xref: /freebsd/sys/amd64/linux32/linux32_machdep.c (revision a346b0961c0939e5df18cda6627d380b57459743)
1 /*-
2  * Copyright (c) 2004 Tim J. Robbins
3  * Copyright (c) 2002 Doug Rabson
4  * Copyright (c) 2000 Marcel Moolenaar
5  * All rights reserved.
6  *
7  * Redistribution and use in source and binary forms, with or without
8  * modification, are permitted provided that the following conditions
9  * are met:
10  * 1. Redistributions of source code must retain the above copyright
11  *    notice, this list of conditions and the following disclaimer
12  *    in this position and unchanged.
13  * 2. Redistributions in binary form must reproduce the above copyright
14  *    notice, this list of conditions and the following disclaimer in the
15  *    documentation and/or other materials provided with the distribution.
16  * 3. The name of the author may not be used to endorse or promote products
17  *    derived from this software without specific prior written permission.
18  *
19  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
20  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
21  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
22  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
23  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
24  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
25  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
26  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
27  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
28  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
29  */
30 
31 #include <sys/cdefs.h>
32 __FBSDID("$FreeBSD$");
33 
34 #include <sys/param.h>
35 #include <sys/kernel.h>
36 #include <sys/systm.h>
37 #include <sys/file.h>
38 #include <sys/fcntl.h>
39 #include <sys/clock.h>
40 #include <sys/imgact.h>
41 #include <sys/limits.h>
42 #include <sys/lock.h>
43 #include <sys/malloc.h>
44 #include <sys/mman.h>
45 #include <sys/mutex.h>
46 #include <sys/proc.h>
47 #include <sys/resource.h>
48 #include <sys/resourcevar.h>
49 #include <sys/syscallsubr.h>
50 #include <sys/sysproto.h>
51 #include <sys/unistd.h>
52 
53 #include <machine/frame.h>
54 
55 #include <vm/vm.h>
56 #include <vm/pmap.h>
57 #include <vm/vm_extern.h>
58 #include <vm/vm_kern.h>
59 #include <vm/vm_map.h>
60 
61 #include <amd64/linux32/linux.h>
62 #include <amd64/linux32/linux32_proto.h>
63 #include <compat/linux/linux_ipc.h>
64 #include <compat/linux/linux_signal.h>
65 #include <compat/linux/linux_util.h>
66 #include <compat/linux/linux_emul.h>
67 
68 struct l_old_select_argv {
69 	l_int		nfds;
70 	l_uintptr_t	readfds;
71 	l_uintptr_t	writefds;
72 	l_uintptr_t	exceptfds;
73 	l_uintptr_t	timeout;
74 } __packed;
75 
76 int
77 linux_to_bsd_sigaltstack(int lsa)
78 {
79 	int bsa = 0;
80 
81 	if (lsa & LINUX_SS_DISABLE)
82 		bsa |= SS_DISABLE;
83 	if (lsa & LINUX_SS_ONSTACK)
84 		bsa |= SS_ONSTACK;
85 	return (bsa);
86 }
87 
88 int
89 bsd_to_linux_sigaltstack(int bsa)
90 {
91 	int lsa = 0;
92 
93 	if (bsa & SS_DISABLE)
94 		lsa |= LINUX_SS_DISABLE;
95 	if (bsa & SS_ONSTACK)
96 		lsa |= LINUX_SS_ONSTACK;
97 	return (lsa);
98 }
99 
100 /*
101  * Custom version of exec_copyin_args() so that we can translate
102  * the pointers.
103  */
104 static int
105 linux_exec_copyin_args(struct image_args *args, char *fname,
106     enum uio_seg segflg, char **argv, char **envv)
107 {
108 	char *argp, *envp;
109 	u_int32_t *p32, arg;
110 	size_t length;
111 	int error;
112 
113 	bzero(args, sizeof(*args));
114 	if (argv == NULL)
115 		return (EFAULT);
116 
117 	/*
118 	 * Allocate temporary demand zeroed space for argument and
119 	 *	environment strings
120 	 */
121 	args->buf = (char *) kmem_alloc_wait(exec_map,
122 	    PATH_MAX + ARG_MAX + MAXSHELLCMDLEN);
123 	if (args->buf == NULL)
124 		return (ENOMEM);
125 	args->begin_argv = args->buf;
126 	args->endp = args->begin_argv;
127 	args->stringspace = ARG_MAX;
128 
129 	args->fname = args->buf + ARG_MAX;
130 
131 	/*
132 	 * Copy the file name.
133 	 */
134 	error = (segflg == UIO_SYSSPACE) ?
135 	    copystr(fname, args->fname, PATH_MAX, &length) :
136 	    copyinstr(fname, args->fname, PATH_MAX, &length);
137 	if (error != 0)
138 		goto err_exit;
139 
140 	/*
141 	 * extract arguments first
142 	 */
143 	p32 = (u_int32_t *)argv;
144 	for (;;) {
145 		error = copyin(p32++, &arg, sizeof(arg));
146 		if (error)
147 			goto err_exit;
148 		if (arg == 0)
149 			break;
150 		argp = PTRIN(arg);
151 		error = copyinstr(argp, args->endp, args->stringspace, &length);
152 		if (error) {
153 			if (error == ENAMETOOLONG)
154 				error = E2BIG;
155 
156 			goto err_exit;
157 		}
158 		args->stringspace -= length;
159 		args->endp += length;
160 		args->argc++;
161 	}
162 
163 	args->begin_envv = args->endp;
164 
165 	/*
166 	 * extract environment strings
167 	 */
168 	if (envv) {
169 		p32 = (u_int32_t *)envv;
170 		for (;;) {
171 			error = copyin(p32++, &arg, sizeof(arg));
172 			if (error)
173 				goto err_exit;
174 			if (arg == 0)
175 				break;
176 			envp = PTRIN(arg);
177 			error = copyinstr(envp, args->endp, args->stringspace,
178 			    &length);
179 			if (error) {
180 				if (error == ENAMETOOLONG)
181 					error = E2BIG;
182 				goto err_exit;
183 			}
184 			args->stringspace -= length;
185 			args->endp += length;
186 			args->envc++;
187 		}
188 	}
189 
190 	return (0);
191 
192 err_exit:
193 	kmem_free_wakeup(exec_map, (vm_offset_t)args->buf,
194 	    PATH_MAX + ARG_MAX + MAXSHELLCMDLEN);
195 	args->buf = NULL;
196 	return (error);
197 }
198 
199 int
200 linux_execve(struct thread *td, struct linux_execve_args *args)
201 {
202 	struct image_args eargs;
203 	char *path;
204 	int error;
205 
206 	LCONVPATHEXIST(td, args->path, &path);
207 
208 #ifdef DEBUG
209 	if (ldebug(execve))
210 		printf(ARGS(execve, "%s"), path);
211 #endif
212 
213 	error = linux_exec_copyin_args(&eargs, path, UIO_SYSSPACE, args->argp,
214 	    args->envp);
215 	free(path, M_TEMP);
216 	if (error == 0)
217 		error = kern_execve(td, &eargs, NULL);
218 	if (error == 0)
219 	   	/* linux process can exec fbsd one, dont attempt
220 		 * to create emuldata for such process using
221 		 * linux_proc_init, this leads to a panic on KASSERT
222 		 * because such process has p->p_emuldata == NULL
223 		 */
224 	   	if (td->td_proc->p_sysent == &elf_linux_sysvec)
225    		   	error = linux_proc_init(td, 0, 0);
226 	return (error);
227 }
228 
229 struct iovec32 {
230 	u_int32_t iov_base;
231 	int	iov_len;
232 };
233 
234 CTASSERT(sizeof(struct iovec32) == 8);
235 
236 static int
237 linux32_copyinuio(struct iovec32 *iovp, u_int iovcnt, struct uio **uiop)
238 {
239 	struct iovec32 iov32;
240 	struct iovec *iov;
241 	struct uio *uio;
242 	u_int iovlen;
243 	int error, i;
244 
245 	*uiop = NULL;
246 	if (iovcnt > UIO_MAXIOV)
247 		return (EINVAL);
248 	iovlen = iovcnt * sizeof(struct iovec);
249 	uio = malloc(iovlen + sizeof *uio, M_IOV, M_WAITOK);
250 	iov = (struct iovec *)(uio + 1);
251 	for (i = 0; i < iovcnt; i++) {
252 		error = copyin(&iovp[i], &iov32, sizeof(struct iovec32));
253 		if (error) {
254 			free(uio, M_IOV);
255 			return (error);
256 		}
257 		iov[i].iov_base = PTRIN(iov32.iov_base);
258 		iov[i].iov_len = iov32.iov_len;
259 	}
260 	uio->uio_iov = iov;
261 	uio->uio_iovcnt = iovcnt;
262 	uio->uio_segflg = UIO_USERSPACE;
263 	uio->uio_offset = -1;
264 	uio->uio_resid = 0;
265 	for (i = 0; i < iovcnt; i++) {
266 		if (iov->iov_len > INT_MAX - uio->uio_resid) {
267 			free(uio, M_IOV);
268 			return (EINVAL);
269 		}
270 		uio->uio_resid += iov->iov_len;
271 		iov++;
272 	}
273 	*uiop = uio;
274 	return (0);
275 }
276 
277 int
278 linux_readv(struct thread *td, struct linux_readv_args *uap)
279 {
280 	struct uio *auio;
281 	int error;
282 
283 	error = linux32_copyinuio(uap->iovp, uap->iovcnt, &auio);
284 	if (error)
285 		return (error);
286 	error = kern_readv(td, uap->fd, auio);
287 	free(auio, M_IOV);
288 	return (error);
289 }
290 
291 int
292 linux_writev(struct thread *td, struct linux_writev_args *uap)
293 {
294 	struct uio *auio;
295 	int error;
296 
297 	error = linux32_copyinuio(uap->iovp, uap->iovcnt, &auio);
298 	if (error)
299 		return (error);
300 	error = kern_writev(td, uap->fd, auio);
301 	free(auio, M_IOV);
302 	return (error);
303 }
304 
305 struct l_ipc_kludge {
306 	l_uintptr_t msgp;
307 	l_long msgtyp;
308 } __packed;
309 
310 int
311 linux_ipc(struct thread *td, struct linux_ipc_args *args)
312 {
313 
314 	switch (args->what & 0xFFFF) {
315 	case LINUX_SEMOP: {
316 		struct linux_semop_args a;
317 
318 		a.semid = args->arg1;
319 		a.tsops = args->ptr;
320 		a.nsops = args->arg2;
321 		return (linux_semop(td, &a));
322 	}
323 	case LINUX_SEMGET: {
324 		struct linux_semget_args a;
325 
326 		a.key = args->arg1;
327 		a.nsems = args->arg2;
328 		a.semflg = args->arg3;
329 		return (linux_semget(td, &a));
330 	}
331 	case LINUX_SEMCTL: {
332 		struct linux_semctl_args a;
333 		int error;
334 
335 		a.semid = args->arg1;
336 		a.semnum = args->arg2;
337 		a.cmd = args->arg3;
338 		error = copyin(args->ptr, &a.arg, sizeof(a.arg));
339 		if (error)
340 			return (error);
341 		return (linux_semctl(td, &a));
342 	}
343 	case LINUX_MSGSND: {
344 		struct linux_msgsnd_args a;
345 
346 		a.msqid = args->arg1;
347 		a.msgp = args->ptr;
348 		a.msgsz = args->arg2;
349 		a.msgflg = args->arg3;
350 		return (linux_msgsnd(td, &a));
351 	}
352 	case LINUX_MSGRCV: {
353 		struct linux_msgrcv_args a;
354 
355 		a.msqid = args->arg1;
356 		a.msgsz = args->arg2;
357 		a.msgflg = args->arg3;
358 		if ((args->what >> 16) == 0) {
359 			struct l_ipc_kludge tmp;
360 			int error;
361 
362 			if (args->ptr == 0)
363 				return (EINVAL);
364 			error = copyin(args->ptr, &tmp, sizeof(tmp));
365 			if (error)
366 				return (error);
367 			a.msgp = PTRIN(tmp.msgp);
368 			a.msgtyp = tmp.msgtyp;
369 		} else {
370 			a.msgp = args->ptr;
371 			a.msgtyp = args->arg5;
372 		}
373 		return (linux_msgrcv(td, &a));
374 	}
375 	case LINUX_MSGGET: {
376 		struct linux_msgget_args a;
377 
378 		a.key = args->arg1;
379 		a.msgflg = args->arg2;
380 		return (linux_msgget(td, &a));
381 	}
382 	case LINUX_MSGCTL: {
383 		struct linux_msgctl_args a;
384 
385 		a.msqid = args->arg1;
386 		a.cmd = args->arg2;
387 		a.buf = args->ptr;
388 		return (linux_msgctl(td, &a));
389 	}
390 	case LINUX_SHMAT: {
391 		struct linux_shmat_args a;
392 
393 		a.shmid = args->arg1;
394 		a.shmaddr = args->ptr;
395 		a.shmflg = args->arg2;
396 		a.raddr = PTRIN((l_uint)args->arg3);
397 		return (linux_shmat(td, &a));
398 	}
399 	case LINUX_SHMDT: {
400 		struct linux_shmdt_args a;
401 
402 		a.shmaddr = args->ptr;
403 		return (linux_shmdt(td, &a));
404 	}
405 	case LINUX_SHMGET: {
406 		struct linux_shmget_args a;
407 
408 		a.key = args->arg1;
409 		a.size = args->arg2;
410 		a.shmflg = args->arg3;
411 		return (linux_shmget(td, &a));
412 	}
413 	case LINUX_SHMCTL: {
414 		struct linux_shmctl_args a;
415 
416 		a.shmid = args->arg1;
417 		a.cmd = args->arg2;
418 		a.buf = args->ptr;
419 		return (linux_shmctl(td, &a));
420 	}
421 	default:
422 		break;
423 	}
424 
425 	return (EINVAL);
426 }
427 
428 int
429 linux_old_select(struct thread *td, struct linux_old_select_args *args)
430 {
431 	struct l_old_select_argv linux_args;
432 	struct linux_select_args newsel;
433 	int error;
434 
435 #ifdef DEBUG
436 	if (ldebug(old_select))
437 		printf(ARGS(old_select, "%p"), args->ptr);
438 #endif
439 
440 	error = copyin(args->ptr, &linux_args, sizeof(linux_args));
441 	if (error)
442 		return (error);
443 
444 	newsel.nfds = linux_args.nfds;
445 	newsel.readfds = PTRIN(linux_args.readfds);
446 	newsel.writefds = PTRIN(linux_args.writefds);
447 	newsel.exceptfds = PTRIN(linux_args.exceptfds);
448 	newsel.timeout = PTRIN(linux_args.timeout);
449 	return (linux_select(td, &newsel));
450 }
451 
452 int
453 linux_fork(struct thread *td, struct linux_fork_args *args)
454 {
455 	int error;
456 
457 #ifdef DEBUG
458 	if (ldebug(fork))
459 		printf(ARGS(fork, ""));
460 #endif
461 
462 	if ((error = fork(td, (struct fork_args *)args)) != 0)
463 		return (error);
464 
465 	if (td->td_retval[1] == 1)
466 		td->td_retval[0] = 0;
467 	error = linux_proc_init(td, td->td_retval[0], 0);
468 	if (error)
469 		return (error);
470 
471 	return (0);
472 }
473 
474 int
475 linux_vfork(struct thread *td, struct linux_vfork_args *args)
476 {
477 	int error;
478 	struct proc *p2;
479 
480 #ifdef DEBUG
481 	if (ldebug(vfork))
482 		printf(ARGS(vfork, ""));
483 #endif
484 
485 	/* exclude RFPPWAIT */
486 	if ((error = fork1(td, RFFDG | RFPROC | RFMEM, 0, &p2)) != 0)
487 		return (error);
488 	if (error == 0) {
489 	   	td->td_retval[0] = p2->p_pid;
490 		td->td_retval[1] = 0;
491 	}
492 	/* Are we the child? */
493 	if (td->td_retval[1] == 1)
494 		td->td_retval[0] = 0;
495 	error = linux_proc_init(td, td->td_retval[0], 0);
496 	if (error)
497 		return (error);
498 	/* wait for the children to exit, ie. emulate vfork */
499 	PROC_LOCK(p2);
500 	while (p2->p_flag & P_PPWAIT)
501 	   	msleep(td->td_proc, &p2->p_mtx, PWAIT, "ppwait", 0);
502 	PROC_UNLOCK(p2);
503 	return (0);
504 }
505 
506 int
507 linux_clone(struct thread *td, struct linux_clone_args *args)
508 {
509 	int error, ff = RFPROC | RFSTOPPED;
510 	struct proc *p2;
511 	struct thread *td2;
512 	int exit_signal;
513 	struct linux_emuldata *em;
514 
515 #ifdef DEBUG
516 	if (ldebug(clone)) {
517    	   	printf(ARGS(clone, "flags %x, stack %x, parent tid: %x, child tid: %x"),
518 		    (unsigned int)args->flags, (unsigned int)(uintptr_t)args->stack,
519 		    (unsigned int)(uintptr_t)args->parent_tidptr,
520 		    (unsigned int)(uintptr_t)args->child_tidptr);
521 	}
522 #endif
523 
524 	exit_signal = args->flags & 0x000000ff;
525 	if (exit_signal >= LINUX_NSIG)
526 		return (EINVAL);
527 
528 	if (exit_signal <= LINUX_SIGTBLSZ)
529 		exit_signal = linux_to_bsd_signal[_SIG_IDX(exit_signal)];
530 
531 	if (args->flags & CLONE_VM)
532 		ff |= RFMEM;
533 	if (args->flags & CLONE_SIGHAND)
534 		ff |= RFSIGSHARE;
535 	/*
536 	 * XXX: in linux sharing of fs info (chroot/cwd/umask)
537 	 * and open files is independant. in fbsd its in one
538 	 * structure but in reality it doesnt make any problems
539 	 * because both this flags are set at once usually.
540 	 */
541 	if (!(args->flags & (CLONE_FILES | CLONE_FS)))
542 		ff |= RFFDG;
543 
544 	/*
545 	 * Attempt to detect when linux_clone(2) is used for creating
546 	 * kernel threads. Unfortunately despite the existence of the
547 	 * CLONE_THREAD flag, version of linuxthreads package used in
548 	 * most popular distros as of beginning of 2005 doesn't make
549 	 * any use of it. Therefore, this detection relay fully on
550 	 * empirical observation that linuxthreads sets certain
551 	 * combination of flags, so that we can make more or less
552 	 * precise detection and notify the FreeBSD kernel that several
553 	 * processes are in fact part of the same threading group, so
554 	 * that special treatment is necessary for signal delivery
555 	 * between those processes and fd locking.
556 	 */
557 	if ((args->flags & 0xffffff00) == THREADING_FLAGS)
558 		ff |= RFTHREAD;
559 
560 	error = fork1(td, ff, 0, &p2);
561 	if (error)
562 		return (error);
563 
564 	/* create the emuldata */
565 	error = linux_proc_init(td, p2->p_pid, args->flags);
566 	/* reference it - no need to check this */
567 	em = em_find(p2, EMUL_DOLOCK);
568 	KASSERT(em != NULL, ("clone: emuldata not found.\n"));
569 	/* and adjust it */
570 	if (args->flags & CLONE_PARENT_SETTID) {
571 	   	if (args->parent_tidptr == NULL) {
572 		   	EMUL_UNLOCK(&emul_lock);
573 			return (EINVAL);
574 		}
575 		error = copyout(&p2->p_pid, args->parent_tidptr, sizeof(p2->p_pid));
576 		if (error) {
577 		   	EMUL_UNLOCK(&emul_lock);
578 			return (error);
579 		}
580 	}
581 
582 	if (args->flags & (CLONE_PARENT|CLONE_THREAD)) {
583 	   	sx_xlock(&proctree_lock);
584 		PROC_LOCK(p2);
585 		proc_reparent(p2, td->td_proc->p_pptr);
586 		PROC_UNLOCK(p2);
587 		sx_xunlock(&proctree_lock);
588 	}
589 
590 	if (args->flags & CLONE_THREAD) {
591 	   	/* XXX: linux mangles pgrp and pptr somehow
592 		 * I think it might be this but I am not sure.
593 		 */
594 #ifdef notyet
595 	   	PROC_LOCK(p2);
596 	   	p2->p_pgrp = td->td_proc->p_pgrp;
597 	   	PROC_UNLOCK(p2);
598 #endif
599 	 	exit_signal = 0;
600 	}
601 
602 	if (args->flags & CLONE_CHILD_SETTID)
603 		em->child_set_tid = args->child_tidptr;
604 	else
605 	   	em->child_set_tid = NULL;
606 
607 	if (args->flags & CLONE_CHILD_CLEARTID)
608 		em->child_clear_tid = args->child_tidptr;
609 	else
610 	   	em->child_clear_tid = NULL;
611 
612 	EMUL_UNLOCK(&emul_lock);
613 
614 	PROC_LOCK(p2);
615 	p2->p_sigparent = exit_signal;
616 	PROC_UNLOCK(p2);
617 	td2 = FIRST_THREAD_IN_PROC(p2);
618 	/*
619 	 * in a case of stack = NULL we are supposed to COW calling process stack
620 	 * this is what normal fork() does so we just keep the tf_rsp arg intact
621 	 */
622 	if (args->stack)
623    	   	td2->td_frame->tf_rsp = PTROUT(args->stack);
624 
625 	if (args->flags & CLONE_SETTLS) {
626 	   	/* XXX: todo */
627 	}
628 
629 #ifdef DEBUG
630 	if (ldebug(clone))
631 		printf(LMSG("clone: successful rfork to %ld, stack %p sig = %d"),
632 		    (long)p2->p_pid, args->stack, exit_signal);
633 #endif
634 
635 	/*
636 	 * Make this runnable after we are finished with it.
637 	 */
638 	mtx_lock_spin(&sched_lock);
639 	TD_SET_CAN_RUN(td2);
640 	setrunqueue(td2, SRQ_BORING);
641 	mtx_unlock_spin(&sched_lock);
642 
643 	td->td_retval[0] = p2->p_pid;
644 	td->td_retval[1] = 0;
645 
646 	if (args->flags & CLONE_VFORK) {
647    	   	/* wait for the children to exit, ie. emulate vfork */
648    	   	PROC_LOCK(p2);
649 		p2->p_flag |= P_PPWAIT;
650 		while (p2->p_flag & P_PPWAIT)
651    		   	msleep(td->td_proc, &p2->p_mtx, PWAIT, "ppwait", 0);
652 		PROC_UNLOCK(p2);
653 	}
654 
655 	return (0);
656 }
657 
658 /* XXX move */
659 struct l_mmap_argv {
660 	l_ulong		addr;
661 	l_ulong		len;
662 	l_ulong		prot;
663 	l_ulong		flags;
664 	l_ulong		fd;
665 	l_ulong		pgoff;
666 };
667 
668 #define STACK_SIZE  (2 * 1024 * 1024)
669 #define GUARD_SIZE  (4 * PAGE_SIZE)
670 
671 static int linux_mmap_common(struct thread *, struct l_mmap_argv *);
672 
673 int
674 linux_mmap2(struct thread *td, struct linux_mmap2_args *args)
675 {
676 	struct l_mmap_argv linux_args;
677 
678 #ifdef DEBUG
679 	if (ldebug(mmap2))
680 		printf(ARGS(mmap2, "%p, %d, %d, 0x%08x, %d, %d"),
681 		    (void *)(intptr_t)args->addr, args->len, args->prot,
682 		    args->flags, args->fd, args->pgoff);
683 #endif
684 
685 	linux_args.addr = PTROUT(args->addr);
686 	linux_args.len = args->len;
687 	linux_args.prot = args->prot;
688 	linux_args.flags = args->flags;
689 	linux_args.fd = args->fd;
690 	linux_args.pgoff = args->pgoff;
691 
692 	return (linux_mmap_common(td, &linux_args));
693 }
694 
695 int
696 linux_mmap(struct thread *td, struct linux_mmap_args *args)
697 {
698 	int error;
699 	struct l_mmap_argv linux_args;
700 
701 	error = copyin(args->ptr, &linux_args, sizeof(linux_args));
702 	if (error)
703 		return (error);
704 
705 #ifdef DEBUG
706 	if (ldebug(mmap))
707 		printf(ARGS(mmap, "%p, %d, %d, 0x%08x, %d, %d"),
708 		    (void *)(intptr_t)linux_args.addr, linux_args.len,
709 		    linux_args.prot, linux_args.flags, linux_args.fd,
710 		    linux_args.pgoff);
711 #endif
712 	if ((linux_args.pgoff % PAGE_SIZE) != 0)
713 		return (EINVAL);
714 	linux_args.pgoff /= PAGE_SIZE;
715 
716 	return (linux_mmap_common(td, &linux_args));
717 }
718 
719 static int
720 linux_mmap_common(struct thread *td, struct l_mmap_argv *linux_args)
721 {
722 	struct proc *p = td->td_proc;
723 	struct mmap_args /* {
724 		caddr_t addr;
725 		size_t len;
726 		int prot;
727 		int flags;
728 		int fd;
729 		long pad;
730 		off_t pos;
731 	} */ bsd_args;
732 	int error;
733 	struct file *fp;
734 
735 	error = 0;
736 	bsd_args.flags = 0;
737 	fp = NULL;
738 
739 	/*
740 	 * Linux mmap(2):
741 	 * You must specify exactly one of MAP_SHARED and MAP_PRIVATE
742 	 */
743 	if (! ((linux_args->flags & LINUX_MAP_SHARED) ^
744 	    (linux_args->flags & LINUX_MAP_PRIVATE)))
745 		return (EINVAL);
746 
747 	if (linux_args->flags & LINUX_MAP_SHARED)
748 		bsd_args.flags |= MAP_SHARED;
749 	if (linux_args->flags & LINUX_MAP_PRIVATE)
750 		bsd_args.flags |= MAP_PRIVATE;
751 	if (linux_args->flags & LINUX_MAP_FIXED)
752 		bsd_args.flags |= MAP_FIXED;
753 	if (linux_args->flags & LINUX_MAP_ANON)
754 		bsd_args.flags |= MAP_ANON;
755 	else
756 		bsd_args.flags |= MAP_NOSYNC;
757 	if (linux_args->flags & LINUX_MAP_GROWSDOWN) {
758 		bsd_args.flags |= MAP_STACK;
759 
760 		/*
761 		 * The linux MAP_GROWSDOWN option does not limit auto
762 		 * growth of the region.  Linux mmap with this option
763 		 * takes as addr the inital BOS, and as len, the initial
764 		 * region size.  It can then grow down from addr without
765 		 * limit.  However, linux threads has an implicit internal
766 		 * limit to stack size of STACK_SIZE.  Its just not
767 		 * enforced explicitly in linux.  But, here we impose
768 		 * a limit of (STACK_SIZE - GUARD_SIZE) on the stack
769 		 * region, since we can do this with our mmap.
770 		 *
771 		 * Our mmap with MAP_STACK takes addr as the maximum
772 		 * downsize limit on BOS, and as len the max size of
773 		 * the region.  It them maps the top SGROWSIZ bytes,
774 		 * and autgrows the region down, up to the limit
775 		 * in addr.
776 		 *
777 		 * If we don't use the MAP_STACK option, the effect
778 		 * of this code is to allocate a stack region of a
779 		 * fixed size of (STACK_SIZE - GUARD_SIZE).
780 		 */
781 
782 		/* This gives us TOS */
783 		bsd_args.addr = (caddr_t)PTRIN(linux_args->addr) +
784 		    linux_args->len;
785 
786 		if ((caddr_t)PTRIN(bsd_args.addr) >
787 		    p->p_vmspace->vm_maxsaddr) {
788 			/*
789 			 * Some linux apps will attempt to mmap
790 			 * thread stacks near the top of their
791 			 * address space.  If their TOS is greater
792 			 * than vm_maxsaddr, vm_map_growstack()
793 			 * will confuse the thread stack with the
794 			 * process stack and deliver a SEGV if they
795 			 * attempt to grow the thread stack past their
796 			 * current stacksize rlimit.  To avoid this,
797 			 * adjust vm_maxsaddr upwards to reflect
798 			 * the current stacksize rlimit rather
799 			 * than the maximum possible stacksize.
800 			 * It would be better to adjust the
801 			 * mmap'ed region, but some apps do not check
802 			 * mmap's return value.
803 			 */
804 			PROC_LOCK(p);
805 			p->p_vmspace->vm_maxsaddr =
806 			    (char *)LINUX32_USRSTACK -
807 			    lim_cur(p, RLIMIT_STACK);
808 			PROC_UNLOCK(p);
809 		}
810 
811 		/* This gives us our maximum stack size */
812 		if (linux_args->len > STACK_SIZE - GUARD_SIZE)
813 			bsd_args.len = linux_args->len;
814 		else
815 			bsd_args.len  = STACK_SIZE - GUARD_SIZE;
816 
817 		/*
818 		 * This gives us a new BOS.  If we're using VM_STACK, then
819 		 * mmap will just map the top SGROWSIZ bytes, and let
820 		 * the stack grow down to the limit at BOS.  If we're
821 		 * not using VM_STACK we map the full stack, since we
822 		 * don't have a way to autogrow it.
823 		 */
824 		bsd_args.addr -= bsd_args.len;
825 	} else {
826 		bsd_args.addr = (caddr_t)PTRIN(linux_args->addr);
827 		bsd_args.len  = linux_args->len;
828 	}
829 
830 	/*
831 	 * We add PROT_EXEC to work around buggy applications (e.g. Java)
832 	 * that take advantage of the fact that execute permissions are not
833 	 * enforced by x86 CPUs.
834 	 */
835 	bsd_args.prot = linux_args->prot | PROT_EXEC;
836 	if (linux_args->flags & LINUX_MAP_ANON)
837 		bsd_args.fd = -1;
838 	else {
839 		/*
840 		 * Linux follows Solaris mmap(2) description:
841 		 * The file descriptor fildes is opened with
842 		 * read permission, regardless of the
843 		 * protection options specified.
844 		 * If PROT_WRITE is specified, the application
845 		 * must have opened the file descriptor
846 		 * fildes with write permission unless
847 		 * MAP_PRIVATE is specified in the flag
848 		 * argument as described below.
849 		 */
850 
851 		if ((error = fget(td, linux_args->fd, &fp)) != 0)
852 			return (error);
853 		if (fp->f_type != DTYPE_VNODE) {
854 			fdrop(fp, td);
855 			return (EINVAL);
856 		}
857 
858 		/* Linux mmap() just fails for O_WRONLY files */
859 		if (! (fp->f_flag & FREAD)) {
860 			fdrop(fp, td);
861 			return (EACCES);
862 		}
863 
864 		bsd_args.fd = linux_args->fd;
865 		fdrop(fp, td);
866 	}
867 	bsd_args.pos = (off_t)linux_args->pgoff * PAGE_SIZE;
868 	bsd_args.pad = 0;
869 
870 #ifdef DEBUG
871 	if (ldebug(mmap))
872 		printf("-> %s(%p, %d, %d, 0x%08x, %d, 0x%x)\n",
873 		    __func__,
874 		    (void *)bsd_args.addr, (int)bsd_args.len, bsd_args.prot,
875 		    bsd_args.flags, bsd_args.fd, (int)bsd_args.pos);
876 #endif
877 	error = mmap(td, &bsd_args);
878 #ifdef DEBUG
879 	if (ldebug(mmap))
880 		printf("-> %s() return: 0x%x (0x%08x)\n",
881 			__func__, error, (u_int)td->td_retval[0]);
882 #endif
883 	return (error);
884 }
885 
886 int
887 linux_pipe(struct thread *td, struct linux_pipe_args *args)
888 {
889 	int pip[2];
890 	int error;
891 	register_t reg_rdx;
892 
893 #ifdef DEBUG
894 	if (ldebug(pipe))
895 		printf(ARGS(pipe, "*"));
896 #endif
897 
898 	reg_rdx = td->td_retval[1];
899 	error = pipe(td, 0);
900 	if (error) {
901 		td->td_retval[1] = reg_rdx;
902 		return (error);
903 	}
904 
905 	pip[0] = td->td_retval[0];
906 	pip[1] = td->td_retval[1];
907 	error = copyout(pip, args->pipefds, 2 * sizeof(int));
908 	if (error) {
909 		td->td_retval[1] = reg_rdx;
910 		return (error);
911 	}
912 
913 	td->td_retval[1] = reg_rdx;
914 	td->td_retval[0] = 0;
915 	return (0);
916 }
917 
918 int
919 linux_sigaction(struct thread *td, struct linux_sigaction_args *args)
920 {
921 	l_osigaction_t osa;
922 	l_sigaction_t act, oact;
923 	int error;
924 
925 #ifdef DEBUG
926 	if (ldebug(sigaction))
927 		printf(ARGS(sigaction, "%d, %p, %p"),
928 		    args->sig, (void *)args->nsa, (void *)args->osa);
929 #endif
930 
931 	if (args->nsa != NULL) {
932 		error = copyin(args->nsa, &osa, sizeof(l_osigaction_t));
933 		if (error)
934 			return (error);
935 		act.lsa_handler = osa.lsa_handler;
936 		act.lsa_flags = osa.lsa_flags;
937 		act.lsa_restorer = osa.lsa_restorer;
938 		LINUX_SIGEMPTYSET(act.lsa_mask);
939 		act.lsa_mask.__bits[0] = osa.lsa_mask;
940 	}
941 
942 	error = linux_do_sigaction(td, args->sig, args->nsa ? &act : NULL,
943 	    args->osa ? &oact : NULL);
944 
945 	if (args->osa != NULL && !error) {
946 		osa.lsa_handler = oact.lsa_handler;
947 		osa.lsa_flags = oact.lsa_flags;
948 		osa.lsa_restorer = oact.lsa_restorer;
949 		osa.lsa_mask = oact.lsa_mask.__bits[0];
950 		error = copyout(&osa, args->osa, sizeof(l_osigaction_t));
951 	}
952 
953 	return (error);
954 }
955 
956 /*
957  * Linux has two extra args, restart and oldmask.  We dont use these,
958  * but it seems that "restart" is actually a context pointer that
959  * enables the signal to happen with a different register set.
960  */
961 int
962 linux_sigsuspend(struct thread *td, struct linux_sigsuspend_args *args)
963 {
964 	sigset_t sigmask;
965 	l_sigset_t mask;
966 
967 #ifdef DEBUG
968 	if (ldebug(sigsuspend))
969 		printf(ARGS(sigsuspend, "%08lx"), (unsigned long)args->mask);
970 #endif
971 
972 	LINUX_SIGEMPTYSET(mask);
973 	mask.__bits[0] = args->mask;
974 	linux_to_bsd_sigset(&mask, &sigmask);
975 	return (kern_sigsuspend(td, sigmask));
976 }
977 
978 int
979 linux_rt_sigsuspend(struct thread *td, struct linux_rt_sigsuspend_args *uap)
980 {
981 	l_sigset_t lmask;
982 	sigset_t sigmask;
983 	int error;
984 
985 #ifdef DEBUG
986 	if (ldebug(rt_sigsuspend))
987 		printf(ARGS(rt_sigsuspend, "%p, %d"),
988 		    (void *)uap->newset, uap->sigsetsize);
989 #endif
990 
991 	if (uap->sigsetsize != sizeof(l_sigset_t))
992 		return (EINVAL);
993 
994 	error = copyin(uap->newset, &lmask, sizeof(l_sigset_t));
995 	if (error)
996 		return (error);
997 
998 	linux_to_bsd_sigset(&lmask, &sigmask);
999 	return (kern_sigsuspend(td, sigmask));
1000 }
1001 
1002 int
1003 linux_pause(struct thread *td, struct linux_pause_args *args)
1004 {
1005 	struct proc *p = td->td_proc;
1006 	sigset_t sigmask;
1007 
1008 #ifdef DEBUG
1009 	if (ldebug(pause))
1010 		printf(ARGS(pause, ""));
1011 #endif
1012 
1013 	PROC_LOCK(p);
1014 	sigmask = td->td_sigmask;
1015 	PROC_UNLOCK(p);
1016 	return (kern_sigsuspend(td, sigmask));
1017 }
1018 
1019 int
1020 linux_sigaltstack(struct thread *td, struct linux_sigaltstack_args *uap)
1021 {
1022 	stack_t ss, oss;
1023 	l_stack_t lss;
1024 	int error;
1025 
1026 #ifdef DEBUG
1027 	if (ldebug(sigaltstack))
1028 		printf(ARGS(sigaltstack, "%p, %p"), uap->uss, uap->uoss);
1029 #endif
1030 
1031 	if (uap->uss != NULL) {
1032 		error = copyin(uap->uss, &lss, sizeof(l_stack_t));
1033 		if (error)
1034 			return (error);
1035 
1036 		ss.ss_sp = PTRIN(lss.ss_sp);
1037 		ss.ss_size = lss.ss_size;
1038 		ss.ss_flags = linux_to_bsd_sigaltstack(lss.ss_flags);
1039 	}
1040 	error = kern_sigaltstack(td, (uap->uss != NULL) ? &ss : NULL,
1041 	    (uap->uoss != NULL) ? &oss : NULL);
1042 	if (!error && uap->uoss != NULL) {
1043 		lss.ss_sp = PTROUT(oss.ss_sp);
1044 		lss.ss_size = oss.ss_size;
1045 		lss.ss_flags = bsd_to_linux_sigaltstack(oss.ss_flags);
1046 		error = copyout(&lss, uap->uoss, sizeof(l_stack_t));
1047 	}
1048 
1049 	return (error);
1050 }
1051 
1052 int
1053 linux_ftruncate64(struct thread *td, struct linux_ftruncate64_args *args)
1054 {
1055 	struct ftruncate_args sa;
1056 
1057 #ifdef DEBUG
1058 	if (ldebug(ftruncate64))
1059 		printf(ARGS(ftruncate64, "%u, %jd"), args->fd,
1060 		    (intmax_t)args->length);
1061 #endif
1062 
1063 	sa.fd = args->fd;
1064 	sa.pad = 0;
1065 	sa.length = args->length;
1066 	return ftruncate(td, &sa);
1067 }
1068 
1069 int
1070 linux_gettimeofday(struct thread *td, struct linux_gettimeofday_args *uap)
1071 {
1072 	struct timeval atv;
1073 	l_timeval atv32;
1074 	struct timezone rtz;
1075 	int error = 0;
1076 
1077 	if (uap->tp) {
1078 		microtime(&atv);
1079 		atv32.tv_sec = atv.tv_sec;
1080 		atv32.tv_usec = atv.tv_usec;
1081 		error = copyout(&atv32, uap->tp, sizeof (atv32));
1082 	}
1083 	if (error == 0 && uap->tzp != NULL) {
1084 		rtz.tz_minuteswest = tz_minuteswest;
1085 		rtz.tz_dsttime = tz_dsttime;
1086 		error = copyout(&rtz, uap->tzp, sizeof (rtz));
1087 	}
1088 	return (error);
1089 }
1090 
1091 int
1092 linux_getrusage(struct thread *td, struct linux_getrusage_args *uap)
1093 {
1094 	struct l_rusage s32;
1095 	struct rusage s;
1096 	int error;
1097 
1098 	error = kern_getrusage(td, uap->who, &s);
1099 	if (error != 0)
1100 		return (error);
1101 	if (uap->rusage != NULL) {
1102 		s32.ru_utime.tv_sec = s.ru_utime.tv_sec;
1103 		s32.ru_utime.tv_usec = s.ru_utime.tv_usec;
1104 		s32.ru_stime.tv_sec = s.ru_stime.tv_sec;
1105 		s32.ru_stime.tv_usec = s.ru_stime.tv_usec;
1106 		s32.ru_maxrss = s.ru_maxrss;
1107 		s32.ru_ixrss = s.ru_ixrss;
1108 		s32.ru_idrss = s.ru_idrss;
1109 		s32.ru_isrss = s.ru_isrss;
1110 		s32.ru_minflt = s.ru_minflt;
1111 		s32.ru_majflt = s.ru_majflt;
1112 		s32.ru_nswap = s.ru_nswap;
1113 		s32.ru_inblock = s.ru_inblock;
1114 		s32.ru_oublock = s.ru_oublock;
1115 		s32.ru_msgsnd = s.ru_msgsnd;
1116 		s32.ru_msgrcv = s.ru_msgrcv;
1117 		s32.ru_nsignals = s.ru_nsignals;
1118 		s32.ru_nvcsw = s.ru_nvcsw;
1119 		s32.ru_nivcsw = s.ru_nivcsw;
1120 		error = copyout(&s32, uap->rusage, sizeof(s32));
1121 	}
1122 	return (error);
1123 }
1124 
1125 int
1126 linux_sched_rr_get_interval(struct thread *td,
1127     struct linux_sched_rr_get_interval_args *uap)
1128 {
1129 	struct timespec ts;
1130 	struct l_timespec ts32;
1131 	int error;
1132 
1133 	error = kern_sched_rr_get_interval(td, uap->pid, &ts);
1134 	if (error != 0)
1135 		return (error);
1136 	ts32.tv_sec = ts.tv_sec;
1137 	ts32.tv_nsec = ts.tv_nsec;
1138 	return (copyout(&ts32, uap->interval, sizeof(ts32)));
1139 }
1140 
1141 int
1142 linux_mprotect(struct thread *td, struct linux_mprotect_args *uap)
1143 {
1144 	struct mprotect_args bsd_args;
1145 
1146 	bsd_args.addr = uap->addr;
1147 	bsd_args.len = uap->len;
1148 	bsd_args.prot = uap->prot;
1149 	/* XXX PROT_READ implies PROT_EXEC; see linux_mmap_common(). */
1150 	if ((bsd_args.prot & PROT_READ) != 0)
1151 		bsd_args.prot |= PROT_EXEC;
1152 	return (mprotect(td, &bsd_args));
1153 }
1154