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Systems and methods for automated classification of abnormalities in optical coherence tomography images of the eye

机译:用于对眼睛的光学相干断层扫描图像中的异常进行自动分类的系统和方法

摘要

Systems and methods for classifying abnormalities within optical coherence tomography images of the eye are presented. One embodiment of the present invention is the classification of pigment epithelial detachments (PEDs) based on characteristics of their internal reflectivity, size and shape. The classification can be based on selected subsets of the data located within or surrounding the abnormalities. Training data can be used to generate the classification scheme and the classification can be weighted to highlight specific classes of particular clinical interest.
机译:提出了用于对眼睛的光学相干断层图像中的异常进行分类的系统和方法。本发明的一个实施方案是基于色素上皮脱离(PED)的内部反射率,大小和形状的特征对其进行分类。该分类可以基于位于异常之内或周围的数据的选定子集。训练数据可用于生成分类方案,并且可对分类进行加权以突出显示具有特定临床兴趣的特定类别。

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