mmc_test.c 45 KB

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  1. /*
  2. * linux/drivers/mmc/card/mmc_test.c
  3. *
  4. * Copyright 2007-2008 Pierre Ossman
  5. *
  6. * This program is free software; you can redistribute it and/or modify
  7. * it under the terms of the GNU General Public License as published by
  8. * the Free Software Foundation; either version 2 of the License, or (at
  9. * your option) any later version.
  10. */
  11. #include <linux/mmc/core.h>
  12. #include <linux/mmc/card.h>
  13. #include <linux/mmc/host.h>
  14. #include <linux/mmc/mmc.h>
  15. #include <linux/slab.h>
  16. #include <linux/scatterlist.h>
  17. #include <linux/swap.h> /* For nr_free_buffer_pages() */
  18. #define RESULT_OK 0
  19. #define RESULT_FAIL 1
  20. #define RESULT_UNSUP_HOST 2
  21. #define RESULT_UNSUP_CARD 3
  22. #define BUFFER_ORDER 2
  23. #define BUFFER_SIZE (PAGE_SIZE << BUFFER_ORDER)
  24. /*
  25. * Limit the test area size to the maximum MMC HC erase group size. Note that
  26. * the maximum SD allocation unit size is just 4MiB.
  27. */
  28. #define TEST_AREA_MAX_SIZE (128 * 1024 * 1024)
  29. /**
  30. * struct mmc_test_pages - pages allocated by 'alloc_pages()'.
  31. * @page: first page in the allocation
  32. * @order: order of the number of pages allocated
  33. */
  34. struct mmc_test_pages {
  35. struct page *page;
  36. unsigned int order;
  37. };
  38. /**
  39. * struct mmc_test_mem - allocated memory.
  40. * @arr: array of allocations
  41. * @cnt: number of allocations
  42. */
  43. struct mmc_test_mem {
  44. struct mmc_test_pages *arr;
  45. unsigned int cnt;
  46. };
  47. /**
  48. * struct mmc_test_area - information for performance tests.
  49. * @max_sz: test area size (in bytes)
  50. * @dev_addr: address on card at which to do performance tests
  51. * @max_tfr: maximum transfer size allowed by driver (in bytes)
  52. * @max_segs: maximum segments allowed by driver in scatterlist @sg
  53. * @max_seg_sz: maximum segment size allowed by driver
  54. * @blocks: number of (512 byte) blocks currently mapped by @sg
  55. * @sg_len: length of currently mapped scatterlist @sg
  56. * @mem: allocated memory
  57. * @sg: scatterlist
  58. */
  59. struct mmc_test_area {
  60. unsigned long max_sz;
  61. unsigned int dev_addr;
  62. unsigned int max_tfr;
  63. unsigned int max_segs;
  64. unsigned int max_seg_sz;
  65. unsigned int blocks;
  66. unsigned int sg_len;
  67. struct mmc_test_mem *mem;
  68. struct scatterlist *sg;
  69. };
  70. /**
  71. * struct mmc_test_card - test information.
  72. * @card: card under test
  73. * @scratch: transfer buffer
  74. * @buffer: transfer buffer
  75. * @highmem: buffer for highmem tests
  76. * @area: information for performance tests
  77. */
  78. struct mmc_test_card {
  79. struct mmc_card *card;
  80. u8 scratch[BUFFER_SIZE];
  81. u8 *buffer;
  82. #ifdef CONFIG_HIGHMEM
  83. struct page *highmem;
  84. #endif
  85. struct mmc_test_area area;
  86. };
  87. /*******************************************************************/
  88. /* General helper functions */
  89. /*******************************************************************/
  90. /*
  91. * Configure correct block size in card
  92. */
  93. static int mmc_test_set_blksize(struct mmc_test_card *test, unsigned size)
  94. {
  95. struct mmc_command cmd;
  96. int ret;
  97. cmd.opcode = MMC_SET_BLOCKLEN;
  98. cmd.arg = size;
  99. cmd.flags = MMC_RSP_R1 | MMC_CMD_AC;
  100. ret = mmc_wait_for_cmd(test->card->host, &cmd, 0);
  101. if (ret)
  102. return ret;
  103. return 0;
  104. }
  105. /*
  106. * Fill in the mmc_request structure given a set of transfer parameters.
  107. */
  108. static void mmc_test_prepare_mrq(struct mmc_test_card *test,
  109. struct mmc_request *mrq, struct scatterlist *sg, unsigned sg_len,
  110. unsigned dev_addr, unsigned blocks, unsigned blksz, int write)
  111. {
  112. BUG_ON(!mrq || !mrq->cmd || !mrq->data || !mrq->stop);
  113. if (blocks > 1) {
  114. mrq->cmd->opcode = write ?
  115. MMC_WRITE_MULTIPLE_BLOCK : MMC_READ_MULTIPLE_BLOCK;
  116. } else {
  117. mrq->cmd->opcode = write ?
  118. MMC_WRITE_BLOCK : MMC_READ_SINGLE_BLOCK;
  119. }
  120. mrq->cmd->arg = dev_addr;
  121. if (!mmc_card_blockaddr(test->card))
  122. mrq->cmd->arg <<= 9;
  123. mrq->cmd->flags = MMC_RSP_R1 | MMC_CMD_ADTC;
  124. if (blocks == 1)
  125. mrq->stop = NULL;
  126. else {
  127. mrq->stop->opcode = MMC_STOP_TRANSMISSION;
  128. mrq->stop->arg = 0;
  129. mrq->stop->flags = MMC_RSP_R1B | MMC_CMD_AC;
  130. }
  131. mrq->data->blksz = blksz;
  132. mrq->data->blocks = blocks;
  133. mrq->data->flags = write ? MMC_DATA_WRITE : MMC_DATA_READ;
  134. mrq->data->sg = sg;
  135. mrq->data->sg_len = sg_len;
  136. mmc_set_data_timeout(mrq->data, test->card);
  137. }
  138. static int mmc_test_busy(struct mmc_command *cmd)
  139. {
  140. return !(cmd->resp[0] & R1_READY_FOR_DATA) ||
  141. (R1_CURRENT_STATE(cmd->resp[0]) == 7);
  142. }
  143. /*
  144. * Wait for the card to finish the busy state
  145. */
  146. static int mmc_test_wait_busy(struct mmc_test_card *test)
  147. {
  148. int ret, busy;
  149. struct mmc_command cmd;
  150. busy = 0;
  151. do {
  152. memset(&cmd, 0, sizeof(struct mmc_command));
  153. cmd.opcode = MMC_SEND_STATUS;
  154. cmd.arg = test->card->rca << 16;
  155. cmd.flags = MMC_RSP_R1 | MMC_CMD_AC;
  156. ret = mmc_wait_for_cmd(test->card->host, &cmd, 0);
  157. if (ret)
  158. break;
  159. if (!busy && mmc_test_busy(&cmd)) {
  160. busy = 1;
  161. printk(KERN_INFO "%s: Warning: Host did not "
  162. "wait for busy state to end.\n",
  163. mmc_hostname(test->card->host));
  164. }
  165. } while (mmc_test_busy(&cmd));
  166. return ret;
  167. }
  168. /*
  169. * Transfer a single sector of kernel addressable data
  170. */
  171. static int mmc_test_buffer_transfer(struct mmc_test_card *test,
  172. u8 *buffer, unsigned addr, unsigned blksz, int write)
  173. {
  174. int ret;
  175. struct mmc_request mrq;
  176. struct mmc_command cmd;
  177. struct mmc_command stop;
  178. struct mmc_data data;
  179. struct scatterlist sg;
  180. memset(&mrq, 0, sizeof(struct mmc_request));
  181. memset(&cmd, 0, sizeof(struct mmc_command));
  182. memset(&data, 0, sizeof(struct mmc_data));
  183. memset(&stop, 0, sizeof(struct mmc_command));
  184. mrq.cmd = &cmd;
  185. mrq.data = &data;
  186. mrq.stop = &stop;
  187. sg_init_one(&sg, buffer, blksz);
  188. mmc_test_prepare_mrq(test, &mrq, &sg, 1, addr, 1, blksz, write);
  189. mmc_wait_for_req(test->card->host, &mrq);
  190. if (cmd.error)
  191. return cmd.error;
  192. if (data.error)
  193. return data.error;
  194. ret = mmc_test_wait_busy(test);
  195. if (ret)
  196. return ret;
  197. return 0;
  198. }
  199. static void mmc_test_free_mem(struct mmc_test_mem *mem)
  200. {
  201. if (!mem)
  202. return;
  203. while (mem->cnt--)
  204. __free_pages(mem->arr[mem->cnt].page,
  205. mem->arr[mem->cnt].order);
  206. kfree(mem->arr);
  207. kfree(mem);
  208. }
  209. /*
  210. * Allocate a lot of memory, preferrably max_sz but at least min_sz. In case
  211. * there isn't much memory do not exceed 1/16th total lowmem pages. Also do
  212. * not exceed a maximum number of segments and try not to make segments much
  213. * bigger than maximum segment size.
  214. */
  215. static struct mmc_test_mem *mmc_test_alloc_mem(unsigned long min_sz,
  216. unsigned long max_sz,
  217. unsigned int max_segs,
  218. unsigned int max_seg_sz)
  219. {
  220. unsigned long max_page_cnt = DIV_ROUND_UP(max_sz, PAGE_SIZE);
  221. unsigned long min_page_cnt = DIV_ROUND_UP(min_sz, PAGE_SIZE);
  222. unsigned long max_seg_page_cnt = DIV_ROUND_UP(max_seg_sz, PAGE_SIZE);
  223. unsigned long page_cnt = 0;
  224. unsigned long limit = nr_free_buffer_pages() >> 4;
  225. struct mmc_test_mem *mem;
  226. if (max_page_cnt > limit)
  227. max_page_cnt = limit;
  228. if (max_page_cnt < min_page_cnt)
  229. max_page_cnt = min_page_cnt;
  230. if (max_seg_page_cnt > max_page_cnt)
  231. max_seg_page_cnt = max_page_cnt;
  232. if (max_segs > max_page_cnt)
  233. max_segs = max_page_cnt;
  234. mem = kzalloc(sizeof(struct mmc_test_mem), GFP_KERNEL);
  235. if (!mem)
  236. return NULL;
  237. mem->arr = kzalloc(sizeof(struct mmc_test_pages) * max_segs,
  238. GFP_KERNEL);
  239. if (!mem->arr)
  240. goto out_free;
  241. while (max_page_cnt) {
  242. struct page *page;
  243. unsigned int order;
  244. gfp_t flags = GFP_KERNEL | GFP_DMA | __GFP_NOWARN |
  245. __GFP_NORETRY;
  246. order = get_order(max_seg_page_cnt << PAGE_SHIFT);
  247. while (1) {
  248. page = alloc_pages(flags, order);
  249. if (page || !order)
  250. break;
  251. order -= 1;
  252. }
  253. if (!page) {
  254. if (page_cnt < min_page_cnt)
  255. goto out_free;
  256. break;
  257. }
  258. mem->arr[mem->cnt].page = page;
  259. mem->arr[mem->cnt].order = order;
  260. mem->cnt += 1;
  261. if (max_page_cnt <= (1UL << order))
  262. break;
  263. if (mem->cnt >= max_segs) {
  264. if (page_cnt < min_page_cnt)
  265. goto out_free;
  266. break;
  267. }
  268. max_page_cnt -= 1UL << order;
  269. page_cnt += 1UL << order;
  270. }
  271. return mem;
  272. out_free:
  273. mmc_test_free_mem(mem);
  274. return NULL;
  275. }
  276. /*
  277. * Map memory into a scatterlist. Optionally allow the same memory to be
  278. * mapped more than once.
  279. */
  280. static int mmc_test_map_sg(struct mmc_test_mem *mem, unsigned long sz,
  281. struct scatterlist *sglist, int repeat,
  282. unsigned int max_segs, unsigned int max_seg_sz,
  283. unsigned int *sg_len)
  284. {
  285. struct scatterlist *sg = NULL;
  286. unsigned int i;
  287. sg_init_table(sglist, max_segs);
  288. *sg_len = 0;
  289. do {
  290. for (i = 0; i < mem->cnt; i++) {
  291. unsigned long len = PAGE_SIZE << mem->arr[i].order;
  292. if (len > sz)
  293. len = sz;
  294. if (len > max_seg_sz)
  295. len = max_seg_sz;
  296. if (sg)
  297. sg = sg_next(sg);
  298. else
  299. sg = sglist;
  300. if (!sg)
  301. return -EINVAL;
  302. sg_set_page(sg, mem->arr[i].page, len, 0);
  303. sz -= len;
  304. *sg_len += 1;
  305. if (!sz)
  306. break;
  307. }
  308. } while (sz && repeat);
  309. if (sz)
  310. return -EINVAL;
  311. if (sg)
  312. sg_mark_end(sg);
  313. return 0;
  314. }
  315. /*
  316. * Map memory into a scatterlist so that no pages are contiguous. Allow the
  317. * same memory to be mapped more than once.
  318. */
  319. static int mmc_test_map_sg_max_scatter(struct mmc_test_mem *mem,
  320. unsigned long sz,
  321. struct scatterlist *sglist,
  322. unsigned int max_segs,
  323. unsigned int max_seg_sz,
  324. unsigned int *sg_len)
  325. {
  326. struct scatterlist *sg = NULL;
  327. unsigned int i = mem->cnt, cnt;
  328. unsigned long len;
  329. void *base, *addr, *last_addr = NULL;
  330. sg_init_table(sglist, max_segs);
  331. *sg_len = 0;
  332. while (sz) {
  333. base = page_address(mem->arr[--i].page);
  334. cnt = 1 << mem->arr[i].order;
  335. while (sz && cnt) {
  336. addr = base + PAGE_SIZE * --cnt;
  337. if (last_addr && last_addr + PAGE_SIZE == addr)
  338. continue;
  339. last_addr = addr;
  340. len = PAGE_SIZE;
  341. if (len > max_seg_sz)
  342. len = max_seg_sz;
  343. if (len > sz)
  344. len = sz;
  345. if (sg)
  346. sg = sg_next(sg);
  347. else
  348. sg = sglist;
  349. if (!sg)
  350. return -EINVAL;
  351. sg_set_page(sg, virt_to_page(addr), len, 0);
  352. sz -= len;
  353. *sg_len += 1;
  354. }
  355. if (i == 0)
  356. i = mem->cnt;
  357. }
  358. if (sg)
  359. sg_mark_end(sg);
  360. return 0;
  361. }
  362. /*
  363. * Calculate transfer rate in bytes per second.
  364. */
  365. static unsigned int mmc_test_rate(uint64_t bytes, struct timespec *ts)
  366. {
  367. uint64_t ns;
  368. ns = ts->tv_sec;
  369. ns *= 1000000000;
  370. ns += ts->tv_nsec;
  371. bytes *= 1000000000;
  372. while (ns > UINT_MAX) {
  373. bytes >>= 1;
  374. ns >>= 1;
  375. }
  376. if (!ns)
  377. return 0;
  378. do_div(bytes, (uint32_t)ns);
  379. return bytes;
  380. }
  381. /*
  382. * Print the transfer rate.
  383. */
  384. static void mmc_test_print_rate(struct mmc_test_card *test, uint64_t bytes,
  385. struct timespec *ts1, struct timespec *ts2)
  386. {
  387. unsigned int rate, sectors = bytes >> 9;
  388. struct timespec ts;
  389. ts = timespec_sub(*ts2, *ts1);
  390. rate = mmc_test_rate(bytes, &ts);
  391. printk(KERN_INFO "%s: Transfer of %u sectors (%u%s KiB) took %lu.%09lu "
  392. "seconds (%u kB/s, %u KiB/s)\n",
  393. mmc_hostname(test->card->host), sectors, sectors >> 1,
  394. (sectors == 1 ? ".5" : ""), (unsigned long)ts.tv_sec,
  395. (unsigned long)ts.tv_nsec, rate / 1000, rate / 1024);
  396. }
  397. /*
  398. * Print the average transfer rate.
  399. */
  400. static void mmc_test_print_avg_rate(struct mmc_test_card *test, uint64_t bytes,
  401. unsigned int count, struct timespec *ts1,
  402. struct timespec *ts2)
  403. {
  404. unsigned int rate, sectors = bytes >> 9;
  405. uint64_t tot = bytes * count;
  406. struct timespec ts;
  407. ts = timespec_sub(*ts2, *ts1);
  408. rate = mmc_test_rate(tot, &ts);
  409. printk(KERN_INFO "%s: Transfer of %u x %u sectors (%u x %u%s KiB) took "
  410. "%lu.%09lu seconds (%u kB/s, %u KiB/s)\n",
  411. mmc_hostname(test->card->host), count, sectors, count,
  412. sectors >> 1, (sectors == 1 ? ".5" : ""),
  413. (unsigned long)ts.tv_sec, (unsigned long)ts.tv_nsec,
  414. rate / 1000, rate / 1024);
  415. }
  416. /*
  417. * Return the card size in sectors.
  418. */
  419. static unsigned int mmc_test_capacity(struct mmc_card *card)
  420. {
  421. if (!mmc_card_sd(card) && mmc_card_blockaddr(card))
  422. return card->ext_csd.sectors;
  423. else
  424. return card->csd.capacity << (card->csd.read_blkbits - 9);
  425. }
  426. /*******************************************************************/
  427. /* Test preparation and cleanup */
  428. /*******************************************************************/
  429. /*
  430. * Fill the first couple of sectors of the card with known data
  431. * so that bad reads/writes can be detected
  432. */
  433. static int __mmc_test_prepare(struct mmc_test_card *test, int write)
  434. {
  435. int ret, i;
  436. ret = mmc_test_set_blksize(test, 512);
  437. if (ret)
  438. return ret;
  439. if (write)
  440. memset(test->buffer, 0xDF, 512);
  441. else {
  442. for (i = 0;i < 512;i++)
  443. test->buffer[i] = i;
  444. }
  445. for (i = 0;i < BUFFER_SIZE / 512;i++) {
  446. ret = mmc_test_buffer_transfer(test, test->buffer, i, 512, 1);
  447. if (ret)
  448. return ret;
  449. }
  450. return 0;
  451. }
  452. static int mmc_test_prepare_write(struct mmc_test_card *test)
  453. {
  454. return __mmc_test_prepare(test, 1);
  455. }
  456. static int mmc_test_prepare_read(struct mmc_test_card *test)
  457. {
  458. return __mmc_test_prepare(test, 0);
  459. }
  460. static int mmc_test_cleanup(struct mmc_test_card *test)
  461. {
  462. int ret, i;
  463. ret = mmc_test_set_blksize(test, 512);
  464. if (ret)
  465. return ret;
  466. memset(test->buffer, 0, 512);
  467. for (i = 0;i < BUFFER_SIZE / 512;i++) {
  468. ret = mmc_test_buffer_transfer(test, test->buffer, i, 512, 1);
  469. if (ret)
  470. return ret;
  471. }
  472. return 0;
  473. }
  474. /*******************************************************************/
  475. /* Test execution helpers */
  476. /*******************************************************************/
  477. /*
  478. * Modifies the mmc_request to perform the "short transfer" tests
  479. */
  480. static void mmc_test_prepare_broken_mrq(struct mmc_test_card *test,
  481. struct mmc_request *mrq, int write)
  482. {
  483. BUG_ON(!mrq || !mrq->cmd || !mrq->data);
  484. if (mrq->data->blocks > 1) {
  485. mrq->cmd->opcode = write ?
  486. MMC_WRITE_BLOCK : MMC_READ_SINGLE_BLOCK;
  487. mrq->stop = NULL;
  488. } else {
  489. mrq->cmd->opcode = MMC_SEND_STATUS;
  490. mrq->cmd->arg = test->card->rca << 16;
  491. }
  492. }
  493. /*
  494. * Checks that a normal transfer didn't have any errors
  495. */
  496. static int mmc_test_check_result(struct mmc_test_card *test,
  497. struct mmc_request *mrq)
  498. {
  499. int ret;
  500. BUG_ON(!mrq || !mrq->cmd || !mrq->data);
  501. ret = 0;
  502. if (!ret && mrq->cmd->error)
  503. ret = mrq->cmd->error;
  504. if (!ret && mrq->data->error)
  505. ret = mrq->data->error;
  506. if (!ret && mrq->stop && mrq->stop->error)
  507. ret = mrq->stop->error;
  508. if (!ret && mrq->data->bytes_xfered !=
  509. mrq->data->blocks * mrq->data->blksz)
  510. ret = RESULT_FAIL;
  511. if (ret == -EINVAL)
  512. ret = RESULT_UNSUP_HOST;
  513. return ret;
  514. }
  515. /*
  516. * Checks that a "short transfer" behaved as expected
  517. */
  518. static int mmc_test_check_broken_result(struct mmc_test_card *test,
  519. struct mmc_request *mrq)
  520. {
  521. int ret;
  522. BUG_ON(!mrq || !mrq->cmd || !mrq->data);
  523. ret = 0;
  524. if (!ret && mrq->cmd->error)
  525. ret = mrq->cmd->error;
  526. if (!ret && mrq->data->error == 0)
  527. ret = RESULT_FAIL;
  528. if (!ret && mrq->data->error != -ETIMEDOUT)
  529. ret = mrq->data->error;
  530. if (!ret && mrq->stop && mrq->stop->error)
  531. ret = mrq->stop->error;
  532. if (mrq->data->blocks > 1) {
  533. if (!ret && mrq->data->bytes_xfered > mrq->data->blksz)
  534. ret = RESULT_FAIL;
  535. } else {
  536. if (!ret && mrq->data->bytes_xfered > 0)
  537. ret = RESULT_FAIL;
  538. }
  539. if (ret == -EINVAL)
  540. ret = RESULT_UNSUP_HOST;
  541. return ret;
  542. }
  543. /*
  544. * Tests a basic transfer with certain parameters
  545. */
  546. static int mmc_test_simple_transfer(struct mmc_test_card *test,
  547. struct scatterlist *sg, unsigned sg_len, unsigned dev_addr,
  548. unsigned blocks, unsigned blksz, int write)
  549. {
  550. struct mmc_request mrq;
  551. struct mmc_command cmd;
  552. struct mmc_command stop;
  553. struct mmc_data data;
  554. memset(&mrq, 0, sizeof(struct mmc_request));
  555. memset(&cmd, 0, sizeof(struct mmc_command));
  556. memset(&data, 0, sizeof(struct mmc_data));
  557. memset(&stop, 0, sizeof(struct mmc_command));
  558. mrq.cmd = &cmd;
  559. mrq.data = &data;
  560. mrq.stop = &stop;
  561. mmc_test_prepare_mrq(test, &mrq, sg, sg_len, dev_addr,
  562. blocks, blksz, write);
  563. mmc_wait_for_req(test->card->host, &mrq);
  564. mmc_test_wait_busy(test);
  565. return mmc_test_check_result(test, &mrq);
  566. }
  567. /*
  568. * Tests a transfer where the card will fail completely or partly
  569. */
  570. static int mmc_test_broken_transfer(struct mmc_test_card *test,
  571. unsigned blocks, unsigned blksz, int write)
  572. {
  573. struct mmc_request mrq;
  574. struct mmc_command cmd;
  575. struct mmc_command stop;
  576. struct mmc_data data;
  577. struct scatterlist sg;
  578. memset(&mrq, 0, sizeof(struct mmc_request));
  579. memset(&cmd, 0, sizeof(struct mmc_command));
  580. memset(&data, 0, sizeof(struct mmc_data));
  581. memset(&stop, 0, sizeof(struct mmc_command));
  582. mrq.cmd = &cmd;
  583. mrq.data = &data;
  584. mrq.stop = &stop;
  585. sg_init_one(&sg, test->buffer, blocks * blksz);
  586. mmc_test_prepare_mrq(test, &mrq, &sg, 1, 0, blocks, blksz, write);
  587. mmc_test_prepare_broken_mrq(test, &mrq, write);
  588. mmc_wait_for_req(test->card->host, &mrq);
  589. mmc_test_wait_busy(test);
  590. return mmc_test_check_broken_result(test, &mrq);
  591. }
  592. /*
  593. * Does a complete transfer test where data is also validated
  594. *
  595. * Note: mmc_test_prepare() must have been done before this call
  596. */
  597. static int mmc_test_transfer(struct mmc_test_card *test,
  598. struct scatterlist *sg, unsigned sg_len, unsigned dev_addr,
  599. unsigned blocks, unsigned blksz, int write)
  600. {
  601. int ret, i;
  602. unsigned long flags;
  603. if (write) {
  604. for (i = 0;i < blocks * blksz;i++)
  605. test->scratch[i] = i;
  606. } else {
  607. memset(test->scratch, 0, BUFFER_SIZE);
  608. }
  609. local_irq_save(flags);
  610. sg_copy_from_buffer(sg, sg_len, test->scratch, BUFFER_SIZE);
  611. local_irq_restore(flags);
  612. ret = mmc_test_set_blksize(test, blksz);
  613. if (ret)
  614. return ret;
  615. ret = mmc_test_simple_transfer(test, sg, sg_len, dev_addr,
  616. blocks, blksz, write);
  617. if (ret)
  618. return ret;
  619. if (write) {
  620. int sectors;
  621. ret = mmc_test_set_blksize(test, 512);
  622. if (ret)
  623. return ret;
  624. sectors = (blocks * blksz + 511) / 512;
  625. if ((sectors * 512) == (blocks * blksz))
  626. sectors++;
  627. if ((sectors * 512) > BUFFER_SIZE)
  628. return -EINVAL;
  629. memset(test->buffer, 0, sectors * 512);
  630. for (i = 0;i < sectors;i++) {
  631. ret = mmc_test_buffer_transfer(test,
  632. test->buffer + i * 512,
  633. dev_addr + i, 512, 0);
  634. if (ret)
  635. return ret;
  636. }
  637. for (i = 0;i < blocks * blksz;i++) {
  638. if (test->buffer[i] != (u8)i)
  639. return RESULT_FAIL;
  640. }
  641. for (;i < sectors * 512;i++) {
  642. if (test->buffer[i] != 0xDF)
  643. return RESULT_FAIL;
  644. }
  645. } else {
  646. local_irq_save(flags);
  647. sg_copy_to_buffer(sg, sg_len, test->scratch, BUFFER_SIZE);
  648. local_irq_restore(flags);
  649. for (i = 0;i < blocks * blksz;i++) {
  650. if (test->scratch[i] != (u8)i)
  651. return RESULT_FAIL;
  652. }
  653. }
  654. return 0;
  655. }
  656. /*******************************************************************/
  657. /* Tests */
  658. /*******************************************************************/
  659. struct mmc_test_case {
  660. const char *name;
  661. int (*prepare)(struct mmc_test_card *);
  662. int (*run)(struct mmc_test_card *);
  663. int (*cleanup)(struct mmc_test_card *);
  664. };
  665. static int mmc_test_basic_write(struct mmc_test_card *test)
  666. {
  667. int ret;
  668. struct scatterlist sg;
  669. ret = mmc_test_set_blksize(test, 512);
  670. if (ret)
  671. return ret;
  672. sg_init_one(&sg, test->buffer, 512);
  673. ret = mmc_test_simple_transfer(test, &sg, 1, 0, 1, 512, 1);
  674. if (ret)
  675. return ret;
  676. return 0;
  677. }
  678. static int mmc_test_basic_read(struct mmc_test_card *test)
  679. {
  680. int ret;
  681. struct scatterlist sg;
  682. ret = mmc_test_set_blksize(test, 512);
  683. if (ret)
  684. return ret;
  685. sg_init_one(&sg, test->buffer, 512);
  686. ret = mmc_test_simple_transfer(test, &sg, 1, 0, 1, 512, 0);
  687. if (ret)
  688. return ret;
  689. return 0;
  690. }
  691. static int mmc_test_verify_write(struct mmc_test_card *test)
  692. {
  693. int ret;
  694. struct scatterlist sg;
  695. sg_init_one(&sg, test->buffer, 512);
  696. ret = mmc_test_transfer(test, &sg, 1, 0, 1, 512, 1);
  697. if (ret)
  698. return ret;
  699. return 0;
  700. }
  701. static int mmc_test_verify_read(struct mmc_test_card *test)
  702. {
  703. int ret;
  704. struct scatterlist sg;
  705. sg_init_one(&sg, test->buffer, 512);
  706. ret = mmc_test_transfer(test, &sg, 1, 0, 1, 512, 0);
  707. if (ret)
  708. return ret;
  709. return 0;
  710. }
  711. static int mmc_test_multi_write(struct mmc_test_card *test)
  712. {
  713. int ret;
  714. unsigned int size;
  715. struct scatterlist sg;
  716. if (test->card->host->max_blk_count == 1)
  717. return RESULT_UNSUP_HOST;
  718. size = PAGE_SIZE * 2;
  719. size = min(size, test->card->host->max_req_size);
  720. size = min(size, test->card->host->max_seg_size);
  721. size = min(size, test->card->host->max_blk_count * 512);
  722. if (size < 1024)
  723. return RESULT_UNSUP_HOST;
  724. sg_init_one(&sg, test->buffer, size);
  725. ret = mmc_test_transfer(test, &sg, 1, 0, size/512, 512, 1);
  726. if (ret)
  727. return ret;
  728. return 0;
  729. }
  730. static int mmc_test_multi_read(struct mmc_test_card *test)
  731. {
  732. int ret;
  733. unsigned int size;
  734. struct scatterlist sg;
  735. if (test->card->host->max_blk_count == 1)
  736. return RESULT_UNSUP_HOST;
  737. size = PAGE_SIZE * 2;
  738. size = min(size, test->card->host->max_req_size);
  739. size = min(size, test->card->host->max_seg_size);
  740. size = min(size, test->card->host->max_blk_count * 512);
  741. if (size < 1024)
  742. return RESULT_UNSUP_HOST;
  743. sg_init_one(&sg, test->buffer, size);
  744. ret = mmc_test_transfer(test, &sg, 1, 0, size/512, 512, 0);
  745. if (ret)
  746. return ret;
  747. return 0;
  748. }
  749. static int mmc_test_pow2_write(struct mmc_test_card *test)
  750. {
  751. int ret, i;
  752. struct scatterlist sg;
  753. if (!test->card->csd.write_partial)
  754. return RESULT_UNSUP_CARD;
  755. for (i = 1; i < 512;i <<= 1) {
  756. sg_init_one(&sg, test->buffer, i);
  757. ret = mmc_test_transfer(test, &sg, 1, 0, 1, i, 1);
  758. if (ret)
  759. return ret;
  760. }
  761. return 0;
  762. }
  763. static int mmc_test_pow2_read(struct mmc_test_card *test)
  764. {
  765. int ret, i;
  766. struct scatterlist sg;
  767. if (!test->card->csd.read_partial)
  768. return RESULT_UNSUP_CARD;
  769. for (i = 1; i < 512;i <<= 1) {
  770. sg_init_one(&sg, test->buffer, i);
  771. ret = mmc_test_transfer(test, &sg, 1, 0, 1, i, 0);
  772. if (ret)
  773. return ret;
  774. }
  775. return 0;
  776. }
  777. static int mmc_test_weird_write(struct mmc_test_card *test)
  778. {
  779. int ret, i;
  780. struct scatterlist sg;
  781. if (!test->card->csd.write_partial)
  782. return RESULT_UNSUP_CARD;
  783. for (i = 3; i < 512;i += 7) {
  784. sg_init_one(&sg, test->buffer, i);
  785. ret = mmc_test_transfer(test, &sg, 1, 0, 1, i, 1);
  786. if (ret)
  787. return ret;
  788. }
  789. return 0;
  790. }
  791. static int mmc_test_weird_read(struct mmc_test_card *test)
  792. {
  793. int ret, i;
  794. struct scatterlist sg;
  795. if (!test->card->csd.read_partial)
  796. return RESULT_UNSUP_CARD;
  797. for (i = 3; i < 512;i += 7) {
  798. sg_init_one(&sg, test->buffer, i);
  799. ret = mmc_test_transfer(test, &sg, 1, 0, 1, i, 0);
  800. if (ret)
  801. return ret;
  802. }
  803. return 0;
  804. }
  805. static int mmc_test_align_write(struct mmc_test_card *test)
  806. {
  807. int ret, i;
  808. struct scatterlist sg;
  809. for (i = 1;i < 4;i++) {
  810. sg_init_one(&sg, test->buffer + i, 512);
  811. ret = mmc_test_transfer(test, &sg, 1, 0, 1, 512, 1);
  812. if (ret)
  813. return ret;
  814. }
  815. return 0;
  816. }
  817. static int mmc_test_align_read(struct mmc_test_card *test)
  818. {
  819. int ret, i;
  820. struct scatterlist sg;
  821. for (i = 1;i < 4;i++) {
  822. sg_init_one(&sg, test->buffer + i, 512);
  823. ret = mmc_test_transfer(test, &sg, 1, 0, 1, 512, 0);
  824. if (ret)
  825. return ret;
  826. }
  827. return 0;
  828. }
  829. static int mmc_test_align_multi_write(struct mmc_test_card *test)
  830. {
  831. int ret, i;
  832. unsigned int size;
  833. struct scatterlist sg;
  834. if (test->card->host->max_blk_count == 1)
  835. return RESULT_UNSUP_HOST;
  836. size = PAGE_SIZE * 2;
  837. size = min(size, test->card->host->max_req_size);
  838. size = min(size, test->card->host->max_seg_size);
  839. size = min(size, test->card->host->max_blk_count * 512);
  840. if (size < 1024)
  841. return RESULT_UNSUP_HOST;
  842. for (i = 1;i < 4;i++) {
  843. sg_init_one(&sg, test->buffer + i, size);
  844. ret = mmc_test_transfer(test, &sg, 1, 0, size/512, 512, 1);
  845. if (ret)
  846. return ret;
  847. }
  848. return 0;
  849. }
  850. static int mmc_test_align_multi_read(struct mmc_test_card *test)
  851. {
  852. int ret, i;
  853. unsigned int size;
  854. struct scatterlist sg;
  855. if (test->card->host->max_blk_count == 1)
  856. return RESULT_UNSUP_HOST;
  857. size = PAGE_SIZE * 2;
  858. size = min(size, test->card->host->max_req_size);
  859. size = min(size, test->card->host->max_seg_size);
  860. size = min(size, test->card->host->max_blk_count * 512);
  861. if (size < 1024)
  862. return RESULT_UNSUP_HOST;
  863. for (i = 1;i < 4;i++) {
  864. sg_init_one(&sg, test->buffer + i, size);
  865. ret = mmc_test_transfer(test, &sg, 1, 0, size/512, 512, 0);
  866. if (ret)
  867. return ret;
  868. }
  869. return 0;
  870. }
  871. static int mmc_test_xfersize_write(struct mmc_test_card *test)
  872. {
  873. int ret;
  874. ret = mmc_test_set_blksize(test, 512);
  875. if (ret)
  876. return ret;
  877. ret = mmc_test_broken_transfer(test, 1, 512, 1);
  878. if (ret)
  879. return ret;
  880. return 0;
  881. }
  882. static int mmc_test_xfersize_read(struct mmc_test_card *test)
  883. {
  884. int ret;
  885. ret = mmc_test_set_blksize(test, 512);
  886. if (ret)
  887. return ret;
  888. ret = mmc_test_broken_transfer(test, 1, 512, 0);
  889. if (ret)
  890. return ret;
  891. return 0;
  892. }
  893. static int mmc_test_multi_xfersize_write(struct mmc_test_card *test)
  894. {
  895. int ret;
  896. if (test->card->host->max_blk_count == 1)
  897. return RESULT_UNSUP_HOST;
  898. ret = mmc_test_set_blksize(test, 512);
  899. if (ret)
  900. return ret;
  901. ret = mmc_test_broken_transfer(test, 2, 512, 1);
  902. if (ret)
  903. return ret;
  904. return 0;
  905. }
  906. static int mmc_test_multi_xfersize_read(struct mmc_test_card *test)
  907. {
  908. int ret;
  909. if (test->card->host->max_blk_count == 1)
  910. return RESULT_UNSUP_HOST;
  911. ret = mmc_test_set_blksize(test, 512);
  912. if (ret)
  913. return ret;
  914. ret = mmc_test_broken_transfer(test, 2, 512, 0);
  915. if (ret)
  916. return ret;
  917. return 0;
  918. }
  919. #ifdef CONFIG_HIGHMEM
  920. static int mmc_test_write_high(struct mmc_test_card *test)
  921. {
  922. int ret;
  923. struct scatterlist sg;
  924. sg_init_table(&sg, 1);
  925. sg_set_page(&sg, test->highmem, 512, 0);
  926. ret = mmc_test_transfer(test, &sg, 1, 0, 1, 512, 1);
  927. if (ret)
  928. return ret;
  929. return 0;
  930. }
  931. static int mmc_test_read_high(struct mmc_test_card *test)
  932. {
  933. int ret;
  934. struct scatterlist sg;
  935. sg_init_table(&sg, 1);
  936. sg_set_page(&sg, test->highmem, 512, 0);
  937. ret = mmc_test_transfer(test, &sg, 1, 0, 1, 512, 0);
  938. if (ret)
  939. return ret;
  940. return 0;
  941. }
  942. static int mmc_test_multi_write_high(struct mmc_test_card *test)
  943. {
  944. int ret;
  945. unsigned int size;
  946. struct scatterlist sg;
  947. if (test->card->host->max_blk_count == 1)
  948. return RESULT_UNSUP_HOST;
  949. size = PAGE_SIZE * 2;
  950. size = min(size, test->card->host->max_req_size);
  951. size = min(size, test->card->host->max_seg_size);
  952. size = min(size, test->card->host->max_blk_count * 512);
  953. if (size < 1024)
  954. return RESULT_UNSUP_HOST;
  955. sg_init_table(&sg, 1);
  956. sg_set_page(&sg, test->highmem, size, 0);
  957. ret = mmc_test_transfer(test, &sg, 1, 0, size/512, 512, 1);
  958. if (ret)
  959. return ret;
  960. return 0;
  961. }
  962. static int mmc_test_multi_read_high(struct mmc_test_card *test)
  963. {
  964. int ret;
  965. unsigned int size;
  966. struct scatterlist sg;
  967. if (test->card->host->max_blk_count == 1)
  968. return RESULT_UNSUP_HOST;
  969. size = PAGE_SIZE * 2;
  970. size = min(size, test->card->host->max_req_size);
  971. size = min(size, test->card->host->max_seg_size);
  972. size = min(size, test->card->host->max_blk_count * 512);
  973. if (size < 1024)
  974. return RESULT_UNSUP_HOST;
  975. sg_init_table(&sg, 1);
  976. sg_set_page(&sg, test->highmem, size, 0);
  977. ret = mmc_test_transfer(test, &sg, 1, 0, size/512, 512, 0);
  978. if (ret)
  979. return ret;
  980. return 0;
  981. }
  982. #else
  983. static int mmc_test_no_highmem(struct mmc_test_card *test)
  984. {
  985. printk(KERN_INFO "%s: Highmem not configured - test skipped\n",
  986. mmc_hostname(test->card->host));
  987. return 0;
  988. }
  989. #endif /* CONFIG_HIGHMEM */
  990. /*
  991. * Map sz bytes so that it can be transferred.
  992. */
  993. static int mmc_test_area_map(struct mmc_test_card *test, unsigned long sz,
  994. int max_scatter)
  995. {
  996. struct mmc_test_area *t = &test->area;
  997. int err;
  998. t->blocks = sz >> 9;
  999. if (max_scatter) {
  1000. err = mmc_test_map_sg_max_scatter(t->mem, sz, t->sg,
  1001. t->max_segs, t->max_seg_sz,
  1002. &t->sg_len);
  1003. } else {
  1004. err = mmc_test_map_sg(t->mem, sz, t->sg, 1, t->max_segs,
  1005. t->max_seg_sz, &t->sg_len);
  1006. }
  1007. if (err)
  1008. printk(KERN_INFO "%s: Failed to map sg list\n",
  1009. mmc_hostname(test->card->host));
  1010. return err;
  1011. }
  1012. /*
  1013. * Transfer bytes mapped by mmc_test_area_map().
  1014. */
  1015. static int mmc_test_area_transfer(struct mmc_test_card *test,
  1016. unsigned int dev_addr, int write)
  1017. {
  1018. struct mmc_test_area *t = &test->area;
  1019. return mmc_test_simple_transfer(test, t->sg, t->sg_len, dev_addr,
  1020. t->blocks, 512, write);
  1021. }
  1022. /*
  1023. * Map and transfer bytes.
  1024. */
  1025. static int mmc_test_area_io(struct mmc_test_card *test, unsigned long sz,
  1026. unsigned int dev_addr, int write, int max_scatter,
  1027. int timed)
  1028. {
  1029. struct timespec ts1, ts2;
  1030. int ret;
  1031. /*
  1032. * In the case of a maximally scattered transfer, the maximum transfer
  1033. * size is further limited by using PAGE_SIZE segments.
  1034. */
  1035. if (max_scatter) {
  1036. struct mmc_test_area *t = &test->area;
  1037. unsigned long max_tfr;
  1038. if (t->max_seg_sz >= PAGE_SIZE)
  1039. max_tfr = t->max_segs * PAGE_SIZE;
  1040. else
  1041. max_tfr = t->max_segs * t->max_seg_sz;
  1042. if (sz > max_tfr)
  1043. sz = max_tfr;
  1044. }
  1045. ret = mmc_test_area_map(test, sz, max_scatter);
  1046. if (ret)
  1047. return ret;
  1048. if (timed)
  1049. getnstimeofday(&ts1);
  1050. ret = mmc_test_area_transfer(test, dev_addr, write);
  1051. if (ret)
  1052. return ret;
  1053. if (timed)
  1054. getnstimeofday(&ts2);
  1055. if (timed)
  1056. mmc_test_print_rate(test, sz, &ts1, &ts2);
  1057. return 0;
  1058. }
  1059. /*
  1060. * Write the test area entirely.
  1061. */
  1062. static int mmc_test_area_fill(struct mmc_test_card *test)
  1063. {
  1064. return mmc_test_area_io(test, test->area.max_tfr, test->area.dev_addr,
  1065. 1, 0, 0);
  1066. }
  1067. /*
  1068. * Erase the test area entirely.
  1069. */
  1070. static int mmc_test_area_erase(struct mmc_test_card *test)
  1071. {
  1072. struct mmc_test_area *t = &test->area;
  1073. if (!mmc_can_erase(test->card))
  1074. return 0;
  1075. return mmc_erase(test->card, t->dev_addr, test->area.max_sz >> 9,
  1076. MMC_ERASE_ARG);
  1077. }
  1078. /*
  1079. * Cleanup struct mmc_test_area.
  1080. */
  1081. static int mmc_test_area_cleanup(struct mmc_test_card *test)
  1082. {
  1083. struct mmc_test_area *t = &test->area;
  1084. kfree(t->sg);
  1085. mmc_test_free_mem(t->mem);
  1086. return 0;
  1087. }
  1088. /*
  1089. * Initialize an area for testing large transfers. The size of the area is the
  1090. * preferred erase size which is a good size for optimal transfer speed. Note
  1091. * that is typically 4MiB for modern cards. The test area is set to the middle
  1092. * of the card because cards may have different charateristics at the front
  1093. * (for FAT file system optimization). Optionally, the area is erased (if the
  1094. * card supports it) which may improve write performance. Optionally, the area
  1095. * is filled with data for subsequent read tests.
  1096. */
  1097. static int mmc_test_area_init(struct mmc_test_card *test, int erase, int fill)
  1098. {
  1099. struct mmc_test_area *t = &test->area;
  1100. unsigned long min_sz = 64 * 1024;
  1101. int ret;
  1102. ret = mmc_test_set_blksize(test, 512);
  1103. if (ret)
  1104. return ret;
  1105. if (test->card->pref_erase > TEST_AREA_MAX_SIZE >> 9)
  1106. t->max_sz = TEST_AREA_MAX_SIZE;
  1107. else
  1108. t->max_sz = (unsigned long)test->card->pref_erase << 9;
  1109. t->max_segs = test->card->host->max_segs;
  1110. t->max_seg_sz = test->card->host->max_seg_size;
  1111. t->max_tfr = t->max_sz;
  1112. if (t->max_tfr >> 9 > test->card->host->max_blk_count)
  1113. t->max_tfr = test->card->host->max_blk_count << 9;
  1114. if (t->max_tfr > test->card->host->max_req_size)
  1115. t->max_tfr = test->card->host->max_req_size;
  1116. if (t->max_tfr / t->max_seg_sz > t->max_segs)
  1117. t->max_tfr = t->max_segs * t->max_seg_sz;
  1118. /*
  1119. * Try to allocate enough memory for the whole area. Less is OK
  1120. * because the same memory can be mapped into the scatterlist more than
  1121. * once. Also, take into account the limits imposed on scatterlist
  1122. * segments by the host driver.
  1123. */
  1124. t->mem = mmc_test_alloc_mem(min_sz, t->max_sz, t->max_segs,
  1125. t->max_seg_sz);
  1126. if (!t->mem)
  1127. return -ENOMEM;
  1128. t->sg = kmalloc(sizeof(struct scatterlist) * t->max_segs, GFP_KERNEL);
  1129. if (!t->sg) {
  1130. ret = -ENOMEM;
  1131. goto out_free;
  1132. }
  1133. t->dev_addr = mmc_test_capacity(test->card) / 2;
  1134. t->dev_addr -= t->dev_addr % (t->max_sz >> 9);
  1135. if (erase) {
  1136. ret = mmc_test_area_erase(test);
  1137. if (ret)
  1138. goto out_free;
  1139. }
  1140. if (fill) {
  1141. ret = mmc_test_area_fill(test);
  1142. if (ret)
  1143. goto out_free;
  1144. }
  1145. return 0;
  1146. out_free:
  1147. mmc_test_area_cleanup(test);
  1148. return ret;
  1149. }
  1150. /*
  1151. * Prepare for large transfers. Do not erase the test area.
  1152. */
  1153. static int mmc_test_area_prepare(struct mmc_test_card *test)
  1154. {
  1155. return mmc_test_area_init(test, 0, 0);
  1156. }
  1157. /*
  1158. * Prepare for large transfers. Do erase the test area.
  1159. */
  1160. static int mmc_test_area_prepare_erase(struct mmc_test_card *test)
  1161. {
  1162. return mmc_test_area_init(test, 1, 0);
  1163. }
  1164. /*
  1165. * Prepare for large transfers. Erase and fill the test area.
  1166. */
  1167. static int mmc_test_area_prepare_fill(struct mmc_test_card *test)
  1168. {
  1169. return mmc_test_area_init(test, 1, 1);
  1170. }
  1171. /*
  1172. * Test best-case performance. Best-case performance is expected from
  1173. * a single large transfer.
  1174. *
  1175. * An additional option (max_scatter) allows the measurement of the same
  1176. * transfer but with no contiguous pages in the scatter list. This tests
  1177. * the efficiency of DMA to handle scattered pages.
  1178. */
  1179. static int mmc_test_best_performance(struct mmc_test_card *test, int write,
  1180. int max_scatter)
  1181. {
  1182. return mmc_test_area_io(test, test->area.max_tfr, test->area.dev_addr,
  1183. write, max_scatter, 1);
  1184. }
  1185. /*
  1186. * Best-case read performance.
  1187. */
  1188. static int mmc_test_best_read_performance(struct mmc_test_card *test)
  1189. {
  1190. return mmc_test_best_performance(test, 0, 0);
  1191. }
  1192. /*
  1193. * Best-case write performance.
  1194. */
  1195. static int mmc_test_best_write_performance(struct mmc_test_card *test)
  1196. {
  1197. return mmc_test_best_performance(test, 1, 0);
  1198. }
  1199. /*
  1200. * Best-case read performance into scattered pages.
  1201. */
  1202. static int mmc_test_best_read_perf_max_scatter(struct mmc_test_card *test)
  1203. {
  1204. return mmc_test_best_performance(test, 0, 1);
  1205. }
  1206. /*
  1207. * Best-case write performance from scattered pages.
  1208. */
  1209. static int mmc_test_best_write_perf_max_scatter(struct mmc_test_card *test)
  1210. {
  1211. return mmc_test_best_performance(test, 1, 1);
  1212. }
  1213. /*
  1214. * Single read performance by transfer size.
  1215. */
  1216. static int mmc_test_profile_read_perf(struct mmc_test_card *test)
  1217. {
  1218. unsigned long sz;
  1219. unsigned int dev_addr;
  1220. int ret;
  1221. for (sz = 512; sz < test->area.max_tfr; sz <<= 1) {
  1222. dev_addr = test->area.dev_addr + (sz >> 9);
  1223. ret = mmc_test_area_io(test, sz, dev_addr, 0, 0, 1);
  1224. if (ret)
  1225. return ret;
  1226. }
  1227. sz = test->area.max_tfr;
  1228. dev_addr = test->area.dev_addr;
  1229. return mmc_test_area_io(test, sz, dev_addr, 0, 0, 1);
  1230. }
  1231. /*
  1232. * Single write performance by transfer size.
  1233. */
  1234. static int mmc_test_profile_write_perf(struct mmc_test_card *test)
  1235. {
  1236. unsigned long sz;
  1237. unsigned int dev_addr;
  1238. int ret;
  1239. ret = mmc_test_area_erase(test);
  1240. if (ret)
  1241. return ret;
  1242. for (sz = 512; sz < test->area.max_tfr; sz <<= 1) {
  1243. dev_addr = test->area.dev_addr + (sz >> 9);
  1244. ret = mmc_test_area_io(test, sz, dev_addr, 1, 0, 1);
  1245. if (ret)
  1246. return ret;
  1247. }
  1248. ret = mmc_test_area_erase(test);
  1249. if (ret)
  1250. return ret;
  1251. sz = test->area.max_tfr;
  1252. dev_addr = test->area.dev_addr;
  1253. return mmc_test_area_io(test, sz, dev_addr, 1, 0, 1);
  1254. }
  1255. /*
  1256. * Single trim performance by transfer size.
  1257. */
  1258. static int mmc_test_profile_trim_perf(struct mmc_test_card *test)
  1259. {
  1260. unsigned long sz;
  1261. unsigned int dev_addr;
  1262. struct timespec ts1, ts2;
  1263. int ret;
  1264. if (!mmc_can_trim(test->card))
  1265. return RESULT_UNSUP_CARD;
  1266. if (!mmc_can_erase(test->card))
  1267. return RESULT_UNSUP_HOST;
  1268. for (sz = 512; sz < test->area.max_sz; sz <<= 1) {
  1269. dev_addr = test->area.dev_addr + (sz >> 9);
  1270. getnstimeofday(&ts1);
  1271. ret = mmc_erase(test->card, dev_addr, sz >> 9, MMC_TRIM_ARG);
  1272. if (ret)
  1273. return ret;
  1274. getnstimeofday(&ts2);
  1275. mmc_test_print_rate(test, sz, &ts1, &ts2);
  1276. }
  1277. dev_addr = test->area.dev_addr;
  1278. getnstimeofday(&ts1);
  1279. ret = mmc_erase(test->card, dev_addr, sz >> 9, MMC_TRIM_ARG);
  1280. if (ret)
  1281. return ret;
  1282. getnstimeofday(&ts2);
  1283. mmc_test_print_rate(test, sz, &ts1, &ts2);
  1284. return 0;
  1285. }
  1286. static int mmc_test_seq_read_perf(struct mmc_test_card *test, unsigned long sz)
  1287. {
  1288. unsigned int dev_addr, i, cnt;
  1289. struct timespec ts1, ts2;
  1290. int ret;
  1291. cnt = test->area.max_sz / sz;
  1292. dev_addr = test->area.dev_addr;
  1293. getnstimeofday(&ts1);
  1294. for (i = 0; i < cnt; i++) {
  1295. ret = mmc_test_area_io(test, sz, dev_addr, 0, 0, 0);
  1296. if (ret)
  1297. return ret;
  1298. dev_addr += (sz >> 9);
  1299. }
  1300. getnstimeofday(&ts2);
  1301. mmc_test_print_avg_rate(test, sz, cnt, &ts1, &ts2);
  1302. return 0;
  1303. }
  1304. /*
  1305. * Consecutive read performance by transfer size.
  1306. */
  1307. static int mmc_test_profile_seq_read_perf(struct mmc_test_card *test)
  1308. {
  1309. unsigned long sz;
  1310. int ret;
  1311. for (sz = 512; sz < test->area.max_tfr; sz <<= 1) {
  1312. ret = mmc_test_seq_read_perf(test, sz);
  1313. if (ret)
  1314. return ret;
  1315. }
  1316. sz = test->area.max_tfr;
  1317. return mmc_test_seq_read_perf(test, sz);
  1318. }
  1319. static int mmc_test_seq_write_perf(struct mmc_test_card *test, unsigned long sz)
  1320. {
  1321. unsigned int dev_addr, i, cnt;
  1322. struct timespec ts1, ts2;
  1323. int ret;
  1324. ret = mmc_test_area_erase(test);
  1325. if (ret)
  1326. return ret;
  1327. cnt = test->area.max_sz / sz;
  1328. dev_addr = test->area.dev_addr;
  1329. getnstimeofday(&ts1);
  1330. for (i = 0; i < cnt; i++) {
  1331. ret = mmc_test_area_io(test, sz, dev_addr, 1, 0, 0);
  1332. if (ret)
  1333. return ret;
  1334. dev_addr += (sz >> 9);
  1335. }
  1336. getnstimeofday(&ts2);
  1337. mmc_test_print_avg_rate(test, sz, cnt, &ts1, &ts2);
  1338. return 0;
  1339. }
  1340. /*
  1341. * Consecutive write performance by transfer size.
  1342. */
  1343. static int mmc_test_profile_seq_write_perf(struct mmc_test_card *test)
  1344. {
  1345. unsigned long sz;
  1346. int ret;
  1347. for (sz = 512; sz < test->area.max_tfr; sz <<= 1) {
  1348. ret = mmc_test_seq_write_perf(test, sz);
  1349. if (ret)
  1350. return ret;
  1351. }
  1352. sz = test->area.max_tfr;
  1353. return mmc_test_seq_write_perf(test, sz);
  1354. }
  1355. /*
  1356. * Consecutive trim performance by transfer size.
  1357. */
  1358. static int mmc_test_profile_seq_trim_perf(struct mmc_test_card *test)
  1359. {
  1360. unsigned long sz;
  1361. unsigned int dev_addr, i, cnt;
  1362. struct timespec ts1, ts2;
  1363. int ret;
  1364. if (!mmc_can_trim(test->card))
  1365. return RESULT_UNSUP_CARD;
  1366. if (!mmc_can_erase(test->card))
  1367. return RESULT_UNSUP_HOST;
  1368. for (sz = 512; sz <= test->area.max_sz; sz <<= 1) {
  1369. ret = mmc_test_area_erase(test);
  1370. if (ret)
  1371. return ret;
  1372. ret = mmc_test_area_fill(test);
  1373. if (ret)
  1374. return ret;
  1375. cnt = test->area.max_sz / sz;
  1376. dev_addr = test->area.dev_addr;
  1377. getnstimeofday(&ts1);
  1378. for (i = 0; i < cnt; i++) {
  1379. ret = mmc_erase(test->card, dev_addr, sz >> 9,
  1380. MMC_TRIM_ARG);
  1381. if (ret)
  1382. return ret;
  1383. dev_addr += (sz >> 9);
  1384. }
  1385. getnstimeofday(&ts2);
  1386. mmc_test_print_avg_rate(test, sz, cnt, &ts1, &ts2);
  1387. }
  1388. return 0;
  1389. }
  1390. static const struct mmc_test_case mmc_test_cases[] = {
  1391. {
  1392. .name = "Basic write (no data verification)",
  1393. .run = mmc_test_basic_write,
  1394. },
  1395. {
  1396. .name = "Basic read (no data verification)",
  1397. .run = mmc_test_basic_read,
  1398. },
  1399. {
  1400. .name = "Basic write (with data verification)",
  1401. .prepare = mmc_test_prepare_write,
  1402. .run = mmc_test_verify_write,
  1403. .cleanup = mmc_test_cleanup,
  1404. },
  1405. {
  1406. .name = "Basic read (with data verification)",
  1407. .prepare = mmc_test_prepare_read,
  1408. .run = mmc_test_verify_read,
  1409. .cleanup = mmc_test_cleanup,
  1410. },
  1411. {
  1412. .name = "Multi-block write",
  1413. .prepare = mmc_test_prepare_write,
  1414. .run = mmc_test_multi_write,
  1415. .cleanup = mmc_test_cleanup,
  1416. },
  1417. {
  1418. .name = "Multi-block read",
  1419. .prepare = mmc_test_prepare_read,
  1420. .run = mmc_test_multi_read,
  1421. .cleanup = mmc_test_cleanup,
  1422. },
  1423. {
  1424. .name = "Power of two block writes",
  1425. .prepare = mmc_test_prepare_write,
  1426. .run = mmc_test_pow2_write,
  1427. .cleanup = mmc_test_cleanup,
  1428. },
  1429. {
  1430. .name = "Power of two block reads",
  1431. .prepare = mmc_test_prepare_read,
  1432. .run = mmc_test_pow2_read,
  1433. .cleanup = mmc_test_cleanup,
  1434. },
  1435. {
  1436. .name = "Weird sized block writes",
  1437. .prepare = mmc_test_prepare_write,
  1438. .run = mmc_test_weird_write,
  1439. .cleanup = mmc_test_cleanup,
  1440. },
  1441. {
  1442. .name = "Weird sized block reads",
  1443. .prepare = mmc_test_prepare_read,
  1444. .run = mmc_test_weird_read,
  1445. .cleanup = mmc_test_cleanup,
  1446. },
  1447. {
  1448. .name = "Badly aligned write",
  1449. .prepare = mmc_test_prepare_write,
  1450. .run = mmc_test_align_write,
  1451. .cleanup = mmc_test_cleanup,
  1452. },
  1453. {
  1454. .name = "Badly aligned read",
  1455. .prepare = mmc_test_prepare_read,
  1456. .run = mmc_test_align_read,
  1457. .cleanup = mmc_test_cleanup,
  1458. },
  1459. {
  1460. .name = "Badly aligned multi-block write",
  1461. .prepare = mmc_test_prepare_write,
  1462. .run = mmc_test_align_multi_write,
  1463. .cleanup = mmc_test_cleanup,
  1464. },
  1465. {
  1466. .name = "Badly aligned multi-block read",
  1467. .prepare = mmc_test_prepare_read,
  1468. .run = mmc_test_align_multi_read,
  1469. .cleanup = mmc_test_cleanup,
  1470. },
  1471. {
  1472. .name = "Correct xfer_size at write (start failure)",
  1473. .run = mmc_test_xfersize_write,
  1474. },
  1475. {
  1476. .name = "Correct xfer_size at read (start failure)",
  1477. .run = mmc_test_xfersize_read,
  1478. },
  1479. {
  1480. .name = "Correct xfer_size at write (midway failure)",
  1481. .run = mmc_test_multi_xfersize_write,
  1482. },
  1483. {
  1484. .name = "Correct xfer_size at read (midway failure)",
  1485. .run = mmc_test_multi_xfersize_read,
  1486. },
  1487. #ifdef CONFIG_HIGHMEM
  1488. {
  1489. .name = "Highmem write",
  1490. .prepare = mmc_test_prepare_write,
  1491. .run = mmc_test_write_high,
  1492. .cleanup = mmc_test_cleanup,
  1493. },
  1494. {
  1495. .name = "Highmem read",
  1496. .prepare = mmc_test_prepare_read,
  1497. .run = mmc_test_read_high,
  1498. .cleanup = mmc_test_cleanup,
  1499. },
  1500. {
  1501. .name = "Multi-block highmem write",
  1502. .prepare = mmc_test_prepare_write,
  1503. .run = mmc_test_multi_write_high,
  1504. .cleanup = mmc_test_cleanup,
  1505. },
  1506. {
  1507. .name = "Multi-block highmem read",
  1508. .prepare = mmc_test_prepare_read,
  1509. .run = mmc_test_multi_read_high,
  1510. .cleanup = mmc_test_cleanup,
  1511. },
  1512. #else
  1513. {
  1514. .name = "Highmem write",
  1515. .run = mmc_test_no_highmem,
  1516. },
  1517. {
  1518. .name = "Highmem read",
  1519. .run = mmc_test_no_highmem,
  1520. },
  1521. {
  1522. .name = "Multi-block highmem write",
  1523. .run = mmc_test_no_highmem,
  1524. },
  1525. {
  1526. .name = "Multi-block highmem read",
  1527. .run = mmc_test_no_highmem,
  1528. },
  1529. #endif /* CONFIG_HIGHMEM */
  1530. {
  1531. .name = "Best-case read performance",
  1532. .prepare = mmc_test_area_prepare_fill,
  1533. .run = mmc_test_best_read_performance,
  1534. .cleanup = mmc_test_area_cleanup,
  1535. },
  1536. {
  1537. .name = "Best-case write performance",
  1538. .prepare = mmc_test_area_prepare_erase,
  1539. .run = mmc_test_best_write_performance,
  1540. .cleanup = mmc_test_area_cleanup,
  1541. },
  1542. {
  1543. .name = "Best-case read performance into scattered pages",
  1544. .prepare = mmc_test_area_prepare_fill,
  1545. .run = mmc_test_best_read_perf_max_scatter,
  1546. .cleanup = mmc_test_area_cleanup,
  1547. },
  1548. {
  1549. .name = "Best-case write performance from scattered pages",
  1550. .prepare = mmc_test_area_prepare_erase,
  1551. .run = mmc_test_best_write_perf_max_scatter,
  1552. .cleanup = mmc_test_area_cleanup,
  1553. },
  1554. {
  1555. .name = "Single read performance by transfer size",
  1556. .prepare = mmc_test_area_prepare_fill,
  1557. .run = mmc_test_profile_read_perf,
  1558. .cleanup = mmc_test_area_cleanup,
  1559. },
  1560. {
  1561. .name = "Single write performance by transfer size",
  1562. .prepare = mmc_test_area_prepare,
  1563. .run = mmc_test_profile_write_perf,
  1564. .cleanup = mmc_test_area_cleanup,
  1565. },
  1566. {
  1567. .name = "Single trim performance by transfer size",
  1568. .prepare = mmc_test_area_prepare_fill,
  1569. .run = mmc_test_profile_trim_perf,
  1570. .cleanup = mmc_test_area_cleanup,
  1571. },
  1572. {
  1573. .name = "Consecutive read performance by transfer size",
  1574. .prepare = mmc_test_area_prepare_fill,
  1575. .run = mmc_test_profile_seq_read_perf,
  1576. .cleanup = mmc_test_area_cleanup,
  1577. },
  1578. {
  1579. .name = "Consecutive write performance by transfer size",
  1580. .prepare = mmc_test_area_prepare,
  1581. .run = mmc_test_profile_seq_write_perf,
  1582. .cleanup = mmc_test_area_cleanup,
  1583. },
  1584. {
  1585. .name = "Consecutive trim performance by transfer size",
  1586. .prepare = mmc_test_area_prepare,
  1587. .run = mmc_test_profile_seq_trim_perf,
  1588. .cleanup = mmc_test_area_cleanup,
  1589. },
  1590. };
  1591. static DEFINE_MUTEX(mmc_test_lock);
  1592. static void mmc_test_run(struct mmc_test_card *test, int testcase)
  1593. {
  1594. int i, ret;
  1595. printk(KERN_INFO "%s: Starting tests of card %s...\n",
  1596. mmc_hostname(test->card->host), mmc_card_id(test->card));
  1597. mmc_claim_host(test->card->host);
  1598. for (i = 0;i < ARRAY_SIZE(mmc_test_cases);i++) {
  1599. if (testcase && ((i + 1) != testcase))
  1600. continue;
  1601. printk(KERN_INFO "%s: Test case %d. %s...\n",
  1602. mmc_hostname(test->card->host), i + 1,
  1603. mmc_test_cases[i].name);
  1604. if (mmc_test_cases[i].prepare) {
  1605. ret = mmc_test_cases[i].prepare(test);
  1606. if (ret) {
  1607. printk(KERN_INFO "%s: Result: Prepare "
  1608. "stage failed! (%d)\n",
  1609. mmc_hostname(test->card->host),
  1610. ret);
  1611. continue;
  1612. }
  1613. }
  1614. ret = mmc_test_cases[i].run(test);
  1615. switch (ret) {
  1616. case RESULT_OK:
  1617. printk(KERN_INFO "%s: Result: OK\n",
  1618. mmc_hostname(test->card->host));
  1619. break;
  1620. case RESULT_FAIL:
  1621. printk(KERN_INFO "%s: Result: FAILED\n",
  1622. mmc_hostname(test->card->host));
  1623. break;
  1624. case RESULT_UNSUP_HOST:
  1625. printk(KERN_INFO "%s: Result: UNSUPPORTED "
  1626. "(by host)\n",
  1627. mmc_hostname(test->card->host));
  1628. break;
  1629. case RESULT_UNSUP_CARD:
  1630. printk(KERN_INFO "%s: Result: UNSUPPORTED "
  1631. "(by card)\n",
  1632. mmc_hostname(test->card->host));
  1633. break;
  1634. default:
  1635. printk(KERN_INFO "%s: Result: ERROR (%d)\n",
  1636. mmc_hostname(test->card->host), ret);
  1637. }
  1638. if (mmc_test_cases[i].cleanup) {
  1639. ret = mmc_test_cases[i].cleanup(test);
  1640. if (ret) {
  1641. printk(KERN_INFO "%s: Warning: Cleanup "
  1642. "stage failed! (%d)\n",
  1643. mmc_hostname(test->card->host),
  1644. ret);
  1645. }
  1646. }
  1647. }
  1648. mmc_release_host(test->card->host);
  1649. printk(KERN_INFO "%s: Tests completed.\n",
  1650. mmc_hostname(test->card->host));
  1651. }
  1652. static ssize_t mmc_test_show(struct device *dev,
  1653. struct device_attribute *attr, char *buf)
  1654. {
  1655. mutex_lock(&mmc_test_lock);
  1656. mutex_unlock(&mmc_test_lock);
  1657. return 0;
  1658. }
  1659. static ssize_t mmc_test_store(struct device *dev,
  1660. struct device_attribute *attr, const char *buf, size_t count)
  1661. {
  1662. struct mmc_card *card = mmc_dev_to_card(dev);
  1663. struct mmc_test_card *test;
  1664. long testcase;
  1665. if (strict_strtol(buf, 10, &testcase))
  1666. return -EINVAL;
  1667. test = kzalloc(sizeof(struct mmc_test_card), GFP_KERNEL);
  1668. if (!test)
  1669. return -ENOMEM;
  1670. test->card = card;
  1671. test->buffer = kzalloc(BUFFER_SIZE, GFP_KERNEL);
  1672. #ifdef CONFIG_HIGHMEM
  1673. test->highmem = alloc_pages(GFP_KERNEL | __GFP_HIGHMEM, BUFFER_ORDER);
  1674. #endif
  1675. #ifdef CONFIG_HIGHMEM
  1676. if (test->buffer && test->highmem) {
  1677. #else
  1678. if (test->buffer) {
  1679. #endif
  1680. mutex_lock(&mmc_test_lock);
  1681. mmc_test_run(test, testcase);
  1682. mutex_unlock(&mmc_test_lock);
  1683. }
  1684. #ifdef CONFIG_HIGHMEM
  1685. __free_pages(test->highmem, BUFFER_ORDER);
  1686. #endif
  1687. kfree(test->buffer);
  1688. kfree(test);
  1689. return count;
  1690. }
  1691. static DEVICE_ATTR(test, S_IWUSR | S_IRUGO, mmc_test_show, mmc_test_store);
  1692. static int mmc_test_probe(struct mmc_card *card)
  1693. {
  1694. int ret;
  1695. if (!mmc_card_mmc(card) && !mmc_card_sd(card))
  1696. return -ENODEV;
  1697. ret = device_create_file(&card->dev, &dev_attr_test);
  1698. if (ret)
  1699. return ret;
  1700. dev_info(&card->dev, "Card claimed for testing.\n");
  1701. return 0;
  1702. }
  1703. static void mmc_test_remove(struct mmc_card *card)
  1704. {
  1705. device_remove_file(&card->dev, &dev_attr_test);
  1706. }
  1707. static struct mmc_driver mmc_driver = {
  1708. .drv = {
  1709. .name = "mmc_test",
  1710. },
  1711. .probe = mmc_test_probe,
  1712. .remove = mmc_test_remove,
  1713. };
  1714. static int __init mmc_test_init(void)
  1715. {
  1716. return mmc_register_driver(&mmc_driver);
  1717. }
  1718. static void __exit mmc_test_exit(void)
  1719. {
  1720. mmc_unregister_driver(&mmc_driver);
  1721. }
  1722. module_init(mmc_test_init);
  1723. module_exit(mmc_test_exit);
  1724. MODULE_LICENSE("GPL");
  1725. MODULE_DESCRIPTION("Multimedia Card (MMC) host test driver");
  1726. MODULE_AUTHOR("Pierre Ossman");