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Papers/Learning to Optimize Domain Specific Normalization for Dom...

Learning to Optimize Domain Specific Normalization for Domain Generalization

Seonguk Seo, Yumin Suh, Dongwan Kim, Geeho Kim, Jongwoo Han, Bohyung Han

2019-07-09ECCV 2020 8Domain GeneralizationUnsupervised Domain AdaptationDomain Adaptation
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Abstract

We propose a simple but effective multi-source domain generalization technique based on deep neural networks by incorporating optimized normalization layers that are specific to individual domains. Our approach employs multiple normalization methods while learning separate affine parameters per domain. For each domain, the activations are normalized by a weighted average of multiple normalization statistics. The normalization statistics are kept track of separately for each normalization type if necessary. Specifically, we employ batch and instance normalizations in our implementation to identify the best combination of these two normalization methods in each domain. The optimized normalization layers are effective to enhance the generalizability of the learned model. We demonstrate the state-of-the-art accuracy of our algorithm in the standard domain generalization benchmarks, as well as viability to further tasks such as multi-source domain adaptation and domain generalization in the presence of label noise.

Results

TaskDatasetMetricValueModel
Domain AdaptationPACSAverage Accuracy90.38DSON
Domain AdaptationPACSAverage Accuracy86.64DSON (Resnet-50)
Domain AdaptationPACSAverage Accuracy85.11DSON (Resnet-18)
Unsupervised Domain AdaptationPACSAverage Accuracy90.38DSON
Domain GeneralizationPACSAverage Accuracy86.64DSON (Resnet-50)
Domain GeneralizationPACSAverage Accuracy85.11DSON (Resnet-18)

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