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Measuring the Inspiration Rate of Topics in Bibliographic Networks

Contributo in Atti di convegno
Data di Pubblicazione:
2017
Abstract:
Information diffusion is a widely-studied topic thanks to its applications to social media/network analysis, viral marketing campaigns, influence maximization and prediction. In bibliographic networks, for instance, an information diffusion process takes place when some authors, that publish papers in a given topic, influence some of their neighbors (coauthors, citing authors, collaborators) to publish papers in the same topic, and the latter influence their neighbors in their turn. This well-accepted definition, however, does not consider that influence in bibliographic networks is a complex phenomenon involving several scientific and cultural aspects. In fact, in scientific citation networks, influential topics are usually considered those ones that spread most rapidly in the network. Although this is generally a fact, this semantics does not consider that topics in bibliographic networks evolve continuously. In fact, knowledge, information and ideas are dynamic entities that acquire different meanings when passing from one person to another. Thus, in this paper, we propose a new definition of influence that captures the diffusion of inspiration within the network. We propose a measure of the inspiration rate called inspiration rank. Finally, we show the effectiveness of our measure in detecting the most inspiring topics in a citation network built upon a large bibliographic dataset.
Tipologia CRIS:
04A-Conference paper in volume
Keywords:
information diffusion, topic modeling, citation networks
Elenco autori:
Bioglio, Livio; Rho, Valentina; Pensa, Ruggero G.
Autori di Ateneo:
BIOGLIO Livio
PENSA Ruggero Gaetano
Link alla scheda completa:
https://iris.unito.it/handle/2318/1648155
Titolo del libro:
Discovery Science, Proceedings of the 20th International Conference, DS 2017, Kyoto, Japan, October 15–17, 2017
Pubblicato in:
LECTURE NOTES IN COMPUTER SCIENCE
Journal
LECTURE NOTES IN COMPUTER SCIENCE
Series
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URL

https://link.springer.com/chapter/10.1007/978-3-319-67786-6_22
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