genfs_io.c revision 1.93 1 1.93 ad /* $NetBSD: genfs_io.c,v 1.93 2020/03/14 20:45:23 ad Exp $ */
2 1.1 pooka
3 1.1 pooka /*
4 1.1 pooka * Copyright (c) 1982, 1986, 1989, 1993
5 1.1 pooka * The Regents of the University of California. All rights reserved.
6 1.1 pooka *
7 1.1 pooka * Redistribution and use in source and binary forms, with or without
8 1.1 pooka * modification, are permitted provided that the following conditions
9 1.1 pooka * are met:
10 1.1 pooka * 1. Redistributions of source code must retain the above copyright
11 1.1 pooka * notice, this list of conditions and the following disclaimer.
12 1.1 pooka * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 pooka * notice, this list of conditions and the following disclaimer in the
14 1.1 pooka * documentation and/or other materials provided with the distribution.
15 1.1 pooka * 3. Neither the name of the University nor the names of its contributors
16 1.1 pooka * may be used to endorse or promote products derived from this software
17 1.1 pooka * without specific prior written permission.
18 1.1 pooka *
19 1.1 pooka * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
20 1.1 pooka * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21 1.1 pooka * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22 1.1 pooka * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
23 1.1 pooka * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24 1.1 pooka * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25 1.1 pooka * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26 1.1 pooka * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 1.1 pooka * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28 1.1 pooka * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29 1.1 pooka * SUCH DAMAGE.
30 1.1 pooka *
31 1.1 pooka */
32 1.1 pooka
33 1.1 pooka #include <sys/cdefs.h>
34 1.93 ad __KERNEL_RCSID(0, "$NetBSD: genfs_io.c,v 1.93 2020/03/14 20:45:23 ad Exp $");
35 1.1 pooka
36 1.1 pooka #include <sys/param.h>
37 1.1 pooka #include <sys/systm.h>
38 1.1 pooka #include <sys/proc.h>
39 1.1 pooka #include <sys/kernel.h>
40 1.1 pooka #include <sys/mount.h>
41 1.1 pooka #include <sys/vnode.h>
42 1.1 pooka #include <sys/kmem.h>
43 1.1 pooka #include <sys/kauth.h>
44 1.1 pooka #include <sys/fstrans.h>
45 1.15 pooka #include <sys/buf.h>
46 1.1 pooka
47 1.1 pooka #include <miscfs/genfs/genfs.h>
48 1.1 pooka #include <miscfs/genfs/genfs_node.h>
49 1.1 pooka #include <miscfs/specfs/specdev.h>
50 1.1 pooka
51 1.1 pooka #include <uvm/uvm.h>
52 1.1 pooka #include <uvm/uvm_pager.h>
53 1.78 ad #include <uvm/uvm_page_array.h>
54 1.1 pooka
55 1.1 pooka static int genfs_do_directio(struct vmspace *, vaddr_t, size_t, struct vnode *,
56 1.1 pooka off_t, enum uio_rw);
57 1.1 pooka static void genfs_dio_iodone(struct buf *);
58 1.1 pooka
59 1.59 riastrad static int genfs_getpages_read(struct vnode *, struct vm_page **, int, off_t,
60 1.59 riastrad off_t, bool, bool, bool, bool);
61 1.1 pooka static int genfs_do_io(struct vnode *, off_t, vaddr_t, size_t, int, enum uio_rw,
62 1.1 pooka void (*)(struct buf *));
63 1.55 yamt static void genfs_rel_pages(struct vm_page **, unsigned int);
64 1.1 pooka
65 1.1 pooka int genfs_maxdio = MAXPHYS;
66 1.1 pooka
67 1.38 chs static void
68 1.55 yamt genfs_rel_pages(struct vm_page **pgs, unsigned int npages)
69 1.1 pooka {
70 1.55 yamt unsigned int i;
71 1.1 pooka
72 1.1 pooka for (i = 0; i < npages; i++) {
73 1.1 pooka struct vm_page *pg = pgs[i];
74 1.1 pooka
75 1.1 pooka if (pg == NULL || pg == PGO_DONTCARE)
76 1.1 pooka continue;
77 1.86 ad KASSERT(uvm_page_owner_locked_p(pg, true));
78 1.1 pooka if (pg->flags & PG_FAKE) {
79 1.1 pooka pg->flags |= PG_RELEASED;
80 1.1 pooka }
81 1.1 pooka }
82 1.1 pooka uvm_page_unbusy(pgs, npages);
83 1.1 pooka }
84 1.1 pooka
85 1.1 pooka /*
86 1.1 pooka * generic VM getpages routine.
87 1.1 pooka * Return PG_BUSY pages for the given range,
88 1.1 pooka * reading from backing store if necessary.
89 1.1 pooka */
90 1.1 pooka
91 1.1 pooka int
92 1.1 pooka genfs_getpages(void *v)
93 1.1 pooka {
94 1.1 pooka struct vop_getpages_args /* {
95 1.1 pooka struct vnode *a_vp;
96 1.1 pooka voff_t a_offset;
97 1.1 pooka struct vm_page **a_m;
98 1.1 pooka int *a_count;
99 1.1 pooka int a_centeridx;
100 1.1 pooka vm_prot_t a_access_type;
101 1.1 pooka int a_advice;
102 1.1 pooka int a_flags;
103 1.22 uebayasi } */ * const ap = v;
104 1.1 pooka
105 1.24 uebayasi off_t diskeof, memeof;
106 1.31 uebayasi int i, error, npages;
107 1.10 yamt const int flags = ap->a_flags;
108 1.22 uebayasi struct vnode * const vp = ap->a_vp;
109 1.22 uebayasi struct uvm_object * const uobj = &vp->v_uobj;
110 1.10 yamt const bool async = (flags & PGO_SYNCIO) == 0;
111 1.35 uebayasi const bool memwrite = (ap->a_access_type & VM_PROT_WRITE) != 0;
112 1.10 yamt const bool overwrite = (flags & PGO_OVERWRITE) != 0;
113 1.35 uebayasi const bool blockalloc = memwrite && (flags & PGO_NOBLOCKALLOC) == 0;
114 1.73 jdolecek const bool need_wapbl = (vp->v_mount->mnt_wapbl &&
115 1.73 jdolecek (flags & PGO_JOURNALLOCKED) == 0);
116 1.40 chs const bool glocked = (flags & PGO_GLOCKHELD) != 0;
117 1.64 hannken bool holds_wapbl = false;
118 1.64 hannken struct mount *trans_mount = NULL;
119 1.1 pooka UVMHIST_FUNC("genfs_getpages"); UVMHIST_CALLED(ubchist);
120 1.1 pooka
121 1.71 pgoyette UVMHIST_LOG(ubchist, "vp %#jx off 0x%jx/%jx count %jd",
122 1.71 pgoyette (uintptr_t)vp, ap->a_offset >> 32, ap->a_offset, *ap->a_count);
123 1.1 pooka
124 1.84 ad KASSERT(memwrite >= overwrite);
125 1.1 pooka KASSERT(vp->v_type == VREG || vp->v_type == VDIR ||
126 1.1 pooka vp->v_type == VLNK || vp->v_type == VBLK);
127 1.1 pooka
128 1.74 jdolecek #ifdef DIAGNOSTIC
129 1.74 jdolecek if ((flags & PGO_JOURNALLOCKED) && vp->v_mount->mnt_wapbl)
130 1.74 jdolecek WAPBL_JLOCK_ASSERT(vp->v_mount);
131 1.74 jdolecek #endif
132 1.74 jdolecek
133 1.86 ad mutex_enter(vp->v_interlock);
134 1.70 hannken error = vdead_check(vp, VDEAD_NOWAIT);
135 1.86 ad mutex_exit(vp->v_interlock);
136 1.70 hannken if (error) {
137 1.70 hannken if ((flags & PGO_LOCKED) == 0)
138 1.86 ad rw_exit(uobj->vmobjlock);
139 1.70 hannken return error;
140 1.70 hannken }
141 1.70 hannken
142 1.1 pooka startover:
143 1.1 pooka error = 0;
144 1.27 uebayasi const voff_t origvsize = vp->v_size;
145 1.27 uebayasi const off_t origoffset = ap->a_offset;
146 1.29 uebayasi const int orignpages = *ap->a_count;
147 1.33 uebayasi
148 1.1 pooka GOP_SIZE(vp, origvsize, &diskeof, 0);
149 1.1 pooka if (flags & PGO_PASTEOF) {
150 1.24 uebayasi off_t newsize;
151 1.1 pooka #if defined(DIAGNOSTIC)
152 1.1 pooka off_t writeeof;
153 1.1 pooka #endif /* defined(DIAGNOSTIC) */
154 1.1 pooka
155 1.1 pooka newsize = MAX(origvsize,
156 1.1 pooka origoffset + (orignpages << PAGE_SHIFT));
157 1.1 pooka GOP_SIZE(vp, newsize, &memeof, GOP_SIZE_MEM);
158 1.1 pooka #if defined(DIAGNOSTIC)
159 1.1 pooka GOP_SIZE(vp, vp->v_writesize, &writeeof, GOP_SIZE_MEM);
160 1.1 pooka if (newsize > round_page(writeeof)) {
161 1.39 pooka panic("%s: past eof: %" PRId64 " vs. %" PRId64,
162 1.39 pooka __func__, newsize, round_page(writeeof));
163 1.1 pooka }
164 1.1 pooka #endif /* defined(DIAGNOSTIC) */
165 1.1 pooka } else {
166 1.1 pooka GOP_SIZE(vp, origvsize, &memeof, GOP_SIZE_MEM);
167 1.1 pooka }
168 1.1 pooka KASSERT(ap->a_centeridx >= 0 || ap->a_centeridx <= orignpages);
169 1.1 pooka KASSERT((origoffset & (PAGE_SIZE - 1)) == 0 && origoffset >= 0);
170 1.1 pooka KASSERT(orignpages > 0);
171 1.1 pooka
172 1.1 pooka /*
173 1.1 pooka * Bounds-check the request.
174 1.1 pooka */
175 1.1 pooka
176 1.1 pooka if (origoffset + (ap->a_centeridx << PAGE_SHIFT) >= memeof) {
177 1.1 pooka if ((flags & PGO_LOCKED) == 0) {
178 1.86 ad rw_exit(uobj->vmobjlock);
179 1.1 pooka }
180 1.71 pgoyette UVMHIST_LOG(ubchist, "off 0x%jx count %jd goes past EOF 0x%jx",
181 1.1 pooka origoffset, *ap->a_count, memeof,0);
182 1.1 pooka error = EINVAL;
183 1.1 pooka goto out_err;
184 1.1 pooka }
185 1.1 pooka
186 1.1 pooka /* uobj is locked */
187 1.1 pooka
188 1.1 pooka if ((flags & PGO_NOTIMESTAMP) == 0 &&
189 1.1 pooka (vp->v_type != VBLK ||
190 1.1 pooka (vp->v_mount->mnt_flag & MNT_NODEVMTIME) == 0)) {
191 1.1 pooka int updflags = 0;
192 1.1 pooka
193 1.1 pooka if ((vp->v_mount->mnt_flag & MNT_NOATIME) == 0) {
194 1.1 pooka updflags = GOP_UPDATE_ACCESSED;
195 1.1 pooka }
196 1.35 uebayasi if (memwrite) {
197 1.1 pooka updflags |= GOP_UPDATE_MODIFIED;
198 1.1 pooka }
199 1.1 pooka if (updflags != 0) {
200 1.1 pooka GOP_MARKUPDATE(vp, updflags);
201 1.1 pooka }
202 1.1 pooka }
203 1.1 pooka
204 1.1 pooka /*
205 1.1 pooka * For PGO_LOCKED requests, just return whatever's in memory.
206 1.1 pooka */
207 1.1 pooka
208 1.1 pooka if (flags & PGO_LOCKED) {
209 1.1 pooka int nfound;
210 1.31 uebayasi struct vm_page *pg;
211 1.1 pooka
212 1.40 chs KASSERT(!glocked);
213 1.1 pooka npages = *ap->a_count;
214 1.1 pooka #if defined(DEBUG)
215 1.1 pooka for (i = 0; i < npages; i++) {
216 1.1 pooka pg = ap->a_m[i];
217 1.1 pooka KASSERT(pg == NULL || pg == PGO_DONTCARE);
218 1.1 pooka }
219 1.1 pooka #endif /* defined(DEBUG) */
220 1.1 pooka nfound = uvn_findpages(uobj, origoffset, &npages,
221 1.84 ad ap->a_m, NULL,
222 1.84 ad UFP_NOWAIT|UFP_NOALLOC|(memwrite ? UFP_NORDONLY : 0));
223 1.1 pooka KASSERT(npages == *ap->a_count);
224 1.1 pooka if (nfound == 0) {
225 1.1 pooka error = EBUSY;
226 1.1 pooka goto out_err;
227 1.1 pooka }
228 1.84 ad /*
229 1.84 ad * lock and unlock g_glock to ensure that no one is truncating
230 1.84 ad * the file behind us.
231 1.84 ad */
232 1.23 uebayasi if (!genfs_node_rdtrylock(vp)) {
233 1.1 pooka genfs_rel_pages(ap->a_m, npages);
234 1.1 pooka
235 1.1 pooka /*
236 1.1 pooka * restore the array.
237 1.1 pooka */
238 1.1 pooka
239 1.1 pooka for (i = 0; i < npages; i++) {
240 1.1 pooka pg = ap->a_m[i];
241 1.1 pooka
242 1.41 uebayasi if (pg != NULL && pg != PGO_DONTCARE) {
243 1.1 pooka ap->a_m[i] = NULL;
244 1.1 pooka }
245 1.46 uebayasi KASSERT(ap->a_m[i] == NULL ||
246 1.46 uebayasi ap->a_m[i] == PGO_DONTCARE);
247 1.1 pooka }
248 1.1 pooka } else {
249 1.23 uebayasi genfs_node_unlock(vp);
250 1.1 pooka }
251 1.1 pooka error = (ap->a_m[ap->a_centeridx] == NULL ? EBUSY : 0);
252 1.38 chs if (error == 0 && memwrite) {
253 1.84 ad for (i = 0; i < npages; i++) {
254 1.84 ad pg = ap->a_m[i];
255 1.84 ad if (pg == NULL || pg == PGO_DONTCARE) {
256 1.84 ad continue;
257 1.84 ad }
258 1.84 ad if (uvm_pagegetdirty(pg) ==
259 1.84 ad UVM_PAGE_STATUS_CLEAN) {
260 1.84 ad uvm_pagemarkdirty(pg,
261 1.84 ad UVM_PAGE_STATUS_UNKNOWN);
262 1.84 ad }
263 1.84 ad }
264 1.38 chs }
265 1.1 pooka goto out_err;
266 1.1 pooka }
267 1.86 ad rw_exit(uobj->vmobjlock);
268 1.1 pooka
269 1.1 pooka /*
270 1.1 pooka * find the requested pages and make some simple checks.
271 1.1 pooka * leave space in the page array for a whole block.
272 1.1 pooka */
273 1.1 pooka
274 1.27 uebayasi const int fs_bshift = (vp->v_type != VBLK) ?
275 1.27 uebayasi vp->v_mount->mnt_fs_bshift : DEV_BSHIFT;
276 1.27 uebayasi const int fs_bsize = 1 << fs_bshift;
277 1.30 uebayasi #define blk_mask (fs_bsize - 1)
278 1.30 uebayasi #define trunc_blk(x) ((x) & ~blk_mask)
279 1.30 uebayasi #define round_blk(x) (((x) + blk_mask) & ~blk_mask)
280 1.1 pooka
281 1.29 uebayasi const int orignmempages = MIN(orignpages,
282 1.1 pooka round_page(memeof - origoffset) >> PAGE_SHIFT);
283 1.29 uebayasi npages = orignmempages;
284 1.30 uebayasi const off_t startoffset = trunc_blk(origoffset);
285 1.30 uebayasi const off_t endoffset = MIN(
286 1.30 uebayasi round_page(round_blk(origoffset + (npages << PAGE_SHIFT))),
287 1.30 uebayasi round_page(memeof));
288 1.31 uebayasi const int ridx = (origoffset - startoffset) >> PAGE_SHIFT;
289 1.1 pooka
290 1.33 uebayasi const int pgs_size = sizeof(struct vm_page *) *
291 1.1 pooka ((endoffset - startoffset) >> PAGE_SHIFT);
292 1.33 uebayasi struct vm_page **pgs, *pgs_onstack[UBC_MAX_PAGES];
293 1.31 uebayasi
294 1.1 pooka if (pgs_size > sizeof(pgs_onstack)) {
295 1.1 pooka pgs = kmem_zalloc(pgs_size, async ? KM_NOSLEEP : KM_SLEEP);
296 1.1 pooka if (pgs == NULL) {
297 1.1 pooka pgs = pgs_onstack;
298 1.1 pooka error = ENOMEM;
299 1.32 uebayasi goto out_err;
300 1.1 pooka }
301 1.1 pooka } else {
302 1.14 christos pgs = pgs_onstack;
303 1.14 christos (void)memset(pgs, 0, pgs_size);
304 1.1 pooka }
305 1.14 christos
306 1.71 pgoyette UVMHIST_LOG(ubchist, "ridx %jd npages %jd startoff %jd endoff %jd",
307 1.1 pooka ridx, npages, startoffset, endoffset);
308 1.1 pooka
309 1.64 hannken if (trans_mount == NULL) {
310 1.64 hannken trans_mount = vp->v_mount;
311 1.69 hannken fstrans_start(trans_mount);
312 1.64 hannken /*
313 1.64 hannken * check if this vnode is still valid.
314 1.64 hannken */
315 1.64 hannken mutex_enter(vp->v_interlock);
316 1.64 hannken error = vdead_check(vp, 0);
317 1.64 hannken mutex_exit(vp->v_interlock);
318 1.64 hannken if (error)
319 1.64 hannken goto out_err_free;
320 1.42 hannken /*
321 1.42 hannken * XXX: This assumes that we come here only via
322 1.42 hannken * the mmio path
323 1.42 hannken */
324 1.73 jdolecek if (blockalloc && need_wapbl) {
325 1.64 hannken error = WAPBL_BEGIN(trans_mount);
326 1.64 hannken if (error)
327 1.42 hannken goto out_err_free;
328 1.64 hannken holds_wapbl = true;
329 1.42 hannken }
330 1.1 pooka }
331 1.1 pooka
332 1.1 pooka /*
333 1.1 pooka * hold g_glock to prevent a race with truncate.
334 1.1 pooka *
335 1.1 pooka * check if our idea of v_size is still valid.
336 1.1 pooka */
337 1.1 pooka
338 1.40 chs KASSERT(!glocked || genfs_node_wrlocked(vp));
339 1.40 chs if (!glocked) {
340 1.40 chs if (blockalloc) {
341 1.40 chs genfs_node_wrlock(vp);
342 1.40 chs } else {
343 1.40 chs genfs_node_rdlock(vp);
344 1.40 chs }
345 1.1 pooka }
346 1.86 ad rw_enter(uobj->vmobjlock, RW_WRITER);
347 1.1 pooka if (vp->v_size < origvsize) {
348 1.40 chs if (!glocked) {
349 1.40 chs genfs_node_unlock(vp);
350 1.40 chs }
351 1.1 pooka if (pgs != pgs_onstack)
352 1.1 pooka kmem_free(pgs, pgs_size);
353 1.1 pooka goto startover;
354 1.1 pooka }
355 1.1 pooka
356 1.84 ad if (uvn_findpages(uobj, origoffset, &npages, &pgs[ridx], NULL,
357 1.29 uebayasi async ? UFP_NOWAIT : UFP_ALL) != orignmempages) {
358 1.40 chs if (!glocked) {
359 1.40 chs genfs_node_unlock(vp);
360 1.40 chs }
361 1.1 pooka KASSERT(async != 0);
362 1.29 uebayasi genfs_rel_pages(&pgs[ridx], orignmempages);
363 1.86 ad rw_exit(uobj->vmobjlock);
364 1.1 pooka error = EBUSY;
365 1.33 uebayasi goto out_err_free;
366 1.1 pooka }
367 1.1 pooka
368 1.1 pooka /*
369 1.84 ad * if PGO_OVERWRITE is set, don't bother reading the pages.
370 1.84 ad */
371 1.84 ad
372 1.84 ad if (overwrite) {
373 1.84 ad if (!glocked) {
374 1.84 ad genfs_node_unlock(vp);
375 1.84 ad }
376 1.84 ad UVMHIST_LOG(ubchist, "PGO_OVERWRITE",0,0,0,0);
377 1.84 ad
378 1.84 ad for (i = 0; i < npages; i++) {
379 1.84 ad struct vm_page *pg = pgs[ridx + i];
380 1.84 ad
381 1.84 ad /*
382 1.84 ad * it's caller's responsibility to allocate blocks
383 1.84 ad * beforehand for the overwrite case.
384 1.84 ad */
385 1.84 ad
386 1.84 ad KASSERT((pg->flags & PG_RDONLY) == 0 || !blockalloc);
387 1.84 ad pg->flags &= ~PG_RDONLY;
388 1.84 ad
389 1.84 ad /*
390 1.84 ad * mark the page DIRTY.
391 1.84 ad * otherwise another thread can do putpages and pull
392 1.84 ad * our vnode from syncer's queue before our caller does
393 1.84 ad * ubc_release. note that putpages won't see CLEAN
394 1.84 ad * pages even if they are BUSY.
395 1.84 ad */
396 1.84 ad
397 1.84 ad uvm_pagemarkdirty(pg, UVM_PAGE_STATUS_DIRTY);
398 1.84 ad }
399 1.84 ad npages += ridx;
400 1.84 ad goto out;
401 1.84 ad }
402 1.84 ad
403 1.84 ad /*
404 1.1 pooka * if the pages are already resident, just return them.
405 1.1 pooka */
406 1.1 pooka
407 1.1 pooka for (i = 0; i < npages; i++) {
408 1.31 uebayasi struct vm_page *pg = pgs[ridx + i];
409 1.1 pooka
410 1.31 uebayasi if ((pg->flags & PG_FAKE) ||
411 1.84 ad (blockalloc && (pg->flags & PG_RDONLY) != 0)) {
412 1.1 pooka break;
413 1.1 pooka }
414 1.1 pooka }
415 1.1 pooka if (i == npages) {
416 1.40 chs if (!glocked) {
417 1.40 chs genfs_node_unlock(vp);
418 1.40 chs }
419 1.1 pooka UVMHIST_LOG(ubchist, "returning cached pages", 0,0,0,0);
420 1.1 pooka npages += ridx;
421 1.1 pooka goto out;
422 1.1 pooka }
423 1.1 pooka
424 1.1 pooka /*
425 1.1 pooka * the page wasn't resident and we're not overwriting,
426 1.1 pooka * so we're going to have to do some i/o.
427 1.1 pooka * find any additional pages needed to cover the expanded range.
428 1.1 pooka */
429 1.1 pooka
430 1.1 pooka npages = (endoffset - startoffset) >> PAGE_SHIFT;
431 1.29 uebayasi if (startoffset != origoffset || npages != orignmempages) {
432 1.31 uebayasi int npgs;
433 1.1 pooka
434 1.1 pooka /*
435 1.1 pooka * we need to avoid deadlocks caused by locking
436 1.1 pooka * additional pages at lower offsets than pages we
437 1.1 pooka * already have locked. unlock them all and start over.
438 1.1 pooka */
439 1.1 pooka
440 1.29 uebayasi genfs_rel_pages(&pgs[ridx], orignmempages);
441 1.1 pooka memset(pgs, 0, pgs_size);
442 1.1 pooka
443 1.71 pgoyette UVMHIST_LOG(ubchist, "reset npages start 0x%jx end 0x%jx",
444 1.1 pooka startoffset, endoffset, 0,0);
445 1.1 pooka npgs = npages;
446 1.84 ad if (uvn_findpages(uobj, startoffset, &npgs, pgs, NULL,
447 1.1 pooka async ? UFP_NOWAIT : UFP_ALL) != npages) {
448 1.40 chs if (!glocked) {
449 1.40 chs genfs_node_unlock(vp);
450 1.40 chs }
451 1.1 pooka KASSERT(async != 0);
452 1.1 pooka genfs_rel_pages(pgs, npages);
453 1.86 ad rw_exit(uobj->vmobjlock);
454 1.1 pooka error = EBUSY;
455 1.33 uebayasi goto out_err_free;
456 1.1 pooka }
457 1.1 pooka }
458 1.34 uebayasi
459 1.86 ad rw_exit(uobj->vmobjlock);
460 1.59 riastrad error = genfs_getpages_read(vp, pgs, npages, startoffset, diskeof,
461 1.59 riastrad async, memwrite, blockalloc, glocked);
462 1.59 riastrad if (!glocked) {
463 1.59 riastrad genfs_node_unlock(vp);
464 1.59 riastrad }
465 1.67 riastrad if (error == 0 && async)
466 1.67 riastrad goto out_err_free;
467 1.86 ad rw_enter(uobj->vmobjlock, RW_WRITER);
468 1.59 riastrad
469 1.59 riastrad /*
470 1.59 riastrad * we're almost done! release the pages...
471 1.59 riastrad * for errors, we free the pages.
472 1.59 riastrad * otherwise we activate them and mark them as valid and clean.
473 1.59 riastrad * also, unbusy pages that were not actually requested.
474 1.59 riastrad */
475 1.59 riastrad
476 1.59 riastrad if (error) {
477 1.59 riastrad genfs_rel_pages(pgs, npages);
478 1.86 ad rw_exit(uobj->vmobjlock);
479 1.71 pgoyette UVMHIST_LOG(ubchist, "returning error %jd", error,0,0,0);
480 1.59 riastrad goto out_err_free;
481 1.59 riastrad }
482 1.59 riastrad
483 1.59 riastrad out:
484 1.71 pgoyette UVMHIST_LOG(ubchist, "succeeding, npages %jd", npages,0,0,0);
485 1.59 riastrad error = 0;
486 1.59 riastrad for (i = 0; i < npages; i++) {
487 1.59 riastrad struct vm_page *pg = pgs[i];
488 1.59 riastrad if (pg == NULL) {
489 1.59 riastrad continue;
490 1.59 riastrad }
491 1.71 pgoyette UVMHIST_LOG(ubchist, "examining pg %#jx flags 0x%jx",
492 1.71 pgoyette (uintptr_t)pg, pg->flags, 0,0);
493 1.59 riastrad if (pg->flags & PG_FAKE && !overwrite) {
494 1.84 ad /*
495 1.84 ad * we've read page's contents from the backing storage.
496 1.84 ad *
497 1.84 ad * for a read fault, we keep them CLEAN; if we
498 1.84 ad * encountered a hole while reading, the pages can
499 1.84 ad * already been dirtied with zeros.
500 1.84 ad */
501 1.84 ad KASSERTMSG(blockalloc || uvm_pagegetdirty(pg) ==
502 1.84 ad UVM_PAGE_STATUS_CLEAN, "page %p not clean", pg);
503 1.84 ad pg->flags &= ~PG_FAKE;
504 1.59 riastrad }
505 1.59 riastrad KASSERT(!memwrite || !blockalloc || (pg->flags & PG_RDONLY) == 0);
506 1.59 riastrad if (i < ridx || i >= ridx + orignmempages || async) {
507 1.71 pgoyette UVMHIST_LOG(ubchist, "unbusy pg %#jx offset 0x%jx",
508 1.71 pgoyette (uintptr_t)pg, pg->offset,0,0);
509 1.59 riastrad if (pg->flags & PG_FAKE) {
510 1.59 riastrad KASSERT(overwrite);
511 1.59 riastrad uvm_pagezero(pg);
512 1.59 riastrad }
513 1.59 riastrad if (pg->flags & PG_RELEASED) {
514 1.59 riastrad uvm_pagefree(pg);
515 1.59 riastrad continue;
516 1.59 riastrad }
517 1.83 ad uvm_pagelock(pg);
518 1.59 riastrad uvm_pageenqueue(pg);
519 1.92 ad uvm_pageunbusy(pg);
520 1.83 ad uvm_pageunlock(pg);
521 1.92 ad pg->flags &= ~PG_FAKE;
522 1.59 riastrad UVM_PAGE_OWN(pg, NULL);
523 1.84 ad } else if (memwrite && !overwrite &&
524 1.84 ad uvm_pagegetdirty(pg) == UVM_PAGE_STATUS_CLEAN) {
525 1.84 ad /*
526 1.84 ad * for a write fault, start dirtiness tracking of
527 1.84 ad * requested pages.
528 1.84 ad */
529 1.84 ad uvm_pagemarkdirty(pg, UVM_PAGE_STATUS_UNKNOWN);
530 1.59 riastrad }
531 1.59 riastrad }
532 1.86 ad rw_exit(uobj->vmobjlock);
533 1.59 riastrad if (ap->a_m != NULL) {
534 1.59 riastrad memcpy(ap->a_m, &pgs[ridx],
535 1.59 riastrad orignmempages * sizeof(struct vm_page *));
536 1.59 riastrad }
537 1.1 pooka
538 1.59 riastrad out_err_free:
539 1.59 riastrad if (pgs != NULL && pgs != pgs_onstack)
540 1.59 riastrad kmem_free(pgs, pgs_size);
541 1.59 riastrad out_err:
542 1.64 hannken if (trans_mount != NULL) {
543 1.64 hannken if (holds_wapbl)
544 1.64 hannken WAPBL_END(trans_mount);
545 1.64 hannken fstrans_done(trans_mount);
546 1.59 riastrad }
547 1.59 riastrad return error;
548 1.59 riastrad }
549 1.59 riastrad
550 1.59 riastrad /*
551 1.59 riastrad * genfs_getpages_read: Read the pages in with VOP_BMAP/VOP_STRATEGY.
552 1.68 dholland *
553 1.68 dholland * "glocked" (which is currently not actually used) tells us not whether
554 1.68 dholland * the genfs_node is locked on entry (it always is) but whether it was
555 1.68 dholland * locked on entry to genfs_getpages.
556 1.59 riastrad */
557 1.59 riastrad static int
558 1.59 riastrad genfs_getpages_read(struct vnode *vp, struct vm_page **pgs, int npages,
559 1.59 riastrad off_t startoffset, off_t diskeof,
560 1.59 riastrad bool async, bool memwrite, bool blockalloc, bool glocked)
561 1.59 riastrad {
562 1.59 riastrad struct uvm_object * const uobj = &vp->v_uobj;
563 1.59 riastrad const int fs_bshift = (vp->v_type != VBLK) ?
564 1.59 riastrad vp->v_mount->mnt_fs_bshift : DEV_BSHIFT;
565 1.59 riastrad const int dev_bshift = (vp->v_type != VBLK) ?
566 1.59 riastrad vp->v_mount->mnt_dev_bshift : DEV_BSHIFT;
567 1.59 riastrad kauth_cred_t const cred = curlwp->l_cred; /* XXXUBC curlwp */
568 1.34 uebayasi size_t bytes, iobytes, tailstart, tailbytes, totalbytes, skipbytes;
569 1.34 uebayasi vaddr_t kva;
570 1.34 uebayasi struct buf *bp, *mbp;
571 1.34 uebayasi bool sawhole = false;
572 1.59 riastrad int i;
573 1.59 riastrad int error = 0;
574 1.34 uebayasi
575 1.60 skrll UVMHIST_FUNC(__func__); UVMHIST_CALLED(ubchist);
576 1.60 skrll
577 1.1 pooka /*
578 1.1 pooka * read the desired page(s).
579 1.1 pooka */
580 1.1 pooka
581 1.1 pooka totalbytes = npages << PAGE_SHIFT;
582 1.1 pooka bytes = MIN(totalbytes, MAX(diskeof - startoffset, 0));
583 1.1 pooka tailbytes = totalbytes - bytes;
584 1.1 pooka skipbytes = 0;
585 1.1 pooka
586 1.1 pooka kva = uvm_pagermapin(pgs, npages,
587 1.55 yamt UVMPAGER_MAPIN_READ | (async ? 0 : UVMPAGER_MAPIN_WAITOK));
588 1.59 riastrad if (kva == 0)
589 1.59 riastrad return EBUSY;
590 1.1 pooka
591 1.2 ad mbp = getiobuf(vp, true);
592 1.1 pooka mbp->b_bufsize = totalbytes;
593 1.1 pooka mbp->b_data = (void *)kva;
594 1.1 pooka mbp->b_resid = mbp->b_bcount = bytes;
595 1.89 ad mbp->b_cflags |= BC_BUSY;
596 1.2 ad if (async) {
597 1.2 ad mbp->b_flags = B_READ | B_ASYNC;
598 1.85 chs mbp->b_iodone = uvm_aio_aiodone;
599 1.2 ad } else {
600 1.2 ad mbp->b_flags = B_READ;
601 1.2 ad mbp->b_iodone = NULL;
602 1.43 uebayasi }
603 1.1 pooka if (async)
604 1.1 pooka BIO_SETPRIO(mbp, BPRIO_TIMELIMITED);
605 1.1 pooka else
606 1.1 pooka BIO_SETPRIO(mbp, BPRIO_TIMECRITICAL);
607 1.1 pooka
608 1.1 pooka /*
609 1.1 pooka * if EOF is in the middle of the range, zero the part past EOF.
610 1.1 pooka * skip over pages which are not PG_FAKE since in that case they have
611 1.1 pooka * valid data that we need to preserve.
612 1.1 pooka */
613 1.1 pooka
614 1.1 pooka tailstart = bytes;
615 1.1 pooka while (tailbytes > 0) {
616 1.1 pooka const int len = PAGE_SIZE - (tailstart & PAGE_MASK);
617 1.1 pooka
618 1.1 pooka KASSERT(len <= tailbytes);
619 1.1 pooka if ((pgs[tailstart >> PAGE_SHIFT]->flags & PG_FAKE) != 0) {
620 1.1 pooka memset((void *)(kva + tailstart), 0, len);
621 1.71 pgoyette UVMHIST_LOG(ubchist, "tailbytes %#jx 0x%jx 0x%jx",
622 1.71 pgoyette (uintptr_t)kva, tailstart, len, 0);
623 1.1 pooka }
624 1.1 pooka tailstart += len;
625 1.1 pooka tailbytes -= len;
626 1.1 pooka }
627 1.1 pooka
628 1.1 pooka /*
629 1.1 pooka * now loop over the pages, reading as needed.
630 1.1 pooka */
631 1.1 pooka
632 1.1 pooka bp = NULL;
633 1.28 uebayasi off_t offset;
634 1.28 uebayasi for (offset = startoffset;
635 1.1 pooka bytes > 0;
636 1.1 pooka offset += iobytes, bytes -= iobytes) {
637 1.30 uebayasi int run;
638 1.25 uebayasi daddr_t lbn, blkno;
639 1.24 uebayasi int pidx;
640 1.26 uebayasi struct vnode *devvp;
641 1.1 pooka
642 1.1 pooka /*
643 1.1 pooka * skip pages which don't need to be read.
644 1.1 pooka */
645 1.1 pooka
646 1.1 pooka pidx = (offset - startoffset) >> PAGE_SHIFT;
647 1.1 pooka while ((pgs[pidx]->flags & PG_FAKE) == 0) {
648 1.1 pooka size_t b;
649 1.1 pooka
650 1.1 pooka KASSERT((offset & (PAGE_SIZE - 1)) == 0);
651 1.1 pooka if ((pgs[pidx]->flags & PG_RDONLY)) {
652 1.1 pooka sawhole = true;
653 1.1 pooka }
654 1.1 pooka b = MIN(PAGE_SIZE, bytes);
655 1.1 pooka offset += b;
656 1.1 pooka bytes -= b;
657 1.1 pooka skipbytes += b;
658 1.1 pooka pidx++;
659 1.71 pgoyette UVMHIST_LOG(ubchist, "skipping, new offset 0x%jx",
660 1.1 pooka offset, 0,0,0);
661 1.1 pooka if (bytes == 0) {
662 1.1 pooka goto loopdone;
663 1.1 pooka }
664 1.1 pooka }
665 1.1 pooka
666 1.1 pooka /*
667 1.1 pooka * bmap the file to find out the blkno to read from and
668 1.1 pooka * how much we can read in one i/o. if bmap returns an error,
669 1.1 pooka * skip the rest of the top-level i/o.
670 1.1 pooka */
671 1.1 pooka
672 1.1 pooka lbn = offset >> fs_bshift;
673 1.1 pooka error = VOP_BMAP(vp, lbn, &devvp, &blkno, &run);
674 1.1 pooka if (error) {
675 1.71 pgoyette UVMHIST_LOG(ubchist, "VOP_BMAP lbn 0x%jx -> %jd\n",
676 1.36 uebayasi lbn,error,0,0);
677 1.1 pooka skipbytes += bytes;
678 1.36 uebayasi bytes = 0;
679 1.1 pooka goto loopdone;
680 1.1 pooka }
681 1.1 pooka
682 1.1 pooka /*
683 1.1 pooka * see how many pages can be read with this i/o.
684 1.1 pooka * reduce the i/o size if necessary to avoid
685 1.1 pooka * overwriting pages with valid data.
686 1.1 pooka */
687 1.1 pooka
688 1.1 pooka iobytes = MIN((((off_t)lbn + 1 + run) << fs_bshift) - offset,
689 1.1 pooka bytes);
690 1.1 pooka if (offset + iobytes > round_page(offset)) {
691 1.24 uebayasi int pcount;
692 1.24 uebayasi
693 1.1 pooka pcount = 1;
694 1.1 pooka while (pidx + pcount < npages &&
695 1.1 pooka pgs[pidx + pcount]->flags & PG_FAKE) {
696 1.1 pooka pcount++;
697 1.1 pooka }
698 1.1 pooka iobytes = MIN(iobytes, (pcount << PAGE_SHIFT) -
699 1.1 pooka (offset - trunc_page(offset)));
700 1.1 pooka }
701 1.1 pooka
702 1.1 pooka /*
703 1.1 pooka * if this block isn't allocated, zero it instead of
704 1.1 pooka * reading it. unless we are going to allocate blocks,
705 1.1 pooka * mark the pages we zeroed PG_RDONLY.
706 1.1 pooka */
707 1.1 pooka
708 1.36 uebayasi if (blkno == (daddr_t)-1) {
709 1.1 pooka int holepages = (round_page(offset + iobytes) -
710 1.1 pooka trunc_page(offset)) >> PAGE_SHIFT;
711 1.71 pgoyette UVMHIST_LOG(ubchist, "lbn 0x%jx -> HOLE", lbn,0,0,0);
712 1.1 pooka
713 1.1 pooka sawhole = true;
714 1.1 pooka memset((char *)kva + (offset - startoffset), 0,
715 1.1 pooka iobytes);
716 1.1 pooka skipbytes += iobytes;
717 1.1 pooka
718 1.84 ad if (!blockalloc) {
719 1.86 ad rw_enter(uobj->vmobjlock, RW_WRITER);
720 1.84 ad for (i = 0; i < holepages; i++) {
721 1.1 pooka pgs[pidx + i]->flags |= PG_RDONLY;
722 1.1 pooka }
723 1.86 ad rw_exit(uobj->vmobjlock);
724 1.1 pooka }
725 1.1 pooka continue;
726 1.1 pooka }
727 1.1 pooka
728 1.1 pooka /*
729 1.1 pooka * allocate a sub-buf for this piece of the i/o
730 1.1 pooka * (or just use mbp if there's only 1 piece),
731 1.1 pooka * and start it going.
732 1.1 pooka */
733 1.1 pooka
734 1.1 pooka if (offset == startoffset && iobytes == bytes) {
735 1.1 pooka bp = mbp;
736 1.1 pooka } else {
737 1.71 pgoyette UVMHIST_LOG(ubchist, "vp %#jx bp %#jx num now %jd",
738 1.71 pgoyette (uintptr_t)vp, (uintptr_t)bp, vp->v_numoutput, 0);
739 1.2 ad bp = getiobuf(vp, true);
740 1.1 pooka nestiobuf_setup(mbp, bp, offset - startoffset, iobytes);
741 1.1 pooka }
742 1.1 pooka bp->b_lblkno = 0;
743 1.1 pooka
744 1.1 pooka /* adjust physical blkno for partial blocks */
745 1.1 pooka bp->b_blkno = blkno + ((offset - ((off_t)lbn << fs_bshift)) >>
746 1.1 pooka dev_bshift);
747 1.1 pooka
748 1.1 pooka UVMHIST_LOG(ubchist,
749 1.71 pgoyette "bp %#jx offset 0x%x bcount 0x%x blkno 0x%x",
750 1.71 pgoyette (uintptr_t)bp, offset, bp->b_bcount, bp->b_blkno);
751 1.1 pooka
752 1.1 pooka VOP_STRATEGY(devvp, bp);
753 1.1 pooka }
754 1.1 pooka
755 1.1 pooka loopdone:
756 1.1 pooka nestiobuf_done(mbp, skipbytes, error);
757 1.1 pooka if (async) {
758 1.1 pooka UVMHIST_LOG(ubchist, "returning 0 (async)",0,0,0,0);
759 1.59 riastrad return 0;
760 1.1 pooka }
761 1.1 pooka if (bp != NULL) {
762 1.1 pooka error = biowait(mbp);
763 1.1 pooka }
764 1.1 pooka
765 1.19 rmind /* Remove the mapping (make KVA available as soon as possible) */
766 1.19 rmind uvm_pagermapout(kva, npages);
767 1.19 rmind
768 1.1 pooka /*
769 1.1 pooka * if this we encountered a hole then we have to do a little more work.
770 1.1 pooka * for read faults, we marked the page PG_RDONLY so that future
771 1.1 pooka * write accesses to the page will fault again.
772 1.1 pooka * for write faults, we must make sure that the backing store for
773 1.1 pooka * the page is completely allocated while the pages are locked.
774 1.1 pooka */
775 1.1 pooka
776 1.1 pooka if (!error && sawhole && blockalloc) {
777 1.42 hannken error = GOP_ALLOC(vp, startoffset,
778 1.42 hannken npages << PAGE_SHIFT, 0, cred);
779 1.71 pgoyette UVMHIST_LOG(ubchist, "gop_alloc off 0x%jx/0x%jx -> %jd",
780 1.1 pooka startoffset, npages << PAGE_SHIFT, error,0);
781 1.1 pooka if (!error) {
782 1.86 ad rw_enter(uobj->vmobjlock, RW_WRITER);
783 1.1 pooka for (i = 0; i < npages; i++) {
784 1.31 uebayasi struct vm_page *pg = pgs[i];
785 1.31 uebayasi
786 1.31 uebayasi if (pg == NULL) {
787 1.1 pooka continue;
788 1.1 pooka }
789 1.84 ad pg->flags &= ~PG_RDONLY;
790 1.84 ad uvm_pagemarkdirty(pg, UVM_PAGE_STATUS_DIRTY);
791 1.71 pgoyette UVMHIST_LOG(ubchist, "mark dirty pg %#jx",
792 1.71 pgoyette (uintptr_t)pg, 0, 0, 0);
793 1.1 pooka }
794 1.86 ad rw_exit(uobj->vmobjlock);
795 1.1 pooka }
796 1.1 pooka }
797 1.18 rmind
798 1.18 rmind putiobuf(mbp);
799 1.38 chs return error;
800 1.1 pooka }
801 1.1 pooka
802 1.1 pooka /*
803 1.1 pooka * generic VM putpages routine.
804 1.1 pooka * Write the given range of pages to backing store.
805 1.1 pooka *
806 1.1 pooka * => "offhi == 0" means flush all pages at or after "offlo".
807 1.1 pooka * => object should be locked by caller. we return with the
808 1.1 pooka * object unlocked.
809 1.1 pooka * => if PGO_CLEANIT or PGO_SYNCIO is set, we may block (due to I/O).
810 1.1 pooka * thus, a caller might want to unlock higher level resources
811 1.1 pooka * (e.g. vm_map) before calling flush.
812 1.1 pooka * => if neither PGO_CLEANIT nor PGO_SYNCIO is set, we will not block
813 1.1 pooka * => if PGO_ALLPAGES is set, then all pages in the object will be processed.
814 1.1 pooka *
815 1.1 pooka * note on "cleaning" object and PG_BUSY pages:
816 1.1 pooka * this routine is holding the lock on the object. the only time
817 1.1 pooka * that it can run into a PG_BUSY page that it does not own is if
818 1.1 pooka * some other process has started I/O on the page (e.g. either
819 1.84 ad * a pagein, or a pageout). if the PG_BUSY page is being paged
820 1.84 ad * in, then it can not be dirty (!UVM_PAGE_STATUS_CLEAN) because no
821 1.84 ad * one has had a chance to modify it yet. if the PG_BUSY page is
822 1.84 ad * being paged out then it means that someone else has already started
823 1.84 ad * cleaning the page for us (how nice!). in this case, if we
824 1.1 pooka * have syncio specified, then after we make our pass through the
825 1.1 pooka * object we need to wait for the other PG_BUSY pages to clear
826 1.1 pooka * off (i.e. we need to do an iosync). also note that once a
827 1.1 pooka * page is PG_BUSY it must stay in its object until it is un-busyed.
828 1.1 pooka */
829 1.1 pooka
830 1.1 pooka int
831 1.1 pooka genfs_putpages(void *v)
832 1.1 pooka {
833 1.1 pooka struct vop_putpages_args /* {
834 1.1 pooka struct vnode *a_vp;
835 1.1 pooka voff_t a_offlo;
836 1.1 pooka voff_t a_offhi;
837 1.1 pooka int a_flags;
838 1.22 uebayasi } */ * const ap = v;
839 1.1 pooka
840 1.1 pooka return genfs_do_putpages(ap->a_vp, ap->a_offlo, ap->a_offhi,
841 1.1 pooka ap->a_flags, NULL);
842 1.1 pooka }
843 1.1 pooka
844 1.1 pooka int
845 1.4 yamt genfs_do_putpages(struct vnode *vp, off_t startoff, off_t endoff,
846 1.4 yamt int origflags, struct vm_page **busypg)
847 1.1 pooka {
848 1.22 uebayasi struct uvm_object * const uobj = &vp->v_uobj;
849 1.86 ad krwlock_t * const slock = uobj->vmobjlock;
850 1.78 ad off_t nextoff;
851 1.2 ad int i, error, npages, nback;
852 1.1 pooka int freeflag;
853 1.63 christos /*
854 1.63 christos * This array is larger than it should so that it's size is constant.
855 1.63 christos * The right size is MAXPAGES.
856 1.63 christos */
857 1.63 christos struct vm_page *pgs[MAXPHYS / MIN_PAGE_SIZE];
858 1.63 christos #define MAXPAGES (MAXPHYS / PAGE_SIZE)
859 1.78 ad struct vm_page *pg, *tpg;
860 1.78 ad struct uvm_page_array a;
861 1.78 ad bool wasclean, needs_clean;
862 1.4 yamt bool async = (origflags & PGO_SYNCIO) == 0;
863 1.1 pooka bool pagedaemon = curlwp == uvm.pagedaemon_lwp;
864 1.65 hannken struct mount *trans_mp;
865 1.4 yamt int flags;
866 1.84 ad bool modified; /* if we write out any pages */
867 1.65 hannken bool holds_wapbl;
868 1.84 ad bool cleanall; /* try to pull off from the syncer's list */
869 1.4 yamt bool onworklst;
870 1.86 ad bool nodirty;
871 1.84 ad const bool dirtyonly = (origflags & (PGO_DEACTIVATE|PGO_FREE)) == 0;
872 1.1 pooka
873 1.1 pooka UVMHIST_FUNC("genfs_putpages"); UVMHIST_CALLED(ubchist);
874 1.1 pooka
875 1.4 yamt KASSERT(origflags & (PGO_CLEANIT|PGO_FREE|PGO_DEACTIVATE));
876 1.1 pooka KASSERT((startoff & PAGE_MASK) == 0 && (endoff & PAGE_MASK) == 0);
877 1.1 pooka KASSERT(startoff < endoff || endoff == 0);
878 1.86 ad KASSERT(rw_write_held(slock));
879 1.1 pooka
880 1.71 pgoyette UVMHIST_LOG(ubchist, "vp %#jx pages %jd off 0x%jx len 0x%jx",
881 1.71 pgoyette (uintptr_t)vp, uobj->uo_npages, startoff, endoff - startoff);
882 1.1 pooka
883 1.74 jdolecek #ifdef DIAGNOSTIC
884 1.74 jdolecek if ((origflags & PGO_JOURNALLOCKED) && vp->v_mount->mnt_wapbl)
885 1.74 jdolecek WAPBL_JLOCK_ASSERT(vp->v_mount);
886 1.74 jdolecek #endif
887 1.74 jdolecek
888 1.65 hannken trans_mp = NULL;
889 1.65 hannken holds_wapbl = false;
890 1.6 hannken
891 1.4 yamt retry:
892 1.4 yamt modified = false;
893 1.4 yamt flags = origflags;
894 1.84 ad
895 1.84 ad /*
896 1.84 ad * shortcut if we have no pages to process.
897 1.84 ad */
898 1.84 ad
899 1.86 ad nodirty = radix_tree_empty_tagged_tree_p(&uobj->uo_pages,
900 1.86 ad UVM_PAGE_DIRTY_TAG);
901 1.93 ad #ifdef DIAGNOSTIC
902 1.93 ad mutex_enter(vp->v_interlock);
903 1.93 ad KASSERT((vp->v_iflag & VI_ONWORKLST) != 0 || nodirty);
904 1.93 ad mutex_exit(vp->v_interlock);
905 1.93 ad #endif
906 1.86 ad if (uobj->uo_npages == 0 || (dirtyonly && nodirty)) {
907 1.86 ad mutex_enter(vp->v_interlock);
908 1.1 pooka if (vp->v_iflag & VI_ONWORKLST) {
909 1.1 pooka if (LIST_FIRST(&vp->v_dirtyblkhd) == NULL)
910 1.1 pooka vn_syncer_remove_from_worklist(vp);
911 1.1 pooka }
912 1.86 ad mutex_exit(vp->v_interlock);
913 1.65 hannken if (trans_mp) {
914 1.65 hannken if (holds_wapbl)
915 1.65 hannken WAPBL_END(trans_mp);
916 1.65 hannken fstrans_done(trans_mp);
917 1.12 hannken }
918 1.86 ad rw_exit(slock);
919 1.1 pooka return (0);
920 1.1 pooka }
921 1.1 pooka
922 1.1 pooka /*
923 1.1 pooka * the vnode has pages, set up to process the request.
924 1.1 pooka */
925 1.1 pooka
926 1.65 hannken if (trans_mp == NULL && (flags & PGO_CLEANIT) != 0) {
927 1.1 pooka if (pagedaemon) {
928 1.65 hannken /* Pagedaemon must not sleep here. */
929 1.65 hannken trans_mp = vp->v_mount;
930 1.69 hannken error = fstrans_start_nowait(trans_mp);
931 1.12 hannken if (error) {
932 1.86 ad rw_exit(slock);
933 1.12 hannken return error;
934 1.12 hannken }
935 1.65 hannken } else {
936 1.65 hannken /*
937 1.65 hannken * Cannot use vdeadcheck() here as this operation
938 1.65 hannken * usually gets used from VOP_RECLAIM(). Test for
939 1.65 hannken * change of v_mount instead and retry on change.
940 1.65 hannken */
941 1.86 ad rw_exit(slock);
942 1.65 hannken trans_mp = vp->v_mount;
943 1.69 hannken fstrans_start(trans_mp);
944 1.65 hannken if (vp->v_mount != trans_mp) {
945 1.65 hannken fstrans_done(trans_mp);
946 1.65 hannken trans_mp = NULL;
947 1.65 hannken } else {
948 1.65 hannken holds_wapbl = (trans_mp->mnt_wapbl &&
949 1.65 hannken (origflags & PGO_JOURNALLOCKED) == 0);
950 1.65 hannken if (holds_wapbl) {
951 1.65 hannken error = WAPBL_BEGIN(trans_mp);
952 1.65 hannken if (error) {
953 1.65 hannken fstrans_done(trans_mp);
954 1.65 hannken return error;
955 1.65 hannken }
956 1.65 hannken }
957 1.65 hannken }
958 1.86 ad rw_enter(slock, RW_WRITER);
959 1.65 hannken goto retry;
960 1.12 hannken }
961 1.1 pooka }
962 1.1 pooka
963 1.1 pooka error = 0;
964 1.86 ad wasclean = radix_tree_empty_tagged_tree_p(&uobj->uo_pages,
965 1.86 ad UVM_PAGE_WRITEBACK_TAG);
966 1.78 ad nextoff = startoff;
967 1.1 pooka if (endoff == 0 || flags & PGO_ALLPAGES) {
968 1.1 pooka endoff = trunc_page(LLONG_MAX);
969 1.1 pooka }
970 1.1 pooka
971 1.1 pooka /*
972 1.1 pooka * if this vnode is known not to have dirty pages,
973 1.1 pooka * don't bother to clean it out.
974 1.1 pooka */
975 1.1 pooka
976 1.86 ad if (nodirty) {
977 1.48 matt #if !defined(DEBUG)
978 1.84 ad if (dirtyonly) {
979 1.1 pooka goto skip_scan;
980 1.1 pooka }
981 1.48 matt #endif /* !defined(DEBUG) */
982 1.1 pooka flags &= ~PGO_CLEANIT;
983 1.1 pooka }
984 1.1 pooka
985 1.1 pooka /*
986 1.78 ad * start the loop to scan pages.
987 1.1 pooka */
988 1.1 pooka
989 1.84 ad cleanall = true;
990 1.1 pooka freeflag = pagedaemon ? PG_PAGEOUT : PG_RELEASED;
991 1.78 ad uvm_page_array_init(&a);
992 1.78 ad for (;;) {
993 1.84 ad bool pgprotected;
994 1.84 ad
995 1.78 ad /*
996 1.84 ad * if !dirtyonly, iterate over all resident pages in the range.
997 1.84 ad *
998 1.84 ad * if dirtyonly, only possibly dirty pages are interesting.
999 1.84 ad * however, if we are asked to sync for integrity, we should
1000 1.84 ad * wait on pages being written back by other threads as well.
1001 1.78 ad */
1002 1.78 ad
1003 1.84 ad pg = uvm_page_array_fill_and_peek(&a, uobj, nextoff, 0,
1004 1.84 ad dirtyonly ? (UVM_PAGE_ARRAY_FILL_DIRTY |
1005 1.84 ad (!async ? UVM_PAGE_ARRAY_FILL_WRITEBACK : 0)) : 0);
1006 1.78 ad if (pg == NULL) {
1007 1.78 ad break;
1008 1.78 ad }
1009 1.78 ad
1010 1.78 ad KASSERT(pg->uobject == uobj);
1011 1.78 ad KASSERT((pg->flags & (PG_RELEASED|PG_PAGEOUT)) == 0 ||
1012 1.78 ad (pg->flags & (PG_BUSY)) != 0);
1013 1.78 ad KASSERT(pg->offset >= startoff);
1014 1.78 ad KASSERT(pg->offset >= nextoff);
1015 1.84 ad KASSERT(!dirtyonly ||
1016 1.84 ad uvm_pagegetdirty(pg) != UVM_PAGE_STATUS_CLEAN ||
1017 1.84 ad radix_tree_get_tag(&uobj->uo_pages,
1018 1.84 ad pg->offset >> PAGE_SHIFT, UVM_PAGE_WRITEBACK_TAG));
1019 1.78 ad
1020 1.78 ad if (pg->offset >= endoff) {
1021 1.78 ad break;
1022 1.78 ad }
1023 1.78 ad
1024 1.1 pooka /*
1025 1.78 ad * a preempt point.
1026 1.1 pooka */
1027 1.1 pooka
1028 1.90 ad if (preempt_needed()) {
1029 1.78 ad nextoff = pg->offset; /* visit this page again */
1030 1.86 ad rw_exit(slock);
1031 1.78 ad preempt();
1032 1.78 ad /*
1033 1.78 ad * as we dropped the object lock, our cached pages can
1034 1.78 ad * be stale.
1035 1.78 ad */
1036 1.78 ad uvm_page_array_clear(&a);
1037 1.86 ad rw_enter(slock, RW_WRITER);
1038 1.1 pooka continue;
1039 1.1 pooka }
1040 1.1 pooka
1041 1.1 pooka /*
1042 1.84 ad * if the current page is busy, wait for it to become unbusy.
1043 1.1 pooka */
1044 1.1 pooka
1045 1.84 ad if ((pg->flags & PG_BUSY) != 0) {
1046 1.71 pgoyette UVMHIST_LOG(ubchist, "busy %#jx", (uintptr_t)pg,
1047 1.71 pgoyette 0, 0, 0);
1048 1.84 ad if ((pg->flags & (PG_RELEASED|PG_PAGEOUT)) != 0
1049 1.84 ad && (flags & PGO_BUSYFAIL) != 0) {
1050 1.71 pgoyette UVMHIST_LOG(ubchist, "busyfail %#jx",
1051 1.71 pgoyette (uintptr_t)pg, 0, 0, 0);
1052 1.1 pooka error = EDEADLK;
1053 1.1 pooka if (busypg != NULL)
1054 1.1 pooka *busypg = pg;
1055 1.1 pooka break;
1056 1.1 pooka }
1057 1.1 pooka if (pagedaemon) {
1058 1.1 pooka /*
1059 1.1 pooka * someone has taken the page while we
1060 1.1 pooka * dropped the lock for fstrans_start.
1061 1.1 pooka */
1062 1.1 pooka break;
1063 1.1 pooka }
1064 1.84 ad /*
1065 1.84 ad * don't bother to wait on other's activities
1066 1.84 ad * unless we are asked to sync for integrity.
1067 1.84 ad */
1068 1.84 ad if (!async && (flags & PGO_RECLAIM) == 0) {
1069 1.84 ad wasclean = false;
1070 1.84 ad nextoff = pg->offset + PAGE_SIZE;
1071 1.84 ad uvm_page_array_advance(&a);
1072 1.84 ad continue;
1073 1.84 ad }
1074 1.78 ad nextoff = pg->offset; /* visit this page again */
1075 1.92 ad uvm_pagewait(pg, slock, "genput");
1076 1.78 ad /*
1077 1.78 ad * as we dropped the object lock, our cached pages can
1078 1.78 ad * be stale.
1079 1.78 ad */
1080 1.78 ad uvm_page_array_clear(&a);
1081 1.86 ad rw_enter(slock, RW_WRITER);
1082 1.1 pooka continue;
1083 1.1 pooka }
1084 1.1 pooka
1085 1.78 ad nextoff = pg->offset + PAGE_SIZE;
1086 1.78 ad uvm_page_array_advance(&a);
1087 1.78 ad
1088 1.1 pooka /*
1089 1.1 pooka * if we're freeing, remove all mappings of the page now.
1090 1.1 pooka * if we're cleaning, check if the page is needs to be cleaned.
1091 1.1 pooka */
1092 1.1 pooka
1093 1.84 ad pgprotected = false;
1094 1.1 pooka if (flags & PGO_FREE) {
1095 1.1 pooka pmap_page_protect(pg, VM_PROT_NONE);
1096 1.84 ad pgprotected = true;
1097 1.1 pooka } else if (flags & PGO_CLEANIT) {
1098 1.1 pooka
1099 1.1 pooka /*
1100 1.1 pooka * if we still have some hope to pull this vnode off
1101 1.1 pooka * from the syncer queue, write-protect the page.
1102 1.1 pooka */
1103 1.1 pooka
1104 1.84 ad if (cleanall && wasclean) {
1105 1.1 pooka
1106 1.1 pooka /*
1107 1.1 pooka * uobj pages get wired only by uvm_fault
1108 1.1 pooka * where uobj is locked.
1109 1.1 pooka */
1110 1.1 pooka
1111 1.1 pooka if (pg->wire_count == 0) {
1112 1.1 pooka pmap_page_protect(pg,
1113 1.1 pooka VM_PROT_READ|VM_PROT_EXECUTE);
1114 1.84 ad pgprotected = true;
1115 1.1 pooka } else {
1116 1.1 pooka cleanall = false;
1117 1.1 pooka }
1118 1.1 pooka }
1119 1.1 pooka }
1120 1.1 pooka
1121 1.1 pooka if (flags & PGO_CLEANIT) {
1122 1.84 ad needs_clean = uvm_pagecheckdirty(pg, pgprotected);
1123 1.1 pooka } else {
1124 1.1 pooka needs_clean = false;
1125 1.1 pooka }
1126 1.1 pooka
1127 1.1 pooka /*
1128 1.1 pooka * if we're cleaning, build a cluster.
1129 1.84 ad * the cluster will consist of pages which are currently dirty.
1130 1.1 pooka * if not cleaning, just operate on the one page.
1131 1.1 pooka */
1132 1.1 pooka
1133 1.1 pooka if (needs_clean) {
1134 1.1 pooka wasclean = false;
1135 1.1 pooka memset(pgs, 0, sizeof(pgs));
1136 1.1 pooka pg->flags |= PG_BUSY;
1137 1.1 pooka UVM_PAGE_OWN(pg, "genfs_putpages");
1138 1.1 pooka
1139 1.1 pooka /*
1140 1.72 chs * let the fs constrain the offset range of the cluster.
1141 1.72 chs * we additionally constrain the range here such that
1142 1.72 chs * it fits in the "pgs" pages array.
1143 1.72 chs */
1144 1.72 chs
1145 1.78 ad off_t fslo, fshi, genlo, lo, off = pg->offset;
1146 1.72 chs GOP_PUTRANGE(vp, off, &fslo, &fshi);
1147 1.72 chs KASSERT(fslo == trunc_page(fslo));
1148 1.72 chs KASSERT(fslo <= off);
1149 1.72 chs KASSERT(fshi == trunc_page(fshi));
1150 1.72 chs KASSERT(fshi == 0 || off < fshi);
1151 1.72 chs
1152 1.72 chs if (off > MAXPHYS / 2)
1153 1.72 chs genlo = trunc_page(off - (MAXPHYS / 2));
1154 1.72 chs else
1155 1.72 chs genlo = 0;
1156 1.72 chs lo = MAX(fslo, genlo);
1157 1.72 chs
1158 1.72 chs /*
1159 1.1 pooka * first look backward.
1160 1.1 pooka */
1161 1.1 pooka
1162 1.72 chs npages = (off - lo) >> PAGE_SHIFT;
1163 1.1 pooka nback = npages;
1164 1.84 ad uvn_findpages(uobj, off - PAGE_SIZE, &nback,
1165 1.84 ad &pgs[0], NULL,
1166 1.1 pooka UFP_NOWAIT|UFP_NOALLOC|UFP_DIRTYONLY|UFP_BACKWARD);
1167 1.1 pooka if (nback) {
1168 1.1 pooka memmove(&pgs[0], &pgs[npages - nback],
1169 1.1 pooka nback * sizeof(pgs[0]));
1170 1.1 pooka if (npages - nback < nback)
1171 1.1 pooka memset(&pgs[nback], 0,
1172 1.1 pooka (npages - nback) * sizeof(pgs[0]));
1173 1.1 pooka else
1174 1.1 pooka memset(&pgs[npages - nback], 0,
1175 1.1 pooka nback * sizeof(pgs[0]));
1176 1.1 pooka }
1177 1.1 pooka
1178 1.1 pooka /*
1179 1.1 pooka * then plug in our page of interest.
1180 1.1 pooka */
1181 1.1 pooka
1182 1.1 pooka pgs[nback] = pg;
1183 1.1 pooka
1184 1.1 pooka /*
1185 1.1 pooka * then look forward to fill in the remaining space in
1186 1.1 pooka * the array of pages.
1187 1.84 ad *
1188 1.84 ad * pass our cached array of pages so that hopefully
1189 1.84 ad * uvn_findpages can find some good pages in it.
1190 1.84 ad * the array a was filled above with the one of
1191 1.84 ad * following sets of flags:
1192 1.84 ad * 0
1193 1.84 ad * UVM_PAGE_ARRAY_FILL_DIRTY
1194 1.84 ad * UVM_PAGE_ARRAY_FILL_DIRTY|WRITEBACK
1195 1.1 pooka */
1196 1.1 pooka
1197 1.62 christos npages = MAXPAGES - nback - 1;
1198 1.72 chs if (fshi)
1199 1.72 chs npages = MIN(npages,
1200 1.72 chs (fshi - off - 1) >> PAGE_SHIFT);
1201 1.1 pooka uvn_findpages(uobj, off + PAGE_SIZE, &npages,
1202 1.84 ad &pgs[nback + 1], NULL,
1203 1.1 pooka UFP_NOWAIT|UFP_NOALLOC|UFP_DIRTYONLY);
1204 1.1 pooka npages += nback + 1;
1205 1.1 pooka } else {
1206 1.1 pooka pgs[0] = pg;
1207 1.1 pooka npages = 1;
1208 1.1 pooka nback = 0;
1209 1.1 pooka }
1210 1.1 pooka
1211 1.1 pooka /*
1212 1.1 pooka * apply FREE or DEACTIVATE options if requested.
1213 1.1 pooka */
1214 1.1 pooka
1215 1.1 pooka for (i = 0; i < npages; i++) {
1216 1.1 pooka tpg = pgs[i];
1217 1.1 pooka KASSERT(tpg->uobject == uobj);
1218 1.84 ad KASSERT(i == 0 ||
1219 1.84 ad pgs[i-1]->offset + PAGE_SIZE == tpg->offset);
1220 1.84 ad KASSERT(!needs_clean || uvm_pagegetdirty(pgs[i]) !=
1221 1.84 ad UVM_PAGE_STATUS_DIRTY);
1222 1.84 ad if (needs_clean) {
1223 1.84 ad /*
1224 1.84 ad * mark pages as WRITEBACK so that concurrent
1225 1.84 ad * fsync can find and wait for our activities.
1226 1.84 ad */
1227 1.84 ad radix_tree_set_tag(&uobj->uo_pages,
1228 1.84 ad pgs[i]->offset >> PAGE_SHIFT,
1229 1.84 ad UVM_PAGE_WRITEBACK_TAG);
1230 1.84 ad }
1231 1.1 pooka if (tpg->offset < startoff || tpg->offset >= endoff)
1232 1.1 pooka continue;
1233 1.1 pooka if (flags & PGO_DEACTIVATE && tpg->wire_count == 0) {
1234 1.83 ad uvm_pagelock(tpg);
1235 1.1 pooka uvm_pagedeactivate(tpg);
1236 1.83 ad uvm_pageunlock(tpg);
1237 1.1 pooka } else if (flags & PGO_FREE) {
1238 1.1 pooka pmap_page_protect(tpg, VM_PROT_NONE);
1239 1.1 pooka if (tpg->flags & PG_BUSY) {
1240 1.1 pooka tpg->flags |= freeflag;
1241 1.1 pooka if (pagedaemon) {
1242 1.2 ad uvm_pageout_start(1);
1243 1.83 ad uvm_pagelock(tpg);
1244 1.1 pooka uvm_pagedequeue(tpg);
1245 1.83 ad uvm_pageunlock(tpg);
1246 1.1 pooka }
1247 1.1 pooka } else {
1248 1.1 pooka
1249 1.1 pooka /*
1250 1.1 pooka * ``page is not busy''
1251 1.1 pooka * implies that npages is 1
1252 1.1 pooka * and needs_clean is false.
1253 1.1 pooka */
1254 1.1 pooka
1255 1.78 ad KASSERT(npages == 1);
1256 1.78 ad KASSERT(!needs_clean);
1257 1.78 ad KASSERT(pg == tpg);
1258 1.78 ad KASSERT(nextoff ==
1259 1.78 ad tpg->offset + PAGE_SIZE);
1260 1.1 pooka uvm_pagefree(tpg);
1261 1.1 pooka if (pagedaemon)
1262 1.1 pooka uvmexp.pdfreed++;
1263 1.1 pooka }
1264 1.1 pooka }
1265 1.1 pooka }
1266 1.1 pooka if (needs_clean) {
1267 1.1 pooka modified = true;
1268 1.78 ad KASSERT(nextoff == pg->offset + PAGE_SIZE);
1269 1.78 ad KASSERT(nback < npages);
1270 1.78 ad nextoff = pg->offset + ((npages - nback) << PAGE_SHIFT);
1271 1.78 ad KASSERT(pgs[nback] == pg);
1272 1.78 ad KASSERT(nextoff == pgs[npages - 1]->offset + PAGE_SIZE);
1273 1.1 pooka
1274 1.1 pooka /*
1275 1.78 ad * start the i/o.
1276 1.1 pooka */
1277 1.86 ad rw_exit(slock);
1278 1.1 pooka error = GOP_WRITE(vp, pgs, npages, flags);
1279 1.78 ad /*
1280 1.78 ad * as we dropped the object lock, our cached pages can
1281 1.78 ad * be stale.
1282 1.78 ad */
1283 1.78 ad uvm_page_array_clear(&a);
1284 1.86 ad rw_enter(slock, RW_WRITER);
1285 1.1 pooka if (error) {
1286 1.1 pooka break;
1287 1.1 pooka }
1288 1.1 pooka }
1289 1.1 pooka }
1290 1.78 ad uvm_page_array_fini(&a);
1291 1.1 pooka
1292 1.84 ad /*
1293 1.84 ad * update ctime/mtime if the modification we started writing out might
1294 1.84 ad * be from mmap'ed write.
1295 1.84 ad *
1296 1.84 ad * this is necessary when an application keeps a file mmaped and
1297 1.84 ad * repeatedly modifies it via the window. note that, because we
1298 1.84 ad * don't always write-protect pages when cleaning, such modifications
1299 1.84 ad * might not involve any page faults.
1300 1.84 ad */
1301 1.84 ad
1302 1.86 ad mutex_enter(vp->v_interlock);
1303 1.93 ad if (modified && (vp->v_iflag & VI_WRMAP) != 0 &&
1304 1.1 pooka (vp->v_type != VBLK ||
1305 1.1 pooka (vp->v_mount->mnt_flag & MNT_NODEVMTIME) == 0)) {
1306 1.1 pooka GOP_MARKUPDATE(vp, GOP_UPDATE_MODIFIED);
1307 1.1 pooka }
1308 1.1 pooka
1309 1.1 pooka /*
1310 1.84 ad * if we no longer have any possibly dirty pages, take us off the
1311 1.84 ad * syncer list.
1312 1.1 pooka */
1313 1.1 pooka
1314 1.84 ad if ((vp->v_iflag & VI_ONWORKLST) != 0 &&
1315 1.84 ad radix_tree_empty_tagged_tree_p(&uobj->uo_pages,
1316 1.84 ad UVM_PAGE_DIRTY_TAG)) {
1317 1.1 pooka if (LIST_FIRST(&vp->v_dirtyblkhd) == NULL)
1318 1.1 pooka vn_syncer_remove_from_worklist(vp);
1319 1.1 pooka }
1320 1.1 pooka
1321 1.1 pooka #if !defined(DEBUG)
1322 1.1 pooka skip_scan:
1323 1.1 pooka #endif /* !defined(DEBUG) */
1324 1.2 ad
1325 1.2 ad /* Wait for output to complete. */
1326 1.86 ad rw_exit(slock);
1327 1.2 ad if (!wasclean && !async && vp->v_numoutput != 0) {
1328 1.2 ad while (vp->v_numoutput != 0)
1329 1.86 ad cv_wait(&vp->v_cv, vp->v_interlock);
1330 1.1 pooka }
1331 1.4 yamt onworklst = (vp->v_iflag & VI_ONWORKLST) != 0;
1332 1.86 ad mutex_exit(vp->v_interlock);
1333 1.1 pooka
1334 1.4 yamt if ((flags & PGO_RECLAIM) != 0 && onworklst) {
1335 1.4 yamt /*
1336 1.4 yamt * in the case of PGO_RECLAIM, ensure to make the vnode clean.
1337 1.4 yamt * retrying is not a big deal because, in many cases,
1338 1.4 yamt * uobj->uo_npages is already 0 here.
1339 1.4 yamt */
1340 1.86 ad rw_enter(slock, RW_WRITER);
1341 1.4 yamt goto retry;
1342 1.4 yamt }
1343 1.4 yamt
1344 1.65 hannken if (trans_mp) {
1345 1.65 hannken if (holds_wapbl)
1346 1.65 hannken WAPBL_END(trans_mp);
1347 1.65 hannken fstrans_done(trans_mp);
1348 1.12 hannken }
1349 1.6 hannken
1350 1.1 pooka return (error);
1351 1.1 pooka }
1352 1.1 pooka
1353 1.72 chs /*
1354 1.72 chs * Default putrange method for file systems that do not care
1355 1.72 chs * how many pages are given to one GOP_WRITE() call.
1356 1.72 chs */
1357 1.72 chs void
1358 1.72 chs genfs_gop_putrange(struct vnode *vp, off_t off, off_t *lop, off_t *hip)
1359 1.72 chs {
1360 1.72 chs
1361 1.72 chs *lop = 0;
1362 1.72 chs *hip = 0;
1363 1.72 chs }
1364 1.72 chs
1365 1.1 pooka int
1366 1.1 pooka genfs_gop_write(struct vnode *vp, struct vm_page **pgs, int npages, int flags)
1367 1.1 pooka {
1368 1.1 pooka off_t off;
1369 1.1 pooka vaddr_t kva;
1370 1.1 pooka size_t len;
1371 1.1 pooka int error;
1372 1.1 pooka UVMHIST_FUNC(__func__); UVMHIST_CALLED(ubchist);
1373 1.1 pooka
1374 1.71 pgoyette UVMHIST_LOG(ubchist, "vp %#jx pgs %#jx npages %jd flags 0x%jx",
1375 1.71 pgoyette (uintptr_t)vp, (uintptr_t)pgs, npages, flags);
1376 1.1 pooka
1377 1.1 pooka off = pgs[0]->offset;
1378 1.1 pooka kva = uvm_pagermapin(pgs, npages,
1379 1.1 pooka UVMPAGER_MAPIN_WRITE | UVMPAGER_MAPIN_WAITOK);
1380 1.1 pooka len = npages << PAGE_SHIFT;
1381 1.1 pooka
1382 1.1 pooka error = genfs_do_io(vp, off, kva, len, flags, UIO_WRITE,
1383 1.85 chs uvm_aio_aiodone);
1384 1.1 pooka
1385 1.1 pooka return error;
1386 1.1 pooka }
1387 1.1 pooka
1388 1.78 ad /*
1389 1.78 ad * genfs_gop_write_rwmap:
1390 1.78 ad *
1391 1.78 ad * a variant of genfs_gop_write. it's used by UDF for its directory buffers.
1392 1.78 ad * this maps pages with PROT_WRITE so that VOP_STRATEGY can modifies
1393 1.78 ad * the contents before writing it out to the underlying storage.
1394 1.78 ad */
1395 1.78 ad
1396 1.7 reinoud int
1397 1.78 ad genfs_gop_write_rwmap(struct vnode *vp, struct vm_page **pgs, int npages,
1398 1.78 ad int flags)
1399 1.7 reinoud {
1400 1.7 reinoud off_t off;
1401 1.7 reinoud vaddr_t kva;
1402 1.7 reinoud size_t len;
1403 1.7 reinoud int error;
1404 1.7 reinoud UVMHIST_FUNC(__func__); UVMHIST_CALLED(ubchist);
1405 1.7 reinoud
1406 1.71 pgoyette UVMHIST_LOG(ubchist, "vp %#jx pgs %#jx npages %jd flags 0x%jx",
1407 1.71 pgoyette (uintptr_t)vp, (uintptr_t)pgs, npages, flags);
1408 1.7 reinoud
1409 1.7 reinoud off = pgs[0]->offset;
1410 1.7 reinoud kva = uvm_pagermapin(pgs, npages,
1411 1.7 reinoud UVMPAGER_MAPIN_READ | UVMPAGER_MAPIN_WAITOK);
1412 1.7 reinoud len = npages << PAGE_SHIFT;
1413 1.7 reinoud
1414 1.7 reinoud error = genfs_do_io(vp, off, kva, len, flags, UIO_WRITE,
1415 1.85 chs uvm_aio_aiodone);
1416 1.7 reinoud
1417 1.7 reinoud return error;
1418 1.7 reinoud }
1419 1.7 reinoud
1420 1.1 pooka /*
1421 1.1 pooka * Backend routine for doing I/O to vnode pages. Pages are already locked
1422 1.1 pooka * and mapped into kernel memory. Here we just look up the underlying
1423 1.1 pooka * device block addresses and call the strategy routine.
1424 1.1 pooka */
1425 1.1 pooka
1426 1.1 pooka static int
1427 1.1 pooka genfs_do_io(struct vnode *vp, off_t off, vaddr_t kva, size_t len, int flags,
1428 1.1 pooka enum uio_rw rw, void (*iodone)(struct buf *))
1429 1.1 pooka {
1430 1.36 uebayasi int s, error;
1431 1.1 pooka int fs_bshift, dev_bshift;
1432 1.1 pooka off_t eof, offset, startoffset;
1433 1.1 pooka size_t bytes, iobytes, skipbytes;
1434 1.1 pooka struct buf *mbp, *bp;
1435 1.35 uebayasi const bool async = (flags & PGO_SYNCIO) == 0;
1436 1.54 chs const bool lazy = (flags & PGO_LAZY) == 0;
1437 1.35 uebayasi const bool iowrite = rw == UIO_WRITE;
1438 1.35 uebayasi const int brw = iowrite ? B_WRITE : B_READ;
1439 1.1 pooka UVMHIST_FUNC(__func__); UVMHIST_CALLED(ubchist);
1440 1.1 pooka
1441 1.71 pgoyette UVMHIST_LOG(ubchist, "vp %#jx kva %#jx len 0x%jx flags 0x%jx",
1442 1.71 pgoyette (uintptr_t)vp, (uintptr_t)kva, len, flags);
1443 1.1 pooka
1444 1.1 pooka KASSERT(vp->v_size <= vp->v_writesize);
1445 1.1 pooka GOP_SIZE(vp, vp->v_writesize, &eof, 0);
1446 1.1 pooka if (vp->v_type != VBLK) {
1447 1.1 pooka fs_bshift = vp->v_mount->mnt_fs_bshift;
1448 1.1 pooka dev_bshift = vp->v_mount->mnt_dev_bshift;
1449 1.1 pooka } else {
1450 1.1 pooka fs_bshift = DEV_BSHIFT;
1451 1.1 pooka dev_bshift = DEV_BSHIFT;
1452 1.1 pooka }
1453 1.1 pooka error = 0;
1454 1.1 pooka startoffset = off;
1455 1.1 pooka bytes = MIN(len, eof - startoffset);
1456 1.1 pooka skipbytes = 0;
1457 1.1 pooka KASSERT(bytes != 0);
1458 1.1 pooka
1459 1.35 uebayasi if (iowrite) {
1460 1.78 ad /*
1461 1.78 ad * why += 2?
1462 1.78 ad * 1 for biodone, 1 for uvm_aio_aiodone.
1463 1.78 ad */
1464 1.49 rmind mutex_enter(vp->v_interlock);
1465 1.1 pooka vp->v_numoutput += 2;
1466 1.49 rmind mutex_exit(vp->v_interlock);
1467 1.1 pooka }
1468 1.2 ad mbp = getiobuf(vp, true);
1469 1.71 pgoyette UVMHIST_LOG(ubchist, "vp %#jx mbp %#jx num now %jd bytes 0x%jx",
1470 1.71 pgoyette (uintptr_t)vp, (uintptr_t)mbp, vp->v_numoutput, bytes);
1471 1.1 pooka mbp->b_bufsize = len;
1472 1.1 pooka mbp->b_data = (void *)kva;
1473 1.1 pooka mbp->b_resid = mbp->b_bcount = bytes;
1474 1.89 ad mbp->b_cflags |= BC_BUSY | BC_AGE;
1475 1.2 ad if (async) {
1476 1.2 ad mbp->b_flags = brw | B_ASYNC;
1477 1.2 ad mbp->b_iodone = iodone;
1478 1.2 ad } else {
1479 1.2 ad mbp->b_flags = brw;
1480 1.2 ad mbp->b_iodone = NULL;
1481 1.2 ad }
1482 1.1 pooka if (curlwp == uvm.pagedaemon_lwp)
1483 1.1 pooka BIO_SETPRIO(mbp, BPRIO_TIMELIMITED);
1484 1.54 chs else if (async || lazy)
1485 1.1 pooka BIO_SETPRIO(mbp, BPRIO_TIMENONCRITICAL);
1486 1.1 pooka else
1487 1.1 pooka BIO_SETPRIO(mbp, BPRIO_TIMECRITICAL);
1488 1.1 pooka
1489 1.1 pooka bp = NULL;
1490 1.1 pooka for (offset = startoffset;
1491 1.1 pooka bytes > 0;
1492 1.1 pooka offset += iobytes, bytes -= iobytes) {
1493 1.36 uebayasi int run;
1494 1.36 uebayasi daddr_t lbn, blkno;
1495 1.36 uebayasi struct vnode *devvp;
1496 1.36 uebayasi
1497 1.36 uebayasi /*
1498 1.36 uebayasi * bmap the file to find out the blkno to read from and
1499 1.36 uebayasi * how much we can read in one i/o. if bmap returns an error,
1500 1.36 uebayasi * skip the rest of the top-level i/o.
1501 1.36 uebayasi */
1502 1.36 uebayasi
1503 1.1 pooka lbn = offset >> fs_bshift;
1504 1.1 pooka error = VOP_BMAP(vp, lbn, &devvp, &blkno, &run);
1505 1.1 pooka if (error) {
1506 1.71 pgoyette UVMHIST_LOG(ubchist, "VOP_BMAP lbn 0x%jx -> %jd\n",
1507 1.71 pgoyette lbn, error, 0, 0);
1508 1.1 pooka skipbytes += bytes;
1509 1.1 pooka bytes = 0;
1510 1.36 uebayasi goto loopdone;
1511 1.1 pooka }
1512 1.1 pooka
1513 1.36 uebayasi /*
1514 1.36 uebayasi * see how many pages can be read with this i/o.
1515 1.36 uebayasi * reduce the i/o size if necessary to avoid
1516 1.36 uebayasi * overwriting pages with valid data.
1517 1.36 uebayasi */
1518 1.36 uebayasi
1519 1.1 pooka iobytes = MIN((((off_t)lbn + 1 + run) << fs_bshift) - offset,
1520 1.1 pooka bytes);
1521 1.36 uebayasi
1522 1.36 uebayasi /*
1523 1.36 uebayasi * if this block isn't allocated, zero it instead of
1524 1.36 uebayasi * reading it. unless we are going to allocate blocks,
1525 1.36 uebayasi * mark the pages we zeroed PG_RDONLY.
1526 1.36 uebayasi */
1527 1.36 uebayasi
1528 1.1 pooka if (blkno == (daddr_t)-1) {
1529 1.35 uebayasi if (!iowrite) {
1530 1.1 pooka memset((char *)kva + (offset - startoffset), 0,
1531 1.36 uebayasi iobytes);
1532 1.1 pooka }
1533 1.1 pooka skipbytes += iobytes;
1534 1.1 pooka continue;
1535 1.1 pooka }
1536 1.1 pooka
1537 1.36 uebayasi /*
1538 1.36 uebayasi * allocate a sub-buf for this piece of the i/o
1539 1.36 uebayasi * (or just use mbp if there's only 1 piece),
1540 1.36 uebayasi * and start it going.
1541 1.36 uebayasi */
1542 1.36 uebayasi
1543 1.1 pooka if (offset == startoffset && iobytes == bytes) {
1544 1.1 pooka bp = mbp;
1545 1.1 pooka } else {
1546 1.71 pgoyette UVMHIST_LOG(ubchist, "vp %#jx bp %#jx num now %jd",
1547 1.71 pgoyette (uintptr_t)vp, (uintptr_t)bp, vp->v_numoutput, 0);
1548 1.2 ad bp = getiobuf(vp, true);
1549 1.1 pooka nestiobuf_setup(mbp, bp, offset - startoffset, iobytes);
1550 1.1 pooka }
1551 1.1 pooka bp->b_lblkno = 0;
1552 1.1 pooka
1553 1.1 pooka /* adjust physical blkno for partial blocks */
1554 1.1 pooka bp->b_blkno = blkno + ((offset - ((off_t)lbn << fs_bshift)) >>
1555 1.1 pooka dev_bshift);
1556 1.36 uebayasi
1557 1.1 pooka UVMHIST_LOG(ubchist,
1558 1.71 pgoyette "bp %#jx offset 0x%jx bcount 0x%jx blkno 0x%jx",
1559 1.71 pgoyette (uintptr_t)bp, offset, bp->b_bcount, bp->b_blkno);
1560 1.1 pooka
1561 1.1 pooka VOP_STRATEGY(devvp, bp);
1562 1.1 pooka }
1563 1.36 uebayasi
1564 1.36 uebayasi loopdone:
1565 1.1 pooka if (skipbytes) {
1566 1.71 pgoyette UVMHIST_LOG(ubchist, "skipbytes %jd", skipbytes, 0,0,0);
1567 1.1 pooka }
1568 1.1 pooka nestiobuf_done(mbp, skipbytes, error);
1569 1.1 pooka if (async) {
1570 1.1 pooka UVMHIST_LOG(ubchist, "returning 0 (async)", 0,0,0,0);
1571 1.1 pooka return (0);
1572 1.1 pooka }
1573 1.71 pgoyette UVMHIST_LOG(ubchist, "waiting for mbp %#jx", (uintptr_t)mbp, 0, 0, 0);
1574 1.1 pooka error = biowait(mbp);
1575 1.1 pooka s = splbio();
1576 1.1 pooka (*iodone)(mbp);
1577 1.1 pooka splx(s);
1578 1.71 pgoyette UVMHIST_LOG(ubchist, "returning, error %jd", error, 0, 0, 0);
1579 1.1 pooka return (error);
1580 1.1 pooka }
1581 1.1 pooka
1582 1.1 pooka int
1583 1.1 pooka genfs_compat_getpages(void *v)
1584 1.1 pooka {
1585 1.1 pooka struct vop_getpages_args /* {
1586 1.1 pooka struct vnode *a_vp;
1587 1.1 pooka voff_t a_offset;
1588 1.1 pooka struct vm_page **a_m;
1589 1.1 pooka int *a_count;
1590 1.1 pooka int a_centeridx;
1591 1.1 pooka vm_prot_t a_access_type;
1592 1.1 pooka int a_advice;
1593 1.1 pooka int a_flags;
1594 1.1 pooka } */ *ap = v;
1595 1.1 pooka
1596 1.1 pooka off_t origoffset;
1597 1.1 pooka struct vnode *vp = ap->a_vp;
1598 1.1 pooka struct uvm_object *uobj = &vp->v_uobj;
1599 1.1 pooka struct vm_page *pg, **pgs;
1600 1.1 pooka vaddr_t kva;
1601 1.1 pooka int i, error, orignpages, npages;
1602 1.1 pooka struct iovec iov;
1603 1.1 pooka struct uio uio;
1604 1.1 pooka kauth_cred_t cred = curlwp->l_cred;
1605 1.35 uebayasi const bool memwrite = (ap->a_access_type & VM_PROT_WRITE) != 0;
1606 1.1 pooka
1607 1.1 pooka error = 0;
1608 1.1 pooka origoffset = ap->a_offset;
1609 1.1 pooka orignpages = *ap->a_count;
1610 1.1 pooka pgs = ap->a_m;
1611 1.1 pooka
1612 1.1 pooka if (ap->a_flags & PGO_LOCKED) {
1613 1.84 ad uvn_findpages(uobj, origoffset, ap->a_count, ap->a_m, NULL,
1614 1.35 uebayasi UFP_NOWAIT|UFP_NOALLOC| (memwrite ? UFP_NORDONLY : 0));
1615 1.1 pooka
1616 1.38 chs error = ap->a_m[ap->a_centeridx] == NULL ? EBUSY : 0;
1617 1.38 chs return error;
1618 1.1 pooka }
1619 1.1 pooka if (origoffset + (ap->a_centeridx << PAGE_SHIFT) >= vp->v_size) {
1620 1.86 ad rw_exit(uobj->vmobjlock);
1621 1.38 chs return EINVAL;
1622 1.1 pooka }
1623 1.1 pooka if ((ap->a_flags & PGO_SYNCIO) == 0) {
1624 1.86 ad rw_exit(uobj->vmobjlock);
1625 1.1 pooka return 0;
1626 1.1 pooka }
1627 1.1 pooka npages = orignpages;
1628 1.84 ad uvn_findpages(uobj, origoffset, &npages, pgs, NULL, UFP_ALL);
1629 1.86 ad rw_exit(uobj->vmobjlock);
1630 1.1 pooka kva = uvm_pagermapin(pgs, npages,
1631 1.1 pooka UVMPAGER_MAPIN_READ | UVMPAGER_MAPIN_WAITOK);
1632 1.1 pooka for (i = 0; i < npages; i++) {
1633 1.1 pooka pg = pgs[i];
1634 1.1 pooka if ((pg->flags & PG_FAKE) == 0) {
1635 1.1 pooka continue;
1636 1.1 pooka }
1637 1.1 pooka iov.iov_base = (char *)kva + (i << PAGE_SHIFT);
1638 1.1 pooka iov.iov_len = PAGE_SIZE;
1639 1.1 pooka uio.uio_iov = &iov;
1640 1.1 pooka uio.uio_iovcnt = 1;
1641 1.1 pooka uio.uio_offset = origoffset + (i << PAGE_SHIFT);
1642 1.1 pooka uio.uio_rw = UIO_READ;
1643 1.1 pooka uio.uio_resid = PAGE_SIZE;
1644 1.1 pooka UIO_SETUP_SYSSPACE(&uio);
1645 1.1 pooka /* XXX vn_lock */
1646 1.1 pooka error = VOP_READ(vp, &uio, 0, cred);
1647 1.1 pooka if (error) {
1648 1.1 pooka break;
1649 1.1 pooka }
1650 1.1 pooka if (uio.uio_resid) {
1651 1.1 pooka memset(iov.iov_base, 0, uio.uio_resid);
1652 1.1 pooka }
1653 1.1 pooka }
1654 1.1 pooka uvm_pagermapout(kva, npages);
1655 1.86 ad rw_enter(uobj->vmobjlock, RW_WRITER);
1656 1.1 pooka for (i = 0; i < npages; i++) {
1657 1.1 pooka pg = pgs[i];
1658 1.1 pooka if (error && (pg->flags & PG_FAKE) != 0) {
1659 1.1 pooka pg->flags |= PG_RELEASED;
1660 1.1 pooka } else {
1661 1.84 ad uvm_pagemarkdirty(pg, UVM_PAGE_STATUS_UNKNOWN);
1662 1.83 ad uvm_pagelock(pg);
1663 1.1 pooka uvm_pageactivate(pg);
1664 1.83 ad uvm_pageunlock(pg);
1665 1.1 pooka }
1666 1.1 pooka }
1667 1.1 pooka if (error) {
1668 1.1 pooka uvm_page_unbusy(pgs, npages);
1669 1.1 pooka }
1670 1.86 ad rw_exit(uobj->vmobjlock);
1671 1.38 chs return error;
1672 1.1 pooka }
1673 1.1 pooka
1674 1.1 pooka int
1675 1.1 pooka genfs_compat_gop_write(struct vnode *vp, struct vm_page **pgs, int npages,
1676 1.1 pooka int flags)
1677 1.1 pooka {
1678 1.1 pooka off_t offset;
1679 1.1 pooka struct iovec iov;
1680 1.1 pooka struct uio uio;
1681 1.1 pooka kauth_cred_t cred = curlwp->l_cred;
1682 1.1 pooka struct buf *bp;
1683 1.1 pooka vaddr_t kva;
1684 1.2 ad int error;
1685 1.1 pooka
1686 1.1 pooka offset = pgs[0]->offset;
1687 1.1 pooka kva = uvm_pagermapin(pgs, npages,
1688 1.1 pooka UVMPAGER_MAPIN_WRITE | UVMPAGER_MAPIN_WAITOK);
1689 1.1 pooka
1690 1.1 pooka iov.iov_base = (void *)kva;
1691 1.1 pooka iov.iov_len = npages << PAGE_SHIFT;
1692 1.1 pooka uio.uio_iov = &iov;
1693 1.1 pooka uio.uio_iovcnt = 1;
1694 1.1 pooka uio.uio_offset = offset;
1695 1.1 pooka uio.uio_rw = UIO_WRITE;
1696 1.1 pooka uio.uio_resid = npages << PAGE_SHIFT;
1697 1.1 pooka UIO_SETUP_SYSSPACE(&uio);
1698 1.1 pooka /* XXX vn_lock */
1699 1.1 pooka error = VOP_WRITE(vp, &uio, 0, cred);
1700 1.1 pooka
1701 1.49 rmind mutex_enter(vp->v_interlock);
1702 1.2 ad vp->v_numoutput++;
1703 1.49 rmind mutex_exit(vp->v_interlock);
1704 1.1 pooka
1705 1.2 ad bp = getiobuf(vp, true);
1706 1.89 ad bp->b_cflags |= BC_BUSY | BC_AGE;
1707 1.1 pooka bp->b_lblkno = offset >> vp->v_mount->mnt_fs_bshift;
1708 1.1 pooka bp->b_data = (char *)kva;
1709 1.1 pooka bp->b_bcount = npages << PAGE_SHIFT;
1710 1.1 pooka bp->b_bufsize = npages << PAGE_SHIFT;
1711 1.1 pooka bp->b_resid = 0;
1712 1.1 pooka bp->b_error = error;
1713 1.1 pooka uvm_aio_aiodone(bp);
1714 1.1 pooka return (error);
1715 1.1 pooka }
1716 1.1 pooka
1717 1.1 pooka /*
1718 1.1 pooka * Process a uio using direct I/O. If we reach a part of the request
1719 1.1 pooka * which cannot be processed in this fashion for some reason, just return.
1720 1.1 pooka * The caller must handle some additional part of the request using
1721 1.1 pooka * buffered I/O before trying direct I/O again.
1722 1.1 pooka */
1723 1.1 pooka
1724 1.1 pooka void
1725 1.1 pooka genfs_directio(struct vnode *vp, struct uio *uio, int ioflag)
1726 1.1 pooka {
1727 1.1 pooka struct vmspace *vs;
1728 1.1 pooka struct iovec *iov;
1729 1.1 pooka vaddr_t va;
1730 1.1 pooka size_t len;
1731 1.1 pooka const int mask = DEV_BSIZE - 1;
1732 1.1 pooka int error;
1733 1.16 joerg bool need_wapbl = (vp->v_mount && vp->v_mount->mnt_wapbl &&
1734 1.16 joerg (ioflag & IO_JOURNALLOCKED) == 0);
1735 1.1 pooka
1736 1.74 jdolecek #ifdef DIAGNOSTIC
1737 1.74 jdolecek if ((ioflag & IO_JOURNALLOCKED) && vp->v_mount->mnt_wapbl)
1738 1.74 jdolecek WAPBL_JLOCK_ASSERT(vp->v_mount);
1739 1.74 jdolecek #endif
1740 1.74 jdolecek
1741 1.1 pooka /*
1742 1.1 pooka * We only support direct I/O to user space for now.
1743 1.1 pooka */
1744 1.1 pooka
1745 1.1 pooka if (VMSPACE_IS_KERNEL_P(uio->uio_vmspace)) {
1746 1.1 pooka return;
1747 1.1 pooka }
1748 1.1 pooka
1749 1.1 pooka /*
1750 1.1 pooka * If the vnode is mapped, we would need to get the getpages lock
1751 1.53 yamt * to stabilize the bmap, but then we would get into trouble while
1752 1.1 pooka * locking the pages if the pages belong to this same vnode (or a
1753 1.1 pooka * multi-vnode cascade to the same effect). Just fall back to
1754 1.1 pooka * buffered I/O if the vnode is mapped to avoid this mess.
1755 1.1 pooka */
1756 1.1 pooka
1757 1.1 pooka if (vp->v_vflag & VV_MAPPED) {
1758 1.1 pooka return;
1759 1.1 pooka }
1760 1.1 pooka
1761 1.16 joerg if (need_wapbl) {
1762 1.13 hannken error = WAPBL_BEGIN(vp->v_mount);
1763 1.13 hannken if (error)
1764 1.13 hannken return;
1765 1.13 hannken }
1766 1.13 hannken
1767 1.1 pooka /*
1768 1.1 pooka * Do as much of the uio as possible with direct I/O.
1769 1.1 pooka */
1770 1.1 pooka
1771 1.1 pooka vs = uio->uio_vmspace;
1772 1.1 pooka while (uio->uio_resid) {
1773 1.1 pooka iov = uio->uio_iov;
1774 1.1 pooka if (iov->iov_len == 0) {
1775 1.1 pooka uio->uio_iov++;
1776 1.1 pooka uio->uio_iovcnt--;
1777 1.1 pooka continue;
1778 1.1 pooka }
1779 1.1 pooka va = (vaddr_t)iov->iov_base;
1780 1.1 pooka len = MIN(iov->iov_len, genfs_maxdio);
1781 1.1 pooka len &= ~mask;
1782 1.1 pooka
1783 1.1 pooka /*
1784 1.1 pooka * If the next chunk is smaller than DEV_BSIZE or extends past
1785 1.1 pooka * the current EOF, then fall back to buffered I/O.
1786 1.1 pooka */
1787 1.1 pooka
1788 1.1 pooka if (len == 0 || uio->uio_offset + len > vp->v_size) {
1789 1.13 hannken break;
1790 1.1 pooka }
1791 1.1 pooka
1792 1.1 pooka /*
1793 1.1 pooka * Check alignment. The file offset must be at least
1794 1.1 pooka * sector-aligned. The exact constraint on memory alignment
1795 1.1 pooka * is very hardware-dependent, but requiring sector-aligned
1796 1.1 pooka * addresses there too is safe.
1797 1.1 pooka */
1798 1.1 pooka
1799 1.1 pooka if (uio->uio_offset & mask || va & mask) {
1800 1.13 hannken break;
1801 1.1 pooka }
1802 1.1 pooka error = genfs_do_directio(vs, va, len, vp, uio->uio_offset,
1803 1.1 pooka uio->uio_rw);
1804 1.1 pooka if (error) {
1805 1.1 pooka break;
1806 1.1 pooka }
1807 1.1 pooka iov->iov_base = (char *)iov->iov_base + len;
1808 1.1 pooka iov->iov_len -= len;
1809 1.1 pooka uio->uio_offset += len;
1810 1.1 pooka uio->uio_resid -= len;
1811 1.1 pooka }
1812 1.13 hannken
1813 1.16 joerg if (need_wapbl)
1814 1.13 hannken WAPBL_END(vp->v_mount);
1815 1.1 pooka }
1816 1.1 pooka
1817 1.1 pooka /*
1818 1.1 pooka * Iodone routine for direct I/O. We don't do much here since the request is
1819 1.1 pooka * always synchronous, so the caller will do most of the work after biowait().
1820 1.1 pooka */
1821 1.1 pooka
1822 1.1 pooka static void
1823 1.1 pooka genfs_dio_iodone(struct buf *bp)
1824 1.1 pooka {
1825 1.1 pooka
1826 1.1 pooka KASSERT((bp->b_flags & B_ASYNC) == 0);
1827 1.2 ad if ((bp->b_flags & B_READ) == 0 && (bp->b_cflags & BC_AGE) != 0) {
1828 1.2 ad mutex_enter(bp->b_objlock);
1829 1.1 pooka vwakeup(bp);
1830 1.2 ad mutex_exit(bp->b_objlock);
1831 1.1 pooka }
1832 1.1 pooka putiobuf(bp);
1833 1.1 pooka }
1834 1.1 pooka
1835 1.1 pooka /*
1836 1.1 pooka * Process one chunk of a direct I/O request.
1837 1.1 pooka */
1838 1.1 pooka
1839 1.1 pooka static int
1840 1.1 pooka genfs_do_directio(struct vmspace *vs, vaddr_t uva, size_t len, struct vnode *vp,
1841 1.1 pooka off_t off, enum uio_rw rw)
1842 1.1 pooka {
1843 1.1 pooka struct vm_map *map;
1844 1.56 martin struct pmap *upm, *kpm __unused;
1845 1.1 pooka size_t klen = round_page(uva + len) - trunc_page(uva);
1846 1.1 pooka off_t spoff, epoff;
1847 1.1 pooka vaddr_t kva, puva;
1848 1.1 pooka paddr_t pa;
1849 1.1 pooka vm_prot_t prot;
1850 1.58 martin int error, rv __diagused, poff, koff;
1851 1.13 hannken const int pgoflags = PGO_CLEANIT | PGO_SYNCIO | PGO_JOURNALLOCKED |
1852 1.1 pooka (rw == UIO_WRITE ? PGO_FREE : 0);
1853 1.1 pooka
1854 1.1 pooka /*
1855 1.1 pooka * For writes, verify that this range of the file already has fully
1856 1.1 pooka * allocated backing store. If there are any holes, just punt and
1857 1.1 pooka * make the caller take the buffered write path.
1858 1.1 pooka */
1859 1.1 pooka
1860 1.1 pooka if (rw == UIO_WRITE) {
1861 1.1 pooka daddr_t lbn, elbn, blkno;
1862 1.1 pooka int bsize, bshift, run;
1863 1.1 pooka
1864 1.1 pooka bshift = vp->v_mount->mnt_fs_bshift;
1865 1.1 pooka bsize = 1 << bshift;
1866 1.1 pooka lbn = off >> bshift;
1867 1.1 pooka elbn = (off + len + bsize - 1) >> bshift;
1868 1.1 pooka while (lbn < elbn) {
1869 1.1 pooka error = VOP_BMAP(vp, lbn, NULL, &blkno, &run);
1870 1.1 pooka if (error) {
1871 1.1 pooka return error;
1872 1.1 pooka }
1873 1.1 pooka if (blkno == (daddr_t)-1) {
1874 1.1 pooka return ENOSPC;
1875 1.1 pooka }
1876 1.1 pooka lbn += 1 + run;
1877 1.1 pooka }
1878 1.1 pooka }
1879 1.1 pooka
1880 1.1 pooka /*
1881 1.1 pooka * Flush any cached pages for parts of the file that we're about to
1882 1.1 pooka * access. If we're writing, invalidate pages as well.
1883 1.1 pooka */
1884 1.1 pooka
1885 1.1 pooka spoff = trunc_page(off);
1886 1.1 pooka epoff = round_page(off + len);
1887 1.87 ad rw_enter(vp->v_uobj.vmobjlock, RW_WRITER);
1888 1.1 pooka error = VOP_PUTPAGES(vp, spoff, epoff, pgoflags);
1889 1.1 pooka if (error) {
1890 1.1 pooka return error;
1891 1.1 pooka }
1892 1.1 pooka
1893 1.1 pooka /*
1894 1.1 pooka * Wire the user pages and remap them into kernel memory.
1895 1.1 pooka */
1896 1.1 pooka
1897 1.1 pooka prot = rw == UIO_READ ? VM_PROT_READ | VM_PROT_WRITE : VM_PROT_READ;
1898 1.1 pooka error = uvm_vslock(vs, (void *)uva, len, prot);
1899 1.1 pooka if (error) {
1900 1.1 pooka return error;
1901 1.1 pooka }
1902 1.1 pooka
1903 1.1 pooka map = &vs->vm_map;
1904 1.1 pooka upm = vm_map_pmap(map);
1905 1.1 pooka kpm = vm_map_pmap(kernel_map);
1906 1.1 pooka puva = trunc_page(uva);
1907 1.51 matt kva = uvm_km_alloc(kernel_map, klen, atop(puva) & uvmexp.colormask,
1908 1.51 matt UVM_KMF_VAONLY | UVM_KMF_WAITVA | UVM_KMF_COLORMATCH);
1909 1.1 pooka for (poff = 0; poff < klen; poff += PAGE_SIZE) {
1910 1.1 pooka rv = pmap_extract(upm, puva + poff, &pa);
1911 1.1 pooka KASSERT(rv);
1912 1.51 matt pmap_kenter_pa(kva + poff, pa, prot, PMAP_WIRED);
1913 1.1 pooka }
1914 1.1 pooka pmap_update(kpm);
1915 1.1 pooka
1916 1.1 pooka /*
1917 1.1 pooka * Do the I/O.
1918 1.1 pooka */
1919 1.1 pooka
1920 1.1 pooka koff = uva - trunc_page(uva);
1921 1.1 pooka error = genfs_do_io(vp, off, kva + koff, len, PGO_SYNCIO, rw,
1922 1.1 pooka genfs_dio_iodone);
1923 1.1 pooka
1924 1.1 pooka /*
1925 1.1 pooka * Tear down the kernel mapping.
1926 1.1 pooka */
1927 1.1 pooka
1928 1.51 matt pmap_kremove(kva, klen);
1929 1.1 pooka pmap_update(kpm);
1930 1.1 pooka uvm_km_free(kernel_map, kva, klen, UVM_KMF_VAONLY);
1931 1.1 pooka
1932 1.1 pooka /*
1933 1.1 pooka * Unwire the user pages.
1934 1.1 pooka */
1935 1.1 pooka
1936 1.1 pooka uvm_vsunlock(vs, (void *)uva, len);
1937 1.1 pooka return error;
1938 1.1 pooka }
1939