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A Sparse-Interpolated Scheme for Implementing Adaptive Volterra Filters

机译:实现自适应Volterra滤波器的稀疏插值方案

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In most practical applications, the major drawback for using adaptive Volterra filters is the large number of coefficients to cope with. Several research works discussing strategies to reduce the computational burden of these structures have been presented in the open literature. For such, a common approach has been the use of some type of sparseness in Volterra filter kernels. In this work, a sparse-interpolated approach, with the interpolation having the purpose of recreating (in an approximate way) the elements disregarded for obtaining sparse kernels, is presented and discussed. Thus, for the adaptive sparse-interpolated Volterra filter, coefficient update expressions considering both least-mean-square (LMS) and normalized LMS (NLMS) algorithms are derived by using a constrained approach. In general, the proposed strategy outperforms other sparse schemes in terms of the tradeoff between computational complexity and mean-square error (MSE) performance, as shown through numerical simulations.
机译:在大多数实际应用中,使用自适应Volterra滤波器的主要缺点是需要处理大量系数。在公开文献中已经提出了几种研究策略,这些策略讨论了减少这些结构的计算负担的策略。为此,一种常见的方法是在Volterra滤波器内核中使用某种类型的稀疏性。在这项工作中,提出并讨论了一种稀疏插值方法,该插值法的目的是(以近似方式)重新创建为获得稀疏内核而忽略的元素。因此,对于自适应稀疏插值的Volterra滤波器,通过使用约束方法来导出同时考虑最小均方(LMS)和归一化LMS(NLMS)算法的系数更新表达式。一般而言,如数值模拟所示,在计算复杂度和均方误差(MSE)性能之间的权衡方面,所提出的策略优于其他稀疏方案。

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