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Reverse engineering gene regulatorynetworks from measurement with missing values

机译:逆向工程基因调控缺少值的测量网络

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摘要

BackgroundGene expression time series data are usually in the form of high-dimensional arrays. Unfortunately, the data may sometimes contain missing values: for either the expression values of some genes at some time points or the entire expression values of a single time point or some sets of consecutive time points. This significantly affects the performance of many algorithms for gene expression analysis that take as an input, the complete matrix of gene expression measurement. For instance, previous works have shown that gene regulatory interactions can be estimated from the complete matrix of gene expression measurement. Yet, till date, few algorithms have been proposed for the inference of gene regulatory network from gene expression data with missing values.
机译:BackgroundGene表达时间序列数据通常采用高维数组的形式。不幸的是,数据有时可能包含缺失值:对于某些基因在某些时间点的表达值或单个时间点或某些连续时间点集的整个表达值。这严重影响了许多基因表达分析算法的性能,这些算法将基因表达测量的完整矩阵作为输入。例如,以前的工作表明可以从基因表达测量的完整矩阵中估算基因调控相互作用。然而,迄今为止,很少有人提出从缺失值的基因表达数据中推断基因调控网络的算法。

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