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  1. MDLChunker: A MDL-Based Cognitive Model of Inductive Learning.Vivien Robinet, Benoît Lemaire & Mirta B. Gordon - 2011 - Cognitive Science 35 (7):1352-1389.
    This paper presents a computational model of the way humans inductively identify and aggregate concepts from the low-level stimuli they are exposed to. Based on the idea that humans tend to select the simplest structures, it implements a dynamic hierarchical chunking mechanism in which the decision whether to create a new chunk is based on an information-theoretic criterion, the Minimum Description Length (MDL) principle. We present theoretical justifications for this approach together with results of an experiment in which participants, exposed (...)
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    Reconciling Two Computational Models of Working Memory in Aging.Violette Hoareau, Benoît Lemaire, Sophie Portrat & Gaën Plancher - 2016 - Topics in Cognitive Science 8 (1):264-278.
    It is well known that working memory performance changes with age. Two recent computational models of working memory, TBRS* and SOB-CS, developed from young adults WM performances are opposed regarding the postulated causes of forgetting, namely time-based decay and interference for TBRS* and SOB-CS, respectively. In the present study, these models are applied on a set of complex span data produced by young and older adults. As expected, these models are unable to account for the older adult data. An investigation (...)
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    A Computational Model of Working Memory Integrating Time-Based Decay and Interference.Benoît Lemaire & Sophie Portrat - 2018 - Frontiers in Psychology 9.
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