skx_common.c 21 KB

123456789101112131415161718192021222324252627282930313233343536373839404142434445464748495051525354555657585960616263646566676869707172737475767778798081828384858687888990919293949596979899100101102103104105106107108109110111112113114115116117118119120121122123124125126127128129130131132133134135136137138139140141142143144145146147148149150151152153154155156157158159160161162163164165166167168169170171172173174175176177178179180181182183184185186187188189190191192193194195196197198199200201202203204205206207208209210211212213214215216217218219220221222223224225226227228229230231232233234235236237238239240241242243244245246247248249250251252253254255256257258259260261262263264265266267268269270271272273274275276277278279280281282283284285286287288289290291292293294295296297298299300301302303304305306307308309310311312313314315316317318319320321322323324325326327328329330331332333334335336337338339340341342343344345346347348349350351352353354355356357358359360361362363364365366367368369370371372373374375376377378379380381382383384385386387388389390391392393394395396397398399400401402403404405406407408409410411412413414415416417418419420421422423424425426427428429430431432433434435436437438439440441442443444445446447448449450451452453454455456457458459460461462463464465466467468469470471472473474475476477478479480481482483484485486487488489490491492493494495496497498499500501502503504505506507508509510511512513514515516517518519520521522523524525526527528529530531532533534535536537538539540541542543544545546547548549550551552553554555556557558559560561562563564565566567568569570571572573574575576577578579580581582583584585586587588589590591592593594595596597598599600601602603604605606607608609610611612613614615616617618619620621622623624625626627628629630631632633634635636637638639640641642643644645646647648649650651652653654655656657658659660661662663664665666667668669670671672673674675676677678679680681682683684685686687688689690691692693694695696697698699700701702703704705706707708709710711712713714715716717718719720721722723724725726727728729730731732733734735736737738739740741742743744745746747748749750751752753754755756757758759760761762763764765766767768769770771772773774775776777778779780781782783784785786787788789790791792793794795796797798799800801802803804805806807808809810811812813814815816817818819820821822823824825826827828829830831832833834835836837838839840841842843844845846
  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. *
  4. * Shared code by both skx_edac and i10nm_edac. Originally split out
  5. * from the skx_edac driver.
  6. *
  7. * This file is linked into both skx_edac and i10nm_edac drivers. In
  8. * order to avoid link errors, this file must be like a pure library
  9. * without including symbols and defines which would otherwise conflict,
  10. * when linked once into a module and into a built-in object, at the
  11. * same time. For example, __this_module symbol references when that
  12. * file is being linked into a built-in object.
  13. *
  14. * Copyright (c) 2018, Intel Corporation.
  15. */
  16. #include <linux/acpi.h>
  17. #include <linux/dmi.h>
  18. #include <linux/adxl.h>
  19. #include <acpi/nfit.h>
  20. #include <asm/mce.h>
  21. #include "edac_module.h"
  22. #include "skx_common.h"
  23. static const char * const component_names[] = {
  24. [INDEX_SOCKET] = "ProcessorSocketId",
  25. [INDEX_MEMCTRL] = "MemoryControllerId",
  26. [INDEX_CHANNEL] = "ChannelId",
  27. [INDEX_DIMM] = "DimmSlotId",
  28. [INDEX_CS] = "ChipSelect",
  29. [INDEX_NM_MEMCTRL] = "NmMemoryControllerId",
  30. [INDEX_NM_CHANNEL] = "NmChannelId",
  31. [INDEX_NM_DIMM] = "NmDimmSlotId",
  32. [INDEX_NM_CS] = "NmChipSelect",
  33. };
  34. static int component_indices[ARRAY_SIZE(component_names)];
  35. static int adxl_component_count;
  36. static const char * const *adxl_component_names;
  37. static u64 *adxl_values;
  38. static char *adxl_msg;
  39. static unsigned long adxl_nm_bitmap;
  40. static char skx_msg[MSG_SIZE];
  41. static skx_decode_f driver_decode;
  42. static skx_show_retry_log_f skx_show_retry_rd_err_log;
  43. static u64 skx_tolm, skx_tohm;
  44. static LIST_HEAD(dev_edac_list);
  45. static bool skx_mem_cfg_2lm;
  46. static struct res_config *skx_res_cfg;
  47. int skx_adxl_get(void)
  48. {
  49. const char * const *names;
  50. int i, j;
  51. names = adxl_get_component_names();
  52. if (!names) {
  53. skx_printk(KERN_NOTICE, "No firmware support for address translation.\n");
  54. return -ENODEV;
  55. }
  56. for (i = 0; i < INDEX_MAX; i++) {
  57. for (j = 0; names[j]; j++) {
  58. if (!strcmp(component_names[i], names[j])) {
  59. component_indices[i] = j;
  60. if (i >= INDEX_NM_FIRST)
  61. adxl_nm_bitmap |= 1 << i;
  62. break;
  63. }
  64. }
  65. if (!names[j] && i < INDEX_NM_FIRST)
  66. goto err;
  67. }
  68. if (skx_mem_cfg_2lm) {
  69. if (!adxl_nm_bitmap)
  70. skx_printk(KERN_NOTICE, "Not enough ADXL components for 2-level memory.\n");
  71. else
  72. edac_dbg(2, "adxl_nm_bitmap: 0x%lx\n", adxl_nm_bitmap);
  73. }
  74. adxl_component_names = names;
  75. while (*names++)
  76. adxl_component_count++;
  77. adxl_values = kcalloc(adxl_component_count, sizeof(*adxl_values),
  78. GFP_KERNEL);
  79. if (!adxl_values) {
  80. adxl_component_count = 0;
  81. return -ENOMEM;
  82. }
  83. adxl_msg = kzalloc(MSG_SIZE, GFP_KERNEL);
  84. if (!adxl_msg) {
  85. adxl_component_count = 0;
  86. kfree(adxl_values);
  87. return -ENOMEM;
  88. }
  89. return 0;
  90. err:
  91. skx_printk(KERN_ERR, "'%s' is not matched from DSM parameters: ",
  92. component_names[i]);
  93. for (j = 0; names[j]; j++)
  94. skx_printk(KERN_CONT, "%s ", names[j]);
  95. skx_printk(KERN_CONT, "\n");
  96. return -ENODEV;
  97. }
  98. EXPORT_SYMBOL_GPL(skx_adxl_get);
  99. void skx_adxl_put(void)
  100. {
  101. adxl_component_count = 0;
  102. kfree(adxl_values);
  103. kfree(adxl_msg);
  104. }
  105. EXPORT_SYMBOL_GPL(skx_adxl_put);
  106. static void skx_init_mc_mapping(struct skx_dev *d)
  107. {
  108. /*
  109. * By default, the BIOS presents all memory controllers within each
  110. * socket to the EDAC driver. The physical indices are the same as
  111. * the logical indices of the memory controllers enumerated by the
  112. * EDAC driver.
  113. */
  114. for (int i = 0; i < NUM_IMC; i++)
  115. d->mc_mapping[i] = i;
  116. }
  117. void skx_set_mc_mapping(struct skx_dev *d, u8 pmc, u8 lmc)
  118. {
  119. edac_dbg(0, "Set the mapping of mc phy idx to logical idx: %02d -> %02d\n",
  120. pmc, lmc);
  121. d->mc_mapping[pmc] = lmc;
  122. }
  123. EXPORT_SYMBOL_GPL(skx_set_mc_mapping);
  124. static u8 skx_get_mc_mapping(struct skx_dev *d, u8 pmc)
  125. {
  126. edac_dbg(0, "Get the mapping of mc phy idx to logical idx: %02d -> %02d\n",
  127. pmc, d->mc_mapping[pmc]);
  128. return d->mc_mapping[pmc];
  129. }
  130. static bool skx_adxl_decode(struct decoded_addr *res, enum error_source err_src)
  131. {
  132. struct skx_dev *d;
  133. int i, len = 0;
  134. if (res->addr >= skx_tohm || (res->addr >= skx_tolm &&
  135. res->addr < BIT_ULL(32))) {
  136. edac_dbg(0, "Address 0x%llx out of range\n", res->addr);
  137. return false;
  138. }
  139. if (adxl_decode(res->addr, adxl_values)) {
  140. edac_dbg(0, "Failed to decode 0x%llx\n", res->addr);
  141. return false;
  142. }
  143. /*
  144. * GNR with a Flat2LM memory configuration may mistakenly classify
  145. * a near-memory error(DDR5) as a far-memory error(CXL), resulting
  146. * in the incorrect selection of decoded ADXL components.
  147. * To address this, prefetch the decoded far-memory controller ID
  148. * and adjust the error source to near-memory if the far-memory
  149. * controller ID is invalid.
  150. */
  151. if (skx_res_cfg && skx_res_cfg->type == GNR && err_src == ERR_SRC_2LM_FM) {
  152. res->imc = (int)adxl_values[component_indices[INDEX_MEMCTRL]];
  153. if (res->imc == -1) {
  154. err_src = ERR_SRC_2LM_NM;
  155. edac_dbg(0, "Adjust the error source to near-memory.\n");
  156. }
  157. }
  158. res->socket = (int)adxl_values[component_indices[INDEX_SOCKET]];
  159. if (err_src == ERR_SRC_2LM_NM) {
  160. res->imc = (adxl_nm_bitmap & BIT_NM_MEMCTRL) ?
  161. (int)adxl_values[component_indices[INDEX_NM_MEMCTRL]] : -1;
  162. res->channel = (adxl_nm_bitmap & BIT_NM_CHANNEL) ?
  163. (int)adxl_values[component_indices[INDEX_NM_CHANNEL]] : -1;
  164. res->dimm = (adxl_nm_bitmap & BIT_NM_DIMM) ?
  165. (int)adxl_values[component_indices[INDEX_NM_DIMM]] : -1;
  166. res->cs = (adxl_nm_bitmap & BIT_NM_CS) ?
  167. (int)adxl_values[component_indices[INDEX_NM_CS]] : -1;
  168. } else {
  169. res->imc = (int)adxl_values[component_indices[INDEX_MEMCTRL]];
  170. res->channel = (int)adxl_values[component_indices[INDEX_CHANNEL]];
  171. res->dimm = (int)adxl_values[component_indices[INDEX_DIMM]];
  172. res->cs = (int)adxl_values[component_indices[INDEX_CS]];
  173. }
  174. if (res->imc > NUM_IMC - 1 || res->imc < 0) {
  175. skx_printk(KERN_ERR, "Bad imc %d\n", res->imc);
  176. return false;
  177. }
  178. list_for_each_entry(d, &dev_edac_list, list) {
  179. if (d->imc[0].src_id == res->socket) {
  180. res->dev = d;
  181. break;
  182. }
  183. }
  184. if (!res->dev) {
  185. skx_printk(KERN_ERR, "No device for src_id %d imc %d\n",
  186. res->socket, res->imc);
  187. return false;
  188. }
  189. res->imc = skx_get_mc_mapping(d, res->imc);
  190. for (i = 0; i < adxl_component_count; i++) {
  191. if (adxl_values[i] == ~0x0ull)
  192. continue;
  193. len += snprintf(adxl_msg + len, MSG_SIZE - len, " %s:0x%llx",
  194. adxl_component_names[i], adxl_values[i]);
  195. if (MSG_SIZE - len <= 0)
  196. break;
  197. }
  198. res->decoded_by_adxl = true;
  199. return true;
  200. }
  201. void skx_set_mem_cfg(bool mem_cfg_2lm)
  202. {
  203. skx_mem_cfg_2lm = mem_cfg_2lm;
  204. }
  205. EXPORT_SYMBOL_GPL(skx_set_mem_cfg);
  206. void skx_set_res_cfg(struct res_config *cfg)
  207. {
  208. skx_res_cfg = cfg;
  209. }
  210. EXPORT_SYMBOL_GPL(skx_set_res_cfg);
  211. void skx_set_decode(skx_decode_f decode, skx_show_retry_log_f show_retry_log)
  212. {
  213. driver_decode = decode;
  214. skx_show_retry_rd_err_log = show_retry_log;
  215. }
  216. EXPORT_SYMBOL_GPL(skx_set_decode);
  217. int skx_get_src_id(struct skx_dev *d, int off, u8 *id)
  218. {
  219. u32 reg;
  220. if (pci_read_config_dword(d->util_all, off, &reg)) {
  221. skx_printk(KERN_ERR, "Failed to read src id\n");
  222. return -ENODEV;
  223. }
  224. *id = GET_BITFIELD(reg, 12, 14);
  225. return 0;
  226. }
  227. EXPORT_SYMBOL_GPL(skx_get_src_id);
  228. int skx_get_node_id(struct skx_dev *d, u8 *id)
  229. {
  230. u32 reg;
  231. if (pci_read_config_dword(d->util_all, 0xf4, &reg)) {
  232. skx_printk(KERN_ERR, "Failed to read node id\n");
  233. return -ENODEV;
  234. }
  235. *id = GET_BITFIELD(reg, 0, 2);
  236. return 0;
  237. }
  238. EXPORT_SYMBOL_GPL(skx_get_node_id);
  239. static int get_width(u32 mtr)
  240. {
  241. switch (GET_BITFIELD(mtr, 8, 9)) {
  242. case 0:
  243. return DEV_X4;
  244. case 1:
  245. return DEV_X8;
  246. case 2:
  247. return DEV_X16;
  248. }
  249. return DEV_UNKNOWN;
  250. }
  251. /*
  252. * We use the per-socket device @cfg->did to count how many sockets are present,
  253. * and to detemine which PCI buses are associated with each socket. Allocate
  254. * and build the full list of all the skx_dev structures that we need here.
  255. */
  256. int skx_get_all_bus_mappings(struct res_config *cfg, struct list_head **list)
  257. {
  258. struct pci_dev *pdev, *prev;
  259. struct skx_dev *d;
  260. u32 reg;
  261. int ndev = 0;
  262. prev = NULL;
  263. for (;;) {
  264. pdev = pci_get_device(PCI_VENDOR_ID_INTEL, cfg->decs_did, prev);
  265. if (!pdev)
  266. break;
  267. ndev++;
  268. d = kzalloc(sizeof(*d), GFP_KERNEL);
  269. if (!d) {
  270. pci_dev_put(pdev);
  271. return -ENOMEM;
  272. }
  273. if (pci_read_config_dword(pdev, cfg->busno_cfg_offset, &reg)) {
  274. kfree(d);
  275. pci_dev_put(pdev);
  276. skx_printk(KERN_ERR, "Failed to read bus idx\n");
  277. return -ENODEV;
  278. }
  279. d->bus[0] = GET_BITFIELD(reg, 0, 7);
  280. d->bus[1] = GET_BITFIELD(reg, 8, 15);
  281. if (cfg->type == SKX) {
  282. d->seg = pci_domain_nr(pdev->bus);
  283. d->bus[2] = GET_BITFIELD(reg, 16, 23);
  284. d->bus[3] = GET_BITFIELD(reg, 24, 31);
  285. } else {
  286. d->seg = GET_BITFIELD(reg, 16, 23);
  287. }
  288. edac_dbg(2, "busses: 0x%x, 0x%x, 0x%x, 0x%x\n",
  289. d->bus[0], d->bus[1], d->bus[2], d->bus[3]);
  290. list_add_tail(&d->list, &dev_edac_list);
  291. prev = pdev;
  292. skx_init_mc_mapping(d);
  293. }
  294. if (list)
  295. *list = &dev_edac_list;
  296. return ndev;
  297. }
  298. EXPORT_SYMBOL_GPL(skx_get_all_bus_mappings);
  299. int skx_get_hi_lo(unsigned int did, int off[], u64 *tolm, u64 *tohm)
  300. {
  301. struct pci_dev *pdev;
  302. u32 reg;
  303. pdev = pci_get_device(PCI_VENDOR_ID_INTEL, did, NULL);
  304. if (!pdev) {
  305. edac_dbg(2, "Can't get tolm/tohm\n");
  306. return -ENODEV;
  307. }
  308. if (pci_read_config_dword(pdev, off[0], &reg)) {
  309. skx_printk(KERN_ERR, "Failed to read tolm\n");
  310. goto fail;
  311. }
  312. skx_tolm = reg;
  313. if (pci_read_config_dword(pdev, off[1], &reg)) {
  314. skx_printk(KERN_ERR, "Failed to read lower tohm\n");
  315. goto fail;
  316. }
  317. skx_tohm = reg;
  318. if (pci_read_config_dword(pdev, off[2], &reg)) {
  319. skx_printk(KERN_ERR, "Failed to read upper tohm\n");
  320. goto fail;
  321. }
  322. skx_tohm |= (u64)reg << 32;
  323. pci_dev_put(pdev);
  324. *tolm = skx_tolm;
  325. *tohm = skx_tohm;
  326. edac_dbg(2, "tolm = 0x%llx tohm = 0x%llx\n", skx_tolm, skx_tohm);
  327. return 0;
  328. fail:
  329. pci_dev_put(pdev);
  330. return -ENODEV;
  331. }
  332. EXPORT_SYMBOL_GPL(skx_get_hi_lo);
  333. static int skx_get_dimm_attr(u32 reg, int lobit, int hibit, int add,
  334. int minval, int maxval, const char *name)
  335. {
  336. u32 val = GET_BITFIELD(reg, lobit, hibit);
  337. if (val < minval || val > maxval) {
  338. edac_dbg(2, "bad %s = %d (raw=0x%x)\n", name, val, reg);
  339. return -EINVAL;
  340. }
  341. return val + add;
  342. }
  343. #define numrank(reg) skx_get_dimm_attr(reg, 12, 13, 0, 0, 2, "ranks")
  344. #define numrow(reg) skx_get_dimm_attr(reg, 2, 4, 12, 1, 6, "rows")
  345. #define numcol(reg) skx_get_dimm_attr(reg, 0, 1, 10, 0, 2, "cols")
  346. int skx_get_dimm_info(u32 mtr, u32 mcmtr, u32 amap, struct dimm_info *dimm,
  347. struct skx_imc *imc, int chan, int dimmno,
  348. struct res_config *cfg)
  349. {
  350. int banks, ranks, rows, cols, npages;
  351. enum mem_type mtype;
  352. u64 size;
  353. ranks = numrank(mtr);
  354. rows = numrow(mtr);
  355. cols = imc->hbm_mc ? 6 : numcol(mtr);
  356. if (imc->hbm_mc) {
  357. banks = 32;
  358. mtype = MEM_HBM2;
  359. } else if (cfg->support_ddr5) {
  360. banks = 32;
  361. mtype = MEM_DDR5;
  362. } else {
  363. banks = 16;
  364. mtype = MEM_DDR4;
  365. }
  366. /*
  367. * Compute size in 8-byte (2^3) words, then shift to MiB (2^20)
  368. */
  369. size = ((1ull << (rows + cols + ranks)) * banks) >> (20 - 3);
  370. npages = MiB_TO_PAGES(size);
  371. edac_dbg(0, "mc#%d: channel %d, dimm %d, %lld MiB (%d pages) bank: %d, rank: %d, row: 0x%x, col: 0x%x\n",
  372. imc->mc, chan, dimmno, size, npages,
  373. banks, 1 << ranks, rows, cols);
  374. imc->chan[chan].dimms[dimmno].close_pg = GET_BITFIELD(mcmtr, 0, 0);
  375. imc->chan[chan].dimms[dimmno].bank_xor_enable = GET_BITFIELD(mcmtr, 9, 9);
  376. imc->chan[chan].dimms[dimmno].fine_grain_bank = GET_BITFIELD(amap, 0, 0);
  377. imc->chan[chan].dimms[dimmno].rowbits = rows;
  378. imc->chan[chan].dimms[dimmno].colbits = cols;
  379. dimm->nr_pages = npages;
  380. dimm->grain = 32;
  381. dimm->dtype = get_width(mtr);
  382. dimm->mtype = mtype;
  383. dimm->edac_mode = EDAC_SECDED; /* likely better than this */
  384. if (imc->hbm_mc)
  385. snprintf(dimm->label, sizeof(dimm->label), "CPU_SrcID#%u_HBMC#%u_Chan#%u",
  386. imc->src_id, imc->lmc, chan);
  387. else
  388. snprintf(dimm->label, sizeof(dimm->label), "CPU_SrcID#%u_MC#%u_Chan#%u_DIMM#%u",
  389. imc->src_id, imc->lmc, chan, dimmno);
  390. return 1;
  391. }
  392. EXPORT_SYMBOL_GPL(skx_get_dimm_info);
  393. int skx_get_nvdimm_info(struct dimm_info *dimm, struct skx_imc *imc,
  394. int chan, int dimmno, const char *mod_str)
  395. {
  396. int smbios_handle;
  397. u32 dev_handle;
  398. u16 flags;
  399. u64 size = 0;
  400. dev_handle = ACPI_NFIT_BUILD_DEVICE_HANDLE(dimmno, chan, imc->lmc,
  401. imc->src_id, 0);
  402. smbios_handle = nfit_get_smbios_id(dev_handle, &flags);
  403. if (smbios_handle == -EOPNOTSUPP) {
  404. pr_warn_once("%s: Can't find size of NVDIMM. Try enabling CONFIG_ACPI_NFIT\n", mod_str);
  405. goto unknown_size;
  406. }
  407. if (smbios_handle < 0) {
  408. skx_printk(KERN_ERR, "Can't find handle for NVDIMM ADR=0x%x\n", dev_handle);
  409. goto unknown_size;
  410. }
  411. if (flags & ACPI_NFIT_MEM_MAP_FAILED) {
  412. skx_printk(KERN_ERR, "NVDIMM ADR=0x%x is not mapped\n", dev_handle);
  413. goto unknown_size;
  414. }
  415. size = dmi_memdev_size(smbios_handle);
  416. if (size == ~0ull)
  417. skx_printk(KERN_ERR, "Can't find size for NVDIMM ADR=0x%x/SMBIOS=0x%x\n",
  418. dev_handle, smbios_handle);
  419. unknown_size:
  420. dimm->nr_pages = size >> PAGE_SHIFT;
  421. dimm->grain = 32;
  422. dimm->dtype = DEV_UNKNOWN;
  423. dimm->mtype = MEM_NVDIMM;
  424. dimm->edac_mode = EDAC_SECDED; /* likely better than this */
  425. edac_dbg(0, "mc#%d: channel %d, dimm %d, %llu MiB (%u pages)\n",
  426. imc->mc, chan, dimmno, size >> 20, dimm->nr_pages);
  427. snprintf(dimm->label, sizeof(dimm->label), "CPU_SrcID#%u_MC#%u_Chan#%u_DIMM#%u",
  428. imc->src_id, imc->lmc, chan, dimmno);
  429. return (size == 0 || size == ~0ull) ? 0 : 1;
  430. }
  431. EXPORT_SYMBOL_GPL(skx_get_nvdimm_info);
  432. int skx_register_mci(struct skx_imc *imc, struct pci_dev *pdev,
  433. const char *ctl_name, const char *mod_str,
  434. get_dimm_config_f get_dimm_config,
  435. struct res_config *cfg)
  436. {
  437. struct mem_ctl_info *mci;
  438. struct edac_mc_layer layers[2];
  439. struct skx_pvt *pvt;
  440. int rc;
  441. /* Allocate a new MC control structure */
  442. layers[0].type = EDAC_MC_LAYER_CHANNEL;
  443. layers[0].size = NUM_CHANNELS;
  444. layers[0].is_virt_csrow = false;
  445. layers[1].type = EDAC_MC_LAYER_SLOT;
  446. layers[1].size = NUM_DIMMS;
  447. layers[1].is_virt_csrow = true;
  448. mci = edac_mc_alloc(imc->mc, ARRAY_SIZE(layers), layers,
  449. sizeof(struct skx_pvt));
  450. if (unlikely(!mci))
  451. return -ENOMEM;
  452. edac_dbg(0, "MC#%d: mci = %p\n", imc->mc, mci);
  453. /* Associate skx_dev and mci for future usage */
  454. imc->mci = mci;
  455. pvt = mci->pvt_info;
  456. pvt->imc = imc;
  457. mci->ctl_name = kasprintf(GFP_KERNEL, "%s#%d IMC#%d", ctl_name,
  458. imc->node_id, imc->lmc);
  459. if (!mci->ctl_name) {
  460. rc = -ENOMEM;
  461. goto fail0;
  462. }
  463. mci->mtype_cap = MEM_FLAG_DDR4 | MEM_FLAG_NVDIMM;
  464. if (cfg->support_ddr5)
  465. mci->mtype_cap |= MEM_FLAG_DDR5;
  466. mci->edac_ctl_cap = EDAC_FLAG_NONE;
  467. mci->edac_cap = EDAC_FLAG_NONE;
  468. mci->mod_name = mod_str;
  469. mci->dev_name = pci_name(pdev);
  470. mci->ctl_page_to_phys = NULL;
  471. rc = get_dimm_config(mci, cfg);
  472. if (rc < 0)
  473. goto fail;
  474. /* Record ptr to the generic device */
  475. mci->pdev = &pdev->dev;
  476. /* Add this new MC control structure to EDAC's list of MCs */
  477. if (unlikely(edac_mc_add_mc(mci))) {
  478. edac_dbg(0, "MC: failed edac_mc_add_mc()\n");
  479. rc = -EINVAL;
  480. goto fail;
  481. }
  482. return 0;
  483. fail:
  484. kfree(mci->ctl_name);
  485. fail0:
  486. edac_mc_free(mci);
  487. imc->mci = NULL;
  488. return rc;
  489. }
  490. EXPORT_SYMBOL_GPL(skx_register_mci);
  491. static void skx_unregister_mci(struct skx_imc *imc)
  492. {
  493. struct mem_ctl_info *mci = imc->mci;
  494. if (!mci)
  495. return;
  496. edac_dbg(0, "MC%d: mci = %p\n", imc->mc, mci);
  497. /* Remove MC sysfs nodes */
  498. edac_mc_del_mc(mci->pdev);
  499. edac_dbg(1, "%s: free mci struct\n", mci->ctl_name);
  500. kfree(mci->ctl_name);
  501. edac_mc_free(mci);
  502. }
  503. static void skx_mce_output_error(struct mem_ctl_info *mci,
  504. const struct mce *m,
  505. struct decoded_addr *res)
  506. {
  507. enum hw_event_mc_err_type tp_event;
  508. char *optype;
  509. bool ripv = GET_BITFIELD(m->mcgstatus, 0, 0);
  510. bool overflow = GET_BITFIELD(m->status, 62, 62);
  511. bool uncorrected_error = GET_BITFIELD(m->status, 61, 61);
  512. bool scrub_err = false;
  513. bool recoverable;
  514. int len;
  515. u32 core_err_cnt = GET_BITFIELD(m->status, 38, 52);
  516. u32 mscod = GET_BITFIELD(m->status, 16, 31);
  517. u32 errcode = GET_BITFIELD(m->status, 0, 15);
  518. u32 optypenum = GET_BITFIELD(m->status, 4, 6);
  519. recoverable = GET_BITFIELD(m->status, 56, 56);
  520. if (uncorrected_error) {
  521. core_err_cnt = 1;
  522. if (ripv) {
  523. tp_event = HW_EVENT_ERR_UNCORRECTED;
  524. } else {
  525. tp_event = HW_EVENT_ERR_FATAL;
  526. }
  527. } else {
  528. tp_event = HW_EVENT_ERR_CORRECTED;
  529. }
  530. switch (optypenum) {
  531. case 0:
  532. optype = "generic undef request error";
  533. break;
  534. case 1:
  535. optype = "memory read error";
  536. break;
  537. case 2:
  538. optype = "memory write error";
  539. break;
  540. case 3:
  541. optype = "addr/cmd error";
  542. break;
  543. case 4:
  544. optype = "memory scrubbing error";
  545. scrub_err = true;
  546. break;
  547. default:
  548. optype = "reserved";
  549. break;
  550. }
  551. if (res->decoded_by_adxl) {
  552. len = snprintf(skx_msg, MSG_SIZE, "%s%s err_code:0x%04x:0x%04x %s",
  553. overflow ? " OVERFLOW" : "",
  554. (uncorrected_error && recoverable) ? " recoverable" : "",
  555. mscod, errcode, adxl_msg);
  556. } else {
  557. len = snprintf(skx_msg, MSG_SIZE,
  558. "%s%s err_code:0x%04x:0x%04x ProcessorSocketId:0x%x MemoryControllerId:0x%x PhysicalRankId:0x%x Row:0x%x Column:0x%x Bank:0x%x BankGroup:0x%x",
  559. overflow ? " OVERFLOW" : "",
  560. (uncorrected_error && recoverable) ? " recoverable" : "",
  561. mscod, errcode,
  562. res->socket, res->imc, res->rank,
  563. res->row, res->column, res->bank_address, res->bank_group);
  564. }
  565. if (skx_show_retry_rd_err_log)
  566. skx_show_retry_rd_err_log(res, skx_msg + len, MSG_SIZE - len, scrub_err);
  567. edac_dbg(0, "%s\n", skx_msg);
  568. /* Call the helper to output message */
  569. edac_mc_handle_error(tp_event, mci, core_err_cnt,
  570. m->addr >> PAGE_SHIFT, m->addr & ~PAGE_MASK, 0,
  571. res->channel, res->dimm, -1,
  572. optype, skx_msg);
  573. }
  574. static enum error_source skx_error_source(const struct mce *m)
  575. {
  576. u32 errcode = GET_BITFIELD(m->status, 0, 15) & MCACOD_MEM_ERR_MASK;
  577. if (errcode != MCACOD_MEM_CTL_ERR && errcode != MCACOD_EXT_MEM_ERR)
  578. return ERR_SRC_NOT_MEMORY;
  579. if (!skx_mem_cfg_2lm)
  580. return ERR_SRC_1LM;
  581. if (errcode == MCACOD_EXT_MEM_ERR)
  582. return ERR_SRC_2LM_NM;
  583. return ERR_SRC_2LM_FM;
  584. }
  585. int skx_mce_check_error(struct notifier_block *nb, unsigned long val,
  586. void *data)
  587. {
  588. struct mce *mce = (struct mce *)data;
  589. enum error_source err_src;
  590. struct decoded_addr res;
  591. struct mem_ctl_info *mci;
  592. char *type;
  593. if (mce->kflags & MCE_HANDLED_CEC)
  594. return NOTIFY_DONE;
  595. err_src = skx_error_source(mce);
  596. /* Ignore unless this is memory related with an address */
  597. if (err_src == ERR_SRC_NOT_MEMORY || !(mce->status & MCI_STATUS_ADDRV))
  598. return NOTIFY_DONE;
  599. memset(&res, 0, sizeof(res));
  600. res.mce = mce;
  601. res.addr = mce->addr & MCI_ADDR_PHYSADDR;
  602. if (!pfn_to_online_page(res.addr >> PAGE_SHIFT) && !arch_is_platform_page(res.addr)) {
  603. pr_err("Invalid address 0x%llx in IA32_MC%d_ADDR\n", mce->addr, mce->bank);
  604. return NOTIFY_DONE;
  605. }
  606. /* Try driver decoder first */
  607. if (!(driver_decode && driver_decode(&res))) {
  608. /* Then try firmware decoder (ACPI DSM methods) */
  609. if (!(adxl_component_count && skx_adxl_decode(&res, err_src)))
  610. return NOTIFY_DONE;
  611. }
  612. mci = res.dev->imc[res.imc].mci;
  613. if (!mci)
  614. return NOTIFY_DONE;
  615. if (mce->mcgstatus & MCG_STATUS_MCIP)
  616. type = "Exception";
  617. else
  618. type = "Event";
  619. skx_mc_printk(mci, KERN_DEBUG, "HANDLING MCE MEMORY ERROR\n");
  620. skx_mc_printk(mci, KERN_DEBUG, "CPU %d: Machine Check %s: 0x%llx "
  621. "Bank %d: 0x%llx\n", mce->extcpu, type,
  622. mce->mcgstatus, mce->bank, mce->status);
  623. skx_mc_printk(mci, KERN_DEBUG, "TSC 0x%llx ", mce->tsc);
  624. skx_mc_printk(mci, KERN_DEBUG, "ADDR 0x%llx ", mce->addr);
  625. skx_mc_printk(mci, KERN_DEBUG, "MISC 0x%llx ", mce->misc);
  626. skx_mc_printk(mci, KERN_DEBUG, "PROCESSOR %u:0x%x TIME %llu SOCKET "
  627. "%u APIC 0x%x\n", mce->cpuvendor, mce->cpuid,
  628. mce->time, mce->socketid, mce->apicid);
  629. skx_mce_output_error(mci, mce, &res);
  630. mce->kflags |= MCE_HANDLED_EDAC;
  631. return NOTIFY_DONE;
  632. }
  633. EXPORT_SYMBOL_GPL(skx_mce_check_error);
  634. void skx_remove(void)
  635. {
  636. int i, j;
  637. struct skx_dev *d, *tmp;
  638. edac_dbg(0, "\n");
  639. list_for_each_entry_safe(d, tmp, &dev_edac_list, list) {
  640. list_del(&d->list);
  641. for (i = 0; i < NUM_IMC; i++) {
  642. if (d->imc[i].mci)
  643. skx_unregister_mci(&d->imc[i]);
  644. if (d->imc[i].mdev)
  645. pci_dev_put(d->imc[i].mdev);
  646. if (d->imc[i].mbase)
  647. iounmap(d->imc[i].mbase);
  648. for (j = 0; j < NUM_CHANNELS; j++) {
  649. if (d->imc[i].chan[j].cdev)
  650. pci_dev_put(d->imc[i].chan[j].cdev);
  651. }
  652. }
  653. if (d->util_all)
  654. pci_dev_put(d->util_all);
  655. if (d->pcu_cr3)
  656. pci_dev_put(d->pcu_cr3);
  657. if (d->sad_all)
  658. pci_dev_put(d->sad_all);
  659. if (d->uracu)
  660. pci_dev_put(d->uracu);
  661. kfree(d);
  662. }
  663. }
  664. EXPORT_SYMBOL_GPL(skx_remove);
  665. #ifdef CONFIG_EDAC_DEBUG
  666. /*
  667. * Debug feature.
  668. * Exercise the address decode logic by writing an address to
  669. * /sys/kernel/debug/edac/{skx,i10nm}_test/addr.
  670. */
  671. static struct dentry *skx_test;
  672. static int debugfs_u64_set(void *data, u64 val)
  673. {
  674. struct mce m;
  675. pr_warn_once("Fake error to 0x%llx injected via debugfs\n", val);
  676. memset(&m, 0, sizeof(m));
  677. /* ADDRV + MemRd + Unknown channel */
  678. m.status = MCI_STATUS_ADDRV + 0x90;
  679. /* One corrected error */
  680. m.status |= BIT_ULL(MCI_STATUS_CEC_SHIFT);
  681. m.addr = val;
  682. skx_mce_check_error(NULL, 0, &m);
  683. return 0;
  684. }
  685. DEFINE_SIMPLE_ATTRIBUTE(fops_u64_wo, NULL, debugfs_u64_set, "%llu\n");
  686. void skx_setup_debug(const char *name)
  687. {
  688. skx_test = edac_debugfs_create_dir(name);
  689. if (!skx_test)
  690. return;
  691. if (!edac_debugfs_create_file("addr", 0200, skx_test,
  692. NULL, &fops_u64_wo)) {
  693. debugfs_remove(skx_test);
  694. skx_test = NULL;
  695. }
  696. }
  697. EXPORT_SYMBOL_GPL(skx_setup_debug);
  698. void skx_teardown_debug(void)
  699. {
  700. debugfs_remove_recursive(skx_test);
  701. }
  702. EXPORT_SYMBOL_GPL(skx_teardown_debug);
  703. #endif /*CONFIG_EDAC_DEBUG*/
  704. MODULE_LICENSE("GPL v2");
  705. MODULE_AUTHOR("Tony Luck");
  706. MODULE_DESCRIPTION("MC Driver for Intel server processors");