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Bayesian integration of networks without gold standards

机译:没有黄金标准的贝叶斯网络集成

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摘要

>Motivation: Biological experiments give insight into networks of processes inside a cell, but are subject to error and uncertainty. However, due to the overlap between the large number of experiments reported in public databases it is possible to assess the chances of individual observations being correct. In order to do so, existing methods rely on high-quality ‘gold standard’ reference networks, but such reference networks are not always available.>Results: We present a novel algorithm for computing the probability of network interactions that operates without gold standard reference data. We show that our algorithm outperforms existing gold standard-based methods. Finally, we apply the new algorithm to a large collection of genetic interaction and protein–protein interaction experiments.>Availability: The integrated dataset and a reference implementation of the algorithm as a plug-in for the Ondex data integration framework are available for download at >Contact: >Supplementary information: are available at Bioinformatics online.
机译:>动机:生物实验可以洞悉细胞内部的过程网络,但容易出错和不确定。但是,由于公共数据库中报告的大量实验之间存在重叠,因此有可能评估单个观察结果正确的机会。为此,现有方法依赖于高质量的“黄金标准”参考网络,但是这种参考网络并不总是可用。>结果:我们提出了一种新颖的算法来计算网络交互的可能性在没有黄金标准参考数据的情况下运行。我们证明了我们的算法优于现有的基于黄金标准的方法。最后,我们将该新算法应用于大量的遗传相互作用和蛋白质-蛋白质相互作用实验。>可用性:作为Ondex数据集成插件的集成数据集和该算法的参考实现可以从>联系方式: >补充信息下载该框架:在线生物信息学。

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