
Embedding network data into a low-dimensional vector space has shown promising performance for many real-world applications, such as node classification and entity retrieval. However, most existing methods focused only on leveraging network structure. For social networks, besides the network structure, there also exists rich information about social actors, such as user profiles of friendship networks and textual content of citation networks. These rich attribute information of social actors reveal the homophily effect, exerting huge impacts on the formation of social networks. In this paper, we explore the rich evidence source of attributes in social networks to improve network embedding. We propose a generic Social Network Embedding framework (SNE), which learns representations for social actors (i.e., nodes) by preserving both the structural proximity and attribute proximity. While the structural proximity captures the global network structure, the attribute proximity accounts for the homophily effect. To justify our proposal, we conduct extensive experiments on four real-world social networks. Compared to the state-of-the-art network embedding approaches, SNE can learn more informative representations, achieving substantial gains on the tasks of link prediction and node classification. Specifically, SNE significantly outperforms node2vec with an 8.2% relative improvement on the link prediction task, and a 12.7% gain on the node classification task.
12 pages, 7 figures
Social and Information Networks (cs.SI), FOS: Computer and information sciences, Databases and Information Systems, 000, 330, Computational modeling, Deep learning, Computer Science - Social and Information Networks, Social Network Representation, Homophily, 004, Engineering::Computer science and engineering, Deep Learning, Task analysis, Distance measurement, Neural networks
Social and Information Networks (cs.SI), FOS: Computer and information sciences, Databases and Information Systems, 000, 330, Computational modeling, Deep learning, Computer Science - Social and Information Networks, Social Network Representation, Homophily, 004, Engineering::Computer science and engineering, Deep Learning, Task analysis, Distance measurement, Neural networks
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