Publication | Open Access
Automatic Detection of Microaneurysms in RGB Retinal Fundus Images
10
Citations
20
References
2015
Year
EngineeringFeature DetectionDisease DetectionBiomedical EngineeringDiabetic RetinopathyImage AnalysisRetinaMathematical MorphologyPattern RecognitionEdge DetectionMicroaneurysm LesionsRadiologyMachine VisionOphthalmologyMedical ImagingVisual DiagnosisMedical Image ComputingComputer VisionBiomedical ImagingComputer-aided DiagnosisGlaucomaMedicineAutomatic Detection
In this study, an efficient and fast-working method to detect microaneurysm lesions, first symptom of diabetic retinopathy, is described. The proposed method is based on mathematical morphology, object pixel classification and connected component analysis. The proposed algorithm responses in 4.8 seconds for 2048x1536 pixel images. This shows this system runs faster than other microaneurysm detection systems. The sensitivity and specificity of this system is 69.1% and 99.3% specificity, respectively.
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