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Quantitative segmentation of fluorescence microscopy images of heterogeneous tissue: Approach for tuning algorithm parameters

机译:异质组织荧光显微镜图像的定量分割:调整算法参数的方法

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The combination of fluorescent contrast agents with microscopy is a powerful technique to obtain real time images of tissue histology without the need for fixing, sectioning, and staining. The potential of this technology lies in the identification of robust methods for image segmentation and quantitation, particularly in heterogeneous tissues. Our solution is to apply sparse decomposition (SD) to monochrome images of fluorescently-stained microanatomy to segment and quantify distinct tissue types. The clinical utility of our approach is demonstrated by imaging excised margins in a cohort of mice after surgical resection of a sarcoma. Representative images of excised margins were used to optimize the formulation of SD and tune parameters associated with the algorithm. Our results demonstrate that SD is a robust solution that can advance vital fluorescence microscopy as a clinically significant technology.
机译:荧光造影剂与显微术的结合是一种无需固定,切片和染色即可获得组织组织学实时图像的强大技术。这项技术的潜力在于确定可靠的图像分割和定量方法,尤其是在异质组织中。我们的解决方案是将稀疏分解(SD)应用于荧光染色的微解剖结构的单色图像,以分割和量化不同的组织类型。我们的方法的临床实用性通过对手术切除肉瘤的一组小鼠的切缘进行成像来证明。切下的边距的代表性图像用于优化SD的公式化以及与算法相关的调整参数。我们的结果表明,SD是一种稳健的解决方案,可以将重要的荧光显微镜技术作为具有临床意义的技术加以发展。

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