1 /*-
2 * SPDX-License-Identifier: BSD-3-Clause
3 *
4 * Copyright (c) 2002 Doug Rabson
5 * Copyright (c) 1994-1995 Søren Schmidt
6 * All rights reserved.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 * 1. Redistributions of source code must retain the above copyright
12 * notice, this list of conditions and the following disclaimer
13 * in this position and unchanged.
14 * 2. Redistributions in binary form must reproduce the above copyright
15 * notice, this list of conditions and the following disclaimer in the
16 * documentation and/or other materials provided with the distribution.
17 * 3. The name of the author may not be used to endorse or promote products
18 * derived from this software without specific prior written permission
19 *
20 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
21 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
22 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
23 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
24 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
25 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
26 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
27 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
28 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
29 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
30 */
31
32 #include <sys/param.h>
33 #include <sys/fcntl.h>
34 #include <sys/jail.h>
35 #include <sys/imgact.h>
36 #include <sys/limits.h>
37 #include <sys/lock.h>
38 #include <sys/membarrier.h>
39 #include <sys/msgbuf.h>
40 #include <sys/mqueue.h>
41 #include <sys/mutex.h>
42 #include <sys/poll.h>
43 #include <sys/priv.h>
44 #include <sys/proc.h>
45 #include <sys/procctl.h>
46 #include <sys/reboot.h>
47 #include <sys/random.h>
48 #include <sys/resourcevar.h>
49 #include <sys/rtprio.h>
50 #include <sys/sched.h>
51 #include <sys/smp.h>
52 #include <sys/stat.h>
53 #include <sys/syscallsubr.h>
54 #include <sys/sysctl.h>
55 #include <sys/sysent.h>
56 #include <sys/sysproto.h>
57 #include <sys/time.h>
58 #include <sys/unistd.h>
59 #include <sys/vmmeter.h>
60 #include <sys/vnode.h>
61
62 #include <security/audit/audit.h>
63 #include <security/mac/mac_framework.h>
64
65 #include <vm/pmap.h>
66 #include <vm/vm_map.h>
67 #include <vm/swap_pager.h>
68
69 #ifdef COMPAT_LINUX32
70 #include <machine/../linux32/linux.h>
71 #include <machine/../linux32/linux32_proto.h>
72 #else
73 #include <machine/../linux/linux.h>
74 #include <machine/../linux/linux_proto.h>
75 #endif
76
77 #include <compat/linux/linux_common.h>
78 #include <compat/linux/linux_dtrace.h>
79 #include <compat/linux/linux_file.h>
80 #include <compat/linux/linux_mib.h>
81 #include <compat/linux/linux_mmap.h>
82 #include <compat/linux/linux_signal.h>
83 #include <compat/linux/linux_time.h>
84 #include <compat/linux/linux_util.h>
85 #include <compat/linux/linux_emul.h>
86 #include <compat/linux/linux_misc.h>
87
88 int stclohz; /* Statistics clock frequency */
89
90 static unsigned int linux_to_bsd_resource[LINUX_RLIM_NLIMITS] = {
91 RLIMIT_CPU, RLIMIT_FSIZE, RLIMIT_DATA, RLIMIT_STACK,
92 RLIMIT_CORE, RLIMIT_RSS, RLIMIT_NPROC, RLIMIT_NOFILE,
93 RLIMIT_MEMLOCK, RLIMIT_AS
94 };
95
96 struct l_sysinfo {
97 l_long uptime; /* Seconds since boot */
98 l_ulong loads[3]; /* 1, 5, and 15 minute load averages */
99 #define LINUX_SYSINFO_LOADS_SCALE 65536
100 l_ulong totalram; /* Total usable main memory size */
101 l_ulong freeram; /* Available memory size */
102 l_ulong sharedram; /* Amount of shared memory */
103 l_ulong bufferram; /* Memory used by buffers */
104 l_ulong totalswap; /* Total swap space size */
105 l_ulong freeswap; /* swap space still available */
106 l_ushort procs; /* Number of current processes */
107 l_ushort pads;
108 l_ulong totalhigh;
109 l_ulong freehigh;
110 l_uint mem_unit;
111 char _f[20-2*sizeof(l_long)-sizeof(l_int)]; /* padding */
112 };
113
114 struct l_pselect6arg {
115 l_uintptr_t ss;
116 l_size_t ss_len;
117 };
118
119 static int linux_utimensat_lts_to_ts(struct l_timespec *,
120 struct timespec *);
121 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
122 static int linux_utimensat_lts64_to_ts(struct l_timespec64 *,
123 struct timespec *);
124 #endif
125 static int linux_common_utimensat(struct thread *, int,
126 const char *, struct timespec *, int);
127 static int linux_common_pselect6(struct thread *, l_int,
128 l_fd_set *, l_fd_set *, l_fd_set *,
129 struct timespec *, l_uintptr_t *);
130 static int linux_common_ppoll(struct thread *, struct pollfd *,
131 uint32_t, struct timespec *, l_sigset_t *,
132 l_size_t);
133 static int linux_pollin(struct thread *, struct pollfd *,
134 struct pollfd *, u_int);
135 static int linux_pollout(struct thread *, struct pollfd *,
136 struct pollfd *, u_int);
137
138 int
linux_sysinfo(struct thread * td,struct linux_sysinfo_args * args)139 linux_sysinfo(struct thread *td, struct linux_sysinfo_args *args)
140 {
141 struct l_sysinfo sysinfo;
142 int i, j;
143 struct timespec ts;
144
145 bzero(&sysinfo, sizeof(sysinfo));
146 getnanouptime(&ts);
147 if (ts.tv_nsec != 0)
148 ts.tv_sec++;
149 sysinfo.uptime = ts.tv_sec;
150
151 /* Use the information from the mib to get our load averages */
152 for (i = 0; i < 3; i++)
153 sysinfo.loads[i] = averunnable.ldavg[i] *
154 LINUX_SYSINFO_LOADS_SCALE / averunnable.fscale;
155
156 sysinfo.totalram = physmem * PAGE_SIZE;
157 sysinfo.freeram = (u_long)vm_free_count() * PAGE_SIZE;
158
159 /*
160 * sharedram counts pages allocated to named, swap-backed objects such
161 * as shared memory segments and tmpfs files. There is no cheap way to
162 * compute this, so just leave the field unpopulated. Linux itself only
163 * started setting this field in the 3.x timeframe.
164 */
165 sysinfo.sharedram = 0;
166 sysinfo.bufferram = 0;
167
168 swap_pager_status(&i, &j);
169 sysinfo.totalswap = i * PAGE_SIZE;
170 sysinfo.freeswap = (i - j) * PAGE_SIZE;
171
172 sysinfo.procs = nprocs;
173
174 /*
175 * Platforms supported by the emulation layer do not have a notion of
176 * high memory.
177 */
178 sysinfo.totalhigh = 0;
179 sysinfo.freehigh = 0;
180
181 sysinfo.mem_unit = 1;
182
183 return (copyout(&sysinfo, args->info, sizeof(sysinfo)));
184 }
185
186 #ifdef LINUX_LEGACY_SYSCALLS
187 int
linux_alarm(struct thread * td,struct linux_alarm_args * args)188 linux_alarm(struct thread *td, struct linux_alarm_args *args)
189 {
190 struct itimerval it, old_it;
191 u_int secs;
192 int error __diagused;
193
194 secs = args->secs;
195 /*
196 * Linux alarm() is always successful. Limit secs to INT32_MAX / 2
197 * to match kern_setitimer()'s limit to avoid error from it.
198 *
199 * XXX. Linux limit secs to INT_MAX on 32 and does not limit on 64-bit
200 * platforms.
201 */
202 if (secs > INT32_MAX / 2)
203 secs = INT32_MAX / 2;
204
205 it.it_value.tv_sec = secs;
206 it.it_value.tv_usec = 0;
207 timevalclear(&it.it_interval);
208 error = kern_setitimer(td, ITIMER_REAL, &it, &old_it);
209 KASSERT(error == 0, ("kern_setitimer returns %d", error));
210
211 if ((old_it.it_value.tv_sec == 0 && old_it.it_value.tv_usec > 0) ||
212 old_it.it_value.tv_usec >= 500000)
213 old_it.it_value.tv_sec++;
214 td->td_retval[0] = old_it.it_value.tv_sec;
215 return (0);
216 }
217 #endif
218
219 int
linux_brk(struct thread * td,struct linux_brk_args * args)220 linux_brk(struct thread *td, struct linux_brk_args *args)
221 {
222 struct vmspace *vm = td->td_proc->p_vmspace;
223 uintptr_t new, old;
224
225 old = (uintptr_t)vm->vm_daddr + ctob(vm->vm_dsize);
226 new = (uintptr_t)args->dsend;
227 if ((caddr_t)new > vm->vm_daddr && !kern_break(td, &new))
228 td->td_retval[0] = (register_t)new;
229 else
230 td->td_retval[0] = (register_t)old;
231
232 return (0);
233 }
234
235 #ifdef LINUX_LEGACY_SYSCALLS
236 int
linux_select(struct thread * td,struct linux_select_args * args)237 linux_select(struct thread *td, struct linux_select_args *args)
238 {
239 l_timeval ltv;
240 struct timeval tv0, tv1, utv, *tvp;
241 int error;
242
243 /*
244 * Store current time for computation of the amount of
245 * time left.
246 */
247 if (args->timeout) {
248 if ((error = copyin(args->timeout, <v, sizeof(ltv))))
249 goto select_out;
250 utv.tv_sec = ltv.tv_sec;
251 utv.tv_usec = ltv.tv_usec;
252
253 if (itimerfix(&utv)) {
254 /*
255 * The timeval was invalid. Convert it to something
256 * valid that will act as it does under Linux.
257 */
258 utv.tv_sec += utv.tv_usec / 1000000;
259 utv.tv_usec %= 1000000;
260 if (utv.tv_usec < 0) {
261 utv.tv_sec -= 1;
262 utv.tv_usec += 1000000;
263 }
264 if (utv.tv_sec < 0)
265 timevalclear(&utv);
266 }
267 microtime(&tv0);
268 tvp = &utv;
269 } else
270 tvp = NULL;
271
272 error = kern_select(td, args->nfds, args->readfds, args->writefds,
273 args->exceptfds, tvp, LINUX_NFDBITS);
274 if (error)
275 goto select_out;
276
277 if (args->timeout) {
278 if (td->td_retval[0]) {
279 /*
280 * Compute how much time was left of the timeout,
281 * by subtracting the current time and the time
282 * before we started the call, and subtracting
283 * that result from the user-supplied value.
284 */
285 microtime(&tv1);
286 timevalsub(&tv1, &tv0);
287 timevalsub(&utv, &tv1);
288 if (utv.tv_sec < 0)
289 timevalclear(&utv);
290 } else
291 timevalclear(&utv);
292 ltv.tv_sec = utv.tv_sec;
293 ltv.tv_usec = utv.tv_usec;
294 if ((error = copyout(<v, args->timeout, sizeof(ltv))))
295 goto select_out;
296 }
297
298 select_out:
299 return (error);
300 }
301 #endif
302
303 int
linux_mremap(struct thread * td,struct linux_mremap_args * args)304 linux_mremap(struct thread *td, struct linux_mremap_args *args)
305 {
306 uintptr_t addr;
307 size_t len;
308 int error = 0;
309
310 if (args->flags & ~(LINUX_MREMAP_FIXED | LINUX_MREMAP_MAYMOVE)) {
311 td->td_retval[0] = 0;
312 return (EINVAL);
313 }
314
315 /*
316 * Check for the page alignment.
317 * Linux defines PAGE_MASK to be FreeBSD ~PAGE_MASK.
318 */
319 if (args->addr & PAGE_MASK) {
320 td->td_retval[0] = 0;
321 return (EINVAL);
322 }
323
324 args->new_len = round_page(args->new_len);
325 args->old_len = round_page(args->old_len);
326
327 if (args->new_len > args->old_len) {
328 td->td_retval[0] = 0;
329 return (ENOMEM);
330 }
331
332 if (args->new_len < args->old_len) {
333 addr = args->addr + args->new_len;
334 len = args->old_len - args->new_len;
335 error = kern_munmap(td, addr, len);
336 }
337
338 td->td_retval[0] = error ? 0 : (uintptr_t)args->addr;
339 return (error);
340 }
341
342 #define LINUX_MS_ASYNC 0x0001
343 #define LINUX_MS_INVALIDATE 0x0002
344 #define LINUX_MS_SYNC 0x0004
345
346 int
linux_msync(struct thread * td,struct linux_msync_args * args)347 linux_msync(struct thread *td, struct linux_msync_args *args)
348 {
349
350 return (kern_msync(td, args->addr, args->len,
351 args->fl & ~LINUX_MS_SYNC));
352 }
353
354 int
linux_mprotect(struct thread * td,struct linux_mprotect_args * uap)355 linux_mprotect(struct thread *td, struct linux_mprotect_args *uap)
356 {
357
358 return (linux_mprotect_common(td, PTROUT(uap->addr), uap->len,
359 uap->prot));
360 }
361
362 int
linux_madvise(struct thread * td,struct linux_madvise_args * uap)363 linux_madvise(struct thread *td, struct linux_madvise_args *uap)
364 {
365
366 return (linux_madvise_common(td, PTROUT(uap->addr), uap->len,
367 uap->behav));
368 }
369
370 int
linux_mmap2(struct thread * td,struct linux_mmap2_args * uap)371 linux_mmap2(struct thread *td, struct linux_mmap2_args *uap)
372 {
373 #if defined(LINUX_ARCHWANT_MMAP2PGOFF)
374 /*
375 * For architectures with sizeof (off_t) < sizeof (loff_t) mmap is
376 * implemented with mmap2 syscall and the offset is represented in
377 * multiples of page size.
378 */
379 return (linux_mmap_common(td, PTROUT(uap->addr), uap->len, uap->prot,
380 uap->flags, uap->fd, (uint64_t)(uint32_t)uap->pgoff * PAGE_SIZE));
381 #else
382 return (linux_mmap_common(td, PTROUT(uap->addr), uap->len, uap->prot,
383 uap->flags, uap->fd, uap->pgoff));
384 #endif
385 }
386
387 #ifdef LINUX_LEGACY_SYSCALLS
388 int
linux_time(struct thread * td,struct linux_time_args * args)389 linux_time(struct thread *td, struct linux_time_args *args)
390 {
391 struct timeval tv;
392 l_time_t tm;
393 int error;
394
395 microtime(&tv);
396 tm = tv.tv_sec;
397 if (args->tm && (error = copyout(&tm, args->tm, sizeof(tm))))
398 return (error);
399 td->td_retval[0] = tm;
400 return (0);
401 }
402 #endif
403
404 struct l_times_argv {
405 l_clock_t tms_utime;
406 l_clock_t tms_stime;
407 l_clock_t tms_cutime;
408 l_clock_t tms_cstime;
409 };
410
411 /*
412 * Glibc versions prior to 2.2.1 always use hard-coded CLK_TCK value.
413 * Since 2.2.1 Glibc uses value exported from kernel via AT_CLKTCK
414 * auxiliary vector entry.
415 */
416 #define CLK_TCK 100
417
418 #define CONVOTCK(r) (r.tv_sec * CLK_TCK + r.tv_usec / (1000000 / CLK_TCK))
419 #define CONVNTCK(r) (r.tv_sec * stclohz + r.tv_usec / (1000000 / stclohz))
420
421 #define CONVTCK(r) (linux_kernver(td) >= LINUX_KERNVER(2,4,0) ? \
422 CONVNTCK(r) : CONVOTCK(r))
423
424 int
linux_times(struct thread * td,struct linux_times_args * args)425 linux_times(struct thread *td, struct linux_times_args *args)
426 {
427 struct timeval tv, utime, stime, cutime, cstime;
428 struct l_times_argv tms;
429 struct proc *p;
430 int error;
431
432 if (args->buf != NULL) {
433 p = td->td_proc;
434 PROC_LOCK(p);
435 PROC_STATLOCK(p);
436 calcru(p, &utime, &stime);
437 PROC_STATUNLOCK(p);
438 calccru(p, &cutime, &cstime);
439 PROC_UNLOCK(p);
440
441 tms.tms_utime = CONVTCK(utime);
442 tms.tms_stime = CONVTCK(stime);
443
444 tms.tms_cutime = CONVTCK(cutime);
445 tms.tms_cstime = CONVTCK(cstime);
446
447 if ((error = copyout(&tms, args->buf, sizeof(tms))))
448 return (error);
449 }
450
451 microuptime(&tv);
452 td->td_retval[0] = (int)CONVTCK(tv);
453 return (0);
454 }
455
456 int
linux_newuname(struct thread * td,struct linux_newuname_args * args)457 linux_newuname(struct thread *td, struct linux_newuname_args *args)
458 {
459 struct l_new_utsname utsname;
460 char osname[LINUX_MAX_UTSNAME];
461 char osrelease[LINUX_MAX_UTSNAME];
462 char *p;
463
464 linux_get_osname(td, osname);
465 linux_get_osrelease(td, osrelease);
466
467 bzero(&utsname, sizeof(utsname));
468 strlcpy(utsname.sysname, osname, LINUX_MAX_UTSNAME);
469 getcredhostname(td->td_ucred, utsname.nodename, LINUX_MAX_UTSNAME);
470 getcreddomainname(td->td_ucred, utsname.domainname, LINUX_MAX_UTSNAME);
471 strlcpy(utsname.release, osrelease, LINUX_MAX_UTSNAME);
472 strlcpy(utsname.version, version, LINUX_MAX_UTSNAME);
473 for (p = utsname.version; *p != '\0'; ++p)
474 if (*p == '\n') {
475 *p = '\0';
476 break;
477 }
478 #if defined(__amd64__)
479 /*
480 * On amd64, Linux uname(2) needs to return "x86_64"
481 * for both 64-bit and 32-bit applications. On 32-bit,
482 * the string returned by getauxval(AT_PLATFORM) needs
483 * to remain "i686", though.
484 */
485 #if defined(COMPAT_LINUX32)
486 if (linux32_emulate_i386)
487 strlcpy(utsname.machine, "i686", LINUX_MAX_UTSNAME);
488 else
489 #endif
490 strlcpy(utsname.machine, "x86_64", LINUX_MAX_UTSNAME);
491 #elif defined(__aarch64__)
492 strlcpy(utsname.machine, "aarch64", LINUX_MAX_UTSNAME);
493 #elif defined(__i386__)
494 strlcpy(utsname.machine, "i686", LINUX_MAX_UTSNAME);
495 #endif
496
497 return (copyout(&utsname, args->buf, sizeof(utsname)));
498 }
499
500 struct l_utimbuf {
501 l_time_t l_actime;
502 l_time_t l_modtime;
503 };
504
505 #ifdef LINUX_LEGACY_SYSCALLS
506 int
linux_utime(struct thread * td,struct linux_utime_args * args)507 linux_utime(struct thread *td, struct linux_utime_args *args)
508 {
509 struct timeval tv[2], *tvp;
510 struct l_utimbuf lut;
511 int error;
512
513 if (args->times) {
514 if ((error = copyin(args->times, &lut, sizeof lut)) != 0)
515 return (error);
516 tv[0].tv_sec = lut.l_actime;
517 tv[0].tv_usec = 0;
518 tv[1].tv_sec = lut.l_modtime;
519 tv[1].tv_usec = 0;
520 tvp = tv;
521 } else
522 tvp = NULL;
523
524 return (kern_utimesat(td, AT_FDCWD, args->fname, UIO_USERSPACE,
525 tvp, UIO_SYSSPACE));
526 }
527 #endif
528
529 #ifdef LINUX_LEGACY_SYSCALLS
530 int
linux_utimes(struct thread * td,struct linux_utimes_args * args)531 linux_utimes(struct thread *td, struct linux_utimes_args *args)
532 {
533 l_timeval ltv[2];
534 struct timeval tv[2], *tvp = NULL;
535 int error;
536
537 if (args->tptr != NULL) {
538 if ((error = copyin(args->tptr, ltv, sizeof ltv)) != 0)
539 return (error);
540 tv[0].tv_sec = ltv[0].tv_sec;
541 tv[0].tv_usec = ltv[0].tv_usec;
542 tv[1].tv_sec = ltv[1].tv_sec;
543 tv[1].tv_usec = ltv[1].tv_usec;
544 tvp = tv;
545 }
546
547 return (kern_utimesat(td, AT_FDCWD, args->fname, UIO_USERSPACE,
548 tvp, UIO_SYSSPACE));
549 }
550 #endif
551
552 static int
linux_utimensat_lts_to_ts(struct l_timespec * l_times,struct timespec * times)553 linux_utimensat_lts_to_ts(struct l_timespec *l_times, struct timespec *times)
554 {
555
556 if (l_times->tv_nsec != LINUX_UTIME_OMIT &&
557 l_times->tv_nsec != LINUX_UTIME_NOW &&
558 (l_times->tv_nsec < 0 || l_times->tv_nsec > 999999999))
559 return (EINVAL);
560
561 times->tv_sec = l_times->tv_sec;
562 switch (l_times->tv_nsec)
563 {
564 case LINUX_UTIME_OMIT:
565 times->tv_nsec = UTIME_OMIT;
566 break;
567 case LINUX_UTIME_NOW:
568 times->tv_nsec = UTIME_NOW;
569 break;
570 default:
571 times->tv_nsec = l_times->tv_nsec;
572 }
573
574 return (0);
575 }
576
577 static int
linux_common_utimensat(struct thread * td,int ldfd,const char * pathname,struct timespec * timesp,int lflags)578 linux_common_utimensat(struct thread *td, int ldfd, const char *pathname,
579 struct timespec *timesp, int lflags)
580 {
581 int dfd, flags = 0;
582
583 dfd = (ldfd == LINUX_AT_FDCWD) ? AT_FDCWD : ldfd;
584
585 if (lflags & ~(LINUX_AT_SYMLINK_NOFOLLOW | LINUX_AT_EMPTY_PATH))
586 return (EINVAL);
587
588 if (timesp != NULL) {
589 /* This breaks POSIX, but is what the Linux kernel does
590 * _on purpose_ (documented in the man page for utimensat(2)),
591 * so we must follow that behaviour. */
592 if (timesp[0].tv_nsec == UTIME_OMIT &&
593 timesp[1].tv_nsec == UTIME_OMIT)
594 return (0);
595 }
596
597 if (lflags & LINUX_AT_SYMLINK_NOFOLLOW)
598 flags |= AT_SYMLINK_NOFOLLOW;
599 if (lflags & LINUX_AT_EMPTY_PATH)
600 flags |= AT_EMPTY_PATH;
601
602 if (pathname != NULL)
603 return (kern_utimensat(td, dfd, pathname,
604 UIO_USERSPACE, timesp, UIO_SYSSPACE, flags));
605
606 if (lflags != 0)
607 return (EINVAL);
608
609 return (kern_futimens(td, dfd, timesp, UIO_SYSSPACE));
610 }
611
612 int
linux_utimensat(struct thread * td,struct linux_utimensat_args * args)613 linux_utimensat(struct thread *td, struct linux_utimensat_args *args)
614 {
615 struct l_timespec l_times[2];
616 struct timespec times[2], *timesp;
617 int error;
618
619 if (args->times != NULL) {
620 error = copyin(args->times, l_times, sizeof(l_times));
621 if (error != 0)
622 return (error);
623
624 error = linux_utimensat_lts_to_ts(&l_times[0], ×[0]);
625 if (error != 0)
626 return (error);
627 error = linux_utimensat_lts_to_ts(&l_times[1], ×[1]);
628 if (error != 0)
629 return (error);
630 timesp = times;
631 } else
632 timesp = NULL;
633
634 return (linux_common_utimensat(td, args->dfd, args->pathname,
635 timesp, args->flags));
636 }
637
638 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
639 static int
linux_utimensat_lts64_to_ts(struct l_timespec64 * l_times,struct timespec * times)640 linux_utimensat_lts64_to_ts(struct l_timespec64 *l_times, struct timespec *times)
641 {
642
643 /* Zero out the padding in compat mode. */
644 l_times->tv_nsec &= 0xFFFFFFFFUL;
645
646 if (l_times->tv_nsec != LINUX_UTIME_OMIT &&
647 l_times->tv_nsec != LINUX_UTIME_NOW &&
648 (l_times->tv_nsec < 0 || l_times->tv_nsec > 999999999))
649 return (EINVAL);
650
651 times->tv_sec = l_times->tv_sec;
652 switch (l_times->tv_nsec)
653 {
654 case LINUX_UTIME_OMIT:
655 times->tv_nsec = UTIME_OMIT;
656 break;
657 case LINUX_UTIME_NOW:
658 times->tv_nsec = UTIME_NOW;
659 break;
660 default:
661 times->tv_nsec = l_times->tv_nsec;
662 }
663
664 return (0);
665 }
666
667 int
linux_utimensat_time64(struct thread * td,struct linux_utimensat_time64_args * args)668 linux_utimensat_time64(struct thread *td, struct linux_utimensat_time64_args *args)
669 {
670 struct l_timespec64 l_times[2];
671 struct timespec times[2], *timesp;
672 int error;
673
674 if (args->times64 != NULL) {
675 error = copyin(args->times64, l_times, sizeof(l_times));
676 if (error != 0)
677 return (error);
678
679 error = linux_utimensat_lts64_to_ts(&l_times[0], ×[0]);
680 if (error != 0)
681 return (error);
682 error = linux_utimensat_lts64_to_ts(&l_times[1], ×[1]);
683 if (error != 0)
684 return (error);
685 timesp = times;
686 } else
687 timesp = NULL;
688
689 return (linux_common_utimensat(td, args->dfd, args->pathname,
690 timesp, args->flags));
691 }
692 #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */
693
694 #ifdef LINUX_LEGACY_SYSCALLS
695 int
linux_futimesat(struct thread * td,struct linux_futimesat_args * args)696 linux_futimesat(struct thread *td, struct linux_futimesat_args *args)
697 {
698 l_timeval ltv[2];
699 struct timeval tv[2], *tvp = NULL;
700 int error, dfd;
701
702 dfd = (args->dfd == LINUX_AT_FDCWD) ? AT_FDCWD : args->dfd;
703
704 if (args->utimes != NULL) {
705 if ((error = copyin(args->utimes, ltv, sizeof ltv)) != 0)
706 return (error);
707 tv[0].tv_sec = ltv[0].tv_sec;
708 tv[0].tv_usec = ltv[0].tv_usec;
709 tv[1].tv_sec = ltv[1].tv_sec;
710 tv[1].tv_usec = ltv[1].tv_usec;
711 tvp = tv;
712 }
713
714 return (kern_utimesat(td, dfd, args->filename, UIO_USERSPACE,
715 tvp, UIO_SYSSPACE));
716 }
717 #endif
718
719 static int
linux_common_wait(struct thread * td,idtype_t idtype,int id,int * statusp,int options,void * rup,l_siginfo_t * infop)720 linux_common_wait(struct thread *td, idtype_t idtype, int id, int *statusp,
721 int options, void *rup, l_siginfo_t *infop)
722 {
723 l_siginfo_t lsi;
724 siginfo_t siginfo;
725 struct __wrusage wru;
726 int error, status, tmpstat, sig;
727
728 error = kern_wait6(td, idtype, id, &status, options,
729 rup != NULL ? &wru : NULL, &siginfo);
730
731 if (error == 0 && statusp) {
732 tmpstat = status & 0xffff;
733 if (WIFSIGNALED(tmpstat)) {
734 tmpstat = (tmpstat & 0xffffff80) |
735 bsd_to_linux_signal(WTERMSIG(tmpstat));
736 } else if (WIFSTOPPED(tmpstat)) {
737 tmpstat = (tmpstat & 0xffff00ff) |
738 (bsd_to_linux_signal(WSTOPSIG(tmpstat)) << 8);
739 #if defined(__aarch64__) || (defined(__amd64__) && !defined(COMPAT_LINUX32))
740 if (WSTOPSIG(status) == SIGTRAP) {
741 tmpstat = linux_ptrace_status(td,
742 siginfo.si_pid, tmpstat);
743 }
744 #endif
745 } else if (WIFCONTINUED(tmpstat)) {
746 tmpstat = 0xffff;
747 }
748 error = copyout(&tmpstat, statusp, sizeof(int));
749 }
750 if (error == 0 && rup != NULL)
751 error = linux_copyout_rusage(&wru.wru_self, rup);
752 if (error == 0 && infop != NULL && td->td_retval[0] != 0) {
753 sig = bsd_to_linux_signal(siginfo.si_signo);
754 memset(&lsi, 0, sizeof(lsi));
755 siginfo_to_lsiginfo(&siginfo, &lsi, sig);
756 error = copyout(&lsi, infop, sizeof(lsi));
757 }
758
759 return (error);
760 }
761
762 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
763 int
linux_waitpid(struct thread * td,struct linux_waitpid_args * args)764 linux_waitpid(struct thread *td, struct linux_waitpid_args *args)
765 {
766 struct linux_wait4_args wait4_args = {
767 .pid = args->pid,
768 .status = args->status,
769 .options = args->options,
770 .rusage = NULL,
771 };
772
773 return (linux_wait4(td, &wait4_args));
774 }
775 #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */
776
777 int
linux_wait4(struct thread * td,struct linux_wait4_args * args)778 linux_wait4(struct thread *td, struct linux_wait4_args *args)
779 {
780 struct proc *p;
781 int options, id, idtype;
782
783 if (args->options & ~(LINUX_WUNTRACED | LINUX_WNOHANG |
784 LINUX_WCONTINUED | __WCLONE | __WNOTHREAD | __WALL))
785 return (EINVAL);
786
787 /* -INT_MIN is not defined. */
788 if (args->pid == INT_MIN)
789 return (ESRCH);
790
791 options = 0;
792 linux_to_bsd_waitopts(args->options, &options);
793
794 /*
795 * For backward compatibility we implicitly add flags WEXITED
796 * and WTRAPPED here.
797 */
798 options |= WEXITED | WTRAPPED;
799
800 if (args->pid == WAIT_ANY) {
801 idtype = P_ALL;
802 id = 0;
803 } else if (args->pid < 0) {
804 idtype = P_PGID;
805 id = (id_t)-args->pid;
806 } else if (args->pid == 0) {
807 idtype = P_PGID;
808 p = td->td_proc;
809 PROC_LOCK(p);
810 id = p->p_pgid;
811 PROC_UNLOCK(p);
812 } else {
813 idtype = P_PID;
814 id = (id_t)args->pid;
815 }
816
817 return (linux_common_wait(td, idtype, id, args->status, options,
818 args->rusage, NULL));
819 }
820
821 int
linux_waitid(struct thread * td,struct linux_waitid_args * args)822 linux_waitid(struct thread *td, struct linux_waitid_args *args)
823 {
824 idtype_t idtype;
825 int error, options;
826 struct proc *p;
827 pid_t id;
828
829 if (args->options & ~(LINUX_WNOHANG | LINUX_WNOWAIT | LINUX_WEXITED |
830 LINUX_WSTOPPED | LINUX_WCONTINUED | __WCLONE | __WNOTHREAD | __WALL))
831 return (EINVAL);
832
833 options = 0;
834 linux_to_bsd_waitopts(args->options, &options);
835
836 id = args->id;
837 switch (args->idtype) {
838 case LINUX_P_ALL:
839 idtype = P_ALL;
840 break;
841 case LINUX_P_PID:
842 if (args->id <= 0)
843 return (EINVAL);
844 idtype = P_PID;
845 break;
846 case LINUX_P_PGID:
847 if (linux_kernver(td) >= LINUX_KERNVER(5,4,0) && args->id == 0) {
848 p = td->td_proc;
849 PROC_LOCK(p);
850 id = p->p_pgid;
851 PROC_UNLOCK(p);
852 } else if (args->id <= 0)
853 return (EINVAL);
854 idtype = P_PGID;
855 break;
856 case LINUX_P_PIDFD:
857 LINUX_RATELIMIT_MSG("unsupported waitid P_PIDFD idtype");
858 return (ENOSYS);
859 default:
860 return (EINVAL);
861 }
862
863 error = linux_common_wait(td, idtype, id, NULL, options,
864 args->rusage, args->info);
865 td->td_retval[0] = 0;
866
867 return (error);
868 }
869
870 #ifdef LINUX_LEGACY_SYSCALLS
871 int
linux_mknod(struct thread * td,struct linux_mknod_args * args)872 linux_mknod(struct thread *td, struct linux_mknod_args *args)
873 {
874 int error;
875
876 switch (args->mode & S_IFMT) {
877 case S_IFIFO:
878 case S_IFSOCK:
879 error = kern_mkfifoat(td, AT_FDCWD, args->path, UIO_USERSPACE,
880 args->mode);
881 break;
882
883 case S_IFCHR:
884 case S_IFBLK:
885 error = kern_mknodat(td, AT_FDCWD, args->path, UIO_USERSPACE,
886 args->mode, linux_decode_dev(args->dev));
887 break;
888
889 case S_IFDIR:
890 error = EPERM;
891 break;
892
893 case 0:
894 args->mode |= S_IFREG;
895 /* FALLTHROUGH */
896 case S_IFREG:
897 error = kern_openat(td, AT_FDCWD, args->path, UIO_USERSPACE,
898 O_WRONLY | O_CREAT | O_TRUNC, args->mode);
899 if (error == 0)
900 kern_close(td, td->td_retval[0]);
901 break;
902
903 default:
904 error = EINVAL;
905 break;
906 }
907 return (error);
908 }
909 #endif
910
911 int
linux_mknodat(struct thread * td,struct linux_mknodat_args * args)912 linux_mknodat(struct thread *td, struct linux_mknodat_args *args)
913 {
914 int error, dfd;
915
916 dfd = (args->dfd == LINUX_AT_FDCWD) ? AT_FDCWD : args->dfd;
917
918 switch (args->mode & S_IFMT) {
919 case S_IFIFO:
920 case S_IFSOCK:
921 error = kern_mkfifoat(td, dfd, args->filename, UIO_USERSPACE,
922 args->mode);
923 break;
924
925 case S_IFCHR:
926 case S_IFBLK:
927 error = kern_mknodat(td, dfd, args->filename, UIO_USERSPACE,
928 args->mode, linux_decode_dev(args->dev));
929 break;
930
931 case S_IFDIR:
932 error = EPERM;
933 break;
934
935 case 0:
936 args->mode |= S_IFREG;
937 /* FALLTHROUGH */
938 case S_IFREG:
939 error = kern_openat(td, dfd, args->filename, UIO_USERSPACE,
940 O_WRONLY | O_CREAT | O_TRUNC, args->mode);
941 if (error == 0)
942 kern_close(td, td->td_retval[0]);
943 break;
944
945 default:
946 error = EINVAL;
947 break;
948 }
949 return (error);
950 }
951
952 /*
953 * UGH! This is just about the dumbest idea I've ever heard!!
954 */
955 int
linux_personality(struct thread * td,struct linux_personality_args * args)956 linux_personality(struct thread *td, struct linux_personality_args *args)
957 {
958 struct linux_pemuldata *pem;
959 struct proc *p = td->td_proc;
960 uint32_t old;
961
962 PROC_LOCK(p);
963 pem = pem_find(p);
964 old = pem->persona;
965 if (args->per != 0xffffffff)
966 pem->persona = args->per;
967 PROC_UNLOCK(p);
968
969 td->td_retval[0] = old;
970 return (0);
971 }
972
973 struct l_itimerval {
974 l_timeval it_interval;
975 l_timeval it_value;
976 };
977
978 #define B2L_ITIMERVAL(bip, lip) \
979 (bip)->it_interval.tv_sec = (lip)->it_interval.tv_sec; \
980 (bip)->it_interval.tv_usec = (lip)->it_interval.tv_usec; \
981 (bip)->it_value.tv_sec = (lip)->it_value.tv_sec; \
982 (bip)->it_value.tv_usec = (lip)->it_value.tv_usec;
983
984 int
linux_setitimer(struct thread * td,struct linux_setitimer_args * uap)985 linux_setitimer(struct thread *td, struct linux_setitimer_args *uap)
986 {
987 int error;
988 struct l_itimerval ls;
989 struct itimerval aitv, oitv;
990
991 if (uap->itv == NULL) {
992 uap->itv = uap->oitv;
993 return (linux_getitimer(td, (struct linux_getitimer_args *)uap));
994 }
995
996 error = copyin(uap->itv, &ls, sizeof(ls));
997 if (error != 0)
998 return (error);
999 B2L_ITIMERVAL(&aitv, &ls);
1000 error = kern_setitimer(td, uap->which, &aitv, &oitv);
1001 if (error != 0 || uap->oitv == NULL)
1002 return (error);
1003 B2L_ITIMERVAL(&ls, &oitv);
1004
1005 return (copyout(&ls, uap->oitv, sizeof(ls)));
1006 }
1007
1008 int
linux_getitimer(struct thread * td,struct linux_getitimer_args * uap)1009 linux_getitimer(struct thread *td, struct linux_getitimer_args *uap)
1010 {
1011 int error;
1012 struct l_itimerval ls;
1013 struct itimerval aitv;
1014
1015 error = kern_getitimer(td, uap->which, &aitv);
1016 if (error != 0)
1017 return (error);
1018 B2L_ITIMERVAL(&ls, &aitv);
1019 return (copyout(&ls, uap->itv, sizeof(ls)));
1020 }
1021
1022 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
1023 int
linux_nice(struct thread * td,struct linux_nice_args * args)1024 linux_nice(struct thread *td, struct linux_nice_args *args)
1025 {
1026
1027 return (kern_setpriority(td, PRIO_PROCESS, 0, args->inc));
1028 }
1029 #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */
1030
1031 int
linux_setgroups(struct thread * td,struct linux_setgroups_args * args)1032 linux_setgroups(struct thread *td, struct linux_setgroups_args *args)
1033 {
1034 const int ngrp = args->gidsetsize;
1035 struct ucred *newcred, *oldcred;
1036 l_gid_t *linux_gidset;
1037 int error;
1038 struct proc *p;
1039
1040 if (ngrp < 0 || ngrp > ngroups_max)
1041 return (EINVAL);
1042 linux_gidset = malloc(ngrp * sizeof(*linux_gidset), M_LINUX, M_WAITOK);
1043 error = copyin(args->grouplist, linux_gidset, ngrp * sizeof(l_gid_t));
1044 if (error)
1045 goto out;
1046
1047 newcred = crget();
1048 crextend(newcred, ngrp);
1049 p = td->td_proc;
1050 PROC_LOCK(p);
1051 oldcred = crcopysafe(p, newcred);
1052
1053 if ((error = priv_check_cred(oldcred, PRIV_CRED_SETGROUPS)) != 0) {
1054 PROC_UNLOCK(p);
1055 crfree(newcred);
1056 goto out;
1057 }
1058
1059 newcred->cr_ngroups = ngrp;
1060 for (int i = 0; i < ngrp; i++)
1061 newcred->cr_groups[i] = linux_gidset[i];
1062 newcred->cr_flags |= CRED_FLAG_GROUPSET;
1063
1064 setsugid(p);
1065 proc_set_cred(p, newcred);
1066 PROC_UNLOCK(p);
1067 crfree(oldcred);
1068 error = 0;
1069 out:
1070 free(linux_gidset, M_LINUX);
1071 return (error);
1072 }
1073
1074 int
linux_getgroups(struct thread * td,struct linux_getgroups_args * args)1075 linux_getgroups(struct thread *td, struct linux_getgroups_args *args)
1076 {
1077 const struct ucred *const cred = td->td_ucred;
1078 l_gid_t *linux_gidset;
1079 int ngrp, error;
1080
1081 ngrp = args->gidsetsize;
1082
1083 if (ngrp == 0) {
1084 td->td_retval[0] = cred->cr_ngroups;
1085 return (0);
1086 }
1087 if (ngrp < cred->cr_ngroups)
1088 return (EINVAL);
1089
1090 ngrp = cred->cr_ngroups;
1091
1092 linux_gidset = malloc(ngrp * sizeof(*linux_gidset), M_LINUX, M_WAITOK);
1093 for (int i = 0; i < ngrp; ++i)
1094 linux_gidset[i] = cred->cr_groups[i];
1095
1096 error = copyout(linux_gidset, args->grouplist, ngrp * sizeof(l_gid_t));
1097 free(linux_gidset, M_LINUX);
1098
1099 if (error != 0)
1100 return (error);
1101
1102 td->td_retval[0] = ngrp;
1103 return (0);
1104 }
1105
1106 static bool
linux_get_dummy_limit(struct thread * td,l_uint resource,struct rlimit * rlim)1107 linux_get_dummy_limit(struct thread *td, l_uint resource, struct rlimit *rlim)
1108 {
1109 ssize_t size;
1110 int res, error;
1111
1112 if (linux_dummy_rlimits == 0)
1113 return (false);
1114
1115 switch (resource) {
1116 case LINUX_RLIMIT_LOCKS:
1117 case LINUX_RLIMIT_RTTIME:
1118 rlim->rlim_cur = LINUX_RLIM_INFINITY;
1119 rlim->rlim_max = LINUX_RLIM_INFINITY;
1120 return (true);
1121 case LINUX_RLIMIT_NICE:
1122 case LINUX_RLIMIT_RTPRIO:
1123 rlim->rlim_cur = 0;
1124 rlim->rlim_max = 0;
1125 return (true);
1126 case LINUX_RLIMIT_SIGPENDING:
1127 error = kernel_sysctlbyname(td,
1128 "kern.sigqueue.max_pending_per_proc",
1129 &res, &size, 0, 0, 0, 0);
1130 if (error != 0)
1131 return (false);
1132 rlim->rlim_cur = res;
1133 rlim->rlim_max = res;
1134 return (true);
1135 case LINUX_RLIMIT_MSGQUEUE:
1136 error = kernel_sysctlbyname(td,
1137 "kern.ipc.msgmnb", &res, &size, 0, 0, 0, 0);
1138 if (error != 0)
1139 return (false);
1140 rlim->rlim_cur = res;
1141 rlim->rlim_max = res;
1142 return (true);
1143 default:
1144 return (false);
1145 }
1146 }
1147
1148 int
linux_setrlimit(struct thread * td,struct linux_setrlimit_args * args)1149 linux_setrlimit(struct thread *td, struct linux_setrlimit_args *args)
1150 {
1151 struct rlimit bsd_rlim;
1152 struct l_rlimit rlim;
1153 u_int which;
1154 int error;
1155
1156 if (args->resource >= LINUX_RLIM_NLIMITS)
1157 return (EINVAL);
1158
1159 which = linux_to_bsd_resource[args->resource];
1160 if (which == -1)
1161 return (EINVAL);
1162
1163 error = copyin(args->rlim, &rlim, sizeof(rlim));
1164 if (error)
1165 return (error);
1166
1167 bsd_rlim.rlim_cur = (rlim_t)rlim.rlim_cur;
1168 bsd_rlim.rlim_max = (rlim_t)rlim.rlim_max;
1169 return (kern_setrlimit(td, which, &bsd_rlim));
1170 }
1171
1172 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
1173 int
linux_old_getrlimit(struct thread * td,struct linux_old_getrlimit_args * args)1174 linux_old_getrlimit(struct thread *td, struct linux_old_getrlimit_args *args)
1175 {
1176 struct l_rlimit rlim;
1177 struct rlimit bsd_rlim;
1178 u_int which;
1179
1180 if (linux_get_dummy_limit(td, args->resource, &bsd_rlim)) {
1181 rlim.rlim_cur = bsd_rlim.rlim_cur;
1182 rlim.rlim_max = bsd_rlim.rlim_max;
1183 return (copyout(&rlim, args->rlim, sizeof(rlim)));
1184 }
1185
1186 if (args->resource >= LINUX_RLIM_NLIMITS)
1187 return (EINVAL);
1188
1189 which = linux_to_bsd_resource[args->resource];
1190 if (which == -1)
1191 return (EINVAL);
1192
1193 lim_rlimit(td, which, &bsd_rlim);
1194
1195 #ifdef COMPAT_LINUX32
1196 rlim.rlim_cur = (unsigned int)bsd_rlim.rlim_cur;
1197 if (rlim.rlim_cur == UINT_MAX)
1198 rlim.rlim_cur = INT_MAX;
1199 rlim.rlim_max = (unsigned int)bsd_rlim.rlim_max;
1200 if (rlim.rlim_max == UINT_MAX)
1201 rlim.rlim_max = INT_MAX;
1202 #else
1203 rlim.rlim_cur = (unsigned long)bsd_rlim.rlim_cur;
1204 if (rlim.rlim_cur == ULONG_MAX)
1205 rlim.rlim_cur = LONG_MAX;
1206 rlim.rlim_max = (unsigned long)bsd_rlim.rlim_max;
1207 if (rlim.rlim_max == ULONG_MAX)
1208 rlim.rlim_max = LONG_MAX;
1209 #endif
1210 return (copyout(&rlim, args->rlim, sizeof(rlim)));
1211 }
1212 #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */
1213
1214 int
linux_getrlimit(struct thread * td,struct linux_getrlimit_args * args)1215 linux_getrlimit(struct thread *td, struct linux_getrlimit_args *args)
1216 {
1217 struct l_rlimit rlim;
1218 struct rlimit bsd_rlim;
1219 u_int which;
1220
1221 if (linux_get_dummy_limit(td, args->resource, &bsd_rlim)) {
1222 rlim.rlim_cur = bsd_rlim.rlim_cur;
1223 rlim.rlim_max = bsd_rlim.rlim_max;
1224 return (copyout(&rlim, args->rlim, sizeof(rlim)));
1225 }
1226
1227 if (args->resource >= LINUX_RLIM_NLIMITS)
1228 return (EINVAL);
1229
1230 which = linux_to_bsd_resource[args->resource];
1231 if (which == -1)
1232 return (EINVAL);
1233
1234 lim_rlimit(td, which, &bsd_rlim);
1235
1236 rlim.rlim_cur = (l_ulong)bsd_rlim.rlim_cur;
1237 rlim.rlim_max = (l_ulong)bsd_rlim.rlim_max;
1238 return (copyout(&rlim, args->rlim, sizeof(rlim)));
1239 }
1240
1241 int
linux_sched_setscheduler(struct thread * td,struct linux_sched_setscheduler_args * args)1242 linux_sched_setscheduler(struct thread *td,
1243 struct linux_sched_setscheduler_args *args)
1244 {
1245 struct sched_param sched_param;
1246 struct thread *tdt;
1247 int error, policy;
1248
1249 switch (args->policy) {
1250 case LINUX_SCHED_OTHER:
1251 policy = SCHED_OTHER;
1252 break;
1253 case LINUX_SCHED_FIFO:
1254 policy = SCHED_FIFO;
1255 break;
1256 case LINUX_SCHED_RR:
1257 policy = SCHED_RR;
1258 break;
1259 default:
1260 return (EINVAL);
1261 }
1262
1263 error = copyin(args->param, &sched_param, sizeof(sched_param));
1264 if (error)
1265 return (error);
1266
1267 if (linux_map_sched_prio) {
1268 switch (policy) {
1269 case SCHED_OTHER:
1270 if (sched_param.sched_priority != 0)
1271 return (EINVAL);
1272
1273 sched_param.sched_priority =
1274 PRI_MAX_TIMESHARE - PRI_MIN_TIMESHARE;
1275 break;
1276 case SCHED_FIFO:
1277 case SCHED_RR:
1278 if (sched_param.sched_priority < 1 ||
1279 sched_param.sched_priority >= LINUX_MAX_RT_PRIO)
1280 return (EINVAL);
1281
1282 /*
1283 * Map [1, LINUX_MAX_RT_PRIO - 1] to
1284 * [0, RTP_PRIO_MAX - RTP_PRIO_MIN] (rounding down).
1285 */
1286 sched_param.sched_priority =
1287 (sched_param.sched_priority - 1) *
1288 (RTP_PRIO_MAX - RTP_PRIO_MIN + 1) /
1289 (LINUX_MAX_RT_PRIO - 1);
1290 break;
1291 }
1292 }
1293
1294 tdt = linux_tdfind(td, args->pid, -1);
1295 if (tdt == NULL)
1296 return (ESRCH);
1297
1298 error = kern_sched_setscheduler(td, tdt, policy, &sched_param);
1299 PROC_UNLOCK(tdt->td_proc);
1300 return (error);
1301 }
1302
1303 int
linux_sched_getscheduler(struct thread * td,struct linux_sched_getscheduler_args * args)1304 linux_sched_getscheduler(struct thread *td,
1305 struct linux_sched_getscheduler_args *args)
1306 {
1307 struct thread *tdt;
1308 int error, policy;
1309
1310 tdt = linux_tdfind(td, args->pid, -1);
1311 if (tdt == NULL)
1312 return (ESRCH);
1313
1314 error = kern_sched_getscheduler(td, tdt, &policy);
1315 PROC_UNLOCK(tdt->td_proc);
1316
1317 switch (policy) {
1318 case SCHED_OTHER:
1319 td->td_retval[0] = LINUX_SCHED_OTHER;
1320 break;
1321 case SCHED_FIFO:
1322 td->td_retval[0] = LINUX_SCHED_FIFO;
1323 break;
1324 case SCHED_RR:
1325 td->td_retval[0] = LINUX_SCHED_RR;
1326 break;
1327 }
1328 return (error);
1329 }
1330
1331 int
linux_sched_get_priority_max(struct thread * td,struct linux_sched_get_priority_max_args * args)1332 linux_sched_get_priority_max(struct thread *td,
1333 struct linux_sched_get_priority_max_args *args)
1334 {
1335 struct sched_get_priority_max_args bsd;
1336
1337 if (linux_map_sched_prio) {
1338 switch (args->policy) {
1339 case LINUX_SCHED_OTHER:
1340 td->td_retval[0] = 0;
1341 return (0);
1342 case LINUX_SCHED_FIFO:
1343 case LINUX_SCHED_RR:
1344 td->td_retval[0] = LINUX_MAX_RT_PRIO - 1;
1345 return (0);
1346 default:
1347 return (EINVAL);
1348 }
1349 }
1350
1351 switch (args->policy) {
1352 case LINUX_SCHED_OTHER:
1353 bsd.policy = SCHED_OTHER;
1354 break;
1355 case LINUX_SCHED_FIFO:
1356 bsd.policy = SCHED_FIFO;
1357 break;
1358 case LINUX_SCHED_RR:
1359 bsd.policy = SCHED_RR;
1360 break;
1361 default:
1362 return (EINVAL);
1363 }
1364 return (sys_sched_get_priority_max(td, &bsd));
1365 }
1366
1367 int
linux_sched_get_priority_min(struct thread * td,struct linux_sched_get_priority_min_args * args)1368 linux_sched_get_priority_min(struct thread *td,
1369 struct linux_sched_get_priority_min_args *args)
1370 {
1371 struct sched_get_priority_min_args bsd;
1372
1373 if (linux_map_sched_prio) {
1374 switch (args->policy) {
1375 case LINUX_SCHED_OTHER:
1376 td->td_retval[0] = 0;
1377 return (0);
1378 case LINUX_SCHED_FIFO:
1379 case LINUX_SCHED_RR:
1380 td->td_retval[0] = 1;
1381 return (0);
1382 default:
1383 return (EINVAL);
1384 }
1385 }
1386
1387 switch (args->policy) {
1388 case LINUX_SCHED_OTHER:
1389 bsd.policy = SCHED_OTHER;
1390 break;
1391 case LINUX_SCHED_FIFO:
1392 bsd.policy = SCHED_FIFO;
1393 break;
1394 case LINUX_SCHED_RR:
1395 bsd.policy = SCHED_RR;
1396 break;
1397 default:
1398 return (EINVAL);
1399 }
1400 return (sys_sched_get_priority_min(td, &bsd));
1401 }
1402
1403 #define REBOOT_CAD_ON 0x89abcdef
1404 #define REBOOT_CAD_OFF 0
1405 #define REBOOT_HALT 0xcdef0123
1406 #define REBOOT_RESTART 0x01234567
1407 #define REBOOT_RESTART2 0xA1B2C3D4
1408 #define REBOOT_POWEROFF 0x4321FEDC
1409 #define REBOOT_MAGIC1 0xfee1dead
1410 #define REBOOT_MAGIC2 0x28121969
1411 #define REBOOT_MAGIC2A 0x05121996
1412 #define REBOOT_MAGIC2B 0x16041998
1413
1414 int
linux_reboot(struct thread * td,struct linux_reboot_args * args)1415 linux_reboot(struct thread *td, struct linux_reboot_args *args)
1416 {
1417 struct reboot_args bsd_args;
1418
1419 if (args->magic1 != REBOOT_MAGIC1)
1420 return (EINVAL);
1421
1422 switch (args->magic2) {
1423 case REBOOT_MAGIC2:
1424 case REBOOT_MAGIC2A:
1425 case REBOOT_MAGIC2B:
1426 break;
1427 default:
1428 return (EINVAL);
1429 }
1430
1431 switch (args->cmd) {
1432 case REBOOT_CAD_ON:
1433 case REBOOT_CAD_OFF:
1434 return (priv_check(td, PRIV_REBOOT));
1435 case REBOOT_HALT:
1436 bsd_args.opt = RB_HALT;
1437 break;
1438 case REBOOT_RESTART:
1439 case REBOOT_RESTART2:
1440 bsd_args.opt = 0;
1441 break;
1442 case REBOOT_POWEROFF:
1443 bsd_args.opt = RB_POWEROFF;
1444 break;
1445 default:
1446 return (EINVAL);
1447 }
1448 return (sys_reboot(td, &bsd_args));
1449 }
1450
1451 int
linux_getpid(struct thread * td,struct linux_getpid_args * args)1452 linux_getpid(struct thread *td, struct linux_getpid_args *args)
1453 {
1454
1455 td->td_retval[0] = td->td_proc->p_pid;
1456
1457 return (0);
1458 }
1459
1460 int
linux_gettid(struct thread * td,struct linux_gettid_args * args)1461 linux_gettid(struct thread *td, struct linux_gettid_args *args)
1462 {
1463 struct linux_emuldata *em;
1464
1465 em = em_find(td);
1466 KASSERT(em != NULL, ("gettid: emuldata not found.\n"));
1467
1468 td->td_retval[0] = em->em_tid;
1469
1470 return (0);
1471 }
1472
1473 int
linux_getppid(struct thread * td,struct linux_getppid_args * args)1474 linux_getppid(struct thread *td, struct linux_getppid_args *args)
1475 {
1476
1477 td->td_retval[0] = kern_getppid(td);
1478 return (0);
1479 }
1480
1481 int
linux_getgid(struct thread * td,struct linux_getgid_args * args)1482 linux_getgid(struct thread *td, struct linux_getgid_args *args)
1483 {
1484
1485 td->td_retval[0] = td->td_ucred->cr_rgid;
1486 return (0);
1487 }
1488
1489 int
linux_getuid(struct thread * td,struct linux_getuid_args * args)1490 linux_getuid(struct thread *td, struct linux_getuid_args *args)
1491 {
1492
1493 td->td_retval[0] = td->td_ucred->cr_ruid;
1494 return (0);
1495 }
1496
1497 int
linux_getsid(struct thread * td,struct linux_getsid_args * args)1498 linux_getsid(struct thread *td, struct linux_getsid_args *args)
1499 {
1500
1501 return (kern_getsid(td, args->pid));
1502 }
1503
1504 int
linux_getpriority(struct thread * td,struct linux_getpriority_args * args)1505 linux_getpriority(struct thread *td, struct linux_getpriority_args *args)
1506 {
1507 int error;
1508
1509 error = kern_getpriority(td, args->which, args->who);
1510 td->td_retval[0] = 20 - td->td_retval[0];
1511 return (error);
1512 }
1513
1514 int
linux_sethostname(struct thread * td,struct linux_sethostname_args * args)1515 linux_sethostname(struct thread *td, struct linux_sethostname_args *args)
1516 {
1517 int name[2];
1518
1519 name[0] = CTL_KERN;
1520 name[1] = KERN_HOSTNAME;
1521 return (userland_sysctl(td, name, 2, 0, 0, 0, args->hostname,
1522 args->len, 0, 0));
1523 }
1524
1525 int
linux_setdomainname(struct thread * td,struct linux_setdomainname_args * args)1526 linux_setdomainname(struct thread *td, struct linux_setdomainname_args *args)
1527 {
1528 int name[2];
1529
1530 name[0] = CTL_KERN;
1531 name[1] = KERN_NISDOMAINNAME;
1532 return (userland_sysctl(td, name, 2, 0, 0, 0, args->name,
1533 args->len, 0, 0));
1534 }
1535
1536 int
linux_exit_group(struct thread * td,struct linux_exit_group_args * args)1537 linux_exit_group(struct thread *td, struct linux_exit_group_args *args)
1538 {
1539
1540 LINUX_CTR2(exit_group, "thread(%d) (%d)", td->td_tid,
1541 args->error_code);
1542
1543 /*
1544 * XXX: we should send a signal to the parent if
1545 * SIGNAL_EXIT_GROUP is set. We ignore that (temporarily?)
1546 * as it doesnt occur often.
1547 */
1548 exit1(td, args->error_code, 0);
1549 /* NOTREACHED */
1550 }
1551
1552 #define _LINUX_CAPABILITY_VERSION_1 0x19980330
1553 #define _LINUX_CAPABILITY_VERSION_2 0x20071026
1554 #define _LINUX_CAPABILITY_VERSION_3 0x20080522
1555
1556 struct l_user_cap_header {
1557 l_int version;
1558 l_int pid;
1559 };
1560
1561 struct l_user_cap_data {
1562 l_int effective;
1563 l_int permitted;
1564 l_int inheritable;
1565 };
1566
1567 int
linux_capget(struct thread * td,struct linux_capget_args * uap)1568 linux_capget(struct thread *td, struct linux_capget_args *uap)
1569 {
1570 struct l_user_cap_header luch;
1571 struct l_user_cap_data lucd[2];
1572 int error, u32s;
1573
1574 if (uap->hdrp == NULL)
1575 return (EFAULT);
1576
1577 error = copyin(uap->hdrp, &luch, sizeof(luch));
1578 if (error != 0)
1579 return (error);
1580
1581 switch (luch.version) {
1582 case _LINUX_CAPABILITY_VERSION_1:
1583 u32s = 1;
1584 break;
1585 case _LINUX_CAPABILITY_VERSION_2:
1586 case _LINUX_CAPABILITY_VERSION_3:
1587 u32s = 2;
1588 break;
1589 default:
1590 luch.version = _LINUX_CAPABILITY_VERSION_1;
1591 error = copyout(&luch, uap->hdrp, sizeof(luch));
1592 if (error)
1593 return (error);
1594 return (EINVAL);
1595 }
1596
1597 if (luch.pid)
1598 return (EPERM);
1599
1600 if (uap->datap) {
1601 /*
1602 * The current implementation doesn't support setting
1603 * a capability (it's essentially a stub) so indicate
1604 * that no capabilities are currently set or available
1605 * to request.
1606 */
1607 memset(&lucd, 0, u32s * sizeof(lucd[0]));
1608 error = copyout(&lucd, uap->datap, u32s * sizeof(lucd[0]));
1609 }
1610
1611 return (error);
1612 }
1613
1614 int
linux_capset(struct thread * td,struct linux_capset_args * uap)1615 linux_capset(struct thread *td, struct linux_capset_args *uap)
1616 {
1617 struct l_user_cap_header luch;
1618 struct l_user_cap_data lucd[2];
1619 int error, i, u32s;
1620
1621 if (uap->hdrp == NULL || uap->datap == NULL)
1622 return (EFAULT);
1623
1624 error = copyin(uap->hdrp, &luch, sizeof(luch));
1625 if (error != 0)
1626 return (error);
1627
1628 switch (luch.version) {
1629 case _LINUX_CAPABILITY_VERSION_1:
1630 u32s = 1;
1631 break;
1632 case _LINUX_CAPABILITY_VERSION_2:
1633 case _LINUX_CAPABILITY_VERSION_3:
1634 u32s = 2;
1635 break;
1636 default:
1637 luch.version = _LINUX_CAPABILITY_VERSION_1;
1638 error = copyout(&luch, uap->hdrp, sizeof(luch));
1639 if (error)
1640 return (error);
1641 return (EINVAL);
1642 }
1643
1644 if (luch.pid)
1645 return (EPERM);
1646
1647 error = copyin(uap->datap, &lucd, u32s * sizeof(lucd[0]));
1648 if (error != 0)
1649 return (error);
1650
1651 /* We currently don't support setting any capabilities. */
1652 for (i = 0; i < u32s; i++) {
1653 if (lucd[i].effective || lucd[i].permitted ||
1654 lucd[i].inheritable) {
1655 linux_msg(td,
1656 "capset[%d] effective=0x%x, permitted=0x%x, "
1657 "inheritable=0x%x is not implemented", i,
1658 (int)lucd[i].effective, (int)lucd[i].permitted,
1659 (int)lucd[i].inheritable);
1660 return (EPERM);
1661 }
1662 }
1663
1664 return (0);
1665 }
1666
1667 int
linux_prctl(struct thread * td,struct linux_prctl_args * args)1668 linux_prctl(struct thread *td, struct linux_prctl_args *args)
1669 {
1670 int error = 0, max_size, arg;
1671 struct proc *p = td->td_proc;
1672 char comm[LINUX_MAX_COMM_LEN];
1673 int pdeath_signal, trace_state;
1674
1675 switch (args->option) {
1676 case LINUX_PR_SET_PDEATHSIG:
1677 if (!LINUX_SIG_VALID(args->arg2))
1678 return (EINVAL);
1679 pdeath_signal = linux_to_bsd_signal(args->arg2);
1680 return (kern_procctl(td, P_PID, 0, PROC_PDEATHSIG_CTL,
1681 &pdeath_signal));
1682 case LINUX_PR_GET_PDEATHSIG:
1683 error = kern_procctl(td, P_PID, 0, PROC_PDEATHSIG_STATUS,
1684 &pdeath_signal);
1685 if (error != 0)
1686 return (error);
1687 pdeath_signal = bsd_to_linux_signal(pdeath_signal);
1688 return (copyout(&pdeath_signal,
1689 (void *)(register_t)args->arg2,
1690 sizeof(pdeath_signal)));
1691 /*
1692 * In Linux, this flag controls if set[gu]id processes can coredump.
1693 * There are additional semantics imposed on processes that cannot
1694 * coredump:
1695 * - Such processes can not be ptraced.
1696 * - There are some semantics around ownership of process-related files
1697 * in the /proc namespace.
1698 *
1699 * In FreeBSD, we can (and by default, do) disable setuid coredump
1700 * system-wide with 'sugid_coredump.' We control tracability on a
1701 * per-process basis with the procctl PROC_TRACE (=> P2_NOTRACE flag).
1702 * By happy coincidence, P2_NOTRACE also prevents coredumping. So the
1703 * procctl is roughly analogous to Linux's DUMPABLE.
1704 *
1705 * So, proxy these knobs to the corresponding PROC_TRACE setting.
1706 */
1707 case LINUX_PR_GET_DUMPABLE:
1708 error = kern_procctl(td, P_PID, p->p_pid, PROC_TRACE_STATUS,
1709 &trace_state);
1710 if (error != 0)
1711 return (error);
1712 td->td_retval[0] = (trace_state != -1);
1713 return (0);
1714 case LINUX_PR_SET_DUMPABLE:
1715 /*
1716 * It is only valid for userspace to set one of these two
1717 * flags, and only one at a time.
1718 */
1719 switch (args->arg2) {
1720 case LINUX_SUID_DUMP_DISABLE:
1721 trace_state = PROC_TRACE_CTL_DISABLE_EXEC;
1722 break;
1723 case LINUX_SUID_DUMP_USER:
1724 trace_state = PROC_TRACE_CTL_ENABLE;
1725 break;
1726 default:
1727 return (EINVAL);
1728 }
1729 return (kern_procctl(td, P_PID, p->p_pid, PROC_TRACE_CTL,
1730 &trace_state));
1731 case LINUX_PR_GET_KEEPCAPS:
1732 /*
1733 * Indicate that we always clear the effective and
1734 * permitted capability sets when the user id becomes
1735 * non-zero (actually the capability sets are simply
1736 * always zero in the current implementation).
1737 */
1738 td->td_retval[0] = 0;
1739 break;
1740 case LINUX_PR_SET_KEEPCAPS:
1741 /*
1742 * Ignore requests to keep the effective and permitted
1743 * capability sets when the user id becomes non-zero.
1744 */
1745 break;
1746 case LINUX_PR_SET_NAME:
1747 /*
1748 * To be on the safe side we need to make sure to not
1749 * overflow the size a Linux program expects. We already
1750 * do this here in the copyin, so that we don't need to
1751 * check on copyout.
1752 */
1753 max_size = MIN(sizeof(comm), sizeof(p->p_comm));
1754 error = copyinstr((void *)(register_t)args->arg2, comm,
1755 max_size, NULL);
1756
1757 /* Linux silently truncates the name if it is too long. */
1758 if (error == ENAMETOOLONG) {
1759 /*
1760 * XXX: copyinstr() isn't documented to populate the
1761 * array completely, so do a copyin() to be on the
1762 * safe side. This should be changed in case
1763 * copyinstr() is changed to guarantee this.
1764 */
1765 error = copyin((void *)(register_t)args->arg2, comm,
1766 max_size - 1);
1767 comm[max_size - 1] = '\0';
1768 }
1769 if (error)
1770 return (error);
1771
1772 PROC_LOCK(p);
1773 strlcpy(p->p_comm, comm, sizeof(p->p_comm));
1774 PROC_UNLOCK(p);
1775 break;
1776 case LINUX_PR_GET_NAME:
1777 PROC_LOCK(p);
1778 strlcpy(comm, p->p_comm, sizeof(comm));
1779 PROC_UNLOCK(p);
1780 error = copyout(comm, (void *)(register_t)args->arg2,
1781 strlen(comm) + 1);
1782 break;
1783 case LINUX_PR_GET_SECCOMP:
1784 case LINUX_PR_SET_SECCOMP:
1785 /*
1786 * Same as returned by Linux without CONFIG_SECCOMP enabled.
1787 */
1788 error = EINVAL;
1789 break;
1790 case LINUX_PR_CAPBSET_READ:
1791 #if 0
1792 /*
1793 * This makes too much noise with Ubuntu Focal.
1794 */
1795 linux_msg(td, "unsupported prctl PR_CAPBSET_READ %d",
1796 (int)args->arg2);
1797 #endif
1798 error = EINVAL;
1799 break;
1800 case LINUX_PR_SET_CHILD_SUBREAPER:
1801 if (args->arg2 == 0) {
1802 return (kern_procctl(td, P_PID, 0, PROC_REAP_RELEASE,
1803 NULL));
1804 }
1805
1806 return (kern_procctl(td, P_PID, 0, PROC_REAP_ACQUIRE,
1807 NULL));
1808 case LINUX_PR_GET_CHILD_SUBREAPER: {
1809 struct procctl_reaper_status rs;
1810 l_int val;
1811
1812 error = kern_procctl(td, P_PID, 0, PROC_REAP_STATUS, &rs);
1813 if (error != 0)
1814 return (error);
1815 val = rs.rs_reaper == p->p_pid ? 1 : 0;
1816 error = copyout(&val, (void *)(register_t)args->arg2,
1817 sizeof(val));
1818 break;
1819 }
1820 case LINUX_PR_SET_NO_NEW_PRIVS:
1821 arg = args->arg2 == 1 ?
1822 PROC_NO_NEW_PRIVS_ENABLE : PROC_NO_NEW_PRIVS_DISABLE;
1823 error = kern_procctl(td, P_PID, p->p_pid,
1824 PROC_NO_NEW_PRIVS_CTL, &arg);
1825 break;
1826 case LINUX_PR_GET_NO_NEW_PRIVS:
1827 error = kern_procctl(td, P_PID, p->p_pid,
1828 PROC_NO_NEW_PRIVS_STATUS, &arg);
1829 if (error != 0)
1830 return (error);
1831 /* Linux returns the value as the syscall return */
1832 td->td_retval[0] = arg == PROC_NO_NEW_PRIVS_ENABLE ? 1 : 0;
1833 break;
1834 case LINUX_PR_SET_PTRACER:
1835 linux_msg(td, "unsupported prctl PR_SET_PTRACER");
1836 error = EINVAL;
1837 break;
1838 default:
1839 linux_msg(td, "unsupported prctl option %d", args->option);
1840 error = EINVAL;
1841 break;
1842 }
1843
1844 return (error);
1845 }
1846
1847 int
linux_sched_setparam(struct thread * td,struct linux_sched_setparam_args * uap)1848 linux_sched_setparam(struct thread *td,
1849 struct linux_sched_setparam_args *uap)
1850 {
1851 struct sched_param sched_param;
1852 struct thread *tdt;
1853 int error, policy;
1854
1855 error = copyin(uap->param, &sched_param, sizeof(sched_param));
1856 if (error)
1857 return (error);
1858
1859 tdt = linux_tdfind(td, uap->pid, -1);
1860 if (tdt == NULL)
1861 return (ESRCH);
1862
1863 if (linux_map_sched_prio) {
1864 error = kern_sched_getscheduler(td, tdt, &policy);
1865 if (error)
1866 goto out;
1867
1868 switch (policy) {
1869 case SCHED_OTHER:
1870 if (sched_param.sched_priority != 0) {
1871 error = EINVAL;
1872 goto out;
1873 }
1874 sched_param.sched_priority =
1875 PRI_MAX_TIMESHARE - PRI_MIN_TIMESHARE;
1876 break;
1877 case SCHED_FIFO:
1878 case SCHED_RR:
1879 if (sched_param.sched_priority < 1 ||
1880 sched_param.sched_priority >= LINUX_MAX_RT_PRIO) {
1881 error = EINVAL;
1882 goto out;
1883 }
1884 /*
1885 * Map [1, LINUX_MAX_RT_PRIO - 1] to
1886 * [0, RTP_PRIO_MAX - RTP_PRIO_MIN] (rounding down).
1887 */
1888 sched_param.sched_priority =
1889 (sched_param.sched_priority - 1) *
1890 (RTP_PRIO_MAX - RTP_PRIO_MIN + 1) /
1891 (LINUX_MAX_RT_PRIO - 1);
1892 break;
1893 }
1894 }
1895
1896 error = kern_sched_setparam(td, tdt, &sched_param);
1897 out: PROC_UNLOCK(tdt->td_proc);
1898 return (error);
1899 }
1900
1901 int
linux_sched_getparam(struct thread * td,struct linux_sched_getparam_args * uap)1902 linux_sched_getparam(struct thread *td,
1903 struct linux_sched_getparam_args *uap)
1904 {
1905 struct sched_param sched_param;
1906 struct thread *tdt;
1907 int error, policy;
1908
1909 tdt = linux_tdfind(td, uap->pid, -1);
1910 if (tdt == NULL)
1911 return (ESRCH);
1912
1913 error = kern_sched_getparam(td, tdt, &sched_param);
1914 if (error) {
1915 PROC_UNLOCK(tdt->td_proc);
1916 return (error);
1917 }
1918
1919 if (linux_map_sched_prio) {
1920 error = kern_sched_getscheduler(td, tdt, &policy);
1921 PROC_UNLOCK(tdt->td_proc);
1922 if (error)
1923 return (error);
1924
1925 switch (policy) {
1926 case SCHED_OTHER:
1927 sched_param.sched_priority = 0;
1928 break;
1929 case SCHED_FIFO:
1930 case SCHED_RR:
1931 /*
1932 * Map [0, RTP_PRIO_MAX - RTP_PRIO_MIN] to
1933 * [1, LINUX_MAX_RT_PRIO - 1] (rounding up).
1934 */
1935 sched_param.sched_priority =
1936 (sched_param.sched_priority *
1937 (LINUX_MAX_RT_PRIO - 1) +
1938 (RTP_PRIO_MAX - RTP_PRIO_MIN - 1)) /
1939 (RTP_PRIO_MAX - RTP_PRIO_MIN) + 1;
1940 break;
1941 }
1942 } else
1943 PROC_UNLOCK(tdt->td_proc);
1944
1945 error = copyout(&sched_param, uap->param, sizeof(sched_param));
1946 return (error);
1947 }
1948
1949 /*
1950 * Get affinity of a process.
1951 */
1952 int
linux_sched_getaffinity(struct thread * td,struct linux_sched_getaffinity_args * args)1953 linux_sched_getaffinity(struct thread *td,
1954 struct linux_sched_getaffinity_args *args)
1955 {
1956 struct thread *tdt;
1957 cpuset_t *mask;
1958 size_t size;
1959 int error;
1960 id_t tid;
1961
1962 tdt = linux_tdfind(td, args->pid, -1);
1963 if (tdt == NULL)
1964 return (ESRCH);
1965 tid = tdt->td_tid;
1966 PROC_UNLOCK(tdt->td_proc);
1967
1968 mask = malloc(sizeof(cpuset_t), M_LINUX, M_WAITOK | M_ZERO);
1969 size = min(args->len, sizeof(cpuset_t));
1970 error = kern_cpuset_getaffinity(td, CPU_LEVEL_WHICH, CPU_WHICH_TID,
1971 tid, size, mask);
1972 if (error == ERANGE)
1973 error = EINVAL;
1974 if (error == 0)
1975 error = copyout(mask, args->user_mask_ptr, size);
1976 if (error == 0)
1977 td->td_retval[0] = size;
1978 free(mask, M_LINUX);
1979 return (error);
1980 }
1981
1982 /*
1983 * Set affinity of a process.
1984 */
1985 int
linux_sched_setaffinity(struct thread * td,struct linux_sched_setaffinity_args * args)1986 linux_sched_setaffinity(struct thread *td,
1987 struct linux_sched_setaffinity_args *args)
1988 {
1989 struct thread *tdt;
1990 cpuset_t *mask;
1991 int cpu, error;
1992 size_t len;
1993 id_t tid;
1994
1995 tdt = linux_tdfind(td, args->pid, -1);
1996 if (tdt == NULL)
1997 return (ESRCH);
1998 tid = tdt->td_tid;
1999 PROC_UNLOCK(tdt->td_proc);
2000
2001 len = min(args->len, sizeof(cpuset_t));
2002 mask = malloc(sizeof(cpuset_t), M_TEMP, M_WAITOK | M_ZERO);
2003 error = copyin(args->user_mask_ptr, mask, len);
2004 if (error != 0)
2005 goto out;
2006 /* Linux ignore high bits */
2007 CPU_FOREACH_ISSET(cpu, mask)
2008 if (cpu > mp_maxid)
2009 CPU_CLR(cpu, mask);
2010
2011 error = kern_cpuset_setaffinity(td, CPU_LEVEL_WHICH, CPU_WHICH_TID,
2012 tid, mask);
2013 if (error == EDEADLK)
2014 error = EINVAL;
2015 out:
2016 free(mask, M_TEMP);
2017 return (error);
2018 }
2019
2020 struct linux_rlimit64 {
2021 uint64_t rlim_cur;
2022 uint64_t rlim_max;
2023 };
2024
2025 int
linux_prlimit64(struct thread * td,struct linux_prlimit64_args * args)2026 linux_prlimit64(struct thread *td, struct linux_prlimit64_args *args)
2027 {
2028 struct rlimit rlim, nrlim;
2029 struct linux_rlimit64 lrlim;
2030 struct proc *p;
2031 u_int which;
2032 int flags;
2033 int error;
2034
2035 if (args->new == NULL && args->old != NULL) {
2036 if (linux_get_dummy_limit(td, args->resource, &rlim)) {
2037 lrlim.rlim_cur = rlim.rlim_cur;
2038 lrlim.rlim_max = rlim.rlim_max;
2039 return (copyout(&lrlim, args->old, sizeof(lrlim)));
2040 }
2041 }
2042
2043 if (args->resource >= LINUX_RLIM_NLIMITS)
2044 return (EINVAL);
2045
2046 which = linux_to_bsd_resource[args->resource];
2047 if (which == -1)
2048 return (EINVAL);
2049
2050 if (args->new != NULL) {
2051 /*
2052 * Note. Unlike FreeBSD where rlim is signed 64-bit Linux
2053 * rlim is unsigned 64-bit. FreeBSD treats negative limits
2054 * as INFINITY so we do not need a conversion even.
2055 */
2056 error = copyin(args->new, &nrlim, sizeof(nrlim));
2057 if (error != 0)
2058 return (error);
2059 }
2060
2061 flags = PGET_HOLD | PGET_NOTWEXIT;
2062 if (args->new != NULL)
2063 flags |= PGET_CANDEBUG;
2064 else
2065 flags |= PGET_CANSEE;
2066 if (args->pid == 0) {
2067 p = td->td_proc;
2068 PHOLD(p);
2069 } else {
2070 error = pget(args->pid, flags, &p);
2071 if (error != 0)
2072 return (error);
2073 }
2074 if (args->old != NULL) {
2075 PROC_LOCK(p);
2076 lim_rlimit_proc(p, which, &rlim);
2077 PROC_UNLOCK(p);
2078 if (rlim.rlim_cur == RLIM_INFINITY)
2079 lrlim.rlim_cur = LINUX_RLIM_INFINITY;
2080 else
2081 lrlim.rlim_cur = rlim.rlim_cur;
2082 if (rlim.rlim_max == RLIM_INFINITY)
2083 lrlim.rlim_max = LINUX_RLIM_INFINITY;
2084 else
2085 lrlim.rlim_max = rlim.rlim_max;
2086 error = copyout(&lrlim, args->old, sizeof(lrlim));
2087 if (error != 0)
2088 goto out;
2089 }
2090
2091 if (args->new != NULL)
2092 error = kern_proc_setrlimit(td, p, which, &nrlim);
2093
2094 out:
2095 PRELE(p);
2096 return (error);
2097 }
2098
2099 int
linux_pselect6(struct thread * td,struct linux_pselect6_args * args)2100 linux_pselect6(struct thread *td, struct linux_pselect6_args *args)
2101 {
2102 struct timespec ts, *tsp;
2103 int error;
2104
2105 if (args->tsp != NULL) {
2106 error = linux_get_timespec(&ts, args->tsp);
2107 if (error != 0)
2108 return (error);
2109 tsp = &ts;
2110 } else
2111 tsp = NULL;
2112
2113 error = linux_common_pselect6(td, args->nfds, args->readfds,
2114 args->writefds, args->exceptfds, tsp, args->sig);
2115
2116 if (args->tsp != NULL)
2117 linux_put_timespec(&ts, args->tsp);
2118 return (error);
2119 }
2120
2121 static int
linux_common_pselect6(struct thread * td,l_int nfds,l_fd_set * readfds,l_fd_set * writefds,l_fd_set * exceptfds,struct timespec * tsp,l_uintptr_t * sig)2122 linux_common_pselect6(struct thread *td, l_int nfds, l_fd_set *readfds,
2123 l_fd_set *writefds, l_fd_set *exceptfds, struct timespec *tsp,
2124 l_uintptr_t *sig)
2125 {
2126 struct timeval utv, tv0, tv1, *tvp;
2127 struct l_pselect6arg lpse6;
2128 sigset_t *ssp;
2129 sigset_t ss;
2130 int error;
2131
2132 ssp = NULL;
2133 if (sig != NULL) {
2134 error = copyin(sig, &lpse6, sizeof(lpse6));
2135 if (error != 0)
2136 return (error);
2137 error = linux_copyin_sigset(td, PTRIN(lpse6.ss),
2138 lpse6.ss_len, &ss, &ssp);
2139 if (error != 0)
2140 return (error);
2141 } else
2142 ssp = NULL;
2143
2144 /*
2145 * Currently glibc changes nanosecond number to microsecond.
2146 * This mean losing precision but for now it is hardly seen.
2147 */
2148 if (tsp != NULL) {
2149 TIMESPEC_TO_TIMEVAL(&utv, tsp);
2150 if (itimerfix(&utv))
2151 return (EINVAL);
2152
2153 microtime(&tv0);
2154 tvp = &utv;
2155 } else
2156 tvp = NULL;
2157
2158 error = kern_pselect(td, nfds, readfds, writefds,
2159 exceptfds, tvp, ssp, LINUX_NFDBITS);
2160
2161 if (tsp != NULL) {
2162 /*
2163 * Compute how much time was left of the timeout,
2164 * by subtracting the current time and the time
2165 * before we started the call, and subtracting
2166 * that result from the user-supplied value.
2167 */
2168 microtime(&tv1);
2169 timevalsub(&tv1, &tv0);
2170 timevalsub(&utv, &tv1);
2171 if (utv.tv_sec < 0)
2172 timevalclear(&utv);
2173 TIMEVAL_TO_TIMESPEC(&utv, tsp);
2174 }
2175 return (error);
2176 }
2177
2178 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
2179 int
linux_pselect6_time64(struct thread * td,struct linux_pselect6_time64_args * args)2180 linux_pselect6_time64(struct thread *td,
2181 struct linux_pselect6_time64_args *args)
2182 {
2183 struct timespec ts, *tsp;
2184 int error;
2185
2186 if (args->tsp != NULL) {
2187 error = linux_get_timespec64(&ts, args->tsp);
2188 if (error != 0)
2189 return (error);
2190 tsp = &ts;
2191 } else
2192 tsp = NULL;
2193
2194 error = linux_common_pselect6(td, args->nfds, args->readfds,
2195 args->writefds, args->exceptfds, tsp, args->sig);
2196
2197 if (args->tsp != NULL)
2198 linux_put_timespec64(&ts, args->tsp);
2199 return (error);
2200 }
2201 #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */
2202
2203 int
linux_ppoll(struct thread * td,struct linux_ppoll_args * args)2204 linux_ppoll(struct thread *td, struct linux_ppoll_args *args)
2205 {
2206 struct timespec uts, *tsp;
2207 int error;
2208
2209 if (args->tsp != NULL) {
2210 error = linux_get_timespec(&uts, args->tsp);
2211 if (error != 0)
2212 return (error);
2213 tsp = &uts;
2214 } else
2215 tsp = NULL;
2216
2217 error = linux_common_ppoll(td, args->fds, args->nfds, tsp,
2218 args->sset, args->ssize);
2219 if (error == 0 && args->tsp != NULL)
2220 error = linux_put_timespec(&uts, args->tsp);
2221 return (error);
2222 }
2223
2224 static int
linux_common_ppoll(struct thread * td,struct pollfd * fds,uint32_t nfds,struct timespec * tsp,l_sigset_t * sset,l_size_t ssize)2225 linux_common_ppoll(struct thread *td, struct pollfd *fds, uint32_t nfds,
2226 struct timespec *tsp, l_sigset_t *sset, l_size_t ssize)
2227 {
2228 struct timespec ts0, ts1;
2229 struct pollfd stackfds[32];
2230 struct pollfd *kfds;
2231 sigset_t *ssp;
2232 sigset_t ss;
2233 int error;
2234
2235 if (kern_poll_maxfds(nfds))
2236 return (EINVAL);
2237 if (sset != NULL) {
2238 error = linux_copyin_sigset(td, sset, ssize, &ss, &ssp);
2239 if (error != 0)
2240 return (error);
2241 } else
2242 ssp = NULL;
2243 if (tsp != NULL)
2244 nanotime(&ts0);
2245
2246 if (nfds > nitems(stackfds))
2247 kfds = mallocarray(nfds, sizeof(*kfds), M_TEMP, M_WAITOK);
2248 else
2249 kfds = stackfds;
2250 error = linux_pollin(td, kfds, fds, nfds);
2251 if (error != 0)
2252 goto out;
2253
2254 error = kern_poll_kfds(td, kfds, nfds, tsp, ssp);
2255 if (error == 0)
2256 error = linux_pollout(td, kfds, fds, nfds);
2257
2258 if (error == 0 && tsp != NULL) {
2259 if (td->td_retval[0]) {
2260 nanotime(&ts1);
2261 timespecsub(&ts1, &ts0, &ts1);
2262 timespecsub(tsp, &ts1, tsp);
2263 if (tsp->tv_sec < 0)
2264 timespecclear(tsp);
2265 } else
2266 timespecclear(tsp);
2267 }
2268
2269 out:
2270 if (nfds > nitems(stackfds))
2271 free(kfds, M_TEMP);
2272 return (error);
2273 }
2274
2275 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
2276 int
linux_ppoll_time64(struct thread * td,struct linux_ppoll_time64_args * args)2277 linux_ppoll_time64(struct thread *td, struct linux_ppoll_time64_args *args)
2278 {
2279 struct timespec uts, *tsp;
2280 int error;
2281
2282 if (args->tsp != NULL) {
2283 error = linux_get_timespec64(&uts, args->tsp);
2284 if (error != 0)
2285 return (error);
2286 tsp = &uts;
2287 } else
2288 tsp = NULL;
2289 error = linux_common_ppoll(td, args->fds, args->nfds, tsp,
2290 args->sset, args->ssize);
2291 if (error == 0 && args->tsp != NULL)
2292 error = linux_put_timespec64(&uts, args->tsp);
2293 return (error);
2294 }
2295 #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */
2296
2297 static int
linux_pollin(struct thread * td,struct pollfd * fds,struct pollfd * ufds,u_int nfd)2298 linux_pollin(struct thread *td, struct pollfd *fds, struct pollfd *ufds, u_int nfd)
2299 {
2300 int error;
2301 u_int i;
2302
2303 error = copyin(ufds, fds, nfd * sizeof(*fds));
2304 if (error != 0)
2305 return (error);
2306
2307 for (i = 0; i < nfd; i++) {
2308 if (fds->events != 0)
2309 linux_to_bsd_poll_events(td, fds->fd,
2310 fds->events, &fds->events);
2311 fds++;
2312 }
2313 return (0);
2314 }
2315
2316 static int
linux_pollout(struct thread * td,struct pollfd * fds,struct pollfd * ufds,u_int nfd)2317 linux_pollout(struct thread *td, struct pollfd *fds, struct pollfd *ufds, u_int nfd)
2318 {
2319 int error = 0;
2320 u_int i, n = 0;
2321
2322 for (i = 0; i < nfd; i++) {
2323 if (fds->revents != 0) {
2324 bsd_to_linux_poll_events(fds->revents,
2325 &fds->revents);
2326 n++;
2327 }
2328 error = copyout(&fds->revents, &ufds->revents,
2329 sizeof(ufds->revents));
2330 if (error)
2331 return (error);
2332 fds++;
2333 ufds++;
2334 }
2335 td->td_retval[0] = n;
2336 return (0);
2337 }
2338
2339 static int
linux_sched_rr_get_interval_common(struct thread * td,pid_t pid,struct timespec * ts)2340 linux_sched_rr_get_interval_common(struct thread *td, pid_t pid,
2341 struct timespec *ts)
2342 {
2343 struct thread *tdt;
2344 int error;
2345
2346 /*
2347 * According to man in case the invalid pid specified
2348 * EINVAL should be returned.
2349 */
2350 if (pid < 0)
2351 return (EINVAL);
2352
2353 tdt = linux_tdfind(td, pid, -1);
2354 if (tdt == NULL)
2355 return (ESRCH);
2356
2357 error = kern_sched_rr_get_interval_td(td, tdt, ts);
2358 PROC_UNLOCK(tdt->td_proc);
2359 return (error);
2360 }
2361
2362 int
linux_sched_rr_get_interval(struct thread * td,struct linux_sched_rr_get_interval_args * uap)2363 linux_sched_rr_get_interval(struct thread *td,
2364 struct linux_sched_rr_get_interval_args *uap)
2365 {
2366 struct timespec ts;
2367 int error;
2368
2369 error = linux_sched_rr_get_interval_common(td, uap->pid, &ts);
2370 if (error != 0)
2371 return (error);
2372 return (linux_put_timespec(&ts, uap->interval));
2373 }
2374
2375 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
2376 int
linux_sched_rr_get_interval_time64(struct thread * td,struct linux_sched_rr_get_interval_time64_args * uap)2377 linux_sched_rr_get_interval_time64(struct thread *td,
2378 struct linux_sched_rr_get_interval_time64_args *uap)
2379 {
2380 struct timespec ts;
2381 int error;
2382
2383 error = linux_sched_rr_get_interval_common(td, uap->pid, &ts);
2384 if (error != 0)
2385 return (error);
2386 return (linux_put_timespec64(&ts, uap->interval));
2387 }
2388 #endif
2389
2390 /*
2391 * In case when the Linux thread is the initial thread in
2392 * the thread group thread id is equal to the process id.
2393 * Glibc depends on this magic (assert in pthread_getattr_np.c).
2394 */
2395 struct thread *
linux_tdfind(struct thread * td,lwpid_t tid,pid_t pid)2396 linux_tdfind(struct thread *td, lwpid_t tid, pid_t pid)
2397 {
2398 struct linux_emuldata *em;
2399 struct thread *tdt;
2400 struct proc *p;
2401
2402 tdt = NULL;
2403 if (tid == 0 || tid == td->td_tid) {
2404 if (pid != -1 && td->td_proc->p_pid != pid)
2405 return (NULL);
2406 PROC_LOCK(td->td_proc);
2407 return (td);
2408 } else if (tid > PID_MAX)
2409 return (tdfind(tid, pid));
2410
2411 /*
2412 * Initial thread where the tid equal to the pid.
2413 */
2414 p = pfind(tid);
2415 if (p != NULL) {
2416 if (SV_PROC_ABI(p) != SV_ABI_LINUX ||
2417 (pid != -1 && tid != pid)) {
2418 /*
2419 * p is not a Linuxulator process.
2420 */
2421 PROC_UNLOCK(p);
2422 return (NULL);
2423 }
2424 FOREACH_THREAD_IN_PROC(p, tdt) {
2425 em = em_find(tdt);
2426 if (tid == em->em_tid)
2427 return (tdt);
2428 }
2429 PROC_UNLOCK(p);
2430 }
2431 return (NULL);
2432 }
2433
2434 void
linux_to_bsd_waitopts(int options,int * bsdopts)2435 linux_to_bsd_waitopts(int options, int *bsdopts)
2436 {
2437
2438 if (options & LINUX_WNOHANG)
2439 *bsdopts |= WNOHANG;
2440 if (options & LINUX_WUNTRACED)
2441 *bsdopts |= WUNTRACED;
2442 if (options & LINUX_WEXITED)
2443 *bsdopts |= WEXITED;
2444 if (options & LINUX_WCONTINUED)
2445 *bsdopts |= WCONTINUED;
2446 if (options & LINUX_WNOWAIT)
2447 *bsdopts |= WNOWAIT;
2448
2449 if (options & __WCLONE)
2450 *bsdopts |= WLINUXCLONE;
2451 }
2452
2453 int
linux_getrandom(struct thread * td,struct linux_getrandom_args * args)2454 linux_getrandom(struct thread *td, struct linux_getrandom_args *args)
2455 {
2456 struct uio uio;
2457 struct iovec iov;
2458 int error;
2459
2460 if (args->flags & ~(LINUX_GRND_NONBLOCK|LINUX_GRND_RANDOM))
2461 return (EINVAL);
2462 if (args->count > INT_MAX)
2463 args->count = INT_MAX;
2464
2465 iov.iov_base = args->buf;
2466 iov.iov_len = args->count;
2467
2468 uio.uio_iov = &iov;
2469 uio.uio_iovcnt = 1;
2470 uio.uio_resid = iov.iov_len;
2471 uio.uio_segflg = UIO_USERSPACE;
2472 uio.uio_rw = UIO_READ;
2473 uio.uio_td = td;
2474
2475 error = read_random_uio(&uio, args->flags & LINUX_GRND_NONBLOCK);
2476 if (error == 0)
2477 td->td_retval[0] = args->count - uio.uio_resid;
2478 return (error);
2479 }
2480
2481 int
linux_mincore(struct thread * td,struct linux_mincore_args * args)2482 linux_mincore(struct thread *td, struct linux_mincore_args *args)
2483 {
2484
2485 /* Needs to be page-aligned */
2486 if (args->start & PAGE_MASK)
2487 return (EINVAL);
2488 return (kern_mincore(td, args->start, args->len, args->vec));
2489 }
2490
2491 #define SYSLOG_TAG "<6>"
2492
2493 int
linux_syslog(struct thread * td,struct linux_syslog_args * args)2494 linux_syslog(struct thread *td, struct linux_syslog_args *args)
2495 {
2496 char buf[128], *src, *dst;
2497 u_int seq;
2498 int buflen, error;
2499
2500 if (args->type != LINUX_SYSLOG_ACTION_READ_ALL) {
2501 linux_msg(td, "syslog unsupported type 0x%x", args->type);
2502 return (EINVAL);
2503 }
2504
2505 if (args->len < 6) {
2506 td->td_retval[0] = 0;
2507 return (0);
2508 }
2509
2510 error = priv_check(td, PRIV_MSGBUF);
2511 if (error)
2512 return (error);
2513
2514 mtx_lock(&msgbuf_lock);
2515 msgbuf_peekbytes(msgbufp, NULL, 0, &seq);
2516 mtx_unlock(&msgbuf_lock);
2517
2518 dst = args->buf;
2519 error = copyout(&SYSLOG_TAG, dst, sizeof(SYSLOG_TAG));
2520 /* The -1 is to skip the trailing '\0'. */
2521 dst += sizeof(SYSLOG_TAG) - 1;
2522
2523 while (error == 0) {
2524 mtx_lock(&msgbuf_lock);
2525 buflen = msgbuf_peekbytes(msgbufp, buf, sizeof(buf), &seq);
2526 mtx_unlock(&msgbuf_lock);
2527
2528 if (buflen == 0)
2529 break;
2530
2531 for (src = buf; src < buf + buflen && error == 0; src++) {
2532 if (*src == '\0')
2533 continue;
2534
2535 if (dst >= args->buf + args->len)
2536 goto out;
2537
2538 error = copyout(src, dst, 1);
2539 dst++;
2540
2541 if (*src == '\n' && *(src + 1) != '<' &&
2542 dst + sizeof(SYSLOG_TAG) < args->buf + args->len) {
2543 error = copyout(&SYSLOG_TAG,
2544 dst, sizeof(SYSLOG_TAG));
2545 dst += sizeof(SYSLOG_TAG) - 1;
2546 }
2547 }
2548 }
2549 out:
2550 td->td_retval[0] = dst - args->buf;
2551 return (error);
2552 }
2553
2554 int
linux_getcpu(struct thread * td,struct linux_getcpu_args * args)2555 linux_getcpu(struct thread *td, struct linux_getcpu_args *args)
2556 {
2557 int cpu, error, node;
2558
2559 cpu = td->td_oncpu; /* Make sure it doesn't change during copyout(9) */
2560 error = 0;
2561 node = cpuid_to_pcpu[cpu]->pc_domain;
2562
2563 if (args->cpu != NULL)
2564 error = copyout(&cpu, args->cpu, sizeof(l_int));
2565 if (args->node != NULL)
2566 error = copyout(&node, args->node, sizeof(l_int));
2567 return (error);
2568 }
2569
2570 #if defined(__i386__) || defined(__amd64__)
2571 int
linux_poll(struct thread * td,struct linux_poll_args * args)2572 linux_poll(struct thread *td, struct linux_poll_args *args)
2573 {
2574 struct timespec ts, *tsp;
2575
2576 if (args->timeout != INFTIM) {
2577 if (args->timeout < 0)
2578 return (EINVAL);
2579 ts.tv_sec = args->timeout / 1000;
2580 ts.tv_nsec = (args->timeout % 1000) * 1000000;
2581 tsp = &ts;
2582 } else
2583 tsp = NULL;
2584
2585 return (linux_common_ppoll(td, args->fds, args->nfds,
2586 tsp, NULL, 0));
2587 }
2588 #endif /* __i386__ || __amd64__ */
2589
2590 int
linux_seccomp(struct thread * td,struct linux_seccomp_args * args)2591 linux_seccomp(struct thread *td, struct linux_seccomp_args *args)
2592 {
2593
2594 switch (args->op) {
2595 case LINUX_SECCOMP_GET_ACTION_AVAIL:
2596 return (EOPNOTSUPP);
2597 default:
2598 /*
2599 * Ignore unknown operations, just like Linux kernel built
2600 * without CONFIG_SECCOMP.
2601 */
2602 return (EINVAL);
2603 }
2604 }
2605
2606 /*
2607 * Custom version of exec_copyin_args(), to copy out argument and environment
2608 * strings from the old process address space into the temporary string buffer.
2609 * Based on freebsd32_exec_copyin_args.
2610 */
2611 static int
linux_exec_copyin_args(struct image_args * args,const char * fname,l_uintptr_t * argv,l_uintptr_t * envv)2612 linux_exec_copyin_args(struct image_args *args, const char *fname,
2613 l_uintptr_t *argv, l_uintptr_t *envv)
2614 {
2615 char *argp, *envp;
2616 l_uintptr_t *ptr, arg;
2617 int error;
2618
2619 bzero(args, sizeof(*args));
2620 if (argv == NULL)
2621 return (EFAULT);
2622
2623 /*
2624 * Allocate demand-paged memory for the file name, argument, and
2625 * environment strings.
2626 */
2627 error = exec_alloc_args(args);
2628 if (error != 0)
2629 return (error);
2630
2631 /*
2632 * Copy the file name.
2633 */
2634 error = exec_args_add_fname(args, fname, UIO_USERSPACE);
2635 if (error != 0)
2636 goto err_exit;
2637
2638 /*
2639 * extract arguments first
2640 */
2641 ptr = argv;
2642 for (;;) {
2643 error = copyin(ptr++, &arg, sizeof(arg));
2644 if (error)
2645 goto err_exit;
2646 if (arg == 0)
2647 break;
2648 argp = PTRIN(arg);
2649 error = exec_args_add_arg(args, argp, UIO_USERSPACE);
2650 if (error != 0)
2651 goto err_exit;
2652 }
2653
2654 /*
2655 * This comment is from Linux do_execveat_common:
2656 * When argv is empty, add an empty string ("") as argv[0] to
2657 * ensure confused userspace programs that start processing
2658 * from argv[1] won't end up walking envp.
2659 */
2660 if (args->argc == 0 &&
2661 (error = exec_args_add_arg(args, "", UIO_SYSSPACE) != 0))
2662 goto err_exit;
2663
2664 /*
2665 * extract environment strings
2666 */
2667 if (envv) {
2668 ptr = envv;
2669 for (;;) {
2670 error = copyin(ptr++, &arg, sizeof(arg));
2671 if (error)
2672 goto err_exit;
2673 if (arg == 0)
2674 break;
2675 envp = PTRIN(arg);
2676 error = exec_args_add_env(args, envp, UIO_USERSPACE);
2677 if (error != 0)
2678 goto err_exit;
2679 }
2680 }
2681
2682 return (0);
2683
2684 err_exit:
2685 exec_free_args(args);
2686 return (error);
2687 }
2688
2689 int
linux_execve(struct thread * td,struct linux_execve_args * args)2690 linux_execve(struct thread *td, struct linux_execve_args *args)
2691 {
2692 struct image_args eargs;
2693 int error;
2694
2695 LINUX_CTR(execve);
2696
2697 error = linux_exec_copyin_args(&eargs, args->path, args->argp,
2698 args->envp);
2699 if (error == 0)
2700 error = linux_common_execve(td, &eargs);
2701 AUDIT_SYSCALL_EXIT(error == EJUSTRETURN ? 0 : error, td);
2702 return (error);
2703 }
2704
2705 static void
linux_up_rtprio_if(struct thread * td1,struct rtprio * rtp)2706 linux_up_rtprio_if(struct thread *td1, struct rtprio *rtp)
2707 {
2708 struct rtprio rtp2;
2709
2710 pri_to_rtp(td1, &rtp2);
2711 if (rtp2.type < rtp->type ||
2712 (rtp2.type == rtp->type &&
2713 rtp2.prio < rtp->prio)) {
2714 rtp->type = rtp2.type;
2715 rtp->prio = rtp2.prio;
2716 }
2717 }
2718
2719 #define LINUX_PRIO_DIVIDER RTP_PRIO_MAX / LINUX_IOPRIO_MAX
2720
2721 static int
linux_rtprio2ioprio(struct rtprio * rtp)2722 linux_rtprio2ioprio(struct rtprio *rtp)
2723 {
2724 int ioprio, prio;
2725
2726 switch (rtp->type) {
2727 case RTP_PRIO_IDLE:
2728 prio = RTP_PRIO_MIN;
2729 ioprio = LINUX_IOPRIO_PRIO(LINUX_IOPRIO_CLASS_IDLE, prio);
2730 break;
2731 case RTP_PRIO_NORMAL:
2732 prio = rtp->prio / LINUX_PRIO_DIVIDER;
2733 ioprio = LINUX_IOPRIO_PRIO(LINUX_IOPRIO_CLASS_BE, prio);
2734 break;
2735 case RTP_PRIO_REALTIME:
2736 prio = rtp->prio / LINUX_PRIO_DIVIDER;
2737 ioprio = LINUX_IOPRIO_PRIO(LINUX_IOPRIO_CLASS_RT, prio);
2738 break;
2739 default:
2740 prio = RTP_PRIO_MIN;
2741 ioprio = LINUX_IOPRIO_PRIO(LINUX_IOPRIO_CLASS_NONE, prio);
2742 break;
2743 }
2744 return (ioprio);
2745 }
2746
2747 static int
linux_ioprio2rtprio(int ioprio,struct rtprio * rtp)2748 linux_ioprio2rtprio(int ioprio, struct rtprio *rtp)
2749 {
2750
2751 switch (LINUX_IOPRIO_PRIO_CLASS(ioprio)) {
2752 case LINUX_IOPRIO_CLASS_IDLE:
2753 rtp->prio = RTP_PRIO_MIN;
2754 rtp->type = RTP_PRIO_IDLE;
2755 break;
2756 case LINUX_IOPRIO_CLASS_BE:
2757 rtp->prio = LINUX_IOPRIO_PRIO_DATA(ioprio) * LINUX_PRIO_DIVIDER;
2758 rtp->type = RTP_PRIO_NORMAL;
2759 break;
2760 case LINUX_IOPRIO_CLASS_RT:
2761 rtp->prio = LINUX_IOPRIO_PRIO_DATA(ioprio) * LINUX_PRIO_DIVIDER;
2762 rtp->type = RTP_PRIO_REALTIME;
2763 break;
2764 default:
2765 return (EINVAL);
2766 }
2767 return (0);
2768 }
2769 #undef LINUX_PRIO_DIVIDER
2770
2771 int
linux_ioprio_get(struct thread * td,struct linux_ioprio_get_args * args)2772 linux_ioprio_get(struct thread *td, struct linux_ioprio_get_args *args)
2773 {
2774 struct thread *td1;
2775 struct rtprio rtp;
2776 struct pgrp *pg;
2777 struct proc *p;
2778 int error, found;
2779
2780 p = NULL;
2781 td1 = NULL;
2782 error = 0;
2783 found = 0;
2784 rtp.type = RTP_PRIO_IDLE;
2785 rtp.prio = RTP_PRIO_MAX;
2786 switch (args->which) {
2787 case LINUX_IOPRIO_WHO_PROCESS:
2788 if (args->who == 0) {
2789 td1 = td;
2790 p = td1->td_proc;
2791 PROC_LOCK(p);
2792 } else if (args->who > PID_MAX) {
2793 td1 = linux_tdfind(td, args->who, -1);
2794 if (td1 != NULL)
2795 p = td1->td_proc;
2796 } else
2797 p = pfind(args->who);
2798 if (p == NULL)
2799 return (ESRCH);
2800 if ((error = p_cansee(td, p))) {
2801 PROC_UNLOCK(p);
2802 break;
2803 }
2804 if (td1 != NULL) {
2805 pri_to_rtp(td1, &rtp);
2806 } else {
2807 FOREACH_THREAD_IN_PROC(p, td1) {
2808 linux_up_rtprio_if(td1, &rtp);
2809 }
2810 }
2811 found++;
2812 PROC_UNLOCK(p);
2813 break;
2814 case LINUX_IOPRIO_WHO_PGRP:
2815 sx_slock(&proctree_lock);
2816 if (args->who == 0) {
2817 pg = td->td_proc->p_pgrp;
2818 PGRP_LOCK(pg);
2819 } else {
2820 pg = pgfind(args->who);
2821 if (pg == NULL) {
2822 sx_sunlock(&proctree_lock);
2823 error = ESRCH;
2824 break;
2825 }
2826 }
2827 sx_sunlock(&proctree_lock);
2828 LIST_FOREACH(p, &pg->pg_members, p_pglist) {
2829 PROC_LOCK(p);
2830 if (p->p_state == PRS_NORMAL &&
2831 p_cansee(td, p) == 0) {
2832 FOREACH_THREAD_IN_PROC(p, td1) {
2833 linux_up_rtprio_if(td1, &rtp);
2834 found++;
2835 }
2836 }
2837 PROC_UNLOCK(p);
2838 }
2839 PGRP_UNLOCK(pg);
2840 break;
2841 case LINUX_IOPRIO_WHO_USER:
2842 if (args->who == 0)
2843 args->who = td->td_ucred->cr_uid;
2844 sx_slock(&allproc_lock);
2845 FOREACH_PROC_IN_SYSTEM(p) {
2846 PROC_LOCK(p);
2847 if (p->p_state == PRS_NORMAL &&
2848 p->p_ucred->cr_uid == args->who &&
2849 p_cansee(td, p) == 0) {
2850 FOREACH_THREAD_IN_PROC(p, td1) {
2851 linux_up_rtprio_if(td1, &rtp);
2852 found++;
2853 }
2854 }
2855 PROC_UNLOCK(p);
2856 }
2857 sx_sunlock(&allproc_lock);
2858 break;
2859 default:
2860 error = EINVAL;
2861 break;
2862 }
2863 if (error == 0) {
2864 if (found != 0)
2865 td->td_retval[0] = linux_rtprio2ioprio(&rtp);
2866 else
2867 error = ESRCH;
2868 }
2869 return (error);
2870 }
2871
2872 int
linux_ioprio_set(struct thread * td,struct linux_ioprio_set_args * args)2873 linux_ioprio_set(struct thread *td, struct linux_ioprio_set_args *args)
2874 {
2875 struct thread *td1;
2876 struct rtprio rtp;
2877 struct pgrp *pg;
2878 struct proc *p;
2879 int error;
2880
2881 if ((error = linux_ioprio2rtprio(args->ioprio, &rtp)) != 0)
2882 return (error);
2883 /* Attempts to set high priorities (REALTIME) require su privileges. */
2884 if (RTP_PRIO_BASE(rtp.type) == RTP_PRIO_REALTIME &&
2885 (error = priv_check(td, PRIV_SCHED_RTPRIO)) != 0)
2886 return (error);
2887
2888 p = NULL;
2889 td1 = NULL;
2890 switch (args->which) {
2891 case LINUX_IOPRIO_WHO_PROCESS:
2892 if (args->who == 0) {
2893 td1 = td;
2894 p = td1->td_proc;
2895 PROC_LOCK(p);
2896 } else if (args->who > PID_MAX) {
2897 td1 = linux_tdfind(td, args->who, -1);
2898 if (td1 != NULL)
2899 p = td1->td_proc;
2900 } else
2901 p = pfind(args->who);
2902 if (p == NULL)
2903 return (ESRCH);
2904 if ((error = p_cansched(td, p))) {
2905 PROC_UNLOCK(p);
2906 break;
2907 }
2908 if (td1 != NULL) {
2909 error = rtp_to_pri(&rtp, td1);
2910 } else {
2911 FOREACH_THREAD_IN_PROC(p, td1) {
2912 if ((error = rtp_to_pri(&rtp, td1)) != 0)
2913 break;
2914 }
2915 }
2916 PROC_UNLOCK(p);
2917 break;
2918 case LINUX_IOPRIO_WHO_PGRP:
2919 sx_slock(&proctree_lock);
2920 if (args->who == 0) {
2921 pg = td->td_proc->p_pgrp;
2922 PGRP_LOCK(pg);
2923 } else {
2924 pg = pgfind(args->who);
2925 if (pg == NULL) {
2926 sx_sunlock(&proctree_lock);
2927 error = ESRCH;
2928 break;
2929 }
2930 }
2931 sx_sunlock(&proctree_lock);
2932 LIST_FOREACH(p, &pg->pg_members, p_pglist) {
2933 PROC_LOCK(p);
2934 if (p->p_state == PRS_NORMAL &&
2935 p_cansched(td, p) == 0) {
2936 FOREACH_THREAD_IN_PROC(p, td1) {
2937 if ((error = rtp_to_pri(&rtp, td1)) != 0)
2938 break;
2939 }
2940 }
2941 PROC_UNLOCK(p);
2942 if (error != 0)
2943 break;
2944 }
2945 PGRP_UNLOCK(pg);
2946 break;
2947 case LINUX_IOPRIO_WHO_USER:
2948 if (args->who == 0)
2949 args->who = td->td_ucred->cr_uid;
2950 sx_slock(&allproc_lock);
2951 FOREACH_PROC_IN_SYSTEM(p) {
2952 PROC_LOCK(p);
2953 if (p->p_state == PRS_NORMAL &&
2954 p->p_ucred->cr_uid == args->who &&
2955 p_cansched(td, p) == 0) {
2956 FOREACH_THREAD_IN_PROC(p, td1) {
2957 if ((error = rtp_to_pri(&rtp, td1)) != 0)
2958 break;
2959 }
2960 }
2961 PROC_UNLOCK(p);
2962 if (error != 0)
2963 break;
2964 }
2965 sx_sunlock(&allproc_lock);
2966 break;
2967 default:
2968 error = EINVAL;
2969 break;
2970 }
2971 return (error);
2972 }
2973
2974 /* The only flag is O_NONBLOCK */
2975 #define B2L_MQ_FLAGS(bflags) ((bflags) != 0 ? LINUX_O_NONBLOCK : 0)
2976 #define L2B_MQ_FLAGS(lflags) ((lflags) != 0 ? O_NONBLOCK : 0)
2977
2978 int
linux_mq_open(struct thread * td,struct linux_mq_open_args * args)2979 linux_mq_open(struct thread *td, struct linux_mq_open_args *args)
2980 {
2981 struct mq_attr attr;
2982 int error, flags;
2983
2984 flags = linux_common_openflags(args->oflag);
2985 if ((flags & O_ACCMODE) == O_ACCMODE || (flags & O_EXEC) != 0)
2986 return (EINVAL);
2987 flags = FFLAGS(flags);
2988 if ((flags & O_CREAT) != 0 && args->attr != NULL) {
2989 error = copyin(args->attr, &attr, sizeof(attr));
2990 if (error != 0)
2991 return (error);
2992 attr.mq_flags = L2B_MQ_FLAGS(attr.mq_flags);
2993 }
2994
2995 return (kern_kmq_open(td, args->name, flags, args->mode,
2996 args->attr != NULL ? &attr : NULL));
2997 }
2998
2999 int
linux_mq_unlink(struct thread * td,struct linux_mq_unlink_args * args)3000 linux_mq_unlink(struct thread *td, struct linux_mq_unlink_args *args)
3001 {
3002 struct kmq_unlink_args bsd_args = {
3003 .path = PTRIN(args->name)
3004 };
3005
3006 return (sys_kmq_unlink(td, &bsd_args));
3007 }
3008
3009 int
linux_mq_timedsend(struct thread * td,struct linux_mq_timedsend_args * args)3010 linux_mq_timedsend(struct thread *td, struct linux_mq_timedsend_args *args)
3011 {
3012 struct timespec ts, *abs_timeout;
3013 int error;
3014
3015 if (args->abs_timeout == NULL)
3016 abs_timeout = NULL;
3017 else {
3018 error = linux_get_timespec(&ts, args->abs_timeout);
3019 if (error != 0)
3020 return (error);
3021 abs_timeout = &ts;
3022 }
3023
3024 return (kern_kmq_timedsend(td, args->mqd, PTRIN(args->msg_ptr),
3025 args->msg_len, args->msg_prio, abs_timeout));
3026 }
3027
3028 int
linux_mq_timedreceive(struct thread * td,struct linux_mq_timedreceive_args * args)3029 linux_mq_timedreceive(struct thread *td, struct linux_mq_timedreceive_args *args)
3030 {
3031 struct timespec ts, *abs_timeout;
3032 int error;
3033
3034 if (args->abs_timeout == NULL)
3035 abs_timeout = NULL;
3036 else {
3037 error = linux_get_timespec(&ts, args->abs_timeout);
3038 if (error != 0)
3039 return (error);
3040 abs_timeout = &ts;
3041 }
3042
3043 return (kern_kmq_timedreceive(td, args->mqd, PTRIN(args->msg_ptr),
3044 args->msg_len, args->msg_prio, abs_timeout));
3045 }
3046
3047 int
linux_mq_notify(struct thread * td,struct linux_mq_notify_args * args)3048 linux_mq_notify(struct thread *td, struct linux_mq_notify_args *args)
3049 {
3050 struct sigevent ev, *evp;
3051 struct l_sigevent l_ev;
3052 int error;
3053
3054 if (args->sevp == NULL)
3055 evp = NULL;
3056 else {
3057 error = copyin(args->sevp, &l_ev, sizeof(l_ev));
3058 if (error != 0)
3059 return (error);
3060 error = linux_convert_l_sigevent(&l_ev, &ev);
3061 if (error != 0)
3062 return (error);
3063 evp = &ev;
3064 }
3065
3066 return (kern_kmq_notify(td, args->mqd, evp));
3067 }
3068
3069 int
linux_mq_getsetattr(struct thread * td,struct linux_mq_getsetattr_args * args)3070 linux_mq_getsetattr(struct thread *td, struct linux_mq_getsetattr_args *args)
3071 {
3072 struct mq_attr attr, oattr;
3073 int error;
3074
3075 if (args->attr != NULL) {
3076 error = copyin(args->attr, &attr, sizeof(attr));
3077 if (error != 0)
3078 return (error);
3079 attr.mq_flags = L2B_MQ_FLAGS(attr.mq_flags);
3080 }
3081
3082 error = kern_kmq_setattr(td, args->mqd, args->attr != NULL ? &attr : NULL,
3083 &oattr);
3084 if (error == 0 && args->oattr != NULL) {
3085 oattr.mq_flags = B2L_MQ_FLAGS(oattr.mq_flags);
3086 bzero(oattr.__reserved, sizeof(oattr.__reserved));
3087 error = copyout(&oattr, args->oattr, sizeof(oattr));
3088 }
3089
3090 return (error);
3091 }
3092
3093 int
linux_kcmp(struct thread * td,struct linux_kcmp_args * args)3094 linux_kcmp(struct thread *td, struct linux_kcmp_args *args)
3095 {
3096 int type;
3097
3098 switch (args->type) {
3099 case LINUX_KCMP_FILE:
3100 type = KCMP_FILE;
3101 break;
3102 case LINUX_KCMP_FILES:
3103 type = KCMP_FILES;
3104 break;
3105 case LINUX_KCMP_SIGHAND:
3106 type = KCMP_SIGHAND;
3107 break;
3108 case LINUX_KCMP_VM:
3109 type = KCMP_VM;
3110 break;
3111 default:
3112 return (EINVAL);
3113 }
3114
3115 return (kern_kcmp(td, args->pid1, args->pid2, type, args->idx1,
3116 args->idx));
3117 }
3118
3119 int
linux_membarrier(struct thread * td,struct linux_membarrier_args * args)3120 linux_membarrier(struct thread *td, struct linux_membarrier_args *args)
3121 {
3122 static const struct {
3123 int linux_cmd;
3124 int freebsd_cmd;
3125 } cmds[] = {
3126 { LINUX_MEMBARRIER_CMD_QUERY,
3127 MEMBARRIER_CMD_QUERY },
3128 { LINUX_MEMBARRIER_CMD_GLOBAL,
3129 MEMBARRIER_CMD_GLOBAL },
3130 { LINUX_MEMBARRIER_CMD_GLOBAL_EXPEDITED,
3131 MEMBARRIER_CMD_GLOBAL_EXPEDITED },
3132 { LINUX_MEMBARRIER_CMD_REGISTER_GLOBAL_EXPEDITED,
3133 MEMBARRIER_CMD_REGISTER_GLOBAL_EXPEDITED },
3134 { LINUX_MEMBARRIER_CMD_PRIVATE_EXPEDITED,
3135 MEMBARRIER_CMD_PRIVATE_EXPEDITED },
3136 { LINUX_MEMBARRIER_CMD_REGISTER_PRIVATE_EXPEDITED,
3137 MEMBARRIER_CMD_REGISTER_PRIVATE_EXPEDITED },
3138 { LINUX_MEMBARRIER_CMD_PRIVATE_EXPEDITED_SYNC_CORE,
3139 MEMBARRIER_CMD_PRIVATE_EXPEDITED_SYNC_CORE },
3140 { LINUX_MEMBARRIER_CMD_REGISTER_PRIVATE_EXPEDITED_SYNC_CORE,
3141 MEMBARRIER_CMD_REGISTER_PRIVATE_EXPEDITED_SYNC_CORE },
3142 { LINUX_MEMBARRIER_CMD_PRIVATE_EXPEDITED_RSEQ,
3143 MEMBARRIER_CMD_PRIVATE_EXPEDITED_RSEQ },
3144 { LINUX_MEMBARRIER_CMD_REGISTER_PRIVATE_EXPEDITED_RSEQ,
3145 MEMBARRIER_CMD_REGISTER_PRIVATE_EXPEDITED_RSEQ },
3146 { LINUX_MEMBARRIER_CMD_GET_REGISTRATIONS,
3147 MEMBARRIER_CMD_GET_REGISTRATIONS },
3148 };
3149 int cmd, error, flags, i, mask;
3150
3151 cmd = -1;
3152 for (i = 0; i < nitems(cmds); i++) {
3153 if (args->cmd == cmds[i].linux_cmd) {
3154 cmd = cmds[i].freebsd_cmd;
3155 break;
3156 }
3157 }
3158
3159 if (cmd == -1 || (args->flags & ~LINUX_MEMBARRIER_CMD_FLAG_CPU) != 0)
3160 return (EINVAL);
3161
3162 flags = 0;
3163 if ((args->flags & LINUX_MEMBARRIER_CMD_FLAG_CPU) != 0)
3164 flags |= MEMBARRIER_CMD_FLAG_CPU;
3165
3166 error = kern_membarrier(td, cmd, flags, args->cpu_id);
3167 if (error != 0)
3168 return (error);
3169
3170 if (args->cmd == LINUX_MEMBARRIER_CMD_QUERY ||
3171 args->cmd == LINUX_MEMBARRIER_CMD_GET_REGISTRATIONS) {
3172 mask = td->td_retval[0];
3173 td->td_retval[0] = 0;
3174 for (i = 0; i < nitems(cmds); i++)
3175 if ((mask & cmds[i].freebsd_cmd) != 0)
3176 td->td_retval[0] |= cmds[i].linux_cmd;
3177 }
3178
3179 return (0);
3180 }
3181
3182 MODULE_DEPEND(linux, mqueuefs, 1, 1, 1);
3183