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Comparative analysis of cell segmentation using absorption and color images in fine needle aspiration cytology

机译:细针穿刺细胞学中使用吸收和彩色图像进行细胞分割的比较分析

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Segmentation of cytological smears plays a critical role in the automated analysis of histological abnormalities by fine needle aspiration cytology. However, smears obtained from fine needle aspiration biopsy are often contaminated with blood. Segmentation of such an image is not a trivial task and the false positive rate could be high if the blood cells cannot be correctly separated from the rest of the sample. Moreover, the fine textured nature of the cell chromatin gives it a non-uniform intensity appearance in both color and gray images. In this paper, we propose an enhanced watershed approach to remove background noise by using short wavelength spectral image and the computed absorption image to improve segmentation accuracy. We also demonstrate a color image segmentation method by applying watershed to the minima imposed aggregation image. Results of segmentation on 20 images of cytological smears are presented and the accuracy compared for the two methods.
机译:细胞学涂片的分割在通过细针抽吸细胞学对组织学异常的自动分析中起关键作用。但是,从细针穿刺活检获得的涂片经常被血液污染。分割此类图像并非易事,如果无法将血细胞与其余样本正确分离,则假阳性率可能很高。此外,细胞染色质的精细纹理性质使其在彩色和灰度图像中均具有不均匀的强度外观。在本文中,我们提出了一种增强的分水岭方法,该方法通过使用短波长光谱图像和计算出的吸收图像来消除背景噪声,以提高分割精度。我们还通过将分水岭应用于最小强加的聚合图像来演示彩色图像分割方法。给出了在20幅细胞学涂片图像上进行分割的结果,并比较了两种方法的准确性。

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