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A novel robust kernel for applications to images
Conference paper

A novel robust kernel for applications to images

Chia-Te Liao and Shang-Hong Lai
ICASSP, IEEE International Conference on Acoustics, Speech and Signal Processing - Proceedings, pp.1785-1788
2009

Abstract

Data visualization Digit recognition Robust classification Robust kernel
Robustness is an essential issue to computer vision and pattern recognition in developing multimedia applications. In this work, we present a robust kernel approach that is highly robust against random noises and intra-class deformations. By incorporating the robust error function used in robust statistics together with a deformation-invariant distance measure, the derived robust kernel is shown to be insensitive to the influence of outliers and robust to intra-class deformations. In the experiments, we justify our robust kernel with different kernel machines with applications to handwritten digit recognition and data visualization on the USPS database. ©2009 IEEE.

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