English

Energy-weighted Message Passing: an infra-red and collinear safe graph neural network algorithm

High Energy Physics - Phenomenology 2022-02-11 v2

Abstract

Hadronic signals of new-physics origin at the Large Hadron Collider can remain hidden within the copiously produced hadronic jets. Unveiling such signatures require highly performant deep-learning algorithms. We construct a class of Graph Neural Networks (GNN) in the message-passing formalism that makes the network output infra-red and collinear (IRC) safe, an important criterion satisfied within perturbative QCD calculations. Including IRC safety of the network output as a requirement in the construction of the GNN improves its explainability and robustness against theoretical uncertainties in the data. We generalise Energy Flow Networks (EFN), an IRC safe deep-learning algorithm on a point cloud, defining energy weighted local and global readouts on GNNs. Applying the simplest of such networks to identify top quarks, W bosons and quark/gluon jets, we find that it outperforms state-of-the-art EFNs. Additionally, we obtain a general class of graph construction algorithms that give structurally invariant graphs in the IRC limit, a necessary criterion for the IRC safety of the GNN output.

Keywords

Cite

@article{arxiv.2109.14636,
  title  = {Energy-weighted Message Passing: an infra-red and collinear safe graph neural network algorithm},
  author = {Partha Konar and Vishal S. Ngairangbam and Michael Spannowsky},
  journal= {arXiv preprint arXiv:2109.14636},
  year   = {2022}
}

Comments

Added discussion of output stability for deeper network. Updated references and corrected typos. Accepted version in JHEP

R2 v1 2026-06-24T06:29:35.777Z