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Discrete channel modelling based on genetic algorithm and simulated annealing for training hidden Markov model
Authors:Zhao Zhi-Jin  Zheng Shi-Lian  Xu Chun-Yun and Kong Xian-Zheng
Institution:Telecommunication School, Hangzhou Dianzi University, Hangzhou 310018, China
Abstract: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 HMMs trained 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 HMMs trained by the proposed method and the corresponding error sequences are also presented to validate the proposed method.
Keywords:hidden Markov model  discrete channel model  genetic algorithm  simulated annealing
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