Papers › On the Effectiveness of Supervision in Asymmetric Non-Contrastive Learning

On the Effectiveness of Supervision in Asymmetric Non-Contrastive Learning

16 Jun 2024arXiv:2406.10815archive 2025-07-28

Jeongheon Oh, Kibok Lee

Supervised contrastive representation learning has been shown to be effective in various transfer learning scenarios. However, while asymmetric non-contrastive learning (ANCL) often outperforms its contrastive learning counterpart in self-supervised representation learning, the extension of ANCL to supervised scenarios is less explored. To bridge the gap, we study ANCL for supervised representation learning, coined SupSiam and SupBYOL, leveraging labels in ANCL to achieve better representations. The proposed supervised ANCL framework improves representation learning while avoiding collapse. Our analysis reveals that providing supervision to ANCL reduces intra-class variance, and the contribution of supervision should be adjusted to achieve the best performance. Experiments demonstrate the superiority of supervised ANCL across various datasets and tasks. The code is available at: https://github.com/JH-Oh-23/Sup-ANCL.

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SupSiam jh-oh-23/sup-ancl/builder.py official repository ran MIT (permissive) · 4c31d26574c40b3b · report
build_step jh-oh-23/sup-ancl/transfer.py official repository ran · our draft was wrong MIT (permissive) · 27cea26b98b9aebe · report
collect_features jh-oh-23/sup-ancl/transfer.py official repository ran · fixture could not drive it MIT (permissive) · 4eb65fa0ebc8a3bc · report
compute_accuracy jh-oh-23/sup-ancl/transfer.py official repository ran · our draft was wrong MIT (permissive) · 48afbec326335e94 · report
train jh-oh-23/sup-ancl/linear.py official repository ran · fixture could not drive it MIT (permissive) · 301ca971eacdfdcb · report
validate jh-oh-23/sup-ancl/linear.py official repository ran · fixture could not drive it MIT (permissive) · 46c53e9b88a51bc9 · report
concat_all_gather JH-Oh-23/Sup-ANCL/builder.py official repository unverified MIT (permissive) · 73cecca9f3575f09 · report
load_fewshot_datasets JH-Oh-23/Sup-ANCL/fewshot.py official repository unverified MIT (permissive) · 37a474354ef19bfa · report

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Contrastive LearningRepresentation LearningTransfer Learning

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Contrastive Learning

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