Francesco Cauteruccio

@fcauteruccio
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Hey there!
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homepagehttps://francescocauteruccio.info

Another day, another paper! 📢 Our research paper "A network analysis-based framework to understand the representation dynamics of graph neural networks" has just been published in Neural Computing and Applications (Springer) 🚀

We introduce a unique framework to study Graph Neural Networks (#GNNs) via a network analysis-based framework 🌐. We also have developed a novel training loss function that significantly boosts the GNN's performance! 📈

https://link.springer.com/article/10.1007/s00521-023-09181-w

A network analysis-based framework to understand the representation dynamics of graph neural networks - Neural Computing and Applications

In this paper, we propose a framework that uses the theory and techniques of (Social) Network Analysis to investigate the learned representations of a Graph Neural Network (GNN, for short). Our framework receives a graph as input and passes it to the GNN to be investigated, which returns suitable node embeddings. These are used to derive insights on the behavior of the GNN through the application of (Social) Network Analysis theory and techniques. The insights thus obtained are employed to define a new training loss function, which takes into account the differences between the graph received as input by the GNN and the one reconstructed from the node embeddings returned by it. This measure is finally used to improve the performance of the GNN. In addition to describe the framework in detail and compare it with related literature, we present an extensive experimental campaign that we conducted to validate the quality of the results obtained.

SpringerLink