IEEE Transactions on Image Processing · 2015 · 44 citations · 22 references
EngineeringFeature DetectionBiometricsAffine InvarianceLocalizationImage AnalysisReflection RemovalPattern RecognitionPhotometric StereoEdge DetectionComputational GeometryGeometric ModelingMachine VisionSymmetry AxesMedical Image ComputingComputer VisionReflection Symmetry DetectionNatural SciencesComputer Stereo Vision
Reflection symmetry detection receives increasing attentions in recent years. The state-of-the-art algorithms mainly use the matching of intensity-based features (such as the SIFT) within a single image to find symmetry axes. This paper proposes a novel approach by establishing the correspondence of locally affine invariant edge-based features, which are superior to the intensity based in the aspects that it is insensitive to illumination variations, and applicable to textureless objects. The locally affine invariance is achieved by simple linear algebra for efficient and robust computations, making the algorithm suitable for detections under object distortions like perspective projection. Commonly used edge detectors and a voting process are, respectively, used before and after the edge description and matching steps to form a complete reflection detection pipeline. Experiments are performed using synthetic and real-world images with both multiple and single reflection symmetry axis. The test results are compared with existing algorithms to validate the proposed method.
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