2020
DOI: 10.1167/tvst.9.2.17
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A Deep-Learning Approach for Automated OCT En-Face Retinal Vessel Segmentation in Cases of Optic Disc Swelling Using Multiple En-Face Images as Input

Abstract: Citation: Islam MS, Wang J-K, Johnson SS, Thurtell MJ, Kardon RH, Garvin MK. A deep-learning approach for automated OCT en-face retinal vessel segmentation in cases of optic disc swelling using multiple en-face images as input. Trans Vis Sci Tech. 2020;9(2):17, https://doi.org/10. 1167/tvst.9.2.17 Purpose: In cases of optic disc swelling, segmentation of projected retinal blood vessels from optical coherence tomography (OCT) volumes is challenging due to swellingbased shadowing artifacts. Based on our hypot… Show more

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Cited by 10 publications
(7 citation statements)
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“…Deep learning approaches have achieved great success in OCT image segmentation tasks [19], [25], [32], [36], [41], [43], [48]. [47] developed a fully convolutional network with Gaussian process based post processing for retinal OCT segmentation.…”
Section: Related Workmentioning
confidence: 99%
“…Deep learning approaches have achieved great success in OCT image segmentation tasks [19], [25], [32], [36], [41], [43], [48]. [47] developed a fully convolutional network with Gaussian process based post processing for retinal OCT segmentation.…”
Section: Related Workmentioning
confidence: 99%
“…In the case of optic disc swelling, segmentation of projected retinal vessels from the volume of the OCT is challenging due to shadow artifacts caused by swelling. Islam et al (51) proposed that the vascular information from multiple projected retinal layers can significantly improve vascular visibility and designed a method based on DL to segment vessels, which involves simultaneously using three front images of the OCT as input. In the case of optic disc swelling, using multiple frontal images achieved better vascular segmentation compared with the traditional method using a single front image.…”
Section: Positioning Of the Optic Discmentioning
confidence: 99%
“…e Amsler Grid Test, OCT, Indocyanine Green Angiography, Ultrasound, Computed Tomography (CT), and Magnetic Resonance Imaging (MRI) are just a few of the procedures used to detect the location and severity of a disease. Among these, OCT is the most important screening tool for detecting rare retinal and optic nerve diseases, and three-dimensional retinal structural information is provided by OCT images using a light wave based approach [4]. Numerous researches have demonstrated that deep learning algorithms performed admirably when applied to medical image analysis for classification of skin diseases [5], cardiovascular diseases' risk prediction [6], lung cancer detection [7], and much more.…”
Section: Introductionmentioning
confidence: 99%