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  1. Probability Theory Plus Noise: Descriptive Estimation and Inferential Judgment.Fintan Costello & Paul Watts - 2018 - Topics in Cognitive Science 10 (1):192-208.
    We describe a computational model of two central aspects of people's probabilistic reasoning: descriptive probability estimation and inferential probability judgment. This model assumes that people's reasoning follows standard frequentist probability theory, but it is subject to random noise. This random noise has a regressive effect in descriptive probability estimation, moving probability estimates away from normative probabilities and toward the center of the probability scale. This random noise has an anti-regressive effect in inferential judgement, however. These regressive and anti-regressive effects explain (...)
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  • Sensitivity to Evidential Dependencies in Judgments Under Uncertainty.Belinda Xie & Brett Hayes - 2022 - Cognitive Science 46 (5):e13144.
    Cognitive Science, Volume 46, Issue 5, May 2022.
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  • Bayesian or biased? Analytic thinking and political belief updating.Ben M. Tappin, Gordon Pennycook & David G. Rand - 2020 - Cognition 204 (C):104375.
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  • Correlation as a deceiving measure of fit.James Shanteau - 1977 - Bulletin of the Psychonomic Society 10 (2):134-136.
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  • Argument Content and Argument Source: An Exploration.Ulrike Hahn, Adam J. L. Harris & Adam Corner - 2009 - Informal Logic 29 (4):337-367.
    Argumentation is pervasive in everyday life. Understanding what makes a strong argument is therefore of both theoretical and practical interest. One factor that seems intuitively important to the strength of an argument is the reliability of the source providing it. Whilst traditional approaches to argument evaluation are silent on this issue, the Bayesian approach to argumentation (Hahn & Oaksford, 2007) is able to capture important aspects of source reliability. In particular, the Bayesian approach predicts that argument content and source reliability (...)
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