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Design and simulation of FIR band pass and band stop filters using gravitational search algorithm

机译:利用引力搜索算法设计和模拟FIR带通和带阻滤波器

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摘要

In this paper, a new optimization method named gravitational search algorithm (GSA) is adopted for designing optimal linear phase finite impulse response band pass (BP) and band stop (BS) digital filters. Other various population based evolutionary algorithms like real coded genetic algorithm, conventional particle swarm optimization, differential evolution (DE), bee swarm optimization have also been applied for the sake of comparative study of the same optimal designs. In GSA, particles are considered as objects and their performances are measured by their masses. All these objects attract each other by gravity forces, and these forces produce global movements of all objects towards the objects with heavier masses. GSA guarantees the exploitation step of the algorithm and it is apparently free from premature convergence. Extensive simulation results justify superior optimization capability of GSA over the afore-mentioned optimization techniques for the solution of the multimodal, non-differentiable, highly non-linear, and constrained filter design problems.
机译:本文采用一种称为重力搜索算法(GSA)的优化方法来设计最佳线性相位有限冲激响应带通(BP)和带阻(BS)数字滤波器。为了比较研究相同的最佳设计,还应用了其他各种基于种群的进化算法,如实编码遗传算法,常规粒子群优化,差分进化(DE),蜂群优化。在GSA中,将粒子视为对象,并根据其质量来衡量其性能。所有这些物体在重力的作用下相互吸引,这些力使所有物体向质量较重的物体整体运动。 GSA保证了算法的开发步骤,并且显然没有过早收敛。广泛的仿真结果证明,与上述优化技术相比,GSA具有出色的优化能力,可以解决多峰,不可微,高度非线性和受约束的滤波器设计问题。

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