flash.c 16 KB

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  1. /*
  2. * (C) Copyright 2006
  3. * Stefan Roese, DENX Software Engineering, sr@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 <asm/processor.h>
  25. #ifndef CFG_FLASH_READ0
  26. #define CFG_FLASH_READ0 0x0000 /* 0 is standard */
  27. #define CFG_FLASH_READ1 0x0001 /* 1 is standard */
  28. #define CFG_FLASH_READ2 0x0002 /* 2 is standard */
  29. #endif
  30. flash_info_t flash_info[CFG_MAX_FLASH_BANKS]; /* info for FLASH chips */
  31. /*
  32. * Functions
  33. */
  34. static int write_word(flash_info_t *info, ulong dest, ulong data);
  35. static ulong flash_get_size(vu_long *addr, flash_info_t *info);
  36. unsigned long flash_init(void)
  37. {
  38. unsigned long size_b0, size_b1;
  39. int i;
  40. unsigned long base_b0, base_b1;
  41. /* Init: no FLASHes known */
  42. for (i = 0; i < CFG_MAX_FLASH_BANKS; ++i) {
  43. flash_info[i].flash_id = FLASH_UNKNOWN;
  44. }
  45. /* Static FLASH Bank configuration here - FIXME XXX */
  46. base_b0 = FLASH_BASE0_PRELIM;
  47. size_b0 = flash_get_size ((vu_long *) base_b0, &flash_info[0]);
  48. if (flash_info[0].flash_id == FLASH_UNKNOWN) {
  49. printf ("## Unknown FLASH on Bank 0 - Size = 0x%08lx = %ld MB\n",
  50. size_b0, size_b0 << 20);
  51. }
  52. base_b1 = FLASH_BASE1_PRELIM;
  53. size_b1 = flash_get_size ((vu_long *) base_b1, &flash_info[1]);
  54. return (size_b0 + size_b1);
  55. }
  56. void flash_print_info(flash_info_t *info)
  57. {
  58. int i;
  59. int k;
  60. int size;
  61. int erased;
  62. volatile unsigned long *flash;
  63. if (info->flash_id == FLASH_UNKNOWN) {
  64. printf ("missing or unknown FLASH type\n");
  65. return;
  66. }
  67. switch (info->flash_id & FLASH_VENDMASK) {
  68. case FLASH_MAN_AMD: printf ("AMD "); break;
  69. case FLASH_MAN_FUJ: printf ("FUJITSU "); break;
  70. case FLASH_MAN_SST: printf ("SST "); break;
  71. case FLASH_MAN_EXCEL: printf ("Excel Semiconductor "); break;
  72. case FLASH_MAN_MX: printf ("MXIC "); break;
  73. default: printf ("Unknown Vendor "); break;
  74. }
  75. switch (info->flash_id & FLASH_TYPEMASK) {
  76. case FLASH_AM400B: printf ("AM29LV400B (4 Mbit, bottom boot sect)\n");
  77. break;
  78. case FLASH_AM400T: printf ("AM29LV400T (4 Mbit, top boot sector)\n");
  79. break;
  80. case FLASH_AM040: printf ("AM29LV040B (4 Mbit, uniform sector size)\n");
  81. break;
  82. case FLASH_AM800B: printf ("AM29LV800B (8 Mbit, bottom boot sect)\n");
  83. break;
  84. case FLASH_AM800T: printf ("AM29LV800T (8 Mbit, top boot sector)\n");
  85. break;
  86. case FLASH_AM160B: printf ("AM29LV160B (16 Mbit, bottom boot sect)\n");
  87. break;
  88. case FLASH_AM160T: printf ("AM29LV160T (16 Mbit, top boot sector)\n");
  89. break;
  90. case FLASH_AM320T: printf ("AM29LV320T (32 M, top sector)\n");
  91. break;
  92. case FLASH_AM320B: printf ("AM29LV320B (32 M, bottom sector)\n");
  93. break;
  94. case FLASH_AMDL322T: printf ("AM29DL322T (32 M, top sector)\n");
  95. break;
  96. case FLASH_AMDL322B: printf ("AM29DL322B (32 M, bottom sector)\n");
  97. break;
  98. case FLASH_AMDL323T: printf ("AM29DL323T (32 M, top sector)\n");
  99. break;
  100. case FLASH_AMDL323B: printf ("AM29DL323B (32 M, bottom sector)\n");
  101. break;
  102. case FLASH_SST020: printf ("SST39LF/VF020 (2 Mbit, uniform sector size)\n");
  103. break;
  104. case FLASH_SST040: printf ("SST39LF/VF040 (4 Mbit, uniform sector size)\n");
  105. break;
  106. default: printf ("Unknown Chip Type\n");
  107. break;
  108. }
  109. printf (" Size: %ld MB in %d Sectors\n",
  110. info->size >> 20, info->sector_count);
  111. printf (" Sector Start Addresses:");
  112. for (i=0; i<info->sector_count; ++i) {
  113. #ifdef CFG_FLASH_EMPTY_INFO
  114. /*
  115. * Check if whole sector is erased
  116. */
  117. if (i != (info->sector_count-1))
  118. size = info->start[i+1] - info->start[i];
  119. else
  120. size = info->start[0] + info->size - info->start[i];
  121. erased = 1;
  122. flash = (volatile unsigned long *)info->start[i];
  123. size = size >> 2; /* divide by 4 for longword access */
  124. for (k=0; k<size; k++) {
  125. if (*flash++ != 0xffffffff) {
  126. erased = 0;
  127. break;
  128. }
  129. }
  130. if ((i % 5) == 0)
  131. printf ("\n ");
  132. /* print empty and read-only info */
  133. printf (" %08lX%s%s",
  134. info->start[i],
  135. erased ? " E" : " ",
  136. info->protect[i] ? "RO " : " ");
  137. #else
  138. if ((i % 5) == 0)
  139. printf ("\n ");
  140. printf (" %08lX%s",
  141. info->start[i],
  142. info->protect[i] ? " (RO)" : " ");
  143. #endif
  144. }
  145. printf ("\n");
  146. return;
  147. }
  148. /*
  149. * The following code cannot be run from FLASH!
  150. */
  151. static ulong flash_get_size(vu_long *addr, flash_info_t *info)
  152. {
  153. short i;
  154. short n;
  155. volatile CFG_FLASH_WORD_SIZE value;
  156. ulong base = (ulong)addr;
  157. volatile CFG_FLASH_WORD_SIZE *addr2 = (volatile CFG_FLASH_WORD_SIZE *)addr;
  158. /* Write auto select command: read Manufacturer ID */
  159. addr2[CFG_FLASH_ADDR0] = (CFG_FLASH_WORD_SIZE)0x00AA00AA;
  160. addr2[CFG_FLASH_ADDR1] = (CFG_FLASH_WORD_SIZE)0x00550055;
  161. addr2[CFG_FLASH_ADDR0] = (CFG_FLASH_WORD_SIZE)0x00900090;
  162. value = addr2[CFG_FLASH_READ0];
  163. switch (value) {
  164. case (CFG_FLASH_WORD_SIZE)AMD_MANUFACT:
  165. info->flash_id = FLASH_MAN_AMD;
  166. break;
  167. case (CFG_FLASH_WORD_SIZE)FUJ_MANUFACT:
  168. info->flash_id = FLASH_MAN_FUJ;
  169. break;
  170. case (CFG_FLASH_WORD_SIZE)SST_MANUFACT:
  171. info->flash_id = FLASH_MAN_SST;
  172. break;
  173. case (CFG_FLASH_WORD_SIZE)EXCEL_MANUFACT:
  174. info->flash_id = FLASH_MAN_EXCEL;
  175. break;
  176. case (CFG_FLASH_WORD_SIZE)MX_MANUFACT:
  177. info->flash_id = FLASH_MAN_MX;
  178. break;
  179. default:
  180. info->flash_id = FLASH_UNKNOWN;
  181. info->sector_count = 0;
  182. info->size = 0;
  183. return (0); /* no or unknown flash */
  184. }
  185. value = addr2[CFG_FLASH_READ1]; /* device ID */
  186. switch (value) {
  187. case (CFG_FLASH_WORD_SIZE)AMD_ID_LV400T:
  188. info->flash_id += FLASH_AM400T;
  189. info->sector_count = 11;
  190. info->size = 0x00080000;
  191. break; /* => 0.5 MB */
  192. case (CFG_FLASH_WORD_SIZE)AMD_ID_LV400B:
  193. info->flash_id += FLASH_AM400B;
  194. info->sector_count = 11;
  195. info->size = 0x00080000;
  196. break; /* => 0.5 MB */
  197. case (CFG_FLASH_WORD_SIZE)AMD_ID_LV040B:
  198. info->flash_id += FLASH_AM040;
  199. info->sector_count = 8;
  200. info->size = 0x0080000; /* => 0.5 MB */
  201. break;
  202. case (CFG_FLASH_WORD_SIZE)AMD_ID_LV800T:
  203. info->flash_id += FLASH_AM800T;
  204. info->sector_count = 19;
  205. info->size = 0x00100000;
  206. break; /* => 1 MB */
  207. case (CFG_FLASH_WORD_SIZE)AMD_ID_LV800B:
  208. info->flash_id += FLASH_AM800B;
  209. info->sector_count = 19;
  210. info->size = 0x00100000;
  211. break; /* => 1 MB */
  212. case (CFG_FLASH_WORD_SIZE)AMD_ID_LV160T:
  213. info->flash_id += FLASH_AM160T;
  214. info->sector_count = 35;
  215. info->size = 0x00200000;
  216. break; /* => 2 MB */
  217. case (CFG_FLASH_WORD_SIZE)AMD_ID_LV160B:
  218. info->flash_id += FLASH_AM160B;
  219. info->sector_count = 35;
  220. info->size = 0x00200000;
  221. break; /* => 2 MB */
  222. case (CFG_FLASH_WORD_SIZE)AMD_ID_LV320T:
  223. info->flash_id += FLASH_AM320T;
  224. info->sector_count = 71;
  225. info->size = 0x00400000;
  226. break; /* => 4 MB */
  227. case (CFG_FLASH_WORD_SIZE)AMD_ID_LV320B:
  228. info->flash_id += FLASH_AM320B;
  229. info->sector_count = 71;
  230. info->size = 0x00400000;
  231. break; /* => 4 MB */
  232. case (CFG_FLASH_WORD_SIZE)AMD_ID_DL322T:
  233. info->flash_id += FLASH_AMDL322T;
  234. info->sector_count = 71;
  235. info->size = 0x00400000;
  236. break; /* => 4 MB */
  237. case (CFG_FLASH_WORD_SIZE)AMD_ID_DL322B:
  238. info->flash_id += FLASH_AMDL322B;
  239. info->sector_count = 71;
  240. info->size = 0x00400000;
  241. break; /* => 4 MB */
  242. case (CFG_FLASH_WORD_SIZE)AMD_ID_DL323T:
  243. info->flash_id += FLASH_AMDL323T;
  244. info->sector_count = 71;
  245. info->size = 0x00400000;
  246. break; /* => 4 MB */
  247. case (CFG_FLASH_WORD_SIZE)AMD_ID_DL323B:
  248. info->flash_id += FLASH_AMDL323B;
  249. info->sector_count = 71;
  250. info->size = 0x00400000;
  251. break; /* => 4 MB */
  252. case (CFG_FLASH_WORD_SIZE)SST_ID_xF020:
  253. info->flash_id += FLASH_SST020;
  254. info->sector_count = 64;
  255. info->size = 0x00040000;
  256. break; /* => 256 kB */
  257. case (CFG_FLASH_WORD_SIZE)SST_ID_xF040:
  258. info->flash_id += FLASH_SST040;
  259. info->sector_count = 128;
  260. info->size = 0x00080000;
  261. break; /* => 512 kB */
  262. default:
  263. info->flash_id = FLASH_UNKNOWN;
  264. return (0); /* => no or unknown flash */
  265. }
  266. /* set up sector start address table */
  267. if (((info->flash_id & FLASH_VENDMASK) == FLASH_MAN_SST) ||
  268. ((info->flash_id & FLASH_TYPEMASK) == FLASH_AM640U)) {
  269. for (i = 0; i < info->sector_count; i++)
  270. info->start[i] = base + (i * 0x00001000);
  271. } else if ((info->flash_id & FLASH_TYPEMASK) == FLASH_AM040) {
  272. for (i = 0; i < info->sector_count; i++)
  273. info->start[i] = base + (i * 0x00010000);
  274. } else if (((info->flash_id & FLASH_TYPEMASK) == FLASH_AMDL322B) ||
  275. ((info->flash_id & FLASH_TYPEMASK) == FLASH_AMDL323B) ||
  276. ((info->flash_id & FLASH_TYPEMASK) == FLASH_AM320B) ||
  277. ((info->flash_id & FLASH_TYPEMASK) == FLASH_AMDL324B)) {
  278. /* set sector offsets for bottom boot block type */
  279. for (i=0; i<8; ++i) { /* 8 x 8k boot sectors */
  280. info->start[i] = base;
  281. base += 8 << 10;
  282. }
  283. while (i < info->sector_count) { /* 64k regular sectors */
  284. info->start[i] = base;
  285. base += 64 << 10;
  286. ++i;
  287. }
  288. } else if (((info->flash_id & FLASH_TYPEMASK) == FLASH_AMDL322T) ||
  289. ((info->flash_id & FLASH_TYPEMASK) == FLASH_AMDL323T) ||
  290. ((info->flash_id & FLASH_TYPEMASK) == FLASH_AM320T) ||
  291. ((info->flash_id & FLASH_TYPEMASK) == FLASH_AMDL324T)) {
  292. /* set sector offsets for top boot block type */
  293. base += info->size;
  294. i = info->sector_count;
  295. for (n=0; n<8; ++n) { /* 8 x 8k boot sectors */
  296. base -= 8 << 10;
  297. --i;
  298. info->start[i] = base;
  299. }
  300. while (i > 0) { /* 64k regular sectors */
  301. base -= 64 << 10;
  302. --i;
  303. info->start[i] = base;
  304. }
  305. } else {
  306. if (info->flash_id & FLASH_BTYPE) {
  307. /* set sector offsets for bottom boot block type */
  308. info->start[0] = base + 0x00000000;
  309. info->start[1] = base + 0x00004000;
  310. info->start[2] = base + 0x00006000;
  311. info->start[3] = base + 0x00008000;
  312. for (i = 4; i < info->sector_count; i++) {
  313. info->start[i] = base + (i * 0x00010000) - 0x00030000;
  314. }
  315. } else {
  316. /* set sector offsets for top boot block type */
  317. i = info->sector_count - 1;
  318. info->start[i--] = base + info->size - 0x00004000;
  319. info->start[i--] = base + info->size - 0x00006000;
  320. info->start[i--] = base + info->size - 0x00008000;
  321. for (; i >= 0; i--) {
  322. info->start[i] = base + i * 0x00010000;
  323. }
  324. }
  325. }
  326. /* check for protected sectors */
  327. for (i = 0; i < info->sector_count; i++) {
  328. /* read sector protection at sector address, (A7 .. A0) = 0x02 */
  329. /* D0 = 1 if protected */
  330. addr2 = (volatile CFG_FLASH_WORD_SIZE *)(info->start[i]);
  331. if ((info->flash_id & FLASH_VENDMASK) != FLASH_MAN_AMD)
  332. info->protect[i] = 0;
  333. else
  334. info->protect[i] = addr2[CFG_FLASH_READ2] & 1;
  335. }
  336. /*
  337. * Prevent writes to uninitialized FLASH.
  338. */
  339. if (info->flash_id != FLASH_UNKNOWN) {
  340. addr2 = (CFG_FLASH_WORD_SIZE *)info->start[0];
  341. *addr2 = (CFG_FLASH_WORD_SIZE)0x00F000F0; /* reset bank */
  342. }
  343. return (info->size);
  344. }
  345. int flash_erase(flash_info_t *info, int s_first, int s_last)
  346. {
  347. volatile CFG_FLASH_WORD_SIZE *addr = (CFG_FLASH_WORD_SIZE *)(info->start[0]);
  348. volatile CFG_FLASH_WORD_SIZE *addr2;
  349. int flag, prot, sect, l_sect;
  350. ulong start, now, last;
  351. if ((s_first < 0) || (s_first > s_last)) {
  352. if (info->flash_id == FLASH_UNKNOWN)
  353. printf ("- missing\n");
  354. else
  355. printf ("- no sectors to erase\n");
  356. return 1;
  357. }
  358. if (info->flash_id == FLASH_UNKNOWN) {
  359. printf ("Can't erase unknown flash type - aborted\n");
  360. return 1;
  361. }
  362. prot = 0;
  363. for (sect=s_first; sect<=s_last; ++sect)
  364. if (info->protect[sect])
  365. prot++;
  366. if (prot)
  367. printf ("- Warning: %d protected sectors will not be erased!\n", prot);
  368. else
  369. printf ("\n");
  370. l_sect = -1;
  371. /* Disable interrupts which might cause a timeout here */
  372. flag = disable_interrupts();
  373. /* Start erase on unprotected sectors */
  374. for (sect = s_first; sect<=s_last; sect++) {
  375. if (info->protect[sect] == 0) { /* not protected */
  376. addr2 = (CFG_FLASH_WORD_SIZE *)(info->start[sect]);
  377. if ((info->flash_id & FLASH_VENDMASK) == FLASH_MAN_SST) {
  378. addr[CFG_FLASH_ADDR0] = (CFG_FLASH_WORD_SIZE)0x00AA00AA;
  379. addr[CFG_FLASH_ADDR1] = (CFG_FLASH_WORD_SIZE)0x00550055;
  380. addr[CFG_FLASH_ADDR0] = (CFG_FLASH_WORD_SIZE)0x00800080;
  381. addr[CFG_FLASH_ADDR0] = (CFG_FLASH_WORD_SIZE)0x00AA00AA;
  382. addr[CFG_FLASH_ADDR1] = (CFG_FLASH_WORD_SIZE)0x00550055;
  383. addr2[0] = (CFG_FLASH_WORD_SIZE)0x00300030; /* sector erase */
  384. /* re-enable interrupts if necessary */
  385. if (flag) {
  386. enable_interrupts();
  387. flag = 0;
  388. }
  389. /* data polling for D7 */
  390. start = get_timer (0);
  391. while ((addr2[0] & (CFG_FLASH_WORD_SIZE)0x00800080) !=
  392. (CFG_FLASH_WORD_SIZE)0x00800080) {
  393. if (get_timer(start) > CFG_FLASH_WRITE_TOUT)
  394. return (1);
  395. }
  396. } else {
  397. if (sect == s_first) {
  398. addr[CFG_FLASH_ADDR0] = (CFG_FLASH_WORD_SIZE)0x00AA00AA;
  399. addr[CFG_FLASH_ADDR1] = (CFG_FLASH_WORD_SIZE)0x00550055;
  400. addr[CFG_FLASH_ADDR0] = (CFG_FLASH_WORD_SIZE)0x00800080;
  401. addr[CFG_FLASH_ADDR0] = (CFG_FLASH_WORD_SIZE)0x00AA00AA;
  402. addr[CFG_FLASH_ADDR1] = (CFG_FLASH_WORD_SIZE)0x00550055;
  403. }
  404. addr2[0] = (CFG_FLASH_WORD_SIZE)0x00300030; /* sector erase */
  405. }
  406. l_sect = sect;
  407. }
  408. }
  409. /* re-enable interrupts if necessary */
  410. if (flag)
  411. enable_interrupts();
  412. /* wait at least 80us - let's wait 1 ms */
  413. udelay (1000);
  414. /*
  415. * We wait for the last triggered sector
  416. */
  417. if (l_sect < 0)
  418. goto DONE;
  419. start = get_timer (0);
  420. last = start;
  421. addr = (CFG_FLASH_WORD_SIZE *)(info->start[l_sect]);
  422. while ((addr[0] & (CFG_FLASH_WORD_SIZE)0x00800080) != (CFG_FLASH_WORD_SIZE)0x00800080) {
  423. if ((now = get_timer(start)) > CFG_FLASH_ERASE_TOUT) {
  424. printf ("Timeout\n");
  425. return 1;
  426. }
  427. /* show that we're waiting */
  428. if ((now - last) > 1000) { /* every second */
  429. putc ('.');
  430. last = now;
  431. }
  432. }
  433. DONE:
  434. /* reset to read mode */
  435. addr = (CFG_FLASH_WORD_SIZE *)info->start[0];
  436. addr[0] = (CFG_FLASH_WORD_SIZE)0x00F000F0; /* reset bank */
  437. printf (" done\n");
  438. return 0;
  439. }
  440. /*
  441. * Copy memory to flash, returns:
  442. * 0 - OK
  443. * 1 - write timeout
  444. * 2 - Flash not erased
  445. */
  446. int write_buff(flash_info_t *info, uchar *src, ulong addr, ulong cnt)
  447. {
  448. ulong cp, wp, data;
  449. int i, l, rc;
  450. wp = (addr & ~3); /* get lower word aligned address */
  451. /*
  452. * handle unaligned start bytes
  453. */
  454. if ((l = addr - wp) != 0) {
  455. data = 0;
  456. for (i=0, cp=wp; i<l; ++i, ++cp) {
  457. data = (data << 8) | (*(uchar *)cp);
  458. }
  459. for (; i<4 && cnt>0; ++i) {
  460. data = (data << 8) | *src++;
  461. --cnt;
  462. ++cp;
  463. }
  464. for (; cnt==0 && i<4; ++i, ++cp) {
  465. data = (data << 8) | (*(uchar *)cp);
  466. }
  467. if ((rc = write_word(info, wp, data)) != 0) {
  468. return (rc);
  469. }
  470. wp += 4;
  471. }
  472. /*
  473. * handle word aligned part
  474. */
  475. while (cnt >= 4) {
  476. data = 0;
  477. for (i=0; i<4; ++i)
  478. data = (data << 8) | *src++;
  479. if ((rc = write_word(info, wp, data)) != 0)
  480. return (rc);
  481. wp += 4;
  482. cnt -= 4;
  483. }
  484. if (cnt == 0)
  485. return (0);
  486. /*
  487. * handle unaligned tail bytes
  488. */
  489. data = 0;
  490. for (i=0, cp=wp; i<4 && cnt>0; ++i, ++cp) {
  491. data = (data << 8) | *src++;
  492. --cnt;
  493. }
  494. for (; i<4; ++i, ++cp)
  495. data = (data << 8) | (*(uchar *)cp);
  496. return (write_word(info, wp, data));
  497. }
  498. /*
  499. * Write a word to Flash, returns:
  500. * 0 - OK
  501. * 1 - write timeout
  502. * 2 - Flash not erased
  503. */
  504. static int write_word(flash_info_t *info, ulong dest, ulong data)
  505. {
  506. volatile CFG_FLASH_WORD_SIZE *addr2 = (CFG_FLASH_WORD_SIZE *)(info->start[0]);
  507. volatile CFG_FLASH_WORD_SIZE *dest2 = (CFG_FLASH_WORD_SIZE *)dest;
  508. volatile CFG_FLASH_WORD_SIZE *data2 = (CFG_FLASH_WORD_SIZE *)&data;
  509. ulong start;
  510. int flag;
  511. int i;
  512. /* Check if Flash is (sufficiently) erased */
  513. if ((*((vu_long *)dest) & data) != data)
  514. return (2);
  515. /* Disable interrupts which might cause a timeout here */
  516. flag = disable_interrupts();
  517. for (i=0; i<4/sizeof(CFG_FLASH_WORD_SIZE); i++) {
  518. addr2[CFG_FLASH_ADDR0] = (CFG_FLASH_WORD_SIZE)0x00AA00AA;
  519. addr2[CFG_FLASH_ADDR1] = (CFG_FLASH_WORD_SIZE)0x00550055;
  520. addr2[CFG_FLASH_ADDR0] = (CFG_FLASH_WORD_SIZE)0x00A000A0;
  521. dest2[i] = data2[i];
  522. /* re-enable interrupts if necessary */
  523. if (flag)
  524. enable_interrupts();
  525. /* data polling for D7 */
  526. start = get_timer (0);
  527. while ((dest2[i] & (CFG_FLASH_WORD_SIZE)0x00800080) !=
  528. (data2[i] & (CFG_FLASH_WORD_SIZE)0x00800080)) {
  529. if (get_timer(start) > CFG_FLASH_WRITE_TOUT)
  530. return (1);
  531. }
  532. }
  533. return (0);
  534. }