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Jet tagging via particle clouds

H. QuL. Gouskos

Abstract

How to represent a jet is at the core of machine learning on jet physics. Inspired by the notion of point clouds, we propose a new approach that considers a jet as an unordered set of its constituent particles, effectively a ``particle cloud.'' Such a particle cloud representation of jets is efficient in incorporating raw information of jets and also explicitly respects the permutation symmetry. Based on the particle cloud representation, we propose ParticleNet, a customized neural network architecture using Dynamic Graph Convolutional Neural Network for jet tagging problems. The ParticleNet architecture achieves state-of-the-art performance on two representative jet tagging benchmarks and is improved significantly over existing methods.

Computational Physics and Python ApplicationsAstrophysics and Cosmic PhenomenaGaussian Processes and Bayesian InferenceJet (fluid)Representation (politics)Point cloudComputer scienceSet (abstract data type)Convolutional neural networkGraphCloud computingParticle (ecology)Architecture

Funding

  • U.S. Department of Energy
Citations
383
FWCI
27.44
field-weighted impact
References
95
Percentile
100%
vs. same field & year
Citations per year
References
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Computer Physics Communications · 2015 · 5,050 citations
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Journal of High Energy Physics · 2011 · 859 citations
Dynamic Graph CNN for Learning on Point Clouds
ACM Transactions on Graphics · 2019 · 6,500 citations
Soft drop
Journal of High Energy Physics · 2014 · 763 citations
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Jet tagging via particle clouds · Scinovex