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The correntropy MACE filter

机译:熵MACE滤波器

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摘要

The minimum average correlation energy (MACE) filter is well known for object recognition. This paper proposes a nonlinear extension to the MACE filter using the recently introduced correntropy function. Correntropy is a positive definite function that generalizes the concept of correlation by utilizing second and higher order moments of the signal statistics. Because of its positive definite nature, correntropy induces a new reproducing kernel Hilbert space (RKHS). Taking advantage of the linear structure of the RKHS it is possible to formulate the MACE filter equations in the RKHS induced by correntropy and obtained an approximate solution. Due to the nonlinear relation between the feature space and the input space, the correntropy MACE (CMACE) can potentially improve upon the MACE performance while preserving the shift-invariant property (additional computation for all shifts will be required in the CMACE). To alleviate the computation complexity of the Solution, this paper also presents the fast CMACE using the fast Gauss transform (FGT). We apply the CMACE filter to the MSTAR public release synthetic aperture radar (SAR) data set as well as PIE database of human faces and show that the proposed method exhibits better distortion tolerance and outperforms the linear MACE in both generalization and rejection abilities.
机译:最小平均相关能量(MACE)滤波器对于物体识别是众所周知的。本文提出了使用最近引入的熵函数对MACE滤波器进行非线性扩展的方法。熵是一个正定函数,它通过利用信号统计的二阶和更高阶矩来推广相关性的概念。由于其正定性质,因此,熵引起了新的繁殖核希尔伯特空间(RKHS)。利用RKHS的线性结构,可以在由熵引起的RKHS中公式化MACE滤波器方程,并获得近似解。由于特征空间和输入空间之间存在非线性关系,因此,在保留平移不变属性的同时,熵MACE(CMACE)可以潜在地改善MACE性能(在CMACE中将需要对所有平移进行附加计算)。为了减轻解决方案的计算复杂性,本文还介绍了使用快速高斯变换(FGT)的快速CMACE。我们将CMACE滤波器应用于MSTAR公开发布的合成孔径雷达(SAR)数据集以及人脸的PIE数据库,结果表明,该方法具有更好的失真容限,并且在泛化和抑制能力方面均优于线性MACE。

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