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Fractional Dynamics of Network Growth Constrained by Aging Node Interactions

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posted on 2016-05-31, 12:44 authored by Hadiseh Safdari, Milad Zare Kamali, Amirhossein Shirazi, Moein Khalighi, Gholamreza Jafari, Marcel Ausloos
In many social complex systems, in which agents are linked by non-linear interactions, the history of events strongly influences the whole network dynamics. However, a class of “commonly accepted beliefs” seems rarely studied. In this paper, we examine how the growth process of a (social) network is influenced by past circumstances. In order to tackle this cause, we simply modify the well known preferential attachment mechanism by imposing a time dependent kernel function in the network evolution equation. This approach leads to a fractional order Barabási-Albert (BA) differential equation, generalizing the BA model. Our results show that, with passing time, an aging process is observed for the network dynamics. The aging process leads to a decay for the node degree values, thereby creating an opposing process to the preferential attachment mechanism. On one hand, based on the preferential attachment mechanism, nodes with a high degree are more likely to absorb links; but, on the other hand, a node’s age has a reduced chance for new connections. This competitive scenario allows an increased chance for younger members to become a hub. Simulations of such a network growth with aging constraint confirm the results found from solving the fractional BA equation. We also report, as an exemplary application, an investigation of the collaboration network between Hollywood movie actors. It is undubiously shown that a decay in the dynamics of their collaboration rate is found, even including a sex difference. Such findings suggest a widely universal application of the so generalized BA model.

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Citation

PLoS One, 2016, 11(5): e0154983

Author affiliation

/Organisation/COLLEGE OF SOCIAL SCIENCES, ARTS AND HUMANITIES/School of Management

Version

  • VoR (Version of Record)

Published in

PLoS One

Publisher

Public Library of Science

issn

1932-6203

Acceptance date

2016-04-23

Copyright date

2016

Available date

2016-05-31

Publisher version

http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0154983

Language

en

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