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  1. The role of similarity in categorization: providing a groundwork.Robert L. Goldstone - 1994 - Cognition 52 (2):125-157.
  • Conceptual Spaces, Generalisation Probabilities and Perceptual Categorisation.Nina Poth - 2019 - In Peter Gärdenfors, Antti Hautamäki, Frank Zenker & Mauri Kaipainen (eds.), Conceptual Spaces: Elaborations and Applications. Springer Verlag. pp. 7-28.
    Shepard’s (1987) universal law of generalisation (ULG) illustrates that an invariant gradient of generalisation across species and across stimuli conditions can be obtained by mapping the probability of a generalisation response onto the representations of similarity between individual stimuli. Tenenbaum and Griffiths (2001) Bayesian account of generalisation expands ULG towards generalisation from multiple examples. Though the Bayesian model starts from Shepard’s account it refrains from any commitment to the notion of psychological similarity to explain categorisation. This chapter presents the conceptual (...)
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  • Potential pitfalls in computational modelling of appraisal processes: A reply to chwelos and oatley.Thomas Wehrle & Klaus R. Scherer - 1995 - Cognition and Emotion 9 (6):599-616.
  • Understanding and appreciating metaphors.Roger Tourangeau & Robert J. Sternberg - 1982 - Cognition 11 (3):203-244.
  • Mapping attractor fields in face space: the atypicality bias in face recognition.J. Tanaka - 1998 - Cognition 68 (3):199-219.
  • How Category Structure Influences the Perception of Object Similarity: The Atypicality Bias.James William Tanaka, Justin Kantner & Marni Bartlett - 2012 - Frontiers in Psychology 3.
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  • Inductive Reasoning with Multi-dimensional Concepts.Marta Sznajder - 2021 - British Journal for the Philosophy of Science 72 (2):465-484.
    Attribute spaces are a type of conceptual spaces which Carnap introduced in his late basic system of inductive logic. This article shows how to extend Carnap's use of them into a full model of inductive reasoning with geometrically represented concepts, extending my earlier work. The proposed model draws on Bayesian non-parametric techniques in order to define a probability distribution over the attribute space and a way of updating it with data. The model is another example of conceptual and formal continuity (...)
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  • Cognitive psychology.Edward E. Smith - 1985 - Artificial Intelligence 25 (3):247-253.
  • Refining the Bayesian Approach to Unifying Generalisation.Nina Poth - 2022 - Review of Philosophy and Psychology (3):1-31.
    Tenenbaum and Griffiths (2001) have proposed that their Bayesian model of generalisation unifies Shepard’s (1987) and Tversky’s (1977) similarity-based explanations of two distinct patterns of generalisation behaviours by reconciling them under a single coherent task analysis. I argue that this proposal needs refinement: instead of unifying the heterogeneous notion of psychological similarity, the Bayesian approach unifies generalisation by rendering the distinct patterns of behaviours informationally relevant. I suggest that generalisation as a Bayesian inference should be seen as a complement to, (...)
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  • Refining the Bayesian Approach to Unifying Generalisation.Nina Poth - 2023 - Review of Philosophy and Psychology 14 (3):877-907.
    Tenenbaum and Griffiths (Behavioral and Brain Sciences 24(4):629–640, 2001) have proposed that their Bayesian model of generalisation unifies Shepard’s (Science 237(4820): 1317–1323, 1987) and Tversky’s (Psychological Review 84(4): 327–352, 1977) similarity-based explanations of two distinct patterns of generalisation behaviours by reconciling them under a single coherent task analysis. I argue that this proposal needs refinement: instead of unifying the heterogeneous notion of psychological similarity, the Bayesian approach unifies generalisation by rendering the distinct patterns of behaviours informationally relevant. I suggest that (...)
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  • Same but Different: Providing a Probabilistic Foundation for the Feature-Matching Approach to Similarity and Categorization.Nina Poth - forthcoming - Erkenntnis:1-25.
    The feature-matching approach pioneered by Amos Tversky remains a groundwork for psychological models of similarity and categorization but is rarely explicitly justified considering recent advances in thinking about cognition. While psychologists often view similarity as an unproblematic foundational concept that explains generalization and conceptual thought, long-standing philosophical problems challenging this assumption suggest that similarity derives from processes of higher-level cognition, including inference and conceptual thought. This paper addresses three specific challenges to Tversky’s approach: (i) the feature-selection problem, (ii) the problem (...)
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  • Progress and current challenges with the quantum similarity model.Emmanuel M. Pothos, Albert Barque-Duran, James M. Yearsley, Jennifer S. Trueblood, Jerome R. Busemeyer & James A. Hampton - 2015 - Frontiers in Psychology 6.
  • Can quantum probability provide a new direction for cognitive modeling?Emmanuel M. Pothos & Jerome R. Busemeyer - 2013 - Behavioral and Brain Sciences 36 (3):255-274.
    Classical (Bayesian) probability (CP) theory has led to an influential research tradition for modeling cognitive processes. Cognitive scientists have been trained to work with CP principles for so long that it is hard even to imagine alternative ways to formalize probabilities. However, in physics, quantum probability (QP) theory has been the dominant probabilistic approach for nearly 100 years. Could QP theory provide us with any advantages in cognitive modeling as well? Note first that both CP and QP theory share the (...)
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  • Parallelograms revisited: Exploring the limitations of vector space models for simple analogies.Joshua C. Peterson, Dawn Chen & Thomas L. Griffiths - 2020 - Cognition 205 (C):104440.
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  • The exemplars of a strong whole were rated as more similar than were the exemplars of a weak whole.Donald L. King - 1987 - Bulletin of the Psychonomic Society 25 (1):51-53.
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  • Familiarity, Priming, and Perception in Similarity Judgments.M. Hiatt Laura & J. Gregory Trafton - 2017 - Cognitive Science 41 (6):1450-1484.
    We present a novel way of accounting for similarity judgments. Our approach posits that similarity stems from three main sources—familiarity, priming, and inherent perceptual likeness. Here, we explore each of these constructs and demonstrate their individual and combined effectiveness in explaining similarity judgments. Using these three measures, our account of similarity explains ratings of simple, color-based perceptual stimuli that display asymmetry effects, as well as more complicated perceptual stimuli with structural properties; more traditional approaches to similarity solve one or the (...)
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  • A Quantum Geometric Framework for Modeling Color Similarity Judgments.Gunnar P. Epping, Elizabeth L. Fisher, Ariel M. Zeleznikow-Johnston, Emmanuel M. Pothos & Naotsugu Tsuchiya - 2023 - Cognitive Science 47 (1):e13231.
    Since Tversky argued that similarity judgments violate the three metric axioms, asymmetrical similarity judgments have been particularly challenging for standard, geometric models of similarity, such as multidimensional scaling. According to Tversky, asymmetrical similarity judgments are driven by differences in salience or extent of knowledge. However, the notion of salience has been difficult to operationalize, especially for perceptual stimuli for which there are no apparent differences in extent of knowledge. To investigate similarity judgments between perceptual stimuli, across three experiments, we collected (...)
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  • What are natural concepts? A design perspective.Igor Douven & Peter Gärdenfors - 2019 - Mind and Language (3):313-334.
    Conceptual spaces have become an increasingly popular modeling tool in cognitive psychology. The core idea of the conceptual spaces approach is that concepts can be represented as regions in similarity spaces. While it is generally acknowledged that not every region in such a space represents a natural concept, it is still an open question what distinguishes those regions that represent natural concepts from those that do not. The central claim of this paper is that natural concepts are represented by the (...)
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  • Putting prototypes in place.Igor Douven - 2019 - Cognition 193 (C):104007.
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  • Discrete thoughts: Why cognition must use discrete representations.Eric Dietrich & Arthur B. Markman - 2003 - Mind and Language 18 (1):95-119.
    Advocates of dynamic systems have suggested that higher mental processes are based on continuous representations. In order to evaluate this claim, we first define the concept of representation, and rigorously distinguish between discrete representations and continuous representations. We also explore two important bases of representational content. Then, we present seven arguments that discrete representations are necessary for any system that must discriminate between two or more states. It follows that higher mental processes require discrete representations. We also argue that discrete (...)
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  • Inducing semantic relations from conceptual spaces: A data-driven approach to plausible reasoning.Joaquín Derrac & Steven Schockaert - 2015 - Artificial Intelligence 228 (C):66-94.
  • Similarity After Goodman.Lieven Decock & Igor Douven - 2011 - Review of Philosophy and Psychology 2 (1):61-75.
    In a famous critique, Goodman dismissed similarity as a slippery and both philosophically and scientifically useless notion. We revisit his critique in the light of important recent work on similarity in psychology and cognitive science. Specifically, we use Tversky’s influential set-theoretic account of similarity as well as Gärdenfors’s more recent resuscitation of the geometrical account to show that, while Goodman’s critique contained valuable insights, it does not warrant a dismissal of similarity.
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  • Map-Like Representations of an Abstract Conceptual Space in the Human Brain.Levan Bokeria, Richard N. Henson & Robert M. Mok - 2021 - Frontiers in Human Neuroscience 15:620056.
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  • Similarity Reimagined (with Implications for a Theory of Concepts).Corinne L. Bloch-Mullins - 2021 - Theoria 87 (1):31-68.
    Similarity‐based theories of concepts have a broad intuitive appeal and have been successful in accounting for various phenomena related to the formation and application of concepts. Their adequacy as theories of concepts has been questioned, however, as similarity is often taken as too flexible, too unconstrained, to be explanatory of categorization. In this article, I propose an account of similarity that takes the “foil” against which the target items are measured as integral to the process of comparison, making the similarity (...)
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  • Nonintentional similarity processing.Arthur B. Markman & Dedre Gentner - 2005 - In Ran R. Hassin, James S. Uleman & John A. Bargh (eds.), The New Unconscious. Oxford Series in Social Cognition and Social Neuroscience. Oxford University Press. pp. 107--137.
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  • Manifestations and Consequences of Negative Information’s Great Diversity.Hans Alves - unknown
    In the present dissertation, I propose a general, robust, and objective characteristic of the information environment, according to which negative information is more diverse than positive information. I present an explanatory framework for this phenomenon based on the non-extremity of positive qualities. Specifically, most attribute dimensions host one “positive” range which is surrounded by two distinct “negative” ranges, resulting in a greater diversity of negative compared to positive attributes, stimuli, and information in general. Chapter 1 of my dissertation reviews evidence (...)
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