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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Unsupervised segmentation and classification of cervical cell images
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Unsupervised segmentation and classification of cervical cell images

机译:宫颈细胞图像的无监督分割和分类

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The Pap smear test is a manual screening procedure that is used to detect precancerous changes in cervical cells based on color and shape properties of their nuclei and cytoplasms. Automating this procedure is still an open problem due to the complexities of cell structures. In this paper, we propose an unsupervised approach for the segmentation and classification of cervical cells. The segmentation process involves automatic thresholding to separate the cell regions from the background, a multi-scale hierarchical segmentation algorithm to partition these regions based on homogeneity and circularity, a binary classifier to finalize the separation of nuclei from cytoplasm within the cell regions. Classification is posed as a grouping problem by ranking the cells based on their feature characteristics modeling abnormality degrees. The proposed procedure constructs a tree using hierarchical clustering, then arranges the cells in a linear order by using an optimal leaf ordering algorithm that maximizes the similarity of adjacent leaves without any requirement for training examples or parameter adjustment. Performance evaluation using two data sets show the effectiveness of the proposed approach in images having inconsistent staining, poor contrast, overlapping cells.
机译:子宫颈抹片检查是一种手动筛选程序,用于根据子宫颈细胞核和细胞质的颜色和形状特性来检测子宫颈细胞的癌前变化。由于细胞结构的复杂性,使该过程自动化仍然是一个未解决的问题。在本文中,我们提出了一种无监督的宫颈细胞分类方法。分割过程包括自动阈值化以将细胞区域与背景分离,多尺度分层分割算法基于均质性和圆形度对这些区域进行分割,二元分类器最终确定细胞区域内细胞核与细胞质的分离。通过基于细胞的特征特征建模异常程度对细胞进行分级,分类被归类为分组问题。所提出的过程使用分层聚类构造一棵树,然后通过使用最佳叶子排序算法以线性顺序排列单元,该算法使相邻叶子的相似性最大化,而无需训练示例或调整参数。使用两个数据集的性能评估表明,该方法在染色不一致,对比度差,细胞重叠的图像中是有效的。

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