJECT_LOCK(shared_page_obj);
1538 	}
1539 	vm_page_wakeup(m);
1540 	VM_OBJECT_UNLOCK(shared_page_obj);
1541 	return (res);
1542 }
1543 
1544 static void
1545 shared_page_init(void *dummy __unused)
1546 {
1547 	vm_page_t m;
1548 
1549 	shared_page_obj = vm_pager_allocate(OBJT_PHYS, 0, PAGE_SIZE,
1550 	    VM_PROT_DEFAULT, 0, NULL);
1551 	VM_OBJECT_LOCK(shared_page_obj);
1552 	m = vm_page_grab(shared_page_obj, 0, VM_ALLOC_RETRY | VM_ALLOC_NOBUSY |
1553 	    VM_ALLOC_ZERO);
1554 	m->valid = VM_PAGE_BITS_ALL;
1555 	VM_OBJECT_UNLOCK(shared_page_obj);
1556 }
1557 
1558 SYSINIT(shp, SI_SUB_EXEC, SI_ORDER_FIRST, (sysinit_cfunc_t)shared_page_init,
1559     NULL);
1560 
1561 void
1562 exec_sysvec_init(void *param)
1563 {
1564 	struct sysentvec *sv;
1565 
1566 	sv = (struct sysentvec *)param;
1567 
1568 	if ((sv->sv_flags & SV_SHP) == 0)
1569 		return;
1570 	sv->sv_shared_page_obj = shared_page_obj;
1571 	sv->sv_sigcode_base = sv->sv_shared_page_base +
1572 	    shared_page_fill(*(sv->sv_szsigcode), 16, sv->sv_sigcode);
1573 }
1574