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Automated Computational Diagnosis of Peripheral Retinal Pathology in Optical Coherence Tomography (OCT) Scans using Graph Theory

机译:光学相干断层扫描中外周视网膜病理学的自动计算诊断(OCT)扫描使用图论

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Analysis of retinal shape with optical coherence tomography (OCT) has been valuable in describing different ophthalmic conditions. An effective method for retinal contour delineation is graph theory. This study compares the ability of two different implementations of graph theory, the Livewire (LVW) intelligent scissors developed for ImageJ and a purpose-built graph searching function (GSF), to determine retinal shape for a retinal disease classifier. Both methods require user interaction. Retinal shape features derived from both methods were used to diagnose eyes with posterior vitreous detachment (PVD) or retinal detachment (RD) via quadratic discriminant analysis. Classification with each method was the same in 49 out of 51 eyes. Processing time was faster with the GSF than LVW. In mean (µ) ± standard deviation (SD), GSF took 524 ± 62 s and LVW took 814 ± 223 s (p = 5.52 x 10−14). Conclusively, GSF was easier to use and is preferred for further retinal shape analysis.
机译:用光学相干断层扫描(OCT)对视网膜形状的分析在描述不同眼科病症方面是有价值的。视网膜轮廓描绘的有效方法是图论。本研究比较了图形理论的两种不同实现的能力,为imagej开发的LiveWire(LVW)智能剪刀和目的构建的图形搜索功能(GSF),以确定视网膜疾病分类器的视网膜形状。两种方法都需要用户交互。通过二次判别分析,使用来自两种方法源自两种方法的视网膜形状特征用于诊断眼睛的后玻璃脱离(PVD)或视网膜脱离(RD)。每种方法的分类在51只眼中的49中是相同的。 GSF的处理时间比LVW更快。在平均(μ)±标准偏差(SD)中,GSF采用524±62秒,LVW采用814±223 s(P = 5.52 x 10 -14 )。结论,GSF更容易使用,并且优选用于进一步的视网膜形状分析。

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