coda_psdev.c revision 1.23 1 1.23 wiz /* $NetBSD: coda_psdev.c,v 1.23 2003/01/06 13:05:09 wiz Exp $ */
2 1.2 rvb
3 1.1 rvb /*
4 1.2 rvb *
5 1.2 rvb * Coda: an Experimental Distributed File System
6 1.2 rvb * Release 3.1
7 1.2 rvb *
8 1.2 rvb * Copyright (c) 1987-1998 Carnegie Mellon University
9 1.2 rvb * All Rights Reserved
10 1.2 rvb *
11 1.2 rvb * Permission to use, copy, modify and distribute this software and its
12 1.2 rvb * documentation is hereby granted, provided that both the copyright
13 1.2 rvb * notice and this permission notice appear in all copies of the
14 1.2 rvb * software, derivative works or modified versions, and any portions
15 1.2 rvb * thereof, and that both notices appear in supporting documentation, and
16 1.2 rvb * that credit is given to Carnegie Mellon University in all documents
17 1.2 rvb * and publicity pertaining to direct or indirect use of this code or its
18 1.2 rvb * derivatives.
19 1.2 rvb *
20 1.2 rvb * CODA IS AN EXPERIMENTAL SOFTWARE SYSTEM AND IS KNOWN TO HAVE BUGS,
21 1.2 rvb * SOME OF WHICH MAY HAVE SERIOUS CONSEQUENCES. CARNEGIE MELLON ALLOWS
22 1.2 rvb * FREE USE OF THIS SOFTWARE IN ITS "AS IS" CONDITION. CARNEGIE MELLON
23 1.2 rvb * DISCLAIMS ANY LIABILITY OF ANY KIND FOR ANY DAMAGES WHATSOEVER
24 1.2 rvb * RESULTING DIRECTLY OR INDIRECTLY FROM THE USE OF THIS SOFTWARE OR OF
25 1.2 rvb * ANY DERIVATIVE WORK.
26 1.2 rvb *
27 1.2 rvb * Carnegie Mellon encourages users of this software to return any
28 1.2 rvb * improvements or extensions that they make, and to grant Carnegie
29 1.2 rvb * Mellon the rights to redistribute these changes without encumbrance.
30 1.2 rvb *
31 1.4 rvb * @(#) coda/coda_psdev.c,v 1.1.1.1 1998/08/29 21:26:45 rvb Exp $
32 1.2 rvb */
33 1.1 rvb
34 1.1 rvb /*
35 1.1 rvb * Mach Operating System
36 1.1 rvb * Copyright (c) 1989 Carnegie-Mellon University
37 1.1 rvb * All rights reserved. The CMU software License Agreement specifies
38 1.1 rvb * the terms and conditions for use and redistribution.
39 1.1 rvb */
40 1.1 rvb
41 1.1 rvb /*
42 1.1 rvb * This code was written for the Coda file system at Carnegie Mellon
43 1.1 rvb * University. Contributers include David Steere, James Kistler, and
44 1.1 rvb * M. Satyanarayanan. */
45 1.1 rvb
46 1.1 rvb /* These routines define the psuedo device for communication between
47 1.1 rvb * Coda's Venus and Minicache in Mach 2.6. They used to be in cfs_subr.c,
48 1.1 rvb * but I moved them to make it easier to port the Minicache without
49 1.1 rvb * porting coda. -- DCS 10/12/94
50 1.1 rvb */
51 1.1 rvb
52 1.1 rvb /* These routines are the device entry points for Venus. */
53 1.18 lukem
54 1.18 lukem #include <sys/cdefs.h>
55 1.23 wiz __KERNEL_RCSID(0, "$NetBSD: coda_psdev.c,v 1.23 2003/01/06 13:05:09 wiz Exp $");
56 1.1 rvb
57 1.3 rvb extern int coda_nc_initialized; /* Set if cache has been initialized */
58 1.1 rvb
59 1.5 rvb #ifdef _LKM
60 1.5 rvb #define NVCODA 4
61 1.5 rvb #else
62 1.3 rvb #include <vcoda.h>
63 1.5 rvb #endif
64 1.5 rvb
65 1.1 rvb #include <sys/param.h>
66 1.1 rvb #include <sys/systm.h>
67 1.1 rvb #include <sys/kernel.h>
68 1.1 rvb #include <sys/malloc.h>
69 1.1 rvb #include <sys/proc.h>
70 1.1 rvb #include <sys/mount.h>
71 1.1 rvb #include <sys/file.h>
72 1.1 rvb #include <sys/ioctl.h>
73 1.1 rvb #include <sys/poll.h>
74 1.1 rvb #include <sys/select.h>
75 1.20 gehenna #include <sys/conf.h>
76 1.1 rvb
77 1.16 thorpej #include <miscfs/syncfs/syncfs.h>
78 1.16 thorpej
79 1.4 rvb #include <coda/coda.h>
80 1.4 rvb #include <coda/cnode.h>
81 1.4 rvb #include <coda/coda_namecache.h>
82 1.4 rvb #include <coda/coda_io.h>
83 1.1 rvb
84 1.2 rvb #define CTL_C
85 1.2 rvb
86 1.3 rvb int coda_psdev_print_entry = 0;
87 1.8 rvb static
88 1.8 rvb int outstanding_upcalls = 0;
89 1.8 rvb int coda_call_sleep = PZERO - 1;
90 1.8 rvb #ifdef CTL_C
91 1.8 rvb int coda_pcatch = PCATCH;
92 1.8 rvb #else
93 1.8 rvb #endif
94 1.3 rvb
95 1.19 perry #define ENTRY if(coda_psdev_print_entry) myprintf(("Entered %s\n",__func__))
96 1.1 rvb
97 1.3 rvb void vcodaattach(int n);
98 1.20 gehenna
99 1.20 gehenna dev_type_open(vc_nb_open);
100 1.20 gehenna dev_type_close(vc_nb_close);
101 1.20 gehenna dev_type_read(vc_nb_read);
102 1.20 gehenna dev_type_write(vc_nb_write);
103 1.20 gehenna dev_type_ioctl(vc_nb_ioctl);
104 1.20 gehenna dev_type_poll(vc_nb_poll);
105 1.21 jdolecek dev_type_kqfilter(vc_nb_kqfilter);
106 1.20 gehenna
107 1.20 gehenna const struct cdevsw vcoda_cdevsw = {
108 1.20 gehenna vc_nb_open, vc_nb_close, vc_nb_read, vc_nb_write, vc_nb_ioctl,
109 1.21 jdolecek nostop, notty, vc_nb_poll, nommap, vc_nb_kqfilter,
110 1.20 gehenna };
111 1.1 rvb
112 1.1 rvb struct vmsg {
113 1.1 rvb struct queue vm_chain;
114 1.1 rvb caddr_t vm_data;
115 1.1 rvb u_short vm_flags;
116 1.1 rvb u_short vm_inSize; /* Size is at most 5000 bytes */
117 1.1 rvb u_short vm_outSize;
118 1.1 rvb u_short vm_opcode; /* copied from data to save ptr lookup */
119 1.1 rvb int vm_unique;
120 1.1 rvb caddr_t vm_sleep; /* Not used by Mach. */
121 1.1 rvb };
122 1.1 rvb
123 1.1 rvb #define VM_READ 1
124 1.1 rvb #define VM_WRITE 2
125 1.1 rvb #define VM_INTR 4
126 1.1 rvb
127 1.3 rvb /* vcodaattach: do nothing */
128 1.1 rvb void
129 1.3 rvb vcodaattach(n)
130 1.1 rvb int n;
131 1.1 rvb {
132 1.1 rvb }
133 1.1 rvb
134 1.1 rvb /*
135 1.1 rvb * These functions are written for NetBSD.
136 1.1 rvb */
137 1.1 rvb int
138 1.1 rvb vc_nb_open(dev, flag, mode, p)
139 1.1 rvb dev_t dev;
140 1.1 rvb int flag;
141 1.1 rvb int mode;
142 1.1 rvb struct proc *p; /* NetBSD only */
143 1.1 rvb {
144 1.13 augustss struct vcomm *vcp;
145 1.1 rvb
146 1.1 rvb ENTRY;
147 1.1 rvb
148 1.3 rvb if (minor(dev) >= NVCODA || minor(dev) < 0)
149 1.1 rvb return(ENXIO);
150 1.1 rvb
151 1.3 rvb if (!coda_nc_initialized)
152 1.3 rvb coda_nc_init();
153 1.1 rvb
154 1.3 rvb vcp = &coda_mnttbl[minor(dev)].mi_vcomm;
155 1.1 rvb if (VC_OPEN(vcp))
156 1.1 rvb return(EBUSY);
157 1.1 rvb
158 1.17 thorpej memset(&(vcp->vc_selproc), 0, sizeof (struct selinfo));
159 1.1 rvb INIT_QUEUE(vcp->vc_requests);
160 1.1 rvb INIT_QUEUE(vcp->vc_replys);
161 1.1 rvb MARK_VC_OPEN(vcp);
162 1.1 rvb
163 1.3 rvb coda_mnttbl[minor(dev)].mi_vfsp = NULL;
164 1.3 rvb coda_mnttbl[minor(dev)].mi_rootvp = NULL;
165 1.1 rvb
166 1.1 rvb return(0);
167 1.1 rvb }
168 1.1 rvb
169 1.1 rvb int
170 1.1 rvb vc_nb_close (dev, flag, mode, p)
171 1.1 rvb dev_t dev;
172 1.1 rvb int flag;
173 1.1 rvb int mode;
174 1.1 rvb struct proc *p;
175 1.1 rvb {
176 1.13 augustss struct vcomm *vcp;
177 1.13 augustss struct vmsg *vmp, *nvmp = NULL;
178 1.3 rvb struct coda_mntinfo *mi;
179 1.1 rvb int err;
180 1.1 rvb
181 1.1 rvb ENTRY;
182 1.1 rvb
183 1.3 rvb if (minor(dev) >= NVCODA || minor(dev) < 0)
184 1.1 rvb return(ENXIO);
185 1.1 rvb
186 1.3 rvb mi = &coda_mnttbl[minor(dev)];
187 1.1 rvb vcp = &(mi->mi_vcomm);
188 1.1 rvb
189 1.1 rvb if (!VC_OPEN(vcp))
190 1.1 rvb panic("vcclose: not open");
191 1.1 rvb
192 1.1 rvb /* prevent future operations on this vfs from succeeding by auto-
193 1.1 rvb * unmounting any vfs mounted via this device. This frees user or
194 1.1 rvb * sysadm from having to remember where all mount points are located.
195 1.1 rvb * Put this before WAKEUPs to avoid queuing new messages between
196 1.1 rvb * the WAKEUP and the unmount (which can happen if we're unlucky)
197 1.1 rvb */
198 1.8 rvb if (!mi->mi_rootvp) {
199 1.8 rvb /* just a simple open/close w no mount */
200 1.8 rvb MARK_VC_CLOSED(vcp);
201 1.8 rvb return 0;
202 1.1 rvb }
203 1.8 rvb
204 1.8 rvb /* Let unmount know this is for real */
205 1.16 thorpej /*
206 1.16 thorpej * XXX Freeze syncer. Must do this before locking the
207 1.16 thorpej * mount point. See dounmount for details().
208 1.16 thorpej */
209 1.16 thorpej lockmgr(&syncer_lock, LK_EXCLUSIVE, NULL);
210 1.8 rvb VTOC(mi->mi_rootvp)->c_flags |= C_UNMOUNTING;
211 1.16 thorpej if (vfs_busy(mi->mi_vfsp, 0, 0)) {
212 1.16 thorpej lockmgr(&syncer_lock, LK_RELEASE, NULL);
213 1.8 rvb return (EBUSY);
214 1.16 thorpej }
215 1.8 rvb coda_unmounting(mi->mi_vfsp);
216 1.1 rvb
217 1.1 rvb /* Wakeup clients so they can return. */
218 1.1 rvb for (vmp = (struct vmsg *)GETNEXT(vcp->vc_requests);
219 1.1 rvb !EOQ(vmp, vcp->vc_requests);
220 1.10 rvb vmp = nvmp)
221 1.1 rvb {
222 1.9 rvb nvmp = (struct vmsg *)GETNEXT(vmp->vm_chain);
223 1.1 rvb /* Free signal request messages and don't wakeup cause
224 1.1 rvb no one is waiting. */
225 1.3 rvb if (vmp->vm_opcode == CODA_SIGNAL) {
226 1.3 rvb CODA_FREE((caddr_t)vmp->vm_data, (u_int)VC_IN_NO_DATA);
227 1.3 rvb CODA_FREE((caddr_t)vmp, (u_int)sizeof(struct vmsg));
228 1.1 rvb continue;
229 1.1 rvb }
230 1.8 rvb outstanding_upcalls++;
231 1.1 rvb wakeup(&vmp->vm_sleep);
232 1.1 rvb }
233 1.8 rvb
234 1.1 rvb for (vmp = (struct vmsg *)GETNEXT(vcp->vc_replys);
235 1.1 rvb !EOQ(vmp, vcp->vc_replys);
236 1.1 rvb vmp = (struct vmsg *)GETNEXT(vmp->vm_chain))
237 1.1 rvb {
238 1.8 rvb outstanding_upcalls++;
239 1.1 rvb wakeup(&vmp->vm_sleep);
240 1.1 rvb }
241 1.8 rvb
242 1.1 rvb MARK_VC_CLOSED(vcp);
243 1.8 rvb
244 1.8 rvb if (outstanding_upcalls) {
245 1.8 rvb #ifdef CODA_VERBOSE
246 1.8 rvb printf("presleep: outstanding_upcalls = %d\n", outstanding_upcalls);
247 1.8 rvb (void) tsleep(&outstanding_upcalls, coda_call_sleep, "coda_umount", 0);
248 1.8 rvb printf("postsleep: outstanding_upcalls = %d\n", outstanding_upcalls);
249 1.8 rvb #else
250 1.8 rvb (void) tsleep(&outstanding_upcalls, coda_call_sleep, "coda_umount", 0);
251 1.8 rvb #endif
252 1.8 rvb }
253 1.8 rvb
254 1.8 rvb err = dounmount(mi->mi_vfsp, flag, p);
255 1.8 rvb if (err)
256 1.8 rvb myprintf(("Error %d unmounting vfs in vcclose(%d)\n",
257 1.8 rvb err, minor(dev)));
258 1.1 rvb return 0;
259 1.1 rvb }
260 1.1 rvb
261 1.1 rvb int
262 1.1 rvb vc_nb_read(dev, uiop, flag)
263 1.1 rvb dev_t dev;
264 1.1 rvb struct uio *uiop;
265 1.1 rvb int flag;
266 1.1 rvb {
267 1.13 augustss struct vcomm * vcp;
268 1.13 augustss struct vmsg *vmp;
269 1.1 rvb int error = 0;
270 1.1 rvb
271 1.1 rvb ENTRY;
272 1.1 rvb
273 1.3 rvb if (minor(dev) >= NVCODA || minor(dev) < 0)
274 1.1 rvb return(ENXIO);
275 1.1 rvb
276 1.3 rvb vcp = &coda_mnttbl[minor(dev)].mi_vcomm;
277 1.1 rvb /* Get message at head of request queue. */
278 1.1 rvb if (EMPTY(vcp->vc_requests))
279 1.1 rvb return(0); /* Nothing to read */
280 1.1 rvb
281 1.1 rvb vmp = (struct vmsg *)GETNEXT(vcp->vc_requests);
282 1.1 rvb
283 1.1 rvb /* Move the input args into userspace */
284 1.1 rvb uiop->uio_rw = UIO_READ;
285 1.1 rvb error = uiomove(vmp->vm_data, vmp->vm_inSize, uiop);
286 1.1 rvb if (error) {
287 1.1 rvb myprintf(("vcread: error (%d) on uiomove\n", error));
288 1.1 rvb error = EINVAL;
289 1.1 rvb }
290 1.1 rvb
291 1.5 rvb #ifdef OLD_DIAGNOSTIC
292 1.1 rvb if (vmp->vm_chain.forw == 0 || vmp->vm_chain.back == 0)
293 1.1 rvb panic("vc_nb_read: bad chain");
294 1.1 rvb #endif
295 1.1 rvb
296 1.1 rvb REMQUE(vmp->vm_chain);
297 1.1 rvb
298 1.1 rvb /* If request was a signal, free up the message and don't
299 1.1 rvb enqueue it in the reply queue. */
300 1.3 rvb if (vmp->vm_opcode == CODA_SIGNAL) {
301 1.3 rvb if (codadebug)
302 1.1 rvb myprintf(("vcread: signal msg (%d, %d)\n",
303 1.1 rvb vmp->vm_opcode, vmp->vm_unique));
304 1.3 rvb CODA_FREE((caddr_t)vmp->vm_data, (u_int)VC_IN_NO_DATA);
305 1.3 rvb CODA_FREE((caddr_t)vmp, (u_int)sizeof(struct vmsg));
306 1.1 rvb return(error);
307 1.1 rvb }
308 1.1 rvb
309 1.1 rvb vmp->vm_flags |= VM_READ;
310 1.1 rvb INSQUE(vmp->vm_chain, vcp->vc_replys);
311 1.1 rvb
312 1.1 rvb return(error);
313 1.1 rvb }
314 1.1 rvb
315 1.1 rvb int
316 1.1 rvb vc_nb_write(dev, uiop, flag)
317 1.1 rvb dev_t dev;
318 1.1 rvb struct uio *uiop;
319 1.1 rvb int flag;
320 1.1 rvb {
321 1.13 augustss struct vcomm * vcp;
322 1.13 augustss struct vmsg *vmp;
323 1.3 rvb struct coda_out_hdr *out;
324 1.1 rvb u_long seq;
325 1.1 rvb u_long opcode;
326 1.1 rvb int buf[2];
327 1.1 rvb int error = 0;
328 1.1 rvb
329 1.1 rvb ENTRY;
330 1.1 rvb
331 1.3 rvb if (minor(dev) >= NVCODA || minor(dev) < 0)
332 1.1 rvb return(ENXIO);
333 1.1 rvb
334 1.3 rvb vcp = &coda_mnttbl[minor(dev)].mi_vcomm;
335 1.1 rvb
336 1.1 rvb /* Peek at the opcode, unique without transfering the data. */
337 1.1 rvb uiop->uio_rw = UIO_WRITE;
338 1.1 rvb error = uiomove((caddr_t)buf, sizeof(int) * 2, uiop);
339 1.1 rvb if (error) {
340 1.1 rvb myprintf(("vcwrite: error (%d) on uiomove\n", error));
341 1.1 rvb return(EINVAL);
342 1.1 rvb }
343 1.1 rvb
344 1.1 rvb opcode = buf[0];
345 1.1 rvb seq = buf[1];
346 1.1 rvb
347 1.3 rvb if (codadebug)
348 1.1 rvb myprintf(("vcwrite got a call for %ld.%ld\n", opcode, seq));
349 1.1 rvb
350 1.1 rvb if (DOWNCALL(opcode)) {
351 1.1 rvb union outputArgs pbuf;
352 1.1 rvb
353 1.1 rvb /* get the rest of the data. */
354 1.1 rvb uiop->uio_rw = UIO_WRITE;
355 1.3 rvb error = uiomove((caddr_t)&pbuf.coda_purgeuser.oh.result, sizeof(pbuf) - (sizeof(int)*2), uiop);
356 1.1 rvb if (error) {
357 1.1 rvb myprintf(("vcwrite: error (%d) on uiomove (Op %ld seq %ld)\n",
358 1.1 rvb error, opcode, seq));
359 1.1 rvb return(EINVAL);
360 1.1 rvb }
361 1.1 rvb
362 1.1 rvb return handleDownCall(opcode, &pbuf);
363 1.1 rvb }
364 1.1 rvb
365 1.1 rvb /* Look for the message on the (waiting for) reply queue. */
366 1.1 rvb for (vmp = (struct vmsg *)GETNEXT(vcp->vc_replys);
367 1.1 rvb !EOQ(vmp, vcp->vc_replys);
368 1.1 rvb vmp = (struct vmsg *)GETNEXT(vmp->vm_chain))
369 1.1 rvb {
370 1.1 rvb if (vmp->vm_unique == seq) break;
371 1.1 rvb }
372 1.1 rvb
373 1.1 rvb if (EOQ(vmp, vcp->vc_replys)) {
374 1.3 rvb if (codadebug)
375 1.1 rvb myprintf(("vcwrite: msg (%ld, %ld) not found\n", opcode, seq));
376 1.1 rvb
377 1.1 rvb return(ESRCH);
378 1.1 rvb }
379 1.1 rvb
380 1.1 rvb /* Remove the message from the reply queue */
381 1.1 rvb REMQUE(vmp->vm_chain);
382 1.1 rvb
383 1.1 rvb /* move data into response buffer. */
384 1.3 rvb out = (struct coda_out_hdr *)vmp->vm_data;
385 1.1 rvb /* Don't need to copy opcode and uniquifier. */
386 1.1 rvb
387 1.1 rvb /* get the rest of the data. */
388 1.1 rvb if (vmp->vm_outSize < uiop->uio_resid) {
389 1.11 matt myprintf(("vcwrite: more data than asked for (%d < %lu)\n",
390 1.11 matt vmp->vm_outSize, (unsigned long) uiop->uio_resid));
391 1.1 rvb wakeup(&vmp->vm_sleep); /* Notify caller of the error. */
392 1.1 rvb return(EINVAL);
393 1.1 rvb }
394 1.1 rvb
395 1.1 rvb buf[0] = uiop->uio_resid; /* Save this value. */
396 1.1 rvb uiop->uio_rw = UIO_WRITE;
397 1.1 rvb error = uiomove((caddr_t) &out->result, vmp->vm_outSize - (sizeof(int) * 2), uiop);
398 1.1 rvb if (error) {
399 1.1 rvb myprintf(("vcwrite: error (%d) on uiomove (op %ld seq %ld)\n",
400 1.1 rvb error, opcode, seq));
401 1.1 rvb return(EINVAL);
402 1.1 rvb }
403 1.1 rvb
404 1.1 rvb /* I don't think these are used, but just in case. */
405 1.1 rvb /* XXX - aren't these two already correct? -bnoble */
406 1.1 rvb out->opcode = opcode;
407 1.1 rvb out->unique = seq;
408 1.1 rvb vmp->vm_outSize = buf[0]; /* Amount of data transferred? */
409 1.1 rvb vmp->vm_flags |= VM_WRITE;
410 1.1 rvb wakeup(&vmp->vm_sleep);
411 1.1 rvb
412 1.1 rvb return(0);
413 1.1 rvb }
414 1.1 rvb
415 1.1 rvb int
416 1.1 rvb vc_nb_ioctl(dev, cmd, addr, flag, p)
417 1.1 rvb dev_t dev;
418 1.5 rvb u_long cmd;
419 1.1 rvb caddr_t addr;
420 1.1 rvb int flag;
421 1.1 rvb struct proc *p;
422 1.1 rvb {
423 1.1 rvb ENTRY;
424 1.1 rvb
425 1.1 rvb switch(cmd) {
426 1.3 rvb case CODARESIZE: {
427 1.3 rvb struct coda_resize *data = (struct coda_resize *)addr;
428 1.3 rvb return(coda_nc_resize(data->hashsize, data->heapsize, IS_DOWNCALL));
429 1.1 rvb break;
430 1.1 rvb }
431 1.3 rvb case CODASTATS:
432 1.3 rvb if (coda_nc_use) {
433 1.3 rvb coda_nc_gather_stats();
434 1.1 rvb return(0);
435 1.1 rvb } else {
436 1.1 rvb return(ENODEV);
437 1.1 rvb }
438 1.1 rvb break;
439 1.3 rvb case CODAPRINT:
440 1.3 rvb if (coda_nc_use) {
441 1.3 rvb print_coda_nc();
442 1.1 rvb return(0);
443 1.1 rvb } else {
444 1.1 rvb return(ENODEV);
445 1.1 rvb }
446 1.1 rvb break;
447 1.9 rvb case CIOC_KERNEL_VERSION:
448 1.9 rvb switch (*(u_int *)addr) {
449 1.9 rvb case 0:
450 1.9 rvb *(u_int *)addr = coda_kernel_version;
451 1.9 rvb return 0;
452 1.9 rvb break;
453 1.9 rvb case 1:
454 1.9 rvb case 2:
455 1.9 rvb if (coda_kernel_version != *(u_int *)addr)
456 1.9 rvb return ENOENT;
457 1.9 rvb else
458 1.9 rvb return 0;
459 1.9 rvb default:
460 1.9 rvb return ENOENT;
461 1.9 rvb }
462 1.9 rvb break;
463 1.1 rvb default :
464 1.1 rvb return(EINVAL);
465 1.1 rvb break;
466 1.1 rvb }
467 1.1 rvb }
468 1.1 rvb
469 1.1 rvb int
470 1.1 rvb vc_nb_poll(dev, events, p)
471 1.1 rvb dev_t dev;
472 1.1 rvb int events;
473 1.1 rvb struct proc *p;
474 1.1 rvb {
475 1.13 augustss struct vcomm *vcp;
476 1.1 rvb int event_msk = 0;
477 1.1 rvb
478 1.1 rvb ENTRY;
479 1.1 rvb
480 1.3 rvb if (minor(dev) >= NVCODA || minor(dev) < 0)
481 1.1 rvb return(ENXIO);
482 1.1 rvb
483 1.3 rvb vcp = &coda_mnttbl[minor(dev)].mi_vcomm;
484 1.1 rvb
485 1.1 rvb event_msk = events & (POLLIN|POLLRDNORM);
486 1.1 rvb if (!event_msk)
487 1.1 rvb return(0);
488 1.1 rvb
489 1.1 rvb if (!EMPTY(vcp->vc_requests))
490 1.1 rvb return(events & (POLLIN|POLLRDNORM));
491 1.1 rvb
492 1.1 rvb selrecord(p, &(vcp->vc_selproc));
493 1.1 rvb
494 1.1 rvb return(0);
495 1.1 rvb }
496 1.1 rvb
497 1.21 jdolecek static void
498 1.21 jdolecek filt_vc_nb_detach(struct knote *kn)
499 1.21 jdolecek {
500 1.21 jdolecek struct vcomm *vcp = kn->kn_hook;
501 1.21 jdolecek
502 1.22 christos SLIST_REMOVE(&vcp->vc_selproc.sel_klist, kn, knote, kn_selnext);
503 1.21 jdolecek }
504 1.21 jdolecek
505 1.21 jdolecek static int
506 1.21 jdolecek filt_vc_nb_read(struct knote *kn, long hint)
507 1.21 jdolecek {
508 1.21 jdolecek struct vcomm *vcp = kn->kn_hook;
509 1.21 jdolecek struct vmsg *vmp;
510 1.21 jdolecek
511 1.21 jdolecek if (EMPTY(vcp->vc_requests))
512 1.21 jdolecek return (0);
513 1.21 jdolecek
514 1.21 jdolecek vmp = (struct vmsg *)GETNEXT(vcp->vc_requests);
515 1.21 jdolecek
516 1.21 jdolecek kn->kn_data = vmp->vm_inSize;
517 1.21 jdolecek return (1);
518 1.21 jdolecek }
519 1.21 jdolecek
520 1.21 jdolecek static const struct filterops vc_nb_read_filtops =
521 1.21 jdolecek { 1, NULL, filt_vc_nb_detach, filt_vc_nb_read };
522 1.21 jdolecek
523 1.21 jdolecek int
524 1.21 jdolecek vc_nb_kqfilter(dev_t dev, struct knote *kn)
525 1.21 jdolecek {
526 1.21 jdolecek struct vcomm *vcp;
527 1.21 jdolecek struct klist *klist;
528 1.21 jdolecek
529 1.21 jdolecek ENTRY;
530 1.21 jdolecek
531 1.21 jdolecek if (minor(dev) >= NVCODA || minor(dev) < 0)
532 1.21 jdolecek return(ENXIO);
533 1.21 jdolecek
534 1.21 jdolecek vcp = &coda_mnttbl[minor(dev)].mi_vcomm;
535 1.21 jdolecek
536 1.21 jdolecek switch (kn->kn_filter) {
537 1.21 jdolecek case EVFILT_READ:
538 1.22 christos klist = &vcp->vc_selproc.sel_klist;
539 1.21 jdolecek kn->kn_fop = &vc_nb_read_filtops;
540 1.21 jdolecek break;
541 1.21 jdolecek
542 1.21 jdolecek default:
543 1.21 jdolecek return (1);
544 1.21 jdolecek }
545 1.21 jdolecek
546 1.21 jdolecek kn->kn_hook = vcp;
547 1.21 jdolecek
548 1.21 jdolecek SLIST_INSERT_HEAD(klist, kn, kn_selnext);
549 1.21 jdolecek
550 1.21 jdolecek return (0);
551 1.21 jdolecek }
552 1.21 jdolecek
553 1.1 rvb /*
554 1.1 rvb * Statistics
555 1.1 rvb */
556 1.3 rvb struct coda_clstat coda_clstat;
557 1.1 rvb
558 1.1 rvb /*
559 1.23 wiz * Key question: whether to sleep interruptably or uninterruptably when
560 1.1 rvb * waiting for Venus. The former seems better (cause you can ^C a
561 1.1 rvb * job), but then GNU-EMACS completion breaks. Use tsleep with no
562 1.1 rvb * timeout, and no longjmp happens. But, when sleeping
563 1.1 rvb * "uninterruptibly", we don't get told if it returns abnormally
564 1.1 rvb * (e.g. kill -9).
565 1.1 rvb */
566 1.1 rvb
567 1.1 rvb int
568 1.3 rvb coda_call(mntinfo, inSize, outSize, buffer)
569 1.3 rvb struct coda_mntinfo *mntinfo; int inSize; int *outSize; caddr_t buffer;
570 1.1 rvb {
571 1.1 rvb struct vcomm *vcp;
572 1.1 rvb struct vmsg *vmp;
573 1.1 rvb int error;
574 1.1 rvb #ifdef CTL_C
575 1.1 rvb struct proc *p = curproc;
576 1.4 rvb sigset_t psig_omask;
577 1.1 rvb int i;
578 1.14 jdolecek psig_omask = p->p_sigctx.ps_siglist; /* array assignment */
579 1.1 rvb #endif
580 1.1 rvb if (mntinfo == NULL) {
581 1.1 rvb /* Unlikely, but could be a race condition with a dying warden */
582 1.1 rvb return ENODEV;
583 1.1 rvb }
584 1.1 rvb
585 1.1 rvb vcp = &(mntinfo->mi_vcomm);
586 1.1 rvb
587 1.3 rvb coda_clstat.ncalls++;
588 1.3 rvb coda_clstat.reqs[((struct coda_in_hdr *)buffer)->opcode]++;
589 1.1 rvb
590 1.1 rvb if (!VC_OPEN(vcp))
591 1.1 rvb return(ENODEV);
592 1.1 rvb
593 1.3 rvb CODA_ALLOC(vmp,struct vmsg *,sizeof(struct vmsg));
594 1.1 rvb /* Format the request message. */
595 1.1 rvb vmp->vm_data = buffer;
596 1.1 rvb vmp->vm_flags = 0;
597 1.1 rvb vmp->vm_inSize = inSize;
598 1.1 rvb vmp->vm_outSize
599 1.1 rvb = *outSize ? *outSize : inSize; /* |buffer| >= inSize */
600 1.3 rvb vmp->vm_opcode = ((struct coda_in_hdr *)buffer)->opcode;
601 1.1 rvb vmp->vm_unique = ++vcp->vc_seq;
602 1.3 rvb if (codadebug)
603 1.1 rvb myprintf(("Doing a call for %d.%d\n",
604 1.1 rvb vmp->vm_opcode, vmp->vm_unique));
605 1.1 rvb
606 1.1 rvb /* Fill in the common input args. */
607 1.3 rvb ((struct coda_in_hdr *)buffer)->unique = vmp->vm_unique;
608 1.1 rvb
609 1.1 rvb /* Append msg to request queue and poke Venus. */
610 1.1 rvb INSQUE(vmp->vm_chain, vcp->vc_requests);
611 1.21 jdolecek selnotify(&(vcp->vc_selproc), 0);
612 1.1 rvb
613 1.1 rvb /* We can be interrupted while we wait for Venus to process
614 1.1 rvb * our request. If the interrupt occurs before Venus has read
615 1.1 rvb * the request, we dequeue and return. If it occurs after the
616 1.1 rvb * read but before the reply, we dequeue, send a signal
617 1.1 rvb * message, and return. If it occurs after the reply we ignore
618 1.1 rvb * it. In no case do we want to restart the syscall. If it
619 1.1 rvb * was interrupted by a venus shutdown (vcclose), return
620 1.1 rvb * ENODEV. */
621 1.1 rvb
622 1.1 rvb /* Ignore return, We have to check anyway */
623 1.1 rvb #ifdef CTL_C
624 1.3 rvb /* This is work in progress. Setting coda_pcatch lets tsleep reawaken
625 1.1 rvb on a ^c or ^z. The problem is that emacs sets certain interrupts
626 1.1 rvb as SA_RESTART. This means that we should exit sleep handle the
627 1.1 rvb "signal" and then go to sleep again. Mostly this is done by letting
628 1.1 rvb the syscall complete and be restarted. We are not idempotent and
629 1.1 rvb can not do this. A better solution is necessary.
630 1.1 rvb */
631 1.1 rvb i = 0;
632 1.1 rvb do {
633 1.3 rvb error = tsleep(&vmp->vm_sleep, (coda_call_sleep|coda_pcatch), "coda_call", hz*2);
634 1.1 rvb if (error == 0)
635 1.1 rvb break;
636 1.1 rvb else if (error == EWOULDBLOCK) {
637 1.7 rvb #ifdef CODA_VERBOSE
638 1.3 rvb printf("coda_call: tsleep TIMEOUT %d sec\n", 2+2*i);
639 1.5 rvb #endif
640 1.14 jdolecek } else if (sigismember(&p->p_sigctx.ps_siglist, SIGIO)) {
641 1.14 jdolecek sigaddset(&p->p_sigctx.ps_sigmask, SIGIO);
642 1.7 rvb #ifdef CODA_VERBOSE
643 1.3 rvb printf("coda_call: tsleep returns %d SIGIO, cnt %d\n", error, i);
644 1.5 rvb #endif
645 1.14 jdolecek } else if (sigismember(&p->p_sigctx.ps_siglist, SIGALRM)) {
646 1.14 jdolecek sigaddset(&p->p_sigctx.ps_sigmask, SIGALRM);
647 1.8 rvb #ifdef CODA_VERBOSE
648 1.8 rvb printf("coda_call: tsleep returns %d SIGALRM, cnt %d\n", error, i);
649 1.8 rvb #endif
650 1.1 rvb } else {
651 1.4 rvb sigset_t tmp;
652 1.14 jdolecek tmp = p->p_sigctx.ps_siglist; /* array assignment */
653 1.14 jdolecek sigminusset(&p->p_sigctx.ps_sigmask, &tmp);
654 1.4 rvb
655 1.7 rvb #ifdef CODA_VERBOSE
656 1.3 rvb printf("coda_call: tsleep returns %d, cnt %d\n", error, i);
657 1.4 rvb printf("coda_call: siglist = %x.%x.%x.%x, sigmask = %x.%x.%x.%x, mask %x.%x.%x.%x\n",
658 1.14 jdolecek p->p_sigctx.ps_siglist.__bits[0], p->p_sigctx.ps_siglist.__bits[1],
659 1.14 jdolecek p->p_sigctx.ps_siglist.__bits[2], p->p_sigctx.ps_siglist.__bits[3],
660 1.14 jdolecek p->p_sigctx.ps_sigmask.__bits[0], p->p_sigctx.ps_sigmask.__bits[1],
661 1.14 jdolecek p->p_sigctx.ps_sigmask.__bits[2], p->p_sigctx.ps_sigmask.__bits[3],
662 1.4 rvb tmp.__bits[0], tmp.__bits[1], tmp.__bits[2], tmp.__bits[3]);
663 1.5 rvb #endif
664 1.1 rvb break;
665 1.5 rvb #ifdef notyet
666 1.14 jdolecek sigminusset(&p->p_sigctx.ps_sigmask, &p->p_sigctx.ps_siglist);
667 1.4 rvb printf("coda_call: siglist = %x.%x.%x.%x, sigmask = %x.%x.%x.%x\n",
668 1.15 jdolecek p->p_sigctx.ps_siglist.__bits[0], p->p_sigctx.ps_siglist.__bits[1],
669 1.15 jdolecek p->p_sigctx.ps_siglist.__bits[2], p->p_sigctx.ps_siglist.__bits[3],
670 1.15 jdolecek p->p_sigctx.ps_sigmask.__bits[0], p->p_sigctx.ps_sigmask.__bits[1],
671 1.15 jdolecek p->p_sigctx.ps_sigmask.__bits[2], p->p_sigctx.ps_sigmask.__bits[3]);
672 1.5 rvb #endif
673 1.1 rvb }
674 1.8 rvb } while (error && i++ < 128 && VC_OPEN(vcp));
675 1.14 jdolecek p->p_sigctx.ps_siglist = psig_omask; /* array assignment */
676 1.1 rvb #else
677 1.3 rvb (void) tsleep(&vmp->vm_sleep, coda_call_sleep, "coda_call", 0);
678 1.1 rvb #endif
679 1.1 rvb if (VC_OPEN(vcp)) { /* Venus is still alive */
680 1.1 rvb /* Op went through, interrupt or not... */
681 1.1 rvb if (vmp->vm_flags & VM_WRITE) {
682 1.1 rvb error = 0;
683 1.1 rvb *outSize = vmp->vm_outSize;
684 1.1 rvb }
685 1.1 rvb
686 1.1 rvb else if (!(vmp->vm_flags & VM_READ)) {
687 1.1 rvb /* Interrupted before venus read it. */
688 1.7 rvb #ifdef CODA_VERBOSE
689 1.7 rvb if (1)
690 1.7 rvb #else
691 1.5 rvb if (codadebug)
692 1.5 rvb #endif
693 1.1 rvb myprintf(("interrupted before read: op = %d.%d, flags = %x\n",
694 1.1 rvb vmp->vm_opcode, vmp->vm_unique, vmp->vm_flags));
695 1.1 rvb REMQUE(vmp->vm_chain);
696 1.1 rvb error = EINTR;
697 1.1 rvb }
698 1.1 rvb
699 1.1 rvb else {
700 1.1 rvb /* (!(vmp->vm_flags & VM_WRITE)) means interrupted after
701 1.1 rvb upcall started */
702 1.1 rvb /* Interrupted after start of upcall, send venus a signal */
703 1.3 rvb struct coda_in_hdr *dog;
704 1.1 rvb struct vmsg *svmp;
705 1.1 rvb
706 1.7 rvb #ifdef CODA_VERBOSE
707 1.7 rvb if (1)
708 1.7 rvb #else
709 1.5 rvb if (codadebug)
710 1.5 rvb #endif
711 1.1 rvb myprintf(("Sending Venus a signal: op = %d.%d, flags = %x\n",
712 1.1 rvb vmp->vm_opcode, vmp->vm_unique, vmp->vm_flags));
713 1.1 rvb
714 1.1 rvb REMQUE(vmp->vm_chain);
715 1.1 rvb error = EINTR;
716 1.1 rvb
717 1.3 rvb CODA_ALLOC(svmp, struct vmsg *, sizeof (struct vmsg));
718 1.1 rvb
719 1.3 rvb CODA_ALLOC((svmp->vm_data), char *, sizeof (struct coda_in_hdr));
720 1.3 rvb dog = (struct coda_in_hdr *)svmp->vm_data;
721 1.1 rvb
722 1.1 rvb svmp->vm_flags = 0;
723 1.3 rvb dog->opcode = svmp->vm_opcode = CODA_SIGNAL;
724 1.1 rvb dog->unique = svmp->vm_unique = vmp->vm_unique;
725 1.3 rvb svmp->vm_inSize = sizeof (struct coda_in_hdr);
726 1.3 rvb /*??? rvb */ svmp->vm_outSize = sizeof (struct coda_in_hdr);
727 1.1 rvb
728 1.3 rvb if (codadebug)
729 1.3 rvb myprintf(("coda_call: enqueing signal msg (%d, %d)\n",
730 1.1 rvb svmp->vm_opcode, svmp->vm_unique));
731 1.1 rvb
732 1.1 rvb /* insert at head of queue! */
733 1.1 rvb INSQUE(svmp->vm_chain, vcp->vc_requests);
734 1.21 jdolecek selnotify(&(vcp->vc_selproc), 0);
735 1.1 rvb }
736 1.1 rvb }
737 1.1 rvb
738 1.1 rvb else { /* If venus died (!VC_OPEN(vcp)) */
739 1.3 rvb if (codadebug)
740 1.1 rvb myprintf(("vcclose woke op %d.%d flags %d\n",
741 1.1 rvb vmp->vm_opcode, vmp->vm_unique, vmp->vm_flags));
742 1.1 rvb
743 1.1 rvb error = ENODEV;
744 1.1 rvb }
745 1.1 rvb
746 1.3 rvb CODA_FREE(vmp, sizeof(struct vmsg));
747 1.8 rvb
748 1.8 rvb if (outstanding_upcalls > 0 && (--outstanding_upcalls == 0))
749 1.8 rvb wakeup(&outstanding_upcalls);
750 1.1 rvb
751 1.1 rvb if (!error)
752 1.3 rvb error = ((struct coda_out_hdr *)buffer)->result;
753 1.1 rvb return(error);
754 1.1 rvb }
755 1.4 rvb
756