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v6.8
   1// SPDX-License-Identifier: GPL-2.0-only
   2/*
   3 * Copyright(c) 2013-2015 Intel Corporation. All rights reserved.
 
 
 
 
 
 
 
 
 
   4 */
   5#include <linux/kstrtox.h>
   6#include <linux/module.h>
   7#include <linux/device.h>
   8#include <linux/sort.h>
   9#include <linux/slab.h>
 
  10#include <linux/list.h>
  11#include <linux/nd.h>
  12#include "nd-core.h"
  13#include "pmem.h"
  14#include "pfn.h"
  15#include "nd.h"
  16
  17static void namespace_io_release(struct device *dev)
  18{
  19	struct nd_namespace_io *nsio = to_nd_namespace_io(dev);
  20
  21	kfree(nsio);
  22}
  23
  24static void namespace_pmem_release(struct device *dev)
  25{
  26	struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
  27	struct nd_region *nd_region = to_nd_region(dev->parent);
  28
  29	if (nspm->id >= 0)
  30		ida_free(&nd_region->ns_ida, nspm->id);
  31	kfree(nspm->alt_name);
  32	kfree(nspm->uuid);
  33	kfree(nspm);
  34}
  35
  36static bool is_namespace_pmem(const struct device *dev);
  37static bool is_namespace_io(const struct device *dev);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
  38
  39static int is_uuid_busy(struct device *dev, void *data)
  40{
  41	uuid_t *uuid1 = data, *uuid2 = NULL;
  42
  43	if (is_namespace_pmem(dev)) {
  44		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
  45
  46		uuid2 = nspm->uuid;
 
 
 
 
  47	} else if (is_nd_btt(dev)) {
  48		struct nd_btt *nd_btt = to_nd_btt(dev);
  49
  50		uuid2 = nd_btt->uuid;
  51	} else if (is_nd_pfn(dev)) {
  52		struct nd_pfn *nd_pfn = to_nd_pfn(dev);
  53
  54		uuid2 = nd_pfn->uuid;
  55	}
  56
  57	if (uuid2 && uuid_equal(uuid1, uuid2))
  58		return -EBUSY;
  59
  60	return 0;
  61}
  62
  63static int is_namespace_uuid_busy(struct device *dev, void *data)
  64{
  65	if (is_nd_region(dev))
  66		return device_for_each_child(dev, data, is_uuid_busy);
  67	return 0;
  68}
  69
  70/**
  71 * nd_is_uuid_unique - verify that no other namespace has @uuid
  72 * @dev: any device on a nvdimm_bus
  73 * @uuid: uuid to check
  74 *
  75 * Returns: %true if the uuid is unique, %false if not
  76 */
  77bool nd_is_uuid_unique(struct device *dev, uuid_t *uuid)
  78{
  79	struct nvdimm_bus *nvdimm_bus = walk_to_nvdimm_bus(dev);
  80
  81	if (!nvdimm_bus)
  82		return false;
  83	WARN_ON_ONCE(!is_nvdimm_bus_locked(&nvdimm_bus->dev));
  84	if (device_for_each_child(&nvdimm_bus->dev, uuid,
  85				is_namespace_uuid_busy) != 0)
  86		return false;
  87	return true;
  88}
  89
  90bool pmem_should_map_pages(struct device *dev)
  91{
  92	struct nd_region *nd_region = to_nd_region(dev->parent);
  93	struct nd_namespace_common *ndns = to_ndns(dev);
  94	struct nd_namespace_io *nsio;
  95
  96	if (!IS_ENABLED(CONFIG_ZONE_DEVICE))
  97		return false;
  98
  99	if (!test_bit(ND_REGION_PAGEMAP, &nd_region->flags))
 100		return false;
 101
 102	if (is_nd_pfn(dev) || is_nd_btt(dev))
 103		return false;
 104
 105	if (ndns->force_raw)
 106		return false;
 107
 108	nsio = to_nd_namespace_io(dev);
 109	if (region_intersects(nsio->res.start, resource_size(&nsio->res),
 110				IORESOURCE_SYSTEM_RAM,
 111				IORES_DESC_NONE) == REGION_MIXED)
 112		return false;
 113
 
 114	return ARCH_MEMREMAP_PMEM == MEMREMAP_WB;
 
 
 
 115}
 116EXPORT_SYMBOL(pmem_should_map_pages);
 117
 118unsigned int pmem_sector_size(struct nd_namespace_common *ndns)
 119{
 120	if (is_namespace_pmem(&ndns->dev)) {
 121		struct nd_namespace_pmem *nspm;
 122
 123		nspm = to_nd_namespace_pmem(&ndns->dev);
 124		if (nspm->lbasize == 0 || nspm->lbasize == 512)
 125			/* default */;
 126		else if (nspm->lbasize == 4096)
 127			return 4096;
 128		else
 129			dev_WARN(&ndns->dev, "unsupported sector size: %ld\n",
 130					nspm->lbasize);
 131	}
 132
 133	/*
 134	 * There is no namespace label (is_namespace_io()), or the label
 135	 * indicates the default sector size.
 136	 */
 137	return 512;
 138}
 139EXPORT_SYMBOL(pmem_sector_size);
 140
 141const char *nvdimm_namespace_disk_name(struct nd_namespace_common *ndns,
 142		char *name)
 143{
 144	struct nd_region *nd_region = to_nd_region(ndns->dev.parent);
 145	const char *suffix = NULL;
 146
 147	if (ndns->claim && is_nd_btt(ndns->claim))
 148		suffix = "s";
 149
 150	if (is_namespace_pmem(&ndns->dev) || is_namespace_io(&ndns->dev)) {
 151		int nsidx = 0;
 152
 153		if (is_namespace_pmem(&ndns->dev)) {
 154			struct nd_namespace_pmem *nspm;
 155
 156			nspm = to_nd_namespace_pmem(&ndns->dev);
 157			nsidx = nspm->id;
 158		}
 159
 160		if (nsidx)
 161			sprintf(name, "pmem%d.%d%s", nd_region->id, nsidx,
 162					suffix ? suffix : "");
 163		else
 164			sprintf(name, "pmem%d%s", nd_region->id,
 165					suffix ? suffix : "");
 
 
 
 
 
 
 166	} else {
 167		return NULL;
 168	}
 169
 170	return name;
 171}
 172EXPORT_SYMBOL(nvdimm_namespace_disk_name);
 173
 174const uuid_t *nd_dev_to_uuid(struct device *dev)
 175{
 176	if (dev && is_namespace_pmem(dev)) {
 
 
 
 
 
 177		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 178
 179		return nspm->uuid;
 180	}
 181	return &uuid_null;
 
 
 
 
 182}
 183EXPORT_SYMBOL(nd_dev_to_uuid);
 184
 185static ssize_t nstype_show(struct device *dev,
 186		struct device_attribute *attr, char *buf)
 187{
 188	struct nd_region *nd_region = to_nd_region(dev->parent);
 189
 190	return sprintf(buf, "%d\n", nd_region_to_nstype(nd_region));
 191}
 192static DEVICE_ATTR_RO(nstype);
 193
 194static ssize_t __alt_name_store(struct device *dev, const char *buf,
 195		const size_t len)
 196{
 197	char *input, *pos, *alt_name, **ns_altname;
 198	ssize_t rc;
 199
 200	if (is_namespace_pmem(dev)) {
 201		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 202
 203		ns_altname = &nspm->alt_name;
 
 
 
 
 204	} else
 205		return -ENXIO;
 206
 207	if (dev->driver || to_ndns(dev)->claim)
 208		return -EBUSY;
 209
 210	input = kstrndup(buf, len, GFP_KERNEL);
 211	if (!input)
 212		return -ENOMEM;
 213
 
 214	pos = strim(input);
 215	if (strlen(pos) + 1 > NSLABEL_NAME_LEN) {
 216		rc = -EINVAL;
 217		goto out;
 218	}
 219
 220	alt_name = kzalloc(NSLABEL_NAME_LEN, GFP_KERNEL);
 221	if (!alt_name) {
 222		rc = -ENOMEM;
 223		goto out;
 224	}
 225	kfree(*ns_altname);
 226	*ns_altname = alt_name;
 227	sprintf(*ns_altname, "%s", pos);
 228	rc = len;
 229
 230out:
 231	kfree(input);
 232	return rc;
 233}
 234
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 235static int nd_namespace_label_update(struct nd_region *nd_region,
 236		struct device *dev)
 237{
 238	dev_WARN_ONCE(dev, dev->driver || to_ndns(dev)->claim,
 239			"namespace must be idle during label update\n");
 240	if (dev->driver || to_ndns(dev)->claim)
 241		return 0;
 242
 243	/*
 244	 * Only allow label writes that will result in a valid namespace
 245	 * or deletion of an existing namespace.
 246	 */
 247	if (is_namespace_pmem(dev)) {
 248		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 249		resource_size_t size = resource_size(&nspm->nsio.res);
 250
 251		if (size == 0 && nspm->uuid)
 252			/* delete allocation */;
 253		else if (!nspm->uuid)
 254			return 0;
 255
 256		return nd_pmem_namespace_label_update(nd_region, nspm, size);
 
 
 
 
 
 
 
 
 
 
 257	} else
 258		return -ENXIO;
 259}
 260
 261static ssize_t alt_name_store(struct device *dev,
 262		struct device_attribute *attr, const char *buf, size_t len)
 263{
 264	struct nd_region *nd_region = to_nd_region(dev->parent);
 265	ssize_t rc;
 266
 267	device_lock(dev);
 268	nvdimm_bus_lock(dev);
 269	wait_nvdimm_bus_probe_idle(dev);
 270	rc = __alt_name_store(dev, buf, len);
 271	if (rc >= 0)
 272		rc = nd_namespace_label_update(nd_region, dev);
 273	dev_dbg(dev, "%s(%zd)\n", rc < 0 ? "fail " : "", rc);
 274	nvdimm_bus_unlock(dev);
 275	device_unlock(dev);
 276
 277	return rc < 0 ? rc : len;
 278}
 279
 280static ssize_t alt_name_show(struct device *dev,
 281		struct device_attribute *attr, char *buf)
 282{
 283	char *ns_altname;
 284
 285	if (is_namespace_pmem(dev)) {
 286		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 287
 288		ns_altname = nspm->alt_name;
 
 
 
 
 289	} else
 290		return -ENXIO;
 291
 292	return sprintf(buf, "%s\n", ns_altname ? ns_altname : "");
 293}
 294static DEVICE_ATTR_RW(alt_name);
 295
 296static int scan_free(struct nd_region *nd_region,
 297		struct nd_mapping *nd_mapping, struct nd_label_id *label_id,
 298		resource_size_t n)
 299{
 
 300	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 301	int rc = 0;
 302
 303	while (n) {
 304		struct resource *res, *last;
 
 305
 306		last = NULL;
 307		for_each_dpa_resource(ndd, res)
 308			if (strcmp(res->name, label_id->id) == 0)
 309				last = res;
 310		res = last;
 311		if (!res)
 312			return 0;
 313
 314		if (n >= resource_size(res)) {
 315			n -= resource_size(res);
 316			nd_dbg_dpa(nd_region, ndd, res, "delete %d\n", rc);
 317			nvdimm_free_dpa(ndd, res);
 318			/* retry with last resource deleted */
 319			continue;
 320		}
 321
 322		rc = adjust_resource(res, res->start, resource_size(res) - n);
 
 
 
 
 
 
 
 
 
 323		if (rc == 0)
 324			res->flags |= DPA_RESOURCE_ADJUSTED;
 325		nd_dbg_dpa(nd_region, ndd, res, "shrink %d\n", rc);
 326		break;
 327	}
 328
 329	return rc;
 330}
 331
 332/**
 333 * shrink_dpa_allocation - for each dimm in region free n bytes for label_id
 334 * @nd_region: the set of dimms to reclaim @n bytes from
 335 * @label_id: unique identifier for the namespace consuming this dpa range
 336 * @n: number of bytes per-dimm to release
 337 *
 338 * Assumes resources are ordered.  Starting from the end try to
 339 * adjust_resource() the allocation to @n, but if @n is larger than the
 340 * allocation delete it and find the 'new' last allocation in the label
 341 * set.
 342 *
 343 * Returns: %0 on success on -errno on error
 344 */
 345static int shrink_dpa_allocation(struct nd_region *nd_region,
 346		struct nd_label_id *label_id, resource_size_t n)
 347{
 348	int i;
 349
 350	for (i = 0; i < nd_region->ndr_mappings; i++) {
 351		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
 352		int rc;
 353
 354		rc = scan_free(nd_region, nd_mapping, label_id, n);
 355		if (rc)
 356			return rc;
 357	}
 358
 359	return 0;
 360}
 361
 362static resource_size_t init_dpa_allocation(struct nd_label_id *label_id,
 363		struct nd_region *nd_region, struct nd_mapping *nd_mapping,
 364		resource_size_t n)
 365{
 
 366	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 
 367	struct resource *res;
 368	int rc = 0;
 369
 
 
 
 
 
 
 370	/* first resource allocation for this label-id or dimm */
 371	res = nvdimm_allocate_dpa(ndd, label_id, nd_mapping->start, n);
 372	if (!res)
 373		rc = -EBUSY;
 374
 375	nd_dbg_dpa(nd_region, ndd, res, "init %d\n", rc);
 376	return rc ? n : 0;
 377}
 378
 379
 380/**
 381 * space_valid() - validate free dpa space against constraints
 382 * @nd_region: hosting region of the free space
 383 * @ndd: dimm device data for debug
 384 * @label_id: namespace id to allocate space
 385 * @prev: potential allocation that precedes free space
 386 * @next: allocation that follows the given free space range
 387 * @exist: first allocation with same id in the mapping
 388 * @n: range that must satisfied for pmem allocations
 389 * @valid: free space range to validate
 390 *
 391 * BLK-space is valid as long as it does not precede a PMEM
 392 * allocation in a given region. PMEM-space must be contiguous
 393 * and adjacent to an existing allocation (if one
 394 * exists).  If reserving PMEM any space is valid.
 395 */
 396static void space_valid(struct nd_region *nd_region, struct nvdimm_drvdata *ndd,
 397		struct nd_label_id *label_id, struct resource *prev,
 398		struct resource *next, struct resource *exist,
 399		resource_size_t n, struct resource *valid)
 400{
 401	bool is_reserve = strcmp(label_id->id, "pmem-reserve") == 0;
 402	unsigned long align;
 403
 404	align = nd_region->align / nd_region->ndr_mappings;
 405	valid->start = ALIGN(valid->start, align);
 406	valid->end = ALIGN_DOWN(valid->end + 1, align) - 1;
 407
 408	if (valid->start >= valid->end)
 409		goto invalid;
 410
 411	if (is_reserve)
 412		return;
 413
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 414	/* allocation needs to be contiguous, so this is all or nothing */
 415	if (resource_size(valid) < n)
 416		goto invalid;
 417
 418	/* we've got all the space we need and no existing allocation */
 419	if (!exist)
 420		return;
 421
 422	/* allocation needs to be contiguous with the existing namespace */
 423	if (valid->start == exist->end + 1
 424			|| valid->end == exist->start - 1)
 425		return;
 426
 427 invalid:
 428	/* truncate @valid size to 0 */
 429	valid->end = valid->start - 1;
 430}
 431
 432enum alloc_loc {
 433	ALLOC_ERR = 0, ALLOC_BEFORE, ALLOC_MID, ALLOC_AFTER,
 434};
 435
 436static resource_size_t scan_allocate(struct nd_region *nd_region,
 437		struct nd_mapping *nd_mapping, struct nd_label_id *label_id,
 438		resource_size_t n)
 439{
 440	resource_size_t mapping_end = nd_mapping->start + nd_mapping->size - 1;
 
 441	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 442	struct resource *res, *exist = NULL, valid;
 443	const resource_size_t to_allocate = n;
 444	int first;
 445
 446	for_each_dpa_resource(ndd, res)
 447		if (strcmp(label_id->id, res->name) == 0)
 448			exist = res;
 449
 450	valid.start = nd_mapping->start;
 451	valid.end = mapping_end;
 452	valid.name = "free space";
 453 retry:
 454	first = 0;
 455	for_each_dpa_resource(ndd, res) {
 456		struct resource *next = res->sibling, *new_res = NULL;
 457		resource_size_t allocate, available = 0;
 458		enum alloc_loc loc = ALLOC_ERR;
 459		const char *action;
 460		int rc = 0;
 461
 462		/* ignore resources outside this nd_mapping */
 463		if (res->start > mapping_end)
 464			continue;
 465		if (res->end < nd_mapping->start)
 466			continue;
 467
 468		/* space at the beginning of the mapping */
 469		if (!first++ && res->start > nd_mapping->start) {
 470			valid.start = nd_mapping->start;
 471			valid.end = res->start - 1;
 472			space_valid(nd_region, ndd, label_id, NULL, next, exist,
 473					to_allocate, &valid);
 474			available = resource_size(&valid);
 475			if (available)
 476				loc = ALLOC_BEFORE;
 477		}
 478
 479		/* space between allocations */
 480		if (!loc && next) {
 481			valid.start = res->start + resource_size(res);
 482			valid.end = min(mapping_end, next->start - 1);
 483			space_valid(nd_region, ndd, label_id, res, next, exist,
 484					to_allocate, &valid);
 485			available = resource_size(&valid);
 486			if (available)
 487				loc = ALLOC_MID;
 488		}
 489
 490		/* space at the end of the mapping */
 491		if (!loc && !next) {
 492			valid.start = res->start + resource_size(res);
 493			valid.end = mapping_end;
 494			space_valid(nd_region, ndd, label_id, res, next, exist,
 495					to_allocate, &valid);
 496			available = resource_size(&valid);
 497			if (available)
 498				loc = ALLOC_AFTER;
 499		}
 500
 501		if (!loc || !available)
 502			continue;
 503		allocate = min(available, n);
 504		switch (loc) {
 505		case ALLOC_BEFORE:
 506			if (strcmp(res->name, label_id->id) == 0) {
 507				/* adjust current resource up */
 508				rc = adjust_resource(res, res->start - allocate,
 509						resource_size(res) + allocate);
 510				action = "cur grow up";
 511			} else
 512				action = "allocate";
 513			break;
 514		case ALLOC_MID:
 515			if (strcmp(next->name, label_id->id) == 0) {
 516				/* adjust next resource up */
 517				rc = adjust_resource(next, next->start
 518						- allocate, resource_size(next)
 519						+ allocate);
 520				new_res = next;
 521				action = "next grow up";
 522			} else if (strcmp(res->name, label_id->id) == 0) {
 523				action = "grow down";
 524			} else
 525				action = "allocate";
 526			break;
 527		case ALLOC_AFTER:
 528			if (strcmp(res->name, label_id->id) == 0)
 529				action = "grow down";
 530			else
 531				action = "allocate";
 532			break;
 533		default:
 534			return n;
 535		}
 536
 537		if (strcmp(action, "allocate") == 0) {
 
 
 
 
 538			new_res = nvdimm_allocate_dpa(ndd, label_id,
 539					valid.start, allocate);
 540			if (!new_res)
 541				rc = -EBUSY;
 542		} else if (strcmp(action, "grow down") == 0) {
 543			/* adjust current resource down */
 544			rc = adjust_resource(res, res->start, resource_size(res)
 545					+ allocate);
 546			if (rc == 0)
 547				res->flags |= DPA_RESOURCE_ADJUSTED;
 548		}
 549
 550		if (!new_res)
 551			new_res = res;
 552
 553		nd_dbg_dpa(nd_region, ndd, new_res, "%s(%d) %d\n",
 554				action, loc, rc);
 555
 556		if (rc)
 557			return n;
 558
 559		n -= allocate;
 560		if (n) {
 561			/*
 562			 * Retry scan with newly inserted resources.
 563			 * For example, if we did an ALLOC_BEFORE
 564			 * insertion there may also have been space
 565			 * available for an ALLOC_AFTER insertion, so we
 566			 * need to check this same resource again
 567			 */
 568			goto retry;
 569		} else
 570			return 0;
 571	}
 572
 573	if (n == to_allocate)
 
 
 
 
 
 574		return init_dpa_allocation(label_id, nd_region, nd_mapping, n);
 575	return n;
 576}
 577
 578static int merge_dpa(struct nd_region *nd_region,
 579		struct nd_mapping *nd_mapping, struct nd_label_id *label_id)
 580{
 581	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 582	struct resource *res;
 583
 584	if (strncmp("pmem", label_id->id, 4) == 0)
 585		return 0;
 586 retry:
 587	for_each_dpa_resource(ndd, res) {
 588		int rc;
 589		struct resource *next = res->sibling;
 590		resource_size_t end = res->start + resource_size(res);
 591
 592		if (!next || strcmp(res->name, label_id->id) != 0
 593				|| strcmp(next->name, label_id->id) != 0
 594				|| end != next->start)
 595			continue;
 596		end += resource_size(next);
 597		nvdimm_free_dpa(ndd, next);
 598		rc = adjust_resource(res, res->start, end - res->start);
 599		nd_dbg_dpa(nd_region, ndd, res, "merge %d\n", rc);
 600		if (rc)
 601			return rc;
 602		res->flags |= DPA_RESOURCE_ADJUSTED;
 603		goto retry;
 604	}
 605
 606	return 0;
 607}
 608
 609int __reserve_free_pmem(struct device *dev, void *data)
 610{
 611	struct nvdimm *nvdimm = data;
 612	struct nd_region *nd_region;
 613	struct nd_label_id label_id;
 614	int i;
 615
 616	if (!is_memory(dev))
 617		return 0;
 618
 619	nd_region = to_nd_region(dev);
 620	if (nd_region->ndr_mappings == 0)
 621		return 0;
 622
 623	memset(&label_id, 0, sizeof(label_id));
 624	strcat(label_id.id, "pmem-reserve");
 625	for (i = 0; i < nd_region->ndr_mappings; i++) {
 626		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
 627		resource_size_t n, rem = 0;
 628
 629		if (nd_mapping->nvdimm != nvdimm)
 630			continue;
 631
 632		n = nd_pmem_available_dpa(nd_region, nd_mapping);
 633		if (n == 0)
 634			return 0;
 635		rem = scan_allocate(nd_region, nd_mapping, &label_id, n);
 636		dev_WARN_ONCE(&nd_region->dev, rem,
 637				"pmem reserve underrun: %#llx of %#llx bytes\n",
 638				(unsigned long long) n - rem,
 639				(unsigned long long) n);
 640		return rem ? -ENXIO : 0;
 641	}
 642
 643	return 0;
 644}
 645
 646void release_free_pmem(struct nvdimm_bus *nvdimm_bus,
 647		struct nd_mapping *nd_mapping)
 648{
 649	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 650	struct resource *res, *_res;
 651
 652	for_each_dpa_resource_safe(ndd, res, _res)
 653		if (strcmp(res->name, "pmem-reserve") == 0)
 654			nvdimm_free_dpa(ndd, res);
 655}
 656
 
 
 
 
 
 
 
 
 
 
 
 
 
 657/**
 658 * grow_dpa_allocation - for each dimm allocate n bytes for @label_id
 659 * @nd_region: the set of dimms to allocate @n more bytes from
 660 * @label_id: unique identifier for the namespace consuming this dpa range
 661 * @n: number of bytes per-dimm to add to the existing allocation
 662 *
 663 * Assumes resources are ordered.  For BLK regions, first consume
 664 * BLK-only available DPA free space, then consume PMEM-aliased DPA
 665 * space starting at the highest DPA.  For PMEM regions start
 666 * allocations from the start of an interleave set and end at the first
 667 * BLK allocation or the end of the interleave set, whichever comes
 668 * first.
 669 *
 670 * Returns: %0 on success on -errno on error
 671 */
 672static int grow_dpa_allocation(struct nd_region *nd_region,
 673		struct nd_label_id *label_id, resource_size_t n)
 674{
 
 
 675	int i;
 676
 677	for (i = 0; i < nd_region->ndr_mappings; i++) {
 678		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
 679		resource_size_t rem = n;
 680		int rc;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 681
 682		rem = scan_allocate(nd_region, nd_mapping, label_id, rem);
 683		dev_WARN_ONCE(&nd_region->dev, rem,
 684				"allocation underrun: %#llx of %#llx bytes\n",
 685				(unsigned long long) n - rem,
 686				(unsigned long long) n);
 687		if (rem)
 688			return -ENXIO;
 689
 690		rc = merge_dpa(nd_region, nd_mapping, label_id);
 691		if (rc)
 692			return rc;
 693	}
 694
 695	return 0;
 696}
 697
 698static void nd_namespace_pmem_set_resource(struct nd_region *nd_region,
 699		struct nd_namespace_pmem *nspm, resource_size_t size)
 700{
 701	struct resource *res = &nspm->nsio.res;
 702	resource_size_t offset = 0;
 703
 704	if (size && !nspm->uuid) {
 705		WARN_ON_ONCE(1);
 706		size = 0;
 707	}
 708
 709	if (size && nspm->uuid) {
 710		struct nd_mapping *nd_mapping = &nd_region->mapping[0];
 711		struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 712		struct nd_label_id label_id;
 713		struct resource *res;
 714
 715		if (!ndd) {
 716			size = 0;
 717			goto out;
 718		}
 719
 720		nd_label_gen_id(&label_id, nspm->uuid, 0);
 721
 722		/* calculate a spa offset from the dpa allocation offset */
 723		for_each_dpa_resource(ndd, res)
 724			if (strcmp(res->name, label_id.id) == 0) {
 725				offset = (res->start - nd_mapping->start)
 726					* nd_region->ndr_mappings;
 727				goto out;
 728			}
 729
 730		WARN_ON_ONCE(1);
 731		size = 0;
 732	}
 733
 734 out:
 735	res->start = nd_region->ndr_start + offset;
 736	res->end = res->start + size - 1;
 737}
 738
 739static bool uuid_not_set(const uuid_t *uuid, struct device *dev,
 740			 const char *where)
 741{
 742	if (!uuid) {
 743		dev_dbg(dev, "%s: uuid not set\n", where);
 744		return true;
 745	}
 746	return false;
 747}
 748
 749static ssize_t __size_store(struct device *dev, unsigned long long val)
 750{
 751	resource_size_t allocated = 0, available = 0;
 752	struct nd_region *nd_region = to_nd_region(dev->parent);
 753	struct nd_namespace_common *ndns = to_ndns(dev);
 754	struct nd_mapping *nd_mapping;
 755	struct nvdimm_drvdata *ndd;
 756	struct nd_label_id label_id;
 757	u32 flags = 0, remainder;
 758	int rc, i, id = -1;
 759	uuid_t *uuid = NULL;
 760
 761	if (dev->driver || ndns->claim)
 762		return -EBUSY;
 763
 764	if (is_namespace_pmem(dev)) {
 765		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 766
 767		uuid = nspm->uuid;
 768		id = nspm->id;
 
 
 
 
 
 
 769	}
 770
 771	/*
 772	 * We need a uuid for the allocation-label and dimm(s) on which
 773	 * to store the label.
 774	 */
 775	if (uuid_not_set(uuid, dev, __func__))
 776		return -ENXIO;
 777	if (nd_region->ndr_mappings == 0) {
 778		dev_dbg(dev, "not associated with dimm(s)\n");
 779		return -ENXIO;
 780	}
 781
 782	div_u64_rem(val, nd_region->align, &remainder);
 783	if (remainder) {
 784		dev_dbg(dev, "%llu is not %ldK aligned\n", val,
 785				nd_region->align / SZ_1K);
 786		return -EINVAL;
 787	}
 788
 789	nd_label_gen_id(&label_id, uuid, flags);
 790	for (i = 0; i < nd_region->ndr_mappings; i++) {
 791		nd_mapping = &nd_region->mapping[i];
 792		ndd = to_ndd(nd_mapping);
 793
 794		/*
 795		 * All dimms in an interleave set, need to be enabled
 796		 * for the size to be changed.
 797		 */
 798		if (!ndd)
 799			return -ENXIO;
 800
 801		allocated += nvdimm_allocated_dpa(ndd, &label_id);
 802	}
 803	available = nd_region_allocatable_dpa(nd_region);
 804
 805	if (val > available + allocated)
 806		return -ENOSPC;
 807
 808	if (val == allocated)
 809		return 0;
 810
 811	val = div_u64(val, nd_region->ndr_mappings);
 812	allocated = div_u64(allocated, nd_region->ndr_mappings);
 813	if (val < allocated)
 814		rc = shrink_dpa_allocation(nd_region, &label_id,
 815				allocated - val);
 816	else
 817		rc = grow_dpa_allocation(nd_region, &label_id, val - allocated);
 818
 819	if (rc)
 820		return rc;
 821
 822	if (is_namespace_pmem(dev)) {
 823		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 824
 825		nd_namespace_pmem_set_resource(nd_region, nspm,
 826				val * nd_region->ndr_mappings);
 827	}
 828
 829	/*
 830	 * Try to delete the namespace if we deleted all of its
 831	 * allocation, this is not the seed or 0th device for the
 832	 * region, and it is not actively claimed by a btt, pfn, or dax
 833	 * instance.
 834	 */
 835	if (val == 0 && id != 0 && nd_region->ns_seed != dev && !ndns->claim)
 836		nd_device_unregister(dev, ND_ASYNC);
 837
 838	return rc;
 839}
 840
 841static ssize_t size_store(struct device *dev,
 842		struct device_attribute *attr, const char *buf, size_t len)
 843{
 844	struct nd_region *nd_region = to_nd_region(dev->parent);
 845	unsigned long long val;
 
 846	int rc;
 847
 848	rc = kstrtoull(buf, 0, &val);
 849	if (rc)
 850		return rc;
 851
 852	device_lock(dev);
 853	nvdimm_bus_lock(dev);
 854	wait_nvdimm_bus_probe_idle(dev);
 855	rc = __size_store(dev, val);
 856	if (rc >= 0)
 857		rc = nd_namespace_label_update(nd_region, dev);
 858
 859	/* setting size zero == 'delete namespace' */
 860	if (rc == 0 && val == 0 && is_namespace_pmem(dev)) {
 861		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 862
 863		kfree(nspm->uuid);
 864		nspm->uuid = NULL;
 
 
 
 
 
 
 
 
 
 865	}
 866
 867	dev_dbg(dev, "%llx %s (%d)\n", val, rc < 0 ? "fail" : "success", rc);
 
 868
 869	nvdimm_bus_unlock(dev);
 870	device_unlock(dev);
 871
 872	return rc < 0 ? rc : len;
 873}
 874
 875resource_size_t __nvdimm_namespace_capacity(struct nd_namespace_common *ndns)
 876{
 877	struct device *dev = &ndns->dev;
 878
 879	if (is_namespace_pmem(dev)) {
 880		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 881
 882		return resource_size(&nspm->nsio.res);
 
 
 883	} else if (is_namespace_io(dev)) {
 884		struct nd_namespace_io *nsio = to_nd_namespace_io(dev);
 885
 886		return resource_size(&nsio->res);
 887	} else
 888		WARN_ONCE(1, "unknown namespace type\n");
 889	return 0;
 890}
 891
 892resource_size_t nvdimm_namespace_capacity(struct nd_namespace_common *ndns)
 893{
 894	resource_size_t size;
 895
 896	nvdimm_bus_lock(&ndns->dev);
 897	size = __nvdimm_namespace_capacity(ndns);
 898	nvdimm_bus_unlock(&ndns->dev);
 899
 900	return size;
 901}
 902EXPORT_SYMBOL(nvdimm_namespace_capacity);
 903
 904bool nvdimm_namespace_locked(struct nd_namespace_common *ndns)
 905{
 906	int i;
 907	bool locked = false;
 908	struct device *dev = &ndns->dev;
 909	struct nd_region *nd_region = to_nd_region(dev->parent);
 910
 911	for (i = 0; i < nd_region->ndr_mappings; i++) {
 912		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
 913		struct nvdimm *nvdimm = nd_mapping->nvdimm;
 914
 915		if (test_bit(NDD_LOCKED, &nvdimm->flags)) {
 916			dev_dbg(dev, "%s locked\n", nvdimm_name(nvdimm));
 917			locked = true;
 918		}
 919	}
 920	return locked;
 921}
 922EXPORT_SYMBOL(nvdimm_namespace_locked);
 923
 924static ssize_t size_show(struct device *dev,
 925		struct device_attribute *attr, char *buf)
 926{
 927	return sprintf(buf, "%llu\n", (unsigned long long)
 928			nvdimm_namespace_capacity(to_ndns(dev)));
 929}
 930static DEVICE_ATTR(size, 0444, size_show, size_store);
 931
 932static uuid_t *namespace_to_uuid(struct device *dev)
 933{
 934	if (is_namespace_pmem(dev)) {
 935		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 936
 937		return nspm->uuid;
 938	}
 939	return ERR_PTR(-ENXIO);
 
 
 
 
 940}
 941
 942static ssize_t uuid_show(struct device *dev, struct device_attribute *attr,
 943			 char *buf)
 944{
 945	uuid_t *uuid = namespace_to_uuid(dev);
 946
 947	if (IS_ERR(uuid))
 948		return PTR_ERR(uuid);
 949	if (uuid)
 950		return sprintf(buf, "%pUb\n", uuid);
 951	return sprintf(buf, "\n");
 952}
 953
 954/**
 955 * namespace_update_uuid - check for a unique uuid and whether we're "renaming"
 956 * @nd_region: parent region so we can updates all dimms in the set
 957 * @dev: namespace type for generating label_id
 958 * @new_uuid: incoming uuid
 959 * @old_uuid: reference to the uuid storage location in the namespace object
 960 *
 961 * Returns: %0 on success on -errno on error
 962 */
 963static int namespace_update_uuid(struct nd_region *nd_region,
 964				 struct device *dev, uuid_t *new_uuid,
 965				 uuid_t **old_uuid)
 966{
 
 967	struct nd_label_id old_label_id;
 968	struct nd_label_id new_label_id;
 969	int i;
 970
 971	if (!nd_is_uuid_unique(dev, new_uuid))
 972		return -EINVAL;
 973
 974	if (*old_uuid == NULL)
 975		goto out;
 976
 977	/*
 978	 * If we've already written a label with this uuid, then it's
 979	 * too late to rename because we can't reliably update the uuid
 980	 * without losing the old namespace.  Userspace must delete this
 981	 * namespace to abandon the old uuid.
 982	 */
 983	for (i = 0; i < nd_region->ndr_mappings; i++) {
 984		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
 985
 986		/*
 987		 * This check by itself is sufficient because old_uuid
 988		 * would be NULL above if this uuid did not exist in the
 989		 * currently written set.
 990		 *
 991		 * FIXME: can we delete uuid with zero dpa allocated?
 992		 */
 993		if (list_empty(&nd_mapping->labels))
 994			return -EBUSY;
 995	}
 996
 997	nd_label_gen_id(&old_label_id, *old_uuid, 0);
 998	nd_label_gen_id(&new_label_id, new_uuid, 0);
 999	for (i = 0; i < nd_region->ndr_mappings; i++) {
1000		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
1001		struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
1002		struct nd_label_ent *label_ent;
1003		struct resource *res;
1004
1005		for_each_dpa_resource(ndd, res)
1006			if (strcmp(res->name, old_label_id.id) == 0)
1007				sprintf((void *) res->name, "%s",
1008						new_label_id.id);
1009
1010		mutex_lock(&nd_mapping->lock);
1011		list_for_each_entry(label_ent, &nd_mapping->labels, list) {
1012			struct nd_namespace_label *nd_label = label_ent->label;
1013			struct nd_label_id label_id;
1014			uuid_t uuid;
1015
1016			if (!nd_label)
1017				continue;
1018			nsl_get_uuid(ndd, nd_label, &uuid);
1019			nd_label_gen_id(&label_id, &uuid,
1020					nsl_get_flags(ndd, nd_label));
1021			if (strcmp(old_label_id.id, label_id.id) == 0)
1022				set_bit(ND_LABEL_REAP, &label_ent->flags);
1023		}
1024		mutex_unlock(&nd_mapping->lock);
1025	}
1026	kfree(*old_uuid);
1027 out:
1028	*old_uuid = new_uuid;
1029	return 0;
1030}
1031
1032static ssize_t uuid_store(struct device *dev,
1033		struct device_attribute *attr, const char *buf, size_t len)
1034{
1035	struct nd_region *nd_region = to_nd_region(dev->parent);
1036	uuid_t *uuid = NULL;
1037	uuid_t **ns_uuid;
1038	ssize_t rc = 0;
 
1039
1040	if (is_namespace_pmem(dev)) {
1041		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
1042
1043		ns_uuid = &nspm->uuid;
 
 
 
 
1044	} else
1045		return -ENXIO;
1046
1047	device_lock(dev);
1048	nvdimm_bus_lock(dev);
1049	wait_nvdimm_bus_probe_idle(dev);
1050	if (to_ndns(dev)->claim)
1051		rc = -EBUSY;
1052	if (rc >= 0)
1053		rc = nd_uuid_store(dev, &uuid, buf, len);
1054	if (rc >= 0)
1055		rc = namespace_update_uuid(nd_region, dev, uuid, ns_uuid);
1056	if (rc >= 0)
1057		rc = nd_namespace_label_update(nd_region, dev);
1058	else
1059		kfree(uuid);
1060	dev_dbg(dev, "result: %zd wrote: %s%s", rc, buf,
1061			buf[len - 1] == '\n' ? "" : "\n");
1062	nvdimm_bus_unlock(dev);
1063	device_unlock(dev);
1064
1065	return rc < 0 ? rc : len;
1066}
1067static DEVICE_ATTR_RW(uuid);
1068
1069static ssize_t resource_show(struct device *dev,
1070		struct device_attribute *attr, char *buf)
1071{
1072	struct resource *res;
1073
1074	if (is_namespace_pmem(dev)) {
1075		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
1076
1077		res = &nspm->nsio.res;
1078	} else if (is_namespace_io(dev)) {
1079		struct nd_namespace_io *nsio = to_nd_namespace_io(dev);
1080
1081		res = &nsio->res;
1082	} else
1083		return -ENXIO;
1084
1085	/* no address to convey if the namespace has no allocation */
1086	if (resource_size(res) == 0)
1087		return -ENXIO;
1088	return sprintf(buf, "%#llx\n", (unsigned long long) res->start);
1089}
1090static DEVICE_ATTR_ADMIN_RO(resource);
1091
1092static const unsigned long pmem_lbasize_supported[] = { 512, 4096, 0 };
 
1093
1094static ssize_t sector_size_show(struct device *dev,
1095		struct device_attribute *attr, char *buf)
1096{
1097	if (is_namespace_pmem(dev)) {
1098		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
1099
1100		return nd_size_select_show(nspm->lbasize,
1101				pmem_lbasize_supported, buf);
1102	}
1103	return -ENXIO;
1104}
1105
1106static ssize_t sector_size_store(struct device *dev,
1107		struct device_attribute *attr, const char *buf, size_t len)
1108{
 
1109	struct nd_region *nd_region = to_nd_region(dev->parent);
1110	const unsigned long *supported;
1111	unsigned long *lbasize;
1112	ssize_t rc = 0;
1113
1114	if (is_namespace_pmem(dev)) {
1115		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
1116
1117		lbasize = &nspm->lbasize;
1118		supported = pmem_lbasize_supported;
1119	} else
1120		return -ENXIO;
1121
1122	device_lock(dev);
1123	nvdimm_bus_lock(dev);
1124	if (to_ndns(dev)->claim)
1125		rc = -EBUSY;
1126	if (rc >= 0)
1127		rc = nd_size_select_store(dev, buf, lbasize, supported);
 
1128	if (rc >= 0)
1129		rc = nd_namespace_label_update(nd_region, dev);
1130	dev_dbg(dev, "result: %zd %s: %s%s", rc, rc < 0 ? "tried" : "wrote",
1131			buf, buf[len - 1] == '\n' ? "" : "\n");
 
1132	nvdimm_bus_unlock(dev);
1133	device_unlock(dev);
1134
1135	return rc ? rc : len;
1136}
1137static DEVICE_ATTR_RW(sector_size);
1138
1139static ssize_t dpa_extents_show(struct device *dev,
1140		struct device_attribute *attr, char *buf)
1141{
1142	struct nd_region *nd_region = to_nd_region(dev->parent);
1143	struct nd_label_id label_id;
1144	uuid_t *uuid = NULL;
1145	int count = 0, i;
 
1146	u32 flags = 0;
1147
1148	nvdimm_bus_lock(dev);
1149	if (is_namespace_pmem(dev)) {
1150		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
1151
1152		uuid = nspm->uuid;
1153		flags = 0;
 
 
 
 
 
1154	}
1155
1156	if (!uuid)
1157		goto out;
1158
1159	nd_label_gen_id(&label_id, uuid, flags);
1160	for (i = 0; i < nd_region->ndr_mappings; i++) {
1161		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
1162		struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
1163		struct resource *res;
1164
1165		for_each_dpa_resource(ndd, res)
1166			if (strcmp(res->name, label_id.id) == 0)
1167				count++;
1168	}
1169 out:
1170	nvdimm_bus_unlock(dev);
1171
1172	return sprintf(buf, "%d\n", count);
1173}
1174static DEVICE_ATTR_RO(dpa_extents);
1175
1176static int btt_claim_class(struct device *dev)
1177{
1178	struct nd_region *nd_region = to_nd_region(dev->parent);
1179	int i, loop_bitmask = 0;
1180
1181	for (i = 0; i < nd_region->ndr_mappings; i++) {
1182		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
1183		struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
1184		struct nd_namespace_index *nsindex;
1185
1186		/*
1187		 * If any of the DIMMs do not support labels the only
1188		 * possible BTT format is v1.
1189		 */
1190		if (!ndd) {
1191			loop_bitmask = 0;
1192			break;
1193		}
1194
1195		nsindex = to_namespace_index(ndd, ndd->ns_current);
1196		if (nsindex == NULL)
1197			loop_bitmask |= 1;
1198		else {
1199			/* check whether existing labels are v1.1 or v1.2 */
1200			if (__le16_to_cpu(nsindex->major) == 1
1201					&& __le16_to_cpu(nsindex->minor) == 1)
1202				loop_bitmask |= 2;
1203			else
1204				loop_bitmask |= 4;
1205		}
1206	}
1207	/*
1208	 * If nsindex is null loop_bitmask's bit 0 will be set, and if an index
1209	 * block is found, a v1.1 label for any mapping will set bit 1, and a
1210	 * v1.2 label will set bit 2.
1211	 *
1212	 * At the end of the loop, at most one of the three bits must be set.
1213	 * If multiple bits were set, it means the different mappings disagree
1214	 * about their labels, and this must be cleaned up first.
1215	 *
1216	 * If all the label index blocks are found to agree, nsindex of NULL
1217	 * implies labels haven't been initialized yet, and when they will,
1218	 * they will be of the 1.2 format, so we can assume BTT2.0
1219	 *
1220	 * If 1.1 labels are found, we enforce BTT1.1, and if 1.2 labels are
1221	 * found, we enforce BTT2.0
1222	 *
1223	 * If the loop was never entered, default to BTT1.1 (legacy namespaces)
1224	 */
1225	switch (loop_bitmask) {
1226	case 0:
1227	case 2:
1228		return NVDIMM_CCLASS_BTT;
1229	case 1:
1230	case 4:
1231		return NVDIMM_CCLASS_BTT2;
1232	default:
1233		return -ENXIO;
1234	}
1235}
1236
1237static ssize_t holder_show(struct device *dev,
1238		struct device_attribute *attr, char *buf)
1239{
1240	struct nd_namespace_common *ndns = to_ndns(dev);
1241	ssize_t rc;
1242
1243	device_lock(dev);
1244	rc = sprintf(buf, "%s\n", ndns->claim ? dev_name(ndns->claim) : "");
1245	device_unlock(dev);
1246
1247	return rc;
1248}
1249static DEVICE_ATTR_RO(holder);
1250
1251static int __holder_class_store(struct device *dev, const char *buf)
1252{
1253	struct nd_namespace_common *ndns = to_ndns(dev);
1254
1255	if (dev->driver || ndns->claim)
1256		return -EBUSY;
1257
1258	if (sysfs_streq(buf, "btt")) {
1259		int rc = btt_claim_class(dev);
1260
1261		if (rc < NVDIMM_CCLASS_NONE)
1262			return rc;
1263		ndns->claim_class = rc;
1264	} else if (sysfs_streq(buf, "pfn"))
1265		ndns->claim_class = NVDIMM_CCLASS_PFN;
1266	else if (sysfs_streq(buf, "dax"))
1267		ndns->claim_class = NVDIMM_CCLASS_DAX;
1268	else if (sysfs_streq(buf, ""))
1269		ndns->claim_class = NVDIMM_CCLASS_NONE;
1270	else
1271		return -EINVAL;
1272
1273	return 0;
1274}
1275
1276static ssize_t holder_class_store(struct device *dev,
1277		struct device_attribute *attr, const char *buf, size_t len)
1278{
1279	struct nd_region *nd_region = to_nd_region(dev->parent);
1280	int rc;
1281
1282	device_lock(dev);
1283	nvdimm_bus_lock(dev);
1284	wait_nvdimm_bus_probe_idle(dev);
1285	rc = __holder_class_store(dev, buf);
1286	if (rc >= 0)
1287		rc = nd_namespace_label_update(nd_region, dev);
1288	dev_dbg(dev, "%s(%d)\n", rc < 0 ? "fail " : "", rc);
1289	nvdimm_bus_unlock(dev);
1290	device_unlock(dev);
1291
1292	return rc < 0 ? rc : len;
1293}
1294
1295static ssize_t holder_class_show(struct device *dev,
1296		struct device_attribute *attr, char *buf)
1297{
1298	struct nd_namespace_common *ndns = to_ndns(dev);
1299	ssize_t rc;
1300
1301	device_lock(dev);
1302	if (ndns->claim_class == NVDIMM_CCLASS_NONE)
1303		rc = sprintf(buf, "\n");
1304	else if ((ndns->claim_class == NVDIMM_CCLASS_BTT) ||
1305			(ndns->claim_class == NVDIMM_CCLASS_BTT2))
1306		rc = sprintf(buf, "btt\n");
1307	else if (ndns->claim_class == NVDIMM_CCLASS_PFN)
1308		rc = sprintf(buf, "pfn\n");
1309	else if (ndns->claim_class == NVDIMM_CCLASS_DAX)
1310		rc = sprintf(buf, "dax\n");
1311	else
1312		rc = sprintf(buf, "<unknown>\n");
1313	device_unlock(dev);
1314
1315	return rc;
1316}
1317static DEVICE_ATTR_RW(holder_class);
1318
1319static ssize_t mode_show(struct device *dev,
1320		struct device_attribute *attr, char *buf)
1321{
1322	struct nd_namespace_common *ndns = to_ndns(dev);
1323	struct device *claim;
1324	char *mode;
1325	ssize_t rc;
1326
1327	device_lock(dev);
1328	claim = ndns->claim;
1329	if (claim && is_nd_btt(claim))
1330		mode = "safe";
1331	else if (claim && is_nd_pfn(claim))
1332		mode = "memory";
1333	else if (claim && is_nd_dax(claim))
1334		mode = "dax";
1335	else if (!claim && pmem_should_map_pages(dev))
1336		mode = "memory";
1337	else
1338		mode = "raw";
1339	rc = sprintf(buf, "%s\n", mode);
1340	device_unlock(dev);
1341
1342	return rc;
1343}
1344static DEVICE_ATTR_RO(mode);
1345
1346static ssize_t force_raw_store(struct device *dev,
1347		struct device_attribute *attr, const char *buf, size_t len)
1348{
1349	bool force_raw;
1350	int rc = kstrtobool(buf, &force_raw);
1351
1352	if (rc)
1353		return rc;
1354
1355	to_ndns(dev)->force_raw = force_raw;
1356	return len;
1357}
1358
1359static ssize_t force_raw_show(struct device *dev,
1360		struct device_attribute *attr, char *buf)
1361{
1362	return sprintf(buf, "%d\n", to_ndns(dev)->force_raw);
1363}
1364static DEVICE_ATTR_RW(force_raw);
1365
1366static struct attribute *nd_namespace_attributes[] = {
1367	&dev_attr_nstype.attr,
1368	&dev_attr_size.attr,
1369	&dev_attr_mode.attr,
1370	&dev_attr_uuid.attr,
1371	&dev_attr_holder.attr,
1372	&dev_attr_resource.attr,
1373	&dev_attr_alt_name.attr,
1374	&dev_attr_force_raw.attr,
1375	&dev_attr_sector_size.attr,
1376	&dev_attr_dpa_extents.attr,
1377	&dev_attr_holder_class.attr,
1378	NULL,
1379};
1380
1381static umode_t namespace_visible(struct kobject *kobj,
1382		struct attribute *a, int n)
1383{
1384	struct device *dev = container_of(kobj, struct device, kobj);
1385
1386	if (is_namespace_pmem(dev)) {
 
 
 
 
 
 
1387		if (a == &dev_attr_size.attr)
1388			return 0644;
1389
 
 
 
1390		return a->mode;
1391	}
1392
1393	/* base is_namespace_io() attributes */
1394	if (a == &dev_attr_nstype.attr || a == &dev_attr_size.attr ||
1395	    a == &dev_attr_holder.attr || a == &dev_attr_holder_class.attr ||
1396	    a == &dev_attr_force_raw.attr || a == &dev_attr_mode.attr ||
1397	    a == &dev_attr_resource.attr)
1398		return a->mode;
1399
1400	return 0;
1401}
1402
1403static struct attribute_group nd_namespace_attribute_group = {
1404	.attrs = nd_namespace_attributes,
1405	.is_visible = namespace_visible,
1406};
1407
1408static const struct attribute_group *nd_namespace_attribute_groups[] = {
1409	&nd_device_attribute_group,
1410	&nd_namespace_attribute_group,
1411	&nd_numa_attribute_group,
1412	NULL,
1413};
1414
1415static const struct device_type namespace_io_device_type = {
1416	.name = "nd_namespace_io",
1417	.release = namespace_io_release,
1418	.groups = nd_namespace_attribute_groups,
1419};
1420
1421static const struct device_type namespace_pmem_device_type = {
1422	.name = "nd_namespace_pmem",
1423	.release = namespace_pmem_release,
1424	.groups = nd_namespace_attribute_groups,
1425};
1426
1427static bool is_namespace_pmem(const struct device *dev)
1428{
1429	return dev ? dev->type == &namespace_pmem_device_type : false;
1430}
1431
1432static bool is_namespace_io(const struct device *dev)
1433{
1434	return dev ? dev->type == &namespace_io_device_type : false;
1435}
1436
1437struct nd_namespace_common *nvdimm_namespace_common_probe(struct device *dev)
1438{
1439	struct nd_btt *nd_btt = is_nd_btt(dev) ? to_nd_btt(dev) : NULL;
1440	struct nd_pfn *nd_pfn = is_nd_pfn(dev) ? to_nd_pfn(dev) : NULL;
1441	struct nd_dax *nd_dax = is_nd_dax(dev) ? to_nd_dax(dev) : NULL;
1442	struct nd_namespace_common *ndns = NULL;
1443	resource_size_t size;
1444
1445	if (nd_btt || nd_pfn || nd_dax) {
1446		if (nd_btt)
1447			ndns = nd_btt->ndns;
1448		else if (nd_pfn)
1449			ndns = nd_pfn->ndns;
1450		else if (nd_dax)
1451			ndns = nd_dax->nd_pfn.ndns;
1452
1453		if (!ndns)
1454			return ERR_PTR(-ENODEV);
1455
1456		/*
1457		 * Flush any in-progess probes / removals in the driver
1458		 * for the raw personality of this namespace.
1459		 */
1460		device_lock(&ndns->dev);
1461		device_unlock(&ndns->dev);
1462		if (ndns->dev.driver) {
1463			dev_dbg(&ndns->dev, "is active, can't bind %s\n",
1464					dev_name(dev));
1465			return ERR_PTR(-EBUSY);
1466		}
1467		if (dev_WARN_ONCE(&ndns->dev, ndns->claim != dev,
1468					"host (%s) vs claim (%s) mismatch\n",
1469					dev_name(dev),
1470					dev_name(ndns->claim)))
1471			return ERR_PTR(-ENXIO);
1472	} else {
1473		ndns = to_ndns(dev);
1474		if (ndns->claim) {
1475			dev_dbg(dev, "claimed by %s, failing probe\n",
1476				dev_name(ndns->claim));
1477
1478			return ERR_PTR(-ENXIO);
1479		}
1480	}
1481
1482	if (nvdimm_namespace_locked(ndns))
1483		return ERR_PTR(-EACCES);
1484
1485	size = nvdimm_namespace_capacity(ndns);
1486	if (size < ND_MIN_NAMESPACE_SIZE) {
1487		dev_dbg(&ndns->dev, "%pa, too small must be at least %#x\n",
1488				&size, ND_MIN_NAMESPACE_SIZE);
1489		return ERR_PTR(-ENODEV);
1490	}
1491
1492	/*
1493	 * Note, alignment validation for fsdax and devdax mode
1494	 * namespaces happens in nd_pfn_validate() where infoblock
1495	 * padding parameters can be applied.
1496	 */
1497	if (pmem_should_map_pages(dev)) {
1498		struct nd_namespace_io *nsio = to_nd_namespace_io(&ndns->dev);
1499		struct resource *res = &nsio->res;
1500
1501		if (!IS_ALIGNED(res->start | (res->end + 1),
1502					memremap_compat_align())) {
1503			dev_err(&ndns->dev, "%pr misaligned, unable to map\n", res);
1504			return ERR_PTR(-EOPNOTSUPP);
1505		}
1506	}
1507
1508	if (is_namespace_pmem(&ndns->dev)) {
1509		struct nd_namespace_pmem *nspm;
1510
1511		nspm = to_nd_namespace_pmem(&ndns->dev);
1512		if (uuid_not_set(nspm->uuid, &ndns->dev, __func__))
1513			return ERR_PTR(-ENODEV);
 
 
 
 
 
 
 
 
 
 
 
 
 
1514	}
1515
1516	return ndns;
1517}
1518EXPORT_SYMBOL(nvdimm_namespace_common_probe);
1519
1520int devm_namespace_enable(struct device *dev, struct nd_namespace_common *ndns,
1521		resource_size_t size)
1522{
1523	return devm_nsio_enable(dev, to_nd_namespace_io(&ndns->dev), size);
1524}
1525EXPORT_SYMBOL_GPL(devm_namespace_enable);
1526
1527void devm_namespace_disable(struct device *dev, struct nd_namespace_common *ndns)
1528{
1529	devm_nsio_disable(dev, to_nd_namespace_io(&ndns->dev));
1530}
1531EXPORT_SYMBOL_GPL(devm_namespace_disable);
1532
1533static struct device **create_namespace_io(struct nd_region *nd_region)
1534{
1535	struct nd_namespace_io *nsio;
1536	struct device *dev, **devs;
1537	struct resource *res;
1538
1539	nsio = kzalloc(sizeof(*nsio), GFP_KERNEL);
1540	if (!nsio)
1541		return NULL;
1542
1543	devs = kcalloc(2, sizeof(struct device *), GFP_KERNEL);
1544	if (!devs) {
1545		kfree(nsio);
1546		return NULL;
1547	}
1548
1549	dev = &nsio->common.dev;
1550	dev->type = &namespace_io_device_type;
1551	dev->parent = &nd_region->dev;
1552	res = &nsio->res;
1553	res->name = dev_name(&nd_region->dev);
1554	res->flags = IORESOURCE_MEM;
1555	res->start = nd_region->ndr_start;
1556	res->end = res->start + nd_region->ndr_size - 1;
1557
1558	devs[0] = dev;
1559	return devs;
1560}
1561
1562static bool has_uuid_at_pos(struct nd_region *nd_region, const uuid_t *uuid,
1563			    u64 cookie, u16 pos)
1564{
1565	struct nd_namespace_label *found = NULL;
1566	int i;
1567
1568	for (i = 0; i < nd_region->ndr_mappings; i++) {
1569		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
1570		struct nd_interleave_set *nd_set = nd_region->nd_set;
1571		struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
1572		struct nd_label_ent *label_ent;
1573		bool found_uuid = false;
1574
1575		list_for_each_entry(label_ent, &nd_mapping->labels, list) {
1576			struct nd_namespace_label *nd_label = label_ent->label;
1577			u16 position;
 
1578
1579			if (!nd_label)
1580				continue;
1581			position = nsl_get_position(ndd, nd_label);
1582
1583			if (!nsl_validate_isetcookie(ndd, nd_label, cookie))
1584				continue;
1585
1586			if (!nsl_uuid_equal(ndd, nd_label, uuid))
1587				continue;
1588
1589			if (!nsl_validate_type_guid(ndd, nd_label,
1590						    &nd_set->type_guid))
1591				continue;
1592
1593			if (found_uuid) {
1594				dev_dbg(ndd->dev, "duplicate entry for uuid\n");
 
 
1595				return false;
1596			}
1597			found_uuid = true;
1598			if (!nsl_validate_nlabel(nd_region, ndd, nd_label))
1599				continue;
1600			if (position != pos)
1601				continue;
1602			found = nd_label;
1603			break;
1604		}
1605		if (found)
1606			break;
1607	}
1608	return found != NULL;
1609}
1610
1611static int select_pmem_id(struct nd_region *nd_region, const uuid_t *pmem_id)
1612{
1613	int i;
1614
1615	if (!pmem_id)
1616		return -ENODEV;
1617
1618	for (i = 0; i < nd_region->ndr_mappings; i++) {
1619		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
1620		struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
1621		struct nd_namespace_label *nd_label = NULL;
1622		u64 hw_start, hw_end, pmem_start, pmem_end;
1623		struct nd_label_ent *label_ent;
1624
1625		lockdep_assert_held(&nd_mapping->lock);
1626		list_for_each_entry(label_ent, &nd_mapping->labels, list) {
1627			nd_label = label_ent->label;
1628			if (!nd_label)
1629				continue;
1630			if (nsl_uuid_equal(ndd, nd_label, pmem_id))
1631				break;
1632			nd_label = NULL;
1633		}
1634
1635		if (!nd_label) {
1636			WARN_ON(1);
1637			return -EINVAL;
1638		}
1639
1640		/*
1641		 * Check that this label is compliant with the dpa
1642		 * range published in NFIT
1643		 */
1644		hw_start = nd_mapping->start;
1645		hw_end = hw_start + nd_mapping->size;
1646		pmem_start = nsl_get_dpa(ndd, nd_label);
1647		pmem_end = pmem_start + nsl_get_rawsize(ndd, nd_label);
1648		if (pmem_start >= hw_start && pmem_start < hw_end
1649				&& pmem_end <= hw_end && pmem_end > hw_start)
1650			/* pass */;
1651		else {
1652			dev_dbg(&nd_region->dev, "%s invalid label for %pUb\n",
1653				dev_name(ndd->dev),
1654				nsl_uuid_raw(ndd, nd_label));
1655			return -EINVAL;
1656		}
1657
1658		/* move recently validated label to the front of the list */
1659		list_move(&label_ent->list, &nd_mapping->labels);
1660	}
1661	return 0;
1662}
1663
1664/**
1665 * create_namespace_pmem - validate interleave set labelling, retrieve label0
1666 * @nd_region: region with mappings to validate
1667 * @nd_mapping: container of dpa-resource-root + labels
1668 * @nd_label: target pmem namespace label to evaluate
1669 *
1670 * Returns: the created &struct device on success or ERR_PTR(-errno) on error
1671 */
1672static struct device *create_namespace_pmem(struct nd_region *nd_region,
1673					    struct nd_mapping *nd_mapping,
1674					    struct nd_namespace_label *nd_label)
1675{
1676	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
1677	struct nd_namespace_index *nsindex =
1678		to_namespace_index(ndd, ndd->ns_current);
1679	u64 cookie = nd_region_interleave_set_cookie(nd_region, nsindex);
1680	u64 altcookie = nd_region_interleave_set_altcookie(nd_region);
 
1681	struct nd_label_ent *label_ent;
1682	struct nd_namespace_pmem *nspm;
 
1683	resource_size_t size = 0;
1684	struct resource *res;
1685	struct device *dev;
1686	uuid_t uuid;
1687	int rc = 0;
1688	u16 i;
1689
1690	if (cookie == 0) {
1691		dev_dbg(&nd_region->dev, "invalid interleave-set-cookie\n");
1692		return ERR_PTR(-ENXIO);
1693	}
1694
1695	if (!nsl_validate_isetcookie(ndd, nd_label, cookie)) {
1696		dev_dbg(&nd_region->dev, "invalid cookie in label: %pUb\n",
1697			nsl_uuid_raw(ndd, nd_label));
1698		if (!nsl_validate_isetcookie(ndd, nd_label, altcookie))
1699			return ERR_PTR(-EAGAIN);
1700
1701		dev_dbg(&nd_region->dev, "valid altcookie in label: %pUb\n",
1702			nsl_uuid_raw(ndd, nd_label));
1703	}
1704
1705	nspm = kzalloc(sizeof(*nspm), GFP_KERNEL);
1706	if (!nspm)
1707		return ERR_PTR(-ENOMEM);
1708
1709	nspm->id = -1;
1710	dev = &nspm->nsio.common.dev;
1711	dev->type = &namespace_pmem_device_type;
1712	dev->parent = &nd_region->dev;
1713	res = &nspm->nsio.res;
1714	res->name = dev_name(&nd_region->dev);
1715	res->flags = IORESOURCE_MEM;
1716
1717	for (i = 0; i < nd_region->ndr_mappings; i++) {
1718		nsl_get_uuid(ndd, nd_label, &uuid);
1719		if (has_uuid_at_pos(nd_region, &uuid, cookie, i))
1720			continue;
1721		if (has_uuid_at_pos(nd_region, &uuid, altcookie, i))
1722			continue;
1723		break;
1724	}
1725
1726	if (i < nd_region->ndr_mappings) {
1727		struct nvdimm *nvdimm = nd_region->mapping[i].nvdimm;
1728
1729		/*
1730		 * Give up if we don't find an instance of a uuid at each
1731		 * position (from 0 to nd_region->ndr_mappings - 1), or if we
1732		 * find a dimm with two instances of the same uuid.
1733		 */
1734		dev_err(&nd_region->dev, "%s missing label for %pUb\n",
1735			nvdimm_name(nvdimm), nsl_uuid_raw(ndd, nd_label));
1736		rc = -EINVAL;
1737		goto err;
1738	}
1739
1740	/*
1741	 * Fix up each mapping's 'labels' to have the validated pmem label for
1742	 * that position at labels[0], and NULL at labels[1].  In the process,
1743	 * check that the namespace aligns with interleave-set.
 
 
 
1744	 */
1745	nsl_get_uuid(ndd, nd_label, &uuid);
1746	rc = select_pmem_id(nd_region, &uuid);
1747	if (rc)
1748		goto err;
1749
1750	/* Calculate total size and populate namespace properties from label0 */
1751	for (i = 0; i < nd_region->ndr_mappings; i++) {
1752		struct nd_namespace_label *label0;
1753		struct nvdimm_drvdata *ndd;
1754
1755		nd_mapping = &nd_region->mapping[i];
1756		label_ent = list_first_entry_or_null(&nd_mapping->labels,
1757				typeof(*label_ent), list);
1758		label0 = label_ent ? label_ent->label : NULL;
1759
1760		if (!label0) {
1761			WARN_ON(1);
1762			continue;
1763		}
1764
1765		ndd = to_ndd(nd_mapping);
1766		size += nsl_get_rawsize(ndd, label0);
1767		if (nsl_get_position(ndd, label0) != 0)
1768			continue;
1769		WARN_ON(nspm->alt_name || nspm->uuid);
1770		nspm->alt_name = kmemdup(nsl_ref_name(ndd, label0),
1771					 NSLABEL_NAME_LEN, GFP_KERNEL);
1772		nsl_get_uuid(ndd, label0, &uuid);
1773		nspm->uuid = kmemdup(&uuid, sizeof(uuid_t), GFP_KERNEL);
1774		nspm->lbasize = nsl_get_lbasize(ndd, label0);
1775		nspm->nsio.common.claim_class =
1776			nsl_get_claim_class(ndd, label0);
1777	}
1778
1779	if (!nspm->alt_name || !nspm->uuid) {
1780		rc = -ENOMEM;
1781		goto err;
1782	}
1783
1784	nd_namespace_pmem_set_resource(nd_region, nspm, size);
1785
1786	return dev;
1787 err:
1788	namespace_pmem_release(dev);
1789	switch (rc) {
1790	case -EINVAL:
1791		dev_dbg(&nd_region->dev, "invalid label(s)\n");
1792		break;
1793	case -ENODEV:
1794		dev_dbg(&nd_region->dev, "label not found\n");
1795		break;
1796	default:
1797		dev_dbg(&nd_region->dev, "unexpected err: %d\n", rc);
 
1798		break;
1799	}
1800	return ERR_PTR(rc);
1801}
1802
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1803static struct device *nd_namespace_pmem_create(struct nd_region *nd_region)
1804{
1805	struct nd_namespace_pmem *nspm;
1806	struct resource *res;
1807	struct device *dev;
1808
1809	if (!is_memory(&nd_region->dev))
1810		return NULL;
1811
1812	nspm = kzalloc(sizeof(*nspm), GFP_KERNEL);
1813	if (!nspm)
1814		return NULL;
1815
1816	dev = &nspm->nsio.common.dev;
1817	dev->type = &namespace_pmem_device_type;
1818	dev->parent = &nd_region->dev;
1819	res = &nspm->nsio.res;
1820	res->name = dev_name(&nd_region->dev);
1821	res->flags = IORESOURCE_MEM;
1822
1823	nspm->id = ida_alloc(&nd_region->ns_ida, GFP_KERNEL);
1824	if (nspm->id < 0) {
1825		kfree(nspm);
1826		return NULL;
1827	}
1828	dev_set_name(dev, "namespace%d.%d", nd_region->id, nspm->id);
 
 
1829	nd_namespace_pmem_set_resource(nd_region, nspm, 0);
1830
1831	return dev;
1832}
1833
1834static struct lock_class_key nvdimm_namespace_key;
1835
1836void nd_region_create_ns_seed(struct nd_region *nd_region)
1837{
1838	WARN_ON(!is_nvdimm_bus_locked(&nd_region->dev));
1839
1840	if (nd_region_to_nstype(nd_region) == ND_DEVICE_NAMESPACE_IO)
1841		return;
1842
1843	nd_region->ns_seed = nd_namespace_pmem_create(nd_region);
 
 
 
1844
1845	/*
1846	 * Seed creation failures are not fatal, provisioning is simply
1847	 * disabled until memory becomes available
1848	 */
1849	if (!nd_region->ns_seed)
1850		dev_err(&nd_region->dev, "failed to create namespace\n");
1851	else {
1852		device_initialize(nd_region->ns_seed);
1853		lockdep_set_class(&nd_region->ns_seed->mutex,
1854				  &nvdimm_namespace_key);
1855		nd_device_register(nd_region->ns_seed);
1856	}
1857}
1858
1859void nd_region_create_dax_seed(struct nd_region *nd_region)
1860{
1861	WARN_ON(!is_nvdimm_bus_locked(&nd_region->dev));
1862	nd_region->dax_seed = nd_dax_create(nd_region);
1863	/*
1864	 * Seed creation failures are not fatal, provisioning is simply
1865	 * disabled until memory becomes available
1866	 */
1867	if (!nd_region->dax_seed)
1868		dev_err(&nd_region->dev, "failed to create dax namespace\n");
1869}
1870
1871void nd_region_create_pfn_seed(struct nd_region *nd_region)
1872{
1873	WARN_ON(!is_nvdimm_bus_locked(&nd_region->dev));
1874	nd_region->pfn_seed = nd_pfn_create(nd_region);
1875	/*
1876	 * Seed creation failures are not fatal, provisioning is simply
1877	 * disabled until memory becomes available
1878	 */
1879	if (!nd_region->pfn_seed)
1880		dev_err(&nd_region->dev, "failed to create pfn namespace\n");
1881}
1882
1883void nd_region_create_btt_seed(struct nd_region *nd_region)
1884{
1885	WARN_ON(!is_nvdimm_bus_locked(&nd_region->dev));
1886	nd_region->btt_seed = nd_btt_create(nd_region);
1887	/*
1888	 * Seed creation failures are not fatal, provisioning is simply
1889	 * disabled until memory becomes available
1890	 */
1891	if (!nd_region->btt_seed)
1892		dev_err(&nd_region->dev, "failed to create btt namespace\n");
1893}
1894
1895static int add_namespace_resource(struct nd_region *nd_region,
1896		struct nd_namespace_label *nd_label, struct device **devs,
1897		int count)
1898{
1899	struct nd_mapping *nd_mapping = &nd_region->mapping[0];
1900	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
1901	int i;
1902
1903	for (i = 0; i < count; i++) {
1904		uuid_t *uuid = namespace_to_uuid(devs[i]);
 
1905
1906		if (IS_ERR(uuid)) {
1907			WARN_ON(1);
1908			continue;
1909		}
1910
1911		if (!nsl_uuid_equal(ndd, nd_label, uuid))
1912			continue;
1913		dev_err(&nd_region->dev,
1914			"error: conflicting extents for uuid: %pUb\n", uuid);
1915		return -ENXIO;
 
 
 
 
 
 
 
 
 
 
 
1916	}
1917
1918	return i;
1919}
1920
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1921static int cmp_dpa(const void *a, const void *b)
1922{
1923	const struct device *dev_a = *(const struct device **) a;
1924	const struct device *dev_b = *(const struct device **) b;
 
1925	struct nd_namespace_pmem *nspm_a, *nspm_b;
1926
1927	if (is_namespace_io(dev_a))
1928		return 0;
1929
 
 
 
 
 
 
 
 
1930	nspm_a = to_nd_namespace_pmem(dev_a);
1931	nspm_b = to_nd_namespace_pmem(dev_b);
1932
1933	return memcmp(&nspm_a->nsio.res.start, &nspm_b->nsio.res.start,
1934			sizeof(resource_size_t));
1935}
1936
1937static struct device **scan_labels(struct nd_region *nd_region)
1938{
1939	int i, count = 0;
1940	struct device *dev, **devs = NULL;
1941	struct nd_label_ent *label_ent, *e;
1942	struct nd_mapping *nd_mapping = &nd_region->mapping[0];
1943	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
1944	resource_size_t map_end = nd_mapping->start + nd_mapping->size - 1;
1945
1946	/* "safe" because create_namespace_pmem() might list_move() label_ent */
1947	list_for_each_entry_safe(label_ent, e, &nd_mapping->labels, list) {
1948		struct nd_namespace_label *nd_label = label_ent->label;
1949		struct device **__devs;
 
1950
1951		if (!nd_label)
1952			continue;
 
 
 
 
 
 
1953
1954		/* skip labels that describe extents outside of the region */
1955		if (nsl_get_dpa(ndd, nd_label) < nd_mapping->start ||
1956		    nsl_get_dpa(ndd, nd_label) > map_end)
1957			continue;
1958
1959		i = add_namespace_resource(nd_region, nd_label, devs, count);
1960		if (i < 0)
1961			goto err;
1962		if (i < count)
1963			continue;
1964		__devs = kcalloc(count + 2, sizeof(dev), GFP_KERNEL);
1965		if (!__devs)
1966			goto err;
1967		memcpy(__devs, devs, sizeof(dev) * count);
1968		kfree(devs);
1969		devs = __devs;
1970
1971		dev = create_namespace_pmem(nd_region, nd_mapping, nd_label);
1972		if (IS_ERR(dev)) {
1973			switch (PTR_ERR(dev)) {
1974			case -EAGAIN:
1975				/* skip invalid labels */
1976				continue;
1977			case -ENODEV:
1978				/* fallthrough to seed creation */
1979				break;
1980			default:
1981				goto err;
1982			}
1983		} else
1984			devs[count++] = dev;
1985
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1986	}
1987
1988	dev_dbg(&nd_region->dev, "discovered %d namespace%s\n", count,
1989		count == 1 ? "" : "s");
 
1990
1991	if (count == 0) {
1992		struct nd_namespace_pmem *nspm;
1993
1994		/* Publish a zero-sized namespace for userspace to configure. */
1995		nd_mapping_free_labels(nd_mapping);
1996
1997		devs = kcalloc(2, sizeof(dev), GFP_KERNEL);
1998		if (!devs)
1999			goto err;
 
 
2000
2001		nspm = kzalloc(sizeof(*nspm), GFP_KERNEL);
2002		if (!nspm)
2003			goto err;
2004		dev = &nspm->nsio.common.dev;
2005		dev->type = &namespace_pmem_device_type;
2006		nd_namespace_pmem_set_resource(nd_region, nspm, 0);
 
 
 
 
 
 
 
 
 
2007		dev->parent = &nd_region->dev;
2008		devs[count++] = dev;
2009	} else if (is_memory(&nd_region->dev)) {
2010		/* clean unselected labels */
2011		for (i = 0; i < nd_region->ndr_mappings; i++) {
2012			struct list_head *l, *e;
2013			LIST_HEAD(list);
2014			int j;
2015
2016			nd_mapping = &nd_region->mapping[i];
2017			if (list_empty(&nd_mapping->labels)) {
2018				WARN_ON(1);
2019				continue;
2020			}
2021
2022			j = count;
2023			list_for_each_safe(l, e, &nd_mapping->labels) {
2024				if (!j--)
2025					break;
2026				list_move_tail(l, &list);
2027			}
2028			nd_mapping_free_labels(nd_mapping);
2029			list_splice_init(&list, &nd_mapping->labels);
2030		}
2031	}
2032
2033	if (count > 1)
2034		sort(devs, count, sizeof(struct device *), cmp_dpa, NULL);
2035
2036	return devs;
2037
2038 err:
2039	if (devs) {
2040		for (i = 0; devs[i]; i++)
2041			namespace_pmem_release(devs[i]);
 
 
 
2042		kfree(devs);
2043	}
2044	return NULL;
2045}
2046
2047static struct device **create_namespaces(struct nd_region *nd_region)
2048{
2049	struct nd_mapping *nd_mapping;
2050	struct device **devs;
2051	int i;
2052
2053	if (nd_region->ndr_mappings == 0)
2054		return NULL;
2055
2056	/* lock down all mappings while we scan labels */
2057	for (i = 0; i < nd_region->ndr_mappings; i++) {
2058		nd_mapping = &nd_region->mapping[i];
2059		mutex_lock_nested(&nd_mapping->lock, i);
2060	}
2061
2062	devs = scan_labels(nd_region);
2063
2064	for (i = 0; i < nd_region->ndr_mappings; i++) {
2065		int reverse = nd_region->ndr_mappings - 1 - i;
2066
2067		nd_mapping = &nd_region->mapping[reverse];
2068		mutex_unlock(&nd_mapping->lock);
2069	}
2070
2071	return devs;
2072}
2073
2074static void deactivate_labels(void *region)
2075{
2076	struct nd_region *nd_region = region;
2077	int i;
2078
2079	for (i = 0; i < nd_region->ndr_mappings; i++) {
2080		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
2081		struct nvdimm_drvdata *ndd = nd_mapping->ndd;
2082		struct nvdimm *nvdimm = nd_mapping->nvdimm;
2083
2084		mutex_lock(&nd_mapping->lock);
2085		nd_mapping_free_labels(nd_mapping);
2086		mutex_unlock(&nd_mapping->lock);
2087
2088		put_ndd(ndd);
2089		nd_mapping->ndd = NULL;
2090		if (ndd)
2091			atomic_dec(&nvdimm->busy);
2092	}
2093}
2094
2095static int init_active_labels(struct nd_region *nd_region)
2096{
2097	int i, rc = 0;
2098
2099	for (i = 0; i < nd_region->ndr_mappings; i++) {
2100		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
2101		struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
2102		struct nvdimm *nvdimm = nd_mapping->nvdimm;
2103		struct nd_label_ent *label_ent;
2104		int count, j;
2105
2106		/*
2107		 * If the dimm is disabled then we may need to prevent
2108		 * the region from being activated.
2109		 */
2110		if (!ndd) {
2111			if (test_bit(NDD_LOCKED, &nvdimm->flags))
2112				/* fail, label data may be unreadable */;
2113			else if (test_bit(NDD_LABELING, &nvdimm->flags))
2114				/* fail, labels needed to disambiguate dpa */;
2115			else
2116				continue;
2117
2118			dev_err(&nd_region->dev, "%s: is %s, failing probe\n",
2119					dev_name(&nd_mapping->nvdimm->dev),
2120					test_bit(NDD_LOCKED, &nvdimm->flags)
2121					? "locked" : "disabled");
2122			rc = -ENXIO;
2123			goto out;
2124		}
2125		nd_mapping->ndd = ndd;
2126		atomic_inc(&nvdimm->busy);
2127		get_ndd(ndd);
2128
2129		count = nd_label_active_count(ndd);
2130		dev_dbg(ndd->dev, "count: %d\n", count);
2131		if (!count)
2132			continue;
2133		for (j = 0; j < count; j++) {
2134			struct nd_namespace_label *label;
2135
2136			label_ent = kzalloc(sizeof(*label_ent), GFP_KERNEL);
2137			if (!label_ent)
2138				break;
2139			label = nd_label_active(ndd, j);
2140			label_ent->label = label;
2141
2142			mutex_lock(&nd_mapping->lock);
2143			list_add_tail(&label_ent->list, &nd_mapping->labels);
2144			mutex_unlock(&nd_mapping->lock);
2145		}
2146
2147		if (j < count)
2148			break;
2149	}
2150
2151	if (i < nd_region->ndr_mappings)
2152		rc = -ENOMEM;
2153
2154out:
2155	if (rc) {
2156		deactivate_labels(nd_region);
2157		return rc;
2158	}
2159
2160	return devm_add_action_or_reset(&nd_region->dev, deactivate_labels,
2161					nd_region);
2162}
2163
2164int nd_region_register_namespaces(struct nd_region *nd_region, int *err)
2165{
2166	struct device **devs = NULL;
2167	int i, rc = 0, type;
2168
2169	*err = 0;
2170	nvdimm_bus_lock(&nd_region->dev);
2171	rc = init_active_labels(nd_region);
2172	if (rc) {
2173		nvdimm_bus_unlock(&nd_region->dev);
2174		return rc;
2175	}
2176
2177	type = nd_region_to_nstype(nd_region);
2178	switch (type) {
2179	case ND_DEVICE_NAMESPACE_IO:
2180		devs = create_namespace_io(nd_region);
2181		break;
2182	case ND_DEVICE_NAMESPACE_PMEM:
 
2183		devs = create_namespaces(nd_region);
2184		break;
2185	default:
2186		break;
2187	}
2188	nvdimm_bus_unlock(&nd_region->dev);
2189
2190	if (!devs)
2191		return -ENODEV;
2192
2193	for (i = 0; devs[i]; i++) {
2194		struct device *dev = devs[i];
2195		int id;
2196
2197		if (type == ND_DEVICE_NAMESPACE_PMEM) {
 
 
 
 
 
 
 
2198			struct nd_namespace_pmem *nspm;
2199
2200			nspm = to_nd_namespace_pmem(dev);
2201			id = ida_alloc(&nd_region->ns_ida, GFP_KERNEL);
 
2202			nspm->id = id;
2203		} else
2204			id = i;
2205
2206		if (id < 0)
2207			break;
2208		dev_set_name(dev, "namespace%d.%d", nd_region->id, id);
2209		device_initialize(dev);
2210		lockdep_set_class(&dev->mutex, &nvdimm_namespace_key);
2211		nd_device_register(dev);
2212	}
2213	if (i)
2214		nd_region->ns_seed = devs[0];
2215
2216	if (devs[i]) {
2217		int j;
2218
2219		for (j = i; devs[j]; j++) {
2220			struct device *dev = devs[j];
2221
2222			device_initialize(dev);
2223			put_device(dev);
2224		}
2225		*err = j - i;
2226		/*
2227		 * All of the namespaces we tried to register failed, so
2228		 * fail region activation.
2229		 */
2230		if (*err == 0)
2231			rc = -ENODEV;
2232	}
2233	kfree(devs);
2234
2235	if (rc == -ENODEV)
2236		return rc;
2237
2238	return i;
2239}
v4.10.11
 
   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/module.h>
  14#include <linux/device.h>
  15#include <linux/sort.h>
  16#include <linux/slab.h>
  17#include <linux/pmem.h>
  18#include <linux/list.h>
  19#include <linux/nd.h>
  20#include "nd-core.h"
 
 
  21#include "nd.h"
  22
  23static void namespace_io_release(struct device *dev)
  24{
  25	struct nd_namespace_io *nsio = to_nd_namespace_io(dev);
  26
  27	kfree(nsio);
  28}
  29
  30static void namespace_pmem_release(struct device *dev)
  31{
  32	struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
  33	struct nd_region *nd_region = to_nd_region(dev->parent);
  34
  35	if (nspm->id >= 0)
  36		ida_simple_remove(&nd_region->ns_ida, nspm->id);
  37	kfree(nspm->alt_name);
  38	kfree(nspm->uuid);
  39	kfree(nspm);
  40}
  41
  42static void namespace_blk_release(struct device *dev)
  43{
  44	struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
  45	struct nd_region *nd_region = to_nd_region(dev->parent);
  46
  47	if (nsblk->id >= 0)
  48		ida_simple_remove(&nd_region->ns_ida, nsblk->id);
  49	kfree(nsblk->alt_name);
  50	kfree(nsblk->uuid);
  51	kfree(nsblk->res);
  52	kfree(nsblk);
  53}
  54
  55static const struct device_type namespace_io_device_type = {
  56	.name = "nd_namespace_io",
  57	.release = namespace_io_release,
  58};
  59
  60static const struct device_type namespace_pmem_device_type = {
  61	.name = "nd_namespace_pmem",
  62	.release = namespace_pmem_release,
  63};
  64
  65static const struct device_type namespace_blk_device_type = {
  66	.name = "nd_namespace_blk",
  67	.release = namespace_blk_release,
  68};
  69
  70static bool is_namespace_pmem(const struct device *dev)
  71{
  72	return dev ? dev->type == &namespace_pmem_device_type : false;
  73}
  74
  75static bool is_namespace_blk(const struct device *dev)
  76{
  77	return dev ? dev->type == &namespace_blk_device_type : false;
  78}
  79
  80static bool is_namespace_io(const struct device *dev)
  81{
  82	return dev ? dev->type == &namespace_io_device_type : false;
  83}
  84
  85static int is_uuid_busy(struct device *dev, void *data)
  86{
  87	u8 *uuid1 = data, *uuid2 = NULL;
  88
  89	if (is_namespace_pmem(dev)) {
  90		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
  91
  92		uuid2 = nspm->uuid;
  93	} else if (is_namespace_blk(dev)) {
  94		struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
  95
  96		uuid2 = nsblk->uuid;
  97	} else if (is_nd_btt(dev)) {
  98		struct nd_btt *nd_btt = to_nd_btt(dev);
  99
 100		uuid2 = nd_btt->uuid;
 101	} else if (is_nd_pfn(dev)) {
 102		struct nd_pfn *nd_pfn = to_nd_pfn(dev);
 103
 104		uuid2 = nd_pfn->uuid;
 105	}
 106
 107	if (uuid2 && memcmp(uuid1, uuid2, NSLABEL_UUID_LEN) == 0)
 108		return -EBUSY;
 109
 110	return 0;
 111}
 112
 113static int is_namespace_uuid_busy(struct device *dev, void *data)
 114{
 115	if (is_nd_pmem(dev) || is_nd_blk(dev))
 116		return device_for_each_child(dev, data, is_uuid_busy);
 117	return 0;
 118}
 119
 120/**
 121 * nd_is_uuid_unique - verify that no other namespace has @uuid
 122 * @dev: any device on a nvdimm_bus
 123 * @uuid: uuid to check
 
 
 124 */
 125bool nd_is_uuid_unique(struct device *dev, u8 *uuid)
 126{
 127	struct nvdimm_bus *nvdimm_bus = walk_to_nvdimm_bus(dev);
 128
 129	if (!nvdimm_bus)
 130		return false;
 131	WARN_ON_ONCE(!is_nvdimm_bus_locked(&nvdimm_bus->dev));
 132	if (device_for_each_child(&nvdimm_bus->dev, uuid,
 133				is_namespace_uuid_busy) != 0)
 134		return false;
 135	return true;
 136}
 137
 138bool pmem_should_map_pages(struct device *dev)
 139{
 140	struct nd_region *nd_region = to_nd_region(dev->parent);
 
 141	struct nd_namespace_io *nsio;
 142
 143	if (!IS_ENABLED(CONFIG_ZONE_DEVICE))
 144		return false;
 145
 146	if (!test_bit(ND_REGION_PAGEMAP, &nd_region->flags))
 147		return false;
 148
 149	if (is_nd_pfn(dev) || is_nd_btt(dev))
 150		return false;
 151
 
 
 
 152	nsio = to_nd_namespace_io(dev);
 153	if (region_intersects(nsio->res.start, resource_size(&nsio->res),
 154				IORESOURCE_SYSTEM_RAM,
 155				IORES_DESC_NONE) == REGION_MIXED)
 156		return false;
 157
 158#ifdef ARCH_MEMREMAP_PMEM
 159	return ARCH_MEMREMAP_PMEM == MEMREMAP_WB;
 160#else
 161	return false;
 162#endif
 163}
 164EXPORT_SYMBOL(pmem_should_map_pages);
 165
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 166const char *nvdimm_namespace_disk_name(struct nd_namespace_common *ndns,
 167		char *name)
 168{
 169	struct nd_region *nd_region = to_nd_region(ndns->dev.parent);
 170	const char *suffix = NULL;
 171
 172	if (ndns->claim && is_nd_btt(ndns->claim))
 173		suffix = "s";
 174
 175	if (is_namespace_pmem(&ndns->dev) || is_namespace_io(&ndns->dev)) {
 176		int nsidx = 0;
 177
 178		if (is_namespace_pmem(&ndns->dev)) {
 179			struct nd_namespace_pmem *nspm;
 180
 181			nspm = to_nd_namespace_pmem(&ndns->dev);
 182			nsidx = nspm->id;
 183		}
 184
 185		if (nsidx)
 186			sprintf(name, "pmem%d.%d%s", nd_region->id, nsidx,
 187					suffix ? suffix : "");
 188		else
 189			sprintf(name, "pmem%d%s", nd_region->id,
 190					suffix ? suffix : "");
 191	} else if (is_namespace_blk(&ndns->dev)) {
 192		struct nd_namespace_blk *nsblk;
 193
 194		nsblk = to_nd_namespace_blk(&ndns->dev);
 195		sprintf(name, "ndblk%d.%d%s", nd_region->id, nsblk->id,
 196				suffix ? suffix : "");
 197	} else {
 198		return NULL;
 199	}
 200
 201	return name;
 202}
 203EXPORT_SYMBOL(nvdimm_namespace_disk_name);
 204
 205const u8 *nd_dev_to_uuid(struct device *dev)
 206{
 207	static const u8 null_uuid[16];
 208
 209	if (!dev)
 210		return null_uuid;
 211
 212	if (is_namespace_pmem(dev)) {
 213		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 214
 215		return nspm->uuid;
 216	} else if (is_namespace_blk(dev)) {
 217		struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
 218
 219		return nsblk->uuid;
 220	} else
 221		return null_uuid;
 222}
 223EXPORT_SYMBOL(nd_dev_to_uuid);
 224
 225static ssize_t nstype_show(struct device *dev,
 226		struct device_attribute *attr, char *buf)
 227{
 228	struct nd_region *nd_region = to_nd_region(dev->parent);
 229
 230	return sprintf(buf, "%d\n", nd_region_to_nstype(nd_region));
 231}
 232static DEVICE_ATTR_RO(nstype);
 233
 234static ssize_t __alt_name_store(struct device *dev, const char *buf,
 235		const size_t len)
 236{
 237	char *input, *pos, *alt_name, **ns_altname;
 238	ssize_t rc;
 239
 240	if (is_namespace_pmem(dev)) {
 241		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 242
 243		ns_altname = &nspm->alt_name;
 244	} else if (is_namespace_blk(dev)) {
 245		struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
 246
 247		ns_altname = &nsblk->alt_name;
 248	} else
 249		return -ENXIO;
 250
 251	if (dev->driver || to_ndns(dev)->claim)
 252		return -EBUSY;
 253
 254	input = kmemdup(buf, len + 1, GFP_KERNEL);
 255	if (!input)
 256		return -ENOMEM;
 257
 258	input[len] = '\0';
 259	pos = strim(input);
 260	if (strlen(pos) + 1 > NSLABEL_NAME_LEN) {
 261		rc = -EINVAL;
 262		goto out;
 263	}
 264
 265	alt_name = kzalloc(NSLABEL_NAME_LEN, GFP_KERNEL);
 266	if (!alt_name) {
 267		rc = -ENOMEM;
 268		goto out;
 269	}
 270	kfree(*ns_altname);
 271	*ns_altname = alt_name;
 272	sprintf(*ns_altname, "%s", pos);
 273	rc = len;
 274
 275out:
 276	kfree(input);
 277	return rc;
 278}
 279
 280static resource_size_t nd_namespace_blk_size(struct nd_namespace_blk *nsblk)
 281{
 282	struct nd_region *nd_region = to_nd_region(nsblk->common.dev.parent);
 283	struct nd_mapping *nd_mapping = &nd_region->mapping[0];
 284	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 285	struct nd_label_id label_id;
 286	resource_size_t size = 0;
 287	struct resource *res;
 288
 289	if (!nsblk->uuid)
 290		return 0;
 291	nd_label_gen_id(&label_id, nsblk->uuid, NSLABEL_FLAG_LOCAL);
 292	for_each_dpa_resource(ndd, res)
 293		if (strcmp(res->name, label_id.id) == 0)
 294			size += resource_size(res);
 295	return size;
 296}
 297
 298static bool __nd_namespace_blk_validate(struct nd_namespace_blk *nsblk)
 299{
 300	struct nd_region *nd_region = to_nd_region(nsblk->common.dev.parent);
 301	struct nd_mapping *nd_mapping = &nd_region->mapping[0];
 302	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 303	struct nd_label_id label_id;
 304	struct resource *res;
 305	int count, i;
 306
 307	if (!nsblk->uuid || !nsblk->lbasize || !ndd)
 308		return false;
 309
 310	count = 0;
 311	nd_label_gen_id(&label_id, nsblk->uuid, NSLABEL_FLAG_LOCAL);
 312	for_each_dpa_resource(ndd, res) {
 313		if (strcmp(res->name, label_id.id) != 0)
 314			continue;
 315		/*
 316		 * Resources with unacknowledged adjustments indicate a
 317		 * failure to update labels
 318		 */
 319		if (res->flags & DPA_RESOURCE_ADJUSTED)
 320			return false;
 321		count++;
 322	}
 323
 324	/* These values match after a successful label update */
 325	if (count != nsblk->num_resources)
 326		return false;
 327
 328	for (i = 0; i < nsblk->num_resources; i++) {
 329		struct resource *found = NULL;
 330
 331		for_each_dpa_resource(ndd, res)
 332			if (res == nsblk->res[i]) {
 333				found = res;
 334				break;
 335			}
 336		/* stale resource */
 337		if (!found)
 338			return false;
 339	}
 340
 341	return true;
 342}
 343
 344resource_size_t nd_namespace_blk_validate(struct nd_namespace_blk *nsblk)
 345{
 346	resource_size_t size;
 347
 348	nvdimm_bus_lock(&nsblk->common.dev);
 349	size = __nd_namespace_blk_validate(nsblk);
 350	nvdimm_bus_unlock(&nsblk->common.dev);
 351
 352	return size;
 353}
 354EXPORT_SYMBOL(nd_namespace_blk_validate);
 355
 356
 357static int nd_namespace_label_update(struct nd_region *nd_region,
 358		struct device *dev)
 359{
 360	dev_WARN_ONCE(dev, dev->driver || to_ndns(dev)->claim,
 361			"namespace must be idle during label update\n");
 362	if (dev->driver || to_ndns(dev)->claim)
 363		return 0;
 364
 365	/*
 366	 * Only allow label writes that will result in a valid namespace
 367	 * or deletion of an existing namespace.
 368	 */
 369	if (is_namespace_pmem(dev)) {
 370		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 371		resource_size_t size = resource_size(&nspm->nsio.res);
 372
 373		if (size == 0 && nspm->uuid)
 374			/* delete allocation */;
 375		else if (!nspm->uuid)
 376			return 0;
 377
 378		return nd_pmem_namespace_label_update(nd_region, nspm, size);
 379	} else if (is_namespace_blk(dev)) {
 380		struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
 381		resource_size_t size = nd_namespace_blk_size(nsblk);
 382
 383		if (size == 0 && nsblk->uuid)
 384			/* delete allocation */;
 385		else if (!nsblk->uuid || !nsblk->lbasize)
 386			return 0;
 387
 388		return nd_blk_namespace_label_update(nd_region, nsblk, size);
 389	} else
 390		return -ENXIO;
 391}
 392
 393static ssize_t alt_name_store(struct device *dev,
 394		struct device_attribute *attr, const char *buf, size_t len)
 395{
 396	struct nd_region *nd_region = to_nd_region(dev->parent);
 397	ssize_t rc;
 398
 399	device_lock(dev);
 400	nvdimm_bus_lock(dev);
 401	wait_nvdimm_bus_probe_idle(dev);
 402	rc = __alt_name_store(dev, buf, len);
 403	if (rc >= 0)
 404		rc = nd_namespace_label_update(nd_region, dev);
 405	dev_dbg(dev, "%s: %s(%zd)\n", __func__, rc < 0 ? "fail " : "", rc);
 406	nvdimm_bus_unlock(dev);
 407	device_unlock(dev);
 408
 409	return rc < 0 ? rc : len;
 410}
 411
 412static ssize_t alt_name_show(struct device *dev,
 413		struct device_attribute *attr, char *buf)
 414{
 415	char *ns_altname;
 416
 417	if (is_namespace_pmem(dev)) {
 418		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 419
 420		ns_altname = nspm->alt_name;
 421	} else if (is_namespace_blk(dev)) {
 422		struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
 423
 424		ns_altname = nsblk->alt_name;
 425	} else
 426		return -ENXIO;
 427
 428	return sprintf(buf, "%s\n", ns_altname ? ns_altname : "");
 429}
 430static DEVICE_ATTR_RW(alt_name);
 431
 432static int scan_free(struct nd_region *nd_region,
 433		struct nd_mapping *nd_mapping, struct nd_label_id *label_id,
 434		resource_size_t n)
 435{
 436	bool is_blk = strncmp(label_id->id, "blk", 3) == 0;
 437	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 438	int rc = 0;
 439
 440	while (n) {
 441		struct resource *res, *last;
 442		resource_size_t new_start;
 443
 444		last = NULL;
 445		for_each_dpa_resource(ndd, res)
 446			if (strcmp(res->name, label_id->id) == 0)
 447				last = res;
 448		res = last;
 449		if (!res)
 450			return 0;
 451
 452		if (n >= resource_size(res)) {
 453			n -= resource_size(res);
 454			nd_dbg_dpa(nd_region, ndd, res, "delete %d\n", rc);
 455			nvdimm_free_dpa(ndd, res);
 456			/* retry with last resource deleted */
 457			continue;
 458		}
 459
 460		/*
 461		 * Keep BLK allocations relegated to high DPA as much as
 462		 * possible
 463		 */
 464		if (is_blk)
 465			new_start = res->start + n;
 466		else
 467			new_start = res->start;
 468
 469		rc = adjust_resource(res, new_start, resource_size(res) - n);
 470		if (rc == 0)
 471			res->flags |= DPA_RESOURCE_ADJUSTED;
 472		nd_dbg_dpa(nd_region, ndd, res, "shrink %d\n", rc);
 473		break;
 474	}
 475
 476	return rc;
 477}
 478
 479/**
 480 * shrink_dpa_allocation - for each dimm in region free n bytes for label_id
 481 * @nd_region: the set of dimms to reclaim @n bytes from
 482 * @label_id: unique identifier for the namespace consuming this dpa range
 483 * @n: number of bytes per-dimm to release
 484 *
 485 * Assumes resources are ordered.  Starting from the end try to
 486 * adjust_resource() the allocation to @n, but if @n is larger than the
 487 * allocation delete it and find the 'new' last allocation in the label
 488 * set.
 
 
 489 */
 490static int shrink_dpa_allocation(struct nd_region *nd_region,
 491		struct nd_label_id *label_id, resource_size_t n)
 492{
 493	int i;
 494
 495	for (i = 0; i < nd_region->ndr_mappings; i++) {
 496		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
 497		int rc;
 498
 499		rc = scan_free(nd_region, nd_mapping, label_id, n);
 500		if (rc)
 501			return rc;
 502	}
 503
 504	return 0;
 505}
 506
 507static resource_size_t init_dpa_allocation(struct nd_label_id *label_id,
 508		struct nd_region *nd_region, struct nd_mapping *nd_mapping,
 509		resource_size_t n)
 510{
 511	bool is_blk = strncmp(label_id->id, "blk", 3) == 0;
 512	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 513	resource_size_t first_dpa;
 514	struct resource *res;
 515	int rc = 0;
 516
 517	/* allocate blk from highest dpa first */
 518	if (is_blk)
 519		first_dpa = nd_mapping->start + nd_mapping->size - n;
 520	else
 521		first_dpa = nd_mapping->start;
 522
 523	/* first resource allocation for this label-id or dimm */
 524	res = nvdimm_allocate_dpa(ndd, label_id, first_dpa, n);
 525	if (!res)
 526		rc = -EBUSY;
 527
 528	nd_dbg_dpa(nd_region, ndd, res, "init %d\n", rc);
 529	return rc ? n : 0;
 530}
 531
 532
 533/**
 534 * space_valid() - validate free dpa space against constraints
 535 * @nd_region: hosting region of the free space
 536 * @ndd: dimm device data for debug
 537 * @label_id: namespace id to allocate space
 538 * @prev: potential allocation that precedes free space
 539 * @next: allocation that follows the given free space range
 540 * @exist: first allocation with same id in the mapping
 541 * @n: range that must satisfied for pmem allocations
 542 * @valid: free space range to validate
 543 *
 544 * BLK-space is valid as long as it does not precede a PMEM
 545 * allocation in a given region. PMEM-space must be contiguous
 546 * and adjacent to an existing existing allocation (if one
 547 * exists).  If reserving PMEM any space is valid.
 548 */
 549static void space_valid(struct nd_region *nd_region, struct nvdimm_drvdata *ndd,
 550		struct nd_label_id *label_id, struct resource *prev,
 551		struct resource *next, struct resource *exist,
 552		resource_size_t n, struct resource *valid)
 553{
 554	bool is_reserve = strcmp(label_id->id, "pmem-reserve") == 0;
 555	bool is_pmem = strncmp(label_id->id, "pmem", 4) == 0;
 
 
 
 
 556
 557	if (valid->start >= valid->end)
 558		goto invalid;
 559
 560	if (is_reserve)
 561		return;
 562
 563	if (!is_pmem) {
 564		struct nd_mapping *nd_mapping = &nd_region->mapping[0];
 565		struct nvdimm_bus *nvdimm_bus;
 566		struct blk_alloc_info info = {
 567			.nd_mapping = nd_mapping,
 568			.available = nd_mapping->size,
 569			.res = valid,
 570		};
 571
 572		WARN_ON(!is_nd_blk(&nd_region->dev));
 573		nvdimm_bus = walk_to_nvdimm_bus(&nd_region->dev);
 574		device_for_each_child(&nvdimm_bus->dev, &info, alias_dpa_busy);
 575		return;
 576	}
 577
 578	/* allocation needs to be contiguous, so this is all or nothing */
 579	if (resource_size(valid) < n)
 580		goto invalid;
 581
 582	/* we've got all the space we need and no existing allocation */
 583	if (!exist)
 584		return;
 585
 586	/* allocation needs to be contiguous with the existing namespace */
 587	if (valid->start == exist->end + 1
 588			|| valid->end == exist->start - 1)
 589		return;
 590
 591 invalid:
 592	/* truncate @valid size to 0 */
 593	valid->end = valid->start - 1;
 594}
 595
 596enum alloc_loc {
 597	ALLOC_ERR = 0, ALLOC_BEFORE, ALLOC_MID, ALLOC_AFTER,
 598};
 599
 600static resource_size_t scan_allocate(struct nd_region *nd_region,
 601		struct nd_mapping *nd_mapping, struct nd_label_id *label_id,
 602		resource_size_t n)
 603{
 604	resource_size_t mapping_end = nd_mapping->start + nd_mapping->size - 1;
 605	bool is_pmem = strncmp(label_id->id, "pmem", 4) == 0;
 606	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 607	struct resource *res, *exist = NULL, valid;
 608	const resource_size_t to_allocate = n;
 609	int first;
 610
 611	for_each_dpa_resource(ndd, res)
 612		if (strcmp(label_id->id, res->name) == 0)
 613			exist = res;
 614
 615	valid.start = nd_mapping->start;
 616	valid.end = mapping_end;
 617	valid.name = "free space";
 618 retry:
 619	first = 0;
 620	for_each_dpa_resource(ndd, res) {
 621		struct resource *next = res->sibling, *new_res = NULL;
 622		resource_size_t allocate, available = 0;
 623		enum alloc_loc loc = ALLOC_ERR;
 624		const char *action;
 625		int rc = 0;
 626
 627		/* ignore resources outside this nd_mapping */
 628		if (res->start > mapping_end)
 629			continue;
 630		if (res->end < nd_mapping->start)
 631			continue;
 632
 633		/* space at the beginning of the mapping */
 634		if (!first++ && res->start > nd_mapping->start) {
 635			valid.start = nd_mapping->start;
 636			valid.end = res->start - 1;
 637			space_valid(nd_region, ndd, label_id, NULL, next, exist,
 638					to_allocate, &valid);
 639			available = resource_size(&valid);
 640			if (available)
 641				loc = ALLOC_BEFORE;
 642		}
 643
 644		/* space between allocations */
 645		if (!loc && next) {
 646			valid.start = res->start + resource_size(res);
 647			valid.end = min(mapping_end, next->start - 1);
 648			space_valid(nd_region, ndd, label_id, res, next, exist,
 649					to_allocate, &valid);
 650			available = resource_size(&valid);
 651			if (available)
 652				loc = ALLOC_MID;
 653		}
 654
 655		/* space at the end of the mapping */
 656		if (!loc && !next) {
 657			valid.start = res->start + resource_size(res);
 658			valid.end = mapping_end;
 659			space_valid(nd_region, ndd, label_id, res, next, exist,
 660					to_allocate, &valid);
 661			available = resource_size(&valid);
 662			if (available)
 663				loc = ALLOC_AFTER;
 664		}
 665
 666		if (!loc || !available)
 667			continue;
 668		allocate = min(available, n);
 669		switch (loc) {
 670		case ALLOC_BEFORE:
 671			if (strcmp(res->name, label_id->id) == 0) {
 672				/* adjust current resource up */
 673				rc = adjust_resource(res, res->start - allocate,
 674						resource_size(res) + allocate);
 675				action = "cur grow up";
 676			} else
 677				action = "allocate";
 678			break;
 679		case ALLOC_MID:
 680			if (strcmp(next->name, label_id->id) == 0) {
 681				/* adjust next resource up */
 682				rc = adjust_resource(next, next->start
 683						- allocate, resource_size(next)
 684						+ allocate);
 685				new_res = next;
 686				action = "next grow up";
 687			} else if (strcmp(res->name, label_id->id) == 0) {
 688				action = "grow down";
 689			} else
 690				action = "allocate";
 691			break;
 692		case ALLOC_AFTER:
 693			if (strcmp(res->name, label_id->id) == 0)
 694				action = "grow down";
 695			else
 696				action = "allocate";
 697			break;
 698		default:
 699			return n;
 700		}
 701
 702		if (strcmp(action, "allocate") == 0) {
 703			/* BLK allocate bottom up */
 704			if (!is_pmem)
 705				valid.start += available - allocate;
 706
 707			new_res = nvdimm_allocate_dpa(ndd, label_id,
 708					valid.start, allocate);
 709			if (!new_res)
 710				rc = -EBUSY;
 711		} else if (strcmp(action, "grow down") == 0) {
 712			/* adjust current resource down */
 713			rc = adjust_resource(res, res->start, resource_size(res)
 714					+ allocate);
 715			if (rc == 0)
 716				res->flags |= DPA_RESOURCE_ADJUSTED;
 717		}
 718
 719		if (!new_res)
 720			new_res = res;
 721
 722		nd_dbg_dpa(nd_region, ndd, new_res, "%s(%d) %d\n",
 723				action, loc, rc);
 724
 725		if (rc)
 726			return n;
 727
 728		n -= allocate;
 729		if (n) {
 730			/*
 731			 * Retry scan with newly inserted resources.
 732			 * For example, if we did an ALLOC_BEFORE
 733			 * insertion there may also have been space
 734			 * available for an ALLOC_AFTER insertion, so we
 735			 * need to check this same resource again
 736			 */
 737			goto retry;
 738		} else
 739			return 0;
 740	}
 741
 742	/*
 743	 * If we allocated nothing in the BLK case it may be because we are in
 744	 * an initial "pmem-reserve pass".  Only do an initial BLK allocation
 745	 * when none of the DPA space is reserved.
 746	 */
 747	if ((is_pmem || !ndd->dpa.child) && n == to_allocate)
 748		return init_dpa_allocation(label_id, nd_region, nd_mapping, n);
 749	return n;
 750}
 751
 752static int merge_dpa(struct nd_region *nd_region,
 753		struct nd_mapping *nd_mapping, struct nd_label_id *label_id)
 754{
 755	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 756	struct resource *res;
 757
 758	if (strncmp("pmem", label_id->id, 4) == 0)
 759		return 0;
 760 retry:
 761	for_each_dpa_resource(ndd, res) {
 762		int rc;
 763		struct resource *next = res->sibling;
 764		resource_size_t end = res->start + resource_size(res);
 765
 766		if (!next || strcmp(res->name, label_id->id) != 0
 767				|| strcmp(next->name, label_id->id) != 0
 768				|| end != next->start)
 769			continue;
 770		end += resource_size(next);
 771		nvdimm_free_dpa(ndd, next);
 772		rc = adjust_resource(res, res->start, end - res->start);
 773		nd_dbg_dpa(nd_region, ndd, res, "merge %d\n", rc);
 774		if (rc)
 775			return rc;
 776		res->flags |= DPA_RESOURCE_ADJUSTED;
 777		goto retry;
 778	}
 779
 780	return 0;
 781}
 782
 783static int __reserve_free_pmem(struct device *dev, void *data)
 784{
 785	struct nvdimm *nvdimm = data;
 786	struct nd_region *nd_region;
 787	struct nd_label_id label_id;
 788	int i;
 789
 790	if (!is_nd_pmem(dev))
 791		return 0;
 792
 793	nd_region = to_nd_region(dev);
 794	if (nd_region->ndr_mappings == 0)
 795		return 0;
 796
 797	memset(&label_id, 0, sizeof(label_id));
 798	strcat(label_id.id, "pmem-reserve");
 799	for (i = 0; i < nd_region->ndr_mappings; i++) {
 800		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
 801		resource_size_t n, rem = 0;
 802
 803		if (nd_mapping->nvdimm != nvdimm)
 804			continue;
 805
 806		n = nd_pmem_available_dpa(nd_region, nd_mapping, &rem);
 807		if (n == 0)
 808			return 0;
 809		rem = scan_allocate(nd_region, nd_mapping, &label_id, n);
 810		dev_WARN_ONCE(&nd_region->dev, rem,
 811				"pmem reserve underrun: %#llx of %#llx bytes\n",
 812				(unsigned long long) n - rem,
 813				(unsigned long long) n);
 814		return rem ? -ENXIO : 0;
 815	}
 816
 817	return 0;
 818}
 819
 820static void release_free_pmem(struct nvdimm_bus *nvdimm_bus,
 821		struct nd_mapping *nd_mapping)
 822{
 823	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 824	struct resource *res, *_res;
 825
 826	for_each_dpa_resource_safe(ndd, res, _res)
 827		if (strcmp(res->name, "pmem-reserve") == 0)
 828			nvdimm_free_dpa(ndd, res);
 829}
 830
 831static int reserve_free_pmem(struct nvdimm_bus *nvdimm_bus,
 832		struct nd_mapping *nd_mapping)
 833{
 834	struct nvdimm *nvdimm = nd_mapping->nvdimm;
 835	int rc;
 836
 837	rc = device_for_each_child(&nvdimm_bus->dev, nvdimm,
 838			__reserve_free_pmem);
 839	if (rc)
 840		release_free_pmem(nvdimm_bus, nd_mapping);
 841	return rc;
 842}
 843
 844/**
 845 * grow_dpa_allocation - for each dimm allocate n bytes for @label_id
 846 * @nd_region: the set of dimms to allocate @n more bytes from
 847 * @label_id: unique identifier for the namespace consuming this dpa range
 848 * @n: number of bytes per-dimm to add to the existing allocation
 849 *
 850 * Assumes resources are ordered.  For BLK regions, first consume
 851 * BLK-only available DPA free space, then consume PMEM-aliased DPA
 852 * space starting at the highest DPA.  For PMEM regions start
 853 * allocations from the start of an interleave set and end at the first
 854 * BLK allocation or the end of the interleave set, whichever comes
 855 * first.
 
 
 856 */
 857static int grow_dpa_allocation(struct nd_region *nd_region,
 858		struct nd_label_id *label_id, resource_size_t n)
 859{
 860	struct nvdimm_bus *nvdimm_bus = walk_to_nvdimm_bus(&nd_region->dev);
 861	bool is_pmem = strncmp(label_id->id, "pmem", 4) == 0;
 862	int i;
 863
 864	for (i = 0; i < nd_region->ndr_mappings; i++) {
 865		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
 866		resource_size_t rem = n;
 867		int rc, j;
 868
 869		/*
 870		 * In the BLK case try once with all unallocated PMEM
 871		 * reserved, and once without
 872		 */
 873		for (j = is_pmem; j < 2; j++) {
 874			bool blk_only = j == 0;
 875
 876			if (blk_only) {
 877				rc = reserve_free_pmem(nvdimm_bus, nd_mapping);
 878				if (rc)
 879					return rc;
 880			}
 881			rem = scan_allocate(nd_region, nd_mapping,
 882					label_id, rem);
 883			if (blk_only)
 884				release_free_pmem(nvdimm_bus, nd_mapping);
 885
 886			/* try again and allow encroachments into PMEM */
 887			if (rem == 0)
 888				break;
 889		}
 890
 
 891		dev_WARN_ONCE(&nd_region->dev, rem,
 892				"allocation underrun: %#llx of %#llx bytes\n",
 893				(unsigned long long) n - rem,
 894				(unsigned long long) n);
 895		if (rem)
 896			return -ENXIO;
 897
 898		rc = merge_dpa(nd_region, nd_mapping, label_id);
 899		if (rc)
 900			return rc;
 901	}
 902
 903	return 0;
 904}
 905
 906static void nd_namespace_pmem_set_resource(struct nd_region *nd_region,
 907		struct nd_namespace_pmem *nspm, resource_size_t size)
 908{
 909	struct resource *res = &nspm->nsio.res;
 910	resource_size_t offset = 0;
 911
 912	if (size && !nspm->uuid) {
 913		WARN_ON_ONCE(1);
 914		size = 0;
 915	}
 916
 917	if (size && nspm->uuid) {
 918		struct nd_mapping *nd_mapping = &nd_region->mapping[0];
 919		struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 920		struct nd_label_id label_id;
 921		struct resource *res;
 922
 923		if (!ndd) {
 924			size = 0;
 925			goto out;
 926		}
 927
 928		nd_label_gen_id(&label_id, nspm->uuid, 0);
 929
 930		/* calculate a spa offset from the dpa allocation offset */
 931		for_each_dpa_resource(ndd, res)
 932			if (strcmp(res->name, label_id.id) == 0) {
 933				offset = (res->start - nd_mapping->start)
 934					* nd_region->ndr_mappings;
 935				goto out;
 936			}
 937
 938		WARN_ON_ONCE(1);
 939		size = 0;
 940	}
 941
 942 out:
 943	res->start = nd_region->ndr_start + offset;
 944	res->end = res->start + size - 1;
 945}
 946
 947static bool uuid_not_set(const u8 *uuid, struct device *dev, const char *where)
 
 948{
 949	if (!uuid) {
 950		dev_dbg(dev, "%s: uuid not set\n", where);
 951		return true;
 952	}
 953	return false;
 954}
 955
 956static ssize_t __size_store(struct device *dev, unsigned long long val)
 957{
 958	resource_size_t allocated = 0, available = 0;
 959	struct nd_region *nd_region = to_nd_region(dev->parent);
 960	struct nd_namespace_common *ndns = to_ndns(dev);
 961	struct nd_mapping *nd_mapping;
 962	struct nvdimm_drvdata *ndd;
 963	struct nd_label_id label_id;
 964	u32 flags = 0, remainder;
 965	int rc, i, id = -1;
 966	u8 *uuid = NULL;
 967
 968	if (dev->driver || ndns->claim)
 969		return -EBUSY;
 970
 971	if (is_namespace_pmem(dev)) {
 972		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
 973
 974		uuid = nspm->uuid;
 975		id = nspm->id;
 976	} else if (is_namespace_blk(dev)) {
 977		struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
 978
 979		uuid = nsblk->uuid;
 980		flags = NSLABEL_FLAG_LOCAL;
 981		id = nsblk->id;
 982	}
 983
 984	/*
 985	 * We need a uuid for the allocation-label and dimm(s) on which
 986	 * to store the label.
 987	 */
 988	if (uuid_not_set(uuid, dev, __func__))
 989		return -ENXIO;
 990	if (nd_region->ndr_mappings == 0) {
 991		dev_dbg(dev, "%s: not associated with dimm(s)\n", __func__);
 992		return -ENXIO;
 993	}
 994
 995	div_u64_rem(val, SZ_4K * nd_region->ndr_mappings, &remainder);
 996	if (remainder) {
 997		dev_dbg(dev, "%llu is not %dK aligned\n", val,
 998				(SZ_4K * nd_region->ndr_mappings) / SZ_1K);
 999		return -EINVAL;
1000	}
1001
1002	nd_label_gen_id(&label_id, uuid, flags);
1003	for (i = 0; i < nd_region->ndr_mappings; i++) {
1004		nd_mapping = &nd_region->mapping[i];
1005		ndd = to_ndd(nd_mapping);
1006
1007		/*
1008		 * All dimms in an interleave set, or the base dimm for a blk
1009		 * region, need to be enabled for the size to be changed.
1010		 */
1011		if (!ndd)
1012			return -ENXIO;
1013
1014		allocated += nvdimm_allocated_dpa(ndd, &label_id);
1015	}
1016	available = nd_region_available_dpa(nd_region);
1017
1018	if (val > available + allocated)
1019		return -ENOSPC;
1020
1021	if (val == allocated)
1022		return 0;
1023
1024	val = div_u64(val, nd_region->ndr_mappings);
1025	allocated = div_u64(allocated, nd_region->ndr_mappings);
1026	if (val < allocated)
1027		rc = shrink_dpa_allocation(nd_region, &label_id,
1028				allocated - val);
1029	else
1030		rc = grow_dpa_allocation(nd_region, &label_id, val - allocated);
1031
1032	if (rc)
1033		return rc;
1034
1035	if (is_namespace_pmem(dev)) {
1036		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
1037
1038		nd_namespace_pmem_set_resource(nd_region, nspm,
1039				val * nd_region->ndr_mappings);
1040	}
1041
1042	/*
1043	 * Try to delete the namespace if we deleted all of its
1044	 * allocation, this is not the seed or 0th device for the
1045	 * region, and it is not actively claimed by a btt, pfn, or dax
1046	 * instance.
1047	 */
1048	if (val == 0 && id != 0 && nd_region->ns_seed != dev && !ndns->claim)
1049		nd_device_unregister(dev, ND_ASYNC);
1050
1051	return rc;
1052}
1053
1054static ssize_t size_store(struct device *dev,
1055		struct device_attribute *attr, const char *buf, size_t len)
1056{
1057	struct nd_region *nd_region = to_nd_region(dev->parent);
1058	unsigned long long val;
1059	u8 **uuid = NULL;
1060	int rc;
1061
1062	rc = kstrtoull(buf, 0, &val);
1063	if (rc)
1064		return rc;
1065
1066	device_lock(dev);
1067	nvdimm_bus_lock(dev);
1068	wait_nvdimm_bus_probe_idle(dev);
1069	rc = __size_store(dev, val);
1070	if (rc >= 0)
1071		rc = nd_namespace_label_update(nd_region, dev);
1072
1073	if (is_namespace_pmem(dev)) {
 
1074		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
1075
1076		uuid = &nspm->uuid;
1077	} else if (is_namespace_blk(dev)) {
1078		struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
1079
1080		uuid = &nsblk->uuid;
1081	}
1082
1083	if (rc == 0 && val == 0 && uuid) {
1084		/* setting size zero == 'delete namespace' */
1085		kfree(*uuid);
1086		*uuid = NULL;
1087	}
1088
1089	dev_dbg(dev, "%s: %llx %s (%d)\n", __func__, val, rc < 0
1090			? "fail" : "success", rc);
1091
1092	nvdimm_bus_unlock(dev);
1093	device_unlock(dev);
1094
1095	return rc < 0 ? rc : len;
1096}
1097
1098resource_size_t __nvdimm_namespace_capacity(struct nd_namespace_common *ndns)
1099{
1100	struct device *dev = &ndns->dev;
1101
1102	if (is_namespace_pmem(dev)) {
1103		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
1104
1105		return resource_size(&nspm->nsio.res);
1106	} else if (is_namespace_blk(dev)) {
1107		return nd_namespace_blk_size(to_nd_namespace_blk(dev));
1108	} else if (is_namespace_io(dev)) {
1109		struct nd_namespace_io *nsio = to_nd_namespace_io(dev);
1110
1111		return resource_size(&nsio->res);
1112	} else
1113		WARN_ONCE(1, "unknown namespace type\n");
1114	return 0;
1115}
1116
1117resource_size_t nvdimm_namespace_capacity(struct nd_namespace_common *ndns)
1118{
1119	resource_size_t size;
1120
1121	nvdimm_bus_lock(&ndns->dev);
1122	size = __nvdimm_namespace_capacity(ndns);
1123	nvdimm_bus_unlock(&ndns->dev);
1124
1125	return size;
1126}
1127EXPORT_SYMBOL(nvdimm_namespace_capacity);
1128
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1129static ssize_t size_show(struct device *dev,
1130		struct device_attribute *attr, char *buf)
1131{
1132	return sprintf(buf, "%llu\n", (unsigned long long)
1133			nvdimm_namespace_capacity(to_ndns(dev)));
1134}
1135static DEVICE_ATTR(size, 0444, size_show, size_store);
1136
1137static u8 *namespace_to_uuid(struct device *dev)
1138{
1139	if (is_namespace_pmem(dev)) {
1140		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
1141
1142		return nspm->uuid;
1143	} else if (is_namespace_blk(dev)) {
1144		struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
1145
1146		return nsblk->uuid;
1147	} else
1148		return ERR_PTR(-ENXIO);
1149}
1150
1151static ssize_t uuid_show(struct device *dev,
1152		struct device_attribute *attr, char *buf)
1153{
1154	u8 *uuid = namespace_to_uuid(dev);
1155
1156	if (IS_ERR(uuid))
1157		return PTR_ERR(uuid);
1158	if (uuid)
1159		return sprintf(buf, "%pUb\n", uuid);
1160	return sprintf(buf, "\n");
1161}
1162
1163/**
1164 * namespace_update_uuid - check for a unique uuid and whether we're "renaming"
1165 * @nd_region: parent region so we can updates all dimms in the set
1166 * @dev: namespace type for generating label_id
1167 * @new_uuid: incoming uuid
1168 * @old_uuid: reference to the uuid storage location in the namespace object
 
 
1169 */
1170static int namespace_update_uuid(struct nd_region *nd_region,
1171		struct device *dev, u8 *new_uuid, u8 **old_uuid)
 
1172{
1173	u32 flags = is_namespace_blk(dev) ? NSLABEL_FLAG_LOCAL : 0;
1174	struct nd_label_id old_label_id;
1175	struct nd_label_id new_label_id;
1176	int i;
1177
1178	if (!nd_is_uuid_unique(dev, new_uuid))
1179		return -EINVAL;
1180
1181	if (*old_uuid == NULL)
1182		goto out;
1183
1184	/*
1185	 * If we've already written a label with this uuid, then it's
1186	 * too late to rename because we can't reliably update the uuid
1187	 * without losing the old namespace.  Userspace must delete this
1188	 * namespace to abandon the old uuid.
1189	 */
1190	for (i = 0; i < nd_region->ndr_mappings; i++) {
1191		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
1192
1193		/*
1194		 * This check by itself is sufficient because old_uuid
1195		 * would be NULL above if this uuid did not exist in the
1196		 * currently written set.
1197		 *
1198		 * FIXME: can we delete uuid with zero dpa allocated?
1199		 */
1200		if (list_empty(&nd_mapping->labels))
1201			return -EBUSY;
1202	}
1203
1204	nd_label_gen_id(&old_label_id, *old_uuid, flags);
1205	nd_label_gen_id(&new_label_id, new_uuid, flags);
1206	for (i = 0; i < nd_region->ndr_mappings; i++) {
1207		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
1208		struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
 
1209		struct resource *res;
1210
1211		for_each_dpa_resource(ndd, res)
1212			if (strcmp(res->name, old_label_id.id) == 0)
1213				sprintf((void *) res->name, "%s",
1214						new_label_id.id);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1215	}
1216	kfree(*old_uuid);
1217 out:
1218	*old_uuid = new_uuid;
1219	return 0;
1220}
1221
1222static ssize_t uuid_store(struct device *dev,
1223		struct device_attribute *attr, const char *buf, size_t len)
1224{
1225	struct nd_region *nd_region = to_nd_region(dev->parent);
1226	u8 *uuid = NULL;
 
1227	ssize_t rc = 0;
1228	u8 **ns_uuid;
1229
1230	if (is_namespace_pmem(dev)) {
1231		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
1232
1233		ns_uuid = &nspm->uuid;
1234	} else if (is_namespace_blk(dev)) {
1235		struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
1236
1237		ns_uuid = &nsblk->uuid;
1238	} else
1239		return -ENXIO;
1240
1241	device_lock(dev);
1242	nvdimm_bus_lock(dev);
1243	wait_nvdimm_bus_probe_idle(dev);
1244	if (to_ndns(dev)->claim)
1245		rc = -EBUSY;
1246	if (rc >= 0)
1247		rc = nd_uuid_store(dev, &uuid, buf, len);
1248	if (rc >= 0)
1249		rc = namespace_update_uuid(nd_region, dev, uuid, ns_uuid);
1250	if (rc >= 0)
1251		rc = nd_namespace_label_update(nd_region, dev);
1252	else
1253		kfree(uuid);
1254	dev_dbg(dev, "%s: result: %zd wrote: %s%s", __func__,
1255			rc, buf, buf[len - 1] == '\n' ? "" : "\n");
1256	nvdimm_bus_unlock(dev);
1257	device_unlock(dev);
1258
1259	return rc < 0 ? rc : len;
1260}
1261static DEVICE_ATTR_RW(uuid);
1262
1263static ssize_t resource_show(struct device *dev,
1264		struct device_attribute *attr, char *buf)
1265{
1266	struct resource *res;
1267
1268	if (is_namespace_pmem(dev)) {
1269		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
1270
1271		res = &nspm->nsio.res;
1272	} else if (is_namespace_io(dev)) {
1273		struct nd_namespace_io *nsio = to_nd_namespace_io(dev);
1274
1275		res = &nsio->res;
1276	} else
1277		return -ENXIO;
1278
1279	/* no address to convey if the namespace has no allocation */
1280	if (resource_size(res) == 0)
1281		return -ENXIO;
1282	return sprintf(buf, "%#llx\n", (unsigned long long) res->start);
1283}
1284static DEVICE_ATTR_RO(resource);
1285
1286static const unsigned long ns_lbasize_supported[] = { 512, 520, 528,
1287	4096, 4104, 4160, 4224, 0 };
1288
1289static ssize_t sector_size_show(struct device *dev,
1290		struct device_attribute *attr, char *buf)
1291{
1292	struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
 
1293
1294	if (!is_namespace_blk(dev))
1295		return -ENXIO;
1296
1297	return nd_sector_size_show(nsblk->lbasize, ns_lbasize_supported, buf);
1298}
1299
1300static ssize_t sector_size_store(struct device *dev,
1301		struct device_attribute *attr, const char *buf, size_t len)
1302{
1303	struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
1304	struct nd_region *nd_region = to_nd_region(dev->parent);
 
 
1305	ssize_t rc = 0;
1306
1307	if (!is_namespace_blk(dev))
 
 
 
 
 
1308		return -ENXIO;
1309
1310	device_lock(dev);
1311	nvdimm_bus_lock(dev);
1312	if (to_ndns(dev)->claim)
1313		rc = -EBUSY;
1314	if (rc >= 0)
1315		rc = nd_sector_size_store(dev, buf, &nsblk->lbasize,
1316				ns_lbasize_supported);
1317	if (rc >= 0)
1318		rc = nd_namespace_label_update(nd_region, dev);
1319	dev_dbg(dev, "%s: result: %zd %s: %s%s", __func__,
1320			rc, rc < 0 ? "tried" : "wrote", buf,
1321			buf[len - 1] == '\n' ? "" : "\n");
1322	nvdimm_bus_unlock(dev);
1323	device_unlock(dev);
1324
1325	return rc ? rc : len;
1326}
1327static DEVICE_ATTR_RW(sector_size);
1328
1329static ssize_t dpa_extents_show(struct device *dev,
1330		struct device_attribute *attr, char *buf)
1331{
1332	struct nd_region *nd_region = to_nd_region(dev->parent);
1333	struct nd_label_id label_id;
 
1334	int count = 0, i;
1335	u8 *uuid = NULL;
1336	u32 flags = 0;
1337
1338	nvdimm_bus_lock(dev);
1339	if (is_namespace_pmem(dev)) {
1340		struct nd_namespace_pmem *nspm = to_nd_namespace_pmem(dev);
1341
1342		uuid = nspm->uuid;
1343		flags = 0;
1344	} else if (is_namespace_blk(dev)) {
1345		struct nd_namespace_blk *nsblk = to_nd_namespace_blk(dev);
1346
1347		uuid = nsblk->uuid;
1348		flags = NSLABEL_FLAG_LOCAL;
1349	}
1350
1351	if (!uuid)
1352		goto out;
1353
1354	nd_label_gen_id(&label_id, uuid, flags);
1355	for (i = 0; i < nd_region->ndr_mappings; i++) {
1356		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
1357		struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
1358		struct resource *res;
1359
1360		for_each_dpa_resource(ndd, res)
1361			if (strcmp(res->name, label_id.id) == 0)
1362				count++;
1363	}
1364 out:
1365	nvdimm_bus_unlock(dev);
1366
1367	return sprintf(buf, "%d\n", count);
1368}
1369static DEVICE_ATTR_RO(dpa_extents);
1370
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1371static ssize_t holder_show(struct device *dev,
1372		struct device_attribute *attr, char *buf)
1373{
1374	struct nd_namespace_common *ndns = to_ndns(dev);
1375	ssize_t rc;
1376
1377	device_lock(dev);
1378	rc = sprintf(buf, "%s\n", ndns->claim ? dev_name(ndns->claim) : "");
1379	device_unlock(dev);
1380
1381	return rc;
1382}
1383static DEVICE_ATTR_RO(holder);
1384
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1385static ssize_t mode_show(struct device *dev,
1386		struct device_attribute *attr, char *buf)
1387{
1388	struct nd_namespace_common *ndns = to_ndns(dev);
1389	struct device *claim;
1390	char *mode;
1391	ssize_t rc;
1392
1393	device_lock(dev);
1394	claim = ndns->claim;
1395	if (claim && is_nd_btt(claim))
1396		mode = "safe";
1397	else if (claim && is_nd_pfn(claim))
1398		mode = "memory";
1399	else if (claim && is_nd_dax(claim))
1400		mode = "dax";
1401	else if (!claim && pmem_should_map_pages(dev))
1402		mode = "memory";
1403	else
1404		mode = "raw";
1405	rc = sprintf(buf, "%s\n", mode);
1406	device_unlock(dev);
1407
1408	return rc;
1409}
1410static DEVICE_ATTR_RO(mode);
1411
1412static ssize_t force_raw_store(struct device *dev,
1413		struct device_attribute *attr, const char *buf, size_t len)
1414{
1415	bool force_raw;
1416	int rc = strtobool(buf, &force_raw);
1417
1418	if (rc)
1419		return rc;
1420
1421	to_ndns(dev)->force_raw = force_raw;
1422	return len;
1423}
1424
1425static ssize_t force_raw_show(struct device *dev,
1426		struct device_attribute *attr, char *buf)
1427{
1428	return sprintf(buf, "%d\n", to_ndns(dev)->force_raw);
1429}
1430static DEVICE_ATTR_RW(force_raw);
1431
1432static struct attribute *nd_namespace_attributes[] = {
1433	&dev_attr_nstype.attr,
1434	&dev_attr_size.attr,
1435	&dev_attr_mode.attr,
1436	&dev_attr_uuid.attr,
1437	&dev_attr_holder.attr,
1438	&dev_attr_resource.attr,
1439	&dev_attr_alt_name.attr,
1440	&dev_attr_force_raw.attr,
1441	&dev_attr_sector_size.attr,
1442	&dev_attr_dpa_extents.attr,
 
1443	NULL,
1444};
1445
1446static umode_t namespace_visible(struct kobject *kobj,
1447		struct attribute *a, int n)
1448{
1449	struct device *dev = container_of(kobj, struct device, kobj);
1450
1451	if (a == &dev_attr_resource.attr) {
1452		if (is_namespace_blk(dev))
1453			return 0;
1454		return a->mode;
1455	}
1456
1457	if (is_namespace_pmem(dev) || is_namespace_blk(dev)) {
1458		if (a == &dev_attr_size.attr)
1459			return 0644;
1460
1461		if (is_namespace_pmem(dev) && a == &dev_attr_sector_size.attr)
1462			return 0;
1463
1464		return a->mode;
1465	}
1466
1467	if (a == &dev_attr_nstype.attr || a == &dev_attr_size.attr
1468			|| a == &dev_attr_holder.attr
1469			|| a == &dev_attr_force_raw.attr
1470			|| a == &dev_attr_mode.attr)
 
1471		return a->mode;
1472
1473	return 0;
1474}
1475
1476static struct attribute_group nd_namespace_attribute_group = {
1477	.attrs = nd_namespace_attributes,
1478	.is_visible = namespace_visible,
1479};
1480
1481static const struct attribute_group *nd_namespace_attribute_groups[] = {
1482	&nd_device_attribute_group,
1483	&nd_namespace_attribute_group,
1484	&nd_numa_attribute_group,
1485	NULL,
1486};
1487
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1488struct nd_namespace_common *nvdimm_namespace_common_probe(struct device *dev)
1489{
1490	struct nd_btt *nd_btt = is_nd_btt(dev) ? to_nd_btt(dev) : NULL;
1491	struct nd_pfn *nd_pfn = is_nd_pfn(dev) ? to_nd_pfn(dev) : NULL;
1492	struct nd_dax *nd_dax = is_nd_dax(dev) ? to_nd_dax(dev) : NULL;
1493	struct nd_namespace_common *ndns = NULL;
1494	resource_size_t size;
1495
1496	if (nd_btt || nd_pfn || nd_dax) {
1497		if (nd_btt)
1498			ndns = nd_btt->ndns;
1499		else if (nd_pfn)
1500			ndns = nd_pfn->ndns;
1501		else if (nd_dax)
1502			ndns = nd_dax->nd_pfn.ndns;
1503
1504		if (!ndns)
1505			return ERR_PTR(-ENODEV);
1506
1507		/*
1508		 * Flush any in-progess probes / removals in the driver
1509		 * for the raw personality of this namespace.
1510		 */
1511		device_lock(&ndns->dev);
1512		device_unlock(&ndns->dev);
1513		if (ndns->dev.driver) {
1514			dev_dbg(&ndns->dev, "is active, can't bind %s\n",
1515					dev_name(dev));
1516			return ERR_PTR(-EBUSY);
1517		}
1518		if (dev_WARN_ONCE(&ndns->dev, ndns->claim != dev,
1519					"host (%s) vs claim (%s) mismatch\n",
1520					dev_name(dev),
1521					dev_name(ndns->claim)))
1522			return ERR_PTR(-ENXIO);
1523	} else {
1524		ndns = to_ndns(dev);
1525		if (ndns->claim) {
1526			dev_dbg(dev, "claimed by %s, failing probe\n",
1527				dev_name(ndns->claim));
1528
1529			return ERR_PTR(-ENXIO);
1530		}
1531	}
1532
 
 
 
1533	size = nvdimm_namespace_capacity(ndns);
1534	if (size < ND_MIN_NAMESPACE_SIZE) {
1535		dev_dbg(&ndns->dev, "%pa, too small must be at least %#x\n",
1536				&size, ND_MIN_NAMESPACE_SIZE);
1537		return ERR_PTR(-ENODEV);
1538	}
1539
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1540	if (is_namespace_pmem(&ndns->dev)) {
1541		struct nd_namespace_pmem *nspm;
1542
1543		nspm = to_nd_namespace_pmem(&ndns->dev);
1544		if (uuid_not_set(nspm->uuid, &ndns->dev, __func__))
1545			return ERR_PTR(-ENODEV);
1546	} else if (is_namespace_blk(&ndns->dev)) {
1547		struct nd_namespace_blk *nsblk;
1548
1549		nsblk = to_nd_namespace_blk(&ndns->dev);
1550		if (uuid_not_set(nsblk->uuid, &ndns->dev, __func__))
1551			return ERR_PTR(-ENODEV);
1552		if (!nsblk->lbasize) {
1553			dev_dbg(&ndns->dev, "%s: sector size not set\n",
1554				__func__);
1555			return ERR_PTR(-ENODEV);
1556		}
1557		if (!nd_namespace_blk_validate(nsblk))
1558			return ERR_PTR(-ENODEV);
1559	}
1560
1561	return ndns;
1562}
1563EXPORT_SYMBOL(nvdimm_namespace_common_probe);
1564
 
 
 
 
 
 
 
 
 
 
 
 
 
1565static struct device **create_namespace_io(struct nd_region *nd_region)
1566{
1567	struct nd_namespace_io *nsio;
1568	struct device *dev, **devs;
1569	struct resource *res;
1570
1571	nsio = kzalloc(sizeof(*nsio), GFP_KERNEL);
1572	if (!nsio)
1573		return NULL;
1574
1575	devs = kcalloc(2, sizeof(struct device *), GFP_KERNEL);
1576	if (!devs) {
1577		kfree(nsio);
1578		return NULL;
1579	}
1580
1581	dev = &nsio->common.dev;
1582	dev->type = &namespace_io_device_type;
1583	dev->parent = &nd_region->dev;
1584	res = &nsio->res;
1585	res->name = dev_name(&nd_region->dev);
1586	res->flags = IORESOURCE_MEM;
1587	res->start = nd_region->ndr_start;
1588	res->end = res->start + nd_region->ndr_size - 1;
1589
1590	devs[0] = dev;
1591	return devs;
1592}
1593
1594static bool has_uuid_at_pos(struct nd_region *nd_region, u8 *uuid,
1595		u64 cookie, u16 pos)
1596{
1597	struct nd_namespace_label *found = NULL;
1598	int i;
1599
1600	for (i = 0; i < nd_region->ndr_mappings; i++) {
1601		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
 
 
1602		struct nd_label_ent *label_ent;
1603		bool found_uuid = false;
1604
1605		list_for_each_entry(label_ent, &nd_mapping->labels, list) {
1606			struct nd_namespace_label *nd_label = label_ent->label;
1607			u16 position, nlabel;
1608			u64 isetcookie;
1609
1610			if (!nd_label)
1611				continue;
1612			isetcookie = __le64_to_cpu(nd_label->isetcookie);
1613			position = __le16_to_cpu(nd_label->position);
1614			nlabel = __le16_to_cpu(nd_label->nlabel);
 
1615
1616			if (isetcookie != cookie)
1617				continue;
1618
1619			if (memcmp(nd_label->uuid, uuid, NSLABEL_UUID_LEN) != 0)
 
1620				continue;
1621
1622			if (found_uuid) {
1623				dev_dbg(to_ndd(nd_mapping)->dev,
1624						"%s duplicate entry for uuid\n",
1625						__func__);
1626				return false;
1627			}
1628			found_uuid = true;
1629			if (nlabel != nd_region->ndr_mappings)
1630				continue;
1631			if (position != pos)
1632				continue;
1633			found = nd_label;
1634			break;
1635		}
1636		if (found)
1637			break;
1638	}
1639	return found != NULL;
1640}
1641
1642static int select_pmem_id(struct nd_region *nd_region, u8 *pmem_id)
1643{
1644	int i;
1645
1646	if (!pmem_id)
1647		return -ENODEV;
1648
1649	for (i = 0; i < nd_region->ndr_mappings; i++) {
1650		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
1651		struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
1652		struct nd_namespace_label *nd_label = NULL;
1653		u64 hw_start, hw_end, pmem_start, pmem_end;
1654		struct nd_label_ent *label_ent;
1655
1656		lockdep_assert_held(&nd_mapping->lock);
1657		list_for_each_entry(label_ent, &nd_mapping->labels, list) {
1658			nd_label = label_ent->label;
1659			if (!nd_label)
1660				continue;
1661			if (memcmp(nd_label->uuid, pmem_id, NSLABEL_UUID_LEN) == 0)
1662				break;
1663			nd_label = NULL;
1664		}
1665
1666		if (!nd_label) {
1667			WARN_ON(1);
1668			return -EINVAL;
1669		}
1670
1671		/*
1672		 * Check that this label is compliant with the dpa
1673		 * range published in NFIT
1674		 */
1675		hw_start = nd_mapping->start;
1676		hw_end = hw_start + nd_mapping->size;
1677		pmem_start = __le64_to_cpu(nd_label->dpa);
1678		pmem_end = pmem_start + __le64_to_cpu(nd_label->rawsize);
1679		if (pmem_start >= hw_start && pmem_start < hw_end
1680				&& pmem_end <= hw_end && pmem_end > hw_start)
1681			/* pass */;
1682		else {
1683			dev_dbg(&nd_region->dev, "%s invalid label for %pUb\n",
1684					dev_name(ndd->dev), nd_label->uuid);
 
1685			return -EINVAL;
1686		}
1687
1688		/* move recently validated label to the front of the list */
1689		list_move(&label_ent->list, &nd_mapping->labels);
1690	}
1691	return 0;
1692}
1693
1694/**
1695 * create_namespace_pmem - validate interleave set labelling, retrieve label0
1696 * @nd_region: region with mappings to validate
1697 * @nspm: target namespace to create
1698 * @nd_label: target pmem namespace label to evaluate
 
 
1699 */
1700struct device *create_namespace_pmem(struct nd_region *nd_region,
1701		struct nd_namespace_label *nd_label)
 
1702{
 
 
 
 
1703	u64 altcookie = nd_region_interleave_set_altcookie(nd_region);
1704	u64 cookie = nd_region_interleave_set_cookie(nd_region);
1705	struct nd_label_ent *label_ent;
1706	struct nd_namespace_pmem *nspm;
1707	struct nd_mapping *nd_mapping;
1708	resource_size_t size = 0;
1709	struct resource *res;
1710	struct device *dev;
 
1711	int rc = 0;
1712	u16 i;
1713
1714	if (cookie == 0) {
1715		dev_dbg(&nd_region->dev, "invalid interleave-set-cookie\n");
1716		return ERR_PTR(-ENXIO);
1717	}
1718
1719	if (__le64_to_cpu(nd_label->isetcookie) != cookie) {
1720		dev_dbg(&nd_region->dev, "invalid cookie in label: %pUb\n",
1721				nd_label->uuid);
1722		if (__le64_to_cpu(nd_label->isetcookie) != altcookie)
1723			return ERR_PTR(-EAGAIN);
1724
1725		dev_dbg(&nd_region->dev, "valid altcookie in label: %pUb\n",
1726				nd_label->uuid);
1727	}
1728
1729	nspm = kzalloc(sizeof(*nspm), GFP_KERNEL);
1730	if (!nspm)
1731		return ERR_PTR(-ENOMEM);
1732
1733	nspm->id = -1;
1734	dev = &nspm->nsio.common.dev;
1735	dev->type = &namespace_pmem_device_type;
1736	dev->parent = &nd_region->dev;
1737	res = &nspm->nsio.res;
1738	res->name = dev_name(&nd_region->dev);
1739	res->flags = IORESOURCE_MEM;
1740
1741	for (i = 0; i < nd_region->ndr_mappings; i++) {
1742		if (has_uuid_at_pos(nd_region, nd_label->uuid, cookie, i))
 
1743			continue;
1744		if (has_uuid_at_pos(nd_region, nd_label->uuid, altcookie, i))
1745			continue;
1746		break;
1747	}
1748
1749	if (i < nd_region->ndr_mappings) {
1750		struct nvdimm_drvdata *ndd = to_ndd(&nd_region->mapping[i]);
1751
1752		/*
1753		 * Give up if we don't find an instance of a uuid at each
1754		 * position (from 0 to nd_region->ndr_mappings - 1), or if we
1755		 * find a dimm with two instances of the same uuid.
1756		 */
1757		dev_err(&nd_region->dev, "%s missing label for %pUb\n",
1758				dev_name(ndd->dev), nd_label->uuid);
1759		rc = -EINVAL;
1760		goto err;
1761	}
1762
1763	/*
1764	 * Fix up each mapping's 'labels' to have the validated pmem label for
1765	 * that position at labels[0], and NULL at labels[1].  In the process,
1766	 * check that the namespace aligns with interleave-set.  We know
1767	 * that it does not overlap with any blk namespaces by virtue of
1768	 * the dimm being enabled (i.e. nd_label_reserve_dpa()
1769	 * succeeded).
1770	 */
1771	rc = select_pmem_id(nd_region, nd_label->uuid);
 
1772	if (rc)
1773		goto err;
1774
1775	/* Calculate total size and populate namespace properties from label0 */
1776	for (i = 0; i < nd_region->ndr_mappings; i++) {
1777		struct nd_namespace_label *label0;
 
1778
1779		nd_mapping = &nd_region->mapping[i];
1780		label_ent = list_first_entry_or_null(&nd_mapping->labels,
1781				typeof(*label_ent), list);
1782		label0 = label_ent ? label_ent->label : 0;
1783
1784		if (!label0) {
1785			WARN_ON(1);
1786			continue;
1787		}
1788
1789		size += __le64_to_cpu(label0->rawsize);
1790		if (__le16_to_cpu(label0->position) != 0)
 
1791			continue;
1792		WARN_ON(nspm->alt_name || nspm->uuid);
1793		nspm->alt_name = kmemdup((void __force *) label0->name,
1794				NSLABEL_NAME_LEN, GFP_KERNEL);
1795		nspm->uuid = kmemdup((void __force *) label0->uuid,
1796				NSLABEL_UUID_LEN, GFP_KERNEL);
 
 
 
1797	}
1798
1799	if (!nspm->alt_name || !nspm->uuid) {
1800		rc = -ENOMEM;
1801		goto err;
1802	}
1803
1804	nd_namespace_pmem_set_resource(nd_region, nspm, size);
1805
1806	return dev;
1807 err:
1808	namespace_pmem_release(dev);
1809	switch (rc) {
1810	case -EINVAL:
1811		dev_dbg(&nd_region->dev, "%s: invalid label(s)\n", __func__);
1812		break;
1813	case -ENODEV:
1814		dev_dbg(&nd_region->dev, "%s: label not found\n", __func__);
1815		break;
1816	default:
1817		dev_dbg(&nd_region->dev, "%s: unexpected err: %d\n",
1818				__func__, rc);
1819		break;
1820	}
1821	return ERR_PTR(rc);
1822}
1823
1824struct resource *nsblk_add_resource(struct nd_region *nd_region,
1825		struct nvdimm_drvdata *ndd, struct nd_namespace_blk *nsblk,
1826		resource_size_t start)
1827{
1828	struct nd_label_id label_id;
1829	struct resource *res;
1830
1831	nd_label_gen_id(&label_id, nsblk->uuid, NSLABEL_FLAG_LOCAL);
1832	res = krealloc(nsblk->res,
1833			sizeof(void *) * (nsblk->num_resources + 1),
1834			GFP_KERNEL);
1835	if (!res)
1836		return NULL;
1837	nsblk->res = (struct resource **) res;
1838	for_each_dpa_resource(ndd, res)
1839		if (strcmp(res->name, label_id.id) == 0
1840				&& res->start == start) {
1841			nsblk->res[nsblk->num_resources++] = res;
1842			return res;
1843		}
1844	return NULL;
1845}
1846
1847static struct device *nd_namespace_blk_create(struct nd_region *nd_region)
1848{
1849	struct nd_namespace_blk *nsblk;
1850	struct device *dev;
1851
1852	if (!is_nd_blk(&nd_region->dev))
1853		return NULL;
1854
1855	nsblk = kzalloc(sizeof(*nsblk), GFP_KERNEL);
1856	if (!nsblk)
1857		return NULL;
1858
1859	dev = &nsblk->common.dev;
1860	dev->type = &namespace_blk_device_type;
1861	nsblk->id = ida_simple_get(&nd_region->ns_ida, 0, 0, GFP_KERNEL);
1862	if (nsblk->id < 0) {
1863		kfree(nsblk);
1864		return NULL;
1865	}
1866	dev_set_name(dev, "namespace%d.%d", nd_region->id, nsblk->id);
1867	dev->parent = &nd_region->dev;
1868	dev->groups = nd_namespace_attribute_groups;
1869
1870	return &nsblk->common.dev;
1871}
1872
1873static struct device *nd_namespace_pmem_create(struct nd_region *nd_region)
1874{
1875	struct nd_namespace_pmem *nspm;
1876	struct resource *res;
1877	struct device *dev;
1878
1879	if (!is_nd_pmem(&nd_region->dev))
1880		return NULL;
1881
1882	nspm = kzalloc(sizeof(*nspm), GFP_KERNEL);
1883	if (!nspm)
1884		return NULL;
1885
1886	dev = &nspm->nsio.common.dev;
1887	dev->type = &namespace_pmem_device_type;
1888	dev->parent = &nd_region->dev;
1889	res = &nspm->nsio.res;
1890	res->name = dev_name(&nd_region->dev);
1891	res->flags = IORESOURCE_MEM;
1892
1893	nspm->id = ida_simple_get(&nd_region->ns_ida, 0, 0, GFP_KERNEL);
1894	if (nspm->id < 0) {
1895		kfree(nspm);
1896		return NULL;
1897	}
1898	dev_set_name(dev, "namespace%d.%d", nd_region->id, nspm->id);
1899	dev->parent = &nd_region->dev;
1900	dev->groups = nd_namespace_attribute_groups;
1901	nd_namespace_pmem_set_resource(nd_region, nspm, 0);
1902
1903	return dev;
1904}
1905
 
 
1906void nd_region_create_ns_seed(struct nd_region *nd_region)
1907{
1908	WARN_ON(!is_nvdimm_bus_locked(&nd_region->dev));
1909
1910	if (nd_region_to_nstype(nd_region) == ND_DEVICE_NAMESPACE_IO)
1911		return;
1912
1913	if (is_nd_blk(&nd_region->dev))
1914		nd_region->ns_seed = nd_namespace_blk_create(nd_region);
1915	else
1916		nd_region->ns_seed = nd_namespace_pmem_create(nd_region);
1917
1918	/*
1919	 * Seed creation failures are not fatal, provisioning is simply
1920	 * disabled until memory becomes available
1921	 */
1922	if (!nd_region->ns_seed)
1923		dev_err(&nd_region->dev, "failed to create %s namespace\n",
1924				is_nd_blk(&nd_region->dev) ? "blk" : "pmem");
1925	else
 
 
1926		nd_device_register(nd_region->ns_seed);
 
1927}
1928
1929void nd_region_create_dax_seed(struct nd_region *nd_region)
1930{
1931	WARN_ON(!is_nvdimm_bus_locked(&nd_region->dev));
1932	nd_region->dax_seed = nd_dax_create(nd_region);
1933	/*
1934	 * Seed creation failures are not fatal, provisioning is simply
1935	 * disabled until memory becomes available
1936	 */
1937	if (!nd_region->dax_seed)
1938		dev_err(&nd_region->dev, "failed to create dax namespace\n");
1939}
1940
1941void nd_region_create_pfn_seed(struct nd_region *nd_region)
1942{
1943	WARN_ON(!is_nvdimm_bus_locked(&nd_region->dev));
1944	nd_region->pfn_seed = nd_pfn_create(nd_region);
1945	/*
1946	 * Seed creation failures are not fatal, provisioning is simply
1947	 * disabled until memory becomes available
1948	 */
1949	if (!nd_region->pfn_seed)
1950		dev_err(&nd_region->dev, "failed to create pfn namespace\n");
1951}
1952
1953void nd_region_create_btt_seed(struct nd_region *nd_region)
1954{
1955	WARN_ON(!is_nvdimm_bus_locked(&nd_region->dev));
1956	nd_region->btt_seed = nd_btt_create(nd_region);
1957	/*
1958	 * Seed creation failures are not fatal, provisioning is simply
1959	 * disabled until memory becomes available
1960	 */
1961	if (!nd_region->btt_seed)
1962		dev_err(&nd_region->dev, "failed to create btt namespace\n");
1963}
1964
1965static int add_namespace_resource(struct nd_region *nd_region,
1966		struct nd_namespace_label *nd_label, struct device **devs,
1967		int count)
1968{
1969	struct nd_mapping *nd_mapping = &nd_region->mapping[0];
1970	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
1971	int i;
1972
1973	for (i = 0; i < count; i++) {
1974		u8 *uuid = namespace_to_uuid(devs[i]);
1975		struct resource *res;
1976
1977		if (IS_ERR_OR_NULL(uuid)) {
1978			WARN_ON(1);
1979			continue;
1980		}
1981
1982		if (memcmp(uuid, nd_label->uuid, NSLABEL_UUID_LEN) != 0)
1983			continue;
1984		if (is_namespace_blk(devs[i])) {
1985			res = nsblk_add_resource(nd_region, ndd,
1986					to_nd_namespace_blk(devs[i]),
1987					__le64_to_cpu(nd_label->dpa));
1988			if (!res)
1989				return -ENXIO;
1990			nd_dbg_dpa(nd_region, ndd, res, "%d assign\n", count);
1991		} else {
1992			dev_err(&nd_region->dev,
1993					"error: conflicting extents for uuid: %pUb\n",
1994					nd_label->uuid);
1995			return -ENXIO;
1996		}
1997		break;
1998	}
1999
2000	return i;
2001}
2002
2003struct device *create_namespace_blk(struct nd_region *nd_region,
2004		struct nd_namespace_label *nd_label, int count)
2005{
2006
2007	struct nd_mapping *nd_mapping = &nd_region->mapping[0];
2008	struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
2009	struct nd_namespace_blk *nsblk;
2010	char name[NSLABEL_NAME_LEN];
2011	struct device *dev = NULL;
2012	struct resource *res;
2013
2014	nsblk = kzalloc(sizeof(*nsblk), GFP_KERNEL);
2015	if (!nsblk)
2016		return ERR_PTR(-ENOMEM);
2017	dev = &nsblk->common.dev;
2018	dev->type = &namespace_blk_device_type;
2019	dev->parent = &nd_region->dev;
2020	nsblk->id = -1;
2021	nsblk->lbasize = __le64_to_cpu(nd_label->lbasize);
2022	nsblk->uuid = kmemdup(nd_label->uuid, NSLABEL_UUID_LEN,
2023			GFP_KERNEL);
2024	if (!nsblk->uuid)
2025		goto blk_err;
2026	memcpy(name, nd_label->name, NSLABEL_NAME_LEN);
2027	if (name[0])
2028		nsblk->alt_name = kmemdup(name, NSLABEL_NAME_LEN,
2029				GFP_KERNEL);
2030	res = nsblk_add_resource(nd_region, ndd, nsblk,
2031			__le64_to_cpu(nd_label->dpa));
2032	if (!res)
2033		goto blk_err;
2034	nd_dbg_dpa(nd_region, ndd, res, "%d: assign\n", count);
2035	return dev;
2036 blk_err:
2037	namespace_blk_release(dev);
2038	return ERR_PTR(-ENXIO);
2039}
2040
2041static int cmp_dpa(const void *a, const void *b)
2042{
2043	const struct device *dev_a = *(const struct device **) a;
2044	const struct device *dev_b = *(const struct device **) b;
2045	struct nd_namespace_blk *nsblk_a, *nsblk_b;
2046	struct nd_namespace_pmem *nspm_a, *nspm_b;
2047
2048	if (is_namespace_io(dev_a))
2049		return 0;
2050
2051	if (is_namespace_blk(dev_a)) {
2052		nsblk_a = to_nd_namespace_blk(dev_a);
2053		nsblk_b = to_nd_namespace_blk(dev_b);
2054
2055		return memcmp(&nsblk_a->res[0]->start, &nsblk_b->res[0]->start,
2056				sizeof(resource_size_t));
2057	}
2058
2059	nspm_a = to_nd_namespace_pmem(dev_a);
2060	nspm_b = to_nd_namespace_pmem(dev_b);
2061
2062	return memcmp(&nspm_a->nsio.res.start, &nspm_b->nsio.res.start,
2063			sizeof(resource_size_t));
2064}
2065
2066static struct device **scan_labels(struct nd_region *nd_region)
2067{
2068	int i, count = 0;
2069	struct device *dev, **devs = NULL;
2070	struct nd_label_ent *label_ent, *e;
2071	struct nd_mapping *nd_mapping = &nd_region->mapping[0];
 
2072	resource_size_t map_end = nd_mapping->start + nd_mapping->size - 1;
2073
2074	/* "safe" because create_namespace_pmem() might list_move() label_ent */
2075	list_for_each_entry_safe(label_ent, e, &nd_mapping->labels, list) {
2076		struct nd_namespace_label *nd_label = label_ent->label;
2077		struct device **__devs;
2078		u32 flags;
2079
2080		if (!nd_label)
2081			continue;
2082		flags = __le32_to_cpu(nd_label->flags);
2083		if (is_nd_blk(&nd_region->dev)
2084				== !!(flags & NSLABEL_FLAG_LOCAL))
2085			/* pass, region matches label type */;
2086		else
2087			continue;
2088
2089		/* skip labels that describe extents outside of the region */
2090		if (nd_label->dpa < nd_mapping->start || nd_label->dpa > map_end)
 
2091			continue;
2092
2093		i = add_namespace_resource(nd_region, nd_label, devs, count);
2094		if (i < 0)
2095			goto err;
2096		if (i < count)
2097			continue;
2098		__devs = kcalloc(count + 2, sizeof(dev), GFP_KERNEL);
2099		if (!__devs)
2100			goto err;
2101		memcpy(__devs, devs, sizeof(dev) * count);
2102		kfree(devs);
2103		devs = __devs;
2104
2105		if (is_nd_blk(&nd_region->dev)) {
2106			dev = create_namespace_blk(nd_region, nd_label, count);
2107			if (IS_ERR(dev))
 
 
 
 
 
 
 
2108				goto err;
 
 
2109			devs[count++] = dev;
2110		} else {
2111			dev = create_namespace_pmem(nd_region, nd_label);
2112			if (IS_ERR(dev)) {
2113				switch (PTR_ERR(dev)) {
2114				case -EAGAIN:
2115					/* skip invalid labels */
2116					continue;
2117				case -ENODEV:
2118					/* fallthrough to seed creation */
2119					break;
2120				default:
2121					goto err;
2122				}
2123			} else
2124				devs[count++] = dev;
2125		}
2126	}
2127
2128	dev_dbg(&nd_region->dev, "%s: discovered %d %s namespace%s\n",
2129			__func__, count, is_nd_blk(&nd_region->dev)
2130			? "blk" : "pmem", count == 1 ? "" : "s");
2131
2132	if (count == 0) {
 
 
2133		/* Publish a zero-sized namespace for userspace to configure. */
2134		nd_mapping_free_labels(nd_mapping);
2135
2136		devs = kcalloc(2, sizeof(dev), GFP_KERNEL);
2137		if (!devs)
2138			goto err;
2139		if (is_nd_blk(&nd_region->dev)) {
2140			struct nd_namespace_blk *nsblk;
2141
2142			nsblk = kzalloc(sizeof(*nsblk), GFP_KERNEL);
2143			if (!nsblk)
2144				goto err;
2145			dev = &nsblk->common.dev;
2146			dev->type = &namespace_blk_device_type;
2147		} else {
2148			struct nd_namespace_pmem *nspm;
2149
2150			nspm = kzalloc(sizeof(*nspm), GFP_KERNEL);
2151			if (!nspm)
2152				goto err;
2153			dev = &nspm->nsio.common.dev;
2154			dev->type = &namespace_pmem_device_type;
2155			nd_namespace_pmem_set_resource(nd_region, nspm, 0);
2156		}
2157		dev->parent = &nd_region->dev;
2158		devs[count++] = dev;
2159	} else if (is_nd_pmem(&nd_region->dev)) {
2160		/* clean unselected labels */
2161		for (i = 0; i < nd_region->ndr_mappings; i++) {
2162			struct list_head *l, *e;
2163			LIST_HEAD(list);
2164			int j;
2165
2166			nd_mapping = &nd_region->mapping[i];
2167			if (list_empty(&nd_mapping->labels)) {
2168				WARN_ON(1);
2169				continue;
2170			}
2171
2172			j = count;
2173			list_for_each_safe(l, e, &nd_mapping->labels) {
2174				if (!j--)
2175					break;
2176				list_move_tail(l, &list);
2177			}
2178			nd_mapping_free_labels(nd_mapping);
2179			list_splice_init(&list, &nd_mapping->labels);
2180		}
2181	}
2182
2183	if (count > 1)
2184		sort(devs, count, sizeof(struct device *), cmp_dpa, NULL);
2185
2186	return devs;
2187
2188 err:
2189	if (devs) {
2190		for (i = 0; devs[i]; i++)
2191			if (is_nd_blk(&nd_region->dev))
2192				namespace_blk_release(devs[i]);
2193			else
2194				namespace_pmem_release(devs[i]);
2195		kfree(devs);
2196	}
2197	return NULL;
2198}
2199
2200static struct device **create_namespaces(struct nd_region *nd_region)
2201{
2202	struct nd_mapping *nd_mapping = &nd_region->mapping[0];
2203	struct device **devs;
2204	int i;
2205
2206	if (nd_region->ndr_mappings == 0)
2207		return NULL;
2208
2209	/* lock down all mappings while we scan labels */
2210	for (i = 0; i < nd_region->ndr_mappings; i++) {
2211		nd_mapping = &nd_region->mapping[i];
2212		mutex_lock_nested(&nd_mapping->lock, i);
2213	}
2214
2215	devs = scan_labels(nd_region);
2216
2217	for (i = 0; i < nd_region->ndr_mappings; i++) {
2218		int reverse = nd_region->ndr_mappings - 1 - i;
2219
2220		nd_mapping = &nd_region->mapping[reverse];
2221		mutex_unlock(&nd_mapping->lock);
2222	}
2223
2224	return devs;
2225}
2226
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2227static int init_active_labels(struct nd_region *nd_region)
2228{
2229	int i;
2230
2231	for (i = 0; i < nd_region->ndr_mappings; i++) {
2232		struct nd_mapping *nd_mapping = &nd_region->mapping[i];
2233		struct nvdimm_drvdata *ndd = to_ndd(nd_mapping);
2234		struct nvdimm *nvdimm = nd_mapping->nvdimm;
2235		struct nd_label_ent *label_ent;
2236		int count, j;
2237
2238		/*
2239		 * If the dimm is disabled then prevent the region from
2240		 * being activated if it aliases DPA.
2241		 */
2242		if (!ndd) {
2243			if ((nvdimm->flags & NDD_ALIASING) == 0)
2244				return 0;
2245			dev_dbg(&nd_region->dev, "%s: is disabled, failing probe\n",
2246					dev_name(&nd_mapping->nvdimm->dev));
2247			return -ENXIO;
 
 
 
 
 
 
 
 
2248		}
2249		nd_mapping->ndd = ndd;
2250		atomic_inc(&nvdimm->busy);
2251		get_ndd(ndd);
2252
2253		count = nd_label_active_count(ndd);
2254		dev_dbg(ndd->dev, "%s: %d\n", __func__, count);
2255		if (!count)
2256			continue;
2257		for (j = 0; j < count; j++) {
2258			struct nd_namespace_label *label;
2259
2260			label_ent = kzalloc(sizeof(*label_ent), GFP_KERNEL);
2261			if (!label_ent)
2262				break;
2263			label = nd_label_active(ndd, j);
2264			label_ent->label = label;
2265
2266			mutex_lock(&nd_mapping->lock);
2267			list_add_tail(&label_ent->list, &nd_mapping->labels);
2268			mutex_unlock(&nd_mapping->lock);
2269		}
2270
2271		if (j >= count)
2272			continue;
 
 
 
 
2273
2274		mutex_lock(&nd_mapping->lock);
2275		nd_mapping_free_labels(nd_mapping);
2276		mutex_unlock(&nd_mapping->lock);
2277		return -ENOMEM;
2278	}
2279
2280	return 0;
 
2281}
2282
2283int nd_region_register_namespaces(struct nd_region *nd_region, int *err)
2284{
2285	struct device **devs = NULL;
2286	int i, rc = 0, type;
2287
2288	*err = 0;
2289	nvdimm_bus_lock(&nd_region->dev);
2290	rc = init_active_labels(nd_region);
2291	if (rc) {
2292		nvdimm_bus_unlock(&nd_region->dev);
2293		return rc;
2294	}
2295
2296	type = nd_region_to_nstype(nd_region);
2297	switch (type) {
2298	case ND_DEVICE_NAMESPACE_IO:
2299		devs = create_namespace_io(nd_region);
2300		break;
2301	case ND_DEVICE_NAMESPACE_PMEM:
2302	case ND_DEVICE_NAMESPACE_BLK:
2303		devs = create_namespaces(nd_region);
2304		break;
2305	default:
2306		break;
2307	}
2308	nvdimm_bus_unlock(&nd_region->dev);
2309
2310	if (!devs)
2311		return -ENODEV;
2312
2313	for (i = 0; devs[i]; i++) {
2314		struct device *dev = devs[i];
2315		int id;
2316
2317		if (type == ND_DEVICE_NAMESPACE_BLK) {
2318			struct nd_namespace_blk *nsblk;
2319
2320			nsblk = to_nd_namespace_blk(dev);
2321			id = ida_simple_get(&nd_region->ns_ida, 0, 0,
2322					GFP_KERNEL);
2323			nsblk->id = id;
2324		} else if (type == ND_DEVICE_NAMESPACE_PMEM) {
2325			struct nd_namespace_pmem *nspm;
2326
2327			nspm = to_nd_namespace_pmem(dev);
2328			id = ida_simple_get(&nd_region->ns_ida, 0, 0,
2329					GFP_KERNEL);
2330			nspm->id = id;
2331		} else
2332			id = i;
2333
2334		if (id < 0)
2335			break;
2336		dev_set_name(dev, "namespace%d.%d", nd_region->id, id);
2337		dev->groups = nd_namespace_attribute_groups;
 
2338		nd_device_register(dev);
2339	}
2340	if (i)
2341		nd_region->ns_seed = devs[0];
2342
2343	if (devs[i]) {
2344		int j;
2345
2346		for (j = i; devs[j]; j++) {
2347			struct device *dev = devs[j];
2348
2349			device_initialize(dev);
2350			put_device(dev);
2351		}
2352		*err = j - i;
2353		/*
2354		 * All of the namespaces we tried to register failed, so
2355		 * fail region activation.
2356		 */
2357		if (*err == 0)
2358			rc = -ENODEV;
2359	}
2360	kfree(devs);
2361
2362	if (rc == -ENODEV)
2363		return rc;
2364
2365	return i;
2366}