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  4. Probabilistic semantics for the Carneades argument model using Bayesian networks
 
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2010
Conference Paper
Title

Probabilistic semantics for the Carneades argument model using Bayesian networks

Abstract
This paper presents a technique with which instances of argument structures in the Carneades model can be given a probabilistic semantics by translating them into Bayesian networks. The propagation of argument applicability and statement acceptability can be expressed through conditional probability tables. This translation suggests a way to extend Carneades to improve its utility for decision support in the presence of uncertainty.
Author(s)
Grabmair, M.
Gordon, T.F.
Walton, D.
Mainwork
Computational models of argument  
Conference
Conference on Computational Models of Argument (COMMA) 2010  
DOI
10.3233/978-1-60750-619-5-255
Language
English
Fraunhofer-Institut für Offene Kommunikationssysteme FOKUS  
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