基于频率响应掩蔽方法的IIR滤波器

M. Lutovac, L. Milic
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引用次数: 19

摘要

本文提出了一种基于频率响应掩蔽方法的IIR数字滤波器设计方法。整体滤波器结构基于周期模型滤波器、互补周期模型滤波器和掩蔽滤波器。将原型低通IIR滤波器中的每个延迟替换为M个延迟,得到周期模型滤波器。掩蔽滤波器的设计是为了消除周期模型滤波器或互补周期模型滤波器中不需要的带。整体滤波器的过渡带宽比原型滤波器小M倍。该技术可用于设计锐利的低通、高通、带通和带阻滤波器。IIR模型滤波器是由两个全通分支并联组成的低灵敏度波格数字滤波器(WDF-s)实现的。在全通部分,将每个延迟替换为M个延迟,得到周期模型滤波器。这样,滤波器的最大采样频率增加了M倍。我们证明了模型滤波器的传递函数是一个椭圆最小Q因子(EMQF)滤波器,适合于高效的WDF实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
IIR filters based on frequency-response masking approach
In this paper, IIR digital filter design based on the frequency-response masking approach is presented. The overall filter structure is based on the periodic model filter, complementary periodic model filter, and masking filters. The periodic model filter is obtained by replacing each delay in the prototype low-pass IIR filter by M delays. Masking filters are designed to eliminate unwanted bands from the periodic model filter or complementary periodic model filter. The transition bandwidth of the overall filter is M times smaller to that of the prototype filter. This technique can be used to design sharp low-pass, high-pass, band-pass, and band-stop filters. IIR model filters are implemented as low-sensitivity wave lattice digital filters (WDF-s) consisting of two all-pass branches in parallel. In all-pass sections, each delay is replaced with M delays to obtain periodic model filter. This way maximal sample frequency of the filter is M times increased. We show that the transfer function of the model filter is an elliptic minimal Q factors (EMQF) filter suitable for the efficient WDF implementation.
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