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Global Inference Preserving Projection for Semi-supervised Discriminant Analysis
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作者 谷小婧 孙韶媛 方建安 《Journal of Donghua University(English Edition)》 EI CAS 2012年第2期144-147,共4页
Semi-supervised dimensionality reduction is an important research area for data classification. A new linear dimensionality reduction approach, global inference preserving projection (GIPP), was proposed to perform ... Semi-supervised dimensionality reduction is an important research area for data classification. A new linear dimensionality reduction approach, global inference preserving projection (GIPP), was proposed to perform classification task in semi-supervised case. GIPP provided a global structure that utilized the underlying discriminative knowledge of unlabeled samples. It used path-based dissimilarity measurement to infer the class label information for unlabeled samples and transformd the diseriminant algorithm into a generalized eigenequation problem. Experimental results demonstrate the effectiveness of the proposed approach. 展开更多
关键词 semi-supervised learning dimensionality reduction manifom structure
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