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Link prediction in complex networks: A survey

机译:复杂网络中的链路预测:一项调查

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摘要

Link prediction in complex networks has attracted increasing attention from both physical and computer science communities. The algorithms can be used to extract missing information, identify spurious interactions, evaluate network evolving mechanisms, and so on. This article summaries recent progress about link prediction algorithms, emphasizing on the contributions from physical perspectives and approaches, such as the random-walk-based methods and the maximum likelihood methods. We also introduce three typical applications: reconstruction of networks, evaluation of network evolving mechanism and classification of partially labeled networks. Finally, we introduce some applications and outline future challenges of link prediction algorithms.
机译:复杂网络中的链路预测已引起物理和计算机科学界越来越多的关注。该算法可用于提取丢失的信息,识别虚假交互,评估网络演进机制等。本文总结了链路预测算法的最新进展,重点介绍了从物理角度和方法(例如基于随机游走的方法和最大似然方法)的贡献。我们还将介绍三种典型的应用程序:网络的重建,网络演进机制的评估以及部分标记网络的分类。最后,我们介绍了一些应用程序并概述了链接预测算法的未来挑战。

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