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FLOPTICS: A Novel Automated Gating Technique for Flow Cytometry Data

机译:荧光性:流式细胞仪数据的新型自动化门控技术

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Flow cytometry (FCM) involves the use of optical and fluorescence measurements of the characteristics of individual biological cells, typically in blood samples. It is a widely used standard method of analysing blood samples for the purpose of identifying and quantifying the different types of cells in the sample, the result of which are used in medical diagnoses. The multidimensional dataset obtained from FCM is large and complex, so it is difficult and time-consuming to analyse manually. The main process of differentiation and therefore labelling of the populations in the data which represent types of cells is referred to as Gating: gating is the first step of FCM data analysis and highly subjective. Significant amounts of research have focussed on reducing this subjectivity, however a faster standard gating technique is still needed. Existing automated gating techniques are time-consuming or need many user-defined parameters which affect the differentiation to different clustering results. This paper presents and discusses FLOPTICS: a novel automated gating technique that is a combination of density-based and grid-based clustering algorithms. FLOPTICS has an ability to classify cells on FCM data faster and with fewer user-defined parameters than many state-of-the-art techniques, such as FlowGrid, FlowPeaks, and FLOCK.
机译:流式细胞术(FCM)涉及使用光学和荧光测量单个生物细胞的特性,通常在血液样本中。它是一种广泛使用的标准方法,用于分析血液样品,以识别和量化样品中的不同类型的细胞,其结果用于医学诊断。从FCM获得的多维数据集是大而复杂的,因此手动分析是困难且耗时的。分化的主要过程,因此将代表细胞类型的数据中的群体标记为门控:门控是FCM数据分析和高主观性的第一步。大量的研究主要集中在降低这种主体性,但仍然需要更快的标准门控技术。现有的自动化门控技术是耗时的或需要许多影响到不同聚类结果的差异的用户定义参数。本文提出并讨论了荧光性:一种新的自动化门控技术,是基于密度和基于网格的聚类算法的组合。 Floptics能够更快地对FCM数据进行分类细胞,并且具有比许多最先进的技术更少的用户定义参数,例如FlowGrid,Plowpeaks和Glock。

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