Literature DB >> 24709053

A unified framework for glaucoma progression detection using Heidelberg Retina Tomograph images.

Akram Belghith1, Madhusudhanan Balasubramanian2, Christopher Bowd3, Robert N Weinreb4, Linda M Zangwill5.   

Abstract

Glaucoma, the second leading cause of blindness worldwide, is an optic neuropathy characterized by distinctive changes in the optic nerve head (ONH) and visual field. The detection of glaucomatous progression is one of the most important and most challenging aspects of primary open angle glaucoma (OAG) management. In this context, ocular imaging equipment is increasingly sophisticated, providing quantitative tools to measure structural changes in ONH topography, an essential element in determining whether the disease is getting worse. In particular, the Heidelberg Retina Tomograph (HRT), a confocal scanning laser technology, has been commonly used to detect glaucoma and monitor its progression. In this paper, we present a new framework for detection of glaucomatous progression using HRT images. In contrast to previous works that do not integrate a priori knowledge available in the images, particularly the spatial pixel dependency in the change detection map, the Markov Random Field is proposed to handle such dependency. To the best of our knowledge, this is the first application of the Variational Expectation Maximization (VEM) algorithm for inferring topographic ONH changes in the glaucoma progression detection framework. Diagnostic performance of the proposed framework is compared to recently proposed methods of progression detection.
Copyright © 2014 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Change detection; Glaucoma; Markov field; Variational approximation

Mesh:

Year:  2014        PMID: 24709053      PMCID: PMC4053521          DOI: 10.1016/j.compmedimag.2014.03.002

Source DB:  PubMed          Journal:  Comput Med Imaging Graph        ISSN: 0895-6111            Impact factor:   4.790


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Authors:  J Zhang
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4.  Optic disc progression in glaucoma: comparison of confocal scanning laser tomography to optic disc photographs in a prospective study.

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7.  Primary open-angle glaucoma, intraocular pressure, and diabetes mellitus in the general elderly population. The Rotterdam Study.

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9.  Heidelberg retina tomography and optical coherence tomography in normal, ocular-hypertensive, and glaucomatous eyes.

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Review 10.  Optical coherence tomography to detect and manage retinal disease and glaucoma.

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5.  Artificial Intelligence Algorithms to Diagnose Glaucoma and Detect Glaucoma Progression: Translation to Clinical Practice.

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