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Marthinus C du Plessis

1 accepted papers

2017

Positive-Unlabeled Learning with Non-Negative Risk Estimator

NeurIPS 2017oral

From only positive (P) and unlabeled (U) data, a binary classifier could be trained with PU learning, in which the state of the art is unbiased PU learning. However, if its model is very flexible, empirical risks on training data will go negative, and we will suffer from serious overfitting. In this…