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  • Optimising team dynamics: The role of AI in enhancing challenge-based learning participation experience and outcomes

Sección IA: Inteligencia artificial Bibliografía

Optimising team dynamics: The role of AI in enhancing challenge-based learning participation experience and outcomes

Athina Georgara
Marc Santolini
Olga Kokshagina
Camila Justine Jacinta Haux
Desmé Jacobs
Gloria Biwott
Marcela Correa
Carles Sierra
Jose Luis Fernandez-Marquez
Juan A. Rodriguez-Aguilar
2025
Computers & Education: Artificial Intelligence
8
https://www.sciencedirect.com/science/a…
artículo
estudio empírico
inteligencia artificial
aprendizaje colaborativo
educación superior
IA y aprendizaje
estudio empírico

Texto completo

The approach of engaging students with real-world challenges to enhance collaboration and problem-solving has attracted significant interest from scholars and practitioners across diverse disciplines. Often called Challenge-Based Learning (CBL), this educational approach emphasises developing collaborative and problem-solving skills, with significant learning occurring within team settings. Prior studies highlight the influence of team composition on the efficacy of learning outcomes, pointing out that factors such as gender diversity, personality trait diversity, and a wide range of skills affect team dynamics and performance. Despite these insights, the practical organisation of these teams remains a challenge, often reliant on ad-hoc methods driven primarily by the nature of the setting at hand. Importantly, CBL is typically assessed through the final product, neglecting the impact of CBL on how the participants experience the overall process. That is, CBL is usually considered effective if the outcome is of high quality, ignoring participants' experience and participation quality. This study investigates the potential of an Artificial Intelligence team composition algorithm to improve participation quality and outcomes in collaborative CBL environments.

Texto completo en abierto (CC BY 4.0).
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