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A novel reduced-rank approach for implementing Volterra filters

机译:用于实现Volterra滤波器的新颖的降秩方法

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This paper presents a novel reduced-rank approach for implementing Volterra filters with reduced complexity. Such an approach is based on the application of the singular value decomposition to a new form of coefficient matrix obtained by exploiting the representation based on diagonal coordinates of the Volterra kernels. The result is a parallel structure of extended Hammerstein models in which each branch is related to one of the singular values of the coefficient matrix. Then, removing the branches related to the smallest singular values, an effective reduced-complexity Volterra implementation is obtained. Simulation results are presented to confirm the effectiveness of the proposed approach.
机译:本文提出了一种新颖的降阶方法,用于以降低的复杂度实现Volterra滤波器。这种方法基于将奇异值分解应用于通过利用基于Volterra核的对角坐标的表示形式获得的新形式的系数矩阵。结果是扩展Hammerstein模型的并行结构,其中每个分支与系数矩阵的奇异值之一相关。然后,删除与最小奇异值有关的分支,即可获得有效的降低复杂度的Volterra实现。仿真结果表明了该方法的有效性。

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