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Université Paris-Saclay, ENS Paris-Saclay
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Removing stochastic noise from statistical regularizers leads to faster convergence and superior performance in Self-Supervised Learning tasks.
Gaussian embeddings might be suboptimal for self-supervised learning: enforcing hyperspherical uniformity in learned representations yields substantial gains in texture retrieval and ImageNet classification.
Stop struggling with scarce industrial datasets: IRIS-v2 offers a comprehensive multimodal resource for automating the alignment of functional schematics with real-world scene data.