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Graph Neural Networks for Community Detection on Sparse Graphs

6 November 2022
Luana Ruiz
Ningyuan Huang
Soledad Villar
ArXiv (abs)PDFHTML
Abstract

Spectral methods provide consistent estimators for community detection in dense graphs. However, their performance deteriorates as the graphs become sparser. In this work we consider a random graph model that can produce graphs at different levels of sparsity, and we show that graph neural networks can outperform spectral methods on sparse graphs. We illustrate the results with numerical examples in both synthetic and real graphs.

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