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[karo-tx-linux.git] / drivers / nvdimm / region_devs.c
1 /*
2  * Copyright(c) 2013-2015 Intel Corporation. All rights reserved.
3  *
4  * This program is free software; you can redistribute it and/or modify
5  * it under the terms of version 2 of the GNU General Public License as
6  * published by the Free Software Foundation.
7  *
8  * This program is distributed in the hope that it will be useful, but
9  * WITHOUT ANY WARRANTY; without even the implied warranty of
10  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
11  * General Public License for more details.
12  */
13 #include <linux/scatterlist.h>
14 #include <linux/highmem.h>
15 #include <linux/sched.h>
16 #include <linux/slab.h>
17 #include <linux/hash.h>
18 #include <linux/pmem.h>
19 #include <linux/sort.h>
20 #include <linux/io.h>
21 #include <linux/nd.h>
22 #include "nd-core.h"
23 #include "nd.h"
24
25 /*
26  * For readq() and writeq() on 32-bit builds, the hi-lo, lo-hi order is
27  * irrelevant.
28  */
29 #include <linux/io-64-nonatomic-hi-lo.h>
30
31 static DEFINE_IDA(region_ida);
32 static DEFINE_PER_CPU(int, flush_idx);
33
34 static int nvdimm_map_flush(struct device *dev, struct nvdimm *nvdimm, int dimm,
35                 struct nd_region_data *ndrd)
36 {
37         int i, j;
38
39         dev_dbg(dev, "%s: map %d flush address%s\n", nvdimm_name(nvdimm),
40                         nvdimm->num_flush, nvdimm->num_flush == 1 ? "" : "es");
41         for (i = 0; i < (1 << ndrd->hints_shift); i++) {
42                 struct resource *res = &nvdimm->flush_wpq[i];
43                 unsigned long pfn = PHYS_PFN(res->start);
44                 void __iomem *flush_page;
45
46                 /* check if flush hints share a page */
47                 for (j = 0; j < i; j++) {
48                         struct resource *res_j = &nvdimm->flush_wpq[j];
49                         unsigned long pfn_j = PHYS_PFN(res_j->start);
50
51                         if (pfn == pfn_j)
52                                 break;
53                 }
54
55                 if (j < i)
56                         flush_page = (void __iomem *) ((unsigned long)
57                                         ndrd_get_flush_wpq(ndrd, dimm, j)
58                                         & PAGE_MASK);
59                 else
60                         flush_page = devm_nvdimm_ioremap(dev,
61                                         PFN_PHYS(pfn), PAGE_SIZE);
62                 if (!flush_page)
63                         return -ENXIO;
64                 ndrd_set_flush_wpq(ndrd, dimm, i, flush_page
65                                 + (res->start & ~PAGE_MASK));
66         }
67
68         return 0;
69 }
70
71 int nd_region_activate(struct nd_region *nd_region)
72 {
73         int i, j, num_flush = 0;
74         struct nd_region_data *ndrd;
75         struct device *dev = &nd_region->dev;
76         size_t flush_data_size = sizeof(void *);
77
78         nvdimm_bus_lock(&nd_region->dev);
79         for (i = 0; i < nd_region->ndr_mappings; i++) {
80                 struct nd_mapping *nd_mapping = &nd_region->mapping[i];
81                 struct nvdimm *nvdimm = nd_mapping->nvdimm;
82
83                 /* at least one null hint slot per-dimm for the "no-hint" case */
84                 flush_data_size += sizeof(void *);
85                 num_flush = min_not_zero(num_flush, nvdimm->num_flush);
86                 if (!nvdimm->num_flush)
87                         continue;
88                 flush_data_size += nvdimm->num_flush * sizeof(void *);
89         }
90         nvdimm_bus_unlock(&nd_region->dev);
91
92         ndrd = devm_kzalloc(dev, sizeof(*ndrd) + flush_data_size, GFP_KERNEL);
93         if (!ndrd)
94                 return -ENOMEM;
95         dev_set_drvdata(dev, ndrd);
96
97         if (!num_flush)
98                 return 0;
99
100         ndrd->hints_shift = ilog2(num_flush);
101         for (i = 0; i < nd_region->ndr_mappings; i++) {
102                 struct nd_mapping *nd_mapping = &nd_region->mapping[i];
103                 struct nvdimm *nvdimm = nd_mapping->nvdimm;
104                 int rc = nvdimm_map_flush(&nd_region->dev, nvdimm, i, ndrd);
105
106                 if (rc)
107                         return rc;
108         }
109
110         /*
111          * Clear out entries that are duplicates. This should prevent the
112          * extra flushings.
113          */
114         for (i = 0; i < nd_region->ndr_mappings - 1; i++) {
115                 /* ignore if NULL already */
116                 if (!ndrd_get_flush_wpq(ndrd, i, 0))
117                         continue;
118
119                 for (j = i + 1; j < nd_region->ndr_mappings; j++)
120                         if (ndrd_get_flush_wpq(ndrd, i, 0) ==
121                             ndrd_get_flush_wpq(ndrd, j, 0))
122                                 ndrd_set_flush_wpq(ndrd, j, 0, NULL);
123         }
124
125         return 0;
126 }
127
128 static void nd_region_release(struct device *dev)
129 {
130         struct nd_region *nd_region = to_nd_region(dev);
131         u16 i;
132
133         for (i = 0; i < nd_region->ndr_mappings; i++) {
134                 struct nd_mapping *nd_mapping = &nd_region->mapping[i];
135                 struct nvdimm *nvdimm = nd_mapping->nvdimm;
136
137                 put_device(&nvdimm->dev);
138         }
139         free_percpu(nd_region->lane);
140         ida_simple_remove(&region_ida, nd_region->id);
141         if (is_nd_blk(dev))
142                 kfree(to_nd_blk_region(dev));
143         else
144                 kfree(nd_region);
145 }
146
147 static struct device_type nd_blk_device_type = {
148         .name = "nd_blk",
149         .release = nd_region_release,
150 };
151
152 static struct device_type nd_pmem_device_type = {
153         .name = "nd_pmem",
154         .release = nd_region_release,
155 };
156
157 static struct device_type nd_volatile_device_type = {
158         .name = "nd_volatile",
159         .release = nd_region_release,
160 };
161
162 bool is_nd_pmem(struct device *dev)
163 {
164         return dev ? dev->type == &nd_pmem_device_type : false;
165 }
166
167 bool is_nd_blk(struct device *dev)
168 {
169         return dev ? dev->type == &nd_blk_device_type : false;
170 }
171
172 struct nd_region *to_nd_region(struct device *dev)
173 {
174         struct nd_region *nd_region = container_of(dev, struct nd_region, dev);
175
176         WARN_ON(dev->type->release != nd_region_release);
177         return nd_region;
178 }
179 EXPORT_SYMBOL_GPL(to_nd_region);
180
181 struct nd_blk_region *to_nd_blk_region(struct device *dev)
182 {
183         struct nd_region *nd_region = to_nd_region(dev);
184
185         WARN_ON(!is_nd_blk(dev));
186         return container_of(nd_region, struct nd_blk_region, nd_region);
187 }
188 EXPORT_SYMBOL_GPL(to_nd_blk_region);
189
190 void *nd_region_provider_data(struct nd_region *nd_region)
191 {
192         return nd_region->provider_data;
193 }
194 EXPORT_SYMBOL_GPL(nd_region_provider_data);
195
196 void *nd_blk_region_provider_data(struct nd_blk_region *ndbr)
197 {
198         return ndbr->blk_provider_data;
199 }
200 EXPORT_SYMBOL_GPL(nd_blk_region_provider_data);
201
202 void nd_blk_region_set_provider_data(struct nd_blk_region *ndbr, void *data)
203 {
204         ndbr->blk_provider_data = data;
205 }
206 EXPORT_SYMBOL_GPL(nd_blk_region_set_provider_data);
207
208 /**
209  * nd_region_to_nstype() - region to an integer namespace type
210  * @nd_region: region-device to interrogate
211  *
212  * This is the 'nstype' attribute of a region as well, an input to the
213  * MODALIAS for namespace devices, and bit number for a nvdimm_bus to match
214  * namespace devices with namespace drivers.
215  */
216 int nd_region_to_nstype(struct nd_region *nd_region)
217 {
218         if (is_nd_pmem(&nd_region->dev)) {
219                 u16 i, alias;
220
221                 for (i = 0, alias = 0; i < nd_region->ndr_mappings; i++) {
222                         struct nd_mapping *nd_mapping = &nd_region->mapping[i];
223                         struct nvdimm *nvdimm = nd_mapping->nvdimm;
224
225                         if (test_bit(NDD_ALIASING, &nvdimm->flags))
226                                 alias++;
227                 }
228                 if (alias)
229                         return ND_DEVICE_NAMESPACE_PMEM;
230                 else
231                         return ND_DEVICE_NAMESPACE_IO;
232         } else if (is_nd_blk(&nd_region->dev)) {
233                 return ND_DEVICE_NAMESPACE_BLK;
234         }
235
236         return 0;
237 }
238 EXPORT_SYMBOL(nd_region_to_nstype);
239
240 static ssize_t size_show(struct device *dev,
241                 struct device_attribute *attr, char *buf)
242 {
243         struct nd_region *nd_region = to_nd_region(dev);
244         unsigned long long size = 0;
245
246         if (is_nd_pmem(dev)) {
247                 size = nd_region->ndr_size;
248         } else if (nd_region->ndr_mappings == 1) {
249                 struct nd_mapping *nd_mapping = &nd_region->mapping[0];
250
251                 size = nd_mapping->size;
252         }
253
254         return sprintf(buf, "%llu\n", size);
255 }
256 static DEVICE_ATTR_RO(size);
257
258 static ssize_t deep_flush_show(struct device *dev,
259                 struct device_attribute *attr, char *buf)
260 {
261         struct nd_region *nd_region = to_nd_region(dev);
262
263         /*
264          * NOTE: in the nvdimm_has_flush() error case this attribute is
265          * not visible.
266          */
267         return sprintf(buf, "%d\n", nvdimm_has_flush(nd_region));
268 }
269
270 static ssize_t deep_flush_store(struct device *dev, struct device_attribute *attr,
271                 const char *buf, size_t len)
272 {
273         bool flush;
274         int rc = strtobool(buf, &flush);
275         struct nd_region *nd_region = to_nd_region(dev);
276
277         if (rc)
278                 return rc;
279         if (!flush)
280                 return -EINVAL;
281         nvdimm_flush(nd_region);
282
283         return len;
284 }
285 static DEVICE_ATTR_RW(deep_flush);
286
287 static ssize_t mappings_show(struct device *dev,
288                 struct device_attribute *attr, char *buf)
289 {
290         struct nd_region *nd_region = to_nd_region(dev);
291
292         return sprintf(buf, "%d\n", nd_region->ndr_mappings);
293 }
294 static DEVICE_ATTR_RO(mappings);
295
296 static ssize_t nstype_show(struct device *dev,
297                 struct device_attribute *attr, char *buf)
298 {
299         struct nd_region *nd_region = to_nd_region(dev);
300
301         return sprintf(buf, "%d\n", nd_region_to_nstype(nd_region));
302 }
303 static DEVICE_ATTR_RO(nstype);
304
305 static ssize_t set_cookie_show(struct device *dev,
306                 struct device_attribute *attr, char *buf)
307 {
308         struct nd_region *nd_region = to_nd_region(dev);
309         struct nd_interleave_set *nd_set = nd_region->nd_set;
310
311         if (is_nd_pmem(dev) && nd_set)
312                 /* pass, should be precluded by region_visible */;
313         else
314                 return -ENXIO;
315
316         return sprintf(buf, "%#llx\n", nd_set->cookie);
317 }
318 static DEVICE_ATTR_RO(set_cookie);
319
320 resource_size_t nd_region_available_dpa(struct nd_region *nd_region)
321 {
322         resource_size_t blk_max_overlap = 0, available, overlap;
323         int i;
324
325         WARN_ON(!is_nvdimm_bus_locked(&nd_region->dev));
326
327  retry:
328         available = 0;
329         overlap = blk_max_overlap;
330         for (i = 0; i < nd_region->ndr_mappings; i++) {
331                 struct nd_mapping *nd_mapping = &nd_region->mapping[i];
332                 struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
333
334                 /* if a dimm is disabled the available capacity is zero */
335                 if (!ndd)
336                         return 0;
337
338                 if (is_nd_pmem(&nd_region->dev)) {
339                         available += nd_pmem_available_dpa(nd_region,
340                                         nd_mapping, &overlap);
341                         if (overlap > blk_max_overlap) {
342                                 blk_max_overlap = overlap;
343                                 goto retry;
344                         }
345                 } else if (is_nd_blk(&nd_region->dev))
346                         available += nd_blk_available_dpa(nd_region);
347         }
348
349         return available;
350 }
351
352 static ssize_t available_size_show(struct device *dev,
353                 struct device_attribute *attr, char *buf)
354 {
355         struct nd_region *nd_region = to_nd_region(dev);
356         unsigned long long available = 0;
357
358         /*
359          * Flush in-flight updates and grab a snapshot of the available
360          * size.  Of course, this value is potentially invalidated the
361          * memory nvdimm_bus_lock() is dropped, but that's userspace's
362          * problem to not race itself.
363          */
364         nvdimm_bus_lock(dev);
365         wait_nvdimm_bus_probe_idle(dev);
366         available = nd_region_available_dpa(nd_region);
367         nvdimm_bus_unlock(dev);
368
369         return sprintf(buf, "%llu\n", available);
370 }
371 static DEVICE_ATTR_RO(available_size);
372
373 static ssize_t init_namespaces_show(struct device *dev,
374                 struct device_attribute *attr, char *buf)
375 {
376         struct nd_region_data *ndrd = dev_get_drvdata(dev);
377         ssize_t rc;
378
379         nvdimm_bus_lock(dev);
380         if (ndrd)
381                 rc = sprintf(buf, "%d/%d\n", ndrd->ns_active, ndrd->ns_count);
382         else
383                 rc = -ENXIO;
384         nvdimm_bus_unlock(dev);
385
386         return rc;
387 }
388 static DEVICE_ATTR_RO(init_namespaces);
389
390 static ssize_t namespace_seed_show(struct device *dev,
391                 struct device_attribute *attr, char *buf)
392 {
393         struct nd_region *nd_region = to_nd_region(dev);
394         ssize_t rc;
395
396         nvdimm_bus_lock(dev);
397         if (nd_region->ns_seed)
398                 rc = sprintf(buf, "%s\n", dev_name(nd_region->ns_seed));
399         else
400                 rc = sprintf(buf, "\n");
401         nvdimm_bus_unlock(dev);
402         return rc;
403 }
404 static DEVICE_ATTR_RO(namespace_seed);
405
406 static ssize_t btt_seed_show(struct device *dev,
407                 struct device_attribute *attr, char *buf)
408 {
409         struct nd_region *nd_region = to_nd_region(dev);
410         ssize_t rc;
411
412         nvdimm_bus_lock(dev);
413         if (nd_region->btt_seed)
414                 rc = sprintf(buf, "%s\n", dev_name(nd_region->btt_seed));
415         else
416                 rc = sprintf(buf, "\n");
417         nvdimm_bus_unlock(dev);
418
419         return rc;
420 }
421 static DEVICE_ATTR_RO(btt_seed);
422
423 static ssize_t pfn_seed_show(struct device *dev,
424                 struct device_attribute *attr, char *buf)
425 {
426         struct nd_region *nd_region = to_nd_region(dev);
427         ssize_t rc;
428
429         nvdimm_bus_lock(dev);
430         if (nd_region->pfn_seed)
431                 rc = sprintf(buf, "%s\n", dev_name(nd_region->pfn_seed));
432         else
433                 rc = sprintf(buf, "\n");
434         nvdimm_bus_unlock(dev);
435
436         return rc;
437 }
438 static DEVICE_ATTR_RO(pfn_seed);
439
440 static ssize_t dax_seed_show(struct device *dev,
441                 struct device_attribute *attr, char *buf)
442 {
443         struct nd_region *nd_region = to_nd_region(dev);
444         ssize_t rc;
445
446         nvdimm_bus_lock(dev);
447         if (nd_region->dax_seed)
448                 rc = sprintf(buf, "%s\n", dev_name(nd_region->dax_seed));
449         else
450                 rc = sprintf(buf, "\n");
451         nvdimm_bus_unlock(dev);
452
453         return rc;
454 }
455 static DEVICE_ATTR_RO(dax_seed);
456
457 static ssize_t read_only_show(struct device *dev,
458                 struct device_attribute *attr, char *buf)
459 {
460         struct nd_region *nd_region = to_nd_region(dev);
461
462         return sprintf(buf, "%d\n", nd_region->ro);
463 }
464
465 static ssize_t read_only_store(struct device *dev,
466                 struct device_attribute *attr, const char *buf, size_t len)
467 {
468         bool ro;
469         int rc = strtobool(buf, &ro);
470         struct nd_region *nd_region = to_nd_region(dev);
471
472         if (rc)
473                 return rc;
474
475         nd_region->ro = ro;
476         return len;
477 }
478 static DEVICE_ATTR_RW(read_only);
479
480 static ssize_t region_badblocks_show(struct device *dev,
481                 struct device_attribute *attr, char *buf)
482 {
483         struct nd_region *nd_region = to_nd_region(dev);
484
485         return badblocks_show(&nd_region->bb, buf, 0);
486 }
487
488 static DEVICE_ATTR(badblocks, 0444, region_badblocks_show, NULL);
489
490 static ssize_t resource_show(struct device *dev,
491                 struct device_attribute *attr, char *buf)
492 {
493         struct nd_region *nd_region = to_nd_region(dev);
494
495         return sprintf(buf, "%#llx\n", nd_region->ndr_start);
496 }
497 static DEVICE_ATTR_RO(resource);
498
499 static struct attribute *nd_region_attributes[] = {
500         &dev_attr_size.attr,
501         &dev_attr_nstype.attr,
502         &dev_attr_mappings.attr,
503         &dev_attr_btt_seed.attr,
504         &dev_attr_pfn_seed.attr,
505         &dev_attr_dax_seed.attr,
506         &dev_attr_deep_flush.attr,
507         &dev_attr_read_only.attr,
508         &dev_attr_set_cookie.attr,
509         &dev_attr_available_size.attr,
510         &dev_attr_namespace_seed.attr,
511         &dev_attr_init_namespaces.attr,
512         &dev_attr_badblocks.attr,
513         &dev_attr_resource.attr,
514         NULL,
515 };
516
517 static umode_t region_visible(struct kobject *kobj, struct attribute *a, int n)
518 {
519         struct device *dev = container_of(kobj, typeof(*dev), kobj);
520         struct nd_region *nd_region = to_nd_region(dev);
521         struct nd_interleave_set *nd_set = nd_region->nd_set;
522         int type = nd_region_to_nstype(nd_region);
523
524         if (!is_nd_pmem(dev) && a == &dev_attr_pfn_seed.attr)
525                 return 0;
526
527         if (!is_nd_pmem(dev) && a == &dev_attr_dax_seed.attr)
528                 return 0;
529
530         if (!is_nd_pmem(dev) && a == &dev_attr_badblocks.attr)
531                 return 0;
532
533         if (!is_nd_pmem(dev) && a == &dev_attr_resource.attr)
534                 return 0;
535
536         if (a == &dev_attr_deep_flush.attr) {
537                 int has_flush = nvdimm_has_flush(nd_region);
538
539                 if (has_flush == 1)
540                         return a->mode;
541                 else if (has_flush == 0)
542                         return 0444;
543                 else
544                         return 0;
545         }
546
547         if (a != &dev_attr_set_cookie.attr
548                         && a != &dev_attr_available_size.attr)
549                 return a->mode;
550
551         if ((type == ND_DEVICE_NAMESPACE_PMEM
552                                 || type == ND_DEVICE_NAMESPACE_BLK)
553                         && a == &dev_attr_available_size.attr)
554                 return a->mode;
555         else if (is_nd_pmem(dev) && nd_set)
556                 return a->mode;
557
558         return 0;
559 }
560
561 struct attribute_group nd_region_attribute_group = {
562         .attrs = nd_region_attributes,
563         .is_visible = region_visible,
564 };
565 EXPORT_SYMBOL_GPL(nd_region_attribute_group);
566
567 u64 nd_region_interleave_set_cookie(struct nd_region *nd_region)
568 {
569         struct nd_interleave_set *nd_set = nd_region->nd_set;
570
571         if (nd_set)
572                 return nd_set->cookie;
573         return 0;
574 }
575
576 u64 nd_region_interleave_set_altcookie(struct nd_region *nd_region)
577 {
578         struct nd_interleave_set *nd_set = nd_region->nd_set;
579
580         if (nd_set)
581                 return nd_set->altcookie;
582         return 0;
583 }
584
585 void nd_mapping_free_labels(struct nd_mapping *nd_mapping)
586 {
587         struct nd_label_ent *label_ent, *e;
588
589         lockdep_assert_held(&nd_mapping->lock);
590         list_for_each_entry_safe(label_ent, e, &nd_mapping->labels, list) {
591                 list_del(&label_ent->list);
592                 kfree(label_ent);
593         }
594 }
595
596 /*
597  * Upon successful probe/remove, take/release a reference on the
598  * associated interleave set (if present), and plant new btt + namespace
599  * seeds.  Also, on the removal of a BLK region, notify the provider to
600  * disable the region.
601  */
602 static void nd_region_notify_driver_action(struct nvdimm_bus *nvdimm_bus,
603                 struct device *dev, bool probe)
604 {
605         struct nd_region *nd_region;
606
607         if (!probe && (is_nd_pmem(dev) || is_nd_blk(dev))) {
608                 int i;
609
610                 nd_region = to_nd_region(dev);
611                 for (i = 0; i < nd_region->ndr_mappings; i++) {
612                         struct nd_mapping *nd_mapping = &nd_region->mapping[i];
613                         struct nvdimm_drvdata *ndd = nd_mapping->ndd;
614                         struct nvdimm *nvdimm = nd_mapping->nvdimm;
615
616                         mutex_lock(&nd_mapping->lock);
617                         nd_mapping_free_labels(nd_mapping);
618                         mutex_unlock(&nd_mapping->lock);
619
620                         put_ndd(ndd);
621                         nd_mapping->ndd = NULL;
622                         if (ndd)
623                                 atomic_dec(&nvdimm->busy);
624                 }
625
626                 if (is_nd_pmem(dev))
627                         return;
628         }
629         if (dev->parent && (is_nd_blk(dev->parent) || is_nd_pmem(dev->parent))
630                         && probe) {
631                 nd_region = to_nd_region(dev->parent);
632                 nvdimm_bus_lock(dev);
633                 if (nd_region->ns_seed == dev)
634                         nd_region_create_ns_seed(nd_region);
635                 nvdimm_bus_unlock(dev);
636         }
637         if (is_nd_btt(dev) && probe) {
638                 struct nd_btt *nd_btt = to_nd_btt(dev);
639
640                 nd_region = to_nd_region(dev->parent);
641                 nvdimm_bus_lock(dev);
642                 if (nd_region->btt_seed == dev)
643                         nd_region_create_btt_seed(nd_region);
644                 if (nd_region->ns_seed == &nd_btt->ndns->dev)
645                         nd_region_create_ns_seed(nd_region);
646                 nvdimm_bus_unlock(dev);
647         }
648         if (is_nd_pfn(dev) && probe) {
649                 struct nd_pfn *nd_pfn = to_nd_pfn(dev);
650
651                 nd_region = to_nd_region(dev->parent);
652                 nvdimm_bus_lock(dev);
653                 if (nd_region->pfn_seed == dev)
654                         nd_region_create_pfn_seed(nd_region);
655                 if (nd_region->ns_seed == &nd_pfn->ndns->dev)
656                         nd_region_create_ns_seed(nd_region);
657                 nvdimm_bus_unlock(dev);
658         }
659         if (is_nd_dax(dev) && probe) {
660                 struct nd_dax *nd_dax = to_nd_dax(dev);
661
662                 nd_region = to_nd_region(dev->parent);
663                 nvdimm_bus_lock(dev);
664                 if (nd_region->dax_seed == dev)
665                         nd_region_create_dax_seed(nd_region);
666                 if (nd_region->ns_seed == &nd_dax->nd_pfn.ndns->dev)
667                         nd_region_create_ns_seed(nd_region);
668                 nvdimm_bus_unlock(dev);
669         }
670 }
671
672 void nd_region_probe_success(struct nvdimm_bus *nvdimm_bus, struct device *dev)
673 {
674         nd_region_notify_driver_action(nvdimm_bus, dev, true);
675 }
676
677 void nd_region_disable(struct nvdimm_bus *nvdimm_bus, struct device *dev)
678 {
679         nd_region_notify_driver_action(nvdimm_bus, dev, false);
680 }
681
682 static ssize_t mappingN(struct device *dev, char *buf, int n)
683 {
684         struct nd_region *nd_region = to_nd_region(dev);
685         struct nd_mapping *nd_mapping;
686         struct nvdimm *nvdimm;
687
688         if (n >= nd_region->ndr_mappings)
689                 return -ENXIO;
690         nd_mapping = &nd_region->mapping[n];
691         nvdimm = nd_mapping->nvdimm;
692
693         return sprintf(buf, "%s,%llu,%llu\n", dev_name(&nvdimm->dev),
694                         nd_mapping->start, nd_mapping->size);
695 }
696
697 #define REGION_MAPPING(idx) \
698 static ssize_t mapping##idx##_show(struct device *dev,          \
699                 struct device_attribute *attr, char *buf)       \
700 {                                                               \
701         return mappingN(dev, buf, idx);                         \
702 }                                                               \
703 static DEVICE_ATTR_RO(mapping##idx)
704
705 /*
706  * 32 should be enough for a while, even in the presence of socket
707  * interleave a 32-way interleave set is a degenerate case.
708  */
709 REGION_MAPPING(0);
710 REGION_MAPPING(1);
711 REGION_MAPPING(2);
712 REGION_MAPPING(3);
713 REGION_MAPPING(4);
714 REGION_MAPPING(5);
715 REGION_MAPPING(6);
716 REGION_MAPPING(7);
717 REGION_MAPPING(8);
718 REGION_MAPPING(9);
719 REGION_MAPPING(10);
720 REGION_MAPPING(11);
721 REGION_MAPPING(12);
722 REGION_MAPPING(13);
723 REGION_MAPPING(14);
724 REGION_MAPPING(15);
725 REGION_MAPPING(16);
726 REGION_MAPPING(17);
727 REGION_MAPPING(18);
728 REGION_MAPPING(19);
729 REGION_MAPPING(20);
730 REGION_MAPPING(21);
731 REGION_MAPPING(22);
732 REGION_MAPPING(23);
733 REGION_MAPPING(24);
734 REGION_MAPPING(25);
735 REGION_MAPPING(26);
736 REGION_MAPPING(27);
737 REGION_MAPPING(28);
738 REGION_MAPPING(29);
739 REGION_MAPPING(30);
740 REGION_MAPPING(31);
741
742 static umode_t mapping_visible(struct kobject *kobj, struct attribute *a, int n)
743 {
744         struct device *dev = container_of(kobj, struct device, kobj);
745         struct nd_region *nd_region = to_nd_region(dev);
746
747         if (n < nd_region->ndr_mappings)
748                 return a->mode;
749         return 0;
750 }
751
752 static struct attribute *mapping_attributes[] = {
753         &dev_attr_mapping0.attr,
754         &dev_attr_mapping1.attr,
755         &dev_attr_mapping2.attr,
756         &dev_attr_mapping3.attr,
757         &dev_attr_mapping4.attr,
758         &dev_attr_mapping5.attr,
759         &dev_attr_mapping6.attr,
760         &dev_attr_mapping7.attr,
761         &dev_attr_mapping8.attr,
762         &dev_attr_mapping9.attr,
763         &dev_attr_mapping10.attr,
764         &dev_attr_mapping11.attr,
765         &dev_attr_mapping12.attr,
766         &dev_attr_mapping13.attr,
767         &dev_attr_mapping14.attr,
768         &dev_attr_mapping15.attr,
769         &dev_attr_mapping16.attr,
770         &dev_attr_mapping17.attr,
771         &dev_attr_mapping18.attr,
772         &dev_attr_mapping19.attr,
773         &dev_attr_mapping20.attr,
774         &dev_attr_mapping21.attr,
775         &dev_attr_mapping22.attr,
776         &dev_attr_mapping23.attr,
777         &dev_attr_mapping24.attr,
778         &dev_attr_mapping25.attr,
779         &dev_attr_mapping26.attr,
780         &dev_attr_mapping27.attr,
781         &dev_attr_mapping28.attr,
782         &dev_attr_mapping29.attr,
783         &dev_attr_mapping30.attr,
784         &dev_attr_mapping31.attr,
785         NULL,
786 };
787
788 struct attribute_group nd_mapping_attribute_group = {
789         .is_visible = mapping_visible,
790         .attrs = mapping_attributes,
791 };
792 EXPORT_SYMBOL_GPL(nd_mapping_attribute_group);
793
794 int nd_blk_region_init(struct nd_region *nd_region)
795 {
796         struct device *dev = &nd_region->dev;
797         struct nvdimm_bus *nvdimm_bus = walk_to_nvdimm_bus(dev);
798
799         if (!is_nd_blk(dev))
800                 return 0;
801
802         if (nd_region->ndr_mappings < 1) {
803                 dev_err(dev, "invalid BLK region\n");
804                 return -ENXIO;
805         }
806
807         return to_nd_blk_region(dev)->enable(nvdimm_bus, dev);
808 }
809
810 /**
811  * nd_region_acquire_lane - allocate and lock a lane
812  * @nd_region: region id and number of lanes possible
813  *
814  * A lane correlates to a BLK-data-window and/or a log slot in the BTT.
815  * We optimize for the common case where there are 256 lanes, one
816  * per-cpu.  For larger systems we need to lock to share lanes.  For now
817  * this implementation assumes the cost of maintaining an allocator for
818  * free lanes is on the order of the lock hold time, so it implements a
819  * static lane = cpu % num_lanes mapping.
820  *
821  * In the case of a BTT instance on top of a BLK namespace a lane may be
822  * acquired recursively.  We lock on the first instance.
823  *
824  * In the case of a BTT instance on top of PMEM, we only acquire a lane
825  * for the BTT metadata updates.
826  */
827 unsigned int nd_region_acquire_lane(struct nd_region *nd_region)
828 {
829         unsigned int cpu, lane;
830
831         cpu = get_cpu();
832         if (nd_region->num_lanes < nr_cpu_ids) {
833                 struct nd_percpu_lane *ndl_lock, *ndl_count;
834
835                 lane = cpu % nd_region->num_lanes;
836                 ndl_count = per_cpu_ptr(nd_region->lane, cpu);
837                 ndl_lock = per_cpu_ptr(nd_region->lane, lane);
838                 if (ndl_count->count++ == 0)
839                         spin_lock(&ndl_lock->lock);
840         } else
841                 lane = cpu;
842
843         return lane;
844 }
845 EXPORT_SYMBOL(nd_region_acquire_lane);
846
847 void nd_region_release_lane(struct nd_region *nd_region, unsigned int lane)
848 {
849         if (nd_region->num_lanes < nr_cpu_ids) {
850                 unsigned int cpu = get_cpu();
851                 struct nd_percpu_lane *ndl_lock, *ndl_count;
852
853                 ndl_count = per_cpu_ptr(nd_region->lane, cpu);
854                 ndl_lock = per_cpu_ptr(nd_region->lane, lane);
855                 if (--ndl_count->count == 0)
856                         spin_unlock(&ndl_lock->lock);
857                 put_cpu();
858         }
859         put_cpu();
860 }
861 EXPORT_SYMBOL(nd_region_release_lane);
862
863 static struct nd_region *nd_region_create(struct nvdimm_bus *nvdimm_bus,
864                 struct nd_region_desc *ndr_desc, struct device_type *dev_type,
865                 const char *caller)
866 {
867         struct nd_region *nd_region;
868         struct device *dev;
869         void *region_buf;
870         unsigned int i;
871         int ro = 0;
872
873         for (i = 0; i < ndr_desc->num_mappings; i++) {
874                 struct nd_mapping_desc *mapping = &ndr_desc->mapping[i];
875                 struct nvdimm *nvdimm = mapping->nvdimm;
876
877                 if ((mapping->start | mapping->size) % SZ_4K) {
878                         dev_err(&nvdimm_bus->dev, "%s: %s mapping%d is not 4K aligned\n",
879                                         caller, dev_name(&nvdimm->dev), i);
880
881                         return NULL;
882                 }
883
884                 if (test_bit(NDD_UNARMED, &nvdimm->flags))
885                         ro = 1;
886         }
887
888         if (dev_type == &nd_blk_device_type) {
889                 struct nd_blk_region_desc *ndbr_desc;
890                 struct nd_blk_region *ndbr;
891
892                 ndbr_desc = to_blk_region_desc(ndr_desc);
893                 ndbr = kzalloc(sizeof(*ndbr) + sizeof(struct nd_mapping)
894                                 * ndr_desc->num_mappings,
895                                 GFP_KERNEL);
896                 if (ndbr) {
897                         nd_region = &ndbr->nd_region;
898                         ndbr->enable = ndbr_desc->enable;
899                         ndbr->do_io = ndbr_desc->do_io;
900                 }
901                 region_buf = ndbr;
902         } else {
903                 nd_region = kzalloc(sizeof(struct nd_region)
904                                 + sizeof(struct nd_mapping)
905                                 * ndr_desc->num_mappings,
906                                 GFP_KERNEL);
907                 region_buf = nd_region;
908         }
909
910         if (!region_buf)
911                 return NULL;
912         nd_region->id = ida_simple_get(&region_ida, 0, 0, GFP_KERNEL);
913         if (nd_region->id < 0)
914                 goto err_id;
915
916         nd_region->lane = alloc_percpu(struct nd_percpu_lane);
917         if (!nd_region->lane)
918                 goto err_percpu;
919
920         for (i = 0; i < nr_cpu_ids; i++) {
921                 struct nd_percpu_lane *ndl;
922
923                 ndl = per_cpu_ptr(nd_region->lane, i);
924                 spin_lock_init(&ndl->lock);
925                 ndl->count = 0;
926         }
927
928         for (i = 0; i < ndr_desc->num_mappings; i++) {
929                 struct nd_mapping_desc *mapping = &ndr_desc->mapping[i];
930                 struct nvdimm *nvdimm = mapping->nvdimm;
931
932                 nd_region->mapping[i].nvdimm = nvdimm;
933                 nd_region->mapping[i].start = mapping->start;
934                 nd_region->mapping[i].size = mapping->size;
935                 INIT_LIST_HEAD(&nd_region->mapping[i].labels);
936                 mutex_init(&nd_region->mapping[i].lock);
937
938                 get_device(&nvdimm->dev);
939         }
940         nd_region->ndr_mappings = ndr_desc->num_mappings;
941         nd_region->provider_data = ndr_desc->provider_data;
942         nd_region->nd_set = ndr_desc->nd_set;
943         nd_region->num_lanes = ndr_desc->num_lanes;
944         nd_region->flags = ndr_desc->flags;
945         nd_region->ro = ro;
946         nd_region->numa_node = ndr_desc->numa_node;
947         ida_init(&nd_region->ns_ida);
948         ida_init(&nd_region->btt_ida);
949         ida_init(&nd_region->pfn_ida);
950         ida_init(&nd_region->dax_ida);
951         dev = &nd_region->dev;
952         dev_set_name(dev, "region%d", nd_region->id);
953         dev->parent = &nvdimm_bus->dev;
954         dev->type = dev_type;
955         dev->groups = ndr_desc->attr_groups;
956         nd_region->ndr_size = resource_size(ndr_desc->res);
957         nd_region->ndr_start = ndr_desc->res->start;
958         nd_device_register(dev);
959
960         return nd_region;
961
962  err_percpu:
963         ida_simple_remove(&region_ida, nd_region->id);
964  err_id:
965         kfree(region_buf);
966         return NULL;
967 }
968
969 struct nd_region *nvdimm_pmem_region_create(struct nvdimm_bus *nvdimm_bus,
970                 struct nd_region_desc *ndr_desc)
971 {
972         ndr_desc->num_lanes = ND_MAX_LANES;
973         return nd_region_create(nvdimm_bus, ndr_desc, &nd_pmem_device_type,
974                         __func__);
975 }
976 EXPORT_SYMBOL_GPL(nvdimm_pmem_region_create);
977
978 struct nd_region *nvdimm_blk_region_create(struct nvdimm_bus *nvdimm_bus,
979                 struct nd_region_desc *ndr_desc)
980 {
981         if (ndr_desc->num_mappings > 1)
982                 return NULL;
983         ndr_desc->num_lanes = min(ndr_desc->num_lanes, ND_MAX_LANES);
984         return nd_region_create(nvdimm_bus, ndr_desc, &nd_blk_device_type,
985                         __func__);
986 }
987 EXPORT_SYMBOL_GPL(nvdimm_blk_region_create);
988
989 struct nd_region *nvdimm_volatile_region_create(struct nvdimm_bus *nvdimm_bus,
990                 struct nd_region_desc *ndr_desc)
991 {
992         ndr_desc->num_lanes = ND_MAX_LANES;
993         return nd_region_create(nvdimm_bus, ndr_desc, &nd_volatile_device_type,
994                         __func__);
995 }
996 EXPORT_SYMBOL_GPL(nvdimm_volatile_region_create);
997
998 /**
999  * nvdimm_flush - flush any posted write queues between the cpu and pmem media
1000  * @nd_region: blk or interleaved pmem region
1001  */
1002 void nvdimm_flush(struct nd_region *nd_region)
1003 {
1004         struct nd_region_data *ndrd = dev_get_drvdata(&nd_region->dev);
1005         int i, idx;
1006
1007         /*
1008          * Try to encourage some diversity in flush hint addresses
1009          * across cpus assuming a limited number of flush hints.
1010          */
1011         idx = this_cpu_read(flush_idx);
1012         idx = this_cpu_add_return(flush_idx, hash_32(current->pid + idx, 8));
1013
1014         /*
1015          * The first wmb() is needed to 'sfence' all previous writes
1016          * such that they are architecturally visible for the platform
1017          * buffer flush.  Note that we've already arranged for pmem
1018          * writes to avoid the cache via arch_memcpy_to_pmem().  The
1019          * final wmb() ensures ordering for the NVDIMM flush write.
1020          */
1021         wmb();
1022         for (i = 0; i < nd_region->ndr_mappings; i++)
1023                 if (ndrd_get_flush_wpq(ndrd, i, 0))
1024                         writeq(1, ndrd_get_flush_wpq(ndrd, i, idx));
1025         wmb();
1026 }
1027 EXPORT_SYMBOL_GPL(nvdimm_flush);
1028
1029 /**
1030  * nvdimm_has_flush - determine write flushing requirements
1031  * @nd_region: blk or interleaved pmem region
1032  *
1033  * Returns 1 if writes require flushing
1034  * Returns 0 if writes do not require flushing
1035  * Returns -ENXIO if flushing capability can not be determined
1036  */
1037 int nvdimm_has_flush(struct nd_region *nd_region)
1038 {
1039         int i;
1040
1041         /* no nvdimm == flushing capability unknown */
1042         if (nd_region->ndr_mappings == 0)
1043                 return -ENXIO;
1044
1045         for (i = 0; i < nd_region->ndr_mappings; i++) {
1046                 struct nd_mapping *nd_mapping = &nd_region->mapping[i];
1047                 struct nvdimm *nvdimm = nd_mapping->nvdimm;
1048
1049                 /* flush hints present / available */
1050                 if (nvdimm->num_flush)
1051                         return 1;
1052         }
1053
1054         /*
1055          * The platform defines dimm devices without hints, assume
1056          * platform persistence mechanism like ADR
1057          */
1058         return 0;
1059 }
1060 EXPORT_SYMBOL_GPL(nvdimm_has_flush);
1061
1062 void __exit nd_region_devs_exit(void)
1063 {
1064         ida_destroy(&region_ida);
1065 }