巴氏涂片检查图像中的细胞核分割

Asi Kale, S. Aksoy, S. Onder
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引用次数: 4

摘要

子宫颈癌是一种可预防的疾病,它引起的异常增生可以通过使用巴氏涂片检查来扫描。开发一种计算机辅助诊断系统有助于使巴氏涂片检查更加可靠和广泛。该系统最基本的部分是宫颈细胞图像中细胞核和细胞质的分割。本研究的目的是在这些图像中分割细胞核。首先,利用数学形态学运算找到细胞核上的标记。在得到标记的基础上,应用标记分水岭分割和气球蛇模型在宫颈细胞图像数据集中寻找细胞核轮廓。数据集由6类组成,根据细胞的不典型增生程度。根据相对距离误差测量对结果进行了评价,并讨论了各种方法的优缺点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cell nuclei segmentation in pap smear test images
Cervical cancer is a preventable disease and the dysplasia it causes can be scanned by using a pap smear test. It can be beneficial to develop a computer-assisted diagnosis system to make the pap smear test robust and widespread. The most fundamental part of such a system is the segmentation of nuclei and cytoplasm in cervical cell images. The aim of this study is to segment the nuclei in such images. First, markers on the nuclei are found by using mathematical morphology operations. Based on the obtained markers, marker-based watershed segmentation and balloon snake model are applied to find the nuclei contours in a data set consisting of cervical cell images. The data set is composed of six classes ranging according to the dysplasia degree of the cells. The results are evaluated according to the relative distance error measure, and the strengths and weakness of the methods are discussed.
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