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Probability of Error Analysis for Hidden Markov Model Filtering With Random Packet Loss

机译:随机分组丢失的隐马尔可夫模型滤波的误差分析概率

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This paper studies the probability of error for maximum a posteriori (MAP) estimation of hidden Markov models, where measurements can be either lost or received according to another Markov process. Analytical expressions for the error probabilities are derived for the noiseless and noisy cases. Some relationships between the error probability and the parameters of the loss process are demonstrated via both analysis and numerical results. In the high signal-to-noise ratio (SNR) regime, approximate expressions which can be more easily computed than the exact analytical form for the noisy case are presented
机译:本文研究了隐马尔可夫模型的最大后验(MAP)估计的错误概率,其中根据另一个马尔可夫过程,测量可能会丢失或接收。对于无噪声和嘈杂的情况,得出了误差概率的解析表达式。通过分析和数值结果证明了误差概率与损失过程参数之间的一些关系。在高信噪比(SNR)的情况下,提出了一种近似表达式,该表达式比对于嘈杂情况的精确分析形式更容易计算

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