coda_vnops.c revision 1.25.2.2 1 1.1 rvb /*
2 1.3 rvb coda_create/vn_open
3 1.2 rvb remove/unlink
4 1.2 rvb link
5 1.2 rvb mkdir
6 1.2 rvb rmdir
7 1.2 rvb symlink
8 1.1 rvb */
9 1.25.2.2 thorpej /* $NetBSD: coda_vnops.c,v 1.25.2.2 2002/01/10 19:50:54 thorpej Exp $ */
10 1.1 rvb
11 1.2 rvb /*
12 1.2 rvb *
13 1.2 rvb * Coda: an Experimental Distributed File System
14 1.2 rvb * Release 3.1
15 1.2 rvb *
16 1.2 rvb * Copyright (c) 1987-1998 Carnegie Mellon University
17 1.2 rvb * All Rights Reserved
18 1.2 rvb *
19 1.2 rvb * Permission to use, copy, modify and distribute this software and its
20 1.2 rvb * documentation is hereby granted, provided that both the copyright
21 1.2 rvb * notice and this permission notice appear in all copies of the
22 1.2 rvb * software, derivative works or modified versions, and any portions
23 1.2 rvb * thereof, and that both notices appear in supporting documentation, and
24 1.2 rvb * that credit is given to Carnegie Mellon University in all documents
25 1.2 rvb * and publicity pertaining to direct or indirect use of this code or its
26 1.2 rvb * derivatives.
27 1.2 rvb *
28 1.2 rvb * CODA IS AN EXPERIMENTAL SOFTWARE SYSTEM AND IS KNOWN TO HAVE BUGS,
29 1.2 rvb * SOME OF WHICH MAY HAVE SERIOUS CONSEQUENCES. CARNEGIE MELLON ALLOWS
30 1.2 rvb * FREE USE OF THIS SOFTWARE IN ITS "AS IS" CONDITION. CARNEGIE MELLON
31 1.2 rvb * DISCLAIMS ANY LIABILITY OF ANY KIND FOR ANY DAMAGES WHATSOEVER
32 1.2 rvb * RESULTING DIRECTLY OR INDIRECTLY FROM THE USE OF THIS SOFTWARE OR OF
33 1.2 rvb * ANY DERIVATIVE WORK.
34 1.2 rvb *
35 1.2 rvb * Carnegie Mellon encourages users of this software to return any
36 1.2 rvb * improvements or extensions that they make, and to grant Carnegie
37 1.2 rvb * Mellon the rights to redistribute these changes without encumbrance.
38 1.2 rvb *
39 1.4 rvb * @(#) coda/coda_vnops.c,v 1.1.1.1 1998/08/29 21:26:46 rvb Exp $
40 1.2 rvb */
41 1.1 rvb
42 1.1 rvb /*
43 1.1 rvb * Mach Operating System
44 1.1 rvb * Copyright (c) 1990 Carnegie-Mellon University
45 1.1 rvb * Copyright (c) 1989 Carnegie-Mellon University
46 1.1 rvb * All rights reserved. The CMU software License Agreement specifies
47 1.1 rvb * the terms and conditions for use and redistribution.
48 1.1 rvb */
49 1.1 rvb
50 1.1 rvb /*
51 1.1 rvb * This code was written for the Coda file system at Carnegie Mellon
52 1.1 rvb * University. Contributers include David Steere, James Kistler, and
53 1.1 rvb * M. Satyanarayanan.
54 1.1 rvb */
55 1.1 rvb
56 1.25.2.2 thorpej #include <sys/cdefs.h>
57 1.25.2.2 thorpej __KERNEL_RCSID(0, "$NetBSD: coda_vnops.c,v 1.25.2.2 2002/01/10 19:50:54 thorpej Exp $");
58 1.25.2.2 thorpej
59 1.1 rvb #include <sys/param.h>
60 1.1 rvb #include <sys/systm.h>
61 1.1 rvb #include <sys/malloc.h>
62 1.1 rvb #include <sys/errno.h>
63 1.1 rvb #include <sys/acct.h>
64 1.1 rvb #include <sys/file.h>
65 1.1 rvb #include <sys/uio.h>
66 1.1 rvb #include <sys/namei.h>
67 1.1 rvb #include <sys/ioctl.h>
68 1.1 rvb #include <sys/mount.h>
69 1.1 rvb #include <sys/proc.h>
70 1.1 rvb #include <sys/select.h>
71 1.1 rvb #include <sys/user.h>
72 1.1 rvb #include <miscfs/genfs/genfs.h>
73 1.1 rvb
74 1.4 rvb #include <coda/coda.h>
75 1.4 rvb #include <coda/cnode.h>
76 1.4 rvb #include <coda/coda_vnops.h>
77 1.4 rvb #include <coda/coda_venus.h>
78 1.4 rvb #include <coda/coda_opstats.h>
79 1.4 rvb #include <coda/coda_subr.h>
80 1.4 rvb #include <coda/coda_namecache.h>
81 1.4 rvb #include <coda/coda_pioctl.h>
82 1.1 rvb
83 1.1 rvb /*
84 1.1 rvb * These flags select various performance enhancements.
85 1.1 rvb */
86 1.3 rvb int coda_attr_cache = 1; /* Set to cache attributes in the kernel */
87 1.3 rvb int coda_symlink_cache = 1; /* Set to cache symbolic link information */
88 1.3 rvb int coda_access_cache = 1; /* Set to handle some access checks directly */
89 1.1 rvb
90 1.1 rvb /* structure to keep track of vfs calls */
91 1.1 rvb
92 1.3 rvb struct coda_op_stats coda_vnodeopstats[CODA_VNODEOPS_SIZE];
93 1.1 rvb
94 1.3 rvb #define MARK_ENTRY(op) (coda_vnodeopstats[op].entries++)
95 1.3 rvb #define MARK_INT_SAT(op) (coda_vnodeopstats[op].sat_intrn++)
96 1.3 rvb #define MARK_INT_FAIL(op) (coda_vnodeopstats[op].unsat_intrn++)
97 1.3 rvb #define MARK_INT_GEN(op) (coda_vnodeopstats[op].gen_intrn++)
98 1.1 rvb
99 1.1 rvb /* What we are delaying for in printf */
100 1.3 rvb int coda_printf_delay = 0; /* in microseconds */
101 1.3 rvb int coda_vnop_print_entry = 0;
102 1.3 rvb static int coda_lockdebug = 0;
103 1.1 rvb
104 1.1 rvb /* Definition of the vfs operation vector */
105 1.1 rvb
106 1.1 rvb /*
107 1.1 rvb * Some NetBSD details:
108 1.1 rvb *
109 1.3 rvb * coda_start is called at the end of the mount syscall.
110 1.3 rvb * coda_init is called at boot time.
111 1.1 rvb */
112 1.1 rvb
113 1.25.2.2 thorpej #define ENTRY if(coda_vnop_print_entry) myprintf(("Entered %s\n",__func__))
114 1.1 rvb
115 1.1 rvb /* Definition of the vnode operation vector */
116 1.1 rvb
117 1.23 jdolecek const struct vnodeopv_entry_desc coda_vnodeop_entries[] = {
118 1.3 rvb { &vop_default_desc, coda_vop_error },
119 1.3 rvb { &vop_lookup_desc, coda_lookup }, /* lookup */
120 1.3 rvb { &vop_create_desc, coda_create }, /* create */
121 1.5 rvb { &vop_mknod_desc, coda_vop_error }, /* mknod */
122 1.3 rvb { &vop_open_desc, coda_open }, /* open */
123 1.3 rvb { &vop_close_desc, coda_close }, /* close */
124 1.3 rvb { &vop_access_desc, coda_access }, /* access */
125 1.5 rvb { &vop_getattr_desc, coda_getattr }, /* getattr */
126 1.5 rvb { &vop_setattr_desc, coda_setattr }, /* setattr */
127 1.3 rvb { &vop_read_desc, coda_read }, /* read */
128 1.3 rvb { &vop_write_desc, coda_write }, /* write */
129 1.11 wrstuden { &vop_fcntl_desc, genfs_fcntl }, /* fcntl */
130 1.3 rvb { &vop_ioctl_desc, coda_ioctl }, /* ioctl */
131 1.3 rvb /* 1.3 { &vop_select_desc, coda_select }, select */
132 1.24 chs { &vop_mmap_desc, genfs_mmap }, /* mmap */
133 1.3 rvb { &vop_fsync_desc, coda_fsync }, /* fsync */
134 1.3 rvb { &vop_remove_desc, coda_remove }, /* remove */
135 1.3 rvb { &vop_link_desc, coda_link }, /* link */
136 1.3 rvb { &vop_rename_desc, coda_rename }, /* rename */
137 1.3 rvb { &vop_mkdir_desc, coda_mkdir }, /* mkdir */
138 1.3 rvb { &vop_rmdir_desc, coda_rmdir }, /* rmdir */
139 1.5 rvb { &vop_symlink_desc, coda_symlink }, /* symlink */
140 1.5 rvb { &vop_readdir_desc, coda_readdir }, /* readdir */
141 1.3 rvb { &vop_readlink_desc, coda_readlink }, /* readlink */
142 1.5 rvb { &vop_abortop_desc, coda_abortop }, /* abortop */
143 1.3 rvb { &vop_inactive_desc, coda_inactive }, /* inactive */
144 1.5 rvb { &vop_reclaim_desc, coda_reclaim }, /* reclaim */
145 1.3 rvb { &vop_lock_desc, coda_lock }, /* lock */
146 1.3 rvb { &vop_unlock_desc, coda_unlock }, /* unlock */
147 1.3 rvb { &vop_bmap_desc, coda_bmap }, /* bmap */
148 1.3 rvb { &vop_strategy_desc, coda_strategy }, /* strategy */
149 1.5 rvb { &vop_print_desc, coda_vop_error }, /* print */
150 1.3 rvb { &vop_islocked_desc, coda_islocked }, /* islocked */
151 1.3 rvb { &vop_pathconf_desc, coda_vop_error }, /* pathconf */
152 1.5 rvb { &vop_advlock_desc, coda_vop_nop }, /* advlock */
153 1.3 rvb { &vop_bwrite_desc, coda_vop_error }, /* bwrite */
154 1.3 rvb { &vop_lease_desc, coda_vop_nop }, /* lease */
155 1.3 rvb { &vop_blkatoff_desc, coda_vop_error }, /* blkatoff */
156 1.3 rvb { &vop_valloc_desc, coda_vop_error }, /* valloc */
157 1.5 rvb { &vop_vfree_desc, coda_vop_error }, /* vfree */
158 1.3 rvb { &vop_truncate_desc, coda_vop_error }, /* truncate */
159 1.3 rvb { &vop_update_desc, coda_vop_error }, /* update */
160 1.1 rvb { &vop_seek_desc, genfs_seek }, /* seek */
161 1.5 rvb { &vop_poll_desc, genfs_poll }, /* poll */
162 1.25 chs { &vop_getpages_desc, coda_getpages }, /* getpages */
163 1.25 chs { &vop_putpages_desc, coda_putpages }, /* putpages */
164 1.24 chs { NULL, NULL }
165 1.1 rvb };
166 1.1 rvb
167 1.23 jdolecek const struct vnodeopv_desc coda_vnodeop_opv_desc =
168 1.3 rvb { &coda_vnodeop_p, coda_vnodeop_entries };
169 1.1 rvb
170 1.1 rvb /* Definitions of NetBSD vnodeop interfaces */
171 1.1 rvb
172 1.1 rvb /* A generic panic: we were called with something we didn't define yet */
173 1.1 rvb int
174 1.3 rvb coda_vop_error(void *anon) {
175 1.1 rvb struct vnodeop_desc **desc = (struct vnodeop_desc **)anon;
176 1.1 rvb
177 1.9 rvb myprintf(("coda_vop_error: Vnode operation %s called, but not defined.\n",
178 1.1 rvb (*desc)->vdesc_name));
179 1.9 rvb /*
180 1.3 rvb panic("coda_nbsd_vop_error");
181 1.1 rvb return 0;
182 1.9 rvb */
183 1.9 rvb return EIO;
184 1.1 rvb }
185 1.1 rvb
186 1.1 rvb /* A generic do-nothing. For lease_check, advlock */
187 1.1 rvb int
188 1.3 rvb coda_vop_nop(void *anon) {
189 1.1 rvb struct vnodeop_desc **desc = (struct vnodeop_desc **)anon;
190 1.1 rvb
191 1.3 rvb if (codadebug) {
192 1.1 rvb myprintf(("Vnode operation %s called, but unsupported\n",
193 1.1 rvb (*desc)->vdesc_name));
194 1.1 rvb }
195 1.1 rvb return (0);
196 1.1 rvb }
197 1.1 rvb
198 1.1 rvb int
199 1.3 rvb coda_vnodeopstats_init(void)
200 1.1 rvb {
201 1.17 augustss int i;
202 1.1 rvb
203 1.3 rvb for(i=0;i<CODA_VNODEOPS_SIZE;i++) {
204 1.3 rvb coda_vnodeopstats[i].opcode = i;
205 1.3 rvb coda_vnodeopstats[i].entries = 0;
206 1.3 rvb coda_vnodeopstats[i].sat_intrn = 0;
207 1.3 rvb coda_vnodeopstats[i].unsat_intrn = 0;
208 1.3 rvb coda_vnodeopstats[i].gen_intrn = 0;
209 1.1 rvb }
210 1.1 rvb
211 1.1 rvb return 0;
212 1.1 rvb }
213 1.1 rvb
214 1.1 rvb /*
215 1.3 rvb * coda_open calls Venus to return the device, inode pair of the cache
216 1.3 rvb * file holding the data. Using iget, coda_open finds the vnode of the
217 1.1 rvb * cache file, and then opens it.
218 1.1 rvb */
219 1.1 rvb int
220 1.3 rvb coda_open(v)
221 1.1 rvb void *v;
222 1.1 rvb {
223 1.1 rvb /*
224 1.1 rvb * NetBSD can pass the O_EXCL flag in mode, even though the check
225 1.1 rvb * has already happened. Venus defensively assumes that if open
226 1.1 rvb * is passed the EXCL, it must be a bug. We strip the flag here.
227 1.1 rvb */
228 1.1 rvb /* true args */
229 1.1 rvb struct vop_open_args *ap = v;
230 1.17 augustss struct vnode **vpp = &(ap->a_vp);
231 1.1 rvb struct cnode *cp = VTOC(*vpp);
232 1.1 rvb int flag = ap->a_mode & (~O_EXCL);
233 1.1 rvb struct ucred *cred = ap->a_cred;
234 1.1 rvb struct proc *p = ap->a_p;
235 1.1 rvb /* locals */
236 1.1 rvb int error;
237 1.1 rvb struct vnode *vp;
238 1.1 rvb dev_t dev;
239 1.1 rvb ino_t inode;
240 1.1 rvb
241 1.3 rvb MARK_ENTRY(CODA_OPEN_STATS);
242 1.1 rvb
243 1.1 rvb /* Check for open of control file. */
244 1.1 rvb if (IS_CTL_VP(*vpp)) {
245 1.1 rvb /* XXX */
246 1.1 rvb /* if (WRITEABLE(flag)) */
247 1.1 rvb if (flag & (FWRITE | O_TRUNC | O_CREAT | O_EXCL)) {
248 1.3 rvb MARK_INT_FAIL(CODA_OPEN_STATS);
249 1.1 rvb return(EACCES);
250 1.1 rvb }
251 1.3 rvb MARK_INT_SAT(CODA_OPEN_STATS);
252 1.1 rvb return(0);
253 1.1 rvb }
254 1.1 rvb
255 1.1 rvb error = venus_open(vtomi((*vpp)), &cp->c_fid, flag, cred, p, &dev, &inode);
256 1.1 rvb if (error)
257 1.1 rvb return (error);
258 1.1 rvb if (!error) {
259 1.3 rvb CODADEBUG( CODA_OPEN,myprintf(("open: dev %d inode %d result %d\n",
260 1.1 rvb dev, inode, error)); )
261 1.1 rvb }
262 1.1 rvb
263 1.1 rvb /* Translate the <device, inode> pair for the cache file into
264 1.1 rvb an inode pointer. */
265 1.3 rvb error = coda_grab_vnode(dev, inode, &vp);
266 1.1 rvb if (error)
267 1.1 rvb return (error);
268 1.1 rvb
269 1.1 rvb /* We get the vnode back locked in both Mach and NetBSD. Needs unlocked */
270 1.2 rvb VOP_UNLOCK(vp, 0);
271 1.1 rvb /* Keep a reference until the close comes in. */
272 1.1 rvb vref(*vpp);
273 1.1 rvb
274 1.1 rvb /* Save the vnode pointer for the cache file. */
275 1.1 rvb if (cp->c_ovp == NULL) {
276 1.1 rvb cp->c_ovp = vp;
277 1.1 rvb } else {
278 1.1 rvb if (cp->c_ovp != vp)
279 1.3 rvb panic("coda_open: cp->c_ovp != ITOV(ip)");
280 1.1 rvb }
281 1.1 rvb cp->c_ocount++;
282 1.1 rvb
283 1.1 rvb /* Flush the attribute cached if writing the file. */
284 1.1 rvb if (flag & FWRITE) {
285 1.1 rvb cp->c_owrite++;
286 1.1 rvb cp->c_flags &= ~C_VATTR;
287 1.1 rvb }
288 1.1 rvb
289 1.1 rvb /* Save the <device, inode> pair for the cache file to speed
290 1.1 rvb up subsequent page_read's. */
291 1.1 rvb cp->c_device = dev;
292 1.1 rvb cp->c_inode = inode;
293 1.1 rvb
294 1.1 rvb /* Open the cache file. */
295 1.1 rvb error = VOP_OPEN(vp, flag, cred, p);
296 1.1 rvb return(error);
297 1.1 rvb }
298 1.1 rvb
299 1.1 rvb /*
300 1.1 rvb * Close the cache file used for I/O and notify Venus.
301 1.1 rvb */
302 1.1 rvb int
303 1.3 rvb coda_close(v)
304 1.1 rvb void *v;
305 1.1 rvb {
306 1.1 rvb /* true args */
307 1.1 rvb struct vop_close_args *ap = v;
308 1.1 rvb struct vnode *vp = ap->a_vp;
309 1.1 rvb struct cnode *cp = VTOC(vp);
310 1.1 rvb int flag = ap->a_fflag;
311 1.1 rvb struct ucred *cred = ap->a_cred;
312 1.1 rvb struct proc *p = ap->a_p;
313 1.1 rvb /* locals */
314 1.1 rvb int error;
315 1.1 rvb
316 1.3 rvb MARK_ENTRY(CODA_CLOSE_STATS);
317 1.1 rvb
318 1.1 rvb /* Check for close of control file. */
319 1.1 rvb if (IS_CTL_VP(vp)) {
320 1.3 rvb MARK_INT_SAT(CODA_CLOSE_STATS);
321 1.1 rvb return(0);
322 1.1 rvb }
323 1.1 rvb
324 1.1 rvb if (IS_UNMOUNTING(cp)) {
325 1.1 rvb if (cp->c_ovp) {
326 1.7 rvb #ifdef CODA_VERBOSE
327 1.3 rvb printf("coda_close: destroying container ref %d, ufs vp %p of vp %p/cp %p\n",
328 1.1 rvb vp->v_usecount, cp->c_ovp, vp, cp);
329 1.5 rvb #endif
330 1.8 rvb #ifdef hmm
331 1.1 rvb vgone(cp->c_ovp);
332 1.8 rvb #else
333 1.14 wrstuden vn_lock(cp->c_ovp, LK_EXCLUSIVE | LK_RETRY);
334 1.8 rvb VOP_CLOSE(cp->c_ovp, flag, cred, p); /* Do errors matter here? */
335 1.14 wrstuden vput(cp->c_ovp);
336 1.8 rvb #endif
337 1.1 rvb } else {
338 1.7 rvb #ifdef CODA_VERBOSE
339 1.3 rvb printf("coda_close: NO container vp %p/cp %p\n", vp, cp);
340 1.5 rvb #endif
341 1.1 rvb }
342 1.1 rvb return ENODEV;
343 1.1 rvb } else {
344 1.14 wrstuden vn_lock(cp->c_ovp, LK_EXCLUSIVE | LK_RETRY);
345 1.1 rvb VOP_CLOSE(cp->c_ovp, flag, cred, p); /* Do errors matter here? */
346 1.14 wrstuden vput(cp->c_ovp);
347 1.1 rvb }
348 1.1 rvb
349 1.1 rvb if (--cp->c_ocount == 0)
350 1.1 rvb cp->c_ovp = NULL;
351 1.1 rvb
352 1.1 rvb if (flag & FWRITE) /* file was opened for write */
353 1.1 rvb --cp->c_owrite;
354 1.1 rvb
355 1.1 rvb error = venus_close(vtomi(vp), &cp->c_fid, flag, cred, p);
356 1.1 rvb vrele(CTOV(cp));
357 1.1 rvb
358 1.3 rvb CODADEBUG(CODA_CLOSE, myprintf(("close: result %d\n",error)); )
359 1.1 rvb return(error);
360 1.1 rvb }
361 1.1 rvb
362 1.1 rvb int
363 1.3 rvb coda_read(v)
364 1.1 rvb void *v;
365 1.1 rvb {
366 1.1 rvb struct vop_read_args *ap = v;
367 1.1 rvb
368 1.1 rvb ENTRY;
369 1.3 rvb return(coda_rdwr(ap->a_vp, ap->a_uio, UIO_READ,
370 1.1 rvb ap->a_ioflag, ap->a_cred, ap->a_uio->uio_procp));
371 1.1 rvb }
372 1.1 rvb
373 1.1 rvb int
374 1.3 rvb coda_write(v)
375 1.1 rvb void *v;
376 1.1 rvb {
377 1.1 rvb struct vop_write_args *ap = v;
378 1.1 rvb
379 1.1 rvb ENTRY;
380 1.3 rvb return(coda_rdwr(ap->a_vp, ap->a_uio, UIO_WRITE,
381 1.1 rvb ap->a_ioflag, ap->a_cred, ap->a_uio->uio_procp));
382 1.1 rvb }
383 1.1 rvb
384 1.1 rvb int
385 1.3 rvb coda_rdwr(vp, uiop, rw, ioflag, cred, p)
386 1.1 rvb struct vnode *vp;
387 1.1 rvb struct uio *uiop;
388 1.1 rvb enum uio_rw rw;
389 1.1 rvb int ioflag;
390 1.1 rvb struct ucred *cred;
391 1.1 rvb struct proc *p;
392 1.1 rvb {
393 1.1 rvb /* upcall decl */
394 1.1 rvb /* NOTE: container file operation!!! */
395 1.1 rvb /* locals */
396 1.1 rvb struct cnode *cp = VTOC(vp);
397 1.1 rvb struct vnode *cfvp = cp->c_ovp;
398 1.1 rvb int igot_internally = 0;
399 1.1 rvb int opened_internally = 0;
400 1.1 rvb int error = 0;
401 1.1 rvb
402 1.3 rvb MARK_ENTRY(CODA_RDWR_STATS);
403 1.1 rvb
404 1.12 matt CODADEBUG(CODA_RDWR, myprintf(("coda_rdwr(%d, %p, %lu, %lld, %d)\n", rw,
405 1.12 matt uiop->uio_iov->iov_base,
406 1.12 matt (unsigned long) uiop->uio_resid,
407 1.12 matt (long long) uiop->uio_offset, uiop->uio_segflg)); )
408 1.1 rvb
409 1.1 rvb /* Check for rdwr of control object. */
410 1.1 rvb if (IS_CTL_VP(vp)) {
411 1.3 rvb MARK_INT_FAIL(CODA_RDWR_STATS);
412 1.1 rvb return(EINVAL);
413 1.1 rvb }
414 1.1 rvb
415 1.1 rvb /* Redirect the request to UFS. */
416 1.1 rvb
417 1.1 rvb /*
418 1.1 rvb * If file is not already open this must be a page
419 1.1 rvb * {read,write} request. Iget the cache file's inode
420 1.1 rvb * pointer if we still have its <device, inode> pair.
421 1.1 rvb * Otherwise, we must do an internal open to derive the
422 1.1 rvb * pair.
423 1.1 rvb */
424 1.1 rvb if (cfvp == NULL) {
425 1.1 rvb /*
426 1.1 rvb * If we're dumping core, do the internal open. Otherwise
427 1.1 rvb * venus won't have the correct size of the core when
428 1.1 rvb * it's completely written.
429 1.1 rvb */
430 1.1 rvb if (cp->c_inode != 0 && !(p && (p->p_acflag & ACORE))) {
431 1.1 rvb igot_internally = 1;
432 1.3 rvb error = coda_grab_vnode(cp->c_device, cp->c_inode, &cfvp);
433 1.1 rvb if (error) {
434 1.3 rvb MARK_INT_FAIL(CODA_RDWR_STATS);
435 1.1 rvb return(error);
436 1.1 rvb }
437 1.1 rvb /*
438 1.1 rvb * We get the vnode back locked in both Mach and
439 1.1 rvb * NetBSD. Needs unlocked
440 1.1 rvb */
441 1.2 rvb VOP_UNLOCK(cfvp, 0);
442 1.1 rvb }
443 1.1 rvb else {
444 1.1 rvb opened_internally = 1;
445 1.3 rvb MARK_INT_GEN(CODA_OPEN_STATS);
446 1.1 rvb error = VOP_OPEN(vp, (rw == UIO_READ ? FREAD : FWRITE),
447 1.1 rvb cred, p);
448 1.18 phil #ifdef CODA_VERBOSE
449 1.3 rvb printf("coda_rdwr: Internally Opening %p\n", vp);
450 1.18 phil #endif
451 1.1 rvb if (error) {
452 1.3 rvb MARK_INT_FAIL(CODA_RDWR_STATS);
453 1.1 rvb return(error);
454 1.1 rvb }
455 1.1 rvb cfvp = cp->c_ovp;
456 1.1 rvb }
457 1.1 rvb }
458 1.1 rvb
459 1.1 rvb /* Have UFS handle the call. */
460 1.22 chs CODADEBUG(CODA_RDWR, myprintf(("indirect rdwr: fid = (%lx.%lx.%lx), refcnt = %d\n",
461 1.1 rvb cp->c_fid.Volume, cp->c_fid.Vnode,
462 1.1 rvb cp->c_fid.Unique, CTOV(cp)->v_usecount)); )
463 1.1 rvb
464 1.1 rvb if (rw == UIO_READ) {
465 1.1 rvb error = VOP_READ(cfvp, uiop, ioflag, cred);
466 1.1 rvb } else {
467 1.1 rvb error = VOP_WRITE(cfvp, uiop, ioflag, cred);
468 1.1 rvb }
469 1.1 rvb
470 1.1 rvb if (error)
471 1.3 rvb MARK_INT_FAIL(CODA_RDWR_STATS);
472 1.1 rvb else
473 1.3 rvb MARK_INT_SAT(CODA_RDWR_STATS);
474 1.1 rvb
475 1.1 rvb /* Do an internal close if necessary. */
476 1.1 rvb if (opened_internally) {
477 1.3 rvb MARK_INT_GEN(CODA_CLOSE_STATS);
478 1.1 rvb (void)VOP_CLOSE(vp, (rw == UIO_READ ? FREAD : FWRITE), cred, p);
479 1.1 rvb }
480 1.1 rvb
481 1.1 rvb /* Invalidate cached attributes if writing. */
482 1.1 rvb if (rw == UIO_WRITE)
483 1.1 rvb cp->c_flags &= ~C_VATTR;
484 1.1 rvb return(error);
485 1.1 rvb }
486 1.1 rvb
487 1.1 rvb int
488 1.3 rvb coda_ioctl(v)
489 1.1 rvb void *v;
490 1.1 rvb {
491 1.1 rvb /* true args */
492 1.1 rvb struct vop_ioctl_args *ap = v;
493 1.1 rvb struct vnode *vp = ap->a_vp;
494 1.1 rvb int com = ap->a_command;
495 1.1 rvb caddr_t data = ap->a_data;
496 1.1 rvb int flag = ap->a_fflag;
497 1.1 rvb struct ucred *cred = ap->a_cred;
498 1.1 rvb struct proc *p = ap->a_p;
499 1.1 rvb /* locals */
500 1.1 rvb int error;
501 1.1 rvb struct vnode *tvp;
502 1.1 rvb struct nameidata ndp;
503 1.1 rvb struct PioctlData *iap = (struct PioctlData *)data;
504 1.1 rvb
505 1.3 rvb MARK_ENTRY(CODA_IOCTL_STATS);
506 1.1 rvb
507 1.3 rvb CODADEBUG(CODA_IOCTL, myprintf(("in coda_ioctl on %s\n", iap->path));)
508 1.1 rvb
509 1.1 rvb /* Don't check for operation on a dying object, for ctlvp it
510 1.1 rvb shouldn't matter */
511 1.1 rvb
512 1.1 rvb /* Must be control object to succeed. */
513 1.1 rvb if (!IS_CTL_VP(vp)) {
514 1.3 rvb MARK_INT_FAIL(CODA_IOCTL_STATS);
515 1.3 rvb CODADEBUG(CODA_IOCTL, myprintf(("coda_ioctl error: vp != ctlvp"));)
516 1.1 rvb return (EOPNOTSUPP);
517 1.1 rvb }
518 1.1 rvb /* Look up the pathname. */
519 1.1 rvb
520 1.1 rvb /* Should we use the name cache here? It would get it from
521 1.1 rvb lookupname sooner or later anyway, right? */
522 1.1 rvb
523 1.1 rvb NDINIT(&ndp, LOOKUP, (iap->follow ? FOLLOW : NOFOLLOW), UIO_USERSPACE, ((caddr_t)iap->path), p);
524 1.1 rvb error = namei(&ndp);
525 1.1 rvb tvp = ndp.ni_vp;
526 1.1 rvb
527 1.1 rvb if (error) {
528 1.3 rvb MARK_INT_FAIL(CODA_IOCTL_STATS);
529 1.3 rvb CODADEBUG(CODA_IOCTL, myprintf(("coda_ioctl error: lookup returns %d\n",
530 1.1 rvb error));)
531 1.1 rvb return(error);
532 1.1 rvb }
533 1.1 rvb
534 1.1 rvb /*
535 1.1 rvb * Make sure this is a coda style cnode, but it may be a
536 1.1 rvb * different vfsp
537 1.1 rvb */
538 1.1 rvb /* XXX: this totally violates the comment about vtagtype in vnode.h */
539 1.3 rvb if (tvp->v_tag != VT_CODA) {
540 1.1 rvb vrele(tvp);
541 1.3 rvb MARK_INT_FAIL(CODA_IOCTL_STATS);
542 1.3 rvb CODADEBUG(CODA_IOCTL,
543 1.3 rvb myprintf(("coda_ioctl error: %s not a coda object\n",
544 1.1 rvb iap->path));)
545 1.1 rvb return(EINVAL);
546 1.1 rvb }
547 1.1 rvb
548 1.1 rvb if (iap->vi.in_size > VC_MAXDATASIZE) {
549 1.1 rvb vrele(tvp);
550 1.1 rvb return(EINVAL);
551 1.1 rvb }
552 1.1 rvb error = venus_ioctl(vtomi(tvp), &((VTOC(tvp))->c_fid), com, flag, data, cred, p);
553 1.1 rvb
554 1.1 rvb if (error)
555 1.3 rvb MARK_INT_FAIL(CODA_IOCTL_STATS);
556 1.1 rvb else
557 1.3 rvb CODADEBUG(CODA_IOCTL, myprintf(("Ioctl returns %d \n", error)); )
558 1.1 rvb
559 1.1 rvb vrele(tvp);
560 1.1 rvb return(error);
561 1.1 rvb }
562 1.1 rvb
563 1.1 rvb /*
564 1.1 rvb * To reduce the cost of a user-level venus;we cache attributes in
565 1.1 rvb * the kernel. Each cnode has storage allocated for an attribute. If
566 1.1 rvb * c_vattr is valid, return a reference to it. Otherwise, get the
567 1.1 rvb * attributes from venus and store them in the cnode. There is some
568 1.1 rvb * question if this method is a security leak. But I think that in
569 1.1 rvb * order to make this call, the user must have done a lookup and
570 1.1 rvb * opened the file, and therefore should already have access.
571 1.1 rvb */
572 1.1 rvb int
573 1.3 rvb coda_getattr(v)
574 1.1 rvb void *v;
575 1.1 rvb {
576 1.1 rvb /* true args */
577 1.1 rvb struct vop_getattr_args *ap = v;
578 1.1 rvb struct vnode *vp = ap->a_vp;
579 1.1 rvb struct cnode *cp = VTOC(vp);
580 1.1 rvb struct vattr *vap = ap->a_vap;
581 1.1 rvb struct ucred *cred = ap->a_cred;
582 1.1 rvb struct proc *p = ap->a_p;
583 1.1 rvb /* locals */
584 1.1 rvb int error;
585 1.1 rvb
586 1.3 rvb MARK_ENTRY(CODA_GETATTR_STATS);
587 1.1 rvb
588 1.1 rvb /* Check for getattr of control object. */
589 1.1 rvb if (IS_CTL_VP(vp)) {
590 1.3 rvb MARK_INT_FAIL(CODA_GETATTR_STATS);
591 1.1 rvb return(ENOENT);
592 1.1 rvb }
593 1.1 rvb
594 1.1 rvb /* Check to see if the attributes have already been cached */
595 1.1 rvb if (VALID_VATTR(cp)) {
596 1.3 rvb CODADEBUG(CODA_GETATTR, { myprintf(("attr cache hit: (%lx.%lx.%lx)\n",
597 1.1 rvb cp->c_fid.Volume,
598 1.1 rvb cp->c_fid.Vnode,
599 1.1 rvb cp->c_fid.Unique));});
600 1.3 rvb CODADEBUG(CODA_GETATTR, if (!(codadebug & ~CODA_GETATTR))
601 1.1 rvb print_vattr(&cp->c_vattr); );
602 1.1 rvb
603 1.1 rvb *vap = cp->c_vattr;
604 1.3 rvb MARK_INT_SAT(CODA_GETATTR_STATS);
605 1.1 rvb return(0);
606 1.1 rvb }
607 1.1 rvb
608 1.1 rvb error = venus_getattr(vtomi(vp), &cp->c_fid, cred, p, vap);
609 1.1 rvb
610 1.1 rvb if (!error) {
611 1.3 rvb CODADEBUG(CODA_GETATTR, myprintf(("getattr miss (%lx.%lx.%lx): result %d\n",
612 1.1 rvb cp->c_fid.Volume,
613 1.1 rvb cp->c_fid.Vnode,
614 1.1 rvb cp->c_fid.Unique,
615 1.1 rvb error)); )
616 1.1 rvb
617 1.3 rvb CODADEBUG(CODA_GETATTR, if (!(codadebug & ~CODA_GETATTR))
618 1.1 rvb print_vattr(vap); );
619 1.1 rvb
620 1.1 rvb /* If not open for write, store attributes in cnode */
621 1.3 rvb if ((cp->c_owrite == 0) && (coda_attr_cache)) {
622 1.1 rvb cp->c_vattr = *vap;
623 1.1 rvb cp->c_flags |= C_VATTR;
624 1.1 rvb }
625 1.1 rvb
626 1.1 rvb }
627 1.1 rvb return(error);
628 1.1 rvb }
629 1.1 rvb
630 1.1 rvb int
631 1.3 rvb coda_setattr(v)
632 1.1 rvb void *v;
633 1.1 rvb {
634 1.1 rvb /* true args */
635 1.1 rvb struct vop_setattr_args *ap = v;
636 1.17 augustss struct vnode *vp = ap->a_vp;
637 1.1 rvb struct cnode *cp = VTOC(vp);
638 1.17 augustss struct vattr *vap = ap->a_vap;
639 1.1 rvb struct ucred *cred = ap->a_cred;
640 1.1 rvb struct proc *p = ap->a_p;
641 1.1 rvb /* locals */
642 1.1 rvb int error;
643 1.1 rvb
644 1.3 rvb MARK_ENTRY(CODA_SETATTR_STATS);
645 1.1 rvb
646 1.1 rvb /* Check for setattr of control object. */
647 1.1 rvb if (IS_CTL_VP(vp)) {
648 1.3 rvb MARK_INT_FAIL(CODA_SETATTR_STATS);
649 1.1 rvb return(ENOENT);
650 1.1 rvb }
651 1.1 rvb
652 1.3 rvb if (codadebug & CODADBGMSK(CODA_SETATTR)) {
653 1.1 rvb print_vattr(vap);
654 1.1 rvb }
655 1.1 rvb error = venus_setattr(vtomi(vp), &cp->c_fid, vap, cred, p);
656 1.1 rvb
657 1.1 rvb if (!error)
658 1.1 rvb cp->c_flags &= ~C_VATTR;
659 1.1 rvb
660 1.3 rvb CODADEBUG(CODA_SETATTR, myprintf(("setattr %d\n", error)); )
661 1.1 rvb return(error);
662 1.1 rvb }
663 1.1 rvb
664 1.1 rvb int
665 1.3 rvb coda_access(v)
666 1.1 rvb void *v;
667 1.1 rvb {
668 1.1 rvb /* true args */
669 1.1 rvb struct vop_access_args *ap = v;
670 1.1 rvb struct vnode *vp = ap->a_vp;
671 1.1 rvb struct cnode *cp = VTOC(vp);
672 1.1 rvb int mode = ap->a_mode;
673 1.1 rvb struct ucred *cred = ap->a_cred;
674 1.1 rvb struct proc *p = ap->a_p;
675 1.1 rvb /* locals */
676 1.1 rvb int error;
677 1.1 rvb
678 1.3 rvb MARK_ENTRY(CODA_ACCESS_STATS);
679 1.1 rvb
680 1.1 rvb /* Check for access of control object. Only read access is
681 1.1 rvb allowed on it. */
682 1.1 rvb if (IS_CTL_VP(vp)) {
683 1.1 rvb /* bogus hack - all will be marked as successes */
684 1.3 rvb MARK_INT_SAT(CODA_ACCESS_STATS);
685 1.1 rvb return(((mode & VREAD) && !(mode & (VWRITE | VEXEC)))
686 1.1 rvb ? 0 : EACCES);
687 1.1 rvb }
688 1.1 rvb
689 1.1 rvb /*
690 1.1 rvb * if the file is a directory, and we are checking exec (eg lookup)
691 1.1 rvb * access, and the file is in the namecache, then the user must have
692 1.1 rvb * lookup access to it.
693 1.1 rvb */
694 1.3 rvb if (coda_access_cache) {
695 1.1 rvb if ((vp->v_type == VDIR) && (mode & VEXEC)) {
696 1.3 rvb if (coda_nc_lookup(cp, ".", 1, cred)) {
697 1.3 rvb MARK_INT_SAT(CODA_ACCESS_STATS);
698 1.1 rvb return(0); /* it was in the cache */
699 1.1 rvb }
700 1.1 rvb }
701 1.1 rvb }
702 1.1 rvb
703 1.1 rvb error = venus_access(vtomi(vp), &cp->c_fid, mode, cred, p);
704 1.1 rvb
705 1.1 rvb return(error);
706 1.1 rvb }
707 1.1 rvb
708 1.1 rvb /*
709 1.3 rvb * CODA abort op, called after namei() when a CREATE/DELETE isn't actually
710 1.3 rvb * done. If a buffer has been saved in anticipation of a coda_create or
711 1.3 rvb * a coda_remove, delete it.
712 1.1 rvb */
713 1.1 rvb /* ARGSUSED */
714 1.1 rvb int
715 1.3 rvb coda_abortop(v)
716 1.1 rvb void *v;
717 1.1 rvb {
718 1.1 rvb /* true args */
719 1.1 rvb struct vop_abortop_args /* {
720 1.1 rvb struct vnode *a_dvp;
721 1.1 rvb struct componentname *a_cnp;
722 1.1 rvb } */ *ap = v;
723 1.1 rvb /* upcall decl */
724 1.1 rvb /* locals */
725 1.1 rvb
726 1.1 rvb if ((ap->a_cnp->cn_flags & (HASBUF | SAVESTART)) == HASBUF)
727 1.20 thorpej PNBUF_PUT(ap->a_cnp->cn_pnbuf);
728 1.1 rvb return (0);
729 1.1 rvb }
730 1.1 rvb
731 1.1 rvb int
732 1.3 rvb coda_readlink(v)
733 1.1 rvb void *v;
734 1.1 rvb {
735 1.1 rvb /* true args */
736 1.1 rvb struct vop_readlink_args *ap = v;
737 1.1 rvb struct vnode *vp = ap->a_vp;
738 1.1 rvb struct cnode *cp = VTOC(vp);
739 1.1 rvb struct uio *uiop = ap->a_uio;
740 1.1 rvb struct ucred *cred = ap->a_cred;
741 1.1 rvb struct proc *p = ap->a_uio->uio_procp;
742 1.1 rvb /* locals */
743 1.1 rvb int error;
744 1.1 rvb char *str;
745 1.1 rvb int len;
746 1.1 rvb
747 1.3 rvb MARK_ENTRY(CODA_READLINK_STATS);
748 1.1 rvb
749 1.1 rvb /* Check for readlink of control object. */
750 1.1 rvb if (IS_CTL_VP(vp)) {
751 1.3 rvb MARK_INT_FAIL(CODA_READLINK_STATS);
752 1.1 rvb return(ENOENT);
753 1.1 rvb }
754 1.1 rvb
755 1.3 rvb if ((coda_symlink_cache) && (VALID_SYMLINK(cp))) { /* symlink was cached */
756 1.1 rvb uiop->uio_rw = UIO_READ;
757 1.1 rvb error = uiomove(cp->c_symlink, (int)cp->c_symlen, uiop);
758 1.1 rvb if (error)
759 1.3 rvb MARK_INT_FAIL(CODA_READLINK_STATS);
760 1.1 rvb else
761 1.3 rvb MARK_INT_SAT(CODA_READLINK_STATS);
762 1.1 rvb return(error);
763 1.1 rvb }
764 1.1 rvb
765 1.1 rvb error = venus_readlink(vtomi(vp), &cp->c_fid, cred, p, &str, &len);
766 1.1 rvb
767 1.1 rvb if (!error) {
768 1.1 rvb uiop->uio_rw = UIO_READ;
769 1.1 rvb error = uiomove(str, len, uiop);
770 1.1 rvb
771 1.3 rvb if (coda_symlink_cache) {
772 1.1 rvb cp->c_symlink = str;
773 1.1 rvb cp->c_symlen = len;
774 1.1 rvb cp->c_flags |= C_SYMLINK;
775 1.1 rvb } else
776 1.3 rvb CODA_FREE(str, len);
777 1.1 rvb }
778 1.1 rvb
779 1.3 rvb CODADEBUG(CODA_READLINK, myprintf(("in readlink result %d\n",error));)
780 1.1 rvb return(error);
781 1.1 rvb }
782 1.1 rvb
783 1.1 rvb int
784 1.3 rvb coda_fsync(v)
785 1.1 rvb void *v;
786 1.1 rvb {
787 1.1 rvb /* true args */
788 1.1 rvb struct vop_fsync_args *ap = v;
789 1.1 rvb struct vnode *vp = ap->a_vp;
790 1.1 rvb struct cnode *cp = VTOC(vp);
791 1.1 rvb struct ucred *cred = ap->a_cred;
792 1.1 rvb struct proc *p = ap->a_p;
793 1.1 rvb /* locals */
794 1.1 rvb struct vnode *convp = cp->c_ovp;
795 1.1 rvb int error;
796 1.1 rvb
797 1.3 rvb MARK_ENTRY(CODA_FSYNC_STATS);
798 1.1 rvb
799 1.1 rvb /* Check for fsync on an unmounting object */
800 1.1 rvb /* The NetBSD kernel, in it's infinite wisdom, can try to fsync
801 1.1 rvb * after an unmount has been initiated. This is a Bad Thing,
802 1.1 rvb * which we have to avoid. Not a legitimate failure for stats.
803 1.1 rvb */
804 1.1 rvb if (IS_UNMOUNTING(cp)) {
805 1.1 rvb return(ENODEV);
806 1.1 rvb }
807 1.1 rvb
808 1.1 rvb /* Check for fsync of control object. */
809 1.1 rvb if (IS_CTL_VP(vp)) {
810 1.3 rvb MARK_INT_SAT(CODA_FSYNC_STATS);
811 1.1 rvb return(0);
812 1.1 rvb }
813 1.1 rvb
814 1.1 rvb if (convp)
815 1.21 fvdl VOP_FSYNC(convp, cred, MNT_WAIT, 0, 0, p);
816 1.1 rvb
817 1.1 rvb /*
818 1.1 rvb * We can expect fsync on any vnode at all if venus is pruging it.
819 1.1 rvb * Venus can't very well answer the fsync request, now can it?
820 1.1 rvb * Hopefully, it won't have to, because hopefully, venus preserves
821 1.1 rvb * the (possibly untrue) invariant that it never purges an open
822 1.1 rvb * vnode. Hopefully.
823 1.1 rvb */
824 1.1 rvb if (cp->c_flags & C_PURGING) {
825 1.1 rvb return(0);
826 1.1 rvb }
827 1.1 rvb
828 1.1 rvb error = venus_fsync(vtomi(vp), &cp->c_fid, cred, p);
829 1.1 rvb
830 1.3 rvb CODADEBUG(CODA_FSYNC, myprintf(("in fsync result %d\n",error)); );
831 1.1 rvb return(error);
832 1.1 rvb }
833 1.1 rvb
834 1.1 rvb int
835 1.3 rvb coda_inactive(v)
836 1.1 rvb void *v;
837 1.1 rvb {
838 1.1 rvb /* XXX - at the moment, inactive doesn't look at cred, and doesn't
839 1.1 rvb have a proc pointer. Oops. */
840 1.1 rvb /* true args */
841 1.1 rvb struct vop_inactive_args *ap = v;
842 1.1 rvb struct vnode *vp = ap->a_vp;
843 1.1 rvb struct cnode *cp = VTOC(vp);
844 1.1 rvb struct ucred *cred __attribute__((unused)) = NULL;
845 1.1 rvb struct proc *p __attribute__((unused)) = curproc;
846 1.1 rvb /* upcall decl */
847 1.1 rvb /* locals */
848 1.1 rvb
849 1.1 rvb /* We don't need to send inactive to venus - DCS */
850 1.3 rvb MARK_ENTRY(CODA_INACTIVE_STATS);
851 1.1 rvb
852 1.1 rvb if (IS_CTL_VP(vp)) {
853 1.3 rvb MARK_INT_SAT(CODA_INACTIVE_STATS);
854 1.1 rvb return 0;
855 1.1 rvb }
856 1.1 rvb
857 1.3 rvb CODADEBUG(CODA_INACTIVE, myprintf(("in inactive, %lx.%lx.%lx. vfsp %p\n",
858 1.1 rvb cp->c_fid.Volume, cp->c_fid.Vnode,
859 1.1 rvb cp->c_fid.Unique, vp->v_mount));)
860 1.1 rvb
861 1.1 rvb /* If an array has been allocated to hold the symlink, deallocate it */
862 1.3 rvb if ((coda_symlink_cache) && (VALID_SYMLINK(cp))) {
863 1.1 rvb if (cp->c_symlink == NULL)
864 1.3 rvb panic("coda_inactive: null symlink pointer in cnode");
865 1.1 rvb
866 1.3 rvb CODA_FREE(cp->c_symlink, cp->c_symlen);
867 1.1 rvb cp->c_flags &= ~C_SYMLINK;
868 1.1 rvb cp->c_symlen = 0;
869 1.1 rvb }
870 1.1 rvb
871 1.1 rvb /* Remove it from the table so it can't be found. */
872 1.3 rvb coda_unsave(cp);
873 1.3 rvb if ((struct coda_mntinfo *)(vp->v_mount->mnt_data) == NULL) {
874 1.1 rvb myprintf(("Help! vfsp->vfs_data was NULL, but vnode %p wasn't dying\n", vp));
875 1.3 rvb panic("badness in coda_inactive\n");
876 1.1 rvb }
877 1.1 rvb
878 1.1 rvb if (IS_UNMOUNTING(cp)) {
879 1.1 rvb #ifdef DEBUG
880 1.22 chs printf("coda_inactive: IS_UNMOUNTING use %d: vp %p, cp %p\n", vp->v_usecount, vp, cp);
881 1.1 rvb if (cp->c_ovp != NULL)
882 1.22 chs printf("coda_inactive: cp->ovp != NULL use %d: vp %p, cp %p\n",
883 1.1 rvb vp->v_usecount, vp, cp);
884 1.1 rvb #endif
885 1.10 wrstuden lockmgr(&vp->v_lock, LK_RELEASE, &vp->v_interlock);
886 1.1 rvb } else {
887 1.5 rvb #ifdef OLD_DIAGNOSTIC
888 1.1 rvb if (CTOV(cp)->v_usecount) {
889 1.3 rvb panic("coda_inactive: nonzero reference count");
890 1.1 rvb }
891 1.1 rvb if (cp->c_ovp != NULL) {
892 1.3 rvb panic("coda_inactive: cp->ovp != NULL");
893 1.1 rvb }
894 1.1 rvb #endif
895 1.2 rvb VOP_UNLOCK(vp, 0);
896 1.1 rvb vgone(vp);
897 1.1 rvb }
898 1.1 rvb
899 1.3 rvb MARK_INT_SAT(CODA_INACTIVE_STATS);
900 1.1 rvb return(0);
901 1.1 rvb }
902 1.1 rvb
903 1.1 rvb /*
904 1.1 rvb * Remote file system operations having to do with directory manipulation.
905 1.1 rvb */
906 1.1 rvb
907 1.1 rvb /*
908 1.1 rvb * It appears that in NetBSD, lookup is supposed to return the vnode locked
909 1.1 rvb */
910 1.1 rvb int
911 1.3 rvb coda_lookup(v)
912 1.1 rvb void *v;
913 1.1 rvb {
914 1.1 rvb /* true args */
915 1.1 rvb struct vop_lookup_args *ap = v;
916 1.1 rvb struct vnode *dvp = ap->a_dvp;
917 1.1 rvb struct cnode *dcp = VTOC(dvp);
918 1.1 rvb struct vnode **vpp = ap->a_vpp;
919 1.1 rvb /*
920 1.1 rvb * It looks as though ap->a_cnp->ni_cnd->cn_nameptr holds the rest
921 1.1 rvb * of the string to xlate, and that we must try to get at least
922 1.1 rvb * ap->a_cnp->ni_cnd->cn_namelen of those characters to macth. I
923 1.1 rvb * could be wrong.
924 1.1 rvb */
925 1.1 rvb struct componentname *cnp = ap->a_cnp;
926 1.1 rvb struct ucred *cred = cnp->cn_cred;
927 1.1 rvb struct proc *p = cnp->cn_proc;
928 1.1 rvb /* locals */
929 1.1 rvb struct cnode *cp;
930 1.1 rvb const char *nm = cnp->cn_nameptr;
931 1.1 rvb int len = cnp->cn_namelen;
932 1.1 rvb ViceFid VFid;
933 1.1 rvb int vtype;
934 1.1 rvb int error = 0;
935 1.1 rvb
936 1.10 wrstuden cnp->cn_flags &= ~PDIRUNLOCK;
937 1.10 wrstuden
938 1.3 rvb MARK_ENTRY(CODA_LOOKUP_STATS);
939 1.1 rvb
940 1.3 rvb CODADEBUG(CODA_LOOKUP, myprintf(("lookup: %s in %lx.%lx.%lx\n",
941 1.1 rvb nm, dcp->c_fid.Volume,
942 1.1 rvb dcp->c_fid.Vnode, dcp->c_fid.Unique)););
943 1.1 rvb
944 1.1 rvb /* Check for lookup of control object. */
945 1.1 rvb if (IS_CTL_NAME(dvp, nm, len)) {
946 1.3 rvb *vpp = coda_ctlvp;
947 1.1 rvb vref(*vpp);
948 1.3 rvb MARK_INT_SAT(CODA_LOOKUP_STATS);
949 1.1 rvb goto exit;
950 1.1 rvb }
951 1.1 rvb
952 1.3 rvb if (len+1 > CODA_MAXNAMLEN) {
953 1.3 rvb MARK_INT_FAIL(CODA_LOOKUP_STATS);
954 1.3 rvb CODADEBUG(CODA_LOOKUP, myprintf(("name too long: lookup, %lx.%lx.%lx(%s)\n",
955 1.1 rvb dcp->c_fid.Volume, dcp->c_fid.Vnode,
956 1.1 rvb dcp->c_fid.Unique, nm)););
957 1.1 rvb *vpp = (struct vnode *)0;
958 1.1 rvb error = EINVAL;
959 1.1 rvb goto exit;
960 1.1 rvb }
961 1.1 rvb /* First try to look the file up in the cfs name cache */
962 1.1 rvb /* lock the parent vnode? */
963 1.3 rvb cp = coda_nc_lookup(dcp, nm, len, cred);
964 1.1 rvb if (cp) {
965 1.1 rvb *vpp = CTOV(cp);
966 1.1 rvb vref(*vpp);
967 1.3 rvb CODADEBUG(CODA_LOOKUP,
968 1.1 rvb myprintf(("lookup result %d vpp %p\n",error,*vpp));)
969 1.1 rvb } else {
970 1.1 rvb
971 1.1 rvb /* The name wasn't cached, so we need to contact Venus */
972 1.1 rvb error = venus_lookup(vtomi(dvp), &dcp->c_fid, nm, len, cred, p, &VFid, &vtype);
973 1.1 rvb
974 1.1 rvb if (error) {
975 1.3 rvb MARK_INT_FAIL(CODA_LOOKUP_STATS);
976 1.3 rvb CODADEBUG(CODA_LOOKUP, myprintf(("lookup error on %lx.%lx.%lx(%s)%d\n",
977 1.1 rvb dcp->c_fid.Volume, dcp->c_fid.Vnode, dcp->c_fid.Unique, nm, error));)
978 1.1 rvb *vpp = (struct vnode *)0;
979 1.1 rvb } else {
980 1.3 rvb MARK_INT_SAT(CODA_LOOKUP_STATS);
981 1.3 rvb CODADEBUG(CODA_LOOKUP,
982 1.1 rvb myprintf(("lookup: vol %lx vno %lx uni %lx type %o result %d\n",
983 1.1 rvb VFid.Volume, VFid.Vnode, VFid.Unique, vtype,
984 1.1 rvb error)); )
985 1.1 rvb
986 1.3 rvb cp = make_coda_node(&VFid, dvp->v_mount, vtype);
987 1.1 rvb *vpp = CTOV(cp);
988 1.1 rvb
989 1.1 rvb /* enter the new vnode in the Name Cache only if the top bit isn't set */
990 1.1 rvb /* And don't enter a new vnode for an invalid one! */
991 1.3 rvb if (!(vtype & CODA_NOCACHE))
992 1.3 rvb coda_nc_enter(VTOC(dvp), nm, len, cred, VTOC(*vpp));
993 1.1 rvb }
994 1.1 rvb }
995 1.1 rvb
996 1.1 rvb exit:
997 1.1 rvb /*
998 1.1 rvb * If we are creating, and this was the last name to be looked up,
999 1.1 rvb * and the error was ENOENT, then there really shouldn't be an
1000 1.1 rvb * error and we can make the leaf NULL and return success. Since
1001 1.1 rvb * this is supposed to work under Mach as well as NetBSD, we're
1002 1.1 rvb * leaving this fn wrapped. We also must tell lookup/namei that
1003 1.1 rvb * we need to save the last component of the name. (Create will
1004 1.1 rvb * have to free the name buffer later...lucky us...)
1005 1.1 rvb */
1006 1.1 rvb if (((cnp->cn_nameiop == CREATE) || (cnp->cn_nameiop == RENAME))
1007 1.1 rvb && (cnp->cn_flags & ISLASTCN)
1008 1.1 rvb && (error == ENOENT))
1009 1.1 rvb {
1010 1.1 rvb error = EJUSTRETURN;
1011 1.1 rvb cnp->cn_flags |= SAVENAME;
1012 1.1 rvb *ap->a_vpp = NULL;
1013 1.1 rvb }
1014 1.1 rvb
1015 1.1 rvb /*
1016 1.1 rvb * If we are removing, and we are at the last element, and we
1017 1.1 rvb * found it, then we need to keep the name around so that the
1018 1.1 rvb * removal will go ahead as planned. Unfortunately, this will
1019 1.1 rvb * probably also lock the to-be-removed vnode, which may or may
1020 1.1 rvb * not be a good idea. I'll have to look at the bits of
1021 1.3 rvb * coda_remove to make sure. We'll only save the name if we did in
1022 1.3 rvb * fact find the name, otherwise coda_remove won't have a chance
1023 1.1 rvb * to free the pathname.
1024 1.1 rvb */
1025 1.1 rvb if ((cnp->cn_nameiop == DELETE)
1026 1.1 rvb && (cnp->cn_flags & ISLASTCN)
1027 1.1 rvb && !error)
1028 1.1 rvb {
1029 1.1 rvb cnp->cn_flags |= SAVENAME;
1030 1.1 rvb }
1031 1.1 rvb
1032 1.1 rvb /*
1033 1.1 rvb * If the lookup went well, we need to (potentially?) unlock the
1034 1.1 rvb * parent, and lock the child. We are only responsible for
1035 1.1 rvb * checking to see if the parent is supposed to be unlocked before
1036 1.1 rvb * we return. We must always lock the child (provided there is
1037 1.1 rvb * one, and (the parent isn't locked or it isn't the same as the
1038 1.1 rvb * parent.) Simple, huh? We can never leave the parent locked unless
1039 1.1 rvb * we are ISLASTCN
1040 1.1 rvb */
1041 1.1 rvb if (!error || (error == EJUSTRETURN)) {
1042 1.1 rvb if (!(cnp->cn_flags & LOCKPARENT) || !(cnp->cn_flags & ISLASTCN)) {
1043 1.2 rvb if ((error = VOP_UNLOCK(dvp, 0))) {
1044 1.1 rvb return error;
1045 1.1 rvb }
1046 1.10 wrstuden cnp->cn_flags |= PDIRUNLOCK;
1047 1.1 rvb /*
1048 1.1 rvb * The parent is unlocked. As long as there is a child,
1049 1.1 rvb * lock it without bothering to check anything else.
1050 1.1 rvb */
1051 1.1 rvb if (*ap->a_vpp) {
1052 1.2 rvb if ((error = vn_lock(*ap->a_vpp, LK_EXCLUSIVE))) {
1053 1.3 rvb printf("coda_lookup: ");
1054 1.1 rvb panic("unlocked parent but couldn't lock child");
1055 1.1 rvb }
1056 1.1 rvb }
1057 1.1 rvb } else {
1058 1.1 rvb /* The parent is locked, and may be the same as the child */
1059 1.1 rvb if (*ap->a_vpp && (*ap->a_vpp != dvp)) {
1060 1.1 rvb /* Different, go ahead and lock it. */
1061 1.2 rvb if ((error = vn_lock(*ap->a_vpp, LK_EXCLUSIVE))) {
1062 1.3 rvb printf("coda_lookup: ");
1063 1.1 rvb panic("unlocked parent but couldn't lock child");
1064 1.1 rvb }
1065 1.1 rvb }
1066 1.1 rvb }
1067 1.1 rvb } else {
1068 1.1 rvb /* If the lookup failed, we need to ensure that the leaf is NULL */
1069 1.1 rvb /* Don't change any locking? */
1070 1.1 rvb *ap->a_vpp = NULL;
1071 1.1 rvb }
1072 1.1 rvb return(error);
1073 1.1 rvb }
1074 1.1 rvb
1075 1.1 rvb /*ARGSUSED*/
1076 1.1 rvb int
1077 1.3 rvb coda_create(v)
1078 1.1 rvb void *v;
1079 1.1 rvb {
1080 1.1 rvb /* true args */
1081 1.1 rvb struct vop_create_args *ap = v;
1082 1.1 rvb struct vnode *dvp = ap->a_dvp;
1083 1.1 rvb struct cnode *dcp = VTOC(dvp);
1084 1.1 rvb struct vattr *va = ap->a_vap;
1085 1.1 rvb int exclusive = 1;
1086 1.1 rvb int mode = ap->a_vap->va_mode;
1087 1.1 rvb struct vnode **vpp = ap->a_vpp;
1088 1.1 rvb struct componentname *cnp = ap->a_cnp;
1089 1.1 rvb struct ucred *cred = cnp->cn_cred;
1090 1.1 rvb struct proc *p = cnp->cn_proc;
1091 1.1 rvb /* locals */
1092 1.1 rvb int error;
1093 1.1 rvb struct cnode *cp;
1094 1.1 rvb const char *nm = cnp->cn_nameptr;
1095 1.1 rvb int len = cnp->cn_namelen;
1096 1.1 rvb ViceFid VFid;
1097 1.1 rvb struct vattr attr;
1098 1.1 rvb
1099 1.3 rvb MARK_ENTRY(CODA_CREATE_STATS);
1100 1.1 rvb
1101 1.1 rvb /* All creates are exclusive XXX */
1102 1.1 rvb /* I'm assuming the 'mode' argument is the file mode bits XXX */
1103 1.1 rvb
1104 1.1 rvb /* Check for create of control object. */
1105 1.1 rvb if (IS_CTL_NAME(dvp, nm, len)) {
1106 1.1 rvb *vpp = (struct vnode *)0;
1107 1.3 rvb MARK_INT_FAIL(CODA_CREATE_STATS);
1108 1.1 rvb return(EACCES);
1109 1.1 rvb }
1110 1.1 rvb
1111 1.1 rvb error = venus_create(vtomi(dvp), &dcp->c_fid, nm, len, exclusive, mode, va, cred, p, &VFid, &attr);
1112 1.1 rvb
1113 1.1 rvb if (!error) {
1114 1.1 rvb
1115 1.1 rvb /* If this is an exclusive create, panic if the file already exists. */
1116 1.1 rvb /* Venus should have detected the file and reported EEXIST. */
1117 1.1 rvb
1118 1.1 rvb if ((exclusive == 1) &&
1119 1.3 rvb (coda_find(&VFid) != NULL))
1120 1.1 rvb panic("cnode existed for newly created file!");
1121 1.1 rvb
1122 1.3 rvb cp = make_coda_node(&VFid, dvp->v_mount, attr.va_type);
1123 1.1 rvb *vpp = CTOV(cp);
1124 1.1 rvb
1125 1.1 rvb /* Update va to reflect the new attributes. */
1126 1.1 rvb (*va) = attr;
1127 1.1 rvb
1128 1.1 rvb /* Update the attribute cache and mark it as valid */
1129 1.3 rvb if (coda_attr_cache) {
1130 1.1 rvb VTOC(*vpp)->c_vattr = attr;
1131 1.1 rvb VTOC(*vpp)->c_flags |= C_VATTR;
1132 1.1 rvb }
1133 1.1 rvb
1134 1.1 rvb /* Invalidate the parent's attr cache, the modification time has changed */
1135 1.1 rvb VTOC(dvp)->c_flags &= ~C_VATTR;
1136 1.1 rvb
1137 1.1 rvb /* enter the new vnode in the Name Cache */
1138 1.3 rvb coda_nc_enter(VTOC(dvp), nm, len, cred, VTOC(*vpp));
1139 1.1 rvb
1140 1.3 rvb CODADEBUG(CODA_CREATE,
1141 1.1 rvb myprintf(("create: (%lx.%lx.%lx), result %d\n",
1142 1.1 rvb VFid.Volume, VFid.Vnode, VFid.Unique, error)); )
1143 1.1 rvb } else {
1144 1.1 rvb *vpp = (struct vnode *)0;
1145 1.3 rvb CODADEBUG(CODA_CREATE, myprintf(("create error %d\n", error));)
1146 1.1 rvb }
1147 1.1 rvb
1148 1.1 rvb /* Locking strategy. */
1149 1.1 rvb /*
1150 1.1 rvb * In NetBSD, all creates must explicitly vput their dvp's. We'll
1151 1.1 rvb * go ahead and use the LOCKLEAF flag of the cnp argument.
1152 1.1 rvb * However, I'm pretty sure that create must return the leaf
1153 1.1 rvb * locked; so there is a DIAGNOSTIC check to ensure that this is
1154 1.1 rvb * true.
1155 1.1 rvb */
1156 1.1 rvb vput(dvp);
1157 1.1 rvb if (!error) {
1158 1.1 rvb if (cnp->cn_flags & LOCKLEAF) {
1159 1.2 rvb if ((error = vn_lock(*ap->a_vpp, LK_EXCLUSIVE))) {
1160 1.3 rvb printf("coda_create: ");
1161 1.1 rvb panic("unlocked parent but couldn't lock child");
1162 1.1 rvb }
1163 1.1 rvb }
1164 1.7 rvb #ifdef OLD_DIAGNOSTIC
1165 1.1 rvb else {
1166 1.3 rvb printf("coda_create: LOCKLEAF not set!\n");
1167 1.1 rvb }
1168 1.5 rvb #endif
1169 1.1 rvb }
1170 1.1 rvb /* Have to free the previously saved name */
1171 1.1 rvb /*
1172 1.1 rvb * This condition is stolen from ufs_makeinode. I have no idea
1173 1.1 rvb * why it's here, but what the hey...
1174 1.1 rvb */
1175 1.1 rvb if ((cnp->cn_flags & SAVESTART) == 0) {
1176 1.20 thorpej PNBUF_PUT(cnp->cn_pnbuf);
1177 1.1 rvb }
1178 1.1 rvb return(error);
1179 1.1 rvb }
1180 1.1 rvb
1181 1.1 rvb int
1182 1.3 rvb coda_remove(v)
1183 1.1 rvb void *v;
1184 1.1 rvb {
1185 1.1 rvb /* true args */
1186 1.1 rvb struct vop_remove_args *ap = v;
1187 1.1 rvb struct vnode *dvp = ap->a_dvp;
1188 1.1 rvb struct cnode *cp = VTOC(dvp);
1189 1.1 rvb struct componentname *cnp = ap->a_cnp;
1190 1.1 rvb struct ucred *cred = cnp->cn_cred;
1191 1.1 rvb struct proc *p = cnp->cn_proc;
1192 1.1 rvb /* locals */
1193 1.1 rvb int error;
1194 1.1 rvb const char *nm = cnp->cn_nameptr;
1195 1.1 rvb int len = cnp->cn_namelen;
1196 1.1 rvb struct cnode *tp;
1197 1.1 rvb
1198 1.3 rvb MARK_ENTRY(CODA_REMOVE_STATS);
1199 1.1 rvb
1200 1.3 rvb CODADEBUG(CODA_REMOVE, myprintf(("remove: %s in %lx.%lx.%lx\n",
1201 1.1 rvb nm, cp->c_fid.Volume, cp->c_fid.Vnode,
1202 1.1 rvb cp->c_fid.Unique)););
1203 1.1 rvb
1204 1.3 rvb /* Remove the file's entry from the CODA Name Cache */
1205 1.1 rvb /* We're being conservative here, it might be that this person
1206 1.1 rvb * doesn't really have sufficient access to delete the file
1207 1.1 rvb * but we feel zapping the entry won't really hurt anyone -- dcs
1208 1.1 rvb */
1209 1.1 rvb /* I'm gonna go out on a limb here. If a file and a hardlink to it
1210 1.1 rvb * exist, and one is removed, the link count on the other will be
1211 1.1 rvb * off by 1. We could either invalidate the attrs if cached, or
1212 1.1 rvb * fix them. I'll try to fix them. DCS 11/8/94
1213 1.1 rvb */
1214 1.3 rvb tp = coda_nc_lookup(VTOC(dvp), nm, len, cred);
1215 1.1 rvb if (tp) {
1216 1.1 rvb if (VALID_VATTR(tp)) { /* If attrs are cached */
1217 1.1 rvb if (tp->c_vattr.va_nlink > 1) { /* If it's a hard link */
1218 1.1 rvb tp->c_vattr.va_nlink--;
1219 1.1 rvb }
1220 1.1 rvb }
1221 1.1 rvb
1222 1.3 rvb coda_nc_zapfile(VTOC(dvp), nm, len);
1223 1.1 rvb /* No need to flush it if it doesn't exist! */
1224 1.1 rvb }
1225 1.1 rvb /* Invalidate the parent's attr cache, the modification time has changed */
1226 1.1 rvb VTOC(dvp)->c_flags &= ~C_VATTR;
1227 1.1 rvb
1228 1.1 rvb /* Check for remove of control object. */
1229 1.1 rvb if (IS_CTL_NAME(dvp, nm, len)) {
1230 1.3 rvb MARK_INT_FAIL(CODA_REMOVE_STATS);
1231 1.1 rvb return(ENOENT);
1232 1.1 rvb }
1233 1.1 rvb
1234 1.1 rvb error = venus_remove(vtomi(dvp), &cp->c_fid, nm, len, cred, p);
1235 1.1 rvb
1236 1.3 rvb CODADEBUG(CODA_REMOVE, myprintf(("in remove result %d\n",error)); )
1237 1.1 rvb
1238 1.1 rvb /*
1239 1.1 rvb * Regardless of what happens, we have to unconditionally drop
1240 1.1 rvb * locks/refs on parent and child. (I hope). This is based on
1241 1.1 rvb * what ufs_remove seems to be doing.
1242 1.1 rvb */
1243 1.1 rvb if (dvp == ap->a_vp) {
1244 1.1 rvb vrele(ap->a_vp);
1245 1.1 rvb } else {
1246 1.1 rvb vput(ap->a_vp);
1247 1.1 rvb }
1248 1.1 rvb vput(dvp);
1249 1.1 rvb
1250 1.1 rvb if ((cnp->cn_flags & SAVESTART) == 0) {
1251 1.20 thorpej PNBUF_PUT(cnp->cn_pnbuf);
1252 1.1 rvb }
1253 1.1 rvb return(error);
1254 1.1 rvb }
1255 1.1 rvb
1256 1.1 rvb int
1257 1.3 rvb coda_link(v)
1258 1.1 rvb void *v;
1259 1.1 rvb {
1260 1.1 rvb /* true args */
1261 1.1 rvb struct vop_link_args *ap = v;
1262 1.1 rvb struct vnode *vp = ap->a_vp;
1263 1.1 rvb struct cnode *cp = VTOC(vp);
1264 1.1 rvb struct vnode *tdvp = ap->a_dvp;
1265 1.1 rvb struct cnode *tdcp = VTOC(tdvp);
1266 1.1 rvb struct componentname *cnp = ap->a_cnp;
1267 1.1 rvb struct ucred *cred = cnp->cn_cred;
1268 1.1 rvb struct proc *p = cnp->cn_proc;
1269 1.1 rvb /* locals */
1270 1.1 rvb int error;
1271 1.1 rvb const char *nm = cnp->cn_nameptr;
1272 1.1 rvb int len = cnp->cn_namelen;
1273 1.1 rvb
1274 1.3 rvb MARK_ENTRY(CODA_LINK_STATS);
1275 1.1 rvb
1276 1.3 rvb if (codadebug & CODADBGMSK(CODA_LINK)) {
1277 1.1 rvb
1278 1.1 rvb myprintf(("nb_link: vp fid: (%lx.%lx.%lx)\n",
1279 1.1 rvb cp->c_fid.Volume, cp->c_fid.Vnode, cp->c_fid.Unique));
1280 1.1 rvb myprintf(("nb_link: tdvp fid: (%lx.%lx.%lx)\n",
1281 1.1 rvb tdcp->c_fid.Volume, tdcp->c_fid.Vnode, tdcp->c_fid.Unique));
1282 1.1 rvb
1283 1.1 rvb }
1284 1.3 rvb if (codadebug & CODADBGMSK(CODA_LINK)) {
1285 1.1 rvb myprintf(("link: vp fid: (%lx.%lx.%lx)\n",
1286 1.1 rvb cp->c_fid.Volume, cp->c_fid.Vnode, cp->c_fid.Unique));
1287 1.1 rvb myprintf(("link: tdvp fid: (%lx.%lx.%lx)\n",
1288 1.1 rvb tdcp->c_fid.Volume, tdcp->c_fid.Vnode, tdcp->c_fid.Unique));
1289 1.1 rvb
1290 1.1 rvb }
1291 1.1 rvb
1292 1.1 rvb /* Check for link to/from control object. */
1293 1.1 rvb if (IS_CTL_NAME(tdvp, nm, len) || IS_CTL_VP(vp)) {
1294 1.3 rvb MARK_INT_FAIL(CODA_LINK_STATS);
1295 1.1 rvb return(EACCES);
1296 1.1 rvb }
1297 1.1 rvb
1298 1.1 rvb /*
1299 1.1 rvb * According to the ufs_link operation here's the locking situation:
1300 1.1 rvb * We enter with the thing called "dvp" (the directory) locked.
1301 1.1 rvb * We must unconditionally drop locks on "dvp"
1302 1.1 rvb *
1303 1.1 rvb * We enter with the thing called "vp" (the linked-to) unlocked,
1304 1.1 rvb * but ref'd (?)
1305 1.3 rvb * We seem to need to lock it before calling coda_link, and
1306 1.1 rvb * unconditionally unlock it after.
1307 1.1 rvb */
1308 1.1 rvb
1309 1.2 rvb if ((ap->a_vp != tdvp) && (error = vn_lock(ap->a_vp, LK_EXCLUSIVE))) {
1310 1.1 rvb goto exit;
1311 1.1 rvb }
1312 1.1 rvb
1313 1.1 rvb error = venus_link(vtomi(vp), &cp->c_fid, &tdcp->c_fid, nm, len, cred, p);
1314 1.1 rvb
1315 1.1 rvb /* Invalidate the parent's attr cache, the modification time has changed */
1316 1.1 rvb VTOC(tdvp)->c_flags &= ~C_VATTR;
1317 1.1 rvb VTOC(vp)->c_flags &= ~C_VATTR;
1318 1.1 rvb
1319 1.3 rvb CODADEBUG(CODA_LINK, myprintf(("in link result %d\n",error)); )
1320 1.1 rvb
1321 1.1 rvb exit:
1322 1.1 rvb
1323 1.1 rvb if (ap->a_vp != tdvp) {
1324 1.2 rvb VOP_UNLOCK(ap->a_vp, 0);
1325 1.1 rvb }
1326 1.1 rvb vput(tdvp);
1327 1.1 rvb
1328 1.1 rvb /* Drop the name buffer if we don't need to SAVESTART */
1329 1.1 rvb if ((cnp->cn_flags & SAVESTART) == 0) {
1330 1.20 thorpej PNBUF_PUT(cnp->cn_pnbuf);
1331 1.1 rvb }
1332 1.1 rvb return(error);
1333 1.1 rvb }
1334 1.1 rvb
1335 1.1 rvb int
1336 1.3 rvb coda_rename(v)
1337 1.1 rvb void *v;
1338 1.1 rvb {
1339 1.1 rvb /* true args */
1340 1.1 rvb struct vop_rename_args *ap = v;
1341 1.1 rvb struct vnode *odvp = ap->a_fdvp;
1342 1.1 rvb struct cnode *odcp = VTOC(odvp);
1343 1.1 rvb struct componentname *fcnp = ap->a_fcnp;
1344 1.1 rvb struct vnode *ndvp = ap->a_tdvp;
1345 1.1 rvb struct cnode *ndcp = VTOC(ndvp);
1346 1.1 rvb struct componentname *tcnp = ap->a_tcnp;
1347 1.1 rvb struct ucred *cred = fcnp->cn_cred;
1348 1.1 rvb struct proc *p = fcnp->cn_proc;
1349 1.1 rvb /* true args */
1350 1.1 rvb int error;
1351 1.1 rvb const char *fnm = fcnp->cn_nameptr;
1352 1.1 rvb int flen = fcnp->cn_namelen;
1353 1.1 rvb const char *tnm = tcnp->cn_nameptr;
1354 1.1 rvb int tlen = tcnp->cn_namelen;
1355 1.1 rvb
1356 1.3 rvb MARK_ENTRY(CODA_RENAME_STATS);
1357 1.1 rvb
1358 1.1 rvb /* Hmmm. The vnodes are already looked up. Perhaps they are locked?
1359 1.1 rvb This could be Bad. XXX */
1360 1.5 rvb #ifdef OLD_DIAGNOSTIC
1361 1.1 rvb if ((fcnp->cn_cred != tcnp->cn_cred)
1362 1.1 rvb || (fcnp->cn_proc != tcnp->cn_proc))
1363 1.1 rvb {
1364 1.3 rvb panic("coda_rename: component names don't agree");
1365 1.1 rvb }
1366 1.5 rvb #endif
1367 1.1 rvb
1368 1.1 rvb /* Check for rename involving control object. */
1369 1.1 rvb if (IS_CTL_NAME(odvp, fnm, flen) || IS_CTL_NAME(ndvp, tnm, tlen)) {
1370 1.3 rvb MARK_INT_FAIL(CODA_RENAME_STATS);
1371 1.1 rvb return(EACCES);
1372 1.1 rvb }
1373 1.1 rvb
1374 1.1 rvb /* Problem with moving directories -- need to flush entry for .. */
1375 1.1 rvb if (odvp != ndvp) {
1376 1.3 rvb struct cnode *ovcp = coda_nc_lookup(VTOC(odvp), fnm, flen, cred);
1377 1.1 rvb if (ovcp) {
1378 1.1 rvb struct vnode *ovp = CTOV(ovcp);
1379 1.1 rvb if ((ovp) &&
1380 1.1 rvb (ovp->v_type == VDIR)) /* If it's a directory */
1381 1.3 rvb coda_nc_zapfile(VTOC(ovp),"..", 2);
1382 1.1 rvb }
1383 1.1 rvb }
1384 1.1 rvb
1385 1.1 rvb /* Remove the entries for both source and target files */
1386 1.3 rvb coda_nc_zapfile(VTOC(odvp), fnm, flen);
1387 1.3 rvb coda_nc_zapfile(VTOC(ndvp), tnm, tlen);
1388 1.1 rvb
1389 1.1 rvb /* Invalidate the parent's attr cache, the modification time has changed */
1390 1.1 rvb VTOC(odvp)->c_flags &= ~C_VATTR;
1391 1.1 rvb VTOC(ndvp)->c_flags &= ~C_VATTR;
1392 1.1 rvb
1393 1.3 rvb if (flen+1 > CODA_MAXNAMLEN) {
1394 1.3 rvb MARK_INT_FAIL(CODA_RENAME_STATS);
1395 1.1 rvb error = EINVAL;
1396 1.1 rvb goto exit;
1397 1.1 rvb }
1398 1.1 rvb
1399 1.3 rvb if (tlen+1 > CODA_MAXNAMLEN) {
1400 1.3 rvb MARK_INT_FAIL(CODA_RENAME_STATS);
1401 1.1 rvb error = EINVAL;
1402 1.1 rvb goto exit;
1403 1.1 rvb }
1404 1.1 rvb
1405 1.1 rvb error = venus_rename(vtomi(odvp), &odcp->c_fid, &ndcp->c_fid, fnm, flen, tnm, tlen, cred, p);
1406 1.1 rvb
1407 1.1 rvb exit:
1408 1.3 rvb CODADEBUG(CODA_RENAME, myprintf(("in rename result %d\n",error));)
1409 1.1 rvb /* XXX - do we need to call cache pureg on the moved vnode? */
1410 1.1 rvb cache_purge(ap->a_fvp);
1411 1.1 rvb
1412 1.1 rvb /* It seems to be incumbent on us to drop locks on all four vnodes */
1413 1.1 rvb /* From-vnodes are not locked, only ref'd. To-vnodes are locked. */
1414 1.1 rvb
1415 1.1 rvb vrele(ap->a_fvp);
1416 1.1 rvb vrele(odvp);
1417 1.1 rvb
1418 1.1 rvb if (ap->a_tvp) {
1419 1.1 rvb if (ap->a_tvp == ndvp) {
1420 1.1 rvb vrele(ap->a_tvp);
1421 1.1 rvb } else {
1422 1.1 rvb vput(ap->a_tvp);
1423 1.1 rvb }
1424 1.1 rvb }
1425 1.1 rvb
1426 1.1 rvb vput(ndvp);
1427 1.1 rvb return(error);
1428 1.1 rvb }
1429 1.1 rvb
1430 1.1 rvb int
1431 1.3 rvb coda_mkdir(v)
1432 1.1 rvb void *v;
1433 1.1 rvb {
1434 1.1 rvb /* true args */
1435 1.1 rvb struct vop_mkdir_args *ap = v;
1436 1.1 rvb struct vnode *dvp = ap->a_dvp;
1437 1.1 rvb struct cnode *dcp = VTOC(dvp);
1438 1.1 rvb struct componentname *cnp = ap->a_cnp;
1439 1.17 augustss struct vattr *va = ap->a_vap;
1440 1.1 rvb struct vnode **vpp = ap->a_vpp;
1441 1.1 rvb struct ucred *cred = cnp->cn_cred;
1442 1.1 rvb struct proc *p = cnp->cn_proc;
1443 1.1 rvb /* locals */
1444 1.1 rvb int error;
1445 1.1 rvb const char *nm = cnp->cn_nameptr;
1446 1.1 rvb int len = cnp->cn_namelen;
1447 1.1 rvb struct cnode *cp;
1448 1.1 rvb ViceFid VFid;
1449 1.1 rvb struct vattr ova;
1450 1.1 rvb
1451 1.3 rvb MARK_ENTRY(CODA_MKDIR_STATS);
1452 1.1 rvb
1453 1.1 rvb /* Check for mkdir of target object. */
1454 1.1 rvb if (IS_CTL_NAME(dvp, nm, len)) {
1455 1.1 rvb *vpp = (struct vnode *)0;
1456 1.3 rvb MARK_INT_FAIL(CODA_MKDIR_STATS);
1457 1.1 rvb return(EACCES);
1458 1.1 rvb }
1459 1.1 rvb
1460 1.3 rvb if (len+1 > CODA_MAXNAMLEN) {
1461 1.1 rvb *vpp = (struct vnode *)0;
1462 1.3 rvb MARK_INT_FAIL(CODA_MKDIR_STATS);
1463 1.1 rvb return(EACCES);
1464 1.1 rvb }
1465 1.1 rvb
1466 1.1 rvb error = venus_mkdir(vtomi(dvp), &dcp->c_fid, nm, len, va, cred, p, &VFid, &ova);
1467 1.1 rvb
1468 1.1 rvb if (!error) {
1469 1.3 rvb if (coda_find(&VFid) != NULL)
1470 1.1 rvb panic("cnode existed for newly created directory!");
1471 1.1 rvb
1472 1.1 rvb
1473 1.3 rvb cp = make_coda_node(&VFid, dvp->v_mount, va->va_type);
1474 1.1 rvb *vpp = CTOV(cp);
1475 1.1 rvb
1476 1.1 rvb /* enter the new vnode in the Name Cache */
1477 1.3 rvb coda_nc_enter(VTOC(dvp), nm, len, cred, VTOC(*vpp));
1478 1.1 rvb
1479 1.1 rvb /* as a side effect, enter "." and ".." for the directory */
1480 1.3 rvb coda_nc_enter(VTOC(*vpp), ".", 1, cred, VTOC(*vpp));
1481 1.3 rvb coda_nc_enter(VTOC(*vpp), "..", 2, cred, VTOC(dvp));
1482 1.1 rvb
1483 1.3 rvb if (coda_attr_cache) {
1484 1.1 rvb VTOC(*vpp)->c_vattr = ova; /* update the attr cache */
1485 1.1 rvb VTOC(*vpp)->c_flags |= C_VATTR; /* Valid attributes in cnode */
1486 1.1 rvb }
1487 1.1 rvb
1488 1.1 rvb /* Invalidate the parent's attr cache, the modification time has changed */
1489 1.1 rvb VTOC(dvp)->c_flags &= ~C_VATTR;
1490 1.1 rvb
1491 1.3 rvb CODADEBUG( CODA_MKDIR, myprintf(("mkdir: (%lx.%lx.%lx) result %d\n",
1492 1.1 rvb VFid.Volume, VFid.Vnode, VFid.Unique, error)); )
1493 1.1 rvb } else {
1494 1.1 rvb *vpp = (struct vnode *)0;
1495 1.3 rvb CODADEBUG(CODA_MKDIR, myprintf(("mkdir error %d\n",error));)
1496 1.1 rvb }
1497 1.1 rvb
1498 1.1 rvb /*
1499 1.1 rvb * Currently, all mkdirs explicitly vput their dvp's.
1500 1.1 rvb * It also appears that we *must* lock the vpp, since
1501 1.1 rvb * lockleaf isn't set, but someone down the road is going
1502 1.1 rvb * to try to unlock the new directory.
1503 1.1 rvb */
1504 1.1 rvb vput(dvp);
1505 1.1 rvb if (!error) {
1506 1.2 rvb if ((error = vn_lock(*ap->a_vpp, LK_EXCLUSIVE))) {
1507 1.3 rvb panic("coda_mkdir: couldn't lock child");
1508 1.1 rvb }
1509 1.1 rvb }
1510 1.1 rvb
1511 1.1 rvb /* Have to free the previously saved name */
1512 1.1 rvb /*
1513 1.1 rvb * ufs_mkdir doesn't check for SAVESTART before freeing the
1514 1.1 rvb * pathname buffer, but ufs_create does. For the moment, I'll
1515 1.1 rvb * follow their lead, but this seems like it is probably
1516 1.1 rvb * incorrect.
1517 1.1 rvb */
1518 1.20 thorpej PNBUF_PUT(cnp->cn_pnbuf);
1519 1.1 rvb return(error);
1520 1.1 rvb }
1521 1.1 rvb
1522 1.1 rvb int
1523 1.3 rvb coda_rmdir(v)
1524 1.1 rvb void *v;
1525 1.1 rvb {
1526 1.1 rvb /* true args */
1527 1.1 rvb struct vop_rmdir_args *ap = v;
1528 1.1 rvb struct vnode *dvp = ap->a_dvp;
1529 1.1 rvb struct cnode *dcp = VTOC(dvp);
1530 1.1 rvb struct componentname *cnp = ap->a_cnp;
1531 1.1 rvb struct ucred *cred = cnp->cn_cred;
1532 1.1 rvb struct proc *p = cnp->cn_proc;
1533 1.1 rvb /* true args */
1534 1.1 rvb int error;
1535 1.1 rvb const char *nm = cnp->cn_nameptr;
1536 1.1 rvb int len = cnp->cn_namelen;
1537 1.1 rvb struct cnode *cp;
1538 1.1 rvb
1539 1.3 rvb MARK_ENTRY(CODA_RMDIR_STATS);
1540 1.1 rvb
1541 1.1 rvb /* Check for rmdir of control object. */
1542 1.1 rvb if (IS_CTL_NAME(dvp, nm, len)) {
1543 1.3 rvb MARK_INT_FAIL(CODA_RMDIR_STATS);
1544 1.1 rvb return(ENOENT);
1545 1.1 rvb }
1546 1.1 rvb
1547 1.1 rvb /* We're being conservative here, it might be that this person
1548 1.1 rvb * doesn't really have sufficient access to delete the file
1549 1.1 rvb * but we feel zapping the entry won't really hurt anyone -- dcs
1550 1.1 rvb */
1551 1.1 rvb /*
1552 1.1 rvb * As a side effect of the rmdir, remove any entries for children of
1553 1.1 rvb * the directory, especially "." and "..".
1554 1.1 rvb */
1555 1.3 rvb cp = coda_nc_lookup(dcp, nm, len, cred);
1556 1.3 rvb if (cp) coda_nc_zapParentfid(&(cp->c_fid), NOT_DOWNCALL);
1557 1.1 rvb
1558 1.3 rvb /* Remove the file's entry from the CODA Name Cache */
1559 1.3 rvb coda_nc_zapfile(dcp, nm, len);
1560 1.1 rvb
1561 1.1 rvb /* Invalidate the parent's attr cache, the modification time has changed */
1562 1.1 rvb dcp->c_flags &= ~C_VATTR;
1563 1.1 rvb
1564 1.1 rvb error = venus_rmdir(vtomi(dvp), &dcp->c_fid, nm, len, cred, p);
1565 1.1 rvb
1566 1.3 rvb CODADEBUG(CODA_RMDIR, myprintf(("in rmdir result %d\n", error)); )
1567 1.1 rvb
1568 1.1 rvb /*
1569 1.1 rvb * regardless of what happens, we need to drop locks/refs on the
1570 1.1 rvb * parent and child. I think.
1571 1.1 rvb */
1572 1.1 rvb if (dvp == ap->a_vp) {
1573 1.1 rvb vrele(ap->a_vp);
1574 1.1 rvb } else {
1575 1.1 rvb vput(ap->a_vp);
1576 1.1 rvb }
1577 1.1 rvb vput(dvp);
1578 1.1 rvb
1579 1.1 rvb if ((cnp->cn_flags & SAVESTART) == 0) {
1580 1.20 thorpej PNBUF_PUT(cnp->cn_pnbuf);
1581 1.1 rvb }
1582 1.1 rvb return(error);
1583 1.1 rvb }
1584 1.1 rvb
1585 1.1 rvb int
1586 1.3 rvb coda_symlink(v)
1587 1.1 rvb void *v;
1588 1.1 rvb {
1589 1.1 rvb /* true args */
1590 1.1 rvb struct vop_symlink_args *ap = v;
1591 1.1 rvb struct vnode *tdvp = ap->a_dvp;
1592 1.1 rvb struct cnode *tdcp = VTOC(tdvp);
1593 1.1 rvb struct componentname *cnp = ap->a_cnp;
1594 1.1 rvb struct vattr *tva = ap->a_vap;
1595 1.1 rvb char *path = ap->a_target;
1596 1.1 rvb struct ucred *cred = cnp->cn_cred;
1597 1.1 rvb struct proc *p = cnp->cn_proc;
1598 1.1 rvb /* locals */
1599 1.1 rvb int error;
1600 1.1 rvb /*
1601 1.3 rvb * XXX I'm assuming the following things about coda_symlink's
1602 1.1 rvb * arguments:
1603 1.1 rvb * t(foo) is the new name/parent/etc being created.
1604 1.1 rvb * lname is the contents of the new symlink.
1605 1.1 rvb */
1606 1.2 rvb const char *nm = cnp->cn_nameptr;
1607 1.1 rvb int len = cnp->cn_namelen;
1608 1.1 rvb int plen = strlen(path);
1609 1.1 rvb
1610 1.1 rvb /* XXX What about the vpp argument? Do we need it? */
1611 1.1 rvb /*
1612 1.1 rvb * Here's the strategy for the moment: perform the symlink, then
1613 1.1 rvb * do a lookup to grab the resulting vnode. I know this requires
1614 1.1 rvb * two communications with Venus for a new sybolic link, but
1615 1.1 rvb * that's the way the ball bounces. I don't yet want to change
1616 1.1 rvb * the way the Mach symlink works. When Mach support is
1617 1.1 rvb * deprecated, we should change symlink so that the common case
1618 1.1 rvb * returns the resultant vnode in a vpp argument.
1619 1.1 rvb */
1620 1.1 rvb
1621 1.3 rvb MARK_ENTRY(CODA_SYMLINK_STATS);
1622 1.1 rvb
1623 1.1 rvb /* Check for symlink of control object. */
1624 1.1 rvb if (IS_CTL_NAME(tdvp, nm, len)) {
1625 1.3 rvb MARK_INT_FAIL(CODA_SYMLINK_STATS);
1626 1.1 rvb return(EACCES);
1627 1.1 rvb }
1628 1.1 rvb
1629 1.3 rvb if (plen+1 > CODA_MAXPATHLEN) {
1630 1.3 rvb MARK_INT_FAIL(CODA_SYMLINK_STATS);
1631 1.1 rvb return(EINVAL);
1632 1.1 rvb }
1633 1.1 rvb
1634 1.3 rvb if (len+1 > CODA_MAXNAMLEN) {
1635 1.3 rvb MARK_INT_FAIL(CODA_SYMLINK_STATS);
1636 1.1 rvb error = EINVAL;
1637 1.1 rvb goto exit;
1638 1.1 rvb }
1639 1.1 rvb
1640 1.1 rvb error = venus_symlink(vtomi(tdvp), &tdcp->c_fid, path, plen, nm, len, tva, cred, p);
1641 1.1 rvb
1642 1.1 rvb /* Invalidate the parent's attr cache, the modification time has changed */
1643 1.1 rvb tdcp->c_flags &= ~C_VATTR;
1644 1.1 rvb
1645 1.1 rvb if (!error)
1646 1.1 rvb {
1647 1.1 rvb struct nameidata nd;
1648 1.1 rvb NDINIT(&nd, LOOKUP, FOLLOW|LOCKLEAF, UIO_SYSSPACE, nm, p);
1649 1.1 rvb nd.ni_cnd.cn_cred = cred;
1650 1.1 rvb nd.ni_loopcnt = 0;
1651 1.1 rvb nd.ni_startdir = tdvp;
1652 1.1 rvb nd.ni_cnd.cn_pnbuf = (char *)nm;
1653 1.1 rvb nd.ni_cnd.cn_nameptr = nd.ni_cnd.cn_pnbuf;
1654 1.1 rvb nd.ni_pathlen = len;
1655 1.1 rvb vput(tdvp);
1656 1.1 rvb error = lookup(&nd);
1657 1.1 rvb *ap->a_vpp = nd.ni_vp;
1658 1.1 rvb }
1659 1.1 rvb
1660 1.1 rvb /*
1661 1.1 rvb * Free the name buffer
1662 1.1 rvb */
1663 1.1 rvb if ((cnp->cn_flags & SAVESTART) == 0) {
1664 1.20 thorpej PNBUF_PUT(cnp->cn_pnbuf);
1665 1.1 rvb }
1666 1.1 rvb
1667 1.1 rvb exit:
1668 1.3 rvb CODADEBUG(CODA_SYMLINK, myprintf(("in symlink result %d\n",error)); )
1669 1.1 rvb return(error);
1670 1.1 rvb }
1671 1.1 rvb
1672 1.1 rvb /*
1673 1.1 rvb * Read directory entries.
1674 1.1 rvb */
1675 1.1 rvb int
1676 1.3 rvb coda_readdir(v)
1677 1.1 rvb void *v;
1678 1.1 rvb {
1679 1.1 rvb /* true args */
1680 1.1 rvb struct vop_readdir_args *ap = v;
1681 1.1 rvb struct vnode *vp = ap->a_vp;
1682 1.1 rvb struct cnode *cp = VTOC(vp);
1683 1.17 augustss struct uio *uiop = ap->a_uio;
1684 1.1 rvb struct ucred *cred = ap->a_cred;
1685 1.1 rvb int *eofflag = ap->a_eofflag;
1686 1.1 rvb off_t **cookies = ap->a_cookies;
1687 1.1 rvb int *ncookies = ap->a_ncookies;
1688 1.1 rvb struct proc *p = ap->a_uio->uio_procp;
1689 1.1 rvb /* upcall decl */
1690 1.1 rvb /* locals */
1691 1.1 rvb int error = 0;
1692 1.1 rvb
1693 1.3 rvb MARK_ENTRY(CODA_READDIR_STATS);
1694 1.1 rvb
1695 1.12 matt CODADEBUG(CODA_READDIR, myprintf(("coda_readdir(%p, %lu, %lld, %d)\n", uiop->uio_iov->iov_base, (unsigned long) uiop->uio_resid, (long long) uiop->uio_offset, uiop->uio_segflg)); )
1696 1.1 rvb
1697 1.1 rvb /* Check for readdir of control object. */
1698 1.1 rvb if (IS_CTL_VP(vp)) {
1699 1.3 rvb MARK_INT_FAIL(CODA_READDIR_STATS);
1700 1.1 rvb return(ENOENT);
1701 1.1 rvb }
1702 1.1 rvb
1703 1.2 rvb {
1704 1.1 rvb /* Redirect the request to UFS. */
1705 1.1 rvb
1706 1.1 rvb /* If directory is not already open do an "internal open" on it. */
1707 1.1 rvb int opened_internally = 0;
1708 1.1 rvb if (cp->c_ovp == NULL) {
1709 1.1 rvb opened_internally = 1;
1710 1.3 rvb MARK_INT_GEN(CODA_OPEN_STATS);
1711 1.1 rvb error = VOP_OPEN(vp, FREAD, cred, p);
1712 1.18 phil #ifdef CODA_VERBOSE
1713 1.3 rvb printf("coda_readdir: Internally Opening %p\n", vp);
1714 1.18 phil #endif
1715 1.1 rvb if (error) return(error);
1716 1.1 rvb }
1717 1.1 rvb
1718 1.1 rvb /* Have UFS handle the call. */
1719 1.22 chs CODADEBUG(CODA_READDIR, myprintf(("indirect readdir: fid = (%lx.%lx.%lx), refcnt = %d\n",cp->c_fid.Volume, cp->c_fid.Vnode, cp->c_fid.Unique, vp->v_usecount)); )
1720 1.1 rvb error = VOP_READDIR(cp->c_ovp, uiop, cred, eofflag, cookies,
1721 1.1 rvb ncookies);
1722 1.1 rvb if (error)
1723 1.3 rvb MARK_INT_FAIL(CODA_READDIR_STATS);
1724 1.1 rvb else
1725 1.3 rvb MARK_INT_SAT(CODA_READDIR_STATS);
1726 1.1 rvb
1727 1.1 rvb /* Do an "internal close" if necessary. */
1728 1.1 rvb if (opened_internally) {
1729 1.3 rvb MARK_INT_GEN(CODA_CLOSE_STATS);
1730 1.1 rvb (void)VOP_CLOSE(vp, FREAD, cred, p);
1731 1.1 rvb }
1732 1.1 rvb }
1733 1.1 rvb
1734 1.1 rvb return(error);
1735 1.1 rvb }
1736 1.1 rvb
1737 1.1 rvb /*
1738 1.1 rvb * Convert from file system blocks to device blocks
1739 1.1 rvb */
1740 1.1 rvb int
1741 1.3 rvb coda_bmap(v)
1742 1.1 rvb void *v;
1743 1.1 rvb {
1744 1.1 rvb /* XXX on the global proc */
1745 1.1 rvb /* true args */
1746 1.1 rvb struct vop_bmap_args *ap = v;
1747 1.1 rvb struct vnode *vp __attribute__((unused)) = ap->a_vp; /* file's vnode */
1748 1.1 rvb daddr_t bn __attribute__((unused)) = ap->a_bn; /* fs block number */
1749 1.1 rvb struct vnode **vpp = ap->a_vpp; /* RETURN vp of device */
1750 1.1 rvb daddr_t *bnp __attribute__((unused)) = ap->a_bnp; /* RETURN device block number */
1751 1.1 rvb struct proc *p __attribute__((unused)) = curproc;
1752 1.1 rvb /* upcall decl */
1753 1.1 rvb /* locals */
1754 1.1 rvb
1755 1.1 rvb *vpp = (struct vnode *)0;
1756 1.3 rvb myprintf(("coda_bmap called!\n"));
1757 1.1 rvb return(EINVAL);
1758 1.1 rvb }
1759 1.1 rvb
1760 1.1 rvb /*
1761 1.1 rvb * I don't think the following two things are used anywhere, so I've
1762 1.1 rvb * commented them out
1763 1.1 rvb *
1764 1.1 rvb * struct buf *async_bufhead;
1765 1.1 rvb * int async_daemon_count;
1766 1.1 rvb */
1767 1.1 rvb int
1768 1.3 rvb coda_strategy(v)
1769 1.1 rvb void *v;
1770 1.1 rvb {
1771 1.1 rvb /* true args */
1772 1.1 rvb struct vop_strategy_args *ap = v;
1773 1.17 augustss struct buf *bp __attribute__((unused)) = ap->a_bp;
1774 1.1 rvb struct proc *p __attribute__((unused)) = curproc;
1775 1.1 rvb /* upcall decl */
1776 1.1 rvb /* locals */
1777 1.1 rvb
1778 1.3 rvb myprintf(("coda_strategy called! "));
1779 1.1 rvb return(EINVAL);
1780 1.1 rvb }
1781 1.1 rvb
1782 1.1 rvb int
1783 1.3 rvb coda_reclaim(v)
1784 1.1 rvb void *v;
1785 1.1 rvb {
1786 1.1 rvb /* true args */
1787 1.1 rvb struct vop_reclaim_args *ap = v;
1788 1.1 rvb struct vnode *vp = ap->a_vp;
1789 1.1 rvb struct cnode *cp = VTOC(vp);
1790 1.1 rvb /* upcall decl */
1791 1.1 rvb /* locals */
1792 1.1 rvb
1793 1.1 rvb /*
1794 1.1 rvb * Forced unmount/flush will let vnodes with non zero use be destroyed!
1795 1.1 rvb */
1796 1.1 rvb ENTRY;
1797 1.1 rvb
1798 1.1 rvb if (IS_UNMOUNTING(cp)) {
1799 1.1 rvb #ifdef DEBUG
1800 1.1 rvb if (VTOC(vp)->c_ovp) {
1801 1.1 rvb if (IS_UNMOUNTING(cp))
1802 1.3 rvb printf("coda_reclaim: c_ovp not void: vp %p, cp %p\n", vp, cp);
1803 1.1 rvb }
1804 1.1 rvb #endif
1805 1.1 rvb } else {
1806 1.5 rvb #ifdef OLD_DIAGNOSTIC
1807 1.1 rvb if (vp->v_usecount != 0)
1808 1.5 rvb print("coda_reclaim: pushing active %p\n", vp);
1809 1.1 rvb if (VTOC(vp)->c_ovp) {
1810 1.3 rvb panic("coda_reclaim: c_ovp not void");
1811 1.2 rvb }
1812 1.5 rvb #endif
1813 1.1 rvb }
1814 1.1 rvb cache_purge(vp);
1815 1.3 rvb coda_free(VTOC(vp));
1816 1.25.2.2 thorpej SET_VTOC(vp) = NULL;
1817 1.1 rvb return (0);
1818 1.1 rvb }
1819 1.1 rvb
1820 1.1 rvb int
1821 1.3 rvb coda_lock(v)
1822 1.1 rvb void *v;
1823 1.1 rvb {
1824 1.1 rvb /* true args */
1825 1.1 rvb struct vop_lock_args *ap = v;
1826 1.1 rvb struct vnode *vp = ap->a_vp;
1827 1.1 rvb struct cnode *cp = VTOC(vp);
1828 1.1 rvb /* upcall decl */
1829 1.1 rvb /* locals */
1830 1.1 rvb
1831 1.1 rvb ENTRY;
1832 1.1 rvb
1833 1.3 rvb if (coda_lockdebug) {
1834 1.1 rvb myprintf(("Attempting lock on %lx.%lx.%lx\n",
1835 1.1 rvb cp->c_fid.Volume, cp->c_fid.Vnode, cp->c_fid.Unique));
1836 1.1 rvb }
1837 1.1 rvb
1838 1.10 wrstuden return (lockmgr(&vp->v_lock, ap->a_flags, &vp->v_interlock));
1839 1.1 rvb }
1840 1.1 rvb
1841 1.1 rvb int
1842 1.3 rvb coda_unlock(v)
1843 1.1 rvb void *v;
1844 1.1 rvb {
1845 1.1 rvb /* true args */
1846 1.1 rvb struct vop_unlock_args *ap = v;
1847 1.1 rvb struct vnode *vp = ap->a_vp;
1848 1.1 rvb struct cnode *cp = VTOC(vp);
1849 1.1 rvb /* upcall decl */
1850 1.1 rvb /* locals */
1851 1.1 rvb
1852 1.1 rvb ENTRY;
1853 1.3 rvb if (coda_lockdebug) {
1854 1.1 rvb myprintf(("Attempting unlock on %lx.%lx.%lx\n",
1855 1.1 rvb cp->c_fid.Volume, cp->c_fid.Vnode, cp->c_fid.Unique));
1856 1.1 rvb }
1857 1.1 rvb
1858 1.10 wrstuden return (lockmgr(&vp->v_lock, ap->a_flags | LK_RELEASE, &vp->v_interlock));
1859 1.1 rvb }
1860 1.1 rvb
1861 1.1 rvb int
1862 1.3 rvb coda_islocked(v)
1863 1.1 rvb void *v;
1864 1.1 rvb {
1865 1.1 rvb /* true args */
1866 1.1 rvb struct vop_islocked_args *ap = v;
1867 1.1 rvb ENTRY;
1868 1.1 rvb
1869 1.10 wrstuden return (lockstatus(&ap->a_vp->v_lock));
1870 1.1 rvb }
1871 1.1 rvb
1872 1.1 rvb /* How one looks up a vnode given a device/inode pair: */
1873 1.1 rvb int
1874 1.3 rvb coda_grab_vnode(dev_t dev, ino_t ino, struct vnode **vpp)
1875 1.1 rvb {
1876 1.1 rvb /* This is like VFS_VGET() or igetinode()! */
1877 1.1 rvb int error;
1878 1.1 rvb struct mount *mp;
1879 1.1 rvb
1880 1.1 rvb if (!(mp = devtomp(dev))) {
1881 1.3 rvb myprintf(("coda_grab_vnode: devtomp(%d) returns NULL\n", dev));
1882 1.1 rvb return(ENXIO);
1883 1.1 rvb }
1884 1.1 rvb
1885 1.1 rvb /* XXX - ensure that nonzero-return means failure */
1886 1.1 rvb error = VFS_VGET(mp,ino,vpp);
1887 1.1 rvb if (error) {
1888 1.3 rvb myprintf(("coda_grab_vnode: iget/vget(%d, %d) returns %p, err %d\n",
1889 1.1 rvb dev, ino, *vpp, error));
1890 1.1 rvb return(ENOENT);
1891 1.1 rvb }
1892 1.1 rvb return(0);
1893 1.1 rvb }
1894 1.1 rvb
1895 1.1 rvb void
1896 1.1 rvb print_vattr( attr )
1897 1.1 rvb struct vattr *attr;
1898 1.1 rvb {
1899 1.1 rvb char *typestr;
1900 1.1 rvb
1901 1.1 rvb switch (attr->va_type) {
1902 1.1 rvb case VNON:
1903 1.1 rvb typestr = "VNON";
1904 1.1 rvb break;
1905 1.1 rvb case VREG:
1906 1.1 rvb typestr = "VREG";
1907 1.1 rvb break;
1908 1.1 rvb case VDIR:
1909 1.1 rvb typestr = "VDIR";
1910 1.1 rvb break;
1911 1.1 rvb case VBLK:
1912 1.1 rvb typestr = "VBLK";
1913 1.1 rvb break;
1914 1.1 rvb case VCHR:
1915 1.1 rvb typestr = "VCHR";
1916 1.1 rvb break;
1917 1.1 rvb case VLNK:
1918 1.1 rvb typestr = "VLNK";
1919 1.1 rvb break;
1920 1.1 rvb case VSOCK:
1921 1.1 rvb typestr = "VSCK";
1922 1.1 rvb break;
1923 1.1 rvb case VFIFO:
1924 1.1 rvb typestr = "VFFO";
1925 1.1 rvb break;
1926 1.1 rvb case VBAD:
1927 1.1 rvb typestr = "VBAD";
1928 1.1 rvb break;
1929 1.1 rvb default:
1930 1.1 rvb typestr = "????";
1931 1.1 rvb break;
1932 1.1 rvb }
1933 1.1 rvb
1934 1.1 rvb
1935 1.1 rvb myprintf(("attr: type %s mode %d uid %d gid %d fsid %d rdev %d\n",
1936 1.1 rvb typestr, (int)attr->va_mode, (int)attr->va_uid,
1937 1.1 rvb (int)attr->va_gid, (int)attr->va_fsid, (int)attr->va_rdev));
1938 1.1 rvb
1939 1.1 rvb myprintf((" fileid %d nlink %d size %d blocksize %d bytes %d\n",
1940 1.1 rvb (int)attr->va_fileid, (int)attr->va_nlink,
1941 1.1 rvb (int)attr->va_size,
1942 1.1 rvb (int)attr->va_blocksize,(int)attr->va_bytes));
1943 1.1 rvb myprintf((" gen %ld flags %ld vaflags %d\n",
1944 1.1 rvb attr->va_gen, attr->va_flags, attr->va_vaflags));
1945 1.1 rvb myprintf((" atime sec %d nsec %d\n",
1946 1.1 rvb (int)attr->va_atime.tv_sec, (int)attr->va_atime.tv_nsec));
1947 1.1 rvb myprintf((" mtime sec %d nsec %d\n",
1948 1.1 rvb (int)attr->va_mtime.tv_sec, (int)attr->va_mtime.tv_nsec));
1949 1.1 rvb myprintf((" ctime sec %d nsec %d\n",
1950 1.1 rvb (int)attr->va_ctime.tv_sec, (int)attr->va_ctime.tv_nsec));
1951 1.1 rvb }
1952 1.1 rvb
1953 1.1 rvb /* How to print a ucred */
1954 1.1 rvb void
1955 1.1 rvb print_cred(cred)
1956 1.1 rvb struct ucred *cred;
1957 1.1 rvb {
1958 1.1 rvb
1959 1.1 rvb int i;
1960 1.1 rvb
1961 1.1 rvb myprintf(("ref %d\tuid %d\n",cred->cr_ref,cred->cr_uid));
1962 1.1 rvb
1963 1.1 rvb for (i=0; i < cred->cr_ngroups; i++)
1964 1.1 rvb myprintf(("\tgroup %d: (%d)\n",i,cred->cr_groups[i]));
1965 1.1 rvb myprintf(("\n"));
1966 1.1 rvb
1967 1.1 rvb }
1968 1.1 rvb
1969 1.1 rvb /*
1970 1.1 rvb * Return a vnode for the given fid.
1971 1.1 rvb * If no cnode exists for this fid create one and put it
1972 1.1 rvb * in a table hashed by fid.Volume and fid.Vnode. If the cnode for
1973 1.1 rvb * this fid is already in the table return it (ref count is
1974 1.3 rvb * incremented by coda_find. The cnode will be flushed from the
1975 1.3 rvb * table when coda_inactive calls coda_unsave.
1976 1.1 rvb */
1977 1.1 rvb struct cnode *
1978 1.3 rvb make_coda_node(fid, vfsp, type)
1979 1.1 rvb ViceFid *fid; struct mount *vfsp; short type;
1980 1.1 rvb {
1981 1.1 rvb struct cnode *cp;
1982 1.1 rvb int err;
1983 1.1 rvb
1984 1.3 rvb if ((cp = coda_find(fid)) == NULL) {
1985 1.1 rvb struct vnode *vp;
1986 1.1 rvb
1987 1.3 rvb cp = coda_alloc();
1988 1.1 rvb cp->c_fid = *fid;
1989 1.1 rvb
1990 1.3 rvb err = getnewvnode(VT_CODA, vfsp, coda_vnodeop_p, &vp);
1991 1.1 rvb if (err) {
1992 1.3 rvb panic("coda: getnewvnode returned error %d\n", err);
1993 1.1 rvb }
1994 1.1 rvb vp->v_data = cp;
1995 1.1 rvb vp->v_type = type;
1996 1.1 rvb cp->c_vnode = vp;
1997 1.3 rvb coda_save(cp);
1998 1.1 rvb
1999 1.1 rvb } else {
2000 1.1 rvb vref(CTOV(cp));
2001 1.1 rvb }
2002 1.1 rvb
2003 1.1 rvb return cp;
2004 1.25 chs }
2005 1.25 chs
2006 1.25 chs int
2007 1.25 chs coda_getpages(v)
2008 1.25 chs void *v;
2009 1.25 chs {
2010 1.25 chs struct vop_getpages_args /* {
2011 1.25 chs struct vnode *a_vp;
2012 1.25 chs voff_t a_offset;
2013 1.25 chs struct vm_page **a_m;
2014 1.25 chs int *a_count;
2015 1.25 chs int a_centeridx;
2016 1.25 chs vm_prot_t a_access_type;
2017 1.25 chs int a_advice;
2018 1.25 chs int a_flags;
2019 1.25 chs } */ *ap = v;
2020 1.25 chs struct vnode *vp = ap->a_vp;
2021 1.25 chs struct cnode *cp = VTOC(vp);
2022 1.25 chs struct proc *p = curproc;
2023 1.25 chs struct ucred *cred = p->p_ucred;
2024 1.25 chs int error;
2025 1.25 chs
2026 1.25 chs /* Check for control object. */
2027 1.25 chs if (IS_CTL_VP(vp)) {
2028 1.25 chs return(EINVAL);
2029 1.25 chs }
2030 1.25 chs
2031 1.25 chs error = VOP_OPEN(vp, FREAD, cred, p);
2032 1.25 chs if (error) {
2033 1.25 chs return error;
2034 1.25 chs }
2035 1.25 chs ap->a_vp = cp->c_ovp;
2036 1.25 chs error = VOCALL(ap->a_vp->v_op, VOFFSET(vop_getpages), ap);
2037 1.25 chs (void) VOP_CLOSE(vp, FREAD, cred, p);
2038 1.25 chs return error;
2039 1.25 chs }
2040 1.25 chs
2041 1.25 chs int
2042 1.25 chs coda_putpages(v)
2043 1.25 chs void *v;
2044 1.25 chs {
2045 1.25 chs struct vop_putpages_args /* {
2046 1.25 chs struct vnode *a_vp;
2047 1.25 chs voff_t a_offlo;
2048 1.25 chs voff_t a_offhi;
2049 1.25 chs int a_flags;
2050 1.25 chs } */ *ap = v;
2051 1.25 chs struct vnode *vp = ap->a_vp;
2052 1.25.2.2 thorpej
2053 1.25.2.2 thorpej simple_unlock(&vp->v_interlock);
2054 1.25 chs
2055 1.25 chs /* Check for control object. */
2056 1.25 chs if (IS_CTL_VP(vp)) {
2057 1.25 chs return(EINVAL);
2058 1.25 chs }
2059 1.25 chs
2060 1.25 chs /*
2061 1.25 chs * XXX
2062 1.25 chs * we'd like to do something useful here for msync(),
2063 1.25 chs * but that turns out to be hard.
2064 1.25 chs */
2065 1.25 chs
2066 1.25 chs return 0;
2067 1.1 rvb }
2068