skx_base.c 19 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. * EDAC driver for Intel(R) Xeon(R) Skylake processors
  4. * Copyright (c) 2016, Intel Corporation.
  5. */
  6. #include <linux/kernel.h>
  7. #include <linux/processor.h>
  8. #include <asm/cpu_device_id.h>
  9. #include <asm/intel-family.h>
  10. #include <asm/mce.h>
  11. #include "edac_module.h"
  12. #include "skx_common.h"
  13. #define EDAC_MOD_STR "skx_edac"
  14. /*
  15. * Debug macros
  16. */
  17. #define skx_printk(level, fmt, arg...) \
  18. edac_printk(level, "skx", fmt, ##arg)
  19. #define skx_mc_printk(mci, level, fmt, arg...) \
  20. edac_mc_chipset_printk(mci, level, "skx", fmt, ##arg)
  21. static struct list_head *skx_edac_list;
  22. static u64 skx_tolm, skx_tohm;
  23. static int skx_num_sockets;
  24. static unsigned int nvdimm_count;
  25. #define MASK26 0x3FFFFFF /* Mask for 2^26 */
  26. #define MASK29 0x1FFFFFFF /* Mask for 2^29 */
  27. static struct res_config skx_cfg = {
  28. .type = SKX,
  29. .decs_did = 0x2016,
  30. .busno_cfg_offset = 0xcc,
  31. .ddr_imc_num = 2,
  32. .ddr_chan_num = 3,
  33. .ddr_dimm_num = 2,
  34. };
  35. static struct skx_dev *get_skx_dev(struct pci_bus *bus, u8 idx)
  36. {
  37. struct skx_dev *d;
  38. list_for_each_entry(d, skx_edac_list, list) {
  39. if (d->seg == pci_domain_nr(bus) && d->bus[idx] == bus->number)
  40. return d;
  41. }
  42. return NULL;
  43. }
  44. enum munittype {
  45. CHAN0, CHAN1, CHAN2, SAD_ALL, UTIL_ALL, SAD,
  46. ERRCHAN0, ERRCHAN1, ERRCHAN2,
  47. };
  48. struct munit {
  49. u16 did;
  50. u16 devfn[2];
  51. u8 busidx;
  52. u8 per_socket;
  53. enum munittype mtype;
  54. };
  55. /*
  56. * List of PCI device ids that we need together with some device
  57. * number and function numbers to tell which memory controller the
  58. * device belongs to.
  59. */
  60. static const struct munit skx_all_munits[] = {
  61. { 0x2054, { }, 1, 1, SAD_ALL },
  62. { 0x2055, { }, 1, 1, UTIL_ALL },
  63. { 0x2040, { PCI_DEVFN(10, 0), PCI_DEVFN(12, 0) }, 2, 2, CHAN0 },
  64. { 0x2044, { PCI_DEVFN(10, 4), PCI_DEVFN(12, 4) }, 2, 2, CHAN1 },
  65. { 0x2048, { PCI_DEVFN(11, 0), PCI_DEVFN(13, 0) }, 2, 2, CHAN2 },
  66. { 0x2043, { PCI_DEVFN(10, 3), PCI_DEVFN(12, 3) }, 2, 2, ERRCHAN0 },
  67. { 0x2047, { PCI_DEVFN(10, 7), PCI_DEVFN(12, 7) }, 2, 2, ERRCHAN1 },
  68. { 0x204b, { PCI_DEVFN(11, 3), PCI_DEVFN(13, 3) }, 2, 2, ERRCHAN2 },
  69. { 0x208e, { }, 1, 0, SAD },
  70. { }
  71. };
  72. static int get_all_munits(const struct munit *m)
  73. {
  74. struct pci_dev *pdev, *prev;
  75. struct skx_dev *d;
  76. u32 reg;
  77. int i = 0, ndev = 0;
  78. prev = NULL;
  79. for (;;) {
  80. pdev = pci_get_device(PCI_VENDOR_ID_INTEL, m->did, prev);
  81. if (!pdev)
  82. break;
  83. ndev++;
  84. if (m->per_socket == skx_cfg.ddr_imc_num) {
  85. for (i = 0; i < skx_cfg.ddr_imc_num; i++)
  86. if (m->devfn[i] == pdev->devfn)
  87. break;
  88. if (i == skx_cfg.ddr_imc_num)
  89. goto fail;
  90. }
  91. d = get_skx_dev(pdev->bus, m->busidx);
  92. if (!d)
  93. goto fail;
  94. /* Be sure that the device is enabled */
  95. if (unlikely(pci_enable_device(pdev) < 0)) {
  96. skx_printk(KERN_ERR, "Couldn't enable device %04x:%04x\n",
  97. PCI_VENDOR_ID_INTEL, m->did);
  98. goto fail;
  99. }
  100. switch (m->mtype) {
  101. case CHAN0:
  102. case CHAN1:
  103. case CHAN2:
  104. pci_dev_get(pdev);
  105. d->imc[i].chan[m->mtype].cdev = pdev;
  106. break;
  107. case ERRCHAN0:
  108. case ERRCHAN1:
  109. case ERRCHAN2:
  110. pci_dev_get(pdev);
  111. d->imc[i].chan[m->mtype - ERRCHAN0].edev = pdev;
  112. break;
  113. case SAD_ALL:
  114. pci_dev_get(pdev);
  115. d->sad_all = pdev;
  116. break;
  117. case UTIL_ALL:
  118. pci_dev_get(pdev);
  119. d->util_all = pdev;
  120. break;
  121. case SAD:
  122. /*
  123. * one of these devices per core, including cores
  124. * that don't exist on this SKU. Ignore any that
  125. * read a route table of zero, make sure all the
  126. * non-zero values match.
  127. */
  128. pci_read_config_dword(pdev, 0xB4, &reg);
  129. if (reg != 0) {
  130. if (d->mcroute == 0) {
  131. d->mcroute = reg;
  132. } else if (d->mcroute != reg) {
  133. skx_printk(KERN_ERR, "mcroute mismatch\n");
  134. goto fail;
  135. }
  136. }
  137. ndev--;
  138. break;
  139. }
  140. prev = pdev;
  141. }
  142. return ndev;
  143. fail:
  144. pci_dev_put(pdev);
  145. return -ENODEV;
  146. }
  147. static const struct x86_cpu_id skx_cpuids[] = {
  148. X86_MATCH_VFM(INTEL_SKYLAKE_X, &skx_cfg),
  149. { }
  150. };
  151. MODULE_DEVICE_TABLE(x86cpu, skx_cpuids);
  152. static bool skx_check_ecc(u32 mcmtr)
  153. {
  154. return !!GET_BITFIELD(mcmtr, 2, 2);
  155. }
  156. static int skx_get_dimm_config(struct mem_ctl_info *mci, struct res_config *cfg)
  157. {
  158. struct skx_pvt *pvt = mci->pvt_info;
  159. u32 mtr, mcmtr, amap, mcddrtcfg;
  160. struct skx_imc *imc = pvt->imc;
  161. struct dimm_info *dimm;
  162. int i, j;
  163. int ndimms;
  164. /* Only the mcmtr on the first channel is effective */
  165. pci_read_config_dword(imc->chan[0].cdev, 0x87c, &mcmtr);
  166. for (i = 0; i < cfg->ddr_chan_num; i++) {
  167. ndimms = 0;
  168. pci_read_config_dword(imc->chan[i].cdev, 0x8C, &amap);
  169. pci_read_config_dword(imc->chan[i].cdev, 0x400, &mcddrtcfg);
  170. for (j = 0; j < cfg->ddr_dimm_num; j++) {
  171. dimm = edac_get_dimm(mci, i, j, 0);
  172. pci_read_config_dword(imc->chan[i].cdev,
  173. 0x80 + 4 * j, &mtr);
  174. if (IS_DIMM_PRESENT(mtr)) {
  175. ndimms += skx_get_dimm_info(mtr, mcmtr, amap, dimm, imc, i, j, cfg);
  176. } else if (IS_NVDIMM_PRESENT(mcddrtcfg, j)) {
  177. ndimms += skx_get_nvdimm_info(dimm, imc, i, j,
  178. EDAC_MOD_STR);
  179. nvdimm_count++;
  180. }
  181. }
  182. if (ndimms && !skx_check_ecc(mcmtr)) {
  183. skx_printk(KERN_ERR, "ECC is disabled on imc %d\n", imc->mc);
  184. return -ENODEV;
  185. }
  186. }
  187. return 0;
  188. }
  189. #define SKX_MAX_SAD 24
  190. #define SKX_GET_SAD(d, i, reg) \
  191. pci_read_config_dword((d)->sad_all, 0x60 + 8 * (i), &(reg))
  192. #define SKX_GET_ILV(d, i, reg) \
  193. pci_read_config_dword((d)->sad_all, 0x64 + 8 * (i), &(reg))
  194. #define SKX_SAD_MOD3MODE(sad) GET_BITFIELD((sad), 30, 31)
  195. #define SKX_SAD_MOD3(sad) GET_BITFIELD((sad), 27, 27)
  196. #define SKX_SAD_LIMIT(sad) (((u64)GET_BITFIELD((sad), 7, 26) << 26) | MASK26)
  197. #define SKX_SAD_MOD3ASMOD2(sad) GET_BITFIELD((sad), 5, 6)
  198. #define SKX_SAD_ATTR(sad) GET_BITFIELD((sad), 3, 4)
  199. #define SKX_SAD_INTERLEAVE(sad) GET_BITFIELD((sad), 1, 2)
  200. #define SKX_SAD_ENABLE(sad) GET_BITFIELD((sad), 0, 0)
  201. #define SKX_ILV_REMOTE(tgt) (((tgt) & 8) == 0)
  202. #define SKX_ILV_TARGET(tgt) ((tgt) & 7)
  203. static void skx_show_retry_rd_err_log(struct decoded_addr *res,
  204. char *msg, int len,
  205. bool scrub_err)
  206. {
  207. u32 log0, log1, log2, log3, log4;
  208. u32 corr0, corr1, corr2, corr3;
  209. struct pci_dev *edev;
  210. int n;
  211. edev = res->dev->imc[res->imc].chan[res->channel].edev;
  212. pci_read_config_dword(edev, 0x154, &log0);
  213. pci_read_config_dword(edev, 0x148, &log1);
  214. pci_read_config_dword(edev, 0x150, &log2);
  215. pci_read_config_dword(edev, 0x15c, &log3);
  216. pci_read_config_dword(edev, 0x114, &log4);
  217. n = snprintf(msg, len, " retry_rd_err_log[%.8x %.8x %.8x %.8x %.8x]",
  218. log0, log1, log2, log3, log4);
  219. pci_read_config_dword(edev, 0x104, &corr0);
  220. pci_read_config_dword(edev, 0x108, &corr1);
  221. pci_read_config_dword(edev, 0x10c, &corr2);
  222. pci_read_config_dword(edev, 0x110, &corr3);
  223. if (len - n > 0)
  224. snprintf(msg + n, len - n,
  225. " correrrcnt[%.4x %.4x %.4x %.4x %.4x %.4x %.4x %.4x]",
  226. corr0 & 0xffff, corr0 >> 16,
  227. corr1 & 0xffff, corr1 >> 16,
  228. corr2 & 0xffff, corr2 >> 16,
  229. corr3 & 0xffff, corr3 >> 16);
  230. }
  231. static bool skx_sad_decode(struct decoded_addr *res)
  232. {
  233. struct skx_dev *d = list_first_entry(skx_edac_list, typeof(*d), list);
  234. u64 addr = res->addr;
  235. int i, idx, tgt, lchan, shift;
  236. u32 sad, ilv;
  237. u64 limit, prev_limit;
  238. int remote = 0;
  239. /* Simple sanity check for I/O space or out of range */
  240. if (addr >= skx_tohm || (addr >= skx_tolm && addr < BIT_ULL(32))) {
  241. edac_dbg(0, "Address 0x%llx out of range\n", addr);
  242. return false;
  243. }
  244. restart:
  245. prev_limit = 0;
  246. for (i = 0; i < SKX_MAX_SAD; i++) {
  247. SKX_GET_SAD(d, i, sad);
  248. limit = SKX_SAD_LIMIT(sad);
  249. if (SKX_SAD_ENABLE(sad)) {
  250. if (addr >= prev_limit && addr <= limit)
  251. goto sad_found;
  252. }
  253. prev_limit = limit + 1;
  254. }
  255. edac_dbg(0, "No SAD entry for 0x%llx\n", addr);
  256. return false;
  257. sad_found:
  258. SKX_GET_ILV(d, i, ilv);
  259. switch (SKX_SAD_INTERLEAVE(sad)) {
  260. case 0:
  261. idx = GET_BITFIELD(addr, 6, 8);
  262. break;
  263. case 1:
  264. idx = GET_BITFIELD(addr, 8, 10);
  265. break;
  266. case 2:
  267. idx = GET_BITFIELD(addr, 12, 14);
  268. break;
  269. case 3:
  270. idx = GET_BITFIELD(addr, 30, 32);
  271. break;
  272. }
  273. tgt = GET_BITFIELD(ilv, 4 * idx, 4 * idx + 3);
  274. /* If point to another node, find it and start over */
  275. if (SKX_ILV_REMOTE(tgt)) {
  276. if (remote) {
  277. edac_dbg(0, "Double remote!\n");
  278. return false;
  279. }
  280. remote = 1;
  281. list_for_each_entry(d, skx_edac_list, list) {
  282. if (d->imc[0].src_id == SKX_ILV_TARGET(tgt))
  283. goto restart;
  284. }
  285. edac_dbg(0, "Can't find node %d\n", SKX_ILV_TARGET(tgt));
  286. return false;
  287. }
  288. if (SKX_SAD_MOD3(sad) == 0) {
  289. lchan = SKX_ILV_TARGET(tgt);
  290. } else {
  291. switch (SKX_SAD_MOD3MODE(sad)) {
  292. case 0:
  293. shift = 6;
  294. break;
  295. case 1:
  296. shift = 8;
  297. break;
  298. case 2:
  299. shift = 12;
  300. break;
  301. default:
  302. edac_dbg(0, "illegal mod3mode\n");
  303. return false;
  304. }
  305. switch (SKX_SAD_MOD3ASMOD2(sad)) {
  306. case 0:
  307. lchan = (addr >> shift) % 3;
  308. break;
  309. case 1:
  310. lchan = (addr >> shift) % 2;
  311. break;
  312. case 2:
  313. lchan = (addr >> shift) % 2;
  314. lchan = (lchan << 1) | !lchan;
  315. break;
  316. case 3:
  317. lchan = ((addr >> shift) % 2) << 1;
  318. break;
  319. }
  320. lchan = (lchan << 1) | (SKX_ILV_TARGET(tgt) & 1);
  321. }
  322. res->dev = d;
  323. res->socket = d->imc[0].src_id;
  324. res->imc = GET_BITFIELD(d->mcroute, lchan * 3, lchan * 3 + 2);
  325. res->channel = GET_BITFIELD(d->mcroute, lchan * 2 + 18, lchan * 2 + 19);
  326. edac_dbg(2, "0x%llx: socket=%d imc=%d channel=%d\n",
  327. res->addr, res->socket, res->imc, res->channel);
  328. return true;
  329. }
  330. #define SKX_MAX_TAD 8
  331. #define SKX_GET_TADBASE(d, mc, i, reg) \
  332. pci_read_config_dword((d)->imc[mc].chan[0].cdev, 0x850 + 4 * (i), &(reg))
  333. #define SKX_GET_TADWAYNESS(d, mc, i, reg) \
  334. pci_read_config_dword((d)->imc[mc].chan[0].cdev, 0x880 + 4 * (i), &(reg))
  335. #define SKX_GET_TADCHNILVOFFSET(d, mc, ch, i, reg) \
  336. pci_read_config_dword((d)->imc[mc].chan[ch].cdev, 0x90 + 4 * (i), &(reg))
  337. #define SKX_TAD_BASE(b) ((u64)GET_BITFIELD((b), 12, 31) << 26)
  338. #define SKX_TAD_SKT_GRAN(b) GET_BITFIELD((b), 4, 5)
  339. #define SKX_TAD_CHN_GRAN(b) GET_BITFIELD((b), 6, 7)
  340. #define SKX_TAD_LIMIT(b) (((u64)GET_BITFIELD((b), 12, 31) << 26) | MASK26)
  341. #define SKX_TAD_OFFSET(b) ((u64)GET_BITFIELD((b), 4, 23) << 26)
  342. #define SKX_TAD_SKTWAYS(b) (1 << GET_BITFIELD((b), 10, 11))
  343. #define SKX_TAD_CHNWAYS(b) (GET_BITFIELD((b), 8, 9) + 1)
  344. /* which bit used for both socket and channel interleave */
  345. static int skx_granularity[] = { 6, 8, 12, 30 };
  346. static u64 skx_do_interleave(u64 addr, int shift, int ways, u64 lowbits)
  347. {
  348. addr >>= shift;
  349. addr /= ways;
  350. addr <<= shift;
  351. return addr | (lowbits & ((1ull << shift) - 1));
  352. }
  353. static bool skx_tad_decode(struct decoded_addr *res)
  354. {
  355. int i;
  356. u32 base, wayness, chnilvoffset;
  357. int skt_interleave_bit, chn_interleave_bit;
  358. u64 channel_addr;
  359. for (i = 0; i < SKX_MAX_TAD; i++) {
  360. SKX_GET_TADBASE(res->dev, res->imc, i, base);
  361. SKX_GET_TADWAYNESS(res->dev, res->imc, i, wayness);
  362. if (SKX_TAD_BASE(base) <= res->addr && res->addr <= SKX_TAD_LIMIT(wayness))
  363. goto tad_found;
  364. }
  365. edac_dbg(0, "No TAD entry for 0x%llx\n", res->addr);
  366. return false;
  367. tad_found:
  368. res->sktways = SKX_TAD_SKTWAYS(wayness);
  369. res->chanways = SKX_TAD_CHNWAYS(wayness);
  370. skt_interleave_bit = skx_granularity[SKX_TAD_SKT_GRAN(base)];
  371. chn_interleave_bit = skx_granularity[SKX_TAD_CHN_GRAN(base)];
  372. SKX_GET_TADCHNILVOFFSET(res->dev, res->imc, res->channel, i, chnilvoffset);
  373. channel_addr = res->addr - SKX_TAD_OFFSET(chnilvoffset);
  374. if (res->chanways == 3 && skt_interleave_bit > chn_interleave_bit) {
  375. /* Must handle channel first, then socket */
  376. channel_addr = skx_do_interleave(channel_addr, chn_interleave_bit,
  377. res->chanways, channel_addr);
  378. channel_addr = skx_do_interleave(channel_addr, skt_interleave_bit,
  379. res->sktways, channel_addr);
  380. } else {
  381. /* Handle socket then channel. Preserve low bits from original address */
  382. channel_addr = skx_do_interleave(channel_addr, skt_interleave_bit,
  383. res->sktways, res->addr);
  384. channel_addr = skx_do_interleave(channel_addr, chn_interleave_bit,
  385. res->chanways, res->addr);
  386. }
  387. res->chan_addr = channel_addr;
  388. edac_dbg(2, "0x%llx: chan_addr=0x%llx sktways=%d chanways=%d\n",
  389. res->addr, res->chan_addr, res->sktways, res->chanways);
  390. return true;
  391. }
  392. #define SKX_MAX_RIR 4
  393. #define SKX_GET_RIRWAYNESS(d, mc, ch, i, reg) \
  394. pci_read_config_dword((d)->imc[mc].chan[ch].cdev, \
  395. 0x108 + 4 * (i), &(reg))
  396. #define SKX_GET_RIRILV(d, mc, ch, idx, i, reg) \
  397. pci_read_config_dword((d)->imc[mc].chan[ch].cdev, \
  398. 0x120 + 16 * (idx) + 4 * (i), &(reg))
  399. #define SKX_RIR_VALID(b) GET_BITFIELD((b), 31, 31)
  400. #define SKX_RIR_LIMIT(b) (((u64)GET_BITFIELD((b), 1, 11) << 29) | MASK29)
  401. #define SKX_RIR_WAYS(b) (1 << GET_BITFIELD((b), 28, 29))
  402. #define SKX_RIR_CHAN_RANK(b) GET_BITFIELD((b), 16, 19)
  403. #define SKX_RIR_OFFSET(b) ((u64)(GET_BITFIELD((b), 2, 15) << 26))
  404. static bool skx_rir_decode(struct decoded_addr *res)
  405. {
  406. int i, idx, chan_rank;
  407. int shift;
  408. u32 rirway, rirlv;
  409. u64 rank_addr, prev_limit = 0, limit;
  410. if (res->dev->imc[res->imc].chan[res->channel].dimms[0].close_pg)
  411. shift = 6;
  412. else
  413. shift = 13;
  414. for (i = 0; i < SKX_MAX_RIR; i++) {
  415. SKX_GET_RIRWAYNESS(res->dev, res->imc, res->channel, i, rirway);
  416. limit = SKX_RIR_LIMIT(rirway);
  417. if (SKX_RIR_VALID(rirway)) {
  418. if (prev_limit <= res->chan_addr &&
  419. res->chan_addr <= limit)
  420. goto rir_found;
  421. }
  422. prev_limit = limit;
  423. }
  424. edac_dbg(0, "No RIR entry for 0x%llx\n", res->addr);
  425. return false;
  426. rir_found:
  427. rank_addr = res->chan_addr >> shift;
  428. rank_addr /= SKX_RIR_WAYS(rirway);
  429. rank_addr <<= shift;
  430. rank_addr |= res->chan_addr & GENMASK_ULL(shift - 1, 0);
  431. res->rank_address = rank_addr;
  432. idx = (res->chan_addr >> shift) % SKX_RIR_WAYS(rirway);
  433. SKX_GET_RIRILV(res->dev, res->imc, res->channel, idx, i, rirlv);
  434. res->rank_address = rank_addr - SKX_RIR_OFFSET(rirlv);
  435. chan_rank = SKX_RIR_CHAN_RANK(rirlv);
  436. res->channel_rank = chan_rank;
  437. res->dimm = chan_rank / 4;
  438. res->rank = chan_rank % 4;
  439. edac_dbg(2, "0x%llx: dimm=%d rank=%d chan_rank=%d rank_addr=0x%llx\n",
  440. res->addr, res->dimm, res->rank,
  441. res->channel_rank, res->rank_address);
  442. return true;
  443. }
  444. static u8 skx_close_row[] = {
  445. 15, 16, 17, 18, 20, 21, 22, 28, 10, 11, 12, 13, 29, 30, 31, 32, 33, 34
  446. };
  447. static u8 skx_close_column[] = {
  448. 3, 4, 5, 14, 19, 23, 24, 25, 26, 27
  449. };
  450. static u8 skx_open_row[] = {
  451. 14, 15, 16, 20, 28, 21, 22, 23, 24, 25, 26, 27, 29, 30, 31, 32, 33, 34
  452. };
  453. static u8 skx_open_column[] = {
  454. 3, 4, 5, 6, 7, 8, 9, 10, 11, 12
  455. };
  456. static u8 skx_open_fine_column[] = {
  457. 3, 4, 5, 7, 8, 9, 10, 11, 12, 13
  458. };
  459. static int skx_bits(u64 addr, int nbits, u8 *bits)
  460. {
  461. int i, res = 0;
  462. for (i = 0; i < nbits; i++)
  463. res |= ((addr >> bits[i]) & 1) << i;
  464. return res;
  465. }
  466. static int skx_bank_bits(u64 addr, int b0, int b1, int do_xor, int x0, int x1)
  467. {
  468. int ret = GET_BITFIELD(addr, b0, b0) | (GET_BITFIELD(addr, b1, b1) << 1);
  469. if (do_xor)
  470. ret ^= GET_BITFIELD(addr, x0, x0) | (GET_BITFIELD(addr, x1, x1) << 1);
  471. return ret;
  472. }
  473. static bool skx_mad_decode(struct decoded_addr *r)
  474. {
  475. struct skx_dimm *dimm = &r->dev->imc[r->imc].chan[r->channel].dimms[r->dimm];
  476. int bg0 = dimm->fine_grain_bank ? 6 : 13;
  477. if (dimm->close_pg) {
  478. r->row = skx_bits(r->rank_address, dimm->rowbits, skx_close_row);
  479. r->column = skx_bits(r->rank_address, dimm->colbits, skx_close_column);
  480. r->column |= 0x400; /* C10 is autoprecharge, always set */
  481. r->bank_address = skx_bank_bits(r->rank_address, 8, 9, dimm->bank_xor_enable, 22, 28);
  482. r->bank_group = skx_bank_bits(r->rank_address, 6, 7, dimm->bank_xor_enable, 20, 21);
  483. } else {
  484. r->row = skx_bits(r->rank_address, dimm->rowbits, skx_open_row);
  485. if (dimm->fine_grain_bank)
  486. r->column = skx_bits(r->rank_address, dimm->colbits, skx_open_fine_column);
  487. else
  488. r->column = skx_bits(r->rank_address, dimm->colbits, skx_open_column);
  489. r->bank_address = skx_bank_bits(r->rank_address, 18, 19, dimm->bank_xor_enable, 22, 23);
  490. r->bank_group = skx_bank_bits(r->rank_address, bg0, 17, dimm->bank_xor_enable, 20, 21);
  491. }
  492. r->row &= (1u << dimm->rowbits) - 1;
  493. edac_dbg(2, "0x%llx: row=0x%x col=0x%x bank_addr=%d bank_group=%d\n",
  494. r->addr, r->row, r->column, r->bank_address,
  495. r->bank_group);
  496. return true;
  497. }
  498. static bool skx_decode(struct decoded_addr *res)
  499. {
  500. return skx_sad_decode(res) && skx_tad_decode(res) &&
  501. skx_rir_decode(res) && skx_mad_decode(res);
  502. }
  503. static struct notifier_block skx_mce_dec = {
  504. .notifier_call = skx_mce_check_error,
  505. .priority = MCE_PRIO_EDAC,
  506. };
  507. /*
  508. * skx_init:
  509. * make sure we are running on the correct cpu model
  510. * search for all the devices we need
  511. * check which DIMMs are present.
  512. */
  513. static int __init skx_init(void)
  514. {
  515. const struct x86_cpu_id *id;
  516. struct res_config *cfg;
  517. const struct munit *m;
  518. const char *owner;
  519. int rc = 0, i, off[3] = {0xd0, 0xd4, 0xd8};
  520. u8 mc = 0, src_id;
  521. struct skx_dev *d;
  522. edac_dbg(2, "\n");
  523. if (ghes_get_devices())
  524. return -EBUSY;
  525. owner = edac_get_owner();
  526. if (owner && strncmp(owner, EDAC_MOD_STR, sizeof(EDAC_MOD_STR)))
  527. return -EBUSY;
  528. if (cpu_feature_enabled(X86_FEATURE_HYPERVISOR))
  529. return -ENODEV;
  530. id = x86_match_cpu(skx_cpuids);
  531. if (!id)
  532. return -ENODEV;
  533. cfg = (struct res_config *)id->driver_data;
  534. skx_set_res_cfg(cfg);
  535. rc = skx_get_hi_lo(0x2034, off, &skx_tolm, &skx_tohm);
  536. if (rc)
  537. return rc;
  538. rc = skx_get_all_bus_mappings(cfg, &skx_edac_list);
  539. if (rc < 0)
  540. goto fail;
  541. if (rc == 0) {
  542. edac_dbg(2, "No memory controllers found\n");
  543. return -ENODEV;
  544. }
  545. skx_num_sockets = rc;
  546. for (m = skx_all_munits; m->did; m++) {
  547. rc = get_all_munits(m);
  548. if (rc < 0)
  549. goto fail;
  550. if (rc != m->per_socket * skx_num_sockets) {
  551. edac_dbg(2, "Expected %d, got %d of 0x%x\n",
  552. m->per_socket * skx_num_sockets, rc, m->did);
  553. rc = -ENODEV;
  554. goto fail;
  555. }
  556. }
  557. list_for_each_entry(d, skx_edac_list, list) {
  558. rc = skx_get_src_id(d, 0xf0, &src_id);
  559. if (rc < 0)
  560. goto fail;
  561. edac_dbg(2, "src_id = %d\n", src_id);
  562. for (i = 0; i < cfg->ddr_imc_num; i++) {
  563. d->imc[i].mc = mc++;
  564. d->imc[i].lmc = i;
  565. d->imc[i].src_id = src_id;
  566. d->imc[i].num_channels = cfg->ddr_chan_num;
  567. d->imc[i].num_dimms = cfg->ddr_dimm_num;
  568. rc = skx_register_mci(&d->imc[i], &d->imc[i].chan[0].cdev->dev,
  569. pci_name(d->imc[i].chan[0].cdev),
  570. "Skylake Socket", EDAC_MOD_STR,
  571. skx_get_dimm_config, cfg);
  572. if (rc < 0)
  573. goto fail;
  574. }
  575. }
  576. skx_set_decode(skx_decode, skx_show_retry_rd_err_log);
  577. if (nvdimm_count && skx_adxl_get() != -ENODEV) {
  578. skx_set_decode(NULL, skx_show_retry_rd_err_log);
  579. } else {
  580. if (nvdimm_count)
  581. skx_printk(KERN_NOTICE, "Only decoding DDR4 address!\n");
  582. skx_set_decode(skx_decode, skx_show_retry_rd_err_log);
  583. }
  584. /* Ensure that the OPSTATE is set correctly for POLL or NMI */
  585. opstate_init();
  586. skx_setup_debug("skx_test");
  587. mce_register_decode_chain(&skx_mce_dec);
  588. return 0;
  589. fail:
  590. skx_remove();
  591. return rc;
  592. }
  593. static void __exit skx_exit(void)
  594. {
  595. edac_dbg(2, "\n");
  596. mce_unregister_decode_chain(&skx_mce_dec);
  597. skx_teardown_debug();
  598. if (nvdimm_count)
  599. skx_adxl_put();
  600. skx_remove();
  601. }
  602. module_init(skx_init);
  603. module_exit(skx_exit);
  604. module_param(edac_op_state, int, 0444);
  605. MODULE_PARM_DESC(edac_op_state, "EDAC Error Reporting state: 0=Poll,1=NMI");
  606. MODULE_LICENSE("GPL v2");
  607. MODULE_AUTHOR("Tony Luck");
  608. MODULE_DESCRIPTION("MC Driver for Intel Skylake server processors");