• Title/Summary/Keyword: MPEG-4 ER-BSAC

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Complexity Reduction of MPEG-4 ER-BSAC Decoder Using Significance Tree Structure (중요도 트리 구조를 이용한 MPEG-4 ER-BSAC 디코더의 복잡도 개선)

  • Ahn, Young-Uk;Jung, Gyu-Heok;Kim, Gyu-Jin;Lee, In-Sung
    • Proceedings of the IEEK Conference
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    • 2006.06a
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    • pp.355-356
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    • 2006
  • MPEG-4 ER-BSAC decoder employes a full search method for maximum significance search and arithmetic decoding position search in spectral data decoding procedure. Then the search procedure have the most complexity. This paper proposes the new search method, the maximum significance tree structure, for the optimized implementation of BSAC decoder.

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Optimized DSP Implementation of Audio Decoders for Digital Multimedia Broadcasting (디지털 방송용 오디오 디코더의 DSP 최적화 구현)

  • Park, Nam-In;Cho, Choong-Sang;Kim, Hong-Kook
    • Journal of Broadcast Engineering
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    • v.13 no.4
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    • pp.452-462
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    • 2008
  • In this paper, we address issues associated with the real-time implementation of the MPEG-1/2 Layer-II (or MUSICAM) and MPEG-4 ER-BSAC decoders for Digital Multimedia Broadcasting (DMB) on TMS320C64x+ that is a fixed-point DSP processor with a clock speed of 330 MHz. To achieve the real-time requirement, they should be optimized in different steps as follows. First of all, a C-code level optimization is performed by sharing the memory, adjusting data types, and unrolling loops. Next, an algorithm level optimization is carried out such as the reconfiguration of bitstream reading, the modification of synthesis filtering, and the rearrangement of the window coefficients for synthesis filtering. In addition, the C-code of a synthesis filtering module of the MPEG-1/2 Layer-II decoder is rewritten by using the linear assembly programming technique. This is because the synthesis filtering module requires the most processing time among all processing modules of the decoder. In order to show how the real-time implementation works, we obtain the percentage of the processing time for decoding and calculate a RMS value between the decoded audio signals by the reference MPEG decoder and its DSP version implemented in this paper. As a result, it is shown that the percentages of the processing time for the MPEG-1/2 Layer-II and MPEG-4 ER-BSAC decoders occupy less than 3% and 11% of the DSP clock cycles, respectively, and the RMS values of the MPEG-1/2 Layer-II and MPEG-4 ER-BSAC decoders implemented in this paper all satisfy the criterion of -77.01 dB which is defined by the MPEG standards.