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Machine Learning Literacy for Measurement Professionals: A Practical Tutorial
Authors:Rui Nie  Qi Guo  Maxim Morin
Institution:Medical Council of Canada
Abstract:The COVID-19 pandemic has accelerated the digitalization of assessment, creating new challenges for measurement professionals, including big data management, test security, and analyzing new validity evidence. In response to these challenges, Machine Learning (ML) emerges as an increasingly important skill in the toolbox of measurement professionals in this new era. However, most ML tutorials are technical and conceptual-focused. Therefore, this tutorial aims to provide a practical introduction to ML in the context of educational measurement. We also supplement our tutorial with several examples of supervised and unsupervised ML techniques applied to marking a short-answer question. Python codes are available on GitHub. In the end, common misconceptions about ML are discussed.
Keywords:automated marking  data science  educational measurement  machine learning  tutorial
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