ccio-dma.c 48 KB

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  1. /*
  2. ** ccio-dma.c:
  3. ** DMA management routines for first generation cache-coherent machines.
  4. ** Program U2/Uturn in "Virtual Mode" and use the I/O MMU.
  5. **
  6. ** (c) Copyright 2000 Grant Grundler
  7. ** (c) Copyright 2000 Ryan Bradetich
  8. ** (c) Copyright 2000 Hewlett-Packard Company
  9. **
  10. ** This program is free software; you can redistribute it and/or modify
  11. ** it under the terms of the GNU General Public License as published by
  12. ** the Free Software Foundation; either version 2 of the License, or
  13. ** (at your option) any later version.
  14. **
  15. **
  16. ** "Real Mode" operation refers to U2/Uturn chip operation.
  17. ** U2/Uturn were designed to perform coherency checks w/o using
  18. ** the I/O MMU - basically what x86 does.
  19. **
  20. ** Philipp Rumpf has a "Real Mode" driver for PCX-W machines at:
  21. ** CVSROOT=:pserver:anonymous@198.186.203.37:/cvsroot/linux-parisc
  22. ** cvs -z3 co linux/arch/parisc/kernel/dma-rm.c
  23. **
  24. ** I've rewritten his code to work under TPG's tree. See ccio-rm-dma.c.
  25. **
  26. ** Drawbacks of using Real Mode are:
  27. ** o outbound DMA is slower - U2 won't prefetch data (GSC+ XQL signal).
  28. ** o Inbound DMA less efficient - U2 can't use DMA_FAST attribute.
  29. ** o Ability to do scatter/gather in HW is lost.
  30. ** o Doesn't work under PCX-U/U+ machines since they didn't follow
  31. ** the coherency design originally worked out. Only PCX-W does.
  32. */
  33. #include <linux/types.h>
  34. #include <linux/init.h>
  35. #include <linux/mm.h>
  36. #include <linux/spinlock.h>
  37. #include <linux/slab.h>
  38. #include <linux/string.h>
  39. #include <linux/pci.h>
  40. #include <linux/reboot.h>
  41. #include <linux/proc_fs.h>
  42. #include <linux/seq_file.h>
  43. #include <asm/byteorder.h>
  44. #include <asm/cache.h> /* for L1_CACHE_BYTES */
  45. #include <asm/uaccess.h>
  46. #include <asm/page.h>
  47. #include <asm/dma.h>
  48. #include <asm/io.h>
  49. #include <asm/hardware.h> /* for register_module() */
  50. #include <asm/parisc-device.h>
  51. /*
  52. ** Choose "ccio" since that's what HP-UX calls it.
  53. ** Make it easier for folks to migrate from one to the other :^)
  54. */
  55. #define MODULE_NAME "ccio"
  56. #undef DEBUG_CCIO_RES
  57. #undef DEBUG_CCIO_RUN
  58. #undef DEBUG_CCIO_INIT
  59. #undef DEBUG_CCIO_RUN_SG
  60. #ifdef CONFIG_PROC_FS
  61. /*
  62. * CCIO_SEARCH_TIME can help measure how fast the bitmap search is.
  63. * impacts performance though - ditch it if you don't use it.
  64. */
  65. #define CCIO_SEARCH_TIME
  66. #undef CCIO_MAP_STATS
  67. #else
  68. #undef CCIO_SEARCH_TIME
  69. #undef CCIO_MAP_STATS
  70. #endif
  71. #include <linux/proc_fs.h>
  72. #include <asm/runway.h> /* for proc_runway_root */
  73. #ifdef DEBUG_CCIO_INIT
  74. #define DBG_INIT(x...) printk(x)
  75. #else
  76. #define DBG_INIT(x...)
  77. #endif
  78. #ifdef DEBUG_CCIO_RUN
  79. #define DBG_RUN(x...) printk(x)
  80. #else
  81. #define DBG_RUN(x...)
  82. #endif
  83. #ifdef DEBUG_CCIO_RES
  84. #define DBG_RES(x...) printk(x)
  85. #else
  86. #define DBG_RES(x...)
  87. #endif
  88. #ifdef DEBUG_CCIO_RUN_SG
  89. #define DBG_RUN_SG(x...) printk(x)
  90. #else
  91. #define DBG_RUN_SG(x...)
  92. #endif
  93. #define CCIO_INLINE inline
  94. #define WRITE_U32(value, addr) __raw_writel(value, addr)
  95. #define READ_U32(addr) __raw_readl(addr)
  96. #define U2_IOA_RUNWAY 0x580
  97. #define U2_BC_GSC 0x501
  98. #define UTURN_IOA_RUNWAY 0x581
  99. #define UTURN_BC_GSC 0x502
  100. #define IOA_NORMAL_MODE 0x00020080 /* IO_CONTROL to turn on CCIO */
  101. #define CMD_TLB_DIRECT_WRITE 35 /* IO_COMMAND for I/O TLB Writes */
  102. #define CMD_TLB_PURGE 33 /* IO_COMMAND to Purge I/O TLB entry */
  103. struct ioa_registers {
  104. /* Runway Supervisory Set */
  105. int32_t unused1[12];
  106. uint32_t io_command; /* Offset 12 */
  107. uint32_t io_status; /* Offset 13 */
  108. uint32_t io_control; /* Offset 14 */
  109. int32_t unused2[1];
  110. /* Runway Auxiliary Register Set */
  111. uint32_t io_err_resp; /* Offset 0 */
  112. uint32_t io_err_info; /* Offset 1 */
  113. uint32_t io_err_req; /* Offset 2 */
  114. uint32_t io_err_resp_hi; /* Offset 3 */
  115. uint32_t io_tlb_entry_m; /* Offset 4 */
  116. uint32_t io_tlb_entry_l; /* Offset 5 */
  117. uint32_t unused3[1];
  118. uint32_t io_pdir_base; /* Offset 7 */
  119. uint32_t io_io_low_hv; /* Offset 8 */
  120. uint32_t io_io_high_hv; /* Offset 9 */
  121. uint32_t unused4[1];
  122. uint32_t io_chain_id_mask; /* Offset 11 */
  123. uint32_t unused5[2];
  124. uint32_t io_io_low; /* Offset 14 */
  125. uint32_t io_io_high; /* Offset 15 */
  126. };
  127. /*
  128. ** IOA Registers
  129. ** -------------
  130. **
  131. ** Runway IO_CONTROL Register (+0x38)
  132. **
  133. ** The Runway IO_CONTROL register controls the forwarding of transactions.
  134. **
  135. ** | 0 ... 13 | 14 15 | 16 ... 21 | 22 | 23 24 | 25 ... 31 |
  136. ** | HV | TLB | reserved | HV | mode | reserved |
  137. **
  138. ** o mode field indicates the address translation of transactions
  139. ** forwarded from Runway to GSC+:
  140. ** Mode Name Value Definition
  141. ** Off (default) 0 Opaque to matching addresses.
  142. ** Include 1 Transparent for matching addresses.
  143. ** Peek 3 Map matching addresses.
  144. **
  145. ** + "Off" mode: Runway transactions which match the I/O range
  146. ** specified by the IO_IO_LOW/IO_IO_HIGH registers will be ignored.
  147. ** + "Include" mode: all addresses within the I/O range specified
  148. ** by the IO_IO_LOW and IO_IO_HIGH registers are transparently
  149. ** forwarded. This is the I/O Adapter's normal operating mode.
  150. ** + "Peek" mode: used during system configuration to initialize the
  151. ** GSC+ bus. Runway Write_Shorts in the address range specified by
  152. ** IO_IO_LOW and IO_IO_HIGH are forwarded through the I/O Adapter
  153. ** *AND* the GSC+ address is remapped to the Broadcast Physical
  154. ** Address space by setting the 14 high order address bits of the
  155. ** 32 bit GSC+ address to ones.
  156. **
  157. ** o TLB field affects transactions which are forwarded from GSC+ to Runway.
  158. ** "Real" mode is the poweron default.
  159. **
  160. ** TLB Mode Value Description
  161. ** Real 0 No TLB translation. Address is directly mapped and the
  162. ** virtual address is composed of selected physical bits.
  163. ** Error 1 Software fills the TLB manually.
  164. ** Normal 2 IOA fetches IO TLB misses from IO PDIR (in host memory).
  165. **
  166. **
  167. ** IO_IO_LOW_HV +0x60 (HV dependent)
  168. ** IO_IO_HIGH_HV +0x64 (HV dependent)
  169. ** IO_IO_LOW +0x78 (Architected register)
  170. ** IO_IO_HIGH +0x7c (Architected register)
  171. **
  172. ** IO_IO_LOW and IO_IO_HIGH set the lower and upper bounds of the
  173. ** I/O Adapter address space, respectively.
  174. **
  175. ** 0 ... 7 | 8 ... 15 | 16 ... 31 |
  176. ** 11111111 | 11111111 | address |
  177. **
  178. ** Each LOW/HIGH pair describes a disjoint address space region.
  179. ** (2 per GSC+ port). Each incoming Runway transaction address is compared
  180. ** with both sets of LOW/HIGH registers. If the address is in the range
  181. ** greater than or equal to IO_IO_LOW and less than IO_IO_HIGH the transaction
  182. ** for forwarded to the respective GSC+ bus.
  183. ** Specify IO_IO_LOW equal to or greater than IO_IO_HIGH to avoid specifying
  184. ** an address space region.
  185. **
  186. ** In order for a Runway address to reside within GSC+ extended address space:
  187. ** Runway Address [0:7] must identically compare to 8'b11111111
  188. ** Runway Address [8:11] must be equal to IO_IO_LOW(_HV)[16:19]
  189. ** Runway Address [12:23] must be greater than or equal to
  190. ** IO_IO_LOW(_HV)[20:31] and less than IO_IO_HIGH(_HV)[20:31].
  191. ** Runway Address [24:39] is not used in the comparison.
  192. **
  193. ** When the Runway transaction is forwarded to GSC+, the GSC+ address is
  194. ** as follows:
  195. ** GSC+ Address[0:3] 4'b1111
  196. ** GSC+ Address[4:29] Runway Address[12:37]
  197. ** GSC+ Address[30:31] 2'b00
  198. **
  199. ** All 4 Low/High registers must be initialized (by PDC) once the lower bus
  200. ** is interrogated and address space is defined. The operating system will
  201. ** modify the architectural IO_IO_LOW and IO_IO_HIGH registers following
  202. ** the PDC initialization. However, the hardware version dependent IO_IO_LOW
  203. ** and IO_IO_HIGH registers should not be subsequently altered by the OS.
  204. **
  205. ** Writes to both sets of registers will take effect immediately, bypassing
  206. ** the queues, which ensures that subsequent Runway transactions are checked
  207. ** against the updated bounds values. However reads are queued, introducing
  208. ** the possibility of a read being bypassed by a subsequent write to the same
  209. ** register. This sequence can be avoided by having software wait for read
  210. ** returns before issuing subsequent writes.
  211. */
  212. struct ioc {
  213. struct ioa_registers __iomem *ioc_regs; /* I/O MMU base address */
  214. u8 *res_map; /* resource map, bit == pdir entry */
  215. u64 *pdir_base; /* physical base address */
  216. u32 pdir_size; /* bytes, function of IOV Space size */
  217. u32 res_hint; /* next available IOVP -
  218. circular search */
  219. u32 res_size; /* size of resource map in bytes */
  220. spinlock_t res_lock;
  221. #ifdef CCIO_SEARCH_TIME
  222. #define CCIO_SEARCH_SAMPLE 0x100
  223. unsigned long avg_search[CCIO_SEARCH_SAMPLE];
  224. unsigned long avg_idx; /* current index into avg_search */
  225. #endif
  226. #ifdef CCIO_MAP_STATS
  227. unsigned long used_pages;
  228. unsigned long msingle_calls;
  229. unsigned long msingle_pages;
  230. unsigned long msg_calls;
  231. unsigned long msg_pages;
  232. unsigned long usingle_calls;
  233. unsigned long usingle_pages;
  234. unsigned long usg_calls;
  235. unsigned long usg_pages;
  236. #endif
  237. unsigned short cujo20_bug;
  238. /* STUFF We don't need in performance path */
  239. u32 chainid_shift; /* specify bit location of chain_id */
  240. struct ioc *next; /* Linked list of discovered iocs */
  241. const char *name; /* device name from firmware */
  242. unsigned int hw_path; /* the hardware path this ioc is associatd with */
  243. struct pci_dev *fake_pci_dev; /* the fake pci_dev for non-pci devs */
  244. struct resource mmio_region[2]; /* The "routed" MMIO regions */
  245. };
  246. static struct ioc *ioc_list;
  247. static int ioc_count;
  248. /**************************************************************
  249. *
  250. * I/O Pdir Resource Management
  251. *
  252. * Bits set in the resource map are in use.
  253. * Each bit can represent a number of pages.
  254. * LSbs represent lower addresses (IOVA's).
  255. *
  256. * This was was copied from sba_iommu.c. Don't try to unify
  257. * the two resource managers unless a way to have different
  258. * allocation policies is also adjusted. We'd like to avoid
  259. * I/O TLB thrashing by having resource allocation policy
  260. * match the I/O TLB replacement policy.
  261. *
  262. ***************************************************************/
  263. #define IOVP_SIZE PAGE_SIZE
  264. #define IOVP_SHIFT PAGE_SHIFT
  265. #define IOVP_MASK PAGE_MASK
  266. /* Convert from IOVP to IOVA and vice versa. */
  267. #define CCIO_IOVA(iovp,offset) ((iovp) | (offset))
  268. #define CCIO_IOVP(iova) ((iova) & IOVP_MASK)
  269. #define PDIR_INDEX(iovp) ((iovp)>>IOVP_SHIFT)
  270. #define MKIOVP(pdir_idx) ((long)(pdir_idx) << IOVP_SHIFT)
  271. #define MKIOVA(iovp,offset) (dma_addr_t)((long)iovp | (long)offset)
  272. #define ROUNDUP(x,y) ((x + ((y)-1)) & ~((y)-1))
  273. /*
  274. ** Don't worry about the 150% average search length on a miss.
  275. ** If the search wraps around, and passes the res_hint, it will
  276. ** cause the kernel to panic anyhow.
  277. */
  278. #define CCIO_SEARCH_LOOP(ioc, res_idx, mask, size) \
  279. for(; res_ptr < res_end; ++res_ptr) { \
  280. if(0 == (*res_ptr & mask)) { \
  281. *res_ptr |= mask; \
  282. res_idx = (unsigned int)((unsigned long)res_ptr - (unsigned long)ioc->res_map); \
  283. ioc->res_hint = res_idx + (size >> 3); \
  284. goto resource_found; \
  285. } \
  286. }
  287. #define CCIO_FIND_FREE_MAPPING(ioa, res_idx, mask, size) \
  288. u##size *res_ptr = (u##size *)&((ioc)->res_map[ioa->res_hint & ~((size >> 3) - 1)]); \
  289. u##size *res_end = (u##size *)&(ioc)->res_map[ioa->res_size]; \
  290. CCIO_SEARCH_LOOP(ioc, res_idx, mask, size); \
  291. res_ptr = (u##size *)&(ioc)->res_map[0]; \
  292. CCIO_SEARCH_LOOP(ioa, res_idx, mask, size);
  293. /*
  294. ** Find available bit in this ioa's resource map.
  295. ** Use a "circular" search:
  296. ** o Most IOVA's are "temporary" - avg search time should be small.
  297. ** o keep a history of what happened for debugging
  298. ** o KISS.
  299. **
  300. ** Perf optimizations:
  301. ** o search for log2(size) bits at a time.
  302. ** o search for available resource bits using byte/word/whatever.
  303. ** o use different search for "large" (eg > 4 pages) or "very large"
  304. ** (eg > 16 pages) mappings.
  305. */
  306. /**
  307. * ccio_alloc_range - Allocate pages in the ioc's resource map.
  308. * @ioc: The I/O Controller.
  309. * @pages_needed: The requested number of pages to be mapped into the
  310. * I/O Pdir...
  311. *
  312. * This function searches the resource map of the ioc to locate a range
  313. * of available pages for the requested size.
  314. */
  315. static int
  316. ccio_alloc_range(struct ioc *ioc, size_t size)
  317. {
  318. unsigned int pages_needed = size >> IOVP_SHIFT;
  319. unsigned int res_idx;
  320. #ifdef CCIO_SEARCH_TIME
  321. unsigned long cr_start = mfctl(16);
  322. #endif
  323. BUG_ON(pages_needed == 0);
  324. BUG_ON((pages_needed * IOVP_SIZE) > DMA_CHUNK_SIZE);
  325. DBG_RES("%s() size: %d pages_needed %d\n",
  326. __FUNCTION__, size, pages_needed);
  327. /*
  328. ** "seek and ye shall find"...praying never hurts either...
  329. ** ggg sacrifices another 710 to the computer gods.
  330. */
  331. if (pages_needed <= 8) {
  332. /*
  333. * LAN traffic will not thrash the TLB IFF the same NIC
  334. * uses 8 adjacent pages to map seperate payload data.
  335. * ie the same byte in the resource bit map.
  336. */
  337. #if 0
  338. /* FIXME: bit search should shift it's way through
  339. * an unsigned long - not byte at a time. As it is now,
  340. * we effectively allocate this byte to this mapping.
  341. */
  342. unsigned long mask = ~(~0UL >> pages_needed);
  343. CCIO_FIND_FREE_MAPPING(ioc, res_idx, mask, 8);
  344. #else
  345. CCIO_FIND_FREE_MAPPING(ioc, res_idx, 0xff, 8);
  346. #endif
  347. } else if (pages_needed <= 16) {
  348. CCIO_FIND_FREE_MAPPING(ioc, res_idx, 0xffff, 16);
  349. } else if (pages_needed <= 32) {
  350. CCIO_FIND_FREE_MAPPING(ioc, res_idx, ~(unsigned int)0, 32);
  351. #ifdef __LP64__
  352. } else if (pages_needed <= 64) {
  353. CCIO_FIND_FREE_MAPPING(ioc, res_idx, ~0UL, 64);
  354. #endif
  355. } else {
  356. panic("%s: %s() Too many pages to map. pages_needed: %u\n",
  357. __FILE__, __FUNCTION__, pages_needed);
  358. }
  359. panic("%s: %s() I/O MMU is out of mapping resources.\n", __FILE__,
  360. __FUNCTION__);
  361. resource_found:
  362. DBG_RES("%s() res_idx %d res_hint: %d\n",
  363. __FUNCTION__, res_idx, ioc->res_hint);
  364. #ifdef CCIO_SEARCH_TIME
  365. {
  366. unsigned long cr_end = mfctl(16);
  367. unsigned long tmp = cr_end - cr_start;
  368. /* check for roll over */
  369. cr_start = (cr_end < cr_start) ? -(tmp) : (tmp);
  370. }
  371. ioc->avg_search[ioc->avg_idx++] = cr_start;
  372. ioc->avg_idx &= CCIO_SEARCH_SAMPLE - 1;
  373. #endif
  374. #ifdef CCIO_MAP_STATS
  375. ioc->used_pages += pages_needed;
  376. #endif
  377. /*
  378. ** return the bit address.
  379. */
  380. return res_idx << 3;
  381. }
  382. #define CCIO_FREE_MAPPINGS(ioc, res_idx, mask, size) \
  383. u##size *res_ptr = (u##size *)&((ioc)->res_map[res_idx]); \
  384. BUG_ON((*res_ptr & mask) != mask); \
  385. *res_ptr &= ~(mask);
  386. /**
  387. * ccio_free_range - Free pages from the ioc's resource map.
  388. * @ioc: The I/O Controller.
  389. * @iova: The I/O Virtual Address.
  390. * @pages_mapped: The requested number of pages to be freed from the
  391. * I/O Pdir.
  392. *
  393. * This function frees the resouces allocated for the iova.
  394. */
  395. static void
  396. ccio_free_range(struct ioc *ioc, dma_addr_t iova, unsigned long pages_mapped)
  397. {
  398. unsigned long iovp = CCIO_IOVP(iova);
  399. unsigned int res_idx = PDIR_INDEX(iovp) >> 3;
  400. BUG_ON(pages_mapped == 0);
  401. BUG_ON((pages_mapped * IOVP_SIZE) > DMA_CHUNK_SIZE);
  402. BUG_ON(pages_mapped > BITS_PER_LONG);
  403. DBG_RES("%s(): res_idx: %d pages_mapped %d\n",
  404. __FUNCTION__, res_idx, pages_mapped);
  405. #ifdef CCIO_MAP_STATS
  406. ioc->used_pages -= pages_mapped;
  407. #endif
  408. if(pages_mapped <= 8) {
  409. #if 0
  410. /* see matching comments in alloc_range */
  411. unsigned long mask = ~(~0UL >> pages_mapped);
  412. CCIO_FREE_MAPPINGS(ioc, res_idx, mask, 8);
  413. #else
  414. CCIO_FREE_MAPPINGS(ioc, res_idx, 0xff, 8);
  415. #endif
  416. } else if(pages_mapped <= 16) {
  417. CCIO_FREE_MAPPINGS(ioc, res_idx, 0xffff, 16);
  418. } else if(pages_mapped <= 32) {
  419. CCIO_FREE_MAPPINGS(ioc, res_idx, ~(unsigned int)0, 32);
  420. #ifdef __LP64__
  421. } else if(pages_mapped <= 64) {
  422. CCIO_FREE_MAPPINGS(ioc, res_idx, ~0UL, 64);
  423. #endif
  424. } else {
  425. panic("%s:%s() Too many pages to unmap.\n", __FILE__,
  426. __FUNCTION__);
  427. }
  428. }
  429. /****************************************************************
  430. **
  431. ** CCIO dma_ops support routines
  432. **
  433. *****************************************************************/
  434. typedef unsigned long space_t;
  435. #define KERNEL_SPACE 0
  436. /*
  437. ** DMA "Page Type" and Hints
  438. ** o if SAFE_DMA isn't set, mapping is for FAST_DMA. SAFE_DMA should be
  439. ** set for subcacheline DMA transfers since we don't want to damage the
  440. ** other part of a cacheline.
  441. ** o SAFE_DMA must be set for "memory" allocated via pci_alloc_consistent().
  442. ** This bit tells U2 to do R/M/W for partial cachelines. "Streaming"
  443. ** data can avoid this if the mapping covers full cache lines.
  444. ** o STOP_MOST is needed for atomicity across cachelines.
  445. ** Apparently only "some EISA devices" need this.
  446. ** Using CONFIG_ISA is hack. Only the IOA with EISA under it needs
  447. ** to use this hint iff the EISA devices needs this feature.
  448. ** According to the U2 ERS, STOP_MOST enabled pages hurt performance.
  449. ** o PREFETCH should *not* be set for cases like Multiple PCI devices
  450. ** behind GSCtoPCI (dino) bus converter. Only one cacheline per GSC
  451. ** device can be fetched and multiply DMA streams will thrash the
  452. ** prefetch buffer and burn memory bandwidth. See 6.7.3 "Prefetch Rules
  453. ** and Invalidation of Prefetch Entries".
  454. **
  455. ** FIXME: the default hints need to be per GSC device - not global.
  456. **
  457. ** HP-UX dorks: linux device driver programming model is totally different
  458. ** than HP-UX's. HP-UX always sets HINT_PREFETCH since it's drivers
  459. ** do special things to work on non-coherent platforms...linux has to
  460. ** be much more careful with this.
  461. */
  462. #define IOPDIR_VALID 0x01UL
  463. #define HINT_SAFE_DMA 0x02UL /* used for pci_alloc_consistent() pages */
  464. #ifdef CONFIG_EISA
  465. #define HINT_STOP_MOST 0x04UL /* LSL support */
  466. #else
  467. #define HINT_STOP_MOST 0x00UL /* only needed for "some EISA devices" */
  468. #endif
  469. #define HINT_UDPATE_ENB 0x08UL /* not used/supported by U2 */
  470. #define HINT_PREFETCH 0x10UL /* for outbound pages which are not SAFE */
  471. /*
  472. ** Use direction (ie PCI_DMA_TODEVICE) to pick hint.
  473. ** ccio_alloc_consistent() depends on this to get SAFE_DMA
  474. ** when it passes in BIDIRECTIONAL flag.
  475. */
  476. static u32 hint_lookup[] = {
  477. [PCI_DMA_BIDIRECTIONAL] = HINT_STOP_MOST | HINT_SAFE_DMA | IOPDIR_VALID,
  478. [PCI_DMA_TODEVICE] = HINT_STOP_MOST | HINT_PREFETCH | IOPDIR_VALID,
  479. [PCI_DMA_FROMDEVICE] = HINT_STOP_MOST | IOPDIR_VALID,
  480. };
  481. /**
  482. * ccio_io_pdir_entry - Initialize an I/O Pdir.
  483. * @pdir_ptr: A pointer into I/O Pdir.
  484. * @sid: The Space Identifier.
  485. * @vba: The virtual address.
  486. * @hints: The DMA Hint.
  487. *
  488. * Given a virtual address (vba, arg2) and space id, (sid, arg1),
  489. * load the I/O PDIR entry pointed to by pdir_ptr (arg0). Each IO Pdir
  490. * entry consists of 8 bytes as shown below (MSB == bit 0):
  491. *
  492. *
  493. * WORD 0:
  494. * +------+----------------+-----------------------------------------------+
  495. * | Phys | Virtual Index | Phys |
  496. * | 0:3 | 0:11 | 4:19 |
  497. * |4 bits| 12 bits | 16 bits |
  498. * +------+----------------+-----------------------------------------------+
  499. * WORD 1:
  500. * +-----------------------+-----------------------------------------------+
  501. * | Phys | Rsvd | Prefetch |Update |Rsvd |Lock |Safe |Valid |
  502. * | 20:39 | | Enable |Enable | |Enable|DMA | |
  503. * | 20 bits | 5 bits | 1 bit |1 bit |2 bits|1 bit |1 bit |1 bit |
  504. * +-----------------------+-----------------------------------------------+
  505. *
  506. * The virtual index field is filled with the results of the LCI
  507. * (Load Coherence Index) instruction. The 8 bits used for the virtual
  508. * index are bits 12:19 of the value returned by LCI.
  509. */
  510. void CCIO_INLINE
  511. ccio_io_pdir_entry(u64 *pdir_ptr, space_t sid, unsigned long vba,
  512. unsigned long hints)
  513. {
  514. register unsigned long pa;
  515. register unsigned long ci; /* coherent index */
  516. /* We currently only support kernel addresses */
  517. BUG_ON(sid != KERNEL_SPACE);
  518. mtsp(sid,1);
  519. /*
  520. ** WORD 1 - low order word
  521. ** "hints" parm includes the VALID bit!
  522. ** "dep" clobbers the physical address offset bits as well.
  523. */
  524. pa = virt_to_phys(vba);
  525. asm volatile("depw %1,31,12,%0" : "+r" (pa) : "r" (hints));
  526. ((u32 *)pdir_ptr)[1] = (u32) pa;
  527. /*
  528. ** WORD 0 - high order word
  529. */
  530. #ifdef __LP64__
  531. /*
  532. ** get bits 12:15 of physical address
  533. ** shift bits 16:31 of physical address
  534. ** and deposit them
  535. */
  536. asm volatile ("extrd,u %1,15,4,%0" : "=r" (ci) : "r" (pa));
  537. asm volatile ("extrd,u %1,31,16,%0" : "+r" (pa) : "r" (pa));
  538. asm volatile ("depd %1,35,4,%0" : "+r" (pa) : "r" (ci));
  539. #else
  540. pa = 0;
  541. #endif
  542. /*
  543. ** get CPU coherency index bits
  544. ** Grab virtual index [0:11]
  545. ** Deposit virt_idx bits into I/O PDIR word
  546. */
  547. asm volatile ("lci %%r0(%%sr1, %1), %0" : "=r" (ci) : "r" (vba));
  548. asm volatile ("extru %1,19,12,%0" : "+r" (ci) : "r" (ci));
  549. asm volatile ("depw %1,15,12,%0" : "+r" (pa) : "r" (ci));
  550. ((u32 *)pdir_ptr)[0] = (u32) pa;
  551. /* FIXME: PCX_W platforms don't need FDC/SYNC. (eg C360)
  552. ** PCX-U/U+ do. (eg C200/C240)
  553. ** PCX-T'? Don't know. (eg C110 or similar K-class)
  554. **
  555. ** See PDC_MODEL/option 0/SW_CAP word for "Non-coherent IO-PDIR bit".
  556. ** Hopefully we can patch (NOP) these out at boot time somehow.
  557. **
  558. ** "Since PCX-U employs an offset hash that is incompatible with
  559. ** the real mode coherence index generation of U2, the PDIR entry
  560. ** must be flushed to memory to retain coherence."
  561. */
  562. asm volatile("fdc %%r0(%0)" : : "r" (pdir_ptr));
  563. asm volatile("sync");
  564. }
  565. /**
  566. * ccio_clear_io_tlb - Remove stale entries from the I/O TLB.
  567. * @ioc: The I/O Controller.
  568. * @iovp: The I/O Virtual Page.
  569. * @byte_cnt: The requested number of bytes to be freed from the I/O Pdir.
  570. *
  571. * Purge invalid I/O PDIR entries from the I/O TLB.
  572. *
  573. * FIXME: Can we change the byte_cnt to pages_mapped?
  574. */
  575. static CCIO_INLINE void
  576. ccio_clear_io_tlb(struct ioc *ioc, dma_addr_t iovp, size_t byte_cnt)
  577. {
  578. u32 chain_size = 1 << ioc->chainid_shift;
  579. iovp &= IOVP_MASK; /* clear offset bits, just want pagenum */
  580. byte_cnt += chain_size;
  581. while(byte_cnt > chain_size) {
  582. WRITE_U32(CMD_TLB_PURGE | iovp, &ioc->ioc_regs->io_command);
  583. iovp += chain_size;
  584. byte_cnt -= chain_size;
  585. }
  586. }
  587. /**
  588. * ccio_mark_invalid - Mark the I/O Pdir entries invalid.
  589. * @ioc: The I/O Controller.
  590. * @iova: The I/O Virtual Address.
  591. * @byte_cnt: The requested number of bytes to be freed from the I/O Pdir.
  592. *
  593. * Mark the I/O Pdir entries invalid and blow away the corresponding I/O
  594. * TLB entries.
  595. *
  596. * FIXME: at some threshhold it might be "cheaper" to just blow
  597. * away the entire I/O TLB instead of individual entries.
  598. *
  599. * FIXME: Uturn has 256 TLB entries. We don't need to purge every
  600. * PDIR entry - just once for each possible TLB entry.
  601. * (We do need to maker I/O PDIR entries invalid regardless).
  602. *
  603. * FIXME: Can we change byte_cnt to pages_mapped?
  604. */
  605. static CCIO_INLINE void
  606. ccio_mark_invalid(struct ioc *ioc, dma_addr_t iova, size_t byte_cnt)
  607. {
  608. u32 iovp = (u32)CCIO_IOVP(iova);
  609. size_t saved_byte_cnt;
  610. /* round up to nearest page size */
  611. saved_byte_cnt = byte_cnt = ROUNDUP(byte_cnt, IOVP_SIZE);
  612. while(byte_cnt > 0) {
  613. /* invalidate one page at a time */
  614. unsigned int idx = PDIR_INDEX(iovp);
  615. char *pdir_ptr = (char *) &(ioc->pdir_base[idx]);
  616. BUG_ON(idx >= (ioc->pdir_size / sizeof(u64)));
  617. pdir_ptr[7] = 0; /* clear only VALID bit */
  618. /*
  619. ** FIXME: PCX_W platforms don't need FDC/SYNC. (eg C360)
  620. ** PCX-U/U+ do. (eg C200/C240)
  621. ** See PDC_MODEL/option 0/SW_CAP for "Non-coherent IO-PDIR bit".
  622. **
  623. ** Hopefully someone figures out how to patch (NOP) the
  624. ** FDC/SYNC out at boot time.
  625. */
  626. asm volatile("fdc %%r0(%0)" : : "r" (pdir_ptr[7]));
  627. iovp += IOVP_SIZE;
  628. byte_cnt -= IOVP_SIZE;
  629. }
  630. asm volatile("sync");
  631. ccio_clear_io_tlb(ioc, CCIO_IOVP(iova), saved_byte_cnt);
  632. }
  633. /****************************************************************
  634. **
  635. ** CCIO dma_ops
  636. **
  637. *****************************************************************/
  638. /**
  639. * ccio_dma_supported - Verify the IOMMU supports the DMA address range.
  640. * @dev: The PCI device.
  641. * @mask: A bit mask describing the DMA address range of the device.
  642. *
  643. * This function implements the pci_dma_supported function.
  644. */
  645. static int
  646. ccio_dma_supported(struct device *dev, u64 mask)
  647. {
  648. if(dev == NULL) {
  649. printk(KERN_ERR MODULE_NAME ": EISA/ISA/et al not supported\n");
  650. BUG();
  651. return 0;
  652. }
  653. /* only support 32-bit devices (ie PCI/GSC) */
  654. return (int)(mask == 0xffffffffUL);
  655. }
  656. /**
  657. * ccio_map_single - Map an address range into the IOMMU.
  658. * @dev: The PCI device.
  659. * @addr: The start address of the DMA region.
  660. * @size: The length of the DMA region.
  661. * @direction: The direction of the DMA transaction (to/from device).
  662. *
  663. * This function implements the pci_map_single function.
  664. */
  665. static dma_addr_t
  666. ccio_map_single(struct device *dev, void *addr, size_t size,
  667. enum dma_data_direction direction)
  668. {
  669. int idx;
  670. struct ioc *ioc;
  671. unsigned long flags;
  672. dma_addr_t iovp;
  673. dma_addr_t offset;
  674. u64 *pdir_start;
  675. unsigned long hint = hint_lookup[(int)direction];
  676. BUG_ON(!dev);
  677. ioc = GET_IOC(dev);
  678. BUG_ON(size <= 0);
  679. /* save offset bits */
  680. offset = ((unsigned long) addr) & ~IOVP_MASK;
  681. /* round up to nearest IOVP_SIZE */
  682. size = ROUNDUP(size + offset, IOVP_SIZE);
  683. spin_lock_irqsave(&ioc->res_lock, flags);
  684. #ifdef CCIO_MAP_STATS
  685. ioc->msingle_calls++;
  686. ioc->msingle_pages += size >> IOVP_SHIFT;
  687. #endif
  688. idx = ccio_alloc_range(ioc, size);
  689. iovp = (dma_addr_t)MKIOVP(idx);
  690. pdir_start = &(ioc->pdir_base[idx]);
  691. DBG_RUN("%s() 0x%p -> 0x%lx size: %0x%x\n",
  692. __FUNCTION__, addr, (long)iovp | offset, size);
  693. /* If not cacheline aligned, force SAFE_DMA on the whole mess */
  694. if((size % L1_CACHE_BYTES) || ((unsigned long)addr % L1_CACHE_BYTES))
  695. hint |= HINT_SAFE_DMA;
  696. while(size > 0) {
  697. ccio_io_pdir_entry(pdir_start, KERNEL_SPACE, (unsigned long)addr, hint);
  698. DBG_RUN(" pdir %p %08x%08x\n",
  699. pdir_start,
  700. (u32) (((u32 *) pdir_start)[0]),
  701. (u32) (((u32 *) pdir_start)[1]));
  702. ++pdir_start;
  703. addr += IOVP_SIZE;
  704. size -= IOVP_SIZE;
  705. }
  706. spin_unlock_irqrestore(&ioc->res_lock, flags);
  707. /* form complete address */
  708. return CCIO_IOVA(iovp, offset);
  709. }
  710. /**
  711. * ccio_unmap_single - Unmap an address range from the IOMMU.
  712. * @dev: The PCI device.
  713. * @addr: The start address of the DMA region.
  714. * @size: The length of the DMA region.
  715. * @direction: The direction of the DMA transaction (to/from device).
  716. *
  717. * This function implements the pci_unmap_single function.
  718. */
  719. static void
  720. ccio_unmap_single(struct device *dev, dma_addr_t iova, size_t size,
  721. enum dma_data_direction direction)
  722. {
  723. struct ioc *ioc;
  724. unsigned long flags;
  725. dma_addr_t offset = iova & ~IOVP_MASK;
  726. BUG_ON(!dev);
  727. ioc = GET_IOC(dev);
  728. DBG_RUN("%s() iovp 0x%lx/%x\n",
  729. __FUNCTION__, (long)iova, size);
  730. iova ^= offset; /* clear offset bits */
  731. size += offset;
  732. size = ROUNDUP(size, IOVP_SIZE);
  733. spin_lock_irqsave(&ioc->res_lock, flags);
  734. #ifdef CCIO_MAP_STATS
  735. ioc->usingle_calls++;
  736. ioc->usingle_pages += size >> IOVP_SHIFT;
  737. #endif
  738. ccio_mark_invalid(ioc, iova, size);
  739. ccio_free_range(ioc, iova, (size >> IOVP_SHIFT));
  740. spin_unlock_irqrestore(&ioc->res_lock, flags);
  741. }
  742. /**
  743. * ccio_alloc_consistent - Allocate a consistent DMA mapping.
  744. * @dev: The PCI device.
  745. * @size: The length of the DMA region.
  746. * @dma_handle: The DMA address handed back to the device (not the cpu).
  747. *
  748. * This function implements the pci_alloc_consistent function.
  749. */
  750. static void *
  751. ccio_alloc_consistent(struct device *dev, size_t size, dma_addr_t *dma_handle, gfp_t flag)
  752. {
  753. void *ret;
  754. #if 0
  755. /* GRANT Need to establish hierarchy for non-PCI devs as well
  756. ** and then provide matching gsc_map_xxx() functions for them as well.
  757. */
  758. if(!hwdev) {
  759. /* only support PCI */
  760. *dma_handle = 0;
  761. return 0;
  762. }
  763. #endif
  764. ret = (void *) __get_free_pages(flag, get_order(size));
  765. if (ret) {
  766. memset(ret, 0, size);
  767. *dma_handle = ccio_map_single(dev, ret, size, PCI_DMA_BIDIRECTIONAL);
  768. }
  769. return ret;
  770. }
  771. /**
  772. * ccio_free_consistent - Free a consistent DMA mapping.
  773. * @dev: The PCI device.
  774. * @size: The length of the DMA region.
  775. * @cpu_addr: The cpu address returned from the ccio_alloc_consistent.
  776. * @dma_handle: The device address returned from the ccio_alloc_consistent.
  777. *
  778. * This function implements the pci_free_consistent function.
  779. */
  780. static void
  781. ccio_free_consistent(struct device *dev, size_t size, void *cpu_addr,
  782. dma_addr_t dma_handle)
  783. {
  784. ccio_unmap_single(dev, dma_handle, size, 0);
  785. free_pages((unsigned long)cpu_addr, get_order(size));
  786. }
  787. /*
  788. ** Since 0 is a valid pdir_base index value, can't use that
  789. ** to determine if a value is valid or not. Use a flag to indicate
  790. ** the SG list entry contains a valid pdir index.
  791. */
  792. #define PIDE_FLAG 0x80000000UL
  793. #ifdef CCIO_MAP_STATS
  794. #define IOMMU_MAP_STATS
  795. #endif
  796. #include "iommu-helpers.h"
  797. /**
  798. * ccio_map_sg - Map the scatter/gather list into the IOMMU.
  799. * @dev: The PCI device.
  800. * @sglist: The scatter/gather list to be mapped in the IOMMU.
  801. * @nents: The number of entries in the scatter/gather list.
  802. * @direction: The direction of the DMA transaction (to/from device).
  803. *
  804. * This function implements the pci_map_sg function.
  805. */
  806. static int
  807. ccio_map_sg(struct device *dev, struct scatterlist *sglist, int nents,
  808. enum dma_data_direction direction)
  809. {
  810. struct ioc *ioc;
  811. int coalesced, filled = 0;
  812. unsigned long flags;
  813. unsigned long hint = hint_lookup[(int)direction];
  814. unsigned long prev_len = 0, current_len = 0;
  815. int i;
  816. BUG_ON(!dev);
  817. ioc = GET_IOC(dev);
  818. DBG_RUN_SG("%s() START %d entries\n", __FUNCTION__, nents);
  819. /* Fast path single entry scatterlists. */
  820. if (nents == 1) {
  821. sg_dma_address(sglist) = ccio_map_single(dev,
  822. (void *)sg_virt_addr(sglist), sglist->length,
  823. direction);
  824. sg_dma_len(sglist) = sglist->length;
  825. return 1;
  826. }
  827. for(i = 0; i < nents; i++)
  828. prev_len += sglist[i].length;
  829. spin_lock_irqsave(&ioc->res_lock, flags);
  830. #ifdef CCIO_MAP_STATS
  831. ioc->msg_calls++;
  832. #endif
  833. /*
  834. ** First coalesce the chunks and allocate I/O pdir space
  835. **
  836. ** If this is one DMA stream, we can properly map using the
  837. ** correct virtual address associated with each DMA page.
  838. ** w/o this association, we wouldn't have coherent DMA!
  839. ** Access to the virtual address is what forces a two pass algorithm.
  840. */
  841. coalesced = iommu_coalesce_chunks(ioc, sglist, nents, ccio_alloc_range);
  842. /*
  843. ** Program the I/O Pdir
  844. **
  845. ** map the virtual addresses to the I/O Pdir
  846. ** o dma_address will contain the pdir index
  847. ** o dma_len will contain the number of bytes to map
  848. ** o page/offset contain the virtual address.
  849. */
  850. filled = iommu_fill_pdir(ioc, sglist, nents, hint, ccio_io_pdir_entry);
  851. spin_unlock_irqrestore(&ioc->res_lock, flags);
  852. BUG_ON(coalesced != filled);
  853. DBG_RUN_SG("%s() DONE %d mappings\n", __FUNCTION__, filled);
  854. for (i = 0; i < filled; i++)
  855. current_len += sg_dma_len(sglist + i);
  856. BUG_ON(current_len != prev_len);
  857. return filled;
  858. }
  859. /**
  860. * ccio_unmap_sg - Unmap the scatter/gather list from the IOMMU.
  861. * @dev: The PCI device.
  862. * @sglist: The scatter/gather list to be unmapped from the IOMMU.
  863. * @nents: The number of entries in the scatter/gather list.
  864. * @direction: The direction of the DMA transaction (to/from device).
  865. *
  866. * This function implements the pci_unmap_sg function.
  867. */
  868. static void
  869. ccio_unmap_sg(struct device *dev, struct scatterlist *sglist, int nents,
  870. enum dma_data_direction direction)
  871. {
  872. struct ioc *ioc;
  873. BUG_ON(!dev);
  874. ioc = GET_IOC(dev);
  875. DBG_RUN_SG("%s() START %d entries, %08lx,%x\n",
  876. __FUNCTION__, nents, sg_virt_addr(sglist), sglist->length);
  877. #ifdef CCIO_MAP_STATS
  878. ioc->usg_calls++;
  879. #endif
  880. while(sg_dma_len(sglist) && nents--) {
  881. #ifdef CCIO_MAP_STATS
  882. ioc->usg_pages += sg_dma_len(sglist) >> PAGE_SHIFT;
  883. #endif
  884. ccio_unmap_single(dev, sg_dma_address(sglist),
  885. sg_dma_len(sglist), direction);
  886. ++sglist;
  887. }
  888. DBG_RUN_SG("%s() DONE (nents %d)\n", __FUNCTION__, nents);
  889. }
  890. static struct hppa_dma_ops ccio_ops = {
  891. .dma_supported = ccio_dma_supported,
  892. .alloc_consistent = ccio_alloc_consistent,
  893. .alloc_noncoherent = ccio_alloc_consistent,
  894. .free_consistent = ccio_free_consistent,
  895. .map_single = ccio_map_single,
  896. .unmap_single = ccio_unmap_single,
  897. .map_sg = ccio_map_sg,
  898. .unmap_sg = ccio_unmap_sg,
  899. .dma_sync_single_for_cpu = NULL, /* NOP for U2/Uturn */
  900. .dma_sync_single_for_device = NULL, /* NOP for U2/Uturn */
  901. .dma_sync_sg_for_cpu = NULL, /* ditto */
  902. .dma_sync_sg_for_device = NULL, /* ditto */
  903. };
  904. #ifdef CONFIG_PROC_FS
  905. static int ccio_proc_info(struct seq_file *m, void *p)
  906. {
  907. int len = 0;
  908. struct ioc *ioc = ioc_list;
  909. while (ioc != NULL) {
  910. unsigned int total_pages = ioc->res_size << 3;
  911. unsigned long avg = 0, min, max;
  912. int j;
  913. len += seq_printf(m, "%s\n", ioc->name);
  914. len += seq_printf(m, "Cujo 2.0 bug : %s\n",
  915. (ioc->cujo20_bug ? "yes" : "no"));
  916. len += seq_printf(m, "IO PDIR size : %d bytes (%d entries)\n",
  917. total_pages * 8, total_pages);
  918. #ifdef CCIO_MAP_STATS
  919. len += seq_printf(m, "IO PDIR entries : %ld free %ld used (%d%%)\n",
  920. total_pages - ioc->used_pages, ioc->used_pages,
  921. (int)(ioc->used_pages * 100 / total_pages));
  922. #endif
  923. len += seq_printf(m, "Resource bitmap : %d bytes (%d pages)\n",
  924. ioc->res_size, total_pages);
  925. #ifdef CCIO_SEARCH_TIME
  926. min = max = ioc->avg_search[0];
  927. for(j = 0; j < CCIO_SEARCH_SAMPLE; ++j) {
  928. avg += ioc->avg_search[j];
  929. if(ioc->avg_search[j] > max)
  930. max = ioc->avg_search[j];
  931. if(ioc->avg_search[j] < min)
  932. min = ioc->avg_search[j];
  933. }
  934. avg /= CCIO_SEARCH_SAMPLE;
  935. len += seq_printf(m, " Bitmap search : %ld/%ld/%ld (min/avg/max CPU Cycles)\n",
  936. min, avg, max);
  937. #endif
  938. #ifdef CCIO_MAP_STATS
  939. len += seq_printf(m, "pci_map_single(): %8ld calls %8ld pages (avg %d/1000)\n",
  940. ioc->msingle_calls, ioc->msingle_pages,
  941. (int)((ioc->msingle_pages * 1000)/ioc->msingle_calls));
  942. /* KLUGE - unmap_sg calls unmap_single for each mapped page */
  943. min = ioc->usingle_calls - ioc->usg_calls;
  944. max = ioc->usingle_pages - ioc->usg_pages;
  945. len += seq_printf(m, "pci_unmap_single: %8ld calls %8ld pages (avg %d/1000)\n",
  946. min, max, (int)((max * 1000)/min));
  947. len += seq_printf(m, "pci_map_sg() : %8ld calls %8ld pages (avg %d/1000)\n",
  948. ioc->msg_calls, ioc->msg_pages,
  949. (int)((ioc->msg_pages * 1000)/ioc->msg_calls));
  950. len += seq_printf(m, "pci_unmap_sg() : %8ld calls %8ld pages (avg %d/1000)\n\n\n",
  951. ioc->usg_calls, ioc->usg_pages,
  952. (int)((ioc->usg_pages * 1000)/ioc->usg_calls));
  953. #endif /* CCIO_MAP_STATS */
  954. ioc = ioc->next;
  955. }
  956. return 0;
  957. }
  958. static int ccio_proc_info_open(struct inode *inode, struct file *file)
  959. {
  960. return single_open(file, &ccio_proc_info, NULL);
  961. }
  962. static const struct file_operations ccio_proc_info_fops = {
  963. .owner = THIS_MODULE,
  964. .open = ccio_proc_info_open,
  965. .read = seq_read,
  966. .llseek = seq_lseek,
  967. .release = single_release,
  968. };
  969. static int ccio_proc_bitmap_info(struct seq_file *m, void *p)
  970. {
  971. int len = 0;
  972. struct ioc *ioc = ioc_list;
  973. while (ioc != NULL) {
  974. u32 *res_ptr = (u32 *)ioc->res_map;
  975. int j;
  976. for (j = 0; j < (ioc->res_size / sizeof(u32)); j++) {
  977. if ((j & 7) == 0)
  978. len += seq_puts(m, "\n ");
  979. len += seq_printf(m, "%08x", *res_ptr);
  980. res_ptr++;
  981. }
  982. len += seq_puts(m, "\n\n");
  983. ioc = ioc->next;
  984. break; /* XXX - remove me */
  985. }
  986. return 0;
  987. }
  988. static int ccio_proc_bitmap_open(struct inode *inode, struct file *file)
  989. {
  990. return single_open(file, &ccio_proc_bitmap_info, NULL);
  991. }
  992. static const struct file_operations ccio_proc_bitmap_fops = {
  993. .owner = THIS_MODULE,
  994. .open = ccio_proc_bitmap_open,
  995. .read = seq_read,
  996. .llseek = seq_lseek,
  997. .release = single_release,
  998. };
  999. #endif
  1000. /**
  1001. * ccio_find_ioc - Find the ioc in the ioc_list
  1002. * @hw_path: The hardware path of the ioc.
  1003. *
  1004. * This function searches the ioc_list for an ioc that matches
  1005. * the provide hardware path.
  1006. */
  1007. static struct ioc * ccio_find_ioc(int hw_path)
  1008. {
  1009. int i;
  1010. struct ioc *ioc;
  1011. ioc = ioc_list;
  1012. for (i = 0; i < ioc_count; i++) {
  1013. if (ioc->hw_path == hw_path)
  1014. return ioc;
  1015. ioc = ioc->next;
  1016. }
  1017. return NULL;
  1018. }
  1019. /**
  1020. * ccio_get_iommu - Find the iommu which controls this device
  1021. * @dev: The parisc device.
  1022. *
  1023. * This function searches through the registered IOMMU's and returns
  1024. * the appropriate IOMMU for the device based on its hardware path.
  1025. */
  1026. void * ccio_get_iommu(const struct parisc_device *dev)
  1027. {
  1028. dev = find_pa_parent_type(dev, HPHW_IOA);
  1029. if (!dev)
  1030. return NULL;
  1031. return ccio_find_ioc(dev->hw_path);
  1032. }
  1033. #define CUJO_20_STEP 0x10000000 /* inc upper nibble */
  1034. /* Cujo 2.0 has a bug which will silently corrupt data being transferred
  1035. * to/from certain pages. To avoid this happening, we mark these pages
  1036. * as `used', and ensure that nothing will try to allocate from them.
  1037. */
  1038. void ccio_cujo20_fixup(struct parisc_device *cujo, u32 iovp)
  1039. {
  1040. unsigned int idx;
  1041. struct parisc_device *dev = parisc_parent(cujo);
  1042. struct ioc *ioc = ccio_get_iommu(dev);
  1043. u8 *res_ptr;
  1044. ioc->cujo20_bug = 1;
  1045. res_ptr = ioc->res_map;
  1046. idx = PDIR_INDEX(iovp) >> 3;
  1047. while (idx < ioc->res_size) {
  1048. res_ptr[idx] |= 0xff;
  1049. idx += PDIR_INDEX(CUJO_20_STEP) >> 3;
  1050. }
  1051. }
  1052. #if 0
  1053. /* GRANT - is this needed for U2 or not? */
  1054. /*
  1055. ** Get the size of the I/O TLB for this I/O MMU.
  1056. **
  1057. ** If spa_shift is non-zero (ie probably U2),
  1058. ** then calculate the I/O TLB size using spa_shift.
  1059. **
  1060. ** Otherwise we are supposed to get the IODC entry point ENTRY TLB
  1061. ** and execute it. However, both U2 and Uturn firmware supplies spa_shift.
  1062. ** I think only Java (K/D/R-class too?) systems don't do this.
  1063. */
  1064. static int
  1065. ccio_get_iotlb_size(struct parisc_device *dev)
  1066. {
  1067. if (dev->spa_shift == 0) {
  1068. panic("%s() : Can't determine I/O TLB size.\n", __FUNCTION__);
  1069. }
  1070. return (1 << dev->spa_shift);
  1071. }
  1072. #else
  1073. /* Uturn supports 256 TLB entries */
  1074. #define CCIO_CHAINID_SHIFT 8
  1075. #define CCIO_CHAINID_MASK 0xff
  1076. #endif /* 0 */
  1077. /* We *can't* support JAVA (T600). Venture there at your own risk. */
  1078. static struct parisc_device_id ccio_tbl[] = {
  1079. { HPHW_IOA, HVERSION_REV_ANY_ID, U2_IOA_RUNWAY, 0xb }, /* U2 */
  1080. { HPHW_IOA, HVERSION_REV_ANY_ID, UTURN_IOA_RUNWAY, 0xb }, /* UTurn */
  1081. { 0, }
  1082. };
  1083. static int ccio_probe(struct parisc_device *dev);
  1084. static struct parisc_driver ccio_driver = {
  1085. .name = "ccio",
  1086. .id_table = ccio_tbl,
  1087. .probe = ccio_probe,
  1088. };
  1089. /**
  1090. * ccio_ioc_init - Initalize the I/O Controller
  1091. * @ioc: The I/O Controller.
  1092. *
  1093. * Initalize the I/O Controller which includes setting up the
  1094. * I/O Page Directory, the resource map, and initalizing the
  1095. * U2/Uturn chip into virtual mode.
  1096. */
  1097. static void
  1098. ccio_ioc_init(struct ioc *ioc)
  1099. {
  1100. int i;
  1101. unsigned int iov_order;
  1102. u32 iova_space_size;
  1103. /*
  1104. ** Determine IOVA Space size from memory size.
  1105. **
  1106. ** Ideally, PCI drivers would register the maximum number
  1107. ** of DMA they can have outstanding for each device they
  1108. ** own. Next best thing would be to guess how much DMA
  1109. ** can be outstanding based on PCI Class/sub-class. Both
  1110. ** methods still require some "extra" to support PCI
  1111. ** Hot-Plug/Removal of PCI cards. (aka PCI OLARD).
  1112. */
  1113. iova_space_size = (u32) (num_physpages / count_parisc_driver(&ccio_driver));
  1114. /* limit IOVA space size to 1MB-1GB */
  1115. if (iova_space_size < (1 << (20 - PAGE_SHIFT))) {
  1116. iova_space_size = 1 << (20 - PAGE_SHIFT);
  1117. #ifdef __LP64__
  1118. } else if (iova_space_size > (1 << (30 - PAGE_SHIFT))) {
  1119. iova_space_size = 1 << (30 - PAGE_SHIFT);
  1120. #endif
  1121. }
  1122. /*
  1123. ** iova space must be log2() in size.
  1124. ** thus, pdir/res_map will also be log2().
  1125. */
  1126. /* We could use larger page sizes in order to *decrease* the number
  1127. ** of mappings needed. (ie 8k pages means 1/2 the mappings).
  1128. **
  1129. ** Note: Grant Grunder says "Using 8k I/O pages isn't trivial either
  1130. ** since the pages must also be physically contiguous - typically
  1131. ** this is the case under linux."
  1132. */
  1133. iov_order = get_order(iova_space_size << PAGE_SHIFT);
  1134. /* iova_space_size is now bytes, not pages */
  1135. iova_space_size = 1 << (iov_order + PAGE_SHIFT);
  1136. ioc->pdir_size = (iova_space_size / IOVP_SIZE) * sizeof(u64);
  1137. BUG_ON(ioc->pdir_size > 8 * 1024 * 1024); /* max pdir size <= 8MB */
  1138. /* Verify it's a power of two */
  1139. BUG_ON((1 << get_order(ioc->pdir_size)) != (ioc->pdir_size >> PAGE_SHIFT));
  1140. DBG_INIT("%s() hpa 0x%p mem %luMB IOV %dMB (%d bits)\n",
  1141. __FUNCTION__, ioc->ioc_regs,
  1142. (unsigned long) num_physpages >> (20 - PAGE_SHIFT),
  1143. iova_space_size>>20,
  1144. iov_order + PAGE_SHIFT);
  1145. ioc->pdir_base = (u64 *)__get_free_pages(GFP_KERNEL,
  1146. get_order(ioc->pdir_size));
  1147. if(NULL == ioc->pdir_base) {
  1148. panic("%s() could not allocate I/O Page Table\n", __FUNCTION__);
  1149. }
  1150. memset(ioc->pdir_base, 0, ioc->pdir_size);
  1151. BUG_ON((((unsigned long)ioc->pdir_base) & PAGE_MASK) != (unsigned long)ioc->pdir_base);
  1152. DBG_INIT(" base %p\n", ioc->pdir_base);
  1153. /* resource map size dictated by pdir_size */
  1154. ioc->res_size = (ioc->pdir_size / sizeof(u64)) >> 3;
  1155. DBG_INIT("%s() res_size 0x%x\n", __FUNCTION__, ioc->res_size);
  1156. ioc->res_map = (u8 *)__get_free_pages(GFP_KERNEL,
  1157. get_order(ioc->res_size));
  1158. if(NULL == ioc->res_map) {
  1159. panic("%s() could not allocate resource map\n", __FUNCTION__);
  1160. }
  1161. memset(ioc->res_map, 0, ioc->res_size);
  1162. /* Initialize the res_hint to 16 */
  1163. ioc->res_hint = 16;
  1164. /* Initialize the spinlock */
  1165. spin_lock_init(&ioc->res_lock);
  1166. /*
  1167. ** Chainid is the upper most bits of an IOVP used to determine
  1168. ** which TLB entry an IOVP will use.
  1169. */
  1170. ioc->chainid_shift = get_order(iova_space_size) + PAGE_SHIFT - CCIO_CHAINID_SHIFT;
  1171. DBG_INIT(" chainid_shift 0x%x\n", ioc->chainid_shift);
  1172. /*
  1173. ** Initialize IOA hardware
  1174. */
  1175. WRITE_U32(CCIO_CHAINID_MASK << ioc->chainid_shift,
  1176. &ioc->ioc_regs->io_chain_id_mask);
  1177. WRITE_U32(virt_to_phys(ioc->pdir_base),
  1178. &ioc->ioc_regs->io_pdir_base);
  1179. /*
  1180. ** Go to "Virtual Mode"
  1181. */
  1182. WRITE_U32(IOA_NORMAL_MODE, &ioc->ioc_regs->io_control);
  1183. /*
  1184. ** Initialize all I/O TLB entries to 0 (Valid bit off).
  1185. */
  1186. WRITE_U32(0, &ioc->ioc_regs->io_tlb_entry_m);
  1187. WRITE_U32(0, &ioc->ioc_regs->io_tlb_entry_l);
  1188. for(i = 1 << CCIO_CHAINID_SHIFT; i ; i--) {
  1189. WRITE_U32((CMD_TLB_DIRECT_WRITE | (i << ioc->chainid_shift)),
  1190. &ioc->ioc_regs->io_command);
  1191. }
  1192. }
  1193. static void
  1194. ccio_init_resource(struct resource *res, char *name, void __iomem *ioaddr)
  1195. {
  1196. int result;
  1197. res->parent = NULL;
  1198. res->flags = IORESOURCE_MEM;
  1199. /*
  1200. * bracing ((signed) ...) are required for 64bit kernel because
  1201. * we only want to sign extend the lower 16 bits of the register.
  1202. * The upper 16-bits of range registers are hardcoded to 0xffff.
  1203. */
  1204. res->start = (unsigned long)((signed) READ_U32(ioaddr) << 16);
  1205. res->end = (unsigned long)((signed) (READ_U32(ioaddr + 4) << 16) - 1);
  1206. res->name = name;
  1207. /*
  1208. * Check if this MMIO range is disable
  1209. */
  1210. if (res->end + 1 == res->start)
  1211. return;
  1212. /* On some platforms (e.g. K-Class), we have already registered
  1213. * resources for devices reported by firmware. Some are children
  1214. * of ccio.
  1215. * "insert" ccio ranges in the mmio hierarchy (/proc/iomem).
  1216. */
  1217. result = insert_resource(&iomem_resource, res);
  1218. if (result < 0) {
  1219. printk(KERN_ERR "%s() failed to claim CCIO bus address space (%08lx,%08lx)\n",
  1220. __FUNCTION__, res->start, res->end);
  1221. }
  1222. }
  1223. static void __init ccio_init_resources(struct ioc *ioc)
  1224. {
  1225. struct resource *res = ioc->mmio_region;
  1226. char *name = kmalloc(14, GFP_KERNEL);
  1227. snprintf(name, 14, "GSC Bus [%d/]", ioc->hw_path);
  1228. ccio_init_resource(res, name, &ioc->ioc_regs->io_io_low);
  1229. ccio_init_resource(res + 1, name, &ioc->ioc_regs->io_io_low_hv);
  1230. }
  1231. static int new_ioc_area(struct resource *res, unsigned long size,
  1232. unsigned long min, unsigned long max, unsigned long align)
  1233. {
  1234. if (max <= min)
  1235. return -EBUSY;
  1236. res->start = (max - size + 1) &~ (align - 1);
  1237. res->end = res->start + size;
  1238. /* We might be trying to expand the MMIO range to include
  1239. * a child device that has already registered it's MMIO space.
  1240. * Use "insert" instead of request_resource().
  1241. */
  1242. if (!insert_resource(&iomem_resource, res))
  1243. return 0;
  1244. return new_ioc_area(res, size, min, max - size, align);
  1245. }
  1246. static int expand_ioc_area(struct resource *res, unsigned long size,
  1247. unsigned long min, unsigned long max, unsigned long align)
  1248. {
  1249. unsigned long start, len;
  1250. if (!res->parent)
  1251. return new_ioc_area(res, size, min, max, align);
  1252. start = (res->start - size) &~ (align - 1);
  1253. len = res->end - start + 1;
  1254. if (start >= min) {
  1255. if (!adjust_resource(res, start, len))
  1256. return 0;
  1257. }
  1258. start = res->start;
  1259. len = ((size + res->end + align) &~ (align - 1)) - start;
  1260. if (start + len <= max) {
  1261. if (!adjust_resource(res, start, len))
  1262. return 0;
  1263. }
  1264. return -EBUSY;
  1265. }
  1266. /*
  1267. * Dino calls this function. Beware that we may get called on systems
  1268. * which have no IOC (725, B180, C160L, etc) but do have a Dino.
  1269. * So it's legal to find no parent IOC.
  1270. *
  1271. * Some other issues: one of the resources in the ioc may be unassigned.
  1272. */
  1273. int ccio_allocate_resource(const struct parisc_device *dev,
  1274. struct resource *res, unsigned long size,
  1275. unsigned long min, unsigned long max, unsigned long align)
  1276. {
  1277. struct resource *parent = &iomem_resource;
  1278. struct ioc *ioc = ccio_get_iommu(dev);
  1279. if (!ioc)
  1280. goto out;
  1281. parent = ioc->mmio_region;
  1282. if (parent->parent &&
  1283. !allocate_resource(parent, res, size, min, max, align, NULL, NULL))
  1284. return 0;
  1285. if ((parent + 1)->parent &&
  1286. !allocate_resource(parent + 1, res, size, min, max, align,
  1287. NULL, NULL))
  1288. return 0;
  1289. if (!expand_ioc_area(parent, size, min, max, align)) {
  1290. __raw_writel(((parent->start)>>16) | 0xffff0000,
  1291. &ioc->ioc_regs->io_io_low);
  1292. __raw_writel(((parent->end)>>16) | 0xffff0000,
  1293. &ioc->ioc_regs->io_io_high);
  1294. } else if (!expand_ioc_area(parent + 1, size, min, max, align)) {
  1295. parent++;
  1296. __raw_writel(((parent->start)>>16) | 0xffff0000,
  1297. &ioc->ioc_regs->io_io_low_hv);
  1298. __raw_writel(((parent->end)>>16) | 0xffff0000,
  1299. &ioc->ioc_regs->io_io_high_hv);
  1300. } else {
  1301. return -EBUSY;
  1302. }
  1303. out:
  1304. return allocate_resource(parent, res, size, min, max, align, NULL,NULL);
  1305. }
  1306. int ccio_request_resource(const struct parisc_device *dev,
  1307. struct resource *res)
  1308. {
  1309. struct resource *parent;
  1310. struct ioc *ioc = ccio_get_iommu(dev);
  1311. if (!ioc) {
  1312. parent = &iomem_resource;
  1313. } else if ((ioc->mmio_region->start <= res->start) &&
  1314. (res->end <= ioc->mmio_region->end)) {
  1315. parent = ioc->mmio_region;
  1316. } else if (((ioc->mmio_region + 1)->start <= res->start) &&
  1317. (res->end <= (ioc->mmio_region + 1)->end)) {
  1318. parent = ioc->mmio_region + 1;
  1319. } else {
  1320. return -EBUSY;
  1321. }
  1322. /* "transparent" bus bridges need to register MMIO resources
  1323. * firmware assigned them. e.g. children of hppb.c (e.g. K-class)
  1324. * registered their resources in the PDC "bus walk" (See
  1325. * arch/parisc/kernel/inventory.c).
  1326. */
  1327. return insert_resource(parent, res);
  1328. }
  1329. /**
  1330. * ccio_probe - Determine if ccio should claim this device.
  1331. * @dev: The device which has been found
  1332. *
  1333. * Determine if ccio should claim this chip (return 0) or not (return 1).
  1334. * If so, initialize the chip and tell other partners in crime they
  1335. * have work to do.
  1336. */
  1337. static int ccio_probe(struct parisc_device *dev)
  1338. {
  1339. int i;
  1340. struct ioc *ioc, **ioc_p = &ioc_list;
  1341. struct proc_dir_entry *info_entry, *bitmap_entry;
  1342. ioc = kzalloc(sizeof(struct ioc), GFP_KERNEL);
  1343. if (ioc == NULL) {
  1344. printk(KERN_ERR MODULE_NAME ": memory allocation failure\n");
  1345. return 1;
  1346. }
  1347. ioc->name = dev->id.hversion == U2_IOA_RUNWAY ? "U2" : "UTurn";
  1348. printk(KERN_INFO "Found %s at 0x%lx\n", ioc->name, dev->hpa.start);
  1349. for (i = 0; i < ioc_count; i++) {
  1350. ioc_p = &(*ioc_p)->next;
  1351. }
  1352. *ioc_p = ioc;
  1353. ioc->hw_path = dev->hw_path;
  1354. ioc->ioc_regs = ioremap_nocache(dev->hpa.start, 4096);
  1355. ccio_ioc_init(ioc);
  1356. ccio_init_resources(ioc);
  1357. hppa_dma_ops = &ccio_ops;
  1358. dev->dev.platform_data = kzalloc(sizeof(struct pci_hba_data), GFP_KERNEL);
  1359. /* if this fails, no I/O cards will work, so may as well bug */
  1360. BUG_ON(dev->dev.platform_data == NULL);
  1361. HBA_DATA(dev->dev.platform_data)->iommu = ioc;
  1362. if (ioc_count == 0) {
  1363. info_entry = create_proc_entry(MODULE_NAME, 0, proc_runway_root);
  1364. if (info_entry)
  1365. info_entry->proc_fops = &ccio_proc_info_fops;
  1366. bitmap_entry = create_proc_entry(MODULE_NAME"-bitmap", 0, proc_runway_root);
  1367. if (bitmap_entry)
  1368. bitmap_entry->proc_fops = &ccio_proc_bitmap_fops;
  1369. }
  1370. ioc_count++;
  1371. parisc_vmerge_boundary = IOVP_SIZE;
  1372. parisc_vmerge_max_size = BITS_PER_LONG * IOVP_SIZE;
  1373. parisc_has_iommu();
  1374. return 0;
  1375. }
  1376. /**
  1377. * ccio_init - ccio initalization procedure.
  1378. *
  1379. * Register this driver.
  1380. */
  1381. void __init ccio_init(void)
  1382. {
  1383. register_parisc_driver(&ccio_driver);
  1384. }