Publication | Closed Access
Using discriminant eigenfeatures for image retrieval
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Citations
18
References
1996
Year
Image TrainingMachine VisionImage AnalysisData ScienceMachine LearningImage RetrievalPattern RecognitionBiometricsAutomatic SelectionEngineeringFeature LearningComputer ScienceDiscriminant EigenfeaturesContent-based Image RetrievalPrincipal Component AnalysisImage SearchImage SimilarityComputer Vision
This paper describes the automatic selection of features from an image training set using the theories of multidimensional discriminant analysis and the associated optimal linear projection. We demonstrate the effectiveness of these most discriminating features for view-based class retrieval from a large database of widely varying real-world objects presented as "well-framed" views, and compare it with that of the principal component analysis.
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