bd7a5e4b9c
There are many ways in which the object for a cryptographic algorithm may be included, even if not explicitly enabled in config/crypto.h. For example: the MD5 algorithm is required by TLSv1.1 or earlier, by iSCSI CHAP authentication, by HTTP digest authentication, and by NTLM authentication. In the current implementation, inclusion of an algorithm for any reason will result in the algorithm's ASN.1 object identifier being included in the "asn1_algorithms" table, which consequently allows the algorithm to be used for any ASN1-identified purpose. For example: if the MD5 algorithm is included in order to support HTTP digest authentication, then iPXE would accept a (validly signed) TLS certificate using an MD5 digest. Split the ASN.1 object identifiers into separate files that are required only if explicitly enabled in config/crypto.h. This allows an algorithm to be omitted from the "asn1_algorithms" table even if the algorithm implementation is dragged in for some other purpose. The end result is that only the algorithms that are explicitly enabled in config/crypto.h can be used for ASN1-identified purposes such as signature verification. Signed-off-by: Michael Brown <mcb30@ipxe.org>
270 lines
7.0 KiB
C
270 lines
7.0 KiB
C
/*
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* Copyright (C) 2017 Michael Brown <mbrown@fensystems.co.uk>.
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*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License as
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* published by the Free Software Foundation; either version 2 of the
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* License, or any later version.
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*
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* This program is distributed in the hope that it will be useful, but
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* 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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* General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software
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* Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA
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* 02110-1301, USA.
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*
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* You can also choose to distribute this program under the terms of
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* the Unmodified Binary Distribution Licence (as given in the file
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* COPYING.UBDL), provided that you have satisfied its requirements.
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*/
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FILE_LICENCE ( GPL2_OR_LATER_OR_UBDL );
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/** @file
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*
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* MD4 algorithm
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*
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*/
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#include <stdint.h>
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#include <string.h>
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#include <byteswap.h>
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#include <assert.h>
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#include <ipxe/rotate.h>
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#include <ipxe/crypto.h>
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#include <ipxe/md4.h>
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/** MD4 variables */
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struct md4_variables {
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/* This layout matches that of struct md4_digest_data,
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* allowing for efficient endianness-conversion,
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*/
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uint32_t a;
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uint32_t b;
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uint32_t c;
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uint32_t d;
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uint32_t w[16];
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} __attribute__ (( packed ));
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/** MD4 shift amounts */
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static const uint8_t r[3][4] = {
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{ 3, 7, 11, 19 },
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{ 3, 5, 9, 13 },
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{ 3, 9, 11, 15 },
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};
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/**
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* f(b,c,d,w) for steps 0 to 15
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*
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* @v v MD4 variables
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* @v i Index within round
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* @ret f f(b,c,d,w)
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*/
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static uint32_t md4_f_0_15 ( struct md4_variables *v, unsigned int i ) {
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return ( ( ( v->b & v->c ) | ( ~v->b & v->d ) ) + v->w[i] );
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}
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/**
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* f(b,c,d,w) for steps 16 to 31
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*
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* @v v MD4 variables
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* @v i Index within round
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* @ret f f(b,c,d,w)
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*/
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static uint32_t md4_f_16_31 ( struct md4_variables *v, unsigned int i ) {
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return ( ( ( v->b & v->c ) | ( v->b & v->d ) | ( v->c & v->d ) ) +
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v->w[ ( ( i << 2 ) | ( i >> 2 ) ) % 16 ] );
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}
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/**
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* f(b,c,d,w) for steps 32 to 47
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*
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* @v v MD4 variables
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* @v i Index within round
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* @ret f f(b,c,d,w)
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*/
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static uint32_t md4_f_32_47 ( struct md4_variables *v, unsigned int i ) {
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static const uint8_t reverse[16] = {
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0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15
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};
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return ( ( v->b ^ v->c ^ v->d ) + v->w[reverse[i]] );
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}
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/** An MD4 step function */
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struct md4_step {
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/**
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* Calculate f(b,c,d,w)
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*
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* @v v MD4 variables
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* @v i Index within round
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* @ret f f(b,c,d,w)
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*/
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uint32_t ( * f ) ( struct md4_variables *v, unsigned int i );
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/** Constant */
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uint32_t constant;
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};
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/** MD4 steps */
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static struct md4_step md4_steps[4] = {
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/** 0 to 15 */
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{ .f = md4_f_0_15, .constant = 0x00000000UL },
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/** 16 to 31 */
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{ .f = md4_f_16_31, .constant = 0x5a827999UL },
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/** 32 to 47 */
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{ .f = md4_f_32_47, .constant = 0x6ed9eba1UL },
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};
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/**
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* Initialise MD4 algorithm
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*
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* @v ctx MD4 context
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*/
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static void md4_init ( void *ctx ) {
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struct md4_context *context = ctx;
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context->ddd.dd.digest.h[0] = cpu_to_le32 ( 0x67452301 );
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context->ddd.dd.digest.h[1] = cpu_to_le32 ( 0xefcdab89 );
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context->ddd.dd.digest.h[2] = cpu_to_le32 ( 0x98badcfe );
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context->ddd.dd.digest.h[3] = cpu_to_le32 ( 0x10325476 );
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context->len = 0;
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}
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/**
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* Calculate MD4 digest of accumulated data
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*
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* @v context MD4 context
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*/
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static void md4_digest ( struct md4_context *context ) {
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union {
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union md4_digest_data_dwords ddd;
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struct md4_variables v;
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} u;
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uint32_t *a = &u.v.a;
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uint32_t *b = &u.v.b;
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uint32_t *c = &u.v.c;
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uint32_t *d = &u.v.d;
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uint32_t *w = u.v.w;
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uint32_t f;
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uint32_t temp;
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struct md4_step *step;
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unsigned int round;
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unsigned int i;
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/* Sanity checks */
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assert ( ( context->len % sizeof ( context->ddd.dd.data ) ) == 0 );
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linker_assert ( &u.ddd.dd.digest.h[0] == a, md4_bad_layout );
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linker_assert ( &u.ddd.dd.digest.h[1] == b, md4_bad_layout );
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linker_assert ( &u.ddd.dd.digest.h[2] == c, md4_bad_layout );
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linker_assert ( &u.ddd.dd.digest.h[3] == d, md4_bad_layout );
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linker_assert ( &u.ddd.dd.data.dword[0] == w, md4_bad_layout );
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DBGC ( context, "MD4 digesting:\n" );
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DBGC_HDA ( context, 0, &context->ddd.dd.digest,
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sizeof ( context->ddd.dd.digest ) );
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DBGC_HDA ( context, context->len, &context->ddd.dd.data,
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sizeof ( context->ddd.dd.data ) );
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/* Convert h[0..3] to host-endian, and initialise a, b, c, d,
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* and x[0..15]
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*/
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for ( i = 0 ; i < ( sizeof ( u.ddd.dword ) /
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sizeof ( u.ddd.dword[0] ) ) ; i++ ) {
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le32_to_cpus ( &context->ddd.dword[i] );
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u.ddd.dword[i] = context->ddd.dword[i];
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}
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/* Main loop */
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for ( i = 0 ; i < 48 ; i++ ) {
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round = ( i / 16 );
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step = &md4_steps[round];
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f = step->f ( &u.v, ( i % 16 ) );
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temp = *d;
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*d = *c;
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*c = *b;
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*b = rol32 ( ( *a + f + step->constant ), r[round][ i % 4 ] );
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*a = temp;
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DBGC2 ( context, "%2d : %08x %08x %08x %08x\n",
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i, *a, *b, *c, *d );
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}
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/* Add chunk to hash and convert back to little-endian */
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for ( i = 0 ; i < 4 ; i++ ) {
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context->ddd.dd.digest.h[i] =
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cpu_to_le32 ( context->ddd.dd.digest.h[i] +
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u.ddd.dd.digest.h[i] );
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}
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DBGC ( context, "MD4 digested:\n" );
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DBGC_HDA ( context, 0, &context->ddd.dd.digest,
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sizeof ( context->ddd.dd.digest ) );
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}
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/**
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* Accumulate data with MD4 algorithm
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*
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* @v ctx MD4 context
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* @v data Data
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* @v len Length of data
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*/
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static void md4_update ( void *ctx, const void *data, size_t len ) {
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struct md4_context *context = ctx;
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const uint8_t *byte = data;
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size_t offset;
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/* Accumulate data a byte at a time, performing the digest
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* whenever we fill the data buffer
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*/
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while ( len-- ) {
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offset = ( context->len % sizeof ( context->ddd.dd.data ) );
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context->ddd.dd.data.byte[offset] = *(byte++);
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context->len++;
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if ( ( context->len % sizeof ( context->ddd.dd.data ) ) == 0 )
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md4_digest ( context );
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}
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}
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/**
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* Generate MD4 digest
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*
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* @v ctx MD4 context
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* @v out Output buffer
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*/
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static void md4_final ( void *ctx, void *out ) {
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struct md4_context *context = ctx;
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uint64_t len_bits;
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uint8_t pad;
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/* Record length before pre-processing */
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len_bits = cpu_to_le64 ( ( ( uint64_t ) context->len ) * 8 );
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/* Pad with a single "1" bit followed by as many "0" bits as required */
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pad = 0x80;
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do {
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md4_update ( ctx, &pad, sizeof ( pad ) );
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pad = 0x00;
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} while ( ( context->len % sizeof ( context->ddd.dd.data ) ) !=
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offsetof ( typeof ( context->ddd.dd.data ), final.len ) );
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/* Append length (in bits) */
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md4_update ( ctx, &len_bits, sizeof ( len_bits ) );
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assert ( ( context->len % sizeof ( context->ddd.dd.data ) ) == 0 );
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/* Copy out final digest */
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memcpy ( out, &context->ddd.dd.digest,
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sizeof ( context->ddd.dd.digest ) );
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}
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/** MD4 algorithm */
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struct digest_algorithm md4_algorithm = {
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.name = "md4",
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.ctxsize = sizeof ( struct md4_context ),
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.blocksize = sizeof ( union md4_block ),
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.digestsize = sizeof ( struct md4_digest ),
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.init = md4_init,
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.update = md4_update,
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.final = md4_final,
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};
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