自适应线性相位和陷波滤波器的线性约束最小化方法

M.T. Schiavoni, M. Amin
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引用次数: 6

摘要

采用无约束公式实现线性约束最小二乘问题,并将其应用于自适应预测和估计。该公式类似于广义旁瓣消去器中使用的公式,其中通过将权重向量分解为约束相关分量和由应用程序确定的其他分量来合并约束,这些分量可以使用自适应技术从数据中找到。本文给出了信号处理中常用的线性相位滤波器和陷波滤波器的约束权向量的非自适应分量。详细介绍了在无约束最小化中用于增强滤波器权值的偶对称性以及滤波器多项式的一对复共轭零的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A linearly constrained minimization approach to adaptive linear phase and notch filters
The linearly constrained least-squares problems are implemented using unconstrained formulation and applied to both adaptive prediction and estimation. This formulation is similar to the one used in the generalized sidelobe canceler, where the constraints are incorporated through a decomposition of the weight vector into constraint-dependent components and other components which are determined by the application and can be found from the data using adaptive techniques. The authors formulate the nonadaptive components of the constraint weight vector for linear phase filters and notch filters, which are commonly used in various applications in signal processing. The mechanism used to enforce even symmetry of the filter weights as well as a pair of complex-conjugate zeros of the filter polynomial in the unconstrained minimization is detailed.<>
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