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Soft-decision decoding of fixed-rate entropy-coded trellis-coded quantizer over a noisy channel

机译:嘈杂信道上固定速率熵编码网格编码量化器的软判决解码

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This paper presents new techniques to improve the performance of a fixed-rate entropy-coded trellis-coded quantizer (FE-TCQ) in transmission over a noisy channel. In this respect, we first present the optimal decoder for a fixed-rate entropy-coded vector quantizer (FEVQ). We show that the optimal decoder for the FEVQ can be a maximum likelihood decoder where a trellis structure is used to model the set of possible code words and the Viterbi algorithm is subsequently applied to select the most likely path through this trellis. In order to add quantization packing gain to the FEVQ, we take advantage of a trellis-coded quantization (TCQ) scheme. To prevent error propagation, it is necessary to use a block structure obtained through a truncation of the corresponding trellis. To perform this task in an efficient manner, we apply the idea of tail biting to the trellis structure of the underlying TCQ. It is shown that the use of a tail-biting trellis significantly reduces the required block length with respect to some other possible alternatives known for trellis truncation. This results in a smaller delay and also mitigates the effect of error propagation in signaling over a noisy channel. Finally, we present methods and numerical results for the combination of the proposed FEVQ soft decoder and a tail-biting TCQ. These results show that, by an appropriate design of the underlying components, one can obtain a substantial improvement in the overall performance of such a fixed-rate entropy-coded scheme.
机译:本文提出了新技术,以提高在有噪声信道上传输的固定速率熵编码网格编码量化器(FE-TCQ)的性能。在这方面,我们首先提出用于固定速率熵编码矢量量化器(FEVQ)的最佳解码器。我们表明,FEVQ的最佳解码器可以是最大似然解码器,其中网格结构用于对可能的代码字集进行建模,随后应用维特比算法选择通过该网格的最可能路径。为了将量化打包增益添加到FEVQ,我们利用了网格编码量化(TCQ)方案。为了防止错误传播,必须使用通过截断相应网格而获得的块结构。为了以有效的方式执行此任务,我们将咬尾的思想应用于基础TCQ的网格结构。结果表明,相对于一些已知的网格截断可能的替代方式,使用咬尾网格可以显着减少所需的块长。这导致较小的延迟,并且还减轻了在噪声信道上的信令中的错误传播的影响。最后,我们给出了将建议的FEVQ软解码器和咬尾TCQ相结合的方法和数值结果。这些结果表明,通过对底层组件进行适当的设计,可以使这种固定速率的熵编码方案的整体性能得到实质性的改善。

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