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Post-Error Correcting Code Modeling of Burst Channels Using Hidden Markov Models With Applications to Magnetic Recording

机译:使用隐马尔可夫模型的突发通道纠错码建模及其在磁记录中的应用

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摘要

We present two approaches for modeling burst channels using hidden Markov models (HMMs). The first method is based on the maximum-likelihood approach and improves on the computational efficiency of earlier methods. We present new algorithms for scaling and for determining the model parameters by using smart search techniques. We then generalize a gap length analysis and apply it to modeling HMMs. The algorithms are low-complexity and memory-efficient. Finally, we present simulation results for modeling errors in magnetic storage channels and show how this can be used for evaluating decoder failure rates by using Wolf's method, from real observed data
机译:我们提出了两种使用隐马尔可夫模型(HMM)对突发通道进行建模的方法。第一种方法基于最大似然法,并提高了先前方法的计算效率。我们提出了使用智能搜索技术进行缩放和确定模型参数的新算法。然后,我们对间隙长度分析进行概括,并将其应用于建模HMM。该算法复杂度低且存储效率高。最后,我们提供了对磁存储通道中的错误建模的仿真结果,并展示了如何使用Wolf方法从实际观测数据中将其用于评估解码器故障率

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