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	This mostly automatically-generated patch converts 113 function definitions in glibc from old-style K&R to prototype-style. Following my other recent such patches, this one deals with the case of function definitions in files that either contain assertions or where grep suggested they might contain assertions - and thus where it isn't possible to use a simple object code comparison as a sanity check on the correctness of the patch, because line numbers are changed. A few such automatically-generated changes needed to be supplemented by manual changes for the result to compile. openat64 had a prototype declaration with "..." but an old-style definition in sysdeps/unix/sysv/linux/dl-openat64.c, and "..." needed adding to the generated prototype in the definition (I've filed <https://gcc.gnu.org/bugzilla/show_bug.cgi?id=68024> for diagnosing such cases in GCC; the old state was undefined behavior not requiring a diagnostic, but one seems a good idea). In addition, as Florian has noted regparm attribute mismatches between declaration and definition are only diagnosed for prototype definitions, and five functions needed internal_function added to their definitions (in the case of __pthread_mutex_cond_lock, via the macro definition of __pthread_mutex_lock) to compile on i386. After this patch is in, remaining old-style definitions are probably most readily fixed manually before we can turn on -Wold-style-definition for all builds. Tested for x86_64 and x86 (testsuite). * crypt/md5-crypt.c (__md5_crypt_r): Convert to prototype-style function definition. * crypt/sha256-crypt.c (__sha256_crypt_r): Likewise. * crypt/sha512-crypt.c (__sha512_crypt_r): Likewise. * debug/backtracesyms.c (__backtrace_symbols): Likewise. * elf/dl-minimal.c (_itoa): Likewise. * hurd/hurdmalloc.c (malloc): Likewise. (free): Likewise. (realloc): Likewise. * inet/inet6_option.c (inet6_option_space): Likewise. (inet6_option_init): Likewise. (inet6_option_append): Likewise. (inet6_option_alloc): Likewise. (inet6_option_next): Likewise. (inet6_option_find): Likewise. * io/ftw.c (FTW_NAME): Likewise. (NFTW_NAME): Likewise. (NFTW_NEW_NAME): Likewise. (NFTW_OLD_NAME): Likewise. * libio/iofwide.c (_IO_fwide): Likewise. * libio/strops.c (_IO_str_init_static_internal): Likewise. (_IO_str_init_static): Likewise. (_IO_str_init_readonly): Likewise. (_IO_str_overflow): Likewise. (_IO_str_underflow): Likewise. (_IO_str_count): Likewise. (_IO_str_seekoff): Likewise. (_IO_str_pbackfail): Likewise. (_IO_str_finish): Likewise. * libio/wstrops.c (_IO_wstr_init_static): Likewise. (_IO_wstr_overflow): Likewise. (_IO_wstr_underflow): Likewise. (_IO_wstr_count): Likewise. (_IO_wstr_seekoff): Likewise. (_IO_wstr_pbackfail): Likewise. (_IO_wstr_finish): Likewise. * locale/programs/localedef.c (normalize_codeset): Likewise. * locale/programs/locarchive.c (add_locale_to_archive): Likewise. (add_locales_to_archive): Likewise. (delete_locales_from_archive): Likewise. * malloc/malloc.c (__libc_mallinfo): Likewise. * math/gen-auto-libm-tests.c (init_fp_formats): Likewise. * misc/tsearch.c (__tfind): Likewise. * nptl/pthread_attr_destroy.c (__pthread_attr_destroy): Likewise. * nptl/pthread_attr_getdetachstate.c (__pthread_attr_getdetachstate): Likewise. * nptl/pthread_attr_getguardsize.c (pthread_attr_getguardsize): Likewise. * nptl/pthread_attr_getinheritsched.c (__pthread_attr_getinheritsched): Likewise. * nptl/pthread_attr_getschedparam.c (__pthread_attr_getschedparam): Likewise. * nptl/pthread_attr_getschedpolicy.c (__pthread_attr_getschedpolicy): Likewise. * nptl/pthread_attr_getscope.c (__pthread_attr_getscope): Likewise. * nptl/pthread_attr_getstack.c (__pthread_attr_getstack): Likewise. * nptl/pthread_attr_getstackaddr.c (__pthread_attr_getstackaddr): Likewise. * nptl/pthread_attr_getstacksize.c (__pthread_attr_getstacksize): Likewise. * nptl/pthread_attr_init.c (__pthread_attr_init_2_1): Likewise. (__pthread_attr_init_2_0): Likewise. * nptl/pthread_attr_setdetachstate.c (__pthread_attr_setdetachstate): Likewise. * nptl/pthread_attr_setguardsize.c (pthread_attr_setguardsize): Likewise. * nptl/pthread_attr_setinheritsched.c (__pthread_attr_setinheritsched): Likewise. * nptl/pthread_attr_setschedparam.c (__pthread_attr_setschedparam): Likewise. * nptl/pthread_attr_setschedpolicy.c (__pthread_attr_setschedpolicy): Likewise. * nptl/pthread_attr_setscope.c (__pthread_attr_setscope): Likewise. * nptl/pthread_attr_setstack.c (__pthread_attr_setstack): Likewise. * nptl/pthread_attr_setstackaddr.c (__pthread_attr_setstackaddr): Likewise. * nptl/pthread_attr_setstacksize.c (__pthread_attr_setstacksize): Likewise. * nptl/pthread_condattr_setclock.c (pthread_condattr_setclock): Likewise. * nptl/pthread_create.c (__find_in_stack_list): Likewise. * nptl/pthread_getattr_np.c (pthread_getattr_np): Likewise. * nptl/pthread_mutex_cond_lock.c (__pthread_mutex_lock): Define to use internal_function. * nptl/pthread_mutex_init.c (__pthread_mutex_init): Convert to prototype-style function definition. * nptl/pthread_mutex_lock.c (__pthread_mutex_lock): Likewise. (__pthread_mutex_cond_lock_adjust): Likewise. Use internal_function. * nptl/pthread_mutex_timedlock.c (pthread_mutex_timedlock): Convert to prototype-style function definition. * nptl/pthread_mutex_trylock.c (__pthread_mutex_trylock): Likewise. * nptl/pthread_mutex_unlock.c (__pthread_mutex_unlock_usercnt): Likewise. (__pthread_mutex_unlock): Likewise. * nptl_db/td_ta_clear_event.c (td_ta_clear_event): Likewise. * nptl_db/td_ta_set_event.c (td_ta_set_event): Likewise. * nptl_db/td_thr_clear_event.c (td_thr_clear_event): Likewise. * nptl_db/td_thr_event_enable.c (td_thr_event_enable): Likewise. * nptl_db/td_thr_set_event.c (td_thr_set_event): Likewise. * nss/makedb.c (process_input): Likewise. * posix/fnmatch.c (__strchrnul): Likewise. (__wcschrnul): Likewise. (fnmatch): Likewise. * posix/fnmatch_loop.c (FCT): Likewise. * posix/glob.c (globfree): Likewise. (__glob_pattern_type): Likewise. (__glob_pattern_p): Likewise. * posix/regcomp.c (re_compile_pattern): Likewise. (re_set_syntax): Likewise. (re_compile_fastmap): Likewise. (regcomp): Likewise. (regerror): Likewise. (regfree): Likewise. * posix/regexec.c (regexec): Likewise. (re_match): Likewise. (re_search): Likewise. (re_match_2): Likewise. (re_search_2): Likewise. (re_search_stub): Likewise. Use internal_function (re_copy_regs): Likewise. (re_set_registers): Convert to prototype-style function definition. (prune_impossible_nodes): Likewise. Use internal_function. * resolv/inet_net_pton.c (inet_net_pton): Convert to prototype-style function definition. (inet_net_pton_ipv4): Likewise. * stdlib/strtod_l.c (____STRTOF_INTERNAL): Likewise. * sysdeps/pthread/aio_cancel.c (aio_cancel): Likewise. * sysdeps/pthread/aio_suspend.c (aio_suspend): Likewise. * sysdeps/pthread/timer_delete.c (timer_delete): Likewise. * sysdeps/unix/sysv/linux/dl-openat64.c (openat64): Likewise. Make variadic. * time/strptime_l.c (localtime_r): Convert to prototype-style function definition. * wcsmbs/mbsnrtowcs.c (__mbsnrtowcs): Likewise. * wcsmbs/mbsrtowcs_l.c (__mbsrtowcs_l): Likewise. * wcsmbs/wcsnrtombs.c (__wcsnrtombs): Likewise. * wcsmbs/wcsrtombs.c (__wcsrtombs): Likewise.
		
			
				
	
	
		
			430 lines
		
	
	
		
			13 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			430 lines
		
	
	
		
			13 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
/* One way encryption based on SHA256 sum.
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   Copyright (C) 2007-2015 Free Software Foundation, Inc.
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   This file is part of the GNU C Library.
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   Contributed by Ulrich Drepper <drepper@redhat.com>, 2007.
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   The GNU C Library is free software; you can redistribute it and/or
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   modify it under the terms of the GNU Lesser General Public
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   License as published by the Free Software Foundation; either
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   version 2.1 of the License, or (at your option) any later version.
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   The GNU C Library is distributed in the hope that it will be useful,
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   but WITHOUT ANY WARRANTY; without even the implied warranty of
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   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
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   Lesser General Public License for more details.
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   You should have received a copy of the GNU Lesser General Public
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   License along with the GNU C Library; if not, see
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   <http://www.gnu.org/licenses/>.  */
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#include <assert.h>
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#include <errno.h>
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#include <stdbool.h>
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#include <stdlib.h>
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#include <string.h>
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#include <stdint.h>
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#include <sys/param.h>
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#include "sha256.h"
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#include "crypt-private.h"
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#ifdef USE_NSS
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typedef int PRBool;
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# include <hasht.h>
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# include <nsslowhash.h>
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# define sha256_init_ctx(ctxp, nss_ctxp) \
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  do									      \
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    {									      \
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      if (((nss_ctxp = NSSLOWHASH_NewContext (nss_ictx, HASH_AlgSHA256))      \
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	   == NULL))							      \
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	{								      \
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	  if (nss_ctx != NULL)						      \
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	    NSSLOWHASH_Destroy (nss_ctx);				      \
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	  if (nss_alt_ctx != NULL)					      \
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	    NSSLOWHASH_Destroy (nss_alt_ctx);				      \
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	  return NULL;							      \
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	}								      \
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      NSSLOWHASH_Begin (nss_ctxp);					      \
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    }									      \
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  while (0)
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# define sha256_process_bytes(buf, len, ctxp, nss_ctxp) \
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  NSSLOWHASH_Update (nss_ctxp, (const unsigned char *) buf, len)
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# define sha256_finish_ctx(ctxp, nss_ctxp, result) \
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  do									      \
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    {									      \
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      unsigned int ret;							      \
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      NSSLOWHASH_End (nss_ctxp, result, &ret, sizeof (result));		      \
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      assert (ret == sizeof (result));					      \
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      NSSLOWHASH_Destroy (nss_ctxp);					      \
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      nss_ctxp = NULL;							      \
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    }									      \
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  while (0)
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#else
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# define sha256_init_ctx(ctxp, nss_ctxp) \
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  __sha256_init_ctx (ctxp)
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# define sha256_process_bytes(buf, len, ctxp, nss_ctxp) \
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  __sha256_process_bytes(buf, len, ctxp)
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# define sha256_finish_ctx(ctxp, nss_ctxp, result) \
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  __sha256_finish_ctx (ctxp, result)
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#endif
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/* Define our magic string to mark salt for SHA256 "encryption"
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   replacement.  */
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static const char sha256_salt_prefix[] = "$5$";
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/* Prefix for optional rounds specification.  */
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static const char sha256_rounds_prefix[] = "rounds=";
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/* Maximum salt string length.  */
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#define SALT_LEN_MAX 16
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/* Default number of rounds if not explicitly specified.  */
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#define ROUNDS_DEFAULT 5000
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/* Minimum number of rounds.  */
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#define ROUNDS_MIN 1000
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/* Maximum number of rounds.  */
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#define ROUNDS_MAX 999999999
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/* Prototypes for local functions.  */
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extern char *__sha256_crypt_r (const char *key, const char *salt,
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			       char *buffer, int buflen);
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extern char *__sha256_crypt (const char *key, const char *salt);
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char *
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__sha256_crypt_r (const char *key, const char *salt, char *buffer, int buflen)
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{
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  unsigned char alt_result[32]
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    __attribute__ ((__aligned__ (__alignof__ (uint32_t))));
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  unsigned char temp_result[32]
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    __attribute__ ((__aligned__ (__alignof__ (uint32_t))));
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  size_t salt_len;
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  size_t key_len;
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  size_t cnt;
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  char *cp;
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  char *copied_key = NULL;
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  char *copied_salt = NULL;
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  char *p_bytes;
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  char *s_bytes;
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  /* Default number of rounds.  */
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  size_t rounds = ROUNDS_DEFAULT;
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  bool rounds_custom = false;
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  size_t alloca_used = 0;
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  char *free_key = NULL;
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  char *free_pbytes = NULL;
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  /* Find beginning of salt string.  The prefix should normally always
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     be present.  Just in case it is not.  */
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  if (strncmp (sha256_salt_prefix, salt, sizeof (sha256_salt_prefix) - 1) == 0)
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    /* Skip salt prefix.  */
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    salt += sizeof (sha256_salt_prefix) - 1;
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  if (strncmp (salt, sha256_rounds_prefix, sizeof (sha256_rounds_prefix) - 1)
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      == 0)
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    {
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      const char *num = salt + sizeof (sha256_rounds_prefix) - 1;
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      char *endp;
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      unsigned long int srounds = strtoul (num, &endp, 10);
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      if (*endp == '$')
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	{
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	  salt = endp + 1;
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	  rounds = MAX (ROUNDS_MIN, MIN (srounds, ROUNDS_MAX));
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	  rounds_custom = true;
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	}
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    }
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  salt_len = MIN (strcspn (salt, "$"), SALT_LEN_MAX);
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  key_len = strlen (key);
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  if ((key - (char *) 0) % __alignof__ (uint32_t) != 0)
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    {
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      char *tmp;
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      if (__libc_use_alloca (alloca_used + key_len + __alignof__ (uint32_t)))
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	tmp = alloca_account (key_len + __alignof__ (uint32_t), alloca_used);
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      else
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	{
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	  free_key = tmp = (char *) malloc (key_len + __alignof__ (uint32_t));
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	  if (tmp == NULL)
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	    return NULL;
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	}
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      key = copied_key =
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	memcpy (tmp + __alignof__ (uint32_t)
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		- (tmp - (char *) 0) % __alignof__ (uint32_t),
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		key, key_len);
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      assert ((key - (char *) 0) % __alignof__ (uint32_t) == 0);
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    }
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  if ((salt - (char *) 0) % __alignof__ (uint32_t) != 0)
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    {
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      char *tmp = (char *) alloca (salt_len + __alignof__ (uint32_t));
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      alloca_used += salt_len + __alignof__ (uint32_t);
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      salt = copied_salt =
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	memcpy (tmp + __alignof__ (uint32_t)
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		- (tmp - (char *) 0) % __alignof__ (uint32_t),
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		salt, salt_len);
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      assert ((salt - (char *) 0) % __alignof__ (uint32_t) == 0);
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    }
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#ifdef USE_NSS
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  /* Initialize libfreebl3.  */
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  NSSLOWInitContext *nss_ictx = NSSLOW_Init ();
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  if (nss_ictx == NULL)
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    {
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      free (free_key);
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      return NULL;
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    }
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  NSSLOWHASHContext *nss_ctx = NULL;
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  NSSLOWHASHContext *nss_alt_ctx = NULL;
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#else
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  struct sha256_ctx ctx;
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  struct sha256_ctx alt_ctx;
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#endif
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  /* Prepare for the real work.  */
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  sha256_init_ctx (&ctx, nss_ctx);
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  /* Add the key string.  */
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  sha256_process_bytes (key, key_len, &ctx, nss_ctx);
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  /* The last part is the salt string.  This must be at most 16
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     characters and it ends at the first `$' character.  */
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  sha256_process_bytes (salt, salt_len, &ctx, nss_ctx);
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  /* Compute alternate SHA256 sum with input KEY, SALT, and KEY.  The
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     final result will be added to the first context.  */
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  sha256_init_ctx (&alt_ctx, nss_alt_ctx);
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  /* Add key.  */
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  sha256_process_bytes (key, key_len, &alt_ctx, nss_alt_ctx);
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  /* Add salt.  */
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  sha256_process_bytes (salt, salt_len, &alt_ctx, nss_alt_ctx);
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  /* Add key again.  */
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  sha256_process_bytes (key, key_len, &alt_ctx, nss_alt_ctx);
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  /* Now get result of this (32 bytes) and add it to the other
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     context.  */
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  sha256_finish_ctx (&alt_ctx, nss_alt_ctx, alt_result);
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  /* Add for any character in the key one byte of the alternate sum.  */
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  for (cnt = key_len; cnt > 32; cnt -= 32)
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    sha256_process_bytes (alt_result, 32, &ctx, nss_ctx);
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  sha256_process_bytes (alt_result, cnt, &ctx, nss_ctx);
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  /* Take the binary representation of the length of the key and for every
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     1 add the alternate sum, for every 0 the key.  */
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  for (cnt = key_len; cnt > 0; cnt >>= 1)
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    if ((cnt & 1) != 0)
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      sha256_process_bytes (alt_result, 32, &ctx, nss_ctx);
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    else
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      sha256_process_bytes (key, key_len, &ctx, nss_ctx);
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  /* Create intermediate result.  */
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  sha256_finish_ctx (&ctx, nss_ctx, alt_result);
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  /* Start computation of P byte sequence.  */
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  sha256_init_ctx (&alt_ctx, nss_alt_ctx);
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  /* For every character in the password add the entire password.  */
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  for (cnt = 0; cnt < key_len; ++cnt)
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    sha256_process_bytes (key, key_len, &alt_ctx, nss_alt_ctx);
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  /* Finish the digest.  */
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  sha256_finish_ctx (&alt_ctx, nss_alt_ctx, temp_result);
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  /* Create byte sequence P.  */
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  if (__libc_use_alloca (alloca_used + key_len))
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    cp = p_bytes = (char *) alloca (key_len);
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  else
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    {
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      free_pbytes = cp = p_bytes = (char *)malloc (key_len);
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      if (free_pbytes == NULL)
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	{
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	  free (free_key);
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	  return NULL;
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	}
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    }
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  for (cnt = key_len; cnt >= 32; cnt -= 32)
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    cp = mempcpy (cp, temp_result, 32);
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  memcpy (cp, temp_result, cnt);
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  /* Start computation of S byte sequence.  */
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  sha256_init_ctx (&alt_ctx, nss_alt_ctx);
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  /* For every character in the password add the entire password.  */
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  for (cnt = 0; cnt < 16 + alt_result[0]; ++cnt)
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    sha256_process_bytes (salt, salt_len, &alt_ctx, nss_alt_ctx);
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  /* Finish the digest.  */
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  sha256_finish_ctx (&alt_ctx, nss_alt_ctx, temp_result);
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  /* Create byte sequence S.  */
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  cp = s_bytes = alloca (salt_len);
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  for (cnt = salt_len; cnt >= 32; cnt -= 32)
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    cp = mempcpy (cp, temp_result, 32);
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  memcpy (cp, temp_result, cnt);
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  /* Repeatedly run the collected hash value through SHA256 to burn
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     CPU cycles.  */
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  for (cnt = 0; cnt < rounds; ++cnt)
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    {
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      /* New context.  */
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      sha256_init_ctx (&ctx, nss_ctx);
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      /* Add key or last result.  */
 | 
						|
      if ((cnt & 1) != 0)
 | 
						|
	sha256_process_bytes (p_bytes, key_len, &ctx, nss_ctx);
 | 
						|
      else
 | 
						|
	sha256_process_bytes (alt_result, 32, &ctx, nss_ctx);
 | 
						|
 | 
						|
      /* Add salt for numbers not divisible by 3.  */
 | 
						|
      if (cnt % 3 != 0)
 | 
						|
	sha256_process_bytes (s_bytes, salt_len, &ctx, nss_ctx);
 | 
						|
 | 
						|
      /* Add key for numbers not divisible by 7.  */
 | 
						|
      if (cnt % 7 != 0)
 | 
						|
	sha256_process_bytes (p_bytes, key_len, &ctx, nss_ctx);
 | 
						|
 | 
						|
      /* Add key or last result.  */
 | 
						|
      if ((cnt & 1) != 0)
 | 
						|
	sha256_process_bytes (alt_result, 32, &ctx, nss_ctx);
 | 
						|
      else
 | 
						|
	sha256_process_bytes (p_bytes, key_len, &ctx, nss_ctx);
 | 
						|
 | 
						|
      /* Create intermediate result.  */
 | 
						|
      sha256_finish_ctx (&ctx, nss_ctx, alt_result);
 | 
						|
    }
 | 
						|
 | 
						|
#ifdef USE_NSS
 | 
						|
  /* Free libfreebl3 resources. */
 | 
						|
  NSSLOW_Shutdown (nss_ictx);
 | 
						|
#endif
 | 
						|
 | 
						|
  /* Now we can construct the result string.  It consists of three
 | 
						|
     parts.  */
 | 
						|
  cp = __stpncpy (buffer, sha256_salt_prefix, MAX (0, buflen));
 | 
						|
  buflen -= sizeof (sha256_salt_prefix) - 1;
 | 
						|
 | 
						|
  if (rounds_custom)
 | 
						|
    {
 | 
						|
      int n = snprintf (cp, MAX (0, buflen), "%s%zu$",
 | 
						|
			sha256_rounds_prefix, rounds);
 | 
						|
      cp += n;
 | 
						|
      buflen -= n;
 | 
						|
    }
 | 
						|
 | 
						|
  cp = __stpncpy (cp, salt, MIN ((size_t) MAX (0, buflen), salt_len));
 | 
						|
  buflen -= MIN ((size_t) MAX (0, buflen), salt_len);
 | 
						|
 | 
						|
  if (buflen > 0)
 | 
						|
    {
 | 
						|
      *cp++ = '$';
 | 
						|
      --buflen;
 | 
						|
    }
 | 
						|
 | 
						|
  __b64_from_24bit (&cp, &buflen,
 | 
						|
		    alt_result[0], alt_result[10], alt_result[20], 4);
 | 
						|
  __b64_from_24bit (&cp, &buflen,
 | 
						|
		    alt_result[21], alt_result[1], alt_result[11], 4);
 | 
						|
  __b64_from_24bit (&cp, &buflen,
 | 
						|
		    alt_result[12], alt_result[22], alt_result[2], 4);
 | 
						|
  __b64_from_24bit (&cp, &buflen,
 | 
						|
		    alt_result[3], alt_result[13], alt_result[23], 4);
 | 
						|
  __b64_from_24bit (&cp, &buflen,
 | 
						|
		    alt_result[24], alt_result[4], alt_result[14], 4);
 | 
						|
  __b64_from_24bit (&cp, &buflen,
 | 
						|
		    alt_result[15], alt_result[25], alt_result[5], 4);
 | 
						|
  __b64_from_24bit (&cp, &buflen,
 | 
						|
		    alt_result[6], alt_result[16], alt_result[26], 4);
 | 
						|
  __b64_from_24bit (&cp, &buflen,
 | 
						|
		    alt_result[27], alt_result[7], alt_result[17], 4);
 | 
						|
  __b64_from_24bit (&cp, &buflen,
 | 
						|
		    alt_result[18], alt_result[28], alt_result[8], 4);
 | 
						|
  __b64_from_24bit (&cp, &buflen,
 | 
						|
		    alt_result[9], alt_result[19], alt_result[29], 4);
 | 
						|
  __b64_from_24bit (&cp, &buflen,
 | 
						|
		    0, alt_result[31], alt_result[30], 3);
 | 
						|
  if (buflen <= 0)
 | 
						|
    {
 | 
						|
      __set_errno (ERANGE);
 | 
						|
      buffer = NULL;
 | 
						|
    }
 | 
						|
  else
 | 
						|
    *cp = '\0';		/* Terminate the string.  */
 | 
						|
 | 
						|
  /* Clear the buffer for the intermediate result so that people
 | 
						|
     attaching to processes or reading core dumps cannot get any
 | 
						|
     information.  We do it in this way to clear correct_words[]
 | 
						|
     inside the SHA256 implementation as well.  */
 | 
						|
#ifndef USE_NSS
 | 
						|
  __sha256_init_ctx (&ctx);
 | 
						|
  __sha256_finish_ctx (&ctx, alt_result);
 | 
						|
  memset (&ctx, '\0', sizeof (ctx));
 | 
						|
  memset (&alt_ctx, '\0', sizeof (alt_ctx));
 | 
						|
#endif
 | 
						|
  memset (temp_result, '\0', sizeof (temp_result));
 | 
						|
  memset (p_bytes, '\0', key_len);
 | 
						|
  memset (s_bytes, '\0', salt_len);
 | 
						|
  if (copied_key != NULL)
 | 
						|
    memset (copied_key, '\0', key_len);
 | 
						|
  if (copied_salt != NULL)
 | 
						|
    memset (copied_salt, '\0', salt_len);
 | 
						|
 | 
						|
  free (free_key);
 | 
						|
  free (free_pbytes);
 | 
						|
  return buffer;
 | 
						|
}
 | 
						|
 | 
						|
#ifndef _LIBC
 | 
						|
# define libc_freeres_ptr(decl) decl
 | 
						|
#endif
 | 
						|
libc_freeres_ptr (static char *buffer);
 | 
						|
 | 
						|
/* This entry point is equivalent to the `crypt' function in Unix
 | 
						|
   libcs.  */
 | 
						|
char *
 | 
						|
__sha256_crypt (const char *key, const char *salt)
 | 
						|
{
 | 
						|
  /* We don't want to have an arbitrary limit in the size of the
 | 
						|
     password.  We can compute an upper bound for the size of the
 | 
						|
     result in advance and so we can prepare the buffer we pass to
 | 
						|
     `sha256_crypt_r'.  */
 | 
						|
  static int buflen;
 | 
						|
  int needed = (sizeof (sha256_salt_prefix) - 1
 | 
						|
		+ sizeof (sha256_rounds_prefix) + 9 + 1
 | 
						|
		+ strlen (salt) + 1 + 43 + 1);
 | 
						|
 | 
						|
  if (buflen < needed)
 | 
						|
    {
 | 
						|
      char *new_buffer = (char *) realloc (buffer, needed);
 | 
						|
      if (new_buffer == NULL)
 | 
						|
	return NULL;
 | 
						|
 | 
						|
      buffer = new_buffer;
 | 
						|
      buflen = needed;
 | 
						|
    }
 | 
						|
 | 
						|
  return __sha256_crypt_r (key, salt, buffer, buflen);
 | 
						|
}
 | 
						|
 | 
						|
#ifndef _LIBC
 | 
						|
static void
 | 
						|
__attribute__ ((__destructor__))
 | 
						|
free_mem (void)
 | 
						|
{
 | 
						|
  free (buffer);
 | 
						|
}
 | 
						|
#endif
 |