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#machine learning Preprint Sep 2026

Approximation Property of Dropout Neural Networks: Sobolev Rates and Confidence Bounds

The universal approximation property of dropout neural networks does not by itself describe the network size required for an accurate random realization. In this work, we study approximation of the unit ball of $W^{n,\infty}([0,1]^d)$ by ReLU networks whose edges are retained independently with probability $p$. The app...

Jian Yao · 0 citations

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