Coverage Report

Created: 2025-12-31 06:37

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/nettle/sha256.c
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Source
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/* sha256.c
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   The sha256 hash function.
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   See http://csrc.nist.gov/publications/fips/fips180-2/fips180-2.pdf
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   Copyright (C) 2001 Niels Möller
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   This file is part of GNU Nettle.
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   GNU Nettle is free software: you can redistribute it and/or
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   modify it under the terms of either:
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     * the GNU Lesser General Public License as published by the Free
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       Software Foundation; either version 3 of the License, or (at your
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       option) any later version.
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   or
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     * the GNU General Public License as published by the Free
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       Software Foundation; either version 2 of the License, or (at your
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       option) any later version.
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   or both in parallel, as here.
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   GNU Nettle is distributed in the hope that it will be useful,
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   but WITHOUT ANY WARRANTY; without even the implied warranty of
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   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
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   General Public License for more details.
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   You should have received copies of the GNU General Public License and
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   the GNU Lesser General Public License along with this program.  If
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   not, see http://www.gnu.org/licenses/.
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*/
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/* Modelled after the sha1.c code by Peter Gutmann. */
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#if HAVE_CONFIG_H
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# include "config.h"
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#endif
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#include <assert.h>
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#include <stdlib.h>
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#include <string.h>
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#include "sha2.h"
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#include "sha2-internal.h"
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#include "macros.h"
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#include "md-internal.h"
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#include "nettle-write.h"
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/* Generated by the shadata program. */
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static const uint32_t
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K[64] =
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{
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  0x428a2f98UL, 0x71374491UL, 0xb5c0fbcfUL, 0xe9b5dba5UL, 
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  0x3956c25bUL, 0x59f111f1UL, 0x923f82a4UL, 0xab1c5ed5UL, 
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  0xd807aa98UL, 0x12835b01UL, 0x243185beUL, 0x550c7dc3UL, 
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  0x72be5d74UL, 0x80deb1feUL, 0x9bdc06a7UL, 0xc19bf174UL, 
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  0xe49b69c1UL, 0xefbe4786UL, 0x0fc19dc6UL, 0x240ca1ccUL, 
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  0x2de92c6fUL, 0x4a7484aaUL, 0x5cb0a9dcUL, 0x76f988daUL, 
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  0x983e5152UL, 0xa831c66dUL, 0xb00327c8UL, 0xbf597fc7UL, 
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  0xc6e00bf3UL, 0xd5a79147UL, 0x06ca6351UL, 0x14292967UL, 
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  0x27b70a85UL, 0x2e1b2138UL, 0x4d2c6dfcUL, 0x53380d13UL, 
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  0x650a7354UL, 0x766a0abbUL, 0x81c2c92eUL, 0x92722c85UL, 
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  0xa2bfe8a1UL, 0xa81a664bUL, 0xc24b8b70UL, 0xc76c51a3UL, 
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  0xd192e819UL, 0xd6990624UL, 0xf40e3585UL, 0x106aa070UL, 
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  0x19a4c116UL, 0x1e376c08UL, 0x2748774cUL, 0x34b0bcb5UL, 
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  0x391c0cb3UL, 0x4ed8aa4aUL, 0x5b9cca4fUL, 0x682e6ff3UL, 
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  0x748f82eeUL, 0x78a5636fUL, 0x84c87814UL, 0x8cc70208UL, 
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  0x90befffaUL, 0xa4506cebUL, 0xbef9a3f7UL, 0xc67178f2UL, 
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};
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void
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sha256_compress(uint32_t *state, const uint8_t *input)
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5.91M
{
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5.91M
  _nettle_sha256_compress_n(state, K, 1, input);
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5.91M
}
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11.8k
#define COMPRESS(ctx, data) (sha256_compress((ctx)->state, (data)))
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/* Initialize the SHA values */
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void
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sha256_init(struct sha256_ctx *ctx)
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11.3M
{
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  /* Initial values, also generated by the shadata program. */
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11.3M
  static const uint32_t H0[_SHA256_DIGEST_LENGTH] =
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11.3M
  {
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11.3M
    0x6a09e667UL, 0xbb67ae85UL, 0x3c6ef372UL, 0xa54ff53aUL, 
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11.3M
    0x510e527fUL, 0x9b05688cUL, 0x1f83d9abUL, 0x5be0cd19UL, 
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11.3M
  };
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11.3M
  memcpy(ctx->state, H0, sizeof(H0));
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  /* Initialize bit count */
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11.3M
  ctx->count = 0;
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  /* Initialize buffer */
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11.3M
  ctx->index = 0;
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11.3M
}
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void
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sha256_update(struct sha256_ctx *ctx,
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        size_t length, const uint8_t *data)
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6.24M
{
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6.24M
  size_t blocks;
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6.24M
  if (!length)
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    return;
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6.24M
  if (ctx->index > 0)
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140k
    {
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      /* Try to fill partial block */
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140k
      MD_FILL_OR_RETURN (ctx, length, data);
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13.7k
      sha256_compress (ctx->state, ctx->block);
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13.7k
      ctx->count++;
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13.7k
    }
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6.12M
  blocks = length >> 6;
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6.12M
  data = _nettle_sha256_compress_n (ctx->state, K, blocks, data);
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6.12M
  ctx->count += blocks;
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6.12M
  length &= 63;
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6.12M
  memcpy (ctx->block, data, length);
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6.12M
  ctx->index = length;
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6.12M
}
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static void
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sha256_write_digest(struct sha256_ctx *ctx,
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        size_t length,
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        uint8_t *digest)
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5.88M
{
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5.88M
  uint64_t bit_count;
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5.88M
  assert(length <= SHA256_DIGEST_SIZE);
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5.88M
  MD_PAD(ctx, 8, COMPRESS);
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  /* There are 512 = 2^9 bits in one block */  
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5.88M
  bit_count = (ctx->count << 9) | (ctx->index << 3);
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  /* This is slightly inefficient, as the numbers are converted to
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     big-endian format, and will be converted back by the compression
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     function. It's probably not worth the effort to fix this. */
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5.88M
  WRITE_UINT64(ctx->block + (SHA256_BLOCK_SIZE - 8), bit_count);
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5.88M
  sha256_compress(ctx->state, ctx->block);
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5.88M
  _nettle_write_be32(length, digest, ctx->state);
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5.88M
}
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void
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sha256_digest(struct sha256_ctx *ctx,
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        size_t length,
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        uint8_t *digest)
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5.73M
{
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5.73M
  sha256_write_digest(ctx, length, digest);
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5.73M
  sha256_init(ctx);
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5.73M
}
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/* sha224 variant. */
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void
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sha224_init(struct sha256_ctx *ctx)
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277k
{
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  /* Initial values. Low 32 bits of the initial values for sha384. */
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277k
  static const uint32_t H0[_SHA256_DIGEST_LENGTH] =
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277k
  {
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277k
    0xc1059ed8, 0x367cd507, 0x3070dd17, 0xf70e5939,
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277k
    0xffc00b31, 0x68581511, 0x64f98fa7, 0xbefa4fa4,
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277k
  };
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277k
  memcpy(ctx->state, H0, sizeof(H0));
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  /* Initialize bit count */
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277k
  ctx->count = 0;
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  /* Initialize buffer */
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277k
  ctx->index = 0;
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277k
}
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void
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sha224_digest(struct sha256_ctx *ctx,
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        size_t length,
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        uint8_t *digest)
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149k
{
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149k
  sha256_write_digest(ctx, length, digest);
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149k
  sha224_init(ctx);
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149k
}