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首页> 外文期刊>IEEE transactions on audio, speech and language processing >Mean-Squared Error Analysis of Adaptive Subband-Based System Identification
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Mean-Squared Error Analysis of Adaptive Subband-Based System Identification

机译:基于自适应子带的系统辨识的均方误差分析

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摘要

Subband-based system identification is considered. The analysis in this paper gives geometric insights into the source of error in subband-based system identification. In particular, the mean-squared error arises as the residual after an orthogonal projection onto a subspace defined by the analysis filter impulse response. The minimum mean-squared identification error, which depends on the impulse response of the unknown system, is shown to be upper bounded by the error in a deterministic least-squares problem that involves the analysis filter response but is independent of the unknown system. The upper bounds may be used as criteria for analysis filter design that minimize the mean-squared error for the worst case unknown system, i.e., this is a minimax approach. An alternative subband processing structure is inspired by minimizing the projection residual. Examples show that significant reduction in minimum mean-squared error is possible.
机译:考虑基于子带的系统识别。本文的分析为基于子带的系统识别中的误差来源提供了几何学见解。特别地,均方误差作为正交投影到由分析滤波器脉冲响应定义的子空间之后的残差而出现。最小均方识别误差取决于未知系统的脉冲响应,在确定性最小二乘问题中显示出该误差的上限,该问题涉及分析滤波器响应,但与未知系统无关。上限可以用作分析滤波器设计的标准,以最小化最坏情况未知系统的均方误差,即,这是最小极大方法。通过最小化投影残差来启发出另一种子带处理结构。实例表明最小均方误差的显着降低是可能的。

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