Publication | Open Access
Edge detection based on gradient ghost imaging
68
Citations
22
References
2015
Year
EngineeringDeblurringImage AnalysisPattern RecognitionComputational ImagingEdge DetectionGhost ImagingMachine VisionMedical ImagingGradient GiMedical Image ComputingImage EnhancementSignal ProcessingComputer VisionBiomedical ImagingVideo DenoisingImage DenoisingImage RestorationImage Segmentation
We present an experimental demonstration of edge detection based on ghost imaging (GI) in the gradient domain. Through modification of a random light field, gradient GI (GGI) can directly give the edge of an object without needing the original image. As edges of real objects are usually sparser than the original objects, the signal-to-noise ratio (SNR) of the edge detection result will be dramatically enhanced, especially for large-area, high-transmittance objects. In this study, we experimentally perform one- and two-dimensional edge detection with a double-slit based on GI and GGI. The use of GGI improves the SNR significantly in both cases. Gray-scale objects are also studied by the use of simulation. The special advantages of GI will make the edge detection based on GGI be valuable in real applications.
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