Iterative Decoding of Convolutionally Encoded Multiple Descriptions

K. Yen, Chun-Feng Wu, Wen-Whei Chang
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引用次数: 2

Abstract

Transmission of convolutionally encoded multiple descriptions over noisy channels can bene¿t from the use of iterative source-channel decoding methods. This paper investigates the combined use of time-dependencies and inter-description correlation incurred by the multiple description scalar quantizer. We ¿rst modi¿ed the BCJR algorithm in a way that symbol a posteriori probabilities can be derived and used as extrinsic information to help iterative decoding between channel and source decoders. Also proposed is a recursive implementation for the source decoder that exploits the inter-description correlation to jointly decode multiple descriptions. Simulation results indicate that our proposed scheme can achieve signi¿cant improvement over the bit-level iterative decoding schemes.
卷积编码多重描述的迭代解码
卷积编码的多重描述在噪声信道上的传输可以受益于迭代源信道解码方法的使用。本文研究了多描述标量量化器产生的时间依赖性和描述间相关性的综合利用。我们首先对BCJR算法进行了改进,使符号后验概率可以被导出并用作外部信息,以帮助信道和源解码器之间的迭代解码。本文还提出了一种源解码器的递归实现,利用描述间的相关性对多个描述进行联合解码。仿真结果表明,该方案比现有的位级迭代译码方案有明显的改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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