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  1. Abductive inference in defeasible reasoning: a model for research programmes.Claudio Delrieux - 2004 - Journal of Applied Logic 2 (4):409-437.
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  • Alfred Schutz and Herbert Simon: Can their Action Theories Work Together?Marco Castellani - 2013 - Journal for the Theory of Social Behaviour 43 (4):383-404.
    This paper combines Alfred Shultz and Herbert Simon's theories of action in order to understand the grey area between dynamic and completely unstructured decision making better. As a result I have put together a specific scheme of how choice elements are represented from an agent's personal experience, so as to create a bridge between the phenomenological and cognitive-procedural approaches of decision making. I first look at the key points of their original models relating Alfred Schutz's “provinces of meaning” and Herbert (...)
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  • Machine discovery in chemistry: new results.Raúl E. Valdés-Pérez - 1995 - Artificial Intelligence 74 (1):191-201.
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  • Subgoal length versus full solution length in predicting Tower of Hanoi problem-solving performance.Herman H. Spitz, Shula K. Minsky & Candace L. Bessellieu - 1984 - Bulletin of the Psychonomic Society 22 (4):301-304.
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  • Why Higher Working Memory Capacity May Help You Learn: Sampling, Search, and Degrees of Approximation.Kevin Lloyd, Adam Sanborn, David Leslie & Stephan Lewandowsky - 2019 - Cognitive Science 43 (12):e12805.
    Algorithms for approximate Bayesian inference, such as those based on sampling (i.e., Monte Carlo methods), provide a natural source of models of how people may deal with uncertainty with limited cognitive resources. Here, we consider the idea that individual differences in working memory capacity (WMC) may be usefully modeled in terms of the number of samples, or “particles,” available to perform inference. To test this idea, we focus on two recent experiments that report positive associations between WMC and two distinct (...)
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  • SOAR: An architecture for general intelligence.John E. Laird, Allen Newell & Paul S. Rosenbloom - 1987 - Artificial Intelligence 33 (1):1-64.
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  • Problem representation for refinement.H. Altay Guvenir & Varol Akman - 1992 - Minds and Machines 2 (3):267-282.
    In this paper we attempt to develop a problem representation technique which enables the decomposition of a problem into subproblems such that their solution in sequence constitutes a strategy for solving the problem. An important issue here is that the subproblems generated should be easier than the main problem. We propose to represent a set of problem states by a statement which is true for all the members of the set. A statement itself is just a set of atomic statements (...)
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