Automatic Creativity Measurement in Scratch Programs Across Modalities

November 07, 2022 Β· Declared Dead Β· πŸ› IEEE Transactions on Learning Technologies

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Authors Anastasia Kovalkov, Benjamin Paaßen, Avi Segal, Niels Pinkwart, Kobi Gal arXiv ID 2211.05227 Category cs.HC: Human-Computer Interaction Cross-listed cs.AI, cs.LG Citations 17 Venue IEEE Transactions on Learning Technologies Last Checked 4 months ago
Abstract
Promoting creativity is considered an important goal of education, but creativity is notoriously hard to measure.In this paper, we make the journey fromdefining a formal measure of creativity that is efficientlycomputable to applying the measure in a practical domain. The measure is general and relies on coretheoretical concepts in creativity theory, namely fluency, flexibility, and originality, integratingwith prior cognitive science literature. We adapted the general measure for projects in the popular visual programming language Scratch.We designed a machine learning model for predicting the creativity of Scratch projects, trained and evaluated on human expert creativity assessments in an extensive user study. Our results show that opinions about creativity in Scratch varied widely across experts. The automatic creativity assessment aligned with the assessment of the human experts more than the experts agreed with each other. This is a first step in providing computational models for measuring creativity that can be applied to educational technologies, and to scale up the benefit of creativity education in schools.
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