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Constructing signaling pathways from RNAI data using genetic algorithms

机译:使用遗传算法构建来自RNAi数据的信号通路

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RNAi system allows us to see the phenotypes when some genes are removed from living cells. By observing these phenotypes, we can build signaling pathways without dealing with the chemistry inside the cell. However it is costly in terms of time and space complexity. Furthermore, there are some interactions RNAi data cannot distinguish that results in many different signaling pathways all of which are consistent with the RNAi data. In this paper, we combine genetic algorithms with some greedy approaches to find most of the networks that fits the RNAi experiments. Our algorithm works much faster than previous algorithms and finds many results in a small amount of time. The resulting topologies have equal priority which would be used as inputs of classification algorithms.
机译:RNAi系统允许我们在从活细胞中除去一些基因时看到表型。 通过观察这些表型,我们可以构建信号通路而不处理细胞内的化学。 然而,在时间和空间复杂性方面是昂贵的。 此外,存在一些交互RNAi数据不能区分结果,这导致所有的信号传导路径都与RNAi数据一致。 在本文中,我们将遗传算法与一些贪婪的方法相结合,以找到适合RNAI实验的大多数网络。 我们的算法比以前的算法更快地工作,并在少量时间内找到许多结果。 由此产生的拓扑具有相同的优先级,其将被用作分类算法的输入。

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