Positivity sets of hinge functions

Schicho, Josef, Tewari, Ayush Kumar, Warren, Audie

arXiv.org Machine Learning 

In this paper we investigate which subsets of the real plane are realisable as the set of points on which a one-layer ReLU neural network takes a positive value. In the case of cones we give a full characterisation of such sets. Furthermore, we give a necessary condition for any subset of $\mathbb R^d$. We give various examples of such one-layer neural networks.

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