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An improved Teaching-Learning-Based Optimization Algorithm applied to the design of linear phase digital FIR filter

机译:一种改进的基于教学的优化算法,用于线性相位数字FIR滤波器的设计

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Optimization algorithms based on evolutionary techniques have been applied for the optimal design of the linear phase digital FIR filter for better control of the parameters of it. The coefficients of the actual filter are optimized by these algorithms to approximate the frequency response of the desired filter. In this paper, an improved Teaching-Learning-Based Optimization (ITLBO) algorithm is applied for the design of linear phase digital FIR filter and its results are compared with those obtained by using Teaching-Learning-Based Optimization (TLBO) algorithm. The simulation results and comparison show that fast convergence is obtained in the both the cases of TLBO and ITLBO algorithms; however, the approximation error is smaller in the case of ITLBO algorithm. When frequency responses obtained using these algorithms are compared with those obtained using least-squares (LS) method of FIR filter design, better performance is shown by ITLBO algorithm.
机译:基于进化技术的优化算法已应用于线性相位数字FIR滤波器的优化设计,以更好地控制其参数。这些算法对实际滤波器的系数进行了优化,以近似所需滤波器的频率响应。本文将一种改进的基于教学的学习优化算法(ITLBO)用于线性相位数字FIR滤波器的设计,并将其结果与使用基于教学的学习优化算法(TLBO)进行比较。仿真结果和比较表明,在TLBO和ITLBO算法中,都可以实现快速收敛。但是,在ITLBO算法的情况下,近似误差较小。将使用这些算法获得的频率响应与使用FIR滤波器设计的最小二乘(LS)方法获得的频率响应进行比较时,ITLBO算法显示出更好的性能。

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