首页> 外文会议>Emerging Technologies and Factory Automation, 1996. EFTA '96. Proceedings., 1996 IEEE Conference on >Genetic algorithm based identification of nonlinear systems by sparse Volterra filters
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Genetic algorithm based identification of nonlinear systems by sparse Volterra filters

机译:基于遗传算法的稀疏Volterra滤波器辨识非线性系统

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In this paper, a sparse Volterra filter with parsimonious parametrization scheme is proposed. The sparse Volterra filter contains only the cross-products of input signals which contribute significantly to the system output. Based on the genetic algorithm, a scheme is proposed in this paper to automatically estimate the significant terms of cross-products of input signals. As the significant terms are detected, the associated Volterra kernels are estimated by the method of least square error. An operator called forced mutation is proposed to increase the rate of convergence of the genetic algorithm. Mathematical analysis is made to justify the effect of forced mutation.
机译:本文提出了一种具有稀疏参数化方案的稀疏Volterra滤波器。稀疏的Volterra滤波器仅包含输入信号的叉积,这些积对系统输出有重大贡献。基于遗传算法,提出了一种自动估计输入信号互积有效项的方案。当检测到有效项时,通过最小二乘方差的方法估计相关的Volterra内核。为了提高遗传算法的收敛速度,提出了一种叫做强制突变的算子。进行数学分析以证明强制突变的影响。

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