linux_misc.c revision 1.242 1 /* $NetBSD: linux_misc.c,v 1.242 2019/08/23 07:53:36 maxv Exp $ */
2
3 /*-
4 * Copyright (c) 1995, 1998, 1999, 2008 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Frank van der Linden and Eric Haszlakiewicz; by Jason R. Thorpe
9 * of the Numerical Aerospace Simulation Facility, NASA Ames Research Center.
10 *
11 * Redistribution and use in source and binary forms, with or without
12 * modification, are permitted provided that the following conditions
13 * are met:
14 * 1. Redistributions of source code must retain the above copyright
15 * notice, this list of conditions and the following disclaimer.
16 * 2. Redistributions in binary form must reproduce the above copyright
17 * notice, this list of conditions and the following disclaimer in the
18 * documentation and/or other materials provided with the distribution.
19 *
20 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
21 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
24 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
25 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
26 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
27 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 * POSSIBILITY OF SUCH DAMAGE.
31 */
32
33 /*
34 * Linux compatibility module. Try to deal with various Linux system calls.
35 */
36
37 /*
38 * These functions have been moved to multiarch to allow
39 * selection of which machines include them to be
40 * determined by the individual files.linux_<arch> files.
41 *
42 * Function in multiarch:
43 * linux_sys_break : linux_break.c
44 * linux_sys_alarm : linux_misc_notalpha.c
45 * linux_sys_getresgid : linux_misc_notalpha.c
46 * linux_sys_nice : linux_misc_notalpha.c
47 * linux_sys_readdir : linux_misc_notalpha.c
48 * linux_sys_setresgid : linux_misc_notalpha.c
49 * linux_sys_time : linux_misc_notalpha.c
50 * linux_sys_utime : linux_misc_notalpha.c
51 * linux_sys_waitpid : linux_misc_notalpha.c
52 * linux_sys_old_mmap : linux_oldmmap.c
53 * linux_sys_oldolduname : linux_oldolduname.c
54 * linux_sys_oldselect : linux_oldselect.c
55 * linux_sys_olduname : linux_olduname.c
56 * linux_sys_pipe : linux_pipe.c
57 */
58
59 #include <sys/cdefs.h>
60 __KERNEL_RCSID(0, "$NetBSD: linux_misc.c,v 1.242 2019/08/23 07:53:36 maxv Exp $");
61
62 #include <sys/param.h>
63 #include <sys/systm.h>
64 #include <sys/namei.h>
65 #include <sys/proc.h>
66 #include <sys/dirent.h>
67 #include <sys/file.h>
68 #include <sys/stat.h>
69 #include <sys/filedesc.h>
70 #include <sys/ioctl.h>
71 #include <sys/kernel.h>
72 #include <sys/malloc.h>
73 #include <sys/mbuf.h>
74 #include <sys/mman.h>
75 #include <sys/mount.h>
76 #include <sys/poll.h>
77 #include <sys/prot.h>
78 #include <sys/reboot.h>
79 #include <sys/resource.h>
80 #include <sys/resourcevar.h>
81 #include <sys/select.h>
82 #include <sys/signal.h>
83 #include <sys/signalvar.h>
84 #include <sys/socket.h>
85 #include <sys/time.h>
86 #include <sys/times.h>
87 #include <sys/vnode.h>
88 #include <sys/uio.h>
89 #include <sys/wait.h>
90 #include <sys/utsname.h>
91 #include <sys/unistd.h>
92 #include <sys/vfs_syscalls.h>
93 #include <sys/swap.h> /* for SWAP_ON */
94 #include <sys/sysctl.h> /* for KERN_DOMAINNAME */
95 #include <sys/kauth.h>
96
97 #include <sys/ptrace.h>
98 #include <machine/ptrace.h>
99
100 #include <sys/syscall.h>
101 #include <sys/syscallargs.h>
102
103 #include <compat/sys/resource.h>
104
105 #include <compat/linux/common/linux_machdep.h>
106 #include <compat/linux/common/linux_types.h>
107 #include <compat/linux/common/linux_signal.h>
108 #include <compat/linux/common/linux_ipc.h>
109 #include <compat/linux/common/linux_sem.h>
110
111 #include <compat/linux/common/linux_fcntl.h>
112 #include <compat/linux/common/linux_mmap.h>
113 #include <compat/linux/common/linux_dirent.h>
114 #include <compat/linux/common/linux_util.h>
115 #include <compat/linux/common/linux_misc.h>
116 #include <compat/linux/common/linux_statfs.h>
117 #include <compat/linux/common/linux_limit.h>
118 #include <compat/linux/common/linux_ptrace.h>
119 #include <compat/linux/common/linux_reboot.h>
120 #include <compat/linux/common/linux_emuldata.h>
121 #include <compat/linux/common/linux_sched.h>
122
123 #include <compat/linux/linux_syscallargs.h>
124
125 const int linux_ptrace_request_map[] = {
126 LINUX_PTRACE_TRACEME, PT_TRACE_ME,
127 LINUX_PTRACE_PEEKTEXT, PT_READ_I,
128 LINUX_PTRACE_PEEKDATA, PT_READ_D,
129 LINUX_PTRACE_POKETEXT, PT_WRITE_I,
130 LINUX_PTRACE_POKEDATA, PT_WRITE_D,
131 LINUX_PTRACE_CONT, PT_CONTINUE,
132 LINUX_PTRACE_KILL, PT_KILL,
133 LINUX_PTRACE_ATTACH, PT_ATTACH,
134 LINUX_PTRACE_DETACH, PT_DETACH,
135 # ifdef PT_STEP
136 LINUX_PTRACE_SINGLESTEP, PT_STEP,
137 # endif
138 LINUX_PTRACE_SYSCALL, PT_SYSCALL,
139 -1
140 };
141
142 const struct linux_mnttypes linux_fstypes[] = {
143 { MOUNT_FFS, LINUX_DEFAULT_SUPER_MAGIC },
144 { MOUNT_NFS, LINUX_NFS_SUPER_MAGIC },
145 { MOUNT_MFS, LINUX_DEFAULT_SUPER_MAGIC },
146 { MOUNT_MSDOS, LINUX_MSDOS_SUPER_MAGIC },
147 { MOUNT_LFS, LINUX_DEFAULT_SUPER_MAGIC },
148 { MOUNT_FDESC, LINUX_DEFAULT_SUPER_MAGIC },
149 { MOUNT_NULL, LINUX_DEFAULT_SUPER_MAGIC },
150 { MOUNT_OVERLAY, LINUX_DEFAULT_SUPER_MAGIC },
151 { MOUNT_UMAP, LINUX_DEFAULT_SUPER_MAGIC },
152 { MOUNT_KERNFS, LINUX_DEFAULT_SUPER_MAGIC },
153 { MOUNT_PROCFS, LINUX_PROC_SUPER_MAGIC },
154 { MOUNT_AFS, LINUX_DEFAULT_SUPER_MAGIC },
155 { MOUNT_CD9660, LINUX_ISOFS_SUPER_MAGIC },
156 { MOUNT_UNION, LINUX_DEFAULT_SUPER_MAGIC },
157 { MOUNT_ADOSFS, LINUX_ADFS_SUPER_MAGIC },
158 { MOUNT_EXT2FS, LINUX_EXT2_SUPER_MAGIC },
159 { MOUNT_CFS, LINUX_DEFAULT_SUPER_MAGIC },
160 { MOUNT_CODA, LINUX_CODA_SUPER_MAGIC },
161 { MOUNT_FILECORE, LINUX_DEFAULT_SUPER_MAGIC },
162 { MOUNT_NTFS, LINUX_DEFAULT_SUPER_MAGIC },
163 { MOUNT_SMBFS, LINUX_SMB_SUPER_MAGIC },
164 { MOUNT_PTYFS, LINUX_DEVPTS_SUPER_MAGIC },
165 { MOUNT_TMPFS, LINUX_TMPFS_SUPER_MAGIC }
166 };
167 const int linux_fstypes_cnt = sizeof(linux_fstypes) / sizeof(linux_fstypes[0]);
168
169 # ifdef DEBUG_LINUX
170 #define DPRINTF(a) uprintf a
171 # else
172 #define DPRINTF(a)
173 # endif
174
175 /* Local linux_misc.c functions: */
176 static void linux_to_bsd_mmap_args(struct sys_mmap_args *,
177 const struct linux_sys_mmap_args *);
178 static int linux_mmap(struct lwp *, const struct linux_sys_mmap_args *,
179 register_t *, off_t);
180
181
182 /*
183 * The information on a terminated (or stopped) process needs
184 * to be converted in order for Linux binaries to get a valid signal
185 * number out of it.
186 */
187 int
188 bsd_to_linux_wstat(int st)
189 {
190
191 int sig;
192
193 if (WIFSIGNALED(st)) {
194 sig = WTERMSIG(st);
195 if (sig >= 0 && sig < NSIG)
196 st= (st & ~0177) | native_to_linux_signo[sig];
197 } else if (WIFSTOPPED(st)) {
198 sig = WSTOPSIG(st);
199 if (sig >= 0 && sig < NSIG)
200 st = (st & ~0xff00) |
201 (native_to_linux_signo[sig] << 8);
202 }
203 return st;
204 }
205
206 /*
207 * wait4(2). Passed on to the NetBSD call, surrounded by code to
208 * reserve some space for a NetBSD-style wait status, and converting
209 * it to what Linux wants.
210 */
211 int
212 linux_sys_wait4(struct lwp *l, const struct linux_sys_wait4_args *uap, register_t *retval)
213 {
214 /* {
215 syscallarg(int) pid;
216 syscallarg(int *) status;
217 syscallarg(int) options;
218 syscallarg(struct rusage50 *) rusage;
219 } */
220 int error, status, options, linux_options, pid = SCARG(uap, pid);
221 struct rusage50 ru50;
222 struct rusage ru;
223 proc_t *p;
224
225 linux_options = SCARG(uap, options);
226 if (linux_options & ~(LINUX_WAIT4_KNOWNFLAGS))
227 return (EINVAL);
228
229 options = 0;
230 if (linux_options & LINUX_WAIT4_WNOHANG)
231 options |= WNOHANG;
232 if (linux_options & LINUX_WAIT4_WUNTRACED)
233 options |= WUNTRACED;
234 if (linux_options & LINUX_WAIT4_WCONTINUED)
235 options |= WCONTINUED;
236 if (linux_options & LINUX_WAIT4_WALL)
237 options |= WALLSIG;
238 if (linux_options & LINUX_WAIT4_WCLONE)
239 options |= WALTSIG;
240 # ifdef DIAGNOSTIC
241 if (linux_options & LINUX_WAIT4_WNOTHREAD)
242 printf("WARNING: %s: linux process %d.%d called "
243 "waitpid with __WNOTHREAD set!",
244 __FILE__, l->l_proc->p_pid, l->l_lid);
245
246 # endif
247
248 error = do_sys_wait(&pid, &status, options,
249 SCARG(uap, rusage) != NULL ? &ru : NULL);
250
251 retval[0] = pid;
252 if (pid == 0)
253 return error;
254
255 p = curproc;
256 mutex_enter(p->p_lock);
257 sigdelset(&p->p_sigpend.sp_set, SIGCHLD); /* XXXAD ksiginfo leak */
258 mutex_exit(p->p_lock);
259
260 if (SCARG(uap, rusage) != NULL) {
261 rusage_to_rusage50(&ru, &ru50);
262 error = copyout(&ru, SCARG(uap, rusage), sizeof(ru));
263 }
264
265 if (error == 0 && SCARG(uap, status) != NULL) {
266 status = bsd_to_linux_wstat(status);
267 error = copyout(&status, SCARG(uap, status), sizeof status);
268 }
269
270 return error;
271 }
272
273 /*
274 * Linux brk(2). Like native, but always return the new break value.
275 */
276 int
277 linux_sys_brk(struct lwp *l, const struct linux_sys_brk_args *uap, register_t *retval)
278 {
279 /* {
280 syscallarg(char *) nsize;
281 } */
282 struct proc *p = l->l_proc;
283 struct vmspace *vm = p->p_vmspace;
284 struct sys_obreak_args oba;
285
286 SCARG(&oba, nsize) = SCARG(uap, nsize);
287
288 (void) sys_obreak(l, &oba, retval);
289 retval[0] = (register_t)((char *)vm->vm_daddr + ptoa(vm->vm_dsize));
290 return 0;
291 }
292
293 /*
294 * Implement the fs stat functions. Straightforward.
295 */
296 int
297 linux_sys_statfs(struct lwp *l, const struct linux_sys_statfs_args *uap, register_t *retval)
298 {
299 /* {
300 syscallarg(const char *) path;
301 syscallarg(struct linux_statfs *) sp;
302 } */
303 struct statvfs *sb;
304 struct linux_statfs ltmp;
305 int error;
306
307 sb = STATVFSBUF_GET();
308 error = do_sys_pstatvfs(l, SCARG(uap, path), ST_WAIT, sb);
309 if (error == 0) {
310 bsd_to_linux_statfs(sb, <mp);
311 error = copyout(<mp, SCARG(uap, sp), sizeof ltmp);
312 }
313 STATVFSBUF_PUT(sb);
314
315 return error;
316 }
317
318 int
319 linux_sys_fstatfs(struct lwp *l, const struct linux_sys_fstatfs_args *uap, register_t *retval)
320 {
321 /* {
322 syscallarg(int) fd;
323 syscallarg(struct linux_statfs *) sp;
324 } */
325 struct statvfs *sb;
326 struct linux_statfs ltmp;
327 int error;
328
329 sb = STATVFSBUF_GET();
330 error = do_sys_fstatvfs(l, SCARG(uap, fd), ST_WAIT, sb);
331 if (error == 0) {
332 bsd_to_linux_statfs(sb, <mp);
333 error = copyout(<mp, SCARG(uap, sp), sizeof ltmp);
334 }
335 STATVFSBUF_PUT(sb);
336
337 return error;
338 }
339
340 /*
341 * uname(). Just copy the info from the various strings stored in the
342 * kernel, and put it in the Linux utsname structure. That structure
343 * is almost the same as the NetBSD one, only it has fields 65 characters
344 * long, and an extra domainname field.
345 */
346 int
347 linux_sys_uname(struct lwp *l, const struct linux_sys_uname_args *uap, register_t *retval)
348 {
349 /* {
350 syscallarg(struct linux_utsname *) up;
351 } */
352 struct linux_utsname luts;
353
354 memset(&luts, 0, sizeof(luts));
355 strlcpy(luts.l_sysname, linux_sysname, sizeof(luts.l_sysname));
356 strlcpy(luts.l_nodename, hostname, sizeof(luts.l_nodename));
357 strlcpy(luts.l_release, linux_release, sizeof(luts.l_release));
358 strlcpy(luts.l_version, linux_version, sizeof(luts.l_version));
359 strlcpy(luts.l_machine, LINUX_UNAME_ARCH, sizeof(luts.l_machine));
360 strlcpy(luts.l_domainname, domainname, sizeof(luts.l_domainname));
361
362 return copyout(&luts, SCARG(uap, up), sizeof(luts));
363 }
364
365 /* Used directly on: alpha, mips, ppc, sparc, sparc64 */
366 /* Used indirectly on: arm, i386, m68k */
367
368 /*
369 * New type Linux mmap call.
370 * Only called directly on machines with >= 6 free regs.
371 */
372 int
373 linux_sys_mmap(struct lwp *l, const struct linux_sys_mmap_args *uap, register_t *retval)
374 {
375 /* {
376 syscallarg(unsigned long) addr;
377 syscallarg(size_t) len;
378 syscallarg(int) prot;
379 syscallarg(int) flags;
380 syscallarg(int) fd;
381 syscallarg(linux_off_t) offset;
382 } */
383
384 if (SCARG(uap, offset) & PAGE_MASK)
385 return EINVAL;
386
387 return linux_mmap(l, uap, retval, SCARG(uap, offset));
388 }
389
390 /*
391 * Guts of most architectures' mmap64() implementations. This shares
392 * its list of arguments with linux_sys_mmap().
393 *
394 * The difference in linux_sys_mmap2() is that "offset" is actually
395 * (offset / pagesize), not an absolute byte count. This translation
396 * to pagesize offsets is done inside glibc between the mmap64() call
397 * point, and the actual syscall.
398 */
399 int
400 linux_sys_mmap2(struct lwp *l, const struct linux_sys_mmap2_args *uap, register_t *retval)
401 {
402 /* {
403 syscallarg(unsigned long) addr;
404 syscallarg(size_t) len;
405 syscallarg(int) prot;
406 syscallarg(int) flags;
407 syscallarg(int) fd;
408 syscallarg(linux_off_t) offset;
409 } */
410
411 return linux_mmap(l, uap, retval,
412 ((off_t)SCARG(uap, offset)) << PAGE_SHIFT);
413 }
414
415 /*
416 * Massage arguments and call system mmap(2).
417 */
418 static int
419 linux_mmap(struct lwp *l, const struct linux_sys_mmap_args *uap, register_t *retval, off_t offset)
420 {
421 struct sys_mmap_args cma;
422 int error;
423 size_t mmoff=0;
424
425 linux_to_bsd_mmap_args(&cma, uap);
426 SCARG(&cma, pos) = offset;
427
428 if (SCARG(uap, flags) & LINUX_MAP_GROWSDOWN) {
429 /*
430 * Request for stack-like memory segment. On linux, this
431 * works by mmap()ping (small) segment, which is automatically
432 * extended when page fault happens below the currently
433 * allocated area. We emulate this by allocating (typically
434 * bigger) segment sized at current stack size limit, and
435 * offsetting the requested and returned address accordingly.
436 * Since physical pages are only allocated on-demand, this
437 * is effectively identical.
438 */
439 rlim_t ssl = l->l_proc->p_rlimit[RLIMIT_STACK].rlim_cur;
440
441 if (SCARG(&cma, len) < ssl) {
442 /* Compute the address offset */
443 mmoff = round_page(ssl) - SCARG(uap, len);
444
445 if (SCARG(&cma, addr))
446 SCARG(&cma, addr) = (char *)SCARG(&cma, addr) - mmoff;
447
448 SCARG(&cma, len) = (size_t) ssl;
449 }
450 }
451
452 error = sys_mmap(l, &cma, retval);
453 if (error)
454 return (error);
455
456 /* Shift the returned address for stack-like segment if necessary */
457 retval[0] += mmoff;
458
459 return (0);
460 }
461
462 static void
463 linux_to_bsd_mmap_args(struct sys_mmap_args *cma, const struct linux_sys_mmap_args *uap)
464 {
465 int flags = MAP_TRYFIXED, fl = SCARG(uap, flags);
466
467 flags |= cvtto_bsd_mask(fl, LINUX_MAP_SHARED, MAP_SHARED);
468 flags |= cvtto_bsd_mask(fl, LINUX_MAP_PRIVATE, MAP_PRIVATE);
469 flags |= cvtto_bsd_mask(fl, LINUX_MAP_FIXED, MAP_FIXED);
470 flags |= cvtto_bsd_mask(fl, LINUX_MAP_ANON, MAP_ANON);
471 flags |= cvtto_bsd_mask(fl, LINUX_MAP_LOCKED, MAP_WIRED);
472 /* XXX XAX ERH: Any other flags here? There are more defined... */
473
474 SCARG(cma, addr) = (void *)SCARG(uap, addr);
475 SCARG(cma, len) = SCARG(uap, len);
476 SCARG(cma, prot) = SCARG(uap, prot);
477 if (SCARG(cma, prot) & VM_PROT_WRITE) /* XXX */
478 SCARG(cma, prot) |= VM_PROT_READ;
479 SCARG(cma, flags) = flags;
480 SCARG(cma, fd) = flags & MAP_ANON ? -1 : SCARG(uap, fd);
481 SCARG(cma, PAD) = 0;
482 }
483
484 #define LINUX_MREMAP_MAYMOVE 1
485 #define LINUX_MREMAP_FIXED 2
486
487 int
488 linux_sys_mremap(struct lwp *l, const struct linux_sys_mremap_args *uap, register_t *retval)
489 {
490 /* {
491 syscallarg(void *) old_address;
492 syscallarg(size_t) old_size;
493 syscallarg(size_t) new_size;
494 syscallarg(u_long) flags;
495 } */
496
497 struct proc *p;
498 struct vm_map *map;
499 vaddr_t oldva;
500 vaddr_t newva;
501 size_t oldsize;
502 size_t newsize;
503 int flags;
504 int uvmflags;
505 int error;
506
507 flags = SCARG(uap, flags);
508 oldva = (vaddr_t)SCARG(uap, old_address);
509 oldsize = round_page(SCARG(uap, old_size));
510 newsize = round_page(SCARG(uap, new_size));
511 if ((flags & ~(LINUX_MREMAP_FIXED|LINUX_MREMAP_MAYMOVE)) != 0) {
512 error = EINVAL;
513 goto done;
514 }
515 if ((flags & LINUX_MREMAP_FIXED) != 0) {
516 if ((flags & LINUX_MREMAP_MAYMOVE) == 0) {
517 error = EINVAL;
518 goto done;
519 }
520 #if 0 /* notyet */
521 newva = SCARG(uap, new_address);
522 uvmflags = MAP_FIXED;
523 #else /* notyet */
524 error = EOPNOTSUPP;
525 goto done;
526 #endif /* notyet */
527 } else if ((flags & LINUX_MREMAP_MAYMOVE) != 0) {
528 uvmflags = 0;
529 } else {
530 newva = oldva;
531 uvmflags = MAP_FIXED;
532 }
533 p = l->l_proc;
534 map = &p->p_vmspace->vm_map;
535 error = uvm_mremap(map, oldva, oldsize, map, &newva, newsize, p,
536 uvmflags);
537
538 done:
539 *retval = (error != 0) ? 0 : (register_t)newva;
540 return error;
541 }
542
543 #ifdef USRSTACK
544 int
545 linux_sys_mprotect(struct lwp *l, const struct linux_sys_mprotect_args *uap, register_t *retval)
546 {
547 /* {
548 syscallarg(const void *) start;
549 syscallarg(unsigned long) len;
550 syscallarg(int) prot;
551 } */
552 struct vm_map_entry *entry;
553 struct vm_map *map;
554 struct proc *p;
555 vaddr_t end, start, len, stacklim;
556 int prot, grows;
557
558 start = (vaddr_t)SCARG(uap, start);
559 len = round_page(SCARG(uap, len));
560 prot = SCARG(uap, prot);
561 grows = prot & (LINUX_PROT_GROWSDOWN | LINUX_PROT_GROWSUP);
562 prot &= ~grows;
563 end = start + len;
564
565 if (start & PAGE_MASK)
566 return EINVAL;
567 if (end < start)
568 return EINVAL;
569 if (end == start)
570 return 0;
571
572 if (prot & ~(PROT_READ | PROT_WRITE | PROT_EXEC))
573 return EINVAL;
574 if (grows == (LINUX_PROT_GROWSDOWN | LINUX_PROT_GROWSUP))
575 return EINVAL;
576
577 p = l->l_proc;
578 map = &p->p_vmspace->vm_map;
579 vm_map_lock(map);
580 # ifdef notdef
581 VM_MAP_RANGE_CHECK(map, start, end);
582 # endif
583 if (!uvm_map_lookup_entry(map, start, &entry) || entry->start > start) {
584 vm_map_unlock(map);
585 return ENOMEM;
586 }
587
588 /*
589 * Approximate the behaviour of PROT_GROWS{DOWN,UP}.
590 */
591
592 stacklim = (vaddr_t)p->p_limit->pl_rlimit[RLIMIT_STACK].rlim_cur;
593 if (grows & LINUX_PROT_GROWSDOWN) {
594 if (USRSTACK - stacklim <= start && start < USRSTACK) {
595 start = USRSTACK - stacklim;
596 } else {
597 start = entry->start;
598 }
599 } else if (grows & LINUX_PROT_GROWSUP) {
600 if (USRSTACK <= end && end < USRSTACK + stacklim) {
601 end = USRSTACK + stacklim;
602 } else {
603 end = entry->end;
604 }
605 }
606 vm_map_unlock(map);
607 return uvm_map_protect_user(l, start, end, prot);
608 }
609 #endif /* USRSTACK */
610
611 /*
612 * This code is partly stolen from src/lib/libc/compat-43/times.c
613 */
614
615 #define CONVTCK(r) (r.tv_sec * hz + r.tv_usec / (1000000 / hz))
616
617 int
618 linux_sys_times(struct lwp *l, const struct linux_sys_times_args *uap, register_t *retval)
619 {
620 /* {
621 syscallarg(struct times *) tms;
622 } */
623 struct proc *p = l->l_proc;
624 struct timeval t;
625 int error;
626
627 if (SCARG(uap, tms)) {
628 struct linux_tms ltms;
629 struct rusage ru;
630
631 mutex_enter(p->p_lock);
632 calcru(p, &ru.ru_utime, &ru.ru_stime, NULL, NULL);
633 ltms.ltms_utime = CONVTCK(ru.ru_utime);
634 ltms.ltms_stime = CONVTCK(ru.ru_stime);
635 ltms.ltms_cutime = CONVTCK(p->p_stats->p_cru.ru_utime);
636 ltms.ltms_cstime = CONVTCK(p->p_stats->p_cru.ru_stime);
637 mutex_exit(p->p_lock);
638
639 if ((error = copyout(<ms, SCARG(uap, tms), sizeof ltms)))
640 return error;
641 }
642
643 getmicrouptime(&t);
644
645 retval[0] = ((linux_clock_t)(CONVTCK(t)));
646 return 0;
647 }
648
649 #undef CONVTCK
650
651 /*
652 * Linux 'readdir' call. This code is mostly taken from the
653 * SunOS getdents call (see compat/sunos/sunos_misc.c), though
654 * an attempt has been made to keep it a little cleaner (failing
655 * miserably, because of the cruft needed if count 1 is passed).
656 *
657 * The d_off field should contain the offset of the next valid entry,
658 * but in Linux it has the offset of the entry itself. We emulate
659 * that bug here.
660 *
661 * Read in BSD-style entries, convert them, and copy them out.
662 *
663 * Note that this doesn't handle union-mounted filesystems.
664 */
665 int
666 linux_sys_getdents(struct lwp *l, const struct linux_sys_getdents_args *uap, register_t *retval)
667 {
668 /* {
669 syscallarg(int) fd;
670 syscallarg(struct linux_dirent *) dent;
671 syscallarg(unsigned int) count;
672 } */
673 struct dirent *bdp;
674 struct vnode *vp;
675 char *inp, *tbuf; /* BSD-format */
676 int len, reclen; /* BSD-format */
677 char *outp; /* Linux-format */
678 int resid, linux_reclen = 0; /* Linux-format */
679 struct file *fp;
680 struct uio auio;
681 struct iovec aiov;
682 struct linux_dirent idb;
683 off_t off; /* true file offset */
684 int buflen, error, eofflag, nbytes, oldcall;
685 struct vattr va;
686 off_t *cookiebuf = NULL, *cookie;
687 int ncookies;
688
689 /* fd_getvnode() will use the descriptor for us */
690 if ((error = fd_getvnode(SCARG(uap, fd), &fp)) != 0)
691 return (error);
692
693 if ((fp->f_flag & FREAD) == 0) {
694 error = EBADF;
695 goto out1;
696 }
697
698 vp = (struct vnode *)fp->f_data;
699 if (vp->v_type != VDIR) {
700 error = ENOTDIR;
701 goto out1;
702 }
703
704 vn_lock(vp, LK_SHARED | LK_RETRY);
705 error = VOP_GETATTR(vp, &va, l->l_cred);
706 VOP_UNLOCK(vp);
707 if (error)
708 goto out1;
709
710 nbytes = SCARG(uap, count);
711 if (nbytes == 1) { /* emulating old, broken behaviour */
712 nbytes = sizeof (idb);
713 buflen = uimax(va.va_blocksize, nbytes);
714 oldcall = 1;
715 } else {
716 buflen = uimin(MAXBSIZE, nbytes);
717 if (buflen < va.va_blocksize)
718 buflen = va.va_blocksize;
719 oldcall = 0;
720 }
721 tbuf = malloc(buflen, M_TEMP, M_WAITOK);
722
723 vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
724 off = fp->f_offset;
725 again:
726 aiov.iov_base = tbuf;
727 aiov.iov_len = buflen;
728 auio.uio_iov = &aiov;
729 auio.uio_iovcnt = 1;
730 auio.uio_rw = UIO_READ;
731 auio.uio_resid = buflen;
732 auio.uio_offset = off;
733 UIO_SETUP_SYSSPACE(&auio);
734 /*
735 * First we read into the malloc'ed buffer, then
736 * we massage it into user space, one record at a time.
737 */
738 error = VOP_READDIR(vp, &auio, fp->f_cred, &eofflag, &cookiebuf,
739 &ncookies);
740 if (error)
741 goto out;
742
743 inp = tbuf;
744 outp = (void *)SCARG(uap, dent);
745 resid = nbytes;
746 if ((len = buflen - auio.uio_resid) == 0)
747 goto eof;
748
749 for (cookie = cookiebuf; len > 0; len -= reclen) {
750 bdp = (struct dirent *)inp;
751 reclen = bdp->d_reclen;
752 if (reclen & 3) {
753 error = EIO;
754 goto out;
755 }
756 if (bdp->d_fileno == 0) {
757 inp += reclen; /* it is a hole; squish it out */
758 if (cookie)
759 off = *cookie++;
760 else
761 off += reclen;
762 continue;
763 }
764 linux_reclen = LINUX_RECLEN(&idb, bdp->d_namlen);
765 if (reclen > len || resid < linux_reclen) {
766 /* entry too big for buffer, so just stop */
767 outp++;
768 break;
769 }
770 /*
771 * Massage in place to make a Linux-shaped dirent (otherwise
772 * we have to worry about touching user memory outside of
773 * the copyout() call).
774 */
775 memset(&idb, 0, sizeof(idb));
776 idb.d_ino = bdp->d_fileno;
777 /*
778 * The old readdir() call misuses the offset and reclen fields.
779 */
780 if (oldcall) {
781 idb.d_off = (linux_off_t)linux_reclen;
782 idb.d_reclen = (u_short)bdp->d_namlen;
783 } else {
784 if (sizeof (idb.d_off) <= 4 && (off >> 32) != 0) {
785 compat_offseterr(vp, "linux_getdents");
786 error = EINVAL;
787 goto out;
788 }
789 idb.d_off = (linux_off_t)off;
790 idb.d_reclen = (u_short)linux_reclen;
791 /* Linux puts d_type at the end of each record */
792 *((char *)&idb + idb.d_reclen - 1) = bdp->d_type;
793 }
794 memcpy(idb.d_name, bdp->d_name,
795 MIN(sizeof(idb.d_name), bdp->d_namlen + 1));
796 if ((error = copyout((void *)&idb, outp, linux_reclen)))
797 goto out;
798 /* advance past this real entry */
799 inp += reclen;
800 if (cookie)
801 off = *cookie++; /* each entry points to itself */
802 else
803 off += reclen;
804 /* advance output past Linux-shaped entry */
805 outp += linux_reclen;
806 resid -= linux_reclen;
807 if (oldcall)
808 break;
809 }
810
811 /* if we squished out the whole block, try again */
812 if (outp == (void *)SCARG(uap, dent)) {
813 if (cookiebuf)
814 free(cookiebuf, M_TEMP);
815 cookiebuf = NULL;
816 goto again;
817 }
818 fp->f_offset = off; /* update the vnode offset */
819
820 if (oldcall)
821 nbytes = resid + linux_reclen;
822
823 eof:
824 *retval = nbytes - resid;
825 out:
826 VOP_UNLOCK(vp);
827 if (cookiebuf)
828 free(cookiebuf, M_TEMP);
829 free(tbuf, M_TEMP);
830 out1:
831 fd_putfile(SCARG(uap, fd));
832 return error;
833 }
834
835 /*
836 * Even when just using registers to pass arguments to syscalls you can
837 * have 5 of them on the i386. So this newer version of select() does
838 * this.
839 */
840 int
841 linux_sys_select(struct lwp *l, const struct linux_sys_select_args *uap, register_t *retval)
842 {
843 /* {
844 syscallarg(int) nfds;
845 syscallarg(fd_set *) readfds;
846 syscallarg(fd_set *) writefds;
847 syscallarg(fd_set *) exceptfds;
848 syscallarg(struct timeval50 *) timeout;
849 } */
850
851 return linux_select1(l, retval, SCARG(uap, nfds), SCARG(uap, readfds),
852 SCARG(uap, writefds), SCARG(uap, exceptfds),
853 (struct linux_timeval *)SCARG(uap, timeout));
854 }
855
856 /*
857 * Common code for the old and new versions of select(). A couple of
858 * things are important:
859 * 1) return the amount of time left in the 'timeout' parameter
860 * 2) select never returns ERESTART on Linux, always return EINTR
861 */
862 int
863 linux_select1(struct lwp *l, register_t *retval, int nfds, fd_set *readfds,
864 fd_set *writefds, fd_set *exceptfds, struct linux_timeval *timeout)
865 {
866 struct timespec ts0, ts1, uts, *ts = NULL;
867 struct linux_timeval ltv;
868 int error;
869
870 /*
871 * Store current time for computation of the amount of
872 * time left.
873 */
874 if (timeout) {
875 if ((error = copyin(timeout, <v, sizeof(ltv))))
876 return error;
877 uts.tv_sec = ltv.tv_sec;
878 uts.tv_nsec = ltv.tv_usec * 1000;
879 if (itimespecfix(&uts)) {
880 /*
881 * The timeval was invalid. Convert it to something
882 * valid that will act as it does under Linux.
883 */
884 uts.tv_sec += uts.tv_nsec / 1000000000;
885 uts.tv_nsec %= 1000000000;
886 if (uts.tv_nsec < 0) {
887 uts.tv_sec -= 1;
888 uts.tv_nsec += 1000000000;
889 }
890 if (uts.tv_sec < 0)
891 timespecclear(&uts);
892 }
893 ts = &uts;
894 nanotime(&ts0);
895 }
896
897 error = selcommon(retval, nfds, readfds, writefds, exceptfds, ts, NULL);
898
899 if (error) {
900 /*
901 * See fs/select.c in the Linux kernel. Without this,
902 * Maelstrom doesn't work.
903 */
904 if (error == ERESTART)
905 error = EINTR;
906 return error;
907 }
908
909 if (timeout) {
910 if (*retval) {
911 /*
912 * Compute how much time was left of the timeout,
913 * by subtracting the current time and the time
914 * before we started the call, and subtracting
915 * that result from the user-supplied value.
916 */
917 nanotime(&ts1);
918 timespecsub(&ts1, &ts0, &ts1);
919 timespecsub(&uts, &ts1, &uts);
920 if (uts.tv_sec < 0)
921 timespecclear(&uts);
922 } else
923 timespecclear(&uts);
924 ltv.tv_sec = uts.tv_sec;
925 ltv.tv_usec = uts.tv_nsec / 1000;
926 if ((error = copyout(<v, timeout, sizeof(ltv))))
927 return error;
928 }
929
930 return 0;
931 }
932
933 /*
934 * Derived from FreeBSD's sys/compat/linux/linux_misc.c:linux_pselect6()
935 * which was contributed by Dmitry Chagin
936 * https://svnweb.freebsd.org/base?view=revision&revision=283403
937 */
938 int
939 linux_sys_pselect6(struct lwp *l,
940 const struct linux_sys_pselect6_args *uap, register_t *retval)
941 {
942 /* {
943 syscallarg(int) nfds;
944 syscallarg(fd_set *) readfds;
945 syscallarg(fd_set *) writefds;
946 syscallarg(fd_set *) exceptfds;
947 syscallarg(struct timespec *) timeout;
948 syscallarg(linux_sized_sigset_t *) ss;
949 } */
950 struct timespec uts, ts0, ts1, *tsp;
951 linux_sized_sigset_t lsss;
952 struct linux_timespec lts;
953 linux_sigset_t lss;
954 sigset_t *ssp;
955 sigset_t ss;
956 int error;
957
958 ssp = NULL;
959 if (SCARG(uap, ss) != NULL) {
960 if ((error = copyin(SCARG(uap, ss), &lsss, sizeof(lsss))) != 0)
961 return (error);
962 if (lsss.ss_len != sizeof(lss))
963 return (EINVAL);
964 if (lsss.ss != NULL) {
965 if ((error = copyin(lsss.ss, &lss, sizeof(lss))) != 0)
966 return (error);
967 linux_to_native_sigset(&ss, &lss);
968 ssp = &ss;
969 }
970 }
971
972 if (SCARG(uap, timeout) != NULL) {
973 error = copyin(SCARG(uap, timeout), <s, sizeof(lts));
974 if (error != 0)
975 return (error);
976 linux_to_native_timespec(&uts, <s);
977
978 if (itimespecfix(&uts))
979 return (EINVAL);
980
981 nanotime(&ts0);
982 tsp = &uts;
983 } else {
984 tsp = NULL;
985 }
986
987 error = selcommon(retval, SCARG(uap, nfds), SCARG(uap, readfds),
988 SCARG(uap, writefds), SCARG(uap, exceptfds), tsp, ssp);
989
990 if (error == 0 && tsp != NULL) {
991 if (retval != 0) {
992 /*
993 * Compute how much time was left of the timeout,
994 * by subtracting the current time and the time
995 * before we started the call, and subtracting
996 * that result from the user-supplied value.
997 */
998 nanotime(&ts1);
999 timespecsub(&ts1, &ts0, &ts1);
1000 timespecsub(&uts, &ts1, &uts);
1001 if (uts.tv_sec < 0)
1002 timespecclear(&uts);
1003 } else {
1004 timespecclear(&uts);
1005 }
1006
1007 native_to_linux_timespec(<s, &uts);
1008 error = copyout(<s, SCARG(uap, timeout), sizeof(lts));
1009 }
1010
1011 return (error);
1012 }
1013
1014 int
1015 linux_sys_ppoll(struct lwp *l,
1016 const struct linux_sys_ppoll_args *uap, register_t *retval)
1017 {
1018 /* {
1019 syscallarg(struct pollfd *) fds;
1020 syscallarg(u_int) nfds;
1021 syscallarg(struct linux_timespec *) timeout;
1022 syscallarg(linux_sigset_t *) sigset;
1023 } */
1024 struct linux_timespec lts0, *lts;
1025 struct timespec ts0, *ts = NULL;
1026 linux_sigset_t lsigmask0, *lsigmask;
1027 sigset_t sigmask0, *sigmask = NULL;
1028 int error;
1029
1030 lts = SCARG(uap, timeout);
1031 if (lts) {
1032 if ((error = copyin(lts, <s0, sizeof(lts0))) != 0)
1033 return error;
1034 linux_to_native_timespec(&ts0, <s0);
1035 ts = &ts0;
1036 }
1037
1038 lsigmask = SCARG(uap, sigset);
1039 if (lsigmask) {
1040 if ((error = copyin(lsigmask, &lsigmask0, sizeof(lsigmask0))))
1041 return error;
1042 linux_to_native_sigset(&sigmask0, &lsigmask0);
1043 sigmask = &sigmask0;
1044 }
1045
1046 return pollcommon(retval, SCARG(uap, fds), SCARG(uap, nfds),
1047 ts, sigmask);
1048 }
1049
1050 /*
1051 * Set the 'personality' (emulation mode) for the current process. Only
1052 * accept the Linux personality here (0). This call is needed because
1053 * the Linux ELF crt0 issues it in an ugly kludge to make sure that
1054 * ELF binaries run in Linux mode, not SVR4 mode.
1055 */
1056 int
1057 linux_sys_personality(struct lwp *l, const struct linux_sys_personality_args *uap, register_t *retval)
1058 {
1059 /* {
1060 syscallarg(unsigned long) per;
1061 } */
1062 struct linux_emuldata *led;
1063 int per;
1064
1065 per = SCARG(uap, per);
1066 led = l->l_emuldata;
1067 if (per == LINUX_PER_QUERY) {
1068 retval[0] = led->led_personality;
1069 return 0;
1070 }
1071
1072 switch (per & LINUX_PER_MASK) {
1073 case LINUX_PER_LINUX:
1074 case LINUX_PER_LINUX32:
1075 led->led_personality = per;
1076 break;
1077
1078 default:
1079 return EINVAL;
1080 }
1081
1082 retval[0] = per;
1083 return 0;
1084 }
1085
1086 /*
1087 * We have nonexistent fsuid equal to uid.
1088 * If modification is requested, refuse.
1089 */
1090 int
1091 linux_sys_setfsuid(struct lwp *l, const struct linux_sys_setfsuid_args *uap, register_t *retval)
1092 {
1093 /* {
1094 syscallarg(uid_t) uid;
1095 } */
1096 uid_t uid;
1097
1098 uid = SCARG(uap, uid);
1099 if (kauth_cred_getuid(l->l_cred) != uid)
1100 return sys_nosys(l, uap, retval);
1101
1102 *retval = uid;
1103 return 0;
1104 }
1105
1106 int
1107 linux_sys_setfsgid(struct lwp *l, const struct linux_sys_setfsgid_args *uap, register_t *retval)
1108 {
1109 /* {
1110 syscallarg(gid_t) gid;
1111 } */
1112 gid_t gid;
1113
1114 gid = SCARG(uap, gid);
1115 if (kauth_cred_getgid(l->l_cred) != gid)
1116 return sys_nosys(l, uap, retval);
1117
1118 *retval = gid;
1119 return 0;
1120 }
1121
1122 int
1123 linux_sys_setresuid(struct lwp *l, const struct linux_sys_setresuid_args *uap, register_t *retval)
1124 {
1125 /* {
1126 syscallarg(uid_t) ruid;
1127 syscallarg(uid_t) euid;
1128 syscallarg(uid_t) suid;
1129 } */
1130
1131 /*
1132 * Note: These checks are a little different than the NetBSD
1133 * setreuid(2) call performs. This precisely follows the
1134 * behavior of the Linux kernel.
1135 */
1136
1137 return do_setresuid(l, SCARG(uap, ruid), SCARG(uap, euid),
1138 SCARG(uap, suid),
1139 ID_R_EQ_R | ID_R_EQ_E | ID_R_EQ_S |
1140 ID_E_EQ_R | ID_E_EQ_E | ID_E_EQ_S |
1141 ID_S_EQ_R | ID_S_EQ_E | ID_S_EQ_S );
1142 }
1143
1144 int
1145 linux_sys_getresuid(struct lwp *l, const struct linux_sys_getresuid_args *uap, register_t *retval)
1146 {
1147 /* {
1148 syscallarg(uid_t *) ruid;
1149 syscallarg(uid_t *) euid;
1150 syscallarg(uid_t *) suid;
1151 } */
1152 kauth_cred_t pc = l->l_cred;
1153 int error;
1154 uid_t uid;
1155
1156 /*
1157 * Linux copies these values out to userspace like so:
1158 *
1159 * 1. Copy out ruid.
1160 * 2. If that succeeds, copy out euid.
1161 * 3. If both of those succeed, copy out suid.
1162 */
1163 uid = kauth_cred_getuid(pc);
1164 if ((error = copyout(&uid, SCARG(uap, ruid), sizeof(uid_t))) != 0)
1165 return (error);
1166
1167 uid = kauth_cred_geteuid(pc);
1168 if ((error = copyout(&uid, SCARG(uap, euid), sizeof(uid_t))) != 0)
1169 return (error);
1170
1171 uid = kauth_cred_getsvuid(pc);
1172
1173 return (copyout(&uid, SCARG(uap, suid), sizeof(uid_t)));
1174 }
1175
1176 int
1177 linux_sys_ptrace(struct lwp *l, const struct linux_sys_ptrace_args *uap, register_t *retval)
1178 {
1179 /* {
1180 i386, m68k, powerpc: T=int
1181 alpha, amd64: T=long
1182 syscallarg(T) request;
1183 syscallarg(T) pid;
1184 syscallarg(T) addr;
1185 syscallarg(T) data;
1186 } */
1187 const int *ptr;
1188 int request;
1189 int error;
1190
1191 ptr = linux_ptrace_request_map;
1192 request = SCARG(uap, request);
1193 while (*ptr != -1)
1194 if (*ptr++ == request) {
1195 struct sys_ptrace_args pta;
1196
1197 SCARG(&pta, req) = *ptr;
1198 SCARG(&pta, pid) = SCARG(uap, pid);
1199 SCARG(&pta, addr) = (void *)SCARG(uap, addr);
1200 SCARG(&pta, data) = SCARG(uap, data);
1201
1202 /*
1203 * Linux ptrace(PTRACE_CONT, pid, 0, 0) means actually
1204 * to continue where the process left off previously.
1205 * The same thing is achieved by addr == (void *) 1
1206 * on NetBSD, so rewrite 'addr' appropriately.
1207 */
1208 if (request == LINUX_PTRACE_CONT && SCARG(uap, addr)==0)
1209 SCARG(&pta, addr) = (void *) 1;
1210
1211 error = sysent[SYS_ptrace].sy_call(l, &pta, retval);
1212 if (error)
1213 return error;
1214 switch (request) {
1215 case LINUX_PTRACE_PEEKTEXT:
1216 case LINUX_PTRACE_PEEKDATA:
1217 error = copyout (retval,
1218 (void *)SCARG(uap, data),
1219 sizeof *retval);
1220 *retval = SCARG(uap, data);
1221 break;
1222 default:
1223 break;
1224 }
1225 return error;
1226 }
1227 else
1228 ptr++;
1229
1230 return LINUX_SYS_PTRACE_ARCH(l, uap, retval);
1231 }
1232
1233 int
1234 linux_sys_reboot(struct lwp *l, const struct linux_sys_reboot_args *uap, register_t *retval)
1235 {
1236 /* {
1237 syscallarg(int) magic1;
1238 syscallarg(int) magic2;
1239 syscallarg(int) cmd;
1240 syscallarg(void *) arg;
1241 } */
1242 struct sys_reboot_args /* {
1243 syscallarg(int) opt;
1244 syscallarg(char *) bootstr;
1245 } */ sra;
1246 int error;
1247
1248 if ((error = kauth_authorize_system(l->l_cred,
1249 KAUTH_SYSTEM_REBOOT, 0, NULL, NULL, NULL)) != 0)
1250 return(error);
1251
1252 if (SCARG(uap, magic1) != LINUX_REBOOT_MAGIC1)
1253 return(EINVAL);
1254 if (SCARG(uap, magic2) != LINUX_REBOOT_MAGIC2 &&
1255 SCARG(uap, magic2) != LINUX_REBOOT_MAGIC2A &&
1256 SCARG(uap, magic2) != LINUX_REBOOT_MAGIC2B)
1257 return(EINVAL);
1258
1259 switch ((unsigned long)SCARG(uap, cmd)) {
1260 case LINUX_REBOOT_CMD_RESTART:
1261 SCARG(&sra, opt) = RB_AUTOBOOT;
1262 break;
1263 case LINUX_REBOOT_CMD_HALT:
1264 SCARG(&sra, opt) = RB_HALT;
1265 break;
1266 case LINUX_REBOOT_CMD_POWER_OFF:
1267 SCARG(&sra, opt) = RB_HALT|RB_POWERDOWN;
1268 break;
1269 case LINUX_REBOOT_CMD_RESTART2:
1270 /* Reboot with an argument. */
1271 SCARG(&sra, opt) = RB_AUTOBOOT|RB_STRING;
1272 SCARG(&sra, bootstr) = SCARG(uap, arg);
1273 break;
1274 case LINUX_REBOOT_CMD_CAD_ON:
1275 return(EINVAL); /* We don't implement ctrl-alt-delete */
1276 case LINUX_REBOOT_CMD_CAD_OFF:
1277 return(0);
1278 default:
1279 return(EINVAL);
1280 }
1281
1282 return(sys_reboot(l, &sra, retval));
1283 }
1284
1285 /*
1286 * Copy of compat_12_sys_swapon().
1287 */
1288 int
1289 linux_sys_swapon(struct lwp *l, const struct linux_sys_swapon_args *uap, register_t *retval)
1290 {
1291 /* {
1292 syscallarg(const char *) name;
1293 } */
1294 struct sys_swapctl_args ua;
1295
1296 SCARG(&ua, cmd) = SWAP_ON;
1297 SCARG(&ua, arg) = (void *)__UNCONST(SCARG(uap, name));
1298 SCARG(&ua, misc) = 0; /* priority */
1299 return (sys_swapctl(l, &ua, retval));
1300 }
1301
1302 /*
1303 * Stop swapping to the file or block device specified by path.
1304 */
1305 int
1306 linux_sys_swapoff(struct lwp *l, const struct linux_sys_swapoff_args *uap, register_t *retval)
1307 {
1308 /* {
1309 syscallarg(const char *) path;
1310 } */
1311 struct sys_swapctl_args ua;
1312
1313 SCARG(&ua, cmd) = SWAP_OFF;
1314 SCARG(&ua, arg) = __UNCONST(SCARG(uap, path)); /*XXXUNCONST*/
1315 return (sys_swapctl(l, &ua, retval));
1316 }
1317
1318 /*
1319 * Copy of compat_09_sys_setdomainname()
1320 */
1321 /* ARGSUSED */
1322 int
1323 linux_sys_setdomainname(struct lwp *l, const struct linux_sys_setdomainname_args *uap, register_t *retval)
1324 {
1325 /* {
1326 syscallarg(char *) domainname;
1327 syscallarg(int) len;
1328 } */
1329 int name[2];
1330
1331 name[0] = CTL_KERN;
1332 name[1] = KERN_DOMAINNAME;
1333 return (old_sysctl(&name[0], 2, 0, 0, SCARG(uap, domainname),
1334 SCARG(uap, len), l));
1335 }
1336
1337 /*
1338 * sysinfo()
1339 */
1340 /* ARGSUSED */
1341 int
1342 linux_sys_sysinfo(struct lwp *l, const struct linux_sys_sysinfo_args *uap, register_t *retval)
1343 {
1344 /* {
1345 syscallarg(struct linux_sysinfo *) arg;
1346 } */
1347 struct linux_sysinfo si;
1348 struct loadavg *la;
1349
1350 si.uptime = time_uptime;
1351 la = &averunnable;
1352 si.loads[0] = la->ldavg[0] * LINUX_SYSINFO_LOADS_SCALE / la->fscale;
1353 si.loads[1] = la->ldavg[1] * LINUX_SYSINFO_LOADS_SCALE / la->fscale;
1354 si.loads[2] = la->ldavg[2] * LINUX_SYSINFO_LOADS_SCALE / la->fscale;
1355 si.totalram = ctob((u_long)physmem);
1356 si.freeram = (u_long)uvmexp.free * uvmexp.pagesize;
1357 si.sharedram = 0; /* XXX */
1358 si.bufferram = (u_long)uvmexp.filepages * uvmexp.pagesize;
1359 si.totalswap = (u_long)uvmexp.swpages * uvmexp.pagesize;
1360 si.freeswap =
1361 (u_long)(uvmexp.swpages - uvmexp.swpginuse) * uvmexp.pagesize;
1362 si.procs = nprocs;
1363
1364 /* The following are only present in newer Linux kernels. */
1365 si.totalbig = 0;
1366 si.freebig = 0;
1367 si.mem_unit = 1;
1368
1369 return (copyout(&si, SCARG(uap, arg), sizeof si));
1370 }
1371
1372 int
1373 linux_sys_getrlimit(struct lwp *l, const struct linux_sys_getrlimit_args *uap, register_t *retval)
1374 {
1375 /* {
1376 syscallarg(int) which;
1377 # ifdef LINUX_LARGEFILE64
1378 syscallarg(struct rlimit *) rlp;
1379 # else
1380 syscallarg(struct orlimit *) rlp;
1381 # endif
1382 } */
1383 # ifdef LINUX_LARGEFILE64
1384 struct rlimit orl;
1385 # else
1386 struct orlimit orl;
1387 # endif
1388 int which;
1389
1390 which = linux_to_bsd_limit(SCARG(uap, which));
1391 if (which < 0)
1392 return -which;
1393
1394 bsd_to_linux_rlimit(&orl, &l->l_proc->p_rlimit[which]);
1395
1396 return copyout(&orl, SCARG(uap, rlp), sizeof(orl));
1397 }
1398
1399 int
1400 linux_sys_setrlimit(struct lwp *l, const struct linux_sys_setrlimit_args *uap, register_t *retval)
1401 {
1402 /* {
1403 syscallarg(int) which;
1404 # ifdef LINUX_LARGEFILE64
1405 syscallarg(struct rlimit *) rlp;
1406 # else
1407 syscallarg(struct orlimit *) rlp;
1408 # endif
1409 } */
1410 struct rlimit rl;
1411 # ifdef LINUX_LARGEFILE64
1412 struct rlimit orl;
1413 # else
1414 struct orlimit orl;
1415 # endif
1416 int error;
1417 int which;
1418
1419 if ((error = copyin(SCARG(uap, rlp), &orl, sizeof(orl))) != 0)
1420 return error;
1421
1422 which = linux_to_bsd_limit(SCARG(uap, which));
1423 if (which < 0)
1424 return -which;
1425
1426 linux_to_bsd_rlimit(&rl, &orl);
1427 return dosetrlimit(l, l->l_proc, which, &rl);
1428 }
1429
1430 # if !defined(__mips__) && !defined(__amd64__)
1431 /* XXX: this doesn't look 100% common, at least mips doesn't have it */
1432 int
1433 linux_sys_ugetrlimit(struct lwp *l, const struct linux_sys_ugetrlimit_args *uap, register_t *retval)
1434 {
1435 return linux_sys_getrlimit(l, (const void *)uap, retval);
1436 }
1437 # endif
1438
1439 /*
1440 * This gets called for unsupported syscalls. The difference to sys_nosys()
1441 * is that process does not get SIGSYS, the call just returns with ENOSYS.
1442 * This is the way Linux does it and glibc depends on this behaviour.
1443 */
1444 int
1445 linux_sys_nosys(struct lwp *l, const void *v, register_t *retval)
1446 {
1447 return (ENOSYS);
1448 }
1449
1450 int
1451 linux_sys_getpriority(struct lwp *l, const struct linux_sys_getpriority_args *uap, register_t *retval)
1452 {
1453 /* {
1454 syscallarg(int) which;
1455 syscallarg(int) who;
1456 } */
1457 struct sys_getpriority_args bsa;
1458 int error;
1459
1460 SCARG(&bsa, which) = SCARG(uap, which);
1461 SCARG(&bsa, who) = SCARG(uap, who);
1462
1463 if ((error = sys_getpriority(l, &bsa, retval)))
1464 return error;
1465
1466 *retval = NZERO - *retval;
1467
1468 return 0;
1469 }
1470
1471 int
1472 linux_do_sys_utimensat(struct lwp *l, int fd, const char *path, struct timespec *tsp, int flags, register_t *retval)
1473 {
1474 int follow, error;
1475
1476 follow = (flags & LINUX_AT_SYMLINK_NOFOLLOW) ? NOFOLLOW : FOLLOW;
1477
1478 if (path == NULL && fd != AT_FDCWD) {
1479 file_t *fp;
1480
1481 /* fd_getvnode() will use the descriptor for us */
1482 if ((error = fd_getvnode(fd, &fp)) != 0)
1483 return error;
1484 error = do_sys_utimensat(l, AT_FDCWD, fp->f_data, NULL, 0,
1485 tsp, UIO_SYSSPACE);
1486 fd_putfile(fd);
1487 return error;
1488 }
1489
1490 return do_sys_utimensat(l, fd, NULL, path, follow, tsp, UIO_SYSSPACE);
1491 }
1492
1493 int
1494 linux_sys_utimensat(struct lwp *l, const struct linux_sys_utimensat_args *uap,
1495 register_t *retval)
1496 {
1497 /* {
1498 syscallarg(int) fd;
1499 syscallarg(const char *) path;
1500 syscallarg(const struct linux_timespec *) times;
1501 syscallarg(int) flag;
1502 } */
1503 int error;
1504 struct linux_timespec lts[2];
1505 struct timespec *tsp = NULL, ts[2];
1506
1507 if (SCARG(uap, times)) {
1508 error = copyin(SCARG(uap, times), <s, sizeof(lts));
1509 if (error != 0)
1510 return error;
1511 linux_to_native_timespec(&ts[0], <s[0]);
1512 linux_to_native_timespec(&ts[1], <s[1]);
1513 tsp = ts;
1514 }
1515
1516 return linux_do_sys_utimensat(l, SCARG(uap, fd), SCARG(uap, path),
1517 tsp, SCARG(uap, flag), retval);
1518 }
1519