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CommitLineData
9f27ee59
JF
1/*
2 * blkfront.c
3 *
4 * XenLinux virtual block device driver.
5 *
6 * Copyright (c) 2003-2004, Keir Fraser & Steve Hand
7 * Modifications by Mark A. Williamson are (c) Intel Research Cambridge
8 * Copyright (c) 2004, Christian Limpach
9 * Copyright (c) 2004, Andrew Warfield
10 * Copyright (c) 2005, Christopher Clark
11 * Copyright (c) 2005, XenSource Ltd
12 *
13 * This program is free software; you can redistribute it and/or
14 * modify it under the terms of the GNU General Public License version 2
15 * as published by the Free Software Foundation; or, when distributed
16 * separately from the Linux kernel or incorporated into other
17 * software packages, subject to the following license:
18 *
19 * Permission is hereby granted, free of charge, to any person obtaining a copy
20 * of this source file (the "Software"), to deal in the Software without
21 * restriction, including without limitation the rights to use, copy, modify,
22 * merge, publish, distribute, sublicense, and/or sell copies of the Software,
23 * and to permit persons to whom the Software is furnished to do so, subject to
24 * the following conditions:
25 *
26 * The above copyright notice and this permission notice shall be included in
27 * all copies or substantial portions of the Software.
28 *
29 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
30 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
31 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
32 * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
33 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
34 * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS
35 * IN THE SOFTWARE.
36 */
37
38#include <linux/interrupt.h>
39#include <linux/blkdev.h>
907c3eb1 40#include <linux/blk-mq.h>
597592d9 41#include <linux/hdreg.h>
440a01a7 42#include <linux/cdrom.h>
9f27ee59 43#include <linux/module.h>
5a0e3ad6 44#include <linux/slab.h>
2a48fc0a 45#include <linux/mutex.h>
9e973e64 46#include <linux/scatterlist.h>
34ae2e47 47#include <linux/bitmap.h>
155b7edb 48#include <linux/list.h>
9f27ee59 49
1ccbf534 50#include <xen/xen.h>
9f27ee59
JF
51#include <xen/xenbus.h>
52#include <xen/grant_table.h>
53#include <xen/events.h>
54#include <xen/page.h>
c1c5413a 55#include <xen/platform_pci.h>
9f27ee59
JF
56
57#include <xen/interface/grant_table.h>
58#include <xen/interface/io/blkif.h>
3e334239 59#include <xen/interface/io/protocols.h>
9f27ee59
JF
60
61#include <asm/xen/hypervisor.h>
62
6cc56833
JG
63/*
64 * The minimal size of segment supported by the block framework is PAGE_SIZE.
65 * When Linux is using a different page size than Xen, it may not be possible
66 * to put all the data in a single segment.
67 * This can happen when the backend doesn't support indirect descriptor and
68 * therefore the maximum amount of data that a request can carry is
69 * BLKIF_MAX_SEGMENTS_PER_REQUEST * XEN_PAGE_SIZE = 44KB
70 *
71 * Note that we only support one extra request. So the Linux page size
72 * should be <= ( 2 * BLKIF_MAX_SEGMENTS_PER_REQUEST * XEN_PAGE_SIZE) =
73 * 88KB.
74 */
75#define HAS_EXTRA_REQ (BLKIF_MAX_SEGMENTS_PER_REQUEST < XEN_PFN_PER_PAGE)
76
9f27ee59
JF
77enum blkif_state {
78 BLKIF_STATE_DISCONNECTED,
79 BLKIF_STATE_CONNECTED,
80 BLKIF_STATE_SUSPENDED,
81};
82
0a8704a5
RPM
83struct grant {
84 grant_ref_t gref;
a7a6df22 85 struct page *page;
155b7edb 86 struct list_head node;
0a8704a5
RPM
87};
88
6cc56833
JG
89enum blk_req_status {
90 REQ_WAITING,
91 REQ_DONE,
92 REQ_ERROR,
93 REQ_EOPNOTSUPP,
94};
95
9f27ee59
JF
96struct blk_shadow {
97 struct blkif_request req;
a945b980 98 struct request *request;
402b27f9
RPM
99 struct grant **grants_used;
100 struct grant **indirect_grants;
b7649158 101 struct scatterlist *sg;
c004a6fe 102 unsigned int num_sg;
6cc56833
JG
103 enum blk_req_status status;
104
105 #define NO_ASSOCIATED_ID ~0UL
106 /*
107 * Id of the sibling if we ever need 2 requests when handling a
108 * block I/O request
109 */
110 unsigned long associated_id;
402b27f9
RPM
111};
112
113struct split_bio {
114 struct bio *bio;
115 atomic_t pending;
9f27ee59
JF
116};
117
2609587c
CH
118struct blkif_req {
119 int error;
120};
121
122static inline struct blkif_req *blkif_req(struct request *rq)
123{
124 return blk_mq_rq_to_pdu(rq);
125}
126
2a48fc0a 127static DEFINE_MUTEX(blkfront_mutex);
83d5cde4 128static const struct block_device_operations xlvbd_block_fops;
9f27ee59 129
402b27f9
RPM
130/*
131 * Maximum number of segments in indirect requests, the actual value used by
132 * the frontend driver is the minimum of this value and the value provided
133 * by the backend driver.
134 */
135
136static unsigned int xen_blkif_max_segments = 32;
14e710fe
JB
137module_param_named(max_indirect_segments, xen_blkif_max_segments, uint,
138 S_IRUGO);
139MODULE_PARM_DESC(max_indirect_segments,
140 "Maximum amount of segments in indirect requests (default is 32)");
402b27f9 141
28d949bc
BL
142static unsigned int xen_blkif_max_queues = 4;
143module_param_named(max_queues, xen_blkif_max_queues, uint, S_IRUGO);
144MODULE_PARM_DESC(max_queues, "Maximum number of hardware queues/rings used per virtual disk");
145
86839c56
BL
146/*
147 * Maximum order of pages to be used for the shared ring between front and
148 * backend, 4KB page granularity is used.
149 */
150static unsigned int xen_blkif_max_ring_order;
151module_param_named(max_ring_page_order, xen_blkif_max_ring_order, int, S_IRUGO);
152MODULE_PARM_DESC(max_ring_page_order, "Maximum order of pages to be used for the shared ring");
153
c004a6fe
JG
154#define BLK_RING_SIZE(info) \
155 __CONST_RING_SIZE(blkif, XEN_PAGE_SIZE * (info)->nr_ring_pages)
156
157#define BLK_MAX_RING_SIZE \
9cce2914 158 __CONST_RING_SIZE(blkif, XEN_PAGE_SIZE * XENBUS_MAX_RING_GRANTS)
c004a6fe 159
86839c56 160/*
6f03a7ff
KRW
161 * ring-ref%u i=(-1UL) would take 11 characters + 'ring-ref' is 8, so 19
162 * characters are enough. Define to 20 to keep consistent with backend.
86839c56
BL
163 */
164#define RINGREF_NAME_LEN (20)
28d949bc
BL
165/*
166 * queue-%u would take 7 + 10(UINT_MAX) = 17 characters.
167 */
168#define QUEUE_NAME_LEN (17)
9f27ee59 169
81f35161
BL
170/*
171 * Per-ring info.
172 * Every blkfront device can associate with one or more blkfront_ring_info,
173 * depending on how many hardware queues/rings to be used.
174 */
175struct blkfront_ring_info {
11659569
BL
176 /* Lock to protect data in every ring buffer. */
177 spinlock_t ring_lock;
81f35161
BL
178 struct blkif_front_ring ring;
179 unsigned int ring_ref[XENBUS_MAX_RING_GRANTS];
180 unsigned int evtchn, irq;
181 struct work_struct work;
182 struct gnttab_free_callback callback;
183 struct blk_shadow shadow[BLK_MAX_RING_SIZE];
184 struct list_head indirect_pages;
73716df7
BL
185 struct list_head grants;
186 unsigned int persistent_gnts_c;
81f35161
BL
187 unsigned long shadow_free;
188 struct blkfront_info *dev_info;
189};
190
9f27ee59
JF
191/*
192 * We have one of these per vbd, whether ide, scsi or 'other'. They
193 * hang in private_data off the gendisk structure. We may end up
194 * putting all kinds of interesting stuff here :-)
195 */
196struct blkfront_info
197{
b70f5fa0 198 struct mutex mutex;
9f27ee59 199 struct xenbus_device *xbdev;
9f27ee59 200 struct gendisk *gd;
172335ad
BL
201 u16 sector_size;
202 unsigned int physical_sector_size;
9f27ee59
JF
203 int vdevice;
204 blkif_vdev_t handle;
205 enum blkif_state connected;
3df0e505 206 /* Number of pages per ring buffer. */
86839c56 207 unsigned int nr_ring_pages;
9f27ee59 208 struct request_queue *rq;
b32728ff
JB
209 unsigned int feature_flush:1;
210 unsigned int feature_fua:1;
5ea42986
KRW
211 unsigned int feature_discard:1;
212 unsigned int feature_secdiscard:1;
b32728ff 213 unsigned int feature_persistent:1;
ed30bf31
LD
214 unsigned int discard_granularity;
215 unsigned int discard_alignment;
c004a6fe 216 /* Number of 4KB segments handled */
402b27f9 217 unsigned int max_indirect_segments;
1d78d705 218 int is_ready;
907c3eb1 219 struct blk_mq_tag_set tag_set;
3df0e505
BL
220 struct blkfront_ring_info *rinfo;
221 unsigned int nr_rings;
7b427a59
BL
222 /* Save uncomplete reqs and bios for migration. */
223 struct list_head requests;
224 struct bio_list bio_list;
9f27ee59
JF
225};
226
0e345826
JB
227static unsigned int nr_minors;
228static unsigned long *minors;
229static DEFINE_SPINLOCK(minor_lock);
230
9f27ee59
JF
231#define GRANT_INVALID_REF 0
232
233#define PARTS_PER_DISK 16
9246b5f0 234#define PARTS_PER_EXT_DISK 256
9f27ee59
JF
235
236#define BLKIF_MAJOR(dev) ((dev)>>8)
237#define BLKIF_MINOR(dev) ((dev) & 0xff)
238
9246b5f0
CL
239#define EXT_SHIFT 28
240#define EXTENDED (1<<EXT_SHIFT)
241#define VDEV_IS_EXTENDED(dev) ((dev)&(EXTENDED))
242#define BLKIF_MINOR_EXT(dev) ((dev)&(~EXTENDED))
c80a4209
SS
243#define EMULATED_HD_DISK_MINOR_OFFSET (0)
244#define EMULATED_HD_DISK_NAME_OFFSET (EMULATED_HD_DISK_MINOR_OFFSET / 256)
196cfe2a
SB
245#define EMULATED_SD_DISK_MINOR_OFFSET (0)
246#define EMULATED_SD_DISK_NAME_OFFSET (EMULATED_SD_DISK_MINOR_OFFSET / 256)
9f27ee59 247
9246b5f0 248#define DEV_NAME "xvd" /* name in /dev */
9f27ee59 249
c004a6fe
JG
250/*
251 * Grants are always the same size as a Xen page (i.e 4KB).
252 * A physical segment is always the same size as a Linux page.
253 * Number of grants per physical segment
254 */
255#define GRANTS_PER_PSEG (PAGE_SIZE / XEN_PAGE_SIZE)
256
257#define GRANTS_PER_INDIRECT_FRAME \
258 (XEN_PAGE_SIZE / sizeof(struct blkif_request_segment))
259
260#define PSEGS_PER_INDIRECT_FRAME \
261 (GRANTS_INDIRECT_FRAME / GRANTS_PSEGS)
262
263#define INDIRECT_GREFS(_grants) \
264 DIV_ROUND_UP(_grants, GRANTS_PER_INDIRECT_FRAME)
265
266#define GREFS(_psegs) ((_psegs) * GRANTS_PER_PSEG)
402b27f9 267
81f35161 268static int blkfront_setup_indirect(struct blkfront_ring_info *rinfo);
3df0e505 269static void blkfront_gather_backend_features(struct blkfront_info *info);
402b27f9 270
81f35161 271static int get_id_from_freelist(struct blkfront_ring_info *rinfo)
9f27ee59 272{
81f35161
BL
273 unsigned long free = rinfo->shadow_free;
274
275 BUG_ON(free >= BLK_RING_SIZE(rinfo->dev_info));
276 rinfo->shadow_free = rinfo->shadow[free].req.u.rw.id;
277 rinfo->shadow[free].req.u.rw.id = 0x0fffffee; /* debug */
9f27ee59
JF
278 return free;
279}
280
81f35161 281static int add_id_to_freelist(struct blkfront_ring_info *rinfo,
6f03a7ff 282 unsigned long id)
9f27ee59 283{
81f35161 284 if (rinfo->shadow[id].req.u.rw.id != id)
6878c32e 285 return -EINVAL;
81f35161 286 if (rinfo->shadow[id].request == NULL)
6878c32e 287 return -EINVAL;
81f35161
BL
288 rinfo->shadow[id].req.u.rw.id = rinfo->shadow_free;
289 rinfo->shadow[id].request = NULL;
290 rinfo->shadow_free = id;
6878c32e 291 return 0;
9f27ee59
JF
292}
293
81f35161 294static int fill_grant_buffer(struct blkfront_ring_info *rinfo, int num)
9c1e050c 295{
81f35161 296 struct blkfront_info *info = rinfo->dev_info;
9c1e050c
RPM
297 struct page *granted_page;
298 struct grant *gnt_list_entry, *n;
299 int i = 0;
300
6f03a7ff 301 while (i < num) {
9c1e050c
RPM
302 gnt_list_entry = kzalloc(sizeof(struct grant), GFP_NOIO);
303 if (!gnt_list_entry)
304 goto out_of_memory;
305
bfe11d6d
RPM
306 if (info->feature_persistent) {
307 granted_page = alloc_page(GFP_NOIO);
308 if (!granted_page) {
309 kfree(gnt_list_entry);
310 goto out_of_memory;
311 }
a7a6df22 312 gnt_list_entry->page = granted_page;
9c1e050c
RPM
313 }
314
9c1e050c 315 gnt_list_entry->gref = GRANT_INVALID_REF;
73716df7 316 list_add(&gnt_list_entry->node, &rinfo->grants);
9c1e050c
RPM
317 i++;
318 }
319
320 return 0;
321
322out_of_memory:
323 list_for_each_entry_safe(gnt_list_entry, n,
73716df7 324 &rinfo->grants, node) {
9c1e050c 325 list_del(&gnt_list_entry->node);
bfe11d6d 326 if (info->feature_persistent)
a7a6df22 327 __free_page(gnt_list_entry->page);
9c1e050c
RPM
328 kfree(gnt_list_entry);
329 i--;
330 }
331 BUG_ON(i != 0);
332 return -ENOMEM;
333}
334
73716df7 335static struct grant *get_free_grant(struct blkfront_ring_info *rinfo)
9c1e050c
RPM
336{
337 struct grant *gnt_list_entry;
9c1e050c 338
73716df7
BL
339 BUG_ON(list_empty(&rinfo->grants));
340 gnt_list_entry = list_first_entry(&rinfo->grants, struct grant,
4f503fbd 341 node);
9c1e050c
RPM
342 list_del(&gnt_list_entry->node);
343
4f503fbd 344 if (gnt_list_entry->gref != GRANT_INVALID_REF)
73716df7 345 rinfo->persistent_gnts_c--;
4f503fbd
JG
346
347 return gnt_list_entry;
348}
349
350static inline void grant_foreign_access(const struct grant *gnt_list_entry,
351 const struct blkfront_info *info)
352{
353 gnttab_page_grant_foreign_access_ref_one(gnt_list_entry->gref,
354 info->xbdev->otherend_id,
355 gnt_list_entry->page,
356 0);
357}
358
359static struct grant *get_grant(grant_ref_t *gref_head,
360 unsigned long gfn,
73716df7 361 struct blkfront_ring_info *rinfo)
4f503fbd 362{
73716df7
BL
363 struct grant *gnt_list_entry = get_free_grant(rinfo);
364 struct blkfront_info *info = rinfo->dev_info;
4f503fbd
JG
365
366 if (gnt_list_entry->gref != GRANT_INVALID_REF)
9c1e050c 367 return gnt_list_entry;
4f503fbd
JG
368
369 /* Assign a gref to this page */
370 gnt_list_entry->gref = gnttab_claim_grant_reference(gref_head);
371 BUG_ON(gnt_list_entry->gref == -ENOSPC);
372 if (info->feature_persistent)
373 grant_foreign_access(gnt_list_entry, info);
374 else {
375 /* Grant access to the GFN passed by the caller */
376 gnttab_grant_foreign_access_ref(gnt_list_entry->gref,
377 info->xbdev->otherend_id,
378 gfn, 0);
9c1e050c
RPM
379 }
380
4f503fbd
JG
381 return gnt_list_entry;
382}
383
384static struct grant *get_indirect_grant(grant_ref_t *gref_head,
73716df7 385 struct blkfront_ring_info *rinfo)
4f503fbd 386{
73716df7
BL
387 struct grant *gnt_list_entry = get_free_grant(rinfo);
388 struct blkfront_info *info = rinfo->dev_info;
4f503fbd
JG
389
390 if (gnt_list_entry->gref != GRANT_INVALID_REF)
391 return gnt_list_entry;
392
9c1e050c
RPM
393 /* Assign a gref to this page */
394 gnt_list_entry->gref = gnttab_claim_grant_reference(gref_head);
395 BUG_ON(gnt_list_entry->gref == -ENOSPC);
bfe11d6d 396 if (!info->feature_persistent) {
4f503fbd
JG
397 struct page *indirect_page;
398
399 /* Fetch a pre-allocated page to use for indirect grefs */
73716df7
BL
400 BUG_ON(list_empty(&rinfo->indirect_pages));
401 indirect_page = list_first_entry(&rinfo->indirect_pages,
4f503fbd
JG
402 struct page, lru);
403 list_del(&indirect_page->lru);
404 gnt_list_entry->page = indirect_page;
bfe11d6d 405 }
4f503fbd
JG
406 grant_foreign_access(gnt_list_entry, info);
407
9c1e050c
RPM
408 return gnt_list_entry;
409}
410
6878c32e
KRW
411static const char *op_name(int op)
412{
413 static const char *const names[] = {
414 [BLKIF_OP_READ] = "read",
415 [BLKIF_OP_WRITE] = "write",
416 [BLKIF_OP_WRITE_BARRIER] = "barrier",
417 [BLKIF_OP_FLUSH_DISKCACHE] = "flush",
418 [BLKIF_OP_DISCARD] = "discard" };
419
420 if (op < 0 || op >= ARRAY_SIZE(names))
421 return "unknown";
422
423 if (!names[op])
424 return "reserved";
425
426 return names[op];
427}
0e345826
JB
428static int xlbd_reserve_minors(unsigned int minor, unsigned int nr)
429{
430 unsigned int end = minor + nr;
431 int rc;
432
433 if (end > nr_minors) {
434 unsigned long *bitmap, *old;
435
f094148a 436 bitmap = kcalloc(BITS_TO_LONGS(end), sizeof(*bitmap),
0e345826
JB
437 GFP_KERNEL);
438 if (bitmap == NULL)
439 return -ENOMEM;
440
441 spin_lock(&minor_lock);
442 if (end > nr_minors) {
443 old = minors;
444 memcpy(bitmap, minors,
445 BITS_TO_LONGS(nr_minors) * sizeof(*bitmap));
446 minors = bitmap;
447 nr_minors = BITS_TO_LONGS(end) * BITS_PER_LONG;
448 } else
449 old = bitmap;
450 spin_unlock(&minor_lock);
451 kfree(old);
452 }
453
454 spin_lock(&minor_lock);
455 if (find_next_bit(minors, end, minor) >= end) {
34ae2e47 456 bitmap_set(minors, minor, nr);
0e345826
JB
457 rc = 0;
458 } else
459 rc = -EBUSY;
460 spin_unlock(&minor_lock);
461
462 return rc;
463}
464
465static void xlbd_release_minors(unsigned int minor, unsigned int nr)
466{
467 unsigned int end = minor + nr;
468
469 BUG_ON(end > nr_minors);
470 spin_lock(&minor_lock);
34ae2e47 471 bitmap_clear(minors, minor, nr);
0e345826
JB
472 spin_unlock(&minor_lock);
473}
474
9f27ee59
JF
475static void blkif_restart_queue_callback(void *arg)
476{
81f35161
BL
477 struct blkfront_ring_info *rinfo = (struct blkfront_ring_info *)arg;
478 schedule_work(&rinfo->work);
9f27ee59
JF
479}
480
afe42d7d 481static int blkif_getgeo(struct block_device *bd, struct hd_geometry *hg)
597592d9
IC
482{
483 /* We don't have real geometry info, but let's at least return
484 values consistent with the size of the device */
485 sector_t nsect = get_capacity(bd->bd_disk);
486 sector_t cylinders = nsect;
487
488 hg->heads = 0xff;
489 hg->sectors = 0x3f;
490 sector_div(cylinders, hg->heads * hg->sectors);
491 hg->cylinders = cylinders;
492 if ((sector_t)(hg->cylinders + 1) * hg->heads * hg->sectors < nsect)
493 hg->cylinders = 0xffff;
494 return 0;
495}
496
a63c848b 497static int blkif_ioctl(struct block_device *bdev, fmode_t mode,
62aa0054 498 unsigned command, unsigned long argument)
440a01a7 499{
a63c848b 500 struct blkfront_info *info = bdev->bd_disk->private_data;
440a01a7
CL
501 int i;
502
503 dev_dbg(&info->xbdev->dev, "command: 0x%x, argument: 0x%lx\n",
504 command, (long)argument);
505
506 switch (command) {
507 case CDROMMULTISESSION:
508 dev_dbg(&info->xbdev->dev, "FIXME: support multisession CDs later\n");
509 for (i = 0; i < sizeof(struct cdrom_multisession); i++)
510 if (put_user(0, (char __user *)(argument + i)))
511 return -EFAULT;
512 return 0;
513
514 case CDROM_GET_CAPABILITY: {
515 struct gendisk *gd = info->gd;
516 if (gd->flags & GENHD_FL_CD)
517 return 0;
518 return -EINVAL;
519 }
520
521 default:
522 /*printk(KERN_ALERT "ioctl %08x not supported by Xen blkdev\n",
523 command);*/
524 return -EINVAL; /* same return as native Linux */
525 }
526
527 return 0;
528}
529
2e073969
JG
530static unsigned long blkif_ring_get_request(struct blkfront_ring_info *rinfo,
531 struct request *req,
532 struct blkif_request **ring_req)
533{
534 unsigned long id;
535
536 *ring_req = RING_GET_REQUEST(&rinfo->ring, rinfo->ring.req_prod_pvt);
537 rinfo->ring.req_prod_pvt++;
538
539 id = get_id_from_freelist(rinfo);
540 rinfo->shadow[id].request = req;
6cc56833
JG
541 rinfo->shadow[id].status = REQ_WAITING;
542 rinfo->shadow[id].associated_id = NO_ASSOCIATED_ID;
2e073969
JG
543
544 (*ring_req)->u.rw.id = id;
545
546 return id;
547}
548
81f35161 549static int blkif_queue_discard_req(struct request *req, struct blkfront_ring_info *rinfo)
9f27ee59 550{
81f35161 551 struct blkfront_info *info = rinfo->dev_info;
9f27ee59 552 struct blkif_request *ring_req;
9f27ee59 553 unsigned long id;
33204663
JG
554
555 /* Fill out a communications ring structure. */
2e073969 556 id = blkif_ring_get_request(rinfo, req, &ring_req);
33204663
JG
557
558 ring_req->operation = BLKIF_OP_DISCARD;
559 ring_req->u.discard.nr_sectors = blk_rq_sectors(req);
560 ring_req->u.discard.id = id;
561 ring_req->u.discard.sector_number = (blkif_sector_t)blk_rq_pos(req);
288dab8a 562 if (req_op(req) == REQ_OP_SECURE_ERASE && info->feature_secdiscard)
33204663
JG
563 ring_req->u.discard.flag = BLKIF_DISCARD_SECURE;
564 else
565 ring_req->u.discard.flag = 0;
566
33204663 567 /* Keep a private copy so we can reissue requests when recovering. */
81f35161 568 rinfo->shadow[id].req = *ring_req;
33204663
JG
569
570 return 0;
571}
572
c004a6fe
JG
573struct setup_rw_req {
574 unsigned int grant_idx;
575 struct blkif_request_segment *segments;
81f35161 576 struct blkfront_ring_info *rinfo;
c004a6fe
JG
577 struct blkif_request *ring_req;
578 grant_ref_t gref_head;
579 unsigned int id;
580 /* Only used when persistent grant is used and it's a read request */
581 bool need_copy;
582 unsigned int bvec_off;
583 char *bvec_data;
6cc56833
JG
584
585 bool require_extra_req;
586 struct blkif_request *extra_ring_req;
c004a6fe
JG
587};
588
589static void blkif_setup_rw_req_grant(unsigned long gfn, unsigned int offset,
590 unsigned int len, void *data)
591{
592 struct setup_rw_req *setup = data;
593 int n, ref;
594 struct grant *gnt_list_entry;
9f27ee59 595 unsigned int fsect, lsect;
c004a6fe
JG
596 /* Convenient aliases */
597 unsigned int grant_idx = setup->grant_idx;
598 struct blkif_request *ring_req = setup->ring_req;
81f35161 599 struct blkfront_ring_info *rinfo = setup->rinfo;
6cc56833
JG
600 /*
601 * We always use the shadow of the first request to store the list
602 * of grant associated to the block I/O request. This made the
603 * completion more easy to handle even if the block I/O request is
604 * split.
605 */
81f35161 606 struct blk_shadow *shadow = &rinfo->shadow[setup->id];
c004a6fe 607
6cc56833
JG
608 if (unlikely(setup->require_extra_req &&
609 grant_idx >= BLKIF_MAX_SEGMENTS_PER_REQUEST)) {
610 /*
611 * We are using the second request, setup grant_idx
612 * to be the index of the segment array.
613 */
614 grant_idx -= BLKIF_MAX_SEGMENTS_PER_REQUEST;
615 ring_req = setup->extra_ring_req;
616 }
617
c004a6fe
JG
618 if ((ring_req->operation == BLKIF_OP_INDIRECT) &&
619 (grant_idx % GRANTS_PER_INDIRECT_FRAME == 0)) {
620 if (setup->segments)
621 kunmap_atomic(setup->segments);
622
623 n = grant_idx / GRANTS_PER_INDIRECT_FRAME;
73716df7 624 gnt_list_entry = get_indirect_grant(&setup->gref_head, rinfo);
c004a6fe
JG
625 shadow->indirect_grants[n] = gnt_list_entry;
626 setup->segments = kmap_atomic(gnt_list_entry->page);
627 ring_req->u.indirect.indirect_grefs[n] = gnt_list_entry->gref;
628 }
629
73716df7 630 gnt_list_entry = get_grant(&setup->gref_head, gfn, rinfo);
c004a6fe 631 ref = gnt_list_entry->gref;
6cc56833
JG
632 /*
633 * All the grants are stored in the shadow of the first
634 * request. Therefore we have to use the global index.
635 */
636 shadow->grants_used[setup->grant_idx] = gnt_list_entry;
c004a6fe
JG
637
638 if (setup->need_copy) {
639 void *shared_data;
640
641 shared_data = kmap_atomic(gnt_list_entry->page);
642 /*
643 * this does not wipe data stored outside the
644 * range sg->offset..sg->offset+sg->length.
645 * Therefore, blkback *could* see data from
646 * previous requests. This is OK as long as
647 * persistent grants are shared with just one
648 * domain. It may need refactoring if this
649 * changes
650 */
651 memcpy(shared_data + offset,
652 setup->bvec_data + setup->bvec_off,
653 len);
654
655 kunmap_atomic(shared_data);
656 setup->bvec_off += len;
657 }
658
659 fsect = offset >> 9;
660 lsect = fsect + (len >> 9) - 1;
661 if (ring_req->operation != BLKIF_OP_INDIRECT) {
662 ring_req->u.rw.seg[grant_idx] =
663 (struct blkif_request_segment) {
664 .gref = ref,
665 .first_sect = fsect,
666 .last_sect = lsect };
667 } else {
668 setup->segments[grant_idx % GRANTS_PER_INDIRECT_FRAME] =
669 (struct blkif_request_segment) {
670 .gref = ref,
671 .first_sect = fsect,
672 .last_sect = lsect };
673 }
674
675 (setup->grant_idx)++;
676}
677
6cc56833
JG
678static void blkif_setup_extra_req(struct blkif_request *first,
679 struct blkif_request *second)
680{
681 uint16_t nr_segments = first->u.rw.nr_segments;
682
683 /*
684 * The second request is only present when the first request uses
685 * all its segments. It's always the continuity of the first one.
686 */
687 first->u.rw.nr_segments = BLKIF_MAX_SEGMENTS_PER_REQUEST;
688
689 second->u.rw.nr_segments = nr_segments - BLKIF_MAX_SEGMENTS_PER_REQUEST;
690 second->u.rw.sector_number = first->u.rw.sector_number +
691 (BLKIF_MAX_SEGMENTS_PER_REQUEST * XEN_PAGE_SIZE) / 512;
692
693 second->u.rw.handle = first->u.rw.handle;
694 second->operation = first->operation;
695}
696
81f35161 697static int blkif_queue_rw_req(struct request *req, struct blkfront_ring_info *rinfo)
9f27ee59 698{
81f35161 699 struct blkfront_info *info = rinfo->dev_info;
6cc56833
JG
700 struct blkif_request *ring_req, *extra_ring_req = NULL;
701 unsigned long id, extra_id = NO_ASSOCIATED_ID;
702 bool require_extra_req = false;
c004a6fe
JG
703 int i;
704 struct setup_rw_req setup = {
705 .grant_idx = 0,
706 .segments = NULL,
81f35161 707 .rinfo = rinfo,
c004a6fe
JG
708 .need_copy = rq_data_dir(req) && info->feature_persistent,
709 };
0a8704a5
RPM
710
711 /*
712 * Used to store if we are able to queue the request by just using
713 * existing persistent grants, or if we have to get new grants,
714 * as there are not sufficiently many free.
715 */
9e973e64 716 struct scatterlist *sg;
c004a6fe 717 int num_sg, max_grefs, num_grant;
9f27ee59 718
c004a6fe 719 max_grefs = req->nr_phys_segments * GRANTS_PER_PSEG;
c47206e2
RPM
720 if (max_grefs > BLKIF_MAX_SEGMENTS_PER_REQUEST)
721 /*
722 * If we are using indirect segments we need to account
723 * for the indirect grefs used in the request.
724 */
c004a6fe 725 max_grefs += INDIRECT_GREFS(max_grefs);
402b27f9 726
3df0e505
BL
727 /*
728 * We have to reserve 'max_grefs' grants because persistent
729 * grants are shared by all rings.
730 */
731 if (max_grefs > 0)
732 if (gnttab_alloc_grant_references(max_grefs, &setup.gref_head) < 0) {
0a8704a5 733 gnttab_request_free_callback(
81f35161 734 &rinfo->callback,
0a8704a5 735 blkif_restart_queue_callback,
81f35161 736 rinfo,
402b27f9 737 max_grefs);
0a8704a5
RPM
738 return 1;
739 }
9f27ee59
JF
740
741 /* Fill out a communications ring structure. */
2e073969 742 id = blkif_ring_get_request(rinfo, req, &ring_req);
9f27ee59 743
81f35161 744 num_sg = blk_rq_map_sg(req->q, req, rinfo->shadow[id].sg);
c004a6fe
JG
745 num_grant = 0;
746 /* Calculate the number of grant used */
81f35161 747 for_each_sg(rinfo->shadow[id].sg, sg, num_sg, i)
c004a6fe
JG
748 num_grant += gnttab_count_grant(sg->offset, sg->length);
749
6cc56833
JG
750 require_extra_req = info->max_indirect_segments == 0 &&
751 num_grant > BLKIF_MAX_SEGMENTS_PER_REQUEST;
752 BUG_ON(!HAS_EXTRA_REQ && require_extra_req);
753
81f35161 754 rinfo->shadow[id].num_sg = num_sg;
6cc56833
JG
755 if (num_grant > BLKIF_MAX_SEGMENTS_PER_REQUEST &&
756 likely(!require_extra_req)) {
33204663
JG
757 /*
758 * The indirect operation can only be a BLKIF_OP_READ or
759 * BLKIF_OP_WRITE
760 */
3a5e02ce 761 BUG_ON(req_op(req) == REQ_OP_FLUSH || req->cmd_flags & REQ_FUA);
33204663
JG
762 ring_req->operation = BLKIF_OP_INDIRECT;
763 ring_req->u.indirect.indirect_op = rq_data_dir(req) ?
764 BLKIF_OP_WRITE : BLKIF_OP_READ;
765 ring_req->u.indirect.sector_number = (blkif_sector_t)blk_rq_pos(req);
766 ring_req->u.indirect.handle = info->handle;
c004a6fe 767 ring_req->u.indirect.nr_segments = num_grant;
ed30bf31 768 } else {
33204663
JG
769 ring_req->u.rw.sector_number = (blkif_sector_t)blk_rq_pos(req);
770 ring_req->u.rw.handle = info->handle;
771 ring_req->operation = rq_data_dir(req) ?
772 BLKIF_OP_WRITE : BLKIF_OP_READ;
3a5e02ce 773 if (req_op(req) == REQ_OP_FLUSH || req->cmd_flags & REQ_FUA) {
402b27f9 774 /*
33204663
JG
775 * Ideally we can do an unordered flush-to-disk.
776 * In case the backend onlysupports barriers, use that.
777 * A barrier request a superset of FUA, so we can
778 * implement it the same way. (It's also a FLUSH+FUA,
779 * since it is guaranteed ordered WRT previous writes.)
402b27f9 780 */
a418090a 781 if (info->feature_flush && info->feature_fua)
33204663
JG
782 ring_req->operation =
783 BLKIF_OP_WRITE_BARRIER;
a418090a 784 else if (info->feature_flush)
33204663
JG
785 ring_req->operation =
786 BLKIF_OP_FLUSH_DISKCACHE;
a418090a 787 else
33204663 788 ring_req->operation = 0;
402b27f9 789 }
c004a6fe 790 ring_req->u.rw.nr_segments = num_grant;
6cc56833
JG
791 if (unlikely(require_extra_req)) {
792 extra_id = blkif_ring_get_request(rinfo, req,
793 &extra_ring_req);
794 /*
795 * Only the first request contains the scatter-gather
796 * list.
797 */
798 rinfo->shadow[extra_id].num_sg = 0;
799
800 blkif_setup_extra_req(ring_req, extra_ring_req);
801
802 /* Link the 2 requests together */
803 rinfo->shadow[extra_id].associated_id = id;
804 rinfo->shadow[id].associated_id = extra_id;
805 }
33204663 806 }
0a8704a5 807
c004a6fe
JG
808 setup.ring_req = ring_req;
809 setup.id = id;
6cc56833
JG
810
811 setup.require_extra_req = require_extra_req;
812 if (unlikely(require_extra_req))
813 setup.extra_ring_req = extra_ring_req;
814
81f35161 815 for_each_sg(rinfo->shadow[id].sg, sg, num_sg, i) {
c004a6fe 816 BUG_ON(sg->offset + sg->length > PAGE_SIZE);
0a8704a5 817
c004a6fe
JG
818 if (setup.need_copy) {
819 setup.bvec_off = sg->offset;
820 setup.bvec_data = kmap_atomic(sg_page(sg));
821 }
0a8704a5 822
c004a6fe
JG
823 gnttab_foreach_grant_in_range(sg_page(sg),
824 sg->offset,
825 sg->length,
826 blkif_setup_rw_req_grant,
827 &setup);
0a8704a5 828
c004a6fe
JG
829 if (setup.need_copy)
830 kunmap_atomic(setup.bvec_data);
9f27ee59 831 }
c004a6fe
JG
832 if (setup.segments)
833 kunmap_atomic(setup.segments);
9f27ee59 834
9f27ee59 835 /* Keep a private copy so we can reissue requests when recovering. */
81f35161 836 rinfo->shadow[id].req = *ring_req;
6cc56833
JG
837 if (unlikely(require_extra_req))
838 rinfo->shadow[extra_id].req = *extra_ring_req;
9f27ee59 839
3df0e505 840 if (max_grefs > 0)
c004a6fe 841 gnttab_free_grant_references(setup.gref_head);
9f27ee59
JF
842
843 return 0;
844}
845
33204663
JG
846/*
847 * Generate a Xen blkfront IO request from a blk layer request. Reads
848 * and writes are handled as expected.
849 *
850 * @req: a request struct
851 */
81f35161 852static int blkif_queue_request(struct request *req, struct blkfront_ring_info *rinfo)
33204663 853{
81f35161 854 if (unlikely(rinfo->dev_info->connected != BLKIF_STATE_CONNECTED))
33204663
JG
855 return 1;
856
c2df40df 857 if (unlikely(req_op(req) == REQ_OP_DISCARD ||
288dab8a 858 req_op(req) == REQ_OP_SECURE_ERASE))
81f35161 859 return blkif_queue_discard_req(req, rinfo);
33204663 860 else
81f35161 861 return blkif_queue_rw_req(req, rinfo);
33204663 862}
9f27ee59 863
81f35161 864static inline void flush_requests(struct blkfront_ring_info *rinfo)
9f27ee59
JF
865{
866 int notify;
867
81f35161 868 RING_PUSH_REQUESTS_AND_CHECK_NOTIFY(&rinfo->ring, notify);
9f27ee59
JF
869
870 if (notify)
81f35161 871 notify_remote_via_irq(rinfo->irq);
9f27ee59
JF
872}
873
ad42d391
VK
874static inline bool blkif_request_flush_invalid(struct request *req,
875 struct blkfront_info *info)
0f1ca65e 876{
aebf526b 877 return (blk_rq_is_passthrough(req) ||
3a5e02ce 878 ((req_op(req) == REQ_OP_FLUSH) &&
a418090a 879 !info->feature_flush) ||
ad42d391 880 ((req->cmd_flags & REQ_FUA) &&
a418090a 881 !info->feature_fua));
0f1ca65e
AA
882}
883
fc17b653 884static blk_status_t blkif_queue_rq(struct blk_mq_hw_ctx *hctx,
6f03a7ff 885 const struct blk_mq_queue_data *qd)
9f27ee59 886{
11659569 887 unsigned long flags;
2a6f71ad
BL
888 int qid = hctx->queue_num;
889 struct blkfront_info *info = hctx->queue->queuedata;
890 struct blkfront_ring_info *rinfo = NULL;
9f27ee59 891
2a6f71ad
BL
892 BUG_ON(info->nr_rings <= qid);
893 rinfo = &info->rinfo[qid];
907c3eb1 894 blk_mq_start_request(qd->rq);
11659569 895 spin_lock_irqsave(&rinfo->ring_lock, flags);
81f35161 896 if (RING_FULL(&rinfo->ring))
907c3eb1 897 goto out_busy;
9f27ee59 898
81f35161 899 if (blkif_request_flush_invalid(qd->rq, rinfo->dev_info))
907c3eb1 900 goto out_err;
296b2f6a 901
81f35161 902 if (blkif_queue_request(qd->rq, rinfo))
907c3eb1 903 goto out_busy;
296b2f6a 904
81f35161 905 flush_requests(rinfo);
11659569 906 spin_unlock_irqrestore(&rinfo->ring_lock, flags);
fc17b653 907 return BLK_STS_OK;
9f27ee59 908
907c3eb1 909out_err:
11659569 910 spin_unlock_irqrestore(&rinfo->ring_lock, flags);
fc17b653 911 return BLK_STS_IOERR;
9f27ee59 912
907c3eb1 913out_busy:
11659569 914 spin_unlock_irqrestore(&rinfo->ring_lock, flags);
907c3eb1 915 blk_mq_stop_hw_queue(hctx);
fc17b653 916 return BLK_STS_RESOURCE;
9f27ee59
JF
917}
918
2609587c
CH
919static void blkif_complete_rq(struct request *rq)
920{
921 blk_mq_end_request(rq, blkif_req(rq)->error);
922}
923
f363b089 924static const struct blk_mq_ops blkfront_mq_ops = {
907c3eb1 925 .queue_rq = blkif_queue_rq,
2609587c 926 .complete = blkif_complete_rq,
907c3eb1
BL
927};
928
172335ad
BL
929static void blkif_set_queue_limits(struct blkfront_info *info)
930{
931 struct request_queue *rq = info->rq;
932 struct gendisk *gd = info->gd;
933 unsigned int segments = info->max_indirect_segments ? :
934 BLKIF_MAX_SEGMENTS_PER_REQUEST;
935
936 queue_flag_set_unlocked(QUEUE_FLAG_VIRT, rq);
937
938 if (info->feature_discard) {
939 queue_flag_set_unlocked(QUEUE_FLAG_DISCARD, rq);
940 blk_queue_max_discard_sectors(rq, get_capacity(gd));
941 rq->limits.discard_granularity = info->discard_granularity;
942 rq->limits.discard_alignment = info->discard_alignment;
943 if (info->feature_secdiscard)
944 queue_flag_set_unlocked(QUEUE_FLAG_SECERASE, rq);
945 }
946
947 /* Hard sector size and max sectors impersonate the equiv. hardware. */
948 blk_queue_logical_block_size(rq, info->sector_size);
949 blk_queue_physical_block_size(rq, info->physical_sector_size);
950 blk_queue_max_hw_sectors(rq, (segments * XEN_PAGE_SIZE) / 512);
951
952 /* Each segment in a request is up to an aligned page in size. */
953 blk_queue_segment_boundary(rq, PAGE_SIZE - 1);
954 blk_queue_max_segment_size(rq, PAGE_SIZE);
955
956 /* Ensure a merged request will fit in a single I/O ring slot. */
957 blk_queue_max_segments(rq, segments / GRANTS_PER_PSEG);
958
959 /* Make sure buffer addresses are sector-aligned. */
960 blk_queue_dma_alignment(rq, 511);
961
962 /* Make sure we don't use bounce buffers. */
963 blk_queue_bounce_limit(rq, BLK_BOUNCE_ANY);
964}
965
402b27f9 966static int xlvbd_init_blk_queue(struct gendisk *gd, u16 sector_size,
172335ad 967 unsigned int physical_sector_size)
9f27ee59 968{
165125e1 969 struct request_queue *rq;
ed30bf31 970 struct blkfront_info *info = gd->private_data;
9f27ee59 971
907c3eb1
BL
972 memset(&info->tag_set, 0, sizeof(info->tag_set));
973 info->tag_set.ops = &blkfront_mq_ops;
28d949bc 974 info->tag_set.nr_hw_queues = info->nr_rings;
6cc56833
JG
975 if (HAS_EXTRA_REQ && info->max_indirect_segments == 0) {
976 /*
977 * When indirect descriptior is not supported, the I/O request
978 * will be split between multiple request in the ring.
979 * To avoid problems when sending the request, divide by
980 * 2 the depth of the queue.
981 */
982 info->tag_set.queue_depth = BLK_RING_SIZE(info) / 2;
983 } else
984 info->tag_set.queue_depth = BLK_RING_SIZE(info);
907c3eb1
BL
985 info->tag_set.numa_node = NUMA_NO_NODE;
986 info->tag_set.flags = BLK_MQ_F_SHOULD_MERGE | BLK_MQ_F_SG_MERGE;
2609587c 987 info->tag_set.cmd_size = sizeof(struct blkif_req);
907c3eb1
BL
988 info->tag_set.driver_data = info;
989
990 if (blk_mq_alloc_tag_set(&info->tag_set))
bde21f73 991 return -EINVAL;
907c3eb1
BL
992 rq = blk_mq_init_queue(&info->tag_set);
993 if (IS_ERR(rq)) {
994 blk_mq_free_tag_set(&info->tag_set);
bde21f73 995 return PTR_ERR(rq);
907c3eb1 996 }
9f27ee59 997
2a6f71ad 998 rq->queuedata = info;
172335ad
BL
999 info->rq = gd->queue = rq;
1000 info->gd = gd;
1001 info->sector_size = sector_size;
1002 info->physical_sector_size = physical_sector_size;
1003 blkif_set_queue_limits(info);
9f27ee59
JF
1004
1005 return 0;
1006}
1007
a418090a 1008static const char *flush_info(struct blkfront_info *info)
fdf9b965 1009{
a418090a 1010 if (info->feature_flush && info->feature_fua)
fdf9b965 1011 return "barrier: enabled;";
a418090a 1012 else if (info->feature_flush)
fdf9b965 1013 return "flush diskcache: enabled;";
a418090a 1014 else
fdf9b965 1015 return "barrier or flush: disabled;";
fdf9b965 1016}
9f27ee59 1017
4913efe4 1018static void xlvbd_flush(struct blkfront_info *info)
9f27ee59 1019{
a418090a
MC
1020 blk_queue_write_cache(info->rq, info->feature_flush ? true : false,
1021 info->feature_fua ? true : false);
fdf9b965 1022 pr_info("blkfront: %s: %s %s %s %s %s\n",
a418090a 1023 info->gd->disk_name, flush_info(info),
fdf9b965
VK
1024 "persistent grants:", info->feature_persistent ?
1025 "enabled;" : "disabled;", "indirect descriptors:",
1026 info->max_indirect_segments ? "enabled;" : "disabled;");
9f27ee59
JF
1027}
1028
c80a4209
SS
1029static int xen_translate_vdev(int vdevice, int *minor, unsigned int *offset)
1030{
1031 int major;
1032 major = BLKIF_MAJOR(vdevice);
1033 *minor = BLKIF_MINOR(vdevice);
1034 switch (major) {
1035 case XEN_IDE0_MAJOR:
1036 *offset = (*minor / 64) + EMULATED_HD_DISK_NAME_OFFSET;
1037 *minor = ((*minor / 64) * PARTS_PER_DISK) +
1038 EMULATED_HD_DISK_MINOR_OFFSET;
1039 break;
1040 case XEN_IDE1_MAJOR:
1041 *offset = (*minor / 64) + 2 + EMULATED_HD_DISK_NAME_OFFSET;
1042 *minor = (((*minor / 64) + 2) * PARTS_PER_DISK) +
1043 EMULATED_HD_DISK_MINOR_OFFSET;
1044 break;
1045 case XEN_SCSI_DISK0_MAJOR:
1046 *offset = (*minor / PARTS_PER_DISK) + EMULATED_SD_DISK_NAME_OFFSET;
1047 *minor = *minor + EMULATED_SD_DISK_MINOR_OFFSET;
1048 break;
1049 case XEN_SCSI_DISK1_MAJOR:
1050 case XEN_SCSI_DISK2_MAJOR:
1051 case XEN_SCSI_DISK3_MAJOR:
1052 case XEN_SCSI_DISK4_MAJOR:
1053 case XEN_SCSI_DISK5_MAJOR:
1054 case XEN_SCSI_DISK6_MAJOR:
1055 case XEN_SCSI_DISK7_MAJOR:
1056 *offset = (*minor / PARTS_PER_DISK) +
1057 ((major - XEN_SCSI_DISK1_MAJOR + 1) * 16) +
1058 EMULATED_SD_DISK_NAME_OFFSET;
1059 *minor = *minor +
1060 ((major - XEN_SCSI_DISK1_MAJOR + 1) * 16 * PARTS_PER_DISK) +
1061 EMULATED_SD_DISK_MINOR_OFFSET;
1062 break;
1063 case XEN_SCSI_DISK8_MAJOR:
1064 case XEN_SCSI_DISK9_MAJOR:
1065 case XEN_SCSI_DISK10_MAJOR:
1066 case XEN_SCSI_DISK11_MAJOR:
1067 case XEN_SCSI_DISK12_MAJOR:
1068 case XEN_SCSI_DISK13_MAJOR:
1069 case XEN_SCSI_DISK14_MAJOR:
1070 case XEN_SCSI_DISK15_MAJOR:
1071 *offset = (*minor / PARTS_PER_DISK) +
1072 ((major - XEN_SCSI_DISK8_MAJOR + 8) * 16) +
1073 EMULATED_SD_DISK_NAME_OFFSET;
1074 *minor = *minor +
1075 ((major - XEN_SCSI_DISK8_MAJOR + 8) * 16 * PARTS_PER_DISK) +
1076 EMULATED_SD_DISK_MINOR_OFFSET;
1077 break;
1078 case XENVBD_MAJOR:
1079 *offset = *minor / PARTS_PER_DISK;
1080 break;
1081 default:
1082 printk(KERN_WARNING "blkfront: your disk configuration is "
1083 "incorrect, please use an xvd device instead\n");
1084 return -ENODEV;
1085 }
1086 return 0;
1087}
9f27ee59 1088
e77c78c0
JB
1089static char *encode_disk_name(char *ptr, unsigned int n)
1090{
1091 if (n >= 26)
1092 ptr = encode_disk_name(ptr, n / 26 - 1);
1093 *ptr = 'a' + n % 26;
1094 return ptr + 1;
1095}
1096
9246b5f0
CL
1097static int xlvbd_alloc_gendisk(blkif_sector_t capacity,
1098 struct blkfront_info *info,
7c4d7d71
SB
1099 u16 vdisk_info, u16 sector_size,
1100 unsigned int physical_sector_size)
9f27ee59
JF
1101{
1102 struct gendisk *gd;
1103 int nr_minors = 1;
c80a4209 1104 int err;
9246b5f0
CL
1105 unsigned int offset;
1106 int minor;
1107 int nr_parts;
e77c78c0 1108 char *ptr;
9f27ee59
JF
1109
1110 BUG_ON(info->gd != NULL);
1111 BUG_ON(info->rq != NULL);
1112
9246b5f0
CL
1113 if ((info->vdevice>>EXT_SHIFT) > 1) {
1114 /* this is above the extended range; something is wrong */
1115 printk(KERN_WARNING "blkfront: vdevice 0x%x is above the extended range; ignoring\n", info->vdevice);
1116 return -ENODEV;
1117 }
1118
1119 if (!VDEV_IS_EXTENDED(info->vdevice)) {
c80a4209
SS
1120 err = xen_translate_vdev(info->vdevice, &minor, &offset);
1121 if (err)
1122 return err;
1123 nr_parts = PARTS_PER_DISK;
9246b5f0
CL
1124 } else {
1125 minor = BLKIF_MINOR_EXT(info->vdevice);
1126 nr_parts = PARTS_PER_EXT_DISK;
c80a4209 1127 offset = minor / nr_parts;
89153b5c 1128 if (xen_hvm_domain() && offset < EMULATED_HD_DISK_NAME_OFFSET + 4)
c80a4209
SS
1129 printk(KERN_WARNING "blkfront: vdevice 0x%x might conflict with "
1130 "emulated IDE disks,\n\t choose an xvd device name"
1131 "from xvde on\n", info->vdevice);
9246b5f0 1132 }
e77c78c0
JB
1133 if (minor >> MINORBITS) {
1134 pr_warn("blkfront: %#x's minor (%#x) out of range; ignoring\n",
1135 info->vdevice, minor);
1136 return -ENODEV;
1137 }
9246b5f0
CL
1138
1139 if ((minor % nr_parts) == 0)
1140 nr_minors = nr_parts;
9f27ee59 1141
0e345826
JB
1142 err = xlbd_reserve_minors(minor, nr_minors);
1143 if (err)
1144 goto out;
1145 err = -ENODEV;
1146
9f27ee59
JF
1147 gd = alloc_disk(nr_minors);
1148 if (gd == NULL)
0e345826 1149 goto release;
9f27ee59 1150
e77c78c0
JB
1151 strcpy(gd->disk_name, DEV_NAME);
1152 ptr = encode_disk_name(gd->disk_name + sizeof(DEV_NAME) - 1, offset);
1153 BUG_ON(ptr >= gd->disk_name + DISK_NAME_LEN);
1154 if (nr_minors > 1)
1155 *ptr = 0;
1156 else
1157 snprintf(ptr, gd->disk_name + DISK_NAME_LEN - ptr,
1158 "%d", minor & (nr_parts - 1));
9f27ee59
JF
1159
1160 gd->major = XENVBD_MAJOR;
1161 gd->first_minor = minor;
1162 gd->fops = &xlvbd_block_fops;
1163 gd->private_data = info;
9f27ee59
JF
1164 set_capacity(gd, capacity);
1165
172335ad 1166 if (xlvbd_init_blk_queue(gd, sector_size, physical_sector_size)) {
9f27ee59 1167 del_gendisk(gd);
0e345826 1168 goto release;
9f27ee59
JF
1169 }
1170
4913efe4 1171 xlvbd_flush(info);
9f27ee59
JF
1172
1173 if (vdisk_info & VDISK_READONLY)
1174 set_disk_ro(gd, 1);
1175
1176 if (vdisk_info & VDISK_REMOVABLE)
1177 gd->flags |= GENHD_FL_REMOVABLE;
1178
1179 if (vdisk_info & VDISK_CDROM)
1180 gd->flags |= GENHD_FL_CD;
1181
1182 return 0;
1183
0e345826
JB
1184 release:
1185 xlbd_release_minors(minor, nr_minors);
9f27ee59
JF
1186 out:
1187 return err;
1188}
1189
a66b5aeb
DS
1190static void xlvbd_release_gendisk(struct blkfront_info *info)
1191{
3df0e505 1192 unsigned int minor, nr_minors, i;
a66b5aeb
DS
1193
1194 if (info->rq == NULL)
1195 return;
1196
a66b5aeb 1197 /* No more blkif_request(). */
907c3eb1 1198 blk_mq_stop_hw_queues(info->rq);
a66b5aeb 1199
3df0e505
BL
1200 for (i = 0; i < info->nr_rings; i++) {
1201 struct blkfront_ring_info *rinfo = &info->rinfo[i];
a66b5aeb 1202
3df0e505
BL
1203 /* No more gnttab callback work. */
1204 gnttab_cancel_free_callback(&rinfo->callback);
1205
1206 /* Flush gnttab callback work. Must be done with no locks held. */
1207 flush_work(&rinfo->work);
1208 }
a66b5aeb
DS
1209
1210 del_gendisk(info->gd);
1211
1212 minor = info->gd->first_minor;
1213 nr_minors = info->gd->minors;
1214 xlbd_release_minors(minor, nr_minors);
1215
1216 blk_cleanup_queue(info->rq);
907c3eb1 1217 blk_mq_free_tag_set(&info->tag_set);
a66b5aeb
DS
1218 info->rq = NULL;
1219
1220 put_disk(info->gd);
1221 info->gd = NULL;
1222}
1223
11659569
BL
1224/* Already hold rinfo->ring_lock. */
1225static inline void kick_pending_request_queues_locked(struct blkfront_ring_info *rinfo)
9f27ee59 1226{
81f35161
BL
1227 if (!RING_FULL(&rinfo->ring))
1228 blk_mq_start_stopped_hw_queues(rinfo->dev_info->rq, true);
9f27ee59
JF
1229}
1230
11659569
BL
1231static void kick_pending_request_queues(struct blkfront_ring_info *rinfo)
1232{
1233 unsigned long flags;
1234
1235 spin_lock_irqsave(&rinfo->ring_lock, flags);
1236 kick_pending_request_queues_locked(rinfo);
1237 spin_unlock_irqrestore(&rinfo->ring_lock, flags);
1238}
1239
9f27ee59
JF
1240static void blkif_restart_queue(struct work_struct *work)
1241{
81f35161 1242 struct blkfront_ring_info *rinfo = container_of(work, struct blkfront_ring_info, work);
9f27ee59 1243
81f35161
BL
1244 if (rinfo->dev_info->connected == BLKIF_STATE_CONNECTED)
1245 kick_pending_request_queues(rinfo);
9f27ee59
JF
1246}
1247
3df0e505 1248static void blkif_free_ring(struct blkfront_ring_info *rinfo)
9f27ee59 1249{
73716df7 1250 struct grant *persistent_gnt, *n;
3df0e505 1251 struct blkfront_info *info = rinfo->dev_info;
402b27f9 1252 int i, j, segs;
0a8704a5 1253
bfe11d6d
RPM
1254 /*
1255 * Remove indirect pages, this only happens when using indirect
1256 * descriptors but not persistent grants
1257 */
81f35161 1258 if (!list_empty(&rinfo->indirect_pages)) {
bfe11d6d
RPM
1259 struct page *indirect_page, *n;
1260
1261 BUG_ON(info->feature_persistent);
81f35161 1262 list_for_each_entry_safe(indirect_page, n, &rinfo->indirect_pages, lru) {
bfe11d6d
RPM
1263 list_del(&indirect_page->lru);
1264 __free_page(indirect_page);
1265 }
1266 }
1267
73716df7
BL
1268 /* Remove all persistent grants. */
1269 if (!list_empty(&rinfo->grants)) {
1270 list_for_each_entry_safe(persistent_gnt, n,
1271 &rinfo->grants, node) {
1272 list_del(&persistent_gnt->node);
1273 if (persistent_gnt->gref != GRANT_INVALID_REF) {
1274 gnttab_end_foreign_access(persistent_gnt->gref,
1275 0, 0UL);
1276 rinfo->persistent_gnts_c--;
1277 }
1278 if (info->feature_persistent)
1279 __free_page(persistent_gnt->page);
1280 kfree(persistent_gnt);
1281 }
1282 }
1283 BUG_ON(rinfo->persistent_gnts_c != 0);
1284
86839c56 1285 for (i = 0; i < BLK_RING_SIZE(info); i++) {
402b27f9
RPM
1286 /*
1287 * Clear persistent grants present in requests already
1288 * on the shared ring
1289 */
81f35161 1290 if (!rinfo->shadow[i].request)
402b27f9
RPM
1291 goto free_shadow;
1292
81f35161
BL
1293 segs = rinfo->shadow[i].req.operation == BLKIF_OP_INDIRECT ?
1294 rinfo->shadow[i].req.u.indirect.nr_segments :
1295 rinfo->shadow[i].req.u.rw.nr_segments;
402b27f9 1296 for (j = 0; j < segs; j++) {
81f35161 1297 persistent_gnt = rinfo->shadow[i].grants_used[j];
402b27f9 1298 gnttab_end_foreign_access(persistent_gnt->gref, 0, 0UL);
bfe11d6d 1299 if (info->feature_persistent)
a7a6df22 1300 __free_page(persistent_gnt->page);
402b27f9
RPM
1301 kfree(persistent_gnt);
1302 }
1303
81f35161 1304 if (rinfo->shadow[i].req.operation != BLKIF_OP_INDIRECT)
402b27f9
RPM
1305 /*
1306 * If this is not an indirect operation don't try to
1307 * free indirect segments
1308 */
1309 goto free_shadow;
1310
1311 for (j = 0; j < INDIRECT_GREFS(segs); j++) {
81f35161 1312 persistent_gnt = rinfo->shadow[i].indirect_grants[j];
402b27f9 1313 gnttab_end_foreign_access(persistent_gnt->gref, 0, 0UL);
a7a6df22 1314 __free_page(persistent_gnt->page);
402b27f9
RPM
1315 kfree(persistent_gnt);
1316 }
1317
1318free_shadow:
81f35161
BL
1319 kfree(rinfo->shadow[i].grants_used);
1320 rinfo->shadow[i].grants_used = NULL;
1321 kfree(rinfo->shadow[i].indirect_grants);
1322 rinfo->shadow[i].indirect_grants = NULL;
1323 kfree(rinfo->shadow[i].sg);
1324 rinfo->shadow[i].sg = NULL;
402b27f9
RPM
1325 }
1326
9f27ee59 1327 /* No more gnttab callback work. */
81f35161 1328 gnttab_cancel_free_callback(&rinfo->callback);
9f27ee59
JF
1329
1330 /* Flush gnttab callback work. Must be done with no locks held. */
81f35161 1331 flush_work(&rinfo->work);
9f27ee59
JF
1332
1333 /* Free resources associated with old device channel. */
86839c56 1334 for (i = 0; i < info->nr_ring_pages; i++) {
81f35161
BL
1335 if (rinfo->ring_ref[i] != GRANT_INVALID_REF) {
1336 gnttab_end_foreign_access(rinfo->ring_ref[i], 0, 0);
1337 rinfo->ring_ref[i] = GRANT_INVALID_REF;
86839c56 1338 }
9f27ee59 1339 }
6c647b0e 1340 free_pages((unsigned long)rinfo->ring.sring, get_order(info->nr_ring_pages * XEN_PAGE_SIZE));
81f35161 1341 rinfo->ring.sring = NULL;
86839c56 1342
81f35161
BL
1343 if (rinfo->irq)
1344 unbind_from_irqhandler(rinfo->irq, rinfo);
1345 rinfo->evtchn = rinfo->irq = 0;
3df0e505 1346}
9f27ee59 1347
3df0e505
BL
1348static void blkif_free(struct blkfront_info *info, int suspend)
1349{
3df0e505
BL
1350 unsigned int i;
1351
1352 /* Prevent new requests being issued until we fix things up. */
3df0e505
BL
1353 info->connected = suspend ?
1354 BLKIF_STATE_SUSPENDED : BLKIF_STATE_DISCONNECTED;
1355 /* No more blkif_request(). */
1356 if (info->rq)
1357 blk_mq_stop_hw_queues(info->rq);
1358
3df0e505
BL
1359 for (i = 0; i < info->nr_rings; i++)
1360 blkif_free_ring(&info->rinfo[i]);
1361
1362 kfree(info->rinfo);
1363 info->rinfo = NULL;
1364 info->nr_rings = 0;
9f27ee59
JF
1365}
1366
c004a6fe
JG
1367struct copy_from_grant {
1368 const struct blk_shadow *s;
1369 unsigned int grant_idx;
1370 unsigned int bvec_offset;
1371 char *bvec_data;
1372};
1373
1374static void blkif_copy_from_grant(unsigned long gfn, unsigned int offset,
1375 unsigned int len, void *data)
1376{
1377 struct copy_from_grant *info = data;
1378 char *shared_data;
1379 /* Convenient aliases */
1380 const struct blk_shadow *s = info->s;
1381
1382 shared_data = kmap_atomic(s->grants_used[info->grant_idx]->page);
1383
1384 memcpy(info->bvec_data + info->bvec_offset,
1385 shared_data + offset, len);
1386
1387 info->bvec_offset += len;
1388 info->grant_idx++;
1389
1390 kunmap_atomic(shared_data);
1391}
1392
6cc56833
JG
1393static enum blk_req_status blkif_rsp_to_req_status(int rsp)
1394{
1395 switch (rsp)
1396 {
1397 case BLKIF_RSP_OKAY:
1398 return REQ_DONE;
1399 case BLKIF_RSP_EOPNOTSUPP:
1400 return REQ_EOPNOTSUPP;
1401 case BLKIF_RSP_ERROR:
1402 /* Fallthrough. */
1403 default:
1404 return REQ_ERROR;
1405 }
1406}
1407
1408/*
1409 * Get the final status of the block request based on two ring response
1410 */
1411static int blkif_get_final_status(enum blk_req_status s1,
1412 enum blk_req_status s2)
1413{
1414 BUG_ON(s1 == REQ_WAITING);
1415 BUG_ON(s2 == REQ_WAITING);
1416
1417 if (s1 == REQ_ERROR || s2 == REQ_ERROR)
1418 return BLKIF_RSP_ERROR;
1419 else if (s1 == REQ_EOPNOTSUPP || s2 == REQ_EOPNOTSUPP)
1420 return BLKIF_RSP_EOPNOTSUPP;
1421 return BLKIF_RSP_OKAY;
1422}
1423
1424static bool blkif_completion(unsigned long *id,
1425 struct blkfront_ring_info *rinfo,
0a8704a5 1426 struct blkif_response *bret)
9f27ee59 1427{
d62f6918 1428 int i = 0;
b7649158 1429 struct scatterlist *sg;
c004a6fe 1430 int num_sg, num_grant;
81f35161 1431 struct blkfront_info *info = rinfo->dev_info;
6cc56833 1432 struct blk_shadow *s = &rinfo->shadow[*id];
c004a6fe 1433 struct copy_from_grant data = {
c004a6fe
JG
1434 .grant_idx = 0,
1435 };
402b27f9 1436
c004a6fe 1437 num_grant = s->req.operation == BLKIF_OP_INDIRECT ?
402b27f9 1438 s->req.u.indirect.nr_segments : s->req.u.rw.nr_segments;
6cc56833
JG
1439
1440 /* The I/O request may be split in two. */
1441 if (unlikely(s->associated_id != NO_ASSOCIATED_ID)) {
1442 struct blk_shadow *s2 = &rinfo->shadow[s->associated_id];
1443
1444 /* Keep the status of the current response in shadow. */
1445 s->status = blkif_rsp_to_req_status(bret->status);
1446
1447 /* Wait the second response if not yet here. */
1448 if (s2->status == REQ_WAITING)
1449 return 0;
1450
1451 bret->status = blkif_get_final_status(s->status,
1452 s2->status);
1453
1454 /*
1455 * All the grants is stored in the first shadow in order
1456 * to make the completion code simpler.
1457 */
1458 num_grant += s2->req.u.rw.nr_segments;
1459
1460 /*
1461 * The two responses may not come in order. Only the
1462 * first request will store the scatter-gather list.
1463 */
1464 if (s2->num_sg != 0) {
1465 /* Update "id" with the ID of the first response. */
1466 *id = s->associated_id;
1467 s = s2;
1468 }
1469
1470 /*
1471 * We don't need anymore the second request, so recycling
1472 * it now.
1473 */
1474 if (add_id_to_freelist(rinfo, s->associated_id))
1475 WARN(1, "%s: can't recycle the second part (id = %ld) of the request\n",
1476 info->gd->disk_name, s->associated_id);
1477 }
1478
1479 data.s = s;
c004a6fe 1480 num_sg = s->num_sg;
0a8704a5 1481
bfe11d6d 1482 if (bret->operation == BLKIF_OP_READ && info->feature_persistent) {
c004a6fe 1483 for_each_sg(s->sg, sg, num_sg, i) {
b7649158 1484 BUG_ON(sg->offset + sg->length > PAGE_SIZE);
c004a6fe
JG
1485
1486 data.bvec_offset = sg->offset;
1487 data.bvec_data = kmap_atomic(sg_page(sg));
1488
1489 gnttab_foreach_grant_in_range(sg_page(sg),
1490 sg->offset,
1491 sg->length,
1492 blkif_copy_from_grant,
1493 &data);
1494
1495 kunmap_atomic(data.bvec_data);
0a8704a5
RPM
1496 }
1497 }
1498 /* Add the persistent grant into the list of free grants */
c004a6fe 1499 for (i = 0; i < num_grant; i++) {
fbe363c4
RPM
1500 if (gnttab_query_foreign_access(s->grants_used[i]->gref)) {
1501 /*
1502 * If the grant is still mapped by the backend (the
1503 * backend has chosen to make this grant persistent)
1504 * we add it at the head of the list, so it will be
1505 * reused first.
1506 */
bfe11d6d
RPM
1507 if (!info->feature_persistent)
1508 pr_alert_ratelimited("backed has not unmapped grant: %u\n",
1509 s->grants_used[i]->gref);
73716df7
BL
1510 list_add(&s->grants_used[i]->node, &rinfo->grants);
1511 rinfo->persistent_gnts_c++;
fbe363c4
RPM
1512 } else {
1513 /*
1514 * If the grant is not mapped by the backend we end the
1515 * foreign access and add it to the tail of the list,
1516 * so it will not be picked again unless we run out of
1517 * persistent grants.
1518 */
1519 gnttab_end_foreign_access(s->grants_used[i]->gref, 0, 0UL);
1520 s->grants_used[i]->gref = GRANT_INVALID_REF;
73716df7 1521 list_add_tail(&s->grants_used[i]->node, &rinfo->grants);
fbe363c4 1522 }
0a8704a5 1523 }
402b27f9 1524 if (s->req.operation == BLKIF_OP_INDIRECT) {
c004a6fe 1525 for (i = 0; i < INDIRECT_GREFS(num_grant); i++) {
fbe363c4 1526 if (gnttab_query_foreign_access(s->indirect_grants[i]->gref)) {
bfe11d6d
RPM
1527 if (!info->feature_persistent)
1528 pr_alert_ratelimited("backed has not unmapped grant: %u\n",
1529 s->indirect_grants[i]->gref);
73716df7
BL
1530 list_add(&s->indirect_grants[i]->node, &rinfo->grants);
1531 rinfo->persistent_gnts_c++;
fbe363c4 1532 } else {
bfe11d6d
RPM
1533 struct page *indirect_page;
1534
fbe363c4 1535 gnttab_end_foreign_access(s->indirect_grants[i]->gref, 0, 0UL);
bfe11d6d
RPM
1536 /*
1537 * Add the used indirect page back to the list of
1538 * available pages for indirect grefs.
1539 */
7b076750 1540 if (!info->feature_persistent) {
a7a6df22 1541 indirect_page = s->indirect_grants[i]->page;
81f35161 1542 list_add(&indirect_page->lru, &rinfo->indirect_pages);
7b076750 1543 }
fbe363c4 1544 s->indirect_grants[i]->gref = GRANT_INVALID_REF;
73716df7 1545 list_add_tail(&s->indirect_grants[i]->node, &rinfo->grants);
fbe363c4 1546 }
402b27f9
RPM
1547 }
1548 }
6cc56833
JG
1549
1550 return 1;
9f27ee59
JF
1551}
1552
1553static irqreturn_t blkif_interrupt(int irq, void *dev_id)
1554{
1555 struct request *req;
1556 struct blkif_response *bret;
1557 RING_IDX i, rp;
1558 unsigned long flags;
81f35161
BL
1559 struct blkfront_ring_info *rinfo = (struct blkfront_ring_info *)dev_id;
1560 struct blkfront_info *info = rinfo->dev_info;
9f27ee59 1561
11659569 1562 if (unlikely(info->connected != BLKIF_STATE_CONNECTED))
9f27ee59 1563 return IRQ_HANDLED;
9f27ee59 1564
11659569 1565 spin_lock_irqsave(&rinfo->ring_lock, flags);
9f27ee59 1566 again:
81f35161 1567 rp = rinfo->ring.sring->rsp_prod;
9f27ee59
JF
1568 rmb(); /* Ensure we see queued responses up to 'rp'. */
1569
81f35161 1570 for (i = rinfo->ring.rsp_cons; i != rp; i++) {
9f27ee59 1571 unsigned long id;
9f27ee59 1572
81f35161 1573 bret = RING_GET_RESPONSE(&rinfo->ring, i);
9f27ee59 1574 id = bret->id;
6878c32e
KRW
1575 /*
1576 * The backend has messed up and given us an id that we would
1577 * never have given to it (we stamp it up to BLK_RING_SIZE -
1578 * look in get_id_from_freelist.
1579 */
86839c56 1580 if (id >= BLK_RING_SIZE(info)) {
6878c32e
KRW
1581 WARN(1, "%s: response to %s has incorrect id (%ld)\n",
1582 info->gd->disk_name, op_name(bret->operation), id);
1583 /* We can't safely get the 'struct request' as
1584 * the id is busted. */
1585 continue;
1586 }
81f35161 1587 req = rinfo->shadow[id].request;
9f27ee59 1588
6cc56833
JG
1589 if (bret->operation != BLKIF_OP_DISCARD) {
1590 /*
1591 * We may need to wait for an extra response if the
1592 * I/O request is split in 2
1593 */
1594 if (!blkif_completion(&id, rinfo, bret))
1595 continue;
1596 }
9f27ee59 1597
81f35161 1598 if (add_id_to_freelist(rinfo, id)) {
6878c32e
KRW
1599 WARN(1, "%s: response to %s (id %ld) couldn't be recycled!\n",
1600 info->gd->disk_name, op_name(bret->operation), id);
1601 continue;
1602 }
9f27ee59 1603
2a842aca
CH
1604 if (bret->status == BLKIF_RSP_OKAY)
1605 blkif_req(req)->error = BLK_STS_OK;
1606 else
1607 blkif_req(req)->error = BLK_STS_IOERR;
1608
9f27ee59 1609 switch (bret->operation) {
ed30bf31
LD
1610 case BLKIF_OP_DISCARD:
1611 if (unlikely(bret->status == BLKIF_RSP_EOPNOTSUPP)) {
1612 struct request_queue *rq = info->rq;
6878c32e
KRW
1613 printk(KERN_WARNING "blkfront: %s: %s op failed\n",
1614 info->gd->disk_name, op_name(bret->operation));
2a842aca 1615 blkif_req(req)->error = BLK_STS_NOTSUPP;
ed30bf31 1616 info->feature_discard = 0;
5ea42986 1617 info->feature_secdiscard = 0;
ed30bf31 1618 queue_flag_clear(QUEUE_FLAG_DISCARD, rq);
288dab8a 1619 queue_flag_clear(QUEUE_FLAG_SECERASE, rq);
ed30bf31 1620 }
ed30bf31 1621 break;
edf6ef59 1622 case BLKIF_OP_FLUSH_DISKCACHE:
9f27ee59
JF
1623 case BLKIF_OP_WRITE_BARRIER:
1624 if (unlikely(bret->status == BLKIF_RSP_EOPNOTSUPP)) {
6878c32e
KRW
1625 printk(KERN_WARNING "blkfront: %s: %s op failed\n",
1626 info->gd->disk_name, op_name(bret->operation));
2609587c 1627 blkif_req(req)->error = -EOPNOTSUPP;
dcb8baec
JF
1628 }
1629 if (unlikely(bret->status == BLKIF_RSP_ERROR &&
81f35161 1630 rinfo->shadow[id].req.u.rw.nr_segments == 0)) {
6878c32e
KRW
1631 printk(KERN_WARNING "blkfront: %s: empty %s op failed\n",
1632 info->gd->disk_name, op_name(bret->operation));
2a842aca 1633 blkif_req(req)->error = BLK_STS_NOTSUPP;
dcb8baec 1634 }
2609587c 1635 if (unlikely(blkif_req(req)->error)) {
2a842aca
CH
1636 if (blkif_req(req)->error == BLK_STS_NOTSUPP)
1637 blkif_req(req)->error = BLK_STS_OK;
a418090a 1638 info->feature_fua = 0;
4913efe4
TH
1639 info->feature_flush = 0;
1640 xlvbd_flush(info);
9f27ee59
JF
1641 }
1642 /* fall through */
1643 case BLKIF_OP_READ:
1644 case BLKIF_OP_WRITE:
1645 if (unlikely(bret->status != BLKIF_RSP_OKAY))
1646 dev_dbg(&info->xbdev->dev, "Bad return from blkdev data "
1647 "request: %x\n", bret->status);
1648
9f27ee59
JF
1649 break;
1650 default:
1651 BUG();
1652 }
2609587c 1653
08e0029a 1654 blk_mq_complete_request(req);
9f27ee59
JF
1655 }
1656
81f35161 1657 rinfo->ring.rsp_cons = i;
9f27ee59 1658
81f35161 1659 if (i != rinfo->ring.req_prod_pvt) {
9f27ee59 1660 int more_to_do;
81f35161 1661 RING_FINAL_CHECK_FOR_RESPONSES(&rinfo->ring, more_to_do);
9f27ee59
JF
1662 if (more_to_do)
1663 goto again;
1664 } else
81f35161 1665 rinfo->ring.sring->rsp_event = i + 1;
9f27ee59 1666
11659569 1667 kick_pending_request_queues_locked(rinfo);
9f27ee59 1668
11659569 1669 spin_unlock_irqrestore(&rinfo->ring_lock, flags);
9f27ee59
JF
1670
1671 return IRQ_HANDLED;
1672}
1673
1674
1675static int setup_blkring(struct xenbus_device *dev,
81f35161 1676 struct blkfront_ring_info *rinfo)
9f27ee59
JF
1677{
1678 struct blkif_sring *sring;
86839c56 1679 int err, i;
81f35161 1680 struct blkfront_info *info = rinfo->dev_info;
c004a6fe 1681 unsigned long ring_size = info->nr_ring_pages * XEN_PAGE_SIZE;
9cce2914 1682 grant_ref_t gref[XENBUS_MAX_RING_GRANTS];
9f27ee59 1683
86839c56 1684 for (i = 0; i < info->nr_ring_pages; i++)
81f35161 1685 rinfo->ring_ref[i] = GRANT_INVALID_REF;
9f27ee59 1686
86839c56
BL
1687 sring = (struct blkif_sring *)__get_free_pages(GFP_NOIO | __GFP_HIGH,
1688 get_order(ring_size));
9f27ee59
JF
1689 if (!sring) {
1690 xenbus_dev_fatal(dev, -ENOMEM, "allocating shared ring");
1691 return -ENOMEM;
1692 }
1693 SHARED_RING_INIT(sring);
81f35161 1694 FRONT_RING_INIT(&rinfo->ring, sring, ring_size);
9e973e64 1695
81f35161 1696 err = xenbus_grant_ring(dev, rinfo->ring.sring, info->nr_ring_pages, gref);
9f27ee59 1697 if (err < 0) {
86839c56 1698 free_pages((unsigned long)sring, get_order(ring_size));
81f35161 1699 rinfo->ring.sring = NULL;
9f27ee59
JF
1700 goto fail;
1701 }
86839c56 1702 for (i = 0; i < info->nr_ring_pages; i++)
81f35161 1703 rinfo->ring_ref[i] = gref[i];
9f27ee59 1704
81f35161 1705 err = xenbus_alloc_evtchn(dev, &rinfo->evtchn);
9f27ee59
JF
1706 if (err)
1707 goto fail;
1708
81f35161
BL
1709 err = bind_evtchn_to_irqhandler(rinfo->evtchn, blkif_interrupt, 0,
1710 "blkif", rinfo);
9f27ee59
JF
1711 if (err <= 0) {
1712 xenbus_dev_fatal(dev, err,
1713 "bind_evtchn_to_irqhandler failed");
1714 goto fail;
1715 }
81f35161 1716 rinfo->irq = err;
9f27ee59
JF
1717
1718 return 0;
1719fail:
1720 blkif_free(info, 0);
1721 return err;
1722}
1723
28d949bc
BL
1724/*
1725 * Write out per-ring/queue nodes including ring-ref and event-channel, and each
1726 * ring buffer may have multi pages depending on ->nr_ring_pages.
1727 */
1728static int write_per_ring_nodes(struct xenbus_transaction xbt,
1729 struct blkfront_ring_info *rinfo, const char *dir)
1730{
1731 int err;
1732 unsigned int i;
1733 const char *message = NULL;
1734 struct blkfront_info *info = rinfo->dev_info;
1735
1736 if (info->nr_ring_pages == 1) {
1737 err = xenbus_printf(xbt, dir, "ring-ref", "%u", rinfo->ring_ref[0]);
1738 if (err) {
1739 message = "writing ring-ref";
1740 goto abort_transaction;
1741 }
1742 } else {
1743 for (i = 0; i < info->nr_ring_pages; i++) {
1744 char ring_ref_name[RINGREF_NAME_LEN];
1745
1746 snprintf(ring_ref_name, RINGREF_NAME_LEN, "ring-ref%u", i);
1747 err = xenbus_printf(xbt, dir, ring_ref_name,
1748 "%u", rinfo->ring_ref[i]);
1749 if (err) {
1750 message = "writing ring-ref";
1751 goto abort_transaction;
1752 }
1753 }
1754 }
1755
1756 err = xenbus_printf(xbt, dir, "event-channel", "%u", rinfo->evtchn);
1757 if (err) {
1758 message = "writing event-channel";
1759 goto abort_transaction;
1760 }
1761
1762 return 0;
1763
1764abort_transaction:
1765 xenbus_transaction_end(xbt, 1);
1766 if (message)
1767 xenbus_dev_fatal(info->xbdev, err, "%s", message);
1768
1769 return err;
1770}
9f27ee59
JF
1771
1772/* Common code used when first setting up, and when resuming. */
203fd61f 1773static int talk_to_blkback(struct xenbus_device *dev,
9f27ee59
JF
1774 struct blkfront_info *info)
1775{
1776 const char *message = NULL;
1777 struct xenbus_transaction xbt;
28d949bc 1778 int err;
f27dc1ac
JG
1779 unsigned int i, max_page_order;
1780 unsigned int ring_page_order;
86839c56 1781
f27dc1ac
JG
1782 max_page_order = xenbus_read_unsigned(info->xbdev->otherend,
1783 "max-ring-page-order", 0);
1784 ring_page_order = min(xen_blkif_max_ring_order, max_page_order);
1785 info->nr_ring_pages = 1 << ring_page_order;
9f27ee59 1786
3df0e505 1787 for (i = 0; i < info->nr_rings; i++) {
28d949bc
BL
1788 struct blkfront_ring_info *rinfo = &info->rinfo[i];
1789
3df0e505
BL
1790 /* Create shared ring, alloc event channel. */
1791 err = setup_blkring(dev, rinfo);
1792 if (err)
1793 goto destroy_blkring;
1794 }
9f27ee59
JF
1795
1796again:
1797 err = xenbus_transaction_start(&xbt);
1798 if (err) {
1799 xenbus_dev_fatal(dev, err, "starting transaction");
1800 goto destroy_blkring;
1801 }
1802
28d949bc
BL
1803 if (info->nr_ring_pages > 1) {
1804 err = xenbus_printf(xbt, dev->nodename, "ring-page-order", "%u",
1805 ring_page_order);
1806 if (err) {
1807 message = "writing ring-page-order";
1808 goto abort_transaction;
1809 }
1810 }
3df0e505 1811
28d949bc
BL
1812 /* We already got the number of queues/rings in _probe */
1813 if (info->nr_rings == 1) {
1814 err = write_per_ring_nodes(xbt, &info->rinfo[0], dev->nodename);
1815 if (err)
1816 goto destroy_blkring;
1817 } else {
1818 char *path;
1819 size_t pathsize;
3df0e505 1820
28d949bc
BL
1821 err = xenbus_printf(xbt, dev->nodename, "multi-queue-num-queues", "%u",
1822 info->nr_rings);
3df0e505 1823 if (err) {
28d949bc 1824 message = "writing multi-queue-num-queues";
3df0e505
BL
1825 goto abort_transaction;
1826 }
28d949bc
BL
1827
1828 pathsize = strlen(dev->nodename) + QUEUE_NAME_LEN;
1829 path = kmalloc(pathsize, GFP_KERNEL);
1830 if (!path) {
1831 err = -ENOMEM;
1832 message = "ENOMEM while writing ring references";
1833 goto abort_transaction;
1834 }
1835
1836 for (i = 0; i < info->nr_rings; i++) {
1837 memset(path, 0, pathsize);
1838 snprintf(path, pathsize, "%s/queue-%u", dev->nodename, i);
1839 err = write_per_ring_nodes(xbt, &info->rinfo[i], path);
1840 if (err) {
1841 kfree(path);
1842 goto destroy_blkring;
1843 }
1844 }
1845 kfree(path);
9f27ee59 1846 }
3e334239
MA
1847 err = xenbus_printf(xbt, dev->nodename, "protocol", "%s",
1848 XEN_IO_PROTO_ABI_NATIVE);
1849 if (err) {
1850 message = "writing protocol";
1851 goto abort_transaction;
1852 }
0a8704a5 1853 err = xenbus_printf(xbt, dev->nodename,
cb5bd4d1 1854 "feature-persistent", "%u", 1);
0a8704a5
RPM
1855 if (err)
1856 dev_warn(&dev->dev,
1857 "writing persistent grants feature to xenbus");
9f27ee59
JF
1858
1859 err = xenbus_transaction_end(xbt, 0);
1860 if (err) {
1861 if (err == -EAGAIN)
1862 goto again;
1863 xenbus_dev_fatal(dev, err, "completing transaction");
1864 goto destroy_blkring;
1865 }
1866
3df0e505
BL
1867 for (i = 0; i < info->nr_rings; i++) {
1868 unsigned int j;
28d949bc 1869 struct blkfront_ring_info *rinfo = &info->rinfo[i];
3df0e505
BL
1870
1871 for (j = 0; j < BLK_RING_SIZE(info); j++)
1872 rinfo->shadow[j].req.u.rw.id = j + 1;
1873 rinfo->shadow[BLK_RING_SIZE(info)-1].req.u.rw.id = 0x0fffffff;
1874 }
9f27ee59
JF
1875 xenbus_switch_state(dev, XenbusStateInitialised);
1876
1877 return 0;
1878
1879 abort_transaction:
1880 xenbus_transaction_end(xbt, 1);
1881 if (message)
1882 xenbus_dev_fatal(dev, err, "%s", message);
1883 destroy_blkring:
1884 blkif_free(info, 0);
3df0e505 1885
c31ecf6c
KRW
1886 kfree(info);
1887 dev_set_drvdata(&dev->dev, NULL);
1888
9f27ee59
JF
1889 return err;
1890}
1891
3db70a85
BL
1892static int negotiate_mq(struct blkfront_info *info)
1893{
f27dc1ac 1894 unsigned int backend_max_queues;
3db70a85
BL
1895 unsigned int i;
1896
1897 BUG_ON(info->nr_rings);
1898
1899 /* Check if backend supports multiple queues. */
f27dc1ac
JG
1900 backend_max_queues = xenbus_read_unsigned(info->xbdev->otherend,
1901 "multi-queue-max-queues", 1);
3db70a85
BL
1902 info->nr_rings = min(backend_max_queues, xen_blkif_max_queues);
1903 /* We need at least one ring. */
1904 if (!info->nr_rings)
1905 info->nr_rings = 1;
1906
1907 info->rinfo = kzalloc(sizeof(struct blkfront_ring_info) * info->nr_rings, GFP_KERNEL);
1908 if (!info->rinfo) {
1909 xenbus_dev_fatal(info->xbdev, -ENOMEM, "allocating ring_info structure");
1910 return -ENOMEM;
1911 }
1912
1913 for (i = 0; i < info->nr_rings; i++) {
1914 struct blkfront_ring_info *rinfo;
1915
1916 rinfo = &info->rinfo[i];
1917 INIT_LIST_HEAD(&rinfo->indirect_pages);
1918 INIT_LIST_HEAD(&rinfo->grants);
1919 rinfo->dev_info = info;
1920 INIT_WORK(&rinfo->work, blkif_restart_queue);
1921 spin_lock_init(&rinfo->ring_lock);
1922 }
1923 return 0;
1924}
9f27ee59
JF
1925/**
1926 * Entry point to this code when a new device is created. Allocate the basic
1927 * structures and the ring buffer for communication with the backend, and
1928 * inform the backend of the appropriate details for those. Switch to
1929 * Initialised state.
1930 */
1931static int blkfront_probe(struct xenbus_device *dev,
1932 const struct xenbus_device_id *id)
1933{
86839c56 1934 int err, vdevice;
9f27ee59
JF
1935 struct blkfront_info *info;
1936
1937 /* FIXME: Use dynamic device id if this is not set. */
1938 err = xenbus_scanf(XBT_NIL, dev->nodename,
1939 "virtual-device", "%i", &vdevice);
1940 if (err != 1) {
9246b5f0
CL
1941 /* go looking in the extended area instead */
1942 err = xenbus_scanf(XBT_NIL, dev->nodename, "virtual-device-ext",
1943 "%i", &vdevice);
1944 if (err != 1) {
1945 xenbus_dev_fatal(dev, err, "reading virtual-device");
1946 return err;
1947 }
9f27ee59
JF
1948 }
1949
b98a409b
SS
1950 if (xen_hvm_domain()) {
1951 char *type;
1952 int len;
1953 /* no unplug has been done: do not hook devices != xen vbds */
51c71a3b 1954 if (xen_has_pv_and_legacy_disk_devices()) {
b98a409b
SS
1955 int major;
1956
1957 if (!VDEV_IS_EXTENDED(vdevice))
1958 major = BLKIF_MAJOR(vdevice);
1959 else
1960 major = XENVBD_MAJOR;
1961
1962 if (major != XENVBD_MAJOR) {
1963 printk(KERN_INFO
1964 "%s: HVM does not support vbd %d as xen block device\n",
02f1f217 1965 __func__, vdevice);
b98a409b
SS
1966 return -ENODEV;
1967 }
1968 }
1969 /* do not create a PV cdrom device if we are an HVM guest */
1970 type = xenbus_read(XBT_NIL, dev->nodename, "device-type", &len);
1971 if (IS_ERR(type))
1972 return -ENODEV;
1973 if (strncmp(type, "cdrom", 5) == 0) {
1974 kfree(type);
c1c5413a
SS
1975 return -ENODEV;
1976 }
b98a409b 1977 kfree(type);
c1c5413a 1978 }
9f27ee59
JF
1979 info = kzalloc(sizeof(*info), GFP_KERNEL);
1980 if (!info) {
1981 xenbus_dev_fatal(dev, -ENOMEM, "allocating info structure");
1982 return -ENOMEM;
1983 }
1984
28d949bc 1985 info->xbdev = dev;
3db70a85
BL
1986 err = negotiate_mq(info);
1987 if (err) {
3df0e505 1988 kfree(info);
3db70a85 1989 return err;
3df0e505 1990 }
81f35161 1991
b70f5fa0 1992 mutex_init(&info->mutex);
9f27ee59
JF
1993 info->vdevice = vdevice;
1994 info->connected = BLKIF_STATE_DISCONNECTED;
9f27ee59 1995
9f27ee59
JF
1996 /* Front end dir is a number, which is used as the id. */
1997 info->handle = simple_strtoul(strrchr(dev->nodename, '/')+1, NULL, 0);
a1b4b12b 1998 dev_set_drvdata(&dev->dev, info);
9f27ee59 1999
9f27ee59
JF
2000 return 0;
2001}
2002
4246a0b6 2003static void split_bio_end(struct bio *bio)
402b27f9
RPM
2004{
2005 struct split_bio *split_bio = bio->bi_private;
2006
402b27f9
RPM
2007 if (atomic_dec_and_test(&split_bio->pending)) {
2008 split_bio->bio->bi_phys_segments = 0;
4e4cbee9 2009 split_bio->bio->bi_status = bio->bi_status;
4246a0b6 2010 bio_endio(split_bio->bio);
402b27f9
RPM
2011 kfree(split_bio);
2012 }
2013 bio_put(bio);
2014}
9f27ee59
JF
2015
2016static int blkif_recover(struct blkfront_info *info)
2017{
3df0e505 2018 unsigned int i, r_index;
402b27f9 2019 struct request *req, *n;
402b27f9
RPM
2020 int rc;
2021 struct bio *bio, *cloned_bio;
402b27f9
RPM
2022 unsigned int segs, offset;
2023 int pending, size;
2024 struct split_bio *split_bio;
402b27f9 2025
3df0e505 2026 blkfront_gather_backend_features(info);
172335ad
BL
2027 /* Reset limits changed by blk_mq_update_nr_hw_queues(). */
2028 blkif_set_queue_limits(info);
402b27f9 2029 segs = info->max_indirect_segments ? : BLKIF_MAX_SEGMENTS_PER_REQUEST;
6c647b0e 2030 blk_queue_max_segments(info->rq, segs / GRANTS_PER_PSEG);
9f27ee59 2031
3df0e505 2032 for (r_index = 0; r_index < info->nr_rings; r_index++) {
7b427a59 2033 struct blkfront_ring_info *rinfo = &info->rinfo[r_index];
3df0e505
BL
2034
2035 rc = blkfront_setup_indirect(rinfo);
7b427a59 2036 if (rc)
3df0e505 2037 return rc;
3df0e505 2038 }
9f27ee59
JF
2039 xenbus_switch_state(info->xbdev, XenbusStateConnected);
2040
9f27ee59
JF
2041 /* Now safe for us to use the shared ring */
2042 info->connected = BLKIF_STATE_CONNECTED;
2043
3df0e505
BL
2044 for (r_index = 0; r_index < info->nr_rings; r_index++) {
2045 struct blkfront_ring_info *rinfo;
2046
2047 rinfo = &info->rinfo[r_index];
2048 /* Kick any other new requests queued since we resumed */
2049 kick_pending_request_queues(rinfo);
2050 }
9f27ee59 2051
7b427a59 2052 list_for_each_entry_safe(req, n, &info->requests, queuelist) {
402b27f9
RPM
2053 /* Requeue pending requests (flush or discard) */
2054 list_del_init(&req->queuelist);
2055 BUG_ON(req->nr_phys_segments > segs);
2b053aca 2056 blk_mq_requeue_request(req, false);
402b27f9 2057 }
52d7f1b5 2058 blk_mq_start_stopped_hw_queues(info->rq, true);
907c3eb1 2059 blk_mq_kick_requeue_list(info->rq);
9f27ee59 2060
7b427a59 2061 while ((bio = bio_list_pop(&info->bio_list)) != NULL) {
402b27f9
RPM
2062 /* Traverse the list of pending bios and re-queue them */
2063 if (bio_segments(bio) > segs) {
2064 /*
2065 * This bio has more segments than what we can
2066 * handle, we have to split it.
2067 */
2068 pending = (bio_segments(bio) + segs - 1) / segs;
2069 split_bio = kzalloc(sizeof(*split_bio), GFP_NOIO);
2070 BUG_ON(split_bio == NULL);
2071 atomic_set(&split_bio->pending, pending);
2072 split_bio->bio = bio;
2073 for (i = 0; i < pending; i++) {
c004a6fe
JG
2074 offset = (i * segs * XEN_PAGE_SIZE) >> 9;
2075 size = min((unsigned int)(segs * XEN_PAGE_SIZE) >> 9,
4f024f37 2076 (unsigned int)bio_sectors(bio) - offset);
402b27f9
RPM
2077 cloned_bio = bio_clone(bio, GFP_NOIO);
2078 BUG_ON(cloned_bio == NULL);
6678d83f 2079 bio_trim(cloned_bio, offset, size);
402b27f9
RPM
2080 cloned_bio->bi_private = split_bio;
2081 cloned_bio->bi_end_io = split_bio_end;
4e49ea4a 2082 submit_bio(cloned_bio);
402b27f9
RPM
2083 }
2084 /*
2085 * Now we have to wait for all those smaller bios to
2086 * end, so we can also end the "parent" bio.
2087 */
2088 continue;
2089 }
2090 /* We don't need to split this bio */
4e49ea4a 2091 submit_bio(bio);
402b27f9
RPM
2092 }
2093
9f27ee59
JF
2094 return 0;
2095}
2096
2097/**
2098 * We are reconnecting to the backend, due to a suspend/resume, or a backend
2099 * driver restart. We tear down our blkif structure and recreate it, but
2100 * leave the device-layer structures intact so that this is transparent to the
2101 * rest of the kernel.
2102 */
2103static int blkfront_resume(struct xenbus_device *dev)
2104{
a1b4b12b 2105 struct blkfront_info *info = dev_get_drvdata(&dev->dev);
3db70a85 2106 int err = 0;
7b427a59 2107 unsigned int i, j;
9f27ee59
JF
2108
2109 dev_dbg(&dev->dev, "blkfront_resume: %s\n", dev->nodename);
2110
7b427a59
BL
2111 bio_list_init(&info->bio_list);
2112 INIT_LIST_HEAD(&info->requests);
2113 for (i = 0; i < info->nr_rings; i++) {
2114 struct blkfront_ring_info *rinfo = &info->rinfo[i];
2115 struct bio_list merge_bio;
2116 struct blk_shadow *shadow = rinfo->shadow;
2117
2118 for (j = 0; j < BLK_RING_SIZE(info); j++) {
2119 /* Not in use? */
2120 if (!shadow[j].request)
2121 continue;
2122
2123 /*
2124 * Get the bios in the request so we can re-queue them.
2125 */
d05d7f40
LT
2126 if (req_op(shadow[i].request) == REQ_OP_FLUSH ||
2127 req_op(shadow[i].request) == REQ_OP_DISCARD ||
3fc9d690
LT
2128 req_op(shadow[i].request) == REQ_OP_SECURE_ERASE ||
2129 shadow[j].request->cmd_flags & REQ_FUA) {
7b427a59
BL
2130 /*
2131 * Flush operations don't contain bios, so
2132 * we need to requeue the whole request
3fc9d690
LT
2133 *
2134 * XXX: but this doesn't make any sense for a
2135 * write with the FUA flag set..
7b427a59
BL
2136 */
2137 list_add(&shadow[j].request->queuelist, &info->requests);
2138 continue;
2139 }
2140 merge_bio.head = shadow[j].request->bio;
2141 merge_bio.tail = shadow[j].request->biotail;
2142 bio_list_merge(&info->bio_list, &merge_bio);
2143 shadow[j].request->bio = NULL;
2a842aca 2144 blk_mq_end_request(shadow[j].request, BLK_STS_OK);
7b427a59
BL
2145 }
2146 }
2147
9f27ee59
JF
2148 blkif_free(info, info->connected == BLKIF_STATE_CONNECTED);
2149
3db70a85
BL
2150 err = negotiate_mq(info);
2151 if (err)
2152 return err;
2153
203fd61f 2154 err = talk_to_blkback(dev, info);
2a6f71ad
BL
2155 if (!err)
2156 blk_mq_update_nr_hw_queues(&info->tag_set, info->nr_rings);
402b27f9
RPM
2157
2158 /*
2159 * We have to wait for the backend to switch to
2160 * connected state, since we want to read which
2161 * features it supports.
2162 */
9f27ee59
JF
2163
2164 return err;
2165}
2166
6f03a7ff 2167static void blkfront_closing(struct blkfront_info *info)
b70f5fa0
DS
2168{
2169 struct xenbus_device *xbdev = info->xbdev;
2170 struct block_device *bdev = NULL;
2171
2172 mutex_lock(&info->mutex);
2173
2174 if (xbdev->state == XenbusStateClosing) {
2175 mutex_unlock(&info->mutex);
2176 return;
2177 }
2178
2179 if (info->gd)
2180 bdev = bdget_disk(info->gd, 0);
2181
2182 mutex_unlock(&info->mutex);
2183
2184 if (!bdev) {
2185 xenbus_frontend_closed(xbdev);
2186 return;
2187 }
2188
2189 mutex_lock(&bdev->bd_mutex);
2190
7b32d104 2191 if (bdev->bd_openers) {
b70f5fa0
DS
2192 xenbus_dev_error(xbdev, -EBUSY,
2193 "Device in use; refusing to close");
2194 xenbus_switch_state(xbdev, XenbusStateClosing);
2195 } else {
2196 xlvbd_release_gendisk(info);
2197 xenbus_frontend_closed(xbdev);
2198 }
2199
2200 mutex_unlock(&bdev->bd_mutex);
2201 bdput(bdev);
2202}
9f27ee59 2203
ed30bf31
LD
2204static void blkfront_setup_discard(struct blkfront_info *info)
2205{
2206 int err;
ed30bf31
LD
2207 unsigned int discard_granularity;
2208 unsigned int discard_alignment;
2209
1c8cad6c
OH
2210 info->feature_discard = 1;
2211 err = xenbus_gather(XBT_NIL, info->xbdev->otherend,
2212 "discard-granularity", "%u", &discard_granularity,
2213 "discard-alignment", "%u", &discard_alignment,
2214 NULL);
2215 if (!err) {
2216 info->discard_granularity = discard_granularity;
2217 info->discard_alignment = discard_alignment;
2218 }
f27dc1ac
JG
2219 info->feature_secdiscard =
2220 !!xenbus_read_unsigned(info->xbdev->otherend, "discard-secure",
2221 0);
ed30bf31
LD
2222}
2223
81f35161 2224static int blkfront_setup_indirect(struct blkfront_ring_info *rinfo)
402b27f9 2225{
c004a6fe 2226 unsigned int psegs, grants;
402b27f9 2227 int err, i;
81f35161 2228 struct blkfront_info *info = rinfo->dev_info;
402b27f9 2229
6cc56833
JG
2230 if (info->max_indirect_segments == 0) {
2231 if (!HAS_EXTRA_REQ)
2232 grants = BLKIF_MAX_SEGMENTS_PER_REQUEST;
2233 else {
2234 /*
2235 * When an extra req is required, the maximum
2236 * grants supported is related to the size of the
2237 * Linux block segment.
2238 */
2239 grants = GRANTS_PER_PSEG;
2240 }
2241 }
d50babbe 2242 else
c004a6fe 2243 grants = info->max_indirect_segments;
3b4f1884 2244 psegs = DIV_ROUND_UP(grants, GRANTS_PER_PSEG);
402b27f9 2245
81f35161 2246 err = fill_grant_buffer(rinfo,
c004a6fe 2247 (grants + INDIRECT_GREFS(grants)) * BLK_RING_SIZE(info));
402b27f9
RPM
2248 if (err)
2249 goto out_of_memory;
2250
bfe11d6d
RPM
2251 if (!info->feature_persistent && info->max_indirect_segments) {
2252 /*
2253 * We are using indirect descriptors but not persistent
2254 * grants, we need to allocate a set of pages that can be
2255 * used for mapping indirect grefs
2256 */
c004a6fe 2257 int num = INDIRECT_GREFS(grants) * BLK_RING_SIZE(info);
bfe11d6d 2258
81f35161 2259 BUG_ON(!list_empty(&rinfo->indirect_pages));
bfe11d6d
RPM
2260 for (i = 0; i < num; i++) {
2261 struct page *indirect_page = alloc_page(GFP_NOIO);
2262 if (!indirect_page)
2263 goto out_of_memory;
81f35161 2264 list_add(&indirect_page->lru, &rinfo->indirect_pages);
bfe11d6d
RPM
2265 }
2266 }
2267
86839c56 2268 for (i = 0; i < BLK_RING_SIZE(info); i++) {
81f35161
BL
2269 rinfo->shadow[i].grants_used = kzalloc(
2270 sizeof(rinfo->shadow[i].grants_used[0]) * grants,
402b27f9 2271 GFP_NOIO);
81f35161 2272 rinfo->shadow[i].sg = kzalloc(sizeof(rinfo->shadow[i].sg[0]) * psegs, GFP_NOIO);
402b27f9 2273 if (info->max_indirect_segments)
81f35161
BL
2274 rinfo->shadow[i].indirect_grants = kzalloc(
2275 sizeof(rinfo->shadow[i].indirect_grants[0]) *
c004a6fe 2276 INDIRECT_GREFS(grants),
402b27f9 2277 GFP_NOIO);
81f35161
BL
2278 if ((rinfo->shadow[i].grants_used == NULL) ||
2279 (rinfo->shadow[i].sg == NULL) ||
402b27f9 2280 (info->max_indirect_segments &&
81f35161 2281 (rinfo->shadow[i].indirect_grants == NULL)))
402b27f9 2282 goto out_of_memory;
81f35161 2283 sg_init_table(rinfo->shadow[i].sg, psegs);
402b27f9
RPM
2284 }
2285
2286
2287 return 0;
2288
2289out_of_memory:
86839c56 2290 for (i = 0; i < BLK_RING_SIZE(info); i++) {
81f35161
BL
2291 kfree(rinfo->shadow[i].grants_used);
2292 rinfo->shadow[i].grants_used = NULL;
2293 kfree(rinfo->shadow[i].sg);
2294 rinfo->shadow[i].sg = NULL;
2295 kfree(rinfo->shadow[i].indirect_grants);
2296 rinfo->shadow[i].indirect_grants = NULL;
402b27f9 2297 }
81f35161 2298 if (!list_empty(&rinfo->indirect_pages)) {
bfe11d6d 2299 struct page *indirect_page, *n;
81f35161 2300 list_for_each_entry_safe(indirect_page, n, &rinfo->indirect_pages, lru) {
bfe11d6d
RPM
2301 list_del(&indirect_page->lru);
2302 __free_page(indirect_page);
2303 }
2304 }
402b27f9
RPM
2305 return -ENOMEM;
2306}
2307
d50babbe
BL
2308/*
2309 * Gather all backend feature-*
2310 */
3df0e505 2311static void blkfront_gather_backend_features(struct blkfront_info *info)
d50babbe 2312{
d50babbe
BL
2313 unsigned int indirect_segments;
2314
2315 info->feature_flush = 0;
a418090a 2316 info->feature_fua = 0;
d50babbe 2317
d50babbe
BL
2318 /*
2319 * If there's no "feature-barrier" defined, then it means
2320 * we're dealing with a very old backend which writes
2321 * synchronously; nothing to do.
2322 *
2323 * If there are barriers, then we use flush.
2324 */
f27dc1ac 2325 if (xenbus_read_unsigned(info->xbdev->otherend, "feature-barrier", 0)) {
a418090a
MC
2326 info->feature_flush = 1;
2327 info->feature_fua = 1;
2328 }
2329
d50babbe
BL
2330 /*
2331 * And if there is "feature-flush-cache" use that above
2332 * barriers.
2333 */
f27dc1ac
JG
2334 if (xenbus_read_unsigned(info->xbdev->otherend, "feature-flush-cache",
2335 0)) {
a418090a
MC
2336 info->feature_flush = 1;
2337 info->feature_fua = 0;
2338 }
d50babbe 2339
f27dc1ac 2340 if (xenbus_read_unsigned(info->xbdev->otherend, "feature-discard", 0))
d50babbe
BL
2341 blkfront_setup_discard(info);
2342
f27dc1ac 2343 info->feature_persistent =
b32728ff
JB
2344 !!xenbus_read_unsigned(info->xbdev->otherend,
2345 "feature-persistent", 0);
d50babbe 2346
f27dc1ac
JG
2347 indirect_segments = xenbus_read_unsigned(info->xbdev->otherend,
2348 "feature-max-indirect-segments", 0);
3b4f1884
JB
2349 if (indirect_segments > xen_blkif_max_segments)
2350 indirect_segments = xen_blkif_max_segments;
2351 if (indirect_segments <= BLKIF_MAX_SEGMENTS_PER_REQUEST)
2352 indirect_segments = 0;
2353 info->max_indirect_segments = indirect_segments;
d50babbe
BL
2354}
2355
9f27ee59
JF
2356/*
2357 * Invoked when the backend is finally 'ready' (and has told produced
2358 * the details about the physical device - #sectors, size, etc).
2359 */
2360static void blkfront_connect(struct blkfront_info *info)
2361{
2362 unsigned long long sectors;
2363 unsigned long sector_size;
7c4d7d71 2364 unsigned int physical_sector_size;
9f27ee59 2365 unsigned int binfo;
89515d02 2366 char *envp[] = { "RESIZE=1", NULL };
3df0e505 2367 int err, i;
9f27ee59 2368
1fa73be6
S
2369 switch (info->connected) {
2370 case BLKIF_STATE_CONNECTED:
2371 /*
2372 * Potentially, the back-end may be signalling
2373 * a capacity change; update the capacity.
2374 */
2375 err = xenbus_scanf(XBT_NIL, info->xbdev->otherend,
2376 "sectors", "%Lu", &sectors);
2377 if (XENBUS_EXIST_ERR(err))
2378 return;
2379 printk(KERN_INFO "Setting capacity to %Lu\n",
2380 sectors);
2381 set_capacity(info->gd, sectors);
2def141e 2382 revalidate_disk(info->gd);
89515d02
MO
2383 kobject_uevent_env(&disk_to_dev(info->gd)->kobj,
2384 KOBJ_CHANGE, envp);
1fa73be6 2385
402b27f9 2386 return;
1fa73be6 2387 case BLKIF_STATE_SUSPENDED:
402b27f9
RPM
2388 /*
2389 * If we are recovering from suspension, we need to wait
2390 * for the backend to announce it's features before
2391 * reconnecting, at least we need to know if the backend
2392 * supports indirect descriptors, and how many.
2393 */
2394 blkif_recover(info);
9f27ee59
JF
2395 return;
2396
b4dddb49
JF
2397 default:
2398 break;
1fa73be6 2399 }
9f27ee59
JF
2400
2401 dev_dbg(&info->xbdev->dev, "%s:%s.\n",
2402 __func__, info->xbdev->otherend);
2403
2404 err = xenbus_gather(XBT_NIL, info->xbdev->otherend,
2405 "sectors", "%llu", &sectors,
2406 "info", "%u", &binfo,
2407 "sector-size", "%lu", &sector_size,
2408 NULL);
2409 if (err) {
2410 xenbus_dev_fatal(info->xbdev, err,
2411 "reading backend fields at %s",
2412 info->xbdev->otherend);
2413 return;
2414 }
2415
7c4d7d71
SB
2416 /*
2417 * physcial-sector-size is a newer field, so old backends may not
2418 * provide this. Assume physical sector size to be the same as
2419 * sector_size in that case.
2420 */
f27dc1ac
JG
2421 physical_sector_size = xenbus_read_unsigned(info->xbdev->otherend,
2422 "physical-sector-size",
2423 sector_size);
3df0e505
BL
2424 blkfront_gather_backend_features(info);
2425 for (i = 0; i < info->nr_rings; i++) {
2426 err = blkfront_setup_indirect(&info->rinfo[i]);
2427 if (err) {
2428 xenbus_dev_fatal(info->xbdev, err, "setup_indirect at %s",
2429 info->xbdev->otherend);
2430 blkif_free(info, 0);
2431 break;
2432 }
402b27f9
RPM
2433 }
2434
7c4d7d71
SB
2435 err = xlvbd_alloc_gendisk(sectors, info, binfo, sector_size,
2436 physical_sector_size);
9f27ee59
JF
2437 if (err) {
2438 xenbus_dev_fatal(info->xbdev, err, "xlvbd_add at %s",
2439 info->xbdev->otherend);
4e876c2b 2440 goto fail;
9f27ee59
JF
2441 }
2442
2443 xenbus_switch_state(info->xbdev, XenbusStateConnected);
2444
2445 /* Kick pending requests. */
9f27ee59 2446 info->connected = BLKIF_STATE_CONNECTED;
3df0e505
BL
2447 for (i = 0; i < info->nr_rings; i++)
2448 kick_pending_request_queues(&info->rinfo[i]);
9f27ee59 2449
0d52c756 2450 device_add_disk(&info->xbdev->dev, info->gd);
1d78d705
CL
2451
2452 info->is_ready = 1;
4e876c2b
BL
2453 return;
2454
2455fail:
2456 blkif_free(info, 0);
2457 return;
9f27ee59
JF
2458}
2459
9f27ee59
JF
2460/**
2461 * Callback received when the backend's state changes.
2462 */
203fd61f 2463static void blkback_changed(struct xenbus_device *dev,
9f27ee59
JF
2464 enum xenbus_state backend_state)
2465{
a1b4b12b 2466 struct blkfront_info *info = dev_get_drvdata(&dev->dev);
9f27ee59 2467
203fd61f 2468 dev_dbg(&dev->dev, "blkfront:blkback_changed to state %d.\n", backend_state);
9f27ee59
JF
2469
2470 switch (backend_state) {
9f27ee59 2471 case XenbusStateInitWait:
a9b54bb9
BL
2472 if (dev->state != XenbusStateInitialising)
2473 break;
c31ecf6c 2474 if (talk_to_blkback(dev, info))
8ab0144a 2475 break;
8ab0144a 2476 case XenbusStateInitialising:
9f27ee59 2477 case XenbusStateInitialised:
b78c9512
NI
2478 case XenbusStateReconfiguring:
2479 case XenbusStateReconfigured:
9f27ee59 2480 case XenbusStateUnknown:
9f27ee59
JF
2481 break;
2482
2483 case XenbusStateConnected:
efd15352
BL
2484 /*
2485 * talk_to_blkback sets state to XenbusStateInitialised
2486 * and blkfront_connect sets it to XenbusStateConnected
2487 * (if connection went OK).
2488 *
2489 * If the backend (or toolstack) decides to poke at backend
2490 * state (and re-trigger the watch by setting the state repeatedly
2491 * to XenbusStateConnected (4)) we need to deal with this.
2492 * This is allowed as this is used to communicate to the guest
2493 * that the size of disk has changed!
2494 */
2495 if ((dev->state != XenbusStateInitialised) &&
2496 (dev->state != XenbusStateConnected)) {
c31ecf6c
KRW
2497 if (talk_to_blkback(dev, info))
2498 break;
2499 }
efd15352 2500
9f27ee59
JF
2501 blkfront_connect(info);
2502 break;
2503
36613717
DV
2504 case XenbusStateClosed:
2505 if (dev->state == XenbusStateClosed)
2506 break;
2507 /* Missed the backend's Closing state -- fallthrough */
9f27ee59 2508 case XenbusStateClosing:
a54c8f0f
CA
2509 if (info)
2510 blkfront_closing(info);
9f27ee59
JF
2511 break;
2512 }
2513}
2514
fa1bd359 2515static int blkfront_remove(struct xenbus_device *xbdev)
9f27ee59 2516{
fa1bd359
DS
2517 struct blkfront_info *info = dev_get_drvdata(&xbdev->dev);
2518 struct block_device *bdev = NULL;
2519 struct gendisk *disk;
9f27ee59 2520
fa1bd359 2521 dev_dbg(&xbdev->dev, "%s removed", xbdev->nodename);
9f27ee59
JF
2522
2523 blkif_free(info, 0);
2524
fa1bd359
DS
2525 mutex_lock(&info->mutex);
2526
2527 disk = info->gd;
2528 if (disk)
2529 bdev = bdget_disk(disk, 0);
2530
2531 info->xbdev = NULL;
2532 mutex_unlock(&info->mutex);
2533
2534 if (!bdev) {
2535 kfree(info);
2536 return 0;
2537 }
2538
2539 /*
2540 * The xbdev was removed before we reached the Closed
2541 * state. See if it's safe to remove the disk. If the bdev
2542 * isn't closed yet, we let release take care of it.
2543 */
2544
2545 mutex_lock(&bdev->bd_mutex);
2546 info = disk->private_data;
2547
d54142c7
DS
2548 dev_warn(disk_to_dev(disk),
2549 "%s was hot-unplugged, %d stale handles\n",
2550 xbdev->nodename, bdev->bd_openers);
2551
7b32d104 2552 if (info && !bdev->bd_openers) {
fa1bd359
DS
2553 xlvbd_release_gendisk(info);
2554 disk->private_data = NULL;
0e345826 2555 kfree(info);
fa1bd359
DS
2556 }
2557
2558 mutex_unlock(&bdev->bd_mutex);
2559 bdput(bdev);
9f27ee59
JF
2560
2561 return 0;
2562}
2563
1d78d705
CL
2564static int blkfront_is_ready(struct xenbus_device *dev)
2565{
a1b4b12b 2566 struct blkfront_info *info = dev_get_drvdata(&dev->dev);
1d78d705 2567
5d7ed20e 2568 return info->is_ready && info->xbdev;
1d78d705
CL
2569}
2570
a63c848b 2571static int blkif_open(struct block_device *bdev, fmode_t mode)
9f27ee59 2572{
13961743
DS
2573 struct gendisk *disk = bdev->bd_disk;
2574 struct blkfront_info *info;
2575 int err = 0;
6e9624b8 2576
2a48fc0a 2577 mutex_lock(&blkfront_mutex);
6e9624b8 2578
13961743
DS
2579 info = disk->private_data;
2580 if (!info) {
2581 /* xbdev gone */
2582 err = -ERESTARTSYS;
2583 goto out;
2584 }
2585
2586 mutex_lock(&info->mutex);
2587
2588 if (!info->gd)
2589 /* xbdev is closed */
2590 err = -ERESTARTSYS;
2591
2592 mutex_unlock(&info->mutex);
2593
13961743 2594out:
2a48fc0a 2595 mutex_unlock(&blkfront_mutex);
13961743 2596 return err;
9f27ee59
JF
2597}
2598
db2a144b 2599static void blkif_release(struct gendisk *disk, fmode_t mode)
9f27ee59 2600{
a63c848b 2601 struct blkfront_info *info = disk->private_data;
7fd152f4
DS
2602 struct block_device *bdev;
2603 struct xenbus_device *xbdev;
2604
2a48fc0a 2605 mutex_lock(&blkfront_mutex);
7fd152f4
DS
2606
2607 bdev = bdget_disk(disk, 0);
7fd152f4 2608
2f089cb8
FP
2609 if (!bdev) {
2610 WARN(1, "Block device %s yanked out from us!\n", disk->disk_name);
2611 goto out_mutex;
2612 }
acfca3c6
DS
2613 if (bdev->bd_openers)
2614 goto out;
2615
7fd152f4
DS
2616 /*
2617 * Check if we have been instructed to close. We will have
2618 * deferred this request, because the bdev was still open.
2619 */
2620
2621 mutex_lock(&info->mutex);
2622 xbdev = info->xbdev;
2623
2624 if (xbdev && xbdev->state == XenbusStateClosing) {
2625 /* pending switch to state closed */
d54142c7 2626 dev_info(disk_to_dev(bdev->bd_disk), "releasing disk\n");
7fd152f4
DS
2627 xlvbd_release_gendisk(info);
2628 xenbus_frontend_closed(info->xbdev);
2629 }
2630
2631 mutex_unlock(&info->mutex);
2632
2633 if (!xbdev) {
2634 /* sudden device removal */
d54142c7 2635 dev_info(disk_to_dev(bdev->bd_disk), "releasing disk\n");
7fd152f4
DS
2636 xlvbd_release_gendisk(info);
2637 disk->private_data = NULL;
2638 kfree(info);
9f27ee59 2639 }
7fd152f4 2640
a4cc14ec 2641out:
dad5cf65 2642 bdput(bdev);
2f089cb8 2643out_mutex:
2a48fc0a 2644 mutex_unlock(&blkfront_mutex);
9f27ee59
JF
2645}
2646
83d5cde4 2647static const struct block_device_operations xlvbd_block_fops =
9f27ee59
JF
2648{
2649 .owner = THIS_MODULE,
a63c848b
AV
2650 .open = blkif_open,
2651 .release = blkif_release,
597592d9 2652 .getgeo = blkif_getgeo,
8a6cfeb6 2653 .ioctl = blkif_ioctl,
9f27ee59
JF
2654};
2655
2656
ec9c42ec 2657static const struct xenbus_device_id blkfront_ids[] = {
9f27ee59
JF
2658 { "vbd" },
2659 { "" }
2660};
2661
95afae48
DV
2662static struct xenbus_driver blkfront_driver = {
2663 .ids = blkfront_ids,
9f27ee59
JF
2664 .probe = blkfront_probe,
2665 .remove = blkfront_remove,
2666 .resume = blkfront_resume,
203fd61f 2667 .otherend_changed = blkback_changed,
1d78d705 2668 .is_ready = blkfront_is_ready,
95afae48 2669};
9f27ee59
JF
2670
2671static int __init xlblk_init(void)
2672{
469738e6 2673 int ret;
28d949bc 2674 int nr_cpus = num_online_cpus();
469738e6 2675
6e833587 2676 if (!xen_domain())
9f27ee59
JF
2677 return -ENODEV;
2678
3b4f1884
JB
2679 if (xen_blkif_max_segments < BLKIF_MAX_SEGMENTS_PER_REQUEST)
2680 xen_blkif_max_segments = BLKIF_MAX_SEGMENTS_PER_REQUEST;
2681
9cce2914 2682 if (xen_blkif_max_ring_order > XENBUS_MAX_RING_GRANT_ORDER) {
86839c56 2683 pr_info("Invalid max_ring_order (%d), will use default max: %d.\n",
9cce2914 2684 xen_blkif_max_ring_order, XENBUS_MAX_RING_GRANT_ORDER);
45fc8264 2685 xen_blkif_max_ring_order = XENBUS_MAX_RING_GRANT_ORDER;
86839c56
BL
2686 }
2687
28d949bc
BL
2688 if (xen_blkif_max_queues > nr_cpus) {
2689 pr_info("Invalid max_queues (%d), will use default max: %d.\n",
2690 xen_blkif_max_queues, nr_cpus);
2691 xen_blkif_max_queues = nr_cpus;
2692 }
2693
51c71a3b 2694 if (!xen_has_pv_disk_devices())
b9136d20
IM
2695 return -ENODEV;
2696
9f27ee59
JF
2697 if (register_blkdev(XENVBD_MAJOR, DEV_NAME)) {
2698 printk(KERN_WARNING "xen_blk: can't get major %d with name %s\n",
2699 XENVBD_MAJOR, DEV_NAME);
2700 return -ENODEV;
2701 }
2702
73db144b 2703 ret = xenbus_register_frontend(&blkfront_driver);
469738e6
LE
2704 if (ret) {
2705 unregister_blkdev(XENVBD_MAJOR, DEV_NAME);
2706 return ret;
2707 }
2708
2709 return 0;
9f27ee59
JF
2710}
2711module_init(xlblk_init);
2712
2713
5a60d0cd 2714static void __exit xlblk_exit(void)
9f27ee59 2715{
8605067f
JB
2716 xenbus_unregister_driver(&blkfront_driver);
2717 unregister_blkdev(XENVBD_MAJOR, DEV_NAME);
2718 kfree(minors);
9f27ee59
JF
2719}
2720module_exit(xlblk_exit);
2721
2722MODULE_DESCRIPTION("Xen virtual block device frontend");
2723MODULE_LICENSE("GPL");
2724MODULE_ALIAS_BLOCKDEV_MAJOR(XENVBD_MAJOR);
d2f0c52b 2725MODULE_ALIAS("xen:vbd");
4f93f09b 2726MODULE_ALIAS("xenblk");