Publication | Open Access
Constraint Selection-Based Semi-supervised Feature Selection
17
Citations
23
References
2011
Year
Unknown Venue
Efficient Locality PreservingImage AnalysisMachine LearningData ScienceData MiningPattern RecognitionInformation RetrievalEfficient SelectionEngineeringKnowledge DiscoveryFeature SelectionFeature ExtractionFeature EngineeringComputer SciencePair Wise ConstraintsDimensionality ReductionFeature Construction
In this paper, we present a novel feature selection approach based on an efficient selection of pair wise constraints. This aims at selecting the most coherent constraints extracted from labeled part of data. The relevance of features is then evaluated according to their efficient locality preserving and chosen constraint preserving ability. Finally, experimental results are provided for validating our proposal with respect to other known feature selection methods.
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