Publication | Closed Access
Ship Classification in SAR Image by Joint Feature and Classifier Selection
95
Citations
17
References
2015
Year
Classifier SelectionEngineeringMachine LearningFeature SelectionMaritime SafetyClassifier Selection MethodNaval ArchitectureAppropriate ClassifierImage AnalysisData ScienceData MiningPattern RecognitionImaging RadarAutomatic Target RecognitionSynthetic Aperture RadarFeature EngineeringShip ClassificationJoint FeatureFeature ConstructionRadarRadar Image ProcessingClassifier System
Selecting discriminate features and constructing an appropriate classifier are two essential factors for ship classification in a synthetic aperture radar (SAR) image. Unfortunately, these two factors are rarely considered together by existing studies. We propose a joint feature and classifier selection method by integrating the classifier selection strategy into a wrapper feature selection framework. The sequential forward floating searching algorithm is improved to conduct efficient searching for an optimal triplet of feature-scaling-classifier. Comprehensive experiments on two data sets demonstrate that the proposed method can select the optimal combination of a nonredundant complementary feature subset, appropriate scaling, and classifier to improve the performance of ship classification in a SAR image.
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