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/* crypto/bn/bn.h */
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/* Copyright (C) 1995-1997 Eric Young (eay@cryptsoft.com)
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* All rights reserved.
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*
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* This package is an SSL implementation written
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* by Eric Young (eay@cryptsoft.com).
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* The implementation was written so as to conform with Netscapes SSL.
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*
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* This library is free for commercial and non-commercial use as long as
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* the following conditions are aheared to. The following conditions
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* apply to all code found in this distribution, be it the RC4, RSA,
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* lhash, DES, etc., code; not just the SSL code. The SSL documentation
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* included with this distribution is covered by the same copyright terms
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* except that the holder is Tim Hudson (tjh@cryptsoft.com).
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*
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* Copyright remains Eric Young's, and as such any Copyright notices in
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* the code are not to be removed.
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* If this package is used in a product, Eric Young should be given attribution
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* as the author of the parts of the library used.
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* This can be in the form of a textual message at program startup or
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* in documentation (online or textual) provided with the package.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions
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* are met:
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* 1. Redistributions of source code must retain the copyright
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* notice, this list of conditions and the following disclaimer.
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* 2. Redistributions in binary form must reproduce the above copyright
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* notice, this list of conditions and the following disclaimer in the
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* documentation and/or other materials provided with the distribution.
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* 3. All advertising materials mentioning features or use of this software
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* must display the following acknowledgement:
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* "This product includes cryptographic software written by
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* Eric Young (eay@cryptsoft.com)"
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* The word 'cryptographic' can be left out if the rouines from the library
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* being used are not cryptographic related :-).
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* 4. If you include any Windows specific code (or a derivative thereof) from
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* the apps directory (application code) you must include an acknowledgement:
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* "This product includes software written by Tim Hudson (tjh@cryptsoft.com)"
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*
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* THIS SOFTWARE IS PROVIDED BY ERIC YOUNG ``AS IS'' AND
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* ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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* IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
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* ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
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* FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
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* DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
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* OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
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* HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
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* LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
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* OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
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* SUCH DAMAGE.
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*
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* The licence and distribution terms for any publically available version or
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* derivative of this code cannot be changed. i.e. this code cannot simply be
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* copied and put under another distribution licence
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* [including the GNU Public Licence.]
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*/
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/* ====================================================================
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* Copyright 2002 Sun Microsystems, Inc. ALL RIGHTS RESERVED.
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*
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* Portions of the attached software ("Contribution") are developed by
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* SUN MICROSYSTEMS, INC., and are contributed to the OpenSSL project.
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*
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* The Contribution is licensed pursuant to the Eric Young open source
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* license provided above.
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*
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* The binary polynomial arithmetic software is originally written by
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* Sheueling Chang Shantz and Douglas Stebila of Sun Microsystems Laboratories.
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*
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*/
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/*
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© Portions copyright (c) 2006 Nokia Corporation. All rights reserved.
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*/
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#ifndef HEADER_BN_H
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#define HEADER_BN_H
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#if (defined(__SYMBIAN32__) && !defined(SYMBIAN))
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#define SYMBIAN
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#endif
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#ifdef SYMBIAN
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#include <e32def.h>
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#endif
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#include <openssl/e_os2.h>
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#ifndef OPENSSL_NO_FP_API
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#include <stdio.h> /* FILE */
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#endif
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#include <openssl/ossl_typ.h>
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#ifdef __cplusplus
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extern "C" {
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#endif
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/* These preprocessor symbols control various aspects of the bignum headers and
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* library code. They're not defined by any "normal" configuration, as they are
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* intended for development and testing purposes. NB: defining all three can be
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* useful for debugging application code as well as openssl itself.
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*
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* BN_DEBUG - turn on various debugging alterations to the bignum code
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* BN_DEBUG_RAND - uses random poisoning of unused words to trip up
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* mismanagement of bignum internals. You must also define BN_DEBUG.
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*/
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/* #define BN_DEBUG */
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/* #define BN_DEBUG_RAND */
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#define BN_MUL_COMBA
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#define BN_SQR_COMBA
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#define BN_RECURSION
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/* This next option uses the C libraries (2 word)/(1 word) function.
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* If it is not defined, I use my C version (which is slower).
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* The reason for this flag is that when the particular C compiler
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* library routine is used, and the library is linked with a different
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* compiler, the library is missing. This mostly happens when the
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* library is built with gcc and then linked using normal cc. This would
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* be a common occurrence because gcc normally produces code that is
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* 2 times faster than system compilers for the big number stuff.
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* For machines with only one compiler (or shared libraries), this should
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* be on. Again this in only really a problem on machines
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* using "long long's", are 32bit, and are not using my assembler code. */
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#if defined(OPENSSL_SYS_MSDOS) || defined(OPENSSL_SYS_WINDOWS) || \
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defined(OPENSSL_SYS_WIN32) || defined(linux)
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# ifndef BN_DIV2W
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# define BN_DIV2W
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# endif
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#endif
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/* assuming long is 64bit - this is the DEC Alpha
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* unsigned long long is only 64 bits :-(, don't define
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* BN_LLONG for the DEC Alpha */
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#ifdef SIXTY_FOUR_BIT_LONG
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#define BN_ULLONG unsigned long long
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#define BN_ULONG unsigned long
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#define BN_LONG long
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#define BN_BITS 128
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#define BN_BYTES 8
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#define BN_BITS2 64
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#define BN_BITS4 32
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#define BN_MASK (0xffffffffffffffffffffffffffffffffLL)
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#define BN_MASK2 (0xffffffffffffffffL)
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#define BN_MASK2l (0xffffffffL)
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#define BN_MASK2h (0xffffffff00000000L)
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#define BN_MASK2h1 (0xffffffff80000000L)
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#define BN_TBIT (0x8000000000000000L)
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#define BN_DEC_CONV (10000000000000000000UL)
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#define BN_DEC_FMT1 "%lu"
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#define BN_DEC_FMT2 "%019lu"
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#define BN_DEC_NUM 19
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#endif
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/* This is where the long long data type is 64 bits, but long is 32.
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* For machines where there are 64bit registers, this is the mode to use.
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* IRIX, on R4000 and above should use this mode, along with the relevant
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* assembler code :-). Do NOT define BN_LLONG.
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*/
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#ifdef SIXTY_FOUR_BIT
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#undef BN_LLONG
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#undef BN_ULLONG
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#define BN_ULONG unsigned long long
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#define BN_LONG long long
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#define BN_BITS 128
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#define BN_BYTES 8
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#define BN_BITS2 64
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#define BN_BITS4 32
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#define BN_MASK2 (0xffffffffffffffffLL)
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#define BN_MASK2l (0xffffffffL)
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#define BN_MASK2h (0xffffffff00000000LL)
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#define BN_MASK2h1 (0xffffffff80000000LL)
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#define BN_TBIT (0x8000000000000000LL)
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#define BN_DEC_CONV (10000000000000000000ULL)
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#define BN_DEC_FMT1 "%llu"
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#define BN_DEC_FMT2 "%019llu"
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#define BN_DEC_NUM 19
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#endif
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#ifdef THIRTY_TWO_BIT
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#ifdef BN_LLONG
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# if defined(OPENSSL_SYS_WIN32) && !defined(__GNUC__)
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# define BN_ULLONG unsigned __int64
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# else
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# define BN_ULLONG unsigned long long
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# endif
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#endif
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#define BN_ULONG unsigned long
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#define BN_LONG long
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#define BN_BITS 64
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#define BN_BYTES 4
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#define BN_BITS2 32
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#define BN_BITS4 16
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#ifdef OPENSSL_SYS_WIN32
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/* VC++ doesn't like the LL suffix */
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#define BN_MASK (0xffffffffffffffffL)
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#else
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#define BN_MASK (0xffffffffffffffffLL)
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#endif
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#define BN_MASK2 (0xffffffffL)
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#define BN_MASK2l (0xffff)
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#define BN_MASK2h1 (0xffff8000L)
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#define BN_MASK2h (0xffff0000L)
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#define BN_TBIT (0x80000000L)
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#define BN_DEC_CONV (1000000000L)
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#define BN_DEC_FMT1 "%lu"
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#define BN_DEC_FMT2 "%09lu"
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#define BN_DEC_NUM 9
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#endif
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#ifdef SIXTEEN_BIT
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#ifndef BN_DIV2W
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#define BN_DIV2W
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#endif
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#define BN_ULLONG unsigned long
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#define BN_ULONG unsigned short
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#define BN_LONG short
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#define BN_BITS 32
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#define BN_BYTES 2
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#define BN_BITS2 16
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#define BN_BITS4 8
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#define BN_MASK (0xffffffff)
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#define BN_MASK2 (0xffff)
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#define BN_MASK2l (0xff)
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#define BN_MASK2h1 (0xff80)
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#define BN_MASK2h (0xff00)
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#define BN_TBIT (0x8000)
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#define BN_DEC_CONV (100000)
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#define BN_DEC_FMT1 "%u"
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#define BN_DEC_FMT2 "%05u"
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#define BN_DEC_NUM 5
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#endif
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#ifdef EIGHT_BIT
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#ifndef BN_DIV2W
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#define BN_DIV2W
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#endif
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#define BN_ULLONG unsigned short
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#define BN_ULONG unsigned char
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#define BN_LONG char
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#define BN_BITS 16
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#define BN_BYTES 1
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#define BN_BITS2 8
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#define BN_BITS4 4
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#define BN_MASK (0xffff)
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#define BN_MASK2 (0xff)
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#define BN_MASK2l (0xf)
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#define BN_MASK2h1 (0xf8)
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#define BN_MASK2h (0xf0)
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#define BN_TBIT (0x80)
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#define BN_DEC_CONV (100)
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#define BN_DEC_FMT1 "%u"
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#define BN_DEC_FMT2 "%02u"
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#define BN_DEC_NUM 2
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#endif
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#define BN_DEFAULT_BITS 1280
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#define BN_FLG_MALLOCED 0x01
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#define BN_FLG_STATIC_DATA 0x02
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#define BN_FLG_CONSTTIME 0x04 /* avoid leaking exponent information through timing,
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* BN_mod_exp_mont() will call BN_mod_exp_mont_consttime,
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* BN_div() will call BN_div_no_branch,
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* BN_mod_inverse() will call BN_mod_inverse_no_branch.
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*/
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#ifndef OPENSSL_NO_DEPRECATED
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#define BN_FLG_EXP_CONSTTIME BN_FLG_CONSTTIME /* deprecated name for the flag */
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/* avoid leaking exponent information through timings
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* (BN_mod_exp_mont() will call BN_mod_exp_mont_consttime) */
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#endif
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#ifndef OPENSSL_NO_DEPRECATED
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#define BN_FLG_FREE 0x8000 /* used for debuging */
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#endif
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#define BN_set_flags(b,n) ((b)->flags|=(n))
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#define BN_get_flags(b,n) ((b)->flags&(n))
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/* get a clone of a BIGNUM with changed flags, for *temporary* use only
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* (the two BIGNUMs cannot not be used in parallel!) */
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|
277 |
#define BN_with_flags(dest,b,n) ((dest)->d=(b)->d, \
|
williamr@2
|
278 |
(dest)->top=(b)->top, \
|
williamr@2
|
279 |
(dest)->dmax=(b)->dmax, \
|
williamr@2
|
280 |
(dest)->neg=(b)->neg, \
|
williamr@2
|
281 |
(dest)->flags=(((dest)->flags & BN_FLG_MALLOCED) \
|
williamr@2
|
282 |
| ((b)->flags & ~BN_FLG_MALLOCED) \
|
williamr@2
|
283 |
| BN_FLG_STATIC_DATA \
|
williamr@2
|
284 |
| (n)))
|
williamr@2
|
285 |
|
williamr@2
|
286 |
/* Already declared in ossl_typ.h */
|
williamr@2
|
287 |
#if 0
|
williamr@2
|
288 |
typedef struct bignum_st BIGNUM;
|
williamr@2
|
289 |
/* Used for temp variables (declaration hidden in bn_lcl.h) */
|
williamr@2
|
290 |
typedef struct bignum_ctx BN_CTX;
|
williamr@2
|
291 |
typedef struct bn_blinding_st BN_BLINDING;
|
williamr@2
|
292 |
typedef struct bn_mont_ctx_st BN_MONT_CTX;
|
williamr@2
|
293 |
typedef struct bn_recp_ctx_st BN_RECP_CTX;
|
williamr@2
|
294 |
typedef struct bn_gencb_st BN_GENCB;
|
williamr@2
|
295 |
#endif
|
williamr@2
|
296 |
|
williamr@2
|
297 |
struct bignum_st
|
williamr@2
|
298 |
{
|
williamr@2
|
299 |
BN_ULONG *d; /* Pointer to an array of 'BN_BITS2' bit chunks. */
|
williamr@2
|
300 |
int top; /* Index of last used d +1. */
|
williamr@2
|
301 |
/* The next are internal book keeping for bn_expand. */
|
williamr@2
|
302 |
int dmax; /* Size of the d array. */
|
williamr@2
|
303 |
int neg; /* one if the number is negative */
|
williamr@2
|
304 |
int flags;
|
williamr@2
|
305 |
};
|
williamr@2
|
306 |
|
williamr@2
|
307 |
/* Used for montgomery multiplication */
|
williamr@2
|
308 |
struct bn_mont_ctx_st
|
williamr@2
|
309 |
{
|
williamr@2
|
310 |
int ri; /* number of bits in R */
|
williamr@2
|
311 |
BIGNUM RR; /* used to convert to montgomery form */
|
williamr@2
|
312 |
BIGNUM N; /* The modulus */
|
williamr@2
|
313 |
BIGNUM Ni; /* R*(1/R mod N) - N*Ni = 1
|
williamr@2
|
314 |
* (Ni is only stored for bignum algorithm) */
|
williamr@2
|
315 |
BN_ULONG n0; /* least significant word of Ni */
|
williamr@2
|
316 |
int flags;
|
williamr@2
|
317 |
};
|
williamr@2
|
318 |
|
williamr@2
|
319 |
/* Used for reciprocal division/mod functions
|
williamr@2
|
320 |
* It cannot be shared between threads
|
williamr@2
|
321 |
*/
|
williamr@2
|
322 |
struct bn_recp_ctx_st
|
williamr@2
|
323 |
{
|
williamr@2
|
324 |
BIGNUM N; /* the divisor */
|
williamr@2
|
325 |
BIGNUM Nr; /* the reciprocal */
|
williamr@2
|
326 |
int num_bits;
|
williamr@2
|
327 |
int shift;
|
williamr@2
|
328 |
int flags;
|
williamr@2
|
329 |
};
|
williamr@2
|
330 |
|
williamr@2
|
331 |
/* Used for slow "generation" functions. */
|
williamr@2
|
332 |
struct bn_gencb_st
|
williamr@2
|
333 |
{
|
williamr@2
|
334 |
unsigned int ver; /* To handle binary (in)compatibility */
|
williamr@2
|
335 |
void *arg; /* callback-specific data */
|
williamr@2
|
336 |
union
|
williamr@2
|
337 |
{
|
williamr@2
|
338 |
/* if(ver==1) - handles old style callbacks */
|
williamr@2
|
339 |
void (*cb_1)(int, int, void *);
|
williamr@2
|
340 |
/* if(ver==2) - new callback style */
|
williamr@2
|
341 |
int (*cb_2)(int, int, BN_GENCB *);
|
williamr@2
|
342 |
} cb;
|
williamr@2
|
343 |
};
|
williamr@2
|
344 |
/* Wrapper function to make using BN_GENCB easier, */
|
williamr@2
|
345 |
IMPORT_C int BN_GENCB_call(BN_GENCB *cb, int a, int b);
|
williamr@2
|
346 |
/* Macro to populate a BN_GENCB structure with an "old"-style callback */
|
williamr@2
|
347 |
#define BN_GENCB_set_old(gencb, callback, cb_arg) { \
|
williamr@2
|
348 |
BN_GENCB *tmp_gencb = (gencb); \
|
williamr@2
|
349 |
tmp_gencb->ver = 1; \
|
williamr@2
|
350 |
tmp_gencb->arg = (cb_arg); \
|
williamr@2
|
351 |
tmp_gencb->cb.cb_1 = (callback); }
|
williamr@2
|
352 |
/* Macro to populate a BN_GENCB structure with a "new"-style callback */
|
williamr@2
|
353 |
#define BN_GENCB_set(gencb, callback, cb_arg) { \
|
williamr@2
|
354 |
BN_GENCB *tmp_gencb = (gencb); \
|
williamr@2
|
355 |
tmp_gencb->ver = 2; \
|
williamr@2
|
356 |
tmp_gencb->arg = (cb_arg); \
|
williamr@2
|
357 |
tmp_gencb->cb.cb_2 = (callback); }
|
williamr@2
|
358 |
|
williamr@2
|
359 |
#define BN_prime_checks 0 /* default: select number of iterations
|
williamr@2
|
360 |
based on the size of the number */
|
williamr@2
|
361 |
|
williamr@2
|
362 |
/* number of Miller-Rabin iterations for an error rate of less than 2^-80
|
williamr@2
|
363 |
* for random 'b'-bit input, b >= 100 (taken from table 4.4 in the Handbook
|
williamr@2
|
364 |
* of Applied Cryptography [Menezes, van Oorschot, Vanstone; CRC Press 1996];
|
williamr@2
|
365 |
* original paper: Damgaard, Landrock, Pomerance: Average case error estimates
|
williamr@2
|
366 |
* for the strong probable prime test. -- Math. Comp. 61 (1993) 177-194) */
|
williamr@2
|
367 |
#define BN_prime_checks_for_size(b) ((b) >= 1300 ? 2 : \
|
williamr@2
|
368 |
(b) >= 850 ? 3 : \
|
williamr@2
|
369 |
(b) >= 650 ? 4 : \
|
williamr@2
|
370 |
(b) >= 550 ? 5 : \
|
williamr@2
|
371 |
(b) >= 450 ? 6 : \
|
williamr@2
|
372 |
(b) >= 400 ? 7 : \
|
williamr@2
|
373 |
(b) >= 350 ? 8 : \
|
williamr@2
|
374 |
(b) >= 300 ? 9 : \
|
williamr@2
|
375 |
(b) >= 250 ? 12 : \
|
williamr@2
|
376 |
(b) >= 200 ? 15 : \
|
williamr@2
|
377 |
(b) >= 150 ? 18 : \
|
williamr@2
|
378 |
/* b >= 100 */ 27)
|
williamr@2
|
379 |
|
williamr@2
|
380 |
#define BN_num_bytes(a) ((BN_num_bits(a)+7)/8)
|
williamr@2
|
381 |
|
williamr@2
|
382 |
/* Note that BN_abs_is_word didn't work reliably for w == 0 until 0.9.8 */
|
williamr@2
|
383 |
#define BN_abs_is_word(a,w) ((((a)->top == 1) && ((a)->d[0] == (BN_ULONG)(w))) || \
|
williamr@2
|
384 |
(((w) == 0) && ((a)->top == 0)))
|
williamr@2
|
385 |
#define BN_is_zero(a) ((a)->top == 0)
|
williamr@2
|
386 |
#define BN_is_one(a) (BN_abs_is_word((a),1) && !(a)->neg)
|
williamr@2
|
387 |
#define BN_is_word(a,w) (BN_abs_is_word((a),(w)) && (!(w) || !(a)->neg))
|
williamr@2
|
388 |
#define BN_is_odd(a) (((a)->top > 0) && ((a)->d[0] & 1))
|
williamr@2
|
389 |
|
williamr@2
|
390 |
#define BN_one(a) (BN_set_word((a),1))
|
williamr@2
|
391 |
#define BN_zero_ex(a) \
|
williamr@2
|
392 |
do { \
|
williamr@2
|
393 |
BIGNUM *_tmp_bn = (a); \
|
williamr@2
|
394 |
_tmp_bn->top = 0; \
|
williamr@2
|
395 |
_tmp_bn->neg = 0; \
|
williamr@2
|
396 |
} while(0)
|
williamr@2
|
397 |
#ifdef OPENSSL_NO_DEPRECATED
|
williamr@2
|
398 |
#define BN_zero(a) BN_zero_ex(a)
|
williamr@2
|
399 |
#else
|
williamr@2
|
400 |
#define BN_zero(a) (BN_set_word((a),0))
|
williamr@2
|
401 |
#endif
|
williamr@2
|
402 |
|
williamr@2
|
403 |
IMPORT_C const BIGNUM *BN_value_one(void);
|
williamr@2
|
404 |
IMPORT_C char * BN_options(void);
|
williamr@2
|
405 |
IMPORT_C BN_CTX *BN_CTX_new(void);
|
williamr@2
|
406 |
#ifndef OPENSSL_NO_DEPRECATED
|
williamr@2
|
407 |
IMPORT_C void BN_CTX_init(BN_CTX *c);
|
williamr@2
|
408 |
#endif
|
williamr@2
|
409 |
IMPORT_C void BN_CTX_free(BN_CTX *c);
|
williamr@2
|
410 |
IMPORT_C void BN_CTX_start(BN_CTX *ctx);
|
williamr@2
|
411 |
IMPORT_C BIGNUM *BN_CTX_get(BN_CTX *ctx);
|
williamr@2
|
412 |
IMPORT_C void BN_CTX_end(BN_CTX *ctx);
|
williamr@2
|
413 |
IMPORT_C int BN_rand(BIGNUM *rnd, int bits, int top,int bottom);
|
williamr@2
|
414 |
IMPORT_C int BN_pseudo_rand(BIGNUM *rnd, int bits, int top,int bottom);
|
williamr@2
|
415 |
IMPORT_C int BN_rand_range(BIGNUM *rnd, BIGNUM *range);
|
williamr@2
|
416 |
IMPORT_C int BN_pseudo_rand_range(BIGNUM *rnd, BIGNUM *range);
|
williamr@2
|
417 |
IMPORT_C int BN_num_bits(const BIGNUM *a);
|
williamr@2
|
418 |
IMPORT_C int BN_num_bits_word(BN_ULONG);
|
williamr@2
|
419 |
IMPORT_C BIGNUM *BN_new(void);
|
williamr@2
|
420 |
IMPORT_C void BN_init(BIGNUM *);
|
williamr@2
|
421 |
IMPORT_C void BN_clear_free(BIGNUM *a);
|
williamr@2
|
422 |
IMPORT_C BIGNUM *BN_copy(BIGNUM *a, const BIGNUM *b);
|
williamr@2
|
423 |
IMPORT_C void BN_swap(BIGNUM *a, BIGNUM *b);
|
williamr@2
|
424 |
IMPORT_C BIGNUM *BN_bin2bn(const unsigned char *s,int len,BIGNUM *ret);
|
williamr@2
|
425 |
IMPORT_C int BN_bn2bin(const BIGNUM *a, unsigned char *to);
|
williamr@2
|
426 |
IMPORT_C BIGNUM *BN_mpi2bn(const unsigned char *s,int len,BIGNUM *ret);
|
williamr@2
|
427 |
IMPORT_C int BN_bn2mpi(const BIGNUM *a, unsigned char *to);
|
williamr@2
|
428 |
IMPORT_C int BN_sub(BIGNUM *r, const BIGNUM *a, const BIGNUM *b);
|
williamr@2
|
429 |
IMPORT_C int BN_usub(BIGNUM *r, const BIGNUM *a, const BIGNUM *b);
|
williamr@2
|
430 |
IMPORT_C int BN_uadd(BIGNUM *r, const BIGNUM *a, const BIGNUM *b);
|
williamr@2
|
431 |
IMPORT_C int BN_add(BIGNUM *r, const BIGNUM *a, const BIGNUM *b);
|
williamr@2
|
432 |
IMPORT_C int BN_mul(BIGNUM *r, const BIGNUM *a, const BIGNUM *b, BN_CTX *ctx);
|
williamr@2
|
433 |
IMPORT_C int BN_sqr(BIGNUM *r, const BIGNUM *a,BN_CTX *ctx);
|
williamr@2
|
434 |
/* BN_set_negative(): sets sign of a bignum */
|
williamr@2
|
435 |
IMPORT_C void BN_set_negative(BIGNUM *b, int n);
|
williamr@2
|
436 |
/* BN_get_negative(): returns 1 if the bignum is < 0 and 0 otherwise */
|
williamr@2
|
437 |
#define BN_is_negative(a) ((a)->neg != 0)
|
williamr@2
|
438 |
|
williamr@2
|
439 |
IMPORT_C int BN_div(BIGNUM *dv, BIGNUM *rem, const BIGNUM *m, const BIGNUM *d,
|
williamr@2
|
440 |
BN_CTX *ctx);
|
williamr@2
|
441 |
#define BN_mod(rem,m,d,ctx) BN_div(NULL,(rem),(m),(d),(ctx))
|
williamr@2
|
442 |
IMPORT_C int BN_nnmod(BIGNUM *r, const BIGNUM *m, const BIGNUM *d, BN_CTX *ctx);
|
williamr@2
|
443 |
IMPORT_C int BN_mod_add(BIGNUM *r, const BIGNUM *a, const BIGNUM *b, const BIGNUM *m, BN_CTX *ctx);
|
williamr@2
|
444 |
IMPORT_C int BN_mod_add_quick(BIGNUM *r, const BIGNUM *a, const BIGNUM *b, const BIGNUM *m);
|
williamr@2
|
445 |
IMPORT_C int BN_mod_sub(BIGNUM *r, const BIGNUM *a, const BIGNUM *b, const BIGNUM *m, BN_CTX *ctx);
|
williamr@2
|
446 |
IMPORT_C int BN_mod_sub_quick(BIGNUM *r, const BIGNUM *a, const BIGNUM *b, const BIGNUM *m);
|
williamr@2
|
447 |
IMPORT_C int BN_mod_mul(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
|
williamr@2
|
448 |
const BIGNUM *m, BN_CTX *ctx);
|
williamr@2
|
449 |
IMPORT_C int BN_mod_sqr(BIGNUM *r, const BIGNUM *a, const BIGNUM *m, BN_CTX *ctx);
|
williamr@2
|
450 |
IMPORT_C int BN_mod_lshift1(BIGNUM *r, const BIGNUM *a, const BIGNUM *m, BN_CTX *ctx);
|
williamr@2
|
451 |
IMPORT_C int BN_mod_lshift1_quick(BIGNUM *r, const BIGNUM *a, const BIGNUM *m);
|
williamr@2
|
452 |
IMPORT_C int BN_mod_lshift(BIGNUM *r, const BIGNUM *a, int n, const BIGNUM *m, BN_CTX *ctx);
|
williamr@2
|
453 |
IMPORT_C int BN_mod_lshift_quick(BIGNUM *r, const BIGNUM *a, int n, const BIGNUM *m);
|
williamr@2
|
454 |
|
williamr@2
|
455 |
IMPORT_C BN_ULONG BN_mod_word(const BIGNUM *a, BN_ULONG w);
|
williamr@2
|
456 |
IMPORT_C BN_ULONG BN_div_word(BIGNUM *a, BN_ULONG w);
|
williamr@2
|
457 |
IMPORT_C int BN_mul_word(BIGNUM *a, BN_ULONG w);
|
williamr@2
|
458 |
IMPORT_C int BN_add_word(BIGNUM *a, BN_ULONG w);
|
williamr@2
|
459 |
IMPORT_C int BN_sub_word(BIGNUM *a, BN_ULONG w);
|
williamr@2
|
460 |
IMPORT_C int BN_set_word(BIGNUM *a, BN_ULONG w);
|
williamr@2
|
461 |
IMPORT_C BN_ULONG BN_get_word(const BIGNUM *a);
|
williamr@2
|
462 |
|
williamr@2
|
463 |
IMPORT_C int BN_cmp(const BIGNUM *a, const BIGNUM *b);
|
williamr@2
|
464 |
IMPORT_C void BN_free(BIGNUM *a);
|
williamr@2
|
465 |
IMPORT_C int BN_is_bit_set(const BIGNUM *a, int n);
|
williamr@2
|
466 |
IMPORT_C int BN_lshift(BIGNUM *r, const BIGNUM *a, int n);
|
williamr@2
|
467 |
IMPORT_C int BN_lshift1(BIGNUM *r, const BIGNUM *a);
|
williamr@2
|
468 |
IMPORT_C int BN_exp(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,BN_CTX *ctx);
|
williamr@2
|
469 |
|
williamr@2
|
470 |
IMPORT_C int BN_mod_exp(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
|
williamr@2
|
471 |
const BIGNUM *m,BN_CTX *ctx);
|
williamr@2
|
472 |
IMPORT_C int BN_mod_exp_mont(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
|
williamr@2
|
473 |
const BIGNUM *m, BN_CTX *ctx, BN_MONT_CTX *m_ctx);
|
williamr@2
|
474 |
IMPORT_C int BN_mod_exp_mont_consttime(BIGNUM *rr, const BIGNUM *a, const BIGNUM *p,
|
williamr@2
|
475 |
const BIGNUM *m, BN_CTX *ctx, BN_MONT_CTX *in_mont);
|
williamr@2
|
476 |
IMPORT_C int BN_mod_exp_mont_word(BIGNUM *r, BN_ULONG a, const BIGNUM *p,
|
williamr@2
|
477 |
const BIGNUM *m, BN_CTX *ctx, BN_MONT_CTX *m_ctx);
|
williamr@2
|
478 |
IMPORT_C int BN_mod_exp2_mont(BIGNUM *r, const BIGNUM *a1, const BIGNUM *p1,
|
williamr@2
|
479 |
const BIGNUM *a2, const BIGNUM *p2,const BIGNUM *m,
|
williamr@2
|
480 |
BN_CTX *ctx,BN_MONT_CTX *m_ctx);
|
williamr@2
|
481 |
IMPORT_C int BN_mod_exp_simple(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
|
williamr@2
|
482 |
const BIGNUM *m,BN_CTX *ctx);
|
williamr@2
|
483 |
|
williamr@2
|
484 |
IMPORT_C int BN_mask_bits(BIGNUM *a,int n);
|
williamr@2
|
485 |
#ifndef OPENSSL_NO_FP_API
|
williamr@2
|
486 |
IMPORT_C int BN_print_fp(FILE *fp, const BIGNUM *a);
|
williamr@2
|
487 |
#endif
|
williamr@2
|
488 |
#ifdef HEADER_BIO_H
|
williamr@2
|
489 |
IMPORT_C int BN_print(BIO *fp, const BIGNUM *a);
|
williamr@2
|
490 |
#else
|
williamr@2
|
491 |
IMPORT_C int BN_print(void *fp, const BIGNUM *a);
|
williamr@2
|
492 |
#endif
|
williamr@2
|
493 |
IMPORT_C int BN_reciprocal(BIGNUM *r, const BIGNUM *m, int len, BN_CTX *ctx);
|
williamr@2
|
494 |
IMPORT_C int BN_rshift(BIGNUM *r, const BIGNUM *a, int n);
|
williamr@2
|
495 |
IMPORT_C int BN_rshift1(BIGNUM *r, const BIGNUM *a);
|
williamr@2
|
496 |
IMPORT_C void BN_clear(BIGNUM *a);
|
williamr@2
|
497 |
IMPORT_C BIGNUM *BN_dup(const BIGNUM *a);
|
williamr@2
|
498 |
IMPORT_C int BN_ucmp(const BIGNUM *a, const BIGNUM *b);
|
williamr@2
|
499 |
IMPORT_C int BN_set_bit(BIGNUM *a, int n);
|
williamr@2
|
500 |
IMPORT_C int BN_clear_bit(BIGNUM *a, int n);
|
williamr@2
|
501 |
IMPORT_C char * BN_bn2hex(const BIGNUM *a);
|
williamr@2
|
502 |
IMPORT_C char * BN_bn2dec(const BIGNUM *a);
|
williamr@2
|
503 |
IMPORT_C int BN_hex2bn(BIGNUM **a, const char *str);
|
williamr@2
|
504 |
IMPORT_C int BN_dec2bn(BIGNUM **a, const char *str);
|
williamr@2
|
505 |
IMPORT_C int BN_gcd(BIGNUM *r,const BIGNUM *a,const BIGNUM *b,BN_CTX *ctx);
|
williamr@2
|
506 |
IMPORT_C int BN_kronecker(const BIGNUM *a,const BIGNUM *b,BN_CTX *ctx); /* returns -2 for error */
|
williamr@2
|
507 |
IMPORT_C BIGNUM *BN_mod_inverse(BIGNUM *ret,
|
williamr@2
|
508 |
const BIGNUM *a, const BIGNUM *n,BN_CTX *ctx);
|
williamr@2
|
509 |
IMPORT_C BIGNUM *BN_mod_sqrt(BIGNUM *ret,
|
williamr@2
|
510 |
const BIGNUM *a, const BIGNUM *n,BN_CTX *ctx);
|
williamr@2
|
511 |
|
williamr@2
|
512 |
/* Deprecated versions */
|
williamr@2
|
513 |
#ifndef OPENSSL_NO_DEPRECATED
|
williamr@2
|
514 |
IMPORT_C BIGNUM *BN_generate_prime(BIGNUM *ret,int bits,int safe,
|
williamr@2
|
515 |
const BIGNUM *add, const BIGNUM *rem,
|
williamr@2
|
516 |
void (*callback)(int,int,void *),void *cb_arg);
|
williamr@2
|
517 |
IMPORT_C int BN_is_prime(const BIGNUM *p,int nchecks,
|
williamr@2
|
518 |
void (*callback)(int,int,void *),
|
williamr@2
|
519 |
BN_CTX *ctx,void *cb_arg);
|
williamr@2
|
520 |
IMPORT_C int BN_is_prime_fasttest(const BIGNUM *p,int nchecks,
|
williamr@2
|
521 |
void (*callback)(int,int,void *),BN_CTX *ctx,void *cb_arg,
|
williamr@2
|
522 |
int do_trial_division);
|
williamr@2
|
523 |
#endif /* !defined(OPENSSL_NO_DEPRECATED) */
|
williamr@2
|
524 |
|
williamr@2
|
525 |
/* Newer versions */
|
williamr@2
|
526 |
IMPORT_C int BN_generate_prime_ex(BIGNUM *ret,int bits,int safe, const BIGNUM *add,
|
williamr@2
|
527 |
const BIGNUM *rem, BN_GENCB *cb);
|
williamr@2
|
528 |
IMPORT_C int BN_is_prime_ex(const BIGNUM *p,int nchecks, BN_CTX *ctx, BN_GENCB *cb);
|
williamr@2
|
529 |
IMPORT_C int BN_is_prime_fasttest_ex(const BIGNUM *p,int nchecks, BN_CTX *ctx,
|
williamr@2
|
530 |
int do_trial_division, BN_GENCB *cb);
|
williamr@2
|
531 |
|
williamr@2
|
532 |
IMPORT_C BN_MONT_CTX *BN_MONT_CTX_new(void );
|
williamr@2
|
533 |
IMPORT_C void BN_MONT_CTX_init(BN_MONT_CTX *ctx);
|
williamr@2
|
534 |
IMPORT_C int BN_mod_mul_montgomery(BIGNUM *r,const BIGNUM *a,const BIGNUM *b,
|
williamr@2
|
535 |
BN_MONT_CTX *mont, BN_CTX *ctx);
|
williamr@2
|
536 |
#define BN_to_montgomery(r,a,mont,ctx) BN_mod_mul_montgomery(\
|
williamr@2
|
537 |
(r),(a),&((mont)->RR),(mont),(ctx))
|
williamr@2
|
538 |
IMPORT_C int BN_from_montgomery(BIGNUM *r,const BIGNUM *a,
|
williamr@2
|
539 |
BN_MONT_CTX *mont, BN_CTX *ctx);
|
williamr@2
|
540 |
IMPORT_C void BN_MONT_CTX_free(BN_MONT_CTX *mont);
|
williamr@2
|
541 |
IMPORT_C int BN_MONT_CTX_set(BN_MONT_CTX *mont,const BIGNUM *mod,BN_CTX *ctx);
|
williamr@2
|
542 |
IMPORT_C BN_MONT_CTX *BN_MONT_CTX_copy(BN_MONT_CTX *to,BN_MONT_CTX *from);
|
williamr@2
|
543 |
IMPORT_C BN_MONT_CTX *BN_MONT_CTX_set_locked(BN_MONT_CTX **pmont, int lock,
|
williamr@2
|
544 |
const BIGNUM *mod, BN_CTX *ctx);
|
williamr@2
|
545 |
|
williamr@2
|
546 |
/* BN_BLINDING flags */
|
williamr@2
|
547 |
#define BN_BLINDING_NO_UPDATE 0x00000001
|
williamr@2
|
548 |
#define BN_BLINDING_NO_RECREATE 0x00000002
|
williamr@2
|
549 |
|
williamr@2
|
550 |
IMPORT_C BN_BLINDING *BN_BLINDING_new(const BIGNUM *A, const BIGNUM *Ai, BIGNUM *mod);
|
williamr@2
|
551 |
IMPORT_C void BN_BLINDING_free(BN_BLINDING *b);
|
williamr@2
|
552 |
IMPORT_C int BN_BLINDING_update(BN_BLINDING *b,BN_CTX *ctx);
|
williamr@2
|
553 |
IMPORT_C int BN_BLINDING_convert(BIGNUM *n, BN_BLINDING *b, BN_CTX *ctx);
|
williamr@2
|
554 |
IMPORT_C int BN_BLINDING_invert(BIGNUM *n, BN_BLINDING *b, BN_CTX *ctx);
|
williamr@2
|
555 |
IMPORT_C int BN_BLINDING_convert_ex(BIGNUM *n, BIGNUM *r, BN_BLINDING *b, BN_CTX *);
|
williamr@2
|
556 |
IMPORT_C int BN_BLINDING_invert_ex(BIGNUM *n, const BIGNUM *r, BN_BLINDING *b, BN_CTX *);
|
williamr@2
|
557 |
IMPORT_C unsigned long BN_BLINDING_get_thread_id(const BN_BLINDING *);
|
williamr@2
|
558 |
IMPORT_C void BN_BLINDING_set_thread_id(BN_BLINDING *, unsigned long);
|
williamr@2
|
559 |
IMPORT_C unsigned long BN_BLINDING_get_flags(const BN_BLINDING *);
|
williamr@2
|
560 |
IMPORT_C void BN_BLINDING_set_flags(BN_BLINDING *, unsigned long);
|
williamr@2
|
561 |
IMPORT_C BN_BLINDING *BN_BLINDING_create_param(BN_BLINDING *b,
|
williamr@2
|
562 |
const BIGNUM *e, BIGNUM *m, BN_CTX *ctx,
|
williamr@2
|
563 |
int (*bn_mod_exp)(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
|
williamr@2
|
564 |
const BIGNUM *m, BN_CTX *ctx, BN_MONT_CTX *m_ctx),
|
williamr@2
|
565 |
BN_MONT_CTX *m_ctx);
|
williamr@2
|
566 |
|
williamr@2
|
567 |
#ifndef OPENSSL_NO_DEPRECATED
|
williamr@2
|
568 |
IMPORT_C void BN_set_params(int mul,int high,int low,int mont);
|
williamr@2
|
569 |
IMPORT_C int BN_get_params(int which); /* 0, mul, 1 high, 2 low, 3 mont */
|
williamr@2
|
570 |
#endif
|
williamr@2
|
571 |
|
williamr@2
|
572 |
IMPORT_C void BN_RECP_CTX_init(BN_RECP_CTX *recp);
|
williamr@2
|
573 |
IMPORT_C BN_RECP_CTX *BN_RECP_CTX_new(void);
|
williamr@2
|
574 |
IMPORT_C void BN_RECP_CTX_free(BN_RECP_CTX *recp);
|
williamr@2
|
575 |
IMPORT_C int BN_RECP_CTX_set(BN_RECP_CTX *recp,const BIGNUM *rdiv,BN_CTX *ctx);
|
williamr@2
|
576 |
IMPORT_C int BN_mod_mul_reciprocal(BIGNUM *r, const BIGNUM *x, const BIGNUM *y,
|
williamr@2
|
577 |
BN_RECP_CTX *recp,BN_CTX *ctx);
|
williamr@2
|
578 |
IMPORT_C int BN_mod_exp_recp(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
|
williamr@2
|
579 |
const BIGNUM *m, BN_CTX *ctx);
|
williamr@2
|
580 |
IMPORT_C int BN_div_recp(BIGNUM *dv, BIGNUM *rem, const BIGNUM *m,
|
williamr@2
|
581 |
BN_RECP_CTX *recp, BN_CTX *ctx);
|
williamr@2
|
582 |
|
williamr@2
|
583 |
/* Functions for arithmetic over binary polynomials represented by BIGNUMs.
|
williamr@2
|
584 |
*
|
williamr@2
|
585 |
* The BIGNUM::neg property of BIGNUMs representing binary polynomials is
|
williamr@2
|
586 |
* ignored.
|
williamr@2
|
587 |
*
|
williamr@2
|
588 |
* Note that input arguments are not const so that their bit arrays can
|
williamr@2
|
589 |
* be expanded to the appropriate size if needed.
|
williamr@2
|
590 |
*/
|
williamr@2
|
591 |
|
williamr@2
|
592 |
IMPORT_C int BN_GF2m_add(BIGNUM *r, const BIGNUM *a, const BIGNUM *b); /*r = a + b*/
|
williamr@2
|
593 |
#define BN_GF2m_sub(r, a, b) BN_GF2m_add(r, a, b)
|
williamr@2
|
594 |
IMPORT_C int BN_GF2m_mod(BIGNUM *r, const BIGNUM *a, const BIGNUM *p); /*r=a mod p*/
|
williamr@2
|
595 |
IMPORT_C int BN_GF2m_mod_mul(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
|
williamr@2
|
596 |
const BIGNUM *p, BN_CTX *ctx); /* r = (a * b) mod p */
|
williamr@2
|
597 |
IMPORT_C int BN_GF2m_mod_sqr(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
|
williamr@2
|
598 |
BN_CTX *ctx); /* r = (a * a) mod p */
|
williamr@2
|
599 |
IMPORT_C int BN_GF2m_mod_inv(BIGNUM *r, const BIGNUM *b, const BIGNUM *p,
|
williamr@2
|
600 |
BN_CTX *ctx); /* r = (1 / b) mod p */
|
williamr@2
|
601 |
IMPORT_C int BN_GF2m_mod_div(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
|
williamr@2
|
602 |
const BIGNUM *p, BN_CTX *ctx); /* r = (a / b) mod p */
|
williamr@2
|
603 |
IMPORT_C int BN_GF2m_mod_exp(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
|
williamr@2
|
604 |
const BIGNUM *p, BN_CTX *ctx); /* r = (a ^ b) mod p */
|
williamr@2
|
605 |
IMPORT_C int BN_GF2m_mod_sqrt(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
|
williamr@2
|
606 |
BN_CTX *ctx); /* r = sqrt(a) mod p */
|
williamr@2
|
607 |
IMPORT_C int BN_GF2m_mod_solve_quad(BIGNUM *r, const BIGNUM *a, const BIGNUM *p,
|
williamr@2
|
608 |
BN_CTX *ctx); /* r^2 + r = a mod p */
|
williamr@2
|
609 |
#define BN_GF2m_cmp(a, b) BN_ucmp((a), (b))
|
williamr@2
|
610 |
/* Some functions allow for representation of the irreducible polynomials
|
williamr@2
|
611 |
* as an unsigned int[], say p. The irreducible f(t) is then of the form:
|
williamr@2
|
612 |
* t^p[0] + t^p[1] + ... + t^p[k]
|
williamr@2
|
613 |
* where m = p[0] > p[1] > ... > p[k] = 0.
|
williamr@2
|
614 |
*/
|
williamr@2
|
615 |
IMPORT_C int BN_GF2m_mod_arr(BIGNUM *r, const BIGNUM *a, const unsigned int p[]);
|
williamr@2
|
616 |
/* r = a mod p */
|
williamr@2
|
617 |
IMPORT_C int BN_GF2m_mod_mul_arr(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
|
williamr@2
|
618 |
const unsigned int p[], BN_CTX *ctx); /* r = (a * b) mod p */
|
williamr@2
|
619 |
IMPORT_C int BN_GF2m_mod_sqr_arr(BIGNUM *r, const BIGNUM *a, const unsigned int p[],
|
williamr@2
|
620 |
BN_CTX *ctx); /* r = (a * a) mod p */
|
williamr@2
|
621 |
IMPORT_C int BN_GF2m_mod_inv_arr(BIGNUM *r, const BIGNUM *b, const unsigned int p[],
|
williamr@2
|
622 |
BN_CTX *ctx); /* r = (1 / b) mod p */
|
williamr@2
|
623 |
IMPORT_C int BN_GF2m_mod_div_arr(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
|
williamr@2
|
624 |
const unsigned int p[], BN_CTX *ctx); /* r = (a / b) mod p */
|
williamr@2
|
625 |
IMPORT_C int BN_GF2m_mod_exp_arr(BIGNUM *r, const BIGNUM *a, const BIGNUM *b,
|
williamr@2
|
626 |
const unsigned int p[], BN_CTX *ctx); /* r = (a ^ b) mod p */
|
williamr@2
|
627 |
IMPORT_C int BN_GF2m_mod_sqrt_arr(BIGNUM *r, const BIGNUM *a,
|
williamr@2
|
628 |
const unsigned int p[], BN_CTX *ctx); /* r = sqrt(a) mod p */
|
williamr@2
|
629 |
IMPORT_C int BN_GF2m_mod_solve_quad_arr(BIGNUM *r, const BIGNUM *a,
|
williamr@2
|
630 |
const unsigned int p[], BN_CTX *ctx); /* r^2 + r = a mod p */
|
williamr@2
|
631 |
IMPORT_C int BN_GF2m_poly2arr(const BIGNUM *a, unsigned int p[], int max);
|
williamr@2
|
632 |
IMPORT_C int BN_GF2m_arr2poly(const unsigned int p[], BIGNUM *a);
|
williamr@2
|
633 |
|
williamr@2
|
634 |
/* faster mod functions for the 'NIST primes'
|
williamr@2
|
635 |
* 0 <= a < p^2 */
|
williamr@2
|
636 |
IMPORT_C int BN_nist_mod_192(BIGNUM *r, const BIGNUM *a, const BIGNUM *p, BN_CTX *ctx);
|
williamr@2
|
637 |
IMPORT_C int BN_nist_mod_224(BIGNUM *r, const BIGNUM *a, const BIGNUM *p, BN_CTX *ctx);
|
williamr@2
|
638 |
IMPORT_C int BN_nist_mod_256(BIGNUM *r, const BIGNUM *a, const BIGNUM *p, BN_CTX *ctx);
|
williamr@2
|
639 |
IMPORT_C int BN_nist_mod_384(BIGNUM *r, const BIGNUM *a, const BIGNUM *p, BN_CTX *ctx);
|
williamr@2
|
640 |
IMPORT_C int BN_nist_mod_521(BIGNUM *r, const BIGNUM *a, const BIGNUM *p, BN_CTX *ctx);
|
williamr@2
|
641 |
|
williamr@2
|
642 |
IMPORT_C const BIGNUM *BN_get0_nist_prime_192(void);
|
williamr@2
|
643 |
IMPORT_C const BIGNUM *BN_get0_nist_prime_224(void);
|
williamr@2
|
644 |
IMPORT_C const BIGNUM *BN_get0_nist_prime_256(void);
|
williamr@2
|
645 |
IMPORT_C const BIGNUM *BN_get0_nist_prime_384(void);
|
williamr@2
|
646 |
IMPORT_C const BIGNUM *BN_get0_nist_prime_521(void);
|
williamr@2
|
647 |
|
williamr@2
|
648 |
/* library internal functions */
|
williamr@2
|
649 |
|
williamr@2
|
650 |
#define bn_expand(a,bits) ((((((bits+BN_BITS2-1))/BN_BITS2)) <= (a)->dmax)?\
|
williamr@2
|
651 |
(a):bn_expand2((a),(bits+BN_BITS2-1)/BN_BITS2))
|
williamr@2
|
652 |
#define bn_wexpand(a,words) (((words) <= (a)->dmax)?(a):bn_expand2((a),(words)))
|
williamr@2
|
653 |
IMPORT_C BIGNUM *bn_expand2(BIGNUM *a, int words);
|
williamr@2
|
654 |
#ifndef OPENSSL_NO_DEPRECATED
|
williamr@2
|
655 |
BIGNUM *bn_dup_expand(const BIGNUM *a, int words); /* unused */
|
williamr@2
|
656 |
#endif
|
williamr@2
|
657 |
|
williamr@2
|
658 |
/* Bignum consistency macros
|
williamr@2
|
659 |
* There is one "API" macro, bn_fix_top(), for stripping leading zeroes from
|
williamr@2
|
660 |
* bignum data after direct manipulations on the data. There is also an
|
williamr@2
|
661 |
* "internal" macro, bn_check_top(), for verifying that there are no leading
|
williamr@2
|
662 |
* zeroes. Unfortunately, some auditing is required due to the fact that
|
williamr@2
|
663 |
* bn_fix_top() has become an overabused duct-tape because bignum data is
|
williamr@2
|
664 |
* occasionally passed around in an inconsistent state. So the following
|
williamr@2
|
665 |
* changes have been made to sort this out;
|
williamr@2
|
666 |
* - bn_fix_top()s implementation has been moved to bn_correct_top()
|
williamr@2
|
667 |
* - if BN_DEBUG isn't defined, bn_fix_top() maps to bn_correct_top(), and
|
williamr@2
|
668 |
* bn_check_top() is as before.
|
williamr@2
|
669 |
* - if BN_DEBUG *is* defined;
|
williamr@2
|
670 |
* - bn_check_top() tries to pollute unused words even if the bignum 'top' is
|
williamr@2
|
671 |
* consistent. (ed: only if BN_DEBUG_RAND is defined)
|
williamr@2
|
672 |
* - bn_fix_top() maps to bn_check_top() rather than "fixing" anything.
|
williamr@2
|
673 |
* The idea is to have debug builds flag up inconsistent bignums when they
|
williamr@2
|
674 |
* occur. If that occurs in a bn_fix_top(), we examine the code in question; if
|
williamr@2
|
675 |
* the use of bn_fix_top() was appropriate (ie. it follows directly after code
|
williamr@2
|
676 |
* that manipulates the bignum) it is converted to bn_correct_top(), and if it
|
williamr@2
|
677 |
* was not appropriate, we convert it permanently to bn_check_top() and track
|
williamr@2
|
678 |
* down the cause of the bug. Eventually, no internal code should be using the
|
williamr@2
|
679 |
* bn_fix_top() macro. External applications and libraries should try this with
|
williamr@2
|
680 |
* their own code too, both in terms of building against the openssl headers
|
williamr@2
|
681 |
* with BN_DEBUG defined *and* linking with a version of OpenSSL built with it
|
williamr@2
|
682 |
* defined. This not only improves external code, it provides more test
|
williamr@2
|
683 |
* coverage for openssl's own code.
|
williamr@2
|
684 |
*/
|
williamr@2
|
685 |
|
williamr@2
|
686 |
#ifdef BN_DEBUG
|
williamr@2
|
687 |
|
williamr@2
|
688 |
/* We only need assert() when debugging */
|
williamr@2
|
689 |
#include <assert.h>
|
williamr@2
|
690 |
|
williamr@2
|
691 |
#ifdef BN_DEBUG_RAND
|
williamr@2
|
692 |
/* To avoid "make update" cvs wars due to BN_DEBUG, use some tricks */
|
williamr@2
|
693 |
#ifndef RAND_pseudo_bytes
|
williamr@2
|
694 |
int RAND_pseudo_bytes(unsigned char *buf,int num);
|
williamr@2
|
695 |
#define BN_DEBUG_TRIX
|
williamr@2
|
696 |
#endif
|
williamr@2
|
697 |
#define bn_pollute(a) \
|
williamr@2
|
698 |
do { \
|
williamr@2
|
699 |
const BIGNUM *_bnum1 = (a); \
|
williamr@2
|
700 |
if(_bnum1->top < _bnum1->dmax) { \
|
williamr@2
|
701 |
unsigned char _tmp_char; \
|
williamr@2
|
702 |
/* We cast away const without the compiler knowing, any \
|
williamr@2
|
703 |
* *genuinely* constant variables that aren't mutable \
|
williamr@2
|
704 |
* wouldn't be constructed with top!=dmax. */ \
|
williamr@2
|
705 |
BN_ULONG *_not_const; \
|
williamr@2
|
706 |
memcpy(&_not_const, &_bnum1->d, sizeof(BN_ULONG*)); \
|
williamr@2
|
707 |
RAND_pseudo_bytes(&_tmp_char, 1); \
|
williamr@2
|
708 |
memset((unsigned char *)(_not_const + _bnum1->top), _tmp_char, \
|
williamr@2
|
709 |
(_bnum1->dmax - _bnum1->top) * sizeof(BN_ULONG)); \
|
williamr@2
|
710 |
} \
|
williamr@2
|
711 |
} while(0)
|
williamr@2
|
712 |
#ifdef BN_DEBUG_TRIX
|
williamr@2
|
713 |
#undef RAND_pseudo_bytes
|
williamr@2
|
714 |
#endif
|
williamr@2
|
715 |
#else
|
williamr@2
|
716 |
#define bn_pollute(a)
|
williamr@2
|
717 |
#endif
|
williamr@2
|
718 |
#define bn_check_top(a) \
|
williamr@2
|
719 |
do { \
|
williamr@2
|
720 |
const BIGNUM *_bnum2 = (a); \
|
williamr@2
|
721 |
if (_bnum2 != NULL) { \
|
williamr@2
|
722 |
assert((_bnum2->top == 0) || \
|
williamr@2
|
723 |
(_bnum2->d[_bnum2->top - 1] != 0)); \
|
williamr@2
|
724 |
bn_pollute(_bnum2); \
|
williamr@2
|
725 |
} \
|
williamr@2
|
726 |
} while(0)
|
williamr@2
|
727 |
|
williamr@2
|
728 |
#define bn_fix_top(a) bn_check_top(a)
|
williamr@2
|
729 |
|
williamr@2
|
730 |
#else /* !BN_DEBUG */
|
williamr@2
|
731 |
|
williamr@2
|
732 |
#define bn_pollute(a)
|
williamr@2
|
733 |
#define bn_check_top(a)
|
williamr@2
|
734 |
#define bn_fix_top(a) bn_correct_top(a)
|
williamr@2
|
735 |
|
williamr@2
|
736 |
#endif
|
williamr@2
|
737 |
|
williamr@2
|
738 |
#define bn_correct_top(a) \
|
williamr@2
|
739 |
{ \
|
williamr@2
|
740 |
BN_ULONG *ftl; \
|
williamr@2
|
741 |
if ((a)->top > 0) \
|
williamr@2
|
742 |
{ \
|
williamr@2
|
743 |
for (ftl= &((a)->d[(a)->top-1]); (a)->top > 0; (a)->top--) \
|
williamr@2
|
744 |
if (*(ftl--)) break; \
|
williamr@2
|
745 |
} \
|
williamr@2
|
746 |
bn_pollute(a); \
|
williamr@2
|
747 |
}
|
williamr@2
|
748 |
|
williamr@2
|
749 |
IMPORT_C BN_ULONG bn_mul_add_words(BN_ULONG *rp, const BN_ULONG *ap, int num, BN_ULONG w);
|
williamr@2
|
750 |
IMPORT_C BN_ULONG bn_mul_words(BN_ULONG *rp, const BN_ULONG *ap, int num, BN_ULONG w);
|
williamr@2
|
751 |
IMPORT_C void bn_sqr_words(BN_ULONG *rp, const BN_ULONG *ap, int num);
|
williamr@2
|
752 |
IMPORT_C BN_ULONG bn_div_words(BN_ULONG h, BN_ULONG l, BN_ULONG d);
|
williamr@2
|
753 |
IMPORT_C BN_ULONG bn_add_words(BN_ULONG *rp, const BN_ULONG *ap, const BN_ULONG *bp,int num);
|
williamr@2
|
754 |
IMPORT_C BN_ULONG bn_sub_words(BN_ULONG *rp, const BN_ULONG *ap, const BN_ULONG *bp,int num);
|
williamr@2
|
755 |
|
williamr@2
|
756 |
/* Primes from RFC 2409 */
|
williamr@2
|
757 |
IMPORT_C BIGNUM *get_rfc2409_prime_768(BIGNUM *bn);
|
williamr@2
|
758 |
IMPORT_C BIGNUM *get_rfc2409_prime_1024(BIGNUM *bn);
|
williamr@2
|
759 |
|
williamr@2
|
760 |
/* Primes from RFC 3526 */
|
williamr@2
|
761 |
IMPORT_C BIGNUM *get_rfc3526_prime_1536(BIGNUM *bn);
|
williamr@2
|
762 |
IMPORT_C BIGNUM *get_rfc3526_prime_2048(BIGNUM *bn);
|
williamr@2
|
763 |
IMPORT_C BIGNUM *get_rfc3526_prime_3072(BIGNUM *bn);
|
williamr@2
|
764 |
IMPORT_C BIGNUM *get_rfc3526_prime_4096(BIGNUM *bn);
|
williamr@2
|
765 |
IMPORT_C BIGNUM *get_rfc3526_prime_6144(BIGNUM *bn);
|
williamr@2
|
766 |
IMPORT_C BIGNUM *get_rfc3526_prime_8192(BIGNUM *bn);
|
williamr@2
|
767 |
|
williamr@2
|
768 |
IMPORT_C int BN_bntest_rand(BIGNUM *rnd, int bits, int top,int bottom);
|
williamr@2
|
769 |
|
williamr@2
|
770 |
/* BEGIN ERROR CODES */
|
williamr@2
|
771 |
/* The following lines are auto generated by the script mkerr.pl. Any changes
|
williamr@2
|
772 |
* made after this point may be overwritten when the script is next run.
|
williamr@2
|
773 |
*/
|
williamr@2
|
774 |
IMPORT_C void ERR_load_BN_strings(void);
|
williamr@2
|
775 |
|
williamr@2
|
776 |
/* Error codes for the BN functions. */
|
williamr@2
|
777 |
|
williamr@2
|
778 |
/* Function codes. */
|
williamr@2
|
779 |
#define BN_F_BNRAND 127
|
williamr@2
|
780 |
#define BN_F_BN_BLINDING_CONVERT_EX 100
|
williamr@2
|
781 |
#define BN_F_BN_BLINDING_CREATE_PARAM 128
|
williamr@2
|
782 |
#define BN_F_BN_BLINDING_INVERT_EX 101
|
williamr@2
|
783 |
#define BN_F_BN_BLINDING_NEW 102
|
williamr@2
|
784 |
#define BN_F_BN_BLINDING_UPDATE 103
|
williamr@2
|
785 |
#define BN_F_BN_BN2DEC 104
|
williamr@2
|
786 |
#define BN_F_BN_BN2HEX 105
|
williamr@2
|
787 |
#define BN_F_BN_CTX_GET 116
|
williamr@2
|
788 |
#define BN_F_BN_CTX_NEW 106
|
williamr@2
|
789 |
#define BN_F_BN_CTX_START 129
|
williamr@2
|
790 |
#define BN_F_BN_DIV 107
|
williamr@2
|
791 |
#define BN_F_BN_DIV_NO_BRANCH 138
|
williamr@2
|
792 |
#define BN_F_BN_DIV_RECP 130
|
williamr@2
|
793 |
#define BN_F_BN_EXP 123
|
williamr@2
|
794 |
#define BN_F_BN_EXPAND2 108
|
williamr@2
|
795 |
#define BN_F_BN_EXPAND_INTERNAL 120
|
williamr@2
|
796 |
#define BN_F_BN_GF2M_MOD 131
|
williamr@2
|
797 |
#define BN_F_BN_GF2M_MOD_EXP 132
|
williamr@2
|
798 |
#define BN_F_BN_GF2M_MOD_MUL 133
|
williamr@2
|
799 |
#define BN_F_BN_GF2M_MOD_SOLVE_QUAD 134
|
williamr@2
|
800 |
#define BN_F_BN_GF2M_MOD_SOLVE_QUAD_ARR 135
|
williamr@2
|
801 |
#define BN_F_BN_GF2M_MOD_SQR 136
|
williamr@2
|
802 |
#define BN_F_BN_GF2M_MOD_SQRT 137
|
williamr@2
|
803 |
#define BN_F_BN_MOD_EXP2_MONT 118
|
williamr@2
|
804 |
#define BN_F_BN_MOD_EXP_MONT 109
|
williamr@2
|
805 |
#define BN_F_BN_MOD_EXP_MONT_CONSTTIME 124
|
williamr@2
|
806 |
#define BN_F_BN_MOD_EXP_MONT_WORD 117
|
williamr@2
|
807 |
#define BN_F_BN_MOD_EXP_RECP 125
|
williamr@2
|
808 |
#define BN_F_BN_MOD_EXP_SIMPLE 126
|
williamr@2
|
809 |
#define BN_F_BN_MOD_INVERSE 110
|
williamr@2
|
810 |
#define BN_F_BN_MOD_INVERSE_NO_BRANCH 139
|
williamr@2
|
811 |
#define BN_F_BN_MOD_LSHIFT_QUICK 119
|
williamr@2
|
812 |
#define BN_F_BN_MOD_MUL_RECIPROCAL 111
|
williamr@2
|
813 |
#define BN_F_BN_MOD_SQRT 121
|
williamr@2
|
814 |
#define BN_F_BN_MPI2BN 112
|
williamr@2
|
815 |
#define BN_F_BN_NEW 113
|
williamr@2
|
816 |
#define BN_F_BN_RAND 114
|
williamr@2
|
817 |
#define BN_F_BN_RAND_RANGE 122
|
williamr@2
|
818 |
#define BN_F_BN_USUB 115
|
williamr@2
|
819 |
|
williamr@2
|
820 |
/* Reason codes. */
|
williamr@2
|
821 |
#define BN_R_ARG2_LT_ARG3 100
|
williamr@2
|
822 |
#define BN_R_BAD_RECIPROCAL 101
|
williamr@2
|
823 |
#define BN_R_BIGNUM_TOO_LONG 114
|
williamr@2
|
824 |
#define BN_R_CALLED_WITH_EVEN_MODULUS 102
|
williamr@2
|
825 |
#define BN_R_DIV_BY_ZERO 103
|
williamr@2
|
826 |
#define BN_R_ENCODING_ERROR 104
|
williamr@2
|
827 |
#define BN_R_EXPAND_ON_STATIC_BIGNUM_DATA 105
|
williamr@2
|
828 |
#define BN_R_INPUT_NOT_REDUCED 110
|
williamr@2
|
829 |
#define BN_R_INVALID_LENGTH 106
|
williamr@2
|
830 |
#define BN_R_INVALID_RANGE 115
|
williamr@2
|
831 |
#define BN_R_NOT_A_SQUARE 111
|
williamr@2
|
832 |
#define BN_R_NOT_INITIALIZED 107
|
williamr@2
|
833 |
#define BN_R_NO_INVERSE 108
|
williamr@2
|
834 |
#define BN_R_NO_SOLUTION 116
|
williamr@2
|
835 |
#define BN_R_P_IS_NOT_PRIME 112
|
williamr@2
|
836 |
#define BN_R_TOO_MANY_ITERATIONS 113
|
williamr@2
|
837 |
#define BN_R_TOO_MANY_TEMPORARY_VARIABLES 109
|
williamr@2
|
838 |
|
williamr@2
|
839 |
#ifdef __cplusplus
|
williamr@2
|
840 |
}
|
williamr@2
|
841 |
#endif
|
williamr@2
|
842 |
#endif
|