Publication | Open Access
Robust shape regularity criteria for superpixel evaluation
15
Citations
20
References
2017
Year
Unknown Venue
Circular AppearanceEngineeringStatistical Shape AnalysisShape AnalysisComputer-aided DesignExpress RegularityImage AnalysisPattern RecognitionSuperpixel EvaluationVideo Super-resolutionEdge DetectionComputational GeometryGeometric ModelingMachine VisionComputer ScienceMedical Image ComputingComputer VisionNatural SciencesRegular DecompositionsShape ModelingImage Segmentation
Regular decompositions are necessary for most superpixel-based object recognition or tracking applications. So far in the literature, the regularity or compactness of a superpixel shape is mainly measured by its circularity. In this work, we first demonstrate that such measure is not adapted for super-pixel evaluation, since it does not directly express regularity but circular appearance. Then, we propose a new metric that considers several shape regularity aspects: convexity, balanced repartition, and contour smoothness. Finally, we demonstrate that our measure is robust to scale and noise and enables to more relevantly compare superpixel methods.
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