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Digital IIR Filters Design Using Differential Evolution Algorithm with a Controllable Probabilistic Population Size

机译:使用具有可控制概率种群大小的差分进化算法设计数字IIR滤波器

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摘要

Design of a digital infinite-impulse-response (IIR) filter is the process of synthesizing and implementing a recursive filter network so that a set of prescribed excitations results a set of desired responses. However, the error surface of IIR filters is usually non-linear and multi-modal. In order to find the global minimum indeed, an improved differential evolution (DE) is proposed for digital IIR filter design in this paper. The suggested algorithm is a kind of DE variants with a controllable probabilistic (CPDE) population size. It considers the convergence speed and the computational cost simultaneously by nonperiodic partial increasing or declining individuals according to fitness diversities. In addition, we discuss as well some important aspects for IIR filter design, such as the cost function value, the influence of (noise) perturbations, the convergence rate and successful percentage, the parameter measurement, etc. As to the simulation result, it shows that the presented algorithm is viable and comparable. Compared with six existing State-of-the-Art algorithms-based digital IIR filter design methods obtained by numerical experiments, CPDE is relatively more promising and competitive.
机译:数字无限冲激响应(IIR)滤波器的设计是合成和实现递归滤波器网络的过程,以便一组规定的激励产生一组所需的响应。但是,IIR滤波器的误差面通常是非线性和多峰的。为了确实找到全局最小值,本文针对数字IIR滤波器设计提出了一种改进的差分进化(DE)方法。所提出的算法是一种DE变体,具有可控制的概率(CPDE)总体大小。它根据适应度多样性,通过非周期性局部增加或减少个体来同时考虑收敛速度和计算成本。此外,我们还讨论了IIR滤波器设计的一些重要方面,例如成本函数值,(噪声)扰动的影响,收敛速度和成功百分比,参数测量等。对于仿真结果,它表明所提出的算法是可行的并且具有可比性。与通过数值实验获得的六种现有的基于最新算法的数字IIR滤波器设计方法相比,CPDE相对更具前景和竞争力。

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