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Causal temporal constraint networks for representing temporal knowledge
Authors:Ángel Fernández-Leal  Vicente Moret-Bonillo  Eduardo Mosqueira-Rey
Affiliation:1. Warwick Business School, University of Warwick, United Kingdom;2. Unidad de Investigaciones, Banco de la República, Colombia;3. Facultad de Economía, Universidad del Rosario, Colombia;1. Sapienza University, Italy;2. Agricultural Development Economics Division, Food and Agriculture Organization of the United Nations, Rome, Italy;3. University of Sussex, United Kingdom;1. DIW Berlin, Mohrenstr. 58, 10117 Berlin, Germany;2. Swiss Federal Institute of Technology Zürich, Center for Energy Policy and Economics, Zürichbergstrasse 18, Zürich CH-8032, Switzerland;3. Universität Potsdam, August-Bebel-Str. 89, 14482 Potsdam, Germany
Abstract:In this work we describe causal temporal constraint networks (CTCN) as a new computable model for representing temporal information and efficiently handling causality. The proposed model enables qualitative and quantitative temporal constraints to be established, introduces the representation of causal constraints, and suggests mechanisms for representing inexact temporal knowledge. The temporal handling of information is achieved by structuring the information in different interpretation contexts, linked to each other through an inference mechanism which obtains interpretations that are consistent with the original temporal information. In carrying out inferences, we take into account the temporal relationships between events, the possible inexactitude associated with the events, and the atemporal or static information which affects the interpretation pattern being considered. The proposed schema is illustrated with an application developed using the CommonKADS methodology.
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