1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Copyright(c) 2013-2015 Intel Corporation. All rights reserved. 4 */ 5 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 6 #include <linux/moduleparam.h> 7 #include <linux/vmalloc.h> 8 #include <linux/device.h> 9 #include <linux/ndctl.h> 10 #include <linux/slab.h> 11 #include <linux/io.h> 12 #include <linux/fs.h> 13 #include <linux/mm.h> 14 #include "nd-core.h" 15 #include "label.h" 16 #include "pmem.h" 17 #include "nd.h" 18 19 static DEFINE_IDA(dimm_ida); 20 21 /* 22 * Retrieve bus and dimm handle and return if this bus supports 23 * get_config_data commands 24 */ 25 int nvdimm_check_config_data(struct device *dev) 26 { 27 struct nvdimm *nvdimm = to_nvdimm(dev); 28 29 if (!nvdimm->cmd_mask || 30 !test_bit(ND_CMD_GET_CONFIG_DATA, &nvdimm->cmd_mask)) { 31 if (test_bit(NDD_LABELING, &nvdimm->flags)) 32 return -ENXIO; 33 else 34 return -ENOTTY; 35 } 36 37 return 0; 38 } 39 40 static int validate_dimm(struct nvdimm_drvdata *ndd) 41 { 42 int rc; 43 44 if (!ndd) 45 return -EINVAL; 46 47 rc = nvdimm_check_config_data(ndd->dev); 48 if (rc) 49 dev_dbg(ndd->dev, "%ps: %s error: %d\n", 50 __builtin_return_address(0), __func__, rc); 51 return rc; 52 } 53 54 /** 55 * nvdimm_init_nsarea - determine the geometry of a dimm's namespace area 56 * @ndd: dimm to initialize 57 * 58 * Returns: %0 if the area is already valid, -errno on error 59 */ 60 int nvdimm_init_nsarea(struct nvdimm_drvdata *ndd) 61 { 62 struct nd_cmd_get_config_size *cmd = &ndd->nsarea; 63 struct nvdimm_bus *nvdimm_bus = walk_to_nvdimm_bus(ndd->dev); 64 struct nvdimm_bus_descriptor *nd_desc; 65 int rc = validate_dimm(ndd); 66 int cmd_rc = 0; 67 68 if (rc) 69 return rc; 70 71 if (cmd->config_size) 72 return 0; /* already valid */ 73 74 memset(cmd, 0, sizeof(*cmd)); 75 nd_desc = nvdimm_bus->nd_desc; 76 rc = nd_desc->ndctl(nd_desc, to_nvdimm(ndd->dev), 77 ND_CMD_GET_CONFIG_SIZE, cmd, sizeof(*cmd), &cmd_rc); 78 if (rc < 0) 79 return rc; 80 return cmd_rc; 81 } 82 83 int nvdimm_get_config_data(struct nvdimm_drvdata *ndd, void *buf, 84 size_t offset, size_t len) 85 { 86 struct nvdimm_bus *nvdimm_bus = walk_to_nvdimm_bus(ndd->dev); 87 struct nvdimm_bus_descriptor *nd_desc = nvdimm_bus->nd_desc; 88 int rc = validate_dimm(ndd), cmd_rc = 0; 89 struct nd_cmd_get_config_data_hdr *cmd; 90 size_t max_cmd_size, buf_offset; 91 92 if (rc) 93 return rc; 94 95 if (offset + len > ndd->nsarea.config_size) 96 return -ENXIO; 97 98 max_cmd_size = min_t(u32, len, ndd->nsarea.max_xfer); 99 cmd = kvzalloc(max_cmd_size + sizeof(*cmd), GFP_KERNEL); 100 if (!cmd) 101 return -ENOMEM; 102 103 for (buf_offset = 0; len; 104 len -= cmd->in_length, buf_offset += cmd->in_length) { 105 size_t cmd_size; 106 107 cmd->in_offset = offset + buf_offset; 108 cmd->in_length = min(max_cmd_size, len); 109 110 cmd_size = sizeof(*cmd) + cmd->in_length; 111 112 rc = nd_desc->ndctl(nd_desc, to_nvdimm(ndd->dev), 113 ND_CMD_GET_CONFIG_DATA, cmd, cmd_size, &cmd_rc); 114 if (rc < 0) 115 break; 116 if (cmd_rc < 0) { 117 rc = cmd_rc; 118 break; 119 } 120 121 /* out_buf should be valid, copy it into our output buffer */ 122 memcpy(buf + buf_offset, cmd->out_buf, cmd->in_length); 123 } 124 kvfree(cmd); 125 126 return rc; 127 } 128 129 int nvdimm_set_config_data(struct nvdimm_drvdata *ndd, size_t offset, 130 void *buf, size_t len) 131 { 132 size_t max_cmd_size, buf_offset; 133 struct nd_cmd_set_config_hdr *cmd; 134 int rc = validate_dimm(ndd), cmd_rc = 0; 135 struct nvdimm_bus *nvdimm_bus = walk_to_nvdimm_bus(ndd->dev); 136 struct nvdimm_bus_descriptor *nd_desc = nvdimm_bus->nd_desc; 137 138 if (rc) 139 return rc; 140 141 if (offset + len > ndd->nsarea.config_size) 142 return -ENXIO; 143 144 max_cmd_size = min_t(u32, len, ndd->nsarea.max_xfer); 145 cmd = kvzalloc(max_cmd_size + sizeof(*cmd) + sizeof(u32), GFP_KERNEL); 146 if (!cmd) 147 return -ENOMEM; 148 149 for (buf_offset = 0; len; len -= cmd->in_length, 150 buf_offset += cmd->in_length) { 151 size_t cmd_size; 152 153 cmd->in_offset = offset + buf_offset; 154 cmd->in_length = min(max_cmd_size, len); 155 memcpy(cmd->in_buf, buf + buf_offset, cmd->in_length); 156 157 /* status is output in the last 4-bytes of the command buffer */ 158 cmd_size = sizeof(*cmd) + cmd->in_length + sizeof(u32); 159 160 rc = nd_desc->ndctl(nd_desc, to_nvdimm(ndd->dev), 161 ND_CMD_SET_CONFIG_DATA, cmd, cmd_size, &cmd_rc); 162 if (rc < 0) 163 break; 164 if (cmd_rc < 0) { 165 rc = cmd_rc; 166 break; 167 } 168 } 169 kvfree(cmd); 170 171 return rc; 172 } 173 174 void nvdimm_set_labeling(struct device *dev) 175 { 176 struct nvdimm *nvdimm = to_nvdimm(dev); 177 178 set_bit(NDD_LABELING, &nvdimm->flags); 179 } 180 181 void nvdimm_set_locked(struct device *dev) 182 { 183 struct nvdimm *nvdimm = to_nvdimm(dev); 184 185 set_bit(NDD_LOCKED, &nvdimm->flags); 186 } 187 188 void nvdimm_clear_locked(struct device *dev) 189 { 190 struct nvdimm *nvdimm = to_nvdimm(dev); 191 192 clear_bit(NDD_LOCKED, &nvdimm->flags); 193 } 194 195 static void nvdimm_release(struct device *dev) 196 { 197 struct nvdimm *nvdimm = to_nvdimm(dev); 198 199 ida_free(&dimm_ida, nvdimm->id); 200 kfree(nvdimm); 201 } 202 203 struct nvdimm *to_nvdimm(struct device *dev) 204 { 205 struct nvdimm *nvdimm = container_of(dev, struct nvdimm, dev); 206 207 WARN_ON(!is_nvdimm(dev)); 208 return nvdimm; 209 } 210 EXPORT_SYMBOL_GPL(to_nvdimm); 211 212 struct nvdimm_drvdata *to_ndd(struct nd_mapping *nd_mapping) 213 { 214 struct nvdimm *nvdimm = nd_mapping->nvdimm; 215 216 WARN_ON_ONCE(!is_nvdimm_bus_locked(&nvdimm->dev)); 217 218 return dev_get_drvdata(&nvdimm->dev); 219 } 220 EXPORT_SYMBOL(to_ndd); 221 222 void nvdimm_drvdata_release(struct kref *kref) 223 { 224 struct nvdimm_drvdata *ndd = container_of(kref, typeof(*ndd), kref); 225 struct device *dev = ndd->dev; 226 struct resource *res, *_r; 227 228 dev_dbg(dev, "trace\n"); 229 scoped_guard(nvdimm_bus, dev) { 230 for_each_dpa_resource_safe(ndd, res, _r) 231 nvdimm_free_dpa(ndd, res); 232 } 233 234 kvfree(ndd->data); 235 kfree(ndd); 236 put_device(dev); 237 } 238 239 void get_ndd(struct nvdimm_drvdata *ndd) 240 { 241 kref_get(&ndd->kref); 242 } 243 244 void put_ndd(struct nvdimm_drvdata *ndd) 245 { 246 if (ndd) 247 kref_put(&ndd->kref, nvdimm_drvdata_release); 248 } 249 250 const char *nvdimm_name(struct nvdimm *nvdimm) 251 { 252 return dev_name(&nvdimm->dev); 253 } 254 EXPORT_SYMBOL_GPL(nvdimm_name); 255 256 struct kobject *nvdimm_kobj(struct nvdimm *nvdimm) 257 { 258 return &nvdimm->dev.kobj; 259 } 260 EXPORT_SYMBOL_GPL(nvdimm_kobj); 261 262 unsigned long nvdimm_cmd_mask(struct nvdimm *nvdimm) 263 { 264 return nvdimm->cmd_mask; 265 } 266 EXPORT_SYMBOL_GPL(nvdimm_cmd_mask); 267 268 void *nvdimm_provider_data(struct nvdimm *nvdimm) 269 { 270 if (nvdimm) 271 return nvdimm->provider_data; 272 return NULL; 273 } 274 EXPORT_SYMBOL_GPL(nvdimm_provider_data); 275 276 static ssize_t commands_show(struct device *dev, 277 struct device_attribute *attr, char *buf) 278 { 279 struct nvdimm *nvdimm = to_nvdimm(dev); 280 int cmd, len = 0; 281 282 if (!nvdimm->cmd_mask) 283 return sprintf(buf, "\n"); 284 285 for_each_set_bit(cmd, &nvdimm->cmd_mask, BITS_PER_LONG) 286 len += sprintf(buf + len, "%s ", nvdimm_cmd_name(cmd)); 287 len += sprintf(buf + len, "\n"); 288 return len; 289 } 290 static DEVICE_ATTR_RO(commands); 291 292 static ssize_t flags_show(struct device *dev, 293 struct device_attribute *attr, char *buf) 294 { 295 struct nvdimm *nvdimm = to_nvdimm(dev); 296 297 return sprintf(buf, "%s%s\n", 298 test_bit(NDD_LABELING, &nvdimm->flags) ? "label " : "", 299 test_bit(NDD_LOCKED, &nvdimm->flags) ? "lock " : ""); 300 } 301 static DEVICE_ATTR_RO(flags); 302 303 static ssize_t state_show(struct device *dev, struct device_attribute *attr, 304 char *buf) 305 { 306 struct nvdimm *nvdimm = to_nvdimm(dev); 307 308 /* 309 * The state may be in the process of changing, userspace should 310 * quiesce probing if it wants a static answer 311 */ 312 nvdimm_bus_lock(dev); 313 nvdimm_bus_unlock(dev); 314 return sprintf(buf, "%s\n", atomic_read(&nvdimm->busy) 315 ? "active" : "idle"); 316 } 317 static DEVICE_ATTR_RO(state); 318 319 static ssize_t __available_slots_show(struct nvdimm_drvdata *ndd, char *buf) 320 { 321 struct device *dev; 322 u32 nfree; 323 324 if (!ndd) 325 return -ENXIO; 326 327 dev = ndd->dev; 328 guard(nvdimm_bus)(dev); 329 nfree = nd_label_nfree(ndd); 330 if (nfree - 1 > nfree) { 331 dev_WARN_ONCE(dev, 1, "we ate our last label?\n"); 332 nfree = 0; 333 } else 334 nfree--; 335 return sprintf(buf, "%d\n", nfree); 336 } 337 338 static ssize_t available_slots_show(struct device *dev, 339 struct device_attribute *attr, char *buf) 340 { 341 ssize_t rc; 342 343 device_lock(dev); 344 rc = __available_slots_show(dev_get_drvdata(dev), buf); 345 device_unlock(dev); 346 347 return rc; 348 } 349 static DEVICE_ATTR_RO(available_slots); 350 351 static ssize_t security_show(struct device *dev, 352 struct device_attribute *attr, char *buf) 353 { 354 struct nvdimm *nvdimm = to_nvdimm(dev); 355 356 /* 357 * For the test version we need to poll the "hardware" in order 358 * to get the updated status for unlock testing. 359 */ 360 if (IS_ENABLED(CONFIG_NVDIMM_SECURITY_TEST)) 361 nvdimm->sec.flags = nvdimm_security_flags(nvdimm, NVDIMM_USER); 362 363 if (test_bit(NVDIMM_SECURITY_OVERWRITE, &nvdimm->sec.flags)) 364 return sprintf(buf, "overwrite\n"); 365 if (test_bit(NVDIMM_SECURITY_DISABLED, &nvdimm->sec.flags)) 366 return sprintf(buf, "disabled\n"); 367 if (test_bit(NVDIMM_SECURITY_UNLOCKED, &nvdimm->sec.flags)) 368 return sprintf(buf, "unlocked\n"); 369 if (test_bit(NVDIMM_SECURITY_LOCKED, &nvdimm->sec.flags)) 370 return sprintf(buf, "locked\n"); 371 return -ENOTTY; 372 } 373 374 static ssize_t frozen_show(struct device *dev, 375 struct device_attribute *attr, char *buf) 376 { 377 struct nvdimm *nvdimm = to_nvdimm(dev); 378 379 return sprintf(buf, "%d\n", test_bit(NVDIMM_SECURITY_FROZEN, 380 &nvdimm->sec.flags)); 381 } 382 static DEVICE_ATTR_RO(frozen); 383 384 static ssize_t security_store(struct device *dev, 385 struct device_attribute *attr, const char *buf, size_t len) 386 387 { 388 /* 389 * Require all userspace triggered security management to be 390 * done while probing is idle and the DIMM is not in active use 391 * in any region. 392 */ 393 guard(device)(dev); 394 guard(nvdimm_bus)(dev); 395 wait_nvdimm_bus_probe_idle(dev); 396 return nvdimm_security_store(dev, buf, len); 397 } 398 static DEVICE_ATTR_RW(security); 399 400 static struct attribute *nvdimm_attributes[] = { 401 &dev_attr_state.attr, 402 &dev_attr_flags.attr, 403 &dev_attr_commands.attr, 404 &dev_attr_available_slots.attr, 405 &dev_attr_security.attr, 406 &dev_attr_frozen.attr, 407 NULL, 408 }; 409 410 static umode_t nvdimm_visible(struct kobject *kobj, struct attribute *a, int n) 411 { 412 struct device *dev = container_of(kobj, typeof(*dev), kobj); 413 struct nvdimm *nvdimm = to_nvdimm(dev); 414 415 if (a != &dev_attr_security.attr && a != &dev_attr_frozen.attr) 416 return a->mode; 417 if (!nvdimm->sec.flags) 418 return 0; 419 420 if (a == &dev_attr_security.attr) { 421 /* Are there any state mutation ops (make writable)? */ 422 if (nvdimm->sec.ops->freeze || nvdimm->sec.ops->disable 423 || nvdimm->sec.ops->change_key 424 || nvdimm->sec.ops->erase 425 || nvdimm->sec.ops->overwrite) 426 return a->mode; 427 return 0444; 428 } 429 430 if (nvdimm->sec.ops->freeze) 431 return a->mode; 432 return 0; 433 } 434 435 static const struct attribute_group nvdimm_attribute_group = { 436 .attrs = nvdimm_attributes, 437 .is_visible = nvdimm_visible, 438 }; 439 440 static ssize_t result_show(struct device *dev, struct device_attribute *attr, char *buf) 441 { 442 struct nvdimm *nvdimm = to_nvdimm(dev); 443 enum nvdimm_fwa_result result; 444 445 if (!nvdimm->fw_ops) 446 return -EOPNOTSUPP; 447 448 guard(nvdimm_bus)(dev); 449 result = nvdimm->fw_ops->activate_result(nvdimm); 450 451 switch (result) { 452 case NVDIMM_FWA_RESULT_NONE: 453 return sprintf(buf, "none\n"); 454 case NVDIMM_FWA_RESULT_SUCCESS: 455 return sprintf(buf, "success\n"); 456 case NVDIMM_FWA_RESULT_FAIL: 457 return sprintf(buf, "fail\n"); 458 case NVDIMM_FWA_RESULT_NOTSTAGED: 459 return sprintf(buf, "not_staged\n"); 460 case NVDIMM_FWA_RESULT_NEEDRESET: 461 return sprintf(buf, "need_reset\n"); 462 default: 463 return -ENXIO; 464 } 465 } 466 static DEVICE_ATTR_ADMIN_RO(result); 467 468 static ssize_t activate_show(struct device *dev, struct device_attribute *attr, char *buf) 469 { 470 struct nvdimm *nvdimm = to_nvdimm(dev); 471 enum nvdimm_fwa_state state; 472 473 if (!nvdimm->fw_ops) 474 return -EOPNOTSUPP; 475 476 guard(nvdimm_bus)(dev); 477 state = nvdimm->fw_ops->activate_state(nvdimm); 478 479 switch (state) { 480 case NVDIMM_FWA_IDLE: 481 return sprintf(buf, "idle\n"); 482 case NVDIMM_FWA_BUSY: 483 return sprintf(buf, "busy\n"); 484 case NVDIMM_FWA_ARMED: 485 return sprintf(buf, "armed\n"); 486 default: 487 return -ENXIO; 488 } 489 } 490 491 static ssize_t activate_store(struct device *dev, struct device_attribute *attr, 492 const char *buf, size_t len) 493 { 494 struct nvdimm *nvdimm = to_nvdimm(dev); 495 enum nvdimm_fwa_trigger arg; 496 int rc; 497 498 if (!nvdimm->fw_ops) 499 return -EOPNOTSUPP; 500 501 if (sysfs_streq(buf, "arm")) 502 arg = NVDIMM_FWA_ARM; 503 else if (sysfs_streq(buf, "disarm")) 504 arg = NVDIMM_FWA_DISARM; 505 else 506 return -EINVAL; 507 508 guard(nvdimm_bus)(dev); 509 rc = nvdimm->fw_ops->arm(nvdimm, arg); 510 511 if (rc < 0) 512 return rc; 513 return len; 514 } 515 static DEVICE_ATTR_ADMIN_RW(activate); 516 517 static struct attribute *nvdimm_firmware_attributes[] = { 518 &dev_attr_activate.attr, 519 &dev_attr_result.attr, 520 NULL, 521 }; 522 523 static umode_t nvdimm_firmware_visible(struct kobject *kobj, struct attribute *a, int n) 524 { 525 struct device *dev = container_of(kobj, typeof(*dev), kobj); 526 struct nvdimm_bus *nvdimm_bus = walk_to_nvdimm_bus(dev); 527 struct nvdimm_bus_descriptor *nd_desc = nvdimm_bus->nd_desc; 528 struct nvdimm *nvdimm = to_nvdimm(dev); 529 enum nvdimm_fwa_capability cap; 530 531 if (!nd_desc->fw_ops) 532 return 0; 533 if (!nvdimm->fw_ops) 534 return 0; 535 536 guard(nvdimm_bus)(dev); 537 cap = nd_desc->fw_ops->capability(nd_desc); 538 539 if (cap < NVDIMM_FWA_CAP_QUIESCE) 540 return 0; 541 542 return a->mode; 543 } 544 545 static const struct attribute_group nvdimm_firmware_attribute_group = { 546 .name = "firmware", 547 .attrs = nvdimm_firmware_attributes, 548 .is_visible = nvdimm_firmware_visible, 549 }; 550 551 static const struct attribute_group *nvdimm_attribute_groups[] = { 552 &nd_device_attribute_group, 553 &nvdimm_attribute_group, 554 &nvdimm_firmware_attribute_group, 555 NULL, 556 }; 557 558 static const struct device_type nvdimm_device_type = { 559 .name = "nvdimm", 560 .release = nvdimm_release, 561 .groups = nvdimm_attribute_groups, 562 }; 563 564 bool is_nvdimm(const struct device *dev) 565 { 566 return dev->type == &nvdimm_device_type; 567 } 568 569 static struct lock_class_key nvdimm_key; 570 571 struct nvdimm *__nvdimm_create(struct nvdimm_bus *nvdimm_bus, 572 void *provider_data, const struct attribute_group **groups, 573 unsigned long flags, unsigned long cmd_mask, int num_flush, 574 struct resource *flush_wpq, const char *dimm_id, 575 const struct nvdimm_security_ops *sec_ops, 576 const struct nvdimm_fw_ops *fw_ops) 577 { 578 struct nvdimm *nvdimm = kzalloc(sizeof(*nvdimm), GFP_KERNEL); 579 struct device *dev; 580 581 if (!nvdimm) 582 return NULL; 583 584 nvdimm->id = ida_alloc(&dimm_ida, GFP_KERNEL); 585 if (nvdimm->id < 0) { 586 kfree(nvdimm); 587 return NULL; 588 } 589 590 nvdimm->dimm_id = dimm_id; 591 nvdimm->provider_data = provider_data; 592 nvdimm->flags = flags; 593 nvdimm->cmd_mask = cmd_mask; 594 nvdimm->num_flush = num_flush; 595 nvdimm->flush_wpq = flush_wpq; 596 atomic_set(&nvdimm->busy, 0); 597 dev = &nvdimm->dev; 598 dev_set_name(dev, "nmem%d", nvdimm->id); 599 dev->parent = &nvdimm_bus->dev; 600 dev->type = &nvdimm_device_type; 601 dev->devt = MKDEV(nvdimm_major, nvdimm->id); 602 dev->groups = groups; 603 nvdimm->sec.ops = sec_ops; 604 nvdimm->fw_ops = fw_ops; 605 nvdimm->sec.overwrite_tmo = 0; 606 INIT_DELAYED_WORK(&nvdimm->dwork, nvdimm_security_overwrite_query); 607 /* 608 * Security state must be initialized before device_add() for 609 * attribute visibility. 610 */ 611 /* get security state and extended (master) state */ 612 nvdimm->sec.flags = nvdimm_security_flags(nvdimm, NVDIMM_USER); 613 nvdimm->sec.ext_flags = nvdimm_security_flags(nvdimm, NVDIMM_MASTER); 614 device_initialize(dev); 615 lockdep_set_class(&dev->mutex, &nvdimm_key); 616 if (test_bit(NDD_REGISTER_SYNC, &flags)) 617 nd_device_register_sync(dev); 618 else 619 nd_device_register(dev); 620 621 return nvdimm; 622 } 623 EXPORT_SYMBOL_GPL(__nvdimm_create); 624 625 void nvdimm_delete(struct nvdimm *nvdimm) 626 { 627 struct device *dev = &nvdimm->dev; 628 bool dev_put = false; 629 630 /* We are shutting down. Make state frozen artificially. */ 631 scoped_guard(nvdimm_bus, dev) { 632 set_bit(NVDIMM_SECURITY_FROZEN, &nvdimm->sec.flags); 633 dev_put = test_and_clear_bit(NDD_WORK_PENDING, &nvdimm->flags); 634 } 635 cancel_delayed_work_sync(&nvdimm->dwork); 636 if (dev_put) 637 put_device(dev); 638 nd_device_unregister(dev, ND_SYNC); 639 } 640 EXPORT_SYMBOL_GPL(nvdimm_delete); 641 642 static void shutdown_security_notify(void *data) 643 { 644 struct nvdimm *nvdimm = data; 645 646 sysfs_put(nvdimm->sec.overwrite_state); 647 } 648 649 int nvdimm_security_setup_events(struct device *dev) 650 { 651 struct nvdimm *nvdimm = to_nvdimm(dev); 652 653 if (!nvdimm->sec.flags || !nvdimm->sec.ops 654 || !nvdimm->sec.ops->overwrite) 655 return 0; 656 nvdimm->sec.overwrite_state = sysfs_get_dirent(dev->kobj.sd, "security"); 657 if (!nvdimm->sec.overwrite_state) 658 return -ENOMEM; 659 660 return devm_add_action_or_reset(dev, shutdown_security_notify, nvdimm); 661 } 662 EXPORT_SYMBOL_GPL(nvdimm_security_setup_events); 663 664 int nvdimm_in_overwrite(struct nvdimm *nvdimm) 665 { 666 return test_bit(NDD_SECURITY_OVERWRITE, &nvdimm->flags); 667 } 668 EXPORT_SYMBOL_GPL(nvdimm_in_overwrite); 669 670 int nvdimm_security_freeze(struct nvdimm *nvdimm) 671 { 672 int rc; 673 674 WARN_ON_ONCE(!is_nvdimm_bus_locked(&nvdimm->dev)); 675 676 if (!nvdimm->sec.ops || !nvdimm->sec.ops->freeze) 677 return -EOPNOTSUPP; 678 679 if (!nvdimm->sec.flags) 680 return -EIO; 681 682 if (test_bit(NDD_SECURITY_OVERWRITE, &nvdimm->flags)) { 683 dev_warn(&nvdimm->dev, "Overwrite operation in progress.\n"); 684 return -EBUSY; 685 } 686 687 rc = nvdimm->sec.ops->freeze(nvdimm); 688 nvdimm->sec.flags = nvdimm_security_flags(nvdimm, NVDIMM_USER); 689 690 return rc; 691 } 692 693 static unsigned long dpa_align(struct nd_region *nd_region) 694 { 695 struct device *dev = &nd_region->dev; 696 697 if (dev_WARN_ONCE(dev, !is_nvdimm_bus_locked(dev), 698 "bus lock required for capacity provision\n")) 699 return 0; 700 if (dev_WARN_ONCE(dev, !nd_region->ndr_mappings || nd_region->align 701 % nd_region->ndr_mappings, 702 "invalid region align %#lx mappings: %d\n", 703 nd_region->align, nd_region->ndr_mappings)) 704 return 0; 705 return nd_region->align / nd_region->ndr_mappings; 706 } 707 708 /** 709 * nd_pmem_max_contiguous_dpa - For the given dimm+region, return the max 710 * contiguous unallocated dpa range. 711 * @nd_region: constrain available space check to this reference region 712 * @nd_mapping: container of dpa-resource-root + labels 713 * 714 * Returns: %0 if there is an alignment error, otherwise the max 715 * unallocated dpa range 716 */ 717 resource_size_t nd_pmem_max_contiguous_dpa(struct nd_region *nd_region, 718 struct nd_mapping *nd_mapping) 719 { 720 struct nvdimm_drvdata *ndd = to_ndd(nd_mapping); 721 struct nvdimm_bus *nvdimm_bus; 722 resource_size_t max = 0; 723 struct resource *res; 724 unsigned long align; 725 726 /* if a dimm is disabled the available capacity is zero */ 727 if (!ndd) 728 return 0; 729 730 align = dpa_align(nd_region); 731 if (!align) 732 return 0; 733 734 nvdimm_bus = walk_to_nvdimm_bus(ndd->dev); 735 if (__reserve_free_pmem(&nd_region->dev, nd_mapping->nvdimm)) 736 return 0; 737 for_each_dpa_resource(ndd, res) { 738 resource_size_t start, end; 739 740 if (strcmp(res->name, "pmem-reserve") != 0) 741 continue; 742 /* trim free space relative to current alignment setting */ 743 start = ALIGN(res->start, align); 744 end = ALIGN_DOWN(res->end + 1, align) - 1; 745 if (end < start) 746 continue; 747 if (end - start + 1 > max) 748 max = end - start + 1; 749 } 750 release_free_pmem(nvdimm_bus, nd_mapping); 751 return max; 752 } 753 754 /** 755 * nd_pmem_available_dpa - for the given dimm+region account unallocated dpa 756 * @nd_mapping: container of dpa-resource-root + labels 757 * @nd_region: constrain available space check to this reference region 758 * 759 * Validate that a PMEM label, if present, aligns with the start of an 760 * interleave set. 761 * 762 * Returns: %0 if there is an alignment error, otherwise the unallocated dpa 763 */ 764 resource_size_t nd_pmem_available_dpa(struct nd_region *nd_region, 765 struct nd_mapping *nd_mapping) 766 { 767 struct nvdimm_drvdata *ndd = to_ndd(nd_mapping); 768 resource_size_t map_start, map_end, busy = 0; 769 struct resource *res; 770 unsigned long align; 771 772 if (!ndd) 773 return 0; 774 775 align = dpa_align(nd_region); 776 if (!align) 777 return 0; 778 779 map_start = nd_mapping->start; 780 map_end = map_start + nd_mapping->size - 1; 781 for_each_dpa_resource(ndd, res) { 782 resource_size_t start, end; 783 784 start = ALIGN_DOWN(res->start, align); 785 end = ALIGN(res->end + 1, align) - 1; 786 if (start >= map_start && start < map_end) { 787 if (end > map_end) { 788 nd_dbg_dpa(nd_region, ndd, res, 789 "misaligned to iset\n"); 790 return 0; 791 } 792 busy += end - start + 1; 793 } else if (end >= map_start && end <= map_end) { 794 busy += end - start + 1; 795 } else if (map_start > start && map_start < end) { 796 /* total eclipse of the mapping */ 797 busy += nd_mapping->size; 798 } 799 } 800 801 if (busy < nd_mapping->size) 802 return ALIGN_DOWN(nd_mapping->size - busy, align); 803 return 0; 804 } 805 806 void nvdimm_free_dpa(struct nvdimm_drvdata *ndd, struct resource *res) 807 { 808 WARN_ON_ONCE(!is_nvdimm_bus_locked(ndd->dev)); 809 kfree(res->name); 810 __release_region(&ndd->dpa, res->start, resource_size(res)); 811 } 812 813 struct resource *nvdimm_allocate_dpa(struct nvdimm_drvdata *ndd, 814 struct nd_label_id *label_id, resource_size_t start, 815 resource_size_t n) 816 { 817 char *name = kmemdup(label_id, sizeof(*label_id), GFP_KERNEL); 818 struct resource *res; 819 820 if (!name) 821 return NULL; 822 823 WARN_ON_ONCE(!is_nvdimm_bus_locked(ndd->dev)); 824 res = __request_region(&ndd->dpa, start, n, name, 0); 825 if (!res) 826 kfree(name); 827 return res; 828 } 829 830 /** 831 * nvdimm_allocated_dpa - sum up the dpa currently allocated to this label_id 832 * @ndd: container of dpa-resource-root + labels 833 * @label_id: dpa resource name of the form pmem-<human readable uuid> 834 * 835 * Returns: sum of the dpa allocated to the label_id 836 */ 837 resource_size_t nvdimm_allocated_dpa(struct nvdimm_drvdata *ndd, 838 struct nd_label_id *label_id) 839 { 840 resource_size_t allocated = 0; 841 struct resource *res; 842 843 for_each_dpa_resource(ndd, res) 844 if (strcmp(res->name, label_id->id) == 0) 845 allocated += resource_size(res); 846 847 return allocated; 848 } 849 850 static int count_dimms(struct device *dev, void *c) 851 { 852 int *count = c; 853 854 if (is_nvdimm(dev)) 855 (*count)++; 856 return 0; 857 } 858 859 int nvdimm_bus_check_dimm_count(struct nvdimm_bus *nvdimm_bus, int dimm_count) 860 { 861 int count = 0; 862 /* Flush any possible dimm registration failures */ 863 nd_synchronize(); 864 865 device_for_each_child(&nvdimm_bus->dev, &count, count_dimms); 866 dev_dbg(&nvdimm_bus->dev, "count: %d\n", count); 867 if (count != dimm_count) 868 return -ENXIO; 869 return 0; 870 } 871 EXPORT_SYMBOL_GPL(nvdimm_bus_check_dimm_count); 872 873 void __exit nvdimm_devs_exit(void) 874 { 875 ida_destroy(&dimm_ida); 876 } 877