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Explanation and prediction: an architecture for default and abductive reasoning
Authors:David Poole
Affiliation:Department of Computer Science, The University of British Columbia, Vancouver, B. C., Canada V6T 1W5
Abstract:Although there are many arguments that logic is an appropriate tool for artificial intelligence, there has been a perceived problem with the monotonicity of classical logic. This paper elaborates on the idea that reasoning should be viewed as theory formation where logic tells us the consequences of our assumptions. The two activities of predicting what is expected to be true and explaining observations are considered in a simple theory formation framework. Properties of each activity are discussed, along with a number of proposals as to what should be predicted or accepted as reasonable explanations. An architecture is proposed to combine explanation and prediction into one coherent framework. Algorithms used to implement the system as well as examples from a running implementation are given.
Keywords:defaults  conjectures  explanation  prediction  abduction  dialectics  logic  nonmonotonicity  theory formation  valeurs par défaut  conjectures  explication  preéiction  apagogie  dialectique  logique  non-monotonicité  formation de théories
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