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Almost minimax design of FIR filter using an IRLS algorithm without matrix inversion

机译:使用IRLS算法而无需矩阵反转,FIR滤波器几乎最小的Minimax设计

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An iterative reweighted least squares (IRLS) algorithm is presented in this paper for the minimax design of FIR filters. In the algorithm, the resulted subproblems generated by the weighted least squares (WLS) are solved by using the conjugate gradient (CG) method instead of the time-consuming matrix inversion method. An almost minimax solution for filter design is consequently obtained. This solution is found to be very efficient compared with most existing algorithms. Moreover, the filtering solution is flexible enough for extension towards a broad range of filter designs, including constrained filters. Two design examples are given and the comparison with other existing algorithms shows the excellent performance of the proposed algorithm.
机译:本文提出了一种迭代重新重量的最小二乘法(IRSS)算法,用于FIR滤波器的MIMIMAX设计。在算法中,通过使用共轭梯度(CG)方法而不是耗时的矩阵反转方法来解决由加权最小二乘(WLS)生成的所产生的子问题。因此获得了滤波器设计的几乎最小的解决方案。与大多数现有算法相比,该解决方案被发现非常有效。此外,过滤溶液足够灵活,以延伸朝向广泛的过滤器设计,包括约束过滤器。给出了两个设计示例,与其他现有算法的比较显示了所提出的算法的优异性能。

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