ملف الباحث
Manuel Pérez-Carrasco
ورقة واحدة في مجموعة PaperMetrix
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Con$^{2}$DA: Simplifying Semi-supervised Domain Adaptation by Learning Consistent and Contrastive Feature Representations
2022 · arXiv (Cornell University)
In this work, we present Con$^{2}$DA, a simple framework that extends recent advances in semi-supervised learning to the semi-supervised domain adaptation (SSDA) problem. Our framework generates pairs of associated samples by performing stochastic data transformations …