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Fast and accurate automated cell boundary determination for fluorescence microscopy

机译:快速准确的荧光显微镜自动细胞边界测定

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Detailed measurement of cell phenotype information from digital fluorescence images has the potential to greatly advance biomedicine in various disciplines such as patient diagnostics or drug screening. Yet, the complexity of cell conformations presents a major barrier preventing effective determination of cell boundaries, and introduces measurement error that propagates throughout subsequent assessment of cellular parameters and statistical analysis. State-of-the-art image segmentation techniques that require user-interaction, prolonged computation time and specialized training cannot adequately provide the support for high content platforms, which often sacrifice resolution to foster the speedy collection of massive amounts of cellular data. This work introduces a strategy that allows us to rapidly obtain accurate cell boundaries from digital fluorescent images in an automated format. Hence, this new method has broad applicability to promote biotechnology.
机译:来自数字荧光图像的细胞表型信息的详细测量具有极大地推动生物医学在诸如患者诊断或药物筛选等各种学科中发展的潜力。然而,细胞构象的复杂性是阻碍有效确定细胞边界的主要障碍,并引入了在随后的细胞参数评估和统计分析中传播的测量误差。需要用户交互,延长的计算时间和专门训练的最新图像分割技术无法充分提供对高内容平台的支持,而高内容平台通常会牺牲分辨率以促进快速收集大量细胞数据。这项工作引入了一种策略,使我们能够以自动格式从数字荧光图像中快速获取准确的细胞边界。因此,这种新方法在推广生物技术方面具有广泛的适用性。

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