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A two-stage clustering technique for automatic biaxial gating of flow cytometry data

机译:流式细胞仪数据自动双轴门控的两阶段聚类技术

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Measurement of various markers of single cells using flow cytometry has several biological applications. These applications include improving our understanding of behavior of cellular systems, identifying rare cell populations and personalized medication. A common critical issue in the existing methods is approximation of the number of cellular populations which heavily affects the accuracy of results. In this work, we propose a novel technique to estimate the number of dominant subtypes and identify them in flow cytometry datasets. Our experimentation on 42 flow cytometry datasets indicates high performance and accurate clustering (F-measure > 91%) in identifying the main cellular populations.
机译:使用流式细胞仪测量单个细胞的各种标记物具有多种生物学应用。这些应用包括改善我们对细胞系统行为的理解,识别稀有细胞群和个性化药物治疗。现有方法中一个常见的关键问题是细胞数量的近似值,这会严重影响结果的准确性。在这项工作中,我们提出了一种新颖的技术来估计主要亚型的数量,并在流式细胞仪数据集中识别它们。我们在42个流式细胞仪数据集上进行的实验表明,在识别主要细胞群方面具有高性能和准确的聚类(F度量> 91%)。

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