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首页> 外文期刊>IEEE Transactions on Signal Processing >Time-varying performance surfaces for adaptive IIR filters: geometric properties and implications for filter stability
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Time-varying performance surfaces for adaptive IIR filters: geometric properties and implications for filter stability

机译:自适应IIR滤波器的时变性能表面:几何特性及其对滤波器稳定性的影响

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摘要

We present a new framework for understanding the performance of adaptive IIR filters which enhances the understanding of filter stability during on-line operation. This new understanding arises from examining geometric properties of time-varying performance surfaces which are defined by the data, rather than the standard steady-state error surfaces as defined by statistics of the data. Data-dependent descent directions used in adaptive algorithms to update filter coefficients typically are viewed as functions of gradients defined on fixed performance surfaces, and data is used to approximate these gradients at each iteration. In contrast, we view data-dependent descent directions at each iteration as functions of exact gradients on time-varying performance surfaces. By examining the shape of these time-varying performance surfaces near filter stability boundaries, we are able to identify the origin of on-line stability problems associated with existing adaptive IIR filtering formulations, and suggest corrective measures. Specifically, by using exact z-domain methods, we define time-varying performance surfaces which geometrically enforce filter stability, and maintain the geometric and physical properties of the "true" error surface at each iteration. Development of adaptive algorithms based on this measure is expected to result in adaptive filters having improved stability performance during on-line operation.
机译:我们提出了一个新的框架,用于理解自适应IIR滤波器的性能,从而增强了对在线操作过程中滤波器稳定性的理解。通过检查由数据定义的时变性能曲面的几何特性,而不是由数据统计信息定义的标准稳态误差曲面,可以得出这种新的理解。在自适应算法中用于更新滤波器系数的依赖于数据的下降方向通常被视为固定性能表面上定义的梯度的函数,并且数据在每次迭代时用于近似这些梯度。相反,我们将每次迭代中与数据相关的下降方向视为时变性能面上精确梯度的函数。通过检查滤波器稳定性边界附近这些时变性能表面的形状,我们能够确定与现有自适应IIR滤波公式相关的在线稳定性问题的根源,并提出纠正措施。具体而言,通过使用精确的z域方法,我们定义了随时间变化的性能曲面,这些曲面在几何上强制了滤波器的稳定性,并在每次迭代时保持“真实”误差表面的几何和物理特性。期望基于该措施的自适应算法的开发将导致自适应滤波器在在线操作期间具有改善的稳定性能。

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