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Eilif B. Muller

1 accepted papers

2026

Self-Supervised Learning from Structural Invariance

ICLR 2026poster

Joint-embedding self-supervised learning (SSL), the key paradigm for unsupervised representation learning from visual data, learns from invariances between semantically-related data pairs. We study the one-to-many mapping problem in SSL, where each datum may be mapped to multiple valid targets. Thi…

Cited by 0SourcecodeScholar