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SMETANA: Accurate and Scalable Algorithm for Probabilistic Alignment of Large-Scale Biological Networks

机译:SMETANA:大规模生物网络概率对准的精确和可扩展算法

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摘要

In this paper we introduce an efficient algorithm for alignment of multiple large-scale biological networks. In this scheme, we first compute a probabilistic similarity measure between nodes that belong to different networks using a semi-Markov random walk model. The estimated probabilities are further enhanced by incorporating the local and the cross-species network similarity information through the use of two different types of probabilistic consistency transformations. The transformed alignment probabilities are used to predict the alignment of multiple networks based on a greedy approach. We demonstrate that the proposed algorithm, called SMETANA, outperforms many state-of-the-art network alignment techniques, in terms of computational efficiency, alignment accuracy, and scalability. Our experiments show that SMETANA can easily align tens of genome-scale networks with thousands of nodes on a personal computer without any difficulty. The source code of SMETANA is available upon request. The source code of SMETANA can be downloaded from .
机译:在本文中,我们介绍了一种用于对齐多个大型生物网络的有效算法。在该方案中,我们首先使用半马尔可夫随机游走模型计算属于不同网络的节点之间的概率相似性度量。通过使用两种不同类型的概率一致性转换来合并本地和跨物种网络的相似性信息,可以进一步提高估计的概率。转换后的对齐概率用于基于贪婪方法预测多个网络的对齐。我们证明了所提出的算法SMETANA在计算效率,对准精度和可伸缩性方面优于许多最新的网络对准技术。我们的实验表明,SMETANA可以轻松地将数十个基因组规模的网络与个人计算机上的数千个节点对齐,没有任何困难。可根据要求提供SMETANA的源代码。可以从下载SMETANA的源代码。

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