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  1. Logical-rule models of classification response times: A synthesis of mental-architecture, random-walk, and decision-bound approaches.Mario Fific, Daniel R. Little & Robert M. Nosofsky - 2010 - Psychological Review 117 (2):309-348.
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  • Phonological Concept Learning.Elliott Moreton, Joe Pater & Katya Pertsova - 2017 - Cognitive Science 41 (1):4-69.
    Linguistic and non-linguistic pattern learning have been studied separately, but we argue for a comparative approach. Analogous inductive problems arise in phonological and visual pattern learning. Evidence from three experiments shows that human learners can solve them in analogous ways, and that human performance in both cases can be captured by the same models. We test GMECCS, an implementation of the Configural Cue Model in a Maximum Entropy phonotactic-learning framework with a single free parameter, against the alternative hypothesis that learners (...)
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  • Rule differences, practice, and verbal solutions using a reception procedure in complete learning.Edward M. Docherty, Linda J. Ingison & Judith A. Resnick - 1976 - Bulletin of the Psychonomic Society 8 (3):188-190.
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  • Rule-plus-exception model of classification learning.Robert M. Nosofsky, Thomas J. Palmeri & Stephen C. McKinley - 1994 - Psychological Review 101 (1):53-79.
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  • Exploring the conceptual universe.Charles Kemp - 2012 - Psychological Review 119 (4):685-722.
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  • Interaction of rule and attribute learning in in identification of concepts involving binary rules.Irwin D. Nahinsky, Arwa Aamiry & Richard M. Baird - 1976 - Bulletin of the Psychonomic Society 7 (1):81-83.
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  • Constraints and Preferences in Inductive Learning: An Experimental Study of Human and Machine Performance.Douglas L. Medin, William D. Wattenmaker & Ryszard S. Michalski - 1987 - Cognitive Science 11 (3):299-339.
    The paper examines constraints and preferences employed by people in learning decision rules from preclassified examples. Results from four experiments with human subjects were analyzed and compared with artificial intelligence (AI) inductive learning programs. The results showed the people's rule inductions tended to emphasize category validity (probability of some property, given a category) more than cue validity (probability that an entity is a member of a category given that it has some property) to a greater extent than did the AI (...)
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  • The identification of concepts defined by attribute change.Robert C. Haygood & Herbert H. Bell - 1975 - Bulletin of the Psychonomic Society 5 (6):444-446.
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  • The relative difficulty of a subject-generated rule in an attribute identification task.Richard L. Gottwald & Michael R. Swaine - 1974 - Bulletin of the Psychonomic Society 3 (1):21-22.
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  • The acquisition of Boolean concepts.Geoffrey P. Goodwin & Philip N. Johnson-Laird - 2013 - Trends in Cognitive Sciences 17 (3):128-133.
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