Improvement of the Hard Exudates Detection Method Used For Computer- Aided Diagnosis of Diabetic Retinopathy

dc.contributor.authorFeroui, Amelen_US
dc.contributor.authorMessadi, Mohammeden_US
dc.contributor.authorBessaid, Abdelhafiden_US
dc.date.accessioned2013-02-24T14:05:57Zen_US
dc.date.available2013-02-24T14:05:57Zen_US
dc.date.issued2012-05en_US
dc.description.abstractDiabetic retinopathy is a severe and widely spread eye disease. Early diagnosis and timely treatment of these clinical signs such as hard exudates could efficiently prevent blindness. The presence of exudates within the macular region is a main hallmark of diabetic macular edema and allows its detection with high sensitivity. In this paper, we combine the k-means clustering algorithm and mathematical morphology to detect hard exudates (HEs) in retinal images of several diabetic patients. This method is tested on a set of 50 ophthalmologic images with variable brightness, color, and forms of HEs. The algorithm obtained a sensitivity of 95.92%, predictive value of 92.28% and accuracy of 99.70% using a lesion-based criterionen_US
dc.identifier.urihttps://dspace.univ-tlemcen.dz/handle/112/1462en_US
dc.language.isoenen_US
dc.subjectOphthalmologyen_US
dc.subjectColor Fundus Imagesen_US
dc.subjectDiabetic Retinopathy (DR)en_US
dc.subjectHard exudatesen_US
dc.subjectSegmentationen_US
dc.subjectMathematical morphologyen_US
dc.subjectk-means clusteringen_US
dc.titleImprovement of the Hard Exudates Detection Method Used For Computer- Aided Diagnosis of Diabetic Retinopathyen_US
dc.typeArticleen_US

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