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567 lines
18 KiB
C
567 lines
18 KiB
C
/* sha512.c - Functions to compute SHA512 and SHA384 message digest of files or
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memory blocks according to the NIST specification FIPS-180-2.
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Copyright (C) 2005 Free Software Foundation, Inc.
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This program is free software; you can redistribute it and/or modify it
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under the terms of the GNU General Public License as published by the
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Free Software Foundation; either version 2, or (at your option) any
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later version.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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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 Foundation,
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Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301, USA. */
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/* Written by David Madore, considerably copypasting from
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Scott G. Miller's sha1.c
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*/
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#ifdef HAVE_CONFIG_H
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# include <config.h>
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#endif
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#include "sha512.h"
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#include <stddef.h>
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#include <string.h>
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#if USE_UNLOCKED_IO
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# include "unlocked-io.h"
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#endif
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/*
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Not-swap is a macro that does an endian swap on architectures that are
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big-endian, as SHA512 needs some data in a little-endian format
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*/
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#ifdef WORDS_BIGENDIAN
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# define NOTSWAP(n) (n)
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#else
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# define NOTSWAP(n) \
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(((n) << 56) | (((n) & 0xff00) << 40) | (((n) & 0xff0000UL) << 24) \
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| (((n) & 0xff000000UL) << 8) | (((n) >> 8) & 0xff000000UL) \
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| (((n) >> 24) & 0xff0000UL) | (((n) >> 40) & 0xff00UL) | ((n) >> 56))
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#endif
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#define BLOCKSIZE 4096
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/* Ensure that BLOCKSIZE is a multiple of 128. */
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#if BLOCKSIZE % 128 != 0
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# error "invalid BLOCKSIZE"
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#endif
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/* This array contains the bytes used to pad the buffer to the next
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64-byte boundary. */
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static const unsigned char fillbuf[128] = { 0x80, 0 /* , 0, 0, ... */ };
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/*
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Takes a pointer to a 512 bit block of data (eight 64 bit ints) and
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intializes it to the start constants of the SHA512 algorithm. This
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must be called before using hash in the call to sha512_hash
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*/
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void
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sha512_init_ctx (struct sha512_ctx *ctx)
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{
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ctx->state[0] = 0x6a09e667f3bcc908ULL;
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ctx->state[1] = 0xbb67ae8584caa73bULL;
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ctx->state[2] = 0x3c6ef372fe94f82bULL;
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ctx->state[3] = 0xa54ff53a5f1d36f1ULL;
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ctx->state[4] = 0x510e527fade682d1ULL;
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ctx->state[5] = 0x9b05688c2b3e6c1fULL;
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ctx->state[6] = 0x1f83d9abfb41bd6bULL;
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ctx->state[7] = 0x5be0cd19137e2179ULL;
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ctx->total[0] = ctx->total[1] = 0;
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ctx->buflen = 0;
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}
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void
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sha384_init_ctx (struct sha512_ctx *ctx)
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{
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ctx->state[0] = 0xcbbb9d5dc1059ed8ULL;
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ctx->state[1] = 0x629a292a367cd507ULL;
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ctx->state[2] = 0x9159015a3070dd17ULL;
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ctx->state[3] = 0x152fecd8f70e5939ULL;
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ctx->state[4] = 0x67332667ffc00b31ULL;
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ctx->state[5] = 0x8eb44a8768581511ULL;
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ctx->state[6] = 0xdb0c2e0d64f98fa7ULL;
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ctx->state[7] = 0x47b5481dbefa4fa4ULL;
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ctx->total[0] = ctx->total[1] = 0;
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ctx->buflen = 0;
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}
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/* Put result from CTX in first 64 bytes following RESBUF. The result
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must be in little endian byte order.
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IMPORTANT: On some systems it is required that RESBUF is correctly
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aligned for a 64-bit value. */
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void *
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sha512_read_ctx (const struct sha512_ctx *ctx, void *resbuf)
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{
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int i;
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for ( i=0 ; i<8 ; i++ )
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((sha512_uint64 *) resbuf)[i] = NOTSWAP (ctx->state[i]);
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return resbuf;
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}
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void *
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sha384_read_ctx (const struct sha512_ctx *ctx, void *resbuf)
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{
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int i;
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for ( i=0 ; i<6 ; i++ )
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((sha512_uint64 *) resbuf)[i] = NOTSWAP (ctx->state[i]);
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return resbuf;
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}
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/* Process the remaining bytes in the internal buffer and the usual
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prolog according to the standard and write the result to RESBUF.
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IMPORTANT: On some systems it is required that RESBUF is correctly
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aligned for a 64-bit value. */
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static void
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sha512_conclude_ctx (struct sha512_ctx *ctx)
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{
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/* Take yet unprocessed bytes into account. */
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sha512_uint64 bytes = ctx->buflen;
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size_t pad;
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/* Now count remaining bytes. */
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ctx->total[0] += bytes;
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if (ctx->total[0] < bytes)
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++ctx->total[1];
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pad = bytes >= 112 ? 128 + 112 - bytes : 112 - bytes;
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memcpy (&ctx->buffer[bytes], fillbuf, pad);
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/* Put the 64-bit file length in *bits* at the end of the buffer. */
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*(sha512_uint64 *) &ctx->buffer[bytes + pad + 8] = NOTSWAP (ctx->total[0] << 3);
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*(sha512_uint64 *) &ctx->buffer[bytes + pad] = NOTSWAP ((ctx->total[1] << 3) |
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(ctx->total[0] >> 61));
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/* Process last bytes. */
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sha512_process_block (ctx->buffer, bytes + pad + 16, ctx);
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}
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void *
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sha512_finish_ctx (struct sha512_ctx *ctx, void *resbuf)
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{
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sha512_conclude_ctx (ctx);
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return sha512_read_ctx (ctx, resbuf);
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}
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void *
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sha384_finish_ctx (struct sha512_ctx *ctx, void *resbuf)
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{
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sha512_conclude_ctx (ctx);
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return sha384_read_ctx (ctx, resbuf);
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}
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/* Compute SHA512 message digest for bytes read from STREAM. The
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resulting message digest number will be written into the 64 bytes
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beginning at RESBLOCK. */
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int
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sha512_stream (FILE *stream, void *resblock)
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{
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struct sha512_ctx ctx;
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char buffer[BLOCKSIZE + 72];
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size_t sum;
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/* Initialize the computation context. */
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sha512_init_ctx (&ctx);
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/* Iterate over full file contents. */
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while (1)
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{
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/* We read the file in blocks of BLOCKSIZE bytes. One call of the
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computation function processes the whole buffer so that with the
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next round of the loop another block can be read. */
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size_t n;
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sum = 0;
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/* Read block. Take care for partial reads. */
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while (1)
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{
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n = fread (buffer + sum, 1, BLOCKSIZE - sum, stream);
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sum += n;
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if (sum == BLOCKSIZE)
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break;
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if (n == 0)
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{
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/* Check for the error flag IFF N == 0, so that we don't
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exit the loop after a partial read due to e.g., EAGAIN
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or EWOULDBLOCK. */
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if (ferror (stream))
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return 1;
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goto process_partial_block;
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}
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/* We've read at least one byte, so ignore errors. But always
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check for EOF, since feof may be true even though N > 0.
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Otherwise, we could end up calling fread after EOF. */
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if (feof (stream))
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goto process_partial_block;
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}
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/* Process buffer with BLOCKSIZE bytes. Note that
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BLOCKSIZE % 128 == 0
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*/
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sha512_process_block (buffer, BLOCKSIZE, &ctx);
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}
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process_partial_block:;
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/* Process any remaining bytes. */
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if (sum > 0)
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sha512_process_bytes (buffer, sum, &ctx);
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/* Construct result in desired memory. */
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sha512_finish_ctx (&ctx, resblock);
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return 0;
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}
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/* FIXME: Avoid code duplication */
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int
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sha384_stream (FILE *stream, void *resblock)
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{
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struct sha512_ctx ctx;
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char buffer[BLOCKSIZE + 72];
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size_t sum;
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/* Initialize the computation context. */
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sha384_init_ctx (&ctx);
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/* Iterate over full file contents. */
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while (1)
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{
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/* We read the file in blocks of BLOCKSIZE bytes. One call of the
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computation function processes the whole buffer so that with the
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next round of the loop another block can be read. */
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size_t n;
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sum = 0;
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/* Read block. Take care for partial reads. */
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while (1)
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{
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n = fread (buffer + sum, 1, BLOCKSIZE - sum, stream);
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sum += n;
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if (sum == BLOCKSIZE)
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break;
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if (n == 0)
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{
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/* Check for the error flag IFF N == 0, so that we don't
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exit the loop after a partial read due to e.g., EAGAIN
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or EWOULDBLOCK. */
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if (ferror (stream))
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return 1;
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goto process_partial_block;
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}
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/* We've read at least one byte, so ignore errors. But always
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check for EOF, since feof may be true even though N > 0.
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Otherwise, we could end up calling fread after EOF. */
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if (feof (stream))
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goto process_partial_block;
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}
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/* Process buffer with BLOCKSIZE bytes. Note that
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BLOCKSIZE % 128 == 0
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*/
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sha512_process_block (buffer, BLOCKSIZE, &ctx);
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}
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process_partial_block:;
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/* Process any remaining bytes. */
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if (sum > 0)
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sha512_process_bytes (buffer, sum, &ctx);
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/* Construct result in desired memory. */
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sha384_finish_ctx (&ctx, resblock);
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return 0;
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}
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/* Compute SHA512 message digest for LEN bytes beginning at BUFFER. The
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result is always in little endian byte order, so that a byte-wise
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output yields to the wanted ASCII representation of the message
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digest. */
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void *
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sha512_buffer (const char *buffer, size_t len, void *resblock)
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{
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struct sha512_ctx ctx;
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/* Initialize the computation context. */
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sha512_init_ctx (&ctx);
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/* Process whole buffer but last len % 128 bytes. */
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sha512_process_bytes (buffer, len, &ctx);
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/* Put result in desired memory area. */
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return sha512_finish_ctx (&ctx, resblock);
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}
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void *
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sha384_buffer (const char *buffer, size_t len, void *resblock)
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{
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struct sha512_ctx ctx;
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/* Initialize the computation context. */
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sha384_init_ctx (&ctx);
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/* Process whole buffer but last len % 128 bytes. */
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sha512_process_bytes (buffer, len, &ctx);
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/* Put result in desired memory area. */
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return sha384_finish_ctx (&ctx, resblock);
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}
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void
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sha512_process_bytes (const void *buffer, size_t len, struct sha512_ctx *ctx)
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{
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/* When we already have some bits in our internal buffer concatenate
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both inputs first. */
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if (ctx->buflen != 0)
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{
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size_t left_over = ctx->buflen;
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size_t add = 256 - left_over > len ? len : 256 - left_over;
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memcpy (&ctx->buffer[left_over], buffer, add);
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ctx->buflen += add;
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if (ctx->buflen > 128)
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{
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sha512_process_block (ctx->buffer, ctx->buflen & ~63, ctx);
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ctx->buflen &= 127;
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/* The regions in the following copy operation cannot overlap. */
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memcpy (ctx->buffer, &ctx->buffer[(left_over + add) & ~127],
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ctx->buflen);
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}
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buffer = (const char *) buffer + add;
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len -= add;
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}
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/* Process available complete blocks. */
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if (len >= 128)
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{
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#if !_STRING_ARCH_unaligned
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# define alignof(type) offsetof (struct { char c; type x; }, x)
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# define UNALIGNED_P(p) (((size_t) p) % alignof (sha512_uint64) != 0)
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if (UNALIGNED_P (buffer))
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while (len > 128)
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{
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sha512_process_block (memcpy (ctx->buffer, buffer, 128), 128, ctx);
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buffer = (const char *) buffer + 128;
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len -= 128;
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}
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else
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#endif
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{
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sha512_process_block (buffer, len & ~127, ctx);
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buffer = (const char *) buffer + (len & ~127);
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len &= 127;
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}
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}
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/* Move remaining bytes in internal buffer. */
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if (len > 0)
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{
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size_t left_over = ctx->buflen;
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memcpy (&ctx->buffer[left_over], buffer, len);
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left_over += len;
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if (left_over >= 128)
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{
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sha512_process_block (ctx->buffer, 128, ctx);
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left_over -= 128;
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memcpy (ctx->buffer, &ctx->buffer[128], left_over);
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}
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ctx->buflen = left_over;
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}
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}
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/* --- Code below is the primary difference between sha1.c and sha512.c --- */
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/* SHA512 round constants */
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#define K(I) sha512_round_constants[I]
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static const sha512_uint64 sha512_round_constants[80] = {
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0x428a2f98d728ae22ULL, 0x7137449123ef65cdULL, 0xb5c0fbcfec4d3b2fULL, 0xe9b5dba58189dbbcULL, 0x3956c25bf348b538ULL, 0x59f111f1b605d019ULL, 0x923f82a4af194f9bULL, 0xab1c5ed5da6d8118ULL,
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0xd807aa98a3030242ULL, 0x12835b0145706fbeULL, 0x243185be4ee4b28cULL, 0x550c7dc3d5ffb4e2ULL, 0x72be5d74f27b896fULL, 0x80deb1fe3b1696b1ULL, 0x9bdc06a725c71235ULL, 0xc19bf174cf692694ULL,
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0xe49b69c19ef14ad2ULL, 0xefbe4786384f25e3ULL, 0x0fc19dc68b8cd5b5ULL, 0x240ca1cc77ac9c65ULL, 0x2de92c6f592b0275ULL, 0x4a7484aa6ea6e483ULL, 0x5cb0a9dcbd41fbd4ULL, 0x76f988da831153b5ULL,
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0x983e5152ee66dfabULL, 0xa831c66d2db43210ULL, 0xb00327c898fb213fULL, 0xbf597fc7beef0ee4ULL, 0xc6e00bf33da88fc2ULL, 0xd5a79147930aa725ULL, 0x06ca6351e003826fULL, 0x142929670a0e6e70ULL,
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0x27b70a8546d22ffcULL, 0x2e1b21385c26c926ULL, 0x4d2c6dfc5ac42aedULL, 0x53380d139d95b3dfULL, 0x650a73548baf63deULL, 0x766a0abb3c77b2a8ULL, 0x81c2c92e47edaee6ULL, 0x92722c851482353bULL,
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0xa2bfe8a14cf10364ULL, 0xa81a664bbc423001ULL, 0xc24b8b70d0f89791ULL, 0xc76c51a30654be30ULL, 0xd192e819d6ef5218ULL, 0xd69906245565a910ULL, 0xf40e35855771202aULL, 0x106aa07032bbd1b8ULL,
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0x19a4c116b8d2d0c8ULL, 0x1e376c085141ab53ULL, 0x2748774cdf8eeb99ULL, 0x34b0bcb5e19b48a8ULL, 0x391c0cb3c5c95a63ULL, 0x4ed8aa4ae3418acbULL, 0x5b9cca4f7763e373ULL, 0x682e6ff3d6b2b8a3ULL,
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0x748f82ee5defb2fcULL, 0x78a5636f43172f60ULL, 0x84c87814a1f0ab72ULL, 0x8cc702081a6439ecULL, 0x90befffa23631e28ULL, 0xa4506cebde82bde9ULL, 0xbef9a3f7b2c67915ULL, 0xc67178f2e372532bULL,
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0xca273eceea26619cULL, 0xd186b8c721c0c207ULL, 0xeada7dd6cde0eb1eULL, 0xf57d4f7fee6ed178ULL, 0x06f067aa72176fbaULL, 0x0a637dc5a2c898a6ULL, 0x113f9804bef90daeULL, 0x1b710b35131c471bULL,
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0x28db77f523047d84ULL, 0x32caab7b40c72493ULL, 0x3c9ebe0a15c9bebcULL, 0x431d67c49c100d4cULL, 0x4cc5d4becb3e42b6ULL, 0x597f299cfc657e2aULL, 0x5fcb6fab3ad6faecULL, 0x6c44198c4a475817ULL,
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};
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/* Round functions. */
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#define F2(A,B,C) ( ( A & B ) | ( C & ( A | B ) ) )
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#define F1(E,F,G) ( G ^ ( E & ( F ^ G ) ) )
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/* Process LEN bytes of BUFFER, accumulating context into CTX.
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It is assumed that LEN % 128 == 0.
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Most of this code comes from GnuPG's cipher/sha1.c. */
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void
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sha512_process_block (const void *buffer, size_t len, struct sha512_ctx *ctx)
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{
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const sha512_uint64 *words = buffer;
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size_t nwords = len / sizeof (sha512_uint64);
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const sha512_uint64 *endp = words + nwords;
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sha512_uint64 x[16];
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sha512_uint64 a = ctx->state[0];
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sha512_uint64 b = ctx->state[1];
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sha512_uint64 c = ctx->state[2];
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sha512_uint64 d = ctx->state[3];
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sha512_uint64 e = ctx->state[4];
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sha512_uint64 f = ctx->state[5];
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sha512_uint64 g = ctx->state[6];
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sha512_uint64 h = ctx->state[7];
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/* First increment the byte count. FIPS PUB 180-2 specifies the possible
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length of the file up to 2^128 bits. Here we only compute the
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number of bytes. Do a double word increment. */
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ctx->total[0] += len;
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if (ctx->total[0] < len)
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++ctx->total[1];
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#define S0(x) (rol64(x,63)^rol64(x,56)^(x>>7))
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#define S1(x) (rol64(x,45)^rol64(x,3)^(x>>6))
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#define SS0(x) (rol64(x,36)^rol64(x,30)^rol64(x,25))
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#define SS1(x) (rol64(x,50)^rol64(x,46)^rol64(x,23))
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#define M(I) ( tm = S1(x[(I-2)&0x0f]) + x[(I-7)&0x0f] \
|
|
+ S0(x[(I-15)&0x0f]) + x[I&0x0f] \
|
|
, x[I&0x0f] = tm )
|
|
|
|
#define R(A,B,C,D,E,F,G,H,K,M) do { t0 = SS0(A) + F2(A,B,C); \
|
|
t1 = H + SS1(E) \
|
|
+ F1(E,F,G) \
|
|
+ K \
|
|
+ M; \
|
|
D += t1; H = t0 + t1; \
|
|
} while(0)
|
|
|
|
while (words < endp)
|
|
{
|
|
sha512_uint64 tm;
|
|
sha512_uint64 t0, t1;
|
|
int t;
|
|
/* FIXME: see sha1.c for a better implementation. */
|
|
for (t = 0; t < 16; t++)
|
|
{
|
|
x[t] = NOTSWAP (*words);
|
|
words++;
|
|
}
|
|
|
|
R( a, b, c, d, e, f, g, h, K( 0), x[ 0] );
|
|
R( h, a, b, c, d, e, f, g, K( 1), x[ 1] );
|
|
R( g, h, a, b, c, d, e, f, K( 2), x[ 2] );
|
|
R( f, g, h, a, b, c, d, e, K( 3), x[ 3] );
|
|
R( e, f, g, h, a, b, c, d, K( 4), x[ 4] );
|
|
R( d, e, f, g, h, a, b, c, K( 5), x[ 5] );
|
|
R( c, d, e, f, g, h, a, b, K( 6), x[ 6] );
|
|
R( b, c, d, e, f, g, h, a, K( 7), x[ 7] );
|
|
R( a, b, c, d, e, f, g, h, K( 8), x[ 8] );
|
|
R( h, a, b, c, d, e, f, g, K( 9), x[ 9] );
|
|
R( g, h, a, b, c, d, e, f, K(10), x[10] );
|
|
R( f, g, h, a, b, c, d, e, K(11), x[11] );
|
|
R( e, f, g, h, a, b, c, d, K(12), x[12] );
|
|
R( d, e, f, g, h, a, b, c, K(13), x[13] );
|
|
R( c, d, e, f, g, h, a, b, K(14), x[14] );
|
|
R( b, c, d, e, f, g, h, a, K(15), x[15] );
|
|
R( a, b, c, d, e, f, g, h, K(16), M(16) );
|
|
R( h, a, b, c, d, e, f, g, K(17), M(17) );
|
|
R( g, h, a, b, c, d, e, f, K(18), M(18) );
|
|
R( f, g, h, a, b, c, d, e, K(19), M(19) );
|
|
R( e, f, g, h, a, b, c, d, K(20), M(20) );
|
|
R( d, e, f, g, h, a, b, c, K(21), M(21) );
|
|
R( c, d, e, f, g, h, a, b, K(22), M(22) );
|
|
R( b, c, d, e, f, g, h, a, K(23), M(23) );
|
|
R( a, b, c, d, e, f, g, h, K(24), M(24) );
|
|
R( h, a, b, c, d, e, f, g, K(25), M(25) );
|
|
R( g, h, a, b, c, d, e, f, K(26), M(26) );
|
|
R( f, g, h, a, b, c, d, e, K(27), M(27) );
|
|
R( e, f, g, h, a, b, c, d, K(28), M(28) );
|
|
R( d, e, f, g, h, a, b, c, K(29), M(29) );
|
|
R( c, d, e, f, g, h, a, b, K(30), M(30) );
|
|
R( b, c, d, e, f, g, h, a, K(31), M(31) );
|
|
R( a, b, c, d, e, f, g, h, K(32), M(32) );
|
|
R( h, a, b, c, d, e, f, g, K(33), M(33) );
|
|
R( g, h, a, b, c, d, e, f, K(34), M(34) );
|
|
R( f, g, h, a, b, c, d, e, K(35), M(35) );
|
|
R( e, f, g, h, a, b, c, d, K(36), M(36) );
|
|
R( d, e, f, g, h, a, b, c, K(37), M(37) );
|
|
R( c, d, e, f, g, h, a, b, K(38), M(38) );
|
|
R( b, c, d, e, f, g, h, a, K(39), M(39) );
|
|
R( a, b, c, d, e, f, g, h, K(40), M(40) );
|
|
R( h, a, b, c, d, e, f, g, K(41), M(41) );
|
|
R( g, h, a, b, c, d, e, f, K(42), M(42) );
|
|
R( f, g, h, a, b, c, d, e, K(43), M(43) );
|
|
R( e, f, g, h, a, b, c, d, K(44), M(44) );
|
|
R( d, e, f, g, h, a, b, c, K(45), M(45) );
|
|
R( c, d, e, f, g, h, a, b, K(46), M(46) );
|
|
R( b, c, d, e, f, g, h, a, K(47), M(47) );
|
|
R( a, b, c, d, e, f, g, h, K(48), M(48) );
|
|
R( h, a, b, c, d, e, f, g, K(49), M(49) );
|
|
R( g, h, a, b, c, d, e, f, K(50), M(50) );
|
|
R( f, g, h, a, b, c, d, e, K(51), M(51) );
|
|
R( e, f, g, h, a, b, c, d, K(52), M(52) );
|
|
R( d, e, f, g, h, a, b, c, K(53), M(53) );
|
|
R( c, d, e, f, g, h, a, b, K(54), M(54) );
|
|
R( b, c, d, e, f, g, h, a, K(55), M(55) );
|
|
R( a, b, c, d, e, f, g, h, K(56), M(56) );
|
|
R( h, a, b, c, d, e, f, g, K(57), M(57) );
|
|
R( g, h, a, b, c, d, e, f, K(58), M(58) );
|
|
R( f, g, h, a, b, c, d, e, K(59), M(59) );
|
|
R( e, f, g, h, a, b, c, d, K(60), M(60) );
|
|
R( d, e, f, g, h, a, b, c, K(61), M(61) );
|
|
R( c, d, e, f, g, h, a, b, K(62), M(62) );
|
|
R( b, c, d, e, f, g, h, a, K(63), M(63) );
|
|
R( a, b, c, d, e, f, g, h, K(64), M(64) );
|
|
R( h, a, b, c, d, e, f, g, K(65), M(65) );
|
|
R( g, h, a, b, c, d, e, f, K(66), M(66) );
|
|
R( f, g, h, a, b, c, d, e, K(67), M(67) );
|
|
R( e, f, g, h, a, b, c, d, K(68), M(68) );
|
|
R( d, e, f, g, h, a, b, c, K(69), M(69) );
|
|
R( c, d, e, f, g, h, a, b, K(70), M(70) );
|
|
R( b, c, d, e, f, g, h, a, K(71), M(71) );
|
|
R( a, b, c, d, e, f, g, h, K(72), M(72) );
|
|
R( h, a, b, c, d, e, f, g, K(73), M(73) );
|
|
R( g, h, a, b, c, d, e, f, K(74), M(74) );
|
|
R( f, g, h, a, b, c, d, e, K(75), M(75) );
|
|
R( e, f, g, h, a, b, c, d, K(76), M(76) );
|
|
R( d, e, f, g, h, a, b, c, K(77), M(77) );
|
|
R( c, d, e, f, g, h, a, b, K(78), M(78) );
|
|
R( b, c, d, e, f, g, h, a, K(79), M(79) );
|
|
|
|
a = ctx->state[0] += a;
|
|
b = ctx->state[1] += b;
|
|
c = ctx->state[2] += c;
|
|
d = ctx->state[3] += d;
|
|
e = ctx->state[4] += e;
|
|
f = ctx->state[5] += f;
|
|
g = ctx->state[6] += g;
|
|
h = ctx->state[7] += h;
|
|
}
|
|
}
|