2 * Copyright(c) 2013-2015 Intel Corporation. All rights reserved.
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.
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.
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/sort.h>
25 * For readq() and writeq() on 32-bit builds, the hi-lo, lo-hi order is
28 #include <linux/io-64-nonatomic-hi-lo.h>
30 static DEFINE_IDA(region_ida
);
31 static DEFINE_PER_CPU(int, flush_idx
);
33 static int nvdimm_map_flush(struct device
*dev
, struct nvdimm
*nvdimm
, int dimm
,
34 struct nd_region_data
*ndrd
)
38 dev_dbg(dev
, "%s: map %d flush address%s\n", nvdimm_name(nvdimm
),
39 nvdimm
->num_flush
, nvdimm
->num_flush
== 1 ? "" : "es");
40 for (i
= 0; i
< (1 << ndrd
->hints_shift
); i
++) {
41 struct resource
*res
= &nvdimm
->flush_wpq
[i
];
42 unsigned long pfn
= PHYS_PFN(res
->start
);
43 void __iomem
*flush_page
;
45 /* check if flush hints share a page */
46 for (j
= 0; j
< i
; j
++) {
47 struct resource
*res_j
= &nvdimm
->flush_wpq
[j
];
48 unsigned long pfn_j
= PHYS_PFN(res_j
->start
);
55 flush_page
= (void __iomem
*) ((unsigned long)
56 ndrd_get_flush_wpq(ndrd
, dimm
, j
)
59 flush_page
= devm_nvdimm_ioremap(dev
,
60 PFN_PHYS(pfn
), PAGE_SIZE
);
63 ndrd_set_flush_wpq(ndrd
, dimm
, i
, flush_page
64 + (res
->start
& ~PAGE_MASK
));
70 int nd_region_activate(struct nd_region
*nd_region
)
72 int i
, j
, num_flush
= 0;
73 struct nd_region_data
*ndrd
;
74 struct device
*dev
= &nd_region
->dev
;
75 size_t flush_data_size
= sizeof(void *);
77 nvdimm_bus_lock(&nd_region
->dev
);
78 for (i
= 0; i
< nd_region
->ndr_mappings
; i
++) {
79 struct nd_mapping
*nd_mapping
= &nd_region
->mapping
[i
];
80 struct nvdimm
*nvdimm
= nd_mapping
->nvdimm
;
82 /* at least one null hint slot per-dimm for the "no-hint" case */
83 flush_data_size
+= sizeof(void *);
84 num_flush
= min_not_zero(num_flush
, nvdimm
->num_flush
);
85 if (!nvdimm
->num_flush
)
87 flush_data_size
+= nvdimm
->num_flush
* sizeof(void *);
89 nvdimm_bus_unlock(&nd_region
->dev
);
91 ndrd
= devm_kzalloc(dev
, sizeof(*ndrd
) + flush_data_size
, GFP_KERNEL
);
94 dev_set_drvdata(dev
, ndrd
);
99 ndrd
->hints_shift
= ilog2(num_flush
);
100 for (i
= 0; i
< nd_region
->ndr_mappings
; i
++) {
101 struct nd_mapping
*nd_mapping
= &nd_region
->mapping
[i
];
102 struct nvdimm
*nvdimm
= nd_mapping
->nvdimm
;
103 int rc
= nvdimm_map_flush(&nd_region
->dev
, nvdimm
, i
, ndrd
);
110 * Clear out entries that are duplicates. This should prevent the
113 for (i
= 0; i
< nd_region
->ndr_mappings
- 1; i
++) {
114 /* ignore if NULL already */
115 if (!ndrd_get_flush_wpq(ndrd
, i
, 0))
118 for (j
= i
+ 1; j
< nd_region
->ndr_mappings
; j
++)
119 if (ndrd_get_flush_wpq(ndrd
, i
, 0) ==
120 ndrd_get_flush_wpq(ndrd
, j
, 0))
121 ndrd_set_flush_wpq(ndrd
, j
, 0, NULL
);
127 static void nd_region_release(struct device
*dev
)
129 struct nd_region
*nd_region
= to_nd_region(dev
);
132 for (i
= 0; i
< nd_region
->ndr_mappings
; i
++) {
133 struct nd_mapping
*nd_mapping
= &nd_region
->mapping
[i
];
134 struct nvdimm
*nvdimm
= nd_mapping
->nvdimm
;
136 put_device(&nvdimm
->dev
);
138 free_percpu(nd_region
->lane
);
139 ida_simple_remove(®ion_ida
, nd_region
->id
);
141 kfree(to_nd_blk_region(dev
));
146 static struct device_type nd_blk_device_type
= {
148 .release
= nd_region_release
,
151 static struct device_type nd_pmem_device_type
= {
153 .release
= nd_region_release
,
156 static struct device_type nd_volatile_device_type
= {
157 .name
= "nd_volatile",
158 .release
= nd_region_release
,
161 bool is_nd_pmem(struct device
*dev
)
163 return dev
? dev
->type
== &nd_pmem_device_type
: false;
166 bool is_nd_blk(struct device
*dev
)
168 return dev
? dev
->type
== &nd_blk_device_type
: false;
171 bool is_nd_volatile(struct device
*dev
)
173 return dev
? dev
->type
== &nd_volatile_device_type
: false;
176 struct nd_region
*to_nd_region(struct device
*dev
)
178 struct nd_region
*nd_region
= container_of(dev
, struct nd_region
, dev
);
180 WARN_ON(dev
->type
->release
!= nd_region_release
);
183 EXPORT_SYMBOL_GPL(to_nd_region
);
185 struct device
*nd_region_dev(struct nd_region
*nd_region
)
189 return &nd_region
->dev
;
191 EXPORT_SYMBOL_GPL(nd_region_dev
);
193 struct nd_blk_region
*to_nd_blk_region(struct device
*dev
)
195 struct nd_region
*nd_region
= to_nd_region(dev
);
197 WARN_ON(!is_nd_blk(dev
));
198 return container_of(nd_region
, struct nd_blk_region
, nd_region
);
200 EXPORT_SYMBOL_GPL(to_nd_blk_region
);
202 void *nd_region_provider_data(struct nd_region
*nd_region
)
204 return nd_region
->provider_data
;
206 EXPORT_SYMBOL_GPL(nd_region_provider_data
);
208 void *nd_blk_region_provider_data(struct nd_blk_region
*ndbr
)
210 return ndbr
->blk_provider_data
;
212 EXPORT_SYMBOL_GPL(nd_blk_region_provider_data
);
214 void nd_blk_region_set_provider_data(struct nd_blk_region
*ndbr
, void *data
)
216 ndbr
->blk_provider_data
= data
;
218 EXPORT_SYMBOL_GPL(nd_blk_region_set_provider_data
);
221 * nd_region_to_nstype() - region to an integer namespace type
222 * @nd_region: region-device to interrogate
224 * This is the 'nstype' attribute of a region as well, an input to the
225 * MODALIAS for namespace devices, and bit number for a nvdimm_bus to match
226 * namespace devices with namespace drivers.
228 int nd_region_to_nstype(struct nd_region
*nd_region
)
230 if (is_memory(&nd_region
->dev
)) {
233 for (i
= 0, alias
= 0; i
< nd_region
->ndr_mappings
; i
++) {
234 struct nd_mapping
*nd_mapping
= &nd_region
->mapping
[i
];
235 struct nvdimm
*nvdimm
= nd_mapping
->nvdimm
;
237 if (test_bit(NDD_ALIASING
, &nvdimm
->flags
))
241 return ND_DEVICE_NAMESPACE_PMEM
;
243 return ND_DEVICE_NAMESPACE_IO
;
244 } else if (is_nd_blk(&nd_region
->dev
)) {
245 return ND_DEVICE_NAMESPACE_BLK
;
250 EXPORT_SYMBOL(nd_region_to_nstype
);
252 static ssize_t
size_show(struct device
*dev
,
253 struct device_attribute
*attr
, char *buf
)
255 struct nd_region
*nd_region
= to_nd_region(dev
);
256 unsigned long long size
= 0;
258 if (is_memory(dev
)) {
259 size
= nd_region
->ndr_size
;
260 } else if (nd_region
->ndr_mappings
== 1) {
261 struct nd_mapping
*nd_mapping
= &nd_region
->mapping
[0];
263 size
= nd_mapping
->size
;
266 return sprintf(buf
, "%llu\n", size
);
268 static DEVICE_ATTR_RO(size
);
270 static ssize_t
deep_flush_show(struct device
*dev
,
271 struct device_attribute
*attr
, char *buf
)
273 struct nd_region
*nd_region
= to_nd_region(dev
);
276 * NOTE: in the nvdimm_has_flush() error case this attribute is
279 return sprintf(buf
, "%d\n", nvdimm_has_flush(nd_region
));
282 static ssize_t
deep_flush_store(struct device
*dev
, struct device_attribute
*attr
,
283 const char *buf
, size_t len
)
286 int rc
= strtobool(buf
, &flush
);
287 struct nd_region
*nd_region
= to_nd_region(dev
);
293 nvdimm_flush(nd_region
);
297 static DEVICE_ATTR_RW(deep_flush
);
299 static ssize_t
mappings_show(struct device
*dev
,
300 struct device_attribute
*attr
, char *buf
)
302 struct nd_region
*nd_region
= to_nd_region(dev
);
304 return sprintf(buf
, "%d\n", nd_region
->ndr_mappings
);
306 static DEVICE_ATTR_RO(mappings
);
308 static ssize_t
nstype_show(struct device
*dev
,
309 struct device_attribute
*attr
, char *buf
)
311 struct nd_region
*nd_region
= to_nd_region(dev
);
313 return sprintf(buf
, "%d\n", nd_region_to_nstype(nd_region
));
315 static DEVICE_ATTR_RO(nstype
);
317 static ssize_t
set_cookie_show(struct device
*dev
,
318 struct device_attribute
*attr
, char *buf
)
320 struct nd_region
*nd_region
= to_nd_region(dev
);
321 struct nd_interleave_set
*nd_set
= nd_region
->nd_set
;
324 if (is_memory(dev
) && nd_set
)
325 /* pass, should be precluded by region_visible */;
330 * The cookie to show depends on which specification of the
331 * labels we are using. If there are not labels then default to
332 * the v1.1 namespace label cookie definition. To read all this
333 * data we need to wait for probing to settle.
336 nvdimm_bus_lock(dev
);
337 wait_nvdimm_bus_probe_idle(dev
);
338 if (nd_region
->ndr_mappings
) {
339 struct nd_mapping
*nd_mapping
= &nd_region
->mapping
[0];
340 struct nvdimm_drvdata
*ndd
= to_ndd(nd_mapping
);
343 struct nd_namespace_index
*nsindex
;
345 nsindex
= to_namespace_index(ndd
, ndd
->ns_current
);
346 rc
= sprintf(buf
, "%#llx\n",
347 nd_region_interleave_set_cookie(nd_region
,
351 nvdimm_bus_unlock(dev
);
356 return sprintf(buf
, "%#llx\n", nd_set
->cookie1
);
358 static DEVICE_ATTR_RO(set_cookie
);
360 resource_size_t
nd_region_available_dpa(struct nd_region
*nd_region
)
362 resource_size_t blk_max_overlap
= 0, available
, overlap
;
365 WARN_ON(!is_nvdimm_bus_locked(&nd_region
->dev
));
369 overlap
= blk_max_overlap
;
370 for (i
= 0; i
< nd_region
->ndr_mappings
; i
++) {
371 struct nd_mapping
*nd_mapping
= &nd_region
->mapping
[i
];
372 struct nvdimm_drvdata
*ndd
= to_ndd(nd_mapping
);
374 /* if a dimm is disabled the available capacity is zero */
378 if (is_memory(&nd_region
->dev
)) {
379 available
+= nd_pmem_available_dpa(nd_region
,
380 nd_mapping
, &overlap
);
381 if (overlap
> blk_max_overlap
) {
382 blk_max_overlap
= overlap
;
385 } else if (is_nd_blk(&nd_region
->dev
))
386 available
+= nd_blk_available_dpa(nd_region
);
392 resource_size_t
nd_region_allocatable_dpa(struct nd_region
*nd_region
)
394 resource_size_t available
= 0;
397 if (is_memory(&nd_region
->dev
))
398 available
= PHYS_ADDR_MAX
;
400 WARN_ON(!is_nvdimm_bus_locked(&nd_region
->dev
));
401 for (i
= 0; i
< nd_region
->ndr_mappings
; i
++) {
402 struct nd_mapping
*nd_mapping
= &nd_region
->mapping
[i
];
404 if (is_memory(&nd_region
->dev
))
405 available
= min(available
,
406 nd_pmem_max_contiguous_dpa(nd_region
,
408 else if (is_nd_blk(&nd_region
->dev
))
409 available
+= nd_blk_available_dpa(nd_region
);
411 if (is_memory(&nd_region
->dev
))
412 return available
* nd_region
->ndr_mappings
;
416 static ssize_t
available_size_show(struct device
*dev
,
417 struct device_attribute
*attr
, char *buf
)
419 struct nd_region
*nd_region
= to_nd_region(dev
);
420 unsigned long long available
= 0;
423 * Flush in-flight updates and grab a snapshot of the available
424 * size. Of course, this value is potentially invalidated the
425 * memory nvdimm_bus_lock() is dropped, but that's userspace's
426 * problem to not race itself.
429 nvdimm_bus_lock(dev
);
430 wait_nvdimm_bus_probe_idle(dev
);
431 available
= nd_region_available_dpa(nd_region
);
432 nvdimm_bus_unlock(dev
);
435 return sprintf(buf
, "%llu\n", available
);
437 static DEVICE_ATTR_RO(available_size
);
439 static ssize_t
max_available_extent_show(struct device
*dev
,
440 struct device_attribute
*attr
, char *buf
)
442 struct nd_region
*nd_region
= to_nd_region(dev
);
443 unsigned long long available
= 0;
446 nvdimm_bus_lock(dev
);
447 wait_nvdimm_bus_probe_idle(dev
);
448 available
= nd_region_allocatable_dpa(nd_region
);
449 nvdimm_bus_unlock(dev
);
452 return sprintf(buf
, "%llu\n", available
);
454 static DEVICE_ATTR_RO(max_available_extent
);
456 static ssize_t
init_namespaces_show(struct device
*dev
,
457 struct device_attribute
*attr
, char *buf
)
459 struct nd_region_data
*ndrd
= dev_get_drvdata(dev
);
462 nvdimm_bus_lock(dev
);
464 rc
= sprintf(buf
, "%d/%d\n", ndrd
->ns_active
, ndrd
->ns_count
);
467 nvdimm_bus_unlock(dev
);
471 static DEVICE_ATTR_RO(init_namespaces
);
473 static ssize_t
namespace_seed_show(struct device
*dev
,
474 struct device_attribute
*attr
, char *buf
)
476 struct nd_region
*nd_region
= to_nd_region(dev
);
479 nvdimm_bus_lock(dev
);
480 if (nd_region
->ns_seed
)
481 rc
= sprintf(buf
, "%s\n", dev_name(nd_region
->ns_seed
));
483 rc
= sprintf(buf
, "\n");
484 nvdimm_bus_unlock(dev
);
487 static DEVICE_ATTR_RO(namespace_seed
);
489 static ssize_t
btt_seed_show(struct device
*dev
,
490 struct device_attribute
*attr
, char *buf
)
492 struct nd_region
*nd_region
= to_nd_region(dev
);
495 nvdimm_bus_lock(dev
);
496 if (nd_region
->btt_seed
)
497 rc
= sprintf(buf
, "%s\n", dev_name(nd_region
->btt_seed
));
499 rc
= sprintf(buf
, "\n");
500 nvdimm_bus_unlock(dev
);
504 static DEVICE_ATTR_RO(btt_seed
);
506 static ssize_t
pfn_seed_show(struct device
*dev
,
507 struct device_attribute
*attr
, char *buf
)
509 struct nd_region
*nd_region
= to_nd_region(dev
);
512 nvdimm_bus_lock(dev
);
513 if (nd_region
->pfn_seed
)
514 rc
= sprintf(buf
, "%s\n", dev_name(nd_region
->pfn_seed
));
516 rc
= sprintf(buf
, "\n");
517 nvdimm_bus_unlock(dev
);
521 static DEVICE_ATTR_RO(pfn_seed
);
523 static ssize_t
dax_seed_show(struct device
*dev
,
524 struct device_attribute
*attr
, char *buf
)
526 struct nd_region
*nd_region
= to_nd_region(dev
);
529 nvdimm_bus_lock(dev
);
530 if (nd_region
->dax_seed
)
531 rc
= sprintf(buf
, "%s\n", dev_name(nd_region
->dax_seed
));
533 rc
= sprintf(buf
, "\n");
534 nvdimm_bus_unlock(dev
);
538 static DEVICE_ATTR_RO(dax_seed
);
540 static ssize_t
read_only_show(struct device
*dev
,
541 struct device_attribute
*attr
, char *buf
)
543 struct nd_region
*nd_region
= to_nd_region(dev
);
545 return sprintf(buf
, "%d\n", nd_region
->ro
);
548 static ssize_t
read_only_store(struct device
*dev
,
549 struct device_attribute
*attr
, const char *buf
, size_t len
)
552 int rc
= strtobool(buf
, &ro
);
553 struct nd_region
*nd_region
= to_nd_region(dev
);
561 static DEVICE_ATTR_RW(read_only
);
563 static ssize_t
region_badblocks_show(struct device
*dev
,
564 struct device_attribute
*attr
, char *buf
)
566 struct nd_region
*nd_region
= to_nd_region(dev
);
571 rc
= badblocks_show(&nd_region
->bb
, buf
, 0);
578 static DEVICE_ATTR(badblocks
, 0444, region_badblocks_show
, NULL
);
580 static ssize_t
resource_show(struct device
*dev
,
581 struct device_attribute
*attr
, char *buf
)
583 struct nd_region
*nd_region
= to_nd_region(dev
);
585 return sprintf(buf
, "%#llx\n", nd_region
->ndr_start
);
587 static DEVICE_ATTR_RO(resource
);
589 static ssize_t
persistence_domain_show(struct device
*dev
,
590 struct device_attribute
*attr
, char *buf
)
592 struct nd_region
*nd_region
= to_nd_region(dev
);
594 if (test_bit(ND_REGION_PERSIST_CACHE
, &nd_region
->flags
))
595 return sprintf(buf
, "cpu_cache\n");
596 else if (test_bit(ND_REGION_PERSIST_MEMCTRL
, &nd_region
->flags
))
597 return sprintf(buf
, "memory_controller\n");
599 return sprintf(buf
, "\n");
601 static DEVICE_ATTR_RO(persistence_domain
);
603 static struct attribute
*nd_region_attributes
[] = {
605 &dev_attr_nstype
.attr
,
606 &dev_attr_mappings
.attr
,
607 &dev_attr_btt_seed
.attr
,
608 &dev_attr_pfn_seed
.attr
,
609 &dev_attr_dax_seed
.attr
,
610 &dev_attr_deep_flush
.attr
,
611 &dev_attr_read_only
.attr
,
612 &dev_attr_set_cookie
.attr
,
613 &dev_attr_available_size
.attr
,
614 &dev_attr_max_available_extent
.attr
,
615 &dev_attr_namespace_seed
.attr
,
616 &dev_attr_init_namespaces
.attr
,
617 &dev_attr_badblocks
.attr
,
618 &dev_attr_resource
.attr
,
619 &dev_attr_persistence_domain
.attr
,
623 static umode_t
region_visible(struct kobject
*kobj
, struct attribute
*a
, int n
)
625 struct device
*dev
= container_of(kobj
, typeof(*dev
), kobj
);
626 struct nd_region
*nd_region
= to_nd_region(dev
);
627 struct nd_interleave_set
*nd_set
= nd_region
->nd_set
;
628 int type
= nd_region_to_nstype(nd_region
);
630 if (!is_memory(dev
) && a
== &dev_attr_pfn_seed
.attr
)
633 if (!is_memory(dev
) && a
== &dev_attr_dax_seed
.attr
)
636 if (!is_memory(dev
) && a
== &dev_attr_badblocks
.attr
)
639 if (a
== &dev_attr_resource
.attr
) {
646 if (a
== &dev_attr_deep_flush
.attr
) {
647 int has_flush
= nvdimm_has_flush(nd_region
);
651 else if (has_flush
== 0)
657 if (a
== &dev_attr_persistence_domain
.attr
) {
658 if ((nd_region
->flags
& (BIT(ND_REGION_PERSIST_CACHE
)
659 | BIT(ND_REGION_PERSIST_MEMCTRL
))) == 0)
664 if (a
!= &dev_attr_set_cookie
.attr
665 && a
!= &dev_attr_available_size
.attr
)
668 if ((type
== ND_DEVICE_NAMESPACE_PMEM
669 || type
== ND_DEVICE_NAMESPACE_BLK
)
670 && a
== &dev_attr_available_size
.attr
)
672 else if (is_memory(dev
) && nd_set
)
678 struct attribute_group nd_region_attribute_group
= {
679 .attrs
= nd_region_attributes
,
680 .is_visible
= region_visible
,
682 EXPORT_SYMBOL_GPL(nd_region_attribute_group
);
684 u64
nd_region_interleave_set_cookie(struct nd_region
*nd_region
,
685 struct nd_namespace_index
*nsindex
)
687 struct nd_interleave_set
*nd_set
= nd_region
->nd_set
;
692 if (nsindex
&& __le16_to_cpu(nsindex
->major
) == 1
693 && __le16_to_cpu(nsindex
->minor
) == 1)
694 return nd_set
->cookie1
;
695 return nd_set
->cookie2
;
698 u64
nd_region_interleave_set_altcookie(struct nd_region
*nd_region
)
700 struct nd_interleave_set
*nd_set
= nd_region
->nd_set
;
703 return nd_set
->altcookie
;
707 void nd_mapping_free_labels(struct nd_mapping
*nd_mapping
)
709 struct nd_label_ent
*label_ent
, *e
;
711 lockdep_assert_held(&nd_mapping
->lock
);
712 list_for_each_entry_safe(label_ent
, e
, &nd_mapping
->labels
, list
) {
713 list_del(&label_ent
->list
);
719 * Upon successful probe/remove, take/release a reference on the
720 * associated interleave set (if present), and plant new btt + namespace
721 * seeds. Also, on the removal of a BLK region, notify the provider to
722 * disable the region.
724 static void nd_region_notify_driver_action(struct nvdimm_bus
*nvdimm_bus
,
725 struct device
*dev
, bool probe
)
727 struct nd_region
*nd_region
;
729 if (!probe
&& is_nd_region(dev
)) {
732 nd_region
= to_nd_region(dev
);
733 for (i
= 0; i
< nd_region
->ndr_mappings
; i
++) {
734 struct nd_mapping
*nd_mapping
= &nd_region
->mapping
[i
];
735 struct nvdimm_drvdata
*ndd
= nd_mapping
->ndd
;
736 struct nvdimm
*nvdimm
= nd_mapping
->nvdimm
;
738 mutex_lock(&nd_mapping
->lock
);
739 nd_mapping_free_labels(nd_mapping
);
740 mutex_unlock(&nd_mapping
->lock
);
743 nd_mapping
->ndd
= NULL
;
745 atomic_dec(&nvdimm
->busy
);
748 if (dev
->parent
&& is_nd_region(dev
->parent
) && probe
) {
749 nd_region
= to_nd_region(dev
->parent
);
750 nvdimm_bus_lock(dev
);
751 if (nd_region
->ns_seed
== dev
)
752 nd_region_create_ns_seed(nd_region
);
753 nvdimm_bus_unlock(dev
);
755 if (is_nd_btt(dev
) && probe
) {
756 struct nd_btt
*nd_btt
= to_nd_btt(dev
);
758 nd_region
= to_nd_region(dev
->parent
);
759 nvdimm_bus_lock(dev
);
760 if (nd_region
->btt_seed
== dev
)
761 nd_region_create_btt_seed(nd_region
);
762 if (nd_region
->ns_seed
== &nd_btt
->ndns
->dev
)
763 nd_region_create_ns_seed(nd_region
);
764 nvdimm_bus_unlock(dev
);
766 if (is_nd_pfn(dev
) && probe
) {
767 struct nd_pfn
*nd_pfn
= to_nd_pfn(dev
);
769 nd_region
= to_nd_region(dev
->parent
);
770 nvdimm_bus_lock(dev
);
771 if (nd_region
->pfn_seed
== dev
)
772 nd_region_create_pfn_seed(nd_region
);
773 if (nd_region
->ns_seed
== &nd_pfn
->ndns
->dev
)
774 nd_region_create_ns_seed(nd_region
);
775 nvdimm_bus_unlock(dev
);
777 if (is_nd_dax(dev
) && probe
) {
778 struct nd_dax
*nd_dax
= to_nd_dax(dev
);
780 nd_region
= to_nd_region(dev
->parent
);
781 nvdimm_bus_lock(dev
);
782 if (nd_region
->dax_seed
== dev
)
783 nd_region_create_dax_seed(nd_region
);
784 if (nd_region
->ns_seed
== &nd_dax
->nd_pfn
.ndns
->dev
)
785 nd_region_create_ns_seed(nd_region
);
786 nvdimm_bus_unlock(dev
);
790 void nd_region_probe_success(struct nvdimm_bus
*nvdimm_bus
, struct device
*dev
)
792 nd_region_notify_driver_action(nvdimm_bus
, dev
, true);
795 void nd_region_disable(struct nvdimm_bus
*nvdimm_bus
, struct device
*dev
)
797 nd_region_notify_driver_action(nvdimm_bus
, dev
, false);
800 static ssize_t
mappingN(struct device
*dev
, char *buf
, int n
)
802 struct nd_region
*nd_region
= to_nd_region(dev
);
803 struct nd_mapping
*nd_mapping
;
804 struct nvdimm
*nvdimm
;
806 if (n
>= nd_region
->ndr_mappings
)
808 nd_mapping
= &nd_region
->mapping
[n
];
809 nvdimm
= nd_mapping
->nvdimm
;
811 return sprintf(buf
, "%s,%llu,%llu,%d\n", dev_name(&nvdimm
->dev
),
812 nd_mapping
->start
, nd_mapping
->size
,
813 nd_mapping
->position
);
816 #define REGION_MAPPING(idx) \
817 static ssize_t mapping##idx##_show(struct device *dev, \
818 struct device_attribute *attr, char *buf) \
820 return mappingN(dev, buf, idx); \
822 static DEVICE_ATTR_RO(mapping##idx)
825 * 32 should be enough for a while, even in the presence of socket
826 * interleave a 32-way interleave set is a degenerate case.
861 static umode_t
mapping_visible(struct kobject
*kobj
, struct attribute
*a
, int n
)
863 struct device
*dev
= container_of(kobj
, struct device
, kobj
);
864 struct nd_region
*nd_region
= to_nd_region(dev
);
866 if (n
< nd_region
->ndr_mappings
)
871 static struct attribute
*mapping_attributes
[] = {
872 &dev_attr_mapping0
.attr
,
873 &dev_attr_mapping1
.attr
,
874 &dev_attr_mapping2
.attr
,
875 &dev_attr_mapping3
.attr
,
876 &dev_attr_mapping4
.attr
,
877 &dev_attr_mapping5
.attr
,
878 &dev_attr_mapping6
.attr
,
879 &dev_attr_mapping7
.attr
,
880 &dev_attr_mapping8
.attr
,
881 &dev_attr_mapping9
.attr
,
882 &dev_attr_mapping10
.attr
,
883 &dev_attr_mapping11
.attr
,
884 &dev_attr_mapping12
.attr
,
885 &dev_attr_mapping13
.attr
,
886 &dev_attr_mapping14
.attr
,
887 &dev_attr_mapping15
.attr
,
888 &dev_attr_mapping16
.attr
,
889 &dev_attr_mapping17
.attr
,
890 &dev_attr_mapping18
.attr
,
891 &dev_attr_mapping19
.attr
,
892 &dev_attr_mapping20
.attr
,
893 &dev_attr_mapping21
.attr
,
894 &dev_attr_mapping22
.attr
,
895 &dev_attr_mapping23
.attr
,
896 &dev_attr_mapping24
.attr
,
897 &dev_attr_mapping25
.attr
,
898 &dev_attr_mapping26
.attr
,
899 &dev_attr_mapping27
.attr
,
900 &dev_attr_mapping28
.attr
,
901 &dev_attr_mapping29
.attr
,
902 &dev_attr_mapping30
.attr
,
903 &dev_attr_mapping31
.attr
,
907 struct attribute_group nd_mapping_attribute_group
= {
908 .is_visible
= mapping_visible
,
909 .attrs
= mapping_attributes
,
911 EXPORT_SYMBOL_GPL(nd_mapping_attribute_group
);
913 int nd_blk_region_init(struct nd_region
*nd_region
)
915 struct device
*dev
= &nd_region
->dev
;
916 struct nvdimm_bus
*nvdimm_bus
= walk_to_nvdimm_bus(dev
);
921 if (nd_region
->ndr_mappings
< 1) {
922 dev_dbg(dev
, "invalid BLK region\n");
926 return to_nd_blk_region(dev
)->enable(nvdimm_bus
, dev
);
930 * nd_region_acquire_lane - allocate and lock a lane
931 * @nd_region: region id and number of lanes possible
933 * A lane correlates to a BLK-data-window and/or a log slot in the BTT.
934 * We optimize for the common case where there are 256 lanes, one
935 * per-cpu. For larger systems we need to lock to share lanes. For now
936 * this implementation assumes the cost of maintaining an allocator for
937 * free lanes is on the order of the lock hold time, so it implements a
938 * static lane = cpu % num_lanes mapping.
940 * In the case of a BTT instance on top of a BLK namespace a lane may be
941 * acquired recursively. We lock on the first instance.
943 * In the case of a BTT instance on top of PMEM, we only acquire a lane
944 * for the BTT metadata updates.
946 unsigned int nd_region_acquire_lane(struct nd_region
*nd_region
)
948 unsigned int cpu
, lane
;
951 if (nd_region
->num_lanes
< nr_cpu_ids
) {
952 struct nd_percpu_lane
*ndl_lock
, *ndl_count
;
954 lane
= cpu
% nd_region
->num_lanes
;
955 ndl_count
= per_cpu_ptr(nd_region
->lane
, cpu
);
956 ndl_lock
= per_cpu_ptr(nd_region
->lane
, lane
);
957 if (ndl_count
->count
++ == 0)
958 spin_lock(&ndl_lock
->lock
);
964 EXPORT_SYMBOL(nd_region_acquire_lane
);
966 void nd_region_release_lane(struct nd_region
*nd_region
, unsigned int lane
)
968 if (nd_region
->num_lanes
< nr_cpu_ids
) {
969 unsigned int cpu
= get_cpu();
970 struct nd_percpu_lane
*ndl_lock
, *ndl_count
;
972 ndl_count
= per_cpu_ptr(nd_region
->lane
, cpu
);
973 ndl_lock
= per_cpu_ptr(nd_region
->lane
, lane
);
974 if (--ndl_count
->count
== 0)
975 spin_unlock(&ndl_lock
->lock
);
980 EXPORT_SYMBOL(nd_region_release_lane
);
982 static struct nd_region
*nd_region_create(struct nvdimm_bus
*nvdimm_bus
,
983 struct nd_region_desc
*ndr_desc
, struct device_type
*dev_type
,
986 struct nd_region
*nd_region
;
992 for (i
= 0; i
< ndr_desc
->num_mappings
; i
++) {
993 struct nd_mapping_desc
*mapping
= &ndr_desc
->mapping
[i
];
994 struct nvdimm
*nvdimm
= mapping
->nvdimm
;
996 if ((mapping
->start
| mapping
->size
) % SZ_4K
) {
997 dev_err(&nvdimm_bus
->dev
, "%s: %s mapping%d is not 4K aligned\n",
998 caller
, dev_name(&nvdimm
->dev
), i
);
1003 if (test_bit(NDD_UNARMED
, &nvdimm
->flags
))
1007 if (dev_type
== &nd_blk_device_type
) {
1008 struct nd_blk_region_desc
*ndbr_desc
;
1009 struct nd_blk_region
*ndbr
;
1011 ndbr_desc
= to_blk_region_desc(ndr_desc
);
1012 ndbr
= kzalloc(sizeof(*ndbr
) + sizeof(struct nd_mapping
)
1013 * ndr_desc
->num_mappings
,
1016 nd_region
= &ndbr
->nd_region
;
1017 ndbr
->enable
= ndbr_desc
->enable
;
1018 ndbr
->do_io
= ndbr_desc
->do_io
;
1022 nd_region
= kzalloc(sizeof(struct nd_region
)
1023 + sizeof(struct nd_mapping
)
1024 * ndr_desc
->num_mappings
,
1026 region_buf
= nd_region
;
1031 nd_region
->id
= ida_simple_get(®ion_ida
, 0, 0, GFP_KERNEL
);
1032 if (nd_region
->id
< 0)
1035 nd_region
->lane
= alloc_percpu(struct nd_percpu_lane
);
1036 if (!nd_region
->lane
)
1039 for (i
= 0; i
< nr_cpu_ids
; i
++) {
1040 struct nd_percpu_lane
*ndl
;
1042 ndl
= per_cpu_ptr(nd_region
->lane
, i
);
1043 spin_lock_init(&ndl
->lock
);
1047 for (i
= 0; i
< ndr_desc
->num_mappings
; i
++) {
1048 struct nd_mapping_desc
*mapping
= &ndr_desc
->mapping
[i
];
1049 struct nvdimm
*nvdimm
= mapping
->nvdimm
;
1051 nd_region
->mapping
[i
].nvdimm
= nvdimm
;
1052 nd_region
->mapping
[i
].start
= mapping
->start
;
1053 nd_region
->mapping
[i
].size
= mapping
->size
;
1054 nd_region
->mapping
[i
].position
= mapping
->position
;
1055 INIT_LIST_HEAD(&nd_region
->mapping
[i
].labels
);
1056 mutex_init(&nd_region
->mapping
[i
].lock
);
1058 get_device(&nvdimm
->dev
);
1060 nd_region
->ndr_mappings
= ndr_desc
->num_mappings
;
1061 nd_region
->provider_data
= ndr_desc
->provider_data
;
1062 nd_region
->nd_set
= ndr_desc
->nd_set
;
1063 nd_region
->num_lanes
= ndr_desc
->num_lanes
;
1064 nd_region
->flags
= ndr_desc
->flags
;
1066 nd_region
->numa_node
= ndr_desc
->numa_node
;
1067 ida_init(&nd_region
->ns_ida
);
1068 ida_init(&nd_region
->btt_ida
);
1069 ida_init(&nd_region
->pfn_ida
);
1070 ida_init(&nd_region
->dax_ida
);
1071 dev
= &nd_region
->dev
;
1072 dev_set_name(dev
, "region%d", nd_region
->id
);
1073 dev
->parent
= &nvdimm_bus
->dev
;
1074 dev
->type
= dev_type
;
1075 dev
->groups
= ndr_desc
->attr_groups
;
1076 dev
->of_node
= ndr_desc
->of_node
;
1077 nd_region
->ndr_size
= resource_size(ndr_desc
->res
);
1078 nd_region
->ndr_start
= ndr_desc
->res
->start
;
1079 nd_device_register(dev
);
1084 ida_simple_remove(®ion_ida
, nd_region
->id
);
1090 struct nd_region
*nvdimm_pmem_region_create(struct nvdimm_bus
*nvdimm_bus
,
1091 struct nd_region_desc
*ndr_desc
)
1093 ndr_desc
->num_lanes
= ND_MAX_LANES
;
1094 return nd_region_create(nvdimm_bus
, ndr_desc
, &nd_pmem_device_type
,
1097 EXPORT_SYMBOL_GPL(nvdimm_pmem_region_create
);
1099 struct nd_region
*nvdimm_blk_region_create(struct nvdimm_bus
*nvdimm_bus
,
1100 struct nd_region_desc
*ndr_desc
)
1102 if (ndr_desc
->num_mappings
> 1)
1104 ndr_desc
->num_lanes
= min(ndr_desc
->num_lanes
, ND_MAX_LANES
);
1105 return nd_region_create(nvdimm_bus
, ndr_desc
, &nd_blk_device_type
,
1108 EXPORT_SYMBOL_GPL(nvdimm_blk_region_create
);
1110 struct nd_region
*nvdimm_volatile_region_create(struct nvdimm_bus
*nvdimm_bus
,
1111 struct nd_region_desc
*ndr_desc
)
1113 ndr_desc
->num_lanes
= ND_MAX_LANES
;
1114 return nd_region_create(nvdimm_bus
, ndr_desc
, &nd_volatile_device_type
,
1117 EXPORT_SYMBOL_GPL(nvdimm_volatile_region_create
);
1120 * nvdimm_flush - flush any posted write queues between the cpu and pmem media
1121 * @nd_region: blk or interleaved pmem region
1123 void nvdimm_flush(struct nd_region
*nd_region
)
1125 struct nd_region_data
*ndrd
= dev_get_drvdata(&nd_region
->dev
);
1129 * Try to encourage some diversity in flush hint addresses
1130 * across cpus assuming a limited number of flush hints.
1132 idx
= this_cpu_read(flush_idx
);
1133 idx
= this_cpu_add_return(flush_idx
, hash_32(current
->pid
+ idx
, 8));
1136 * The first wmb() is needed to 'sfence' all previous writes
1137 * such that they are architecturally visible for the platform
1138 * buffer flush. Note that we've already arranged for pmem
1139 * writes to avoid the cache via memcpy_flushcache(). The final
1140 * wmb() ensures ordering for the NVDIMM flush write.
1143 for (i
= 0; i
< nd_region
->ndr_mappings
; i
++)
1144 if (ndrd_get_flush_wpq(ndrd
, i
, 0))
1145 writeq(1, ndrd_get_flush_wpq(ndrd
, i
, idx
));
1148 EXPORT_SYMBOL_GPL(nvdimm_flush
);
1151 * nvdimm_has_flush - determine write flushing requirements
1152 * @nd_region: blk or interleaved pmem region
1154 * Returns 1 if writes require flushing
1155 * Returns 0 if writes do not require flushing
1156 * Returns -ENXIO if flushing capability can not be determined
1158 int nvdimm_has_flush(struct nd_region
*nd_region
)
1162 /* no nvdimm or pmem api == flushing capability unknown */
1163 if (nd_region
->ndr_mappings
== 0
1164 || !IS_ENABLED(CONFIG_ARCH_HAS_PMEM_API
))
1167 for (i
= 0; i
< nd_region
->ndr_mappings
; i
++) {
1168 struct nd_mapping
*nd_mapping
= &nd_region
->mapping
[i
];
1169 struct nvdimm
*nvdimm
= nd_mapping
->nvdimm
;
1171 /* flush hints present / available */
1172 if (nvdimm
->num_flush
)
1177 * The platform defines dimm devices without hints, assume
1178 * platform persistence mechanism like ADR
1182 EXPORT_SYMBOL_GPL(nvdimm_has_flush
);
1184 int nvdimm_has_cache(struct nd_region
*nd_region
)
1186 return is_nd_pmem(&nd_region
->dev
) &&
1187 !test_bit(ND_REGION_PERSIST_CACHE
, &nd_region
->flags
);
1189 EXPORT_SYMBOL_GPL(nvdimm_has_cache
);
1191 struct conflict_context
{
1192 struct nd_region
*nd_region
;
1193 resource_size_t start
, size
;
1196 static int region_conflict(struct device
*dev
, void *data
)
1198 struct nd_region
*nd_region
;
1199 struct conflict_context
*ctx
= data
;
1200 resource_size_t res_end
, region_end
, region_start
;
1202 if (!is_memory(dev
))
1205 nd_region
= to_nd_region(dev
);
1206 if (nd_region
== ctx
->nd_region
)
1209 res_end
= ctx
->start
+ ctx
->size
;
1210 region_start
= nd_region
->ndr_start
;
1211 region_end
= region_start
+ nd_region
->ndr_size
;
1212 if (ctx
->start
>= region_start
&& ctx
->start
< region_end
)
1214 if (res_end
> region_start
&& res_end
<= region_end
)
1219 int nd_region_conflict(struct nd_region
*nd_region
, resource_size_t start
,
1220 resource_size_t size
)
1222 struct nvdimm_bus
*nvdimm_bus
= walk_to_nvdimm_bus(&nd_region
->dev
);
1223 struct conflict_context ctx
= {
1224 .nd_region
= nd_region
,
1229 return device_for_each_child(&nvdimm_bus
->dev
, &ctx
, region_conflict
);
1232 void __exit
nd_region_devs_exit(void)
1234 ida_destroy(®ion_ida
);