flash.c 28 KB

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  1. /*
  2. * (C) Copyright 2000
  3. * Wolfgang Denk, DENX Software Engineering, wd@denx.de.
  4. *
  5. * See file CREDITS for list of people who contributed to this
  6. * project.
  7. *
  8. * This program is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU General Public License as
  10. * published by the Free Software Foundation; either version 2 of
  11. * the License, or (at your option) any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. * GNU General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU General Public License
  19. * along with this program; if not, write to the Free Software
  20. * Foundation, Inc., 59 Temple Place, Suite 330, Boston,
  21. * MA 02111-1307 USA
  22. */
  23. #include <common.h>
  24. #include <mpc8xx.h>
  25. flash_info_t flash_info[CFG_MAX_FLASH_BANKS]; /* info for FLASH chips */
  26. #ifdef CONFIG_FLASH_16BIT
  27. #define FLASH_WORD_SIZE unsigned short
  28. #define FLASH_ID_MASK 0xFFFF
  29. #else
  30. #define FLASH_WORD_SIZE unsigned long
  31. #define FLASH_ID_MASK 0xFFFFFFFF
  32. #endif
  33. /*-----------------------------------------------------------------------
  34. * Functions
  35. */
  36. ulong flash_get_size (volatile FLASH_WORD_SIZE *addr, flash_info_t *info);
  37. #ifndef CONFIG_FLASH_16BIT
  38. static int write_word (flash_info_t *info, ulong dest, ulong data);
  39. #else
  40. static int write_short (flash_info_t *info, ulong dest, ushort data);
  41. #endif
  42. /*int flash_write (uchar *, ulong, ulong); */
  43. /*flash_info_t *addr2info (ulong); */
  44. static void flash_get_offsets (ulong base, flash_info_t *info);
  45. /*-----------------------------------------------------------------------
  46. */
  47. unsigned long flash_init (void)
  48. {
  49. volatile immap_t *immap = (immap_t *)CFG_IMMR;
  50. volatile memctl8xx_t *memctl = &immap->im_memctl;
  51. unsigned long size_b0, size_b1;
  52. int i;
  53. /* Init: no FLASHes known */
  54. for (i=0; i<CFG_MAX_FLASH_BANKS; ++i) {
  55. flash_info[i].flash_id = FLASH_UNKNOWN;
  56. }
  57. /* Static FLASH Bank configuration here - FIXME XXX */
  58. size_b0 = flash_get_size((volatile FLASH_WORD_SIZE *)FLASH_BASE0_PRELIM,
  59. &flash_info[0]);
  60. if (flash_info[0].flash_id == FLASH_UNKNOWN) {
  61. printf ("## Unknown FLASH on Bank 0 - Size = 0x%08lx = %ld MB\n",
  62. size_b0, size_b0<<20);
  63. }
  64. size_b1 = flash_get_size((volatile FLASH_WORD_SIZE *)FLASH_BASE1_PRELIM,
  65. &flash_info[1]);
  66. if (size_b1 > size_b0) {
  67. printf ("## ERROR: "
  68. "Bank 1 (0x%08lx = %ld MB) > Bank 0 (0x%08lx = %ld MB)\n",
  69. size_b1, size_b1<<20,
  70. size_b0, size_b0<<20
  71. );
  72. flash_info[0].flash_id = FLASH_UNKNOWN;
  73. flash_info[1].flash_id = FLASH_UNKNOWN;
  74. flash_info[0].sector_count = -1;
  75. flash_info[1].sector_count = -1;
  76. flash_info[0].size = 0;
  77. flash_info[1].size = 0;
  78. return (0);
  79. }
  80. /* Remap FLASH according to real size */
  81. memctl->memc_or0 = CFG_OR_TIMING_FLASH | (-size_b0 & 0xFFFF8000);
  82. memctl->memc_br0 = CFG_FLASH_BASE | 0x00000801; /* (CFG_FLASH_BASE & BR_BA_MSK) | BR_MS_GPCM | BR_V;*/
  83. /* Re-do sizing to get full correct info */
  84. size_b0 = flash_get_size((volatile FLASH_WORD_SIZE *)CFG_FLASH_BASE,
  85. &flash_info[0]);
  86. flash_get_offsets (CFG_FLASH_BASE, &flash_info[0]);
  87. #if CFG_MONITOR_BASE >= CFG_FLASH_BASE
  88. /* monitor protection ON by default */
  89. (void)flash_protect(FLAG_PROTECT_SET,
  90. CFG_MONITOR_BASE,
  91. CFG_MONITOR_BASE+CFG_MONITOR_LEN-1,
  92. &flash_info[0]);
  93. #endif
  94. if (size_b1) {
  95. memctl->memc_or1 = CFG_OR_TIMING_FLASH | (-size_b1 & 0xFFFF8000);
  96. memctl->memc_br1 = (CFG_FLASH_BASE | 0x00000801) + (size_b0 & BR_BA_MSK);
  97. /*((CFG_FLASH_BASE + size_b0) & BR_BA_MSK) |
  98. BR_MS_GPCM | BR_V;*/
  99. /* Re-do sizing to get full correct info */
  100. size_b1 = flash_get_size((volatile FLASH_WORD_SIZE *)(CFG_FLASH_BASE + size_b0),
  101. &flash_info[1]);
  102. flash_get_offsets (CFG_FLASH_BASE + size_b0, &flash_info[1]);
  103. #if CFG_MONITOR_BASE >= CFG_FLASH_BASE
  104. /* monitor protection ON by default */
  105. (void)flash_protect(FLAG_PROTECT_SET,
  106. CFG_MONITOR_BASE,
  107. CFG_MONITOR_BASE+CFG_MONITOR_LEN-1,
  108. &flash_info[1]);
  109. #endif
  110. } else {
  111. memctl->memc_br1 = 0; /* invalidate bank */
  112. flash_info[1].flash_id = FLASH_UNKNOWN;
  113. flash_info[1].sector_count = -1;
  114. }
  115. flash_info[0].size = size_b0;
  116. flash_info[1].size = size_b1;
  117. return (size_b0 + size_b1);
  118. }
  119. /*-----------------------------------------------------------------------
  120. */
  121. static void flash_get_offsets (ulong base, flash_info_t *info)
  122. {
  123. int i;
  124. /* set up sector start adress table */
  125. if (info->flash_id & FLASH_BTYPE) {
  126. if ((info->flash_id & FLASH_VENDMASK) == FLASH_MAN_INTEL) {
  127. #ifndef CONFIG_FLASH_16BIT
  128. /* set sector offsets for bottom boot block type */
  129. info->start[0] = base + 0x00000000;
  130. info->start[1] = base + 0x00004000;
  131. info->start[2] = base + 0x00008000;
  132. info->start[3] = base + 0x0000C000;
  133. info->start[4] = base + 0x00010000;
  134. info->start[5] = base + 0x00014000;
  135. info->start[6] = base + 0x00018000;
  136. info->start[7] = base + 0x0001C000;
  137. for (i = 8; i < info->sector_count; i++) {
  138. info->start[i] = base + (i * 0x00020000) - 0x000E0000;
  139. }
  140. }
  141. else {
  142. /* set sector offsets for bottom boot block type */
  143. info->start[0] = base + 0x00000000;
  144. info->start[1] = base + 0x00008000;
  145. info->start[2] = base + 0x0000C000;
  146. info->start[3] = base + 0x00010000;
  147. for (i = 4; i < info->sector_count; i++) {
  148. info->start[i] = base + (i * 0x00020000) - 0x00060000;
  149. }
  150. }
  151. #else
  152. /* set sector offsets for bottom boot block type */
  153. info->start[0] = base + 0x00000000;
  154. info->start[1] = base + 0x00002000;
  155. info->start[2] = base + 0x00004000;
  156. info->start[3] = base + 0x00006000;
  157. info->start[4] = base + 0x00008000;
  158. info->start[5] = base + 0x0000A000;
  159. info->start[6] = base + 0x0000C000;
  160. info->start[7] = base + 0x0000E000;
  161. for (i = 8; i < info->sector_count; i++) {
  162. info->start[i] = base + (i * 0x00010000) - 0x00070000;
  163. }
  164. }
  165. else {
  166. /* set sector offsets for bottom boot block type */
  167. info->start[0] = base + 0x00000000;
  168. info->start[1] = base + 0x00004000;
  169. info->start[2] = base + 0x00006000;
  170. info->start[3] = base + 0x00008000;
  171. for (i = 4; i < info->sector_count; i++) {
  172. info->start[i] = base + (i * 0x00010000) - 0x00030000;
  173. }
  174. }
  175. #endif
  176. } else {
  177. /* set sector offsets for top boot block type */
  178. i = info->sector_count - 1;
  179. if ((info->flash_id & FLASH_VENDMASK) == FLASH_MAN_INTEL) {
  180. #ifndef CONFIG_FLASH_16BIT
  181. info->start[i--] = base + info->size - 0x00004000;
  182. info->start[i--] = base + info->size - 0x00008000;
  183. info->start[i--] = base + info->size - 0x0000C000;
  184. info->start[i--] = base + info->size - 0x00010000;
  185. info->start[i--] = base + info->size - 0x00014000;
  186. info->start[i--] = base + info->size - 0x00018000;
  187. info->start[i--] = base + info->size - 0x0001C000;
  188. for (; i >= 0; i--) {
  189. info->start[i] = base + i * 0x00020000;
  190. }
  191. } else {
  192. info->start[i--] = base + info->size - 0x00008000;
  193. info->start[i--] = base + info->size - 0x0000C000;
  194. info->start[i--] = base + info->size - 0x00010000;
  195. for (; i >= 0; i--) {
  196. info->start[i] = base + i * 0x00020000;
  197. }
  198. }
  199. #else
  200. info->start[i--] = base + info->size - 0x00002000;
  201. info->start[i--] = base + info->size - 0x00004000;
  202. info->start[i--] = base + info->size - 0x00006000;
  203. info->start[i--] = base + info->size - 0x00008000;
  204. info->start[i--] = base + info->size - 0x0000A000;
  205. info->start[i--] = base + info->size - 0x0000C000;
  206. info->start[i--] = base + info->size - 0x0000E000;
  207. for (; i >= 0; i--) {
  208. info->start[i] = base + i * 0x00010000;
  209. }
  210. } else {
  211. info->start[i--] = base + info->size - 0x00004000;
  212. info->start[i--] = base + info->size - 0x00006000;
  213. info->start[i--] = base + info->size - 0x00008000;
  214. for (; i >= 0; i--) {
  215. info->start[i] = base + i * 0x00010000;
  216. }
  217. }
  218. #endif
  219. }
  220. }
  221. /*-----------------------------------------------------------------------
  222. */
  223. void flash_print_info (flash_info_t *info)
  224. {
  225. int i;
  226. uchar *boottype;
  227. uchar botboot[]=", bottom boot sect)\n";
  228. uchar topboot[]=", top boot sector)\n";
  229. if (info->flash_id == FLASH_UNKNOWN) {
  230. printf ("missing or unknown FLASH type\n");
  231. return;
  232. }
  233. switch (info->flash_id & FLASH_VENDMASK) {
  234. case FLASH_MAN_AMD: printf ("AMD "); break;
  235. case FLASH_MAN_FUJ: printf ("FUJITSU "); break;
  236. case FLASH_MAN_SST: printf ("SST "); break;
  237. case FLASH_MAN_STM: printf ("STM "); break;
  238. case FLASH_MAN_INTEL: printf ("INTEL "); break;
  239. default: printf ("Unknown Vendor "); break;
  240. }
  241. if (info->flash_id & 0x0001 ) {
  242. boottype = botboot;
  243. } else {
  244. boottype = topboot;
  245. }
  246. switch (info->flash_id & FLASH_TYPEMASK) {
  247. case FLASH_AM400B: printf ("AM29LV400B (4 Mbit%s",boottype);
  248. break;
  249. case FLASH_AM400T: printf ("AM29LV400T (4 Mbit%s",boottype);
  250. break;
  251. case FLASH_AM800B: printf ("AM29LV800B (8 Mbit%s",boottype);
  252. break;
  253. case FLASH_AM800T: printf ("AM29LV800T (8 Mbit%s",boottype);
  254. break;
  255. case FLASH_AM160B: printf ("AM29LV160B (16 Mbit%s",boottype);
  256. break;
  257. case FLASH_AM160T: printf ("AM29LV160T (16 Mbit%s",boottype);
  258. break;
  259. case FLASH_AM320B: printf ("AM29LV320B (32 Mbit%s",boottype);
  260. break;
  261. case FLASH_AM320T: printf ("AM29LV320T (32 Mbit%s",boottype);
  262. break;
  263. case FLASH_INTEL800B: printf ("INTEL28F800B (8 Mbit%s",boottype);
  264. break;
  265. case FLASH_INTEL800T: printf ("INTEL28F800T (8 Mbit%s",boottype);
  266. break;
  267. case FLASH_INTEL160B: printf ("INTEL28F160B (16 Mbit%s",boottype);
  268. break;
  269. case FLASH_INTEL160T: printf ("INTEL28F160T (16 Mbit%s",boottype);
  270. break;
  271. case FLASH_INTEL320B: printf ("INTEL28F320B (32 Mbit%s",boottype);
  272. break;
  273. case FLASH_INTEL320T: printf ("INTEL28F320T (32 Mbit%s",boottype);
  274. break;
  275. #if 0 /* enable when devices are available */
  276. case FLASH_INTEL640B: printf ("INTEL28F640B (64 Mbit%s",boottype);
  277. break;
  278. case FLASH_INTEL640T: printf ("INTEL28F640T (64 Mbit%s",boottype);
  279. break;
  280. #endif
  281. default: printf ("Unknown Chip Type\n");
  282. break;
  283. }
  284. printf (" Size: %ld MB in %d Sectors\n",
  285. info->size >> 20, info->sector_count);
  286. printf (" Sector Start Addresses:");
  287. for (i=0; i<info->sector_count; ++i) {
  288. if ((i % 5) == 0)
  289. printf ("\n ");
  290. printf (" %08lX%s",
  291. info->start[i],
  292. info->protect[i] ? " (RO)" : " "
  293. );
  294. }
  295. printf ("\n");
  296. return;
  297. }
  298. /*-----------------------------------------------------------------------
  299. */
  300. /*-----------------------------------------------------------------------
  301. */
  302. /*
  303. * The following code cannot be run from FLASH!
  304. */
  305. ulong flash_get_size (volatile FLASH_WORD_SIZE *addr, flash_info_t *info)
  306. {
  307. short i;
  308. ulong base = (ulong)addr;
  309. FLASH_WORD_SIZE value;
  310. /* Write auto select command: read Manufacturer ID */
  311. #ifndef CONFIG_FLASH_16BIT
  312. /*
  313. * Note: if it is an AMD flash and the word at addr[0000]
  314. * is 0x00890089 this routine will think it is an Intel
  315. * flash device and may(most likely) cause trouble.
  316. */
  317. addr[0x0000] = 0x00900090;
  318. if(addr[0x0000] != 0x00890089){
  319. addr[0x0555] = 0x00AA00AA;
  320. addr[0x02AA] = 0x00550055;
  321. addr[0x0555] = 0x00900090;
  322. #else
  323. /*
  324. * Note: if it is an AMD flash and the word at addr[0000]
  325. * is 0x0089 this routine will think it is an Intel
  326. * flash device and may(most likely) cause trouble.
  327. */
  328. addr[0x0000] = 0x0090;
  329. if(addr[0x0000] != 0x0089){
  330. addr[0x0555] = 0x00AA;
  331. addr[0x02AA] = 0x0055;
  332. addr[0x0555] = 0x0090;
  333. #endif
  334. }
  335. value = addr[0];
  336. switch (value) {
  337. case (AMD_MANUFACT & FLASH_ID_MASK):
  338. info->flash_id = FLASH_MAN_AMD;
  339. break;
  340. case (FUJ_MANUFACT & FLASH_ID_MASK):
  341. info->flash_id = FLASH_MAN_FUJ;
  342. break;
  343. case (STM_MANUFACT & FLASH_ID_MASK):
  344. info->flash_id = FLASH_MAN_STM;
  345. break;
  346. case (SST_MANUFACT & FLASH_ID_MASK):
  347. info->flash_id = FLASH_MAN_SST;
  348. break;
  349. case (INTEL_MANUFACT & FLASH_ID_MASK):
  350. info->flash_id = FLASH_MAN_INTEL;
  351. break;
  352. default:
  353. info->flash_id = FLASH_UNKNOWN;
  354. info->sector_count = 0;
  355. info->size = 0;
  356. return (0); /* no or unknown flash */
  357. }
  358. value = addr[1]; /* device ID */
  359. switch (value) {
  360. case (AMD_ID_LV400T & FLASH_ID_MASK):
  361. info->flash_id += FLASH_AM400T;
  362. info->sector_count = 11;
  363. info->size = 0x00100000;
  364. break; /* => 1 MB */
  365. case (AMD_ID_LV400B & FLASH_ID_MASK):
  366. info->flash_id += FLASH_AM400B;
  367. info->sector_count = 11;
  368. info->size = 0x00100000;
  369. break; /* => 1 MB */
  370. case (AMD_ID_LV800T & FLASH_ID_MASK):
  371. info->flash_id += FLASH_AM800T;
  372. info->sector_count = 19;
  373. info->size = 0x00200000;
  374. break; /* => 2 MB */
  375. case (AMD_ID_LV800B & FLASH_ID_MASK):
  376. info->flash_id += FLASH_AM800B;
  377. info->sector_count = 19;
  378. info->size = 0x00200000;
  379. break; /* => 2 MB */
  380. case (AMD_ID_LV160T & FLASH_ID_MASK):
  381. info->flash_id += FLASH_AM160T;
  382. info->sector_count = 35;
  383. info->size = 0x00400000;
  384. break; /* => 4 MB */
  385. case (AMD_ID_LV160B & FLASH_ID_MASK):
  386. info->flash_id += FLASH_AM160B;
  387. info->sector_count = 35;
  388. info->size = 0x00400000;
  389. break; /* => 4 MB */
  390. #if 0 /* enable when device IDs are available */
  391. case (AMD_ID_LV320T & FLASH_ID_MASK):
  392. info->flash_id += FLASH_AM320T;
  393. info->sector_count = 67;
  394. info->size = 0x00800000;
  395. break; /* => 8 MB */
  396. case (AMD_ID_LV320B & FLASH_ID_MASK):
  397. info->flash_id += FLASH_AM320B;
  398. info->sector_count = 67;
  399. info->size = 0x00800000;
  400. break; /* => 8 MB */
  401. #endif
  402. case (INTEL_ID_28F800B3T & FLASH_ID_MASK):
  403. info->flash_id += FLASH_INTEL800T;
  404. info->sector_count = 23;
  405. info->size = 0x00200000;
  406. break; /* => 2 MB */
  407. case (INTEL_ID_28F800B3B & FLASH_ID_MASK):
  408. info->flash_id += FLASH_INTEL800B;
  409. info->sector_count = 23;
  410. info->size = 0x00200000;
  411. break; /* => 2 MB */
  412. case (INTEL_ID_28F160B3T & FLASH_ID_MASK):
  413. info->flash_id += FLASH_INTEL160T;
  414. info->sector_count = 39;
  415. info->size = 0x00400000;
  416. break; /* => 4 MB */
  417. case (INTEL_ID_28F160B3B & FLASH_ID_MASK):
  418. info->flash_id += FLASH_INTEL160B;
  419. info->sector_count = 39;
  420. info->size = 0x00400000;
  421. break; /* => 4 MB */
  422. case (INTEL_ID_28F320B3T & FLASH_ID_MASK):
  423. info->flash_id += FLASH_INTEL320T;
  424. info->sector_count = 71;
  425. info->size = 0x00800000;
  426. break; /* => 8 MB */
  427. case (INTEL_ID_28F320B3B & FLASH_ID_MASK):
  428. info->flash_id += FLASH_AM320B;
  429. info->sector_count = 71;
  430. info->size = 0x00800000;
  431. break; /* => 8 MB */
  432. #if 0 /* enable when devices are available */
  433. case (INTEL_ID_28F320B3T & FLASH_ID_MASK):
  434. info->flash_id += FLASH_INTEL320T;
  435. info->sector_count = 135;
  436. info->size = 0x01000000;
  437. break; /* => 16 MB */
  438. case (INTEL_ID_28F320B3B & FLASH_ID_MASK):
  439. info->flash_id += FLASH_AM320B;
  440. info->sector_count = 135;
  441. info->size = 0x01000000;
  442. break; /* => 16 MB */
  443. #endif
  444. default:
  445. info->flash_id = FLASH_UNKNOWN;
  446. return (0); /* => no or unknown flash */
  447. }
  448. /* set up sector start adress table */
  449. if (info->flash_id & FLASH_BTYPE) {
  450. if ((info->flash_id & FLASH_VENDMASK) == FLASH_MAN_INTEL) {
  451. #ifndef CONFIG_FLASH_16BIT
  452. /* set sector offsets for bottom boot block type */
  453. info->start[0] = base + 0x00000000;
  454. info->start[1] = base + 0x00004000;
  455. info->start[2] = base + 0x00008000;
  456. info->start[3] = base + 0x0000C000;
  457. info->start[4] = base + 0x00010000;
  458. info->start[5] = base + 0x00014000;
  459. info->start[6] = base + 0x00018000;
  460. info->start[7] = base + 0x0001C000;
  461. for (i = 8; i < info->sector_count; i++) {
  462. info->start[i] = base + (i * 0x00020000) - 0x000E0000;
  463. }
  464. }
  465. else {
  466. /* set sector offsets for bottom boot block type */
  467. info->start[0] = base + 0x00000000;
  468. info->start[1] = base + 0x00008000;
  469. info->start[2] = base + 0x0000C000;
  470. info->start[3] = base + 0x00010000;
  471. for (i = 4; i < info->sector_count; i++) {
  472. info->start[i] = base + (i * 0x00020000) - 0x00060000;
  473. }
  474. }
  475. #else
  476. /* set sector offsets for bottom boot block type */
  477. info->start[0] = base + 0x00000000;
  478. info->start[1] = base + 0x00002000;
  479. info->start[2] = base + 0x00004000;
  480. info->start[3] = base + 0x00006000;
  481. info->start[4] = base + 0x00008000;
  482. info->start[5] = base + 0x0000A000;
  483. info->start[6] = base + 0x0000C000;
  484. info->start[7] = base + 0x0000E000;
  485. for (i = 8; i < info->sector_count; i++) {
  486. info->start[i] = base + (i * 0x00010000) - 0x00070000;
  487. }
  488. }
  489. else {
  490. /* set sector offsets for bottom boot block type */
  491. info->start[0] = base + 0x00000000;
  492. info->start[1] = base + 0x00004000;
  493. info->start[2] = base + 0x00006000;
  494. info->start[3] = base + 0x00008000;
  495. for (i = 4; i < info->sector_count; i++) {
  496. info->start[i] = base + (i * 0x00010000) - 0x00030000;
  497. }
  498. }
  499. #endif
  500. } else {
  501. /* set sector offsets for top boot block type */
  502. i = info->sector_count - 1;
  503. if ((info->flash_id & FLASH_VENDMASK) == FLASH_MAN_INTEL) {
  504. #ifndef CONFIG_FLASH_16BIT
  505. info->start[i--] = base + info->size - 0x00004000;
  506. info->start[i--] = base + info->size - 0x00008000;
  507. info->start[i--] = base + info->size - 0x0000C000;
  508. info->start[i--] = base + info->size - 0x00010000;
  509. info->start[i--] = base + info->size - 0x00014000;
  510. info->start[i--] = base + info->size - 0x00018000;
  511. info->start[i--] = base + info->size - 0x0001C000;
  512. for (; i >= 0; i--) {
  513. info->start[i] = base + i * 0x00020000;
  514. }
  515. } else {
  516. info->start[i--] = base + info->size - 0x00008000;
  517. info->start[i--] = base + info->size - 0x0000C000;
  518. info->start[i--] = base + info->size - 0x00010000;
  519. for (; i >= 0; i--) {
  520. info->start[i] = base + i * 0x00020000;
  521. }
  522. }
  523. #else
  524. info->start[i--] = base + info->size - 0x00002000;
  525. info->start[i--] = base + info->size - 0x00004000;
  526. info->start[i--] = base + info->size - 0x00006000;
  527. info->start[i--] = base + info->size - 0x00008000;
  528. info->start[i--] = base + info->size - 0x0000A000;
  529. info->start[i--] = base + info->size - 0x0000C000;
  530. info->start[i--] = base + info->size - 0x0000E000;
  531. for (; i >= 0; i--) {
  532. info->start[i] = base + i * 0x00010000;
  533. }
  534. } else {
  535. info->start[i--] = base + info->size - 0x00004000;
  536. info->start[i--] = base + info->size - 0x00006000;
  537. info->start[i--] = base + info->size - 0x00008000;
  538. for (; i >= 0; i--) {
  539. info->start[i] = base + i * 0x00010000;
  540. }
  541. }
  542. #endif
  543. }
  544. /* check for protected sectors */
  545. for (i = 0; i < info->sector_count; i++) {
  546. /* read sector protection at sector address, (A7 .. A0) = 0x02 */
  547. /* D0 = 1 if protected */
  548. addr = (volatile FLASH_WORD_SIZE *)(info->start[i]);
  549. info->protect[i] = addr[2] & 1;
  550. }
  551. /*
  552. * Prevent writes to uninitialized FLASH.
  553. */
  554. if (info->flash_id != FLASH_UNKNOWN) {
  555. addr = (volatile FLASH_WORD_SIZE *)info->start[0];
  556. if( (info->flash_id & 0xFF00) == FLASH_MAN_INTEL){
  557. *addr = (0x00F000F0 & FLASH_ID_MASK); /* reset bank */
  558. } else {
  559. *addr = (0x00FF00FF & FLASH_ID_MASK); /* reset bank */
  560. }
  561. }
  562. return (info->size);
  563. }
  564. /*-----------------------------------------------------------------------
  565. */
  566. int flash_erase (flash_info_t *info, int s_first, int s_last)
  567. {
  568. volatile FLASH_WORD_SIZE *addr=(volatile FLASH_WORD_SIZE*)(info->start[0]);
  569. int flag, prot, sect, l_sect, barf;
  570. ulong start, now, last;
  571. int rcode = 0;
  572. if ((s_first < 0) || (s_first > s_last)) {
  573. if (info->flash_id == FLASH_UNKNOWN) {
  574. printf ("- missing\n");
  575. } else {
  576. printf ("- no sectors to erase\n");
  577. }
  578. return 1;
  579. }
  580. if ((info->flash_id == FLASH_UNKNOWN) ||
  581. ((info->flash_id > FLASH_AMD_COMP) &&
  582. ( (info->flash_id & FLASH_VENDMASK) != FLASH_MAN_INTEL ) ) ){
  583. printf ("Can't erase unknown flash type - aborted\n");
  584. return 1;
  585. }
  586. prot = 0;
  587. for (sect=s_first; sect<=s_last; ++sect) {
  588. if (info->protect[sect]) {
  589. prot++;
  590. }
  591. }
  592. if (prot) {
  593. printf ("- Warning: %d protected sectors will not be erased!\n",
  594. prot);
  595. } else {
  596. printf ("\n");
  597. }
  598. l_sect = -1;
  599. /* Disable interrupts which might cause a timeout here */
  600. flag = disable_interrupts();
  601. if(info->flash_id < FLASH_AMD_COMP) {
  602. #ifndef CONFIG_FLASH_16BIT
  603. addr[0x0555] = 0x00AA00AA;
  604. addr[0x02AA] = 0x00550055;
  605. addr[0x0555] = 0x00800080;
  606. addr[0x0555] = 0x00AA00AA;
  607. addr[0x02AA] = 0x00550055;
  608. #else
  609. addr[0x0555] = 0x00AA;
  610. addr[0x02AA] = 0x0055;
  611. addr[0x0555] = 0x0080;
  612. addr[0x0555] = 0x00AA;
  613. addr[0x02AA] = 0x0055;
  614. #endif
  615. /* Start erase on unprotected sectors */
  616. for (sect = s_first; sect<=s_last; sect++) {
  617. if (info->protect[sect] == 0) { /* not protected */
  618. addr = (volatile FLASH_WORD_SIZE *)(info->start[sect]);
  619. addr[0] = (0x00300030 & FLASH_ID_MASK);
  620. l_sect = sect;
  621. }
  622. }
  623. /* re-enable interrupts if necessary */
  624. if (flag)
  625. enable_interrupts();
  626. /* wait at least 80us - let's wait 1 ms */
  627. udelay (1000);
  628. /*
  629. * We wait for the last triggered sector
  630. */
  631. if (l_sect < 0)
  632. goto DONE;
  633. start = get_timer (0);
  634. last = start;
  635. addr = (volatile FLASH_WORD_SIZE*)(info->start[l_sect]);
  636. while ((addr[0] & (0x00800080&FLASH_ID_MASK)) !=
  637. (0x00800080&FLASH_ID_MASK) )
  638. {
  639. if ((now = get_timer(start)) > CFG_FLASH_ERASE_TOUT) {
  640. printf ("Timeout\n");
  641. return 1;
  642. }
  643. /* show that we're waiting */
  644. if ((now - last) > 1000) { /* every second */
  645. serial_putc ('.');
  646. last = now;
  647. }
  648. }
  649. DONE:
  650. /* reset to read mode */
  651. addr = (volatile FLASH_WORD_SIZE *)info->start[0];
  652. addr[0] = (0x00F000F0 & FLASH_ID_MASK); /* reset bank */
  653. } else {
  654. for (sect = s_first; sect<=s_last; sect++) {
  655. if (info->protect[sect] == 0) { /* not protected */
  656. barf = 0;
  657. #ifndef CONFIG_FLASH_16BIT
  658. addr = (vu_long*)(info->start[sect]);
  659. addr[0] = 0x00200020;
  660. addr[0] = 0x00D000D0;
  661. while(!(addr[0] & 0x00800080)); /* wait for error or finish */
  662. if( addr[0] & 0x003A003A) { /* check for error */
  663. barf = addr[0] & 0x003A0000;
  664. if( barf ) {
  665. barf >>=16;
  666. } else {
  667. barf = addr[0] & 0x0000003A;
  668. }
  669. }
  670. #else
  671. addr = (vu_short*)(info->start[sect]);
  672. addr[0] = 0x0020;
  673. addr[0] = 0x00D0;
  674. while(!(addr[0] & 0x0080)); /* wait for error or finish */
  675. if( addr[0] & 0x003A) /* check for error */
  676. barf = addr[0] & 0x003A;
  677. #endif
  678. if(barf) {
  679. printf("\nFlash error in sector at %lx\n",(unsigned long)addr);
  680. if(barf & 0x0002) printf("Block locked, not erased.\n");
  681. if((barf & 0x0030) == 0x0030)
  682. printf("Command Sequence error.\n");
  683. if((barf & 0x0030) == 0x0020)
  684. printf("Block Erase error.\n");
  685. if(barf & 0x0008) printf("Vpp Low error.\n");
  686. rcode = 1;
  687. } else printf(".");
  688. l_sect = sect;
  689. }
  690. addr = (volatile FLASH_WORD_SIZE *)info->start[0];
  691. addr[0] = (0x00FF00FF & FLASH_ID_MASK); /* reset bank */
  692. }
  693. }
  694. printf (" done\n");
  695. return rcode;
  696. }
  697. /*-----------------------------------------------------------------------
  698. */
  699. /*-----------------------------------------------------------------------
  700. * Copy memory to flash, returns:
  701. * 0 - OK
  702. * 1 - write timeout
  703. * 2 - Flash not erased
  704. */
  705. int write_buff (flash_info_t *info, uchar *src, ulong addr, ulong cnt)
  706. {
  707. #ifndef CONFIG_FLASH_16BIT
  708. ulong cp, wp, data;
  709. int l;
  710. #else
  711. ulong cp, wp;
  712. ushort data;
  713. #endif
  714. int i, rc;
  715. #ifndef CONFIG_FLASH_16BIT
  716. wp = (addr & ~3); /* get lower word aligned address */
  717. /*
  718. * handle unaligned start bytes
  719. */
  720. if ((l = addr - wp) != 0) {
  721. data = 0;
  722. for (i=0, cp=wp; i<l; ++i, ++cp) {
  723. data = (data << 8) | (*(uchar *)cp);
  724. }
  725. for (; i<4 && cnt>0; ++i) {
  726. data = (data << 8) | *src++;
  727. --cnt;
  728. ++cp;
  729. }
  730. for (; cnt==0 && i<4; ++i, ++cp) {
  731. data = (data << 8) | (*(uchar *)cp);
  732. }
  733. if ((rc = write_word(info, wp, data)) != 0) {
  734. return (rc);
  735. }
  736. wp += 4;
  737. }
  738. /*
  739. * handle word aligned part
  740. */
  741. while (cnt >= 4) {
  742. data = 0;
  743. for (i=0; i<4; ++i) {
  744. data = (data << 8) | *src++;
  745. }
  746. if ((rc = write_word(info, wp, data)) != 0) {
  747. return (rc);
  748. }
  749. wp += 4;
  750. cnt -= 4;
  751. }
  752. if (cnt == 0) {
  753. return (0);
  754. }
  755. /*
  756. * handle unaligned tail bytes
  757. */
  758. data = 0;
  759. for (i=0, cp=wp; i<4 && cnt>0; ++i, ++cp) {
  760. data = (data << 8) | *src++;
  761. --cnt;
  762. }
  763. for (; i<4; ++i, ++cp) {
  764. data = (data << 8) | (*(uchar *)cp);
  765. }
  766. return (write_word(info, wp, data));
  767. #else
  768. wp = (addr & ~1); /* get lower word aligned address */
  769. /*
  770. * handle unaligned start byte
  771. */
  772. if (addr - wp) {
  773. data = 0;
  774. data = (data << 8) | *src++;
  775. --cnt;
  776. if ((rc = write_short(info, wp, data)) != 0) {
  777. return (rc);
  778. }
  779. wp += 2;
  780. }
  781. /*
  782. * handle word aligned part
  783. */
  784. /* l = 0; used for debuging */
  785. while (cnt >= 2) {
  786. data = 0;
  787. for (i=0; i<2; ++i) {
  788. data = (data << 8) | *src++;
  789. }
  790. /* if(!l){
  791. printf("%x",data);
  792. l = 1;
  793. } used for debuging */
  794. if ((rc = write_short(info, wp, data)) != 0) {
  795. return (rc);
  796. }
  797. wp += 2;
  798. cnt -= 2;
  799. }
  800. if (cnt == 0) {
  801. return (0);
  802. }
  803. /*
  804. * handle unaligned tail bytes
  805. */
  806. data = 0;
  807. for (i=0, cp=wp; i<2 && cnt>0; ++i, ++cp) {
  808. data = (data << 8) | *src++;
  809. --cnt;
  810. }
  811. for (; i<2; ++i, ++cp) {
  812. data = (data << 8) | (*(uchar *)cp);
  813. }
  814. return (write_short(info, wp, data));
  815. #endif
  816. }
  817. /*-----------------------------------------------------------------------
  818. * Write a word to Flash, returns:
  819. * 0 - OK
  820. * 1 - write timeout
  821. * 2 - Flash not erased
  822. */
  823. #ifndef CONFIG_FLASH_16BIT
  824. static int write_word (flash_info_t *info, ulong dest, ulong data)
  825. {
  826. vu_long *addr = (vu_long*)(info->start[0]);
  827. ulong start,barf;
  828. int flag;
  829. /* Check if Flash is (sufficiently) erased */
  830. if ((*((vu_long *)dest) & data) != data) {
  831. return (2);
  832. }
  833. /* Disable interrupts which might cause a timeout here */
  834. flag = disable_interrupts();
  835. if(info->flash_id > FLASH_AMD_COMP) {
  836. /* AMD stuff */
  837. addr[0x0555] = 0x00AA00AA;
  838. addr[0x02AA] = 0x00550055;
  839. addr[0x0555] = 0x00A000A0;
  840. } else {
  841. /* intel stuff */
  842. *addr = 0x00400040;
  843. }
  844. *((vu_long *)dest) = data;
  845. /* re-enable interrupts if necessary */
  846. if (flag)
  847. enable_interrupts();
  848. /* data polling for D7 */
  849. start = get_timer (0);
  850. if(info->flash_id > FLASH_AMD_COMP) {
  851. while ((*((vu_long *)dest) & 0x00800080) != (data & 0x00800080)) {
  852. if (get_timer(start) > CFG_FLASH_WRITE_TOUT) {
  853. return (1);
  854. }
  855. }
  856. } else {
  857. while(!(addr[0] & 0x00800080)){ /* wait for error or finish */
  858. if (get_timer(start) > CFG_FLASH_WRITE_TOUT) {
  859. return (1);
  860. }
  861. if( addr[0] & 0x003A003A) { /* check for error */
  862. barf = addr[0] & 0x003A0000;
  863. if( barf ) {
  864. barf >>=16;
  865. } else {
  866. barf = addr[0] & 0x0000003A;
  867. }
  868. printf("\nFlash write error at address %lx\n",(unsigned long)dest);
  869. if(barf & 0x0002) printf("Block locked, not erased.\n");
  870. if(barf & 0x0010) printf("Programming error.\n");
  871. if(barf & 0x0008) printf("Vpp Low error.\n");
  872. return(2);
  873. }
  874. }
  875. return (0);
  876. }
  877. #else
  878. static int write_short (flash_info_t *info, ulong dest, ushort data)
  879. {
  880. vu_short *addr = (vu_short*)(info->start[0]);
  881. ulong start,barf;
  882. int flag;
  883. /* Check if Flash is (sufficiently) erased */
  884. if ((*((vu_short *)dest) & data) != data) {
  885. return (2);
  886. }
  887. /* Disable interrupts which might cause a timeout here */
  888. flag = disable_interrupts();
  889. if(info->flash_id < FLASH_AMD_COMP) {
  890. /* AMD stuff */
  891. addr[0x0555] = 0x00AA;
  892. addr[0x02AA] = 0x0055;
  893. addr[0x0555] = 0x00A0;
  894. } else {
  895. /* intel stuff */
  896. *addr = 0x00D0;
  897. *addr = 0x0040;
  898. }
  899. *((vu_short *)dest) = data;
  900. /* re-enable interrupts if necessary */
  901. if (flag)
  902. enable_interrupts();
  903. /* data polling for D7 */
  904. start = get_timer (0);
  905. if(info->flash_id < FLASH_AMD_COMP) {
  906. /* AMD stuff */
  907. while ((*((vu_short *)dest) & 0x0080) != (data & 0x0080)) {
  908. if (get_timer(start) > CFG_FLASH_WRITE_TOUT) {
  909. return (1);
  910. }
  911. }
  912. } else {
  913. /* intel stuff */
  914. while(!(addr[0] & 0x0080)){ /* wait for error or finish */
  915. if (get_timer(start) > CFG_FLASH_WRITE_TOUT) return (1);
  916. }
  917. if( addr[0] & 0x003A) { /* check for error */
  918. barf = addr[0] & 0x003A;
  919. printf("\nFlash write error at address %lx\n",(unsigned long)dest);
  920. if(barf & 0x0002) printf("Block locked, not erased.\n");
  921. if(barf & 0x0010) printf("Programming error.\n");
  922. if(barf & 0x0008) printf("Vpp Low error.\n");
  923. return(2);
  924. }
  925. *addr = 0x00B0;
  926. *addr = 0x0070;
  927. while(!(addr[0] & 0x0080)){ /* wait for error or finish */
  928. if (get_timer(start) > CFG_FLASH_WRITE_TOUT) return (1);
  929. }
  930. *addr = 0x00FF;
  931. }
  932. return (0);
  933. }
  934. #endif
  935. /*-----------------------------------------------------------------------
  936. */