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A Low Processing Cost Adaptive Algorithm Identifying Nonlinear Unknown System with Piecewise Linear Curve

机译:分段线性曲线的非线性未知系统的低处理成本自适应算法

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This paper proposes an adaptive algorithm for identifying unknown systems containing nonlinear amplitude characteristics. Usually, the nonlinearity is so small as to be negligible. However, in low cost systems, such as acoustic echo canceller using a small loudspeaker, the nonlinearity deteriorates the performance of the identification. Several methods preventing the deterioration, polynomial or Volterra series approximations, have been hence proposed and studied. However, the conventional methods require high processing cost. In this paper, we propose a method approximating the nonlinear characteristics with a piecewise linear curve and show using computer simulations that the performance can be extremely improved. The proposed method can also reduce the processing cost to only about twice that of the linear adaptive filter system.
机译:本文提出了一种自适应算法,用于识别包含非线性幅度特征的未知系统。通常,非线性很小,可以忽略不计。但是,在低成本系统中,例如使用小型扬声器的回声消除器,非线性会降低识别性能。因此,已经提出并研究了几种防止劣化的方法,多项式或Volterra级数逼近。然而,常规方法需要高处理成本。在本文中,我们提出了一种使用分段线性曲线近似非线性特征的方法,并使用计算机仿真表明可以极大地改善性能。所提出的方法还可以将处理成本降低到仅线性自适应滤波器系统的两倍。

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