Prof. Kobi Gal

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Classifying and visualizing students' cognitive engagement in course readings

Eran Yogev, Kobi Gal, David Karger, Marc T. Facciotti, Michele Igo

Reading material has been part of course teaching for centuries, but until recently students' engagement with that reading, and its effect on their learning, has been difficult for teachers to assess. In this article, we explore the idea of examining cognitive engagement-a measure of how deeply a student is thinking about course material, which has been shown to correlate with learning gains-as it varies over different sections of the course reading material. We show that a combination of automatic classification and visualization of cognitive engagement anchored in the text can give teachers-and not only researchers-valuable insight into their students' thinking, suggesting ways to modify their lectures and their course readings to improve learning. We demonstrate this approach with analyzing students' comments in two different courses (Physics and Biology) using the Nota Bene annotation platform.

Publication language English
Publication status Published - 26.06.2018
52

ASJC Scopus subject areas

Computer Networks and Communications
Education
Software
Computer Science Applications

Sustainable Development Goals

SDG 4 - Quality Education
Access to Document
10.1145/3231644.3231648
Other files and links
Link to publication in Scopus