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FixBi: Bridging Domain Spaces for Unsupervised Domain Adaptation

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Unsupervised domain adaptation (UDA) methods for learning domain invariant representations have achieved remarkable progress. However, most of the studies were based on direct adaptation from the source domain to the target domain and have suffered from large domain discrepancies. In this paper, we propose a UDA method that effectively handles such large domain discrepancies. We introduce a fixed ratio-based mixup to augment multiple intermediate domains between the source and target domain. From the augmented-domains, we train the source-dominant model and the target-dominant model that have complementary characteristics. Using our confidence-based learning methodologies, e.g., bidirectional matching with high-confidence predictions and self-penalization using low-confidence predictions, the models can learn from each other or from its own results. Through our proposed methods, the models gradually transfer domain knowledge from the source to the target domain. Extensive experiments demonstrate the superiority of our proposed method on three public benchmarks: Office-31, Office-Home, and VisDA-2017.

Jaemin Na, Heechul Jung, Hyung Jin Chang, Wonjun Hwang• 2020

Related benchmarks

TaskDatasetResultRank
Unsupervised Domain AdaptationOffice-Home (test)
Average Accuracy72.7
332
Unsupervised Domain AdaptationOffice-Home
Average Accuracy72.7
238
Image ClassificationOffice-Home (test)
Mean Accuracy72.7
199
Domain AdaptationOffice-31 unsupervised adaptation standard
Accuracy (A to W)96.1
162
Domain AdaptationOffice-31
Accuracy (A -> W)96.1
156
Image ClassificationOffice-Home
Average Accuracy72.7
142
Unsupervised Domain AdaptationImageCLEF-DA
Average Accuracy86
104
Object ClassificationVisDA synthetic-to-real 2017
Mean Accuracy87.2
91
Unsupervised Domain AdaptationVisDA unsupervised domain adaptation 2017
Mean Accuracy87.2
87
Unsupervised Domain AdaptationOffice-31
A->W Accuracy96.1
83
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