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Adaptation Across Extreme Variations using Unlabeled Bridges

Publication ,  Conference
Dai, S; Sohn, K; Tsai, YH; Carin, L; Chandraker, M
Published in: 31st British Machine Vision Conference, BMVC 2020
January 1, 2020

We tackle an unsupervised domain adaptation problem for which the domain discrepancy between labeled source and unlabeled target domains is large, due to many factors of inter- and intra-domain variation. While deep domain adaptation methods have been realized by reducing the domain discrepancy, these are difficult to apply when domains are significantly different. We propose to decompose domain discrepancy into multiple but smaller, and thus easier to minimize, discrepancies by introducing unlabeled bridging domains that connect the source and target domains. We realize our proposed approach through an extension of the domain adversarial neural network with multiple discriminators, each of which accounts for reducing discrepancies between unlabeled (bridge, target) domains and a mix of all precedent domains including source. We validate the effectiveness of our method on several adaptation tasks including object recognition and semantic segmentation.

Duke Scholars

Published In

31st British Machine Vision Conference, BMVC 2020

Publication Date

January 1, 2020
 

Citation

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Dai, S., Sohn, K., Tsai, Y. H., Carin, L., & Chandraker, M. (2020). Adaptation Across Extreme Variations using Unlabeled Bridges. In 31st British Machine Vision Conference, BMVC 2020.
Dai, S., K. Sohn, Y. H. Tsai, L. Carin, and M. Chandraker. “Adaptation Across Extreme Variations using Unlabeled Bridges.” In 31st British Machine Vision Conference, BMVC 2020, 2020.
Dai S, Sohn K, Tsai YH, Carin L, Chandraker M. Adaptation Across Extreme Variations using Unlabeled Bridges. In: 31st British Machine Vision Conference, BMVC 2020. 2020.
Dai, S., et al. “Adaptation Across Extreme Variations using Unlabeled Bridges.” 31st British Machine Vision Conference, BMVC 2020, 2020.
Dai S, Sohn K, Tsai YH, Carin L, Chandraker M. Adaptation Across Extreme Variations using Unlabeled Bridges. 31st British Machine Vision Conference, BMVC 2020. 2020.

Published In

31st British Machine Vision Conference, BMVC 2020

Publication Date

January 1, 2020