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Computer-aided Identification Of Ovarian Cancer In Confocal Microendoscope Images

机译:共聚焦显微内窥镜图像中卵巢癌的计算机辅助识别

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The confocal microendoscope is an instrument for imaging the surface of the human ovary. Images taken with this instrument from normal and diseased tissue show significant differences in cellular distribution. A real-time computer-aided system to facilitate the identification of ovarian cancer is introduced. The cellular-level structure present in ex vivo confocal microendoscope images is modeled as texture. Features are extracted based on first-order statistics, spatial gray-level-dependence matrices, and spatial-frequency content. Selection of the features is performed using stepwise discriminant analysis, forward sequential search, a nonparametric method, principal component analysis, and a heuristic technique that combines the results of these other methods. The selected features are used for classification, and the performance of various machine classifiers is compared by analyzing areas under their receiver operating characteristic curves. The machine classifiers studied included linear discriminant analysis, quadratic discriminant analysis, and the k-nearest-neighbor algorithm. The results suggest it is possible to automatically identify pathology based on texture features extracted from confocal microendoscope images and that the machine performance is superior to thatrnof a human observer.
机译:共聚焦微内窥镜是用于对人卵巢表面成像的仪器。用该仪器从正常组织和患病组织拍摄的图像显示出细胞分布的显着差异。介绍了一种有助于识别卵巢癌的实时计算机辅助系统。存在于共聚焦显微内窥镜图像中的细胞水平结构被建模为纹理。基于一阶统计量,空间灰度相关性矩阵和空间频率内容提取特征。使用逐步判别分析,正向顺序搜索,非参数方法,主成分分析以及结合了这些其他方法结果的启发式技术来执行特征的选择。所选功能用于分类,并通过分析其接收器工作特性曲线下的区域来比较各种机器分类器的性能。研究的机器分类器包括线性判别分析,二次判别分析和k最近邻算法。结果表明,可以根据从共聚焦微内窥镜图像中提取的纹理特征自动识别病理,并且机器性能优于人类观察者。

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