非对称FIR滤波器的多目标遗传算法

Sabbir U. Ahmad, Andreas Antoniou
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引用次数: 7

摘要

提出了一种用于设计非对称FIR滤波器的遗传算法,该算法能满足对幅度响应和群延迟特性的多重要求。该遗传算法实现了一种多目标优化方法,以获得手头问题的所谓帕累托最优解。通过仅在通带而不是像传统设计那样在整个基带施加相位线性,在设计中引入了灵活性。该遗传算法是一种特殊的精英非支配排序遗传算法(ENSGA),它采用十进制编码方案和基于幅度响应和通带群延迟的多目标误差公式。实验结果表明,与使用最先进的加权最小二乘方法相比,ENSGA具有更好的幅度响应和延迟特性。
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A Multiobjective Genetic Algorithm for Asymmetric FIR Filters
A genetic algorithm (GA) for the design of asymmetric FIR filters that would satisfy multiple requirements imposed on the amplitude response and group-delay characteristic is proposed. The GA implements a multiobjective optimization approach for obtaining so-called Pareto-optimal solutions of the problem at hand. Flexibility is introduced in the design by imposing phase linearity only in the passband instead of the entire baseband as in conventional designs. The proposed GA is a specially tailored elitist nondominated sorting genetic algorithm (ENSGA) and it involves a decimal encoding scheme and a multiobjective error formulation based on the amplitude response and passband group delay. Experimental results show that the ENSGA leads to improved amplitude response as well as delay characteristic relative to those achieved by using a state-of-the-art weighted least-squares approach.
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