The JUCE cross-platform C++ framework, with DISTRHO/KXStudio specific changes
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  1. /*
  2. ==============================================================================
  3. This file is part of the JUCE library.
  4. Copyright (c) 2020 - Raw Material Software Limited
  5. JUCE is an open source library subject to commercial or open-source
  6. licensing.
  7. By using JUCE, you agree to the terms of both the JUCE 5 End-User License
  8. Agreement and JUCE 5 Privacy Policy (both updated and effective as of the
  9. 22nd April 2020).
  10. End User License Agreement: www.juce.com/juce-5-licence
  11. Privacy Policy: www.juce.com/juce-5-privacy-policy
  12. Or: You may also use this code under the terms of the GPL v3 (see
  13. www.gnu.org/licenses).
  14. JUCE IS PROVIDED "AS IS" WITHOUT ANY WARRANTY, AND ALL WARRANTIES, WHETHER
  15. EXPRESSED OR IMPLIED, INCLUDING MERCHANTABILITY AND FITNESS FOR PURPOSE, ARE
  16. DISCLAIMED.
  17. ==============================================================================
  18. */
  19. namespace juce
  20. {
  21. /*
  22. IMPORTANT DISCLAIMER: By choosing to enable the JUCE_USE_MP3AUDIOFORMAT flag and
  23. to compile this MP3 code into your software, you do so AT YOUR OWN RISK! By doing so,
  24. you are agreeing that Raw Material Software Limited is in no way responsible for any patent,
  25. copyright, or other legal issues that you may suffer as a result.
  26. The code in juce_MP3AudioFormat.cpp is NOT guaranteed to be free from infringements of 3rd-party
  27. intellectual property. If you wish to use it, please seek your own independent advice about the
  28. legality of doing so. If you are not willing to accept full responsibility for the consequences
  29. of using this code, then do not enable the JUCE_USE_MP3AUDIOFORMAT setting.
  30. */
  31. #if JUCE_USE_MP3AUDIOFORMAT
  32. namespace MP3Decoder
  33. {
  34. struct AllocationTable
  35. {
  36. int16 bits, d;
  37. };
  38. constexpr AllocationTable allocTable0[] =
  39. {
  40. {4, 0}, {5, 3}, {3, -3}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191}, {15, -16383}, {16, -32767},
  41. {4, 0}, {5, 3}, {3, -3}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191}, {15, -16383}, {16, -32767},
  42. {4, 0}, {5, 3}, {3, -3}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191}, {15, -16383}, {16, -32767},
  43. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  44. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  45. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  46. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  47. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  48. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  49. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  50. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  51. {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767}, {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767},
  52. {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767}, {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767},
  53. {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767}, {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767},
  54. {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767}, {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767},
  55. {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767}, {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767},
  56. {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767}, {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767},
  57. {2, 0}, {5, 3}, {7, 5}, {16, -32767}, {2, 0}, {5, 3}, {7, 5}, {16, -32767}, {2, 0}, {5, 3}, {7, 5}, {16, -32767}, {2, 0}, {5, 3}, {7, 5}, {16, -32767}
  58. };
  59. constexpr AllocationTable allocTable1[] =
  60. {
  61. {4, 0}, {5, 3}, {3, -3}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191}, {15, -16383}, {16, -32767},
  62. {4, 0}, {5, 3}, {3, -3}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191}, {15, -16383}, {16, -32767},
  63. {4, 0}, {5, 3}, {3, -3}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191}, {15, -16383}, {16, -32767},
  64. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  65. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  66. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  67. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  68. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  69. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  70. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  71. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {16, -32767},
  72. {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767}, {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767},
  73. {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767}, {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767},
  74. {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767}, {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767},
  75. {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767}, {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767},
  76. {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767}, {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767},
  77. {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767}, {3, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {16, -32767},
  78. {2, 0}, {5, 3}, {7, 5}, {16, -32767}, {2, 0}, {5, 3}, {7, 5}, {16, -32767}, {2, 0}, {5, 3}, {7, 5}, {16, -32767}, {2, 0}, {5, 3}, {7, 5}, {16, -32767},
  79. {2, 0}, {5, 3}, {7, 5}, {16, -32767}, {2, 0}, {5, 3}, {7, 5}, {16, -32767}, {2, 0}, {5, 3}, {7, 5}, {16, -32767}
  80. };
  81. constexpr AllocationTable allocTable2[] =
  82. {
  83. {4, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191}, {15, -16383},
  84. {4, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191}, {15, -16383},
  85. {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63},
  86. {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63},
  87. {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}
  88. };
  89. constexpr AllocationTable allocTable3[] =
  90. {
  91. {4, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191}, {15, -16383},
  92. {4, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191}, {15, -16383},
  93. {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63},
  94. {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63},
  95. {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63},
  96. {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63},
  97. {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}
  98. };
  99. constexpr AllocationTable allocTable4[] =
  100. {
  101. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191},
  102. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191},
  103. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191},
  104. {4, 0}, {5, 3}, {7, 5}, {3, -3}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {8, -127}, {9, -255}, {10, -511}, {11, -1023}, {12, -2047}, {13, -4095}, {14, -8191},
  105. {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63},
  106. {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63},
  107. {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63},
  108. {3, 0}, {5, 3}, {7, 5}, {10, 9}, {4, -7}, {5, -15}, {6, -31}, {7, -63}, {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9},
  109. {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9},
  110. {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9},
  111. {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9},
  112. {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9}, {2, 0}, {5, 3}, {7, 5}, {10, 9},
  113. {2, 0}, {5, 3}, {7, 5}, {10, 9}
  114. };
  115. struct BandInfoStruct
  116. {
  117. int16 longIndex[23];
  118. int16 longDiff[22];
  119. int16 shortIndex[14];
  120. int16 shortDiff[13];
  121. };
  122. constexpr BandInfoStruct bandInfo[9] =
  123. {
  124. { {0, 4, 8, 12, 16, 20, 24, 30, 36, 44, 52, 62, 74, 90, 110, 134, 162, 196, 238, 288, 342, 418, 576},
  125. {4, 4, 4, 4, 4, 4, 6, 6, 8, 8, 10, 12, 16, 20, 24, 28, 34, 42, 50, 54, 76, 158},
  126. {0, 4 * 3, 8 * 3, 12 * 3, 16 * 3, 22 * 3, 30 * 3, 40 * 3, 52 * 3, 66 * 3, 84 * 3, 106 * 3, 136 * 3, 192 * 3},
  127. {4, 4, 4, 4, 6, 8, 10, 12, 14, 18, 22, 30, 56} },
  128. { {0, 4, 8, 12, 16, 20, 24, 30, 36, 42, 50, 60, 72, 88, 106, 128, 156, 190, 230, 276, 330, 384, 576},
  129. {4, 4, 4, 4, 4, 4, 6, 6, 6, 8, 10, 12, 16, 18, 22, 28, 34, 40, 46, 54, 54, 192},
  130. {0, 4 * 3, 8 * 3, 12 * 3, 16 * 3, 22 * 3, 28 * 3, 38 * 3, 50 * 3, 64 * 3, 80 * 3, 100 * 3, 126 * 3, 192 * 3},
  131. {4, 4, 4, 4, 6, 6, 10, 12, 14, 16, 20, 26, 66} },
  132. { {0, 4, 8, 12, 16, 20, 24, 30, 36, 44, 54, 66, 82, 102, 126, 156, 194, 240, 296, 364, 448, 550, 576},
  133. {4, 4, 4, 4, 4, 4, 6, 6, 8, 10, 12, 16, 20, 24, 30, 38, 46, 56, 68, 84, 102, 26},
  134. {0, 4 * 3, 8 * 3, 12 * 3, 16 * 3, 22 * 3, 30 * 3, 42 * 3, 58 * 3, 78 * 3, 104 * 3, 138 * 3, 180 * 3, 192 * 3},
  135. {4, 4, 4, 4, 6, 8, 12, 16, 20, 26, 34, 42, 12} },
  136. { {0, 6, 12, 18, 24, 30, 36, 44, 54, 66, 80, 96, 116, 140, 168, 200, 238, 284, 336, 396, 464, 522, 576},
  137. {6, 6, 6, 6, 6, 6, 8, 10, 12, 14, 16, 20, 24, 28, 32, 38, 46, 52, 60, 68, 58, 54 },
  138. {0, 4 * 3, 8 * 3, 12 * 3, 18 * 3, 24 * 3, 32 * 3, 42 * 3, 56 * 3, 74 * 3, 100 * 3, 132 * 3, 174 * 3, 192 * 3},
  139. {4, 4, 4, 6, 6, 8, 10, 14, 18, 26, 32, 42, 18 } },
  140. { {0, 6, 12, 18, 24, 30, 36, 44, 54, 66, 80, 96, 114, 136, 162, 194, 232, 278, 332, 394, 464, 540, 576},
  141. {6, 6, 6, 6, 6, 6, 8, 10, 12, 14, 16, 18, 22, 26, 32, 38, 46, 54, 62, 70, 76, 36 },
  142. {0, 4 * 3, 8 * 3, 12 * 3, 18 * 3, 26 * 3, 36 * 3, 48 * 3, 62 * 3, 80 * 3, 104 * 3, 136 * 3, 180 * 3, 192 * 3},
  143. {4, 4, 4, 6, 8, 10, 12, 14, 18, 24, 32, 44, 12 } },
  144. { {0, 6, 12, 18, 24, 30, 36, 44, 54, 66, 80, 96, 116, 140, 168, 200, 238, 284, 336, 396, 464, 522, 576},
  145. {6, 6, 6, 6, 6, 6, 8, 10, 12, 14, 16, 20, 24, 28, 32, 38, 46, 52, 60, 68, 58, 54 },
  146. {0, 4 * 3, 8 * 3, 12 * 3, 18 * 3, 26 * 3, 36 * 3, 48 * 3, 62 * 3, 80 * 3, 104 * 3, 134 * 3, 174 * 3, 192 * 3},
  147. {4, 4, 4, 6, 8, 10, 12, 14, 18, 24, 30, 40, 18 } },
  148. { {0, 6, 12, 18, 24, 30, 36, 44, 54, 66, 80, 96, 116, 140, 168, 200, 238, 284, 336, 396, 464, 522, 576},
  149. {6, 6, 6, 6, 6, 6, 8, 10, 12, 14, 16, 20, 24, 28, 32, 38, 46, 52, 60, 68, 58, 54},
  150. {0, 12, 24, 36, 54, 78, 108, 144, 186, 240, 312, 402, 522, 576},
  151. {4, 4, 4, 6, 8, 10, 12, 14, 18, 24, 30, 40, 18} },
  152. { {0, 6, 12, 18, 24, 30, 36, 44, 54, 66, 80, 96, 116, 140, 168, 200, 238, 284, 336, 396, 464, 522, 576},
  153. {6, 6, 6, 6, 6, 6, 8, 10, 12, 14, 16, 20, 24, 28, 32, 38, 46, 52, 60, 68, 58, 54},
  154. {0, 12, 24, 36, 54, 78, 108, 144, 186, 240, 312, 402, 522, 576},
  155. {4, 4, 4, 6, 8, 10, 12, 14, 18, 24, 30, 40, 18} },
  156. { {0, 12, 24, 36, 48, 60, 72, 88, 108, 132, 160, 192, 232, 280, 336, 400, 476, 566, 568, 570, 572, 574, 576},
  157. {12, 12, 12, 12, 12, 12, 16, 20, 24, 28, 32, 40, 48, 56, 64, 76, 90, 2, 2, 2, 2, 2},
  158. {0, 24, 48, 72, 108, 156, 216, 288, 372, 480, 486, 492, 498, 576},
  159. {8, 8, 8, 12, 16, 20, 24, 28, 36, 2, 2, 2, 26} }
  160. };
  161. constexpr double decodeWindow[] =
  162. {
  163. 0.000000000, -0.000015259, -0.000015259, -0.000015259, -0.000015259, -0.000015259, -0.000015259, -0.000030518,
  164. -0.000030518, -0.000030518, -0.000030518, -0.000045776, -0.000045776, -0.000061035, -0.000061035, -0.000076294,
  165. -0.000076294, -0.000091553, -0.000106812, -0.000106812, -0.000122070, -0.000137329, -0.000152588, -0.000167847,
  166. -0.000198364, -0.000213623, -0.000244141, -0.000259399, -0.000289917, -0.000320435, -0.000366211, -0.000396729,
  167. -0.000442505, -0.000473022, -0.000534058, -0.000579834, -0.000625610, -0.000686646, -0.000747681, -0.000808716,
  168. -0.000885010, -0.000961304, -0.001037598, -0.001113892, -0.001205444, -0.001296997, -0.001388550, -0.001480103,
  169. -0.001586914, -0.001693726, -0.001785278, -0.001907349, -0.002014160, -0.002120972, -0.002243042, -0.002349854,
  170. -0.002456665, -0.002578735, -0.002685547, -0.002792358, -0.002899170, -0.002990723, -0.003082275, -0.003173828,
  171. -0.003250122, -0.003326416, -0.003387451, -0.003433228, -0.003463745, -0.003479004, -0.003479004, -0.003463745,
  172. -0.003417969, -0.003372192, -0.003280640, -0.003173828, -0.003051758, -0.002883911, -0.002700806, -0.002487183,
  173. -0.002227783, -0.001937866, -0.001617432, -0.001266479, -0.000869751, -0.000442505, 0.000030518, 0.000549316,
  174. 0.001098633, 0.001693726, 0.002334595, 0.003005981, 0.003723145, 0.004486084, 0.005294800, 0.006118774,
  175. 0.007003784, 0.007919312, 0.008865356, 0.009841919, 0.010848999, 0.011886597, 0.012939453, 0.014022827,
  176. 0.015121460, 0.016235352, 0.017349243, 0.018463135, 0.019577026, 0.020690918, 0.021789551, 0.022857666,
  177. 0.023910522, 0.024932861, 0.025909424, 0.026840210, 0.027725220, 0.028533936, 0.029281616, 0.029937744,
  178. 0.030532837, 0.031005859, 0.031387329, 0.031661987, 0.031814575, 0.031845093, 0.031738281, 0.031478882,
  179. 0.031082153, 0.030517578, 0.029785156, 0.028884888, 0.027801514, 0.026535034, 0.025085449, 0.023422241,
  180. 0.021575928, 0.019531250, 0.017257690, 0.014801025, 0.012115479, 0.009231567, 0.006134033, 0.002822876,
  181. -0.000686646, -0.004394531, -0.008316040, -0.012420654, -0.016708374, -0.021179199, -0.025817871, -0.030609131,
  182. -0.035552979, -0.040634155, -0.045837402, -0.051132202, -0.056533813, -0.061996460, -0.067520142, -0.073059082,
  183. -0.078628540, -0.084182739, -0.089706421, -0.095169067, -0.100540161, -0.105819702, -0.110946655, -0.115921021,
  184. -0.120697021, -0.125259399, -0.129562378, -0.133590698, -0.137298584, -0.140670776, -0.143676758, -0.146255493,
  185. -0.148422241, -0.150115967, -0.151306152, -0.151962280, -0.152069092, -0.151596069, -0.150497437, -0.148773193,
  186. -0.146362305, -0.143264771, -0.139450073, -0.134887695, -0.129577637, -0.123474121, -0.116577148, -0.108856201,
  187. -0.100311279, -0.090927124, -0.080688477, -0.069595337, -0.057617187, -0.044784546, -0.031082153, -0.016510010,
  188. -0.001068115, 0.015228271, 0.032379150, 0.050354004, 0.069168091, 0.088775635, 0.109161377, 0.130310059,
  189. 0.152206421, 0.174789429, 0.198059082, 0.221984863, 0.246505737, 0.271591187, 0.297210693, 0.323318481,
  190. 0.349868774, 0.376800537, 0.404083252, 0.431655884, 0.459472656, 0.487472534, 0.515609741, 0.543823242,
  191. 0.572036743, 0.600219727, 0.628295898, 0.656219482, 0.683914185, 0.711318970, 0.738372803, 0.765029907,
  192. 0.791213989, 0.816864014, 0.841949463, 0.866363525, 0.890090942, 0.913055420, 0.935195923, 0.956481934,
  193. 0.976852417, 0.996246338, 1.014617920, 1.031936646, 1.048156738, 1.063217163, 1.077117920, 1.089782715,
  194. 1.101211548, 1.111373901, 1.120223999, 1.127746582, 1.133926392, 1.138763428, 1.142211914, 1.144287109,
  195. 1.144989014
  196. };
  197. constexpr int16 huffmanTab0[] = { 0 };
  198. constexpr int16 huffmanTab1[] = { -5,-3,-1,17,1,16,0 };
  199. constexpr int16 huffmanTab2[] = { -15,-11,-9,-5,-3,-1,34,2,18,-1,33,32,17,-1,1,16,0 };
  200. constexpr int16 huffmanTab3[] = { -13,-11,-9,-5,-3,-1,34,2,18,-1,33,32,16,17,-1,1,0 };
  201. constexpr int16 huffmanTab5[] = { -29,-25,-23,-15,-7,-5,-3,-1,51,35,50,49,-3,-1,19,3,-1,48,34,-3,-1,18,33,-1,2,32,17,-1,1,16,0 };
  202. constexpr int16 huffmanTab6[] = { -25,-19,-13,-9,-5,-3,-1,51,3,35,-1,50,48,-1,19,49,-3,-1,34,2,18,-3,-1,33,32,1,-1,17,-1,16,0 };
  203. constexpr int16 huffmanTab7[] =
  204. {
  205. -69,-65,-57,-39,-29,-17,-11,-7,-3,-1,85,69,-1,84,83,-1,53,68,-3,-1,37,82,21,-5,-1,81,-1,5,52,-1,80,-1,67,51,
  206. -5,-3,-1,36,66,20,-1,65,64,-11,-7,-3,-1,4,35,-1,50,3,-1,19,49,-3,-1,48,34,18,-5,-1,33,-1,2,32,17,-1,1,16,0
  207. };
  208. constexpr int16 huffmanTab8[] =
  209. {
  210. -65,-63,-59,-45,-31,-19,-13,-7,-5,-3,-1,85,84,69,83,-3,-1,53,68,37,-3,-1,82,5,21,-5,-1,81,-1,52,67,-3,-1,80,
  211. 51,36,-5,-3,-1,66,20,65,-3,-1,4,64,-1,35,50,-9,-7,-3,-1,19,49,-1,3,48,34,-1,2,32,-1,18,33,17,-3,-1,1,16,0
  212. };
  213. constexpr int16 huffmanTab9[] =
  214. {
  215. -63,-53,-41,-29,-19,-11,-5,-3,-1,85,69,53,-1,83,-1,84,5,-3,-1,68,37,-1,82,21,-3,-1,81,52,-1,67,-1,80,4,-7,-3,
  216. -1,36,66,-1,51,64,-1,20,65,-5,-3,-1,35,50,19,-1,49,-1,3,48,-5,-3,-1,34,2,18,-1,33,32,-3,-1,17,1,-1,16,0
  217. };
  218. constexpr int16 huffmanTab10[] =
  219. {
  220. -125,-121,-111,-83,-55,-35,-21,-13,-7,-3,-1,119,103,-1,118,87,-3,-1,117,102,71,-3,-1,116,86,-1,101,55,-9,-3,
  221. -1,115,70,-3,-1,85,84,99,-1,39,114,-11,-5,-3,-1,100,7,112,-1,98,-1,69,53,-5,-1,6,-1,83,68,23,-17,-5,-1,113,
  222. -1,54,38,-5,-3,-1,37,82,21,-1,81,-1,52,67,-3,-1,22,97,-1,96,-1,5,80,-19,-11,-7,-3,-1,36,66,-1,51,4,-1,20,
  223. 65,-3,-1,64,35,-1,50,3,-3,-1,19,49,-1,48,34,-7,-3,-1,18,33,-1,2,32,17,-1,1,16,0
  224. };
  225. constexpr int16 huffmanTab11[] =
  226. {
  227. -121,-113,-89,-59,-43,-27,-17,-7,-3,-1,119,103,-1,118,117,-3,-1,102,71,-1,116,-1,87,85,-5,-3,-1,86,101,55,
  228. -1,115,70,-9,-7,-3,-1,69,84,-1,53,83,39,-1,114,-1,100,7,-5,-1,113,-1,23,112,-3,-1,54,99,-1,96,-1,68,37,-13,
  229. -7,-5,-3,-1,82,5,21,98,-3,-1,38,6,22,-5,-1,97,-1,81,52,-5,-1,80,-1,67,51,-1,36,66,-15,-11,-7,-3,-1,20,65,
  230. -1,4,64,-1,35,50,-1,19,49,-5,-3,-1,3,48,34,33,-5,-1,18,-1,2,32,17,-3,-1,1,16,0
  231. };
  232. constexpr int16 huffmanTab12[] =
  233. {
  234. -115,-99,-73,-45,-27,-17,-9,-5,-3,-1,119,103,118,-1,87,117,-3,-1,102,71,-1,116,101,-3,-1,86,55,-3,-1,115,
  235. 85,39,-7,-3,-1,114,70,-1,100,23,-5,-1,113,-1,7,112,-1,54,99,-13,-9,-3,-1,69,84,-1,68,-1,6,5,-1,38,98,-5,
  236. -1,97,-1,22,96,-3,-1,53,83,-1,37,82,-17,-7,-3,-1,21,81,-1,52,67,-5,-3,-1,80,4,36,-1,66,20,-3,-1,51,65,-1,
  237. 35,50,-11,-7,-5,-3,-1,64,3,48,19,-1,49,34,-1,18,33,-7,-5,-3,-1,2,32,0,17,-1,1,16
  238. };
  239. constexpr int16 huffmanTab13[] =
  240. {
  241. -509,-503,-475,-405,-333,-265,-205,-153,-115,-83,-53,-35,-21,-13,-9,-7,-5,-3,-1,254,252,253,237,255,-1,239,223,
  242. -3,-1,238,207,-1,222,191,-9,-3,-1,251,206,-1,220,-1,175,233,-1,236,221,-9,-5,-3,-1,250,205,190,-1,235,159,-3,
  243. -1,249,234,-1,189,219,-17,-9,-3,-1,143,248,-1,204,-1,174,158,-5,-1,142,-1,127,126,247,-5,-1,218,-1,173,188,-3,
  244. -1,203,246,111,-15,-7,-3,-1,232,95,-1,157,217,-3,-1,245,231,-1,172,187,-9,-3,-1,79,244,-3,-1,202,230,243,-1,
  245. 63,-1,141,216,-21,-9,-3,-1,47,242,-3,-1,110,156,15,-5,-3,-1,201,94,171,-3,-1,125,215,78,-11,-5,-3,-1,200,214,
  246. 62,-1,185,-1,155,170,-1,31,241,-23,-13,-5,-1,240,-1,186,229,-3,-1,228,140,-1,109,227,-5,-1,226,-1,46,14,-1,30,
  247. 225,-15,-7,-3,-1,224,93,-1,213,124,-3,-1,199,77,-1,139,184,-7,-3,-1,212,154,-1,169,108,-1,198,61,-37,-21,-9,-5,
  248. -3,-1,211,123,45,-1,210,29,-5,-1,183,-1,92,197,-3,-1,153,122,195,-7,-5,-3,-1,167,151,75,209,-3,-1,13,208,-1,
  249. 138,168,-11,-7,-3,-1,76,196,-1,107,182,-1,60,44,-3,-1,194,91,-3,-1,181,137,28,-43,-23,-11,-5,-1,193,-1,152,12,
  250. -1,192,-1,180,106,-5,-3,-1,166,121,59,-1,179,-1,136,90,-11,-5,-1,43,-1,165,105,-1,164,-1,120,135,-5,-1,148,-1,
  251. 119,118,178,-11,-3,-1,27,177,-3,-1,11,176,-1,150,74,-7,-3,-1,58,163,-1,89,149,-1,42,162,-47,-23,-9,-3,-1,26,
  252. 161,-3,-1,10,104,160,-5,-3,-1,134,73,147,-3,-1,57,88,-1,133,103,-9,-3,-1,41,146,-3,-1,87,117,56,-5,-1,131,-1,
  253. 102,71,-3,-1,116,86,-1,101,115,-11,-3,-1,25,145,-3,-1,9,144,-1,72,132,-7,-5,-1,114,-1,70,100,40,-1,130,24,-41,
  254. -27,-11,-5,-3,-1,55,39,23,-1,113,-1,85,7,-7,-3,-1,112,54,-1,99,69,-3,-1,84,38,-1,98,53,-5,-1,129,-1,8,128,-3,
  255. -1,22,97,-1,6,96,-13,-9,-5,-3,-1,83,68,37,-1,82,5,-1,21,81,-7,-3,-1,52,67,-1,80,36,-3,-1,66,51,20,-19,-11,
  256. -5,-1,65,-1,4,64,-3,-1,35,50,19,-3,-1,49,3,-1,48,34,-3,-1,18,33,-1,2,32,-3,-1,17,1,16,0
  257. };
  258. constexpr int16 huffmanTab15[] =
  259. {
  260. -495,-445,-355,-263,-183,-115,-77,-43,-27,-13,-7,-3,-1,255,239,-1,254,223,-1,238,-1,253,207,-7,-3,-1,252,222,-1,
  261. 237,191,-1,251,-1,206,236,-7,-3,-1,221,175,-1,250,190,-3,-1,235,205,-1,220,159,-15,-7,-3,-1,249,234,-1,189,219,
  262. -3,-1,143,248,-1,204,158,-7,-3,-1,233,127,-1,247,173,-3,-1,218,188,-1,111,-1,174,15,-19,-11,-3,-1,203,246,
  263. -3,-1,142,232,-1,95,157,-3,-1,245,126,-1,231,172,-9,-3,-1,202,187,-3,-1,217,141,79,-3,-1,244,63,-1,243,216,
  264. -33,-17,-9,-3,-1,230,47,-1,242,-1,110,240,-3,-1,31,241,-1,156,201,-7,-3,-1,94,171,-1,186,229,-3,-1,125,215,
  265. -1,78,228,-15,-7,-3,-1,140,200,-1,62,109,-3,-1,214,227,-1,155,185,-7,-3,-1,46,170,-1,226,30,-5,-1,225,-1,14,
  266. 224,-1,93,213,-45,-25,-13,-7,-3,-1,124,199,-1,77,139,-1,212,-1,184,154,-7,-3,-1,169,108,-1,198,61,-1,211,210,
  267. -9,-5,-3,-1,45,13,29,-1,123,183,-5,-1,209,-1,92,208,-1,197,138,-17,-7,-3,-1,168,76,-1,196,107,-5,-1,182,-1,
  268. 153,12,-1,60,195,-9,-3,-1,122,167,-1,166,-1,192,11,-1,194,-1,44,91,-55,-29,-15,-7,-3,-1,181,28,-1,137,152,-3,
  269. -1,193,75,-1,180,106,-5,-3,-1,59,121,179,-3,-1,151,136,-1,43,90,-11,-5,-1,178,-1,165,27,-1,177,-1,176,105,-7,
  270. -3,-1,150,74,-1,164,120,-3,-1,135,58,163,-17,-7,-3,-1,89,149,-1,42,162,-3,-1,26,161,-3,-1,10,160,104,-7,-3,
  271. -1,134,73,-1,148,57,-5,-1,147,-1,119,9,-1,88,133,-53,-29,-13,-7,-3,-1,41,103,-1,118,146,-1,145,-1,25,144,-7,
  272. -3,-1,72,132,-1,87,117,-3,-1,56,131,-1,102,71,-7,-3,-1,40,130,-1,24,129,-7,-3,-1,116,8,-1,128,86,-3,-1,101,
  273. 55,-1,115,70,-17,-7,-3,-1,39,114,-1,100,23,-3,-1,85,113,-3,-1,7,112,54,-7,-3,-1,99,69,-1,84,38,-3,-1,98,22,
  274. -3,-1,6,96,53,-33,-19,-9,-5,-1,97,-1,83,68,-1,37,82,-3,-1,21,81,-3,-1,5,80,52,-7,-3,-1,67,36,-1,66,51,-1,
  275. 65,-1,20,4,-9,-3,-1,35,50,-3,-1,64,3,19,-3,-1,49,48,34,-9,-7,-3,-1,18,33,-1,2,32,17,-3,-1,1,16,0
  276. };
  277. constexpr int16 huffmanTab16[] =
  278. {
  279. -509,-503,-461,-323,-103,-37,-27,-15,-7,-3,-1,239,254,-1,223,253,-3,-1,207,252,-1,191,251,-5,-1,175,-1,250,159,
  280. -3,-1,249,248,143,-7,-3,-1,127,247,-1,111,246,255,-9,-5,-3,-1,95,245,79,-1,244,243,-53,-1,240,-1,63,-29,-19,
  281. -13,-7,-5,-1,206,-1,236,221,222,-1,233,-1,234,217,-1,238,-1,237,235,-3,-1,190,205,-3,-1,220,219,174,-11,-5,
  282. -1,204,-1,173,218,-3,-1,126,172,202,-5,-3,-1,201,125,94,189,242,-93,-5,-3,-1,47,15,31,-1,241,-49,-25,-13,
  283. -5,-1,158,-1,188,203,-3,-1,142,232,-1,157,231,-7,-3,-1,187,141,-1,216,110,-1,230,156,-13,-7,-3,-1,171,186,
  284. -1,229,215,-1,78,-1,228,140,-3,-1,200,62,-1,109,-1,214,155,-19,-11,-5,-3,-1,185,170,225,-1,212,-1,184,169,
  285. -5,-1,123,-1,183,208,227,-7,-3,-1,14,224,-1,93,213,-3,-1,124,199,-1,77,139,-75,-45,-27,-13,-7,-3,-1,154,
  286. 108,-1,198,61,-3,-1,92,197,13,-7,-3,-1,138,168,-1,153,76,-3,-1,182,122,60,-11,-5,-3,-1,91,137,28,-1,192,-1,
  287. 152,121,-1,226,-1,46,30,-15,-7,-3,-1,211,45,-1,210,209,-5,-1,59,-1,151,136,29,-7,-3,-1,196,107,-1,195,167,-1,
  288. 44,-1,194,181,-23,-13,-7,-3,-1,193,12,-1,75,180,-3,-1,106,166,179,-5,-3,-1,90,165,43,-1,178,27,-13,-5,-1,177,
  289. -1,11,176,-3,-1,105,150,-1,74,164,-5,-3,-1,120,135,163,-3,-1,58,89,42,-97,-57,-33,-19,-11,-5,-3,-1,149,104,161,
  290. -3,-1,134,119,148,-5,-3,-1,73,87,103,162,-5,-1,26,-1,10,160,-3,-1,57,147,-1,88,133,-9,-3,-1,41,146,-3,-1,118,
  291. 9,25,-5,-1,145,-1,144,72,-3,-1,132,117,-1,56,131,-21,-11,-5,-3,-1,102,40,130,-3,-1,71,116,24,-3,-1,129,128,-3,
  292. -1,8,86,55,-9,-5,-1,115,-1,101,70,-1,39,114,-5,-3,-1,100,85,7,23,-23,-13,-5,-1,113,-1,112,54,-3,-1,99,69,-1,
  293. 84,38,-3,-1,98,22,-1,97,-1,6,96,-9,-5,-1,83,-1,53,68,-1,37,82,-1,81,-1,21,5,-33,-23,-13,-7,-3,-1,52,67,-1,80,
  294. 36,-3,-1,66,51,20,-5,-1,65,-1,4,64,-1,35,50,-3,-1,19,49,-3,-1,3,48,34,-3,-1,18,33,-1,2,32,-3,-1,17,1,16,0
  295. };
  296. constexpr int16 huffmanTab24[] =
  297. {
  298. -451,-117,-43,-25,-15,-7,-3,-1,239,254,-1,223,253,-3,-1,207,252,-1,191,251,-5,-1,250,-1,175,159,-1,249,248,-9,
  299. -5,-3,-1,143,127,247,-1,111,246,-3,-1,95,245,-1,79,244,-71,-7,-3,-1,63,243,-1,47,242,-5,-1,241,-1,31,240,-25,-9,
  300. -1,15,-3,-1,238,222,-1,237,206,-7,-3,-1,236,221,-1,190,235,-3,-1,205,220,-1,174,234,-15,-7,-3,-1,189,219,-1,204,
  301. 158,-3,-1,233,173,-1,218,188,-7,-3,-1,203,142,-1,232,157,-3,-1,217,126,-1,231,172,255,-235,-143,-77,-45,-25,-15,
  302. -7,-3,-1,202,187,-1,141,216,-5,-3,-1,14,224,13,230,-5,-3,-1,110,156,201,-1,94,186,-9,-5,-1,229,-1,171,125,-1,215,
  303. 228,-3,-1,140,200,-3,-1,78,46,62,-15,-7,-3,-1,109,214,-1,227,155,-3,-1,185,170,-1,226,30,-7,-3,-1,225,93,-1,213,124,
  304. -3,-1,199,77,-1,139,184,-31,-15,-7,-3,-1,212,154,-1,169,108,-3,-1,198,61,-1,211,45,-7,-3,-1,210,29,-1,123,183,-3,-1,
  305. 209,92,-1,197,138,-17,-7,-3,-1,168,153,-1,76,196,-3,-1,107,182,-3,-1,208,12,60,-7,-3,-1,195,122,-1,167,44,-3,-1,194,
  306. 91,-1,181,28,-57,-35,-19,-7,-3,-1,137,152,-1,193,75,-5,-3,-1,192,11,59,-3,-1,176,10,26,-5,-1,180,-1,106,166,-3,-1,121,
  307. 151,-3,-1,160,9,144,-9,-3,-1,179,136,-3,-1,43,90,178,-7,-3,-1,165,27,-1,177,105,-1,150,164,-17,-9,-5,-3,-1,74,120,135,
  308. -1,58,163,-3,-1,89,149,-1,42,162,-7,-3,-1,161,104,-1,134,119,-3,-1,73,148,-1,57,147,-63,-31,-15,-7,-3,-1,88,133,-1,41,
  309. 103,-3,-1,118,146,-1,25,145,-7,-3,-1,72,132,-1,87,117,-3,-1,56,131,-1,102,40,-17,-7,-3,-1,130,24,-1,71,116,-5,-1,129,
  310. -1,8,128,-1,86,101,-7,-5,-1,23,-1,7,112,115,-3,-1,55,39,114,-15,-7,-3,-1,70,100,-1,85,113,-3,-1,54,99,-1,69,84,-7,-3,
  311. -1,38,98,-1,22,97,-5,-3,-1,6,96,53,-1,83,68,-51,-37,-23,-15,-9,-3,-1,37,82,-1,21,-1,5,80,-1,81,-1,52,67,-3,-1,36,66,
  312. -1,51,20,-9,-5,-1,65,-1,4,64,-1,35,50,-1,19,49,-7,-5,-3,-1,3,48,34,18,-1,33,-1,2,32,-3,-1,17,1,-1,16,0
  313. };
  314. struct BitsToTableMap
  315. {
  316. uint32 bits;
  317. const int16* table;
  318. };
  319. constexpr BitsToTableMap huffmanTables1[] =
  320. {
  321. { 0, huffmanTab0 }, { 0, huffmanTab1 }, { 0, huffmanTab2 }, { 0, huffmanTab3 },
  322. { 0, huffmanTab0 }, { 0, huffmanTab5 }, { 0, huffmanTab6 }, { 0, huffmanTab7 },
  323. { 0, huffmanTab8 }, { 0, huffmanTab9 }, { 0, huffmanTab10 }, { 0, huffmanTab11 },
  324. { 0, huffmanTab12 }, { 0, huffmanTab13 }, { 0, huffmanTab0 }, { 0, huffmanTab15 },
  325. { 1, huffmanTab16 }, { 2, huffmanTab16 }, { 3, huffmanTab16 }, { 4, huffmanTab16 },
  326. { 6, huffmanTab16 }, { 8, huffmanTab16 }, { 10, huffmanTab16 }, { 13, huffmanTab16 },
  327. { 4, huffmanTab24 }, { 5, huffmanTab24 }, { 6, huffmanTab24 }, { 7, huffmanTab24 },
  328. { 8, huffmanTab24 }, { 9, huffmanTab24 }, { 11, huffmanTab24 }, { 13, huffmanTab24 }
  329. };
  330. constexpr int16 huffmanTabC0[] = { -29,-21,-13,-7,-3,-1,11,15,-1,13,14,-3,-1,7,5,9,-3,-1,6,3,-1,10,12,-3,-1,2,1,-1,4,8,0 };
  331. constexpr int16 huffmanTabC1[] = { -15,-7,-3,-1,15,14,-1,13,12,-3,-1,11,10,-1,9,8,-7,-3,-1,7,6,-1,5,4,-3,-1,3,2,-1,1,0 };
  332. constexpr BitsToTableMap huffmanTables2[] = { { 0, huffmanTabC0 }, { 0, huffmanTabC1 } };
  333. //==============================================================================
  334. struct VBRTagData
  335. {
  336. bool read (const uint8* data) noexcept
  337. {
  338. flags = 0;
  339. const int layer = (data[1] >> 1) & 3;
  340. if (layer != 1)
  341. return false;
  342. const int type = (data[1] >> 3) & 1;
  343. const int sampleRateIndex = (data[2] >> 2) & 3;
  344. const int mode = (data[3] >> 6) & 3;
  345. static constexpr short bitRates[3][16] =
  346. {
  347. { 0, 8, 16, 24, 32, 40, 48, 56, 64, 80, 96, 112, 128, 144, 160, -1 }, // MPEG2
  348. { 0, 32, 40, 48, 56, 64, 80, 96, 112, 128, 160, 192, 224, 256, 320, -1 }, // MPEG1
  349. { 0, 8, 16, 24, 32, 40, 48, 56, 64, -1, -1, -1, -1, -1, -1, -1 }, // MPEG 2.5
  350. };
  351. const int bitrate = bitRates[type][((data[2] >> 4) & 15)];
  352. const int sampleRates[3][4] =
  353. {
  354. { 22050, 24000, 16000, -1 }, // MPEG2
  355. { 44100, 48000, 32000, -1 }, // MPEG1
  356. { 11025, 12000, 8000, -1 }, // MPEG2.5
  357. };
  358. if ((data[1] >> 4) == 0xe)
  359. sampleRate = sampleRates[2][sampleRateIndex];
  360. else
  361. sampleRate = sampleRates[type][sampleRateIndex];
  362. data += type != 0 ? (mode != 3 ? (32 + 4) : (17 + 4))
  363. : (mode != 3 ? (17 + 4) : (9 + 4));
  364. if (! isVbrTag (data))
  365. return false;
  366. data += 4;
  367. flags = ByteOrder::bigEndianInt (data);
  368. data += 4;
  369. if (flags & 1)
  370. {
  371. frames = ByteOrder::bigEndianInt (data);
  372. data += 4;
  373. }
  374. if (flags & 2)
  375. {
  376. bytes = ByteOrder::bigEndianInt (data);
  377. data += 4;
  378. }
  379. if (flags & 4)
  380. {
  381. for (int i = 0; i < 100; ++i)
  382. toc[i] = data[i];
  383. data += 100;
  384. }
  385. vbrScale = -1;
  386. if (flags & 8)
  387. vbrScale = (int) ByteOrder::bigEndianInt (data);
  388. headersize = ((type + 1) * 72000 * bitrate) / sampleRate;
  389. return true;
  390. }
  391. uint8 toc[100];
  392. int sampleRate, vbrScale, headersize;
  393. unsigned int flags, frames, bytes;
  394. private:
  395. static bool isVbrTag (const uint8* d) noexcept
  396. {
  397. return (d[0] == 'X' && d[1] == 'i' && d[2] == 'n' && d[3] == 'g')
  398. || (d[0] == 'I' && d[1] == 'n' && d[2] == 'f' && d[3] == 'o');
  399. }
  400. };
  401. //==============================================================================
  402. struct MP3Frame
  403. {
  404. MP3Frame()
  405. {
  406. zeromem (this, sizeof (MP3Frame));
  407. single = -1;
  408. }
  409. void selectLayer2Table()
  410. {
  411. static constexpr int translate[3][2][16] =
  412. {
  413. { { 0, 2, 2, 2, 2, 2, 2, 0, 0, 0, 1, 1, 1, 1, 1, 0 }, { 0, 2, 2, 0, 0, 0, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0 } },
  414. { { 0, 2, 2, 2, 2, 2, 2, 0, 0, 0, 0, 0, 0, 0, 0, 0 }, { 0, 2, 2, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 } },
  415. { { 0, 3, 3, 3, 3, 3, 3, 0, 0, 0, 1, 1, 1, 1, 1, 0 }, { 0, 3, 3, 0, 0, 0, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0 } }
  416. };
  417. static const AllocationTable* const tables[] = { allocTable0, allocTable1, allocTable2, allocTable3, allocTable4 };
  418. static constexpr int8 limits[] = { 27, 30, 8, 12, 30 };
  419. const int index = lsf ? 4 : translate[sampleRateIndex][2 - numChannels][bitrateIndex];
  420. layer2SubBandLimit = limits[index];
  421. allocationTable = tables[index];
  422. }
  423. int getFrequency() const noexcept
  424. {
  425. const int frequencies[] = { 44100, 48000, 32000, 22050, 24000, 16000, 11025, 12000, 8000 };
  426. return frequencies[sampleRateIndex];
  427. }
  428. void decodeHeader (const uint32 header)
  429. {
  430. jassert (((header >> 10) & 3) != 3);
  431. mpeg25 = (header & (1 << 20)) == 0;
  432. lsf = mpeg25 ? 1 : ((header & (1 << 19)) ? 0 : 1);
  433. layer = (int) (4 - ((header >> 17) & 3));
  434. sampleRateIndex = (int) ((header >> 10) & 3) + (mpeg25 ? 6 : (lsf * 3));
  435. crc16FollowsHeader = ((header >> 16) & 1) == 0;
  436. bitrateIndex = (header >> 12) & 15;
  437. padding = (header >> 9) & 1;
  438. mode = (header >> 6) & 3;
  439. modeExt = (header >> 4) & 3;
  440. //extension = (header >> 8) & 1;
  441. //copyright = (header >> 3) & 1;
  442. //original = (header >> 2) & 1;
  443. //emphasis = header & 3;
  444. numChannels = (mode == 3) ? 1 : 2;
  445. static constexpr int frameSizes[2][3][16] =
  446. {
  447. { { 0, 32, 64, 96, 128, 160, 192, 224, 256, 288, 320, 352, 384, 416, 448 },
  448. { 0, 32, 48, 56, 64, 80, 96, 112, 128, 160, 192, 224, 256, 320, 384 },
  449. { 0, 32, 40, 48, 56, 64, 80, 96, 112, 128, 160, 192, 224, 256, 320 } },
  450. { { 0, 32, 48, 56, 64, 80, 96, 112, 128, 144, 160, 176, 192, 224, 256 },
  451. { 0, 8, 16, 24, 32, 40, 48, 56, 64, 80, 96, 112, 128, 144, 160 },
  452. { 0, 8, 16, 24, 32, 40, 48, 56, 64, 80, 96, 112, 128, 144, 160 } }
  453. };
  454. if (bitrateIndex == 0)
  455. {
  456. jassertfalse; // This means the file is using "free format". Apparently very few decoders
  457. // support this mode, and this one certainly doesn't handle it correctly!
  458. frameSize = 0;
  459. }
  460. else
  461. {
  462. switch (layer)
  463. {
  464. case 1: frameSize = (((frameSizes[lsf][0][bitrateIndex] * 12000) / getFrequency() + padding) * 4) - 4; break;
  465. case 2: frameSize = (frameSizes[lsf][1][bitrateIndex] * 144000) / getFrequency() + (padding - 4); break;
  466. case 3: frameSize = (bitrateIndex == 0) ? 0 : ((frameSizes[lsf][2][bitrateIndex] * 144000) / (getFrequency() << lsf) + (padding - 4)); break;
  467. default: break;
  468. }
  469. }
  470. }
  471. int layer, frameSize, numChannels, single;
  472. int lsf; // 0 = mpeg-1, 1 = mpeg-2/LSF
  473. bool mpeg25; // true = mpeg-2.5, false = mpeg-1/2
  474. bool crc16FollowsHeader;
  475. int bitrateIndex, sampleRateIndex, padding;
  476. int mode, modeExt, layer2SubBandLimit;
  477. enum { downSampleLimit = 32 };
  478. const AllocationTable* allocationTable;
  479. };
  480. //==============================================================================
  481. struct Constants
  482. {
  483. Constants()
  484. {
  485. cosTables[0] = cos64; cosTables[1] = cos32; cosTables[2] = cos16; cosTables[3] = cos8; cosTables[4] = cos4;
  486. initDecodeTables();
  487. initLayer2Tables();
  488. initLayer3Tables();
  489. }
  490. const uint8* getGroupTable (const int16 d1, const uint32 index) const noexcept
  491. {
  492. switch (d1)
  493. {
  494. case 3: return &group3tab[3 * jmin (index, 3u * 3u * 3u)];
  495. case 5: return &group5tab[3 * jmin (index, 5u * 5u * 5u)];
  496. case 9: return &group9tab[3 * jmin (index, 9u * 9u * 9u)];
  497. default: break;
  498. }
  499. static constexpr uint8 dummy[] = { 0, 0, 0 };
  500. return dummy;
  501. }
  502. float muls[27][64];
  503. float nToThe4Over3[8207];
  504. float antiAliasingCa[8], antiAliasingCs[8];
  505. float win[4][36];
  506. float win1[4][36];
  507. float powToGains[256 + 118 + 4];
  508. int longLimit[9][23];
  509. int shortLimit[9][14];
  510. float tan1_1[16], tan2_1[16], tan1_2[16], tan2_2[16];
  511. float pow1_1[2][16], pow2_1[2][16], pow1_2[2][16], pow2_2[2][16];
  512. int* map[9][3];
  513. int* mapEnd[9][3];
  514. uint32 nLength2[512];
  515. uint32 iLength2[256];
  516. float decodeWin[512 + 32];
  517. float* cosTables[5];
  518. private:
  519. int mapbuf0[9][152];
  520. int mapbuf1[9][156];
  521. int mapbuf2[9][44];
  522. float cos64[16], cos32[8], cos16[4], cos8[2], cos4[1];
  523. uint8 group3tab[32 * 3];
  524. uint8 group5tab[128 * 3];
  525. uint8 group9tab[1024 * 3];
  526. void initDecodeTables()
  527. {
  528. int i, j, scaleval = -1;
  529. float* table = decodeWin;
  530. for (i = 0; i < 5; ++i)
  531. {
  532. int kr = 0x10 >> i;
  533. int divv = 0x40 >> i;
  534. float* costab = cosTables[i];
  535. for (int k = 0; k < kr; ++k)
  536. costab[k] = (float) (1.0 / (2.0 * std::cos (MathConstants<double>::pi * (k * 2 + 1) / divv)));
  537. }
  538. for (i = 0, j = 0; i < 256; ++i, ++j, table += 32)
  539. {
  540. if (table < decodeWin + 512 + 16)
  541. table[16] = table[0] = (float) (decodeWindow[j] * scaleval);
  542. if (i % 32 == 31)
  543. table -= 1023;
  544. if (i % 64 == 63)
  545. scaleval = -scaleval;
  546. }
  547. for (; i < 512; ++i, --j, table += 32)
  548. {
  549. if (table < decodeWin + 512 + 16)
  550. table[16] = table[0] = (float) (decodeWindow[j] * scaleval);
  551. if (i % 32 == 31) table -= 1023;
  552. if (i % 64 == 63) scaleval = -scaleval;
  553. }
  554. }
  555. void initLayer2Tables()
  556. {
  557. static const uint8 base[3][9] =
  558. {
  559. { 1, 0, 2 },
  560. { 17, 18, 0, 19, 20 },
  561. { 21, 1, 22, 23, 0, 24, 25, 2, 26 }
  562. };
  563. static constexpr int tableLengths[] = { 3, 5, 9 };
  564. static uint8* tables[] = { group3tab, group5tab, group9tab };
  565. for (int i = 0; i < 3; ++i)
  566. {
  567. uint8* table = tables[i];
  568. const int len = tableLengths[i];
  569. for (int j = 0; j < len; ++j)
  570. for (int k = 0; k < len; ++k)
  571. for (int l = 0; l < len; ++l)
  572. {
  573. *table++ = base[i][l];
  574. *table++ = base[i][k];
  575. *table++ = base[i][j];
  576. }
  577. }
  578. for (int k = 0; k < 27; ++k)
  579. {
  580. static constexpr double multipliers[] =
  581. {
  582. 0, -2.0 / 3.0, 2.0 / 3.0, 2.0 / 7.0, 2.0 / 15.0, 2.0 / 31.0, 2.0 / 63.0, 2.0 / 127.0, 2.0 / 255.0,
  583. 2.0 / 511.0, 2.0 / 1023.0, 2.0 / 2047.0, 2.0 / 4095.0, 2.0 / 8191.0, 2.0 / 16383.0, 2.0 / 32767.0, 2.0 / 65535.0,
  584. -4.0 / 5.0, -2.0 / 5.0, 2.0 / 5.0, 4.0 / 5.0, -8.0 / 9.0, -4.0 / 9.0, -2.0 / 9.0, 2.0 / 9.0, 4.0 / 9.0, 8.0 / 9.0
  585. };
  586. float* table = muls[k];
  587. for (int j = 3, i = 0; i < 63; ++i, --j)
  588. *table++ = (float) (multipliers[k] * std::pow (2.0, j / 3.0));
  589. *table++ = 0;
  590. }
  591. }
  592. void initLayer3Tables()
  593. {
  594. int i, j;
  595. for (i = -256; i < 118 + 4; ++i)
  596. powToGains[i + 256] = (float) std::pow (2.0, -0.25 * (i + 210));
  597. for (i = 0; i < 8207; ++i)
  598. nToThe4Over3[i] = (float) std::pow ((double) i, 4.0 / 3.0);
  599. for (i = 0; i < 8; ++i)
  600. {
  601. static constexpr double Ci[] = { -0.6, -0.535, -0.33, -0.185, -0.095, -0.041, -0.0142, -0.0037 };
  602. const double sq = sqrt (1.0 + Ci[i] * Ci[i]);
  603. antiAliasingCs[i] = (float) (1.0 / sq);
  604. antiAliasingCa[i] = (float) (Ci[i] / sq);
  605. }
  606. for (i = 0; i < 18; ++i)
  607. {
  608. win[0][i] = win[1][i] = (float) (0.5 * std::sin (MathConstants<double>::pi / 72.0 * (2 * i + 1)) / std::cos (MathConstants<double>::pi * (2 * i + 19) / 72.0));
  609. win[0][i + 18] = win[3][i + 18] = (float) (0.5 * std::sin (MathConstants<double>::pi / 72.0 * (2 * (i + 18) + 1)) / std::cos (MathConstants<double>::pi * (2 * (i + 18) + 19) / 72.0));
  610. }
  611. const double piOver72 = MathConstants<double>::pi / 72.0;
  612. for (i = 0; i < 6; ++i)
  613. {
  614. win[1][i + 18] = (float) (0.5 / std::cos (piOver72 * (2 * (i + 18) + 19)));
  615. win[3][i + 12] = (float) (0.5 / std::cos (piOver72 * (2 * (i + 12) + 19)));
  616. win[1][i + 24] = (float) (0.5 * std::sin (MathConstants<double>::pi / 24.0 * (2 * i + 13)) / std::cos (piOver72 * (2 * (i + 24) + 19)));
  617. win[1][i + 30] = win[3][i] = 0;
  618. win[3][i + 6] = (float) (0.5 * std::sin (MathConstants<double>::pi / 24.0 * (2 * i + 1)) / std::cos (piOver72 * (2 * (i + 6) + 19)));
  619. }
  620. for (i = 0; i < 12; ++i)
  621. win[2][i] = (float) (0.5 * std::sin (MathConstants<double>::pi / 24.0 * (2 * i + 1)) / std::cos (MathConstants<double>::pi * (2 * i + 7) / 24.0));
  622. for (j = 0; j < 4; ++j)
  623. {
  624. static constexpr int len[4] = { 36, 36, 12, 36 };
  625. for (i = 0; i < len[j]; i += 2) win1[j][i] = win[j][i];
  626. for (i = 1; i < len[j]; i += 2) win1[j][i] = -win[j][i];
  627. }
  628. const double sqrt2 = 1.41421356237309504880168872420969808;
  629. for (i = 0; i < 16; ++i)
  630. {
  631. const double t = std::tan (i * MathConstants<double>::pi / 12.0);
  632. tan1_1[i] = (float) (t / (1.0 + t));
  633. tan2_1[i] = (float) (1.0 / (1.0 + t));
  634. tan1_2[i] = (float) (sqrt2 * t / (1.0 + t));
  635. tan2_2[i] = (float) (sqrt2 / (1.0 + t));
  636. for (j = 0; j < 2; ++j)
  637. {
  638. double p1 = 1.0, p2 = 1.0;
  639. if (i > 0)
  640. {
  641. const double base = std::pow (2.0, -0.25 * (j + 1));
  642. if (i & 1)
  643. p1 = std::pow (base, (i + 1) * 0.5);
  644. else
  645. p2 = std::pow (base, i * 0.5);
  646. }
  647. pow1_1[j][i] = (float) p1;
  648. pow2_1[j][i] = (float) p2;
  649. pow1_2[j][i] = (float) (sqrt2 * p1);
  650. pow2_2[j][i] = (float) (sqrt2 * p2);
  651. }
  652. }
  653. for (j = 0; j < 9; ++j)
  654. {
  655. const BandInfoStruct& bi = bandInfo[j];
  656. int cb;
  657. int* mp = map[j][0] = mapbuf0[j];
  658. const int16* bdf = bi.longDiff;
  659. for (i = 0, cb = 0; cb < 8; ++cb, i += *bdf++)
  660. {
  661. *mp++ = (*bdf) >> 1;
  662. *mp++ = i;
  663. *mp++ = 3;
  664. *mp++ = cb;
  665. }
  666. bdf = bi.shortDiff + 3;
  667. for (cb = 3; cb < 13; ++cb)
  668. {
  669. const int l = (*bdf++) >> 1;
  670. for (int lwin = 0; lwin < 3; ++lwin)
  671. {
  672. *mp++ = l;
  673. *mp++ = i + lwin;
  674. *mp++ = lwin;
  675. *mp++ = cb;
  676. }
  677. i += 6 * l;
  678. }
  679. mapEnd[j][0] = mp;
  680. mp = map[j][1] = mapbuf1[j];
  681. bdf = bi.shortDiff;
  682. for (i = 0, cb = 0; cb < 13; ++cb)
  683. {
  684. const int l = (*bdf++) >> 1;
  685. for (int lwin = 0; lwin < 3; ++lwin)
  686. {
  687. *mp++ = l;
  688. *mp++ = i + lwin;
  689. *mp++ = lwin;
  690. *mp++ = cb;
  691. }
  692. i += 6 * l;
  693. }
  694. mapEnd[j][1] = mp;
  695. mp = map[j][2] = mapbuf2[j];
  696. bdf = bi.longDiff;
  697. for (cb = 0; cb < 22; ++cb)
  698. {
  699. *mp++ = (*bdf++) >> 1;
  700. *mp++ = cb;
  701. }
  702. mapEnd[j][2] = mp;
  703. }
  704. for (j = 0; j < 9; ++j)
  705. {
  706. for (i = 0; i < 23; ++i) longLimit[j][i] = jmin (32, (bandInfo[j].longIndex[i] - 1 + 8) / 18 + 1);
  707. for (i = 0; i < 14; ++i) shortLimit[j][i] = jmin (32, (bandInfo[j].shortIndex[i] - 1) / 18 + 1);
  708. }
  709. for (i = 0; i < 5; ++i)
  710. for (j = 0; j < 6; ++j)
  711. for (int k = 0; k < 6; ++k)
  712. {
  713. const int n = k + j * 6 + i * 36;
  714. iLength2[n] = (unsigned int) (i | (j << 3) | (k << 6) | (3 << 12));
  715. }
  716. for (i = 0; i < 4; ++i)
  717. for (j = 0; j < 4; ++j)
  718. for (int k = 0; k < 4; ++k)
  719. {
  720. const int n = k + j * 4 + i * 16;
  721. iLength2[n + 180] = (unsigned int) (i | (j << 3) | (k << 6) | (4 << 12));
  722. }
  723. for (i = 0; i < 4; ++i)
  724. for (j = 0; j < 3; ++j)
  725. {
  726. const int n = j + i * 3;
  727. iLength2[n + 244] = (unsigned int) (i | (j << 3) | (5 << 12));
  728. nLength2[n + 500] = (unsigned int) (i | (j << 3) | (2 << 12) | (1 << 15));
  729. }
  730. for (i = 0; i < 5; ++i)
  731. for (j = 0; j < 5; ++j)
  732. for (int k = 0; k < 4; ++k)
  733. for (int l = 0; l < 4; ++l)
  734. {
  735. const int n = l + k * 4 + j * 16 + i * 80;
  736. nLength2[n] = (unsigned int) (i | (j << 3) | (k << 6) | (l << 9) | (0 << 12));
  737. }
  738. for (i = 0; i < 5; ++i)
  739. for (j = 0; j < 5; ++j)
  740. for (int k = 0; k < 4; ++k)
  741. {
  742. const int n = k + j * 4 + i * 20;
  743. nLength2[n + 400] = (unsigned int) (i | (j << 3) | (k << 6) | (1 << 12));
  744. }
  745. }
  746. };
  747. static const Constants constants;
  748. //==============================================================================
  749. struct Layer3SideInfo
  750. {
  751. struct Info
  752. {
  753. void doAntialias (float xr[32][18]) const noexcept
  754. {
  755. float* xr1 = xr[1];
  756. int sb;
  757. if (blockType == 2)
  758. {
  759. if (mixedBlockFlag == 0)
  760. return;
  761. sb = 1;
  762. }
  763. else
  764. sb = (int) maxb - 1;
  765. for (; sb != 0; --sb, xr1 += 10)
  766. {
  767. auto* cs = constants.antiAliasingCs;
  768. auto* ca = constants.antiAliasingCa;
  769. auto* xr2 = xr1;
  770. for (int ss = 7; ss >= 0; --ss)
  771. {
  772. const float bu = *--xr2, bd = *xr1;
  773. *xr2 = (bu * *cs) - (bd * *ca);
  774. *xr1++ = (bd * *cs++) + (bu * *ca++);
  775. }
  776. }
  777. }
  778. void doIStereo (float xrBuffer[2][32][18], const int* scaleFactors,
  779. int sampleRate, bool msStereo, int lsf) const noexcept
  780. {
  781. float (*xr) [32 * 18] = (float (*) [32 * 18]) xrBuffer;
  782. auto& bi = bandInfo[sampleRate];
  783. const float* tabl1, *tabl2;
  784. if (lsf != 0)
  785. {
  786. auto p = scaleFactorCompression & 1;
  787. if (msStereo)
  788. {
  789. tabl1 = constants.pow1_2[p];
  790. tabl2 = constants.pow2_2[p];
  791. }
  792. else
  793. {
  794. tabl1 = constants.pow1_1[p];
  795. tabl2 = constants.pow2_1[p];
  796. }
  797. }
  798. else
  799. {
  800. if (msStereo)
  801. {
  802. tabl1 = constants.tan1_2;
  803. tabl2 = constants.tan2_2;
  804. }
  805. else
  806. {
  807. tabl1 = constants.tan1_1;
  808. tabl2 = constants.tan2_1;
  809. }
  810. }
  811. if (blockType == 2)
  812. {
  813. bool doL = mixedBlockFlag != 0;
  814. for (uint32 lwin = 0; lwin < 3; ++lwin)
  815. {
  816. uint32 sfb = maxBand[lwin];
  817. doL = doL && (sfb <= 3);
  818. for (; sfb < 12; ++sfb)
  819. {
  820. auto p = scaleFactors[sfb * 3 + lwin - mixedBlockFlag];
  821. if (p != 7)
  822. {
  823. auto t1 = tabl1[p];
  824. auto t2 = tabl2[p];
  825. int sb = bi.shortDiff[sfb];
  826. auto index = (uint32) sb + lwin;
  827. for (; sb > 0; --sb, index += 3)
  828. {
  829. float v = xr[0][index];
  830. xr[0][index] = v * t1;
  831. xr[1][index] = v * t2;
  832. }
  833. }
  834. }
  835. auto p = scaleFactors[11 * 3 + lwin - mixedBlockFlag];
  836. if (p != 7)
  837. {
  838. auto t1 = tabl1[p];
  839. auto t2 = tabl2[p];
  840. int sb = bi.shortDiff[12];
  841. auto index = (uint32) sb + lwin;
  842. for (; sb > 0; --sb, index += 3)
  843. {
  844. float v = xr[0][index];
  845. xr[0][index] = v * t1;
  846. xr[1][index] = v * t2;
  847. }
  848. }
  849. }
  850. if (doL)
  851. {
  852. int index = bi.longIndex[maxBandl];
  853. for (uint32 sfb = maxBandl; sfb < 8; ++sfb)
  854. {
  855. int sb = bi.longDiff[sfb];
  856. auto p = scaleFactors[sfb];
  857. if (p != 7)
  858. {
  859. auto t1 = tabl1[p];
  860. auto t2 = tabl2[p];
  861. for (; sb > 0; --sb, ++index)
  862. {
  863. float v = xr[0][index];
  864. xr[0][index] = v * t1;
  865. xr[1][index] = v * t2;
  866. }
  867. }
  868. else
  869. index += sb;
  870. }
  871. }
  872. }
  873. else
  874. {
  875. int index = bi.longIndex[maxBandl];
  876. for (uint32 sfb = maxBandl; sfb < 21; ++sfb)
  877. {
  878. int sb = bi.longDiff[sfb];
  879. auto p = scaleFactors[sfb];
  880. if (p != 7)
  881. {
  882. auto t1 = tabl1[p];
  883. auto t2 = tabl2[p];
  884. for (; sb > 0; --sb, ++index)
  885. {
  886. const float v = xr[0][index];
  887. xr[0][index] = v * t1;
  888. xr[1][index] = v * t2;
  889. }
  890. }
  891. else
  892. index += sb;
  893. }
  894. auto p = scaleFactors[20];
  895. if (p != 7)
  896. {
  897. auto t1 = tabl1[p], t2 = tabl2[p];
  898. for (int sb = bi.longDiff[21]; sb > 0; --sb, ++index)
  899. {
  900. const float v = xr[0][index];
  901. xr[0][index] = v * t1;
  902. xr[1][index] = v * t2;
  903. }
  904. }
  905. }
  906. }
  907. int scfsi;
  908. uint32 part2_3Length, bigValues;
  909. uint32 scaleFactorCompression, blockType, mixedBlockFlag;
  910. uint32 tableSelect[3];
  911. uint32 maxBand[3];
  912. uint32 maxBandl, maxb, region1Start, region2Start;
  913. uint32 preflag, scaleFactorScale, count1TableSelect;
  914. const float* fullGain[3];
  915. const float* pow2gain;
  916. };
  917. struct InfoPair { Info gr[2]; };
  918. InfoPair ch[2];
  919. uint32 mainDataStart, privateBits;
  920. };
  921. //==============================================================================
  922. namespace DCT
  923. {
  924. enum { subBandLimit = 32 };
  925. static constexpr float cos6_1 = 0.866025388f;
  926. static constexpr float cos6_2 = 0.5f;
  927. static constexpr float cos9[] = { 1.0f, 0.98480773f, 0.939692616f, 0.866025388f, 0.766044438f, 0.642787635f, 0.5f, 0.342020154f, 0.173648179f };
  928. static constexpr float cos36[] = { 0.501909912f, 0.517638087f, 0.551688969f, 0.610387266f, 0.707106769f, 0.871723413f, 1.18310082f, 1.93185163f, 5.73685646f };
  929. static constexpr float cos12[] = { 0.517638087f, 0.707106769f, 1.93185163f };
  930. inline void dct36_0 (int v, float* ts, float* out1, float* out2, const float* wintab, float sum0, float sum1) noexcept
  931. {
  932. auto tmp = sum0 + sum1;
  933. out2[9 + v] = tmp * wintab[27 + v];
  934. out2[8 - v] = tmp * wintab[26 - v];
  935. sum0 -= sum1;
  936. ts[subBandLimit * (8 - v)] = out1[8 - v] + sum0 * wintab[8 - v];
  937. ts[subBandLimit * (9 + v)] = out1[9 + v] + sum0 * wintab[9 + v];
  938. }
  939. inline void dct36_12 (int v1, int v2, float* ts, float* out1, float* out2, const float* wintab,
  940. float tmp1a, float tmp1b, float tmp2a, float tmp2b) noexcept
  941. {
  942. dct36_0 (v1, ts, out1, out2, wintab, tmp1a + tmp2a, (tmp1b + tmp2b) * cos36[v1]);
  943. dct36_0 (v2, ts, out1, out2, wintab, tmp2a - tmp1a, (tmp2b - tmp1b) * cos36[v2]);
  944. }
  945. static void dct36 (float* in, float* out1, float* out2, const float* wintab, float* ts) noexcept
  946. {
  947. in[17] += in[16]; in[16] += in[15]; in[15] += in[14]; in[14] += in[13]; in[13] += in[12];
  948. in[12] += in[11]; in[11] += in[10]; in[10] += in[9]; in[9] += in[8]; in[8] += in[7];
  949. in[7] += in[6]; in[6] += in[5]; in[5] += in[4]; in[4] += in[3]; in[3] += in[2];
  950. in[2] += in[1]; in[1] += in[0]; in[17] += in[15]; in[15] += in[13]; in[13] += in[11];
  951. in[11] += in[9]; in[9] += in[7]; in[7] += in[5]; in[5] += in[3]; in[3] += in[1];
  952. auto ta33 = in[6] * cos9[3];
  953. auto ta66 = in[12] * cos9[6];
  954. auto tb33 = in[7] * cos9[3];
  955. auto tb66 = in[13] * cos9[6];
  956. dct36_12 (0, 8, ts, out1, out2, wintab,
  957. in[2] * cos9[1] + ta33 + in[10] * cos9[5] + in[14] * cos9[7],
  958. in[3] * cos9[1] + tb33 + in[11] * cos9[5] + in[15] * cos9[7],
  959. in[0] + in[4] * cos9[2] + in[8] * cos9[4] + ta66 + in[16] * cos9[8],
  960. in[1] + in[5] * cos9[2] + in[9] * cos9[4] + tb66 + in[17] * cos9[8]);
  961. dct36_12 (1, 7, ts, out1, out2, wintab,
  962. (in[2] - in[10] - in[14]) * cos9[3],
  963. (in[3] - in[11] - in[15]) * cos9[3],
  964. (in[4] - in[8] - in[16]) * cos9[6] - in[12] + in[0],
  965. (in[5] - in[9] - in[17]) * cos9[6] - in[13] + in[1]);
  966. dct36_12 (2, 6, ts, out1, out2, wintab,
  967. in[2] * cos9[5] - ta33 - in[10] * cos9[7] + in[14] * cos9[1],
  968. in[3] * cos9[5] - tb33 - in[11] * cos9[7] + in[15] * cos9[1],
  969. in[0] - in[4] * cos9[8] - in[8] * cos9[2] + ta66 + in[16] * cos9[4],
  970. in[1] - in[5] * cos9[8] - in[9] * cos9[2] + tb66 + in[17] * cos9[4]);
  971. dct36_12 (3, 5, ts, out1, out2, wintab,
  972. in[2] * cos9[7] - ta33 + in[10] * cos9[1] - in[14] * cos9[5],
  973. in[3] * cos9[7] - tb33 + in[11] * cos9[1] - in[15] * cos9[5],
  974. in[0] - in[4] * cos9[4] + in[8] * cos9[8] + ta66 - in[16] * cos9[2],
  975. in[1] - in[5] * cos9[4] + in[9] * cos9[8] + tb66 - in[17] * cos9[2]);
  976. dct36_0 (4, ts, out1, out2, wintab,
  977. in[0] - in[4] + in[8] - in[12] + in[16],
  978. (in[1] - in[5] + in[9] - in[13] + in[17]) * cos36[4]);
  979. }
  980. struct DCT12Inputs
  981. {
  982. float in0, in1, in2, in3, in4, in5;
  983. inline DCT12Inputs (const float* in) noexcept
  984. {
  985. in5 = in[5 * 3] + (in4 = in[4 * 3]);
  986. in4 += (in3 = in[3 * 3]);
  987. in3 += (in2 = in[2 * 3]);
  988. in2 += (in1 = in[1 * 3]);
  989. in1 += (in0 = in[0 * 3]);
  990. in5 += in3; in3 += in1;
  991. in2 *= cos6_1;
  992. in3 *= cos6_1;
  993. }
  994. inline void process() noexcept
  995. {
  996. in0 += in4 * cos6_2;
  997. in4 = in0 + in2; in0 -= in2;
  998. in1 += in5 * cos6_2;
  999. in5 = (in1 + in3) * cos12[0];
  1000. in1 = (in1 - in3) * cos12[2];
  1001. in3 = in4 + in5; in4 -= in5;
  1002. in2 = in0 + in1; in0 -= in1;
  1003. }
  1004. };
  1005. static void dct12 (const float* in, float* out1, float* out2, const float* wi, float* ts) noexcept
  1006. {
  1007. {
  1008. ts[0] = out1[0];
  1009. ts[subBandLimit * 1] = out1[1];
  1010. ts[subBandLimit * 2] = out1[2];
  1011. ts[subBandLimit * 3] = out1[3];
  1012. ts[subBandLimit * 4] = out1[4];
  1013. ts[subBandLimit * 5] = out1[5];
  1014. DCT12Inputs inputs (in);
  1015. {
  1016. auto tmp1 = (inputs.in0 - inputs.in4);
  1017. auto tmp2 = (inputs.in1 - inputs.in5) * cos12[1];
  1018. auto tmp0 = tmp1 + tmp2;
  1019. tmp1 -= tmp2;
  1020. ts[16 * subBandLimit] = out1[16] + tmp0 * wi[10];
  1021. ts[13 * subBandLimit] = out1[13] + tmp0 * wi[7];
  1022. ts[7 * subBandLimit] = out1[7] + tmp1 * wi[1];
  1023. ts[10 * subBandLimit] = out1[10] + tmp1 * wi[4];
  1024. }
  1025. inputs.process();
  1026. ts[17 * subBandLimit] = out1[17] + inputs.in2 * wi[11];
  1027. ts[12 * subBandLimit] = out1[12] + inputs.in2 * wi[6];
  1028. ts[14 * subBandLimit] = out1[14] + inputs.in3 * wi[8];
  1029. ts[15 * subBandLimit] = out1[15] + inputs.in3 * wi[9];
  1030. ts[6 * subBandLimit] = out1[6] + inputs.in0 * wi[0];
  1031. ts[11 * subBandLimit] = out1[11] + inputs.in0 * wi[5];
  1032. ts[8 * subBandLimit] = out1[8] + inputs.in4 * wi[2];
  1033. ts[9 * subBandLimit] = out1[9] + inputs.in4 * wi[3];
  1034. }
  1035. {
  1036. DCT12Inputs inputs (++in);
  1037. auto tmp1 = (inputs.in0 - inputs.in4);
  1038. auto tmp2 = (inputs.in1 - inputs.in5) * cos12[1];
  1039. auto tmp0 = tmp1 + tmp2;
  1040. tmp1 -= tmp2;
  1041. out2[4] = tmp0 * wi[10];
  1042. out2[1] = tmp0 * wi[7];
  1043. ts[13 * subBandLimit] += tmp1 * wi[1];
  1044. ts[16 * subBandLimit] += tmp1 * wi[4];
  1045. inputs.process();
  1046. out2[5] = inputs.in2 * wi[11];
  1047. out2[0] = inputs.in2 * wi[6];
  1048. out2[2] = inputs.in3 * wi[8];
  1049. out2[3] = inputs.in3 * wi[9];
  1050. ts[12 * subBandLimit] += inputs.in0 * wi[0];
  1051. ts[17 * subBandLimit] += inputs.in0 * wi[5];
  1052. ts[14 * subBandLimit] += inputs.in4 * wi[2];
  1053. ts[15 * subBandLimit] += inputs.in4 * wi[5 - 2];
  1054. }
  1055. {
  1056. DCT12Inputs inputs (++in);
  1057. out2[12] = out2[13] = out2[14] = out2[15] = out2[16] = out2[17] = 0;
  1058. auto tmp1 = (inputs.in0 - inputs.in4);
  1059. auto tmp2 = (inputs.in1 - inputs.in5) * cos12[1];
  1060. auto tmp0 = tmp1 + tmp2;
  1061. tmp1 -= tmp2;
  1062. out2[10] = tmp0 * wi[10];
  1063. out2[7] = tmp0 * wi[7];
  1064. out2[1] += tmp1 * wi[1];
  1065. out2[4] += tmp1 * wi[4];
  1066. inputs.process();
  1067. out2[11] = inputs.in2 * wi[11];
  1068. out2[6] = inputs.in2 * wi[6];
  1069. out2[8] = inputs.in3 * wi[8];
  1070. out2[9] = inputs.in3 * wi[9];
  1071. out2[0] += inputs.in0 * wi[0];
  1072. out2[5] += inputs.in0 * wi[5];
  1073. out2[2] += inputs.in4 * wi[2];
  1074. out2[3] += inputs.in4 * wi[3];
  1075. }
  1076. }
  1077. static void dct64 (float* out0, float* out1, const float* samples) noexcept
  1078. {
  1079. float b1[32], b2[32];
  1080. {
  1081. auto* costab = constants.cosTables[0];
  1082. b1[0x00] = samples[0x00] + samples[0x1F]; b1[0x1F] = (samples[0x00] - samples[0x1F]) * costab[0x0];
  1083. b1[0x01] = samples[0x01] + samples[0x1E]; b1[0x1E] = (samples[0x01] - samples[0x1E]) * costab[0x1];
  1084. b1[0x02] = samples[0x02] + samples[0x1D]; b1[0x1D] = (samples[0x02] - samples[0x1D]) * costab[0x2];
  1085. b1[0x03] = samples[0x03] + samples[0x1C]; b1[0x1C] = (samples[0x03] - samples[0x1C]) * costab[0x3];
  1086. b1[0x04] = samples[0x04] + samples[0x1B]; b1[0x1B] = (samples[0x04] - samples[0x1B]) * costab[0x4];
  1087. b1[0x05] = samples[0x05] + samples[0x1A]; b1[0x1A] = (samples[0x05] - samples[0x1A]) * costab[0x5];
  1088. b1[0x06] = samples[0x06] + samples[0x19]; b1[0x19] = (samples[0x06] - samples[0x19]) * costab[0x6];
  1089. b1[0x07] = samples[0x07] + samples[0x18]; b1[0x18] = (samples[0x07] - samples[0x18]) * costab[0x7];
  1090. b1[0x08] = samples[0x08] + samples[0x17]; b1[0x17] = (samples[0x08] - samples[0x17]) * costab[0x8];
  1091. b1[0x09] = samples[0x09] + samples[0x16]; b1[0x16] = (samples[0x09] - samples[0x16]) * costab[0x9];
  1092. b1[0x0A] = samples[0x0A] + samples[0x15]; b1[0x15] = (samples[0x0A] - samples[0x15]) * costab[0xA];
  1093. b1[0x0B] = samples[0x0B] + samples[0x14]; b1[0x14] = (samples[0x0B] - samples[0x14]) * costab[0xB];
  1094. b1[0x0C] = samples[0x0C] + samples[0x13]; b1[0x13] = (samples[0x0C] - samples[0x13]) * costab[0xC];
  1095. b1[0x0D] = samples[0x0D] + samples[0x12]; b1[0x12] = (samples[0x0D] - samples[0x12]) * costab[0xD];
  1096. b1[0x0E] = samples[0x0E] + samples[0x11]; b1[0x11] = (samples[0x0E] - samples[0x11]) * costab[0xE];
  1097. b1[0x0F] = samples[0x0F] + samples[0x10]; b1[0x10] = (samples[0x0F] - samples[0x10]) * costab[0xF];
  1098. }
  1099. {
  1100. auto* costab = constants.cosTables[1];
  1101. b2[0x00] = b1[0x00] + b1[0x0F]; b2[0x0F] = (b1[0x00] - b1[0x0F]) * costab[0];
  1102. b2[0x01] = b1[0x01] + b1[0x0E]; b2[0x0E] = (b1[0x01] - b1[0x0E]) * costab[1];
  1103. b2[0x02] = b1[0x02] + b1[0x0D]; b2[0x0D] = (b1[0x02] - b1[0x0D]) * costab[2];
  1104. b2[0x03] = b1[0x03] + b1[0x0C]; b2[0x0C] = (b1[0x03] - b1[0x0C]) * costab[3];
  1105. b2[0x04] = b1[0x04] + b1[0x0B]; b2[0x0B] = (b1[0x04] - b1[0x0B]) * costab[4];
  1106. b2[0x05] = b1[0x05] + b1[0x0A]; b2[0x0A] = (b1[0x05] - b1[0x0A]) * costab[5];
  1107. b2[0x06] = b1[0x06] + b1[0x09]; b2[0x09] = (b1[0x06] - b1[0x09]) * costab[6];
  1108. b2[0x07] = b1[0x07] + b1[0x08]; b2[0x08] = (b1[0x07] - b1[0x08]) * costab[7];
  1109. b2[0x10] = b1[0x10] + b1[0x1F]; b2[0x1F] = (b1[0x1F] - b1[0x10]) * costab[0];
  1110. b2[0x11] = b1[0x11] + b1[0x1E]; b2[0x1E] = (b1[0x1E] - b1[0x11]) * costab[1];
  1111. b2[0x12] = b1[0x12] + b1[0x1D]; b2[0x1D] = (b1[0x1D] - b1[0x12]) * costab[2];
  1112. b2[0x13] = b1[0x13] + b1[0x1C]; b2[0x1C] = (b1[0x1C] - b1[0x13]) * costab[3];
  1113. b2[0x14] = b1[0x14] + b1[0x1B]; b2[0x1B] = (b1[0x1B] - b1[0x14]) * costab[4];
  1114. b2[0x15] = b1[0x15] + b1[0x1A]; b2[0x1A] = (b1[0x1A] - b1[0x15]) * costab[5];
  1115. b2[0x16] = b1[0x16] + b1[0x19]; b2[0x19] = (b1[0x19] - b1[0x16]) * costab[6];
  1116. b2[0x17] = b1[0x17] + b1[0x18]; b2[0x18] = (b1[0x18] - b1[0x17]) * costab[7];
  1117. }
  1118. {
  1119. auto* costab = constants.cosTables[2];
  1120. b1[0x00] = b2[0x00] + b2[0x07]; b1[0x07] = (b2[0x00] - b2[0x07]) * costab[0];
  1121. b1[0x01] = b2[0x01] + b2[0x06]; b1[0x06] = (b2[0x01] - b2[0x06]) * costab[1];
  1122. b1[0x02] = b2[0x02] + b2[0x05]; b1[0x05] = (b2[0x02] - b2[0x05]) * costab[2];
  1123. b1[0x03] = b2[0x03] + b2[0x04]; b1[0x04] = (b2[0x03] - b2[0x04]) * costab[3];
  1124. b1[0x08] = b2[0x08] + b2[0x0F]; b1[0x0F] = (b2[0x0F] - b2[0x08]) * costab[0];
  1125. b1[0x09] = b2[0x09] + b2[0x0E]; b1[0x0E] = (b2[0x0E] - b2[0x09]) * costab[1];
  1126. b1[0x0A] = b2[0x0A] + b2[0x0D]; b1[0x0D] = (b2[0x0D] - b2[0x0A]) * costab[2];
  1127. b1[0x0B] = b2[0x0B] + b2[0x0C]; b1[0x0C] = (b2[0x0C] - b2[0x0B]) * costab[3];
  1128. b1[0x10] = b2[0x10] + b2[0x17]; b1[0x17] = (b2[0x10] - b2[0x17]) * costab[0];
  1129. b1[0x11] = b2[0x11] + b2[0x16]; b1[0x16] = (b2[0x11] - b2[0x16]) * costab[1];
  1130. b1[0x12] = b2[0x12] + b2[0x15]; b1[0x15] = (b2[0x12] - b2[0x15]) * costab[2];
  1131. b1[0x13] = b2[0x13] + b2[0x14]; b1[0x14] = (b2[0x13] - b2[0x14]) * costab[3];
  1132. b1[0x18] = b2[0x18] + b2[0x1F]; b1[0x1F] = (b2[0x1F] - b2[0x18]) * costab[0];
  1133. b1[0x19] = b2[0x19] + b2[0x1E]; b1[0x1E] = (b2[0x1E] - b2[0x19]) * costab[1];
  1134. b1[0x1A] = b2[0x1A] + b2[0x1D]; b1[0x1D] = (b2[0x1D] - b2[0x1A]) * costab[2];
  1135. b1[0x1B] = b2[0x1B] + b2[0x1C]; b1[0x1C] = (b2[0x1C] - b2[0x1B]) * costab[3];
  1136. }
  1137. {
  1138. auto cos0 = constants.cosTables[3][0];
  1139. auto cos1 = constants.cosTables[3][1];
  1140. b2[0x00] = b1[0x00] + b1[0x03]; b2[0x03] = (b1[0x00] - b1[0x03]) * cos0;
  1141. b2[0x01] = b1[0x01] + b1[0x02]; b2[0x02] = (b1[0x01] - b1[0x02]) * cos1;
  1142. b2[0x04] = b1[0x04] + b1[0x07]; b2[0x07] = (b1[0x07] - b1[0x04]) * cos0;
  1143. b2[0x05] = b1[0x05] + b1[0x06]; b2[0x06] = (b1[0x06] - b1[0x05]) * cos1;
  1144. b2[0x08] = b1[0x08] + b1[0x0B]; b2[0x0B] = (b1[0x08] - b1[0x0B]) * cos0;
  1145. b2[0x09] = b1[0x09] + b1[0x0A]; b2[0x0A] = (b1[0x09] - b1[0x0A]) * cos1;
  1146. b2[0x0C] = b1[0x0C] + b1[0x0F]; b2[0x0F] = (b1[0x0F] - b1[0x0C]) * cos0;
  1147. b2[0x0D] = b1[0x0D] + b1[0x0E]; b2[0x0E] = (b1[0x0E] - b1[0x0D]) * cos1;
  1148. b2[0x10] = b1[0x10] + b1[0x13]; b2[0x13] = (b1[0x10] - b1[0x13]) * cos0;
  1149. b2[0x11] = b1[0x11] + b1[0x12]; b2[0x12] = (b1[0x11] - b1[0x12]) * cos1;
  1150. b2[0x14] = b1[0x14] + b1[0x17]; b2[0x17] = (b1[0x17] - b1[0x14]) * cos0;
  1151. b2[0x15] = b1[0x15] + b1[0x16]; b2[0x16] = (b1[0x16] - b1[0x15]) * cos1;
  1152. b2[0x18] = b1[0x18] + b1[0x1B]; b2[0x1B] = (b1[0x18] - b1[0x1B]) * cos0;
  1153. b2[0x19] = b1[0x19] + b1[0x1A]; b2[0x1A] = (b1[0x19] - b1[0x1A]) * cos1;
  1154. b2[0x1C] = b1[0x1C] + b1[0x1F]; b2[0x1F] = (b1[0x1F] - b1[0x1C]) * cos0;
  1155. b2[0x1D] = b1[0x1D] + b1[0x1E]; b2[0x1E] = (b1[0x1E] - b1[0x1D]) * cos1;
  1156. }
  1157. {
  1158. auto cos0 = constants.cosTables[4][0];
  1159. b1[0x00] = b2[0x00] + b2[0x01]; b1[0x01] = (b2[0x00] - b2[0x01]) * cos0;
  1160. b1[0x02] = b2[0x02] + b2[0x03]; b1[0x03] = (b2[0x03] - b2[0x02]) * cos0; b1[0x02] += b1[0x03];
  1161. b1[0x04] = b2[0x04] + b2[0x05]; b1[0x05] = (b2[0x04] - b2[0x05]) * cos0;
  1162. b1[0x06] = b2[0x06] + b2[0x07]; b1[0x07] = (b2[0x07] - b2[0x06]) * cos0;
  1163. b1[0x06] += b1[0x07]; b1[0x04] += b1[0x06]; b1[0x06] += b1[0x05]; b1[0x05] += b1[0x07];
  1164. b1[0x08] = b2[0x08] + b2[0x09]; b1[0x09] = (b2[0x08] - b2[0x09]) * cos0;
  1165. b1[0x0A] = b2[0x0A] + b2[0x0B]; b1[0x0B] = (b2[0x0B] - b2[0x0A]) * cos0; b1[0x0A] += b1[0x0B];
  1166. b1[0x0C] = b2[0x0C] + b2[0x0D]; b1[0x0D] = (b2[0x0C] - b2[0x0D]) * cos0;
  1167. b1[0x0E] = b2[0x0E] + b2[0x0F]; b1[0x0F] = (b2[0x0F] - b2[0x0E]) * cos0;
  1168. b1[0x0E] += b1[0x0F]; b1[0x0C] += b1[0x0E]; b1[0x0E] += b1[0x0D]; b1[0x0D] += b1[0x0F];
  1169. b1[0x10] = b2[0x10] + b2[0x11]; b1[0x11] = (b2[0x10] - b2[0x11]) * cos0;
  1170. b1[0x12] = b2[0x12] + b2[0x13]; b1[0x13] = (b2[0x13] - b2[0x12]) * cos0; b1[0x12] += b1[0x13];
  1171. b1[0x14] = b2[0x14] + b2[0x15]; b1[0x15] = (b2[0x14] - b2[0x15]) * cos0;
  1172. b1[0x16] = b2[0x16] + b2[0x17]; b1[0x17] = (b2[0x17] - b2[0x16]) * cos0;
  1173. b1[0x16] += b1[0x17]; b1[0x14] += b1[0x16]; b1[0x16] += b1[0x15]; b1[0x15] += b1[0x17];
  1174. b1[0x18] = b2[0x18] + b2[0x19]; b1[0x19] = (b2[0x18] - b2[0x19]) * cos0;
  1175. b1[0x1A] = b2[0x1A] + b2[0x1B]; b1[0x1B] = (b2[0x1B] - b2[0x1A]) * cos0; b1[0x1A] += b1[0x1B];
  1176. b1[0x1C] = b2[0x1C] + b2[0x1D]; b1[0x1D] = (b2[0x1C] - b2[0x1D]) * cos0;
  1177. b1[0x1E] = b2[0x1E] + b2[0x1F]; b1[0x1F] = (b2[0x1F] - b2[0x1E]) * cos0;
  1178. b1[0x1E] += b1[0x1F]; b1[0x1C] += b1[0x1E]; b1[0x1E] += b1[0x1D]; b1[0x1D] += b1[0x1F];
  1179. }
  1180. out0[0x10 * 16] = b1[0x00]; out0[0x10 * 12] = b1[0x04]; out0[0x10 * 8] = b1[0x02]; out0[0x10 * 4] = b1[0x06];
  1181. out0[0] = b1[0x01]; out1[0] = b1[0x01]; out1[0x10 * 4] = b1[0x05]; out1[0x10 * 8] = b1[0x03];
  1182. out1[0x10 * 12] = b1[0x07];
  1183. b1[0x08] += b1[0x0C]; out0[0x10 * 14] = b1[0x08]; b1[0x0C] += b1[0x0a]; out0[0x10 * 10] = b1[0x0C];
  1184. b1[0x0A] += b1[0x0E]; out0[0x10 * 6] = b1[0x0A]; b1[0x0E] += b1[0x09]; out0[0x10 * 2] = b1[0x0E];
  1185. b1[0x09] += b1[0x0D]; out1[0x10 * 2] = b1[0x09]; b1[0x0D] += b1[0x0B]; out1[0x10 * 6] = b1[0x0D];
  1186. b1[0x0B] += b1[0x0F]; out1[0x10 * 10] = b1[0x0B]; out1[0x10 * 14] = b1[0x0F];
  1187. b1[0x18] += b1[0x1C]; out0[0x10 * 15] = b1[0x10] + b1[0x18]; out0[0x10 * 13] = b1[0x18] + b1[0x14];
  1188. b1[0x1C] += b1[0x1a]; out0[0x10 * 11] = b1[0x14] + b1[0x1C]; out0[0x10 * 9] = b1[0x1C] + b1[0x12];
  1189. b1[0x1A] += b1[0x1E]; out0[0x10 * 7] = b1[0x12] + b1[0x1A]; out0[0x10 * 5] = b1[0x1A] + b1[0x16];
  1190. b1[0x1E] += b1[0x19]; out0[0x10 * 3] = b1[0x16] + b1[0x1E]; out0[0x10 * 1] = b1[0x1E] + b1[0x11];
  1191. b1[0x19] += b1[0x1D]; out1[0x10 * 1] = b1[0x11] + b1[0x19]; out1[0x10 * 3] = b1[0x19] + b1[0x15];
  1192. b1[0x1D] += b1[0x1B]; out1[0x10 * 5] = b1[0x15] + b1[0x1D]; out1[0x10 * 7] = b1[0x1D] + b1[0x13];
  1193. b1[0x1B] += b1[0x1F]; out1[0x10 * 9] = b1[0x13] + b1[0x1B]; out1[0x10 * 11] = b1[0x1B] + b1[0x17];
  1194. out1[0x10 * 13] = b1[0x17] + b1[0x1F]; out1[0x10 * 15] = b1[0x1F];
  1195. }
  1196. }
  1197. //==============================================================================
  1198. struct MP3Stream
  1199. {
  1200. MP3Stream (InputStream& source) : stream (source, 8192)
  1201. {
  1202. reset();
  1203. }
  1204. int decodeNextBlock (float* out0, float* out1, int& done)
  1205. {
  1206. if (! headerParsed)
  1207. {
  1208. auto nextFrameOffset = scanForNextFrameHeader (false);
  1209. if (lastFrameSize == -1 || needToSyncBitStream)
  1210. {
  1211. needToSyncBitStream = false;
  1212. readVBRHeader();
  1213. if (vbrHeaderFound)
  1214. return 1;
  1215. }
  1216. if (nextFrameOffset < 0)
  1217. return -1;
  1218. if (nextFrameOffset > 0)
  1219. {
  1220. wasFreeFormat = false;
  1221. needToSyncBitStream = true;
  1222. auto size = (int) (bufferPointer - (bufferSpace[bufferSpaceIndex] + 512));
  1223. if (size > 2880)
  1224. {
  1225. size = 0;
  1226. bufferPointer = bufferSpace[bufferSpaceIndex] + 512;
  1227. }
  1228. auto toSkip = (size + nextFrameOffset) - 2880;
  1229. if (toSkip > 0)
  1230. {
  1231. stream.skipNextBytes (toSkip);
  1232. nextFrameOffset -= toSkip;
  1233. }
  1234. stream.read (bufferPointer, nextFrameOffset);
  1235. lastFrameSize += nextFrameOffset;
  1236. }
  1237. frame.decodeHeader ((uint32) stream.readIntBigEndian());
  1238. headerParsed = true;
  1239. frameSize = frame.frameSize;
  1240. isFreeFormat = (frameSize == 0);
  1241. sideInfoSize = frame.lsf != 0 ? ((frame.numChannels == 1) ? 9 : 17)
  1242. : ((frame.numChannels == 1) ? 17 : 32);
  1243. if (frame.crc16FollowsHeader)
  1244. sideInfoSize += 2;
  1245. bufferSpaceIndex = 1 - bufferSpaceIndex;
  1246. bufferPointer = bufferSpace[bufferSpaceIndex] + 512;
  1247. bitIndex = 0;
  1248. if (lastFrameSize < 0)
  1249. return 1;
  1250. }
  1251. if (! sideParsed)
  1252. {
  1253. if (frame.layer == 3)
  1254. {
  1255. stream.read (bufferPointer, sideInfoSize);
  1256. if (frame.crc16FollowsHeader)
  1257. getBits (16);
  1258. auto bits = jmax (0, decodeLayer3SideInfo());
  1259. dataSize = (bits + 7) / 8;
  1260. if (! isFreeFormat)
  1261. dataSize = jmin (dataSize, frame.frameSize - sideInfoSize);
  1262. }
  1263. else
  1264. {
  1265. dataSize = frame.frameSize;
  1266. sideInfoSize = 0;
  1267. }
  1268. sideParsed = true;
  1269. }
  1270. int result = 1;
  1271. if (! dataParsed)
  1272. {
  1273. stream.read (bufferPointer, dataSize);
  1274. if (out0 != nullptr)
  1275. {
  1276. if (frame.layer < 3 && frame.crc16FollowsHeader)
  1277. getBits (16);
  1278. switch (frame.layer)
  1279. {
  1280. case 1: decodeLayer1Frame (out0, out1, done); break;
  1281. case 2: decodeLayer2Frame (out0, out1, done); break;
  1282. case 3: decodeLayer3Frame (out0, out1, done); break;
  1283. default: break;
  1284. }
  1285. }
  1286. bufferPointer = bufferSpace[bufferSpaceIndex] + 512 + sideInfoSize + dataSize;
  1287. dataParsed = true;
  1288. result = 0;
  1289. }
  1290. if (isFreeFormat)
  1291. {
  1292. if (wasFreeFormat)
  1293. {
  1294. frameSize = lastFrameSizeNoPadding + frame.padding;
  1295. }
  1296. else
  1297. {
  1298. auto nextFrameOffset = scanForNextFrameHeader (true);
  1299. wasFreeFormat = isFreeFormat;
  1300. if (nextFrameOffset < 0)
  1301. {
  1302. lastFrameSize = frameSize;
  1303. return result;
  1304. }
  1305. frameSize = nextFrameOffset + sideInfoSize + dataSize;
  1306. lastFrameSizeNoPadding = frameSize - frame.padding;
  1307. }
  1308. }
  1309. if (result == 0)
  1310. return result;
  1311. int bytes = frameSize - (sideInfoSize + dataSize);
  1312. if (bytes > 0)
  1313. {
  1314. auto toSkip = bytes - 512;
  1315. if (toSkip > 0)
  1316. {
  1317. stream.skipNextBytes (toSkip);
  1318. bytes -= toSkip;
  1319. frameSize -= toSkip;
  1320. }
  1321. stream.read (bufferPointer, bytes);
  1322. bufferPointer += bytes;
  1323. }
  1324. lastFrameSize = frameSize;
  1325. wasFreeFormat = isFreeFormat;
  1326. frameSize = 0;
  1327. headerParsed = sideParsed = dataParsed = false;
  1328. return result;
  1329. }
  1330. bool seek (int frameIndex)
  1331. {
  1332. frameIndex = jmax (0, frameIndex);
  1333. while (frameIndex >= frameStreamPositions.size() * storedStartPosInterval)
  1334. {
  1335. int dummy = 0;
  1336. auto result = decodeNextBlock (nullptr, nullptr, dummy);
  1337. if (result < 0)
  1338. return false;
  1339. if (result > 0)
  1340. break;
  1341. }
  1342. frameIndex = jmin (frameIndex & ~(storedStartPosInterval - 1),
  1343. (frameStreamPositions.size() - 1) * storedStartPosInterval);
  1344. stream.setPosition (frameStreamPositions.getUnchecked (frameIndex / storedStartPosInterval));
  1345. currentFrameIndex = frameIndex;
  1346. reset();
  1347. return true;
  1348. }
  1349. MP3Frame frame;
  1350. VBRTagData vbrTagData;
  1351. BufferedInputStream stream;
  1352. int numFrames = 0, currentFrameIndex = 0;
  1353. bool vbrHeaderFound = false;
  1354. private:
  1355. bool headerParsed, sideParsed, dataParsed, needToSyncBitStream;
  1356. bool isFreeFormat, wasFreeFormat;
  1357. int sideInfoSize, dataSize;
  1358. int frameSize, lastFrameSize, lastFrameSizeNoPadding;
  1359. int bufferSpaceIndex;
  1360. Layer3SideInfo sideinfo;
  1361. uint8 bufferSpace[2][2880 + 1024];
  1362. uint8* bufferPointer;
  1363. int bitIndex, synthBo;
  1364. float hybridBlock[2][2][32 * 18];
  1365. int hybridBlockIndex[2];
  1366. float synthBuffers[2][2][0x110];
  1367. float hybridIn[2][32][18];
  1368. float hybridOut[2][18][32];
  1369. void reset() noexcept
  1370. {
  1371. headerParsed = sideParsed = dataParsed = isFreeFormat = wasFreeFormat = false;
  1372. lastFrameSize = -1;
  1373. needToSyncBitStream = true;
  1374. frameSize = sideInfoSize = dataSize = bitIndex = 0;
  1375. lastFrameSizeNoPadding = bufferSpaceIndex = 0;
  1376. bufferPointer = bufferSpace[bufferSpaceIndex] + 512;
  1377. synthBo = 1;
  1378. zerostruct (sideinfo);
  1379. zeromem (bufferSpace, sizeof (bufferSpace));
  1380. zeromem (hybridBlock, sizeof (hybridBlock));
  1381. zeromem (hybridBlockIndex, sizeof (hybridBlockIndex));
  1382. zeromem (synthBuffers, sizeof (synthBuffers));
  1383. }
  1384. enum { storedStartPosInterval = 4 };
  1385. Array<int64> frameStreamPositions;
  1386. struct SideInfoLayer1
  1387. {
  1388. uint8 allocation[32][2];
  1389. uint8 scaleFactor[32][2];
  1390. };
  1391. struct SideInfoLayer2
  1392. {
  1393. uint8 allocation[32][2];
  1394. uint8 scaleFactor[32][2][3];
  1395. };
  1396. static bool isValidHeader (uint32 header, int oldLayer) noexcept
  1397. {
  1398. auto newLayer = (int) (4 - ((header >> 17) & 3));
  1399. return (header & 0xffe00000) == 0xffe00000
  1400. && newLayer != 4
  1401. && (oldLayer <= 0 || newLayer == oldLayer)
  1402. && ((header >> 12) & 15) != 15
  1403. && ((header >> 10) & 3) != 3
  1404. && (header & 3) != 2;
  1405. }
  1406. bool rollBackBufferPointer (int backstep) noexcept
  1407. {
  1408. if (lastFrameSize < 0 && backstep > 0)
  1409. return false;
  1410. auto* oldBuffer = bufferSpace[1 - bufferSpaceIndex] + 512;
  1411. bufferPointer -= backstep;
  1412. if (backstep != 0)
  1413. memcpy (bufferPointer, oldBuffer + lastFrameSize - backstep, (size_t) backstep);
  1414. bitIndex = 0;
  1415. return true;
  1416. }
  1417. uint32 getBits (int numBits) noexcept
  1418. {
  1419. if (numBits <= 0 || bufferPointer == nullptr)
  1420. return 0;
  1421. const auto result = (uint32) (((((((bufferPointer[0] << 8) | bufferPointer[1]) << 8)
  1422. | bufferPointer[2]) << bitIndex) & 0xffffff) >> (24 - numBits));
  1423. bitIndex += numBits;
  1424. bufferPointer += (bitIndex >> 3);
  1425. bitIndex &= 7;
  1426. return result;
  1427. }
  1428. uint32 getOneBit() noexcept
  1429. {
  1430. auto result = (uint8) (*bufferPointer << bitIndex);
  1431. ++bitIndex;
  1432. bufferPointer += (bitIndex >> 3);
  1433. bitIndex &= 7;
  1434. return (uint32) (result >> 7);
  1435. }
  1436. uint32 getBitsUnchecked (int numBits) noexcept
  1437. {
  1438. const auto result = (uint32) (((((bufferPointer[0] << 8) | bufferPointer[1]) << bitIndex) & 0xffff) >> (16 - numBits));
  1439. bitIndex += numBits;
  1440. bufferPointer += (bitIndex >> 3);
  1441. bitIndex &= 7;
  1442. return result;
  1443. }
  1444. inline uint8 getBitsUint8 (int numBits) noexcept { return (uint8) getBitsUnchecked (numBits); }
  1445. inline uint16 getBitsUint16 (int numBits) noexcept { return (uint16) getBitsUnchecked (numBits); }
  1446. int scanForNextFrameHeader (bool checkTypeAgainstLastFrame) noexcept
  1447. {
  1448. auto oldPos = stream.getPosition();
  1449. int offset = -3;
  1450. uint32 header = 0;
  1451. for (;;)
  1452. {
  1453. if (stream.isExhausted() || stream.getPosition() > oldPos + 32768)
  1454. {
  1455. offset = -1;
  1456. break;
  1457. }
  1458. header = (header << 8) | (uint8) stream.readByte();
  1459. if (offset >= 0 && isValidHeader (header, frame.layer))
  1460. {
  1461. if (! checkTypeAgainstLastFrame)
  1462. break;
  1463. const bool mpeg25 = (header & (1 << 20)) == 0;
  1464. const uint32 lsf = mpeg25 ? 1 : ((header & (1 << 19)) ? 0 : 1);
  1465. const uint32 sampleRateIndex = mpeg25 ? (6 + ((header >> 10) & 3)) : (((header >> 10) & 3) + (lsf * 3));
  1466. const uint32 mode = (header >> 6) & 3;
  1467. const uint32 numChannels = (mode == 3) ? 1 : 2;
  1468. if (numChannels == (uint32) frame.numChannels && lsf == (uint32) frame.lsf
  1469. && mpeg25 == frame.mpeg25 && sampleRateIndex == (uint32) frame.sampleRateIndex)
  1470. break;
  1471. }
  1472. ++offset;
  1473. }
  1474. if (offset >= 0)
  1475. {
  1476. if ((currentFrameIndex & (storedStartPosInterval - 1)) == 0)
  1477. frameStreamPositions.set (currentFrameIndex / storedStartPosInterval, oldPos + offset);
  1478. ++currentFrameIndex;
  1479. }
  1480. stream.setPosition (oldPos);
  1481. return offset;
  1482. }
  1483. void readVBRHeader()
  1484. {
  1485. auto oldPos = stream.getPosition();
  1486. uint8 xing[194];
  1487. stream.read (xing, sizeof (xing));
  1488. vbrHeaderFound = vbrTagData.read (xing);
  1489. if (vbrHeaderFound)
  1490. {
  1491. numFrames = (int) vbrTagData.frames;
  1492. oldPos += jmax (vbrTagData.headersize, 1);
  1493. }
  1494. stream.setPosition (oldPos);
  1495. }
  1496. void decodeLayer1Frame (float* pcm0, float* pcm1, int& samplesDone) noexcept
  1497. {
  1498. float fraction[2][32];
  1499. SideInfoLayer1 si;
  1500. layer1Step1 (si);
  1501. auto single = (frame.numChannels == 1 || frame.single == 3) ? 0 : frame.single;
  1502. if (single >= 0)
  1503. {
  1504. for (int i = 0; i < 12; ++i)
  1505. {
  1506. layer1Step2 (si, fraction);
  1507. synthesise (fraction[single], 0, pcm0, samplesDone);
  1508. }
  1509. }
  1510. else
  1511. {
  1512. for (int i = 0; i < 12; ++i)
  1513. {
  1514. layer1Step2 (si, fraction);
  1515. synthesiseStereo (fraction[0], fraction[1], pcm0, pcm1, samplesDone);
  1516. }
  1517. }
  1518. }
  1519. void decodeLayer2Frame (float* pcm0, float* pcm1, int& samplesDone)
  1520. {
  1521. float fraction[2][4][32];
  1522. frame.selectLayer2Table();
  1523. SideInfoLayer2 si;
  1524. layer2Step1 (si);
  1525. auto single = (frame.numChannels == 1 || frame.single == 3) ? 0 : frame.single;
  1526. if (single >= 0)
  1527. {
  1528. for (int i = 0; i < 12; ++i)
  1529. {
  1530. layer2Step2 (si, i >> 2, fraction);
  1531. for (int j = 0; j < 3; ++j)
  1532. synthesise (fraction[single][j], 0, pcm0, samplesDone);
  1533. }
  1534. }
  1535. else
  1536. {
  1537. for (int i = 0; i < 12; ++i)
  1538. {
  1539. layer2Step2 (si, i >> 2, fraction);
  1540. for (int j = 0; j < 3; ++j)
  1541. synthesiseStereo (fraction[0][j], fraction[1][j], pcm0, pcm1, samplesDone);
  1542. }
  1543. }
  1544. }
  1545. void decodeLayer3Frame (float* pcm0, float* pcm1, int& samplesDone) noexcept
  1546. {
  1547. if (! rollBackBufferPointer ((int) sideinfo.mainDataStart))
  1548. return;
  1549. const int single = frame.numChannels == 1 ? 0 : frame.single;
  1550. const int numChans = (frame.numChannels == 1 || single >= 0) ? 1 : 2;
  1551. const bool msStereo = (frame.mode == 1) && (frame.modeExt & 2) != 0;
  1552. const bool iStereo = (frame.mode == 1) && (frame.modeExt & 1) != 0;
  1553. const int granules = frame.lsf ? 1 : 2;
  1554. int scaleFactors[2][39];
  1555. for (int gr = 0; gr < granules; ++gr)
  1556. {
  1557. {
  1558. auto& granule = sideinfo.ch[0].gr[gr];
  1559. auto part2bits = frame.lsf ? getLayer3ScaleFactors2 (scaleFactors[0], granule, 0)
  1560. : getLayer3ScaleFactors1 (scaleFactors[0], granule);
  1561. if (layer3DequantizeSample (hybridIn[0], scaleFactors[0], granule, frame.sampleRateIndex, part2bits))
  1562. return;
  1563. }
  1564. if (frame.numChannels == 2)
  1565. {
  1566. auto& granule = sideinfo.ch[1].gr[gr];
  1567. auto part2bits = frame.lsf ? getLayer3ScaleFactors2 (scaleFactors[1], granule, iStereo)
  1568. : getLayer3ScaleFactors1 (scaleFactors[1], granule);
  1569. if (layer3DequantizeSample (hybridIn[1], scaleFactors[1], granule, frame.sampleRateIndex, part2bits))
  1570. return;
  1571. if (msStereo)
  1572. {
  1573. for (int i = 0; i < 32 * 18; ++i)
  1574. {
  1575. auto tmp0 = ((const float*) hybridIn[0])[i];
  1576. auto tmp1 = ((const float*) hybridIn[1])[i];
  1577. ((float*) hybridIn[1])[i] = tmp0 - tmp1;
  1578. ((float*) hybridIn[0])[i] = tmp0 + tmp1;
  1579. }
  1580. }
  1581. if (iStereo)
  1582. granule.doIStereo (hybridIn, scaleFactors[1], frame.sampleRateIndex, msStereo, frame.lsf);
  1583. if (msStereo || iStereo || single == 3)
  1584. {
  1585. if (granule.maxb > sideinfo.ch[0].gr[gr].maxb)
  1586. sideinfo.ch[0].gr[gr].maxb = granule.maxb;
  1587. else
  1588. granule.maxb = sideinfo.ch[0].gr[gr].maxb;
  1589. }
  1590. switch (single)
  1591. {
  1592. case 3:
  1593. {
  1594. auto* in0 = (float*) hybridIn[0];
  1595. auto* in1 = (const float*) hybridIn[1];
  1596. for (int i = 0; i < (int) (18 * granule.maxb); ++i, ++in0)
  1597. *in0 = (*in0 + *in1++);
  1598. }
  1599. break;
  1600. case 1:
  1601. {
  1602. auto* in0 = (float*) hybridIn[0];
  1603. auto* in1 = (const float*) hybridIn[1];
  1604. for (int i = 0; i < (int) (18 * granule.maxb); ++i)
  1605. *in0++ = *in1++;
  1606. }
  1607. break;
  1608. default:
  1609. break;
  1610. }
  1611. }
  1612. for (int ch = 0; ch < numChans; ++ch)
  1613. {
  1614. auto& granule = sideinfo.ch[ch].gr[gr];
  1615. granule.doAntialias (hybridIn[ch]);
  1616. layer3Hybrid (hybridIn[ch], hybridOut[ch], ch, granule);
  1617. }
  1618. for (int ss = 0; ss < 18; ++ss)
  1619. {
  1620. if (single >= 0)
  1621. synthesise (hybridOut[0][ss], 0, pcm0, samplesDone);
  1622. else
  1623. synthesiseStereo (hybridOut[0][ss], hybridOut[1][ss], pcm0, pcm1, samplesDone);
  1624. }
  1625. }
  1626. }
  1627. int decodeLayer3SideInfo() noexcept
  1628. {
  1629. const int numChannels = frame.numChannels;
  1630. const int sampleRate = frame.sampleRateIndex;
  1631. const int single = (numChannels == 1) ? 0 : frame.single;
  1632. const bool msStereo = (frame.mode == 1) && (frame.modeExt & 2) != 0;
  1633. const int granules = frame.lsf ? 1 : 2;
  1634. if (frame.lsf == 0)
  1635. getLayer3SideInfo1 (numChannels, msStereo, sampleRate, single);
  1636. else
  1637. getLayer3SideInfo2 (numChannels, msStereo, sampleRate, single);
  1638. int databits = 0;
  1639. for (int gr = 0; gr < granules; ++gr)
  1640. for (int ch = 0; ch < numChannels; ++ch)
  1641. databits += (int) sideinfo.ch[ch].gr[gr].part2_3Length;
  1642. return databits - 8 * (int) sideinfo.mainDataStart;
  1643. }
  1644. void layer1Step1 (SideInfoLayer1& si) noexcept
  1645. {
  1646. zerostruct (si);
  1647. int i, jsbound = (frame.mode == 1) ? (frame.modeExt << 2) + 4 : 32;
  1648. if (frame.numChannels == 2)
  1649. {
  1650. for (i = 0; i < jsbound; ++i)
  1651. {
  1652. si.allocation[i][0] = getBitsUint8 (4);
  1653. si.allocation[i][1] = getBitsUint8 (4);
  1654. }
  1655. for (i = jsbound; i < 32; ++i)
  1656. si.allocation[i][0] = si.allocation[i][1] = getBitsUint8 (4);
  1657. for (i = 0; i < 32; ++i)
  1658. {
  1659. si.scaleFactor[i][0] = si.allocation[i][0] ? getBitsUint8 (6) : 0;
  1660. si.scaleFactor[i][1] = si.allocation[i][1] ? getBitsUint8 (6) : 0;
  1661. }
  1662. }
  1663. else
  1664. {
  1665. for (i = 0; i < 32; ++i)
  1666. si.allocation[i][0] = getBitsUint8 (4);
  1667. for (i = 0; i < 32; ++i)
  1668. si.scaleFactor[i][0] = si.allocation[i][0] ? getBitsUint8 (6) : 0;
  1669. }
  1670. }
  1671. void layer1Step2 (SideInfoLayer1& si, float fraction[2][32]) noexcept
  1672. {
  1673. if (frame.numChannels == 2)
  1674. {
  1675. int i, jsbound = (frame.mode == 1) ? (frame.modeExt << 2) + 4 : 32;
  1676. for (i = 0; i < jsbound; ++i)
  1677. {
  1678. const uint8 n0 = si.allocation[i][0];
  1679. const uint8 n1 = si.allocation[i][1];
  1680. fraction[0][i] = n0 > 0 ? (float) ((-(1 << n0) + getBitsUint16 (n0 + 1) + 1) * constants.muls[n0 + 1][si.scaleFactor[i][0]]) : 0;
  1681. fraction[1][i] = n1 > 0 ? (float) ((-(1 << n1) + getBitsUint16 (n1 + 1) + 1) * constants.muls[n1 + 1][si.scaleFactor[i][1]]) : 0;
  1682. }
  1683. for (i = jsbound; i < 32; ++i)
  1684. {
  1685. const uint8 n = si.allocation[i][0];
  1686. if (n > 0)
  1687. {
  1688. const uint32 w = ((uint32) -(1 << n) + getBitsUint16 (n + 1) + 1);
  1689. fraction[0][i] = (float) (w * constants.muls[n + 1][si.scaleFactor[i][0]]);
  1690. fraction[1][i] = (float) (w * constants.muls[n + 1][si.scaleFactor[i][1]]);
  1691. }
  1692. else
  1693. fraction[0][i] = fraction[1][i] = 0;
  1694. }
  1695. }
  1696. else
  1697. {
  1698. for (int i = 0; i < 32; ++i)
  1699. {
  1700. const uint8 n = si.allocation[i][0];
  1701. const uint8 j = si.scaleFactor[i][0];
  1702. if (n > 0)
  1703. fraction[0][i] = (float) ((-(1 << n) + getBitsUint16 (n + 1) + 1) * constants.muls[n + 1][j]);
  1704. else
  1705. fraction[0][i] = 0;
  1706. }
  1707. }
  1708. }
  1709. void layer2Step1 (SideInfoLayer2& si) noexcept
  1710. {
  1711. zerostruct (si);
  1712. const auto sblimit = frame.layer2SubBandLimit;
  1713. const auto jsbound = (frame.mode == 1 ? jmin ((frame.modeExt << 2) + 4, sblimit) : sblimit);
  1714. auto* allocTable = frame.allocationTable;
  1715. uint8 scfsi[32][2];
  1716. if (frame.numChannels == 2)
  1717. {
  1718. for (int i = 0; i < jsbound; ++i)
  1719. {
  1720. auto step = allocTable->bits;
  1721. allocTable += (static_cast<intptr_t> (1) << step);
  1722. si.allocation[i][0] = getBitsUint8 (step);
  1723. si.allocation[i][1] = getBitsUint8 (step);
  1724. }
  1725. for (int i = jsbound; i < sblimit; ++i)
  1726. {
  1727. auto step = allocTable->bits;
  1728. auto b0 = getBitsUint8 (step);
  1729. allocTable += (static_cast<intptr_t> (1) << step);
  1730. si.allocation[i][0] = b0;
  1731. si.allocation[i][1] = b0;
  1732. }
  1733. for (int i = 0; i < sblimit; ++i)
  1734. {
  1735. scfsi[i][0] = si.allocation[i][0] ? getBitsUint8 (2) : 0;
  1736. scfsi[i][1] = si.allocation[i][1] ? getBitsUint8 (2) : 0;
  1737. }
  1738. }
  1739. else
  1740. {
  1741. for (int i = 0; i < sblimit; ++i)
  1742. {
  1743. const int16 step = allocTable->bits;
  1744. allocTable += (static_cast<intptr_t> (1) << step);
  1745. si.allocation[i][0] = getBitsUint8 (step);
  1746. }
  1747. for (int i = 0; i < sblimit; ++i)
  1748. scfsi[i][0] = si.allocation[i][0] ? getBitsUint8 (2) : 0;
  1749. }
  1750. for (int i = 0; i < sblimit; ++i)
  1751. {
  1752. for (int ch = 0; ch < frame.numChannels; ++ch)
  1753. {
  1754. uint8 s0 = 0, s1 = 0, s2 = 0;
  1755. if (si.allocation[i][ch])
  1756. {
  1757. switch (scfsi[i][ch])
  1758. {
  1759. case 0:
  1760. s0 = getBitsUint8 (6);
  1761. s1 = getBitsUint8 (6);
  1762. s2 = getBitsUint8 (6);
  1763. break;
  1764. case 1:
  1765. s1 = s0 = getBitsUint8 (6);
  1766. s2 = getBitsUint8 (6);
  1767. break;
  1768. case 2:
  1769. s2 = s1 = s0 = getBitsUint8 (6);
  1770. break;
  1771. case 3:
  1772. s0 = getBitsUint8 (6);
  1773. s2 = s1 = getBitsUint8 (6);
  1774. break;
  1775. default:
  1776. break;
  1777. }
  1778. }
  1779. si.scaleFactor[i][ch][0] = s0;
  1780. si.scaleFactor[i][ch][1] = s1;
  1781. si.scaleFactor[i][ch][2] = s2;
  1782. }
  1783. }
  1784. }
  1785. void layer2Step2 (SideInfoLayer2& si, const int gr, float fraction[2][4][32]) noexcept
  1786. {
  1787. auto* allocTable = frame.allocationTable;
  1788. auto sblimit = frame.layer2SubBandLimit;
  1789. const auto jsbound = (frame.mode == 1 ? jmin ((frame.modeExt << 2) + 4, sblimit) : sblimit);
  1790. for (int i = 0; i < jsbound; ++i)
  1791. {
  1792. auto step = allocTable->bits;
  1793. for (int ch = 0; ch < frame.numChannels; ++ch)
  1794. {
  1795. if (auto ba = si.allocation[i][ch])
  1796. {
  1797. auto x1 = jmin ((uint8) 63, si.scaleFactor[i][ch][gr]);
  1798. auto* alloc2 = allocTable + ba;
  1799. auto k = jmin ((int16) 16, alloc2->bits);
  1800. auto d1 = alloc2->d;
  1801. if (d1 < 0)
  1802. {
  1803. const double cm = constants.muls[k][x1];
  1804. fraction[ch][0][i] = (float) (((int) getBits (k) + d1) * cm);
  1805. fraction[ch][1][i] = (float) (((int) getBits (k) + d1) * cm);
  1806. fraction[ch][2][i] = (float) (((int) getBits (k) + d1) * cm);
  1807. }
  1808. else
  1809. {
  1810. auto* tab = constants.getGroupTable (d1, getBits (k));
  1811. fraction[ch][0][i] = (float) constants.muls[tab[0]][x1];
  1812. fraction[ch][1][i] = (float) constants.muls[tab[1]][x1];
  1813. fraction[ch][2][i] = (float) constants.muls[tab[2]][x1];
  1814. }
  1815. }
  1816. else
  1817. {
  1818. fraction[ch][0][i] = fraction[ch][1][i] = fraction[ch][2][i] = 0;
  1819. }
  1820. }
  1821. allocTable += (static_cast<intptr_t> (1) << step);
  1822. }
  1823. for (int i = jsbound; i < frame.layer2SubBandLimit; ++i)
  1824. {
  1825. auto step = allocTable->bits;
  1826. auto ba = si.allocation[i][0];
  1827. if (ba != 0)
  1828. {
  1829. auto* alloc2 = allocTable + ba;
  1830. int16 k = alloc2->bits;
  1831. int16 d1 = alloc2->d;
  1832. k = (k <= 16) ? k : 16;
  1833. if (d1 < 0)
  1834. {
  1835. auto v0 = (int) getBits (k);
  1836. auto v1 = (int) getBits (k);
  1837. auto v2 = (int) getBits (k);
  1838. for (int ch = 0; ch < frame.numChannels; ++ch)
  1839. {
  1840. auto x1 = jmin ((uint8) 63, si.scaleFactor[i][ch][gr]);
  1841. const double cm = constants.muls[k][x1];
  1842. fraction[ch][0][i] = (float) ((v0 + d1) * cm);
  1843. fraction[ch][1][i] = (float) ((v1 + d1) * cm);
  1844. fraction[ch][2][i] = (float) ((v2 + d1) * cm);
  1845. }
  1846. }
  1847. else
  1848. {
  1849. auto* tab = constants.getGroupTable (d1, getBits (k));
  1850. auto k0 = tab[0];
  1851. auto k1 = tab[1];
  1852. auto k2 = tab[2];
  1853. for (int ch = 0; ch < frame.numChannels; ++ch)
  1854. {
  1855. auto x1 = jmin ((uint8) 63, si.scaleFactor[i][ch][gr]);
  1856. fraction[ch][0][i] = (float) constants.muls[k0][x1];
  1857. fraction[ch][1][i] = (float) constants.muls[k1][x1];
  1858. fraction[ch][2][i] = (float) constants.muls[k2][x1];
  1859. }
  1860. }
  1861. }
  1862. else
  1863. {
  1864. fraction[0][0][i] = fraction[0][1][i] = fraction[0][2][i] = 0;
  1865. fraction[1][0][i] = fraction[1][1][i] = fraction[1][2][i] = 0;
  1866. }
  1867. allocTable += (static_cast<intptr_t> (1) << step);
  1868. }
  1869. for (int ch = 0; ch < frame.numChannels; ++ch)
  1870. for (int i = frame.layer2SubBandLimit; i < 32; ++i)
  1871. fraction[ch][0][i] = fraction[ch][1][i] = fraction[ch][2][i] = 0;
  1872. }
  1873. void getLayer3SideInfo1 (const int stereo, const bool msStereo, const int sampleRate, const int single) noexcept
  1874. {
  1875. const int powdiff = (single == 3) ? 4 : 0;
  1876. sideinfo.mainDataStart = getBits (9);
  1877. sideinfo.privateBits = getBitsUnchecked (stereo == 1 ? 5 : 3);
  1878. for (int ch = 0; ch < stereo; ++ch)
  1879. {
  1880. sideinfo.ch[ch].gr[0].scfsi = -1;
  1881. sideinfo.ch[ch].gr[1].scfsi = (int) getBitsUnchecked (4);
  1882. }
  1883. for (int gr = 0; gr < 2; ++gr)
  1884. {
  1885. for (int ch = 0; ch < stereo; ++ch)
  1886. {
  1887. auto& granule = sideinfo.ch[ch].gr[gr];
  1888. granule.part2_3Length = getBits (12);
  1889. granule.bigValues = jmin (288u, getBitsUnchecked (9));
  1890. const int qss = (int) getBitsUnchecked (8);
  1891. granule.pow2gain = constants.powToGains + 256 - qss + powdiff;
  1892. if (msStereo)
  1893. granule.pow2gain += 2;
  1894. granule.scaleFactorCompression = getBitsUnchecked (4);
  1895. if (getOneBit())
  1896. {
  1897. granule.blockType = getBitsUnchecked (2);
  1898. granule.mixedBlockFlag = getOneBit();
  1899. granule.tableSelect[0] = getBitsUnchecked (5);
  1900. granule.tableSelect[1] = getBitsUnchecked (5);
  1901. granule.tableSelect[2] = 0;
  1902. for (int i = 0; i < 3; ++i)
  1903. {
  1904. const uint32 sbg = (getBitsUnchecked (3) << 3);
  1905. granule.fullGain[i] = granule.pow2gain + sbg;
  1906. }
  1907. granule.region1Start = 36 >> 1;
  1908. granule.region2Start = 576 >> 1;
  1909. }
  1910. else
  1911. {
  1912. for (int i = 0; i < 3; ++i)
  1913. granule.tableSelect[i] = getBitsUnchecked (5);
  1914. const int r0c = (int) getBitsUnchecked (4);
  1915. const int r1c = (int) getBitsUnchecked (3);
  1916. const int region0index = jmin (22, r0c + 1);
  1917. const int region1index = jmin (22, r0c + 1 + r1c + 1);
  1918. granule.region1Start = (uint32) (bandInfo[sampleRate].longIndex[region0index] >> 1);
  1919. granule.region2Start = (uint32) (bandInfo[sampleRate].longIndex[region1index] >> 1);
  1920. granule.blockType = 0;
  1921. granule.mixedBlockFlag = 0;
  1922. }
  1923. granule.preflag = getOneBit();
  1924. granule.scaleFactorScale = getOneBit();
  1925. granule.count1TableSelect = getOneBit();
  1926. }
  1927. }
  1928. }
  1929. void getLayer3SideInfo2 (const int stereo, const bool msStereo, const int sampleRate, const int single) noexcept
  1930. {
  1931. const int powdiff = (single == 3) ? 4 : 0;
  1932. sideinfo.mainDataStart = getBits (8);
  1933. sideinfo.privateBits = stereo == 1 ? getOneBit() : getBitsUnchecked (2);
  1934. for (int ch = 0; ch < stereo; ++ch)
  1935. {
  1936. auto& granule = sideinfo.ch[ch].gr[0];
  1937. granule.part2_3Length = getBits (12);
  1938. granule.bigValues = jmin (288u, getBitsUnchecked (9));
  1939. const uint32 qss = getBitsUnchecked (8);
  1940. granule.pow2gain = constants.powToGains + 256 - qss + powdiff;
  1941. if (msStereo)
  1942. granule.pow2gain += 2;
  1943. granule.scaleFactorCompression = getBits (9);
  1944. if (getOneBit())
  1945. {
  1946. granule.blockType = getBitsUnchecked (2);
  1947. granule.mixedBlockFlag = getOneBit();
  1948. granule.tableSelect[0] = getBitsUnchecked (5);
  1949. granule.tableSelect[1] = getBitsUnchecked (5);
  1950. granule.tableSelect[2] = 0;
  1951. for (int i = 0; i < 3; ++i)
  1952. {
  1953. const uint32 sbg = (getBitsUnchecked (3) << 3);
  1954. granule.fullGain[i] = granule.pow2gain + sbg;
  1955. }
  1956. if (granule.blockType == 0)
  1957. {}
  1958. if (granule.blockType == 2)
  1959. granule.region1Start = sampleRate == 8 ? 36 : (36 >> 1);
  1960. else
  1961. granule.region1Start = sampleRate == 8 ? (108 >> 1) : (54 >> 1);
  1962. granule.region2Start = 576 >> 1;
  1963. }
  1964. else
  1965. {
  1966. for (int i = 0; i < 3; ++i)
  1967. granule.tableSelect[i] = getBitsUnchecked (5);
  1968. const int r0c = (int) getBitsUnchecked (4);
  1969. const int r1c = (int) getBitsUnchecked (3);
  1970. const int region0index = jmin (22, r0c + 1);
  1971. const int region1index = jmin (22, r0c + 1 + r1c + 1);
  1972. granule.region1Start = (uint32) (bandInfo[sampleRate].longIndex[region0index] >> 1);
  1973. granule.region2Start = (uint32) (bandInfo[sampleRate].longIndex[region1index] >> 1);
  1974. granule.blockType = 0;
  1975. granule.mixedBlockFlag = 0;
  1976. }
  1977. granule.scaleFactorScale = getOneBit();
  1978. granule.count1TableSelect = getOneBit();
  1979. }
  1980. }
  1981. int getLayer3ScaleFactors1 (int* scf, const Layer3SideInfo::Info& granule) noexcept
  1982. {
  1983. static const uint8 lengths[2][16] =
  1984. {
  1985. { 0, 0, 0, 0, 3, 1, 1, 1, 2, 2, 2, 3, 3, 3, 4, 4 },
  1986. { 0, 1, 2, 3, 0, 1, 2, 3, 1, 2, 3, 1, 2, 3, 2, 3 }
  1987. };
  1988. int numBits;
  1989. const int num0 = lengths[0][granule.scaleFactorCompression];
  1990. const int num1 = lengths[1][granule.scaleFactorCompression];
  1991. if (granule.blockType == 2)
  1992. {
  1993. int i = 18;
  1994. numBits = (num0 + num1) * 18;
  1995. if (granule.mixedBlockFlag)
  1996. {
  1997. for (int j = 8; --j >= 0;) *scf++ = (int) getBitsUnchecked (num0);
  1998. numBits -= num0;
  1999. i = 9;
  2000. }
  2001. for (; --i >= 0;) *scf++ = (int) getBitsUnchecked (num0);
  2002. for (i = 18; --i >= 0;) *scf++ = (int) getBitsUnchecked (num1);
  2003. *scf++ = 0;
  2004. *scf++ = 0;
  2005. *scf++ = 0;
  2006. }
  2007. else
  2008. {
  2009. const int scfsi = granule.scfsi;
  2010. if (scfsi < 0)
  2011. {
  2012. for (int i = 11; --i >= 0;) *scf++ = (int) getBitsUnchecked (num0);
  2013. for (int j = 10; --j >= 0;) *scf++ = (int) getBitsUnchecked (num1);
  2014. numBits = (num0 + num1) * 10 + num0;
  2015. }
  2016. else
  2017. {
  2018. numBits = 0;
  2019. if ((scfsi & 8) == 0)
  2020. {
  2021. for (int i = 6; --i >= 0;) *scf++ = (int) getBitsUnchecked (num0);
  2022. numBits += num0 * 6;
  2023. }
  2024. else
  2025. scf += 6;
  2026. if ((scfsi & 4) == 0)
  2027. {
  2028. for (int i = 5; --i >= 0;) *scf++ = (int) getBitsUnchecked (num0);
  2029. numBits += num0 * 5;
  2030. }
  2031. else
  2032. scf += 5;
  2033. if ((scfsi & 2) == 0)
  2034. {
  2035. for (int i = 5; --i >= 0;) *scf++ = (int) getBitsUnchecked (num1);
  2036. numBits += num1 * 5;
  2037. }
  2038. else
  2039. scf += 5;
  2040. if ((scfsi & 1) == 0)
  2041. {
  2042. for (int i = 5; --i >= 0;) *scf++ = (int) getBitsUnchecked (num1);
  2043. numBits += num1 * 5;
  2044. }
  2045. else
  2046. scf += 5;
  2047. }
  2048. *scf = 0;
  2049. }
  2050. return numBits;
  2051. }
  2052. int getLayer3ScaleFactors2 (int* scf, Layer3SideInfo::Info& granule, const bool iStereo) noexcept
  2053. {
  2054. static const uint8 scaleTable[3][6][4] =
  2055. {
  2056. { { 6, 5, 5, 5 }, { 6, 5, 7, 3 }, { 11, 10, 0, 0 }, { 7, 7, 7, 0 }, { 6, 6, 6, 3 }, { 8, 8, 5, 0 } },
  2057. { { 9, 9, 9, 9 }, { 9, 9, 12, 6 }, { 18, 18, 0, 0 }, { 12, 12, 12, 0 }, { 12, 9, 9, 6 }, { 15, 12, 9, 0 } },
  2058. { { 6, 9, 9, 9 }, { 6, 9, 12, 6 }, { 15, 18, 0, 0 }, { 6, 15, 12, 0 }, { 6, 12, 9, 6 }, { 6, 18, 9, 0 } }
  2059. };
  2060. uint32 len = iStereo ? constants.iLength2[granule.scaleFactorCompression >> 1]
  2061. : constants.nLength2[granule.scaleFactorCompression];
  2062. granule.preflag = (len >> 15) & 1;
  2063. int n = 0;
  2064. if (granule.blockType == 2)
  2065. {
  2066. ++n;
  2067. if (granule.mixedBlockFlag)
  2068. ++n;
  2069. }
  2070. const uint8* const data = scaleTable[n][(len >> 12) & 7];
  2071. int numBits = 0;
  2072. for (int i = 0; i < 4; ++i)
  2073. {
  2074. int num = len & 7;
  2075. len >>= 3;
  2076. if (num)
  2077. {
  2078. for (int j = 0; j < (int) (data[i]); ++j)
  2079. *scf++ = (int) getBitsUnchecked (num);
  2080. numBits += data[i] * num;
  2081. }
  2082. else
  2083. {
  2084. for (int j = 0; j < (int) (data[i]); ++j)
  2085. *scf++ = 0;
  2086. }
  2087. }
  2088. n = (n << 1) + 1;
  2089. for (int i = 0; i < n; ++i)
  2090. *scf++ = 0;
  2091. return numBits;
  2092. }
  2093. bool layer3DequantizeSample (float xr[32][18], int* scf, Layer3SideInfo::Info& granule, int sampleRate, int part2bits) noexcept
  2094. {
  2095. const uint32 shift = 1 + granule.scaleFactorScale;
  2096. auto* xrpnt = (float*) xr;
  2097. auto part2remain = (int) granule.part2_3Length - part2bits;
  2098. zeromem (xrpnt, (size_t) (&xr[32][0] - xrpnt) * sizeof (float));
  2099. auto bv = (int) granule.bigValues;
  2100. auto region1 = (int) granule.region1Start;
  2101. auto region2 = (int) granule.region2Start;
  2102. int l3 = ((576 >> 1) - bv) >> 1;
  2103. int l[3];
  2104. if (bv <= region1)
  2105. {
  2106. l[0] = bv;
  2107. l[1] = 0;
  2108. l[2] = 0;
  2109. }
  2110. else
  2111. {
  2112. l[0] = region1;
  2113. if (bv <= region2)
  2114. {
  2115. l[1] = bv - l[0];
  2116. l[2] = 0;
  2117. }
  2118. else
  2119. {
  2120. l[1] = region2 - l[0];
  2121. l[2] = bv - region2;
  2122. }
  2123. }
  2124. for (int i = 0; i < 3; ++i)
  2125. if (l[i] < 0)
  2126. l[i] = 0;
  2127. if (granule.blockType == 2)
  2128. {
  2129. int max[4];
  2130. int step = 0, lwin = 0, cb = 0, mc = 0;
  2131. float v = 0;
  2132. int* map;
  2133. int* mapEnd;
  2134. if (granule.mixedBlockFlag)
  2135. {
  2136. max[3] = -1;
  2137. max[0] = max[1] = max[2] = 2;
  2138. map = constants.map [sampleRate][0];
  2139. mapEnd = constants.mapEnd[sampleRate][0];
  2140. }
  2141. else
  2142. {
  2143. max[0] = max[1] = max[2] = max[3] = -1;
  2144. map = constants.map [sampleRate][1];
  2145. mapEnd = constants.mapEnd[sampleRate][1];
  2146. }
  2147. for (int i = 0; i < 2; ++i)
  2148. {
  2149. auto* h = huffmanTables1 + granule.tableSelect[i];
  2150. for (int lp = l[i]; lp != 0; --lp, --mc)
  2151. {
  2152. int x, y;
  2153. if (mc == 0)
  2154. {
  2155. mc = *map++;
  2156. xrpnt = ((float*) xr) + (*map++);
  2157. lwin = *map++;
  2158. cb = *map++;
  2159. if (lwin == 3)
  2160. {
  2161. v = granule.pow2gain[ (*scf++) << shift];
  2162. step = 1;
  2163. }
  2164. else
  2165. {
  2166. v = granule.fullGain[lwin][ (*scf++) << shift];
  2167. step = 3;
  2168. }
  2169. }
  2170. auto* val = h->table;
  2171. while ((y = *val++) < 0)
  2172. {
  2173. if (getOneBit())
  2174. val -= y;
  2175. --part2remain;
  2176. }
  2177. x = y >> 4;
  2178. y &= 15;
  2179. if (x == 15)
  2180. {
  2181. max[lwin] = cb;
  2182. part2remain -= (int) (h->bits + 1);
  2183. x += (int) getBits ((int) h->bits);
  2184. *xrpnt = constants.nToThe4Over3[x] * (getOneBit() ? -v : v);
  2185. }
  2186. else if (x)
  2187. {
  2188. max[lwin] = cb;
  2189. *xrpnt = constants.nToThe4Over3[x] * (getOneBit() ? -v : v);
  2190. --part2remain;
  2191. }
  2192. else
  2193. *xrpnt = 0;
  2194. xrpnt += step;
  2195. if (y == 15)
  2196. {
  2197. max[lwin] = cb;
  2198. part2remain -= (int) (h->bits + 1);
  2199. y += (int) getBits ((int) h->bits);
  2200. *xrpnt = constants.nToThe4Over3[y] * (getOneBit() ? -v : v);
  2201. }
  2202. else if (y)
  2203. {
  2204. max[lwin] = cb;
  2205. *xrpnt = constants.nToThe4Over3[y] * (getOneBit() ? -v : v);
  2206. --part2remain;
  2207. }
  2208. else
  2209. *xrpnt = 0;
  2210. xrpnt += step;
  2211. }
  2212. }
  2213. for (; l3 && (part2remain > 0); --l3)
  2214. {
  2215. auto* h = huffmanTables2 + granule.count1TableSelect;
  2216. auto* val = h->table;
  2217. int16 a;
  2218. while ((a = *val++) < 0)
  2219. {
  2220. if (part2remain <= 0)
  2221. {
  2222. a = 0;
  2223. break;
  2224. }
  2225. --part2remain;
  2226. if (getOneBit())
  2227. val -= a;
  2228. }
  2229. for (int i = 0; i < 4; ++i)
  2230. {
  2231. if ((i & 1) == 0)
  2232. {
  2233. if (mc == 0)
  2234. {
  2235. mc = *map++;
  2236. xrpnt = ((float*) xr) + (*map++);
  2237. lwin = *map++;
  2238. cb = *map++;
  2239. if (lwin == 3)
  2240. {
  2241. v = granule.pow2gain[ (*scf++) << shift];
  2242. step = 1;
  2243. }
  2244. else
  2245. {
  2246. v = granule.fullGain[lwin][ (*scf++) << shift];
  2247. step = 3;
  2248. }
  2249. }
  2250. --mc;
  2251. }
  2252. if ((a & (8 >> i)))
  2253. {
  2254. max[lwin] = cb;
  2255. if (part2remain == 0)
  2256. break;
  2257. --part2remain;
  2258. *xrpnt = getOneBit() ? -v : v;
  2259. }
  2260. else
  2261. *xrpnt = 0;
  2262. xrpnt += step;
  2263. }
  2264. }
  2265. while (map < mapEnd)
  2266. {
  2267. if (mc == 0)
  2268. {
  2269. mc = *map++;
  2270. xrpnt = ((float*) xr) + *map++;
  2271. step = (*map++ == 3) ? 1 : 3;
  2272. ++map;
  2273. }
  2274. --mc;
  2275. *xrpnt = 0; xrpnt += step;
  2276. *xrpnt = 0; xrpnt += step;
  2277. }
  2278. granule.maxBand[0] = (uint32) (max[0] + 1);
  2279. granule.maxBand[1] = (uint32) (max[1] + 1);
  2280. granule.maxBand[2] = (uint32) (max[2] + 1);
  2281. granule.maxBandl = (uint32) (max[3] + 1);
  2282. const int rmax = jmax (max[0], max[1], max[3]) + 1;
  2283. granule.maxb = rmax ? (uint32) constants.shortLimit[sampleRate][rmax]
  2284. : (uint32) constants.longLimit[sampleRate][max[3] + 1];
  2285. }
  2286. else
  2287. {
  2288. static const int pretab1[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1, 1, 1, 1, 2, 2, 3, 3, 3, 2, 0 };
  2289. static const int pretab2[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };
  2290. auto* pretab = (const int*) (granule.preflag ? pretab1 : pretab2);
  2291. int max = -1, cb = 0, mc = 0;
  2292. auto* map = constants.map[sampleRate][2];
  2293. float v = 0;
  2294. for (int i = 0; i < 3; ++i)
  2295. {
  2296. auto* h = huffmanTables1 + granule.tableSelect[i];
  2297. for (int lp = l[i]; lp != 0; --lp, --mc)
  2298. {
  2299. if (mc == 0)
  2300. {
  2301. mc = *map++;
  2302. v = granule.pow2gain[((*scf++) + (*pretab++)) << shift];
  2303. cb = *map++;
  2304. }
  2305. auto* val = h->table;
  2306. int y;
  2307. while ((y = *val++) < 0)
  2308. {
  2309. if (getOneBit()) val -= y;
  2310. --part2remain;
  2311. }
  2312. int x = y >> 4;
  2313. y &= 15;
  2314. if (x == 15)
  2315. {
  2316. max = cb;
  2317. part2remain -= (int) (h->bits + 1);
  2318. x += (int) getBits ((int) h->bits);
  2319. *xrpnt++ = constants.nToThe4Over3[x] * (getOneBit() ? -v : v);
  2320. }
  2321. else if (x)
  2322. {
  2323. max = cb;
  2324. *xrpnt++ = constants.nToThe4Over3[x] * (getOneBit() ? -v : v);
  2325. --part2remain;
  2326. }
  2327. else
  2328. *xrpnt++ = 0;
  2329. if (y == 15)
  2330. {
  2331. max = cb;
  2332. part2remain -= (int) (h->bits + 1);
  2333. y += (int) getBits ((int) h->bits);
  2334. *xrpnt++ = constants.nToThe4Over3[y] * (getOneBit() ? -v : v);
  2335. }
  2336. else if (y)
  2337. {
  2338. max = cb;
  2339. *xrpnt++ = constants.nToThe4Over3[y] * (getOneBit() ? -v : v);
  2340. --part2remain;
  2341. }
  2342. else
  2343. *xrpnt++ = 0;
  2344. }
  2345. }
  2346. for (; l3 && part2remain > 0; --l3)
  2347. {
  2348. auto* h = huffmanTables2 + granule.count1TableSelect;
  2349. auto* values = h->table;
  2350. int16 a;
  2351. while ((a = *values++) < 0)
  2352. {
  2353. if (part2remain <= 0)
  2354. {
  2355. a = 0;
  2356. break;
  2357. }
  2358. --part2remain;
  2359. if (getOneBit())
  2360. values -= a;
  2361. }
  2362. for (int i = 0; i < 4; ++i)
  2363. {
  2364. if ((i & 1) == 0)
  2365. {
  2366. if (mc == 0)
  2367. {
  2368. mc = *map++;
  2369. cb = *map++;
  2370. v = granule.pow2gain[((*scf++) + (*pretab++)) << shift];
  2371. }
  2372. --mc;
  2373. }
  2374. if ((a & (0x8 >> i)))
  2375. {
  2376. max = cb;
  2377. if (part2remain <= 0)
  2378. break;
  2379. --part2remain;
  2380. *xrpnt++ = getOneBit() ? -v : v;
  2381. }
  2382. else
  2383. *xrpnt++ = 0;
  2384. }
  2385. }
  2386. zeromem (xrpnt, (size_t) (&xr[32][0] - xrpnt) * sizeof (float));
  2387. granule.maxBandl = (uint32) (max + 1);
  2388. granule.maxb = (uint32) constants.longLimit[sampleRate][granule.maxBandl];
  2389. }
  2390. while (part2remain > 16)
  2391. {
  2392. getBits (16);
  2393. part2remain -= 16;
  2394. }
  2395. if (part2remain > 0)
  2396. getBits (part2remain);
  2397. else if (part2remain < 0)
  2398. return true;
  2399. return false;
  2400. }
  2401. void layer3Hybrid (float fsIn[32][18], float tsOut[18][32], int ch, const Layer3SideInfo::Info& granule) noexcept
  2402. {
  2403. auto* ts = (float*) tsOut;
  2404. float* rawout1, *rawout2;
  2405. int sb = 0;
  2406. {
  2407. int b = hybridBlockIndex[ch];
  2408. rawout1 = hybridBlock[b][ch];
  2409. b = 1 - b;
  2410. rawout2 = hybridBlock[b][ch];
  2411. hybridBlockIndex[ch] = b;
  2412. }
  2413. if (granule.mixedBlockFlag)
  2414. {
  2415. sb = 2;
  2416. DCT::dct36 (fsIn[0], rawout1, rawout2, constants.win[0], ts);
  2417. DCT::dct36 (fsIn[1], rawout1 + 18, rawout2 + 18, constants.win1[0], ts + 1);
  2418. rawout1 += 36;
  2419. rawout2 += 36;
  2420. ts += 2;
  2421. }
  2422. auto bt = granule.blockType;
  2423. if (bt == 2)
  2424. {
  2425. for (; sb < (int) granule.maxb; sb += 2, ts += 2, rawout1 += 36, rawout2 += 36)
  2426. {
  2427. DCT::dct12 (fsIn[sb], rawout1, rawout2, constants.win[2], ts);
  2428. DCT::dct12 (fsIn[sb + 1], rawout1 + 18, rawout2 + 18, constants.win1[2], ts + 1);
  2429. }
  2430. }
  2431. else
  2432. {
  2433. for (; sb < (int) granule.maxb; sb += 2, ts += 2, rawout1 += 36, rawout2 += 36)
  2434. {
  2435. DCT::dct36 (fsIn[sb], rawout1, rawout2, constants.win[bt], ts);
  2436. DCT::dct36 (fsIn[sb + 1], rawout1 + 18, rawout2 + 18, constants.win1[bt], ts + 1);
  2437. }
  2438. }
  2439. for (; sb < 32; ++sb, ++ts)
  2440. {
  2441. for (int i = 0; i < 18; ++i)
  2442. {
  2443. ts[i * 32] = *rawout1++;
  2444. *rawout2++ = 0;
  2445. }
  2446. }
  2447. }
  2448. void synthesiseStereo (const float* bandPtr0, const float* bandPtr1, float* out0, float* out1, int& samplesDone) noexcept
  2449. {
  2450. auto dummy = samplesDone;
  2451. synthesise (bandPtr0, 0, out0, dummy);
  2452. synthesise (bandPtr1, 1, out1, samplesDone);
  2453. }
  2454. void synthesise (const float* bandPtr, int channel, float* out, int& samplesDone)
  2455. {
  2456. out += samplesDone;
  2457. const int bo = channel == 0 ? ((synthBo - 1) & 15) : synthBo;
  2458. float (*buf)[0x110] = synthBuffers[channel];
  2459. float* b0;
  2460. auto bo1 = bo;
  2461. if (bo & 1)
  2462. {
  2463. b0 = buf[0];
  2464. DCT::dct64 (buf[1] + ((bo + 1) & 15), buf[0] + bo, bandPtr);
  2465. }
  2466. else
  2467. {
  2468. ++bo1;
  2469. b0 = buf[1];
  2470. DCT::dct64 (buf[0] + bo, buf[1] + bo1, bandPtr);
  2471. }
  2472. synthBo = bo;
  2473. const float* window = constants.decodeWin + 16 - bo1;
  2474. for (int j = 16; j != 0; --j, b0 += 16, window += 32)
  2475. {
  2476. auto sum = window[0] * b0[0]; sum -= window[1] * b0[1];
  2477. sum += window[2] * b0[2]; sum -= window[3] * b0[3];
  2478. sum += window[4] * b0[4]; sum -= window[5] * b0[5];
  2479. sum += window[6] * b0[6]; sum -= window[7] * b0[7];
  2480. sum += window[8] * b0[8]; sum -= window[9] * b0[9];
  2481. sum += window[10] * b0[10]; sum -= window[11] * b0[11];
  2482. sum += window[12] * b0[12]; sum -= window[13] * b0[13];
  2483. sum += window[14] * b0[14]; sum -= window[15] * b0[15];
  2484. *out++ = sum;
  2485. }
  2486. {
  2487. auto sum = window[0] * b0[0]; sum += window[2] * b0[2];
  2488. sum += window[4] * b0[4]; sum += window[6] * b0[6];
  2489. sum += window[8] * b0[8]; sum += window[10] * b0[10];
  2490. sum += window[12] * b0[12]; sum += window[14] * b0[14];
  2491. *out++ = sum;
  2492. b0 -= 16; window -= 32;
  2493. window += bo1 << 1;
  2494. }
  2495. for (int j = 15; j != 0; --j, b0 -= 16, window -= 32)
  2496. {
  2497. auto sum = -window[-1] * b0[0]; sum -= window[-2] * b0[1];
  2498. sum -= window[-3] * b0[2]; sum -= window[-4] * b0[3];
  2499. sum -= window[-5] * b0[4]; sum -= window[-6] * b0[5];
  2500. sum -= window[-7] * b0[6]; sum -= window[-8] * b0[7];
  2501. sum -= window[-9] * b0[8]; sum -= window[-10] * b0[9];
  2502. sum -= window[-11] * b0[10]; sum -= window[-12] * b0[11];
  2503. sum -= window[-13] * b0[12]; sum -= window[-14] * b0[13];
  2504. sum -= window[-15] * b0[14]; sum -= window[0] * b0[15];
  2505. *out++ = sum;
  2506. }
  2507. samplesDone += 32;
  2508. }
  2509. JUCE_DECLARE_NON_COPYABLE_WITH_LEAK_DETECTOR (MP3Stream)
  2510. };
  2511. //==============================================================================
  2512. static const char* const mp3FormatName = "MP3 file";
  2513. //==============================================================================
  2514. class MP3Reader : public AudioFormatReader
  2515. {
  2516. public:
  2517. MP3Reader (InputStream* const in)
  2518. : AudioFormatReader (in, mp3FormatName),
  2519. stream (*in), currentPosition (0),
  2520. decodedStart (0), decodedEnd (0)
  2521. {
  2522. skipID3();
  2523. const int64 streamPos = stream.stream.getPosition();
  2524. if (readNextBlock())
  2525. {
  2526. bitsPerSample = 32;
  2527. usesFloatingPointData = true;
  2528. sampleRate = stream.frame.getFrequency();
  2529. numChannels = (unsigned int) stream.frame.numChannels;
  2530. lengthInSamples = findLength (streamPos);
  2531. }
  2532. }
  2533. bool readSamples (int** destSamples, int numDestChannels, int startOffsetInDestBuffer,
  2534. int64 startSampleInFile, int numSamples) override
  2535. {
  2536. jassert (destSamples != nullptr);
  2537. if (currentPosition != startSampleInFile)
  2538. {
  2539. if (! stream.seek ((int) (startSampleInFile / 1152 - 1)))
  2540. {
  2541. currentPosition = -1;
  2542. createEmptyDecodedData();
  2543. }
  2544. else
  2545. {
  2546. decodedStart = decodedEnd = 0;
  2547. const int64 streamPos = stream.currentFrameIndex * 1152;
  2548. int toSkip = (int) (startSampleInFile - streamPos);
  2549. jassert (toSkip >= 0);
  2550. while (toSkip > 0)
  2551. {
  2552. if (! readNextBlock())
  2553. {
  2554. createEmptyDecodedData();
  2555. break;
  2556. }
  2557. const int numReady = decodedEnd - decodedStart;
  2558. if (numReady > toSkip)
  2559. {
  2560. decodedStart += toSkip;
  2561. break;
  2562. }
  2563. toSkip -= numReady;
  2564. }
  2565. currentPosition = startSampleInFile;
  2566. }
  2567. }
  2568. while (numSamples > 0)
  2569. {
  2570. if (decodedEnd <= decodedStart && ! readNextBlock())
  2571. {
  2572. for (int i = numDestChannels; --i >= 0;)
  2573. if (destSamples[i] != nullptr)
  2574. zeromem (destSamples[i] + startOffsetInDestBuffer, (size_t) numSamples * sizeof (float));
  2575. return false;
  2576. }
  2577. const int numToCopy = jmin (decodedEnd - decodedStart, numSamples);
  2578. float* const* const dst = reinterpret_cast<float**> (destSamples);
  2579. memcpy (dst[0] + startOffsetInDestBuffer, decoded0 + decodedStart, (size_t) numToCopy * sizeof (float));
  2580. if (numDestChannels > 1 && dst[1] != nullptr)
  2581. memcpy (dst[1] + startOffsetInDestBuffer, (numChannels < 2 ? decoded0 : decoded1) + decodedStart, (size_t) numToCopy * sizeof (float));
  2582. startOffsetInDestBuffer += numToCopy;
  2583. decodedStart += numToCopy;
  2584. currentPosition += numToCopy;
  2585. numSamples -= numToCopy;
  2586. }
  2587. return true;
  2588. }
  2589. private:
  2590. MP3Stream stream;
  2591. int64 currentPosition;
  2592. enum { decodedDataSize = 1152 };
  2593. float decoded0[decodedDataSize], decoded1[decodedDataSize];
  2594. int decodedStart, decodedEnd;
  2595. void createEmptyDecodedData() noexcept
  2596. {
  2597. zeromem (decoded0, sizeof (decoded0));
  2598. zeromem (decoded1, sizeof (decoded1));
  2599. decodedStart = 0;
  2600. decodedEnd = decodedDataSize;
  2601. }
  2602. bool readNextBlock()
  2603. {
  2604. for (int attempts = 10; --attempts >= 0;)
  2605. {
  2606. int samplesDone = 0;
  2607. const int result = stream.decodeNextBlock (decoded0, decoded1, samplesDone);
  2608. if (result > 0 && stream.stream.isExhausted())
  2609. {
  2610. createEmptyDecodedData();
  2611. return true;
  2612. }
  2613. if (result <= 0)
  2614. {
  2615. decodedStart = 0;
  2616. decodedEnd = samplesDone;
  2617. return result == 0;
  2618. }
  2619. }
  2620. return false;
  2621. }
  2622. void skipID3()
  2623. {
  2624. const int64 originalPosition = stream.stream.getPosition();
  2625. const uint32 firstWord = (uint32) stream.stream.readInt();
  2626. if ((firstWord & 0xffffff) == 0x334449)
  2627. {
  2628. uint8 buffer[6];
  2629. if (stream.stream.read (buffer, 6) == 6
  2630. && buffer[0] != 0xff
  2631. && ((buffer[2] | buffer[3] | buffer[4] | buffer[5]) & 0x80) == 0)
  2632. {
  2633. const uint32 length = (((uint32) buffer[2]) << 21)
  2634. | (((uint32) buffer[3]) << 14)
  2635. | (((uint32) buffer[4]) << 7)
  2636. | ((uint32) buffer[5]);
  2637. stream.stream.skipNextBytes (length);
  2638. return;
  2639. }
  2640. }
  2641. stream.stream.setPosition (originalPosition);
  2642. }
  2643. int64 findLength (int64 streamStartPos)
  2644. {
  2645. int64 numFrames = stream.numFrames;
  2646. if (numFrames <= 0)
  2647. {
  2648. const int64 streamSize = stream.stream.getTotalLength();
  2649. if (streamSize > 0)
  2650. {
  2651. const int bytesPerFrame = stream.frame.frameSize + 4;
  2652. if (bytesPerFrame == 417 || bytesPerFrame == 418)
  2653. numFrames = roundToInt ((streamSize - streamStartPos) / 417.95918); // more accurate for 128k
  2654. else
  2655. numFrames = (streamSize - streamStartPos) / bytesPerFrame;
  2656. }
  2657. }
  2658. return numFrames * 1152;
  2659. }
  2660. JUCE_DECLARE_NON_COPYABLE_WITH_LEAK_DETECTOR (MP3Reader)
  2661. };
  2662. }
  2663. //==============================================================================
  2664. MP3AudioFormat::MP3AudioFormat() : AudioFormat (MP3Decoder::mp3FormatName, ".mp3") {}
  2665. MP3AudioFormat::~MP3AudioFormat() {}
  2666. Array<int> MP3AudioFormat::getPossibleSampleRates() { return {}; }
  2667. Array<int> MP3AudioFormat::getPossibleBitDepths() { return {}; }
  2668. bool MP3AudioFormat::canDoStereo() { return true; }
  2669. bool MP3AudioFormat::canDoMono() { return true; }
  2670. bool MP3AudioFormat::isCompressed() { return true; }
  2671. StringArray MP3AudioFormat::getQualityOptions() { return {}; }
  2672. AudioFormatReader* MP3AudioFormat::createReaderFor (InputStream* sourceStream, const bool deleteStreamIfOpeningFails)
  2673. {
  2674. std::unique_ptr<MP3Decoder::MP3Reader> r (new MP3Decoder::MP3Reader (sourceStream));
  2675. if (r->lengthInSamples > 0)
  2676. return r.release();
  2677. if (! deleteStreamIfOpeningFails)
  2678. r->input = nullptr;
  2679. return nullptr;
  2680. }
  2681. AudioFormatWriter* MP3AudioFormat::createWriterFor (OutputStream*, double /*sampleRateToUse*/,
  2682. unsigned int /*numberOfChannels*/, int /*bitsPerSample*/,
  2683. const StringPairArray& /*metadataValues*/, int /*qualityOptionIndex*/)
  2684. {
  2685. jassertfalse; // not yet implemented!
  2686. return nullptr;
  2687. }
  2688. #endif
  2689. } // namespace juce