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Charles Yang [5]Charles D. Yang [1]
  1.  33
    The Pursuit of Word Meanings.Jon Scott Stevens, Lila R. Gleitman, John C. Trueswell & Charles Yang - 2017 - Cognitive Science 41 (S4):638-676.
    We evaluate here the performance of four models of cross-situational word learning: two global models, which extract and retain multiple referential alternatives from each word occurrence; and two local models, which extract just a single referent from each occurrence. One of these local models, dubbed Pursuit, uses an associative learning mechanism to estimate word-referent probability but pursues and tests the best referent-meaning at any given time. Pursuit is found to perform as well as global models under many conditions extracted from (...)
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  2. Modeling the Emergence of Lexicons in Homesign Systems.Russell Richie, Charles Yang & Marie Coppola - 2014 - Topics in Cognitive Science 6 (1):183-195.
    It is largely acknowledged that natural languages emerge not just from human brains but also from rich communities of interacting human brains (Senghas, ). Yet the precise role of such communities and such interaction in the emergence of core properties of language has largely gone uninvestigated in naturally emerging systems, leaving the few existing computational investigations of this issue at an artificial setting. Here, we take a step toward investigating the precise role of community structure in the emergence of linguistic (...)
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  3.  14
    Miller's monkey updated: Communicative efficiency and the statistics of words in natural language.Spencer Caplan, Jordan Kodner & Charles Yang - 2020 - Cognition 205 (C):104466.
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  4.  21
    How to Make the Most out of Very Little.Charles Yang - 2020 - Topics in Cognitive Science 12 (1):136-152.
    Yang returns to the problem of referential ambiguity, addressed in the opening paper by Gleitman and Trueswell. Using a computational approach, he argues that “big data” approaches to resolving referential ambiguity are destined to fail, because of the inevitable computational explosion needed to keep track of contextual associations present when a word is uttered. Yang tests several computational models, two of which depend on one‐trial learning, as described in Gleitman and Trueswell’s paper. He concludes that such models outperform cross‐situational learning (...)
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  5.  6
    Syntactic structures after 60 years. The impact of the chomskyan revolution in linguistics.Norbert Hornstein, Howard Lasnik, Pritty Patel-Grosz & Charles Yang (eds.) - 2018 - De Gruyter Mouton.
    This volume explores the continuing relevance of Syntactic Structures to contemporary research in generative syntax. The contributions examine the ideas that changed the way that syntax is studied and that still have a lasting effect on contemporary work in generative syntax. Topics include formal foundations, the syntax-semantics interface, the autonomy of syntax, methods of data analysis, and detailed discussions of the role of transformations. New commentary from Noam Chomsky is included.
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  6.  13
    Modeling word segmentation.Charles D. Yang - 2004 - Trends in Cognitive Sciences 8 (10):451-456.
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