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Please use this identifier to cite or link to this item: http://dspace.ucuenca.edu.ec/handle/123456789/34486
Title: Extent prediction of the information and influence propagation in online social networks
Authors: Ortiz Gaona, Raul Marcelo
Postigo Boix, Marcos
Melús Moreno, José Luis
metadata.dc.ucuenca.correspondencia: Ortiz Gaona, Raul Marcelo, raul.ortiz@ucuenca.edu.ec
Keywords: Influence diffusion
Information diffusion
Influence threshold
Information threshold
Online social networks
Social tie-strength
metadata.dc.ucuenca.areaconocimientofrascatiamplio: 2. Ingeniería y Tecnología
metadata.dc.ucuenca.areaconocimientofrascatidetallado: 2.2.4 Ingeniería de La Comunicación y de Sistemas
metadata.dc.ucuenca.areaconocimientofrascatiespecifico: 2.2 Ingenierias Eléctrica, Electrónica e Información
metadata.dc.ucuenca.areaconocimientounescoamplio: 06 - Información y Comunicación (TIC)
metadata.dc.ucuenca.areaconocimientounescodetallado: 0612 - Base de Datos, Diseno y Administración de Redes
metadata.dc.ucuenca.areaconocimientounescoespecifico: 061 - Información y Comunicación (TIC)
Issue Date: 2021
metadata.dc.ucuenca.embargoend: 12-Jun-2050
metadata.dc.ucuenca.volumen: Volumen 27, número 2
metadata.dc.source: Computational and Mathematical Organization Theory
metadata.dc.identifier.doi: 10.1007/s10588-020-09309-6
metadata.dc.type: ARTÍCULO
Abstract: 
We present a new mathematical model that predicts the number of users informed and influenced by messages that are propagated in an online social network. Our model is based on a new way of quantifying the tie-strength, which in turn considers the affinity and relevance between nodes. We could verify that the messages to inform and influence, as well as their importance, produce different propagation behaviors in an online social network. We carried out laboratory tests with our model and with the baseline models Linear Threshold and Independent Cascade, which are currently used in many scientific works. The results were evaluated by comparing them with empirical data. The tests show conclusively that the predictions of our model are notably more accurate and precise than the predictions of the baseline models. Our model can contribute to the development of models that maximize the propagation of messages; to predict the spread of viruses in computer networks, mobile telephony and online social networks.
Description: 
URI: https://www.scopus.com/record/display.uri?eid=2-s2.0-85082921700&origin=resultslist&sort=plf-f&src=s&st1=Extent+prediction+of+the+information+and+influence+propagation+in+online+social+networks&sid=2f002e414241b7cc2c2be109ea466c05&sot=b&sdt=b&sl=103&s=TITLE-ABS-KEY%28Extent+prediction+of+the+information+and+influence+propagation+in+online+social+networks%29&relpos=0&citeCnt=0&searchTerm=&featureToggles=FEATURE_NEW_DOC_DETAILS_EXPORT:1
metadata.dc.ucuenca.urifuente: https://link.springer.com/journal/10588/volumes-and-issues/27-2
ISSN: 1381-298X
Appears in Collections:Artículos

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