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Segmentation and Detection of Nuclei in Silver Stained Cell Specimens for Early Cancer Diagnosis

机译:银染细胞标本中核的分割和检测,用于早期癌症诊断

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For successful cure, cancer has to be detected as early as possible. Since cancer starts from a single cell, this can best be done using cytopathological methods. One important diagnostically relevant measure is the proliferation rate of the cells, which can be estimated from segmented silver stained nuclei. However, the microscopy images of silver stained specimens vary strongly in intensity and contrast and are furthermore compromised by an overall texture. We show that a precise segmentation of the nuclei is possible using a two-step approach. First, an oversegmentation with the mean shift algorithm is obtained. In a second step, these regions are merged to objects, guided by a suitable shape model, viz an ellipse, but simultaneously allowing deviations from this shape model. The segmentation results are compared to a gold standard of 8617 nuclei from 23 specimens of the thyroid gland, achieving a mean areal segmentation error of 驴Anucleus = 12驴m2 per nucleus.
机译:为了成功治愈,必须尽早发现癌症。由于癌症是从单个细胞开始的,因此最好使用细胞病理学方法来完成。一种重要的与诊断相关的措施是细胞的增殖速率,可以从分段的银染细胞核中估算出细胞的增殖速率。但是,银染标本的显微图像在强度和对比度上变化很大,并且还受到整体质地的损害。我们表明,使用两步方法可以对原子核进行精确的分割。首先,获得了均值平移算法的超分割。在第二步中,将这些区域合并到对象,并在合适的形状模型的引导下将它们合并为椭圆,但同时允许与该形状模型的偏差。将分割结果与来自23个甲状腺标本的8617核的金标准进行比较,得出平均平均分割误差为KEYAnucleus = 12驴米2 /每个核。

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