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Hidden Markov models for the burst error statistics of Viterbi decoding

机译:维特比解码突发错误统计的隐马尔可夫模型

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摘要

The method of the hidden Markov model (HMM) is used to develop a faithful model for the burst error statistics of Viterbi decoding of convolutional codes. One of the advantages of building such a model is that it can be used to generate the output sequence with little cost and can provide a basis for studying other system parameters. The HMM developed generally performs better than the geometric model and, in most cases, better than the previously proposed Markov model, and it requires much fewer parameters than those of the Markov model for convolutional codes of large constraint length.
机译:使用隐马尔可夫模型(HMM)的方法为卷积码的维特比解码的突发错误统计数据开发了一个忠实的模型。建立这样的模型的优点之一是,它可以用于以很少的成本生成输出序列,并且可以为研究其他系统参数提供基础。开发的HMM通常表现得比几何模型更好,并且在大多数情况下,也比先前提出的Markov模型更好,并且对于大约束长度的卷积码,它需要的参数比Markov模型的参数少得多。

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