Home | History | Annotate | Line # | Download | only in kern
      1 /*	$NetBSD: kern_exec.c,v 1.535 2026/08/28 12:02:15 riastradh Exp $	*/
      2 
      3 /*-
      4  * Copyright (c) 2008, 2019, 2020 The NetBSD Foundation, Inc.
      5  * All rights reserved.
      6  *
      7  * This code is derived from software contributed to The NetBSD Foundation
      8  * by Andrew Doran.
      9  *
     10  * Redistribution and use in source and binary forms, with or without
     11  * modification, are permitted provided that the following conditions
     12  * are met:
     13  * 1. Redistributions of source code must retain the above copyright
     14  *    notice, this list of conditions and the following disclaimer.
     15  * 2. Redistributions in binary form must reproduce the above copyright
     16  *    notice, this list of conditions and the following disclaimer in the
     17  *    documentation and/or other materials provided with the distribution.
     18  *
     19  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29  * POSSIBILITY OF SUCH DAMAGE.
     30  */
     31 
     32 /*-
     33  * Copyright (C) 1993, 1994, 1996 Christopher G. Demetriou
     34  * Copyright (C) 1992 Wolfgang Solfrank.
     35  * Copyright (C) 1992 TooLs GmbH.
     36  * All rights reserved.
     37  *
     38  * Redistribution and use in source and binary forms, with or without
     39  * modification, are permitted provided that the following conditions
     40  * are met:
     41  * 1. Redistributions of source code must retain the above copyright
     42  *    notice, this list of conditions and the following disclaimer.
     43  * 2. Redistributions in binary form must reproduce the above copyright
     44  *    notice, this list of conditions and the following disclaimer in the
     45  *    documentation and/or other materials provided with the distribution.
     46  * 3. All advertising materials mentioning features or use of this software
     47  *    must display the following acknowledgement:
     48  *	This product includes software developed by TooLs GmbH.
     49  * 4. The name of TooLs GmbH may not be used to endorse or promote products
     50  *    derived from this software without specific prior written permission.
     51  *
     52  * THIS SOFTWARE IS PROVIDED BY TOOLS GMBH ``AS IS'' AND ANY EXPRESS OR
     53  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     54  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     55  * IN NO EVENT SHALL TOOLS GMBH BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
     56  * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
     57  * PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS;
     58  * OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY,
     59  * WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR
     60  * OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF
     61  * ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     62  */
     63 
     64 #include <sys/cdefs.h>
     65 __KERNEL_RCSID(0, "$NetBSD: kern_exec.c,v 1.535 2026/08/28 12:02:15 riastradh Exp $");
     66 
     67 #include "opt_exec.h"
     68 #include "opt_execfmt.h"
     69 #include "opt_ktrace.h"
     70 #include "opt_modular.h"
     71 #include "opt_pax.h"
     72 #include "opt_syscall_debug.h"
     73 #include "veriexec.h"
     74 
     75 #include <sys/param.h>
     76 #include <sys/types.h>
     77 
     78 #include <sys/acct.h>
     79 #include <sys/atomic.h>
     80 #include <sys/cprng.h>
     81 #include <sys/cpu.h>
     82 #include <sys/exec.h>
     83 #include <sys/file.h>
     84 #include <sys/filedesc.h>
     85 #include <sys/futex.h>
     86 #include <sys/kauth.h>
     87 #include <sys/kernel.h>
     88 #include <sys/kmem.h>
     89 #include <sys/ktrace.h>
     90 #include <sys/lwpctl.h>
     91 #include <sys/mman.h>
     92 #include <sys/module.h>
     93 #include <sys/mount.h>
     94 #include <sys/namei.h>
     95 #include <sys/pax.h>
     96 #include <sys/proc.h>
     97 #include <sys/prot.h>
     98 #include <sys/ptrace.h>
     99 #include <sys/ras.h>
    100 #include <sys/sdt.h>
    101 #include <sys/signalvar.h>
    102 #include <sys/spawn.h>
    103 #include <sys/stat.h>
    104 #include <sys/syscall.h>
    105 #include <sys/syscallargs.h>
    106 #include <sys/syscallvar.h>
    107 #include <sys/systm.h>
    108 #include <sys/uidinfo.h>
    109 #if NVERIEXEC > 0
    110 #include <sys/verified_exec.h>
    111 #endif /* NVERIEXEC > 0 */
    112 #include <sys/vfs_syscalls.h>
    113 #include <sys/vnode.h>
    114 #include <sys/wait.h>
    115 
    116 #include <uvm/uvm_extern.h>
    117 
    118 #include <machine/reg.h>
    119 
    120 #include <compat/common/compat_util.h>
    121 
    122 #ifndef MD_TOPDOWN_INIT
    123 #ifdef __USE_TOPDOWN_VM
    124 #define	MD_TOPDOWN_INIT(epp)	(epp)->ep_flags |= EXEC_TOPDOWN_VM
    125 #else
    126 #define	MD_TOPDOWN_INIT(epp)
    127 #endif
    128 #endif
    129 
    130 struct execve_data;
    131 
    132 extern int user_va0_disable;
    133 
    134 static size_t calcargs(struct execve_data * restrict, const size_t);
    135 static size_t calcstack(struct execve_data * restrict, const size_t);
    136 static int copyoutargs(struct execve_data * restrict, struct lwp *,
    137     char * const);
    138 static int copyoutpsstrs(struct execve_data * restrict, struct proc *);
    139 static int copyinargs(struct execve_data * restrict, char * const *,
    140     char * const *, execve_fetch_element_t, char **);
    141 static int copyinargstrs(struct execve_data * restrict, char * const *,
    142     execve_fetch_element_t, char **, size_t *, void (*)(const void *, size_t));
    143 static int exec_sigcode_map(struct proc *, const struct emul *);
    144 
    145 #if defined(DEBUG) && !defined(DEBUG_EXEC)
    146 #define DEBUG_EXEC
    147 #endif
    148 #ifdef DEBUG_EXEC
    149 #define DPRINTF(a) printf a
    150 #define COPYPRINTF(s, a, b) printf("%s, %d: copyout%s @%p %zu\n", __func__, \
    151     __LINE__, (s), (a), (b))
    152 static void dump_vmcmds(const struct exec_package * const, size_t, int);
    153 #define DUMPVMCMDS(p, x, e) do { dump_vmcmds((p), (x), (e)); } while (0)
    154 #else
    155 #define DPRINTF(a)
    156 #define COPYPRINTF(s, a, b)
    157 #define DUMPVMCMDS(p, x, e) do {} while (0)
    158 #endif /* DEBUG_EXEC */
    159 
    160 /*
    161  * DTrace SDT provider definitions
    162  */
    163 SDT_PROVIDER_DECLARE(proc);
    164 SDT_PROBE_DEFINE1(proc, kernel, , exec, "char *");
    165 SDT_PROBE_DEFINE1(proc, kernel, , exec__success, "char *");
    166 SDT_PROBE_DEFINE1(proc, kernel, , exec__failure, "int");
    167 
    168 /*
    169  * Exec function switch:
    170  *
    171  * Note that each makecmds function is responsible for loading the
    172  * exec package with the necessary functions for any exec-type-specific
    173  * handling.
    174  *
    175  * Functions for specific exec types should be defined in their own
    176  * header file.
    177  */
    178 static const struct execsw	**execsw = NULL;
    179 static int			nexecs;
    180 
    181 u_int	exec_maxhdrsz;	 /* must not be static - used by netbsd32 */
    182 
    183 /* list of dynamically loaded execsw entries */
    184 static LIST_HEAD(execlist_head, exec_entry) ex_head =
    185     LIST_HEAD_INITIALIZER(ex_head);
    186 struct exec_entry {
    187 	LIST_ENTRY(exec_entry)	ex_list;
    188 	SLIST_ENTRY(exec_entry)	ex_slist;
    189 	const struct execsw	*ex_sw;
    190 };
    191 
    192 #ifndef __HAVE_SYSCALL_INTERN
    193 void	syscall(void);
    194 #endif
    195 
    196 /* NetBSD autoloadable syscalls */
    197 #ifdef MODULAR
    198 #include <kern/syscalls_autoload.c>
    199 #endif
    200 
    201 /* NetBSD emul struct */
    202 struct emul emul_netbsd = {
    203 	.e_name =		"netbsd",
    204 #ifdef EMUL_NATIVEROOT
    205 	.e_path =		EMUL_NATIVEROOT,
    206 #else
    207 	.e_path =		NULL,
    208 #endif
    209 #ifndef __HAVE_MINIMAL_EMUL
    210 	.e_flags =		EMUL_HAS_SYS___syscall,
    211 	.e_errno =		NULL,
    212 	.e_nosys =		SYS_syscall,
    213 	.e_nsysent =		SYS_NSYSENT,
    214 #endif
    215 #ifdef MODULAR
    216 	.e_sc_autoload =	netbsd_syscalls_autoload,
    217 #endif
    218 	.e_sysent =		sysent,
    219 	.e_nomodbits =		sysent_nomodbits,
    220 #ifdef SYSCALL_DEBUG
    221 	.e_syscallnames =	syscallnames,
    222 #else
    223 	.e_syscallnames =	NULL,
    224 #endif
    225 	.e_sendsig =		sendsig,
    226 	.e_trapsignal =		trapsignal,
    227 	.e_sigcode =		NULL,
    228 	.e_esigcode =		NULL,
    229 	.e_sigobject =		NULL,
    230 	.e_setregs =		setregs,
    231 	.e_proc_exec =		NULL,
    232 	.e_proc_fork =		NULL,
    233 	.e_proc_exit =		NULL,
    234 	.e_lwp_fork =		NULL,
    235 	.e_lwp_exit =		NULL,
    236 #ifdef __HAVE_SYSCALL_INTERN
    237 	.e_syscall_intern =	syscall_intern,
    238 #else
    239 	.e_syscall =		syscall,
    240 #endif
    241 	.e_sysctlovly =		NULL,
    242 	.e_vm_default_addr =	uvm_default_mapaddr,
    243 	.e_usertrap =		NULL,
    244 	.e_ucsize =		sizeof(ucontext_t),
    245 	.e_startlwp =		startlwp
    246 };
    247 
    248 /*
    249  * Exec lock. Used to control access to execsw[] structures.
    250  * This must not be static so that netbsd32 can access it, too.
    251  */
    252 krwlock_t exec_lock __cacheline_aligned;
    253 
    254 /*
    255  * Data used between a loadvm and execve part of an "exec" operation
    256  */
    257 struct execve_data {
    258 	struct exec_package	ed_pack;
    259 	struct pathbuf		*ed_pathbuf;
    260 	struct vattr		ed_attr;
    261 	struct ps_strings	ed_arginfo;
    262 	char			*ed_argp;
    263 	const char		*ed_pathstring;
    264 	char			*ed_resolvedname;
    265 	size_t			ed_ps_strings_sz;
    266 	int			ed_szsigcode;
    267 	size_t			ed_argslen;
    268 	long			ed_argc;
    269 	long			ed_envc;
    270 };
    271 
    272 /*
    273  * data passed from parent lwp to child during a posix_spawn()
    274  */
    275 struct spawn_exec_data {
    276 	struct execve_data	sed_exec;
    277 	struct posix_spawn_file_actions
    278 				*sed_actions;
    279 	struct posix_spawnattr	*sed_attrs;
    280 	struct proc		*sed_parent;
    281 	kcondvar_t		sed_cv_child_ready;
    282 	kmutex_t		sed_mtx_child;
    283 	int			sed_error;
    284 	bool			sed_child_ready;
    285 	volatile uint32_t	sed_refcnt;
    286 };
    287 
    288 static struct vm_map *exec_map;
    289 static struct pool exec_pool;
    290 
    291 static void *
    292 exec_pool_alloc(struct pool *pp, int flags)
    293 {
    294 
    295 	return (void *)uvm_km_alloc(exec_map, NCARGS, 0,
    296 	    UVM_KMF_PAGEABLE | UVM_KMF_WAITVA);
    297 }
    298 
    299 static void
    300 exec_pool_free(struct pool *pp, void *addr)
    301 {
    302 
    303 	uvm_km_free(exec_map, (vaddr_t)addr, NCARGS, UVM_KMF_PAGEABLE);
    304 }
    305 
    306 static struct pool_allocator exec_palloc = {
    307 	.pa_alloc = exec_pool_alloc,
    308 	.pa_free = exec_pool_free,
    309 	.pa_pagesz = NCARGS
    310 };
    311 
    312 static void
    313 exec_path_free(struct execve_data *data)
    314 {
    315 	pathbuf_stringcopy_put(data->ed_pathbuf, data->ed_pathstring);
    316 	pathbuf_destroy(data->ed_pathbuf);
    317 	if (data->ed_resolvedname)
    318 		PNBUF_PUT(data->ed_resolvedname);
    319 }
    320 
    321 static int
    322 exec_resolvename(struct lwp *l, struct exec_package *epp, struct vnode *vp,
    323     char **rpath)
    324 {
    325 	int error;
    326 	char *p;
    327 
    328 	KASSERT(rpath != NULL);
    329 
    330 	*rpath = PNBUF_GET();
    331 	error = vnode_to_path(*rpath, MAXPATHLEN, vp, l, l->l_proc);
    332 	if (error) {
    333 		DPRINTF(("%s: can't resolve name for %s, error %d\n",
    334 		    __func__, epp->ep_kname, error));
    335 		PNBUF_PUT(*rpath);
    336 		*rpath = NULL;
    337 		return error;
    338 	}
    339 	epp->ep_resolvedname = *rpath;
    340 	if ((p = strrchr(*rpath, '/')) != NULL)
    341 		epp->ep_kname = p + 1;
    342 	return 0;
    343 }
    344 
    345 
    346 /*
    347  * check exec:
    348  * given an "executable" described in the exec package's namei info,
    349  * see what we can do with it.
    350  *
    351  * ON ENTRY:
    352  *	exec package with appropriate namei info
    353  *	lwp pointer of exec'ing lwp
    354  *	NO SELF-LOCKED VNODES
    355  *
    356  * ON EXIT:
    357  *	error:	nothing held, etc.  exec header still allocated.
    358  *	ok:	filled exec package, executable's vnode (unlocked).
    359  *
    360  * EXEC SWITCH ENTRY:
    361  * 	Locked vnode to check, exec package, proc.
    362  *
    363  * EXEC SWITCH EXIT:
    364  *	ok:	return 0, filled exec package, executable's vnode (unlocked).
    365  *	error:	destructive:
    366  *			everything deallocated execept exec header.
    367  *		non-destructive:
    368  *			error code, executable's vnode (unlocked),
    369  *			exec header unmodified.
    370  */
    371 int
    372 /*ARGSUSED*/
    373 check_exec(struct lwp *l, struct exec_package *epp, struct pathbuf *pb,
    374     char **rpath)
    375 {
    376 	int		error, i;
    377 	struct vnode	*vp;
    378 	size_t		resid;
    379 
    380 	if (epp->ep_resolvedname) {
    381 		struct nameidata nd;
    382 
    383 		// grab the absolute pathbuf here before namei() trashes it.
    384 		pathbuf_copystring(pb, epp->ep_resolvedname, PATH_MAX);
    385 		NDINIT(&nd, LOOKUP, FOLLOW | LOCKLEAF | TRYEMULROOT, pb);
    386 
    387 		/* first get the vnode */
    388 		if ((error = namei(&nd)) != 0)
    389 			return error;
    390 
    391 		epp->ep_vp = vp = nd.ni_vp;
    392 #ifdef DIAGNOSTIC
    393 		/* paranoia (take this out once namei stuff stabilizes) */
    394 		memset(nd.ni_pnbuf, '~', PATH_MAX);
    395 #endif
    396 	} else {
    397 		struct file *fp;
    398 
    399 		if ((error = fd_getvnode(epp->ep_xfd, &fp)) != 0)
    400 			return error;
    401 		epp->ep_vp = vp = fp->f_vnode;
    402 		vref(vp);
    403 		fd_putfile(epp->ep_xfd);
    404 		if ((error = exec_resolvename(l, epp, vp, rpath)) != 0)
    405 			return error;
    406 		vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
    407 	}
    408 
    409 	/* check access and type */
    410 	if (vp->v_type != VREG) {
    411 		error = SET_ERROR(EACCES);
    412 		goto bad1;
    413 	}
    414 	if ((error = VOP_ACCESS(vp, VEXEC, l->l_cred)) != 0)
    415 		goto bad1;
    416 
    417 	/* get attributes */
    418 	/* XXX VOP_GETATTR is the only thing that needs LK_EXCLUSIVE here */
    419 	if ((error = VOP_GETATTR(vp, epp->ep_vap, l->l_cred)) != 0)
    420 		goto bad1;
    421 
    422 	/* Check mount point */
    423 	if (vp->v_mount->mnt_flag & MNT_NOEXEC) {
    424 		error = SET_ERROR(EACCES);
    425 		goto bad1;
    426 	}
    427 	if (vp->v_mount->mnt_flag & MNT_NOSUID)
    428 		epp->ep_vap->va_mode &= ~(S_ISUID | S_ISGID);
    429 
    430 	/* try to open it */
    431 	if ((error = VOP_OPEN(vp, FREAD, l->l_cred)) != 0)
    432 		goto bad1;
    433 
    434 	/* now we have the file, get the exec header */
    435 	error = vn_rdwr(UIO_READ, vp, epp->ep_hdr, epp->ep_hdrlen, 0,
    436 			UIO_SYSSPACE, IO_NODELOCKED, l->l_cred, &resid, NULL);
    437 	if (error)
    438 		goto bad1;
    439 
    440 	/* unlock vp, since we need it unlocked from here on out. */
    441 	VOP_UNLOCK(vp);
    442 
    443 #if NVERIEXEC > 0
    444 	error = veriexec_verify(l, vp,
    445 	    epp->ep_resolvedname ? epp->ep_resolvedname : epp->ep_kname,
    446 	    epp->ep_flags & EXEC_INDIR ? VERIEXEC_INDIRECT : VERIEXEC_DIRECT,
    447 	    NULL);
    448 	if (error)
    449 		goto bad2;
    450 #endif /* NVERIEXEC > 0 */
    451 
    452 #ifdef PAX_SEGVGUARD
    453 	error = pax_segvguard(l, vp, epp->ep_resolvedname, false);
    454 	if (error)
    455 		goto bad2;
    456 #endif /* PAX_SEGVGUARD */
    457 
    458 	epp->ep_hdrvalid = epp->ep_hdrlen - resid;
    459 
    460 	/*
    461 	 * Set up default address space limits.  Can be overridden
    462 	 * by individual exec packages.
    463 	 */
    464 	epp->ep_vm_minaddr = exec_vm_minaddr(VM_MIN_ADDRESS);
    465 	epp->ep_vm_maxaddr = VM_MAXUSER_ADDRESS;
    466 
    467 	/*
    468 	 * set up the vmcmds for creation of the process
    469 	 * address space
    470 	 */
    471 	error = nexecs == 0 ? SET_ERROR(ENOEXEC) : ENOEXEC;
    472 	for (i = 0; i < nexecs; i++) {
    473 		int newerror;
    474 
    475 		epp->ep_esch = execsw[i];
    476 		newerror = (*execsw[i]->es_makecmds)(l, epp);
    477 
    478 		if (!newerror) {
    479 			/* Seems ok: check that entry point is not too high */
    480 			if (epp->ep_entry >= epp->ep_vm_maxaddr) {
    481 #ifdef DIAGNOSTIC
    482 				printf("%s: rejecting %p due to "
    483 				    "too high entry address (>= %p)\n",
    484 					 __func__, (void *)epp->ep_entry,
    485 					 (void *)epp->ep_vm_maxaddr);
    486 #endif
    487 				error = SET_ERROR(ENOEXEC);
    488 				break;
    489 			}
    490 			/* Seems ok: check that entry point is not too low */
    491 			if (epp->ep_entry < epp->ep_vm_minaddr) {
    492 #ifdef DIAGNOSTIC
    493 				printf("%s: rejecting %p due to "
    494 				    "too low entry address (< %p)\n",
    495 				     __func__, (void *)epp->ep_entry,
    496 				     (void *)epp->ep_vm_minaddr);
    497 #endif
    498 				error = SET_ERROR(ENOEXEC);
    499 				break;
    500 			}
    501 
    502 			/* check limits */
    503 #ifdef DIAGNOSTIC
    504 #define LMSG "%s: rejecting due to %s limit (%ju > %ju)\n"
    505 #endif
    506 #ifdef MAXTSIZ
    507 			if (epp->ep_tsize > MAXTSIZ) {
    508 #ifdef DIAGNOSTIC
    509 				printf(LMSG, __func__, "text",
    510 				    (uintmax_t)epp->ep_tsize,
    511 				    (uintmax_t)MAXTSIZ);
    512 #endif
    513 				error = SET_ERROR(ENOMEM);
    514 				break;
    515 			}
    516 #endif
    517 			vsize_t dlimit =
    518 			    (vsize_t)l->l_proc->p_rlimit[RLIMIT_DATA].rlim_cur;
    519 			if (epp->ep_dsize > dlimit) {
    520 #ifdef DIAGNOSTIC
    521 				printf(LMSG, __func__, "data",
    522 				    (uintmax_t)epp->ep_dsize,
    523 				    (uintmax_t)dlimit);
    524 #endif
    525 				error = SET_ERROR(ENOMEM);
    526 				break;
    527 			}
    528 			return 0;
    529 		}
    530 
    531 		/*
    532 		 * Reset all the fields that may have been modified by the
    533 		 * loader.
    534 		 */
    535 		KASSERT(epp->ep_emul_arg == NULL);
    536 		KASSERT(epp->ep_emul_arg_free == NULL);
    537 		if (epp->ep_emul_root != NULL) {
    538 			vrele(epp->ep_emul_root);
    539 			epp->ep_emul_root = NULL;
    540 		}
    541 		if (epp->ep_interp != NULL) {
    542 			vrele(epp->ep_interp);
    543 			epp->ep_interp = NULL;
    544 		}
    545 		epp->ep_pax_flags = 0;
    546 
    547 		/* make sure the first "interesting" error code is saved. */
    548 		if (error == ENOEXEC)
    549 			error = newerror;
    550 
    551 		if (epp->ep_flags & EXEC_DESTR)
    552 			/* Error from "#!" code, tidied up by recursive call */
    553 			return error;
    554 	}
    555 
    556 	/* not found, error */
    557 
    558 	/*
    559 	 * free any vmspace-creation commands,
    560 	 * and release their references
    561 	 */
    562 	kill_vmcmds(&epp->ep_vmcmds);
    563 
    564 	/*
    565 	 * Some struct execsw::es_makecmds may have succeeded and
    566 	 * allocated epp->ep_emul_arg, but we may have rejected the
    567 	 * option anyway because some parameters exceedd some limits
    568 	 * like RLIMIT_DATA.  In that case, we must free it.
    569 	 */
    570 	exec_free_emul_arg(epp);
    571 
    572 #if NVERIEXEC > 0 || defined(PAX_SEGVGUARD)
    573 bad2:
    574 #endif
    575 	/*
    576 	 * close and release the vnode, restore the old one, free the
    577 	 * pathname buf, and punt.
    578 	 */
    579 	vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
    580 	VOP_CLOSE(vp, FREAD, l->l_cred);
    581 	vput(vp);
    582 	return error;
    583 
    584 bad1:
    585 	/*
    586 	 * free the namei pathname buffer, and put the vnode
    587 	 * (which we don't yet have open).
    588 	 */
    589 	vput(vp);				/* was still locked */
    590 	return error;
    591 }
    592 
    593 #ifdef __MACHINE_STACK_GROWS_UP
    594 #define STACK_PTHREADSPACE PAGE_SIZE
    595 #else
    596 #define STACK_PTHREADSPACE 0
    597 #endif
    598 
    599 static int
    600 execve_fetch_element(char * const *array, size_t index, char **value)
    601 {
    602 	return copyin(array + index, value, sizeof(*value));
    603 }
    604 
    605 /*
    606  * exec system call
    607  */
    608 int
    609 sys_execve(struct lwp *l, const struct sys_execve_args *uap, register_t *retval)
    610 {
    611 	/* {
    612 		syscallarg(const char *)	path;
    613 		syscallarg(char * const *)	argp;
    614 		syscallarg(char * const *)	envp;
    615 	} */
    616 
    617 	return execve1(l, true, SCARG(uap, path), -1, SCARG(uap, argp),
    618 	    SCARG(uap, envp), execve_fetch_element);
    619 }
    620 
    621 int
    622 sys_fexecve(struct lwp *l, const struct sys_fexecve_args *uap,
    623     register_t *retval)
    624 {
    625 	/* {
    626 		syscallarg(int)			fd;
    627 		syscallarg(char * const *)	argp;
    628 		syscallarg(char * const *)	envp;
    629 	} */
    630 
    631 	return execve1(l, false, NULL, SCARG(uap, fd), SCARG(uap, argp),
    632 	    SCARG(uap, envp), execve_fetch_element);
    633 }
    634 
    635 /*
    636  * Load modules to try and execute an image that we do not understand.
    637  * If no execsw entries are present, we load those likely to be needed
    638  * in order to run native images only.  Otherwise, we autoload all
    639  * possible modules that could let us run the binary.  XXX lame
    640  */
    641 static void
    642 exec_autoload(void)
    643 {
    644 #ifdef MODULAR
    645 	static const char * const native[] = {
    646 		"exec_elf32",
    647 		"exec_elf64",
    648 		"exec_script",
    649 		NULL
    650 	};
    651 	static const char * const compat[] = {
    652 		"exec_elf32",
    653 		"exec_elf64",
    654 		"exec_script",
    655 		"exec_aout",
    656 		"exec_coff",
    657 		"exec_ecoff",
    658 		"compat_aoutm68k",
    659 		"compat_netbsd32",
    660 #if 0
    661 		"compat_linux",
    662 		"compat_linux32",
    663 #endif
    664 		"compat_sunos",
    665 		"compat_sunos32",
    666 		"compat_ultrix",
    667 		NULL
    668 	};
    669 	char const * const *list;
    670 	int i;
    671 
    672 	list = nexecs == 0 ? native : compat;
    673 	for (i = 0; list[i] != NULL; i++) {
    674 		if (module_autoload(list[i], MODULE_CLASS_EXEC) != 0) {
    675 			continue;
    676 		}
    677 		yield();
    678 	}
    679 #endif
    680 }
    681 
    682 /*
    683  * Copy the user or kernel supplied upath to the allocated pathbuffer pbp
    684  * making it absolute in the process, by prepending the current working
    685  * directory if it is not. If offs is supplied it will contain the offset
    686  * where the original supplied copy of upath starts.
    687  */
    688 int
    689 exec_makepathbuf(struct lwp *l, const char *upath, enum uio_seg seg,
    690     struct pathbuf **pbp, size_t *offs)
    691 {
    692 	char *path, *bp;
    693 	size_t len, tlen;
    694 	int error;
    695 	struct cwdinfo *cwdi;
    696 
    697 	path = PNBUF_GET();
    698 	if (seg == UIO_SYSSPACE) {
    699 		error = copystr(upath, path, MAXPATHLEN, &len);
    700 	} else {
    701 		error = copyinstr(upath, path, MAXPATHLEN, &len);
    702 	}
    703 	if (error)
    704 		goto err;
    705 
    706 	if (path[0] == '/') {
    707 		if (offs)
    708 			*offs = 0;
    709 		goto out;
    710 	}
    711 
    712 	len++;
    713 	if (len + 1 >= MAXPATHLEN) {
    714 		error = SET_ERROR(ENAMETOOLONG);
    715 		goto err;
    716 	}
    717 	bp = path + MAXPATHLEN - len;
    718 	memmove(bp, path, len);
    719 	*(--bp) = '/';
    720 
    721 	cwdi = l->l_proc->p_cwdi;
    722 	rw_enter(&cwdi->cwdi_lock, RW_READER);
    723 	error = getcwd_common(cwdi->cwdi_cdir, NULL, &bp, path, MAXPATHLEN / 2,
    724 	    GETCWD_CHECK_ACCESS, l);
    725 	rw_exit(&cwdi->cwdi_lock);
    726 
    727 	if (error)
    728 		goto err;
    729 	tlen = path + MAXPATHLEN - bp;
    730 
    731 	memmove(path, bp, tlen);
    732 	path[tlen - 1] = '\0';
    733 	if (offs)
    734 		*offs = tlen - len;
    735 out:
    736 	*pbp = pathbuf_assimilate(path);
    737 	return 0;
    738 err:
    739 	PNBUF_PUT(path);
    740 	return error;
    741 }
    742 
    743 vaddr_t
    744 exec_vm_minaddr(vaddr_t va_min)
    745 {
    746 	/*
    747 	 * Increase va_min if we don't want NULL to be mappable by the
    748 	 * process.
    749 	 */
    750 #define VM_MIN_GUARD	PAGE_SIZE
    751 	if (user_va0_disable && (va_min < VM_MIN_GUARD))
    752 		return VM_MIN_GUARD;
    753 	return va_min;
    754 }
    755 
    756 static int
    757 execve_loadvm(struct lwp *l, bool has_path, const char *path, int fd,
    758 	char * const *args, char * const *envs,
    759 	execve_fetch_element_t fetch_element,
    760 	struct execve_data * restrict data)
    761 {
    762 	struct exec_package	* const epp = &data->ed_pack;
    763 	int			error;
    764 	struct proc		*p;
    765 	char			*dp;
    766 	u_int			modgen;
    767 
    768 	KASSERT(data != NULL);
    769 
    770 	p = l->l_proc;
    771 	modgen = 0;
    772 
    773 	SDT_PROBE(proc, kernel, , exec, path, 0, 0, 0, 0);
    774 
    775 	/*
    776 	 * Check if we have exceeded our number of processes limit.
    777 	 * This is so that we handle the case where a root daemon
    778 	 * forked, ran setuid to become the desired user and is trying
    779 	 * to exec. The obvious place to do the reference counting check
    780 	 * is setuid(), but we don't do the reference counting check there
    781 	 * like other OS's do because then all the programs that use setuid()
    782 	 * must be modified to check the return code of setuid() and exit().
    783 	 * It is dangerous to make setuid() fail, because it fails open and
    784 	 * the program will continue to run as root. If we make it succeed
    785 	 * and return an error code, again we are not enforcing the limit.
    786 	 * The best place to enforce the limit is here, when the process tries
    787 	 * to execute a new image, because eventually the process will need
    788 	 * to call exec in order to do something useful.
    789 	 */
    790  retry:
    791 	if (p->p_flag & PK_SUGID) {
    792 		if (kauth_authorize_process(l->l_cred, KAUTH_PROCESS_RLIMIT,
    793 			p, KAUTH_ARG(KAUTH_REQ_PROCESS_RLIMIT_BYPASS),
    794 			&p->p_rlimit[RLIMIT_NPROC],
    795 			KAUTH_ARG(RLIMIT_NPROC)) != 0 &&
    796 		    chgproccnt(kauth_cred_getuid(l->l_cred), 0) >
    797 		    p->p_rlimit[RLIMIT_NPROC].rlim_cur)
    798 			return SET_ERROR(EAGAIN);
    799 	}
    800 
    801 	/*
    802 	 * Drain existing references and forbid new ones.  The process
    803 	 * should be left alone until we're done here.  This is necessary
    804 	 * to avoid race conditions - e.g. in ptrace() - that might allow
    805 	 * a local user to illicitly obtain elevated privileges.
    806 	 */
    807 	rw_enter(&p->p_reflock, RW_WRITER);
    808 
    809 	if (has_path) {
    810 		size_t	offs;
    811 		/*
    812 		 * Init the namei data to point the file user's program name.
    813 		 * This is done here rather than in check_exec(), so that it's
    814 		 * possible to override this settings if any of makecmd/probe
    815 		 * functions call check_exec() recursively - for example,
    816 		 * see exec_script_makecmds().
    817 		 */
    818 		if ((error = exec_makepathbuf(l, path, UIO_USERSPACE,
    819 		    &data->ed_pathbuf, &offs)) != 0)
    820 			goto clrflg;
    821 		data->ed_pathstring = pathbuf_stringcopy_get(data->ed_pathbuf);
    822 		epp->ep_kname = data->ed_pathstring + offs;
    823 		data->ed_resolvedname = PNBUF_GET();
    824 		epp->ep_resolvedname = data->ed_resolvedname;
    825 		epp->ep_xfd = -1;
    826 	} else {
    827 		data->ed_pathbuf = pathbuf_assimilate(strcpy(PNBUF_GET(), "/"));
    828 		data->ed_pathstring = pathbuf_stringcopy_get(data->ed_pathbuf);
    829 		epp->ep_kname = "*fexecve*";
    830 		data->ed_resolvedname = NULL;
    831 		epp->ep_resolvedname = NULL;
    832 		epp->ep_xfd = fd;
    833 	}
    834 
    835 
    836 	/*
    837 	 * initialize the fields of the exec package.
    838 	 */
    839 	epp->ep_hdr = kmem_alloc(exec_maxhdrsz, KM_SLEEP);
    840 	epp->ep_hdrlen = exec_maxhdrsz;
    841 	epp->ep_hdrvalid = 0;
    842 	epp->ep_emul_arg = NULL;
    843 	epp->ep_emul_arg_free = NULL;
    844 	memset(&epp->ep_vmcmds, 0, sizeof(epp->ep_vmcmds));
    845 	epp->ep_vap = &data->ed_attr;
    846 	epp->ep_flags = (p->p_flag & PK_32) ? EXEC_FROM32 : 0;
    847 	MD_TOPDOWN_INIT(epp);
    848 	epp->ep_emul_root = NULL;
    849 	epp->ep_interp = NULL;
    850 	epp->ep_esch = NULL;
    851 	epp->ep_pax_flags = 0;
    852 	memset(epp->ep_machine_arch, 0, sizeof(epp->ep_machine_arch));
    853 
    854 	rw_enter(&exec_lock, RW_READER);
    855 
    856 	/* see if we can run it. */
    857 	if ((error = check_exec(l, epp, data->ed_pathbuf,
    858 	    &data->ed_resolvedname)) != 0) {
    859 		if (error != ENOENT && error != EACCES && error != ENOEXEC) {
    860 			DPRINTF(("%s: check exec failed for %s, error %d\n",
    861 			    __func__, epp->ep_kname, error));
    862 		}
    863 		goto freehdr;
    864 	}
    865 
    866 	/* allocate an argument buffer */
    867 	data->ed_argp = pool_get(&exec_pool, PR_WAITOK);
    868 	KASSERT(data->ed_argp != NULL);
    869 	dp = data->ed_argp;
    870 
    871 	if ((error = copyinargs(data, args, envs, fetch_element, &dp)) != 0) {
    872 		goto bad;
    873 	}
    874 
    875 	/*
    876 	 * Calculate the new stack size.
    877 	 */
    878 
    879 #ifdef __MACHINE_STACK_GROWS_UP
    880 /*
    881  * copyargs() fills argc/argv/envp from the lower address even on
    882  * __MACHINE_STACK_GROWS_UP machines.  Reserve a few words just below the SP
    883  * so that _rtld() use it.
    884  */
    885 #define	RTLD_GAP	32
    886 #else
    887 #define	RTLD_GAP	0
    888 #endif
    889 
    890 	const size_t argenvstrlen = (char *)ALIGN(dp) - data->ed_argp;
    891 
    892 	data->ed_argslen = calcargs(data, argenvstrlen);
    893 
    894 	const size_t len = calcstack(data, pax_aslr_stack_gap(epp) + RTLD_GAP);
    895 
    896 	if (len > epp->ep_ssize) {
    897 		/* in effect, compare to initial limit */
    898 		DPRINTF(("%s: stack limit exceeded %zu\n", __func__, len));
    899 		error = SET_ERROR(ENOMEM);
    900 		goto bad;
    901 	}
    902 	/* adjust "active stack depth" for process VSZ */
    903 	epp->ep_ssize = len;
    904 
    905 	return 0;
    906 
    907  bad:
    908 	/* free the vmspace-creation commands, and release their references */
    909 	kill_vmcmds(&epp->ep_vmcmds);
    910 	/* free any emul arg from struct execsw::es_makecmds */
    911 	exec_free_emul_arg(epp);
    912 	/* kill any opened file descriptor, if necessary */
    913 	if (epp->ep_flags & EXEC_HASFD) {
    914 		epp->ep_flags &= ~EXEC_HASFD;
    915 		fd_close(epp->ep_fd);
    916 	}
    917 	/* close and put the exec'd file */
    918 	vn_lock(epp->ep_vp, LK_EXCLUSIVE | LK_RETRY);
    919 	VOP_CLOSE(epp->ep_vp, FREAD, l->l_cred);
    920 	vput(epp->ep_vp);
    921 	pool_put(&exec_pool, data->ed_argp);
    922 
    923  freehdr:
    924 	KASSERT(epp->ep_emul_arg == NULL);
    925 	KASSERT(epp->ep_emul_arg_free == NULL);
    926 	kmem_free(epp->ep_hdr, epp->ep_hdrlen);
    927 	if (epp->ep_emul_root != NULL)
    928 		vrele(epp->ep_emul_root);
    929 	if (epp->ep_interp != NULL)
    930 		vrele(epp->ep_interp);
    931 
    932 	rw_exit(&exec_lock);
    933 
    934 	exec_path_free(data);
    935 
    936  clrflg:
    937 	rw_exit(&p->p_reflock);
    938 
    939 	if (modgen != module_gen && error == ENOEXEC) {
    940 		modgen = module_gen;
    941 		exec_autoload();
    942 		goto retry;
    943 	}
    944 
    945 	SDT_PROBE(proc, kernel, , exec__failure, error, 0, 0, 0, 0);
    946 	return error;
    947 }
    948 
    949 static int
    950 execve_dovmcmds(struct lwp *l, struct execve_data * restrict data)
    951 {
    952 	struct exec_package	* const epp = &data->ed_pack;
    953 	struct proc		*p = l->l_proc;
    954 	struct exec_vmcmd	*base_vcp;
    955 	int			error = 0;
    956 	size_t			i;
    957 
    958 	/* record proc's vnode, for use by procfs and others */
    959 	if (p->p_textvp)
    960 		vrele(p->p_textvp);
    961 	vref(epp->ep_vp);
    962 	p->p_textvp = epp->ep_vp;
    963 
    964 	/* create the new process's VM space by running the vmcmds */
    965 	KASSERTMSG(epp->ep_vmcmds.evs_used != 0, "%s: no vmcmds", __func__);
    966 
    967 #ifdef TRACE_EXEC
    968 	DUMPVMCMDS(epp, 0, 0);
    969 #endif
    970 
    971 	base_vcp = NULL;
    972 
    973 	for (i = 0; i < epp->ep_vmcmds.evs_used; i++) {
    974 		struct exec_vmcmd *vcp;
    975 
    976 		vcp = &epp->ep_vmcmds.evs_cmds[i];
    977 		if (vcp->ev_flags & VMCMD_BASE)
    978 			base_vcp = vcp;
    979 
    980 		if (vcp->ev_flags & VMCMD_RELATIVE) {
    981 			if (base_vcp == NULL) {
    982 				DPRINTF(("%s: relative vmcmd %zu with no base",
    983 				    __func__, i));
    984 				error = EINVAL;
    985 				break;
    986 			}
    987 			if ((vcp->ev_flags & VMCMD_BASE) != 0) {
    988 				DPRINTF(("%s: illegal base|relative vmcmd %zu",
    989 				    __func__, i));
    990 				error = EINVAL;
    991 				break;
    992 			}
    993 			vcp->ev_addr += base_vcp->ev_addr;
    994 		}
    995 		error = (*vcp->ev_proc)(l, vcp);
    996 		if (error) {
    997 			DUMPVMCMDS(epp, i, error);
    998 			DPRINTF(("%s: vmcmd %zu failed: %d\n", __func__, i,
    999 			    error));
   1000 			break;
   1001 		}
   1002 	}
   1003 
   1004 	/* free the vmspace-creation commands, and release their references */
   1005 	kill_vmcmds(&epp->ep_vmcmds);
   1006 
   1007 	vn_lock(epp->ep_vp, LK_EXCLUSIVE | LK_RETRY);
   1008 	VOP_CLOSE(epp->ep_vp, FREAD, l->l_cred);
   1009 	vput(epp->ep_vp);
   1010 
   1011 	return error;
   1012 }
   1013 
   1014 static void
   1015 execve_free_data(struct execve_data *data)
   1016 {
   1017 	struct exec_package	* const epp = &data->ed_pack;
   1018 
   1019 	KASSERT(epp->ep_emul_arg == NULL);
   1020 	KASSERT(epp->ep_emul_arg_free == NULL);
   1021 
   1022 	/* free the vmspace-creation commands, and release their references */
   1023 	kill_vmcmds(&epp->ep_vmcmds);
   1024 	/* kill any opened file descriptor, if necessary */
   1025 	if (epp->ep_flags & EXEC_HASFD) {
   1026 		epp->ep_flags &= ~EXEC_HASFD;
   1027 		fd_close(epp->ep_fd);
   1028 	}
   1029 
   1030 	/* close and put the exec'd file */
   1031 	vn_lock(epp->ep_vp, LK_EXCLUSIVE | LK_RETRY);
   1032 	VOP_CLOSE(epp->ep_vp, FREAD, curlwp->l_cred);
   1033 	vput(epp->ep_vp);
   1034 	pool_put(&exec_pool, data->ed_argp);
   1035 
   1036 	kmem_free(epp->ep_hdr, epp->ep_hdrlen);
   1037 	if (epp->ep_emul_root != NULL)
   1038 		vrele(epp->ep_emul_root);
   1039 	if (epp->ep_interp != NULL)
   1040 		vrele(epp->ep_interp);
   1041 
   1042 	exec_path_free(data);
   1043 }
   1044 
   1045 static void
   1046 pathexec(struct proc *p, const char *resolvedname)
   1047 {
   1048 	/* set command name & other accounting info */
   1049 	const char *cmdname;
   1050 
   1051 	if (resolvedname == NULL) {
   1052 		cmdname = "*fexecve*";
   1053 		resolvedname = "/";
   1054 	} else {
   1055 		cmdname = strrchr(resolvedname, '/') + 1;
   1056 	}
   1057 	KASSERTMSG(resolvedname[0] == '/', "bad resolvedname `%s'",
   1058 	    resolvedname);
   1059 
   1060 	strlcpy(p->p_comm, cmdname, sizeof(p->p_comm));
   1061 
   1062 	kmem_strfree(p->p_path);
   1063 	p->p_path = kmem_strdupsize(resolvedname, NULL, KM_SLEEP);
   1064 }
   1065 
   1066 /* XXX elsewhere */
   1067 static int
   1068 credexec(struct lwp *l, struct execve_data *data)
   1069 {
   1070 	struct proc *p = l->l_proc;
   1071 	struct vattr *attr = &data->ed_attr;
   1072 	int error;
   1073 
   1074 	/*
   1075 	 * Deal with set[ug]id.  MNT_NOSUID has already been used to disable
   1076 	 * s[ug]id.  It's OK to check for PSL_TRACED here as we have blocked
   1077 	 * out additional references on the process for the moment.
   1078 	 */
   1079 	if ((p->p_slflag & PSL_TRACED) == 0 &&
   1080 
   1081 	    (((attr->va_mode & S_ISUID) != 0 &&
   1082 	      kauth_cred_geteuid(l->l_cred) != attr->va_uid) ||
   1083 
   1084 	     ((attr->va_mode & S_ISGID) != 0 &&
   1085 	      kauth_cred_getegid(l->l_cred) != attr->va_gid))) {
   1086 		/*
   1087 		 * Mark the process as SUGID before we do
   1088 		 * anything that might block.
   1089 		 */
   1090 		proc_crmod_enter();
   1091 		proc_crmod_leave(NULL, NULL, true);
   1092 		if (data->ed_argc == 0) {
   1093 			DPRINTF((
   1094 			    "%s: not executing set[ug]id binary with no args\n",
   1095 			    __func__));
   1096 			return SET_ERROR(EINVAL);
   1097 		}
   1098 
   1099 		/* Make sure file descriptors 0..2 are in use. */
   1100 		if ((error = fd_checkstd()) != 0) {
   1101 			DPRINTF(("%s: fdcheckstd failed %d\n",
   1102 			    __func__, error));
   1103 			return error;
   1104 		}
   1105 
   1106 		/*
   1107 		 * Copy the credential so other references don't see our
   1108 		 * changes.
   1109 		 */
   1110 		l->l_cred = kauth_cred_copy(l->l_cred);
   1111 #ifdef KTRACE
   1112 		/*
   1113 		 * If the persistent trace flag isn't set, turn off.
   1114 		 */
   1115 		if (p->p_tracep) {
   1116 			mutex_enter(&ktrace_lock);
   1117 			if (!(p->p_traceflag & KTRFAC_PERSISTENT))
   1118 				ktrderef(p);
   1119 			mutex_exit(&ktrace_lock);
   1120 		}
   1121 #endif
   1122 		if (attr->va_mode & S_ISUID)
   1123 			kauth_cred_seteuid(l->l_cred, attr->va_uid);
   1124 		if (attr->va_mode & S_ISGID)
   1125 			kauth_cred_setegid(l->l_cred, attr->va_gid);
   1126 	} else {
   1127 		if (kauth_cred_geteuid(l->l_cred) ==
   1128 		    kauth_cred_getuid(l->l_cred) &&
   1129 		    kauth_cred_getegid(l->l_cred) ==
   1130 		    kauth_cred_getgid(l->l_cred))
   1131 			p->p_flag &= ~PK_SUGID;
   1132 	}
   1133 
   1134 	/*
   1135 	 * Copy the credential so other references don't see our changes.
   1136 	 * Test to see if this is necessary first, since in the common case
   1137 	 * we won't need a private reference.
   1138 	 */
   1139 	if (kauth_cred_geteuid(l->l_cred) != kauth_cred_getsvuid(l->l_cred) ||
   1140 	    kauth_cred_getegid(l->l_cred) != kauth_cred_getsvgid(l->l_cred)) {
   1141 		l->l_cred = kauth_cred_copy(l->l_cred);
   1142 		kauth_cred_setsvuid(l->l_cred, kauth_cred_geteuid(l->l_cred));
   1143 		kauth_cred_setsvgid(l->l_cred, kauth_cred_getegid(l->l_cred));
   1144 	}
   1145 
   1146 	/* Update the master credentials. */
   1147 	if (l->l_cred != p->p_cred) {
   1148 		kauth_cred_t ocred;
   1149 		mutex_enter(p->p_lock);
   1150 		ocred = p->p_cred;
   1151 		p->p_cred = kauth_cred_hold(l->l_cred);
   1152 		mutex_exit(p->p_lock);
   1153 		kauth_cred_free(ocred);
   1154 	}
   1155 
   1156 	return 0;
   1157 }
   1158 
   1159 static void
   1160 emulexec(struct lwp *l, struct exec_package *epp)
   1161 {
   1162 	struct proc		*p = l->l_proc;
   1163 
   1164 	/* The emulation root will usually have been found when we looked
   1165 	 * for the elf interpreter (or similar), if not look now. */
   1166 	if (epp->ep_esch->es_emul->e_path != NULL &&
   1167 	    epp->ep_emul_root == NULL)
   1168 		emul_find_root(l, epp);
   1169 
   1170 	/* Any old emulation root got removed by fdcloseexec */
   1171 	rw_enter(&p->p_cwdi->cwdi_lock, RW_WRITER);
   1172 	p->p_cwdi->cwdi_edir = epp->ep_emul_root;
   1173 	rw_exit(&p->p_cwdi->cwdi_lock);
   1174 	epp->ep_emul_root = NULL;
   1175 	if (epp->ep_interp != NULL)
   1176 		vrele(epp->ep_interp);
   1177 
   1178 	/*
   1179 	 * Call emulation specific exec hook. This can setup per-process
   1180 	 * p->p_emuldata or do any other per-process stuff an emulation needs.
   1181 	 *
   1182 	 * If we are executing process of different emulation than the
   1183 	 * original forked process, call e_proc_exit() of the old emulation
   1184 	 * first, then e_proc_exec() of new emulation. If the emulation is
   1185 	 * same, the exec hook code should deallocate any old emulation
   1186 	 * resources held previously by this process.
   1187 	 */
   1188 	if (p->p_emul && p->p_emul->e_proc_exit
   1189 	    && p->p_emul != epp->ep_esch->es_emul)
   1190 		(*p->p_emul->e_proc_exit)(p);
   1191 
   1192 	/*
   1193 	 * Call exec hook. Emulation code may NOT store reference to anything
   1194 	 * from &pack.
   1195 	 */
   1196 	if (epp->ep_esch->es_emul->e_proc_exec)
   1197 		(*epp->ep_esch->es_emul->e_proc_exec)(p, epp);
   1198 
   1199 	/* update p_emul, the old value is no longer needed */
   1200 	p->p_emul = epp->ep_esch->es_emul;
   1201 
   1202 	/* ...and the same for p_execsw */
   1203 	p->p_execsw = epp->ep_esch;
   1204 
   1205 #ifdef __HAVE_SYSCALL_INTERN
   1206 	(*p->p_emul->e_syscall_intern)(p);
   1207 #endif
   1208 	ktremul();
   1209 }
   1210 
   1211 static int
   1212 execve_runproc(struct lwp *l, struct execve_data * restrict data,
   1213 	bool no_local_exec_lock, bool is_spawn)
   1214 {
   1215 	struct exec_package	* const epp = &data->ed_pack;
   1216 	int error = 0;
   1217 	struct proc		*p;
   1218 	struct vmspace		*vm;
   1219 
   1220 	/*
   1221 	 * In case of a posix_spawn operation, the child doing the exec
   1222 	 * might not hold the reader lock on exec_lock, but the parent
   1223 	 * will do this instead.
   1224 	 */
   1225 	KASSERT(no_local_exec_lock || rw_lock_held(&exec_lock));
   1226 	KASSERT(!no_local_exec_lock || is_spawn);
   1227 	KASSERT(data != NULL);
   1228 
   1229 	p = l->l_proc;
   1230 
   1231 	/* Get rid of other LWPs. */
   1232 	if (p->p_nlwps > 1) {
   1233 		mutex_enter(p->p_lock);
   1234 		exit_lwps(l);
   1235 		mutex_exit(p->p_lock);
   1236 	}
   1237 	KDASSERT(p->p_nlwps == 1);
   1238 
   1239 	/*
   1240 	 * All of the other LWPs got rid of their robust futexes
   1241 	 * when they exited above, but we might still have some
   1242 	 * to dispose of.  Do that now.
   1243 	 */
   1244 	if (__predict_false(l->l_robust_head != 0)) {
   1245 		futex_release_all_lwp(l);
   1246 		/*
   1247 		 * Since this LWP will live on with a different
   1248 		 * program image, we need to clear the robust
   1249 		 * futex list pointer here.
   1250 		 */
   1251 		l->l_robust_head = 0;
   1252 	}
   1253 
   1254 	/* Destroy any lwpctl info. */
   1255 	if (p->p_lwpctl != NULL)
   1256 		lwp_ctl_exit();
   1257 
   1258 	/* Remove POSIX timers */
   1259 	ptimers_free(p, TIMERS_POSIX);
   1260 
   1261 	/* Set the PaX flags. */
   1262 	pax_set_flags(epp, p);
   1263 
   1264 	/*
   1265 	 * Do whatever is necessary to prepare the address space
   1266 	 * for remapping.  Note that this might replace the current
   1267 	 * vmspace with another!
   1268 	 *
   1269 	 * vfork(): do not touch any user space data in the new child
   1270 	 * until we have awoken the parent below, or it will defeat
   1271 	 * lazy pmap switching (on x86).
   1272 	 */
   1273 	uvmspace_exec(l, epp->ep_vm_minaddr, epp->ep_vm_maxaddr,
   1274 	    epp->ep_flags & EXEC_TOPDOWN_VM);
   1275 	vm = p->p_vmspace;
   1276 
   1277 	vm->vm_taddr = (void *)epp->ep_taddr;
   1278 	vm->vm_tsize = btoc(epp->ep_tsize);
   1279 	vm->vm_daddr = (void*)epp->ep_daddr;
   1280 	vm->vm_dsize = btoc(epp->ep_dsize);
   1281 	vm->vm_ssize = btoc(epp->ep_ssize);
   1282 	vm->vm_issize = 0;
   1283 	vm->vm_maxsaddr = (void *)epp->ep_maxsaddr;
   1284 	vm->vm_minsaddr = (void *)epp->ep_minsaddr;
   1285 
   1286 	pax_aslr_init_vm(l, vm, epp);
   1287 
   1288 	cwdexec(p);
   1289 	fd_closeexec();		/* handle close on exec & close on fork */
   1290 
   1291 	if (__predict_false(ktrace_on))
   1292 		fd_ktrexecfd();
   1293 
   1294 	execsigs(p);		/* reset caught signals */
   1295 
   1296 	mutex_enter(p->p_lock);
   1297 	l->l_ctxlink = NULL;	/* reset ucontext link */
   1298 	p->p_acflag &= ~AFORK;
   1299 	p->p_flag |= PK_EXEC;
   1300 	p->p_stackbase = epp->ep_minsaddr;
   1301 	mutex_exit(p->p_lock);
   1302 
   1303 	error = credexec(l, data);
   1304 	if (error)
   1305 		goto exec_abort;
   1306 
   1307 #if defined(__HAVE_RAS)
   1308 	/*
   1309 	 * Remove all RASs from the address space.
   1310 	 */
   1311 	ras_purgeall();
   1312 #endif
   1313 
   1314 	/*
   1315 	 * Stop profiling.
   1316 	 */
   1317 	if ((p->p_stflag & PST_PROFIL) != 0) {
   1318 		mutex_spin_enter(&p->p_stmutex);
   1319 		stopprofclock(p);
   1320 		mutex_spin_exit(&p->p_stmutex);
   1321 	}
   1322 
   1323 	/*
   1324 	 * It's OK to test PL_PPWAIT unlocked here, as other LWPs have
   1325 	 * exited and exec()/exit() are the only places it will be cleared.
   1326 	 *
   1327 	 * Once the parent has been awoken, curlwp may teleport to a new CPU
   1328 	 * in sched_vforkexec(), and it's then OK to start messing with user
   1329 	 * data.  See comment above.
   1330 	 */
   1331 	if ((p->p_lflag & PL_PPWAIT) != 0) {
   1332 		bool samecpu;
   1333 		lwp_t *lp;
   1334 
   1335 		mutex_enter(&proc_lock);
   1336 		lp = p->p_vforklwp;
   1337 		p->p_vforklwp = NULL;
   1338 		l->l_lwpctl = NULL; /* was on loan from blocked parent */
   1339 
   1340 		/* Clear flags after cv_broadcast() (scheduler needs them). */
   1341 		p->p_lflag &= ~PL_PPWAIT;
   1342 		lp->l_vforkwaiting = false;
   1343 
   1344 		/* If parent is still on same CPU, teleport curlwp elsewhere. */
   1345 		samecpu = (lp->l_cpu == curlwp->l_cpu);
   1346 		cv_broadcast(&lp->l_waitcv);
   1347 		mutex_exit(&proc_lock);
   1348 
   1349 		/* Give the parent its CPU back - find a new home. */
   1350 		KASSERT(!is_spawn);
   1351 		sched_vforkexec(l, samecpu);
   1352 	}
   1353 
   1354 	/* Now map address space. */
   1355 	error = execve_dovmcmds(l, data);
   1356 	if (error != 0)
   1357 		goto exec_abort;
   1358 
   1359 	pathexec(p, epp->ep_resolvedname);
   1360 
   1361 	char * const newstack = STACK_GROW(vm->vm_minsaddr, epp->ep_ssize);
   1362 
   1363 	error = copyoutargs(data, l, newstack);
   1364 	if (error != 0)
   1365 		goto exec_abort;
   1366 
   1367 	doexechooks(p);
   1368 
   1369 	/*
   1370 	 * Set initial SP at the top of the stack.
   1371 	 *
   1372 	 * Note that on machines where stack grows up (e.g. hppa), SP points to
   1373 	 * the end of arg/env strings.  Userland guesses the address of argc
   1374 	 * via ps_strings::ps_argvstr.
   1375 	 */
   1376 
   1377 	/* Setup new registers and do misc. setup. */
   1378 	(*epp->ep_esch->es_emul->e_setregs)(l, epp, (vaddr_t)newstack);
   1379 	if (epp->ep_esch->es_setregs)
   1380 		(*epp->ep_esch->es_setregs)(l, epp, (vaddr_t)newstack);
   1381 
   1382 	/* Provide a consistent LWP private setting */
   1383 	(void)lwp_setprivate(l, NULL);
   1384 
   1385 	/* Discard all PCU state; need to start fresh */
   1386 	pcu_discard_all(l);
   1387 
   1388 	/* map the process's signal trampoline code */
   1389 	if ((error = exec_sigcode_map(p, epp->ep_esch->es_emul)) != 0) {
   1390 		DPRINTF(("%s: map sigcode failed %d\n", __func__, error));
   1391 		goto exec_abort;
   1392 	}
   1393 
   1394 	pool_put(&exec_pool, data->ed_argp);
   1395 
   1396 	/*
   1397 	 * Notify anyone who might care that we've exec'd.
   1398 	 *
   1399 	 * This is slightly racy; someone could sneak in and
   1400 	 * attach a knote after we've decided not to notify,
   1401 	 * or vice-versa, but that's not particularly bothersome.
   1402 	 * knote_proc_exec() will acquire p->p_lock as needed.
   1403 	 */
   1404 	if (!SLIST_EMPTY(&p->p_klist)) {
   1405 		knote_proc_exec(p);
   1406 	}
   1407 
   1408 	kmem_free(epp->ep_hdr, epp->ep_hdrlen);
   1409 
   1410 	SDT_PROBE(proc, kernel, , exec__success, epp->ep_kname, 0, 0, 0, 0);
   1411 
   1412 	emulexec(l, epp);
   1413 
   1414 	/*
   1415 	 * By this point, one of the execsw or emul callbacks must have
   1416 	 * consumed epp->ep_emul_arg, if it was ever set; otherwise, if
   1417 	 * it wasn't useful to consume, why would it have been set?
   1418 	 */
   1419 	KASSERT(epp->ep_emul_arg == NULL);
   1420 	KASSERT(epp->ep_emul_arg_free == NULL);
   1421 
   1422 	/* Allow new references from the debugger/procfs. */
   1423 	rw_exit(&p->p_reflock);
   1424 	if (!no_local_exec_lock)
   1425 		rw_exit(&exec_lock);
   1426 
   1427 	mutex_enter(&proc_lock);
   1428 
   1429 	/* posix_spawn(3) reports a single event with implied exec(3) */
   1430 	if ((p->p_slflag & PSL_TRACED) && !is_spawn) {
   1431 		mutex_enter(p->p_lock);
   1432 		eventswitch(TRAP_EXEC, 0, 0);
   1433 		mutex_enter(&proc_lock);
   1434 	}
   1435 
   1436 	if (p->p_sflag & PS_STOPEXEC) {
   1437 		ksiginfoq_t kq;
   1438 
   1439 		KASSERT(l->l_blcnt == 0);
   1440 		p->p_pptr->p_nstopchild++;
   1441 		p->p_waited = 0;
   1442 		mutex_enter(p->p_lock);
   1443 		ksiginfo_queue_init(&kq);
   1444 		sigclearall(p, &contsigmask, &kq);
   1445 		lwp_lock(l);
   1446 		l->l_stat = LSSTOP;
   1447 		p->p_stat = SSTOP;
   1448 		p->p_nrlwps--;
   1449 		lwp_unlock(l);
   1450 		mutex_exit(p->p_lock);
   1451 		mutex_exit(&proc_lock);
   1452 		lwp_lock(l);
   1453 		spc_lock(l->l_cpu);
   1454 		mi_switch(l);
   1455 		ksiginfo_queue_drain(&kq);
   1456 	} else {
   1457 		mutex_exit(&proc_lock);
   1458 	}
   1459 
   1460 	exec_path_free(data);
   1461 #ifdef TRACE_EXEC
   1462 	DPRINTF(("%s finished\n", __func__));
   1463 #endif
   1464 	return EJUSTRETURN;
   1465 
   1466  exec_abort:
   1467 	SDT_PROBE(proc, kernel, , exec__failure, error, 0, 0, 0, 0);
   1468 	rw_exit(&p->p_reflock);
   1469 	if (!no_local_exec_lock)
   1470 		rw_exit(&exec_lock);
   1471 
   1472 	exec_path_free(data);
   1473 
   1474 	/*
   1475 	 * the old process doesn't exist anymore.  exit gracefully.
   1476 	 * get rid of the (new) address space we have created, if any, get rid
   1477 	 * of our namei data and vnode, and exit noting failure
   1478 	 */
   1479 	if (vm != NULL) {
   1480 		uvm_deallocate(&vm->vm_map, VM_MIN_ADDRESS,
   1481 			VM_MAXUSER_ADDRESS - VM_MIN_ADDRESS);
   1482 	}
   1483 
   1484 	exec_free_emul_arg(epp);
   1485 	pool_put(&exec_pool, data->ed_argp);
   1486 	kmem_free(epp->ep_hdr, epp->ep_hdrlen);
   1487 	if (epp->ep_emul_root != NULL)
   1488 		vrele(epp->ep_emul_root);
   1489 	if (epp->ep_interp != NULL)
   1490 		vrele(epp->ep_interp);
   1491 
   1492 	/* Acquire the sched-state mutex (exit1() will release it). */
   1493 	if (!is_spawn) {
   1494 		mutex_enter(p->p_lock);
   1495 		exit1(l, error, SIGABRT);
   1496 	}
   1497 
   1498 	return error;
   1499 }
   1500 
   1501 int
   1502 execve1(struct lwp *l, bool has_path, const char *path, int fd,
   1503     char * const *args, char * const *envs,
   1504     execve_fetch_element_t fetch_element)
   1505 {
   1506 	struct execve_data data;
   1507 	int error;
   1508 
   1509 	error = execve_loadvm(l, has_path, path, fd, args, envs, fetch_element,
   1510 	    &data);
   1511 	if (error)
   1512 		return error;
   1513 	error = execve_runproc(l, &data, false, false);
   1514 	return error;
   1515 }
   1516 
   1517 static size_t
   1518 fromptrsz(const struct exec_package *epp)
   1519 {
   1520 	return (epp->ep_flags & EXEC_FROM32) ? sizeof(int) : sizeof(char *);
   1521 }
   1522 
   1523 static size_t
   1524 ptrsz(const struct exec_package *epp)
   1525 {
   1526 	return (epp->ep_flags & EXEC_32) ? sizeof(int) : sizeof(char *);
   1527 }
   1528 
   1529 static size_t
   1530 calcargs(struct execve_data * restrict data, const size_t argenvstrlen)
   1531 {
   1532 	struct exec_package	* const epp = &data->ed_pack;
   1533 
   1534 	const size_t nargenvptrs =
   1535 	    1 +				/* long argc */
   1536 	    data->ed_argc +		/* char *argv[] */
   1537 	    1 +				/* \0 */
   1538 	    data->ed_envc +		/* char *env[] */
   1539 	    1;				/* \0 */
   1540 
   1541 	return (nargenvptrs * ptrsz(epp))	/* pointers */
   1542 	    + argenvstrlen			/* strings */
   1543 	    + epp->ep_esch->es_arglen;		/* auxinfo */
   1544 }
   1545 
   1546 static size_t
   1547 calcstack(struct execve_data * restrict data, const size_t gaplen)
   1548 {
   1549 	struct exec_package	* const epp = &data->ed_pack;
   1550 
   1551 	data->ed_szsigcode = epp->ep_esch->es_emul->e_esigcode -
   1552 	    epp->ep_esch->es_emul->e_sigcode;
   1553 
   1554 	data->ed_ps_strings_sz = (epp->ep_flags & EXEC_32) ?
   1555 	    sizeof(struct ps_strings32) : sizeof(struct ps_strings);
   1556 
   1557 	const size_t sigcode_psstr_sz =
   1558 	    data->ed_szsigcode +	/* sigcode */
   1559 	    data->ed_ps_strings_sz +	/* ps_strings */
   1560 	    STACK_PTHREADSPACE;		/* pthread space */
   1561 
   1562 	const size_t stacklen =
   1563 	    data->ed_argslen +
   1564 	    gaplen +
   1565 	    sigcode_psstr_sz;
   1566 
   1567 	/* make the stack "safely" aligned */
   1568 	return STACK_LEN_ALIGN(stacklen, STACK_ALIGNBYTES);
   1569 }
   1570 
   1571 static int
   1572 copyoutargs(struct execve_data * restrict data, struct lwp *l,
   1573     char * const newstack)
   1574 {
   1575 	struct exec_package	* const epp = &data->ed_pack;
   1576 	struct proc		*p = l->l_proc;
   1577 	int			error;
   1578 
   1579 	memset(&data->ed_arginfo, 0, sizeof(data->ed_arginfo));
   1580 
   1581 	/* remember information about the process */
   1582 	data->ed_arginfo.ps_nargvstr = data->ed_argc;
   1583 	data->ed_arginfo.ps_nenvstr = data->ed_envc;
   1584 
   1585 	/*
   1586 	 * Allocate the stack address passed to the newly execve()'ed process.
   1587 	 *
   1588 	 * The new stack address will be set to the SP (stack pointer) register
   1589 	 * in setregs().
   1590 	 */
   1591 
   1592 	char *newargs = STACK_ALLOC(
   1593 	    STACK_SHRINK(newstack, data->ed_argslen), data->ed_argslen);
   1594 
   1595 	error = (*epp->ep_esch->es_copyargs)(l, epp,
   1596 	    &data->ed_arginfo, &newargs, data->ed_argp);
   1597 
   1598 	if (error) {
   1599 		DPRINTF(("%s: copyargs failed %d\n", __func__, error));
   1600 		return error;
   1601 	}
   1602 
   1603 	error = copyoutpsstrs(data, p);
   1604 	if (error != 0)
   1605 		return error;
   1606 
   1607 	return 0;
   1608 }
   1609 
   1610 static int
   1611 copyoutpsstrs(struct execve_data * restrict data, struct proc *p)
   1612 {
   1613 	struct exec_package	* const epp = &data->ed_pack;
   1614 	struct ps_strings32	arginfo32;
   1615 	void			*aip;
   1616 	int			error;
   1617 
   1618 	/* fill process ps_strings info */
   1619 	p->p_psstrp = (vaddr_t)STACK_ALLOC(STACK_GROW(epp->ep_minsaddr,
   1620 	    STACK_PTHREADSPACE), data->ed_ps_strings_sz);
   1621 
   1622 	if (epp->ep_flags & EXEC_32) {
   1623 		aip = &arginfo32;
   1624 		arginfo32.ps_argvstr = (vaddr_t)data->ed_arginfo.ps_argvstr;
   1625 		arginfo32.ps_nargvstr = data->ed_arginfo.ps_nargvstr;
   1626 		arginfo32.ps_envstr = (vaddr_t)data->ed_arginfo.ps_envstr;
   1627 		arginfo32.ps_nenvstr = data->ed_arginfo.ps_nenvstr;
   1628 	} else
   1629 		aip = &data->ed_arginfo;
   1630 
   1631 	/* copy out the process's ps_strings structure */
   1632 	if ((error = copyout(aip, (void *)p->p_psstrp, data->ed_ps_strings_sz))
   1633 	    != 0) {
   1634 		DPRINTF(("%s: ps_strings copyout %p->%p size %zu failed\n",
   1635 		    __func__, aip, (void *)p->p_psstrp, data->ed_ps_strings_sz));
   1636 		return error;
   1637 	}
   1638 
   1639 	return 0;
   1640 }
   1641 
   1642 static int
   1643 copyinargs(struct execve_data * restrict data, char * const *args,
   1644     char * const *envs, execve_fetch_element_t fetch_element, char **dpp)
   1645 {
   1646 	struct exec_package	* const epp = &data->ed_pack;
   1647 	char			*dp;
   1648 	size_t			i;
   1649 	int			error;
   1650 
   1651 	dp = *dpp;
   1652 
   1653 	data->ed_argc = 0;
   1654 
   1655 	/* copy the fake args list, if there's one, freeing it as we go */
   1656 	if (epp->ep_flags & EXEC_HASARGL) {
   1657 		struct exec_fakearg	*fa = epp->ep_fa;
   1658 
   1659 		while (fa->fa_arg != NULL) {
   1660 			const size_t maxlen = ARG_MAX - (dp - data->ed_argp);
   1661 			size_t len;
   1662 
   1663 			len = strlcpy(dp, fa->fa_arg, maxlen);
   1664 			/* Count NUL into len. */
   1665 			if (len < maxlen)
   1666 				len++;
   1667 			else {
   1668 				while (fa->fa_arg != NULL) {
   1669 					kmem_free(fa->fa_arg, fa->fa_len);
   1670 					fa++;
   1671 				}
   1672 				kmem_free(epp->ep_fa, epp->ep_fa_len);
   1673 				epp->ep_flags &= ~EXEC_HASARGL;
   1674 				return SET_ERROR(E2BIG);
   1675 			}
   1676 			ktrexecarg(fa->fa_arg, len - 1);
   1677 			dp += len;
   1678 
   1679 			kmem_free(fa->fa_arg, fa->fa_len);
   1680 			fa++;
   1681 			data->ed_argc++;
   1682 		}
   1683 		kmem_free(epp->ep_fa, epp->ep_fa_len);
   1684 		epp->ep_flags &= ~EXEC_HASARGL;
   1685 	}
   1686 
   1687 	/*
   1688 	 * Read and count argument strings from user.
   1689 	 */
   1690 
   1691 	if (args == NULL) {
   1692 		DPRINTF(("%s: null args\n", __func__));
   1693 		return SET_ERROR(EINVAL);
   1694 	}
   1695 	if (epp->ep_flags & EXEC_SKIPARG)
   1696 		args = (const void *)((const char *)args + fromptrsz(epp));
   1697 	i = 0;
   1698 	error = copyinargstrs(data, args, fetch_element, &dp, &i, ktr_execarg);
   1699 	if (error != 0) {
   1700 		DPRINTF(("%s: copyin arg %d\n", __func__, error));
   1701 		return error;
   1702 	}
   1703 	data->ed_argc += i;
   1704 
   1705 	/*
   1706 	 * Read and count environment strings from user.
   1707 	 */
   1708 
   1709 	data->ed_envc = 0;
   1710 	/* environment need not be there */
   1711 	if (envs == NULL)
   1712 		goto done;
   1713 	i = 0;
   1714 	error = copyinargstrs(data, envs, fetch_element, &dp, &i, ktr_execenv);
   1715 	if (error != 0) {
   1716 		DPRINTF(("%s: copyin env %d\n", __func__, error));
   1717 		return error;
   1718 	}
   1719 	data->ed_envc += i;
   1720 
   1721 done:
   1722 	*dpp = dp;
   1723 
   1724 	return 0;
   1725 }
   1726 
   1727 static int
   1728 copyinargstrs(struct execve_data * restrict data, char * const *strs,
   1729     execve_fetch_element_t fetch_element, char **dpp, size_t *ip,
   1730     void (*ktr)(const void *, size_t))
   1731 {
   1732 	char			*dp, *sp;
   1733 	size_t			i;
   1734 	int			error;
   1735 
   1736 	dp = *dpp;
   1737 
   1738 	i = 0;
   1739 	while (1) {
   1740 		const size_t maxlen = ARG_MAX - (dp - data->ed_argp);
   1741 		size_t len;
   1742 
   1743 		if ((error = (*fetch_element)(strs, i, &sp)) != 0) {
   1744 			return error;
   1745 		}
   1746 		if (!sp)
   1747 			break;
   1748 		if ((error = copyinstr(sp, dp, maxlen, &len)) != 0) {
   1749 			if (error == ENAMETOOLONG)
   1750 				error = SET_ERROR(E2BIG);
   1751 			return error;
   1752 		}
   1753 		if (__predict_false(ktrace_on))
   1754 			(*ktr)(dp, len - 1);
   1755 		dp += len;
   1756 		i++;
   1757 	}
   1758 
   1759 	*dpp = dp;
   1760 	*ip = i;
   1761 
   1762 	return 0;
   1763 }
   1764 
   1765 /*
   1766  * Copy argv and env strings from kernel buffer (argp) to the new stack.
   1767  * Those strings are located just after auxinfo.
   1768  */
   1769 int
   1770 copyargs(struct lwp *l, struct exec_package *pack, struct ps_strings *arginfo,
   1771     char **stackp, void *argp)
   1772 {
   1773 	char	**cpp, *dp, *sp;
   1774 	size_t	len;
   1775 	void	*nullp;
   1776 	long	argc, envc;
   1777 	int	error;
   1778 
   1779 	cpp = (char **)*stackp;
   1780 	nullp = NULL;
   1781 	argc = arginfo->ps_nargvstr;
   1782 	envc = arginfo->ps_nenvstr;
   1783 
   1784 	/* argc on stack is long */
   1785 	CTASSERT(sizeof(*cpp) == sizeof(argc));
   1786 
   1787 	dp = (char *)(cpp +
   1788 	    1 +				/* long argc */
   1789 	    argc +			/* char *argv[] */
   1790 	    1 +				/* \0 */
   1791 	    envc +			/* char *env[] */
   1792 	    1) +			/* \0 */
   1793 	    pack->ep_esch->es_arglen;	/* auxinfo */
   1794 	sp = argp;
   1795 
   1796 	if ((error = copyout(&argc, cpp++, sizeof(argc))) != 0) {
   1797 		COPYPRINTF("", cpp - 1, sizeof(argc));
   1798 		return error;
   1799 	}
   1800 
   1801 	/* XXX don't copy them out, remap them! */
   1802 	arginfo->ps_argvstr = cpp; /* remember location of argv for later */
   1803 
   1804 	for (; --argc >= 0; sp += len, dp += len) {
   1805 		if ((error = copyout(&dp, cpp++, sizeof(dp))) != 0) {
   1806 			COPYPRINTF("", cpp - 1, sizeof(dp));
   1807 			return error;
   1808 		}
   1809 		if ((error = copyoutstr(sp, dp, ARG_MAX, &len)) != 0) {
   1810 			COPYPRINTF("str", dp, (size_t)ARG_MAX);
   1811 			return error;
   1812 		}
   1813 	}
   1814 
   1815 	if ((error = copyout(&nullp, cpp++, sizeof(nullp))) != 0) {
   1816 		COPYPRINTF("", cpp - 1, sizeof(nullp));
   1817 		return error;
   1818 	}
   1819 
   1820 	arginfo->ps_envstr = cpp; /* remember location of envp for later */
   1821 
   1822 	for (; --envc >= 0; sp += len, dp += len) {
   1823 		if ((error = copyout(&dp, cpp++, sizeof(dp))) != 0) {
   1824 			COPYPRINTF("", cpp - 1, sizeof(dp));
   1825 			return error;
   1826 		}
   1827 		if ((error = copyoutstr(sp, dp, ARG_MAX, &len)) != 0) {
   1828 			COPYPRINTF("str", dp, (size_t)ARG_MAX);
   1829 			return error;
   1830 		}
   1831 
   1832 	}
   1833 
   1834 	if ((error = copyout(&nullp, cpp++, sizeof(nullp))) != 0) {
   1835 		COPYPRINTF("", cpp - 1, sizeof(nullp));
   1836 		return error;
   1837 	}
   1838 
   1839 	*stackp = (char *)cpp;
   1840 	return 0;
   1841 }
   1842 
   1843 
   1844 /*
   1845  * Add execsw[] entries.
   1846  */
   1847 int
   1848 exec_add(struct execsw *esp, int count)
   1849 {
   1850 	struct exec_entry	*it;
   1851 	int			i, error = 0;
   1852 
   1853 	if (count == 0) {
   1854 		return 0;
   1855 	}
   1856 
   1857 	/* Check for duplicates. */
   1858 	rw_enter(&exec_lock, RW_WRITER);
   1859 	for (i = 0; i < count; i++) {
   1860 		LIST_FOREACH(it, &ex_head, ex_list) {
   1861 			/* assume unique (makecmds, probe_func, emulation) */
   1862 			if (it->ex_sw->es_makecmds == esp[i].es_makecmds &&
   1863 			    it->ex_sw->u.elf_probe_func ==
   1864 			    esp[i].u.elf_probe_func &&
   1865 			    it->ex_sw->es_emul == esp[i].es_emul) {
   1866 				rw_exit(&exec_lock);
   1867 				return SET_ERROR(EEXIST);
   1868 			}
   1869 		}
   1870 	}
   1871 
   1872 	/* Allocate new entries. */
   1873 	for (i = 0; i < count; i++) {
   1874 		it = kmem_alloc(sizeof(*it), KM_SLEEP);
   1875 		it->ex_sw = &esp[i];
   1876 		error = exec_sigcode_alloc(it->ex_sw->es_emul);
   1877 		if (error != 0) {
   1878 			kmem_free(it, sizeof(*it));
   1879 			break;
   1880 		}
   1881 		LIST_INSERT_HEAD(&ex_head, it, ex_list);
   1882 	}
   1883 	/* If even one fails, remove them all back. */
   1884 	if (error != 0) {
   1885 		for (i--; i >= 0; i--) {
   1886 			it = LIST_FIRST(&ex_head);
   1887 			LIST_REMOVE(it, ex_list);
   1888 			exec_sigcode_free(it->ex_sw->es_emul);
   1889 			kmem_free(it, sizeof(*it));
   1890 		}
   1891 		rw_exit(&exec_lock);
   1892 		return error;
   1893 	}
   1894 
   1895 	/* update execsw[] */
   1896 	exec_init(0);
   1897 	rw_exit(&exec_lock);
   1898 	return 0;
   1899 }
   1900 
   1901 /*
   1902  * Remove execsw[] entry.
   1903  */
   1904 int
   1905 exec_remove(struct execsw *esp, int count)
   1906 {
   1907 	struct exec_entry	*it, *next;
   1908 	int			i;
   1909 	const struct proclist_desc *pd;
   1910 	proc_t			*p;
   1911 
   1912 	if (count == 0) {
   1913 		return 0;
   1914 	}
   1915 
   1916 	/* Abort if any are busy. */
   1917 	rw_enter(&exec_lock, RW_WRITER);
   1918 	for (i = 0; i < count; i++) {
   1919 		mutex_enter(&proc_lock);
   1920 		for (pd = proclists; pd->pd_list != NULL; pd++) {
   1921 			PROCLIST_FOREACH(p, pd->pd_list) {
   1922 				if (p->p_execsw == &esp[i]) {
   1923 					mutex_exit(&proc_lock);
   1924 					rw_exit(&exec_lock);
   1925 					return SET_ERROR(EBUSY);
   1926 				}
   1927 			}
   1928 		}
   1929 		mutex_exit(&proc_lock);
   1930 	}
   1931 
   1932 	/* None are busy, so remove them all. */
   1933 	for (i = 0; i < count; i++) {
   1934 		for (it = LIST_FIRST(&ex_head); it != NULL; it = next) {
   1935 			next = LIST_NEXT(it, ex_list);
   1936 			if (it->ex_sw == &esp[i]) {
   1937 				LIST_REMOVE(it, ex_list);
   1938 				exec_sigcode_free(it->ex_sw->es_emul);
   1939 				kmem_free(it, sizeof(*it));
   1940 				break;
   1941 			}
   1942 		}
   1943 	}
   1944 
   1945 	/* update execsw[] */
   1946 	exec_init(0);
   1947 	rw_exit(&exec_lock);
   1948 	return 0;
   1949 }
   1950 
   1951 /*
   1952  * Initialize exec structures. If init_boot is true, also does necessary
   1953  * one-time initialization (it's called from main() that way).
   1954  * Once system is multiuser, this should be called with exec_lock held,
   1955  * i.e. via exec_{add|remove}().
   1956  */
   1957 int
   1958 exec_init(int init_boot)
   1959 {
   1960 	const struct execsw 	**sw;
   1961 	struct exec_entry	*ex;
   1962 	SLIST_HEAD(,exec_entry)	first;
   1963 	SLIST_HEAD(,exec_entry)	any;
   1964 	SLIST_HEAD(,exec_entry)	last;
   1965 	int			i, sz;
   1966 
   1967 	if (init_boot) {
   1968 		/* do one-time initializations */
   1969 		vaddr_t vmin = 0, vmax;
   1970 
   1971 		rw_init(&exec_lock);
   1972 		exec_map = uvm_km_suballoc(kernel_map, &vmin, &vmax,
   1973 		    maxexec*NCARGS, VM_MAP_PAGEABLE, false, NULL);
   1974 		pool_init(&exec_pool, NCARGS, 0, 0, PR_NOALIGN|PR_NOTOUCH,
   1975 		    "execargs", &exec_palloc, IPL_NONE);
   1976 		pool_sethardlimit(&exec_pool, maxexec, "should not happen", 0);
   1977 	} else {
   1978 		KASSERT(rw_write_held(&exec_lock));
   1979 	}
   1980 
   1981 	/* Sort each entry onto the appropriate queue. */
   1982 	SLIST_INIT(&first);
   1983 	SLIST_INIT(&any);
   1984 	SLIST_INIT(&last);
   1985 	sz = 0;
   1986 	LIST_FOREACH(ex, &ex_head, ex_list) {
   1987 		switch(ex->ex_sw->es_prio) {
   1988 		case EXECSW_PRIO_FIRST:
   1989 			SLIST_INSERT_HEAD(&first, ex, ex_slist);
   1990 			break;
   1991 		case EXECSW_PRIO_ANY:
   1992 			SLIST_INSERT_HEAD(&any, ex, ex_slist);
   1993 			break;
   1994 		case EXECSW_PRIO_LAST:
   1995 			SLIST_INSERT_HEAD(&last, ex, ex_slist);
   1996 			break;
   1997 		default:
   1998 			panic("%s", __func__);
   1999 			break;
   2000 		}
   2001 		sz++;
   2002 	}
   2003 
   2004 	/*
   2005 	 * Create new execsw[].  Ensure we do not try a zero-sized
   2006 	 * allocation.
   2007 	 */
   2008 	sw = kmem_alloc(sz * sizeof(struct execsw *) + 1, KM_SLEEP);
   2009 	i = 0;
   2010 	SLIST_FOREACH(ex, &first, ex_slist) {
   2011 		sw[i++] = ex->ex_sw;
   2012 	}
   2013 	SLIST_FOREACH(ex, &any, ex_slist) {
   2014 		sw[i++] = ex->ex_sw;
   2015 	}
   2016 	SLIST_FOREACH(ex, &last, ex_slist) {
   2017 		sw[i++] = ex->ex_sw;
   2018 	}
   2019 
   2020 	/* Replace old execsw[] and free used memory. */
   2021 	if (execsw != NULL) {
   2022 		kmem_free(__UNCONST(execsw),
   2023 		    nexecs * sizeof(struct execsw *) + 1);
   2024 	}
   2025 	execsw = sw;
   2026 	nexecs = sz;
   2027 
   2028 	/* Figure out the maximum size of an exec header. */
   2029 	exec_maxhdrsz = sizeof(int);
   2030 	for (i = 0; i < nexecs; i++) {
   2031 		if (execsw[i]->es_hdrsz > exec_maxhdrsz)
   2032 			exec_maxhdrsz = execsw[i]->es_hdrsz;
   2033 	}
   2034 
   2035 	return 0;
   2036 }
   2037 
   2038 int
   2039 exec_sigcode_alloc(const struct emul *e)
   2040 {
   2041 	vaddr_t va;
   2042 	vsize_t sz;
   2043 	int error;
   2044 	struct uvm_object *uobj;
   2045 
   2046 	KASSERT(rw_lock_held(&exec_lock));
   2047 
   2048 	if (e == NULL || e->e_sigobject == NULL)
   2049 		return 0;
   2050 
   2051 	sz = (vaddr_t)e->e_esigcode - (vaddr_t)e->e_sigcode;
   2052 	if (sz == 0)
   2053 		return 0;
   2054 
   2055 	/*
   2056 	 * Create a sigobject for this emulation.
   2057 	 *
   2058 	 * sigobject is an anonymous memory object (just like SYSV shared
   2059 	 * memory) that we keep a permanent reference to and that we map
   2060 	 * in all processes that need this sigcode. The creation is simple,
   2061 	 * we create an object, add a permanent reference to it, map it in
   2062 	 * kernel space, copy out the sigcode to it and unmap it.
   2063 	 * We map it with PROT_READ|PROT_EXEC into the process just
   2064 	 * the way sys_mmap() would map it.
   2065 	 */
   2066 	if (*e->e_sigobject == NULL) {
   2067 		uobj = uao_create(sz, 0);
   2068 		(*uobj->pgops->pgo_reference)(uobj);
   2069 		va = vm_map_min(kernel_map);
   2070 		if ((error = uvm_map(kernel_map, &va, round_page(sz),
   2071 		    uobj, 0, 0,
   2072 		    UVM_MAPFLAG(UVM_PROT_RW, UVM_PROT_RW,
   2073 		    UVM_INH_SHARE, UVM_ADV_RANDOM, 0)))) {
   2074 			printf("sigcode kernel mapping failed %d\n", error);
   2075 			(*uobj->pgops->pgo_detach)(uobj);
   2076 			return error;
   2077 		}
   2078 		memcpy((void *)va, e->e_sigcode, sz);
   2079 #ifdef PMAP_NEED_PROCWR
   2080 		pmap_procwr(&proc0, va, sz);
   2081 #endif
   2082 		uvm_unmap(kernel_map, va, va + round_page(sz));
   2083 		*e->e_sigobject = uobj;
   2084 		KASSERT(uobj->uo_refs == 1);
   2085 	} else {
   2086 		/* if already created, reference++ */
   2087 		uobj = *e->e_sigobject;
   2088 		(*uobj->pgops->pgo_reference)(uobj);
   2089 	}
   2090 
   2091 	return 0;
   2092 }
   2093 
   2094 void
   2095 exec_sigcode_free(const struct emul *e)
   2096 {
   2097 	struct uvm_object *uobj;
   2098 
   2099 	KASSERT(rw_lock_held(&exec_lock));
   2100 
   2101 	if (e == NULL || e->e_sigobject == NULL)
   2102 		return;
   2103 
   2104 	uobj = *e->e_sigobject;
   2105 	if (uobj == NULL)
   2106 		return;
   2107 
   2108 	if (uobj->uo_refs == 1)
   2109 		*e->e_sigobject = NULL;	/* I'm the last person to reference. */
   2110 	(*uobj->pgops->pgo_detach)(uobj);
   2111 }
   2112 
   2113 static int
   2114 exec_sigcode_map(struct proc *p, const struct emul *e)
   2115 {
   2116 	vaddr_t va;
   2117 	vsize_t sz;
   2118 	int error;
   2119 	struct uvm_object *uobj;
   2120 
   2121 	sz = (vaddr_t)e->e_esigcode - (vaddr_t)e->e_sigcode;
   2122 	if (e->e_sigobject == NULL || sz == 0)
   2123 		return 0;
   2124 
   2125 	uobj = *e->e_sigobject;
   2126 	if (uobj == NULL)
   2127 		return 0;
   2128 
   2129 	/* Just a hint to uvm_map where to put it. */
   2130 	va = e->e_vm_default_addr(p, (vaddr_t)p->p_vmspace->vm_daddr,
   2131 	    round_page(sz), p->p_vmspace->vm_map.flags & VM_MAP_TOPDOWN);
   2132 
   2133 #ifdef __alpha__
   2134 	/*
   2135 	 * Tru64 puts /sbin/loader at the end of user virtual memory,
   2136 	 * which causes the above calculation to put the sigcode at
   2137 	 * an invalid address.  Put it just below the text instead.
   2138 	 */
   2139 	if (va == (vaddr_t)vm_map_max(&p->p_vmspace->vm_map)) {
   2140 		va = (vaddr_t)p->p_vmspace->vm_taddr - round_page(sz);
   2141 	}
   2142 #endif
   2143 
   2144 	(*uobj->pgops->pgo_reference)(uobj);
   2145 	error = uvm_map(&p->p_vmspace->vm_map, &va, round_page(sz),
   2146 			uobj, 0, 0,
   2147 			UVM_MAPFLAG(UVM_PROT_RX, UVM_PROT_RX, UVM_INH_SHARE,
   2148 				    UVM_ADV_RANDOM, 0));
   2149 	if (error) {
   2150 		DPRINTF(("%s, %d: map %p "
   2151 		    "uvm_map %#"PRIxVSIZE"@%#"PRIxVADDR" failed %d\n",
   2152 		    __func__, __LINE__, &p->p_vmspace->vm_map, round_page(sz),
   2153 		    va, error));
   2154 		(*uobj->pgops->pgo_detach)(uobj);
   2155 		return error;
   2156 	}
   2157 	p->p_sigctx.ps_sigcode = (void *)va;
   2158 	return 0;
   2159 }
   2160 
   2161 /*
   2162  * Release a refcount on spawn_exec_data and destroy memory, if this
   2163  * was the last one.
   2164  */
   2165 static void
   2166 spawn_exec_data_release(struct spawn_exec_data *data)
   2167 {
   2168 
   2169 	membar_release();
   2170 	if (atomic_dec_32_nv(&data->sed_refcnt) != 0)
   2171 		return;
   2172 	membar_acquire();
   2173 
   2174 	cv_destroy(&data->sed_cv_child_ready);
   2175 	mutex_destroy(&data->sed_mtx_child);
   2176 
   2177 	if (data->sed_actions)
   2178 		posix_spawn_fa_free(data->sed_actions,
   2179 		    data->sed_actions->len);
   2180 	if (data->sed_attrs)
   2181 		kmem_free(data->sed_attrs,
   2182 		    sizeof(*data->sed_attrs));
   2183 	kmem_free(data, sizeof(*data));
   2184 }
   2185 
   2186 static int
   2187 handle_posix_spawn_file_actions(struct posix_spawn_file_actions *actions)
   2188 {
   2189 	struct lwp *l = curlwp;
   2190 	register_t retval;
   2191 	int error = 0, newfd;
   2192 
   2193 	if (actions == NULL)
   2194 		return 0;
   2195 
   2196 	for (size_t i = 0; i < actions->len; i++) {
   2197 		const struct posix_spawn_file_actions_entry *fae =
   2198 		    &actions->fae[i];
   2199 		switch (fae->fae_action) {
   2200 		case FAE_OPEN:
   2201 			if (fd_getfile(fae->fae_fildes) != NULL) {
   2202 				error = fd_close(fae->fae_fildes);
   2203 				if (error)
   2204 					return error;
   2205 			}
   2206 			error = fd_open(fae->fae_path, fae->fae_oflag,
   2207 			    fae->fae_mode, &newfd);
   2208 			if (error)
   2209 				return error;
   2210 			if (newfd != fae->fae_fildes) {
   2211 				error = dodup(l, newfd,
   2212 				    fae->fae_fildes, 0, &retval);
   2213 				if (fd_getfile(newfd) != NULL)
   2214 					fd_close(newfd);
   2215 			}
   2216 			break;
   2217 		case FAE_DUP2:
   2218 			error = dodup(l, fae->fae_fildes,
   2219 			    fae->fae_newfildes, 0, &retval);
   2220 			break;
   2221 		case FAE_CLOSE:
   2222 			/*
   2223 			 * posix specifies failures from close() due to
   2224 			 * already closed file descriptors should be ignored.
   2225 			 * out of range filedescriptors would have been
   2226 			 * caught earlier already.
   2227 			 */
   2228 			if (fd_getfile(fae->fae_fildes) != NULL)
   2229 				fd_close(fae->fae_fildes);
   2230 			break;
   2231 		case FAE_CHDIR:
   2232 			error = do_sys_chdir(l, fae->fae_chdir_path,
   2233 			    UIO_SYSSPACE, &retval);
   2234 			break;
   2235 		case FAE_FCHDIR:
   2236 			error = do_sys_fchdir(l, fae->fae_fildes, &retval);
   2237 			break;
   2238 		}
   2239 		if (error)
   2240 			return error;
   2241 	}
   2242 	return 0;
   2243 }
   2244 
   2245 static int
   2246 handle_posix_spawn_attrs(struct posix_spawnattr *attrs, struct proc *parent)
   2247 {
   2248 	struct sigaction sigact;
   2249 	int error = 0;
   2250 	struct proc *p = curproc;
   2251 	struct lwp *l = curlwp;
   2252 
   2253 	if (attrs == NULL)
   2254 		return 0;
   2255 
   2256 	memset(&sigact, 0, sizeof(sigact));
   2257 	sigact._sa_u._sa_handler = SIG_DFL;
   2258 	sigact.sa_flags = 0;
   2259 
   2260 	/*
   2261 	 * set state to SSTOP so that this proc can be found by pid.
   2262 	 * see proc_enterprp, do_sched_setparam below
   2263 	 */
   2264 	mutex_enter(&proc_lock);
   2265 	/*
   2266 	 * p_stat should be SACTIVE, so we need to adjust the
   2267 	 * parent's p_nstopchild here.  For safety, just make
   2268 	 * we're on the good side of SDEAD before we adjust.
   2269 	 */
   2270 	int ostat = p->p_stat;
   2271 	KASSERT(ostat < SSTOP);
   2272 	p->p_stat = SSTOP;
   2273 	p->p_waited = 0;
   2274 	p->p_pptr->p_nstopchild++;
   2275 	mutex_exit(&proc_lock);
   2276 
   2277 	/* Set process group */
   2278 	if (attrs->sa_flags & POSIX_SPAWN_SETPGROUP) {
   2279 		pid_t mypid = p->p_pid;
   2280 		pid_t pgrp = attrs->sa_pgroup;
   2281 
   2282 		if (pgrp == 0)
   2283 			pgrp = mypid;
   2284 
   2285 		error = proc_enterpgrp(parent, mypid, pgrp, false);
   2286 		if (error)
   2287 			goto out;
   2288 	}
   2289 
   2290 	/* Set scheduler policy */
   2291 	if (attrs->sa_flags & POSIX_SPAWN_SETSCHEDULER)
   2292 		error = do_sched_setparam(p->p_pid, 0, attrs->sa_schedpolicy,
   2293 		    &attrs->sa_schedparam);
   2294 	else if (attrs->sa_flags & POSIX_SPAWN_SETSCHEDPARAM) {
   2295 		error = do_sched_setparam(parent->p_pid, 0,
   2296 		    SCHED_NONE, &attrs->sa_schedparam);
   2297 	}
   2298 	if (error)
   2299 		goto out;
   2300 
   2301 	/* Reset user ID's */
   2302 	if (attrs->sa_flags & POSIX_SPAWN_RESETIDS) {
   2303 		error = do_setresgid(l, -1, kauth_cred_getgid(l->l_cred), -1,
   2304 		     ID_E_EQ_R | ID_E_EQ_S);
   2305 		if (error)
   2306 			return error;
   2307 		error = do_setresuid(l, -1, kauth_cred_getuid(l->l_cred), -1,
   2308 		    ID_E_EQ_R | ID_E_EQ_S);
   2309 		if (error)
   2310 			goto out;
   2311 	}
   2312 
   2313 	/* Set signal masks/defaults */
   2314 	if (attrs->sa_flags & POSIX_SPAWN_SETSIGMASK) {
   2315 		mutex_enter(p->p_lock);
   2316 		error = sigprocmask1(l, SIG_SETMASK, &attrs->sa_sigmask, NULL);
   2317 		mutex_exit(p->p_lock);
   2318 		if (error)
   2319 			goto out;
   2320 	}
   2321 
   2322 	if (attrs->sa_flags & POSIX_SPAWN_SETSIGDEF) {
   2323 		/*
   2324 		 * The following sigaction call is using a sigaction
   2325 		 * version 0 trampoline which is in the compatibility
   2326 		 * code only. This is not a problem because for SIG_DFL
   2327 		 * and SIG_IGN, the trampolines are now ignored. If they
   2328 		 * were not, this would be a problem because we are
   2329 		 * holding the exec_lock, and the compat code needs
   2330 		 * to do the same in order to replace the trampoline
   2331 		 * code of the process.
   2332 		 */
   2333 		for (int i = 1; i <= NSIG; i++) {
   2334 			if (sigismember(&attrs->sa_sigdefault, i))
   2335 				sigaction1(l, i, &sigact, NULL, NULL, 0);
   2336 		}
   2337 	}
   2338 out:
   2339 	mutex_enter(&proc_lock);
   2340 	p->p_stat = ostat;
   2341 	p->p_pptr->p_nstopchild--;
   2342 	mutex_exit(&proc_lock);
   2343 	return error;
   2344 }
   2345 
   2346 /*
   2347  * A child lwp of a posix_spawn operation starts here and ends up in
   2348  * cpu_spawn_return, dealing with all filedescriptor and scheduler
   2349  * manipulations in between.
   2350  * The parent waits for the child, as it is not clear whether the child
   2351  * will be able to acquire its own exec_lock. If it can, the parent can
   2352  * be released early and continue running in parallel. If not (or if the
   2353  * magic debug flag is passed in the scheduler attribute struct), the
   2354  * child rides on the parent's exec lock until it is ready to return to
   2355  * to userland - and only then releases the parent. This method loses
   2356  * concurrency, but improves error reporting.
   2357  */
   2358 static void
   2359 spawn_return(void *arg)
   2360 {
   2361 	struct spawn_exec_data *spawn_data = arg;
   2362 	struct lwp *l = curlwp;
   2363 	struct proc *p = l->l_proc;
   2364 	int error;
   2365 	bool have_reflock;
   2366 	bool parent_is_waiting = true;
   2367 
   2368 	/*
   2369 	 * Check if we can release parent early.
   2370 	 * We either need to have no sed_attrs, or sed_attrs does not
   2371 	 * have POSIX_SPAWN_RETURNERROR or one of the flags, that require
   2372 	 * safe access to the parent proc (passed in sed_parent).
   2373 	 * We then try to get the exec_lock, and only if that works, we can
   2374 	 * release the parent here already.
   2375 	 */
   2376 	struct posix_spawnattr *attrs = spawn_data->sed_attrs;
   2377 	if ((!attrs || (attrs->sa_flags
   2378 		& (POSIX_SPAWN_RETURNERROR|POSIX_SPAWN_SETPGROUP)) == 0)
   2379 	    && rw_tryenter(&exec_lock, RW_READER)) {
   2380 		parent_is_waiting = false;
   2381 		mutex_enter(&spawn_data->sed_mtx_child);
   2382 		KASSERT(!spawn_data->sed_child_ready);
   2383 		spawn_data->sed_error = 0;
   2384 		spawn_data->sed_child_ready = true;
   2385 		cv_signal(&spawn_data->sed_cv_child_ready);
   2386 		mutex_exit(&spawn_data->sed_mtx_child);
   2387 	}
   2388 
   2389 	/* don't allow debugger access yet */
   2390 	rw_enter(&p->p_reflock, RW_WRITER);
   2391 	have_reflock = true;
   2392 
   2393 	/* handle posix_spawnattr */
   2394 	error = handle_posix_spawn_attrs(attrs, spawn_data->sed_parent);
   2395 	if (error)
   2396 		goto report_error;
   2397 
   2398 	/* handle posix_spawn_file_actions */
   2399 	error = handle_posix_spawn_file_actions(spawn_data->sed_actions);
   2400 	if (error)
   2401 		goto report_error;
   2402 
   2403 	/* now do the real exec */
   2404 	error = execve_runproc(l, &spawn_data->sed_exec, parent_is_waiting,
   2405 	    true);
   2406 	have_reflock = false;
   2407 	if (error == EJUSTRETURN)
   2408 		error = 0;
   2409 	else if (error)
   2410 		goto report_error;
   2411 
   2412 	if (parent_is_waiting) {
   2413 		mutex_enter(&spawn_data->sed_mtx_child);
   2414 		KASSERT(!spawn_data->sed_child_ready);
   2415 		spawn_data->sed_error = 0;
   2416 		spawn_data->sed_child_ready = true;
   2417 		cv_signal(&spawn_data->sed_cv_child_ready);
   2418 		mutex_exit(&spawn_data->sed_mtx_child);
   2419 	}
   2420 
   2421 	/* release our refcount on the data */
   2422 	spawn_exec_data_release(spawn_data);
   2423 
   2424 	if ((p->p_slflag & (PSL_TRACED|PSL_TRACEDCHILD)) ==
   2425 	    (PSL_TRACED|PSL_TRACEDCHILD)) {
   2426 		eventswitchchild(p, TRAP_CHLD, PTRACE_POSIX_SPAWN);
   2427 	}
   2428 
   2429 	/* and finally: leave to userland for the first time */
   2430 	cpu_spawn_return(l);
   2431 
   2432 	/* NOTREACHED */
   2433 	return;
   2434 
   2435  report_error:
   2436 	if (have_reflock) {
   2437 		/*
   2438 		 * We have not passed through execve_runproc(),
   2439 		 * which would have released the p_reflock and also
   2440 		 * taken ownership of the sed_exec part of spawn_data,
   2441 		 * so release/free both here.
   2442 		 */
   2443 		rw_exit(&p->p_reflock);
   2444 		exec_free_emul_arg(&spawn_data->sed_exec.ed_pack);
   2445 		execve_free_data(&spawn_data->sed_exec);
   2446 	}
   2447 
   2448 	if (parent_is_waiting) {
   2449 		/* pass error to parent */
   2450 		mutex_enter(&spawn_data->sed_mtx_child);
   2451 		KASSERT(!spawn_data->sed_child_ready);
   2452 		spawn_data->sed_error = error;
   2453 		spawn_data->sed_child_ready = true;
   2454 		cv_signal(&spawn_data->sed_cv_child_ready);
   2455 		mutex_exit(&spawn_data->sed_mtx_child);
   2456 	} else {
   2457 		rw_exit(&exec_lock);
   2458 	}
   2459 
   2460 	/* release our refcount on the data */
   2461 	spawn_exec_data_release(spawn_data);
   2462 
   2463 	/* done, exit */
   2464 	mutex_enter(p->p_lock);
   2465 	/*
   2466 	 * Posix explicitly asks for an exit code of 127 if we report
   2467 	 * errors from the child process - so, unfortunately, there
   2468 	 * is no way to report a more exact error code.
   2469 	 * A NetBSD specific workaround is POSIX_SPAWN_RETURNERROR as
   2470 	 * flag bit in the attrp argument to posix_spawn(2), see above.
   2471 	 */
   2472 	exit1(l, 127, 0);
   2473 }
   2474 
   2475 static __inline char **
   2476 posix_spawn_fae_path(struct posix_spawn_file_actions_entry *fae)
   2477 {
   2478 	switch (fae->fae_action) {
   2479 	case FAE_OPEN:
   2480 		return &fae->fae_path;
   2481 	case FAE_CHDIR:
   2482 		return &fae->fae_chdir_path;
   2483 	default:
   2484 		return NULL;
   2485 	}
   2486 }
   2487 
   2488 void
   2489 posix_spawn_fa_free(struct posix_spawn_file_actions *fa, size_t len)
   2490 {
   2491 
   2492 	for (size_t i = 0; i < len; i++) {
   2493 		char **pathp = posix_spawn_fae_path(&fa->fae[i]);
   2494 		if (pathp)
   2495 			kmem_strfree(*pathp);
   2496 	}
   2497 	if (fa->len > 0)
   2498 		kmem_free(fa->fae, sizeof(*fa->fae) * fa->len);
   2499 	kmem_free(fa, sizeof(*fa));
   2500 }
   2501 
   2502 static int
   2503 posix_spawn_fa_alloc(struct posix_spawn_file_actions **fap,
   2504     const struct posix_spawn_file_actions *ufa, rlim_t lim)
   2505 {
   2506 	struct posix_spawn_file_actions *fa;
   2507 	struct posix_spawn_file_actions_entry *fae;
   2508 	char *pbuf = NULL;
   2509 	int error;
   2510 	size_t i = 0;
   2511 
   2512 	fa = kmem_alloc(sizeof(*fa), KM_SLEEP);
   2513 	error = copyin(ufa, fa, sizeof(*fa));
   2514 	if (error || fa->len == 0) {
   2515 		kmem_free(fa, sizeof(*fa));
   2516 		return error;	/* 0 if not an error, and len == 0 */
   2517 	}
   2518 
   2519 	if (fa->len > lim) {
   2520 		kmem_free(fa, sizeof(*fa));
   2521 		return SET_ERROR(EINVAL);
   2522 	}
   2523 
   2524 	fa->size = fa->len;
   2525 	size_t fal = fa->len * sizeof(*fae);
   2526 	fae = fa->fae;
   2527 	fa->fae = kmem_alloc(fal, KM_SLEEP);
   2528 	error = copyin(fae, fa->fae, fal);
   2529 	if (error)
   2530 		goto out;
   2531 
   2532 	pbuf = PNBUF_GET();
   2533 	for (; i < fa->len; i++) {
   2534 		char **pathp = posix_spawn_fae_path(&fa->fae[i]);
   2535 		if (pathp == NULL)
   2536 			continue;
   2537 		error = copyinstr(*pathp, pbuf, MAXPATHLEN, &fal);
   2538 		if (error)
   2539 			goto out;
   2540 		*pathp = kmem_alloc(fal, KM_SLEEP);
   2541 		memcpy(*pathp, pbuf, fal);
   2542 	}
   2543 	PNBUF_PUT(pbuf);
   2544 
   2545 	*fap = fa;
   2546 	return 0;
   2547 out:
   2548 	if (pbuf)
   2549 		PNBUF_PUT(pbuf);
   2550 	posix_spawn_fa_free(fa, i);
   2551 	return error;
   2552 }
   2553 
   2554 /*
   2555  * N.B. increments nprocs upon success.  Callers need to drop nprocs if
   2556  * they fail for some other reason.
   2557  */
   2558 int
   2559 check_posix_spawn(struct lwp *l1)
   2560 {
   2561 	int error, tnprocs, count;
   2562 	uid_t uid;
   2563 	struct proc *p1;
   2564 
   2565 	p1 = l1->l_proc;
   2566 	uid = kauth_cred_getuid(l1->l_cred);
   2567 	tnprocs = atomic_inc_uint_nv(&nprocs);
   2568 
   2569 	/*
   2570 	 * Although process entries are dynamically created, we still keep
   2571 	 * a global limit on the maximum number we will create.
   2572 	 */
   2573 	if (__predict_false(tnprocs >= maxproc))
   2574 		error = -1;
   2575 	else
   2576 		error = kauth_authorize_process(l1->l_cred,
   2577 		    KAUTH_PROCESS_FORK, p1, KAUTH_ARG(tnprocs), NULL, NULL);
   2578 
   2579 	if (error) {
   2580 		atomic_dec_uint(&nprocs);
   2581 		return SET_ERROR(EAGAIN);
   2582 	}
   2583 
   2584 	/*
   2585 	 * Enforce limits.
   2586 	 */
   2587 	count = chgproccnt(uid, 1);
   2588 	if (kauth_authorize_process(l1->l_cred, KAUTH_PROCESS_RLIMIT,
   2589 	     p1, KAUTH_ARG(KAUTH_REQ_PROCESS_RLIMIT_BYPASS),
   2590 	     &p1->p_rlimit[RLIMIT_NPROC], KAUTH_ARG(RLIMIT_NPROC)) != 0 &&
   2591 	    __predict_false(count > p1->p_rlimit[RLIMIT_NPROC].rlim_cur)) {
   2592 		(void)chgproccnt(uid, -1);
   2593 		atomic_dec_uint(&nprocs);
   2594 		return SET_ERROR(EAGAIN);
   2595 	}
   2596 
   2597 	return 0;
   2598 }
   2599 
   2600 int
   2601 do_posix_spawn(struct lwp *l1, pid_t *pid_res, bool *child_ok, const char *path,
   2602 	struct posix_spawn_file_actions *fa,
   2603 	struct posix_spawnattr *sa,
   2604 	char *const *argv, char *const *envp,
   2605 	execve_fetch_element_t fetch)
   2606 {
   2607 
   2608 	struct proc *p1, *p2;
   2609 	struct lwp *l2;
   2610 	int error;
   2611 	struct spawn_exec_data *spawn_data;
   2612 	vaddr_t uaddr = 0;
   2613 	pid_t pid;
   2614 	bool have_exec_lock = false;
   2615 
   2616 	p1 = l1->l_proc;
   2617 
   2618 	/* Allocate and init spawn_data */
   2619 	spawn_data = kmem_zalloc(sizeof(*spawn_data), KM_SLEEP);
   2620 	spawn_data->sed_refcnt = 1; /* only parent so far */
   2621 	cv_init(&spawn_data->sed_cv_child_ready, "pspawn");
   2622 	mutex_init(&spawn_data->sed_mtx_child, MUTEX_DEFAULT, IPL_NONE);
   2623 	mutex_enter(&spawn_data->sed_mtx_child);
   2624 
   2625 	/*
   2626 	 * Do the first part of the exec now, collect state
   2627 	 * in spawn_data.
   2628 	 */
   2629 	error = execve_loadvm(l1, true, path, -1, argv,
   2630 	    envp, fetch, &spawn_data->sed_exec);
   2631 	if (error == EJUSTRETURN)
   2632 		error = 0;
   2633 	else if (error)
   2634 		goto error_exit;
   2635 
   2636 	have_exec_lock = true;
   2637 
   2638 	/*
   2639 	 * Allocate virtual address space for the U-area now, while it
   2640 	 * is still easy to abort the fork operation if we're out of
   2641 	 * kernel virtual address space.
   2642 	 */
   2643 	uaddr = uvm_uarea_alloc();
   2644 	if (__predict_false(uaddr == 0)) {
   2645 		error = SET_ERROR(ENOMEM);
   2646 		goto error_exit;
   2647 	}
   2648 
   2649 	/*
   2650 	 * Allocate new proc. Borrow proc0 vmspace for it, we will
   2651 	 * replace it with its own before returning to userland
   2652 	 * in the child.
   2653 	 */
   2654 	p2 = proc_alloc();
   2655 	if (p2 == NULL) {
   2656 		/* We were unable to allocate a process ID. */
   2657 		error = SET_ERROR(EAGAIN);
   2658 		goto error_exit;
   2659 	}
   2660 
   2661 	/*
   2662 	 * This is a point of no return, we will have to go through
   2663 	 * the child proc to properly clean it up past this point.
   2664 	 */
   2665 	pid = p2->p_pid;
   2666 
   2667 	/*
   2668 	 * Make a proc table entry for the new process.
   2669 	 * Start by zeroing the section of proc that is zero-initialized,
   2670 	 * then copy the section that is copied directly from the parent.
   2671 	 */
   2672 	memset(&p2->p_startzero, 0,
   2673 	    (unsigned) ((char *)&p2->p_endzero - (char *)&p2->p_startzero));
   2674 	memcpy(&p2->p_startcopy, &p1->p_startcopy,
   2675 	    (unsigned) ((char *)&p2->p_endcopy - (char *)&p2->p_startcopy));
   2676 
   2677 	/*
   2678 	 * Allocate an empty user vmspace for the new process now.
   2679 	 * The min/max and topdown parameters given here are just placeholders,
   2680 	 * the right values will be assigned in uvmspace_exec().
   2681 	 */
   2682 	p2->p_vmspace = uvmspace_alloc(exec_vm_minaddr(VM_MIN_ADDRESS),
   2683 	    VM_MAXUSER_ADDRESS, true);
   2684 
   2685 	TAILQ_INIT(&p2->p_sigpend.sp_info);
   2686 
   2687 	LIST_INIT(&p2->p_lwps);
   2688 	LIST_INIT(&p2->p_sigwaiters);
   2689 
   2690 	/*
   2691 	 * Duplicate sub-structures as needed.
   2692 	 * Increase reference counts on shared objects.
   2693 	 * Inherit flags we want to keep.  The flags related to SIGCHLD
   2694 	 * handling are important in order to keep a consistent behaviour
   2695 	 * for the child after the fork.  If we are a 32-bit process, the
   2696 	 * child will be too.
   2697 	 */
   2698 	p2->p_flag =
   2699 	    p1->p_flag & (PK_SUGID | PK_NOCLDWAIT | PK_CLDSIGIGN | PK_32);
   2700 	p2->p_emul = p1->p_emul;
   2701 	p2->p_execsw = p1->p_execsw;
   2702 
   2703 	mutex_init(&p2->p_stmutex, MUTEX_DEFAULT, IPL_HIGH);
   2704 	mutex_init(&p2->p_auxlock, MUTEX_DEFAULT, IPL_NONE);
   2705 	rw_init(&p2->p_reflock);
   2706 	cv_init(&p2->p_waitcv, "wait");
   2707 	cv_init(&p2->p_lwpcv, "lwpwait");
   2708 
   2709 	p2->p_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
   2710 
   2711 	kauth_proc_fork(p1, p2);
   2712 
   2713 	p2->p_raslist = NULL;
   2714 	p2->p_fd = fd_copy();
   2715 
   2716 	/* XXX racy */
   2717 	p2->p_mqueue_cnt = p1->p_mqueue_cnt;
   2718 
   2719 	p2->p_cwdi = cwdinit();
   2720 
   2721 	/*
   2722 	 * Note: p_limit (rlimit stuff) is copy-on-write, so normally
   2723 	 * we just need increase pl_refcnt.
   2724 	 */
   2725 	if (!p1->p_limit->pl_writeable) {
   2726 		lim_addref(p1->p_limit);
   2727 		p2->p_limit = p1->p_limit;
   2728 	} else {
   2729 		p2->p_limit = lim_copy(p1->p_limit);
   2730 	}
   2731 
   2732 	p2->p_lflag = 0;
   2733 	l1->l_vforkwaiting = false;
   2734 	p2->p_sflag = 0;
   2735 	p2->p_slflag = 0;
   2736 	p2->p_pptr = p1;
   2737 	p2->p_ppid = p1->p_pid;
   2738 	LIST_INIT(&p2->p_children);
   2739 
   2740 	p2->p_aio = NULL;
   2741 
   2742 #ifdef KTRACE
   2743 	/*
   2744 	 * Copy traceflag and tracefile if enabled.
   2745 	 * If not inherited, these were zeroed above.
   2746 	 */
   2747 	if (p1->p_traceflag & KTRFAC_INHERIT) {
   2748 		mutex_enter(&ktrace_lock);
   2749 		p2->p_traceflag = p1->p_traceflag;
   2750 		if ((p2->p_tracep = p1->p_tracep) != NULL)
   2751 			ktradref(p2);
   2752 		mutex_exit(&ktrace_lock);
   2753 	}
   2754 #endif
   2755 
   2756 	/*
   2757 	 * Create signal actions for the child process.
   2758 	 */
   2759 	p2->p_sigacts = sigactsinit(p1, 0);
   2760 	mutex_enter(p1->p_lock);
   2761 	p2->p_sflag |=
   2762 	    (p1->p_sflag & (PS_STOPFORK | PS_STOPEXEC | PS_NOCLDSTOP));
   2763 	sched_proc_fork(p1, p2);
   2764 	mutex_exit(p1->p_lock);
   2765 
   2766 	p2->p_stflag = p1->p_stflag;
   2767 
   2768 	/*
   2769 	 * p_stats.
   2770 	 * Copy parts of p_stats, and zero out the rest.
   2771 	 */
   2772 	p2->p_stats = pstatscopy(p1->p_stats);
   2773 
   2774 	/* copy over machdep flags to the new proc */
   2775 	cpu_proc_fork(p1, p2);
   2776 
   2777 	/*
   2778 	 * Prepare remaining parts of spawn data
   2779 	 */
   2780 	spawn_data->sed_actions = fa;
   2781 	spawn_data->sed_attrs = sa;
   2782 
   2783 	spawn_data->sed_parent = p1;
   2784 
   2785 	/* create LWP */
   2786 	lwp_create(l1, p2, uaddr, 0, NULL, 0, spawn_return, spawn_data,
   2787 	    &l2, l1->l_class, &l1->l_sigmask, &l1->l_sigstk);
   2788 	l2->l_ctxlink = NULL;	/* reset ucontext link */
   2789 
   2790 	/*
   2791 	 * Copy the credential so other references don't see our changes.
   2792 	 * Test to see if this is necessary first, since in the common case
   2793 	 * we won't need a private reference.
   2794 	 */
   2795 	if (kauth_cred_geteuid(l2->l_cred) != kauth_cred_getsvuid(l2->l_cred) ||
   2796 	    kauth_cred_getegid(l2->l_cred) != kauth_cred_getsvgid(l2->l_cred)) {
   2797 		l2->l_cred = kauth_cred_copy(l2->l_cred);
   2798 		kauth_cred_setsvuid(l2->l_cred, kauth_cred_geteuid(l2->l_cred));
   2799 		kauth_cred_setsvgid(l2->l_cred, kauth_cred_getegid(l2->l_cred));
   2800 	}
   2801 
   2802 	/* Update the master credentials. */
   2803 	if (l2->l_cred != p2->p_cred) {
   2804 		kauth_cred_t ocred;
   2805 		mutex_enter(p2->p_lock);
   2806 		ocred = p2->p_cred;
   2807 		p2->p_cred = kauth_cred_hold(l2->l_cred);
   2808 		mutex_exit(p2->p_lock);
   2809 		kauth_cred_free(ocred);
   2810 	}
   2811 
   2812 	*child_ok = true;
   2813 	spawn_data->sed_refcnt = 2;	/* child gets it as well */
   2814 #if 0
   2815 	l2->l_nopreempt = 1; /* start it non-preemptable */
   2816 #endif
   2817 
   2818 	/*
   2819 	 * It's now safe for the scheduler and other processes to see the
   2820 	 * child process.
   2821 	 */
   2822 	mutex_enter(&proc_lock);
   2823 
   2824 	if (p1->p_session->s_ttyvp != NULL && p1->p_lflag & PL_CONTROLT)
   2825 		p2->p_lflag |= PL_CONTROLT;
   2826 
   2827 	LIST_INSERT_HEAD(&p1->p_children, p2, p_sibling);
   2828 	p2->p_exitsig = SIGCHLD;	/* signal for parent on exit */
   2829 
   2830 	if ((p1->p_slflag & (PSL_TRACEPOSIX_SPAWN|PSL_TRACED)) ==
   2831 	    (PSL_TRACEPOSIX_SPAWN|PSL_TRACED)) {
   2832 		proc_changeparent(p2, p1->p_pptr);
   2833 		SET(p2->p_slflag, PSL_TRACEDCHILD);
   2834 	}
   2835 
   2836 	p2->p_oppid = p1->p_pid;  /* Remember the original parent id. */
   2837 
   2838 	LIST_INSERT_AFTER(p1, p2, p_pglist);
   2839 	LIST_INSERT_HEAD(&allproc, p2, p_list);
   2840 
   2841 	p2->p_trace_enabled = trace_is_enabled(p2);
   2842 #ifdef __HAVE_SYSCALL_INTERN
   2843 	(*p2->p_emul->e_syscall_intern)(p2);
   2844 #endif
   2845 
   2846 	/*
   2847 	 * Make child runnable, set start time, and add to run queue except
   2848 	 * if the parent requested the child to start in SSTOP state.
   2849 	 */
   2850 	mutex_enter(p2->p_lock);
   2851 
   2852 	getmicrotime(&p2->p_stats->p_start);
   2853 
   2854 	lwp_lock(l2);
   2855 	KASSERT(p2->p_nrlwps == 1);
   2856 	KASSERT(l2->l_stat == LSIDL);
   2857 	p2->p_nrlwps = 1;
   2858 	p2->p_stat = SACTIVE;
   2859 	setrunnable(l2);
   2860 	/* LWP now unlocked */
   2861 
   2862 	mutex_exit(p2->p_lock);
   2863 	mutex_exit(&proc_lock);
   2864 
   2865 	while (!spawn_data->sed_child_ready) {
   2866 		cv_wait(&spawn_data->sed_cv_child_ready,
   2867 		    &spawn_data->sed_mtx_child);
   2868 	}
   2869 	error = spawn_data->sed_error;
   2870 	mutex_exit(&spawn_data->sed_mtx_child);
   2871 	spawn_exec_data_release(spawn_data);
   2872 
   2873 	rw_exit(&p1->p_reflock);
   2874 	rw_exit(&exec_lock);
   2875 	have_exec_lock = false;
   2876 
   2877 	*pid_res = pid;
   2878 
   2879 	if (error)
   2880 		return error;
   2881 
   2882 	if (p1->p_slflag & PSL_TRACED) {
   2883 		/* Paranoid check */
   2884 		mutex_enter(&proc_lock);
   2885 		if ((p1->p_slflag & (PSL_TRACEPOSIX_SPAWN|PSL_TRACED)) !=
   2886 		    (PSL_TRACEPOSIX_SPAWN|PSL_TRACED)) {
   2887 			mutex_exit(&proc_lock);
   2888 			return 0;
   2889 		}
   2890 
   2891 		mutex_enter(p1->p_lock);
   2892 		eventswitch(TRAP_CHLD, PTRACE_POSIX_SPAWN, pid);
   2893 	}
   2894 	return 0;
   2895 
   2896  error_exit:
   2897 	if (have_exec_lock) {
   2898 		execve_free_data(&spawn_data->sed_exec);
   2899 		rw_exit(&p1->p_reflock);
   2900 		rw_exit(&exec_lock);
   2901 	}
   2902 	mutex_exit(&spawn_data->sed_mtx_child);
   2903 	spawn_exec_data_release(spawn_data);
   2904 	if (uaddr != 0)
   2905 		uvm_uarea_free(uaddr);
   2906 
   2907 	return error;
   2908 }
   2909 
   2910 int
   2911 sys_posix_spawn(struct lwp *l1, const struct sys_posix_spawn_args *uap,
   2912     register_t *retval)
   2913 {
   2914 	/* {
   2915 		syscallarg(pid_t *) pid;
   2916 		syscallarg(const char *) path;
   2917 		syscallarg(const struct posix_spawn_file_actions *) file_actions;
   2918 		syscallarg(const struct posix_spawnattr *) attrp;
   2919 		syscallarg(char *const *) argv;
   2920 		syscallarg(char *const *) envp;
   2921 	} */
   2922 
   2923 	int error;
   2924 	struct posix_spawn_file_actions *fa = NULL;
   2925 	struct posix_spawnattr *sa = NULL;
   2926 	pid_t pid;
   2927 	bool child_ok = false;
   2928 	rlim_t max_fileactions;
   2929 	proc_t *p = l1->l_proc;
   2930 
   2931 	/* check_posix_spawn() increments nprocs for us. */
   2932 	error = check_posix_spawn(l1);
   2933 	if (error) {
   2934 		*retval = error;
   2935 		return 0;
   2936 	}
   2937 
   2938 	/* copy in file_actions struct */
   2939 	if (SCARG(uap, file_actions) != NULL) {
   2940 		max_fileactions = 2 * uimin(p->p_rlimit[RLIMIT_NOFILE].rlim_cur,
   2941 		    maxfiles);
   2942 		error = posix_spawn_fa_alloc(&fa, SCARG(uap, file_actions),
   2943 		    max_fileactions);
   2944 		if (error)
   2945 			goto error_exit;
   2946 	}
   2947 
   2948 	/* copyin posix_spawnattr struct */
   2949 	if (SCARG(uap, attrp) != NULL) {
   2950 		sa = kmem_alloc(sizeof(*sa), KM_SLEEP);
   2951 		error = copyin(SCARG(uap, attrp), sa, sizeof(*sa));
   2952 		if (error)
   2953 			goto error_exit;
   2954 	}
   2955 
   2956 	/*
   2957 	 * Do the spawn
   2958 	 */
   2959 	error = do_posix_spawn(l1, &pid, &child_ok, SCARG(uap, path), fa, sa,
   2960 	    SCARG(uap, argv), SCARG(uap, envp), execve_fetch_element);
   2961 	if (error)
   2962 		goto error_exit;
   2963 
   2964 	if (error == 0 && SCARG(uap, pid) != NULL)
   2965 		error = copyout(&pid, SCARG(uap, pid), sizeof(pid));
   2966 
   2967 	*retval = error;
   2968 	return 0;
   2969 
   2970  error_exit:
   2971 	if (!child_ok) {
   2972 		(void)chgproccnt(kauth_cred_getuid(l1->l_cred), -1);
   2973 		atomic_dec_uint(&nprocs);
   2974 
   2975 		if (sa)
   2976 			kmem_free(sa, sizeof(*sa));
   2977 		if (fa)
   2978 			posix_spawn_fa_free(fa, fa->len);
   2979 	}
   2980 
   2981 	*retval = error;
   2982 	return 0;
   2983 }
   2984 
   2985 void
   2986 exec_free_emul_arg(struct exec_package *epp)
   2987 {
   2988 	if (epp->ep_emul_arg_free != NULL) {
   2989 		KASSERT(epp->ep_emul_arg != NULL);
   2990 		(*epp->ep_emul_arg_free)(epp->ep_emul_arg);
   2991 		epp->ep_emul_arg_free = NULL;
   2992 		epp->ep_emul_arg = NULL;
   2993 	} else {
   2994 		KASSERT(epp->ep_emul_arg == NULL);
   2995 	}
   2996 }
   2997 
   2998 #ifdef DEBUG_EXEC
   2999 static void
   3000 dump_vmcmds(const struct exec_package * const epp, size_t x, int error)
   3001 {
   3002 	struct exec_vmcmd *vp = &epp->ep_vmcmds.evs_cmds[0];
   3003 	size_t j;
   3004 
   3005 	if (error == 0)
   3006 		DPRINTF(("vmcmds %u\n", epp->ep_vmcmds.evs_used));
   3007 	else
   3008 		DPRINTF(("vmcmds %zu/%u, error %d\n", x,
   3009 		    epp->ep_vmcmds.evs_used, error));
   3010 
   3011 	for (j = 0; j < epp->ep_vmcmds.evs_used; j++) {
   3012 		DPRINTF(("vmcmd[%zu] = vmcmd_map_%s %#"
   3013 		    PRIxVADDR"/%#"PRIxVSIZE" fd@%#"
   3014 		    PRIxVSIZE" prot=0%o flags=%d\n", j,
   3015 		    vp[j].ev_proc == vmcmd_map_pagedvn ?
   3016 		    "pagedvn" :
   3017 		    vp[j].ev_proc == vmcmd_map_readvn ?
   3018 		    "readvn" :
   3019 		    vp[j].ev_proc == vmcmd_map_zero ?
   3020 		    "zero" : "*unknown*",
   3021 		    vp[j].ev_addr, vp[j].ev_len,
   3022 		    vp[j].ev_offset, vp[j].ev_prot,
   3023 		    vp[j].ev_flags));
   3024 		if (error != 0 && j == x)
   3025 			DPRINTF(("     ^--- failed\n"));
   3026 	}
   3027 }
   3028 #endif
   3029