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Image classifiers for the Cell Transformation Assay. A progress report

机译:用于细胞转化测定的图像分类器。进度报告

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The Cell Transformation Assay (CTA) is one of the promising in vitro methods used to predict human carcinogenicity. The neoplastic phenotype is monitored in suitable cells by the formation of foci and observed by light microscopy after staining. Foci exhibit three types of morphological alterations: Type I, characterized by partially transformed cells, and Types II and III considered to have undergone neoplastic transformation. Foci recognition and scoring have always been carried visually by a trained human expert. In order to automatically classify foci images one needs to implement some image understanding algorithm. Herewith, two such algorithms are described and compared by performance. The supervised classifier (as described in previous articles) relies on principal components analysis embedded in a training feedback loop to process the morphological descriptors extracted by "spectrum enhancement" (SE). The unsupervised classifier architecture is based on the "partitioning around medoids" and is applied to image descriptors taken from histogram moments (HM). Preliminary results suggest the inadequacy of the HMs as image descriptors as compared to those from SE. A justification derived from elementary arguments of real analysis is provided in the Appendix.
机译:细胞转化分析(CTA)是用于预测人类致癌性的有前途的体外方法之一。通过灶的形成在合适的细胞中监测肿瘤表型,并在染色后通过光学显微镜观察。病灶表现出三种类型的形态学改变:以部分转化的细胞为特征的I型,以及据认为已发生肿瘤转化的II型和III型。焦点识别和评分始终由受过训练的人类专家以视觉方式进行。为了自动分类焦点图像,需要实现一些图像理解算法。因此,描述了两种这样的算法,并通过性能进行了比较。监督分类器(如先前文章中所述)依赖于嵌入在训练反馈回路中的主成分分析来处理通过“频谱增强”(SE)提取的形态描述符。无监督分类器架构基于“围绕类固醇划分”,并应用于从直方图矩(HM)提取的图像描述符。初步结果表明,与SE相比,HMs作为图像描述符的不足。附录中提供了从真实分析的基本参数中得出的理由。

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