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Sheaf Neural Networks and biomedical applications

Aneeqa Mehrab
Jan Willem Van Looy
Pietro Demurtas
Stefano Iotti
Emil Malucelli
Francesca Rossi
Ferdinando Zanchetta
Rita Fioresi
Main:9 Pages
2 Figures
Bibliography:3 Pages
7 Tables
Appendix:3 Pages
Abstract

The purpose of this paper is to elucidate the theory and mathematical modelling behind the sheaf neural network (SNN) algorithm and then show how SNN can effectively answer to biomedical questions in a concrete case study and outperform the most popular graph neural networks (GNNs) as graph convolutional networks (GCNs), graph attention networks (GAT) and GraphSage.

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