binfmt_elf_fdpic.c 48 KB

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  1. /* binfmt_elf_fdpic.c: FDPIC ELF binary format
  2. *
  3. * Copyright (C) 2003, 2004, 2006 Red Hat, Inc. All Rights Reserved.
  4. * Written by David Howells (dhowells@redhat.com)
  5. * Derived from binfmt_elf.c
  6. *
  7. * This program is free software; you can redistribute it and/or
  8. * modify it under the terms of the GNU General Public License
  9. * as published by the Free Software Foundation; either version
  10. * 2 of the License, or (at your option) any later version.
  11. */
  12. #include <linux/module.h>
  13. #include <linux/fs.h>
  14. #include <linux/stat.h>
  15. #include <linux/sched.h>
  16. #include <linux/mm.h>
  17. #include <linux/mman.h>
  18. #include <linux/errno.h>
  19. #include <linux/signal.h>
  20. #include <linux/binfmts.h>
  21. #include <linux/string.h>
  22. #include <linux/file.h>
  23. #include <linux/fcntl.h>
  24. #include <linux/slab.h>
  25. #include <linux/pagemap.h>
  26. #include <linux/security.h>
  27. #include <linux/highmem.h>
  28. #include <linux/highuid.h>
  29. #include <linux/personality.h>
  30. #include <linux/ptrace.h>
  31. #include <linux/init.h>
  32. #include <linux/elf.h>
  33. #include <linux/elf-fdpic.h>
  34. #include <linux/elfcore.h>
  35. #include <asm/uaccess.h>
  36. #include <asm/param.h>
  37. #include <asm/pgalloc.h>
  38. typedef char *elf_caddr_t;
  39. #if 0
  40. #define kdebug(fmt, ...) printk("FDPIC "fmt"\n" ,##__VA_ARGS__ )
  41. #else
  42. #define kdebug(fmt, ...) do {} while(0)
  43. #endif
  44. #if 0
  45. #define kdcore(fmt, ...) printk("FDPIC "fmt"\n" ,##__VA_ARGS__ )
  46. #else
  47. #define kdcore(fmt, ...) do {} while(0)
  48. #endif
  49. MODULE_LICENSE("GPL");
  50. static int load_elf_fdpic_binary(struct linux_binprm *, struct pt_regs *);
  51. static int elf_fdpic_fetch_phdrs(struct elf_fdpic_params *, struct file *);
  52. static int elf_fdpic_map_file(struct elf_fdpic_params *, struct file *,
  53. struct mm_struct *, const char *);
  54. static int create_elf_fdpic_tables(struct linux_binprm *, struct mm_struct *,
  55. struct elf_fdpic_params *,
  56. struct elf_fdpic_params *);
  57. #ifndef CONFIG_MMU
  58. static int elf_fdpic_transfer_args_to_stack(struct linux_binprm *,
  59. unsigned long *);
  60. static int elf_fdpic_map_file_constdisp_on_uclinux(struct elf_fdpic_params *,
  61. struct file *,
  62. struct mm_struct *);
  63. #endif
  64. static int elf_fdpic_map_file_by_direct_mmap(struct elf_fdpic_params *,
  65. struct file *, struct mm_struct *);
  66. #ifdef CONFIG_ELF_CORE
  67. static int elf_fdpic_core_dump(struct coredump_params *cprm);
  68. #endif
  69. static struct linux_binfmt elf_fdpic_format = {
  70. .module = THIS_MODULE,
  71. .load_binary = load_elf_fdpic_binary,
  72. #ifdef CONFIG_ELF_CORE
  73. .core_dump = elf_fdpic_core_dump,
  74. #endif
  75. .min_coredump = ELF_EXEC_PAGESIZE,
  76. };
  77. static int __init init_elf_fdpic_binfmt(void)
  78. {
  79. return register_binfmt(&elf_fdpic_format);
  80. }
  81. static void __exit exit_elf_fdpic_binfmt(void)
  82. {
  83. unregister_binfmt(&elf_fdpic_format);
  84. }
  85. core_initcall(init_elf_fdpic_binfmt);
  86. module_exit(exit_elf_fdpic_binfmt);
  87. static int is_elf_fdpic(struct elfhdr *hdr, struct file *file)
  88. {
  89. if (memcmp(hdr->e_ident, ELFMAG, SELFMAG) != 0)
  90. return 0;
  91. if (hdr->e_type != ET_EXEC && hdr->e_type != ET_DYN)
  92. return 0;
  93. if (!elf_check_arch(hdr) || !elf_check_fdpic(hdr))
  94. return 0;
  95. if (!file->f_op || !file->f_op->mmap)
  96. return 0;
  97. return 1;
  98. }
  99. /*****************************************************************************/
  100. /*
  101. * read the program headers table into memory
  102. */
  103. static int elf_fdpic_fetch_phdrs(struct elf_fdpic_params *params,
  104. struct file *file)
  105. {
  106. struct elf32_phdr *phdr;
  107. unsigned long size;
  108. int retval, loop;
  109. if (params->hdr.e_phentsize != sizeof(struct elf_phdr))
  110. return -ENOMEM;
  111. if (params->hdr.e_phnum > 65536U / sizeof(struct elf_phdr))
  112. return -ENOMEM;
  113. size = params->hdr.e_phnum * sizeof(struct elf_phdr);
  114. params->phdrs = kmalloc(size, GFP_KERNEL);
  115. if (!params->phdrs)
  116. return -ENOMEM;
  117. retval = kernel_read(file, params->hdr.e_phoff,
  118. (char *) params->phdrs, size);
  119. if (unlikely(retval != size))
  120. return retval < 0 ? retval : -ENOEXEC;
  121. /* determine stack size for this binary */
  122. phdr = params->phdrs;
  123. for (loop = 0; loop < params->hdr.e_phnum; loop++, phdr++) {
  124. if (phdr->p_type != PT_GNU_STACK)
  125. continue;
  126. if (phdr->p_flags & PF_X)
  127. params->flags |= ELF_FDPIC_FLAG_EXEC_STACK;
  128. else
  129. params->flags |= ELF_FDPIC_FLAG_NOEXEC_STACK;
  130. params->stack_size = phdr->p_memsz;
  131. break;
  132. }
  133. return 0;
  134. }
  135. /*****************************************************************************/
  136. /*
  137. * load an fdpic binary into various bits of memory
  138. */
  139. static int load_elf_fdpic_binary(struct linux_binprm *bprm,
  140. struct pt_regs *regs)
  141. {
  142. struct elf_fdpic_params exec_params, interp_params;
  143. struct elf_phdr *phdr;
  144. unsigned long stack_size, entryaddr;
  145. #ifdef ELF_FDPIC_PLAT_INIT
  146. unsigned long dynaddr;
  147. #endif
  148. #ifndef CONFIG_MMU
  149. unsigned long stack_prot;
  150. #endif
  151. struct file *interpreter = NULL; /* to shut gcc up */
  152. char *interpreter_name = NULL;
  153. int executable_stack;
  154. int retval, i;
  155. kdebug("____ LOAD %d ____", current->pid);
  156. memset(&exec_params, 0, sizeof(exec_params));
  157. memset(&interp_params, 0, sizeof(interp_params));
  158. exec_params.hdr = *(struct elfhdr *) bprm->buf;
  159. exec_params.flags = ELF_FDPIC_FLAG_PRESENT | ELF_FDPIC_FLAG_EXECUTABLE;
  160. /* check that this is a binary we know how to deal with */
  161. retval = -ENOEXEC;
  162. if (!is_elf_fdpic(&exec_params.hdr, bprm->file))
  163. goto error;
  164. /* read the program header table */
  165. retval = elf_fdpic_fetch_phdrs(&exec_params, bprm->file);
  166. if (retval < 0)
  167. goto error;
  168. /* scan for a program header that specifies an interpreter */
  169. phdr = exec_params.phdrs;
  170. for (i = 0; i < exec_params.hdr.e_phnum; i++, phdr++) {
  171. switch (phdr->p_type) {
  172. case PT_INTERP:
  173. retval = -ENOMEM;
  174. if (phdr->p_filesz > PATH_MAX)
  175. goto error;
  176. retval = -ENOENT;
  177. if (phdr->p_filesz < 2)
  178. goto error;
  179. /* read the name of the interpreter into memory */
  180. interpreter_name = kmalloc(phdr->p_filesz, GFP_KERNEL);
  181. if (!interpreter_name)
  182. goto error;
  183. retval = kernel_read(bprm->file,
  184. phdr->p_offset,
  185. interpreter_name,
  186. phdr->p_filesz);
  187. if (unlikely(retval != phdr->p_filesz)) {
  188. if (retval >= 0)
  189. retval = -ENOEXEC;
  190. goto error;
  191. }
  192. retval = -ENOENT;
  193. if (interpreter_name[phdr->p_filesz - 1] != '\0')
  194. goto error;
  195. kdebug("Using ELF interpreter %s", interpreter_name);
  196. /* replace the program with the interpreter */
  197. interpreter = open_exec(interpreter_name);
  198. retval = PTR_ERR(interpreter);
  199. if (IS_ERR(interpreter)) {
  200. interpreter = NULL;
  201. goto error;
  202. }
  203. /*
  204. * If the binary is not readable then enforce
  205. * mm->dumpable = 0 regardless of the interpreter's
  206. * permissions.
  207. */
  208. if (file_permission(interpreter, MAY_READ) < 0)
  209. bprm->interp_flags |= BINPRM_FLAGS_ENFORCE_NONDUMP;
  210. retval = kernel_read(interpreter, 0, bprm->buf,
  211. BINPRM_BUF_SIZE);
  212. if (unlikely(retval != BINPRM_BUF_SIZE)) {
  213. if (retval >= 0)
  214. retval = -ENOEXEC;
  215. goto error;
  216. }
  217. interp_params.hdr = *((struct elfhdr *) bprm->buf);
  218. break;
  219. case PT_LOAD:
  220. #ifdef CONFIG_MMU
  221. if (exec_params.load_addr == 0)
  222. exec_params.load_addr = phdr->p_vaddr;
  223. #endif
  224. break;
  225. }
  226. }
  227. if (elf_check_const_displacement(&exec_params.hdr))
  228. exec_params.flags |= ELF_FDPIC_FLAG_CONSTDISP;
  229. /* perform insanity checks on the interpreter */
  230. if (interpreter_name) {
  231. retval = -ELIBBAD;
  232. if (!is_elf_fdpic(&interp_params.hdr, interpreter))
  233. goto error;
  234. interp_params.flags = ELF_FDPIC_FLAG_PRESENT;
  235. /* read the interpreter's program header table */
  236. retval = elf_fdpic_fetch_phdrs(&interp_params, interpreter);
  237. if (retval < 0)
  238. goto error;
  239. }
  240. stack_size = exec_params.stack_size;
  241. if (exec_params.flags & ELF_FDPIC_FLAG_EXEC_STACK)
  242. executable_stack = EXSTACK_ENABLE_X;
  243. else if (exec_params.flags & ELF_FDPIC_FLAG_NOEXEC_STACK)
  244. executable_stack = EXSTACK_DISABLE_X;
  245. else
  246. executable_stack = EXSTACK_DEFAULT;
  247. if (stack_size == 0) {
  248. stack_size = interp_params.stack_size;
  249. if (interp_params.flags & ELF_FDPIC_FLAG_EXEC_STACK)
  250. executable_stack = EXSTACK_ENABLE_X;
  251. else if (interp_params.flags & ELF_FDPIC_FLAG_NOEXEC_STACK)
  252. executable_stack = EXSTACK_DISABLE_X;
  253. else
  254. executable_stack = EXSTACK_DEFAULT;
  255. }
  256. retval = -ENOEXEC;
  257. if (stack_size == 0)
  258. goto error;
  259. if (elf_check_const_displacement(&interp_params.hdr))
  260. interp_params.flags |= ELF_FDPIC_FLAG_CONSTDISP;
  261. /* flush all traces of the currently running executable */
  262. retval = flush_old_exec(bprm);
  263. if (retval)
  264. goto error;
  265. /* there's now no turning back... the old userspace image is dead,
  266. * defunct, deceased, etc. after this point we have to exit via
  267. * error_kill */
  268. set_personality(PER_LINUX_FDPIC);
  269. if (elf_read_implies_exec(&exec_params.hdr, executable_stack))
  270. current->personality |= READ_IMPLIES_EXEC;
  271. set_binfmt(&elf_fdpic_format);
  272. current->mm->start_code = 0;
  273. current->mm->end_code = 0;
  274. current->mm->start_stack = 0;
  275. current->mm->start_data = 0;
  276. current->mm->end_data = 0;
  277. current->mm->context.exec_fdpic_loadmap = 0;
  278. current->mm->context.interp_fdpic_loadmap = 0;
  279. current->flags &= ~PF_FORKNOEXEC;
  280. #ifdef CONFIG_MMU
  281. elf_fdpic_arch_lay_out_mm(&exec_params,
  282. &interp_params,
  283. &current->mm->start_stack,
  284. &current->mm->start_brk);
  285. retval = setup_arg_pages(bprm, current->mm->start_stack,
  286. executable_stack);
  287. if (retval < 0) {
  288. send_sig(SIGKILL, current, 0);
  289. goto error_kill;
  290. }
  291. #endif
  292. /* load the executable and interpreter into memory */
  293. retval = elf_fdpic_map_file(&exec_params, bprm->file, current->mm,
  294. "executable");
  295. if (retval < 0)
  296. goto error_kill;
  297. if (interpreter_name) {
  298. retval = elf_fdpic_map_file(&interp_params, interpreter,
  299. current->mm, "interpreter");
  300. if (retval < 0) {
  301. printk(KERN_ERR "Unable to load interpreter\n");
  302. goto error_kill;
  303. }
  304. allow_write_access(interpreter);
  305. fput(interpreter);
  306. interpreter = NULL;
  307. }
  308. #ifdef CONFIG_MMU
  309. if (!current->mm->start_brk)
  310. current->mm->start_brk = current->mm->end_data;
  311. current->mm->brk = current->mm->start_brk =
  312. PAGE_ALIGN(current->mm->start_brk);
  313. #else
  314. /* create a stack and brk area big enough for everyone
  315. * - the brk heap starts at the bottom and works up
  316. * - the stack starts at the top and works down
  317. */
  318. stack_size = (stack_size + PAGE_SIZE - 1) & PAGE_MASK;
  319. if (stack_size < PAGE_SIZE * 2)
  320. stack_size = PAGE_SIZE * 2;
  321. stack_prot = PROT_READ | PROT_WRITE;
  322. if (executable_stack == EXSTACK_ENABLE_X ||
  323. (executable_stack == EXSTACK_DEFAULT && VM_STACK_FLAGS & VM_EXEC))
  324. stack_prot |= PROT_EXEC;
  325. down_write(&current->mm->mmap_sem);
  326. current->mm->start_brk = do_mmap(NULL, 0, stack_size, stack_prot,
  327. MAP_PRIVATE | MAP_ANONYMOUS |
  328. MAP_UNINITIALIZED | MAP_GROWSDOWN,
  329. 0);
  330. if (IS_ERR_VALUE(current->mm->start_brk)) {
  331. up_write(&current->mm->mmap_sem);
  332. retval = current->mm->start_brk;
  333. current->mm->start_brk = 0;
  334. goto error_kill;
  335. }
  336. up_write(&current->mm->mmap_sem);
  337. current->mm->brk = current->mm->start_brk;
  338. current->mm->context.end_brk = current->mm->start_brk;
  339. current->mm->context.end_brk +=
  340. (stack_size > PAGE_SIZE) ? (stack_size - PAGE_SIZE) : 0;
  341. current->mm->start_stack = current->mm->start_brk + stack_size;
  342. #endif
  343. install_exec_creds(bprm);
  344. current->flags &= ~PF_FORKNOEXEC;
  345. if (create_elf_fdpic_tables(bprm, current->mm,
  346. &exec_params, &interp_params) < 0)
  347. goto error_kill;
  348. kdebug("- start_code %lx", current->mm->start_code);
  349. kdebug("- end_code %lx", current->mm->end_code);
  350. kdebug("- start_data %lx", current->mm->start_data);
  351. kdebug("- end_data %lx", current->mm->end_data);
  352. kdebug("- start_brk %lx", current->mm->start_brk);
  353. kdebug("- brk %lx", current->mm->brk);
  354. kdebug("- start_stack %lx", current->mm->start_stack);
  355. #ifdef ELF_FDPIC_PLAT_INIT
  356. /*
  357. * The ABI may specify that certain registers be set up in special
  358. * ways (on i386 %edx is the address of a DT_FINI function, for
  359. * example. This macro performs whatever initialization to
  360. * the regs structure is required.
  361. */
  362. dynaddr = interp_params.dynamic_addr ?: exec_params.dynamic_addr;
  363. ELF_FDPIC_PLAT_INIT(regs, exec_params.map_addr, interp_params.map_addr,
  364. dynaddr);
  365. #endif
  366. /* everything is now ready... get the userspace context ready to roll */
  367. entryaddr = interp_params.entry_addr ?: exec_params.entry_addr;
  368. start_thread(regs, entryaddr, current->mm->start_stack);
  369. retval = 0;
  370. error:
  371. if (interpreter) {
  372. allow_write_access(interpreter);
  373. fput(interpreter);
  374. }
  375. kfree(interpreter_name);
  376. kfree(exec_params.phdrs);
  377. kfree(exec_params.loadmap);
  378. kfree(interp_params.phdrs);
  379. kfree(interp_params.loadmap);
  380. return retval;
  381. /* unrecoverable error - kill the process */
  382. error_kill:
  383. send_sig(SIGSEGV, current, 0);
  384. goto error;
  385. }
  386. /*****************************************************************************/
  387. #ifndef ELF_BASE_PLATFORM
  388. /*
  389. * AT_BASE_PLATFORM indicates the "real" hardware/microarchitecture.
  390. * If the arch defines ELF_BASE_PLATFORM (in asm/elf.h), the value
  391. * will be copied to the user stack in the same manner as AT_PLATFORM.
  392. */
  393. #define ELF_BASE_PLATFORM NULL
  394. #endif
  395. /*
  396. * present useful information to the program by shovelling it onto the new
  397. * process's stack
  398. */
  399. static int create_elf_fdpic_tables(struct linux_binprm *bprm,
  400. struct mm_struct *mm,
  401. struct elf_fdpic_params *exec_params,
  402. struct elf_fdpic_params *interp_params)
  403. {
  404. const struct cred *cred = current_cred();
  405. unsigned long sp, csp, nitems;
  406. elf_caddr_t __user *argv, *envp;
  407. size_t platform_len = 0, len;
  408. char *k_platform, *k_base_platform;
  409. char __user *u_platform, *u_base_platform, *p;
  410. long hwcap;
  411. int loop;
  412. int nr; /* reset for each csp adjustment */
  413. #ifdef CONFIG_MMU
  414. /* In some cases (e.g. Hyper-Threading), we want to avoid L1 evictions
  415. * by the processes running on the same package. One thing we can do is
  416. * to shuffle the initial stack for them, so we give the architecture
  417. * an opportunity to do so here.
  418. */
  419. sp = arch_align_stack(bprm->p);
  420. #else
  421. sp = mm->start_stack;
  422. /* stack the program arguments and environment */
  423. if (elf_fdpic_transfer_args_to_stack(bprm, &sp) < 0)
  424. return -EFAULT;
  425. #endif
  426. hwcap = ELF_HWCAP;
  427. /*
  428. * If this architecture has a platform capability string, copy it
  429. * to userspace. In some cases (Sparc), this info is impossible
  430. * for userspace to get any other way, in others (i386) it is
  431. * merely difficult.
  432. */
  433. k_platform = ELF_PLATFORM;
  434. u_platform = NULL;
  435. if (k_platform) {
  436. platform_len = strlen(k_platform) + 1;
  437. sp -= platform_len;
  438. u_platform = (char __user *) sp;
  439. if (__copy_to_user(u_platform, k_platform, platform_len) != 0)
  440. return -EFAULT;
  441. }
  442. /*
  443. * If this architecture has a "base" platform capability
  444. * string, copy it to userspace.
  445. */
  446. k_base_platform = ELF_BASE_PLATFORM;
  447. u_base_platform = NULL;
  448. if (k_base_platform) {
  449. platform_len = strlen(k_base_platform) + 1;
  450. sp -= platform_len;
  451. u_base_platform = (char __user *) sp;
  452. if (__copy_to_user(u_base_platform, k_base_platform, platform_len) != 0)
  453. return -EFAULT;
  454. }
  455. sp &= ~7UL;
  456. /* stack the load map(s) */
  457. len = sizeof(struct elf32_fdpic_loadmap);
  458. len += sizeof(struct elf32_fdpic_loadseg) * exec_params->loadmap->nsegs;
  459. sp = (sp - len) & ~7UL;
  460. exec_params->map_addr = sp;
  461. if (copy_to_user((void __user *) sp, exec_params->loadmap, len) != 0)
  462. return -EFAULT;
  463. current->mm->context.exec_fdpic_loadmap = (unsigned long) sp;
  464. if (interp_params->loadmap) {
  465. len = sizeof(struct elf32_fdpic_loadmap);
  466. len += sizeof(struct elf32_fdpic_loadseg) *
  467. interp_params->loadmap->nsegs;
  468. sp = (sp - len) & ~7UL;
  469. interp_params->map_addr = sp;
  470. if (copy_to_user((void __user *) sp, interp_params->loadmap,
  471. len) != 0)
  472. return -EFAULT;
  473. current->mm->context.interp_fdpic_loadmap = (unsigned long) sp;
  474. }
  475. /* force 16 byte _final_ alignment here for generality */
  476. #define DLINFO_ITEMS 15
  477. nitems = 1 + DLINFO_ITEMS + (k_platform ? 1 : 0) +
  478. (k_base_platform ? 1 : 0) + AT_VECTOR_SIZE_ARCH;
  479. if (bprm->interp_flags & BINPRM_FLAGS_EXECFD)
  480. nitems++;
  481. csp = sp;
  482. sp -= nitems * 2 * sizeof(unsigned long);
  483. sp -= (bprm->envc + 1) * sizeof(char *); /* envv[] */
  484. sp -= (bprm->argc + 1) * sizeof(char *); /* argv[] */
  485. sp -= 1 * sizeof(unsigned long); /* argc */
  486. csp -= sp & 15UL;
  487. sp -= sp & 15UL;
  488. /* put the ELF interpreter info on the stack */
  489. #define NEW_AUX_ENT(id, val) \
  490. do { \
  491. struct { unsigned long _id, _val; } __user *ent; \
  492. \
  493. ent = (void __user *) csp; \
  494. __put_user((id), &ent[nr]._id); \
  495. __put_user((val), &ent[nr]._val); \
  496. nr++; \
  497. } while (0)
  498. nr = 0;
  499. csp -= 2 * sizeof(unsigned long);
  500. NEW_AUX_ENT(AT_NULL, 0);
  501. if (k_platform) {
  502. nr = 0;
  503. csp -= 2 * sizeof(unsigned long);
  504. NEW_AUX_ENT(AT_PLATFORM,
  505. (elf_addr_t) (unsigned long) u_platform);
  506. }
  507. if (k_base_platform) {
  508. nr = 0;
  509. csp -= 2 * sizeof(unsigned long);
  510. NEW_AUX_ENT(AT_BASE_PLATFORM,
  511. (elf_addr_t) (unsigned long) u_base_platform);
  512. }
  513. if (bprm->interp_flags & BINPRM_FLAGS_EXECFD) {
  514. nr = 0;
  515. csp -= 2 * sizeof(unsigned long);
  516. NEW_AUX_ENT(AT_EXECFD, bprm->interp_data);
  517. }
  518. nr = 0;
  519. csp -= DLINFO_ITEMS * 2 * sizeof(unsigned long);
  520. NEW_AUX_ENT(AT_HWCAP, hwcap);
  521. NEW_AUX_ENT(AT_PAGESZ, PAGE_SIZE);
  522. NEW_AUX_ENT(AT_CLKTCK, CLOCKS_PER_SEC);
  523. NEW_AUX_ENT(AT_PHDR, exec_params->ph_addr);
  524. NEW_AUX_ENT(AT_PHENT, sizeof(struct elf_phdr));
  525. NEW_AUX_ENT(AT_PHNUM, exec_params->hdr.e_phnum);
  526. NEW_AUX_ENT(AT_BASE, interp_params->elfhdr_addr);
  527. NEW_AUX_ENT(AT_FLAGS, 0);
  528. NEW_AUX_ENT(AT_ENTRY, exec_params->entry_addr);
  529. NEW_AUX_ENT(AT_UID, (elf_addr_t) cred->uid);
  530. NEW_AUX_ENT(AT_EUID, (elf_addr_t) cred->euid);
  531. NEW_AUX_ENT(AT_GID, (elf_addr_t) cred->gid);
  532. NEW_AUX_ENT(AT_EGID, (elf_addr_t) cred->egid);
  533. NEW_AUX_ENT(AT_SECURE, security_bprm_secureexec(bprm));
  534. NEW_AUX_ENT(AT_EXECFN, bprm->exec);
  535. #ifdef ARCH_DLINFO
  536. nr = 0;
  537. csp -= AT_VECTOR_SIZE_ARCH * 2 * sizeof(unsigned long);
  538. /* ARCH_DLINFO must come last so platform specific code can enforce
  539. * special alignment requirements on the AUXV if necessary (eg. PPC).
  540. */
  541. ARCH_DLINFO;
  542. #endif
  543. #undef NEW_AUX_ENT
  544. /* allocate room for argv[] and envv[] */
  545. csp -= (bprm->envc + 1) * sizeof(elf_caddr_t);
  546. envp = (elf_caddr_t __user *) csp;
  547. csp -= (bprm->argc + 1) * sizeof(elf_caddr_t);
  548. argv = (elf_caddr_t __user *) csp;
  549. /* stack argc */
  550. csp -= sizeof(unsigned long);
  551. __put_user(bprm->argc, (unsigned long __user *) csp);
  552. BUG_ON(csp != sp);
  553. /* fill in the argv[] array */
  554. #ifdef CONFIG_MMU
  555. current->mm->arg_start = bprm->p;
  556. #else
  557. current->mm->arg_start = current->mm->start_stack -
  558. (MAX_ARG_PAGES * PAGE_SIZE - bprm->p);
  559. #endif
  560. p = (char __user *) current->mm->arg_start;
  561. for (loop = bprm->argc; loop > 0; loop--) {
  562. __put_user((elf_caddr_t) p, argv++);
  563. len = strnlen_user(p, MAX_ARG_STRLEN);
  564. if (!len || len > MAX_ARG_STRLEN)
  565. return -EINVAL;
  566. p += len;
  567. }
  568. __put_user(NULL, argv);
  569. current->mm->arg_end = (unsigned long) p;
  570. /* fill in the envv[] array */
  571. current->mm->env_start = (unsigned long) p;
  572. for (loop = bprm->envc; loop > 0; loop--) {
  573. __put_user((elf_caddr_t)(unsigned long) p, envp++);
  574. len = strnlen_user(p, MAX_ARG_STRLEN);
  575. if (!len || len > MAX_ARG_STRLEN)
  576. return -EINVAL;
  577. p += len;
  578. }
  579. __put_user(NULL, envp);
  580. current->mm->env_end = (unsigned long) p;
  581. mm->start_stack = (unsigned long) sp;
  582. return 0;
  583. }
  584. /*****************************************************************************/
  585. /*
  586. * transfer the program arguments and environment from the holding pages onto
  587. * the stack
  588. */
  589. #ifndef CONFIG_MMU
  590. static int elf_fdpic_transfer_args_to_stack(struct linux_binprm *bprm,
  591. unsigned long *_sp)
  592. {
  593. unsigned long index, stop, sp;
  594. char *src;
  595. int ret = 0;
  596. stop = bprm->p >> PAGE_SHIFT;
  597. sp = *_sp;
  598. for (index = MAX_ARG_PAGES - 1; index >= stop; index--) {
  599. src = kmap(bprm->page[index]);
  600. sp -= PAGE_SIZE;
  601. if (copy_to_user((void *) sp, src, PAGE_SIZE) != 0)
  602. ret = -EFAULT;
  603. kunmap(bprm->page[index]);
  604. if (ret < 0)
  605. goto out;
  606. }
  607. *_sp = (*_sp - (MAX_ARG_PAGES * PAGE_SIZE - bprm->p)) & ~15;
  608. out:
  609. return ret;
  610. }
  611. #endif
  612. /*****************************************************************************/
  613. /*
  614. * load the appropriate binary image (executable or interpreter) into memory
  615. * - we assume no MMU is available
  616. * - if no other PIC bits are set in params->hdr->e_flags
  617. * - we assume that the LOADable segments in the binary are independently relocatable
  618. * - we assume R/O executable segments are shareable
  619. * - else
  620. * - we assume the loadable parts of the image to require fixed displacement
  621. * - the image is not shareable
  622. */
  623. static int elf_fdpic_map_file(struct elf_fdpic_params *params,
  624. struct file *file,
  625. struct mm_struct *mm,
  626. const char *what)
  627. {
  628. struct elf32_fdpic_loadmap *loadmap;
  629. #ifdef CONFIG_MMU
  630. struct elf32_fdpic_loadseg *mseg;
  631. #endif
  632. struct elf32_fdpic_loadseg *seg;
  633. struct elf32_phdr *phdr;
  634. unsigned long load_addr, stop;
  635. unsigned nloads, tmp;
  636. size_t size;
  637. int loop, ret;
  638. /* allocate a load map table */
  639. nloads = 0;
  640. for (loop = 0; loop < params->hdr.e_phnum; loop++)
  641. if (params->phdrs[loop].p_type == PT_LOAD)
  642. nloads++;
  643. if (nloads == 0)
  644. return -ELIBBAD;
  645. size = sizeof(*loadmap) + nloads * sizeof(*seg);
  646. loadmap = kzalloc(size, GFP_KERNEL);
  647. if (!loadmap)
  648. return -ENOMEM;
  649. params->loadmap = loadmap;
  650. loadmap->version = ELF32_FDPIC_LOADMAP_VERSION;
  651. loadmap->nsegs = nloads;
  652. load_addr = params->load_addr;
  653. seg = loadmap->segs;
  654. /* map the requested LOADs into the memory space */
  655. switch (params->flags & ELF_FDPIC_FLAG_ARRANGEMENT) {
  656. case ELF_FDPIC_FLAG_CONSTDISP:
  657. case ELF_FDPIC_FLAG_CONTIGUOUS:
  658. #ifndef CONFIG_MMU
  659. ret = elf_fdpic_map_file_constdisp_on_uclinux(params, file, mm);
  660. if (ret < 0)
  661. return ret;
  662. break;
  663. #endif
  664. default:
  665. ret = elf_fdpic_map_file_by_direct_mmap(params, file, mm);
  666. if (ret < 0)
  667. return ret;
  668. break;
  669. }
  670. /* map the entry point */
  671. if (params->hdr.e_entry) {
  672. seg = loadmap->segs;
  673. for (loop = loadmap->nsegs; loop > 0; loop--, seg++) {
  674. if (params->hdr.e_entry >= seg->p_vaddr &&
  675. params->hdr.e_entry < seg->p_vaddr + seg->p_memsz) {
  676. params->entry_addr =
  677. (params->hdr.e_entry - seg->p_vaddr) +
  678. seg->addr;
  679. break;
  680. }
  681. }
  682. }
  683. /* determine where the program header table has wound up if mapped */
  684. stop = params->hdr.e_phoff;
  685. stop += params->hdr.e_phnum * sizeof (struct elf_phdr);
  686. phdr = params->phdrs;
  687. for (loop = 0; loop < params->hdr.e_phnum; loop++, phdr++) {
  688. if (phdr->p_type != PT_LOAD)
  689. continue;
  690. if (phdr->p_offset > params->hdr.e_phoff ||
  691. phdr->p_offset + phdr->p_filesz < stop)
  692. continue;
  693. seg = loadmap->segs;
  694. for (loop = loadmap->nsegs; loop > 0; loop--, seg++) {
  695. if (phdr->p_vaddr >= seg->p_vaddr &&
  696. phdr->p_vaddr + phdr->p_filesz <=
  697. seg->p_vaddr + seg->p_memsz) {
  698. params->ph_addr =
  699. (phdr->p_vaddr - seg->p_vaddr) +
  700. seg->addr +
  701. params->hdr.e_phoff - phdr->p_offset;
  702. break;
  703. }
  704. }
  705. break;
  706. }
  707. /* determine where the dynamic section has wound up if there is one */
  708. phdr = params->phdrs;
  709. for (loop = 0; loop < params->hdr.e_phnum; loop++, phdr++) {
  710. if (phdr->p_type != PT_DYNAMIC)
  711. continue;
  712. seg = loadmap->segs;
  713. for (loop = loadmap->nsegs; loop > 0; loop--, seg++) {
  714. if (phdr->p_vaddr >= seg->p_vaddr &&
  715. phdr->p_vaddr + phdr->p_memsz <=
  716. seg->p_vaddr + seg->p_memsz) {
  717. params->dynamic_addr =
  718. (phdr->p_vaddr - seg->p_vaddr) +
  719. seg->addr;
  720. /* check the dynamic section contains at least
  721. * one item, and that the last item is a NULL
  722. * entry */
  723. if (phdr->p_memsz == 0 ||
  724. phdr->p_memsz % sizeof(Elf32_Dyn) != 0)
  725. goto dynamic_error;
  726. tmp = phdr->p_memsz / sizeof(Elf32_Dyn);
  727. if (((Elf32_Dyn *)
  728. params->dynamic_addr)[tmp - 1].d_tag != 0)
  729. goto dynamic_error;
  730. break;
  731. }
  732. }
  733. break;
  734. }
  735. /* now elide adjacent segments in the load map on MMU linux
  736. * - on uClinux the holes between may actually be filled with system
  737. * stuff or stuff from other processes
  738. */
  739. #ifdef CONFIG_MMU
  740. nloads = loadmap->nsegs;
  741. mseg = loadmap->segs;
  742. seg = mseg + 1;
  743. for (loop = 1; loop < nloads; loop++) {
  744. /* see if we have a candidate for merging */
  745. if (seg->p_vaddr - mseg->p_vaddr == seg->addr - mseg->addr) {
  746. load_addr = PAGE_ALIGN(mseg->addr + mseg->p_memsz);
  747. if (load_addr == (seg->addr & PAGE_MASK)) {
  748. mseg->p_memsz +=
  749. load_addr -
  750. (mseg->addr + mseg->p_memsz);
  751. mseg->p_memsz += seg->addr & ~PAGE_MASK;
  752. mseg->p_memsz += seg->p_memsz;
  753. loadmap->nsegs--;
  754. continue;
  755. }
  756. }
  757. mseg++;
  758. if (mseg != seg)
  759. *mseg = *seg;
  760. }
  761. #endif
  762. kdebug("Mapped Object [%s]:", what);
  763. kdebug("- elfhdr : %lx", params->elfhdr_addr);
  764. kdebug("- entry : %lx", params->entry_addr);
  765. kdebug("- PHDR[] : %lx", params->ph_addr);
  766. kdebug("- DYNAMIC[]: %lx", params->dynamic_addr);
  767. seg = loadmap->segs;
  768. for (loop = 0; loop < loadmap->nsegs; loop++, seg++)
  769. kdebug("- LOAD[%d] : %08x-%08x [va=%x ms=%x]",
  770. loop,
  771. seg->addr, seg->addr + seg->p_memsz - 1,
  772. seg->p_vaddr, seg->p_memsz);
  773. return 0;
  774. dynamic_error:
  775. printk("ELF FDPIC %s with invalid DYNAMIC section (inode=%lu)\n",
  776. what, file->f_path.dentry->d_inode->i_ino);
  777. return -ELIBBAD;
  778. }
  779. /*****************************************************************************/
  780. /*
  781. * map a file with constant displacement under uClinux
  782. */
  783. #ifndef CONFIG_MMU
  784. static int elf_fdpic_map_file_constdisp_on_uclinux(
  785. struct elf_fdpic_params *params,
  786. struct file *file,
  787. struct mm_struct *mm)
  788. {
  789. struct elf32_fdpic_loadseg *seg;
  790. struct elf32_phdr *phdr;
  791. unsigned long load_addr, base = ULONG_MAX, top = 0, maddr = 0, mflags;
  792. loff_t fpos;
  793. int loop, ret;
  794. load_addr = params->load_addr;
  795. seg = params->loadmap->segs;
  796. /* determine the bounds of the contiguous overall allocation we must
  797. * make */
  798. phdr = params->phdrs;
  799. for (loop = 0; loop < params->hdr.e_phnum; loop++, phdr++) {
  800. if (params->phdrs[loop].p_type != PT_LOAD)
  801. continue;
  802. if (base > phdr->p_vaddr)
  803. base = phdr->p_vaddr;
  804. if (top < phdr->p_vaddr + phdr->p_memsz)
  805. top = phdr->p_vaddr + phdr->p_memsz;
  806. }
  807. /* allocate one big anon block for everything */
  808. mflags = MAP_PRIVATE;
  809. if (params->flags & ELF_FDPIC_FLAG_EXECUTABLE)
  810. mflags |= MAP_EXECUTABLE;
  811. down_write(&mm->mmap_sem);
  812. maddr = do_mmap(NULL, load_addr, top - base,
  813. PROT_READ | PROT_WRITE | PROT_EXEC, mflags, 0);
  814. up_write(&mm->mmap_sem);
  815. if (IS_ERR_VALUE(maddr))
  816. return (int) maddr;
  817. if (load_addr != 0)
  818. load_addr += PAGE_ALIGN(top - base);
  819. /* and then load the file segments into it */
  820. phdr = params->phdrs;
  821. for (loop = 0; loop < params->hdr.e_phnum; loop++, phdr++) {
  822. if (params->phdrs[loop].p_type != PT_LOAD)
  823. continue;
  824. fpos = phdr->p_offset;
  825. seg->addr = maddr + (phdr->p_vaddr - base);
  826. seg->p_vaddr = phdr->p_vaddr;
  827. seg->p_memsz = phdr->p_memsz;
  828. ret = file->f_op->read(file, (void *) seg->addr,
  829. phdr->p_filesz, &fpos);
  830. if (ret < 0)
  831. return ret;
  832. /* map the ELF header address if in this segment */
  833. if (phdr->p_offset == 0)
  834. params->elfhdr_addr = seg->addr;
  835. /* clear any space allocated but not loaded */
  836. if (phdr->p_filesz < phdr->p_memsz) {
  837. ret = clear_user((void *) (seg->addr + phdr->p_filesz),
  838. phdr->p_memsz - phdr->p_filesz);
  839. if (ret)
  840. return ret;
  841. }
  842. if (mm) {
  843. if (phdr->p_flags & PF_X) {
  844. if (!mm->start_code) {
  845. mm->start_code = seg->addr;
  846. mm->end_code = seg->addr +
  847. phdr->p_memsz;
  848. }
  849. } else if (!mm->start_data) {
  850. mm->start_data = seg->addr;
  851. #ifndef CONFIG_MMU
  852. mm->end_data = seg->addr + phdr->p_memsz;
  853. #endif
  854. }
  855. #ifdef CONFIG_MMU
  856. if (seg->addr + phdr->p_memsz > mm->end_data)
  857. mm->end_data = seg->addr + phdr->p_memsz;
  858. #endif
  859. }
  860. seg++;
  861. }
  862. return 0;
  863. }
  864. #endif
  865. /*****************************************************************************/
  866. /*
  867. * map a binary by direct mmap() of the individual PT_LOAD segments
  868. */
  869. static int elf_fdpic_map_file_by_direct_mmap(struct elf_fdpic_params *params,
  870. struct file *file,
  871. struct mm_struct *mm)
  872. {
  873. struct elf32_fdpic_loadseg *seg;
  874. struct elf32_phdr *phdr;
  875. unsigned long load_addr, delta_vaddr;
  876. int loop, dvset, ret;
  877. load_addr = params->load_addr;
  878. delta_vaddr = 0;
  879. dvset = 0;
  880. seg = params->loadmap->segs;
  881. /* deal with each load segment separately */
  882. phdr = params->phdrs;
  883. for (loop = 0; loop < params->hdr.e_phnum; loop++, phdr++) {
  884. unsigned long maddr, disp, excess, excess1;
  885. int prot = 0, flags;
  886. if (phdr->p_type != PT_LOAD)
  887. continue;
  888. kdebug("[LOAD] va=%lx of=%lx fs=%lx ms=%lx",
  889. (unsigned long) phdr->p_vaddr,
  890. (unsigned long) phdr->p_offset,
  891. (unsigned long) phdr->p_filesz,
  892. (unsigned long) phdr->p_memsz);
  893. /* determine the mapping parameters */
  894. if (phdr->p_flags & PF_R) prot |= PROT_READ;
  895. if (phdr->p_flags & PF_W) prot |= PROT_WRITE;
  896. if (phdr->p_flags & PF_X) prot |= PROT_EXEC;
  897. flags = MAP_PRIVATE | MAP_DENYWRITE;
  898. if (params->flags & ELF_FDPIC_FLAG_EXECUTABLE)
  899. flags |= MAP_EXECUTABLE;
  900. maddr = 0;
  901. switch (params->flags & ELF_FDPIC_FLAG_ARRANGEMENT) {
  902. case ELF_FDPIC_FLAG_INDEPENDENT:
  903. /* PT_LOADs are independently locatable */
  904. break;
  905. case ELF_FDPIC_FLAG_HONOURVADDR:
  906. /* the specified virtual address must be honoured */
  907. maddr = phdr->p_vaddr;
  908. flags |= MAP_FIXED;
  909. break;
  910. case ELF_FDPIC_FLAG_CONSTDISP:
  911. /* constant displacement
  912. * - can be mapped anywhere, but must be mapped as a
  913. * unit
  914. */
  915. if (!dvset) {
  916. maddr = load_addr;
  917. delta_vaddr = phdr->p_vaddr;
  918. dvset = 1;
  919. } else {
  920. maddr = load_addr + phdr->p_vaddr - delta_vaddr;
  921. flags |= MAP_FIXED;
  922. }
  923. break;
  924. case ELF_FDPIC_FLAG_CONTIGUOUS:
  925. /* contiguity handled later */
  926. break;
  927. default:
  928. BUG();
  929. }
  930. maddr &= PAGE_MASK;
  931. /* create the mapping */
  932. disp = phdr->p_vaddr & ~PAGE_MASK;
  933. down_write(&mm->mmap_sem);
  934. maddr = do_mmap(file, maddr, phdr->p_memsz + disp, prot, flags,
  935. phdr->p_offset - disp);
  936. up_write(&mm->mmap_sem);
  937. kdebug("mmap[%d] <file> sz=%lx pr=%x fl=%x of=%lx --> %08lx",
  938. loop, phdr->p_memsz + disp, prot, flags,
  939. phdr->p_offset - disp, maddr);
  940. if (IS_ERR_VALUE(maddr))
  941. return (int) maddr;
  942. if ((params->flags & ELF_FDPIC_FLAG_ARRANGEMENT) ==
  943. ELF_FDPIC_FLAG_CONTIGUOUS)
  944. load_addr += PAGE_ALIGN(phdr->p_memsz + disp);
  945. seg->addr = maddr + disp;
  946. seg->p_vaddr = phdr->p_vaddr;
  947. seg->p_memsz = phdr->p_memsz;
  948. /* map the ELF header address if in this segment */
  949. if (phdr->p_offset == 0)
  950. params->elfhdr_addr = seg->addr;
  951. /* clear the bit between beginning of mapping and beginning of
  952. * PT_LOAD */
  953. if (prot & PROT_WRITE && disp > 0) {
  954. kdebug("clear[%d] ad=%lx sz=%lx", loop, maddr, disp);
  955. ret = clear_user((void __user *) maddr, disp);
  956. if (ret)
  957. return ret;
  958. maddr += disp;
  959. }
  960. /* clear any space allocated but not loaded
  961. * - on uClinux we can just clear the lot
  962. * - on MMU linux we'll get a SIGBUS beyond the last page
  963. * extant in the file
  964. */
  965. excess = phdr->p_memsz - phdr->p_filesz;
  966. excess1 = PAGE_SIZE - ((maddr + phdr->p_filesz) & ~PAGE_MASK);
  967. #ifdef CONFIG_MMU
  968. if (excess > excess1) {
  969. unsigned long xaddr = maddr + phdr->p_filesz + excess1;
  970. unsigned long xmaddr;
  971. flags |= MAP_FIXED | MAP_ANONYMOUS;
  972. down_write(&mm->mmap_sem);
  973. xmaddr = do_mmap(NULL, xaddr, excess - excess1,
  974. prot, flags, 0);
  975. up_write(&mm->mmap_sem);
  976. kdebug("mmap[%d] <anon>"
  977. " ad=%lx sz=%lx pr=%x fl=%x of=0 --> %08lx",
  978. loop, xaddr, excess - excess1, prot, flags,
  979. xmaddr);
  980. if (xmaddr != xaddr)
  981. return -ENOMEM;
  982. }
  983. if (prot & PROT_WRITE && excess1 > 0) {
  984. kdebug("clear[%d] ad=%lx sz=%lx",
  985. loop, maddr + phdr->p_filesz, excess1);
  986. ret = clear_user((void __user *) maddr + phdr->p_filesz,
  987. excess1);
  988. if (ret)
  989. return ret;
  990. }
  991. #else
  992. if (excess > 0) {
  993. kdebug("clear[%d] ad=%lx sz=%lx",
  994. loop, maddr + phdr->p_filesz, excess);
  995. ret = clear_user((void *) maddr + phdr->p_filesz, excess);
  996. if (ret)
  997. return ret;
  998. }
  999. #endif
  1000. if (mm) {
  1001. if (phdr->p_flags & PF_X) {
  1002. if (!mm->start_code) {
  1003. mm->start_code = maddr;
  1004. mm->end_code = maddr + phdr->p_memsz;
  1005. }
  1006. } else if (!mm->start_data) {
  1007. mm->start_data = maddr;
  1008. mm->end_data = maddr + phdr->p_memsz;
  1009. }
  1010. }
  1011. seg++;
  1012. }
  1013. return 0;
  1014. }
  1015. /*****************************************************************************/
  1016. /*
  1017. * ELF-FDPIC core dumper
  1018. *
  1019. * Modelled on fs/exec.c:aout_core_dump()
  1020. * Jeremy Fitzhardinge <jeremy@sw.oz.au>
  1021. *
  1022. * Modelled on fs/binfmt_elf.c core dumper
  1023. */
  1024. #ifdef CONFIG_ELF_CORE
  1025. /*
  1026. * These are the only things you should do on a core-file: use only these
  1027. * functions to write out all the necessary info.
  1028. */
  1029. static int dump_write(struct file *file, const void *addr, int nr)
  1030. {
  1031. return file->f_op->write(file, addr, nr, &file->f_pos) == nr;
  1032. }
  1033. static int dump_seek(struct file *file, loff_t off)
  1034. {
  1035. if (file->f_op->llseek) {
  1036. if (file->f_op->llseek(file, off, SEEK_SET) != off)
  1037. return 0;
  1038. } else {
  1039. file->f_pos = off;
  1040. }
  1041. return 1;
  1042. }
  1043. /*
  1044. * Decide whether a segment is worth dumping; default is yes to be
  1045. * sure (missing info is worse than too much; etc).
  1046. * Personally I'd include everything, and use the coredump limit...
  1047. *
  1048. * I think we should skip something. But I am not sure how. H.J.
  1049. */
  1050. static int maydump(struct vm_area_struct *vma, unsigned long mm_flags)
  1051. {
  1052. int dump_ok;
  1053. /* Do not dump I/O mapped devices or special mappings */
  1054. if (vma->vm_flags & (VM_IO | VM_RESERVED)) {
  1055. kdcore("%08lx: %08lx: no (IO)", vma->vm_start, vma->vm_flags);
  1056. return 0;
  1057. }
  1058. /* If we may not read the contents, don't allow us to dump
  1059. * them either. "dump_write()" can't handle it anyway.
  1060. */
  1061. if (!(vma->vm_flags & VM_READ)) {
  1062. kdcore("%08lx: %08lx: no (!read)", vma->vm_start, vma->vm_flags);
  1063. return 0;
  1064. }
  1065. /* By default, dump shared memory if mapped from an anonymous file. */
  1066. if (vma->vm_flags & VM_SHARED) {
  1067. if (vma->vm_file->f_path.dentry->d_inode->i_nlink == 0) {
  1068. dump_ok = test_bit(MMF_DUMP_ANON_SHARED, &mm_flags);
  1069. kdcore("%08lx: %08lx: %s (share)", vma->vm_start,
  1070. vma->vm_flags, dump_ok ? "yes" : "no");
  1071. return dump_ok;
  1072. }
  1073. dump_ok = test_bit(MMF_DUMP_MAPPED_SHARED, &mm_flags);
  1074. kdcore("%08lx: %08lx: %s (share)", vma->vm_start,
  1075. vma->vm_flags, dump_ok ? "yes" : "no");
  1076. return dump_ok;
  1077. }
  1078. #ifdef CONFIG_MMU
  1079. /* By default, if it hasn't been written to, don't write it out */
  1080. if (!vma->anon_vma) {
  1081. dump_ok = test_bit(MMF_DUMP_MAPPED_PRIVATE, &mm_flags);
  1082. kdcore("%08lx: %08lx: %s (!anon)", vma->vm_start,
  1083. vma->vm_flags, dump_ok ? "yes" : "no");
  1084. return dump_ok;
  1085. }
  1086. #endif
  1087. dump_ok = test_bit(MMF_DUMP_ANON_PRIVATE, &mm_flags);
  1088. kdcore("%08lx: %08lx: %s", vma->vm_start, vma->vm_flags,
  1089. dump_ok ? "yes" : "no");
  1090. return dump_ok;
  1091. }
  1092. /* An ELF note in memory */
  1093. struct memelfnote
  1094. {
  1095. const char *name;
  1096. int type;
  1097. unsigned int datasz;
  1098. void *data;
  1099. };
  1100. static int notesize(struct memelfnote *en)
  1101. {
  1102. int sz;
  1103. sz = sizeof(struct elf_note);
  1104. sz += roundup(strlen(en->name) + 1, 4);
  1105. sz += roundup(en->datasz, 4);
  1106. return sz;
  1107. }
  1108. /* #define DEBUG */
  1109. #define DUMP_WRITE(addr, nr) \
  1110. do { if (!dump_write(file, (addr), (nr))) return 0; } while(0)
  1111. #define DUMP_SEEK(off) \
  1112. do { if (!dump_seek(file, (off))) return 0; } while(0)
  1113. static int writenote(struct memelfnote *men, struct file *file)
  1114. {
  1115. struct elf_note en;
  1116. en.n_namesz = strlen(men->name) + 1;
  1117. en.n_descsz = men->datasz;
  1118. en.n_type = men->type;
  1119. DUMP_WRITE(&en, sizeof(en));
  1120. DUMP_WRITE(men->name, en.n_namesz);
  1121. /* XXX - cast from long long to long to avoid need for libgcc.a */
  1122. DUMP_SEEK(roundup((unsigned long)file->f_pos, 4)); /* XXX */
  1123. DUMP_WRITE(men->data, men->datasz);
  1124. DUMP_SEEK(roundup((unsigned long)file->f_pos, 4)); /* XXX */
  1125. return 1;
  1126. }
  1127. #undef DUMP_WRITE
  1128. #undef DUMP_SEEK
  1129. #define DUMP_WRITE(addr, nr) \
  1130. if ((size += (nr)) > cprm->limit || \
  1131. !dump_write(cprm->file, (addr), (nr))) \
  1132. goto end_coredump;
  1133. static inline void fill_elf_fdpic_header(struct elfhdr *elf, int segs)
  1134. {
  1135. memcpy(elf->e_ident, ELFMAG, SELFMAG);
  1136. elf->e_ident[EI_CLASS] = ELF_CLASS;
  1137. elf->e_ident[EI_DATA] = ELF_DATA;
  1138. elf->e_ident[EI_VERSION] = EV_CURRENT;
  1139. elf->e_ident[EI_OSABI] = ELF_OSABI;
  1140. memset(elf->e_ident+EI_PAD, 0, EI_NIDENT-EI_PAD);
  1141. elf->e_type = ET_CORE;
  1142. elf->e_machine = ELF_ARCH;
  1143. elf->e_version = EV_CURRENT;
  1144. elf->e_entry = 0;
  1145. elf->e_phoff = sizeof(struct elfhdr);
  1146. elf->e_shoff = 0;
  1147. elf->e_flags = ELF_FDPIC_CORE_EFLAGS;
  1148. elf->e_ehsize = sizeof(struct elfhdr);
  1149. elf->e_phentsize = sizeof(struct elf_phdr);
  1150. elf->e_phnum = segs;
  1151. elf->e_shentsize = 0;
  1152. elf->e_shnum = 0;
  1153. elf->e_shstrndx = 0;
  1154. return;
  1155. }
  1156. static inline void fill_elf_note_phdr(struct elf_phdr *phdr, int sz, loff_t offset)
  1157. {
  1158. phdr->p_type = PT_NOTE;
  1159. phdr->p_offset = offset;
  1160. phdr->p_vaddr = 0;
  1161. phdr->p_paddr = 0;
  1162. phdr->p_filesz = sz;
  1163. phdr->p_memsz = 0;
  1164. phdr->p_flags = 0;
  1165. phdr->p_align = 0;
  1166. return;
  1167. }
  1168. static inline void fill_note(struct memelfnote *note, const char *name, int type,
  1169. unsigned int sz, void *data)
  1170. {
  1171. note->name = name;
  1172. note->type = type;
  1173. note->datasz = sz;
  1174. note->data = data;
  1175. return;
  1176. }
  1177. /*
  1178. * fill up all the fields in prstatus from the given task struct, except
  1179. * registers which need to be filled up seperately.
  1180. */
  1181. static void fill_prstatus(struct elf_prstatus *prstatus,
  1182. struct task_struct *p, long signr)
  1183. {
  1184. prstatus->pr_info.si_signo = prstatus->pr_cursig = signr;
  1185. prstatus->pr_sigpend = p->pending.signal.sig[0];
  1186. prstatus->pr_sighold = p->blocked.sig[0];
  1187. rcu_read_lock();
  1188. prstatus->pr_ppid = task_pid_vnr(rcu_dereference(p->real_parent));
  1189. rcu_read_unlock();
  1190. prstatus->pr_pid = task_pid_vnr(p);
  1191. prstatus->pr_pgrp = task_pgrp_vnr(p);
  1192. prstatus->pr_sid = task_session_vnr(p);
  1193. if (thread_group_leader(p)) {
  1194. struct task_cputime cputime;
  1195. /*
  1196. * This is the record for the group leader. It shows the
  1197. * group-wide total, not its individual thread total.
  1198. */
  1199. thread_group_cputime(p, &cputime);
  1200. cputime_to_timeval(cputime.utime, &prstatus->pr_utime);
  1201. cputime_to_timeval(cputime.stime, &prstatus->pr_stime);
  1202. } else {
  1203. cputime_to_timeval(p->utime, &prstatus->pr_utime);
  1204. cputime_to_timeval(p->stime, &prstatus->pr_stime);
  1205. }
  1206. cputime_to_timeval(p->signal->cutime, &prstatus->pr_cutime);
  1207. cputime_to_timeval(p->signal->cstime, &prstatus->pr_cstime);
  1208. prstatus->pr_exec_fdpic_loadmap = p->mm->context.exec_fdpic_loadmap;
  1209. prstatus->pr_interp_fdpic_loadmap = p->mm->context.interp_fdpic_loadmap;
  1210. }
  1211. static int fill_psinfo(struct elf_prpsinfo *psinfo, struct task_struct *p,
  1212. struct mm_struct *mm)
  1213. {
  1214. const struct cred *cred;
  1215. unsigned int i, len;
  1216. /* first copy the parameters from user space */
  1217. memset(psinfo, 0, sizeof(struct elf_prpsinfo));
  1218. len = mm->arg_end - mm->arg_start;
  1219. if (len >= ELF_PRARGSZ)
  1220. len = ELF_PRARGSZ - 1;
  1221. if (copy_from_user(&psinfo->pr_psargs,
  1222. (const char __user *) mm->arg_start, len))
  1223. return -EFAULT;
  1224. for (i = 0; i < len; i++)
  1225. if (psinfo->pr_psargs[i] == 0)
  1226. psinfo->pr_psargs[i] = ' ';
  1227. psinfo->pr_psargs[len] = 0;
  1228. rcu_read_lock();
  1229. psinfo->pr_ppid = task_pid_vnr(rcu_dereference(p->real_parent));
  1230. rcu_read_unlock();
  1231. psinfo->pr_pid = task_pid_vnr(p);
  1232. psinfo->pr_pgrp = task_pgrp_vnr(p);
  1233. psinfo->pr_sid = task_session_vnr(p);
  1234. i = p->state ? ffz(~p->state) + 1 : 0;
  1235. psinfo->pr_state = i;
  1236. psinfo->pr_sname = (i > 5) ? '.' : "RSDTZW"[i];
  1237. psinfo->pr_zomb = psinfo->pr_sname == 'Z';
  1238. psinfo->pr_nice = task_nice(p);
  1239. psinfo->pr_flag = p->flags;
  1240. rcu_read_lock();
  1241. cred = __task_cred(p);
  1242. SET_UID(psinfo->pr_uid, cred->uid);
  1243. SET_GID(psinfo->pr_gid, cred->gid);
  1244. rcu_read_unlock();
  1245. strncpy(psinfo->pr_fname, p->comm, sizeof(psinfo->pr_fname));
  1246. return 0;
  1247. }
  1248. /* Here is the structure in which status of each thread is captured. */
  1249. struct elf_thread_status
  1250. {
  1251. struct list_head list;
  1252. struct elf_prstatus prstatus; /* NT_PRSTATUS */
  1253. elf_fpregset_t fpu; /* NT_PRFPREG */
  1254. struct task_struct *thread;
  1255. #ifdef ELF_CORE_COPY_XFPREGS
  1256. elf_fpxregset_t xfpu; /* ELF_CORE_XFPREG_TYPE */
  1257. #endif
  1258. struct memelfnote notes[3];
  1259. int num_notes;
  1260. };
  1261. /*
  1262. * In order to add the specific thread information for the elf file format,
  1263. * we need to keep a linked list of every thread's pr_status and then create
  1264. * a single section for them in the final core file.
  1265. */
  1266. static int elf_dump_thread_status(long signr, struct elf_thread_status *t)
  1267. {
  1268. struct task_struct *p = t->thread;
  1269. int sz = 0;
  1270. t->num_notes = 0;
  1271. fill_prstatus(&t->prstatus, p, signr);
  1272. elf_core_copy_task_regs(p, &t->prstatus.pr_reg);
  1273. fill_note(&t->notes[0], "CORE", NT_PRSTATUS, sizeof(t->prstatus),
  1274. &t->prstatus);
  1275. t->num_notes++;
  1276. sz += notesize(&t->notes[0]);
  1277. t->prstatus.pr_fpvalid = elf_core_copy_task_fpregs(p, NULL, &t->fpu);
  1278. if (t->prstatus.pr_fpvalid) {
  1279. fill_note(&t->notes[1], "CORE", NT_PRFPREG, sizeof(t->fpu),
  1280. &t->fpu);
  1281. t->num_notes++;
  1282. sz += notesize(&t->notes[1]);
  1283. }
  1284. #ifdef ELF_CORE_COPY_XFPREGS
  1285. if (elf_core_copy_task_xfpregs(p, &t->xfpu)) {
  1286. fill_note(&t->notes[2], "LINUX", ELF_CORE_XFPREG_TYPE,
  1287. sizeof(t->xfpu), &t->xfpu);
  1288. t->num_notes++;
  1289. sz += notesize(&t->notes[2]);
  1290. }
  1291. #endif
  1292. return sz;
  1293. }
  1294. /*
  1295. * dump the segments for an MMU process
  1296. */
  1297. #ifdef CONFIG_MMU
  1298. static int elf_fdpic_dump_segments(struct file *file, size_t *size,
  1299. unsigned long *limit, unsigned long mm_flags)
  1300. {
  1301. struct vm_area_struct *vma;
  1302. int err = 0;
  1303. for (vma = current->mm->mmap; vma; vma = vma->vm_next) {
  1304. unsigned long addr;
  1305. if (!maydump(vma, mm_flags))
  1306. continue;
  1307. for (addr = vma->vm_start; addr < vma->vm_end;
  1308. addr += PAGE_SIZE) {
  1309. struct page *page = get_dump_page(addr);
  1310. if (page) {
  1311. void *kaddr = kmap(page);
  1312. *size += PAGE_SIZE;
  1313. if (*size > *limit)
  1314. err = -EFBIG;
  1315. else if (!dump_write(file, kaddr, PAGE_SIZE))
  1316. err = -EIO;
  1317. kunmap(page);
  1318. page_cache_release(page);
  1319. } else if (!dump_seek(file, file->f_pos + PAGE_SIZE))
  1320. err = -EFBIG;
  1321. if (err)
  1322. goto out;
  1323. }
  1324. }
  1325. out:
  1326. return err;
  1327. }
  1328. #endif
  1329. /*
  1330. * dump the segments for a NOMMU process
  1331. */
  1332. #ifndef CONFIG_MMU
  1333. static int elf_fdpic_dump_segments(struct file *file, size_t *size,
  1334. unsigned long *limit, unsigned long mm_flags)
  1335. {
  1336. struct vm_area_struct *vma;
  1337. for (vma = current->mm->mmap; vma; vma = vma->vm_next) {
  1338. if (!maydump(vma, mm_flags))
  1339. continue;
  1340. if ((*size += PAGE_SIZE) > *limit)
  1341. return -EFBIG;
  1342. if (!dump_write(file, (void *) vma->vm_start,
  1343. vma->vm_end - vma->vm_start))
  1344. return -EIO;
  1345. }
  1346. return 0;
  1347. }
  1348. #endif
  1349. /*
  1350. * Actual dumper
  1351. *
  1352. * This is a two-pass process; first we find the offsets of the bits,
  1353. * and then they are actually written out. If we run out of core limit
  1354. * we just truncate.
  1355. */
  1356. static int elf_fdpic_core_dump(struct coredump_params *cprm)
  1357. {
  1358. #define NUM_NOTES 6
  1359. int has_dumped = 0;
  1360. mm_segment_t fs;
  1361. int segs;
  1362. size_t size = 0;
  1363. int i;
  1364. struct vm_area_struct *vma;
  1365. struct elfhdr *elf = NULL;
  1366. loff_t offset = 0, dataoff;
  1367. int numnote;
  1368. struct memelfnote *notes = NULL;
  1369. struct elf_prstatus *prstatus = NULL; /* NT_PRSTATUS */
  1370. struct elf_prpsinfo *psinfo = NULL; /* NT_PRPSINFO */
  1371. LIST_HEAD(thread_list);
  1372. struct list_head *t;
  1373. elf_fpregset_t *fpu = NULL;
  1374. #ifdef ELF_CORE_COPY_XFPREGS
  1375. elf_fpxregset_t *xfpu = NULL;
  1376. #endif
  1377. int thread_status_size = 0;
  1378. elf_addr_t *auxv;
  1379. unsigned long mm_flags;
  1380. /*
  1381. * We no longer stop all VM operations.
  1382. *
  1383. * This is because those proceses that could possibly change map_count
  1384. * or the mmap / vma pages are now blocked in do_exit on current
  1385. * finishing this core dump.
  1386. *
  1387. * Only ptrace can touch these memory addresses, but it doesn't change
  1388. * the map_count or the pages allocated. So no possibility of crashing
  1389. * exists while dumping the mm->vm_next areas to the core file.
  1390. */
  1391. /* alloc memory for large data structures: too large to be on stack */
  1392. elf = kmalloc(sizeof(*elf), GFP_KERNEL);
  1393. if (!elf)
  1394. goto cleanup;
  1395. prstatus = kzalloc(sizeof(*prstatus), GFP_KERNEL);
  1396. if (!prstatus)
  1397. goto cleanup;
  1398. psinfo = kmalloc(sizeof(*psinfo), GFP_KERNEL);
  1399. if (!psinfo)
  1400. goto cleanup;
  1401. notes = kmalloc(NUM_NOTES * sizeof(struct memelfnote), GFP_KERNEL);
  1402. if (!notes)
  1403. goto cleanup;
  1404. fpu = kmalloc(sizeof(*fpu), GFP_KERNEL);
  1405. if (!fpu)
  1406. goto cleanup;
  1407. #ifdef ELF_CORE_COPY_XFPREGS
  1408. xfpu = kmalloc(sizeof(*xfpu), GFP_KERNEL);
  1409. if (!xfpu)
  1410. goto cleanup;
  1411. #endif
  1412. if (cprm->signr) {
  1413. struct core_thread *ct;
  1414. struct elf_thread_status *tmp;
  1415. for (ct = current->mm->core_state->dumper.next;
  1416. ct; ct = ct->next) {
  1417. tmp = kzalloc(sizeof(*tmp), GFP_KERNEL);
  1418. if (!tmp)
  1419. goto cleanup;
  1420. tmp->thread = ct->task;
  1421. list_add(&tmp->list, &thread_list);
  1422. }
  1423. list_for_each(t, &thread_list) {
  1424. struct elf_thread_status *tmp;
  1425. int sz;
  1426. tmp = list_entry(t, struct elf_thread_status, list);
  1427. sz = elf_dump_thread_status(cprm->signr, tmp);
  1428. thread_status_size += sz;
  1429. }
  1430. }
  1431. /* now collect the dump for the current */
  1432. fill_prstatus(prstatus, current, cprm->signr);
  1433. elf_core_copy_regs(&prstatus->pr_reg, cprm->regs);
  1434. segs = current->mm->map_count;
  1435. #ifdef ELF_CORE_EXTRA_PHDRS
  1436. segs += ELF_CORE_EXTRA_PHDRS;
  1437. #endif
  1438. /* Set up header */
  1439. fill_elf_fdpic_header(elf, segs + 1); /* including notes section */
  1440. has_dumped = 1;
  1441. current->flags |= PF_DUMPCORE;
  1442. /*
  1443. * Set up the notes in similar form to SVR4 core dumps made
  1444. * with info from their /proc.
  1445. */
  1446. fill_note(notes + 0, "CORE", NT_PRSTATUS, sizeof(*prstatus), prstatus);
  1447. fill_psinfo(psinfo, current->group_leader, current->mm);
  1448. fill_note(notes + 1, "CORE", NT_PRPSINFO, sizeof(*psinfo), psinfo);
  1449. numnote = 2;
  1450. auxv = (elf_addr_t *) current->mm->saved_auxv;
  1451. i = 0;
  1452. do
  1453. i += 2;
  1454. while (auxv[i - 2] != AT_NULL);
  1455. fill_note(&notes[numnote++], "CORE", NT_AUXV,
  1456. i * sizeof(elf_addr_t), auxv);
  1457. /* Try to dump the FPU. */
  1458. if ((prstatus->pr_fpvalid =
  1459. elf_core_copy_task_fpregs(current, cprm->regs, fpu)))
  1460. fill_note(notes + numnote++,
  1461. "CORE", NT_PRFPREG, sizeof(*fpu), fpu);
  1462. #ifdef ELF_CORE_COPY_XFPREGS
  1463. if (elf_core_copy_task_xfpregs(current, xfpu))
  1464. fill_note(notes + numnote++,
  1465. "LINUX", ELF_CORE_XFPREG_TYPE, sizeof(*xfpu), xfpu);
  1466. #endif
  1467. fs = get_fs();
  1468. set_fs(KERNEL_DS);
  1469. DUMP_WRITE(elf, sizeof(*elf));
  1470. offset += sizeof(*elf); /* Elf header */
  1471. offset += (segs+1) * sizeof(struct elf_phdr); /* Program headers */
  1472. /* Write notes phdr entry */
  1473. {
  1474. struct elf_phdr phdr;
  1475. int sz = 0;
  1476. for (i = 0; i < numnote; i++)
  1477. sz += notesize(notes + i);
  1478. sz += thread_status_size;
  1479. fill_elf_note_phdr(&phdr, sz, offset);
  1480. offset += sz;
  1481. DUMP_WRITE(&phdr, sizeof(phdr));
  1482. }
  1483. /* Page-align dumped data */
  1484. dataoff = offset = roundup(offset, ELF_EXEC_PAGESIZE);
  1485. /*
  1486. * We must use the same mm->flags while dumping core to avoid
  1487. * inconsistency between the program headers and bodies, otherwise an
  1488. * unusable core file can be generated.
  1489. */
  1490. mm_flags = current->mm->flags;
  1491. /* write program headers for segments dump */
  1492. for (vma = current->mm->mmap; vma; vma = vma->vm_next) {
  1493. struct elf_phdr phdr;
  1494. size_t sz;
  1495. sz = vma->vm_end - vma->vm_start;
  1496. phdr.p_type = PT_LOAD;
  1497. phdr.p_offset = offset;
  1498. phdr.p_vaddr = vma->vm_start;
  1499. phdr.p_paddr = 0;
  1500. phdr.p_filesz = maydump(vma, mm_flags) ? sz : 0;
  1501. phdr.p_memsz = sz;
  1502. offset += phdr.p_filesz;
  1503. phdr.p_flags = vma->vm_flags & VM_READ ? PF_R : 0;
  1504. if (vma->vm_flags & VM_WRITE)
  1505. phdr.p_flags |= PF_W;
  1506. if (vma->vm_flags & VM_EXEC)
  1507. phdr.p_flags |= PF_X;
  1508. phdr.p_align = ELF_EXEC_PAGESIZE;
  1509. DUMP_WRITE(&phdr, sizeof(phdr));
  1510. }
  1511. #ifdef ELF_CORE_WRITE_EXTRA_PHDRS
  1512. ELF_CORE_WRITE_EXTRA_PHDRS;
  1513. #endif
  1514. /* write out the notes section */
  1515. for (i = 0; i < numnote; i++)
  1516. if (!writenote(notes + i, cprm->file))
  1517. goto end_coredump;
  1518. /* write out the thread status notes section */
  1519. list_for_each(t, &thread_list) {
  1520. struct elf_thread_status *tmp =
  1521. list_entry(t, struct elf_thread_status, list);
  1522. for (i = 0; i < tmp->num_notes; i++)
  1523. if (!writenote(&tmp->notes[i], cprm->file))
  1524. goto end_coredump;
  1525. }
  1526. if (!dump_seek(cprm->file, dataoff))
  1527. goto end_coredump;
  1528. if (elf_fdpic_dump_segments(cprm->file, &size, &cprm->limit,
  1529. mm_flags) < 0)
  1530. goto end_coredump;
  1531. #ifdef ELF_CORE_WRITE_EXTRA_DATA
  1532. ELF_CORE_WRITE_EXTRA_DATA;
  1533. #endif
  1534. if (cprm->file->f_pos != offset) {
  1535. /* Sanity check */
  1536. printk(KERN_WARNING
  1537. "elf_core_dump: file->f_pos (%lld) != offset (%lld)\n",
  1538. cprm->file->f_pos, offset);
  1539. }
  1540. end_coredump:
  1541. set_fs(fs);
  1542. cleanup:
  1543. while (!list_empty(&thread_list)) {
  1544. struct list_head *tmp = thread_list.next;
  1545. list_del(tmp);
  1546. kfree(list_entry(tmp, struct elf_thread_status, list));
  1547. }
  1548. kfree(elf);
  1549. kfree(prstatus);
  1550. kfree(psinfo);
  1551. kfree(notes);
  1552. kfree(fpu);
  1553. #ifdef ELF_CORE_COPY_XFPREGS
  1554. kfree(xfpu);
  1555. #endif
  1556. return has_dumped;
  1557. #undef NUM_NOTES
  1558. }
  1559. #endif /* CONFIG_ELF_CORE */