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A Unified Geometric Model for Virtual Slide Image Processing and Classification

机译:虚拟幻灯片图像处理和分类的统一几何模型

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In this paper, we use the framework of partial difference equations on weighted graphs as a methodology to address the problem of computer-aided cytology. First, introduced to perform image smoothing and filtering, this framework has recently been extended to address segmentation and semi-supervised clustering of any discrete domain that can be represented by a graph of arbitrary topology. In particular, this framework unifies methods from image processing and machine learning communities within the same formulation. We demonstrate that this method can also be used effectively to unify preprocessing, image segmentation, and data classification for both Feulgen- and Papanicolaou-stained virtual slide processing as well as 3-D confocal microscopy. For evaluation we compare this approach to state-of-the-art algorithms for segmentation and classification.
机译:在本文中,我们使用加权图上的偏差分方程的框架作为解决计算机辅助细胞学问题的方法。首先,引入该框架以执行图像平滑和滤波,最近将该框架扩展为解决可以由任意拓扑图表示的任何离散域的分段和半监督聚类。尤其是,此框架在同一公式中统一了来自图像处理和机器学习社区的方法。我们证明该方法也可以有效地用于统一Feulgen和Papanicolaou染色的虚拟载玻片处理以及3-D共聚焦显微镜的预处理,图像分割和数据分类。为了进行评估,我们将这种方法与最新的细分和分类算法进行了比较。

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