2009
DOI: 10.5762/kais.2009.10.5.1141
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A Study on the Treatment Status and Treatment Compliance of Diabetics Who Visited the Health Centers of Daejeon City

Abstract: Pseudo-label-based semi-supervised learning (SSL) algorithms trained on a class-imbalanced set face two cascading challenges: 1) Classifiers tend to be biased towards majority classes, and 2) Biased pseudo-labels are used for training. It is difficult to appropriately re-balance the classifiers in SSL because the class distribution of an unlabeled set is often unknown and could be mismatched with that of a labeled set. We propose a novel class-imbalanced SSL algorithm called class-distribution-mismatch-aware d… Show more

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