dasd_eckd.c 188 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. * Author(s)......: Holger Smolinski <Holger.Smolinski@de.ibm.com>
  4. * Horst Hummel <Horst.Hummel@de.ibm.com>
  5. * Carsten Otte <Cotte@de.ibm.com>
  6. * Martin Schwidefsky <schwidefsky@de.ibm.com>
  7. * Bugreports.to..: <Linux390@de.ibm.com>
  8. * Copyright IBM Corp. 1999, 2009
  9. * EMC Symmetrix ioctl Copyright EMC Corporation, 2008
  10. * Author.........: Nigel Hislop <hislop_nigel@emc.com>
  11. */
  12. #include <linux/stddef.h>
  13. #include <linux/kernel.h>
  14. #include <linux/slab.h>
  15. #include <linux/hdreg.h> /* HDIO_GETGEO */
  16. #include <linux/bio.h>
  17. #include <linux/module.h>
  18. #include <linux/compat.h>
  19. #include <linux/init.h>
  20. #include <linux/seq_file.h>
  21. #include <linux/uaccess.h>
  22. #include <linux/io.h>
  23. #include <asm/css_chars.h>
  24. #include <asm/debug.h>
  25. #include <asm/idals.h>
  26. #include <asm/ebcdic.h>
  27. #include <asm/cio.h>
  28. #include <asm/ccwdev.h>
  29. #include <asm/itcw.h>
  30. #include <asm/schid.h>
  31. #include <asm/chpid.h>
  32. #include "dasd_int.h"
  33. #include "dasd_eckd.h"
  34. /*
  35. * raw track access always map to 64k in memory
  36. * so it maps to 16 blocks of 4k per track
  37. */
  38. #define DASD_RAW_BLOCK_PER_TRACK 16
  39. #define DASD_RAW_BLOCKSIZE 4096
  40. /* 64k are 128 x 512 byte sectors */
  41. #define DASD_RAW_SECTORS_PER_TRACK 128
  42. MODULE_DESCRIPTION("S/390 DASD ECKD Disks device driver");
  43. MODULE_LICENSE("GPL");
  44. static struct dasd_discipline dasd_eckd_discipline;
  45. /* The ccw bus type uses this table to find devices that it sends to
  46. * dasd_eckd_probe */
  47. static struct ccw_device_id dasd_eckd_ids[] = {
  48. { CCW_DEVICE_DEVTYPE (0x3990, 0, 0x3390, 0), .driver_info = 0x1},
  49. { CCW_DEVICE_DEVTYPE (0x2105, 0, 0x3390, 0), .driver_info = 0x2},
  50. { CCW_DEVICE_DEVTYPE (0x3880, 0, 0x3380, 0), .driver_info = 0x3},
  51. { CCW_DEVICE_DEVTYPE (0x3990, 0, 0x3380, 0), .driver_info = 0x4},
  52. { CCW_DEVICE_DEVTYPE (0x2105, 0, 0x3380, 0), .driver_info = 0x5},
  53. { CCW_DEVICE_DEVTYPE (0x9343, 0, 0x9345, 0), .driver_info = 0x6},
  54. { CCW_DEVICE_DEVTYPE (0x2107, 0, 0x3390, 0), .driver_info = 0x7},
  55. { CCW_DEVICE_DEVTYPE (0x2107, 0, 0x3380, 0), .driver_info = 0x8},
  56. { CCW_DEVICE_DEVTYPE (0x1750, 0, 0x3390, 0), .driver_info = 0x9},
  57. { CCW_DEVICE_DEVTYPE (0x1750, 0, 0x3380, 0), .driver_info = 0xa},
  58. { /* end of list */ },
  59. };
  60. MODULE_DEVICE_TABLE(ccw, dasd_eckd_ids);
  61. static struct ccw_driver dasd_eckd_driver; /* see below */
  62. static void *rawpadpage;
  63. #define INIT_CQR_OK 0
  64. #define INIT_CQR_UNFORMATTED 1
  65. #define INIT_CQR_ERROR 2
  66. /* emergency request for reserve/release */
  67. static struct {
  68. struct dasd_ccw_req cqr;
  69. struct ccw1 ccw;
  70. char data[32];
  71. } *dasd_reserve_req;
  72. static DEFINE_MUTEX(dasd_reserve_mutex);
  73. static struct {
  74. struct dasd_ccw_req cqr;
  75. struct ccw1 ccw[2];
  76. char data[40];
  77. } *dasd_vol_info_req;
  78. static DEFINE_MUTEX(dasd_vol_info_mutex);
  79. struct ext_pool_exhaust_work_data {
  80. struct work_struct worker;
  81. struct dasd_device *device;
  82. struct dasd_device *base;
  83. };
  84. /* definitions for the path verification worker */
  85. struct pe_handler_work_data {
  86. struct work_struct worker;
  87. struct dasd_device *device;
  88. struct dasd_ccw_req cqr;
  89. struct ccw1 ccw;
  90. __u8 rcd_buffer[DASD_ECKD_RCD_DATA_SIZE];
  91. int isglobal;
  92. __u8 tbvpm;
  93. __u8 fcsecpm;
  94. };
  95. static struct pe_handler_work_data *pe_handler_worker;
  96. static DEFINE_MUTEX(dasd_pe_handler_mutex);
  97. struct check_attention_work_data {
  98. struct work_struct worker;
  99. struct dasd_device *device;
  100. __u8 lpum;
  101. };
  102. static int dasd_eckd_ext_pool_id(struct dasd_device *);
  103. static int prepare_itcw(struct itcw *, unsigned int, unsigned int, int,
  104. struct dasd_device *, struct dasd_device *,
  105. unsigned int, int, unsigned int, unsigned int,
  106. unsigned int, unsigned int);
  107. static int dasd_eckd_query_pprc_status(struct dasd_device *,
  108. struct dasd_pprc_data_sc4 *);
  109. /* initial attempt at a probe function. this can be simplified once
  110. * the other detection code is gone */
  111. static int
  112. dasd_eckd_probe (struct ccw_device *cdev)
  113. {
  114. int ret;
  115. /* set ECKD specific ccw-device options */
  116. ret = ccw_device_set_options(cdev, CCWDEV_ALLOW_FORCE |
  117. CCWDEV_DO_PATHGROUP | CCWDEV_DO_MULTIPATH);
  118. if (ret) {
  119. DBF_EVENT_DEVID(DBF_WARNING, cdev, "%s",
  120. "dasd_eckd_probe: could not set "
  121. "ccw-device options");
  122. return ret;
  123. }
  124. ret = dasd_generic_probe(cdev);
  125. return ret;
  126. }
  127. static int
  128. dasd_eckd_set_online(struct ccw_device *cdev)
  129. {
  130. return dasd_generic_set_online(cdev, &dasd_eckd_discipline);
  131. }
  132. static const int sizes_trk0[] = { 28, 148, 84 };
  133. #define LABEL_SIZE 140
  134. /* head and record addresses of count_area read in analysis ccw */
  135. static const int count_area_head[] = { 0, 0, 0, 0, 1 };
  136. static const int count_area_rec[] = { 1, 2, 3, 4, 1 };
  137. static inline unsigned int
  138. ceil_quot(unsigned int d1, unsigned int d2)
  139. {
  140. return (d1 + (d2 - 1)) / d2;
  141. }
  142. static unsigned int
  143. recs_per_track(struct dasd_eckd_characteristics * rdc,
  144. unsigned int kl, unsigned int dl)
  145. {
  146. int dn, kn;
  147. switch (rdc->dev_type) {
  148. case 0x3380:
  149. if (kl)
  150. return 1499 / (15 + 7 + ceil_quot(kl + 12, 32) +
  151. ceil_quot(dl + 12, 32));
  152. else
  153. return 1499 / (15 + ceil_quot(dl + 12, 32));
  154. case 0x3390:
  155. dn = ceil_quot(dl + 6, 232) + 1;
  156. if (kl) {
  157. kn = ceil_quot(kl + 6, 232) + 1;
  158. return 1729 / (10 + 9 + ceil_quot(kl + 6 * kn, 34) +
  159. 9 + ceil_quot(dl + 6 * dn, 34));
  160. } else
  161. return 1729 / (10 + 9 + ceil_quot(dl + 6 * dn, 34));
  162. case 0x9345:
  163. dn = ceil_quot(dl + 6, 232) + 1;
  164. if (kl) {
  165. kn = ceil_quot(kl + 6, 232) + 1;
  166. return 1420 / (18 + 7 + ceil_quot(kl + 6 * kn, 34) +
  167. ceil_quot(dl + 6 * dn, 34));
  168. } else
  169. return 1420 / (18 + 7 + ceil_quot(dl + 6 * dn, 34));
  170. }
  171. return 0;
  172. }
  173. static void set_ch_t(struct ch_t *geo, __u32 cyl, __u8 head)
  174. {
  175. geo->cyl = (__u16) cyl;
  176. geo->head = cyl >> 16;
  177. geo->head <<= 4;
  178. geo->head |= head;
  179. }
  180. /*
  181. * calculate failing track from sense data depending if
  182. * it is an EAV device or not
  183. */
  184. static int dasd_eckd_track_from_irb(struct irb *irb, struct dasd_device *device,
  185. sector_t *track)
  186. {
  187. struct dasd_eckd_private *private = device->private;
  188. u8 *sense = NULL;
  189. u32 cyl;
  190. u8 head;
  191. sense = dasd_get_sense(irb);
  192. if (!sense) {
  193. DBF_DEV_EVENT(DBF_WARNING, device, "%s",
  194. "ESE error no sense data\n");
  195. return -EINVAL;
  196. }
  197. if (!(sense[27] & DASD_SENSE_BIT_2)) {
  198. DBF_DEV_EVENT(DBF_WARNING, device, "%s",
  199. "ESE error no valid track data\n");
  200. return -EINVAL;
  201. }
  202. if (sense[27] & DASD_SENSE_BIT_3) {
  203. /* enhanced addressing */
  204. cyl = sense[30] << 20;
  205. cyl |= (sense[31] & 0xF0) << 12;
  206. cyl |= sense[28] << 8;
  207. cyl |= sense[29];
  208. } else {
  209. cyl = sense[29] << 8;
  210. cyl |= sense[30];
  211. }
  212. head = sense[31] & 0x0F;
  213. *track = cyl * private->rdc_data.trk_per_cyl + head;
  214. return 0;
  215. }
  216. static int set_timestamp(struct ccw1 *ccw, struct DE_eckd_data *data,
  217. struct dasd_device *device)
  218. {
  219. struct dasd_eckd_private *private = device->private;
  220. int rc;
  221. rc = get_phys_clock(&data->ep_sys_time);
  222. /*
  223. * Ignore return code if XRC is not supported or
  224. * sync clock is switched off
  225. */
  226. if ((rc && !private->rdc_data.facilities.XRC_supported) ||
  227. rc == -EOPNOTSUPP || rc == -EACCES)
  228. return 0;
  229. /* switch on System Time Stamp - needed for XRC Support */
  230. data->ga_extended |= 0x08; /* switch on 'Time Stamp Valid' */
  231. data->ga_extended |= 0x02; /* switch on 'Extended Parameter' */
  232. if (ccw) {
  233. ccw->count = sizeof(struct DE_eckd_data);
  234. ccw->flags |= CCW_FLAG_SLI;
  235. }
  236. return rc;
  237. }
  238. static int
  239. define_extent(struct ccw1 *ccw, struct DE_eckd_data *data, unsigned int trk,
  240. unsigned int totrk, int cmd, struct dasd_device *device,
  241. int blksize)
  242. {
  243. struct dasd_eckd_private *private = device->private;
  244. u16 heads, beghead, endhead;
  245. u32 begcyl, endcyl;
  246. int rc = 0;
  247. if (ccw) {
  248. ccw->cmd_code = DASD_ECKD_CCW_DEFINE_EXTENT;
  249. ccw->flags = 0;
  250. ccw->count = 16;
  251. ccw->cda = virt_to_dma32(data);
  252. }
  253. memset(data, 0, sizeof(struct DE_eckd_data));
  254. switch (cmd) {
  255. case DASD_ECKD_CCW_READ_HOME_ADDRESS:
  256. case DASD_ECKD_CCW_READ_RECORD_ZERO:
  257. case DASD_ECKD_CCW_READ:
  258. case DASD_ECKD_CCW_READ_MT:
  259. case DASD_ECKD_CCW_READ_CKD:
  260. case DASD_ECKD_CCW_READ_CKD_MT:
  261. case DASD_ECKD_CCW_READ_KD:
  262. case DASD_ECKD_CCW_READ_KD_MT:
  263. data->mask.perm = 0x1;
  264. data->attributes.operation = private->attrib.operation;
  265. break;
  266. case DASD_ECKD_CCW_READ_COUNT:
  267. data->mask.perm = 0x1;
  268. data->attributes.operation = DASD_BYPASS_CACHE;
  269. break;
  270. case DASD_ECKD_CCW_READ_TRACK:
  271. case DASD_ECKD_CCW_READ_TRACK_DATA:
  272. data->mask.perm = 0x1;
  273. data->attributes.operation = private->attrib.operation;
  274. data->blk_size = 0;
  275. break;
  276. case DASD_ECKD_CCW_WRITE:
  277. case DASD_ECKD_CCW_WRITE_MT:
  278. case DASD_ECKD_CCW_WRITE_KD:
  279. case DASD_ECKD_CCW_WRITE_KD_MT:
  280. data->mask.perm = 0x02;
  281. data->attributes.operation = private->attrib.operation;
  282. rc = set_timestamp(ccw, data, device);
  283. break;
  284. case DASD_ECKD_CCW_WRITE_CKD:
  285. case DASD_ECKD_CCW_WRITE_CKD_MT:
  286. data->attributes.operation = DASD_BYPASS_CACHE;
  287. rc = set_timestamp(ccw, data, device);
  288. break;
  289. case DASD_ECKD_CCW_ERASE:
  290. case DASD_ECKD_CCW_WRITE_HOME_ADDRESS:
  291. case DASD_ECKD_CCW_WRITE_RECORD_ZERO:
  292. data->mask.perm = 0x3;
  293. data->mask.auth = 0x1;
  294. data->attributes.operation = DASD_BYPASS_CACHE;
  295. rc = set_timestamp(ccw, data, device);
  296. break;
  297. case DASD_ECKD_CCW_WRITE_FULL_TRACK:
  298. data->mask.perm = 0x03;
  299. data->attributes.operation = private->attrib.operation;
  300. data->blk_size = 0;
  301. break;
  302. case DASD_ECKD_CCW_WRITE_TRACK_DATA:
  303. data->mask.perm = 0x02;
  304. data->attributes.operation = private->attrib.operation;
  305. data->blk_size = blksize;
  306. rc = set_timestamp(ccw, data, device);
  307. break;
  308. default:
  309. dev_err(&device->cdev->dev,
  310. "0x%x is not a known command\n", cmd);
  311. break;
  312. }
  313. data->attributes.mode = 0x3; /* ECKD */
  314. if ((private->rdc_data.cu_type == 0x2105 ||
  315. private->rdc_data.cu_type == 0x2107 ||
  316. private->rdc_data.cu_type == 0x1750)
  317. && !(private->uses_cdl && trk < 2))
  318. data->ga_extended |= 0x40; /* Regular Data Format Mode */
  319. heads = private->rdc_data.trk_per_cyl;
  320. begcyl = trk / heads;
  321. beghead = trk % heads;
  322. endcyl = totrk / heads;
  323. endhead = totrk % heads;
  324. /* check for sequential prestage - enhance cylinder range */
  325. if (data->attributes.operation == DASD_SEQ_PRESTAGE ||
  326. data->attributes.operation == DASD_SEQ_ACCESS) {
  327. if (endcyl + private->attrib.nr_cyl < private->real_cyl)
  328. endcyl += private->attrib.nr_cyl;
  329. else
  330. endcyl = (private->real_cyl - 1);
  331. }
  332. set_ch_t(&data->beg_ext, begcyl, beghead);
  333. set_ch_t(&data->end_ext, endcyl, endhead);
  334. return rc;
  335. }
  336. static void locate_record_ext(struct ccw1 *ccw, struct LRE_eckd_data *data,
  337. unsigned int trk, unsigned int rec_on_trk,
  338. int count, int cmd, struct dasd_device *device,
  339. unsigned int reclen, unsigned int tlf)
  340. {
  341. struct dasd_eckd_private *private = device->private;
  342. int sector;
  343. int dn, d;
  344. if (ccw) {
  345. ccw->cmd_code = DASD_ECKD_CCW_LOCATE_RECORD_EXT;
  346. ccw->flags = 0;
  347. if (cmd == DASD_ECKD_CCW_WRITE_FULL_TRACK)
  348. ccw->count = 22;
  349. else
  350. ccw->count = 20;
  351. ccw->cda = virt_to_dma32(data);
  352. }
  353. memset(data, 0, sizeof(*data));
  354. sector = 0;
  355. if (rec_on_trk) {
  356. switch (private->rdc_data.dev_type) {
  357. case 0x3390:
  358. dn = ceil_quot(reclen + 6, 232);
  359. d = 9 + ceil_quot(reclen + 6 * (dn + 1), 34);
  360. sector = (49 + (rec_on_trk - 1) * (10 + d)) / 8;
  361. break;
  362. case 0x3380:
  363. d = 7 + ceil_quot(reclen + 12, 32);
  364. sector = (39 + (rec_on_trk - 1) * (8 + d)) / 7;
  365. break;
  366. }
  367. }
  368. data->sector = sector;
  369. /* note: meaning of count depends on the operation
  370. * for record based I/O it's the number of records, but for
  371. * track based I/O it's the number of tracks
  372. */
  373. data->count = count;
  374. switch (cmd) {
  375. case DASD_ECKD_CCW_WRITE_HOME_ADDRESS:
  376. data->operation.orientation = 0x3;
  377. data->operation.operation = 0x03;
  378. break;
  379. case DASD_ECKD_CCW_READ_HOME_ADDRESS:
  380. data->operation.orientation = 0x3;
  381. data->operation.operation = 0x16;
  382. break;
  383. case DASD_ECKD_CCW_WRITE_RECORD_ZERO:
  384. data->operation.orientation = 0x1;
  385. data->operation.operation = 0x03;
  386. data->count++;
  387. break;
  388. case DASD_ECKD_CCW_READ_RECORD_ZERO:
  389. data->operation.orientation = 0x3;
  390. data->operation.operation = 0x16;
  391. data->count++;
  392. break;
  393. case DASD_ECKD_CCW_WRITE:
  394. case DASD_ECKD_CCW_WRITE_MT:
  395. case DASD_ECKD_CCW_WRITE_KD:
  396. case DASD_ECKD_CCW_WRITE_KD_MT:
  397. data->auxiliary.length_valid = 0x1;
  398. data->length = reclen;
  399. data->operation.operation = 0x01;
  400. break;
  401. case DASD_ECKD_CCW_WRITE_CKD:
  402. case DASD_ECKD_CCW_WRITE_CKD_MT:
  403. data->auxiliary.length_valid = 0x1;
  404. data->length = reclen;
  405. data->operation.operation = 0x03;
  406. break;
  407. case DASD_ECKD_CCW_WRITE_FULL_TRACK:
  408. data->operation.orientation = 0x0;
  409. data->operation.operation = 0x3F;
  410. data->extended_operation = 0x11;
  411. data->length = 0;
  412. data->extended_parameter_length = 0x02;
  413. if (data->count > 8) {
  414. data->extended_parameter[0] = 0xFF;
  415. data->extended_parameter[1] = 0xFF;
  416. data->extended_parameter[1] <<= (16 - count);
  417. } else {
  418. data->extended_parameter[0] = 0xFF;
  419. data->extended_parameter[0] <<= (8 - count);
  420. data->extended_parameter[1] = 0x00;
  421. }
  422. data->sector = 0xFF;
  423. break;
  424. case DASD_ECKD_CCW_WRITE_TRACK_DATA:
  425. data->auxiliary.length_valid = 0x1;
  426. data->length = reclen; /* not tlf, as one might think */
  427. data->operation.operation = 0x3F;
  428. data->extended_operation = 0x23;
  429. break;
  430. case DASD_ECKD_CCW_READ:
  431. case DASD_ECKD_CCW_READ_MT:
  432. case DASD_ECKD_CCW_READ_KD:
  433. case DASD_ECKD_CCW_READ_KD_MT:
  434. data->auxiliary.length_valid = 0x1;
  435. data->length = reclen;
  436. data->operation.operation = 0x06;
  437. break;
  438. case DASD_ECKD_CCW_READ_CKD:
  439. case DASD_ECKD_CCW_READ_CKD_MT:
  440. data->auxiliary.length_valid = 0x1;
  441. data->length = reclen;
  442. data->operation.operation = 0x16;
  443. break;
  444. case DASD_ECKD_CCW_READ_COUNT:
  445. data->operation.operation = 0x06;
  446. break;
  447. case DASD_ECKD_CCW_READ_TRACK:
  448. data->operation.orientation = 0x1;
  449. data->operation.operation = 0x0C;
  450. data->extended_parameter_length = 0;
  451. data->sector = 0xFF;
  452. break;
  453. case DASD_ECKD_CCW_READ_TRACK_DATA:
  454. data->auxiliary.length_valid = 0x1;
  455. data->length = tlf;
  456. data->operation.operation = 0x0C;
  457. break;
  458. case DASD_ECKD_CCW_ERASE:
  459. data->length = reclen;
  460. data->auxiliary.length_valid = 0x1;
  461. data->operation.operation = 0x0b;
  462. break;
  463. default:
  464. DBF_DEV_EVENT(DBF_ERR, device,
  465. "fill LRE unknown opcode 0x%x", cmd);
  466. BUG();
  467. }
  468. set_ch_t(&data->seek_addr,
  469. trk / private->rdc_data.trk_per_cyl,
  470. trk % private->rdc_data.trk_per_cyl);
  471. data->search_arg.cyl = data->seek_addr.cyl;
  472. data->search_arg.head = data->seek_addr.head;
  473. data->search_arg.record = rec_on_trk;
  474. }
  475. static int prefix_LRE(struct ccw1 *ccw, struct PFX_eckd_data *pfxdata,
  476. unsigned int trk, unsigned int totrk, int cmd,
  477. struct dasd_device *basedev, struct dasd_device *startdev,
  478. unsigned int format, unsigned int rec_on_trk, int count,
  479. unsigned int blksize, unsigned int tlf)
  480. {
  481. struct dasd_eckd_private *basepriv, *startpriv;
  482. struct LRE_eckd_data *lredata;
  483. struct DE_eckd_data *dedata;
  484. int rc = 0;
  485. basepriv = basedev->private;
  486. startpriv = startdev->private;
  487. dedata = &pfxdata->define_extent;
  488. lredata = &pfxdata->locate_record;
  489. ccw->cmd_code = DASD_ECKD_CCW_PFX;
  490. ccw->flags = 0;
  491. if (cmd == DASD_ECKD_CCW_WRITE_FULL_TRACK) {
  492. ccw->count = sizeof(*pfxdata) + 2;
  493. ccw->cda = virt_to_dma32(pfxdata);
  494. memset(pfxdata, 0, sizeof(*pfxdata) + 2);
  495. } else {
  496. ccw->count = sizeof(*pfxdata);
  497. ccw->cda = virt_to_dma32(pfxdata);
  498. memset(pfxdata, 0, sizeof(*pfxdata));
  499. }
  500. /* prefix data */
  501. if (format > 1) {
  502. DBF_DEV_EVENT(DBF_ERR, basedev,
  503. "PFX LRE unknown format 0x%x", format);
  504. BUG();
  505. return -EINVAL;
  506. }
  507. pfxdata->format = format;
  508. pfxdata->base_address = basepriv->conf.ned->unit_addr;
  509. pfxdata->base_lss = basepriv->conf.ned->ID;
  510. pfxdata->validity.define_extent = 1;
  511. /* private uid is kept up to date, conf_data may be outdated */
  512. if (startpriv->uid.type == UA_BASE_PAV_ALIAS)
  513. pfxdata->validity.verify_base = 1;
  514. if (startpriv->uid.type == UA_HYPER_PAV_ALIAS) {
  515. pfxdata->validity.verify_base = 1;
  516. pfxdata->validity.hyper_pav = 1;
  517. }
  518. rc = define_extent(NULL, dedata, trk, totrk, cmd, basedev, blksize);
  519. /*
  520. * For some commands the System Time Stamp is set in the define extent
  521. * data when XRC is supported. The validity of the time stamp must be
  522. * reflected in the prefix data as well.
  523. */
  524. if (dedata->ga_extended & 0x08 && dedata->ga_extended & 0x02)
  525. pfxdata->validity.time_stamp = 1; /* 'Time Stamp Valid' */
  526. if (format == 1) {
  527. locate_record_ext(NULL, lredata, trk, rec_on_trk, count, cmd,
  528. basedev, blksize, tlf);
  529. }
  530. return rc;
  531. }
  532. static int prefix(struct ccw1 *ccw, struct PFX_eckd_data *pfxdata,
  533. unsigned int trk, unsigned int totrk, int cmd,
  534. struct dasd_device *basedev, struct dasd_device *startdev)
  535. {
  536. return prefix_LRE(ccw, pfxdata, trk, totrk, cmd, basedev, startdev,
  537. 0, 0, 0, 0, 0);
  538. }
  539. static void
  540. locate_record(struct ccw1 *ccw, struct LO_eckd_data *data, unsigned int trk,
  541. unsigned int rec_on_trk, int no_rec, int cmd,
  542. struct dasd_device * device, int reclen)
  543. {
  544. struct dasd_eckd_private *private = device->private;
  545. int sector;
  546. int dn, d;
  547. DBF_DEV_EVENT(DBF_INFO, device,
  548. "Locate: trk %d, rec %d, no_rec %d, cmd %d, reclen %d",
  549. trk, rec_on_trk, no_rec, cmd, reclen);
  550. ccw->cmd_code = DASD_ECKD_CCW_LOCATE_RECORD;
  551. ccw->flags = 0;
  552. ccw->count = 16;
  553. ccw->cda = virt_to_dma32(data);
  554. memset(data, 0, sizeof(struct LO_eckd_data));
  555. sector = 0;
  556. if (rec_on_trk) {
  557. switch (private->rdc_data.dev_type) {
  558. case 0x3390:
  559. dn = ceil_quot(reclen + 6, 232);
  560. d = 9 + ceil_quot(reclen + 6 * (dn + 1), 34);
  561. sector = (49 + (rec_on_trk - 1) * (10 + d)) / 8;
  562. break;
  563. case 0x3380:
  564. d = 7 + ceil_quot(reclen + 12, 32);
  565. sector = (39 + (rec_on_trk - 1) * (8 + d)) / 7;
  566. break;
  567. }
  568. }
  569. data->sector = sector;
  570. data->count = no_rec;
  571. switch (cmd) {
  572. case DASD_ECKD_CCW_WRITE_HOME_ADDRESS:
  573. data->operation.orientation = 0x3;
  574. data->operation.operation = 0x03;
  575. break;
  576. case DASD_ECKD_CCW_READ_HOME_ADDRESS:
  577. data->operation.orientation = 0x3;
  578. data->operation.operation = 0x16;
  579. break;
  580. case DASD_ECKD_CCW_WRITE_RECORD_ZERO:
  581. data->operation.orientation = 0x1;
  582. data->operation.operation = 0x03;
  583. data->count++;
  584. break;
  585. case DASD_ECKD_CCW_READ_RECORD_ZERO:
  586. data->operation.orientation = 0x3;
  587. data->operation.operation = 0x16;
  588. data->count++;
  589. break;
  590. case DASD_ECKD_CCW_WRITE:
  591. case DASD_ECKD_CCW_WRITE_MT:
  592. case DASD_ECKD_CCW_WRITE_KD:
  593. case DASD_ECKD_CCW_WRITE_KD_MT:
  594. data->auxiliary.last_bytes_used = 0x1;
  595. data->length = reclen;
  596. data->operation.operation = 0x01;
  597. break;
  598. case DASD_ECKD_CCW_WRITE_CKD:
  599. case DASD_ECKD_CCW_WRITE_CKD_MT:
  600. data->auxiliary.last_bytes_used = 0x1;
  601. data->length = reclen;
  602. data->operation.operation = 0x03;
  603. break;
  604. case DASD_ECKD_CCW_READ:
  605. case DASD_ECKD_CCW_READ_MT:
  606. case DASD_ECKD_CCW_READ_KD:
  607. case DASD_ECKD_CCW_READ_KD_MT:
  608. data->auxiliary.last_bytes_used = 0x1;
  609. data->length = reclen;
  610. data->operation.operation = 0x06;
  611. break;
  612. case DASD_ECKD_CCW_READ_CKD:
  613. case DASD_ECKD_CCW_READ_CKD_MT:
  614. data->auxiliary.last_bytes_used = 0x1;
  615. data->length = reclen;
  616. data->operation.operation = 0x16;
  617. break;
  618. case DASD_ECKD_CCW_READ_COUNT:
  619. data->operation.operation = 0x06;
  620. break;
  621. case DASD_ECKD_CCW_ERASE:
  622. data->length = reclen;
  623. data->auxiliary.last_bytes_used = 0x1;
  624. data->operation.operation = 0x0b;
  625. break;
  626. default:
  627. DBF_DEV_EVENT(DBF_ERR, device, "unknown locate record "
  628. "opcode 0x%x", cmd);
  629. }
  630. set_ch_t(&data->seek_addr,
  631. trk / private->rdc_data.trk_per_cyl,
  632. trk % private->rdc_data.trk_per_cyl);
  633. data->search_arg.cyl = data->seek_addr.cyl;
  634. data->search_arg.head = data->seek_addr.head;
  635. data->search_arg.record = rec_on_trk;
  636. }
  637. /*
  638. * Returns 1 if the block is one of the special blocks that needs
  639. * to get read/written with the KD variant of the command.
  640. * That is DASD_ECKD_READ_KD_MT instead of DASD_ECKD_READ_MT and
  641. * DASD_ECKD_WRITE_KD_MT instead of DASD_ECKD_WRITE_MT.
  642. * Luckily the KD variants differ only by one bit (0x08) from the
  643. * normal variant. So don't wonder about code like:
  644. * if (dasd_eckd_cdl_special(blk_per_trk, recid))
  645. * ccw->cmd_code |= 0x8;
  646. */
  647. static inline int
  648. dasd_eckd_cdl_special(int blk_per_trk, int recid)
  649. {
  650. if (recid < 3)
  651. return 1;
  652. if (recid < blk_per_trk)
  653. return 0;
  654. if (recid < 2 * blk_per_trk)
  655. return 1;
  656. return 0;
  657. }
  658. /*
  659. * Returns the record size for the special blocks of the cdl format.
  660. * Only returns something useful if dasd_eckd_cdl_special is true
  661. * for the recid.
  662. */
  663. static inline int
  664. dasd_eckd_cdl_reclen(int recid)
  665. {
  666. if (recid < 3)
  667. return sizes_trk0[recid];
  668. return LABEL_SIZE;
  669. }
  670. /* create unique id from private structure. */
  671. static void create_uid(struct dasd_conf *conf, struct dasd_uid *uid)
  672. {
  673. int count;
  674. memset(uid, 0, sizeof(struct dasd_uid));
  675. memcpy(uid->vendor, conf->ned->HDA_manufacturer,
  676. sizeof(uid->vendor) - 1);
  677. EBCASC(uid->vendor, sizeof(uid->vendor) - 1);
  678. memcpy(uid->serial, &conf->ned->serial,
  679. sizeof(uid->serial) - 1);
  680. EBCASC(uid->serial, sizeof(uid->serial) - 1);
  681. uid->ssid = conf->gneq->subsystemID;
  682. uid->real_unit_addr = conf->ned->unit_addr;
  683. if (conf->sneq) {
  684. uid->type = conf->sneq->sua_flags;
  685. if (uid->type == UA_BASE_PAV_ALIAS)
  686. uid->base_unit_addr = conf->sneq->base_unit_addr;
  687. } else {
  688. uid->type = UA_BASE_DEVICE;
  689. }
  690. if (conf->vdsneq) {
  691. for (count = 0; count < 16; count++) {
  692. sprintf(uid->vduit+2*count, "%02x",
  693. conf->vdsneq->uit[count]);
  694. }
  695. }
  696. }
  697. /*
  698. * Generate device unique id that specifies the physical device.
  699. */
  700. static int dasd_eckd_generate_uid(struct dasd_device *device)
  701. {
  702. struct dasd_eckd_private *private = device->private;
  703. unsigned long flags;
  704. if (!private)
  705. return -ENODEV;
  706. if (!private->conf.ned || !private->conf.gneq)
  707. return -ENODEV;
  708. spin_lock_irqsave(get_ccwdev_lock(device->cdev), flags);
  709. create_uid(&private->conf, &private->uid);
  710. spin_unlock_irqrestore(get_ccwdev_lock(device->cdev), flags);
  711. return 0;
  712. }
  713. static int dasd_eckd_get_uid(struct dasd_device *device, struct dasd_uid *uid)
  714. {
  715. struct dasd_eckd_private *private = device->private;
  716. unsigned long flags;
  717. if (private) {
  718. spin_lock_irqsave(get_ccwdev_lock(device->cdev), flags);
  719. *uid = private->uid;
  720. spin_unlock_irqrestore(get_ccwdev_lock(device->cdev), flags);
  721. return 0;
  722. }
  723. return -EINVAL;
  724. }
  725. /*
  726. * compare device UID with data of a given dasd_eckd_private structure
  727. * return 0 for match
  728. */
  729. static int dasd_eckd_compare_path_uid(struct dasd_device *device,
  730. struct dasd_conf *path_conf)
  731. {
  732. struct dasd_uid device_uid;
  733. struct dasd_uid path_uid;
  734. create_uid(path_conf, &path_uid);
  735. dasd_eckd_get_uid(device, &device_uid);
  736. return memcmp(&device_uid, &path_uid, sizeof(struct dasd_uid));
  737. }
  738. static void dasd_eckd_fill_rcd_cqr(struct dasd_device *device,
  739. struct dasd_ccw_req *cqr,
  740. __u8 *rcd_buffer,
  741. __u8 lpm)
  742. {
  743. struct ccw1 *ccw;
  744. /*
  745. * buffer has to start with EBCDIC "V1.0" to show
  746. * support for virtual device SNEQ
  747. */
  748. rcd_buffer[0] = 0xE5;
  749. rcd_buffer[1] = 0xF1;
  750. rcd_buffer[2] = 0x4B;
  751. rcd_buffer[3] = 0xF0;
  752. ccw = cqr->cpaddr;
  753. ccw->cmd_code = DASD_ECKD_CCW_RCD;
  754. ccw->flags = 0;
  755. ccw->cda = virt_to_dma32(rcd_buffer);
  756. ccw->count = DASD_ECKD_RCD_DATA_SIZE;
  757. cqr->magic = DASD_ECKD_MAGIC;
  758. cqr->startdev = device;
  759. cqr->memdev = device;
  760. cqr->block = NULL;
  761. cqr->expires = 10*HZ;
  762. cqr->lpm = lpm;
  763. cqr->retries = 256;
  764. cqr->buildclk = get_tod_clock();
  765. cqr->status = DASD_CQR_FILLED;
  766. set_bit(DASD_CQR_VERIFY_PATH, &cqr->flags);
  767. }
  768. /*
  769. * Wakeup helper for read_conf
  770. * if the cqr is not done and needs some error recovery
  771. * the buffer has to be re-initialized with the EBCDIC "V1.0"
  772. * to show support for virtual device SNEQ
  773. */
  774. static void read_conf_cb(struct dasd_ccw_req *cqr, void *data)
  775. {
  776. struct ccw1 *ccw;
  777. __u8 *rcd_buffer;
  778. if (cqr->status != DASD_CQR_DONE) {
  779. ccw = cqr->cpaddr;
  780. rcd_buffer = dma32_to_virt(ccw->cda);
  781. memset(rcd_buffer, 0, sizeof(*rcd_buffer));
  782. rcd_buffer[0] = 0xE5;
  783. rcd_buffer[1] = 0xF1;
  784. rcd_buffer[2] = 0x4B;
  785. rcd_buffer[3] = 0xF0;
  786. }
  787. dasd_wakeup_cb(cqr, data);
  788. }
  789. static int dasd_eckd_read_conf_immediately(struct dasd_device *device,
  790. struct dasd_ccw_req *cqr,
  791. __u8 *rcd_buffer,
  792. __u8 lpm)
  793. {
  794. struct ciw *ciw;
  795. int rc;
  796. /*
  797. * sanity check: scan for RCD command in extended SenseID data
  798. * some devices do not support RCD
  799. */
  800. ciw = ccw_device_get_ciw(device->cdev, CIW_TYPE_RCD);
  801. if (!ciw || ciw->cmd != DASD_ECKD_CCW_RCD)
  802. return -EOPNOTSUPP;
  803. dasd_eckd_fill_rcd_cqr(device, cqr, rcd_buffer, lpm);
  804. clear_bit(DASD_CQR_FLAGS_USE_ERP, &cqr->flags);
  805. set_bit(DASD_CQR_ALLOW_SLOCK, &cqr->flags);
  806. cqr->retries = 5;
  807. cqr->callback = read_conf_cb;
  808. rc = dasd_sleep_on_immediatly(cqr);
  809. return rc;
  810. }
  811. static int dasd_eckd_read_conf_lpm(struct dasd_device *device,
  812. void **rcd_buffer,
  813. int *rcd_buffer_size, __u8 lpm)
  814. {
  815. struct ciw *ciw;
  816. char *rcd_buf = NULL;
  817. int ret;
  818. struct dasd_ccw_req *cqr;
  819. /*
  820. * sanity check: scan for RCD command in extended SenseID data
  821. * some devices do not support RCD
  822. */
  823. ciw = ccw_device_get_ciw(device->cdev, CIW_TYPE_RCD);
  824. if (!ciw || ciw->cmd != DASD_ECKD_CCW_RCD) {
  825. ret = -EOPNOTSUPP;
  826. goto out_error;
  827. }
  828. rcd_buf = kzalloc(DASD_ECKD_RCD_DATA_SIZE, GFP_KERNEL | GFP_DMA);
  829. if (!rcd_buf) {
  830. ret = -ENOMEM;
  831. goto out_error;
  832. }
  833. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1 /* RCD */,
  834. 0, /* use rcd_buf as data ara */
  835. device, NULL);
  836. if (IS_ERR(cqr)) {
  837. DBF_DEV_EVENT(DBF_WARNING, device, "%s",
  838. "Could not allocate RCD request");
  839. ret = -ENOMEM;
  840. goto out_error;
  841. }
  842. dasd_eckd_fill_rcd_cqr(device, cqr, rcd_buf, lpm);
  843. cqr->callback = read_conf_cb;
  844. ret = dasd_sleep_on(cqr);
  845. /*
  846. * on success we update the user input parms
  847. */
  848. dasd_sfree_request(cqr, cqr->memdev);
  849. if (ret)
  850. goto out_error;
  851. *rcd_buffer_size = DASD_ECKD_RCD_DATA_SIZE;
  852. *rcd_buffer = rcd_buf;
  853. return 0;
  854. out_error:
  855. kfree(rcd_buf);
  856. *rcd_buffer = NULL;
  857. *rcd_buffer_size = 0;
  858. return ret;
  859. }
  860. static int dasd_eckd_identify_conf_parts(struct dasd_conf *conf)
  861. {
  862. struct dasd_sneq *sneq;
  863. int i, count;
  864. conf->ned = NULL;
  865. conf->sneq = NULL;
  866. conf->vdsneq = NULL;
  867. conf->gneq = NULL;
  868. count = conf->len / sizeof(struct dasd_sneq);
  869. sneq = (struct dasd_sneq *)conf->data;
  870. for (i = 0; i < count; ++i) {
  871. if (sneq->flags.identifier == 1 && sneq->format == 1)
  872. conf->sneq = sneq;
  873. else if (sneq->flags.identifier == 1 && sneq->format == 4)
  874. conf->vdsneq = (struct vd_sneq *)sneq;
  875. else if (sneq->flags.identifier == 2)
  876. conf->gneq = (struct dasd_gneq *)sneq;
  877. else if (sneq->flags.identifier == 3 && sneq->res1 == 1)
  878. conf->ned = (struct dasd_ned *)sneq;
  879. sneq++;
  880. }
  881. if (!conf->ned || !conf->gneq) {
  882. conf->ned = NULL;
  883. conf->sneq = NULL;
  884. conf->vdsneq = NULL;
  885. conf->gneq = NULL;
  886. return -EINVAL;
  887. }
  888. return 0;
  889. };
  890. static unsigned char dasd_eckd_path_access(void *conf_data, int conf_len)
  891. {
  892. struct dasd_gneq *gneq;
  893. int i, count, found;
  894. count = conf_len / sizeof(*gneq);
  895. gneq = (struct dasd_gneq *)conf_data;
  896. found = 0;
  897. for (i = 0; i < count; ++i) {
  898. if (gneq->flags.identifier == 2) {
  899. found = 1;
  900. break;
  901. }
  902. gneq++;
  903. }
  904. if (found)
  905. return ((char *)gneq)[18] & 0x07;
  906. else
  907. return 0;
  908. }
  909. static void dasd_eckd_store_conf_data(struct dasd_device *device,
  910. struct dasd_conf_data *conf_data, int chp)
  911. {
  912. struct dasd_eckd_private *private = device->private;
  913. struct channel_path_desc_fmt0 *chp_desc;
  914. struct subchannel_id sch_id;
  915. void *cdp;
  916. /*
  917. * path handling and read_conf allocate data
  918. * free it before replacing the pointer
  919. * also replace the old private->conf_data pointer
  920. * with the new one if this points to the same data
  921. */
  922. cdp = device->path[chp].conf_data;
  923. if (private->conf.data == cdp) {
  924. private->conf.data = (void *)conf_data;
  925. dasd_eckd_identify_conf_parts(&private->conf);
  926. }
  927. ccw_device_get_schid(device->cdev, &sch_id);
  928. device->path[chp].conf_data = conf_data;
  929. device->path[chp].cssid = sch_id.cssid;
  930. device->path[chp].ssid = sch_id.ssid;
  931. chp_desc = ccw_device_get_chp_desc(device->cdev, chp);
  932. if (chp_desc)
  933. device->path[chp].chpid = chp_desc->chpid;
  934. kfree(chp_desc);
  935. kfree(cdp);
  936. }
  937. static void dasd_eckd_clear_conf_data(struct dasd_device *device)
  938. {
  939. struct dasd_eckd_private *private = device->private;
  940. int i;
  941. private->conf.data = NULL;
  942. private->conf.len = 0;
  943. for (i = 0; i < 8; i++) {
  944. kfree(device->path[i].conf_data);
  945. device->path[i].conf_data = NULL;
  946. device->path[i].cssid = 0;
  947. device->path[i].ssid = 0;
  948. device->path[i].chpid = 0;
  949. dasd_path_notoper(device, i);
  950. }
  951. }
  952. static void dasd_eckd_read_fc_security(struct dasd_device *device)
  953. {
  954. struct dasd_eckd_private *private = device->private;
  955. u8 esm_valid;
  956. u8 esm[8];
  957. int chp;
  958. int rc;
  959. rc = chsc_scud(private->uid.ssid, (u64 *)esm, &esm_valid);
  960. if (rc) {
  961. for (chp = 0; chp < 8; chp++)
  962. device->path[chp].fc_security = 0;
  963. return;
  964. }
  965. for (chp = 0; chp < 8; chp++) {
  966. if (esm_valid & (0x80 >> chp))
  967. device->path[chp].fc_security = esm[chp];
  968. else
  969. device->path[chp].fc_security = 0;
  970. }
  971. }
  972. static void dasd_eckd_get_uid_string(struct dasd_conf *conf, char *print_uid)
  973. {
  974. struct dasd_uid uid;
  975. create_uid(conf, &uid);
  976. snprintf(print_uid, DASD_UID_STRLEN, "%s.%s.%04x.%02x%s%s",
  977. uid.vendor, uid.serial, uid.ssid, uid.real_unit_addr,
  978. uid.vduit[0] ? "." : "", uid.vduit);
  979. }
  980. static int dasd_eckd_check_cabling(struct dasd_device *device,
  981. void *conf_data, __u8 lpm)
  982. {
  983. char print_path_uid[DASD_UID_STRLEN], print_device_uid[DASD_UID_STRLEN];
  984. struct dasd_eckd_private *private = device->private;
  985. struct dasd_conf path_conf;
  986. path_conf.data = conf_data;
  987. path_conf.len = DASD_ECKD_RCD_DATA_SIZE;
  988. if (dasd_eckd_identify_conf_parts(&path_conf))
  989. return 1;
  990. if (dasd_eckd_compare_path_uid(device, &path_conf)) {
  991. dasd_eckd_get_uid_string(&path_conf, print_path_uid);
  992. dasd_eckd_get_uid_string(&private->conf, print_device_uid);
  993. dev_err(&device->cdev->dev,
  994. "Not all channel paths lead to the same device, path %02X leads to device %s instead of %s\n",
  995. lpm, print_path_uid, print_device_uid);
  996. return 1;
  997. }
  998. return 0;
  999. }
  1000. static int dasd_eckd_read_conf(struct dasd_device *device)
  1001. {
  1002. void *conf_data;
  1003. int conf_len, conf_data_saved;
  1004. int rc, path_err, pos;
  1005. __u8 lpm, opm;
  1006. struct dasd_eckd_private *private;
  1007. private = device->private;
  1008. opm = ccw_device_get_path_mask(device->cdev);
  1009. conf_data_saved = 0;
  1010. path_err = 0;
  1011. /* get configuration data per operational path */
  1012. for (lpm = 0x80; lpm; lpm>>= 1) {
  1013. if (!(lpm & opm))
  1014. continue;
  1015. rc = dasd_eckd_read_conf_lpm(device, &conf_data,
  1016. &conf_len, lpm);
  1017. if (rc && rc != -EOPNOTSUPP) { /* -EOPNOTSUPP is ok */
  1018. DBF_EVENT_DEVID(DBF_WARNING, device->cdev,
  1019. "Read configuration data returned "
  1020. "error %d", rc);
  1021. return rc;
  1022. }
  1023. if (conf_data == NULL) {
  1024. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  1025. "No configuration data "
  1026. "retrieved");
  1027. /* no further analysis possible */
  1028. dasd_path_add_opm(device, opm);
  1029. continue; /* no error */
  1030. }
  1031. /* save first valid configuration data */
  1032. if (!conf_data_saved) {
  1033. /* initially clear previously stored conf_data */
  1034. dasd_eckd_clear_conf_data(device);
  1035. private->conf.data = conf_data;
  1036. private->conf.len = conf_len;
  1037. if (dasd_eckd_identify_conf_parts(&private->conf)) {
  1038. private->conf.data = NULL;
  1039. private->conf.len = 0;
  1040. kfree(conf_data);
  1041. continue;
  1042. }
  1043. /*
  1044. * build device UID that other path data
  1045. * can be compared to it
  1046. */
  1047. dasd_eckd_generate_uid(device);
  1048. conf_data_saved++;
  1049. } else if (dasd_eckd_check_cabling(device, conf_data, lpm)) {
  1050. dasd_path_add_cablepm(device, lpm);
  1051. path_err = -EINVAL;
  1052. kfree(conf_data);
  1053. continue;
  1054. }
  1055. pos = pathmask_to_pos(lpm);
  1056. dasd_eckd_store_conf_data(device, conf_data, pos);
  1057. switch (dasd_eckd_path_access(conf_data, conf_len)) {
  1058. case 0x02:
  1059. dasd_path_add_nppm(device, lpm);
  1060. break;
  1061. case 0x03:
  1062. dasd_path_add_ppm(device, lpm);
  1063. break;
  1064. }
  1065. if (!dasd_path_get_opm(device)) {
  1066. dasd_path_set_opm(device, lpm);
  1067. dasd_generic_path_operational(device);
  1068. } else {
  1069. dasd_path_add_opm(device, lpm);
  1070. }
  1071. }
  1072. return path_err;
  1073. }
  1074. static u32 get_fcx_max_data(struct dasd_device *device)
  1075. {
  1076. struct dasd_eckd_private *private = device->private;
  1077. int fcx_in_css, fcx_in_gneq, fcx_in_features;
  1078. unsigned int mdc;
  1079. int tpm;
  1080. if (dasd_nofcx)
  1081. return 0;
  1082. /* is transport mode supported? */
  1083. fcx_in_css = css_general_characteristics.fcx;
  1084. fcx_in_gneq = private->conf.gneq->reserved2[7] & 0x04;
  1085. fcx_in_features = private->features.feature[40] & 0x80;
  1086. tpm = fcx_in_css && fcx_in_gneq && fcx_in_features;
  1087. if (!tpm)
  1088. return 0;
  1089. mdc = ccw_device_get_mdc(device->cdev, 0);
  1090. if (mdc == 0) {
  1091. dev_warn(&device->cdev->dev, "Detecting the maximum supported data size for zHPF requests failed\n");
  1092. return 0;
  1093. } else {
  1094. return (u32)mdc * FCX_MAX_DATA_FACTOR;
  1095. }
  1096. }
  1097. static int verify_fcx_max_data(struct dasd_device *device, __u8 lpm)
  1098. {
  1099. struct dasd_eckd_private *private = device->private;
  1100. unsigned int mdc;
  1101. u32 fcx_max_data;
  1102. if (private->fcx_max_data) {
  1103. mdc = ccw_device_get_mdc(device->cdev, lpm);
  1104. if (mdc == 0) {
  1105. dev_warn(&device->cdev->dev,
  1106. "Detecting the maximum data size for zHPF "
  1107. "requests failed (rc=%d) for a new path %x\n",
  1108. mdc, lpm);
  1109. return mdc;
  1110. }
  1111. fcx_max_data = (u32)mdc * FCX_MAX_DATA_FACTOR;
  1112. if (fcx_max_data < private->fcx_max_data) {
  1113. dev_warn(&device->cdev->dev,
  1114. "The maximum data size for zHPF requests %u "
  1115. "on a new path %x is below the active maximum "
  1116. "%u\n", fcx_max_data, lpm,
  1117. private->fcx_max_data);
  1118. return -EACCES;
  1119. }
  1120. }
  1121. return 0;
  1122. }
  1123. static int rebuild_device_uid(struct dasd_device *device,
  1124. struct pe_handler_work_data *data)
  1125. {
  1126. struct dasd_eckd_private *private = device->private;
  1127. __u8 lpm, opm = dasd_path_get_opm(device);
  1128. int rc = -ENODEV;
  1129. for (lpm = 0x80; lpm; lpm >>= 1) {
  1130. if (!(lpm & opm))
  1131. continue;
  1132. memset(&data->rcd_buffer, 0, sizeof(data->rcd_buffer));
  1133. memset(&data->cqr, 0, sizeof(data->cqr));
  1134. data->cqr.cpaddr = &data->ccw;
  1135. rc = dasd_eckd_read_conf_immediately(device, &data->cqr,
  1136. data->rcd_buffer,
  1137. lpm);
  1138. if (rc) {
  1139. if (rc == -EOPNOTSUPP) /* -EOPNOTSUPP is ok */
  1140. continue;
  1141. DBF_EVENT_DEVID(DBF_WARNING, device->cdev,
  1142. "Read configuration data "
  1143. "returned error %d", rc);
  1144. break;
  1145. }
  1146. memcpy(private->conf.data, data->rcd_buffer,
  1147. DASD_ECKD_RCD_DATA_SIZE);
  1148. if (dasd_eckd_identify_conf_parts(&private->conf)) {
  1149. rc = -ENODEV;
  1150. } else /* first valid path is enough */
  1151. break;
  1152. }
  1153. if (!rc)
  1154. rc = dasd_eckd_generate_uid(device);
  1155. return rc;
  1156. }
  1157. static void dasd_eckd_path_available_action(struct dasd_device *device,
  1158. struct pe_handler_work_data *data)
  1159. {
  1160. __u8 path_rcd_buf[DASD_ECKD_RCD_DATA_SIZE];
  1161. __u8 lpm, opm, npm, ppm, epm, hpfpm, cablepm;
  1162. struct dasd_conf_data *conf_data;
  1163. char print_uid[DASD_UID_STRLEN];
  1164. struct dasd_conf path_conf;
  1165. unsigned long flags;
  1166. int rc, pos;
  1167. opm = 0;
  1168. npm = 0;
  1169. ppm = 0;
  1170. epm = 0;
  1171. hpfpm = 0;
  1172. cablepm = 0;
  1173. for (lpm = 0x80; lpm; lpm >>= 1) {
  1174. if (!(lpm & data->tbvpm))
  1175. continue;
  1176. memset(&data->rcd_buffer, 0, sizeof(data->rcd_buffer));
  1177. memset(&data->cqr, 0, sizeof(data->cqr));
  1178. data->cqr.cpaddr = &data->ccw;
  1179. rc = dasd_eckd_read_conf_immediately(device, &data->cqr,
  1180. data->rcd_buffer,
  1181. lpm);
  1182. if (!rc) {
  1183. switch (dasd_eckd_path_access(data->rcd_buffer,
  1184. DASD_ECKD_RCD_DATA_SIZE)
  1185. ) {
  1186. case 0x02:
  1187. npm |= lpm;
  1188. break;
  1189. case 0x03:
  1190. ppm |= lpm;
  1191. break;
  1192. }
  1193. opm |= lpm;
  1194. } else if (rc == -EOPNOTSUPP) {
  1195. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  1196. "path verification: No configuration "
  1197. "data retrieved");
  1198. opm |= lpm;
  1199. } else if (rc == -EAGAIN) {
  1200. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  1201. "path verification: device is stopped,"
  1202. " try again later");
  1203. epm |= lpm;
  1204. } else {
  1205. dev_warn(&device->cdev->dev,
  1206. "Reading device feature codes failed "
  1207. "(rc=%d) for new path %x\n", rc, lpm);
  1208. continue;
  1209. }
  1210. if (verify_fcx_max_data(device, lpm)) {
  1211. opm &= ~lpm;
  1212. npm &= ~lpm;
  1213. ppm &= ~lpm;
  1214. hpfpm |= lpm;
  1215. continue;
  1216. }
  1217. /*
  1218. * save conf_data for comparison after
  1219. * rebuild_device_uid may have changed
  1220. * the original data
  1221. */
  1222. memcpy(&path_rcd_buf, data->rcd_buffer,
  1223. DASD_ECKD_RCD_DATA_SIZE);
  1224. path_conf.data = (void *)&path_rcd_buf;
  1225. path_conf.len = DASD_ECKD_RCD_DATA_SIZE;
  1226. if (dasd_eckd_identify_conf_parts(&path_conf)) {
  1227. path_conf.data = NULL;
  1228. path_conf.len = 0;
  1229. continue;
  1230. }
  1231. /*
  1232. * compare path UID with device UID only if at least
  1233. * one valid path is left
  1234. * in other case the device UID may have changed and
  1235. * the first working path UID will be used as device UID
  1236. */
  1237. if (dasd_path_get_opm(device) &&
  1238. dasd_eckd_compare_path_uid(device, &path_conf)) {
  1239. /*
  1240. * the comparison was not successful
  1241. * rebuild the device UID with at least one
  1242. * known path in case a z/VM hyperswap command
  1243. * has changed the device
  1244. *
  1245. * after this compare again
  1246. *
  1247. * if either the rebuild or the recompare fails
  1248. * the path can not be used
  1249. */
  1250. if (rebuild_device_uid(device, data) ||
  1251. dasd_eckd_compare_path_uid(
  1252. device, &path_conf)) {
  1253. dasd_eckd_get_uid_string(&path_conf, print_uid);
  1254. dev_err(&device->cdev->dev,
  1255. "The newly added channel path %02X "
  1256. "will not be used because it leads "
  1257. "to a different device %s\n",
  1258. lpm, print_uid);
  1259. opm &= ~lpm;
  1260. npm &= ~lpm;
  1261. ppm &= ~lpm;
  1262. cablepm |= lpm;
  1263. continue;
  1264. }
  1265. }
  1266. conf_data = kzalloc(DASD_ECKD_RCD_DATA_SIZE, GFP_KERNEL);
  1267. if (conf_data) {
  1268. memcpy(conf_data, data->rcd_buffer,
  1269. DASD_ECKD_RCD_DATA_SIZE);
  1270. } else {
  1271. /*
  1272. * path is operational but path config data could not
  1273. * be stored due to low mem condition
  1274. * add it to the error path mask and schedule a path
  1275. * verification later that this could be added again
  1276. */
  1277. epm |= lpm;
  1278. }
  1279. pos = pathmask_to_pos(lpm);
  1280. dasd_eckd_store_conf_data(device, conf_data, pos);
  1281. /*
  1282. * There is a small chance that a path is lost again between
  1283. * above path verification and the following modification of
  1284. * the device opm mask. We could avoid that race here by using
  1285. * yet another path mask, but we rather deal with this unlikely
  1286. * situation in dasd_start_IO.
  1287. */
  1288. spin_lock_irqsave(get_ccwdev_lock(device->cdev), flags);
  1289. if (!dasd_path_get_opm(device) && opm) {
  1290. dasd_path_set_opm(device, opm);
  1291. dasd_generic_path_operational(device);
  1292. } else {
  1293. dasd_path_add_opm(device, opm);
  1294. }
  1295. dasd_path_add_nppm(device, npm);
  1296. dasd_path_add_ppm(device, ppm);
  1297. if (epm) {
  1298. dasd_path_add_tbvpm(device, epm);
  1299. dasd_device_set_timer(device, 50);
  1300. }
  1301. dasd_path_add_cablepm(device, cablepm);
  1302. dasd_path_add_nohpfpm(device, hpfpm);
  1303. spin_unlock_irqrestore(get_ccwdev_lock(device->cdev), flags);
  1304. dasd_path_create_kobj(device, pos);
  1305. }
  1306. }
  1307. static void do_pe_handler_work(struct work_struct *work)
  1308. {
  1309. struct pe_handler_work_data *data;
  1310. struct dasd_device *device;
  1311. data = container_of(work, struct pe_handler_work_data, worker);
  1312. device = data->device;
  1313. /* delay path verification until device was resumed */
  1314. if (test_bit(DASD_FLAG_SUSPENDED, &device->flags)) {
  1315. schedule_work(work);
  1316. return;
  1317. }
  1318. /* check if path verification already running and delay if so */
  1319. if (test_and_set_bit(DASD_FLAG_PATH_VERIFY, &device->flags)) {
  1320. schedule_work(work);
  1321. return;
  1322. }
  1323. if (data->tbvpm)
  1324. dasd_eckd_path_available_action(device, data);
  1325. if (data->fcsecpm)
  1326. dasd_eckd_read_fc_security(device);
  1327. clear_bit(DASD_FLAG_PATH_VERIFY, &device->flags);
  1328. dasd_put_device(device);
  1329. if (data->isglobal)
  1330. mutex_unlock(&dasd_pe_handler_mutex);
  1331. else
  1332. kfree(data);
  1333. }
  1334. static int dasd_eckd_pe_handler(struct dasd_device *device,
  1335. __u8 tbvpm, __u8 fcsecpm)
  1336. {
  1337. struct pe_handler_work_data *data;
  1338. data = kzalloc(sizeof(*data), GFP_ATOMIC | GFP_DMA);
  1339. if (!data) {
  1340. if (mutex_trylock(&dasd_pe_handler_mutex)) {
  1341. data = pe_handler_worker;
  1342. data->isglobal = 1;
  1343. } else {
  1344. return -ENOMEM;
  1345. }
  1346. }
  1347. INIT_WORK(&data->worker, do_pe_handler_work);
  1348. dasd_get_device(device);
  1349. data->device = device;
  1350. data->tbvpm = tbvpm;
  1351. data->fcsecpm = fcsecpm;
  1352. schedule_work(&data->worker);
  1353. return 0;
  1354. }
  1355. static void dasd_eckd_reset_path(struct dasd_device *device, __u8 pm)
  1356. {
  1357. struct dasd_eckd_private *private = device->private;
  1358. unsigned long flags;
  1359. if (!private->fcx_max_data)
  1360. private->fcx_max_data = get_fcx_max_data(device);
  1361. spin_lock_irqsave(get_ccwdev_lock(device->cdev), flags);
  1362. dasd_path_set_tbvpm(device, pm ? : dasd_path_get_notoperpm(device));
  1363. dasd_schedule_device_bh(device);
  1364. spin_unlock_irqrestore(get_ccwdev_lock(device->cdev), flags);
  1365. }
  1366. static int dasd_eckd_read_features(struct dasd_device *device)
  1367. {
  1368. struct dasd_eckd_private *private = device->private;
  1369. struct dasd_psf_prssd_data *prssdp;
  1370. struct dasd_rssd_features *features;
  1371. struct dasd_ccw_req *cqr;
  1372. struct ccw1 *ccw;
  1373. int rc;
  1374. memset(&private->features, 0, sizeof(struct dasd_rssd_features));
  1375. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1 /* PSF */ + 1 /* RSSD */,
  1376. (sizeof(struct dasd_psf_prssd_data) +
  1377. sizeof(struct dasd_rssd_features)),
  1378. device, NULL);
  1379. if (IS_ERR(cqr)) {
  1380. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s", "Could not "
  1381. "allocate initialization request");
  1382. return PTR_ERR(cqr);
  1383. }
  1384. cqr->startdev = device;
  1385. cqr->memdev = device;
  1386. cqr->block = NULL;
  1387. cqr->retries = 256;
  1388. cqr->expires = 10 * HZ;
  1389. /* Prepare for Read Subsystem Data */
  1390. prssdp = (struct dasd_psf_prssd_data *) cqr->data;
  1391. memset(prssdp, 0, sizeof(struct dasd_psf_prssd_data));
  1392. prssdp->order = PSF_ORDER_PRSSD;
  1393. prssdp->suborder = 0x41; /* Read Feature Codes */
  1394. /* all other bytes of prssdp must be zero */
  1395. ccw = cqr->cpaddr;
  1396. ccw->cmd_code = DASD_ECKD_CCW_PSF;
  1397. ccw->count = sizeof(struct dasd_psf_prssd_data);
  1398. ccw->flags |= CCW_FLAG_CC;
  1399. ccw->cda = virt_to_dma32(prssdp);
  1400. /* Read Subsystem Data - feature codes */
  1401. features = (struct dasd_rssd_features *) (prssdp + 1);
  1402. memset(features, 0, sizeof(struct dasd_rssd_features));
  1403. ccw++;
  1404. ccw->cmd_code = DASD_ECKD_CCW_RSSD;
  1405. ccw->count = sizeof(struct dasd_rssd_features);
  1406. ccw->cda = virt_to_dma32(features);
  1407. cqr->buildclk = get_tod_clock();
  1408. cqr->status = DASD_CQR_FILLED;
  1409. rc = dasd_sleep_on(cqr);
  1410. if (rc == 0) {
  1411. prssdp = (struct dasd_psf_prssd_data *) cqr->data;
  1412. features = (struct dasd_rssd_features *) (prssdp + 1);
  1413. memcpy(&private->features, features,
  1414. sizeof(struct dasd_rssd_features));
  1415. } else
  1416. dev_warn(&device->cdev->dev, "Reading device feature codes"
  1417. " failed with rc=%d\n", rc);
  1418. dasd_sfree_request(cqr, cqr->memdev);
  1419. return rc;
  1420. }
  1421. /* Read Volume Information - Volume Storage Query */
  1422. static int dasd_eckd_read_vol_info(struct dasd_device *device)
  1423. {
  1424. struct dasd_eckd_private *private = device->private;
  1425. struct dasd_psf_prssd_data *prssdp;
  1426. struct dasd_rssd_vsq *vsq;
  1427. struct dasd_ccw_req *cqr;
  1428. struct ccw1 *ccw;
  1429. int useglobal;
  1430. int rc;
  1431. /* This command cannot be executed on an alias device */
  1432. if (private->uid.type == UA_BASE_PAV_ALIAS ||
  1433. private->uid.type == UA_HYPER_PAV_ALIAS)
  1434. return 0;
  1435. useglobal = 0;
  1436. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 2 /* PSF + RSSD */,
  1437. sizeof(*prssdp) + sizeof(*vsq), device, NULL);
  1438. if (IS_ERR(cqr)) {
  1439. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  1440. "Could not allocate initialization request");
  1441. mutex_lock(&dasd_vol_info_mutex);
  1442. useglobal = 1;
  1443. cqr = &dasd_vol_info_req->cqr;
  1444. memset(cqr, 0, sizeof(*cqr));
  1445. memset(dasd_vol_info_req, 0, sizeof(*dasd_vol_info_req));
  1446. cqr->cpaddr = &dasd_vol_info_req->ccw;
  1447. cqr->data = &dasd_vol_info_req->data;
  1448. cqr->magic = DASD_ECKD_MAGIC;
  1449. }
  1450. /* Prepare for Read Subsystem Data */
  1451. prssdp = cqr->data;
  1452. prssdp->order = PSF_ORDER_PRSSD;
  1453. prssdp->suborder = PSF_SUBORDER_VSQ; /* Volume Storage Query */
  1454. prssdp->lss = private->conf.ned->ID;
  1455. prssdp->volume = private->conf.ned->unit_addr;
  1456. ccw = cqr->cpaddr;
  1457. ccw->cmd_code = DASD_ECKD_CCW_PSF;
  1458. ccw->count = sizeof(*prssdp);
  1459. ccw->flags |= CCW_FLAG_CC;
  1460. ccw->cda = virt_to_dma32(prssdp);
  1461. /* Read Subsystem Data - Volume Storage Query */
  1462. vsq = (struct dasd_rssd_vsq *)(prssdp + 1);
  1463. memset(vsq, 0, sizeof(*vsq));
  1464. ccw++;
  1465. ccw->cmd_code = DASD_ECKD_CCW_RSSD;
  1466. ccw->count = sizeof(*vsq);
  1467. ccw->flags |= CCW_FLAG_SLI;
  1468. ccw->cda = virt_to_dma32(vsq);
  1469. cqr->buildclk = get_tod_clock();
  1470. cqr->status = DASD_CQR_FILLED;
  1471. cqr->startdev = device;
  1472. cqr->memdev = device;
  1473. cqr->block = NULL;
  1474. cqr->retries = 256;
  1475. cqr->expires = device->default_expires * HZ;
  1476. /* The command might not be supported. Suppress the error output */
  1477. __set_bit(DASD_CQR_SUPPRESS_CR, &cqr->flags);
  1478. rc = dasd_sleep_on_interruptible(cqr);
  1479. if (rc == 0) {
  1480. memcpy(&private->vsq, vsq, sizeof(*vsq));
  1481. } else {
  1482. DBF_EVENT_DEVID(DBF_WARNING, device->cdev,
  1483. "Reading the volume storage information failed with rc=%d", rc);
  1484. }
  1485. if (useglobal)
  1486. mutex_unlock(&dasd_vol_info_mutex);
  1487. else
  1488. dasd_sfree_request(cqr, cqr->memdev);
  1489. return rc;
  1490. }
  1491. static int dasd_eckd_is_ese(struct dasd_device *device)
  1492. {
  1493. struct dasd_eckd_private *private = device->private;
  1494. return private->vsq.vol_info.ese;
  1495. }
  1496. static int dasd_eckd_ext_pool_id(struct dasd_device *device)
  1497. {
  1498. struct dasd_eckd_private *private = device->private;
  1499. return private->vsq.extent_pool_id;
  1500. }
  1501. /*
  1502. * This value represents the total amount of available space. As more space is
  1503. * allocated by ESE volumes, this value will decrease.
  1504. * The data for this value is therefore updated on any call.
  1505. */
  1506. static int dasd_eckd_space_configured(struct dasd_device *device)
  1507. {
  1508. struct dasd_eckd_private *private = device->private;
  1509. int rc;
  1510. rc = dasd_eckd_read_vol_info(device);
  1511. return rc ? : private->vsq.space_configured;
  1512. }
  1513. /*
  1514. * The value of space allocated by an ESE volume may have changed and is
  1515. * therefore updated on any call.
  1516. */
  1517. static int dasd_eckd_space_allocated(struct dasd_device *device)
  1518. {
  1519. struct dasd_eckd_private *private = device->private;
  1520. int rc;
  1521. rc = dasd_eckd_read_vol_info(device);
  1522. return rc ? : private->vsq.space_allocated;
  1523. }
  1524. static int dasd_eckd_logical_capacity(struct dasd_device *device)
  1525. {
  1526. struct dasd_eckd_private *private = device->private;
  1527. return private->vsq.logical_capacity;
  1528. }
  1529. static void dasd_eckd_ext_pool_exhaust_work(struct work_struct *work)
  1530. {
  1531. struct ext_pool_exhaust_work_data *data;
  1532. struct dasd_device *device;
  1533. struct dasd_device *base;
  1534. data = container_of(work, struct ext_pool_exhaust_work_data, worker);
  1535. device = data->device;
  1536. base = data->base;
  1537. if (!base)
  1538. base = device;
  1539. if (dasd_eckd_space_configured(base) != 0) {
  1540. dasd_generic_space_avail(device);
  1541. } else {
  1542. dev_warn(&device->cdev->dev, "No space left in the extent pool\n");
  1543. DBF_DEV_EVENT(DBF_WARNING, device, "%s", "out of space");
  1544. }
  1545. dasd_put_device(device);
  1546. kfree(data);
  1547. }
  1548. static int dasd_eckd_ext_pool_exhaust(struct dasd_device *device,
  1549. struct dasd_ccw_req *cqr)
  1550. {
  1551. struct ext_pool_exhaust_work_data *data;
  1552. data = kzalloc(sizeof(*data), GFP_ATOMIC);
  1553. if (!data)
  1554. return -ENOMEM;
  1555. INIT_WORK(&data->worker, dasd_eckd_ext_pool_exhaust_work);
  1556. dasd_get_device(device);
  1557. data->device = device;
  1558. if (cqr->block)
  1559. data->base = cqr->block->base;
  1560. else if (cqr->basedev)
  1561. data->base = cqr->basedev;
  1562. else
  1563. data->base = NULL;
  1564. schedule_work(&data->worker);
  1565. return 0;
  1566. }
  1567. static void dasd_eckd_cpy_ext_pool_data(struct dasd_device *device,
  1568. struct dasd_rssd_lcq *lcq)
  1569. {
  1570. struct dasd_eckd_private *private = device->private;
  1571. int pool_id = dasd_eckd_ext_pool_id(device);
  1572. struct dasd_ext_pool_sum eps;
  1573. int i;
  1574. for (i = 0; i < lcq->pool_count; i++) {
  1575. eps = lcq->ext_pool_sum[i];
  1576. if (eps.pool_id == pool_id) {
  1577. memcpy(&private->eps, &eps,
  1578. sizeof(struct dasd_ext_pool_sum));
  1579. }
  1580. }
  1581. }
  1582. /* Read Extent Pool Information - Logical Configuration Query */
  1583. static int dasd_eckd_read_ext_pool_info(struct dasd_device *device)
  1584. {
  1585. struct dasd_eckd_private *private = device->private;
  1586. struct dasd_psf_prssd_data *prssdp;
  1587. struct dasd_rssd_lcq *lcq;
  1588. struct dasd_ccw_req *cqr;
  1589. struct ccw1 *ccw;
  1590. int rc;
  1591. /* This command cannot be executed on an alias device */
  1592. if (private->uid.type == UA_BASE_PAV_ALIAS ||
  1593. private->uid.type == UA_HYPER_PAV_ALIAS)
  1594. return 0;
  1595. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 2 /* PSF + RSSD */,
  1596. sizeof(*prssdp) + sizeof(*lcq), device, NULL);
  1597. if (IS_ERR(cqr)) {
  1598. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  1599. "Could not allocate initialization request");
  1600. return PTR_ERR(cqr);
  1601. }
  1602. /* Prepare for Read Subsystem Data */
  1603. prssdp = cqr->data;
  1604. memset(prssdp, 0, sizeof(*prssdp));
  1605. prssdp->order = PSF_ORDER_PRSSD;
  1606. prssdp->suborder = PSF_SUBORDER_LCQ; /* Logical Configuration Query */
  1607. ccw = cqr->cpaddr;
  1608. ccw->cmd_code = DASD_ECKD_CCW_PSF;
  1609. ccw->count = sizeof(*prssdp);
  1610. ccw->flags |= CCW_FLAG_CC;
  1611. ccw->cda = virt_to_dma32(prssdp);
  1612. lcq = (struct dasd_rssd_lcq *)(prssdp + 1);
  1613. memset(lcq, 0, sizeof(*lcq));
  1614. ccw++;
  1615. ccw->cmd_code = DASD_ECKD_CCW_RSSD;
  1616. ccw->count = sizeof(*lcq);
  1617. ccw->flags |= CCW_FLAG_SLI;
  1618. ccw->cda = virt_to_dma32(lcq);
  1619. cqr->buildclk = get_tod_clock();
  1620. cqr->status = DASD_CQR_FILLED;
  1621. cqr->startdev = device;
  1622. cqr->memdev = device;
  1623. cqr->block = NULL;
  1624. cqr->retries = 256;
  1625. cqr->expires = device->default_expires * HZ;
  1626. /* The command might not be supported. Suppress the error output */
  1627. __set_bit(DASD_CQR_SUPPRESS_CR, &cqr->flags);
  1628. rc = dasd_sleep_on_interruptible(cqr);
  1629. if (rc == 0) {
  1630. dasd_eckd_cpy_ext_pool_data(device, lcq);
  1631. } else {
  1632. DBF_EVENT_DEVID(DBF_WARNING, device->cdev,
  1633. "Reading the logical configuration failed with rc=%d", rc);
  1634. }
  1635. dasd_sfree_request(cqr, cqr->memdev);
  1636. return rc;
  1637. }
  1638. /*
  1639. * Depending on the device type, the extent size is specified either as
  1640. * cylinders per extent (CKD) or size per extent (FBA)
  1641. * A 1GB size corresponds to 1113cyl, and 16MB to 21cyl.
  1642. */
  1643. static int dasd_eckd_ext_size(struct dasd_device *device)
  1644. {
  1645. struct dasd_eckd_private *private = device->private;
  1646. struct dasd_ext_pool_sum eps = private->eps;
  1647. if (!eps.flags.extent_size_valid)
  1648. return 0;
  1649. if (eps.extent_size.size_1G)
  1650. return 1113;
  1651. if (eps.extent_size.size_16M)
  1652. return 21;
  1653. return 0;
  1654. }
  1655. static int dasd_eckd_ext_pool_warn_thrshld(struct dasd_device *device)
  1656. {
  1657. struct dasd_eckd_private *private = device->private;
  1658. return private->eps.warn_thrshld;
  1659. }
  1660. static int dasd_eckd_ext_pool_cap_at_warnlevel(struct dasd_device *device)
  1661. {
  1662. struct dasd_eckd_private *private = device->private;
  1663. return private->eps.flags.capacity_at_warnlevel;
  1664. }
  1665. /*
  1666. * Extent Pool out of space
  1667. */
  1668. static int dasd_eckd_ext_pool_oos(struct dasd_device *device)
  1669. {
  1670. struct dasd_eckd_private *private = device->private;
  1671. return private->eps.flags.pool_oos;
  1672. }
  1673. /*
  1674. * Build CP for Perform Subsystem Function - SSC.
  1675. */
  1676. static struct dasd_ccw_req *dasd_eckd_build_psf_ssc(struct dasd_device *device,
  1677. int enable_pav)
  1678. {
  1679. struct dasd_ccw_req *cqr;
  1680. struct dasd_psf_ssc_data *psf_ssc_data;
  1681. struct ccw1 *ccw;
  1682. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1 /* PSF */ ,
  1683. sizeof(struct dasd_psf_ssc_data),
  1684. device, NULL);
  1685. if (IS_ERR(cqr)) {
  1686. DBF_DEV_EVENT(DBF_WARNING, device, "%s",
  1687. "Could not allocate PSF-SSC request");
  1688. return cqr;
  1689. }
  1690. psf_ssc_data = (struct dasd_psf_ssc_data *)cqr->data;
  1691. psf_ssc_data->order = PSF_ORDER_SSC;
  1692. psf_ssc_data->suborder = 0xc0;
  1693. if (enable_pav) {
  1694. psf_ssc_data->suborder |= 0x08;
  1695. psf_ssc_data->reserved[0] = 0x88;
  1696. }
  1697. ccw = cqr->cpaddr;
  1698. ccw->cmd_code = DASD_ECKD_CCW_PSF;
  1699. ccw->cda = virt_to_dma32(psf_ssc_data);
  1700. ccw->count = 66;
  1701. cqr->startdev = device;
  1702. cqr->memdev = device;
  1703. cqr->block = NULL;
  1704. cqr->retries = 256;
  1705. cqr->expires = 10*HZ;
  1706. cqr->buildclk = get_tod_clock();
  1707. cqr->status = DASD_CQR_FILLED;
  1708. return cqr;
  1709. }
  1710. /*
  1711. * Perform Subsystem Function.
  1712. * It is necessary to trigger CIO for channel revalidation since this
  1713. * call might change behaviour of DASD devices.
  1714. */
  1715. static int
  1716. dasd_eckd_psf_ssc(struct dasd_device *device, int enable_pav,
  1717. unsigned long flags)
  1718. {
  1719. struct dasd_ccw_req *cqr;
  1720. int rc;
  1721. cqr = dasd_eckd_build_psf_ssc(device, enable_pav);
  1722. if (IS_ERR(cqr))
  1723. return PTR_ERR(cqr);
  1724. /*
  1725. * set flags e.g. turn on failfast, to prevent blocking
  1726. * the calling function should handle failed requests
  1727. */
  1728. cqr->flags |= flags;
  1729. rc = dasd_sleep_on(cqr);
  1730. if (!rc)
  1731. /* trigger CIO to reprobe devices */
  1732. css_schedule_reprobe();
  1733. else if (cqr->intrc == -EAGAIN)
  1734. rc = -EAGAIN;
  1735. dasd_sfree_request(cqr, cqr->memdev);
  1736. return rc;
  1737. }
  1738. /*
  1739. * Valide storage server of current device.
  1740. */
  1741. static int dasd_eckd_validate_server(struct dasd_device *device,
  1742. unsigned long flags)
  1743. {
  1744. struct dasd_eckd_private *private = device->private;
  1745. int enable_pav, rc;
  1746. if (private->uid.type == UA_BASE_PAV_ALIAS ||
  1747. private->uid.type == UA_HYPER_PAV_ALIAS)
  1748. return 0;
  1749. if (dasd_nopav || MACHINE_IS_VM)
  1750. enable_pav = 0;
  1751. else
  1752. enable_pav = 1;
  1753. rc = dasd_eckd_psf_ssc(device, enable_pav, flags);
  1754. /* may be requested feature is not available on server,
  1755. * therefore just report error and go ahead */
  1756. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "PSF-SSC for SSID %04x "
  1757. "returned rc=%d", private->uid.ssid, rc);
  1758. return rc;
  1759. }
  1760. /*
  1761. * worker to do a validate server in case of a lost pathgroup
  1762. */
  1763. static void dasd_eckd_do_validate_server(struct work_struct *work)
  1764. {
  1765. struct dasd_device *device = container_of(work, struct dasd_device,
  1766. kick_validate);
  1767. unsigned long flags = 0;
  1768. set_bit(DASD_CQR_FLAGS_FAILFAST, &flags);
  1769. if (dasd_eckd_validate_server(device, flags)
  1770. == -EAGAIN) {
  1771. /* schedule worker again if failed */
  1772. schedule_work(&device->kick_validate);
  1773. return;
  1774. }
  1775. dasd_put_device(device);
  1776. }
  1777. static void dasd_eckd_kick_validate_server(struct dasd_device *device)
  1778. {
  1779. dasd_get_device(device);
  1780. /* exit if device not online or in offline processing */
  1781. if (test_bit(DASD_FLAG_OFFLINE, &device->flags) ||
  1782. device->state < DASD_STATE_ONLINE) {
  1783. dasd_put_device(device);
  1784. return;
  1785. }
  1786. /* queue call to do_validate_server to the kernel event daemon. */
  1787. if (!schedule_work(&device->kick_validate))
  1788. dasd_put_device(device);
  1789. }
  1790. /*
  1791. * return if the device is the copy relation primary if a copy relation is active
  1792. */
  1793. static int dasd_device_is_primary(struct dasd_device *device)
  1794. {
  1795. if (!device->copy)
  1796. return 1;
  1797. if (device->copy->active->device == device)
  1798. return 1;
  1799. return 0;
  1800. }
  1801. static int dasd_eckd_alloc_block(struct dasd_device *device)
  1802. {
  1803. struct dasd_block *block;
  1804. struct dasd_uid temp_uid;
  1805. if (!dasd_device_is_primary(device))
  1806. return 0;
  1807. dasd_eckd_get_uid(device, &temp_uid);
  1808. if (temp_uid.type == UA_BASE_DEVICE) {
  1809. block = dasd_alloc_block();
  1810. if (IS_ERR(block)) {
  1811. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  1812. "could not allocate dasd block structure");
  1813. return PTR_ERR(block);
  1814. }
  1815. device->block = block;
  1816. block->base = device;
  1817. }
  1818. return 0;
  1819. }
  1820. static bool dasd_eckd_pprc_enabled(struct dasd_device *device)
  1821. {
  1822. struct dasd_eckd_private *private = device->private;
  1823. return private->rdc_data.facilities.PPRC_enabled;
  1824. }
  1825. /*
  1826. * Check device characteristics.
  1827. * If the device is accessible using ECKD discipline, the device is enabled.
  1828. */
  1829. static int
  1830. dasd_eckd_check_characteristics(struct dasd_device *device)
  1831. {
  1832. struct dasd_eckd_private *private = device->private;
  1833. int rc, i;
  1834. int readonly;
  1835. unsigned long value;
  1836. /* setup work queue for validate server*/
  1837. INIT_WORK(&device->kick_validate, dasd_eckd_do_validate_server);
  1838. /* setup work queue for summary unit check */
  1839. INIT_WORK(&device->suc_work, dasd_alias_handle_summary_unit_check);
  1840. if (!ccw_device_is_pathgroup(device->cdev)) {
  1841. dev_warn(&device->cdev->dev,
  1842. "A channel path group could not be established\n");
  1843. return -EIO;
  1844. }
  1845. if (!ccw_device_is_multipath(device->cdev)) {
  1846. dev_info(&device->cdev->dev,
  1847. "The DASD is not operating in multipath mode\n");
  1848. }
  1849. if (!private) {
  1850. private = kzalloc(sizeof(*private), GFP_KERNEL | GFP_DMA);
  1851. if (!private) {
  1852. dev_warn(&device->cdev->dev,
  1853. "Allocating memory for private DASD data "
  1854. "failed\n");
  1855. return -ENOMEM;
  1856. }
  1857. device->private = private;
  1858. } else {
  1859. memset(private, 0, sizeof(*private));
  1860. }
  1861. /* Invalidate status of initial analysis. */
  1862. private->init_cqr_status = -1;
  1863. /* Set default cache operations. */
  1864. private->attrib.operation = DASD_NORMAL_CACHE;
  1865. private->attrib.nr_cyl = 0;
  1866. /* Read Configuration Data */
  1867. rc = dasd_eckd_read_conf(device);
  1868. if (rc)
  1869. goto out_err1;
  1870. /* set some default values */
  1871. device->default_expires = DASD_EXPIRES;
  1872. device->default_retries = DASD_RETRIES;
  1873. device->path_thrhld = DASD_ECKD_PATH_THRHLD;
  1874. device->path_interval = DASD_ECKD_PATH_INTERVAL;
  1875. device->aq_timeouts = DASD_RETRIES_MAX;
  1876. if (private->conf.gneq) {
  1877. value = 1;
  1878. for (i = 0; i < private->conf.gneq->timeout.value; i++)
  1879. value = 10 * value;
  1880. value = value * private->conf.gneq->timeout.number;
  1881. /* do not accept useless values */
  1882. if (value != 0 && value <= DASD_EXPIRES_MAX)
  1883. device->default_expires = value;
  1884. }
  1885. /* Read Device Characteristics */
  1886. rc = dasd_generic_read_dev_chars(device, DASD_ECKD_MAGIC,
  1887. &private->rdc_data, 64);
  1888. if (rc) {
  1889. DBF_EVENT_DEVID(DBF_WARNING, device->cdev,
  1890. "Read device characteristic failed, rc=%d", rc);
  1891. goto out_err1;
  1892. }
  1893. /* setup PPRC for device from devmap */
  1894. rc = dasd_devmap_set_device_copy_relation(device->cdev,
  1895. dasd_eckd_pprc_enabled(device));
  1896. if (rc) {
  1897. DBF_EVENT_DEVID(DBF_WARNING, device->cdev,
  1898. "copy relation setup failed, rc=%d", rc);
  1899. goto out_err1;
  1900. }
  1901. /* check if block device is needed and allocate in case */
  1902. rc = dasd_eckd_alloc_block(device);
  1903. if (rc)
  1904. goto out_err1;
  1905. /* register lcu with alias handling, enable PAV */
  1906. rc = dasd_alias_make_device_known_to_lcu(device);
  1907. if (rc)
  1908. goto out_err2;
  1909. dasd_eckd_validate_server(device, 0);
  1910. /* device may report different configuration data after LCU setup */
  1911. rc = dasd_eckd_read_conf(device);
  1912. if (rc)
  1913. goto out_err3;
  1914. dasd_eckd_read_fc_security(device);
  1915. dasd_path_create_kobjects(device);
  1916. /* Read Feature Codes */
  1917. dasd_eckd_read_features(device);
  1918. /* Read Volume Information */
  1919. dasd_eckd_read_vol_info(device);
  1920. /* Read Extent Pool Information */
  1921. dasd_eckd_read_ext_pool_info(device);
  1922. if ((device->features & DASD_FEATURE_USERAW) &&
  1923. !(private->rdc_data.facilities.RT_in_LR)) {
  1924. dev_err(&device->cdev->dev, "The storage server does not "
  1925. "support raw-track access\n");
  1926. rc = -EINVAL;
  1927. goto out_err3;
  1928. }
  1929. /* find the valid cylinder size */
  1930. if (private->rdc_data.no_cyl == LV_COMPAT_CYL &&
  1931. private->rdc_data.long_no_cyl)
  1932. private->real_cyl = private->rdc_data.long_no_cyl;
  1933. else
  1934. private->real_cyl = private->rdc_data.no_cyl;
  1935. private->fcx_max_data = get_fcx_max_data(device);
  1936. readonly = dasd_device_is_ro(device);
  1937. if (readonly)
  1938. set_bit(DASD_FLAG_DEVICE_RO, &device->flags);
  1939. dev_info(&device->cdev->dev, "New DASD %04X/%02X (CU %04X/%02X) "
  1940. "with %d cylinders, %d heads, %d sectors%s\n",
  1941. private->rdc_data.dev_type,
  1942. private->rdc_data.dev_model,
  1943. private->rdc_data.cu_type,
  1944. private->rdc_data.cu_model.model,
  1945. private->real_cyl,
  1946. private->rdc_data.trk_per_cyl,
  1947. private->rdc_data.sec_per_trk,
  1948. readonly ? ", read-only device" : "");
  1949. return 0;
  1950. out_err3:
  1951. dasd_alias_disconnect_device_from_lcu(device);
  1952. out_err2:
  1953. dasd_free_block(device->block);
  1954. device->block = NULL;
  1955. out_err1:
  1956. dasd_eckd_clear_conf_data(device);
  1957. dasd_path_remove_kobjects(device);
  1958. kfree(device->private);
  1959. device->private = NULL;
  1960. return rc;
  1961. }
  1962. static void dasd_eckd_uncheck_device(struct dasd_device *device)
  1963. {
  1964. struct dasd_eckd_private *private = device->private;
  1965. if (!private)
  1966. return;
  1967. dasd_alias_disconnect_device_from_lcu(device);
  1968. private->conf.ned = NULL;
  1969. private->conf.sneq = NULL;
  1970. private->conf.vdsneq = NULL;
  1971. private->conf.gneq = NULL;
  1972. dasd_eckd_clear_conf_data(device);
  1973. dasd_path_remove_kobjects(device);
  1974. }
  1975. static struct dasd_ccw_req *
  1976. dasd_eckd_analysis_ccw(struct dasd_device *device)
  1977. {
  1978. struct dasd_eckd_private *private = device->private;
  1979. struct eckd_count *count_data;
  1980. struct LO_eckd_data *LO_data;
  1981. struct dasd_ccw_req *cqr;
  1982. struct ccw1 *ccw;
  1983. int cplength, datasize;
  1984. int i;
  1985. cplength = 8;
  1986. datasize = sizeof(struct DE_eckd_data) + 2*sizeof(struct LO_eckd_data);
  1987. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, cplength, datasize, device,
  1988. NULL);
  1989. if (IS_ERR(cqr))
  1990. return cqr;
  1991. ccw = cqr->cpaddr;
  1992. /* Define extent for the first 2 tracks. */
  1993. define_extent(ccw++, cqr->data, 0, 1,
  1994. DASD_ECKD_CCW_READ_COUNT, device, 0);
  1995. LO_data = cqr->data + sizeof(struct DE_eckd_data);
  1996. /* Locate record for the first 4 records on track 0. */
  1997. ccw[-1].flags |= CCW_FLAG_CC;
  1998. locate_record(ccw++, LO_data++, 0, 0, 4,
  1999. DASD_ECKD_CCW_READ_COUNT, device, 0);
  2000. count_data = private->count_area;
  2001. for (i = 0; i < 4; i++) {
  2002. ccw[-1].flags |= CCW_FLAG_CC;
  2003. ccw->cmd_code = DASD_ECKD_CCW_READ_COUNT;
  2004. ccw->flags = 0;
  2005. ccw->count = 8;
  2006. ccw->cda = virt_to_dma32(count_data);
  2007. ccw++;
  2008. count_data++;
  2009. }
  2010. /* Locate record for the first record on track 1. */
  2011. ccw[-1].flags |= CCW_FLAG_CC;
  2012. locate_record(ccw++, LO_data++, 1, 0, 1,
  2013. DASD_ECKD_CCW_READ_COUNT, device, 0);
  2014. /* Read count ccw. */
  2015. ccw[-1].flags |= CCW_FLAG_CC;
  2016. ccw->cmd_code = DASD_ECKD_CCW_READ_COUNT;
  2017. ccw->flags = 0;
  2018. ccw->count = 8;
  2019. ccw->cda = virt_to_dma32(count_data);
  2020. cqr->block = NULL;
  2021. cqr->startdev = device;
  2022. cqr->memdev = device;
  2023. cqr->retries = 255;
  2024. cqr->buildclk = get_tod_clock();
  2025. cqr->status = DASD_CQR_FILLED;
  2026. /* Set flags to suppress output for expected errors */
  2027. set_bit(DASD_CQR_SUPPRESS_NRF, &cqr->flags);
  2028. set_bit(DASD_CQR_SUPPRESS_IT, &cqr->flags);
  2029. return cqr;
  2030. }
  2031. /* differentiate between 'no record found' and any other error */
  2032. static int dasd_eckd_analysis_evaluation(struct dasd_ccw_req *init_cqr)
  2033. {
  2034. char *sense;
  2035. if (init_cqr->status == DASD_CQR_DONE)
  2036. return INIT_CQR_OK;
  2037. else if (init_cqr->status == DASD_CQR_NEED_ERP ||
  2038. init_cqr->status == DASD_CQR_FAILED) {
  2039. sense = dasd_get_sense(&init_cqr->irb);
  2040. if (sense && (sense[1] & SNS1_NO_REC_FOUND))
  2041. return INIT_CQR_UNFORMATTED;
  2042. else
  2043. return INIT_CQR_ERROR;
  2044. } else
  2045. return INIT_CQR_ERROR;
  2046. }
  2047. /*
  2048. * This is the callback function for the init_analysis cqr. It saves
  2049. * the status of the initial analysis ccw before it frees it and kicks
  2050. * the device to continue the startup sequence. This will call
  2051. * dasd_eckd_do_analysis again (if the devices has not been marked
  2052. * for deletion in the meantime).
  2053. */
  2054. static void dasd_eckd_analysis_callback(struct dasd_ccw_req *init_cqr,
  2055. void *data)
  2056. {
  2057. struct dasd_device *device = init_cqr->startdev;
  2058. struct dasd_eckd_private *private = device->private;
  2059. private->init_cqr_status = dasd_eckd_analysis_evaluation(init_cqr);
  2060. dasd_sfree_request(init_cqr, device);
  2061. dasd_kick_device(device);
  2062. }
  2063. static int dasd_eckd_start_analysis(struct dasd_block *block)
  2064. {
  2065. struct dasd_ccw_req *init_cqr;
  2066. init_cqr = dasd_eckd_analysis_ccw(block->base);
  2067. if (IS_ERR(init_cqr))
  2068. return PTR_ERR(init_cqr);
  2069. init_cqr->callback = dasd_eckd_analysis_callback;
  2070. init_cqr->callback_data = NULL;
  2071. init_cqr->expires = 5*HZ;
  2072. /* first try without ERP, so we can later handle unformatted
  2073. * devices as special case
  2074. */
  2075. clear_bit(DASD_CQR_FLAGS_USE_ERP, &init_cqr->flags);
  2076. init_cqr->retries = 0;
  2077. dasd_add_request_head(init_cqr);
  2078. return -EAGAIN;
  2079. }
  2080. static int dasd_eckd_end_analysis(struct dasd_block *block)
  2081. {
  2082. struct dasd_device *device = block->base;
  2083. struct dasd_eckd_private *private = device->private;
  2084. struct eckd_count *count_area;
  2085. unsigned int sb, blk_per_trk;
  2086. int status, i;
  2087. struct dasd_ccw_req *init_cqr;
  2088. status = private->init_cqr_status;
  2089. private->init_cqr_status = -1;
  2090. if (status == INIT_CQR_ERROR) {
  2091. /* try again, this time with full ERP */
  2092. init_cqr = dasd_eckd_analysis_ccw(device);
  2093. dasd_sleep_on(init_cqr);
  2094. status = dasd_eckd_analysis_evaluation(init_cqr);
  2095. dasd_sfree_request(init_cqr, device);
  2096. }
  2097. if (device->features & DASD_FEATURE_USERAW) {
  2098. block->bp_block = DASD_RAW_BLOCKSIZE;
  2099. blk_per_trk = DASD_RAW_BLOCK_PER_TRACK;
  2100. block->s2b_shift = 3;
  2101. goto raw;
  2102. }
  2103. if (status == INIT_CQR_UNFORMATTED) {
  2104. dev_warn(&device->cdev->dev, "The DASD is not formatted\n");
  2105. return -EMEDIUMTYPE;
  2106. } else if (status == INIT_CQR_ERROR) {
  2107. dev_err(&device->cdev->dev,
  2108. "Detecting the DASD disk layout failed because "
  2109. "of an I/O error\n");
  2110. return -EIO;
  2111. }
  2112. private->uses_cdl = 1;
  2113. /* Check Track 0 for Compatible Disk Layout */
  2114. count_area = NULL;
  2115. for (i = 0; i < 3; i++) {
  2116. if (private->count_area[i].kl != 4 ||
  2117. private->count_area[i].dl != dasd_eckd_cdl_reclen(i) - 4 ||
  2118. private->count_area[i].cyl != 0 ||
  2119. private->count_area[i].head != count_area_head[i] ||
  2120. private->count_area[i].record != count_area_rec[i]) {
  2121. private->uses_cdl = 0;
  2122. break;
  2123. }
  2124. }
  2125. if (i == 3)
  2126. count_area = &private->count_area[3];
  2127. if (private->uses_cdl == 0) {
  2128. for (i = 0; i < 5; i++) {
  2129. if ((private->count_area[i].kl != 0) ||
  2130. (private->count_area[i].dl !=
  2131. private->count_area[0].dl) ||
  2132. private->count_area[i].cyl != 0 ||
  2133. private->count_area[i].head != count_area_head[i] ||
  2134. private->count_area[i].record != count_area_rec[i])
  2135. break;
  2136. }
  2137. if (i == 5)
  2138. count_area = &private->count_area[0];
  2139. } else {
  2140. if (private->count_area[3].record == 1)
  2141. dev_warn(&device->cdev->dev,
  2142. "Track 0 has no records following the VTOC\n");
  2143. }
  2144. if (count_area != NULL && count_area->kl == 0) {
  2145. /* we found notthing violating our disk layout */
  2146. if (dasd_check_blocksize(count_area->dl) == 0)
  2147. block->bp_block = count_area->dl;
  2148. }
  2149. if (block->bp_block == 0) {
  2150. dev_warn(&device->cdev->dev,
  2151. "The disk layout of the DASD is not supported\n");
  2152. return -EMEDIUMTYPE;
  2153. }
  2154. block->s2b_shift = 0; /* bits to shift 512 to get a block */
  2155. for (sb = 512; sb < block->bp_block; sb = sb << 1)
  2156. block->s2b_shift++;
  2157. blk_per_trk = recs_per_track(&private->rdc_data, 0, block->bp_block);
  2158. raw:
  2159. block->blocks = ((unsigned long) private->real_cyl *
  2160. private->rdc_data.trk_per_cyl *
  2161. blk_per_trk);
  2162. dev_info(&device->cdev->dev,
  2163. "DASD with %u KB/block, %lu KB total size, %u KB/track, "
  2164. "%s\n", (block->bp_block >> 10),
  2165. (((unsigned long) private->real_cyl *
  2166. private->rdc_data.trk_per_cyl *
  2167. blk_per_trk * (block->bp_block >> 9)) >> 1),
  2168. ((blk_per_trk * block->bp_block) >> 10),
  2169. private->uses_cdl ?
  2170. "compatible disk layout" : "linux disk layout");
  2171. return 0;
  2172. }
  2173. static int dasd_eckd_do_analysis(struct dasd_block *block)
  2174. {
  2175. struct dasd_eckd_private *private = block->base->private;
  2176. if (private->init_cqr_status < 0)
  2177. return dasd_eckd_start_analysis(block);
  2178. else
  2179. return dasd_eckd_end_analysis(block);
  2180. }
  2181. static int dasd_eckd_basic_to_ready(struct dasd_device *device)
  2182. {
  2183. return dasd_alias_add_device(device);
  2184. };
  2185. static int dasd_eckd_online_to_ready(struct dasd_device *device)
  2186. {
  2187. if (cancel_work_sync(&device->reload_device))
  2188. dasd_put_device(device);
  2189. if (cancel_work_sync(&device->kick_validate))
  2190. dasd_put_device(device);
  2191. return 0;
  2192. };
  2193. static int dasd_eckd_basic_to_known(struct dasd_device *device)
  2194. {
  2195. return dasd_alias_remove_device(device);
  2196. };
  2197. static int
  2198. dasd_eckd_fill_geometry(struct dasd_block *block, struct hd_geometry *geo)
  2199. {
  2200. struct dasd_eckd_private *private = block->base->private;
  2201. if (dasd_check_blocksize(block->bp_block) == 0) {
  2202. geo->sectors = recs_per_track(&private->rdc_data,
  2203. 0, block->bp_block);
  2204. }
  2205. geo->cylinders = private->rdc_data.no_cyl;
  2206. geo->heads = private->rdc_data.trk_per_cyl;
  2207. return 0;
  2208. }
  2209. /*
  2210. * Build the TCW request for the format check
  2211. */
  2212. static struct dasd_ccw_req *
  2213. dasd_eckd_build_check_tcw(struct dasd_device *base, struct format_data_t *fdata,
  2214. int enable_pav, struct eckd_count *fmt_buffer,
  2215. int rpt)
  2216. {
  2217. struct dasd_eckd_private *start_priv;
  2218. struct dasd_device *startdev = NULL;
  2219. struct tidaw *last_tidaw = NULL;
  2220. struct dasd_ccw_req *cqr;
  2221. struct itcw *itcw;
  2222. int itcw_size;
  2223. int count;
  2224. int rc;
  2225. int i;
  2226. if (enable_pav)
  2227. startdev = dasd_alias_get_start_dev(base);
  2228. if (!startdev)
  2229. startdev = base;
  2230. start_priv = startdev->private;
  2231. count = rpt * (fdata->stop_unit - fdata->start_unit + 1);
  2232. /*
  2233. * we're adding 'count' amount of tidaw to the itcw.
  2234. * calculate the corresponding itcw_size
  2235. */
  2236. itcw_size = itcw_calc_size(0, count, 0);
  2237. cqr = dasd_fmalloc_request(DASD_ECKD_MAGIC, 0, itcw_size, startdev);
  2238. if (IS_ERR(cqr))
  2239. return cqr;
  2240. start_priv->count++;
  2241. itcw = itcw_init(cqr->data, itcw_size, ITCW_OP_READ, 0, count, 0);
  2242. if (IS_ERR(itcw)) {
  2243. rc = -EINVAL;
  2244. goto out_err;
  2245. }
  2246. cqr->cpaddr = itcw_get_tcw(itcw);
  2247. rc = prepare_itcw(itcw, fdata->start_unit, fdata->stop_unit,
  2248. DASD_ECKD_CCW_READ_COUNT_MT, base, startdev, 0, count,
  2249. sizeof(struct eckd_count),
  2250. count * sizeof(struct eckd_count), 0, rpt);
  2251. if (rc)
  2252. goto out_err;
  2253. for (i = 0; i < count; i++) {
  2254. last_tidaw = itcw_add_tidaw(itcw, 0, fmt_buffer++,
  2255. sizeof(struct eckd_count));
  2256. if (IS_ERR(last_tidaw)) {
  2257. rc = -EINVAL;
  2258. goto out_err;
  2259. }
  2260. }
  2261. last_tidaw->flags |= TIDAW_FLAGS_LAST;
  2262. itcw_finalize(itcw);
  2263. cqr->cpmode = 1;
  2264. cqr->startdev = startdev;
  2265. cqr->memdev = startdev;
  2266. cqr->basedev = base;
  2267. cqr->retries = startdev->default_retries;
  2268. cqr->expires = startdev->default_expires * HZ;
  2269. cqr->buildclk = get_tod_clock();
  2270. cqr->status = DASD_CQR_FILLED;
  2271. /* Set flags to suppress output for expected errors */
  2272. set_bit(DASD_CQR_SUPPRESS_IL, &cqr->flags);
  2273. return cqr;
  2274. out_err:
  2275. dasd_sfree_request(cqr, startdev);
  2276. return ERR_PTR(rc);
  2277. }
  2278. /*
  2279. * Build the CCW request for the format check
  2280. */
  2281. static struct dasd_ccw_req *
  2282. dasd_eckd_build_check(struct dasd_device *base, struct format_data_t *fdata,
  2283. int enable_pav, struct eckd_count *fmt_buffer, int rpt)
  2284. {
  2285. struct dasd_eckd_private *start_priv;
  2286. struct dasd_eckd_private *base_priv;
  2287. struct dasd_device *startdev = NULL;
  2288. struct dasd_ccw_req *cqr;
  2289. struct ccw1 *ccw;
  2290. void *data;
  2291. int cplength, datasize;
  2292. int use_prefix;
  2293. int count;
  2294. int i;
  2295. if (enable_pav)
  2296. startdev = dasd_alias_get_start_dev(base);
  2297. if (!startdev)
  2298. startdev = base;
  2299. start_priv = startdev->private;
  2300. base_priv = base->private;
  2301. count = rpt * (fdata->stop_unit - fdata->start_unit + 1);
  2302. use_prefix = base_priv->features.feature[8] & 0x01;
  2303. if (use_prefix) {
  2304. cplength = 1;
  2305. datasize = sizeof(struct PFX_eckd_data);
  2306. } else {
  2307. cplength = 2;
  2308. datasize = sizeof(struct DE_eckd_data) +
  2309. sizeof(struct LO_eckd_data);
  2310. }
  2311. cplength += count;
  2312. cqr = dasd_fmalloc_request(DASD_ECKD_MAGIC, cplength, datasize, startdev);
  2313. if (IS_ERR(cqr))
  2314. return cqr;
  2315. start_priv->count++;
  2316. data = cqr->data;
  2317. ccw = cqr->cpaddr;
  2318. if (use_prefix) {
  2319. prefix_LRE(ccw++, data, fdata->start_unit, fdata->stop_unit,
  2320. DASD_ECKD_CCW_READ_COUNT, base, startdev, 1, 0,
  2321. count, 0, 0);
  2322. } else {
  2323. define_extent(ccw++, data, fdata->start_unit, fdata->stop_unit,
  2324. DASD_ECKD_CCW_READ_COUNT, startdev, 0);
  2325. data += sizeof(struct DE_eckd_data);
  2326. ccw[-1].flags |= CCW_FLAG_CC;
  2327. locate_record(ccw++, data, fdata->start_unit, 0, count,
  2328. DASD_ECKD_CCW_READ_COUNT, base, 0);
  2329. }
  2330. for (i = 0; i < count; i++) {
  2331. ccw[-1].flags |= CCW_FLAG_CC;
  2332. ccw->cmd_code = DASD_ECKD_CCW_READ_COUNT;
  2333. ccw->flags = CCW_FLAG_SLI;
  2334. ccw->count = 8;
  2335. ccw->cda = virt_to_dma32(fmt_buffer);
  2336. ccw++;
  2337. fmt_buffer++;
  2338. }
  2339. cqr->startdev = startdev;
  2340. cqr->memdev = startdev;
  2341. cqr->basedev = base;
  2342. cqr->retries = DASD_RETRIES;
  2343. cqr->expires = startdev->default_expires * HZ;
  2344. cqr->buildclk = get_tod_clock();
  2345. cqr->status = DASD_CQR_FILLED;
  2346. /* Set flags to suppress output for expected errors */
  2347. set_bit(DASD_CQR_SUPPRESS_NRF, &cqr->flags);
  2348. return cqr;
  2349. }
  2350. static struct dasd_ccw_req *
  2351. dasd_eckd_build_format(struct dasd_device *base, struct dasd_device *startdev,
  2352. struct format_data_t *fdata, int enable_pav)
  2353. {
  2354. struct dasd_eckd_private *base_priv;
  2355. struct dasd_eckd_private *start_priv;
  2356. struct dasd_ccw_req *fcp;
  2357. struct eckd_count *ect;
  2358. struct ch_t address;
  2359. struct ccw1 *ccw;
  2360. void *data;
  2361. int rpt;
  2362. int cplength, datasize;
  2363. int i, j;
  2364. int intensity = 0;
  2365. int r0_perm;
  2366. int nr_tracks;
  2367. int use_prefix;
  2368. if (enable_pav)
  2369. startdev = dasd_alias_get_start_dev(base);
  2370. if (!startdev)
  2371. startdev = base;
  2372. start_priv = startdev->private;
  2373. base_priv = base->private;
  2374. rpt = recs_per_track(&base_priv->rdc_data, 0, fdata->blksize);
  2375. nr_tracks = fdata->stop_unit - fdata->start_unit + 1;
  2376. /*
  2377. * fdata->intensity is a bit string that tells us what to do:
  2378. * Bit 0: write record zero
  2379. * Bit 1: write home address, currently not supported
  2380. * Bit 2: invalidate tracks
  2381. * Bit 3: use OS/390 compatible disk layout (cdl)
  2382. * Bit 4: do not allow storage subsystem to modify record zero
  2383. * Only some bit combinations do make sense.
  2384. */
  2385. if (fdata->intensity & 0x10) {
  2386. r0_perm = 0;
  2387. intensity = fdata->intensity & ~0x10;
  2388. } else {
  2389. r0_perm = 1;
  2390. intensity = fdata->intensity;
  2391. }
  2392. use_prefix = base_priv->features.feature[8] & 0x01;
  2393. switch (intensity) {
  2394. case 0x00: /* Normal format */
  2395. case 0x08: /* Normal format, use cdl. */
  2396. cplength = 2 + (rpt*nr_tracks);
  2397. if (use_prefix)
  2398. datasize = sizeof(struct PFX_eckd_data) +
  2399. sizeof(struct LO_eckd_data) +
  2400. rpt * nr_tracks * sizeof(struct eckd_count);
  2401. else
  2402. datasize = sizeof(struct DE_eckd_data) +
  2403. sizeof(struct LO_eckd_data) +
  2404. rpt * nr_tracks * sizeof(struct eckd_count);
  2405. break;
  2406. case 0x01: /* Write record zero and format track. */
  2407. case 0x09: /* Write record zero and format track, use cdl. */
  2408. cplength = 2 + rpt * nr_tracks;
  2409. if (use_prefix)
  2410. datasize = sizeof(struct PFX_eckd_data) +
  2411. sizeof(struct LO_eckd_data) +
  2412. sizeof(struct eckd_count) +
  2413. rpt * nr_tracks * sizeof(struct eckd_count);
  2414. else
  2415. datasize = sizeof(struct DE_eckd_data) +
  2416. sizeof(struct LO_eckd_data) +
  2417. sizeof(struct eckd_count) +
  2418. rpt * nr_tracks * sizeof(struct eckd_count);
  2419. break;
  2420. case 0x04: /* Invalidate track. */
  2421. case 0x0c: /* Invalidate track, use cdl. */
  2422. cplength = 3;
  2423. if (use_prefix)
  2424. datasize = sizeof(struct PFX_eckd_data) +
  2425. sizeof(struct LO_eckd_data) +
  2426. sizeof(struct eckd_count);
  2427. else
  2428. datasize = sizeof(struct DE_eckd_data) +
  2429. sizeof(struct LO_eckd_data) +
  2430. sizeof(struct eckd_count);
  2431. break;
  2432. default:
  2433. dev_warn(&startdev->cdev->dev,
  2434. "An I/O control call used incorrect flags 0x%x\n",
  2435. fdata->intensity);
  2436. return ERR_PTR(-EINVAL);
  2437. }
  2438. fcp = dasd_fmalloc_request(DASD_ECKD_MAGIC, cplength, datasize, startdev);
  2439. if (IS_ERR(fcp))
  2440. return fcp;
  2441. start_priv->count++;
  2442. data = fcp->data;
  2443. ccw = fcp->cpaddr;
  2444. switch (intensity & ~0x08) {
  2445. case 0x00: /* Normal format. */
  2446. if (use_prefix) {
  2447. prefix(ccw++, (struct PFX_eckd_data *) data,
  2448. fdata->start_unit, fdata->stop_unit,
  2449. DASD_ECKD_CCW_WRITE_CKD, base, startdev);
  2450. /* grant subsystem permission to format R0 */
  2451. if (r0_perm)
  2452. ((struct PFX_eckd_data *)data)
  2453. ->define_extent.ga_extended |= 0x04;
  2454. data += sizeof(struct PFX_eckd_data);
  2455. } else {
  2456. define_extent(ccw++, (struct DE_eckd_data *) data,
  2457. fdata->start_unit, fdata->stop_unit,
  2458. DASD_ECKD_CCW_WRITE_CKD, startdev, 0);
  2459. /* grant subsystem permission to format R0 */
  2460. if (r0_perm)
  2461. ((struct DE_eckd_data *) data)
  2462. ->ga_extended |= 0x04;
  2463. data += sizeof(struct DE_eckd_data);
  2464. }
  2465. ccw[-1].flags |= CCW_FLAG_CC;
  2466. locate_record(ccw++, (struct LO_eckd_data *) data,
  2467. fdata->start_unit, 0, rpt*nr_tracks,
  2468. DASD_ECKD_CCW_WRITE_CKD, base,
  2469. fdata->blksize);
  2470. data += sizeof(struct LO_eckd_data);
  2471. break;
  2472. case 0x01: /* Write record zero + format track. */
  2473. if (use_prefix) {
  2474. prefix(ccw++, (struct PFX_eckd_data *) data,
  2475. fdata->start_unit, fdata->stop_unit,
  2476. DASD_ECKD_CCW_WRITE_RECORD_ZERO,
  2477. base, startdev);
  2478. data += sizeof(struct PFX_eckd_data);
  2479. } else {
  2480. define_extent(ccw++, (struct DE_eckd_data *) data,
  2481. fdata->start_unit, fdata->stop_unit,
  2482. DASD_ECKD_CCW_WRITE_RECORD_ZERO, startdev, 0);
  2483. data += sizeof(struct DE_eckd_data);
  2484. }
  2485. ccw[-1].flags |= CCW_FLAG_CC;
  2486. locate_record(ccw++, (struct LO_eckd_data *) data,
  2487. fdata->start_unit, 0, rpt * nr_tracks + 1,
  2488. DASD_ECKD_CCW_WRITE_RECORD_ZERO, base,
  2489. base->block->bp_block);
  2490. data += sizeof(struct LO_eckd_data);
  2491. break;
  2492. case 0x04: /* Invalidate track. */
  2493. if (use_prefix) {
  2494. prefix(ccw++, (struct PFX_eckd_data *) data,
  2495. fdata->start_unit, fdata->stop_unit,
  2496. DASD_ECKD_CCW_WRITE_CKD, base, startdev);
  2497. data += sizeof(struct PFX_eckd_data);
  2498. } else {
  2499. define_extent(ccw++, (struct DE_eckd_data *) data,
  2500. fdata->start_unit, fdata->stop_unit,
  2501. DASD_ECKD_CCW_WRITE_CKD, startdev, 0);
  2502. data += sizeof(struct DE_eckd_data);
  2503. }
  2504. ccw[-1].flags |= CCW_FLAG_CC;
  2505. locate_record(ccw++, (struct LO_eckd_data *) data,
  2506. fdata->start_unit, 0, 1,
  2507. DASD_ECKD_CCW_WRITE_CKD, base, 8);
  2508. data += sizeof(struct LO_eckd_data);
  2509. break;
  2510. }
  2511. for (j = 0; j < nr_tracks; j++) {
  2512. /* calculate cylinder and head for the current track */
  2513. set_ch_t(&address,
  2514. (fdata->start_unit + j) /
  2515. base_priv->rdc_data.trk_per_cyl,
  2516. (fdata->start_unit + j) %
  2517. base_priv->rdc_data.trk_per_cyl);
  2518. if (intensity & 0x01) { /* write record zero */
  2519. ect = (struct eckd_count *) data;
  2520. data += sizeof(struct eckd_count);
  2521. ect->cyl = address.cyl;
  2522. ect->head = address.head;
  2523. ect->record = 0;
  2524. ect->kl = 0;
  2525. ect->dl = 8;
  2526. ccw[-1].flags |= CCW_FLAG_CC;
  2527. ccw->cmd_code = DASD_ECKD_CCW_WRITE_RECORD_ZERO;
  2528. ccw->flags = CCW_FLAG_SLI;
  2529. ccw->count = 8;
  2530. ccw->cda = virt_to_dma32(ect);
  2531. ccw++;
  2532. }
  2533. if ((intensity & ~0x08) & 0x04) { /* erase track */
  2534. ect = (struct eckd_count *) data;
  2535. data += sizeof(struct eckd_count);
  2536. ect->cyl = address.cyl;
  2537. ect->head = address.head;
  2538. ect->record = 1;
  2539. ect->kl = 0;
  2540. ect->dl = 0;
  2541. ccw[-1].flags |= CCW_FLAG_CC;
  2542. ccw->cmd_code = DASD_ECKD_CCW_WRITE_CKD;
  2543. ccw->flags = CCW_FLAG_SLI;
  2544. ccw->count = 8;
  2545. ccw->cda = virt_to_dma32(ect);
  2546. } else { /* write remaining records */
  2547. for (i = 0; i < rpt; i++) {
  2548. ect = (struct eckd_count *) data;
  2549. data += sizeof(struct eckd_count);
  2550. ect->cyl = address.cyl;
  2551. ect->head = address.head;
  2552. ect->record = i + 1;
  2553. ect->kl = 0;
  2554. ect->dl = fdata->blksize;
  2555. /*
  2556. * Check for special tracks 0-1
  2557. * when formatting CDL
  2558. */
  2559. if ((intensity & 0x08) &&
  2560. address.cyl == 0 && address.head == 0) {
  2561. if (i < 3) {
  2562. ect->kl = 4;
  2563. ect->dl = sizes_trk0[i] - 4;
  2564. }
  2565. }
  2566. if ((intensity & 0x08) &&
  2567. address.cyl == 0 && address.head == 1) {
  2568. ect->kl = 44;
  2569. ect->dl = LABEL_SIZE - 44;
  2570. }
  2571. ccw[-1].flags |= CCW_FLAG_CC;
  2572. if (i != 0 || j == 0)
  2573. ccw->cmd_code =
  2574. DASD_ECKD_CCW_WRITE_CKD;
  2575. else
  2576. ccw->cmd_code =
  2577. DASD_ECKD_CCW_WRITE_CKD_MT;
  2578. ccw->flags = CCW_FLAG_SLI;
  2579. ccw->count = 8;
  2580. ccw->cda = virt_to_dma32(ect);
  2581. ccw++;
  2582. }
  2583. }
  2584. }
  2585. fcp->startdev = startdev;
  2586. fcp->memdev = startdev;
  2587. fcp->basedev = base;
  2588. fcp->retries = 256;
  2589. fcp->expires = startdev->default_expires * HZ;
  2590. fcp->buildclk = get_tod_clock();
  2591. fcp->status = DASD_CQR_FILLED;
  2592. return fcp;
  2593. }
  2594. /*
  2595. * Wrapper function to build a CCW request depending on input data
  2596. */
  2597. static struct dasd_ccw_req *
  2598. dasd_eckd_format_build_ccw_req(struct dasd_device *base,
  2599. struct format_data_t *fdata, int enable_pav,
  2600. int tpm, struct eckd_count *fmt_buffer, int rpt)
  2601. {
  2602. struct dasd_ccw_req *ccw_req;
  2603. if (!fmt_buffer) {
  2604. ccw_req = dasd_eckd_build_format(base, NULL, fdata, enable_pav);
  2605. } else {
  2606. if (tpm)
  2607. ccw_req = dasd_eckd_build_check_tcw(base, fdata,
  2608. enable_pav,
  2609. fmt_buffer, rpt);
  2610. else
  2611. ccw_req = dasd_eckd_build_check(base, fdata, enable_pav,
  2612. fmt_buffer, rpt);
  2613. }
  2614. return ccw_req;
  2615. }
  2616. /*
  2617. * Sanity checks on format_data
  2618. */
  2619. static int dasd_eckd_format_sanity_checks(struct dasd_device *base,
  2620. struct format_data_t *fdata)
  2621. {
  2622. struct dasd_eckd_private *private = base->private;
  2623. if (fdata->start_unit >=
  2624. (private->real_cyl * private->rdc_data.trk_per_cyl)) {
  2625. dev_warn(&base->cdev->dev,
  2626. "Start track number %u used in formatting is too big\n",
  2627. fdata->start_unit);
  2628. return -EINVAL;
  2629. }
  2630. if (fdata->stop_unit >=
  2631. (private->real_cyl * private->rdc_data.trk_per_cyl)) {
  2632. dev_warn(&base->cdev->dev,
  2633. "Stop track number %u used in formatting is too big\n",
  2634. fdata->stop_unit);
  2635. return -EINVAL;
  2636. }
  2637. if (fdata->start_unit > fdata->stop_unit) {
  2638. dev_warn(&base->cdev->dev,
  2639. "Start track %u used in formatting exceeds end track\n",
  2640. fdata->start_unit);
  2641. return -EINVAL;
  2642. }
  2643. if (dasd_check_blocksize(fdata->blksize) != 0) {
  2644. dev_warn(&base->cdev->dev,
  2645. "The DASD cannot be formatted with block size %u\n",
  2646. fdata->blksize);
  2647. return -EINVAL;
  2648. }
  2649. return 0;
  2650. }
  2651. /*
  2652. * This function will process format_data originally coming from an IOCTL
  2653. */
  2654. static int dasd_eckd_format_process_data(struct dasd_device *base,
  2655. struct format_data_t *fdata,
  2656. int enable_pav, int tpm,
  2657. struct eckd_count *fmt_buffer, int rpt,
  2658. struct irb *irb)
  2659. {
  2660. struct dasd_eckd_private *private = base->private;
  2661. struct dasd_ccw_req *cqr, *n;
  2662. struct list_head format_queue;
  2663. struct dasd_device *device;
  2664. char *sense = NULL;
  2665. int old_start, old_stop, format_step;
  2666. int step, retry;
  2667. int rc;
  2668. rc = dasd_eckd_format_sanity_checks(base, fdata);
  2669. if (rc)
  2670. return rc;
  2671. INIT_LIST_HEAD(&format_queue);
  2672. old_start = fdata->start_unit;
  2673. old_stop = fdata->stop_unit;
  2674. if (!tpm && fmt_buffer != NULL) {
  2675. /* Command Mode / Format Check */
  2676. format_step = 1;
  2677. } else if (tpm && fmt_buffer != NULL) {
  2678. /* Transport Mode / Format Check */
  2679. format_step = DASD_CQR_MAX_CCW / rpt;
  2680. } else {
  2681. /* Normal Formatting */
  2682. format_step = DASD_CQR_MAX_CCW /
  2683. recs_per_track(&private->rdc_data, 0, fdata->blksize);
  2684. }
  2685. do {
  2686. retry = 0;
  2687. while (fdata->start_unit <= old_stop) {
  2688. step = fdata->stop_unit - fdata->start_unit + 1;
  2689. if (step > format_step) {
  2690. fdata->stop_unit =
  2691. fdata->start_unit + format_step - 1;
  2692. }
  2693. cqr = dasd_eckd_format_build_ccw_req(base, fdata,
  2694. enable_pav, tpm,
  2695. fmt_buffer, rpt);
  2696. if (IS_ERR(cqr)) {
  2697. rc = PTR_ERR(cqr);
  2698. if (rc == -ENOMEM) {
  2699. if (list_empty(&format_queue))
  2700. goto out;
  2701. /*
  2702. * not enough memory available, start
  2703. * requests retry after first requests
  2704. * were finished
  2705. */
  2706. retry = 1;
  2707. break;
  2708. }
  2709. goto out_err;
  2710. }
  2711. list_add_tail(&cqr->blocklist, &format_queue);
  2712. if (fmt_buffer) {
  2713. step = fdata->stop_unit - fdata->start_unit + 1;
  2714. fmt_buffer += rpt * step;
  2715. }
  2716. fdata->start_unit = fdata->stop_unit + 1;
  2717. fdata->stop_unit = old_stop;
  2718. }
  2719. rc = dasd_sleep_on_queue(&format_queue);
  2720. out_err:
  2721. list_for_each_entry_safe(cqr, n, &format_queue, blocklist) {
  2722. device = cqr->startdev;
  2723. private = device->private;
  2724. if (cqr->status == DASD_CQR_FAILED) {
  2725. /*
  2726. * Only get sense data if called by format
  2727. * check
  2728. */
  2729. if (fmt_buffer && irb) {
  2730. sense = dasd_get_sense(&cqr->irb);
  2731. memcpy(irb, &cqr->irb, sizeof(*irb));
  2732. }
  2733. rc = -EIO;
  2734. }
  2735. list_del_init(&cqr->blocklist);
  2736. dasd_ffree_request(cqr, device);
  2737. private->count--;
  2738. }
  2739. if (rc && rc != -EIO)
  2740. goto out;
  2741. if (rc == -EIO) {
  2742. /*
  2743. * In case fewer than the expected records are on the
  2744. * track, we will most likely get a 'No Record Found'
  2745. * error (in command mode) or a 'File Protected' error
  2746. * (in transport mode). Those particular cases shouldn't
  2747. * pass the -EIO to the IOCTL, therefore reset the rc
  2748. * and continue.
  2749. */
  2750. if (sense &&
  2751. (sense[1] & SNS1_NO_REC_FOUND ||
  2752. sense[1] & SNS1_FILE_PROTECTED))
  2753. retry = 1;
  2754. else
  2755. goto out;
  2756. }
  2757. } while (retry);
  2758. out:
  2759. fdata->start_unit = old_start;
  2760. fdata->stop_unit = old_stop;
  2761. return rc;
  2762. }
  2763. static int dasd_eckd_format_device(struct dasd_device *base,
  2764. struct format_data_t *fdata, int enable_pav)
  2765. {
  2766. return dasd_eckd_format_process_data(base, fdata, enable_pav, 0, NULL,
  2767. 0, NULL);
  2768. }
  2769. static bool test_and_set_format_track(struct dasd_format_entry *to_format,
  2770. struct dasd_ccw_req *cqr)
  2771. {
  2772. struct dasd_block *block = cqr->block;
  2773. struct dasd_format_entry *format;
  2774. unsigned long flags;
  2775. bool rc = false;
  2776. spin_lock_irqsave(&block->format_lock, flags);
  2777. if (cqr->trkcount != atomic_read(&block->trkcount)) {
  2778. /*
  2779. * The number of formatted tracks has changed after request
  2780. * start and we can not tell if the current track was involved.
  2781. * To avoid data corruption treat it as if the current track is
  2782. * involved
  2783. */
  2784. rc = true;
  2785. goto out;
  2786. }
  2787. list_for_each_entry(format, &block->format_list, list) {
  2788. if (format->track == to_format->track) {
  2789. rc = true;
  2790. goto out;
  2791. }
  2792. }
  2793. list_add_tail(&to_format->list, &block->format_list);
  2794. out:
  2795. spin_unlock_irqrestore(&block->format_lock, flags);
  2796. return rc;
  2797. }
  2798. static void clear_format_track(struct dasd_format_entry *format,
  2799. struct dasd_block *block)
  2800. {
  2801. unsigned long flags;
  2802. spin_lock_irqsave(&block->format_lock, flags);
  2803. atomic_inc(&block->trkcount);
  2804. list_del_init(&format->list);
  2805. spin_unlock_irqrestore(&block->format_lock, flags);
  2806. }
  2807. /*
  2808. * Callback function to free ESE format requests.
  2809. */
  2810. static void dasd_eckd_ese_format_cb(struct dasd_ccw_req *cqr, void *data)
  2811. {
  2812. struct dasd_device *device = cqr->startdev;
  2813. struct dasd_eckd_private *private = device->private;
  2814. struct dasd_format_entry *format = data;
  2815. clear_format_track(format, cqr->basedev->block);
  2816. private->count--;
  2817. dasd_ffree_request(cqr, device);
  2818. }
  2819. static struct dasd_ccw_req *
  2820. dasd_eckd_ese_format(struct dasd_device *startdev, struct dasd_ccw_req *cqr,
  2821. struct irb *irb)
  2822. {
  2823. struct dasd_eckd_private *private;
  2824. struct dasd_format_entry *format;
  2825. struct format_data_t fdata;
  2826. unsigned int recs_per_trk;
  2827. struct dasd_ccw_req *fcqr;
  2828. struct dasd_device *base;
  2829. struct dasd_block *block;
  2830. unsigned int blksize;
  2831. struct request *req;
  2832. sector_t first_trk;
  2833. sector_t last_trk;
  2834. sector_t curr_trk;
  2835. int rc;
  2836. req = dasd_get_callback_data(cqr);
  2837. block = cqr->block;
  2838. base = block->base;
  2839. private = base->private;
  2840. blksize = block->bp_block;
  2841. recs_per_trk = recs_per_track(&private->rdc_data, 0, blksize);
  2842. format = &startdev->format_entry;
  2843. first_trk = blk_rq_pos(req) >> block->s2b_shift;
  2844. sector_div(first_trk, recs_per_trk);
  2845. last_trk =
  2846. (blk_rq_pos(req) + blk_rq_sectors(req) - 1) >> block->s2b_shift;
  2847. sector_div(last_trk, recs_per_trk);
  2848. rc = dasd_eckd_track_from_irb(irb, base, &curr_trk);
  2849. if (rc)
  2850. return ERR_PTR(rc);
  2851. if (curr_trk < first_trk || curr_trk > last_trk) {
  2852. DBF_DEV_EVENT(DBF_WARNING, startdev,
  2853. "ESE error track %llu not within range %llu - %llu\n",
  2854. curr_trk, first_trk, last_trk);
  2855. return ERR_PTR(-EINVAL);
  2856. }
  2857. format->track = curr_trk;
  2858. /* test if track is already in formatting by another thread */
  2859. if (test_and_set_format_track(format, cqr)) {
  2860. /* this is no real error so do not count down retries */
  2861. cqr->retries++;
  2862. return ERR_PTR(-EEXIST);
  2863. }
  2864. fdata.start_unit = curr_trk;
  2865. fdata.stop_unit = curr_trk;
  2866. fdata.blksize = blksize;
  2867. fdata.intensity = private->uses_cdl ? DASD_FMT_INT_COMPAT : 0;
  2868. rc = dasd_eckd_format_sanity_checks(base, &fdata);
  2869. if (rc)
  2870. return ERR_PTR(-EINVAL);
  2871. /*
  2872. * We're building the request with PAV disabled as we're reusing
  2873. * the former startdev.
  2874. */
  2875. fcqr = dasd_eckd_build_format(base, startdev, &fdata, 0);
  2876. if (IS_ERR(fcqr))
  2877. return fcqr;
  2878. fcqr->callback = dasd_eckd_ese_format_cb;
  2879. fcqr->callback_data = (void *) format;
  2880. return fcqr;
  2881. }
  2882. /*
  2883. * When data is read from an unformatted area of an ESE volume, this function
  2884. * returns zeroed data and thereby mimics a read of zero data.
  2885. *
  2886. * The first unformatted track is the one that got the NRF error, the address is
  2887. * encoded in the sense data.
  2888. *
  2889. * All tracks before have returned valid data and should not be touched.
  2890. * All tracks after the unformatted track might be formatted or not. This is
  2891. * currently not known, remember the processed data and return the remainder of
  2892. * the request to the blocklayer in __dasd_cleanup_cqr().
  2893. */
  2894. static int dasd_eckd_ese_read(struct dasd_ccw_req *cqr, struct irb *irb)
  2895. {
  2896. struct dasd_eckd_private *private;
  2897. sector_t first_trk, last_trk;
  2898. sector_t first_blk, last_blk;
  2899. unsigned int blksize, off;
  2900. unsigned int recs_per_trk;
  2901. struct dasd_device *base;
  2902. struct req_iterator iter;
  2903. struct dasd_block *block;
  2904. unsigned int skip_block;
  2905. unsigned int blk_count;
  2906. struct request *req;
  2907. struct bio_vec bv;
  2908. sector_t curr_trk;
  2909. sector_t end_blk;
  2910. char *dst;
  2911. int rc;
  2912. req = (struct request *) cqr->callback_data;
  2913. base = cqr->block->base;
  2914. blksize = base->block->bp_block;
  2915. block = cqr->block;
  2916. private = base->private;
  2917. skip_block = 0;
  2918. blk_count = 0;
  2919. recs_per_trk = recs_per_track(&private->rdc_data, 0, blksize);
  2920. first_trk = first_blk = blk_rq_pos(req) >> block->s2b_shift;
  2921. sector_div(first_trk, recs_per_trk);
  2922. last_trk = last_blk =
  2923. (blk_rq_pos(req) + blk_rq_sectors(req) - 1) >> block->s2b_shift;
  2924. sector_div(last_trk, recs_per_trk);
  2925. rc = dasd_eckd_track_from_irb(irb, base, &curr_trk);
  2926. if (rc)
  2927. return rc;
  2928. /* sanity check if the current track from sense data is valid */
  2929. if (curr_trk < first_trk || curr_trk > last_trk) {
  2930. DBF_DEV_EVENT(DBF_WARNING, base,
  2931. "ESE error track %llu not within range %llu - %llu\n",
  2932. curr_trk, first_trk, last_trk);
  2933. return -EINVAL;
  2934. }
  2935. /*
  2936. * if not the first track got the NRF error we have to skip over valid
  2937. * blocks
  2938. */
  2939. if (curr_trk != first_trk)
  2940. skip_block = curr_trk * recs_per_trk - first_blk;
  2941. /* we have no information beyond the current track */
  2942. end_blk = (curr_trk + 1) * recs_per_trk;
  2943. rq_for_each_segment(bv, req, iter) {
  2944. dst = bvec_virt(&bv);
  2945. for (off = 0; off < bv.bv_len; off += blksize) {
  2946. if (first_blk + blk_count >= end_blk) {
  2947. cqr->proc_bytes = blk_count * blksize;
  2948. return 0;
  2949. }
  2950. if (dst && !skip_block)
  2951. memset(dst, 0, blksize);
  2952. else
  2953. skip_block--;
  2954. dst += blksize;
  2955. blk_count++;
  2956. }
  2957. }
  2958. return 0;
  2959. }
  2960. /*
  2961. * Helper function to count consecutive records of a single track.
  2962. */
  2963. static int dasd_eckd_count_records(struct eckd_count *fmt_buffer, int start,
  2964. int max)
  2965. {
  2966. int head;
  2967. int i;
  2968. head = fmt_buffer[start].head;
  2969. /*
  2970. * There are 3 conditions where we stop counting:
  2971. * - if data reoccurs (same head and record may reoccur), which may
  2972. * happen due to the way DASD_ECKD_CCW_READ_COUNT works
  2973. * - when the head changes, because we're iterating over several tracks
  2974. * then (DASD_ECKD_CCW_READ_COUNT_MT)
  2975. * - when we've reached the end of sensible data in the buffer (the
  2976. * record will be 0 then)
  2977. */
  2978. for (i = start; i < max; i++) {
  2979. if (i > start) {
  2980. if ((fmt_buffer[i].head == head &&
  2981. fmt_buffer[i].record == 1) ||
  2982. fmt_buffer[i].head != head ||
  2983. fmt_buffer[i].record == 0)
  2984. break;
  2985. }
  2986. }
  2987. return i - start;
  2988. }
  2989. /*
  2990. * Evaluate a given range of tracks. Data like number of records, blocksize,
  2991. * record ids, and key length are compared with expected data.
  2992. *
  2993. * If a mismatch occurs, the corresponding error bit is set, as well as
  2994. * additional information, depending on the error.
  2995. */
  2996. static void dasd_eckd_format_evaluate_tracks(struct eckd_count *fmt_buffer,
  2997. struct format_check_t *cdata,
  2998. int rpt_max, int rpt_exp,
  2999. int trk_per_cyl, int tpm)
  3000. {
  3001. struct ch_t geo;
  3002. int max_entries;
  3003. int count = 0;
  3004. int trkcount;
  3005. int blksize;
  3006. int pos = 0;
  3007. int i, j;
  3008. int kl;
  3009. trkcount = cdata->expect.stop_unit - cdata->expect.start_unit + 1;
  3010. max_entries = trkcount * rpt_max;
  3011. for (i = cdata->expect.start_unit; i <= cdata->expect.stop_unit; i++) {
  3012. /* Calculate the correct next starting position in the buffer */
  3013. if (tpm) {
  3014. while (fmt_buffer[pos].record == 0 &&
  3015. fmt_buffer[pos].dl == 0) {
  3016. if (pos++ > max_entries)
  3017. break;
  3018. }
  3019. } else {
  3020. if (i != cdata->expect.start_unit)
  3021. pos += rpt_max - count;
  3022. }
  3023. /* Calculate the expected geo values for the current track */
  3024. set_ch_t(&geo, i / trk_per_cyl, i % trk_per_cyl);
  3025. /* Count and check number of records */
  3026. count = dasd_eckd_count_records(fmt_buffer, pos, pos + rpt_max);
  3027. if (count < rpt_exp) {
  3028. cdata->result = DASD_FMT_ERR_TOO_FEW_RECORDS;
  3029. break;
  3030. }
  3031. if (count > rpt_exp) {
  3032. cdata->result = DASD_FMT_ERR_TOO_MANY_RECORDS;
  3033. break;
  3034. }
  3035. for (j = 0; j < count; j++, pos++) {
  3036. blksize = cdata->expect.blksize;
  3037. kl = 0;
  3038. /*
  3039. * Set special values when checking CDL formatted
  3040. * devices.
  3041. */
  3042. if ((cdata->expect.intensity & 0x08) &&
  3043. geo.cyl == 0 && geo.head == 0) {
  3044. if (j < 3) {
  3045. blksize = sizes_trk0[j] - 4;
  3046. kl = 4;
  3047. }
  3048. }
  3049. if ((cdata->expect.intensity & 0x08) &&
  3050. geo.cyl == 0 && geo.head == 1) {
  3051. blksize = LABEL_SIZE - 44;
  3052. kl = 44;
  3053. }
  3054. /* Check blocksize */
  3055. if (fmt_buffer[pos].dl != blksize) {
  3056. cdata->result = DASD_FMT_ERR_BLKSIZE;
  3057. goto out;
  3058. }
  3059. /* Check if key length is 0 */
  3060. if (fmt_buffer[pos].kl != kl) {
  3061. cdata->result = DASD_FMT_ERR_KEY_LENGTH;
  3062. goto out;
  3063. }
  3064. /* Check if record_id is correct */
  3065. if (fmt_buffer[pos].cyl != geo.cyl ||
  3066. fmt_buffer[pos].head != geo.head ||
  3067. fmt_buffer[pos].record != (j + 1)) {
  3068. cdata->result = DASD_FMT_ERR_RECORD_ID;
  3069. goto out;
  3070. }
  3071. }
  3072. }
  3073. out:
  3074. /*
  3075. * In case of no errors, we need to decrease by one
  3076. * to get the correct positions.
  3077. */
  3078. if (!cdata->result) {
  3079. i--;
  3080. pos--;
  3081. }
  3082. cdata->unit = i;
  3083. cdata->num_records = count;
  3084. cdata->rec = fmt_buffer[pos].record;
  3085. cdata->blksize = fmt_buffer[pos].dl;
  3086. cdata->key_length = fmt_buffer[pos].kl;
  3087. }
  3088. /*
  3089. * Check the format of a range of tracks of a DASD.
  3090. */
  3091. static int dasd_eckd_check_device_format(struct dasd_device *base,
  3092. struct format_check_t *cdata,
  3093. int enable_pav)
  3094. {
  3095. struct dasd_eckd_private *private = base->private;
  3096. struct eckd_count *fmt_buffer;
  3097. struct irb irb;
  3098. int rpt_max, rpt_exp;
  3099. int fmt_buffer_size;
  3100. int trk_per_cyl;
  3101. int trkcount;
  3102. int tpm = 0;
  3103. int rc;
  3104. trk_per_cyl = private->rdc_data.trk_per_cyl;
  3105. /* Get maximum and expected amount of records per track */
  3106. rpt_max = recs_per_track(&private->rdc_data, 0, 512) + 1;
  3107. rpt_exp = recs_per_track(&private->rdc_data, 0, cdata->expect.blksize);
  3108. trkcount = cdata->expect.stop_unit - cdata->expect.start_unit + 1;
  3109. fmt_buffer_size = trkcount * rpt_max * sizeof(struct eckd_count);
  3110. fmt_buffer = kzalloc(fmt_buffer_size, GFP_KERNEL | GFP_DMA);
  3111. if (!fmt_buffer)
  3112. return -ENOMEM;
  3113. /*
  3114. * A certain FICON feature subset is needed to operate in transport
  3115. * mode. Additionally, the support for transport mode is implicitly
  3116. * checked by comparing the buffer size with fcx_max_data. As long as
  3117. * the buffer size is smaller we can operate in transport mode and
  3118. * process multiple tracks. If not, only one track at once is being
  3119. * processed using command mode.
  3120. */
  3121. if ((private->features.feature[40] & 0x04) &&
  3122. fmt_buffer_size <= private->fcx_max_data)
  3123. tpm = 1;
  3124. rc = dasd_eckd_format_process_data(base, &cdata->expect, enable_pav,
  3125. tpm, fmt_buffer, rpt_max, &irb);
  3126. if (rc && rc != -EIO)
  3127. goto out;
  3128. if (rc == -EIO) {
  3129. /*
  3130. * If our first attempt with transport mode enabled comes back
  3131. * with an incorrect length error, we're going to retry the
  3132. * check with command mode.
  3133. */
  3134. if (tpm && scsw_cstat(&irb.scsw) == 0x40) {
  3135. tpm = 0;
  3136. rc = dasd_eckd_format_process_data(base, &cdata->expect,
  3137. enable_pav, tpm,
  3138. fmt_buffer, rpt_max,
  3139. &irb);
  3140. if (rc)
  3141. goto out;
  3142. } else {
  3143. goto out;
  3144. }
  3145. }
  3146. dasd_eckd_format_evaluate_tracks(fmt_buffer, cdata, rpt_max, rpt_exp,
  3147. trk_per_cyl, tpm);
  3148. out:
  3149. kfree(fmt_buffer);
  3150. return rc;
  3151. }
  3152. static void dasd_eckd_handle_terminated_request(struct dasd_ccw_req *cqr)
  3153. {
  3154. if (cqr->retries < 0) {
  3155. cqr->status = DASD_CQR_FAILED;
  3156. return;
  3157. }
  3158. cqr->status = DASD_CQR_FILLED;
  3159. if (cqr->block && (cqr->startdev != cqr->block->base)) {
  3160. dasd_eckd_reset_ccw_to_base_io(cqr);
  3161. cqr->startdev = cqr->block->base;
  3162. cqr->lpm = dasd_path_get_opm(cqr->block->base);
  3163. }
  3164. };
  3165. static dasd_erp_fn_t
  3166. dasd_eckd_erp_action(struct dasd_ccw_req * cqr)
  3167. {
  3168. struct dasd_device *device = (struct dasd_device *) cqr->startdev;
  3169. struct ccw_device *cdev = device->cdev;
  3170. switch (cdev->id.cu_type) {
  3171. case 0x3990:
  3172. case 0x2105:
  3173. case 0x2107:
  3174. case 0x1750:
  3175. return dasd_3990_erp_action;
  3176. case 0x9343:
  3177. case 0x3880:
  3178. default:
  3179. return dasd_default_erp_action;
  3180. }
  3181. }
  3182. static dasd_erp_fn_t
  3183. dasd_eckd_erp_postaction(struct dasd_ccw_req * cqr)
  3184. {
  3185. return dasd_default_erp_postaction;
  3186. }
  3187. static void dasd_eckd_check_for_device_change(struct dasd_device *device,
  3188. struct dasd_ccw_req *cqr,
  3189. struct irb *irb)
  3190. {
  3191. char mask;
  3192. char *sense = NULL;
  3193. struct dasd_eckd_private *private = device->private;
  3194. /* first of all check for state change pending interrupt */
  3195. mask = DEV_STAT_ATTENTION | DEV_STAT_DEV_END | DEV_STAT_UNIT_EXCEP;
  3196. if ((scsw_dstat(&irb->scsw) & mask) == mask) {
  3197. /*
  3198. * for alias only, not in offline processing
  3199. * and only if not suspended
  3200. */
  3201. if (!device->block && private->lcu &&
  3202. device->state == DASD_STATE_ONLINE &&
  3203. !test_bit(DASD_FLAG_OFFLINE, &device->flags) &&
  3204. !test_bit(DASD_FLAG_SUSPENDED, &device->flags)) {
  3205. /* schedule worker to reload device */
  3206. dasd_reload_device(device);
  3207. }
  3208. dasd_generic_handle_state_change(device);
  3209. return;
  3210. }
  3211. sense = dasd_get_sense(irb);
  3212. if (!sense)
  3213. return;
  3214. /* summary unit check */
  3215. if ((sense[27] & DASD_SENSE_BIT_0) && (sense[7] == 0x0D) &&
  3216. (scsw_dstat(&irb->scsw) & DEV_STAT_UNIT_CHECK)) {
  3217. if (test_and_set_bit(DASD_FLAG_SUC, &device->flags)) {
  3218. DBF_DEV_EVENT(DBF_WARNING, device, "%s",
  3219. "eckd suc: device already notified");
  3220. return;
  3221. }
  3222. sense = dasd_get_sense(irb);
  3223. if (!sense) {
  3224. DBF_DEV_EVENT(DBF_WARNING, device, "%s",
  3225. "eckd suc: no reason code available");
  3226. clear_bit(DASD_FLAG_SUC, &device->flags);
  3227. return;
  3228. }
  3229. private->suc_reason = sense[8];
  3230. DBF_DEV_EVENT(DBF_NOTICE, device, "%s %x",
  3231. "eckd handle summary unit check: reason",
  3232. private->suc_reason);
  3233. dasd_get_device(device);
  3234. if (!schedule_work(&device->suc_work))
  3235. dasd_put_device(device);
  3236. return;
  3237. }
  3238. /* service information message SIM */
  3239. if (!cqr && !(sense[27] & DASD_SENSE_BIT_0) &&
  3240. ((sense[6] & DASD_SIM_SENSE) == DASD_SIM_SENSE)) {
  3241. dasd_3990_erp_handle_sim(device, sense);
  3242. return;
  3243. }
  3244. /* loss of device reservation is handled via base devices only
  3245. * as alias devices may be used with several bases
  3246. */
  3247. if (device->block && (sense[27] & DASD_SENSE_BIT_0) &&
  3248. (sense[7] == 0x3F) &&
  3249. (scsw_dstat(&irb->scsw) & DEV_STAT_UNIT_CHECK) &&
  3250. test_bit(DASD_FLAG_IS_RESERVED, &device->flags)) {
  3251. if (device->features & DASD_FEATURE_FAILONSLCK)
  3252. set_bit(DASD_FLAG_LOCK_STOLEN, &device->flags);
  3253. clear_bit(DASD_FLAG_IS_RESERVED, &device->flags);
  3254. dev_err(&device->cdev->dev,
  3255. "The device reservation was lost\n");
  3256. }
  3257. }
  3258. static int dasd_eckd_ras_sanity_checks(struct dasd_device *device,
  3259. unsigned int first_trk,
  3260. unsigned int last_trk)
  3261. {
  3262. struct dasd_eckd_private *private = device->private;
  3263. unsigned int trks_per_vol;
  3264. int rc = 0;
  3265. trks_per_vol = private->real_cyl * private->rdc_data.trk_per_cyl;
  3266. if (first_trk >= trks_per_vol) {
  3267. dev_warn(&device->cdev->dev,
  3268. "Start track number %u used in the space release command is too big\n",
  3269. first_trk);
  3270. rc = -EINVAL;
  3271. } else if (last_trk >= trks_per_vol) {
  3272. dev_warn(&device->cdev->dev,
  3273. "Stop track number %u used in the space release command is too big\n",
  3274. last_trk);
  3275. rc = -EINVAL;
  3276. } else if (first_trk > last_trk) {
  3277. dev_warn(&device->cdev->dev,
  3278. "Start track %u used in the space release command exceeds the end track\n",
  3279. first_trk);
  3280. rc = -EINVAL;
  3281. }
  3282. return rc;
  3283. }
  3284. /*
  3285. * Helper function to count the amount of involved extents within a given range
  3286. * with extent alignment in mind.
  3287. */
  3288. static int count_exts(unsigned int from, unsigned int to, int trks_per_ext)
  3289. {
  3290. int cur_pos = 0;
  3291. int count = 0;
  3292. int tmp;
  3293. if (from == to)
  3294. return 1;
  3295. /* Count first partial extent */
  3296. if (from % trks_per_ext != 0) {
  3297. tmp = from + trks_per_ext - (from % trks_per_ext) - 1;
  3298. if (tmp > to)
  3299. tmp = to;
  3300. cur_pos = tmp - from + 1;
  3301. count++;
  3302. }
  3303. /* Count full extents */
  3304. if (to - (from + cur_pos) + 1 >= trks_per_ext) {
  3305. tmp = to - ((to - trks_per_ext + 1) % trks_per_ext);
  3306. count += (tmp - (from + cur_pos) + 1) / trks_per_ext;
  3307. cur_pos = tmp;
  3308. }
  3309. /* Count last partial extent */
  3310. if (cur_pos < to)
  3311. count++;
  3312. return count;
  3313. }
  3314. static int dasd_in_copy_relation(struct dasd_device *device)
  3315. {
  3316. struct dasd_pprc_data_sc4 *temp;
  3317. int rc;
  3318. if (!dasd_eckd_pprc_enabled(device))
  3319. return 0;
  3320. temp = kzalloc(sizeof(*temp), GFP_KERNEL);
  3321. if (!temp)
  3322. return -ENOMEM;
  3323. rc = dasd_eckd_query_pprc_status(device, temp);
  3324. if (!rc)
  3325. rc = temp->dev_info[0].state;
  3326. kfree(temp);
  3327. return rc;
  3328. }
  3329. /*
  3330. * Release allocated space for a given range or an entire volume.
  3331. */
  3332. static struct dasd_ccw_req *
  3333. dasd_eckd_dso_ras(struct dasd_device *device, struct dasd_block *block,
  3334. struct request *req, unsigned int first_trk,
  3335. unsigned int last_trk, int by_extent)
  3336. {
  3337. struct dasd_eckd_private *private = device->private;
  3338. struct dasd_dso_ras_ext_range *ras_range;
  3339. struct dasd_rssd_features *features;
  3340. struct dasd_dso_ras_data *ras_data;
  3341. u16 heads, beg_head, end_head;
  3342. int cur_to_trk, cur_from_trk;
  3343. struct dasd_ccw_req *cqr;
  3344. u32 beg_cyl, end_cyl;
  3345. int copy_relation;
  3346. struct ccw1 *ccw;
  3347. int trks_per_ext;
  3348. size_t ras_size;
  3349. size_t size;
  3350. int nr_exts;
  3351. void *rq;
  3352. int i;
  3353. if (dasd_eckd_ras_sanity_checks(device, first_trk, last_trk))
  3354. return ERR_PTR(-EINVAL);
  3355. copy_relation = dasd_in_copy_relation(device);
  3356. if (copy_relation < 0)
  3357. return ERR_PTR(copy_relation);
  3358. rq = req ? blk_mq_rq_to_pdu(req) : NULL;
  3359. features = &private->features;
  3360. trks_per_ext = dasd_eckd_ext_size(device) * private->rdc_data.trk_per_cyl;
  3361. nr_exts = 0;
  3362. if (by_extent)
  3363. nr_exts = count_exts(first_trk, last_trk, trks_per_ext);
  3364. ras_size = sizeof(*ras_data);
  3365. size = ras_size + (nr_exts * sizeof(*ras_range));
  3366. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1, size, device, rq);
  3367. if (IS_ERR(cqr)) {
  3368. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  3369. "Could not allocate RAS request");
  3370. return cqr;
  3371. }
  3372. ras_data = cqr->data;
  3373. memset(ras_data, 0, size);
  3374. ras_data->order = DSO_ORDER_RAS;
  3375. ras_data->flags.vol_type = 0; /* CKD volume */
  3376. /* Release specified extents or entire volume */
  3377. ras_data->op_flags.by_extent = by_extent;
  3378. /*
  3379. * This bit guarantees initialisation of tracks within an extent that is
  3380. * not fully specified, but is only supported with a certain feature
  3381. * subset and for devices not in a copy relation.
  3382. */
  3383. if (features->feature[56] & 0x01 && !copy_relation)
  3384. ras_data->op_flags.guarantee_init = 1;
  3385. ras_data->lss = private->conf.ned->ID;
  3386. ras_data->dev_addr = private->conf.ned->unit_addr;
  3387. ras_data->nr_exts = nr_exts;
  3388. if (by_extent) {
  3389. heads = private->rdc_data.trk_per_cyl;
  3390. cur_from_trk = first_trk;
  3391. cur_to_trk = first_trk + trks_per_ext -
  3392. (first_trk % trks_per_ext) - 1;
  3393. if (cur_to_trk > last_trk)
  3394. cur_to_trk = last_trk;
  3395. ras_range = (struct dasd_dso_ras_ext_range *)(cqr->data + ras_size);
  3396. for (i = 0; i < nr_exts; i++) {
  3397. beg_cyl = cur_from_trk / heads;
  3398. beg_head = cur_from_trk % heads;
  3399. end_cyl = cur_to_trk / heads;
  3400. end_head = cur_to_trk % heads;
  3401. set_ch_t(&ras_range->beg_ext, beg_cyl, beg_head);
  3402. set_ch_t(&ras_range->end_ext, end_cyl, end_head);
  3403. cur_from_trk = cur_to_trk + 1;
  3404. cur_to_trk = cur_from_trk + trks_per_ext - 1;
  3405. if (cur_to_trk > last_trk)
  3406. cur_to_trk = last_trk;
  3407. ras_range++;
  3408. }
  3409. }
  3410. ccw = cqr->cpaddr;
  3411. ccw->cda = virt_to_dma32(cqr->data);
  3412. ccw->cmd_code = DASD_ECKD_CCW_DSO;
  3413. ccw->count = size;
  3414. cqr->startdev = device;
  3415. cqr->memdev = device;
  3416. cqr->block = block;
  3417. cqr->retries = 256;
  3418. cqr->expires = device->default_expires * HZ;
  3419. cqr->buildclk = get_tod_clock();
  3420. cqr->status = DASD_CQR_FILLED;
  3421. return cqr;
  3422. }
  3423. static int dasd_eckd_release_space_full(struct dasd_device *device)
  3424. {
  3425. struct dasd_ccw_req *cqr;
  3426. int rc;
  3427. cqr = dasd_eckd_dso_ras(device, NULL, NULL, 0, 0, 0);
  3428. if (IS_ERR(cqr))
  3429. return PTR_ERR(cqr);
  3430. rc = dasd_sleep_on_interruptible(cqr);
  3431. dasd_sfree_request(cqr, cqr->memdev);
  3432. return rc;
  3433. }
  3434. static int dasd_eckd_release_space_trks(struct dasd_device *device,
  3435. unsigned int from, unsigned int to)
  3436. {
  3437. struct dasd_eckd_private *private = device->private;
  3438. struct dasd_block *block = device->block;
  3439. struct dasd_ccw_req *cqr, *n;
  3440. struct list_head ras_queue;
  3441. unsigned int device_exts;
  3442. int trks_per_ext;
  3443. int stop, step;
  3444. int cur_pos;
  3445. int rc = 0;
  3446. int retry;
  3447. INIT_LIST_HEAD(&ras_queue);
  3448. device_exts = private->real_cyl / dasd_eckd_ext_size(device);
  3449. trks_per_ext = dasd_eckd_ext_size(device) * private->rdc_data.trk_per_cyl;
  3450. /* Make sure device limits are not exceeded */
  3451. step = trks_per_ext * min(device_exts, DASD_ECKD_RAS_EXTS_MAX);
  3452. cur_pos = from;
  3453. do {
  3454. retry = 0;
  3455. while (cur_pos < to) {
  3456. stop = cur_pos + step -
  3457. ((cur_pos + step) % trks_per_ext) - 1;
  3458. if (stop > to)
  3459. stop = to;
  3460. cqr = dasd_eckd_dso_ras(device, NULL, NULL, cur_pos, stop, 1);
  3461. if (IS_ERR(cqr)) {
  3462. rc = PTR_ERR(cqr);
  3463. if (rc == -ENOMEM) {
  3464. if (list_empty(&ras_queue))
  3465. goto out;
  3466. retry = 1;
  3467. break;
  3468. }
  3469. goto err_out;
  3470. }
  3471. spin_lock_irq(&block->queue_lock);
  3472. list_add_tail(&cqr->blocklist, &ras_queue);
  3473. spin_unlock_irq(&block->queue_lock);
  3474. cur_pos = stop + 1;
  3475. }
  3476. rc = dasd_sleep_on_queue_interruptible(&ras_queue);
  3477. err_out:
  3478. list_for_each_entry_safe(cqr, n, &ras_queue, blocklist) {
  3479. device = cqr->startdev;
  3480. private = device->private;
  3481. spin_lock_irq(&block->queue_lock);
  3482. list_del_init(&cqr->blocklist);
  3483. spin_unlock_irq(&block->queue_lock);
  3484. dasd_sfree_request(cqr, device);
  3485. private->count--;
  3486. }
  3487. } while (retry);
  3488. out:
  3489. return rc;
  3490. }
  3491. static int dasd_eckd_release_space(struct dasd_device *device,
  3492. struct format_data_t *rdata)
  3493. {
  3494. if (rdata->intensity & DASD_FMT_INT_ESE_FULL)
  3495. return dasd_eckd_release_space_full(device);
  3496. else if (rdata->intensity == 0)
  3497. return dasd_eckd_release_space_trks(device, rdata->start_unit,
  3498. rdata->stop_unit);
  3499. else
  3500. return -EINVAL;
  3501. }
  3502. static struct dasd_ccw_req *dasd_eckd_build_cp_cmd_single(
  3503. struct dasd_device *startdev,
  3504. struct dasd_block *block,
  3505. struct request *req,
  3506. sector_t first_rec,
  3507. sector_t last_rec,
  3508. sector_t first_trk,
  3509. sector_t last_trk,
  3510. unsigned int first_offs,
  3511. unsigned int last_offs,
  3512. unsigned int blk_per_trk,
  3513. unsigned int blksize)
  3514. {
  3515. struct dasd_eckd_private *private;
  3516. dma64_t *idaws;
  3517. struct LO_eckd_data *LO_data;
  3518. struct dasd_ccw_req *cqr;
  3519. struct ccw1 *ccw;
  3520. struct req_iterator iter;
  3521. struct bio_vec bv;
  3522. char *dst;
  3523. unsigned int off;
  3524. int count, cidaw, cplength, datasize;
  3525. sector_t recid;
  3526. unsigned char cmd, rcmd;
  3527. int use_prefix;
  3528. struct dasd_device *basedev;
  3529. basedev = block->base;
  3530. private = basedev->private;
  3531. if (rq_data_dir(req) == READ)
  3532. cmd = DASD_ECKD_CCW_READ_MT;
  3533. else if (rq_data_dir(req) == WRITE)
  3534. cmd = DASD_ECKD_CCW_WRITE_MT;
  3535. else
  3536. return ERR_PTR(-EINVAL);
  3537. /* Check struct bio and count the number of blocks for the request. */
  3538. count = 0;
  3539. cidaw = 0;
  3540. rq_for_each_segment(bv, req, iter) {
  3541. if (bv.bv_len & (blksize - 1))
  3542. /* Eckd can only do full blocks. */
  3543. return ERR_PTR(-EINVAL);
  3544. count += bv.bv_len >> (block->s2b_shift + 9);
  3545. if (idal_is_needed (page_address(bv.bv_page), bv.bv_len))
  3546. cidaw += bv.bv_len >> (block->s2b_shift + 9);
  3547. }
  3548. /* Paranoia. */
  3549. if (count != last_rec - first_rec + 1)
  3550. return ERR_PTR(-EINVAL);
  3551. /* use the prefix command if available */
  3552. use_prefix = private->features.feature[8] & 0x01;
  3553. if (use_prefix) {
  3554. /* 1x prefix + number of blocks */
  3555. cplength = 2 + count;
  3556. /* 1x prefix + cidaws*sizeof(long) */
  3557. datasize = sizeof(struct PFX_eckd_data) +
  3558. sizeof(struct LO_eckd_data) +
  3559. cidaw * sizeof(unsigned long);
  3560. } else {
  3561. /* 1x define extent + 1x locate record + number of blocks */
  3562. cplength = 2 + count;
  3563. /* 1x define extent + 1x locate record + cidaws*sizeof(long) */
  3564. datasize = sizeof(struct DE_eckd_data) +
  3565. sizeof(struct LO_eckd_data) +
  3566. cidaw * sizeof(unsigned long);
  3567. }
  3568. /* Find out the number of additional locate record ccws for cdl. */
  3569. if (private->uses_cdl && first_rec < 2*blk_per_trk) {
  3570. if (last_rec >= 2*blk_per_trk)
  3571. count = 2*blk_per_trk - first_rec;
  3572. cplength += count;
  3573. datasize += count*sizeof(struct LO_eckd_data);
  3574. }
  3575. /* Allocate the ccw request. */
  3576. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, cplength, datasize,
  3577. startdev, blk_mq_rq_to_pdu(req));
  3578. if (IS_ERR(cqr))
  3579. return cqr;
  3580. ccw = cqr->cpaddr;
  3581. /* First ccw is define extent or prefix. */
  3582. if (use_prefix) {
  3583. if (prefix(ccw++, cqr->data, first_trk,
  3584. last_trk, cmd, basedev, startdev) == -EAGAIN) {
  3585. /* Clock not in sync and XRC is enabled.
  3586. * Try again later.
  3587. */
  3588. dasd_sfree_request(cqr, startdev);
  3589. return ERR_PTR(-EAGAIN);
  3590. }
  3591. idaws = (dma64_t *)(cqr->data + sizeof(struct PFX_eckd_data));
  3592. } else {
  3593. if (define_extent(ccw++, cqr->data, first_trk,
  3594. last_trk, cmd, basedev, 0) == -EAGAIN) {
  3595. /* Clock not in sync and XRC is enabled.
  3596. * Try again later.
  3597. */
  3598. dasd_sfree_request(cqr, startdev);
  3599. return ERR_PTR(-EAGAIN);
  3600. }
  3601. idaws = (dma64_t *)(cqr->data + sizeof(struct DE_eckd_data));
  3602. }
  3603. /* Build locate_record+read/write/ccws. */
  3604. LO_data = (struct LO_eckd_data *) (idaws + cidaw);
  3605. recid = first_rec;
  3606. if (private->uses_cdl == 0 || recid > 2*blk_per_trk) {
  3607. /* Only standard blocks so there is just one locate record. */
  3608. ccw[-1].flags |= CCW_FLAG_CC;
  3609. locate_record(ccw++, LO_data++, first_trk, first_offs + 1,
  3610. last_rec - recid + 1, cmd, basedev, blksize);
  3611. }
  3612. rq_for_each_segment(bv, req, iter) {
  3613. dst = bvec_virt(&bv);
  3614. if (dasd_page_cache) {
  3615. char *copy = kmem_cache_alloc(dasd_page_cache,
  3616. GFP_DMA | __GFP_NOWARN);
  3617. if (copy && rq_data_dir(req) == WRITE)
  3618. memcpy(copy + bv.bv_offset, dst, bv.bv_len);
  3619. if (copy)
  3620. dst = copy + bv.bv_offset;
  3621. }
  3622. for (off = 0; off < bv.bv_len; off += blksize) {
  3623. sector_t trkid = recid;
  3624. unsigned int recoffs = sector_div(trkid, blk_per_trk);
  3625. rcmd = cmd;
  3626. count = blksize;
  3627. /* Locate record for cdl special block ? */
  3628. if (private->uses_cdl && recid < 2*blk_per_trk) {
  3629. if (dasd_eckd_cdl_special(blk_per_trk, recid)){
  3630. rcmd |= 0x8;
  3631. count = dasd_eckd_cdl_reclen(recid);
  3632. if (count < blksize &&
  3633. rq_data_dir(req) == READ)
  3634. memset(dst + count, 0xe5,
  3635. blksize - count);
  3636. }
  3637. ccw[-1].flags |= CCW_FLAG_CC;
  3638. locate_record(ccw++, LO_data++,
  3639. trkid, recoffs + 1,
  3640. 1, rcmd, basedev, count);
  3641. }
  3642. /* Locate record for standard blocks ? */
  3643. if (private->uses_cdl && recid == 2*blk_per_trk) {
  3644. ccw[-1].flags |= CCW_FLAG_CC;
  3645. locate_record(ccw++, LO_data++,
  3646. trkid, recoffs + 1,
  3647. last_rec - recid + 1,
  3648. cmd, basedev, count);
  3649. }
  3650. /* Read/write ccw. */
  3651. ccw[-1].flags |= CCW_FLAG_CC;
  3652. ccw->cmd_code = rcmd;
  3653. ccw->count = count;
  3654. if (idal_is_needed(dst, blksize)) {
  3655. ccw->cda = virt_to_dma32(idaws);
  3656. ccw->flags = CCW_FLAG_IDA;
  3657. idaws = idal_create_words(idaws, dst, blksize);
  3658. } else {
  3659. ccw->cda = virt_to_dma32(dst);
  3660. ccw->flags = 0;
  3661. }
  3662. ccw++;
  3663. dst += blksize;
  3664. recid++;
  3665. }
  3666. }
  3667. if (blk_noretry_request(req) ||
  3668. block->base->features & DASD_FEATURE_FAILFAST)
  3669. set_bit(DASD_CQR_FLAGS_FAILFAST, &cqr->flags);
  3670. cqr->startdev = startdev;
  3671. cqr->memdev = startdev;
  3672. cqr->block = block;
  3673. cqr->expires = startdev->default_expires * HZ; /* default 5 minutes */
  3674. cqr->lpm = dasd_path_get_ppm(startdev);
  3675. cqr->retries = startdev->default_retries;
  3676. cqr->buildclk = get_tod_clock();
  3677. cqr->status = DASD_CQR_FILLED;
  3678. /* Set flags to suppress output for expected errors */
  3679. if (dasd_eckd_is_ese(basedev)) {
  3680. set_bit(DASD_CQR_SUPPRESS_NRF, &cqr->flags);
  3681. }
  3682. return cqr;
  3683. }
  3684. static struct dasd_ccw_req *dasd_eckd_build_cp_cmd_track(
  3685. struct dasd_device *startdev,
  3686. struct dasd_block *block,
  3687. struct request *req,
  3688. sector_t first_rec,
  3689. sector_t last_rec,
  3690. sector_t first_trk,
  3691. sector_t last_trk,
  3692. unsigned int first_offs,
  3693. unsigned int last_offs,
  3694. unsigned int blk_per_trk,
  3695. unsigned int blksize)
  3696. {
  3697. dma64_t *idaws;
  3698. struct dasd_ccw_req *cqr;
  3699. struct ccw1 *ccw;
  3700. struct req_iterator iter;
  3701. struct bio_vec bv;
  3702. char *dst, *idaw_dst;
  3703. unsigned int cidaw, cplength, datasize;
  3704. unsigned int tlf;
  3705. sector_t recid;
  3706. unsigned char cmd;
  3707. struct dasd_device *basedev;
  3708. unsigned int trkcount, count, count_to_trk_end;
  3709. unsigned int idaw_len, seg_len, part_len, len_to_track_end;
  3710. unsigned char new_track, end_idaw;
  3711. sector_t trkid;
  3712. unsigned int recoffs;
  3713. basedev = block->base;
  3714. if (rq_data_dir(req) == READ)
  3715. cmd = DASD_ECKD_CCW_READ_TRACK_DATA;
  3716. else if (rq_data_dir(req) == WRITE)
  3717. cmd = DASD_ECKD_CCW_WRITE_TRACK_DATA;
  3718. else
  3719. return ERR_PTR(-EINVAL);
  3720. /* Track based I/O needs IDAWs for each page, and not just for
  3721. * 64 bit addresses. We need additional idals for pages
  3722. * that get filled from two tracks, so we use the number
  3723. * of records as upper limit.
  3724. */
  3725. cidaw = last_rec - first_rec + 1;
  3726. trkcount = last_trk - first_trk + 1;
  3727. /* 1x prefix + one read/write ccw per track */
  3728. cplength = 1 + trkcount;
  3729. datasize = sizeof(struct PFX_eckd_data) + cidaw * sizeof(unsigned long);
  3730. /* Allocate the ccw request. */
  3731. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, cplength, datasize,
  3732. startdev, blk_mq_rq_to_pdu(req));
  3733. if (IS_ERR(cqr))
  3734. return cqr;
  3735. ccw = cqr->cpaddr;
  3736. /* transfer length factor: how many bytes to read from the last track */
  3737. if (first_trk == last_trk)
  3738. tlf = last_offs - first_offs + 1;
  3739. else
  3740. tlf = last_offs + 1;
  3741. tlf *= blksize;
  3742. if (prefix_LRE(ccw++, cqr->data, first_trk,
  3743. last_trk, cmd, basedev, startdev,
  3744. 1 /* format */, first_offs + 1,
  3745. trkcount, blksize,
  3746. tlf) == -EAGAIN) {
  3747. /* Clock not in sync and XRC is enabled.
  3748. * Try again later.
  3749. */
  3750. dasd_sfree_request(cqr, startdev);
  3751. return ERR_PTR(-EAGAIN);
  3752. }
  3753. /*
  3754. * The translation of request into ccw programs must meet the
  3755. * following conditions:
  3756. * - all idaws but the first and the last must address full pages
  3757. * (or 2K blocks on 31-bit)
  3758. * - the scope of a ccw and it's idal ends with the track boundaries
  3759. */
  3760. idaws = (dma64_t *)(cqr->data + sizeof(struct PFX_eckd_data));
  3761. recid = first_rec;
  3762. new_track = 1;
  3763. end_idaw = 0;
  3764. len_to_track_end = 0;
  3765. idaw_dst = NULL;
  3766. idaw_len = 0;
  3767. rq_for_each_segment(bv, req, iter) {
  3768. dst = bvec_virt(&bv);
  3769. seg_len = bv.bv_len;
  3770. while (seg_len) {
  3771. if (new_track) {
  3772. trkid = recid;
  3773. recoffs = sector_div(trkid, blk_per_trk);
  3774. count_to_trk_end = blk_per_trk - recoffs;
  3775. count = min((last_rec - recid + 1),
  3776. (sector_t)count_to_trk_end);
  3777. len_to_track_end = count * blksize;
  3778. ccw[-1].flags |= CCW_FLAG_CC;
  3779. ccw->cmd_code = cmd;
  3780. ccw->count = len_to_track_end;
  3781. ccw->cda = virt_to_dma32(idaws);
  3782. ccw->flags = CCW_FLAG_IDA;
  3783. ccw++;
  3784. recid += count;
  3785. new_track = 0;
  3786. /* first idaw for a ccw may start anywhere */
  3787. if (!idaw_dst)
  3788. idaw_dst = dst;
  3789. }
  3790. /* If we start a new idaw, we must make sure that it
  3791. * starts on an IDA_BLOCK_SIZE boundary.
  3792. * If we continue an idaw, we must make sure that the
  3793. * current segment begins where the so far accumulated
  3794. * idaw ends
  3795. */
  3796. if (!idaw_dst) {
  3797. if ((unsigned long)(dst) & (IDA_BLOCK_SIZE - 1)) {
  3798. dasd_sfree_request(cqr, startdev);
  3799. return ERR_PTR(-ERANGE);
  3800. } else
  3801. idaw_dst = dst;
  3802. }
  3803. if ((idaw_dst + idaw_len) != dst) {
  3804. dasd_sfree_request(cqr, startdev);
  3805. return ERR_PTR(-ERANGE);
  3806. }
  3807. part_len = min(seg_len, len_to_track_end);
  3808. seg_len -= part_len;
  3809. dst += part_len;
  3810. idaw_len += part_len;
  3811. len_to_track_end -= part_len;
  3812. /* collected memory area ends on an IDA_BLOCK border,
  3813. * -> create an idaw
  3814. * idal_create_words will handle cases where idaw_len
  3815. * is larger then IDA_BLOCK_SIZE
  3816. */
  3817. if (!((unsigned long)(idaw_dst + idaw_len) & (IDA_BLOCK_SIZE - 1)))
  3818. end_idaw = 1;
  3819. /* We also need to end the idaw at track end */
  3820. if (!len_to_track_end) {
  3821. new_track = 1;
  3822. end_idaw = 1;
  3823. }
  3824. if (end_idaw) {
  3825. idaws = idal_create_words(idaws, idaw_dst,
  3826. idaw_len);
  3827. idaw_dst = NULL;
  3828. idaw_len = 0;
  3829. end_idaw = 0;
  3830. }
  3831. }
  3832. }
  3833. if (blk_noretry_request(req) ||
  3834. block->base->features & DASD_FEATURE_FAILFAST)
  3835. set_bit(DASD_CQR_FLAGS_FAILFAST, &cqr->flags);
  3836. cqr->startdev = startdev;
  3837. cqr->memdev = startdev;
  3838. cqr->block = block;
  3839. cqr->expires = startdev->default_expires * HZ; /* default 5 minutes */
  3840. cqr->lpm = dasd_path_get_ppm(startdev);
  3841. cqr->retries = startdev->default_retries;
  3842. cqr->buildclk = get_tod_clock();
  3843. cqr->status = DASD_CQR_FILLED;
  3844. /* Set flags to suppress output for expected errors */
  3845. if (dasd_eckd_is_ese(basedev))
  3846. set_bit(DASD_CQR_SUPPRESS_NRF, &cqr->flags);
  3847. return cqr;
  3848. }
  3849. static int prepare_itcw(struct itcw *itcw,
  3850. unsigned int trk, unsigned int totrk, int cmd,
  3851. struct dasd_device *basedev,
  3852. struct dasd_device *startdev,
  3853. unsigned int rec_on_trk, int count,
  3854. unsigned int blksize,
  3855. unsigned int total_data_size,
  3856. unsigned int tlf,
  3857. unsigned int blk_per_trk)
  3858. {
  3859. struct PFX_eckd_data pfxdata;
  3860. struct dasd_eckd_private *basepriv, *startpriv;
  3861. struct DE_eckd_data *dedata;
  3862. struct LRE_eckd_data *lredata;
  3863. struct dcw *dcw;
  3864. u32 begcyl, endcyl;
  3865. u16 heads, beghead, endhead;
  3866. u8 pfx_cmd;
  3867. int rc = 0;
  3868. int sector = 0;
  3869. int dn, d;
  3870. /* setup prefix data */
  3871. basepriv = basedev->private;
  3872. startpriv = startdev->private;
  3873. dedata = &pfxdata.define_extent;
  3874. lredata = &pfxdata.locate_record;
  3875. memset(&pfxdata, 0, sizeof(pfxdata));
  3876. pfxdata.format = 1; /* PFX with LRE */
  3877. pfxdata.base_address = basepriv->conf.ned->unit_addr;
  3878. pfxdata.base_lss = basepriv->conf.ned->ID;
  3879. pfxdata.validity.define_extent = 1;
  3880. /* private uid is kept up to date, conf_data may be outdated */
  3881. if (startpriv->uid.type == UA_BASE_PAV_ALIAS)
  3882. pfxdata.validity.verify_base = 1;
  3883. if (startpriv->uid.type == UA_HYPER_PAV_ALIAS) {
  3884. pfxdata.validity.verify_base = 1;
  3885. pfxdata.validity.hyper_pav = 1;
  3886. }
  3887. switch (cmd) {
  3888. case DASD_ECKD_CCW_READ_TRACK_DATA:
  3889. dedata->mask.perm = 0x1;
  3890. dedata->attributes.operation = basepriv->attrib.operation;
  3891. dedata->blk_size = blksize;
  3892. dedata->ga_extended |= 0x42;
  3893. lredata->operation.orientation = 0x0;
  3894. lredata->operation.operation = 0x0C;
  3895. lredata->auxiliary.check_bytes = 0x01;
  3896. pfx_cmd = DASD_ECKD_CCW_PFX_READ;
  3897. break;
  3898. case DASD_ECKD_CCW_WRITE_TRACK_DATA:
  3899. dedata->mask.perm = 0x02;
  3900. dedata->attributes.operation = basepriv->attrib.operation;
  3901. dedata->blk_size = blksize;
  3902. rc = set_timestamp(NULL, dedata, basedev);
  3903. dedata->ga_extended |= 0x42;
  3904. lredata->operation.orientation = 0x0;
  3905. lredata->operation.operation = 0x3F;
  3906. lredata->extended_operation = 0x23;
  3907. lredata->auxiliary.check_bytes = 0x2;
  3908. /*
  3909. * If XRC is supported the System Time Stamp is set. The
  3910. * validity of the time stamp must be reflected in the prefix
  3911. * data as well.
  3912. */
  3913. if (dedata->ga_extended & 0x08 && dedata->ga_extended & 0x02)
  3914. pfxdata.validity.time_stamp = 1; /* 'Time Stamp Valid' */
  3915. pfx_cmd = DASD_ECKD_CCW_PFX;
  3916. break;
  3917. case DASD_ECKD_CCW_READ_COUNT_MT:
  3918. dedata->mask.perm = 0x1;
  3919. dedata->attributes.operation = DASD_BYPASS_CACHE;
  3920. dedata->ga_extended |= 0x42;
  3921. dedata->blk_size = blksize;
  3922. lredata->operation.orientation = 0x2;
  3923. lredata->operation.operation = 0x16;
  3924. lredata->auxiliary.check_bytes = 0x01;
  3925. pfx_cmd = DASD_ECKD_CCW_PFX_READ;
  3926. break;
  3927. default:
  3928. DBF_DEV_EVENT(DBF_ERR, basedev,
  3929. "prepare itcw, unknown opcode 0x%x", cmd);
  3930. BUG();
  3931. break;
  3932. }
  3933. if (rc)
  3934. return rc;
  3935. dedata->attributes.mode = 0x3; /* ECKD */
  3936. heads = basepriv->rdc_data.trk_per_cyl;
  3937. begcyl = trk / heads;
  3938. beghead = trk % heads;
  3939. endcyl = totrk / heads;
  3940. endhead = totrk % heads;
  3941. /* check for sequential prestage - enhance cylinder range */
  3942. if (dedata->attributes.operation == DASD_SEQ_PRESTAGE ||
  3943. dedata->attributes.operation == DASD_SEQ_ACCESS) {
  3944. if (endcyl + basepriv->attrib.nr_cyl < basepriv->real_cyl)
  3945. endcyl += basepriv->attrib.nr_cyl;
  3946. else
  3947. endcyl = (basepriv->real_cyl - 1);
  3948. }
  3949. set_ch_t(&dedata->beg_ext, begcyl, beghead);
  3950. set_ch_t(&dedata->end_ext, endcyl, endhead);
  3951. dedata->ep_format = 0x20; /* records per track is valid */
  3952. dedata->ep_rec_per_track = blk_per_trk;
  3953. if (rec_on_trk) {
  3954. switch (basepriv->rdc_data.dev_type) {
  3955. case 0x3390:
  3956. dn = ceil_quot(blksize + 6, 232);
  3957. d = 9 + ceil_quot(blksize + 6 * (dn + 1), 34);
  3958. sector = (49 + (rec_on_trk - 1) * (10 + d)) / 8;
  3959. break;
  3960. case 0x3380:
  3961. d = 7 + ceil_quot(blksize + 12, 32);
  3962. sector = (39 + (rec_on_trk - 1) * (8 + d)) / 7;
  3963. break;
  3964. }
  3965. }
  3966. if (cmd == DASD_ECKD_CCW_READ_COUNT_MT) {
  3967. lredata->auxiliary.length_valid = 0;
  3968. lredata->auxiliary.length_scope = 0;
  3969. lredata->sector = 0xff;
  3970. } else {
  3971. lredata->auxiliary.length_valid = 1;
  3972. lredata->auxiliary.length_scope = 1;
  3973. lredata->sector = sector;
  3974. }
  3975. lredata->auxiliary.imbedded_ccw_valid = 1;
  3976. lredata->length = tlf;
  3977. lredata->imbedded_ccw = cmd;
  3978. lredata->count = count;
  3979. set_ch_t(&lredata->seek_addr, begcyl, beghead);
  3980. lredata->search_arg.cyl = lredata->seek_addr.cyl;
  3981. lredata->search_arg.head = lredata->seek_addr.head;
  3982. lredata->search_arg.record = rec_on_trk;
  3983. dcw = itcw_add_dcw(itcw, pfx_cmd, 0,
  3984. &pfxdata, sizeof(pfxdata), total_data_size);
  3985. return PTR_ERR_OR_ZERO(dcw);
  3986. }
  3987. static struct dasd_ccw_req *dasd_eckd_build_cp_tpm_track(
  3988. struct dasd_device *startdev,
  3989. struct dasd_block *block,
  3990. struct request *req,
  3991. sector_t first_rec,
  3992. sector_t last_rec,
  3993. sector_t first_trk,
  3994. sector_t last_trk,
  3995. unsigned int first_offs,
  3996. unsigned int last_offs,
  3997. unsigned int blk_per_trk,
  3998. unsigned int blksize)
  3999. {
  4000. struct dasd_ccw_req *cqr;
  4001. struct req_iterator iter;
  4002. struct bio_vec bv;
  4003. char *dst;
  4004. unsigned int trkcount, ctidaw;
  4005. unsigned char cmd;
  4006. struct dasd_device *basedev;
  4007. unsigned int tlf;
  4008. struct itcw *itcw;
  4009. struct tidaw *last_tidaw = NULL;
  4010. int itcw_op;
  4011. size_t itcw_size;
  4012. u8 tidaw_flags;
  4013. unsigned int seg_len, part_len, len_to_track_end;
  4014. unsigned char new_track;
  4015. sector_t recid, trkid;
  4016. unsigned int offs;
  4017. unsigned int count, count_to_trk_end;
  4018. int ret;
  4019. basedev = block->base;
  4020. if (rq_data_dir(req) == READ) {
  4021. cmd = DASD_ECKD_CCW_READ_TRACK_DATA;
  4022. itcw_op = ITCW_OP_READ;
  4023. } else if (rq_data_dir(req) == WRITE) {
  4024. cmd = DASD_ECKD_CCW_WRITE_TRACK_DATA;
  4025. itcw_op = ITCW_OP_WRITE;
  4026. } else
  4027. return ERR_PTR(-EINVAL);
  4028. /* trackbased I/O needs address all memory via TIDAWs,
  4029. * not just for 64 bit addresses. This allows us to map
  4030. * each segment directly to one tidaw.
  4031. * In the case of write requests, additional tidaws may
  4032. * be needed when a segment crosses a track boundary.
  4033. */
  4034. trkcount = last_trk - first_trk + 1;
  4035. ctidaw = 0;
  4036. rq_for_each_segment(bv, req, iter) {
  4037. ++ctidaw;
  4038. }
  4039. if (rq_data_dir(req) == WRITE)
  4040. ctidaw += (last_trk - first_trk);
  4041. /* Allocate the ccw request. */
  4042. itcw_size = itcw_calc_size(0, ctidaw, 0);
  4043. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 0, itcw_size, startdev,
  4044. blk_mq_rq_to_pdu(req));
  4045. if (IS_ERR(cqr))
  4046. return cqr;
  4047. /* transfer length factor: how many bytes to read from the last track */
  4048. if (first_trk == last_trk)
  4049. tlf = last_offs - first_offs + 1;
  4050. else
  4051. tlf = last_offs + 1;
  4052. tlf *= blksize;
  4053. itcw = itcw_init(cqr->data, itcw_size, itcw_op, 0, ctidaw, 0);
  4054. if (IS_ERR(itcw)) {
  4055. ret = -EINVAL;
  4056. goto out_error;
  4057. }
  4058. cqr->cpaddr = itcw_get_tcw(itcw);
  4059. if (prepare_itcw(itcw, first_trk, last_trk,
  4060. cmd, basedev, startdev,
  4061. first_offs + 1,
  4062. trkcount, blksize,
  4063. (last_rec - first_rec + 1) * blksize,
  4064. tlf, blk_per_trk) == -EAGAIN) {
  4065. /* Clock not in sync and XRC is enabled.
  4066. * Try again later.
  4067. */
  4068. ret = -EAGAIN;
  4069. goto out_error;
  4070. }
  4071. len_to_track_end = 0;
  4072. /*
  4073. * A tidaw can address 4k of memory, but must not cross page boundaries
  4074. * We can let the block layer handle this by setting seg_boundary_mask
  4075. * to page boundaries and max_segment_size to page size when setting up
  4076. * the request queue.
  4077. * For write requests, a TIDAW must not cross track boundaries, because
  4078. * we have to set the CBC flag on the last tidaw for each track.
  4079. */
  4080. if (rq_data_dir(req) == WRITE) {
  4081. new_track = 1;
  4082. recid = first_rec;
  4083. rq_for_each_segment(bv, req, iter) {
  4084. dst = bvec_virt(&bv);
  4085. seg_len = bv.bv_len;
  4086. while (seg_len) {
  4087. if (new_track) {
  4088. trkid = recid;
  4089. offs = sector_div(trkid, blk_per_trk);
  4090. count_to_trk_end = blk_per_trk - offs;
  4091. count = min((last_rec - recid + 1),
  4092. (sector_t)count_to_trk_end);
  4093. len_to_track_end = count * blksize;
  4094. recid += count;
  4095. new_track = 0;
  4096. }
  4097. part_len = min(seg_len, len_to_track_end);
  4098. seg_len -= part_len;
  4099. len_to_track_end -= part_len;
  4100. /* We need to end the tidaw at track end */
  4101. if (!len_to_track_end) {
  4102. new_track = 1;
  4103. tidaw_flags = TIDAW_FLAGS_INSERT_CBC;
  4104. } else
  4105. tidaw_flags = 0;
  4106. last_tidaw = itcw_add_tidaw(itcw, tidaw_flags,
  4107. dst, part_len);
  4108. if (IS_ERR(last_tidaw)) {
  4109. ret = -EINVAL;
  4110. goto out_error;
  4111. }
  4112. dst += part_len;
  4113. }
  4114. }
  4115. } else {
  4116. rq_for_each_segment(bv, req, iter) {
  4117. dst = bvec_virt(&bv);
  4118. last_tidaw = itcw_add_tidaw(itcw, 0x00,
  4119. dst, bv.bv_len);
  4120. if (IS_ERR(last_tidaw)) {
  4121. ret = -EINVAL;
  4122. goto out_error;
  4123. }
  4124. }
  4125. }
  4126. last_tidaw->flags |= TIDAW_FLAGS_LAST;
  4127. last_tidaw->flags &= ~TIDAW_FLAGS_INSERT_CBC;
  4128. itcw_finalize(itcw);
  4129. if (blk_noretry_request(req) ||
  4130. block->base->features & DASD_FEATURE_FAILFAST)
  4131. set_bit(DASD_CQR_FLAGS_FAILFAST, &cqr->flags);
  4132. cqr->cpmode = 1;
  4133. cqr->startdev = startdev;
  4134. cqr->memdev = startdev;
  4135. cqr->block = block;
  4136. cqr->expires = startdev->default_expires * HZ; /* default 5 minutes */
  4137. cqr->lpm = dasd_path_get_ppm(startdev);
  4138. cqr->retries = startdev->default_retries;
  4139. cqr->buildclk = get_tod_clock();
  4140. cqr->status = DASD_CQR_FILLED;
  4141. /* Set flags to suppress output for expected errors */
  4142. if (dasd_eckd_is_ese(basedev)) {
  4143. set_bit(DASD_CQR_SUPPRESS_NRF, &cqr->flags);
  4144. set_bit(DASD_CQR_SUPPRESS_IT, &cqr->flags);
  4145. }
  4146. return cqr;
  4147. out_error:
  4148. dasd_sfree_request(cqr, startdev);
  4149. return ERR_PTR(ret);
  4150. }
  4151. static struct dasd_ccw_req *dasd_eckd_build_cp(struct dasd_device *startdev,
  4152. struct dasd_block *block,
  4153. struct request *req)
  4154. {
  4155. int cmdrtd, cmdwtd;
  4156. int use_prefix;
  4157. int fcx_multitrack;
  4158. struct dasd_eckd_private *private;
  4159. struct dasd_device *basedev;
  4160. sector_t first_rec, last_rec;
  4161. sector_t first_trk, last_trk;
  4162. unsigned int first_offs, last_offs;
  4163. unsigned int blk_per_trk, blksize;
  4164. int cdlspecial;
  4165. unsigned int data_size;
  4166. struct dasd_ccw_req *cqr;
  4167. basedev = block->base;
  4168. private = basedev->private;
  4169. /* Calculate number of blocks/records per track. */
  4170. blksize = block->bp_block;
  4171. blk_per_trk = recs_per_track(&private->rdc_data, 0, blksize);
  4172. if (blk_per_trk == 0)
  4173. return ERR_PTR(-EINVAL);
  4174. /* Calculate record id of first and last block. */
  4175. first_rec = first_trk = blk_rq_pos(req) >> block->s2b_shift;
  4176. first_offs = sector_div(first_trk, blk_per_trk);
  4177. last_rec = last_trk =
  4178. (blk_rq_pos(req) + blk_rq_sectors(req) - 1) >> block->s2b_shift;
  4179. last_offs = sector_div(last_trk, blk_per_trk);
  4180. cdlspecial = (private->uses_cdl && first_rec < 2*blk_per_trk);
  4181. fcx_multitrack = private->features.feature[40] & 0x20;
  4182. data_size = blk_rq_bytes(req);
  4183. if (data_size % blksize)
  4184. return ERR_PTR(-EINVAL);
  4185. /* tpm write request add CBC data on each track boundary */
  4186. if (rq_data_dir(req) == WRITE)
  4187. data_size += (last_trk - first_trk) * 4;
  4188. /* is read track data and write track data in command mode supported? */
  4189. cmdrtd = private->features.feature[9] & 0x20;
  4190. cmdwtd = private->features.feature[12] & 0x40;
  4191. use_prefix = private->features.feature[8] & 0x01;
  4192. cqr = NULL;
  4193. if (cdlspecial || dasd_page_cache) {
  4194. /* do nothing, just fall through to the cmd mode single case */
  4195. } else if ((data_size <= private->fcx_max_data)
  4196. && (fcx_multitrack || (first_trk == last_trk))) {
  4197. cqr = dasd_eckd_build_cp_tpm_track(startdev, block, req,
  4198. first_rec, last_rec,
  4199. first_trk, last_trk,
  4200. first_offs, last_offs,
  4201. blk_per_trk, blksize);
  4202. if (IS_ERR(cqr) && (PTR_ERR(cqr) != -EAGAIN) &&
  4203. (PTR_ERR(cqr) != -ENOMEM))
  4204. cqr = NULL;
  4205. } else if (use_prefix &&
  4206. (((rq_data_dir(req) == READ) && cmdrtd) ||
  4207. ((rq_data_dir(req) == WRITE) && cmdwtd))) {
  4208. cqr = dasd_eckd_build_cp_cmd_track(startdev, block, req,
  4209. first_rec, last_rec,
  4210. first_trk, last_trk,
  4211. first_offs, last_offs,
  4212. blk_per_trk, blksize);
  4213. if (IS_ERR(cqr) && (PTR_ERR(cqr) != -EAGAIN) &&
  4214. (PTR_ERR(cqr) != -ENOMEM))
  4215. cqr = NULL;
  4216. }
  4217. if (!cqr)
  4218. cqr = dasd_eckd_build_cp_cmd_single(startdev, block, req,
  4219. first_rec, last_rec,
  4220. first_trk, last_trk,
  4221. first_offs, last_offs,
  4222. blk_per_trk, blksize);
  4223. return cqr;
  4224. }
  4225. static struct dasd_ccw_req *dasd_eckd_build_cp_raw(struct dasd_device *startdev,
  4226. struct dasd_block *block,
  4227. struct request *req)
  4228. {
  4229. sector_t start_padding_sectors, end_sector_offset, end_padding_sectors;
  4230. unsigned int seg_len, len_to_track_end;
  4231. unsigned int cidaw, cplength, datasize;
  4232. sector_t first_trk, last_trk, sectors;
  4233. struct dasd_eckd_private *base_priv;
  4234. struct dasd_device *basedev;
  4235. struct req_iterator iter;
  4236. struct dasd_ccw_req *cqr;
  4237. unsigned int trkcount;
  4238. unsigned int size;
  4239. unsigned char cmd;
  4240. struct bio_vec bv;
  4241. struct ccw1 *ccw;
  4242. dma64_t *idaws;
  4243. int use_prefix;
  4244. void *data;
  4245. char *dst;
  4246. /*
  4247. * raw track access needs to be mutiple of 64k and on 64k boundary
  4248. * For read requests we can fix an incorrect alignment by padding
  4249. * the request with dummy pages.
  4250. */
  4251. start_padding_sectors = blk_rq_pos(req) % DASD_RAW_SECTORS_PER_TRACK;
  4252. end_sector_offset = (blk_rq_pos(req) + blk_rq_sectors(req)) %
  4253. DASD_RAW_SECTORS_PER_TRACK;
  4254. end_padding_sectors = (DASD_RAW_SECTORS_PER_TRACK - end_sector_offset) %
  4255. DASD_RAW_SECTORS_PER_TRACK;
  4256. basedev = block->base;
  4257. if ((start_padding_sectors || end_padding_sectors) &&
  4258. (rq_data_dir(req) == WRITE)) {
  4259. DBF_DEV_EVENT(DBF_ERR, basedev,
  4260. "raw write not track aligned (%llu,%llu) req %p",
  4261. start_padding_sectors, end_padding_sectors, req);
  4262. return ERR_PTR(-EINVAL);
  4263. }
  4264. first_trk = blk_rq_pos(req) / DASD_RAW_SECTORS_PER_TRACK;
  4265. last_trk = (blk_rq_pos(req) + blk_rq_sectors(req) - 1) /
  4266. DASD_RAW_SECTORS_PER_TRACK;
  4267. trkcount = last_trk - first_trk + 1;
  4268. if (rq_data_dir(req) == READ)
  4269. cmd = DASD_ECKD_CCW_READ_TRACK;
  4270. else if (rq_data_dir(req) == WRITE)
  4271. cmd = DASD_ECKD_CCW_WRITE_FULL_TRACK;
  4272. else
  4273. return ERR_PTR(-EINVAL);
  4274. /*
  4275. * Raw track based I/O needs IDAWs for each page,
  4276. * and not just for 64 bit addresses.
  4277. */
  4278. cidaw = trkcount * DASD_RAW_BLOCK_PER_TRACK;
  4279. /*
  4280. * struct PFX_eckd_data and struct LRE_eckd_data can have up to 2 bytes
  4281. * of extended parameter. This is needed for write full track.
  4282. */
  4283. base_priv = basedev->private;
  4284. use_prefix = base_priv->features.feature[8] & 0x01;
  4285. if (use_prefix) {
  4286. cplength = 1 + trkcount;
  4287. size = sizeof(struct PFX_eckd_data) + 2;
  4288. } else {
  4289. cplength = 2 + trkcount;
  4290. size = sizeof(struct DE_eckd_data) +
  4291. sizeof(struct LRE_eckd_data) + 2;
  4292. }
  4293. size = ALIGN(size, 8);
  4294. datasize = size + cidaw * sizeof(unsigned long);
  4295. /* Allocate the ccw request. */
  4296. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, cplength,
  4297. datasize, startdev, blk_mq_rq_to_pdu(req));
  4298. if (IS_ERR(cqr))
  4299. return cqr;
  4300. ccw = cqr->cpaddr;
  4301. data = cqr->data;
  4302. if (use_prefix) {
  4303. prefix_LRE(ccw++, data, first_trk, last_trk, cmd, basedev,
  4304. startdev, 1, 0, trkcount, 0, 0);
  4305. } else {
  4306. define_extent(ccw++, data, first_trk, last_trk, cmd, basedev, 0);
  4307. ccw[-1].flags |= CCW_FLAG_CC;
  4308. data += sizeof(struct DE_eckd_data);
  4309. locate_record_ext(ccw++, data, first_trk, 0,
  4310. trkcount, cmd, basedev, 0, 0);
  4311. }
  4312. idaws = (dma64_t *)(cqr->data + size);
  4313. len_to_track_end = 0;
  4314. if (start_padding_sectors) {
  4315. ccw[-1].flags |= CCW_FLAG_CC;
  4316. ccw->cmd_code = cmd;
  4317. /* maximum 3390 track size */
  4318. ccw->count = 57326;
  4319. /* 64k map to one track */
  4320. len_to_track_end = 65536 - start_padding_sectors * 512;
  4321. ccw->cda = virt_to_dma32(idaws);
  4322. ccw->flags |= CCW_FLAG_IDA;
  4323. ccw->flags |= CCW_FLAG_SLI;
  4324. ccw++;
  4325. for (sectors = 0; sectors < start_padding_sectors; sectors += 8)
  4326. idaws = idal_create_words(idaws, rawpadpage, PAGE_SIZE);
  4327. }
  4328. rq_for_each_segment(bv, req, iter) {
  4329. dst = bvec_virt(&bv);
  4330. seg_len = bv.bv_len;
  4331. if (cmd == DASD_ECKD_CCW_READ_TRACK)
  4332. memset(dst, 0, seg_len);
  4333. if (!len_to_track_end) {
  4334. ccw[-1].flags |= CCW_FLAG_CC;
  4335. ccw->cmd_code = cmd;
  4336. /* maximum 3390 track size */
  4337. ccw->count = 57326;
  4338. /* 64k map to one track */
  4339. len_to_track_end = 65536;
  4340. ccw->cda = virt_to_dma32(idaws);
  4341. ccw->flags |= CCW_FLAG_IDA;
  4342. ccw->flags |= CCW_FLAG_SLI;
  4343. ccw++;
  4344. }
  4345. len_to_track_end -= seg_len;
  4346. idaws = idal_create_words(idaws, dst, seg_len);
  4347. }
  4348. for (sectors = 0; sectors < end_padding_sectors; sectors += 8)
  4349. idaws = idal_create_words(idaws, rawpadpage, PAGE_SIZE);
  4350. if (blk_noretry_request(req) ||
  4351. block->base->features & DASD_FEATURE_FAILFAST)
  4352. set_bit(DASD_CQR_FLAGS_FAILFAST, &cqr->flags);
  4353. cqr->startdev = startdev;
  4354. cqr->memdev = startdev;
  4355. cqr->block = block;
  4356. cqr->expires = startdev->default_expires * HZ;
  4357. cqr->lpm = dasd_path_get_ppm(startdev);
  4358. cqr->retries = startdev->default_retries;
  4359. cqr->buildclk = get_tod_clock();
  4360. cqr->status = DASD_CQR_FILLED;
  4361. return cqr;
  4362. }
  4363. static int
  4364. dasd_eckd_free_cp(struct dasd_ccw_req *cqr, struct request *req)
  4365. {
  4366. struct dasd_eckd_private *private;
  4367. struct ccw1 *ccw;
  4368. struct req_iterator iter;
  4369. struct bio_vec bv;
  4370. char *dst, *cda;
  4371. unsigned int blksize, blk_per_trk, off;
  4372. sector_t recid;
  4373. int status;
  4374. if (!dasd_page_cache)
  4375. goto out;
  4376. private = cqr->block->base->private;
  4377. blksize = cqr->block->bp_block;
  4378. blk_per_trk = recs_per_track(&private->rdc_data, 0, blksize);
  4379. recid = blk_rq_pos(req) >> cqr->block->s2b_shift;
  4380. ccw = cqr->cpaddr;
  4381. /* Skip over define extent & locate record. */
  4382. ccw++;
  4383. if (private->uses_cdl == 0 || recid > 2*blk_per_trk)
  4384. ccw++;
  4385. rq_for_each_segment(bv, req, iter) {
  4386. dst = bvec_virt(&bv);
  4387. for (off = 0; off < bv.bv_len; off += blksize) {
  4388. /* Skip locate record. */
  4389. if (private->uses_cdl && recid <= 2*blk_per_trk)
  4390. ccw++;
  4391. if (dst) {
  4392. if (ccw->flags & CCW_FLAG_IDA)
  4393. cda = dma64_to_virt(*((dma64_t *)dma32_to_virt(ccw->cda)));
  4394. else
  4395. cda = dma32_to_virt(ccw->cda);
  4396. if (dst != cda) {
  4397. if (rq_data_dir(req) == READ)
  4398. memcpy(dst, cda, bv.bv_len);
  4399. kmem_cache_free(dasd_page_cache,
  4400. (void *)((addr_t)cda & PAGE_MASK));
  4401. }
  4402. dst = NULL;
  4403. }
  4404. ccw++;
  4405. recid++;
  4406. }
  4407. }
  4408. out:
  4409. status = cqr->status == DASD_CQR_DONE;
  4410. dasd_sfree_request(cqr, cqr->memdev);
  4411. return status;
  4412. }
  4413. /*
  4414. * Modify ccw/tcw in cqr so it can be started on a base device.
  4415. *
  4416. * Note that this is not enough to restart the cqr!
  4417. * Either reset cqr->startdev as well (summary unit check handling)
  4418. * or restart via separate cqr (as in ERP handling).
  4419. */
  4420. void dasd_eckd_reset_ccw_to_base_io(struct dasd_ccw_req *cqr)
  4421. {
  4422. struct ccw1 *ccw;
  4423. struct PFX_eckd_data *pfxdata;
  4424. struct tcw *tcw;
  4425. struct tccb *tccb;
  4426. struct dcw *dcw;
  4427. if (cqr->cpmode == 1) {
  4428. tcw = cqr->cpaddr;
  4429. tccb = tcw_get_tccb(tcw);
  4430. dcw = (struct dcw *)&tccb->tca[0];
  4431. pfxdata = (struct PFX_eckd_data *)&dcw->cd[0];
  4432. pfxdata->validity.verify_base = 0;
  4433. pfxdata->validity.hyper_pav = 0;
  4434. } else {
  4435. ccw = cqr->cpaddr;
  4436. pfxdata = cqr->data;
  4437. if (ccw->cmd_code == DASD_ECKD_CCW_PFX) {
  4438. pfxdata->validity.verify_base = 0;
  4439. pfxdata->validity.hyper_pav = 0;
  4440. }
  4441. }
  4442. }
  4443. #define DASD_ECKD_CHANQ_MAX_SIZE 4
  4444. static struct dasd_ccw_req *dasd_eckd_build_alias_cp(struct dasd_device *base,
  4445. struct dasd_block *block,
  4446. struct request *req)
  4447. {
  4448. struct dasd_eckd_private *private;
  4449. struct dasd_device *startdev;
  4450. unsigned long flags;
  4451. struct dasd_ccw_req *cqr;
  4452. startdev = dasd_alias_get_start_dev(base);
  4453. if (!startdev)
  4454. startdev = base;
  4455. private = startdev->private;
  4456. if (private->count >= DASD_ECKD_CHANQ_MAX_SIZE)
  4457. return ERR_PTR(-EBUSY);
  4458. spin_lock_irqsave(get_ccwdev_lock(startdev->cdev), flags);
  4459. private->count++;
  4460. if ((base->features & DASD_FEATURE_USERAW))
  4461. cqr = dasd_eckd_build_cp_raw(startdev, block, req);
  4462. else
  4463. cqr = dasd_eckd_build_cp(startdev, block, req);
  4464. if (IS_ERR(cqr))
  4465. private->count--;
  4466. spin_unlock_irqrestore(get_ccwdev_lock(startdev->cdev), flags);
  4467. return cqr;
  4468. }
  4469. static int dasd_eckd_free_alias_cp(struct dasd_ccw_req *cqr,
  4470. struct request *req)
  4471. {
  4472. struct dasd_eckd_private *private;
  4473. unsigned long flags;
  4474. spin_lock_irqsave(get_ccwdev_lock(cqr->memdev->cdev), flags);
  4475. private = cqr->memdev->private;
  4476. private->count--;
  4477. spin_unlock_irqrestore(get_ccwdev_lock(cqr->memdev->cdev), flags);
  4478. return dasd_eckd_free_cp(cqr, req);
  4479. }
  4480. static int
  4481. dasd_eckd_fill_info(struct dasd_device * device,
  4482. struct dasd_information2_t * info)
  4483. {
  4484. struct dasd_eckd_private *private = device->private;
  4485. info->label_block = 2;
  4486. info->FBA_layout = private->uses_cdl ? 0 : 1;
  4487. info->format = private->uses_cdl ? DASD_FORMAT_CDL : DASD_FORMAT_LDL;
  4488. info->characteristics_size = sizeof(private->rdc_data);
  4489. memcpy(info->characteristics, &private->rdc_data,
  4490. sizeof(private->rdc_data));
  4491. info->confdata_size = min_t(unsigned long, private->conf.len,
  4492. sizeof(info->configuration_data));
  4493. memcpy(info->configuration_data, private->conf.data,
  4494. info->confdata_size);
  4495. return 0;
  4496. }
  4497. /*
  4498. * SECTION: ioctl functions for eckd devices.
  4499. */
  4500. /*
  4501. * Release device ioctl.
  4502. * Buils a channel programm to releases a prior reserved
  4503. * (see dasd_eckd_reserve) device.
  4504. */
  4505. static int
  4506. dasd_eckd_release(struct dasd_device *device)
  4507. {
  4508. struct dasd_ccw_req *cqr;
  4509. int rc;
  4510. struct ccw1 *ccw;
  4511. int useglobal;
  4512. if (!capable(CAP_SYS_ADMIN))
  4513. return -EACCES;
  4514. useglobal = 0;
  4515. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1, 32, device, NULL);
  4516. if (IS_ERR(cqr)) {
  4517. mutex_lock(&dasd_reserve_mutex);
  4518. useglobal = 1;
  4519. cqr = &dasd_reserve_req->cqr;
  4520. memset(cqr, 0, sizeof(*cqr));
  4521. memset(&dasd_reserve_req->ccw, 0,
  4522. sizeof(dasd_reserve_req->ccw));
  4523. cqr->cpaddr = &dasd_reserve_req->ccw;
  4524. cqr->data = &dasd_reserve_req->data;
  4525. cqr->magic = DASD_ECKD_MAGIC;
  4526. }
  4527. ccw = cqr->cpaddr;
  4528. ccw->cmd_code = DASD_ECKD_CCW_RELEASE;
  4529. ccw->flags |= CCW_FLAG_SLI;
  4530. ccw->count = 32;
  4531. ccw->cda = virt_to_dma32(cqr->data);
  4532. cqr->startdev = device;
  4533. cqr->memdev = device;
  4534. clear_bit(DASD_CQR_FLAGS_USE_ERP, &cqr->flags);
  4535. set_bit(DASD_CQR_FLAGS_FAILFAST, &cqr->flags);
  4536. cqr->retries = 2; /* set retry counter to enable basic ERP */
  4537. cqr->expires = 2 * HZ;
  4538. cqr->buildclk = get_tod_clock();
  4539. cqr->status = DASD_CQR_FILLED;
  4540. rc = dasd_sleep_on_immediatly(cqr);
  4541. if (!rc)
  4542. clear_bit(DASD_FLAG_IS_RESERVED, &device->flags);
  4543. if (useglobal)
  4544. mutex_unlock(&dasd_reserve_mutex);
  4545. else
  4546. dasd_sfree_request(cqr, cqr->memdev);
  4547. return rc;
  4548. }
  4549. /*
  4550. * Reserve device ioctl.
  4551. * Options are set to 'synchronous wait for interrupt' and
  4552. * 'timeout the request'. This leads to a terminate IO if
  4553. * the interrupt is outstanding for a certain time.
  4554. */
  4555. static int
  4556. dasd_eckd_reserve(struct dasd_device *device)
  4557. {
  4558. struct dasd_ccw_req *cqr;
  4559. int rc;
  4560. struct ccw1 *ccw;
  4561. int useglobal;
  4562. if (!capable(CAP_SYS_ADMIN))
  4563. return -EACCES;
  4564. useglobal = 0;
  4565. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1, 32, device, NULL);
  4566. if (IS_ERR(cqr)) {
  4567. mutex_lock(&dasd_reserve_mutex);
  4568. useglobal = 1;
  4569. cqr = &dasd_reserve_req->cqr;
  4570. memset(cqr, 0, sizeof(*cqr));
  4571. memset(&dasd_reserve_req->ccw, 0,
  4572. sizeof(dasd_reserve_req->ccw));
  4573. cqr->cpaddr = &dasd_reserve_req->ccw;
  4574. cqr->data = &dasd_reserve_req->data;
  4575. cqr->magic = DASD_ECKD_MAGIC;
  4576. }
  4577. ccw = cqr->cpaddr;
  4578. ccw->cmd_code = DASD_ECKD_CCW_RESERVE;
  4579. ccw->flags |= CCW_FLAG_SLI;
  4580. ccw->count = 32;
  4581. ccw->cda = virt_to_dma32(cqr->data);
  4582. cqr->startdev = device;
  4583. cqr->memdev = device;
  4584. clear_bit(DASD_CQR_FLAGS_USE_ERP, &cqr->flags);
  4585. set_bit(DASD_CQR_FLAGS_FAILFAST, &cqr->flags);
  4586. cqr->retries = 2; /* set retry counter to enable basic ERP */
  4587. cqr->expires = 2 * HZ;
  4588. cqr->buildclk = get_tod_clock();
  4589. cqr->status = DASD_CQR_FILLED;
  4590. rc = dasd_sleep_on_immediatly(cqr);
  4591. if (!rc)
  4592. set_bit(DASD_FLAG_IS_RESERVED, &device->flags);
  4593. if (useglobal)
  4594. mutex_unlock(&dasd_reserve_mutex);
  4595. else
  4596. dasd_sfree_request(cqr, cqr->memdev);
  4597. return rc;
  4598. }
  4599. /*
  4600. * Steal lock ioctl - unconditional reserve device.
  4601. * Buils a channel programm to break a device's reservation.
  4602. * (unconditional reserve)
  4603. */
  4604. static int
  4605. dasd_eckd_steal_lock(struct dasd_device *device)
  4606. {
  4607. struct dasd_ccw_req *cqr;
  4608. int rc;
  4609. struct ccw1 *ccw;
  4610. int useglobal;
  4611. if (!capable(CAP_SYS_ADMIN))
  4612. return -EACCES;
  4613. useglobal = 0;
  4614. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1, 32, device, NULL);
  4615. if (IS_ERR(cqr)) {
  4616. mutex_lock(&dasd_reserve_mutex);
  4617. useglobal = 1;
  4618. cqr = &dasd_reserve_req->cqr;
  4619. memset(cqr, 0, sizeof(*cqr));
  4620. memset(&dasd_reserve_req->ccw, 0,
  4621. sizeof(dasd_reserve_req->ccw));
  4622. cqr->cpaddr = &dasd_reserve_req->ccw;
  4623. cqr->data = &dasd_reserve_req->data;
  4624. cqr->magic = DASD_ECKD_MAGIC;
  4625. }
  4626. ccw = cqr->cpaddr;
  4627. ccw->cmd_code = DASD_ECKD_CCW_SLCK;
  4628. ccw->flags |= CCW_FLAG_SLI;
  4629. ccw->count = 32;
  4630. ccw->cda = virt_to_dma32(cqr->data);
  4631. cqr->startdev = device;
  4632. cqr->memdev = device;
  4633. clear_bit(DASD_CQR_FLAGS_USE_ERP, &cqr->flags);
  4634. set_bit(DASD_CQR_FLAGS_FAILFAST, &cqr->flags);
  4635. cqr->retries = 2; /* set retry counter to enable basic ERP */
  4636. cqr->expires = 2 * HZ;
  4637. cqr->buildclk = get_tod_clock();
  4638. cqr->status = DASD_CQR_FILLED;
  4639. rc = dasd_sleep_on_immediatly(cqr);
  4640. if (!rc)
  4641. set_bit(DASD_FLAG_IS_RESERVED, &device->flags);
  4642. if (useglobal)
  4643. mutex_unlock(&dasd_reserve_mutex);
  4644. else
  4645. dasd_sfree_request(cqr, cqr->memdev);
  4646. return rc;
  4647. }
  4648. /*
  4649. * SNID - Sense Path Group ID
  4650. * This ioctl may be used in situations where I/O is stalled due to
  4651. * a reserve, so if the normal dasd_smalloc_request fails, we use the
  4652. * preallocated dasd_reserve_req.
  4653. */
  4654. static int dasd_eckd_snid(struct dasd_device *device,
  4655. void __user *argp)
  4656. {
  4657. struct dasd_ccw_req *cqr;
  4658. int rc;
  4659. struct ccw1 *ccw;
  4660. int useglobal;
  4661. struct dasd_snid_ioctl_data usrparm;
  4662. if (!capable(CAP_SYS_ADMIN))
  4663. return -EACCES;
  4664. if (copy_from_user(&usrparm, argp, sizeof(usrparm)))
  4665. return -EFAULT;
  4666. useglobal = 0;
  4667. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1,
  4668. sizeof(struct dasd_snid_data), device,
  4669. NULL);
  4670. if (IS_ERR(cqr)) {
  4671. mutex_lock(&dasd_reserve_mutex);
  4672. useglobal = 1;
  4673. cqr = &dasd_reserve_req->cqr;
  4674. memset(cqr, 0, sizeof(*cqr));
  4675. memset(&dasd_reserve_req->ccw, 0,
  4676. sizeof(dasd_reserve_req->ccw));
  4677. cqr->cpaddr = &dasd_reserve_req->ccw;
  4678. cqr->data = &dasd_reserve_req->data;
  4679. cqr->magic = DASD_ECKD_MAGIC;
  4680. }
  4681. ccw = cqr->cpaddr;
  4682. ccw->cmd_code = DASD_ECKD_CCW_SNID;
  4683. ccw->flags |= CCW_FLAG_SLI;
  4684. ccw->count = 12;
  4685. ccw->cda = virt_to_dma32(cqr->data);
  4686. cqr->startdev = device;
  4687. cqr->memdev = device;
  4688. clear_bit(DASD_CQR_FLAGS_USE_ERP, &cqr->flags);
  4689. set_bit(DASD_CQR_FLAGS_FAILFAST, &cqr->flags);
  4690. set_bit(DASD_CQR_ALLOW_SLOCK, &cqr->flags);
  4691. cqr->retries = 5;
  4692. cqr->expires = 10 * HZ;
  4693. cqr->buildclk = get_tod_clock();
  4694. cqr->status = DASD_CQR_FILLED;
  4695. cqr->lpm = usrparm.path_mask;
  4696. rc = dasd_sleep_on_immediatly(cqr);
  4697. /* verify that I/O processing didn't modify the path mask */
  4698. if (!rc && usrparm.path_mask && (cqr->lpm != usrparm.path_mask))
  4699. rc = -EIO;
  4700. if (!rc) {
  4701. usrparm.data = *((struct dasd_snid_data *)cqr->data);
  4702. if (copy_to_user(argp, &usrparm, sizeof(usrparm)))
  4703. rc = -EFAULT;
  4704. }
  4705. if (useglobal)
  4706. mutex_unlock(&dasd_reserve_mutex);
  4707. else
  4708. dasd_sfree_request(cqr, cqr->memdev);
  4709. return rc;
  4710. }
  4711. /*
  4712. * Read performance statistics
  4713. */
  4714. static int
  4715. dasd_eckd_performance(struct dasd_device *device, void __user *argp)
  4716. {
  4717. struct dasd_psf_prssd_data *prssdp;
  4718. struct dasd_rssd_perf_stats_t *stats;
  4719. struct dasd_ccw_req *cqr;
  4720. struct ccw1 *ccw;
  4721. int rc;
  4722. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1 /* PSF */ + 1 /* RSSD */,
  4723. (sizeof(struct dasd_psf_prssd_data) +
  4724. sizeof(struct dasd_rssd_perf_stats_t)),
  4725. device, NULL);
  4726. if (IS_ERR(cqr)) {
  4727. DBF_DEV_EVENT(DBF_WARNING, device, "%s",
  4728. "Could not allocate initialization request");
  4729. return PTR_ERR(cqr);
  4730. }
  4731. cqr->startdev = device;
  4732. cqr->memdev = device;
  4733. cqr->retries = 0;
  4734. clear_bit(DASD_CQR_FLAGS_USE_ERP, &cqr->flags);
  4735. cqr->expires = 10 * HZ;
  4736. /* Prepare for Read Subsystem Data */
  4737. prssdp = (struct dasd_psf_prssd_data *) cqr->data;
  4738. memset(prssdp, 0, sizeof(struct dasd_psf_prssd_data));
  4739. prssdp->order = PSF_ORDER_PRSSD;
  4740. prssdp->suborder = 0x01; /* Performance Statistics */
  4741. prssdp->varies[1] = 0x01; /* Perf Statistics for the Subsystem */
  4742. ccw = cqr->cpaddr;
  4743. ccw->cmd_code = DASD_ECKD_CCW_PSF;
  4744. ccw->count = sizeof(struct dasd_psf_prssd_data);
  4745. ccw->flags |= CCW_FLAG_CC;
  4746. ccw->cda = virt_to_dma32(prssdp);
  4747. /* Read Subsystem Data - Performance Statistics */
  4748. stats = (struct dasd_rssd_perf_stats_t *) (prssdp + 1);
  4749. memset(stats, 0, sizeof(struct dasd_rssd_perf_stats_t));
  4750. ccw++;
  4751. ccw->cmd_code = DASD_ECKD_CCW_RSSD;
  4752. ccw->count = sizeof(struct dasd_rssd_perf_stats_t);
  4753. ccw->cda = virt_to_dma32(stats);
  4754. cqr->buildclk = get_tod_clock();
  4755. cqr->status = DASD_CQR_FILLED;
  4756. rc = dasd_sleep_on(cqr);
  4757. if (rc == 0) {
  4758. prssdp = (struct dasd_psf_prssd_data *) cqr->data;
  4759. stats = (struct dasd_rssd_perf_stats_t *) (prssdp + 1);
  4760. if (copy_to_user(argp, stats,
  4761. sizeof(struct dasd_rssd_perf_stats_t)))
  4762. rc = -EFAULT;
  4763. }
  4764. dasd_sfree_request(cqr, cqr->memdev);
  4765. return rc;
  4766. }
  4767. /*
  4768. * Get attributes (cache operations)
  4769. * Returnes the cache attributes used in Define Extend (DE).
  4770. */
  4771. static int
  4772. dasd_eckd_get_attrib(struct dasd_device *device, void __user *argp)
  4773. {
  4774. struct dasd_eckd_private *private = device->private;
  4775. struct attrib_data_t attrib = private->attrib;
  4776. int rc;
  4777. if (!capable(CAP_SYS_ADMIN))
  4778. return -EACCES;
  4779. if (!argp)
  4780. return -EINVAL;
  4781. rc = 0;
  4782. if (copy_to_user(argp, (long *) &attrib,
  4783. sizeof(struct attrib_data_t)))
  4784. rc = -EFAULT;
  4785. return rc;
  4786. }
  4787. /*
  4788. * Set attributes (cache operations)
  4789. * Stores the attributes for cache operation to be used in Define Extend (DE).
  4790. */
  4791. static int
  4792. dasd_eckd_set_attrib(struct dasd_device *device, void __user *argp)
  4793. {
  4794. struct dasd_eckd_private *private = device->private;
  4795. struct attrib_data_t attrib;
  4796. if (!capable(CAP_SYS_ADMIN))
  4797. return -EACCES;
  4798. if (!argp)
  4799. return -EINVAL;
  4800. if (copy_from_user(&attrib, argp, sizeof(struct attrib_data_t)))
  4801. return -EFAULT;
  4802. private->attrib = attrib;
  4803. dev_info(&device->cdev->dev,
  4804. "The DASD cache mode was set to %x (%i cylinder prestage)\n",
  4805. private->attrib.operation, private->attrib.nr_cyl);
  4806. return 0;
  4807. }
  4808. /*
  4809. * Issue syscall I/O to EMC Symmetrix array.
  4810. * CCWs are PSF and RSSD
  4811. */
  4812. static int dasd_symm_io(struct dasd_device *device, void __user *argp)
  4813. {
  4814. struct dasd_symmio_parms usrparm;
  4815. char *psf_data, *rssd_result;
  4816. struct dasd_ccw_req *cqr;
  4817. struct ccw1 *ccw;
  4818. char psf0, psf1;
  4819. int rc;
  4820. if (!capable(CAP_SYS_ADMIN) && !capable(CAP_SYS_RAWIO))
  4821. return -EACCES;
  4822. psf0 = psf1 = 0;
  4823. /* Copy parms from caller */
  4824. rc = -EFAULT;
  4825. if (copy_from_user(&usrparm, argp, sizeof(usrparm)))
  4826. goto out;
  4827. if (is_compat_task()) {
  4828. /* Make sure pointers are sane even on 31 bit. */
  4829. rc = -EINVAL;
  4830. if ((usrparm.psf_data >> 32) != 0)
  4831. goto out;
  4832. if ((usrparm.rssd_result >> 32) != 0)
  4833. goto out;
  4834. usrparm.psf_data &= 0x7fffffffULL;
  4835. usrparm.rssd_result &= 0x7fffffffULL;
  4836. }
  4837. /* at least 2 bytes are accessed and should be allocated */
  4838. if (usrparm.psf_data_len < 2) {
  4839. DBF_DEV_EVENT(DBF_WARNING, device,
  4840. "Symmetrix ioctl invalid data length %d",
  4841. usrparm.psf_data_len);
  4842. rc = -EINVAL;
  4843. goto out;
  4844. }
  4845. /* alloc I/O data area */
  4846. psf_data = kzalloc(usrparm.psf_data_len, GFP_KERNEL | GFP_DMA);
  4847. rssd_result = kzalloc(usrparm.rssd_result_len, GFP_KERNEL | GFP_DMA);
  4848. if (!psf_data || !rssd_result) {
  4849. rc = -ENOMEM;
  4850. goto out_free;
  4851. }
  4852. /* get syscall header from user space */
  4853. rc = -EFAULT;
  4854. if (copy_from_user(psf_data,
  4855. (void __user *)(unsigned long) usrparm.psf_data,
  4856. usrparm.psf_data_len))
  4857. goto out_free;
  4858. psf0 = psf_data[0];
  4859. psf1 = psf_data[1];
  4860. /* setup CCWs for PSF + RSSD */
  4861. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 2, 0, device, NULL);
  4862. if (IS_ERR(cqr)) {
  4863. DBF_DEV_EVENT(DBF_WARNING, device, "%s",
  4864. "Could not allocate initialization request");
  4865. rc = PTR_ERR(cqr);
  4866. goto out_free;
  4867. }
  4868. cqr->startdev = device;
  4869. cqr->memdev = device;
  4870. cqr->retries = 3;
  4871. cqr->expires = 10 * HZ;
  4872. cqr->buildclk = get_tod_clock();
  4873. cqr->status = DASD_CQR_FILLED;
  4874. /* Build the ccws */
  4875. ccw = cqr->cpaddr;
  4876. /* PSF ccw */
  4877. ccw->cmd_code = DASD_ECKD_CCW_PSF;
  4878. ccw->count = usrparm.psf_data_len;
  4879. ccw->flags |= CCW_FLAG_CC;
  4880. ccw->cda = virt_to_dma32(psf_data);
  4881. ccw++;
  4882. /* RSSD ccw */
  4883. ccw->cmd_code = DASD_ECKD_CCW_RSSD;
  4884. ccw->count = usrparm.rssd_result_len;
  4885. ccw->flags = CCW_FLAG_SLI ;
  4886. ccw->cda = virt_to_dma32(rssd_result);
  4887. rc = dasd_sleep_on(cqr);
  4888. if (rc)
  4889. goto out_sfree;
  4890. rc = -EFAULT;
  4891. if (copy_to_user((void __user *)(unsigned long) usrparm.rssd_result,
  4892. rssd_result, usrparm.rssd_result_len))
  4893. goto out_sfree;
  4894. rc = 0;
  4895. out_sfree:
  4896. dasd_sfree_request(cqr, cqr->memdev);
  4897. out_free:
  4898. kfree(rssd_result);
  4899. kfree(psf_data);
  4900. out:
  4901. DBF_DEV_EVENT(DBF_WARNING, device,
  4902. "Symmetrix ioctl (0x%02x 0x%02x): rc=%d",
  4903. (int) psf0, (int) psf1, rc);
  4904. return rc;
  4905. }
  4906. static int
  4907. dasd_eckd_ioctl(struct dasd_block *block, unsigned int cmd, void __user *argp)
  4908. {
  4909. struct dasd_device *device = block->base;
  4910. switch (cmd) {
  4911. case BIODASDGATTR:
  4912. return dasd_eckd_get_attrib(device, argp);
  4913. case BIODASDSATTR:
  4914. return dasd_eckd_set_attrib(device, argp);
  4915. case BIODASDPSRD:
  4916. return dasd_eckd_performance(device, argp);
  4917. case BIODASDRLSE:
  4918. return dasd_eckd_release(device);
  4919. case BIODASDRSRV:
  4920. return dasd_eckd_reserve(device);
  4921. case BIODASDSLCK:
  4922. return dasd_eckd_steal_lock(device);
  4923. case BIODASDSNID:
  4924. return dasd_eckd_snid(device, argp);
  4925. case BIODASDSYMMIO:
  4926. return dasd_symm_io(device, argp);
  4927. default:
  4928. return -ENOTTY;
  4929. }
  4930. }
  4931. /*
  4932. * Dump the range of CCWs into 'page' buffer
  4933. * and return number of printed chars.
  4934. */
  4935. static void
  4936. dasd_eckd_dump_ccw_range(struct dasd_device *device, struct ccw1 *from,
  4937. struct ccw1 *to, char *page)
  4938. {
  4939. int len, count;
  4940. char *datap;
  4941. len = 0;
  4942. while (from <= to) {
  4943. len += sprintf(page + len, "CCW %px: %08X %08X DAT:",
  4944. from, ((int *) from)[0], ((int *) from)[1]);
  4945. /* get pointer to data (consider IDALs) */
  4946. if (from->flags & CCW_FLAG_IDA)
  4947. datap = dma64_to_virt(*((dma64_t *)dma32_to_virt(from->cda)));
  4948. else
  4949. datap = dma32_to_virt(from->cda);
  4950. /* dump data (max 128 bytes) */
  4951. for (count = 0; count < from->count && count < 128; count++) {
  4952. if (count % 32 == 0)
  4953. len += sprintf(page + len, "\n");
  4954. if (count % 8 == 0)
  4955. len += sprintf(page + len, " ");
  4956. if (count % 4 == 0)
  4957. len += sprintf(page + len, " ");
  4958. len += sprintf(page + len, "%02x", datap[count]);
  4959. }
  4960. len += sprintf(page + len, "\n");
  4961. from++;
  4962. }
  4963. if (len > 0)
  4964. dev_err(&device->cdev->dev, "%s", page);
  4965. }
  4966. static void
  4967. dasd_eckd_dump_sense_dbf(struct dasd_device *device, struct irb *irb,
  4968. char *reason)
  4969. {
  4970. u64 *sense;
  4971. u64 *stat;
  4972. sense = (u64 *) dasd_get_sense(irb);
  4973. stat = (u64 *) &irb->scsw;
  4974. if (sense) {
  4975. DBF_DEV_EVENT(DBF_EMERG, device, "%s: %016llx %08x : "
  4976. "%016llx %016llx %016llx %016llx",
  4977. reason, *stat, *((u32 *) (stat + 1)),
  4978. sense[0], sense[1], sense[2], sense[3]);
  4979. } else {
  4980. DBF_DEV_EVENT(DBF_EMERG, device, "%s: %016llx %08x : %s",
  4981. reason, *stat, *((u32 *) (stat + 1)),
  4982. "NO VALID SENSE");
  4983. }
  4984. }
  4985. /*
  4986. * Print sense data and related channel program.
  4987. * Parts are printed because printk buffer is only 1024 bytes.
  4988. */
  4989. static void dasd_eckd_dump_sense_ccw(struct dasd_device *device,
  4990. struct dasd_ccw_req *req, struct irb *irb)
  4991. {
  4992. struct ccw1 *first, *last, *fail, *from, *to;
  4993. struct device *dev;
  4994. int len, sl, sct;
  4995. char *page;
  4996. dev = &device->cdev->dev;
  4997. page = (char *) get_zeroed_page(GFP_ATOMIC);
  4998. if (page == NULL) {
  4999. DBF_DEV_EVENT(DBF_WARNING, device, "%s",
  5000. "No memory to dump sense data\n");
  5001. return;
  5002. }
  5003. /* dump the sense data */
  5004. len = sprintf(page, "I/O status report:\n");
  5005. len += sprintf(page + len,
  5006. "in req: %px CC:%02X FC:%02X AC:%02X SC:%02X DS:%02X CS:%02X RC:%d\n",
  5007. req, scsw_cc(&irb->scsw), scsw_fctl(&irb->scsw),
  5008. scsw_actl(&irb->scsw), scsw_stctl(&irb->scsw),
  5009. scsw_dstat(&irb->scsw), scsw_cstat(&irb->scsw),
  5010. req ? req->intrc : 0);
  5011. len += sprintf(page + len, "Failing CCW: %px\n",
  5012. dma32_to_virt(irb->scsw.cmd.cpa));
  5013. if (irb->esw.esw0.erw.cons) {
  5014. for (sl = 0; sl < 4; sl++) {
  5015. len += sprintf(page + len, "Sense(hex) %2d-%2d:",
  5016. (8 * sl), ((8 * sl) + 7));
  5017. for (sct = 0; sct < 8; sct++) {
  5018. len += sprintf(page + len, " %02x",
  5019. irb->ecw[8 * sl + sct]);
  5020. }
  5021. len += sprintf(page + len, "\n");
  5022. }
  5023. if (irb->ecw[27] & DASD_SENSE_BIT_0) {
  5024. /* 24 Byte Sense Data */
  5025. sprintf(page + len,
  5026. "24 Byte: %x MSG %x, %s MSGb to SYSOP\n",
  5027. irb->ecw[7] >> 4, irb->ecw[7] & 0x0f,
  5028. irb->ecw[1] & 0x10 ? "" : "no");
  5029. } else {
  5030. /* 32 Byte Sense Data */
  5031. sprintf(page + len,
  5032. "32 Byte: Format: %x Exception class %x\n",
  5033. irb->ecw[6] & 0x0f, irb->ecw[22] >> 4);
  5034. }
  5035. } else {
  5036. sprintf(page + len, "SORRY - NO VALID SENSE AVAILABLE\n");
  5037. }
  5038. dev_err(dev, "%s", page);
  5039. if (req) {
  5040. /* req == NULL for unsolicited interrupts */
  5041. /* dump the Channel Program (max 140 Bytes per line) */
  5042. /* Count CCW and print first CCWs (maximum 7) */
  5043. first = req->cpaddr;
  5044. for (last = first; last->flags & (CCW_FLAG_CC | CCW_FLAG_DC); last++);
  5045. to = min(first + 6, last);
  5046. dev_err(dev, "Related CP in req: %px\n", req);
  5047. dasd_eckd_dump_ccw_range(device, first, to, page);
  5048. /* print failing CCW area (maximum 4) */
  5049. /* scsw->cda is either valid or zero */
  5050. from = ++to;
  5051. fail = dma32_to_virt(irb->scsw.cmd.cpa); /* failing CCW */
  5052. if (from < fail - 2) {
  5053. from = fail - 2; /* there is a gap - print header */
  5054. dev_err(dev, "......\n");
  5055. }
  5056. to = min(fail + 1, last);
  5057. dasd_eckd_dump_ccw_range(device, from, to, page + len);
  5058. /* print last CCWs (maximum 2) */
  5059. len = 0;
  5060. from = max(from, ++to);
  5061. if (from < last - 1) {
  5062. from = last - 1; /* there is a gap - print header */
  5063. dev_err(dev, "......\n");
  5064. }
  5065. dasd_eckd_dump_ccw_range(device, from, last, page + len);
  5066. }
  5067. free_page((unsigned long) page);
  5068. }
  5069. /*
  5070. * Print sense data from a tcw.
  5071. */
  5072. static void dasd_eckd_dump_sense_tcw(struct dasd_device *device,
  5073. struct dasd_ccw_req *req, struct irb *irb)
  5074. {
  5075. char *page;
  5076. int len, sl, sct, residual;
  5077. struct tsb *tsb;
  5078. u8 *sense, *rcq;
  5079. page = (char *) get_zeroed_page(GFP_ATOMIC);
  5080. if (page == NULL) {
  5081. DBF_DEV_EVENT(DBF_WARNING, device, " %s",
  5082. "No memory to dump sense data");
  5083. return;
  5084. }
  5085. /* dump the sense data */
  5086. len = sprintf(page, "I/O status report:\n");
  5087. len += sprintf(page + len,
  5088. "in req: %px CC:%02X FC:%02X AC:%02X SC:%02X DS:%02X "
  5089. "CS:%02X fcxs:%02X schxs:%02X RC:%d\n",
  5090. req, scsw_cc(&irb->scsw), scsw_fctl(&irb->scsw),
  5091. scsw_actl(&irb->scsw), scsw_stctl(&irb->scsw),
  5092. scsw_dstat(&irb->scsw), scsw_cstat(&irb->scsw),
  5093. irb->scsw.tm.fcxs,
  5094. (irb->scsw.tm.ifob << 7) | irb->scsw.tm.sesq,
  5095. req ? req->intrc : 0);
  5096. len += sprintf(page + len, "Failing TCW: %px\n",
  5097. dma32_to_virt(irb->scsw.tm.tcw));
  5098. tsb = NULL;
  5099. sense = NULL;
  5100. if (irb->scsw.tm.tcw && (irb->scsw.tm.fcxs & 0x01))
  5101. tsb = tcw_get_tsb(dma32_to_virt(irb->scsw.tm.tcw));
  5102. if (tsb) {
  5103. len += sprintf(page + len, "tsb->length %d\n", tsb->length);
  5104. len += sprintf(page + len, "tsb->flags %x\n", tsb->flags);
  5105. len += sprintf(page + len, "tsb->dcw_offset %d\n", tsb->dcw_offset);
  5106. len += sprintf(page + len, "tsb->count %d\n", tsb->count);
  5107. residual = tsb->count - 28;
  5108. len += sprintf(page + len, "residual %d\n", residual);
  5109. switch (tsb->flags & 0x07) {
  5110. case 1: /* tsa_iostat */
  5111. len += sprintf(page + len, "tsb->tsa.iostat.dev_time %d\n",
  5112. tsb->tsa.iostat.dev_time);
  5113. len += sprintf(page + len, "tsb->tsa.iostat.def_time %d\n",
  5114. tsb->tsa.iostat.def_time);
  5115. len += sprintf(page + len, "tsb->tsa.iostat.queue_time %d\n",
  5116. tsb->tsa.iostat.queue_time);
  5117. len += sprintf(page + len, "tsb->tsa.iostat.dev_busy_time %d\n",
  5118. tsb->tsa.iostat.dev_busy_time);
  5119. len += sprintf(page + len, "tsb->tsa.iostat.dev_act_time %d\n",
  5120. tsb->tsa.iostat.dev_act_time);
  5121. sense = tsb->tsa.iostat.sense;
  5122. break;
  5123. case 2: /* ts_ddpc */
  5124. len += sprintf(page + len, "tsb->tsa.ddpc.rc %d\n",
  5125. tsb->tsa.ddpc.rc);
  5126. for (sl = 0; sl < 2; sl++) {
  5127. len += sprintf(page + len,
  5128. "tsb->tsa.ddpc.rcq %2d-%2d: ",
  5129. (8 * sl), ((8 * sl) + 7));
  5130. rcq = tsb->tsa.ddpc.rcq;
  5131. for (sct = 0; sct < 8; sct++) {
  5132. len += sprintf(page + len, "%02x",
  5133. rcq[8 * sl + sct]);
  5134. }
  5135. len += sprintf(page + len, "\n");
  5136. }
  5137. sense = tsb->tsa.ddpc.sense;
  5138. break;
  5139. case 3: /* tsa_intrg */
  5140. len += sprintf(page + len,
  5141. "tsb->tsa.intrg.: not supported yet\n");
  5142. break;
  5143. }
  5144. if (sense) {
  5145. for (sl = 0; sl < 4; sl++) {
  5146. len += sprintf(page + len,
  5147. "Sense(hex) %2d-%2d:",
  5148. (8 * sl), ((8 * sl) + 7));
  5149. for (sct = 0; sct < 8; sct++) {
  5150. len += sprintf(page + len, " %02x",
  5151. sense[8 * sl + sct]);
  5152. }
  5153. len += sprintf(page + len, "\n");
  5154. }
  5155. if (sense[27] & DASD_SENSE_BIT_0) {
  5156. /* 24 Byte Sense Data */
  5157. sprintf(page + len,
  5158. "24 Byte: %x MSG %x, %s MSGb to SYSOP\n",
  5159. sense[7] >> 4, sense[7] & 0x0f,
  5160. sense[1] & 0x10 ? "" : "no");
  5161. } else {
  5162. /* 32 Byte Sense Data */
  5163. sprintf(page + len,
  5164. "32 Byte: Format: %x Exception class %x\n",
  5165. sense[6] & 0x0f, sense[22] >> 4);
  5166. }
  5167. } else {
  5168. sprintf(page + len, "SORRY - NO VALID SENSE AVAILABLE\n");
  5169. }
  5170. } else {
  5171. sprintf(page + len, "SORRY - NO TSB DATA AVAILABLE\n");
  5172. }
  5173. dev_err(&device->cdev->dev, "%s", page);
  5174. free_page((unsigned long) page);
  5175. }
  5176. static void dasd_eckd_dump_sense(struct dasd_device *device,
  5177. struct dasd_ccw_req *req, struct irb *irb)
  5178. {
  5179. u8 *sense = dasd_get_sense(irb);
  5180. /*
  5181. * In some cases certain errors might be expected and
  5182. * log messages shouldn't be written then.
  5183. * Check if the according suppress bit is set.
  5184. */
  5185. if (sense && (sense[1] & SNS1_INV_TRACK_FORMAT) &&
  5186. !(sense[2] & SNS2_ENV_DATA_PRESENT) &&
  5187. test_bit(DASD_CQR_SUPPRESS_IT, &req->flags))
  5188. return;
  5189. if (sense && sense[0] & SNS0_CMD_REJECT &&
  5190. test_bit(DASD_CQR_SUPPRESS_CR, &req->flags))
  5191. return;
  5192. if (sense && sense[1] & SNS1_NO_REC_FOUND &&
  5193. test_bit(DASD_CQR_SUPPRESS_NRF, &req->flags))
  5194. return;
  5195. if (scsw_cstat(&irb->scsw) == 0x40 &&
  5196. test_bit(DASD_CQR_SUPPRESS_IL, &req->flags))
  5197. return;
  5198. if (scsw_is_tm(&irb->scsw))
  5199. dasd_eckd_dump_sense_tcw(device, req, irb);
  5200. else
  5201. dasd_eckd_dump_sense_ccw(device, req, irb);
  5202. }
  5203. static int dasd_eckd_reload_device(struct dasd_device *device)
  5204. {
  5205. struct dasd_eckd_private *private = device->private;
  5206. char print_uid[DASD_UID_STRLEN];
  5207. int rc, old_base;
  5208. struct dasd_uid uid;
  5209. unsigned long flags;
  5210. /*
  5211. * remove device from alias handling to prevent new requests
  5212. * from being scheduled on the wrong alias device
  5213. */
  5214. dasd_alias_remove_device(device);
  5215. spin_lock_irqsave(get_ccwdev_lock(device->cdev), flags);
  5216. old_base = private->uid.base_unit_addr;
  5217. spin_unlock_irqrestore(get_ccwdev_lock(device->cdev), flags);
  5218. /* Read Configuration Data */
  5219. rc = dasd_eckd_read_conf(device);
  5220. if (rc)
  5221. goto out_err;
  5222. dasd_eckd_read_fc_security(device);
  5223. rc = dasd_eckd_generate_uid(device);
  5224. if (rc)
  5225. goto out_err;
  5226. /*
  5227. * update unit address configuration and
  5228. * add device to alias management
  5229. */
  5230. dasd_alias_update_add_device(device);
  5231. dasd_eckd_get_uid(device, &uid);
  5232. if (old_base != uid.base_unit_addr) {
  5233. dasd_eckd_get_uid_string(&private->conf, print_uid);
  5234. dev_info(&device->cdev->dev,
  5235. "An Alias device was reassigned to a new base device "
  5236. "with UID: %s\n", print_uid);
  5237. }
  5238. return 0;
  5239. out_err:
  5240. return -1;
  5241. }
  5242. static int dasd_eckd_read_message_buffer(struct dasd_device *device,
  5243. struct dasd_rssd_messages *messages,
  5244. __u8 lpum)
  5245. {
  5246. struct dasd_rssd_messages *message_buf;
  5247. struct dasd_psf_prssd_data *prssdp;
  5248. struct dasd_ccw_req *cqr;
  5249. struct ccw1 *ccw;
  5250. int rc;
  5251. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1 /* PSF */ + 1 /* RSSD */,
  5252. (sizeof(struct dasd_psf_prssd_data) +
  5253. sizeof(struct dasd_rssd_messages)),
  5254. device, NULL);
  5255. if (IS_ERR(cqr)) {
  5256. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  5257. "Could not allocate read message buffer request");
  5258. return PTR_ERR(cqr);
  5259. }
  5260. cqr->lpm = lpum;
  5261. retry:
  5262. cqr->startdev = device;
  5263. cqr->memdev = device;
  5264. cqr->block = NULL;
  5265. cqr->expires = 10 * HZ;
  5266. set_bit(DASD_CQR_VERIFY_PATH, &cqr->flags);
  5267. /* dasd_sleep_on_immediatly does not do complex error
  5268. * recovery so clear erp flag and set retry counter to
  5269. * do basic erp */
  5270. clear_bit(DASD_CQR_FLAGS_USE_ERP, &cqr->flags);
  5271. cqr->retries = 256;
  5272. /* Prepare for Read Subsystem Data */
  5273. prssdp = (struct dasd_psf_prssd_data *) cqr->data;
  5274. memset(prssdp, 0, sizeof(struct dasd_psf_prssd_data));
  5275. prssdp->order = PSF_ORDER_PRSSD;
  5276. prssdp->suborder = 0x03; /* Message Buffer */
  5277. /* all other bytes of prssdp must be zero */
  5278. ccw = cqr->cpaddr;
  5279. ccw->cmd_code = DASD_ECKD_CCW_PSF;
  5280. ccw->count = sizeof(struct dasd_psf_prssd_data);
  5281. ccw->flags |= CCW_FLAG_CC;
  5282. ccw->flags |= CCW_FLAG_SLI;
  5283. ccw->cda = virt_to_dma32(prssdp);
  5284. /* Read Subsystem Data - message buffer */
  5285. message_buf = (struct dasd_rssd_messages *) (prssdp + 1);
  5286. memset(message_buf, 0, sizeof(struct dasd_rssd_messages));
  5287. ccw++;
  5288. ccw->cmd_code = DASD_ECKD_CCW_RSSD;
  5289. ccw->count = sizeof(struct dasd_rssd_messages);
  5290. ccw->flags |= CCW_FLAG_SLI;
  5291. ccw->cda = virt_to_dma32(message_buf);
  5292. cqr->buildclk = get_tod_clock();
  5293. cqr->status = DASD_CQR_FILLED;
  5294. rc = dasd_sleep_on_immediatly(cqr);
  5295. if (rc == 0) {
  5296. prssdp = (struct dasd_psf_prssd_data *) cqr->data;
  5297. message_buf = (struct dasd_rssd_messages *)
  5298. (prssdp + 1);
  5299. memcpy(messages, message_buf,
  5300. sizeof(struct dasd_rssd_messages));
  5301. } else if (cqr->lpm) {
  5302. /*
  5303. * on z/VM we might not be able to do I/O on the requested path
  5304. * but instead we get the required information on any path
  5305. * so retry with open path mask
  5306. */
  5307. cqr->lpm = 0;
  5308. goto retry;
  5309. } else
  5310. DBF_EVENT_DEVID(DBF_WARNING, device->cdev,
  5311. "Reading messages failed with rc=%d\n"
  5312. , rc);
  5313. dasd_sfree_request(cqr, cqr->memdev);
  5314. return rc;
  5315. }
  5316. static int dasd_eckd_query_host_access(struct dasd_device *device,
  5317. struct dasd_psf_query_host_access *data)
  5318. {
  5319. struct dasd_eckd_private *private = device->private;
  5320. struct dasd_psf_query_host_access *host_access;
  5321. struct dasd_psf_prssd_data *prssdp;
  5322. struct dasd_ccw_req *cqr;
  5323. struct ccw1 *ccw;
  5324. int rc;
  5325. /* not available for HYPER PAV alias devices */
  5326. if (!device->block && private->lcu->pav == HYPER_PAV)
  5327. return -EOPNOTSUPP;
  5328. /* may not be supported by the storage server */
  5329. if (!(private->features.feature[14] & 0x80))
  5330. return -EOPNOTSUPP;
  5331. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1 /* PSF */ + 1 /* RSSD */,
  5332. sizeof(struct dasd_psf_prssd_data) + 1,
  5333. device, NULL);
  5334. if (IS_ERR(cqr)) {
  5335. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  5336. "Could not allocate read message buffer request");
  5337. return PTR_ERR(cqr);
  5338. }
  5339. host_access = kzalloc(sizeof(*host_access), GFP_KERNEL | GFP_DMA);
  5340. if (!host_access) {
  5341. dasd_sfree_request(cqr, device);
  5342. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  5343. "Could not allocate host_access buffer");
  5344. return -ENOMEM;
  5345. }
  5346. cqr->startdev = device;
  5347. cqr->memdev = device;
  5348. cqr->block = NULL;
  5349. cqr->retries = 256;
  5350. cqr->expires = 10 * HZ;
  5351. /* Prepare for Read Subsystem Data */
  5352. prssdp = (struct dasd_psf_prssd_data *) cqr->data;
  5353. memset(prssdp, 0, sizeof(struct dasd_psf_prssd_data));
  5354. prssdp->order = PSF_ORDER_PRSSD;
  5355. prssdp->suborder = PSF_SUBORDER_QHA; /* query host access */
  5356. /* LSS and Volume that will be queried */
  5357. prssdp->lss = private->conf.ned->ID;
  5358. prssdp->volume = private->conf.ned->unit_addr;
  5359. /* all other bytes of prssdp must be zero */
  5360. ccw = cqr->cpaddr;
  5361. ccw->cmd_code = DASD_ECKD_CCW_PSF;
  5362. ccw->count = sizeof(struct dasd_psf_prssd_data);
  5363. ccw->flags |= CCW_FLAG_CC;
  5364. ccw->flags |= CCW_FLAG_SLI;
  5365. ccw->cda = virt_to_dma32(prssdp);
  5366. /* Read Subsystem Data - query host access */
  5367. ccw++;
  5368. ccw->cmd_code = DASD_ECKD_CCW_RSSD;
  5369. ccw->count = sizeof(struct dasd_psf_query_host_access);
  5370. ccw->flags |= CCW_FLAG_SLI;
  5371. ccw->cda = virt_to_dma32(host_access);
  5372. cqr->buildclk = get_tod_clock();
  5373. cqr->status = DASD_CQR_FILLED;
  5374. /* the command might not be supported, suppress error message */
  5375. __set_bit(DASD_CQR_SUPPRESS_CR, &cqr->flags);
  5376. rc = dasd_sleep_on_interruptible(cqr);
  5377. if (rc == 0) {
  5378. *data = *host_access;
  5379. } else {
  5380. DBF_EVENT_DEVID(DBF_WARNING, device->cdev,
  5381. "Reading host access data failed with rc=%d\n",
  5382. rc);
  5383. rc = -EOPNOTSUPP;
  5384. }
  5385. dasd_sfree_request(cqr, cqr->memdev);
  5386. kfree(host_access);
  5387. return rc;
  5388. }
  5389. /*
  5390. * return number of grouped devices
  5391. */
  5392. static int dasd_eckd_host_access_count(struct dasd_device *device)
  5393. {
  5394. struct dasd_psf_query_host_access *access;
  5395. struct dasd_ckd_path_group_entry *entry;
  5396. struct dasd_ckd_host_information *info;
  5397. int count = 0;
  5398. int rc, i;
  5399. access = kzalloc(sizeof(*access), GFP_NOIO);
  5400. if (!access) {
  5401. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  5402. "Could not allocate access buffer");
  5403. return -ENOMEM;
  5404. }
  5405. rc = dasd_eckd_query_host_access(device, access);
  5406. if (rc) {
  5407. kfree(access);
  5408. return rc;
  5409. }
  5410. info = (struct dasd_ckd_host_information *)
  5411. access->host_access_information;
  5412. for (i = 0; i < info->entry_count; i++) {
  5413. entry = (struct dasd_ckd_path_group_entry *)
  5414. (info->entry + i * info->entry_size);
  5415. if (entry->status_flags & DASD_ECKD_PG_GROUPED)
  5416. count++;
  5417. }
  5418. kfree(access);
  5419. return count;
  5420. }
  5421. /*
  5422. * write host access information to a sequential file
  5423. */
  5424. static int dasd_hosts_print(struct dasd_device *device, struct seq_file *m)
  5425. {
  5426. struct dasd_psf_query_host_access *access;
  5427. struct dasd_ckd_path_group_entry *entry;
  5428. struct dasd_ckd_host_information *info;
  5429. char sysplex[9] = "";
  5430. int rc, i;
  5431. access = kzalloc(sizeof(*access), GFP_NOIO);
  5432. if (!access) {
  5433. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  5434. "Could not allocate access buffer");
  5435. return -ENOMEM;
  5436. }
  5437. rc = dasd_eckd_query_host_access(device, access);
  5438. if (rc) {
  5439. kfree(access);
  5440. return rc;
  5441. }
  5442. info = (struct dasd_ckd_host_information *)
  5443. access->host_access_information;
  5444. for (i = 0; i < info->entry_count; i++) {
  5445. entry = (struct dasd_ckd_path_group_entry *)
  5446. (info->entry + i * info->entry_size);
  5447. /* PGID */
  5448. seq_printf(m, "pgid %*phN\n", 11, entry->pgid);
  5449. /* FLAGS */
  5450. seq_printf(m, "status_flags %02x\n", entry->status_flags);
  5451. /* SYSPLEX NAME */
  5452. memcpy(&sysplex, &entry->sysplex_name, sizeof(sysplex) - 1);
  5453. EBCASC(sysplex, sizeof(sysplex));
  5454. seq_printf(m, "sysplex_name %8s\n", sysplex);
  5455. /* SUPPORTED CYLINDER */
  5456. seq_printf(m, "supported_cylinder %d\n", entry->cylinder);
  5457. /* TIMESTAMP */
  5458. seq_printf(m, "timestamp %lu\n", (unsigned long)
  5459. entry->timestamp);
  5460. }
  5461. kfree(access);
  5462. return 0;
  5463. }
  5464. static struct dasd_device
  5465. *copy_relation_find_device(struct dasd_copy_relation *copy,
  5466. char *busid)
  5467. {
  5468. int i;
  5469. for (i = 0; i < DASD_CP_ENTRIES; i++) {
  5470. if (copy->entry[i].configured &&
  5471. strncmp(copy->entry[i].busid, busid, DASD_BUS_ID_SIZE) == 0)
  5472. return copy->entry[i].device;
  5473. }
  5474. return NULL;
  5475. }
  5476. /*
  5477. * set the new active/primary device
  5478. */
  5479. static void copy_pair_set_active(struct dasd_copy_relation *copy, char *new_busid,
  5480. char *old_busid)
  5481. {
  5482. int i;
  5483. for (i = 0; i < DASD_CP_ENTRIES; i++) {
  5484. if (copy->entry[i].configured &&
  5485. strncmp(copy->entry[i].busid, new_busid,
  5486. DASD_BUS_ID_SIZE) == 0) {
  5487. copy->active = &copy->entry[i];
  5488. copy->entry[i].primary = true;
  5489. } else if (copy->entry[i].configured &&
  5490. strncmp(copy->entry[i].busid, old_busid,
  5491. DASD_BUS_ID_SIZE) == 0) {
  5492. copy->entry[i].primary = false;
  5493. }
  5494. }
  5495. }
  5496. /*
  5497. * The function will swap the role of a given copy pair.
  5498. * During the swap operation the relation of the blockdevice is disconnected
  5499. * from the old primary and connected to the new.
  5500. *
  5501. * IO is paused on the block queue before swap and may be resumed afterwards.
  5502. */
  5503. static int dasd_eckd_copy_pair_swap(struct dasd_device *device, char *prim_busid,
  5504. char *sec_busid)
  5505. {
  5506. struct dasd_device *primary, *secondary;
  5507. struct dasd_copy_relation *copy;
  5508. struct dasd_block *block;
  5509. struct gendisk *gdp;
  5510. copy = device->copy;
  5511. if (!copy)
  5512. return DASD_COPYPAIRSWAP_INVALID;
  5513. primary = copy->active->device;
  5514. if (!primary)
  5515. return DASD_COPYPAIRSWAP_INVALID;
  5516. /* double check if swap has correct primary */
  5517. if (strncmp(dev_name(&primary->cdev->dev), prim_busid, DASD_BUS_ID_SIZE) != 0)
  5518. return DASD_COPYPAIRSWAP_PRIMARY;
  5519. secondary = copy_relation_find_device(copy, sec_busid);
  5520. if (!secondary)
  5521. return DASD_COPYPAIRSWAP_SECONDARY;
  5522. /*
  5523. * usually the device should be quiesced for swap
  5524. * for paranoia stop device and requeue requests again
  5525. */
  5526. dasd_device_set_stop_bits(primary, DASD_STOPPED_PPRC);
  5527. dasd_device_set_stop_bits(secondary, DASD_STOPPED_PPRC);
  5528. dasd_generic_requeue_all_requests(primary);
  5529. /* swap DASD internal device <> block assignment */
  5530. block = primary->block;
  5531. primary->block = NULL;
  5532. secondary->block = block;
  5533. block->base = secondary;
  5534. /* set new primary device in COPY relation */
  5535. copy_pair_set_active(copy, sec_busid, prim_busid);
  5536. /* swap blocklayer device link */
  5537. gdp = block->gdp;
  5538. dasd_add_link_to_gendisk(gdp, secondary);
  5539. /* re-enable device */
  5540. dasd_device_remove_stop_bits(primary, DASD_STOPPED_PPRC);
  5541. dasd_device_remove_stop_bits(secondary, DASD_STOPPED_PPRC);
  5542. dasd_schedule_device_bh(secondary);
  5543. return DASD_COPYPAIRSWAP_SUCCESS;
  5544. }
  5545. /*
  5546. * Perform Subsystem Function - Peer-to-Peer Remote Copy Extended Query
  5547. */
  5548. static int dasd_eckd_query_pprc_status(struct dasd_device *device,
  5549. struct dasd_pprc_data_sc4 *data)
  5550. {
  5551. struct dasd_pprc_data_sc4 *pprc_data;
  5552. struct dasd_psf_prssd_data *prssdp;
  5553. struct dasd_ccw_req *cqr;
  5554. struct ccw1 *ccw;
  5555. int rc;
  5556. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1 /* PSF */ + 1 /* RSSD */,
  5557. sizeof(*prssdp) + sizeof(*pprc_data) + 1,
  5558. device, NULL);
  5559. if (IS_ERR(cqr)) {
  5560. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  5561. "Could not allocate query PPRC status request");
  5562. return PTR_ERR(cqr);
  5563. }
  5564. cqr->startdev = device;
  5565. cqr->memdev = device;
  5566. cqr->block = NULL;
  5567. cqr->retries = 256;
  5568. cqr->expires = 10 * HZ;
  5569. /* Prepare for Read Subsystem Data */
  5570. prssdp = (struct dasd_psf_prssd_data *)cqr->data;
  5571. memset(prssdp, 0, sizeof(struct dasd_psf_prssd_data));
  5572. prssdp->order = PSF_ORDER_PRSSD;
  5573. prssdp->suborder = PSF_SUBORDER_PPRCEQ;
  5574. prssdp->varies[0] = PPRCEQ_SCOPE_4;
  5575. pprc_data = (struct dasd_pprc_data_sc4 *)(prssdp + 1);
  5576. ccw = cqr->cpaddr;
  5577. ccw->cmd_code = DASD_ECKD_CCW_PSF;
  5578. ccw->count = sizeof(struct dasd_psf_prssd_data);
  5579. ccw->flags |= CCW_FLAG_CC;
  5580. ccw->flags |= CCW_FLAG_SLI;
  5581. ccw->cda = virt_to_dma32(prssdp);
  5582. /* Read Subsystem Data - query host access */
  5583. ccw++;
  5584. ccw->cmd_code = DASD_ECKD_CCW_RSSD;
  5585. ccw->count = sizeof(*pprc_data);
  5586. ccw->flags |= CCW_FLAG_SLI;
  5587. ccw->cda = virt_to_dma32(pprc_data);
  5588. cqr->buildclk = get_tod_clock();
  5589. cqr->status = DASD_CQR_FILLED;
  5590. rc = dasd_sleep_on_interruptible(cqr);
  5591. if (rc == 0) {
  5592. *data = *pprc_data;
  5593. } else {
  5594. DBF_EVENT_DEVID(DBF_WARNING, device->cdev,
  5595. "PPRC Extended Query failed with rc=%d\n",
  5596. rc);
  5597. rc = -EOPNOTSUPP;
  5598. }
  5599. dasd_sfree_request(cqr, cqr->memdev);
  5600. return rc;
  5601. }
  5602. /*
  5603. * ECKD NOP - no operation
  5604. */
  5605. static int dasd_eckd_nop(struct dasd_device *device)
  5606. {
  5607. struct dasd_ccw_req *cqr;
  5608. struct ccw1 *ccw;
  5609. int rc;
  5610. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1, 1, device, NULL);
  5611. if (IS_ERR(cqr)) {
  5612. DBF_EVENT_DEVID(DBF_WARNING, device->cdev, "%s",
  5613. "Could not allocate NOP request");
  5614. return PTR_ERR(cqr);
  5615. }
  5616. cqr->startdev = device;
  5617. cqr->memdev = device;
  5618. cqr->block = NULL;
  5619. cqr->retries = 1;
  5620. cqr->expires = 10 * HZ;
  5621. ccw = cqr->cpaddr;
  5622. ccw->cmd_code = DASD_ECKD_CCW_NOP;
  5623. ccw->flags |= CCW_FLAG_SLI;
  5624. cqr->buildclk = get_tod_clock();
  5625. cqr->status = DASD_CQR_FILLED;
  5626. rc = dasd_sleep_on_interruptible(cqr);
  5627. if (rc != 0) {
  5628. DBF_EVENT_DEVID(DBF_WARNING, device->cdev,
  5629. "NOP failed with rc=%d\n", rc);
  5630. rc = -EOPNOTSUPP;
  5631. }
  5632. dasd_sfree_request(cqr, cqr->memdev);
  5633. return rc;
  5634. }
  5635. static int dasd_eckd_device_ping(struct dasd_device *device)
  5636. {
  5637. return dasd_eckd_nop(device);
  5638. }
  5639. /*
  5640. * Perform Subsystem Function - CUIR response
  5641. */
  5642. static int
  5643. dasd_eckd_psf_cuir_response(struct dasd_device *device, int response,
  5644. __u32 message_id, __u8 lpum)
  5645. {
  5646. struct dasd_psf_cuir_response *psf_cuir;
  5647. int pos = pathmask_to_pos(lpum);
  5648. struct dasd_ccw_req *cqr;
  5649. struct ccw1 *ccw;
  5650. int rc;
  5651. cqr = dasd_smalloc_request(DASD_ECKD_MAGIC, 1 /* PSF */ ,
  5652. sizeof(struct dasd_psf_cuir_response),
  5653. device, NULL);
  5654. if (IS_ERR(cqr)) {
  5655. DBF_DEV_EVENT(DBF_WARNING, device, "%s",
  5656. "Could not allocate PSF-CUIR request");
  5657. return PTR_ERR(cqr);
  5658. }
  5659. psf_cuir = (struct dasd_psf_cuir_response *)cqr->data;
  5660. psf_cuir->order = PSF_ORDER_CUIR_RESPONSE;
  5661. psf_cuir->cc = response;
  5662. psf_cuir->chpid = device->path[pos].chpid;
  5663. psf_cuir->message_id = message_id;
  5664. psf_cuir->cssid = device->path[pos].cssid;
  5665. psf_cuir->ssid = device->path[pos].ssid;
  5666. ccw = cqr->cpaddr;
  5667. ccw->cmd_code = DASD_ECKD_CCW_PSF;
  5668. ccw->cda = virt_to_dma32(psf_cuir);
  5669. ccw->flags = CCW_FLAG_SLI;
  5670. ccw->count = sizeof(struct dasd_psf_cuir_response);
  5671. cqr->startdev = device;
  5672. cqr->memdev = device;
  5673. cqr->block = NULL;
  5674. cqr->retries = 256;
  5675. cqr->expires = 10*HZ;
  5676. cqr->buildclk = get_tod_clock();
  5677. cqr->status = DASD_CQR_FILLED;
  5678. set_bit(DASD_CQR_VERIFY_PATH, &cqr->flags);
  5679. rc = dasd_sleep_on(cqr);
  5680. dasd_sfree_request(cqr, cqr->memdev);
  5681. return rc;
  5682. }
  5683. /*
  5684. * return configuration data that is referenced by record selector
  5685. * if a record selector is specified or per default return the
  5686. * conf_data pointer for the path specified by lpum
  5687. */
  5688. static struct dasd_conf_data *dasd_eckd_get_ref_conf(struct dasd_device *device,
  5689. __u8 lpum,
  5690. struct dasd_cuir_message *cuir)
  5691. {
  5692. struct dasd_conf_data *conf_data;
  5693. int path, pos;
  5694. if (cuir->record_selector == 0)
  5695. goto out;
  5696. for (path = 0x80, pos = 0; path; path >>= 1, pos++) {
  5697. conf_data = device->path[pos].conf_data;
  5698. if (conf_data->gneq.record_selector ==
  5699. cuir->record_selector)
  5700. return conf_data;
  5701. }
  5702. out:
  5703. return device->path[pathmask_to_pos(lpum)].conf_data;
  5704. }
  5705. /*
  5706. * This function determines the scope of a reconfiguration request by
  5707. * analysing the path and device selection data provided in the CUIR request.
  5708. * Returns a path mask containing CUIR affected paths for the give device.
  5709. *
  5710. * If the CUIR request does not contain the required information return the
  5711. * path mask of the path the attention message for the CUIR request was reveived
  5712. * on.
  5713. */
  5714. static int dasd_eckd_cuir_scope(struct dasd_device *device, __u8 lpum,
  5715. struct dasd_cuir_message *cuir)
  5716. {
  5717. struct dasd_conf_data *ref_conf_data;
  5718. unsigned long bitmask = 0, mask = 0;
  5719. struct dasd_conf_data *conf_data;
  5720. unsigned int pos, path;
  5721. char *ref_gneq, *gneq;
  5722. char *ref_ned, *ned;
  5723. int tbcpm = 0;
  5724. /* if CUIR request does not specify the scope use the path
  5725. the attention message was presented on */
  5726. if (!cuir->ned_map ||
  5727. !(cuir->neq_map[0] | cuir->neq_map[1] | cuir->neq_map[2]))
  5728. return lpum;
  5729. /* get reference conf data */
  5730. ref_conf_data = dasd_eckd_get_ref_conf(device, lpum, cuir);
  5731. /* reference ned is determined by ned_map field */
  5732. pos = 8 - ffs(cuir->ned_map);
  5733. ref_ned = (char *)&ref_conf_data->neds[pos];
  5734. ref_gneq = (char *)&ref_conf_data->gneq;
  5735. /* transfer 24 bit neq_map to mask */
  5736. mask = cuir->neq_map[2];
  5737. mask |= cuir->neq_map[1] << 8;
  5738. mask |= cuir->neq_map[0] << 16;
  5739. for (path = 0; path < 8; path++) {
  5740. /* initialise data per path */
  5741. bitmask = mask;
  5742. conf_data = device->path[path].conf_data;
  5743. pos = 8 - ffs(cuir->ned_map);
  5744. ned = (char *) &conf_data->neds[pos];
  5745. /* compare reference ned and per path ned */
  5746. if (memcmp(ref_ned, ned, sizeof(*ned)) != 0)
  5747. continue;
  5748. gneq = (char *)&conf_data->gneq;
  5749. /* compare reference gneq and per_path gneq under
  5750. 24 bit mask where mask bit 0 equals byte 7 of
  5751. the gneq and mask bit 24 equals byte 31 */
  5752. while (bitmask) {
  5753. pos = ffs(bitmask) - 1;
  5754. if (memcmp(&ref_gneq[31 - pos], &gneq[31 - pos], 1)
  5755. != 0)
  5756. break;
  5757. clear_bit(pos, &bitmask);
  5758. }
  5759. if (bitmask)
  5760. continue;
  5761. /* device and path match the reference values
  5762. add path to CUIR scope */
  5763. tbcpm |= 0x80 >> path;
  5764. }
  5765. return tbcpm;
  5766. }
  5767. static void dasd_eckd_cuir_notify_user(struct dasd_device *device,
  5768. unsigned long paths, int action)
  5769. {
  5770. int pos;
  5771. while (paths) {
  5772. /* get position of bit in mask */
  5773. pos = 8 - ffs(paths);
  5774. /* get channel path descriptor from this position */
  5775. if (action == CUIR_QUIESCE)
  5776. pr_warn("Service on the storage server caused path %x.%02x to go offline",
  5777. device->path[pos].cssid,
  5778. device->path[pos].chpid);
  5779. else if (action == CUIR_RESUME)
  5780. pr_info("Path %x.%02x is back online after service on the storage server",
  5781. device->path[pos].cssid,
  5782. device->path[pos].chpid);
  5783. clear_bit(7 - pos, &paths);
  5784. }
  5785. }
  5786. static int dasd_eckd_cuir_remove_path(struct dasd_device *device, __u8 lpum,
  5787. struct dasd_cuir_message *cuir)
  5788. {
  5789. unsigned long tbcpm;
  5790. tbcpm = dasd_eckd_cuir_scope(device, lpum, cuir);
  5791. /* nothing to do if path is not in use */
  5792. if (!(dasd_path_get_opm(device) & tbcpm))
  5793. return 0;
  5794. if (!(dasd_path_get_opm(device) & ~tbcpm)) {
  5795. /* no path would be left if the CUIR action is taken
  5796. return error */
  5797. return -EINVAL;
  5798. }
  5799. /* remove device from operational path mask */
  5800. dasd_path_remove_opm(device, tbcpm);
  5801. dasd_path_add_cuirpm(device, tbcpm);
  5802. return tbcpm;
  5803. }
  5804. /*
  5805. * walk through all devices and build a path mask to quiesce them
  5806. * return an error if the last path to a device would be removed
  5807. *
  5808. * if only part of the devices are quiesced and an error
  5809. * occurs no onlining necessary, the storage server will
  5810. * notify the already set offline devices again
  5811. */
  5812. static int dasd_eckd_cuir_quiesce(struct dasd_device *device, __u8 lpum,
  5813. struct dasd_cuir_message *cuir)
  5814. {
  5815. struct dasd_eckd_private *private = device->private;
  5816. struct alias_pav_group *pavgroup, *tempgroup;
  5817. struct dasd_device *dev, *n;
  5818. unsigned long paths = 0;
  5819. unsigned long flags;
  5820. int tbcpm;
  5821. /* active devices */
  5822. list_for_each_entry_safe(dev, n, &private->lcu->active_devices,
  5823. alias_list) {
  5824. spin_lock_irqsave(get_ccwdev_lock(dev->cdev), flags);
  5825. tbcpm = dasd_eckd_cuir_remove_path(dev, lpum, cuir);
  5826. spin_unlock_irqrestore(get_ccwdev_lock(dev->cdev), flags);
  5827. if (tbcpm < 0)
  5828. goto out_err;
  5829. paths |= tbcpm;
  5830. }
  5831. /* inactive devices */
  5832. list_for_each_entry_safe(dev, n, &private->lcu->inactive_devices,
  5833. alias_list) {
  5834. spin_lock_irqsave(get_ccwdev_lock(dev->cdev), flags);
  5835. tbcpm = dasd_eckd_cuir_remove_path(dev, lpum, cuir);
  5836. spin_unlock_irqrestore(get_ccwdev_lock(dev->cdev), flags);
  5837. if (tbcpm < 0)
  5838. goto out_err;
  5839. paths |= tbcpm;
  5840. }
  5841. /* devices in PAV groups */
  5842. list_for_each_entry_safe(pavgroup, tempgroup,
  5843. &private->lcu->grouplist, group) {
  5844. list_for_each_entry_safe(dev, n, &pavgroup->baselist,
  5845. alias_list) {
  5846. spin_lock_irqsave(get_ccwdev_lock(dev->cdev), flags);
  5847. tbcpm = dasd_eckd_cuir_remove_path(dev, lpum, cuir);
  5848. spin_unlock_irqrestore(
  5849. get_ccwdev_lock(dev->cdev), flags);
  5850. if (tbcpm < 0)
  5851. goto out_err;
  5852. paths |= tbcpm;
  5853. }
  5854. list_for_each_entry_safe(dev, n, &pavgroup->aliaslist,
  5855. alias_list) {
  5856. spin_lock_irqsave(get_ccwdev_lock(dev->cdev), flags);
  5857. tbcpm = dasd_eckd_cuir_remove_path(dev, lpum, cuir);
  5858. spin_unlock_irqrestore(
  5859. get_ccwdev_lock(dev->cdev), flags);
  5860. if (tbcpm < 0)
  5861. goto out_err;
  5862. paths |= tbcpm;
  5863. }
  5864. }
  5865. /* notify user about all paths affected by CUIR action */
  5866. dasd_eckd_cuir_notify_user(device, paths, CUIR_QUIESCE);
  5867. return 0;
  5868. out_err:
  5869. return tbcpm;
  5870. }
  5871. static int dasd_eckd_cuir_resume(struct dasd_device *device, __u8 lpum,
  5872. struct dasd_cuir_message *cuir)
  5873. {
  5874. struct dasd_eckd_private *private = device->private;
  5875. struct alias_pav_group *pavgroup, *tempgroup;
  5876. struct dasd_device *dev, *n;
  5877. unsigned long paths = 0;
  5878. int tbcpm;
  5879. /*
  5880. * the path may have been added through a generic path event before
  5881. * only trigger path verification if the path is not already in use
  5882. */
  5883. list_for_each_entry_safe(dev, n,
  5884. &private->lcu->active_devices,
  5885. alias_list) {
  5886. tbcpm = dasd_eckd_cuir_scope(dev, lpum, cuir);
  5887. paths |= tbcpm;
  5888. if (!(dasd_path_get_opm(dev) & tbcpm)) {
  5889. dasd_path_add_tbvpm(dev, tbcpm);
  5890. dasd_schedule_device_bh(dev);
  5891. }
  5892. }
  5893. list_for_each_entry_safe(dev, n,
  5894. &private->lcu->inactive_devices,
  5895. alias_list) {
  5896. tbcpm = dasd_eckd_cuir_scope(dev, lpum, cuir);
  5897. paths |= tbcpm;
  5898. if (!(dasd_path_get_opm(dev) & tbcpm)) {
  5899. dasd_path_add_tbvpm(dev, tbcpm);
  5900. dasd_schedule_device_bh(dev);
  5901. }
  5902. }
  5903. /* devices in PAV groups */
  5904. list_for_each_entry_safe(pavgroup, tempgroup,
  5905. &private->lcu->grouplist,
  5906. group) {
  5907. list_for_each_entry_safe(dev, n,
  5908. &pavgroup->baselist,
  5909. alias_list) {
  5910. tbcpm = dasd_eckd_cuir_scope(dev, lpum, cuir);
  5911. paths |= tbcpm;
  5912. if (!(dasd_path_get_opm(dev) & tbcpm)) {
  5913. dasd_path_add_tbvpm(dev, tbcpm);
  5914. dasd_schedule_device_bh(dev);
  5915. }
  5916. }
  5917. list_for_each_entry_safe(dev, n,
  5918. &pavgroup->aliaslist,
  5919. alias_list) {
  5920. tbcpm = dasd_eckd_cuir_scope(dev, lpum, cuir);
  5921. paths |= tbcpm;
  5922. if (!(dasd_path_get_opm(dev) & tbcpm)) {
  5923. dasd_path_add_tbvpm(dev, tbcpm);
  5924. dasd_schedule_device_bh(dev);
  5925. }
  5926. }
  5927. }
  5928. /* notify user about all paths affected by CUIR action */
  5929. dasd_eckd_cuir_notify_user(device, paths, CUIR_RESUME);
  5930. return 0;
  5931. }
  5932. static void dasd_eckd_handle_cuir(struct dasd_device *device, void *messages,
  5933. __u8 lpum)
  5934. {
  5935. struct dasd_cuir_message *cuir = messages;
  5936. int response;
  5937. DBF_DEV_EVENT(DBF_WARNING, device,
  5938. "CUIR request: %016llx %016llx %016llx %08x",
  5939. ((u64 *)cuir)[0], ((u64 *)cuir)[1], ((u64 *)cuir)[2],
  5940. ((u32 *)cuir)[3]);
  5941. if (cuir->code == CUIR_QUIESCE) {
  5942. /* quiesce */
  5943. if (dasd_eckd_cuir_quiesce(device, lpum, cuir))
  5944. response = PSF_CUIR_LAST_PATH;
  5945. else
  5946. response = PSF_CUIR_COMPLETED;
  5947. } else if (cuir->code == CUIR_RESUME) {
  5948. /* resume */
  5949. dasd_eckd_cuir_resume(device, lpum, cuir);
  5950. response = PSF_CUIR_COMPLETED;
  5951. } else
  5952. response = PSF_CUIR_NOT_SUPPORTED;
  5953. dasd_eckd_psf_cuir_response(device, response,
  5954. cuir->message_id, lpum);
  5955. DBF_DEV_EVENT(DBF_WARNING, device,
  5956. "CUIR response: %d on message ID %08x", response,
  5957. cuir->message_id);
  5958. /* to make sure there is no attention left schedule work again */
  5959. device->discipline->check_attention(device, lpum);
  5960. }
  5961. static void dasd_eckd_oos_resume(struct dasd_device *device)
  5962. {
  5963. struct dasd_eckd_private *private = device->private;
  5964. struct alias_pav_group *pavgroup, *tempgroup;
  5965. struct dasd_device *dev, *n;
  5966. unsigned long flags;
  5967. spin_lock_irqsave(&private->lcu->lock, flags);
  5968. list_for_each_entry_safe(dev, n, &private->lcu->active_devices,
  5969. alias_list) {
  5970. if (dev->stopped & DASD_STOPPED_NOSPC)
  5971. dasd_generic_space_avail(dev);
  5972. }
  5973. list_for_each_entry_safe(dev, n, &private->lcu->inactive_devices,
  5974. alias_list) {
  5975. if (dev->stopped & DASD_STOPPED_NOSPC)
  5976. dasd_generic_space_avail(dev);
  5977. }
  5978. /* devices in PAV groups */
  5979. list_for_each_entry_safe(pavgroup, tempgroup,
  5980. &private->lcu->grouplist,
  5981. group) {
  5982. list_for_each_entry_safe(dev, n, &pavgroup->baselist,
  5983. alias_list) {
  5984. if (dev->stopped & DASD_STOPPED_NOSPC)
  5985. dasd_generic_space_avail(dev);
  5986. }
  5987. list_for_each_entry_safe(dev, n, &pavgroup->aliaslist,
  5988. alias_list) {
  5989. if (dev->stopped & DASD_STOPPED_NOSPC)
  5990. dasd_generic_space_avail(dev);
  5991. }
  5992. }
  5993. spin_unlock_irqrestore(&private->lcu->lock, flags);
  5994. }
  5995. static void dasd_eckd_handle_oos(struct dasd_device *device, void *messages,
  5996. __u8 lpum)
  5997. {
  5998. struct dasd_oos_message *oos = messages;
  5999. switch (oos->code) {
  6000. case REPO_WARN:
  6001. case POOL_WARN:
  6002. dev_warn(&device->cdev->dev,
  6003. "Extent pool usage has reached a critical value\n");
  6004. dasd_eckd_oos_resume(device);
  6005. break;
  6006. case REPO_EXHAUST:
  6007. case POOL_EXHAUST:
  6008. dev_warn(&device->cdev->dev,
  6009. "Extent pool is exhausted\n");
  6010. break;
  6011. case REPO_RELIEVE:
  6012. case POOL_RELIEVE:
  6013. dev_info(&device->cdev->dev,
  6014. "Extent pool physical space constraint has been relieved\n");
  6015. break;
  6016. }
  6017. /* In any case, update related data */
  6018. dasd_eckd_read_ext_pool_info(device);
  6019. /* to make sure there is no attention left schedule work again */
  6020. device->discipline->check_attention(device, lpum);
  6021. }
  6022. static void dasd_eckd_check_attention_work(struct work_struct *work)
  6023. {
  6024. struct check_attention_work_data *data;
  6025. struct dasd_rssd_messages *messages;
  6026. struct dasd_device *device;
  6027. int rc;
  6028. data = container_of(work, struct check_attention_work_data, worker);
  6029. device = data->device;
  6030. messages = kzalloc(sizeof(*messages), GFP_KERNEL);
  6031. if (!messages) {
  6032. DBF_DEV_EVENT(DBF_WARNING, device, "%s",
  6033. "Could not allocate attention message buffer");
  6034. goto out;
  6035. }
  6036. rc = dasd_eckd_read_message_buffer(device, messages, data->lpum);
  6037. if (rc)
  6038. goto out;
  6039. if (messages->length == ATTENTION_LENGTH_CUIR &&
  6040. messages->format == ATTENTION_FORMAT_CUIR)
  6041. dasd_eckd_handle_cuir(device, messages, data->lpum);
  6042. if (messages->length == ATTENTION_LENGTH_OOS &&
  6043. messages->format == ATTENTION_FORMAT_OOS)
  6044. dasd_eckd_handle_oos(device, messages, data->lpum);
  6045. out:
  6046. dasd_put_device(device);
  6047. kfree(messages);
  6048. kfree(data);
  6049. }
  6050. static int dasd_eckd_check_attention(struct dasd_device *device, __u8 lpum)
  6051. {
  6052. struct check_attention_work_data *data;
  6053. data = kzalloc(sizeof(*data), GFP_ATOMIC);
  6054. if (!data)
  6055. return -ENOMEM;
  6056. INIT_WORK(&data->worker, dasd_eckd_check_attention_work);
  6057. dasd_get_device(device);
  6058. data->device = device;
  6059. data->lpum = lpum;
  6060. schedule_work(&data->worker);
  6061. return 0;
  6062. }
  6063. static int dasd_eckd_disable_hpf_path(struct dasd_device *device, __u8 lpum)
  6064. {
  6065. if (~lpum & dasd_path_get_opm(device)) {
  6066. dasd_path_add_nohpfpm(device, lpum);
  6067. dasd_path_remove_opm(device, lpum);
  6068. dev_err(&device->cdev->dev,
  6069. "Channel path %02X lost HPF functionality and is disabled\n",
  6070. lpum);
  6071. return 1;
  6072. }
  6073. return 0;
  6074. }
  6075. static void dasd_eckd_disable_hpf_device(struct dasd_device *device)
  6076. {
  6077. struct dasd_eckd_private *private = device->private;
  6078. dev_err(&device->cdev->dev,
  6079. "High Performance FICON disabled\n");
  6080. private->fcx_max_data = 0;
  6081. }
  6082. static int dasd_eckd_hpf_enabled(struct dasd_device *device)
  6083. {
  6084. struct dasd_eckd_private *private = device->private;
  6085. return private->fcx_max_data ? 1 : 0;
  6086. }
  6087. static void dasd_eckd_handle_hpf_error(struct dasd_device *device,
  6088. struct irb *irb)
  6089. {
  6090. struct dasd_eckd_private *private = device->private;
  6091. if (!private->fcx_max_data) {
  6092. /* sanity check for no HPF, the error makes no sense */
  6093. DBF_DEV_EVENT(DBF_WARNING, device, "%s",
  6094. "Trying to disable HPF for a non HPF device");
  6095. return;
  6096. }
  6097. if (irb->scsw.tm.sesq == SCSW_SESQ_DEV_NOFCX) {
  6098. dasd_eckd_disable_hpf_device(device);
  6099. } else if (irb->scsw.tm.sesq == SCSW_SESQ_PATH_NOFCX) {
  6100. if (dasd_eckd_disable_hpf_path(device, irb->esw.esw1.lpum))
  6101. return;
  6102. dasd_eckd_disable_hpf_device(device);
  6103. dasd_path_set_tbvpm(device,
  6104. dasd_path_get_hpfpm(device));
  6105. }
  6106. /*
  6107. * prevent that any new I/O ist started on the device and schedule a
  6108. * requeue of existing requests
  6109. */
  6110. dasd_device_set_stop_bits(device, DASD_STOPPED_NOT_ACC);
  6111. dasd_schedule_requeue(device);
  6112. }
  6113. static unsigned int dasd_eckd_max_sectors(struct dasd_block *block)
  6114. {
  6115. if (block->base->features & DASD_FEATURE_USERAW) {
  6116. /*
  6117. * the max_blocks value for raw_track access is 256
  6118. * it is higher than the native ECKD value because we
  6119. * only need one ccw per track
  6120. * so the max_hw_sectors are
  6121. * 2048 x 512B = 1024kB = 16 tracks
  6122. */
  6123. return DASD_ECKD_MAX_BLOCKS_RAW << block->s2b_shift;
  6124. }
  6125. return DASD_ECKD_MAX_BLOCKS << block->s2b_shift;
  6126. }
  6127. static struct ccw_driver dasd_eckd_driver = {
  6128. .driver = {
  6129. .name = "dasd-eckd",
  6130. .owner = THIS_MODULE,
  6131. .dev_groups = dasd_dev_groups,
  6132. },
  6133. .ids = dasd_eckd_ids,
  6134. .probe = dasd_eckd_probe,
  6135. .remove = dasd_generic_remove,
  6136. .set_offline = dasd_generic_set_offline,
  6137. .set_online = dasd_eckd_set_online,
  6138. .notify = dasd_generic_notify,
  6139. .path_event = dasd_generic_path_event,
  6140. .shutdown = dasd_generic_shutdown,
  6141. .uc_handler = dasd_generic_uc_handler,
  6142. .int_class = IRQIO_DAS,
  6143. };
  6144. static struct dasd_discipline dasd_eckd_discipline = {
  6145. .owner = THIS_MODULE,
  6146. .name = "ECKD",
  6147. .ebcname = "ECKD",
  6148. .check_device = dasd_eckd_check_characteristics,
  6149. .uncheck_device = dasd_eckd_uncheck_device,
  6150. .do_analysis = dasd_eckd_do_analysis,
  6151. .pe_handler = dasd_eckd_pe_handler,
  6152. .basic_to_ready = dasd_eckd_basic_to_ready,
  6153. .online_to_ready = dasd_eckd_online_to_ready,
  6154. .basic_to_known = dasd_eckd_basic_to_known,
  6155. .max_sectors = dasd_eckd_max_sectors,
  6156. .fill_geometry = dasd_eckd_fill_geometry,
  6157. .start_IO = dasd_start_IO,
  6158. .term_IO = dasd_term_IO,
  6159. .handle_terminated_request = dasd_eckd_handle_terminated_request,
  6160. .format_device = dasd_eckd_format_device,
  6161. .check_device_format = dasd_eckd_check_device_format,
  6162. .erp_action = dasd_eckd_erp_action,
  6163. .erp_postaction = dasd_eckd_erp_postaction,
  6164. .check_for_device_change = dasd_eckd_check_for_device_change,
  6165. .build_cp = dasd_eckd_build_alias_cp,
  6166. .free_cp = dasd_eckd_free_alias_cp,
  6167. .dump_sense = dasd_eckd_dump_sense,
  6168. .dump_sense_dbf = dasd_eckd_dump_sense_dbf,
  6169. .fill_info = dasd_eckd_fill_info,
  6170. .ioctl = dasd_eckd_ioctl,
  6171. .reload = dasd_eckd_reload_device,
  6172. .get_uid = dasd_eckd_get_uid,
  6173. .kick_validate = dasd_eckd_kick_validate_server,
  6174. .check_attention = dasd_eckd_check_attention,
  6175. .host_access_count = dasd_eckd_host_access_count,
  6176. .hosts_print = dasd_hosts_print,
  6177. .handle_hpf_error = dasd_eckd_handle_hpf_error,
  6178. .disable_hpf = dasd_eckd_disable_hpf_device,
  6179. .hpf_enabled = dasd_eckd_hpf_enabled,
  6180. .reset_path = dasd_eckd_reset_path,
  6181. .is_ese = dasd_eckd_is_ese,
  6182. .space_allocated = dasd_eckd_space_allocated,
  6183. .space_configured = dasd_eckd_space_configured,
  6184. .logical_capacity = dasd_eckd_logical_capacity,
  6185. .release_space = dasd_eckd_release_space,
  6186. .ext_pool_id = dasd_eckd_ext_pool_id,
  6187. .ext_size = dasd_eckd_ext_size,
  6188. .ext_pool_cap_at_warnlevel = dasd_eckd_ext_pool_cap_at_warnlevel,
  6189. .ext_pool_warn_thrshld = dasd_eckd_ext_pool_warn_thrshld,
  6190. .ext_pool_oos = dasd_eckd_ext_pool_oos,
  6191. .ext_pool_exhaust = dasd_eckd_ext_pool_exhaust,
  6192. .ese_format = dasd_eckd_ese_format,
  6193. .ese_read = dasd_eckd_ese_read,
  6194. .pprc_status = dasd_eckd_query_pprc_status,
  6195. .pprc_enabled = dasd_eckd_pprc_enabled,
  6196. .copy_pair_swap = dasd_eckd_copy_pair_swap,
  6197. .device_ping = dasd_eckd_device_ping,
  6198. };
  6199. static int __init
  6200. dasd_eckd_init(void)
  6201. {
  6202. int ret;
  6203. ASCEBC(dasd_eckd_discipline.ebcname, 4);
  6204. dasd_reserve_req = kmalloc(sizeof(*dasd_reserve_req),
  6205. GFP_KERNEL | GFP_DMA);
  6206. if (!dasd_reserve_req)
  6207. return -ENOMEM;
  6208. dasd_vol_info_req = kmalloc(sizeof(*dasd_vol_info_req),
  6209. GFP_KERNEL | GFP_DMA);
  6210. if (!dasd_vol_info_req) {
  6211. kfree(dasd_reserve_req);
  6212. return -ENOMEM;
  6213. }
  6214. pe_handler_worker = kmalloc(sizeof(*pe_handler_worker),
  6215. GFP_KERNEL | GFP_DMA);
  6216. if (!pe_handler_worker) {
  6217. kfree(dasd_reserve_req);
  6218. kfree(dasd_vol_info_req);
  6219. return -ENOMEM;
  6220. }
  6221. rawpadpage = (void *)__get_free_page(GFP_KERNEL);
  6222. if (!rawpadpage) {
  6223. kfree(pe_handler_worker);
  6224. kfree(dasd_reserve_req);
  6225. kfree(dasd_vol_info_req);
  6226. return -ENOMEM;
  6227. }
  6228. ret = ccw_driver_register(&dasd_eckd_driver);
  6229. if (!ret)
  6230. wait_for_device_probe();
  6231. else {
  6232. kfree(pe_handler_worker);
  6233. kfree(dasd_reserve_req);
  6234. kfree(dasd_vol_info_req);
  6235. free_page((unsigned long)rawpadpage);
  6236. }
  6237. return ret;
  6238. }
  6239. static void __exit
  6240. dasd_eckd_cleanup(void)
  6241. {
  6242. ccw_driver_unregister(&dasd_eckd_driver);
  6243. kfree(pe_handler_worker);
  6244. kfree(dasd_reserve_req);
  6245. free_page((unsigned long)rawpadpage);
  6246. }
  6247. module_init(dasd_eckd_init);
  6248. module_exit(dasd_eckd_cleanup);