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Identification of eyes at risk of developing idiopathic macular holes by support vector machines

机译:通过支持向量机识别眼睛造成发作性黄斑孔的风险

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This work aims to discriminate between healthy eyes and eyes at risk of developing idiopathic macular hole (IMH). Fits of well known mathematical functions were used to model the topography of the retina with special emphasis on the foveal depression. Based on this set of fits, we are able to describe and, therefore, to analyze the shape of the retinal surface. The working hypothesis is that differences can be found within the parameters of the set of functions used to describe the retinal topography between the two groups of eyes. We have resorted to a pattern classification support vector machine algorithm to discriminate between groups through training using known cases.
机译:这项工作旨在区分健康的眼睛和眼睛,患有发作性黄斑洞(IMH)的风险。众所周知的数学函数的适合用于模拟视网膜的形貌,特别强调污水抑郁症。基于这组拟合,我们能够描述和因此分析视网膜表面的形状。工作假设是可以在用于描述两组眼睛之间的视网膜地形的功能的参数内找到差异。我们采取了一种模式分类支持向量机算法,通过使用已知情况通过培训来区分组。

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