module.c 27 KB

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  1. /*
  2. * IA-64-specific support for kernel module loader.
  3. *
  4. * Copyright (C) 2003 Hewlett-Packard Co
  5. * David Mosberger-Tang <davidm@hpl.hp.com>
  6. *
  7. * Loosely based on patch by Rusty Russell.
  8. */
  9. /* relocs tested so far:
  10. DIR64LSB
  11. FPTR64LSB
  12. GPREL22
  13. LDXMOV
  14. LDXMOV
  15. LTOFF22
  16. LTOFF22X
  17. LTOFF22X
  18. LTOFF_FPTR22
  19. PCREL21B (for br.call only; br.cond is not supported out of modules!)
  20. PCREL60B (for brl.cond only; brl.call is not supported for modules!)
  21. PCREL64LSB
  22. SECREL32LSB
  23. SEGREL64LSB
  24. */
  25. #include <linux/kernel.h>
  26. #include <linux/sched.h>
  27. #include <linux/elf.h>
  28. #include <linux/moduleloader.h>
  29. #include <linux/string.h>
  30. #include <linux/vmalloc.h>
  31. #include <asm/patch.h>
  32. #include <asm/unaligned.h>
  33. #define ARCH_MODULE_DEBUG 0
  34. #if ARCH_MODULE_DEBUG
  35. # define DEBUGP printk
  36. # define inline
  37. #else
  38. # define DEBUGP(fmt , a...)
  39. #endif
  40. #ifdef CONFIG_ITANIUM
  41. # define USE_BRL 0
  42. #else
  43. # define USE_BRL 1
  44. #endif
  45. #define MAX_LTOFF ((uint64_t) (1 << 22)) /* max. allowable linkage-table offset */
  46. /* Define some relocation helper macros/types: */
  47. #define FORMAT_SHIFT 0
  48. #define FORMAT_BITS 3
  49. #define FORMAT_MASK ((1 << FORMAT_BITS) - 1)
  50. #define VALUE_SHIFT 3
  51. #define VALUE_BITS 5
  52. #define VALUE_MASK ((1 << VALUE_BITS) - 1)
  53. enum reloc_target_format {
  54. /* direct encoded formats: */
  55. RF_NONE = 0,
  56. RF_INSN14 = 1,
  57. RF_INSN22 = 2,
  58. RF_INSN64 = 3,
  59. RF_32MSB = 4,
  60. RF_32LSB = 5,
  61. RF_64MSB = 6,
  62. RF_64LSB = 7,
  63. /* formats that cannot be directly decoded: */
  64. RF_INSN60,
  65. RF_INSN21B, /* imm21 form 1 */
  66. RF_INSN21M, /* imm21 form 2 */
  67. RF_INSN21F /* imm21 form 3 */
  68. };
  69. enum reloc_value_formula {
  70. RV_DIRECT = 4, /* S + A */
  71. RV_GPREL = 5, /* @gprel(S + A) */
  72. RV_LTREL = 6, /* @ltoff(S + A) */
  73. RV_PLTREL = 7, /* @pltoff(S + A) */
  74. RV_FPTR = 8, /* @fptr(S + A) */
  75. RV_PCREL = 9, /* S + A - P */
  76. RV_LTREL_FPTR = 10, /* @ltoff(@fptr(S + A)) */
  77. RV_SEGREL = 11, /* @segrel(S + A) */
  78. RV_SECREL = 12, /* @secrel(S + A) */
  79. RV_BDREL = 13, /* BD + A */
  80. RV_LTV = 14, /* S + A (like RV_DIRECT, except frozen at static link-time) */
  81. RV_PCREL2 = 15, /* S + A - P */
  82. RV_SPECIAL = 16, /* various (see below) */
  83. RV_RSVD17 = 17,
  84. RV_TPREL = 18, /* @tprel(S + A) */
  85. RV_LTREL_TPREL = 19, /* @ltoff(@tprel(S + A)) */
  86. RV_DTPMOD = 20, /* @dtpmod(S + A) */
  87. RV_LTREL_DTPMOD = 21, /* @ltoff(@dtpmod(S + A)) */
  88. RV_DTPREL = 22, /* @dtprel(S + A) */
  89. RV_LTREL_DTPREL = 23, /* @ltoff(@dtprel(S + A)) */
  90. RV_RSVD24 = 24,
  91. RV_RSVD25 = 25,
  92. RV_RSVD26 = 26,
  93. RV_RSVD27 = 27
  94. /* 28-31 reserved for implementation-specific purposes. */
  95. };
  96. #define N(reloc) [R_IA64_##reloc] = #reloc
  97. static const char *reloc_name[256] = {
  98. N(NONE), N(IMM14), N(IMM22), N(IMM64),
  99. N(DIR32MSB), N(DIR32LSB), N(DIR64MSB), N(DIR64LSB),
  100. N(GPREL22), N(GPREL64I), N(GPREL32MSB), N(GPREL32LSB),
  101. N(GPREL64MSB), N(GPREL64LSB), N(LTOFF22), N(LTOFF64I),
  102. N(PLTOFF22), N(PLTOFF64I), N(PLTOFF64MSB), N(PLTOFF64LSB),
  103. N(FPTR64I), N(FPTR32MSB), N(FPTR32LSB), N(FPTR64MSB),
  104. N(FPTR64LSB), N(PCREL60B), N(PCREL21B), N(PCREL21M),
  105. N(PCREL21F), N(PCREL32MSB), N(PCREL32LSB), N(PCREL64MSB),
  106. N(PCREL64LSB), N(LTOFF_FPTR22), N(LTOFF_FPTR64I), N(LTOFF_FPTR32MSB),
  107. N(LTOFF_FPTR32LSB), N(LTOFF_FPTR64MSB), N(LTOFF_FPTR64LSB), N(SEGREL32MSB),
  108. N(SEGREL32LSB), N(SEGREL64MSB), N(SEGREL64LSB), N(SECREL32MSB),
  109. N(SECREL32LSB), N(SECREL64MSB), N(SECREL64LSB), N(REL32MSB),
  110. N(REL32LSB), N(REL64MSB), N(REL64LSB), N(LTV32MSB),
  111. N(LTV32LSB), N(LTV64MSB), N(LTV64LSB), N(PCREL21BI),
  112. N(PCREL22), N(PCREL64I), N(IPLTMSB), N(IPLTLSB),
  113. N(COPY), N(LTOFF22X), N(LDXMOV), N(TPREL14),
  114. N(TPREL22), N(TPREL64I), N(TPREL64MSB), N(TPREL64LSB),
  115. N(LTOFF_TPREL22), N(DTPMOD64MSB), N(DTPMOD64LSB), N(LTOFF_DTPMOD22),
  116. N(DTPREL14), N(DTPREL22), N(DTPREL64I), N(DTPREL32MSB),
  117. N(DTPREL32LSB), N(DTPREL64MSB), N(DTPREL64LSB), N(LTOFF_DTPREL22)
  118. };
  119. #undef N
  120. /* Opaque struct for insns, to protect against derefs. */
  121. struct insn;
  122. static inline uint64_t
  123. bundle (const struct insn *insn)
  124. {
  125. return (uint64_t) insn & ~0xfUL;
  126. }
  127. static inline int
  128. slot (const struct insn *insn)
  129. {
  130. return (uint64_t) insn & 0x3;
  131. }
  132. static int
  133. apply_imm64 (struct module *mod, struct insn *insn, uint64_t val)
  134. {
  135. if (slot(insn) != 2) {
  136. printk(KERN_ERR "%s: invalid slot number %d for IMM64\n",
  137. mod->name, slot(insn));
  138. return 0;
  139. }
  140. ia64_patch_imm64((u64) insn, val);
  141. return 1;
  142. }
  143. static int
  144. apply_imm60 (struct module *mod, struct insn *insn, uint64_t val)
  145. {
  146. if (slot(insn) != 2) {
  147. printk(KERN_ERR "%s: invalid slot number %d for IMM60\n",
  148. mod->name, slot(insn));
  149. return 0;
  150. }
  151. if (val + ((uint64_t) 1 << 59) >= (1UL << 60)) {
  152. printk(KERN_ERR "%s: value %ld out of IMM60 range\n",
  153. mod->name, (long) val);
  154. return 0;
  155. }
  156. ia64_patch_imm60((u64) insn, val);
  157. return 1;
  158. }
  159. static int
  160. apply_imm22 (struct module *mod, struct insn *insn, uint64_t val)
  161. {
  162. if (val + (1 << 21) >= (1 << 22)) {
  163. printk(KERN_ERR "%s: value %li out of IMM22 range\n",
  164. mod->name, (long)val);
  165. return 0;
  166. }
  167. ia64_patch((u64) insn, 0x01fffcfe000UL, ( ((val & 0x200000UL) << 15) /* bit 21 -> 36 */
  168. | ((val & 0x1f0000UL) << 6) /* bit 16 -> 22 */
  169. | ((val & 0x00ff80UL) << 20) /* bit 7 -> 27 */
  170. | ((val & 0x00007fUL) << 13) /* bit 0 -> 13 */));
  171. return 1;
  172. }
  173. static int
  174. apply_imm21b (struct module *mod, struct insn *insn, uint64_t val)
  175. {
  176. if (val + (1 << 20) >= (1 << 21)) {
  177. printk(KERN_ERR "%s: value %li out of IMM21b range\n",
  178. mod->name, (long)val);
  179. return 0;
  180. }
  181. ia64_patch((u64) insn, 0x11ffffe000UL, ( ((val & 0x100000UL) << 16) /* bit 20 -> 36 */
  182. | ((val & 0x0fffffUL) << 13) /* bit 0 -> 13 */));
  183. return 1;
  184. }
  185. #if USE_BRL
  186. struct plt_entry {
  187. /* Three instruction bundles in PLT. */
  188. unsigned char bundle[2][16];
  189. };
  190. static const struct plt_entry ia64_plt_template = {
  191. {
  192. {
  193. 0x04, 0x00, 0x00, 0x00, 0x01, 0x00, /* [MLX] nop.m 0 */
  194. 0x00, 0x00, 0x00, 0x00, 0x00, 0x20, /* movl gp=TARGET_GP */
  195. 0x00, 0x00, 0x00, 0x60
  196. },
  197. {
  198. 0x05, 0x00, 0x00, 0x00, 0x01, 0x00, /* [MLX] nop.m 0 */
  199. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, /* brl.many gp=TARGET_GP */
  200. 0x08, 0x00, 0x00, 0xc0
  201. }
  202. }
  203. };
  204. static int
  205. patch_plt (struct module *mod, struct plt_entry *plt, long target_ip, unsigned long target_gp)
  206. {
  207. if (apply_imm64(mod, (struct insn *) (plt->bundle[0] + 2), target_gp)
  208. && apply_imm60(mod, (struct insn *) (plt->bundle[1] + 2),
  209. (target_ip - (int64_t) plt->bundle[1]) / 16))
  210. return 1;
  211. return 0;
  212. }
  213. unsigned long
  214. plt_target (struct plt_entry *plt)
  215. {
  216. uint64_t b0, b1, *b = (uint64_t *) plt->bundle[1];
  217. long off;
  218. b0 = b[0]; b1 = b[1];
  219. off = ( ((b1 & 0x00fffff000000000UL) >> 36) /* imm20b -> bit 0 */
  220. | ((b0 >> 48) << 20) | ((b1 & 0x7fffffUL) << 36) /* imm39 -> bit 20 */
  221. | ((b1 & 0x0800000000000000UL) << 0)); /* i -> bit 59 */
  222. return (long) plt->bundle[1] + 16*off;
  223. }
  224. #else /* !USE_BRL */
  225. struct plt_entry {
  226. /* Three instruction bundles in PLT. */
  227. unsigned char bundle[3][16];
  228. };
  229. static const struct plt_entry ia64_plt_template = {
  230. {
  231. {
  232. 0x05, 0x00, 0x00, 0x00, 0x01, 0x00, /* [MLX] nop.m 0 */
  233. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, /* movl r16=TARGET_IP */
  234. 0x02, 0x00, 0x00, 0x60
  235. },
  236. {
  237. 0x04, 0x00, 0x00, 0x00, 0x01, 0x00, /* [MLX] nop.m 0 */
  238. 0x00, 0x00, 0x00, 0x00, 0x00, 0x20, /* movl gp=TARGET_GP */
  239. 0x00, 0x00, 0x00, 0x60
  240. },
  241. {
  242. 0x11, 0x00, 0x00, 0x00, 0x01, 0x00, /* [MIB] nop.m 0 */
  243. 0x60, 0x80, 0x04, 0x80, 0x03, 0x00, /* mov b6=r16 */
  244. 0x60, 0x00, 0x80, 0x00 /* br.few b6 */
  245. }
  246. }
  247. };
  248. static int
  249. patch_plt (struct module *mod, struct plt_entry *plt, long target_ip, unsigned long target_gp)
  250. {
  251. if (apply_imm64(mod, (struct insn *) (plt->bundle[0] + 2), target_ip)
  252. && apply_imm64(mod, (struct insn *) (plt->bundle[1] + 2), target_gp))
  253. return 1;
  254. return 0;
  255. }
  256. unsigned long
  257. plt_target (struct plt_entry *plt)
  258. {
  259. uint64_t b0, b1, *b = (uint64_t *) plt->bundle[0];
  260. b0 = b[0]; b1 = b[1];
  261. return ( ((b1 & 0x000007f000000000) >> 36) /* imm7b -> bit 0 */
  262. | ((b1 & 0x07fc000000000000) >> 43) /* imm9d -> bit 7 */
  263. | ((b1 & 0x0003e00000000000) >> 29) /* imm5c -> bit 16 */
  264. | ((b1 & 0x0000100000000000) >> 23) /* ic -> bit 21 */
  265. | ((b0 >> 46) << 22) | ((b1 & 0x7fffff) << 40) /* imm41 -> bit 22 */
  266. | ((b1 & 0x0800000000000000) << 4)); /* i -> bit 63 */
  267. }
  268. #endif /* !USE_BRL */
  269. void
  270. module_free (struct module *mod, void *module_region)
  271. {
  272. if (mod && mod->arch.init_unw_table &&
  273. module_region == mod->module_init) {
  274. unw_remove_unwind_table(mod->arch.init_unw_table);
  275. mod->arch.init_unw_table = NULL;
  276. }
  277. vfree(module_region);
  278. }
  279. /* Have we already seen one of these relocations? */
  280. /* FIXME: we could look in other sections, too --RR */
  281. static int
  282. duplicate_reloc (const Elf64_Rela *rela, unsigned int num)
  283. {
  284. unsigned int i;
  285. for (i = 0; i < num; i++) {
  286. if (rela[i].r_info == rela[num].r_info && rela[i].r_addend == rela[num].r_addend)
  287. return 1;
  288. }
  289. return 0;
  290. }
  291. /* Count how many GOT entries we may need */
  292. static unsigned int
  293. count_gots (const Elf64_Rela *rela, unsigned int num)
  294. {
  295. unsigned int i, ret = 0;
  296. /* Sure, this is order(n^2), but it's usually short, and not
  297. time critical */
  298. for (i = 0; i < num; i++) {
  299. switch (ELF64_R_TYPE(rela[i].r_info)) {
  300. case R_IA64_LTOFF22:
  301. case R_IA64_LTOFF22X:
  302. case R_IA64_LTOFF64I:
  303. case R_IA64_LTOFF_FPTR22:
  304. case R_IA64_LTOFF_FPTR64I:
  305. case R_IA64_LTOFF_FPTR32MSB:
  306. case R_IA64_LTOFF_FPTR32LSB:
  307. case R_IA64_LTOFF_FPTR64MSB:
  308. case R_IA64_LTOFF_FPTR64LSB:
  309. if (!duplicate_reloc(rela, i))
  310. ret++;
  311. break;
  312. }
  313. }
  314. return ret;
  315. }
  316. /* Count how many PLT entries we may need */
  317. static unsigned int
  318. count_plts (const Elf64_Rela *rela, unsigned int num)
  319. {
  320. unsigned int i, ret = 0;
  321. /* Sure, this is order(n^2), but it's usually short, and not
  322. time critical */
  323. for (i = 0; i < num; i++) {
  324. switch (ELF64_R_TYPE(rela[i].r_info)) {
  325. case R_IA64_PCREL21B:
  326. case R_IA64_PLTOFF22:
  327. case R_IA64_PLTOFF64I:
  328. case R_IA64_PLTOFF64MSB:
  329. case R_IA64_PLTOFF64LSB:
  330. case R_IA64_IPLTMSB:
  331. case R_IA64_IPLTLSB:
  332. if (!duplicate_reloc(rela, i))
  333. ret++;
  334. break;
  335. }
  336. }
  337. return ret;
  338. }
  339. /* We need to create an function-descriptors for any internal function
  340. which is referenced. */
  341. static unsigned int
  342. count_fdescs (const Elf64_Rela *rela, unsigned int num)
  343. {
  344. unsigned int i, ret = 0;
  345. /* Sure, this is order(n^2), but it's usually short, and not time critical. */
  346. for (i = 0; i < num; i++) {
  347. switch (ELF64_R_TYPE(rela[i].r_info)) {
  348. case R_IA64_FPTR64I:
  349. case R_IA64_FPTR32LSB:
  350. case R_IA64_FPTR32MSB:
  351. case R_IA64_FPTR64LSB:
  352. case R_IA64_FPTR64MSB:
  353. case R_IA64_LTOFF_FPTR22:
  354. case R_IA64_LTOFF_FPTR32LSB:
  355. case R_IA64_LTOFF_FPTR32MSB:
  356. case R_IA64_LTOFF_FPTR64I:
  357. case R_IA64_LTOFF_FPTR64LSB:
  358. case R_IA64_LTOFF_FPTR64MSB:
  359. case R_IA64_IPLTMSB:
  360. case R_IA64_IPLTLSB:
  361. /*
  362. * Jumps to static functions sometimes go straight to their
  363. * offset. Of course, that may not be possible if the jump is
  364. * from init -> core or vice. versa, so we need to generate an
  365. * FDESC (and PLT etc) for that.
  366. */
  367. case R_IA64_PCREL21B:
  368. if (!duplicate_reloc(rela, i))
  369. ret++;
  370. break;
  371. }
  372. }
  373. return ret;
  374. }
  375. int
  376. module_frob_arch_sections (Elf_Ehdr *ehdr, Elf_Shdr *sechdrs, char *secstrings,
  377. struct module *mod)
  378. {
  379. unsigned long core_plts = 0, init_plts = 0, gots = 0, fdescs = 0;
  380. Elf64_Shdr *s, *sechdrs_end = sechdrs + ehdr->e_shnum;
  381. /*
  382. * To store the PLTs and function-descriptors, we expand the .text section for
  383. * core module-code and the .init.text section for initialization code.
  384. */
  385. for (s = sechdrs; s < sechdrs_end; ++s)
  386. if (strcmp(".core.plt", secstrings + s->sh_name) == 0)
  387. mod->arch.core_plt = s;
  388. else if (strcmp(".init.plt", secstrings + s->sh_name) == 0)
  389. mod->arch.init_plt = s;
  390. else if (strcmp(".got", secstrings + s->sh_name) == 0)
  391. mod->arch.got = s;
  392. else if (strcmp(".opd", secstrings + s->sh_name) == 0)
  393. mod->arch.opd = s;
  394. else if (strcmp(".IA_64.unwind", secstrings + s->sh_name) == 0)
  395. mod->arch.unwind = s;
  396. #ifdef CONFIG_PARAVIRT
  397. else if (strcmp(".paravirt_bundles",
  398. secstrings + s->sh_name) == 0)
  399. mod->arch.paravirt_bundles = s;
  400. else if (strcmp(".paravirt_insts",
  401. secstrings + s->sh_name) == 0)
  402. mod->arch.paravirt_insts = s;
  403. #endif
  404. if (!mod->arch.core_plt || !mod->arch.init_plt || !mod->arch.got || !mod->arch.opd) {
  405. printk(KERN_ERR "%s: sections missing\n", mod->name);
  406. return -ENOEXEC;
  407. }
  408. /* GOT and PLTs can occur in any relocated section... */
  409. for (s = sechdrs + 1; s < sechdrs_end; ++s) {
  410. const Elf64_Rela *rels = (void *)ehdr + s->sh_offset;
  411. unsigned long numrels = s->sh_size/sizeof(Elf64_Rela);
  412. if (s->sh_type != SHT_RELA)
  413. continue;
  414. gots += count_gots(rels, numrels);
  415. fdescs += count_fdescs(rels, numrels);
  416. if (strstr(secstrings + s->sh_name, ".init"))
  417. init_plts += count_plts(rels, numrels);
  418. else
  419. core_plts += count_plts(rels, numrels);
  420. }
  421. mod->arch.core_plt->sh_type = SHT_NOBITS;
  422. mod->arch.core_plt->sh_flags = SHF_EXECINSTR | SHF_ALLOC;
  423. mod->arch.core_plt->sh_addralign = 16;
  424. mod->arch.core_plt->sh_size = core_plts * sizeof(struct plt_entry);
  425. mod->arch.init_plt->sh_type = SHT_NOBITS;
  426. mod->arch.init_plt->sh_flags = SHF_EXECINSTR | SHF_ALLOC;
  427. mod->arch.init_plt->sh_addralign = 16;
  428. mod->arch.init_plt->sh_size = init_plts * sizeof(struct plt_entry);
  429. mod->arch.got->sh_type = SHT_NOBITS;
  430. mod->arch.got->sh_flags = ARCH_SHF_SMALL | SHF_ALLOC;
  431. mod->arch.got->sh_addralign = 8;
  432. mod->arch.got->sh_size = gots * sizeof(struct got_entry);
  433. mod->arch.opd->sh_type = SHT_NOBITS;
  434. mod->arch.opd->sh_flags = SHF_ALLOC;
  435. mod->arch.opd->sh_addralign = 8;
  436. mod->arch.opd->sh_size = fdescs * sizeof(struct fdesc);
  437. DEBUGP("%s: core.plt=%lx, init.plt=%lx, got=%lx, fdesc=%lx\n",
  438. __func__, mod->arch.core_plt->sh_size, mod->arch.init_plt->sh_size,
  439. mod->arch.got->sh_size, mod->arch.opd->sh_size);
  440. return 0;
  441. }
  442. static inline int
  443. in_init (const struct module *mod, uint64_t addr)
  444. {
  445. return addr - (uint64_t) mod->module_init < mod->init_size;
  446. }
  447. static inline int
  448. in_core (const struct module *mod, uint64_t addr)
  449. {
  450. return addr - (uint64_t) mod->module_core < mod->core_size;
  451. }
  452. static inline int
  453. is_internal (const struct module *mod, uint64_t value)
  454. {
  455. return in_init(mod, value) || in_core(mod, value);
  456. }
  457. /*
  458. * Get gp-relative offset for the linkage-table entry of VALUE.
  459. */
  460. static uint64_t
  461. get_ltoff (struct module *mod, uint64_t value, int *okp)
  462. {
  463. struct got_entry *got, *e;
  464. if (!*okp)
  465. return 0;
  466. got = (void *) mod->arch.got->sh_addr;
  467. for (e = got; e < got + mod->arch.next_got_entry; ++e)
  468. if (e->val == value)
  469. goto found;
  470. /* Not enough GOT entries? */
  471. BUG_ON(e >= (struct got_entry *) (mod->arch.got->sh_addr + mod->arch.got->sh_size));
  472. e->val = value;
  473. ++mod->arch.next_got_entry;
  474. found:
  475. return (uint64_t) e - mod->arch.gp;
  476. }
  477. static inline int
  478. gp_addressable (struct module *mod, uint64_t value)
  479. {
  480. return value - mod->arch.gp + MAX_LTOFF/2 < MAX_LTOFF;
  481. }
  482. /* Get PC-relative PLT entry for this value. Returns 0 on failure. */
  483. static uint64_t
  484. get_plt (struct module *mod, const struct insn *insn, uint64_t value, int *okp)
  485. {
  486. struct plt_entry *plt, *plt_end;
  487. uint64_t target_ip, target_gp;
  488. if (!*okp)
  489. return 0;
  490. if (in_init(mod, (uint64_t) insn)) {
  491. plt = (void *) mod->arch.init_plt->sh_addr;
  492. plt_end = (void *) plt + mod->arch.init_plt->sh_size;
  493. } else {
  494. plt = (void *) mod->arch.core_plt->sh_addr;
  495. plt_end = (void *) plt + mod->arch.core_plt->sh_size;
  496. }
  497. /* "value" is a pointer to a function-descriptor; fetch the target ip/gp from it: */
  498. target_ip = ((uint64_t *) value)[0];
  499. target_gp = ((uint64_t *) value)[1];
  500. /* Look for existing PLT entry. */
  501. while (plt->bundle[0][0]) {
  502. if (plt_target(plt) == target_ip)
  503. goto found;
  504. if (++plt >= plt_end)
  505. BUG();
  506. }
  507. *plt = ia64_plt_template;
  508. if (!patch_plt(mod, plt, target_ip, target_gp)) {
  509. *okp = 0;
  510. return 0;
  511. }
  512. #if ARCH_MODULE_DEBUG
  513. if (plt_target(plt) != target_ip) {
  514. printk("%s: mistargeted PLT: wanted %lx, got %lx\n",
  515. __func__, target_ip, plt_target(plt));
  516. *okp = 0;
  517. return 0;
  518. }
  519. #endif
  520. found:
  521. return (uint64_t) plt;
  522. }
  523. /* Get function descriptor for VALUE. */
  524. static uint64_t
  525. get_fdesc (struct module *mod, uint64_t value, int *okp)
  526. {
  527. struct fdesc *fdesc = (void *) mod->arch.opd->sh_addr;
  528. if (!*okp)
  529. return 0;
  530. if (!value) {
  531. printk(KERN_ERR "%s: fdesc for zero requested!\n", mod->name);
  532. return 0;
  533. }
  534. if (!is_internal(mod, value))
  535. /*
  536. * If it's not a module-local entry-point, "value" already points to a
  537. * function-descriptor.
  538. */
  539. return value;
  540. /* Look for existing function descriptor. */
  541. while (fdesc->ip) {
  542. if (fdesc->ip == value)
  543. return (uint64_t)fdesc;
  544. if ((uint64_t) ++fdesc >= mod->arch.opd->sh_addr + mod->arch.opd->sh_size)
  545. BUG();
  546. }
  547. /* Create new one */
  548. fdesc->ip = value;
  549. fdesc->gp = mod->arch.gp;
  550. return (uint64_t) fdesc;
  551. }
  552. static inline int
  553. do_reloc (struct module *mod, uint8_t r_type, Elf64_Sym *sym, uint64_t addend,
  554. Elf64_Shdr *sec, void *location)
  555. {
  556. enum reloc_target_format format = (r_type >> FORMAT_SHIFT) & FORMAT_MASK;
  557. enum reloc_value_formula formula = (r_type >> VALUE_SHIFT) & VALUE_MASK;
  558. uint64_t val;
  559. int ok = 1;
  560. val = sym->st_value + addend;
  561. switch (formula) {
  562. case RV_SEGREL: /* segment base is arbitrarily chosen to be 0 for kernel modules */
  563. case RV_DIRECT:
  564. break;
  565. case RV_GPREL: val -= mod->arch.gp; break;
  566. case RV_LTREL: val = get_ltoff(mod, val, &ok); break;
  567. case RV_PLTREL: val = get_plt(mod, location, val, &ok); break;
  568. case RV_FPTR: val = get_fdesc(mod, val, &ok); break;
  569. case RV_SECREL: val -= sec->sh_addr; break;
  570. case RV_LTREL_FPTR: val = get_ltoff(mod, get_fdesc(mod, val, &ok), &ok); break;
  571. case RV_PCREL:
  572. switch (r_type) {
  573. case R_IA64_PCREL21B:
  574. if ((in_init(mod, val) && in_core(mod, (uint64_t)location)) ||
  575. (in_core(mod, val) && in_init(mod, (uint64_t)location))) {
  576. /*
  577. * Init section may have been allocated far away from core,
  578. * if the branch won't reach, then allocate a plt for it.
  579. */
  580. uint64_t delta = ((int64_t)val - (int64_t)location) / 16;
  581. if (delta + (1 << 20) >= (1 << 21)) {
  582. val = get_fdesc(mod, val, &ok);
  583. val = get_plt(mod, location, val, &ok);
  584. }
  585. } else if (!is_internal(mod, val))
  586. val = get_plt(mod, location, val, &ok);
  587. /* FALL THROUGH */
  588. default:
  589. val -= bundle(location);
  590. break;
  591. case R_IA64_PCREL32MSB:
  592. case R_IA64_PCREL32LSB:
  593. case R_IA64_PCREL64MSB:
  594. case R_IA64_PCREL64LSB:
  595. val -= (uint64_t) location;
  596. break;
  597. }
  598. switch (r_type) {
  599. case R_IA64_PCREL60B: format = RF_INSN60; break;
  600. case R_IA64_PCREL21B: format = RF_INSN21B; break;
  601. case R_IA64_PCREL21M: format = RF_INSN21M; break;
  602. case R_IA64_PCREL21F: format = RF_INSN21F; break;
  603. default: break;
  604. }
  605. break;
  606. case RV_BDREL:
  607. val -= (uint64_t) (in_init(mod, val) ? mod->module_init : mod->module_core);
  608. break;
  609. case RV_LTV:
  610. /* can link-time value relocs happen here? */
  611. BUG();
  612. break;
  613. case RV_PCREL2:
  614. if (r_type == R_IA64_PCREL21BI) {
  615. if (!is_internal(mod, val)) {
  616. printk(KERN_ERR "%s: %s reloc against "
  617. "non-local symbol (%lx)\n", __func__,
  618. reloc_name[r_type], (unsigned long)val);
  619. return -ENOEXEC;
  620. }
  621. format = RF_INSN21B;
  622. }
  623. val -= bundle(location);
  624. break;
  625. case RV_SPECIAL:
  626. switch (r_type) {
  627. case R_IA64_IPLTMSB:
  628. case R_IA64_IPLTLSB:
  629. val = get_fdesc(mod, get_plt(mod, location, val, &ok), &ok);
  630. format = RF_64LSB;
  631. if (r_type == R_IA64_IPLTMSB)
  632. format = RF_64MSB;
  633. break;
  634. case R_IA64_SUB:
  635. val = addend - sym->st_value;
  636. format = RF_INSN64;
  637. break;
  638. case R_IA64_LTOFF22X:
  639. if (gp_addressable(mod, val))
  640. val -= mod->arch.gp;
  641. else
  642. val = get_ltoff(mod, val, &ok);
  643. format = RF_INSN22;
  644. break;
  645. case R_IA64_LDXMOV:
  646. if (gp_addressable(mod, val)) {
  647. /* turn "ld8" into "mov": */
  648. DEBUGP("%s: patching ld8 at %p to mov\n", __func__, location);
  649. ia64_patch((u64) location, 0x1fff80fe000UL, 0x10000000000UL);
  650. }
  651. return 0;
  652. default:
  653. if (reloc_name[r_type])
  654. printk(KERN_ERR "%s: special reloc %s not supported",
  655. mod->name, reloc_name[r_type]);
  656. else
  657. printk(KERN_ERR "%s: unknown special reloc %x\n",
  658. mod->name, r_type);
  659. return -ENOEXEC;
  660. }
  661. break;
  662. case RV_TPREL:
  663. case RV_LTREL_TPREL:
  664. case RV_DTPMOD:
  665. case RV_LTREL_DTPMOD:
  666. case RV_DTPREL:
  667. case RV_LTREL_DTPREL:
  668. printk(KERN_ERR "%s: %s reloc not supported\n",
  669. mod->name, reloc_name[r_type] ? reloc_name[r_type] : "?");
  670. return -ENOEXEC;
  671. default:
  672. printk(KERN_ERR "%s: unknown reloc %x\n", mod->name, r_type);
  673. return -ENOEXEC;
  674. }
  675. if (!ok)
  676. return -ENOEXEC;
  677. DEBUGP("%s: [%p]<-%016lx = %s(%lx)\n", __func__, location, val,
  678. reloc_name[r_type] ? reloc_name[r_type] : "?", sym->st_value + addend);
  679. switch (format) {
  680. case RF_INSN21B: ok = apply_imm21b(mod, location, (int64_t) val / 16); break;
  681. case RF_INSN22: ok = apply_imm22(mod, location, val); break;
  682. case RF_INSN64: ok = apply_imm64(mod, location, val); break;
  683. case RF_INSN60: ok = apply_imm60(mod, location, (int64_t) val / 16); break;
  684. case RF_32LSB: put_unaligned(val, (uint32_t *) location); break;
  685. case RF_64LSB: put_unaligned(val, (uint64_t *) location); break;
  686. case RF_32MSB: /* ia64 Linux is little-endian... */
  687. case RF_64MSB: /* ia64 Linux is little-endian... */
  688. case RF_INSN14: /* must be within-module, i.e., resolved by "ld -r" */
  689. case RF_INSN21M: /* must be within-module, i.e., resolved by "ld -r" */
  690. case RF_INSN21F: /* must be within-module, i.e., resolved by "ld -r" */
  691. printk(KERN_ERR "%s: format %u needed by %s reloc is not supported\n",
  692. mod->name, format, reloc_name[r_type] ? reloc_name[r_type] : "?");
  693. return -ENOEXEC;
  694. default:
  695. printk(KERN_ERR "%s: relocation %s resulted in unknown format %u\n",
  696. mod->name, reloc_name[r_type] ? reloc_name[r_type] : "?", format);
  697. return -ENOEXEC;
  698. }
  699. return ok ? 0 : -ENOEXEC;
  700. }
  701. int
  702. apply_relocate_add (Elf64_Shdr *sechdrs, const char *strtab, unsigned int symindex,
  703. unsigned int relsec, struct module *mod)
  704. {
  705. unsigned int i, n = sechdrs[relsec].sh_size / sizeof(Elf64_Rela);
  706. Elf64_Rela *rela = (void *) sechdrs[relsec].sh_addr;
  707. Elf64_Shdr *target_sec;
  708. int ret;
  709. DEBUGP("%s: applying section %u (%u relocs) to %u\n", __func__,
  710. relsec, n, sechdrs[relsec].sh_info);
  711. target_sec = sechdrs + sechdrs[relsec].sh_info;
  712. if (target_sec->sh_entsize == ~0UL)
  713. /*
  714. * If target section wasn't allocated, we don't need to relocate it.
  715. * Happens, e.g., for debug sections.
  716. */
  717. return 0;
  718. if (!mod->arch.gp) {
  719. /*
  720. * XXX Should have an arch-hook for running this after final section
  721. * addresses have been selected...
  722. */
  723. uint64_t gp;
  724. if (mod->core_size > MAX_LTOFF)
  725. /*
  726. * This takes advantage of fact that SHF_ARCH_SMALL gets allocated
  727. * at the end of the module.
  728. */
  729. gp = mod->core_size - MAX_LTOFF / 2;
  730. else
  731. gp = mod->core_size / 2;
  732. gp = (uint64_t) mod->module_core + ((gp + 7) & -8);
  733. mod->arch.gp = gp;
  734. DEBUGP("%s: placing gp at 0x%lx\n", __func__, gp);
  735. }
  736. for (i = 0; i < n; i++) {
  737. ret = do_reloc(mod, ELF64_R_TYPE(rela[i].r_info),
  738. ((Elf64_Sym *) sechdrs[symindex].sh_addr
  739. + ELF64_R_SYM(rela[i].r_info)),
  740. rela[i].r_addend, target_sec,
  741. (void *) target_sec->sh_addr + rela[i].r_offset);
  742. if (ret < 0)
  743. return ret;
  744. }
  745. return 0;
  746. }
  747. /*
  748. * Modules contain a single unwind table which covers both the core and the init text
  749. * sections but since the two are not contiguous, we need to split this table up such that
  750. * we can register (and unregister) each "segment" separately. Fortunately, this sounds
  751. * more complicated than it really is.
  752. */
  753. static void
  754. register_unwind_table (struct module *mod)
  755. {
  756. struct unw_table_entry *start = (void *) mod->arch.unwind->sh_addr;
  757. struct unw_table_entry *end = start + mod->arch.unwind->sh_size / sizeof (*start);
  758. struct unw_table_entry tmp, *e1, *e2, *core, *init;
  759. unsigned long num_init = 0, num_core = 0;
  760. /* First, count how many init and core unwind-table entries there are. */
  761. for (e1 = start; e1 < end; ++e1)
  762. if (in_init(mod, e1->start_offset))
  763. ++num_init;
  764. else
  765. ++num_core;
  766. /*
  767. * Second, sort the table such that all unwind-table entries for the init and core
  768. * text sections are nicely separated. We do this with a stupid bubble sort
  769. * (unwind tables don't get ridiculously huge).
  770. */
  771. for (e1 = start; e1 < end; ++e1) {
  772. for (e2 = e1 + 1; e2 < end; ++e2) {
  773. if (e2->start_offset < e1->start_offset) {
  774. tmp = *e1;
  775. *e1 = *e2;
  776. *e2 = tmp;
  777. }
  778. }
  779. }
  780. /*
  781. * Third, locate the init and core segments in the unwind table:
  782. */
  783. if (in_init(mod, start->start_offset)) {
  784. init = start;
  785. core = start + num_init;
  786. } else {
  787. core = start;
  788. init = start + num_core;
  789. }
  790. DEBUGP("%s: name=%s, gp=%lx, num_init=%lu, num_core=%lu\n", __func__,
  791. mod->name, mod->arch.gp, num_init, num_core);
  792. /*
  793. * Fourth, register both tables (if not empty).
  794. */
  795. if (num_core > 0) {
  796. mod->arch.core_unw_table = unw_add_unwind_table(mod->name, 0, mod->arch.gp,
  797. core, core + num_core);
  798. DEBUGP("%s: core: handle=%p [%p-%p)\n", __func__,
  799. mod->arch.core_unw_table, core, core + num_core);
  800. }
  801. if (num_init > 0) {
  802. mod->arch.init_unw_table = unw_add_unwind_table(mod->name, 0, mod->arch.gp,
  803. init, init + num_init);
  804. DEBUGP("%s: init: handle=%p [%p-%p)\n", __func__,
  805. mod->arch.init_unw_table, init, init + num_init);
  806. }
  807. }
  808. int
  809. module_finalize (const Elf_Ehdr *hdr, const Elf_Shdr *sechdrs, struct module *mod)
  810. {
  811. DEBUGP("%s: init: entry=%p\n", __func__, mod->init);
  812. if (mod->arch.unwind)
  813. register_unwind_table(mod);
  814. #ifdef CONFIG_PARAVIRT
  815. if (mod->arch.paravirt_bundles) {
  816. struct paravirt_patch_site_bundle *start =
  817. (struct paravirt_patch_site_bundle *)
  818. mod->arch.paravirt_bundles->sh_addr;
  819. struct paravirt_patch_site_bundle *end =
  820. (struct paravirt_patch_site_bundle *)
  821. (mod->arch.paravirt_bundles->sh_addr +
  822. mod->arch.paravirt_bundles->sh_size);
  823. paravirt_patch_apply_bundle(start, end);
  824. }
  825. if (mod->arch.paravirt_insts) {
  826. struct paravirt_patch_site_inst *start =
  827. (struct paravirt_patch_site_inst *)
  828. mod->arch.paravirt_insts->sh_addr;
  829. struct paravirt_patch_site_inst *end =
  830. (struct paravirt_patch_site_inst *)
  831. (mod->arch.paravirt_insts->sh_addr +
  832. mod->arch.paravirt_insts->sh_size);
  833. paravirt_patch_apply_inst(start, end);
  834. }
  835. #endif
  836. return 0;
  837. }
  838. void
  839. module_arch_cleanup (struct module *mod)
  840. {
  841. if (mod->arch.init_unw_table)
  842. unw_remove_unwind_table(mod->arch.init_unw_table);
  843. if (mod->arch.core_unw_table)
  844. unw_remove_unwind_table(mod->arch.core_unw_table);
  845. }