cistpl.c 38 KB

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  1. /*
  2. * cistpl.c -- 16-bit PCMCIA Card Information Structure parser
  3. *
  4. * This program is free software; you can redistribute it and/or modify
  5. * it under the terms of the GNU General Public License version 2 as
  6. * published by the Free Software Foundation.
  7. *
  8. * The initial developer of the original code is David A. Hinds
  9. * <dahinds@users.sourceforge.net>. Portions created by David A. Hinds
  10. * are Copyright (C) 1999 David A. Hinds. All Rights Reserved.
  11. *
  12. * (C) 1999 David A. Hinds
  13. */
  14. #include <linux/module.h>
  15. #include <linux/moduleparam.h>
  16. #include <linux/kernel.h>
  17. #include <linux/string.h>
  18. #include <linux/major.h>
  19. #include <linux/errno.h>
  20. #include <linux/timer.h>
  21. #include <linux/slab.h>
  22. #include <linux/mm.h>
  23. #include <linux/pci.h>
  24. #include <linux/ioport.h>
  25. #include <asm/io.h>
  26. #include <asm/byteorder.h>
  27. #include <asm/unaligned.h>
  28. #include <pcmcia/cs_types.h>
  29. #include <pcmcia/ss.h>
  30. #include <pcmcia/cs.h>
  31. #include <pcmcia/cisreg.h>
  32. #include <pcmcia/cistpl.h>
  33. #include "cs_internal.h"
  34. static const u_char mantissa[] = {
  35. 10, 12, 13, 15, 20, 25, 30, 35,
  36. 40, 45, 50, 55, 60, 70, 80, 90
  37. };
  38. static const u_int exponent[] = {
  39. 1, 10, 100, 1000, 10000, 100000, 1000000, 10000000
  40. };
  41. /* Convert an extended speed byte to a time in nanoseconds */
  42. #define SPEED_CVT(v) \
  43. (mantissa[(((v)>>3)&15)-1] * exponent[(v)&7] / 10)
  44. /* Convert a power byte to a current in 0.1 microamps */
  45. #define POWER_CVT(v) \
  46. (mantissa[((v)>>3)&15] * exponent[(v)&7] / 10)
  47. #define POWER_SCALE(v) (exponent[(v)&7])
  48. /* Upper limit on reasonable # of tuples */
  49. #define MAX_TUPLES 200
  50. /*====================================================================*/
  51. /* Parameters that can be set with 'insmod' */
  52. /* 16-bit CIS? */
  53. static int cis_width;
  54. module_param(cis_width, int, 0444);
  55. void release_cis_mem(struct pcmcia_socket *s)
  56. {
  57. if (s->cis_mem.flags & MAP_ACTIVE) {
  58. s->cis_mem.flags &= ~MAP_ACTIVE;
  59. s->ops->set_mem_map(s, &s->cis_mem);
  60. if (s->cis_mem.res) {
  61. release_resource(s->cis_mem.res);
  62. kfree(s->cis_mem.res);
  63. s->cis_mem.res = NULL;
  64. }
  65. iounmap(s->cis_virt);
  66. s->cis_virt = NULL;
  67. }
  68. }
  69. EXPORT_SYMBOL(release_cis_mem);
  70. /*
  71. * Map the card memory at "card_offset" into virtual space.
  72. * If flags & MAP_ATTRIB, map the attribute space, otherwise
  73. * map the memory space.
  74. */
  75. static void __iomem *
  76. set_cis_map(struct pcmcia_socket *s, unsigned int card_offset, unsigned int flags)
  77. {
  78. pccard_mem_map *mem = &s->cis_mem;
  79. int ret;
  80. if (!(s->features & SS_CAP_STATIC_MAP) && (mem->res == NULL)) {
  81. mem->res = pcmcia_find_mem_region(0, s->map_size, s->map_size, 0, s);
  82. if (mem->res == NULL) {
  83. dev_printk(KERN_NOTICE, &s->dev,
  84. "cs: unable to map card memory!\n");
  85. return NULL;
  86. }
  87. s->cis_virt = NULL;
  88. }
  89. if (!(s->features & SS_CAP_STATIC_MAP) && (!s->cis_virt))
  90. s->cis_virt = ioremap(mem->res->start, s->map_size);
  91. mem->card_start = card_offset;
  92. mem->flags = flags;
  93. ret = s->ops->set_mem_map(s, mem);
  94. if (ret) {
  95. iounmap(s->cis_virt);
  96. s->cis_virt = NULL;
  97. return NULL;
  98. }
  99. if (s->features & SS_CAP_STATIC_MAP) {
  100. if (s->cis_virt)
  101. iounmap(s->cis_virt);
  102. s->cis_virt = ioremap(mem->static_start, s->map_size);
  103. }
  104. return s->cis_virt;
  105. }
  106. /*======================================================================
  107. Low-level functions to read and write CIS memory. I think the
  108. write routine is only useful for writing one-byte registers.
  109. ======================================================================*/
  110. /* Bits in attr field */
  111. #define IS_ATTR 1
  112. #define IS_INDIRECT 8
  113. int pcmcia_read_cis_mem(struct pcmcia_socket *s, int attr, u_int addr,
  114. u_int len, void *ptr)
  115. {
  116. void __iomem *sys, *end;
  117. unsigned char *buf = ptr;
  118. cs_dbg(s, 3, "pcmcia_read_cis_mem(%d, %#x, %u)\n", attr, addr, len);
  119. if (attr & IS_INDIRECT) {
  120. /* Indirect accesses use a bunch of special registers at fixed
  121. locations in common memory */
  122. u_char flags = ICTRL0_COMMON|ICTRL0_AUTOINC|ICTRL0_BYTEGRAN;
  123. if (attr & IS_ATTR) {
  124. addr *= 2;
  125. flags = ICTRL0_AUTOINC;
  126. }
  127. sys = set_cis_map(s, 0, MAP_ACTIVE | ((cis_width) ? MAP_16BIT : 0));
  128. if (!sys) {
  129. memset(ptr, 0xff, len);
  130. return -1;
  131. }
  132. writeb(flags, sys+CISREG_ICTRL0);
  133. writeb(addr & 0xff, sys+CISREG_IADDR0);
  134. writeb((addr>>8) & 0xff, sys+CISREG_IADDR1);
  135. writeb((addr>>16) & 0xff, sys+CISREG_IADDR2);
  136. writeb((addr>>24) & 0xff, sys+CISREG_IADDR3);
  137. for ( ; len > 0; len--, buf++)
  138. *buf = readb(sys+CISREG_IDATA0);
  139. } else {
  140. u_int inc = 1, card_offset, flags;
  141. flags = MAP_ACTIVE | ((cis_width) ? MAP_16BIT : 0);
  142. if (attr) {
  143. flags |= MAP_ATTRIB;
  144. inc++;
  145. addr *= 2;
  146. }
  147. card_offset = addr & ~(s->map_size-1);
  148. while (len) {
  149. sys = set_cis_map(s, card_offset, flags);
  150. if (!sys) {
  151. memset(ptr, 0xff, len);
  152. return -1;
  153. }
  154. end = sys + s->map_size;
  155. sys = sys + (addr & (s->map_size-1));
  156. for ( ; len > 0; len--, buf++, sys += inc) {
  157. if (sys == end)
  158. break;
  159. *buf = readb(sys);
  160. }
  161. card_offset += s->map_size;
  162. addr = 0;
  163. }
  164. }
  165. cs_dbg(s, 3, " %#2.2x %#2.2x %#2.2x %#2.2x ...\n",
  166. *(u_char *)(ptr+0), *(u_char *)(ptr+1),
  167. *(u_char *)(ptr+2), *(u_char *)(ptr+3));
  168. return 0;
  169. }
  170. EXPORT_SYMBOL(pcmcia_read_cis_mem);
  171. void pcmcia_write_cis_mem(struct pcmcia_socket *s, int attr, u_int addr,
  172. u_int len, void *ptr)
  173. {
  174. void __iomem *sys, *end;
  175. unsigned char *buf = ptr;
  176. cs_dbg(s, 3, "pcmcia_write_cis_mem(%d, %#x, %u)\n", attr, addr, len);
  177. if (attr & IS_INDIRECT) {
  178. /* Indirect accesses use a bunch of special registers at fixed
  179. locations in common memory */
  180. u_char flags = ICTRL0_COMMON|ICTRL0_AUTOINC|ICTRL0_BYTEGRAN;
  181. if (attr & IS_ATTR) {
  182. addr *= 2;
  183. flags = ICTRL0_AUTOINC;
  184. }
  185. sys = set_cis_map(s, 0, MAP_ACTIVE | ((cis_width) ? MAP_16BIT : 0));
  186. if (!sys)
  187. return; /* FIXME: Error */
  188. writeb(flags, sys+CISREG_ICTRL0);
  189. writeb(addr & 0xff, sys+CISREG_IADDR0);
  190. writeb((addr>>8) & 0xff, sys+CISREG_IADDR1);
  191. writeb((addr>>16) & 0xff, sys+CISREG_IADDR2);
  192. writeb((addr>>24) & 0xff, sys+CISREG_IADDR3);
  193. for ( ; len > 0; len--, buf++)
  194. writeb(*buf, sys+CISREG_IDATA0);
  195. } else {
  196. u_int inc = 1, card_offset, flags;
  197. flags = MAP_ACTIVE | ((cis_width) ? MAP_16BIT : 0);
  198. if (attr & IS_ATTR) {
  199. flags |= MAP_ATTRIB;
  200. inc++;
  201. addr *= 2;
  202. }
  203. card_offset = addr & ~(s->map_size-1);
  204. while (len) {
  205. sys = set_cis_map(s, card_offset, flags);
  206. if (!sys)
  207. return; /* FIXME: error */
  208. end = sys + s->map_size;
  209. sys = sys + (addr & (s->map_size-1));
  210. for ( ; len > 0; len--, buf++, sys += inc) {
  211. if (sys == end)
  212. break;
  213. writeb(*buf, sys);
  214. }
  215. card_offset += s->map_size;
  216. addr = 0;
  217. }
  218. }
  219. }
  220. EXPORT_SYMBOL(pcmcia_write_cis_mem);
  221. /*======================================================================
  222. This is a wrapper around read_cis_mem, with the same interface,
  223. but which caches information, for cards whose CIS may not be
  224. readable all the time.
  225. ======================================================================*/
  226. static void read_cis_cache(struct pcmcia_socket *s, int attr, u_int addr,
  227. size_t len, void *ptr)
  228. {
  229. struct cis_cache_entry *cis;
  230. int ret;
  231. if (s->fake_cis) {
  232. if (s->fake_cis_len >= addr+len)
  233. memcpy(ptr, s->fake_cis+addr, len);
  234. else
  235. memset(ptr, 0xff, len);
  236. return;
  237. }
  238. list_for_each_entry(cis, &s->cis_cache, node) {
  239. if (cis->addr == addr && cis->len == len && cis->attr == attr) {
  240. memcpy(ptr, cis->cache, len);
  241. return;
  242. }
  243. }
  244. #ifdef CONFIG_CARDBUS
  245. if (s->state & SOCKET_CARDBUS)
  246. ret = read_cb_mem(s, attr, addr, len, ptr);
  247. else
  248. #endif
  249. ret = pcmcia_read_cis_mem(s, attr, addr, len, ptr);
  250. if (ret == 0) {
  251. /* Copy data into the cache */
  252. cis = kmalloc(sizeof(struct cis_cache_entry) + len, GFP_KERNEL);
  253. if (cis) {
  254. cis->addr = addr;
  255. cis->len = len;
  256. cis->attr = attr;
  257. memcpy(cis->cache, ptr, len);
  258. list_add(&cis->node, &s->cis_cache);
  259. }
  260. }
  261. }
  262. static void
  263. remove_cis_cache(struct pcmcia_socket *s, int attr, u_int addr, u_int len)
  264. {
  265. struct cis_cache_entry *cis;
  266. list_for_each_entry(cis, &s->cis_cache, node)
  267. if (cis->addr == addr && cis->len == len && cis->attr == attr) {
  268. list_del(&cis->node);
  269. kfree(cis);
  270. break;
  271. }
  272. }
  273. void destroy_cis_cache(struct pcmcia_socket *s)
  274. {
  275. struct list_head *l, *n;
  276. list_for_each_safe(l, n, &s->cis_cache) {
  277. struct cis_cache_entry *cis = list_entry(l, struct cis_cache_entry, node);
  278. list_del(&cis->node);
  279. kfree(cis);
  280. }
  281. /*
  282. * If there was a fake CIS, destroy that as well.
  283. */
  284. kfree(s->fake_cis);
  285. s->fake_cis = NULL;
  286. }
  287. EXPORT_SYMBOL(destroy_cis_cache);
  288. /*======================================================================
  289. This verifies if the CIS of a card matches what is in the CIS
  290. cache.
  291. ======================================================================*/
  292. int verify_cis_cache(struct pcmcia_socket *s)
  293. {
  294. struct cis_cache_entry *cis;
  295. char *buf;
  296. buf = kmalloc(256, GFP_KERNEL);
  297. if (buf == NULL)
  298. return -1;
  299. list_for_each_entry(cis, &s->cis_cache, node) {
  300. int len = cis->len;
  301. if (len > 256)
  302. len = 256;
  303. #ifdef CONFIG_CARDBUS
  304. if (s->state & SOCKET_CARDBUS)
  305. read_cb_mem(s, cis->attr, cis->addr, len, buf);
  306. else
  307. #endif
  308. pcmcia_read_cis_mem(s, cis->attr, cis->addr, len, buf);
  309. if (memcmp(buf, cis->cache, len) != 0) {
  310. kfree(buf);
  311. return -1;
  312. }
  313. }
  314. kfree(buf);
  315. return 0;
  316. }
  317. /*======================================================================
  318. For really bad cards, we provide a facility for uploading a
  319. replacement CIS.
  320. ======================================================================*/
  321. int pcmcia_replace_cis(struct pcmcia_socket *s,
  322. const u8 *data, const size_t len)
  323. {
  324. if (len > CISTPL_MAX_CIS_SIZE)
  325. return CS_BAD_SIZE;
  326. kfree(s->fake_cis);
  327. s->fake_cis = kmalloc(len, GFP_KERNEL);
  328. if (s->fake_cis == NULL)
  329. return CS_OUT_OF_RESOURCE;
  330. s->fake_cis_len = len;
  331. memcpy(s->fake_cis, data, len);
  332. return CS_SUCCESS;
  333. }
  334. EXPORT_SYMBOL(pcmcia_replace_cis);
  335. /*======================================================================
  336. The high-level CIS tuple services
  337. ======================================================================*/
  338. typedef struct tuple_flags {
  339. u_int link_space:4;
  340. u_int has_link:1;
  341. u_int mfc_fn:3;
  342. u_int space:4;
  343. } tuple_flags;
  344. #define LINK_SPACE(f) (((tuple_flags *)(&(f)))->link_space)
  345. #define HAS_LINK(f) (((tuple_flags *)(&(f)))->has_link)
  346. #define MFC_FN(f) (((tuple_flags *)(&(f)))->mfc_fn)
  347. #define SPACE(f) (((tuple_flags *)(&(f)))->space)
  348. int pccard_get_next_tuple(struct pcmcia_socket *s, unsigned int func, tuple_t *tuple);
  349. int pccard_get_first_tuple(struct pcmcia_socket *s, unsigned int function, tuple_t *tuple)
  350. {
  351. if (!s)
  352. return CS_BAD_HANDLE;
  353. if (!(s->state & SOCKET_PRESENT))
  354. return CS_NO_CARD;
  355. tuple->TupleLink = tuple->Flags = 0;
  356. #ifdef CONFIG_CARDBUS
  357. if (s->state & SOCKET_CARDBUS) {
  358. struct pci_dev *dev = s->cb_dev;
  359. u_int ptr;
  360. pci_bus_read_config_dword(dev->subordinate, 0, PCI_CARDBUS_CIS, &ptr);
  361. tuple->CISOffset = ptr & ~7;
  362. SPACE(tuple->Flags) = (ptr & 7);
  363. } else
  364. #endif
  365. {
  366. /* Assume presence of a LONGLINK_C to address 0 */
  367. tuple->CISOffset = tuple->LinkOffset = 0;
  368. SPACE(tuple->Flags) = HAS_LINK(tuple->Flags) = 1;
  369. }
  370. if (!(s->state & SOCKET_CARDBUS) && (s->functions > 1) &&
  371. !(tuple->Attributes & TUPLE_RETURN_COMMON)) {
  372. cisdata_t req = tuple->DesiredTuple;
  373. tuple->DesiredTuple = CISTPL_LONGLINK_MFC;
  374. if (pccard_get_next_tuple(s, function, tuple) == CS_SUCCESS) {
  375. tuple->DesiredTuple = CISTPL_LINKTARGET;
  376. if (pccard_get_next_tuple(s, function, tuple) != CS_SUCCESS)
  377. return CS_NO_MORE_ITEMS;
  378. } else
  379. tuple->CISOffset = tuple->TupleLink = 0;
  380. tuple->DesiredTuple = req;
  381. }
  382. return pccard_get_next_tuple(s, function, tuple);
  383. }
  384. EXPORT_SYMBOL(pccard_get_first_tuple);
  385. static int follow_link(struct pcmcia_socket *s, tuple_t *tuple)
  386. {
  387. u_char link[5];
  388. u_int ofs;
  389. if (MFC_FN(tuple->Flags)) {
  390. /* Get indirect link from the MFC tuple */
  391. read_cis_cache(s, LINK_SPACE(tuple->Flags),
  392. tuple->LinkOffset, 5, link);
  393. ofs = get_unaligned_le32(link + 1);
  394. SPACE(tuple->Flags) = (link[0] == CISTPL_MFC_ATTR);
  395. /* Move to the next indirect link */
  396. tuple->LinkOffset += 5;
  397. MFC_FN(tuple->Flags)--;
  398. } else if (HAS_LINK(tuple->Flags)) {
  399. ofs = tuple->LinkOffset;
  400. SPACE(tuple->Flags) = LINK_SPACE(tuple->Flags);
  401. HAS_LINK(tuple->Flags) = 0;
  402. } else {
  403. return -1;
  404. }
  405. if (!(s->state & SOCKET_CARDBUS) && SPACE(tuple->Flags)) {
  406. /* This is ugly, but a common CIS error is to code the long
  407. link offset incorrectly, so we check the right spot... */
  408. read_cis_cache(s, SPACE(tuple->Flags), ofs, 5, link);
  409. if ((link[0] == CISTPL_LINKTARGET) && (link[1] >= 3) &&
  410. (strncmp(link+2, "CIS", 3) == 0))
  411. return ofs;
  412. remove_cis_cache(s, SPACE(tuple->Flags), ofs, 5);
  413. /* Then, we try the wrong spot... */
  414. ofs = ofs >> 1;
  415. }
  416. read_cis_cache(s, SPACE(tuple->Flags), ofs, 5, link);
  417. if ((link[0] == CISTPL_LINKTARGET) && (link[1] >= 3) &&
  418. (strncmp(link+2, "CIS", 3) == 0))
  419. return ofs;
  420. remove_cis_cache(s, SPACE(tuple->Flags), ofs, 5);
  421. return -1;
  422. }
  423. int pccard_get_next_tuple(struct pcmcia_socket *s, unsigned int function, tuple_t *tuple)
  424. {
  425. u_char link[2], tmp;
  426. int ofs, i, attr;
  427. if (!s)
  428. return CS_BAD_HANDLE;
  429. if (!(s->state & SOCKET_PRESENT))
  430. return CS_NO_CARD;
  431. link[1] = tuple->TupleLink;
  432. ofs = tuple->CISOffset + tuple->TupleLink;
  433. attr = SPACE(tuple->Flags);
  434. for (i = 0; i < MAX_TUPLES; i++) {
  435. if (link[1] == 0xff) {
  436. link[0] = CISTPL_END;
  437. } else {
  438. read_cis_cache(s, attr, ofs, 2, link);
  439. if (link[0] == CISTPL_NULL) {
  440. ofs++; continue;
  441. }
  442. }
  443. /* End of chain? Follow long link if possible */
  444. if (link[0] == CISTPL_END) {
  445. if ((ofs = follow_link(s, tuple)) < 0)
  446. return CS_NO_MORE_ITEMS;
  447. attr = SPACE(tuple->Flags);
  448. read_cis_cache(s, attr, ofs, 2, link);
  449. }
  450. /* Is this a link tuple? Make a note of it */
  451. if ((link[0] == CISTPL_LONGLINK_A) ||
  452. (link[0] == CISTPL_LONGLINK_C) ||
  453. (link[0] == CISTPL_LONGLINK_MFC) ||
  454. (link[0] == CISTPL_LINKTARGET) ||
  455. (link[0] == CISTPL_INDIRECT) ||
  456. (link[0] == CISTPL_NO_LINK)) {
  457. switch (link[0]) {
  458. case CISTPL_LONGLINK_A:
  459. HAS_LINK(tuple->Flags) = 1;
  460. LINK_SPACE(tuple->Flags) = attr | IS_ATTR;
  461. read_cis_cache(s, attr, ofs+2, 4, &tuple->LinkOffset);
  462. break;
  463. case CISTPL_LONGLINK_C:
  464. HAS_LINK(tuple->Flags) = 1;
  465. LINK_SPACE(tuple->Flags) = attr & ~IS_ATTR;
  466. read_cis_cache(s, attr, ofs+2, 4, &tuple->LinkOffset);
  467. break;
  468. case CISTPL_INDIRECT:
  469. HAS_LINK(tuple->Flags) = 1;
  470. LINK_SPACE(tuple->Flags) = IS_ATTR | IS_INDIRECT;
  471. tuple->LinkOffset = 0;
  472. break;
  473. case CISTPL_LONGLINK_MFC:
  474. tuple->LinkOffset = ofs + 3;
  475. LINK_SPACE(tuple->Flags) = attr;
  476. if (function == BIND_FN_ALL) {
  477. /* Follow all the MFC links */
  478. read_cis_cache(s, attr, ofs+2, 1, &tmp);
  479. MFC_FN(tuple->Flags) = tmp;
  480. } else {
  481. /* Follow exactly one of the links */
  482. MFC_FN(tuple->Flags) = 1;
  483. tuple->LinkOffset += function * 5;
  484. }
  485. break;
  486. case CISTPL_NO_LINK:
  487. HAS_LINK(tuple->Flags) = 0;
  488. break;
  489. }
  490. if ((tuple->Attributes & TUPLE_RETURN_LINK) &&
  491. (tuple->DesiredTuple == RETURN_FIRST_TUPLE))
  492. break;
  493. } else
  494. if (tuple->DesiredTuple == RETURN_FIRST_TUPLE)
  495. break;
  496. if (link[0] == tuple->DesiredTuple)
  497. break;
  498. ofs += link[1] + 2;
  499. }
  500. if (i == MAX_TUPLES) {
  501. cs_dbg(s, 1, "cs: overrun in pcmcia_get_next_tuple\n");
  502. return CS_NO_MORE_ITEMS;
  503. }
  504. tuple->TupleCode = link[0];
  505. tuple->TupleLink = link[1];
  506. tuple->CISOffset = ofs + 2;
  507. return CS_SUCCESS;
  508. }
  509. EXPORT_SYMBOL(pccard_get_next_tuple);
  510. /*====================================================================*/
  511. #define _MIN(a, b) (((a) < (b)) ? (a) : (b))
  512. int pccard_get_tuple_data(struct pcmcia_socket *s, tuple_t *tuple)
  513. {
  514. u_int len;
  515. if (!s)
  516. return CS_BAD_HANDLE;
  517. if (tuple->TupleLink < tuple->TupleOffset)
  518. return CS_NO_MORE_ITEMS;
  519. len = tuple->TupleLink - tuple->TupleOffset;
  520. tuple->TupleDataLen = tuple->TupleLink;
  521. if (len == 0)
  522. return CS_SUCCESS;
  523. read_cis_cache(s, SPACE(tuple->Flags),
  524. tuple->CISOffset + tuple->TupleOffset,
  525. _MIN(len, tuple->TupleDataMax), tuple->TupleData);
  526. return CS_SUCCESS;
  527. }
  528. EXPORT_SYMBOL(pccard_get_tuple_data);
  529. /*======================================================================
  530. Parsing routines for individual tuples
  531. ======================================================================*/
  532. static int parse_device(tuple_t *tuple, cistpl_device_t *device)
  533. {
  534. int i;
  535. u_char scale;
  536. u_char *p, *q;
  537. p = (u_char *)tuple->TupleData;
  538. q = p + tuple->TupleDataLen;
  539. device->ndev = 0;
  540. for (i = 0; i < CISTPL_MAX_DEVICES; i++) {
  541. if (*p == 0xff) break;
  542. device->dev[i].type = (*p >> 4);
  543. device->dev[i].wp = (*p & 0x08) ? 1 : 0;
  544. switch (*p & 0x07) {
  545. case 0: device->dev[i].speed = 0; break;
  546. case 1: device->dev[i].speed = 250; break;
  547. case 2: device->dev[i].speed = 200; break;
  548. case 3: device->dev[i].speed = 150; break;
  549. case 4: device->dev[i].speed = 100; break;
  550. case 7:
  551. if (++p == q) return CS_BAD_TUPLE;
  552. device->dev[i].speed = SPEED_CVT(*p);
  553. while (*p & 0x80)
  554. if (++p == q) return CS_BAD_TUPLE;
  555. break;
  556. default:
  557. return CS_BAD_TUPLE;
  558. }
  559. if (++p == q) return CS_BAD_TUPLE;
  560. if (*p == 0xff) break;
  561. scale = *p & 7;
  562. if (scale == 7) return CS_BAD_TUPLE;
  563. device->dev[i].size = ((*p >> 3) + 1) * (512 << (scale*2));
  564. device->ndev++;
  565. if (++p == q) break;
  566. }
  567. return CS_SUCCESS;
  568. }
  569. /*====================================================================*/
  570. static int parse_checksum(tuple_t *tuple, cistpl_checksum_t *csum)
  571. {
  572. u_char *p;
  573. if (tuple->TupleDataLen < 5)
  574. return CS_BAD_TUPLE;
  575. p = (u_char *) tuple->TupleData;
  576. csum->addr = tuple->CISOffset + get_unaligned_le16(p) - 2;
  577. csum->len = get_unaligned_le16(p + 2);
  578. csum->sum = *(p + 4);
  579. return CS_SUCCESS;
  580. }
  581. /*====================================================================*/
  582. static int parse_longlink(tuple_t *tuple, cistpl_longlink_t *link)
  583. {
  584. if (tuple->TupleDataLen < 4)
  585. return CS_BAD_TUPLE;
  586. link->addr = get_unaligned_le32(tuple->TupleData);
  587. return CS_SUCCESS;
  588. }
  589. /*====================================================================*/
  590. static int parse_longlink_mfc(tuple_t *tuple,
  591. cistpl_longlink_mfc_t *link)
  592. {
  593. u_char *p;
  594. int i;
  595. p = (u_char *)tuple->TupleData;
  596. link->nfn = *p; p++;
  597. if (tuple->TupleDataLen <= link->nfn*5)
  598. return CS_BAD_TUPLE;
  599. for (i = 0; i < link->nfn; i++) {
  600. link->fn[i].space = *p; p++;
  601. link->fn[i].addr = get_unaligned_le32(p);
  602. p += 4;
  603. }
  604. return CS_SUCCESS;
  605. }
  606. /*====================================================================*/
  607. static int parse_strings(u_char *p, u_char *q, int max,
  608. char *s, u_char *ofs, u_char *found)
  609. {
  610. int i, j, ns;
  611. if (p == q) return CS_BAD_TUPLE;
  612. ns = 0; j = 0;
  613. for (i = 0; i < max; i++) {
  614. if (*p == 0xff) break;
  615. ofs[i] = j;
  616. ns++;
  617. for (;;) {
  618. s[j++] = (*p == 0xff) ? '\0' : *p;
  619. if ((*p == '\0') || (*p == 0xff)) break;
  620. if (++p == q) return CS_BAD_TUPLE;
  621. }
  622. if ((*p == 0xff) || (++p == q)) break;
  623. }
  624. if (found) {
  625. *found = ns;
  626. return CS_SUCCESS;
  627. } else {
  628. return (ns == max) ? CS_SUCCESS : CS_BAD_TUPLE;
  629. }
  630. }
  631. /*====================================================================*/
  632. static int parse_vers_1(tuple_t *tuple, cistpl_vers_1_t *vers_1)
  633. {
  634. u_char *p, *q;
  635. p = (u_char *)tuple->TupleData;
  636. q = p + tuple->TupleDataLen;
  637. vers_1->major = *p; p++;
  638. vers_1->minor = *p; p++;
  639. if (p >= q) return CS_BAD_TUPLE;
  640. return parse_strings(p, q, CISTPL_VERS_1_MAX_PROD_STRINGS,
  641. vers_1->str, vers_1->ofs, &vers_1->ns);
  642. }
  643. /*====================================================================*/
  644. static int parse_altstr(tuple_t *tuple, cistpl_altstr_t *altstr)
  645. {
  646. u_char *p, *q;
  647. p = (u_char *)tuple->TupleData;
  648. q = p + tuple->TupleDataLen;
  649. return parse_strings(p, q, CISTPL_MAX_ALTSTR_STRINGS,
  650. altstr->str, altstr->ofs, &altstr->ns);
  651. }
  652. /*====================================================================*/
  653. static int parse_jedec(tuple_t *tuple, cistpl_jedec_t *jedec)
  654. {
  655. u_char *p, *q;
  656. int nid;
  657. p = (u_char *)tuple->TupleData;
  658. q = p + tuple->TupleDataLen;
  659. for (nid = 0; nid < CISTPL_MAX_DEVICES; nid++) {
  660. if (p > q-2) break;
  661. jedec->id[nid].mfr = p[0];
  662. jedec->id[nid].info = p[1];
  663. p += 2;
  664. }
  665. jedec->nid = nid;
  666. return CS_SUCCESS;
  667. }
  668. /*====================================================================*/
  669. static int parse_manfid(tuple_t *tuple, cistpl_manfid_t *m)
  670. {
  671. if (tuple->TupleDataLen < 4)
  672. return CS_BAD_TUPLE;
  673. m->manf = get_unaligned_le16(tuple->TupleData);
  674. m->card = get_unaligned_le16(tuple->TupleData + 2);
  675. return CS_SUCCESS;
  676. }
  677. /*====================================================================*/
  678. static int parse_funcid(tuple_t *tuple, cistpl_funcid_t *f)
  679. {
  680. u_char *p;
  681. if (tuple->TupleDataLen < 2)
  682. return CS_BAD_TUPLE;
  683. p = (u_char *)tuple->TupleData;
  684. f->func = p[0];
  685. f->sysinit = p[1];
  686. return CS_SUCCESS;
  687. }
  688. /*====================================================================*/
  689. static int parse_funce(tuple_t *tuple, cistpl_funce_t *f)
  690. {
  691. u_char *p;
  692. int i;
  693. if (tuple->TupleDataLen < 1)
  694. return CS_BAD_TUPLE;
  695. p = (u_char *)tuple->TupleData;
  696. f->type = p[0];
  697. for (i = 1; i < tuple->TupleDataLen; i++)
  698. f->data[i-1] = p[i];
  699. return CS_SUCCESS;
  700. }
  701. /*====================================================================*/
  702. static int parse_config(tuple_t *tuple, cistpl_config_t *config)
  703. {
  704. int rasz, rmsz, i;
  705. u_char *p;
  706. p = (u_char *)tuple->TupleData;
  707. rasz = *p & 0x03;
  708. rmsz = (*p & 0x3c) >> 2;
  709. if (tuple->TupleDataLen < rasz+rmsz+4)
  710. return CS_BAD_TUPLE;
  711. config->last_idx = *(++p);
  712. p++;
  713. config->base = 0;
  714. for (i = 0; i <= rasz; i++)
  715. config->base += p[i] << (8*i);
  716. p += rasz+1;
  717. for (i = 0; i < 4; i++)
  718. config->rmask[i] = 0;
  719. for (i = 0; i <= rmsz; i++)
  720. config->rmask[i>>2] += p[i] << (8*(i%4));
  721. config->subtuples = tuple->TupleDataLen - (rasz+rmsz+4);
  722. return CS_SUCCESS;
  723. }
  724. /*======================================================================
  725. The following routines are all used to parse the nightmarish
  726. config table entries.
  727. ======================================================================*/
  728. static u_char *parse_power(u_char *p, u_char *q,
  729. cistpl_power_t *pwr)
  730. {
  731. int i;
  732. u_int scale;
  733. if (p == q) return NULL;
  734. pwr->present = *p;
  735. pwr->flags = 0;
  736. p++;
  737. for (i = 0; i < 7; i++)
  738. if (pwr->present & (1<<i)) {
  739. if (p == q) return NULL;
  740. pwr->param[i] = POWER_CVT(*p);
  741. scale = POWER_SCALE(*p);
  742. while (*p & 0x80) {
  743. if (++p == q) return NULL;
  744. if ((*p & 0x7f) < 100)
  745. pwr->param[i] += (*p & 0x7f) * scale / 100;
  746. else if (*p == 0x7d)
  747. pwr->flags |= CISTPL_POWER_HIGHZ_OK;
  748. else if (*p == 0x7e)
  749. pwr->param[i] = 0;
  750. else if (*p == 0x7f)
  751. pwr->flags |= CISTPL_POWER_HIGHZ_REQ;
  752. else
  753. return NULL;
  754. }
  755. p++;
  756. }
  757. return p;
  758. }
  759. /*====================================================================*/
  760. static u_char *parse_timing(u_char *p, u_char *q,
  761. cistpl_timing_t *timing)
  762. {
  763. u_char scale;
  764. if (p == q) return NULL;
  765. scale = *p;
  766. if ((scale & 3) != 3) {
  767. if (++p == q) return NULL;
  768. timing->wait = SPEED_CVT(*p);
  769. timing->waitscale = exponent[scale & 3];
  770. } else
  771. timing->wait = 0;
  772. scale >>= 2;
  773. if ((scale & 7) != 7) {
  774. if (++p == q) return NULL;
  775. timing->ready = SPEED_CVT(*p);
  776. timing->rdyscale = exponent[scale & 7];
  777. } else
  778. timing->ready = 0;
  779. scale >>= 3;
  780. if (scale != 7) {
  781. if (++p == q) return NULL;
  782. timing->reserved = SPEED_CVT(*p);
  783. timing->rsvscale = exponent[scale];
  784. } else
  785. timing->reserved = 0;
  786. p++;
  787. return p;
  788. }
  789. /*====================================================================*/
  790. static u_char *parse_io(u_char *p, u_char *q, cistpl_io_t *io)
  791. {
  792. int i, j, bsz, lsz;
  793. if (p == q) return NULL;
  794. io->flags = *p;
  795. if (!(*p & 0x80)) {
  796. io->nwin = 1;
  797. io->win[0].base = 0;
  798. io->win[0].len = (1 << (io->flags & CISTPL_IO_LINES_MASK));
  799. return p+1;
  800. }
  801. if (++p == q) return NULL;
  802. io->nwin = (*p & 0x0f) + 1;
  803. bsz = (*p & 0x30) >> 4;
  804. if (bsz == 3) bsz++;
  805. lsz = (*p & 0xc0) >> 6;
  806. if (lsz == 3) lsz++;
  807. p++;
  808. for (i = 0; i < io->nwin; i++) {
  809. io->win[i].base = 0;
  810. io->win[i].len = 1;
  811. for (j = 0; j < bsz; j++, p++) {
  812. if (p == q) return NULL;
  813. io->win[i].base += *p << (j*8);
  814. }
  815. for (j = 0; j < lsz; j++, p++) {
  816. if (p == q) return NULL;
  817. io->win[i].len += *p << (j*8);
  818. }
  819. }
  820. return p;
  821. }
  822. /*====================================================================*/
  823. static u_char *parse_mem(u_char *p, u_char *q, cistpl_mem_t *mem)
  824. {
  825. int i, j, asz, lsz, has_ha;
  826. u_int len, ca, ha;
  827. if (p == q) return NULL;
  828. mem->nwin = (*p & 0x07) + 1;
  829. lsz = (*p & 0x18) >> 3;
  830. asz = (*p & 0x60) >> 5;
  831. has_ha = (*p & 0x80);
  832. if (++p == q) return NULL;
  833. for (i = 0; i < mem->nwin; i++) {
  834. len = ca = ha = 0;
  835. for (j = 0; j < lsz; j++, p++) {
  836. if (p == q) return NULL;
  837. len += *p << (j*8);
  838. }
  839. for (j = 0; j < asz; j++, p++) {
  840. if (p == q) return NULL;
  841. ca += *p << (j*8);
  842. }
  843. if (has_ha)
  844. for (j = 0; j < asz; j++, p++) {
  845. if (p == q) return NULL;
  846. ha += *p << (j*8);
  847. }
  848. mem->win[i].len = len << 8;
  849. mem->win[i].card_addr = ca << 8;
  850. mem->win[i].host_addr = ha << 8;
  851. }
  852. return p;
  853. }
  854. /*====================================================================*/
  855. static u_char *parse_irq(u_char *p, u_char *q, cistpl_irq_t *irq)
  856. {
  857. if (p == q) return NULL;
  858. irq->IRQInfo1 = *p; p++;
  859. if (irq->IRQInfo1 & IRQ_INFO2_VALID) {
  860. if (p+2 > q) return NULL;
  861. irq->IRQInfo2 = (p[1]<<8) + p[0];
  862. p += 2;
  863. }
  864. return p;
  865. }
  866. /*====================================================================*/
  867. static int parse_cftable_entry(tuple_t *tuple,
  868. cistpl_cftable_entry_t *entry)
  869. {
  870. u_char *p, *q, features;
  871. p = tuple->TupleData;
  872. q = p + tuple->TupleDataLen;
  873. entry->index = *p & 0x3f;
  874. entry->flags = 0;
  875. if (*p & 0x40)
  876. entry->flags |= CISTPL_CFTABLE_DEFAULT;
  877. if (*p & 0x80) {
  878. if (++p == q) return CS_BAD_TUPLE;
  879. if (*p & 0x10)
  880. entry->flags |= CISTPL_CFTABLE_BVDS;
  881. if (*p & 0x20)
  882. entry->flags |= CISTPL_CFTABLE_WP;
  883. if (*p & 0x40)
  884. entry->flags |= CISTPL_CFTABLE_RDYBSY;
  885. if (*p & 0x80)
  886. entry->flags |= CISTPL_CFTABLE_MWAIT;
  887. entry->interface = *p & 0x0f;
  888. } else
  889. entry->interface = 0;
  890. /* Process optional features */
  891. if (++p == q) return CS_BAD_TUPLE;
  892. features = *p; p++;
  893. /* Power options */
  894. if ((features & 3) > 0) {
  895. p = parse_power(p, q, &entry->vcc);
  896. if (p == NULL) return CS_BAD_TUPLE;
  897. } else
  898. entry->vcc.present = 0;
  899. if ((features & 3) > 1) {
  900. p = parse_power(p, q, &entry->vpp1);
  901. if (p == NULL) return CS_BAD_TUPLE;
  902. } else
  903. entry->vpp1.present = 0;
  904. if ((features & 3) > 2) {
  905. p = parse_power(p, q, &entry->vpp2);
  906. if (p == NULL) return CS_BAD_TUPLE;
  907. } else
  908. entry->vpp2.present = 0;
  909. /* Timing options */
  910. if (features & 0x04) {
  911. p = parse_timing(p, q, &entry->timing);
  912. if (p == NULL) return CS_BAD_TUPLE;
  913. } else {
  914. entry->timing.wait = 0;
  915. entry->timing.ready = 0;
  916. entry->timing.reserved = 0;
  917. }
  918. /* I/O window options */
  919. if (features & 0x08) {
  920. p = parse_io(p, q, &entry->io);
  921. if (p == NULL) return CS_BAD_TUPLE;
  922. } else
  923. entry->io.nwin = 0;
  924. /* Interrupt options */
  925. if (features & 0x10) {
  926. p = parse_irq(p, q, &entry->irq);
  927. if (p == NULL) return CS_BAD_TUPLE;
  928. } else
  929. entry->irq.IRQInfo1 = 0;
  930. switch (features & 0x60) {
  931. case 0x00:
  932. entry->mem.nwin = 0;
  933. break;
  934. case 0x20:
  935. entry->mem.nwin = 1;
  936. entry->mem.win[0].len = get_unaligned_le16(p) << 8;
  937. entry->mem.win[0].card_addr = 0;
  938. entry->mem.win[0].host_addr = 0;
  939. p += 2;
  940. if (p > q) return CS_BAD_TUPLE;
  941. break;
  942. case 0x40:
  943. entry->mem.nwin = 1;
  944. entry->mem.win[0].len = get_unaligned_le16(p) << 8;
  945. entry->mem.win[0].card_addr = get_unaligned_le16(p + 2) << 8;
  946. entry->mem.win[0].host_addr = 0;
  947. p += 4;
  948. if (p > q) return CS_BAD_TUPLE;
  949. break;
  950. case 0x60:
  951. p = parse_mem(p, q, &entry->mem);
  952. if (p == NULL) return CS_BAD_TUPLE;
  953. break;
  954. }
  955. /* Misc features */
  956. if (features & 0x80) {
  957. if (p == q) return CS_BAD_TUPLE;
  958. entry->flags |= (*p << 8);
  959. while (*p & 0x80)
  960. if (++p == q) return CS_BAD_TUPLE;
  961. p++;
  962. }
  963. entry->subtuples = q-p;
  964. return CS_SUCCESS;
  965. }
  966. /*====================================================================*/
  967. #ifdef CONFIG_CARDBUS
  968. static int parse_bar(tuple_t *tuple, cistpl_bar_t *bar)
  969. {
  970. u_char *p;
  971. if (tuple->TupleDataLen < 6)
  972. return CS_BAD_TUPLE;
  973. p = (u_char *)tuple->TupleData;
  974. bar->attr = *p;
  975. p += 2;
  976. bar->size = get_unaligned_le32(p);
  977. return CS_SUCCESS;
  978. }
  979. static int parse_config_cb(tuple_t *tuple, cistpl_config_t *config)
  980. {
  981. u_char *p;
  982. p = (u_char *)tuple->TupleData;
  983. if ((*p != 3) || (tuple->TupleDataLen < 6))
  984. return CS_BAD_TUPLE;
  985. config->last_idx = *(++p);
  986. p++;
  987. config->base = get_unaligned_le32(p);
  988. config->subtuples = tuple->TupleDataLen - 6;
  989. return CS_SUCCESS;
  990. }
  991. static int parse_cftable_entry_cb(tuple_t *tuple,
  992. cistpl_cftable_entry_cb_t *entry)
  993. {
  994. u_char *p, *q, features;
  995. p = tuple->TupleData;
  996. q = p + tuple->TupleDataLen;
  997. entry->index = *p & 0x3f;
  998. entry->flags = 0;
  999. if (*p & 0x40)
  1000. entry->flags |= CISTPL_CFTABLE_DEFAULT;
  1001. /* Process optional features */
  1002. if (++p == q) return CS_BAD_TUPLE;
  1003. features = *p; p++;
  1004. /* Power options */
  1005. if ((features & 3) > 0) {
  1006. p = parse_power(p, q, &entry->vcc);
  1007. if (p == NULL) return CS_BAD_TUPLE;
  1008. } else
  1009. entry->vcc.present = 0;
  1010. if ((features & 3) > 1) {
  1011. p = parse_power(p, q, &entry->vpp1);
  1012. if (p == NULL) return CS_BAD_TUPLE;
  1013. } else
  1014. entry->vpp1.present = 0;
  1015. if ((features & 3) > 2) {
  1016. p = parse_power(p, q, &entry->vpp2);
  1017. if (p == NULL) return CS_BAD_TUPLE;
  1018. } else
  1019. entry->vpp2.present = 0;
  1020. /* I/O window options */
  1021. if (features & 0x08) {
  1022. if (p == q) return CS_BAD_TUPLE;
  1023. entry->io = *p; p++;
  1024. } else
  1025. entry->io = 0;
  1026. /* Interrupt options */
  1027. if (features & 0x10) {
  1028. p = parse_irq(p, q, &entry->irq);
  1029. if (p == NULL) return CS_BAD_TUPLE;
  1030. } else
  1031. entry->irq.IRQInfo1 = 0;
  1032. if (features & 0x20) {
  1033. if (p == q) return CS_BAD_TUPLE;
  1034. entry->mem = *p; p++;
  1035. } else
  1036. entry->mem = 0;
  1037. /* Misc features */
  1038. if (features & 0x80) {
  1039. if (p == q) return CS_BAD_TUPLE;
  1040. entry->flags |= (*p << 8);
  1041. if (*p & 0x80) {
  1042. if (++p == q) return CS_BAD_TUPLE;
  1043. entry->flags |= (*p << 16);
  1044. }
  1045. while (*p & 0x80)
  1046. if (++p == q) return CS_BAD_TUPLE;
  1047. p++;
  1048. }
  1049. entry->subtuples = q-p;
  1050. return CS_SUCCESS;
  1051. }
  1052. #endif
  1053. /*====================================================================*/
  1054. static int parse_device_geo(tuple_t *tuple, cistpl_device_geo_t *geo)
  1055. {
  1056. u_char *p, *q;
  1057. int n;
  1058. p = (u_char *)tuple->TupleData;
  1059. q = p + tuple->TupleDataLen;
  1060. for (n = 0; n < CISTPL_MAX_DEVICES; n++) {
  1061. if (p > q-6) break;
  1062. geo->geo[n].buswidth = p[0];
  1063. geo->geo[n].erase_block = 1 << (p[1]-1);
  1064. geo->geo[n].read_block = 1 << (p[2]-1);
  1065. geo->geo[n].write_block = 1 << (p[3]-1);
  1066. geo->geo[n].partition = 1 << (p[4]-1);
  1067. geo->geo[n].interleave = 1 << (p[5]-1);
  1068. p += 6;
  1069. }
  1070. geo->ngeo = n;
  1071. return CS_SUCCESS;
  1072. }
  1073. /*====================================================================*/
  1074. static int parse_vers_2(tuple_t *tuple, cistpl_vers_2_t *v2)
  1075. {
  1076. u_char *p, *q;
  1077. if (tuple->TupleDataLen < 10)
  1078. return CS_BAD_TUPLE;
  1079. p = tuple->TupleData;
  1080. q = p + tuple->TupleDataLen;
  1081. v2->vers = p[0];
  1082. v2->comply = p[1];
  1083. v2->dindex = get_unaligned_le16(p +2 );
  1084. v2->vspec8 = p[6];
  1085. v2->vspec9 = p[7];
  1086. v2->nhdr = p[8];
  1087. p += 9;
  1088. return parse_strings(p, q, 2, v2->str, &v2->vendor, NULL);
  1089. }
  1090. /*====================================================================*/
  1091. static int parse_org(tuple_t *tuple, cistpl_org_t *org)
  1092. {
  1093. u_char *p, *q;
  1094. int i;
  1095. p = tuple->TupleData;
  1096. q = p + tuple->TupleDataLen;
  1097. if (p == q) return CS_BAD_TUPLE;
  1098. org->data_org = *p;
  1099. if (++p == q) return CS_BAD_TUPLE;
  1100. for (i = 0; i < 30; i++) {
  1101. org->desc[i] = *p;
  1102. if (*p == '\0') break;
  1103. if (++p == q) return CS_BAD_TUPLE;
  1104. }
  1105. return CS_SUCCESS;
  1106. }
  1107. /*====================================================================*/
  1108. static int parse_format(tuple_t *tuple, cistpl_format_t *fmt)
  1109. {
  1110. u_char *p;
  1111. if (tuple->TupleDataLen < 10)
  1112. return CS_BAD_TUPLE;
  1113. p = tuple->TupleData;
  1114. fmt->type = p[0];
  1115. fmt->edc = p[1];
  1116. fmt->offset = get_unaligned_le32(p + 2);
  1117. fmt->length = get_unaligned_le32(p + 6);
  1118. return CS_SUCCESS;
  1119. }
  1120. /*====================================================================*/
  1121. int pccard_parse_tuple(tuple_t *tuple, cisparse_t *parse)
  1122. {
  1123. int ret = CS_SUCCESS;
  1124. if (tuple->TupleDataLen > tuple->TupleDataMax)
  1125. return CS_BAD_TUPLE;
  1126. switch (tuple->TupleCode) {
  1127. case CISTPL_DEVICE:
  1128. case CISTPL_DEVICE_A:
  1129. ret = parse_device(tuple, &parse->device);
  1130. break;
  1131. #ifdef CONFIG_CARDBUS
  1132. case CISTPL_BAR:
  1133. ret = parse_bar(tuple, &parse->bar);
  1134. break;
  1135. case CISTPL_CONFIG_CB:
  1136. ret = parse_config_cb(tuple, &parse->config);
  1137. break;
  1138. case CISTPL_CFTABLE_ENTRY_CB:
  1139. ret = parse_cftable_entry_cb(tuple, &parse->cftable_entry_cb);
  1140. break;
  1141. #endif
  1142. case CISTPL_CHECKSUM:
  1143. ret = parse_checksum(tuple, &parse->checksum);
  1144. break;
  1145. case CISTPL_LONGLINK_A:
  1146. case CISTPL_LONGLINK_C:
  1147. ret = parse_longlink(tuple, &parse->longlink);
  1148. break;
  1149. case CISTPL_LONGLINK_MFC:
  1150. ret = parse_longlink_mfc(tuple, &parse->longlink_mfc);
  1151. break;
  1152. case CISTPL_VERS_1:
  1153. ret = parse_vers_1(tuple, &parse->version_1);
  1154. break;
  1155. case CISTPL_ALTSTR:
  1156. ret = parse_altstr(tuple, &parse->altstr);
  1157. break;
  1158. case CISTPL_JEDEC_A:
  1159. case CISTPL_JEDEC_C:
  1160. ret = parse_jedec(tuple, &parse->jedec);
  1161. break;
  1162. case CISTPL_MANFID:
  1163. ret = parse_manfid(tuple, &parse->manfid);
  1164. break;
  1165. case CISTPL_FUNCID:
  1166. ret = parse_funcid(tuple, &parse->funcid);
  1167. break;
  1168. case CISTPL_FUNCE:
  1169. ret = parse_funce(tuple, &parse->funce);
  1170. break;
  1171. case CISTPL_CONFIG:
  1172. ret = parse_config(tuple, &parse->config);
  1173. break;
  1174. case CISTPL_CFTABLE_ENTRY:
  1175. ret = parse_cftable_entry(tuple, &parse->cftable_entry);
  1176. break;
  1177. case CISTPL_DEVICE_GEO:
  1178. case CISTPL_DEVICE_GEO_A:
  1179. ret = parse_device_geo(tuple, &parse->device_geo);
  1180. break;
  1181. case CISTPL_VERS_2:
  1182. ret = parse_vers_2(tuple, &parse->vers_2);
  1183. break;
  1184. case CISTPL_ORG:
  1185. ret = parse_org(tuple, &parse->org);
  1186. break;
  1187. case CISTPL_FORMAT:
  1188. case CISTPL_FORMAT_A:
  1189. ret = parse_format(tuple, &parse->format);
  1190. break;
  1191. case CISTPL_NO_LINK:
  1192. case CISTPL_LINKTARGET:
  1193. ret = CS_SUCCESS;
  1194. break;
  1195. default:
  1196. ret = CS_UNSUPPORTED_FUNCTION;
  1197. break;
  1198. }
  1199. return ret;
  1200. }
  1201. EXPORT_SYMBOL(pccard_parse_tuple);
  1202. /*======================================================================
  1203. This is used internally by Card Services to look up CIS stuff.
  1204. ======================================================================*/
  1205. int pccard_read_tuple(struct pcmcia_socket *s, unsigned int function, cisdata_t code, void *parse)
  1206. {
  1207. tuple_t tuple;
  1208. cisdata_t *buf;
  1209. int ret;
  1210. buf = kmalloc(256, GFP_KERNEL);
  1211. if (buf == NULL)
  1212. return CS_OUT_OF_RESOURCE;
  1213. tuple.DesiredTuple = code;
  1214. tuple.Attributes = TUPLE_RETURN_COMMON;
  1215. ret = pccard_get_first_tuple(s, function, &tuple);
  1216. if (ret != CS_SUCCESS) goto done;
  1217. tuple.TupleData = buf;
  1218. tuple.TupleOffset = 0;
  1219. tuple.TupleDataMax = 255;
  1220. ret = pccard_get_tuple_data(s, &tuple);
  1221. if (ret != CS_SUCCESS) goto done;
  1222. ret = pccard_parse_tuple(&tuple, parse);
  1223. done:
  1224. kfree(buf);
  1225. return ret;
  1226. }
  1227. EXPORT_SYMBOL(pccard_read_tuple);
  1228. /*======================================================================
  1229. This tries to determine if a card has a sensible CIS. It returns
  1230. the number of tuples in the CIS, or 0 if the CIS looks bad. The
  1231. checks include making sure several critical tuples are present and
  1232. valid; seeing if the total number of tuples is reasonable; and
  1233. looking for tuples that use reserved codes.
  1234. ======================================================================*/
  1235. int pccard_validate_cis(struct pcmcia_socket *s, unsigned int function, unsigned int *info)
  1236. {
  1237. tuple_t *tuple;
  1238. cisparse_t *p;
  1239. unsigned int count = 0;
  1240. int ret, reserved, dev_ok = 0, ident_ok = 0;
  1241. if (!s)
  1242. return CS_BAD_HANDLE;
  1243. tuple = kmalloc(sizeof(*tuple), GFP_KERNEL);
  1244. if (tuple == NULL)
  1245. return CS_OUT_OF_RESOURCE;
  1246. p = kmalloc(sizeof(*p), GFP_KERNEL);
  1247. if (p == NULL) {
  1248. kfree(tuple);
  1249. return CS_OUT_OF_RESOURCE;
  1250. }
  1251. count = reserved = 0;
  1252. tuple->DesiredTuple = RETURN_FIRST_TUPLE;
  1253. tuple->Attributes = TUPLE_RETURN_COMMON;
  1254. ret = pccard_get_first_tuple(s, function, tuple);
  1255. if (ret != CS_SUCCESS)
  1256. goto done;
  1257. /* First tuple should be DEVICE; we should really have either that
  1258. or a CFTABLE_ENTRY of some sort */
  1259. if ((tuple->TupleCode == CISTPL_DEVICE) ||
  1260. (pccard_read_tuple(s, function, CISTPL_CFTABLE_ENTRY, p) == CS_SUCCESS) ||
  1261. (pccard_read_tuple(s, function, CISTPL_CFTABLE_ENTRY_CB, p) == CS_SUCCESS))
  1262. dev_ok++;
  1263. /* All cards should have a MANFID tuple, and/or a VERS_1 or VERS_2
  1264. tuple, for card identification. Certain old D-Link and Linksys
  1265. cards have only a broken VERS_2 tuple; hence the bogus test. */
  1266. if ((pccard_read_tuple(s, function, CISTPL_MANFID, p) == CS_SUCCESS) ||
  1267. (pccard_read_tuple(s, function, CISTPL_VERS_1, p) == CS_SUCCESS) ||
  1268. (pccard_read_tuple(s, function, CISTPL_VERS_2, p) != CS_NO_MORE_ITEMS))
  1269. ident_ok++;
  1270. if (!dev_ok && !ident_ok)
  1271. goto done;
  1272. for (count = 1; count < MAX_TUPLES; count++) {
  1273. ret = pccard_get_next_tuple(s, function, tuple);
  1274. if (ret != CS_SUCCESS) break;
  1275. if (((tuple->TupleCode > 0x23) && (tuple->TupleCode < 0x40)) ||
  1276. ((tuple->TupleCode > 0x47) && (tuple->TupleCode < 0x80)) ||
  1277. ((tuple->TupleCode > 0x90) && (tuple->TupleCode < 0xff)))
  1278. reserved++;
  1279. }
  1280. if ((count == MAX_TUPLES) || (reserved > 5) ||
  1281. ((!dev_ok || !ident_ok) && (count > 10)))
  1282. count = 0;
  1283. done:
  1284. if (info)
  1285. *info = count;
  1286. kfree(tuple);
  1287. kfree(p);
  1288. return CS_SUCCESS;
  1289. }
  1290. EXPORT_SYMBOL(pccard_validate_cis);