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首页> 外文期刊>Biomedical Engineering, IEEE Transactions on >Segmentation of Choroidal Neovascularization in Fundus Fluorescein Angiograms
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Segmentation of Choroidal Neovascularization in Fundus Fluorescein Angiograms

机译:眼底荧光血管造影中脉络膜新生血管的分割

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摘要

Choroidal neovascularization (CNV) is a common manifestation of age-related macular degeneration (AMD). It is characterized by the growth of abnormal blood vessels in the choroidal layer causing blurring and deterioration of the vision. In late stages, these abnormal vessels can rupture the retinal layers causing complete loss of vision at the affected regions. Determining the CNV size and type in fluorescein angiograms is required for proper treatment and prognosis of the disease. Computer-aided methods for CNV segmentation is needed not only to reduce the burden of manual segmentation but also to reduce inter- and intraobserver variability. In this paper, we present a framework for segmenting CNV lesions based on parametric modeling of the intensity variation in fundus fluorescein angiograms. First, a novel model is proposed to describe the temporal intensity variation at each pixel in image sequences acquired by fluorescein angiography. The set of model parameters at each pixel are used to segment the image into regions of homogeneous parameters. Preliminary results on datasets from 21 patients with Wet-AMD show the potential of the method to segment CNV lesions in close agreement with the manual segmentation.
机译:脉络膜新生血管形成(CNV)是年龄相关性黄斑变性(AMD)的常见表现。其特征在于脉络膜层中异常血管的生长导致视力模糊和恶化。在后期,这些异常的血管会破裂视网膜层,导致受影响区域的视力完全丧失。要正确治疗和预后疾病,需要在荧光素血管造影图中确定CNV大小和类型。 CNV分割的计算机辅助方法不仅需要减轻手动分割的负担,而且还需要减少观察者之间和观察者内部的变异性。在本文中,我们提出了一种基于眼底荧光血管造影强度变化的参数化模型对CNV病变进行分割的框架。首先,提出了一种新颖的模型来描述荧光素血管造影所获得的图像序列中每个像素的时间强度变化。每个像素处的一组模型参数用于将图像分割为同类参数的区域。来自21位Wet-AMD患者的数据集的初步结果表明,该方法与手动分割非常吻合,可以分割CNV病变。

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