Playing the role of weak clique property in link prediction: A friend recommendation model

January 20, 2016 Β· Declared Dead Β· πŸ› Scientific Reports

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Authors Chuang Ma, Tao Zhou, Hai-Feng Zhang arXiv ID 1601.05146 Category physics.soc-ph Cross-listed cs.SI Citations 40 Venue Scientific Reports Last Checked 3 months ago
Abstract
An important fact in studying the link prediction is that the structural properties of networks have significant impacts on the performance of algorithms. Therefore, how to improve the performance of link prediction with the aid of structural properties of networks is an essential problem. By analyzing many real networks, we find a common structure property: nodes are preferentially linked to the nodes with the weak clique structure (abbreviated as PWCS to simplify descriptions). Based on this PWCS phenomenon, we propose a local friend recommendation (FR) index to facilitate link prediction. Our experiments show that the performance of FR index is generally better than some famous local similarity indices, such as Common Neighbor (CN) index, Adamic-Adar (AA) index and Resource Allocation (RA) index. We then explain why PWCS can give rise to the better performance of FR index in link prediction. Finally, a mixed friend recommendation index (labelled MFR) is proposed by utilizing the PWCS phenomenon, which further improves the accuracy of link prediction.
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