2023
DOI: 10.1109/access.2023.3327334
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What Attention Regulation Behaviors Tell Us About Learners in E-Reading?: Adaptive Data-Driven Persona Development and Application Based on Unsupervised Learning

Yoon Lee,
Gosia Migut,
Marcus Specht

Abstract: Different individual features of the learner data often work as essential indicators of learning and intervention needs. This work exploits the personas in the design thinking process as the theoretical basis to analyze and cluster learners' learning behavior patterns as groups. To adapt to the learning practice, we develop data-driven personas by clustering learners' features based on factual learning outcomes (i.e., knowledge gain, perceived learning experience, perceived social presence) based on unsupervis… Show more

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