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Identifying Multiple Potential Metabolic Cycles in Time-Series from Biolog Experiments

机译:从Biolog实验中识别时间序列中的多个潜在代谢循环

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摘要

Biolog Phenotype Microarray (PM) is a technology allowing simultaneous screening of the metabolic behaviour of bacteria under a large number of different conditions. Bacteria may often undergo several cycles of metabolic activity during a Biolog experiment. We introduce a novel algorithm to identify these metabolic cycles in PM experimental data, thus increasing the potential of PM technology in microbiology. Our method is based on a statistical decomposition of the time-series measurements into a set of growth models. We show that the method is robust to measurement noise and captures accurately the biologically relevant signals from the data. Our implementation is made freely available as a part of an R package for PM data analysis and can be found at .
机译:Biolog表型微阵列(PM)是一项技术,可以在多种不同条件下同时筛选细菌的代谢行为。在Biolog实验中,细菌可能经常经历几个代谢活动周期。我们引入了一种新颖的算法来识别PM实验数据中的这些代谢周期,从而增加了PM技术在微生物学中的潜力。我们的方法基于时间序列测量值到一组增长模型的统计分解。我们表明该方法对于测量噪声是鲁棒的,并且可以从数据中准确捕获生物学相关信号。我们的实施可作为R软件包的一部分免费提供,用于PM数据分析,可在处找到。

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