2015
DOI: 10.4103/2228-7477.150414
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A comparative study on preprocessing techniques in diabetic retinopathy retinal images: Illumination correction and contrast enhancement

Abstract: To investigate the effect of preprocessing techniques including contrast enhancement and illumination correction on retinal image quality, a comparative study was carried out. We studied and implemented a few illumination correction and contrast enhancement techniques on color retinal images to find out the best technique for optimum image enhancement. To compare and choose the best illumination correction technique we analyzed the corrected red and green components of color retinal images statistically and vi… Show more

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Cited by 49 publications
(37 citation statements)
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References 22 publications
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“…Disc edge detection has been further refined by PPA elimination techniques . Image preprocessing techniques such as blood vessel extraction, illumination normalization and contrast improvement have further improved disc segmentation …”
Section: Alternatives To Optic Nerve Analysis By Physiciansmentioning
confidence: 99%
See 1 more Smart Citation
“…Disc edge detection has been further refined by PPA elimination techniques . Image preprocessing techniques such as blood vessel extraction, illumination normalization and contrast improvement have further improved disc segmentation …”
Section: Alternatives To Optic Nerve Analysis By Physiciansmentioning
confidence: 99%
“…62 Image preprocessing techniques such as blood vessel extraction, illumination normalization and contrast improvement have further improved disc segmentation. 63 Optic cup segmentation is significantly more difficult than disc segmentation. This is due to a high density of blood vessels, more subtle colour intensity changes between the cup and the neuroretinal rim and anomalous contours due to glaucomatous damage (i.e.…”
Section: Alternatives To Optic Nerve Analysis By Physiciansmentioning
confidence: 99%
“…Similar procedures were applied for the BV and OD segmentation networks. We pre‐processed the images by applying a Gaussian filter …”
Section: Methodsmentioning
confidence: 99%
“…We pre-processed the images by applying a Gaussian filter. [27][28][29] All the three deep neural networks were implemented in Pytorch and evaluated on a graphic processing unit cluster with 10 Nvidia GeForce GTX 1080 Tis. In training the networks, we applied stochastic gradient descent with a momentum of 0.9, weight decay of 5 × 10 −3 , learning rate of 0.005, and decay rate of 0.96.…”
Section: Network Architecture and Trainingmentioning
confidence: 99%
“…In CAD systems with fundus retinal imaging techniques like histogram equalization (Sopharak et al 2008), color remapping (Marrugo and Millán 2011) or contrast enhancement (Rasta et al 2015) have been used to pre-process the images. But when the quality is too low sometimes is better strategy to discard the image because, even with the application of enhancement techniques, an accurate classification is not possible.…”
Section: Preprocessing and Image Enhancementmentioning
confidence: 99%