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Segmentation of Three-dimensional Retinal Image Data

机译:三维视网膜图像数据分割

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摘要

We have combined methods from volume visualization and data analysis to support better diagnosis and treatment of human retinal diseases. Many diseases can be identified by abnormalities in the thicknesses of various retinal layers captured using optical coherence tomography (OCT). We used a support vector machine (SVM) to perform semi-automatic segmentation of retinal layers for subsequent analysis including a comparison of layer thicknesses to known healthy parameters. We have extended and generalized an older SVM approach to support better performance in a clinical setting through performance enhancements and graceful handling of inherent noise in OCT data by considering statistical characteristics at multiple levels of resolution. The addition of the multi-resolution hierarchy extends the SVM to have “global awareness.” A feature, such as a retinal layer, can therefore be modeled within the SVM as a combination of statistical characteristics across all levels; thus capturing high- and low-frequency information. We have compared our semi-automatically generated segmentations to manually segmented layers for verification purposes. Our main goals were to provide a tool that could (i) be used in a clinical setting; (ii) operate on noisy OCT data; and (iii) isolate individual or multiple retinal layers in both healthy and disease cases that contain structural deformities.
机译:我们结合了从体积可视化到数据分析的方法,以支持更好地诊断和治疗人类视网膜疾病。可以通过光学相干断层扫描(OCT)捕获的各种视网膜层厚度异常来识别许多疾病。我们使用支持向量机(SVM)对视网膜层进行半自动分割,以进行后续分析,包括将层厚度与已知健康参数进行比较。我们扩展并推广了一种较旧的SVM方法,以通过在多个分辨率级别上考虑统计特性来增强性能并妥善处理OCT数据中的固有噪声,从而在临床环境中支持更好的性能。多分辨率层次结构的添加使SVM具有“全局意识”。因此,可以在SVM中将诸如视网膜层之类的特征建模为所有级别的统计特征的组合。从而捕获高频和低频信息。我们已将半自动生成的细分与手动细分的图层进行了比较,以进行验证。我们的主要目标是提供一种可以(i)在临床环境中使用的工具; (ii)对嘈杂的OCT数据进行操作; (iii)在健康和患有结构畸形的疾病病例中,分离单个或多个视网膜层。

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