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A Machine Learning Approach to Design an Efficient Selective Screening of Mild Cognitive Impairment
Published on: January 11, 2020
Mostafa Alwash1, Ghadi S Al Hajj2, Ivar Grytten2
1Department of Informatics, Faculty of Mathematics and Natural Sciences, University of Oslo, Oslo, Norway. malwash@gmail.com.
Selecting machine learning methods for medicine is hard due to small datasets. SimCalibration uses structural learners to create synthetic data for better benchmarking, improving model selection and reliability in healthcare.
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