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  1. The Evolution of Denial.Luca Incurvati & Giorgio Sbardolini - forthcoming - British Journal for the Philosophy of Science.
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  • The communicative function of ambiguity in language.Steven T. Piantadosi, Harry Tily & Edward Gibson - 2012 - Cognition 122 (3):280-291.
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  • (1 other version)Cultural Evolution of Precise and Agreed‐Upon Semantic Conventions in a Multiplayer Gaming App.Olivier Morin, Thomas F. Müller, Tiffany Morisseau & James Winters - 2022 - Cognitive Science 46 (2):e13113.
    The amount of information conveyed by linguistic conventions depends on their precision, yet the codes that humans and other animals use to communicate are quite ambiguous: they may map several vague meanings to the same symbol. How does semantic precision evolve, and what are the constraints that limit it? We address this question using a multiplayer gaming app, where individuals communicate with one another in a scaled-up referential game. Here, the goal is for a sender to use black and white (...)
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  • (1 other version)Cultural Evolution of Precise and Agreed‐Upon Semantic Conventions in a Multiplayer Gaming App.Olivier Morin, Thomas F. Müller, Tiffany Morisseau & James Winters - 2022 - Cognitive Science 46 (2):e13113.
    Cognitive Science, Volume 46, Issue 2, February 2022.
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  • The learnability consequences of Zipfian distributions in language.Ori Lavi-Rotbain & Inbal Arnon - 2022 - Cognition 223 (C):105038.
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  • On the Connection Between Language Change and Language Processing.Peter Hendrix, Ching Chu Sun, Henry Brighton & Andreas Bender - 2023 - Cognitive Science 47 (12):e13384.
    Previous studies provided evidence for a connection between language processing and language change. We add to these studies with an exploration of the influence of lexical-distributional properties of words in orthographic space, semantic space, and the mapping between orthographic and semantic space on the probability of lexical extinction. Through a binomial linear regression analysis, we investigated the probability of lexical extinction by the first decade of the twenty-first century (2000s) for words that existed in the first decade of the nineteenth-century (...)
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  • The N400 is Elicited by Meaning Changes but not Synonym Substitutions: Evidence From Persian Phrasal Verbs.Kate Stone, Naghmeh Khaleghi & Milena Rabovsky - 2023 - Cognitive Science 47 (12):e13394.
    We tested two accounts of the cognitive process underlying the N400 event‐related potential component: one that it reflects meaning‐based processing and one that it reflects the processing of specific words. The experimental design utilized separable Persian phrasal verbs, which form a strongly probabilistic, long‐distance dependency, ideal for the study of probabilistic processing. In sentences strongly constraining for a particular continuation, we show evidence that between two low‐probability words, only the word that changed the expected meaning of the sentence increased N400 (...)
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  • (1 other version)Signaling in an Unknown World.Rafael Ventura - 2023 - Erkenntnis 88 (3):885-905.
    This paper proposes a sender-receiver model to explain two large-scale patterns observed in natural languages: Zipf’s inverse power law relating the frequency of word use and word rank, and the negative correlation between the frequency of word use and rate of lexical change. Computer simulations show that the model recreates Zipf’s inverse power law and the negative correlation between signal frequency and rate of change, provided that agents balance the rates with which they invent new signals and forget old ones. (...)
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  • Exploring the Robustness of Cross-Situational Learning Under Zipfian Distributions.Paul Vogt - 2012 - Cognitive Science 36 (4):726-739.
    Cross-situational learning has recently gained attention as a plausible candidate for the mechanism that underlies the learning of word-meaning mappings. In a recent study, Blythe and colleagues have studied how many trials are theoretically required to learn a human-sized lexicon using cross-situational learning. They show that the level of referential uncertainty exposed to learners could be relatively large. However, one of the assumptions they made in designing their mathematical model is questionable. Although they rightfully assumed that words are distributed according (...)
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  • (1 other version)Signaling in an Unknown World.Rafael Ventura - 2021 - Erkenntnis:1-21.
    This paper proposes a sender-receiver model to explain two large-scale patterns observed in natural languages: Zipf’s inverse power law relating the frequency of word use and word rank, and the negative correlation between the frequency of word use and rate of lexical change. Computer simulations show that the model recreates Zipf’s inverse power law and the negative correlation between signal frequency and rate of change, provided that agents balance the rates with which they invent new signals and forget old ones. (...)
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