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Using machine learning to measure evidence of students' sensemaking in physics courses

19 March 2025
Kaitlin Gili
Kyle Heuton
Astha Shah
Michael C. Hughes
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Abstract

In the education system, problem-solving correctness is often inappropriately conflated with student learning. Advances in both Physics Education Research (PER) and Machine Learning (ML) provide the initial tools to develop a more meaningful and efficient measurement scheme for whether physics students are engaging in sensemaking: a learning process of figuring out the how and why for a particular phenomena. In this work, we contribute such a measurement scheme, which quantifies the evidence of students' physical sensemaking given their written explanations for their solutions to physics problems. We outline how the proposed human annotation scheme can be automated into a deployable ML model using language encoders and shared probabilistic classifiers. The procedure is scalable for a large number of problems and students. We implement three unique language encoders with logistic regression, and provide a deployability analysis on 385 real student explanations from the 2023 Introduction to Physics course at Tufts University. Furthermore, we compute sensemaking scores for all students, and analyze these measurements alongside their corresponding problem-solving accuracies. We find no linear relationship between these two variables, supporting the hypothesis that one is not a reliable proxy for the other. We discuss how sensemaking scores can be used alongside problem-solving accuracies to provide a more nuanced snapshot of student performance in physics class.

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@article{gili2025_2503.15638,
  title={ Using machine learning to measure evidence of students' sensemaking in physics courses },
  author={ Kaitlin Gili and Kyle Heuton and Astha Shah and Michael C. Hughes },
  journal={arXiv preprint arXiv:2503.15638},
  year={ 2025 }
}
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