vnode_pager.c revision 119092
1/*
2 * Copyright (c) 1990 University of Utah.
3 * Copyright (c) 1991 The Regents of the University of California.
4 * All rights reserved.
5 * Copyright (c) 1993, 1994 John S. Dyson
6 * Copyright (c) 1995, David Greenman
7 *
8 * This code is derived from software contributed to Berkeley by
9 * the Systems Programming Group of the University of Utah Computer
10 * Science Department.
11 *
12 * Redistribution and use in source and binary forms, with or without
13 * modification, are permitted provided that the following conditions
14 * are met:
15 * 1. Redistributions of source code must retain the above copyright
16 *    notice, this list of conditions and the following disclaimer.
17 * 2. Redistributions in binary form must reproduce the above copyright
18 *    notice, this list of conditions and the following disclaimer in the
19 *    documentation and/or other materials provided with the distribution.
20 * 3. All advertising materials mentioning features or use of this software
21 *    must display the following acknowledgement:
22 *	This product includes software developed by the University of
23 *	California, Berkeley and its contributors.
24 * 4. Neither the name of the University nor the names of its contributors
25 *    may be used to endorse or promote products derived from this software
26 *    without specific prior written permission.
27 *
28 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
29 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
30 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
31 * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
32 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
33 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
34 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
35 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
36 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
37 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
38 * SUCH DAMAGE.
39 *
40 *	from: @(#)vnode_pager.c	7.5 (Berkeley) 4/20/91
41 */
42
43/*
44 * Page to/from files (vnodes).
45 */
46
47/*
48 * TODO:
49 *	Implement VOP_GETPAGES/PUTPAGES interface for filesystems. Will
50 *	greatly re-simplify the vnode_pager.
51 */
52
53#include <sys/cdefs.h>
54__FBSDID("$FreeBSD: head/sys/vm/vnode_pager.c 119092 2003-08-18 19:47:16Z phk $");
55
56#include <sys/param.h>
57#include <sys/systm.h>
58#include <sys/proc.h>
59#include <sys/vnode.h>
60#include <sys/mount.h>
61#include <sys/bio.h>
62#include <sys/buf.h>
63#include <sys/vmmeter.h>
64#include <sys/conf.h>
65
66#include <vm/vm.h>
67#include <vm/vm_object.h>
68#include <vm/vm_page.h>
69#include <vm/vm_pager.h>
70#include <vm/vm_map.h>
71#include <vm/vnode_pager.h>
72#include <vm/vm_extern.h>
73
74static void vnode_pager_init(void);
75static vm_offset_t vnode_pager_addr(struct vnode *vp, vm_ooffset_t address,
76					 int *run);
77static int vnode_pager_input_smlfs(vm_object_t object, vm_page_t m);
78static int vnode_pager_input_old(vm_object_t object, vm_page_t m);
79static void vnode_pager_dealloc(vm_object_t);
80static int vnode_pager_getpages(vm_object_t, vm_page_t *, int, int);
81static void vnode_pager_putpages(vm_object_t, vm_page_t *, int, boolean_t, int *);
82static boolean_t vnode_pager_haspage(vm_object_t, vm_pindex_t, int *, int *);
83
84struct pagerops vnodepagerops = {
85	.pgo_init =	vnode_pager_init,
86	.pgo_alloc =	vnode_pager_alloc,
87	.pgo_dealloc =	vnode_pager_dealloc,
88	.pgo_getpages =	vnode_pager_getpages,
89	.pgo_putpages =	vnode_pager_putpages,
90	.pgo_haspage =	vnode_pager_haspage,
91};
92
93int vnode_pbuf_freecnt;
94
95static void
96vnode_pager_init(void)
97{
98
99	vnode_pbuf_freecnt = nswbuf / 2 + 1;
100}
101
102/*
103 * Allocate (or lookup) pager for a vnode.
104 * Handle is a vnode pointer.
105 *
106 * MPSAFE
107 */
108vm_object_t
109vnode_pager_alloc(void *handle, vm_ooffset_t size, vm_prot_t prot,
110		  vm_ooffset_t offset)
111{
112	vm_object_t object;
113	struct vnode *vp;
114
115	/*
116	 * Pageout to vnode, no can do yet.
117	 */
118	if (handle == NULL)
119		return (NULL);
120
121	vp = (struct vnode *) handle;
122
123	ASSERT_VOP_LOCKED(vp, "vnode_pager_alloc");
124
125	mtx_lock(&Giant);
126	/*
127	 * Prevent race condition when allocating the object. This
128	 * can happen with NFS vnodes since the nfsnode isn't locked.
129	 */
130	VI_LOCK(vp);
131	while (vp->v_iflag & VI_OLOCK) {
132		vp->v_iflag |= VI_OWANT;
133		msleep(vp, VI_MTX(vp), PVM, "vnpobj", 0);
134	}
135	vp->v_iflag |= VI_OLOCK;
136	VI_UNLOCK(vp);
137
138	/*
139	 * If the object is being terminated, wait for it to
140	 * go away.
141	 */
142	while ((object = vp->v_object) != NULL) {
143		VM_OBJECT_LOCK(object);
144		if ((object->flags & OBJ_DEAD) == 0)
145			break;
146		msleep(object, VM_OBJECT_MTX(object), PDROP | PVM, "vadead", 0);
147	}
148
149	if (vp->v_usecount == 0)
150		panic("vnode_pager_alloc: no vnode reference");
151
152	if (object == NULL) {
153		/*
154		 * And an object of the appropriate size
155		 */
156		object = vm_object_allocate(OBJT_VNODE, OFF_TO_IDX(round_page(size)));
157
158		object->un_pager.vnp.vnp_size = size;
159
160		object->handle = handle;
161		vp->v_object = object;
162	} else {
163		object->ref_count++;
164		VM_OBJECT_UNLOCK(object);
165	}
166	VI_LOCK(vp);
167	vp->v_usecount++;
168	vp->v_iflag &= ~VI_OLOCK;
169	if (vp->v_iflag & VI_OWANT) {
170		vp->v_iflag &= ~VI_OWANT;
171		wakeup(vp);
172	}
173	VI_UNLOCK(vp);
174	mtx_unlock(&Giant);
175	return (object);
176}
177
178/*
179 *	The object must be locked.
180 */
181static void
182vnode_pager_dealloc(object)
183	vm_object_t object;
184{
185	struct vnode *vp = object->handle;
186
187	if (vp == NULL)
188		panic("vnode_pager_dealloc: pager already dealloced");
189
190	VM_OBJECT_LOCK_ASSERT(object, MA_OWNED);
191	vm_object_pip_wait(object, "vnpdea");
192
193	object->handle = NULL;
194	object->type = OBJT_DEAD;
195	ASSERT_VOP_LOCKED(vp, "vnode_pager_dealloc");
196	vp->v_object = NULL;
197	vp->v_vflag &= ~(VV_TEXT | VV_OBJBUF);
198}
199
200static boolean_t
201vnode_pager_haspage(object, pindex, before, after)
202	vm_object_t object;
203	vm_pindex_t pindex;
204	int *before;
205	int *after;
206{
207	struct vnode *vp = object->handle;
208	daddr_t bn;
209	int err;
210	daddr_t reqblock;
211	int poff;
212	int bsize;
213	int pagesperblock, blocksperpage;
214
215	VM_OBJECT_LOCK_ASSERT(object, MA_OWNED);
216	/*
217	 * If no vp or vp is doomed or marked transparent to VM, we do not
218	 * have the page.
219	 */
220	if (vp == NULL)
221		return FALSE;
222
223	VI_LOCK(vp);
224	if (vp->v_iflag & VI_DOOMED) {
225		VI_UNLOCK(vp);
226		return FALSE;
227	}
228	VI_UNLOCK(vp);
229	/*
230	 * If filesystem no longer mounted or offset beyond end of file we do
231	 * not have the page.
232	 */
233	if ((vp->v_mount == NULL) ||
234	    (IDX_TO_OFF(pindex) >= object->un_pager.vnp.vnp_size))
235		return FALSE;
236
237	bsize = vp->v_mount->mnt_stat.f_iosize;
238	pagesperblock = bsize / PAGE_SIZE;
239	blocksperpage = 0;
240	if (pagesperblock > 0) {
241		reqblock = pindex / pagesperblock;
242	} else {
243		blocksperpage = (PAGE_SIZE / bsize);
244		reqblock = pindex * blocksperpage;
245	}
246	VM_OBJECT_UNLOCK(object);
247	err = VOP_BMAP(vp, reqblock, NULL, &bn, after, before);
248	VM_OBJECT_LOCK(object);
249	if (err)
250		return TRUE;
251	if (bn == -1)
252		return FALSE;
253	if (pagesperblock > 0) {
254		poff = pindex - (reqblock * pagesperblock);
255		if (before) {
256			*before *= pagesperblock;
257			*before += poff;
258		}
259		if (after) {
260			int numafter;
261			*after *= pagesperblock;
262			numafter = pagesperblock - (poff + 1);
263			if (IDX_TO_OFF(pindex + numafter) >
264			    object->un_pager.vnp.vnp_size) {
265				numafter =
266		    		    OFF_TO_IDX(object->un_pager.vnp.vnp_size) -
267				    pindex;
268			}
269			*after += numafter;
270		}
271	} else {
272		if (before) {
273			*before /= blocksperpage;
274		}
275
276		if (after) {
277			*after /= blocksperpage;
278		}
279	}
280	return TRUE;
281}
282
283/*
284 * Lets the VM system know about a change in size for a file.
285 * We adjust our own internal size and flush any cached pages in
286 * the associated object that are affected by the size change.
287 *
288 * Note: this routine may be invoked as a result of a pager put
289 * operation (possibly at object termination time), so we must be careful.
290 */
291void
292vnode_pager_setsize(vp, nsize)
293	struct vnode *vp;
294	vm_ooffset_t nsize;
295{
296	vm_object_t object;
297	vm_page_t m;
298	vm_pindex_t nobjsize;
299
300	if ((object = vp->v_object) == NULL)
301		return;
302	VM_OBJECT_LOCK(object);
303	if (nsize == object->un_pager.vnp.vnp_size) {
304		/*
305		 * Hasn't changed size
306		 */
307		VM_OBJECT_UNLOCK(object);
308		return;
309	}
310	nobjsize = OFF_TO_IDX(nsize + PAGE_MASK);
311	if (nsize < object->un_pager.vnp.vnp_size) {
312		/*
313		 * File has shrunk. Toss any cached pages beyond the new EOF.
314		 */
315		if (nobjsize < object->size)
316			vm_object_page_remove(object, nobjsize, object->size,
317			    FALSE);
318		/*
319		 * this gets rid of garbage at the end of a page that is now
320		 * only partially backed by the vnode.
321		 *
322		 * XXX for some reason (I don't know yet), if we take a
323		 * completely invalid page and mark it partially valid
324		 * it can screw up NFS reads, so we don't allow the case.
325		 */
326		if ((nsize & PAGE_MASK) &&
327		    (m = vm_page_lookup(object, OFF_TO_IDX(nsize))) != NULL) {
328			vm_page_lock_queues();
329			if (m->valid) {
330				int base = (int)nsize & PAGE_MASK;
331				int size = PAGE_SIZE - base;
332
333				/*
334				 * Clear out partial-page garbage in case
335				 * the page has been mapped.
336				 */
337				pmap_zero_page_area(m, base, size);
338
339				/*
340				 * XXX work around SMP data integrity race
341				 * by unmapping the page from user processes.
342				 * The garbage we just cleared may be mapped
343				 * to a user process running on another cpu
344				 * and this code is not running through normal
345				 * I/O channels which handle SMP issues for
346				 * us, so unmap page to synchronize all cpus.
347				 *
348				 * XXX should vm_pager_unmap_page() have
349				 * dealt with this?
350				 */
351				pmap_remove_all(m);
352
353				/*
354				 * Clear out partial-page dirty bits.  This
355				 * has the side effect of setting the valid
356				 * bits, but that is ok.  There are a bunch
357				 * of places in the VM system where we expected
358				 * m->dirty == VM_PAGE_BITS_ALL.  The file EOF
359				 * case is one of them.  If the page is still
360				 * partially dirty, make it fully dirty.
361				 *
362				 * note that we do not clear out the valid
363				 * bits.  This would prevent bogus_page
364				 * replacement from working properly.
365				 */
366				vm_page_set_validclean(m, base, size);
367				if (m->dirty != 0)
368					m->dirty = VM_PAGE_BITS_ALL;
369			}
370			vm_page_unlock_queues();
371		}
372	}
373	object->un_pager.vnp.vnp_size = nsize;
374	object->size = nobjsize;
375	VM_OBJECT_UNLOCK(object);
376}
377
378/*
379 * calculate the linear (byte) disk address of specified virtual
380 * file address
381 */
382static vm_offset_t
383vnode_pager_addr(vp, address, run)
384	struct vnode *vp;
385	vm_ooffset_t address;
386	int *run;
387{
388	int rtaddress;
389	int bsize;
390	daddr_t block;
391	int err;
392	daddr_t vblock;
393	int voffset;
394
395	GIANT_REQUIRED;
396	if ((int) address < 0)
397		return -1;
398
399	if (vp->v_mount == NULL)
400		return -1;
401
402	bsize = vp->v_mount->mnt_stat.f_iosize;
403	vblock = address / bsize;
404	voffset = address % bsize;
405
406	err = VOP_BMAP(vp, vblock, NULL, &block, run, NULL);
407
408	if (err || (block == -1))
409		rtaddress = -1;
410	else {
411		rtaddress = block + voffset / DEV_BSIZE;
412		if (run) {
413			*run += 1;
414			*run *= bsize/PAGE_SIZE;
415			*run -= voffset/PAGE_SIZE;
416		}
417	}
418
419	return rtaddress;
420}
421
422/*
423 * small block filesystem vnode pager input
424 */
425static int
426vnode_pager_input_smlfs(object, m)
427	vm_object_t object;
428	vm_page_t m;
429{
430	int i;
431	struct vnode *dp, *vp;
432	struct buf *bp;
433	vm_offset_t kva;
434	int fileaddr;
435	vm_offset_t bsize;
436	int error = 0;
437
438	GIANT_REQUIRED;
439
440	vp = object->handle;
441	if (vp->v_mount == NULL)
442		return VM_PAGER_BAD;
443
444	bsize = vp->v_mount->mnt_stat.f_iosize;
445
446	VOP_BMAP(vp, 0, &dp, 0, NULL, NULL);
447
448	kva = vm_pager_map_page(m);
449
450	for (i = 0; i < PAGE_SIZE / bsize; i++) {
451		vm_ooffset_t address;
452
453		if (vm_page_bits(i * bsize, bsize) & m->valid)
454			continue;
455
456		address = IDX_TO_OFF(m->pindex) + i * bsize;
457		if (address >= object->un_pager.vnp.vnp_size) {
458			fileaddr = -1;
459		} else {
460			fileaddr = vnode_pager_addr(vp, address, NULL);
461		}
462		if (fileaddr != -1) {
463			bp = getpbuf(&vnode_pbuf_freecnt);
464
465			/* build a minimal buffer header */
466			bp->b_iocmd = BIO_READ;
467			bp->b_iodone = bdone;
468			KASSERT(bp->b_rcred == NOCRED, ("leaking read ucred"));
469			KASSERT(bp->b_wcred == NOCRED, ("leaking write ucred"));
470			bp->b_rcred = crhold(curthread->td_ucred);
471			bp->b_wcred = crhold(curthread->td_ucred);
472			bp->b_data = (caddr_t) kva + i * bsize;
473			bp->b_blkno = fileaddr;
474			pbgetvp(dp, bp);
475			bp->b_bcount = bsize;
476			bp->b_bufsize = bsize;
477			bp->b_runningbufspace = bp->b_bufsize;
478			runningbufspace += bp->b_runningbufspace;
479
480			/* do the input */
481			VOP_SPECSTRATEGY(bp->b_vp, bp);
482
483			/* we definitely need to be at splvm here */
484
485			bwait(bp, PVM, "vnsrd");
486
487			if ((bp->b_ioflags & BIO_ERROR) != 0)
488				error = EIO;
489
490			/*
491			 * free the buffer header back to the swap buffer pool
492			 */
493			relpbuf(bp, &vnode_pbuf_freecnt);
494			if (error)
495				break;
496
497			vm_page_lock_queues();
498			vm_page_set_validclean(m, (i * bsize) & PAGE_MASK, bsize);
499			vm_page_unlock_queues();
500		} else {
501			vm_page_lock_queues();
502			vm_page_set_validclean(m, (i * bsize) & PAGE_MASK, bsize);
503			vm_page_unlock_queues();
504			bzero((caddr_t) kva + i * bsize, bsize);
505		}
506	}
507	vm_pager_unmap_page(kva);
508	vm_page_lock_queues();
509	pmap_clear_modify(m);
510	vm_page_flag_clear(m, PG_ZERO);
511	vm_page_unlock_queues();
512	if (error) {
513		return VM_PAGER_ERROR;
514	}
515	return VM_PAGER_OK;
516
517}
518
519
520/*
521 * old style vnode pager output routine
522 */
523static int
524vnode_pager_input_old(object, m)
525	vm_object_t object;
526	vm_page_t m;
527{
528	struct uio auio;
529	struct iovec aiov;
530	int error;
531	int size;
532	vm_offset_t kva;
533	struct vnode *vp;
534
535	GIANT_REQUIRED;
536	error = 0;
537
538	/*
539	 * Return failure if beyond current EOF
540	 */
541	if (IDX_TO_OFF(m->pindex) >= object->un_pager.vnp.vnp_size) {
542		return VM_PAGER_BAD;
543	} else {
544		size = PAGE_SIZE;
545		if (IDX_TO_OFF(m->pindex) + size > object->un_pager.vnp.vnp_size)
546			size = object->un_pager.vnp.vnp_size - IDX_TO_OFF(m->pindex);
547
548		/*
549		 * Allocate a kernel virtual address and initialize so that
550		 * we can use VOP_READ/WRITE routines.
551		 */
552		kva = vm_pager_map_page(m);
553
554		vp = object->handle;
555		aiov.iov_base = (caddr_t) kva;
556		aiov.iov_len = size;
557		auio.uio_iov = &aiov;
558		auio.uio_iovcnt = 1;
559		auio.uio_offset = IDX_TO_OFF(m->pindex);
560		auio.uio_segflg = UIO_SYSSPACE;
561		auio.uio_rw = UIO_READ;
562		auio.uio_resid = size;
563		auio.uio_td = curthread;
564
565		error = VOP_READ(vp, &auio, 0, curthread->td_ucred);
566		if (!error) {
567			int count = size - auio.uio_resid;
568
569			if (count == 0)
570				error = EINVAL;
571			else if (count != PAGE_SIZE)
572				bzero((caddr_t) kva + count, PAGE_SIZE - count);
573		}
574		vm_pager_unmap_page(kva);
575	}
576	vm_page_lock_queues();
577	pmap_clear_modify(m);
578	vm_page_undirty(m);
579	vm_page_flag_clear(m, PG_ZERO);
580	if (!error)
581		m->valid = VM_PAGE_BITS_ALL;
582	vm_page_unlock_queues();
583	return error ? VM_PAGER_ERROR : VM_PAGER_OK;
584}
585
586/*
587 * generic vnode pager input routine
588 */
589
590/*
591 * Local media VFS's that do not implement their own VOP_GETPAGES
592 * should have their VOP_GETPAGES call to vnode_pager_generic_getpages()
593 * to implement the previous behaviour.
594 *
595 * All other FS's should use the bypass to get to the local media
596 * backing vp's VOP_GETPAGES.
597 */
598static int
599vnode_pager_getpages(object, m, count, reqpage)
600	vm_object_t object;
601	vm_page_t *m;
602	int count;
603	int reqpage;
604{
605	int rtval;
606	struct vnode *vp;
607	int bytes = count * PAGE_SIZE;
608
609	vp = object->handle;
610	VM_OBJECT_UNLOCK(object);
611	rtval = VOP_GETPAGES(vp, m, bytes, reqpage, 0);
612	KASSERT(rtval != EOPNOTSUPP,
613	    ("vnode_pager: FS getpages not implemented\n"));
614	VM_OBJECT_LOCK(object);
615	return rtval;
616}
617
618/*
619 * This is now called from local media FS's to operate against their
620 * own vnodes if they fail to implement VOP_GETPAGES.
621 */
622int
623vnode_pager_generic_getpages(vp, m, bytecount, reqpage)
624	struct vnode *vp;
625	vm_page_t *m;
626	int bytecount;
627	int reqpage;
628{
629	vm_object_t object;
630	vm_offset_t kva;
631	off_t foff, tfoff, nextoff;
632	int i, j, size, bsize, first, firstaddr;
633	struct vnode *dp;
634	int runpg;
635	int runend;
636	struct buf *bp;
637	int count;
638	int error = 0;
639
640	GIANT_REQUIRED;
641	object = vp->v_object;
642	count = bytecount / PAGE_SIZE;
643
644	if (vp->v_mount == NULL)
645		return VM_PAGER_BAD;
646
647	bsize = vp->v_mount->mnt_stat.f_iosize;
648
649	/* get the UNDERLYING device for the file with VOP_BMAP() */
650
651	/*
652	 * originally, we did not check for an error return value -- assuming
653	 * an fs always has a bmap entry point -- that assumption is wrong!!!
654	 */
655	foff = IDX_TO_OFF(m[reqpage]->pindex);
656
657	/*
658	 * if we can't bmap, use old VOP code
659	 */
660	if (VOP_BMAP(vp, 0, &dp, 0, NULL, NULL)) {
661		VM_OBJECT_LOCK(object);
662		vm_page_lock_queues();
663		for (i = 0; i < count; i++)
664			if (i != reqpage)
665				vm_page_free(m[i]);
666		vm_page_unlock_queues();
667		VM_OBJECT_UNLOCK(object);
668		cnt.v_vnodein++;
669		cnt.v_vnodepgsin++;
670		return vnode_pager_input_old(object, m[reqpage]);
671
672		/*
673		 * if the blocksize is smaller than a page size, then use
674		 * special small filesystem code.  NFS sometimes has a small
675		 * blocksize, but it can handle large reads itself.
676		 */
677	} else if ((PAGE_SIZE / bsize) > 1 &&
678	    (vp->v_mount->mnt_stat.f_type != nfs_mount_type)) {
679		VM_OBJECT_LOCK(object);
680		vm_page_lock_queues();
681		for (i = 0; i < count; i++)
682			if (i != reqpage)
683				vm_page_free(m[i]);
684		vm_page_unlock_queues();
685		VM_OBJECT_UNLOCK(object);
686		cnt.v_vnodein++;
687		cnt.v_vnodepgsin++;
688		return vnode_pager_input_smlfs(object, m[reqpage]);
689	}
690
691	/*
692	 * If we have a completely valid page available to us, we can
693	 * clean up and return.  Otherwise we have to re-read the
694	 * media.
695	 */
696	if (m[reqpage]->valid == VM_PAGE_BITS_ALL) {
697		VM_OBJECT_LOCK(object);
698		vm_page_lock_queues();
699		for (i = 0; i < count; i++)
700			if (i != reqpage)
701				vm_page_free(m[i]);
702		vm_page_unlock_queues();
703		VM_OBJECT_UNLOCK(object);
704		return VM_PAGER_OK;
705	}
706	m[reqpage]->valid = 0;
707
708	/*
709	 * here on direct device I/O
710	 */
711	firstaddr = -1;
712
713	/*
714	 * calculate the run that includes the required page
715	 */
716	for (first = 0, i = 0; i < count; i = runend) {
717		firstaddr = vnode_pager_addr(vp,
718			IDX_TO_OFF(m[i]->pindex), &runpg);
719		if (firstaddr == -1) {
720			VM_OBJECT_LOCK(object);
721			if (i == reqpage && foff < object->un_pager.vnp.vnp_size) {
722				panic("vnode_pager_getpages: unexpected missing page: firstaddr: %d, foff: 0x%jx%08jx, vnp_size: 0x%jx%08jx",
723				    firstaddr, (uintmax_t)(foff >> 32),
724				    (uintmax_t)foff,
725				    (uintmax_t)
726				    (object->un_pager.vnp.vnp_size >> 32),
727				    (uintmax_t)object->un_pager.vnp.vnp_size);
728			}
729			vm_page_lock_queues();
730			vm_page_free(m[i]);
731			vm_page_unlock_queues();
732			VM_OBJECT_UNLOCK(object);
733			runend = i + 1;
734			first = runend;
735			continue;
736		}
737		runend = i + runpg;
738		if (runend <= reqpage) {
739			VM_OBJECT_LOCK(object);
740			vm_page_lock_queues();
741			for (j = i; j < runend; j++)
742				vm_page_free(m[j]);
743			vm_page_unlock_queues();
744			VM_OBJECT_UNLOCK(object);
745		} else {
746			if (runpg < (count - first)) {
747				VM_OBJECT_LOCK(object);
748				vm_page_lock_queues();
749				for (i = first + runpg; i < count; i++)
750					vm_page_free(m[i]);
751				vm_page_unlock_queues();
752				VM_OBJECT_UNLOCK(object);
753				count = first + runpg;
754			}
755			break;
756		}
757		first = runend;
758	}
759
760	/*
761	 * the first and last page have been calculated now, move input pages
762	 * to be zero based...
763	 */
764	if (first != 0) {
765		for (i = first; i < count; i++) {
766			m[i - first] = m[i];
767		}
768		count -= first;
769		reqpage -= first;
770	}
771
772	/*
773	 * calculate the file virtual address for the transfer
774	 */
775	foff = IDX_TO_OFF(m[0]->pindex);
776
777	/*
778	 * calculate the size of the transfer
779	 */
780	size = count * PAGE_SIZE;
781	if ((foff + size) > object->un_pager.vnp.vnp_size)
782		size = object->un_pager.vnp.vnp_size - foff;
783
784	/*
785	 * round up physical size for real devices.
786	 */
787	if (dp->v_type == VBLK || dp->v_type == VCHR) {
788		int secmask = dp->v_rdev->si_bsize_phys - 1;
789		KASSERT(secmask < PAGE_SIZE, ("vnode_pager_generic_getpages: sector size %d too large\n", secmask + 1));
790		size = (size + secmask) & ~secmask;
791	}
792
793	bp = getpbuf(&vnode_pbuf_freecnt);
794	kva = (vm_offset_t) bp->b_data;
795
796	/*
797	 * and map the pages to be read into the kva
798	 */
799	pmap_qenter(kva, m, count);
800
801	/* build a minimal buffer header */
802	bp->b_iocmd = BIO_READ;
803	bp->b_iodone = bdone;
804	/* B_PHYS is not set, but it is nice to fill this in */
805	KASSERT(bp->b_rcred == NOCRED, ("leaking read ucred"));
806	KASSERT(bp->b_wcred == NOCRED, ("leaking write ucred"));
807	bp->b_rcred = crhold(curthread->td_ucred);
808	bp->b_wcred = crhold(curthread->td_ucred);
809	bp->b_blkno = firstaddr;
810	pbgetvp(dp, bp);
811	bp->b_bcount = size;
812	bp->b_bufsize = size;
813	bp->b_runningbufspace = bp->b_bufsize;
814	runningbufspace += bp->b_runningbufspace;
815
816	cnt.v_vnodein++;
817	cnt.v_vnodepgsin += count;
818
819	/* do the input */
820	if (dp->v_type == VCHR)
821		VOP_SPECSTRATEGY(bp->b_vp, bp);
822	else
823		VOP_STRATEGY(bp->b_vp, bp);
824
825	bwait(bp, PVM, "vnread");
826
827	if ((bp->b_ioflags & BIO_ERROR) != 0)
828		error = EIO;
829
830	if (!error) {
831		if (size != count * PAGE_SIZE)
832			bzero((caddr_t) kva + size, PAGE_SIZE * count - size);
833	}
834	pmap_qremove(kva, count);
835
836	/*
837	 * free the buffer header back to the swap buffer pool
838	 */
839	relpbuf(bp, &vnode_pbuf_freecnt);
840
841	VM_OBJECT_LOCK(object);
842	vm_page_lock_queues();
843	for (i = 0, tfoff = foff; i < count; i++, tfoff = nextoff) {
844		vm_page_t mt;
845
846		nextoff = tfoff + PAGE_SIZE;
847		mt = m[i];
848
849		if (nextoff <= object->un_pager.vnp.vnp_size) {
850			/*
851			 * Read filled up entire page.
852			 */
853			mt->valid = VM_PAGE_BITS_ALL;
854			vm_page_undirty(mt);	/* should be an assert? XXX */
855			pmap_clear_modify(mt);
856		} else {
857			/*
858			 * Read did not fill up entire page.  Since this
859			 * is getpages, the page may be mapped, so we have
860			 * to zero the invalid portions of the page even
861			 * though we aren't setting them valid.
862			 *
863			 * Currently we do not set the entire page valid,
864			 * we just try to clear the piece that we couldn't
865			 * read.
866			 */
867			vm_page_set_validclean(mt, 0,
868			    object->un_pager.vnp.vnp_size - tfoff);
869			/* handled by vm_fault now */
870			/* vm_page_zero_invalid(mt, FALSE); */
871		}
872
873		vm_page_flag_clear(mt, PG_ZERO);
874		if (i != reqpage) {
875
876			/*
877			 * whether or not to leave the page activated is up in
878			 * the air, but we should put the page on a page queue
879			 * somewhere. (it already is in the object). Result:
880			 * It appears that empirical results show that
881			 * deactivating pages is best.
882			 */
883
884			/*
885			 * just in case someone was asking for this page we
886			 * now tell them that it is ok to use
887			 */
888			if (!error) {
889				if (mt->flags & PG_WANTED)
890					vm_page_activate(mt);
891				else
892					vm_page_deactivate(mt);
893				vm_page_wakeup(mt);
894			} else {
895				vm_page_free(mt);
896			}
897		}
898	}
899	vm_page_unlock_queues();
900	VM_OBJECT_UNLOCK(object);
901	if (error) {
902		printf("vnode_pager_getpages: I/O read error\n");
903	}
904	return (error ? VM_PAGER_ERROR : VM_PAGER_OK);
905}
906
907/*
908 * EOPNOTSUPP is no longer legal.  For local media VFS's that do not
909 * implement their own VOP_PUTPAGES, their VOP_PUTPAGES should call to
910 * vnode_pager_generic_putpages() to implement the previous behaviour.
911 *
912 * All other FS's should use the bypass to get to the local media
913 * backing vp's VOP_PUTPAGES.
914 */
915static void
916vnode_pager_putpages(object, m, count, sync, rtvals)
917	vm_object_t object;
918	vm_page_t *m;
919	int count;
920	boolean_t sync;
921	int *rtvals;
922{
923	int rtval;
924	struct vnode *vp;
925	struct mount *mp;
926	int bytes = count * PAGE_SIZE;
927
928	GIANT_REQUIRED;
929	/*
930	 * Force synchronous operation if we are extremely low on memory
931	 * to prevent a low-memory deadlock.  VOP operations often need to
932	 * allocate more memory to initiate the I/O ( i.e. do a BMAP
933	 * operation ).  The swapper handles the case by limiting the amount
934	 * of asynchronous I/O, but that sort of solution doesn't scale well
935	 * for the vnode pager without a lot of work.
936	 *
937	 * Also, the backing vnode's iodone routine may not wake the pageout
938	 * daemon up.  This should be probably be addressed XXX.
939	 */
940
941	if ((cnt.v_free_count + cnt.v_cache_count) < cnt.v_pageout_free_min)
942		sync |= OBJPC_SYNC;
943
944	/*
945	 * Call device-specific putpages function
946	 */
947	vp = object->handle;
948	if (vp->v_type != VREG)
949		mp = NULL;
950	(void)vn_start_write(vp, &mp, V_WAIT);
951	rtval = VOP_PUTPAGES(vp, m, bytes, sync, rtvals, 0);
952	KASSERT(rtval != EOPNOTSUPP,
953	    ("vnode_pager: stale FS putpages\n"));
954	vn_finished_write(mp);
955}
956
957
958/*
959 * This is now called from local media FS's to operate against their
960 * own vnodes if they fail to implement VOP_PUTPAGES.
961 *
962 * This is typically called indirectly via the pageout daemon and
963 * clustering has already typically occured, so in general we ask the
964 * underlying filesystem to write the data out asynchronously rather
965 * then delayed.
966 */
967int
968vnode_pager_generic_putpages(vp, m, bytecount, flags, rtvals)
969	struct vnode *vp;
970	vm_page_t *m;
971	int bytecount;
972	int flags;
973	int *rtvals;
974{
975	int i;
976	vm_object_t object;
977	int count;
978
979	int maxsize, ncount;
980	vm_ooffset_t poffset;
981	struct uio auio;
982	struct iovec aiov;
983	int error;
984	int ioflags;
985
986	GIANT_REQUIRED;
987	object = vp->v_object;
988	count = bytecount / PAGE_SIZE;
989
990	for (i = 0; i < count; i++)
991		rtvals[i] = VM_PAGER_AGAIN;
992
993	if ((int) m[0]->pindex < 0) {
994		printf("vnode_pager_putpages: attempt to write meta-data!!! -- 0x%lx(%x)\n",
995			(long)m[0]->pindex, m[0]->dirty);
996		rtvals[0] = VM_PAGER_BAD;
997		return VM_PAGER_BAD;
998	}
999
1000	maxsize = count * PAGE_SIZE;
1001	ncount = count;
1002
1003	poffset = IDX_TO_OFF(m[0]->pindex);
1004
1005	/*
1006	 * If the page-aligned write is larger then the actual file we
1007	 * have to invalidate pages occuring beyond the file EOF.  However,
1008	 * there is an edge case where a file may not be page-aligned where
1009	 * the last page is partially invalid.  In this case the filesystem
1010	 * may not properly clear the dirty bits for the entire page (which
1011	 * could be VM_PAGE_BITS_ALL due to the page having been mmap()d).
1012	 * With the page locked we are free to fix-up the dirty bits here.
1013	 *
1014	 * We do not under any circumstances truncate the valid bits, as
1015	 * this will screw up bogus page replacement.
1016	 */
1017	if (maxsize + poffset > object->un_pager.vnp.vnp_size) {
1018		if (object->un_pager.vnp.vnp_size > poffset) {
1019			int pgoff;
1020
1021			maxsize = object->un_pager.vnp.vnp_size - poffset;
1022			ncount = btoc(maxsize);
1023			if ((pgoff = (int)maxsize & PAGE_MASK) != 0) {
1024				vm_page_clear_dirty(m[ncount - 1], pgoff,
1025					PAGE_SIZE - pgoff);
1026			}
1027		} else {
1028			maxsize = 0;
1029			ncount = 0;
1030		}
1031		if (ncount < count) {
1032			for (i = ncount; i < count; i++) {
1033				rtvals[i] = VM_PAGER_BAD;
1034			}
1035		}
1036	}
1037
1038	/*
1039	 * pageouts are already clustered, use IO_ASYNC t o force a bawrite()
1040	 * rather then a bdwrite() to prevent paging I/O from saturating
1041	 * the buffer cache.  Dummy-up the sequential heuristic to cause
1042	 * large ranges to cluster.  If neither IO_SYNC or IO_ASYNC is set,
1043	 * the system decides how to cluster.
1044	 */
1045	ioflags = IO_VMIO;
1046	if (flags & (VM_PAGER_PUT_SYNC | VM_PAGER_PUT_INVAL))
1047		ioflags |= IO_SYNC;
1048	else if ((flags & VM_PAGER_CLUSTER_OK) == 0)
1049		ioflags |= IO_ASYNC;
1050	ioflags |= (flags & VM_PAGER_PUT_INVAL) ? IO_INVAL: 0;
1051	ioflags |= IO_SEQMAX << IO_SEQSHIFT;
1052
1053	aiov.iov_base = (caddr_t) 0;
1054	aiov.iov_len = maxsize;
1055	auio.uio_iov = &aiov;
1056	auio.uio_iovcnt = 1;
1057	auio.uio_offset = poffset;
1058	auio.uio_segflg = UIO_NOCOPY;
1059	auio.uio_rw = UIO_WRITE;
1060	auio.uio_resid = maxsize;
1061	auio.uio_td = (struct thread *) 0;
1062	error = VOP_WRITE(vp, &auio, ioflags, curthread->td_ucred);
1063	cnt.v_vnodeout++;
1064	cnt.v_vnodepgsout += ncount;
1065
1066	if (error) {
1067		printf("vnode_pager_putpages: I/O error %d\n", error);
1068	}
1069	if (auio.uio_resid) {
1070		printf("vnode_pager_putpages: residual I/O %d at %lu\n",
1071		    auio.uio_resid, (u_long)m[0]->pindex);
1072	}
1073	for (i = 0; i < ncount; i++) {
1074		rtvals[i] = VM_PAGER_OK;
1075	}
1076	return rtvals[0];
1077}
1078
1079struct vnode *
1080vnode_pager_lock(object)
1081	vm_object_t object;
1082{
1083	struct thread *td = curthread;	/* XXX */
1084
1085	GIANT_REQUIRED;
1086
1087	for (; object != NULL; object = object->backing_object) {
1088		if (object->type != OBJT_VNODE)
1089			continue;
1090		if (object->flags & OBJ_DEAD) {
1091			return NULL;
1092		}
1093
1094		/* XXX; If object->handle can change, we need to cache it. */
1095		while (vget(object->handle,
1096			LK_NOPAUSE | LK_SHARED | LK_RETRY | LK_CANRECURSE, td)){
1097			if ((object->flags & OBJ_DEAD) || (object->type != OBJT_VNODE))
1098				return NULL;
1099			printf("vnode_pager_lock: retrying\n");
1100		}
1101		return object->handle;
1102	}
1103	return NULL;
1104}
1105