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Time Series Adjustment Enhancement of Hierarchical Modeling of Arabidopsis Thaliana Gene Interactions

机译:拟南芥基因相互作用的层次模型的时间序列调整增强

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Network models of gene interactions, using time course gene transcript abundance data, are computationally created using a genetic algorithm designed to incorporate hierarchical Bayesian methods with time series adjustments. The posterior probabilities of interaction between pairs of genes are based on likelihoods of directed acyclic graphs. This algorithm is applied to transcript abundance data collected from Arabidopsis thaliana genes. This study extends the underlying statistical and mathematical theory of the Norris-Patton likelihood by including time series adjustments.
机译:使用时程基因转录本丰度数据,使用遗传算法通过计算创建基因相互作用的网络模型,该遗传算法旨在将带层次的贝叶斯方法与时间序列调整结合在一起。基因对之间相互作用的后验概率基于有向无环图的可能性。该算法适用于从拟南芥基因收集的转录本丰度数据。这项研究通过包括时间序列调整,扩展了Norris-Patton可能性的基础统计和数学理论。

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