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  1. (3 other versions)The Dynamics of Lexical Competition During Spoken Word Recognition.James S. Magnuson, James A. Dixon, Michael K. Tanenhaus & Richard N. Aslin - 2007 - Cognitive Science 31 (1):133-156.
    The sounds that make up spoken words are heard in a series and must be mapped rapidly onto words in memory because their elements, unlike those of visual words, cannot simultaneously exist or persist in time. Although theories agree that the dynamics of spoken word recognition are important, they differ in how they treat the nature of the competitor set—precisely which words are activated as an auditory word form unfolds in real time. This study used eye tracking to measure the (...)
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  • “Some,” and possibly all, scalar inferences are not delayed: Evidence for immediate pragmatic enrichment.Daniel J. Grodner, Natalie M. Klein, Kathleen M. Carbary & Michael K. Tanenhaus - 2010 - Cognition 116 (1):42-55.
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  • (3 other versions)The Dynamics of Lexical Competition During Spoken Word Recognition.James S. Magnuson, James A. Dixon, Michael K. Tanenhaus & Richard N. Aslin - 2007 - Cognitive Science 31 (1):133-156.
    The sounds that make up spoken words are heard in a series and must be mapped rapidly onto words in memory because their elements, unlike those of visual words, cannot simultaneously exist or persist in time. Although theories agree that the dynamics of spoken word recognition are important, they differ in how they treat the nature of the competitor set—precisely which words are activated as an auditory word form unfolds in real time. This study used eye tracking to measure the (...)
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  • Syllable Inference as a Mechanism for Spoken Language Understanding.Meredith Brown, Michael K. Tanenhaus & Laura Dilley - 2021 - Topics in Cognitive Science 13 (2):351-398.
    A classic problem in cognitive science concerns how listeners perceive and understand speech as comprised of discrete words. We propose a Syllable Inference account of spoken word recognition and segmentation, under which alternative hierarchical models of syllables, words, and phonemes are dynamically posited from cues that include current and past speech rate, with a goal of maximal prediction of sensory input. Three experiments using the Visual World eye‐tracking paradigm provide evidence supporting our proposal.
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  • (3 other versions)The Dynamics of Lexical Competition During Spoken Word Recognition.James S. Magnuson, James A. Dixon, Michael K. Tanenhaus & Richard N. Aslin - 2007 - Cognitive Science 31 (1):133-156.
    The sounds that make up spoken words are heard in a series and must be mapped rapidly onto words in memory because their elements, unlike those of visual words, cannot simultaneously exist or persist in time. Although theories agree that the dynamics of spoken word recognition are important, they differ in how they treat the nature of the competitor set—precisely which words are activated as an auditory word form unfolds in real time. This study used eye tracking to measure the (...)
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  • The Hierarchical Evolution in Human Vision Modeling.Dana H. Ballard & Ruohan Zhang - 2021 - Topics in Cognitive Science 13 (2):309-328.
    Ballard and Zhang offer a fascinating review of how computational models of human vision have evolved since David Marr proposed his Tri‐Level Hypothesis, with a focus on the refinement of algorithm descriptions over time.
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  • Structural and semantic constraints on the resolution of pronouns and reflexives.Elsi Kaiser, Jeffrey T. Runner, Rachel S. Sussman & Michael K. Tanenhaus - 2009 - Cognition 112 (1):55-80.
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  • Learning During Processing: Word Learning Doesn't Wait for Word Recognition to Finish.S. Apfelbaum Keith & McMurray Bob - 2017 - Cognitive Science 41 (S4):706-747.
    Previous research on associative learning has uncovered detailed aspects of the process, including what types of things are learned, how they are learned, and where in the brain such learning occurs. However, perceptual processes, such as stimulus recognition and identification, take time to unfold. Previous studies of learning have not addressed when, during the course of these dynamic recognition processes, learned representations are formed and updated. If learned representations are formed and updated while recognition is ongoing, the result of learning (...)
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  • When forgetting fosters learning: A neural network model for statistical learning.Ansgar D. Endress & Scott P. Johnson - 2021 - Cognition 213 (C):104621.
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