Papers › Contrastive Syn-to-Real Generalization

Contrastive Syn-to-Real Generalization

6 Apr 2021ICLR 2021 1arXiv:2104.02290archive 2025-07-28

Wuyang Chen, Zhiding Yu, Shalini De Mello, Sifei Liu, Jose M. Alvarez, Zhangyang Wang, Anima Anandkumar

Training on synthetic data can be beneficial for label or data-scarce scenarios. However, synthetically trained models often suffer from poor generalization in real domains due to domain gaps. In this work, we make a key observation that the diversity of the learned feature embeddings plays an important role in the generalization performance. To this end, we propose contrastive synthetic-to-real generalization (CSG), a novel framework that leverages the pre-trained ImageNet knowledge to prevent overfitting to the synthetic domain, while promoting the diversity of feature embeddings as an inductive bias to improve generalization. In addition, we enhance the proposed CSG framework with attentional pooling (A-pool) to let the model focus on semantically important regions and further improve its generalization. We demonstrate the effectiveness of CSG on various synthetic training tasks, exhibiting state-of-the-art performance on zero-shot domain generalization.

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NVlabs/CSG officialmentioned on GitHubpytorch report
ryanking13/CSG mentioned on GitHubpytorch report

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chunk_feature NVlabs/CSG/model/csg_builder.py official repository ran fingerprinted licence not identified · pointer only · 7137f5836bf77b0d · report
concat_all_gather NVlabs/CSG/model/csg_builder.py official repository ran · honoured contract fingerprinted licence not identified · pointer only · a2ad46fbfc2d7b20 · report
CSG NVlabs/CSG/model/csg_builder.py official repository unverified licence not identified · pointer only · 2e581e90912e9383 · report
MoCoLoss ryanking13/CSG/loss/moco_loss.py community (archive-listed) ran · metamorphic tier: deterministic MIT (permissive) · a9035681e2b85d9a · report

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DiversityDomain GeneralizationInductive Bias

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