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Sibylle Marcotte

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#machine learning Preprint Oct 2026

Universal interpolation for deep residual self-attention networks

Universal approximation is a necessary qualitative property of learning architectures to benefit from scaling laws. While it is generically verified on a variety of neural architectures and random feature models, it typically involves infinite width limits. In this work, we focus on deep self-attention models and consi...

Sibylle Marcotte, Joan Bruna · 0 citations

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