Extended Marginal Fisher Analysis Based on Difference Criterion

Journal of Information and Computational Science(2013)

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摘要
The reasonable construction of neighbor graph plays an important impact to improve the efficiency of face recognition in Marginal Fisher Analysis (MFA) algorithm. In this paper, a new method of constructing neighbor graph is proposed to improve the recognition accuracy of MFA. Specifically, we try to map the raw data of the training samples to a new feature space F, then we select the nearest neighbor points directly based on the new distances, thereby constructing the graph. In addition, we also introduce a new criterion function, which can overcome some shortcomings of MFA. The contrastive experiments on several benchmark face databases show the effectiveness of proposed method. © 2013 by Binary Information Press.
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关键词
dimensionality reduction,face recognition,graph construction,marginal fisher analysis
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