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Design of Real FIR Filters With Arbitrary Magnitude and Phase Specifications Using a Neural-Based Approach

机译:基于神经网络的具有任意幅度和相位规格的实际FIR滤波器设计

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An efficient and yet simple neural-based approach is utilized to design real finite-impulse response filters with arbitrary complex frequency responses in the least-squares sense. The proposed approach establishes the quadratic error difference of the filter optimization in the frequency domain as the Lyapunov energy function. Consequently, the optimal filter coefficients are obtained with good performance and fast convergence speed. To achieve good convergences for large filter lengths, a cooling process of simulated annealing is used for the neural activation function. Several examples and comparisons to the existing methods are presented to illustrate the effectiveness and flexibility of the neural-based method
机译:一种有效而又简单的基于神经的方法被用来设计具有最小二乘意义上的任意复杂频率响应的实际有限冲激响应滤波器。所提出的方法将频域中滤波器优化的二次误差差建立为李雅普诺夫能量函数。因此,可获得具有良好性能和快速收敛速度的最佳滤波器系数。为了在较大的滤波器长度下实现良好的收敛性,将模拟退火的冷却过程用于神经激活功能。提出了一些示例并与现有方法进行了比较,以说明基于神经的方法的有效性和灵活性

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