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Argumentation framework based on evidence theory

  • Sorbonne Université
  • Univ. Poitiers

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3 Citations (Scopus)

Résumé

In many fields of automated information processing it becomes crucial to consider imprecise, uncertain or inconsistent pieces of information. Therefore, integrating uncertainty factors in argumentation theory is of paramount importance. Recently, several argumentation based approaches have emerged to model uncertain data with probabilities. In this paper, we propose a new argumentation system called evidential argumentation framework that takes into account imprecision and uncertainty modeled by means of evidence theory. Indeed, evidence theory brings new semantics since arguments represent expert opinions with several weighted alternatives. Then, the evidential argumentation framework is studied in the light of both Smets and Demspter-Shafer interpretations of evidence theory. For each interpretation, we generalize Dung’s standard semantics with illustrative examples. We also investigate several preference criteria for pairwise comparison of extensions in order to select the ones that represent potential solutions to a given decision making problem.

langue originaleAnglais
titreInformation Processing and Management of Uncertainty in Knowledge-Based Systems - 16th International Conference, IPMU 2016, Proceedings
rédacteurs en chefSusana Vieira, Joao Paulo Carvalho, Marie-Jeanne Lesot, Bernadette Bouchon-Meunier, Uzay Kaymak, Ronald R. Yager
EditeurSpringer Verlag
Pages253-264
Nombre de pages12
ISBN (imprimé)9783319405803
Les DOIs
étatPublié - 1 janv. 2016
Modification externeOui
Evénement16th International Conference on Information Processing and Management of Uncertainty in Knowledge-Based Systems, IPMU 2016 - Eindhoven, Pays-Bas
Durée: 20 juin 201624 juin 2016

Série de publications

NomCommunications in Computer and Information Science
Volume611
ISSN (imprimé)1865-0929

Une conférence

Une conférence16th International Conference on Information Processing and Management of Uncertainty in Knowledge-Based Systems, IPMU 2016
Pays/TerritoirePays-Bas
La villeEindhoven
période20/06/1624/06/16

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