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conference paper

Automatic Online Fake News Detection Combining Content and Social Signals

Della Vedova, Marco L.
•
Tacchini, Eugenio
•
Moret, Stefano  
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January 1, 2018
Proceedings Of The 2018 22Nd Conference Of Open Innovations Association (Fruct)
22nd Conference of Open-Innovations-Association (FRUCT)

The proliferation and rapid diffusion of fake news on the Internet highlight the need of automatic hoax detection systems. In the context of social networks, machine learning (ML) methods can be used for this purpose. Fake news detection strategies are traditionally either based on content analysis (i.e. analyzing the content of the news) or - more recently - on social context models, such as mapping the news' diffusion pattern.

In this paper, we first propose a novel ML, fake news detection method which, by combining news content and social context features, outperforms existing methods in the literature, increasing their already high accuracy by up to 4.8%. Second, we implement our method within a Facebook Messenger chatbot and validate it with a real-world application, obtaining a fake news detection accuracy of 81.7%.

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Type
conference paper
DOI
10.23919/FRUCT.2018.846830
Web of Science ID

WOS:000482751300038

Author(s)
Della Vedova, Marco L.
Tacchini, Eugenio
Moret, Stefano  
Ballarin, Gabriele
DiPierro, Massimo
de Alfaro, Luca
Date Issued

2018-01-01

Publisher

IEEE

Publisher place

New York

Published in
Proceedings Of The 2018 22Nd Conference Of Open Innovations Association (Fruct)
ISBN of the book

978-952-68653-4-8

Series title/Series vol.

Proceedings Conference of Open Innovations Association FRUCT

Start page

272

End page

279

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SCI-STI-FM  
Event nameEvent placeEvent date
22nd Conference of Open-Innovations-Association (FRUCT)

Jyvaskyla, FINLAND

May 15-18, 2018

Available on Infoscience
September 12, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/161116
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