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MetATT: a web-based metabolomics tool for analyzing time-series and two-factor datasets

机译:MetATT:基于网络的代谢组学工具,用于分析时间序列和两因素数据集

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摘要

Time-series and multifactor studies have become increasingly common in metabolomic studies. Common tasks for analyzing data from these relatively complex experiments include identification of major variations associated with each experimental factor, comparison of temporal profiles across different biological conditions, as well as detection and validation of the presence of interactions. Here we introduce MetATT, a web-based tool for time-series and two-factor metabolomic data analysis. MetATT offers a number of complementary approaches including 3D interactive principal component analysis, two-way heatmap visualization, two-way ANOVA, ANOVA-simultaneous component analysis and multivariate empirical Bayes time-series analysis. These procedures are presented through an intuitive web interface. At the end of each session, a detailed analysis report is generated to facilitate understanding of the results.
机译:时间序列和多因素研究在代谢组学研究中变得越来越普遍。分析来自这些相对复杂的实验的数据的常见任务包括识别与每个实验因素相关的主要变化,比较不同生物学条件下的时间分布以及检测和验证相互作用的存在。在这里,我们介绍MetATT,这是一种基于Web的工具,用于进行时间序列和两因素代谢组学数据分析。 MetATT提供了许多辅助方法,包括3D交互式主成分分析,双向热图可视化,双向ANOVA,ANOVA同时成分分析和多元经验贝叶斯时间序列分析。这些过程通过直观的Web界面呈现。每节课结束时,都会生成一份详细的分析报告,以促进对结果的理解。

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