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  1. Hierarchically organized behavior and its neural foundations: A reinforcement learning perspective.Matthew M. Botvinick, Yael Niv & Andrew C. Barto - 2009 - Cognition 113 (3):262-280.
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  • Hierarchical models of behavior and prefrontal function.Matthew M. Botvinick - 2008 - Trends in Cognitive Sciences 12 (5):201.
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  • A Computational Model of Event Segmentation From Perceptual Prediction.Jeremy R. Reynolds, Jeffrey M. Zacks & Todd S. Braver - 2007 - Cognitive Science 31 (4):613-643.
    People tend to perceive ongoing continuous activity as series of discrete events. This partitioning of continuous activity may occur, in part, because events correspond to dynamic patterns that have recurred across different contexts. Recurring patterns may lead to reliable sequential dependencies in observers' experiences, which then can be used to guide perception. The current set of simulations investigated whether this statistical structure within events can be used 1) to develop stable internal representations that facilitate perception and 2) to learn when (...)
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  • Doing Without Schema Hierarchies: A Recurrent Connectionist Approach to Normal and Impaired Routine Sequential Action.Matthew Botvinick & David C. Plaut - 2004 - Psychological Review 111 (2):395-429.
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  • An Integrative Theory of Prefrontal Cortex Function.Earl K. Miller & Jonathan D. Cohen - 2001 - Annual Review of Neuroscience 24 (1):167-202.
    The prefrontal cortex has long been suspected to play an important role in cognitive control, in the ability to orchestrate thought and action in accordance with internal goals. Its neural basis, however, has remained a mystery. Here, we propose that cognitive control stems from the active maintenance of patterns of activity in the prefrontal cortex that represent goals and the means to achieve them. They provide bias signals to other brain structures whose net effect is to guide the flow of (...)
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  • An information theoretical approach to prefrontal executive function.Etienne Koechlin & Christopher Summerfield - 2007 - Trends in Cognitive Sciences 11 (6):229-235.
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  • Between MDPs and semi-MDPs: A framework for temporal abstraction in reinforcement learning.Richard S. Sutton, Doina Precup & Satinder Singh - 1999 - Artificial Intelligence 112 (1-2):181-211.
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  • Hierarchically organized behavior and its neural foundations: A reinforcement learning perspective.Matthew M. Botvinick, Yael Niv & Andew G. Barto - 2009 - Cognition 113 (3):262-280.
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  • Context processing in older adults: evidence for a theory relating cognitive control to neurobiology in healthy aging.Todd S. Braver, Deanna M. Barch, Beth A. Keys, Cameron S. Carter, Jonathan D. Cohen, Jeffrey A. Kaye, Jeri S. Janowsky, Stephan F. Taylor, Jerome A. Yesavage & Martin S. Mumenthaler - 2001 - Journal of Experimental Psychology: General 130 (4):746.
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  • Processing capacity defined by relational complexity: Implications for comparative, developmental, and cognitive psychology.Graeme S. Halford, William H. Wilson & Steven Phillips - 1998 - Behavioral and Brain Sciences 21 (6):803-831.
    Working memory limits are best defined in terms of the complexity of the relations that can be processed in parallel. Complexity is defined as the number of related dimensions or sources of variation. A unary relation has one argument and one source of variation; its argument can be instantiated in only one way at a time. A binary relation has two arguments, two sources of variation, and two instantiations, and so on. Dimensionality is related to the number of chunks, because (...)
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  • Six principles for biologically based computational models of cortical cognition.Randall C. O'Reilly - 1998 - Trends in Cognitive Sciences 2 (11):455-462.
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  • Hierarchically organized behavior and its neural foundations: A reinforcement-learning perspective.Andrew C. Barto Matthew M. Botvinick, Yael Niv - 2009 - Cognition 113 (3):262.
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