Publication | Closed Access
Elliptically Contoured Distributions for Anomalous Change Detection in Hyperspectral Imagery
62
Citations
27
References
2009
Year
Anomaly DetectionEngineeringMultispectral ImagingChange DetectionChange AnalysisImage AnalysisData SciencePattern RecognitionComputational ImagingContoured DistributionsHyperspectral Image PairsMachine VisionSpectral ImagingGeographyInverse ProblemsEc FunctionHyperspectral ImagingComputer VisionNovelty DetectionRemote SensingAnomalous Changes
We derive a class of algorithms for detecting anomalous changes in hyperspectral image pairs by modeling the data with elliptically contoured (EC) distributions. These algorithms are generalizations of well-known detectors that are obtained when the EC function is Gaussian. The performance of these EC-based anomalous change detectors is assessed on real data using both real and simulated changes. In these experiments, the EC-based detectors substantially outperform their Gaussian counterparts.
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