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  1. Uncertainty modelling for vague concepts: A prototype theory approach.Jonathan Lawry & Yongchuan Tang - 2009 - Artificial Intelligence 173 (18):1539-1558.
  • Vagueness and Aggregation in Multiple Sender Channels.Jonathan Lawry & Oliver James - 2017 - Erkenntnis 82 (5):1123-1160.
    Vagueness is an extremely common feature of natural language, but does it actually play a positive, efficiency enhancing, role in communication? Adopting a probabilistic interpretation of vague terms, we propose that vagueness might act as a source of randomness when deciding what to assert. In this context we investigate the efficacy of multiple sender channels in which senders choose assertions stochastically according to vague definitions of the relevant words, and a receiver then aggregates the different signals. These vague channels are (...)
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  • On truth-gaps, bipolar belief and the assertability of vague propositions.Jonathan Lawry & Yongchuan Tang - 2012 - Artificial Intelligence 191-192 (C):20-41.
  • Borderlines and probabilities of borderlines: On the interconnection between vagueness and uncertainty.Jonathan Lawry - 2016 - Journal of Applied Logic 14:113-138.
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  • How many kinds of reasoning? Inference, probability, and natural language semantics.Daniel Lassiter & Noah D. Goodman - 2015 - Cognition 136 (C):123-134.
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  • Adjectival vagueness in a Bayesian model of interpretation.Daniel Lassiter & Noah D. Goodman - 2017 - Synthese 194 (10):3801-3836.
    We derive a probabilistic account of the vagueness and context-sensitivity of scalar adjectives from a Bayesian approach to communication and interpretation. We describe an iterated-reasoning architecture for pragmatic interpretation and illustrate it with a simple scalar implicature example. We then show how to enrich the apparatus to handle pragmatic reasoning about the values of free variables, explore its predictions about the interpretation of scalar adjectives, and show how this model implements Edgington’s Vagueness: a reader, 1997) account of the sorites paradox, (...)
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  • Vague judgment: a probabilistic account.Paul Égré - 2017 - Synthese 194 (10):3837-3865.
    This paper explores the idea that vague predicates like “tall”, “loud” or “expensive” are applied based on a process of analog magnitude representation, whereby magnitudes are represented with noise. I present a probabilistic account of vague judgment, inspired by early remarks from E. Borel on vagueness, and use it to model judgments about borderline cases. The model involves two main components: probabilistic magnitude representation on the one hand, and a notion of subjective criterion. The framework is used to represent judgments (...)
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  • A Dempster–Shafer model of imprecise assertion strategies.Henrietta Eyre & Jonathan Lawry - 2015 - Journal of Applied Logic 13 (4):458-479.
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