Proceedings of the 8th International Conference on Pattern Recognition Applications and Methods 2019
DOI: 10.5220/0007519602210231
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Adversarial Alignment of Class Prediction Uncertainties for Domain Adaptation

Abstract: We consider unsupervised domain adaptation: given labelled examples from a source domain and unlabelled examples from a related target domain, the goal is to infer the labels of target examples. Under the assumption that features from pre-trained deep neural networks are transferable across related domains, domain adaptation reduces to aligning source and target domain at class prediction uncertainty level. We tackle this problem by introducing a method based on adversarial learning which forces the label unce… Show more

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Cited by 4 publications
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