Publication | Open Access
Significance of Softmax-based Features in Comparison to Distance Metric Learning-based Features
69
Citations
29
References
2019
Year
Geometric LearningConvolutional Neural NetworkObjective ComparisonsEngineeringMachine LearningSimilarity MeasureBiometricsDml StudiesClassification MethodImage ClassificationImage AnalysisData ScienceData MiningPattern RecognitionFusion LearningSame Network ArchitectureMachine VisionFeature LearningKnowledge DiscoveryComputer ScienceImage SimilarityMedical Image ComputingDeep LearningFeature ConstructionComputer VisionSoftmax-based Features
End-to-end distance metric learning (DML) has been applied to obtain features useful in many computer vision tasks. However, these DML studies have not provided equitable comparisons between features extracted from DML-based networks and softmax-based networks. In this paper, we present objective comparisons between these two approaches under the same network architecture.
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