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Towards a Formal Theory of the Need for Competence via Computational Intrinsic Motivation

  • Imperial College London

Research output: Chapter in Book/Report/Conference proceedingConference article in proceedingsScientificpeer-review

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Abstract

Computational modelling offers a powerful tool for formalising psychological theories, making them more transparent, testable, and applicable in digital contexts. Yet, the question often remains: how should one computationally model a theory? We provide a demonstration of how formalisms taken from artificial intelligence can offer a fertile starting point. Specifically, we focus on the "need for competence", postulated as a key basic psychological need within Self-Determination Theory (SDT)—arguably the most influential framework for intrinsic motivation (IM) in psychology. Recent research has identified multiple distinct facets of competence in key SDT texts: effectance, skill use, task performance, and capacity growth. We draw on the computational IM literature in reinforcement learning to suggest that different existing formalisms may be appropriate for modelling these different facets. Using these formalisms, we reveal underlying preconditions that SDT fails to make explicit, demonstrating how computational models can improve our understanding of IM. More generally, our work can support a cycle of theory development by inspiring new computational models, which can then be tested empirically to refine the theory. Thus, we provide a foundation for advancing competence-related theory in SDT and motivational psychology more broadly.
Original languageEnglish
Title of host publicationProceedings of the 47th Annual Conference of the Cognitive Science Society
PublisherCognitive Science Society
Number of pages6
Publication statusPublished - 2025
MoE publication typeA4 Conference publication
EventAnnual Conference of the Cognitive Science Society - San Francisco, United States
Duration: 30 Jul 20252 Aug 2025

Publication series

NameProceedings of the Annual Meeting of the Cognitive Science Society
PublisherCognitive Science Society
Volume47
ISSN (Electronic)1069-7977

Conference

ConferenceAnnual Conference of the Cognitive Science Society
Abbreviated titleCogSci
Country/TerritoryUnited States
CitySan Francisco
Period30/07/202502/08/2025

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  • -: NEXT-IM/Guckelsberger

    Guckelsberger, C. (Principal investigator) & Lintunen, E. (Project Member)

    01/09/202231/08/2025

    Project: RCF Postdoctoral Researcher

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