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  1. Troubles with Bayesianism: An introduction to the psychological immune system.Eric Mandelbaum - 2018 - Mind and Language 34 (2):141-157.
    A Bayesian mind is, at its core, a rational mind. Bayesianism is thus well-suited to predict and explain mental processes that best exemplify our ability to be rational. However, evidence from belief acquisition and change appears to show that we do not acquire and update information in a Bayesian way. Instead, the principles of belief acquisition and updating seem grounded in maintaining a psychological immune system rather than in approximating a Bayesian processor.
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  • Parallel Distributed Processing at 25: Further Explorations in the Microstructure of Cognition.Timothy T. Rogers & James L. McClelland - 2014 - Cognitive Science 38 (6):1024-1077.
    This paper introduces a special issue of Cognitive Science initiated on the 25th anniversary of the publication of Parallel Distributed Processing (PDP), a two-volume work that introduced the use of neural network models as vehicles for understanding cognition. The collection surveys the core commitments of the PDP framework, the key issues the framework has addressed, and the debates the framework has spawned, and presents viewpoints on the current status of these issues. The articles focus on both historical roots and contemporary (...)
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  • Elucidating the Common Basis for Task‐Dependent Differential Manifestations of Category Advantage: A Decision Theoretic Approach.Seda Akbiyik, Tilbe Göksun & Fuat Balcı - 2022 - Cognitive Science 46 (1):e13078.
    Cognitive Science, Volume 46, Issue 1, January 2022.
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  • What information is necessary for speech categorization? Harnessing variability in the speech signal by integrating cues computed relative to expectations.Bob McMurray & Allard Jongman - 2011 - Psychological Review 118 (2):219-246.
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  • Encoding and decoding of meaning through structured variability in intonational speech prosody.Xin Xie, Andrés Buxó-Lugo & Chigusa Kurumada - 2021 - Cognition 211 (C):104619.
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  • How optimal is word recognition under multimodal uncertainty?Abdellah Fourtassi & Michael C. Frank - 2020 - Cognition 199 (C):104092.
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  • A tutorial introduction to Bayesian models of cognitive development.Amy Perfors, Joshua B. Tenenbaum, Thomas L. Griffiths & Fei Xu - 2011 - Cognition 120 (3):302-321.
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  • More why, less how: What we need from models of cognition.Dennis Norris & Anne Cutler - 2021 - Cognition 213 (C):104688.
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  • Interaction in Spoken Word Recognition Models: Feedback Helps.James S. Magnuson, Daniel Mirman, Sahil Luthra, Ted Strauss & Harlan D. Harris - 2018 - Frontiers in Psychology 9.
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  • Interactive Activation and Mutual Constraint Satisfaction in Perception and Cognition.James L. McClelland, Daniel Mirman, Donald J. Bolger & Pranav Khaitan - 2014 - Cognitive Science 38 (6):1139-1189.
    In a seminal 1977 article, Rumelhart argued that perception required the simultaneous use of multiple sources of information, allowing perceivers to optimally interpret sensory information at many levels of representation in real time as information arrives. Building on Rumelhart's arguments, we present the Interactive Activation hypothesis—the idea that the mechanism used in perception and comprehension to achieve these feats exploits an interactive activation process implemented through the bidirectional propagation of activation among simple processing units. We then examine the interactive activation (...)
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  • (1 other version)Letting structure emerge: connectionist and dynamical systems approaches to cognition.James L. McClelland, Matthew M. Botvinick, David C. Noelle, David C. Plaut, Timothy T. Rogers, Mark S. Seidenberg & Linda B. Smith - 2010 - Trends in Cognitive Sciences 14 (8):348-356.
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  • (1 other version)Letting Structure Emerge: Connectionist and Dynamical Systems Approaches to Cognition.Linda B. Smith James L. McClelland, Matthew M. Botvinick, David C. Noelle, David C. Plaut, Timothy T. Rogers, Mark S. Seidenberg - 2010 - Trends in Cognitive Sciences 14 (8):348.
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  • On the hazards of relating representations and inductive biases.Thomas L. Griffiths, Sreejan Kumar & R. Thomas McCoy - 2023 - Behavioral and Brain Sciences 46:e275.
    The success of models of human behavior based on Bayesian inference over logical formulas or programs is taken as evidence that people employ a “language-of-thought” that has similarly discrete and compositional structure. We argue that this conclusion problematically crosses levels of analysis, identifying representations at the algorithmic level based on inductive biases at the computational level.
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  • Learning mechanisms in cue reweighting.Zara Harmon, Kaori Idemaru & Vsevolod Kapatsinski - 2019 - Cognition 189 (C):76-88.
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  • Cue integration with categories: Weighting acoustic cues in speech using unsupervised learning and distributional statistics.Joseph C. Toscano & Bob McMurray - 2010 - Cognitive Science 34 (3):434.
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  • Range-frequency effects can explain and eliminate prevalence-induced concept change.David E. Levari - 2022 - Cognition 226 (C):105196.
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  • Is it the real deal? Perception of virtual characters versus humans: an affective cognitive neuroscience perspective.Aline W. de Borst & Beatrice de Gelder - 2015 - Frontiers in Psychology 6.
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  • Categorical perception meets El Greco: Categories unequally influence color perception of simultaneously present objects.Marina Dubova & Robert L. Goldstone - 2022 - Cognition 223 (C):105025.
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  • Underspecification in toddlers’ and adults’ lexical representations.Jie Ren, Uriel Cohen Priva & James L. Morgan - 2019 - Cognition 193 (C):103991.
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  • Categorization-based stranger avoidance does not explain the uncanny valley effect.Karl F. MacDorman & Debaleena Chattopadhyay - 2017 - Cognition 161 (C):132-135.
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  • A rational account of perceptual compensation for coarticulation.Morgan Sonderegger & Alan Yu - 2010 - In S. Ohlsson & R. Catrambone (eds.), Proceedings of the 32nd Annual Conference of the Cognitive Science Society. Cognitive Science Society. pp. 375--380.
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  • Reducing consistency in human realism increases the uncanny valley effect; increasing category uncertainty does not.Karl F. MacDorman & Debaleena Chattopadhyay - 2016 - Cognition 146 (C):190-205.
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  • The complementary roles of auditory and motor information evaluated in a Bayesian perceptuo-motor model of speech perception.Raphaël Laurent, Marie-Lou Barnaud, Jean-Luc Schwartz, Pierre Bessière & Julien Diard - 2017 - Psychological Review 124 (5):572-602.
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  • Sociolinguistic Perception as Inference Under Uncertainty.Dave F. Kleinschmidt, Kodi Weatherholtz & T. Florian Jaeger - 2018 - Topics in Cognitive Science 10 (4):818-834.
    Social and linguistic perceptions are linked. On one hand, talker identity affects speech perception. On the other hand, speech itself provides information about a talker's identity. Here, we propose that the same probabilistic knowledge might underlie both socially conditioned linguistic inferences and linguistically conditioned social inferences. Our computational–level approach—the ideal adapter—starts from the idea that listeners use probabilistic knowledge of covariation between social, linguistic, and acoustic cues in order to infer the most likely explanation of the speech signals they hear. (...)
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  • On the category adjustment model: another look at Huttenlocher, Hedges, and Vevea (2000).Sean Duffy & John Smith - 2020 - Mind and Society 19 (1):163-193.
    Huttenlocher et al. (J Exp Psychol Gen 129:220–241, 2000) introduce the category adjustment model (CAM). Given that participants imperfectly remember stimuli (which we refer to as “targets”), CAM holds that participants maximize accuracy by using information about the distribution of the targets to improve their judgments. CAM predicts that judgments will be a weighted average of the imperfect memory of the target and the mean of the distribution of targets. Huttenlocher et al. (2000) report on three experiments and conclude that (...)
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  • The Influences of Category Learning on Perceptual Reconstructions.Marina Dubova & Robert L. Goldstone - 2021 - Cognitive Science 45 (5):e12981.
    We explore different ways in which the human visual system can adapt for perceiving and categorizing the environment. There are various accounts of supervised (categorical) and unsupervised perceptual learning, and different perspectives on the functional relationship between perception and categorization. We suggest that common experimental designs are insufficient to differentiate between hypothesized perceptual learning mechanisms and reveal their possible interplay. We propose a relatively underutilized way of studying potential categorical effects on perception, and we test the predictions of different perceptual (...)
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  • Now or … later: Perceptual data are not immediately forgotten during language processing.Klinton Bicknell, T. Florian Jaeger & Michael K. Tanenhaus - 2016 - Behavioral and Brain Sciences 39.
    Christiansen & Chater propose that language comprehenders must immediately compress perceptual data by “chunking” them into higher-level categories. Effective language understanding, however, requires maintaining perceptual information long enough to integrate it with downstream cues. Indeed, recent results suggest comprehenders do this. Although cognitive systems are undoubtedly limited, frameworks that do not take into account the tasks that these systems evolved to solve risk missing important insights.
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