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A graph-mining algorithm for automatic detection and counting of embryonic stem cells in fluorescence microscopy images

机译:自动检测和计数荧光显微镜图像中的胚胎干细胞的图挖掘算法

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Many cell-based research studies require the counting of cells in order to understand and validate experiments through statistical analyses. Although progress in imaging technology has enabled the automation of cell counting for many different cell types, this process still has to be done manually in the case of images of embryonic stem cells. In this paper, we present a new automatic algorithm to detect and count embryonic stem cells in fluorescence microscopy images that identifies pluripotent stem cells cultured in vitro. Our approach uses luminance information to generate a graph-based image representation. The cell pattern is defined as a subgraph, and a graph-mining process is applied to detect the cells. The method is tolerant to variations in cell size and shape, Moreover, it can easily be parameterized to handle different image groups resulting from distinct differentiation protocols. The paper presents numerical results from tests made on a database with more than two hundred images, including EB cryosection, embryoid body cell migration, murine embryonic stem cell colonies under murine embryonic fibroblast, and neurosphere images. The results from our algorithm were validated by expert biologists, and provide good precision, recall and F-measure. Finally, a comparative study with the widely used watershed algorithm is presented.
机译:许多基于细胞的研究要求对细胞进行计数,以便通过统计分析来理解和验证实验。尽管成像技术的进步已使许多不同细胞类型的细胞计数自动化,但是在胚胎干细胞成像的情况下,仍然必须手动完成此过程。在本文中,我们提出了一种新的自动算法来检测和计数荧光显微镜图像中的胚胎干细胞,该图像可识别体外培养的多能干细胞。我们的方法使用亮度信息来生成基于图形的图像表示。单元格模式定义为子图,并应用图挖掘过程检测单元格。该方法可以容忍细胞大小和形状的变化。此外,可以轻松地对它进行参数化处理不同的区分方案产生的不同图像组。本文介绍了在数据库中进行的测试得到的数值结果,其中包含200幅图像,包括EB冷冻切片,类胚体细胞迁移,小鼠胚胎成纤维细胞下的小鼠胚胎干细胞集落和神经球图像。我们算法的结果已由专业生物学家验证,并提供了良好的精度,召回率和F度量。最后,提出了与广泛使用的分水岭算法的比较研究。

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