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Combating fake news by empowering fact-checked news spread via topology-based interventions

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arxiv 2107.05016 v1 pith:24EBXD34 submitted 2021-07-11 cs.SI cs.HC

Combating fake news by empowering fact-checked news spread via topology-based interventions

classification cs.SI cs.HC
keywords informationfalsenewsdiffusionspreadfact-checkedsocialcentrality
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Rapid information diffusion and large-scaled information cascades can enable the undesired spread of false information. A small-scaled false information outbreak may potentially lead to an infodemic. We propose a novel information diffusion and intervention technique to combat the spread of false news. As false information is often spreading faster in a social network, the proposed diffusion methodology inhibits the spread of false news by proactively diffusing the fact-checked information. Our methodology mainly relies on defining the potential super-spreaders in a social network based on their centrality metrics. We run an extensive set of experiments on different networks to investigate the impact of centrality metrics on the performance of the proposed diffusion and intervention models. The obtained results demonstrate that empowering the diffusion of fact-checked news combats the spread of false news further and deeper in social networks.

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