RankUp: Boosting Semi-Supervised Regression with an Auxiliary Ranking Classifier
–Neural Information Processing Systems
State-of-the-art (SOTA) semi-supervised learning techniques, such as FixMatch and it's variants, have demonstrated impressive performance in classification tasks. However, these methods are not directly applicable to regression tasks. In this paper, we present RankUp, a simple yet effective approach that adapts existing semi-supervised classification techniques to enhance the performance of regression tasks. RankUp achieves this by converting the original regression task into a ranking problem and training it concurrently with the original regression objective.
Neural Information Processing Systems
Dec-27-2025, 05:52:07 GMT
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