Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/105540
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Title: ICANE : interaction content-aware network embedding via co-embedding of nodes and edges
Authors: Xu, L 
Wei, X
Cao, J 
Yu, PS
Issue Date: May-2020
Source: International journal of data science and analytics, May 2020, v. 9, no. 4, p. 401-414
Abstract: Network embedding has been increasingly employed in network analysis as it can learn node representations that encode the network structure resulting from node interactions. In this paper, we propose to embed not only the network structure, but also the interaction content within which each interaction arises. The interaction content should better be embedded in node representations because it reveals interaction preferences of the two nodes involved, and interaction preferences are essential characteristics that nodes expose in the network environment. To achieve this goal, we propose an idea of interaction content-aware network embedding via co-embedding of nodes and edges. The embedding of edges is to learn edge representations that preserve the interaction content. Then the interaction content can be incorporated into node representations through edge representations. Comprehensive empirical evaluation demonstrates that the proposed method outperforms five recent network embedding models in applications including visualization, link prediction and classification.
Keywords: Data mining
Network embedding
Representation learning
Publisher: Springer
Journal: International journal of data science and analytics 
ISSN: 2364-415X
EISSN: 2364-4168
DOI: 10.1007/s41060-018-0164-4
Rights: © Springer Nature Switzerland AG 2018
This version of the article has been accepted for publication, after peer review (when applicable) and is subject to Springer Nature’s AM terms of use(https://www.springernature.com/gp/open-research/policies/accepted-manuscript-terms), but is not the Version of Record and does not reflect post-acceptance improvements, or any corrections. The Version of Record is available online at: http://dx.doi.org/10.1007/s41060-018-0164-4.
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