prom_init.c 81 KB

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  1. /*
  2. * Procedures for interfacing to Open Firmware.
  3. *
  4. * Paul Mackerras August 1996.
  5. * Copyright (C) 1996-2005 Paul Mackerras.
  6. *
  7. * Adapted for 64bit PowerPC by Dave Engebretsen and Peter Bergner.
  8. * {engebret|bergner}@us.ibm.com
  9. *
  10. * This program is free software; you can redistribute it and/or
  11. * modify it under the terms of the GNU General Public License
  12. * as published by the Free Software Foundation; either version
  13. * 2 of the License, or (at your option) any later version.
  14. */
  15. #undef DEBUG_PROM
  16. #include <stdarg.h>
  17. #include <linux/kernel.h>
  18. #include <linux/string.h>
  19. #include <linux/init.h>
  20. #include <linux/threads.h>
  21. #include <linux/spinlock.h>
  22. #include <linux/types.h>
  23. #include <linux/pci.h>
  24. #include <linux/proc_fs.h>
  25. #include <linux/stringify.h>
  26. #include <linux/delay.h>
  27. #include <linux/initrd.h>
  28. #include <linux/bitops.h>
  29. #include <asm/prom.h>
  30. #include <asm/rtas.h>
  31. #include <asm/page.h>
  32. #include <asm/processor.h>
  33. #include <asm/irq.h>
  34. #include <asm/io.h>
  35. #include <asm/smp.h>
  36. #include <asm/mmu.h>
  37. #include <asm/pgtable.h>
  38. #include <asm/pci.h>
  39. #include <asm/iommu.h>
  40. #include <asm/btext.h>
  41. #include <asm/sections.h>
  42. #include <asm/machdep.h>
  43. #include <asm/opal.h>
  44. #include <linux/linux_logo.h>
  45. /*
  46. * Eventually bump that one up
  47. */
  48. #define DEVTREE_CHUNK_SIZE 0x100000
  49. /*
  50. * This is the size of the local memory reserve map that gets copied
  51. * into the boot params passed to the kernel. That size is totally
  52. * flexible as the kernel just reads the list until it encounters an
  53. * entry with size 0, so it can be changed without breaking binary
  54. * compatibility
  55. */
  56. #define MEM_RESERVE_MAP_SIZE 8
  57. /*
  58. * prom_init() is called very early on, before the kernel text
  59. * and data have been mapped to KERNELBASE. At this point the code
  60. * is running at whatever address it has been loaded at.
  61. * On ppc32 we compile with -mrelocatable, which means that references
  62. * to extern and static variables get relocated automatically.
  63. * On ppc64 we have to relocate the references explicitly with
  64. * RELOC. (Note that strings count as static variables.)
  65. *
  66. * Because OF may have mapped I/O devices into the area starting at
  67. * KERNELBASE, particularly on CHRP machines, we can't safely call
  68. * OF once the kernel has been mapped to KERNELBASE. Therefore all
  69. * OF calls must be done within prom_init().
  70. *
  71. * ADDR is used in calls to call_prom. The 4th and following
  72. * arguments to call_prom should be 32-bit values.
  73. * On ppc64, 64 bit values are truncated to 32 bits (and
  74. * fortunately don't get interpreted as two arguments).
  75. */
  76. #ifdef CONFIG_PPC64
  77. #define RELOC(x) (*PTRRELOC(&(x)))
  78. #define ADDR(x) (u32) add_reloc_offset((unsigned long)(x))
  79. #define OF_WORKAROUNDS 0
  80. #else
  81. #define RELOC(x) (x)
  82. #define ADDR(x) (u32) (x)
  83. #define OF_WORKAROUNDS of_workarounds
  84. int of_workarounds;
  85. #endif
  86. #define OF_WA_CLAIM 1 /* do phys/virt claim separately, then map */
  87. #define OF_WA_LONGTRAIL 2 /* work around longtrail bugs */
  88. #define PROM_BUG() do { \
  89. prom_printf("kernel BUG at %s line 0x%x!\n", \
  90. RELOC(__FILE__), __LINE__); \
  91. __asm__ __volatile__(".long " BUG_ILLEGAL_INSTR); \
  92. } while (0)
  93. #ifdef DEBUG_PROM
  94. #define prom_debug(x...) prom_printf(x)
  95. #else
  96. #define prom_debug(x...)
  97. #endif
  98. typedef u32 prom_arg_t;
  99. struct prom_args {
  100. u32 service;
  101. u32 nargs;
  102. u32 nret;
  103. prom_arg_t args[10];
  104. };
  105. struct prom_t {
  106. ihandle root;
  107. phandle chosen;
  108. int cpu;
  109. ihandle stdout;
  110. ihandle mmumap;
  111. ihandle memory;
  112. };
  113. struct mem_map_entry {
  114. u64 base;
  115. u64 size;
  116. };
  117. typedef u32 cell_t;
  118. extern void __start(unsigned long r3, unsigned long r4, unsigned long r5,
  119. unsigned long r6, unsigned long r7, unsigned long r8,
  120. unsigned long r9);
  121. #ifdef CONFIG_PPC64
  122. extern int enter_prom(struct prom_args *args, unsigned long entry);
  123. #else
  124. static inline int enter_prom(struct prom_args *args, unsigned long entry)
  125. {
  126. return ((int (*)(struct prom_args *))entry)(args);
  127. }
  128. #endif
  129. extern void copy_and_flush(unsigned long dest, unsigned long src,
  130. unsigned long size, unsigned long offset);
  131. /* prom structure */
  132. static struct prom_t __initdata prom;
  133. static unsigned long prom_entry __initdata;
  134. #define PROM_SCRATCH_SIZE 256
  135. static char __initdata of_stdout_device[256];
  136. static char __initdata prom_scratch[PROM_SCRATCH_SIZE];
  137. static unsigned long __initdata dt_header_start;
  138. static unsigned long __initdata dt_struct_start, dt_struct_end;
  139. static unsigned long __initdata dt_string_start, dt_string_end;
  140. static unsigned long __initdata prom_initrd_start, prom_initrd_end;
  141. #ifdef CONFIG_PPC64
  142. static int __initdata prom_iommu_force_on;
  143. static int __initdata prom_iommu_off;
  144. static unsigned long __initdata prom_tce_alloc_start;
  145. static unsigned long __initdata prom_tce_alloc_end;
  146. #endif
  147. /* Platforms codes are now obsolete in the kernel. Now only used within this
  148. * file and ultimately gone too. Feel free to change them if you need, they
  149. * are not shared with anything outside of this file anymore
  150. */
  151. #define PLATFORM_PSERIES 0x0100
  152. #define PLATFORM_PSERIES_LPAR 0x0101
  153. #define PLATFORM_LPAR 0x0001
  154. #define PLATFORM_POWERMAC 0x0400
  155. #define PLATFORM_GENERIC 0x0500
  156. #define PLATFORM_OPAL 0x0600
  157. static int __initdata of_platform;
  158. static char __initdata prom_cmd_line[COMMAND_LINE_SIZE];
  159. static unsigned long __initdata prom_memory_limit;
  160. static unsigned long __initdata alloc_top;
  161. static unsigned long __initdata alloc_top_high;
  162. static unsigned long __initdata alloc_bottom;
  163. static unsigned long __initdata rmo_top;
  164. static unsigned long __initdata ram_top;
  165. static struct mem_map_entry __initdata mem_reserve_map[MEM_RESERVE_MAP_SIZE];
  166. static int __initdata mem_reserve_cnt;
  167. static cell_t __initdata regbuf[1024];
  168. /*
  169. * Error results ... some OF calls will return "-1" on error, some
  170. * will return 0, some will return either. To simplify, here are
  171. * macros to use with any ihandle or phandle return value to check if
  172. * it is valid
  173. */
  174. #define PROM_ERROR (-1u)
  175. #define PHANDLE_VALID(p) ((p) != 0 && (p) != PROM_ERROR)
  176. #define IHANDLE_VALID(i) ((i) != 0 && (i) != PROM_ERROR)
  177. /* This is the one and *ONLY* place where we actually call open
  178. * firmware.
  179. */
  180. static int __init call_prom(const char *service, int nargs, int nret, ...)
  181. {
  182. int i;
  183. struct prom_args args;
  184. va_list list;
  185. args.service = ADDR(service);
  186. args.nargs = nargs;
  187. args.nret = nret;
  188. va_start(list, nret);
  189. for (i = 0; i < nargs; i++)
  190. args.args[i] = va_arg(list, prom_arg_t);
  191. va_end(list);
  192. for (i = 0; i < nret; i++)
  193. args.args[nargs+i] = 0;
  194. if (enter_prom(&args, RELOC(prom_entry)) < 0)
  195. return PROM_ERROR;
  196. return (nret > 0) ? args.args[nargs] : 0;
  197. }
  198. static int __init call_prom_ret(const char *service, int nargs, int nret,
  199. prom_arg_t *rets, ...)
  200. {
  201. int i;
  202. struct prom_args args;
  203. va_list list;
  204. args.service = ADDR(service);
  205. args.nargs = nargs;
  206. args.nret = nret;
  207. va_start(list, rets);
  208. for (i = 0; i < nargs; i++)
  209. args.args[i] = va_arg(list, prom_arg_t);
  210. va_end(list);
  211. for (i = 0; i < nret; i++)
  212. args.args[nargs+i] = 0;
  213. if (enter_prom(&args, RELOC(prom_entry)) < 0)
  214. return PROM_ERROR;
  215. if (rets != NULL)
  216. for (i = 1; i < nret; ++i)
  217. rets[i-1] = args.args[nargs+i];
  218. return (nret > 0) ? args.args[nargs] : 0;
  219. }
  220. static void __init prom_print(const char *msg)
  221. {
  222. const char *p, *q;
  223. struct prom_t *_prom = &RELOC(prom);
  224. if (_prom->stdout == 0)
  225. return;
  226. for (p = msg; *p != 0; p = q) {
  227. for (q = p; *q != 0 && *q != '\n'; ++q)
  228. ;
  229. if (q > p)
  230. call_prom("write", 3, 1, _prom->stdout, p, q - p);
  231. if (*q == 0)
  232. break;
  233. ++q;
  234. call_prom("write", 3, 1, _prom->stdout, ADDR("\r\n"), 2);
  235. }
  236. }
  237. static void __init prom_print_hex(unsigned long val)
  238. {
  239. int i, nibbles = sizeof(val)*2;
  240. char buf[sizeof(val)*2+1];
  241. struct prom_t *_prom = &RELOC(prom);
  242. for (i = nibbles-1; i >= 0; i--) {
  243. buf[i] = (val & 0xf) + '0';
  244. if (buf[i] > '9')
  245. buf[i] += ('a'-'0'-10);
  246. val >>= 4;
  247. }
  248. buf[nibbles] = '\0';
  249. call_prom("write", 3, 1, _prom->stdout, buf, nibbles);
  250. }
  251. /* max number of decimal digits in an unsigned long */
  252. #define UL_DIGITS 21
  253. static void __init prom_print_dec(unsigned long val)
  254. {
  255. int i, size;
  256. char buf[UL_DIGITS+1];
  257. struct prom_t *_prom = &RELOC(prom);
  258. for (i = UL_DIGITS-1; i >= 0; i--) {
  259. buf[i] = (val % 10) + '0';
  260. val = val/10;
  261. if (val == 0)
  262. break;
  263. }
  264. /* shift stuff down */
  265. size = UL_DIGITS - i;
  266. call_prom("write", 3, 1, _prom->stdout, buf+i, size);
  267. }
  268. static void __init prom_printf(const char *format, ...)
  269. {
  270. const char *p, *q, *s;
  271. va_list args;
  272. unsigned long v;
  273. long vs;
  274. struct prom_t *_prom = &RELOC(prom);
  275. va_start(args, format);
  276. #ifdef CONFIG_PPC64
  277. format = PTRRELOC(format);
  278. #endif
  279. for (p = format; *p != 0; p = q) {
  280. for (q = p; *q != 0 && *q != '\n' && *q != '%'; ++q)
  281. ;
  282. if (q > p)
  283. call_prom("write", 3, 1, _prom->stdout, p, q - p);
  284. if (*q == 0)
  285. break;
  286. if (*q == '\n') {
  287. ++q;
  288. call_prom("write", 3, 1, _prom->stdout,
  289. ADDR("\r\n"), 2);
  290. continue;
  291. }
  292. ++q;
  293. if (*q == 0)
  294. break;
  295. switch (*q) {
  296. case 's':
  297. ++q;
  298. s = va_arg(args, const char *);
  299. prom_print(s);
  300. break;
  301. case 'x':
  302. ++q;
  303. v = va_arg(args, unsigned long);
  304. prom_print_hex(v);
  305. break;
  306. case 'd':
  307. ++q;
  308. vs = va_arg(args, int);
  309. if (vs < 0) {
  310. prom_print(RELOC("-"));
  311. vs = -vs;
  312. }
  313. prom_print_dec(vs);
  314. break;
  315. case 'l':
  316. ++q;
  317. if (*q == 0)
  318. break;
  319. else if (*q == 'x') {
  320. ++q;
  321. v = va_arg(args, unsigned long);
  322. prom_print_hex(v);
  323. } else if (*q == 'u') { /* '%lu' */
  324. ++q;
  325. v = va_arg(args, unsigned long);
  326. prom_print_dec(v);
  327. } else if (*q == 'd') { /* %ld */
  328. ++q;
  329. vs = va_arg(args, long);
  330. if (vs < 0) {
  331. prom_print(RELOC("-"));
  332. vs = -vs;
  333. }
  334. prom_print_dec(vs);
  335. }
  336. break;
  337. }
  338. }
  339. }
  340. static unsigned int __init prom_claim(unsigned long virt, unsigned long size,
  341. unsigned long align)
  342. {
  343. struct prom_t *_prom = &RELOC(prom);
  344. if (align == 0 && (OF_WORKAROUNDS & OF_WA_CLAIM)) {
  345. /*
  346. * Old OF requires we claim physical and virtual separately
  347. * and then map explicitly (assuming virtual mode)
  348. */
  349. int ret;
  350. prom_arg_t result;
  351. ret = call_prom_ret("call-method", 5, 2, &result,
  352. ADDR("claim"), _prom->memory,
  353. align, size, virt);
  354. if (ret != 0 || result == -1)
  355. return -1;
  356. ret = call_prom_ret("call-method", 5, 2, &result,
  357. ADDR("claim"), _prom->mmumap,
  358. align, size, virt);
  359. if (ret != 0) {
  360. call_prom("call-method", 4, 1, ADDR("release"),
  361. _prom->memory, size, virt);
  362. return -1;
  363. }
  364. /* the 0x12 is M (coherence) + PP == read/write */
  365. call_prom("call-method", 6, 1,
  366. ADDR("map"), _prom->mmumap, 0x12, size, virt, virt);
  367. return virt;
  368. }
  369. return call_prom("claim", 3, 1, (prom_arg_t)virt, (prom_arg_t)size,
  370. (prom_arg_t)align);
  371. }
  372. static void __init __attribute__((noreturn)) prom_panic(const char *reason)
  373. {
  374. #ifdef CONFIG_PPC64
  375. reason = PTRRELOC(reason);
  376. #endif
  377. prom_print(reason);
  378. /* Do not call exit because it clears the screen on pmac
  379. * it also causes some sort of double-fault on early pmacs */
  380. if (RELOC(of_platform) == PLATFORM_POWERMAC)
  381. asm("trap\n");
  382. /* ToDo: should put up an SRC here on pSeries */
  383. call_prom("exit", 0, 0);
  384. for (;;) /* should never get here */
  385. ;
  386. }
  387. static int __init prom_next_node(phandle *nodep)
  388. {
  389. phandle node;
  390. if ((node = *nodep) != 0
  391. && (*nodep = call_prom("child", 1, 1, node)) != 0)
  392. return 1;
  393. if ((*nodep = call_prom("peer", 1, 1, node)) != 0)
  394. return 1;
  395. for (;;) {
  396. if ((node = call_prom("parent", 1, 1, node)) == 0)
  397. return 0;
  398. if ((*nodep = call_prom("peer", 1, 1, node)) != 0)
  399. return 1;
  400. }
  401. }
  402. static int inline prom_getprop(phandle node, const char *pname,
  403. void *value, size_t valuelen)
  404. {
  405. return call_prom("getprop", 4, 1, node, ADDR(pname),
  406. (u32)(unsigned long) value, (u32) valuelen);
  407. }
  408. static int inline prom_getproplen(phandle node, const char *pname)
  409. {
  410. return call_prom("getproplen", 2, 1, node, ADDR(pname));
  411. }
  412. static void add_string(char **str, const char *q)
  413. {
  414. char *p = *str;
  415. while (*q)
  416. *p++ = *q++;
  417. *p++ = ' ';
  418. *str = p;
  419. }
  420. static char *tohex(unsigned int x)
  421. {
  422. static char digits[] = "0123456789abcdef";
  423. static char result[9];
  424. int i;
  425. result[8] = 0;
  426. i = 8;
  427. do {
  428. --i;
  429. result[i] = digits[x & 0xf];
  430. x >>= 4;
  431. } while (x != 0 && i > 0);
  432. return &result[i];
  433. }
  434. static int __init prom_setprop(phandle node, const char *nodename,
  435. const char *pname, void *value, size_t valuelen)
  436. {
  437. char cmd[256], *p;
  438. if (!(OF_WORKAROUNDS & OF_WA_LONGTRAIL))
  439. return call_prom("setprop", 4, 1, node, ADDR(pname),
  440. (u32)(unsigned long) value, (u32) valuelen);
  441. /* gah... setprop doesn't work on longtrail, have to use interpret */
  442. p = cmd;
  443. add_string(&p, "dev");
  444. add_string(&p, nodename);
  445. add_string(&p, tohex((u32)(unsigned long) value));
  446. add_string(&p, tohex(valuelen));
  447. add_string(&p, tohex(ADDR(pname)));
  448. add_string(&p, tohex(strlen(RELOC(pname))));
  449. add_string(&p, "property");
  450. *p = 0;
  451. return call_prom("interpret", 1, 1, (u32)(unsigned long) cmd);
  452. }
  453. /* We can't use the standard versions because of RELOC headaches. */
  454. #define isxdigit(c) (('0' <= (c) && (c) <= '9') \
  455. || ('a' <= (c) && (c) <= 'f') \
  456. || ('A' <= (c) && (c) <= 'F'))
  457. #define isdigit(c) ('0' <= (c) && (c) <= '9')
  458. #define islower(c) ('a' <= (c) && (c) <= 'z')
  459. #define toupper(c) (islower(c) ? ((c) - 'a' + 'A') : (c))
  460. unsigned long prom_strtoul(const char *cp, const char **endp)
  461. {
  462. unsigned long result = 0, base = 10, value;
  463. if (*cp == '0') {
  464. base = 8;
  465. cp++;
  466. if (toupper(*cp) == 'X') {
  467. cp++;
  468. base = 16;
  469. }
  470. }
  471. while (isxdigit(*cp) &&
  472. (value = isdigit(*cp) ? *cp - '0' : toupper(*cp) - 'A' + 10) < base) {
  473. result = result * base + value;
  474. cp++;
  475. }
  476. if (endp)
  477. *endp = cp;
  478. return result;
  479. }
  480. unsigned long prom_memparse(const char *ptr, const char **retptr)
  481. {
  482. unsigned long ret = prom_strtoul(ptr, retptr);
  483. int shift = 0;
  484. /*
  485. * We can't use a switch here because GCC *may* generate a
  486. * jump table which won't work, because we're not running at
  487. * the address we're linked at.
  488. */
  489. if ('G' == **retptr || 'g' == **retptr)
  490. shift = 30;
  491. if ('M' == **retptr || 'm' == **retptr)
  492. shift = 20;
  493. if ('K' == **retptr || 'k' == **retptr)
  494. shift = 10;
  495. if (shift) {
  496. ret <<= shift;
  497. (*retptr)++;
  498. }
  499. return ret;
  500. }
  501. /*
  502. * Early parsing of the command line passed to the kernel, used for
  503. * "mem=x" and the options that affect the iommu
  504. */
  505. static void __init early_cmdline_parse(void)
  506. {
  507. struct prom_t *_prom = &RELOC(prom);
  508. const char *opt;
  509. char *p;
  510. int l = 0;
  511. RELOC(prom_cmd_line[0]) = 0;
  512. p = RELOC(prom_cmd_line);
  513. if ((long)_prom->chosen > 0)
  514. l = prom_getprop(_prom->chosen, "bootargs", p, COMMAND_LINE_SIZE-1);
  515. #ifdef CONFIG_CMDLINE
  516. if (l <= 0 || p[0] == '\0') /* dbl check */
  517. strlcpy(RELOC(prom_cmd_line),
  518. RELOC(CONFIG_CMDLINE), sizeof(prom_cmd_line));
  519. #endif /* CONFIG_CMDLINE */
  520. prom_printf("command line: %s\n", RELOC(prom_cmd_line));
  521. #ifdef CONFIG_PPC64
  522. opt = strstr(RELOC(prom_cmd_line), RELOC("iommu="));
  523. if (opt) {
  524. prom_printf("iommu opt is: %s\n", opt);
  525. opt += 6;
  526. while (*opt && *opt == ' ')
  527. opt++;
  528. if (!strncmp(opt, RELOC("off"), 3))
  529. RELOC(prom_iommu_off) = 1;
  530. else if (!strncmp(opt, RELOC("force"), 5))
  531. RELOC(prom_iommu_force_on) = 1;
  532. }
  533. #endif
  534. opt = strstr(RELOC(prom_cmd_line), RELOC("mem="));
  535. if (opt) {
  536. opt += 4;
  537. RELOC(prom_memory_limit) = prom_memparse(opt, (const char **)&opt);
  538. #ifdef CONFIG_PPC64
  539. /* Align to 16 MB == size of ppc64 large page */
  540. RELOC(prom_memory_limit) = ALIGN(RELOC(prom_memory_limit), 0x1000000);
  541. #endif
  542. }
  543. }
  544. #if defined(CONFIG_PPC_PSERIES) || defined(CONFIG_PPC_POWERNV)
  545. /*
  546. * There are two methods for telling firmware what our capabilities are.
  547. * Newer machines have an "ibm,client-architecture-support" method on the
  548. * root node. For older machines, we have to call the "process-elf-header"
  549. * method in the /packages/elf-loader node, passing it a fake 32-bit
  550. * ELF header containing a couple of PT_NOTE sections that contain
  551. * structures that contain various information.
  552. */
  553. /*
  554. * New method - extensible architecture description vector.
  555. *
  556. * Because the description vector contains a mix of byte and word
  557. * values, we declare it as an unsigned char array, and use this
  558. * macro to put word values in.
  559. */
  560. #define W(x) ((x) >> 24) & 0xff, ((x) >> 16) & 0xff, \
  561. ((x) >> 8) & 0xff, (x) & 0xff
  562. /* Option vector bits - generic bits in byte 1 */
  563. #define OV_IGNORE 0x80 /* ignore this vector */
  564. #define OV_CESSATION_POLICY 0x40 /* halt if unsupported option present*/
  565. /* Option vector 1: processor architectures supported */
  566. #define OV1_PPC_2_00 0x80 /* set if we support PowerPC 2.00 */
  567. #define OV1_PPC_2_01 0x40 /* set if we support PowerPC 2.01 */
  568. #define OV1_PPC_2_02 0x20 /* set if we support PowerPC 2.02 */
  569. #define OV1_PPC_2_03 0x10 /* set if we support PowerPC 2.03 */
  570. #define OV1_PPC_2_04 0x08 /* set if we support PowerPC 2.04 */
  571. #define OV1_PPC_2_05 0x04 /* set if we support PowerPC 2.05 */
  572. #define OV1_PPC_2_06 0x02 /* set if we support PowerPC 2.06 */
  573. /* Option vector 2: Open Firmware options supported */
  574. #define OV2_REAL_MODE 0x20 /* set if we want OF in real mode */
  575. /* Option vector 3: processor options supported */
  576. #define OV3_FP 0x80 /* floating point */
  577. #define OV3_VMX 0x40 /* VMX/Altivec */
  578. #define OV3_DFP 0x20 /* decimal FP */
  579. /* Option vector 4: IBM PAPR implementation */
  580. #define OV4_MIN_ENT_CAP 0x01 /* minimum VP entitled capacity */
  581. /* Option vector 5: PAPR/OF options supported */
  582. #define OV5_LPAR 0x80 /* logical partitioning supported */
  583. #define OV5_SPLPAR 0x40 /* shared-processor LPAR supported */
  584. /* ibm,dynamic-reconfiguration-memory property supported */
  585. #define OV5_DRCONF_MEMORY 0x20
  586. #define OV5_LARGE_PAGES 0x10 /* large pages supported */
  587. #define OV5_DONATE_DEDICATE_CPU 0x02 /* donate dedicated CPU support */
  588. /* PCIe/MSI support. Without MSI full PCIe is not supported */
  589. #ifdef CONFIG_PCI_MSI
  590. #define OV5_MSI 0x01 /* PCIe/MSI support */
  591. #else
  592. #define OV5_MSI 0x00
  593. #endif /* CONFIG_PCI_MSI */
  594. #ifdef CONFIG_PPC_SMLPAR
  595. #define OV5_CMO 0x80 /* Cooperative Memory Overcommitment */
  596. #define OV5_XCMO 0x40 /* Page Coalescing */
  597. #else
  598. #define OV5_CMO 0x00
  599. #define OV5_XCMO 0x00
  600. #endif
  601. #define OV5_TYPE1_AFFINITY 0x80 /* Type 1 NUMA affinity */
  602. #define OV5_PFO_HW_RNG 0x80 /* PFO Random Number Generator */
  603. /* Option Vector 6: IBM PAPR hints */
  604. #define OV6_LINUX 0x02 /* Linux is our OS */
  605. /*
  606. * The architecture vector has an array of PVR mask/value pairs,
  607. * followed by # option vectors - 1, followed by the option vectors.
  608. */
  609. static unsigned char ibm_architecture_vec[] = {
  610. W(0xfffe0000), W(0x003a0000), /* POWER5/POWER5+ */
  611. W(0xffff0000), W(0x003e0000), /* POWER6 */
  612. W(0xffff0000), W(0x003f0000), /* POWER7 */
  613. W(0xffffffff), W(0x0f000003), /* all 2.06-compliant */
  614. W(0xffffffff), W(0x0f000002), /* all 2.05-compliant */
  615. W(0xfffffffe), W(0x0f000001), /* all 2.04-compliant and earlier */
  616. 6 - 1, /* 6 option vectors */
  617. /* option vector 1: processor architectures supported */
  618. 3 - 2, /* length */
  619. 0, /* don't ignore, don't halt */
  620. OV1_PPC_2_00 | OV1_PPC_2_01 | OV1_PPC_2_02 | OV1_PPC_2_03 |
  621. OV1_PPC_2_04 | OV1_PPC_2_05 | OV1_PPC_2_06,
  622. /* option vector 2: Open Firmware options supported */
  623. 34 - 2, /* length */
  624. OV2_REAL_MODE,
  625. 0, 0,
  626. W(0xffffffff), /* real_base */
  627. W(0xffffffff), /* real_size */
  628. W(0xffffffff), /* virt_base */
  629. W(0xffffffff), /* virt_size */
  630. W(0xffffffff), /* load_base */
  631. W(256), /* 256MB min RMA */
  632. W(0xffffffff), /* full client load */
  633. 0, /* min RMA percentage of total RAM */
  634. 48, /* max log_2(hash table size) */
  635. /* option vector 3: processor options supported */
  636. 3 - 2, /* length */
  637. 0, /* don't ignore, don't halt */
  638. OV3_FP | OV3_VMX | OV3_DFP,
  639. /* option vector 4: IBM PAPR implementation */
  640. 3 - 2, /* length */
  641. 0, /* don't halt */
  642. OV4_MIN_ENT_CAP, /* minimum VP entitled capacity */
  643. /* option vector 5: PAPR/OF options */
  644. 18 - 2, /* length */
  645. 0, /* don't ignore, don't halt */
  646. OV5_LPAR | OV5_SPLPAR | OV5_LARGE_PAGES | OV5_DRCONF_MEMORY |
  647. OV5_DONATE_DEDICATE_CPU | OV5_MSI,
  648. 0,
  649. OV5_CMO | OV5_XCMO,
  650. OV5_TYPE1_AFFINITY,
  651. 0,
  652. 0,
  653. 0,
  654. /* WARNING: The offset of the "number of cores" field below
  655. * must match by the macro below. Update the definition if
  656. * the structure layout changes.
  657. */
  658. #define IBM_ARCH_VEC_NRCORES_OFFSET 101
  659. W(NR_CPUS), /* number of cores supported */
  660. 0,
  661. 0,
  662. 0,
  663. 0,
  664. OV5_PFO_HW_RNG,
  665. /* option vector 6: IBM PAPR hints */
  666. 4 - 2, /* length */
  667. 0,
  668. 0,
  669. OV6_LINUX,
  670. };
  671. /* Old method - ELF header with PT_NOTE sections */
  672. static struct fake_elf {
  673. Elf32_Ehdr elfhdr;
  674. Elf32_Phdr phdr[2];
  675. struct chrpnote {
  676. u32 namesz;
  677. u32 descsz;
  678. u32 type;
  679. char name[8]; /* "PowerPC" */
  680. struct chrpdesc {
  681. u32 real_mode;
  682. u32 real_base;
  683. u32 real_size;
  684. u32 virt_base;
  685. u32 virt_size;
  686. u32 load_base;
  687. } chrpdesc;
  688. } chrpnote;
  689. struct rpanote {
  690. u32 namesz;
  691. u32 descsz;
  692. u32 type;
  693. char name[24]; /* "IBM,RPA-Client-Config" */
  694. struct rpadesc {
  695. u32 lpar_affinity;
  696. u32 min_rmo_size;
  697. u32 min_rmo_percent;
  698. u32 max_pft_size;
  699. u32 splpar;
  700. u32 min_load;
  701. u32 new_mem_def;
  702. u32 ignore_me;
  703. } rpadesc;
  704. } rpanote;
  705. } fake_elf = {
  706. .elfhdr = {
  707. .e_ident = { 0x7f, 'E', 'L', 'F',
  708. ELFCLASS32, ELFDATA2MSB, EV_CURRENT },
  709. .e_type = ET_EXEC, /* yeah right */
  710. .e_machine = EM_PPC,
  711. .e_version = EV_CURRENT,
  712. .e_phoff = offsetof(struct fake_elf, phdr),
  713. .e_phentsize = sizeof(Elf32_Phdr),
  714. .e_phnum = 2
  715. },
  716. .phdr = {
  717. [0] = {
  718. .p_type = PT_NOTE,
  719. .p_offset = offsetof(struct fake_elf, chrpnote),
  720. .p_filesz = sizeof(struct chrpnote)
  721. }, [1] = {
  722. .p_type = PT_NOTE,
  723. .p_offset = offsetof(struct fake_elf, rpanote),
  724. .p_filesz = sizeof(struct rpanote)
  725. }
  726. },
  727. .chrpnote = {
  728. .namesz = sizeof("PowerPC"),
  729. .descsz = sizeof(struct chrpdesc),
  730. .type = 0x1275,
  731. .name = "PowerPC",
  732. .chrpdesc = {
  733. .real_mode = ~0U, /* ~0 means "don't care" */
  734. .real_base = ~0U,
  735. .real_size = ~0U,
  736. .virt_base = ~0U,
  737. .virt_size = ~0U,
  738. .load_base = ~0U
  739. },
  740. },
  741. .rpanote = {
  742. .namesz = sizeof("IBM,RPA-Client-Config"),
  743. .descsz = sizeof(struct rpadesc),
  744. .type = 0x12759999,
  745. .name = "IBM,RPA-Client-Config",
  746. .rpadesc = {
  747. .lpar_affinity = 0,
  748. .min_rmo_size = 64, /* in megabytes */
  749. .min_rmo_percent = 0,
  750. .max_pft_size = 48, /* 2^48 bytes max PFT size */
  751. .splpar = 1,
  752. .min_load = ~0U,
  753. .new_mem_def = 0
  754. }
  755. }
  756. };
  757. static int __init prom_count_smt_threads(void)
  758. {
  759. phandle node;
  760. char type[64];
  761. unsigned int plen;
  762. /* Pick up th first CPU node we can find */
  763. for (node = 0; prom_next_node(&node); ) {
  764. type[0] = 0;
  765. prom_getprop(node, "device_type", type, sizeof(type));
  766. if (strcmp(type, RELOC("cpu")))
  767. continue;
  768. /*
  769. * There is an entry for each smt thread, each entry being
  770. * 4 bytes long. All cpus should have the same number of
  771. * smt threads, so return after finding the first.
  772. */
  773. plen = prom_getproplen(node, "ibm,ppc-interrupt-server#s");
  774. if (plen == PROM_ERROR)
  775. break;
  776. plen >>= 2;
  777. prom_debug("Found %lu smt threads per core\n", (unsigned long)plen);
  778. /* Sanity check */
  779. if (plen < 1 || plen > 64) {
  780. prom_printf("Threads per core %lu out of bounds, assuming 1\n",
  781. (unsigned long)plen);
  782. return 1;
  783. }
  784. return plen;
  785. }
  786. prom_debug("No threads found, assuming 1 per core\n");
  787. return 1;
  788. }
  789. static void __init prom_send_capabilities(void)
  790. {
  791. ihandle elfloader, root;
  792. prom_arg_t ret;
  793. u32 *cores;
  794. root = call_prom("open", 1, 1, ADDR("/"));
  795. if (root != 0) {
  796. /* We need to tell the FW about the number of cores we support.
  797. *
  798. * To do that, we count the number of threads on the first core
  799. * (we assume this is the same for all cores) and use it to
  800. * divide NR_CPUS.
  801. */
  802. cores = (u32 *)PTRRELOC(&ibm_architecture_vec[IBM_ARCH_VEC_NRCORES_OFFSET]);
  803. if (*cores != NR_CPUS) {
  804. prom_printf("WARNING ! "
  805. "ibm_architecture_vec structure inconsistent: %lu!\n",
  806. *cores);
  807. } else {
  808. *cores = DIV_ROUND_UP(NR_CPUS, prom_count_smt_threads());
  809. prom_printf("Max number of cores passed to firmware: %lu (NR_CPUS = %lu)\n",
  810. *cores, NR_CPUS);
  811. }
  812. /* try calling the ibm,client-architecture-support method */
  813. prom_printf("Calling ibm,client-architecture-support...");
  814. if (call_prom_ret("call-method", 3, 2, &ret,
  815. ADDR("ibm,client-architecture-support"),
  816. root,
  817. ADDR(ibm_architecture_vec)) == 0) {
  818. /* the call exists... */
  819. if (ret)
  820. prom_printf("\nWARNING: ibm,client-architecture"
  821. "-support call FAILED!\n");
  822. call_prom("close", 1, 0, root);
  823. prom_printf(" done\n");
  824. return;
  825. }
  826. call_prom("close", 1, 0, root);
  827. prom_printf(" not implemented\n");
  828. }
  829. /* no ibm,client-architecture-support call, try the old way */
  830. elfloader = call_prom("open", 1, 1, ADDR("/packages/elf-loader"));
  831. if (elfloader == 0) {
  832. prom_printf("couldn't open /packages/elf-loader\n");
  833. return;
  834. }
  835. call_prom("call-method", 3, 1, ADDR("process-elf-header"),
  836. elfloader, ADDR(&fake_elf));
  837. call_prom("close", 1, 0, elfloader);
  838. }
  839. #endif
  840. /*
  841. * Memory allocation strategy... our layout is normally:
  842. *
  843. * at 14Mb or more we have vmlinux, then a gap and initrd. In some
  844. * rare cases, initrd might end up being before the kernel though.
  845. * We assume this won't override the final kernel at 0, we have no
  846. * provision to handle that in this version, but it should hopefully
  847. * never happen.
  848. *
  849. * alloc_top is set to the top of RMO, eventually shrink down if the
  850. * TCEs overlap
  851. *
  852. * alloc_bottom is set to the top of kernel/initrd
  853. *
  854. * from there, allocations are done this way : rtas is allocated
  855. * topmost, and the device-tree is allocated from the bottom. We try
  856. * to grow the device-tree allocation as we progress. If we can't,
  857. * then we fail, we don't currently have a facility to restart
  858. * elsewhere, but that shouldn't be necessary.
  859. *
  860. * Note that calls to reserve_mem have to be done explicitly, memory
  861. * allocated with either alloc_up or alloc_down isn't automatically
  862. * reserved.
  863. */
  864. /*
  865. * Allocates memory in the RMO upward from the kernel/initrd
  866. *
  867. * When align is 0, this is a special case, it means to allocate in place
  868. * at the current location of alloc_bottom or fail (that is basically
  869. * extending the previous allocation). Used for the device-tree flattening
  870. */
  871. static unsigned long __init alloc_up(unsigned long size, unsigned long align)
  872. {
  873. unsigned long base = RELOC(alloc_bottom);
  874. unsigned long addr = 0;
  875. if (align)
  876. base = _ALIGN_UP(base, align);
  877. prom_debug("alloc_up(%x, %x)\n", size, align);
  878. if (RELOC(ram_top) == 0)
  879. prom_panic("alloc_up() called with mem not initialized\n");
  880. if (align)
  881. base = _ALIGN_UP(RELOC(alloc_bottom), align);
  882. else
  883. base = RELOC(alloc_bottom);
  884. for(; (base + size) <= RELOC(alloc_top);
  885. base = _ALIGN_UP(base + 0x100000, align)) {
  886. prom_debug(" trying: 0x%x\n\r", base);
  887. addr = (unsigned long)prom_claim(base, size, 0);
  888. if (addr != PROM_ERROR && addr != 0)
  889. break;
  890. addr = 0;
  891. if (align == 0)
  892. break;
  893. }
  894. if (addr == 0)
  895. return 0;
  896. RELOC(alloc_bottom) = addr + size;
  897. prom_debug(" -> %x\n", addr);
  898. prom_debug(" alloc_bottom : %x\n", RELOC(alloc_bottom));
  899. prom_debug(" alloc_top : %x\n", RELOC(alloc_top));
  900. prom_debug(" alloc_top_hi : %x\n", RELOC(alloc_top_high));
  901. prom_debug(" rmo_top : %x\n", RELOC(rmo_top));
  902. prom_debug(" ram_top : %x\n", RELOC(ram_top));
  903. return addr;
  904. }
  905. /*
  906. * Allocates memory downward, either from top of RMO, or if highmem
  907. * is set, from the top of RAM. Note that this one doesn't handle
  908. * failures. It does claim memory if highmem is not set.
  909. */
  910. static unsigned long __init alloc_down(unsigned long size, unsigned long align,
  911. int highmem)
  912. {
  913. unsigned long base, addr = 0;
  914. prom_debug("alloc_down(%x, %x, %s)\n", size, align,
  915. highmem ? RELOC("(high)") : RELOC("(low)"));
  916. if (RELOC(ram_top) == 0)
  917. prom_panic("alloc_down() called with mem not initialized\n");
  918. if (highmem) {
  919. /* Carve out storage for the TCE table. */
  920. addr = _ALIGN_DOWN(RELOC(alloc_top_high) - size, align);
  921. if (addr <= RELOC(alloc_bottom))
  922. return 0;
  923. /* Will we bump into the RMO ? If yes, check out that we
  924. * didn't overlap existing allocations there, if we did,
  925. * we are dead, we must be the first in town !
  926. */
  927. if (addr < RELOC(rmo_top)) {
  928. /* Good, we are first */
  929. if (RELOC(alloc_top) == RELOC(rmo_top))
  930. RELOC(alloc_top) = RELOC(rmo_top) = addr;
  931. else
  932. return 0;
  933. }
  934. RELOC(alloc_top_high) = addr;
  935. goto bail;
  936. }
  937. base = _ALIGN_DOWN(RELOC(alloc_top) - size, align);
  938. for (; base > RELOC(alloc_bottom);
  939. base = _ALIGN_DOWN(base - 0x100000, align)) {
  940. prom_debug(" trying: 0x%x\n\r", base);
  941. addr = (unsigned long)prom_claim(base, size, 0);
  942. if (addr != PROM_ERROR && addr != 0)
  943. break;
  944. addr = 0;
  945. }
  946. if (addr == 0)
  947. return 0;
  948. RELOC(alloc_top) = addr;
  949. bail:
  950. prom_debug(" -> %x\n", addr);
  951. prom_debug(" alloc_bottom : %x\n", RELOC(alloc_bottom));
  952. prom_debug(" alloc_top : %x\n", RELOC(alloc_top));
  953. prom_debug(" alloc_top_hi : %x\n", RELOC(alloc_top_high));
  954. prom_debug(" rmo_top : %x\n", RELOC(rmo_top));
  955. prom_debug(" ram_top : %x\n", RELOC(ram_top));
  956. return addr;
  957. }
  958. /*
  959. * Parse a "reg" cell
  960. */
  961. static unsigned long __init prom_next_cell(int s, cell_t **cellp)
  962. {
  963. cell_t *p = *cellp;
  964. unsigned long r = 0;
  965. /* Ignore more than 2 cells */
  966. while (s > sizeof(unsigned long) / 4) {
  967. p++;
  968. s--;
  969. }
  970. r = *p++;
  971. #ifdef CONFIG_PPC64
  972. if (s > 1) {
  973. r <<= 32;
  974. r |= *(p++);
  975. }
  976. #endif
  977. *cellp = p;
  978. return r;
  979. }
  980. /*
  981. * Very dumb function for adding to the memory reserve list, but
  982. * we don't need anything smarter at this point
  983. *
  984. * XXX Eventually check for collisions. They should NEVER happen.
  985. * If problems seem to show up, it would be a good start to track
  986. * them down.
  987. */
  988. static void __init reserve_mem(u64 base, u64 size)
  989. {
  990. u64 top = base + size;
  991. unsigned long cnt = RELOC(mem_reserve_cnt);
  992. if (size == 0)
  993. return;
  994. /* We need to always keep one empty entry so that we
  995. * have our terminator with "size" set to 0 since we are
  996. * dumb and just copy this entire array to the boot params
  997. */
  998. base = _ALIGN_DOWN(base, PAGE_SIZE);
  999. top = _ALIGN_UP(top, PAGE_SIZE);
  1000. size = top - base;
  1001. if (cnt >= (MEM_RESERVE_MAP_SIZE - 1))
  1002. prom_panic("Memory reserve map exhausted !\n");
  1003. RELOC(mem_reserve_map)[cnt].base = base;
  1004. RELOC(mem_reserve_map)[cnt].size = size;
  1005. RELOC(mem_reserve_cnt) = cnt + 1;
  1006. }
  1007. /*
  1008. * Initialize memory allocation mechanism, parse "memory" nodes and
  1009. * obtain that way the top of memory and RMO to setup out local allocator
  1010. */
  1011. static void __init prom_init_mem(void)
  1012. {
  1013. phandle node;
  1014. char *path, type[64];
  1015. unsigned int plen;
  1016. cell_t *p, *endp;
  1017. struct prom_t *_prom = &RELOC(prom);
  1018. u32 rac, rsc;
  1019. /*
  1020. * We iterate the memory nodes to find
  1021. * 1) top of RMO (first node)
  1022. * 2) top of memory
  1023. */
  1024. rac = 2;
  1025. prom_getprop(_prom->root, "#address-cells", &rac, sizeof(rac));
  1026. rsc = 1;
  1027. prom_getprop(_prom->root, "#size-cells", &rsc, sizeof(rsc));
  1028. prom_debug("root_addr_cells: %x\n", (unsigned long) rac);
  1029. prom_debug("root_size_cells: %x\n", (unsigned long) rsc);
  1030. prom_debug("scanning memory:\n");
  1031. path = RELOC(prom_scratch);
  1032. for (node = 0; prom_next_node(&node); ) {
  1033. type[0] = 0;
  1034. prom_getprop(node, "device_type", type, sizeof(type));
  1035. if (type[0] == 0) {
  1036. /*
  1037. * CHRP Longtrail machines have no device_type
  1038. * on the memory node, so check the name instead...
  1039. */
  1040. prom_getprop(node, "name", type, sizeof(type));
  1041. }
  1042. if (strcmp(type, RELOC("memory")))
  1043. continue;
  1044. plen = prom_getprop(node, "reg", RELOC(regbuf), sizeof(regbuf));
  1045. if (plen > sizeof(regbuf)) {
  1046. prom_printf("memory node too large for buffer !\n");
  1047. plen = sizeof(regbuf);
  1048. }
  1049. p = RELOC(regbuf);
  1050. endp = p + (plen / sizeof(cell_t));
  1051. #ifdef DEBUG_PROM
  1052. memset(path, 0, PROM_SCRATCH_SIZE);
  1053. call_prom("package-to-path", 3, 1, node, path, PROM_SCRATCH_SIZE-1);
  1054. prom_debug(" node %s :\n", path);
  1055. #endif /* DEBUG_PROM */
  1056. while ((endp - p) >= (rac + rsc)) {
  1057. unsigned long base, size;
  1058. base = prom_next_cell(rac, &p);
  1059. size = prom_next_cell(rsc, &p);
  1060. if (size == 0)
  1061. continue;
  1062. prom_debug(" %x %x\n", base, size);
  1063. if (base == 0 && (RELOC(of_platform) & PLATFORM_LPAR))
  1064. RELOC(rmo_top) = size;
  1065. if ((base + size) > RELOC(ram_top))
  1066. RELOC(ram_top) = base + size;
  1067. }
  1068. }
  1069. RELOC(alloc_bottom) = PAGE_ALIGN((unsigned long)&RELOC(_end) + 0x4000);
  1070. /*
  1071. * If prom_memory_limit is set we reduce the upper limits *except* for
  1072. * alloc_top_high. This must be the real top of RAM so we can put
  1073. * TCE's up there.
  1074. */
  1075. RELOC(alloc_top_high) = RELOC(ram_top);
  1076. if (RELOC(prom_memory_limit)) {
  1077. if (RELOC(prom_memory_limit) <= RELOC(alloc_bottom)) {
  1078. prom_printf("Ignoring mem=%x <= alloc_bottom.\n",
  1079. RELOC(prom_memory_limit));
  1080. RELOC(prom_memory_limit) = 0;
  1081. } else if (RELOC(prom_memory_limit) >= RELOC(ram_top)) {
  1082. prom_printf("Ignoring mem=%x >= ram_top.\n",
  1083. RELOC(prom_memory_limit));
  1084. RELOC(prom_memory_limit) = 0;
  1085. } else {
  1086. RELOC(ram_top) = RELOC(prom_memory_limit);
  1087. RELOC(rmo_top) = min(RELOC(rmo_top), RELOC(prom_memory_limit));
  1088. }
  1089. }
  1090. /*
  1091. * Setup our top alloc point, that is top of RMO or top of
  1092. * segment 0 when running non-LPAR.
  1093. * Some RS64 machines have buggy firmware where claims up at
  1094. * 1GB fail. Cap at 768MB as a workaround.
  1095. * Since 768MB is plenty of room, and we need to cap to something
  1096. * reasonable on 32-bit, cap at 768MB on all machines.
  1097. */
  1098. if (!RELOC(rmo_top))
  1099. RELOC(rmo_top) = RELOC(ram_top);
  1100. RELOC(rmo_top) = min(0x30000000ul, RELOC(rmo_top));
  1101. RELOC(alloc_top) = RELOC(rmo_top);
  1102. RELOC(alloc_top_high) = RELOC(ram_top);
  1103. /*
  1104. * Check if we have an initrd after the kernel but still inside
  1105. * the RMO. If we do move our bottom point to after it.
  1106. */
  1107. if (RELOC(prom_initrd_start) &&
  1108. RELOC(prom_initrd_start) < RELOC(rmo_top) &&
  1109. RELOC(prom_initrd_end) > RELOC(alloc_bottom))
  1110. RELOC(alloc_bottom) = PAGE_ALIGN(RELOC(prom_initrd_end));
  1111. prom_printf("memory layout at init:\n");
  1112. prom_printf(" memory_limit : %x (16 MB aligned)\n", RELOC(prom_memory_limit));
  1113. prom_printf(" alloc_bottom : %x\n", RELOC(alloc_bottom));
  1114. prom_printf(" alloc_top : %x\n", RELOC(alloc_top));
  1115. prom_printf(" alloc_top_hi : %x\n", RELOC(alloc_top_high));
  1116. prom_printf(" rmo_top : %x\n", RELOC(rmo_top));
  1117. prom_printf(" ram_top : %x\n", RELOC(ram_top));
  1118. }
  1119. static void __init prom_close_stdin(void)
  1120. {
  1121. struct prom_t *_prom = &RELOC(prom);
  1122. ihandle val;
  1123. if (prom_getprop(_prom->chosen, "stdin", &val, sizeof(val)) > 0)
  1124. call_prom("close", 1, 0, val);
  1125. }
  1126. #ifdef CONFIG_PPC_POWERNV
  1127. static u64 __initdata prom_opal_size;
  1128. static u64 __initdata prom_opal_align;
  1129. static int __initdata prom_rtas_start_cpu;
  1130. static u64 __initdata prom_rtas_data;
  1131. static u64 __initdata prom_rtas_entry;
  1132. #ifdef CONFIG_PPC_EARLY_DEBUG_OPAL
  1133. static u64 __initdata prom_opal_base;
  1134. static u64 __initdata prom_opal_entry;
  1135. #endif
  1136. /* XXX Don't change this structure without updating opal-takeover.S */
  1137. static struct opal_secondary_data {
  1138. s64 ack; /* 0 */
  1139. u64 go; /* 8 */
  1140. struct opal_takeover_args args; /* 16 */
  1141. } opal_secondary_data;
  1142. extern char opal_secondary_entry;
  1143. static void prom_query_opal(void)
  1144. {
  1145. long rc;
  1146. /* We must not query for OPAL presence on a machine that
  1147. * supports TNK takeover (970 blades), as this uses the same
  1148. * h-call with different arguments and will crash
  1149. */
  1150. if (PHANDLE_VALID(call_prom("finddevice", 1, 1,
  1151. ADDR("/tnk-memory-map")))) {
  1152. prom_printf("TNK takeover detected, skipping OPAL check\n");
  1153. return;
  1154. }
  1155. prom_printf("Querying for OPAL presence... ");
  1156. rc = opal_query_takeover(&RELOC(prom_opal_size),
  1157. &RELOC(prom_opal_align));
  1158. prom_debug("(rc = %ld) ", rc);
  1159. if (rc != 0) {
  1160. prom_printf("not there.\n");
  1161. return;
  1162. }
  1163. RELOC(of_platform) = PLATFORM_OPAL;
  1164. prom_printf(" there !\n");
  1165. prom_debug(" opal_size = 0x%lx\n", RELOC(prom_opal_size));
  1166. prom_debug(" opal_align = 0x%lx\n", RELOC(prom_opal_align));
  1167. if (RELOC(prom_opal_align) < 0x10000)
  1168. RELOC(prom_opal_align) = 0x10000;
  1169. }
  1170. static int prom_rtas_call(int token, int nargs, int nret, int *outputs, ...)
  1171. {
  1172. struct rtas_args rtas_args;
  1173. va_list list;
  1174. int i;
  1175. rtas_args.token = token;
  1176. rtas_args.nargs = nargs;
  1177. rtas_args.nret = nret;
  1178. rtas_args.rets = (rtas_arg_t *)&(rtas_args.args[nargs]);
  1179. va_start(list, outputs);
  1180. for (i = 0; i < nargs; ++i)
  1181. rtas_args.args[i] = va_arg(list, rtas_arg_t);
  1182. va_end(list);
  1183. for (i = 0; i < nret; ++i)
  1184. rtas_args.rets[i] = 0;
  1185. opal_enter_rtas(&rtas_args, RELOC(prom_rtas_data),
  1186. RELOC(prom_rtas_entry));
  1187. if (nret > 1 && outputs != NULL)
  1188. for (i = 0; i < nret-1; ++i)
  1189. outputs[i] = rtas_args.rets[i+1];
  1190. return (nret > 0)? rtas_args.rets[0]: 0;
  1191. }
  1192. static void __init prom_opal_hold_cpus(void)
  1193. {
  1194. int i, cnt, cpu, rc;
  1195. long j;
  1196. phandle node;
  1197. char type[64];
  1198. u32 servers[8];
  1199. struct prom_t *_prom = &RELOC(prom);
  1200. void *entry = (unsigned long *)&RELOC(opal_secondary_entry);
  1201. struct opal_secondary_data *data = &RELOC(opal_secondary_data);
  1202. prom_debug("prom_opal_hold_cpus: start...\n");
  1203. prom_debug(" - entry = 0x%x\n", entry);
  1204. prom_debug(" - data = 0x%x\n", data);
  1205. data->ack = -1;
  1206. data->go = 0;
  1207. /* look for cpus */
  1208. for (node = 0; prom_next_node(&node); ) {
  1209. type[0] = 0;
  1210. prom_getprop(node, "device_type", type, sizeof(type));
  1211. if (strcmp(type, RELOC("cpu")) != 0)
  1212. continue;
  1213. /* Skip non-configured cpus. */
  1214. if (prom_getprop(node, "status", type, sizeof(type)) > 0)
  1215. if (strcmp(type, RELOC("okay")) != 0)
  1216. continue;
  1217. cnt = prom_getprop(node, "ibm,ppc-interrupt-server#s", servers,
  1218. sizeof(servers));
  1219. if (cnt == PROM_ERROR)
  1220. break;
  1221. cnt >>= 2;
  1222. for (i = 0; i < cnt; i++) {
  1223. cpu = servers[i];
  1224. prom_debug("CPU %d ... ", cpu);
  1225. if (cpu == _prom->cpu) {
  1226. prom_debug("booted !\n");
  1227. continue;
  1228. }
  1229. prom_debug("starting ... ");
  1230. /* Init the acknowledge var which will be reset by
  1231. * the secondary cpu when it awakens from its OF
  1232. * spinloop.
  1233. */
  1234. data->ack = -1;
  1235. rc = prom_rtas_call(RELOC(prom_rtas_start_cpu), 3, 1,
  1236. NULL, cpu, entry, data);
  1237. prom_debug("rtas rc=%d ...", rc);
  1238. for (j = 0; j < 100000000 && data->ack == -1; j++) {
  1239. HMT_low();
  1240. mb();
  1241. }
  1242. HMT_medium();
  1243. if (data->ack != -1)
  1244. prom_debug("done, PIR=0x%x\n", data->ack);
  1245. else
  1246. prom_debug("timeout !\n");
  1247. }
  1248. }
  1249. prom_debug("prom_opal_hold_cpus: end...\n");
  1250. }
  1251. static void prom_opal_takeover(void)
  1252. {
  1253. struct opal_secondary_data *data = &RELOC(opal_secondary_data);
  1254. struct opal_takeover_args *args = &data->args;
  1255. u64 align = RELOC(prom_opal_align);
  1256. u64 top_addr, opal_addr;
  1257. args->k_image = (u64)RELOC(_stext);
  1258. args->k_size = _end - _stext;
  1259. args->k_entry = 0;
  1260. args->k_entry2 = 0x60;
  1261. top_addr = _ALIGN_UP(args->k_size, align);
  1262. if (RELOC(prom_initrd_start) != 0) {
  1263. args->rd_image = RELOC(prom_initrd_start);
  1264. args->rd_size = RELOC(prom_initrd_end) - args->rd_image;
  1265. args->rd_loc = top_addr;
  1266. top_addr = _ALIGN_UP(args->rd_loc + args->rd_size, align);
  1267. }
  1268. /* Pickup an address for the HAL. We want to go really high
  1269. * up to avoid problem with future kexecs. On the other hand
  1270. * we don't want to be all over the TCEs on P5IOC2 machines
  1271. * which are going to be up there too. We assume the machine
  1272. * has plenty of memory, and we ask for the HAL for now to
  1273. * be just below the 1G point, or above the initrd
  1274. */
  1275. opal_addr = _ALIGN_DOWN(0x40000000 - RELOC(prom_opal_size), align);
  1276. if (opal_addr < top_addr)
  1277. opal_addr = top_addr;
  1278. args->hal_addr = opal_addr;
  1279. /* Copy the command line to the kernel image */
  1280. strlcpy(RELOC(boot_command_line), RELOC(prom_cmd_line),
  1281. COMMAND_LINE_SIZE);
  1282. prom_debug(" k_image = 0x%lx\n", args->k_image);
  1283. prom_debug(" k_size = 0x%lx\n", args->k_size);
  1284. prom_debug(" k_entry = 0x%lx\n", args->k_entry);
  1285. prom_debug(" k_entry2 = 0x%lx\n", args->k_entry2);
  1286. prom_debug(" hal_addr = 0x%lx\n", args->hal_addr);
  1287. prom_debug(" rd_image = 0x%lx\n", args->rd_image);
  1288. prom_debug(" rd_size = 0x%lx\n", args->rd_size);
  1289. prom_debug(" rd_loc = 0x%lx\n", args->rd_loc);
  1290. prom_printf("Performing OPAL takeover,this can take a few minutes..\n");
  1291. prom_close_stdin();
  1292. mb();
  1293. data->go = 1;
  1294. for (;;)
  1295. opal_do_takeover(args);
  1296. }
  1297. /*
  1298. * Allocate room for and instantiate OPAL
  1299. */
  1300. static void __init prom_instantiate_opal(void)
  1301. {
  1302. phandle opal_node;
  1303. ihandle opal_inst;
  1304. u64 base, entry;
  1305. u64 size = 0, align = 0x10000;
  1306. u32 rets[2];
  1307. prom_debug("prom_instantiate_opal: start...\n");
  1308. opal_node = call_prom("finddevice", 1, 1, ADDR("/ibm,opal"));
  1309. prom_debug("opal_node: %x\n", opal_node);
  1310. if (!PHANDLE_VALID(opal_node))
  1311. return;
  1312. prom_getprop(opal_node, "opal-runtime-size", &size, sizeof(size));
  1313. if (size == 0)
  1314. return;
  1315. prom_getprop(opal_node, "opal-runtime-alignment", &align,
  1316. sizeof(align));
  1317. base = alloc_down(size, align, 0);
  1318. if (base == 0) {
  1319. prom_printf("OPAL allocation failed !\n");
  1320. return;
  1321. }
  1322. opal_inst = call_prom("open", 1, 1, ADDR("/ibm,opal"));
  1323. if (!IHANDLE_VALID(opal_inst)) {
  1324. prom_printf("opening opal package failed (%x)\n", opal_inst);
  1325. return;
  1326. }
  1327. prom_printf("instantiating opal at 0x%x...", base);
  1328. if (call_prom_ret("call-method", 4, 3, rets,
  1329. ADDR("load-opal-runtime"),
  1330. opal_inst,
  1331. base >> 32, base & 0xffffffff) != 0
  1332. || (rets[0] == 0 && rets[1] == 0)) {
  1333. prom_printf(" failed\n");
  1334. return;
  1335. }
  1336. entry = (((u64)rets[0]) << 32) | rets[1];
  1337. prom_printf(" done\n");
  1338. reserve_mem(base, size);
  1339. prom_debug("opal base = 0x%x\n", base);
  1340. prom_debug("opal align = 0x%x\n", align);
  1341. prom_debug("opal entry = 0x%x\n", entry);
  1342. prom_debug("opal size = 0x%x\n", (long)size);
  1343. prom_setprop(opal_node, "/ibm,opal", "opal-base-address",
  1344. &base, sizeof(base));
  1345. prom_setprop(opal_node, "/ibm,opal", "opal-entry-address",
  1346. &entry, sizeof(entry));
  1347. #ifdef CONFIG_PPC_EARLY_DEBUG_OPAL
  1348. RELOC(prom_opal_base) = base;
  1349. RELOC(prom_opal_entry) = entry;
  1350. #endif
  1351. prom_debug("prom_instantiate_opal: end...\n");
  1352. }
  1353. #endif /* CONFIG_PPC_POWERNV */
  1354. /*
  1355. * Allocate room for and instantiate RTAS
  1356. */
  1357. static void __init prom_instantiate_rtas(void)
  1358. {
  1359. phandle rtas_node;
  1360. ihandle rtas_inst;
  1361. u32 base, entry = 0;
  1362. u32 size = 0;
  1363. prom_debug("prom_instantiate_rtas: start...\n");
  1364. rtas_node = call_prom("finddevice", 1, 1, ADDR("/rtas"));
  1365. prom_debug("rtas_node: %x\n", rtas_node);
  1366. if (!PHANDLE_VALID(rtas_node))
  1367. return;
  1368. prom_getprop(rtas_node, "rtas-size", &size, sizeof(size));
  1369. if (size == 0)
  1370. return;
  1371. base = alloc_down(size, PAGE_SIZE, 0);
  1372. if (base == 0)
  1373. prom_panic("Could not allocate memory for RTAS\n");
  1374. rtas_inst = call_prom("open", 1, 1, ADDR("/rtas"));
  1375. if (!IHANDLE_VALID(rtas_inst)) {
  1376. prom_printf("opening rtas package failed (%x)\n", rtas_inst);
  1377. return;
  1378. }
  1379. prom_printf("instantiating rtas at 0x%x...", base);
  1380. if (call_prom_ret("call-method", 3, 2, &entry,
  1381. ADDR("instantiate-rtas"),
  1382. rtas_inst, base) != 0
  1383. || entry == 0) {
  1384. prom_printf(" failed\n");
  1385. return;
  1386. }
  1387. prom_printf(" done\n");
  1388. reserve_mem(base, size);
  1389. prom_setprop(rtas_node, "/rtas", "linux,rtas-base",
  1390. &base, sizeof(base));
  1391. prom_setprop(rtas_node, "/rtas", "linux,rtas-entry",
  1392. &entry, sizeof(entry));
  1393. #ifdef CONFIG_PPC_POWERNV
  1394. /* PowerVN takeover hack */
  1395. RELOC(prom_rtas_data) = base;
  1396. RELOC(prom_rtas_entry) = entry;
  1397. prom_getprop(rtas_node, "start-cpu", &RELOC(prom_rtas_start_cpu), 4);
  1398. #endif
  1399. prom_debug("rtas base = 0x%x\n", base);
  1400. prom_debug("rtas entry = 0x%x\n", entry);
  1401. prom_debug("rtas size = 0x%x\n", (long)size);
  1402. prom_debug("prom_instantiate_rtas: end...\n");
  1403. }
  1404. #ifdef CONFIG_PPC64
  1405. /*
  1406. * Allocate room for and initialize TCE tables
  1407. */
  1408. static void __init prom_initialize_tce_table(void)
  1409. {
  1410. phandle node;
  1411. ihandle phb_node;
  1412. char compatible[64], type[64], model[64];
  1413. char *path = RELOC(prom_scratch);
  1414. u64 base, align;
  1415. u32 minalign, minsize;
  1416. u64 tce_entry, *tce_entryp;
  1417. u64 local_alloc_top, local_alloc_bottom;
  1418. u64 i;
  1419. if (RELOC(prom_iommu_off))
  1420. return;
  1421. prom_debug("starting prom_initialize_tce_table\n");
  1422. /* Cache current top of allocs so we reserve a single block */
  1423. local_alloc_top = RELOC(alloc_top_high);
  1424. local_alloc_bottom = local_alloc_top;
  1425. /* Search all nodes looking for PHBs. */
  1426. for (node = 0; prom_next_node(&node); ) {
  1427. compatible[0] = 0;
  1428. type[0] = 0;
  1429. model[0] = 0;
  1430. prom_getprop(node, "compatible",
  1431. compatible, sizeof(compatible));
  1432. prom_getprop(node, "device_type", type, sizeof(type));
  1433. prom_getprop(node, "model", model, sizeof(model));
  1434. if ((type[0] == 0) || (strstr(type, RELOC("pci")) == NULL))
  1435. continue;
  1436. /* Keep the old logic intact to avoid regression. */
  1437. if (compatible[0] != 0) {
  1438. if ((strstr(compatible, RELOC("python")) == NULL) &&
  1439. (strstr(compatible, RELOC("Speedwagon")) == NULL) &&
  1440. (strstr(compatible, RELOC("Winnipeg")) == NULL))
  1441. continue;
  1442. } else if (model[0] != 0) {
  1443. if ((strstr(model, RELOC("ython")) == NULL) &&
  1444. (strstr(model, RELOC("peedwagon")) == NULL) &&
  1445. (strstr(model, RELOC("innipeg")) == NULL))
  1446. continue;
  1447. }
  1448. if (prom_getprop(node, "tce-table-minalign", &minalign,
  1449. sizeof(minalign)) == PROM_ERROR)
  1450. minalign = 0;
  1451. if (prom_getprop(node, "tce-table-minsize", &minsize,
  1452. sizeof(minsize)) == PROM_ERROR)
  1453. minsize = 4UL << 20;
  1454. /*
  1455. * Even though we read what OF wants, we just set the table
  1456. * size to 4 MB. This is enough to map 2GB of PCI DMA space.
  1457. * By doing this, we avoid the pitfalls of trying to DMA to
  1458. * MMIO space and the DMA alias hole.
  1459. *
  1460. * On POWER4, firmware sets the TCE region by assuming
  1461. * each TCE table is 8MB. Using this memory for anything
  1462. * else will impact performance, so we always allocate 8MB.
  1463. * Anton
  1464. */
  1465. if (__is_processor(PV_POWER4) || __is_processor(PV_POWER4p))
  1466. minsize = 8UL << 20;
  1467. else
  1468. minsize = 4UL << 20;
  1469. /* Align to the greater of the align or size */
  1470. align = max(minalign, minsize);
  1471. base = alloc_down(minsize, align, 1);
  1472. if (base == 0)
  1473. prom_panic("ERROR, cannot find space for TCE table.\n");
  1474. if (base < local_alloc_bottom)
  1475. local_alloc_bottom = base;
  1476. /* It seems OF doesn't null-terminate the path :-( */
  1477. memset(path, 0, PROM_SCRATCH_SIZE);
  1478. /* Call OF to setup the TCE hardware */
  1479. if (call_prom("package-to-path", 3, 1, node,
  1480. path, PROM_SCRATCH_SIZE-1) == PROM_ERROR) {
  1481. prom_printf("package-to-path failed\n");
  1482. }
  1483. /* Save away the TCE table attributes for later use. */
  1484. prom_setprop(node, path, "linux,tce-base", &base, sizeof(base));
  1485. prom_setprop(node, path, "linux,tce-size", &minsize, sizeof(minsize));
  1486. prom_debug("TCE table: %s\n", path);
  1487. prom_debug("\tnode = 0x%x\n", node);
  1488. prom_debug("\tbase = 0x%x\n", base);
  1489. prom_debug("\tsize = 0x%x\n", minsize);
  1490. /* Initialize the table to have a one-to-one mapping
  1491. * over the allocated size.
  1492. */
  1493. tce_entryp = (u64 *)base;
  1494. for (i = 0; i < (minsize >> 3) ;tce_entryp++, i++) {
  1495. tce_entry = (i << PAGE_SHIFT);
  1496. tce_entry |= 0x3;
  1497. *tce_entryp = tce_entry;
  1498. }
  1499. prom_printf("opening PHB %s", path);
  1500. phb_node = call_prom("open", 1, 1, path);
  1501. if (phb_node == 0)
  1502. prom_printf("... failed\n");
  1503. else
  1504. prom_printf("... done\n");
  1505. call_prom("call-method", 6, 0, ADDR("set-64-bit-addressing"),
  1506. phb_node, -1, minsize,
  1507. (u32) base, (u32) (base >> 32));
  1508. call_prom("close", 1, 0, phb_node);
  1509. }
  1510. reserve_mem(local_alloc_bottom, local_alloc_top - local_alloc_bottom);
  1511. /* These are only really needed if there is a memory limit in
  1512. * effect, but we don't know so export them always. */
  1513. RELOC(prom_tce_alloc_start) = local_alloc_bottom;
  1514. RELOC(prom_tce_alloc_end) = local_alloc_top;
  1515. /* Flag the first invalid entry */
  1516. prom_debug("ending prom_initialize_tce_table\n");
  1517. }
  1518. #endif
  1519. /*
  1520. * With CHRP SMP we need to use the OF to start the other processors.
  1521. * We can't wait until smp_boot_cpus (the OF is trashed by then)
  1522. * so we have to put the processors into a holding pattern controlled
  1523. * by the kernel (not OF) before we destroy the OF.
  1524. *
  1525. * This uses a chunk of low memory, puts some holding pattern
  1526. * code there and sends the other processors off to there until
  1527. * smp_boot_cpus tells them to do something. The holding pattern
  1528. * checks that address until its cpu # is there, when it is that
  1529. * cpu jumps to __secondary_start(). smp_boot_cpus() takes care
  1530. * of setting those values.
  1531. *
  1532. * We also use physical address 0x4 here to tell when a cpu
  1533. * is in its holding pattern code.
  1534. *
  1535. * -- Cort
  1536. */
  1537. /*
  1538. * We want to reference the copy of __secondary_hold_* in the
  1539. * 0 - 0x100 address range
  1540. */
  1541. #define LOW_ADDR(x) (((unsigned long) &(x)) & 0xff)
  1542. static void __init prom_hold_cpus(void)
  1543. {
  1544. unsigned long i;
  1545. unsigned int reg;
  1546. phandle node;
  1547. char type[64];
  1548. struct prom_t *_prom = &RELOC(prom);
  1549. unsigned long *spinloop
  1550. = (void *) LOW_ADDR(__secondary_hold_spinloop);
  1551. unsigned long *acknowledge
  1552. = (void *) LOW_ADDR(__secondary_hold_acknowledge);
  1553. unsigned long secondary_hold = LOW_ADDR(__secondary_hold);
  1554. prom_debug("prom_hold_cpus: start...\n");
  1555. prom_debug(" 1) spinloop = 0x%x\n", (unsigned long)spinloop);
  1556. prom_debug(" 1) *spinloop = 0x%x\n", *spinloop);
  1557. prom_debug(" 1) acknowledge = 0x%x\n",
  1558. (unsigned long)acknowledge);
  1559. prom_debug(" 1) *acknowledge = 0x%x\n", *acknowledge);
  1560. prom_debug(" 1) secondary_hold = 0x%x\n", secondary_hold);
  1561. /* Set the common spinloop variable, so all of the secondary cpus
  1562. * will block when they are awakened from their OF spinloop.
  1563. * This must occur for both SMP and non SMP kernels, since OF will
  1564. * be trashed when we move the kernel.
  1565. */
  1566. *spinloop = 0;
  1567. /* look for cpus */
  1568. for (node = 0; prom_next_node(&node); ) {
  1569. type[0] = 0;
  1570. prom_getprop(node, "device_type", type, sizeof(type));
  1571. if (strcmp(type, RELOC("cpu")) != 0)
  1572. continue;
  1573. /* Skip non-configured cpus. */
  1574. if (prom_getprop(node, "status", type, sizeof(type)) > 0)
  1575. if (strcmp(type, RELOC("okay")) != 0)
  1576. continue;
  1577. reg = -1;
  1578. prom_getprop(node, "reg", &reg, sizeof(reg));
  1579. prom_debug("cpu hw idx = %lu\n", reg);
  1580. /* Init the acknowledge var which will be reset by
  1581. * the secondary cpu when it awakens from its OF
  1582. * spinloop.
  1583. */
  1584. *acknowledge = (unsigned long)-1;
  1585. if (reg != _prom->cpu) {
  1586. /* Primary Thread of non-boot cpu or any thread */
  1587. prom_printf("starting cpu hw idx %lu... ", reg);
  1588. call_prom("start-cpu", 3, 0, node,
  1589. secondary_hold, reg);
  1590. for (i = 0; (i < 100000000) &&
  1591. (*acknowledge == ((unsigned long)-1)); i++ )
  1592. mb();
  1593. if (*acknowledge == reg)
  1594. prom_printf("done\n");
  1595. else
  1596. prom_printf("failed: %x\n", *acknowledge);
  1597. }
  1598. #ifdef CONFIG_SMP
  1599. else
  1600. prom_printf("boot cpu hw idx %lu\n", reg);
  1601. #endif /* CONFIG_SMP */
  1602. }
  1603. prom_debug("prom_hold_cpus: end...\n");
  1604. }
  1605. static void __init prom_init_client_services(unsigned long pp)
  1606. {
  1607. struct prom_t *_prom = &RELOC(prom);
  1608. /* Get a handle to the prom entry point before anything else */
  1609. RELOC(prom_entry) = pp;
  1610. /* get a handle for the stdout device */
  1611. _prom->chosen = call_prom("finddevice", 1, 1, ADDR("/chosen"));
  1612. if (!PHANDLE_VALID(_prom->chosen))
  1613. prom_panic("cannot find chosen"); /* msg won't be printed :( */
  1614. /* get device tree root */
  1615. _prom->root = call_prom("finddevice", 1, 1, ADDR("/"));
  1616. if (!PHANDLE_VALID(_prom->root))
  1617. prom_panic("cannot find device tree root"); /* msg won't be printed :( */
  1618. _prom->mmumap = 0;
  1619. }
  1620. #ifdef CONFIG_PPC32
  1621. /*
  1622. * For really old powermacs, we need to map things we claim.
  1623. * For that, we need the ihandle of the mmu.
  1624. * Also, on the longtrail, we need to work around other bugs.
  1625. */
  1626. static void __init prom_find_mmu(void)
  1627. {
  1628. struct prom_t *_prom = &RELOC(prom);
  1629. phandle oprom;
  1630. char version[64];
  1631. oprom = call_prom("finddevice", 1, 1, ADDR("/openprom"));
  1632. if (!PHANDLE_VALID(oprom))
  1633. return;
  1634. if (prom_getprop(oprom, "model", version, sizeof(version)) <= 0)
  1635. return;
  1636. version[sizeof(version) - 1] = 0;
  1637. /* XXX might need to add other versions here */
  1638. if (strcmp(version, "Open Firmware, 1.0.5") == 0)
  1639. of_workarounds = OF_WA_CLAIM;
  1640. else if (strncmp(version, "FirmWorks,3.", 12) == 0) {
  1641. of_workarounds = OF_WA_CLAIM | OF_WA_LONGTRAIL;
  1642. call_prom("interpret", 1, 1, "dev /memory 0 to allow-reclaim");
  1643. } else
  1644. return;
  1645. _prom->memory = call_prom("open", 1, 1, ADDR("/memory"));
  1646. prom_getprop(_prom->chosen, "mmu", &_prom->mmumap,
  1647. sizeof(_prom->mmumap));
  1648. if (!IHANDLE_VALID(_prom->memory) || !IHANDLE_VALID(_prom->mmumap))
  1649. of_workarounds &= ~OF_WA_CLAIM; /* hmmm */
  1650. }
  1651. #else
  1652. #define prom_find_mmu()
  1653. #endif
  1654. static void __init prom_init_stdout(void)
  1655. {
  1656. struct prom_t *_prom = &RELOC(prom);
  1657. char *path = RELOC(of_stdout_device);
  1658. char type[16];
  1659. u32 val;
  1660. if (prom_getprop(_prom->chosen, "stdout", &val, sizeof(val)) <= 0)
  1661. prom_panic("cannot find stdout");
  1662. _prom->stdout = val;
  1663. /* Get the full OF pathname of the stdout device */
  1664. memset(path, 0, 256);
  1665. call_prom("instance-to-path", 3, 1, _prom->stdout, path, 255);
  1666. val = call_prom("instance-to-package", 1, 1, _prom->stdout);
  1667. prom_setprop(_prom->chosen, "/chosen", "linux,stdout-package",
  1668. &val, sizeof(val));
  1669. prom_printf("OF stdout device is: %s\n", RELOC(of_stdout_device));
  1670. prom_setprop(_prom->chosen, "/chosen", "linux,stdout-path",
  1671. path, strlen(path) + 1);
  1672. /* If it's a display, note it */
  1673. memset(type, 0, sizeof(type));
  1674. prom_getprop(val, "device_type", type, sizeof(type));
  1675. if (strcmp(type, RELOC("display")) == 0)
  1676. prom_setprop(val, path, "linux,boot-display", NULL, 0);
  1677. }
  1678. static int __init prom_find_machine_type(void)
  1679. {
  1680. struct prom_t *_prom = &RELOC(prom);
  1681. char compat[256];
  1682. int len, i = 0;
  1683. #ifdef CONFIG_PPC64
  1684. phandle rtas;
  1685. int x;
  1686. #endif
  1687. /* Look for a PowerMac or a Cell */
  1688. len = prom_getprop(_prom->root, "compatible",
  1689. compat, sizeof(compat)-1);
  1690. if (len > 0) {
  1691. compat[len] = 0;
  1692. while (i < len) {
  1693. char *p = &compat[i];
  1694. int sl = strlen(p);
  1695. if (sl == 0)
  1696. break;
  1697. if (strstr(p, RELOC("Power Macintosh")) ||
  1698. strstr(p, RELOC("MacRISC")))
  1699. return PLATFORM_POWERMAC;
  1700. #ifdef CONFIG_PPC64
  1701. /* We must make sure we don't detect the IBM Cell
  1702. * blades as pSeries due to some firmware issues,
  1703. * so we do it here.
  1704. */
  1705. if (strstr(p, RELOC("IBM,CBEA")) ||
  1706. strstr(p, RELOC("IBM,CPBW-1.0")))
  1707. return PLATFORM_GENERIC;
  1708. #endif /* CONFIG_PPC64 */
  1709. i += sl + 1;
  1710. }
  1711. }
  1712. #ifdef CONFIG_PPC64
  1713. /* Try to detect OPAL */
  1714. if (PHANDLE_VALID(call_prom("finddevice", 1, 1, ADDR("/ibm,opal"))))
  1715. return PLATFORM_OPAL;
  1716. /* Try to figure out if it's an IBM pSeries or any other
  1717. * PAPR compliant platform. We assume it is if :
  1718. * - /device_type is "chrp" (please, do NOT use that for future
  1719. * non-IBM designs !
  1720. * - it has /rtas
  1721. */
  1722. len = prom_getprop(_prom->root, "device_type",
  1723. compat, sizeof(compat)-1);
  1724. if (len <= 0)
  1725. return PLATFORM_GENERIC;
  1726. if (strcmp(compat, RELOC("chrp")))
  1727. return PLATFORM_GENERIC;
  1728. /* Default to pSeries. We need to know if we are running LPAR */
  1729. rtas = call_prom("finddevice", 1, 1, ADDR("/rtas"));
  1730. if (!PHANDLE_VALID(rtas))
  1731. return PLATFORM_GENERIC;
  1732. x = prom_getproplen(rtas, "ibm,hypertas-functions");
  1733. if (x != PROM_ERROR) {
  1734. prom_debug("Hypertas detected, assuming LPAR !\n");
  1735. return PLATFORM_PSERIES_LPAR;
  1736. }
  1737. return PLATFORM_PSERIES;
  1738. #else
  1739. return PLATFORM_GENERIC;
  1740. #endif
  1741. }
  1742. static int __init prom_set_color(ihandle ih, int i, int r, int g, int b)
  1743. {
  1744. return call_prom("call-method", 6, 1, ADDR("color!"), ih, i, b, g, r);
  1745. }
  1746. /*
  1747. * If we have a display that we don't know how to drive,
  1748. * we will want to try to execute OF's open method for it
  1749. * later. However, OF will probably fall over if we do that
  1750. * we've taken over the MMU.
  1751. * So we check whether we will need to open the display,
  1752. * and if so, open it now.
  1753. */
  1754. static void __init prom_check_displays(void)
  1755. {
  1756. char type[16], *path;
  1757. phandle node;
  1758. ihandle ih;
  1759. int i;
  1760. static unsigned char default_colors[] = {
  1761. 0x00, 0x00, 0x00,
  1762. 0x00, 0x00, 0xaa,
  1763. 0x00, 0xaa, 0x00,
  1764. 0x00, 0xaa, 0xaa,
  1765. 0xaa, 0x00, 0x00,
  1766. 0xaa, 0x00, 0xaa,
  1767. 0xaa, 0xaa, 0x00,
  1768. 0xaa, 0xaa, 0xaa,
  1769. 0x55, 0x55, 0x55,
  1770. 0x55, 0x55, 0xff,
  1771. 0x55, 0xff, 0x55,
  1772. 0x55, 0xff, 0xff,
  1773. 0xff, 0x55, 0x55,
  1774. 0xff, 0x55, 0xff,
  1775. 0xff, 0xff, 0x55,
  1776. 0xff, 0xff, 0xff
  1777. };
  1778. const unsigned char *clut;
  1779. prom_debug("Looking for displays\n");
  1780. for (node = 0; prom_next_node(&node); ) {
  1781. memset(type, 0, sizeof(type));
  1782. prom_getprop(node, "device_type", type, sizeof(type));
  1783. if (strcmp(type, RELOC("display")) != 0)
  1784. continue;
  1785. /* It seems OF doesn't null-terminate the path :-( */
  1786. path = RELOC(prom_scratch);
  1787. memset(path, 0, PROM_SCRATCH_SIZE);
  1788. /*
  1789. * leave some room at the end of the path for appending extra
  1790. * arguments
  1791. */
  1792. if (call_prom("package-to-path", 3, 1, node, path,
  1793. PROM_SCRATCH_SIZE-10) == PROM_ERROR)
  1794. continue;
  1795. prom_printf("found display : %s, opening... ", path);
  1796. ih = call_prom("open", 1, 1, path);
  1797. if (ih == 0) {
  1798. prom_printf("failed\n");
  1799. continue;
  1800. }
  1801. /* Success */
  1802. prom_printf("done\n");
  1803. prom_setprop(node, path, "linux,opened", NULL, 0);
  1804. /* Setup a usable color table when the appropriate
  1805. * method is available. Should update this to set-colors */
  1806. clut = RELOC(default_colors);
  1807. for (i = 0; i < 16; i++, clut += 3)
  1808. if (prom_set_color(ih, i, clut[0], clut[1],
  1809. clut[2]) != 0)
  1810. break;
  1811. #ifdef CONFIG_LOGO_LINUX_CLUT224
  1812. clut = PTRRELOC(RELOC(logo_linux_clut224.clut));
  1813. for (i = 0; i < RELOC(logo_linux_clut224.clutsize); i++, clut += 3)
  1814. if (prom_set_color(ih, i + 32, clut[0], clut[1],
  1815. clut[2]) != 0)
  1816. break;
  1817. #endif /* CONFIG_LOGO_LINUX_CLUT224 */
  1818. }
  1819. }
  1820. /* Return (relocated) pointer to this much memory: moves initrd if reqd. */
  1821. static void __init *make_room(unsigned long *mem_start, unsigned long *mem_end,
  1822. unsigned long needed, unsigned long align)
  1823. {
  1824. void *ret;
  1825. *mem_start = _ALIGN(*mem_start, align);
  1826. while ((*mem_start + needed) > *mem_end) {
  1827. unsigned long room, chunk;
  1828. prom_debug("Chunk exhausted, claiming more at %x...\n",
  1829. RELOC(alloc_bottom));
  1830. room = RELOC(alloc_top) - RELOC(alloc_bottom);
  1831. if (room > DEVTREE_CHUNK_SIZE)
  1832. room = DEVTREE_CHUNK_SIZE;
  1833. if (room < PAGE_SIZE)
  1834. prom_panic("No memory for flatten_device_tree "
  1835. "(no room)\n");
  1836. chunk = alloc_up(room, 0);
  1837. if (chunk == 0)
  1838. prom_panic("No memory for flatten_device_tree "
  1839. "(claim failed)\n");
  1840. *mem_end = chunk + room;
  1841. }
  1842. ret = (void *)*mem_start;
  1843. *mem_start += needed;
  1844. return ret;
  1845. }
  1846. #define dt_push_token(token, mem_start, mem_end) \
  1847. do { *((u32 *)make_room(mem_start, mem_end, 4, 4)) = token; } while(0)
  1848. static unsigned long __init dt_find_string(char *str)
  1849. {
  1850. char *s, *os;
  1851. s = os = (char *)RELOC(dt_string_start);
  1852. s += 4;
  1853. while (s < (char *)RELOC(dt_string_end)) {
  1854. if (strcmp(s, str) == 0)
  1855. return s - os;
  1856. s += strlen(s) + 1;
  1857. }
  1858. return 0;
  1859. }
  1860. /*
  1861. * The Open Firmware 1275 specification states properties must be 31 bytes or
  1862. * less, however not all firmwares obey this. Make it 64 bytes to be safe.
  1863. */
  1864. #define MAX_PROPERTY_NAME 64
  1865. static void __init scan_dt_build_strings(phandle node,
  1866. unsigned long *mem_start,
  1867. unsigned long *mem_end)
  1868. {
  1869. char *prev_name, *namep, *sstart;
  1870. unsigned long soff;
  1871. phandle child;
  1872. sstart = (char *)RELOC(dt_string_start);
  1873. /* get and store all property names */
  1874. prev_name = RELOC("");
  1875. for (;;) {
  1876. /* 64 is max len of name including nul. */
  1877. namep = make_room(mem_start, mem_end, MAX_PROPERTY_NAME, 1);
  1878. if (call_prom("nextprop", 3, 1, node, prev_name, namep) != 1) {
  1879. /* No more nodes: unwind alloc */
  1880. *mem_start = (unsigned long)namep;
  1881. break;
  1882. }
  1883. /* skip "name" */
  1884. if (strcmp(namep, RELOC("name")) == 0) {
  1885. *mem_start = (unsigned long)namep;
  1886. prev_name = RELOC("name");
  1887. continue;
  1888. }
  1889. /* get/create string entry */
  1890. soff = dt_find_string(namep);
  1891. if (soff != 0) {
  1892. *mem_start = (unsigned long)namep;
  1893. namep = sstart + soff;
  1894. } else {
  1895. /* Trim off some if we can */
  1896. *mem_start = (unsigned long)namep + strlen(namep) + 1;
  1897. RELOC(dt_string_end) = *mem_start;
  1898. }
  1899. prev_name = namep;
  1900. }
  1901. /* do all our children */
  1902. child = call_prom("child", 1, 1, node);
  1903. while (child != 0) {
  1904. scan_dt_build_strings(child, mem_start, mem_end);
  1905. child = call_prom("peer", 1, 1, child);
  1906. }
  1907. }
  1908. static void __init scan_dt_build_struct(phandle node, unsigned long *mem_start,
  1909. unsigned long *mem_end)
  1910. {
  1911. phandle child;
  1912. char *namep, *prev_name, *sstart, *p, *ep, *lp, *path;
  1913. unsigned long soff;
  1914. unsigned char *valp;
  1915. static char pname[MAX_PROPERTY_NAME];
  1916. int l, room, has_phandle = 0;
  1917. dt_push_token(OF_DT_BEGIN_NODE, mem_start, mem_end);
  1918. /* get the node's full name */
  1919. namep = (char *)*mem_start;
  1920. room = *mem_end - *mem_start;
  1921. if (room > 255)
  1922. room = 255;
  1923. l = call_prom("package-to-path", 3, 1, node, namep, room);
  1924. if (l >= 0) {
  1925. /* Didn't fit? Get more room. */
  1926. if (l >= room) {
  1927. if (l >= *mem_end - *mem_start)
  1928. namep = make_room(mem_start, mem_end, l+1, 1);
  1929. call_prom("package-to-path", 3, 1, node, namep, l);
  1930. }
  1931. namep[l] = '\0';
  1932. /* Fixup an Apple bug where they have bogus \0 chars in the
  1933. * middle of the path in some properties, and extract
  1934. * the unit name (everything after the last '/').
  1935. */
  1936. for (lp = p = namep, ep = namep + l; p < ep; p++) {
  1937. if (*p == '/')
  1938. lp = namep;
  1939. else if (*p != 0)
  1940. *lp++ = *p;
  1941. }
  1942. *lp = 0;
  1943. *mem_start = _ALIGN((unsigned long)lp + 1, 4);
  1944. }
  1945. /* get it again for debugging */
  1946. path = RELOC(prom_scratch);
  1947. memset(path, 0, PROM_SCRATCH_SIZE);
  1948. call_prom("package-to-path", 3, 1, node, path, PROM_SCRATCH_SIZE-1);
  1949. /* get and store all properties */
  1950. prev_name = RELOC("");
  1951. sstart = (char *)RELOC(dt_string_start);
  1952. for (;;) {
  1953. if (call_prom("nextprop", 3, 1, node, prev_name,
  1954. RELOC(pname)) != 1)
  1955. break;
  1956. /* skip "name" */
  1957. if (strcmp(RELOC(pname), RELOC("name")) == 0) {
  1958. prev_name = RELOC("name");
  1959. continue;
  1960. }
  1961. /* find string offset */
  1962. soff = dt_find_string(RELOC(pname));
  1963. if (soff == 0) {
  1964. prom_printf("WARNING: Can't find string index for"
  1965. " <%s>, node %s\n", RELOC(pname), path);
  1966. break;
  1967. }
  1968. prev_name = sstart + soff;
  1969. /* get length */
  1970. l = call_prom("getproplen", 2, 1, node, RELOC(pname));
  1971. /* sanity checks */
  1972. if (l == PROM_ERROR)
  1973. continue;
  1974. /* push property head */
  1975. dt_push_token(OF_DT_PROP, mem_start, mem_end);
  1976. dt_push_token(l, mem_start, mem_end);
  1977. dt_push_token(soff, mem_start, mem_end);
  1978. /* push property content */
  1979. valp = make_room(mem_start, mem_end, l, 4);
  1980. call_prom("getprop", 4, 1, node, RELOC(pname), valp, l);
  1981. *mem_start = _ALIGN(*mem_start, 4);
  1982. if (!strcmp(RELOC(pname), RELOC("phandle")))
  1983. has_phandle = 1;
  1984. }
  1985. /* Add a "linux,phandle" property if no "phandle" property already
  1986. * existed (can happen with OPAL)
  1987. */
  1988. if (!has_phandle) {
  1989. soff = dt_find_string(RELOC("linux,phandle"));
  1990. if (soff == 0)
  1991. prom_printf("WARNING: Can't find string index for"
  1992. " <linux-phandle> node %s\n", path);
  1993. else {
  1994. dt_push_token(OF_DT_PROP, mem_start, mem_end);
  1995. dt_push_token(4, mem_start, mem_end);
  1996. dt_push_token(soff, mem_start, mem_end);
  1997. valp = make_room(mem_start, mem_end, 4, 4);
  1998. *(u32 *)valp = node;
  1999. }
  2000. }
  2001. /* do all our children */
  2002. child = call_prom("child", 1, 1, node);
  2003. while (child != 0) {
  2004. scan_dt_build_struct(child, mem_start, mem_end);
  2005. child = call_prom("peer", 1, 1, child);
  2006. }
  2007. dt_push_token(OF_DT_END_NODE, mem_start, mem_end);
  2008. }
  2009. static void __init flatten_device_tree(void)
  2010. {
  2011. phandle root;
  2012. unsigned long mem_start, mem_end, room;
  2013. struct boot_param_header *hdr;
  2014. struct prom_t *_prom = &RELOC(prom);
  2015. char *namep;
  2016. u64 *rsvmap;
  2017. /*
  2018. * Check how much room we have between alloc top & bottom (+/- a
  2019. * few pages), crop to 1MB, as this is our "chunk" size
  2020. */
  2021. room = RELOC(alloc_top) - RELOC(alloc_bottom) - 0x4000;
  2022. if (room > DEVTREE_CHUNK_SIZE)
  2023. room = DEVTREE_CHUNK_SIZE;
  2024. prom_debug("starting device tree allocs at %x\n", RELOC(alloc_bottom));
  2025. /* Now try to claim that */
  2026. mem_start = (unsigned long)alloc_up(room, PAGE_SIZE);
  2027. if (mem_start == 0)
  2028. prom_panic("Can't allocate initial device-tree chunk\n");
  2029. mem_end = mem_start + room;
  2030. /* Get root of tree */
  2031. root = call_prom("peer", 1, 1, (phandle)0);
  2032. if (root == (phandle)0)
  2033. prom_panic ("couldn't get device tree root\n");
  2034. /* Build header and make room for mem rsv map */
  2035. mem_start = _ALIGN(mem_start, 4);
  2036. hdr = make_room(&mem_start, &mem_end,
  2037. sizeof(struct boot_param_header), 4);
  2038. RELOC(dt_header_start) = (unsigned long)hdr;
  2039. rsvmap = make_room(&mem_start, &mem_end, sizeof(mem_reserve_map), 8);
  2040. /* Start of strings */
  2041. mem_start = PAGE_ALIGN(mem_start);
  2042. RELOC(dt_string_start) = mem_start;
  2043. mem_start += 4; /* hole */
  2044. /* Add "linux,phandle" in there, we'll need it */
  2045. namep = make_room(&mem_start, &mem_end, 16, 1);
  2046. strcpy(namep, RELOC("linux,phandle"));
  2047. mem_start = (unsigned long)namep + strlen(namep) + 1;
  2048. /* Build string array */
  2049. prom_printf("Building dt strings...\n");
  2050. scan_dt_build_strings(root, &mem_start, &mem_end);
  2051. RELOC(dt_string_end) = mem_start;
  2052. /* Build structure */
  2053. mem_start = PAGE_ALIGN(mem_start);
  2054. RELOC(dt_struct_start) = mem_start;
  2055. prom_printf("Building dt structure...\n");
  2056. scan_dt_build_struct(root, &mem_start, &mem_end);
  2057. dt_push_token(OF_DT_END, &mem_start, &mem_end);
  2058. RELOC(dt_struct_end) = PAGE_ALIGN(mem_start);
  2059. /* Finish header */
  2060. hdr->boot_cpuid_phys = _prom->cpu;
  2061. hdr->magic = OF_DT_HEADER;
  2062. hdr->totalsize = RELOC(dt_struct_end) - RELOC(dt_header_start);
  2063. hdr->off_dt_struct = RELOC(dt_struct_start) - RELOC(dt_header_start);
  2064. hdr->off_dt_strings = RELOC(dt_string_start) - RELOC(dt_header_start);
  2065. hdr->dt_strings_size = RELOC(dt_string_end) - RELOC(dt_string_start);
  2066. hdr->off_mem_rsvmap = ((unsigned long)rsvmap) - RELOC(dt_header_start);
  2067. hdr->version = OF_DT_VERSION;
  2068. /* Version 16 is not backward compatible */
  2069. hdr->last_comp_version = 0x10;
  2070. /* Copy the reserve map in */
  2071. memcpy(rsvmap, RELOC(mem_reserve_map), sizeof(mem_reserve_map));
  2072. #ifdef DEBUG_PROM
  2073. {
  2074. int i;
  2075. prom_printf("reserved memory map:\n");
  2076. for (i = 0; i < RELOC(mem_reserve_cnt); i++)
  2077. prom_printf(" %x - %x\n",
  2078. RELOC(mem_reserve_map)[i].base,
  2079. RELOC(mem_reserve_map)[i].size);
  2080. }
  2081. #endif
  2082. /* Bump mem_reserve_cnt to cause further reservations to fail
  2083. * since it's too late.
  2084. */
  2085. RELOC(mem_reserve_cnt) = MEM_RESERVE_MAP_SIZE;
  2086. prom_printf("Device tree strings 0x%x -> 0x%x\n",
  2087. RELOC(dt_string_start), RELOC(dt_string_end));
  2088. prom_printf("Device tree struct 0x%x -> 0x%x\n",
  2089. RELOC(dt_struct_start), RELOC(dt_struct_end));
  2090. }
  2091. #ifdef CONFIG_PPC_MAPLE
  2092. /* PIBS Version 1.05.0000 04/26/2005 has an incorrect /ht/isa/ranges property.
  2093. * The values are bad, and it doesn't even have the right number of cells. */
  2094. static void __init fixup_device_tree_maple(void)
  2095. {
  2096. phandle isa;
  2097. u32 rloc = 0x01002000; /* IO space; PCI device = 4 */
  2098. u32 isa_ranges[6];
  2099. char *name;
  2100. name = "/ht@0/isa@4";
  2101. isa = call_prom("finddevice", 1, 1, ADDR(name));
  2102. if (!PHANDLE_VALID(isa)) {
  2103. name = "/ht@0/isa@6";
  2104. isa = call_prom("finddevice", 1, 1, ADDR(name));
  2105. rloc = 0x01003000; /* IO space; PCI device = 6 */
  2106. }
  2107. if (!PHANDLE_VALID(isa))
  2108. return;
  2109. if (prom_getproplen(isa, "ranges") != 12)
  2110. return;
  2111. if (prom_getprop(isa, "ranges", isa_ranges, sizeof(isa_ranges))
  2112. == PROM_ERROR)
  2113. return;
  2114. if (isa_ranges[0] != 0x1 ||
  2115. isa_ranges[1] != 0xf4000000 ||
  2116. isa_ranges[2] != 0x00010000)
  2117. return;
  2118. prom_printf("Fixing up bogus ISA range on Maple/Apache...\n");
  2119. isa_ranges[0] = 0x1;
  2120. isa_ranges[1] = 0x0;
  2121. isa_ranges[2] = rloc;
  2122. isa_ranges[3] = 0x0;
  2123. isa_ranges[4] = 0x0;
  2124. isa_ranges[5] = 0x00010000;
  2125. prom_setprop(isa, name, "ranges",
  2126. isa_ranges, sizeof(isa_ranges));
  2127. }
  2128. #define CPC925_MC_START 0xf8000000
  2129. #define CPC925_MC_LENGTH 0x1000000
  2130. /* The values for memory-controller don't have right number of cells */
  2131. static void __init fixup_device_tree_maple_memory_controller(void)
  2132. {
  2133. phandle mc;
  2134. u32 mc_reg[4];
  2135. char *name = "/hostbridge@f8000000";
  2136. struct prom_t *_prom = &RELOC(prom);
  2137. u32 ac, sc;
  2138. mc = call_prom("finddevice", 1, 1, ADDR(name));
  2139. if (!PHANDLE_VALID(mc))
  2140. return;
  2141. if (prom_getproplen(mc, "reg") != 8)
  2142. return;
  2143. prom_getprop(_prom->root, "#address-cells", &ac, sizeof(ac));
  2144. prom_getprop(_prom->root, "#size-cells", &sc, sizeof(sc));
  2145. if ((ac != 2) || (sc != 2))
  2146. return;
  2147. if (prom_getprop(mc, "reg", mc_reg, sizeof(mc_reg)) == PROM_ERROR)
  2148. return;
  2149. if (mc_reg[0] != CPC925_MC_START || mc_reg[1] != CPC925_MC_LENGTH)
  2150. return;
  2151. prom_printf("Fixing up bogus hostbridge on Maple...\n");
  2152. mc_reg[0] = 0x0;
  2153. mc_reg[1] = CPC925_MC_START;
  2154. mc_reg[2] = 0x0;
  2155. mc_reg[3] = CPC925_MC_LENGTH;
  2156. prom_setprop(mc, name, "reg", mc_reg, sizeof(mc_reg));
  2157. }
  2158. #else
  2159. #define fixup_device_tree_maple()
  2160. #define fixup_device_tree_maple_memory_controller()
  2161. #endif
  2162. #ifdef CONFIG_PPC_CHRP
  2163. /*
  2164. * Pegasos and BriQ lacks the "ranges" property in the isa node
  2165. * Pegasos needs decimal IRQ 14/15, not hexadecimal
  2166. * Pegasos has the IDE configured in legacy mode, but advertised as native
  2167. */
  2168. static void __init fixup_device_tree_chrp(void)
  2169. {
  2170. phandle ph;
  2171. u32 prop[6];
  2172. u32 rloc = 0x01006000; /* IO space; PCI device = 12 */
  2173. char *name;
  2174. int rc;
  2175. name = "/pci@80000000/isa@c";
  2176. ph = call_prom("finddevice", 1, 1, ADDR(name));
  2177. if (!PHANDLE_VALID(ph)) {
  2178. name = "/pci@ff500000/isa@6";
  2179. ph = call_prom("finddevice", 1, 1, ADDR(name));
  2180. rloc = 0x01003000; /* IO space; PCI device = 6 */
  2181. }
  2182. if (PHANDLE_VALID(ph)) {
  2183. rc = prom_getproplen(ph, "ranges");
  2184. if (rc == 0 || rc == PROM_ERROR) {
  2185. prom_printf("Fixing up missing ISA range on Pegasos...\n");
  2186. prop[0] = 0x1;
  2187. prop[1] = 0x0;
  2188. prop[2] = rloc;
  2189. prop[3] = 0x0;
  2190. prop[4] = 0x0;
  2191. prop[5] = 0x00010000;
  2192. prom_setprop(ph, name, "ranges", prop, sizeof(prop));
  2193. }
  2194. }
  2195. name = "/pci@80000000/ide@C,1";
  2196. ph = call_prom("finddevice", 1, 1, ADDR(name));
  2197. if (PHANDLE_VALID(ph)) {
  2198. prom_printf("Fixing up IDE interrupt on Pegasos...\n");
  2199. prop[0] = 14;
  2200. prop[1] = 0x0;
  2201. prom_setprop(ph, name, "interrupts", prop, 2*sizeof(u32));
  2202. prom_printf("Fixing up IDE class-code on Pegasos...\n");
  2203. rc = prom_getprop(ph, "class-code", prop, sizeof(u32));
  2204. if (rc == sizeof(u32)) {
  2205. prop[0] &= ~0x5;
  2206. prom_setprop(ph, name, "class-code", prop, sizeof(u32));
  2207. }
  2208. }
  2209. }
  2210. #else
  2211. #define fixup_device_tree_chrp()
  2212. #endif
  2213. #if defined(CONFIG_PPC64) && defined(CONFIG_PPC_PMAC)
  2214. static void __init fixup_device_tree_pmac(void)
  2215. {
  2216. phandle u3, i2c, mpic;
  2217. u32 u3_rev;
  2218. u32 interrupts[2];
  2219. u32 parent;
  2220. /* Some G5s have a missing interrupt definition, fix it up here */
  2221. u3 = call_prom("finddevice", 1, 1, ADDR("/u3@0,f8000000"));
  2222. if (!PHANDLE_VALID(u3))
  2223. return;
  2224. i2c = call_prom("finddevice", 1, 1, ADDR("/u3@0,f8000000/i2c@f8001000"));
  2225. if (!PHANDLE_VALID(i2c))
  2226. return;
  2227. mpic = call_prom("finddevice", 1, 1, ADDR("/u3@0,f8000000/mpic@f8040000"));
  2228. if (!PHANDLE_VALID(mpic))
  2229. return;
  2230. /* check if proper rev of u3 */
  2231. if (prom_getprop(u3, "device-rev", &u3_rev, sizeof(u3_rev))
  2232. == PROM_ERROR)
  2233. return;
  2234. if (u3_rev < 0x35 || u3_rev > 0x39)
  2235. return;
  2236. /* does it need fixup ? */
  2237. if (prom_getproplen(i2c, "interrupts") > 0)
  2238. return;
  2239. prom_printf("fixing up bogus interrupts for u3 i2c...\n");
  2240. /* interrupt on this revision of u3 is number 0 and level */
  2241. interrupts[0] = 0;
  2242. interrupts[1] = 1;
  2243. prom_setprop(i2c, "/u3@0,f8000000/i2c@f8001000", "interrupts",
  2244. &interrupts, sizeof(interrupts));
  2245. parent = (u32)mpic;
  2246. prom_setprop(i2c, "/u3@0,f8000000/i2c@f8001000", "interrupt-parent",
  2247. &parent, sizeof(parent));
  2248. }
  2249. #else
  2250. #define fixup_device_tree_pmac()
  2251. #endif
  2252. #ifdef CONFIG_PPC_EFIKA
  2253. /*
  2254. * The MPC5200 FEC driver requires an phy-handle property to tell it how
  2255. * to talk to the phy. If the phy-handle property is missing, then this
  2256. * function is called to add the appropriate nodes and link it to the
  2257. * ethernet node.
  2258. */
  2259. static void __init fixup_device_tree_efika_add_phy(void)
  2260. {
  2261. u32 node;
  2262. char prop[64];
  2263. int rv;
  2264. /* Check if /builtin/ethernet exists - bail if it doesn't */
  2265. node = call_prom("finddevice", 1, 1, ADDR("/builtin/ethernet"));
  2266. if (!PHANDLE_VALID(node))
  2267. return;
  2268. /* Check if the phy-handle property exists - bail if it does */
  2269. rv = prom_getprop(node, "phy-handle", prop, sizeof(prop));
  2270. if (!rv)
  2271. return;
  2272. /*
  2273. * At this point the ethernet device doesn't have a phy described.
  2274. * Now we need to add the missing phy node and linkage
  2275. */
  2276. /* Check for an MDIO bus node - if missing then create one */
  2277. node = call_prom("finddevice", 1, 1, ADDR("/builtin/mdio"));
  2278. if (!PHANDLE_VALID(node)) {
  2279. prom_printf("Adding Ethernet MDIO node\n");
  2280. call_prom("interpret", 1, 1,
  2281. " s\" /builtin\" find-device"
  2282. " new-device"
  2283. " 1 encode-int s\" #address-cells\" property"
  2284. " 0 encode-int s\" #size-cells\" property"
  2285. " s\" mdio\" device-name"
  2286. " s\" fsl,mpc5200b-mdio\" encode-string"
  2287. " s\" compatible\" property"
  2288. " 0xf0003000 0x400 reg"
  2289. " 0x2 encode-int"
  2290. " 0x5 encode-int encode+"
  2291. " 0x3 encode-int encode+"
  2292. " s\" interrupts\" property"
  2293. " finish-device");
  2294. };
  2295. /* Check for a PHY device node - if missing then create one and
  2296. * give it's phandle to the ethernet node */
  2297. node = call_prom("finddevice", 1, 1,
  2298. ADDR("/builtin/mdio/ethernet-phy"));
  2299. if (!PHANDLE_VALID(node)) {
  2300. prom_printf("Adding Ethernet PHY node\n");
  2301. call_prom("interpret", 1, 1,
  2302. " s\" /builtin/mdio\" find-device"
  2303. " new-device"
  2304. " s\" ethernet-phy\" device-name"
  2305. " 0x10 encode-int s\" reg\" property"
  2306. " my-self"
  2307. " ihandle>phandle"
  2308. " finish-device"
  2309. " s\" /builtin/ethernet\" find-device"
  2310. " encode-int"
  2311. " s\" phy-handle\" property"
  2312. " device-end");
  2313. }
  2314. }
  2315. static void __init fixup_device_tree_efika(void)
  2316. {
  2317. int sound_irq[3] = { 2, 2, 0 };
  2318. int bcomm_irq[3*16] = { 3,0,0, 3,1,0, 3,2,0, 3,3,0,
  2319. 3,4,0, 3,5,0, 3,6,0, 3,7,0,
  2320. 3,8,0, 3,9,0, 3,10,0, 3,11,0,
  2321. 3,12,0, 3,13,0, 3,14,0, 3,15,0 };
  2322. u32 node;
  2323. char prop[64];
  2324. int rv, len;
  2325. /* Check if we're really running on a EFIKA */
  2326. node = call_prom("finddevice", 1, 1, ADDR("/"));
  2327. if (!PHANDLE_VALID(node))
  2328. return;
  2329. rv = prom_getprop(node, "model", prop, sizeof(prop));
  2330. if (rv == PROM_ERROR)
  2331. return;
  2332. if (strcmp(prop, "EFIKA5K2"))
  2333. return;
  2334. prom_printf("Applying EFIKA device tree fixups\n");
  2335. /* Claiming to be 'chrp' is death */
  2336. node = call_prom("finddevice", 1, 1, ADDR("/"));
  2337. rv = prom_getprop(node, "device_type", prop, sizeof(prop));
  2338. if (rv != PROM_ERROR && (strcmp(prop, "chrp") == 0))
  2339. prom_setprop(node, "/", "device_type", "efika", sizeof("efika"));
  2340. /* CODEGEN,description is exposed in /proc/cpuinfo so
  2341. fix that too */
  2342. rv = prom_getprop(node, "CODEGEN,description", prop, sizeof(prop));
  2343. if (rv != PROM_ERROR && (strstr(prop, "CHRP")))
  2344. prom_setprop(node, "/", "CODEGEN,description",
  2345. "Efika 5200B PowerPC System",
  2346. sizeof("Efika 5200B PowerPC System"));
  2347. /* Fixup bestcomm interrupts property */
  2348. node = call_prom("finddevice", 1, 1, ADDR("/builtin/bestcomm"));
  2349. if (PHANDLE_VALID(node)) {
  2350. len = prom_getproplen(node, "interrupts");
  2351. if (len == 12) {
  2352. prom_printf("Fixing bestcomm interrupts property\n");
  2353. prom_setprop(node, "/builtin/bestcom", "interrupts",
  2354. bcomm_irq, sizeof(bcomm_irq));
  2355. }
  2356. }
  2357. /* Fixup sound interrupts property */
  2358. node = call_prom("finddevice", 1, 1, ADDR("/builtin/sound"));
  2359. if (PHANDLE_VALID(node)) {
  2360. rv = prom_getprop(node, "interrupts", prop, sizeof(prop));
  2361. if (rv == PROM_ERROR) {
  2362. prom_printf("Adding sound interrupts property\n");
  2363. prom_setprop(node, "/builtin/sound", "interrupts",
  2364. sound_irq, sizeof(sound_irq));
  2365. }
  2366. }
  2367. /* Make sure ethernet phy-handle property exists */
  2368. fixup_device_tree_efika_add_phy();
  2369. }
  2370. #else
  2371. #define fixup_device_tree_efika()
  2372. #endif
  2373. static void __init fixup_device_tree(void)
  2374. {
  2375. fixup_device_tree_maple();
  2376. fixup_device_tree_maple_memory_controller();
  2377. fixup_device_tree_chrp();
  2378. fixup_device_tree_pmac();
  2379. fixup_device_tree_efika();
  2380. }
  2381. static void __init prom_find_boot_cpu(void)
  2382. {
  2383. struct prom_t *_prom = &RELOC(prom);
  2384. u32 getprop_rval;
  2385. ihandle prom_cpu;
  2386. phandle cpu_pkg;
  2387. _prom->cpu = 0;
  2388. if (prom_getprop(_prom->chosen, "cpu", &prom_cpu, sizeof(prom_cpu)) <= 0)
  2389. return;
  2390. cpu_pkg = call_prom("instance-to-package", 1, 1, prom_cpu);
  2391. prom_getprop(cpu_pkg, "reg", &getprop_rval, sizeof(getprop_rval));
  2392. _prom->cpu = getprop_rval;
  2393. prom_debug("Booting CPU hw index = %lu\n", _prom->cpu);
  2394. }
  2395. static void __init prom_check_initrd(unsigned long r3, unsigned long r4)
  2396. {
  2397. #ifdef CONFIG_BLK_DEV_INITRD
  2398. struct prom_t *_prom = &RELOC(prom);
  2399. if (r3 && r4 && r4 != 0xdeadbeef) {
  2400. unsigned long val;
  2401. RELOC(prom_initrd_start) = is_kernel_addr(r3) ? __pa(r3) : r3;
  2402. RELOC(prom_initrd_end) = RELOC(prom_initrd_start) + r4;
  2403. val = RELOC(prom_initrd_start);
  2404. prom_setprop(_prom->chosen, "/chosen", "linux,initrd-start",
  2405. &val, sizeof(val));
  2406. val = RELOC(prom_initrd_end);
  2407. prom_setprop(_prom->chosen, "/chosen", "linux,initrd-end",
  2408. &val, sizeof(val));
  2409. reserve_mem(RELOC(prom_initrd_start),
  2410. RELOC(prom_initrd_end) - RELOC(prom_initrd_start));
  2411. prom_debug("initrd_start=0x%x\n", RELOC(prom_initrd_start));
  2412. prom_debug("initrd_end=0x%x\n", RELOC(prom_initrd_end));
  2413. }
  2414. #endif /* CONFIG_BLK_DEV_INITRD */
  2415. }
  2416. /*
  2417. * We enter here early on, when the Open Firmware prom is still
  2418. * handling exceptions and the MMU hash table for us.
  2419. */
  2420. unsigned long __init prom_init(unsigned long r3, unsigned long r4,
  2421. unsigned long pp,
  2422. unsigned long r6, unsigned long r7,
  2423. unsigned long kbase)
  2424. {
  2425. struct prom_t *_prom;
  2426. unsigned long hdr;
  2427. #ifdef CONFIG_PPC32
  2428. unsigned long offset = reloc_offset();
  2429. reloc_got2(offset);
  2430. #endif
  2431. _prom = &RELOC(prom);
  2432. /*
  2433. * First zero the BSS
  2434. */
  2435. memset(&RELOC(__bss_start), 0, __bss_stop - __bss_start);
  2436. /*
  2437. * Init interface to Open Firmware, get some node references,
  2438. * like /chosen
  2439. */
  2440. prom_init_client_services(pp);
  2441. /*
  2442. * See if this OF is old enough that we need to do explicit maps
  2443. * and other workarounds
  2444. */
  2445. prom_find_mmu();
  2446. /*
  2447. * Init prom stdout device
  2448. */
  2449. prom_init_stdout();
  2450. prom_printf("Preparing to boot %s", RELOC(linux_banner));
  2451. /*
  2452. * Get default machine type. At this point, we do not differentiate
  2453. * between pSeries SMP and pSeries LPAR
  2454. */
  2455. RELOC(of_platform) = prom_find_machine_type();
  2456. prom_printf("Detected machine type: %x\n", RELOC(of_platform));
  2457. #ifndef CONFIG_NONSTATIC_KERNEL
  2458. /* Bail if this is a kdump kernel. */
  2459. if (PHYSICAL_START > 0)
  2460. prom_panic("Error: You can't boot a kdump kernel from OF!\n");
  2461. #endif
  2462. /*
  2463. * Check for an initrd
  2464. */
  2465. prom_check_initrd(r3, r4);
  2466. #if defined(CONFIG_PPC_PSERIES) || defined(CONFIG_PPC_POWERNV)
  2467. /*
  2468. * On pSeries, inform the firmware about our capabilities
  2469. */
  2470. if (RELOC(of_platform) == PLATFORM_PSERIES ||
  2471. RELOC(of_platform) == PLATFORM_PSERIES_LPAR)
  2472. prom_send_capabilities();
  2473. #endif
  2474. /*
  2475. * Copy the CPU hold code
  2476. */
  2477. if (RELOC(of_platform) != PLATFORM_POWERMAC)
  2478. copy_and_flush(0, kbase, 0x100, 0);
  2479. /*
  2480. * Do early parsing of command line
  2481. */
  2482. early_cmdline_parse();
  2483. /*
  2484. * Initialize memory management within prom_init
  2485. */
  2486. prom_init_mem();
  2487. /*
  2488. * Determine which cpu is actually running right _now_
  2489. */
  2490. prom_find_boot_cpu();
  2491. /*
  2492. * Initialize display devices
  2493. */
  2494. prom_check_displays();
  2495. #ifdef CONFIG_PPC64
  2496. /*
  2497. * Initialize IOMMU (TCE tables) on pSeries. Do that before anything else
  2498. * that uses the allocator, we need to make sure we get the top of memory
  2499. * available for us here...
  2500. */
  2501. if (RELOC(of_platform) == PLATFORM_PSERIES)
  2502. prom_initialize_tce_table();
  2503. #endif
  2504. /*
  2505. * On non-powermacs, try to instantiate RTAS. PowerMacs don't
  2506. * have a usable RTAS implementation.
  2507. */
  2508. if (RELOC(of_platform) != PLATFORM_POWERMAC &&
  2509. RELOC(of_platform) != PLATFORM_OPAL)
  2510. prom_instantiate_rtas();
  2511. #ifdef CONFIG_PPC_POWERNV
  2512. /* Detect HAL and try instanciating it & doing takeover */
  2513. if (RELOC(of_platform) == PLATFORM_PSERIES_LPAR) {
  2514. prom_query_opal();
  2515. if (RELOC(of_platform) == PLATFORM_OPAL) {
  2516. prom_opal_hold_cpus();
  2517. prom_opal_takeover();
  2518. }
  2519. } else if (RELOC(of_platform) == PLATFORM_OPAL)
  2520. prom_instantiate_opal();
  2521. #endif
  2522. /*
  2523. * On non-powermacs, put all CPUs in spin-loops.
  2524. *
  2525. * PowerMacs use a different mechanism to spin CPUs
  2526. */
  2527. if (RELOC(of_platform) != PLATFORM_POWERMAC &&
  2528. RELOC(of_platform) != PLATFORM_OPAL)
  2529. prom_hold_cpus();
  2530. /*
  2531. * Fill in some infos for use by the kernel later on
  2532. */
  2533. if (RELOC(prom_memory_limit))
  2534. prom_setprop(_prom->chosen, "/chosen", "linux,memory-limit",
  2535. &RELOC(prom_memory_limit),
  2536. sizeof(prom_memory_limit));
  2537. #ifdef CONFIG_PPC64
  2538. if (RELOC(prom_iommu_off))
  2539. prom_setprop(_prom->chosen, "/chosen", "linux,iommu-off",
  2540. NULL, 0);
  2541. if (RELOC(prom_iommu_force_on))
  2542. prom_setprop(_prom->chosen, "/chosen", "linux,iommu-force-on",
  2543. NULL, 0);
  2544. if (RELOC(prom_tce_alloc_start)) {
  2545. prom_setprop(_prom->chosen, "/chosen", "linux,tce-alloc-start",
  2546. &RELOC(prom_tce_alloc_start),
  2547. sizeof(prom_tce_alloc_start));
  2548. prom_setprop(_prom->chosen, "/chosen", "linux,tce-alloc-end",
  2549. &RELOC(prom_tce_alloc_end),
  2550. sizeof(prom_tce_alloc_end));
  2551. }
  2552. #endif
  2553. /*
  2554. * Fixup any known bugs in the device-tree
  2555. */
  2556. fixup_device_tree();
  2557. /*
  2558. * Now finally create the flattened device-tree
  2559. */
  2560. prom_printf("copying OF device tree...\n");
  2561. flatten_device_tree();
  2562. /*
  2563. * in case stdin is USB and still active on IBM machines...
  2564. * Unfortunately quiesce crashes on some powermacs if we have
  2565. * closed stdin already (in particular the powerbook 101). It
  2566. * appears that the OPAL version of OFW doesn't like it either.
  2567. */
  2568. if (RELOC(of_platform) != PLATFORM_POWERMAC &&
  2569. RELOC(of_platform) != PLATFORM_OPAL)
  2570. prom_close_stdin();
  2571. /*
  2572. * Call OF "quiesce" method to shut down pending DMA's from
  2573. * devices etc...
  2574. */
  2575. prom_printf("Calling quiesce...\n");
  2576. call_prom("quiesce", 0, 0);
  2577. /*
  2578. * And finally, call the kernel passing it the flattened device
  2579. * tree and NULL as r5, thus triggering the new entry point which
  2580. * is common to us and kexec
  2581. */
  2582. hdr = RELOC(dt_header_start);
  2583. /* Don't print anything after quiesce under OPAL, it crashes OFW */
  2584. if (RELOC(of_platform) != PLATFORM_OPAL) {
  2585. prom_printf("returning from prom_init\n");
  2586. prom_debug("->dt_header_start=0x%x\n", hdr);
  2587. }
  2588. #ifdef CONFIG_PPC32
  2589. reloc_got2(-offset);
  2590. #endif
  2591. #ifdef CONFIG_PPC_EARLY_DEBUG_OPAL
  2592. /* OPAL early debug gets the OPAL base & entry in r8 and r9 */
  2593. __start(hdr, kbase, 0, 0, 0,
  2594. RELOC(prom_opal_base), RELOC(prom_opal_entry));
  2595. #else
  2596. __start(hdr, kbase, 0, 0, 0, 0, 0);
  2597. #endif
  2598. return 0;
  2599. }