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https://github.com/ipxe/ipxe
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4b7d9a6af0
We currently implement build-time assertions via a mechanism that generates a call to an undefined external function that will cause the link to fail unless the compiler can prove that the asserted condition is true (and thereby eliminate the undefined function call). This assertion mechanism can be used for conditions that are not amenable to the use of static_assert(), since static_assert() will not allow for proofs via dead code elimination. Add __attribute__((error(...))) to the undefined external function, so that the error is raised at compile time rather than at link time. This allows us to provide a more meaningful error message (which will include the file name and line number, as with any other compile-time error), and avoids the need for the caller to specify a unique symbol name for the external function. Change the name from linker_assert() to build_assert(), since the assertion now takes place at compile time rather than at link time. Signed-off-by: Michael Brown <mcb30@ipxe.org>
273 lines
7.8 KiB
C
273 lines
7.8 KiB
C
/*
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* Copyright (C) 2012 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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* SHA-256 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/sha256.h>
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/** SHA-256 variables */
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struct sha256_variables {
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/* This layout matches that of struct sha256_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 e;
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uint32_t f;
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uint32_t g;
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uint32_t h;
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uint32_t w[SHA256_ROUNDS];
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} __attribute__ (( packed ));
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/** SHA-256 constants */
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static const uint32_t k[SHA256_ROUNDS] = {
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0x428a2f98, 0x71374491, 0xb5c0fbcf, 0xe9b5dba5, 0x3956c25b, 0x59f111f1,
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0x923f82a4, 0xab1c5ed5, 0xd807aa98, 0x12835b01, 0x243185be, 0x550c7dc3,
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0x72be5d74, 0x80deb1fe, 0x9bdc06a7, 0xc19bf174, 0xe49b69c1, 0xefbe4786,
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0x0fc19dc6, 0x240ca1cc, 0x2de92c6f, 0x4a7484aa, 0x5cb0a9dc, 0x76f988da,
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0x983e5152, 0xa831c66d, 0xb00327c8, 0xbf597fc7, 0xc6e00bf3, 0xd5a79147,
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0x06ca6351, 0x14292967, 0x27b70a85, 0x2e1b2138, 0x4d2c6dfc, 0x53380d13,
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0x650a7354, 0x766a0abb, 0x81c2c92e, 0x92722c85, 0xa2bfe8a1, 0xa81a664b,
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0xc24b8b70, 0xc76c51a3, 0xd192e819, 0xd6990624, 0xf40e3585, 0x106aa070,
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0x19a4c116, 0x1e376c08, 0x2748774c, 0x34b0bcb5, 0x391c0cb3, 0x4ed8aa4a,
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0x5b9cca4f, 0x682e6ff3, 0x748f82ee, 0x78a5636f, 0x84c87814, 0x8cc70208,
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0x90befffa, 0xa4506ceb, 0xbef9a3f7, 0xc67178f2
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};
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/** SHA-256 initial digest values */
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static const struct sha256_digest sha256_init_digest = {
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.h = {
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cpu_to_be32 ( 0x6a09e667 ),
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cpu_to_be32 ( 0xbb67ae85 ),
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cpu_to_be32 ( 0x3c6ef372 ),
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cpu_to_be32 ( 0xa54ff53a ),
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cpu_to_be32 ( 0x510e527f ),
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cpu_to_be32 ( 0x9b05688c ),
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cpu_to_be32 ( 0x1f83d9ab ),
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cpu_to_be32 ( 0x5be0cd19 ),
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},
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};
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/**
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* Initialise SHA-256 family algorithm
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*
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* @v context SHA-256 context
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* @v init Initial digest values
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* @v digestsize Digest size
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*/
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void sha256_family_init ( struct sha256_context *context,
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const struct sha256_digest *init,
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size_t digestsize ) {
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context->len = 0;
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context->digestsize = digestsize;
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memcpy ( &context->ddd.dd.digest, init,
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sizeof ( context->ddd.dd.digest ) );
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}
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/**
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* Initialise SHA-256 algorithm
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*
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* @v ctx SHA-256 context
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*/
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static void sha256_init ( void *ctx ) {
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struct sha256_context *context = ctx;
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sha256_family_init ( context, &sha256_init_digest,
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sizeof ( struct sha256_digest ) );
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}
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/**
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* Calculate SHA-256 digest of accumulated data
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*
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* @v context SHA-256 context
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*/
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static void sha256_digest ( struct sha256_context *context ) {
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union {
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union sha256_digest_data_dwords ddd;
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struct sha256_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 *e = &u.v.e;
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uint32_t *f = &u.v.f;
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uint32_t *g = &u.v.g;
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uint32_t *h = &u.v.h;
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uint32_t *w = u.v.w;
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uint32_t s0;
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uint32_t s1;
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uint32_t maj;
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uint32_t t1;
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uint32_t t2;
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uint32_t ch;
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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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build_assert ( &u.ddd.dd.digest.h[0] == a );
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build_assert ( &u.ddd.dd.digest.h[1] == b );
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build_assert ( &u.ddd.dd.digest.h[2] == c );
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build_assert ( &u.ddd.dd.digest.h[3] == d );
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build_assert ( &u.ddd.dd.digest.h[4] == e );
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build_assert ( &u.ddd.dd.digest.h[5] == f );
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build_assert ( &u.ddd.dd.digest.h[6] == g );
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build_assert ( &u.ddd.dd.digest.h[7] == h );
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build_assert ( &u.ddd.dd.data.dword[0] == w );
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DBGC ( context, "SHA256 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..7] to host-endian, and initialise a, b, c, d,
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* e, f, g, h, and w[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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be32_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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/* Initialise w[16..63] */
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for ( i = 16 ; i < SHA256_ROUNDS ; i++ ) {
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s0 = ( ror32 ( w[i-15], 7 ) ^ ror32 ( w[i-15], 18 ) ^
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( w[i-15] >> 3 ) );
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s1 = ( ror32 ( w[i-2], 17 ) ^ ror32 ( w[i-2], 19 ) ^
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( w[i-2] >> 10 ) );
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w[i] = ( w[i-16] + s0 + w[i-7] + s1 );
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}
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/* Main loop */
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for ( i = 0 ; i < SHA256_ROUNDS ; i++ ) {
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s0 = ( ror32 ( *a, 2 ) ^ ror32 ( *a, 13 ) ^ ror32 ( *a, 22 ) );
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maj = ( ( *a & *b ) ^ ( *a & *c ) ^ ( *b & *c ) );
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t2 = ( s0 + maj );
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s1 = ( ror32 ( *e, 6 ) ^ ror32 ( *e, 11 ) ^ ror32 ( *e, 25 ) );
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ch = ( ( *e & *f ) ^ ( (~*e) & *g ) );
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t1 = ( *h + s1 + ch + k[i] + w[i] );
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*h = *g;
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*g = *f;
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*f = *e;
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*e = ( *d + t1 );
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*d = *c;
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*c = *b;
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*b = *a;
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*a = ( t1 + t2 );
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DBGC2 ( context, "%2d : %08x %08x %08x %08x %08x %08x %08x "
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"%08x\n", i, *a, *b, *c, *d, *e, *f, *g, *h );
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}
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/* Add chunk to hash and convert back to big-endian */
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for ( i = 0 ; i < 8 ; i++ ) {
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context->ddd.dd.digest.h[i] =
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cpu_to_be32 ( 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, "SHA256 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 SHA-256 algorithm
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*
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* @v ctx SHA-256 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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void sha256_update ( void *ctx, const void *data, size_t len ) {
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struct sha256_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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sha256_digest ( context );
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}
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}
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/**
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* Generate SHA-256 digest
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*
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* @v ctx SHA-256 context
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* @v out Output buffer
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*/
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void sha256_final ( void *ctx, void *out ) {
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struct sha256_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_be64 ( ( ( 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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sha256_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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sha256_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, context->digestsize );
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}
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/** SHA-256 algorithm */
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struct digest_algorithm sha256_algorithm = {
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.name = "sha256",
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.ctxsize = sizeof ( struct sha256_context ),
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.blocksize = sizeof ( union sha256_block ),
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.digestsize = sizeof ( struct sha256_digest ),
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.init = sha256_init,
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.update = sha256_update,
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.final = sha256_final,
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};
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