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Representing and Aggregating Conflicting Beliefs
2003
The Journal of Artificial Intelligence Research
We consider the two-fold problem of representing collective beliefs and aggregating these beliefs. We propose a novel representation for collective beliefs that uses modular, transitive relations over possible worlds. They allow us to represent conflicting opinions and they have a clear semantics, thus improving upon the quasi-transitive relations often used in social choice. We then describe a way to construct the belief state of an agent informed by a set of sources of varying degrees of
doi:10.1613/jair.1206
fatcat:xxz566uvpfba5n7aeitm7nbxbu