setup.c 36 KB

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  1. /*
  2. * Copyright 2004-2009 Analog Devices Inc.
  3. *
  4. * Licensed under the GPL-2 or later.
  5. */
  6. #include <linux/delay.h>
  7. #include <linux/console.h>
  8. #include <linux/bootmem.h>
  9. #include <linux/seq_file.h>
  10. #include <linux/cpu.h>
  11. #include <linux/mm.h>
  12. #include <linux/module.h>
  13. #include <linux/tty.h>
  14. #include <linux/pfn.h>
  15. #ifdef CONFIG_MTD_UCLINUX
  16. #include <linux/mtd/map.h>
  17. #include <linux/ext2_fs.h>
  18. #include <linux/cramfs_fs.h>
  19. #include <linux/romfs_fs.h>
  20. #endif
  21. #include <asm/cplb.h>
  22. #include <asm/cacheflush.h>
  23. #include <asm/blackfin.h>
  24. #include <asm/cplbinit.h>
  25. #include <asm/div64.h>
  26. #include <asm/cpu.h>
  27. #include <asm/fixed_code.h>
  28. #include <asm/early_printk.h>
  29. u16 _bfin_swrst;
  30. EXPORT_SYMBOL(_bfin_swrst);
  31. unsigned long memory_start, memory_end, physical_mem_end;
  32. unsigned long _rambase, _ramstart, _ramend;
  33. unsigned long reserved_mem_dcache_on;
  34. unsigned long reserved_mem_icache_on;
  35. EXPORT_SYMBOL(memory_start);
  36. EXPORT_SYMBOL(memory_end);
  37. EXPORT_SYMBOL(physical_mem_end);
  38. EXPORT_SYMBOL(_ramend);
  39. EXPORT_SYMBOL(reserved_mem_dcache_on);
  40. #ifdef CONFIG_MTD_UCLINUX
  41. extern struct map_info uclinux_ram_map;
  42. unsigned long memory_mtd_end, memory_mtd_start, mtd_size;
  43. unsigned long _ebss;
  44. EXPORT_SYMBOL(memory_mtd_end);
  45. EXPORT_SYMBOL(memory_mtd_start);
  46. EXPORT_SYMBOL(mtd_size);
  47. #endif
  48. char __initdata command_line[COMMAND_LINE_SIZE];
  49. void __initdata *init_retx, *init_saved_retx, *init_saved_seqstat,
  50. *init_saved_icplb_fault_addr, *init_saved_dcplb_fault_addr;
  51. /* boot memmap, for parsing "memmap=" */
  52. #define BFIN_MEMMAP_MAX 128 /* number of entries in bfin_memmap */
  53. #define BFIN_MEMMAP_RAM 1
  54. #define BFIN_MEMMAP_RESERVED 2
  55. static struct bfin_memmap {
  56. int nr_map;
  57. struct bfin_memmap_entry {
  58. unsigned long long addr; /* start of memory segment */
  59. unsigned long long size;
  60. unsigned long type;
  61. } map[BFIN_MEMMAP_MAX];
  62. } bfin_memmap __initdata;
  63. /* for memmap sanitization */
  64. struct change_member {
  65. struct bfin_memmap_entry *pentry; /* pointer to original entry */
  66. unsigned long long addr; /* address for this change point */
  67. };
  68. static struct change_member change_point_list[2*BFIN_MEMMAP_MAX] __initdata;
  69. static struct change_member *change_point[2*BFIN_MEMMAP_MAX] __initdata;
  70. static struct bfin_memmap_entry *overlap_list[BFIN_MEMMAP_MAX] __initdata;
  71. static struct bfin_memmap_entry new_map[BFIN_MEMMAP_MAX] __initdata;
  72. DEFINE_PER_CPU(struct blackfin_cpudata, cpu_data);
  73. static int early_init_clkin_hz(char *buf);
  74. #if defined(CONFIG_BFIN_DCACHE) || defined(CONFIG_BFIN_ICACHE)
  75. void __init generate_cplb_tables(void)
  76. {
  77. unsigned int cpu;
  78. generate_cplb_tables_all();
  79. /* Generate per-CPU I&D CPLB tables */
  80. for (cpu = 0; cpu < num_possible_cpus(); ++cpu)
  81. generate_cplb_tables_cpu(cpu);
  82. }
  83. #endif
  84. void __cpuinit bfin_setup_caches(unsigned int cpu)
  85. {
  86. #ifdef CONFIG_BFIN_ICACHE
  87. bfin_icache_init(icplb_tbl[cpu]);
  88. #endif
  89. #ifdef CONFIG_BFIN_DCACHE
  90. bfin_dcache_init(dcplb_tbl[cpu]);
  91. #endif
  92. /*
  93. * In cache coherence emulation mode, we need to have the
  94. * D-cache enabled before running any atomic operation which
  95. * might involve cache invalidation (i.e. spinlock, rwlock).
  96. * So printk's are deferred until then.
  97. */
  98. #ifdef CONFIG_BFIN_ICACHE
  99. printk(KERN_INFO "Instruction Cache Enabled for CPU%u\n", cpu);
  100. printk(KERN_INFO " External memory:"
  101. # ifdef CONFIG_BFIN_EXTMEM_ICACHEABLE
  102. " cacheable"
  103. # else
  104. " uncacheable"
  105. # endif
  106. " in instruction cache\n");
  107. if (L2_LENGTH)
  108. printk(KERN_INFO " L2 SRAM :"
  109. # ifdef CONFIG_BFIN_L2_ICACHEABLE
  110. " cacheable"
  111. # else
  112. " uncacheable"
  113. # endif
  114. " in instruction cache\n");
  115. #else
  116. printk(KERN_INFO "Instruction Cache Disabled for CPU%u\n", cpu);
  117. #endif
  118. #ifdef CONFIG_BFIN_DCACHE
  119. printk(KERN_INFO "Data Cache Enabled for CPU%u\n", cpu);
  120. printk(KERN_INFO " External memory:"
  121. # if defined CONFIG_BFIN_EXTMEM_WRITEBACK
  122. " cacheable (write-back)"
  123. # elif defined CONFIG_BFIN_EXTMEM_WRITETHROUGH
  124. " cacheable (write-through)"
  125. # else
  126. " uncacheable"
  127. # endif
  128. " in data cache\n");
  129. if (L2_LENGTH)
  130. printk(KERN_INFO " L2 SRAM :"
  131. # if defined CONFIG_BFIN_L2_WRITEBACK
  132. " cacheable (write-back)"
  133. # elif defined CONFIG_BFIN_L2_WRITETHROUGH
  134. " cacheable (write-through)"
  135. # else
  136. " uncacheable"
  137. # endif
  138. " in data cache\n");
  139. #else
  140. printk(KERN_INFO "Data Cache Disabled for CPU%u\n", cpu);
  141. #endif
  142. }
  143. void __cpuinit bfin_setup_cpudata(unsigned int cpu)
  144. {
  145. struct blackfin_cpudata *cpudata = &per_cpu(cpu_data, cpu);
  146. cpudata->idle = current;
  147. cpudata->imemctl = bfin_read_IMEM_CONTROL();
  148. cpudata->dmemctl = bfin_read_DMEM_CONTROL();
  149. }
  150. void __init bfin_cache_init(void)
  151. {
  152. #if defined(CONFIG_BFIN_DCACHE) || defined(CONFIG_BFIN_ICACHE)
  153. generate_cplb_tables();
  154. #endif
  155. bfin_setup_caches(0);
  156. }
  157. void __init bfin_relocate_l1_mem(void)
  158. {
  159. unsigned long text_l1_len = (unsigned long)_text_l1_len;
  160. unsigned long data_l1_len = (unsigned long)_data_l1_len;
  161. unsigned long data_b_l1_len = (unsigned long)_data_b_l1_len;
  162. unsigned long l2_len = (unsigned long)_l2_len;
  163. early_shadow_stamp();
  164. /*
  165. * due to the ALIGN(4) in the arch/blackfin/kernel/vmlinux.lds.S
  166. * we know that everything about l1 text/data is nice and aligned,
  167. * so copy by 4 byte chunks, and don't worry about overlapping
  168. * src/dest.
  169. *
  170. * We can't use the dma_memcpy functions, since they can call
  171. * scheduler functions which might be in L1 :( and core writes
  172. * into L1 instruction cause bad access errors, so we are stuck,
  173. * we are required to use DMA, but can't use the common dma
  174. * functions. We can't use memcpy either - since that might be
  175. * going to be in the relocated L1
  176. */
  177. blackfin_dma_early_init();
  178. /* if necessary, copy L1 text to L1 instruction SRAM */
  179. if (L1_CODE_LENGTH && text_l1_len)
  180. early_dma_memcpy(_stext_l1, _text_l1_lma, text_l1_len);
  181. /* if necessary, copy L1 data to L1 data bank A SRAM */
  182. if (L1_DATA_A_LENGTH && data_l1_len)
  183. early_dma_memcpy(_sdata_l1, _data_l1_lma, data_l1_len);
  184. /* if necessary, copy L1 data B to L1 data bank B SRAM */
  185. if (L1_DATA_B_LENGTH && data_b_l1_len)
  186. early_dma_memcpy(_sdata_b_l1, _data_b_l1_lma, data_b_l1_len);
  187. early_dma_memcpy_done();
  188. /* if necessary, copy L2 text/data to L2 SRAM */
  189. if (L2_LENGTH && l2_len)
  190. memcpy(_stext_l2, _l2_lma, l2_len);
  191. }
  192. /* add_memory_region to memmap */
  193. static void __init add_memory_region(unsigned long long start,
  194. unsigned long long size, int type)
  195. {
  196. int i;
  197. i = bfin_memmap.nr_map;
  198. if (i == BFIN_MEMMAP_MAX) {
  199. printk(KERN_ERR "Ooops! Too many entries in the memory map!\n");
  200. return;
  201. }
  202. bfin_memmap.map[i].addr = start;
  203. bfin_memmap.map[i].size = size;
  204. bfin_memmap.map[i].type = type;
  205. bfin_memmap.nr_map++;
  206. }
  207. /*
  208. * Sanitize the boot memmap, removing overlaps.
  209. */
  210. static int __init sanitize_memmap(struct bfin_memmap_entry *map, int *pnr_map)
  211. {
  212. struct change_member *change_tmp;
  213. unsigned long current_type, last_type;
  214. unsigned long long last_addr;
  215. int chgidx, still_changing;
  216. int overlap_entries;
  217. int new_entry;
  218. int old_nr, new_nr, chg_nr;
  219. int i;
  220. /*
  221. Visually we're performing the following (1,2,3,4 = memory types)
  222. Sample memory map (w/overlaps):
  223. ____22__________________
  224. ______________________4_
  225. ____1111________________
  226. _44_____________________
  227. 11111111________________
  228. ____________________33__
  229. ___________44___________
  230. __________33333_________
  231. ______________22________
  232. ___________________2222_
  233. _________111111111______
  234. _____________________11_
  235. _________________4______
  236. Sanitized equivalent (no overlap):
  237. 1_______________________
  238. _44_____________________
  239. ___1____________________
  240. ____22__________________
  241. ______11________________
  242. _________1______________
  243. __________3_____________
  244. ___________44___________
  245. _____________33_________
  246. _______________2________
  247. ________________1_______
  248. _________________4______
  249. ___________________2____
  250. ____________________33__
  251. ______________________4_
  252. */
  253. /* if there's only one memory region, don't bother */
  254. if (*pnr_map < 2)
  255. return -1;
  256. old_nr = *pnr_map;
  257. /* bail out if we find any unreasonable addresses in memmap */
  258. for (i = 0; i < old_nr; i++)
  259. if (map[i].addr + map[i].size < map[i].addr)
  260. return -1;
  261. /* create pointers for initial change-point information (for sorting) */
  262. for (i = 0; i < 2*old_nr; i++)
  263. change_point[i] = &change_point_list[i];
  264. /* record all known change-points (starting and ending addresses),
  265. omitting those that are for empty memory regions */
  266. chgidx = 0;
  267. for (i = 0; i < old_nr; i++) {
  268. if (map[i].size != 0) {
  269. change_point[chgidx]->addr = map[i].addr;
  270. change_point[chgidx++]->pentry = &map[i];
  271. change_point[chgidx]->addr = map[i].addr + map[i].size;
  272. change_point[chgidx++]->pentry = &map[i];
  273. }
  274. }
  275. chg_nr = chgidx; /* true number of change-points */
  276. /* sort change-point list by memory addresses (low -> high) */
  277. still_changing = 1;
  278. while (still_changing) {
  279. still_changing = 0;
  280. for (i = 1; i < chg_nr; i++) {
  281. /* if <current_addr> > <last_addr>, swap */
  282. /* or, if current=<start_addr> & last=<end_addr>, swap */
  283. if ((change_point[i]->addr < change_point[i-1]->addr) ||
  284. ((change_point[i]->addr == change_point[i-1]->addr) &&
  285. (change_point[i]->addr == change_point[i]->pentry->addr) &&
  286. (change_point[i-1]->addr != change_point[i-1]->pentry->addr))
  287. ) {
  288. change_tmp = change_point[i];
  289. change_point[i] = change_point[i-1];
  290. change_point[i-1] = change_tmp;
  291. still_changing = 1;
  292. }
  293. }
  294. }
  295. /* create a new memmap, removing overlaps */
  296. overlap_entries = 0; /* number of entries in the overlap table */
  297. new_entry = 0; /* index for creating new memmap entries */
  298. last_type = 0; /* start with undefined memory type */
  299. last_addr = 0; /* start with 0 as last starting address */
  300. /* loop through change-points, determining affect on the new memmap */
  301. for (chgidx = 0; chgidx < chg_nr; chgidx++) {
  302. /* keep track of all overlapping memmap entries */
  303. if (change_point[chgidx]->addr == change_point[chgidx]->pentry->addr) {
  304. /* add map entry to overlap list (> 1 entry implies an overlap) */
  305. overlap_list[overlap_entries++] = change_point[chgidx]->pentry;
  306. } else {
  307. /* remove entry from list (order independent, so swap with last) */
  308. for (i = 0; i < overlap_entries; i++) {
  309. if (overlap_list[i] == change_point[chgidx]->pentry)
  310. overlap_list[i] = overlap_list[overlap_entries-1];
  311. }
  312. overlap_entries--;
  313. }
  314. /* if there are overlapping entries, decide which "type" to use */
  315. /* (larger value takes precedence -- 1=usable, 2,3,4,4+=unusable) */
  316. current_type = 0;
  317. for (i = 0; i < overlap_entries; i++)
  318. if (overlap_list[i]->type > current_type)
  319. current_type = overlap_list[i]->type;
  320. /* continue building up new memmap based on this information */
  321. if (current_type != last_type) {
  322. if (last_type != 0) {
  323. new_map[new_entry].size =
  324. change_point[chgidx]->addr - last_addr;
  325. /* move forward only if the new size was non-zero */
  326. if (new_map[new_entry].size != 0)
  327. if (++new_entry >= BFIN_MEMMAP_MAX)
  328. break; /* no more space left for new entries */
  329. }
  330. if (current_type != 0) {
  331. new_map[new_entry].addr = change_point[chgidx]->addr;
  332. new_map[new_entry].type = current_type;
  333. last_addr = change_point[chgidx]->addr;
  334. }
  335. last_type = current_type;
  336. }
  337. }
  338. new_nr = new_entry; /* retain count for new entries */
  339. /* copy new mapping into original location */
  340. memcpy(map, new_map, new_nr*sizeof(struct bfin_memmap_entry));
  341. *pnr_map = new_nr;
  342. return 0;
  343. }
  344. static void __init print_memory_map(char *who)
  345. {
  346. int i;
  347. for (i = 0; i < bfin_memmap.nr_map; i++) {
  348. printk(KERN_DEBUG " %s: %016Lx - %016Lx ", who,
  349. bfin_memmap.map[i].addr,
  350. bfin_memmap.map[i].addr + bfin_memmap.map[i].size);
  351. switch (bfin_memmap.map[i].type) {
  352. case BFIN_MEMMAP_RAM:
  353. printk(KERN_CONT "(usable)\n");
  354. break;
  355. case BFIN_MEMMAP_RESERVED:
  356. printk(KERN_CONT "(reserved)\n");
  357. break;
  358. default:
  359. printk(KERN_CONT "type %lu\n", bfin_memmap.map[i].type);
  360. break;
  361. }
  362. }
  363. }
  364. static __init int parse_memmap(char *arg)
  365. {
  366. unsigned long long start_at, mem_size;
  367. if (!arg)
  368. return -EINVAL;
  369. mem_size = memparse(arg, &arg);
  370. if (*arg == '@') {
  371. start_at = memparse(arg+1, &arg);
  372. add_memory_region(start_at, mem_size, BFIN_MEMMAP_RAM);
  373. } else if (*arg == '$') {
  374. start_at = memparse(arg+1, &arg);
  375. add_memory_region(start_at, mem_size, BFIN_MEMMAP_RESERVED);
  376. }
  377. return 0;
  378. }
  379. /*
  380. * Initial parsing of the command line. Currently, we support:
  381. * - Controlling the linux memory size: mem=xxx[KMG]
  382. * - Controlling the physical memory size: max_mem=xxx[KMG][$][#]
  383. * $ -> reserved memory is dcacheable
  384. * # -> reserved memory is icacheable
  385. * - "memmap=XXX[KkmM][@][$]XXX[KkmM]" defines a memory region
  386. * @ from <start> to <start>+<mem>, type RAM
  387. * $ from <start> to <start>+<mem>, type RESERVED
  388. */
  389. static __init void parse_cmdline_early(char *cmdline_p)
  390. {
  391. char c = ' ', *to = cmdline_p;
  392. unsigned int memsize;
  393. for (;;) {
  394. if (c == ' ') {
  395. if (!memcmp(to, "mem=", 4)) {
  396. to += 4;
  397. memsize = memparse(to, &to);
  398. if (memsize)
  399. _ramend = memsize;
  400. } else if (!memcmp(to, "max_mem=", 8)) {
  401. to += 8;
  402. memsize = memparse(to, &to);
  403. if (memsize) {
  404. physical_mem_end = memsize;
  405. if (*to != ' ') {
  406. if (*to == '$'
  407. || *(to + 1) == '$')
  408. reserved_mem_dcache_on = 1;
  409. if (*to == '#'
  410. || *(to + 1) == '#')
  411. reserved_mem_icache_on = 1;
  412. }
  413. }
  414. } else if (!memcmp(to, "clkin_hz=", 9)) {
  415. to += 9;
  416. early_init_clkin_hz(to);
  417. #ifdef CONFIG_EARLY_PRINTK
  418. } else if (!memcmp(to, "earlyprintk=", 12)) {
  419. to += 12;
  420. setup_early_printk(to);
  421. #endif
  422. } else if (!memcmp(to, "memmap=", 7)) {
  423. to += 7;
  424. parse_memmap(to);
  425. }
  426. }
  427. c = *(to++);
  428. if (!c)
  429. break;
  430. }
  431. }
  432. /*
  433. * Setup memory defaults from user config.
  434. * The physical memory layout looks like:
  435. *
  436. * [_rambase, _ramstart]: kernel image
  437. * [memory_start, memory_end]: dynamic memory managed by kernel
  438. * [memory_end, _ramend]: reserved memory
  439. * [memory_mtd_start(memory_end),
  440. * memory_mtd_start + mtd_size]: rootfs (if any)
  441. * [_ramend - DMA_UNCACHED_REGION,
  442. * _ramend]: uncached DMA region
  443. * [_ramend, physical_mem_end]: memory not managed by kernel
  444. */
  445. static __init void memory_setup(void)
  446. {
  447. #ifdef CONFIG_MTD_UCLINUX
  448. unsigned long mtd_phys = 0;
  449. #endif
  450. unsigned long max_mem;
  451. _rambase = (unsigned long)_stext;
  452. _ramstart = (unsigned long)_end;
  453. if (DMA_UNCACHED_REGION > (_ramend - _ramstart)) {
  454. console_init();
  455. panic("DMA region exceeds memory limit: %lu.",
  456. _ramend - _ramstart);
  457. }
  458. max_mem = memory_end = _ramend - DMA_UNCACHED_REGION;
  459. #if (defined(CONFIG_BFIN_EXTMEM_ICACHEABLE) && ANOMALY_05000263)
  460. /* Due to a Hardware Anomaly we need to limit the size of usable
  461. * instruction memory to max 60MB, 56 if HUNT_FOR_ZERO is on
  462. * 05000263 - Hardware loop corrupted when taking an ICPLB exception
  463. */
  464. # if (defined(CONFIG_DEBUG_HUNT_FOR_ZERO))
  465. if (max_mem >= 56 * 1024 * 1024)
  466. max_mem = 56 * 1024 * 1024;
  467. # else
  468. if (max_mem >= 60 * 1024 * 1024)
  469. max_mem = 60 * 1024 * 1024;
  470. # endif /* CONFIG_DEBUG_HUNT_FOR_ZERO */
  471. #endif /* ANOMALY_05000263 */
  472. #ifdef CONFIG_MPU
  473. /* Round up to multiple of 4MB */
  474. memory_start = (_ramstart + 0x3fffff) & ~0x3fffff;
  475. #else
  476. memory_start = PAGE_ALIGN(_ramstart);
  477. #endif
  478. #if defined(CONFIG_MTD_UCLINUX)
  479. /* generic memory mapped MTD driver */
  480. memory_mtd_end = memory_end;
  481. mtd_phys = _ramstart;
  482. mtd_size = PAGE_ALIGN(*((unsigned long *)(mtd_phys + 8)));
  483. # if defined(CONFIG_EXT2_FS) || defined(CONFIG_EXT3_FS)
  484. if (*((unsigned short *)(mtd_phys + 0x438)) == EXT2_SUPER_MAGIC)
  485. mtd_size =
  486. PAGE_ALIGN(*((unsigned long *)(mtd_phys + 0x404)) << 10);
  487. # endif
  488. # if defined(CONFIG_CRAMFS)
  489. if (*((unsigned long *)(mtd_phys)) == CRAMFS_MAGIC)
  490. mtd_size = PAGE_ALIGN(*((unsigned long *)(mtd_phys + 0x4)));
  491. # endif
  492. # if defined(CONFIG_ROMFS_FS)
  493. if (((unsigned long *)mtd_phys)[0] == ROMSB_WORD0
  494. && ((unsigned long *)mtd_phys)[1] == ROMSB_WORD1) {
  495. mtd_size =
  496. PAGE_ALIGN(be32_to_cpu(((unsigned long *)mtd_phys)[2]));
  497. /* ROM_FS is XIP, so if we found it, we need to limit memory */
  498. if (memory_end > max_mem) {
  499. pr_info("Limiting kernel memory to %liMB due to anomaly 05000263\n", max_mem >> 20);
  500. memory_end = max_mem;
  501. }
  502. }
  503. # endif /* CONFIG_ROMFS_FS */
  504. /* Since the default MTD_UCLINUX has no magic number, we just blindly
  505. * read 8 past the end of the kernel's image, and look at it.
  506. * When no image is attached, mtd_size is set to a random number
  507. * Do some basic sanity checks before operating on things
  508. */
  509. if (mtd_size == 0 || memory_end <= mtd_size) {
  510. pr_emerg("Could not find valid ram mtd attached.\n");
  511. } else {
  512. memory_end -= mtd_size;
  513. /* Relocate MTD image to the top of memory after the uncached memory area */
  514. uclinux_ram_map.phys = memory_mtd_start = memory_end;
  515. uclinux_ram_map.size = mtd_size;
  516. pr_info("Found mtd parition at 0x%p, (len=0x%lx), moving to 0x%p\n",
  517. _end, mtd_size, (void *)memory_mtd_start);
  518. dma_memcpy((void *)uclinux_ram_map.phys, _end, uclinux_ram_map.size);
  519. }
  520. #endif /* CONFIG_MTD_UCLINUX */
  521. /* We need lo limit memory, since everything could have a text section
  522. * of userspace in it, and expose anomaly 05000263. If the anomaly
  523. * doesn't exist, or we don't need to - then dont.
  524. */
  525. if (memory_end > max_mem) {
  526. pr_info("Limiting kernel memory to %liMB due to anomaly 05000263\n", max_mem >> 20);
  527. memory_end = max_mem;
  528. }
  529. #ifdef CONFIG_MPU
  530. page_mask_nelts = ((_ramend >> PAGE_SHIFT) + 31) / 32;
  531. page_mask_order = get_order(3 * page_mask_nelts * sizeof(long));
  532. #endif
  533. init_mm.start_code = (unsigned long)_stext;
  534. init_mm.end_code = (unsigned long)_etext;
  535. init_mm.end_data = (unsigned long)_edata;
  536. init_mm.brk = (unsigned long)0;
  537. printk(KERN_INFO "Board Memory: %ldMB\n", physical_mem_end >> 20);
  538. printk(KERN_INFO "Kernel Managed Memory: %ldMB\n", _ramend >> 20);
  539. printk(KERN_INFO "Memory map:\n"
  540. " fixedcode = 0x%p-0x%p\n"
  541. " text = 0x%p-0x%p\n"
  542. " rodata = 0x%p-0x%p\n"
  543. " bss = 0x%p-0x%p\n"
  544. " data = 0x%p-0x%p\n"
  545. " stack = 0x%p-0x%p\n"
  546. " init = 0x%p-0x%p\n"
  547. " available = 0x%p-0x%p\n"
  548. #ifdef CONFIG_MTD_UCLINUX
  549. " rootfs = 0x%p-0x%p\n"
  550. #endif
  551. #if DMA_UNCACHED_REGION > 0
  552. " DMA Zone = 0x%p-0x%p\n"
  553. #endif
  554. , (void *)FIXED_CODE_START, (void *)FIXED_CODE_END,
  555. _stext, _etext,
  556. __start_rodata, __end_rodata,
  557. __bss_start, __bss_stop,
  558. _sdata, _edata,
  559. (void *)&init_thread_union,
  560. (void *)((int)(&init_thread_union) + 0x2000),
  561. __init_begin, __init_end,
  562. (void *)_ramstart, (void *)memory_end
  563. #ifdef CONFIG_MTD_UCLINUX
  564. , (void *)memory_mtd_start, (void *)(memory_mtd_start + mtd_size)
  565. #endif
  566. #if DMA_UNCACHED_REGION > 0
  567. , (void *)(_ramend - DMA_UNCACHED_REGION), (void *)(_ramend)
  568. #endif
  569. );
  570. }
  571. /*
  572. * Find the lowest, highest page frame number we have available
  573. */
  574. void __init find_min_max_pfn(void)
  575. {
  576. int i;
  577. max_pfn = 0;
  578. min_low_pfn = memory_end;
  579. for (i = 0; i < bfin_memmap.nr_map; i++) {
  580. unsigned long start, end;
  581. /* RAM? */
  582. if (bfin_memmap.map[i].type != BFIN_MEMMAP_RAM)
  583. continue;
  584. start = PFN_UP(bfin_memmap.map[i].addr);
  585. end = PFN_DOWN(bfin_memmap.map[i].addr +
  586. bfin_memmap.map[i].size);
  587. if (start >= end)
  588. continue;
  589. if (end > max_pfn)
  590. max_pfn = end;
  591. if (start < min_low_pfn)
  592. min_low_pfn = start;
  593. }
  594. }
  595. static __init void setup_bootmem_allocator(void)
  596. {
  597. int bootmap_size;
  598. int i;
  599. unsigned long start_pfn, end_pfn;
  600. unsigned long curr_pfn, last_pfn, size;
  601. /* mark memory between memory_start and memory_end usable */
  602. add_memory_region(memory_start,
  603. memory_end - memory_start, BFIN_MEMMAP_RAM);
  604. /* sanity check for overlap */
  605. sanitize_memmap(bfin_memmap.map, &bfin_memmap.nr_map);
  606. print_memory_map("boot memmap");
  607. /* initialize globals in linux/bootmem.h */
  608. find_min_max_pfn();
  609. /* pfn of the last usable page frame */
  610. if (max_pfn > memory_end >> PAGE_SHIFT)
  611. max_pfn = memory_end >> PAGE_SHIFT;
  612. /* pfn of last page frame directly mapped by kernel */
  613. max_low_pfn = max_pfn;
  614. /* pfn of the first usable page frame after kernel image*/
  615. if (min_low_pfn < memory_start >> PAGE_SHIFT)
  616. min_low_pfn = memory_start >> PAGE_SHIFT;
  617. start_pfn = PAGE_OFFSET >> PAGE_SHIFT;
  618. end_pfn = memory_end >> PAGE_SHIFT;
  619. /*
  620. * give all the memory to the bootmap allocator, tell it to put the
  621. * boot mem_map at the start of memory.
  622. */
  623. bootmap_size = init_bootmem_node(NODE_DATA(0),
  624. memory_start >> PAGE_SHIFT, /* map goes here */
  625. start_pfn, end_pfn);
  626. /* register the memmap regions with the bootmem allocator */
  627. for (i = 0; i < bfin_memmap.nr_map; i++) {
  628. /*
  629. * Reserve usable memory
  630. */
  631. if (bfin_memmap.map[i].type != BFIN_MEMMAP_RAM)
  632. continue;
  633. /*
  634. * We are rounding up the start address of usable memory:
  635. */
  636. curr_pfn = PFN_UP(bfin_memmap.map[i].addr);
  637. if (curr_pfn >= end_pfn)
  638. continue;
  639. /*
  640. * ... and at the end of the usable range downwards:
  641. */
  642. last_pfn = PFN_DOWN(bfin_memmap.map[i].addr +
  643. bfin_memmap.map[i].size);
  644. if (last_pfn > end_pfn)
  645. last_pfn = end_pfn;
  646. /*
  647. * .. finally, did all the rounding and playing
  648. * around just make the area go away?
  649. */
  650. if (last_pfn <= curr_pfn)
  651. continue;
  652. size = last_pfn - curr_pfn;
  653. free_bootmem(PFN_PHYS(curr_pfn), PFN_PHYS(size));
  654. }
  655. /* reserve memory before memory_start, including bootmap */
  656. reserve_bootmem(PAGE_OFFSET,
  657. memory_start + bootmap_size + PAGE_SIZE - 1 - PAGE_OFFSET,
  658. BOOTMEM_DEFAULT);
  659. }
  660. #define EBSZ_TO_MEG(ebsz) \
  661. ({ \
  662. int meg = 0; \
  663. switch (ebsz & 0xf) { \
  664. case 0x1: meg = 16; break; \
  665. case 0x3: meg = 32; break; \
  666. case 0x5: meg = 64; break; \
  667. case 0x7: meg = 128; break; \
  668. case 0x9: meg = 256; break; \
  669. case 0xb: meg = 512; break; \
  670. } \
  671. meg; \
  672. })
  673. static inline int __init get_mem_size(void)
  674. {
  675. #if defined(EBIU_SDBCTL)
  676. # if defined(BF561_FAMILY)
  677. int ret = 0;
  678. u32 sdbctl = bfin_read_EBIU_SDBCTL();
  679. ret += EBSZ_TO_MEG(sdbctl >> 0);
  680. ret += EBSZ_TO_MEG(sdbctl >> 8);
  681. ret += EBSZ_TO_MEG(sdbctl >> 16);
  682. ret += EBSZ_TO_MEG(sdbctl >> 24);
  683. return ret;
  684. # else
  685. return EBSZ_TO_MEG(bfin_read_EBIU_SDBCTL());
  686. # endif
  687. #elif defined(EBIU_DDRCTL1)
  688. u32 ddrctl = bfin_read_EBIU_DDRCTL1();
  689. int ret = 0;
  690. switch (ddrctl & 0xc0000) {
  691. case DEVSZ_64: ret = 64 / 8;
  692. case DEVSZ_128: ret = 128 / 8;
  693. case DEVSZ_256: ret = 256 / 8;
  694. case DEVSZ_512: ret = 512 / 8;
  695. }
  696. switch (ddrctl & 0x30000) {
  697. case DEVWD_4: ret *= 2;
  698. case DEVWD_8: ret *= 2;
  699. case DEVWD_16: break;
  700. }
  701. if ((ddrctl & 0xc000) == 0x4000)
  702. ret *= 2;
  703. return ret;
  704. #endif
  705. BUG();
  706. }
  707. void __init setup_arch(char **cmdline_p)
  708. {
  709. unsigned long sclk, cclk;
  710. enable_shadow_console();
  711. /* Check to make sure we are running on the right processor */
  712. if (unlikely(CPUID != bfin_cpuid()))
  713. printk(KERN_ERR "ERROR: Not running on ADSP-%s: unknown CPUID 0x%04x Rev 0.%d\n",
  714. CPU, bfin_cpuid(), bfin_revid());
  715. #ifdef CONFIG_DUMMY_CONSOLE
  716. conswitchp = &dummy_con;
  717. #endif
  718. #if defined(CONFIG_CMDLINE_BOOL)
  719. strncpy(&command_line[0], CONFIG_CMDLINE, sizeof(command_line));
  720. command_line[sizeof(command_line) - 1] = 0;
  721. #endif
  722. /* Keep a copy of command line */
  723. *cmdline_p = &command_line[0];
  724. memcpy(boot_command_line, command_line, COMMAND_LINE_SIZE);
  725. boot_command_line[COMMAND_LINE_SIZE - 1] = '\0';
  726. memset(&bfin_memmap, 0, sizeof(bfin_memmap));
  727. /* If the user does not specify things on the command line, use
  728. * what the bootloader set things up as
  729. */
  730. physical_mem_end = 0;
  731. parse_cmdline_early(&command_line[0]);
  732. if (_ramend == 0)
  733. _ramend = get_mem_size() * 1024 * 1024;
  734. if (physical_mem_end == 0)
  735. physical_mem_end = _ramend;
  736. memory_setup();
  737. /* Initialize Async memory banks */
  738. bfin_write_EBIU_AMBCTL0(AMBCTL0VAL);
  739. bfin_write_EBIU_AMBCTL1(AMBCTL1VAL);
  740. bfin_write_EBIU_AMGCTL(AMGCTLVAL);
  741. #ifdef CONFIG_EBIU_MBSCTLVAL
  742. bfin_write_EBIU_MBSCTL(CONFIG_EBIU_MBSCTLVAL);
  743. bfin_write_EBIU_MODE(CONFIG_EBIU_MODEVAL);
  744. bfin_write_EBIU_FCTL(CONFIG_EBIU_FCTLVAL);
  745. #endif
  746. cclk = get_cclk();
  747. sclk = get_sclk();
  748. if ((ANOMALY_05000273 || ANOMALY_05000274) && (cclk >> 1) < sclk)
  749. panic("ANOMALY 05000273 or 05000274: CCLK must be >= 2*SCLK");
  750. #ifdef BF561_FAMILY
  751. if (ANOMALY_05000266) {
  752. bfin_read_IMDMA_D0_IRQ_STATUS();
  753. bfin_read_IMDMA_D1_IRQ_STATUS();
  754. }
  755. #endif
  756. printk(KERN_INFO "Hardware Trace ");
  757. if (bfin_read_TBUFCTL() & 0x1)
  758. printk(KERN_CONT "Active ");
  759. else
  760. printk(KERN_CONT "Off ");
  761. if (bfin_read_TBUFCTL() & 0x2)
  762. printk(KERN_CONT "and Enabled\n");
  763. else
  764. printk(KERN_CONT "and Disabled\n");
  765. printk(KERN_INFO "Boot Mode: %i\n", bfin_read_SYSCR() & 0xF);
  766. /* Newer parts mirror SWRST bits in SYSCR */
  767. #if defined(CONFIG_BF53x) || defined(CONFIG_BF561) || \
  768. defined(CONFIG_BF538) || defined(CONFIG_BF539)
  769. _bfin_swrst = bfin_read_SWRST();
  770. #else
  771. /* Clear boot mode field */
  772. _bfin_swrst = bfin_read_SYSCR() & ~0xf;
  773. #endif
  774. #ifdef CONFIG_DEBUG_DOUBLEFAULT_PRINT
  775. bfin_write_SWRST(_bfin_swrst & ~DOUBLE_FAULT);
  776. #endif
  777. #ifdef CONFIG_DEBUG_DOUBLEFAULT_RESET
  778. bfin_write_SWRST(_bfin_swrst | DOUBLE_FAULT);
  779. #endif
  780. #ifdef CONFIG_SMP
  781. if (_bfin_swrst & SWRST_DBL_FAULT_A) {
  782. #else
  783. if (_bfin_swrst & RESET_DOUBLE) {
  784. #endif
  785. printk(KERN_EMERG "Recovering from DOUBLE FAULT event\n");
  786. #ifdef CONFIG_DEBUG_DOUBLEFAULT
  787. /* We assume the crashing kernel, and the current symbol table match */
  788. printk(KERN_EMERG " While handling exception (EXCAUSE = 0x%x) at %pF\n",
  789. (int)init_saved_seqstat & SEQSTAT_EXCAUSE, init_saved_retx);
  790. printk(KERN_NOTICE " DCPLB_FAULT_ADDR: %pF\n", init_saved_dcplb_fault_addr);
  791. printk(KERN_NOTICE " ICPLB_FAULT_ADDR: %pF\n", init_saved_icplb_fault_addr);
  792. #endif
  793. printk(KERN_NOTICE " The instruction at %pF caused a double exception\n",
  794. init_retx);
  795. } else if (_bfin_swrst & RESET_WDOG)
  796. printk(KERN_INFO "Recovering from Watchdog event\n");
  797. else if (_bfin_swrst & RESET_SOFTWARE)
  798. printk(KERN_NOTICE "Reset caused by Software reset\n");
  799. printk(KERN_INFO "Blackfin support (C) 2004-2009 Analog Devices, Inc.\n");
  800. if (bfin_compiled_revid() == 0xffff)
  801. printk(KERN_INFO "Compiled for ADSP-%s Rev any, running on 0.%d\n", CPU, bfin_revid());
  802. else if (bfin_compiled_revid() == -1)
  803. printk(KERN_INFO "Compiled for ADSP-%s Rev none\n", CPU);
  804. else
  805. printk(KERN_INFO "Compiled for ADSP-%s Rev 0.%d\n", CPU, bfin_compiled_revid());
  806. if (likely(CPUID == bfin_cpuid())) {
  807. if (bfin_revid() != bfin_compiled_revid()) {
  808. if (bfin_compiled_revid() == -1)
  809. printk(KERN_ERR "Warning: Compiled for Rev none, but running on Rev %d\n",
  810. bfin_revid());
  811. else if (bfin_compiled_revid() != 0xffff) {
  812. printk(KERN_ERR "Warning: Compiled for Rev %d, but running on Rev %d\n",
  813. bfin_compiled_revid(), bfin_revid());
  814. if (bfin_compiled_revid() > bfin_revid())
  815. panic("Error: you are missing anomaly workarounds for this rev");
  816. }
  817. }
  818. if (bfin_revid() < CONFIG_BF_REV_MIN || bfin_revid() > CONFIG_BF_REV_MAX)
  819. printk(KERN_ERR "Warning: Unsupported Chip Revision ADSP-%s Rev 0.%d detected\n",
  820. CPU, bfin_revid());
  821. }
  822. printk(KERN_INFO "Blackfin Linux support by http://blackfin.uclinux.org/\n");
  823. printk(KERN_INFO "Processor Speed: %lu MHz core clock and %lu MHz System Clock\n",
  824. cclk / 1000000, sclk / 1000000);
  825. setup_bootmem_allocator();
  826. paging_init();
  827. /* Copy atomic sequences to their fixed location, and sanity check that
  828. these locations are the ones that we advertise to userspace. */
  829. memcpy((void *)FIXED_CODE_START, &fixed_code_start,
  830. FIXED_CODE_END - FIXED_CODE_START);
  831. BUG_ON((char *)&sigreturn_stub - (char *)&fixed_code_start
  832. != SIGRETURN_STUB - FIXED_CODE_START);
  833. BUG_ON((char *)&atomic_xchg32 - (char *)&fixed_code_start
  834. != ATOMIC_XCHG32 - FIXED_CODE_START);
  835. BUG_ON((char *)&atomic_cas32 - (char *)&fixed_code_start
  836. != ATOMIC_CAS32 - FIXED_CODE_START);
  837. BUG_ON((char *)&atomic_add32 - (char *)&fixed_code_start
  838. != ATOMIC_ADD32 - FIXED_CODE_START);
  839. BUG_ON((char *)&atomic_sub32 - (char *)&fixed_code_start
  840. != ATOMIC_SUB32 - FIXED_CODE_START);
  841. BUG_ON((char *)&atomic_ior32 - (char *)&fixed_code_start
  842. != ATOMIC_IOR32 - FIXED_CODE_START);
  843. BUG_ON((char *)&atomic_and32 - (char *)&fixed_code_start
  844. != ATOMIC_AND32 - FIXED_CODE_START);
  845. BUG_ON((char *)&atomic_xor32 - (char *)&fixed_code_start
  846. != ATOMIC_XOR32 - FIXED_CODE_START);
  847. BUG_ON((char *)&safe_user_instruction - (char *)&fixed_code_start
  848. != SAFE_USER_INSTRUCTION - FIXED_CODE_START);
  849. #ifdef CONFIG_SMP
  850. platform_init_cpus();
  851. #endif
  852. init_exception_vectors();
  853. bfin_cache_init(); /* Initialize caches for the boot CPU */
  854. }
  855. static int __init topology_init(void)
  856. {
  857. unsigned int cpu;
  858. /* Record CPU-private information for the boot processor. */
  859. bfin_setup_cpudata(0);
  860. for_each_possible_cpu(cpu) {
  861. register_cpu(&per_cpu(cpu_data, cpu).cpu, cpu);
  862. }
  863. return 0;
  864. }
  865. subsys_initcall(topology_init);
  866. /* Get the input clock frequency */
  867. static u_long cached_clkin_hz = CONFIG_CLKIN_HZ;
  868. static u_long get_clkin_hz(void)
  869. {
  870. return cached_clkin_hz;
  871. }
  872. static int __init early_init_clkin_hz(char *buf)
  873. {
  874. cached_clkin_hz = simple_strtoul(buf, NULL, 0);
  875. #ifdef BFIN_KERNEL_CLOCK
  876. if (cached_clkin_hz != CONFIG_CLKIN_HZ)
  877. panic("cannot change clkin_hz when reprogramming clocks");
  878. #endif
  879. return 1;
  880. }
  881. early_param("clkin_hz=", early_init_clkin_hz);
  882. /* Get the voltage input multiplier */
  883. static u_long get_vco(void)
  884. {
  885. static u_long cached_vco;
  886. u_long msel, pll_ctl;
  887. /* The assumption here is that VCO never changes at runtime.
  888. * If, someday, we support that, then we'll have to change this.
  889. */
  890. if (cached_vco)
  891. return cached_vco;
  892. pll_ctl = bfin_read_PLL_CTL();
  893. msel = (pll_ctl >> 9) & 0x3F;
  894. if (0 == msel)
  895. msel = 64;
  896. cached_vco = get_clkin_hz();
  897. cached_vco >>= (1 & pll_ctl); /* DF bit */
  898. cached_vco *= msel;
  899. return cached_vco;
  900. }
  901. /* Get the Core clock */
  902. u_long get_cclk(void)
  903. {
  904. static u_long cached_cclk_pll_div, cached_cclk;
  905. u_long csel, ssel;
  906. if (bfin_read_PLL_STAT() & 0x1)
  907. return get_clkin_hz();
  908. ssel = bfin_read_PLL_DIV();
  909. if (ssel == cached_cclk_pll_div)
  910. return cached_cclk;
  911. else
  912. cached_cclk_pll_div = ssel;
  913. csel = ((ssel >> 4) & 0x03);
  914. ssel &= 0xf;
  915. if (ssel && ssel < (1 << csel)) /* SCLK > CCLK */
  916. cached_cclk = get_vco() / ssel;
  917. else
  918. cached_cclk = get_vco() >> csel;
  919. return cached_cclk;
  920. }
  921. EXPORT_SYMBOL(get_cclk);
  922. /* Get the System clock */
  923. u_long get_sclk(void)
  924. {
  925. static u_long cached_sclk;
  926. u_long ssel;
  927. /* The assumption here is that SCLK never changes at runtime.
  928. * If, someday, we support that, then we'll have to change this.
  929. */
  930. if (cached_sclk)
  931. return cached_sclk;
  932. if (bfin_read_PLL_STAT() & 0x1)
  933. return get_clkin_hz();
  934. ssel = bfin_read_PLL_DIV() & 0xf;
  935. if (0 == ssel) {
  936. printk(KERN_WARNING "Invalid System Clock\n");
  937. ssel = 1;
  938. }
  939. cached_sclk = get_vco() / ssel;
  940. return cached_sclk;
  941. }
  942. EXPORT_SYMBOL(get_sclk);
  943. unsigned long sclk_to_usecs(unsigned long sclk)
  944. {
  945. u64 tmp = USEC_PER_SEC * (u64)sclk;
  946. do_div(tmp, get_sclk());
  947. return tmp;
  948. }
  949. EXPORT_SYMBOL(sclk_to_usecs);
  950. unsigned long usecs_to_sclk(unsigned long usecs)
  951. {
  952. u64 tmp = get_sclk() * (u64)usecs;
  953. do_div(tmp, USEC_PER_SEC);
  954. return tmp;
  955. }
  956. EXPORT_SYMBOL(usecs_to_sclk);
  957. /*
  958. * Get CPU information for use by the procfs.
  959. */
  960. static int show_cpuinfo(struct seq_file *m, void *v)
  961. {
  962. char *cpu, *mmu, *fpu, *vendor, *cache;
  963. uint32_t revid;
  964. int cpu_num = *(unsigned int *)v;
  965. u_long sclk, cclk;
  966. u_int icache_size = BFIN_ICACHESIZE / 1024, dcache_size = 0, dsup_banks = 0;
  967. struct blackfin_cpudata *cpudata = &per_cpu(cpu_data, cpu_num);
  968. cpu = CPU;
  969. mmu = "none";
  970. fpu = "none";
  971. revid = bfin_revid();
  972. sclk = get_sclk();
  973. cclk = get_cclk();
  974. switch (bfin_read_CHIPID() & CHIPID_MANUFACTURE) {
  975. case 0xca:
  976. vendor = "Analog Devices";
  977. break;
  978. default:
  979. vendor = "unknown";
  980. break;
  981. }
  982. seq_printf(m, "processor\t: %d\n" "vendor_id\t: %s\n", cpu_num, vendor);
  983. if (CPUID == bfin_cpuid())
  984. seq_printf(m, "cpu family\t: 0x%04x\n", CPUID);
  985. else
  986. seq_printf(m, "cpu family\t: Compiled for:0x%04x, running on:0x%04x\n",
  987. CPUID, bfin_cpuid());
  988. seq_printf(m, "model name\t: ADSP-%s %lu(MHz CCLK) %lu(MHz SCLK) (%s)\n"
  989. "stepping\t: %d ",
  990. cpu, cclk/1000000, sclk/1000000,
  991. #ifdef CONFIG_MPU
  992. "mpu on",
  993. #else
  994. "mpu off",
  995. #endif
  996. revid);
  997. if (bfin_revid() != bfin_compiled_revid()) {
  998. if (bfin_compiled_revid() == -1)
  999. seq_printf(m, "(Compiled for Rev none)");
  1000. else if (bfin_compiled_revid() == 0xffff)
  1001. seq_printf(m, "(Compiled for Rev any)");
  1002. else
  1003. seq_printf(m, "(Compiled for Rev %d)", bfin_compiled_revid());
  1004. }
  1005. seq_printf(m, "\ncpu MHz\t\t: %lu.%03lu/%lu.%03lu\n",
  1006. cclk/1000000, cclk%1000000,
  1007. sclk/1000000, sclk%1000000);
  1008. seq_printf(m, "bogomips\t: %lu.%02lu\n"
  1009. "Calibration\t: %lu loops\n",
  1010. (loops_per_jiffy * HZ) / 500000,
  1011. ((loops_per_jiffy * HZ) / 5000) % 100,
  1012. (loops_per_jiffy * HZ));
  1013. /* Check Cache configutation */
  1014. switch (cpudata->dmemctl & (1 << DMC0_P | 1 << DMC1_P)) {
  1015. case ACACHE_BSRAM:
  1016. cache = "dbank-A/B\t: cache/sram";
  1017. dcache_size = 16;
  1018. dsup_banks = 1;
  1019. break;
  1020. case ACACHE_BCACHE:
  1021. cache = "dbank-A/B\t: cache/cache";
  1022. dcache_size = 32;
  1023. dsup_banks = 2;
  1024. break;
  1025. case ASRAM_BSRAM:
  1026. cache = "dbank-A/B\t: sram/sram";
  1027. dcache_size = 0;
  1028. dsup_banks = 0;
  1029. break;
  1030. default:
  1031. cache = "unknown";
  1032. dcache_size = 0;
  1033. dsup_banks = 0;
  1034. break;
  1035. }
  1036. /* Is it turned on? */
  1037. if ((cpudata->dmemctl & (ENDCPLB | DMC_ENABLE)) != (ENDCPLB | DMC_ENABLE))
  1038. dcache_size = 0;
  1039. if ((cpudata->imemctl & (IMC | ENICPLB)) != (IMC | ENICPLB))
  1040. icache_size = 0;
  1041. seq_printf(m, "cache size\t: %d KB(L1 icache) "
  1042. "%d KB(L1 dcache) %d KB(L2 cache)\n",
  1043. icache_size, dcache_size, 0);
  1044. seq_printf(m, "%s\n", cache);
  1045. seq_printf(m, "external memory\t: "
  1046. #if defined(CONFIG_BFIN_EXTMEM_ICACHEABLE)
  1047. "cacheable"
  1048. #else
  1049. "uncacheable"
  1050. #endif
  1051. " in instruction cache\n");
  1052. seq_printf(m, "external memory\t: "
  1053. #if defined(CONFIG_BFIN_EXTMEM_WRITEBACK)
  1054. "cacheable (write-back)"
  1055. #elif defined(CONFIG_BFIN_EXTMEM_WRITETHROUGH)
  1056. "cacheable (write-through)"
  1057. #else
  1058. "uncacheable"
  1059. #endif
  1060. " in data cache\n");
  1061. if (icache_size)
  1062. seq_printf(m, "icache setup\t: %d Sub-banks/%d Ways, %d Lines/Way\n",
  1063. BFIN_ISUBBANKS, BFIN_IWAYS, BFIN_ILINES);
  1064. else
  1065. seq_printf(m, "icache setup\t: off\n");
  1066. seq_printf(m,
  1067. "dcache setup\t: %d Super-banks/%d Sub-banks/%d Ways, %d Lines/Way\n",
  1068. dsup_banks, BFIN_DSUBBANKS, BFIN_DWAYS,
  1069. BFIN_DLINES);
  1070. #ifdef __ARCH_SYNC_CORE_DCACHE
  1071. seq_printf(m, "SMP Dcache Flushes\t: %lu\n\n", cpudata->dcache_invld_count);
  1072. #endif
  1073. #ifdef __ARCH_SYNC_CORE_ICACHE
  1074. seq_printf(m, "SMP Icache Flushes\t: %lu\n\n", cpudata->icache_invld_count);
  1075. #endif
  1076. if (cpu_num != num_possible_cpus() - 1)
  1077. return 0;
  1078. if (L2_LENGTH) {
  1079. seq_printf(m, "L2 SRAM\t\t: %dKB\n", L2_LENGTH/0x400);
  1080. seq_printf(m, "L2 SRAM\t\t: "
  1081. #if defined(CONFIG_BFIN_L2_ICACHEABLE)
  1082. "cacheable"
  1083. #else
  1084. "uncacheable"
  1085. #endif
  1086. " in instruction cache\n");
  1087. seq_printf(m, "L2 SRAM\t\t: "
  1088. #if defined(CONFIG_BFIN_L2_WRITEBACK)
  1089. "cacheable (write-back)"
  1090. #elif defined(CONFIG_BFIN_L2_WRITETHROUGH)
  1091. "cacheable (write-through)"
  1092. #else
  1093. "uncacheable"
  1094. #endif
  1095. " in data cache\n");
  1096. }
  1097. seq_printf(m, "board name\t: %s\n", bfin_board_name);
  1098. seq_printf(m, "board memory\t: %ld kB (0x%p -> 0x%p)\n",
  1099. physical_mem_end >> 10, (void *)0, (void *)physical_mem_end);
  1100. seq_printf(m, "kernel memory\t: %d kB (0x%p -> 0x%p)\n",
  1101. ((int)memory_end - (int)_stext) >> 10,
  1102. _stext,
  1103. (void *)memory_end);
  1104. seq_printf(m, "\n");
  1105. return 0;
  1106. }
  1107. static void *c_start(struct seq_file *m, loff_t *pos)
  1108. {
  1109. if (*pos == 0)
  1110. *pos = first_cpu(cpu_online_map);
  1111. if (*pos >= num_online_cpus())
  1112. return NULL;
  1113. return pos;
  1114. }
  1115. static void *c_next(struct seq_file *m, void *v, loff_t *pos)
  1116. {
  1117. *pos = next_cpu(*pos, cpu_online_map);
  1118. return c_start(m, pos);
  1119. }
  1120. static void c_stop(struct seq_file *m, void *v)
  1121. {
  1122. }
  1123. const struct seq_operations cpuinfo_op = {
  1124. .start = c_start,
  1125. .next = c_next,
  1126. .stop = c_stop,
  1127. .show = show_cpuinfo,
  1128. };
  1129. void __init cmdline_init(const char *r0)
  1130. {
  1131. early_shadow_stamp();
  1132. if (r0)
  1133. strncpy(command_line, r0, COMMAND_LINE_SIZE);
  1134. }