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Single channel time-varying amplitude LFM interference blind separation using MHMPSO particle filtering

机译:单通道时变幅度LFM干扰盲分离使用MHMPSO粒子滤波

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A new approach is proposed for single channel blind signal separation(SCBSS) problem of communication signal and time-varying amplitude LFM interference based on Metropolis-Hastings mutation particle swarm optimized particle filtering (MHMPSOPF). The proposed algorithm aims to obtain the maximum a posterior (MAP) estimate of communication code and the unknown parameters using particle filtering by establishing the state space model for the interfered signal, Specially, in order to overcome the sample impoverishment problem, particle swarm optimized is introduced to the re-sampling process in particle filtering(PF). In such a way, the number of needed particles is reduced and the variety of particles is retained during the sequential estimation process, moreover, the proposed algorithm has superior performance under time-varying amplitude LFM interference. Simulation results show that the method is effective to separate communication signal and interference when the ISR is less than 20dB and SNR is more than 14dB.
机译:基于Metropolis-Hastings突变粒子群群优化粒子滤波(MHMPSOPF),提出了一种新的通信信号和时变幅度LFM干扰的单通道盲信号分离(SCBS)问题。所提出的算法旨在通过建立受干扰信号的状态空间模型来获得通信代码的最大(MAP)估计和使用粒子滤波,特别是为了克服样本贫困问题,粒子群优化是引入粒子滤波中的重新采样过程(PF)。以这种方式,减少所需颗粒的数量,并且在顺序估计过程中保留各种粒子,此外,所提出的算法在时变幅度LFM干扰下具有优异的性能。仿真结果表明,当ISR小于20dB时,该方法有效地分离通信信号和干扰,并且SNR大于14dB。

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