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Bayesian Volterra system identification using reversible jump MCMC algorithm

机译:基于可逆跳MCMC算法的贝叶斯Volterra系统辨识

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摘要

Volterra systems have had significant success in modelling nonlinear systems in various real-world applications. However, it is generally assumed that the nonlinearity degree of the system is known beforehand. In this paper, we contribute to the literature on Volterra system identification (VSI) with a numerical Bayesian approach which identifies model coefficients and the nonlinearity degree concurrently. Although this numerical Bayesian method, namely reversible jump Markov chain Monte Carlo (RJMCMC) algorithm has been used with success in various model selection problems, our use is in a novel context in the sense that both memory size and nonlinearity degree are estimated. The aforementioned study ensures an anomalous approach to RJMCMC and provides a new understanding on its flexible use which enables trans-structural transitions between different classes of models in addition to transdimensional transitions for which it is classically used. We study the performance of the method on synthetically generated data including OFDM communications over a nonlinear channel.%Nonlinear channel estimation; Nonlinearity degree estimation; Reversible jump MCMC; Volterra system identification
机译:Volterra系统在各种实际应用中的非线性系统建模方面取得了巨大的成功。但是,通常假设系统的非线性度是事先已知的。在本文中,我们通过数字贝叶斯方法为Volterra系统识别(VSI)的文献做出贡献,该方法同时识别模型系数和非线性程度。虽然这种数值贝叶斯方法,即可逆跳跃马尔可夫链蒙特卡罗(RJMCMC)算法已成功用于各种模型选择问题,但在估计内存大小和非线性程度的意义上,我们的使用是一种新颖的方法。前述研究确保了RJMCMC的异常处理方式,并为其灵活使用提供了新的认识,除了传统上使用的跨维度转换之外,它还使不同类型的模型之间可以进行跨结构转换。我们研究了该方法对包括非线性信道上的OFDM通信在内的合成数据的性能。非线性度估计;可逆跳MCMC Volterra系统识别

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  • 来源
    《Signal processing》 |2017年第12期|125-136|共12页
  • 作者单位

    İzmir Institute of Technology (IZTECH), Electrical-Electronics Engineering, İzmir, Turkey;

    ISTI-CNR, via G. Moruzzi 1, 56124, Pisa, Italy;

    İzmir Institute of Technology (IZTECH), Electrical-Electronics Engineering, İzmir, Turkey;

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