target_core_user.c 63 KB

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  1. /*
  2. * Copyright (C) 2013 Shaohua Li <shli@kernel.org>
  3. * Copyright (C) 2014 Red Hat, Inc.
  4. * Copyright (C) 2015 Arrikto, Inc.
  5. * Copyright (C) 2017 Chinamobile, Inc.
  6. *
  7. * This program is free software; you can redistribute it and/or modify it
  8. * under the terms and conditions of the GNU General Public License,
  9. * version 2, as published by the Free Software Foundation.
  10. *
  11. * This program is distributed in the hope it will be useful, but WITHOUT
  12. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  13. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  14. * more details.
  15. *
  16. * You should have received a copy of the GNU General Public License along with
  17. * this program; if not, write to the Free Software Foundation, Inc.,
  18. * 51 Franklin St - Fifth Floor, Boston, MA 02110-1301 USA.
  19. */
  20. #include <linux/spinlock.h>
  21. #include <linux/module.h>
  22. #include <linux/idr.h>
  23. #include <linux/kernel.h>
  24. #include <linux/timer.h>
  25. #include <linux/parser.h>
  26. #include <linux/vmalloc.h>
  27. #include <linux/uio_driver.h>
  28. #include <linux/radix-tree.h>
  29. #include <linux/stringify.h>
  30. #include <linux/bitops.h>
  31. #include <linux/highmem.h>
  32. #include <linux/configfs.h>
  33. #include <linux/mutex.h>
  34. #include <linux/workqueue.h>
  35. #include <net/genetlink.h>
  36. #include <scsi/scsi_common.h>
  37. #include <scsi/scsi_proto.h>
  38. #include <target/target_core_base.h>
  39. #include <target/target_core_fabric.h>
  40. #include <target/target_core_backend.h>
  41. #include <linux/target_core_user.h>
  42. /*
  43. * Define a shared-memory interface for LIO to pass SCSI commands and
  44. * data to userspace for processing. This is to allow backends that
  45. * are too complex for in-kernel support to be possible.
  46. *
  47. * It uses the UIO framework to do a lot of the device-creation and
  48. * introspection work for us.
  49. *
  50. * See the .h file for how the ring is laid out. Note that while the
  51. * command ring is defined, the particulars of the data area are
  52. * not. Offset values in the command entry point to other locations
  53. * internal to the mmap()ed area. There is separate space outside the
  54. * command ring for data buffers. This leaves maximum flexibility for
  55. * moving buffer allocations, or even page flipping or other
  56. * allocation techniques, without altering the command ring layout.
  57. *
  58. * SECURITY:
  59. * The user process must be assumed to be malicious. There's no way to
  60. * prevent it breaking the command ring protocol if it wants, but in
  61. * order to prevent other issues we must only ever read *data* from
  62. * the shared memory area, not offsets or sizes. This applies to
  63. * command ring entries as well as the mailbox. Extra code needed for
  64. * this may have a 'UAM' comment.
  65. */
  66. #define TCMU_TIME_OUT (30 * MSEC_PER_SEC)
  67. /* For cmd area, the size is fixed 8MB */
  68. #define CMDR_SIZE (8 * 1024 * 1024)
  69. /*
  70. * For data area, the block size is PAGE_SIZE and
  71. * the total size is 256K * PAGE_SIZE.
  72. */
  73. #define DATA_BLOCK_SIZE PAGE_SIZE
  74. #define DATA_BLOCK_SHIFT PAGE_SHIFT
  75. #define DATA_BLOCK_BITS_DEF (256 * 1024)
  76. #define DATA_SIZE (DATA_BLOCK_BITS * DATA_BLOCK_SIZE)
  77. #define TCMU_MBS_TO_BLOCKS(_mbs) (_mbs << (20 - DATA_BLOCK_SHIFT))
  78. #define TCMU_BLOCKS_TO_MBS(_blocks) (_blocks >> (20 - DATA_BLOCK_SHIFT))
  79. /* The total size of the ring is 8M + 256K * PAGE_SIZE */
  80. #define TCMU_RING_SIZE (CMDR_SIZE + DATA_SIZE)
  81. /*
  82. * Default number of global data blocks(512K * PAGE_SIZE)
  83. * when the unmap thread will be started.
  84. */
  85. #define TCMU_GLOBAL_MAX_BLOCKS_DEF (512 * 1024)
  86. static u8 tcmu_kern_cmd_reply_supported;
  87. static struct device *tcmu_root_device;
  88. struct tcmu_hba {
  89. u32 host_id;
  90. };
  91. #define TCMU_CONFIG_LEN 256
  92. struct tcmu_nl_cmd {
  93. /* wake up thread waiting for reply */
  94. struct completion complete;
  95. int cmd;
  96. int status;
  97. };
  98. struct tcmu_dev {
  99. struct list_head node;
  100. struct kref kref;
  101. struct se_device se_dev;
  102. char *name;
  103. struct se_hba *hba;
  104. #define TCMU_DEV_BIT_OPEN 0
  105. #define TCMU_DEV_BIT_BROKEN 1
  106. #define TCMU_DEV_BIT_BLOCKED 2
  107. unsigned long flags;
  108. struct uio_info uio_info;
  109. struct inode *inode;
  110. struct tcmu_mailbox *mb_addr;
  111. size_t dev_size;
  112. u32 cmdr_size;
  113. u32 cmdr_last_cleaned;
  114. /* Offset of data area from start of mb */
  115. /* Must add data_off and mb_addr to get the address */
  116. size_t data_off;
  117. size_t data_size;
  118. uint32_t max_blocks;
  119. size_t ring_size;
  120. struct mutex cmdr_lock;
  121. struct list_head cmdr_queue;
  122. uint32_t dbi_max;
  123. uint32_t dbi_thresh;
  124. unsigned long *data_bitmap;
  125. struct radix_tree_root data_blocks;
  126. struct idr commands;
  127. struct timer_list cmd_timer;
  128. unsigned int cmd_time_out;
  129. struct timer_list qfull_timer;
  130. int qfull_time_out;
  131. struct list_head timedout_entry;
  132. spinlock_t nl_cmd_lock;
  133. struct tcmu_nl_cmd curr_nl_cmd;
  134. /* wake up threads waiting on curr_nl_cmd */
  135. wait_queue_head_t nl_cmd_wq;
  136. char dev_config[TCMU_CONFIG_LEN];
  137. int nl_reply_supported;
  138. };
  139. #define TCMU_DEV(_se_dev) container_of(_se_dev, struct tcmu_dev, se_dev)
  140. #define CMDR_OFF sizeof(struct tcmu_mailbox)
  141. struct tcmu_cmd {
  142. struct se_cmd *se_cmd;
  143. struct tcmu_dev *tcmu_dev;
  144. struct list_head cmdr_queue_entry;
  145. uint16_t cmd_id;
  146. /* Can't use se_cmd when cleaning up expired cmds, because if
  147. cmd has been completed then accessing se_cmd is off limits */
  148. uint32_t dbi_cnt;
  149. uint32_t dbi_cur;
  150. uint32_t *dbi;
  151. unsigned long deadline;
  152. #define TCMU_CMD_BIT_EXPIRED 0
  153. unsigned long flags;
  154. };
  155. /*
  156. * To avoid dead lock the mutex lock order should always be:
  157. *
  158. * mutex_lock(&root_udev_mutex);
  159. * ...
  160. * mutex_lock(&tcmu_dev->cmdr_lock);
  161. * mutex_unlock(&tcmu_dev->cmdr_lock);
  162. * ...
  163. * mutex_unlock(&root_udev_mutex);
  164. */
  165. static DEFINE_MUTEX(root_udev_mutex);
  166. static LIST_HEAD(root_udev);
  167. static DEFINE_SPINLOCK(timed_out_udevs_lock);
  168. static LIST_HEAD(timed_out_udevs);
  169. static struct kmem_cache *tcmu_cmd_cache;
  170. static atomic_t global_db_count = ATOMIC_INIT(0);
  171. static struct delayed_work tcmu_unmap_work;
  172. static int tcmu_global_max_blocks = TCMU_GLOBAL_MAX_BLOCKS_DEF;
  173. static int tcmu_set_global_max_data_area(const char *str,
  174. const struct kernel_param *kp)
  175. {
  176. int ret, max_area_mb;
  177. ret = kstrtoint(str, 10, &max_area_mb);
  178. if (ret)
  179. return -EINVAL;
  180. if (max_area_mb <= 0) {
  181. pr_err("global_max_data_area must be larger than 0.\n");
  182. return -EINVAL;
  183. }
  184. tcmu_global_max_blocks = TCMU_MBS_TO_BLOCKS(max_area_mb);
  185. if (atomic_read(&global_db_count) > tcmu_global_max_blocks)
  186. schedule_delayed_work(&tcmu_unmap_work, 0);
  187. else
  188. cancel_delayed_work_sync(&tcmu_unmap_work);
  189. return 0;
  190. }
  191. static int tcmu_get_global_max_data_area(char *buffer,
  192. const struct kernel_param *kp)
  193. {
  194. return sprintf(buffer, "%d", TCMU_BLOCKS_TO_MBS(tcmu_global_max_blocks));
  195. }
  196. static const struct kernel_param_ops tcmu_global_max_data_area_op = {
  197. .set = tcmu_set_global_max_data_area,
  198. .get = tcmu_get_global_max_data_area,
  199. };
  200. module_param_cb(global_max_data_area_mb, &tcmu_global_max_data_area_op, NULL,
  201. S_IWUSR | S_IRUGO);
  202. MODULE_PARM_DESC(global_max_data_area_mb,
  203. "Max MBs allowed to be allocated to all the tcmu device's "
  204. "data areas.");
  205. /* multicast group */
  206. enum tcmu_multicast_groups {
  207. TCMU_MCGRP_CONFIG,
  208. };
  209. static const struct genl_multicast_group tcmu_mcgrps[] = {
  210. [TCMU_MCGRP_CONFIG] = { .name = "config", },
  211. };
  212. static struct nla_policy tcmu_attr_policy[TCMU_ATTR_MAX+1] = {
  213. [TCMU_ATTR_DEVICE] = { .type = NLA_STRING },
  214. [TCMU_ATTR_MINOR] = { .type = NLA_U32 },
  215. [TCMU_ATTR_CMD_STATUS] = { .type = NLA_S32 },
  216. [TCMU_ATTR_DEVICE_ID] = { .type = NLA_U32 },
  217. [TCMU_ATTR_SUPP_KERN_CMD_REPLY] = { .type = NLA_U8 },
  218. };
  219. static int tcmu_genl_cmd_done(struct genl_info *info, int completed_cmd)
  220. {
  221. struct se_device *dev;
  222. struct tcmu_dev *udev;
  223. struct tcmu_nl_cmd *nl_cmd;
  224. int dev_id, rc, ret = 0;
  225. bool is_removed = (completed_cmd == TCMU_CMD_REMOVED_DEVICE);
  226. if (!info->attrs[TCMU_ATTR_CMD_STATUS] ||
  227. !info->attrs[TCMU_ATTR_DEVICE_ID]) {
  228. printk(KERN_ERR "TCMU_ATTR_CMD_STATUS or TCMU_ATTR_DEVICE_ID not set, doing nothing\n");
  229. return -EINVAL;
  230. }
  231. dev_id = nla_get_u32(info->attrs[TCMU_ATTR_DEVICE_ID]);
  232. rc = nla_get_s32(info->attrs[TCMU_ATTR_CMD_STATUS]);
  233. dev = target_find_device(dev_id, !is_removed);
  234. if (!dev) {
  235. printk(KERN_ERR "tcmu nl cmd %u/%u completion could not find device with dev id %u.\n",
  236. completed_cmd, rc, dev_id);
  237. return -ENODEV;
  238. }
  239. udev = TCMU_DEV(dev);
  240. spin_lock(&udev->nl_cmd_lock);
  241. nl_cmd = &udev->curr_nl_cmd;
  242. pr_debug("genl cmd done got id %d curr %d done %d rc %d\n", dev_id,
  243. nl_cmd->cmd, completed_cmd, rc);
  244. if (nl_cmd->cmd != completed_cmd) {
  245. printk(KERN_ERR "Mismatched commands (Expecting reply for %d. Current %d).\n",
  246. completed_cmd, nl_cmd->cmd);
  247. ret = -EINVAL;
  248. } else {
  249. nl_cmd->status = rc;
  250. }
  251. spin_unlock(&udev->nl_cmd_lock);
  252. if (!is_removed)
  253. target_undepend_item(&dev->dev_group.cg_item);
  254. if (!ret)
  255. complete(&nl_cmd->complete);
  256. return ret;
  257. }
  258. static int tcmu_genl_rm_dev_done(struct sk_buff *skb, struct genl_info *info)
  259. {
  260. return tcmu_genl_cmd_done(info, TCMU_CMD_REMOVED_DEVICE);
  261. }
  262. static int tcmu_genl_add_dev_done(struct sk_buff *skb, struct genl_info *info)
  263. {
  264. return tcmu_genl_cmd_done(info, TCMU_CMD_ADDED_DEVICE);
  265. }
  266. static int tcmu_genl_reconfig_dev_done(struct sk_buff *skb,
  267. struct genl_info *info)
  268. {
  269. return tcmu_genl_cmd_done(info, TCMU_CMD_RECONFIG_DEVICE);
  270. }
  271. static int tcmu_genl_set_features(struct sk_buff *skb, struct genl_info *info)
  272. {
  273. if (info->attrs[TCMU_ATTR_SUPP_KERN_CMD_REPLY]) {
  274. tcmu_kern_cmd_reply_supported =
  275. nla_get_u8(info->attrs[TCMU_ATTR_SUPP_KERN_CMD_REPLY]);
  276. printk(KERN_INFO "tcmu daemon: command reply support %u.\n",
  277. tcmu_kern_cmd_reply_supported);
  278. }
  279. return 0;
  280. }
  281. static const struct genl_ops tcmu_genl_ops[] = {
  282. {
  283. .cmd = TCMU_CMD_SET_FEATURES,
  284. .flags = GENL_ADMIN_PERM,
  285. .policy = tcmu_attr_policy,
  286. .doit = tcmu_genl_set_features,
  287. },
  288. {
  289. .cmd = TCMU_CMD_ADDED_DEVICE_DONE,
  290. .flags = GENL_ADMIN_PERM,
  291. .policy = tcmu_attr_policy,
  292. .doit = tcmu_genl_add_dev_done,
  293. },
  294. {
  295. .cmd = TCMU_CMD_REMOVED_DEVICE_DONE,
  296. .flags = GENL_ADMIN_PERM,
  297. .policy = tcmu_attr_policy,
  298. .doit = tcmu_genl_rm_dev_done,
  299. },
  300. {
  301. .cmd = TCMU_CMD_RECONFIG_DEVICE_DONE,
  302. .flags = GENL_ADMIN_PERM,
  303. .policy = tcmu_attr_policy,
  304. .doit = tcmu_genl_reconfig_dev_done,
  305. },
  306. };
  307. /* Our generic netlink family */
  308. static struct genl_family tcmu_genl_family __ro_after_init = {
  309. .module = THIS_MODULE,
  310. .hdrsize = 0,
  311. .name = "TCM-USER",
  312. .version = 2,
  313. .maxattr = TCMU_ATTR_MAX,
  314. .mcgrps = tcmu_mcgrps,
  315. .n_mcgrps = ARRAY_SIZE(tcmu_mcgrps),
  316. .netnsok = true,
  317. .ops = tcmu_genl_ops,
  318. .n_ops = ARRAY_SIZE(tcmu_genl_ops),
  319. };
  320. #define tcmu_cmd_set_dbi_cur(cmd, index) ((cmd)->dbi_cur = (index))
  321. #define tcmu_cmd_reset_dbi_cur(cmd) tcmu_cmd_set_dbi_cur(cmd, 0)
  322. #define tcmu_cmd_set_dbi(cmd, index) ((cmd)->dbi[(cmd)->dbi_cur++] = (index))
  323. #define tcmu_cmd_get_dbi(cmd) ((cmd)->dbi[(cmd)->dbi_cur++])
  324. static void tcmu_cmd_free_data(struct tcmu_cmd *tcmu_cmd, uint32_t len)
  325. {
  326. struct tcmu_dev *udev = tcmu_cmd->tcmu_dev;
  327. uint32_t i;
  328. for (i = 0; i < len; i++)
  329. clear_bit(tcmu_cmd->dbi[i], udev->data_bitmap);
  330. }
  331. static inline bool tcmu_get_empty_block(struct tcmu_dev *udev,
  332. struct tcmu_cmd *tcmu_cmd)
  333. {
  334. struct page *page;
  335. int ret, dbi;
  336. dbi = find_first_zero_bit(udev->data_bitmap, udev->dbi_thresh);
  337. if (dbi == udev->dbi_thresh)
  338. return false;
  339. page = radix_tree_lookup(&udev->data_blocks, dbi);
  340. if (!page) {
  341. if (atomic_add_return(1, &global_db_count) >
  342. tcmu_global_max_blocks)
  343. schedule_delayed_work(&tcmu_unmap_work, 0);
  344. /* try to get new page from the mm */
  345. page = alloc_page(GFP_KERNEL);
  346. if (!page)
  347. goto err_alloc;
  348. ret = radix_tree_insert(&udev->data_blocks, dbi, page);
  349. if (ret)
  350. goto err_insert;
  351. }
  352. if (dbi > udev->dbi_max)
  353. udev->dbi_max = dbi;
  354. set_bit(dbi, udev->data_bitmap);
  355. tcmu_cmd_set_dbi(tcmu_cmd, dbi);
  356. return true;
  357. err_insert:
  358. __free_page(page);
  359. err_alloc:
  360. atomic_dec(&global_db_count);
  361. return false;
  362. }
  363. static bool tcmu_get_empty_blocks(struct tcmu_dev *udev,
  364. struct tcmu_cmd *tcmu_cmd)
  365. {
  366. int i;
  367. for (i = tcmu_cmd->dbi_cur; i < tcmu_cmd->dbi_cnt; i++) {
  368. if (!tcmu_get_empty_block(udev, tcmu_cmd))
  369. return false;
  370. }
  371. return true;
  372. }
  373. static inline struct page *
  374. tcmu_get_block_page(struct tcmu_dev *udev, uint32_t dbi)
  375. {
  376. return radix_tree_lookup(&udev->data_blocks, dbi);
  377. }
  378. static inline void tcmu_free_cmd(struct tcmu_cmd *tcmu_cmd)
  379. {
  380. kfree(tcmu_cmd->dbi);
  381. kmem_cache_free(tcmu_cmd_cache, tcmu_cmd);
  382. }
  383. static inline size_t tcmu_cmd_get_data_length(struct tcmu_cmd *tcmu_cmd)
  384. {
  385. struct se_cmd *se_cmd = tcmu_cmd->se_cmd;
  386. size_t data_length = round_up(se_cmd->data_length, DATA_BLOCK_SIZE);
  387. if (se_cmd->se_cmd_flags & SCF_BIDI) {
  388. BUG_ON(!(se_cmd->t_bidi_data_sg && se_cmd->t_bidi_data_nents));
  389. data_length += round_up(se_cmd->t_bidi_data_sg->length,
  390. DATA_BLOCK_SIZE);
  391. }
  392. return data_length;
  393. }
  394. static inline uint32_t tcmu_cmd_get_block_cnt(struct tcmu_cmd *tcmu_cmd)
  395. {
  396. size_t data_length = tcmu_cmd_get_data_length(tcmu_cmd);
  397. return data_length / DATA_BLOCK_SIZE;
  398. }
  399. static struct tcmu_cmd *tcmu_alloc_cmd(struct se_cmd *se_cmd)
  400. {
  401. struct se_device *se_dev = se_cmd->se_dev;
  402. struct tcmu_dev *udev = TCMU_DEV(se_dev);
  403. struct tcmu_cmd *tcmu_cmd;
  404. tcmu_cmd = kmem_cache_zalloc(tcmu_cmd_cache, GFP_KERNEL);
  405. if (!tcmu_cmd)
  406. return NULL;
  407. INIT_LIST_HEAD(&tcmu_cmd->cmdr_queue_entry);
  408. tcmu_cmd->se_cmd = se_cmd;
  409. tcmu_cmd->tcmu_dev = udev;
  410. tcmu_cmd_reset_dbi_cur(tcmu_cmd);
  411. tcmu_cmd->dbi_cnt = tcmu_cmd_get_block_cnt(tcmu_cmd);
  412. tcmu_cmd->dbi = kcalloc(tcmu_cmd->dbi_cnt, sizeof(uint32_t),
  413. GFP_KERNEL);
  414. if (!tcmu_cmd->dbi) {
  415. kmem_cache_free(tcmu_cmd_cache, tcmu_cmd);
  416. return NULL;
  417. }
  418. return tcmu_cmd;
  419. }
  420. static inline void tcmu_flush_dcache_range(void *vaddr, size_t size)
  421. {
  422. unsigned long offset = offset_in_page(vaddr);
  423. void *start = vaddr - offset;
  424. size = round_up(size+offset, PAGE_SIZE);
  425. while (size) {
  426. flush_dcache_page(virt_to_page(start));
  427. start += PAGE_SIZE;
  428. size -= PAGE_SIZE;
  429. }
  430. }
  431. /*
  432. * Some ring helper functions. We don't assume size is a power of 2 so
  433. * we can't use circ_buf.h.
  434. */
  435. static inline size_t spc_used(size_t head, size_t tail, size_t size)
  436. {
  437. int diff = head - tail;
  438. if (diff >= 0)
  439. return diff;
  440. else
  441. return size + diff;
  442. }
  443. static inline size_t spc_free(size_t head, size_t tail, size_t size)
  444. {
  445. /* Keep 1 byte unused or we can't tell full from empty */
  446. return (size - spc_used(head, tail, size) - 1);
  447. }
  448. static inline size_t head_to_end(size_t head, size_t size)
  449. {
  450. return size - head;
  451. }
  452. static inline void new_iov(struct iovec **iov, int *iov_cnt)
  453. {
  454. struct iovec *iovec;
  455. if (*iov_cnt != 0)
  456. (*iov)++;
  457. (*iov_cnt)++;
  458. iovec = *iov;
  459. memset(iovec, 0, sizeof(struct iovec));
  460. }
  461. #define UPDATE_HEAD(head, used, size) smp_store_release(&head, ((head % size) + used) % size)
  462. /* offset is relative to mb_addr */
  463. static inline size_t get_block_offset_user(struct tcmu_dev *dev,
  464. int dbi, int remaining)
  465. {
  466. return dev->data_off + dbi * DATA_BLOCK_SIZE +
  467. DATA_BLOCK_SIZE - remaining;
  468. }
  469. static inline size_t iov_tail(struct iovec *iov)
  470. {
  471. return (size_t)iov->iov_base + iov->iov_len;
  472. }
  473. static void scatter_data_area(struct tcmu_dev *udev,
  474. struct tcmu_cmd *tcmu_cmd, struct scatterlist *data_sg,
  475. unsigned int data_nents, struct iovec **iov,
  476. int *iov_cnt, bool copy_data)
  477. {
  478. int i, dbi;
  479. int block_remaining = 0;
  480. void *from, *to = NULL;
  481. size_t copy_bytes, to_offset, offset;
  482. struct scatterlist *sg;
  483. struct page *page;
  484. for_each_sg(data_sg, sg, data_nents, i) {
  485. int sg_remaining = sg->length;
  486. from = kmap_atomic(sg_page(sg)) + sg->offset;
  487. while (sg_remaining > 0) {
  488. if (block_remaining == 0) {
  489. if (to)
  490. kunmap_atomic(to);
  491. block_remaining = DATA_BLOCK_SIZE;
  492. dbi = tcmu_cmd_get_dbi(tcmu_cmd);
  493. page = tcmu_get_block_page(udev, dbi);
  494. to = kmap_atomic(page);
  495. }
  496. /*
  497. * Covert to virtual offset of the ring data area.
  498. */
  499. to_offset = get_block_offset_user(udev, dbi,
  500. block_remaining);
  501. /*
  502. * The following code will gather and map the blocks
  503. * to the same iovec when the blocks are all next to
  504. * each other.
  505. */
  506. copy_bytes = min_t(size_t, sg_remaining,
  507. block_remaining);
  508. if (*iov_cnt != 0 &&
  509. to_offset == iov_tail(*iov)) {
  510. /*
  511. * Will append to the current iovec, because
  512. * the current block page is next to the
  513. * previous one.
  514. */
  515. (*iov)->iov_len += copy_bytes;
  516. } else {
  517. /*
  518. * Will allocate a new iovec because we are
  519. * first time here or the current block page
  520. * is not next to the previous one.
  521. */
  522. new_iov(iov, iov_cnt);
  523. (*iov)->iov_base = (void __user *)to_offset;
  524. (*iov)->iov_len = copy_bytes;
  525. }
  526. if (copy_data) {
  527. offset = DATA_BLOCK_SIZE - block_remaining;
  528. memcpy(to + offset,
  529. from + sg->length - sg_remaining,
  530. copy_bytes);
  531. tcmu_flush_dcache_range(to, copy_bytes);
  532. }
  533. sg_remaining -= copy_bytes;
  534. block_remaining -= copy_bytes;
  535. }
  536. kunmap_atomic(from - sg->offset);
  537. }
  538. if (to)
  539. kunmap_atomic(to);
  540. }
  541. static void gather_data_area(struct tcmu_dev *udev, struct tcmu_cmd *cmd,
  542. bool bidi)
  543. {
  544. struct se_cmd *se_cmd = cmd->se_cmd;
  545. int i, dbi;
  546. int block_remaining = 0;
  547. void *from = NULL, *to;
  548. size_t copy_bytes, offset;
  549. struct scatterlist *sg, *data_sg;
  550. struct page *page;
  551. unsigned int data_nents;
  552. uint32_t count = 0;
  553. if (!bidi) {
  554. data_sg = se_cmd->t_data_sg;
  555. data_nents = se_cmd->t_data_nents;
  556. } else {
  557. /*
  558. * For bidi case, the first count blocks are for Data-Out
  559. * buffer blocks, and before gathering the Data-In buffer
  560. * the Data-Out buffer blocks should be discarded.
  561. */
  562. count = DIV_ROUND_UP(se_cmd->data_length, DATA_BLOCK_SIZE);
  563. data_sg = se_cmd->t_bidi_data_sg;
  564. data_nents = se_cmd->t_bidi_data_nents;
  565. }
  566. tcmu_cmd_set_dbi_cur(cmd, count);
  567. for_each_sg(data_sg, sg, data_nents, i) {
  568. int sg_remaining = sg->length;
  569. to = kmap_atomic(sg_page(sg)) + sg->offset;
  570. while (sg_remaining > 0) {
  571. if (block_remaining == 0) {
  572. if (from)
  573. kunmap_atomic(from);
  574. block_remaining = DATA_BLOCK_SIZE;
  575. dbi = tcmu_cmd_get_dbi(cmd);
  576. page = tcmu_get_block_page(udev, dbi);
  577. from = kmap_atomic(page);
  578. }
  579. copy_bytes = min_t(size_t, sg_remaining,
  580. block_remaining);
  581. offset = DATA_BLOCK_SIZE - block_remaining;
  582. tcmu_flush_dcache_range(from, copy_bytes);
  583. memcpy(to + sg->length - sg_remaining, from + offset,
  584. copy_bytes);
  585. sg_remaining -= copy_bytes;
  586. block_remaining -= copy_bytes;
  587. }
  588. kunmap_atomic(to - sg->offset);
  589. }
  590. if (from)
  591. kunmap_atomic(from);
  592. }
  593. static inline size_t spc_bitmap_free(unsigned long *bitmap, uint32_t thresh)
  594. {
  595. return thresh - bitmap_weight(bitmap, thresh);
  596. }
  597. /*
  598. * We can't queue a command until we have space available on the cmd ring *and*
  599. * space available on the data area.
  600. *
  601. * Called with ring lock held.
  602. */
  603. static bool is_ring_space_avail(struct tcmu_dev *udev, struct tcmu_cmd *cmd,
  604. size_t cmd_size, size_t data_needed)
  605. {
  606. struct tcmu_mailbox *mb = udev->mb_addr;
  607. uint32_t blocks_needed = (data_needed + DATA_BLOCK_SIZE - 1)
  608. / DATA_BLOCK_SIZE;
  609. size_t space, cmd_needed;
  610. u32 cmd_head;
  611. tcmu_flush_dcache_range(mb, sizeof(*mb));
  612. cmd_head = mb->cmd_head % udev->cmdr_size; /* UAM */
  613. /*
  614. * If cmd end-of-ring space is too small then we need space for a NOP plus
  615. * original cmd - cmds are internally contiguous.
  616. */
  617. if (head_to_end(cmd_head, udev->cmdr_size) >= cmd_size)
  618. cmd_needed = cmd_size;
  619. else
  620. cmd_needed = cmd_size + head_to_end(cmd_head, udev->cmdr_size);
  621. space = spc_free(cmd_head, udev->cmdr_last_cleaned, udev->cmdr_size);
  622. if (space < cmd_needed) {
  623. pr_debug("no cmd space: %u %u %u\n", cmd_head,
  624. udev->cmdr_last_cleaned, udev->cmdr_size);
  625. return false;
  626. }
  627. /* try to check and get the data blocks as needed */
  628. space = spc_bitmap_free(udev->data_bitmap, udev->dbi_thresh);
  629. if ((space * DATA_BLOCK_SIZE) < data_needed) {
  630. unsigned long blocks_left =
  631. (udev->max_blocks - udev->dbi_thresh) + space;
  632. if (blocks_left < blocks_needed) {
  633. pr_debug("no data space: only %lu available, but ask for %zu\n",
  634. blocks_left * DATA_BLOCK_SIZE,
  635. data_needed);
  636. return false;
  637. }
  638. udev->dbi_thresh += blocks_needed;
  639. if (udev->dbi_thresh > udev->max_blocks)
  640. udev->dbi_thresh = udev->max_blocks;
  641. }
  642. return tcmu_get_empty_blocks(udev, cmd);
  643. }
  644. static inline size_t tcmu_cmd_get_base_cmd_size(size_t iov_cnt)
  645. {
  646. return max(offsetof(struct tcmu_cmd_entry, req.iov[iov_cnt]),
  647. sizeof(struct tcmu_cmd_entry));
  648. }
  649. static inline size_t tcmu_cmd_get_cmd_size(struct tcmu_cmd *tcmu_cmd,
  650. size_t base_command_size)
  651. {
  652. struct se_cmd *se_cmd = tcmu_cmd->se_cmd;
  653. size_t command_size;
  654. command_size = base_command_size +
  655. round_up(scsi_command_size(se_cmd->t_task_cdb),
  656. TCMU_OP_ALIGN_SIZE);
  657. WARN_ON(command_size & (TCMU_OP_ALIGN_SIZE-1));
  658. return command_size;
  659. }
  660. static int tcmu_setup_cmd_timer(struct tcmu_cmd *tcmu_cmd, unsigned int tmo,
  661. struct timer_list *timer)
  662. {
  663. struct tcmu_dev *udev = tcmu_cmd->tcmu_dev;
  664. int cmd_id;
  665. if (tcmu_cmd->cmd_id)
  666. goto setup_timer;
  667. cmd_id = idr_alloc(&udev->commands, tcmu_cmd, 1, USHRT_MAX, GFP_NOWAIT);
  668. if (cmd_id < 0) {
  669. pr_err("tcmu: Could not allocate cmd id.\n");
  670. return cmd_id;
  671. }
  672. tcmu_cmd->cmd_id = cmd_id;
  673. pr_debug("allocated cmd %u for dev %s tmo %lu\n", tcmu_cmd->cmd_id,
  674. udev->name, tmo / MSEC_PER_SEC);
  675. setup_timer:
  676. if (!tmo)
  677. return 0;
  678. tcmu_cmd->deadline = round_jiffies_up(jiffies + msecs_to_jiffies(tmo));
  679. mod_timer(timer, tcmu_cmd->deadline);
  680. return 0;
  681. }
  682. static int add_to_cmdr_queue(struct tcmu_cmd *tcmu_cmd)
  683. {
  684. struct tcmu_dev *udev = tcmu_cmd->tcmu_dev;
  685. unsigned int tmo;
  686. int ret;
  687. /*
  688. * For backwards compat if qfull_time_out is not set use
  689. * cmd_time_out and if that's not set use the default time out.
  690. */
  691. if (!udev->qfull_time_out)
  692. return -ETIMEDOUT;
  693. else if (udev->qfull_time_out > 0)
  694. tmo = udev->qfull_time_out;
  695. else if (udev->cmd_time_out)
  696. tmo = udev->cmd_time_out;
  697. else
  698. tmo = TCMU_TIME_OUT;
  699. ret = tcmu_setup_cmd_timer(tcmu_cmd, tmo, &udev->qfull_timer);
  700. if (ret)
  701. return ret;
  702. list_add_tail(&tcmu_cmd->cmdr_queue_entry, &udev->cmdr_queue);
  703. pr_debug("adding cmd %u on dev %s to ring space wait queue\n",
  704. tcmu_cmd->cmd_id, udev->name);
  705. return 0;
  706. }
  707. /**
  708. * queue_cmd_ring - queue cmd to ring or internally
  709. * @tcmu_cmd: cmd to queue
  710. * @scsi_err: TCM error code if failure (-1) returned.
  711. *
  712. * Returns:
  713. * -1 we cannot queue internally or to the ring.
  714. * 0 success
  715. * 1 internally queued to wait for ring memory to free.
  716. */
  717. static sense_reason_t queue_cmd_ring(struct tcmu_cmd *tcmu_cmd, int *scsi_err)
  718. {
  719. struct tcmu_dev *udev = tcmu_cmd->tcmu_dev;
  720. struct se_cmd *se_cmd = tcmu_cmd->se_cmd;
  721. size_t base_command_size, command_size;
  722. struct tcmu_mailbox *mb;
  723. struct tcmu_cmd_entry *entry;
  724. struct iovec *iov;
  725. int iov_cnt, ret;
  726. uint32_t cmd_head;
  727. uint64_t cdb_off;
  728. bool copy_to_data_area;
  729. size_t data_length = tcmu_cmd_get_data_length(tcmu_cmd);
  730. *scsi_err = TCM_NO_SENSE;
  731. if (test_bit(TCMU_DEV_BIT_BLOCKED, &udev->flags)) {
  732. *scsi_err = TCM_LUN_BUSY;
  733. return -1;
  734. }
  735. if (test_bit(TCMU_DEV_BIT_BROKEN, &udev->flags)) {
  736. *scsi_err = TCM_LOGICAL_UNIT_COMMUNICATION_FAILURE;
  737. return -1;
  738. }
  739. /*
  740. * Must be a certain minimum size for response sense info, but
  741. * also may be larger if the iov array is large.
  742. *
  743. * We prepare as many iovs as possbile for potential uses here,
  744. * because it's expensive to tell how many regions are freed in
  745. * the bitmap & global data pool, as the size calculated here
  746. * will only be used to do the checks.
  747. *
  748. * The size will be recalculated later as actually needed to save
  749. * cmd area memories.
  750. */
  751. base_command_size = tcmu_cmd_get_base_cmd_size(tcmu_cmd->dbi_cnt);
  752. command_size = tcmu_cmd_get_cmd_size(tcmu_cmd, base_command_size);
  753. if (!list_empty(&udev->cmdr_queue))
  754. goto queue;
  755. mb = udev->mb_addr;
  756. cmd_head = mb->cmd_head % udev->cmdr_size; /* UAM */
  757. if ((command_size > (udev->cmdr_size / 2)) ||
  758. data_length > udev->data_size) {
  759. pr_warn("TCMU: Request of size %zu/%zu is too big for %u/%zu "
  760. "cmd ring/data area\n", command_size, data_length,
  761. udev->cmdr_size, udev->data_size);
  762. *scsi_err = TCM_INVALID_CDB_FIELD;
  763. return -1;
  764. }
  765. if (!is_ring_space_avail(udev, tcmu_cmd, command_size, data_length)) {
  766. /*
  767. * Don't leave commands partially setup because the unmap
  768. * thread might need the blocks to make forward progress.
  769. */
  770. tcmu_cmd_free_data(tcmu_cmd, tcmu_cmd->dbi_cur);
  771. tcmu_cmd_reset_dbi_cur(tcmu_cmd);
  772. goto queue;
  773. }
  774. /* Insert a PAD if end-of-ring space is too small */
  775. if (head_to_end(cmd_head, udev->cmdr_size) < command_size) {
  776. size_t pad_size = head_to_end(cmd_head, udev->cmdr_size);
  777. entry = (void *) mb + CMDR_OFF + cmd_head;
  778. tcmu_hdr_set_op(&entry->hdr.len_op, TCMU_OP_PAD);
  779. tcmu_hdr_set_len(&entry->hdr.len_op, pad_size);
  780. entry->hdr.cmd_id = 0; /* not used for PAD */
  781. entry->hdr.kflags = 0;
  782. entry->hdr.uflags = 0;
  783. tcmu_flush_dcache_range(entry, sizeof(*entry));
  784. UPDATE_HEAD(mb->cmd_head, pad_size, udev->cmdr_size);
  785. tcmu_flush_dcache_range(mb, sizeof(*mb));
  786. cmd_head = mb->cmd_head % udev->cmdr_size; /* UAM */
  787. WARN_ON(cmd_head != 0);
  788. }
  789. entry = (void *) mb + CMDR_OFF + cmd_head;
  790. memset(entry, 0, command_size);
  791. tcmu_hdr_set_op(&entry->hdr.len_op, TCMU_OP_CMD);
  792. /* Handle allocating space from the data area */
  793. tcmu_cmd_reset_dbi_cur(tcmu_cmd);
  794. iov = &entry->req.iov[0];
  795. iov_cnt = 0;
  796. copy_to_data_area = (se_cmd->data_direction == DMA_TO_DEVICE
  797. || se_cmd->se_cmd_flags & SCF_BIDI);
  798. scatter_data_area(udev, tcmu_cmd, se_cmd->t_data_sg,
  799. se_cmd->t_data_nents, &iov, &iov_cnt,
  800. copy_to_data_area);
  801. entry->req.iov_cnt = iov_cnt;
  802. /* Handle BIDI commands */
  803. iov_cnt = 0;
  804. if (se_cmd->se_cmd_flags & SCF_BIDI) {
  805. iov++;
  806. scatter_data_area(udev, tcmu_cmd, se_cmd->t_bidi_data_sg,
  807. se_cmd->t_bidi_data_nents, &iov, &iov_cnt,
  808. false);
  809. }
  810. entry->req.iov_bidi_cnt = iov_cnt;
  811. ret = tcmu_setup_cmd_timer(tcmu_cmd, udev->cmd_time_out,
  812. &udev->cmd_timer);
  813. if (ret) {
  814. tcmu_cmd_free_data(tcmu_cmd, tcmu_cmd->dbi_cnt);
  815. mutex_unlock(&udev->cmdr_lock);
  816. *scsi_err = TCM_OUT_OF_RESOURCES;
  817. return -1;
  818. }
  819. entry->hdr.cmd_id = tcmu_cmd->cmd_id;
  820. /*
  821. * Recalaulate the command's base size and size according
  822. * to the actual needs
  823. */
  824. base_command_size = tcmu_cmd_get_base_cmd_size(entry->req.iov_cnt +
  825. entry->req.iov_bidi_cnt);
  826. command_size = tcmu_cmd_get_cmd_size(tcmu_cmd, base_command_size);
  827. tcmu_hdr_set_len(&entry->hdr.len_op, command_size);
  828. /* All offsets relative to mb_addr, not start of entry! */
  829. cdb_off = CMDR_OFF + cmd_head + base_command_size;
  830. memcpy((void *) mb + cdb_off, se_cmd->t_task_cdb, scsi_command_size(se_cmd->t_task_cdb));
  831. entry->req.cdb_off = cdb_off;
  832. tcmu_flush_dcache_range(entry, sizeof(*entry));
  833. UPDATE_HEAD(mb->cmd_head, command_size, udev->cmdr_size);
  834. tcmu_flush_dcache_range(mb, sizeof(*mb));
  835. /* TODO: only if FLUSH and FUA? */
  836. uio_event_notify(&udev->uio_info);
  837. return 0;
  838. queue:
  839. if (add_to_cmdr_queue(tcmu_cmd)) {
  840. *scsi_err = TCM_OUT_OF_RESOURCES;
  841. return -1;
  842. }
  843. return 1;
  844. }
  845. static sense_reason_t
  846. tcmu_queue_cmd(struct se_cmd *se_cmd)
  847. {
  848. struct se_device *se_dev = se_cmd->se_dev;
  849. struct tcmu_dev *udev = TCMU_DEV(se_dev);
  850. struct tcmu_cmd *tcmu_cmd;
  851. sense_reason_t scsi_ret;
  852. int ret;
  853. tcmu_cmd = tcmu_alloc_cmd(se_cmd);
  854. if (!tcmu_cmd)
  855. return TCM_LOGICAL_UNIT_COMMUNICATION_FAILURE;
  856. mutex_lock(&udev->cmdr_lock);
  857. ret = queue_cmd_ring(tcmu_cmd, &scsi_ret);
  858. mutex_unlock(&udev->cmdr_lock);
  859. if (ret < 0)
  860. tcmu_free_cmd(tcmu_cmd);
  861. return scsi_ret;
  862. }
  863. static void tcmu_handle_completion(struct tcmu_cmd *cmd, struct tcmu_cmd_entry *entry)
  864. {
  865. struct se_cmd *se_cmd = cmd->se_cmd;
  866. struct tcmu_dev *udev = cmd->tcmu_dev;
  867. /*
  868. * cmd has been completed already from timeout, just reclaim
  869. * data area space and free cmd
  870. */
  871. if (test_bit(TCMU_CMD_BIT_EXPIRED, &cmd->flags))
  872. goto out;
  873. tcmu_cmd_reset_dbi_cur(cmd);
  874. if (entry->hdr.uflags & TCMU_UFLAG_UNKNOWN_OP) {
  875. pr_warn("TCMU: Userspace set UNKNOWN_OP flag on se_cmd %p\n",
  876. cmd->se_cmd);
  877. entry->rsp.scsi_status = SAM_STAT_CHECK_CONDITION;
  878. } else if (entry->rsp.scsi_status == SAM_STAT_CHECK_CONDITION) {
  879. transport_copy_sense_to_cmd(se_cmd, entry->rsp.sense_buffer);
  880. } else if (se_cmd->se_cmd_flags & SCF_BIDI) {
  881. /* Get Data-In buffer before clean up */
  882. gather_data_area(udev, cmd, true);
  883. } else if (se_cmd->data_direction == DMA_FROM_DEVICE) {
  884. gather_data_area(udev, cmd, false);
  885. } else if (se_cmd->data_direction == DMA_TO_DEVICE) {
  886. /* TODO: */
  887. } else if (se_cmd->data_direction != DMA_NONE) {
  888. pr_warn("TCMU: data direction was %d!\n",
  889. se_cmd->data_direction);
  890. }
  891. target_complete_cmd(cmd->se_cmd, entry->rsp.scsi_status);
  892. out:
  893. cmd->se_cmd = NULL;
  894. tcmu_cmd_free_data(cmd, cmd->dbi_cnt);
  895. tcmu_free_cmd(cmd);
  896. }
  897. static unsigned int tcmu_handle_completions(struct tcmu_dev *udev)
  898. {
  899. struct tcmu_mailbox *mb;
  900. int handled = 0;
  901. if (test_bit(TCMU_DEV_BIT_BROKEN, &udev->flags)) {
  902. pr_err("ring broken, not handling completions\n");
  903. return 0;
  904. }
  905. mb = udev->mb_addr;
  906. tcmu_flush_dcache_range(mb, sizeof(*mb));
  907. while (udev->cmdr_last_cleaned != READ_ONCE(mb->cmd_tail)) {
  908. struct tcmu_cmd_entry *entry = (void *) mb + CMDR_OFF + udev->cmdr_last_cleaned;
  909. struct tcmu_cmd *cmd;
  910. tcmu_flush_dcache_range(entry, sizeof(*entry));
  911. if (tcmu_hdr_get_op(entry->hdr.len_op) == TCMU_OP_PAD) {
  912. UPDATE_HEAD(udev->cmdr_last_cleaned,
  913. tcmu_hdr_get_len(entry->hdr.len_op),
  914. udev->cmdr_size);
  915. continue;
  916. }
  917. WARN_ON(tcmu_hdr_get_op(entry->hdr.len_op) != TCMU_OP_CMD);
  918. cmd = idr_remove(&udev->commands, entry->hdr.cmd_id);
  919. if (!cmd) {
  920. pr_err("cmd_id %u not found, ring is broken\n",
  921. entry->hdr.cmd_id);
  922. set_bit(TCMU_DEV_BIT_BROKEN, &udev->flags);
  923. break;
  924. }
  925. tcmu_handle_completion(cmd, entry);
  926. UPDATE_HEAD(udev->cmdr_last_cleaned,
  927. tcmu_hdr_get_len(entry->hdr.len_op),
  928. udev->cmdr_size);
  929. handled++;
  930. }
  931. if (mb->cmd_tail == mb->cmd_head) {
  932. /* no more pending commands */
  933. del_timer(&udev->cmd_timer);
  934. if (list_empty(&udev->cmdr_queue)) {
  935. /*
  936. * no more pending or waiting commands so try to
  937. * reclaim blocks if needed.
  938. */
  939. if (atomic_read(&global_db_count) >
  940. tcmu_global_max_blocks)
  941. schedule_delayed_work(&tcmu_unmap_work, 0);
  942. }
  943. }
  944. return handled;
  945. }
  946. static int tcmu_check_expired_cmd(int id, void *p, void *data)
  947. {
  948. struct tcmu_cmd *cmd = p;
  949. struct tcmu_dev *udev = cmd->tcmu_dev;
  950. u8 scsi_status;
  951. struct se_cmd *se_cmd;
  952. bool is_running;
  953. if (test_bit(TCMU_CMD_BIT_EXPIRED, &cmd->flags))
  954. return 0;
  955. if (!time_after(jiffies, cmd->deadline))
  956. return 0;
  957. is_running = list_empty(&cmd->cmdr_queue_entry);
  958. se_cmd = cmd->se_cmd;
  959. if (is_running) {
  960. /*
  961. * If cmd_time_out is disabled but qfull is set deadline
  962. * will only reflect the qfull timeout. Ignore it.
  963. */
  964. if (!udev->cmd_time_out)
  965. return 0;
  966. set_bit(TCMU_CMD_BIT_EXPIRED, &cmd->flags);
  967. /*
  968. * target_complete_cmd will translate this to LUN COMM FAILURE
  969. */
  970. scsi_status = SAM_STAT_CHECK_CONDITION;
  971. } else {
  972. list_del_init(&cmd->cmdr_queue_entry);
  973. idr_remove(&udev->commands, id);
  974. tcmu_free_cmd(cmd);
  975. scsi_status = SAM_STAT_TASK_SET_FULL;
  976. }
  977. pr_debug("Timing out cmd %u on dev %s that is %s.\n",
  978. id, udev->name, is_running ? "inflight" : "queued");
  979. target_complete_cmd(se_cmd, scsi_status);
  980. return 0;
  981. }
  982. static void tcmu_device_timedout(struct tcmu_dev *udev)
  983. {
  984. spin_lock(&timed_out_udevs_lock);
  985. if (list_empty(&udev->timedout_entry))
  986. list_add_tail(&udev->timedout_entry, &timed_out_udevs);
  987. spin_unlock(&timed_out_udevs_lock);
  988. schedule_delayed_work(&tcmu_unmap_work, 0);
  989. }
  990. static void tcmu_cmd_timedout(struct timer_list *t)
  991. {
  992. struct tcmu_dev *udev = from_timer(udev, t, cmd_timer);
  993. pr_debug("%s cmd timeout has expired\n", udev->name);
  994. tcmu_device_timedout(udev);
  995. }
  996. static void tcmu_qfull_timedout(struct timer_list *t)
  997. {
  998. struct tcmu_dev *udev = from_timer(udev, t, qfull_timer);
  999. pr_debug("%s qfull timeout has expired\n", udev->name);
  1000. tcmu_device_timedout(udev);
  1001. }
  1002. static int tcmu_attach_hba(struct se_hba *hba, u32 host_id)
  1003. {
  1004. struct tcmu_hba *tcmu_hba;
  1005. tcmu_hba = kzalloc(sizeof(struct tcmu_hba), GFP_KERNEL);
  1006. if (!tcmu_hba)
  1007. return -ENOMEM;
  1008. tcmu_hba->host_id = host_id;
  1009. hba->hba_ptr = tcmu_hba;
  1010. return 0;
  1011. }
  1012. static void tcmu_detach_hba(struct se_hba *hba)
  1013. {
  1014. kfree(hba->hba_ptr);
  1015. hba->hba_ptr = NULL;
  1016. }
  1017. static struct se_device *tcmu_alloc_device(struct se_hba *hba, const char *name)
  1018. {
  1019. struct tcmu_dev *udev;
  1020. udev = kzalloc(sizeof(struct tcmu_dev), GFP_KERNEL);
  1021. if (!udev)
  1022. return NULL;
  1023. kref_init(&udev->kref);
  1024. udev->name = kstrdup(name, GFP_KERNEL);
  1025. if (!udev->name) {
  1026. kfree(udev);
  1027. return NULL;
  1028. }
  1029. udev->hba = hba;
  1030. udev->cmd_time_out = TCMU_TIME_OUT;
  1031. udev->qfull_time_out = -1;
  1032. udev->max_blocks = DATA_BLOCK_BITS_DEF;
  1033. mutex_init(&udev->cmdr_lock);
  1034. INIT_LIST_HEAD(&udev->timedout_entry);
  1035. INIT_LIST_HEAD(&udev->cmdr_queue);
  1036. idr_init(&udev->commands);
  1037. timer_setup(&udev->qfull_timer, tcmu_qfull_timedout, 0);
  1038. timer_setup(&udev->cmd_timer, tcmu_cmd_timedout, 0);
  1039. init_waitqueue_head(&udev->nl_cmd_wq);
  1040. spin_lock_init(&udev->nl_cmd_lock);
  1041. INIT_RADIX_TREE(&udev->data_blocks, GFP_KERNEL);
  1042. return &udev->se_dev;
  1043. }
  1044. static bool run_cmdr_queue(struct tcmu_dev *udev, bool fail)
  1045. {
  1046. struct tcmu_cmd *tcmu_cmd, *tmp_cmd;
  1047. LIST_HEAD(cmds);
  1048. bool drained = true;
  1049. sense_reason_t scsi_ret;
  1050. int ret;
  1051. if (list_empty(&udev->cmdr_queue))
  1052. return true;
  1053. pr_debug("running %s's cmdr queue forcefail %d\n", udev->name, fail);
  1054. list_splice_init(&udev->cmdr_queue, &cmds);
  1055. list_for_each_entry_safe(tcmu_cmd, tmp_cmd, &cmds, cmdr_queue_entry) {
  1056. list_del_init(&tcmu_cmd->cmdr_queue_entry);
  1057. pr_debug("removing cmd %u on dev %s from queue\n",
  1058. tcmu_cmd->cmd_id, udev->name);
  1059. if (fail) {
  1060. idr_remove(&udev->commands, tcmu_cmd->cmd_id);
  1061. /*
  1062. * We were not able to even start the command, so
  1063. * fail with busy to allow a retry in case runner
  1064. * was only temporarily down. If the device is being
  1065. * removed then LIO core will do the right thing and
  1066. * fail the retry.
  1067. */
  1068. target_complete_cmd(tcmu_cmd->se_cmd, SAM_STAT_BUSY);
  1069. tcmu_free_cmd(tcmu_cmd);
  1070. continue;
  1071. }
  1072. ret = queue_cmd_ring(tcmu_cmd, &scsi_ret);
  1073. if (ret < 0) {
  1074. pr_debug("cmd %u on dev %s failed with %u\n",
  1075. tcmu_cmd->cmd_id, udev->name, scsi_ret);
  1076. idr_remove(&udev->commands, tcmu_cmd->cmd_id);
  1077. /*
  1078. * Ignore scsi_ret for now. target_complete_cmd
  1079. * drops it.
  1080. */
  1081. target_complete_cmd(tcmu_cmd->se_cmd,
  1082. SAM_STAT_CHECK_CONDITION);
  1083. tcmu_free_cmd(tcmu_cmd);
  1084. } else if (ret > 0) {
  1085. pr_debug("ran out of space during cmdr queue run\n");
  1086. /*
  1087. * cmd was requeued, so just put all cmds back in
  1088. * the queue
  1089. */
  1090. list_splice_tail(&cmds, &udev->cmdr_queue);
  1091. drained = false;
  1092. goto done;
  1093. }
  1094. }
  1095. if (list_empty(&udev->cmdr_queue))
  1096. del_timer(&udev->qfull_timer);
  1097. done:
  1098. return drained;
  1099. }
  1100. static int tcmu_irqcontrol(struct uio_info *info, s32 irq_on)
  1101. {
  1102. struct tcmu_dev *udev = container_of(info, struct tcmu_dev, uio_info);
  1103. mutex_lock(&udev->cmdr_lock);
  1104. tcmu_handle_completions(udev);
  1105. run_cmdr_queue(udev, false);
  1106. mutex_unlock(&udev->cmdr_lock);
  1107. return 0;
  1108. }
  1109. /*
  1110. * mmap code from uio.c. Copied here because we want to hook mmap()
  1111. * and this stuff must come along.
  1112. */
  1113. static int tcmu_find_mem_index(struct vm_area_struct *vma)
  1114. {
  1115. struct tcmu_dev *udev = vma->vm_private_data;
  1116. struct uio_info *info = &udev->uio_info;
  1117. if (vma->vm_pgoff < MAX_UIO_MAPS) {
  1118. if (info->mem[vma->vm_pgoff].size == 0)
  1119. return -1;
  1120. return (int)vma->vm_pgoff;
  1121. }
  1122. return -1;
  1123. }
  1124. static struct page *tcmu_try_get_block_page(struct tcmu_dev *udev, uint32_t dbi)
  1125. {
  1126. struct page *page;
  1127. mutex_lock(&udev->cmdr_lock);
  1128. page = tcmu_get_block_page(udev, dbi);
  1129. if (likely(page)) {
  1130. mutex_unlock(&udev->cmdr_lock);
  1131. return page;
  1132. }
  1133. /*
  1134. * Userspace messed up and passed in a address not in the
  1135. * data iov passed to it.
  1136. */
  1137. pr_err("Invalid addr to data block mapping (dbi %u) on device %s\n",
  1138. dbi, udev->name);
  1139. page = NULL;
  1140. mutex_unlock(&udev->cmdr_lock);
  1141. return page;
  1142. }
  1143. static int tcmu_vma_fault(struct vm_fault *vmf)
  1144. {
  1145. struct tcmu_dev *udev = vmf->vma->vm_private_data;
  1146. struct uio_info *info = &udev->uio_info;
  1147. struct page *page;
  1148. unsigned long offset;
  1149. void *addr;
  1150. int mi = tcmu_find_mem_index(vmf->vma);
  1151. if (mi < 0)
  1152. return VM_FAULT_SIGBUS;
  1153. /*
  1154. * We need to subtract mi because userspace uses offset = N*PAGE_SIZE
  1155. * to use mem[N].
  1156. */
  1157. offset = (vmf->pgoff - mi) << PAGE_SHIFT;
  1158. if (offset < udev->data_off) {
  1159. /* For the vmalloc()ed cmd area pages */
  1160. addr = (void *)(unsigned long)info->mem[mi].addr + offset;
  1161. page = vmalloc_to_page(addr);
  1162. } else {
  1163. uint32_t dbi;
  1164. /* For the dynamically growing data area pages */
  1165. dbi = (offset - udev->data_off) / DATA_BLOCK_SIZE;
  1166. page = tcmu_try_get_block_page(udev, dbi);
  1167. if (!page)
  1168. return VM_FAULT_SIGBUS;
  1169. }
  1170. get_page(page);
  1171. vmf->page = page;
  1172. return 0;
  1173. }
  1174. static const struct vm_operations_struct tcmu_vm_ops = {
  1175. .fault = tcmu_vma_fault,
  1176. };
  1177. static int tcmu_mmap(struct uio_info *info, struct vm_area_struct *vma)
  1178. {
  1179. struct tcmu_dev *udev = container_of(info, struct tcmu_dev, uio_info);
  1180. vma->vm_flags |= VM_DONTEXPAND | VM_DONTDUMP;
  1181. vma->vm_ops = &tcmu_vm_ops;
  1182. vma->vm_private_data = udev;
  1183. /* Ensure the mmap is exactly the right size */
  1184. if (vma_pages(vma) != (udev->ring_size >> PAGE_SHIFT))
  1185. return -EINVAL;
  1186. return 0;
  1187. }
  1188. static int tcmu_open(struct uio_info *info, struct inode *inode)
  1189. {
  1190. struct tcmu_dev *udev = container_of(info, struct tcmu_dev, uio_info);
  1191. /* O_EXCL not supported for char devs, so fake it? */
  1192. if (test_and_set_bit(TCMU_DEV_BIT_OPEN, &udev->flags))
  1193. return -EBUSY;
  1194. udev->inode = inode;
  1195. kref_get(&udev->kref);
  1196. pr_debug("open\n");
  1197. return 0;
  1198. }
  1199. static void tcmu_dev_call_rcu(struct rcu_head *p)
  1200. {
  1201. struct se_device *dev = container_of(p, struct se_device, rcu_head);
  1202. struct tcmu_dev *udev = TCMU_DEV(dev);
  1203. kfree(udev->uio_info.name);
  1204. kfree(udev->name);
  1205. kfree(udev);
  1206. }
  1207. static int tcmu_check_and_free_pending_cmd(struct tcmu_cmd *cmd)
  1208. {
  1209. if (test_bit(TCMU_CMD_BIT_EXPIRED, &cmd->flags)) {
  1210. kmem_cache_free(tcmu_cmd_cache, cmd);
  1211. return 0;
  1212. }
  1213. return -EINVAL;
  1214. }
  1215. static void tcmu_blocks_release(struct radix_tree_root *blocks,
  1216. int start, int end)
  1217. {
  1218. int i;
  1219. struct page *page;
  1220. for (i = start; i < end; i++) {
  1221. page = radix_tree_delete(blocks, i);
  1222. if (page) {
  1223. __free_page(page);
  1224. atomic_dec(&global_db_count);
  1225. }
  1226. }
  1227. }
  1228. static void tcmu_dev_kref_release(struct kref *kref)
  1229. {
  1230. struct tcmu_dev *udev = container_of(kref, struct tcmu_dev, kref);
  1231. struct se_device *dev = &udev->se_dev;
  1232. struct tcmu_cmd *cmd;
  1233. bool all_expired = true;
  1234. int i;
  1235. vfree(udev->mb_addr);
  1236. udev->mb_addr = NULL;
  1237. spin_lock_bh(&timed_out_udevs_lock);
  1238. if (!list_empty(&udev->timedout_entry))
  1239. list_del(&udev->timedout_entry);
  1240. spin_unlock_bh(&timed_out_udevs_lock);
  1241. /* Upper layer should drain all requests before calling this */
  1242. mutex_lock(&udev->cmdr_lock);
  1243. idr_for_each_entry(&udev->commands, cmd, i) {
  1244. if (tcmu_check_and_free_pending_cmd(cmd) != 0)
  1245. all_expired = false;
  1246. }
  1247. idr_destroy(&udev->commands);
  1248. WARN_ON(!all_expired);
  1249. tcmu_blocks_release(&udev->data_blocks, 0, udev->dbi_max + 1);
  1250. kfree(udev->data_bitmap);
  1251. mutex_unlock(&udev->cmdr_lock);
  1252. call_rcu(&dev->rcu_head, tcmu_dev_call_rcu);
  1253. }
  1254. static int tcmu_release(struct uio_info *info, struct inode *inode)
  1255. {
  1256. struct tcmu_dev *udev = container_of(info, struct tcmu_dev, uio_info);
  1257. clear_bit(TCMU_DEV_BIT_OPEN, &udev->flags);
  1258. pr_debug("close\n");
  1259. /* release ref from open */
  1260. kref_put(&udev->kref, tcmu_dev_kref_release);
  1261. return 0;
  1262. }
  1263. static void tcmu_init_genl_cmd_reply(struct tcmu_dev *udev, int cmd)
  1264. {
  1265. struct tcmu_nl_cmd *nl_cmd = &udev->curr_nl_cmd;
  1266. if (!tcmu_kern_cmd_reply_supported)
  1267. return;
  1268. if (udev->nl_reply_supported <= 0)
  1269. return;
  1270. relock:
  1271. spin_lock(&udev->nl_cmd_lock);
  1272. if (nl_cmd->cmd != TCMU_CMD_UNSPEC) {
  1273. spin_unlock(&udev->nl_cmd_lock);
  1274. pr_debug("sleeping for open nl cmd\n");
  1275. wait_event(udev->nl_cmd_wq, (nl_cmd->cmd == TCMU_CMD_UNSPEC));
  1276. goto relock;
  1277. }
  1278. memset(nl_cmd, 0, sizeof(*nl_cmd));
  1279. nl_cmd->cmd = cmd;
  1280. init_completion(&nl_cmd->complete);
  1281. spin_unlock(&udev->nl_cmd_lock);
  1282. }
  1283. static int tcmu_wait_genl_cmd_reply(struct tcmu_dev *udev)
  1284. {
  1285. struct tcmu_nl_cmd *nl_cmd = &udev->curr_nl_cmd;
  1286. int ret;
  1287. DEFINE_WAIT(__wait);
  1288. if (!tcmu_kern_cmd_reply_supported)
  1289. return 0;
  1290. if (udev->nl_reply_supported <= 0)
  1291. return 0;
  1292. pr_debug("sleeping for nl reply\n");
  1293. wait_for_completion(&nl_cmd->complete);
  1294. spin_lock(&udev->nl_cmd_lock);
  1295. nl_cmd->cmd = TCMU_CMD_UNSPEC;
  1296. ret = nl_cmd->status;
  1297. nl_cmd->status = 0;
  1298. spin_unlock(&udev->nl_cmd_lock);
  1299. wake_up_all(&udev->nl_cmd_wq);
  1300. return ret;
  1301. }
  1302. static int tcmu_netlink_event(struct tcmu_dev *udev, enum tcmu_genl_cmd cmd,
  1303. int reconfig_attr, const void *reconfig_data)
  1304. {
  1305. struct sk_buff *skb;
  1306. void *msg_header;
  1307. int ret = -ENOMEM;
  1308. skb = genlmsg_new(NLMSG_GOODSIZE, GFP_KERNEL);
  1309. if (!skb)
  1310. return ret;
  1311. msg_header = genlmsg_put(skb, 0, 0, &tcmu_genl_family, 0, cmd);
  1312. if (!msg_header)
  1313. goto free_skb;
  1314. ret = nla_put_string(skb, TCMU_ATTR_DEVICE, udev->uio_info.name);
  1315. if (ret < 0)
  1316. goto free_skb;
  1317. ret = nla_put_u32(skb, TCMU_ATTR_MINOR, udev->uio_info.uio_dev->minor);
  1318. if (ret < 0)
  1319. goto free_skb;
  1320. ret = nla_put_u32(skb, TCMU_ATTR_DEVICE_ID, udev->se_dev.dev_index);
  1321. if (ret < 0)
  1322. goto free_skb;
  1323. if (cmd == TCMU_CMD_RECONFIG_DEVICE) {
  1324. switch (reconfig_attr) {
  1325. case TCMU_ATTR_DEV_CFG:
  1326. ret = nla_put_string(skb, reconfig_attr, reconfig_data);
  1327. break;
  1328. case TCMU_ATTR_DEV_SIZE:
  1329. ret = nla_put_u64_64bit(skb, reconfig_attr,
  1330. *((u64 *)reconfig_data),
  1331. TCMU_ATTR_PAD);
  1332. break;
  1333. case TCMU_ATTR_WRITECACHE:
  1334. ret = nla_put_u8(skb, reconfig_attr,
  1335. *((u8 *)reconfig_data));
  1336. break;
  1337. default:
  1338. BUG();
  1339. }
  1340. if (ret < 0)
  1341. goto free_skb;
  1342. }
  1343. genlmsg_end(skb, msg_header);
  1344. tcmu_init_genl_cmd_reply(udev, cmd);
  1345. ret = genlmsg_multicast_allns(&tcmu_genl_family, skb, 0,
  1346. TCMU_MCGRP_CONFIG, GFP_KERNEL);
  1347. /* We don't care if no one is listening */
  1348. if (ret == -ESRCH)
  1349. ret = 0;
  1350. if (!ret)
  1351. ret = tcmu_wait_genl_cmd_reply(udev);
  1352. return ret;
  1353. free_skb:
  1354. nlmsg_free(skb);
  1355. return ret;
  1356. }
  1357. static int tcmu_update_uio_info(struct tcmu_dev *udev)
  1358. {
  1359. struct tcmu_hba *hba = udev->hba->hba_ptr;
  1360. struct uio_info *info;
  1361. size_t size, used;
  1362. char *str;
  1363. info = &udev->uio_info;
  1364. size = snprintf(NULL, 0, "tcm-user/%u/%s/%s", hba->host_id, udev->name,
  1365. udev->dev_config);
  1366. size += 1; /* for \0 */
  1367. str = kmalloc(size, GFP_KERNEL);
  1368. if (!str)
  1369. return -ENOMEM;
  1370. used = snprintf(str, size, "tcm-user/%u/%s", hba->host_id, udev->name);
  1371. if (udev->dev_config[0])
  1372. snprintf(str + used, size - used, "/%s", udev->dev_config);
  1373. /* If the old string exists, free it */
  1374. kfree(info->name);
  1375. info->name = str;
  1376. return 0;
  1377. }
  1378. static int tcmu_configure_device(struct se_device *dev)
  1379. {
  1380. struct tcmu_dev *udev = TCMU_DEV(dev);
  1381. struct uio_info *info;
  1382. struct tcmu_mailbox *mb;
  1383. int ret = 0;
  1384. ret = tcmu_update_uio_info(udev);
  1385. if (ret)
  1386. return ret;
  1387. info = &udev->uio_info;
  1388. udev->data_bitmap = kzalloc(BITS_TO_LONGS(udev->max_blocks) *
  1389. sizeof(unsigned long), GFP_KERNEL);
  1390. if (!udev->data_bitmap) {
  1391. ret = -ENOMEM;
  1392. goto err_bitmap_alloc;
  1393. }
  1394. udev->mb_addr = vzalloc(CMDR_SIZE);
  1395. if (!udev->mb_addr) {
  1396. ret = -ENOMEM;
  1397. goto err_vzalloc;
  1398. }
  1399. /* mailbox fits in first part of CMDR space */
  1400. udev->cmdr_size = CMDR_SIZE - CMDR_OFF;
  1401. udev->data_off = CMDR_SIZE;
  1402. udev->data_size = udev->max_blocks * DATA_BLOCK_SIZE;
  1403. udev->dbi_thresh = 0; /* Default in Idle state */
  1404. /* Initialise the mailbox of the ring buffer */
  1405. mb = udev->mb_addr;
  1406. mb->version = TCMU_MAILBOX_VERSION;
  1407. mb->flags = TCMU_MAILBOX_FLAG_CAP_OOOC;
  1408. mb->cmdr_off = CMDR_OFF;
  1409. mb->cmdr_size = udev->cmdr_size;
  1410. WARN_ON(!PAGE_ALIGNED(udev->data_off));
  1411. WARN_ON(udev->data_size % PAGE_SIZE);
  1412. WARN_ON(udev->data_size % DATA_BLOCK_SIZE);
  1413. info->version = __stringify(TCMU_MAILBOX_VERSION);
  1414. info->mem[0].name = "tcm-user command & data buffer";
  1415. info->mem[0].addr = (phys_addr_t)(uintptr_t)udev->mb_addr;
  1416. info->mem[0].size = udev->ring_size = udev->data_size + CMDR_SIZE;
  1417. info->mem[0].memtype = UIO_MEM_NONE;
  1418. info->irqcontrol = tcmu_irqcontrol;
  1419. info->irq = UIO_IRQ_CUSTOM;
  1420. info->mmap = tcmu_mmap;
  1421. info->open = tcmu_open;
  1422. info->release = tcmu_release;
  1423. ret = uio_register_device(tcmu_root_device, info);
  1424. if (ret)
  1425. goto err_register;
  1426. /* User can set hw_block_size before enable the device */
  1427. if (dev->dev_attrib.hw_block_size == 0)
  1428. dev->dev_attrib.hw_block_size = 512;
  1429. /* Other attributes can be configured in userspace */
  1430. if (!dev->dev_attrib.hw_max_sectors)
  1431. dev->dev_attrib.hw_max_sectors = 128;
  1432. if (!dev->dev_attrib.emulate_write_cache)
  1433. dev->dev_attrib.emulate_write_cache = 0;
  1434. dev->dev_attrib.hw_queue_depth = 128;
  1435. /* If user didn't explicitly disable netlink reply support, use
  1436. * module scope setting.
  1437. */
  1438. if (udev->nl_reply_supported >= 0)
  1439. udev->nl_reply_supported = tcmu_kern_cmd_reply_supported;
  1440. /*
  1441. * Get a ref incase userspace does a close on the uio device before
  1442. * LIO has initiated tcmu_free_device.
  1443. */
  1444. kref_get(&udev->kref);
  1445. ret = tcmu_netlink_event(udev, TCMU_CMD_ADDED_DEVICE, 0, NULL);
  1446. if (ret)
  1447. goto err_netlink;
  1448. mutex_lock(&root_udev_mutex);
  1449. list_add(&udev->node, &root_udev);
  1450. mutex_unlock(&root_udev_mutex);
  1451. return 0;
  1452. err_netlink:
  1453. kref_put(&udev->kref, tcmu_dev_kref_release);
  1454. uio_unregister_device(&udev->uio_info);
  1455. err_register:
  1456. vfree(udev->mb_addr);
  1457. udev->mb_addr = NULL;
  1458. err_vzalloc:
  1459. kfree(udev->data_bitmap);
  1460. udev->data_bitmap = NULL;
  1461. err_bitmap_alloc:
  1462. kfree(info->name);
  1463. info->name = NULL;
  1464. return ret;
  1465. }
  1466. static bool tcmu_dev_configured(struct tcmu_dev *udev)
  1467. {
  1468. return udev->uio_info.uio_dev ? true : false;
  1469. }
  1470. static void tcmu_free_device(struct se_device *dev)
  1471. {
  1472. struct tcmu_dev *udev = TCMU_DEV(dev);
  1473. /* release ref from init */
  1474. kref_put(&udev->kref, tcmu_dev_kref_release);
  1475. }
  1476. static void tcmu_destroy_device(struct se_device *dev)
  1477. {
  1478. struct tcmu_dev *udev = TCMU_DEV(dev);
  1479. del_timer_sync(&udev->cmd_timer);
  1480. del_timer_sync(&udev->qfull_timer);
  1481. mutex_lock(&root_udev_mutex);
  1482. list_del(&udev->node);
  1483. mutex_unlock(&root_udev_mutex);
  1484. tcmu_netlink_event(udev, TCMU_CMD_REMOVED_DEVICE, 0, NULL);
  1485. uio_unregister_device(&udev->uio_info);
  1486. /* release ref from configure */
  1487. kref_put(&udev->kref, tcmu_dev_kref_release);
  1488. }
  1489. static void tcmu_unblock_dev(struct tcmu_dev *udev)
  1490. {
  1491. mutex_lock(&udev->cmdr_lock);
  1492. clear_bit(TCMU_DEV_BIT_BLOCKED, &udev->flags);
  1493. mutex_unlock(&udev->cmdr_lock);
  1494. }
  1495. static void tcmu_block_dev(struct tcmu_dev *udev)
  1496. {
  1497. mutex_lock(&udev->cmdr_lock);
  1498. if (test_and_set_bit(TCMU_DEV_BIT_BLOCKED, &udev->flags))
  1499. goto unlock;
  1500. /* complete IO that has executed successfully */
  1501. tcmu_handle_completions(udev);
  1502. /* fail IO waiting to be queued */
  1503. run_cmdr_queue(udev, true);
  1504. unlock:
  1505. mutex_unlock(&udev->cmdr_lock);
  1506. }
  1507. static void tcmu_reset_ring(struct tcmu_dev *udev, u8 err_level)
  1508. {
  1509. struct tcmu_mailbox *mb;
  1510. struct tcmu_cmd *cmd;
  1511. int i;
  1512. mutex_lock(&udev->cmdr_lock);
  1513. idr_for_each_entry(&udev->commands, cmd, i) {
  1514. if (!list_empty(&cmd->cmdr_queue_entry))
  1515. continue;
  1516. pr_debug("removing cmd %u on dev %s from ring (is expired %d)\n",
  1517. cmd->cmd_id, udev->name,
  1518. test_bit(TCMU_CMD_BIT_EXPIRED, &cmd->flags));
  1519. idr_remove(&udev->commands, i);
  1520. if (!test_bit(TCMU_CMD_BIT_EXPIRED, &cmd->flags)) {
  1521. if (err_level == 1) {
  1522. /*
  1523. * Userspace was not able to start the
  1524. * command or it is retryable.
  1525. */
  1526. target_complete_cmd(cmd->se_cmd, SAM_STAT_BUSY);
  1527. } else {
  1528. /* hard failure */
  1529. target_complete_cmd(cmd->se_cmd,
  1530. SAM_STAT_CHECK_CONDITION);
  1531. }
  1532. }
  1533. tcmu_cmd_free_data(cmd, cmd->dbi_cnt);
  1534. tcmu_free_cmd(cmd);
  1535. }
  1536. mb = udev->mb_addr;
  1537. tcmu_flush_dcache_range(mb, sizeof(*mb));
  1538. pr_debug("mb last %u head %u tail %u\n", udev->cmdr_last_cleaned,
  1539. mb->cmd_tail, mb->cmd_head);
  1540. udev->cmdr_last_cleaned = 0;
  1541. mb->cmd_tail = 0;
  1542. mb->cmd_head = 0;
  1543. tcmu_flush_dcache_range(mb, sizeof(*mb));
  1544. del_timer(&udev->cmd_timer);
  1545. mutex_unlock(&udev->cmdr_lock);
  1546. }
  1547. enum {
  1548. Opt_dev_config, Opt_dev_size, Opt_hw_block_size, Opt_hw_max_sectors,
  1549. Opt_nl_reply_supported, Opt_max_data_area_mb, Opt_err,
  1550. };
  1551. static match_table_t tokens = {
  1552. {Opt_dev_config, "dev_config=%s"},
  1553. {Opt_dev_size, "dev_size=%u"},
  1554. {Opt_hw_block_size, "hw_block_size=%u"},
  1555. {Opt_hw_max_sectors, "hw_max_sectors=%u"},
  1556. {Opt_nl_reply_supported, "nl_reply_supported=%d"},
  1557. {Opt_max_data_area_mb, "max_data_area_mb=%u"},
  1558. {Opt_err, NULL}
  1559. };
  1560. static int tcmu_set_dev_attrib(substring_t *arg, u32 *dev_attrib)
  1561. {
  1562. unsigned long tmp_ul;
  1563. char *arg_p;
  1564. int ret;
  1565. arg_p = match_strdup(arg);
  1566. if (!arg_p)
  1567. return -ENOMEM;
  1568. ret = kstrtoul(arg_p, 0, &tmp_ul);
  1569. kfree(arg_p);
  1570. if (ret < 0) {
  1571. pr_err("kstrtoul() failed for dev attrib\n");
  1572. return ret;
  1573. }
  1574. if (!tmp_ul) {
  1575. pr_err("dev attrib must be nonzero\n");
  1576. return -EINVAL;
  1577. }
  1578. *dev_attrib = tmp_ul;
  1579. return 0;
  1580. }
  1581. static ssize_t tcmu_set_configfs_dev_params(struct se_device *dev,
  1582. const char *page, ssize_t count)
  1583. {
  1584. struct tcmu_dev *udev = TCMU_DEV(dev);
  1585. char *orig, *ptr, *opts, *arg_p;
  1586. substring_t args[MAX_OPT_ARGS];
  1587. int ret = 0, token, tmpval;
  1588. opts = kstrdup(page, GFP_KERNEL);
  1589. if (!opts)
  1590. return -ENOMEM;
  1591. orig = opts;
  1592. while ((ptr = strsep(&opts, ",\n")) != NULL) {
  1593. if (!*ptr)
  1594. continue;
  1595. token = match_token(ptr, tokens, args);
  1596. switch (token) {
  1597. case Opt_dev_config:
  1598. if (match_strlcpy(udev->dev_config, &args[0],
  1599. TCMU_CONFIG_LEN) == 0) {
  1600. ret = -EINVAL;
  1601. break;
  1602. }
  1603. pr_debug("TCMU: Referencing Path: %s\n", udev->dev_config);
  1604. break;
  1605. case Opt_dev_size:
  1606. arg_p = match_strdup(&args[0]);
  1607. if (!arg_p) {
  1608. ret = -ENOMEM;
  1609. break;
  1610. }
  1611. ret = kstrtoul(arg_p, 0, (unsigned long *) &udev->dev_size);
  1612. kfree(arg_p);
  1613. if (ret < 0)
  1614. pr_err("kstrtoul() failed for dev_size=\n");
  1615. break;
  1616. case Opt_hw_block_size:
  1617. ret = tcmu_set_dev_attrib(&args[0],
  1618. &(dev->dev_attrib.hw_block_size));
  1619. break;
  1620. case Opt_hw_max_sectors:
  1621. ret = tcmu_set_dev_attrib(&args[0],
  1622. &(dev->dev_attrib.hw_max_sectors));
  1623. break;
  1624. case Opt_nl_reply_supported:
  1625. arg_p = match_strdup(&args[0]);
  1626. if (!arg_p) {
  1627. ret = -ENOMEM;
  1628. break;
  1629. }
  1630. ret = kstrtoint(arg_p, 0, &udev->nl_reply_supported);
  1631. kfree(arg_p);
  1632. if (ret < 0)
  1633. pr_err("kstrtoint() failed for nl_reply_supported=\n");
  1634. break;
  1635. case Opt_max_data_area_mb:
  1636. if (dev->export_count) {
  1637. pr_err("Unable to set max_data_area_mb while exports exist\n");
  1638. ret = -EINVAL;
  1639. break;
  1640. }
  1641. arg_p = match_strdup(&args[0]);
  1642. if (!arg_p) {
  1643. ret = -ENOMEM;
  1644. break;
  1645. }
  1646. ret = kstrtoint(arg_p, 0, &tmpval);
  1647. kfree(arg_p);
  1648. if (ret < 0) {
  1649. pr_err("kstrtoint() failed for max_data_area_mb=\n");
  1650. break;
  1651. }
  1652. if (tmpval <= 0) {
  1653. pr_err("Invalid max_data_area %d\n", tmpval);
  1654. ret = -EINVAL;
  1655. break;
  1656. }
  1657. udev->max_blocks = TCMU_MBS_TO_BLOCKS(tmpval);
  1658. if (udev->max_blocks > tcmu_global_max_blocks) {
  1659. pr_err("%d is too large. Adjusting max_data_area_mb to global limit of %u\n",
  1660. tmpval,
  1661. TCMU_BLOCKS_TO_MBS(tcmu_global_max_blocks));
  1662. udev->max_blocks = tcmu_global_max_blocks;
  1663. }
  1664. break;
  1665. default:
  1666. break;
  1667. }
  1668. if (ret)
  1669. break;
  1670. }
  1671. kfree(orig);
  1672. return (!ret) ? count : ret;
  1673. }
  1674. static ssize_t tcmu_show_configfs_dev_params(struct se_device *dev, char *b)
  1675. {
  1676. struct tcmu_dev *udev = TCMU_DEV(dev);
  1677. ssize_t bl = 0;
  1678. bl = sprintf(b + bl, "Config: %s ",
  1679. udev->dev_config[0] ? udev->dev_config : "NULL");
  1680. bl += sprintf(b + bl, "Size: %zu ", udev->dev_size);
  1681. bl += sprintf(b + bl, "MaxDataAreaMB: %u\n",
  1682. TCMU_BLOCKS_TO_MBS(udev->max_blocks));
  1683. return bl;
  1684. }
  1685. static sector_t tcmu_get_blocks(struct se_device *dev)
  1686. {
  1687. struct tcmu_dev *udev = TCMU_DEV(dev);
  1688. return div_u64(udev->dev_size - dev->dev_attrib.block_size,
  1689. dev->dev_attrib.block_size);
  1690. }
  1691. static sense_reason_t
  1692. tcmu_parse_cdb(struct se_cmd *cmd)
  1693. {
  1694. return passthrough_parse_cdb(cmd, tcmu_queue_cmd);
  1695. }
  1696. static ssize_t tcmu_cmd_time_out_show(struct config_item *item, char *page)
  1697. {
  1698. struct se_dev_attrib *da = container_of(to_config_group(item),
  1699. struct se_dev_attrib, da_group);
  1700. struct tcmu_dev *udev = TCMU_DEV(da->da_dev);
  1701. return snprintf(page, PAGE_SIZE, "%lu\n", udev->cmd_time_out / MSEC_PER_SEC);
  1702. }
  1703. static ssize_t tcmu_cmd_time_out_store(struct config_item *item, const char *page,
  1704. size_t count)
  1705. {
  1706. struct se_dev_attrib *da = container_of(to_config_group(item),
  1707. struct se_dev_attrib, da_group);
  1708. struct tcmu_dev *udev = container_of(da->da_dev,
  1709. struct tcmu_dev, se_dev);
  1710. u32 val;
  1711. int ret;
  1712. if (da->da_dev->export_count) {
  1713. pr_err("Unable to set tcmu cmd_time_out while exports exist\n");
  1714. return -EINVAL;
  1715. }
  1716. ret = kstrtou32(page, 0, &val);
  1717. if (ret < 0)
  1718. return ret;
  1719. udev->cmd_time_out = val * MSEC_PER_SEC;
  1720. return count;
  1721. }
  1722. CONFIGFS_ATTR(tcmu_, cmd_time_out);
  1723. static ssize_t tcmu_qfull_time_out_show(struct config_item *item, char *page)
  1724. {
  1725. struct se_dev_attrib *da = container_of(to_config_group(item),
  1726. struct se_dev_attrib, da_group);
  1727. struct tcmu_dev *udev = TCMU_DEV(da->da_dev);
  1728. return snprintf(page, PAGE_SIZE, "%ld\n", udev->qfull_time_out <= 0 ?
  1729. udev->qfull_time_out :
  1730. udev->qfull_time_out / MSEC_PER_SEC);
  1731. }
  1732. static ssize_t tcmu_qfull_time_out_store(struct config_item *item,
  1733. const char *page, size_t count)
  1734. {
  1735. struct se_dev_attrib *da = container_of(to_config_group(item),
  1736. struct se_dev_attrib, da_group);
  1737. struct tcmu_dev *udev = TCMU_DEV(da->da_dev);
  1738. s32 val;
  1739. int ret;
  1740. ret = kstrtos32(page, 0, &val);
  1741. if (ret < 0)
  1742. return ret;
  1743. if (val >= 0) {
  1744. udev->qfull_time_out = val * MSEC_PER_SEC;
  1745. } else {
  1746. printk(KERN_ERR "Invalid qfull timeout value %d\n", val);
  1747. return -EINVAL;
  1748. }
  1749. return count;
  1750. }
  1751. CONFIGFS_ATTR(tcmu_, qfull_time_out);
  1752. static ssize_t tcmu_max_data_area_mb_show(struct config_item *item, char *page)
  1753. {
  1754. struct se_dev_attrib *da = container_of(to_config_group(item),
  1755. struct se_dev_attrib, da_group);
  1756. struct tcmu_dev *udev = TCMU_DEV(da->da_dev);
  1757. return snprintf(page, PAGE_SIZE, "%u\n",
  1758. TCMU_BLOCKS_TO_MBS(udev->max_blocks));
  1759. }
  1760. CONFIGFS_ATTR_RO(tcmu_, max_data_area_mb);
  1761. static ssize_t tcmu_dev_config_show(struct config_item *item, char *page)
  1762. {
  1763. struct se_dev_attrib *da = container_of(to_config_group(item),
  1764. struct se_dev_attrib, da_group);
  1765. struct tcmu_dev *udev = TCMU_DEV(da->da_dev);
  1766. return snprintf(page, PAGE_SIZE, "%s\n", udev->dev_config);
  1767. }
  1768. static ssize_t tcmu_dev_config_store(struct config_item *item, const char *page,
  1769. size_t count)
  1770. {
  1771. struct se_dev_attrib *da = container_of(to_config_group(item),
  1772. struct se_dev_attrib, da_group);
  1773. struct tcmu_dev *udev = TCMU_DEV(da->da_dev);
  1774. int ret, len;
  1775. len = strlen(page);
  1776. if (!len || len > TCMU_CONFIG_LEN - 1)
  1777. return -EINVAL;
  1778. /* Check if device has been configured before */
  1779. if (tcmu_dev_configured(udev)) {
  1780. ret = tcmu_netlink_event(udev, TCMU_CMD_RECONFIG_DEVICE,
  1781. TCMU_ATTR_DEV_CFG, page);
  1782. if (ret) {
  1783. pr_err("Unable to reconfigure device\n");
  1784. return ret;
  1785. }
  1786. strlcpy(udev->dev_config, page, TCMU_CONFIG_LEN);
  1787. ret = tcmu_update_uio_info(udev);
  1788. if (ret)
  1789. return ret;
  1790. return count;
  1791. }
  1792. strlcpy(udev->dev_config, page, TCMU_CONFIG_LEN);
  1793. return count;
  1794. }
  1795. CONFIGFS_ATTR(tcmu_, dev_config);
  1796. static ssize_t tcmu_dev_size_show(struct config_item *item, char *page)
  1797. {
  1798. struct se_dev_attrib *da = container_of(to_config_group(item),
  1799. struct se_dev_attrib, da_group);
  1800. struct tcmu_dev *udev = TCMU_DEV(da->da_dev);
  1801. return snprintf(page, PAGE_SIZE, "%zu\n", udev->dev_size);
  1802. }
  1803. static ssize_t tcmu_dev_size_store(struct config_item *item, const char *page,
  1804. size_t count)
  1805. {
  1806. struct se_dev_attrib *da = container_of(to_config_group(item),
  1807. struct se_dev_attrib, da_group);
  1808. struct tcmu_dev *udev = TCMU_DEV(da->da_dev);
  1809. u64 val;
  1810. int ret;
  1811. ret = kstrtou64(page, 0, &val);
  1812. if (ret < 0)
  1813. return ret;
  1814. /* Check if device has been configured before */
  1815. if (tcmu_dev_configured(udev)) {
  1816. ret = tcmu_netlink_event(udev, TCMU_CMD_RECONFIG_DEVICE,
  1817. TCMU_ATTR_DEV_SIZE, &val);
  1818. if (ret) {
  1819. pr_err("Unable to reconfigure device\n");
  1820. return ret;
  1821. }
  1822. }
  1823. udev->dev_size = val;
  1824. return count;
  1825. }
  1826. CONFIGFS_ATTR(tcmu_, dev_size);
  1827. static ssize_t tcmu_nl_reply_supported_show(struct config_item *item,
  1828. char *page)
  1829. {
  1830. struct se_dev_attrib *da = container_of(to_config_group(item),
  1831. struct se_dev_attrib, da_group);
  1832. struct tcmu_dev *udev = TCMU_DEV(da->da_dev);
  1833. return snprintf(page, PAGE_SIZE, "%d\n", udev->nl_reply_supported);
  1834. }
  1835. static ssize_t tcmu_nl_reply_supported_store(struct config_item *item,
  1836. const char *page, size_t count)
  1837. {
  1838. struct se_dev_attrib *da = container_of(to_config_group(item),
  1839. struct se_dev_attrib, da_group);
  1840. struct tcmu_dev *udev = TCMU_DEV(da->da_dev);
  1841. s8 val;
  1842. int ret;
  1843. ret = kstrtos8(page, 0, &val);
  1844. if (ret < 0)
  1845. return ret;
  1846. udev->nl_reply_supported = val;
  1847. return count;
  1848. }
  1849. CONFIGFS_ATTR(tcmu_, nl_reply_supported);
  1850. static ssize_t tcmu_emulate_write_cache_show(struct config_item *item,
  1851. char *page)
  1852. {
  1853. struct se_dev_attrib *da = container_of(to_config_group(item),
  1854. struct se_dev_attrib, da_group);
  1855. return snprintf(page, PAGE_SIZE, "%i\n", da->emulate_write_cache);
  1856. }
  1857. static ssize_t tcmu_emulate_write_cache_store(struct config_item *item,
  1858. const char *page, size_t count)
  1859. {
  1860. struct se_dev_attrib *da = container_of(to_config_group(item),
  1861. struct se_dev_attrib, da_group);
  1862. struct tcmu_dev *udev = TCMU_DEV(da->da_dev);
  1863. u8 val;
  1864. int ret;
  1865. ret = kstrtou8(page, 0, &val);
  1866. if (ret < 0)
  1867. return ret;
  1868. /* Check if device has been configured before */
  1869. if (tcmu_dev_configured(udev)) {
  1870. ret = tcmu_netlink_event(udev, TCMU_CMD_RECONFIG_DEVICE,
  1871. TCMU_ATTR_WRITECACHE, &val);
  1872. if (ret) {
  1873. pr_err("Unable to reconfigure device\n");
  1874. return ret;
  1875. }
  1876. }
  1877. da->emulate_write_cache = val;
  1878. return count;
  1879. }
  1880. CONFIGFS_ATTR(tcmu_, emulate_write_cache);
  1881. static ssize_t tcmu_block_dev_show(struct config_item *item, char *page)
  1882. {
  1883. struct se_device *se_dev = container_of(to_config_group(item),
  1884. struct se_device,
  1885. dev_action_group);
  1886. struct tcmu_dev *udev = TCMU_DEV(se_dev);
  1887. if (test_bit(TCMU_DEV_BIT_BLOCKED, &udev->flags))
  1888. return snprintf(page, PAGE_SIZE, "%s\n", "blocked");
  1889. else
  1890. return snprintf(page, PAGE_SIZE, "%s\n", "unblocked");
  1891. }
  1892. static ssize_t tcmu_block_dev_store(struct config_item *item, const char *page,
  1893. size_t count)
  1894. {
  1895. struct se_device *se_dev = container_of(to_config_group(item),
  1896. struct se_device,
  1897. dev_action_group);
  1898. struct tcmu_dev *udev = TCMU_DEV(se_dev);
  1899. u8 val;
  1900. int ret;
  1901. ret = kstrtou8(page, 0, &val);
  1902. if (ret < 0)
  1903. return ret;
  1904. if (val > 1) {
  1905. pr_err("Invalid block value %d\n", val);
  1906. return -EINVAL;
  1907. }
  1908. if (!val)
  1909. tcmu_unblock_dev(udev);
  1910. else
  1911. tcmu_block_dev(udev);
  1912. return count;
  1913. }
  1914. CONFIGFS_ATTR(tcmu_, block_dev);
  1915. static ssize_t tcmu_reset_ring_store(struct config_item *item, const char *page,
  1916. size_t count)
  1917. {
  1918. struct se_device *se_dev = container_of(to_config_group(item),
  1919. struct se_device,
  1920. dev_action_group);
  1921. struct tcmu_dev *udev = TCMU_DEV(se_dev);
  1922. u8 val;
  1923. int ret;
  1924. ret = kstrtou8(page, 0, &val);
  1925. if (ret < 0)
  1926. return ret;
  1927. if (val != 1 && val != 2) {
  1928. pr_err("Invalid reset ring value %d\n", val);
  1929. return -EINVAL;
  1930. }
  1931. tcmu_reset_ring(udev, val);
  1932. return count;
  1933. }
  1934. CONFIGFS_ATTR_WO(tcmu_, reset_ring);
  1935. static struct configfs_attribute *tcmu_attrib_attrs[] = {
  1936. &tcmu_attr_cmd_time_out,
  1937. &tcmu_attr_qfull_time_out,
  1938. &tcmu_attr_max_data_area_mb,
  1939. &tcmu_attr_dev_config,
  1940. &tcmu_attr_dev_size,
  1941. &tcmu_attr_emulate_write_cache,
  1942. &tcmu_attr_nl_reply_supported,
  1943. NULL,
  1944. };
  1945. static struct configfs_attribute **tcmu_attrs;
  1946. static struct configfs_attribute *tcmu_action_attrs[] = {
  1947. &tcmu_attr_block_dev,
  1948. &tcmu_attr_reset_ring,
  1949. NULL,
  1950. };
  1951. static struct target_backend_ops tcmu_ops = {
  1952. .name = "user",
  1953. .owner = THIS_MODULE,
  1954. .transport_flags = TRANSPORT_FLAG_PASSTHROUGH,
  1955. .attach_hba = tcmu_attach_hba,
  1956. .detach_hba = tcmu_detach_hba,
  1957. .alloc_device = tcmu_alloc_device,
  1958. .configure_device = tcmu_configure_device,
  1959. .destroy_device = tcmu_destroy_device,
  1960. .free_device = tcmu_free_device,
  1961. .parse_cdb = tcmu_parse_cdb,
  1962. .set_configfs_dev_params = tcmu_set_configfs_dev_params,
  1963. .show_configfs_dev_params = tcmu_show_configfs_dev_params,
  1964. .get_device_type = sbc_get_device_type,
  1965. .get_blocks = tcmu_get_blocks,
  1966. .tb_dev_action_attrs = tcmu_action_attrs,
  1967. };
  1968. static void find_free_blocks(void)
  1969. {
  1970. struct tcmu_dev *udev;
  1971. loff_t off;
  1972. u32 start, end, block, total_freed = 0;
  1973. if (atomic_read(&global_db_count) <= tcmu_global_max_blocks)
  1974. return;
  1975. mutex_lock(&root_udev_mutex);
  1976. list_for_each_entry(udev, &root_udev, node) {
  1977. mutex_lock(&udev->cmdr_lock);
  1978. /* Try to complete the finished commands first */
  1979. tcmu_handle_completions(udev);
  1980. /* Skip the udevs in idle */
  1981. if (!udev->dbi_thresh) {
  1982. mutex_unlock(&udev->cmdr_lock);
  1983. continue;
  1984. }
  1985. end = udev->dbi_max + 1;
  1986. block = find_last_bit(udev->data_bitmap, end);
  1987. if (block == udev->dbi_max) {
  1988. /*
  1989. * The last bit is dbi_max, so it is not possible
  1990. * reclaim any blocks.
  1991. */
  1992. mutex_unlock(&udev->cmdr_lock);
  1993. continue;
  1994. } else if (block == end) {
  1995. /* The current udev will goto idle state */
  1996. udev->dbi_thresh = start = 0;
  1997. udev->dbi_max = 0;
  1998. } else {
  1999. udev->dbi_thresh = start = block + 1;
  2000. udev->dbi_max = block;
  2001. }
  2002. /* Here will truncate the data area from off */
  2003. off = udev->data_off + start * DATA_BLOCK_SIZE;
  2004. unmap_mapping_range(udev->inode->i_mapping, off, 0, 1);
  2005. /* Release the block pages */
  2006. tcmu_blocks_release(&udev->data_blocks, start, end);
  2007. mutex_unlock(&udev->cmdr_lock);
  2008. total_freed += end - start;
  2009. pr_debug("Freed %u blocks (total %u) from %s.\n", end - start,
  2010. total_freed, udev->name);
  2011. }
  2012. mutex_unlock(&root_udev_mutex);
  2013. if (atomic_read(&global_db_count) > tcmu_global_max_blocks)
  2014. schedule_delayed_work(&tcmu_unmap_work, msecs_to_jiffies(5000));
  2015. }
  2016. static void check_timedout_devices(void)
  2017. {
  2018. struct tcmu_dev *udev, *tmp_dev;
  2019. LIST_HEAD(devs);
  2020. spin_lock_bh(&timed_out_udevs_lock);
  2021. list_splice_init(&timed_out_udevs, &devs);
  2022. list_for_each_entry_safe(udev, tmp_dev, &devs, timedout_entry) {
  2023. list_del_init(&udev->timedout_entry);
  2024. spin_unlock_bh(&timed_out_udevs_lock);
  2025. mutex_lock(&udev->cmdr_lock);
  2026. idr_for_each(&udev->commands, tcmu_check_expired_cmd, NULL);
  2027. mutex_unlock(&udev->cmdr_lock);
  2028. spin_lock_bh(&timed_out_udevs_lock);
  2029. }
  2030. spin_unlock_bh(&timed_out_udevs_lock);
  2031. }
  2032. static void tcmu_unmap_work_fn(struct work_struct *work)
  2033. {
  2034. check_timedout_devices();
  2035. find_free_blocks();
  2036. }
  2037. static int __init tcmu_module_init(void)
  2038. {
  2039. int ret, i, k, len = 0;
  2040. BUILD_BUG_ON((sizeof(struct tcmu_cmd_entry) % TCMU_OP_ALIGN_SIZE) != 0);
  2041. INIT_DELAYED_WORK(&tcmu_unmap_work, tcmu_unmap_work_fn);
  2042. tcmu_cmd_cache = kmem_cache_create("tcmu_cmd_cache",
  2043. sizeof(struct tcmu_cmd),
  2044. __alignof__(struct tcmu_cmd),
  2045. 0, NULL);
  2046. if (!tcmu_cmd_cache)
  2047. return -ENOMEM;
  2048. tcmu_root_device = root_device_register("tcm_user");
  2049. if (IS_ERR(tcmu_root_device)) {
  2050. ret = PTR_ERR(tcmu_root_device);
  2051. goto out_free_cache;
  2052. }
  2053. ret = genl_register_family(&tcmu_genl_family);
  2054. if (ret < 0) {
  2055. goto out_unreg_device;
  2056. }
  2057. for (i = 0; passthrough_attrib_attrs[i] != NULL; i++) {
  2058. len += sizeof(struct configfs_attribute *);
  2059. }
  2060. for (i = 0; tcmu_attrib_attrs[i] != NULL; i++) {
  2061. len += sizeof(struct configfs_attribute *);
  2062. }
  2063. len += sizeof(struct configfs_attribute *);
  2064. tcmu_attrs = kzalloc(len, GFP_KERNEL);
  2065. if (!tcmu_attrs) {
  2066. ret = -ENOMEM;
  2067. goto out_unreg_genl;
  2068. }
  2069. for (i = 0; passthrough_attrib_attrs[i] != NULL; i++) {
  2070. tcmu_attrs[i] = passthrough_attrib_attrs[i];
  2071. }
  2072. for (k = 0; tcmu_attrib_attrs[k] != NULL; k++) {
  2073. tcmu_attrs[i] = tcmu_attrib_attrs[k];
  2074. i++;
  2075. }
  2076. tcmu_ops.tb_dev_attrib_attrs = tcmu_attrs;
  2077. ret = transport_backend_register(&tcmu_ops);
  2078. if (ret)
  2079. goto out_attrs;
  2080. return 0;
  2081. out_attrs:
  2082. kfree(tcmu_attrs);
  2083. out_unreg_genl:
  2084. genl_unregister_family(&tcmu_genl_family);
  2085. out_unreg_device:
  2086. root_device_unregister(tcmu_root_device);
  2087. out_free_cache:
  2088. kmem_cache_destroy(tcmu_cmd_cache);
  2089. return ret;
  2090. }
  2091. static void __exit tcmu_module_exit(void)
  2092. {
  2093. cancel_delayed_work_sync(&tcmu_unmap_work);
  2094. target_backend_unregister(&tcmu_ops);
  2095. kfree(tcmu_attrs);
  2096. genl_unregister_family(&tcmu_genl_family);
  2097. root_device_unregister(tcmu_root_device);
  2098. kmem_cache_destroy(tcmu_cmd_cache);
  2099. }
  2100. MODULE_DESCRIPTION("TCM USER subsystem plugin");
  2101. MODULE_AUTHOR("Shaohua Li <shli@kernel.org>");
  2102. MODULE_AUTHOR("Andy Grover <agrover@redhat.com>");
  2103. MODULE_LICENSE("GPL");
  2104. module_init(tcmu_module_init);
  2105. module_exit(tcmu_module_exit);