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Discrete channel modelling based on genetic algorithm and simulated annealing for training hidden Markov model

机译:基于遗传算法和模拟退火的离散通道建模用于隐马尔可夫模型的训练

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摘要

Hidden Markov models (HMMs) have been used to model burst error sources of wireless channels. This paper proposes a hybrid method of using genetic algorithm (GA) and simulated annealing (SA) to train HMM for discrete channel modelling. The proposed method is compared with pure GA, and experimental results show that the HMM strained by the hybrid method can better describe the error sequences due to SA's ability of facilitating hill-climbing at the later stage of the search. The burst error statistics of the HMM strained by the proposed method and the corresponding error sequences are also presented to validate the proposed method.
机译:隐马尔可夫模型(HMM)已用于对无线信道的突发错误源进行建模。本文提出了一种使用遗传算法(GA)和模拟退火(SA)来训练HMM的混合方法,用于离散信道建模。将该方法与纯GA进行了比较,实验结果表明,由于SA在搜索的后期具有促进爬山的能力,使用混合方法过滤的HMM可以更好地描述错误序列。还提出了由所提出的方法过滤的HMM的突发错误统计数据以及相应的错误序列,以验证所提出的方法。

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