umem.c 30 KB

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  1. /*
  2. * mm.c - Micro Memory(tm) PCI memory board block device driver - v2.3
  3. *
  4. * (C) 2001 San Mehat <nettwerk@valinux.com>
  5. * (C) 2001 Johannes Erdfelt <jerdfelt@valinux.com>
  6. * (C) 2001 NeilBrown <neilb@cse.unsw.edu.au>
  7. *
  8. * This driver for the Micro Memory PCI Memory Module with Battery Backup
  9. * is Copyright Micro Memory Inc 2001-2002. All rights reserved.
  10. *
  11. * This driver is released to the public under the terms of the
  12. * GNU GENERAL PUBLIC LICENSE version 2
  13. * See the file COPYING for details.
  14. *
  15. * This driver provides a standard block device interface for Micro Memory(tm)
  16. * PCI based RAM boards.
  17. * 10/05/01: Phap Nguyen - Rebuilt the driver
  18. * 10/22/01: Phap Nguyen - v2.1 Added disk partitioning
  19. * 29oct2001:NeilBrown - Use make_request_fn instead of request_fn
  20. * - use stand disk partitioning (so fdisk works).
  21. * 08nov2001:NeilBrown - change driver name from "mm" to "umem"
  22. * - incorporate into main kernel
  23. * 08apr2002:NeilBrown - Move some of interrupt handle to tasklet
  24. * - use spin_lock_bh instead of _irq
  25. * - Never block on make_request. queue
  26. * bh's instead.
  27. * - unregister umem from devfs at mod unload
  28. * - Change version to 2.3
  29. * 07Nov2001:Phap Nguyen - Select pci read command: 06, 12, 15 (Decimal)
  30. * 07Jan2002: P. Nguyen - Used PCI Memory Write & Invalidate for DMA
  31. * 15May2002:NeilBrown - convert to bio for 2.5
  32. * 17May2002:NeilBrown - remove init_mem initialisation. Instead detect
  33. * - a sequence of writes that cover the card, and
  34. * - set initialised bit then.
  35. */
  36. #undef DEBUG /* #define DEBUG if you want debugging info (pr_debug) */
  37. #include <linux/fs.h>
  38. #include <linux/bio.h>
  39. #include <linux/kernel.h>
  40. #include <linux/mm.h>
  41. #include <linux/mman.h>
  42. #include <linux/ioctl.h>
  43. #include <linux/module.h>
  44. #include <linux/init.h>
  45. #include <linux/interrupt.h>
  46. #include <linux/timer.h>
  47. #include <linux/pci.h>
  48. #include <linux/slab.h>
  49. #include <linux/dma-mapping.h>
  50. #include <linux/fcntl.h> /* O_ACCMODE */
  51. #include <linux/hdreg.h> /* HDIO_GETGEO */
  52. #include "umem.h"
  53. #include <asm/uaccess.h>
  54. #include <asm/io.h>
  55. #define MM_MAXCARDS 4
  56. #define MM_RAHEAD 2 /* two sectors */
  57. #define MM_BLKSIZE 1024 /* 1k blocks */
  58. #define MM_HARDSECT 512 /* 512-byte hardware sectors */
  59. #define MM_SHIFT 6 /* max 64 partitions on 4 cards */
  60. /*
  61. * Version Information
  62. */
  63. #define DRIVER_NAME "umem"
  64. #define DRIVER_VERSION "v2.3"
  65. #define DRIVER_AUTHOR "San Mehat, Johannes Erdfelt, NeilBrown"
  66. #define DRIVER_DESC "Micro Memory(tm) PCI memory board block driver"
  67. static int debug;
  68. /* #define HW_TRACE(x) writeb(x,cards[0].csr_remap + MEMCTRLSTATUS_MAGIC) */
  69. #define HW_TRACE(x)
  70. #define DEBUG_LED_ON_TRANSFER 0x01
  71. #define DEBUG_BATTERY_POLLING 0x02
  72. module_param(debug, int, 0644);
  73. MODULE_PARM_DESC(debug, "Debug bitmask");
  74. static int pci_read_cmd = 0x0C; /* Read Multiple */
  75. module_param(pci_read_cmd, int, 0);
  76. MODULE_PARM_DESC(pci_read_cmd, "PCI read command");
  77. static int pci_write_cmd = 0x0F; /* Write and Invalidate */
  78. module_param(pci_write_cmd, int, 0);
  79. MODULE_PARM_DESC(pci_write_cmd, "PCI write command");
  80. static int pci_cmds;
  81. static int major_nr;
  82. #include <linux/blkdev.h>
  83. #include <linux/blkpg.h>
  84. struct cardinfo {
  85. struct pci_dev *dev;
  86. unsigned char __iomem *csr_remap;
  87. unsigned int mm_size; /* size in kbytes */
  88. unsigned int init_size; /* initial segment, in sectors,
  89. * that we know to
  90. * have been written
  91. */
  92. struct bio *bio, *currentbio, **biotail;
  93. int current_idx;
  94. sector_t current_sector;
  95. struct request_queue *queue;
  96. struct mm_page {
  97. dma_addr_t page_dma;
  98. struct mm_dma_desc *desc;
  99. int cnt, headcnt;
  100. struct bio *bio, **biotail;
  101. int idx;
  102. } mm_pages[2];
  103. #define DESC_PER_PAGE ((PAGE_SIZE*2)/sizeof(struct mm_dma_desc))
  104. int Active, Ready;
  105. struct tasklet_struct tasklet;
  106. unsigned int dma_status;
  107. struct {
  108. int good;
  109. int warned;
  110. unsigned long last_change;
  111. } battery[2];
  112. spinlock_t lock;
  113. int check_batteries;
  114. int flags;
  115. };
  116. static struct cardinfo cards[MM_MAXCARDS];
  117. static struct timer_list battery_timer;
  118. static int num_cards;
  119. static struct gendisk *mm_gendisk[MM_MAXCARDS];
  120. static void check_batteries(struct cardinfo *card);
  121. static int get_userbit(struct cardinfo *card, int bit)
  122. {
  123. unsigned char led;
  124. led = readb(card->csr_remap + MEMCTRLCMD_LEDCTRL);
  125. return led & bit;
  126. }
  127. static int set_userbit(struct cardinfo *card, int bit, unsigned char state)
  128. {
  129. unsigned char led;
  130. led = readb(card->csr_remap + MEMCTRLCMD_LEDCTRL);
  131. if (state)
  132. led |= bit;
  133. else
  134. led &= ~bit;
  135. writeb(led, card->csr_remap + MEMCTRLCMD_LEDCTRL);
  136. return 0;
  137. }
  138. /*
  139. * NOTE: For the power LED, use the LED_POWER_* macros since they differ
  140. */
  141. static void set_led(struct cardinfo *card, int shift, unsigned char state)
  142. {
  143. unsigned char led;
  144. led = readb(card->csr_remap + MEMCTRLCMD_LEDCTRL);
  145. if (state == LED_FLIP)
  146. led ^= (1<<shift);
  147. else {
  148. led &= ~(0x03 << shift);
  149. led |= (state << shift);
  150. }
  151. writeb(led, card->csr_remap + MEMCTRLCMD_LEDCTRL);
  152. }
  153. #ifdef MM_DIAG
  154. static void dump_regs(struct cardinfo *card)
  155. {
  156. unsigned char *p;
  157. int i, i1;
  158. p = card->csr_remap;
  159. for (i = 0; i < 8; i++) {
  160. printk(KERN_DEBUG "%p ", p);
  161. for (i1 = 0; i1 < 16; i1++)
  162. printk("%02x ", *p++);
  163. printk("\n");
  164. }
  165. }
  166. #endif
  167. static void dump_dmastat(struct cardinfo *card, unsigned int dmastat)
  168. {
  169. dev_printk(KERN_DEBUG, &card->dev->dev, "DMAstat - ");
  170. if (dmastat & DMASCR_ANY_ERR)
  171. printk(KERN_CONT "ANY_ERR ");
  172. if (dmastat & DMASCR_MBE_ERR)
  173. printk(KERN_CONT "MBE_ERR ");
  174. if (dmastat & DMASCR_PARITY_ERR_REP)
  175. printk(KERN_CONT "PARITY_ERR_REP ");
  176. if (dmastat & DMASCR_PARITY_ERR_DET)
  177. printk(KERN_CONT "PARITY_ERR_DET ");
  178. if (dmastat & DMASCR_SYSTEM_ERR_SIG)
  179. printk(KERN_CONT "SYSTEM_ERR_SIG ");
  180. if (dmastat & DMASCR_TARGET_ABT)
  181. printk(KERN_CONT "TARGET_ABT ");
  182. if (dmastat & DMASCR_MASTER_ABT)
  183. printk(KERN_CONT "MASTER_ABT ");
  184. if (dmastat & DMASCR_CHAIN_COMPLETE)
  185. printk(KERN_CONT "CHAIN_COMPLETE ");
  186. if (dmastat & DMASCR_DMA_COMPLETE)
  187. printk(KERN_CONT "DMA_COMPLETE ");
  188. printk("\n");
  189. }
  190. /*
  191. * Theory of request handling
  192. *
  193. * Each bio is assigned to one mm_dma_desc - which may not be enough FIXME
  194. * We have two pages of mm_dma_desc, holding about 64 descriptors
  195. * each. These are allocated at init time.
  196. * One page is "Ready" and is either full, or can have request added.
  197. * The other page might be "Active", which DMA is happening on it.
  198. *
  199. * Whenever IO on the active page completes, the Ready page is activated
  200. * and the ex-Active page is clean out and made Ready.
  201. * Otherwise the Ready page is only activated when it becomes full, or
  202. * when mm_unplug_device is called via the unplug_io_fn.
  203. *
  204. * If a request arrives while both pages a full, it is queued, and b_rdev is
  205. * overloaded to record whether it was a read or a write.
  206. *
  207. * The interrupt handler only polls the device to clear the interrupt.
  208. * The processing of the result is done in a tasklet.
  209. */
  210. static void mm_start_io(struct cardinfo *card)
  211. {
  212. /* we have the lock, we know there is
  213. * no IO active, and we know that card->Active
  214. * is set
  215. */
  216. struct mm_dma_desc *desc;
  217. struct mm_page *page;
  218. int offset;
  219. /* make the last descriptor end the chain */
  220. page = &card->mm_pages[card->Active];
  221. pr_debug("start_io: %d %d->%d\n",
  222. card->Active, page->headcnt, page->cnt - 1);
  223. desc = &page->desc[page->cnt-1];
  224. desc->control_bits |= cpu_to_le32(DMASCR_CHAIN_COMP_EN);
  225. desc->control_bits &= ~cpu_to_le32(DMASCR_CHAIN_EN);
  226. desc->sem_control_bits = desc->control_bits;
  227. if (debug & DEBUG_LED_ON_TRANSFER)
  228. set_led(card, LED_REMOVE, LED_ON);
  229. desc = &page->desc[page->headcnt];
  230. writel(0, card->csr_remap + DMA_PCI_ADDR);
  231. writel(0, card->csr_remap + DMA_PCI_ADDR + 4);
  232. writel(0, card->csr_remap + DMA_LOCAL_ADDR);
  233. writel(0, card->csr_remap + DMA_LOCAL_ADDR + 4);
  234. writel(0, card->csr_remap + DMA_TRANSFER_SIZE);
  235. writel(0, card->csr_remap + DMA_TRANSFER_SIZE + 4);
  236. writel(0, card->csr_remap + DMA_SEMAPHORE_ADDR);
  237. writel(0, card->csr_remap + DMA_SEMAPHORE_ADDR + 4);
  238. offset = ((char *)desc) - ((char *)page->desc);
  239. writel(cpu_to_le32((page->page_dma+offset) & 0xffffffff),
  240. card->csr_remap + DMA_DESCRIPTOR_ADDR);
  241. /* Force the value to u64 before shifting otherwise >> 32 is undefined C
  242. * and on some ports will do nothing ! */
  243. writel(cpu_to_le32(((u64)page->page_dma)>>32),
  244. card->csr_remap + DMA_DESCRIPTOR_ADDR + 4);
  245. /* Go, go, go */
  246. writel(cpu_to_le32(DMASCR_GO | DMASCR_CHAIN_EN | pci_cmds),
  247. card->csr_remap + DMA_STATUS_CTRL);
  248. }
  249. static int add_bio(struct cardinfo *card);
  250. static void activate(struct cardinfo *card)
  251. {
  252. /* if No page is Active, and Ready is
  253. * not empty, then switch Ready page
  254. * to active and start IO.
  255. * Then add any bh's that are available to Ready
  256. */
  257. do {
  258. while (add_bio(card))
  259. ;
  260. if (card->Active == -1 &&
  261. card->mm_pages[card->Ready].cnt > 0) {
  262. card->Active = card->Ready;
  263. card->Ready = 1-card->Ready;
  264. mm_start_io(card);
  265. }
  266. } while (card->Active == -1 && add_bio(card));
  267. }
  268. static inline void reset_page(struct mm_page *page)
  269. {
  270. page->cnt = 0;
  271. page->headcnt = 0;
  272. page->bio = NULL;
  273. page->biotail = &page->bio;
  274. }
  275. static void mm_unplug_device(struct request_queue *q)
  276. {
  277. struct cardinfo *card = q->queuedata;
  278. unsigned long flags;
  279. spin_lock_irqsave(&card->lock, flags);
  280. if (blk_remove_plug(q))
  281. activate(card);
  282. spin_unlock_irqrestore(&card->lock, flags);
  283. }
  284. /*
  285. * If there is room on Ready page, take
  286. * one bh off list and add it.
  287. * return 1 if there was room, else 0.
  288. */
  289. static int add_bio(struct cardinfo *card)
  290. {
  291. struct mm_page *p;
  292. struct mm_dma_desc *desc;
  293. dma_addr_t dma_handle;
  294. int offset;
  295. struct bio *bio;
  296. struct bio_vec *vec;
  297. int idx;
  298. int rw;
  299. int len;
  300. bio = card->currentbio;
  301. if (!bio && card->bio) {
  302. card->currentbio = card->bio;
  303. card->current_idx = card->bio->bi_idx;
  304. card->current_sector = card->bio->bi_sector;
  305. card->bio = card->bio->bi_next;
  306. if (card->bio == NULL)
  307. card->biotail = &card->bio;
  308. card->currentbio->bi_next = NULL;
  309. return 1;
  310. }
  311. if (!bio)
  312. return 0;
  313. idx = card->current_idx;
  314. rw = bio_rw(bio);
  315. if (card->mm_pages[card->Ready].cnt >= DESC_PER_PAGE)
  316. return 0;
  317. vec = bio_iovec_idx(bio, idx);
  318. len = vec->bv_len;
  319. dma_handle = pci_map_page(card->dev,
  320. vec->bv_page,
  321. vec->bv_offset,
  322. len,
  323. (rw == READ) ?
  324. PCI_DMA_FROMDEVICE : PCI_DMA_TODEVICE);
  325. p = &card->mm_pages[card->Ready];
  326. desc = &p->desc[p->cnt];
  327. p->cnt++;
  328. if (p->bio == NULL)
  329. p->idx = idx;
  330. if ((p->biotail) != &bio->bi_next) {
  331. *(p->biotail) = bio;
  332. p->biotail = &(bio->bi_next);
  333. bio->bi_next = NULL;
  334. }
  335. desc->data_dma_handle = dma_handle;
  336. desc->pci_addr = cpu_to_le64((u64)desc->data_dma_handle);
  337. desc->local_addr = cpu_to_le64(card->current_sector << 9);
  338. desc->transfer_size = cpu_to_le32(len);
  339. offset = (((char *)&desc->sem_control_bits) - ((char *)p->desc));
  340. desc->sem_addr = cpu_to_le64((u64)(p->page_dma+offset));
  341. desc->zero1 = desc->zero2 = 0;
  342. offset = (((char *)(desc+1)) - ((char *)p->desc));
  343. desc->next_desc_addr = cpu_to_le64(p->page_dma+offset);
  344. desc->control_bits = cpu_to_le32(DMASCR_GO|DMASCR_ERR_INT_EN|
  345. DMASCR_PARITY_INT_EN|
  346. DMASCR_CHAIN_EN |
  347. DMASCR_SEM_EN |
  348. pci_cmds);
  349. if (rw == WRITE)
  350. desc->control_bits |= cpu_to_le32(DMASCR_TRANSFER_READ);
  351. desc->sem_control_bits = desc->control_bits;
  352. card->current_sector += (len >> 9);
  353. idx++;
  354. card->current_idx = idx;
  355. if (idx >= bio->bi_vcnt)
  356. card->currentbio = NULL;
  357. return 1;
  358. }
  359. static void process_page(unsigned long data)
  360. {
  361. /* check if any of the requests in the page are DMA_COMPLETE,
  362. * and deal with them appropriately.
  363. * If we find a descriptor without DMA_COMPLETE in the semaphore, then
  364. * dma must have hit an error on that descriptor, so use dma_status
  365. * instead and assume that all following descriptors must be re-tried.
  366. */
  367. struct mm_page *page;
  368. struct bio *return_bio = NULL;
  369. struct cardinfo *card = (struct cardinfo *)data;
  370. unsigned int dma_status = card->dma_status;
  371. spin_lock_bh(&card->lock);
  372. if (card->Active < 0)
  373. goto out_unlock;
  374. page = &card->mm_pages[card->Active];
  375. while (page->headcnt < page->cnt) {
  376. struct bio *bio = page->bio;
  377. struct mm_dma_desc *desc = &page->desc[page->headcnt];
  378. int control = le32_to_cpu(desc->sem_control_bits);
  379. int last = 0;
  380. int idx;
  381. if (!(control & DMASCR_DMA_COMPLETE)) {
  382. control = dma_status;
  383. last = 1;
  384. }
  385. page->headcnt++;
  386. idx = page->idx;
  387. page->idx++;
  388. if (page->idx >= bio->bi_vcnt) {
  389. page->bio = bio->bi_next;
  390. if (page->bio)
  391. page->idx = page->bio->bi_idx;
  392. }
  393. pci_unmap_page(card->dev, desc->data_dma_handle,
  394. bio_iovec_idx(bio, idx)->bv_len,
  395. (control & DMASCR_TRANSFER_READ) ?
  396. PCI_DMA_TODEVICE : PCI_DMA_FROMDEVICE);
  397. if (control & DMASCR_HARD_ERROR) {
  398. /* error */
  399. clear_bit(BIO_UPTODATE, &bio->bi_flags);
  400. dev_printk(KERN_WARNING, &card->dev->dev,
  401. "I/O error on sector %d/%d\n",
  402. le32_to_cpu(desc->local_addr)>>9,
  403. le32_to_cpu(desc->transfer_size));
  404. dump_dmastat(card, control);
  405. } else if (test_bit(BIO_RW, &bio->bi_rw) &&
  406. le32_to_cpu(desc->local_addr) >> 9 ==
  407. card->init_size) {
  408. card->init_size += le32_to_cpu(desc->transfer_size) >> 9;
  409. if (card->init_size >> 1 >= card->mm_size) {
  410. dev_printk(KERN_INFO, &card->dev->dev,
  411. "memory now initialised\n");
  412. set_userbit(card, MEMORY_INITIALIZED, 1);
  413. }
  414. }
  415. if (bio != page->bio) {
  416. bio->bi_next = return_bio;
  417. return_bio = bio;
  418. }
  419. if (last)
  420. break;
  421. }
  422. if (debug & DEBUG_LED_ON_TRANSFER)
  423. set_led(card, LED_REMOVE, LED_OFF);
  424. if (card->check_batteries) {
  425. card->check_batteries = 0;
  426. check_batteries(card);
  427. }
  428. if (page->headcnt >= page->cnt) {
  429. reset_page(page);
  430. card->Active = -1;
  431. activate(card);
  432. } else {
  433. /* haven't finished with this one yet */
  434. pr_debug("do some more\n");
  435. mm_start_io(card);
  436. }
  437. out_unlock:
  438. spin_unlock_bh(&card->lock);
  439. while (return_bio) {
  440. struct bio *bio = return_bio;
  441. return_bio = bio->bi_next;
  442. bio->bi_next = NULL;
  443. bio_endio(bio, 0);
  444. }
  445. }
  446. static int mm_make_request(struct request_queue *q, struct bio *bio)
  447. {
  448. struct cardinfo *card = q->queuedata;
  449. pr_debug("mm_make_request %llu %u\n",
  450. (unsigned long long)bio->bi_sector, bio->bi_size);
  451. spin_lock_irq(&card->lock);
  452. *card->biotail = bio;
  453. bio->bi_next = NULL;
  454. card->biotail = &bio->bi_next;
  455. blk_plug_device(q);
  456. spin_unlock_irq(&card->lock);
  457. return 0;
  458. }
  459. static irqreturn_t mm_interrupt(int irq, void *__card)
  460. {
  461. struct cardinfo *card = (struct cardinfo *) __card;
  462. unsigned int dma_status;
  463. unsigned short cfg_status;
  464. HW_TRACE(0x30);
  465. dma_status = le32_to_cpu(readl(card->csr_remap + DMA_STATUS_CTRL));
  466. if (!(dma_status & (DMASCR_ERROR_MASK | DMASCR_CHAIN_COMPLETE))) {
  467. /* interrupt wasn't for me ... */
  468. return IRQ_NONE;
  469. }
  470. /* clear COMPLETION interrupts */
  471. if (card->flags & UM_FLAG_NO_BYTE_STATUS)
  472. writel(cpu_to_le32(DMASCR_DMA_COMPLETE|DMASCR_CHAIN_COMPLETE),
  473. card->csr_remap + DMA_STATUS_CTRL);
  474. else
  475. writeb((DMASCR_DMA_COMPLETE|DMASCR_CHAIN_COMPLETE) >> 16,
  476. card->csr_remap + DMA_STATUS_CTRL + 2);
  477. /* log errors and clear interrupt status */
  478. if (dma_status & DMASCR_ANY_ERR) {
  479. unsigned int data_log1, data_log2;
  480. unsigned int addr_log1, addr_log2;
  481. unsigned char stat, count, syndrome, check;
  482. stat = readb(card->csr_remap + MEMCTRLCMD_ERRSTATUS);
  483. data_log1 = le32_to_cpu(readl(card->csr_remap +
  484. ERROR_DATA_LOG));
  485. data_log2 = le32_to_cpu(readl(card->csr_remap +
  486. ERROR_DATA_LOG + 4));
  487. addr_log1 = le32_to_cpu(readl(card->csr_remap +
  488. ERROR_ADDR_LOG));
  489. addr_log2 = readb(card->csr_remap + ERROR_ADDR_LOG + 4);
  490. count = readb(card->csr_remap + ERROR_COUNT);
  491. syndrome = readb(card->csr_remap + ERROR_SYNDROME);
  492. check = readb(card->csr_remap + ERROR_CHECK);
  493. dump_dmastat(card, dma_status);
  494. if (stat & 0x01)
  495. dev_printk(KERN_ERR, &card->dev->dev,
  496. "Memory access error detected (err count %d)\n",
  497. count);
  498. if (stat & 0x02)
  499. dev_printk(KERN_ERR, &card->dev->dev,
  500. "Multi-bit EDC error\n");
  501. dev_printk(KERN_ERR, &card->dev->dev,
  502. "Fault Address 0x%02x%08x, Fault Data 0x%08x%08x\n",
  503. addr_log2, addr_log1, data_log2, data_log1);
  504. dev_printk(KERN_ERR, &card->dev->dev,
  505. "Fault Check 0x%02x, Fault Syndrome 0x%02x\n",
  506. check, syndrome);
  507. writeb(0, card->csr_remap + ERROR_COUNT);
  508. }
  509. if (dma_status & DMASCR_PARITY_ERR_REP) {
  510. dev_printk(KERN_ERR, &card->dev->dev,
  511. "PARITY ERROR REPORTED\n");
  512. pci_read_config_word(card->dev, PCI_STATUS, &cfg_status);
  513. pci_write_config_word(card->dev, PCI_STATUS, cfg_status);
  514. }
  515. if (dma_status & DMASCR_PARITY_ERR_DET) {
  516. dev_printk(KERN_ERR, &card->dev->dev,
  517. "PARITY ERROR DETECTED\n");
  518. pci_read_config_word(card->dev, PCI_STATUS, &cfg_status);
  519. pci_write_config_word(card->dev, PCI_STATUS, cfg_status);
  520. }
  521. if (dma_status & DMASCR_SYSTEM_ERR_SIG) {
  522. dev_printk(KERN_ERR, &card->dev->dev, "SYSTEM ERROR\n");
  523. pci_read_config_word(card->dev, PCI_STATUS, &cfg_status);
  524. pci_write_config_word(card->dev, PCI_STATUS, cfg_status);
  525. }
  526. if (dma_status & DMASCR_TARGET_ABT) {
  527. dev_printk(KERN_ERR, &card->dev->dev, "TARGET ABORT\n");
  528. pci_read_config_word(card->dev, PCI_STATUS, &cfg_status);
  529. pci_write_config_word(card->dev, PCI_STATUS, cfg_status);
  530. }
  531. if (dma_status & DMASCR_MASTER_ABT) {
  532. dev_printk(KERN_ERR, &card->dev->dev, "MASTER ABORT\n");
  533. pci_read_config_word(card->dev, PCI_STATUS, &cfg_status);
  534. pci_write_config_word(card->dev, PCI_STATUS, cfg_status);
  535. }
  536. /* and process the DMA descriptors */
  537. card->dma_status = dma_status;
  538. tasklet_schedule(&card->tasklet);
  539. HW_TRACE(0x36);
  540. return IRQ_HANDLED;
  541. }
  542. /*
  543. * If both batteries are good, no LED
  544. * If either battery has been warned, solid LED
  545. * If both batteries are bad, flash the LED quickly
  546. * If either battery is bad, flash the LED semi quickly
  547. */
  548. static void set_fault_to_battery_status(struct cardinfo *card)
  549. {
  550. if (card->battery[0].good && card->battery[1].good)
  551. set_led(card, LED_FAULT, LED_OFF);
  552. else if (card->battery[0].warned || card->battery[1].warned)
  553. set_led(card, LED_FAULT, LED_ON);
  554. else if (!card->battery[0].good && !card->battery[1].good)
  555. set_led(card, LED_FAULT, LED_FLASH_7_0);
  556. else
  557. set_led(card, LED_FAULT, LED_FLASH_3_5);
  558. }
  559. static void init_battery_timer(void);
  560. static int check_battery(struct cardinfo *card, int battery, int status)
  561. {
  562. if (status != card->battery[battery].good) {
  563. card->battery[battery].good = !card->battery[battery].good;
  564. card->battery[battery].last_change = jiffies;
  565. if (card->battery[battery].good) {
  566. dev_printk(KERN_ERR, &card->dev->dev,
  567. "Battery %d now good\n", battery + 1);
  568. card->battery[battery].warned = 0;
  569. } else
  570. dev_printk(KERN_ERR, &card->dev->dev,
  571. "Battery %d now FAILED\n", battery + 1);
  572. return 1;
  573. } else if (!card->battery[battery].good &&
  574. !card->battery[battery].warned &&
  575. time_after_eq(jiffies, card->battery[battery].last_change +
  576. (HZ * 60 * 60 * 5))) {
  577. dev_printk(KERN_ERR, &card->dev->dev,
  578. "Battery %d still FAILED after 5 hours\n", battery + 1);
  579. card->battery[battery].warned = 1;
  580. return 1;
  581. }
  582. return 0;
  583. }
  584. static void check_batteries(struct cardinfo *card)
  585. {
  586. /* NOTE: this must *never* be called while the card
  587. * is doing (bus-to-card) DMA, or you will need the
  588. * reset switch
  589. */
  590. unsigned char status;
  591. int ret1, ret2;
  592. status = readb(card->csr_remap + MEMCTRLSTATUS_BATTERY);
  593. if (debug & DEBUG_BATTERY_POLLING)
  594. dev_printk(KERN_DEBUG, &card->dev->dev,
  595. "checking battery status, 1 = %s, 2 = %s\n",
  596. (status & BATTERY_1_FAILURE) ? "FAILURE" : "OK",
  597. (status & BATTERY_2_FAILURE) ? "FAILURE" : "OK");
  598. ret1 = check_battery(card, 0, !(status & BATTERY_1_FAILURE));
  599. ret2 = check_battery(card, 1, !(status & BATTERY_2_FAILURE));
  600. if (ret1 || ret2)
  601. set_fault_to_battery_status(card);
  602. }
  603. static void check_all_batteries(unsigned long ptr)
  604. {
  605. int i;
  606. for (i = 0; i < num_cards; i++)
  607. if (!(cards[i].flags & UM_FLAG_NO_BATT)) {
  608. struct cardinfo *card = &cards[i];
  609. spin_lock_bh(&card->lock);
  610. if (card->Active >= 0)
  611. card->check_batteries = 1;
  612. else
  613. check_batteries(card);
  614. spin_unlock_bh(&card->lock);
  615. }
  616. init_battery_timer();
  617. }
  618. static void init_battery_timer(void)
  619. {
  620. init_timer(&battery_timer);
  621. battery_timer.function = check_all_batteries;
  622. battery_timer.expires = jiffies + (HZ * 60);
  623. add_timer(&battery_timer);
  624. }
  625. static void del_battery_timer(void)
  626. {
  627. del_timer(&battery_timer);
  628. }
  629. /*
  630. * Note no locks taken out here. In a worst case scenario, we could drop
  631. * a chunk of system memory. But that should never happen, since validation
  632. * happens at open or mount time, when locks are held.
  633. *
  634. * That's crap, since doing that while some partitions are opened
  635. * or mounted will give you really nasty results.
  636. */
  637. static int mm_revalidate(struct gendisk *disk)
  638. {
  639. struct cardinfo *card = disk->private_data;
  640. set_capacity(disk, card->mm_size << 1);
  641. return 0;
  642. }
  643. static int mm_getgeo(struct block_device *bdev, struct hd_geometry *geo)
  644. {
  645. struct cardinfo *card = bdev->bd_disk->private_data;
  646. int size = card->mm_size * (1024 / MM_HARDSECT);
  647. /*
  648. * get geometry: we have to fake one... trim the size to a
  649. * multiple of 2048 (1M): tell we have 32 sectors, 64 heads,
  650. * whatever cylinders.
  651. */
  652. geo->heads = 64;
  653. geo->sectors = 32;
  654. geo->cylinders = size / (geo->heads * geo->sectors);
  655. return 0;
  656. }
  657. /*
  658. * Future support for removable devices
  659. */
  660. static int mm_check_change(struct gendisk *disk)
  661. {
  662. /* struct cardinfo *dev = disk->private_data; */
  663. return 0;
  664. }
  665. static const struct block_device_operations mm_fops = {
  666. .owner = THIS_MODULE,
  667. .getgeo = mm_getgeo,
  668. .revalidate_disk = mm_revalidate,
  669. .media_changed = mm_check_change,
  670. };
  671. static int __devinit mm_pci_probe(struct pci_dev *dev,
  672. const struct pci_device_id *id)
  673. {
  674. int ret = -ENODEV;
  675. struct cardinfo *card = &cards[num_cards];
  676. unsigned char mem_present;
  677. unsigned char batt_status;
  678. unsigned int saved_bar, data;
  679. unsigned long csr_base;
  680. unsigned long csr_len;
  681. int magic_number;
  682. static int printed_version;
  683. if (!printed_version++)
  684. printk(KERN_INFO DRIVER_VERSION " : " DRIVER_DESC "\n");
  685. ret = pci_enable_device(dev);
  686. if (ret)
  687. return ret;
  688. pci_write_config_byte(dev, PCI_LATENCY_TIMER, 0xF8);
  689. pci_set_master(dev);
  690. card->dev = dev;
  691. csr_base = pci_resource_start(dev, 0);
  692. csr_len = pci_resource_len(dev, 0);
  693. if (!csr_base || !csr_len)
  694. return -ENODEV;
  695. dev_printk(KERN_INFO, &dev->dev,
  696. "Micro Memory(tm) controller found (PCI Mem Module (Battery Backup))\n");
  697. if (pci_set_dma_mask(dev, DMA_BIT_MASK(64)) &&
  698. pci_set_dma_mask(dev, DMA_BIT_MASK(32))) {
  699. dev_printk(KERN_WARNING, &dev->dev, "NO suitable DMA found\n");
  700. return -ENOMEM;
  701. }
  702. ret = pci_request_regions(dev, DRIVER_NAME);
  703. if (ret) {
  704. dev_printk(KERN_ERR, &card->dev->dev,
  705. "Unable to request memory region\n");
  706. goto failed_req_csr;
  707. }
  708. card->csr_remap = ioremap_nocache(csr_base, csr_len);
  709. if (!card->csr_remap) {
  710. dev_printk(KERN_ERR, &card->dev->dev,
  711. "Unable to remap memory region\n");
  712. ret = -ENOMEM;
  713. goto failed_remap_csr;
  714. }
  715. dev_printk(KERN_INFO, &card->dev->dev,
  716. "CSR 0x%08lx -> 0x%p (0x%lx)\n",
  717. csr_base, card->csr_remap, csr_len);
  718. switch (card->dev->device) {
  719. case 0x5415:
  720. card->flags |= UM_FLAG_NO_BYTE_STATUS | UM_FLAG_NO_BATTREG;
  721. magic_number = 0x59;
  722. break;
  723. case 0x5425:
  724. card->flags |= UM_FLAG_NO_BYTE_STATUS;
  725. magic_number = 0x5C;
  726. break;
  727. case 0x6155:
  728. card->flags |= UM_FLAG_NO_BYTE_STATUS |
  729. UM_FLAG_NO_BATTREG | UM_FLAG_NO_BATT;
  730. magic_number = 0x99;
  731. break;
  732. default:
  733. magic_number = 0x100;
  734. break;
  735. }
  736. if (readb(card->csr_remap + MEMCTRLSTATUS_MAGIC) != magic_number) {
  737. dev_printk(KERN_ERR, &card->dev->dev, "Magic number invalid\n");
  738. ret = -ENOMEM;
  739. goto failed_magic;
  740. }
  741. card->mm_pages[0].desc = pci_alloc_consistent(card->dev,
  742. PAGE_SIZE * 2,
  743. &card->mm_pages[0].page_dma);
  744. card->mm_pages[1].desc = pci_alloc_consistent(card->dev,
  745. PAGE_SIZE * 2,
  746. &card->mm_pages[1].page_dma);
  747. if (card->mm_pages[0].desc == NULL ||
  748. card->mm_pages[1].desc == NULL) {
  749. dev_printk(KERN_ERR, &card->dev->dev, "alloc failed\n");
  750. goto failed_alloc;
  751. }
  752. reset_page(&card->mm_pages[0]);
  753. reset_page(&card->mm_pages[1]);
  754. card->Ready = 0; /* page 0 is ready */
  755. card->Active = -1; /* no page is active */
  756. card->bio = NULL;
  757. card->biotail = &card->bio;
  758. card->queue = blk_alloc_queue(GFP_KERNEL);
  759. if (!card->queue)
  760. goto failed_alloc;
  761. blk_queue_make_request(card->queue, mm_make_request);
  762. card->queue->queue_lock = &card->lock;
  763. card->queue->queuedata = card;
  764. card->queue->unplug_fn = mm_unplug_device;
  765. tasklet_init(&card->tasklet, process_page, (unsigned long)card);
  766. card->check_batteries = 0;
  767. mem_present = readb(card->csr_remap + MEMCTRLSTATUS_MEMORY);
  768. switch (mem_present) {
  769. case MEM_128_MB:
  770. card->mm_size = 1024 * 128;
  771. break;
  772. case MEM_256_MB:
  773. card->mm_size = 1024 * 256;
  774. break;
  775. case MEM_512_MB:
  776. card->mm_size = 1024 * 512;
  777. break;
  778. case MEM_1_GB:
  779. card->mm_size = 1024 * 1024;
  780. break;
  781. case MEM_2_GB:
  782. card->mm_size = 1024 * 2048;
  783. break;
  784. default:
  785. card->mm_size = 0;
  786. break;
  787. }
  788. /* Clear the LED's we control */
  789. set_led(card, LED_REMOVE, LED_OFF);
  790. set_led(card, LED_FAULT, LED_OFF);
  791. batt_status = readb(card->csr_remap + MEMCTRLSTATUS_BATTERY);
  792. card->battery[0].good = !(batt_status & BATTERY_1_FAILURE);
  793. card->battery[1].good = !(batt_status & BATTERY_2_FAILURE);
  794. card->battery[0].last_change = card->battery[1].last_change = jiffies;
  795. if (card->flags & UM_FLAG_NO_BATT)
  796. dev_printk(KERN_INFO, &card->dev->dev,
  797. "Size %d KB\n", card->mm_size);
  798. else {
  799. dev_printk(KERN_INFO, &card->dev->dev,
  800. "Size %d KB, Battery 1 %s (%s), Battery 2 %s (%s)\n",
  801. card->mm_size,
  802. batt_status & BATTERY_1_DISABLED ? "Disabled" : "Enabled",
  803. card->battery[0].good ? "OK" : "FAILURE",
  804. batt_status & BATTERY_2_DISABLED ? "Disabled" : "Enabled",
  805. card->battery[1].good ? "OK" : "FAILURE");
  806. set_fault_to_battery_status(card);
  807. }
  808. pci_read_config_dword(dev, PCI_BASE_ADDRESS_1, &saved_bar);
  809. data = 0xffffffff;
  810. pci_write_config_dword(dev, PCI_BASE_ADDRESS_1, data);
  811. pci_read_config_dword(dev, PCI_BASE_ADDRESS_1, &data);
  812. pci_write_config_dword(dev, PCI_BASE_ADDRESS_1, saved_bar);
  813. data &= 0xfffffff0;
  814. data = ~data;
  815. data += 1;
  816. if (request_irq(dev->irq, mm_interrupt, IRQF_SHARED, DRIVER_NAME,
  817. card)) {
  818. dev_printk(KERN_ERR, &card->dev->dev,
  819. "Unable to allocate IRQ\n");
  820. ret = -ENODEV;
  821. goto failed_req_irq;
  822. }
  823. dev_printk(KERN_INFO, &card->dev->dev,
  824. "Window size %d bytes, IRQ %d\n", data, dev->irq);
  825. spin_lock_init(&card->lock);
  826. pci_set_drvdata(dev, card);
  827. if (pci_write_cmd != 0x0F) /* If not Memory Write & Invalidate */
  828. pci_write_cmd = 0x07; /* then Memory Write command */
  829. if (pci_write_cmd & 0x08) { /* use Memory Write and Invalidate */
  830. unsigned short cfg_command;
  831. pci_read_config_word(dev, PCI_COMMAND, &cfg_command);
  832. cfg_command |= 0x10; /* Memory Write & Invalidate Enable */
  833. pci_write_config_word(dev, PCI_COMMAND, cfg_command);
  834. }
  835. pci_cmds = (pci_read_cmd << 28) | (pci_write_cmd << 24);
  836. num_cards++;
  837. if (!get_userbit(card, MEMORY_INITIALIZED)) {
  838. dev_printk(KERN_INFO, &card->dev->dev,
  839. "memory NOT initialized. Consider over-writing whole device.\n");
  840. card->init_size = 0;
  841. } else {
  842. dev_printk(KERN_INFO, &card->dev->dev,
  843. "memory already initialized\n");
  844. card->init_size = card->mm_size;
  845. }
  846. /* Enable ECC */
  847. writeb(EDC_STORE_CORRECT, card->csr_remap + MEMCTRLCMD_ERRCTRL);
  848. return 0;
  849. failed_req_irq:
  850. failed_alloc:
  851. if (card->mm_pages[0].desc)
  852. pci_free_consistent(card->dev, PAGE_SIZE*2,
  853. card->mm_pages[0].desc,
  854. card->mm_pages[0].page_dma);
  855. if (card->mm_pages[1].desc)
  856. pci_free_consistent(card->dev, PAGE_SIZE*2,
  857. card->mm_pages[1].desc,
  858. card->mm_pages[1].page_dma);
  859. failed_magic:
  860. iounmap(card->csr_remap);
  861. failed_remap_csr:
  862. pci_release_regions(dev);
  863. failed_req_csr:
  864. return ret;
  865. }
  866. static void mm_pci_remove(struct pci_dev *dev)
  867. {
  868. struct cardinfo *card = pci_get_drvdata(dev);
  869. tasklet_kill(&card->tasklet);
  870. free_irq(dev->irq, card);
  871. iounmap(card->csr_remap);
  872. if (card->mm_pages[0].desc)
  873. pci_free_consistent(card->dev, PAGE_SIZE*2,
  874. card->mm_pages[0].desc,
  875. card->mm_pages[0].page_dma);
  876. if (card->mm_pages[1].desc)
  877. pci_free_consistent(card->dev, PAGE_SIZE*2,
  878. card->mm_pages[1].desc,
  879. card->mm_pages[1].page_dma);
  880. blk_cleanup_queue(card->queue);
  881. pci_release_regions(dev);
  882. pci_disable_device(dev);
  883. }
  884. static const struct pci_device_id mm_pci_ids[] = {
  885. {PCI_DEVICE(PCI_VENDOR_ID_MICRO_MEMORY, PCI_DEVICE_ID_MICRO_MEMORY_5415CN)},
  886. {PCI_DEVICE(PCI_VENDOR_ID_MICRO_MEMORY, PCI_DEVICE_ID_MICRO_MEMORY_5425CN)},
  887. {PCI_DEVICE(PCI_VENDOR_ID_MICRO_MEMORY, PCI_DEVICE_ID_MICRO_MEMORY_6155)},
  888. {
  889. .vendor = 0x8086,
  890. .device = 0xB555,
  891. .subvendor = 0x1332,
  892. .subdevice = 0x5460,
  893. .class = 0x050000,
  894. .class_mask = 0,
  895. }, { /* end: all zeroes */ }
  896. };
  897. MODULE_DEVICE_TABLE(pci, mm_pci_ids);
  898. static struct pci_driver mm_pci_driver = {
  899. .name = DRIVER_NAME,
  900. .id_table = mm_pci_ids,
  901. .probe = mm_pci_probe,
  902. .remove = mm_pci_remove,
  903. };
  904. static int __init mm_init(void)
  905. {
  906. int retval, i;
  907. int err;
  908. retval = pci_register_driver(&mm_pci_driver);
  909. if (retval)
  910. return -ENOMEM;
  911. err = major_nr = register_blkdev(0, DRIVER_NAME);
  912. if (err < 0) {
  913. pci_unregister_driver(&mm_pci_driver);
  914. return -EIO;
  915. }
  916. for (i = 0; i < num_cards; i++) {
  917. mm_gendisk[i] = alloc_disk(1 << MM_SHIFT);
  918. if (!mm_gendisk[i])
  919. goto out;
  920. }
  921. for (i = 0; i < num_cards; i++) {
  922. struct gendisk *disk = mm_gendisk[i];
  923. sprintf(disk->disk_name, "umem%c", 'a'+i);
  924. spin_lock_init(&cards[i].lock);
  925. disk->major = major_nr;
  926. disk->first_minor = i << MM_SHIFT;
  927. disk->fops = &mm_fops;
  928. disk->private_data = &cards[i];
  929. disk->queue = cards[i].queue;
  930. set_capacity(disk, cards[i].mm_size << 1);
  931. add_disk(disk);
  932. }
  933. init_battery_timer();
  934. printk(KERN_INFO "MM: desc_per_page = %ld\n", DESC_PER_PAGE);
  935. /* printk("mm_init: Done. 10-19-01 9:00\n"); */
  936. return 0;
  937. out:
  938. pci_unregister_driver(&mm_pci_driver);
  939. unregister_blkdev(major_nr, DRIVER_NAME);
  940. while (i--)
  941. put_disk(mm_gendisk[i]);
  942. return -ENOMEM;
  943. }
  944. static void __exit mm_cleanup(void)
  945. {
  946. int i;
  947. del_battery_timer();
  948. for (i = 0; i < num_cards ; i++) {
  949. del_gendisk(mm_gendisk[i]);
  950. put_disk(mm_gendisk[i]);
  951. }
  952. pci_unregister_driver(&mm_pci_driver);
  953. unregister_blkdev(major_nr, DRIVER_NAME);
  954. }
  955. module_init(mm_init);
  956. module_exit(mm_cleanup);
  957. MODULE_AUTHOR(DRIVER_AUTHOR);
  958. MODULE_DESCRIPTION(DRIVER_DESC);
  959. MODULE_LICENSE("GPL");