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Answer set programming encoding users opinions merging in social networks

Published: 27 January 2021 Publication History

Abstract

The present paper describes briefly a project idea in progress about the evolvement of individuals' opinions, beliefs and perceptions on social networks (such as Facebook, Twitter, Instagram, youtube...) which is a thorny subject that has whetted nowadays the curiosity of a hulk of researchers from various disciplines. For this purpose, differently from a lot of works in the literature, we rely on logical knowledge representation tools in order to investigate the belief merging operation of Artificial Intelligence (AI). The major objective of this project is to provide efficient operator for merging heterogeneous, inconsistent and uncertain multiple sources information in the context of social networks taking into account the fact that opinion can be formed and developed through the concept of social influence with its two forms (informational social influence and normative social influence) and the concept of social trust. We intend thus through this research work presenting an adaptative version to our context of an approach [7] expressed thanks to Answer Set Programming (ASP) paradigm with stable model semantics. It is worth to say that our approach profits from the impressive volume data produced by users in social networks about a particular topic by learning from opinions, beliefs and perceptions that their freinds/neighbors share and therefore allows to use this kind of data to extract initial opinions, and to validate the proposed opinions merging process allowing even the prediction of users' behaviors.

References

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Daron Acemoglu and Asuman Acemoglu. 2011. Opinion Dynamics and Learning in Social Networks. Dynamic Games and Applications 1 (2011), 3--49.
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Hanen Ameur, Salma Jamoussi, and Abdelmajid Ben Hamadou. 2019. A Deep Neural Network Model for Predicting User Behavior on Facebook. In IJCNN. IEEE, 1--8.
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Solomon E. Asch. 1956. Studies of independence and conformity: I. a minority of one against a unanimous majority., Psychological monographs: General and applied. 70 pages.
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Soufiene Jaffali, Hanen Ameur, Salma Jamoussi, and Abdelmajid Ben Hamadou. 2015. GLIO: A New Method for Grouping Like-Minded Users. Trans. Comput. Collect. Intell. 18 (2015), 44--66.
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Amal Rekik, Hanen Ameur, Amal Abid, Atika Mbarek, Wafa Kardamine, Salma Jamoussi, and Abdelmajid Ben Hamadou. 2018. Building an Arabic Social Corpus for Dangerous Profile Extraction on Social Networks. Computación y Sistemas 22, 4 (2018).
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Amal Rekik, Salma Jamoussi, and Abdelmajid Ben Hamadou. 2019. Violent Vocabulary Extraction Methodology: Application to the Radicalism Detection on Social Media. In 11th ICCCI 2019, Henda ye, France, September 4-6, 2019, Proceedings, Part II (Lecture Notes in Computer Science, Vol. 11684). Springer, 97--109.
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iiWAS '20: Proceedings of the 22nd International Conference on Information Integration and Web-based Applications & Services
November 2020
492 pages
Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than ACM must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected]

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  • Johannes Kepler University, Linz, Austria

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Association for Computing Machinery

New York, NY, United States

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Published: 27 January 2021

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Author Tags

  1. Answer set programming
  2. beliefs merging
  3. opinions
  4. social influence
  5. social networks

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