| Index: tests/standalone/io/hash_utils.dart
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| diff --git a/tests/standalone/io/hash_utils.dart b/tests/standalone/io/hash_utils.dart
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| new file mode 100644
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| index 0000000000000000000000000000000000000000..8c87a215d6d6707b32f2d8f3af09ad662bee3e13
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| --- /dev/null
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| +++ b/tests/standalone/io/hash_utils.dart
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| @@ -0,0 +1,217 @@
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| +// Copyright (c) 2012, the Dart project authors.  Please see the AUTHORS file
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| +// for details. All rights reserved. Use of this source code is governed by a
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| +// BSD-style license that can be found in the LICENSE file.
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| +
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| +/// Hash routines copied from private helpers in dart:io.
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| +library hashes;
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| +
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| +// Constants.
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| +const _MASK_8 = 0xff;
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| +const _MASK_32 = 0xffffffff;
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| +const _BITS_PER_BYTE = 8;
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| +const _BYTES_PER_WORD = 4;
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| +const _pow2_32 = 0x100000000;
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| +
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| +// Base class encapsulating common behavior for cryptographic hash
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| +// functions.
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| +abstract class _HashBase {
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| +  // Hasher state.
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| +  final int _chunkSizeInWords;
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| +  final int _digestSizeInWords;
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| +  final bool _bigEndianWords;
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| +  int _lengthInBytes = 0;
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| +  List<int> _pendingData;
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| +  List<int> _currentChunk;
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| +  List<int> _h;
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| +  bool _digestCalled = false;
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| +
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| +  _HashBase(
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| +      this._chunkSizeInWords, this._digestSizeInWords, this._bigEndianWords)
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| +      : _pendingData = [] {
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| +    _currentChunk = new List(_chunkSizeInWords);
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| +    _h = new List(_digestSizeInWords);
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| +  }
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| +
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| +  // Update the hasher with more data.
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| +  add(List<int> data) {
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| +    if (_digestCalled) {
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| +      throw new StateError(
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| +          'Hash update method called after digest was retrieved');
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| +    }
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| +    _lengthInBytes += data.length;
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| +    _pendingData.addAll(data);
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| +    _iterate();
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| +  }
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| +
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| +  // Finish the hash computation and return the digest string.
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| +  List<int> close() {
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| +    if (_digestCalled) {
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| +      return _resultAsBytes();
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| +    }
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| +    _digestCalled = true;
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| +    _finalizeData();
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| +    _iterate();
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| +    assert(_pendingData.length == 0);
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| +    return _resultAsBytes();
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| +  }
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| +
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| +  // Returns the block size of the hash in bytes.
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| +  int get blockSize {
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| +    return _chunkSizeInWords * _BYTES_PER_WORD;
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| +  }
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| +
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| +  // Create a fresh instance of this Hash.
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| +  newInstance();
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| +
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| +  // One round of the hash computation.
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| +  _updateHash(List<int> m);
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| +
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| +  // Helper methods.
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| +  _add32(x, y) => (x + y) & _MASK_32;
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| +  _roundUp(val, n) => (val + n - 1) & -n;
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| +
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| +  // Rotate left limiting to unsigned 32-bit values.
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| +  int _rotl32(int val, int shift) {
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| +    var mod_shift = shift & 31;
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| +    return ((val << mod_shift) & _MASK_32) |
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| +        ((val & _MASK_32) >> (32 - mod_shift));
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| +  }
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| +
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| +  // Compute the final result as a list of bytes from the hash words.
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| +  List<int> _resultAsBytes() {
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| +    var result = <int>[];
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| +    for (var i = 0; i < _h.length; i++) {
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| +      result.addAll(_wordToBytes(_h[i]));
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| +    }
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| +    return result;
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| +  }
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| +
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| +  // Converts a list of bytes to a chunk of 32-bit words.
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| +  _bytesToChunk(List<int> data, int dataIndex) {
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| +    assert((data.length - dataIndex) >= (_chunkSizeInWords * _BYTES_PER_WORD));
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| +
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| +    for (var wordIndex = 0; wordIndex < _chunkSizeInWords; wordIndex++) {
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| +      var w3 = _bigEndianWords ? data[dataIndex] : data[dataIndex + 3];
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| +      var w2 = _bigEndianWords ? data[dataIndex + 1] : data[dataIndex + 2];
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| +      var w1 = _bigEndianWords ? data[dataIndex + 2] : data[dataIndex + 1];
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| +      var w0 = _bigEndianWords ? data[dataIndex + 3] : data[dataIndex];
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| +      dataIndex += 4;
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| +      var word = (w3 & 0xff) << 24;
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| +      word |= (w2 & _MASK_8) << 16;
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| +      word |= (w1 & _MASK_8) << 8;
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| +      word |= (w0 & _MASK_8);
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| +      _currentChunk[wordIndex] = word;
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| +    }
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| +  }
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| +
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| +  // Convert a 32-bit word to four bytes.
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| +  List<int> _wordToBytes(int word) {
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| +    List<int> bytes = new List(_BYTES_PER_WORD);
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| +    bytes[0] = (word >> (_bigEndianWords ? 24 : 0)) & _MASK_8;
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| +    bytes[1] = (word >> (_bigEndianWords ? 16 : 8)) & _MASK_8;
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| +    bytes[2] = (word >> (_bigEndianWords ? 8 : 16)) & _MASK_8;
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| +    bytes[3] = (word >> (_bigEndianWords ? 0 : 24)) & _MASK_8;
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| +    return bytes;
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| +  }
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| +
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| +  // Iterate through data updating the hash computation for each
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| +  // chunk.
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| +  _iterate() {
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| +    var len = _pendingData.length;
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| +    var chunkSizeInBytes = _chunkSizeInWords * _BYTES_PER_WORD;
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| +    if (len >= chunkSizeInBytes) {
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| +      var index = 0;
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| +      for (; (len - index) >= chunkSizeInBytes; index += chunkSizeInBytes) {
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| +        _bytesToChunk(_pendingData, index);
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| +        _updateHash(_currentChunk);
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| +      }
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| +      _pendingData = _pendingData.sublist(index, len);
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| +    }
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| +  }
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| +
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| +  // Finalize the data. Add a 1 bit to the end of the message. Expand with
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| +  // 0 bits and add the length of the message.
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| +  _finalizeData() {
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| +    _pendingData.add(0x80);
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| +    var contentsLength = _lengthInBytes + 9;
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| +    var chunkSizeInBytes = _chunkSizeInWords * _BYTES_PER_WORD;
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| +    var finalizedLength = _roundUp(contentsLength, chunkSizeInBytes);
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| +    var zeroPadding = finalizedLength - contentsLength;
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| +    for (var i = 0; i < zeroPadding; i++) {
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| +      _pendingData.add(0);
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| +    }
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| +    var lengthInBits = _lengthInBytes * _BITS_PER_BYTE;
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| +    assert(lengthInBits < _pow2_32);
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| +    if (_bigEndianWords) {
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| +      _pendingData.addAll(_wordToBytes(0));
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| +      _pendingData.addAll(_wordToBytes(lengthInBits & _MASK_32));
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| +    } else {
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| +      _pendingData.addAll(_wordToBytes(lengthInBits & _MASK_32));
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| +      _pendingData.addAll(_wordToBytes(0));
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| +    }
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| +  }
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| +}
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| +
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| +// The SHA1 hasher is used to compute an SHA1 message digest.
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| +class SHA1 extends _HashBase {
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| +  // Construct a SHA1 hasher object.
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| +  SHA1()
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| +      : _w = new List(80),
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| +        super(16, 5, true) {
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| +    _h[0] = 0x67452301;
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| +    _h[1] = 0xEFCDAB89;
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| +    _h[2] = 0x98BADCFE;
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| +    _h[3] = 0x10325476;
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| +    _h[4] = 0xC3D2E1F0;
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| +  }
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| +
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| +  // Returns a new instance of this Hash.
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| +  SHA1 newInstance() {
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| +    return new SHA1();
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| +  }
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| +
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| +  // Compute one iteration of the SHA1 algorithm with a chunk of
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| +  // 16 32-bit pieces.
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| +  void _updateHash(List<int> m) {
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| +    assert(m.length == 16);
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| +
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| +    var a = _h[0];
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| +    var b = _h[1];
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| +    var c = _h[2];
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| +    var d = _h[3];
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| +    var e = _h[4];
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| +
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| +    for (var i = 0; i < 80; i++) {
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| +      if (i < 16) {
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| +        _w[i] = m[i];
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| +      } else {
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| +        var n = _w[i - 3] ^ _w[i - 8] ^ _w[i - 14] ^ _w[i - 16];
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| +        _w[i] = _rotl32(n, 1);
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| +      }
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| +      var t = _add32(_add32(_rotl32(a, 5), e), _w[i]);
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| +      if (i < 20) {
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| +        t = _add32(_add32(t, (b & c) | (~b & d)), 0x5A827999);
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| +      } else if (i < 40) {
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| +        t = _add32(_add32(t, (b ^ c ^ d)), 0x6ED9EBA1);
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| +      } else if (i < 60) {
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| +        t = _add32(_add32(t, (b & c) | (b & d) | (c & d)), 0x8F1BBCDC);
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| +      } else {
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| +        t = _add32(_add32(t, b ^ c ^ d), 0xCA62C1D6);
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| +      }
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| +
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| +      e = d;
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| +      d = c;
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| +      c = _rotl32(b, 30);
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| +      b = a;
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| +      a = t & _MASK_32;
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| +    }
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| +
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| +    _h[0] = _add32(a, _h[0]);
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| +    _h[1] = _add32(b, _h[1]);
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| +    _h[2] = _add32(c, _h[2]);
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| +    _h[3] = _add32(d, _h[3]);
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| +    _h[4] = _add32(e, _h[4]);
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| +  }
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| +
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| +  List<int> _w;
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| +}
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| 
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