FIR数字滤波器设计:利用LMS和Minimax策略的粒子群优化

M. Najjarzadeh, A. Ayatollahi
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引用次数: 79

摘要

本文采用粒子群算法设计了FIR滤波器。两种设计案例组织如下:低通和带通滤波器。此外,作者还研究了各种误差规范的效用,如最小均方(LMS)和极大极小值,以及它们对收敛行为和最佳结果频率响应的影响。研究了不同种群和迭代对基于粒子群算法的FIR滤波器设计的影响。给出了使用上述方法的一维FIR滤波器的示例,以说明所提出技术的有效性和效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
FIR Digital Filters Design: Particle Swarm Optimization Utilizing LMS and Minimax Strategies
In this paper, a FIR filter is designed using particle swarm optimization (PSO). Two design cases are organized as follows: low-pass and band-pass filter. In addition, the authors examine the utility of various error norms such as least mean squares (LMS) and minimax, and their impact on convergence behavior and optimal resultant frequency response. The effect of different population and iteration in PSO based FIR filter design is investigated, too. Examples of 1-D FIR filters are given using the above methodologies to illustrate the usefulness and efficiency of the proposed techniques.
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