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1/* 2 * edac_mc kernel module 3 * (C) 2005-2007 Linux Networx (http://lnxi.com) 4 * 5 * This file may be distributed under the terms of the 6 * GNU General Public License. 7 * 8 * Written Doug Thompson <norsk5@xmission.com> www.softwarebitmaker.com 9 * 10 * (c) 2012-2013 - Mauro Carvalho Chehab 11 * The entire API were re-written, and ported to use struct device 12 * 13 */ 14 15#include <linux/ctype.h> 16#include <linux/slab.h> 17#include <linux/edac.h> 18#include <linux/bug.h> 19#include <linux/pm_runtime.h> 20#include <linux/uaccess.h> 21 22#include "edac_mc.h" 23#include "edac_module.h" 24 25/* MC EDAC Controls, setable by module parameter, and sysfs */ 26static int edac_mc_log_ue = 1; 27static int edac_mc_log_ce = 1; 28static int edac_mc_panic_on_ue; 29static unsigned int edac_mc_poll_msec = 1000; 30 31/* Getter functions for above */ 32int edac_mc_get_log_ue(void) 33{ 34 return edac_mc_log_ue; 35} 36 37int edac_mc_get_log_ce(void) 38{ 39 return edac_mc_log_ce; 40} 41 42int edac_mc_get_panic_on_ue(void) 43{ 44 return edac_mc_panic_on_ue; 45} 46 47/* this is temporary */ 48unsigned int edac_mc_get_poll_msec(void) 49{ 50 return edac_mc_poll_msec; 51} 52 53static int edac_set_poll_msec(const char *val, const struct kernel_param *kp) 54{ 55 unsigned int i; 56 int ret; 57 58 if (!val) 59 return -EINVAL; 60 61 ret = kstrtouint(val, 0, &i); 62 if (ret) 63 return ret; 64 65 if (i < 1000) 66 return -EINVAL; 67 68 *((unsigned int *)kp->arg) = i; 69 70 /* notify edac_mc engine to reset the poll period */ 71 edac_mc_reset_delay_period(i); 72 73 return 0; 74} 75 76/* Parameter declarations for above */ 77module_param(edac_mc_panic_on_ue, int, 0644); 78MODULE_PARM_DESC(edac_mc_panic_on_ue, "Panic on uncorrected error: 0=off 1=on"); 79module_param(edac_mc_log_ue, int, 0644); 80MODULE_PARM_DESC(edac_mc_log_ue, 81 "Log uncorrectable error to console: 0=off 1=on"); 82module_param(edac_mc_log_ce, int, 0644); 83MODULE_PARM_DESC(edac_mc_log_ce, 84 "Log correctable error to console: 0=off 1=on"); 85module_param_call(edac_mc_poll_msec, edac_set_poll_msec, param_get_uint, 86 &edac_mc_poll_msec, 0644); 87MODULE_PARM_DESC(edac_mc_poll_msec, "Polling period in milliseconds"); 88 89static struct device *mci_pdev; 90 91/* 92 * various constants for Memory Controllers 93 */ 94static const char * const dev_types[] = { 95 [DEV_UNKNOWN] = "Unknown", 96 [DEV_X1] = "x1", 97 [DEV_X2] = "x2", 98 [DEV_X4] = "x4", 99 [DEV_X8] = "x8", 100 [DEV_X16] = "x16", 101 [DEV_X32] = "x32", 102 [DEV_X64] = "x64" 103}; 104 105static const char * const edac_caps[] = { 106 [EDAC_UNKNOWN] = "Unknown", 107 [EDAC_NONE] = "None", 108 [EDAC_RESERVED] = "Reserved", 109 [EDAC_PARITY] = "PARITY", 110 [EDAC_EC] = "EC", 111 [EDAC_SECDED] = "SECDED", 112 [EDAC_S2ECD2ED] = "S2ECD2ED", 113 [EDAC_S4ECD4ED] = "S4ECD4ED", 114 [EDAC_S8ECD8ED] = "S8ECD8ED", 115 [EDAC_S16ECD16ED] = "S16ECD16ED" 116}; 117 118#ifdef CONFIG_EDAC_LEGACY_SYSFS 119/* 120 * EDAC sysfs CSROW data structures and methods 121 */ 122 123#define to_csrow(k) container_of(k, struct csrow_info, dev) 124 125/* 126 * We need it to avoid namespace conflicts between the legacy API 127 * and the per-dimm/per-rank one 128 */ 129#define DEVICE_ATTR_LEGACY(_name, _mode, _show, _store) \ 130 static struct device_attribute dev_attr_legacy_##_name = __ATTR(_name, _mode, _show, _store) 131 132struct dev_ch_attribute { 133 struct device_attribute attr; 134 unsigned int channel; 135}; 136 137#define DEVICE_CHANNEL(_name, _mode, _show, _store, _var) \ 138 static struct dev_ch_attribute dev_attr_legacy_##_name = \ 139 { __ATTR(_name, _mode, _show, _store), (_var) } 140 141#define to_channel(k) (container_of(k, struct dev_ch_attribute, attr)->channel) 142 143/* Set of more default csrow<id> attribute show/store functions */ 144static ssize_t csrow_ue_count_show(struct device *dev, 145 struct device_attribute *mattr, char *data) 146{ 147 struct csrow_info *csrow = to_csrow(dev); 148 149 return sprintf(data, "%u\n", csrow->ue_count); 150} 151 152static ssize_t csrow_ce_count_show(struct device *dev, 153 struct device_attribute *mattr, char *data) 154{ 155 struct csrow_info *csrow = to_csrow(dev); 156 157 return sprintf(data, "%u\n", csrow->ce_count); 158} 159 160static ssize_t csrow_size_show(struct device *dev, 161 struct device_attribute *mattr, char *data) 162{ 163 struct csrow_info *csrow = to_csrow(dev); 164 int i; 165 u32 nr_pages = 0; 166 167 for (i = 0; i < csrow->nr_channels; i++) 168 nr_pages += csrow->channels[i]->dimm->nr_pages; 169 return sprintf(data, "%u\n", PAGES_TO_MiB(nr_pages)); 170} 171 172static ssize_t csrow_mem_type_show(struct device *dev, 173 struct device_attribute *mattr, char *data) 174{ 175 struct csrow_info *csrow = to_csrow(dev); 176 177 return sprintf(data, "%s\n", edac_mem_types[csrow->channels[0]->dimm->mtype]); 178} 179 180static ssize_t csrow_dev_type_show(struct device *dev, 181 struct device_attribute *mattr, char *data) 182{ 183 struct csrow_info *csrow = to_csrow(dev); 184 185 return sprintf(data, "%s\n", dev_types[csrow->channels[0]->dimm->dtype]); 186} 187 188static ssize_t csrow_edac_mode_show(struct device *dev, 189 struct device_attribute *mattr, 190 char *data) 191{ 192 struct csrow_info *csrow = to_csrow(dev); 193 194 return sprintf(data, "%s\n", edac_caps[csrow->channels[0]->dimm->edac_mode]); 195} 196 197/* show/store functions for DIMM Label attributes */ 198static ssize_t channel_dimm_label_show(struct device *dev, 199 struct device_attribute *mattr, 200 char *data) 201{ 202 struct csrow_info *csrow = to_csrow(dev); 203 unsigned int chan = to_channel(mattr); 204 struct rank_info *rank = csrow->channels[chan]; 205 206 /* if field has not been initialized, there is nothing to send */ 207 if (!rank->dimm->label[0]) 208 return 0; 209 210 return snprintf(data, sizeof(rank->dimm->label) + 1, "%s\n", 211 rank->dimm->label); 212} 213 214static ssize_t channel_dimm_label_store(struct device *dev, 215 struct device_attribute *mattr, 216 const char *data, size_t count) 217{ 218 struct csrow_info *csrow = to_csrow(dev); 219 unsigned int chan = to_channel(mattr); 220 struct rank_info *rank = csrow->channels[chan]; 221 size_t copy_count = count; 222 223 if (count == 0) 224 return -EINVAL; 225 226 if (data[count - 1] == '\0' || data[count - 1] == '\n') 227 copy_count -= 1; 228 229 if (copy_count == 0 || copy_count >= sizeof(rank->dimm->label)) 230 return -EINVAL; 231 232 strncpy(rank->dimm->label, data, copy_count); 233 rank->dimm->label[copy_count] = '\0'; 234 235 return count; 236} 237 238/* show function for dynamic chX_ce_count attribute */ 239static ssize_t channel_ce_count_show(struct device *dev, 240 struct device_attribute *mattr, char *data) 241{ 242 struct csrow_info *csrow = to_csrow(dev); 243 unsigned int chan = to_channel(mattr); 244 struct rank_info *rank = csrow->channels[chan]; 245 246 return sprintf(data, "%u\n", rank->ce_count); 247} 248 249/* cwrow<id>/attribute files */ 250DEVICE_ATTR_LEGACY(size_mb, S_IRUGO, csrow_size_show, NULL); 251DEVICE_ATTR_LEGACY(dev_type, S_IRUGO, csrow_dev_type_show, NULL); 252DEVICE_ATTR_LEGACY(mem_type, S_IRUGO, csrow_mem_type_show, NULL); 253DEVICE_ATTR_LEGACY(edac_mode, S_IRUGO, csrow_edac_mode_show, NULL); 254DEVICE_ATTR_LEGACY(ue_count, S_IRUGO, csrow_ue_count_show, NULL); 255DEVICE_ATTR_LEGACY(ce_count, S_IRUGO, csrow_ce_count_show, NULL); 256 257/* default attributes of the CSROW<id> object */ 258static struct attribute *csrow_attrs[] = { 259 &dev_attr_legacy_dev_type.attr, 260 &dev_attr_legacy_mem_type.attr, 261 &dev_attr_legacy_edac_mode.attr, 262 &dev_attr_legacy_size_mb.attr, 263 &dev_attr_legacy_ue_count.attr, 264 &dev_attr_legacy_ce_count.attr, 265 NULL, 266}; 267 268static const struct attribute_group csrow_attr_grp = { 269 .attrs = csrow_attrs, 270}; 271 272static const struct attribute_group *csrow_attr_groups[] = { 273 &csrow_attr_grp, 274 NULL 275}; 276 277static const struct device_type csrow_attr_type = { 278 .groups = csrow_attr_groups, 279}; 280 281/* 282 * possible dynamic channel DIMM Label attribute files 283 * 284 */ 285DEVICE_CHANNEL(ch0_dimm_label, S_IRUGO | S_IWUSR, 286 channel_dimm_label_show, channel_dimm_label_store, 0); 287DEVICE_CHANNEL(ch1_dimm_label, S_IRUGO | S_IWUSR, 288 channel_dimm_label_show, channel_dimm_label_store, 1); 289DEVICE_CHANNEL(ch2_dimm_label, S_IRUGO | S_IWUSR, 290 channel_dimm_label_show, channel_dimm_label_store, 2); 291DEVICE_CHANNEL(ch3_dimm_label, S_IRUGO | S_IWUSR, 292 channel_dimm_label_show, channel_dimm_label_store, 3); 293DEVICE_CHANNEL(ch4_dimm_label, S_IRUGO | S_IWUSR, 294 channel_dimm_label_show, channel_dimm_label_store, 4); 295DEVICE_CHANNEL(ch5_dimm_label, S_IRUGO | S_IWUSR, 296 channel_dimm_label_show, channel_dimm_label_store, 5); 297DEVICE_CHANNEL(ch6_dimm_label, S_IRUGO | S_IWUSR, 298 channel_dimm_label_show, channel_dimm_label_store, 6); 299DEVICE_CHANNEL(ch7_dimm_label, S_IRUGO | S_IWUSR, 300 channel_dimm_label_show, channel_dimm_label_store, 7); 301 302/* Total possible dynamic DIMM Label attribute file table */ 303static struct attribute *dynamic_csrow_dimm_attr[] = { 304 &dev_attr_legacy_ch0_dimm_label.attr.attr, 305 &dev_attr_legacy_ch1_dimm_label.attr.attr, 306 &dev_attr_legacy_ch2_dimm_label.attr.attr, 307 &dev_attr_legacy_ch3_dimm_label.attr.attr, 308 &dev_attr_legacy_ch4_dimm_label.attr.attr, 309 &dev_attr_legacy_ch5_dimm_label.attr.attr, 310 &dev_attr_legacy_ch6_dimm_label.attr.attr, 311 &dev_attr_legacy_ch7_dimm_label.attr.attr, 312 NULL 313}; 314 315/* possible dynamic channel ce_count attribute files */ 316DEVICE_CHANNEL(ch0_ce_count, S_IRUGO, 317 channel_ce_count_show, NULL, 0); 318DEVICE_CHANNEL(ch1_ce_count, S_IRUGO, 319 channel_ce_count_show, NULL, 1); 320DEVICE_CHANNEL(ch2_ce_count, S_IRUGO, 321 channel_ce_count_show, NULL, 2); 322DEVICE_CHANNEL(ch3_ce_count, S_IRUGO, 323 channel_ce_count_show, NULL, 3); 324DEVICE_CHANNEL(ch4_ce_count, S_IRUGO, 325 channel_ce_count_show, NULL, 4); 326DEVICE_CHANNEL(ch5_ce_count, S_IRUGO, 327 channel_ce_count_show, NULL, 5); 328DEVICE_CHANNEL(ch6_ce_count, S_IRUGO, 329 channel_ce_count_show, NULL, 6); 330DEVICE_CHANNEL(ch7_ce_count, S_IRUGO, 331 channel_ce_count_show, NULL, 7); 332 333/* Total possible dynamic ce_count attribute file table */ 334static struct attribute *dynamic_csrow_ce_count_attr[] = { 335 &dev_attr_legacy_ch0_ce_count.attr.attr, 336 &dev_attr_legacy_ch1_ce_count.attr.attr, 337 &dev_attr_legacy_ch2_ce_count.attr.attr, 338 &dev_attr_legacy_ch3_ce_count.attr.attr, 339 &dev_attr_legacy_ch4_ce_count.attr.attr, 340 &dev_attr_legacy_ch5_ce_count.attr.attr, 341 &dev_attr_legacy_ch6_ce_count.attr.attr, 342 &dev_attr_legacy_ch7_ce_count.attr.attr, 343 NULL 344}; 345 346static umode_t csrow_dev_is_visible(struct kobject *kobj, 347 struct attribute *attr, int idx) 348{ 349 struct device *dev = kobj_to_dev(kobj); 350 struct csrow_info *csrow = container_of(dev, struct csrow_info, dev); 351 352 if (idx >= csrow->nr_channels) 353 return 0; 354 355 if (idx >= ARRAY_SIZE(dynamic_csrow_ce_count_attr) - 1) { 356 WARN_ONCE(1, "idx: %d\n", idx); 357 return 0; 358 } 359 360 /* Only expose populated DIMMs */ 361 if (!csrow->channels[idx]->dimm->nr_pages) 362 return 0; 363 364 return attr->mode; 365} 366 367 368static const struct attribute_group csrow_dev_dimm_group = { 369 .attrs = dynamic_csrow_dimm_attr, 370 .is_visible = csrow_dev_is_visible, 371}; 372 373static const struct attribute_group csrow_dev_ce_count_group = { 374 .attrs = dynamic_csrow_ce_count_attr, 375 .is_visible = csrow_dev_is_visible, 376}; 377 378static const struct attribute_group *csrow_dev_groups[] = { 379 &csrow_dev_dimm_group, 380 &csrow_dev_ce_count_group, 381 NULL 382}; 383 384static void csrow_release(struct device *dev) 385{ 386 /* 387 * Nothing to do, just unregister sysfs here. The mci 388 * device owns the data and will also release it. 389 */ 390} 391 392static inline int nr_pages_per_csrow(struct csrow_info *csrow) 393{ 394 int chan, nr_pages = 0; 395 396 for (chan = 0; chan < csrow->nr_channels; chan++) 397 nr_pages += csrow->channels[chan]->dimm->nr_pages; 398 399 return nr_pages; 400} 401 402/* Create a CSROW object under specifed edac_mc_device */ 403static int edac_create_csrow_object(struct mem_ctl_info *mci, 404 struct csrow_info *csrow, int index) 405{ 406 int err; 407 408 csrow->dev.type = &csrow_attr_type; 409 csrow->dev.groups = csrow_dev_groups; 410 csrow->dev.release = csrow_release; 411 device_initialize(&csrow->dev); 412 csrow->dev.parent = &mci->dev; 413 csrow->mci = mci; 414 dev_set_name(&csrow->dev, "csrow%d", index); 415 dev_set_drvdata(&csrow->dev, csrow); 416 417 err = device_add(&csrow->dev); 418 if (err) { 419 edac_dbg(1, "failure: create device %s\n", dev_name(&csrow->dev)); 420 put_device(&csrow->dev); 421 return err; 422 } 423 424 edac_dbg(0, "device %s created\n", dev_name(&csrow->dev)); 425 426 return 0; 427} 428 429/* Create a CSROW object under specifed edac_mc_device */ 430static int edac_create_csrow_objects(struct mem_ctl_info *mci) 431{ 432 int err, i; 433 struct csrow_info *csrow; 434 435 for (i = 0; i < mci->nr_csrows; i++) { 436 csrow = mci->csrows[i]; 437 if (!nr_pages_per_csrow(csrow)) 438 continue; 439 err = edac_create_csrow_object(mci, mci->csrows[i], i); 440 if (err < 0) 441 goto error; 442 } 443 return 0; 444 445error: 446 for (--i; i >= 0; i--) { 447 if (device_is_registered(&mci->csrows[i]->dev)) 448 device_unregister(&mci->csrows[i]->dev); 449 } 450 451 return err; 452} 453 454static void edac_delete_csrow_objects(struct mem_ctl_info *mci) 455{ 456 int i; 457 458 for (i = 0; i < mci->nr_csrows; i++) { 459 if (device_is_registered(&mci->csrows[i]->dev)) 460 device_unregister(&mci->csrows[i]->dev); 461 } 462} 463 464#endif 465 466/* 467 * Per-dimm (or per-rank) devices 468 */ 469 470#define to_dimm(k) container_of(k, struct dimm_info, dev) 471 472/* show/store functions for DIMM Label attributes */ 473static ssize_t dimmdev_location_show(struct device *dev, 474 struct device_attribute *mattr, char *data) 475{ 476 struct dimm_info *dimm = to_dimm(dev); 477 478 return edac_dimm_info_location(dimm, data, PAGE_SIZE); 479} 480 481static ssize_t dimmdev_label_show(struct device *dev, 482 struct device_attribute *mattr, char *data) 483{ 484 struct dimm_info *dimm = to_dimm(dev); 485 486 /* if field has not been initialized, there is nothing to send */ 487 if (!dimm->label[0]) 488 return 0; 489 490 return snprintf(data, sizeof(dimm->label) + 1, "%s\n", dimm->label); 491} 492 493static ssize_t dimmdev_label_store(struct device *dev, 494 struct device_attribute *mattr, 495 const char *data, 496 size_t count) 497{ 498 struct dimm_info *dimm = to_dimm(dev); 499 size_t copy_count = count; 500 501 if (count == 0) 502 return -EINVAL; 503 504 if (data[count - 1] == '\0' || data[count - 1] == '\n') 505 copy_count -= 1; 506 507 if (copy_count == 0 || copy_count >= sizeof(dimm->label)) 508 return -EINVAL; 509 510 strncpy(dimm->label, data, copy_count); 511 dimm->label[copy_count] = '\0'; 512 513 return count; 514} 515 516static ssize_t dimmdev_size_show(struct device *dev, 517 struct device_attribute *mattr, char *data) 518{ 519 struct dimm_info *dimm = to_dimm(dev); 520 521 return sprintf(data, "%u\n", PAGES_TO_MiB(dimm->nr_pages)); 522} 523 524static ssize_t dimmdev_mem_type_show(struct device *dev, 525 struct device_attribute *mattr, char *data) 526{ 527 struct dimm_info *dimm = to_dimm(dev); 528 529 return sprintf(data, "%s\n", edac_mem_types[dimm->mtype]); 530} 531 532static ssize_t dimmdev_dev_type_show(struct device *dev, 533 struct device_attribute *mattr, char *data) 534{ 535 struct dimm_info *dimm = to_dimm(dev); 536 537 return sprintf(data, "%s\n", dev_types[dimm->dtype]); 538} 539 540static ssize_t dimmdev_edac_mode_show(struct device *dev, 541 struct device_attribute *mattr, 542 char *data) 543{ 544 struct dimm_info *dimm = to_dimm(dev); 545 546 return sprintf(data, "%s\n", edac_caps[dimm->edac_mode]); 547} 548 549static ssize_t dimmdev_ce_count_show(struct device *dev, 550 struct device_attribute *mattr, 551 char *data) 552{ 553 struct dimm_info *dimm = to_dimm(dev); 554 555 return sprintf(data, "%u\n", dimm->ce_count); 556} 557 558static ssize_t dimmdev_ue_count_show(struct device *dev, 559 struct device_attribute *mattr, 560 char *data) 561{ 562 struct dimm_info *dimm = to_dimm(dev); 563 564 return sprintf(data, "%u\n", dimm->ue_count); 565} 566 567/* dimm/rank attribute files */ 568static DEVICE_ATTR(dimm_label, S_IRUGO | S_IWUSR, 569 dimmdev_label_show, dimmdev_label_store); 570static DEVICE_ATTR(dimm_location, S_IRUGO, dimmdev_location_show, NULL); 571static DEVICE_ATTR(size, S_IRUGO, dimmdev_size_show, NULL); 572static DEVICE_ATTR(dimm_mem_type, S_IRUGO, dimmdev_mem_type_show, NULL); 573static DEVICE_ATTR(dimm_dev_type, S_IRUGO, dimmdev_dev_type_show, NULL); 574static DEVICE_ATTR(dimm_edac_mode, S_IRUGO, dimmdev_edac_mode_show, NULL); 575static DEVICE_ATTR(dimm_ce_count, S_IRUGO, dimmdev_ce_count_show, NULL); 576static DEVICE_ATTR(dimm_ue_count, S_IRUGO, dimmdev_ue_count_show, NULL); 577 578/* attributes of the dimm<id>/rank<id> object */ 579static struct attribute *dimm_attrs[] = { 580 &dev_attr_dimm_label.attr, 581 &dev_attr_dimm_location.attr, 582 &dev_attr_size.attr, 583 &dev_attr_dimm_mem_type.attr, 584 &dev_attr_dimm_dev_type.attr, 585 &dev_attr_dimm_edac_mode.attr, 586 &dev_attr_dimm_ce_count.attr, 587 &dev_attr_dimm_ue_count.attr, 588 NULL, 589}; 590 591static const struct attribute_group dimm_attr_grp = { 592 .attrs = dimm_attrs, 593}; 594 595static const struct attribute_group *dimm_attr_groups[] = { 596 &dimm_attr_grp, 597 NULL 598}; 599 600static const struct device_type dimm_attr_type = { 601 .groups = dimm_attr_groups, 602}; 603 604static void dimm_release(struct device *dev) 605{ 606 /* 607 * Nothing to do, just unregister sysfs here. The mci 608 * device owns the data and will also release it. 609 */ 610} 611 612/* Create a DIMM object under specifed memory controller device */ 613static int edac_create_dimm_object(struct mem_ctl_info *mci, 614 struct dimm_info *dimm) 615{ 616 int err; 617 dimm->mci = mci; 618 619 dimm->dev.type = &dimm_attr_type; 620 dimm->dev.release = dimm_release; 621 device_initialize(&dimm->dev); 622 623 dimm->dev.parent = &mci->dev; 624 if (mci->csbased) 625 dev_set_name(&dimm->dev, "rank%d", dimm->idx); 626 else 627 dev_set_name(&dimm->dev, "dimm%d", dimm->idx); 628 dev_set_drvdata(&dimm->dev, dimm); 629 pm_runtime_forbid(&mci->dev); 630 631 err = device_add(&dimm->dev); 632 if (err) { 633 edac_dbg(1, "failure: create device %s\n", dev_name(&dimm->dev)); 634 put_device(&dimm->dev); 635 return err; 636 } 637 638 if (IS_ENABLED(CONFIG_EDAC_DEBUG)) { 639 char location[80]; 640 641 edac_dimm_info_location(dimm, location, sizeof(location)); 642 edac_dbg(0, "device %s created at location %s\n", 643 dev_name(&dimm->dev), location); 644 } 645 646 return 0; 647} 648 649/* 650 * Memory controller device 651 */ 652 653#define to_mci(k) container_of(k, struct mem_ctl_info, dev) 654 655static ssize_t mci_reset_counters_store(struct device *dev, 656 struct device_attribute *mattr, 657 const char *data, size_t count) 658{ 659 struct mem_ctl_info *mci = to_mci(dev); 660 struct dimm_info *dimm; 661 int row, chan; 662 663 mci->ue_mc = 0; 664 mci->ce_mc = 0; 665 mci->ue_noinfo_count = 0; 666 mci->ce_noinfo_count = 0; 667 668 for (row = 0; row < mci->nr_csrows; row++) { 669 struct csrow_info *ri = mci->csrows[row]; 670 671 ri->ue_count = 0; 672 ri->ce_count = 0; 673 674 for (chan = 0; chan < ri->nr_channels; chan++) 675 ri->channels[chan]->ce_count = 0; 676 } 677 678 mci_for_each_dimm(mci, dimm) { 679 dimm->ue_count = 0; 680 dimm->ce_count = 0; 681 } 682 683 mci->start_time = jiffies; 684 return count; 685} 686 687/* Memory scrubbing interface: 688 * 689 * A MC driver can limit the scrubbing bandwidth based on the CPU type. 690 * Therefore, ->set_sdram_scrub_rate should be made to return the actual 691 * bandwidth that is accepted or 0 when scrubbing is to be disabled. 692 * 693 * Negative value still means that an error has occurred while setting 694 * the scrub rate. 695 */ 696static ssize_t mci_sdram_scrub_rate_store(struct device *dev, 697 struct device_attribute *mattr, 698 const char *data, size_t count) 699{ 700 struct mem_ctl_info *mci = to_mci(dev); 701 unsigned long bandwidth = 0; 702 int new_bw = 0; 703 704 if (kstrtoul(data, 10, &bandwidth) < 0) 705 return -EINVAL; 706 707 new_bw = mci->set_sdram_scrub_rate(mci, bandwidth); 708 if (new_bw < 0) { 709 edac_printk(KERN_WARNING, EDAC_MC, 710 "Error setting scrub rate to: %lu\n", bandwidth); 711 return -EINVAL; 712 } 713 714 return count; 715} 716 717/* 718 * ->get_sdram_scrub_rate() return value semantics same as above. 719 */ 720static ssize_t mci_sdram_scrub_rate_show(struct device *dev, 721 struct device_attribute *mattr, 722 char *data) 723{ 724 struct mem_ctl_info *mci = to_mci(dev); 725 int bandwidth = 0; 726 727 bandwidth = mci->get_sdram_scrub_rate(mci); 728 if (bandwidth < 0) { 729 edac_printk(KERN_DEBUG, EDAC_MC, "Error reading scrub rate\n"); 730 return bandwidth; 731 } 732 733 return sprintf(data, "%d\n", bandwidth); 734} 735 736/* default attribute files for the MCI object */ 737static ssize_t mci_ue_count_show(struct device *dev, 738 struct device_attribute *mattr, 739 char *data) 740{ 741 struct mem_ctl_info *mci = to_mci(dev); 742 743 return sprintf(data, "%d\n", mci->ue_mc); 744} 745 746static ssize_t mci_ce_count_show(struct device *dev, 747 struct device_attribute *mattr, 748 char *data) 749{ 750 struct mem_ctl_info *mci = to_mci(dev); 751 752 return sprintf(data, "%d\n", mci->ce_mc); 753} 754 755static ssize_t mci_ce_noinfo_show(struct device *dev, 756 struct device_attribute *mattr, 757 char *data) 758{ 759 struct mem_ctl_info *mci = to_mci(dev); 760 761 return sprintf(data, "%d\n", mci->ce_noinfo_count); 762} 763 764static ssize_t mci_ue_noinfo_show(struct device *dev, 765 struct device_attribute *mattr, 766 char *data) 767{ 768 struct mem_ctl_info *mci = to_mci(dev); 769 770 return sprintf(data, "%d\n", mci->ue_noinfo_count); 771} 772 773static ssize_t mci_seconds_show(struct device *dev, 774 struct device_attribute *mattr, 775 char *data) 776{ 777 struct mem_ctl_info *mci = to_mci(dev); 778 779 return sprintf(data, "%ld\n", (jiffies - mci->start_time) / HZ); 780} 781 782static ssize_t mci_ctl_name_show(struct device *dev, 783 struct device_attribute *mattr, 784 char *data) 785{ 786 struct mem_ctl_info *mci = to_mci(dev); 787 788 return sprintf(data, "%s\n", mci->ctl_name); 789} 790 791static ssize_t mci_size_mb_show(struct device *dev, 792 struct device_attribute *mattr, 793 char *data) 794{ 795 struct mem_ctl_info *mci = to_mci(dev); 796 int total_pages = 0, csrow_idx, j; 797 798 for (csrow_idx = 0; csrow_idx < mci->nr_csrows; csrow_idx++) { 799 struct csrow_info *csrow = mci->csrows[csrow_idx]; 800 801 for (j = 0; j < csrow->nr_channels; j++) { 802 struct dimm_info *dimm = csrow->channels[j]->dimm; 803 804 total_pages += dimm->nr_pages; 805 } 806 } 807 808 return sprintf(data, "%u\n", PAGES_TO_MiB(total_pages)); 809} 810 811static ssize_t mci_max_location_show(struct device *dev, 812 struct device_attribute *mattr, 813 char *data) 814{ 815 struct mem_ctl_info *mci = to_mci(dev); 816 int i; 817 char *p = data; 818 819 for (i = 0; i < mci->n_layers; i++) { 820 p += sprintf(p, "%s %d ", 821 edac_layer_name[mci->layers[i].type], 822 mci->layers[i].size - 1); 823 } 824 825 return p - data; 826} 827 828/* default Control file */ 829static DEVICE_ATTR(reset_counters, S_IWUSR, NULL, mci_reset_counters_store); 830 831/* default Attribute files */ 832static DEVICE_ATTR(mc_name, S_IRUGO, mci_ctl_name_show, NULL); 833static DEVICE_ATTR(size_mb, S_IRUGO, mci_size_mb_show, NULL); 834static DEVICE_ATTR(seconds_since_reset, S_IRUGO, mci_seconds_show, NULL); 835static DEVICE_ATTR(ue_noinfo_count, S_IRUGO, mci_ue_noinfo_show, NULL); 836static DEVICE_ATTR(ce_noinfo_count, S_IRUGO, mci_ce_noinfo_show, NULL); 837static DEVICE_ATTR(ue_count, S_IRUGO, mci_ue_count_show, NULL); 838static DEVICE_ATTR(ce_count, S_IRUGO, mci_ce_count_show, NULL); 839static DEVICE_ATTR(max_location, S_IRUGO, mci_max_location_show, NULL); 840 841/* memory scrubber attribute file */ 842static DEVICE_ATTR(sdram_scrub_rate, 0, mci_sdram_scrub_rate_show, 843 mci_sdram_scrub_rate_store); /* umode set later in is_visible */ 844 845static struct attribute *mci_attrs[] = { 846 &dev_attr_reset_counters.attr, 847 &dev_attr_mc_name.attr, 848 &dev_attr_size_mb.attr, 849 &dev_attr_seconds_since_reset.attr, 850 &dev_attr_ue_noinfo_count.attr, 851 &dev_attr_ce_noinfo_count.attr, 852 &dev_attr_ue_count.attr, 853 &dev_attr_ce_count.attr, 854 &dev_attr_max_location.attr, 855 &dev_attr_sdram_scrub_rate.attr, 856 NULL 857}; 858 859static umode_t mci_attr_is_visible(struct kobject *kobj, 860 struct attribute *attr, int idx) 861{ 862 struct device *dev = kobj_to_dev(kobj); 863 struct mem_ctl_info *mci = to_mci(dev); 864 umode_t mode = 0; 865 866 if (attr != &dev_attr_sdram_scrub_rate.attr) 867 return attr->mode; 868 if (mci->get_sdram_scrub_rate) 869 mode |= S_IRUGO; 870 if (mci->set_sdram_scrub_rate) 871 mode |= S_IWUSR; 872 return mode; 873} 874 875static const struct attribute_group mci_attr_grp = { 876 .attrs = mci_attrs, 877 .is_visible = mci_attr_is_visible, 878}; 879 880static const struct attribute_group *mci_attr_groups[] = { 881 &mci_attr_grp, 882 NULL 883}; 884 885static const struct device_type mci_attr_type = { 886 .groups = mci_attr_groups, 887}; 888 889/* 890 * Create a new Memory Controller kobject instance, 891 * mc<id> under the 'mc' directory 892 * 893 * Return: 894 * 0 Success 895 * !0 Failure 896 */ 897int edac_create_sysfs_mci_device(struct mem_ctl_info *mci, 898 const struct attribute_group **groups) 899{ 900 struct dimm_info *dimm; 901 int err; 902 903 /* get the /sys/devices/system/edac subsys reference */ 904 mci->dev.type = &mci_attr_type; 905 mci->dev.parent = mci_pdev; 906 mci->dev.groups = groups; 907 dev_set_name(&mci->dev, "mc%d", mci->mc_idx); 908 dev_set_drvdata(&mci->dev, mci); 909 pm_runtime_forbid(&mci->dev); 910 911 err = device_add(&mci->dev); 912 if (err < 0) { 913 edac_dbg(1, "failure: create device %s\n", dev_name(&mci->dev)); 914 /* no put_device() here, free mci with _edac_mc_free() */ 915 return err; 916 } 917 918 edac_dbg(0, "device %s created\n", dev_name(&mci->dev)); 919 920 /* 921 * Create the dimm/rank devices 922 */ 923 mci_for_each_dimm(mci, dimm) { 924 /* Only expose populated DIMMs */ 925 if (!dimm->nr_pages) 926 continue; 927 928 err = edac_create_dimm_object(mci, dimm); 929 if (err) 930 goto fail; 931 } 932 933#ifdef CONFIG_EDAC_LEGACY_SYSFS 934 err = edac_create_csrow_objects(mci); 935 if (err < 0) 936 goto fail; 937#endif 938 939 edac_create_debugfs_nodes(mci); 940 return 0; 941 942fail: 943 edac_remove_sysfs_mci_device(mci); 944 945 return err; 946} 947 948/* 949 * remove a Memory Controller instance 950 */ 951void edac_remove_sysfs_mci_device(struct mem_ctl_info *mci) 952{ 953 struct dimm_info *dimm; 954 955 if (!device_is_registered(&mci->dev)) 956 return; 957 958 edac_dbg(0, "\n"); 959 960#ifdef CONFIG_EDAC_DEBUG 961 edac_debugfs_remove_recursive(mci->debugfs); 962#endif 963#ifdef CONFIG_EDAC_LEGACY_SYSFS 964 edac_delete_csrow_objects(mci); 965#endif 966 967 mci_for_each_dimm(mci, dimm) { 968 if (!device_is_registered(&dimm->dev)) 969 continue; 970 edac_dbg(1, "unregistering device %s\n", dev_name(&dimm->dev)); 971 device_unregister(&dimm->dev); 972 } 973 974 /* only remove the device, but keep mci */ 975 device_del(&mci->dev); 976} 977 978static void mc_attr_release(struct device *dev) 979{ 980 /* 981 * There's no container structure here, as this is just the mci 982 * parent device, used to create the /sys/devices/mc sysfs node. 983 * So, there are no attributes on it. 984 */ 985 edac_dbg(1, "device %s released\n", dev_name(dev)); 986 kfree(dev); 987} 988 989/* 990 * Init/exit code for the module. Basically, creates/removes /sys/class/rc 991 */ 992int __init edac_mc_sysfs_init(void) 993{ 994 int err; 995 996 mci_pdev = kzalloc(sizeof(*mci_pdev), GFP_KERNEL); 997 if (!mci_pdev) 998 return -ENOMEM; 999 1000 mci_pdev->bus = edac_get_sysfs_subsys(); 1001 mci_pdev->release = mc_attr_release; 1002 mci_pdev->init_name = "mc"; 1003 1004 err = device_register(mci_pdev); 1005 if (err < 0) { 1006 edac_dbg(1, "failure: create device %s\n", dev_name(mci_pdev)); 1007 put_device(mci_pdev); 1008 return err; 1009 } 1010 1011 edac_dbg(0, "device %s created\n", dev_name(mci_pdev)); 1012 1013 return 0; 1014} 1015 1016void edac_mc_sysfs_exit(void) 1017{ 1018 device_unregister(mci_pdev); 1019}