Publication | Closed Access
Fast maximum likelihood classification of remotely-sensed imagery
74
Citations
3
References
1987
Year
EngineeringMachine LearningBiometricsMultispectral ImagingSoftware VersionImage ClassificationImage AnalysisData SciencePattern RecognitionRemotely-sensed ImageryMachine VisionCommercial Image ProcessorGeographyComputer ScienceHyperspectral ImagingLand Cover MapComputer VisionRemote SensingRemote Sensing SensorExecution Time
Abstract We have devised, written and tested an implementation of the Gaussian Maximum Likelihood classification method for a commercial image processor. This has resulted in significant savings in execution time for the classification of multispectural remotely-sensed imagery, at very little cost to the accuracy, when compared to a software version of the same algorithm.
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