2023
DOI: 10.3389/feduc.2023.1073829
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An application of Bayesian inference to examine student retention and attrition in the STEM classroom

Abstract: IntroductionAs artificial intelligence (AI) technology becomes more widespread in the classroom environment, educators have relied on data-driven machine learning (ML) techniques and statistical frameworks to derive insights into student performance patterns. Bayesian methodologies have emerged as a more intuitive approach to frequentist methods of inference since they link prior assumptions and data together to provide a quantitative distribution of final model parameter estimates. Despite their alignment wit… Show more

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Cited by 3 publications
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