netbsd32_netbsd.c revision 1.20 1 1.20 eeh /* $NetBSD: netbsd32_netbsd.c,v 1.20 1999/12/30 15:40:45 eeh Exp $ */
2 1.1 mrg
3 1.1 mrg /*
4 1.1 mrg * Copyright (c) 1998 Matthew R. Green
5 1.1 mrg * All rights reserved.
6 1.1 mrg *
7 1.1 mrg * Redistribution and use in source and binary forms, with or without
8 1.1 mrg * modification, are permitted provided that the following conditions
9 1.1 mrg * are met:
10 1.1 mrg * 1. Redistributions of source code must retain the above copyright
11 1.1 mrg * notice, this list of conditions and the following disclaimer.
12 1.1 mrg * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 mrg * notice, this list of conditions and the following disclaimer in the
14 1.1 mrg * documentation and/or other materials provided with the distribution.
15 1.1 mrg * 3. The name of the author may not be used to endorse or promote products
16 1.1 mrg * derived from this software without specific prior written permission.
17 1.1 mrg *
18 1.1 mrg * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
19 1.1 mrg * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
20 1.1 mrg * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
21 1.1 mrg * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
22 1.1 mrg * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
23 1.1 mrg * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
24 1.1 mrg * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
25 1.1 mrg * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
26 1.1 mrg * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
27 1.1 mrg * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
28 1.1 mrg * SUCH DAMAGE.
29 1.1 mrg */
30 1.1 mrg
31 1.4 eeh #include "opt_ktrace.h"
32 1.6 eeh #include "opt_ntp.h"
33 1.20 eeh #include "opt_compat_netbsd.h"
34 1.7 drochner #include "opt_compat_freebsd.h"
35 1.7 drochner #include "opt_compat_linux.h"
36 1.7 drochner #include "opt_compat_sunos.h"
37 1.7 drochner #include "opt_compat_43.h"
38 1.20 eeh #include "opt_sysv.h"
39 1.7 drochner #if defined(COMPAT_43) || defined(COMPAT_SUNOS) || defined(COMPAT_LINUX) || \
40 1.7 drochner defined(COMPAT_FREEBSD)
41 1.7 drochner #define COMPAT_OLDSOCK /* used by <sys/socket.h> */
42 1.7 drochner #endif
43 1.7 drochner
44 1.6 eeh #include "fs_lfs.h"
45 1.6 eeh #include "fs_nfs.h"
46 1.4 eeh
47 1.1 mrg #include <sys/param.h>
48 1.1 mrg #include <sys/systm.h>
49 1.20 eeh #include <sys/filedesc.h>
50 1.6 eeh #include <sys/kernel.h>
51 1.1 mrg #include <sys/ipc.h>
52 1.1 mrg #include <sys/msg.h>
53 1.19 eeh #define msg __msg /* Don't ask me! */
54 1.1 mrg #include <sys/sem.h>
55 1.1 mrg #include <sys/shm.h>
56 1.1 mrg #include <sys/malloc.h>
57 1.1 mrg #include <sys/mount.h>
58 1.1 mrg #include <sys/socket.h>
59 1.1 mrg #include <sys/sockio.h>
60 1.6 eeh #include <sys/socketvar.h>
61 1.6 eeh #include <sys/mbuf.h>
62 1.1 mrg #include <sys/stat.h>
63 1.1 mrg #include <sys/time.h>
64 1.1 mrg #include <sys/timex.h>
65 1.4 eeh #include <sys/signalvar.h>
66 1.6 eeh #include <sys/wait.h>
67 1.6 eeh #include <sys/ptrace.h>
68 1.6 eeh #include <sys/ktrace.h>
69 1.6 eeh #include <sys/trace.h>
70 1.6 eeh #include <sys/resourcevar.h>
71 1.6 eeh #include <sys/pool.h>
72 1.6 eeh #include <sys/vnode.h>
73 1.6 eeh #include <sys/file.h>
74 1.6 eeh #include <sys/filedesc.h>
75 1.6 eeh #include <sys/namei.h>
76 1.1 mrg
77 1.1 mrg #include <vm/vm.h>
78 1.20 eeh #include <vm/vm_kern.h>
79 1.1 mrg #include <sys/syscallargs.h>
80 1.6 eeh #include <sys/proc.h>
81 1.20 eeh #include <sys/acct.h>
82 1.20 eeh #include <sys/exec.h>
83 1.6 eeh #include <sys/sysctl.h>
84 1.1 mrg
85 1.1 mrg #include <net/if.h>
86 1.1 mrg
87 1.10 mrg #include <compat/netbsd32/netbsd32.h>
88 1.10 mrg #include <compat/netbsd32/netbsd32_syscallargs.h>
89 1.1 mrg
90 1.4 eeh #include <machine/frame.h>
91 1.4 eeh
92 1.10 mrg static __inline void netbsd32_from_timeval __P((struct timeval *, struct netbsd32_timeval *));
93 1.10 mrg static __inline void netbsd32_to_timeval __P((struct netbsd32_timeval *, struct timeval *));
94 1.10 mrg static __inline void netbsd32_from_itimerval __P((struct itimerval *, struct netbsd32_itimerval *));
95 1.10 mrg static __inline void netbsd32_to_itimerval __P((struct netbsd32_itimerval *, struct itimerval *));
96 1.10 mrg static __inline void netbsd32_to_timespec __P((struct netbsd32_timespec *, struct timespec *));
97 1.10 mrg static __inline void netbsd32_from_timespec __P((struct timespec *, struct netbsd32_timespec *));
98 1.10 mrg static __inline void netbsd32_from_rusage __P((struct rusage *, struct netbsd32_rusage *));
99 1.10 mrg static __inline void netbsd32_to_rusage __P((struct netbsd32_rusage *, struct rusage *));
100 1.10 mrg static __inline int netbsd32_to_iovecin __P((struct netbsd32_iovec *, struct iovec *, int));
101 1.10 mrg static __inline void netbsd32_to_msghdr __P((struct netbsd32_msghdr *, struct msghdr *));
102 1.10 mrg static __inline void netbsd32_from_msghdr __P((struct netbsd32_msghdr *, struct msghdr *));
103 1.10 mrg static __inline void netbsd32_from_statfs __P((struct statfs *, struct netbsd32_statfs *));
104 1.10 mrg static __inline void netbsd32_from_timex __P((struct timex *, struct netbsd32_timex *));
105 1.10 mrg static __inline void netbsd32_to_timex __P((struct netbsd32_timex *, struct timex *));
106 1.10 mrg static __inline void netbsd32_from___stat13 __P((struct stat *, struct netbsd32_stat *));
107 1.10 mrg static __inline void netbsd32_to_ipc_perm __P((struct netbsd32_ipc_perm *, struct ipc_perm *));
108 1.10 mrg static __inline void netbsd32_from_ipc_perm __P((struct ipc_perm *, struct netbsd32_ipc_perm *));
109 1.10 mrg static __inline void netbsd32_to_msg __P((struct netbsd32_msg *, struct msg *));
110 1.10 mrg static __inline void netbsd32_from_msg __P((struct msg *, struct netbsd32_msg *));
111 1.10 mrg static __inline void netbsd32_to_msqid_ds __P((struct netbsd32_msqid_ds *, struct msqid_ds *));
112 1.10 mrg static __inline void netbsd32_from_msqid_ds __P((struct msqid_ds *, struct netbsd32_msqid_ds *));
113 1.10 mrg static __inline void netbsd32_to_shmid_ds __P((struct netbsd32_shmid_ds *, struct shmid_ds *));
114 1.10 mrg static __inline void netbsd32_from_shmid_ds __P((struct shmid_ds *, struct netbsd32_shmid_ds *));
115 1.10 mrg static __inline void netbsd32_to_semid_ds __P((struct netbsd32_semid_ds *, struct semid_ds *));
116 1.10 mrg static __inline void netbsd32_from_semid_ds __P((struct semid_ds *, struct netbsd32_semid_ds *));
117 1.4 eeh
118 1.6 eeh
119 1.10 mrg static int recvit32 __P((struct proc *, int, struct netbsd32_msghdr *, struct iovec *, caddr_t,
120 1.6 eeh register_t *));
121 1.10 mrg static int dofilereadv32 __P((struct proc *, int, struct file *, struct netbsd32_iovec *,
122 1.6 eeh int, off_t *, int, register_t *));
123 1.10 mrg static int dofilewritev32 __P((struct proc *, int, struct file *, struct netbsd32_iovec *,
124 1.6 eeh int, off_t *, int, register_t *));
125 1.6 eeh static int change_utimes32 __P((struct vnode *, struct timeval *, struct proc *));
126 1.6 eeh
127 1.1 mrg /* converters for structures that we need */
128 1.1 mrg static __inline void
129 1.10 mrg netbsd32_from_timeval(tv, tv32)
130 1.1 mrg struct timeval *tv;
131 1.10 mrg struct netbsd32_timeval *tv32;
132 1.1 mrg {
133 1.1 mrg
134 1.10 mrg tv32->tv_sec = (netbsd32_long)tv->tv_sec;
135 1.10 mrg tv32->tv_usec = (netbsd32_long)tv->tv_usec;
136 1.1 mrg }
137 1.1 mrg
138 1.1 mrg static __inline void
139 1.10 mrg netbsd32_to_timeval(tv32, tv)
140 1.10 mrg struct netbsd32_timeval *tv32;
141 1.1 mrg struct timeval *tv;
142 1.1 mrg {
143 1.1 mrg
144 1.1 mrg tv->tv_sec = (long)tv32->tv_sec;
145 1.1 mrg tv->tv_usec = (long)tv32->tv_usec;
146 1.1 mrg }
147 1.1 mrg
148 1.1 mrg static __inline void
149 1.10 mrg netbsd32_from_itimerval(itv, itv32)
150 1.1 mrg struct itimerval *itv;
151 1.10 mrg struct netbsd32_itimerval *itv32;
152 1.1 mrg {
153 1.1 mrg
154 1.10 mrg netbsd32_from_timeval(&itv->it_interval,
155 1.6 eeh &itv32->it_interval);
156 1.10 mrg netbsd32_from_timeval(&itv->it_value,
157 1.6 eeh &itv32->it_value);
158 1.1 mrg }
159 1.1 mrg
160 1.1 mrg static __inline void
161 1.10 mrg netbsd32_to_itimerval(itv32, itv)
162 1.10 mrg struct netbsd32_itimerval *itv32;
163 1.1 mrg struct itimerval *itv;
164 1.1 mrg {
165 1.1 mrg
166 1.10 mrg netbsd32_to_timeval(&itv32->it_interval, &itv->it_interval);
167 1.10 mrg netbsd32_to_timeval(&itv32->it_value, &itv->it_value);
168 1.1 mrg }
169 1.1 mrg
170 1.1 mrg static __inline void
171 1.10 mrg netbsd32_to_timespec(s32p, p)
172 1.10 mrg struct netbsd32_timespec *s32p;
173 1.2 mrg struct timespec *p;
174 1.2 mrg {
175 1.2 mrg
176 1.20 eeh p->tv_sec = (time_t)s32p->tv_sec;
177 1.2 mrg p->tv_nsec = (long)s32p->tv_nsec;
178 1.2 mrg }
179 1.2 mrg
180 1.2 mrg static __inline void
181 1.10 mrg netbsd32_from_timespec(p, s32p)
182 1.2 mrg struct timespec *p;
183 1.10 mrg struct netbsd32_timespec *s32p;
184 1.2 mrg {
185 1.2 mrg
186 1.20 eeh s32p->tv_sec = (netbsd32_time_t)p->tv_sec;
187 1.10 mrg s32p->tv_nsec = (netbsd32_long)p->tv_nsec;
188 1.2 mrg }
189 1.2 mrg
190 1.2 mrg static __inline void
191 1.10 mrg netbsd32_from_rusage(rup, ru32p)
192 1.1 mrg struct rusage *rup;
193 1.10 mrg struct netbsd32_rusage *ru32p;
194 1.1 mrg {
195 1.1 mrg
196 1.10 mrg netbsd32_from_timeval(&rup->ru_utime, &ru32p->ru_utime);
197 1.10 mrg netbsd32_from_timeval(&rup->ru_stime, &ru32p->ru_stime);
198 1.10 mrg #define C(var) ru32p->var = (netbsd32_long)rup->var
199 1.1 mrg C(ru_maxrss);
200 1.1 mrg C(ru_ixrss);
201 1.1 mrg C(ru_idrss);
202 1.1 mrg C(ru_isrss);
203 1.1 mrg C(ru_minflt);
204 1.1 mrg C(ru_majflt);
205 1.1 mrg C(ru_nswap);
206 1.1 mrg C(ru_inblock);
207 1.1 mrg C(ru_oublock);
208 1.1 mrg C(ru_msgsnd);
209 1.1 mrg C(ru_msgrcv);
210 1.1 mrg C(ru_nsignals);
211 1.1 mrg C(ru_nvcsw);
212 1.1 mrg C(ru_nivcsw);
213 1.1 mrg #undef C
214 1.1 mrg }
215 1.1 mrg
216 1.1 mrg static __inline void
217 1.10 mrg netbsd32_to_rusage(ru32p, rup)
218 1.10 mrg struct netbsd32_rusage *ru32p;
219 1.1 mrg struct rusage *rup;
220 1.1 mrg {
221 1.1 mrg
222 1.10 mrg netbsd32_to_timeval(&ru32p->ru_utime, &rup->ru_utime);
223 1.10 mrg netbsd32_to_timeval(&ru32p->ru_stime, &rup->ru_stime);
224 1.1 mrg #define C(var) rup->var = (long)ru32p->var
225 1.1 mrg C(ru_maxrss);
226 1.1 mrg C(ru_ixrss);
227 1.1 mrg C(ru_idrss);
228 1.1 mrg C(ru_isrss);
229 1.1 mrg C(ru_minflt);
230 1.1 mrg C(ru_majflt);
231 1.1 mrg C(ru_nswap);
232 1.1 mrg C(ru_inblock);
233 1.1 mrg C(ru_oublock);
234 1.1 mrg C(ru_msgsnd);
235 1.1 mrg C(ru_msgrcv);
236 1.1 mrg C(ru_nsignals);
237 1.1 mrg C(ru_nvcsw);
238 1.1 mrg C(ru_nivcsw);
239 1.1 mrg #undef C
240 1.1 mrg }
241 1.1 mrg
242 1.6 eeh static __inline int
243 1.10 mrg netbsd32_to_iovecin(iov32p, iovp, len)
244 1.10 mrg struct netbsd32_iovec *iov32p;
245 1.1 mrg struct iovec *iovp;
246 1.1 mrg int len;
247 1.1 mrg {
248 1.6 eeh int i, error=0;
249 1.6 eeh u_int32_t iov_base;
250 1.6 eeh u_int32_t iov_len;
251 1.6 eeh /*
252 1.6 eeh * We could allocate an iov32p, do a copyin, and translate
253 1.6 eeh * each field and then free it all up, or we could copyin
254 1.6 eeh * each field separately. I'm doing the latter to reduce
255 1.6 eeh * the number of MALLOC()s.
256 1.6 eeh */
257 1.1 mrg for (i = 0; i < len; i++, iovp++, iov32p++) {
258 1.6 eeh if ((error = copyin((caddr_t)&iov32p->iov_base, &iov_base, sizeof(iov_base))))
259 1.6 eeh return (error);
260 1.6 eeh if ((error = copyin((caddr_t)&iov32p->iov_len, &iov_len, sizeof(iov_len))))
261 1.6 eeh return (error);
262 1.6 eeh iovp->iov_base = (void *)(u_long)iov_base;
263 1.6 eeh iovp->iov_len = (size_t)iov_len;
264 1.1 mrg }
265 1.1 mrg }
266 1.1 mrg
267 1.6 eeh /* msg_iov must be done separately */
268 1.1 mrg static __inline void
269 1.10 mrg netbsd32_to_msghdr(mhp32, mhp)
270 1.10 mrg struct netbsd32_msghdr *mhp32;
271 1.1 mrg struct msghdr *mhp;
272 1.1 mrg {
273 1.1 mrg
274 1.1 mrg mhp->msg_name = (caddr_t)(u_long)mhp32->msg_name;
275 1.1 mrg mhp->msg_namelen = mhp32->msg_namelen;
276 1.1 mrg mhp->msg_iovlen = (size_t)mhp32->msg_iovlen;
277 1.1 mrg mhp->msg_control = (caddr_t)(u_long)mhp32->msg_control;
278 1.1 mrg mhp->msg_controllen = mhp32->msg_controllen;
279 1.1 mrg mhp->msg_flags = mhp32->msg_flags;
280 1.6 eeh }
281 1.6 eeh
282 1.6 eeh /* msg_iov must be done separately */
283 1.6 eeh static __inline void
284 1.10 mrg netbsd32_from_msghdr(mhp32, mhp)
285 1.10 mrg struct netbsd32_msghdr *mhp32;
286 1.6 eeh struct msghdr *mhp;
287 1.6 eeh {
288 1.6 eeh
289 1.6 eeh mhp32->msg_name = mhp32->msg_name;
290 1.6 eeh mhp32->msg_namelen = mhp32->msg_namelen;
291 1.6 eeh mhp32->msg_iovlen = mhp32->msg_iovlen;
292 1.6 eeh mhp32->msg_control = mhp32->msg_control;
293 1.6 eeh mhp32->msg_controllen = mhp->msg_controllen;
294 1.6 eeh mhp32->msg_flags = mhp->msg_flags;
295 1.1 mrg }
296 1.1 mrg
297 1.1 mrg static __inline void
298 1.10 mrg netbsd32_from_statfs(sbp, sb32p)
299 1.1 mrg struct statfs *sbp;
300 1.10 mrg struct netbsd32_statfs *sb32p;
301 1.1 mrg {
302 1.1 mrg sb32p->f_type = sbp->f_type;
303 1.1 mrg sb32p->f_flags = sbp->f_flags;
304 1.10 mrg sb32p->f_bsize = (netbsd32_long)sbp->f_bsize;
305 1.10 mrg sb32p->f_iosize = (netbsd32_long)sbp->f_iosize;
306 1.10 mrg sb32p->f_blocks = (netbsd32_long)sbp->f_blocks;
307 1.10 mrg sb32p->f_bfree = (netbsd32_long)sbp->f_bfree;
308 1.10 mrg sb32p->f_bavail = (netbsd32_long)sbp->f_bavail;
309 1.10 mrg sb32p->f_files = (netbsd32_long)sbp->f_files;
310 1.10 mrg sb32p->f_ffree = (netbsd32_long)sbp->f_ffree;
311 1.1 mrg sb32p->f_fsid = sbp->f_fsid;
312 1.1 mrg sb32p->f_owner = sbp->f_owner;
313 1.6 eeh sb32p->f_spare[0] = 0;
314 1.6 eeh sb32p->f_spare[1] = 0;
315 1.6 eeh sb32p->f_spare[2] = 0;
316 1.6 eeh sb32p->f_spare[3] = 0;
317 1.6 eeh #if 1
318 1.6 eeh /* May as well do the whole batch in one go */
319 1.6 eeh memcpy(sb32p->f_fstypename, sbp->f_fstypename, MFSNAMELEN+MNAMELEN+MNAMELEN);
320 1.6 eeh #else
321 1.6 eeh /* If we want to be careful */
322 1.6 eeh memcpy(sb32p->f_fstypename, sbp->f_fstypename, MFSNAMELEN);
323 1.6 eeh memcpy(sb32p->f_mntonname, sbp->f_mntonname, MNAMELEN);
324 1.6 eeh memcpy(sb32p->f_mntfromname, sbp->f_mntfromname, MNAMELEN);
325 1.6 eeh #endif
326 1.1 mrg }
327 1.1 mrg
328 1.1 mrg static __inline void
329 1.10 mrg netbsd32_from_timex(txp, tx32p)
330 1.1 mrg struct timex *txp;
331 1.10 mrg struct netbsd32_timex *tx32p;
332 1.1 mrg {
333 1.1 mrg
334 1.1 mrg tx32p->modes = txp->modes;
335 1.10 mrg tx32p->offset = (netbsd32_long)txp->offset;
336 1.10 mrg tx32p->freq = (netbsd32_long)txp->freq;
337 1.10 mrg tx32p->maxerror = (netbsd32_long)txp->maxerror;
338 1.10 mrg tx32p->esterror = (netbsd32_long)txp->esterror;
339 1.1 mrg tx32p->status = txp->status;
340 1.10 mrg tx32p->constant = (netbsd32_long)txp->constant;
341 1.10 mrg tx32p->precision = (netbsd32_long)txp->precision;
342 1.10 mrg tx32p->tolerance = (netbsd32_long)txp->tolerance;
343 1.10 mrg tx32p->ppsfreq = (netbsd32_long)txp->ppsfreq;
344 1.10 mrg tx32p->jitter = (netbsd32_long)txp->jitter;
345 1.1 mrg tx32p->shift = txp->shift;
346 1.10 mrg tx32p->stabil = (netbsd32_long)txp->stabil;
347 1.10 mrg tx32p->jitcnt = (netbsd32_long)txp->jitcnt;
348 1.10 mrg tx32p->calcnt = (netbsd32_long)txp->calcnt;
349 1.10 mrg tx32p->errcnt = (netbsd32_long)txp->errcnt;
350 1.10 mrg tx32p->stbcnt = (netbsd32_long)txp->stbcnt;
351 1.1 mrg }
352 1.1 mrg
353 1.1 mrg static __inline void
354 1.10 mrg netbsd32_to_timex(tx32p, txp)
355 1.10 mrg struct netbsd32_timex *tx32p;
356 1.1 mrg struct timex *txp;
357 1.1 mrg {
358 1.1 mrg
359 1.1 mrg txp->modes = tx32p->modes;
360 1.1 mrg txp->offset = (long)tx32p->offset;
361 1.1 mrg txp->freq = (long)tx32p->freq;
362 1.1 mrg txp->maxerror = (long)tx32p->maxerror;
363 1.1 mrg txp->esterror = (long)tx32p->esterror;
364 1.1 mrg txp->status = tx32p->status;
365 1.1 mrg txp->constant = (long)tx32p->constant;
366 1.1 mrg txp->precision = (long)tx32p->precision;
367 1.1 mrg txp->tolerance = (long)tx32p->tolerance;
368 1.1 mrg txp->ppsfreq = (long)tx32p->ppsfreq;
369 1.1 mrg txp->jitter = (long)tx32p->jitter;
370 1.1 mrg txp->shift = tx32p->shift;
371 1.1 mrg txp->stabil = (long)tx32p->stabil;
372 1.1 mrg txp->jitcnt = (long)tx32p->jitcnt;
373 1.1 mrg txp->calcnt = (long)tx32p->calcnt;
374 1.1 mrg txp->errcnt = (long)tx32p->errcnt;
375 1.1 mrg txp->stbcnt = (long)tx32p->stbcnt;
376 1.1 mrg }
377 1.1 mrg
378 1.1 mrg static __inline void
379 1.10 mrg netbsd32_from___stat13(sbp, sb32p)
380 1.1 mrg struct stat *sbp;
381 1.10 mrg struct netbsd32_stat *sb32p;
382 1.1 mrg {
383 1.1 mrg sb32p->st_dev = sbp->st_dev;
384 1.1 mrg sb32p->st_ino = sbp->st_ino;
385 1.1 mrg sb32p->st_mode = sbp->st_mode;
386 1.1 mrg sb32p->st_nlink = sbp->st_nlink;
387 1.1 mrg sb32p->st_uid = sbp->st_uid;
388 1.1 mrg sb32p->st_gid = sbp->st_gid;
389 1.1 mrg sb32p->st_rdev = sbp->st_rdev;
390 1.1 mrg if (sbp->st_size < (quad_t)1 << 32)
391 1.1 mrg sb32p->st_size = sbp->st_size;
392 1.1 mrg else
393 1.1 mrg sb32p->st_size = -2;
394 1.20 eeh sb32p->st_atimespec.tv_sec = (netbsd32_time_t)sbp->st_atimespec.tv_sec;
395 1.10 mrg sb32p->st_atimespec.tv_nsec = (netbsd32_long)sbp->st_atimespec.tv_nsec;
396 1.20 eeh sb32p->st_mtimespec.tv_sec = (netbsd32_time_t)sbp->st_mtimespec.tv_sec;
397 1.10 mrg sb32p->st_mtimespec.tv_nsec = (netbsd32_long)sbp->st_mtimespec.tv_nsec;
398 1.20 eeh sb32p->st_ctimespec.tv_sec = (netbsd32_time_t)sbp->st_ctimespec.tv_sec;
399 1.10 mrg sb32p->st_ctimespec.tv_nsec = (netbsd32_long)sbp->st_ctimespec.tv_nsec;
400 1.1 mrg sb32p->st_blksize = sbp->st_blksize;
401 1.1 mrg sb32p->st_blocks = sbp->st_blocks;
402 1.1 mrg sb32p->st_flags = sbp->st_flags;
403 1.1 mrg sb32p->st_gen = sbp->st_gen;
404 1.1 mrg }
405 1.1 mrg
406 1.1 mrg static __inline void
407 1.10 mrg netbsd32_to_ipc_perm(ip32p, ipp)
408 1.10 mrg struct netbsd32_ipc_perm *ip32p;
409 1.1 mrg struct ipc_perm *ipp;
410 1.1 mrg {
411 1.1 mrg
412 1.1 mrg ipp->cuid = ip32p->cuid;
413 1.1 mrg ipp->cgid = ip32p->cgid;
414 1.1 mrg ipp->uid = ip32p->uid;
415 1.1 mrg ipp->gid = ip32p->gid;
416 1.1 mrg ipp->mode = ip32p->mode;
417 1.19 eeh ipp->_seq = ip32p->_seq;
418 1.19 eeh ipp->_key = (key_t)ip32p->_key;
419 1.1 mrg }
420 1.1 mrg
421 1.1 mrg static __inline void
422 1.10 mrg netbsd32_from_ipc_perm(ipp, ip32p)
423 1.1 mrg struct ipc_perm *ipp;
424 1.10 mrg struct netbsd32_ipc_perm *ip32p;
425 1.1 mrg {
426 1.1 mrg
427 1.1 mrg ip32p->cuid = ipp->cuid;
428 1.1 mrg ip32p->cgid = ipp->cgid;
429 1.1 mrg ip32p->uid = ipp->uid;
430 1.1 mrg ip32p->gid = ipp->gid;
431 1.1 mrg ip32p->mode = ipp->mode;
432 1.19 eeh ip32p->_seq = ipp->_seq;
433 1.19 eeh ip32p->_key = (netbsd32_key_t)ipp->_key;
434 1.1 mrg }
435 1.1 mrg
436 1.1 mrg static __inline void
437 1.10 mrg netbsd32_to_msg(m32p, mp)
438 1.10 mrg struct netbsd32_msg *m32p;
439 1.1 mrg struct msg *mp;
440 1.1 mrg {
441 1.1 mrg
442 1.1 mrg mp->msg_next = (struct msg *)(u_long)m32p->msg_next;
443 1.1 mrg mp->msg_type = (long)m32p->msg_type;
444 1.1 mrg mp->msg_ts = m32p->msg_ts;
445 1.1 mrg mp->msg_spot = m32p->msg_spot;
446 1.1 mrg }
447 1.1 mrg
448 1.1 mrg static __inline void
449 1.10 mrg netbsd32_from_msg(mp, m32p)
450 1.1 mrg struct msg *mp;
451 1.10 mrg struct netbsd32_msg *m32p;
452 1.1 mrg {
453 1.1 mrg
454 1.10 mrg m32p->msg_next = (netbsd32_msgp_t)(u_long)mp->msg_next;
455 1.10 mrg m32p->msg_type = (netbsd32_long)mp->msg_type;
456 1.1 mrg m32p->msg_ts = mp->msg_ts;
457 1.1 mrg m32p->msg_spot = mp->msg_spot;
458 1.1 mrg }
459 1.1 mrg
460 1.1 mrg static __inline void
461 1.10 mrg netbsd32_to_msqid_ds(ds32p, dsp)
462 1.10 mrg struct netbsd32_msqid_ds *ds32p;
463 1.1 mrg struct msqid_ds *dsp;
464 1.1 mrg {
465 1.1 mrg
466 1.10 mrg netbsd32_to_ipc_perm(&ds32p->msg_perm, &dsp->msg_perm);
467 1.19 eeh netbsd32_to_msg((struct netbsd32_msg *)(u_long)ds32p->_msg_first, dsp->_msg_first);
468 1.19 eeh netbsd32_to_msg((struct netbsd32_msg *)(u_long)ds32p->_msg_last, dsp->_msg_last);
469 1.19 eeh dsp->_msg_cbytes = (u_long)ds32p->_msg_cbytes;
470 1.1 mrg dsp->msg_qnum = (u_long)ds32p->msg_qnum;
471 1.1 mrg dsp->msg_qbytes = (u_long)ds32p->msg_qbytes;
472 1.1 mrg dsp->msg_lspid = ds32p->msg_lspid;
473 1.1 mrg dsp->msg_lrpid = ds32p->msg_lrpid;
474 1.1 mrg dsp->msg_rtime = (time_t)ds32p->msg_rtime;
475 1.1 mrg dsp->msg_stime = (time_t)ds32p->msg_stime;
476 1.1 mrg dsp->msg_ctime = (time_t)ds32p->msg_ctime;
477 1.1 mrg }
478 1.1 mrg
479 1.1 mrg static __inline void
480 1.10 mrg netbsd32_from_msqid_ds(dsp, ds32p)
481 1.1 mrg struct msqid_ds *dsp;
482 1.10 mrg struct netbsd32_msqid_ds *ds32p;
483 1.1 mrg {
484 1.1 mrg
485 1.10 mrg netbsd32_from_ipc_perm(&dsp->msg_perm, &ds32p->msg_perm);
486 1.19 eeh netbsd32_from_msg(dsp->_msg_first, (struct netbsd32_msg *)(u_long)ds32p->_msg_first);
487 1.19 eeh netbsd32_from_msg(dsp->_msg_last, (struct netbsd32_msg *)(u_long)ds32p->_msg_last);
488 1.19 eeh ds32p->_msg_cbytes = (netbsd32_u_long)dsp->_msg_cbytes;
489 1.10 mrg ds32p->msg_qnum = (netbsd32_u_long)dsp->msg_qnum;
490 1.10 mrg ds32p->msg_qbytes = (netbsd32_u_long)dsp->msg_qbytes;
491 1.1 mrg ds32p->msg_lspid = dsp->msg_lspid;
492 1.1 mrg ds32p->msg_lrpid = dsp->msg_lrpid;
493 1.1 mrg ds32p->msg_rtime = dsp->msg_rtime;
494 1.1 mrg ds32p->msg_stime = dsp->msg_stime;
495 1.1 mrg ds32p->msg_ctime = dsp->msg_ctime;
496 1.1 mrg }
497 1.1 mrg
498 1.1 mrg static __inline void
499 1.10 mrg netbsd32_to_shmid_ds(ds32p, dsp)
500 1.10 mrg struct netbsd32_shmid_ds *ds32p;
501 1.1 mrg struct shmid_ds *dsp;
502 1.1 mrg {
503 1.1 mrg
504 1.10 mrg netbsd32_to_ipc_perm(&ds32p->shm_perm, &dsp->shm_perm);
505 1.1 mrg dsp->shm_segsz = ds32p->shm_segsz;
506 1.1 mrg dsp->shm_lpid = ds32p->shm_lpid;
507 1.1 mrg dsp->shm_cpid = ds32p->shm_cpid;
508 1.1 mrg dsp->shm_nattch = ds32p->shm_nattch;
509 1.1 mrg dsp->shm_atime = (long)ds32p->shm_atime;
510 1.1 mrg dsp->shm_dtime = (long)ds32p->shm_dtime;
511 1.1 mrg dsp->shm_ctime = (long)ds32p->shm_ctime;
512 1.19 eeh dsp->_shm_internal = (void *)(u_long)ds32p->_shm_internal;
513 1.1 mrg }
514 1.1 mrg
515 1.1 mrg static __inline void
516 1.10 mrg netbsd32_from_shmid_ds(dsp, ds32p)
517 1.1 mrg struct shmid_ds *dsp;
518 1.10 mrg struct netbsd32_shmid_ds *ds32p;
519 1.1 mrg {
520 1.1 mrg
521 1.10 mrg netbsd32_from_ipc_perm(&dsp->shm_perm, &ds32p->shm_perm);
522 1.1 mrg ds32p->shm_segsz = dsp->shm_segsz;
523 1.1 mrg ds32p->shm_lpid = dsp->shm_lpid;
524 1.1 mrg ds32p->shm_cpid = dsp->shm_cpid;
525 1.1 mrg ds32p->shm_nattch = dsp->shm_nattch;
526 1.10 mrg ds32p->shm_atime = (netbsd32_long)dsp->shm_atime;
527 1.10 mrg ds32p->shm_dtime = (netbsd32_long)dsp->shm_dtime;
528 1.10 mrg ds32p->shm_ctime = (netbsd32_long)dsp->shm_ctime;
529 1.19 eeh ds32p->_shm_internal = (netbsd32_voidp)(u_long)dsp->_shm_internal;
530 1.1 mrg }
531 1.1 mrg
532 1.1 mrg static __inline void
533 1.10 mrg netbsd32_to_semid_ds(s32dsp, dsp)
534 1.10 mrg struct netbsd32_semid_ds *s32dsp;
535 1.1 mrg struct semid_ds *dsp;
536 1.1 mrg {
537 1.1 mrg
538 1.10 mrg netbsd32_from_ipc_perm(&dsp->sem_perm, &s32dsp->sem_perm);
539 1.19 eeh dsp->_sem_base = (struct __sem *)(u_long)s32dsp->_sem_base;
540 1.1 mrg dsp->sem_nsems = s32dsp->sem_nsems;
541 1.1 mrg dsp->sem_otime = s32dsp->sem_otime;
542 1.1 mrg dsp->sem_ctime = s32dsp->sem_ctime;
543 1.1 mrg }
544 1.1 mrg
545 1.2 mrg static __inline void
546 1.10 mrg netbsd32_from_semid_ds(dsp, s32dsp)
547 1.2 mrg struct semid_ds *dsp;
548 1.10 mrg struct netbsd32_semid_ds *s32dsp;
549 1.2 mrg {
550 1.2 mrg
551 1.10 mrg netbsd32_to_ipc_perm(&s32dsp->sem_perm, &dsp->sem_perm);
552 1.19 eeh s32dsp->_sem_base = (netbsd32_semp_t)(u_long)dsp->_sem_base;
553 1.2 mrg s32dsp->sem_nsems = dsp->sem_nsems;
554 1.2 mrg s32dsp->sem_otime = dsp->sem_otime;
555 1.2 mrg s32dsp->sem_ctime = dsp->sem_ctime;
556 1.2 mrg }
557 1.2 mrg
558 1.1 mrg /*
559 1.1 mrg * below are all the standard NetBSD system calls, in the 32bit
560 1.1 mrg * environment, witht he necessary conversions to 64bit before
561 1.1 mrg * calling the real syscall.
562 1.1 mrg */
563 1.1 mrg
564 1.6 eeh
565 1.6 eeh int
566 1.19 eeh netbsd32_exit(p, v, retval)
567 1.6 eeh struct proc *p;
568 1.6 eeh void *v;
569 1.6 eeh register_t *retval;
570 1.6 eeh {
571 1.19 eeh struct netbsd32_exit_args /* {
572 1.6 eeh syscallarg(int) rval;
573 1.6 eeh } */ *uap = v;
574 1.6 eeh struct sys_exit_args ua;
575 1.6 eeh
576 1.11 mrg NETBSD32TO64_UAP(rval);
577 1.6 eeh sys_exit(p, &ua, retval);
578 1.6 eeh }
579 1.6 eeh
580 1.1 mrg int
581 1.19 eeh netbsd32_read(p, v, retval)
582 1.1 mrg struct proc *p;
583 1.1 mrg void *v;
584 1.1 mrg register_t *retval;
585 1.1 mrg {
586 1.19 eeh struct netbsd32_read_args /* {
587 1.1 mrg syscallarg(int) fd;
588 1.10 mrg syscallarg(netbsd32_voidp) buf;
589 1.10 mrg syscallarg(netbsd32_size_t) nbyte;
590 1.1 mrg } */ *uap = v;
591 1.1 mrg struct sys_read_args ua;
592 1.1 mrg
593 1.11 mrg NETBSD32TO64_UAP(fd);
594 1.11 mrg NETBSD32TOP_UAP(buf, void *);
595 1.11 mrg NETBSD32TOX_UAP(nbyte, size_t);
596 1.6 eeh return sys_read(p, &ua, retval);
597 1.1 mrg }
598 1.1 mrg
599 1.1 mrg int
600 1.19 eeh netbsd32_write(p, v, retval)
601 1.1 mrg struct proc *p;
602 1.1 mrg void *v;
603 1.1 mrg register_t *retval;
604 1.1 mrg {
605 1.19 eeh struct netbsd32_write_args /* {
606 1.1 mrg syscallarg(int) fd;
607 1.10 mrg syscallarg(const netbsd32_voidp) buf;
608 1.10 mrg syscallarg(netbsd32_size_t) nbyte;
609 1.1 mrg } */ *uap = v;
610 1.1 mrg struct sys_write_args ua;
611 1.1 mrg
612 1.11 mrg NETBSD32TO64_UAP(fd);
613 1.11 mrg NETBSD32TOP_UAP(buf, void *);
614 1.11 mrg NETBSD32TOX_UAP(nbyte, size_t);
615 1.6 eeh return sys_write(p, &ua, retval);
616 1.6 eeh }
617 1.6 eeh
618 1.6 eeh int
619 1.19 eeh netbsd32_close(p, v, retval)
620 1.6 eeh struct proc *p;
621 1.6 eeh void *v;
622 1.6 eeh register_t *retval;
623 1.6 eeh {
624 1.19 eeh struct netbsd32_close_args /* {
625 1.6 eeh syscallarg(int) fd;
626 1.6 eeh } */ *uap = v;
627 1.6 eeh struct sys_close_args ua;
628 1.1 mrg
629 1.11 mrg NETBSD32TO64_UAP(fd);
630 1.6 eeh return sys_write(p, &ua, retval);
631 1.1 mrg }
632 1.1 mrg
633 1.1 mrg int
634 1.19 eeh netbsd32_open(p, v, retval)
635 1.1 mrg struct proc *p;
636 1.1 mrg void *v;
637 1.1 mrg register_t *retval;
638 1.1 mrg {
639 1.19 eeh struct netbsd32_open_args /* {
640 1.10 mrg syscallarg(const netbsd32_charp) path;
641 1.1 mrg syscallarg(int) flags;
642 1.1 mrg syscallarg(mode_t) mode;
643 1.1 mrg } */ *uap = v;
644 1.1 mrg struct sys_open_args ua;
645 1.1 mrg caddr_t sg;
646 1.1 mrg
647 1.11 mrg NETBSD32TOP_UAP(path, const char);
648 1.11 mrg NETBSD32TO64_UAP(flags);
649 1.11 mrg NETBSD32TO64_UAP(mode);
650 1.1 mrg sg = stackgap_init(p->p_emul);
651 1.11 mrg NETBSD32_CHECK_ALT_EXIST(p, &sg, SCARG(&ua, path));
652 1.1 mrg
653 1.1 mrg return (sys_open(p, &ua, retval));
654 1.1 mrg }
655 1.1 mrg
656 1.1 mrg int
657 1.19 eeh netbsd32_wait4(q, v, retval)
658 1.6 eeh struct proc *q;
659 1.1 mrg void *v;
660 1.1 mrg register_t *retval;
661 1.1 mrg {
662 1.19 eeh struct netbsd32_wait4_args /* {
663 1.1 mrg syscallarg(int) pid;
664 1.10 mrg syscallarg(netbsd32_intp) status;
665 1.1 mrg syscallarg(int) options;
666 1.10 mrg syscallarg(netbsd32_rusagep_t) rusage;
667 1.1 mrg } */ *uap = v;
668 1.10 mrg struct netbsd32_rusage ru32;
669 1.6 eeh register int nfound;
670 1.6 eeh register struct proc *p, *t;
671 1.6 eeh int status, error;
672 1.6 eeh
673 1.6 eeh if (SCARG(uap, pid) == 0)
674 1.6 eeh SCARG(uap, pid) = -q->p_pgid;
675 1.6 eeh if (SCARG(uap, options) &~ (WUNTRACED|WNOHANG))
676 1.6 eeh return (EINVAL);
677 1.1 mrg
678 1.6 eeh loop:
679 1.6 eeh nfound = 0;
680 1.6 eeh for (p = q->p_children.lh_first; p != 0; p = p->p_sibling.le_next) {
681 1.6 eeh if (SCARG(uap, pid) != WAIT_ANY &&
682 1.6 eeh p->p_pid != SCARG(uap, pid) &&
683 1.6 eeh p->p_pgid != -SCARG(uap, pid))
684 1.6 eeh continue;
685 1.6 eeh nfound++;
686 1.6 eeh if (p->p_stat == SZOMB) {
687 1.6 eeh retval[0] = p->p_pid;
688 1.6 eeh
689 1.6 eeh if (SCARG(uap, status)) {
690 1.6 eeh status = p->p_xstat; /* convert to int */
691 1.6 eeh error = copyout((caddr_t)&status,
692 1.6 eeh (caddr_t)(u_long)SCARG(uap, status),
693 1.6 eeh sizeof(status));
694 1.6 eeh if (error)
695 1.6 eeh return (error);
696 1.6 eeh }
697 1.6 eeh if (SCARG(uap, rusage)) {
698 1.10 mrg netbsd32_from_rusage(p->p_ru, &ru32);
699 1.6 eeh if ((error = copyout((caddr_t)&ru32,
700 1.6 eeh (caddr_t)(u_long)SCARG(uap, rusage),
701 1.10 mrg sizeof(struct netbsd32_rusage))))
702 1.6 eeh return (error);
703 1.6 eeh }
704 1.6 eeh /*
705 1.6 eeh * If we got the child via ptrace(2) or procfs, and
706 1.6 eeh * the parent is different (meaning the process was
707 1.6 eeh * attached, rather than run as a child), then we need
708 1.6 eeh * to give it back to the old parent, and send the
709 1.6 eeh * parent a SIGCHLD. The rest of the cleanup will be
710 1.6 eeh * done when the old parent waits on the child.
711 1.6 eeh */
712 1.6 eeh if ((p->p_flag & P_TRACED) &&
713 1.6 eeh p->p_oppid != p->p_pptr->p_pid) {
714 1.6 eeh t = pfind(p->p_oppid);
715 1.6 eeh proc_reparent(p, t ? t : initproc);
716 1.6 eeh p->p_oppid = 0;
717 1.6 eeh p->p_flag &= ~(P_TRACED|P_WAITED|P_FSTRACE);
718 1.6 eeh psignal(p->p_pptr, SIGCHLD);
719 1.6 eeh wakeup((caddr_t)p->p_pptr);
720 1.6 eeh return (0);
721 1.6 eeh }
722 1.6 eeh p->p_xstat = 0;
723 1.6 eeh ruadd(&q->p_stats->p_cru, p->p_ru);
724 1.6 eeh pool_put(&rusage_pool, p->p_ru);
725 1.6 eeh
726 1.6 eeh /*
727 1.6 eeh * Finally finished with old proc entry.
728 1.6 eeh * Unlink it from its process group and free it.
729 1.6 eeh */
730 1.6 eeh leavepgrp(p);
731 1.6 eeh
732 1.6 eeh LIST_REMOVE(p, p_list); /* off zombproc */
733 1.6 eeh
734 1.6 eeh LIST_REMOVE(p, p_sibling);
735 1.6 eeh
736 1.6 eeh /*
737 1.6 eeh * Decrement the count of procs running with this uid.
738 1.6 eeh */
739 1.6 eeh (void)chgproccnt(p->p_cred->p_ruid, -1);
740 1.6 eeh
741 1.6 eeh /*
742 1.6 eeh * Free up credentials.
743 1.6 eeh */
744 1.6 eeh if (--p->p_cred->p_refcnt == 0) {
745 1.6 eeh crfree(p->p_cred->pc_ucred);
746 1.6 eeh pool_put(&pcred_pool, p->p_cred);
747 1.6 eeh }
748 1.6 eeh
749 1.6 eeh /*
750 1.6 eeh * Release reference to text vnode
751 1.6 eeh */
752 1.6 eeh if (p->p_textvp)
753 1.6 eeh vrele(p->p_textvp);
754 1.6 eeh
755 1.6 eeh pool_put(&proc_pool, p);
756 1.6 eeh nprocs--;
757 1.6 eeh return (0);
758 1.6 eeh }
759 1.6 eeh if (p->p_stat == SSTOP && (p->p_flag & P_WAITED) == 0 &&
760 1.6 eeh (p->p_flag & P_TRACED || SCARG(uap, options) & WUNTRACED)) {
761 1.6 eeh p->p_flag |= P_WAITED;
762 1.6 eeh retval[0] = p->p_pid;
763 1.6 eeh
764 1.6 eeh if (SCARG(uap, status)) {
765 1.6 eeh status = W_STOPCODE(p->p_xstat);
766 1.6 eeh error = copyout((caddr_t)&status,
767 1.6 eeh (caddr_t)(u_long)SCARG(uap, status),
768 1.6 eeh sizeof(status));
769 1.6 eeh } else
770 1.6 eeh error = 0;
771 1.6 eeh return (error);
772 1.6 eeh }
773 1.6 eeh }
774 1.6 eeh if (nfound == 0)
775 1.6 eeh return (ECHILD);
776 1.6 eeh if (SCARG(uap, options) & WNOHANG) {
777 1.6 eeh retval[0] = 0;
778 1.6 eeh return (0);
779 1.5 eeh }
780 1.6 eeh if ((error = tsleep((caddr_t)q, PWAIT | PCATCH, "wait", 0)) != 0)
781 1.6 eeh return (error);
782 1.6 eeh goto loop;
783 1.1 mrg }
784 1.1 mrg
785 1.1 mrg int
786 1.19 eeh netbsd32_link(p, v, retval)
787 1.1 mrg struct proc *p;
788 1.1 mrg void *v;
789 1.1 mrg register_t *retval;
790 1.1 mrg {
791 1.19 eeh struct netbsd32_link_args /* {
792 1.10 mrg syscallarg(const netbsd32_charp) path;
793 1.10 mrg syscallarg(const netbsd32_charp) link;
794 1.1 mrg } */ *uap = v;
795 1.1 mrg struct sys_link_args ua;
796 1.1 mrg
797 1.11 mrg NETBSD32TOP_UAP(path, const char);
798 1.11 mrg NETBSD32TOP_UAP(link, const char);
799 1.1 mrg return (sys_link(p, &ua, retval));
800 1.1 mrg }
801 1.1 mrg
802 1.1 mrg int
803 1.19 eeh netbsd32_unlink(p, v, retval)
804 1.1 mrg struct proc *p;
805 1.1 mrg void *v;
806 1.1 mrg register_t *retval;
807 1.1 mrg {
808 1.19 eeh struct netbsd32_unlink_args /* {
809 1.10 mrg syscallarg(const netbsd32_charp) path;
810 1.1 mrg } */ *uap = v;
811 1.1 mrg struct sys_unlink_args ua;
812 1.1 mrg
813 1.11 mrg NETBSD32TOP_UAP(path, const char);
814 1.1 mrg
815 1.1 mrg return (sys_unlink(p, &ua, retval));
816 1.1 mrg }
817 1.1 mrg
818 1.1 mrg int
819 1.19 eeh netbsd32_chdir(p, v, retval)
820 1.1 mrg struct proc *p;
821 1.1 mrg void *v;
822 1.1 mrg register_t *retval;
823 1.1 mrg {
824 1.19 eeh struct netbsd32_chdir_args /* {
825 1.10 mrg syscallarg(const netbsd32_charp) path;
826 1.1 mrg } */ *uap = v;
827 1.1 mrg struct sys_chdir_args ua;
828 1.1 mrg
829 1.11 mrg NETBSD32TOP_UAP(path, const char);
830 1.1 mrg
831 1.1 mrg return (sys_chdir(p, &ua, retval));
832 1.1 mrg }
833 1.1 mrg
834 1.1 mrg int
835 1.19 eeh netbsd32_fchdir(p, v, retval)
836 1.6 eeh struct proc *p;
837 1.6 eeh void *v;
838 1.6 eeh register_t *retval;
839 1.6 eeh {
840 1.19 eeh struct netbsd32_fchdir_args /* {
841 1.6 eeh syscallarg(int) fd;
842 1.6 eeh } */ *uap = v;
843 1.6 eeh struct sys_fchdir_args ua;
844 1.6 eeh
845 1.11 mrg NETBSD32TO64_UAP(fd);
846 1.6 eeh
847 1.6 eeh return (sys_fchdir(p, &ua, retval));
848 1.6 eeh }
849 1.6 eeh
850 1.6 eeh int
851 1.19 eeh netbsd32_mknod(p, v, retval)
852 1.1 mrg struct proc *p;
853 1.1 mrg void *v;
854 1.1 mrg register_t *retval;
855 1.1 mrg {
856 1.19 eeh struct netbsd32_mknod_args /* {
857 1.10 mrg syscallarg(const netbsd32_charp) path;
858 1.1 mrg syscallarg(mode_t) mode;
859 1.1 mrg syscallarg(dev_t) dev;
860 1.1 mrg } */ *uap = v;
861 1.1 mrg struct sys_mknod_args ua;
862 1.1 mrg
863 1.11 mrg NETBSD32TOP_UAP(path, const char);
864 1.11 mrg NETBSD32TO64_UAP(dev);
865 1.11 mrg NETBSD32TO64_UAP(mode);
866 1.1 mrg
867 1.1 mrg return (sys_mknod(p, &ua, retval));
868 1.1 mrg }
869 1.1 mrg
870 1.1 mrg int
871 1.19 eeh netbsd32_chmod(p, v, retval)
872 1.1 mrg struct proc *p;
873 1.1 mrg void *v;
874 1.1 mrg register_t *retval;
875 1.1 mrg {
876 1.19 eeh struct netbsd32_chmod_args /* {
877 1.10 mrg syscallarg(const netbsd32_charp) path;
878 1.1 mrg syscallarg(mode_t) mode;
879 1.1 mrg } */ *uap = v;
880 1.1 mrg struct sys_chmod_args ua;
881 1.1 mrg
882 1.11 mrg NETBSD32TOP_UAP(path, const char);
883 1.11 mrg NETBSD32TO64_UAP(mode);
884 1.1 mrg
885 1.1 mrg return (sys_chmod(p, &ua, retval));
886 1.1 mrg }
887 1.1 mrg
888 1.1 mrg int
889 1.19 eeh netbsd32_chown(p, v, retval)
890 1.1 mrg struct proc *p;
891 1.1 mrg void *v;
892 1.1 mrg register_t *retval;
893 1.1 mrg {
894 1.19 eeh struct netbsd32_chown_args /* {
895 1.10 mrg syscallarg(const netbsd32_charp) path;
896 1.1 mrg syscallarg(uid_t) uid;
897 1.1 mrg syscallarg(gid_t) gid;
898 1.1 mrg } */ *uap = v;
899 1.1 mrg struct sys_chown_args ua;
900 1.1 mrg
901 1.11 mrg NETBSD32TOP_UAP(path, const char);
902 1.11 mrg NETBSD32TO64_UAP(uid);
903 1.11 mrg NETBSD32TO64_UAP(gid);
904 1.1 mrg
905 1.1 mrg return (sys_chown(p, &ua, retval));
906 1.1 mrg }
907 1.1 mrg
908 1.1 mrg int
909 1.19 eeh netbsd32_break(p, v, retval)
910 1.1 mrg struct proc *p;
911 1.1 mrg void *v;
912 1.1 mrg register_t *retval;
913 1.1 mrg {
914 1.19 eeh struct netbsd32_break_args /* {
915 1.10 mrg syscallarg(netbsd32_charp) nsize;
916 1.1 mrg } */ *uap = v;
917 1.1 mrg struct sys_obreak_args ua;
918 1.1 mrg
919 1.1 mrg SCARG(&ua, nsize) = (char *)(u_long)SCARG(uap, nsize);
920 1.11 mrg NETBSD32TOP_UAP(nsize, char);
921 1.1 mrg return (sys_obreak(p, &ua, retval));
922 1.1 mrg }
923 1.1 mrg
924 1.1 mrg int
925 1.19 eeh netbsd32_getfsstat(p, v, retval)
926 1.1 mrg struct proc *p;
927 1.1 mrg void *v;
928 1.1 mrg register_t *retval;
929 1.1 mrg {
930 1.19 eeh struct netbsd32_getfsstat_args /* {
931 1.10 mrg syscallarg(netbsd32_statfsp_t) buf;
932 1.10 mrg syscallarg(netbsd32_long) bufsize;
933 1.1 mrg syscallarg(int) flags;
934 1.1 mrg } */ *uap = v;
935 1.1 mrg struct sys_getfsstat_args ua;
936 1.1 mrg struct statfs sb;
937 1.10 mrg struct netbsd32_statfs *sb32p;
938 1.1 mrg int error;
939 1.1 mrg
940 1.10 mrg sb32p = (struct netbsd32_statfs *)(u_long)SCARG(uap, buf);
941 1.1 mrg if (sb32p)
942 1.1 mrg SCARG(&ua, buf) = &sb;
943 1.1 mrg else
944 1.1 mrg SCARG(&ua, buf) = NULL;
945 1.11 mrg NETBSD32TOX_UAP(bufsize, long);
946 1.11 mrg NETBSD32TO64_UAP(flags);
947 1.1 mrg error = sys_getfsstat(p, &ua, retval);
948 1.1 mrg if (error)
949 1.1 mrg return (error);
950 1.1 mrg
951 1.5 eeh if (sb32p) {
952 1.10 mrg struct netbsd32_statfs sb32;
953 1.10 mrg netbsd32_from_statfs(&sb, &sb32);
954 1.5 eeh if (copyout(&sb32, sb32p, sizeof(sb32)))
955 1.5 eeh return EFAULT;
956 1.5 eeh }
957 1.1 mrg return (0);
958 1.1 mrg }
959 1.1 mrg
960 1.1 mrg int
961 1.19 eeh netbsd32_mount(p, v, retval)
962 1.1 mrg struct proc *p;
963 1.1 mrg void *v;
964 1.1 mrg register_t *retval;
965 1.1 mrg {
966 1.19 eeh struct netbsd32_mount_args /* {
967 1.10 mrg syscallarg(const netbsd32_charp) type;
968 1.10 mrg syscallarg(const netbsd32_charp) path;
969 1.1 mrg syscallarg(int) flags;
970 1.10 mrg syscallarg(netbsd32_voidp) data;
971 1.1 mrg } */ *uap = v;
972 1.1 mrg struct sys_mount_args ua;
973 1.1 mrg
974 1.11 mrg NETBSD32TOP_UAP(type, const char);
975 1.11 mrg NETBSD32TOP_UAP(path, const char);
976 1.11 mrg NETBSD32TO64_UAP(flags);
977 1.11 mrg NETBSD32TOP_UAP(data, void);
978 1.1 mrg return (sys_mount(p, &ua, retval));
979 1.1 mrg }
980 1.1 mrg
981 1.1 mrg int
982 1.19 eeh netbsd32_unmount(p, v, retval)
983 1.1 mrg struct proc *p;
984 1.1 mrg void *v;
985 1.1 mrg register_t *retval;
986 1.1 mrg {
987 1.19 eeh struct netbsd32_unmount_args /* {
988 1.10 mrg syscallarg(const netbsd32_charp) path;
989 1.1 mrg syscallarg(int) flags;
990 1.1 mrg } */ *uap = v;
991 1.1 mrg struct sys_unmount_args ua;
992 1.1 mrg
993 1.11 mrg NETBSD32TOP_UAP(path, const char);
994 1.11 mrg NETBSD32TO64_UAP(flags);
995 1.1 mrg return (sys_unmount(p, &ua, retval));
996 1.1 mrg }
997 1.1 mrg
998 1.1 mrg int
999 1.19 eeh netbsd32_setuid(p, v, retval)
1000 1.6 eeh struct proc *p;
1001 1.6 eeh void *v;
1002 1.6 eeh register_t *retval;
1003 1.6 eeh {
1004 1.19 eeh struct netbsd32_setuid_args /* {
1005 1.6 eeh syscallarg(uid_t) uid;
1006 1.6 eeh } */ *uap = v;
1007 1.6 eeh struct sys_setuid_args ua;
1008 1.6 eeh
1009 1.11 mrg NETBSD32TO64_UAP(uid);
1010 1.6 eeh return (sys_setuid(p, &ua, retval));
1011 1.6 eeh }
1012 1.6 eeh
1013 1.6 eeh int
1014 1.19 eeh netbsd32_ptrace(p, v, retval)
1015 1.1 mrg struct proc *p;
1016 1.1 mrg void *v;
1017 1.1 mrg register_t *retval;
1018 1.1 mrg {
1019 1.19 eeh struct netbsd32_ptrace_args /* {
1020 1.1 mrg syscallarg(int) req;
1021 1.1 mrg syscallarg(pid_t) pid;
1022 1.10 mrg syscallarg(netbsd32_caddr_t) addr;
1023 1.1 mrg syscallarg(int) data;
1024 1.1 mrg } */ *uap = v;
1025 1.1 mrg struct sys_ptrace_args ua;
1026 1.1 mrg
1027 1.11 mrg NETBSD32TO64_UAP(req);
1028 1.11 mrg NETBSD32TO64_UAP(pid);
1029 1.11 mrg NETBSD32TOX64_UAP(addr, caddr_t);
1030 1.11 mrg NETBSD32TO64_UAP(data);
1031 1.1 mrg return (sys_ptrace(p, &ua, retval));
1032 1.1 mrg }
1033 1.1 mrg
1034 1.1 mrg int
1035 1.19 eeh netbsd32_recvmsg(p, v, retval)
1036 1.1 mrg struct proc *p;
1037 1.1 mrg void *v;
1038 1.1 mrg register_t *retval;
1039 1.1 mrg {
1040 1.19 eeh struct netbsd32_recvmsg_args /* {
1041 1.1 mrg syscallarg(int) s;
1042 1.10 mrg syscallarg(netbsd32_msghdrp_t) msg;
1043 1.1 mrg syscallarg(int) flags;
1044 1.1 mrg } */ *uap = v;
1045 1.10 mrg struct netbsd32_msghdr msg;
1046 1.6 eeh struct iovec aiov[UIO_SMALLIOV], *uiov, *iov;
1047 1.6 eeh register int error;
1048 1.6 eeh
1049 1.6 eeh error = copyin((caddr_t)(u_long)SCARG(uap, msg), (caddr_t)&msg,
1050 1.6 eeh sizeof(msg));
1051 1.10 mrg /* netbsd32_msghdr needs the iov pre-allocated */
1052 1.6 eeh if (error)
1053 1.6 eeh return (error);
1054 1.6 eeh if ((u_int)msg.msg_iovlen > UIO_SMALLIOV) {
1055 1.6 eeh if ((u_int)msg.msg_iovlen > IOV_MAX)
1056 1.6 eeh return (EMSGSIZE);
1057 1.6 eeh MALLOC(iov, struct iovec *,
1058 1.6 eeh sizeof(struct iovec) * (u_int)msg.msg_iovlen, M_IOV,
1059 1.6 eeh M_WAITOK);
1060 1.6 eeh } else if ((u_int)msg.msg_iovlen > 0)
1061 1.6 eeh iov = aiov;
1062 1.6 eeh else
1063 1.6 eeh return (EMSGSIZE);
1064 1.6 eeh #ifdef COMPAT_OLDSOCK
1065 1.6 eeh msg.msg_flags = SCARG(uap, flags) &~ MSG_COMPAT;
1066 1.6 eeh #else
1067 1.6 eeh msg.msg_flags = SCARG(uap, flags);
1068 1.6 eeh #endif
1069 1.6 eeh uiov = (struct iovec *)(u_long)msg.msg_iov;
1070 1.10 mrg error = netbsd32_to_iovecin((struct netbsd32_iovec *)uiov,
1071 1.6 eeh iov, msg.msg_iovlen);
1072 1.6 eeh if (error)
1073 1.6 eeh goto done;
1074 1.6 eeh if ((error = recvit32(p, SCARG(uap, s), &msg, iov, (caddr_t)0, retval)) == 0) {
1075 1.6 eeh error = copyout((caddr_t)&msg, (caddr_t)(u_long)SCARG(uap, msg),
1076 1.6 eeh sizeof(msg));
1077 1.6 eeh }
1078 1.6 eeh done:
1079 1.6 eeh if (iov != aiov)
1080 1.6 eeh FREE(iov, M_IOV);
1081 1.6 eeh return (error);
1082 1.6 eeh }
1083 1.1 mrg
1084 1.6 eeh int
1085 1.6 eeh recvit32(p, s, mp, iov, namelenp, retsize)
1086 1.6 eeh struct proc *p;
1087 1.6 eeh int s;
1088 1.10 mrg struct netbsd32_msghdr *mp;
1089 1.6 eeh struct iovec *iov;
1090 1.6 eeh caddr_t namelenp;
1091 1.6 eeh register_t *retsize;
1092 1.6 eeh {
1093 1.6 eeh struct file *fp;
1094 1.6 eeh struct uio auio;
1095 1.6 eeh register int i;
1096 1.6 eeh int len, error;
1097 1.6 eeh struct mbuf *from = 0, *control = 0;
1098 1.6 eeh struct socket *so;
1099 1.6 eeh #ifdef KTRACE
1100 1.6 eeh struct iovec *ktriov = NULL;
1101 1.6 eeh #endif
1102 1.6 eeh
1103 1.12 thorpej /* getsock() will use the descriptor for us */
1104 1.6 eeh if ((error = getsock(p->p_fd, s, &fp)) != 0)
1105 1.6 eeh return (error);
1106 1.6 eeh auio.uio_iov = (struct iovec *)(u_long)mp->msg_iov;
1107 1.6 eeh auio.uio_iovcnt = mp->msg_iovlen;
1108 1.6 eeh auio.uio_segflg = UIO_USERSPACE;
1109 1.6 eeh auio.uio_rw = UIO_READ;
1110 1.6 eeh auio.uio_procp = p;
1111 1.6 eeh auio.uio_offset = 0; /* XXX */
1112 1.6 eeh auio.uio_resid = 0;
1113 1.6 eeh for (i = 0; i < mp->msg_iovlen; i++, iov++) {
1114 1.6 eeh #if 0
1115 1.6 eeh /* cannot happen iov_len is unsigned */
1116 1.12 thorpej if (iov->iov_len < 0) {
1117 1.12 thorpej error = EINVAL;
1118 1.12 thorpej goto out1;
1119 1.12 thorpej }
1120 1.6 eeh #endif
1121 1.6 eeh /*
1122 1.6 eeh * Reads return ssize_t because -1 is returned on error.
1123 1.6 eeh * Therefore we must restrict the length to SSIZE_MAX to
1124 1.6 eeh * avoid garbage return values.
1125 1.6 eeh */
1126 1.6 eeh auio.uio_resid += iov->iov_len;
1127 1.12 thorpej if (iov->iov_len > SSIZE_MAX || auio.uio_resid > SSIZE_MAX) {
1128 1.12 thorpej error = EINVAL;
1129 1.12 thorpej goto out1;
1130 1.12 thorpej }
1131 1.6 eeh }
1132 1.6 eeh #ifdef KTRACE
1133 1.6 eeh if (KTRPOINT(p, KTR_GENIO)) {
1134 1.6 eeh int iovlen = auio.uio_iovcnt * sizeof(struct iovec);
1135 1.1 mrg
1136 1.6 eeh MALLOC(ktriov, struct iovec *, iovlen, M_TEMP, M_WAITOK);
1137 1.6 eeh memcpy((caddr_t)ktriov, (caddr_t)auio.uio_iov, iovlen);
1138 1.6 eeh }
1139 1.6 eeh #endif
1140 1.6 eeh len = auio.uio_resid;
1141 1.6 eeh so = (struct socket *)fp->f_data;
1142 1.6 eeh error = (*so->so_receive)(so, &from, &auio, NULL,
1143 1.6 eeh mp->msg_control ? &control : NULL, &mp->msg_flags);
1144 1.6 eeh if (error) {
1145 1.6 eeh if (auio.uio_resid != len && (error == ERESTART ||
1146 1.6 eeh error == EINTR || error == EWOULDBLOCK))
1147 1.6 eeh error = 0;
1148 1.6 eeh }
1149 1.6 eeh #ifdef KTRACE
1150 1.6 eeh if (ktriov != NULL) {
1151 1.6 eeh if (error == 0)
1152 1.6 eeh ktrgenio(p->p_tracep, s, UIO_READ,
1153 1.6 eeh ktriov, len - auio.uio_resid, error);
1154 1.6 eeh FREE(ktriov, M_TEMP);
1155 1.6 eeh }
1156 1.6 eeh #endif
1157 1.6 eeh if (error)
1158 1.6 eeh goto out;
1159 1.6 eeh *retsize = len - auio.uio_resid;
1160 1.6 eeh if (mp->msg_name) {
1161 1.6 eeh len = mp->msg_namelen;
1162 1.6 eeh if (len <= 0 || from == 0)
1163 1.6 eeh len = 0;
1164 1.6 eeh else {
1165 1.6 eeh #ifdef COMPAT_OLDSOCK
1166 1.6 eeh if (mp->msg_flags & MSG_COMPAT)
1167 1.6 eeh mtod(from, struct osockaddr *)->sa_family =
1168 1.6 eeh mtod(from, struct sockaddr *)->sa_family;
1169 1.6 eeh #endif
1170 1.6 eeh if (len > from->m_len)
1171 1.6 eeh len = from->m_len;
1172 1.6 eeh /* else if len < from->m_len ??? */
1173 1.6 eeh error = copyout(mtod(from, caddr_t),
1174 1.6 eeh (caddr_t)(u_long)mp->msg_name, (unsigned)len);
1175 1.6 eeh if (error)
1176 1.6 eeh goto out;
1177 1.6 eeh }
1178 1.6 eeh mp->msg_namelen = len;
1179 1.6 eeh if (namelenp &&
1180 1.6 eeh (error = copyout((caddr_t)&len, namelenp, sizeof(int)))) {
1181 1.6 eeh #ifdef COMPAT_OLDSOCK
1182 1.6 eeh if (mp->msg_flags & MSG_COMPAT)
1183 1.6 eeh error = 0; /* old recvfrom didn't check */
1184 1.6 eeh else
1185 1.6 eeh #endif
1186 1.6 eeh goto out;
1187 1.6 eeh }
1188 1.6 eeh }
1189 1.6 eeh if (mp->msg_control) {
1190 1.6 eeh #ifdef COMPAT_OLDSOCK
1191 1.6 eeh /*
1192 1.6 eeh * We assume that old recvmsg calls won't receive access
1193 1.6 eeh * rights and other control info, esp. as control info
1194 1.6 eeh * is always optional and those options didn't exist in 4.3.
1195 1.6 eeh * If we receive rights, trim the cmsghdr; anything else
1196 1.6 eeh * is tossed.
1197 1.6 eeh */
1198 1.6 eeh if (control && mp->msg_flags & MSG_COMPAT) {
1199 1.6 eeh if (mtod(control, struct cmsghdr *)->cmsg_level !=
1200 1.6 eeh SOL_SOCKET ||
1201 1.6 eeh mtod(control, struct cmsghdr *)->cmsg_type !=
1202 1.6 eeh SCM_RIGHTS) {
1203 1.6 eeh mp->msg_controllen = 0;
1204 1.6 eeh goto out;
1205 1.6 eeh }
1206 1.6 eeh control->m_len -= sizeof(struct cmsghdr);
1207 1.6 eeh control->m_data += sizeof(struct cmsghdr);
1208 1.6 eeh }
1209 1.6 eeh #endif
1210 1.6 eeh len = mp->msg_controllen;
1211 1.6 eeh if (len <= 0 || control == 0)
1212 1.6 eeh len = 0;
1213 1.6 eeh else {
1214 1.6 eeh struct mbuf *m = control;
1215 1.6 eeh caddr_t p = (caddr_t)(u_long)mp->msg_control;
1216 1.6 eeh
1217 1.6 eeh do {
1218 1.6 eeh i = m->m_len;
1219 1.6 eeh if (len < i) {
1220 1.6 eeh mp->msg_flags |= MSG_CTRUNC;
1221 1.6 eeh i = len;
1222 1.6 eeh }
1223 1.6 eeh error = copyout(mtod(m, caddr_t), p,
1224 1.6 eeh (unsigned)i);
1225 1.6 eeh if (m->m_next)
1226 1.6 eeh i = ALIGN(i);
1227 1.6 eeh p += i;
1228 1.6 eeh len -= i;
1229 1.6 eeh if (error != 0 || len <= 0)
1230 1.6 eeh break;
1231 1.6 eeh } while ((m = m->m_next) != NULL);
1232 1.6 eeh len = p - (caddr_t)(u_long)mp->msg_control;
1233 1.6 eeh }
1234 1.6 eeh mp->msg_controllen = len;
1235 1.6 eeh }
1236 1.12 thorpej out:
1237 1.6 eeh if (from)
1238 1.6 eeh m_freem(from);
1239 1.6 eeh if (control)
1240 1.6 eeh m_freem(control);
1241 1.12 thorpej out1:
1242 1.19 eeh FILE_UNUSE(fp, p);
1243 1.1 mrg return (error);
1244 1.1 mrg }
1245 1.1 mrg
1246 1.6 eeh
1247 1.1 mrg int
1248 1.19 eeh netbsd32_sendmsg(p, v, retval)
1249 1.1 mrg struct proc *p;
1250 1.1 mrg void *v;
1251 1.1 mrg register_t *retval;
1252 1.1 mrg {
1253 1.19 eeh struct netbsd32_sendmsg_args /* {
1254 1.1 mrg syscallarg(int) s;
1255 1.10 mrg syscallarg(const netbsd32_msghdrp_t) msg;
1256 1.1 mrg syscallarg(int) flags;
1257 1.1 mrg } */ *uap = v;
1258 1.6 eeh struct msghdr msg;
1259 1.10 mrg struct netbsd32_msghdr msg32;
1260 1.6 eeh struct iovec aiov[UIO_SMALLIOV], *iov;
1261 1.1 mrg int error;
1262 1.1 mrg
1263 1.6 eeh error = copyin((caddr_t)(u_long)SCARG(uap, msg),
1264 1.6 eeh (caddr_t)&msg32, sizeof(msg32));
1265 1.6 eeh if (error)
1266 1.6 eeh return (error);
1267 1.10 mrg netbsd32_to_msghdr(&msg32, &msg);
1268 1.6 eeh if ((u_int)msg.msg_iovlen > UIO_SMALLIOV) {
1269 1.6 eeh if ((u_int)msg.msg_iovlen > IOV_MAX)
1270 1.6 eeh return (EMSGSIZE);
1271 1.6 eeh MALLOC(iov, struct iovec *,
1272 1.6 eeh sizeof(struct iovec) * (u_int)msg.msg_iovlen, M_IOV,
1273 1.6 eeh M_WAITOK);
1274 1.6 eeh } else if ((u_int)msg.msg_iovlen > 0)
1275 1.6 eeh iov = aiov;
1276 1.6 eeh else
1277 1.6 eeh return (EMSGSIZE);
1278 1.10 mrg error = netbsd32_to_iovecin((struct netbsd32_iovec *)msg.msg_iov,
1279 1.6 eeh iov, msg.msg_iovlen);
1280 1.6 eeh if (error)
1281 1.6 eeh goto done;
1282 1.6 eeh msg.msg_iov = iov;
1283 1.6 eeh #ifdef COMPAT_OLDSOCK
1284 1.6 eeh msg.msg_flags = 0;
1285 1.6 eeh #endif
1286 1.6 eeh /* Luckily we can use this directly */
1287 1.6 eeh error = sendit(p, SCARG(uap, s), &msg, SCARG(uap, flags), retval);
1288 1.6 eeh done:
1289 1.6 eeh if (iov != aiov)
1290 1.6 eeh FREE(iov, M_IOV);
1291 1.1 mrg return (error);
1292 1.1 mrg }
1293 1.1 mrg
1294 1.1 mrg int
1295 1.19 eeh netbsd32_recvfrom(p, v, retval)
1296 1.1 mrg struct proc *p;
1297 1.1 mrg void *v;
1298 1.1 mrg register_t *retval;
1299 1.1 mrg {
1300 1.19 eeh struct netbsd32_recvfrom_args /* {
1301 1.1 mrg syscallarg(int) s;
1302 1.10 mrg syscallarg(netbsd32_voidp) buf;
1303 1.10 mrg syscallarg(netbsd32_size_t) len;
1304 1.1 mrg syscallarg(int) flags;
1305 1.10 mrg syscallarg(netbsd32_sockaddrp_t) from;
1306 1.10 mrg syscallarg(netbsd32_intp) fromlenaddr;
1307 1.1 mrg } */ *uap = v;
1308 1.10 mrg struct netbsd32_msghdr msg;
1309 1.6 eeh struct iovec aiov;
1310 1.1 mrg int error;
1311 1.1 mrg
1312 1.6 eeh if (SCARG(uap, fromlenaddr)) {
1313 1.6 eeh error = copyin((caddr_t)(u_long)SCARG(uap, fromlenaddr),
1314 1.6 eeh (caddr_t)&msg.msg_namelen,
1315 1.6 eeh sizeof(msg.msg_namelen));
1316 1.6 eeh if (error)
1317 1.6 eeh return (error);
1318 1.6 eeh } else
1319 1.6 eeh msg.msg_namelen = 0;
1320 1.6 eeh msg.msg_name = SCARG(uap, from);
1321 1.6 eeh msg.msg_iov = NULL; /* We can't store a real pointer here */
1322 1.6 eeh msg.msg_iovlen = 1;
1323 1.6 eeh aiov.iov_base = (caddr_t)(u_long)SCARG(uap, buf);
1324 1.6 eeh aiov.iov_len = (u_long)SCARG(uap, len);
1325 1.6 eeh msg.msg_control = 0;
1326 1.6 eeh msg.msg_flags = SCARG(uap, flags);
1327 1.6 eeh return (recvit32(p, SCARG(uap, s), &msg, &aiov,
1328 1.6 eeh (caddr_t)(u_long)SCARG(uap, fromlenaddr), retval));
1329 1.1 mrg }
1330 1.1 mrg
1331 1.1 mrg int
1332 1.19 eeh netbsd32_sendto(p, v, retval)
1333 1.1 mrg struct proc *p;
1334 1.1 mrg void *v;
1335 1.1 mrg register_t *retval;
1336 1.1 mrg {
1337 1.19 eeh struct netbsd32_sendto_args /* {
1338 1.1 mrg syscallarg(int) s;
1339 1.10 mrg syscallarg(const netbsd32_voidp) buf;
1340 1.10 mrg syscallarg(netbsd32_size_t) len;
1341 1.1 mrg syscallarg(int) flags;
1342 1.10 mrg syscallarg(const netbsd32_sockaddrp_t) to;
1343 1.1 mrg syscallarg(int) tolen;
1344 1.1 mrg } */ *uap = v;
1345 1.6 eeh struct msghdr msg;
1346 1.6 eeh struct iovec aiov;
1347 1.1 mrg
1348 1.6 eeh msg.msg_name = (caddr_t)(u_long)SCARG(uap, to); /* XXX kills const */
1349 1.6 eeh msg.msg_namelen = SCARG(uap, tolen);
1350 1.6 eeh msg.msg_iov = &aiov;
1351 1.6 eeh msg.msg_iovlen = 1;
1352 1.6 eeh msg.msg_control = 0;
1353 1.6 eeh #ifdef COMPAT_OLDSOCK
1354 1.6 eeh msg.msg_flags = 0;
1355 1.6 eeh #endif
1356 1.6 eeh aiov.iov_base = (char *)(u_long)SCARG(uap, buf); /* XXX kills const */
1357 1.6 eeh aiov.iov_len = SCARG(uap, len);
1358 1.6 eeh return (sendit(p, SCARG(uap, s), &msg, SCARG(uap, flags), retval));
1359 1.1 mrg }
1360 1.1 mrg
1361 1.1 mrg int
1362 1.19 eeh netbsd32_accept(p, v, retval)
1363 1.1 mrg struct proc *p;
1364 1.1 mrg void *v;
1365 1.1 mrg register_t *retval;
1366 1.1 mrg {
1367 1.19 eeh struct netbsd32_accept_args /* {
1368 1.1 mrg syscallarg(int) s;
1369 1.10 mrg syscallarg(netbsd32_sockaddrp_t) name;
1370 1.10 mrg syscallarg(netbsd32_intp) anamelen;
1371 1.1 mrg } */ *uap = v;
1372 1.1 mrg struct sys_accept_args ua;
1373 1.1 mrg
1374 1.11 mrg NETBSD32TO64_UAP(s);
1375 1.11 mrg NETBSD32TOP_UAP(name, struct sockaddr);
1376 1.11 mrg NETBSD32TOP_UAP(anamelen, int);
1377 1.1 mrg return (sys_accept(p, &ua, retval));
1378 1.1 mrg }
1379 1.1 mrg
1380 1.1 mrg int
1381 1.19 eeh netbsd32_getpeername(p, v, retval)
1382 1.1 mrg struct proc *p;
1383 1.1 mrg void *v;
1384 1.1 mrg register_t *retval;
1385 1.1 mrg {
1386 1.19 eeh struct netbsd32_getpeername_args /* {
1387 1.1 mrg syscallarg(int) fdes;
1388 1.10 mrg syscallarg(netbsd32_sockaddrp_t) asa;
1389 1.10 mrg syscallarg(netbsd32_intp) alen;
1390 1.1 mrg } */ *uap = v;
1391 1.1 mrg struct sys_getpeername_args ua;
1392 1.1 mrg
1393 1.11 mrg NETBSD32TO64_UAP(fdes);
1394 1.11 mrg NETBSD32TOP_UAP(asa, struct sockaddr);
1395 1.11 mrg NETBSD32TOP_UAP(alen, int);
1396 1.6 eeh /* NB: do the protocol specific sockaddrs need to be converted? */
1397 1.1 mrg return (sys_getpeername(p, &ua, retval));
1398 1.1 mrg }
1399 1.1 mrg
1400 1.1 mrg int
1401 1.19 eeh netbsd32_getsockname(p, v, retval)
1402 1.1 mrg struct proc *p;
1403 1.1 mrg void *v;
1404 1.1 mrg register_t *retval;
1405 1.1 mrg {
1406 1.19 eeh struct netbsd32_getsockname_args /* {
1407 1.1 mrg syscallarg(int) fdes;
1408 1.10 mrg syscallarg(netbsd32_sockaddrp_t) asa;
1409 1.10 mrg syscallarg(netbsd32_intp) alen;
1410 1.1 mrg } */ *uap = v;
1411 1.1 mrg struct sys_getsockname_args ua;
1412 1.1 mrg
1413 1.11 mrg NETBSD32TO64_UAP(fdes);
1414 1.11 mrg NETBSD32TOP_UAP(asa, struct sockaddr);
1415 1.11 mrg NETBSD32TOP_UAP(alen, int);
1416 1.1 mrg return (sys_getsockname(p, &ua, retval));
1417 1.1 mrg }
1418 1.1 mrg
1419 1.1 mrg int
1420 1.19 eeh netbsd32_access(p, v, retval)
1421 1.1 mrg struct proc *p;
1422 1.1 mrg void *v;
1423 1.1 mrg register_t *retval;
1424 1.1 mrg {
1425 1.19 eeh struct netbsd32_access_args /* {
1426 1.10 mrg syscallarg(const netbsd32_charp) path;
1427 1.1 mrg syscallarg(int) flags;
1428 1.1 mrg } */ *uap = v;
1429 1.1 mrg struct sys_access_args ua;
1430 1.1 mrg caddr_t sg;
1431 1.1 mrg
1432 1.11 mrg NETBSD32TOP_UAP(path, const char);
1433 1.11 mrg NETBSD32TO64_UAP(flags);
1434 1.1 mrg sg = stackgap_init(p->p_emul);
1435 1.11 mrg NETBSD32_CHECK_ALT_EXIST(p, &sg, SCARG(&ua, path));
1436 1.1 mrg
1437 1.1 mrg return (sys_access(p, &ua, retval));
1438 1.1 mrg }
1439 1.1 mrg
1440 1.1 mrg int
1441 1.19 eeh netbsd32_chflags(p, v, retval)
1442 1.1 mrg struct proc *p;
1443 1.1 mrg void *v;
1444 1.1 mrg register_t *retval;
1445 1.1 mrg {
1446 1.19 eeh struct netbsd32_chflags_args /* {
1447 1.10 mrg syscallarg(const netbsd32_charp) path;
1448 1.10 mrg syscallarg(netbsd32_u_long) flags;
1449 1.1 mrg } */ *uap = v;
1450 1.1 mrg struct sys_chflags_args ua;
1451 1.1 mrg
1452 1.11 mrg NETBSD32TOP_UAP(path, const char);
1453 1.11 mrg NETBSD32TO64_UAP(flags);
1454 1.1 mrg
1455 1.1 mrg return (sys_chflags(p, &ua, retval));
1456 1.1 mrg }
1457 1.1 mrg
1458 1.1 mrg int
1459 1.19 eeh netbsd32_fchflags(p, v, retval)
1460 1.1 mrg struct proc *p;
1461 1.1 mrg void *v;
1462 1.1 mrg register_t *retval;
1463 1.1 mrg {
1464 1.19 eeh struct netbsd32_fchflags_args /* {
1465 1.1 mrg syscallarg(int) fd;
1466 1.10 mrg syscallarg(netbsd32_u_long) flags;
1467 1.1 mrg } */ *uap = v;
1468 1.1 mrg struct sys_fchflags_args ua;
1469 1.1 mrg
1470 1.11 mrg NETBSD32TO64_UAP(fd);
1471 1.11 mrg NETBSD32TO64_UAP(flags);
1472 1.1 mrg
1473 1.1 mrg return (sys_fchflags(p, &ua, retval));
1474 1.1 mrg }
1475 1.1 mrg
1476 1.1 mrg int
1477 1.19 eeh netbsd32_kill(p, v, retval)
1478 1.6 eeh struct proc *p;
1479 1.6 eeh void *v;
1480 1.6 eeh register_t *retval;
1481 1.6 eeh {
1482 1.19 eeh struct netbsd32_kill_args /* {
1483 1.6 eeh syscallarg(int) pid;
1484 1.6 eeh syscallarg(int) signum;
1485 1.6 eeh } */ *uap = v;
1486 1.6 eeh struct sys_kill_args ua;
1487 1.6 eeh
1488 1.11 mrg NETBSD32TO64_UAP(pid);
1489 1.11 mrg NETBSD32TO64_UAP(signum);
1490 1.6 eeh
1491 1.6 eeh return (sys_kill(p, &ua, retval));
1492 1.6 eeh }
1493 1.6 eeh
1494 1.6 eeh int
1495 1.19 eeh netbsd32_dup(p, v, retval)
1496 1.6 eeh struct proc *p;
1497 1.6 eeh void *v;
1498 1.6 eeh register_t *retval;
1499 1.6 eeh {
1500 1.19 eeh struct netbsd32_dup_args /* {
1501 1.6 eeh syscallarg(int) fd;
1502 1.6 eeh } */ *uap = v;
1503 1.6 eeh struct sys_dup_args ua;
1504 1.6 eeh
1505 1.11 mrg NETBSD32TO64_UAP(fd);
1506 1.6 eeh
1507 1.6 eeh return (sys_dup(p, &ua, retval));
1508 1.6 eeh }
1509 1.6 eeh
1510 1.6 eeh int
1511 1.19 eeh netbsd32_profil(p, v, retval)
1512 1.1 mrg struct proc *p;
1513 1.1 mrg void *v;
1514 1.1 mrg register_t *retval;
1515 1.1 mrg {
1516 1.19 eeh struct netbsd32_profil_args /* {
1517 1.10 mrg syscallarg(netbsd32_caddr_t) samples;
1518 1.10 mrg syscallarg(netbsd32_size_t) size;
1519 1.10 mrg syscallarg(netbsd32_u_long) offset;
1520 1.1 mrg syscallarg(u_int) scale;
1521 1.1 mrg } */ *uap = v;
1522 1.1 mrg struct sys_profil_args ua;
1523 1.1 mrg
1524 1.11 mrg NETBSD32TOX64_UAP(samples, caddr_t);
1525 1.11 mrg NETBSD32TOX_UAP(size, size_t);
1526 1.11 mrg NETBSD32TOX_UAP(offset, u_long);
1527 1.11 mrg NETBSD32TO64_UAP(scale);
1528 1.1 mrg return (sys_profil(p, &ua, retval));
1529 1.1 mrg }
1530 1.1 mrg
1531 1.1 mrg int
1532 1.19 eeh netbsd32_ktrace(p, v, retval)
1533 1.1 mrg struct proc *p;
1534 1.1 mrg void *v;
1535 1.1 mrg register_t *retval;
1536 1.1 mrg {
1537 1.19 eeh struct netbsd32_ktrace_args /* {
1538 1.10 mrg syscallarg(const netbsd32_charp) fname;
1539 1.1 mrg syscallarg(int) ops;
1540 1.1 mrg syscallarg(int) facs;
1541 1.1 mrg syscallarg(int) pid;
1542 1.1 mrg } */ *uap = v;
1543 1.1 mrg struct sys_ktrace_args ua;
1544 1.1 mrg
1545 1.11 mrg NETBSD32TOP_UAP(fname, const char);
1546 1.11 mrg NETBSD32TO64_UAP(ops);
1547 1.11 mrg NETBSD32TO64_UAP(facs);
1548 1.11 mrg NETBSD32TO64_UAP(pid);
1549 1.1 mrg return (sys_ktrace(p, &ua, retval));
1550 1.1 mrg }
1551 1.1 mrg
1552 1.1 mrg int
1553 1.19 eeh netbsd32_sigaction(p, v, retval)
1554 1.1 mrg struct proc *p;
1555 1.1 mrg void *v;
1556 1.1 mrg register_t *retval;
1557 1.1 mrg {
1558 1.19 eeh struct netbsd32_sigaction_args /* {
1559 1.1 mrg syscallarg(int) signum;
1560 1.10 mrg syscallarg(const netbsd32_sigactionp_t) nsa;
1561 1.10 mrg syscallarg(netbsd32_sigactionp_t) osa;
1562 1.1 mrg } */ *uap = v;
1563 1.1 mrg struct sigaction nsa, osa;
1564 1.10 mrg struct netbsd32_sigaction *sa32p, sa32;
1565 1.1 mrg int error;
1566 1.1 mrg
1567 1.1 mrg if (SCARG(uap, nsa)) {
1568 1.10 mrg sa32p = (struct netbsd32_sigaction *)(u_long)SCARG(uap, nsa);
1569 1.5 eeh if (copyin(sa32p, &sa32, sizeof(sa32)))
1570 1.5 eeh return EFAULT;
1571 1.5 eeh nsa.sa_handler = (void *)(u_long)sa32.sa_handler;
1572 1.5 eeh nsa.sa_mask = sa32.sa_mask;
1573 1.5 eeh nsa.sa_flags = sa32.sa_flags;
1574 1.6 eeh }
1575 1.6 eeh error = sigaction1(p, SCARG(uap, signum),
1576 1.6 eeh SCARG(uap, nsa) ? &nsa : 0,
1577 1.6 eeh SCARG(uap, osa) ? &osa : 0);
1578 1.6 eeh
1579 1.1 mrg if (error)
1580 1.1 mrg return (error);
1581 1.1 mrg
1582 1.1 mrg if (SCARG(uap, osa)) {
1583 1.10 mrg sa32.sa_handler = (netbsd32_sigactionp_t)(u_long)osa.sa_handler;
1584 1.5 eeh sa32.sa_mask = osa.sa_mask;
1585 1.5 eeh sa32.sa_flags = osa.sa_flags;
1586 1.10 mrg sa32p = (struct netbsd32_sigaction *)(u_long)SCARG(uap, osa);
1587 1.5 eeh if (copyout(&sa32, sa32p, sizeof(sa32)))
1588 1.5 eeh return EFAULT;
1589 1.1 mrg }
1590 1.1 mrg
1591 1.1 mrg return (0);
1592 1.1 mrg }
1593 1.1 mrg
1594 1.1 mrg int
1595 1.19 eeh netbsd32___getlogin(p, v, retval)
1596 1.1 mrg struct proc *p;
1597 1.1 mrg void *v;
1598 1.1 mrg register_t *retval;
1599 1.1 mrg {
1600 1.19 eeh struct netbsd32___getlogin_args /* {
1601 1.10 mrg syscallarg(netbsd32_charp) namebuf;
1602 1.1 mrg syscallarg(u_int) namelen;
1603 1.1 mrg } */ *uap = v;
1604 1.1 mrg struct sys___getlogin_args ua;
1605 1.1 mrg
1606 1.11 mrg NETBSD32TOP_UAP(namebuf, char);
1607 1.11 mrg NETBSD32TO64_UAP(namelen);
1608 1.1 mrg return (sys___getlogin(p, &ua, retval));
1609 1.1 mrg }
1610 1.1 mrg
1611 1.1 mrg int
1612 1.19 eeh netbsd32_setlogin(p, v, retval)
1613 1.1 mrg struct proc *p;
1614 1.1 mrg void *v;
1615 1.1 mrg register_t *retval;
1616 1.1 mrg {
1617 1.19 eeh struct netbsd32_setlogin_args /* {
1618 1.10 mrg syscallarg(const netbsd32_charp) namebuf;
1619 1.1 mrg } */ *uap = v;
1620 1.1 mrg struct sys_setlogin_args ua;
1621 1.1 mrg
1622 1.11 mrg NETBSD32TOP_UAP(namebuf, char);
1623 1.1 mrg return (sys_setlogin(p, &ua, retval));
1624 1.1 mrg }
1625 1.1 mrg
1626 1.1 mrg int
1627 1.19 eeh netbsd32_acct(p, v, retval)
1628 1.1 mrg struct proc *p;
1629 1.1 mrg void *v;
1630 1.1 mrg register_t *retval;
1631 1.1 mrg {
1632 1.19 eeh struct netbsd32_acct_args /* {
1633 1.10 mrg syscallarg(const netbsd32_charp) path;
1634 1.1 mrg } */ *uap = v;
1635 1.1 mrg struct sys_acct_args ua;
1636 1.1 mrg
1637 1.11 mrg NETBSD32TOP_UAP(path, const char);
1638 1.1 mrg return (sys_acct(p, &ua, retval));
1639 1.1 mrg }
1640 1.1 mrg
1641 1.1 mrg int
1642 1.19 eeh netbsd32_revoke(p, v, retval)
1643 1.1 mrg struct proc *p;
1644 1.1 mrg void *v;
1645 1.1 mrg register_t *retval;
1646 1.1 mrg {
1647 1.19 eeh struct netbsd32_revoke_args /* {
1648 1.10 mrg syscallarg(const netbsd32_charp) path;
1649 1.1 mrg } */ *uap = v;
1650 1.1 mrg struct sys_revoke_args ua;
1651 1.1 mrg caddr_t sg;
1652 1.1 mrg
1653 1.11 mrg NETBSD32TOP_UAP(path, const char);
1654 1.1 mrg sg = stackgap_init(p->p_emul);
1655 1.11 mrg NETBSD32_CHECK_ALT_EXIST(p, &sg, SCARG(&ua, path));
1656 1.1 mrg
1657 1.1 mrg return (sys_revoke(p, &ua, retval));
1658 1.1 mrg }
1659 1.1 mrg
1660 1.1 mrg int
1661 1.19 eeh netbsd32_symlink(p, v, retval)
1662 1.1 mrg struct proc *p;
1663 1.1 mrg void *v;
1664 1.1 mrg register_t *retval;
1665 1.1 mrg {
1666 1.19 eeh struct netbsd32_symlink_args /* {
1667 1.10 mrg syscallarg(const netbsd32_charp) path;
1668 1.10 mrg syscallarg(const netbsd32_charp) link;
1669 1.1 mrg } */ *uap = v;
1670 1.1 mrg struct sys_symlink_args ua;
1671 1.1 mrg
1672 1.11 mrg NETBSD32TOP_UAP(path, const char);
1673 1.11 mrg NETBSD32TOP_UAP(link, const char);
1674 1.1 mrg
1675 1.1 mrg return (sys_symlink(p, &ua, retval));
1676 1.1 mrg }
1677 1.1 mrg
1678 1.1 mrg int
1679 1.19 eeh netbsd32_readlink(p, v, retval)
1680 1.1 mrg struct proc *p;
1681 1.1 mrg void *v;
1682 1.1 mrg register_t *retval;
1683 1.1 mrg {
1684 1.19 eeh struct netbsd32_readlink_args /* {
1685 1.10 mrg syscallarg(const netbsd32_charp) path;
1686 1.10 mrg syscallarg(netbsd32_charp) buf;
1687 1.10 mrg syscallarg(netbsd32_size_t) count;
1688 1.1 mrg } */ *uap = v;
1689 1.1 mrg struct sys_readlink_args ua;
1690 1.1 mrg caddr_t sg;
1691 1.1 mrg
1692 1.11 mrg NETBSD32TOP_UAP(path, const char);
1693 1.11 mrg NETBSD32TOP_UAP(buf, char);
1694 1.11 mrg NETBSD32TOX_UAP(count, size_t);
1695 1.1 mrg sg = stackgap_init(p->p_emul);
1696 1.11 mrg NETBSD32_CHECK_ALT_EXIST(p, &sg, SCARG(&ua, path));
1697 1.1 mrg
1698 1.1 mrg return (sys_readlink(p, &ua, retval));
1699 1.1 mrg }
1700 1.1 mrg
1701 1.20 eeh /*
1702 1.20 eeh * Need to completly reimplement this syscall due to argument copying.
1703 1.20 eeh */
1704 1.1 mrg int
1705 1.19 eeh netbsd32_execve(p, v, retval)
1706 1.1 mrg struct proc *p;
1707 1.1 mrg void *v;
1708 1.1 mrg register_t *retval;
1709 1.1 mrg {
1710 1.19 eeh struct netbsd32_execve_args /* {
1711 1.10 mrg syscallarg(const netbsd32_charp) path;
1712 1.10 mrg syscallarg(netbsd32_charpp) argp;
1713 1.10 mrg syscallarg(netbsd32_charpp) envp;
1714 1.1 mrg } */ *uap = v;
1715 1.1 mrg struct sys_execve_args ua;
1716 1.1 mrg caddr_t sg;
1717 1.20 eeh /* Function args */
1718 1.20 eeh int error, i;
1719 1.20 eeh struct exec_package pack;
1720 1.20 eeh struct nameidata nid;
1721 1.20 eeh struct vattr attr;
1722 1.20 eeh struct ucred *cred = p->p_ucred;
1723 1.20 eeh char *argp;
1724 1.20 eeh netbsd32_charp const *cpp;
1725 1.20 eeh char *dp;
1726 1.20 eeh netbsd32_charp sp;
1727 1.20 eeh long argc, envc;
1728 1.20 eeh size_t len;
1729 1.20 eeh char *stack;
1730 1.20 eeh struct ps_strings arginfo;
1731 1.20 eeh struct vmspace *vm;
1732 1.20 eeh char **tmpfap;
1733 1.20 eeh int szsigcode;
1734 1.20 eeh extern struct emul emul_netbsd;
1735 1.20 eeh
1736 1.1 mrg
1737 1.11 mrg NETBSD32TOP_UAP(path, const char);
1738 1.11 mrg NETBSD32TOP_UAP(argp, char *);
1739 1.11 mrg NETBSD32TOP_UAP(envp, char *);
1740 1.1 mrg sg = stackgap_init(p->p_emul);
1741 1.11 mrg NETBSD32_CHECK_ALT_EXIST(p, &sg, SCARG(&ua, path));
1742 1.1 mrg
1743 1.20 eeh /*
1744 1.20 eeh * figure out the maximum size of an exec header, if necessary.
1745 1.20 eeh * XXX should be able to keep LKM code from modifying exec switch
1746 1.20 eeh * when we're still using it, but...
1747 1.20 eeh */
1748 1.20 eeh if (exec_maxhdrsz == 0) {
1749 1.20 eeh for (i = 0; i < nexecs; i++)
1750 1.20 eeh if (execsw[i].es_check != NULL
1751 1.20 eeh && execsw[i].es_hdrsz > exec_maxhdrsz)
1752 1.20 eeh exec_maxhdrsz = execsw[i].es_hdrsz;
1753 1.20 eeh }
1754 1.20 eeh
1755 1.20 eeh /* init the namei data to point the file user's program name */
1756 1.20 eeh /* XXX cgd 960926: why do this here? most will be clobbered. */
1757 1.20 eeh NDINIT(&nid, LOOKUP, NOFOLLOW, UIO_USERSPACE, SCARG(&ua, path), p);
1758 1.20 eeh
1759 1.20 eeh /*
1760 1.20 eeh * initialize the fields of the exec package.
1761 1.20 eeh */
1762 1.20 eeh pack.ep_name = SCARG(&ua, path);
1763 1.20 eeh MALLOC(pack.ep_hdr, void *, exec_maxhdrsz, M_EXEC, M_WAITOK);
1764 1.20 eeh pack.ep_hdrlen = exec_maxhdrsz;
1765 1.20 eeh pack.ep_hdrvalid = 0;
1766 1.20 eeh pack.ep_ndp = &nid;
1767 1.20 eeh pack.ep_emul_arg = NULL;
1768 1.20 eeh pack.ep_vmcmds.evs_cnt = 0;
1769 1.20 eeh pack.ep_vmcmds.evs_used = 0;
1770 1.20 eeh pack.ep_vap = &attr;
1771 1.20 eeh pack.ep_emul = &emul_netbsd;
1772 1.20 eeh pack.ep_flags = 0;
1773 1.20 eeh
1774 1.20 eeh /* see if we can run it. */
1775 1.20 eeh if ((error = check_exec(p, &pack)) != 0)
1776 1.20 eeh goto freehdr;
1777 1.20 eeh
1778 1.20 eeh /* XXX -- THE FOLLOWING SECTION NEEDS MAJOR CLEANUP */
1779 1.20 eeh
1780 1.20 eeh /* allocate an argument buffer */
1781 1.20 eeh argp = (char *) uvm_km_valloc_wait(exec_map, NCARGS);
1782 1.20 eeh #ifdef DIAGNOSTIC
1783 1.20 eeh if (argp == (vaddr_t) 0)
1784 1.20 eeh panic("execve: argp == NULL");
1785 1.20 eeh #endif
1786 1.20 eeh dp = argp;
1787 1.20 eeh argc = 0;
1788 1.20 eeh
1789 1.20 eeh /* copy the fake args list, if there's one, freeing it as we go */
1790 1.20 eeh if (pack.ep_flags & EXEC_HASARGL) {
1791 1.20 eeh tmpfap = pack.ep_fa;
1792 1.20 eeh while (*tmpfap != NULL) {
1793 1.20 eeh char *cp;
1794 1.20 eeh
1795 1.20 eeh cp = *tmpfap;
1796 1.20 eeh while (*cp)
1797 1.20 eeh *dp++ = *cp++;
1798 1.20 eeh dp++;
1799 1.20 eeh
1800 1.20 eeh FREE(*tmpfap, M_EXEC);
1801 1.20 eeh tmpfap++; argc++;
1802 1.20 eeh }
1803 1.20 eeh FREE(pack.ep_fa, M_EXEC);
1804 1.20 eeh pack.ep_flags &= ~EXEC_HASARGL;
1805 1.20 eeh }
1806 1.20 eeh
1807 1.20 eeh /* Now get argv & environment */
1808 1.20 eeh if (!(cpp = (netbsd32_charp *)SCARG(&ua, argp))) {
1809 1.20 eeh error = EINVAL;
1810 1.20 eeh goto bad;
1811 1.20 eeh }
1812 1.20 eeh
1813 1.20 eeh if (pack.ep_flags & EXEC_SKIPARG)
1814 1.20 eeh cpp++;
1815 1.20 eeh
1816 1.20 eeh while (1) {
1817 1.20 eeh len = argp + ARG_MAX - dp;
1818 1.20 eeh if ((error = copyin(cpp, &sp, sizeof(sp))) != 0)
1819 1.20 eeh goto bad;
1820 1.20 eeh if (!sp)
1821 1.20 eeh break;
1822 1.20 eeh if ((error = copyinstr((char *)(u_long)sp, dp,
1823 1.20 eeh len, &len)) != 0) {
1824 1.20 eeh if (error == ENAMETOOLONG)
1825 1.20 eeh error = E2BIG;
1826 1.20 eeh goto bad;
1827 1.20 eeh }
1828 1.20 eeh dp += len;
1829 1.20 eeh cpp++;
1830 1.20 eeh argc++;
1831 1.20 eeh }
1832 1.20 eeh
1833 1.20 eeh envc = 0;
1834 1.20 eeh /* environment need not be there */
1835 1.20 eeh if ((cpp = (netbsd32_charp *)SCARG(&ua, envp)) != NULL ) {
1836 1.20 eeh while (1) {
1837 1.20 eeh len = argp + ARG_MAX - dp;
1838 1.20 eeh if ((error = copyin(cpp, &sp, sizeof(sp))) != 0)
1839 1.20 eeh goto bad;
1840 1.20 eeh if (!sp)
1841 1.20 eeh break;
1842 1.20 eeh if ((error = copyinstr((char *)(u_long)sp,
1843 1.20 eeh dp, len, &len)) != 0) {
1844 1.20 eeh if (error == ENAMETOOLONG)
1845 1.20 eeh error = E2BIG;
1846 1.20 eeh goto bad;
1847 1.20 eeh }
1848 1.20 eeh dp += len;
1849 1.20 eeh cpp++;
1850 1.20 eeh envc++;
1851 1.20 eeh }
1852 1.20 eeh }
1853 1.20 eeh
1854 1.20 eeh dp = (char *) ALIGN(dp);
1855 1.20 eeh
1856 1.20 eeh szsigcode = pack.ep_emul->e_esigcode - pack.ep_emul->e_sigcode;
1857 1.20 eeh
1858 1.20 eeh /* Now check if args & environ fit into new stack */
1859 1.20 eeh if (pack.ep_flags & EXEC_32)
1860 1.20 eeh len = ((argc + envc + 2 + pack.ep_emul->e_arglen) * sizeof(char *) +
1861 1.20 eeh sizeof(int) + dp + STACKGAPLEN + szsigcode +
1862 1.20 eeh sizeof(struct ps_strings)) - argp;
1863 1.20 eeh else
1864 1.20 eeh len = ((argc + envc + 2 + pack.ep_emul->e_arglen) * sizeof(int) +
1865 1.20 eeh sizeof(int) + dp + STACKGAPLEN + szsigcode +
1866 1.20 eeh sizeof(struct ps_strings)) - argp;
1867 1.20 eeh
1868 1.20 eeh len = ALIGN(len); /* make the stack "safely" aligned */
1869 1.20 eeh
1870 1.20 eeh if (len > pack.ep_ssize) { /* in effect, compare to initial limit */
1871 1.20 eeh error = ENOMEM;
1872 1.20 eeh goto bad;
1873 1.20 eeh }
1874 1.20 eeh
1875 1.20 eeh /* adjust "active stack depth" for process VSZ */
1876 1.20 eeh pack.ep_ssize = len; /* maybe should go elsewhere, but... */
1877 1.20 eeh
1878 1.20 eeh /*
1879 1.20 eeh * Do whatever is necessary to prepare the address space
1880 1.20 eeh * for remapping. Note that this might replace the current
1881 1.20 eeh * vmspace with another!
1882 1.20 eeh */
1883 1.20 eeh uvmspace_exec(p);
1884 1.20 eeh
1885 1.20 eeh /* Now map address space */
1886 1.20 eeh vm = p->p_vmspace;
1887 1.20 eeh vm->vm_taddr = (char *) pack.ep_taddr;
1888 1.20 eeh vm->vm_tsize = btoc(pack.ep_tsize);
1889 1.20 eeh vm->vm_daddr = (char *) pack.ep_daddr;
1890 1.20 eeh vm->vm_dsize = btoc(pack.ep_dsize);
1891 1.20 eeh vm->vm_ssize = btoc(pack.ep_ssize);
1892 1.20 eeh vm->vm_maxsaddr = (char *) pack.ep_maxsaddr;
1893 1.20 eeh
1894 1.20 eeh /* create the new process's VM space by running the vmcmds */
1895 1.20 eeh #ifdef DIAGNOSTIC
1896 1.20 eeh if (pack.ep_vmcmds.evs_used == 0)
1897 1.20 eeh panic("execve: no vmcmds");
1898 1.20 eeh #endif
1899 1.20 eeh for (i = 0; i < pack.ep_vmcmds.evs_used && !error; i++) {
1900 1.20 eeh struct exec_vmcmd *vcp;
1901 1.20 eeh
1902 1.20 eeh vcp = &pack.ep_vmcmds.evs_cmds[i];
1903 1.20 eeh error = (*vcp->ev_proc)(p, vcp);
1904 1.20 eeh }
1905 1.20 eeh
1906 1.20 eeh /* free the vmspace-creation commands, and release their references */
1907 1.20 eeh kill_vmcmds(&pack.ep_vmcmds);
1908 1.20 eeh
1909 1.20 eeh /* if an error happened, deallocate and punt */
1910 1.20 eeh if (error)
1911 1.20 eeh goto exec_abort;
1912 1.20 eeh
1913 1.20 eeh /* remember information about the process */
1914 1.20 eeh arginfo.ps_nargvstr = argc;
1915 1.20 eeh arginfo.ps_nenvstr = envc;
1916 1.20 eeh
1917 1.20 eeh stack = (char *) (USRSTACK - len);
1918 1.20 eeh /* Now copy argc, args & environ to new stack */
1919 1.20 eeh if (!(*pack.ep_emul->e_copyargs)(&pack, &arginfo, stack, argp))
1920 1.20 eeh goto exec_abort;
1921 1.20 eeh
1922 1.20 eeh /* copy out the process's ps_strings structure */
1923 1.20 eeh if (copyout(&arginfo, (char *) PS_STRINGS, sizeof(arginfo)))
1924 1.20 eeh goto exec_abort;
1925 1.20 eeh
1926 1.20 eeh /* copy out the process's signal trapoline code */
1927 1.20 eeh if (szsigcode) {
1928 1.20 eeh if (copyout((char *)pack.ep_emul->e_sigcode,
1929 1.20 eeh p->p_sigacts->ps_sigcode = (char *)PS_STRINGS - szsigcode,
1930 1.20 eeh szsigcode))
1931 1.20 eeh goto exec_abort;
1932 1.20 eeh #ifdef PMAP_NEED_PROCWR
1933 1.20 eeh /* This is code. Let the pmap do what is needed. */
1934 1.20 eeh pmap_procwr(p, (vaddr_t)p->p_sigacts->ps_sigcode, szsigcode);
1935 1.20 eeh #endif
1936 1.20 eeh }
1937 1.20 eeh
1938 1.20 eeh stopprofclock(p); /* stop profiling */
1939 1.20 eeh fdcloseexec(p); /* handle close on exec */
1940 1.20 eeh execsigs(p); /* reset catched signals */
1941 1.20 eeh p->p_ctxlink = NULL; /* reset ucontext link */
1942 1.20 eeh
1943 1.20 eeh /* set command name & other accounting info */
1944 1.20 eeh len = min(nid.ni_cnd.cn_namelen, MAXCOMLEN);
1945 1.20 eeh memcpy(p->p_comm, nid.ni_cnd.cn_nameptr, len);
1946 1.20 eeh p->p_comm[len] = 0;
1947 1.20 eeh p->p_acflag &= ~AFORK;
1948 1.20 eeh
1949 1.20 eeh /* record proc's vnode, for use by procfs and others */
1950 1.20 eeh if (p->p_textvp)
1951 1.20 eeh vrele(p->p_textvp);
1952 1.20 eeh VREF(pack.ep_vp);
1953 1.20 eeh p->p_textvp = pack.ep_vp;
1954 1.20 eeh
1955 1.20 eeh p->p_flag |= P_EXEC;
1956 1.20 eeh if (p->p_flag & P_PPWAIT) {
1957 1.20 eeh p->p_flag &= ~P_PPWAIT;
1958 1.20 eeh wakeup((caddr_t) p->p_pptr);
1959 1.20 eeh }
1960 1.20 eeh
1961 1.20 eeh /*
1962 1.20 eeh * deal with set[ug]id.
1963 1.20 eeh * MNT_NOSUID and P_TRACED have already been used to disable s[ug]id.
1964 1.20 eeh */
1965 1.20 eeh if (((attr.va_mode & S_ISUID) != 0 && p->p_ucred->cr_uid != attr.va_uid)
1966 1.20 eeh || ((attr.va_mode & S_ISGID) != 0 && p->p_ucred->cr_gid != attr.va_gid)){
1967 1.20 eeh p->p_ucred = crcopy(cred);
1968 1.20 eeh #ifdef KTRACE
1969 1.20 eeh /*
1970 1.20 eeh * If process is being ktraced, turn off - unless
1971 1.20 eeh * root set it.
1972 1.20 eeh */
1973 1.20 eeh if (p->p_tracep && !(p->p_traceflag & KTRFAC_ROOT))
1974 1.20 eeh ktrderef(p);
1975 1.20 eeh #endif
1976 1.20 eeh if (attr.va_mode & S_ISUID)
1977 1.20 eeh p->p_ucred->cr_uid = attr.va_uid;
1978 1.20 eeh if (attr.va_mode & S_ISGID)
1979 1.20 eeh p->p_ucred->cr_gid = attr.va_gid;
1980 1.20 eeh p_sugid(p);
1981 1.20 eeh } else
1982 1.20 eeh p->p_flag &= ~P_SUGID;
1983 1.20 eeh p->p_cred->p_svuid = p->p_ucred->cr_uid;
1984 1.20 eeh p->p_cred->p_svgid = p->p_ucred->cr_gid;
1985 1.20 eeh
1986 1.20 eeh uvm_km_free_wakeup(exec_map, (vaddr_t) argp, NCARGS);
1987 1.20 eeh
1988 1.20 eeh FREE(nid.ni_cnd.cn_pnbuf, M_NAMEI);
1989 1.20 eeh vn_lock(pack.ep_vp, LK_EXCLUSIVE | LK_RETRY);
1990 1.20 eeh VOP_CLOSE(pack.ep_vp, FREAD, cred, p);
1991 1.20 eeh vput(pack.ep_vp);
1992 1.20 eeh
1993 1.20 eeh /* setup new registers and do misc. setup. */
1994 1.20 eeh (*pack.ep_emul->e_setregs)(p, &pack, (u_long) stack);
1995 1.20 eeh
1996 1.20 eeh if (p->p_flag & P_TRACED)
1997 1.20 eeh psignal(p, SIGTRAP);
1998 1.20 eeh
1999 1.20 eeh p->p_emul = pack.ep_emul;
2000 1.20 eeh FREE(pack.ep_hdr, M_EXEC);
2001 1.20 eeh
2002 1.20 eeh #ifdef KTRACE
2003 1.20 eeh if (KTRPOINT(p, KTR_EMUL))
2004 1.20 eeh ktremul(p->p_tracep, p, p->p_emul->e_name);
2005 1.20 eeh #endif
2006 1.20 eeh
2007 1.20 eeh return (EJUSTRETURN);
2008 1.20 eeh
2009 1.20 eeh bad:
2010 1.20 eeh /* free the vmspace-creation commands, and release their references */
2011 1.20 eeh kill_vmcmds(&pack.ep_vmcmds);
2012 1.20 eeh /* kill any opened file descriptor, if necessary */
2013 1.20 eeh if (pack.ep_flags & EXEC_HASFD) {
2014 1.20 eeh pack.ep_flags &= ~EXEC_HASFD;
2015 1.20 eeh (void) fdrelease(p, pack.ep_fd);
2016 1.20 eeh }
2017 1.20 eeh /* close and put the exec'd file */
2018 1.20 eeh vn_lock(pack.ep_vp, LK_EXCLUSIVE | LK_RETRY);
2019 1.20 eeh VOP_CLOSE(pack.ep_vp, FREAD, cred, p);
2020 1.20 eeh vput(pack.ep_vp);
2021 1.20 eeh FREE(nid.ni_cnd.cn_pnbuf, M_NAMEI);
2022 1.20 eeh uvm_km_free_wakeup(exec_map, (vaddr_t) argp, NCARGS);
2023 1.20 eeh
2024 1.20 eeh freehdr:
2025 1.20 eeh FREE(pack.ep_hdr, M_EXEC);
2026 1.20 eeh return error;
2027 1.20 eeh
2028 1.20 eeh exec_abort:
2029 1.20 eeh /*
2030 1.20 eeh * the old process doesn't exist anymore. exit gracefully.
2031 1.20 eeh * get rid of the (new) address space we have created, if any, get rid
2032 1.20 eeh * of our namei data and vnode, and exit noting failure
2033 1.20 eeh */
2034 1.20 eeh uvm_deallocate(&vm->vm_map, VM_MIN_ADDRESS,
2035 1.20 eeh VM_MAXUSER_ADDRESS - VM_MIN_ADDRESS);
2036 1.20 eeh if (pack.ep_emul_arg)
2037 1.20 eeh FREE(pack.ep_emul_arg, M_TEMP);
2038 1.20 eeh FREE(nid.ni_cnd.cn_pnbuf, M_NAMEI);
2039 1.20 eeh vn_lock(pack.ep_vp, LK_EXCLUSIVE | LK_RETRY);
2040 1.20 eeh VOP_CLOSE(pack.ep_vp, FREAD, cred, p);
2041 1.20 eeh vput(pack.ep_vp);
2042 1.20 eeh uvm_km_free_wakeup(exec_map, (vaddr_t) argp, NCARGS);
2043 1.20 eeh FREE(pack.ep_hdr, M_EXEC);
2044 1.20 eeh exit1(p, W_EXITCODE(0, SIGABRT));
2045 1.20 eeh exit1(p, -1);
2046 1.20 eeh
2047 1.20 eeh /* NOTREACHED */
2048 1.20 eeh return 0;
2049 1.1 mrg }
2050 1.1 mrg
2051 1.1 mrg int
2052 1.19 eeh netbsd32_umask(p, v, retval)
2053 1.6 eeh struct proc *p;
2054 1.6 eeh void *v;
2055 1.6 eeh register_t *retval;
2056 1.6 eeh {
2057 1.19 eeh struct netbsd32_umask_args /* {
2058 1.6 eeh syscallarg(mode_t) newmask;
2059 1.6 eeh } */ *uap = v;
2060 1.6 eeh struct sys_umask_args ua;
2061 1.6 eeh
2062 1.11 mrg NETBSD32TO64_UAP(newmask);
2063 1.6 eeh return (sys_umask(p, &ua, retval));
2064 1.6 eeh }
2065 1.6 eeh
2066 1.6 eeh int
2067 1.19 eeh netbsd32_chroot(p, v, retval)
2068 1.1 mrg struct proc *p;
2069 1.1 mrg void *v;
2070 1.1 mrg register_t *retval;
2071 1.1 mrg {
2072 1.19 eeh struct netbsd32_chroot_args /* {
2073 1.10 mrg syscallarg(const netbsd32_charp) path;
2074 1.1 mrg } */ *uap = v;
2075 1.1 mrg struct sys_chroot_args ua;
2076 1.1 mrg
2077 1.11 mrg NETBSD32TOP_UAP(path, const char);
2078 1.1 mrg return (sys_chroot(p, &ua, retval));
2079 1.1 mrg }
2080 1.1 mrg
2081 1.1 mrg int
2082 1.19 eeh netbsd32_sbrk(p, v, retval)
2083 1.6 eeh struct proc *p;
2084 1.6 eeh void *v;
2085 1.6 eeh register_t *retval;
2086 1.6 eeh {
2087 1.19 eeh struct netbsd32_sbrk_args /* {
2088 1.6 eeh syscallarg(int) incr;
2089 1.6 eeh } */ *uap = v;
2090 1.6 eeh struct sys_sbrk_args ua;
2091 1.6 eeh
2092 1.11 mrg NETBSD32TO64_UAP(incr);
2093 1.6 eeh return (sys_sbrk(p, &ua, retval));
2094 1.6 eeh }
2095 1.6 eeh
2096 1.6 eeh int
2097 1.19 eeh netbsd32_sstk(p, v, retval)
2098 1.6 eeh struct proc *p;
2099 1.6 eeh void *v;
2100 1.6 eeh register_t *retval;
2101 1.6 eeh {
2102 1.19 eeh struct netbsd32_sstk_args /* {
2103 1.6 eeh syscallarg(int) incr;
2104 1.6 eeh } */ *uap = v;
2105 1.6 eeh struct sys_sstk_args ua;
2106 1.6 eeh
2107 1.11 mrg NETBSD32TO64_UAP(incr);
2108 1.6 eeh return (sys_sstk(p, &ua, retval));
2109 1.6 eeh }
2110 1.6 eeh
2111 1.6 eeh int
2112 1.19 eeh netbsd32_munmap(p, v, retval)
2113 1.1 mrg struct proc *p;
2114 1.1 mrg void *v;
2115 1.1 mrg register_t *retval;
2116 1.1 mrg {
2117 1.19 eeh struct netbsd32_munmap_args /* {
2118 1.10 mrg syscallarg(netbsd32_voidp) addr;
2119 1.10 mrg syscallarg(netbsd32_size_t) len;
2120 1.1 mrg } */ *uap = v;
2121 1.1 mrg struct sys_munmap_args ua;
2122 1.1 mrg
2123 1.11 mrg NETBSD32TOP_UAP(addr, void);
2124 1.11 mrg NETBSD32TOX_UAP(len, size_t);
2125 1.1 mrg return (sys_munmap(p, &ua, retval));
2126 1.1 mrg }
2127 1.1 mrg
2128 1.1 mrg int
2129 1.19 eeh netbsd32_mprotect(p, v, retval)
2130 1.1 mrg struct proc *p;
2131 1.1 mrg void *v;
2132 1.1 mrg register_t *retval;
2133 1.1 mrg {
2134 1.19 eeh struct netbsd32_mprotect_args /* {
2135 1.10 mrg syscallarg(netbsd32_voidp) addr;
2136 1.10 mrg syscallarg(netbsd32_size_t) len;
2137 1.1 mrg syscallarg(int) prot;
2138 1.1 mrg } */ *uap = v;
2139 1.1 mrg struct sys_mprotect_args ua;
2140 1.1 mrg
2141 1.11 mrg NETBSD32TOP_UAP(addr, void);
2142 1.11 mrg NETBSD32TOX_UAP(len, size_t);
2143 1.11 mrg NETBSD32TO64_UAP(prot);
2144 1.1 mrg return (sys_mprotect(p, &ua, retval));
2145 1.1 mrg }
2146 1.1 mrg
2147 1.1 mrg int
2148 1.19 eeh netbsd32_madvise(p, v, retval)
2149 1.1 mrg struct proc *p;
2150 1.1 mrg void *v;
2151 1.1 mrg register_t *retval;
2152 1.1 mrg {
2153 1.19 eeh struct netbsd32_madvise_args /* {
2154 1.10 mrg syscallarg(netbsd32_voidp) addr;
2155 1.10 mrg syscallarg(netbsd32_size_t) len;
2156 1.1 mrg syscallarg(int) behav;
2157 1.1 mrg } */ *uap = v;
2158 1.1 mrg struct sys_madvise_args ua;
2159 1.1 mrg
2160 1.11 mrg NETBSD32TOP_UAP(addr, void);
2161 1.11 mrg NETBSD32TOX_UAP(len, size_t);
2162 1.11 mrg NETBSD32TO64_UAP(behav);
2163 1.1 mrg return (sys_madvise(p, &ua, retval));
2164 1.1 mrg }
2165 1.1 mrg
2166 1.1 mrg int
2167 1.19 eeh netbsd32_mincore(p, v, retval)
2168 1.1 mrg struct proc *p;
2169 1.1 mrg void *v;
2170 1.1 mrg register_t *retval;
2171 1.1 mrg {
2172 1.19 eeh struct netbsd32_mincore_args /* {
2173 1.10 mrg syscallarg(netbsd32_caddr_t) addr;
2174 1.10 mrg syscallarg(netbsd32_size_t) len;
2175 1.10 mrg syscallarg(netbsd32_charp) vec;
2176 1.1 mrg } */ *uap = v;
2177 1.1 mrg struct sys_mincore_args ua;
2178 1.1 mrg
2179 1.11 mrg NETBSD32TOX64_UAP(addr, caddr_t);
2180 1.11 mrg NETBSD32TOX_UAP(len, size_t);
2181 1.11 mrg NETBSD32TOP_UAP(vec, char);
2182 1.1 mrg return (sys_mincore(p, &ua, retval));
2183 1.1 mrg }
2184 1.1 mrg
2185 1.1 mrg int
2186 1.19 eeh netbsd32_getgroups(p, v, retval)
2187 1.1 mrg struct proc *p;
2188 1.1 mrg void *v;
2189 1.1 mrg register_t *retval;
2190 1.1 mrg {
2191 1.19 eeh struct netbsd32_getgroups_args /* {
2192 1.1 mrg syscallarg(int) gidsetsize;
2193 1.10 mrg syscallarg(netbsd32_gid_tp) gidset;
2194 1.1 mrg } */ *uap = v;
2195 1.6 eeh register struct pcred *pc = p->p_cred;
2196 1.6 eeh register int ngrp;
2197 1.6 eeh int error;
2198 1.1 mrg
2199 1.6 eeh ngrp = SCARG(uap, gidsetsize);
2200 1.6 eeh if (ngrp == 0) {
2201 1.6 eeh *retval = pc->pc_ucred->cr_ngroups;
2202 1.6 eeh return (0);
2203 1.6 eeh }
2204 1.6 eeh if (ngrp < pc->pc_ucred->cr_ngroups)
2205 1.6 eeh return (EINVAL);
2206 1.6 eeh ngrp = pc->pc_ucred->cr_ngroups;
2207 1.10 mrg /* Should convert gid_t to netbsd32_gid_t, but they're the same */
2208 1.6 eeh error = copyout((caddr_t)pc->pc_ucred->cr_groups,
2209 1.6 eeh (caddr_t)(u_long)SCARG(uap, gidset),
2210 1.6 eeh ngrp * sizeof(gid_t));
2211 1.6 eeh if (error)
2212 1.6 eeh return (error);
2213 1.6 eeh *retval = ngrp;
2214 1.6 eeh return (0);
2215 1.1 mrg }
2216 1.1 mrg
2217 1.1 mrg int
2218 1.19 eeh netbsd32_setgroups(p, v, retval)
2219 1.1 mrg struct proc *p;
2220 1.1 mrg void *v;
2221 1.1 mrg register_t *retval;
2222 1.1 mrg {
2223 1.19 eeh struct netbsd32_setgroups_args /* {
2224 1.1 mrg syscallarg(int) gidsetsize;
2225 1.10 mrg syscallarg(const netbsd32_gid_tp) gidset;
2226 1.1 mrg } */ *uap = v;
2227 1.1 mrg struct sys_setgroups_args ua;
2228 1.1 mrg
2229 1.11 mrg NETBSD32TO64_UAP(gidsetsize);
2230 1.11 mrg NETBSD32TOP_UAP(gidset, gid_t);
2231 1.1 mrg return (sys_setgroups(p, &ua, retval));
2232 1.1 mrg }
2233 1.1 mrg
2234 1.1 mrg int
2235 1.19 eeh netbsd32_setpgid(p, v, retval)
2236 1.6 eeh struct proc *p;
2237 1.6 eeh void *v;
2238 1.6 eeh register_t *retval;
2239 1.6 eeh {
2240 1.19 eeh struct netbsd32_setpgid_args /* {
2241 1.6 eeh syscallarg(int) pid;
2242 1.6 eeh syscallarg(int) pgid;
2243 1.6 eeh } */ *uap = v;
2244 1.6 eeh struct sys_setpgid_args ua;
2245 1.6 eeh
2246 1.11 mrg NETBSD32TO64_UAP(pid);
2247 1.11 mrg NETBSD32TO64_UAP(pgid);
2248 1.6 eeh return (sys_setpgid(p, &ua, retval));
2249 1.6 eeh }
2250 1.6 eeh
2251 1.6 eeh int
2252 1.19 eeh netbsd32_setitimer(p, v, retval)
2253 1.1 mrg struct proc *p;
2254 1.1 mrg void *v;
2255 1.1 mrg register_t *retval;
2256 1.1 mrg {
2257 1.19 eeh struct netbsd32_setitimer_args /* {
2258 1.1 mrg syscallarg(int) which;
2259 1.10 mrg syscallarg(const netbsd32_itimervalp_t) itv;
2260 1.10 mrg syscallarg(netbsd32_itimervalp_t) oitv;
2261 1.1 mrg } */ *uap = v;
2262 1.10 mrg struct netbsd32_itimerval s32it, *itvp;
2263 1.6 eeh int which = SCARG(uap, which);
2264 1.19 eeh struct netbsd32_getitimer_args getargs;
2265 1.6 eeh struct itimerval aitv;
2266 1.6 eeh int s, error;
2267 1.1 mrg
2268 1.6 eeh if ((u_int)which > ITIMER_PROF)
2269 1.6 eeh return (EINVAL);
2270 1.10 mrg itvp = (struct netbsd32_itimerval *)(u_long)SCARG(uap, itv);
2271 1.6 eeh if (itvp && (error = copyin(itvp, &s32it, sizeof(s32it))))
2272 1.6 eeh return (error);
2273 1.10 mrg netbsd32_to_itimerval(&s32it, &aitv);
2274 1.6 eeh if (SCARG(uap, oitv) != NULL) {
2275 1.6 eeh SCARG(&getargs, which) = which;
2276 1.6 eeh SCARG(&getargs, itv) = SCARG(uap, oitv);
2277 1.19 eeh if ((error = netbsd32_getitimer(p, &getargs, retval)) != 0)
2278 1.6 eeh return (error);
2279 1.6 eeh }
2280 1.6 eeh if (itvp == 0)
2281 1.6 eeh return (0);
2282 1.6 eeh if (itimerfix(&aitv.it_value) || itimerfix(&aitv.it_interval))
2283 1.6 eeh return (EINVAL);
2284 1.6 eeh s = splclock();
2285 1.6 eeh if (which == ITIMER_REAL) {
2286 1.6 eeh untimeout(realitexpire, p);
2287 1.6 eeh if (timerisset(&aitv.it_value)) {
2288 1.6 eeh timeradd(&aitv.it_value, &time, &aitv.it_value);
2289 1.6 eeh timeout(realitexpire, p, hzto(&aitv.it_value));
2290 1.6 eeh }
2291 1.6 eeh p->p_realtimer = aitv;
2292 1.1 mrg } else
2293 1.6 eeh p->p_stats->p_timer[which] = aitv;
2294 1.6 eeh splx(s);
2295 1.6 eeh return (0);
2296 1.6 eeh }
2297 1.1 mrg
2298 1.1 mrg int
2299 1.19 eeh netbsd32_getitimer(p, v, retval)
2300 1.1 mrg struct proc *p;
2301 1.1 mrg void *v;
2302 1.1 mrg register_t *retval;
2303 1.1 mrg {
2304 1.19 eeh struct netbsd32_getitimer_args /* {
2305 1.1 mrg syscallarg(int) which;
2306 1.10 mrg syscallarg(netbsd32_itimervalp_t) itv;
2307 1.1 mrg } */ *uap = v;
2308 1.6 eeh int which = SCARG(uap, which);
2309 1.10 mrg struct netbsd32_itimerval s32it;
2310 1.6 eeh struct itimerval aitv;
2311 1.6 eeh int s;
2312 1.1 mrg
2313 1.6 eeh if ((u_int)which > ITIMER_PROF)
2314 1.6 eeh return (EINVAL);
2315 1.6 eeh s = splclock();
2316 1.6 eeh if (which == ITIMER_REAL) {
2317 1.6 eeh /*
2318 1.6 eeh * Convert from absolute to relative time in .it_value
2319 1.6 eeh * part of real time timer. If time for real time timer
2320 1.6 eeh * has passed return 0, else return difference between
2321 1.6 eeh * current time and time for the timer to go off.
2322 1.6 eeh */
2323 1.6 eeh aitv = p->p_realtimer;
2324 1.6 eeh if (timerisset(&aitv.it_value)) {
2325 1.6 eeh if (timercmp(&aitv.it_value, &time, <))
2326 1.6 eeh timerclear(&aitv.it_value);
2327 1.6 eeh else
2328 1.6 eeh timersub(&aitv.it_value, &time, &aitv.it_value);
2329 1.6 eeh }
2330 1.6 eeh } else
2331 1.6 eeh aitv = p->p_stats->p_timer[which];
2332 1.6 eeh splx(s);
2333 1.10 mrg netbsd32_from_itimerval(&aitv, &s32it);
2334 1.6 eeh return (copyout(&s32it, (caddr_t)(u_long)SCARG(uap, itv), sizeof(s32it)));
2335 1.1 mrg }
2336 1.1 mrg
2337 1.1 mrg int
2338 1.19 eeh netbsd32_fcntl(p, v, retval)
2339 1.1 mrg struct proc *p;
2340 1.1 mrg void *v;
2341 1.1 mrg register_t *retval;
2342 1.1 mrg {
2343 1.19 eeh struct netbsd32_fcntl_args /* {
2344 1.1 mrg syscallarg(int) fd;
2345 1.1 mrg syscallarg(int) cmd;
2346 1.10 mrg syscallarg(netbsd32_voidp) arg;
2347 1.1 mrg } */ *uap = v;
2348 1.1 mrg struct sys_fcntl_args ua;
2349 1.1 mrg
2350 1.11 mrg NETBSD32TO64_UAP(fd);
2351 1.11 mrg NETBSD32TO64_UAP(cmd);
2352 1.11 mrg NETBSD32TOP_UAP(arg, void);
2353 1.6 eeh /* XXXX we can do this 'cause flock doesn't change */
2354 1.1 mrg return (sys_fcntl(p, &ua, retval));
2355 1.1 mrg }
2356 1.1 mrg
2357 1.1 mrg int
2358 1.19 eeh netbsd32_dup2(p, v, retval)
2359 1.6 eeh struct proc *p;
2360 1.6 eeh void *v;
2361 1.6 eeh register_t *retval;
2362 1.6 eeh {
2363 1.19 eeh struct netbsd32_dup2_args /* {
2364 1.6 eeh syscallarg(int) from;
2365 1.6 eeh syscallarg(int) to;
2366 1.6 eeh } */ *uap = v;
2367 1.6 eeh struct sys_dup2_args ua;
2368 1.6 eeh
2369 1.11 mrg NETBSD32TO64_UAP(from);
2370 1.11 mrg NETBSD32TO64_UAP(to);
2371 1.6 eeh return (sys_dup2(p, &ua, retval));
2372 1.6 eeh }
2373 1.6 eeh
2374 1.6 eeh int
2375 1.19 eeh netbsd32_select(p, v, retval)
2376 1.1 mrg struct proc *p;
2377 1.1 mrg void *v;
2378 1.1 mrg register_t *retval;
2379 1.1 mrg {
2380 1.19 eeh struct netbsd32_select_args /* {
2381 1.1 mrg syscallarg(int) nd;
2382 1.10 mrg syscallarg(netbsd32_fd_setp_t) in;
2383 1.10 mrg syscallarg(netbsd32_fd_setp_t) ou;
2384 1.10 mrg syscallarg(netbsd32_fd_setp_t) ex;
2385 1.10 mrg syscallarg(netbsd32_timevalp_t) tv;
2386 1.1 mrg } */ *uap = v;
2387 1.6 eeh /* This one must be done in-line 'cause of the timeval */
2388 1.10 mrg struct netbsd32_timeval tv32;
2389 1.6 eeh caddr_t bits;
2390 1.6 eeh char smallbits[howmany(FD_SETSIZE, NFDBITS) * sizeof(fd_mask) * 6];
2391 1.6 eeh struct timeval atv;
2392 1.6 eeh int s, ncoll, error = 0, timo;
2393 1.6 eeh size_t ni;
2394 1.6 eeh extern int selwait, nselcoll;
2395 1.6 eeh extern int selscan __P((struct proc *, fd_mask *, fd_mask *, int, register_t *));
2396 1.1 mrg
2397 1.6 eeh if (SCARG(uap, nd) < 0)
2398 1.6 eeh return (EINVAL);
2399 1.6 eeh if (SCARG(uap, nd) > p->p_fd->fd_nfiles) {
2400 1.6 eeh /* forgiving; slightly wrong */
2401 1.6 eeh SCARG(uap, nd) = p->p_fd->fd_nfiles;
2402 1.5 eeh }
2403 1.6 eeh ni = howmany(SCARG(uap, nd), NFDBITS) * sizeof(fd_mask);
2404 1.6 eeh if (ni * 6 > sizeof(smallbits))
2405 1.6 eeh bits = malloc(ni * 6, M_TEMP, M_WAITOK);
2406 1.6 eeh else
2407 1.6 eeh bits = smallbits;
2408 1.1 mrg
2409 1.6 eeh #define getbits(name, x) \
2410 1.6 eeh if (SCARG(uap, name)) { \
2411 1.6 eeh error = copyin((caddr_t)(u_long)SCARG(uap, name), bits + ni * x, ni); \
2412 1.6 eeh if (error) \
2413 1.6 eeh goto done; \
2414 1.6 eeh } else \
2415 1.6 eeh memset(bits + ni * x, 0, ni);
2416 1.6 eeh getbits(in, 0);
2417 1.6 eeh getbits(ou, 1);
2418 1.6 eeh getbits(ex, 2);
2419 1.6 eeh #undef getbits
2420 1.6 eeh
2421 1.6 eeh if (SCARG(uap, tv)) {
2422 1.6 eeh error = copyin((caddr_t)(u_long)SCARG(uap, tv), (caddr_t)&tv32,
2423 1.6 eeh sizeof(tv32));
2424 1.6 eeh if (error)
2425 1.6 eeh goto done;
2426 1.10 mrg netbsd32_to_timeval(&tv32, &atv);
2427 1.6 eeh if (itimerfix(&atv)) {
2428 1.6 eeh error = EINVAL;
2429 1.6 eeh goto done;
2430 1.6 eeh }
2431 1.6 eeh s = splclock();
2432 1.6 eeh timeradd(&atv, &time, &atv);
2433 1.6 eeh timo = hzto(&atv);
2434 1.6 eeh /*
2435 1.6 eeh * Avoid inadvertently sleeping forever.
2436 1.6 eeh */
2437 1.6 eeh if (timo == 0)
2438 1.6 eeh timo = 1;
2439 1.6 eeh splx(s);
2440 1.6 eeh } else
2441 1.6 eeh timo = 0;
2442 1.6 eeh retry:
2443 1.6 eeh ncoll = nselcoll;
2444 1.6 eeh p->p_flag |= P_SELECT;
2445 1.6 eeh error = selscan(p, (fd_mask *)(bits + ni * 0),
2446 1.6 eeh (fd_mask *)(bits + ni * 3), SCARG(uap, nd), retval);
2447 1.6 eeh if (error || *retval)
2448 1.6 eeh goto done;
2449 1.6 eeh s = splhigh();
2450 1.6 eeh if (timo && timercmp(&time, &atv, >=)) {
2451 1.6 eeh splx(s);
2452 1.6 eeh goto done;
2453 1.6 eeh }
2454 1.6 eeh if ((p->p_flag & P_SELECT) == 0 || nselcoll != ncoll) {
2455 1.6 eeh splx(s);
2456 1.6 eeh goto retry;
2457 1.6 eeh }
2458 1.6 eeh p->p_flag &= ~P_SELECT;
2459 1.6 eeh error = tsleep((caddr_t)&selwait, PSOCK | PCATCH, "select", timo);
2460 1.6 eeh splx(s);
2461 1.6 eeh if (error == 0)
2462 1.6 eeh goto retry;
2463 1.6 eeh done:
2464 1.6 eeh p->p_flag &= ~P_SELECT;
2465 1.6 eeh /* select is not restarted after signals... */
2466 1.6 eeh if (error == ERESTART)
2467 1.6 eeh error = EINTR;
2468 1.6 eeh if (error == EWOULDBLOCK)
2469 1.6 eeh error = 0;
2470 1.6 eeh if (error == 0) {
2471 1.6 eeh #define putbits(name, x) \
2472 1.6 eeh if (SCARG(uap, name)) { \
2473 1.6 eeh error = copyout(bits + ni * x, (caddr_t)(u_long)SCARG(uap, name), ni); \
2474 1.6 eeh if (error) \
2475 1.6 eeh goto out; \
2476 1.6 eeh }
2477 1.6 eeh putbits(in, 3);
2478 1.6 eeh putbits(ou, 4);
2479 1.6 eeh putbits(ex, 5);
2480 1.6 eeh #undef putbits
2481 1.5 eeh }
2482 1.6 eeh out:
2483 1.6 eeh if (ni * 6 > sizeof(smallbits))
2484 1.6 eeh free(bits, M_TEMP);
2485 1.6 eeh return (error);
2486 1.6 eeh }
2487 1.6 eeh
2488 1.6 eeh int
2489 1.19 eeh netbsd32_fsync(p, v, retval)
2490 1.6 eeh struct proc *p;
2491 1.6 eeh void *v;
2492 1.6 eeh register_t *retval;
2493 1.6 eeh {
2494 1.19 eeh struct netbsd32_fsync_args /* {
2495 1.6 eeh syscallarg(int) fd;
2496 1.6 eeh } */ *uap = v;
2497 1.6 eeh struct sys_fsync_args ua;
2498 1.1 mrg
2499 1.11 mrg NETBSD32TO64_UAP(fd);
2500 1.6 eeh return (sys_fsync(p, &ua, retval));
2501 1.6 eeh }
2502 1.6 eeh
2503 1.6 eeh int
2504 1.19 eeh netbsd32_setpriority(p, v, retval)
2505 1.6 eeh struct proc *p;
2506 1.6 eeh void *v;
2507 1.6 eeh register_t *retval;
2508 1.6 eeh {
2509 1.19 eeh struct netbsd32_setpriority_args /* {
2510 1.6 eeh syscallarg(int) which;
2511 1.6 eeh syscallarg(int) who;
2512 1.6 eeh syscallarg(int) prio;
2513 1.6 eeh } */ *uap = v;
2514 1.6 eeh struct sys_setpriority_args ua;
2515 1.6 eeh
2516 1.11 mrg NETBSD32TO64_UAP(which);
2517 1.11 mrg NETBSD32TO64_UAP(who);
2518 1.11 mrg NETBSD32TO64_UAP(prio);
2519 1.6 eeh return (sys_setpriority(p, &ua, retval));
2520 1.6 eeh }
2521 1.6 eeh
2522 1.6 eeh int
2523 1.19 eeh netbsd32_socket(p, v, retval)
2524 1.6 eeh struct proc *p;
2525 1.6 eeh void *v;
2526 1.6 eeh register_t *retval;
2527 1.6 eeh {
2528 1.19 eeh struct netbsd32_socket_args /* {
2529 1.6 eeh syscallarg(int) domain;
2530 1.6 eeh syscallarg(int) type;
2531 1.6 eeh syscallarg(int) protocol;
2532 1.6 eeh } */ *uap = v;
2533 1.6 eeh struct sys_socket_args ua;
2534 1.6 eeh
2535 1.11 mrg NETBSD32TO64_UAP(domain);
2536 1.11 mrg NETBSD32TO64_UAP(type);
2537 1.11 mrg NETBSD32TO64_UAP(protocol);
2538 1.6 eeh return (sys_socket(p, &ua, retval));
2539 1.1 mrg }
2540 1.1 mrg
2541 1.1 mrg int
2542 1.19 eeh netbsd32_connect(p, v, retval)
2543 1.1 mrg struct proc *p;
2544 1.1 mrg void *v;
2545 1.1 mrg register_t *retval;
2546 1.1 mrg {
2547 1.19 eeh struct netbsd32_connect_args /* {
2548 1.1 mrg syscallarg(int) s;
2549 1.10 mrg syscallarg(const netbsd32_sockaddrp_t) name;
2550 1.1 mrg syscallarg(int) namelen;
2551 1.1 mrg } */ *uap = v;
2552 1.1 mrg struct sys_connect_args ua;
2553 1.1 mrg
2554 1.11 mrg NETBSD32TO64_UAP(s);
2555 1.11 mrg NETBSD32TOP_UAP(name, struct sockaddr);
2556 1.11 mrg NETBSD32TO64_UAP(namelen);
2557 1.1 mrg return (sys_connect(p, &ua, retval));
2558 1.1 mrg }
2559 1.1 mrg
2560 1.6 eeh int
2561 1.19 eeh netbsd32_getpriority(p, v, retval)
2562 1.6 eeh struct proc *p;
2563 1.6 eeh void *v;
2564 1.6 eeh register_t *retval;
2565 1.6 eeh {
2566 1.19 eeh struct netbsd32_getpriority_args /* {
2567 1.6 eeh syscallarg(int) which;
2568 1.6 eeh syscallarg(int) who;
2569 1.6 eeh } */ *uap = v;
2570 1.6 eeh struct sys_getpriority_args ua;
2571 1.6 eeh
2572 1.11 mrg NETBSD32TO64_UAP(which);
2573 1.11 mrg NETBSD32TO64_UAP(who);
2574 1.6 eeh return (sys_getpriority(p, &ua, retval));
2575 1.6 eeh }
2576 1.6 eeh
2577 1.1 mrg int
2578 1.19 eeh netbsd32_bind(p, v, retval)
2579 1.1 mrg struct proc *p;
2580 1.1 mrg void *v;
2581 1.1 mrg register_t *retval;
2582 1.1 mrg {
2583 1.19 eeh struct netbsd32_bind_args /* {
2584 1.1 mrg syscallarg(int) s;
2585 1.10 mrg syscallarg(const netbsd32_sockaddrp_t) name;
2586 1.1 mrg syscallarg(int) namelen;
2587 1.1 mrg } */ *uap = v;
2588 1.6 eeh struct sys_bind_args ua;
2589 1.1 mrg
2590 1.11 mrg NETBSD32TO64_UAP(s);
2591 1.11 mrg NETBSD32TOP_UAP(name, struct sockaddr);
2592 1.11 mrg NETBSD32TO64_UAP(namelen);
2593 1.6 eeh return (sys_bind(p, &ua, retval));
2594 1.1 mrg }
2595 1.1 mrg
2596 1.1 mrg int
2597 1.19 eeh netbsd32_setsockopt(p, v, retval)
2598 1.1 mrg struct proc *p;
2599 1.1 mrg void *v;
2600 1.1 mrg register_t *retval;
2601 1.1 mrg {
2602 1.19 eeh struct netbsd32_setsockopt_args /* {
2603 1.1 mrg syscallarg(int) s;
2604 1.1 mrg syscallarg(int) level;
2605 1.1 mrg syscallarg(int) name;
2606 1.10 mrg syscallarg(const netbsd32_voidp) val;
2607 1.1 mrg syscallarg(int) valsize;
2608 1.1 mrg } */ *uap = v;
2609 1.1 mrg struct sys_setsockopt_args ua;
2610 1.1 mrg
2611 1.11 mrg NETBSD32TO64_UAP(s);
2612 1.11 mrg NETBSD32TO64_UAP(level);
2613 1.11 mrg NETBSD32TO64_UAP(name);
2614 1.11 mrg NETBSD32TOP_UAP(val, void);
2615 1.11 mrg NETBSD32TO64_UAP(valsize);
2616 1.6 eeh /* may be more efficient to do this inline. */
2617 1.1 mrg return (sys_setsockopt(p, &ua, retval));
2618 1.1 mrg }
2619 1.1 mrg
2620 1.1 mrg int
2621 1.19 eeh netbsd32_listen(p, v, retval)
2622 1.6 eeh struct proc *p;
2623 1.6 eeh void *v;
2624 1.6 eeh register_t *retval;
2625 1.6 eeh {
2626 1.19 eeh struct netbsd32_listen_args /* {
2627 1.6 eeh syscallarg(int) s;
2628 1.6 eeh syscallarg(int) backlog;
2629 1.6 eeh } */ *uap = v;
2630 1.6 eeh struct sys_listen_args ua;
2631 1.6 eeh
2632 1.11 mrg NETBSD32TO64_UAP(s);
2633 1.11 mrg NETBSD32TO64_UAP(backlog);
2634 1.6 eeh return (sys_listen(p, &ua, retval));
2635 1.6 eeh }
2636 1.6 eeh
2637 1.6 eeh int
2638 1.19 eeh netbsd32_gettimeofday(p, v, retval)
2639 1.1 mrg struct proc *p;
2640 1.1 mrg void *v;
2641 1.1 mrg register_t *retval;
2642 1.1 mrg {
2643 1.19 eeh struct netbsd32_gettimeofday_args /* {
2644 1.10 mrg syscallarg(netbsd32_timevalp_t) tp;
2645 1.10 mrg syscallarg(netbsd32_timezonep_t) tzp;
2646 1.1 mrg } */ *uap = v;
2647 1.6 eeh struct timeval atv;
2648 1.10 mrg struct netbsd32_timeval tv32;
2649 1.6 eeh int error = 0;
2650 1.10 mrg struct netbsd32_timezone tzfake;
2651 1.6 eeh
2652 1.6 eeh if (SCARG(uap, tp)) {
2653 1.6 eeh microtime(&atv);
2654 1.10 mrg netbsd32_from_timeval(&atv, &tv32);
2655 1.6 eeh error = copyout(&tv32, (caddr_t)(u_long)SCARG(uap, tp), sizeof(tv32));
2656 1.6 eeh if (error)
2657 1.6 eeh return (error);
2658 1.6 eeh }
2659 1.6 eeh if (SCARG(uap, tzp)) {
2660 1.6 eeh /*
2661 1.6 eeh * NetBSD has no kernel notion of time zone, so we just
2662 1.6 eeh * fake up a timezone struct and return it if demanded.
2663 1.6 eeh */
2664 1.6 eeh tzfake.tz_minuteswest = 0;
2665 1.6 eeh tzfake.tz_dsttime = 0;
2666 1.6 eeh error = copyout(&tzfake, (caddr_t)(u_long)SCARG(uap, tzp), sizeof(tzfake));
2667 1.6 eeh }
2668 1.6 eeh return (error);
2669 1.6 eeh }
2670 1.1 mrg
2671 1.20 eeh #if 0
2672 1.20 eeh static int settime32 __P((struct timeval *));
2673 1.6 eeh /* This function is used by clock_settime and settimeofday */
2674 1.6 eeh static int
2675 1.20 eeh settime32(tv)
2676 1.6 eeh struct timeval *tv;
2677 1.6 eeh {
2678 1.6 eeh struct timeval delta;
2679 1.6 eeh int s;
2680 1.1 mrg
2681 1.6 eeh /* WHAT DO WE DO ABOUT PENDING REAL-TIME TIMEOUTS??? */
2682 1.6 eeh s = splclock();
2683 1.6 eeh timersub(tv, &time, &delta);
2684 1.6 eeh if ((delta.tv_sec < 0 || delta.tv_usec < 0) && securelevel > 1)
2685 1.6 eeh return (EPERM);
2686 1.6 eeh #ifdef notyet
2687 1.6 eeh if ((delta.tv_sec < 86400) && securelevel > 0)
2688 1.6 eeh return (EPERM);
2689 1.6 eeh #endif
2690 1.6 eeh time = *tv;
2691 1.17 thorpej (void) spllowersoftclock();
2692 1.6 eeh timeradd(&boottime, &delta, &boottime);
2693 1.6 eeh timeradd(&runtime, &delta, &runtime);
2694 1.6 eeh # if defined(NFS) || defined(NFSSERVER)
2695 1.20 eeh {
2696 1.20 eeh extern void nqnfs_lease_updatetime __P((int));
2697 1.20 eeh
2698 1.6 eeh nqnfs_lease_updatetime(delta.tv_sec);
2699 1.20 eeh }
2700 1.6 eeh # endif
2701 1.6 eeh splx(s);
2702 1.6 eeh resettodr();
2703 1.1 mrg return (0);
2704 1.1 mrg }
2705 1.20 eeh #endif
2706 1.6 eeh
2707 1.1 mrg int
2708 1.19 eeh netbsd32_settimeofday(p, v, retval)
2709 1.1 mrg struct proc *p;
2710 1.1 mrg void *v;
2711 1.1 mrg register_t *retval;
2712 1.1 mrg {
2713 1.19 eeh struct netbsd32_settimeofday_args /* {
2714 1.10 mrg syscallarg(const netbsd32_timevalp_t) tv;
2715 1.10 mrg syscallarg(const netbsd32_timezonep_t) tzp;
2716 1.1 mrg } */ *uap = v;
2717 1.10 mrg struct netbsd32_timeval atv32;
2718 1.6 eeh struct timeval atv;
2719 1.10 mrg struct netbsd32_timezone atz;
2720 1.1 mrg int error;
2721 1.1 mrg
2722 1.6 eeh if ((error = suser(p->p_ucred, &p->p_acflag)) != 0)
2723 1.6 eeh return (error);
2724 1.6 eeh /* Verify all parameters before changing time. */
2725 1.6 eeh if (SCARG(uap, tv) && (error = copyin((caddr_t)(u_long)SCARG(uap, tv),
2726 1.6 eeh &atv32, sizeof(atv32))))
2727 1.6 eeh return (error);
2728 1.10 mrg netbsd32_to_timeval(&atv32, &atv);
2729 1.6 eeh /* XXX since we don't use tz, probably no point in doing copyin. */
2730 1.6 eeh if (SCARG(uap, tzp) && (error = copyin((caddr_t)(u_long)SCARG(uap, tzp),
2731 1.6 eeh &atz, sizeof(atz))))
2732 1.1 mrg return (error);
2733 1.6 eeh if (SCARG(uap, tv))
2734 1.6 eeh if ((error = settime(&atv)))
2735 1.6 eeh return (error);
2736 1.6 eeh /*
2737 1.6 eeh * NetBSD has no kernel notion of time zone, and only an
2738 1.6 eeh * obsolete program would try to set it, so we log a warning.
2739 1.6 eeh */
2740 1.6 eeh if (SCARG(uap, tzp))
2741 1.6 eeh printf("pid %d attempted to set the "
2742 1.6 eeh "(obsolete) kernel time zone\n", p->p_pid);
2743 1.6 eeh return (0);
2744 1.6 eeh }
2745 1.6 eeh
2746 1.6 eeh int
2747 1.19 eeh netbsd32_fchown(p, v, retval)
2748 1.6 eeh struct proc *p;
2749 1.6 eeh void *v;
2750 1.6 eeh register_t *retval;
2751 1.6 eeh {
2752 1.19 eeh struct netbsd32_fchown_args /* {
2753 1.6 eeh syscallarg(int) fd;
2754 1.6 eeh syscallarg(uid_t) uid;
2755 1.6 eeh syscallarg(gid_t) gid;
2756 1.6 eeh } */ *uap = v;
2757 1.6 eeh struct sys_fchown_args ua;
2758 1.6 eeh
2759 1.11 mrg NETBSD32TO64_UAP(fd);
2760 1.11 mrg NETBSD32TO64_UAP(uid);
2761 1.11 mrg NETBSD32TO64_UAP(gid);
2762 1.6 eeh return (sys_fchown(p, &ua, retval));
2763 1.6 eeh }
2764 1.6 eeh
2765 1.6 eeh int
2766 1.19 eeh netbsd32_fchmod(p, v, retval)
2767 1.6 eeh struct proc *p;
2768 1.6 eeh void *v;
2769 1.6 eeh register_t *retval;
2770 1.6 eeh {
2771 1.19 eeh struct netbsd32_fchmod_args /* {
2772 1.6 eeh syscallarg(int) fd;
2773 1.6 eeh syscallarg(mode_t) mode;
2774 1.6 eeh } */ *uap = v;
2775 1.6 eeh struct sys_fchmod_args ua;
2776 1.6 eeh
2777 1.11 mrg NETBSD32TO64_UAP(fd);
2778 1.11 mrg NETBSD32TO64_UAP(mode);
2779 1.6 eeh return (sys_fchmod(p, &ua, retval));
2780 1.6 eeh }
2781 1.6 eeh
2782 1.6 eeh int
2783 1.19 eeh netbsd32_setreuid(p, v, retval)
2784 1.6 eeh struct proc *p;
2785 1.6 eeh void *v;
2786 1.6 eeh register_t *retval;
2787 1.6 eeh {
2788 1.19 eeh struct netbsd32_setreuid_args /* {
2789 1.6 eeh syscallarg(uid_t) ruid;
2790 1.6 eeh syscallarg(uid_t) euid;
2791 1.6 eeh } */ *uap = v;
2792 1.6 eeh struct sys_setreuid_args ua;
2793 1.6 eeh
2794 1.11 mrg NETBSD32TO64_UAP(ruid);
2795 1.11 mrg NETBSD32TO64_UAP(euid);
2796 1.6 eeh return (sys_setreuid(p, &ua, retval));
2797 1.6 eeh }
2798 1.1 mrg
2799 1.6 eeh int
2800 1.19 eeh netbsd32_setregid(p, v, retval)
2801 1.6 eeh struct proc *p;
2802 1.6 eeh void *v;
2803 1.6 eeh register_t *retval;
2804 1.6 eeh {
2805 1.19 eeh struct netbsd32_setregid_args /* {
2806 1.6 eeh syscallarg(gid_t) rgid;
2807 1.6 eeh syscallarg(gid_t) egid;
2808 1.6 eeh } */ *uap = v;
2809 1.6 eeh struct sys_setregid_args ua;
2810 1.6 eeh
2811 1.11 mrg NETBSD32TO64_UAP(rgid);
2812 1.11 mrg NETBSD32TO64_UAP(egid);
2813 1.6 eeh return (sys_setregid(p, &ua, retval));
2814 1.1 mrg }
2815 1.1 mrg
2816 1.1 mrg int
2817 1.19 eeh netbsd32_getrusage(p, v, retval)
2818 1.1 mrg struct proc *p;
2819 1.1 mrg void *v;
2820 1.1 mrg register_t *retval;
2821 1.1 mrg {
2822 1.19 eeh struct netbsd32_getrusage_args /* {
2823 1.1 mrg syscallarg(int) who;
2824 1.10 mrg syscallarg(netbsd32_rusagep_t) rusage;
2825 1.1 mrg } */ *uap = v;
2826 1.6 eeh struct rusage *rup;
2827 1.10 mrg struct netbsd32_rusage ru;
2828 1.6 eeh
2829 1.6 eeh switch (SCARG(uap, who)) {
2830 1.1 mrg
2831 1.6 eeh case RUSAGE_SELF:
2832 1.6 eeh rup = &p->p_stats->p_ru;
2833 1.6 eeh calcru(p, &rup->ru_utime, &rup->ru_stime, NULL);
2834 1.6 eeh break;
2835 1.1 mrg
2836 1.6 eeh case RUSAGE_CHILDREN:
2837 1.6 eeh rup = &p->p_stats->p_cru;
2838 1.6 eeh break;
2839 1.1 mrg
2840 1.6 eeh default:
2841 1.6 eeh return (EINVAL);
2842 1.6 eeh }
2843 1.10 mrg netbsd32_from_rusage(rup, &ru);
2844 1.6 eeh return (copyout(&ru, (caddr_t)(u_long)SCARG(uap, rusage), sizeof(ru)));
2845 1.1 mrg }
2846 1.1 mrg
2847 1.1 mrg int
2848 1.19 eeh netbsd32_getsockopt(p, v, retval)
2849 1.1 mrg struct proc *p;
2850 1.1 mrg void *v;
2851 1.1 mrg register_t *retval;
2852 1.1 mrg {
2853 1.19 eeh struct netbsd32_getsockopt_args /* {
2854 1.1 mrg syscallarg(int) s;
2855 1.1 mrg syscallarg(int) level;
2856 1.1 mrg syscallarg(int) name;
2857 1.10 mrg syscallarg(netbsd32_voidp) val;
2858 1.10 mrg syscallarg(netbsd32_intp) avalsize;
2859 1.1 mrg } */ *uap = v;
2860 1.1 mrg struct sys_getsockopt_args ua;
2861 1.1 mrg
2862 1.11 mrg NETBSD32TO64_UAP(s);
2863 1.11 mrg NETBSD32TO64_UAP(level);
2864 1.11 mrg NETBSD32TO64_UAP(name);
2865 1.11 mrg NETBSD32TOP_UAP(val, void);
2866 1.11 mrg NETBSD32TOP_UAP(avalsize, int);
2867 1.1 mrg return (sys_getsockopt(p, &ua, retval));
2868 1.1 mrg }
2869 1.1 mrg
2870 1.1 mrg int
2871 1.19 eeh netbsd32_readv(p, v, retval)
2872 1.1 mrg struct proc *p;
2873 1.1 mrg void *v;
2874 1.1 mrg register_t *retval;
2875 1.1 mrg {
2876 1.19 eeh struct netbsd32_readv_args /* {
2877 1.1 mrg syscallarg(int) fd;
2878 1.10 mrg syscallarg(const netbsd32_iovecp_t) iovp;
2879 1.1 mrg syscallarg(int) iovcnt;
2880 1.1 mrg } */ *uap = v;
2881 1.6 eeh int fd = SCARG(uap, fd);
2882 1.6 eeh register struct file *fp;
2883 1.6 eeh register struct filedesc *fdp = p->p_fd;
2884 1.6 eeh
2885 1.6 eeh if ((u_int)fd >= fdp->fd_nfiles ||
2886 1.6 eeh (fp = fdp->fd_ofiles[fd]) == NULL ||
2887 1.6 eeh (fp->f_flag & FREAD) == 0)
2888 1.6 eeh return (EBADF);
2889 1.6 eeh
2890 1.10 mrg return (dofilereadv32(p, fd, fp, (struct netbsd32_iovec *)(u_long)SCARG(uap, iovp),
2891 1.6 eeh SCARG(uap, iovcnt), &fp->f_offset, FOF_UPDATE_OFFSET, retval));
2892 1.6 eeh }
2893 1.6 eeh
2894 1.6 eeh /* Damn thing copies in the iovec! */
2895 1.6 eeh int
2896 1.6 eeh dofilereadv32(p, fd, fp, iovp, iovcnt, offset, flags, retval)
2897 1.6 eeh struct proc *p;
2898 1.6 eeh int fd;
2899 1.6 eeh struct file *fp;
2900 1.10 mrg struct netbsd32_iovec *iovp;
2901 1.6 eeh int iovcnt;
2902 1.6 eeh off_t *offset;
2903 1.6 eeh int flags;
2904 1.6 eeh register_t *retval;
2905 1.6 eeh {
2906 1.6 eeh struct uio auio;
2907 1.6 eeh register struct iovec *iov;
2908 1.6 eeh struct iovec *needfree;
2909 1.6 eeh struct iovec aiov[UIO_SMALLIOV];
2910 1.6 eeh long i, cnt, error = 0;
2911 1.6 eeh u_int iovlen;
2912 1.6 eeh #ifdef KTRACE
2913 1.6 eeh struct iovec *ktriov = NULL;
2914 1.6 eeh #endif
2915 1.1 mrg
2916 1.6 eeh /* note: can't use iovlen until iovcnt is validated */
2917 1.6 eeh iovlen = iovcnt * sizeof(struct iovec);
2918 1.6 eeh if ((u_int)iovcnt > UIO_SMALLIOV) {
2919 1.6 eeh if ((u_int)iovcnt > IOV_MAX)
2920 1.6 eeh return (EINVAL);
2921 1.6 eeh MALLOC(iov, struct iovec *, iovlen, M_IOV, M_WAITOK);
2922 1.6 eeh needfree = iov;
2923 1.6 eeh } else if ((u_int)iovcnt > 0) {
2924 1.6 eeh iov = aiov;
2925 1.6 eeh needfree = NULL;
2926 1.6 eeh } else
2927 1.6 eeh return (EINVAL);
2928 1.1 mrg
2929 1.6 eeh auio.uio_iov = iov;
2930 1.6 eeh auio.uio_iovcnt = iovcnt;
2931 1.6 eeh auio.uio_rw = UIO_READ;
2932 1.6 eeh auio.uio_segflg = UIO_USERSPACE;
2933 1.6 eeh auio.uio_procp = p;
2934 1.10 mrg error = netbsd32_to_iovecin(iovp, iov, iovcnt);
2935 1.6 eeh if (error)
2936 1.6 eeh goto done;
2937 1.6 eeh auio.uio_resid = 0;
2938 1.6 eeh for (i = 0; i < iovcnt; i++) {
2939 1.6 eeh auio.uio_resid += iov->iov_len;
2940 1.6 eeh /*
2941 1.6 eeh * Reads return ssize_t because -1 is returned on error.
2942 1.6 eeh * Therefore we must restrict the length to SSIZE_MAX to
2943 1.6 eeh * avoid garbage return values.
2944 1.6 eeh */
2945 1.6 eeh if (iov->iov_len > SSIZE_MAX || auio.uio_resid > SSIZE_MAX) {
2946 1.6 eeh error = EINVAL;
2947 1.6 eeh goto done;
2948 1.6 eeh }
2949 1.6 eeh iov++;
2950 1.6 eeh }
2951 1.6 eeh #ifdef KTRACE
2952 1.6 eeh /*
2953 1.6 eeh * if tracing, save a copy of iovec
2954 1.6 eeh */
2955 1.6 eeh if (KTRPOINT(p, KTR_GENIO)) {
2956 1.6 eeh MALLOC(ktriov, struct iovec *, iovlen, M_TEMP, M_WAITOK);
2957 1.6 eeh memcpy((caddr_t)ktriov, (caddr_t)auio.uio_iov, iovlen);
2958 1.6 eeh }
2959 1.6 eeh #endif
2960 1.6 eeh cnt = auio.uio_resid;
2961 1.6 eeh error = (*fp->f_ops->fo_read)(fp, offset, &auio, fp->f_cred, flags);
2962 1.6 eeh if (error)
2963 1.6 eeh if (auio.uio_resid != cnt && (error == ERESTART ||
2964 1.6 eeh error == EINTR || error == EWOULDBLOCK))
2965 1.6 eeh error = 0;
2966 1.6 eeh cnt -= auio.uio_resid;
2967 1.6 eeh #ifdef KTRACE
2968 1.6 eeh if (KTRPOINT(p, KTR_GENIO))
2969 1.6 eeh if (error == 0) {
2970 1.6 eeh ktrgenio(p->p_tracep, fd, UIO_READ, ktriov, cnt,
2971 1.6 eeh error);
2972 1.6 eeh FREE(ktriov, M_TEMP);
2973 1.6 eeh }
2974 1.6 eeh #endif
2975 1.6 eeh *retval = cnt;
2976 1.6 eeh done:
2977 1.6 eeh if (needfree)
2978 1.6 eeh FREE(needfree, M_IOV);
2979 1.1 mrg return (error);
2980 1.1 mrg }
2981 1.1 mrg
2982 1.6 eeh
2983 1.1 mrg int
2984 1.19 eeh netbsd32_writev(p, v, retval)
2985 1.1 mrg struct proc *p;
2986 1.1 mrg void *v;
2987 1.1 mrg register_t *retval;
2988 1.1 mrg {
2989 1.19 eeh struct netbsd32_writev_args /* {
2990 1.1 mrg syscallarg(int) fd;
2991 1.10 mrg syscallarg(const netbsd32_iovecp_t) iovp;
2992 1.1 mrg syscallarg(int) iovcnt;
2993 1.1 mrg } */ *uap = v;
2994 1.6 eeh int fd = SCARG(uap, fd);
2995 1.6 eeh register struct file *fp;
2996 1.6 eeh register struct filedesc *fdp = p->p_fd;
2997 1.6 eeh
2998 1.6 eeh if ((u_int)fd >= fdp->fd_nfiles ||
2999 1.6 eeh (fp = fdp->fd_ofiles[fd]) == NULL ||
3000 1.6 eeh (fp->f_flag & FWRITE) == 0)
3001 1.6 eeh return (EBADF);
3002 1.6 eeh
3003 1.10 mrg return (dofilewritev32(p, fd, fp, (struct netbsd32_iovec *)(u_long)SCARG(uap, iovp),
3004 1.6 eeh SCARG(uap, iovcnt), &fp->f_offset, FOF_UPDATE_OFFSET, retval));
3005 1.6 eeh }
3006 1.6 eeh
3007 1.6 eeh int
3008 1.6 eeh dofilewritev32(p, fd, fp, iovp, iovcnt, offset, flags, retval)
3009 1.6 eeh struct proc *p;
3010 1.6 eeh int fd;
3011 1.6 eeh struct file *fp;
3012 1.10 mrg struct netbsd32_iovec *iovp;
3013 1.6 eeh int iovcnt;
3014 1.6 eeh off_t *offset;
3015 1.6 eeh int flags;
3016 1.6 eeh register_t *retval;
3017 1.6 eeh {
3018 1.6 eeh struct uio auio;
3019 1.6 eeh register struct iovec *iov;
3020 1.6 eeh struct iovec *needfree;
3021 1.6 eeh struct iovec aiov[UIO_SMALLIOV];
3022 1.6 eeh long i, cnt, error = 0;
3023 1.6 eeh u_int iovlen;
3024 1.6 eeh #ifdef KTRACE
3025 1.6 eeh struct iovec *ktriov = NULL;
3026 1.6 eeh #endif
3027 1.1 mrg
3028 1.6 eeh /* note: can't use iovlen until iovcnt is validated */
3029 1.6 eeh iovlen = iovcnt * sizeof(struct iovec);
3030 1.6 eeh if ((u_int)iovcnt > UIO_SMALLIOV) {
3031 1.6 eeh if ((u_int)iovcnt > IOV_MAX)
3032 1.6 eeh return (EINVAL);
3033 1.6 eeh MALLOC(iov, struct iovec *, iovlen, M_IOV, M_WAITOK);
3034 1.6 eeh needfree = iov;
3035 1.6 eeh } else if ((u_int)iovcnt > 0) {
3036 1.6 eeh iov = aiov;
3037 1.6 eeh needfree = NULL;
3038 1.6 eeh } else
3039 1.6 eeh return (EINVAL);
3040 1.1 mrg
3041 1.6 eeh auio.uio_iov = iov;
3042 1.6 eeh auio.uio_iovcnt = iovcnt;
3043 1.6 eeh auio.uio_rw = UIO_WRITE;
3044 1.6 eeh auio.uio_segflg = UIO_USERSPACE;
3045 1.6 eeh auio.uio_procp = p;
3046 1.10 mrg error = netbsd32_to_iovecin(iovp, iov, iovcnt);
3047 1.6 eeh if (error)
3048 1.6 eeh goto done;
3049 1.6 eeh auio.uio_resid = 0;
3050 1.6 eeh for (i = 0; i < iovcnt; i++) {
3051 1.6 eeh auio.uio_resid += iov->iov_len;
3052 1.6 eeh /*
3053 1.6 eeh * Writes return ssize_t because -1 is returned on error.
3054 1.6 eeh * Therefore we must restrict the length to SSIZE_MAX to
3055 1.6 eeh * avoid garbage return values.
3056 1.6 eeh */
3057 1.6 eeh if (iov->iov_len > SSIZE_MAX || auio.uio_resid > SSIZE_MAX) {
3058 1.6 eeh error = EINVAL;
3059 1.6 eeh goto done;
3060 1.6 eeh }
3061 1.6 eeh iov++;
3062 1.6 eeh }
3063 1.6 eeh #ifdef KTRACE
3064 1.6 eeh /*
3065 1.6 eeh * if tracing, save a copy of iovec
3066 1.6 eeh */
3067 1.6 eeh if (KTRPOINT(p, KTR_GENIO)) {
3068 1.6 eeh MALLOC(ktriov, struct iovec *, iovlen, M_TEMP, M_WAITOK);
3069 1.6 eeh memcpy((caddr_t)ktriov, (caddr_t)auio.uio_iov, iovlen);
3070 1.6 eeh }
3071 1.6 eeh #endif
3072 1.6 eeh cnt = auio.uio_resid;
3073 1.6 eeh error = (*fp->f_ops->fo_write)(fp, offset, &auio, fp->f_cred, flags);
3074 1.6 eeh if (error) {
3075 1.6 eeh if (auio.uio_resid != cnt && (error == ERESTART ||
3076 1.6 eeh error == EINTR || error == EWOULDBLOCK))
3077 1.6 eeh error = 0;
3078 1.6 eeh if (error == EPIPE)
3079 1.6 eeh psignal(p, SIGPIPE);
3080 1.6 eeh }
3081 1.6 eeh cnt -= auio.uio_resid;
3082 1.6 eeh #ifdef KTRACE
3083 1.6 eeh if (KTRPOINT(p, KTR_GENIO))
3084 1.6 eeh if (error == 0) {
3085 1.6 eeh ktrgenio(p->p_tracep, fd, UIO_WRITE, ktriov, cnt,
3086 1.6 eeh error);
3087 1.6 eeh FREE(ktriov, M_TEMP);
3088 1.6 eeh }
3089 1.6 eeh #endif
3090 1.6 eeh *retval = cnt;
3091 1.6 eeh done:
3092 1.6 eeh if (needfree)
3093 1.6 eeh FREE(needfree, M_IOV);
3094 1.1 mrg return (error);
3095 1.1 mrg }
3096 1.1 mrg
3097 1.6 eeh
3098 1.1 mrg int
3099 1.19 eeh netbsd32_rename(p, v, retval)
3100 1.1 mrg struct proc *p;
3101 1.1 mrg void *v;
3102 1.1 mrg register_t *retval;
3103 1.1 mrg {
3104 1.19 eeh struct netbsd32_rename_args /* {
3105 1.10 mrg syscallarg(const netbsd32_charp) from;
3106 1.10 mrg syscallarg(const netbsd32_charp) to;
3107 1.1 mrg } */ *uap = v;
3108 1.1 mrg struct sys_rename_args ua;
3109 1.1 mrg
3110 1.20 eeh NETBSD32TOP_UAP(from, const char);
3111 1.20 eeh NETBSD32TOP_UAP(to, const char)
3112 1.6 eeh
3113 1.1 mrg return (sys_rename(p, &ua, retval));
3114 1.1 mrg }
3115 1.1 mrg
3116 1.1 mrg int
3117 1.19 eeh netbsd32_flock(p, v, retval)
3118 1.6 eeh struct proc *p;
3119 1.6 eeh void *v;
3120 1.6 eeh register_t *retval;
3121 1.6 eeh {
3122 1.19 eeh struct netbsd32_flock_args /* {
3123 1.6 eeh syscallarg(int) fd;
3124 1.6 eeh syscallarg(int) how;
3125 1.6 eeh } */ *uap = v;
3126 1.6 eeh struct sys_flock_args ua;
3127 1.6 eeh
3128 1.11 mrg NETBSD32TO64_UAP(fd);
3129 1.11 mrg NETBSD32TO64_UAP(how)
3130 1.6 eeh
3131 1.6 eeh return (sys_flock(p, &ua, retval));
3132 1.6 eeh }
3133 1.6 eeh
3134 1.6 eeh int
3135 1.19 eeh netbsd32_mkfifo(p, v, retval)
3136 1.1 mrg struct proc *p;
3137 1.1 mrg void *v;
3138 1.1 mrg register_t *retval;
3139 1.1 mrg {
3140 1.19 eeh struct netbsd32_mkfifo_args /* {
3141 1.10 mrg syscallarg(const netbsd32_charp) path;
3142 1.1 mrg syscallarg(mode_t) mode;
3143 1.1 mrg } */ *uap = v;
3144 1.1 mrg struct sys_mkfifo_args ua;
3145 1.1 mrg
3146 1.11 mrg NETBSD32TOP_UAP(path, const char)
3147 1.11 mrg NETBSD32TO64_UAP(mode);
3148 1.1 mrg return (sys_mkfifo(p, &ua, retval));
3149 1.1 mrg }
3150 1.1 mrg
3151 1.1 mrg int
3152 1.19 eeh netbsd32_shutdown(p, v, retval)
3153 1.6 eeh struct proc *p;
3154 1.6 eeh void *v;
3155 1.6 eeh register_t *retval;
3156 1.6 eeh {
3157 1.19 eeh struct netbsd32_shutdown_args /* {
3158 1.6 eeh syscallarg(int) s;
3159 1.6 eeh syscallarg(int) how;
3160 1.6 eeh } */ *uap = v;
3161 1.6 eeh struct sys_shutdown_args ua;
3162 1.6 eeh
3163 1.11 mrg NETBSD32TO64_UAP(s)
3164 1.11 mrg NETBSD32TO64_UAP(how);
3165 1.6 eeh return (sys_shutdown(p, &ua, retval));
3166 1.6 eeh }
3167 1.6 eeh
3168 1.6 eeh int
3169 1.19 eeh netbsd32_socketpair(p, v, retval)
3170 1.6 eeh struct proc *p;
3171 1.6 eeh void *v;
3172 1.6 eeh register_t *retval;
3173 1.6 eeh {
3174 1.19 eeh struct netbsd32_socketpair_args /* {
3175 1.6 eeh syscallarg(int) domain;
3176 1.6 eeh syscallarg(int) type;
3177 1.6 eeh syscallarg(int) protocol;
3178 1.10 mrg syscallarg(netbsd32_intp) rsv;
3179 1.6 eeh } */ *uap = v;
3180 1.6 eeh struct sys_socketpair_args ua;
3181 1.6 eeh
3182 1.11 mrg NETBSD32TO64_UAP(domain);
3183 1.11 mrg NETBSD32TO64_UAP(type);
3184 1.11 mrg NETBSD32TO64_UAP(protocol);
3185 1.11 mrg NETBSD32TOP_UAP(rsv, int);
3186 1.6 eeh /* Since we're just copying out two `int's we can do this */
3187 1.6 eeh return (sys_socketpair(p, &ua, retval));
3188 1.6 eeh }
3189 1.6 eeh
3190 1.6 eeh int
3191 1.19 eeh netbsd32_mkdir(p, v, retval)
3192 1.1 mrg struct proc *p;
3193 1.1 mrg void *v;
3194 1.1 mrg register_t *retval;
3195 1.1 mrg {
3196 1.19 eeh struct netbsd32_mkdir_args /* {
3197 1.10 mrg syscallarg(const netbsd32_charp) path;
3198 1.1 mrg syscallarg(mode_t) mode;
3199 1.1 mrg } */ *uap = v;
3200 1.1 mrg struct sys_mkdir_args ua;
3201 1.1 mrg
3202 1.11 mrg NETBSD32TOP_UAP(path, const char)
3203 1.11 mrg NETBSD32TO64_UAP(mode);
3204 1.1 mrg return (sys_mkdir(p, &ua, retval));
3205 1.1 mrg }
3206 1.1 mrg
3207 1.1 mrg int
3208 1.19 eeh netbsd32_rmdir(p, v, retval)
3209 1.1 mrg struct proc *p;
3210 1.1 mrg void *v;
3211 1.1 mrg register_t *retval;
3212 1.1 mrg {
3213 1.19 eeh struct netbsd32_rmdir_args /* {
3214 1.10 mrg syscallarg(const netbsd32_charp) path;
3215 1.1 mrg } */ *uap = v;
3216 1.1 mrg struct sys_rmdir_args ua;
3217 1.1 mrg
3218 1.11 mrg NETBSD32TOP_UAP(path, const char);
3219 1.1 mrg return (sys_rmdir(p, &ua, retval));
3220 1.1 mrg }
3221 1.1 mrg
3222 1.1 mrg int
3223 1.19 eeh netbsd32_utimes(p, v, retval)
3224 1.1 mrg struct proc *p;
3225 1.1 mrg void *v;
3226 1.1 mrg register_t *retval;
3227 1.1 mrg {
3228 1.19 eeh struct netbsd32_utimes_args /* {
3229 1.10 mrg syscallarg(const netbsd32_charp) path;
3230 1.10 mrg syscallarg(const netbsd32_timevalp_t) tptr;
3231 1.1 mrg } */ *uap = v;
3232 1.6 eeh int error;
3233 1.6 eeh struct nameidata nd;
3234 1.6 eeh
3235 1.6 eeh NDINIT(&nd, LOOKUP, FOLLOW, UIO_USERSPACE, (char *)(u_long)SCARG(uap, path), p);
3236 1.6 eeh if ((error = namei(&nd)) != 0)
3237 1.6 eeh return (error);
3238 1.1 mrg
3239 1.6 eeh error = change_utimes32(nd.ni_vp, (struct timeval *)(u_long)SCARG(uap, tptr), p);
3240 1.1 mrg
3241 1.6 eeh vrele(nd.ni_vp);
3242 1.6 eeh return (error);
3243 1.6 eeh }
3244 1.6 eeh
3245 1.6 eeh /*
3246 1.6 eeh * Common routine to set access and modification times given a vnode.
3247 1.6 eeh */
3248 1.6 eeh static int
3249 1.6 eeh change_utimes32(vp, tptr, p)
3250 1.6 eeh struct vnode *vp;
3251 1.6 eeh struct timeval *tptr;
3252 1.6 eeh struct proc *p;
3253 1.6 eeh {
3254 1.10 mrg struct netbsd32_timeval tv32[2];
3255 1.6 eeh struct timeval tv[2];
3256 1.6 eeh struct vattr vattr;
3257 1.6 eeh int error;
3258 1.6 eeh
3259 1.6 eeh VATTR_NULL(&vattr);
3260 1.6 eeh if (tptr == NULL) {
3261 1.6 eeh microtime(&tv[0]);
3262 1.6 eeh tv[1] = tv[0];
3263 1.6 eeh vattr.va_vaflags |= VA_UTIMES_NULL;
3264 1.6 eeh } else {
3265 1.6 eeh error = copyin(tptr, tv, sizeof(tv));
3266 1.6 eeh if (error)
3267 1.6 eeh return (error);
3268 1.6 eeh }
3269 1.10 mrg netbsd32_to_timeval(&tv32[0], &tv[0]);
3270 1.10 mrg netbsd32_to_timeval(&tv32[1], &tv[1]);
3271 1.6 eeh VOP_LEASE(vp, p, p->p_ucred, LEASE_WRITE);
3272 1.6 eeh vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
3273 1.6 eeh vattr.va_atime.tv_sec = tv[0].tv_sec;
3274 1.6 eeh vattr.va_atime.tv_nsec = tv[0].tv_usec * 1000;
3275 1.6 eeh vattr.va_mtime.tv_sec = tv[1].tv_sec;
3276 1.6 eeh vattr.va_mtime.tv_nsec = tv[1].tv_usec * 1000;
3277 1.6 eeh error = VOP_SETATTR(vp, &vattr, p->p_ucred, p);
3278 1.6 eeh VOP_UNLOCK(vp, 0);
3279 1.6 eeh return (error);
3280 1.1 mrg }
3281 1.1 mrg
3282 1.1 mrg int
3283 1.19 eeh netbsd32_adjtime(p, v, retval)
3284 1.1 mrg struct proc *p;
3285 1.1 mrg void *v;
3286 1.1 mrg register_t *retval;
3287 1.1 mrg {
3288 1.19 eeh struct netbsd32_adjtime_args /* {
3289 1.10 mrg syscallarg(const netbsd32_timevalp_t) delta;
3290 1.10 mrg syscallarg(netbsd32_timevalp_t) olddelta;
3291 1.1 mrg } */ *uap = v;
3292 1.10 mrg struct netbsd32_timeval atv;
3293 1.6 eeh int32_t ndelta, ntickdelta, odelta;
3294 1.6 eeh int s, error;
3295 1.6 eeh extern long bigadj, timedelta;
3296 1.6 eeh extern int tickdelta;
3297 1.1 mrg
3298 1.6 eeh if ((error = suser(p->p_ucred, &p->p_acflag)) != 0)
3299 1.6 eeh return (error);
3300 1.1 mrg
3301 1.6 eeh error = copyin((caddr_t)(u_long)SCARG(uap, delta), &atv, sizeof(struct timeval));
3302 1.1 mrg if (error)
3303 1.1 mrg return (error);
3304 1.6 eeh /*
3305 1.6 eeh * Compute the total correction and the rate at which to apply it.
3306 1.6 eeh * Round the adjustment down to a whole multiple of the per-tick
3307 1.6 eeh * delta, so that after some number of incremental changes in
3308 1.6 eeh * hardclock(), tickdelta will become zero, lest the correction
3309 1.6 eeh * overshoot and start taking us away from the desired final time.
3310 1.6 eeh */
3311 1.6 eeh ndelta = atv.tv_sec * 1000000 + atv.tv_usec;
3312 1.6 eeh if (ndelta > bigadj)
3313 1.6 eeh ntickdelta = 10 * tickadj;
3314 1.6 eeh else
3315 1.6 eeh ntickdelta = tickadj;
3316 1.6 eeh if (ndelta % ntickdelta)
3317 1.6 eeh ndelta = ndelta / ntickdelta * ntickdelta;
3318 1.1 mrg
3319 1.6 eeh /*
3320 1.6 eeh * To make hardclock()'s job easier, make the per-tick delta negative
3321 1.6 eeh * if we want time to run slower; then hardclock can simply compute
3322 1.6 eeh * tick + tickdelta, and subtract tickdelta from timedelta.
3323 1.6 eeh */
3324 1.6 eeh if (ndelta < 0)
3325 1.6 eeh ntickdelta = -ntickdelta;
3326 1.6 eeh s = splclock();
3327 1.6 eeh odelta = timedelta;
3328 1.6 eeh timedelta = ndelta;
3329 1.6 eeh tickdelta = ntickdelta;
3330 1.6 eeh splx(s);
3331 1.6 eeh
3332 1.6 eeh if (SCARG(uap, olddelta)) {
3333 1.6 eeh atv.tv_sec = odelta / 1000000;
3334 1.6 eeh atv.tv_usec = odelta % 1000000;
3335 1.6 eeh (void) copyout(&atv, (caddr_t)(u_long)SCARG(uap, olddelta),
3336 1.6 eeh sizeof(struct timeval));
3337 1.6 eeh }
3338 1.1 mrg return (0);
3339 1.1 mrg }
3340 1.1 mrg
3341 1.1 mrg int
3342 1.19 eeh netbsd32_quotactl(p, v, retval)
3343 1.1 mrg struct proc *p;
3344 1.1 mrg void *v;
3345 1.1 mrg register_t *retval;
3346 1.1 mrg {
3347 1.19 eeh struct netbsd32_quotactl_args /* {
3348 1.10 mrg syscallarg(const netbsd32_charp) path;
3349 1.1 mrg syscallarg(int) cmd;
3350 1.1 mrg syscallarg(int) uid;
3351 1.10 mrg syscallarg(netbsd32_caddr_t) arg;
3352 1.1 mrg } */ *uap = v;
3353 1.1 mrg struct sys_quotactl_args ua;
3354 1.1 mrg
3355 1.11 mrg NETBSD32TOP_UAP(path, const char);
3356 1.11 mrg NETBSD32TO64_UAP(cmd);
3357 1.11 mrg NETBSD32TO64_UAP(uid);
3358 1.11 mrg NETBSD32TOX64_UAP(arg, caddr_t);
3359 1.1 mrg return (sys_quotactl(p, &ua, retval));
3360 1.1 mrg }
3361 1.1 mrg
3362 1.6 eeh #if defined(NFS) || defined(NFSSERVER)
3363 1.1 mrg int
3364 1.19 eeh netbsd32_nfssvc(p, v, retval)
3365 1.1 mrg struct proc *p;
3366 1.1 mrg void *v;
3367 1.1 mrg register_t *retval;
3368 1.1 mrg {
3369 1.6 eeh #if 0
3370 1.19 eeh struct netbsd32_nfssvc_args /* {
3371 1.1 mrg syscallarg(int) flag;
3372 1.10 mrg syscallarg(netbsd32_voidp) argp;
3373 1.1 mrg } */ *uap = v;
3374 1.1 mrg struct sys_nfssvc_args ua;
3375 1.1 mrg
3376 1.11 mrg NETBSD32TO64_UAP(flag);
3377 1.11 mrg NETBSD32TOP_UAP(argp, void);
3378 1.1 mrg return (sys_nfssvc(p, &ua, retval));
3379 1.6 eeh #else
3380 1.6 eeh /* Why would we want to support a 32-bit nfsd? */
3381 1.6 eeh return (ENOSYS);
3382 1.6 eeh #endif
3383 1.1 mrg }
3384 1.6 eeh #endif
3385 1.1 mrg
3386 1.1 mrg int
3387 1.19 eeh netbsd32_statfs(p, v, retval)
3388 1.1 mrg struct proc *p;
3389 1.1 mrg void *v;
3390 1.1 mrg register_t *retval;
3391 1.1 mrg {
3392 1.19 eeh struct netbsd32_statfs_args /* {
3393 1.10 mrg syscallarg(const netbsd32_charp) path;
3394 1.10 mrg syscallarg(netbsd32_statfsp_t) buf;
3395 1.1 mrg } */ *uap = v;
3396 1.6 eeh register struct mount *mp;
3397 1.6 eeh register struct statfs *sp;
3398 1.10 mrg struct netbsd32_statfs s32;
3399 1.1 mrg int error;
3400 1.6 eeh struct nameidata nd;
3401 1.1 mrg
3402 1.6 eeh NDINIT(&nd, LOOKUP, FOLLOW, UIO_USERSPACE, (char *)(u_long)SCARG(uap, path), p);
3403 1.6 eeh if ((error = namei(&nd)) != 0)
3404 1.6 eeh return (error);
3405 1.6 eeh mp = nd.ni_vp->v_mount;
3406 1.6 eeh sp = &mp->mnt_stat;
3407 1.6 eeh vrele(nd.ni_vp);
3408 1.6 eeh if ((error = VFS_STATFS(mp, sp, p)) != 0)
3409 1.1 mrg return (error);
3410 1.6 eeh sp->f_flags = mp->mnt_flag & MNT_VISFLAGMASK;
3411 1.10 mrg netbsd32_from_statfs(sp, &s32);
3412 1.6 eeh return (copyout(&s32, (caddr_t)(u_long)SCARG(uap, buf), sizeof(s32)));
3413 1.1 mrg }
3414 1.1 mrg
3415 1.1 mrg int
3416 1.19 eeh netbsd32_fstatfs(p, v, retval)
3417 1.1 mrg struct proc *p;
3418 1.1 mrg void *v;
3419 1.1 mrg register_t *retval;
3420 1.1 mrg {
3421 1.19 eeh struct netbsd32_fstatfs_args /* {
3422 1.1 mrg syscallarg(int) fd;
3423 1.10 mrg syscallarg(netbsd32_statfsp_t) buf;
3424 1.1 mrg } */ *uap = v;
3425 1.6 eeh struct file *fp;
3426 1.6 eeh register struct mount *mp;
3427 1.6 eeh register struct statfs *sp;
3428 1.10 mrg struct netbsd32_statfs s32;
3429 1.1 mrg int error;
3430 1.1 mrg
3431 1.12 thorpej /* getvnode() will use the descriptor for us */
3432 1.6 eeh if ((error = getvnode(p->p_fd, SCARG(uap, fd), &fp)) != 0)
3433 1.6 eeh return (error);
3434 1.6 eeh mp = ((struct vnode *)fp->f_data)->v_mount;
3435 1.6 eeh sp = &mp->mnt_stat;
3436 1.6 eeh if ((error = VFS_STATFS(mp, sp, p)) != 0)
3437 1.12 thorpej goto out;
3438 1.6 eeh sp->f_flags = mp->mnt_flag & MNT_VISFLAGMASK;
3439 1.10 mrg netbsd32_from_statfs(sp, &s32);
3440 1.12 thorpej error = copyout(&s32, (caddr_t)(u_long)SCARG(uap, buf), sizeof(s32));
3441 1.12 thorpej out:
3442 1.19 eeh FILE_UNUSE(fp, p);
3443 1.12 thorpej return (error);
3444 1.1 mrg }
3445 1.1 mrg
3446 1.6 eeh #if defined(NFS) || defined(NFSSERVER)
3447 1.1 mrg int
3448 1.19 eeh netbsd32_getfh(p, v, retval)
3449 1.1 mrg struct proc *p;
3450 1.1 mrg void *v;
3451 1.1 mrg register_t *retval;
3452 1.1 mrg {
3453 1.19 eeh struct netbsd32_getfh_args /* {
3454 1.10 mrg syscallarg(const netbsd32_charp) fname;
3455 1.10 mrg syscallarg(netbsd32_fhandlep_t) fhp;
3456 1.1 mrg } */ *uap = v;
3457 1.1 mrg struct sys_getfh_args ua;
3458 1.1 mrg
3459 1.11 mrg NETBSD32TOP_UAP(fname, const char);
3460 1.11 mrg NETBSD32TOP_UAP(fhp, struct fhandle);
3461 1.6 eeh /* Lucky for us a fhandlep_t doesn't change sizes */
3462 1.1 mrg return (sys_getfh(p, &ua, retval));
3463 1.1 mrg }
3464 1.6 eeh #endif
3465 1.1 mrg
3466 1.1 mrg int
3467 1.19 eeh netbsd32_sysarch(p, v, retval)
3468 1.1 mrg struct proc *p;
3469 1.1 mrg void *v;
3470 1.1 mrg register_t *retval;
3471 1.1 mrg {
3472 1.19 eeh struct netbsd32_sysarch_args /* {
3473 1.1 mrg syscallarg(int) op;
3474 1.10 mrg syscallarg(netbsd32_voidp) parms;
3475 1.1 mrg } */ *uap = v;
3476 1.1 mrg
3477 1.6 eeh switch (SCARG(uap, op)) {
3478 1.6 eeh default:
3479 1.19 eeh printf("(sparc64) netbsd32_sysarch(%d)\n", SCARG(uap, op));
3480 1.6 eeh return EINVAL;
3481 1.6 eeh }
3482 1.1 mrg }
3483 1.1 mrg
3484 1.1 mrg int
3485 1.19 eeh netbsd32_pread(p, v, retval)
3486 1.1 mrg struct proc *p;
3487 1.1 mrg void *v;
3488 1.1 mrg register_t *retval;
3489 1.1 mrg {
3490 1.19 eeh struct netbsd32_pread_args /* {
3491 1.1 mrg syscallarg(int) fd;
3492 1.10 mrg syscallarg(netbsd32_voidp) buf;
3493 1.10 mrg syscallarg(netbsd32_size_t) nbyte;
3494 1.1 mrg syscallarg(int) pad;
3495 1.1 mrg syscallarg(off_t) offset;
3496 1.1 mrg } */ *uap = v;
3497 1.1 mrg struct sys_pread_args ua;
3498 1.1 mrg ssize_t rt;
3499 1.1 mrg int error;
3500 1.1 mrg
3501 1.11 mrg NETBSD32TO64_UAP(fd);
3502 1.11 mrg NETBSD32TOP_UAP(buf, void);
3503 1.11 mrg NETBSD32TOX_UAP(nbyte, size_t);
3504 1.11 mrg NETBSD32TO64_UAP(pad);
3505 1.11 mrg NETBSD32TO64_UAP(offset);
3506 1.1 mrg error = sys_pread(p, &ua, (register_t *)&rt);
3507 1.10 mrg *(netbsd32_ssize_t *)retval = rt;
3508 1.1 mrg return (error);
3509 1.1 mrg }
3510 1.1 mrg
3511 1.1 mrg int
3512 1.19 eeh netbsd32_pwrite(p, v, retval)
3513 1.1 mrg struct proc *p;
3514 1.1 mrg void *v;
3515 1.1 mrg register_t *retval;
3516 1.1 mrg {
3517 1.19 eeh struct netbsd32_pwrite_args /* {
3518 1.1 mrg syscallarg(int) fd;
3519 1.10 mrg syscallarg(const netbsd32_voidp) buf;
3520 1.10 mrg syscallarg(netbsd32_size_t) nbyte;
3521 1.1 mrg syscallarg(int) pad;
3522 1.1 mrg syscallarg(off_t) offset;
3523 1.1 mrg } */ *uap = v;
3524 1.1 mrg struct sys_pwrite_args ua;
3525 1.1 mrg ssize_t rt;
3526 1.1 mrg int error;
3527 1.1 mrg
3528 1.11 mrg NETBSD32TO64_UAP(fd);
3529 1.11 mrg NETBSD32TOP_UAP(buf, void);
3530 1.11 mrg NETBSD32TOX_UAP(nbyte, size_t);
3531 1.11 mrg NETBSD32TO64_UAP(pad);
3532 1.11 mrg NETBSD32TO64_UAP(offset);
3533 1.1 mrg error = sys_pwrite(p, &ua, (register_t *)&rt);
3534 1.10 mrg *(netbsd32_ssize_t *)retval = rt;
3535 1.1 mrg return (error);
3536 1.1 mrg }
3537 1.1 mrg
3538 1.6 eeh #ifdef NTP
3539 1.1 mrg int
3540 1.19 eeh netbsd32_ntp_gettime(p, v, retval)
3541 1.1 mrg struct proc *p;
3542 1.1 mrg void *v;
3543 1.1 mrg register_t *retval;
3544 1.1 mrg {
3545 1.19 eeh struct netbsd32_ntp_gettime_args /* {
3546 1.10 mrg syscallarg(netbsd32_ntptimevalp_t) ntvp;
3547 1.1 mrg } */ *uap = v;
3548 1.10 mrg struct netbsd32_ntptimeval ntv32;
3549 1.6 eeh struct timeval atv;
3550 1.1 mrg struct ntptimeval ntv;
3551 1.6 eeh int error = 0;
3552 1.6 eeh int s;
3553 1.1 mrg
3554 1.6 eeh /* The following are NTP variables */
3555 1.6 eeh extern long time_maxerror;
3556 1.6 eeh extern long time_esterror;
3557 1.6 eeh extern int time_status;
3558 1.6 eeh extern int time_state; /* clock state */
3559 1.6 eeh extern int time_status; /* clock status bits */
3560 1.6 eeh
3561 1.6 eeh if (SCARG(uap, ntvp)) {
3562 1.6 eeh s = splclock();
3563 1.6 eeh #ifdef EXT_CLOCK
3564 1.6 eeh /*
3565 1.6 eeh * The microtime() external clock routine returns a
3566 1.6 eeh * status code. If less than zero, we declare an error
3567 1.6 eeh * in the clock status word and return the kernel
3568 1.6 eeh * (software) time variable. While there are other
3569 1.6 eeh * places that call microtime(), this is the only place
3570 1.6 eeh * that matters from an application point of view.
3571 1.6 eeh */
3572 1.6 eeh if (microtime(&atv) < 0) {
3573 1.6 eeh time_status |= STA_CLOCKERR;
3574 1.6 eeh ntv.time = time;
3575 1.6 eeh } else
3576 1.6 eeh time_status &= ~STA_CLOCKERR;
3577 1.6 eeh #else /* EXT_CLOCK */
3578 1.6 eeh microtime(&atv);
3579 1.6 eeh #endif /* EXT_CLOCK */
3580 1.6 eeh ntv.time = atv;
3581 1.6 eeh ntv.maxerror = time_maxerror;
3582 1.6 eeh ntv.esterror = time_esterror;
3583 1.6 eeh (void) splx(s);
3584 1.1 mrg
3585 1.10 mrg netbsd32_from_timeval(&ntv.time, &ntv32.time);
3586 1.10 mrg ntv32.maxerror = (netbsd32_long)ntv.maxerror;
3587 1.10 mrg ntv32.esterror = (netbsd32_long)ntv.esterror;
3588 1.6 eeh error = copyout((caddr_t)&ntv32, (caddr_t)(u_long)SCARG(uap, ntvp),
3589 1.6 eeh sizeof(ntv32));
3590 1.6 eeh }
3591 1.6 eeh if (!error) {
3592 1.6 eeh
3593 1.6 eeh /*
3594 1.6 eeh * Status word error decode. If any of these conditions
3595 1.6 eeh * occur, an error is returned, instead of the status
3596 1.6 eeh * word. Most applications will care only about the fact
3597 1.6 eeh * the system clock may not be trusted, not about the
3598 1.6 eeh * details.
3599 1.6 eeh *
3600 1.6 eeh * Hardware or software error
3601 1.6 eeh */
3602 1.6 eeh if ((time_status & (STA_UNSYNC | STA_CLOCKERR)) ||
3603 1.6 eeh
3604 1.6 eeh /*
3605 1.6 eeh * PPS signal lost when either time or frequency
3606 1.6 eeh * synchronization requested
3607 1.6 eeh */
3608 1.6 eeh (time_status & (STA_PPSFREQ | STA_PPSTIME) &&
3609 1.6 eeh !(time_status & STA_PPSSIGNAL)) ||
3610 1.6 eeh
3611 1.6 eeh /*
3612 1.6 eeh * PPS jitter exceeded when time synchronization
3613 1.6 eeh * requested
3614 1.6 eeh */
3615 1.6 eeh (time_status & STA_PPSTIME &&
3616 1.6 eeh time_status & STA_PPSJITTER) ||
3617 1.6 eeh
3618 1.6 eeh /*
3619 1.6 eeh * PPS wander exceeded or calibration error when
3620 1.6 eeh * frequency synchronization requested
3621 1.6 eeh */
3622 1.6 eeh (time_status & STA_PPSFREQ &&
3623 1.6 eeh time_status & (STA_PPSWANDER | STA_PPSERROR)))
3624 1.6 eeh *retval = TIME_ERROR;
3625 1.6 eeh else
3626 1.6 eeh *retval = (register_t)time_state;
3627 1.1 mrg }
3628 1.6 eeh return(error);
3629 1.1 mrg }
3630 1.1 mrg
3631 1.1 mrg int
3632 1.19 eeh netbsd32_ntp_adjtime(p, v, retval)
3633 1.1 mrg struct proc *p;
3634 1.1 mrg void *v;
3635 1.1 mrg register_t *retval;
3636 1.1 mrg {
3637 1.19 eeh struct netbsd32_ntp_adjtime_args /* {
3638 1.10 mrg syscallarg(netbsd32_timexp_t) tp;
3639 1.1 mrg } */ *uap = v;
3640 1.10 mrg struct netbsd32_timex ntv32;
3641 1.6 eeh struct timex ntv;
3642 1.6 eeh int error = 0;
3643 1.6 eeh int modes;
3644 1.6 eeh int s;
3645 1.6 eeh extern long time_freq; /* frequency offset (scaled ppm) */
3646 1.6 eeh extern long time_maxerror;
3647 1.6 eeh extern long time_esterror;
3648 1.6 eeh extern int time_state; /* clock state */
3649 1.6 eeh extern int time_status; /* clock status bits */
3650 1.6 eeh extern long time_constant; /* pll time constant */
3651 1.6 eeh extern long time_offset; /* time offset (us) */
3652 1.6 eeh extern long time_tolerance; /* frequency tolerance (scaled ppm) */
3653 1.6 eeh extern long time_precision; /* clock precision (us) */
3654 1.6 eeh
3655 1.6 eeh if ((error = copyin((caddr_t)(u_long)SCARG(uap, tp), (caddr_t)&ntv32,
3656 1.6 eeh sizeof(ntv32))))
3657 1.6 eeh return (error);
3658 1.10 mrg netbsd32_to_timex(&ntv32, &ntv);
3659 1.1 mrg
3660 1.6 eeh /*
3661 1.6 eeh * Update selected clock variables - only the superuser can
3662 1.6 eeh * change anything. Note that there is no error checking here on
3663 1.6 eeh * the assumption the superuser should know what it is doing.
3664 1.6 eeh */
3665 1.6 eeh modes = ntv.modes;
3666 1.6 eeh if (modes != 0 && (error = suser(p->p_ucred, &p->p_acflag)))
3667 1.1 mrg return (error);
3668 1.1 mrg
3669 1.6 eeh s = splclock();
3670 1.6 eeh if (modes & MOD_FREQUENCY)
3671 1.6 eeh #ifdef PPS_SYNC
3672 1.6 eeh time_freq = ntv.freq - pps_freq;
3673 1.6 eeh #else /* PPS_SYNC */
3674 1.6 eeh time_freq = ntv.freq;
3675 1.6 eeh #endif /* PPS_SYNC */
3676 1.6 eeh if (modes & MOD_MAXERROR)
3677 1.6 eeh time_maxerror = ntv.maxerror;
3678 1.6 eeh if (modes & MOD_ESTERROR)
3679 1.6 eeh time_esterror = ntv.esterror;
3680 1.6 eeh if (modes & MOD_STATUS) {
3681 1.6 eeh time_status &= STA_RONLY;
3682 1.6 eeh time_status |= ntv.status & ~STA_RONLY;
3683 1.6 eeh }
3684 1.6 eeh if (modes & MOD_TIMECONST)
3685 1.6 eeh time_constant = ntv.constant;
3686 1.6 eeh if (modes & MOD_OFFSET)
3687 1.6 eeh hardupdate(ntv.offset);
3688 1.6 eeh
3689 1.6 eeh /*
3690 1.6 eeh * Retrieve all clock variables
3691 1.6 eeh */
3692 1.6 eeh if (time_offset < 0)
3693 1.6 eeh ntv.offset = -(-time_offset >> SHIFT_UPDATE);
3694 1.6 eeh else
3695 1.6 eeh ntv.offset = time_offset >> SHIFT_UPDATE;
3696 1.6 eeh #ifdef PPS_SYNC
3697 1.6 eeh ntv.freq = time_freq + pps_freq;
3698 1.6 eeh #else /* PPS_SYNC */
3699 1.6 eeh ntv.freq = time_freq;
3700 1.6 eeh #endif /* PPS_SYNC */
3701 1.6 eeh ntv.maxerror = time_maxerror;
3702 1.6 eeh ntv.esterror = time_esterror;
3703 1.6 eeh ntv.status = time_status;
3704 1.6 eeh ntv.constant = time_constant;
3705 1.6 eeh ntv.precision = time_precision;
3706 1.6 eeh ntv.tolerance = time_tolerance;
3707 1.6 eeh #ifdef PPS_SYNC
3708 1.6 eeh ntv.shift = pps_shift;
3709 1.6 eeh ntv.ppsfreq = pps_freq;
3710 1.6 eeh ntv.jitter = pps_jitter >> PPS_AVG;
3711 1.6 eeh ntv.stabil = pps_stabil;
3712 1.6 eeh ntv.calcnt = pps_calcnt;
3713 1.6 eeh ntv.errcnt = pps_errcnt;
3714 1.6 eeh ntv.jitcnt = pps_jitcnt;
3715 1.6 eeh ntv.stbcnt = pps_stbcnt;
3716 1.6 eeh #endif /* PPS_SYNC */
3717 1.6 eeh (void)splx(s);
3718 1.6 eeh
3719 1.10 mrg netbsd32_from_timeval(&ntv, &ntv32);
3720 1.6 eeh error = copyout((caddr_t)&ntv32, (caddr_t)SCARG(uap, tp), sizeof(ntv32));
3721 1.6 eeh if (!error) {
3722 1.6 eeh
3723 1.6 eeh /*
3724 1.6 eeh * Status word error decode. See comments in
3725 1.6 eeh * ntp_gettime() routine.
3726 1.6 eeh */
3727 1.6 eeh if ((time_status & (STA_UNSYNC | STA_CLOCKERR)) ||
3728 1.6 eeh (time_status & (STA_PPSFREQ | STA_PPSTIME) &&
3729 1.6 eeh !(time_status & STA_PPSSIGNAL)) ||
3730 1.6 eeh (time_status & STA_PPSTIME &&
3731 1.6 eeh time_status & STA_PPSJITTER) ||
3732 1.6 eeh (time_status & STA_PPSFREQ &&
3733 1.6 eeh time_status & (STA_PPSWANDER | STA_PPSERROR)))
3734 1.6 eeh *retval = TIME_ERROR;
3735 1.6 eeh else
3736 1.6 eeh *retval = (register_t)time_state;
3737 1.6 eeh }
3738 1.6 eeh return error;
3739 1.6 eeh }
3740 1.6 eeh #endif
3741 1.6 eeh
3742 1.6 eeh int
3743 1.19 eeh netbsd32_setgid(p, v, retval)
3744 1.6 eeh struct proc *p;
3745 1.6 eeh void *v;
3746 1.6 eeh register_t *retval;
3747 1.6 eeh {
3748 1.19 eeh struct netbsd32_setgid_args /* {
3749 1.6 eeh syscallarg(gid_t) gid;
3750 1.6 eeh } */ *uap = v;
3751 1.6 eeh struct sys_setgid_args ua;
3752 1.6 eeh
3753 1.11 mrg NETBSD32TO64_UAP(gid);
3754 1.6 eeh return (sys_setgid(p, v, retval));
3755 1.6 eeh }
3756 1.6 eeh
3757 1.6 eeh int
3758 1.19 eeh netbsd32_setegid(p, v, retval)
3759 1.6 eeh struct proc *p;
3760 1.6 eeh void *v;
3761 1.6 eeh register_t *retval;
3762 1.6 eeh {
3763 1.19 eeh struct netbsd32_setegid_args /* {
3764 1.6 eeh syscallarg(gid_t) egid;
3765 1.6 eeh } */ *uap = v;
3766 1.6 eeh struct sys_setegid_args ua;
3767 1.6 eeh
3768 1.11 mrg NETBSD32TO64_UAP(egid);
3769 1.6 eeh return (sys_setegid(p, v, retval));
3770 1.6 eeh }
3771 1.6 eeh
3772 1.6 eeh int
3773 1.19 eeh netbsd32_seteuid(p, v, retval)
3774 1.6 eeh struct proc *p;
3775 1.6 eeh void *v;
3776 1.6 eeh register_t *retval;
3777 1.6 eeh {
3778 1.19 eeh struct netbsd32_seteuid_args /* {
3779 1.6 eeh syscallarg(gid_t) euid;
3780 1.6 eeh } */ *uap = v;
3781 1.6 eeh struct sys_seteuid_args ua;
3782 1.6 eeh
3783 1.11 mrg NETBSD32TO64_UAP(euid);
3784 1.6 eeh return (sys_seteuid(p, v, retval));
3785 1.1 mrg }
3786 1.1 mrg
3787 1.6 eeh #ifdef LFS
3788 1.1 mrg int
3789 1.20 eeh netbsd32_sys_lfs_bmapv(p, v, retval)
3790 1.1 mrg struct proc *p;
3791 1.1 mrg void *v;
3792 1.1 mrg register_t *retval;
3793 1.1 mrg {
3794 1.6 eeh #if 0
3795 1.19 eeh struct netbsd32_lfs_bmapv_args /* {
3796 1.10 mrg syscallarg(netbsd32_fsid_tp_t) fsidp;
3797 1.10 mrg syscallarg(netbsd32_block_infop_t) blkiov;
3798 1.1 mrg syscallarg(int) blkcnt;
3799 1.1 mrg } */ *uap = v;
3800 1.1 mrg struct sys_lfs_bmapv_args ua;
3801 1.1 mrg
3802 1.11 mrg NETBSD32TOP_UAP(fdidp, struct fsid);
3803 1.11 mrg NETBSD32TO64_UAP(blkcnt);
3804 1.1 mrg /* XXX finish me */
3805 1.1 mrg #else
3806 1.1 mrg
3807 1.1 mrg return (ENOSYS); /* XXX */
3808 1.1 mrg #endif
3809 1.1 mrg }
3810 1.1 mrg
3811 1.1 mrg int
3812 1.20 eeh netbsd32_sys_lfs_markv(p, v, retval)
3813 1.1 mrg struct proc *p;
3814 1.1 mrg void *v;
3815 1.1 mrg register_t *retval;
3816 1.1 mrg {
3817 1.20 eeh #if 0
3818 1.19 eeh struct netbsd32_lfs_markv_args /* {
3819 1.10 mrg syscallarg(netbsd32_fsid_tp_t) fsidp;
3820 1.10 mrg syscallarg(netbsd32_block_infop_t) blkiov;
3821 1.1 mrg syscallarg(int) blkcnt;
3822 1.1 mrg } */ *uap = v;
3823 1.20 eeh #endif
3824 1.1 mrg
3825 1.1 mrg return (ENOSYS); /* XXX */
3826 1.1 mrg }
3827 1.1 mrg
3828 1.1 mrg int
3829 1.20 eeh netbsd32_sys_lfs_segclean(p, v, retval)
3830 1.1 mrg struct proc *p;
3831 1.1 mrg void *v;
3832 1.1 mrg register_t *retval;
3833 1.1 mrg {
3834 1.20 eeh #if 0
3835 1.19 eeh struct netbsd32_lfs_segclean_args /* {
3836 1.10 mrg syscallarg(netbsd32_fsid_tp_t) fsidp;
3837 1.10 mrg syscallarg(netbsd32_u_long) segment;
3838 1.1 mrg } */ *uap = v;
3839 1.20 eeh #endif
3840 1.20 eeh
3841 1.1 mrg return (ENOSYS); /* XXX */
3842 1.1 mrg }
3843 1.1 mrg
3844 1.1 mrg int
3845 1.20 eeh netbsd32_sys_lfs_segwait(p, v, retval)
3846 1.1 mrg struct proc *p;
3847 1.1 mrg void *v;
3848 1.1 mrg register_t *retval;
3849 1.1 mrg {
3850 1.20 eeh #if 0
3851 1.19 eeh struct netbsd32_lfs_segwait_args /* {
3852 1.10 mrg syscallarg(netbsd32_fsid_tp_t) fsidp;
3853 1.10 mrg syscallarg(netbsd32_timevalp_t) tv;
3854 1.1 mrg } */ *uap = v;
3855 1.20 eeh #endif
3856 1.20 eeh
3857 1.1 mrg return (ENOSYS); /* XXX */
3858 1.1 mrg }
3859 1.6 eeh #endif
3860 1.1 mrg
3861 1.1 mrg int
3862 1.19 eeh netbsd32_pathconf(p, v, retval)
3863 1.1 mrg struct proc *p;
3864 1.1 mrg void *v;
3865 1.1 mrg register_t *retval;
3866 1.1 mrg {
3867 1.19 eeh struct netbsd32_pathconf_args /* {
3868 1.1 mrg syscallarg(int) fd;
3869 1.1 mrg syscallarg(int) name;
3870 1.1 mrg } */ *uap = v;
3871 1.1 mrg struct sys_pathconf_args ua;
3872 1.1 mrg long rt;
3873 1.1 mrg int error;
3874 1.1 mrg
3875 1.11 mrg NETBSD32TOP_UAP(path, const char);
3876 1.11 mrg NETBSD32TO64_UAP(name);
3877 1.1 mrg error = sys_pathconf(p, &ua, (register_t *)&rt);
3878 1.10 mrg *(netbsd32_long *)retval = (netbsd32_long)rt;
3879 1.1 mrg return (error);
3880 1.1 mrg }
3881 1.1 mrg
3882 1.1 mrg int
3883 1.19 eeh netbsd32_fpathconf(p, v, retval)
3884 1.1 mrg struct proc *p;
3885 1.1 mrg void *v;
3886 1.1 mrg register_t *retval;
3887 1.1 mrg {
3888 1.19 eeh struct netbsd32_fpathconf_args /* {
3889 1.1 mrg syscallarg(int) fd;
3890 1.1 mrg syscallarg(int) name;
3891 1.1 mrg } */ *uap = v;
3892 1.1 mrg struct sys_fpathconf_args ua;
3893 1.1 mrg long rt;
3894 1.1 mrg int error;
3895 1.1 mrg
3896 1.11 mrg NETBSD32TO64_UAP(fd);
3897 1.11 mrg NETBSD32TO64_UAP(name);
3898 1.1 mrg error = sys_fpathconf(p, &ua, (register_t *)&rt);
3899 1.10 mrg *(netbsd32_long *)retval = (netbsd32_long)rt;
3900 1.1 mrg return (error);
3901 1.1 mrg }
3902 1.1 mrg
3903 1.1 mrg int
3904 1.19 eeh netbsd32_getrlimit(p, v, retval)
3905 1.1 mrg struct proc *p;
3906 1.1 mrg void *v;
3907 1.1 mrg register_t *retval;
3908 1.1 mrg {
3909 1.19 eeh struct netbsd32_getrlimit_args /* {
3910 1.1 mrg syscallarg(int) which;
3911 1.10 mrg syscallarg(netbsd32_rlimitp_t) rlp;
3912 1.1 mrg } */ *uap = v;
3913 1.6 eeh int which = SCARG(uap, which);
3914 1.1 mrg
3915 1.6 eeh if ((u_int)which >= RLIM_NLIMITS)
3916 1.6 eeh return (EINVAL);
3917 1.6 eeh return (copyout(&p->p_rlimit[which], (caddr_t)(u_long)SCARG(uap, rlp),
3918 1.6 eeh sizeof(struct rlimit)));
3919 1.1 mrg }
3920 1.1 mrg
3921 1.1 mrg int
3922 1.19 eeh netbsd32_setrlimit(p, v, retval)
3923 1.1 mrg struct proc *p;
3924 1.1 mrg void *v;
3925 1.1 mrg register_t *retval;
3926 1.1 mrg {
3927 1.19 eeh struct netbsd32_setrlimit_args /* {
3928 1.1 mrg syscallarg(int) which;
3929 1.10 mrg syscallarg(const netbsd32_rlimitp_t) rlp;
3930 1.1 mrg } */ *uap = v;
3931 1.6 eeh int which = SCARG(uap, which);
3932 1.6 eeh struct rlimit alim;
3933 1.6 eeh int error;
3934 1.1 mrg
3935 1.6 eeh error = copyin((caddr_t)(u_long)SCARG(uap, rlp), &alim, sizeof(struct rlimit));
3936 1.6 eeh if (error)
3937 1.6 eeh return (error);
3938 1.18 bouyer return (dosetrlimit(p, p->p_cred, which, &alim));
3939 1.1 mrg }
3940 1.1 mrg
3941 1.1 mrg int
3942 1.19 eeh netbsd32_mmap(p, v, retval)
3943 1.1 mrg struct proc *p;
3944 1.1 mrg void *v;
3945 1.1 mrg register_t *retval;
3946 1.1 mrg {
3947 1.19 eeh struct netbsd32_mmap_args /* {
3948 1.10 mrg syscallarg(netbsd32_voidp) addr;
3949 1.10 mrg syscallarg(netbsd32_size_t) len;
3950 1.1 mrg syscallarg(int) prot;
3951 1.1 mrg syscallarg(int) flags;
3952 1.1 mrg syscallarg(int) fd;
3953 1.10 mrg syscallarg(netbsd32_long) pad;
3954 1.1 mrg syscallarg(off_t) pos;
3955 1.1 mrg } */ *uap = v;
3956 1.1 mrg struct sys_mmap_args ua;
3957 1.1 mrg void *rt;
3958 1.1 mrg int error;
3959 1.1 mrg
3960 1.11 mrg NETBSD32TOP_UAP(addr, void);
3961 1.11 mrg NETBSD32TOX_UAP(len, size_t);
3962 1.11 mrg NETBSD32TO64_UAP(prot);
3963 1.11 mrg NETBSD32TO64_UAP(flags);
3964 1.11 mrg NETBSD32TO64_UAP(fd);
3965 1.11 mrg NETBSD32TOX_UAP(pad, long);
3966 1.11 mrg NETBSD32TOX_UAP(pos, off_t);
3967 1.1 mrg error = sys_mmap(p, &ua, (register_t *)&rt);
3968 1.1 mrg if ((long)rt > (long)UINT_MAX)
3969 1.19 eeh printf("netbsd32_mmap: retval out of range: 0x%qx",
3970 1.1 mrg rt);
3971 1.10 mrg *retval = (netbsd32_voidp)(u_long)rt;
3972 1.1 mrg return (error);
3973 1.1 mrg }
3974 1.1 mrg
3975 1.1 mrg int
3976 1.19 eeh netbsd32_lseek(p, v, retval)
3977 1.6 eeh struct proc *p;
3978 1.6 eeh void *v;
3979 1.6 eeh register_t *retval;
3980 1.6 eeh {
3981 1.19 eeh struct netbsd32_lseek_args /* {
3982 1.6 eeh syscallarg(int) fd;
3983 1.6 eeh syscallarg(int) pad;
3984 1.6 eeh syscallarg(off_t) offset;
3985 1.6 eeh syscallarg(int) whence;
3986 1.6 eeh } */ *uap = v;
3987 1.6 eeh struct sys_lseek_args ua;
3988 1.6 eeh
3989 1.11 mrg NETBSD32TO64_UAP(fd);
3990 1.11 mrg NETBSD32TO64_UAP(pad);
3991 1.11 mrg NETBSD32TO64_UAP(offset);
3992 1.11 mrg NETBSD32TO64_UAP(whence);
3993 1.6 eeh return (sys_lseek(p, &ua, retval));
3994 1.6 eeh }
3995 1.6 eeh
3996 1.6 eeh int
3997 1.19 eeh netbsd32_truncate(p, v, retval)
3998 1.1 mrg struct proc *p;
3999 1.1 mrg void *v;
4000 1.1 mrg register_t *retval;
4001 1.1 mrg {
4002 1.19 eeh struct netbsd32_truncate_args /* {
4003 1.10 mrg syscallarg(const netbsd32_charp) path;
4004 1.1 mrg syscallarg(int) pad;
4005 1.1 mrg syscallarg(off_t) length;
4006 1.1 mrg } */ *uap = v;
4007 1.1 mrg struct sys_truncate_args ua;
4008 1.1 mrg
4009 1.11 mrg NETBSD32TOP_UAP(path, const char);
4010 1.11 mrg NETBSD32TO64_UAP(pad);
4011 1.11 mrg NETBSD32TO64_UAP(length);
4012 1.1 mrg return (sys_truncate(p, &ua, retval));
4013 1.1 mrg }
4014 1.1 mrg
4015 1.1 mrg int
4016 1.19 eeh netbsd32_ftruncate(p, v, retval)
4017 1.6 eeh struct proc *p;
4018 1.6 eeh void *v;
4019 1.6 eeh register_t *retval;
4020 1.6 eeh {
4021 1.19 eeh struct netbsd32_ftruncate_args /* {
4022 1.6 eeh syscallarg(int) fd;
4023 1.6 eeh syscallarg(int) pad;
4024 1.6 eeh syscallarg(off_t) length;
4025 1.6 eeh } */ *uap = v;
4026 1.6 eeh struct sys_ftruncate_args ua;
4027 1.6 eeh
4028 1.11 mrg NETBSD32TO64_UAP(fd);
4029 1.11 mrg NETBSD32TO64_UAP(pad);
4030 1.11 mrg NETBSD32TO64_UAP(length);
4031 1.6 eeh return (sys_ftruncate(p, &ua, retval));
4032 1.6 eeh }
4033 1.6 eeh
4034 1.6 eeh int
4035 1.19 eeh netbsd32___sysctl(p, v, retval)
4036 1.1 mrg struct proc *p;
4037 1.1 mrg void *v;
4038 1.1 mrg register_t *retval;
4039 1.1 mrg {
4040 1.19 eeh struct netbsd32___sysctl_args /* {
4041 1.10 mrg syscallarg(netbsd32_intp) name;
4042 1.1 mrg syscallarg(u_int) namelen;
4043 1.10 mrg syscallarg(netbsd32_voidp) old;
4044 1.10 mrg syscallarg(netbsd32_size_tp) oldlenp;
4045 1.10 mrg syscallarg(netbsd32_voidp) new;
4046 1.10 mrg syscallarg(netbsd32_size_t) newlen;
4047 1.1 mrg } */ *uap = v;
4048 1.6 eeh int error, dolock = 1;
4049 1.10 mrg netbsd32_size_t savelen = 0;
4050 1.6 eeh size_t oldlen = 0;
4051 1.6 eeh sysctlfn *fn;
4052 1.6 eeh int name[CTL_MAXNAME];
4053 1.6 eeh
4054 1.6 eeh /*
4055 1.6 eeh * Some of these sysctl functions do their own copyin/copyout.
4056 1.6 eeh * We need to disable or emulate the ones that need their
4057 1.6 eeh * arguments converted.
4058 1.6 eeh */
4059 1.6 eeh
4060 1.6 eeh if (SCARG(uap, new) != NULL &&
4061 1.6 eeh (error = suser(p->p_ucred, &p->p_acflag)))
4062 1.6 eeh return (error);
4063 1.6 eeh /*
4064 1.6 eeh * all top-level sysctl names are non-terminal
4065 1.6 eeh */
4066 1.6 eeh if (SCARG(uap, namelen) > CTL_MAXNAME || SCARG(uap, namelen) < 2)
4067 1.6 eeh return (EINVAL);
4068 1.6 eeh error = copyin((caddr_t)(u_long)SCARG(uap, name), &name,
4069 1.6 eeh SCARG(uap, namelen) * sizeof(int));
4070 1.6 eeh if (error)
4071 1.6 eeh return (error);
4072 1.6 eeh
4073 1.6 eeh switch (name[0]) {
4074 1.6 eeh case CTL_KERN:
4075 1.6 eeh fn = kern_sysctl;
4076 1.6 eeh if (name[2] != KERN_VNODE) /* XXX */
4077 1.6 eeh dolock = 0;
4078 1.6 eeh break;
4079 1.6 eeh case CTL_HW:
4080 1.6 eeh fn = hw_sysctl;
4081 1.6 eeh break;
4082 1.6 eeh case CTL_VM:
4083 1.6 eeh fn = uvm_sysctl;
4084 1.6 eeh break;
4085 1.6 eeh case CTL_NET:
4086 1.6 eeh fn = net_sysctl;
4087 1.6 eeh break;
4088 1.6 eeh case CTL_VFS:
4089 1.6 eeh fn = vfs_sysctl;
4090 1.6 eeh break;
4091 1.6 eeh case CTL_MACHDEP:
4092 1.6 eeh fn = cpu_sysctl;
4093 1.6 eeh break;
4094 1.6 eeh #ifdef DEBUG
4095 1.6 eeh case CTL_DEBUG:
4096 1.6 eeh fn = debug_sysctl;
4097 1.6 eeh break;
4098 1.6 eeh #endif
4099 1.6 eeh #ifdef DDB
4100 1.6 eeh case CTL_DDB:
4101 1.6 eeh fn = ddb_sysctl;
4102 1.6 eeh break;
4103 1.6 eeh #endif
4104 1.6 eeh default:
4105 1.6 eeh return (EOPNOTSUPP);
4106 1.6 eeh }
4107 1.1 mrg
4108 1.6 eeh if (SCARG(uap, oldlenp) &&
4109 1.6 eeh (error = copyin((caddr_t)(u_long)SCARG(uap, oldlenp), &savelen, sizeof(savelen))))
4110 1.6 eeh return (error);
4111 1.6 eeh if (SCARG(uap, old) != NULL) {
4112 1.6 eeh if (!uvm_useracc((caddr_t)(u_long)SCARG(uap, old), savelen, B_WRITE))
4113 1.6 eeh return (EFAULT);
4114 1.6 eeh #if 0 /* XXXXXXXX */
4115 1.6 eeh while (memlock.sl_lock) {
4116 1.6 eeh memlock.sl_want = 1;
4117 1.6 eeh sleep((caddr_t)&memlock, PRIBIO+1);
4118 1.6 eeh memlock.sl_locked++;
4119 1.6 eeh }
4120 1.6 eeh memlock.sl_lock = 1;
4121 1.6 eeh #endif /* XXXXXXXX */
4122 1.13 thorpej if (dolock) {
4123 1.13 thorpej /*
4124 1.13 thorpej * XXX Um, this is kind of evil. What should
4125 1.13 thorpej * XXX we be passing here?
4126 1.13 thorpej */
4127 1.20 eeh if (uvm_vslock(p, (void *)(u_long)SCARG(uap, old), savelen,
4128 1.15 thorpej VM_PROT_NONE) != KERN_SUCCESS) {
4129 1.15 thorpej #if 0 /* XXXXXXXX */
4130 1.15 thorpej memlock.sl_lock = 0;
4131 1.15 thorpej if (memlock.sl_want) {
4132 1.15 thorpej memlock.sl_want = 0;
4133 1.15 thorpej wakeup((caddr_t)&memlock);
4134 1.15 thorpej }
4135 1.15 thorpej #endif /* XXXXXXXX */
4136 1.15 thorpej return (EFAULT);
4137 1.15 thorpej }
4138 1.13 thorpej }
4139 1.6 eeh oldlen = savelen;
4140 1.6 eeh }
4141 1.20 eeh error = (*fn)(name + 1, SCARG(uap, namelen) - 1,
4142 1.20 eeh (void *)(u_long)SCARG(uap, old), &oldlen,
4143 1.20 eeh (void *)(u_long)SCARG(uap, new), SCARG(uap, newlen), p);
4144 1.6 eeh if (SCARG(uap, old) != NULL) {
4145 1.6 eeh if (dolock)
4146 1.20 eeh uvm_vsunlock(p, (void *)(u_long)SCARG(uap, old), savelen);
4147 1.6 eeh #if 0 /* XXXXXXXXXXX */
4148 1.6 eeh memlock.sl_lock = 0;
4149 1.6 eeh if (memlock.sl_want) {
4150 1.6 eeh memlock.sl_want = 0;
4151 1.6 eeh wakeup((caddr_t)&memlock);
4152 1.6 eeh }
4153 1.6 eeh #endif /* XXXXXXXXX */
4154 1.6 eeh }
4155 1.6 eeh savelen = oldlen;
4156 1.6 eeh if (error)
4157 1.6 eeh return (error);
4158 1.6 eeh if (SCARG(uap, oldlenp))
4159 1.6 eeh error = copyout(&savelen, (caddr_t)(u_long)SCARG(uap, oldlenp), sizeof(savelen));
4160 1.6 eeh return (error);
4161 1.1 mrg }
4162 1.1 mrg
4163 1.1 mrg int
4164 1.19 eeh netbsd32_mlock(p, v, retval)
4165 1.1 mrg struct proc *p;
4166 1.1 mrg void *v;
4167 1.1 mrg register_t *retval;
4168 1.1 mrg {
4169 1.19 eeh struct netbsd32_mlock_args /* {
4170 1.10 mrg syscallarg(const netbsd32_voidp) addr;
4171 1.10 mrg syscallarg(netbsd32_size_t) len;
4172 1.1 mrg } */ *uap = v;
4173 1.1 mrg struct sys_mlock_args ua;
4174 1.1 mrg
4175 1.11 mrg NETBSD32TOP_UAP(addr, const void);
4176 1.11 mrg NETBSD32TO64_UAP(len);
4177 1.1 mrg return (sys_mlock(p, &ua, retval));
4178 1.1 mrg }
4179 1.1 mrg
4180 1.1 mrg int
4181 1.19 eeh netbsd32_munlock(p, v, retval)
4182 1.1 mrg struct proc *p;
4183 1.1 mrg void *v;
4184 1.1 mrg register_t *retval;
4185 1.1 mrg {
4186 1.19 eeh struct netbsd32_munlock_args /* {
4187 1.10 mrg syscallarg(const netbsd32_voidp) addr;
4188 1.10 mrg syscallarg(netbsd32_size_t) len;
4189 1.1 mrg } */ *uap = v;
4190 1.1 mrg struct sys_munlock_args ua;
4191 1.1 mrg
4192 1.11 mrg NETBSD32TOP_UAP(addr, const void);
4193 1.11 mrg NETBSD32TO64_UAP(len);
4194 1.1 mrg return (sys_munlock(p, &ua, retval));
4195 1.1 mrg }
4196 1.1 mrg
4197 1.1 mrg int
4198 1.19 eeh netbsd32_undelete(p, v, retval)
4199 1.1 mrg struct proc *p;
4200 1.1 mrg void *v;
4201 1.1 mrg register_t *retval;
4202 1.1 mrg {
4203 1.19 eeh struct netbsd32_undelete_args /* {
4204 1.10 mrg syscallarg(const netbsd32_charp) path;
4205 1.1 mrg } */ *uap = v;
4206 1.1 mrg struct sys_undelete_args ua;
4207 1.1 mrg
4208 1.11 mrg NETBSD32TOP_UAP(path, const char);
4209 1.1 mrg return (sys_undelete(p, &ua, retval));
4210 1.1 mrg }
4211 1.1 mrg
4212 1.1 mrg int
4213 1.19 eeh netbsd32_futimes(p, v, retval)
4214 1.1 mrg struct proc *p;
4215 1.1 mrg void *v;
4216 1.1 mrg register_t *retval;
4217 1.1 mrg {
4218 1.19 eeh struct netbsd32_futimes_args /* {
4219 1.1 mrg syscallarg(int) fd;
4220 1.10 mrg syscallarg(const netbsd32_timevalp_t) tptr;
4221 1.1 mrg } */ *uap = v;
4222 1.6 eeh int error;
4223 1.6 eeh struct file *fp;
4224 1.6 eeh
4225 1.12 thorpej /* getvnode() will use the descriptor for us */
4226 1.6 eeh if ((error = getvnode(p->p_fd, SCARG(uap, fd), &fp)) != 0)
4227 1.6 eeh return (error);
4228 1.6 eeh
4229 1.12 thorpej error = change_utimes32((struct vnode *)fp->f_data,
4230 1.12 thorpej (struct timeval *)(u_long)SCARG(uap, tptr), p);
4231 1.19 eeh FILE_UNUSE(fp, p);
4232 1.12 thorpej return (error);
4233 1.6 eeh }
4234 1.6 eeh
4235 1.6 eeh int
4236 1.19 eeh netbsd32_getpgid(p, v, retval)
4237 1.6 eeh struct proc *p;
4238 1.6 eeh void *v;
4239 1.6 eeh register_t *retval;
4240 1.6 eeh {
4241 1.19 eeh struct netbsd32_getpgid_args /* {
4242 1.6 eeh syscallarg(pid_t) pid;
4243 1.6 eeh } */ *uap = v;
4244 1.6 eeh struct sys_getpgid_args ua;
4245 1.1 mrg
4246 1.11 mrg NETBSD32TO64_UAP(pid);
4247 1.6 eeh return (sys_getpgid(p, &ua, retval));
4248 1.1 mrg }
4249 1.1 mrg
4250 1.1 mrg int
4251 1.19 eeh netbsd32_reboot(p, v, retval)
4252 1.1 mrg struct proc *p;
4253 1.1 mrg void *v;
4254 1.1 mrg register_t *retval;
4255 1.1 mrg {
4256 1.19 eeh struct netbsd32_reboot_args /* {
4257 1.1 mrg syscallarg(int) opt;
4258 1.10 mrg syscallarg(netbsd32_charp) bootstr;
4259 1.1 mrg } */ *uap = v;
4260 1.1 mrg struct sys_reboot_args ua;
4261 1.1 mrg
4262 1.11 mrg NETBSD32TO64_UAP(opt);
4263 1.11 mrg NETBSD32TOP_UAP(bootstr, char);
4264 1.1 mrg return (sys_reboot(p, &ua, retval));
4265 1.1 mrg }
4266 1.1 mrg
4267 1.1 mrg int
4268 1.19 eeh netbsd32_poll(p, v, retval)
4269 1.1 mrg struct proc *p;
4270 1.1 mrg void *v;
4271 1.1 mrg register_t *retval;
4272 1.1 mrg {
4273 1.19 eeh struct netbsd32_poll_args /* {
4274 1.10 mrg syscallarg(netbsd32_pollfdp_t) fds;
4275 1.1 mrg syscallarg(u_int) nfds;
4276 1.1 mrg syscallarg(int) timeout;
4277 1.1 mrg } */ *uap = v;
4278 1.1 mrg struct sys_poll_args ua;
4279 1.1 mrg
4280 1.11 mrg NETBSD32TOP_UAP(fds, struct pollfd);
4281 1.11 mrg NETBSD32TO64_UAP(nfds);
4282 1.11 mrg NETBSD32TO64_UAP(timeout);
4283 1.1 mrg return (sys_poll(p, &ua, retval));
4284 1.1 mrg }
4285 1.1 mrg
4286 1.20 eeh #if defined(SYSVSEM)
4287 1.6 eeh /*
4288 1.6 eeh * XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
4289 1.6 eeh *
4290 1.6 eeh * This is BSD. We won't support System V IPC.
4291 1.6 eeh * Too much work.
4292 1.6 eeh *
4293 1.6 eeh * XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
4294 1.6 eeh */
4295 1.1 mrg int
4296 1.20 eeh netbsd32___semctl13(p, v, retval)
4297 1.1 mrg struct proc *p;
4298 1.1 mrg void *v;
4299 1.1 mrg register_t *retval;
4300 1.1 mrg {
4301 1.6 eeh #if 0
4302 1.19 eeh struct netbsd32___semctl_args /* {
4303 1.1 mrg syscallarg(int) semid;
4304 1.1 mrg syscallarg(int) semnum;
4305 1.1 mrg syscallarg(int) cmd;
4306 1.10 mrg syscallarg(netbsd32_semunu_t) arg;
4307 1.1 mrg } */ *uap = v;
4308 1.10 mrg union netbsd32_semun sem32;
4309 1.6 eeh int semid = SCARG(uap, semid);
4310 1.6 eeh int semnum = SCARG(uap, semnum);
4311 1.6 eeh int cmd = SCARG(uap, cmd);
4312 1.10 mrg union netbsd32_semun *arg = (void*)(u_long)SCARG(uap, arg);
4313 1.10 mrg union netbsd32_semun real_arg;
4314 1.6 eeh struct ucred *cred = p->p_ucred;
4315 1.6 eeh int i, rval, eval;
4316 1.10 mrg struct netbsd32_semid_ds sbuf;
4317 1.6 eeh register struct semid_ds *semaptr;
4318 1.6 eeh
4319 1.6 eeh semlock(p);
4320 1.6 eeh
4321 1.6 eeh semid = IPCID_TO_IX(semid);
4322 1.6 eeh if (semid < 0 || semid >= seminfo.semmsl)
4323 1.6 eeh return(EINVAL);
4324 1.6 eeh
4325 1.6 eeh semaptr = &sema[semid];
4326 1.6 eeh if ((semaptr->sem_perm.mode & SEM_ALLOC) == 0 ||
4327 1.6 eeh semaptr->sem_perm.seq != IPCID_TO_SEQ(SCARG(uap, semid)))
4328 1.6 eeh return(EINVAL);
4329 1.6 eeh
4330 1.6 eeh eval = 0;
4331 1.6 eeh rval = 0;
4332 1.6 eeh
4333 1.6 eeh switch (cmd) {
4334 1.6 eeh case IPC_RMID:
4335 1.6 eeh if ((eval = ipcperm(cred, &semaptr->sem_perm, IPC_M)) != 0)
4336 1.6 eeh return(eval);
4337 1.6 eeh semaptr->sem_perm.cuid = cred->cr_uid;
4338 1.6 eeh semaptr->sem_perm.uid = cred->cr_uid;
4339 1.6 eeh semtot -= semaptr->sem_nsems;
4340 1.19 eeh for (i = semaptr->_sem_base - sem; i < semtot; i++)
4341 1.6 eeh sem[i] = sem[i + semaptr->sem_nsems];
4342 1.6 eeh for (i = 0; i < seminfo.semmni; i++) {
4343 1.6 eeh if ((sema[i].sem_perm.mode & SEM_ALLOC) &&
4344 1.19 eeh sema[i]._sem_base > semaptr->_sem_base)
4345 1.19 eeh sema[i]._sem_base -= semaptr->sem_nsems;
4346 1.6 eeh }
4347 1.6 eeh semaptr->sem_perm.mode = 0;
4348 1.6 eeh semundo_clear(semid, -1);
4349 1.6 eeh wakeup((caddr_t)semaptr);
4350 1.6 eeh break;
4351 1.6 eeh
4352 1.6 eeh case IPC_SET:
4353 1.6 eeh if ((eval = ipcperm(cred, &semaptr->sem_perm, IPC_M)))
4354 1.6 eeh return(eval);
4355 1.6 eeh if ((eval = copyin(arg, &real_arg, sizeof(real_arg))) != 0)
4356 1.6 eeh return(eval);
4357 1.6 eeh if ((eval = copyin((caddr_t)(u_long)real_arg.buf, (caddr_t)&sbuf,
4358 1.6 eeh sizeof(sbuf))) != 0)
4359 1.6 eeh return(eval);
4360 1.6 eeh semaptr->sem_perm.uid = sbuf.sem_perm.uid;
4361 1.6 eeh semaptr->sem_perm.gid = sbuf.sem_perm.gid;
4362 1.6 eeh semaptr->sem_perm.mode = (semaptr->sem_perm.mode & ~0777) |
4363 1.6 eeh (sbuf.sem_perm.mode & 0777);
4364 1.6 eeh semaptr->sem_ctime = time.tv_sec;
4365 1.6 eeh break;
4366 1.6 eeh
4367 1.6 eeh case IPC_STAT:
4368 1.6 eeh if ((eval = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
4369 1.6 eeh return(eval);
4370 1.6 eeh if ((eval = copyin(arg, &real_arg, sizeof(real_arg))) != 0)
4371 1.6 eeh return(eval);
4372 1.6 eeh eval = copyout((caddr_t)semaptr, (caddr_t)(u_long)real_arg.buf,
4373 1.6 eeh sizeof(struct semid_ds));
4374 1.6 eeh break;
4375 1.6 eeh
4376 1.6 eeh case GETNCNT:
4377 1.6 eeh if ((eval = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
4378 1.6 eeh return(eval);
4379 1.6 eeh if (semnum < 0 || semnum >= semaptr->sem_nsems)
4380 1.6 eeh return(EINVAL);
4381 1.19 eeh rval = semaptr->_sem_base[semnum].semncnt;
4382 1.6 eeh break;
4383 1.6 eeh
4384 1.6 eeh case GETPID:
4385 1.6 eeh if ((eval = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
4386 1.6 eeh return(eval);
4387 1.6 eeh if (semnum < 0 || semnum >= semaptr->sem_nsems)
4388 1.6 eeh return(EINVAL);
4389 1.19 eeh rval = semaptr->_sem_base[semnum].sempid;
4390 1.6 eeh break;
4391 1.6 eeh
4392 1.6 eeh case GETVAL:
4393 1.6 eeh if ((eval = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
4394 1.6 eeh return(eval);
4395 1.6 eeh if (semnum < 0 || semnum >= semaptr->sem_nsems)
4396 1.6 eeh return(EINVAL);
4397 1.19 eeh rval = semaptr->_sem_base[semnum].semval;
4398 1.6 eeh break;
4399 1.6 eeh
4400 1.6 eeh case GETALL:
4401 1.6 eeh if ((eval = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
4402 1.6 eeh return(eval);
4403 1.6 eeh if ((eval = copyin(arg, &real_arg, sizeof(real_arg))) != 0)
4404 1.6 eeh return(eval);
4405 1.6 eeh for (i = 0; i < semaptr->sem_nsems; i++) {
4406 1.19 eeh eval = copyout((caddr_t)&semaptr->_sem_base[i].semval,
4407 1.6 eeh &real_arg.array[i], sizeof(real_arg.array[0]));
4408 1.6 eeh if (eval != 0)
4409 1.6 eeh break;
4410 1.6 eeh }
4411 1.6 eeh break;
4412 1.1 mrg
4413 1.6 eeh case GETZCNT:
4414 1.6 eeh if ((eval = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
4415 1.6 eeh return(eval);
4416 1.6 eeh if (semnum < 0 || semnum >= semaptr->sem_nsems)
4417 1.6 eeh return(EINVAL);
4418 1.19 eeh rval = semaptr->_sem_base[semnum].semzcnt;
4419 1.6 eeh break;
4420 1.6 eeh
4421 1.6 eeh case SETVAL:
4422 1.6 eeh if ((eval = ipcperm(cred, &semaptr->sem_perm, IPC_W)))
4423 1.6 eeh return(eval);
4424 1.6 eeh if (semnum < 0 || semnum >= semaptr->sem_nsems)
4425 1.6 eeh return(EINVAL);
4426 1.6 eeh if ((eval = copyin(arg, &real_arg, sizeof(real_arg))) != 0)
4427 1.6 eeh return(eval);
4428 1.19 eeh semaptr->_sem_base[semnum].semval = real_arg.val;
4429 1.6 eeh semundo_clear(semid, semnum);
4430 1.6 eeh wakeup((caddr_t)semaptr);
4431 1.6 eeh break;
4432 1.6 eeh
4433 1.6 eeh case SETALL:
4434 1.6 eeh if ((eval = ipcperm(cred, &semaptr->sem_perm, IPC_W)))
4435 1.6 eeh return(eval);
4436 1.6 eeh if ((eval = copyin(arg, &real_arg, sizeof(real_arg))) != 0)
4437 1.6 eeh return(eval);
4438 1.6 eeh for (i = 0; i < semaptr->sem_nsems; i++) {
4439 1.6 eeh eval = copyin(&real_arg.array[i],
4440 1.19 eeh (caddr_t)&semaptr->_sem_base[i].semval,
4441 1.6 eeh sizeof(real_arg.array[0]));
4442 1.6 eeh if (eval != 0)
4443 1.6 eeh break;
4444 1.1 mrg }
4445 1.6 eeh semundo_clear(semid, -1);
4446 1.6 eeh wakeup((caddr_t)semaptr);
4447 1.6 eeh break;
4448 1.1 mrg
4449 1.6 eeh default:
4450 1.6 eeh return(EINVAL);
4451 1.6 eeh }
4452 1.1 mrg
4453 1.6 eeh if (eval == 0)
4454 1.6 eeh *retval = rval;
4455 1.6 eeh return(eval);
4456 1.6 eeh #else
4457 1.6 eeh return (ENOSYS);
4458 1.6 eeh #endif
4459 1.1 mrg }
4460 1.1 mrg
4461 1.1 mrg int
4462 1.19 eeh netbsd32_semget(p, v, retval)
4463 1.1 mrg struct proc *p;
4464 1.1 mrg void *v;
4465 1.1 mrg register_t *retval;
4466 1.1 mrg {
4467 1.19 eeh struct netbsd32_semget_args /* {
4468 1.10 mrg syscallarg(netbsd32_key_t) key;
4469 1.1 mrg syscallarg(int) nsems;
4470 1.1 mrg syscallarg(int) semflg;
4471 1.1 mrg } */ *uap = v;
4472 1.1 mrg struct sys_semget_args ua;
4473 1.1 mrg
4474 1.11 mrg NETBSD32TOX_UAP(key, key_t);
4475 1.11 mrg NETBSD32TO64_UAP(nsems);
4476 1.11 mrg NETBSD32TO64_UAP(semflg);
4477 1.1 mrg return (sys_semget(p, &ua, retval));
4478 1.1 mrg }
4479 1.1 mrg
4480 1.1 mrg int
4481 1.19 eeh netbsd32_semop(p, v, retval)
4482 1.1 mrg struct proc *p;
4483 1.1 mrg void *v;
4484 1.1 mrg register_t *retval;
4485 1.1 mrg {
4486 1.19 eeh struct netbsd32_semop_args /* {
4487 1.1 mrg syscallarg(int) semid;
4488 1.10 mrg syscallarg(netbsd32_sembufp_t) sops;
4489 1.10 mrg syscallarg(netbsd32_size_t) nsops;
4490 1.1 mrg } */ *uap = v;
4491 1.1 mrg struct sys_semop_args ua;
4492 1.1 mrg
4493 1.11 mrg NETBSD32TO64_UAP(semid);
4494 1.11 mrg NETBSD32TOP_UAP(sops, struct sembuf);
4495 1.11 mrg NETBSD32TOX_UAP(nsops, size_t);
4496 1.2 mrg return (sys_semop(p, &ua, retval));
4497 1.1 mrg }
4498 1.1 mrg
4499 1.1 mrg int
4500 1.19 eeh netbsd32_semconfig(p, v, retval)
4501 1.6 eeh struct proc *p;
4502 1.6 eeh void *v;
4503 1.6 eeh register_t *retval;
4504 1.6 eeh {
4505 1.19 eeh struct netbsd32_semconfig_args /* {
4506 1.6 eeh syscallarg(int) flag;
4507 1.6 eeh } */ *uap = v;
4508 1.6 eeh struct sys_semconfig_args ua;
4509 1.6 eeh
4510 1.11 mrg NETBSD32TO64_UAP(flag);
4511 1.6 eeh return (sys_semconfig(p, &ua, retval));
4512 1.6 eeh }
4513 1.20 eeh #endif /* SYSVSEM */
4514 1.20 eeh
4515 1.20 eeh #if defined(SYSVMSG)
4516 1.6 eeh
4517 1.6 eeh int
4518 1.20 eeh netbsd32___msgctl13(p, v, retval)
4519 1.1 mrg struct proc *p;
4520 1.1 mrg void *v;
4521 1.1 mrg register_t *retval;
4522 1.1 mrg {
4523 1.6 eeh #if 0
4524 1.19 eeh struct netbsd32_msgctl_args /* {
4525 1.1 mrg syscallarg(int) msqid;
4526 1.1 mrg syscallarg(int) cmd;
4527 1.10 mrg syscallarg(netbsd32_msqid_dsp_t) buf;
4528 1.1 mrg } */ *uap = v;
4529 1.1 mrg struct sys_msgctl_args ua;
4530 1.1 mrg struct msqid_ds ds;
4531 1.10 mrg struct netbsd32_msqid_ds *ds32p;
4532 1.1 mrg int error;
4533 1.1 mrg
4534 1.11 mrg NETBSD32TO64_UAP(msqid);
4535 1.11 mrg NETBSD32TO64_UAP(cmd);
4536 1.10 mrg ds32p = (struct netbsd32_msqid_ds *)(u_long)SCARG(uap, buf);
4537 1.1 mrg if (ds32p) {
4538 1.1 mrg SCARG(&ua, buf) = NULL;
4539 1.10 mrg netbsd32_to_msqid_ds(ds32p, &ds);
4540 1.1 mrg } else
4541 1.1 mrg SCARG(&ua, buf) = NULL;
4542 1.1 mrg error = sys_msgctl(p, &ua, retval);
4543 1.1 mrg if (error)
4544 1.1 mrg return (error);
4545 1.1 mrg
4546 1.1 mrg if (ds32p)
4547 1.10 mrg netbsd32_from_msqid_ds(&ds, ds32p);
4548 1.1 mrg return (0);
4549 1.6 eeh #else
4550 1.6 eeh return (ENOSYS);
4551 1.6 eeh #endif
4552 1.1 mrg }
4553 1.1 mrg
4554 1.1 mrg int
4555 1.19 eeh netbsd32_msgget(p, v, retval)
4556 1.1 mrg struct proc *p;
4557 1.1 mrg void *v;
4558 1.1 mrg register_t *retval;
4559 1.1 mrg {
4560 1.6 eeh #if 0
4561 1.19 eeh struct netbsd32_msgget_args /* {
4562 1.10 mrg syscallarg(netbsd32_key_t) key;
4563 1.1 mrg syscallarg(int) msgflg;
4564 1.1 mrg } */ *uap = v;
4565 1.1 mrg struct sys_msgget_args ua;
4566 1.1 mrg
4567 1.11 mrg NETBSD32TOX_UAP(key, key_t);
4568 1.11 mrg NETBSD32TO64_UAP(msgflg);
4569 1.1 mrg return (sys_msgget(p, &ua, retval));
4570 1.6 eeh #else
4571 1.6 eeh return (ENOSYS);
4572 1.6 eeh #endif
4573 1.1 mrg }
4574 1.1 mrg
4575 1.1 mrg int
4576 1.19 eeh netbsd32_msgsnd(p, v, retval)
4577 1.1 mrg struct proc *p;
4578 1.1 mrg void *v;
4579 1.1 mrg register_t *retval;
4580 1.1 mrg {
4581 1.6 eeh #if 0
4582 1.19 eeh struct netbsd32_msgsnd_args /* {
4583 1.1 mrg syscallarg(int) msqid;
4584 1.10 mrg syscallarg(const netbsd32_voidp) msgp;
4585 1.10 mrg syscallarg(netbsd32_size_t) msgsz;
4586 1.1 mrg syscallarg(int) msgflg;
4587 1.1 mrg } */ *uap = v;
4588 1.1 mrg struct sys_msgsnd_args ua;
4589 1.1 mrg
4590 1.11 mrg NETBSD32TO64_UAP(msqid);
4591 1.11 mrg NETBSD32TOP_UAP(msgp, void);
4592 1.11 mrg NETBSD32TOX_UAP(msgsz, size_t);
4593 1.11 mrg NETBSD32TO64_UAP(msgflg);
4594 1.1 mrg return (sys_msgsnd(p, &ua, retval));
4595 1.6 eeh #else
4596 1.6 eeh return (ENOSYS);
4597 1.6 eeh #endif
4598 1.1 mrg }
4599 1.1 mrg
4600 1.1 mrg int
4601 1.19 eeh netbsd32_msgrcv(p, v, retval)
4602 1.1 mrg struct proc *p;
4603 1.1 mrg void *v;
4604 1.1 mrg register_t *retval;
4605 1.1 mrg {
4606 1.6 eeh #if 0
4607 1.19 eeh struct netbsd32_msgrcv_args /* {
4608 1.1 mrg syscallarg(int) msqid;
4609 1.10 mrg syscallarg(netbsd32_voidp) msgp;
4610 1.10 mrg syscallarg(netbsd32_size_t) msgsz;
4611 1.10 mrg syscallarg(netbsd32_long) msgtyp;
4612 1.1 mrg syscallarg(int) msgflg;
4613 1.1 mrg } */ *uap = v;
4614 1.1 mrg struct sys_msgrcv_args ua;
4615 1.1 mrg ssize_t rt;
4616 1.1 mrg int error;
4617 1.1 mrg
4618 1.11 mrg NETBSD32TO64_UAP(msqid);
4619 1.11 mrg NETBSD32TOP_UAP(msgp, void);
4620 1.11 mrg NETBSD32TOX_UAP(msgsz, size_t);
4621 1.11 mrg NETBSD32TOX_UAP(msgtyp, long);
4622 1.11 mrg NETBSD32TO64_UAP(msgflg);
4623 1.1 mrg error = sys_msgrcv(p, &ua, (register_t *)&rt);
4624 1.10 mrg *(netbsd32_ssize_t *)retval = rt;
4625 1.1 mrg return (error);
4626 1.6 eeh #else
4627 1.6 eeh return (ENOSYS);
4628 1.6 eeh #endif
4629 1.1 mrg }
4630 1.20 eeh #endif /* SYSVMSG */
4631 1.20 eeh
4632 1.20 eeh #if defined(SYSVSHM)
4633 1.1 mrg
4634 1.1 mrg int
4635 1.19 eeh netbsd32_shmat(p, v, retval)
4636 1.1 mrg struct proc *p;
4637 1.1 mrg void *v;
4638 1.1 mrg register_t *retval;
4639 1.1 mrg {
4640 1.6 eeh #if 0
4641 1.19 eeh struct netbsd32_shmat_args /* {
4642 1.1 mrg syscallarg(int) shmid;
4643 1.10 mrg syscallarg(const netbsd32_voidp) shmaddr;
4644 1.1 mrg syscallarg(int) shmflg;
4645 1.1 mrg } */ *uap = v;
4646 1.1 mrg struct sys_shmat_args ua;
4647 1.1 mrg void *rt;
4648 1.1 mrg int error;
4649 1.1 mrg
4650 1.11 mrg NETBSD32TO64_UAP(shmid);
4651 1.11 mrg NETBSD32TOP_UAP(shmaddr, void);
4652 1.11 mrg NETBSD32TO64_UAP(shmflg);
4653 1.1 mrg error = sys_shmat(p, &ua, (register_t *)&rt);
4654 1.10 mrg *retval = (netbsd32_voidp)(u_long)rt;
4655 1.1 mrg return (error);
4656 1.6 eeh #else
4657 1.6 eeh return (ENOSYS);
4658 1.6 eeh #endif
4659 1.1 mrg }
4660 1.1 mrg
4661 1.1 mrg int
4662 1.20 eeh netbsd32___shmctl13(p, v, retval)
4663 1.1 mrg struct proc *p;
4664 1.1 mrg void *v;
4665 1.1 mrg register_t *retval;
4666 1.1 mrg {
4667 1.6 eeh #if 0
4668 1.19 eeh struct netbsd32_shmctl_args /* {
4669 1.1 mrg syscallarg(int) shmid;
4670 1.1 mrg syscallarg(int) cmd;
4671 1.10 mrg syscallarg(netbsd32_shmid_dsp_t) buf;
4672 1.1 mrg } */ *uap = v;
4673 1.1 mrg struct sys_shmctl_args ua;
4674 1.1 mrg struct shmid_ds ds;
4675 1.10 mrg struct netbsd32_shmid_ds *ds32p;
4676 1.1 mrg int error;
4677 1.1 mrg
4678 1.11 mrg NETBSD32TO64_UAP(shmid);
4679 1.11 mrg NETBSD32TO64_UAP(cmd);
4680 1.10 mrg ds32p = (struct netbsd32_shmid_ds *)(u_long)SCARG(uap, buf);
4681 1.1 mrg if (ds32p) {
4682 1.1 mrg SCARG(&ua, buf) = NULL;
4683 1.10 mrg netbsd32_to_shmid_ds(ds32p, &ds);
4684 1.1 mrg } else
4685 1.1 mrg SCARG(&ua, buf) = NULL;
4686 1.1 mrg error = sys_shmctl(p, &ua, retval);
4687 1.1 mrg if (error)
4688 1.1 mrg return (error);
4689 1.1 mrg
4690 1.1 mrg if (ds32p)
4691 1.10 mrg netbsd32_from_shmid_ds(&ds, ds32p);
4692 1.1 mrg return (0);
4693 1.6 eeh #else
4694 1.6 eeh return (ENOSYS);
4695 1.6 eeh #endif
4696 1.1 mrg }
4697 1.1 mrg
4698 1.1 mrg int
4699 1.19 eeh netbsd32_shmdt(p, v, retval)
4700 1.1 mrg struct proc *p;
4701 1.1 mrg void *v;
4702 1.1 mrg register_t *retval;
4703 1.1 mrg {
4704 1.6 eeh #if 0
4705 1.19 eeh struct netbsd32_shmdt_args /* {
4706 1.10 mrg syscallarg(const netbsd32_voidp) shmaddr;
4707 1.1 mrg } */ *uap = v;
4708 1.1 mrg struct sys_shmdt_args ua;
4709 1.1 mrg
4710 1.11 mrg NETBSD32TOP_UAP(shmaddr, const char);
4711 1.1 mrg return (sys_shmdt(p, &ua, retval));
4712 1.6 eeh #else
4713 1.6 eeh return (ENOSYS);
4714 1.6 eeh #endif
4715 1.1 mrg }
4716 1.1 mrg
4717 1.1 mrg int
4718 1.19 eeh netbsd32_shmget(p, v, retval)
4719 1.1 mrg struct proc *p;
4720 1.1 mrg void *v;
4721 1.1 mrg register_t *retval;
4722 1.1 mrg {
4723 1.6 eeh #if 0
4724 1.19 eeh struct netbsd32_shmget_args /* {
4725 1.10 mrg syscallarg(netbsd32_key_t) key;
4726 1.10 mrg syscallarg(netbsd32_size_t) size;
4727 1.1 mrg syscallarg(int) shmflg;
4728 1.1 mrg } */ *uap = v;
4729 1.1 mrg struct sys_shmget_args ua;
4730 1.1 mrg
4731 1.11 mrg NETBSD32TOX_UAP(key, key_t)
4732 1.11 mrg NETBSD32TOX_UAP(size, size_t)
4733 1.11 mrg NETBSD32TO64_UAP(shmflg);
4734 1.1 mrg return (sys_shmget(p, &ua, retval));
4735 1.6 eeh #else
4736 1.6 eeh return (ENOSYS);
4737 1.6 eeh #endif
4738 1.1 mrg }
4739 1.20 eeh #endif /* SYSVSHM */
4740 1.1 mrg
4741 1.1 mrg int
4742 1.19 eeh netbsd32_clock_gettime(p, v, retval)
4743 1.1 mrg struct proc *p;
4744 1.1 mrg void *v;
4745 1.1 mrg register_t *retval;
4746 1.1 mrg {
4747 1.19 eeh struct netbsd32_clock_gettime_args /* {
4748 1.10 mrg syscallarg(netbsd32_clockid_t) clock_id;
4749 1.10 mrg syscallarg(netbsd32_timespecp_t) tp;
4750 1.1 mrg } */ *uap = v;
4751 1.6 eeh clockid_t clock_id;
4752 1.6 eeh struct timeval atv;
4753 1.6 eeh struct timespec ats;
4754 1.10 mrg struct netbsd32_timespec ts32;
4755 1.6 eeh
4756 1.6 eeh clock_id = SCARG(uap, clock_id);
4757 1.6 eeh if (clock_id != CLOCK_REALTIME)
4758 1.6 eeh return (EINVAL);
4759 1.1 mrg
4760 1.6 eeh microtime(&atv);
4761 1.6 eeh TIMEVAL_TO_TIMESPEC(&atv,&ats);
4762 1.10 mrg netbsd32_from_timespec(&ats, &ts32);
4763 1.1 mrg
4764 1.6 eeh return copyout(&ts32, (caddr_t)(u_long)SCARG(uap, tp), sizeof(ts32));
4765 1.1 mrg }
4766 1.1 mrg
4767 1.1 mrg int
4768 1.19 eeh netbsd32_clock_settime(p, v, retval)
4769 1.1 mrg struct proc *p;
4770 1.1 mrg void *v;
4771 1.1 mrg register_t *retval;
4772 1.1 mrg {
4773 1.19 eeh struct netbsd32_clock_settime_args /* {
4774 1.10 mrg syscallarg(netbsd32_clockid_t) clock_id;
4775 1.10 mrg syscallarg(const netbsd32_timespecp_t) tp;
4776 1.1 mrg } */ *uap = v;
4777 1.10 mrg struct netbsd32_timespec ts32;
4778 1.6 eeh clockid_t clock_id;
4779 1.6 eeh struct timeval atv;
4780 1.6 eeh struct timespec ats;
4781 1.6 eeh int error;
4782 1.6 eeh
4783 1.6 eeh if ((error = suser(p->p_ucred, &p->p_acflag)) != 0)
4784 1.6 eeh return (error);
4785 1.6 eeh
4786 1.6 eeh clock_id = SCARG(uap, clock_id);
4787 1.6 eeh if (clock_id != CLOCK_REALTIME)
4788 1.6 eeh return (EINVAL);
4789 1.6 eeh
4790 1.6 eeh if ((error = copyin((caddr_t)(u_long)SCARG(uap, tp), &ts32, sizeof(ts32))) != 0)
4791 1.6 eeh return (error);
4792 1.6 eeh
4793 1.10 mrg netbsd32_to_timespec(&ts32, &ats);
4794 1.6 eeh TIMESPEC_TO_TIMEVAL(&atv,&ats);
4795 1.6 eeh if ((error = settime(&atv)))
4796 1.6 eeh return (error);
4797 1.1 mrg
4798 1.6 eeh return 0;
4799 1.1 mrg }
4800 1.1 mrg
4801 1.1 mrg int
4802 1.19 eeh netbsd32_clock_getres(p, v, retval)
4803 1.1 mrg struct proc *p;
4804 1.1 mrg void *v;
4805 1.1 mrg register_t *retval;
4806 1.1 mrg {
4807 1.19 eeh struct netbsd32_clock_getres_args /* {
4808 1.10 mrg syscallarg(netbsd32_clockid_t) clock_id;
4809 1.10 mrg syscallarg(netbsd32_timespecp_t) tp;
4810 1.1 mrg } */ *uap = v;
4811 1.10 mrg struct netbsd32_timespec ts32;
4812 1.6 eeh clockid_t clock_id;
4813 1.1 mrg struct timespec ts;
4814 1.6 eeh int error = 0;
4815 1.6 eeh
4816 1.6 eeh clock_id = SCARG(uap, clock_id);
4817 1.6 eeh if (clock_id != CLOCK_REALTIME)
4818 1.6 eeh return (EINVAL);
4819 1.6 eeh
4820 1.6 eeh if (SCARG(uap, tp)) {
4821 1.6 eeh ts.tv_sec = 0;
4822 1.6 eeh ts.tv_nsec = 1000000000 / hz;
4823 1.1 mrg
4824 1.10 mrg netbsd32_from_timespec(&ts, &ts32);
4825 1.6 eeh error = copyout(&ts, (caddr_t)(u_long)SCARG(uap, tp), sizeof(ts));
4826 1.6 eeh }
4827 1.1 mrg
4828 1.6 eeh return error;
4829 1.1 mrg }
4830 1.1 mrg
4831 1.1 mrg int
4832 1.19 eeh netbsd32_nanosleep(p, v, retval)
4833 1.1 mrg struct proc *p;
4834 1.1 mrg void *v;
4835 1.1 mrg register_t *retval;
4836 1.1 mrg {
4837 1.19 eeh struct netbsd32_nanosleep_args /* {
4838 1.10 mrg syscallarg(const netbsd32_timespecp_t) rqtp;
4839 1.10 mrg syscallarg(netbsd32_timespecp_t) rmtp;
4840 1.1 mrg } */ *uap = v;
4841 1.6 eeh static int nanowait;
4842 1.10 mrg struct netbsd32_timespec ts32;
4843 1.6 eeh struct timespec rqt;
4844 1.6 eeh struct timespec rmt;
4845 1.6 eeh struct timeval atv, utv;
4846 1.6 eeh int error, s, timo;
4847 1.6 eeh
4848 1.6 eeh error = copyin((caddr_t)(u_long)SCARG(uap, rqtp), (caddr_t)&ts32,
4849 1.6 eeh sizeof(ts32));
4850 1.1 mrg if (error)
4851 1.1 mrg return (error);
4852 1.1 mrg
4853 1.10 mrg netbsd32_to_timespec(&ts32, &rqt);
4854 1.6 eeh TIMESPEC_TO_TIMEVAL(&atv,&rqt)
4855 1.6 eeh if (itimerfix(&atv))
4856 1.6 eeh return (EINVAL);
4857 1.6 eeh
4858 1.6 eeh s = splclock();
4859 1.6 eeh timeradd(&atv,&time,&atv);
4860 1.6 eeh timo = hzto(&atv);
4861 1.6 eeh /*
4862 1.6 eeh * Avoid inadvertantly sleeping forever
4863 1.6 eeh */
4864 1.6 eeh if (timo == 0)
4865 1.6 eeh timo = 1;
4866 1.6 eeh splx(s);
4867 1.6 eeh
4868 1.6 eeh error = tsleep(&nanowait, PWAIT | PCATCH, "nanosleep", timo);
4869 1.6 eeh if (error == ERESTART)
4870 1.6 eeh error = EINTR;
4871 1.6 eeh if (error == EWOULDBLOCK)
4872 1.6 eeh error = 0;
4873 1.6 eeh
4874 1.6 eeh if (SCARG(uap, rmtp)) {
4875 1.6 eeh int error;
4876 1.6 eeh
4877 1.6 eeh s = splclock();
4878 1.6 eeh utv = time;
4879 1.6 eeh splx(s);
4880 1.6 eeh
4881 1.6 eeh timersub(&atv, &utv, &utv);
4882 1.6 eeh if (utv.tv_sec < 0)
4883 1.6 eeh timerclear(&utv);
4884 1.6 eeh
4885 1.6 eeh TIMEVAL_TO_TIMESPEC(&utv,&rmt);
4886 1.10 mrg netbsd32_from_timespec(&rmt, &ts32);
4887 1.6 eeh error = copyout((caddr_t)&ts32, (caddr_t)(u_long)SCARG(uap,rmtp),
4888 1.6 eeh sizeof(ts32));
4889 1.6 eeh if (error)
4890 1.6 eeh return (error);
4891 1.6 eeh }
4892 1.6 eeh
4893 1.6 eeh return error;
4894 1.6 eeh }
4895 1.6 eeh
4896 1.6 eeh int
4897 1.19 eeh netbsd32_fdatasync(p, v, retval)
4898 1.6 eeh struct proc *p;
4899 1.6 eeh void *v;
4900 1.6 eeh register_t *retval;
4901 1.6 eeh {
4902 1.19 eeh struct netbsd32_fdatasync_args /* {
4903 1.6 eeh syscallarg(int) fd;
4904 1.6 eeh } */ *uap = v;
4905 1.6 eeh struct sys_fdatasync_args ua;
4906 1.6 eeh
4907 1.11 mrg NETBSD32TO64_UAP(fd);
4908 1.6 eeh
4909 1.6 eeh return (sys_fdatasync(p, &ua, retval));
4910 1.1 mrg }
4911 1.1 mrg
4912 1.1 mrg int
4913 1.19 eeh netbsd32___posix_rename(p, v, retval)
4914 1.1 mrg struct proc *p;
4915 1.1 mrg void *v;
4916 1.1 mrg register_t *retval;
4917 1.1 mrg {
4918 1.19 eeh struct netbsd32___posix_rename_args /* {
4919 1.10 mrg syscallarg(const netbsd32_charp) from;
4920 1.10 mrg syscallarg(const netbsd32_charp) to;
4921 1.1 mrg } */ *uap = v;
4922 1.1 mrg struct sys___posix_rename_args ua;
4923 1.1 mrg
4924 1.20 eeh NETBSD32TOP_UAP(from, const char);
4925 1.20 eeh NETBSD32TOP_UAP(to, const char);
4926 1.6 eeh
4927 1.1 mrg return (sys___posix_rename(p, &ua, retval));
4928 1.1 mrg }
4929 1.1 mrg
4930 1.1 mrg int
4931 1.19 eeh netbsd32_swapctl(p, v, retval)
4932 1.1 mrg struct proc *p;
4933 1.1 mrg void *v;
4934 1.1 mrg register_t *retval;
4935 1.1 mrg {
4936 1.19 eeh struct netbsd32_swapctl_args /* {
4937 1.1 mrg syscallarg(int) cmd;
4938 1.10 mrg syscallarg(const netbsd32_voidp) arg;
4939 1.1 mrg syscallarg(int) misc;
4940 1.1 mrg } */ *uap = v;
4941 1.1 mrg struct sys_swapctl_args ua;
4942 1.1 mrg
4943 1.11 mrg NETBSD32TO64_UAP(cmd);
4944 1.11 mrg NETBSD32TOP_UAP(arg, const void);
4945 1.11 mrg NETBSD32TO64_UAP(misc);
4946 1.1 mrg return (sys_swapctl(p, &ua, retval));
4947 1.1 mrg }
4948 1.1 mrg
4949 1.1 mrg int
4950 1.19 eeh netbsd32_getdents(p, v, retval)
4951 1.1 mrg struct proc *p;
4952 1.1 mrg void *v;
4953 1.1 mrg register_t *retval;
4954 1.1 mrg {
4955 1.19 eeh struct netbsd32_getdents_args /* {
4956 1.1 mrg syscallarg(int) fd;
4957 1.10 mrg syscallarg(netbsd32_charp) buf;
4958 1.10 mrg syscallarg(netbsd32_size_t) count;
4959 1.1 mrg } */ *uap = v;
4960 1.6 eeh struct file *fp;
4961 1.6 eeh int error, done;
4962 1.1 mrg
4963 1.12 thorpej /* getvnode() will use the descriptor for us */
4964 1.6 eeh if ((error = getvnode(p->p_fd, SCARG(uap, fd), &fp)) != 0)
4965 1.6 eeh return (error);
4966 1.12 thorpej if ((fp->f_flag & FREAD) == 0) {
4967 1.12 thorpej error = EBADF;
4968 1.12 thorpej goto out;
4969 1.12 thorpej }
4970 1.6 eeh error = vn_readdir(fp, (caddr_t)(u_long)SCARG(uap, buf), UIO_USERSPACE,
4971 1.6 eeh SCARG(uap, count), &done, p, 0, 0);
4972 1.6 eeh *retval = done;
4973 1.12 thorpej out:
4974 1.19 eeh FILE_UNUSE(fp, p);
4975 1.6 eeh return (error);
4976 1.1 mrg }
4977 1.1 mrg
4978 1.6 eeh
4979 1.1 mrg int
4980 1.19 eeh netbsd32_minherit(p, v, retval)
4981 1.1 mrg struct proc *p;
4982 1.1 mrg void *v;
4983 1.1 mrg register_t *retval;
4984 1.1 mrg {
4985 1.19 eeh struct netbsd32_minherit_args /* {
4986 1.10 mrg syscallarg(netbsd32_voidp) addr;
4987 1.10 mrg syscallarg(netbsd32_size_t) len;
4988 1.1 mrg syscallarg(int) inherit;
4989 1.1 mrg } */ *uap = v;
4990 1.1 mrg struct sys_minherit_args ua;
4991 1.1 mrg
4992 1.11 mrg NETBSD32TOP_UAP(addr, void);
4993 1.11 mrg NETBSD32TOX_UAP(len, size_t);
4994 1.11 mrg NETBSD32TO64_UAP(inherit);
4995 1.1 mrg return (sys_minherit(p, &ua, retval));
4996 1.1 mrg }
4997 1.1 mrg
4998 1.1 mrg int
4999 1.19 eeh netbsd32_lchmod(p, v, retval)
5000 1.1 mrg struct proc *p;
5001 1.1 mrg void *v;
5002 1.1 mrg register_t *retval;
5003 1.1 mrg {
5004 1.19 eeh struct netbsd32_lchmod_args /* {
5005 1.10 mrg syscallarg(const netbsd32_charp) path;
5006 1.1 mrg syscallarg(mode_t) mode;
5007 1.1 mrg } */ *uap = v;
5008 1.1 mrg struct sys_lchmod_args ua;
5009 1.1 mrg
5010 1.11 mrg NETBSD32TOP_UAP(path, const char);
5011 1.11 mrg NETBSD32TO64_UAP(mode);
5012 1.1 mrg return (sys_lchmod(p, &ua, retval));
5013 1.1 mrg }
5014 1.1 mrg
5015 1.1 mrg int
5016 1.19 eeh netbsd32_lchown(p, v, retval)
5017 1.1 mrg struct proc *p;
5018 1.1 mrg void *v;
5019 1.1 mrg register_t *retval;
5020 1.1 mrg {
5021 1.19 eeh struct netbsd32_lchown_args /* {
5022 1.10 mrg syscallarg(const netbsd32_charp) path;
5023 1.1 mrg syscallarg(uid_t) uid;
5024 1.1 mrg syscallarg(gid_t) gid;
5025 1.1 mrg } */ *uap = v;
5026 1.1 mrg struct sys_lchown_args ua;
5027 1.1 mrg
5028 1.11 mrg NETBSD32TOP_UAP(path, const char);
5029 1.11 mrg NETBSD32TO64_UAP(uid);
5030 1.11 mrg NETBSD32TO64_UAP(gid);
5031 1.1 mrg return (sys_lchown(p, &ua, retval));
5032 1.1 mrg }
5033 1.1 mrg
5034 1.1 mrg int
5035 1.19 eeh netbsd32_lutimes(p, v, retval)
5036 1.1 mrg struct proc *p;
5037 1.1 mrg void *v;
5038 1.1 mrg register_t *retval;
5039 1.1 mrg {
5040 1.19 eeh struct netbsd32_lutimes_args /* {
5041 1.10 mrg syscallarg(const netbsd32_charp) path;
5042 1.10 mrg syscallarg(const netbsd32_timevalp_t) tptr;
5043 1.1 mrg } */ *uap = v;
5044 1.6 eeh int error;
5045 1.6 eeh struct nameidata nd;
5046 1.1 mrg
5047 1.6 eeh NDINIT(&nd, LOOKUP, NOFOLLOW, UIO_USERSPACE, (caddr_t)(u_long)SCARG(uap, path), p);
5048 1.6 eeh if ((error = namei(&nd)) != 0)
5049 1.6 eeh return (error);
5050 1.6 eeh
5051 1.6 eeh error = change_utimes32(nd.ni_vp, (struct timeval *)(u_long)SCARG(uap, tptr), p);
5052 1.6 eeh
5053 1.6 eeh vrele(nd.ni_vp);
5054 1.6 eeh return (error);
5055 1.1 mrg }
5056 1.1 mrg
5057 1.6 eeh
5058 1.1 mrg int
5059 1.19 eeh netbsd32___msync13(p, v, retval)
5060 1.1 mrg struct proc *p;
5061 1.1 mrg void *v;
5062 1.1 mrg register_t *retval;
5063 1.1 mrg {
5064 1.19 eeh struct netbsd32___msync13_args /* {
5065 1.10 mrg syscallarg(netbsd32_voidp) addr;
5066 1.10 mrg syscallarg(netbsd32_size_t) len;
5067 1.1 mrg syscallarg(int) flags;
5068 1.1 mrg } */ *uap = v;
5069 1.1 mrg struct sys___msync13_args ua;
5070 1.1 mrg
5071 1.11 mrg NETBSD32TOP_UAP(addr, void);
5072 1.11 mrg NETBSD32TOX_UAP(len, size_t);
5073 1.11 mrg NETBSD32TO64_UAP(flags);
5074 1.1 mrg return (sys___msync13(p, &ua, retval));
5075 1.1 mrg }
5076 1.1 mrg
5077 1.1 mrg int
5078 1.19 eeh netbsd32___stat13(p, v, retval)
5079 1.1 mrg struct proc *p;
5080 1.1 mrg void *v;
5081 1.1 mrg register_t *retval;
5082 1.1 mrg {
5083 1.19 eeh struct netbsd32___stat13_args /* {
5084 1.10 mrg syscallarg(const netbsd32_charp) path;
5085 1.10 mrg syscallarg(netbsd32_statp_t) ub;
5086 1.1 mrg } */ *uap = v;
5087 1.10 mrg struct netbsd32_stat sb32;
5088 1.1 mrg struct stat sb;
5089 1.1 mrg int error;
5090 1.6 eeh struct nameidata nd;
5091 1.1 mrg
5092 1.6 eeh NDINIT(&nd, LOOKUP, FOLLOW | LOCKLEAF, UIO_USERSPACE,
5093 1.6 eeh (caddr_t)(u_long)SCARG(uap, path), p);
5094 1.6 eeh if ((error = namei(&nd)) != 0)
5095 1.6 eeh return (error);
5096 1.6 eeh error = vn_stat(nd.ni_vp, &sb, p);
5097 1.6 eeh vput(nd.ni_vp);
5098 1.1 mrg if (error)
5099 1.1 mrg return (error);
5100 1.10 mrg netbsd32_from___stat13(&sb, &sb32);
5101 1.6 eeh error = copyout(&sb32, (caddr_t)(u_long)SCARG(uap, ub), sizeof(sb32));
5102 1.6 eeh return (error);
5103 1.1 mrg }
5104 1.1 mrg
5105 1.1 mrg int
5106 1.19 eeh netbsd32___fstat13(p, v, retval)
5107 1.1 mrg struct proc *p;
5108 1.1 mrg void *v;
5109 1.1 mrg register_t *retval;
5110 1.1 mrg {
5111 1.19 eeh struct netbsd32___fstat13_args /* {
5112 1.1 mrg syscallarg(int) fd;
5113 1.10 mrg syscallarg(netbsd32_statp_t) sb;
5114 1.1 mrg } */ *uap = v;
5115 1.6 eeh int fd = SCARG(uap, fd);
5116 1.6 eeh register struct filedesc *fdp = p->p_fd;
5117 1.6 eeh register struct file *fp;
5118 1.10 mrg struct netbsd32_stat sb32;
5119 1.6 eeh struct stat ub;
5120 1.6 eeh int error = 0;
5121 1.6 eeh
5122 1.6 eeh if ((u_int)fd >= fdp->fd_nfiles ||
5123 1.6 eeh (fp = fdp->fd_ofiles[fd]) == NULL)
5124 1.6 eeh return (EBADF);
5125 1.6 eeh switch (fp->f_type) {
5126 1.6 eeh
5127 1.6 eeh case DTYPE_VNODE:
5128 1.6 eeh error = vn_stat((struct vnode *)fp->f_data, &ub, p);
5129 1.6 eeh break;
5130 1.6 eeh
5131 1.6 eeh case DTYPE_SOCKET:
5132 1.6 eeh error = soo_stat((struct socket *)fp->f_data, &ub);
5133 1.6 eeh break;
5134 1.6 eeh
5135 1.6 eeh default:
5136 1.6 eeh panic("fstat");
5137 1.6 eeh /*NOTREACHED*/
5138 1.6 eeh }
5139 1.6 eeh if (error == 0) {
5140 1.10 mrg netbsd32_from___stat13(&ub, &sb32);
5141 1.6 eeh error = copyout(&sb32, (caddr_t)(u_long)SCARG(uap, sb), sizeof(sb32));
5142 1.6 eeh }
5143 1.6 eeh return (error);
5144 1.1 mrg }
5145 1.1 mrg
5146 1.1 mrg int
5147 1.19 eeh netbsd32___lstat13(p, v, retval)
5148 1.1 mrg struct proc *p;
5149 1.1 mrg void *v;
5150 1.1 mrg register_t *retval;
5151 1.1 mrg {
5152 1.19 eeh struct netbsd32___lstat13_args /* {
5153 1.10 mrg syscallarg(const netbsd32_charp) path;
5154 1.10 mrg syscallarg(netbsd32_statp_t) ub;
5155 1.1 mrg } */ *uap = v;
5156 1.10 mrg struct netbsd32_stat sb32;
5157 1.1 mrg struct stat sb;
5158 1.1 mrg int error;
5159 1.6 eeh struct nameidata nd;
5160 1.1 mrg
5161 1.6 eeh NDINIT(&nd, LOOKUP, NOFOLLOW | LOCKLEAF, UIO_USERSPACE,
5162 1.6 eeh (caddr_t)(u_long)SCARG(uap, path), p);
5163 1.6 eeh if ((error = namei(&nd)) != 0)
5164 1.6 eeh return (error);
5165 1.6 eeh error = vn_stat(nd.ni_vp, &sb, p);
5166 1.6 eeh vput(nd.ni_vp);
5167 1.1 mrg if (error)
5168 1.1 mrg return (error);
5169 1.10 mrg netbsd32_from___stat13(&sb, &sb32);
5170 1.6 eeh error = copyout(&sb32, (caddr_t)(u_long)SCARG(uap, ub), sizeof(sb32));
5171 1.6 eeh return (error);
5172 1.1 mrg }
5173 1.1 mrg
5174 1.1 mrg int
5175 1.19 eeh netbsd32___sigaltstack14(p, v, retval)
5176 1.1 mrg struct proc *p;
5177 1.1 mrg void *v;
5178 1.1 mrg register_t *retval;
5179 1.1 mrg {
5180 1.19 eeh struct netbsd32___sigaltstack14_args /* {
5181 1.10 mrg syscallarg(const netbsd32_sigaltstackp_t) nss;
5182 1.10 mrg syscallarg(netbsd32_sigaltstackp_t) oss;
5183 1.1 mrg } */ *uap = v;
5184 1.10 mrg struct netbsd32_sigaltstack s32;
5185 1.1 mrg struct sigaltstack nss, oss;
5186 1.1 mrg int error;
5187 1.1 mrg
5188 1.6 eeh if (SCARG(uap, nss)) {
5189 1.6 eeh error = copyin((caddr_t)(u_long)SCARG(uap, nss), &s32, sizeof(s32));
5190 1.6 eeh if (error)
5191 1.6 eeh return (error);
5192 1.6 eeh nss.ss_sp = (void *)(u_long)s32.ss_sp;
5193 1.6 eeh nss.ss_size = (size_t)s32.ss_size;
5194 1.6 eeh nss.ss_flags = s32.ss_flags;
5195 1.6 eeh }
5196 1.6 eeh error = sigaltstack1(p,
5197 1.6 eeh SCARG(uap, nss) ? &nss : 0, SCARG(uap, oss) ? &oss : 0);
5198 1.1 mrg if (error)
5199 1.1 mrg return (error);
5200 1.6 eeh if (SCARG(uap, oss)) {
5201 1.10 mrg s32.ss_sp = (netbsd32_voidp)(u_long)oss.ss_sp;
5202 1.10 mrg s32.ss_size = (netbsd32_size_t)oss.ss_size;
5203 1.6 eeh s32.ss_flags = oss.ss_flags;
5204 1.6 eeh error = copyout(&s32, (caddr_t)(u_long)SCARG(uap, oss), sizeof(s32));
5205 1.6 eeh if (error)
5206 1.6 eeh return (error);
5207 1.1 mrg }
5208 1.1 mrg return (0);
5209 1.1 mrg }
5210 1.1 mrg
5211 1.1 mrg int
5212 1.19 eeh netbsd32___posix_chown(p, v, retval)
5213 1.1 mrg struct proc *p;
5214 1.1 mrg void *v;
5215 1.1 mrg register_t *retval;
5216 1.1 mrg {
5217 1.19 eeh struct netbsd32___posix_chown_args /* {
5218 1.10 mrg syscallarg(const netbsd32_charp) path;
5219 1.1 mrg syscallarg(uid_t) uid;
5220 1.1 mrg syscallarg(gid_t) gid;
5221 1.1 mrg } */ *uap = v;
5222 1.1 mrg struct sys___posix_chown_args ua;
5223 1.1 mrg
5224 1.11 mrg NETBSD32TOP_UAP(path, const char);
5225 1.11 mrg NETBSD32TO64_UAP(uid);
5226 1.11 mrg NETBSD32TO64_UAP(gid);
5227 1.1 mrg return (sys___posix_chown(p, &ua, retval));
5228 1.1 mrg }
5229 1.1 mrg
5230 1.1 mrg int
5231 1.19 eeh netbsd32___posix_fchown(p, v, retval)
5232 1.6 eeh struct proc *p;
5233 1.6 eeh void *v;
5234 1.6 eeh register_t *retval;
5235 1.6 eeh {
5236 1.19 eeh struct netbsd32___posix_fchown_args /* {
5237 1.6 eeh syscallarg(int) fd;
5238 1.6 eeh syscallarg(uid_t) uid;
5239 1.6 eeh syscallarg(gid_t) gid;
5240 1.6 eeh } */ *uap = v;
5241 1.6 eeh struct sys___posix_fchown_args ua;
5242 1.6 eeh
5243 1.11 mrg NETBSD32TO64_UAP(fd);
5244 1.11 mrg NETBSD32TO64_UAP(uid);
5245 1.11 mrg NETBSD32TO64_UAP(gid);
5246 1.6 eeh return (sys___posix_fchown(p, &ua, retval));
5247 1.6 eeh }
5248 1.6 eeh
5249 1.6 eeh int
5250 1.19 eeh netbsd32___posix_lchown(p, v, retval)
5251 1.1 mrg struct proc *p;
5252 1.1 mrg void *v;
5253 1.1 mrg register_t *retval;
5254 1.1 mrg {
5255 1.19 eeh struct netbsd32___posix_lchown_args /* {
5256 1.10 mrg syscallarg(const netbsd32_charp) path;
5257 1.1 mrg syscallarg(uid_t) uid;
5258 1.1 mrg syscallarg(gid_t) gid;
5259 1.1 mrg } */ *uap = v;
5260 1.1 mrg struct sys___posix_lchown_args ua;
5261 1.1 mrg
5262 1.11 mrg NETBSD32TOP_UAP(path, const char);
5263 1.11 mrg NETBSD32TO64_UAP(uid);
5264 1.11 mrg NETBSD32TO64_UAP(gid);
5265 1.1 mrg return (sys___posix_lchown(p, &ua, retval));
5266 1.1 mrg }
5267 1.1 mrg
5268 1.1 mrg int
5269 1.19 eeh netbsd32_getsid(p, v, retval)
5270 1.6 eeh struct proc *p;
5271 1.6 eeh void *v;
5272 1.6 eeh register_t *retval;
5273 1.6 eeh {
5274 1.19 eeh struct netbsd32_getsid_args /* {
5275 1.6 eeh syscallarg(pid_t) pid;
5276 1.6 eeh } */ *uap = v;
5277 1.6 eeh struct sys_getsid_args ua;
5278 1.6 eeh
5279 1.11 mrg NETBSD32TO64_UAP(pid);
5280 1.6 eeh return (sys_getsid(p, &ua, retval));
5281 1.6 eeh }
5282 1.6 eeh
5283 1.6 eeh int
5284 1.19 eeh netbsd32_fktrace(p, v, retval)
5285 1.6 eeh struct proc *p;
5286 1.6 eeh void *v;
5287 1.6 eeh register_t *retval;
5288 1.6 eeh {
5289 1.19 eeh struct netbsd32_fktrace_args /* {
5290 1.6 eeh syscallarg(const int) fd;
5291 1.6 eeh syscallarg(int) ops;
5292 1.6 eeh syscallarg(int) facs;
5293 1.6 eeh syscallarg(int) pid;
5294 1.6 eeh } */ *uap = v;
5295 1.6 eeh struct sys_fktrace_args ua;
5296 1.6 eeh
5297 1.20 eeh NETBSD32TOX_UAP(fd, const int);
5298 1.11 mrg NETBSD32TO64_UAP(ops);
5299 1.11 mrg NETBSD32TO64_UAP(facs);
5300 1.11 mrg NETBSD32TO64_UAP(pid);
5301 1.6 eeh return (sys_fktrace(p, &ua, retval));
5302 1.6 eeh }
5303 1.6 eeh
5304 1.6 eeh int
5305 1.19 eeh netbsd32_preadv(p, v, retval)
5306 1.1 mrg struct proc *p;
5307 1.1 mrg void *v;
5308 1.1 mrg register_t *retval;
5309 1.1 mrg {
5310 1.19 eeh struct netbsd32_preadv_args /* {
5311 1.1 mrg syscallarg(int) fd;
5312 1.10 mrg syscallarg(const netbsd32_iovecp_t) iovp;
5313 1.1 mrg syscallarg(int) iovcnt;
5314 1.1 mrg syscallarg(int) pad;
5315 1.1 mrg syscallarg(off_t) offset;
5316 1.1 mrg } */ *uap = v;
5317 1.6 eeh struct filedesc *fdp = p->p_fd;
5318 1.6 eeh struct file *fp;
5319 1.6 eeh struct vnode *vp;
5320 1.6 eeh off_t offset;
5321 1.6 eeh int error, fd = SCARG(uap, fd);
5322 1.6 eeh
5323 1.6 eeh if ((u_int)fd >= fdp->fd_nfiles ||
5324 1.6 eeh (fp = fdp->fd_ofiles[fd]) == NULL ||
5325 1.6 eeh (fp->f_flag & FREAD) == 0)
5326 1.6 eeh return (EBADF);
5327 1.6 eeh
5328 1.6 eeh vp = (struct vnode *)fp->f_data;
5329 1.6 eeh if (fp->f_type != DTYPE_VNODE
5330 1.6 eeh || vp->v_type == VFIFO)
5331 1.6 eeh return (ESPIPE);
5332 1.6 eeh
5333 1.6 eeh offset = SCARG(uap, offset);
5334 1.1 mrg
5335 1.6 eeh /*
5336 1.6 eeh * XXX This works because no file systems actually
5337 1.6 eeh * XXX take any action on the seek operation.
5338 1.6 eeh */
5339 1.6 eeh if ((error = VOP_SEEK(vp, fp->f_offset, offset, fp->f_cred)) != 0)
5340 1.6 eeh return (error);
5341 1.1 mrg
5342 1.10 mrg return (dofilereadv32(p, fd, fp, (struct netbsd32_iovec *)(u_long)SCARG(uap, iovp), SCARG(uap, iovcnt),
5343 1.6 eeh &offset, 0, retval));
5344 1.1 mrg }
5345 1.1 mrg
5346 1.1 mrg int
5347 1.19 eeh netbsd32_pwritev(p, v, retval)
5348 1.1 mrg struct proc *p;
5349 1.1 mrg void *v;
5350 1.1 mrg register_t *retval;
5351 1.1 mrg {
5352 1.19 eeh struct netbsd32_pwritev_args /* {
5353 1.1 mrg syscallarg(int) fd;
5354 1.10 mrg syscallarg(const netbsd32_iovecp_t) iovp;
5355 1.1 mrg syscallarg(int) iovcnt;
5356 1.1 mrg syscallarg(int) pad;
5357 1.1 mrg syscallarg(off_t) offset;
5358 1.1 mrg } */ *uap = v;
5359 1.6 eeh struct filedesc *fdp = p->p_fd;
5360 1.6 eeh struct file *fp;
5361 1.6 eeh struct vnode *vp;
5362 1.6 eeh off_t offset;
5363 1.6 eeh int error, fd = SCARG(uap, fd);
5364 1.6 eeh
5365 1.6 eeh if ((u_int)fd >= fdp->fd_nfiles ||
5366 1.6 eeh (fp = fdp->fd_ofiles[fd]) == NULL ||
5367 1.6 eeh (fp->f_flag & FWRITE) == 0)
5368 1.6 eeh return (EBADF);
5369 1.6 eeh
5370 1.6 eeh vp = (struct vnode *)fp->f_data;
5371 1.6 eeh if (fp->f_type != DTYPE_VNODE
5372 1.6 eeh || vp->v_type == VFIFO)
5373 1.6 eeh return (ESPIPE);
5374 1.6 eeh
5375 1.6 eeh offset = SCARG(uap, offset);
5376 1.6 eeh
5377 1.6 eeh /*
5378 1.6 eeh * XXX This works because no file systems actually
5379 1.6 eeh * XXX take any action on the seek operation.
5380 1.6 eeh */
5381 1.6 eeh if ((error = VOP_SEEK(vp, fp->f_offset, offset, fp->f_cred)) != 0)
5382 1.6 eeh return (error);
5383 1.6 eeh
5384 1.10 mrg return (dofilewritev32(p, fd, fp, (struct netbsd32_iovec *)(u_long)SCARG(uap, iovp), SCARG(uap, iovcnt),
5385 1.6 eeh &offset, 0, retval));
5386 1.6 eeh }
5387 1.6 eeh
5388 1.20 eeh /* ARGSUSED */
5389 1.6 eeh int
5390 1.20 eeh netbsd32___sigaction14(p, v, retval)
5391 1.20 eeh struct proc *p;
5392 1.6 eeh void *v;
5393 1.6 eeh register_t *retval;
5394 1.6 eeh {
5395 1.20 eeh register struct netbsd32___sigaction14_args /* {
5396 1.20 eeh syscallarg(int) signum;
5397 1.20 eeh syscallarg(const struct sigaction *) nsa;
5398 1.20 eeh syscallarg(struct sigaction *) osa;
5399 1.6 eeh } */ *uap = v;
5400 1.20 eeh struct netbsd32_sigaction sa32;
5401 1.20 eeh struct sigaction nsa, osa;
5402 1.1 mrg int error;
5403 1.1 mrg
5404 1.20 eeh if (SCARG(uap, nsa)) {
5405 1.20 eeh error = copyin((caddr_t)(u_long)SCARG(uap, nsa),
5406 1.20 eeh &sa32, sizeof(sa32));
5407 1.20 eeh if (error)
5408 1.20 eeh return (error);
5409 1.20 eeh nsa.sa_handler = (void *)(u_long)sa32.sa_handler;
5410 1.20 eeh nsa.sa_mask = sa32.sa_mask;
5411 1.20 eeh nsa.sa_flags = sa32.sa_flags;
5412 1.20 eeh }
5413 1.20 eeh error = sigaction1(p, SCARG(uap, signum),
5414 1.20 eeh SCARG(uap, nsa) ? &nsa : 0, SCARG(uap, osa) ? &osa : 0);
5415 1.6 eeh if (error)
5416 1.6 eeh return (error);
5417 1.20 eeh if (SCARG(uap, osa)) {
5418 1.20 eeh sa32.sa_handler = (netbsd32_voidp)(u_long)osa.sa_handler;
5419 1.20 eeh sa32.sa_mask = osa.sa_mask;
5420 1.20 eeh sa32.sa_flags = osa.sa_flags;
5421 1.20 eeh error = copyout(&sa32, (caddr_t)(u_long)SCARG(uap, osa), sizeof(sa32));
5422 1.20 eeh if (error)
5423 1.20 eeh return (error);
5424 1.20 eeh }
5425 1.6 eeh return (0);
5426 1.6 eeh }
5427 1.6 eeh
5428 1.20 eeh int netbsd32___sigpending14(p, v, retval)
5429 1.20 eeh struct proc *p;
5430 1.20 eeh void *v;
5431 1.20 eeh register_t *retval;
5432 1.20 eeh {
5433 1.20 eeh register struct netbsd32___sigpending14_args /* {
5434 1.20 eeh syscallarg(sigset_t *) set;
5435 1.20 eeh } */ *uap = v;
5436 1.20 eeh struct sys___sigpending14_args ua;
5437 1.20 eeh
5438 1.20 eeh NETBSD32TOP_UAP(set, sigset_t);
5439 1.20 eeh return (sys___sigpending14(p, &ua, retval));
5440 1.20 eeh }
5441 1.20 eeh
5442 1.20 eeh int netbsd32___sigprocmask14(p, v, retval)
5443 1.20 eeh struct proc *p;
5444 1.20 eeh void *v;
5445 1.20 eeh register_t *retval;
5446 1.20 eeh {
5447 1.20 eeh register struct netbsd32___sigprocmask14_args /* {
5448 1.20 eeh syscallarg(int) how;
5449 1.20 eeh syscallarg(const sigset_t *) set;
5450 1.20 eeh syscallarg(sigset_t *) oset;
5451 1.20 eeh } */ *uap = v;
5452 1.20 eeh struct sys___sigprocmask14_args ua;
5453 1.20 eeh
5454 1.20 eeh NETBSD32TO64_UAP(how);
5455 1.20 eeh NETBSD32TOP_UAP(set, sigset_t);
5456 1.20 eeh NETBSD32TOP_UAP(oset, sigset_t);
5457 1.20 eeh return (sys___sigprocmask14(p, &ua, retval));
5458 1.20 eeh }
5459 1.20 eeh
5460 1.20 eeh int netbsd32___sigsuspend14(p, v, retval)
5461 1.20 eeh struct proc *p;
5462 1.20 eeh void *v;
5463 1.20 eeh register_t *retval;
5464 1.20 eeh {
5465 1.20 eeh struct netbsd32___sigsuspend14_args /* {
5466 1.20 eeh syscallarg(const sigset_t *) set;
5467 1.20 eeh } */ *uap = v;
5468 1.20 eeh struct sys___sigsuspend14_args ua;
5469 1.20 eeh
5470 1.20 eeh NETBSD32TOP_UAP(set, sigset_t);
5471 1.20 eeh return (sys___sigsuspend14(p, &ua, retval));
5472 1.20 eeh };
5473 1.20 eeh
5474 1.20 eeh
5475 1.20 eeh /*
5476 1.20 eeh * Find pathname of process's current directory.
5477 1.20 eeh *
5478 1.20 eeh * Use vfs vnode-to-name reverse cache; if that fails, fall back
5479 1.20 eeh * to reading directory contents.
5480 1.20 eeh */
5481 1.20 eeh int
5482 1.20 eeh getcwd_common __P((struct vnode *, struct vnode *,
5483 1.20 eeh char **, char *, int, int, struct proc *));
5484 1.20 eeh
5485 1.20 eeh int netbsd32___getcwd(p, v, retval)
5486 1.20 eeh struct proc *p;
5487 1.20 eeh void *v;
5488 1.20 eeh register_t *retval;
5489 1.20 eeh {
5490 1.20 eeh register struct netbsd32___getcwd_args /* {
5491 1.20 eeh syscallarg(char *) bufp;
5492 1.20 eeh syscallarg(size_t) length;
5493 1.20 eeh } */ *uap = v;
5494 1.20 eeh
5495 1.20 eeh int error;
5496 1.20 eeh char *path;
5497 1.20 eeh char *bp, *bend;
5498 1.20 eeh int len = (int)SCARG(uap, length);
5499 1.20 eeh int lenused;
5500 1.20 eeh
5501 1.20 eeh if (len > MAXPATHLEN*4)
5502 1.20 eeh len = MAXPATHLEN*4;
5503 1.20 eeh else if (len < 2)
5504 1.20 eeh return ERANGE;
5505 1.20 eeh
5506 1.20 eeh path = (char *)malloc(len, M_TEMP, M_WAITOK);
5507 1.20 eeh if (!path)
5508 1.20 eeh return ENOMEM;
5509 1.20 eeh
5510 1.20 eeh bp = &path[len];
5511 1.20 eeh bend = bp;
5512 1.20 eeh *(--bp) = '\0';
5513 1.20 eeh
5514 1.20 eeh /*
5515 1.20 eeh * 5th argument here is "max number of vnodes to traverse".
5516 1.20 eeh * Since each entry takes up at least 2 bytes in the output buffer,
5517 1.20 eeh * limit it to N/2 vnodes for an N byte buffer.
5518 1.20 eeh */
5519 1.20 eeh #define GETCWD_CHECK_ACCESS 0x0001
5520 1.20 eeh error = getcwd_common (p->p_cwdi->cwdi_cdir, NULL, &bp, path, len/2,
5521 1.20 eeh GETCWD_CHECK_ACCESS, p);
5522 1.20 eeh
5523 1.20 eeh if (error)
5524 1.20 eeh goto out;
5525 1.20 eeh lenused = bend - bp;
5526 1.20 eeh *retval = lenused;
5527 1.20 eeh /* put the result into user buffer */
5528 1.20 eeh error = copyout(bp, (caddr_t)(u_long)SCARG(uap, bufp), lenused);
5529 1.20 eeh
5530 1.20 eeh out:
5531 1.20 eeh free(path, M_TEMP);
5532 1.20 eeh return error;
5533 1.20 eeh }
5534 1.20 eeh
5535 1.20 eeh int netbsd32_fchroot(p, v, retval)
5536 1.20 eeh struct proc *p;
5537 1.20 eeh void *v;
5538 1.20 eeh register_t *retval;
5539 1.20 eeh {
5540 1.20 eeh register struct netbsd32_fchroot_args /* {
5541 1.20 eeh syscallarg(int) fd;
5542 1.20 eeh } */ *uap = v;
5543 1.20 eeh struct sys_fchroot_args ua;
5544 1.20 eeh
5545 1.20 eeh NETBSD32TO64_UAP(fd);
5546 1.20 eeh return (sys_fchroot(p, &ua, retval));
5547 1.20 eeh }
5548 1.20 eeh
5549 1.20 eeh /*
5550 1.20 eeh * Open a file given a file handle.
5551 1.20 eeh *
5552 1.20 eeh * Check permissions, allocate an open file structure,
5553 1.20 eeh * and call the device open routine if any.
5554 1.20 eeh */
5555 1.6 eeh int
5556 1.20 eeh netbsd32_fhopen(p, v, retval)
5557 1.20 eeh struct proc *p;
5558 1.20 eeh void *v;
5559 1.20 eeh register_t *retval;
5560 1.20 eeh {
5561 1.20 eeh register struct netbsd32_fhopen_args /* {
5562 1.20 eeh syscallarg(const fhandle_t *) fhp;
5563 1.20 eeh syscallarg(int) flags;
5564 1.20 eeh } */ *uap = v;
5565 1.20 eeh struct sys_fhopen_args ua;
5566 1.20 eeh
5567 1.20 eeh NETBSD32TOP_UAP(fhp, fhandle_t);
5568 1.20 eeh NETBSD32TO64_UAP(flags);
5569 1.20 eeh return (sys_fhopen(p, &ua, retval));
5570 1.20 eeh }
5571 1.20 eeh
5572 1.20 eeh int netbsd32_fhstat(p, v, retval)
5573 1.20 eeh struct proc *p;
5574 1.20 eeh void *v;
5575 1.20 eeh register_t *retval;
5576 1.20 eeh {
5577 1.20 eeh register struct netbsd32_fhstat_args /* {
5578 1.20 eeh syscallarg(const netbsd32_fhandlep_t) fhp;
5579 1.20 eeh syscallarg(struct stat *) sb;
5580 1.20 eeh } */ *uap = v;
5581 1.20 eeh struct sys_fhstat_args ua;
5582 1.20 eeh
5583 1.20 eeh NETBSD32TOP_UAP(fhp, const fhandle_t);
5584 1.20 eeh NETBSD32TOP_UAP(sb, struct stat);
5585 1.20 eeh return (sys_fhstat(p, &ua, retval));
5586 1.20 eeh }
5587 1.20 eeh
5588 1.20 eeh int netbsd32_fhstatfs(p, v, retval)
5589 1.20 eeh struct proc *p;
5590 1.6 eeh void *v;
5591 1.6 eeh register_t *retval;
5592 1.6 eeh {
5593 1.20 eeh register struct netbsd32_fhstatfs_args /* {
5594 1.20 eeh syscallarg(const netbsd32_fhandlep_t) fhp;
5595 1.20 eeh syscallarg(struct statfs *) buf;
5596 1.6 eeh } */ *uap = v;
5597 1.20 eeh struct sys_fhstatfs_args ua;
5598 1.1 mrg
5599 1.20 eeh NETBSD32TOP_UAP(fhp, const fhandle_t);
5600 1.20 eeh NETBSD32TOP_UAP(buf, struct statfs);
5601 1.20 eeh return (sys_fhstatfs(p, &ua, retval));
5602 1.1 mrg }
5603