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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Segmentation of macular fluorescein angiographies. A statistical approach
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Segmentation of macular fluorescein angiographies. A statistical approach

机译:黄斑荧光素血管造影术的细分。统计方法

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摘要

This paper is concerned with the use of Bayesian methods in the segmentation of macular fluorescein angiographies. Fluorescein angiography is used ill ophthalmic practice to evaluate vascular retinopathies and choroidopathies: Sodium fluorescein is injected in the arm's cubital vein of the patient and its distribution is observed along retinal vessels at certain times. In this task a previous and essential step is the segmentation of the image into its relevant components. In order to obtain this segmentation Bayesian methods can be used because a previous knowledge about the spatial structure of the scene to be segmented is available in this kind of images. The stochastic model assumed for the observed intensities is a simple model with a Gaussian noise process which is statiscally independent between pixels. The process of labels x is modelled as a Markov random field with a space-dependent external field expressing the anatomy of the ocular fundus and higher order interactions encouraging blood vessels to be thin and large. This procedure is applied to different cases of diabetic retinophaty and vein occlusions. Two algorithms have been used to estimate x, simulated annealing and iterated conditional modes. In order to evaluate the accuracy of the estimation several error measures have been calculated. (C) 2001 Pattern Recognition Society. Published by Elsevier Science Ltd. All rights reserved. [References: 30]
机译:本文涉及贝叶斯方法在黄斑荧光素血管造影术分割中的应用。荧光素血管造影用于眼科实践,以评估血管性视网膜病变和脉络膜病变:将荧光素钠注射到患者的腕肘静脉内,并在某些时间沿视网膜血管观察其分布。在此任务中,先前的必不可少的步骤是将图像分割为其相关组件。为了获得这种分割,可以使用贝叶斯方法,因为在这种类型的图像中可获得关于要分割的场景的空间结构的先前知识。为观察到的强度假定的随机模型是具有高斯噪声过程的简单模型,该过程在像素之间稳定地独立。标记x的过程被建模为马尔可夫随机场,其空间依赖的外部场表达了眼底的解剖结构和更高阶的相互作用促进了血管的变细和变大。该程序适用于糖尿病性视网膜病变和静脉阻塞的不同病例。已经使用两种算法来估计x,模拟退火和迭代条件模式。为了评估估计的准确性,已经计算了几种误差度量。 (C)2001模式识别学会。由Elsevier Science Ltd.出版。保留所有权利。 [参考:30]

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