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Design of Two-Channel Quadrature Mirror Filter Banks Using Minor Component Analysis Algorithm

机译:基于次要成分分析算法的两通道正交镜面滤波器组设计

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摘要

The design of two-channel quadrature mirror filter banks can be constructed based on real infinite impulse response (IIR) all-pass digital filters without yielding magnitude distortion. The design problem is first formulated as a phase optimization using IIR all-pass filters in the least-squares sense. Then the nonlinear phase optimization is further converted into solving an eigenproblem of an appropriate real, symmetric, and positive-definite matrix. In this paper, the minor component analysis algorithm based on the neural learning rule is exploited to the design of eigenfilter. When the learning algorithm achieves convergence, the weights of the neural system approximate the smallest eigenvector, which are the optimal filter coefficients of the IIR all-pass filters. The simulation results confirm that the proposed neural-based method can achieve accurate performance by incorporating the simple neural model.
机译:可以基于真实的无限脉冲响应(IIR)全通数字滤波器来构建两通道正交镜滤波器组的设计,而不会产生幅度失真。首先将设计问题表述为使用最小二乘意义上的IIR全通滤波器进行相位优化。然后,将非线性相位优化进一步转换为求解适当的实,对称和正定矩阵的本征问题。本文将基于神经学习规则的次要成分分析算法用于特征滤波器的设计。当学习算法达到收敛时,神经系统的权重接近最小特​​征向量,这是IIR全通滤波器的最佳滤波器系数。仿真结果证实,所提出的基于神经的方法通过合并简单的神经模型可以实现准确的性能。

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