DocumentCode :
2543554
Title :
A Unified Framework for Kernelization: The Empirical Kernel Feature Space
Author :
Xiong, Huilin
Author_Institution :
Inst. of Image Process. & Pattern Recognition, Shanghai Jiao Tong Univ., Shanghai, China
fYear :
2009
fDate :
4-6 Nov. 2009
Firstpage :
1
Lastpage :
5
Abstract :
In this paper, we propose to kernelize linear learning machines, e.g., PCA and LDA, in the empirical kernel feature space, a finite-dimensional embedding space, in which the distances of the data in the kernel feature space are preserved. The empirical kernel feature space provides a unified framework for the kernelization of all kinds of linear machines: performing a linear machine in the finite-dimensional empirical feature space, its nonlinear kernel machine is then established in the original input data space. This method is different from the conventional kernel-trick based kernelization, and more importantly, the final nonlinear kernel machines, called empirical kernel machines, are shown to be more efficient in many real-world applications, such as face recognition and facial expression recognition, than the kernel-trick based kernel machines.
Keywords :
emotion recognition; face recognition; feature extraction; learning (artificial intelligence); principal component analysis; PCA; face recognition; facial expression recognition; finite-dimensional embedding space; finite-dimensional empirical feature space; input data space; kernel feature space; kernel-trick based kernelization; linear discriminant analysis; linear learning machine kernelization; Face recognition; Image processing; Kernel; Linear discriminant analysis; Machine learning; Pattern analysis; Pattern recognition; Principal component analysis; Support vector machines; Training data;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Pattern Recognition, 2009. CCPR 2009. Chinese Conference on
Conference_Location :
Nanjing
Print_ISBN :
978-1-4244-4199-0
Type :
conf
DOI :
10.1109/CCPR.2009.5344130
Filename :
5344130
Link To Document :
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