elfinterp.c 8.2 KB

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  1. /* TI C64X DSBT ELF shared library loader suppport
  2. * Copyright (C) 2010 Texas Instruments Incorporated
  3. * Contributed by Mark Salter <msalter@redhat.com>
  4. *
  5. * Borrowed heavily from frv arch:
  6. * Copyright (C) 2003, 2004 Red Hat, Inc.
  7. * Contributed by Alexandre Oliva <aoliva@redhat.com>
  8. * Lots of code copied from ../i386/elfinterp.c, so:
  9. * Copyright (c) 1994-2000 Eric Youngdale, Peter MacDonald,
  10. * David Engel, Hongjiu Lu and Mitch D'Souza
  11. * Copyright (C) 2001-2002, Erik Andersen
  12. * All rights reserved.
  13. *
  14. * Licensed under the LGPL v2.1, see the file COPYING.LIB in this tarball.
  15. */
  16. #include <features.h>
  17. /* Program to load an ELF binary on a linux system, and run it.
  18. References to symbols in sharable libraries can be resolved by either
  19. an ELF sharable library or a linux style of shared library. */
  20. /* Disclaimer: I have never seen any AT&T source code for SVr4, nor have
  21. I ever taken any courses on internals. This program was developed using
  22. information available through the book "UNIX SYSTEM V RELEASE 4,
  23. Programmers guide: Ansi C and Programming Support Tools", which did
  24. a more than adequate job of explaining everything required to get this
  25. working. */
  26. extern void __c6x_cache_sync(unsigned long start, unsigned long end)
  27. attribute_hidden;
  28. static void
  29. _dl_c6x_flush_relocs(struct elf32_dsbt_loadmap *map)
  30. {
  31. unsigned long s, e;
  32. s = map->segs[0].addr;
  33. e = s + map->segs[0].p_memsz;
  34. __c6x_cache_sync(s, e);
  35. s = map->segs[1].addr;
  36. e = s + map->segs[1].p_memsz;
  37. __c6x_cache_sync(s, e);
  38. }
  39. attribute_hidden
  40. char *
  41. _dl_linux_resolver (struct elf_resolve *tpnt, int reloc_entry)
  42. {
  43. ELF_RELOC *this_reloc;
  44. char *strtab;
  45. ElfW(Sym) *symtab;
  46. int symtab_index;
  47. char *rel_addr;
  48. char *new_addr;
  49. char **got_addr;
  50. char *symname;
  51. rel_addr = (char *)tpnt->dynamic_info[DT_JMPREL];
  52. this_reloc = (ELF_RELOC *)(intptr_t)(rel_addr + reloc_entry);
  53. symtab_index = ELF_R_SYM(this_reloc->r_info);
  54. symtab = (Elf32_Sym *) tpnt->dynamic_info[DT_SYMTAB];
  55. strtab = (char *) tpnt->dynamic_info[DT_STRTAB];
  56. symname = strtab + symtab[symtab_index].st_name;
  57. /* Address of GOT entry fix up */
  58. got_addr = (char **) DL_RELOC_ADDR(tpnt->loadaddr, this_reloc->r_offset);
  59. /* Get the address to be used to fill in the GOT entry. */
  60. new_addr = _dl_find_hash(symname, tpnt->symbol_scope, tpnt,
  61. ELF_RTYPE_CLASS_PLT, NULL);
  62. if (unlikely(!new_addr)) {
  63. _dl_dprintf(2, "%s: can't resolve symbol '%s' in lib '%s'.\n", _dl_progname, symname, tpnt->libname);
  64. _dl_exit(1);
  65. }
  66. #if defined (__SUPPORT_LD_DEBUG__)
  67. if (_dl_debug_bindings) {
  68. _dl_dprintf(_dl_debug_file, "\nresolve function: %s", symname);
  69. if (_dl_debug_detail)
  70. _dl_dprintf(_dl_debug_file,
  71. "\n\tpatched %x ==> %x @ %x\n",
  72. *got_addr, new_addr, got_addr);
  73. }
  74. if (!_dl_debug_nofixups) {
  75. *got_addr = new_addr;
  76. }
  77. #else
  78. *got_addr = new_addr;
  79. #endif
  80. return new_addr;
  81. }
  82. static int
  83. _dl_parse(struct elf_resolve *tpnt, struct dyn_elf *scope,
  84. unsigned long rel_addr, unsigned long rel_size,
  85. int (*reloc_fnc) (struct elf_resolve *tpnt, struct dyn_elf *scope,
  86. ELF_RELOC *rpnt, Elf32_Sym *symtab, char *strtab))
  87. {
  88. unsigned int i;
  89. char *strtab;
  90. Elf32_Sym *symtab;
  91. ELF_RELOC *rpnt;
  92. int symtab_index;
  93. /* Now parse the relocation information */
  94. rpnt = (ELF_RELOC *)rel_addr;
  95. rel_size = rel_size / sizeof(ELF_RELOC);
  96. symtab = (Elf32_Sym *)tpnt->dynamic_info[DT_SYMTAB];
  97. strtab = (char *)tpnt->dynamic_info[DT_STRTAB];
  98. for (i = 0; i < rel_size; i++, rpnt++) {
  99. int res;
  100. symtab_index = ELF32_R_SYM(rpnt->r_info);
  101. debug_sym(symtab,strtab,symtab_index);
  102. debug_reloc(symtab,strtab,rpnt);
  103. res = reloc_fnc (tpnt, scope, rpnt, symtab, strtab);
  104. if (res==0) continue;
  105. _dl_dprintf(2, "\n%s: ",_dl_progname);
  106. if (symtab_index)
  107. _dl_dprintf(2, "symbol '%s': ", strtab + symtab[symtab_index].st_name);
  108. if (res <0) {
  109. int reloc_type = ELF32_R_TYPE(rpnt->r_info);
  110. #if defined (__SUPPORT_LD_DEBUG__)
  111. _dl_dprintf(2, "can't handle reloc type %s\n ", _dl_reltypes(reloc_type));
  112. #else
  113. _dl_dprintf(2, "can't handle reloc type %x\n", reloc_type);
  114. #endif
  115. _dl_exit(-res);
  116. } else if (res >0) {
  117. _dl_dprintf(2, "can't resolve symbol\n");
  118. return res;
  119. }
  120. }
  121. _dl_c6x_flush_relocs(tpnt->loadaddr.map);
  122. return 0;
  123. }
  124. static int
  125. _dl_do_reloc (struct elf_resolve *tpnt,struct dyn_elf *scope,
  126. ELF_RELOC *rpnt, Elf32_Sym *symtab, char *strtab)
  127. {
  128. int reloc_type;
  129. int symtab_index;
  130. char *symname;
  131. unsigned long *reloc_addr;
  132. unsigned long symbol_addr, sym_val;
  133. long reloc_addend;
  134. unsigned long old_val, new_val;
  135. reloc_addr = (unsigned long *)(intptr_t)
  136. DL_RELOC_ADDR (tpnt->loadaddr, rpnt->r_offset);
  137. reloc_type = ELF32_R_TYPE(rpnt->r_info);
  138. reloc_addend = rpnt->r_addend;
  139. symtab_index = ELF32_R_SYM(rpnt->r_info);
  140. symbol_addr = 0;
  141. symname = strtab + symtab[symtab_index].st_name;
  142. if (ELF32_ST_BIND (symtab[symtab_index].st_info) == STB_LOCAL) {
  143. symbol_addr = (unsigned long)
  144. DL_RELOC_ADDR (tpnt->loadaddr, symtab[symtab_index].st_value);
  145. } else {
  146. symbol_addr = (unsigned long) _dl_find_hash(strtab + symtab[symtab_index].st_name,
  147. scope, tpnt, elf_machine_type_class(reloc_type),
  148. NULL);
  149. /*
  150. * We want to allow undefined references to weak symbols - this might
  151. * have been intentional. We should not be linking local symbols
  152. * here, so all bases should be covered.
  153. */
  154. if (!symbol_addr && ELF32_ST_BIND(symtab[symtab_index].st_info) != STB_WEAK) {
  155. _dl_dprintf (2, "%s: can't resolve symbol '%s'\n",
  156. _dl_progname, strtab + symtab[symtab_index].st_name);
  157. _dl_exit (1);
  158. }
  159. }
  160. old_val = *reloc_addr;
  161. sym_val = symbol_addr + reloc_addend;
  162. switch (reloc_type) {
  163. case R_C6000_NONE:
  164. break;
  165. case R_C6000_ABS32:
  166. case R_C6000_JUMP_SLOT:
  167. new_val = sym_val;
  168. *reloc_addr = sym_val;
  169. break;
  170. case R_C6000_DSBT_INDEX:
  171. new_val = (old_val & ~0x007fff00) | ((tpnt->loadaddr.map->dsbt_index & 0x7fff) << 8);
  172. *reloc_addr = new_val;
  173. break;
  174. case R_C6000_ABS_L16:
  175. new_val = (old_val & ~0x007fff80) | ((sym_val & 0xffff) << 7);
  176. *reloc_addr = new_val;
  177. break;
  178. case R_C6000_ABS_H16:
  179. new_val = (old_val & ~0x007fff80) | ((sym_val >> 9) & 0x007fff80);
  180. *reloc_addr = new_val;
  181. break;
  182. case R_C6000_PCR_S21:
  183. new_val = sym_val - (((unsigned long)reloc_addr) & ~31);
  184. *reloc_addr = (old_val & ~0x0fffff80) | (((new_val >> 2) & 0x1fffff) << 7);
  185. break;
  186. case R_C6000_COPY:
  187. if (symbol_addr) {
  188. #if defined (__SUPPORT_LD_DEBUG__)
  189. if (_dl_debug_move)
  190. _dl_dprintf(_dl_debug_file,
  191. "\n%s move %d bytes from %x to %x",
  192. symname, symtab[symtab_index].st_size,
  193. symbol_addr, reloc_addr);
  194. #endif
  195. _dl_memcpy((char *)reloc_addr,
  196. (char *)symbol_addr,
  197. symtab[symtab_index].st_size);
  198. }
  199. return 0;
  200. default:
  201. return -1; /*call _dl_exit(1) */
  202. }
  203. #if defined (__SUPPORT_LD_DEBUG__)
  204. if (_dl_debug_reloc && _dl_debug_detail && reloc_type != R_C6000_NONE) {
  205. _dl_dprintf(_dl_debug_file, "\tpatched: %x ==> %x @ %x\n", old_val, new_val, reloc_addr);
  206. }
  207. #endif
  208. return 0;
  209. }
  210. static int
  211. _dl_do_lazy_reloc (struct elf_resolve *tpnt,
  212. struct dyn_elf *scope attribute_unused,
  213. ELF_RELOC *rpnt, ElfW(Sym) *symtab attribute_unused,
  214. char *strtab attribute_unused)
  215. {
  216. int reloc_type;
  217. unsigned long *reloc_addr;
  218. unsigned long old_val;
  219. reloc_addr = (unsigned long *) DL_RELOC_ADDR(tpnt->loadaddr, rpnt->r_offset);
  220. reloc_type = ELF_R_TYPE(rpnt->r_info);
  221. old_val = *reloc_addr;
  222. switch (reloc_type) {
  223. case R_C6000_NONE:
  224. break;
  225. case R_C6000_JUMP_SLOT:
  226. *reloc_addr = DL_RELOC_ADDR(tpnt->loadaddr, old_val);
  227. break;
  228. default:
  229. return -1;
  230. }
  231. #if defined (__SUPPORT_LD_DEBUG__)
  232. if (_dl_debug_reloc && _dl_debug_detail)
  233. _dl_dprintf(_dl_debug_file, "\n\tpatched: %x ==> %x @ %x\n",
  234. old_val, *reloc_addr, reloc_addr);
  235. #endif
  236. return 0;
  237. }
  238. void
  239. _dl_parse_lazy_relocation_information
  240. (struct dyn_elf *rpnt, unsigned long rel_addr, unsigned long rel_size)
  241. {
  242. _dl_parse(rpnt->dyn, NULL, rel_addr, rel_size, _dl_do_lazy_reloc);
  243. }
  244. int
  245. _dl_parse_relocation_information
  246. (struct dyn_elf *rpnt, unsigned long rel_addr, unsigned long rel_size)
  247. {
  248. return _dl_parse(rpnt->dyn, rpnt->dyn->symbol_scope, rel_addr, rel_size, _dl_do_reloc);
  249. }
  250. /* We don't have copy relocs. */
  251. int
  252. _dl_parse_copy_information
  253. (struct dyn_elf *rpnt,
  254. unsigned long rel_addr,
  255. unsigned long rel_size)
  256. {
  257. return 0;
  258. }