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Methods and System for Segmentation of Isolated Nuclei in Microscopic Breast Fine Needle Aspiration Cytology Images

机译:显微乳腺细针穿刺细胞学图像中分离核的分割方法和系统

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Computer vision systems for automated breast cancer diagnosis using Fine Needle Aspiration Cytology (FNAC) images are under development for a while now. Accurate segmentation of the nuclei in microscopic images is crucial for functioning of these systems, as most quantify and analyze nuclear features for diagnosis. This paper presents a nucleus segmentation system (NSS) involving pre-processing, pre-segmentation and refined segmentation stages. The NSS includes a novel pixel transformation step to create a high contrast grayscale representation of the input color image. The grayscale image gives NSS the capability- to disregard elements that mimic nuclear morphological and luminescence characteristics, and to minimize effects of non-specific staining of cytoplasm by Hematoxylin. Experimental results illustrate generalizability of the NSS to use multiple refined segmentation techniques and particularly achieve accurate nucleus segmentation using active contours without edges(F-score > 0.92). The paper also presents the results of experiments conducted to study the impact of image preprocessing steps on the NSS performance. The pre-processing steps are observed to improve accuracy and consistency across tested refined segmentation techniques.
机译:使用细针抽吸细胞学(FNAC)图像进行乳腺癌自动诊断的计算机视觉系统正在开发一段时间。显微图像中核的准确分割对于这些系统的功能至关重要,因为大多数量化和分析核特征以进行诊断。本文介绍了一个涉及预处理,预分割和精细分割阶段的核分割系统(NSS)。 NSS包括一个新颖的像素转换步骤,以创建输入彩色图像的高对比度灰度表示。灰度图像使NSS能够忽略模仿核形态和发光特性的元素,并最小化苏木精对细胞质的非特异性染色的影响。实验结果说明了NSS使用多种改进的分割技术的普遍性,尤其是使用没有边缘的活动轮廓(F分数> 0.92)实现了精确的核分割。本文还介绍了实验结果,以研究图像预处理步骤对NSS性能的影响。观察到预处理步骤可以提高经过测试的细分方法的准确性和一致性。

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