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  1. Modeling a Cognitive Transition at the Origin of Cultural Evolution Using Autocatalytic Networks.Liane Gabora & Mike Steel - 2020 - Cognitive Science 44 (9):e12878.
    Autocatalytic networks have been used to model the emergence of self‐organizing structure capable of sustaining life and undergoing biological evolution. Here, we model the emergence of cognitive structure capable of undergoing cultural evolution. Mental representations (MRs) of knowledge and experiences play the role of catalytic molecules, and interactions among them (e.g., the forging of new associations) play the role of reactions and result in representational redescription. The approach tags MRs with their source, that is, whether they were acquired through social (...)
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  • The importance of iteration in creative conceptual combination.Joel Chan & Christian D. Schunn - 2015 - Cognition 145:104-115.
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  • Analogy Generation in Science Experts and Novices.Micah B. Goldwater, Dedre Gentner, Nicole D. LaDue & Julie C. Libarkin - 2021 - Cognitive Science 45 (9):e13036.
    There is a critical inconsistency in the literature on analogical retrieval. On the one hand, a vast set of laboratory studies has found that people often fail to retrieve past experiences that share deep relational commonalities, even when they would be useful for reasoning about a current problem. On the other hand, historical studies and naturalistic research show clear evidence of remindings based on deep relational commonalities. Here, we examine a possible explanation for this inconsistency—namely, that remindings based on relational (...)
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  • Modeling Discontinuous Cultural Evolution: The Impact of Cross-Domain Transfer.Kirthana Ganesh & Liane Gabora - 2022 - Frontiers in Psychology 13.
    This paper uses autocatalytic networks to model discontinuous cultural transitions involving cross-domain transfer, using as an illustrative example, artworks inspired by the oldest-known uncontested example of figurative art: the carving of the Hohlenstein-Stadel Löwenmensch, or lion-human. Autocatalytic networks provide a general modeling setting in which nodes are not just passive transmitters of activation; they actively galvanize, or “catalyze” the synthesis of novel nodes from existing ones This makes them uniquely suited to model how new structure grows out of earlier structure, (...)
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