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Chalisa Udompanyawit

1 accepted papers

2023

AQuA: A Benchmarking Tool for Label Quality Assessment

NeurIPS 2023poster

Machine learning (ML) models are only as good as the data they are trained on. But recent studies have found datasets widely used to train and evaluate ML models, e.g. _ImageNet_, to have pervasive labeling errors. Erroneous labels on the train set hurt ML models' ability to generalize, and they imp…