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  1. Structure‐Mapping: A Theoretical Framework for Analogy.Dedre Gentner - 1983 - Cognitive Science 7 (2):155-170.
    A theory of analogy must describe how the meaning of an analogy is derived from the meanings of its parts. In the structure‐mapping theory, the interpretation rules are characterized as implicit rules for mapping knowledge about a base domain into a target domain. Two important features of the theory are (a) the rules depend only on syntactic properties of the knowledge representation, and not on the specific content of the domains; and (b) the theoretical framework allows analogies to be distinguished (...)
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  • Analog retrieval by constraint satisfaction.Paul Thagard, Keith J. Holyoak, Greg Nelson & David Gochfeld - 1990 - Artificial Intelligence 46 (3):259-310.
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  • Nonmonotonic Reasoning, Expectations Orderings, and Conceptual Spaces.Matías Osta-Vélez & Peter Gärdenfors - 2021 - Journal of Logic, Language and Information 31 (1):77-97.
    In Gärdenfors and Makinson :197–245, 1994) and Gärdenfors it was shown that it is possible to model nonmonotonic inference using a classical consequence relation plus an expectation-based ordering of formulas. In this article, we argue that this framework can be significantly enriched by adopting a conceptual spaces-based analysis of the role of expectations in reasoning. In particular, we show that this can solve various epistemological issues that surround nonmonotonic and default logics. We propose some formal criteria for constructing and updating (...)
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  • From Actions to Effects: Three Constraints on Event Mappings.Peter Gärdenfors, Jürgen Jost & Massimo Warglien - 2018 - Frontiers in Psychology 9.
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  • Nonmonotonic inference based on expectations.Peter Gärdenfors & David Makinson - 1994 - Artificial Intelligence 65 (2):197-245.
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  • Melting chocolate and melting snowmen: Analogical reasoning and causal relations.U. Goswami - 1990 - Cognition 35 (1):69-95.
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  • Analogy and Abstraction.Dedre Gentner & Christian Hoyos - 2017 - Topics in Cognitive Science 9 (3):672-693.
    A central question in human development is how young children gain knowledge so fast. We propose that analogical generalization drives much of this early learning and allows children to generate new abstractions from experience. In this paper, we review evidence for analogical generalization in both children and adults. We discuss how analogical processes interact with the child's changing knowledge base to predict the course of learning, from conservative to domain-general understanding. This line of research leads to challenges to existing assumptions (...)
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  • Principles of categorization.Eleanor Rosch - 1978 - In Allan Collins & Edward E. Smith (eds.), Readings in Cognitive Science, a Perspective From Psychology and Artificial Intelligence. Morgan Kaufmann Publishers. pp. 312-22.
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  • Conceptual Spaces for Cognitive Architectures: A Lingua Franca for Different Levels of Representation.Antonio Lieto, Antonio Chella & Marcello Frixione - 2017 - Biologically Inspired Cognitive Architectures 19:1-9.
    During the last decades, many cognitive architectures (CAs) have been realized adopting different assumptions about the organization and the representation of their knowledge level. Some of them (e.g. SOAR [35]) adopt a classical symbolic approach, some (e.g. LEABRA[ 48]) are based on a purely connectionist model, while others (e.g. CLARION [59]) adopt a hybrid approach combining connectionist and symbolic representational levels. Additionally, some attempts (e.g. biSOAR) trying to extend the representational capacities of CAs by integrating diagrammatical representations and reasoning are (...)
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  • Conceptual Spaces: The Geometry of Thought.Peter Gärdenfors - 2000 - Tijdschrift Voor Filosofie 64 (1):180-181.
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  • Why we 're so smart'.Dedre Gentner - 2003 - In Dedre Getner & Susan Goldin-Meadow (eds.), Language in Mind: Advances in the Study of Language and Thought. MIT Press. pp. 195--235.
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