uvm_vnode.c revision 1.33 1 1.33 thorpej /* $NetBSD: uvm_vnode.c,v 1.33 2000/05/19 03:45:05 thorpej Exp $ */
2 1.1 mrg
3 1.1 mrg /*
4 1.1 mrg * Copyright (c) 1997 Charles D. Cranor and Washington University.
5 1.1 mrg * Copyright (c) 1991, 1993
6 1.1 mrg * The Regents of the University of California.
7 1.1 mrg * Copyright (c) 1990 University of Utah.
8 1.1 mrg *
9 1.1 mrg * All rights reserved.
10 1.1 mrg *
11 1.1 mrg * This code is derived from software contributed to Berkeley by
12 1.1 mrg * the Systems Programming Group of the University of Utah Computer
13 1.1 mrg * Science Department.
14 1.1 mrg *
15 1.1 mrg * Redistribution and use in source and binary forms, with or without
16 1.1 mrg * modification, are permitted provided that the following conditions
17 1.1 mrg * are met:
18 1.1 mrg * 1. Redistributions of source code must retain the above copyright
19 1.1 mrg * notice, this list of conditions and the following disclaimer.
20 1.1 mrg * 2. Redistributions in binary form must reproduce the above copyright
21 1.1 mrg * notice, this list of conditions and the following disclaimer in the
22 1.1 mrg * documentation and/or other materials provided with the distribution.
23 1.1 mrg * 3. All advertising materials mentioning features or use of this software
24 1.1 mrg * must display the following acknowledgement:
25 1.1 mrg * This product includes software developed by Charles D. Cranor,
26 1.1 mrg * Washington University, the University of California, Berkeley and
27 1.1 mrg * its contributors.
28 1.1 mrg * 4. Neither the name of the University nor the names of its contributors
29 1.1 mrg * may be used to endorse or promote products derived from this software
30 1.1 mrg * without specific prior written permission.
31 1.1 mrg *
32 1.1 mrg * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
33 1.1 mrg * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
34 1.1 mrg * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
35 1.1 mrg * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
36 1.1 mrg * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
37 1.1 mrg * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
38 1.1 mrg * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
39 1.1 mrg * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
40 1.1 mrg * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
41 1.1 mrg * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
42 1.1 mrg * SUCH DAMAGE.
43 1.1 mrg *
44 1.1 mrg * @(#)vnode_pager.c 8.8 (Berkeley) 2/13/94
45 1.3 mrg * from: Id: uvm_vnode.c,v 1.1.2.26 1998/02/02 20:38:07 chuck Exp
46 1.1 mrg */
47 1.1 mrg
48 1.6 thorpej #include "fs_nfs.h"
49 1.4 mrg #include "opt_uvmhist.h"
50 1.4 mrg
51 1.1 mrg /*
52 1.1 mrg * uvm_vnode.c: the vnode pager.
53 1.1 mrg */
54 1.1 mrg
55 1.1 mrg #include <sys/param.h>
56 1.1 mrg #include <sys/systm.h>
57 1.1 mrg #include <sys/proc.h>
58 1.1 mrg #include <sys/malloc.h>
59 1.1 mrg #include <sys/vnode.h>
60 1.13 thorpej #include <sys/disklabel.h>
61 1.13 thorpej #include <sys/ioctl.h>
62 1.13 thorpej #include <sys/fcntl.h>
63 1.13 thorpej #include <sys/conf.h>
64 1.13 thorpej
65 1.13 thorpej #include <miscfs/specfs/specdev.h>
66 1.1 mrg
67 1.1 mrg #include <vm/vm.h>
68 1.1 mrg #include <vm/vm_page.h>
69 1.1 mrg #include <vm/vm_kern.h>
70 1.1 mrg
71 1.1 mrg #include <uvm/uvm.h>
72 1.1 mrg #include <uvm/uvm_vnode.h>
73 1.1 mrg
74 1.1 mrg /*
75 1.1 mrg * private global data structure
76 1.1 mrg *
77 1.1 mrg * we keep a list of writeable active vnode-backed VM objects for sync op.
78 1.1 mrg * we keep a simpleq of vnodes that are currently being sync'd.
79 1.1 mrg */
80 1.1 mrg
81 1.1 mrg LIST_HEAD(uvn_list_struct, uvm_vnode);
82 1.1 mrg static struct uvn_list_struct uvn_wlist; /* writeable uvns */
83 1.1 mrg static simple_lock_data_t uvn_wl_lock; /* locks uvn_wlist */
84 1.1 mrg
85 1.1 mrg SIMPLEQ_HEAD(uvn_sq_struct, uvm_vnode);
86 1.1 mrg static struct uvn_sq_struct uvn_sync_q; /* sync'ing uvns */
87 1.1 mrg lock_data_t uvn_sync_lock; /* locks sync operation */
88 1.1 mrg
89 1.1 mrg /*
90 1.1 mrg * functions
91 1.1 mrg */
92 1.1 mrg
93 1.30 kleink static int uvn_asyncget __P((struct uvm_object *, voff_t,
94 1.1 mrg int));
95 1.30 kleink static void uvn_cluster __P((struct uvm_object *, voff_t,
96 1.30 kleink voff_t *, voff_t *));
97 1.1 mrg static void uvn_detach __P((struct uvm_object *));
98 1.30 kleink static boolean_t uvn_flush __P((struct uvm_object *, voff_t,
99 1.30 kleink voff_t, int));
100 1.30 kleink static int uvn_get __P((struct uvm_object *, voff_t,
101 1.1 mrg vm_page_t *, int *, int,
102 1.1 mrg vm_prot_t, int, int));
103 1.1 mrg static void uvn_init __P((void));
104 1.1 mrg static int uvn_io __P((struct uvm_vnode *, vm_page_t *,
105 1.1 mrg int, int, int));
106 1.1 mrg static int uvn_put __P((struct uvm_object *, vm_page_t *,
107 1.1 mrg int, boolean_t));
108 1.1 mrg static void uvn_reference __P((struct uvm_object *));
109 1.1 mrg static boolean_t uvn_releasepg __P((struct vm_page *,
110 1.1 mrg struct vm_page **));
111 1.1 mrg
112 1.1 mrg /*
113 1.1 mrg * master pager structure
114 1.1 mrg */
115 1.1 mrg
116 1.1 mrg struct uvm_pagerops uvm_vnodeops = {
117 1.8 mrg uvn_init,
118 1.8 mrg uvn_reference,
119 1.8 mrg uvn_detach,
120 1.8 mrg NULL, /* no specialized fault routine required */
121 1.8 mrg uvn_flush,
122 1.8 mrg uvn_get,
123 1.8 mrg uvn_asyncget,
124 1.8 mrg uvn_put,
125 1.8 mrg uvn_cluster,
126 1.8 mrg uvm_mk_pcluster, /* use generic version of this: see uvm_pager.c */
127 1.8 mrg NULL, /* AIO-DONE function (not until we have asyncio) */
128 1.8 mrg uvn_releasepg,
129 1.1 mrg };
130 1.1 mrg
131 1.1 mrg /*
132 1.1 mrg * the ops!
133 1.1 mrg */
134 1.1 mrg
135 1.1 mrg /*
136 1.1 mrg * uvn_init
137 1.1 mrg *
138 1.1 mrg * init pager private data structures.
139 1.1 mrg */
140 1.1 mrg
141 1.8 mrg static void
142 1.8 mrg uvn_init()
143 1.8 mrg {
144 1.1 mrg
145 1.8 mrg LIST_INIT(&uvn_wlist);
146 1.8 mrg simple_lock_init(&uvn_wl_lock);
147 1.8 mrg /* note: uvn_sync_q init'd in uvm_vnp_sync() */
148 1.8 mrg lockinit(&uvn_sync_lock, PVM, "uvnsync", 0, 0);
149 1.1 mrg }
150 1.1 mrg
151 1.1 mrg /*
152 1.1 mrg * uvn_attach
153 1.1 mrg *
154 1.1 mrg * attach a vnode structure to a VM object. if the vnode is already
155 1.1 mrg * attached, then just bump the reference count by one and return the
156 1.1 mrg * VM object. if not already attached, attach and return the new VM obj.
157 1.1 mrg * the "accessprot" tells the max access the attaching thread wants to
158 1.1 mrg * our pages.
159 1.1 mrg *
160 1.1 mrg * => caller must _not_ already be holding the lock on the uvm_object.
161 1.1 mrg * => in fact, nothing should be locked so that we can sleep here.
162 1.1 mrg * => note that uvm_object is first thing in vnode structure, so their
163 1.1 mrg * pointers are equiv.
164 1.1 mrg */
165 1.1 mrg
166 1.8 mrg struct uvm_object *
167 1.8 mrg uvn_attach(arg, accessprot)
168 1.8 mrg void *arg;
169 1.8 mrg vm_prot_t accessprot;
170 1.8 mrg {
171 1.8 mrg struct vnode *vp = arg;
172 1.8 mrg struct uvm_vnode *uvn = &vp->v_uvm;
173 1.8 mrg struct vattr vattr;
174 1.8 mrg int oldflags, result;
175 1.13 thorpej struct partinfo pi;
176 1.8 mrg u_quad_t used_vnode_size;
177 1.8 mrg UVMHIST_FUNC("uvn_attach"); UVMHIST_CALLED(maphist);
178 1.8 mrg
179 1.8 mrg UVMHIST_LOG(maphist, "(vn=0x%x)", arg,0,0,0);
180 1.8 mrg
181 1.13 thorpej used_vnode_size = (u_quad_t)0; /* XXX gcc -Wuninitialized */
182 1.13 thorpej
183 1.8 mrg /*
184 1.8 mrg * first get a lock on the uvn.
185 1.8 mrg */
186 1.8 mrg simple_lock(&uvn->u_obj.vmobjlock);
187 1.8 mrg while (uvn->u_flags & UVM_VNODE_BLOCKED) {
188 1.30 kleink printf("uvn_attach: blocked at 0x%p flags 0x%x\n",
189 1.30 kleink uvn, uvn->u_flags);
190 1.8 mrg uvn->u_flags |= UVM_VNODE_WANTED;
191 1.8 mrg UVMHIST_LOG(maphist, " SLEEPING on blocked vn",0,0,0,0);
192 1.8 mrg UVM_UNLOCK_AND_WAIT(uvn, &uvn->u_obj.vmobjlock, FALSE,
193 1.8 mrg "uvn_attach", 0);
194 1.8 mrg simple_lock(&uvn->u_obj.vmobjlock);
195 1.8 mrg UVMHIST_LOG(maphist," WOKE UP",0,0,0,0);
196 1.8 mrg }
197 1.1 mrg
198 1.8 mrg /*
199 1.18 bouyer * if we're mapping a BLK device, make sure it is a disk.
200 1.13 thorpej */
201 1.13 thorpej if (vp->v_type == VBLK && bdevsw[major(vp->v_rdev)].d_type != D_DISK) {
202 1.13 thorpej simple_unlock(&uvn->u_obj.vmobjlock); /* drop lock */
203 1.13 thorpej UVMHIST_LOG(maphist,"<- done (VBLK not D_DISK!)", 0,0,0,0);
204 1.13 thorpej return(NULL);
205 1.13 thorpej }
206 1.13 thorpej
207 1.13 thorpej /*
208 1.8 mrg * now we have lock and uvn must not be in a blocked state.
209 1.8 mrg * first check to see if it is already active, in which case
210 1.8 mrg * we can bump the reference count, check to see if we need to
211 1.8 mrg * add it to the writeable list, and then return.
212 1.8 mrg */
213 1.8 mrg if (uvn->u_flags & UVM_VNODE_VALID) { /* already active? */
214 1.1 mrg
215 1.8 mrg /* regain VREF if we were persisting */
216 1.8 mrg if (uvn->u_obj.uo_refs == 0) {
217 1.8 mrg VREF(vp);
218 1.8 mrg UVMHIST_LOG(maphist," VREF (reclaim persisting vnode)",
219 1.8 mrg 0,0,0,0);
220 1.8 mrg }
221 1.8 mrg uvn->u_obj.uo_refs++; /* bump uvn ref! */
222 1.8 mrg
223 1.8 mrg /* check for new writeable uvn */
224 1.8 mrg if ((accessprot & VM_PROT_WRITE) != 0 &&
225 1.8 mrg (uvn->u_flags & UVM_VNODE_WRITEABLE) == 0) {
226 1.8 mrg simple_lock(&uvn_wl_lock);
227 1.8 mrg LIST_INSERT_HEAD(&uvn_wlist, uvn, u_wlist);
228 1.8 mrg simple_unlock(&uvn_wl_lock);
229 1.8 mrg /* we are now on wlist! */
230 1.8 mrg uvn->u_flags |= UVM_VNODE_WRITEABLE;
231 1.8 mrg }
232 1.8 mrg
233 1.8 mrg /* unlock and return */
234 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
235 1.8 mrg UVMHIST_LOG(maphist,"<- done, refcnt=%d", uvn->u_obj.uo_refs,
236 1.8 mrg 0, 0, 0);
237 1.8 mrg return (&uvn->u_obj);
238 1.8 mrg }
239 1.8 mrg
240 1.8 mrg /*
241 1.8 mrg * need to call VOP_GETATTR() to get the attributes, but that could
242 1.8 mrg * block (due to I/O), so we want to unlock the object before calling.
243 1.8 mrg * however, we want to keep anyone else from playing with the object
244 1.8 mrg * while it is unlocked. to do this we set UVM_VNODE_ALOCK which
245 1.8 mrg * prevents anyone from attaching to the vnode until we are done with
246 1.8 mrg * it.
247 1.8 mrg */
248 1.8 mrg uvn->u_flags = UVM_VNODE_ALOCK;
249 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock); /* drop lock in case we sleep */
250 1.8 mrg /* XXX: curproc? */
251 1.8 mrg
252 1.13 thorpej if (vp->v_type == VBLK) {
253 1.13 thorpej /*
254 1.13 thorpej * We could implement this as a specfs getattr call, but:
255 1.13 thorpej *
256 1.13 thorpej * (1) VOP_GETATTR() would get the file system
257 1.13 thorpej * vnode operation, not the specfs operation.
258 1.13 thorpej *
259 1.13 thorpej * (2) All we want is the size, anyhow.
260 1.13 thorpej */
261 1.13 thorpej result = (*bdevsw[major(vp->v_rdev)].d_ioctl)(vp->v_rdev,
262 1.13 thorpej DIOCGPART, (caddr_t)&pi, FREAD, curproc);
263 1.13 thorpej if (result == 0) {
264 1.13 thorpej /* XXX should remember blocksize */
265 1.13 thorpej used_vnode_size = (u_quad_t)pi.disklab->d_secsize *
266 1.13 thorpej (u_quad_t)pi.part->p_size;
267 1.13 thorpej }
268 1.13 thorpej } else {
269 1.13 thorpej result = VOP_GETATTR(vp, &vattr, curproc->p_ucred, curproc);
270 1.13 thorpej if (result == 0)
271 1.13 thorpej used_vnode_size = vattr.va_size;
272 1.8 mrg }
273 1.1 mrg
274 1.8 mrg /* relock object */
275 1.8 mrg simple_lock(&uvn->u_obj.vmobjlock);
276 1.1 mrg
277 1.8 mrg if (result != 0) {
278 1.8 mrg if (uvn->u_flags & UVM_VNODE_WANTED)
279 1.8 mrg wakeup(uvn);
280 1.8 mrg uvn->u_flags = 0;
281 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock); /* drop lock */
282 1.8 mrg UVMHIST_LOG(maphist,"<- done (VOP_GETATTR FAILED!)", 0,0,0,0);
283 1.8 mrg return(NULL);
284 1.8 mrg }
285 1.13 thorpej
286 1.13 thorpej /*
287 1.15 eeh * make sure that the newsize fits within a vaddr_t
288 1.13 thorpej * XXX: need to revise addressing data types
289 1.13 thorpej */
290 1.18 bouyer #ifdef DEBUG
291 1.18 bouyer if (vp->v_type == VBLK)
292 1.19 chs printf("used_vnode_size = %qu\n", (long long)used_vnode_size);
293 1.18 bouyer #endif
294 1.13 thorpej
295 1.8 mrg /*
296 1.8 mrg * now set up the uvn.
297 1.8 mrg */
298 1.8 mrg uvn->u_obj.pgops = &uvm_vnodeops;
299 1.8 mrg TAILQ_INIT(&uvn->u_obj.memq);
300 1.8 mrg uvn->u_obj.uo_npages = 0;
301 1.8 mrg uvn->u_obj.uo_refs = 1; /* just us... */
302 1.8 mrg oldflags = uvn->u_flags;
303 1.8 mrg uvn->u_flags = UVM_VNODE_VALID|UVM_VNODE_CANPERSIST;
304 1.8 mrg uvn->u_nio = 0;
305 1.8 mrg uvn->u_size = used_vnode_size;
306 1.8 mrg
307 1.8 mrg /* if write access, we need to add it to the wlist */
308 1.8 mrg if (accessprot & VM_PROT_WRITE) {
309 1.8 mrg simple_lock(&uvn_wl_lock);
310 1.8 mrg LIST_INSERT_HEAD(&uvn_wlist, uvn, u_wlist);
311 1.8 mrg simple_unlock(&uvn_wl_lock);
312 1.8 mrg uvn->u_flags |= UVM_VNODE_WRITEABLE; /* we are on wlist! */
313 1.8 mrg }
314 1.8 mrg
315 1.8 mrg /*
316 1.8 mrg * add a reference to the vnode. this reference will stay as long
317 1.8 mrg * as there is a valid mapping of the vnode. dropped when the
318 1.8 mrg * reference count goes to zero [and we either free or persist].
319 1.8 mrg */
320 1.8 mrg VREF(vp);
321 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
322 1.8 mrg if (oldflags & UVM_VNODE_WANTED)
323 1.8 mrg wakeup(uvn);
324 1.1 mrg
325 1.8 mrg UVMHIST_LOG(maphist,"<- done/VREF, ret 0x%x", &uvn->u_obj,0,0,0);
326 1.8 mrg return(&uvn->u_obj);
327 1.1 mrg }
328 1.1 mrg
329 1.1 mrg
330 1.1 mrg /*
331 1.1 mrg * uvn_reference
332 1.1 mrg *
333 1.1 mrg * duplicate a reference to a VM object. Note that the reference
334 1.1 mrg * count must already be at least one (the passed in reference) so
335 1.1 mrg * there is no chance of the uvn being killed or locked out here.
336 1.1 mrg *
337 1.1 mrg * => caller must call with object unlocked.
338 1.1 mrg * => caller must be using the same accessprot as was used at attach time
339 1.1 mrg */
340 1.1 mrg
341 1.1 mrg
342 1.8 mrg static void
343 1.8 mrg uvn_reference(uobj)
344 1.8 mrg struct uvm_object *uobj;
345 1.1 mrg {
346 1.27 chs #ifdef DEBUG
347 1.8 mrg struct uvm_vnode *uvn = (struct uvm_vnode *) uobj;
348 1.1 mrg #endif
349 1.8 mrg UVMHIST_FUNC("uvn_reference"); UVMHIST_CALLED(maphist);
350 1.1 mrg
351 1.8 mrg simple_lock(&uobj->vmobjlock);
352 1.27 chs #ifdef DEBUG
353 1.8 mrg if ((uvn->u_flags & UVM_VNODE_VALID) == 0) {
354 1.8 mrg printf("uvn_reference: ref=%d, flags=0x%x\n", uvn->u_flags,
355 1.8 mrg uobj->uo_refs);
356 1.8 mrg panic("uvn_reference: invalid state");
357 1.8 mrg }
358 1.1 mrg #endif
359 1.8 mrg uobj->uo_refs++;
360 1.8 mrg UVMHIST_LOG(maphist, "<- done (uobj=0x%x, ref = %d)",
361 1.1 mrg uobj, uobj->uo_refs,0,0);
362 1.8 mrg simple_unlock(&uobj->vmobjlock);
363 1.1 mrg }
364 1.1 mrg
365 1.1 mrg /*
366 1.1 mrg * uvn_detach
367 1.1 mrg *
368 1.1 mrg * remove a reference to a VM object.
369 1.1 mrg *
370 1.1 mrg * => caller must call with object unlocked and map locked.
371 1.1 mrg * => this starts the detach process, but doesn't have to finish it
372 1.1 mrg * (async i/o could still be pending).
373 1.1 mrg */
374 1.8 mrg static void
375 1.8 mrg uvn_detach(uobj)
376 1.8 mrg struct uvm_object *uobj;
377 1.8 mrg {
378 1.8 mrg struct uvm_vnode *uvn;
379 1.8 mrg struct vnode *vp;
380 1.8 mrg int oldflags;
381 1.8 mrg UVMHIST_FUNC("uvn_detach"); UVMHIST_CALLED(maphist);
382 1.8 mrg
383 1.8 mrg simple_lock(&uobj->vmobjlock);
384 1.8 mrg
385 1.8 mrg UVMHIST_LOG(maphist," (uobj=0x%x) ref=%d", uobj,uobj->uo_refs,0,0);
386 1.8 mrg uobj->uo_refs--; /* drop ref! */
387 1.8 mrg if (uobj->uo_refs) { /* still more refs */
388 1.8 mrg simple_unlock(&uobj->vmobjlock);
389 1.8 mrg UVMHIST_LOG(maphist, "<- done (rc>0)", 0,0,0,0);
390 1.8 mrg return;
391 1.8 mrg }
392 1.1 mrg
393 1.8 mrg /*
394 1.8 mrg * get other pointers ...
395 1.8 mrg */
396 1.8 mrg
397 1.8 mrg uvn = (struct uvm_vnode *) uobj;
398 1.8 mrg vp = (struct vnode *) uobj;
399 1.8 mrg
400 1.8 mrg /*
401 1.8 mrg * clear VTEXT flag now that there are no mappings left (VTEXT is used
402 1.8 mrg * to keep an active text file from being overwritten).
403 1.8 mrg */
404 1.8 mrg vp->v_flag &= ~VTEXT;
405 1.8 mrg
406 1.8 mrg /*
407 1.8 mrg * we just dropped the last reference to the uvn. see if we can
408 1.8 mrg * let it "stick around".
409 1.8 mrg */
410 1.8 mrg
411 1.8 mrg if (uvn->u_flags & UVM_VNODE_CANPERSIST) {
412 1.8 mrg /* won't block */
413 1.8 mrg uvn_flush(uobj, 0, 0, PGO_DEACTIVATE|PGO_ALLPAGES);
414 1.17 chs simple_unlock(&uobj->vmobjlock);
415 1.8 mrg vrele(vp); /* drop vnode reference */
416 1.8 mrg UVMHIST_LOG(maphist,"<- done/vrele! (persist)", 0,0,0,0);
417 1.8 mrg return;
418 1.8 mrg }
419 1.8 mrg
420 1.8 mrg /*
421 1.8 mrg * its a goner!
422 1.8 mrg */
423 1.8 mrg
424 1.8 mrg UVMHIST_LOG(maphist," its a goner (flushing)!", 0,0,0,0);
425 1.8 mrg
426 1.8 mrg uvn->u_flags |= UVM_VNODE_DYING;
427 1.8 mrg
428 1.8 mrg /*
429 1.8 mrg * even though we may unlock in flush, no one can gain a reference
430 1.8 mrg * to us until we clear the "dying" flag [because it blocks
431 1.8 mrg * attaches]. we will not do that until after we've disposed of all
432 1.8 mrg * the pages with uvn_flush(). note that before the flush the only
433 1.8 mrg * pages that could be marked PG_BUSY are ones that are in async
434 1.8 mrg * pageout by the daemon. (there can't be any pending "get"'s
435 1.8 mrg * because there are no references to the object).
436 1.8 mrg */
437 1.1 mrg
438 1.8 mrg (void) uvn_flush(uobj, 0, 0, PGO_CLEANIT|PGO_FREE|PGO_ALLPAGES);
439 1.1 mrg
440 1.8 mrg UVMHIST_LOG(maphist," its a goner (done flush)!", 0,0,0,0);
441 1.8 mrg
442 1.8 mrg /*
443 1.8 mrg * given the structure of this pager, the above flush request will
444 1.8 mrg * create the following state: all the pages that were in the object
445 1.8 mrg * have either been free'd or they are marked PG_BUSY|PG_RELEASED.
446 1.8 mrg * the PG_BUSY bit was set either by us or the daemon for async I/O.
447 1.8 mrg * in either case, if we have pages left we can't kill the object
448 1.8 mrg * yet because i/o is pending. in this case we set the "relkill"
449 1.8 mrg * flag which will cause pgo_releasepg to kill the object once all
450 1.8 mrg * the I/O's are done [pgo_releasepg will be called from the aiodone
451 1.8 mrg * routine or from the page daemon].
452 1.8 mrg */
453 1.1 mrg
454 1.8 mrg if (uobj->uo_npages) { /* I/O pending. iodone will free */
455 1.27 chs #ifdef DEBUG
456 1.8 mrg /*
457 1.8 mrg * XXXCDC: very unlikely to happen until we have async i/o
458 1.8 mrg * so print a little info message in case it does.
459 1.8 mrg */
460 1.8 mrg printf("uvn_detach: vn %p has pages left after flush - "
461 1.8 mrg "relkill mode\n", uobj);
462 1.1 mrg #endif
463 1.8 mrg uvn->u_flags |= UVM_VNODE_RELKILL;
464 1.8 mrg simple_unlock(&uobj->vmobjlock);
465 1.8 mrg UVMHIST_LOG(maphist,"<- done! (releasepg will kill obj)", 0, 0,
466 1.8 mrg 0, 0);
467 1.8 mrg return;
468 1.8 mrg }
469 1.8 mrg
470 1.8 mrg /*
471 1.8 mrg * kill object now. note that we can't be on the sync q because
472 1.8 mrg * all references are gone.
473 1.8 mrg */
474 1.8 mrg if (uvn->u_flags & UVM_VNODE_WRITEABLE) {
475 1.8 mrg simple_lock(&uvn_wl_lock); /* protect uvn_wlist */
476 1.8 mrg LIST_REMOVE(uvn, u_wlist);
477 1.8 mrg simple_unlock(&uvn_wl_lock);
478 1.8 mrg }
479 1.1 mrg #ifdef DIAGNOSTIC
480 1.8 mrg if (uobj->memq.tqh_first != NULL)
481 1.8 mrg panic("uvn_deref: vnode VM object still has pages afer "
482 1.8 mrg "syncio/free flush");
483 1.1 mrg #endif
484 1.8 mrg oldflags = uvn->u_flags;
485 1.8 mrg uvn->u_flags = 0;
486 1.8 mrg simple_unlock(&uobj->vmobjlock);
487 1.8 mrg
488 1.8 mrg /* wake up any sleepers */
489 1.8 mrg if (oldflags & UVM_VNODE_WANTED)
490 1.8 mrg wakeup(uvn);
491 1.8 mrg
492 1.8 mrg /*
493 1.8 mrg * drop our reference to the vnode.
494 1.8 mrg */
495 1.8 mrg vrele(vp);
496 1.8 mrg UVMHIST_LOG(maphist,"<- done (vrele) final", 0,0,0,0);
497 1.1 mrg
498 1.8 mrg return;
499 1.1 mrg }
500 1.1 mrg
501 1.1 mrg /*
502 1.1 mrg * uvm_vnp_terminate: external hook to clear out a vnode's VM
503 1.1 mrg *
504 1.5 mrg * called in two cases:
505 1.5 mrg * [1] when a persisting vnode vm object (i.e. one with a zero reference
506 1.5 mrg * count) needs to be freed so that a vnode can be reused. this
507 1.5 mrg * happens under "getnewvnode" in vfs_subr.c. if the vnode from
508 1.5 mrg * the free list is still attached (i.e. not VBAD) then vgone is
509 1.5 mrg * called. as part of the vgone trace this should get called to
510 1.5 mrg * free the vm object. this is the common case.
511 1.5 mrg * [2] when a filesystem is being unmounted by force (MNT_FORCE,
512 1.5 mrg * "umount -f") the vgone() function is called on active vnodes
513 1.5 mrg * on the mounted file systems to kill their data (the vnodes become
514 1.5 mrg * "dead" ones [see src/sys/miscfs/deadfs/...]). that results in a
515 1.5 mrg * call here (even if the uvn is still in use -- i.e. has a non-zero
516 1.5 mrg * reference count). this case happens at "umount -f" and during a
517 1.5 mrg * "reboot/halt" operation.
518 1.5 mrg *
519 1.5 mrg * => the caller must XLOCK and VOP_LOCK the vnode before calling us
520 1.5 mrg * [protects us from getting a vnode that is already in the DYING
521 1.5 mrg * state...]
522 1.5 mrg * => unlike uvn_detach, this function must not return until all the
523 1.5 mrg * uvn's pages are disposed of.
524 1.5 mrg * => in case [2] the uvn is still alive after this call, but all I/O
525 1.5 mrg * ops will fail (due to the backing vnode now being "dead"). this
526 1.5 mrg * will prob. kill any process using the uvn due to pgo_get failing.
527 1.1 mrg */
528 1.1 mrg
529 1.8 mrg void
530 1.8 mrg uvm_vnp_terminate(vp)
531 1.8 mrg struct vnode *vp;
532 1.8 mrg {
533 1.8 mrg struct uvm_vnode *uvn = &vp->v_uvm;
534 1.8 mrg int oldflags;
535 1.8 mrg UVMHIST_FUNC("uvm_vnp_terminate"); UVMHIST_CALLED(maphist);
536 1.1 mrg
537 1.8 mrg /*
538 1.8 mrg * lock object and check if it is valid
539 1.8 mrg */
540 1.8 mrg simple_lock(&uvn->u_obj.vmobjlock);
541 1.8 mrg UVMHIST_LOG(maphist, " vp=0x%x, ref=%d, flag=0x%x", vp,
542 1.8 mrg uvn->u_obj.uo_refs, uvn->u_flags, 0);
543 1.8 mrg if ((uvn->u_flags & UVM_VNODE_VALID) == 0) {
544 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
545 1.8 mrg UVMHIST_LOG(maphist, "<- done (not active)", 0, 0, 0, 0);
546 1.8 mrg return;
547 1.8 mrg }
548 1.1 mrg
549 1.8 mrg /*
550 1.8 mrg * must be a valid uvn that is not already dying (because XLOCK
551 1.29 soren * protects us from that). the uvn can't in the ALOCK state
552 1.8 mrg * because it is valid, and uvn's that are in the ALOCK state haven't
553 1.8 mrg * been marked valid yet.
554 1.8 mrg */
555 1.1 mrg
556 1.5 mrg #ifdef DEBUG
557 1.8 mrg /*
558 1.8 mrg * debug check: are we yanking the vnode out from under our uvn?
559 1.8 mrg */
560 1.8 mrg if (uvn->u_obj.uo_refs) {
561 1.8 mrg printf("uvm_vnp_terminate(%p): terminating active vnode "
562 1.8 mrg "(refs=%d)\n", uvn, uvn->u_obj.uo_refs);
563 1.8 mrg }
564 1.1 mrg #endif
565 1.8 mrg
566 1.8 mrg /*
567 1.8 mrg * it is possible that the uvn was detached and is in the relkill
568 1.8 mrg * state [i.e. waiting for async i/o to finish so that releasepg can
569 1.8 mrg * kill object]. we take over the vnode now and cancel the relkill.
570 1.8 mrg * we want to know when the i/o is done so we can recycle right
571 1.8 mrg * away. note that a uvn can only be in the RELKILL state if it
572 1.8 mrg * has a zero reference count.
573 1.8 mrg */
574 1.8 mrg
575 1.8 mrg if (uvn->u_flags & UVM_VNODE_RELKILL)
576 1.8 mrg uvn->u_flags &= ~UVM_VNODE_RELKILL; /* cancel RELKILL */
577 1.8 mrg
578 1.8 mrg /*
579 1.8 mrg * block the uvn by setting the dying flag, and then flush the
580 1.8 mrg * pages. (note that flush may unlock object while doing I/O, but
581 1.8 mrg * it will re-lock it before it returns control here).
582 1.8 mrg *
583 1.8 mrg * also, note that we tell I/O that we are already VOP_LOCK'd so
584 1.8 mrg * that uvn_io doesn't attempt to VOP_LOCK again.
585 1.8 mrg *
586 1.8 mrg * XXXCDC: setting VNISLOCKED on an active uvn which is being terminated
587 1.8 mrg * due to a forceful unmount might not be a good idea. maybe we
588 1.8 mrg * need a way to pass in this info to uvn_flush through a
589 1.8 mrg * pager-defined PGO_ constant [currently there are none].
590 1.8 mrg */
591 1.8 mrg uvn->u_flags |= UVM_VNODE_DYING|UVM_VNODE_VNISLOCKED;
592 1.8 mrg
593 1.8 mrg (void) uvn_flush(&uvn->u_obj, 0, 0, PGO_CLEANIT|PGO_FREE|PGO_ALLPAGES);
594 1.8 mrg
595 1.8 mrg /*
596 1.8 mrg * as we just did a flush we expect all the pages to be gone or in
597 1.8 mrg * the process of going. sleep to wait for the rest to go [via iosync].
598 1.8 mrg */
599 1.1 mrg
600 1.8 mrg while (uvn->u_obj.uo_npages) {
601 1.27 chs #ifdef DEBUG
602 1.8 mrg struct vm_page *pp;
603 1.8 mrg for (pp = uvn->u_obj.memq.tqh_first ; pp != NULL ;
604 1.8 mrg pp = pp->listq.tqe_next) {
605 1.8 mrg if ((pp->flags & PG_BUSY) == 0)
606 1.8 mrg panic("uvm_vnp_terminate: detected unbusy pg");
607 1.8 mrg }
608 1.8 mrg if (uvn->u_nio == 0)
609 1.8 mrg panic("uvm_vnp_terminate: no I/O to wait for?");
610 1.8 mrg printf("uvm_vnp_terminate: waiting for I/O to fin.\n");
611 1.8 mrg /*
612 1.8 mrg * XXXCDC: this is unlikely to happen without async i/o so we
613 1.8 mrg * put a printf in just to keep an eye on it.
614 1.8 mrg */
615 1.1 mrg #endif
616 1.8 mrg uvn->u_flags |= UVM_VNODE_IOSYNC;
617 1.8 mrg UVM_UNLOCK_AND_WAIT(&uvn->u_nio, &uvn->u_obj.vmobjlock, FALSE,
618 1.8 mrg "uvn_term",0);
619 1.8 mrg simple_lock(&uvn->u_obj.vmobjlock);
620 1.8 mrg }
621 1.8 mrg
622 1.8 mrg /*
623 1.8 mrg * done. now we free the uvn if its reference count is zero
624 1.8 mrg * (true if we are zapping a persisting uvn). however, if we are
625 1.8 mrg * terminating a uvn with active mappings we let it live ... future
626 1.8 mrg * calls down to the vnode layer will fail.
627 1.8 mrg */
628 1.5 mrg
629 1.8 mrg oldflags = uvn->u_flags;
630 1.8 mrg if (uvn->u_obj.uo_refs) {
631 1.8 mrg
632 1.8 mrg /*
633 1.8 mrg * uvn must live on it is dead-vnode state until all references
634 1.8 mrg * are gone. restore flags. clear CANPERSIST state.
635 1.8 mrg */
636 1.8 mrg
637 1.8 mrg uvn->u_flags &= ~(UVM_VNODE_DYING|UVM_VNODE_VNISLOCKED|
638 1.5 mrg UVM_VNODE_WANTED|UVM_VNODE_CANPERSIST);
639 1.8 mrg
640 1.8 mrg } else {
641 1.5 mrg
642 1.8 mrg /*
643 1.8 mrg * free the uvn now. note that the VREF reference is already
644 1.8 mrg * gone [it is dropped when we enter the persist state].
645 1.8 mrg */
646 1.8 mrg if (uvn->u_flags & UVM_VNODE_IOSYNCWANTED)
647 1.8 mrg panic("uvm_vnp_terminate: io sync wanted bit set");
648 1.8 mrg
649 1.8 mrg if (uvn->u_flags & UVM_VNODE_WRITEABLE) {
650 1.8 mrg simple_lock(&uvn_wl_lock);
651 1.8 mrg LIST_REMOVE(uvn, u_wlist);
652 1.8 mrg simple_unlock(&uvn_wl_lock);
653 1.8 mrg }
654 1.8 mrg uvn->u_flags = 0; /* uvn is history, clear all bits */
655 1.8 mrg }
656 1.5 mrg
657 1.8 mrg if (oldflags & UVM_VNODE_WANTED)
658 1.8 mrg wakeup(uvn); /* object lock still held */
659 1.5 mrg
660 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
661 1.8 mrg UVMHIST_LOG(maphist, "<- done", 0, 0, 0, 0);
662 1.1 mrg
663 1.1 mrg }
664 1.1 mrg
665 1.1 mrg /*
666 1.1 mrg * uvn_releasepg: handled a released page in a uvn
667 1.1 mrg *
668 1.1 mrg * => "pg" is a PG_BUSY [caller owns it], PG_RELEASED page that we need
669 1.1 mrg * to dispose of.
670 1.1 mrg * => caller must handled PG_WANTED case
671 1.1 mrg * => called with page's object locked, pageq's unlocked
672 1.1 mrg * => returns TRUE if page's object is still alive, FALSE if we
673 1.1 mrg * killed the page's object. if we return TRUE, then we
674 1.1 mrg * return with the object locked.
675 1.1 mrg * => if (nextpgp != NULL) => we return pageq.tqe_next here, and return
676 1.1 mrg * with the page queues locked [for pagedaemon]
677 1.1 mrg * => if (nextpgp == NULL) => we return with page queues unlocked [normal case]
678 1.1 mrg * => we kill the uvn if it is not referenced and we are suppose to
679 1.1 mrg * kill it ("relkill").
680 1.1 mrg */
681 1.1 mrg
682 1.8 mrg boolean_t
683 1.8 mrg uvn_releasepg(pg, nextpgp)
684 1.8 mrg struct vm_page *pg;
685 1.8 mrg struct vm_page **nextpgp; /* OUT */
686 1.1 mrg {
687 1.8 mrg struct uvm_vnode *uvn = (struct uvm_vnode *) pg->uobject;
688 1.1 mrg #ifdef DIAGNOSTIC
689 1.8 mrg if ((pg->flags & PG_RELEASED) == 0)
690 1.8 mrg panic("uvn_releasepg: page not released!");
691 1.1 mrg #endif
692 1.8 mrg
693 1.8 mrg /*
694 1.8 mrg * dispose of the page [caller handles PG_WANTED]
695 1.8 mrg */
696 1.26 chs pmap_page_protect(pg, VM_PROT_NONE);
697 1.8 mrg uvm_lock_pageq();
698 1.8 mrg if (nextpgp)
699 1.8 mrg *nextpgp = pg->pageq.tqe_next; /* next page for daemon */
700 1.8 mrg uvm_pagefree(pg);
701 1.8 mrg if (!nextpgp)
702 1.8 mrg uvm_unlock_pageq();
703 1.8 mrg
704 1.8 mrg /*
705 1.8 mrg * now see if we need to kill the object
706 1.8 mrg */
707 1.8 mrg if (uvn->u_flags & UVM_VNODE_RELKILL) {
708 1.8 mrg if (uvn->u_obj.uo_refs)
709 1.8 mrg panic("uvn_releasepg: kill flag set on referenced "
710 1.8 mrg "object!");
711 1.8 mrg if (uvn->u_obj.uo_npages == 0) {
712 1.8 mrg if (uvn->u_flags & UVM_VNODE_WRITEABLE) {
713 1.8 mrg simple_lock(&uvn_wl_lock);
714 1.8 mrg LIST_REMOVE(uvn, u_wlist);
715 1.8 mrg simple_unlock(&uvn_wl_lock);
716 1.8 mrg }
717 1.1 mrg #ifdef DIAGNOSTIC
718 1.8 mrg if (uvn->u_obj.memq.tqh_first)
719 1.1 mrg panic("uvn_releasepg: pages in object with npages == 0");
720 1.1 mrg #endif
721 1.8 mrg if (uvn->u_flags & UVM_VNODE_WANTED)
722 1.8 mrg /* still holding object lock */
723 1.8 mrg wakeup(uvn);
724 1.8 mrg
725 1.8 mrg uvn->u_flags = 0; /* DEAD! */
726 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
727 1.8 mrg return (FALSE);
728 1.8 mrg }
729 1.8 mrg }
730 1.8 mrg return (TRUE);
731 1.1 mrg }
732 1.1 mrg
733 1.1 mrg /*
734 1.1 mrg * NOTE: currently we have to use VOP_READ/VOP_WRITE because they go
735 1.1 mrg * through the buffer cache and allow I/O in any size. These VOPs use
736 1.1 mrg * synchronous i/o. [vs. VOP_STRATEGY which can be async, but doesn't
737 1.1 mrg * go through the buffer cache or allow I/O sizes larger than a
738 1.1 mrg * block]. we will eventually want to change this.
739 1.1 mrg *
740 1.1 mrg * issues to consider:
741 1.1 mrg * uvm provides the uvm_aiodesc structure for async i/o management.
742 1.1 mrg * there are two tailq's in the uvm. structure... one for pending async
743 1.1 mrg * i/o and one for "done" async i/o. to do an async i/o one puts
744 1.1 mrg * an aiodesc on the "pending" list (protected by splbio()), starts the
745 1.1 mrg * i/o and returns VM_PAGER_PEND. when the i/o is done, we expect
746 1.1 mrg * some sort of "i/o done" function to be called (at splbio(), interrupt
747 1.1 mrg * time). this function should remove the aiodesc from the pending list
748 1.1 mrg * and place it on the "done" list and wakeup the daemon. the daemon
749 1.1 mrg * will run at normal spl() and will remove all items from the "done"
750 1.1 mrg * list and call the "aiodone" hook for each done request (see uvm_pager.c).
751 1.1 mrg * [in the old vm code, this was done by calling the "put" routine with
752 1.1 mrg * null arguments which made the code harder to read and understand because
753 1.1 mrg * you had one function ("put") doing two things.]
754 1.1 mrg *
755 1.1 mrg * so the current pager needs:
756 1.1 mrg * int uvn_aiodone(struct uvm_aiodesc *)
757 1.1 mrg *
758 1.1 mrg * => return KERN_SUCCESS (aio finished, free it). otherwise requeue for
759 1.1 mrg * later collection.
760 1.1 mrg * => called with pageq's locked by the daemon.
761 1.1 mrg *
762 1.1 mrg * general outline:
763 1.1 mrg * - "try" to lock object. if fail, just return (will try again later)
764 1.1 mrg * - drop "u_nio" (this req is done!)
765 1.1 mrg * - if (object->iosync && u_naio == 0) { wakeup &uvn->u_naio }
766 1.1 mrg * - get "page" structures (atop?).
767 1.1 mrg * - handle "wanted" pages
768 1.1 mrg * - handle "released" pages [using pgo_releasepg]
769 1.1 mrg * >>> pgo_releasepg may kill the object
770 1.1 mrg * dont forget to look at "object" wanted flag in all cases.
771 1.1 mrg */
772 1.1 mrg
773 1.1 mrg
774 1.1 mrg /*
775 1.1 mrg * uvn_flush: flush pages out of a uvm object.
776 1.1 mrg *
777 1.1 mrg * => object should be locked by caller. we may _unlock_ the object
778 1.1 mrg * if (and only if) we need to clean a page (PGO_CLEANIT).
779 1.1 mrg * we return with the object locked.
780 1.1 mrg * => if PGO_CLEANIT is set, we may block (due to I/O). thus, a caller
781 1.1 mrg * might want to unlock higher level resources (e.g. vm_map)
782 1.1 mrg * before calling flush.
783 1.1 mrg * => if PGO_CLEANIT is not set, then we will neither unlock the object
784 1.1 mrg * or block.
785 1.1 mrg * => if PGO_ALLPAGE is set, then all pages in the object are valid targets
786 1.1 mrg * for flushing.
787 1.1 mrg * => NOTE: we rely on the fact that the object's memq is a TAILQ and
788 1.1 mrg * that new pages are inserted on the tail end of the list. thus,
789 1.1 mrg * we can make a complete pass through the object in one go by starting
790 1.1 mrg * at the head and working towards the tail (new pages are put in
791 1.1 mrg * front of us).
792 1.1 mrg * => NOTE: we are allowed to lock the page queues, so the caller
793 1.1 mrg * must not be holding the lock on them [e.g. pagedaemon had
794 1.1 mrg * better not call us with the queues locked]
795 1.1 mrg * => we return TRUE unless we encountered some sort of I/O error
796 1.1 mrg *
797 1.1 mrg * comment on "cleaning" object and PG_BUSY pages:
798 1.1 mrg * this routine is holding the lock on the object. the only time
799 1.1 mrg * that it can run into a PG_BUSY page that it does not own is if
800 1.1 mrg * some other process has started I/O on the page (e.g. either
801 1.1 mrg * a pagein, or a pageout). if the PG_BUSY page is being paged
802 1.1 mrg * in, then it can not be dirty (!PG_CLEAN) because no one has
803 1.1 mrg * had a chance to modify it yet. if the PG_BUSY page is being
804 1.1 mrg * paged out then it means that someone else has already started
805 1.1 mrg * cleaning the page for us (how nice!). in this case, if we
806 1.1 mrg * have syncio specified, then after we make our pass through the
807 1.1 mrg * object we need to wait for the other PG_BUSY pages to clear
808 1.1 mrg * off (i.e. we need to do an iosync). also note that once a
809 1.1 mrg * page is PG_BUSY it must stay in its object until it is un-busyed.
810 1.1 mrg *
811 1.1 mrg * note on page traversal:
812 1.1 mrg * we can traverse the pages in an object either by going down the
813 1.1 mrg * linked list in "uobj->memq", or we can go over the address range
814 1.1 mrg * by page doing hash table lookups for each address. depending
815 1.1 mrg * on how many pages are in the object it may be cheaper to do one
816 1.1 mrg * or the other. we set "by_list" to true if we are using memq.
817 1.1 mrg * if the cost of a hash lookup was equal to the cost of the list
818 1.1 mrg * traversal we could compare the number of pages in the start->stop
819 1.1 mrg * range to the total number of pages in the object. however, it
820 1.1 mrg * seems that a hash table lookup is more expensive than the linked
821 1.1 mrg * list traversal, so we multiply the number of pages in the
822 1.1 mrg * start->stop range by a penalty which we define below.
823 1.1 mrg */
824 1.1 mrg
825 1.8 mrg #define UVN_HASH_PENALTY 4 /* XXX: a guess */
826 1.1 mrg
827 1.8 mrg static boolean_t
828 1.8 mrg uvn_flush(uobj, start, stop, flags)
829 1.8 mrg struct uvm_object *uobj;
830 1.30 kleink voff_t start, stop;
831 1.8 mrg int flags;
832 1.8 mrg {
833 1.8 mrg struct uvm_vnode *uvn = (struct uvm_vnode *) uobj;
834 1.8 mrg struct vm_page *pp, *ppnext, *ptmp;
835 1.16 chs struct vm_page *pps[MAXBSIZE >> PAGE_SHIFT], **ppsp;
836 1.8 mrg int npages, result, lcv;
837 1.30 kleink boolean_t retval, need_iosync, by_list, needs_clean, all;
838 1.30 kleink voff_t curoff;
839 1.8 mrg u_short pp_version;
840 1.8 mrg UVMHIST_FUNC("uvn_flush"); UVMHIST_CALLED(maphist);
841 1.8 mrg
842 1.8 mrg curoff = 0; /* XXX: shut up gcc */
843 1.8 mrg /*
844 1.8 mrg * get init vals and determine how we are going to traverse object
845 1.8 mrg */
846 1.1 mrg
847 1.8 mrg need_iosync = FALSE;
848 1.8 mrg retval = TRUE; /* return value */
849 1.8 mrg if (flags & PGO_ALLPAGES) {
850 1.30 kleink all = TRUE;
851 1.8 mrg by_list = TRUE; /* always go by the list */
852 1.8 mrg } else {
853 1.8 mrg start = trunc_page(start);
854 1.8 mrg stop = round_page(stop);
855 1.27 chs #ifdef DEBUG
856 1.8 mrg if (stop > round_page(uvn->u_size))
857 1.8 mrg printf("uvn_flush: strange, got an out of range "
858 1.8 mrg "flush (fixed)\n");
859 1.27 chs #endif
860 1.30 kleink all = FALSE;
861 1.8 mrg by_list = (uobj->uo_npages <=
862 1.16 chs ((stop - start) >> PAGE_SHIFT) * UVN_HASH_PENALTY);
863 1.8 mrg }
864 1.8 mrg
865 1.8 mrg UVMHIST_LOG(maphist,
866 1.8 mrg " flush start=0x%x, stop=0x%x, by_list=%d, flags=0x%x",
867 1.8 mrg start, stop, by_list, flags);
868 1.8 mrg
869 1.8 mrg /*
870 1.8 mrg * PG_CLEANCHK: this bit is used by the pgo_mk_pcluster function as
871 1.8 mrg * a _hint_ as to how up to date the PG_CLEAN bit is. if the hint
872 1.8 mrg * is wrong it will only prevent us from clustering... it won't break
873 1.8 mrg * anything. we clear all PG_CLEANCHK bits here, and pgo_mk_pcluster
874 1.8 mrg * will set them as it syncs PG_CLEAN. This is only an issue if we
875 1.8 mrg * are looking at non-inactive pages (because inactive page's PG_CLEAN
876 1.8 mrg * bit is always up to date since there are no mappings).
877 1.8 mrg * [borrowed PG_CLEANCHK idea from FreeBSD VM]
878 1.8 mrg */
879 1.1 mrg
880 1.8 mrg if ((flags & PGO_CLEANIT) != 0 &&
881 1.8 mrg uobj->pgops->pgo_mk_pcluster != NULL) {
882 1.8 mrg if (by_list) {
883 1.8 mrg for (pp = uobj->memq.tqh_first ; pp != NULL ;
884 1.8 mrg pp = pp->listq.tqe_next) {
885 1.30 kleink if (!all &&
886 1.30 kleink (pp->offset < start || pp->offset >= stop))
887 1.8 mrg continue;
888 1.8 mrg pp->flags &= ~PG_CLEANCHK;
889 1.8 mrg }
890 1.8 mrg
891 1.8 mrg } else { /* by hash */
892 1.8 mrg for (curoff = start ; curoff < stop;
893 1.8 mrg curoff += PAGE_SIZE) {
894 1.8 mrg pp = uvm_pagelookup(uobj, curoff);
895 1.8 mrg if (pp)
896 1.8 mrg pp->flags &= ~PG_CLEANCHK;
897 1.8 mrg }
898 1.8 mrg }
899 1.8 mrg }
900 1.1 mrg
901 1.8 mrg /*
902 1.8 mrg * now do it. note: we must update ppnext in body of loop or we
903 1.8 mrg * will get stuck. we need to use ppnext because we may free "pp"
904 1.8 mrg * before doing the next loop.
905 1.8 mrg */
906 1.1 mrg
907 1.8 mrg if (by_list) {
908 1.8 mrg pp = uobj->memq.tqh_first;
909 1.1 mrg } else {
910 1.8 mrg curoff = start;
911 1.8 mrg pp = uvm_pagelookup(uobj, curoff);
912 1.1 mrg }
913 1.8 mrg
914 1.8 mrg ppnext = NULL; /* XXX: shut up gcc */
915 1.8 mrg ppsp = NULL; /* XXX: shut up gcc */
916 1.8 mrg uvm_lock_pageq(); /* page queues locked */
917 1.8 mrg
918 1.8 mrg /* locked: both page queues and uobj */
919 1.8 mrg for ( ; (by_list && pp != NULL) ||
920 1.8 mrg (!by_list && curoff < stop) ; pp = ppnext) {
921 1.8 mrg
922 1.8 mrg if (by_list) {
923 1.8 mrg
924 1.8 mrg /*
925 1.8 mrg * range check
926 1.8 mrg */
927 1.8 mrg
928 1.30 kleink if (!all &&
929 1.30 kleink (pp->offset < start || pp->offset >= stop)) {
930 1.8 mrg ppnext = pp->listq.tqe_next;
931 1.8 mrg continue;
932 1.8 mrg }
933 1.8 mrg
934 1.8 mrg } else {
935 1.8 mrg
936 1.8 mrg /*
937 1.8 mrg * null check
938 1.8 mrg */
939 1.8 mrg
940 1.8 mrg curoff += PAGE_SIZE;
941 1.8 mrg if (pp == NULL) {
942 1.8 mrg if (curoff < stop)
943 1.8 mrg ppnext = uvm_pagelookup(uobj, curoff);
944 1.8 mrg continue;
945 1.8 mrg }
946 1.8 mrg
947 1.8 mrg }
948 1.8 mrg
949 1.8 mrg /*
950 1.8 mrg * handle case where we do not need to clean page (either
951 1.8 mrg * because we are not clean or because page is not dirty or
952 1.8 mrg * is busy):
953 1.8 mrg *
954 1.8 mrg * NOTE: we are allowed to deactivate a non-wired active
955 1.8 mrg * PG_BUSY page, but once a PG_BUSY page is on the inactive
956 1.8 mrg * queue it must stay put until it is !PG_BUSY (so as not to
957 1.8 mrg * confuse pagedaemon).
958 1.8 mrg */
959 1.8 mrg
960 1.8 mrg if ((flags & PGO_CLEANIT) == 0 || (pp->flags & PG_BUSY) != 0) {
961 1.8 mrg needs_clean = FALSE;
962 1.8 mrg if ((pp->flags & PG_BUSY) != 0 &&
963 1.8 mrg (flags & (PGO_CLEANIT|PGO_SYNCIO)) ==
964 1.8 mrg (PGO_CLEANIT|PGO_SYNCIO))
965 1.8 mrg need_iosync = TRUE;
966 1.8 mrg } else {
967 1.8 mrg /*
968 1.8 mrg * freeing: nuke all mappings so we can sync
969 1.8 mrg * PG_CLEAN bit with no race
970 1.8 mrg */
971 1.8 mrg if ((pp->flags & PG_CLEAN) != 0 &&
972 1.8 mrg (flags & PGO_FREE) != 0 &&
973 1.8 mrg (pp->pqflags & PQ_ACTIVE) != 0)
974 1.26 chs pmap_page_protect(pp, VM_PROT_NONE);
975 1.8 mrg if ((pp->flags & PG_CLEAN) != 0 &&
976 1.26 chs pmap_is_modified(pp))
977 1.8 mrg pp->flags &= ~(PG_CLEAN);
978 1.8 mrg pp->flags |= PG_CLEANCHK; /* update "hint" */
979 1.8 mrg
980 1.8 mrg needs_clean = ((pp->flags & PG_CLEAN) == 0);
981 1.8 mrg }
982 1.8 mrg
983 1.8 mrg /*
984 1.8 mrg * if we don't need a clean... load ppnext and dispose of pp
985 1.8 mrg */
986 1.8 mrg if (!needs_clean) {
987 1.8 mrg /* load ppnext */
988 1.8 mrg if (by_list)
989 1.8 mrg ppnext = pp->listq.tqe_next;
990 1.8 mrg else {
991 1.8 mrg if (curoff < stop)
992 1.8 mrg ppnext = uvm_pagelookup(uobj, curoff);
993 1.8 mrg }
994 1.8 mrg
995 1.8 mrg /* now dispose of pp */
996 1.8 mrg if (flags & PGO_DEACTIVATE) {
997 1.8 mrg if ((pp->pqflags & PQ_INACTIVE) == 0 &&
998 1.8 mrg pp->wire_count == 0) {
999 1.26 chs pmap_page_protect(pp, VM_PROT_NONE);
1000 1.8 mrg uvm_pagedeactivate(pp);
1001 1.8 mrg }
1002 1.8 mrg
1003 1.8 mrg } else if (flags & PGO_FREE) {
1004 1.8 mrg if (pp->flags & PG_BUSY) {
1005 1.8 mrg /* release busy pages */
1006 1.8 mrg pp->flags |= PG_RELEASED;
1007 1.8 mrg } else {
1008 1.26 chs pmap_page_protect(pp, VM_PROT_NONE);
1009 1.8 mrg /* removed page from object */
1010 1.8 mrg uvm_pagefree(pp);
1011 1.8 mrg }
1012 1.8 mrg }
1013 1.8 mrg /* ppnext is valid so we can continue... */
1014 1.8 mrg continue;
1015 1.8 mrg }
1016 1.8 mrg
1017 1.8 mrg /*
1018 1.8 mrg * pp points to a page in the locked object that we are
1019 1.8 mrg * working on. if it is !PG_CLEAN,!PG_BUSY and we asked
1020 1.8 mrg * for cleaning (PGO_CLEANIT). we clean it now.
1021 1.8 mrg *
1022 1.8 mrg * let uvm_pager_put attempted a clustered page out.
1023 1.8 mrg * note: locked: uobj and page queues.
1024 1.8 mrg */
1025 1.8 mrg
1026 1.8 mrg pp->flags |= PG_BUSY; /* we 'own' page now */
1027 1.8 mrg UVM_PAGE_OWN(pp, "uvn_flush");
1028 1.26 chs pmap_page_protect(pp, VM_PROT_READ);
1029 1.8 mrg pp_version = pp->version;
1030 1.1 mrg ReTry:
1031 1.8 mrg ppsp = pps;
1032 1.8 mrg npages = sizeof(pps) / sizeof(struct vm_page *);
1033 1.1 mrg
1034 1.8 mrg /* locked: page queues, uobj */
1035 1.8 mrg result = uvm_pager_put(uobj, pp, &ppsp, &npages,
1036 1.1 mrg flags | PGO_DOACTCLUST, start, stop);
1037 1.8 mrg /* unlocked: page queues, uobj */
1038 1.1 mrg
1039 1.8 mrg /*
1040 1.8 mrg * at this point nothing is locked. if we did an async I/O
1041 1.8 mrg * it is remotely possible for the async i/o to complete and
1042 1.8 mrg * the page "pp" be freed or what not before we get a chance
1043 1.8 mrg * to relock the object. in order to detect this, we have
1044 1.8 mrg * saved the version number of the page in "pp_version".
1045 1.8 mrg */
1046 1.8 mrg
1047 1.8 mrg /* relock! */
1048 1.8 mrg simple_lock(&uobj->vmobjlock);
1049 1.8 mrg uvm_lock_pageq();
1050 1.8 mrg
1051 1.8 mrg /*
1052 1.8 mrg * VM_PAGER_AGAIN: given the structure of this pager, this
1053 1.8 mrg * can only happen when we are doing async I/O and can't
1054 1.8 mrg * map the pages into kernel memory (pager_map) due to lack
1055 1.8 mrg * of vm space. if this happens we drop back to sync I/O.
1056 1.8 mrg */
1057 1.8 mrg
1058 1.8 mrg if (result == VM_PAGER_AGAIN) {
1059 1.8 mrg /*
1060 1.8 mrg * it is unlikely, but page could have been released
1061 1.8 mrg * while we had the object lock dropped. we ignore
1062 1.8 mrg * this now and retry the I/O. we will detect and
1063 1.8 mrg * handle the released page after the syncio I/O
1064 1.8 mrg * completes.
1065 1.8 mrg */
1066 1.1 mrg #ifdef DIAGNOSTIC
1067 1.8 mrg if (flags & PGO_SYNCIO)
1068 1.1 mrg panic("uvn_flush: PGO_SYNCIO return 'try again' error (impossible)");
1069 1.1 mrg #endif
1070 1.8 mrg flags |= PGO_SYNCIO;
1071 1.8 mrg goto ReTry;
1072 1.8 mrg }
1073 1.8 mrg
1074 1.8 mrg /*
1075 1.8 mrg * the cleaning operation is now done. finish up. note that
1076 1.8 mrg * on error (!OK, !PEND) uvm_pager_put drops the cluster for us.
1077 1.8 mrg * if success (OK, PEND) then uvm_pager_put returns the cluster
1078 1.8 mrg * to us in ppsp/npages.
1079 1.8 mrg */
1080 1.8 mrg
1081 1.8 mrg /*
1082 1.8 mrg * for pending async i/o if we are not deactivating/freeing
1083 1.8 mrg * we can move on to the next page.
1084 1.8 mrg */
1085 1.8 mrg
1086 1.8 mrg if (result == VM_PAGER_PEND) {
1087 1.8 mrg
1088 1.8 mrg if ((flags & (PGO_DEACTIVATE|PGO_FREE)) == 0) {
1089 1.8 mrg /*
1090 1.8 mrg * no per-page ops: refresh ppnext and continue
1091 1.8 mrg */
1092 1.8 mrg if (by_list) {
1093 1.8 mrg if (pp->version == pp_version)
1094 1.8 mrg ppnext = pp->listq.tqe_next;
1095 1.8 mrg else
1096 1.8 mrg /* reset */
1097 1.8 mrg ppnext = uobj->memq.tqh_first;
1098 1.8 mrg } else {
1099 1.8 mrg if (curoff < stop)
1100 1.8 mrg ppnext = uvm_pagelookup(uobj,
1101 1.8 mrg curoff);
1102 1.8 mrg }
1103 1.8 mrg continue;
1104 1.8 mrg }
1105 1.8 mrg
1106 1.8 mrg /* need to do anything here? */
1107 1.8 mrg }
1108 1.8 mrg
1109 1.8 mrg /*
1110 1.8 mrg * need to look at each page of the I/O operation. we defer
1111 1.8 mrg * processing "pp" until the last trip through this "for" loop
1112 1.8 mrg * so that we can load "ppnext" for the main loop after we
1113 1.8 mrg * play with the cluster pages [thus the "npages + 1" in the
1114 1.8 mrg * loop below].
1115 1.8 mrg */
1116 1.8 mrg
1117 1.8 mrg for (lcv = 0 ; lcv < npages + 1 ; lcv++) {
1118 1.8 mrg
1119 1.8 mrg /*
1120 1.8 mrg * handle ppnext for outside loop, and saving pp
1121 1.8 mrg * until the end.
1122 1.8 mrg */
1123 1.8 mrg if (lcv < npages) {
1124 1.8 mrg if (ppsp[lcv] == pp)
1125 1.8 mrg continue; /* skip pp until the end */
1126 1.8 mrg ptmp = ppsp[lcv];
1127 1.8 mrg } else {
1128 1.8 mrg ptmp = pp;
1129 1.8 mrg
1130 1.8 mrg /* set up next page for outer loop */
1131 1.8 mrg if (by_list) {
1132 1.8 mrg if (pp->version == pp_version)
1133 1.8 mrg ppnext = pp->listq.tqe_next;
1134 1.8 mrg else
1135 1.8 mrg /* reset */
1136 1.8 mrg ppnext = uobj->memq.tqh_first;
1137 1.8 mrg } else {
1138 1.8 mrg if (curoff < stop)
1139 1.8 mrg ppnext = uvm_pagelookup(uobj, curoff);
1140 1.8 mrg }
1141 1.8 mrg }
1142 1.8 mrg
1143 1.8 mrg /*
1144 1.8 mrg * verify the page didn't get moved while obj was
1145 1.8 mrg * unlocked
1146 1.8 mrg */
1147 1.8 mrg if (result == VM_PAGER_PEND && ptmp->uobject != uobj)
1148 1.8 mrg continue;
1149 1.8 mrg
1150 1.8 mrg /*
1151 1.8 mrg * unbusy the page if I/O is done. note that for
1152 1.8 mrg * pending I/O it is possible that the I/O op
1153 1.8 mrg * finished before we relocked the object (in
1154 1.8 mrg * which case the page is no longer busy).
1155 1.8 mrg */
1156 1.8 mrg
1157 1.8 mrg if (result != VM_PAGER_PEND) {
1158 1.8 mrg if (ptmp->flags & PG_WANTED)
1159 1.8 mrg /* still holding object lock */
1160 1.25 thorpej wakeup(ptmp);
1161 1.8 mrg
1162 1.8 mrg ptmp->flags &= ~(PG_WANTED|PG_BUSY);
1163 1.8 mrg UVM_PAGE_OWN(ptmp, NULL);
1164 1.8 mrg if (ptmp->flags & PG_RELEASED) {
1165 1.8 mrg
1166 1.8 mrg /* pgo_releasepg wants this */
1167 1.8 mrg uvm_unlock_pageq();
1168 1.8 mrg if (!uvn_releasepg(ptmp, NULL))
1169 1.8 mrg return (TRUE);
1170 1.8 mrg
1171 1.8 mrg uvm_lock_pageq(); /* relock */
1172 1.8 mrg continue; /* next page */
1173 1.8 mrg
1174 1.8 mrg } else {
1175 1.8 mrg ptmp->flags |= (PG_CLEAN|PG_CLEANCHK);
1176 1.8 mrg if ((flags & PGO_FREE) == 0)
1177 1.26 chs pmap_clear_modify(ptmp);
1178 1.8 mrg }
1179 1.8 mrg }
1180 1.8 mrg
1181 1.8 mrg /*
1182 1.8 mrg * dispose of page
1183 1.8 mrg */
1184 1.8 mrg
1185 1.8 mrg if (flags & PGO_DEACTIVATE) {
1186 1.8 mrg if ((pp->pqflags & PQ_INACTIVE) == 0 &&
1187 1.8 mrg pp->wire_count == 0) {
1188 1.26 chs pmap_page_protect(ptmp, VM_PROT_NONE);
1189 1.8 mrg uvm_pagedeactivate(ptmp);
1190 1.8 mrg }
1191 1.8 mrg
1192 1.8 mrg } else if (flags & PGO_FREE) {
1193 1.8 mrg if (result == VM_PAGER_PEND) {
1194 1.8 mrg if ((ptmp->flags & PG_BUSY) != 0)
1195 1.8 mrg /* signal for i/o done */
1196 1.8 mrg ptmp->flags |= PG_RELEASED;
1197 1.8 mrg } else {
1198 1.8 mrg if (result != VM_PAGER_OK) {
1199 1.8 mrg printf("uvn_flush: obj=%p, "
1200 1.30 kleink "offset=0x%llx. error "
1201 1.8 mrg "during pageout.\n",
1202 1.30 kleink pp->uobject,
1203 1.30 kleink (long long)pp->offset);
1204 1.8 mrg printf("uvn_flush: WARNING: "
1205 1.8 mrg "changes to page may be "
1206 1.8 mrg "lost!\n");
1207 1.8 mrg retval = FALSE;
1208 1.8 mrg }
1209 1.26 chs pmap_page_protect(ptmp, VM_PROT_NONE);
1210 1.8 mrg uvm_pagefree(ptmp);
1211 1.8 mrg }
1212 1.8 mrg }
1213 1.1 mrg
1214 1.8 mrg } /* end of "lcv" for loop */
1215 1.1 mrg
1216 1.8 mrg } /* end of "pp" for loop */
1217 1.1 mrg
1218 1.8 mrg /*
1219 1.8 mrg * done with pagequeues: unlock
1220 1.8 mrg */
1221 1.8 mrg uvm_unlock_pageq();
1222 1.1 mrg
1223 1.8 mrg /*
1224 1.8 mrg * now wait for all I/O if required.
1225 1.8 mrg */
1226 1.8 mrg if (need_iosync) {
1227 1.1 mrg
1228 1.8 mrg UVMHIST_LOG(maphist," <<DOING IOSYNC>>",0,0,0,0);
1229 1.8 mrg while (uvn->u_nio != 0) {
1230 1.8 mrg uvn->u_flags |= UVM_VNODE_IOSYNC;
1231 1.8 mrg UVM_UNLOCK_AND_WAIT(&uvn->u_nio, &uvn->u_obj.vmobjlock,
1232 1.8 mrg FALSE, "uvn_flush",0);
1233 1.8 mrg simple_lock(&uvn->u_obj.vmobjlock);
1234 1.8 mrg }
1235 1.8 mrg if (uvn->u_flags & UVM_VNODE_IOSYNCWANTED)
1236 1.8 mrg wakeup(&uvn->u_flags);
1237 1.8 mrg uvn->u_flags &= ~(UVM_VNODE_IOSYNC|UVM_VNODE_IOSYNCWANTED);
1238 1.1 mrg }
1239 1.1 mrg
1240 1.8 mrg /* return, with object locked! */
1241 1.8 mrg UVMHIST_LOG(maphist,"<- done (retval=0x%x)",retval,0,0,0);
1242 1.8 mrg return(retval);
1243 1.1 mrg }
1244 1.1 mrg
1245 1.1 mrg /*
1246 1.1 mrg * uvn_cluster
1247 1.1 mrg *
1248 1.1 mrg * we are about to do I/O in an object at offset. this function is called
1249 1.1 mrg * to establish a range of offsets around "offset" in which we can cluster
1250 1.1 mrg * I/O.
1251 1.1 mrg *
1252 1.1 mrg * - currently doesn't matter if obj locked or not.
1253 1.1 mrg */
1254 1.1 mrg
1255 1.8 mrg static void
1256 1.8 mrg uvn_cluster(uobj, offset, loffset, hoffset)
1257 1.8 mrg struct uvm_object *uobj;
1258 1.30 kleink voff_t offset;
1259 1.30 kleink voff_t *loffset, *hoffset; /* OUT */
1260 1.1 mrg {
1261 1.8 mrg struct uvm_vnode *uvn = (struct uvm_vnode *) uobj;
1262 1.8 mrg *loffset = offset;
1263 1.1 mrg
1264 1.8 mrg if (*loffset >= uvn->u_size)
1265 1.8 mrg panic("uvn_cluster: offset out of range");
1266 1.1 mrg
1267 1.8 mrg /*
1268 1.8 mrg * XXX: old pager claims we could use VOP_BMAP to get maxcontig value.
1269 1.8 mrg */
1270 1.8 mrg *hoffset = *loffset + MAXBSIZE;
1271 1.8 mrg if (*hoffset > round_page(uvn->u_size)) /* past end? */
1272 1.8 mrg *hoffset = round_page(uvn->u_size);
1273 1.1 mrg
1274 1.8 mrg return;
1275 1.1 mrg }
1276 1.1 mrg
1277 1.1 mrg /*
1278 1.1 mrg * uvn_put: flush page data to backing store.
1279 1.1 mrg *
1280 1.1 mrg * => prefer map unlocked (not required)
1281 1.1 mrg * => object must be locked! we will _unlock_ it before starting I/O.
1282 1.1 mrg * => flags: PGO_SYNCIO -- use sync. I/O
1283 1.1 mrg * => note: caller must set PG_CLEAN and pmap_clear_modify (if needed)
1284 1.1 mrg * => XXX: currently we use VOP_READ/VOP_WRITE which are only sync.
1285 1.1 mrg * [thus we never do async i/o! see iodone comment]
1286 1.1 mrg */
1287 1.1 mrg
1288 1.8 mrg static int
1289 1.8 mrg uvn_put(uobj, pps, npages, flags)
1290 1.8 mrg struct uvm_object *uobj;
1291 1.8 mrg struct vm_page **pps;
1292 1.8 mrg int npages, flags;
1293 1.1 mrg {
1294 1.8 mrg int retval;
1295 1.1 mrg
1296 1.8 mrg /* note: object locked */
1297 1.8 mrg retval = uvn_io((struct uvm_vnode*)uobj, pps, npages, flags, UIO_WRITE);
1298 1.8 mrg /* note: object unlocked */
1299 1.1 mrg
1300 1.8 mrg return(retval);
1301 1.1 mrg }
1302 1.1 mrg
1303 1.1 mrg
1304 1.1 mrg /*
1305 1.1 mrg * uvn_get: get pages (synchronously) from backing store
1306 1.1 mrg *
1307 1.1 mrg * => prefer map unlocked (not required)
1308 1.1 mrg * => object must be locked! we will _unlock_ it before starting any I/O.
1309 1.1 mrg * => flags: PGO_ALLPAGES: get all of the pages
1310 1.1 mrg * PGO_LOCKED: fault data structures are locked
1311 1.1 mrg * => NOTE: offset is the offset of pps[0], _NOT_ pps[centeridx]
1312 1.1 mrg * => NOTE: caller must check for released pages!!
1313 1.1 mrg */
1314 1.1 mrg
1315 1.8 mrg static int
1316 1.8 mrg uvn_get(uobj, offset, pps, npagesp, centeridx, access_type, advice, flags)
1317 1.8 mrg struct uvm_object *uobj;
1318 1.30 kleink voff_t offset;
1319 1.8 mrg struct vm_page **pps; /* IN/OUT */
1320 1.8 mrg int *npagesp; /* IN (OUT if PGO_LOCKED) */
1321 1.8 mrg int centeridx, advice, flags;
1322 1.8 mrg vm_prot_t access_type;
1323 1.8 mrg {
1324 1.30 kleink voff_t current_offset;
1325 1.8 mrg struct vm_page *ptmp;
1326 1.8 mrg int lcv, result, gotpages;
1327 1.8 mrg boolean_t done;
1328 1.8 mrg UVMHIST_FUNC("uvn_get"); UVMHIST_CALLED(maphist);
1329 1.8 mrg UVMHIST_LOG(maphist, "flags=%d", flags,0,0,0);
1330 1.8 mrg
1331 1.8 mrg /*
1332 1.8 mrg * step 1: handled the case where fault data structures are locked.
1333 1.8 mrg */
1334 1.8 mrg
1335 1.8 mrg if (flags & PGO_LOCKED) {
1336 1.1 mrg
1337 1.8 mrg /*
1338 1.8 mrg * gotpages is the current number of pages we've gotten (which
1339 1.8 mrg * we pass back up to caller via *npagesp.
1340 1.8 mrg */
1341 1.8 mrg
1342 1.8 mrg gotpages = 0;
1343 1.8 mrg
1344 1.8 mrg /*
1345 1.8 mrg * step 1a: get pages that are already resident. only do this
1346 1.8 mrg * if the data structures are locked (i.e. the first time
1347 1.8 mrg * through).
1348 1.8 mrg */
1349 1.8 mrg
1350 1.8 mrg done = TRUE; /* be optimistic */
1351 1.8 mrg
1352 1.8 mrg for (lcv = 0, current_offset = offset ; lcv < *npagesp ;
1353 1.8 mrg lcv++, current_offset += PAGE_SIZE) {
1354 1.8 mrg
1355 1.8 mrg /* do we care about this page? if not, skip it */
1356 1.8 mrg if (pps[lcv] == PGO_DONTCARE)
1357 1.8 mrg continue;
1358 1.8 mrg
1359 1.8 mrg /* lookup page */
1360 1.8 mrg ptmp = uvm_pagelookup(uobj, current_offset);
1361 1.8 mrg
1362 1.8 mrg /* to be useful must get a non-busy, non-released pg */
1363 1.8 mrg if (ptmp == NULL ||
1364 1.8 mrg (ptmp->flags & (PG_BUSY|PG_RELEASED)) != 0) {
1365 1.8 mrg if (lcv == centeridx || (flags & PGO_ALLPAGES)
1366 1.8 mrg != 0)
1367 1.8 mrg done = FALSE; /* need to do a wait or I/O! */
1368 1.8 mrg continue;
1369 1.8 mrg }
1370 1.8 mrg
1371 1.8 mrg /*
1372 1.8 mrg * useful page: busy/lock it and plug it in our
1373 1.8 mrg * result array
1374 1.8 mrg */
1375 1.8 mrg ptmp->flags |= PG_BUSY; /* loan up to caller */
1376 1.8 mrg UVM_PAGE_OWN(ptmp, "uvn_get1");
1377 1.8 mrg pps[lcv] = ptmp;
1378 1.8 mrg gotpages++;
1379 1.8 mrg
1380 1.8 mrg } /* "for" lcv loop */
1381 1.8 mrg
1382 1.8 mrg /*
1383 1.8 mrg * XXX: given the "advice", should we consider async read-ahead?
1384 1.8 mrg * XXX: fault current does deactive of pages behind us. is
1385 1.8 mrg * this good (other callers might now).
1386 1.8 mrg */
1387 1.8 mrg /*
1388 1.8 mrg * XXX: read-ahead currently handled by buffer cache (bread)
1389 1.8 mrg * level.
1390 1.8 mrg * XXX: no async i/o available.
1391 1.8 mrg * XXX: so we don't do anything now.
1392 1.8 mrg */
1393 1.8 mrg
1394 1.8 mrg /*
1395 1.8 mrg * step 1c: now we've either done everything needed or we to
1396 1.8 mrg * unlock and do some waiting or I/O.
1397 1.8 mrg */
1398 1.8 mrg
1399 1.8 mrg *npagesp = gotpages; /* let caller know */
1400 1.8 mrg if (done)
1401 1.8 mrg return(VM_PAGER_OK); /* bingo! */
1402 1.8 mrg else
1403 1.8 mrg /* EEK! Need to unlock and I/O */
1404 1.8 mrg return(VM_PAGER_UNLOCK);
1405 1.8 mrg }
1406 1.8 mrg
1407 1.8 mrg /*
1408 1.8 mrg * step 2: get non-resident or busy pages.
1409 1.8 mrg * object is locked. data structures are unlocked.
1410 1.8 mrg *
1411 1.8 mrg * XXX: because we can't do async I/O at this level we get things
1412 1.8 mrg * page at a time (otherwise we'd chunk). the VOP_READ() will do
1413 1.8 mrg * async-read-ahead for us at a lower level.
1414 1.8 mrg */
1415 1.1 mrg
1416 1.8 mrg for (lcv = 0, current_offset = offset ;
1417 1.8 mrg lcv < *npagesp ; lcv++, current_offset += PAGE_SIZE) {
1418 1.8 mrg
1419 1.8 mrg /* skip over pages we've already gotten or don't want */
1420 1.8 mrg /* skip over pages we don't _have_ to get */
1421 1.8 mrg if (pps[lcv] != NULL || (lcv != centeridx &&
1422 1.8 mrg (flags & PGO_ALLPAGES) == 0))
1423 1.8 mrg continue;
1424 1.8 mrg
1425 1.8 mrg /*
1426 1.8 mrg * we have yet to locate the current page (pps[lcv]). we first
1427 1.8 mrg * look for a page that is already at the current offset. if
1428 1.8 mrg * we fine a page, we check to see if it is busy or released.
1429 1.8 mrg * if that is the case, then we sleep on the page until it is
1430 1.8 mrg * no longer busy or released and repeat the lookup. if the
1431 1.8 mrg * page we found is neither busy nor released, then we busy it
1432 1.8 mrg * (so we own it) and plug it into pps[lcv]. this breaks the
1433 1.8 mrg * following while loop and indicates we are ready to move on
1434 1.8 mrg * to the next page in the "lcv" loop above.
1435 1.8 mrg *
1436 1.8 mrg * if we exit the while loop with pps[lcv] still set to NULL,
1437 1.8 mrg * then it means that we allocated a new busy/fake/clean page
1438 1.8 mrg * ptmp in the object and we need to do I/O to fill in the data.
1439 1.8 mrg */
1440 1.8 mrg
1441 1.8 mrg while (pps[lcv] == NULL) { /* top of "pps" while loop */
1442 1.8 mrg
1443 1.8 mrg /* look for a current page */
1444 1.8 mrg ptmp = uvm_pagelookup(uobj, current_offset);
1445 1.8 mrg
1446 1.8 mrg /* nope? allocate one now (if we can) */
1447 1.8 mrg if (ptmp == NULL) {
1448 1.8 mrg
1449 1.8 mrg ptmp = uvm_pagealloc(uobj, current_offset,
1450 1.23 chs NULL, 0);
1451 1.8 mrg
1452 1.8 mrg /* out of RAM? */
1453 1.8 mrg if (ptmp == NULL) {
1454 1.8 mrg simple_unlock(&uobj->vmobjlock);
1455 1.8 mrg uvm_wait("uvn_getpage");
1456 1.8 mrg simple_lock(&uobj->vmobjlock);
1457 1.8 mrg
1458 1.8 mrg /* goto top of pps while loop */
1459 1.8 mrg continue;
1460 1.8 mrg }
1461 1.8 mrg
1462 1.8 mrg /*
1463 1.8 mrg * got new page ready for I/O. break pps
1464 1.8 mrg * while loop. pps[lcv] is still NULL.
1465 1.8 mrg */
1466 1.8 mrg break;
1467 1.8 mrg }
1468 1.8 mrg
1469 1.8 mrg /* page is there, see if we need to wait on it */
1470 1.8 mrg if ((ptmp->flags & (PG_BUSY|PG_RELEASED)) != 0) {
1471 1.8 mrg ptmp->flags |= PG_WANTED;
1472 1.8 mrg UVM_UNLOCK_AND_WAIT(ptmp,
1473 1.24 thorpej &uobj->vmobjlock, FALSE, "uvn_get",0);
1474 1.8 mrg simple_lock(&uobj->vmobjlock);
1475 1.8 mrg continue; /* goto top of pps while loop */
1476 1.8 mrg }
1477 1.8 mrg
1478 1.8 mrg /*
1479 1.8 mrg * if we get here then the page has become resident
1480 1.8 mrg * and unbusy between steps 1 and 2. we busy it
1481 1.8 mrg * now (so we own it) and set pps[lcv] (so that we
1482 1.8 mrg * exit the while loop).
1483 1.8 mrg */
1484 1.8 mrg ptmp->flags |= PG_BUSY;
1485 1.8 mrg UVM_PAGE_OWN(ptmp, "uvn_get2");
1486 1.8 mrg pps[lcv] = ptmp;
1487 1.8 mrg }
1488 1.8 mrg
1489 1.8 mrg /*
1490 1.8 mrg * if we own the a valid page at the correct offset, pps[lcv]
1491 1.8 mrg * will point to it. nothing more to do except go to the
1492 1.8 mrg * next page.
1493 1.8 mrg */
1494 1.8 mrg
1495 1.8 mrg if (pps[lcv])
1496 1.8 mrg continue; /* next lcv */
1497 1.8 mrg
1498 1.8 mrg /*
1499 1.8 mrg * we have a "fake/busy/clean" page that we just allocated. do
1500 1.8 mrg * I/O to fill it with valid data. note that object must be
1501 1.8 mrg * locked going into uvn_io, but will be unlocked afterwards.
1502 1.8 mrg */
1503 1.8 mrg
1504 1.8 mrg result = uvn_io((struct uvm_vnode *) uobj, &ptmp, 1,
1505 1.8 mrg PGO_SYNCIO, UIO_READ);
1506 1.8 mrg
1507 1.8 mrg /*
1508 1.8 mrg * I/O done. object is unlocked (by uvn_io). because we used
1509 1.8 mrg * syncio the result can not be PEND or AGAIN. we must relock
1510 1.8 mrg * and check for errors.
1511 1.8 mrg */
1512 1.8 mrg
1513 1.8 mrg /* lock object. check for errors. */
1514 1.8 mrg simple_lock(&uobj->vmobjlock);
1515 1.8 mrg if (result != VM_PAGER_OK) {
1516 1.8 mrg if (ptmp->flags & PG_WANTED)
1517 1.8 mrg /* object lock still held */
1518 1.25 thorpej wakeup(ptmp);
1519 1.8 mrg
1520 1.8 mrg ptmp->flags &= ~(PG_WANTED|PG_BUSY);
1521 1.8 mrg UVM_PAGE_OWN(ptmp, NULL);
1522 1.8 mrg uvm_lock_pageq();
1523 1.8 mrg uvm_pagefree(ptmp);
1524 1.8 mrg uvm_unlock_pageq();
1525 1.8 mrg simple_unlock(&uobj->vmobjlock);
1526 1.8 mrg return(result);
1527 1.8 mrg }
1528 1.8 mrg
1529 1.8 mrg /*
1530 1.8 mrg * we got the page! clear the fake flag (indicates valid
1531 1.8 mrg * data now in page) and plug into our result array. note
1532 1.8 mrg * that page is still busy.
1533 1.8 mrg *
1534 1.8 mrg * it is the callers job to:
1535 1.8 mrg * => check if the page is released
1536 1.8 mrg * => unbusy the page
1537 1.8 mrg * => activate the page
1538 1.8 mrg */
1539 1.8 mrg
1540 1.8 mrg ptmp->flags &= ~PG_FAKE; /* data is valid ... */
1541 1.26 chs pmap_clear_modify(ptmp); /* ... and clean */
1542 1.8 mrg pps[lcv] = ptmp;
1543 1.8 mrg
1544 1.8 mrg } /* lcv loop */
1545 1.8 mrg
1546 1.8 mrg /*
1547 1.8 mrg * finally, unlock object and return.
1548 1.8 mrg */
1549 1.1 mrg
1550 1.8 mrg simple_unlock(&uobj->vmobjlock);
1551 1.8 mrg return (VM_PAGER_OK);
1552 1.1 mrg }
1553 1.1 mrg
1554 1.1 mrg /*
1555 1.1 mrg * uvn_asyncget: start async I/O to bring pages into ram
1556 1.1 mrg *
1557 1.1 mrg * => caller must lock object(???XXX: see if this is best)
1558 1.1 mrg * => could be called from uvn_get or a madvise() fault-ahead.
1559 1.1 mrg * => if it fails, it doesn't matter.
1560 1.1 mrg */
1561 1.1 mrg
1562 1.8 mrg static int
1563 1.8 mrg uvn_asyncget(uobj, offset, npages)
1564 1.8 mrg struct uvm_object *uobj;
1565 1.30 kleink voff_t offset;
1566 1.8 mrg int npages;
1567 1.8 mrg {
1568 1.1 mrg
1569 1.8 mrg /*
1570 1.8 mrg * XXXCDC: we can't do async I/O yet
1571 1.8 mrg */
1572 1.8 mrg printf("uvn_asyncget called\n");
1573 1.8 mrg return (KERN_SUCCESS);
1574 1.1 mrg }
1575 1.1 mrg
1576 1.1 mrg /*
1577 1.1 mrg * uvn_io: do I/O to a vnode
1578 1.1 mrg *
1579 1.1 mrg * => prefer map unlocked (not required)
1580 1.1 mrg * => object must be locked! we will _unlock_ it before starting I/O.
1581 1.1 mrg * => flags: PGO_SYNCIO -- use sync. I/O
1582 1.1 mrg * => XXX: currently we use VOP_READ/VOP_WRITE which are only sync.
1583 1.1 mrg * [thus we never do async i/o! see iodone comment]
1584 1.1 mrg */
1585 1.1 mrg
1586 1.8 mrg static int
1587 1.8 mrg uvn_io(uvn, pps, npages, flags, rw)
1588 1.8 mrg struct uvm_vnode *uvn;
1589 1.8 mrg vm_page_t *pps;
1590 1.8 mrg int npages, flags, rw;
1591 1.8 mrg {
1592 1.8 mrg struct vnode *vn;
1593 1.8 mrg struct uio uio;
1594 1.8 mrg struct iovec iov;
1595 1.30 kleink vaddr_t kva;
1596 1.30 kleink off_t file_offset;
1597 1.33 thorpej int waitf, result, mapinflags;
1598 1.30 kleink size_t got, wanted;
1599 1.8 mrg UVMHIST_FUNC("uvn_io"); UVMHIST_CALLED(maphist);
1600 1.1 mrg
1601 1.8 mrg UVMHIST_LOG(maphist, "rw=%d", rw,0,0,0);
1602 1.8 mrg
1603 1.8 mrg /*
1604 1.8 mrg * init values
1605 1.8 mrg */
1606 1.1 mrg
1607 1.8 mrg waitf = (flags & PGO_SYNCIO) ? M_WAITOK : M_NOWAIT;
1608 1.8 mrg vn = (struct vnode *) uvn;
1609 1.8 mrg file_offset = pps[0]->offset;
1610 1.8 mrg
1611 1.8 mrg /*
1612 1.8 mrg * check for sync'ing I/O.
1613 1.8 mrg */
1614 1.8 mrg
1615 1.8 mrg while (uvn->u_flags & UVM_VNODE_IOSYNC) {
1616 1.8 mrg if (waitf == M_NOWAIT) {
1617 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
1618 1.8 mrg UVMHIST_LOG(maphist,"<- try again (iosync)",0,0,0,0);
1619 1.8 mrg return(VM_PAGER_AGAIN);
1620 1.8 mrg }
1621 1.8 mrg uvn->u_flags |= UVM_VNODE_IOSYNCWANTED;
1622 1.8 mrg UVM_UNLOCK_AND_WAIT(&uvn->u_flags, &uvn->u_obj.vmobjlock,
1623 1.1 mrg FALSE, "uvn_iosync",0);
1624 1.8 mrg simple_lock(&uvn->u_obj.vmobjlock);
1625 1.8 mrg }
1626 1.1 mrg
1627 1.8 mrg /*
1628 1.8 mrg * check size
1629 1.8 mrg */
1630 1.8 mrg
1631 1.8 mrg if (file_offset >= uvn->u_size) {
1632 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
1633 1.8 mrg UVMHIST_LOG(maphist,"<- BAD (size check)",0,0,0,0);
1634 1.8 mrg return(VM_PAGER_BAD);
1635 1.8 mrg }
1636 1.8 mrg
1637 1.8 mrg /*
1638 1.8 mrg * first try and map the pages in (without waiting)
1639 1.8 mrg */
1640 1.8 mrg
1641 1.33 thorpej mapinflags = (rw == UIO_READ) ?
1642 1.33 thorpej UVMPAGER_MAPIN_READ : UVMPAGER_MAPIN_WRITE;
1643 1.33 thorpej
1644 1.33 thorpej kva = uvm_pagermapin(pps, npages, NULL, mapinflags);
1645 1.33 thorpej if (kva == 0 && waitf == M_NOWAIT) {
1646 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
1647 1.8 mrg UVMHIST_LOG(maphist,"<- mapin failed (try again)",0,0,0,0);
1648 1.8 mrg return(VM_PAGER_AGAIN);
1649 1.8 mrg }
1650 1.8 mrg
1651 1.8 mrg /*
1652 1.8 mrg * ok, now bump u_nio up. at this point we are done with uvn
1653 1.8 mrg * and can unlock it. if we still don't have a kva, try again
1654 1.8 mrg * (this time with sleep ok).
1655 1.8 mrg */
1656 1.8 mrg
1657 1.8 mrg uvn->u_nio++; /* we have an I/O in progress! */
1658 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
1659 1.8 mrg /* NOTE: object now unlocked */
1660 1.33 thorpej if (kva == 0)
1661 1.33 thorpej kva = uvm_pagermapin(pps, npages, NULL,
1662 1.33 thorpej mapinflags | UVMPAGER_MAPIN_WAITOK);
1663 1.8 mrg
1664 1.8 mrg /*
1665 1.8 mrg * ok, mapped in. our pages are PG_BUSY so they are not going to
1666 1.8 mrg * get touched (so we can look at "offset" without having to lock
1667 1.8 mrg * the object). set up for I/O.
1668 1.8 mrg */
1669 1.8 mrg
1670 1.8 mrg /*
1671 1.8 mrg * fill out uio/iov
1672 1.8 mrg */
1673 1.8 mrg
1674 1.8 mrg iov.iov_base = (caddr_t) kva;
1675 1.16 chs wanted = npages << PAGE_SHIFT;
1676 1.8 mrg if (file_offset + wanted > uvn->u_size)
1677 1.8 mrg wanted = uvn->u_size - file_offset; /* XXX: needed? */
1678 1.8 mrg iov.iov_len = wanted;
1679 1.8 mrg uio.uio_iov = &iov;
1680 1.8 mrg uio.uio_iovcnt = 1;
1681 1.8 mrg uio.uio_offset = file_offset;
1682 1.8 mrg uio.uio_segflg = UIO_SYSSPACE;
1683 1.8 mrg uio.uio_rw = rw;
1684 1.8 mrg uio.uio_resid = wanted;
1685 1.8 mrg uio.uio_procp = NULL;
1686 1.1 mrg
1687 1.8 mrg /*
1688 1.8 mrg * do the I/O! (XXX: curproc?)
1689 1.8 mrg */
1690 1.8 mrg
1691 1.8 mrg UVMHIST_LOG(maphist, "calling VOP",0,0,0,0);
1692 1.8 mrg
1693 1.21 sommerfe /*
1694 1.21 sommerfe * This process may already have this vnode locked, if we faulted in
1695 1.21 sommerfe * copyin() or copyout() on a region backed by this vnode
1696 1.21 sommerfe * while doing I/O to the vnode. If this is the case, don't
1697 1.21 sommerfe * panic.. instead, return the error to the user.
1698 1.21 sommerfe *
1699 1.21 sommerfe * XXX this is a stopgap to prevent a panic.
1700 1.21 sommerfe * Ideally, this kind of operation *should* work.
1701 1.21 sommerfe */
1702 1.21 sommerfe result = 0;
1703 1.8 mrg if ((uvn->u_flags & UVM_VNODE_VNISLOCKED) == 0)
1704 1.21 sommerfe result = vn_lock(vn, LK_EXCLUSIVE | LK_RETRY | LK_RECURSEFAIL);
1705 1.21 sommerfe
1706 1.21 sommerfe if (result == 0) {
1707 1.21 sommerfe /* NOTE: vnode now locked! */
1708 1.8 mrg
1709 1.21 sommerfe if (rw == UIO_READ)
1710 1.21 sommerfe result = VOP_READ(vn, &uio, 0, curproc->p_ucred);
1711 1.21 sommerfe else
1712 1.21 sommerfe result = VOP_WRITE(vn, &uio, 0, curproc->p_ucred);
1713 1.8 mrg
1714 1.21 sommerfe if ((uvn->u_flags & UVM_VNODE_VNISLOCKED) == 0)
1715 1.21 sommerfe VOP_UNLOCK(vn, 0);
1716 1.21 sommerfe }
1717 1.21 sommerfe
1718 1.8 mrg /* NOTE: vnode now unlocked (unless vnislocked) */
1719 1.8 mrg
1720 1.8 mrg UVMHIST_LOG(maphist, "done calling VOP",0,0,0,0);
1721 1.8 mrg
1722 1.8 mrg /*
1723 1.8 mrg * result == unix style errno (0 == OK!)
1724 1.8 mrg *
1725 1.8 mrg * zero out rest of buffer (if needed)
1726 1.8 mrg */
1727 1.8 mrg
1728 1.8 mrg if (result == 0) {
1729 1.8 mrg got = wanted - uio.uio_resid;
1730 1.8 mrg
1731 1.8 mrg if (wanted && got == 0) {
1732 1.8 mrg result = EIO; /* XXX: error? */
1733 1.8 mrg } else if (got < PAGE_SIZE * npages && rw == UIO_READ) {
1734 1.16 chs memset((void *) (kva + got), 0,
1735 1.16 chs (npages << PAGE_SHIFT) - got);
1736 1.8 mrg }
1737 1.8 mrg }
1738 1.8 mrg
1739 1.8 mrg /*
1740 1.8 mrg * now remove pager mapping
1741 1.8 mrg */
1742 1.8 mrg uvm_pagermapout(kva, npages);
1743 1.8 mrg
1744 1.8 mrg /*
1745 1.8 mrg * now clean up the object (i.e. drop I/O count)
1746 1.8 mrg */
1747 1.8 mrg
1748 1.8 mrg simple_lock(&uvn->u_obj.vmobjlock);
1749 1.8 mrg /* NOTE: object now locked! */
1750 1.8 mrg
1751 1.8 mrg uvn->u_nio--; /* I/O DONE! */
1752 1.8 mrg if ((uvn->u_flags & UVM_VNODE_IOSYNC) != 0 && uvn->u_nio == 0) {
1753 1.8 mrg wakeup(&uvn->u_nio);
1754 1.8 mrg }
1755 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
1756 1.8 mrg /* NOTE: object now unlocked! */
1757 1.8 mrg
1758 1.8 mrg /*
1759 1.8 mrg * done!
1760 1.8 mrg */
1761 1.8 mrg
1762 1.8 mrg UVMHIST_LOG(maphist, "<- done (result %d)", result,0,0,0);
1763 1.8 mrg if (result == 0)
1764 1.8 mrg return(VM_PAGER_OK);
1765 1.8 mrg else
1766 1.8 mrg return(VM_PAGER_ERROR);
1767 1.1 mrg }
1768 1.1 mrg
1769 1.1 mrg /*
1770 1.1 mrg * uvm_vnp_uncache: disable "persisting" in a vnode... when last reference
1771 1.1 mrg * is gone we will kill the object (flushing dirty pages back to the vnode
1772 1.1 mrg * if needed).
1773 1.1 mrg *
1774 1.1 mrg * => returns TRUE if there was no uvm_object attached or if there was
1775 1.1 mrg * one and we killed it [i.e. if there is no active uvn]
1776 1.1 mrg * => called with the vnode VOP_LOCK'd [we will unlock it for I/O, if
1777 1.1 mrg * needed]
1778 1.1 mrg *
1779 1.1 mrg * => XXX: given that we now kill uvn's when a vnode is recycled (without
1780 1.1 mrg * having to hold a reference on the vnode) and given a working
1781 1.1 mrg * uvm_vnp_sync(), how does that effect the need for this function?
1782 1.1 mrg * [XXXCDC: seems like it can die?]
1783 1.1 mrg *
1784 1.1 mrg * => XXX: this function should DIE once we merge the VM and buffer
1785 1.1 mrg * cache.
1786 1.1 mrg *
1787 1.1 mrg * research shows that this is called in the following places:
1788 1.1 mrg * ext2fs_truncate, ffs_truncate, detrunc[msdosfs]: called when vnode
1789 1.1 mrg * changes sizes
1790 1.1 mrg * ext2fs_write, WRITE [ufs_readwrite], msdosfs_write: called when we
1791 1.1 mrg * are written to
1792 1.1 mrg * ex2fs_chmod, ufs_chmod: called if VTEXT vnode and the sticky bit
1793 1.1 mrg * is off
1794 1.1 mrg * ffs_realloccg: when we can't extend the current block and have
1795 1.1 mrg * to allocate a new one we call this [XXX: why?]
1796 1.1 mrg * nfsrv_rename, rename_files: called when the target filename is there
1797 1.1 mrg * and we want to remove it
1798 1.1 mrg * nfsrv_remove, sys_unlink: called on file we are removing
1799 1.1 mrg * nfsrv_access: if VTEXT and we want WRITE access and we don't uncache
1800 1.1 mrg * then return "text busy"
1801 1.1 mrg * nfs_open: seems to uncache any file opened with nfs
1802 1.1 mrg * vn_writechk: if VTEXT vnode and can't uncache return "text busy"
1803 1.1 mrg */
1804 1.1 mrg
1805 1.8 mrg boolean_t
1806 1.8 mrg uvm_vnp_uncache(vp)
1807 1.8 mrg struct vnode *vp;
1808 1.8 mrg {
1809 1.8 mrg struct uvm_vnode *uvn = &vp->v_uvm;
1810 1.1 mrg
1811 1.8 mrg /*
1812 1.8 mrg * lock uvn part of the vnode and check to see if we need to do anything
1813 1.8 mrg */
1814 1.1 mrg
1815 1.8 mrg simple_lock(&uvn->u_obj.vmobjlock);
1816 1.8 mrg if ((uvn->u_flags & UVM_VNODE_VALID) == 0 ||
1817 1.8 mrg (uvn->u_flags & UVM_VNODE_BLOCKED) != 0) {
1818 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
1819 1.8 mrg return(TRUE);
1820 1.8 mrg }
1821 1.8 mrg
1822 1.8 mrg /*
1823 1.8 mrg * we have a valid, non-blocked uvn. clear persist flag.
1824 1.8 mrg * if uvn is currently active we can return now.
1825 1.8 mrg */
1826 1.8 mrg
1827 1.8 mrg uvn->u_flags &= ~UVM_VNODE_CANPERSIST;
1828 1.8 mrg if (uvn->u_obj.uo_refs) {
1829 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
1830 1.8 mrg return(FALSE);
1831 1.8 mrg }
1832 1.8 mrg
1833 1.8 mrg /*
1834 1.8 mrg * uvn is currently persisting! we have to gain a reference to
1835 1.8 mrg * it so that we can call uvn_detach to kill the uvn.
1836 1.8 mrg */
1837 1.1 mrg
1838 1.8 mrg VREF(vp); /* seems ok, even with VOP_LOCK */
1839 1.8 mrg uvn->u_obj.uo_refs++; /* value is now 1 */
1840 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
1841 1.1 mrg
1842 1.1 mrg
1843 1.1 mrg #ifdef DEBUG
1844 1.8 mrg /*
1845 1.8 mrg * carry over sanity check from old vnode pager: the vnode should
1846 1.8 mrg * be VOP_LOCK'd, and we confirm it here.
1847 1.8 mrg */
1848 1.8 mrg if (!VOP_ISLOCKED(vp)) {
1849 1.8 mrg boolean_t is_ok_anyway = FALSE;
1850 1.1 mrg #ifdef NFS
1851 1.8 mrg extern int (**nfsv2_vnodeop_p) __P((void *));
1852 1.8 mrg extern int (**spec_nfsv2nodeop_p) __P((void *));
1853 1.8 mrg extern int (**fifo_nfsv2nodeop_p) __P((void *));
1854 1.1 mrg
1855 1.8 mrg /* vnode is NOT VOP_LOCKed: some vnode types _never_ lock */
1856 1.8 mrg if (vp->v_op == nfsv2_vnodeop_p ||
1857 1.8 mrg vp->v_op == spec_nfsv2nodeop_p) {
1858 1.8 mrg is_ok_anyway = TRUE;
1859 1.8 mrg }
1860 1.8 mrg if (vp->v_op == fifo_nfsv2nodeop_p) {
1861 1.8 mrg is_ok_anyway = TRUE;
1862 1.8 mrg }
1863 1.1 mrg #endif /* NFS */
1864 1.8 mrg if (!is_ok_anyway)
1865 1.8 mrg panic("uvm_vnp_uncache: vnode not locked!");
1866 1.8 mrg }
1867 1.1 mrg #endif /* DEBUG */
1868 1.1 mrg
1869 1.8 mrg /*
1870 1.8 mrg * now drop our reference to the vnode. if we have the sole
1871 1.8 mrg * reference to the vnode then this will cause it to die [as we
1872 1.8 mrg * just cleared the persist flag]. we have to unlock the vnode
1873 1.8 mrg * while we are doing this as it may trigger I/O.
1874 1.8 mrg *
1875 1.8 mrg * XXX: it might be possible for uvn to get reclaimed while we are
1876 1.8 mrg * unlocked causing us to return TRUE when we should not. we ignore
1877 1.8 mrg * this as a false-positive return value doesn't hurt us.
1878 1.8 mrg */
1879 1.8 mrg VOP_UNLOCK(vp, 0);
1880 1.8 mrg uvn_detach(&uvn->u_obj);
1881 1.8 mrg vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
1882 1.8 mrg
1883 1.8 mrg /*
1884 1.8 mrg * and return...
1885 1.8 mrg */
1886 1.8 mrg
1887 1.8 mrg return(TRUE);
1888 1.1 mrg }
1889 1.1 mrg
1890 1.1 mrg /*
1891 1.1 mrg * uvm_vnp_setsize: grow or shrink a vnode uvn
1892 1.1 mrg *
1893 1.1 mrg * grow => just update size value
1894 1.1 mrg * shrink => toss un-needed pages
1895 1.1 mrg *
1896 1.1 mrg * => we assume that the caller has a reference of some sort to the
1897 1.1 mrg * vnode in question so that it will not be yanked out from under
1898 1.1 mrg * us.
1899 1.1 mrg *
1900 1.1 mrg * called from:
1901 1.1 mrg * => truncate fns (ext2fs_truncate, ffs_truncate, detrunc[msdos])
1902 1.1 mrg * => "write" fns (ext2fs_write, WRITE [ufs/ufs], msdosfs_write, nfs_write)
1903 1.1 mrg * => ffs_balloc [XXX: why? doesn't WRITE handle?]
1904 1.1 mrg * => NFS: nfs_loadattrcache, nfs_getattrcache, nfs_setattr
1905 1.1 mrg * => union fs: union_newsize
1906 1.1 mrg */
1907 1.1 mrg
1908 1.8 mrg void
1909 1.8 mrg uvm_vnp_setsize(vp, newsize)
1910 1.8 mrg struct vnode *vp;
1911 1.30 kleink voff_t newsize;
1912 1.8 mrg {
1913 1.8 mrg struct uvm_vnode *uvn = &vp->v_uvm;
1914 1.1 mrg
1915 1.8 mrg /*
1916 1.8 mrg * lock uvn and check for valid object, and if valid: do it!
1917 1.8 mrg */
1918 1.8 mrg simple_lock(&uvn->u_obj.vmobjlock);
1919 1.8 mrg if (uvn->u_flags & UVM_VNODE_VALID) {
1920 1.1 mrg
1921 1.8 mrg /*
1922 1.8 mrg * now check if the size has changed: if we shrink we had better
1923 1.8 mrg * toss some pages...
1924 1.8 mrg */
1925 1.8 mrg
1926 1.8 mrg if (uvn->u_size > newsize) {
1927 1.30 kleink (void)uvn_flush(&uvn->u_obj, newsize,
1928 1.8 mrg uvn->u_size, PGO_FREE);
1929 1.8 mrg }
1930 1.30 kleink uvn->u_size = newsize;
1931 1.8 mrg }
1932 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
1933 1.1 mrg
1934 1.8 mrg /*
1935 1.8 mrg * done
1936 1.8 mrg */
1937 1.8 mrg return;
1938 1.1 mrg }
1939 1.1 mrg
1940 1.1 mrg /*
1941 1.1 mrg * uvm_vnp_sync: flush all dirty VM pages back to their backing vnodes.
1942 1.1 mrg *
1943 1.1 mrg * => called from sys_sync with no VM structures locked
1944 1.1 mrg * => only one process can do a sync at a time (because the uvn
1945 1.1 mrg * structure only has one queue for sync'ing). we ensure this
1946 1.1 mrg * by holding the uvn_sync_lock while the sync is in progress.
1947 1.1 mrg * other processes attempting a sync will sleep on this lock
1948 1.1 mrg * until we are done.
1949 1.1 mrg */
1950 1.1 mrg
1951 1.8 mrg void
1952 1.8 mrg uvm_vnp_sync(mp)
1953 1.8 mrg struct mount *mp;
1954 1.8 mrg {
1955 1.8 mrg struct uvm_vnode *uvn;
1956 1.8 mrg struct vnode *vp;
1957 1.8 mrg boolean_t got_lock;
1958 1.8 mrg
1959 1.8 mrg /*
1960 1.8 mrg * step 1: ensure we are only ones using the uvn_sync_q by locking
1961 1.8 mrg * our lock...
1962 1.8 mrg */
1963 1.8 mrg lockmgr(&uvn_sync_lock, LK_EXCLUSIVE, (void *)0);
1964 1.8 mrg
1965 1.8 mrg /*
1966 1.8 mrg * step 2: build up a simpleq of uvns of interest based on the
1967 1.8 mrg * write list. we gain a reference to uvns of interest. must
1968 1.8 mrg * be careful about locking uvn's since we will be holding uvn_wl_lock
1969 1.8 mrg * in the body of the loop.
1970 1.8 mrg */
1971 1.8 mrg SIMPLEQ_INIT(&uvn_sync_q);
1972 1.8 mrg simple_lock(&uvn_wl_lock);
1973 1.8 mrg for (uvn = uvn_wlist.lh_first ; uvn != NULL ;
1974 1.8 mrg uvn = uvn->u_wlist.le_next) {
1975 1.1 mrg
1976 1.8 mrg vp = (struct vnode *) uvn;
1977 1.8 mrg if (mp && vp->v_mount != mp)
1978 1.8 mrg continue;
1979 1.8 mrg
1980 1.8 mrg /* attempt to gain reference */
1981 1.8 mrg while ((got_lock = simple_lock_try(&uvn->u_obj.vmobjlock)) ==
1982 1.9 chuck FALSE &&
1983 1.9 chuck (uvn->u_flags & UVM_VNODE_BLOCKED) == 0)
1984 1.8 mrg /* spin */ ;
1985 1.8 mrg
1986 1.8 mrg /*
1987 1.9 chuck * we will exit the loop if either if the following are true:
1988 1.9 chuck * - we got the lock [always true if NCPU == 1]
1989 1.9 chuck * - we failed to get the lock but noticed the vnode was
1990 1.9 chuck * "blocked" -- in this case the vnode must be a dying
1991 1.9 chuck * vnode, and since dying vnodes are in the process of
1992 1.9 chuck * being flushed out, we can safely skip this one
1993 1.9 chuck *
1994 1.9 chuck * we want to skip over the vnode if we did not get the lock,
1995 1.9 chuck * or if the vnode is already dying (due to the above logic).
1996 1.8 mrg *
1997 1.8 mrg * note that uvn must already be valid because we found it on
1998 1.8 mrg * the wlist (this also means it can't be ALOCK'd).
1999 1.8 mrg */
2000 1.9 chuck if (!got_lock || (uvn->u_flags & UVM_VNODE_BLOCKED) != 0) {
2001 1.9 chuck if (got_lock)
2002 1.9 chuck simple_unlock(&uvn->u_obj.vmobjlock);
2003 1.9 chuck continue; /* skip it */
2004 1.9 chuck }
2005 1.8 mrg
2006 1.8 mrg /*
2007 1.8 mrg * gain reference. watch out for persisting uvns (need to
2008 1.8 mrg * regain vnode REF).
2009 1.8 mrg */
2010 1.8 mrg if (uvn->u_obj.uo_refs == 0)
2011 1.8 mrg VREF(vp);
2012 1.8 mrg uvn->u_obj.uo_refs++;
2013 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
2014 1.8 mrg
2015 1.8 mrg /*
2016 1.8 mrg * got it!
2017 1.8 mrg */
2018 1.8 mrg SIMPLEQ_INSERT_HEAD(&uvn_sync_q, uvn, u_syncq);
2019 1.8 mrg }
2020 1.8 mrg simple_unlock(&uvn_wl_lock);
2021 1.1 mrg
2022 1.8 mrg /*
2023 1.8 mrg * step 3: we now have a list of uvn's that may need cleaning.
2024 1.8 mrg * we are holding the uvn_sync_lock, but have dropped the uvn_wl_lock
2025 1.8 mrg * (so we can now safely lock uvn's again).
2026 1.8 mrg */
2027 1.1 mrg
2028 1.8 mrg for (uvn = uvn_sync_q.sqh_first ; uvn ; uvn = uvn->u_syncq.sqe_next) {
2029 1.8 mrg simple_lock(&uvn->u_obj.vmobjlock);
2030 1.27 chs #ifdef DEBUG
2031 1.8 mrg if (uvn->u_flags & UVM_VNODE_DYING) {
2032 1.8 mrg printf("uvm_vnp_sync: dying vnode on sync list\n");
2033 1.8 mrg }
2034 1.1 mrg #endif
2035 1.8 mrg uvn_flush(&uvn->u_obj, 0, 0,
2036 1.8 mrg PGO_CLEANIT|PGO_ALLPAGES|PGO_DOACTCLUST);
2037 1.8 mrg
2038 1.8 mrg /*
2039 1.8 mrg * if we have the only reference and we just cleaned the uvn,
2040 1.8 mrg * then we can pull it out of the UVM_VNODE_WRITEABLE state
2041 1.8 mrg * thus allowing us to avoid thinking about flushing it again
2042 1.8 mrg * on later sync ops.
2043 1.8 mrg */
2044 1.8 mrg if (uvn->u_obj.uo_refs == 1 &&
2045 1.8 mrg (uvn->u_flags & UVM_VNODE_WRITEABLE)) {
2046 1.8 mrg LIST_REMOVE(uvn, u_wlist);
2047 1.8 mrg uvn->u_flags &= ~UVM_VNODE_WRITEABLE;
2048 1.8 mrg }
2049 1.8 mrg
2050 1.8 mrg simple_unlock(&uvn->u_obj.vmobjlock);
2051 1.1 mrg
2052 1.8 mrg /* now drop our reference to the uvn */
2053 1.8 mrg uvn_detach(&uvn->u_obj);
2054 1.8 mrg }
2055 1.8 mrg
2056 1.8 mrg /*
2057 1.8 mrg * done! release sync lock
2058 1.8 mrg */
2059 1.8 mrg lockmgr(&uvn_sync_lock, LK_RELEASE, (void *)0);
2060 1.1 mrg }
2061