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📄 ResearchMay 21, 2026

Multiple Neural Operators Achieve Near-Optimal Rates for Multi-Task Learning

We study the approximation and statistical complexity of learning collections of operators in a shared multi-task setting, with a focus on the Multiple Neural Operators (MNO) architecture. For broad classes of Lipschitz multiple operator maps, we derive near-optimal upper bounds for approximation an...

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Source

http://arxiv.org/abs/2605.22724v1