Modeling Influence with Semantics in Social Networks: a Survey

January 30, 2018 ยท The Cartographer ยท ๐Ÿ› ACM Computing Surveys

๐Ÿ“š THE CARTOGRAPHER: The Cartographer
Survey/review paper โ€” maps the landscape rather than implementing a method.

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"Title-pattern auto-detect: Modeling Influence with Semantics in Social Networks: a Survey"

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Authors Gerasimos Razis, Ioannis Anagnostopoulos, Sherali Zeadally arXiv ID 1801.09961 Category cs.IR: Information Retrieval Cross-listed cs.SI Citations 11 Venue ACM Computing Surveys Last Checked 3 days ago
Abstract
The discovery of influential entities in all kinds of networks (e.g. social, digital, or computer) has always been an important field of study. In recent years, Online Social Networks (OSNs) have been established as a basic means of communication and often influencers and opinion makers promote politics, events, brands or products through viral content. In this work, we present a systematic review across i) online social influence metrics, properties, and applications and ii) the role of semantic in modeling OSNs information. We end up with the conclusion that both areas can jointly provide useful insights towards the qualitative assessment of viral user-generated content, as well as for modeling the dynamic properties of influential content and its flow dynamics.
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