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A robust removing unwanted variation–testing procedure via γ γ γ ‐divergence

机译:通过γγγ稳健地去除不需要的变化测试过程 - 特定

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摘要

Abstract Identification of differentially expressed genes (DE genes) is commonly conducted in modern biomedical research. However, unwanted variation inevitably arises during the data collection process, which can make the detection results heavily biased. Various methods have been suggested for removing the unwanted variation while keeping the biological variation to ensure a reliable analysis result. Removing unwanted variation (RUV) has recently been proposed for this purpose, which works by virtue of negative control genes. On the other hand, outliers frequently appear in modern high‐throughput genetic data, which can heavily affect the performances of RUV and its downstream analysis. In this work, we propose a robust RUV‐testing procedure (a robust RUV procedure to remove unwanted variance, followed by a robust testing procedure to identify DE genes) via γ ‐divergence. The advantages of our method are twofold: (a) it does not involve any modeling for the outlier distribution, which makes it applicable to various situations; (b) it is easy to implement in the sense that its robustness is controlled by a single tuning parameter γ of γ ‐divergence, and a data‐driven criterion is developed to select γ . When applied to real data sets, our method can successfully remove unwanted variation, and was able to identify more DE genes than conventional methods.
机译:摘要鉴别差异表达基因(DE基因)通常在现代生物医学研究中进行。然而,在数据收集过程中不可避免地出现的不需要的变化,这可以使检测结果大量偏置。已经提出了各种方法来消除不需要的变化,同时保持生物变化以确保可靠的分析结果。最近提出了用于此目的的不需要的变化(RUV),其凭借阴性对照基因的作用。另一方面,异常值经常出现在现代高通量遗传数据中,这可以严重影响Ruv的性能及其下游分析。在这项工作中,我们提出了一种强大的RUV测试程序(一种稳健的RUV过程,以消除不需要的差异,然后通过γ-识别DE基因的鲁棒测试程序。我们的方法的优点是双重:(a)它不涉及对异常分布的任何建模,这使得适用于各种情况; (b)在这种意义上易于实施,即其鲁棒性通过γ的单个调谐参数γ控制,并且开发了数据驱动的标准以选择γ。当应用于真实数据集时,我们的方法可以成功地消除不需要的变化,并且能够识别比传统方法更多的DE基因。

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