Publication | Closed Access
An Efficient Method for Supervised Hyperspectral Band Selection
275
Citations
13
References
2010
Year
EngineeringMachine LearningEfficient MethodBand SelectionFeature SelectionClassification MethodImage AnalysisData ScienceData MiningPattern RecognitionBand CombinationsImaging SpectroscopySpectral ImagingKnowledge DiscoveryBand-selection MethodsComputer VisionHyperspectral ImagingData ClassificationRemote SensingClassifier System
Band selection is often applied to reduce the dimensionality of hyperspectral imagery. When the desired object information is known, it can be achieved by finding the bands that contain the most object information. It is expected that these bands can provide an overall satisfactory detection and classification performance. In this letter, we propose a new supervised band-selection algorithm that uses the known class signatures only without examining the original bands or the need of class training samples. Thus, it can complete the task much faster than traditional methods that test bands or band combinations. The experimental result shows that our approach can generally yield better results than other popular supervised band-selection methods in the literature.
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